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b49e97c9 1/* MIPS-specific support for ELF
82704155 2 Copyright (C) 1993-2019 Free Software Foundation, Inc.
b49e97c9
TS
3
4 Most of the information added by Ian Lance Taylor, Cygnus Support,
5 <ian@cygnus.com>.
6 N32/64 ABI support added by Mark Mitchell, CodeSourcery, LLC.
7 <mark@codesourcery.com>
8 Traditional MIPS targets support added by Koundinya.K, Dansk Data
9 Elektronik & Operations Research Group. <kk@ddeorg.soft.net>
10
ae9a127f 11 This file is part of BFD, the Binary File Descriptor library.
b49e97c9 12
ae9a127f
NC
13 This program is free software; you can redistribute it and/or modify
14 it under the terms of the GNU General Public License as published by
cd123cb7 15 the Free Software Foundation; either version 3 of the License, or
ae9a127f 16 (at your option) any later version.
b49e97c9 17
ae9a127f
NC
18 This program is distributed in the hope that it will be useful,
19 but WITHOUT ANY WARRANTY; without even the implied warranty of
20 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
21 GNU General Public License for more details.
b49e97c9 22
ae9a127f
NC
23 You should have received a copy of the GNU General Public License
24 along with this program; if not, write to the Free Software
cd123cb7
NC
25 Foundation, Inc., 51 Franklin Street - Fifth Floor, Boston,
26 MA 02110-1301, USA. */
27
b49e97c9
TS
28
29/* This file handles functionality common to the different MIPS ABI's. */
30
b49e97c9 31#include "sysdep.h"
3db64b00 32#include "bfd.h"
b49e97c9 33#include "libbfd.h"
64543e1a 34#include "libiberty.h"
b49e97c9
TS
35#include "elf-bfd.h"
36#include "elfxx-mips.h"
37#include "elf/mips.h"
0a44bf69 38#include "elf-vxworks.h"
2f0c68f2 39#include "dwarf2.h"
b49e97c9
TS
40
41/* Get the ECOFF swapping routines. */
42#include "coff/sym.h"
43#include "coff/symconst.h"
44#include "coff/ecoff.h"
45#include "coff/mips.h"
46
b15e6682
AO
47#include "hashtab.h"
48
9ab066b4
RS
49/* Types of TLS GOT entry. */
50enum mips_got_tls_type {
51 GOT_TLS_NONE,
52 GOT_TLS_GD,
53 GOT_TLS_LDM,
54 GOT_TLS_IE
55};
56
ead49a57 57/* This structure is used to hold information about one GOT entry.
3dff0dd1
RS
58 There are four types of entry:
59
60 (1) an absolute address
61 requires: abfd == NULL
62 fields: d.address
63
64 (2) a SYMBOL + OFFSET address, where SYMBOL is local to an input bfd
65 requires: abfd != NULL, symndx >= 0, tls_type != GOT_TLS_LDM
66 fields: abfd, symndx, d.addend, tls_type
67
68 (3) a SYMBOL address, where SYMBOL is not local to an input bfd
69 requires: abfd != NULL, symndx == -1
70 fields: d.h, tls_type
71
72 (4) a TLS LDM slot
73 requires: abfd != NULL, symndx == 0, tls_type == GOT_TLS_LDM
74 fields: none; there's only one of these per GOT. */
b15e6682
AO
75struct mips_got_entry
76{
3dff0dd1 77 /* One input bfd that needs the GOT entry. */
b15e6682 78 bfd *abfd;
f4416af6
AO
79 /* The index of the symbol, as stored in the relocation r_info, if
80 we have a local symbol; -1 otherwise. */
81 long symndx;
82 union
83 {
84 /* If abfd == NULL, an address that must be stored in the got. */
85 bfd_vma address;
86 /* If abfd != NULL && symndx != -1, the addend of the relocation
87 that should be added to the symbol value. */
88 bfd_vma addend;
89 /* If abfd != NULL && symndx == -1, the hash table entry
3dff0dd1 90 corresponding to a symbol in the GOT. The symbol's entry
020d7251
RS
91 is in the local area if h->global_got_area is GGA_NONE,
92 otherwise it is in the global area. */
f4416af6
AO
93 struct mips_elf_link_hash_entry *h;
94 } d;
0f20cc35 95
9ab066b4
RS
96 /* The TLS type of this GOT entry. An LDM GOT entry will be a local
97 symbol entry with r_symndx == 0. */
0f20cc35
DJ
98 unsigned char tls_type;
99
9ab066b4
RS
100 /* True if we have filled in the GOT contents for a TLS entry,
101 and created the associated relocations. */
102 unsigned char tls_initialized;
103
b15e6682 104 /* The offset from the beginning of the .got section to the entry
f4416af6
AO
105 corresponding to this symbol+addend. If it's a global symbol
106 whose offset is yet to be decided, it's going to be -1. */
107 long gotidx;
b15e6682
AO
108};
109
13db6b44
RS
110/* This structure represents a GOT page reference from an input bfd.
111 Each instance represents a symbol + ADDEND, where the representation
112 of the symbol depends on whether it is local to the input bfd.
113 If it is, then SYMNDX >= 0, and the symbol has index SYMNDX in U.ABFD.
114 Otherwise, SYMNDX < 0 and U.H points to the symbol's hash table entry.
115
116 Page references with SYMNDX >= 0 always become page references
117 in the output. Page references with SYMNDX < 0 only become page
118 references if the symbol binds locally; in other cases, the page
119 reference decays to a global GOT reference. */
120struct mips_got_page_ref
121{
122 long symndx;
123 union
124 {
125 struct mips_elf_link_hash_entry *h;
126 bfd *abfd;
127 } u;
128 bfd_vma addend;
129};
130
c224138d
RS
131/* This structure describes a range of addends: [MIN_ADDEND, MAX_ADDEND].
132 The structures form a non-overlapping list that is sorted by increasing
133 MIN_ADDEND. */
134struct mips_got_page_range
135{
136 struct mips_got_page_range *next;
137 bfd_signed_vma min_addend;
138 bfd_signed_vma max_addend;
139};
140
141/* This structure describes the range of addends that are applied to page
13db6b44 142 relocations against a given section. */
c224138d
RS
143struct mips_got_page_entry
144{
13db6b44
RS
145 /* The section that these entries are based on. */
146 asection *sec;
c224138d
RS
147 /* The ranges for this page entry. */
148 struct mips_got_page_range *ranges;
149 /* The maximum number of page entries needed for RANGES. */
150 bfd_vma num_pages;
151};
152
f0abc2a1 153/* This structure is used to hold .got information when linking. */
b49e97c9
TS
154
155struct mips_got_info
156{
b49e97c9
TS
157 /* The number of global .got entries. */
158 unsigned int global_gotno;
23cc69b6
RS
159 /* The number of global .got entries that are in the GGA_RELOC_ONLY area. */
160 unsigned int reloc_only_gotno;
0f20cc35
DJ
161 /* The number of .got slots used for TLS. */
162 unsigned int tls_gotno;
163 /* The first unused TLS .got entry. Used only during
164 mips_elf_initialize_tls_index. */
165 unsigned int tls_assigned_gotno;
c224138d 166 /* The number of local .got entries, eventually including page entries. */
b49e97c9 167 unsigned int local_gotno;
c224138d
RS
168 /* The maximum number of page entries needed. */
169 unsigned int page_gotno;
ab361d49
RS
170 /* The number of relocations needed for the GOT entries. */
171 unsigned int relocs;
cb22ccf4
KCY
172 /* The first unused local .got entry. */
173 unsigned int assigned_low_gotno;
174 /* The last unused local .got entry. */
175 unsigned int assigned_high_gotno;
b15e6682
AO
176 /* A hash table holding members of the got. */
177 struct htab *got_entries;
13db6b44
RS
178 /* A hash table holding mips_got_page_ref structures. */
179 struct htab *got_page_refs;
c224138d
RS
180 /* A hash table of mips_got_page_entry structures. */
181 struct htab *got_page_entries;
f4416af6
AO
182 /* In multi-got links, a pointer to the next got (err, rather, most
183 of the time, it points to the previous got). */
184 struct mips_got_info *next;
185};
186
d7206569 187/* Structure passed when merging bfds' gots. */
f4416af6
AO
188
189struct mips_elf_got_per_bfd_arg
190{
f4416af6
AO
191 /* The output bfd. */
192 bfd *obfd;
193 /* The link information. */
194 struct bfd_link_info *info;
195 /* A pointer to the primary got, i.e., the one that's going to get
196 the implicit relocations from DT_MIPS_LOCAL_GOTNO and
197 DT_MIPS_GOTSYM. */
198 struct mips_got_info *primary;
199 /* A non-primary got we're trying to merge with other input bfd's
200 gots. */
201 struct mips_got_info *current;
202 /* The maximum number of got entries that can be addressed with a
203 16-bit offset. */
204 unsigned int max_count;
c224138d
RS
205 /* The maximum number of page entries needed by each got. */
206 unsigned int max_pages;
0f20cc35
DJ
207 /* The total number of global entries which will live in the
208 primary got and be automatically relocated. This includes
209 those not referenced by the primary GOT but included in
210 the "master" GOT. */
211 unsigned int global_count;
f4416af6
AO
212};
213
ab361d49
RS
214/* A structure used to pass information to htab_traverse callbacks
215 when laying out the GOT. */
f4416af6 216
ab361d49 217struct mips_elf_traverse_got_arg
f4416af6 218{
ab361d49 219 struct bfd_link_info *info;
f4416af6
AO
220 struct mips_got_info *g;
221 int value;
0f20cc35
DJ
222};
223
f0abc2a1
AM
224struct _mips_elf_section_data
225{
226 struct bfd_elf_section_data elf;
227 union
228 {
f0abc2a1
AM
229 bfd_byte *tdata;
230 } u;
231};
232
233#define mips_elf_section_data(sec) \
68bfbfcc 234 ((struct _mips_elf_section_data *) elf_section_data (sec))
f0abc2a1 235
d5eaccd7
RS
236#define is_mips_elf(bfd) \
237 (bfd_get_flavour (bfd) == bfd_target_elf_flavour \
238 && elf_tdata (bfd) != NULL \
4dfe6ac6 239 && elf_object_id (bfd) == MIPS_ELF_DATA)
d5eaccd7 240
634835ae
RS
241/* The ABI says that every symbol used by dynamic relocations must have
242 a global GOT entry. Among other things, this provides the dynamic
243 linker with a free, directly-indexed cache. The GOT can therefore
244 contain symbols that are not referenced by GOT relocations themselves
245 (in other words, it may have symbols that are not referenced by things
246 like R_MIPS_GOT16 and R_MIPS_GOT_PAGE).
247
248 GOT relocations are less likely to overflow if we put the associated
249 GOT entries towards the beginning. We therefore divide the global
250 GOT entries into two areas: "normal" and "reloc-only". Entries in
251 the first area can be used for both dynamic relocations and GP-relative
252 accesses, while those in the "reloc-only" area are for dynamic
253 relocations only.
254
255 These GGA_* ("Global GOT Area") values are organised so that lower
256 values are more general than higher values. Also, non-GGA_NONE
257 values are ordered by the position of the area in the GOT. */
258#define GGA_NORMAL 0
259#define GGA_RELOC_ONLY 1
260#define GGA_NONE 2
261
861fb55a
DJ
262/* Information about a non-PIC interface to a PIC function. There are
263 two ways of creating these interfaces. The first is to add:
264
265 lui $25,%hi(func)
266 addiu $25,$25,%lo(func)
267
268 immediately before a PIC function "func". The second is to add:
269
270 lui $25,%hi(func)
271 j func
272 addiu $25,$25,%lo(func)
273
274 to a separate trampoline section.
275
276 Stubs of the first kind go in a new section immediately before the
277 target function. Stubs of the second kind go in a single section
278 pointed to by the hash table's "strampoline" field. */
279struct mips_elf_la25_stub {
280 /* The generated section that contains this stub. */
281 asection *stub_section;
282
283 /* The offset of the stub from the start of STUB_SECTION. */
284 bfd_vma offset;
285
286 /* One symbol for the original function. Its location is available
287 in H->root.root.u.def. */
288 struct mips_elf_link_hash_entry *h;
289};
290
291/* Macros for populating a mips_elf_la25_stub. */
292
293#define LA25_LUI(VAL) (0x3c190000 | (VAL)) /* lui t9,VAL */
294#define LA25_J(VAL) (0x08000000 | (((VAL) >> 2) & 0x3ffffff)) /* j VAL */
3734320d 295#define LA25_BC(VAL) (0xc8000000 | (((VAL) >> 2) & 0x3ffffff)) /* bc VAL */
861fb55a 296#define LA25_ADDIU(VAL) (0x27390000 | (VAL)) /* addiu t9,t9,VAL */
d21911ea
MR
297#define LA25_LUI_MICROMIPS(VAL) \
298 (0x41b90000 | (VAL)) /* lui t9,VAL */
299#define LA25_J_MICROMIPS(VAL) \
300 (0xd4000000 | (((VAL) >> 1) & 0x3ffffff)) /* j VAL */
301#define LA25_ADDIU_MICROMIPS(VAL) \
302 (0x33390000 | (VAL)) /* addiu t9,t9,VAL */
861fb55a 303
b49e97c9
TS
304/* This structure is passed to mips_elf_sort_hash_table_f when sorting
305 the dynamic symbols. */
306
307struct mips_elf_hash_sort_data
308{
309 /* The symbol in the global GOT with the lowest dynamic symbol table
310 index. */
311 struct elf_link_hash_entry *low;
0f20cc35
DJ
312 /* The least dynamic symbol table index corresponding to a non-TLS
313 symbol with a GOT entry. */
55f8b9d2 314 bfd_size_type min_got_dynindx;
f4416af6
AO
315 /* The greatest dynamic symbol table index corresponding to a symbol
316 with a GOT entry that is not referenced (e.g., a dynamic symbol
9e4aeb93 317 with dynamic relocations pointing to it from non-primary GOTs). */
55f8b9d2 318 bfd_size_type max_unref_got_dynindx;
e17b0c35
MR
319 /* The greatest dynamic symbol table index corresponding to a local
320 symbol. */
321 bfd_size_type max_local_dynindx;
322 /* The greatest dynamic symbol table index corresponding to an external
b49e97c9 323 symbol without a GOT entry. */
55f8b9d2 324 bfd_size_type max_non_got_dynindx;
f16a9783
MS
325 /* If non-NULL, output BFD for .MIPS.xhash finalization. */
326 bfd *output_bfd;
327 /* If non-NULL, pointer to contents of .MIPS.xhash for filling in
328 real final dynindx. */
329 bfd_byte *mipsxhash;
b49e97c9
TS
330};
331
1bbce132
MR
332/* We make up to two PLT entries if needed, one for standard MIPS code
333 and one for compressed code, either a MIPS16 or microMIPS one. We
334 keep a separate record of traditional lazy-binding stubs, for easier
335 processing. */
336
337struct plt_entry
338{
339 /* Traditional SVR4 stub offset, or -1 if none. */
340 bfd_vma stub_offset;
341
342 /* Standard PLT entry offset, or -1 if none. */
343 bfd_vma mips_offset;
344
345 /* Compressed PLT entry offset, or -1 if none. */
346 bfd_vma comp_offset;
347
348 /* The corresponding .got.plt index, or -1 if none. */
349 bfd_vma gotplt_index;
350
351 /* Whether we need a standard PLT entry. */
352 unsigned int need_mips : 1;
353
354 /* Whether we need a compressed PLT entry. */
355 unsigned int need_comp : 1;
356};
357
b49e97c9
TS
358/* The MIPS ELF linker needs additional information for each symbol in
359 the global hash table. */
360
361struct mips_elf_link_hash_entry
362{
363 struct elf_link_hash_entry root;
364
365 /* External symbol information. */
366 EXTR esym;
367
861fb55a
DJ
368 /* The la25 stub we have created for ths symbol, if any. */
369 struct mips_elf_la25_stub *la25_stub;
370
b49e97c9
TS
371 /* Number of R_MIPS_32, R_MIPS_REL32, or R_MIPS_64 relocs against
372 this symbol. */
373 unsigned int possibly_dynamic_relocs;
374
b49e97c9
TS
375 /* If there is a stub that 32 bit functions should use to call this
376 16 bit function, this points to the section containing the stub. */
377 asection *fn_stub;
378
b49e97c9
TS
379 /* If there is a stub that 16 bit functions should use to call this
380 32 bit function, this points to the section containing the stub. */
381 asection *call_stub;
382
383 /* This is like the call_stub field, but it is used if the function
384 being called returns a floating point value. */
385 asection *call_fp_stub;
7c5fcef7 386
f16a9783
MS
387 /* If non-zero, location in .MIPS.xhash to write real final dynindx. */
388 bfd_vma mipsxhash_loc;
389
634835ae
RS
390 /* The highest GGA_* value that satisfies all references to this symbol. */
391 unsigned int global_got_area : 2;
392
6ccf4795
RS
393 /* True if all GOT relocations against this symbol are for calls. This is
394 a looser condition than no_fn_stub below, because there may be other
395 non-call non-GOT relocations against the symbol. */
396 unsigned int got_only_for_calls : 1;
397
71782a75
RS
398 /* True if one of the relocations described by possibly_dynamic_relocs
399 is against a readonly section. */
400 unsigned int readonly_reloc : 1;
401
861fb55a
DJ
402 /* True if there is a relocation against this symbol that must be
403 resolved by the static linker (in other words, if the relocation
404 cannot possibly be made dynamic). */
405 unsigned int has_static_relocs : 1;
406
71782a75
RS
407 /* True if we must not create a .MIPS.stubs entry for this symbol.
408 This is set, for example, if there are relocations related to
409 taking the function's address, i.e. any but R_MIPS_CALL*16 ones.
410 See "MIPS ABI Supplement, 3rd Edition", p. 4-20. */
411 unsigned int no_fn_stub : 1;
412
413 /* Whether we need the fn_stub; this is true if this symbol appears
414 in any relocs other than a 16 bit call. */
415 unsigned int need_fn_stub : 1;
416
861fb55a
DJ
417 /* True if this symbol is referenced by branch relocations from
418 any non-PIC input file. This is used to determine whether an
419 la25 stub is required. */
420 unsigned int has_nonpic_branches : 1;
33bb52fb
RS
421
422 /* Does this symbol need a traditional MIPS lazy-binding stub
423 (as opposed to a PLT entry)? */
424 unsigned int needs_lazy_stub : 1;
1bbce132
MR
425
426 /* Does this symbol resolve to a PLT entry? */
427 unsigned int use_plt_entry : 1;
b49e97c9
TS
428};
429
430/* MIPS ELF linker hash table. */
431
432struct mips_elf_link_hash_table
433{
434 struct elf_link_hash_table root;
861fb55a 435
b49e97c9
TS
436 /* The number of .rtproc entries. */
437 bfd_size_type procedure_count;
861fb55a 438
b49e97c9
TS
439 /* The size of the .compact_rel section (if SGI_COMPAT). */
440 bfd_size_type compact_rel_size;
861fb55a 441
e6aea42d
MR
442 /* This flag indicates that the value of DT_MIPS_RLD_MAP dynamic entry
443 is set to the address of __rld_obj_head as in IRIX5 and IRIX6. */
b34976b6 444 bfd_boolean use_rld_obj_head;
861fb55a 445
b4082c70
DD
446 /* The __rld_map or __rld_obj_head symbol. */
447 struct elf_link_hash_entry *rld_symbol;
861fb55a 448
b49e97c9 449 /* This is set if we see any mips16 stub sections. */
b34976b6 450 bfd_boolean mips16_stubs_seen;
861fb55a
DJ
451
452 /* True if we can generate copy relocs and PLTs. */
453 bfd_boolean use_plts_and_copy_relocs;
454
833794fc
MR
455 /* True if we can only use 32-bit microMIPS instructions. */
456 bfd_boolean insn32;
457
8b10b0b3
MR
458 /* True if we suppress checks for invalid branches between ISA modes. */
459 bfd_boolean ignore_branch_isa;
460
3734320d
MF
461 /* True if we are targetting R6 compact branches. */
462 bfd_boolean compact_branches;
463
0a44bf69
RS
464 /* True if we're generating code for VxWorks. */
465 bfd_boolean is_vxworks;
861fb55a 466
0e53d9da
AN
467 /* True if we already reported the small-data section overflow. */
468 bfd_boolean small_data_overflow_reported;
861fb55a 469
47275900
MR
470 /* True if we use the special `__gnu_absolute_zero' symbol. */
471 bfd_boolean use_absolute_zero;
472
473 /* True if we have been configured for a GNU target. */
474 bfd_boolean gnu_target;
475
0a44bf69
RS
476 /* Shortcuts to some dynamic sections, or NULL if they are not
477 being used. */
0a44bf69 478 asection *srelplt2;
4e41d0d7 479 asection *sstubs;
861fb55a 480
a8028dd0
RS
481 /* The master GOT information. */
482 struct mips_got_info *got_info;
861fb55a 483
d222d210
RS
484 /* The global symbol in the GOT with the lowest index in the dynamic
485 symbol table. */
486 struct elf_link_hash_entry *global_gotsym;
487
861fb55a 488 /* The size of the PLT header in bytes. */
0a44bf69 489 bfd_vma plt_header_size;
861fb55a 490
1bbce132
MR
491 /* The size of a standard PLT entry in bytes. */
492 bfd_vma plt_mips_entry_size;
493
494 /* The size of a compressed PLT entry in bytes. */
495 bfd_vma plt_comp_entry_size;
496
497 /* The offset of the next standard PLT entry to create. */
498 bfd_vma plt_mips_offset;
499
500 /* The offset of the next compressed PLT entry to create. */
501 bfd_vma plt_comp_offset;
502
503 /* The index of the next .got.plt entry to create. */
504 bfd_vma plt_got_index;
861fb55a 505
33bb52fb
RS
506 /* The number of functions that need a lazy-binding stub. */
507 bfd_vma lazy_stub_count;
861fb55a 508
5108fc1b
RS
509 /* The size of a function stub entry in bytes. */
510 bfd_vma function_stub_size;
861fb55a
DJ
511
512 /* The number of reserved entries at the beginning of the GOT. */
513 unsigned int reserved_gotno;
514
515 /* The section used for mips_elf_la25_stub trampolines.
516 See the comment above that structure for details. */
517 asection *strampoline;
518
519 /* A table of mips_elf_la25_stubs, indexed by (input_section, offset)
520 pairs. */
521 htab_t la25_stubs;
522
523 /* A function FN (NAME, IS, OS) that creates a new input section
524 called NAME and links it to output section OS. If IS is nonnull,
525 the new section should go immediately before it, otherwise it
526 should go at the (current) beginning of OS.
527
528 The function returns the new section on success, otherwise it
529 returns null. */
530 asection *(*add_stub_section) (const char *, asection *, asection *);
13db6b44
RS
531
532 /* Small local sym cache. */
533 struct sym_cache sym_cache;
1bbce132
MR
534
535 /* Is the PLT header compressed? */
536 unsigned int plt_header_is_comp : 1;
861fb55a
DJ
537};
538
4dfe6ac6
NC
539/* Get the MIPS ELF linker hash table from a link_info structure. */
540
541#define mips_elf_hash_table(p) \
542 (elf_hash_table_id ((struct elf_link_hash_table *) ((p)->hash)) \
543 == MIPS_ELF_DATA ? ((struct mips_elf_link_hash_table *) ((p)->hash)) : NULL)
544
861fb55a 545/* A structure used to communicate with htab_traverse callbacks. */
4dfe6ac6
NC
546struct mips_htab_traverse_info
547{
861fb55a
DJ
548 /* The usual link-wide information. */
549 struct bfd_link_info *info;
550 bfd *output_bfd;
551
552 /* Starts off FALSE and is set to TRUE if the link should be aborted. */
553 bfd_boolean error;
b49e97c9
TS
554};
555
6ae68ba3
MR
556/* MIPS ELF private object data. */
557
558struct mips_elf_obj_tdata
559{
560 /* Generic ELF private object data. */
561 struct elf_obj_tdata root;
562
563 /* Input BFD providing Tag_GNU_MIPS_ABI_FP attribute for output. */
564 bfd *abi_fp_bfd;
ee227692 565
b60bf9be
CF
566 /* Input BFD providing Tag_GNU_MIPS_ABI_MSA attribute for output. */
567 bfd *abi_msa_bfd;
568
351cdf24
MF
569 /* The abiflags for this object. */
570 Elf_Internal_ABIFlags_v0 abiflags;
571 bfd_boolean abiflags_valid;
572
ee227692
RS
573 /* The GOT requirements of input bfds. */
574 struct mips_got_info *got;
698600e4
AM
575
576 /* Used by _bfd_mips_elf_find_nearest_line. The structure could be
577 included directly in this one, but there's no point to wasting
578 the memory just for the infrequently called find_nearest_line. */
579 struct mips_elf_find_line *find_line_info;
580
581 /* An array of stub sections indexed by symbol number. */
582 asection **local_stubs;
583 asection **local_call_stubs;
584
585 /* The Irix 5 support uses two virtual sections, which represent
586 text/data symbols defined in dynamic objects. */
587 asymbol *elf_data_symbol;
588 asymbol *elf_text_symbol;
589 asection *elf_data_section;
590 asection *elf_text_section;
6ae68ba3
MR
591};
592
593/* Get MIPS ELF private object data from BFD's tdata. */
594
595#define mips_elf_tdata(bfd) \
596 ((struct mips_elf_obj_tdata *) (bfd)->tdata.any)
597
0f20cc35
DJ
598#define TLS_RELOC_P(r_type) \
599 (r_type == R_MIPS_TLS_DTPMOD32 \
600 || r_type == R_MIPS_TLS_DTPMOD64 \
601 || r_type == R_MIPS_TLS_DTPREL32 \
602 || r_type == R_MIPS_TLS_DTPREL64 \
603 || r_type == R_MIPS_TLS_GD \
604 || r_type == R_MIPS_TLS_LDM \
605 || r_type == R_MIPS_TLS_DTPREL_HI16 \
606 || r_type == R_MIPS_TLS_DTPREL_LO16 \
607 || r_type == R_MIPS_TLS_GOTTPREL \
608 || r_type == R_MIPS_TLS_TPREL32 \
609 || r_type == R_MIPS_TLS_TPREL64 \
610 || r_type == R_MIPS_TLS_TPREL_HI16 \
df58fc94 611 || r_type == R_MIPS_TLS_TPREL_LO16 \
d0f13682
CLT
612 || r_type == R_MIPS16_TLS_GD \
613 || r_type == R_MIPS16_TLS_LDM \
614 || r_type == R_MIPS16_TLS_DTPREL_HI16 \
615 || r_type == R_MIPS16_TLS_DTPREL_LO16 \
616 || r_type == R_MIPS16_TLS_GOTTPREL \
617 || r_type == R_MIPS16_TLS_TPREL_HI16 \
618 || r_type == R_MIPS16_TLS_TPREL_LO16 \
df58fc94
RS
619 || r_type == R_MICROMIPS_TLS_GD \
620 || r_type == R_MICROMIPS_TLS_LDM \
621 || r_type == R_MICROMIPS_TLS_DTPREL_HI16 \
622 || r_type == R_MICROMIPS_TLS_DTPREL_LO16 \
623 || r_type == R_MICROMIPS_TLS_GOTTPREL \
624 || r_type == R_MICROMIPS_TLS_TPREL_HI16 \
625 || r_type == R_MICROMIPS_TLS_TPREL_LO16)
0f20cc35 626
b49e97c9
TS
627/* Structure used to pass information to mips_elf_output_extsym. */
628
629struct extsym_info
630{
9e4aeb93
RS
631 bfd *abfd;
632 struct bfd_link_info *info;
b49e97c9
TS
633 struct ecoff_debug_info *debug;
634 const struct ecoff_debug_swap *swap;
b34976b6 635 bfd_boolean failed;
b49e97c9
TS
636};
637
8dc1a139 638/* The names of the runtime procedure table symbols used on IRIX5. */
b49e97c9
TS
639
640static const char * const mips_elf_dynsym_rtproc_names[] =
641{
642 "_procedure_table",
643 "_procedure_string_table",
644 "_procedure_table_size",
645 NULL
646};
647
648/* These structures are used to generate the .compact_rel section on
8dc1a139 649 IRIX5. */
b49e97c9
TS
650
651typedef struct
652{
653 unsigned long id1; /* Always one? */
654 unsigned long num; /* Number of compact relocation entries. */
655 unsigned long id2; /* Always two? */
656 unsigned long offset; /* The file offset of the first relocation. */
657 unsigned long reserved0; /* Zero? */
658 unsigned long reserved1; /* Zero? */
659} Elf32_compact_rel;
660
661typedef struct
662{
663 bfd_byte id1[4];
664 bfd_byte num[4];
665 bfd_byte id2[4];
666 bfd_byte offset[4];
667 bfd_byte reserved0[4];
668 bfd_byte reserved1[4];
669} Elf32_External_compact_rel;
670
671typedef struct
672{
673 unsigned int ctype : 1; /* 1: long 0: short format. See below. */
674 unsigned int rtype : 4; /* Relocation types. See below. */
675 unsigned int dist2to : 8;
676 unsigned int relvaddr : 19; /* (VADDR - vaddr of the previous entry)/ 4 */
677 unsigned long konst; /* KONST field. See below. */
678 unsigned long vaddr; /* VADDR to be relocated. */
679} Elf32_crinfo;
680
681typedef struct
682{
683 unsigned int ctype : 1; /* 1: long 0: short format. See below. */
684 unsigned int rtype : 4; /* Relocation types. See below. */
685 unsigned int dist2to : 8;
686 unsigned int relvaddr : 19; /* (VADDR - vaddr of the previous entry)/ 4 */
687 unsigned long konst; /* KONST field. See below. */
688} Elf32_crinfo2;
689
690typedef struct
691{
692 bfd_byte info[4];
693 bfd_byte konst[4];
694 bfd_byte vaddr[4];
695} Elf32_External_crinfo;
696
697typedef struct
698{
699 bfd_byte info[4];
700 bfd_byte konst[4];
701} Elf32_External_crinfo2;
702
703/* These are the constants used to swap the bitfields in a crinfo. */
704
705#define CRINFO_CTYPE (0x1)
706#define CRINFO_CTYPE_SH (31)
707#define CRINFO_RTYPE (0xf)
708#define CRINFO_RTYPE_SH (27)
709#define CRINFO_DIST2TO (0xff)
710#define CRINFO_DIST2TO_SH (19)
711#define CRINFO_RELVADDR (0x7ffff)
712#define CRINFO_RELVADDR_SH (0)
713
714/* A compact relocation info has long (3 words) or short (2 words)
715 formats. A short format doesn't have VADDR field and relvaddr
716 fields contains ((VADDR - vaddr of the previous entry) >> 2). */
717#define CRF_MIPS_LONG 1
718#define CRF_MIPS_SHORT 0
719
720/* There are 4 types of compact relocation at least. The value KONST
721 has different meaning for each type:
722
723 (type) (konst)
724 CT_MIPS_REL32 Address in data
725 CT_MIPS_WORD Address in word (XXX)
726 CT_MIPS_GPHI_LO GP - vaddr
727 CT_MIPS_JMPAD Address to jump
728 */
729
730#define CRT_MIPS_REL32 0xa
731#define CRT_MIPS_WORD 0xb
732#define CRT_MIPS_GPHI_LO 0xc
733#define CRT_MIPS_JMPAD 0xd
734
735#define mips_elf_set_cr_format(x,format) ((x).ctype = (format))
736#define mips_elf_set_cr_type(x,type) ((x).rtype = (type))
737#define mips_elf_set_cr_dist2to(x,v) ((x).dist2to = (v))
738#define mips_elf_set_cr_relvaddr(x,d) ((x).relvaddr = (d)<<2)
739\f
740/* The structure of the runtime procedure descriptor created by the
741 loader for use by the static exception system. */
742
743typedef struct runtime_pdr {
ae9a127f
NC
744 bfd_vma adr; /* Memory address of start of procedure. */
745 long regmask; /* Save register mask. */
746 long regoffset; /* Save register offset. */
747 long fregmask; /* Save floating point register mask. */
748 long fregoffset; /* Save floating point register offset. */
749 long frameoffset; /* Frame size. */
750 short framereg; /* Frame pointer register. */
751 short pcreg; /* Offset or reg of return pc. */
752 long irpss; /* Index into the runtime string table. */
b49e97c9 753 long reserved;
ae9a127f 754 struct exception_info *exception_info;/* Pointer to exception array. */
b49e97c9
TS
755} RPDR, *pRPDR;
756#define cbRPDR sizeof (RPDR)
757#define rpdNil ((pRPDR) 0)
758\f
b15e6682 759static struct mips_got_entry *mips_elf_create_local_got_entry
a8028dd0
RS
760 (bfd *, struct bfd_link_info *, bfd *, bfd_vma, unsigned long,
761 struct mips_elf_link_hash_entry *, int);
b34976b6 762static bfd_boolean mips_elf_sort_hash_table_f
9719ad41 763 (struct mips_elf_link_hash_entry *, void *);
9719ad41
RS
764static bfd_vma mips_elf_high
765 (bfd_vma);
b34976b6 766static bfd_boolean mips_elf_create_dynamic_relocation
9719ad41
RS
767 (bfd *, struct bfd_link_info *, const Elf_Internal_Rela *,
768 struct mips_elf_link_hash_entry *, asection *, bfd_vma,
769 bfd_vma *, asection *);
f4416af6 770static bfd_vma mips_elf_adjust_gp
9719ad41 771 (bfd *, struct mips_got_info *, bfd *);
f4416af6 772
b49e97c9
TS
773/* This will be used when we sort the dynamic relocation records. */
774static bfd *reldyn_sorting_bfd;
775
6d30f5b2
NC
776/* True if ABFD is for CPUs with load interlocking that include
777 non-MIPS1 CPUs and R3900. */
778#define LOAD_INTERLOCKS_P(abfd) \
779 ( ((elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH) != E_MIPS_ARCH_1) \
780 || ((elf_elfheader (abfd)->e_flags & EF_MIPS_MACH) == E_MIPS_MACH_3900))
781
cd8d5a82
CF
782/* True if ABFD is for CPUs that are faster if JAL is converted to BAL.
783 This should be safe for all architectures. We enable this predicate
784 for RM9000 for now. */
785#define JAL_TO_BAL_P(abfd) \
786 ((elf_elfheader (abfd)->e_flags & EF_MIPS_MACH) == E_MIPS_MACH_9000)
787
788/* True if ABFD is for CPUs that are faster if JALR is converted to BAL.
789 This should be safe for all architectures. We enable this predicate for
790 all CPUs. */
791#define JALR_TO_BAL_P(abfd) 1
792
38a7df63
CF
793/* True if ABFD is for CPUs that are faster if JR is converted to B.
794 This should be safe for all architectures. We enable this predicate for
795 all CPUs. */
796#define JR_TO_B_P(abfd) 1
797
861fb55a
DJ
798/* True if ABFD is a PIC object. */
799#define PIC_OBJECT_P(abfd) \
800 ((elf_elfheader (abfd)->e_flags & EF_MIPS_PIC) != 0)
801
351cdf24
MF
802/* Nonzero if ABFD is using the O32 ABI. */
803#define ABI_O32_P(abfd) \
804 ((elf_elfheader (abfd)->e_flags & EF_MIPS_ABI) == E_MIPS_ABI_O32)
805
b49e97c9 806/* Nonzero if ABFD is using the N32 ABI. */
b49e97c9
TS
807#define ABI_N32_P(abfd) \
808 ((elf_elfheader (abfd)->e_flags & EF_MIPS_ABI2) != 0)
809
4a14403c 810/* Nonzero if ABFD is using the N64 ABI. */
b49e97c9 811#define ABI_64_P(abfd) \
141ff970 812 (get_elf_backend_data (abfd)->s->elfclass == ELFCLASS64)
b49e97c9 813
4a14403c
TS
814/* Nonzero if ABFD is using NewABI conventions. */
815#define NEWABI_P(abfd) (ABI_N32_P (abfd) || ABI_64_P (abfd))
816
e8faf7d1
MR
817/* Nonzero if ABFD has microMIPS code. */
818#define MICROMIPS_P(abfd) \
819 ((elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH_ASE_MICROMIPS) != 0)
820
7361da2c
AB
821/* Nonzero if ABFD is MIPS R6. */
822#define MIPSR6_P(abfd) \
823 ((elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH) == E_MIPS_ARCH_32R6 \
824 || (elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH) == E_MIPS_ARCH_64R6)
825
4a14403c 826/* The IRIX compatibility level we are striving for. */
b49e97c9
TS
827#define IRIX_COMPAT(abfd) \
828 (get_elf_backend_data (abfd)->elf_backend_mips_irix_compat (abfd))
829
b49e97c9
TS
830/* Whether we are trying to be compatible with IRIX at all. */
831#define SGI_COMPAT(abfd) \
832 (IRIX_COMPAT (abfd) != ict_none)
833
834/* The name of the options section. */
835#define MIPS_ELF_OPTIONS_SECTION_NAME(abfd) \
d80dcc6a 836 (NEWABI_P (abfd) ? ".MIPS.options" : ".options")
b49e97c9 837
cc2e31b9
RS
838/* True if NAME is the recognized name of any SHT_MIPS_OPTIONS section.
839 Some IRIX system files do not use MIPS_ELF_OPTIONS_SECTION_NAME. */
840#define MIPS_ELF_OPTIONS_SECTION_NAME_P(NAME) \
841 (strcmp (NAME, ".MIPS.options") == 0 || strcmp (NAME, ".options") == 0)
842
351cdf24
MF
843/* True if NAME is the recognized name of any SHT_MIPS_ABIFLAGS section. */
844#define MIPS_ELF_ABIFLAGS_SECTION_NAME_P(NAME) \
845 (strcmp (NAME, ".MIPS.abiflags") == 0)
846
943284cc
DJ
847/* Whether the section is readonly. */
848#define MIPS_ELF_READONLY_SECTION(sec) \
849 ((sec->flags & (SEC_ALLOC | SEC_LOAD | SEC_READONLY)) \
850 == (SEC_ALLOC | SEC_LOAD | SEC_READONLY))
851
b49e97c9 852/* The name of the stub section. */
ca07892d 853#define MIPS_ELF_STUB_SECTION_NAME(abfd) ".MIPS.stubs"
b49e97c9
TS
854
855/* The size of an external REL relocation. */
856#define MIPS_ELF_REL_SIZE(abfd) \
857 (get_elf_backend_data (abfd)->s->sizeof_rel)
858
0a44bf69
RS
859/* The size of an external RELA relocation. */
860#define MIPS_ELF_RELA_SIZE(abfd) \
861 (get_elf_backend_data (abfd)->s->sizeof_rela)
862
b49e97c9
TS
863/* The size of an external dynamic table entry. */
864#define MIPS_ELF_DYN_SIZE(abfd) \
865 (get_elf_backend_data (abfd)->s->sizeof_dyn)
866
867/* The size of a GOT entry. */
868#define MIPS_ELF_GOT_SIZE(abfd) \
869 (get_elf_backend_data (abfd)->s->arch_size / 8)
870
b4082c70
DD
871/* The size of the .rld_map section. */
872#define MIPS_ELF_RLD_MAP_SIZE(abfd) \
873 (get_elf_backend_data (abfd)->s->arch_size / 8)
874
b49e97c9
TS
875/* The size of a symbol-table entry. */
876#define MIPS_ELF_SYM_SIZE(abfd) \
877 (get_elf_backend_data (abfd)->s->sizeof_sym)
878
879/* The default alignment for sections, as a power of two. */
880#define MIPS_ELF_LOG_FILE_ALIGN(abfd) \
45d6a902 881 (get_elf_backend_data (abfd)->s->log_file_align)
b49e97c9
TS
882
883/* Get word-sized data. */
884#define MIPS_ELF_GET_WORD(abfd, ptr) \
885 (ABI_64_P (abfd) ? bfd_get_64 (abfd, ptr) : bfd_get_32 (abfd, ptr))
886
887/* Put out word-sized data. */
888#define MIPS_ELF_PUT_WORD(abfd, val, ptr) \
07d6d2b8
AM
889 (ABI_64_P (abfd) \
890 ? bfd_put_64 (abfd, val, ptr) \
b49e97c9
TS
891 : bfd_put_32 (abfd, val, ptr))
892
861fb55a
DJ
893/* The opcode for word-sized loads (LW or LD). */
894#define MIPS_ELF_LOAD_WORD(abfd) \
895 (ABI_64_P (abfd) ? 0xdc000000 : 0x8c000000)
896
b49e97c9 897/* Add a dynamic symbol table-entry. */
9719ad41 898#define MIPS_ELF_ADD_DYNAMIC_ENTRY(info, tag, val) \
5a580b3a 899 _bfd_elf_add_dynamic_entry (info, tag, val)
b49e97c9
TS
900
901#define MIPS_ELF_RTYPE_TO_HOWTO(abfd, rtype, rela) \
0aa13fee 902 (get_elf_backend_data (abfd)->elf_backend_mips_rtype_to_howto (abfd, rtype, rela))
b49e97c9 903
0a44bf69
RS
904/* The name of the dynamic relocation section. */
905#define MIPS_ELF_REL_DYN_NAME(INFO) \
906 (mips_elf_hash_table (INFO)->is_vxworks ? ".rela.dyn" : ".rel.dyn")
907
b49e97c9
TS
908/* In case we're on a 32-bit machine, construct a 64-bit "-1" value
909 from smaller values. Start with zero, widen, *then* decrement. */
910#define MINUS_ONE (((bfd_vma)0) - 1)
c5ae1840 911#define MINUS_TWO (((bfd_vma)0) - 2)
b49e97c9 912
51e38d68
RS
913/* The value to write into got[1] for SVR4 targets, to identify it is
914 a GNU object. The dynamic linker can then use got[1] to store the
915 module pointer. */
916#define MIPS_ELF_GNU_GOT1_MASK(abfd) \
917 ((bfd_vma) 1 << (ABI_64_P (abfd) ? 63 : 31))
918
f4416af6 919/* The offset of $gp from the beginning of the .got section. */
0a44bf69
RS
920#define ELF_MIPS_GP_OFFSET(INFO) \
921 (mips_elf_hash_table (INFO)->is_vxworks ? 0x0 : 0x7ff0)
f4416af6
AO
922
923/* The maximum size of the GOT for it to be addressable using 16-bit
924 offsets from $gp. */
0a44bf69 925#define MIPS_ELF_GOT_MAX_SIZE(INFO) (ELF_MIPS_GP_OFFSET (INFO) + 0x7fff)
f4416af6 926
6a691779 927/* Instructions which appear in a stub. */
3d6746ca
DD
928#define STUB_LW(abfd) \
929 ((ABI_64_P (abfd) \
930 ? 0xdf998010 /* ld t9,0x8010(gp) */ \
07d6d2b8 931 : 0x8f998010)) /* lw t9,0x8010(gp) */
40fc1451 932#define STUB_MOVE 0x03e07825 /* or t7,ra,zero */
3d6746ca 933#define STUB_LUI(VAL) (0x3c180000 + (VAL)) /* lui t8,VAL */
a18a2a34 934#define STUB_JALR 0x0320f809 /* jalr ra,t9 */
3734320d 935#define STUB_JALRC 0xf8190000 /* jalrc ra,t9 */
5108fc1b
RS
936#define STUB_ORI(VAL) (0x37180000 + (VAL)) /* ori t8,t8,VAL */
937#define STUB_LI16U(VAL) (0x34180000 + (VAL)) /* ori t8,zero,VAL unsigned */
3d6746ca
DD
938#define STUB_LI16S(abfd, VAL) \
939 ((ABI_64_P (abfd) \
940 ? (0x64180000 + (VAL)) /* daddiu t8,zero,VAL sign extended */ \
941 : (0x24180000 + (VAL)))) /* addiu t8,zero,VAL sign extended */
942
1bbce132
MR
943/* Likewise for the microMIPS ASE. */
944#define STUB_LW_MICROMIPS(abfd) \
945 (ABI_64_P (abfd) \
946 ? 0xdf3c8010 /* ld t9,0x8010(gp) */ \
947 : 0xff3c8010) /* lw t9,0x8010(gp) */
948#define STUB_MOVE_MICROMIPS 0x0dff /* move t7,ra */
40fc1451 949#define STUB_MOVE32_MICROMIPS 0x001f7a90 /* or t7,ra,zero */
1bbce132
MR
950#define STUB_LUI_MICROMIPS(VAL) \
951 (0x41b80000 + (VAL)) /* lui t8,VAL */
952#define STUB_JALR_MICROMIPS 0x45d9 /* jalr t9 */
833794fc 953#define STUB_JALR32_MICROMIPS 0x03f90f3c /* jalr ra,t9 */
1bbce132
MR
954#define STUB_ORI_MICROMIPS(VAL) \
955 (0x53180000 + (VAL)) /* ori t8,t8,VAL */
956#define STUB_LI16U_MICROMIPS(VAL) \
957 (0x53000000 + (VAL)) /* ori t8,zero,VAL unsigned */
958#define STUB_LI16S_MICROMIPS(abfd, VAL) \
959 (ABI_64_P (abfd) \
960 ? 0x5f000000 + (VAL) /* daddiu t8,zero,VAL sign extended */ \
961 : 0x33000000 + (VAL)) /* addiu t8,zero,VAL sign extended */
962
5108fc1b
RS
963#define MIPS_FUNCTION_STUB_NORMAL_SIZE 16
964#define MIPS_FUNCTION_STUB_BIG_SIZE 20
1bbce132
MR
965#define MICROMIPS_FUNCTION_STUB_NORMAL_SIZE 12
966#define MICROMIPS_FUNCTION_STUB_BIG_SIZE 16
833794fc
MR
967#define MICROMIPS_INSN32_FUNCTION_STUB_NORMAL_SIZE 16
968#define MICROMIPS_INSN32_FUNCTION_STUB_BIG_SIZE 20
b49e97c9
TS
969
970/* The name of the dynamic interpreter. This is put in the .interp
971 section. */
972
07d6d2b8
AM
973#define ELF_DYNAMIC_INTERPRETER(abfd) \
974 (ABI_N32_P (abfd) ? "/usr/lib32/libc.so.1" \
975 : ABI_64_P (abfd) ? "/usr/lib64/libc.so.1" \
b49e97c9
TS
976 : "/usr/lib/libc.so.1")
977
978#ifdef BFD64
ee6423ed
AO
979#define MNAME(bfd,pre,pos) \
980 (ABI_64_P (bfd) ? CONCAT4 (pre,64,_,pos) : CONCAT4 (pre,32,_,pos))
b49e97c9
TS
981#define ELF_R_SYM(bfd, i) \
982 (ABI_64_P (bfd) ? ELF64_R_SYM (i) : ELF32_R_SYM (i))
983#define ELF_R_TYPE(bfd, i) \
984 (ABI_64_P (bfd) ? ELF64_MIPS_R_TYPE (i) : ELF32_R_TYPE (i))
985#define ELF_R_INFO(bfd, s, t) \
986 (ABI_64_P (bfd) ? ELF64_R_INFO (s, t) : ELF32_R_INFO (s, t))
987#else
ee6423ed 988#define MNAME(bfd,pre,pos) CONCAT4 (pre,32,_,pos)
b49e97c9
TS
989#define ELF_R_SYM(bfd, i) \
990 (ELF32_R_SYM (i))
991#define ELF_R_TYPE(bfd, i) \
992 (ELF32_R_TYPE (i))
993#define ELF_R_INFO(bfd, s, t) \
994 (ELF32_R_INFO (s, t))
995#endif
996\f
997 /* The mips16 compiler uses a couple of special sections to handle
998 floating point arguments.
999
1000 Section names that look like .mips16.fn.FNNAME contain stubs that
1001 copy floating point arguments from the fp regs to the gp regs and
1002 then jump to FNNAME. If any 32 bit function calls FNNAME, the
1003 call should be redirected to the stub instead. If no 32 bit
1004 function calls FNNAME, the stub should be discarded. We need to
1005 consider any reference to the function, not just a call, because
1006 if the address of the function is taken we will need the stub,
1007 since the address might be passed to a 32 bit function.
1008
1009 Section names that look like .mips16.call.FNNAME contain stubs
1010 that copy floating point arguments from the gp regs to the fp
1011 regs and then jump to FNNAME. If FNNAME is a 32 bit function,
1012 then any 16 bit function that calls FNNAME should be redirected
1013 to the stub instead. If FNNAME is not a 32 bit function, the
1014 stub should be discarded.
1015
1016 .mips16.call.fp.FNNAME sections are similar, but contain stubs
1017 which call FNNAME and then copy the return value from the fp regs
1018 to the gp regs. These stubs store the return value in $18 while
1019 calling FNNAME; any function which might call one of these stubs
1020 must arrange to save $18 around the call. (This case is not
1021 needed for 32 bit functions that call 16 bit functions, because
1022 16 bit functions always return floating point values in both
1023 $f0/$f1 and $2/$3.)
1024
1025 Note that in all cases FNNAME might be defined statically.
1026 Therefore, FNNAME is not used literally. Instead, the relocation
1027 information will indicate which symbol the section is for.
1028
1029 We record any stubs that we find in the symbol table. */
1030
1031#define FN_STUB ".mips16.fn."
1032#define CALL_STUB ".mips16.call."
1033#define CALL_FP_STUB ".mips16.call.fp."
b9d58d71
TS
1034
1035#define FN_STUB_P(name) CONST_STRNEQ (name, FN_STUB)
1036#define CALL_STUB_P(name) CONST_STRNEQ (name, CALL_STUB)
1037#define CALL_FP_STUB_P(name) CONST_STRNEQ (name, CALL_FP_STUB)
b49e97c9 1038\f
861fb55a 1039/* The format of the first PLT entry in an O32 executable. */
6d30f5b2
NC
1040static const bfd_vma mips_o32_exec_plt0_entry[] =
1041{
861fb55a
DJ
1042 0x3c1c0000, /* lui $28, %hi(&GOTPLT[0]) */
1043 0x8f990000, /* lw $25, %lo(&GOTPLT[0])($28) */
1044 0x279c0000, /* addiu $28, $28, %lo(&GOTPLT[0]) */
1045 0x031cc023, /* subu $24, $24, $28 */
40fc1451 1046 0x03e07825, /* or t7, ra, zero */
861fb55a
DJ
1047 0x0018c082, /* srl $24, $24, 2 */
1048 0x0320f809, /* jalr $25 */
1049 0x2718fffe /* subu $24, $24, 2 */
1050};
1051
3734320d
MF
1052/* The format of the first PLT entry in an O32 executable using compact
1053 jumps. */
1054static const bfd_vma mipsr6_o32_exec_plt0_entry_compact[] =
1055{
1056 0x3c1c0000, /* lui $28, %hi(&GOTPLT[0]) */
1057 0x8f990000, /* lw $25, %lo(&GOTPLT[0])($28) */
1058 0x279c0000, /* addiu $28, $28, %lo(&GOTPLT[0]) */
1059 0x031cc023, /* subu $24, $24, $28 */
1060 0x03e07821, /* move $15, $31 # 32-bit move (addu) */
1061 0x0018c082, /* srl $24, $24, 2 */
1062 0x2718fffe, /* subu $24, $24, 2 */
1063 0xf8190000 /* jalrc $25 */
1064};
1065
861fb55a
DJ
1066/* The format of the first PLT entry in an N32 executable. Different
1067 because gp ($28) is not available; we use t2 ($14) instead. */
6d30f5b2
NC
1068static const bfd_vma mips_n32_exec_plt0_entry[] =
1069{
861fb55a
DJ
1070 0x3c0e0000, /* lui $14, %hi(&GOTPLT[0]) */
1071 0x8dd90000, /* lw $25, %lo(&GOTPLT[0])($14) */
1072 0x25ce0000, /* addiu $14, $14, %lo(&GOTPLT[0]) */
1073 0x030ec023, /* subu $24, $24, $14 */
40fc1451 1074 0x03e07825, /* or t7, ra, zero */
861fb55a
DJ
1075 0x0018c082, /* srl $24, $24, 2 */
1076 0x0320f809, /* jalr $25 */
1077 0x2718fffe /* subu $24, $24, 2 */
1078};
1079
3734320d
MF
1080/* The format of the first PLT entry in an N32 executable using compact
1081 jumps. Different because gp ($28) is not available; we use t2 ($14)
1082 instead. */
1083static const bfd_vma mipsr6_n32_exec_plt0_entry_compact[] =
1084{
1085 0x3c0e0000, /* lui $14, %hi(&GOTPLT[0]) */
1086 0x8dd90000, /* lw $25, %lo(&GOTPLT[0])($14) */
1087 0x25ce0000, /* addiu $14, $14, %lo(&GOTPLT[0]) */
1088 0x030ec023, /* subu $24, $24, $14 */
1089 0x03e07821, /* move $15, $31 # 32-bit move (addu) */
1090 0x0018c082, /* srl $24, $24, 2 */
1091 0x2718fffe, /* subu $24, $24, 2 */
1092 0xf8190000 /* jalrc $25 */
1093};
1094
861fb55a
DJ
1095/* The format of the first PLT entry in an N64 executable. Different
1096 from N32 because of the increased size of GOT entries. */
6d30f5b2
NC
1097static const bfd_vma mips_n64_exec_plt0_entry[] =
1098{
861fb55a
DJ
1099 0x3c0e0000, /* lui $14, %hi(&GOTPLT[0]) */
1100 0xddd90000, /* ld $25, %lo(&GOTPLT[0])($14) */
1101 0x25ce0000, /* addiu $14, $14, %lo(&GOTPLT[0]) */
1102 0x030ec023, /* subu $24, $24, $14 */
40fc1451 1103 0x03e07825, /* or t7, ra, zero */
861fb55a
DJ
1104 0x0018c0c2, /* srl $24, $24, 3 */
1105 0x0320f809, /* jalr $25 */
1106 0x2718fffe /* subu $24, $24, 2 */
1107};
1108
3734320d
MF
1109/* The format of the first PLT entry in an N64 executable using compact
1110 jumps. Different from N32 because of the increased size of GOT
1111 entries. */
1112static const bfd_vma mipsr6_n64_exec_plt0_entry_compact[] =
1113{
1114 0x3c0e0000, /* lui $14, %hi(&GOTPLT[0]) */
1115 0xddd90000, /* ld $25, %lo(&GOTPLT[0])($14) */
1116 0x25ce0000, /* addiu $14, $14, %lo(&GOTPLT[0]) */
1117 0x030ec023, /* subu $24, $24, $14 */
1118 0x03e0782d, /* move $15, $31 # 64-bit move (daddu) */
1119 0x0018c0c2, /* srl $24, $24, 3 */
1120 0x2718fffe, /* subu $24, $24, 2 */
1121 0xf8190000 /* jalrc $25 */
1122};
1123
1124
1bbce132
MR
1125/* The format of the microMIPS first PLT entry in an O32 executable.
1126 We rely on v0 ($2) rather than t8 ($24) to contain the address
1127 of the GOTPLT entry handled, so this stub may only be used when
1128 all the subsequent PLT entries are microMIPS code too.
1129
1130 The trailing NOP is for alignment and correct disassembly only. */
1131static const bfd_vma micromips_o32_exec_plt0_entry[] =
1132{
1133 0x7980, 0x0000, /* addiupc $3, (&GOTPLT[0]) - . */
1134 0xff23, 0x0000, /* lw $25, 0($3) */
1135 0x0535, /* subu $2, $2, $3 */
1136 0x2525, /* srl $2, $2, 2 */
1137 0x3302, 0xfffe, /* subu $24, $2, 2 */
1138 0x0dff, /* move $15, $31 */
1139 0x45f9, /* jalrs $25 */
1140 0x0f83, /* move $28, $3 */
1141 0x0c00 /* nop */
1142};
1143
833794fc
MR
1144/* The format of the microMIPS first PLT entry in an O32 executable
1145 in the insn32 mode. */
1146static const bfd_vma micromips_insn32_o32_exec_plt0_entry[] =
1147{
1148 0x41bc, 0x0000, /* lui $28, %hi(&GOTPLT[0]) */
1149 0xff3c, 0x0000, /* lw $25, %lo(&GOTPLT[0])($28) */
1150 0x339c, 0x0000, /* addiu $28, $28, %lo(&GOTPLT[0]) */
1151 0x0398, 0xc1d0, /* subu $24, $24, $28 */
40fc1451 1152 0x001f, 0x7a90, /* or $15, $31, zero */
833794fc
MR
1153 0x0318, 0x1040, /* srl $24, $24, 2 */
1154 0x03f9, 0x0f3c, /* jalr $25 */
1155 0x3318, 0xfffe /* subu $24, $24, 2 */
1156};
1157
1bbce132 1158/* The format of subsequent standard PLT entries. */
6d30f5b2
NC
1159static const bfd_vma mips_exec_plt_entry[] =
1160{
861fb55a
DJ
1161 0x3c0f0000, /* lui $15, %hi(.got.plt entry) */
1162 0x01f90000, /* l[wd] $25, %lo(.got.plt entry)($15) */
1163 0x25f80000, /* addiu $24, $15, %lo(.got.plt entry) */
1164 0x03200008 /* jr $25 */
1165};
1166
7361da2c
AB
1167static const bfd_vma mipsr6_exec_plt_entry[] =
1168{
1169 0x3c0f0000, /* lui $15, %hi(.got.plt entry) */
1170 0x01f90000, /* l[wd] $25, %lo(.got.plt entry)($15) */
1171 0x25f80000, /* addiu $24, $15, %lo(.got.plt entry) */
1172 0x03200009 /* jr $25 */
1173};
1174
3734320d
MF
1175static const bfd_vma mipsr6_exec_plt_entry_compact[] =
1176{
1177 0x3c0f0000, /* lui $15, %hi(.got.plt entry) */
1178 0x01f90000, /* l[wd] $25, %lo(.got.plt entry)($15) */
1179 0x25f80000, /* addiu $24, $15, %lo(.got.plt entry) */
1180 0xd8190000 /* jic $25, 0 */
1181};
1182
1bbce132
MR
1183/* The format of subsequent MIPS16 o32 PLT entries. We use v0 ($2)
1184 and v1 ($3) as temporaries because t8 ($24) and t9 ($25) are not
1185 directly addressable. */
1186static const bfd_vma mips16_o32_exec_plt_entry[] =
1187{
1188 0xb203, /* lw $2, 12($pc) */
1189 0x9a60, /* lw $3, 0($2) */
1190 0x651a, /* move $24, $2 */
1191 0xeb00, /* jr $3 */
1192 0x653b, /* move $25, $3 */
1193 0x6500, /* nop */
1194 0x0000, 0x0000 /* .word (.got.plt entry) */
1195};
1196
1197/* The format of subsequent microMIPS o32 PLT entries. We use v0 ($2)
1198 as a temporary because t8 ($24) is not addressable with ADDIUPC. */
1199static const bfd_vma micromips_o32_exec_plt_entry[] =
1200{
1201 0x7900, 0x0000, /* addiupc $2, (.got.plt entry) - . */
1202 0xff22, 0x0000, /* lw $25, 0($2) */
1203 0x4599, /* jr $25 */
1204 0x0f02 /* move $24, $2 */
1205};
1206
833794fc
MR
1207/* The format of subsequent microMIPS o32 PLT entries in the insn32 mode. */
1208static const bfd_vma micromips_insn32_o32_exec_plt_entry[] =
1209{
1210 0x41af, 0x0000, /* lui $15, %hi(.got.plt entry) */
1211 0xff2f, 0x0000, /* lw $25, %lo(.got.plt entry)($15) */
1212 0x0019, 0x0f3c, /* jr $25 */
1213 0x330f, 0x0000 /* addiu $24, $15, %lo(.got.plt entry) */
1214};
1215
0a44bf69 1216/* The format of the first PLT entry in a VxWorks executable. */
6d30f5b2
NC
1217static const bfd_vma mips_vxworks_exec_plt0_entry[] =
1218{
0a44bf69
RS
1219 0x3c190000, /* lui t9, %hi(_GLOBAL_OFFSET_TABLE_) */
1220 0x27390000, /* addiu t9, t9, %lo(_GLOBAL_OFFSET_TABLE_) */
1221 0x8f390008, /* lw t9, 8(t9) */
1222 0x00000000, /* nop */
1223 0x03200008, /* jr t9 */
1224 0x00000000 /* nop */
1225};
1226
1227/* The format of subsequent PLT entries. */
6d30f5b2
NC
1228static const bfd_vma mips_vxworks_exec_plt_entry[] =
1229{
0a44bf69
RS
1230 0x10000000, /* b .PLT_resolver */
1231 0x24180000, /* li t8, <pltindex> */
1232 0x3c190000, /* lui t9, %hi(<.got.plt slot>) */
1233 0x27390000, /* addiu t9, t9, %lo(<.got.plt slot>) */
1234 0x8f390000, /* lw t9, 0(t9) */
1235 0x00000000, /* nop */
1236 0x03200008, /* jr t9 */
1237 0x00000000 /* nop */
1238};
1239
1240/* The format of the first PLT entry in a VxWorks shared object. */
6d30f5b2
NC
1241static const bfd_vma mips_vxworks_shared_plt0_entry[] =
1242{
0a44bf69
RS
1243 0x8f990008, /* lw t9, 8(gp) */
1244 0x00000000, /* nop */
1245 0x03200008, /* jr t9 */
1246 0x00000000, /* nop */
1247 0x00000000, /* nop */
1248 0x00000000 /* nop */
1249};
1250
1251/* The format of subsequent PLT entries. */
6d30f5b2
NC
1252static const bfd_vma mips_vxworks_shared_plt_entry[] =
1253{
0a44bf69
RS
1254 0x10000000, /* b .PLT_resolver */
1255 0x24180000 /* li t8, <pltindex> */
1256};
1257\f
d21911ea
MR
1258/* microMIPS 32-bit opcode helper installer. */
1259
1260static void
1261bfd_put_micromips_32 (const bfd *abfd, bfd_vma opcode, bfd_byte *ptr)
1262{
1263 bfd_put_16 (abfd, (opcode >> 16) & 0xffff, ptr);
07d6d2b8 1264 bfd_put_16 (abfd, opcode & 0xffff, ptr + 2);
d21911ea
MR
1265}
1266
1267/* microMIPS 32-bit opcode helper retriever. */
1268
1269static bfd_vma
1270bfd_get_micromips_32 (const bfd *abfd, const bfd_byte *ptr)
1271{
1272 return (bfd_get_16 (abfd, ptr) << 16) | bfd_get_16 (abfd, ptr + 2);
1273}
1274\f
b49e97c9
TS
1275/* Look up an entry in a MIPS ELF linker hash table. */
1276
1277#define mips_elf_link_hash_lookup(table, string, create, copy, follow) \
1278 ((struct mips_elf_link_hash_entry *) \
1279 elf_link_hash_lookup (&(table)->root, (string), (create), \
1280 (copy), (follow)))
1281
1282/* Traverse a MIPS ELF linker hash table. */
1283
1284#define mips_elf_link_hash_traverse(table, func, info) \
1285 (elf_link_hash_traverse \
1286 (&(table)->root, \
9719ad41 1287 (bfd_boolean (*) (struct elf_link_hash_entry *, void *)) (func), \
b49e97c9
TS
1288 (info)))
1289
0f20cc35
DJ
1290/* Find the base offsets for thread-local storage in this object,
1291 for GD/LD and IE/LE respectively. */
1292
1293#define TP_OFFSET 0x7000
1294#define DTP_OFFSET 0x8000
1295
1296static bfd_vma
1297dtprel_base (struct bfd_link_info *info)
1298{
1299 /* If tls_sec is NULL, we should have signalled an error already. */
1300 if (elf_hash_table (info)->tls_sec == NULL)
1301 return 0;
1302 return elf_hash_table (info)->tls_sec->vma + DTP_OFFSET;
1303}
1304
1305static bfd_vma
1306tprel_base (struct bfd_link_info *info)
1307{
1308 /* If tls_sec is NULL, we should have signalled an error already. */
1309 if (elf_hash_table (info)->tls_sec == NULL)
1310 return 0;
1311 return elf_hash_table (info)->tls_sec->vma + TP_OFFSET;
1312}
1313
b49e97c9
TS
1314/* Create an entry in a MIPS ELF linker hash table. */
1315
1316static struct bfd_hash_entry *
9719ad41
RS
1317mips_elf_link_hash_newfunc (struct bfd_hash_entry *entry,
1318 struct bfd_hash_table *table, const char *string)
b49e97c9
TS
1319{
1320 struct mips_elf_link_hash_entry *ret =
1321 (struct mips_elf_link_hash_entry *) entry;
1322
1323 /* Allocate the structure if it has not already been allocated by a
1324 subclass. */
9719ad41
RS
1325 if (ret == NULL)
1326 ret = bfd_hash_allocate (table, sizeof (struct mips_elf_link_hash_entry));
1327 if (ret == NULL)
b49e97c9
TS
1328 return (struct bfd_hash_entry *) ret;
1329
1330 /* Call the allocation method of the superclass. */
1331 ret = ((struct mips_elf_link_hash_entry *)
1332 _bfd_elf_link_hash_newfunc ((struct bfd_hash_entry *) ret,
1333 table, string));
9719ad41 1334 if (ret != NULL)
b49e97c9
TS
1335 {
1336 /* Set local fields. */
1337 memset (&ret->esym, 0, sizeof (EXTR));
1338 /* We use -2 as a marker to indicate that the information has
1339 not been set. -1 means there is no associated ifd. */
1340 ret->esym.ifd = -2;
861fb55a 1341 ret->la25_stub = 0;
b49e97c9 1342 ret->possibly_dynamic_relocs = 0;
b49e97c9 1343 ret->fn_stub = NULL;
b49e97c9
TS
1344 ret->call_stub = NULL;
1345 ret->call_fp_stub = NULL;
f16a9783 1346 ret->mipsxhash_loc = 0;
634835ae 1347 ret->global_got_area = GGA_NONE;
6ccf4795 1348 ret->got_only_for_calls = TRUE;
71782a75 1349 ret->readonly_reloc = FALSE;
861fb55a 1350 ret->has_static_relocs = FALSE;
71782a75
RS
1351 ret->no_fn_stub = FALSE;
1352 ret->need_fn_stub = FALSE;
861fb55a 1353 ret->has_nonpic_branches = FALSE;
33bb52fb 1354 ret->needs_lazy_stub = FALSE;
1bbce132 1355 ret->use_plt_entry = FALSE;
b49e97c9
TS
1356 }
1357
1358 return (struct bfd_hash_entry *) ret;
1359}
f0abc2a1 1360
6ae68ba3
MR
1361/* Allocate MIPS ELF private object data. */
1362
1363bfd_boolean
1364_bfd_mips_elf_mkobject (bfd *abfd)
1365{
1366 return bfd_elf_allocate_object (abfd, sizeof (struct mips_elf_obj_tdata),
1367 MIPS_ELF_DATA);
1368}
1369
f0abc2a1 1370bfd_boolean
9719ad41 1371_bfd_mips_elf_new_section_hook (bfd *abfd, asection *sec)
f0abc2a1 1372{
f592407e
AM
1373 if (!sec->used_by_bfd)
1374 {
1375 struct _mips_elf_section_data *sdata;
1376 bfd_size_type amt = sizeof (*sdata);
f0abc2a1 1377
f592407e
AM
1378 sdata = bfd_zalloc (abfd, amt);
1379 if (sdata == NULL)
1380 return FALSE;
1381 sec->used_by_bfd = sdata;
1382 }
f0abc2a1
AM
1383
1384 return _bfd_elf_new_section_hook (abfd, sec);
1385}
b49e97c9
TS
1386\f
1387/* Read ECOFF debugging information from a .mdebug section into a
1388 ecoff_debug_info structure. */
1389
b34976b6 1390bfd_boolean
9719ad41
RS
1391_bfd_mips_elf_read_ecoff_info (bfd *abfd, asection *section,
1392 struct ecoff_debug_info *debug)
b49e97c9
TS
1393{
1394 HDRR *symhdr;
1395 const struct ecoff_debug_swap *swap;
9719ad41 1396 char *ext_hdr;
b49e97c9
TS
1397
1398 swap = get_elf_backend_data (abfd)->elf_backend_ecoff_debug_swap;
1399 memset (debug, 0, sizeof (*debug));
1400
9719ad41 1401 ext_hdr = bfd_malloc (swap->external_hdr_size);
b49e97c9
TS
1402 if (ext_hdr == NULL && swap->external_hdr_size != 0)
1403 goto error_return;
1404
9719ad41 1405 if (! bfd_get_section_contents (abfd, section, ext_hdr, 0,
82e51918 1406 swap->external_hdr_size))
b49e97c9
TS
1407 goto error_return;
1408
1409 symhdr = &debug->symbolic_header;
1410 (*swap->swap_hdr_in) (abfd, ext_hdr, symhdr);
1411
1412 /* The symbolic header contains absolute file offsets and sizes to
1413 read. */
1414#define READ(ptr, offset, count, size, type) \
1415 if (symhdr->count == 0) \
1416 debug->ptr = NULL; \
1417 else \
1418 { \
1419 bfd_size_type amt = (bfd_size_type) size * symhdr->count; \
9719ad41 1420 debug->ptr = bfd_malloc (amt); \
b49e97c9
TS
1421 if (debug->ptr == NULL) \
1422 goto error_return; \
9719ad41 1423 if (bfd_seek (abfd, symhdr->offset, SEEK_SET) != 0 \
b49e97c9
TS
1424 || bfd_bread (debug->ptr, amt, abfd) != amt) \
1425 goto error_return; \
1426 }
1427
1428 READ (line, cbLineOffset, cbLine, sizeof (unsigned char), unsigned char *);
9719ad41
RS
1429 READ (external_dnr, cbDnOffset, idnMax, swap->external_dnr_size, void *);
1430 READ (external_pdr, cbPdOffset, ipdMax, swap->external_pdr_size, void *);
1431 READ (external_sym, cbSymOffset, isymMax, swap->external_sym_size, void *);
1432 READ (external_opt, cbOptOffset, ioptMax, swap->external_opt_size, void *);
b49e97c9
TS
1433 READ (external_aux, cbAuxOffset, iauxMax, sizeof (union aux_ext),
1434 union aux_ext *);
1435 READ (ss, cbSsOffset, issMax, sizeof (char), char *);
1436 READ (ssext, cbSsExtOffset, issExtMax, sizeof (char), char *);
9719ad41
RS
1437 READ (external_fdr, cbFdOffset, ifdMax, swap->external_fdr_size, void *);
1438 READ (external_rfd, cbRfdOffset, crfd, swap->external_rfd_size, void *);
1439 READ (external_ext, cbExtOffset, iextMax, swap->external_ext_size, void *);
b49e97c9
TS
1440#undef READ
1441
1442 debug->fdr = NULL;
b49e97c9 1443
b34976b6 1444 return TRUE;
b49e97c9
TS
1445
1446 error_return:
1447 if (ext_hdr != NULL)
1448 free (ext_hdr);
1449 if (debug->line != NULL)
1450 free (debug->line);
1451 if (debug->external_dnr != NULL)
1452 free (debug->external_dnr);
1453 if (debug->external_pdr != NULL)
1454 free (debug->external_pdr);
1455 if (debug->external_sym != NULL)
1456 free (debug->external_sym);
1457 if (debug->external_opt != NULL)
1458 free (debug->external_opt);
1459 if (debug->external_aux != NULL)
1460 free (debug->external_aux);
1461 if (debug->ss != NULL)
1462 free (debug->ss);
1463 if (debug->ssext != NULL)
1464 free (debug->ssext);
1465 if (debug->external_fdr != NULL)
1466 free (debug->external_fdr);
1467 if (debug->external_rfd != NULL)
1468 free (debug->external_rfd);
1469 if (debug->external_ext != NULL)
1470 free (debug->external_ext);
b34976b6 1471 return FALSE;
b49e97c9
TS
1472}
1473\f
1474/* Swap RPDR (runtime procedure table entry) for output. */
1475
1476static void
9719ad41 1477ecoff_swap_rpdr_out (bfd *abfd, const RPDR *in, struct rpdr_ext *ex)
b49e97c9
TS
1478{
1479 H_PUT_S32 (abfd, in->adr, ex->p_adr);
1480 H_PUT_32 (abfd, in->regmask, ex->p_regmask);
1481 H_PUT_32 (abfd, in->regoffset, ex->p_regoffset);
1482 H_PUT_32 (abfd, in->fregmask, ex->p_fregmask);
1483 H_PUT_32 (abfd, in->fregoffset, ex->p_fregoffset);
1484 H_PUT_32 (abfd, in->frameoffset, ex->p_frameoffset);
1485
1486 H_PUT_16 (abfd, in->framereg, ex->p_framereg);
1487 H_PUT_16 (abfd, in->pcreg, ex->p_pcreg);
1488
1489 H_PUT_32 (abfd, in->irpss, ex->p_irpss);
b49e97c9
TS
1490}
1491
1492/* Create a runtime procedure table from the .mdebug section. */
1493
b34976b6 1494static bfd_boolean
9719ad41
RS
1495mips_elf_create_procedure_table (void *handle, bfd *abfd,
1496 struct bfd_link_info *info, asection *s,
1497 struct ecoff_debug_info *debug)
b49e97c9
TS
1498{
1499 const struct ecoff_debug_swap *swap;
1500 HDRR *hdr = &debug->symbolic_header;
1501 RPDR *rpdr, *rp;
1502 struct rpdr_ext *erp;
9719ad41 1503 void *rtproc;
b49e97c9
TS
1504 struct pdr_ext *epdr;
1505 struct sym_ext *esym;
1506 char *ss, **sv;
1507 char *str;
1508 bfd_size_type size;
1509 bfd_size_type count;
1510 unsigned long sindex;
1511 unsigned long i;
1512 PDR pdr;
1513 SYMR sym;
1514 const char *no_name_func = _("static procedure (no name)");
1515
1516 epdr = NULL;
1517 rpdr = NULL;
1518 esym = NULL;
1519 ss = NULL;
1520 sv = NULL;
1521
1522 swap = get_elf_backend_data (abfd)->elf_backend_ecoff_debug_swap;
1523
1524 sindex = strlen (no_name_func) + 1;
1525 count = hdr->ipdMax;
1526 if (count > 0)
1527 {
1528 size = swap->external_pdr_size;
1529
9719ad41 1530 epdr = bfd_malloc (size * count);
b49e97c9
TS
1531 if (epdr == NULL)
1532 goto error_return;
1533
9719ad41 1534 if (! _bfd_ecoff_get_accumulated_pdr (handle, (bfd_byte *) epdr))
b49e97c9
TS
1535 goto error_return;
1536
1537 size = sizeof (RPDR);
9719ad41 1538 rp = rpdr = bfd_malloc (size * count);
b49e97c9
TS
1539 if (rpdr == NULL)
1540 goto error_return;
1541
1542 size = sizeof (char *);
9719ad41 1543 sv = bfd_malloc (size * count);
b49e97c9
TS
1544 if (sv == NULL)
1545 goto error_return;
1546
1547 count = hdr->isymMax;
1548 size = swap->external_sym_size;
9719ad41 1549 esym = bfd_malloc (size * count);
b49e97c9
TS
1550 if (esym == NULL)
1551 goto error_return;
1552
9719ad41 1553 if (! _bfd_ecoff_get_accumulated_sym (handle, (bfd_byte *) esym))
b49e97c9
TS
1554 goto error_return;
1555
1556 count = hdr->issMax;
9719ad41 1557 ss = bfd_malloc (count);
b49e97c9
TS
1558 if (ss == NULL)
1559 goto error_return;
f075ee0c 1560 if (! _bfd_ecoff_get_accumulated_ss (handle, (bfd_byte *) ss))
b49e97c9
TS
1561 goto error_return;
1562
1563 count = hdr->ipdMax;
1564 for (i = 0; i < (unsigned long) count; i++, rp++)
1565 {
9719ad41
RS
1566 (*swap->swap_pdr_in) (abfd, epdr + i, &pdr);
1567 (*swap->swap_sym_in) (abfd, &esym[pdr.isym], &sym);
b49e97c9
TS
1568 rp->adr = sym.value;
1569 rp->regmask = pdr.regmask;
1570 rp->regoffset = pdr.regoffset;
1571 rp->fregmask = pdr.fregmask;
1572 rp->fregoffset = pdr.fregoffset;
1573 rp->frameoffset = pdr.frameoffset;
1574 rp->framereg = pdr.framereg;
1575 rp->pcreg = pdr.pcreg;
1576 rp->irpss = sindex;
1577 sv[i] = ss + sym.iss;
1578 sindex += strlen (sv[i]) + 1;
1579 }
1580 }
1581
1582 size = sizeof (struct rpdr_ext) * (count + 2) + sindex;
1583 size = BFD_ALIGN (size, 16);
9719ad41 1584 rtproc = bfd_alloc (abfd, size);
b49e97c9
TS
1585 if (rtproc == NULL)
1586 {
1587 mips_elf_hash_table (info)->procedure_count = 0;
1588 goto error_return;
1589 }
1590
1591 mips_elf_hash_table (info)->procedure_count = count + 2;
1592
9719ad41 1593 erp = rtproc;
b49e97c9
TS
1594 memset (erp, 0, sizeof (struct rpdr_ext));
1595 erp++;
1596 str = (char *) rtproc + sizeof (struct rpdr_ext) * (count + 2);
1597 strcpy (str, no_name_func);
1598 str += strlen (no_name_func) + 1;
1599 for (i = 0; i < count; i++)
1600 {
1601 ecoff_swap_rpdr_out (abfd, rpdr + i, erp + i);
1602 strcpy (str, sv[i]);
1603 str += strlen (sv[i]) + 1;
1604 }
1605 H_PUT_S32 (abfd, -1, (erp + count)->p_adr);
1606
1607 /* Set the size and contents of .rtproc section. */
eea6121a 1608 s->size = size;
9719ad41 1609 s->contents = rtproc;
b49e97c9
TS
1610
1611 /* Skip this section later on (I don't think this currently
1612 matters, but someday it might). */
8423293d 1613 s->map_head.link_order = NULL;
b49e97c9
TS
1614
1615 if (epdr != NULL)
1616 free (epdr);
1617 if (rpdr != NULL)
1618 free (rpdr);
1619 if (esym != NULL)
1620 free (esym);
1621 if (ss != NULL)
1622 free (ss);
1623 if (sv != NULL)
1624 free (sv);
1625
b34976b6 1626 return TRUE;
b49e97c9
TS
1627
1628 error_return:
1629 if (epdr != NULL)
1630 free (epdr);
1631 if (rpdr != NULL)
1632 free (rpdr);
1633 if (esym != NULL)
1634 free (esym);
1635 if (ss != NULL)
1636 free (ss);
1637 if (sv != NULL)
1638 free (sv);
b34976b6 1639 return FALSE;
b49e97c9 1640}
738e5348 1641\f
861fb55a
DJ
1642/* We're going to create a stub for H. Create a symbol for the stub's
1643 value and size, to help make the disassembly easier to read. */
1644
1645static bfd_boolean
1646mips_elf_create_stub_symbol (struct bfd_link_info *info,
1647 struct mips_elf_link_hash_entry *h,
1648 const char *prefix, asection *s, bfd_vma value,
1649 bfd_vma size)
1650{
a848a227 1651 bfd_boolean micromips_p = ELF_ST_IS_MICROMIPS (h->root.other);
861fb55a
DJ
1652 struct bfd_link_hash_entry *bh;
1653 struct elf_link_hash_entry *elfh;
e1fa0163
NC
1654 char *name;
1655 bfd_boolean res;
861fb55a 1656
a848a227 1657 if (micromips_p)
df58fc94
RS
1658 value |= 1;
1659
861fb55a 1660 /* Create a new symbol. */
e1fa0163 1661 name = concat (prefix, h->root.root.root.string, NULL);
861fb55a 1662 bh = NULL;
e1fa0163
NC
1663 res = _bfd_generic_link_add_one_symbol (info, s->owner, name,
1664 BSF_LOCAL, s, value, NULL,
1665 TRUE, FALSE, &bh);
1666 free (name);
1667 if (! res)
861fb55a
DJ
1668 return FALSE;
1669
1670 /* Make it a local function. */
1671 elfh = (struct elf_link_hash_entry *) bh;
1672 elfh->type = ELF_ST_INFO (STB_LOCAL, STT_FUNC);
1673 elfh->size = size;
1674 elfh->forced_local = 1;
a848a227
MR
1675 if (micromips_p)
1676 elfh->other = ELF_ST_SET_MICROMIPS (elfh->other);
861fb55a
DJ
1677 return TRUE;
1678}
1679
738e5348
RS
1680/* We're about to redefine H. Create a symbol to represent H's
1681 current value and size, to help make the disassembly easier
1682 to read. */
1683
1684static bfd_boolean
1685mips_elf_create_shadow_symbol (struct bfd_link_info *info,
1686 struct mips_elf_link_hash_entry *h,
1687 const char *prefix)
1688{
1689 struct bfd_link_hash_entry *bh;
1690 struct elf_link_hash_entry *elfh;
e1fa0163 1691 char *name;
738e5348
RS
1692 asection *s;
1693 bfd_vma value;
e1fa0163 1694 bfd_boolean res;
738e5348
RS
1695
1696 /* Read the symbol's value. */
1697 BFD_ASSERT (h->root.root.type == bfd_link_hash_defined
1698 || h->root.root.type == bfd_link_hash_defweak);
1699 s = h->root.root.u.def.section;
1700 value = h->root.root.u.def.value;
1701
1702 /* Create a new symbol. */
e1fa0163 1703 name = concat (prefix, h->root.root.root.string, NULL);
738e5348 1704 bh = NULL;
e1fa0163
NC
1705 res = _bfd_generic_link_add_one_symbol (info, s->owner, name,
1706 BSF_LOCAL, s, value, NULL,
1707 TRUE, FALSE, &bh);
1708 free (name);
1709 if (! res)
738e5348
RS
1710 return FALSE;
1711
1712 /* Make it local and copy the other attributes from H. */
1713 elfh = (struct elf_link_hash_entry *) bh;
1714 elfh->type = ELF_ST_INFO (STB_LOCAL, ELF_ST_TYPE (h->root.type));
1715 elfh->other = h->root.other;
1716 elfh->size = h->root.size;
1717 elfh->forced_local = 1;
1718 return TRUE;
1719}
1720
1721/* Return TRUE if relocations in SECTION can refer directly to a MIPS16
1722 function rather than to a hard-float stub. */
1723
1724static bfd_boolean
1725section_allows_mips16_refs_p (asection *section)
1726{
1727 const char *name;
1728
1729 name = bfd_get_section_name (section->owner, section);
1730 return (FN_STUB_P (name)
1731 || CALL_STUB_P (name)
1732 || CALL_FP_STUB_P (name)
1733 || strcmp (name, ".pdr") == 0);
1734}
1735
1736/* [RELOCS, RELEND) are the relocations against SEC, which is a MIPS16
1737 stub section of some kind. Return the R_SYMNDX of the target
1738 function, or 0 if we can't decide which function that is. */
1739
1740static unsigned long
cb4437b8
MR
1741mips16_stub_symndx (const struct elf_backend_data *bed,
1742 asection *sec ATTRIBUTE_UNUSED,
502e814e 1743 const Elf_Internal_Rela *relocs,
738e5348
RS
1744 const Elf_Internal_Rela *relend)
1745{
cb4437b8 1746 int int_rels_per_ext_rel = bed->s->int_rels_per_ext_rel;
738e5348
RS
1747 const Elf_Internal_Rela *rel;
1748
cb4437b8
MR
1749 /* Trust the first R_MIPS_NONE relocation, if any, but not a subsequent
1750 one in a compound relocation. */
1751 for (rel = relocs; rel < relend; rel += int_rels_per_ext_rel)
738e5348
RS
1752 if (ELF_R_TYPE (sec->owner, rel->r_info) == R_MIPS_NONE)
1753 return ELF_R_SYM (sec->owner, rel->r_info);
1754
1755 /* Otherwise trust the first relocation, whatever its kind. This is
1756 the traditional behavior. */
1757 if (relocs < relend)
1758 return ELF_R_SYM (sec->owner, relocs->r_info);
1759
1760 return 0;
1761}
b49e97c9
TS
1762
1763/* Check the mips16 stubs for a particular symbol, and see if we can
1764 discard them. */
1765
861fb55a
DJ
1766static void
1767mips_elf_check_mips16_stubs (struct bfd_link_info *info,
1768 struct mips_elf_link_hash_entry *h)
b49e97c9 1769{
738e5348
RS
1770 /* Dynamic symbols must use the standard call interface, in case other
1771 objects try to call them. */
1772 if (h->fn_stub != NULL
1773 && h->root.dynindx != -1)
1774 {
1775 mips_elf_create_shadow_symbol (info, h, ".mips16.");
1776 h->need_fn_stub = TRUE;
1777 }
1778
b49e97c9
TS
1779 if (h->fn_stub != NULL
1780 && ! h->need_fn_stub)
1781 {
1782 /* We don't need the fn_stub; the only references to this symbol
07d6d2b8
AM
1783 are 16 bit calls. Clobber the size to 0 to prevent it from
1784 being included in the link. */
eea6121a 1785 h->fn_stub->size = 0;
b49e97c9
TS
1786 h->fn_stub->flags &= ~SEC_RELOC;
1787 h->fn_stub->reloc_count = 0;
1788 h->fn_stub->flags |= SEC_EXCLUDE;
ca9584fb 1789 h->fn_stub->output_section = bfd_abs_section_ptr;
b49e97c9
TS
1790 }
1791
1792 if (h->call_stub != NULL
30c09090 1793 && ELF_ST_IS_MIPS16 (h->root.other))
b49e97c9
TS
1794 {
1795 /* We don't need the call_stub; this is a 16 bit function, so
07d6d2b8
AM
1796 calls from other 16 bit functions are OK. Clobber the size
1797 to 0 to prevent it from being included in the link. */
eea6121a 1798 h->call_stub->size = 0;
b49e97c9
TS
1799 h->call_stub->flags &= ~SEC_RELOC;
1800 h->call_stub->reloc_count = 0;
1801 h->call_stub->flags |= SEC_EXCLUDE;
ca9584fb 1802 h->call_stub->output_section = bfd_abs_section_ptr;
b49e97c9
TS
1803 }
1804
1805 if (h->call_fp_stub != NULL
30c09090 1806 && ELF_ST_IS_MIPS16 (h->root.other))
b49e97c9
TS
1807 {
1808 /* We don't need the call_stub; this is a 16 bit function, so
07d6d2b8
AM
1809 calls from other 16 bit functions are OK. Clobber the size
1810 to 0 to prevent it from being included in the link. */
eea6121a 1811 h->call_fp_stub->size = 0;
b49e97c9
TS
1812 h->call_fp_stub->flags &= ~SEC_RELOC;
1813 h->call_fp_stub->reloc_count = 0;
1814 h->call_fp_stub->flags |= SEC_EXCLUDE;
ca9584fb 1815 h->call_fp_stub->output_section = bfd_abs_section_ptr;
b49e97c9 1816 }
861fb55a
DJ
1817}
1818
1819/* Hashtable callbacks for mips_elf_la25_stubs. */
1820
1821static hashval_t
1822mips_elf_la25_stub_hash (const void *entry_)
1823{
1824 const struct mips_elf_la25_stub *entry;
1825
1826 entry = (struct mips_elf_la25_stub *) entry_;
1827 return entry->h->root.root.u.def.section->id
1828 + entry->h->root.root.u.def.value;
1829}
1830
1831static int
1832mips_elf_la25_stub_eq (const void *entry1_, const void *entry2_)
1833{
1834 const struct mips_elf_la25_stub *entry1, *entry2;
1835
1836 entry1 = (struct mips_elf_la25_stub *) entry1_;
1837 entry2 = (struct mips_elf_la25_stub *) entry2_;
1838 return ((entry1->h->root.root.u.def.section
1839 == entry2->h->root.root.u.def.section)
1840 && (entry1->h->root.root.u.def.value
1841 == entry2->h->root.root.u.def.value));
1842}
1843
1844/* Called by the linker to set up the la25 stub-creation code. FN is
1845 the linker's implementation of add_stub_function. Return true on
1846 success. */
1847
1848bfd_boolean
1849_bfd_mips_elf_init_stubs (struct bfd_link_info *info,
1850 asection *(*fn) (const char *, asection *,
1851 asection *))
1852{
1853 struct mips_elf_link_hash_table *htab;
1854
1855 htab = mips_elf_hash_table (info);
4dfe6ac6
NC
1856 if (htab == NULL)
1857 return FALSE;
1858
861fb55a
DJ
1859 htab->add_stub_section = fn;
1860 htab->la25_stubs = htab_try_create (1, mips_elf_la25_stub_hash,
1861 mips_elf_la25_stub_eq, NULL);
1862 if (htab->la25_stubs == NULL)
1863 return FALSE;
1864
1865 return TRUE;
1866}
1867
1868/* Return true if H is a locally-defined PIC function, in the sense
8f0c309a
CLT
1869 that it or its fn_stub might need $25 to be valid on entry.
1870 Note that MIPS16 functions set up $gp using PC-relative instructions,
1871 so they themselves never need $25 to be valid. Only non-MIPS16
1872 entry points are of interest here. */
861fb55a
DJ
1873
1874static bfd_boolean
1875mips_elf_local_pic_function_p (struct mips_elf_link_hash_entry *h)
1876{
1877 return ((h->root.root.type == bfd_link_hash_defined
1878 || h->root.root.type == bfd_link_hash_defweak)
1879 && h->root.def_regular
1880 && !bfd_is_abs_section (h->root.root.u.def.section)
f02cb058 1881 && !bfd_is_und_section (h->root.root.u.def.section)
8f0c309a
CLT
1882 && (!ELF_ST_IS_MIPS16 (h->root.other)
1883 || (h->fn_stub && h->need_fn_stub))
861fb55a
DJ
1884 && (PIC_OBJECT_P (h->root.root.u.def.section->owner)
1885 || ELF_ST_IS_MIPS_PIC (h->root.other)));
1886}
1887
8f0c309a
CLT
1888/* Set *SEC to the input section that contains the target of STUB.
1889 Return the offset of the target from the start of that section. */
1890
1891static bfd_vma
1892mips_elf_get_la25_target (struct mips_elf_la25_stub *stub,
1893 asection **sec)
1894{
1895 if (ELF_ST_IS_MIPS16 (stub->h->root.other))
1896 {
1897 BFD_ASSERT (stub->h->need_fn_stub);
1898 *sec = stub->h->fn_stub;
1899 return 0;
1900 }
1901 else
1902 {
1903 *sec = stub->h->root.root.u.def.section;
1904 return stub->h->root.root.u.def.value;
1905 }
1906}
1907
861fb55a
DJ
1908/* STUB describes an la25 stub that we have decided to implement
1909 by inserting an LUI/ADDIU pair before the target function.
1910 Create the section and redirect the function symbol to it. */
1911
1912static bfd_boolean
1913mips_elf_add_la25_intro (struct mips_elf_la25_stub *stub,
1914 struct bfd_link_info *info)
1915{
1916 struct mips_elf_link_hash_table *htab;
1917 char *name;
1918 asection *s, *input_section;
1919 unsigned int align;
1920
1921 htab = mips_elf_hash_table (info);
4dfe6ac6
NC
1922 if (htab == NULL)
1923 return FALSE;
861fb55a
DJ
1924
1925 /* Create a unique name for the new section. */
1926 name = bfd_malloc (11 + sizeof (".text.stub."));
1927 if (name == NULL)
1928 return FALSE;
1929 sprintf (name, ".text.stub.%d", (int) htab_elements (htab->la25_stubs));
1930
1931 /* Create the section. */
8f0c309a 1932 mips_elf_get_la25_target (stub, &input_section);
861fb55a
DJ
1933 s = htab->add_stub_section (name, input_section,
1934 input_section->output_section);
1935 if (s == NULL)
1936 return FALSE;
1937
1938 /* Make sure that any padding goes before the stub. */
1939 align = input_section->alignment_power;
1940 if (!bfd_set_section_alignment (s->owner, s, align))
1941 return FALSE;
1942 if (align > 3)
1943 s->size = (1 << align) - 8;
1944
1945 /* Create a symbol for the stub. */
1946 mips_elf_create_stub_symbol (info, stub->h, ".pic.", s, s->size, 8);
1947 stub->stub_section = s;
1948 stub->offset = s->size;
1949
1950 /* Allocate room for it. */
1951 s->size += 8;
1952 return TRUE;
1953}
1954
1955/* STUB describes an la25 stub that we have decided to implement
1956 with a separate trampoline. Allocate room for it and redirect
1957 the function symbol to it. */
1958
1959static bfd_boolean
1960mips_elf_add_la25_trampoline (struct mips_elf_la25_stub *stub,
1961 struct bfd_link_info *info)
1962{
1963 struct mips_elf_link_hash_table *htab;
1964 asection *s;
1965
1966 htab = mips_elf_hash_table (info);
4dfe6ac6
NC
1967 if (htab == NULL)
1968 return FALSE;
861fb55a
DJ
1969
1970 /* Create a trampoline section, if we haven't already. */
1971 s = htab->strampoline;
1972 if (s == NULL)
1973 {
1974 asection *input_section = stub->h->root.root.u.def.section;
1975 s = htab->add_stub_section (".text", NULL,
1976 input_section->output_section);
1977 if (s == NULL || !bfd_set_section_alignment (s->owner, s, 4))
1978 return FALSE;
1979 htab->strampoline = s;
1980 }
1981
1982 /* Create a symbol for the stub. */
1983 mips_elf_create_stub_symbol (info, stub->h, ".pic.", s, s->size, 16);
1984 stub->stub_section = s;
1985 stub->offset = s->size;
1986
1987 /* Allocate room for it. */
1988 s->size += 16;
1989 return TRUE;
1990}
1991
1992/* H describes a symbol that needs an la25 stub. Make sure that an
1993 appropriate stub exists and point H at it. */
1994
1995static bfd_boolean
1996mips_elf_add_la25_stub (struct bfd_link_info *info,
1997 struct mips_elf_link_hash_entry *h)
1998{
1999 struct mips_elf_link_hash_table *htab;
2000 struct mips_elf_la25_stub search, *stub;
2001 bfd_boolean use_trampoline_p;
2002 asection *s;
2003 bfd_vma value;
2004 void **slot;
2005
861fb55a
DJ
2006 /* Describe the stub we want. */
2007 search.stub_section = NULL;
2008 search.offset = 0;
2009 search.h = h;
2010
2011 /* See if we've already created an equivalent stub. */
2012 htab = mips_elf_hash_table (info);
4dfe6ac6
NC
2013 if (htab == NULL)
2014 return FALSE;
2015
861fb55a
DJ
2016 slot = htab_find_slot (htab->la25_stubs, &search, INSERT);
2017 if (slot == NULL)
2018 return FALSE;
2019
2020 stub = (struct mips_elf_la25_stub *) *slot;
2021 if (stub != NULL)
2022 {
2023 /* We can reuse the existing stub. */
2024 h->la25_stub = stub;
2025 return TRUE;
2026 }
2027
2028 /* Create a permanent copy of ENTRY and add it to the hash table. */
2029 stub = bfd_malloc (sizeof (search));
2030 if (stub == NULL)
2031 return FALSE;
2032 *stub = search;
2033 *slot = stub;
2034
8f0c309a
CLT
2035 /* Prefer to use LUI/ADDIU stubs if the function is at the beginning
2036 of the section and if we would need no more than 2 nops. */
2037 value = mips_elf_get_la25_target (stub, &s);
fe152e64
MR
2038 if (ELF_ST_IS_MICROMIPS (stub->h->root.other))
2039 value &= ~1;
8f0c309a
CLT
2040 use_trampoline_p = (value != 0 || s->alignment_power > 4);
2041
861fb55a
DJ
2042 h->la25_stub = stub;
2043 return (use_trampoline_p
2044 ? mips_elf_add_la25_trampoline (stub, info)
2045 : mips_elf_add_la25_intro (stub, info));
2046}
2047
2048/* A mips_elf_link_hash_traverse callback that is called before sizing
2049 sections. DATA points to a mips_htab_traverse_info structure. */
2050
2051static bfd_boolean
2052mips_elf_check_symbols (struct mips_elf_link_hash_entry *h, void *data)
2053{
2054 struct mips_htab_traverse_info *hti;
2055
2056 hti = (struct mips_htab_traverse_info *) data;
0e1862bb 2057 if (!bfd_link_relocatable (hti->info))
861fb55a 2058 mips_elf_check_mips16_stubs (hti->info, h);
b49e97c9 2059
861fb55a
DJ
2060 if (mips_elf_local_pic_function_p (h))
2061 {
ba85c43e
NC
2062 /* PR 12845: If H is in a section that has been garbage
2063 collected it will have its output section set to *ABS*. */
2064 if (bfd_is_abs_section (h->root.root.u.def.section->output_section))
2065 return TRUE;
2066
861fb55a
DJ
2067 /* H is a function that might need $25 to be valid on entry.
2068 If we're creating a non-PIC relocatable object, mark H as
2069 being PIC. If we're creating a non-relocatable object with
2070 non-PIC branches and jumps to H, make sure that H has an la25
2071 stub. */
0e1862bb 2072 if (bfd_link_relocatable (hti->info))
861fb55a
DJ
2073 {
2074 if (!PIC_OBJECT_P (hti->output_bfd))
2075 h->root.other = ELF_ST_SET_MIPS_PIC (h->root.other);
2076 }
2077 else if (h->has_nonpic_branches && !mips_elf_add_la25_stub (hti->info, h))
2078 {
2079 hti->error = TRUE;
2080 return FALSE;
2081 }
2082 }
b34976b6 2083 return TRUE;
b49e97c9
TS
2084}
2085\f
d6f16593
MR
2086/* R_MIPS16_26 is used for the mips16 jal and jalx instructions.
2087 Most mips16 instructions are 16 bits, but these instructions
2088 are 32 bits.
2089
2090 The format of these instructions is:
2091
2092 +--------------+--------------------------------+
2093 | JALX | X| Imm 20:16 | Imm 25:21 |
2094 +--------------+--------------------------------+
07d6d2b8 2095 | Immediate 15:0 |
d6f16593
MR
2096 +-----------------------------------------------+
2097
2098 JALX is the 5-bit value 00011. X is 0 for jal, 1 for jalx.
2099 Note that the immediate value in the first word is swapped.
2100
2101 When producing a relocatable object file, R_MIPS16_26 is
2102 handled mostly like R_MIPS_26. In particular, the addend is
2103 stored as a straight 26-bit value in a 32-bit instruction.
2104 (gas makes life simpler for itself by never adjusting a
2105 R_MIPS16_26 reloc to be against a section, so the addend is
2106 always zero). However, the 32 bit instruction is stored as 2
2107 16-bit values, rather than a single 32-bit value. In a
2108 big-endian file, the result is the same; in a little-endian
2109 file, the two 16-bit halves of the 32 bit value are swapped.
2110 This is so that a disassembler can recognize the jal
2111 instruction.
2112
2113 When doing a final link, R_MIPS16_26 is treated as a 32 bit
2114 instruction stored as two 16-bit values. The addend A is the
2115 contents of the targ26 field. The calculation is the same as
2116 R_MIPS_26. When storing the calculated value, reorder the
2117 immediate value as shown above, and don't forget to store the
2118 value as two 16-bit values.
2119
2120 To put it in MIPS ABI terms, the relocation field is T-targ26-16,
2121 defined as
2122
2123 big-endian:
2124 +--------+----------------------+
07d6d2b8
AM
2125 | | |
2126 | | targ26-16 |
2127 |31 26|25 0|
d6f16593
MR
2128 +--------+----------------------+
2129
2130 little-endian:
2131 +----------+------+-------------+
07d6d2b8
AM
2132 | | | |
2133 | sub1 | | sub2 |
2134 |0 9|10 15|16 31|
d6f16593
MR
2135 +----------+--------------------+
2136 where targ26-16 is sub1 followed by sub2 (i.e., the addend field A is
2137 ((sub1 << 16) | sub2)).
2138
2139 When producing a relocatable object file, the calculation is
2140 (((A < 2) | ((P + 4) & 0xf0000000) + S) >> 2)
2141 When producing a fully linked file, the calculation is
2142 let R = (((A < 2) | ((P + 4) & 0xf0000000) + S) >> 2)
2143 ((R & 0x1f0000) << 5) | ((R & 0x3e00000) >> 5) | (R & 0xffff)
2144
738e5348
RS
2145 The table below lists the other MIPS16 instruction relocations.
2146 Each one is calculated in the same way as the non-MIPS16 relocation
2147 given on the right, but using the extended MIPS16 layout of 16-bit
2148 immediate fields:
2149
2150 R_MIPS16_GPREL R_MIPS_GPREL16
2151 R_MIPS16_GOT16 R_MIPS_GOT16
2152 R_MIPS16_CALL16 R_MIPS_CALL16
2153 R_MIPS16_HI16 R_MIPS_HI16
2154 R_MIPS16_LO16 R_MIPS_LO16
2155
2156 A typical instruction will have a format like this:
d6f16593
MR
2157
2158 +--------------+--------------------------------+
2159 | EXTEND | Imm 10:5 | Imm 15:11 |
2160 +--------------+--------------------------------+
2161 | Major | rx | ry | Imm 4:0 |
2162 +--------------+--------------------------------+
2163
2164 EXTEND is the five bit value 11110. Major is the instruction
2165 opcode.
2166
738e5348
RS
2167 All we need to do here is shuffle the bits appropriately.
2168 As above, the two 16-bit halves must be swapped on a
c9775dde
MR
2169 little-endian system.
2170
2171 Finally R_MIPS16_PC16_S1 corresponds to R_MIPS_PC16, however the
2172 relocatable field is shifted by 1 rather than 2 and the same bit
2173 shuffling is done as with the relocations above. */
738e5348
RS
2174
2175static inline bfd_boolean
2176mips16_reloc_p (int r_type)
2177{
2178 switch (r_type)
2179 {
2180 case R_MIPS16_26:
2181 case R_MIPS16_GPREL:
2182 case R_MIPS16_GOT16:
2183 case R_MIPS16_CALL16:
2184 case R_MIPS16_HI16:
2185 case R_MIPS16_LO16:
d0f13682
CLT
2186 case R_MIPS16_TLS_GD:
2187 case R_MIPS16_TLS_LDM:
2188 case R_MIPS16_TLS_DTPREL_HI16:
2189 case R_MIPS16_TLS_DTPREL_LO16:
2190 case R_MIPS16_TLS_GOTTPREL:
2191 case R_MIPS16_TLS_TPREL_HI16:
2192 case R_MIPS16_TLS_TPREL_LO16:
c9775dde 2193 case R_MIPS16_PC16_S1:
738e5348
RS
2194 return TRUE;
2195
2196 default:
2197 return FALSE;
2198 }
2199}
2200
df58fc94
RS
2201/* Check if a microMIPS reloc. */
2202
2203static inline bfd_boolean
2204micromips_reloc_p (unsigned int r_type)
2205{
2206 return r_type >= R_MICROMIPS_min && r_type < R_MICROMIPS_max;
2207}
2208
2209/* Similar to MIPS16, the two 16-bit halves in microMIPS must be swapped
2210 on a little-endian system. This does not apply to R_MICROMIPS_PC7_S1
2211 and R_MICROMIPS_PC10_S1 relocs that apply to 16-bit instructions. */
2212
2213static inline bfd_boolean
2214micromips_reloc_shuffle_p (unsigned int r_type)
2215{
2216 return (micromips_reloc_p (r_type)
2217 && r_type != R_MICROMIPS_PC7_S1
2218 && r_type != R_MICROMIPS_PC10_S1);
2219}
2220
738e5348
RS
2221static inline bfd_boolean
2222got16_reloc_p (int r_type)
2223{
df58fc94
RS
2224 return (r_type == R_MIPS_GOT16
2225 || r_type == R_MIPS16_GOT16
2226 || r_type == R_MICROMIPS_GOT16);
738e5348
RS
2227}
2228
2229static inline bfd_boolean
2230call16_reloc_p (int r_type)
2231{
df58fc94
RS
2232 return (r_type == R_MIPS_CALL16
2233 || r_type == R_MIPS16_CALL16
2234 || r_type == R_MICROMIPS_CALL16);
2235}
2236
2237static inline bfd_boolean
2238got_disp_reloc_p (unsigned int r_type)
2239{
2240 return r_type == R_MIPS_GOT_DISP || r_type == R_MICROMIPS_GOT_DISP;
2241}
2242
2243static inline bfd_boolean
2244got_page_reloc_p (unsigned int r_type)
2245{
2246 return r_type == R_MIPS_GOT_PAGE || r_type == R_MICROMIPS_GOT_PAGE;
2247}
2248
df58fc94
RS
2249static inline bfd_boolean
2250got_lo16_reloc_p (unsigned int r_type)
2251{
2252 return r_type == R_MIPS_GOT_LO16 || r_type == R_MICROMIPS_GOT_LO16;
2253}
2254
2255static inline bfd_boolean
2256call_hi16_reloc_p (unsigned int r_type)
2257{
2258 return r_type == R_MIPS_CALL_HI16 || r_type == R_MICROMIPS_CALL_HI16;
2259}
2260
2261static inline bfd_boolean
2262call_lo16_reloc_p (unsigned int r_type)
2263{
2264 return r_type == R_MIPS_CALL_LO16 || r_type == R_MICROMIPS_CALL_LO16;
738e5348
RS
2265}
2266
2267static inline bfd_boolean
2268hi16_reloc_p (int r_type)
2269{
df58fc94
RS
2270 return (r_type == R_MIPS_HI16
2271 || r_type == R_MIPS16_HI16
7361da2c
AB
2272 || r_type == R_MICROMIPS_HI16
2273 || r_type == R_MIPS_PCHI16);
738e5348 2274}
d6f16593 2275
738e5348
RS
2276static inline bfd_boolean
2277lo16_reloc_p (int r_type)
2278{
df58fc94
RS
2279 return (r_type == R_MIPS_LO16
2280 || r_type == R_MIPS16_LO16
7361da2c
AB
2281 || r_type == R_MICROMIPS_LO16
2282 || r_type == R_MIPS_PCLO16);
738e5348
RS
2283}
2284
2285static inline bfd_boolean
2286mips16_call_reloc_p (int r_type)
2287{
2288 return r_type == R_MIPS16_26 || r_type == R_MIPS16_CALL16;
2289}
d6f16593 2290
38a7df63
CF
2291static inline bfd_boolean
2292jal_reloc_p (int r_type)
2293{
df58fc94
RS
2294 return (r_type == R_MIPS_26
2295 || r_type == R_MIPS16_26
2296 || r_type == R_MICROMIPS_26_S1);
2297}
2298
99aefae6
MR
2299static inline bfd_boolean
2300b_reloc_p (int r_type)
2301{
2302 return (r_type == R_MIPS_PC26_S2
2303 || r_type == R_MIPS_PC21_S2
2304 || r_type == R_MIPS_PC16
c9775dde 2305 || r_type == R_MIPS_GNU_REL16_S2
9d862524
MR
2306 || r_type == R_MIPS16_PC16_S1
2307 || r_type == R_MICROMIPS_PC16_S1
2308 || r_type == R_MICROMIPS_PC10_S1
2309 || r_type == R_MICROMIPS_PC7_S1);
99aefae6
MR
2310}
2311
7361da2c
AB
2312static inline bfd_boolean
2313aligned_pcrel_reloc_p (int r_type)
2314{
2315 return (r_type == R_MIPS_PC18_S3
2316 || r_type == R_MIPS_PC19_S2);
2317}
2318
9d862524
MR
2319static inline bfd_boolean
2320branch_reloc_p (int r_type)
2321{
2322 return (r_type == R_MIPS_26
2323 || r_type == R_MIPS_PC26_S2
2324 || r_type == R_MIPS_PC21_S2
2325 || r_type == R_MIPS_PC16
2326 || r_type == R_MIPS_GNU_REL16_S2);
2327}
2328
c9775dde
MR
2329static inline bfd_boolean
2330mips16_branch_reloc_p (int r_type)
2331{
2332 return (r_type == R_MIPS16_26
2333 || r_type == R_MIPS16_PC16_S1);
2334}
2335
df58fc94
RS
2336static inline bfd_boolean
2337micromips_branch_reloc_p (int r_type)
2338{
2339 return (r_type == R_MICROMIPS_26_S1
2340 || r_type == R_MICROMIPS_PC16_S1
2341 || r_type == R_MICROMIPS_PC10_S1
2342 || r_type == R_MICROMIPS_PC7_S1);
2343}
2344
2345static inline bfd_boolean
2346tls_gd_reloc_p (unsigned int r_type)
2347{
d0f13682
CLT
2348 return (r_type == R_MIPS_TLS_GD
2349 || r_type == R_MIPS16_TLS_GD
2350 || r_type == R_MICROMIPS_TLS_GD);
df58fc94
RS
2351}
2352
2353static inline bfd_boolean
2354tls_ldm_reloc_p (unsigned int r_type)
2355{
d0f13682
CLT
2356 return (r_type == R_MIPS_TLS_LDM
2357 || r_type == R_MIPS16_TLS_LDM
2358 || r_type == R_MICROMIPS_TLS_LDM);
df58fc94
RS
2359}
2360
2361static inline bfd_boolean
2362tls_gottprel_reloc_p (unsigned int r_type)
2363{
d0f13682
CLT
2364 return (r_type == R_MIPS_TLS_GOTTPREL
2365 || r_type == R_MIPS16_TLS_GOTTPREL
2366 || r_type == R_MICROMIPS_TLS_GOTTPREL);
38a7df63
CF
2367}
2368
d6f16593 2369void
df58fc94
RS
2370_bfd_mips_elf_reloc_unshuffle (bfd *abfd, int r_type,
2371 bfd_boolean jal_shuffle, bfd_byte *data)
d6f16593 2372{
df58fc94 2373 bfd_vma first, second, val;
d6f16593 2374
df58fc94 2375 if (!mips16_reloc_p (r_type) && !micromips_reloc_shuffle_p (r_type))
d6f16593
MR
2376 return;
2377
df58fc94
RS
2378 /* Pick up the first and second halfwords of the instruction. */
2379 first = bfd_get_16 (abfd, data);
2380 second = bfd_get_16 (abfd, data + 2);
2381 if (micromips_reloc_p (r_type) || (r_type == R_MIPS16_26 && !jal_shuffle))
2382 val = first << 16 | second;
2383 else if (r_type != R_MIPS16_26)
2384 val = (((first & 0xf800) << 16) | ((second & 0xffe0) << 11)
2385 | ((first & 0x1f) << 11) | (first & 0x7e0) | (second & 0x1f));
d6f16593 2386 else
df58fc94
RS
2387 val = (((first & 0xfc00) << 16) | ((first & 0x3e0) << 11)
2388 | ((first & 0x1f) << 21) | second);
d6f16593
MR
2389 bfd_put_32 (abfd, val, data);
2390}
2391
2392void
df58fc94
RS
2393_bfd_mips_elf_reloc_shuffle (bfd *abfd, int r_type,
2394 bfd_boolean jal_shuffle, bfd_byte *data)
d6f16593 2395{
df58fc94 2396 bfd_vma first, second, val;
d6f16593 2397
df58fc94 2398 if (!mips16_reloc_p (r_type) && !micromips_reloc_shuffle_p (r_type))
d6f16593
MR
2399 return;
2400
2401 val = bfd_get_32 (abfd, data);
df58fc94 2402 if (micromips_reloc_p (r_type) || (r_type == R_MIPS16_26 && !jal_shuffle))
d6f16593 2403 {
df58fc94
RS
2404 second = val & 0xffff;
2405 first = val >> 16;
2406 }
2407 else if (r_type != R_MIPS16_26)
2408 {
2409 second = ((val >> 11) & 0xffe0) | (val & 0x1f);
2410 first = ((val >> 16) & 0xf800) | ((val >> 11) & 0x1f) | (val & 0x7e0);
d6f16593
MR
2411 }
2412 else
2413 {
df58fc94
RS
2414 second = val & 0xffff;
2415 first = ((val >> 16) & 0xfc00) | ((val >> 11) & 0x3e0)
2416 | ((val >> 21) & 0x1f);
d6f16593 2417 }
df58fc94
RS
2418 bfd_put_16 (abfd, second, data + 2);
2419 bfd_put_16 (abfd, first, data);
d6f16593
MR
2420}
2421
b49e97c9 2422bfd_reloc_status_type
9719ad41
RS
2423_bfd_mips_elf_gprel16_with_gp (bfd *abfd, asymbol *symbol,
2424 arelent *reloc_entry, asection *input_section,
2425 bfd_boolean relocatable, void *data, bfd_vma gp)
b49e97c9
TS
2426{
2427 bfd_vma relocation;
a7ebbfdf 2428 bfd_signed_vma val;
30ac9238 2429 bfd_reloc_status_type status;
b49e97c9
TS
2430
2431 if (bfd_is_com_section (symbol->section))
2432 relocation = 0;
2433 else
2434 relocation = symbol->value;
2435
2436 relocation += symbol->section->output_section->vma;
2437 relocation += symbol->section->output_offset;
2438
07515404 2439 if (reloc_entry->address > bfd_get_section_limit (abfd, input_section))
b49e97c9
TS
2440 return bfd_reloc_outofrange;
2441
b49e97c9 2442 /* Set val to the offset into the section or symbol. */
a7ebbfdf
TS
2443 val = reloc_entry->addend;
2444
30ac9238 2445 _bfd_mips_elf_sign_extend (val, 16);
a7ebbfdf 2446
b49e97c9 2447 /* Adjust val for the final section location and GP value. If we
1049f94e 2448 are producing relocatable output, we don't want to do this for
b49e97c9 2449 an external symbol. */
1049f94e 2450 if (! relocatable
b49e97c9
TS
2451 || (symbol->flags & BSF_SECTION_SYM) != 0)
2452 val += relocation - gp;
2453
a7ebbfdf
TS
2454 if (reloc_entry->howto->partial_inplace)
2455 {
30ac9238
RS
2456 status = _bfd_relocate_contents (reloc_entry->howto, abfd, val,
2457 (bfd_byte *) data
2458 + reloc_entry->address);
2459 if (status != bfd_reloc_ok)
2460 return status;
a7ebbfdf
TS
2461 }
2462 else
2463 reloc_entry->addend = val;
b49e97c9 2464
1049f94e 2465 if (relocatable)
b49e97c9 2466 reloc_entry->address += input_section->output_offset;
30ac9238
RS
2467
2468 return bfd_reloc_ok;
2469}
2470
2471/* Used to store a REL high-part relocation such as R_MIPS_HI16 or
2472 R_MIPS_GOT16. REL is the relocation, INPUT_SECTION is the section
2473 that contains the relocation field and DATA points to the start of
2474 INPUT_SECTION. */
2475
2476struct mips_hi16
2477{
2478 struct mips_hi16 *next;
2479 bfd_byte *data;
2480 asection *input_section;
2481 arelent rel;
2482};
2483
2484/* FIXME: This should not be a static variable. */
2485
2486static struct mips_hi16 *mips_hi16_list;
2487
2488/* A howto special_function for REL *HI16 relocations. We can only
2489 calculate the correct value once we've seen the partnering
2490 *LO16 relocation, so just save the information for later.
2491
2492 The ABI requires that the *LO16 immediately follow the *HI16.
2493 However, as a GNU extension, we permit an arbitrary number of
2494 *HI16s to be associated with a single *LO16. This significantly
2495 simplies the relocation handling in gcc. */
2496
2497bfd_reloc_status_type
2498_bfd_mips_elf_hi16_reloc (bfd *abfd ATTRIBUTE_UNUSED, arelent *reloc_entry,
2499 asymbol *symbol ATTRIBUTE_UNUSED, void *data,
2500 asection *input_section, bfd *output_bfd,
2501 char **error_message ATTRIBUTE_UNUSED)
2502{
2503 struct mips_hi16 *n;
2504
07515404 2505 if (reloc_entry->address > bfd_get_section_limit (abfd, input_section))
30ac9238
RS
2506 return bfd_reloc_outofrange;
2507
2508 n = bfd_malloc (sizeof *n);
2509 if (n == NULL)
2510 return bfd_reloc_outofrange;
2511
2512 n->next = mips_hi16_list;
2513 n->data = data;
2514 n->input_section = input_section;
2515 n->rel = *reloc_entry;
2516 mips_hi16_list = n;
2517
2518 if (output_bfd != NULL)
2519 reloc_entry->address += input_section->output_offset;
2520
2521 return bfd_reloc_ok;
2522}
2523
738e5348 2524/* A howto special_function for REL R_MIPS*_GOT16 relocations. This is just
30ac9238
RS
2525 like any other 16-bit relocation when applied to global symbols, but is
2526 treated in the same as R_MIPS_HI16 when applied to local symbols. */
2527
2528bfd_reloc_status_type
2529_bfd_mips_elf_got16_reloc (bfd *abfd, arelent *reloc_entry, asymbol *symbol,
2530 void *data, asection *input_section,
2531 bfd *output_bfd, char **error_message)
2532{
2533 if ((symbol->flags & (BSF_GLOBAL | BSF_WEAK)) != 0
e6f7f6d1
AM
2534 || bfd_is_und_section (bfd_asymbol_section (symbol))
2535 || bfd_is_com_section (bfd_asymbol_section (symbol)))
30ac9238
RS
2536 /* The relocation is against a global symbol. */
2537 return _bfd_mips_elf_generic_reloc (abfd, reloc_entry, symbol, data,
2538 input_section, output_bfd,
2539 error_message);
2540
2541 return _bfd_mips_elf_hi16_reloc (abfd, reloc_entry, symbol, data,
2542 input_section, output_bfd, error_message);
2543}
2544
2545/* A howto special_function for REL *LO16 relocations. The *LO16 itself
2546 is a straightforward 16 bit inplace relocation, but we must deal with
2547 any partnering high-part relocations as well. */
2548
2549bfd_reloc_status_type
2550_bfd_mips_elf_lo16_reloc (bfd *abfd, arelent *reloc_entry, asymbol *symbol,
2551 void *data, asection *input_section,
2552 bfd *output_bfd, char **error_message)
2553{
2554 bfd_vma vallo;
d6f16593 2555 bfd_byte *location = (bfd_byte *) data + reloc_entry->address;
30ac9238 2556
07515404 2557 if (reloc_entry->address > bfd_get_section_limit (abfd, input_section))
30ac9238
RS
2558 return bfd_reloc_outofrange;
2559
df58fc94 2560 _bfd_mips_elf_reloc_unshuffle (abfd, reloc_entry->howto->type, FALSE,
d6f16593 2561 location);
df58fc94
RS
2562 vallo = bfd_get_32 (abfd, location);
2563 _bfd_mips_elf_reloc_shuffle (abfd, reloc_entry->howto->type, FALSE,
2564 location);
d6f16593 2565
30ac9238
RS
2566 while (mips_hi16_list != NULL)
2567 {
2568 bfd_reloc_status_type ret;
2569 struct mips_hi16 *hi;
2570
2571 hi = mips_hi16_list;
2572
738e5348
RS
2573 /* R_MIPS*_GOT16 relocations are something of a special case. We
2574 want to install the addend in the same way as for a R_MIPS*_HI16
30ac9238
RS
2575 relocation (with a rightshift of 16). However, since GOT16
2576 relocations can also be used with global symbols, their howto
2577 has a rightshift of 0. */
2578 if (hi->rel.howto->type == R_MIPS_GOT16)
2579 hi->rel.howto = MIPS_ELF_RTYPE_TO_HOWTO (abfd, R_MIPS_HI16, FALSE);
738e5348
RS
2580 else if (hi->rel.howto->type == R_MIPS16_GOT16)
2581 hi->rel.howto = MIPS_ELF_RTYPE_TO_HOWTO (abfd, R_MIPS16_HI16, FALSE);
df58fc94
RS
2582 else if (hi->rel.howto->type == R_MICROMIPS_GOT16)
2583 hi->rel.howto = MIPS_ELF_RTYPE_TO_HOWTO (abfd, R_MICROMIPS_HI16, FALSE);
30ac9238
RS
2584
2585 /* VALLO is a signed 16-bit number. Bias it by 0x8000 so that any
2586 carry or borrow will induce a change of +1 or -1 in the high part. */
2587 hi->rel.addend += (vallo + 0x8000) & 0xffff;
2588
30ac9238
RS
2589 ret = _bfd_mips_elf_generic_reloc (abfd, &hi->rel, symbol, hi->data,
2590 hi->input_section, output_bfd,
2591 error_message);
2592 if (ret != bfd_reloc_ok)
2593 return ret;
2594
2595 mips_hi16_list = hi->next;
2596 free (hi);
2597 }
2598
2599 return _bfd_mips_elf_generic_reloc (abfd, reloc_entry, symbol, data,
2600 input_section, output_bfd,
2601 error_message);
2602}
2603
2604/* A generic howto special_function. This calculates and installs the
2605 relocation itself, thus avoiding the oft-discussed problems in
2606 bfd_perform_relocation and bfd_install_relocation. */
2607
2608bfd_reloc_status_type
2609_bfd_mips_elf_generic_reloc (bfd *abfd ATTRIBUTE_UNUSED, arelent *reloc_entry,
2610 asymbol *symbol, void *data ATTRIBUTE_UNUSED,
2611 asection *input_section, bfd *output_bfd,
2612 char **error_message ATTRIBUTE_UNUSED)
2613{
2614 bfd_signed_vma val;
2615 bfd_reloc_status_type status;
2616 bfd_boolean relocatable;
2617
2618 relocatable = (output_bfd != NULL);
2619
07515404 2620 if (reloc_entry->address > bfd_get_section_limit (abfd, input_section))
30ac9238
RS
2621 return bfd_reloc_outofrange;
2622
2623 /* Build up the field adjustment in VAL. */
2624 val = 0;
2625 if (!relocatable || (symbol->flags & BSF_SECTION_SYM) != 0)
2626 {
2627 /* Either we're calculating the final field value or we have a
2628 relocation against a section symbol. Add in the section's
2629 offset or address. */
2630 val += symbol->section->output_section->vma;
2631 val += symbol->section->output_offset;
2632 }
2633
2634 if (!relocatable)
2635 {
2636 /* We're calculating the final field value. Add in the symbol's value
2637 and, if pc-relative, subtract the address of the field itself. */
2638 val += symbol->value;
2639 if (reloc_entry->howto->pc_relative)
2640 {
2641 val -= input_section->output_section->vma;
2642 val -= input_section->output_offset;
2643 val -= reloc_entry->address;
2644 }
2645 }
2646
2647 /* VAL is now the final adjustment. If we're keeping this relocation
2648 in the output file, and if the relocation uses a separate addend,
2649 we just need to add VAL to that addend. Otherwise we need to add
2650 VAL to the relocation field itself. */
2651 if (relocatable && !reloc_entry->howto->partial_inplace)
2652 reloc_entry->addend += val;
2653 else
2654 {
d6f16593
MR
2655 bfd_byte *location = (bfd_byte *) data + reloc_entry->address;
2656
30ac9238
RS
2657 /* Add in the separate addend, if any. */
2658 val += reloc_entry->addend;
2659
2660 /* Add VAL to the relocation field. */
df58fc94
RS
2661 _bfd_mips_elf_reloc_unshuffle (abfd, reloc_entry->howto->type, FALSE,
2662 location);
30ac9238 2663 status = _bfd_relocate_contents (reloc_entry->howto, abfd, val,
d6f16593 2664 location);
df58fc94
RS
2665 _bfd_mips_elf_reloc_shuffle (abfd, reloc_entry->howto->type, FALSE,
2666 location);
d6f16593 2667
30ac9238
RS
2668 if (status != bfd_reloc_ok)
2669 return status;
2670 }
2671
2672 if (relocatable)
2673 reloc_entry->address += input_section->output_offset;
b49e97c9
TS
2674
2675 return bfd_reloc_ok;
2676}
2677\f
2678/* Swap an entry in a .gptab section. Note that these routines rely
2679 on the equivalence of the two elements of the union. */
2680
2681static void
9719ad41
RS
2682bfd_mips_elf32_swap_gptab_in (bfd *abfd, const Elf32_External_gptab *ex,
2683 Elf32_gptab *in)
b49e97c9
TS
2684{
2685 in->gt_entry.gt_g_value = H_GET_32 (abfd, ex->gt_entry.gt_g_value);
2686 in->gt_entry.gt_bytes = H_GET_32 (abfd, ex->gt_entry.gt_bytes);
2687}
2688
2689static void
9719ad41
RS
2690bfd_mips_elf32_swap_gptab_out (bfd *abfd, const Elf32_gptab *in,
2691 Elf32_External_gptab *ex)
b49e97c9
TS
2692{
2693 H_PUT_32 (abfd, in->gt_entry.gt_g_value, ex->gt_entry.gt_g_value);
2694 H_PUT_32 (abfd, in->gt_entry.gt_bytes, ex->gt_entry.gt_bytes);
2695}
2696
2697static void
9719ad41
RS
2698bfd_elf32_swap_compact_rel_out (bfd *abfd, const Elf32_compact_rel *in,
2699 Elf32_External_compact_rel *ex)
b49e97c9
TS
2700{
2701 H_PUT_32 (abfd, in->id1, ex->id1);
2702 H_PUT_32 (abfd, in->num, ex->num);
2703 H_PUT_32 (abfd, in->id2, ex->id2);
2704 H_PUT_32 (abfd, in->offset, ex->offset);
2705 H_PUT_32 (abfd, in->reserved0, ex->reserved0);
2706 H_PUT_32 (abfd, in->reserved1, ex->reserved1);
2707}
2708
2709static void
9719ad41
RS
2710bfd_elf32_swap_crinfo_out (bfd *abfd, const Elf32_crinfo *in,
2711 Elf32_External_crinfo *ex)
b49e97c9
TS
2712{
2713 unsigned long l;
2714
2715 l = (((in->ctype & CRINFO_CTYPE) << CRINFO_CTYPE_SH)
2716 | ((in->rtype & CRINFO_RTYPE) << CRINFO_RTYPE_SH)
2717 | ((in->dist2to & CRINFO_DIST2TO) << CRINFO_DIST2TO_SH)
2718 | ((in->relvaddr & CRINFO_RELVADDR) << CRINFO_RELVADDR_SH));
2719 H_PUT_32 (abfd, l, ex->info);
2720 H_PUT_32 (abfd, in->konst, ex->konst);
2721 H_PUT_32 (abfd, in->vaddr, ex->vaddr);
2722}
b49e97c9
TS
2723\f
2724/* A .reginfo section holds a single Elf32_RegInfo structure. These
2725 routines swap this structure in and out. They are used outside of
2726 BFD, so they are globally visible. */
2727
2728void
9719ad41
RS
2729bfd_mips_elf32_swap_reginfo_in (bfd *abfd, const Elf32_External_RegInfo *ex,
2730 Elf32_RegInfo *in)
b49e97c9
TS
2731{
2732 in->ri_gprmask = H_GET_32 (abfd, ex->ri_gprmask);
2733 in->ri_cprmask[0] = H_GET_32 (abfd, ex->ri_cprmask[0]);
2734 in->ri_cprmask[1] = H_GET_32 (abfd, ex->ri_cprmask[1]);
2735 in->ri_cprmask[2] = H_GET_32 (abfd, ex->ri_cprmask[2]);
2736 in->ri_cprmask[3] = H_GET_32 (abfd, ex->ri_cprmask[3]);
2737 in->ri_gp_value = H_GET_32 (abfd, ex->ri_gp_value);
2738}
2739
2740void
9719ad41
RS
2741bfd_mips_elf32_swap_reginfo_out (bfd *abfd, const Elf32_RegInfo *in,
2742 Elf32_External_RegInfo *ex)
b49e97c9
TS
2743{
2744 H_PUT_32 (abfd, in->ri_gprmask, ex->ri_gprmask);
2745 H_PUT_32 (abfd, in->ri_cprmask[0], ex->ri_cprmask[0]);
2746 H_PUT_32 (abfd, in->ri_cprmask[1], ex->ri_cprmask[1]);
2747 H_PUT_32 (abfd, in->ri_cprmask[2], ex->ri_cprmask[2]);
2748 H_PUT_32 (abfd, in->ri_cprmask[3], ex->ri_cprmask[3]);
2749 H_PUT_32 (abfd, in->ri_gp_value, ex->ri_gp_value);
2750}
2751
2752/* In the 64 bit ABI, the .MIPS.options section holds register
2753 information in an Elf64_Reginfo structure. These routines swap
2754 them in and out. They are globally visible because they are used
2755 outside of BFD. These routines are here so that gas can call them
2756 without worrying about whether the 64 bit ABI has been included. */
2757
2758void
9719ad41
RS
2759bfd_mips_elf64_swap_reginfo_in (bfd *abfd, const Elf64_External_RegInfo *ex,
2760 Elf64_Internal_RegInfo *in)
b49e97c9
TS
2761{
2762 in->ri_gprmask = H_GET_32 (abfd, ex->ri_gprmask);
2763 in->ri_pad = H_GET_32 (abfd, ex->ri_pad);
2764 in->ri_cprmask[0] = H_GET_32 (abfd, ex->ri_cprmask[0]);
2765 in->ri_cprmask[1] = H_GET_32 (abfd, ex->ri_cprmask[1]);
2766 in->ri_cprmask[2] = H_GET_32 (abfd, ex->ri_cprmask[2]);
2767 in->ri_cprmask[3] = H_GET_32 (abfd, ex->ri_cprmask[3]);
2768 in->ri_gp_value = H_GET_64 (abfd, ex->ri_gp_value);
2769}
2770
2771void
9719ad41
RS
2772bfd_mips_elf64_swap_reginfo_out (bfd *abfd, const Elf64_Internal_RegInfo *in,
2773 Elf64_External_RegInfo *ex)
b49e97c9
TS
2774{
2775 H_PUT_32 (abfd, in->ri_gprmask, ex->ri_gprmask);
2776 H_PUT_32 (abfd, in->ri_pad, ex->ri_pad);
2777 H_PUT_32 (abfd, in->ri_cprmask[0], ex->ri_cprmask[0]);
2778 H_PUT_32 (abfd, in->ri_cprmask[1], ex->ri_cprmask[1]);
2779 H_PUT_32 (abfd, in->ri_cprmask[2], ex->ri_cprmask[2]);
2780 H_PUT_32 (abfd, in->ri_cprmask[3], ex->ri_cprmask[3]);
2781 H_PUT_64 (abfd, in->ri_gp_value, ex->ri_gp_value);
2782}
2783
2784/* Swap in an options header. */
2785
2786void
9719ad41
RS
2787bfd_mips_elf_swap_options_in (bfd *abfd, const Elf_External_Options *ex,
2788 Elf_Internal_Options *in)
b49e97c9
TS
2789{
2790 in->kind = H_GET_8 (abfd, ex->kind);
2791 in->size = H_GET_8 (abfd, ex->size);
2792 in->section = H_GET_16 (abfd, ex->section);
2793 in->info = H_GET_32 (abfd, ex->info);
2794}
2795
2796/* Swap out an options header. */
2797
2798void
9719ad41
RS
2799bfd_mips_elf_swap_options_out (bfd *abfd, const Elf_Internal_Options *in,
2800 Elf_External_Options *ex)
b49e97c9
TS
2801{
2802 H_PUT_8 (abfd, in->kind, ex->kind);
2803 H_PUT_8 (abfd, in->size, ex->size);
2804 H_PUT_16 (abfd, in->section, ex->section);
2805 H_PUT_32 (abfd, in->info, ex->info);
2806}
351cdf24
MF
2807
2808/* Swap in an abiflags structure. */
2809
2810void
2811bfd_mips_elf_swap_abiflags_v0_in (bfd *abfd,
2812 const Elf_External_ABIFlags_v0 *ex,
2813 Elf_Internal_ABIFlags_v0 *in)
2814{
2815 in->version = H_GET_16 (abfd, ex->version);
2816 in->isa_level = H_GET_8 (abfd, ex->isa_level);
2817 in->isa_rev = H_GET_8 (abfd, ex->isa_rev);
2818 in->gpr_size = H_GET_8 (abfd, ex->gpr_size);
2819 in->cpr1_size = H_GET_8 (abfd, ex->cpr1_size);
2820 in->cpr2_size = H_GET_8 (abfd, ex->cpr2_size);
2821 in->fp_abi = H_GET_8 (abfd, ex->fp_abi);
2822 in->isa_ext = H_GET_32 (abfd, ex->isa_ext);
2823 in->ases = H_GET_32 (abfd, ex->ases);
2824 in->flags1 = H_GET_32 (abfd, ex->flags1);
2825 in->flags2 = H_GET_32 (abfd, ex->flags2);
2826}
2827
2828/* Swap out an abiflags structure. */
2829
2830void
2831bfd_mips_elf_swap_abiflags_v0_out (bfd *abfd,
2832 const Elf_Internal_ABIFlags_v0 *in,
2833 Elf_External_ABIFlags_v0 *ex)
2834{
2835 H_PUT_16 (abfd, in->version, ex->version);
2836 H_PUT_8 (abfd, in->isa_level, ex->isa_level);
2837 H_PUT_8 (abfd, in->isa_rev, ex->isa_rev);
2838 H_PUT_8 (abfd, in->gpr_size, ex->gpr_size);
2839 H_PUT_8 (abfd, in->cpr1_size, ex->cpr1_size);
2840 H_PUT_8 (abfd, in->cpr2_size, ex->cpr2_size);
2841 H_PUT_8 (abfd, in->fp_abi, ex->fp_abi);
2842 H_PUT_32 (abfd, in->isa_ext, ex->isa_ext);
2843 H_PUT_32 (abfd, in->ases, ex->ases);
2844 H_PUT_32 (abfd, in->flags1, ex->flags1);
2845 H_PUT_32 (abfd, in->flags2, ex->flags2);
2846}
b49e97c9
TS
2847\f
2848/* This function is called via qsort() to sort the dynamic relocation
2849 entries by increasing r_symndx value. */
2850
2851static int
9719ad41 2852sort_dynamic_relocs (const void *arg1, const void *arg2)
b49e97c9 2853{
947216bf
AM
2854 Elf_Internal_Rela int_reloc1;
2855 Elf_Internal_Rela int_reloc2;
6870500c 2856 int diff;
b49e97c9 2857
947216bf
AM
2858 bfd_elf32_swap_reloc_in (reldyn_sorting_bfd, arg1, &int_reloc1);
2859 bfd_elf32_swap_reloc_in (reldyn_sorting_bfd, arg2, &int_reloc2);
b49e97c9 2860
6870500c
RS
2861 diff = ELF32_R_SYM (int_reloc1.r_info) - ELF32_R_SYM (int_reloc2.r_info);
2862 if (diff != 0)
2863 return diff;
2864
2865 if (int_reloc1.r_offset < int_reloc2.r_offset)
2866 return -1;
2867 if (int_reloc1.r_offset > int_reloc2.r_offset)
2868 return 1;
2869 return 0;
b49e97c9
TS
2870}
2871
f4416af6
AO
2872/* Like sort_dynamic_relocs, but used for elf64 relocations. */
2873
2874static int
7e3102a7
AM
2875sort_dynamic_relocs_64 (const void *arg1 ATTRIBUTE_UNUSED,
2876 const void *arg2 ATTRIBUTE_UNUSED)
f4416af6 2877{
7e3102a7 2878#ifdef BFD64
f4416af6
AO
2879 Elf_Internal_Rela int_reloc1[3];
2880 Elf_Internal_Rela int_reloc2[3];
2881
2882 (*get_elf_backend_data (reldyn_sorting_bfd)->s->swap_reloc_in)
2883 (reldyn_sorting_bfd, arg1, int_reloc1);
2884 (*get_elf_backend_data (reldyn_sorting_bfd)->s->swap_reloc_in)
2885 (reldyn_sorting_bfd, arg2, int_reloc2);
2886
6870500c
RS
2887 if (ELF64_R_SYM (int_reloc1[0].r_info) < ELF64_R_SYM (int_reloc2[0].r_info))
2888 return -1;
2889 if (ELF64_R_SYM (int_reloc1[0].r_info) > ELF64_R_SYM (int_reloc2[0].r_info))
2890 return 1;
2891
2892 if (int_reloc1[0].r_offset < int_reloc2[0].r_offset)
2893 return -1;
2894 if (int_reloc1[0].r_offset > int_reloc2[0].r_offset)
2895 return 1;
2896 return 0;
7e3102a7
AM
2897#else
2898 abort ();
2899#endif
f4416af6
AO
2900}
2901
2902
b49e97c9
TS
2903/* This routine is used to write out ECOFF debugging external symbol
2904 information. It is called via mips_elf_link_hash_traverse. The
2905 ECOFF external symbol information must match the ELF external
2906 symbol information. Unfortunately, at this point we don't know
2907 whether a symbol is required by reloc information, so the two
2908 tables may wind up being different. We must sort out the external
2909 symbol information before we can set the final size of the .mdebug
2910 section, and we must set the size of the .mdebug section before we
2911 can relocate any sections, and we can't know which symbols are
2912 required by relocation until we relocate the sections.
2913 Fortunately, it is relatively unlikely that any symbol will be
2914 stripped but required by a reloc. In particular, it can not happen
2915 when generating a final executable. */
2916
b34976b6 2917static bfd_boolean
9719ad41 2918mips_elf_output_extsym (struct mips_elf_link_hash_entry *h, void *data)
b49e97c9 2919{
9719ad41 2920 struct extsym_info *einfo = data;
b34976b6 2921 bfd_boolean strip;
b49e97c9
TS
2922 asection *sec, *output_section;
2923
b49e97c9 2924 if (h->root.indx == -2)
b34976b6 2925 strip = FALSE;
f5385ebf 2926 else if ((h->root.def_dynamic
77cfaee6
AM
2927 || h->root.ref_dynamic
2928 || h->root.type == bfd_link_hash_new)
f5385ebf
AM
2929 && !h->root.def_regular
2930 && !h->root.ref_regular)
b34976b6 2931 strip = TRUE;
b49e97c9
TS
2932 else if (einfo->info->strip == strip_all
2933 || (einfo->info->strip == strip_some
2934 && bfd_hash_lookup (einfo->info->keep_hash,
2935 h->root.root.root.string,
b34976b6
AM
2936 FALSE, FALSE) == NULL))
2937 strip = TRUE;
b49e97c9 2938 else
b34976b6 2939 strip = FALSE;
b49e97c9
TS
2940
2941 if (strip)
b34976b6 2942 return TRUE;
b49e97c9
TS
2943
2944 if (h->esym.ifd == -2)
2945 {
2946 h->esym.jmptbl = 0;
2947 h->esym.cobol_main = 0;
2948 h->esym.weakext = 0;
2949 h->esym.reserved = 0;
2950 h->esym.ifd = ifdNil;
2951 h->esym.asym.value = 0;
2952 h->esym.asym.st = stGlobal;
2953
2954 if (h->root.root.type == bfd_link_hash_undefined
2955 || h->root.root.type == bfd_link_hash_undefweak)
2956 {
2957 const char *name;
2958
2959 /* Use undefined class. Also, set class and type for some
07d6d2b8 2960 special symbols. */
b49e97c9
TS
2961 name = h->root.root.root.string;
2962 if (strcmp (name, mips_elf_dynsym_rtproc_names[0]) == 0
2963 || strcmp (name, mips_elf_dynsym_rtproc_names[1]) == 0)
2964 {
2965 h->esym.asym.sc = scData;
2966 h->esym.asym.st = stLabel;
2967 h->esym.asym.value = 0;
2968 }
2969 else if (strcmp (name, mips_elf_dynsym_rtproc_names[2]) == 0)
2970 {
2971 h->esym.asym.sc = scAbs;
2972 h->esym.asym.st = stLabel;
2973 h->esym.asym.value =
2974 mips_elf_hash_table (einfo->info)->procedure_count;
2975 }
b49e97c9
TS
2976 else
2977 h->esym.asym.sc = scUndefined;
2978 }
2979 else if (h->root.root.type != bfd_link_hash_defined
2980 && h->root.root.type != bfd_link_hash_defweak)
2981 h->esym.asym.sc = scAbs;
2982 else
2983 {
2984 const char *name;
2985
2986 sec = h->root.root.u.def.section;
2987 output_section = sec->output_section;
2988
2989 /* When making a shared library and symbol h is the one from
2990 the another shared library, OUTPUT_SECTION may be null. */
2991 if (output_section == NULL)
2992 h->esym.asym.sc = scUndefined;
2993 else
2994 {
2995 name = bfd_section_name (output_section->owner, output_section);
2996
2997 if (strcmp (name, ".text") == 0)
2998 h->esym.asym.sc = scText;
2999 else if (strcmp (name, ".data") == 0)
3000 h->esym.asym.sc = scData;
3001 else if (strcmp (name, ".sdata") == 0)
3002 h->esym.asym.sc = scSData;
3003 else if (strcmp (name, ".rodata") == 0
3004 || strcmp (name, ".rdata") == 0)
3005 h->esym.asym.sc = scRData;
3006 else if (strcmp (name, ".bss") == 0)
3007 h->esym.asym.sc = scBss;
3008 else if (strcmp (name, ".sbss") == 0)
3009 h->esym.asym.sc = scSBss;
3010 else if (strcmp (name, ".init") == 0)
3011 h->esym.asym.sc = scInit;
3012 else if (strcmp (name, ".fini") == 0)
3013 h->esym.asym.sc = scFini;
3014 else
3015 h->esym.asym.sc = scAbs;
3016 }
3017 }
3018
3019 h->esym.asym.reserved = 0;
3020 h->esym.asym.index = indexNil;
3021 }
3022
3023 if (h->root.root.type == bfd_link_hash_common)
3024 h->esym.asym.value = h->root.root.u.c.size;
3025 else if (h->root.root.type == bfd_link_hash_defined
3026 || h->root.root.type == bfd_link_hash_defweak)
3027 {
3028 if (h->esym.asym.sc == scCommon)
3029 h->esym.asym.sc = scBss;
3030 else if (h->esym.asym.sc == scSCommon)
3031 h->esym.asym.sc = scSBss;
3032
3033 sec = h->root.root.u.def.section;
3034 output_section = sec->output_section;
3035 if (output_section != NULL)
3036 h->esym.asym.value = (h->root.root.u.def.value
3037 + sec->output_offset
3038 + output_section->vma);
3039 else
3040 h->esym.asym.value = 0;
3041 }
33bb52fb 3042 else
b49e97c9
TS
3043 {
3044 struct mips_elf_link_hash_entry *hd = h;
b49e97c9
TS
3045
3046 while (hd->root.root.type == bfd_link_hash_indirect)
33bb52fb 3047 hd = (struct mips_elf_link_hash_entry *)h->root.root.u.i.link;
b49e97c9 3048
33bb52fb 3049 if (hd->needs_lazy_stub)
b49e97c9 3050 {
1bbce132
MR
3051 BFD_ASSERT (hd->root.plt.plist != NULL);
3052 BFD_ASSERT (hd->root.plt.plist->stub_offset != MINUS_ONE);
b49e97c9
TS
3053 /* Set type and value for a symbol with a function stub. */
3054 h->esym.asym.st = stProc;
3055 sec = hd->root.root.u.def.section;
3056 if (sec == NULL)
3057 h->esym.asym.value = 0;
3058 else
3059 {
3060 output_section = sec->output_section;
3061 if (output_section != NULL)
1bbce132 3062 h->esym.asym.value = (hd->root.plt.plist->stub_offset
b49e97c9
TS
3063 + sec->output_offset
3064 + output_section->vma);
3065 else
3066 h->esym.asym.value = 0;
3067 }
b49e97c9
TS
3068 }
3069 }
3070
3071 if (! bfd_ecoff_debug_one_external (einfo->abfd, einfo->debug, einfo->swap,
3072 h->root.root.root.string,
3073 &h->esym))
3074 {
b34976b6
AM
3075 einfo->failed = TRUE;
3076 return FALSE;
b49e97c9
TS
3077 }
3078
b34976b6 3079 return TRUE;
b49e97c9
TS
3080}
3081
3082/* A comparison routine used to sort .gptab entries. */
3083
3084static int
9719ad41 3085gptab_compare (const void *p1, const void *p2)
b49e97c9 3086{
9719ad41
RS
3087 const Elf32_gptab *a1 = p1;
3088 const Elf32_gptab *a2 = p2;
b49e97c9
TS
3089
3090 return a1->gt_entry.gt_g_value - a2->gt_entry.gt_g_value;
3091}
3092\f
b15e6682 3093/* Functions to manage the got entry hash table. */
f4416af6
AO
3094
3095/* Use all 64 bits of a bfd_vma for the computation of a 32-bit
3096 hash number. */
3097
3098static INLINE hashval_t
9719ad41 3099mips_elf_hash_bfd_vma (bfd_vma addr)
f4416af6
AO
3100{
3101#ifdef BFD64
3102 return addr + (addr >> 32);
3103#else
3104 return addr;
3105#endif
3106}
3107
f4416af6 3108static hashval_t
d9bf376d 3109mips_elf_got_entry_hash (const void *entry_)
f4416af6
AO
3110{
3111 const struct mips_got_entry *entry = (struct mips_got_entry *)entry_;
3112
e641e783 3113 return (entry->symndx
9ab066b4
RS
3114 + ((entry->tls_type == GOT_TLS_LDM) << 18)
3115 + (entry->tls_type == GOT_TLS_LDM ? 0
e641e783
RS
3116 : !entry->abfd ? mips_elf_hash_bfd_vma (entry->d.address)
3117 : entry->symndx >= 0 ? (entry->abfd->id
3118 + mips_elf_hash_bfd_vma (entry->d.addend))
3119 : entry->d.h->root.root.root.hash));
f4416af6
AO
3120}
3121
3122static int
3dff0dd1 3123mips_elf_got_entry_eq (const void *entry1, const void *entry2)
f4416af6
AO
3124{
3125 const struct mips_got_entry *e1 = (struct mips_got_entry *)entry1;
3126 const struct mips_got_entry *e2 = (struct mips_got_entry *)entry2;
3127
e641e783 3128 return (e1->symndx == e2->symndx
9ab066b4
RS
3129 && e1->tls_type == e2->tls_type
3130 && (e1->tls_type == GOT_TLS_LDM ? TRUE
e641e783
RS
3131 : !e1->abfd ? !e2->abfd && e1->d.address == e2->d.address
3132 : e1->symndx >= 0 ? (e1->abfd == e2->abfd
3133 && e1->d.addend == e2->d.addend)
3134 : e2->abfd && e1->d.h == e2->d.h));
b15e6682 3135}
c224138d 3136
13db6b44
RS
3137static hashval_t
3138mips_got_page_ref_hash (const void *ref_)
3139{
3140 const struct mips_got_page_ref *ref;
3141
3142 ref = (const struct mips_got_page_ref *) ref_;
3143 return ((ref->symndx >= 0
3144 ? (hashval_t) (ref->u.abfd->id + ref->symndx)
3145 : ref->u.h->root.root.root.hash)
3146 + mips_elf_hash_bfd_vma (ref->addend));
3147}
3148
3149static int
3150mips_got_page_ref_eq (const void *ref1_, const void *ref2_)
3151{
3152 const struct mips_got_page_ref *ref1, *ref2;
3153
3154 ref1 = (const struct mips_got_page_ref *) ref1_;
3155 ref2 = (const struct mips_got_page_ref *) ref2_;
3156 return (ref1->symndx == ref2->symndx
3157 && (ref1->symndx < 0
3158 ? ref1->u.h == ref2->u.h
3159 : ref1->u.abfd == ref2->u.abfd)
3160 && ref1->addend == ref2->addend);
3161}
3162
c224138d
RS
3163static hashval_t
3164mips_got_page_entry_hash (const void *entry_)
3165{
3166 const struct mips_got_page_entry *entry;
3167
3168 entry = (const struct mips_got_page_entry *) entry_;
13db6b44 3169 return entry->sec->id;
c224138d
RS
3170}
3171
3172static int
3173mips_got_page_entry_eq (const void *entry1_, const void *entry2_)
3174{
3175 const struct mips_got_page_entry *entry1, *entry2;
3176
3177 entry1 = (const struct mips_got_page_entry *) entry1_;
3178 entry2 = (const struct mips_got_page_entry *) entry2_;
13db6b44 3179 return entry1->sec == entry2->sec;
c224138d 3180}
b15e6682 3181\f
3dff0dd1 3182/* Create and return a new mips_got_info structure. */
5334aa52
RS
3183
3184static struct mips_got_info *
3dff0dd1 3185mips_elf_create_got_info (bfd *abfd)
5334aa52
RS
3186{
3187 struct mips_got_info *g;
3188
3189 g = bfd_zalloc (abfd, sizeof (struct mips_got_info));
3190 if (g == NULL)
3191 return NULL;
3192
3dff0dd1
RS
3193 g->got_entries = htab_try_create (1, mips_elf_got_entry_hash,
3194 mips_elf_got_entry_eq, NULL);
5334aa52
RS
3195 if (g->got_entries == NULL)
3196 return NULL;
3197
13db6b44
RS
3198 g->got_page_refs = htab_try_create (1, mips_got_page_ref_hash,
3199 mips_got_page_ref_eq, NULL);
3200 if (g->got_page_refs == NULL)
5334aa52
RS
3201 return NULL;
3202
3203 return g;
3204}
3205
ee227692
RS
3206/* Return the GOT info for input bfd ABFD, trying to create a new one if
3207 CREATE_P and if ABFD doesn't already have a GOT. */
3208
3209static struct mips_got_info *
3210mips_elf_bfd_got (bfd *abfd, bfd_boolean create_p)
3211{
3212 struct mips_elf_obj_tdata *tdata;
3213
3214 if (!is_mips_elf (abfd))
3215 return NULL;
3216
3217 tdata = mips_elf_tdata (abfd);
3218 if (!tdata->got && create_p)
3dff0dd1 3219 tdata->got = mips_elf_create_got_info (abfd);
ee227692
RS
3220 return tdata->got;
3221}
3222
d7206569
RS
3223/* Record that ABFD should use output GOT G. */
3224
3225static void
3226mips_elf_replace_bfd_got (bfd *abfd, struct mips_got_info *g)
3227{
3228 struct mips_elf_obj_tdata *tdata;
3229
3230 BFD_ASSERT (is_mips_elf (abfd));
3231 tdata = mips_elf_tdata (abfd);
3232 if (tdata->got)
3233 {
3234 /* The GOT structure itself and the hash table entries are
3235 allocated to a bfd, but the hash tables aren't. */
3236 htab_delete (tdata->got->got_entries);
13db6b44
RS
3237 htab_delete (tdata->got->got_page_refs);
3238 if (tdata->got->got_page_entries)
3239 htab_delete (tdata->got->got_page_entries);
d7206569
RS
3240 }
3241 tdata->got = g;
3242}
3243
0a44bf69
RS
3244/* Return the dynamic relocation section. If it doesn't exist, try to
3245 create a new it if CREATE_P, otherwise return NULL. Also return NULL
3246 if creation fails. */
f4416af6
AO
3247
3248static asection *
0a44bf69 3249mips_elf_rel_dyn_section (struct bfd_link_info *info, bfd_boolean create_p)
f4416af6 3250{
0a44bf69 3251 const char *dname;
f4416af6 3252 asection *sreloc;
0a44bf69 3253 bfd *dynobj;
f4416af6 3254
0a44bf69
RS
3255 dname = MIPS_ELF_REL_DYN_NAME (info);
3256 dynobj = elf_hash_table (info)->dynobj;
3d4d4302 3257 sreloc = bfd_get_linker_section (dynobj, dname);
f4416af6
AO
3258 if (sreloc == NULL && create_p)
3259 {
3d4d4302
AM
3260 sreloc = bfd_make_section_anyway_with_flags (dynobj, dname,
3261 (SEC_ALLOC
3262 | SEC_LOAD
3263 | SEC_HAS_CONTENTS
3264 | SEC_IN_MEMORY
3265 | SEC_LINKER_CREATED
3266 | SEC_READONLY));
f4416af6 3267 if (sreloc == NULL
f4416af6 3268 || ! bfd_set_section_alignment (dynobj, sreloc,
d80dcc6a 3269 MIPS_ELF_LOG_FILE_ALIGN (dynobj)))
f4416af6
AO
3270 return NULL;
3271 }
3272 return sreloc;
3273}
3274
e641e783
RS
3275/* Return the GOT_TLS_* type required by relocation type R_TYPE. */
3276
3277static int
3278mips_elf_reloc_tls_type (unsigned int r_type)
3279{
3280 if (tls_gd_reloc_p (r_type))
3281 return GOT_TLS_GD;
3282
3283 if (tls_ldm_reloc_p (r_type))
3284 return GOT_TLS_LDM;
3285
3286 if (tls_gottprel_reloc_p (r_type))
3287 return GOT_TLS_IE;
3288
9ab066b4 3289 return GOT_TLS_NONE;
e641e783
RS
3290}
3291
3292/* Return the number of GOT slots needed for GOT TLS type TYPE. */
3293
3294static int
3295mips_tls_got_entries (unsigned int type)
3296{
3297 switch (type)
3298 {
3299 case GOT_TLS_GD:
3300 case GOT_TLS_LDM:
3301 return 2;
3302
3303 case GOT_TLS_IE:
3304 return 1;
3305
9ab066b4 3306 case GOT_TLS_NONE:
e641e783
RS
3307 return 0;
3308 }
3309 abort ();
3310}
3311
0f20cc35
DJ
3312/* Count the number of relocations needed for a TLS GOT entry, with
3313 access types from TLS_TYPE, and symbol H (or a local symbol if H
3314 is NULL). */
3315
3316static int
3317mips_tls_got_relocs (struct bfd_link_info *info, unsigned char tls_type,
3318 struct elf_link_hash_entry *h)
3319{
3320 int indx = 0;
0f20cc35
DJ
3321 bfd_boolean need_relocs = FALSE;
3322 bfd_boolean dyn = elf_hash_table (info)->dynamic_sections_created;
3323
1cb83cac
MR
3324 if (h != NULL
3325 && h->dynindx != -1
3326 && WILL_CALL_FINISH_DYNAMIC_SYMBOL (dyn, bfd_link_pic (info), h)
3327 && (bfd_link_dll (info) || !SYMBOL_REFERENCES_LOCAL (info, h)))
0f20cc35
DJ
3328 indx = h->dynindx;
3329
9143e72c 3330 if ((bfd_link_dll (info) || indx != 0)
0f20cc35
DJ
3331 && (h == NULL
3332 || ELF_ST_VISIBILITY (h->other) == STV_DEFAULT
3333 || h->root.type != bfd_link_hash_undefweak))
3334 need_relocs = TRUE;
3335
3336 if (!need_relocs)
e641e783 3337 return 0;
0f20cc35 3338
9ab066b4 3339 switch (tls_type)
0f20cc35 3340 {
e641e783
RS
3341 case GOT_TLS_GD:
3342 return indx != 0 ? 2 : 1;
0f20cc35 3343
e641e783
RS
3344 case GOT_TLS_IE:
3345 return 1;
0f20cc35 3346
e641e783 3347 case GOT_TLS_LDM:
9143e72c 3348 return bfd_link_dll (info) ? 1 : 0;
0f20cc35 3349
e641e783
RS
3350 default:
3351 return 0;
3352 }
0f20cc35
DJ
3353}
3354
ab361d49
RS
3355/* Add the number of GOT entries and TLS relocations required by ENTRY
3356 to G. */
0f20cc35 3357
ab361d49
RS
3358static void
3359mips_elf_count_got_entry (struct bfd_link_info *info,
3360 struct mips_got_info *g,
3361 struct mips_got_entry *entry)
0f20cc35 3362{
9ab066b4 3363 if (entry->tls_type)
ab361d49 3364 {
9ab066b4
RS
3365 g->tls_gotno += mips_tls_got_entries (entry->tls_type);
3366 g->relocs += mips_tls_got_relocs (info, entry->tls_type,
ab361d49
RS
3367 entry->symndx < 0
3368 ? &entry->d.h->root : NULL);
3369 }
3370 else if (entry->symndx >= 0 || entry->d.h->global_got_area == GGA_NONE)
3371 g->local_gotno += 1;
3372 else
3373 g->global_gotno += 1;
0f20cc35
DJ
3374}
3375
0f20cc35
DJ
3376/* Output a simple dynamic relocation into SRELOC. */
3377
3378static void
3379mips_elf_output_dynamic_relocation (bfd *output_bfd,
3380 asection *sreloc,
861fb55a 3381 unsigned long reloc_index,
0f20cc35
DJ
3382 unsigned long indx,
3383 int r_type,
3384 bfd_vma offset)
3385{
3386 Elf_Internal_Rela rel[3];
3387
3388 memset (rel, 0, sizeof (rel));
3389
3390 rel[0].r_info = ELF_R_INFO (output_bfd, indx, r_type);
3391 rel[0].r_offset = rel[1].r_offset = rel[2].r_offset = offset;
3392
3393 if (ABI_64_P (output_bfd))
3394 {
3395 (*get_elf_backend_data (output_bfd)->s->swap_reloc_out)
3396 (output_bfd, &rel[0],
3397 (sreloc->contents
861fb55a 3398 + reloc_index * sizeof (Elf64_Mips_External_Rel)));
0f20cc35
DJ
3399 }
3400 else
3401 bfd_elf32_swap_reloc_out
3402 (output_bfd, &rel[0],
3403 (sreloc->contents
861fb55a 3404 + reloc_index * sizeof (Elf32_External_Rel)));
0f20cc35
DJ
3405}
3406
3407/* Initialize a set of TLS GOT entries for one symbol. */
3408
3409static void
9ab066b4
RS
3410mips_elf_initialize_tls_slots (bfd *abfd, struct bfd_link_info *info,
3411 struct mips_got_entry *entry,
0f20cc35
DJ
3412 struct mips_elf_link_hash_entry *h,
3413 bfd_vma value)
3414{
1cb83cac 3415 bfd_boolean dyn = elf_hash_table (info)->dynamic_sections_created;
23cc69b6 3416 struct mips_elf_link_hash_table *htab;
0f20cc35
DJ
3417 int indx;
3418 asection *sreloc, *sgot;
9ab066b4 3419 bfd_vma got_offset, got_offset2;
0f20cc35
DJ
3420 bfd_boolean need_relocs = FALSE;
3421
23cc69b6 3422 htab = mips_elf_hash_table (info);
4dfe6ac6
NC
3423 if (htab == NULL)
3424 return;
3425
ce558b89 3426 sgot = htab->root.sgot;
0f20cc35
DJ
3427
3428 indx = 0;
1cb83cac
MR
3429 if (h != NULL
3430 && h->root.dynindx != -1
3431 && WILL_CALL_FINISH_DYNAMIC_SYMBOL (dyn, bfd_link_pic (info), &h->root)
3432 && (bfd_link_dll (info) || !SYMBOL_REFERENCES_LOCAL (info, &h->root)))
3433 indx = h->root.dynindx;
0f20cc35 3434
9ab066b4 3435 if (entry->tls_initialized)
0f20cc35
DJ
3436 return;
3437
9143e72c 3438 if ((bfd_link_dll (info) || indx != 0)
0f20cc35
DJ
3439 && (h == NULL
3440 || ELF_ST_VISIBILITY (h->root.other) == STV_DEFAULT
3441 || h->root.type != bfd_link_hash_undefweak))
3442 need_relocs = TRUE;
3443
3444 /* MINUS_ONE means the symbol is not defined in this object. It may not
3445 be defined at all; assume that the value doesn't matter in that
3446 case. Otherwise complain if we would use the value. */
3447 BFD_ASSERT (value != MINUS_ONE || (indx != 0 && need_relocs)
3448 || h->root.root.type == bfd_link_hash_undefweak);
3449
3450 /* Emit necessary relocations. */
0a44bf69 3451 sreloc = mips_elf_rel_dyn_section (info, FALSE);
9ab066b4 3452 got_offset = entry->gotidx;
0f20cc35 3453
9ab066b4 3454 switch (entry->tls_type)
0f20cc35 3455 {
e641e783
RS
3456 case GOT_TLS_GD:
3457 /* General Dynamic. */
3458 got_offset2 = got_offset + MIPS_ELF_GOT_SIZE (abfd);
0f20cc35
DJ
3459
3460 if (need_relocs)
3461 {
3462 mips_elf_output_dynamic_relocation
861fb55a 3463 (abfd, sreloc, sreloc->reloc_count++, indx,
0f20cc35 3464 ABI_64_P (abfd) ? R_MIPS_TLS_DTPMOD64 : R_MIPS_TLS_DTPMOD32,
e641e783 3465 sgot->output_offset + sgot->output_section->vma + got_offset);
0f20cc35
DJ
3466
3467 if (indx)
3468 mips_elf_output_dynamic_relocation
861fb55a 3469 (abfd, sreloc, sreloc->reloc_count++, indx,
0f20cc35 3470 ABI_64_P (abfd) ? R_MIPS_TLS_DTPREL64 : R_MIPS_TLS_DTPREL32,
e641e783 3471 sgot->output_offset + sgot->output_section->vma + got_offset2);
0f20cc35
DJ
3472 else
3473 MIPS_ELF_PUT_WORD (abfd, value - dtprel_base (info),
e641e783 3474 sgot->contents + got_offset2);
0f20cc35
DJ
3475 }
3476 else
3477 {
3478 MIPS_ELF_PUT_WORD (abfd, 1,
e641e783 3479 sgot->contents + got_offset);
0f20cc35 3480 MIPS_ELF_PUT_WORD (abfd, value - dtprel_base (info),
e641e783 3481 sgot->contents + got_offset2);
0f20cc35 3482 }
e641e783 3483 break;
0f20cc35 3484
e641e783
RS
3485 case GOT_TLS_IE:
3486 /* Initial Exec model. */
0f20cc35
DJ
3487 if (need_relocs)
3488 {
3489 if (indx == 0)
3490 MIPS_ELF_PUT_WORD (abfd, value - elf_hash_table (info)->tls_sec->vma,
e641e783 3491 sgot->contents + got_offset);
0f20cc35
DJ
3492 else
3493 MIPS_ELF_PUT_WORD (abfd, 0,
e641e783 3494 sgot->contents + got_offset);
0f20cc35
DJ
3495
3496 mips_elf_output_dynamic_relocation
861fb55a 3497 (abfd, sreloc, sreloc->reloc_count++, indx,
0f20cc35 3498 ABI_64_P (abfd) ? R_MIPS_TLS_TPREL64 : R_MIPS_TLS_TPREL32,
e641e783 3499 sgot->output_offset + sgot->output_section->vma + got_offset);
0f20cc35
DJ
3500 }
3501 else
3502 MIPS_ELF_PUT_WORD (abfd, value - tprel_base (info),
e641e783
RS
3503 sgot->contents + got_offset);
3504 break;
0f20cc35 3505
e641e783 3506 case GOT_TLS_LDM:
0f20cc35
DJ
3507 /* The initial offset is zero, and the LD offsets will include the
3508 bias by DTP_OFFSET. */
3509 MIPS_ELF_PUT_WORD (abfd, 0,
3510 sgot->contents + got_offset
3511 + MIPS_ELF_GOT_SIZE (abfd));
3512
9143e72c 3513 if (!bfd_link_dll (info))
0f20cc35
DJ
3514 MIPS_ELF_PUT_WORD (abfd, 1,
3515 sgot->contents + got_offset);
3516 else
3517 mips_elf_output_dynamic_relocation
861fb55a 3518 (abfd, sreloc, sreloc->reloc_count++, indx,
0f20cc35
DJ
3519 ABI_64_P (abfd) ? R_MIPS_TLS_DTPMOD64 : R_MIPS_TLS_DTPMOD32,
3520 sgot->output_offset + sgot->output_section->vma + got_offset);
e641e783
RS
3521 break;
3522
3523 default:
3524 abort ();
0f20cc35
DJ
3525 }
3526
9ab066b4 3527 entry->tls_initialized = TRUE;
e641e783 3528}
0f20cc35 3529
0a44bf69
RS
3530/* Return the offset from _GLOBAL_OFFSET_TABLE_ of the .got.plt entry
3531 for global symbol H. .got.plt comes before the GOT, so the offset
3532 will be negative. */
3533
3534static bfd_vma
3535mips_elf_gotplt_index (struct bfd_link_info *info,
3536 struct elf_link_hash_entry *h)
3537{
1bbce132 3538 bfd_vma got_address, got_value;
0a44bf69
RS
3539 struct mips_elf_link_hash_table *htab;
3540
3541 htab = mips_elf_hash_table (info);
4dfe6ac6
NC
3542 BFD_ASSERT (htab != NULL);
3543
1bbce132
MR
3544 BFD_ASSERT (h->plt.plist != NULL);
3545 BFD_ASSERT (h->plt.plist->gotplt_index != MINUS_ONE);
0a44bf69
RS
3546
3547 /* Calculate the address of the associated .got.plt entry. */
ce558b89
AM
3548 got_address = (htab->root.sgotplt->output_section->vma
3549 + htab->root.sgotplt->output_offset
1bbce132
MR
3550 + (h->plt.plist->gotplt_index
3551 * MIPS_ELF_GOT_SIZE (info->output_bfd)));
0a44bf69
RS
3552
3553 /* Calculate the value of _GLOBAL_OFFSET_TABLE_. */
3554 got_value = (htab->root.hgot->root.u.def.section->output_section->vma
3555 + htab->root.hgot->root.u.def.section->output_offset
3556 + htab->root.hgot->root.u.def.value);
3557
3558 return got_address - got_value;
3559}
3560
5c18022e 3561/* Return the GOT offset for address VALUE. If there is not yet a GOT
0a44bf69
RS
3562 entry for this value, create one. If R_SYMNDX refers to a TLS symbol,
3563 create a TLS GOT entry instead. Return -1 if no satisfactory GOT
3564 offset can be found. */
b49e97c9
TS
3565
3566static bfd_vma
9719ad41 3567mips_elf_local_got_index (bfd *abfd, bfd *ibfd, struct bfd_link_info *info,
5c18022e 3568 bfd_vma value, unsigned long r_symndx,
0f20cc35 3569 struct mips_elf_link_hash_entry *h, int r_type)
b49e97c9 3570{
a8028dd0 3571 struct mips_elf_link_hash_table *htab;
b15e6682 3572 struct mips_got_entry *entry;
b49e97c9 3573
a8028dd0 3574 htab = mips_elf_hash_table (info);
4dfe6ac6
NC
3575 BFD_ASSERT (htab != NULL);
3576
a8028dd0
RS
3577 entry = mips_elf_create_local_got_entry (abfd, info, ibfd, value,
3578 r_symndx, h, r_type);
0f20cc35 3579 if (!entry)
b15e6682 3580 return MINUS_ONE;
0f20cc35 3581
e641e783 3582 if (entry->tls_type)
9ab066b4
RS
3583 mips_elf_initialize_tls_slots (abfd, info, entry, h, value);
3584 return entry->gotidx;
b49e97c9
TS
3585}
3586
13fbec83 3587/* Return the GOT index of global symbol H in the primary GOT. */
b49e97c9
TS
3588
3589static bfd_vma
13fbec83
RS
3590mips_elf_primary_global_got_index (bfd *obfd, struct bfd_link_info *info,
3591 struct elf_link_hash_entry *h)
3592{
3593 struct mips_elf_link_hash_table *htab;
3594 long global_got_dynindx;
3595 struct mips_got_info *g;
3596 bfd_vma got_index;
3597
3598 htab = mips_elf_hash_table (info);
3599 BFD_ASSERT (htab != NULL);
3600
3601 global_got_dynindx = 0;
3602 if (htab->global_gotsym != NULL)
3603 global_got_dynindx = htab->global_gotsym->dynindx;
3604
3605 /* Once we determine the global GOT entry with the lowest dynamic
3606 symbol table index, we must put all dynamic symbols with greater
3607 indices into the primary GOT. That makes it easy to calculate the
3608 GOT offset. */
3609 BFD_ASSERT (h->dynindx >= global_got_dynindx);
3610 g = mips_elf_bfd_got (obfd, FALSE);
3611 got_index = ((h->dynindx - global_got_dynindx + g->local_gotno)
3612 * MIPS_ELF_GOT_SIZE (obfd));
ce558b89 3613 BFD_ASSERT (got_index < htab->root.sgot->size);
13fbec83
RS
3614
3615 return got_index;
3616}
3617
3618/* Return the GOT index for the global symbol indicated by H, which is
3619 referenced by a relocation of type R_TYPE in IBFD. */
3620
3621static bfd_vma
3622mips_elf_global_got_index (bfd *obfd, struct bfd_link_info *info, bfd *ibfd,
3623 struct elf_link_hash_entry *h, int r_type)
b49e97c9 3624{
a8028dd0 3625 struct mips_elf_link_hash_table *htab;
6c42ddb9
RS
3626 struct mips_got_info *g;
3627 struct mips_got_entry lookup, *entry;
3628 bfd_vma gotidx;
b49e97c9 3629
a8028dd0 3630 htab = mips_elf_hash_table (info);
4dfe6ac6
NC
3631 BFD_ASSERT (htab != NULL);
3632
6c42ddb9
RS
3633 g = mips_elf_bfd_got (ibfd, FALSE);
3634 BFD_ASSERT (g);
f4416af6 3635
6c42ddb9
RS
3636 lookup.tls_type = mips_elf_reloc_tls_type (r_type);
3637 if (!lookup.tls_type && g == mips_elf_bfd_got (obfd, FALSE))
3638 return mips_elf_primary_global_got_index (obfd, info, h);
f4416af6 3639
6c42ddb9
RS
3640 lookup.abfd = ibfd;
3641 lookup.symndx = -1;
3642 lookup.d.h = (struct mips_elf_link_hash_entry *) h;
3643 entry = htab_find (g->got_entries, &lookup);
3644 BFD_ASSERT (entry);
0f20cc35 3645
6c42ddb9 3646 gotidx = entry->gotidx;
ce558b89 3647 BFD_ASSERT (gotidx > 0 && gotidx < htab->root.sgot->size);
f4416af6 3648
6c42ddb9 3649 if (lookup.tls_type)
0f20cc35 3650 {
0f20cc35
DJ
3651 bfd_vma value = MINUS_ONE;
3652
3653 if ((h->root.type == bfd_link_hash_defined
3654 || h->root.type == bfd_link_hash_defweak)
3655 && h->root.u.def.section->output_section)
3656 value = (h->root.u.def.value
3657 + h->root.u.def.section->output_offset
3658 + h->root.u.def.section->output_section->vma);
3659
9ab066b4 3660 mips_elf_initialize_tls_slots (obfd, info, entry, lookup.d.h, value);
0f20cc35 3661 }
6c42ddb9 3662 return gotidx;
b49e97c9
TS
3663}
3664
5c18022e
RS
3665/* Find a GOT page entry that points to within 32KB of VALUE. These
3666 entries are supposed to be placed at small offsets in the GOT, i.e.,
3667 within 32KB of GP. Return the index of the GOT entry, or -1 if no
3668 entry could be created. If OFFSETP is nonnull, use it to return the
0a44bf69 3669 offset of the GOT entry from VALUE. */
b49e97c9
TS
3670
3671static bfd_vma
9719ad41 3672mips_elf_got_page (bfd *abfd, bfd *ibfd, struct bfd_link_info *info,
5c18022e 3673 bfd_vma value, bfd_vma *offsetp)
b49e97c9 3674{
91d6fa6a 3675 bfd_vma page, got_index;
b15e6682 3676 struct mips_got_entry *entry;
b49e97c9 3677
0a44bf69 3678 page = (value + 0x8000) & ~(bfd_vma) 0xffff;
a8028dd0
RS
3679 entry = mips_elf_create_local_got_entry (abfd, info, ibfd, page, 0,
3680 NULL, R_MIPS_GOT_PAGE);
b49e97c9 3681
b15e6682
AO
3682 if (!entry)
3683 return MINUS_ONE;
143d77c5 3684
91d6fa6a 3685 got_index = entry->gotidx;
b49e97c9
TS
3686
3687 if (offsetp)
f4416af6 3688 *offsetp = value - entry->d.address;
b49e97c9 3689
91d6fa6a 3690 return got_index;
b49e97c9
TS
3691}
3692
738e5348 3693/* Find a local GOT entry for an R_MIPS*_GOT16 relocation against VALUE.
020d7251
RS
3694 EXTERNAL is true if the relocation was originally against a global
3695 symbol that binds locally. */
b49e97c9
TS
3696
3697static bfd_vma
9719ad41 3698mips_elf_got16_entry (bfd *abfd, bfd *ibfd, struct bfd_link_info *info,
5c18022e 3699 bfd_vma value, bfd_boolean external)
b49e97c9 3700{
b15e6682 3701 struct mips_got_entry *entry;
b49e97c9 3702
0a44bf69
RS
3703 /* GOT16 relocations against local symbols are followed by a LO16
3704 relocation; those against global symbols are not. Thus if the
3705 symbol was originally local, the GOT16 relocation should load the
3706 equivalent of %hi(VALUE), otherwise it should load VALUE itself. */
b49e97c9 3707 if (! external)
0a44bf69 3708 value = mips_elf_high (value) << 16;
b49e97c9 3709
738e5348
RS
3710 /* It doesn't matter whether the original relocation was R_MIPS_GOT16,
3711 R_MIPS16_GOT16, R_MIPS_CALL16, etc. The format of the entry is the
3712 same in all cases. */
a8028dd0
RS
3713 entry = mips_elf_create_local_got_entry (abfd, info, ibfd, value, 0,
3714 NULL, R_MIPS_GOT16);
b15e6682
AO
3715 if (entry)
3716 return entry->gotidx;
3717 else
3718 return MINUS_ONE;
b49e97c9
TS
3719}
3720
3721/* Returns the offset for the entry at the INDEXth position
3722 in the GOT. */
3723
3724static bfd_vma
a8028dd0 3725mips_elf_got_offset_from_index (struct bfd_link_info *info, bfd *output_bfd,
91d6fa6a 3726 bfd *input_bfd, bfd_vma got_index)
b49e97c9 3727{
a8028dd0 3728 struct mips_elf_link_hash_table *htab;
b49e97c9
TS
3729 asection *sgot;
3730 bfd_vma gp;
3731
a8028dd0 3732 htab = mips_elf_hash_table (info);
4dfe6ac6
NC
3733 BFD_ASSERT (htab != NULL);
3734
ce558b89 3735 sgot = htab->root.sgot;
f4416af6 3736 gp = _bfd_get_gp_value (output_bfd)
a8028dd0 3737 + mips_elf_adjust_gp (output_bfd, htab->got_info, input_bfd);
143d77c5 3738
91d6fa6a 3739 return sgot->output_section->vma + sgot->output_offset + got_index - gp;
b49e97c9
TS
3740}
3741
0a44bf69
RS
3742/* Create and return a local GOT entry for VALUE, which was calculated
3743 from a symbol belonging to INPUT_SECTON. Return NULL if it could not
3744 be created. If R_SYMNDX refers to a TLS symbol, create a TLS entry
3745 instead. */
b49e97c9 3746
b15e6682 3747static struct mips_got_entry *
0a44bf69 3748mips_elf_create_local_got_entry (bfd *abfd, struct bfd_link_info *info,
a8028dd0 3749 bfd *ibfd, bfd_vma value,
5c18022e 3750 unsigned long r_symndx,
0f20cc35
DJ
3751 struct mips_elf_link_hash_entry *h,
3752 int r_type)
b49e97c9 3753{
ebc53538
RS
3754 struct mips_got_entry lookup, *entry;
3755 void **loc;
f4416af6 3756 struct mips_got_info *g;
0a44bf69 3757 struct mips_elf_link_hash_table *htab;
6c42ddb9 3758 bfd_vma gotidx;
0a44bf69
RS
3759
3760 htab = mips_elf_hash_table (info);
4dfe6ac6 3761 BFD_ASSERT (htab != NULL);
b15e6682 3762
d7206569 3763 g = mips_elf_bfd_got (ibfd, FALSE);
f4416af6
AO
3764 if (g == NULL)
3765 {
d7206569 3766 g = mips_elf_bfd_got (abfd, FALSE);
f4416af6
AO
3767 BFD_ASSERT (g != NULL);
3768 }
b15e6682 3769
020d7251
RS
3770 /* This function shouldn't be called for symbols that live in the global
3771 area of the GOT. */
3772 BFD_ASSERT (h == NULL || h->global_got_area == GGA_NONE);
0f20cc35 3773
ebc53538
RS
3774 lookup.tls_type = mips_elf_reloc_tls_type (r_type);
3775 if (lookup.tls_type)
3776 {
3777 lookup.abfd = ibfd;
df58fc94 3778 if (tls_ldm_reloc_p (r_type))
0f20cc35 3779 {
ebc53538
RS
3780 lookup.symndx = 0;
3781 lookup.d.addend = 0;
0f20cc35
DJ
3782 }
3783 else if (h == NULL)
3784 {
ebc53538
RS
3785 lookup.symndx = r_symndx;
3786 lookup.d.addend = 0;
0f20cc35
DJ
3787 }
3788 else
ebc53538
RS
3789 {
3790 lookup.symndx = -1;
3791 lookup.d.h = h;
3792 }
0f20cc35 3793
ebc53538
RS
3794 entry = (struct mips_got_entry *) htab_find (g->got_entries, &lookup);
3795 BFD_ASSERT (entry);
0f20cc35 3796
6c42ddb9 3797 gotidx = entry->gotidx;
ce558b89 3798 BFD_ASSERT (gotidx > 0 && gotidx < htab->root.sgot->size);
6c42ddb9 3799
ebc53538 3800 return entry;
0f20cc35
DJ
3801 }
3802
ebc53538
RS
3803 lookup.abfd = NULL;
3804 lookup.symndx = -1;
3805 lookup.d.address = value;
3806 loc = htab_find_slot (g->got_entries, &lookup, INSERT);
3807 if (!loc)
b15e6682 3808 return NULL;
143d77c5 3809
ebc53538
RS
3810 entry = (struct mips_got_entry *) *loc;
3811 if (entry)
3812 return entry;
b15e6682 3813
cb22ccf4 3814 if (g->assigned_low_gotno > g->assigned_high_gotno)
b49e97c9
TS
3815 {
3816 /* We didn't allocate enough space in the GOT. */
4eca0228 3817 _bfd_error_handler
b49e97c9
TS
3818 (_("not enough GOT space for local GOT entries"));
3819 bfd_set_error (bfd_error_bad_value);
b15e6682 3820 return NULL;
b49e97c9
TS
3821 }
3822
ebc53538
RS
3823 entry = (struct mips_got_entry *) bfd_alloc (abfd, sizeof (*entry));
3824 if (!entry)
3825 return NULL;
3826
cb22ccf4
KCY
3827 if (got16_reloc_p (r_type)
3828 || call16_reloc_p (r_type)
3829 || got_page_reloc_p (r_type)
3830 || got_disp_reloc_p (r_type))
3831 lookup.gotidx = MIPS_ELF_GOT_SIZE (abfd) * g->assigned_low_gotno++;
3832 else
3833 lookup.gotidx = MIPS_ELF_GOT_SIZE (abfd) * g->assigned_high_gotno--;
3834
ebc53538
RS
3835 *entry = lookup;
3836 *loc = entry;
3837
ce558b89 3838 MIPS_ELF_PUT_WORD (abfd, value, htab->root.sgot->contents + entry->gotidx);
b15e6682 3839
5c18022e 3840 /* These GOT entries need a dynamic relocation on VxWorks. */
0a44bf69
RS
3841 if (htab->is_vxworks)
3842 {
3843 Elf_Internal_Rela outrel;
5c18022e 3844 asection *s;
91d6fa6a 3845 bfd_byte *rloc;
0a44bf69 3846 bfd_vma got_address;
0a44bf69
RS
3847
3848 s = mips_elf_rel_dyn_section (info, FALSE);
ce558b89
AM
3849 got_address = (htab->root.sgot->output_section->vma
3850 + htab->root.sgot->output_offset
ebc53538 3851 + entry->gotidx);
0a44bf69 3852
91d6fa6a 3853 rloc = s->contents + (s->reloc_count++ * sizeof (Elf32_External_Rela));
0a44bf69 3854 outrel.r_offset = got_address;
5c18022e
RS
3855 outrel.r_info = ELF32_R_INFO (STN_UNDEF, R_MIPS_32);
3856 outrel.r_addend = value;
91d6fa6a 3857 bfd_elf32_swap_reloca_out (abfd, &outrel, rloc);
0a44bf69
RS
3858 }
3859
ebc53538 3860 return entry;
b49e97c9
TS
3861}
3862
d4596a51
RS
3863/* Return the number of dynamic section symbols required by OUTPUT_BFD.
3864 The number might be exact or a worst-case estimate, depending on how
3865 much information is available to elf_backend_omit_section_dynsym at
3866 the current linking stage. */
3867
3868static bfd_size_type
3869count_section_dynsyms (bfd *output_bfd, struct bfd_link_info *info)
3870{
3871 bfd_size_type count;
3872
3873 count = 0;
0e1862bb
L
3874 if (bfd_link_pic (info)
3875 || elf_hash_table (info)->is_relocatable_executable)
d4596a51
RS
3876 {
3877 asection *p;
3878 const struct elf_backend_data *bed;
3879
3880 bed = get_elf_backend_data (output_bfd);
3881 for (p = output_bfd->sections; p ; p = p->next)
3882 if ((p->flags & SEC_EXCLUDE) == 0
3883 && (p->flags & SEC_ALLOC) != 0
7f923b7f 3884 && elf_hash_table (info)->dynamic_relocs
d4596a51
RS
3885 && !(*bed->elf_backend_omit_section_dynsym) (output_bfd, info, p))
3886 ++count;
3887 }
3888 return count;
3889}
3890
b49e97c9 3891/* Sort the dynamic symbol table so that symbols that need GOT entries
d4596a51 3892 appear towards the end. */
b49e97c9 3893
b34976b6 3894static bfd_boolean
d4596a51 3895mips_elf_sort_hash_table (bfd *abfd, struct bfd_link_info *info)
b49e97c9 3896{
a8028dd0 3897 struct mips_elf_link_hash_table *htab;
b49e97c9
TS
3898 struct mips_elf_hash_sort_data hsd;
3899 struct mips_got_info *g;
b49e97c9 3900
a8028dd0 3901 htab = mips_elf_hash_table (info);
4dfe6ac6
NC
3902 BFD_ASSERT (htab != NULL);
3903
0f8c4b60 3904 if (htab->root.dynsymcount == 0)
17a80fa8
MR
3905 return TRUE;
3906
a8028dd0 3907 g = htab->got_info;
d4596a51
RS
3908 if (g == NULL)
3909 return TRUE;
f4416af6 3910
b49e97c9 3911 hsd.low = NULL;
23cc69b6
RS
3912 hsd.max_unref_got_dynindx
3913 = hsd.min_got_dynindx
0f8c4b60 3914 = (htab->root.dynsymcount - g->reloc_only_gotno);
e17b0c35
MR
3915 /* Add 1 to local symbol indices to account for the mandatory NULL entry
3916 at the head of the table; see `_bfd_elf_link_renumber_dynsyms'. */
3917 hsd.max_local_dynindx = count_section_dynsyms (abfd, info) + 1;
3918 hsd.max_non_got_dynindx = htab->root.local_dynsymcount + 1;
f16a9783
MS
3919 hsd.output_bfd = abfd;
3920 if (htab->root.dynobj != NULL
3921 && htab->root.dynamic_sections_created
3922 && info->emit_gnu_hash)
3923 {
3924 asection *s = bfd_get_linker_section (htab->root.dynobj, ".MIPS.xhash");
3925 BFD_ASSERT (s != NULL);
3926 hsd.mipsxhash = s->contents;
3927 BFD_ASSERT (hsd.mipsxhash != NULL);
3928 }
3929 else
3930 hsd.mipsxhash = NULL;
0f8c4b60 3931 mips_elf_link_hash_traverse (htab, mips_elf_sort_hash_table_f, &hsd);
b49e97c9
TS
3932
3933 /* There should have been enough room in the symbol table to
44c410de 3934 accommodate both the GOT and non-GOT symbols. */
e17b0c35 3935 BFD_ASSERT (hsd.max_local_dynindx <= htab->root.local_dynsymcount + 1);
b49e97c9 3936 BFD_ASSERT (hsd.max_non_got_dynindx <= hsd.min_got_dynindx);
55f8b9d2 3937 BFD_ASSERT (hsd.max_unref_got_dynindx == htab->root.dynsymcount);
0f8c4b60 3938 BFD_ASSERT (htab->root.dynsymcount - hsd.min_got_dynindx == g->global_gotno);
b49e97c9
TS
3939
3940 /* Now we know which dynamic symbol has the lowest dynamic symbol
3941 table index in the GOT. */
d222d210 3942 htab->global_gotsym = hsd.low;
b49e97c9 3943
b34976b6 3944 return TRUE;
b49e97c9
TS
3945}
3946
3947/* If H needs a GOT entry, assign it the highest available dynamic
3948 index. Otherwise, assign it the lowest available dynamic
3949 index. */
3950
b34976b6 3951static bfd_boolean
9719ad41 3952mips_elf_sort_hash_table_f (struct mips_elf_link_hash_entry *h, void *data)
b49e97c9 3953{
9719ad41 3954 struct mips_elf_hash_sort_data *hsd = data;
b49e97c9 3955
b49e97c9
TS
3956 /* Symbols without dynamic symbol table entries aren't interesting
3957 at all. */
3958 if (h->root.dynindx == -1)
b34976b6 3959 return TRUE;
b49e97c9 3960
634835ae 3961 switch (h->global_got_area)
f4416af6 3962 {
634835ae 3963 case GGA_NONE:
e17b0c35
MR
3964 if (h->root.forced_local)
3965 h->root.dynindx = hsd->max_local_dynindx++;
3966 else
3967 h->root.dynindx = hsd->max_non_got_dynindx++;
634835ae 3968 break;
0f20cc35 3969
634835ae 3970 case GGA_NORMAL:
b49e97c9
TS
3971 h->root.dynindx = --hsd->min_got_dynindx;
3972 hsd->low = (struct elf_link_hash_entry *) h;
634835ae
RS
3973 break;
3974
3975 case GGA_RELOC_ONLY:
634835ae
RS
3976 if (hsd->max_unref_got_dynindx == hsd->min_got_dynindx)
3977 hsd->low = (struct elf_link_hash_entry *) h;
3978 h->root.dynindx = hsd->max_unref_got_dynindx++;
3979 break;
b49e97c9
TS
3980 }
3981
f16a9783
MS
3982 /* Populate the .MIPS.xhash translation table entry with
3983 the symbol dynindx. */
3984 if (h->mipsxhash_loc != 0 && hsd->mipsxhash != NULL)
3985 bfd_put_32 (hsd->output_bfd, h->root.dynindx,
3986 hsd->mipsxhash + h->mipsxhash_loc);
3987
b34976b6 3988 return TRUE;
b49e97c9
TS
3989}
3990
ee227692
RS
3991/* Record that input bfd ABFD requires a GOT entry like *LOOKUP
3992 (which is owned by the caller and shouldn't be added to the
3993 hash table directly). */
3994
3995static bfd_boolean
3996mips_elf_record_got_entry (struct bfd_link_info *info, bfd *abfd,
3997 struct mips_got_entry *lookup)
3998{
3999 struct mips_elf_link_hash_table *htab;
4000 struct mips_got_entry *entry;
4001 struct mips_got_info *g;
4002 void **loc, **bfd_loc;
4003
4004 /* Make sure there's a slot for this entry in the master GOT. */
4005 htab = mips_elf_hash_table (info);
4006 g = htab->got_info;
4007 loc = htab_find_slot (g->got_entries, lookup, INSERT);
4008 if (!loc)
4009 return FALSE;
4010
4011 /* Populate the entry if it isn't already. */
4012 entry = (struct mips_got_entry *) *loc;
4013 if (!entry)
4014 {
4015 entry = (struct mips_got_entry *) bfd_alloc (abfd, sizeof (*entry));
4016 if (!entry)
4017 return FALSE;
4018
9ab066b4 4019 lookup->tls_initialized = FALSE;
ee227692
RS
4020 lookup->gotidx = -1;
4021 *entry = *lookup;
4022 *loc = entry;
4023 }
4024
4025 /* Reuse the same GOT entry for the BFD's GOT. */
4026 g = mips_elf_bfd_got (abfd, TRUE);
4027 if (!g)
4028 return FALSE;
4029
4030 bfd_loc = htab_find_slot (g->got_entries, lookup, INSERT);
4031 if (!bfd_loc)
4032 return FALSE;
4033
4034 if (!*bfd_loc)
4035 *bfd_loc = entry;
4036 return TRUE;
4037}
4038
e641e783
RS
4039/* ABFD has a GOT relocation of type R_TYPE against H. Reserve a GOT
4040 entry for it. FOR_CALL is true if the caller is only interested in
6ccf4795 4041 using the GOT entry for calls. */
b49e97c9 4042
b34976b6 4043static bfd_boolean
9719ad41
RS
4044mips_elf_record_global_got_symbol (struct elf_link_hash_entry *h,
4045 bfd *abfd, struct bfd_link_info *info,
e641e783 4046 bfd_boolean for_call, int r_type)
b49e97c9 4047{
a8028dd0 4048 struct mips_elf_link_hash_table *htab;
634835ae 4049 struct mips_elf_link_hash_entry *hmips;
ee227692
RS
4050 struct mips_got_entry entry;
4051 unsigned char tls_type;
a8028dd0
RS
4052
4053 htab = mips_elf_hash_table (info);
4dfe6ac6
NC
4054 BFD_ASSERT (htab != NULL);
4055
634835ae 4056 hmips = (struct mips_elf_link_hash_entry *) h;
6ccf4795
RS
4057 if (!for_call)
4058 hmips->got_only_for_calls = FALSE;
f4416af6 4059
b49e97c9
TS
4060 /* A global symbol in the GOT must also be in the dynamic symbol
4061 table. */
7c5fcef7
L
4062 if (h->dynindx == -1)
4063 {
4064 switch (ELF_ST_VISIBILITY (h->other))
4065 {
4066 case STV_INTERNAL:
4067 case STV_HIDDEN:
47275900 4068 _bfd_mips_elf_hide_symbol (info, h, TRUE);
7c5fcef7
L
4069 break;
4070 }
c152c796 4071 if (!bfd_elf_link_record_dynamic_symbol (info, h))
b34976b6 4072 return FALSE;
7c5fcef7 4073 }
b49e97c9 4074
ee227692 4075 tls_type = mips_elf_reloc_tls_type (r_type);
9ab066b4 4076 if (tls_type == GOT_TLS_NONE && hmips->global_got_area > GGA_NORMAL)
ee227692 4077 hmips->global_got_area = GGA_NORMAL;
86324f90 4078
f4416af6
AO
4079 entry.abfd = abfd;
4080 entry.symndx = -1;
4081 entry.d.h = (struct mips_elf_link_hash_entry *) h;
ee227692
RS
4082 entry.tls_type = tls_type;
4083 return mips_elf_record_got_entry (info, abfd, &entry);
b49e97c9 4084}
f4416af6 4085
e641e783
RS
4086/* ABFD has a GOT relocation of type R_TYPE against symbol SYMNDX + ADDEND,
4087 where SYMNDX is a local symbol. Reserve a GOT entry for it. */
f4416af6
AO
4088
4089static bfd_boolean
9719ad41 4090mips_elf_record_local_got_symbol (bfd *abfd, long symndx, bfd_vma addend,
e641e783 4091 struct bfd_link_info *info, int r_type)
f4416af6 4092{
a8028dd0
RS
4093 struct mips_elf_link_hash_table *htab;
4094 struct mips_got_info *g;
ee227692 4095 struct mips_got_entry entry;
f4416af6 4096
a8028dd0 4097 htab = mips_elf_hash_table (info);
4dfe6ac6
NC
4098 BFD_ASSERT (htab != NULL);
4099
a8028dd0
RS
4100 g = htab->got_info;
4101 BFD_ASSERT (g != NULL);
4102
f4416af6
AO
4103 entry.abfd = abfd;
4104 entry.symndx = symndx;
4105 entry.d.addend = addend;
e641e783 4106 entry.tls_type = mips_elf_reloc_tls_type (r_type);
ee227692 4107 return mips_elf_record_got_entry (info, abfd, &entry);
f4416af6 4108}
c224138d 4109
13db6b44
RS
4110/* Record that ABFD has a page relocation against SYMNDX + ADDEND.
4111 H is the symbol's hash table entry, or null if SYMNDX is local
4112 to ABFD. */
c224138d
RS
4113
4114static bfd_boolean
13db6b44
RS
4115mips_elf_record_got_page_ref (struct bfd_link_info *info, bfd *abfd,
4116 long symndx, struct elf_link_hash_entry *h,
4117 bfd_signed_vma addend)
c224138d 4118{
a8028dd0 4119 struct mips_elf_link_hash_table *htab;
ee227692 4120 struct mips_got_info *g1, *g2;
13db6b44 4121 struct mips_got_page_ref lookup, *entry;
ee227692 4122 void **loc, **bfd_loc;
c224138d 4123
a8028dd0 4124 htab = mips_elf_hash_table (info);
4dfe6ac6
NC
4125 BFD_ASSERT (htab != NULL);
4126
ee227692
RS
4127 g1 = htab->got_info;
4128 BFD_ASSERT (g1 != NULL);
a8028dd0 4129
13db6b44
RS
4130 if (h)
4131 {
4132 lookup.symndx = -1;
4133 lookup.u.h = (struct mips_elf_link_hash_entry *) h;
4134 }
4135 else
4136 {
4137 lookup.symndx = symndx;
4138 lookup.u.abfd = abfd;
4139 }
4140 lookup.addend = addend;
4141 loc = htab_find_slot (g1->got_page_refs, &lookup, INSERT);
c224138d
RS
4142 if (loc == NULL)
4143 return FALSE;
4144
13db6b44 4145 entry = (struct mips_got_page_ref *) *loc;
c224138d
RS
4146 if (!entry)
4147 {
4148 entry = bfd_alloc (abfd, sizeof (*entry));
4149 if (!entry)
4150 return FALSE;
4151
13db6b44 4152 *entry = lookup;
c224138d
RS
4153 *loc = entry;
4154 }
4155
ee227692
RS
4156 /* Add the same entry to the BFD's GOT. */
4157 g2 = mips_elf_bfd_got (abfd, TRUE);
4158 if (!g2)
4159 return FALSE;
4160
13db6b44 4161 bfd_loc = htab_find_slot (g2->got_page_refs, &lookup, INSERT);
ee227692
RS
4162 if (!bfd_loc)
4163 return FALSE;
4164
4165 if (!*bfd_loc)
4166 *bfd_loc = entry;
4167
c224138d
RS
4168 return TRUE;
4169}
33bb52fb
RS
4170
4171/* Add room for N relocations to the .rel(a).dyn section in ABFD. */
4172
4173static void
4174mips_elf_allocate_dynamic_relocations (bfd *abfd, struct bfd_link_info *info,
4175 unsigned int n)
4176{
4177 asection *s;
4178 struct mips_elf_link_hash_table *htab;
4179
4180 htab = mips_elf_hash_table (info);
4dfe6ac6
NC
4181 BFD_ASSERT (htab != NULL);
4182
33bb52fb
RS
4183 s = mips_elf_rel_dyn_section (info, FALSE);
4184 BFD_ASSERT (s != NULL);
4185
4186 if (htab->is_vxworks)
4187 s->size += n * MIPS_ELF_RELA_SIZE (abfd);
4188 else
4189 {
4190 if (s->size == 0)
4191 {
4192 /* Make room for a null element. */
4193 s->size += MIPS_ELF_REL_SIZE (abfd);
4194 ++s->reloc_count;
4195 }
4196 s->size += n * MIPS_ELF_REL_SIZE (abfd);
4197 }
4198}
4199\f
476366af
RS
4200/* A htab_traverse callback for GOT entries, with DATA pointing to a
4201 mips_elf_traverse_got_arg structure. Count the number of GOT
4202 entries and TLS relocs. Set DATA->value to true if we need
4203 to resolve indirect or warning symbols and then recreate the GOT. */
33bb52fb
RS
4204
4205static int
4206mips_elf_check_recreate_got (void **entryp, void *data)
4207{
4208 struct mips_got_entry *entry;
476366af 4209 struct mips_elf_traverse_got_arg *arg;
33bb52fb
RS
4210
4211 entry = (struct mips_got_entry *) *entryp;
476366af 4212 arg = (struct mips_elf_traverse_got_arg *) data;
33bb52fb
RS
4213 if (entry->abfd != NULL && entry->symndx == -1)
4214 {
4215 struct mips_elf_link_hash_entry *h;
4216
4217 h = entry->d.h;
4218 if (h->root.root.type == bfd_link_hash_indirect
4219 || h->root.root.type == bfd_link_hash_warning)
4220 {
476366af 4221 arg->value = TRUE;
33bb52fb
RS
4222 return 0;
4223 }
4224 }
476366af 4225 mips_elf_count_got_entry (arg->info, arg->g, entry);
33bb52fb
RS
4226 return 1;
4227}
4228
476366af
RS
4229/* A htab_traverse callback for GOT entries, with DATA pointing to a
4230 mips_elf_traverse_got_arg structure. Add all entries to DATA->g,
4231 converting entries for indirect and warning symbols into entries
4232 for the target symbol. Set DATA->g to null on error. */
33bb52fb
RS
4233
4234static int
4235mips_elf_recreate_got (void **entryp, void *data)
4236{
72e7511a 4237 struct mips_got_entry new_entry, *entry;
476366af 4238 struct mips_elf_traverse_got_arg *arg;
33bb52fb
RS
4239 void **slot;
4240
33bb52fb 4241 entry = (struct mips_got_entry *) *entryp;
476366af 4242 arg = (struct mips_elf_traverse_got_arg *) data;
72e7511a
RS
4243 if (entry->abfd != NULL
4244 && entry->symndx == -1
4245 && (entry->d.h->root.root.type == bfd_link_hash_indirect
4246 || entry->d.h->root.root.type == bfd_link_hash_warning))
33bb52fb
RS
4247 {
4248 struct mips_elf_link_hash_entry *h;
4249
72e7511a
RS
4250 new_entry = *entry;
4251 entry = &new_entry;
33bb52fb 4252 h = entry->d.h;
72e7511a 4253 do
634835ae
RS
4254 {
4255 BFD_ASSERT (h->global_got_area == GGA_NONE);
4256 h = (struct mips_elf_link_hash_entry *) h->root.root.u.i.link;
4257 }
72e7511a
RS
4258 while (h->root.root.type == bfd_link_hash_indirect
4259 || h->root.root.type == bfd_link_hash_warning);
33bb52fb
RS
4260 entry->d.h = h;
4261 }
476366af 4262 slot = htab_find_slot (arg->g->got_entries, entry, INSERT);
33bb52fb
RS
4263 if (slot == NULL)
4264 {
476366af 4265 arg->g = NULL;
33bb52fb
RS
4266 return 0;
4267 }
4268 if (*slot == NULL)
72e7511a
RS
4269 {
4270 if (entry == &new_entry)
4271 {
4272 entry = bfd_alloc (entry->abfd, sizeof (*entry));
4273 if (!entry)
4274 {
476366af 4275 arg->g = NULL;
72e7511a
RS
4276 return 0;
4277 }
4278 *entry = new_entry;
4279 }
4280 *slot = entry;
476366af 4281 mips_elf_count_got_entry (arg->info, arg->g, entry);
72e7511a 4282 }
33bb52fb
RS
4283 return 1;
4284}
4285
13db6b44
RS
4286/* Return the maximum number of GOT page entries required for RANGE. */
4287
4288static bfd_vma
4289mips_elf_pages_for_range (const struct mips_got_page_range *range)
4290{
4291 return (range->max_addend - range->min_addend + 0x1ffff) >> 16;
4292}
4293
4294/* Record that G requires a page entry that can reach SEC + ADDEND. */
4295
4296static bfd_boolean
b75d42bc 4297mips_elf_record_got_page_entry (struct mips_elf_traverse_got_arg *arg,
13db6b44
RS
4298 asection *sec, bfd_signed_vma addend)
4299{
b75d42bc 4300 struct mips_got_info *g = arg->g;
13db6b44
RS
4301 struct mips_got_page_entry lookup, *entry;
4302 struct mips_got_page_range **range_ptr, *range;
4303 bfd_vma old_pages, new_pages;
4304 void **loc;
4305
4306 /* Find the mips_got_page_entry hash table entry for this section. */
4307 lookup.sec = sec;
4308 loc = htab_find_slot (g->got_page_entries, &lookup, INSERT);
4309 if (loc == NULL)
4310 return FALSE;
4311
4312 /* Create a mips_got_page_entry if this is the first time we've
4313 seen the section. */
4314 entry = (struct mips_got_page_entry *) *loc;
4315 if (!entry)
4316 {
b75d42bc 4317 entry = bfd_zalloc (arg->info->output_bfd, sizeof (*entry));
13db6b44
RS
4318 if (!entry)
4319 return FALSE;
4320
4321 entry->sec = sec;
4322 *loc = entry;
4323 }
4324
4325 /* Skip over ranges whose maximum extent cannot share a page entry
4326 with ADDEND. */
4327 range_ptr = &entry->ranges;
4328 while (*range_ptr && addend > (*range_ptr)->max_addend + 0xffff)
4329 range_ptr = &(*range_ptr)->next;
4330
4331 /* If we scanned to the end of the list, or found a range whose
4332 minimum extent cannot share a page entry with ADDEND, create
4333 a new singleton range. */
4334 range = *range_ptr;
4335 if (!range || addend < range->min_addend - 0xffff)
4336 {
b75d42bc 4337 range = bfd_zalloc (arg->info->output_bfd, sizeof (*range));
13db6b44
RS
4338 if (!range)
4339 return FALSE;
4340
4341 range->next = *range_ptr;
4342 range->min_addend = addend;
4343 range->max_addend = addend;
4344
4345 *range_ptr = range;
4346 entry->num_pages++;
4347 g->page_gotno++;
4348 return TRUE;
4349 }
4350
4351 /* Remember how many pages the old range contributed. */
4352 old_pages = mips_elf_pages_for_range (range);
4353
4354 /* Update the ranges. */
4355 if (addend < range->min_addend)
4356 range->min_addend = addend;
4357 else if (addend > range->max_addend)
4358 {
4359 if (range->next && addend >= range->next->min_addend - 0xffff)
4360 {
4361 old_pages += mips_elf_pages_for_range (range->next);
4362 range->max_addend = range->next->max_addend;
4363 range->next = range->next->next;
4364 }
4365 else
4366 range->max_addend = addend;
4367 }
4368
4369 /* Record any change in the total estimate. */
4370 new_pages = mips_elf_pages_for_range (range);
4371 if (old_pages != new_pages)
4372 {
4373 entry->num_pages += new_pages - old_pages;
4374 g->page_gotno += new_pages - old_pages;
4375 }
4376
4377 return TRUE;
4378}
4379
4380/* A htab_traverse callback for which *REFP points to a mips_got_page_ref
4381 and for which DATA points to a mips_elf_traverse_got_arg. Work out
4382 whether the page reference described by *REFP needs a GOT page entry,
4383 and record that entry in DATA->g if so. Set DATA->g to null on failure. */
4384
4385static bfd_boolean
4386mips_elf_resolve_got_page_ref (void **refp, void *data)
4387{
4388 struct mips_got_page_ref *ref;
4389 struct mips_elf_traverse_got_arg *arg;
4390 struct mips_elf_link_hash_table *htab;
4391 asection *sec;
4392 bfd_vma addend;
4393
4394 ref = (struct mips_got_page_ref *) *refp;
4395 arg = (struct mips_elf_traverse_got_arg *) data;
4396 htab = mips_elf_hash_table (arg->info);
4397
4398 if (ref->symndx < 0)
4399 {
4400 struct mips_elf_link_hash_entry *h;
4401
4402 /* Global GOT_PAGEs decay to GOT_DISP and so don't need page entries. */
4403 h = ref->u.h;
4404 if (!SYMBOL_REFERENCES_LOCAL (arg->info, &h->root))
4405 return 1;
4406
4407 /* Ignore undefined symbols; we'll issue an error later if
4408 appropriate. */
4409 if (!((h->root.root.type == bfd_link_hash_defined
4410 || h->root.root.type == bfd_link_hash_defweak)
4411 && h->root.root.u.def.section))
4412 return 1;
4413
4414 sec = h->root.root.u.def.section;
4415 addend = h->root.root.u.def.value + ref->addend;
4416 }
4417 else
4418 {
4419 Elf_Internal_Sym *isym;
4420
4421 /* Read in the symbol. */
4422 isym = bfd_sym_from_r_symndx (&htab->sym_cache, ref->u.abfd,
4423 ref->symndx);
4424 if (isym == NULL)
4425 {
4426 arg->g = NULL;
4427 return 0;
4428 }
4429
4430 /* Get the associated input section. */
4431 sec = bfd_section_from_elf_index (ref->u.abfd, isym->st_shndx);
4432 if (sec == NULL)
4433 {
4434 arg->g = NULL;
4435 return 0;
4436 }
4437
4438 /* If this is a mergable section, work out the section and offset
4439 of the merged data. For section symbols, the addend specifies
4440 of the offset _of_ the first byte in the data, otherwise it
4441 specifies the offset _from_ the first byte. */
4442 if (sec->flags & SEC_MERGE)
4443 {
4444 void *secinfo;
4445
4446 secinfo = elf_section_data (sec)->sec_info;
4447 if (ELF_ST_TYPE (isym->st_info) == STT_SECTION)
4448 addend = _bfd_merged_section_offset (ref->u.abfd, &sec, secinfo,
4449 isym->st_value + ref->addend);
4450 else
4451 addend = _bfd_merged_section_offset (ref->u.abfd, &sec, secinfo,
4452 isym->st_value) + ref->addend;
4453 }
4454 else
4455 addend = isym->st_value + ref->addend;
4456 }
b75d42bc 4457 if (!mips_elf_record_got_page_entry (arg, sec, addend))
13db6b44
RS
4458 {
4459 arg->g = NULL;
4460 return 0;
4461 }
4462 return 1;
4463}
4464
33bb52fb 4465/* If any entries in G->got_entries are for indirect or warning symbols,
13db6b44
RS
4466 replace them with entries for the target symbol. Convert g->got_page_refs
4467 into got_page_entry structures and estimate the number of page entries
4468 that they require. */
33bb52fb
RS
4469
4470static bfd_boolean
476366af
RS
4471mips_elf_resolve_final_got_entries (struct bfd_link_info *info,
4472 struct mips_got_info *g)
33bb52fb 4473{
476366af
RS
4474 struct mips_elf_traverse_got_arg tga;
4475 struct mips_got_info oldg;
4476
4477 oldg = *g;
33bb52fb 4478
476366af
RS
4479 tga.info = info;
4480 tga.g = g;
4481 tga.value = FALSE;
4482 htab_traverse (g->got_entries, mips_elf_check_recreate_got, &tga);
4483 if (tga.value)
33bb52fb 4484 {
476366af
RS
4485 *g = oldg;
4486 g->got_entries = htab_create (htab_size (oldg.got_entries),
4487 mips_elf_got_entry_hash,
4488 mips_elf_got_entry_eq, NULL);
4489 if (!g->got_entries)
33bb52fb
RS
4490 return FALSE;
4491
476366af
RS
4492 htab_traverse (oldg.got_entries, mips_elf_recreate_got, &tga);
4493 if (!tga.g)
4494 return FALSE;
4495
4496 htab_delete (oldg.got_entries);
33bb52fb 4497 }
13db6b44
RS
4498
4499 g->got_page_entries = htab_try_create (1, mips_got_page_entry_hash,
4500 mips_got_page_entry_eq, NULL);
4501 if (g->got_page_entries == NULL)
4502 return FALSE;
4503
4504 tga.info = info;
4505 tga.g = g;
4506 htab_traverse (g->got_page_refs, mips_elf_resolve_got_page_ref, &tga);
4507
33bb52fb
RS
4508 return TRUE;
4509}
4510
c5d6fa44
RS
4511/* Return true if a GOT entry for H should live in the local rather than
4512 global GOT area. */
4513
4514static bfd_boolean
4515mips_use_local_got_p (struct bfd_link_info *info,
4516 struct mips_elf_link_hash_entry *h)
4517{
4518 /* Symbols that aren't in the dynamic symbol table must live in the
4519 local GOT. This includes symbols that are completely undefined
4520 and which therefore don't bind locally. We'll report undefined
4521 symbols later if appropriate. */
4522 if (h->root.dynindx == -1)
4523 return TRUE;
4524
47275900
MR
4525 /* Absolute symbols, if ever they need a GOT entry, cannot ever go
4526 to the local GOT, as they would be implicitly relocated by the
4527 base address by the dynamic loader. */
4528 if (bfd_is_abs_symbol (&h->root.root))
4529 return FALSE;
4530
c5d6fa44
RS
4531 /* Symbols that bind locally can (and in the case of forced-local
4532 symbols, must) live in the local GOT. */
4533 if (h->got_only_for_calls
4534 ? SYMBOL_CALLS_LOCAL (info, &h->root)
4535 : SYMBOL_REFERENCES_LOCAL (info, &h->root))
4536 return TRUE;
4537
4538 /* If this is an executable that must provide a definition of the symbol,
4539 either though PLTs or copy relocations, then that address should go in
4540 the local rather than global GOT. */
0e1862bb 4541 if (bfd_link_executable (info) && h->has_static_relocs)
c5d6fa44
RS
4542 return TRUE;
4543
4544 return FALSE;
4545}
4546
6c42ddb9
RS
4547/* A mips_elf_link_hash_traverse callback for which DATA points to the
4548 link_info structure. Decide whether the hash entry needs an entry in
4549 the global part of the primary GOT, setting global_got_area accordingly.
4550 Count the number of global symbols that are in the primary GOT only
4551 because they have relocations against them (reloc_only_gotno). */
33bb52fb
RS
4552
4553static int
d4596a51 4554mips_elf_count_got_symbols (struct mips_elf_link_hash_entry *h, void *data)
33bb52fb 4555{
020d7251 4556 struct bfd_link_info *info;
6ccf4795 4557 struct mips_elf_link_hash_table *htab;
33bb52fb
RS
4558 struct mips_got_info *g;
4559
020d7251 4560 info = (struct bfd_link_info *) data;
6ccf4795
RS
4561 htab = mips_elf_hash_table (info);
4562 g = htab->got_info;
d4596a51 4563 if (h->global_got_area != GGA_NONE)
33bb52fb 4564 {
020d7251 4565 /* Make a final decision about whether the symbol belongs in the
c5d6fa44
RS
4566 local or global GOT. */
4567 if (mips_use_local_got_p (info, h))
6c42ddb9
RS
4568 /* The symbol belongs in the local GOT. We no longer need this
4569 entry if it was only used for relocations; those relocations
4570 will be against the null or section symbol instead of H. */
4571 h->global_got_area = GGA_NONE;
6ccf4795
RS
4572 else if (htab->is_vxworks
4573 && h->got_only_for_calls
1bbce132 4574 && h->root.plt.plist->mips_offset != MINUS_ONE)
6ccf4795
RS
4575 /* On VxWorks, calls can refer directly to the .got.plt entry;
4576 they don't need entries in the regular GOT. .got.plt entries
4577 will be allocated by _bfd_mips_elf_adjust_dynamic_symbol. */
4578 h->global_got_area = GGA_NONE;
6c42ddb9 4579 else if (h->global_got_area == GGA_RELOC_ONLY)
23cc69b6 4580 {
6c42ddb9 4581 g->reloc_only_gotno++;
23cc69b6 4582 g->global_gotno++;
23cc69b6 4583 }
33bb52fb
RS
4584 }
4585 return 1;
4586}
f4416af6 4587\f
d7206569
RS
4588/* A htab_traverse callback for GOT entries. Add each one to the GOT
4589 given in mips_elf_traverse_got_arg DATA. Clear DATA->G on error. */
f4416af6
AO
4590
4591static int
d7206569 4592mips_elf_add_got_entry (void **entryp, void *data)
f4416af6 4593{
d7206569
RS
4594 struct mips_got_entry *entry;
4595 struct mips_elf_traverse_got_arg *arg;
4596 void **slot;
f4416af6 4597
d7206569
RS
4598 entry = (struct mips_got_entry *) *entryp;
4599 arg = (struct mips_elf_traverse_got_arg *) data;
4600 slot = htab_find_slot (arg->g->got_entries, entry, INSERT);
4601 if (!slot)
f4416af6 4602 {
d7206569
RS
4603 arg->g = NULL;
4604 return 0;
f4416af6 4605 }
d7206569 4606 if (!*slot)
c224138d 4607 {
d7206569
RS
4608 *slot = entry;
4609 mips_elf_count_got_entry (arg->info, arg->g, entry);
c224138d 4610 }
f4416af6
AO
4611 return 1;
4612}
4613
d7206569
RS
4614/* A htab_traverse callback for GOT page entries. Add each one to the GOT
4615 given in mips_elf_traverse_got_arg DATA. Clear DATA->G on error. */
c224138d
RS
4616
4617static int
d7206569 4618mips_elf_add_got_page_entry (void **entryp, void *data)
c224138d 4619{
d7206569
RS
4620 struct mips_got_page_entry *entry;
4621 struct mips_elf_traverse_got_arg *arg;
4622 void **slot;
c224138d 4623
d7206569
RS
4624 entry = (struct mips_got_page_entry *) *entryp;
4625 arg = (struct mips_elf_traverse_got_arg *) data;
4626 slot = htab_find_slot (arg->g->got_page_entries, entry, INSERT);
4627 if (!slot)
c224138d 4628 {
d7206569 4629 arg->g = NULL;
c224138d
RS
4630 return 0;
4631 }
d7206569
RS
4632 if (!*slot)
4633 {
4634 *slot = entry;
4635 arg->g->page_gotno += entry->num_pages;
4636 }
c224138d
RS
4637 return 1;
4638}
4639
d7206569
RS
4640/* Consider merging FROM, which is ABFD's GOT, into TO. Return -1 if
4641 this would lead to overflow, 1 if they were merged successfully,
4642 and 0 if a merge failed due to lack of memory. (These values are chosen
4643 so that nonnegative return values can be returned by a htab_traverse
4644 callback.) */
c224138d
RS
4645
4646static int
d7206569 4647mips_elf_merge_got_with (bfd *abfd, struct mips_got_info *from,
c224138d
RS
4648 struct mips_got_info *to,
4649 struct mips_elf_got_per_bfd_arg *arg)
4650{
d7206569 4651 struct mips_elf_traverse_got_arg tga;
c224138d
RS
4652 unsigned int estimate;
4653
4654 /* Work out how many page entries we would need for the combined GOT. */
4655 estimate = arg->max_pages;
4656 if (estimate >= from->page_gotno + to->page_gotno)
4657 estimate = from->page_gotno + to->page_gotno;
4658
e2ece73c 4659 /* And conservatively estimate how many local and TLS entries
c224138d 4660 would be needed. */
e2ece73c
RS
4661 estimate += from->local_gotno + to->local_gotno;
4662 estimate += from->tls_gotno + to->tls_gotno;
4663
17214937
RS
4664 /* If we're merging with the primary got, any TLS relocations will
4665 come after the full set of global entries. Otherwise estimate those
e2ece73c 4666 conservatively as well. */
17214937 4667 if (to == arg->primary && from->tls_gotno + to->tls_gotno)
e2ece73c
RS
4668 estimate += arg->global_count;
4669 else
4670 estimate += from->global_gotno + to->global_gotno;
c224138d
RS
4671
4672 /* Bail out if the combined GOT might be too big. */
4673 if (estimate > arg->max_count)
4674 return -1;
4675
c224138d 4676 /* Transfer the bfd's got information from FROM to TO. */
d7206569
RS
4677 tga.info = arg->info;
4678 tga.g = to;
4679 htab_traverse (from->got_entries, mips_elf_add_got_entry, &tga);
4680 if (!tga.g)
c224138d
RS
4681 return 0;
4682
d7206569
RS
4683 htab_traverse (from->got_page_entries, mips_elf_add_got_page_entry, &tga);
4684 if (!tga.g)
c224138d
RS
4685 return 0;
4686
d7206569 4687 mips_elf_replace_bfd_got (abfd, to);
c224138d
RS
4688 return 1;
4689}
4690
d7206569 4691/* Attempt to merge GOT G, which belongs to ABFD. Try to use as much
f4416af6
AO
4692 as possible of the primary got, since it doesn't require explicit
4693 dynamic relocations, but don't use bfds that would reference global
4694 symbols out of the addressable range. Failing the primary got,
4695 attempt to merge with the current got, or finish the current got
4696 and then make make the new got current. */
4697
d7206569
RS
4698static bfd_boolean
4699mips_elf_merge_got (bfd *abfd, struct mips_got_info *g,
4700 struct mips_elf_got_per_bfd_arg *arg)
f4416af6 4701{
c224138d
RS
4702 unsigned int estimate;
4703 int result;
4704
476366af 4705 if (!mips_elf_resolve_final_got_entries (arg->info, g))
d7206569
RS
4706 return FALSE;
4707
c224138d
RS
4708 /* Work out the number of page, local and TLS entries. */
4709 estimate = arg->max_pages;
4710 if (estimate > g->page_gotno)
4711 estimate = g->page_gotno;
4712 estimate += g->local_gotno + g->tls_gotno;
0f20cc35
DJ
4713
4714 /* We place TLS GOT entries after both locals and globals. The globals
4715 for the primary GOT may overflow the normal GOT size limit, so be
4716 sure not to merge a GOT which requires TLS with the primary GOT in that
4717 case. This doesn't affect non-primary GOTs. */
c224138d 4718 estimate += (g->tls_gotno > 0 ? arg->global_count : g->global_gotno);
143d77c5 4719
c224138d 4720 if (estimate <= arg->max_count)
f4416af6 4721 {
c224138d
RS
4722 /* If we don't have a primary GOT, use it as
4723 a starting point for the primary GOT. */
4724 if (!arg->primary)
4725 {
d7206569
RS
4726 arg->primary = g;
4727 return TRUE;
c224138d 4728 }
f4416af6 4729
c224138d 4730 /* Try merging with the primary GOT. */
d7206569 4731 result = mips_elf_merge_got_with (abfd, g, arg->primary, arg);
c224138d
RS
4732 if (result >= 0)
4733 return result;
f4416af6 4734 }
c224138d 4735
f4416af6 4736 /* If we can merge with the last-created got, do it. */
c224138d 4737 if (arg->current)
f4416af6 4738 {
d7206569 4739 result = mips_elf_merge_got_with (abfd, g, arg->current, arg);
c224138d
RS
4740 if (result >= 0)
4741 return result;
f4416af6 4742 }
c224138d 4743
f4416af6
AO
4744 /* Well, we couldn't merge, so create a new GOT. Don't check if it
4745 fits; if it turns out that it doesn't, we'll get relocation
4746 overflows anyway. */
c224138d
RS
4747 g->next = arg->current;
4748 arg->current = g;
0f20cc35 4749
d7206569 4750 return TRUE;
0f20cc35
DJ
4751}
4752
72e7511a
RS
4753/* ENTRYP is a hash table entry for a mips_got_entry. Set its gotidx
4754 to GOTIDX, duplicating the entry if it has already been assigned
4755 an index in a different GOT. */
4756
4757static bfd_boolean
4758mips_elf_set_gotidx (void **entryp, long gotidx)
4759{
4760 struct mips_got_entry *entry;
4761
4762 entry = (struct mips_got_entry *) *entryp;
4763 if (entry->gotidx > 0)
4764 {
4765 struct mips_got_entry *new_entry;
4766
4767 new_entry = bfd_alloc (entry->abfd, sizeof (*entry));
4768 if (!new_entry)
4769 return FALSE;
4770
4771 *new_entry = *entry;
4772 *entryp = new_entry;
4773 entry = new_entry;
4774 }
4775 entry->gotidx = gotidx;
4776 return TRUE;
4777}
4778
4779/* Set the TLS GOT index for the GOT entry in ENTRYP. DATA points to a
4780 mips_elf_traverse_got_arg in which DATA->value is the size of one
4781 GOT entry. Set DATA->g to null on failure. */
0f20cc35
DJ
4782
4783static int
72e7511a 4784mips_elf_initialize_tls_index (void **entryp, void *data)
0f20cc35 4785{
72e7511a
RS
4786 struct mips_got_entry *entry;
4787 struct mips_elf_traverse_got_arg *arg;
0f20cc35
DJ
4788
4789 /* We're only interested in TLS symbols. */
72e7511a 4790 entry = (struct mips_got_entry *) *entryp;
9ab066b4 4791 if (entry->tls_type == GOT_TLS_NONE)
0f20cc35
DJ
4792 return 1;
4793
72e7511a 4794 arg = (struct mips_elf_traverse_got_arg *) data;
6c42ddb9 4795 if (!mips_elf_set_gotidx (entryp, arg->value * arg->g->tls_assigned_gotno))
ead49a57 4796 {
6c42ddb9
RS
4797 arg->g = NULL;
4798 return 0;
f4416af6
AO
4799 }
4800
ead49a57 4801 /* Account for the entries we've just allocated. */
9ab066b4 4802 arg->g->tls_assigned_gotno += mips_tls_got_entries (entry->tls_type);
f4416af6
AO
4803 return 1;
4804}
4805
ab361d49
RS
4806/* A htab_traverse callback for GOT entries, where DATA points to a
4807 mips_elf_traverse_got_arg. Set the global_got_area of each global
4808 symbol to DATA->value. */
f4416af6 4809
f4416af6 4810static int
ab361d49 4811mips_elf_set_global_got_area (void **entryp, void *data)
f4416af6 4812{
ab361d49
RS
4813 struct mips_got_entry *entry;
4814 struct mips_elf_traverse_got_arg *arg;
f4416af6 4815
ab361d49
RS
4816 entry = (struct mips_got_entry *) *entryp;
4817 arg = (struct mips_elf_traverse_got_arg *) data;
4818 if (entry->abfd != NULL
4819 && entry->symndx == -1
4820 && entry->d.h->global_got_area != GGA_NONE)
4821 entry->d.h->global_got_area = arg->value;
4822 return 1;
4823}
4824
4825/* A htab_traverse callback for secondary GOT entries, where DATA points
4826 to a mips_elf_traverse_got_arg. Assign GOT indices to global entries
4827 and record the number of relocations they require. DATA->value is
72e7511a 4828 the size of one GOT entry. Set DATA->g to null on failure. */
ab361d49
RS
4829
4830static int
4831mips_elf_set_global_gotidx (void **entryp, void *data)
4832{
4833 struct mips_got_entry *entry;
4834 struct mips_elf_traverse_got_arg *arg;
0f20cc35 4835
ab361d49
RS
4836 entry = (struct mips_got_entry *) *entryp;
4837 arg = (struct mips_elf_traverse_got_arg *) data;
634835ae
RS
4838 if (entry->abfd != NULL
4839 && entry->symndx == -1
4840 && entry->d.h->global_got_area != GGA_NONE)
f4416af6 4841 {
cb22ccf4 4842 if (!mips_elf_set_gotidx (entryp, arg->value * arg->g->assigned_low_gotno))
72e7511a
RS
4843 {
4844 arg->g = NULL;
4845 return 0;
4846 }
cb22ccf4 4847 arg->g->assigned_low_gotno += 1;
72e7511a 4848
0e1862bb 4849 if (bfd_link_pic (arg->info)
ab361d49
RS
4850 || (elf_hash_table (arg->info)->dynamic_sections_created
4851 && entry->d.h->root.def_dynamic
4852 && !entry->d.h->root.def_regular))
4853 arg->g->relocs += 1;
f4416af6
AO
4854 }
4855
4856 return 1;
4857}
4858
33bb52fb
RS
4859/* A htab_traverse callback for GOT entries for which DATA is the
4860 bfd_link_info. Forbid any global symbols from having traditional
4861 lazy-binding stubs. */
4862
0626d451 4863static int
33bb52fb 4864mips_elf_forbid_lazy_stubs (void **entryp, void *data)
0626d451 4865{
33bb52fb
RS
4866 struct bfd_link_info *info;
4867 struct mips_elf_link_hash_table *htab;
4868 struct mips_got_entry *entry;
0626d451 4869
33bb52fb
RS
4870 entry = (struct mips_got_entry *) *entryp;
4871 info = (struct bfd_link_info *) data;
4872 htab = mips_elf_hash_table (info);
4dfe6ac6
NC
4873 BFD_ASSERT (htab != NULL);
4874
0626d451
RS
4875 if (entry->abfd != NULL
4876 && entry->symndx == -1
33bb52fb 4877 && entry->d.h->needs_lazy_stub)
f4416af6 4878 {
33bb52fb
RS
4879 entry->d.h->needs_lazy_stub = FALSE;
4880 htab->lazy_stub_count--;
f4416af6 4881 }
143d77c5 4882
f4416af6
AO
4883 return 1;
4884}
4885
f4416af6
AO
4886/* Return the offset of an input bfd IBFD's GOT from the beginning of
4887 the primary GOT. */
4888static bfd_vma
9719ad41 4889mips_elf_adjust_gp (bfd *abfd, struct mips_got_info *g, bfd *ibfd)
f4416af6 4890{
d7206569 4891 if (!g->next)
f4416af6
AO
4892 return 0;
4893
d7206569 4894 g = mips_elf_bfd_got (ibfd, FALSE);
f4416af6
AO
4895 if (! g)
4896 return 0;
4897
4898 BFD_ASSERT (g->next);
4899
4900 g = g->next;
143d77c5 4901
0f20cc35
DJ
4902 return (g->local_gotno + g->global_gotno + g->tls_gotno)
4903 * MIPS_ELF_GOT_SIZE (abfd);
f4416af6
AO
4904}
4905
4906/* Turn a single GOT that is too big for 16-bit addressing into
4907 a sequence of GOTs, each one 16-bit addressable. */
4908
4909static bfd_boolean
9719ad41 4910mips_elf_multi_got (bfd *abfd, struct bfd_link_info *info,
a8028dd0 4911 asection *got, bfd_size_type pages)
f4416af6 4912{
a8028dd0 4913 struct mips_elf_link_hash_table *htab;
f4416af6 4914 struct mips_elf_got_per_bfd_arg got_per_bfd_arg;
ab361d49 4915 struct mips_elf_traverse_got_arg tga;
a8028dd0 4916 struct mips_got_info *g, *gg;
33bb52fb 4917 unsigned int assign, needed_relocs;
d7206569 4918 bfd *dynobj, *ibfd;
f4416af6 4919
33bb52fb 4920 dynobj = elf_hash_table (info)->dynobj;
a8028dd0 4921 htab = mips_elf_hash_table (info);
4dfe6ac6
NC
4922 BFD_ASSERT (htab != NULL);
4923
a8028dd0 4924 g = htab->got_info;
f4416af6 4925
f4416af6
AO
4926 got_per_bfd_arg.obfd = abfd;
4927 got_per_bfd_arg.info = info;
f4416af6
AO
4928 got_per_bfd_arg.current = NULL;
4929 got_per_bfd_arg.primary = NULL;
0a44bf69 4930 got_per_bfd_arg.max_count = ((MIPS_ELF_GOT_MAX_SIZE (info)
f4416af6 4931 / MIPS_ELF_GOT_SIZE (abfd))
861fb55a 4932 - htab->reserved_gotno);
c224138d 4933 got_per_bfd_arg.max_pages = pages;
0f20cc35 4934 /* The number of globals that will be included in the primary GOT.
ab361d49 4935 See the calls to mips_elf_set_global_got_area below for more
0f20cc35
DJ
4936 information. */
4937 got_per_bfd_arg.global_count = g->global_gotno;
f4416af6
AO
4938
4939 /* Try to merge the GOTs of input bfds together, as long as they
4940 don't seem to exceed the maximum GOT size, choosing one of them
4941 to be the primary GOT. */
c72f2fb2 4942 for (ibfd = info->input_bfds; ibfd; ibfd = ibfd->link.next)
d7206569
RS
4943 {
4944 gg = mips_elf_bfd_got (ibfd, FALSE);
4945 if (gg && !mips_elf_merge_got (ibfd, gg, &got_per_bfd_arg))
4946 return FALSE;
4947 }
f4416af6 4948
0f20cc35 4949 /* If we do not find any suitable primary GOT, create an empty one. */
f4416af6 4950 if (got_per_bfd_arg.primary == NULL)
3dff0dd1 4951 g->next = mips_elf_create_got_info (abfd);
f4416af6
AO
4952 else
4953 g->next = got_per_bfd_arg.primary;
4954 g->next->next = got_per_bfd_arg.current;
4955
4956 /* GG is now the master GOT, and G is the primary GOT. */
4957 gg = g;
4958 g = g->next;
4959
4960 /* Map the output bfd to the primary got. That's what we're going
4961 to use for bfds that use GOT16 or GOT_PAGE relocations that we
4962 didn't mark in check_relocs, and we want a quick way to find it.
4963 We can't just use gg->next because we're going to reverse the
4964 list. */
d7206569 4965 mips_elf_replace_bfd_got (abfd, g);
f4416af6 4966
634835ae
RS
4967 /* Every symbol that is referenced in a dynamic relocation must be
4968 present in the primary GOT, so arrange for them to appear after
4969 those that are actually referenced. */
23cc69b6 4970 gg->reloc_only_gotno = gg->global_gotno - g->global_gotno;
634835ae 4971 g->global_gotno = gg->global_gotno;
f4416af6 4972
ab361d49
RS
4973 tga.info = info;
4974 tga.value = GGA_RELOC_ONLY;
4975 htab_traverse (gg->got_entries, mips_elf_set_global_got_area, &tga);
4976 tga.value = GGA_NORMAL;
4977 htab_traverse (g->got_entries, mips_elf_set_global_got_area, &tga);
f4416af6
AO
4978
4979 /* Now go through the GOTs assigning them offset ranges.
cb22ccf4 4980 [assigned_low_gotno, local_gotno[ will be set to the range of local
f4416af6
AO
4981 entries in each GOT. We can then compute the end of a GOT by
4982 adding local_gotno to global_gotno. We reverse the list and make
4983 it circular since then we'll be able to quickly compute the
4984 beginning of a GOT, by computing the end of its predecessor. To
4985 avoid special cases for the primary GOT, while still preserving
4986 assertions that are valid for both single- and multi-got links,
4987 we arrange for the main got struct to have the right number of
4988 global entries, but set its local_gotno such that the initial
4989 offset of the primary GOT is zero. Remember that the primary GOT
4990 will become the last item in the circular linked list, so it
4991 points back to the master GOT. */
4992 gg->local_gotno = -g->global_gotno;
4993 gg->global_gotno = g->global_gotno;
0f20cc35 4994 gg->tls_gotno = 0;
f4416af6
AO
4995 assign = 0;
4996 gg->next = gg;
4997
4998 do
4999 {
5000 struct mips_got_info *gn;
5001
861fb55a 5002 assign += htab->reserved_gotno;
cb22ccf4 5003 g->assigned_low_gotno = assign;
c224138d
RS
5004 g->local_gotno += assign;
5005 g->local_gotno += (pages < g->page_gotno ? pages : g->page_gotno);
cb22ccf4 5006 g->assigned_high_gotno = g->local_gotno - 1;
0f20cc35
DJ
5007 assign = g->local_gotno + g->global_gotno + g->tls_gotno;
5008
ead49a57
RS
5009 /* Take g out of the direct list, and push it onto the reversed
5010 list that gg points to. g->next is guaranteed to be nonnull after
5011 this operation, as required by mips_elf_initialize_tls_index. */
5012 gn = g->next;
5013 g->next = gg->next;
5014 gg->next = g;
5015
0f20cc35
DJ
5016 /* Set up any TLS entries. We always place the TLS entries after
5017 all non-TLS entries. */
5018 g->tls_assigned_gotno = g->local_gotno + g->global_gotno;
72e7511a
RS
5019 tga.g = g;
5020 tga.value = MIPS_ELF_GOT_SIZE (abfd);
5021 htab_traverse (g->got_entries, mips_elf_initialize_tls_index, &tga);
5022 if (!tga.g)
5023 return FALSE;
1fd20d70 5024 BFD_ASSERT (g->tls_assigned_gotno == assign);
f4416af6 5025
ead49a57 5026 /* Move onto the next GOT. It will be a secondary GOT if nonull. */
f4416af6 5027 g = gn;
0626d451 5028
33bb52fb
RS
5029 /* Forbid global symbols in every non-primary GOT from having
5030 lazy-binding stubs. */
0626d451 5031 if (g)
33bb52fb 5032 htab_traverse (g->got_entries, mips_elf_forbid_lazy_stubs, info);
f4416af6
AO
5033 }
5034 while (g);
5035
59b08994 5036 got->size = assign * MIPS_ELF_GOT_SIZE (abfd);
33bb52fb
RS
5037
5038 needed_relocs = 0;
33bb52fb
RS
5039 for (g = gg->next; g && g->next != gg; g = g->next)
5040 {
5041 unsigned int save_assign;
5042
ab361d49
RS
5043 /* Assign offsets to global GOT entries and count how many
5044 relocations they need. */
cb22ccf4
KCY
5045 save_assign = g->assigned_low_gotno;
5046 g->assigned_low_gotno = g->local_gotno;
ab361d49
RS
5047 tga.info = info;
5048 tga.value = MIPS_ELF_GOT_SIZE (abfd);
5049 tga.g = g;
5050 htab_traverse (g->got_entries, mips_elf_set_global_gotidx, &tga);
72e7511a
RS
5051 if (!tga.g)
5052 return FALSE;
cb22ccf4
KCY
5053 BFD_ASSERT (g->assigned_low_gotno == g->local_gotno + g->global_gotno);
5054 g->assigned_low_gotno = save_assign;
72e7511a 5055
0e1862bb 5056 if (bfd_link_pic (info))
33bb52fb 5057 {
cb22ccf4
KCY
5058 g->relocs += g->local_gotno - g->assigned_low_gotno;
5059 BFD_ASSERT (g->assigned_low_gotno == g->next->local_gotno
33bb52fb
RS
5060 + g->next->global_gotno
5061 + g->next->tls_gotno
861fb55a 5062 + htab->reserved_gotno);
33bb52fb 5063 }
ab361d49 5064 needed_relocs += g->relocs;
33bb52fb 5065 }
ab361d49 5066 needed_relocs += g->relocs;
33bb52fb
RS
5067
5068 if (needed_relocs)
5069 mips_elf_allocate_dynamic_relocations (dynobj, info,
5070 needed_relocs);
143d77c5 5071
f4416af6
AO
5072 return TRUE;
5073}
143d77c5 5074
b49e97c9
TS
5075\f
5076/* Returns the first relocation of type r_type found, beginning with
5077 RELOCATION. RELEND is one-past-the-end of the relocation table. */
5078
5079static const Elf_Internal_Rela *
9719ad41
RS
5080mips_elf_next_relocation (bfd *abfd ATTRIBUTE_UNUSED, unsigned int r_type,
5081 const Elf_Internal_Rela *relocation,
5082 const Elf_Internal_Rela *relend)
b49e97c9 5083{
c000e262
TS
5084 unsigned long r_symndx = ELF_R_SYM (abfd, relocation->r_info);
5085
b49e97c9
TS
5086 while (relocation < relend)
5087 {
c000e262
TS
5088 if (ELF_R_TYPE (abfd, relocation->r_info) == r_type
5089 && ELF_R_SYM (abfd, relocation->r_info) == r_symndx)
b49e97c9
TS
5090 return relocation;
5091
5092 ++relocation;
5093 }
5094
5095 /* We didn't find it. */
b49e97c9
TS
5096 return NULL;
5097}
5098
020d7251 5099/* Return whether an input relocation is against a local symbol. */
b49e97c9 5100
b34976b6 5101static bfd_boolean
9719ad41
RS
5102mips_elf_local_relocation_p (bfd *input_bfd,
5103 const Elf_Internal_Rela *relocation,
020d7251 5104 asection **local_sections)
b49e97c9
TS
5105{
5106 unsigned long r_symndx;
5107 Elf_Internal_Shdr *symtab_hdr;
b49e97c9
TS
5108 size_t extsymoff;
5109
5110 r_symndx = ELF_R_SYM (input_bfd, relocation->r_info);
5111 symtab_hdr = &elf_tdata (input_bfd)->symtab_hdr;
5112 extsymoff = (elf_bad_symtab (input_bfd)) ? 0 : symtab_hdr->sh_info;
5113
5114 if (r_symndx < extsymoff)
b34976b6 5115 return TRUE;
b49e97c9 5116 if (elf_bad_symtab (input_bfd) && local_sections[r_symndx] != NULL)
b34976b6 5117 return TRUE;
b49e97c9 5118
b34976b6 5119 return FALSE;
b49e97c9
TS
5120}
5121\f
5122/* Sign-extend VALUE, which has the indicated number of BITS. */
5123
a7ebbfdf 5124bfd_vma
9719ad41 5125_bfd_mips_elf_sign_extend (bfd_vma value, int bits)
b49e97c9
TS
5126{
5127 if (value & ((bfd_vma) 1 << (bits - 1)))
5128 /* VALUE is negative. */
5129 value |= ((bfd_vma) - 1) << bits;
5130
5131 return value;
5132}
5133
5134/* Return non-zero if the indicated VALUE has overflowed the maximum
4cc11e76 5135 range expressible by a signed number with the indicated number of
b49e97c9
TS
5136 BITS. */
5137
b34976b6 5138static bfd_boolean
9719ad41 5139mips_elf_overflow_p (bfd_vma value, int bits)
b49e97c9
TS
5140{
5141 bfd_signed_vma svalue = (bfd_signed_vma) value;
5142
5143 if (svalue > (1 << (bits - 1)) - 1)
5144 /* The value is too big. */
b34976b6 5145 return TRUE;
b49e97c9
TS
5146 else if (svalue < -(1 << (bits - 1)))
5147 /* The value is too small. */
b34976b6 5148 return TRUE;
b49e97c9
TS
5149
5150 /* All is well. */
b34976b6 5151 return FALSE;
b49e97c9
TS
5152}
5153
5154/* Calculate the %high function. */
5155
5156static bfd_vma
9719ad41 5157mips_elf_high (bfd_vma value)
b49e97c9
TS
5158{
5159 return ((value + (bfd_vma) 0x8000) >> 16) & 0xffff;
5160}
5161
5162/* Calculate the %higher function. */
5163
5164static bfd_vma
9719ad41 5165mips_elf_higher (bfd_vma value ATTRIBUTE_UNUSED)
b49e97c9
TS
5166{
5167#ifdef BFD64
5168 return ((value + (bfd_vma) 0x80008000) >> 32) & 0xffff;
5169#else
5170 abort ();
c5ae1840 5171 return MINUS_ONE;
b49e97c9
TS
5172#endif
5173}
5174
5175/* Calculate the %highest function. */
5176
5177static bfd_vma
9719ad41 5178mips_elf_highest (bfd_vma value ATTRIBUTE_UNUSED)
b49e97c9
TS
5179{
5180#ifdef BFD64
b15e6682 5181 return ((value + (((bfd_vma) 0x8000 << 32) | 0x80008000)) >> 48) & 0xffff;
b49e97c9
TS
5182#else
5183 abort ();
c5ae1840 5184 return MINUS_ONE;
b49e97c9
TS
5185#endif
5186}
5187\f
5188/* Create the .compact_rel section. */
5189
b34976b6 5190static bfd_boolean
9719ad41
RS
5191mips_elf_create_compact_rel_section
5192 (bfd *abfd, struct bfd_link_info *info ATTRIBUTE_UNUSED)
b49e97c9
TS
5193{
5194 flagword flags;
5195 register asection *s;
5196
3d4d4302 5197 if (bfd_get_linker_section (abfd, ".compact_rel") == NULL)
b49e97c9
TS
5198 {
5199 flags = (SEC_HAS_CONTENTS | SEC_IN_MEMORY | SEC_LINKER_CREATED
5200 | SEC_READONLY);
5201
3d4d4302 5202 s = bfd_make_section_anyway_with_flags (abfd, ".compact_rel", flags);
b49e97c9 5203 if (s == NULL
b49e97c9
TS
5204 || ! bfd_set_section_alignment (abfd, s,
5205 MIPS_ELF_LOG_FILE_ALIGN (abfd)))
b34976b6 5206 return FALSE;
b49e97c9 5207
eea6121a 5208 s->size = sizeof (Elf32_External_compact_rel);
b49e97c9
TS
5209 }
5210
b34976b6 5211 return TRUE;
b49e97c9
TS
5212}
5213
5214/* Create the .got section to hold the global offset table. */
5215
b34976b6 5216static bfd_boolean
23cc69b6 5217mips_elf_create_got_section (bfd *abfd, struct bfd_link_info *info)
b49e97c9
TS
5218{
5219 flagword flags;
5220 register asection *s;
5221 struct elf_link_hash_entry *h;
14a793b2 5222 struct bfd_link_hash_entry *bh;
0a44bf69
RS
5223 struct mips_elf_link_hash_table *htab;
5224
5225 htab = mips_elf_hash_table (info);
4dfe6ac6 5226 BFD_ASSERT (htab != NULL);
b49e97c9
TS
5227
5228 /* This function may be called more than once. */
ce558b89 5229 if (htab->root.sgot)
23cc69b6 5230 return TRUE;
b49e97c9
TS
5231
5232 flags = (SEC_ALLOC | SEC_LOAD | SEC_HAS_CONTENTS | SEC_IN_MEMORY
5233 | SEC_LINKER_CREATED);
5234
72b4917c
TS
5235 /* We have to use an alignment of 2**4 here because this is hardcoded
5236 in the function stub generation and in the linker script. */
87e0a731 5237 s = bfd_make_section_anyway_with_flags (abfd, ".got", flags);
b49e97c9 5238 if (s == NULL
72b4917c 5239 || ! bfd_set_section_alignment (abfd, s, 4))
b34976b6 5240 return FALSE;
ce558b89 5241 htab->root.sgot = s;
b49e97c9
TS
5242
5243 /* Define the symbol _GLOBAL_OFFSET_TABLE_. We don't do this in the
5244 linker script because we don't want to define the symbol if we
5245 are not creating a global offset table. */
14a793b2 5246 bh = NULL;
b49e97c9
TS
5247 if (! (_bfd_generic_link_add_one_symbol
5248 (info, abfd, "_GLOBAL_OFFSET_TABLE_", BSF_GLOBAL, s,
9719ad41 5249 0, NULL, FALSE, get_elf_backend_data (abfd)->collect, &bh)))
b34976b6 5250 return FALSE;
14a793b2
AM
5251
5252 h = (struct elf_link_hash_entry *) bh;
f5385ebf
AM
5253 h->non_elf = 0;
5254 h->def_regular = 1;
b49e97c9 5255 h->type = STT_OBJECT;
2f9efdfc 5256 h->other = (h->other & ~ELF_ST_VISIBILITY (-1)) | STV_HIDDEN;
d329bcd1 5257 elf_hash_table (info)->hgot = h;
b49e97c9 5258
0e1862bb 5259 if (bfd_link_pic (info)
c152c796 5260 && ! bfd_elf_link_record_dynamic_symbol (info, h))
b34976b6 5261 return FALSE;
b49e97c9 5262
3dff0dd1 5263 htab->got_info = mips_elf_create_got_info (abfd);
f0abc2a1 5264 mips_elf_section_data (s)->elf.this_hdr.sh_flags
b49e97c9
TS
5265 |= SHF_ALLOC | SHF_WRITE | SHF_MIPS_GPREL;
5266
861fb55a 5267 /* We also need a .got.plt section when generating PLTs. */
87e0a731
AM
5268 s = bfd_make_section_anyway_with_flags (abfd, ".got.plt",
5269 SEC_ALLOC | SEC_LOAD
5270 | SEC_HAS_CONTENTS
5271 | SEC_IN_MEMORY
5272 | SEC_LINKER_CREATED);
861fb55a
DJ
5273 if (s == NULL)
5274 return FALSE;
ce558b89 5275 htab->root.sgotplt = s;
0a44bf69 5276
b34976b6 5277 return TRUE;
b49e97c9 5278}
b49e97c9 5279\f
0a44bf69
RS
5280/* Return true if H refers to the special VxWorks __GOTT_BASE__ or
5281 __GOTT_INDEX__ symbols. These symbols are only special for
5282 shared objects; they are not used in executables. */
5283
5284static bfd_boolean
5285is_gott_symbol (struct bfd_link_info *info, struct elf_link_hash_entry *h)
5286{
5287 return (mips_elf_hash_table (info)->is_vxworks
0e1862bb 5288 && bfd_link_pic (info)
0a44bf69
RS
5289 && (strcmp (h->root.root.string, "__GOTT_BASE__") == 0
5290 || strcmp (h->root.root.string, "__GOTT_INDEX__") == 0));
5291}
861fb55a
DJ
5292
5293/* Return TRUE if a relocation of type R_TYPE from INPUT_BFD might
5294 require an la25 stub. See also mips_elf_local_pic_function_p,
5295 which determines whether the destination function ever requires a
5296 stub. */
5297
5298static bfd_boolean
8f0c309a
CLT
5299mips_elf_relocation_needs_la25_stub (bfd *input_bfd, int r_type,
5300 bfd_boolean target_is_16_bit_code_p)
861fb55a
DJ
5301{
5302 /* We specifically ignore branches and jumps from EF_PIC objects,
5303 where the onus is on the compiler or programmer to perform any
5304 necessary initialization of $25. Sometimes such initialization
5305 is unnecessary; for example, -mno-shared functions do not use
5306 the incoming value of $25, and may therefore be called directly. */
5307 if (PIC_OBJECT_P (input_bfd))
5308 return FALSE;
5309
5310 switch (r_type)
5311 {
5312 case R_MIPS_26:
5313 case R_MIPS_PC16:
7361da2c
AB
5314 case R_MIPS_PC21_S2:
5315 case R_MIPS_PC26_S2:
df58fc94
RS
5316 case R_MICROMIPS_26_S1:
5317 case R_MICROMIPS_PC7_S1:
5318 case R_MICROMIPS_PC10_S1:
5319 case R_MICROMIPS_PC16_S1:
5320 case R_MICROMIPS_PC23_S2:
861fb55a
DJ
5321 return TRUE;
5322
8f0c309a
CLT
5323 case R_MIPS16_26:
5324 return !target_is_16_bit_code_p;
5325
861fb55a
DJ
5326 default:
5327 return FALSE;
5328 }
5329}
0a44bf69 5330\f
47275900
MR
5331/* Obtain the field relocated by RELOCATION. */
5332
5333static bfd_vma
5334mips_elf_obtain_contents (reloc_howto_type *howto,
5335 const Elf_Internal_Rela *relocation,
5336 bfd *input_bfd, bfd_byte *contents)
5337{
5338 bfd_vma x = 0;
5339 bfd_byte *location = contents + relocation->r_offset;
5340 unsigned int size = bfd_get_reloc_size (howto);
5341
5342 /* Obtain the bytes. */
5343 if (size != 0)
5344 x = bfd_get (8 * size, input_bfd, location);
5345
5346 return x;
5347}
5348
98e10ffa
MR
5349/* Store the field relocated by RELOCATION. */
5350
5351static void
5352mips_elf_store_contents (reloc_howto_type *howto,
5353 const Elf_Internal_Rela *relocation,
5354 bfd *input_bfd, bfd_byte *contents, bfd_vma x)
5355{
5356 bfd_byte *location = contents + relocation->r_offset;
5357 unsigned int size = bfd_get_reloc_size (howto);
5358
5359 /* Put the value into the output. */
5360 if (size != 0)
5361 bfd_put (8 * size, input_bfd, x, location);
5362}
5363
47275900
MR
5364/* Try to patch a load from GOT instruction in CONTENTS pointed to by
5365 RELOCATION described by HOWTO, with a move of 0 to the load target
5366 register, returning TRUE if that is successful and FALSE otherwise.
5367 If DOIT is FALSE, then only determine it patching is possible and
5368 return status without actually changing CONTENTS.
5369*/
5370
5371static bfd_boolean
5372mips_elf_nullify_got_load (bfd *input_bfd, bfd_byte *contents,
5373 const Elf_Internal_Rela *relocation,
5374 reloc_howto_type *howto, bfd_boolean doit)
5375{
5376 int r_type = ELF_R_TYPE (input_bfd, relocation->r_info);
5377 bfd_byte *location = contents + relocation->r_offset;
5378 bfd_boolean nullified = TRUE;
5379 bfd_vma x;
5380
5381 _bfd_mips_elf_reloc_unshuffle (input_bfd, r_type, FALSE, location);
5382
5383 /* Obtain the current value. */
5384 x = mips_elf_obtain_contents (howto, relocation, input_bfd, contents);
5385
5386 /* Note that in the unshuffled MIPS16 encoding RX is at bits [21:19]
5387 while RY is at bits [18:16] of the combined 32-bit instruction word. */
5388 if (mips16_reloc_p (r_type)
5389 && (((x >> 22) & 0x3ff) == 0x3d3 /* LW */
5390 || ((x >> 22) & 0x3ff) == 0x3c7)) /* LD */
5391 x = (0x3cd << 22) | (x & (7 << 16)) << 3; /* LI */
5392 else if (micromips_reloc_p (r_type)
5393 && ((x >> 26) & 0x37) == 0x37) /* LW/LD */
5394 x = (0xc << 26) | (x & (0x1f << 21)); /* ADDIU */
5395 else if (((x >> 26) & 0x3f) == 0x23 /* LW */
5396 || ((x >> 26) & 0x3f) == 0x37) /* LD */
5397 x = (0x9 << 26) | (x & (0x1f << 16)); /* ADDIU */
5398 else
5399 nullified = FALSE;
5400
5401 /* Put the value into the output. */
5402 if (doit && nullified)
5403 mips_elf_store_contents (howto, relocation, input_bfd, contents, x);
5404
5405 _bfd_mips_elf_reloc_shuffle (input_bfd, r_type, FALSE, location);
5406
5407 return nullified;
5408}
5409
b49e97c9
TS
5410/* Calculate the value produced by the RELOCATION (which comes from
5411 the INPUT_BFD). The ADDEND is the addend to use for this
5412 RELOCATION; RELOCATION->R_ADDEND is ignored.
5413
5414 The result of the relocation calculation is stored in VALUEP.
38a7df63 5415 On exit, set *CROSS_MODE_JUMP_P to true if the relocation field
df58fc94 5416 is a MIPS16 or microMIPS jump to standard MIPS code, or vice versa.
b49e97c9
TS
5417
5418 This function returns bfd_reloc_continue if the caller need take no
5419 further action regarding this relocation, bfd_reloc_notsupported if
5420 something goes dramatically wrong, bfd_reloc_overflow if an
5421 overflow occurs, and bfd_reloc_ok to indicate success. */
5422
5423static bfd_reloc_status_type
9719ad41 5424mips_elf_calculate_relocation (bfd *abfd, bfd *input_bfd,
47275900 5425 asection *input_section, bfd_byte *contents,
9719ad41
RS
5426 struct bfd_link_info *info,
5427 const Elf_Internal_Rela *relocation,
5428 bfd_vma addend, reloc_howto_type *howto,
5429 Elf_Internal_Sym *local_syms,
5430 asection **local_sections, bfd_vma *valuep,
38a7df63
CF
5431 const char **namep,
5432 bfd_boolean *cross_mode_jump_p,
9719ad41 5433 bfd_boolean save_addend)
b49e97c9
TS
5434{
5435 /* The eventual value we will return. */
5436 bfd_vma value;
5437 /* The address of the symbol against which the relocation is
5438 occurring. */
5439 bfd_vma symbol = 0;
5440 /* The final GP value to be used for the relocatable, executable, or
5441 shared object file being produced. */
0a61c8c2 5442 bfd_vma gp;
b49e97c9
TS
5443 /* The place (section offset or address) of the storage unit being
5444 relocated. */
5445 bfd_vma p;
5446 /* The value of GP used to create the relocatable object. */
0a61c8c2 5447 bfd_vma gp0;
b49e97c9
TS
5448 /* The offset into the global offset table at which the address of
5449 the relocation entry symbol, adjusted by the addend, resides
5450 during execution. */
5451 bfd_vma g = MINUS_ONE;
5452 /* The section in which the symbol referenced by the relocation is
5453 located. */
5454 asection *sec = NULL;
5455 struct mips_elf_link_hash_entry *h = NULL;
b34976b6 5456 /* TRUE if the symbol referred to by this relocation is a local
b49e97c9 5457 symbol. */
b34976b6 5458 bfd_boolean local_p, was_local_p;
77434823
MR
5459 /* TRUE if the symbol referred to by this relocation is a section
5460 symbol. */
5461 bfd_boolean section_p = FALSE;
b34976b6
AM
5462 /* TRUE if the symbol referred to by this relocation is "_gp_disp". */
5463 bfd_boolean gp_disp_p = FALSE;
bbe506e8
TS
5464 /* TRUE if the symbol referred to by this relocation is
5465 "__gnu_local_gp". */
5466 bfd_boolean gnu_local_gp_p = FALSE;
b49e97c9
TS
5467 Elf_Internal_Shdr *symtab_hdr;
5468 size_t extsymoff;
5469 unsigned long r_symndx;
5470 int r_type;
b34976b6 5471 /* TRUE if overflow occurred during the calculation of the
b49e97c9 5472 relocation value. */
b34976b6
AM
5473 bfd_boolean overflowed_p;
5474 /* TRUE if this relocation refers to a MIPS16 function. */
5475 bfd_boolean target_is_16_bit_code_p = FALSE;
df58fc94 5476 bfd_boolean target_is_micromips_code_p = FALSE;
0a44bf69
RS
5477 struct mips_elf_link_hash_table *htab;
5478 bfd *dynobj;
ad951203 5479 bfd_boolean resolved_to_zero;
0a44bf69
RS
5480
5481 dynobj = elf_hash_table (info)->dynobj;
5482 htab = mips_elf_hash_table (info);
4dfe6ac6 5483 BFD_ASSERT (htab != NULL);
b49e97c9
TS
5484
5485 /* Parse the relocation. */
5486 r_symndx = ELF_R_SYM (input_bfd, relocation->r_info);
5487 r_type = ELF_R_TYPE (input_bfd, relocation->r_info);
5488 p = (input_section->output_section->vma
5489 + input_section->output_offset
5490 + relocation->r_offset);
5491
5492 /* Assume that there will be no overflow. */
b34976b6 5493 overflowed_p = FALSE;
b49e97c9
TS
5494
5495 /* Figure out whether or not the symbol is local, and get the offset
5496 used in the array of hash table entries. */
5497 symtab_hdr = &elf_tdata (input_bfd)->symtab_hdr;
5498 local_p = mips_elf_local_relocation_p (input_bfd, relocation,
020d7251 5499 local_sections);
bce03d3d 5500 was_local_p = local_p;
b49e97c9
TS
5501 if (! elf_bad_symtab (input_bfd))
5502 extsymoff = symtab_hdr->sh_info;
5503 else
5504 {
5505 /* The symbol table does not follow the rule that local symbols
5506 must come before globals. */
5507 extsymoff = 0;
5508 }
5509
5510 /* Figure out the value of the symbol. */
5511 if (local_p)
5512 {
9d862524 5513 bfd_boolean micromips_p = MICROMIPS_P (abfd);
b49e97c9
TS
5514 Elf_Internal_Sym *sym;
5515
5516 sym = local_syms + r_symndx;
5517 sec = local_sections[r_symndx];
5518
77434823
MR
5519 section_p = ELF_ST_TYPE (sym->st_info) == STT_SECTION;
5520
b49e97c9 5521 symbol = sec->output_section->vma + sec->output_offset;
77434823 5522 if (!section_p || (sec->flags & SEC_MERGE))
b49e97c9 5523 symbol += sym->st_value;
77434823 5524 if ((sec->flags & SEC_MERGE) && section_p)
d4df96e6
L
5525 {
5526 addend = _bfd_elf_rel_local_sym (abfd, sym, &sec, addend);
5527 addend -= symbol;
5528 addend += sec->output_section->vma + sec->output_offset;
5529 }
b49e97c9 5530
df58fc94
RS
5531 /* MIPS16/microMIPS text labels should be treated as odd. */
5532 if (ELF_ST_IS_COMPRESSED (sym->st_other))
b49e97c9
TS
5533 ++symbol;
5534
5535 /* Record the name of this symbol, for our caller. */
5536 *namep = bfd_elf_string_from_elf_section (input_bfd,
5537 symtab_hdr->sh_link,
5538 sym->st_name);
ceab86af 5539 if (*namep == NULL || **namep == '\0')
b49e97c9
TS
5540 *namep = bfd_section_name (input_bfd, sec);
5541
9d862524 5542 /* For relocations against a section symbol and ones against no
07d6d2b8 5543 symbol (absolute relocations) infer the ISA mode from the addend. */
9d862524
MR
5544 if (section_p || r_symndx == STN_UNDEF)
5545 {
5546 target_is_16_bit_code_p = (addend & 1) && !micromips_p;
5547 target_is_micromips_code_p = (addend & 1) && micromips_p;
5548 }
5549 /* For relocations against an absolute symbol infer the ISA mode
07d6d2b8 5550 from the value of the symbol plus addend. */
9d862524
MR
5551 else if (bfd_is_abs_section (sec))
5552 {
5553 target_is_16_bit_code_p = ((symbol + addend) & 1) && !micromips_p;
5554 target_is_micromips_code_p = ((symbol + addend) & 1) && micromips_p;
5555 }
5556 /* Otherwise just use the regular symbol annotation available. */
5557 else
5558 {
5559 target_is_16_bit_code_p = ELF_ST_IS_MIPS16 (sym->st_other);
5560 target_is_micromips_code_p = ELF_ST_IS_MICROMIPS (sym->st_other);
5561 }
b49e97c9
TS
5562 }
5563 else
5564 {
560e09e9
NC
5565 /* ??? Could we use RELOC_FOR_GLOBAL_SYMBOL here ? */
5566
b49e97c9
TS
5567 /* For global symbols we look up the symbol in the hash-table. */
5568 h = ((struct mips_elf_link_hash_entry *)
5569 elf_sym_hashes (input_bfd) [r_symndx - extsymoff]);
5570 /* Find the real hash-table entry for this symbol. */
5571 while (h->root.root.type == bfd_link_hash_indirect
5572 || h->root.root.type == bfd_link_hash_warning)
5573 h = (struct mips_elf_link_hash_entry *) h->root.root.u.i.link;
5574
5575 /* Record the name of this symbol, for our caller. */
5576 *namep = h->root.root.root.string;
5577
5578 /* See if this is the special _gp_disp symbol. Note that such a
5579 symbol must always be a global symbol. */
560e09e9 5580 if (strcmp (*namep, "_gp_disp") == 0
b49e97c9
TS
5581 && ! NEWABI_P (input_bfd))
5582 {
5583 /* Relocations against _gp_disp are permitted only with
5584 R_MIPS_HI16 and R_MIPS_LO16 relocations. */
738e5348 5585 if (!hi16_reloc_p (r_type) && !lo16_reloc_p (r_type))
b49e97c9
TS
5586 return bfd_reloc_notsupported;
5587
b34976b6 5588 gp_disp_p = TRUE;
b49e97c9 5589 }
bbe506e8
TS
5590 /* See if this is the special _gp symbol. Note that such a
5591 symbol must always be a global symbol. */
5592 else if (strcmp (*namep, "__gnu_local_gp") == 0)
5593 gnu_local_gp_p = TRUE;
5594
5595
b49e97c9
TS
5596 /* If this symbol is defined, calculate its address. Note that
5597 _gp_disp is a magic symbol, always implicitly defined by the
5598 linker, so it's inappropriate to check to see whether or not
5599 its defined. */
5600 else if ((h->root.root.type == bfd_link_hash_defined
5601 || h->root.root.type == bfd_link_hash_defweak)
5602 && h->root.root.u.def.section)
5603 {
5604 sec = h->root.root.u.def.section;
5605 if (sec->output_section)
5606 symbol = (h->root.root.u.def.value
5607 + sec->output_section->vma
5608 + sec->output_offset);
5609 else
5610 symbol = h->root.root.u.def.value;
5611 }
5612 else if (h->root.root.type == bfd_link_hash_undefweak)
5613 /* We allow relocations against undefined weak symbols, giving
5614 it the value zero, so that you can undefined weak functions
5615 and check to see if they exist by looking at their
5616 addresses. */
5617 symbol = 0;
59c2e50f 5618 else if (info->unresolved_syms_in_objects == RM_IGNORE
b49e97c9
TS
5619 && ELF_ST_VISIBILITY (h->root.other) == STV_DEFAULT)
5620 symbol = 0;
a4d0f181
TS
5621 else if (strcmp (*namep, SGI_COMPAT (input_bfd)
5622 ? "_DYNAMIC_LINK" : "_DYNAMIC_LINKING") == 0)
b49e97c9
TS
5623 {
5624 /* If this is a dynamic link, we should have created a
5625 _DYNAMIC_LINK symbol or _DYNAMIC_LINKING(for normal mips) symbol
de194d85 5626 in _bfd_mips_elf_create_dynamic_sections.
b49e97c9
TS
5627 Otherwise, we should define the symbol with a value of 0.
5628 FIXME: It should probably get into the symbol table
5629 somehow as well. */
0e1862bb 5630 BFD_ASSERT (! bfd_link_pic (info));
b49e97c9
TS
5631 BFD_ASSERT (bfd_get_section_by_name (abfd, ".dynamic") == NULL);
5632 symbol = 0;
5633 }
5e2b0d47
NC
5634 else if (ELF_MIPS_IS_OPTIONAL (h->root.other))
5635 {
5636 /* This is an optional symbol - an Irix specific extension to the
5637 ELF spec. Ignore it for now.
5638 XXX - FIXME - there is more to the spec for OPTIONAL symbols
5639 than simply ignoring them, but we do not handle this for now.
5640 For information see the "64-bit ELF Object File Specification"
5641 which is available from here:
5642 http://techpubs.sgi.com/library/manuals/4000/007-4658-001/pdf/007-4658-001.pdf */
5643 symbol = 0;
5644 }
b49e97c9
TS
5645 else
5646 {
dfb93f11
JC
5647 bfd_boolean reject_undefined
5648 = (info->unresolved_syms_in_objects == RM_GENERATE_ERROR
5649 || ELF_ST_VISIBILITY (h->root.other) != STV_DEFAULT);
5650
1a72702b
AM
5651 (*info->callbacks->undefined_symbol)
5652 (info, h->root.root.root.string, input_bfd,
dfb93f11
JC
5653 input_section, relocation->r_offset, reject_undefined);
5654
5655 if (reject_undefined)
5656 return bfd_reloc_undefined;
5657
5658 symbol = 0;
b49e97c9
TS
5659 }
5660
30c09090 5661 target_is_16_bit_code_p = ELF_ST_IS_MIPS16 (h->root.other);
1bbce132 5662 target_is_micromips_code_p = ELF_ST_IS_MICROMIPS (h->root.other);
b49e97c9
TS
5663 }
5664
738e5348
RS
5665 /* If this is a reference to a 16-bit function with a stub, we need
5666 to redirect the relocation to the stub unless:
5667
5668 (a) the relocation is for a MIPS16 JAL;
5669
5670 (b) the relocation is for a MIPS16 PIC call, and there are no
5671 non-MIPS16 uses of the GOT slot; or
5672
5673 (c) the section allows direct references to MIPS16 functions. */
5674 if (r_type != R_MIPS16_26
0e1862bb 5675 && !bfd_link_relocatable (info)
738e5348
RS
5676 && ((h != NULL
5677 && h->fn_stub != NULL
5678 && (r_type != R_MIPS16_CALL16 || h->need_fn_stub))
b9d58d71 5679 || (local_p
698600e4
AM
5680 && mips_elf_tdata (input_bfd)->local_stubs != NULL
5681 && mips_elf_tdata (input_bfd)->local_stubs[r_symndx] != NULL))
738e5348 5682 && !section_allows_mips16_refs_p (input_section))
b49e97c9
TS
5683 {
5684 /* This is a 32- or 64-bit call to a 16-bit function. We should
5685 have already noticed that we were going to need the
5686 stub. */
5687 if (local_p)
8f0c309a 5688 {
698600e4 5689 sec = mips_elf_tdata (input_bfd)->local_stubs[r_symndx];
8f0c309a
CLT
5690 value = 0;
5691 }
b49e97c9
TS
5692 else
5693 {
5694 BFD_ASSERT (h->need_fn_stub);
8f0c309a
CLT
5695 if (h->la25_stub)
5696 {
5697 /* If a LA25 header for the stub itself exists, point to the
5698 prepended LUI/ADDIU sequence. */
5699 sec = h->la25_stub->stub_section;
5700 value = h->la25_stub->offset;
5701 }
5702 else
5703 {
5704 sec = h->fn_stub;
5705 value = 0;
5706 }
b49e97c9
TS
5707 }
5708
8f0c309a 5709 symbol = sec->output_section->vma + sec->output_offset + value;
f38c2df5
TS
5710 /* The target is 16-bit, but the stub isn't. */
5711 target_is_16_bit_code_p = FALSE;
b49e97c9 5712 }
1bbce132
MR
5713 /* If this is a MIPS16 call with a stub, that is made through the PLT or
5714 to a standard MIPS function, we need to redirect the call to the stub.
5715 Note that we specifically exclude R_MIPS16_CALL16 from this behavior;
5716 indirect calls should use an indirect stub instead. */
0e1862bb 5717 else if (r_type == R_MIPS16_26 && !bfd_link_relocatable (info)
b314ec0e 5718 && ((h != NULL && (h->call_stub != NULL || h->call_fp_stub != NULL))
b9d58d71 5719 || (local_p
698600e4
AM
5720 && mips_elf_tdata (input_bfd)->local_call_stubs != NULL
5721 && mips_elf_tdata (input_bfd)->local_call_stubs[r_symndx] != NULL))
1bbce132 5722 && ((h != NULL && h->use_plt_entry) || !target_is_16_bit_code_p))
b49e97c9 5723 {
b9d58d71 5724 if (local_p)
698600e4 5725 sec = mips_elf_tdata (input_bfd)->local_call_stubs[r_symndx];
b9d58d71 5726 else
b49e97c9 5727 {
b9d58d71
TS
5728 /* If both call_stub and call_fp_stub are defined, we can figure
5729 out which one to use by checking which one appears in the input
5730 file. */
5731 if (h->call_stub != NULL && h->call_fp_stub != NULL)
b49e97c9 5732 {
b9d58d71 5733 asection *o;
68ffbac6 5734
b9d58d71
TS
5735 sec = NULL;
5736 for (o = input_bfd->sections; o != NULL; o = o->next)
b49e97c9 5737 {
b9d58d71
TS
5738 if (CALL_FP_STUB_P (bfd_get_section_name (input_bfd, o)))
5739 {
5740 sec = h->call_fp_stub;
5741 break;
5742 }
b49e97c9 5743 }
b9d58d71
TS
5744 if (sec == NULL)
5745 sec = h->call_stub;
b49e97c9 5746 }
b9d58d71 5747 else if (h->call_stub != NULL)
b49e97c9 5748 sec = h->call_stub;
b9d58d71
TS
5749 else
5750 sec = h->call_fp_stub;
07d6d2b8 5751 }
b49e97c9 5752
eea6121a 5753 BFD_ASSERT (sec->size > 0);
b49e97c9
TS
5754 symbol = sec->output_section->vma + sec->output_offset;
5755 }
861fb55a
DJ
5756 /* If this is a direct call to a PIC function, redirect to the
5757 non-PIC stub. */
5758 else if (h != NULL && h->la25_stub
8f0c309a
CLT
5759 && mips_elf_relocation_needs_la25_stub (input_bfd, r_type,
5760 target_is_16_bit_code_p))
c7318def
MR
5761 {
5762 symbol = (h->la25_stub->stub_section->output_section->vma
5763 + h->la25_stub->stub_section->output_offset
5764 + h->la25_stub->offset);
5765 if (ELF_ST_IS_MICROMIPS (h->root.other))
5766 symbol |= 1;
5767 }
1bbce132
MR
5768 /* For direct MIPS16 and microMIPS calls make sure the compressed PLT
5769 entry is used if a standard PLT entry has also been made. In this
5770 case the symbol will have been set by mips_elf_set_plt_sym_value
5771 to point to the standard PLT entry, so redirect to the compressed
5772 one. */
54806ffa
MR
5773 else if ((mips16_branch_reloc_p (r_type)
5774 || micromips_branch_reloc_p (r_type))
0e1862bb 5775 && !bfd_link_relocatable (info)
1bbce132
MR
5776 && h != NULL
5777 && h->use_plt_entry
5778 && h->root.plt.plist->comp_offset != MINUS_ONE
5779 && h->root.plt.plist->mips_offset != MINUS_ONE)
5780 {
5781 bfd_boolean micromips_p = MICROMIPS_P (abfd);
5782
ce558b89 5783 sec = htab->root.splt;
1bbce132
MR
5784 symbol = (sec->output_section->vma
5785 + sec->output_offset
5786 + htab->plt_header_size
5787 + htab->plt_mips_offset
5788 + h->root.plt.plist->comp_offset
5789 + 1);
5790
5791 target_is_16_bit_code_p = !micromips_p;
5792 target_is_micromips_code_p = micromips_p;
5793 }
b49e97c9 5794
df58fc94 5795 /* Make sure MIPS16 and microMIPS are not used together. */
c9775dde 5796 if ((mips16_branch_reloc_p (r_type) && target_is_micromips_code_p)
df58fc94
RS
5797 || (micromips_branch_reloc_p (r_type) && target_is_16_bit_code_p))
5798 {
4eca0228 5799 _bfd_error_handler
df58fc94
RS
5800 (_("MIPS16 and microMIPS functions cannot call each other"));
5801 return bfd_reloc_notsupported;
5802 }
5803
b49e97c9 5804 /* Calls from 16-bit code to 32-bit code and vice versa require the
df58fc94
RS
5805 mode change. However, we can ignore calls to undefined weak symbols,
5806 which should never be executed at runtime. This exception is important
5807 because the assembly writer may have "known" that any definition of the
5808 symbol would be 16-bit code, and that direct jumps were therefore
5809 acceptable. */
0e1862bb 5810 *cross_mode_jump_p = (!bfd_link_relocatable (info)
df58fc94 5811 && !(h && h->root.root.type == bfd_link_hash_undefweak)
9d862524
MR
5812 && ((mips16_branch_reloc_p (r_type)
5813 && !target_is_16_bit_code_p)
5814 || (micromips_branch_reloc_p (r_type)
df58fc94 5815 && !target_is_micromips_code_p)
9d862524
MR
5816 || ((branch_reloc_p (r_type)
5817 || r_type == R_MIPS_JALR)
df58fc94
RS
5818 && (target_is_16_bit_code_p
5819 || target_is_micromips_code_p))));
b49e97c9 5820
47275900
MR
5821 resolved_to_zero = (h != NULL
5822 && UNDEFWEAK_NO_DYNAMIC_RELOC (info, &h->root));
5823
5824 switch (r_type)
5825 {
5826 case R_MIPS16_CALL16:
5827 case R_MIPS16_GOT16:
5828 case R_MIPS_CALL16:
5829 case R_MIPS_GOT16:
5830 case R_MIPS_GOT_PAGE:
5831 case R_MIPS_GOT_DISP:
5832 case R_MIPS_GOT_LO16:
5833 case R_MIPS_CALL_LO16:
5834 case R_MICROMIPS_CALL16:
5835 case R_MICROMIPS_GOT16:
5836 case R_MICROMIPS_GOT_PAGE:
5837 case R_MICROMIPS_GOT_DISP:
5838 case R_MICROMIPS_GOT_LO16:
5839 case R_MICROMIPS_CALL_LO16:
5840 if (resolved_to_zero
5841 && !bfd_link_relocatable (info)
5842 && mips_elf_nullify_got_load (input_bfd, contents,
5843 relocation, howto, TRUE))
5844 return bfd_reloc_continue;
5845
5846 /* Fall through. */
5847 case R_MIPS_GOT_HI16:
5848 case R_MIPS_CALL_HI16:
5849 case R_MICROMIPS_GOT_HI16:
5850 case R_MICROMIPS_CALL_HI16:
5851 if (resolved_to_zero
5852 && htab->use_absolute_zero
5853 && bfd_link_pic (info))
5854 {
5855 /* Redirect to the special `__gnu_absolute_zero' symbol. */
5856 h = mips_elf_link_hash_lookup (htab, "__gnu_absolute_zero",
5857 FALSE, FALSE, FALSE);
5858 BFD_ASSERT (h != NULL);
5859 }
5860 break;
5861 }
5862
c5d6fa44 5863 local_p = (h == NULL || mips_use_local_got_p (info, h));
b49e97c9 5864
0a61c8c2
RS
5865 gp0 = _bfd_get_gp_value (input_bfd);
5866 gp = _bfd_get_gp_value (abfd);
23cc69b6 5867 if (htab->got_info)
a8028dd0 5868 gp += mips_elf_adjust_gp (abfd, htab->got_info, input_bfd);
0a61c8c2
RS
5869
5870 if (gnu_local_gp_p)
5871 symbol = gp;
5872
df58fc94
RS
5873 /* Global R_MIPS_GOT_PAGE/R_MICROMIPS_GOT_PAGE relocations are equivalent
5874 to R_MIPS_GOT_DISP/R_MICROMIPS_GOT_DISP. The addend is applied by the
5875 corresponding R_MIPS_GOT_OFST/R_MICROMIPS_GOT_OFST. */
5876 if (got_page_reloc_p (r_type) && !local_p)
020d7251 5877 {
df58fc94
RS
5878 r_type = (micromips_reloc_p (r_type)
5879 ? R_MICROMIPS_GOT_DISP : R_MIPS_GOT_DISP);
020d7251
RS
5880 addend = 0;
5881 }
5882
e77760d2 5883 /* If we haven't already determined the GOT offset, and we're going
0a61c8c2 5884 to need it, get it now. */
b49e97c9
TS
5885 switch (r_type)
5886 {
738e5348
RS
5887 case R_MIPS16_CALL16:
5888 case R_MIPS16_GOT16:
b49e97c9
TS
5889 case R_MIPS_CALL16:
5890 case R_MIPS_GOT16:
5891 case R_MIPS_GOT_DISP:
5892 case R_MIPS_GOT_HI16:
5893 case R_MIPS_CALL_HI16:
5894 case R_MIPS_GOT_LO16:
5895 case R_MIPS_CALL_LO16:
df58fc94
RS
5896 case R_MICROMIPS_CALL16:
5897 case R_MICROMIPS_GOT16:
5898 case R_MICROMIPS_GOT_DISP:
5899 case R_MICROMIPS_GOT_HI16:
5900 case R_MICROMIPS_CALL_HI16:
5901 case R_MICROMIPS_GOT_LO16:
5902 case R_MICROMIPS_CALL_LO16:
0f20cc35
DJ
5903 case R_MIPS_TLS_GD:
5904 case R_MIPS_TLS_GOTTPREL:
5905 case R_MIPS_TLS_LDM:
d0f13682
CLT
5906 case R_MIPS16_TLS_GD:
5907 case R_MIPS16_TLS_GOTTPREL:
5908 case R_MIPS16_TLS_LDM:
df58fc94
RS
5909 case R_MICROMIPS_TLS_GD:
5910 case R_MICROMIPS_TLS_GOTTPREL:
5911 case R_MICROMIPS_TLS_LDM:
b49e97c9 5912 /* Find the index into the GOT where this value is located. */
df58fc94 5913 if (tls_ldm_reloc_p (r_type))
0f20cc35 5914 {
0a44bf69 5915 g = mips_elf_local_got_index (abfd, input_bfd, info,
5c18022e 5916 0, 0, NULL, r_type);
0f20cc35
DJ
5917 if (g == MINUS_ONE)
5918 return bfd_reloc_outofrange;
5919 }
5920 else if (!local_p)
b49e97c9 5921 {
0a44bf69
RS
5922 /* On VxWorks, CALL relocations should refer to the .got.plt
5923 entry, which is initialized to point at the PLT stub. */
5924 if (htab->is_vxworks
df58fc94
RS
5925 && (call_hi16_reloc_p (r_type)
5926 || call_lo16_reloc_p (r_type)
738e5348 5927 || call16_reloc_p (r_type)))
0a44bf69
RS
5928 {
5929 BFD_ASSERT (addend == 0);
5930 BFD_ASSERT (h->root.needs_plt);
5931 g = mips_elf_gotplt_index (info, &h->root);
5932 }
5933 else
b49e97c9 5934 {
020d7251 5935 BFD_ASSERT (addend == 0);
13fbec83
RS
5936 g = mips_elf_global_got_index (abfd, info, input_bfd,
5937 &h->root, r_type);
e641e783 5938 if (!TLS_RELOC_P (r_type)
020d7251
RS
5939 && !elf_hash_table (info)->dynamic_sections_created)
5940 /* This is a static link. We must initialize the GOT entry. */
ce558b89 5941 MIPS_ELF_PUT_WORD (dynobj, symbol, htab->root.sgot->contents + g);
b49e97c9
TS
5942 }
5943 }
0a44bf69 5944 else if (!htab->is_vxworks
738e5348 5945 && (call16_reloc_p (r_type) || got16_reloc_p (r_type)))
0a44bf69 5946 /* The calculation below does not involve "g". */
b49e97c9
TS
5947 break;
5948 else
5949 {
5c18022e 5950 g = mips_elf_local_got_index (abfd, input_bfd, info,
0a44bf69 5951 symbol + addend, r_symndx, h, r_type);
b49e97c9
TS
5952 if (g == MINUS_ONE)
5953 return bfd_reloc_outofrange;
5954 }
5955
5956 /* Convert GOT indices to actual offsets. */
a8028dd0 5957 g = mips_elf_got_offset_from_index (info, abfd, input_bfd, g);
b49e97c9 5958 break;
b49e97c9
TS
5959 }
5960
0a44bf69
RS
5961 /* Relocations against the VxWorks __GOTT_BASE__ and __GOTT_INDEX__
5962 symbols are resolved by the loader. Add them to .rela.dyn. */
5963 if (h != NULL && is_gott_symbol (info, &h->root))
5964 {
5965 Elf_Internal_Rela outrel;
5966 bfd_byte *loc;
5967 asection *s;
5968
5969 s = mips_elf_rel_dyn_section (info, FALSE);
5970 loc = s->contents + s->reloc_count++ * sizeof (Elf32_External_Rela);
5971
5972 outrel.r_offset = (input_section->output_section->vma
5973 + input_section->output_offset
5974 + relocation->r_offset);
5975 outrel.r_info = ELF32_R_INFO (h->root.dynindx, r_type);
5976 outrel.r_addend = addend;
5977 bfd_elf32_swap_reloca_out (abfd, &outrel, loc);
9e3313ae
RS
5978
5979 /* If we've written this relocation for a readonly section,
5980 we need to set DF_TEXTREL again, so that we do not delete the
5981 DT_TEXTREL tag. */
5982 if (MIPS_ELF_READONLY_SECTION (input_section))
5983 info->flags |= DF_TEXTREL;
5984
0a44bf69
RS
5985 *valuep = 0;
5986 return bfd_reloc_ok;
5987 }
5988
b49e97c9
TS
5989 /* Figure out what kind of relocation is being performed. */
5990 switch (r_type)
5991 {
5992 case R_MIPS_NONE:
5993 return bfd_reloc_continue;
5994
5995 case R_MIPS_16:
c3eb94b4
MF
5996 if (howto->partial_inplace)
5997 addend = _bfd_mips_elf_sign_extend (addend, 16);
5998 value = symbol + addend;
b49e97c9
TS
5999 overflowed_p = mips_elf_overflow_p (value, 16);
6000 break;
6001
6002 case R_MIPS_32:
6003 case R_MIPS_REL32:
6004 case R_MIPS_64:
0e1862bb 6005 if ((bfd_link_pic (info)
861fb55a 6006 || (htab->root.dynamic_sections_created
b49e97c9 6007 && h != NULL
f5385ebf 6008 && h->root.def_dynamic
861fb55a
DJ
6009 && !h->root.def_regular
6010 && !h->has_static_relocs))
cf35638d 6011 && r_symndx != STN_UNDEF
9a59ad6b
DJ
6012 && (h == NULL
6013 || h->root.root.type != bfd_link_hash_undefweak
ad951203
L
6014 || (ELF_ST_VISIBILITY (h->root.other) == STV_DEFAULT
6015 && !resolved_to_zero))
b49e97c9
TS
6016 && (input_section->flags & SEC_ALLOC) != 0)
6017 {
861fb55a 6018 /* If we're creating a shared library, then we can't know
b49e97c9
TS
6019 where the symbol will end up. So, we create a relocation
6020 record in the output, and leave the job up to the dynamic
861fb55a
DJ
6021 linker. We must do the same for executable references to
6022 shared library symbols, unless we've decided to use copy
6023 relocs or PLTs instead. */
b49e97c9
TS
6024 value = addend;
6025 if (!mips_elf_create_dynamic_relocation (abfd,
6026 info,
6027 relocation,
6028 h,
6029 sec,
6030 symbol,
6031 &value,
6032 input_section))
6033 return bfd_reloc_undefined;
6034 }
6035 else
6036 {
6037 if (r_type != R_MIPS_REL32)
6038 value = symbol + addend;
6039 else
6040 value = addend;
6041 }
6042 value &= howto->dst_mask;
092dcd75
CD
6043 break;
6044
6045 case R_MIPS_PC32:
6046 value = symbol + addend - p;
6047 value &= howto->dst_mask;
b49e97c9
TS
6048 break;
6049
b49e97c9
TS
6050 case R_MIPS16_26:
6051 /* The calculation for R_MIPS16_26 is just the same as for an
6052 R_MIPS_26. It's only the storage of the relocated field into
6053 the output file that's different. That's handled in
6054 mips_elf_perform_relocation. So, we just fall through to the
6055 R_MIPS_26 case here. */
6056 case R_MIPS_26:
df58fc94
RS
6057 case R_MICROMIPS_26_S1:
6058 {
6059 unsigned int shift;
6060
df58fc94
RS
6061 /* Shift is 2, unusually, for microMIPS JALX. */
6062 shift = (!*cross_mode_jump_p && r_type == R_MICROMIPS_26_S1) ? 1 : 2;
6063
77434823 6064 if (howto->partial_inplace && !section_p)
df58fc94 6065 value = _bfd_mips_elf_sign_extend (addend, 26 + shift);
c3eb94b4
MF
6066 else
6067 value = addend;
bc27bb05
MR
6068 value += symbol;
6069
9d862524
MR
6070 /* Make sure the target of a jump is suitably aligned. Bit 0 must
6071 be the correct ISA mode selector except for weak undefined
6072 symbols. */
6073 if ((was_local_p || h->root.root.type != bfd_link_hash_undefweak)
6074 && (*cross_mode_jump_p
6075 ? (value & 3) != (r_type == R_MIPS_26)
07d6d2b8 6076 : (value & ((1 << shift) - 1)) != (r_type != R_MIPS_26)))
bc27bb05
MR
6077 return bfd_reloc_outofrange;
6078
6079 value >>= shift;
77434823 6080 if (was_local_p || h->root.root.type != bfd_link_hash_undefweak)
df58fc94
RS
6081 overflowed_p = (value >> 26) != ((p + 4) >> (26 + shift));
6082 value &= howto->dst_mask;
6083 }
b49e97c9
TS
6084 break;
6085
0f20cc35 6086 case R_MIPS_TLS_DTPREL_HI16:
d0f13682 6087 case R_MIPS16_TLS_DTPREL_HI16:
df58fc94 6088 case R_MICROMIPS_TLS_DTPREL_HI16:
0f20cc35
DJ
6089 value = (mips_elf_high (addend + symbol - dtprel_base (info))
6090 & howto->dst_mask);
6091 break;
6092
6093 case R_MIPS_TLS_DTPREL_LO16:
741d6ea8
JM
6094 case R_MIPS_TLS_DTPREL32:
6095 case R_MIPS_TLS_DTPREL64:
d0f13682 6096 case R_MIPS16_TLS_DTPREL_LO16:
df58fc94 6097 case R_MICROMIPS_TLS_DTPREL_LO16:
0f20cc35
DJ
6098 value = (symbol + addend - dtprel_base (info)) & howto->dst_mask;
6099 break;
6100
6101 case R_MIPS_TLS_TPREL_HI16:
d0f13682 6102 case R_MIPS16_TLS_TPREL_HI16:
df58fc94 6103 case R_MICROMIPS_TLS_TPREL_HI16:
0f20cc35
DJ
6104 value = (mips_elf_high (addend + symbol - tprel_base (info))
6105 & howto->dst_mask);
6106 break;
6107
6108 case R_MIPS_TLS_TPREL_LO16:
d0f13682
CLT
6109 case R_MIPS_TLS_TPREL32:
6110 case R_MIPS_TLS_TPREL64:
6111 case R_MIPS16_TLS_TPREL_LO16:
df58fc94 6112 case R_MICROMIPS_TLS_TPREL_LO16:
0f20cc35
DJ
6113 value = (symbol + addend - tprel_base (info)) & howto->dst_mask;
6114 break;
6115
b49e97c9 6116 case R_MIPS_HI16:
d6f16593 6117 case R_MIPS16_HI16:
df58fc94 6118 case R_MICROMIPS_HI16:
b49e97c9
TS
6119 if (!gp_disp_p)
6120 {
6121 value = mips_elf_high (addend + symbol);
6122 value &= howto->dst_mask;
6123 }
6124 else
6125 {
d6f16593 6126 /* For MIPS16 ABI code we generate this sequence
07d6d2b8
AM
6127 0: li $v0,%hi(_gp_disp)
6128 4: addiupc $v1,%lo(_gp_disp)
6129 8: sll $v0,16
d6f16593
MR
6130 12: addu $v0,$v1
6131 14: move $gp,$v0
6132 So the offsets of hi and lo relocs are the same, but the
888b9c01
CLT
6133 base $pc is that used by the ADDIUPC instruction at $t9 + 4.
6134 ADDIUPC clears the low two bits of the instruction address,
6135 so the base is ($t9 + 4) & ~3. */
d6f16593 6136 if (r_type == R_MIPS16_HI16)
888b9c01 6137 value = mips_elf_high (addend + gp - ((p + 4) & ~(bfd_vma) 0x3));
df58fc94
RS
6138 /* The microMIPS .cpload sequence uses the same assembly
6139 instructions as the traditional psABI version, but the
6140 incoming $t9 has the low bit set. */
6141 else if (r_type == R_MICROMIPS_HI16)
6142 value = mips_elf_high (addend + gp - p - 1);
d6f16593
MR
6143 else
6144 value = mips_elf_high (addend + gp - p);
b49e97c9
TS
6145 }
6146 break;
6147
6148 case R_MIPS_LO16:
d6f16593 6149 case R_MIPS16_LO16:
df58fc94
RS
6150 case R_MICROMIPS_LO16:
6151 case R_MICROMIPS_HI0_LO16:
b49e97c9
TS
6152 if (!gp_disp_p)
6153 value = (symbol + addend) & howto->dst_mask;
6154 else
6155 {
d6f16593
MR
6156 /* See the comment for R_MIPS16_HI16 above for the reason
6157 for this conditional. */
6158 if (r_type == R_MIPS16_LO16)
888b9c01 6159 value = addend + gp - (p & ~(bfd_vma) 0x3);
df58fc94
RS
6160 else if (r_type == R_MICROMIPS_LO16
6161 || r_type == R_MICROMIPS_HI0_LO16)
6162 value = addend + gp - p + 3;
d6f16593
MR
6163 else
6164 value = addend + gp - p + 4;
b49e97c9 6165 /* The MIPS ABI requires checking the R_MIPS_LO16 relocation
8dc1a139 6166 for overflow. But, on, say, IRIX5, relocations against
b49e97c9
TS
6167 _gp_disp are normally generated from the .cpload
6168 pseudo-op. It generates code that normally looks like
6169 this:
6170
6171 lui $gp,%hi(_gp_disp)
6172 addiu $gp,$gp,%lo(_gp_disp)
6173 addu $gp,$gp,$t9
6174
6175 Here $t9 holds the address of the function being called,
6176 as required by the MIPS ELF ABI. The R_MIPS_LO16
6177 relocation can easily overflow in this situation, but the
6178 R_MIPS_HI16 relocation will handle the overflow.
6179 Therefore, we consider this a bug in the MIPS ABI, and do
6180 not check for overflow here. */
6181 }
6182 break;
6183
6184 case R_MIPS_LITERAL:
df58fc94 6185 case R_MICROMIPS_LITERAL:
b49e97c9
TS
6186 /* Because we don't merge literal sections, we can handle this
6187 just like R_MIPS_GPREL16. In the long run, we should merge
6188 shared literals, and then we will need to additional work
6189 here. */
6190
6191 /* Fall through. */
6192
6193 case R_MIPS16_GPREL:
6194 /* The R_MIPS16_GPREL performs the same calculation as
6195 R_MIPS_GPREL16, but stores the relocated bits in a different
6196 order. We don't need to do anything special here; the
6197 differences are handled in mips_elf_perform_relocation. */
6198 case R_MIPS_GPREL16:
df58fc94
RS
6199 case R_MICROMIPS_GPREL7_S2:
6200 case R_MICROMIPS_GPREL16:
bce03d3d
AO
6201 /* Only sign-extend the addend if it was extracted from the
6202 instruction. If the addend was separate, leave it alone,
6203 otherwise we may lose significant bits. */
6204 if (howto->partial_inplace)
a7ebbfdf 6205 addend = _bfd_mips_elf_sign_extend (addend, 16);
bce03d3d
AO
6206 value = symbol + addend - gp;
6207 /* If the symbol was local, any earlier relocatable links will
6208 have adjusted its addend with the gp offset, so compensate
6209 for that now. Don't do it for symbols forced local in this
6210 link, though, since they won't have had the gp offset applied
6211 to them before. */
6212 if (was_local_p)
6213 value += gp0;
538baf8b
AB
6214 if (was_local_p || h->root.root.type != bfd_link_hash_undefweak)
6215 overflowed_p = mips_elf_overflow_p (value, 16);
b49e97c9
TS
6216 break;
6217
738e5348
RS
6218 case R_MIPS16_GOT16:
6219 case R_MIPS16_CALL16:
b49e97c9
TS
6220 case R_MIPS_GOT16:
6221 case R_MIPS_CALL16:
df58fc94
RS
6222 case R_MICROMIPS_GOT16:
6223 case R_MICROMIPS_CALL16:
0a44bf69 6224 /* VxWorks does not have separate local and global semantics for
738e5348 6225 R_MIPS*_GOT16; every relocation evaluates to "G". */
0a44bf69 6226 if (!htab->is_vxworks && local_p)
b49e97c9 6227 {
5c18022e 6228 value = mips_elf_got16_entry (abfd, input_bfd, info,
020d7251 6229 symbol + addend, !was_local_p);
b49e97c9
TS
6230 if (value == MINUS_ONE)
6231 return bfd_reloc_outofrange;
6232 value
a8028dd0 6233 = mips_elf_got_offset_from_index (info, abfd, input_bfd, value);
b49e97c9
TS
6234 overflowed_p = mips_elf_overflow_p (value, 16);
6235 break;
6236 }
6237
6238 /* Fall through. */
6239
0f20cc35
DJ
6240 case R_MIPS_TLS_GD:
6241 case R_MIPS_TLS_GOTTPREL:
6242 case R_MIPS_TLS_LDM:
b49e97c9 6243 case R_MIPS_GOT_DISP:
d0f13682
CLT
6244 case R_MIPS16_TLS_GD:
6245 case R_MIPS16_TLS_GOTTPREL:
6246 case R_MIPS16_TLS_LDM:
df58fc94
RS
6247 case R_MICROMIPS_TLS_GD:
6248 case R_MICROMIPS_TLS_GOTTPREL:
6249 case R_MICROMIPS_TLS_LDM:
6250 case R_MICROMIPS_GOT_DISP:
b49e97c9
TS
6251 value = g;
6252 overflowed_p = mips_elf_overflow_p (value, 16);
6253 break;
6254
6255 case R_MIPS_GPREL32:
bce03d3d
AO
6256 value = (addend + symbol + gp0 - gp);
6257 if (!save_addend)
6258 value &= howto->dst_mask;
b49e97c9
TS
6259 break;
6260
6261 case R_MIPS_PC16:
bad36eac 6262 case R_MIPS_GNU_REL16_S2:
c3eb94b4
MF
6263 if (howto->partial_inplace)
6264 addend = _bfd_mips_elf_sign_extend (addend, 18);
6265
9d862524 6266 /* No need to exclude weak undefined symbols here as they resolve
07d6d2b8
AM
6267 to 0 and never set `*cross_mode_jump_p', so this alignment check
6268 will never trigger for them. */
9d862524
MR
6269 if (*cross_mode_jump_p
6270 ? ((symbol + addend) & 3) != 1
6271 : ((symbol + addend) & 3) != 0)
c3eb94b4
MF
6272 return bfd_reloc_outofrange;
6273
6274 value = symbol + addend - p;
538baf8b
AB
6275 if (was_local_p || h->root.root.type != bfd_link_hash_undefweak)
6276 overflowed_p = mips_elf_overflow_p (value, 18);
37caec6b
TS
6277 value >>= howto->rightshift;
6278 value &= howto->dst_mask;
b49e97c9
TS
6279 break;
6280
c9775dde
MR
6281 case R_MIPS16_PC16_S1:
6282 if (howto->partial_inplace)
6283 addend = _bfd_mips_elf_sign_extend (addend, 17);
6284
6285 if ((was_local_p || h->root.root.type != bfd_link_hash_undefweak)
9d862524
MR
6286 && (*cross_mode_jump_p
6287 ? ((symbol + addend) & 3) != 0
6288 : ((symbol + addend) & 1) == 0))
c9775dde
MR
6289 return bfd_reloc_outofrange;
6290
6291 value = symbol + addend - p;
6292 if (was_local_p || h->root.root.type != bfd_link_hash_undefweak)
6293 overflowed_p = mips_elf_overflow_p (value, 17);
6294 value >>= howto->rightshift;
6295 value &= howto->dst_mask;
6296 break;
6297
7361da2c
AB
6298 case R_MIPS_PC21_S2:
6299 if (howto->partial_inplace)
6300 addend = _bfd_mips_elf_sign_extend (addend, 23);
6301
6302 if ((symbol + addend) & 3)
6303 return bfd_reloc_outofrange;
6304
6305 value = symbol + addend - p;
538baf8b
AB
6306 if (was_local_p || h->root.root.type != bfd_link_hash_undefweak)
6307 overflowed_p = mips_elf_overflow_p (value, 23);
7361da2c
AB
6308 value >>= howto->rightshift;
6309 value &= howto->dst_mask;
6310 break;
6311
6312 case R_MIPS_PC26_S2:
6313 if (howto->partial_inplace)
6314 addend = _bfd_mips_elf_sign_extend (addend, 28);
6315
6316 if ((symbol + addend) & 3)
6317 return bfd_reloc_outofrange;
6318
6319 value = symbol + addend - p;
538baf8b
AB
6320 if (was_local_p || h->root.root.type != bfd_link_hash_undefweak)
6321 overflowed_p = mips_elf_overflow_p (value, 28);
7361da2c
AB
6322 value >>= howto->rightshift;
6323 value &= howto->dst_mask;
6324 break;
6325
6326 case R_MIPS_PC18_S3:
6327 if (howto->partial_inplace)
6328 addend = _bfd_mips_elf_sign_extend (addend, 21);
6329
6330 if ((symbol + addend) & 7)
6331 return bfd_reloc_outofrange;
6332
6333 value = symbol + addend - ((p | 7) ^ 7);
538baf8b
AB
6334 if (was_local_p || h->root.root.type != bfd_link_hash_undefweak)
6335 overflowed_p = mips_elf_overflow_p (value, 21);
7361da2c
AB
6336 value >>= howto->rightshift;
6337 value &= howto->dst_mask;
6338 break;
6339
6340 case R_MIPS_PC19_S2:
6341 if (howto->partial_inplace)
6342 addend = _bfd_mips_elf_sign_extend (addend, 21);
6343
6344 if ((symbol + addend) & 3)
6345 return bfd_reloc_outofrange;
6346
6347 value = symbol + addend - p;
538baf8b
AB
6348 if (was_local_p || h->root.root.type != bfd_link_hash_undefweak)
6349 overflowed_p = mips_elf_overflow_p (value, 21);
7361da2c
AB
6350 value >>= howto->rightshift;
6351 value &= howto->dst_mask;
6352 break;
6353
6354 case R_MIPS_PCHI16:
6355 value = mips_elf_high (symbol + addend - p);
7361da2c
AB
6356 value &= howto->dst_mask;
6357 break;
6358
6359 case R_MIPS_PCLO16:
6360 if (howto->partial_inplace)
6361 addend = _bfd_mips_elf_sign_extend (addend, 16);
6362 value = symbol + addend - p;
6363 value &= howto->dst_mask;
6364 break;
6365
df58fc94 6366 case R_MICROMIPS_PC7_S1:
c3eb94b4
MF
6367 if (howto->partial_inplace)
6368 addend = _bfd_mips_elf_sign_extend (addend, 8);
9d862524
MR
6369
6370 if ((was_local_p || h->root.root.type != bfd_link_hash_undefweak)
6371 && (*cross_mode_jump_p
6372 ? ((symbol + addend + 2) & 3) != 0
6373 : ((symbol + addend + 2) & 1) == 0))
6374 return bfd_reloc_outofrange;
6375
c3eb94b4 6376 value = symbol + addend - p;
538baf8b
AB
6377 if (was_local_p || h->root.root.type != bfd_link_hash_undefweak)
6378 overflowed_p = mips_elf_overflow_p (value, 8);
df58fc94
RS
6379 value >>= howto->rightshift;
6380 value &= howto->dst_mask;
6381 break;
6382
6383 case R_MICROMIPS_PC10_S1:
c3eb94b4
MF
6384 if (howto->partial_inplace)
6385 addend = _bfd_mips_elf_sign_extend (addend, 11);
9d862524
MR
6386
6387 if ((was_local_p || h->root.root.type != bfd_link_hash_undefweak)
6388 && (*cross_mode_jump_p
6389 ? ((symbol + addend + 2) & 3) != 0
6390 : ((symbol + addend + 2) & 1) == 0))
6391 return bfd_reloc_outofrange;
6392
c3eb94b4 6393 value = symbol + addend - p;
538baf8b
AB
6394 if (was_local_p || h->root.root.type != bfd_link_hash_undefweak)
6395 overflowed_p = mips_elf_overflow_p (value, 11);
df58fc94
RS
6396 value >>= howto->rightshift;
6397 value &= howto->dst_mask;
6398 break;
6399
6400 case R_MICROMIPS_PC16_S1:
c3eb94b4
MF
6401 if (howto->partial_inplace)
6402 addend = _bfd_mips_elf_sign_extend (addend, 17);
9d862524
MR
6403
6404 if ((was_local_p || h->root.root.type != bfd_link_hash_undefweak)
6405 && (*cross_mode_jump_p
6406 ? ((symbol + addend) & 3) != 0
6407 : ((symbol + addend) & 1) == 0))
6408 return bfd_reloc_outofrange;
6409
c3eb94b4 6410 value = symbol + addend - p;
538baf8b
AB
6411 if (was_local_p || h->root.root.type != bfd_link_hash_undefweak)
6412 overflowed_p = mips_elf_overflow_p (value, 17);
df58fc94
RS
6413 value >>= howto->rightshift;
6414 value &= howto->dst_mask;
6415 break;
6416
6417 case R_MICROMIPS_PC23_S2:
c3eb94b4
MF
6418 if (howto->partial_inplace)
6419 addend = _bfd_mips_elf_sign_extend (addend, 25);
6420 value = symbol + addend - ((p | 3) ^ 3);
538baf8b
AB
6421 if (was_local_p || h->root.root.type != bfd_link_hash_undefweak)
6422 overflowed_p = mips_elf_overflow_p (value, 25);
df58fc94
RS
6423 value >>= howto->rightshift;
6424 value &= howto->dst_mask;
6425 break;
6426
b49e97c9
TS
6427 case R_MIPS_GOT_HI16:
6428 case R_MIPS_CALL_HI16:
df58fc94
RS
6429 case R_MICROMIPS_GOT_HI16:
6430 case R_MICROMIPS_CALL_HI16:
b49e97c9
TS
6431 /* We're allowed to handle these two relocations identically.
6432 The dynamic linker is allowed to handle the CALL relocations
6433 differently by creating a lazy evaluation stub. */
6434 value = g;
6435 value = mips_elf_high (value);
6436 value &= howto->dst_mask;
6437 break;
6438
6439 case R_MIPS_GOT_LO16:
6440 case R_MIPS_CALL_LO16:
df58fc94
RS
6441 case R_MICROMIPS_GOT_LO16:
6442 case R_MICROMIPS_CALL_LO16:
b49e97c9
TS
6443 value = g & howto->dst_mask;
6444 break;
6445
6446 case R_MIPS_GOT_PAGE:
df58fc94 6447 case R_MICROMIPS_GOT_PAGE:
5c18022e 6448 value = mips_elf_got_page (abfd, input_bfd, info, symbol + addend, NULL);
b49e97c9
TS
6449 if (value == MINUS_ONE)
6450 return bfd_reloc_outofrange;
a8028dd0 6451 value = mips_elf_got_offset_from_index (info, abfd, input_bfd, value);
b49e97c9
TS
6452 overflowed_p = mips_elf_overflow_p (value, 16);
6453 break;
6454
6455 case R_MIPS_GOT_OFST:
df58fc94 6456 case R_MICROMIPS_GOT_OFST:
93a2b7ae 6457 if (local_p)
5c18022e 6458 mips_elf_got_page (abfd, input_bfd, info, symbol + addend, &value);
0fdc1bf1
AO
6459 else
6460 value = addend;
b49e97c9
TS
6461 overflowed_p = mips_elf_overflow_p (value, 16);
6462 break;
6463
6464 case R_MIPS_SUB:
df58fc94 6465 case R_MICROMIPS_SUB:
b49e97c9
TS
6466 value = symbol - addend;
6467 value &= howto->dst_mask;
6468 break;
6469
6470 case R_MIPS_HIGHER:
df58fc94 6471 case R_MICROMIPS_HIGHER:
b49e97c9
TS
6472 value = mips_elf_higher (addend + symbol);
6473 value &= howto->dst_mask;
6474 break;
6475
6476 case R_MIPS_HIGHEST:
df58fc94 6477 case R_MICROMIPS_HIGHEST:
b49e97c9
TS
6478 value = mips_elf_highest (addend + symbol);
6479 value &= howto->dst_mask;
6480 break;
6481
6482 case R_MIPS_SCN_DISP:
df58fc94 6483 case R_MICROMIPS_SCN_DISP:
b49e97c9
TS
6484 value = symbol + addend - sec->output_offset;
6485 value &= howto->dst_mask;
6486 break;
6487
b49e97c9 6488 case R_MIPS_JALR:
df58fc94 6489 case R_MICROMIPS_JALR:
1367d393
ILT
6490 /* This relocation is only a hint. In some cases, we optimize
6491 it into a bal instruction. But we don't try to optimize
5bbc5ae7
AN
6492 when the symbol does not resolve locally. */
6493 if (h != NULL && !SYMBOL_CALLS_LOCAL (info, &h->root))
1367d393 6494 return bfd_reloc_continue;
c1556ecd
MR
6495 /* We can't optimize cross-mode jumps either. */
6496 if (*cross_mode_jump_p)
6497 return bfd_reloc_continue;
1367d393 6498 value = symbol + addend;
c1556ecd
MR
6499 /* Neither we can non-instruction-aligned targets. */
6500 if (r_type == R_MIPS_JALR ? (value & 3) != 0 : (value & 1) == 0)
6501 return bfd_reloc_continue;
1367d393 6502 break;
b49e97c9 6503
1367d393 6504 case R_MIPS_PJUMP:
b49e97c9
TS
6505 case R_MIPS_GNU_VTINHERIT:
6506 case R_MIPS_GNU_VTENTRY:
6507 /* We don't do anything with these at present. */
6508 return bfd_reloc_continue;
6509
6510 default:
6511 /* An unrecognized relocation type. */
6512 return bfd_reloc_notsupported;
6513 }
6514
6515 /* Store the VALUE for our caller. */
6516 *valuep = value;
6517 return overflowed_p ? bfd_reloc_overflow : bfd_reloc_ok;
6518}
6519
b49e97c9
TS
6520/* It has been determined that the result of the RELOCATION is the
6521 VALUE. Use HOWTO to place VALUE into the output file at the
6522 appropriate position. The SECTION is the section to which the
68ffbac6 6523 relocation applies.
38a7df63 6524 CROSS_MODE_JUMP_P is true if the relocation field
df58fc94 6525 is a MIPS16 or microMIPS jump to standard MIPS code, or vice versa.
b49e97c9 6526
b34976b6 6527 Returns FALSE if anything goes wrong. */
b49e97c9 6528
b34976b6 6529static bfd_boolean
9719ad41
RS
6530mips_elf_perform_relocation (struct bfd_link_info *info,
6531 reloc_howto_type *howto,
6532 const Elf_Internal_Rela *relocation,
6533 bfd_vma value, bfd *input_bfd,
6534 asection *input_section, bfd_byte *contents,
38a7df63 6535 bfd_boolean cross_mode_jump_p)
b49e97c9
TS
6536{
6537 bfd_vma x;
6538 bfd_byte *location;
6539 int r_type = ELF_R_TYPE (input_bfd, relocation->r_info);
6540
6541 /* Figure out where the relocation is occurring. */
6542 location = contents + relocation->r_offset;
6543
df58fc94 6544 _bfd_mips_elf_reloc_unshuffle (input_bfd, r_type, FALSE, location);
d6f16593 6545
b49e97c9
TS
6546 /* Obtain the current value. */
6547 x = mips_elf_obtain_contents (howto, relocation, input_bfd, contents);
6548
6549 /* Clear the field we are setting. */
6550 x &= ~howto->dst_mask;
6551
b49e97c9
TS
6552 /* Set the field. */
6553 x |= (value & howto->dst_mask);
6554
a6ebf616 6555 /* Detect incorrect JALX usage. If required, turn JAL or BAL into JALX. */
9d862524
MR
6556 if (!cross_mode_jump_p && jal_reloc_p (r_type))
6557 {
6558 bfd_vma opcode = x >> 26;
6559
6560 if (r_type == R_MIPS16_26 ? opcode == 0x7
6561 : r_type == R_MICROMIPS_26_S1 ? opcode == 0x3c
6562 : opcode == 0x1d)
6563 {
6564 info->callbacks->einfo
2c1c9679 6565 (_("%X%H: unsupported JALX to the same ISA mode\n"),
9d862524
MR
6566 input_bfd, input_section, relocation->r_offset);
6567 return TRUE;
6568 }
6569 }
38a7df63 6570 if (cross_mode_jump_p && jal_reloc_p (r_type))
b49e97c9 6571 {
b34976b6 6572 bfd_boolean ok;
b49e97c9
TS
6573 bfd_vma opcode = x >> 26;
6574 bfd_vma jalx_opcode;
6575
6576 /* Check to see if the opcode is already JAL or JALX. */
6577 if (r_type == R_MIPS16_26)
6578 {
6579 ok = ((opcode == 0x6) || (opcode == 0x7));
6580 jalx_opcode = 0x7;
6581 }
df58fc94
RS
6582 else if (r_type == R_MICROMIPS_26_S1)
6583 {
6584 ok = ((opcode == 0x3d) || (opcode == 0x3c));
6585 jalx_opcode = 0x3c;
6586 }
b49e97c9
TS
6587 else
6588 {
6589 ok = ((opcode == 0x3) || (opcode == 0x1d));
6590 jalx_opcode = 0x1d;
6591 }
6592
3bdf9505 6593 /* If the opcode is not JAL or JALX, there's a problem. We cannot
07d6d2b8 6594 convert J or JALS to JALX. */
b49e97c9
TS
6595 if (!ok)
6596 {
5f68df25 6597 info->callbacks->einfo
2c1c9679 6598 (_("%X%H: unsupported jump between ISA modes; "
5f68df25
MR
6599 "consider recompiling with interlinking enabled\n"),
6600 input_bfd, input_section, relocation->r_offset);
6601 return TRUE;
b49e97c9
TS
6602 }
6603
6604 /* Make this the JALX opcode. */
6605 x = (x & ~(0x3f << 26)) | (jalx_opcode << 26);
6606 }
9d862524
MR
6607 else if (cross_mode_jump_p && b_reloc_p (r_type))
6608 {
a6ebf616
MR
6609 bfd_boolean ok = FALSE;
6610 bfd_vma opcode = x >> 16;
6611 bfd_vma jalx_opcode = 0;
70e65ca8 6612 bfd_vma sign_bit = 0;
a6ebf616
MR
6613 bfd_vma addr;
6614 bfd_vma dest;
6615
6616 if (r_type == R_MICROMIPS_PC16_S1)
6617 {
6618 ok = opcode == 0x4060;
6619 jalx_opcode = 0x3c;
70e65ca8 6620 sign_bit = 0x10000;
a6ebf616
MR
6621 value <<= 1;
6622 }
6623 else if (r_type == R_MIPS_PC16 || r_type == R_MIPS_GNU_REL16_S2)
6624 {
6625 ok = opcode == 0x411;
6626 jalx_opcode = 0x1d;
70e65ca8 6627 sign_bit = 0x20000;
a6ebf616
MR
6628 value <<= 2;
6629 }
6630
8b10b0b3 6631 if (ok && !bfd_link_pic (info))
a6ebf616 6632 {
8b10b0b3
MR
6633 addr = (input_section->output_section->vma
6634 + input_section->output_offset
6635 + relocation->r_offset
6636 + 4);
70e65ca8
MR
6637 dest = (addr
6638 + (((value & ((sign_bit << 1) - 1)) ^ sign_bit) - sign_bit));
a6ebf616 6639
8b10b0b3
MR
6640 if ((addr >> 28) << 28 != (dest >> 28) << 28)
6641 {
6642 info->callbacks->einfo
2c1c9679 6643 (_("%X%H: cannot convert branch between ISA modes "
8b10b0b3
MR
6644 "to JALX: relocation out of range\n"),
6645 input_bfd, input_section, relocation->r_offset);
6646 return TRUE;
6647 }
a6ebf616 6648
8b10b0b3
MR
6649 /* Make this the JALX opcode. */
6650 x = ((dest >> 2) & 0x3ffffff) | jalx_opcode << 26;
6651 }
6652 else if (!mips_elf_hash_table (info)->ignore_branch_isa)
a6ebf616
MR
6653 {
6654 info->callbacks->einfo
2c1c9679 6655 (_("%X%H: unsupported branch between ISA modes\n"),
a6ebf616
MR
6656 input_bfd, input_section, relocation->r_offset);
6657 return TRUE;
6658 }
9d862524 6659 }
b49e97c9 6660
38a7df63
CF
6661 /* Try converting JAL to BAL and J(AL)R to B(AL), if the target is in
6662 range. */
0e1862bb 6663 if (!bfd_link_relocatable (info)
38a7df63 6664 && !cross_mode_jump_p
cd8d5a82
CF
6665 && ((JAL_TO_BAL_P (input_bfd)
6666 && r_type == R_MIPS_26
0e392101 6667 && (x >> 26) == 0x3) /* jal addr */
cd8d5a82
CF
6668 || (JALR_TO_BAL_P (input_bfd)
6669 && r_type == R_MIPS_JALR
0e392101 6670 && x == 0x0320f809) /* jalr t9 */
38a7df63
CF
6671 || (JR_TO_B_P (input_bfd)
6672 && r_type == R_MIPS_JALR
0e392101 6673 && (x & ~1) == 0x03200008))) /* jr t9 / jalr zero, t9 */
1367d393
ILT
6674 {
6675 bfd_vma addr;
6676 bfd_vma dest;
6677 bfd_signed_vma off;
6678
6679 addr = (input_section->output_section->vma
6680 + input_section->output_offset
6681 + relocation->r_offset
6682 + 4);
6683 if (r_type == R_MIPS_26)
6684 dest = (value << 2) | ((addr >> 28) << 28);
6685 else
6686 dest = value;
6687 off = dest - addr;
6688 if (off <= 0x1ffff && off >= -0x20000)
38a7df63 6689 {
0e392101 6690 if ((x & ~1) == 0x03200008) /* jr t9 / jalr zero, t9 */
38a7df63
CF
6691 x = 0x10000000 | (((bfd_vma) off >> 2) & 0xffff); /* b addr */
6692 else
6693 x = 0x04110000 | (((bfd_vma) off >> 2) & 0xffff); /* bal addr */
6694 }
1367d393
ILT
6695 }
6696
b49e97c9 6697 /* Put the value into the output. */
98e10ffa 6698 mips_elf_store_contents (howto, relocation, input_bfd, contents, x);
d6f16593 6699
0e1862bb 6700 _bfd_mips_elf_reloc_shuffle (input_bfd, r_type, !bfd_link_relocatable (info),
df58fc94 6701 location);
d6f16593 6702
b34976b6 6703 return TRUE;
b49e97c9 6704}
b49e97c9 6705\f
b49e97c9
TS
6706/* Create a rel.dyn relocation for the dynamic linker to resolve. REL
6707 is the original relocation, which is now being transformed into a
6708 dynamic relocation. The ADDENDP is adjusted if necessary; the
6709 caller should store the result in place of the original addend. */
6710
b34976b6 6711static bfd_boolean
9719ad41
RS
6712mips_elf_create_dynamic_relocation (bfd *output_bfd,
6713 struct bfd_link_info *info,
6714 const Elf_Internal_Rela *rel,
6715 struct mips_elf_link_hash_entry *h,
6716 asection *sec, bfd_vma symbol,
6717 bfd_vma *addendp, asection *input_section)
b49e97c9 6718{
947216bf 6719 Elf_Internal_Rela outrel[3];
b49e97c9
TS
6720 asection *sreloc;
6721 bfd *dynobj;
6722 int r_type;
5d41f0b6
RS
6723 long indx;
6724 bfd_boolean defined_p;
0a44bf69 6725 struct mips_elf_link_hash_table *htab;
b49e97c9 6726
0a44bf69 6727 htab = mips_elf_hash_table (info);
4dfe6ac6
NC
6728 BFD_ASSERT (htab != NULL);
6729
b49e97c9
TS
6730 r_type = ELF_R_TYPE (output_bfd, rel->r_info);
6731 dynobj = elf_hash_table (info)->dynobj;
0a44bf69 6732 sreloc = mips_elf_rel_dyn_section (info, FALSE);
b49e97c9
TS
6733 BFD_ASSERT (sreloc != NULL);
6734 BFD_ASSERT (sreloc->contents != NULL);
6735 BFD_ASSERT (sreloc->reloc_count * MIPS_ELF_REL_SIZE (output_bfd)
eea6121a 6736 < sreloc->size);
b49e97c9 6737
b49e97c9
TS
6738 outrel[0].r_offset =
6739 _bfd_elf_section_offset (output_bfd, info, input_section, rel[0].r_offset);
9ddf8309
TS
6740 if (ABI_64_P (output_bfd))
6741 {
6742 outrel[1].r_offset =
6743 _bfd_elf_section_offset (output_bfd, info, input_section, rel[1].r_offset);
6744 outrel[2].r_offset =
6745 _bfd_elf_section_offset (output_bfd, info, input_section, rel[2].r_offset);
6746 }
b49e97c9 6747
c5ae1840 6748 if (outrel[0].r_offset == MINUS_ONE)
0d591ff7 6749 /* The relocation field has been deleted. */
5d41f0b6
RS
6750 return TRUE;
6751
6752 if (outrel[0].r_offset == MINUS_TWO)
0d591ff7
RS
6753 {
6754 /* The relocation field has been converted into a relative value of
6755 some sort. Functions like _bfd_elf_write_section_eh_frame expect
6756 the field to be fully relocated, so add in the symbol's value. */
0d591ff7 6757 *addendp += symbol;
5d41f0b6 6758 return TRUE;
0d591ff7 6759 }
b49e97c9 6760
5d41f0b6
RS
6761 /* We must now calculate the dynamic symbol table index to use
6762 in the relocation. */
d4a77f3f 6763 if (h != NULL && ! SYMBOL_REFERENCES_LOCAL (info, &h->root))
5d41f0b6 6764 {
020d7251 6765 BFD_ASSERT (htab->is_vxworks || h->global_got_area != GGA_NONE);
5d41f0b6
RS
6766 indx = h->root.dynindx;
6767 if (SGI_COMPAT (output_bfd))
6768 defined_p = h->root.def_regular;
6769 else
6770 /* ??? glibc's ld.so just adds the final GOT entry to the
6771 relocation field. It therefore treats relocs against
6772 defined symbols in the same way as relocs against
6773 undefined symbols. */
6774 defined_p = FALSE;
6775 }
b49e97c9
TS
6776 else
6777 {
5d41f0b6
RS
6778 if (sec != NULL && bfd_is_abs_section (sec))
6779 indx = 0;
6780 else if (sec == NULL || sec->owner == NULL)
fdd07405 6781 {
5d41f0b6
RS
6782 bfd_set_error (bfd_error_bad_value);
6783 return FALSE;
b49e97c9
TS
6784 }
6785 else
6786 {
5d41f0b6 6787 indx = elf_section_data (sec->output_section)->dynindx;
74541ad4
AM
6788 if (indx == 0)
6789 {
6790 asection *osec = htab->root.text_index_section;
6791 indx = elf_section_data (osec)->dynindx;
6792 }
5d41f0b6
RS
6793 if (indx == 0)
6794 abort ();
b49e97c9
TS
6795 }
6796
5d41f0b6
RS
6797 /* Instead of generating a relocation using the section
6798 symbol, we may as well make it a fully relative
6799 relocation. We want to avoid generating relocations to
6800 local symbols because we used to generate them
6801 incorrectly, without adding the original symbol value,
6802 which is mandated by the ABI for section symbols. In
6803 order to give dynamic loaders and applications time to
6804 phase out the incorrect use, we refrain from emitting
6805 section-relative relocations. It's not like they're
6806 useful, after all. This should be a bit more efficient
6807 as well. */
6808 /* ??? Although this behavior is compatible with glibc's ld.so,
6809 the ABI says that relocations against STN_UNDEF should have
6810 a symbol value of 0. Irix rld honors this, so relocations
6811 against STN_UNDEF have no effect. */
6812 if (!SGI_COMPAT (output_bfd))
6813 indx = 0;
6814 defined_p = TRUE;
b49e97c9
TS
6815 }
6816
5d41f0b6
RS
6817 /* If the relocation was previously an absolute relocation and
6818 this symbol will not be referred to by the relocation, we must
6819 adjust it by the value we give it in the dynamic symbol table.
6820 Otherwise leave the job up to the dynamic linker. */
6821 if (defined_p && r_type != R_MIPS_REL32)
6822 *addendp += symbol;
6823
0a44bf69
RS
6824 if (htab->is_vxworks)
6825 /* VxWorks uses non-relative relocations for this. */
6826 outrel[0].r_info = ELF32_R_INFO (indx, R_MIPS_32);
6827 else
6828 /* The relocation is always an REL32 relocation because we don't
6829 know where the shared library will wind up at load-time. */
6830 outrel[0].r_info = ELF_R_INFO (output_bfd, (unsigned long) indx,
6831 R_MIPS_REL32);
6832
5d41f0b6
RS
6833 /* For strict adherence to the ABI specification, we should
6834 generate a R_MIPS_64 relocation record by itself before the
6835 _REL32/_64 record as well, such that the addend is read in as
6836 a 64-bit value (REL32 is a 32-bit relocation, after all).
6837 However, since none of the existing ELF64 MIPS dynamic
6838 loaders seems to care, we don't waste space with these
6839 artificial relocations. If this turns out to not be true,
6840 mips_elf_allocate_dynamic_relocation() should be tweaked so
6841 as to make room for a pair of dynamic relocations per
6842 invocation if ABI_64_P, and here we should generate an
6843 additional relocation record with R_MIPS_64 by itself for a
6844 NULL symbol before this relocation record. */
6845 outrel[1].r_info = ELF_R_INFO (output_bfd, 0,
6846 ABI_64_P (output_bfd)
6847 ? R_MIPS_64
6848 : R_MIPS_NONE);
6849 outrel[2].r_info = ELF_R_INFO (output_bfd, 0, R_MIPS_NONE);
6850
6851 /* Adjust the output offset of the relocation to reference the
6852 correct location in the output file. */
6853 outrel[0].r_offset += (input_section->output_section->vma
6854 + input_section->output_offset);
6855 outrel[1].r_offset += (input_section->output_section->vma
6856 + input_section->output_offset);
6857 outrel[2].r_offset += (input_section->output_section->vma
6858 + input_section->output_offset);
6859
b49e97c9
TS
6860 /* Put the relocation back out. We have to use the special
6861 relocation outputter in the 64-bit case since the 64-bit
6862 relocation format is non-standard. */
6863 if (ABI_64_P (output_bfd))
6864 {
6865 (*get_elf_backend_data (output_bfd)->s->swap_reloc_out)
6866 (output_bfd, &outrel[0],
6867 (sreloc->contents
6868 + sreloc->reloc_count * sizeof (Elf64_Mips_External_Rel)));
6869 }
0a44bf69
RS
6870 else if (htab->is_vxworks)
6871 {
6872 /* VxWorks uses RELA rather than REL dynamic relocations. */
6873 outrel[0].r_addend = *addendp;
6874 bfd_elf32_swap_reloca_out
6875 (output_bfd, &outrel[0],
6876 (sreloc->contents
6877 + sreloc->reloc_count * sizeof (Elf32_External_Rela)));
6878 }
b49e97c9 6879 else
947216bf
AM
6880 bfd_elf32_swap_reloc_out
6881 (output_bfd, &outrel[0],
6882 (sreloc->contents + sreloc->reloc_count * sizeof (Elf32_External_Rel)));
b49e97c9 6883
b49e97c9
TS
6884 /* We've now added another relocation. */
6885 ++sreloc->reloc_count;
6886
6887 /* Make sure the output section is writable. The dynamic linker
6888 will be writing to it. */
6889 elf_section_data (input_section->output_section)->this_hdr.sh_flags
6890 |= SHF_WRITE;
6891
6892 /* On IRIX5, make an entry of compact relocation info. */
5d41f0b6 6893 if (IRIX_COMPAT (output_bfd) == ict_irix5)
b49e97c9 6894 {
3d4d4302 6895 asection *scpt = bfd_get_linker_section (dynobj, ".compact_rel");
b49e97c9
TS
6896 bfd_byte *cr;
6897
6898 if (scpt)
6899 {
6900 Elf32_crinfo cptrel;
6901
6902 mips_elf_set_cr_format (cptrel, CRF_MIPS_LONG);
6903 cptrel.vaddr = (rel->r_offset
6904 + input_section->output_section->vma
6905 + input_section->output_offset);
6906 if (r_type == R_MIPS_REL32)
6907 mips_elf_set_cr_type (cptrel, CRT_MIPS_REL32);
6908 else
6909 mips_elf_set_cr_type (cptrel, CRT_MIPS_WORD);
6910 mips_elf_set_cr_dist2to (cptrel, 0);
6911 cptrel.konst = *addendp;
6912
6913 cr = (scpt->contents
6914 + sizeof (Elf32_External_compact_rel));
abc0f8d0 6915 mips_elf_set_cr_relvaddr (cptrel, 0);
b49e97c9
TS
6916 bfd_elf32_swap_crinfo_out (output_bfd, &cptrel,
6917 ((Elf32_External_crinfo *) cr
6918 + scpt->reloc_count));
6919 ++scpt->reloc_count;
6920 }
6921 }
6922
943284cc
DJ
6923 /* If we've written this relocation for a readonly section,
6924 we need to set DF_TEXTREL again, so that we do not delete the
6925 DT_TEXTREL tag. */
6926 if (MIPS_ELF_READONLY_SECTION (input_section))
6927 info->flags |= DF_TEXTREL;
6928
b34976b6 6929 return TRUE;
b49e97c9
TS
6930}
6931\f
b49e97c9
TS
6932/* Return the MACH for a MIPS e_flags value. */
6933
6934unsigned long
9719ad41 6935_bfd_elf_mips_mach (flagword flags)
b49e97c9
TS
6936{
6937 switch (flags & EF_MIPS_MACH)
6938 {
6939 case E_MIPS_MACH_3900:
6940 return bfd_mach_mips3900;
6941
6942 case E_MIPS_MACH_4010:
6943 return bfd_mach_mips4010;
6944
6945 case E_MIPS_MACH_4100:
6946 return bfd_mach_mips4100;
6947
6948 case E_MIPS_MACH_4111:
6949 return bfd_mach_mips4111;
6950
00707a0e
RS
6951 case E_MIPS_MACH_4120:
6952 return bfd_mach_mips4120;
6953
b49e97c9
TS
6954 case E_MIPS_MACH_4650:
6955 return bfd_mach_mips4650;
6956
00707a0e
RS
6957 case E_MIPS_MACH_5400:
6958 return bfd_mach_mips5400;
6959
6960 case E_MIPS_MACH_5500:
6961 return bfd_mach_mips5500;
6962
e407c74b
NC
6963 case E_MIPS_MACH_5900:
6964 return bfd_mach_mips5900;
6965
0d2e43ed
ILT
6966 case E_MIPS_MACH_9000:
6967 return bfd_mach_mips9000;
6968
b49e97c9
TS
6969 case E_MIPS_MACH_SB1:
6970 return bfd_mach_mips_sb1;
6971
350cc38d
MS
6972 case E_MIPS_MACH_LS2E:
6973 return bfd_mach_mips_loongson_2e;
6974
6975 case E_MIPS_MACH_LS2F:
6976 return bfd_mach_mips_loongson_2f;
6977
ac8cb70f
CX
6978 case E_MIPS_MACH_GS464:
6979 return bfd_mach_mips_gs464;
fd503541 6980
bd782c07
CX
6981 case E_MIPS_MACH_GS464E:
6982 return bfd_mach_mips_gs464e;
6983
9108bc33
CX
6984 case E_MIPS_MACH_GS264E:
6985 return bfd_mach_mips_gs264e;
6986
2c629856
N
6987 case E_MIPS_MACH_OCTEON3:
6988 return bfd_mach_mips_octeon3;
6989
432233b3
AP
6990 case E_MIPS_MACH_OCTEON2:
6991 return bfd_mach_mips_octeon2;
6992
6f179bd0
AN
6993 case E_MIPS_MACH_OCTEON:
6994 return bfd_mach_mips_octeon;
6995
52b6b6b9
JM
6996 case E_MIPS_MACH_XLR:
6997 return bfd_mach_mips_xlr;
6998
38bf472a
MR
6999 case E_MIPS_MACH_IAMR2:
7000 return bfd_mach_mips_interaptiv_mr2;
7001
b49e97c9
TS
7002 default:
7003 switch (flags & EF_MIPS_ARCH)
7004 {
7005 default:
7006 case E_MIPS_ARCH_1:
7007 return bfd_mach_mips3000;
b49e97c9
TS
7008
7009 case E_MIPS_ARCH_2:
7010 return bfd_mach_mips6000;
b49e97c9
TS
7011
7012 case E_MIPS_ARCH_3:
7013 return bfd_mach_mips4000;
b49e97c9
TS
7014
7015 case E_MIPS_ARCH_4:
7016 return bfd_mach_mips8000;
b49e97c9
TS
7017
7018 case E_MIPS_ARCH_5:
7019 return bfd_mach_mips5;
b49e97c9
TS
7020
7021 case E_MIPS_ARCH_32:
7022 return bfd_mach_mipsisa32;
b49e97c9
TS
7023
7024 case E_MIPS_ARCH_64:
7025 return bfd_mach_mipsisa64;
af7ee8bf
CD
7026
7027 case E_MIPS_ARCH_32R2:
7028 return bfd_mach_mipsisa32r2;
5f74bc13
CD
7029
7030 case E_MIPS_ARCH_64R2:
7031 return bfd_mach_mipsisa64r2;
7361da2c
AB
7032
7033 case E_MIPS_ARCH_32R6:
7034 return bfd_mach_mipsisa32r6;
7035
7036 case E_MIPS_ARCH_64R6:
7037 return bfd_mach_mipsisa64r6;
b49e97c9
TS
7038 }
7039 }
7040
7041 return 0;
7042}
7043
7044/* Return printable name for ABI. */
7045
7046static INLINE char *
9719ad41 7047elf_mips_abi_name (bfd *abfd)
b49e97c9
TS
7048{
7049 flagword flags;
7050
7051 flags = elf_elfheader (abfd)->e_flags;
7052 switch (flags & EF_MIPS_ABI)
7053 {
7054 case 0:
7055 if (ABI_N32_P (abfd))
7056 return "N32";
7057 else if (ABI_64_P (abfd))
7058 return "64";
7059 else
7060 return "none";
7061 case E_MIPS_ABI_O32:
7062 return "O32";
7063 case E_MIPS_ABI_O64:
7064 return "O64";
7065 case E_MIPS_ABI_EABI32:
7066 return "EABI32";
7067 case E_MIPS_ABI_EABI64:
7068 return "EABI64";
7069 default:
7070 return "unknown abi";
7071 }
7072}
7073\f
7074/* MIPS ELF uses two common sections. One is the usual one, and the
7075 other is for small objects. All the small objects are kept
7076 together, and then referenced via the gp pointer, which yields
7077 faster assembler code. This is what we use for the small common
7078 section. This approach is copied from ecoff.c. */
7079static asection mips_elf_scom_section;
7080static asymbol mips_elf_scom_symbol;
7081static asymbol *mips_elf_scom_symbol_ptr;
7082
7083/* MIPS ELF also uses an acommon section, which represents an
7084 allocated common symbol which may be overridden by a
7085 definition in a shared library. */
7086static asection mips_elf_acom_section;
7087static asymbol mips_elf_acom_symbol;
7088static asymbol *mips_elf_acom_symbol_ptr;
7089
738e5348 7090/* This is used for both the 32-bit and the 64-bit ABI. */
b49e97c9
TS
7091
7092void
9719ad41 7093_bfd_mips_elf_symbol_processing (bfd *abfd, asymbol *asym)
b49e97c9
TS
7094{
7095 elf_symbol_type *elfsym;
7096
738e5348 7097 /* Handle the special MIPS section numbers that a symbol may use. */
b49e97c9
TS
7098 elfsym = (elf_symbol_type *) asym;
7099 switch (elfsym->internal_elf_sym.st_shndx)
7100 {
7101 case SHN_MIPS_ACOMMON:
7102 /* This section is used in a dynamically linked executable file.
7103 It is an allocated common section. The dynamic linker can
7104 either resolve these symbols to something in a shared
7105 library, or it can just leave them here. For our purposes,
7106 we can consider these symbols to be in a new section. */
7107 if (mips_elf_acom_section.name == NULL)
7108 {
7109 /* Initialize the acommon section. */
7110 mips_elf_acom_section.name = ".acommon";
7111 mips_elf_acom_section.flags = SEC_ALLOC;
7112 mips_elf_acom_section.output_section = &mips_elf_acom_section;
7113 mips_elf_acom_section.symbol = &mips_elf_acom_symbol;
7114 mips_elf_acom_section.symbol_ptr_ptr = &mips_elf_acom_symbol_ptr;
7115 mips_elf_acom_symbol.name = ".acommon";
7116 mips_elf_acom_symbol.flags = BSF_SECTION_SYM;
7117 mips_elf_acom_symbol.section = &mips_elf_acom_section;
7118 mips_elf_acom_symbol_ptr = &mips_elf_acom_symbol;
7119 }
7120 asym->section = &mips_elf_acom_section;
7121 break;
7122
7123 case SHN_COMMON:
7124 /* Common symbols less than the GP size are automatically
7125 treated as SHN_MIPS_SCOMMON symbols on IRIX5. */
7126 if (asym->value > elf_gp_size (abfd)
b59eed79 7127 || ELF_ST_TYPE (elfsym->internal_elf_sym.st_info) == STT_TLS
b49e97c9
TS
7128 || IRIX_COMPAT (abfd) == ict_irix6)
7129 break;
7130 /* Fall through. */
7131 case SHN_MIPS_SCOMMON:
7132 if (mips_elf_scom_section.name == NULL)
7133 {
7134 /* Initialize the small common section. */
7135 mips_elf_scom_section.name = ".scommon";
7136 mips_elf_scom_section.flags = SEC_IS_COMMON;
7137 mips_elf_scom_section.output_section = &mips_elf_scom_section;
7138 mips_elf_scom_section.symbol = &mips_elf_scom_symbol;
7139 mips_elf_scom_section.symbol_ptr_ptr = &mips_elf_scom_symbol_ptr;
7140 mips_elf_scom_symbol.name = ".scommon";
7141 mips_elf_scom_symbol.flags = BSF_SECTION_SYM;
7142 mips_elf_scom_symbol.section = &mips_elf_scom_section;
7143 mips_elf_scom_symbol_ptr = &mips_elf_scom_symbol;
7144 }
7145 asym->section = &mips_elf_scom_section;
7146 asym->value = elfsym->internal_elf_sym.st_size;
7147 break;
7148
7149 case SHN_MIPS_SUNDEFINED:
7150 asym->section = bfd_und_section_ptr;
7151 break;
7152
b49e97c9 7153 case SHN_MIPS_TEXT:
00b4930b
TS
7154 {
7155 asection *section = bfd_get_section_by_name (abfd, ".text");
7156
00b4930b
TS
7157 if (section != NULL)
7158 {
7159 asym->section = section;
7160 /* MIPS_TEXT is a bit special, the address is not an offset
de194d85 7161 to the base of the .text section. So subtract the section
00b4930b
TS
7162 base address to make it an offset. */
7163 asym->value -= section->vma;
7164 }
7165 }
b49e97c9
TS
7166 break;
7167
7168 case SHN_MIPS_DATA:
00b4930b
TS
7169 {
7170 asection *section = bfd_get_section_by_name (abfd, ".data");
7171
00b4930b
TS
7172 if (section != NULL)
7173 {
7174 asym->section = section;
7175 /* MIPS_DATA is a bit special, the address is not an offset
de194d85 7176 to the base of the .data section. So subtract the section
00b4930b
TS
7177 base address to make it an offset. */
7178 asym->value -= section->vma;
7179 }
7180 }
b49e97c9 7181 break;
b49e97c9 7182 }
738e5348 7183
df58fc94
RS
7184 /* If this is an odd-valued function symbol, assume it's a MIPS16
7185 or microMIPS one. */
738e5348
RS
7186 if (ELF_ST_TYPE (elfsym->internal_elf_sym.st_info) == STT_FUNC
7187 && (asym->value & 1) != 0)
7188 {
7189 asym->value--;
e8faf7d1 7190 if (MICROMIPS_P (abfd))
df58fc94
RS
7191 elfsym->internal_elf_sym.st_other
7192 = ELF_ST_SET_MICROMIPS (elfsym->internal_elf_sym.st_other);
7193 else
7194 elfsym->internal_elf_sym.st_other
7195 = ELF_ST_SET_MIPS16 (elfsym->internal_elf_sym.st_other);
738e5348 7196 }
b49e97c9
TS
7197}
7198\f
8c946ed5
RS
7199/* Implement elf_backend_eh_frame_address_size. This differs from
7200 the default in the way it handles EABI64.
7201
7202 EABI64 was originally specified as an LP64 ABI, and that is what
7203 -mabi=eabi normally gives on a 64-bit target. However, gcc has
7204 historically accepted the combination of -mabi=eabi and -mlong32,
7205 and this ILP32 variation has become semi-official over time.
7206 Both forms use elf32 and have pointer-sized FDE addresses.
7207
7208 If an EABI object was generated by GCC 4.0 or above, it will have
7209 an empty .gcc_compiled_longXX section, where XX is the size of longs
7210 in bits. Unfortunately, ILP32 objects generated by earlier compilers
7211 have no special marking to distinguish them from LP64 objects.
7212
7213 We don't want users of the official LP64 ABI to be punished for the
7214 existence of the ILP32 variant, but at the same time, we don't want
7215 to mistakenly interpret pre-4.0 ILP32 objects as being LP64 objects.
7216 We therefore take the following approach:
7217
7218 - If ABFD contains a .gcc_compiled_longXX section, use it to
07d6d2b8 7219 determine the pointer size.
8c946ed5
RS
7220
7221 - Otherwise check the type of the first relocation. Assume that
07d6d2b8 7222 the LP64 ABI is being used if the relocation is of type R_MIPS_64.
8c946ed5
RS
7223
7224 - Otherwise punt.
7225
7226 The second check is enough to detect LP64 objects generated by pre-4.0
7227 compilers because, in the kind of output generated by those compilers,
7228 the first relocation will be associated with either a CIE personality
7229 routine or an FDE start address. Furthermore, the compilers never
7230 used a special (non-pointer) encoding for this ABI.
7231
7232 Checking the relocation type should also be safe because there is no
7233 reason to use R_MIPS_64 in an ILP32 object. Pre-4.0 compilers never
7234 did so. */
7235
7236unsigned int
76c20d54 7237_bfd_mips_elf_eh_frame_address_size (bfd *abfd, const asection *sec)
8c946ed5
RS
7238{
7239 if (elf_elfheader (abfd)->e_ident[EI_CLASS] == ELFCLASS64)
7240 return 8;
7241 if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ABI) == E_MIPS_ABI_EABI64)
7242 {
7243 bfd_boolean long32_p, long64_p;
7244
7245 long32_p = bfd_get_section_by_name (abfd, ".gcc_compiled_long32") != 0;
7246 long64_p = bfd_get_section_by_name (abfd, ".gcc_compiled_long64") != 0;
7247 if (long32_p && long64_p)
7248 return 0;
7249 if (long32_p)
7250 return 4;
7251 if (long64_p)
7252 return 8;
7253
7254 if (sec->reloc_count > 0
7255 && elf_section_data (sec)->relocs != NULL
7256 && (ELF32_R_TYPE (elf_section_data (sec)->relocs[0].r_info)
7257 == R_MIPS_64))
7258 return 8;
7259
7260 return 0;
7261 }
7262 return 4;
7263}
7264\f
174fd7f9
RS
7265/* There appears to be a bug in the MIPSpro linker that causes GOT_DISP
7266 relocations against two unnamed section symbols to resolve to the
7267 same address. For example, if we have code like:
7268
7269 lw $4,%got_disp(.data)($gp)
7270 lw $25,%got_disp(.text)($gp)
7271 jalr $25
7272
7273 then the linker will resolve both relocations to .data and the program
7274 will jump there rather than to .text.
7275
7276 We can work around this problem by giving names to local section symbols.
7277 This is also what the MIPSpro tools do. */
7278
7279bfd_boolean
7280_bfd_mips_elf_name_local_section_symbols (bfd *abfd)
7281{
7282 return SGI_COMPAT (abfd);
7283}
7284\f
b49e97c9
TS
7285/* Work over a section just before writing it out. This routine is
7286 used by both the 32-bit and the 64-bit ABI. FIXME: We recognize
7287 sections that need the SHF_MIPS_GPREL flag by name; there has to be
7288 a better way. */
7289
b34976b6 7290bfd_boolean
9719ad41 7291_bfd_mips_elf_section_processing (bfd *abfd, Elf_Internal_Shdr *hdr)
b49e97c9
TS
7292{
7293 if (hdr->sh_type == SHT_MIPS_REGINFO
7294 && hdr->sh_size > 0)
7295 {
7296 bfd_byte buf[4];
7297
b49e97c9
TS
7298 BFD_ASSERT (hdr->contents == NULL);
7299
2d6dda71
MR
7300 if (hdr->sh_size != sizeof (Elf32_External_RegInfo))
7301 {
7302 _bfd_error_handler
2c1c9679 7303 (_("%pB: incorrect `.reginfo' section size; "
2dcf00ce
AM
7304 "expected %" PRIu64 ", got %" PRIu64),
7305 abfd, (uint64_t) sizeof (Elf32_External_RegInfo),
7306 (uint64_t) hdr->sh_size);
2d6dda71
MR
7307 bfd_set_error (bfd_error_bad_value);
7308 return FALSE;
7309 }
7310
b49e97c9
TS
7311 if (bfd_seek (abfd,
7312 hdr->sh_offset + sizeof (Elf32_External_RegInfo) - 4,
7313 SEEK_SET) != 0)
b34976b6 7314 return FALSE;
b49e97c9 7315 H_PUT_32 (abfd, elf_gp (abfd), buf);
9719ad41 7316 if (bfd_bwrite (buf, 4, abfd) != 4)
b34976b6 7317 return FALSE;
b49e97c9
TS
7318 }
7319
7320 if (hdr->sh_type == SHT_MIPS_OPTIONS
7321 && hdr->bfd_section != NULL
f0abc2a1
AM
7322 && mips_elf_section_data (hdr->bfd_section) != NULL
7323 && mips_elf_section_data (hdr->bfd_section)->u.tdata != NULL)
b49e97c9
TS
7324 {
7325 bfd_byte *contents, *l, *lend;
7326
f0abc2a1
AM
7327 /* We stored the section contents in the tdata field in the
7328 set_section_contents routine. We save the section contents
7329 so that we don't have to read them again.
b49e97c9
TS
7330 At this point we know that elf_gp is set, so we can look
7331 through the section contents to see if there is an
7332 ODK_REGINFO structure. */
7333
f0abc2a1 7334 contents = mips_elf_section_data (hdr->bfd_section)->u.tdata;
b49e97c9
TS
7335 l = contents;
7336 lend = contents + hdr->sh_size;
7337 while (l + sizeof (Elf_External_Options) <= lend)
7338 {
7339 Elf_Internal_Options intopt;
7340
7341 bfd_mips_elf_swap_options_in (abfd, (Elf_External_Options *) l,
7342 &intopt);
1bc8074d
MR
7343 if (intopt.size < sizeof (Elf_External_Options))
7344 {
4eca0228 7345 _bfd_error_handler
695344c0 7346 /* xgettext:c-format */
2c1c9679 7347 (_("%pB: warning: bad `%s' option size %u smaller than"
63a5468a 7348 " its header"),
1bc8074d
MR
7349 abfd, MIPS_ELF_OPTIONS_SECTION_NAME (abfd), intopt.size);
7350 break;
7351 }
b49e97c9
TS
7352 if (ABI_64_P (abfd) && intopt.kind == ODK_REGINFO)
7353 {
7354 bfd_byte buf[8];
7355
7356 if (bfd_seek (abfd,
7357 (hdr->sh_offset
7358 + (l - contents)
7359 + sizeof (Elf_External_Options)
7360 + (sizeof (Elf64_External_RegInfo) - 8)),
7361 SEEK_SET) != 0)
b34976b6 7362 return FALSE;
b49e97c9 7363 H_PUT_64 (abfd, elf_gp (abfd), buf);
9719ad41 7364 if (bfd_bwrite (buf, 8, abfd) != 8)
b34976b6 7365 return FALSE;
b49e97c9
TS
7366 }
7367 else if (intopt.kind == ODK_REGINFO)
7368 {
7369 bfd_byte buf[4];
7370
7371 if (bfd_seek (abfd,
7372 (hdr->sh_offset
7373 + (l - contents)
7374 + sizeof (Elf_External_Options)
7375 + (sizeof (Elf32_External_RegInfo) - 4)),
7376 SEEK_SET) != 0)
b34976b6 7377 return FALSE;
b49e97c9 7378 H_PUT_32 (abfd, elf_gp (abfd), buf);
9719ad41 7379 if (bfd_bwrite (buf, 4, abfd) != 4)
b34976b6 7380 return FALSE;
b49e97c9
TS
7381 }
7382 l += intopt.size;
7383 }
7384 }
7385
7386 if (hdr->bfd_section != NULL)
7387 {
7388 const char *name = bfd_get_section_name (abfd, hdr->bfd_section);
7389
2d0f9ad9
JM
7390 /* .sbss is not handled specially here because the GNU/Linux
7391 prelinker can convert .sbss from NOBITS to PROGBITS and
7392 changing it back to NOBITS breaks the binary. The entry in
7393 _bfd_mips_elf_special_sections will ensure the correct flags
7394 are set on .sbss if BFD creates it without reading it from an
7395 input file, and without special handling here the flags set
7396 on it in an input file will be followed. */
b49e97c9
TS
7397 if (strcmp (name, ".sdata") == 0
7398 || strcmp (name, ".lit8") == 0
7399 || strcmp (name, ".lit4") == 0)
fd6f9d17 7400 hdr->sh_flags |= SHF_ALLOC | SHF_WRITE | SHF_MIPS_GPREL;
b49e97c9 7401 else if (strcmp (name, ".srdata") == 0)
fd6f9d17 7402 hdr->sh_flags |= SHF_ALLOC | SHF_MIPS_GPREL;
b49e97c9 7403 else if (strcmp (name, ".compact_rel") == 0)
fd6f9d17 7404 hdr->sh_flags = 0;
b49e97c9
TS
7405 else if (strcmp (name, ".rtproc") == 0)
7406 {
7407 if (hdr->sh_addralign != 0 && hdr->sh_entsize == 0)
7408 {
7409 unsigned int adjust;
7410
7411 adjust = hdr->sh_size % hdr->sh_addralign;
7412 if (adjust != 0)
7413 hdr->sh_size += hdr->sh_addralign - adjust;
7414 }
7415 }
7416 }
7417
b34976b6 7418 return TRUE;
b49e97c9
TS
7419}
7420
7421/* Handle a MIPS specific section when reading an object file. This
7422 is called when elfcode.h finds a section with an unknown type.
7423 This routine supports both the 32-bit and 64-bit ELF ABI.
7424
7425 FIXME: We need to handle the SHF_MIPS_GPREL flag, but I'm not sure
7426 how to. */
7427
b34976b6 7428bfd_boolean
6dc132d9
L
7429_bfd_mips_elf_section_from_shdr (bfd *abfd,
7430 Elf_Internal_Shdr *hdr,
7431 const char *name,
7432 int shindex)
b49e97c9
TS
7433{
7434 flagword flags = 0;
7435
7436 /* There ought to be a place to keep ELF backend specific flags, but
7437 at the moment there isn't one. We just keep track of the
7438 sections by their name, instead. Fortunately, the ABI gives
7439 suggested names for all the MIPS specific sections, so we will
7440 probably get away with this. */
7441 switch (hdr->sh_type)
7442 {
7443 case SHT_MIPS_LIBLIST:
7444 if (strcmp (name, ".liblist") != 0)
b34976b6 7445 return FALSE;
b49e97c9
TS
7446 break;
7447 case SHT_MIPS_MSYM:
7448 if (strcmp (name, ".msym") != 0)
b34976b6 7449 return FALSE;
b49e97c9
TS
7450 break;
7451 case SHT_MIPS_CONFLICT:
7452 if (strcmp (name, ".conflict") != 0)
b34976b6 7453 return FALSE;
b49e97c9
TS
7454 break;
7455 case SHT_MIPS_GPTAB:
0112cd26 7456 if (! CONST_STRNEQ (name, ".gptab."))
b34976b6 7457 return FALSE;
b49e97c9
TS
7458 break;
7459 case SHT_MIPS_UCODE:
7460 if (strcmp (name, ".ucode") != 0)
b34976b6 7461 return FALSE;
b49e97c9
TS
7462 break;
7463 case SHT_MIPS_DEBUG:
7464 if (strcmp (name, ".mdebug") != 0)
b34976b6 7465 return FALSE;
b49e97c9
TS
7466 flags = SEC_DEBUGGING;
7467 break;
7468 case SHT_MIPS_REGINFO:
7469 if (strcmp (name, ".reginfo") != 0
7470 || hdr->sh_size != sizeof (Elf32_External_RegInfo))
b34976b6 7471 return FALSE;
b49e97c9
TS
7472 flags = (SEC_LINK_ONCE | SEC_LINK_DUPLICATES_SAME_SIZE);
7473 break;
7474 case SHT_MIPS_IFACE:
7475 if (strcmp (name, ".MIPS.interfaces") != 0)
b34976b6 7476 return FALSE;
b49e97c9
TS
7477 break;
7478 case SHT_MIPS_CONTENT:
0112cd26 7479 if (! CONST_STRNEQ (name, ".MIPS.content"))
b34976b6 7480 return FALSE;
b49e97c9
TS
7481 break;
7482 case SHT_MIPS_OPTIONS:
cc2e31b9 7483 if (!MIPS_ELF_OPTIONS_SECTION_NAME_P (name))
b34976b6 7484 return FALSE;
b49e97c9 7485 break;
351cdf24
MF
7486 case SHT_MIPS_ABIFLAGS:
7487 if (!MIPS_ELF_ABIFLAGS_SECTION_NAME_P (name))
7488 return FALSE;
7489 flags = (SEC_LINK_ONCE | SEC_LINK_DUPLICATES_SAME_SIZE);
7490 break;
b49e97c9 7491 case SHT_MIPS_DWARF:
1b315056 7492 if (! CONST_STRNEQ (name, ".debug_")
07d6d2b8 7493 && ! CONST_STRNEQ (name, ".zdebug_"))
b34976b6 7494 return FALSE;
b49e97c9
TS
7495 break;
7496 case SHT_MIPS_SYMBOL_LIB:
7497 if (strcmp (name, ".MIPS.symlib") != 0)
b34976b6 7498 return FALSE;
b49e97c9
TS
7499 break;
7500 case SHT_MIPS_EVENTS:
0112cd26
NC
7501 if (! CONST_STRNEQ (name, ".MIPS.events")
7502 && ! CONST_STRNEQ (name, ".MIPS.post_rel"))
b34976b6 7503 return FALSE;
b49e97c9 7504 break;
f16a9783
MS
7505 case SHT_MIPS_XHASH:
7506 if (strcmp (name, ".MIPS.xhash") != 0)
7507 return FALSE;
b49e97c9 7508 default:
cc2e31b9 7509 break;
b49e97c9
TS
7510 }
7511
6dc132d9 7512 if (! _bfd_elf_make_section_from_shdr (abfd, hdr, name, shindex))
b34976b6 7513 return FALSE;
b49e97c9
TS
7514
7515 if (flags)
7516 {
7517 if (! bfd_set_section_flags (abfd, hdr->bfd_section,
7518 (bfd_get_section_flags (abfd,
7519 hdr->bfd_section)
7520 | flags)))
b34976b6 7521 return FALSE;
b49e97c9
TS
7522 }
7523
351cdf24
MF
7524 if (hdr->sh_type == SHT_MIPS_ABIFLAGS)
7525 {
7526 Elf_External_ABIFlags_v0 ext;
7527
7528 if (! bfd_get_section_contents (abfd, hdr->bfd_section,
7529 &ext, 0, sizeof ext))
7530 return FALSE;
7531 bfd_mips_elf_swap_abiflags_v0_in (abfd, &ext,
7532 &mips_elf_tdata (abfd)->abiflags);
7533 if (mips_elf_tdata (abfd)->abiflags.version != 0)
7534 return FALSE;
7535 mips_elf_tdata (abfd)->abiflags_valid = TRUE;
7536 }
7537
b49e97c9
TS
7538 /* FIXME: We should record sh_info for a .gptab section. */
7539
7540 /* For a .reginfo section, set the gp value in the tdata information
7541 from the contents of this section. We need the gp value while
7542 processing relocs, so we just get it now. The .reginfo section
7543 is not used in the 64-bit MIPS ELF ABI. */
7544 if (hdr->sh_type == SHT_MIPS_REGINFO)
7545 {
7546 Elf32_External_RegInfo ext;
7547 Elf32_RegInfo s;
7548
9719ad41
RS
7549 if (! bfd_get_section_contents (abfd, hdr->bfd_section,
7550 &ext, 0, sizeof ext))
b34976b6 7551 return FALSE;
b49e97c9
TS
7552 bfd_mips_elf32_swap_reginfo_in (abfd, &ext, &s);
7553 elf_gp (abfd) = s.ri_gp_value;
7554 }
7555
7556 /* For a SHT_MIPS_OPTIONS section, look for a ODK_REGINFO entry, and
7557 set the gp value based on what we find. We may see both
7558 SHT_MIPS_REGINFO and SHT_MIPS_OPTIONS/ODK_REGINFO; in that case,
7559 they should agree. */
7560 if (hdr->sh_type == SHT_MIPS_OPTIONS)
7561 {
7562 bfd_byte *contents, *l, *lend;
7563
9719ad41 7564 contents = bfd_malloc (hdr->sh_size);
b49e97c9 7565 if (contents == NULL)
b34976b6 7566 return FALSE;
b49e97c9 7567 if (! bfd_get_section_contents (abfd, hdr->bfd_section, contents,
9719ad41 7568 0, hdr->sh_size))
b49e97c9
TS
7569 {
7570 free (contents);
b34976b6 7571 return FALSE;
b49e97c9
TS
7572 }
7573 l = contents;
7574 lend = contents + hdr->sh_size;
7575 while (l + sizeof (Elf_External_Options) <= lend)
7576 {
7577 Elf_Internal_Options intopt;
7578
7579 bfd_mips_elf_swap_options_in (abfd, (Elf_External_Options *) l,
7580 &intopt);
1bc8074d
MR
7581 if (intopt.size < sizeof (Elf_External_Options))
7582 {
4eca0228 7583 _bfd_error_handler
695344c0 7584 /* xgettext:c-format */
2c1c9679 7585 (_("%pB: warning: bad `%s' option size %u smaller than"
63a5468a 7586 " its header"),
1bc8074d
MR
7587 abfd, MIPS_ELF_OPTIONS_SECTION_NAME (abfd), intopt.size);
7588 break;
7589 }
b49e97c9
TS
7590 if (ABI_64_P (abfd) && intopt.kind == ODK_REGINFO)
7591 {
7592 Elf64_Internal_RegInfo intreg;
7593
7594 bfd_mips_elf64_swap_reginfo_in
7595 (abfd,
7596 ((Elf64_External_RegInfo *)
7597 (l + sizeof (Elf_External_Options))),
7598 &intreg);
7599 elf_gp (abfd) = intreg.ri_gp_value;
7600 }
7601 else if (intopt.kind == ODK_REGINFO)
7602 {
7603 Elf32_RegInfo intreg;
7604
7605 bfd_mips_elf32_swap_reginfo_in
7606 (abfd,
7607 ((Elf32_External_RegInfo *)
7608 (l + sizeof (Elf_External_Options))),
7609 &intreg);
7610 elf_gp (abfd) = intreg.ri_gp_value;
7611 }
7612 l += intopt.size;
7613 }
7614 free (contents);
7615 }
7616
b34976b6 7617 return TRUE;
b49e97c9
TS
7618}
7619
7620/* Set the correct type for a MIPS ELF section. We do this by the
7621 section name, which is a hack, but ought to work. This routine is
7622 used by both the 32-bit and the 64-bit ABI. */
7623
b34976b6 7624bfd_boolean
9719ad41 7625_bfd_mips_elf_fake_sections (bfd *abfd, Elf_Internal_Shdr *hdr, asection *sec)
b49e97c9 7626{
0414f35b 7627 const char *name = bfd_get_section_name (abfd, sec);
b49e97c9
TS
7628
7629 if (strcmp (name, ".liblist") == 0)
7630 {
7631 hdr->sh_type = SHT_MIPS_LIBLIST;
eea6121a 7632 hdr->sh_info = sec->size / sizeof (Elf32_Lib);
b49e97c9
TS
7633 /* The sh_link field is set in final_write_processing. */
7634 }
7635 else if (strcmp (name, ".conflict") == 0)
7636 hdr->sh_type = SHT_MIPS_CONFLICT;
0112cd26 7637 else if (CONST_STRNEQ (name, ".gptab."))
b49e97c9
TS
7638 {
7639 hdr->sh_type = SHT_MIPS_GPTAB;
7640 hdr->sh_entsize = sizeof (Elf32_External_gptab);
7641 /* The sh_info field is set in final_write_processing. */
7642 }
7643 else if (strcmp (name, ".ucode") == 0)
7644 hdr->sh_type = SHT_MIPS_UCODE;
7645 else if (strcmp (name, ".mdebug") == 0)
7646 {
7647 hdr->sh_type = SHT_MIPS_DEBUG;
8dc1a139 7648 /* In a shared object on IRIX 5.3, the .mdebug section has an
07d6d2b8 7649 entsize of 0. FIXME: Does this matter? */
b49e97c9
TS
7650 if (SGI_COMPAT (abfd) && (abfd->flags & DYNAMIC) != 0)
7651 hdr->sh_entsize = 0;
7652 else
7653 hdr->sh_entsize = 1;
7654 }
7655 else if (strcmp (name, ".reginfo") == 0)
7656 {
7657 hdr->sh_type = SHT_MIPS_REGINFO;
8dc1a139 7658 /* In a shared object on IRIX 5.3, the .reginfo section has an
07d6d2b8 7659 entsize of 0x18. FIXME: Does this matter? */
b49e97c9
TS
7660 if (SGI_COMPAT (abfd))
7661 {
7662 if ((abfd->flags & DYNAMIC) != 0)
7663 hdr->sh_entsize = sizeof (Elf32_External_RegInfo);
7664 else
7665 hdr->sh_entsize = 1;
7666 }
7667 else
7668 hdr->sh_entsize = sizeof (Elf32_External_RegInfo);
7669 }
7670 else if (SGI_COMPAT (abfd)
7671 && (strcmp (name, ".hash") == 0
7672 || strcmp (name, ".dynamic") == 0
7673 || strcmp (name, ".dynstr") == 0))
7674 {
7675 if (SGI_COMPAT (abfd))
7676 hdr->sh_entsize = 0;
7677#if 0
8dc1a139 7678 /* This isn't how the IRIX6 linker behaves. */
b49e97c9
TS
7679 hdr->sh_info = SIZEOF_MIPS_DYNSYM_SECNAMES;
7680#endif
7681 }
7682 else if (strcmp (name, ".got") == 0
7683 || strcmp (name, ".srdata") == 0
7684 || strcmp (name, ".sdata") == 0
7685 || strcmp (name, ".sbss") == 0
7686 || strcmp (name, ".lit4") == 0
7687 || strcmp (name, ".lit8") == 0)
7688 hdr->sh_flags |= SHF_MIPS_GPREL;
7689 else if (strcmp (name, ".MIPS.interfaces") == 0)
7690 {
7691 hdr->sh_type = SHT_MIPS_IFACE;
7692 hdr->sh_flags |= SHF_MIPS_NOSTRIP;
7693 }
0112cd26 7694 else if (CONST_STRNEQ (name, ".MIPS.content"))
b49e97c9
TS
7695 {
7696 hdr->sh_type = SHT_MIPS_CONTENT;
7697 hdr->sh_flags |= SHF_MIPS_NOSTRIP;
7698 /* The sh_info field is set in final_write_processing. */
7699 }
cc2e31b9 7700 else if (MIPS_ELF_OPTIONS_SECTION_NAME_P (name))
b49e97c9
TS
7701 {
7702 hdr->sh_type = SHT_MIPS_OPTIONS;
7703 hdr->sh_entsize = 1;
7704 hdr->sh_flags |= SHF_MIPS_NOSTRIP;
7705 }
351cdf24
MF
7706 else if (CONST_STRNEQ (name, ".MIPS.abiflags"))
7707 {
7708 hdr->sh_type = SHT_MIPS_ABIFLAGS;
7709 hdr->sh_entsize = sizeof (Elf_External_ABIFlags_v0);
7710 }
1b315056 7711 else if (CONST_STRNEQ (name, ".debug_")
07d6d2b8 7712 || CONST_STRNEQ (name, ".zdebug_"))
b5482f21
NC
7713 {
7714 hdr->sh_type = SHT_MIPS_DWARF;
7715
7716 /* Irix facilities such as libexc expect a single .debug_frame
7717 per executable, the system ones have NOSTRIP set and the linker
7718 doesn't merge sections with different flags so ... */
7719 if (SGI_COMPAT (abfd) && CONST_STRNEQ (name, ".debug_frame"))
7720 hdr->sh_flags |= SHF_MIPS_NOSTRIP;
7721 }
b49e97c9
TS
7722 else if (strcmp (name, ".MIPS.symlib") == 0)
7723 {
7724 hdr->sh_type = SHT_MIPS_SYMBOL_LIB;
7725 /* The sh_link and sh_info fields are set in
07d6d2b8 7726 final_write_processing. */
b49e97c9 7727 }
0112cd26
NC
7728 else if (CONST_STRNEQ (name, ".MIPS.events")
7729 || CONST_STRNEQ (name, ".MIPS.post_rel"))
b49e97c9
TS
7730 {
7731 hdr->sh_type = SHT_MIPS_EVENTS;
7732 hdr->sh_flags |= SHF_MIPS_NOSTRIP;
7733 /* The sh_link field is set in final_write_processing. */
7734 }
7735 else if (strcmp (name, ".msym") == 0)
7736 {
7737 hdr->sh_type = SHT_MIPS_MSYM;
7738 hdr->sh_flags |= SHF_ALLOC;
7739 hdr->sh_entsize = 8;
7740 }
f16a9783
MS
7741 else if (strcmp (name, ".MIPS.xhash") == 0)
7742 {
7743 hdr->sh_type = SHT_MIPS_XHASH;
7744 hdr->sh_flags |= SHF_ALLOC;
7745 hdr->sh_entsize = get_elf_backend_data(abfd)->s->arch_size == 64 ? 0 : 4;
7746 }
b49e97c9 7747
7a79a000
TS
7748 /* The generic elf_fake_sections will set up REL_HDR using the default
7749 kind of relocations. We used to set up a second header for the
7750 non-default kind of relocations here, but only NewABI would use
7751 these, and the IRIX ld doesn't like resulting empty RELA sections.
7752 Thus we create those header only on demand now. */
b49e97c9 7753
b34976b6 7754 return TRUE;
b49e97c9
TS
7755}
7756
7757/* Given a BFD section, try to locate the corresponding ELF section
7758 index. This is used by both the 32-bit and the 64-bit ABI.
7759 Actually, it's not clear to me that the 64-bit ABI supports these,
7760 but for non-PIC objects we will certainly want support for at least
7761 the .scommon section. */
7762
b34976b6 7763bfd_boolean
9719ad41
RS
7764_bfd_mips_elf_section_from_bfd_section (bfd *abfd ATTRIBUTE_UNUSED,
7765 asection *sec, int *retval)
b49e97c9
TS
7766{
7767 if (strcmp (bfd_get_section_name (abfd, sec), ".scommon") == 0)
7768 {
7769 *retval = SHN_MIPS_SCOMMON;
b34976b6 7770 return TRUE;
b49e97c9
TS
7771 }
7772 if (strcmp (bfd_get_section_name (abfd, sec), ".acommon") == 0)
7773 {
7774 *retval = SHN_MIPS_ACOMMON;
b34976b6 7775 return TRUE;
b49e97c9 7776 }
b34976b6 7777 return FALSE;
b49e97c9
TS
7778}
7779\f
7780/* Hook called by the linker routine which adds symbols from an object
7781 file. We must handle the special MIPS section numbers here. */
7782
b34976b6 7783bfd_boolean
9719ad41 7784_bfd_mips_elf_add_symbol_hook (bfd *abfd, struct bfd_link_info *info,
555cd476 7785 Elf_Internal_Sym *sym, const char **namep,
9719ad41
RS
7786 flagword *flagsp ATTRIBUTE_UNUSED,
7787 asection **secp, bfd_vma *valp)
b49e97c9
TS
7788{
7789 if (SGI_COMPAT (abfd)
7790 && (abfd->flags & DYNAMIC) != 0
7791 && strcmp (*namep, "_rld_new_interface") == 0)
7792 {
8dc1a139 7793 /* Skip IRIX5 rld entry name. */
b49e97c9 7794 *namep = NULL;
b34976b6 7795 return TRUE;
b49e97c9
TS
7796 }
7797
eedecc07
DD
7798 /* Shared objects may have a dynamic symbol '_gp_disp' defined as
7799 a SECTION *ABS*. This causes ld to think it can resolve _gp_disp
7800 by setting a DT_NEEDED for the shared object. Since _gp_disp is
7801 a magic symbol resolved by the linker, we ignore this bogus definition
7802 of _gp_disp. New ABI objects do not suffer from this problem so this
7803 is not done for them. */
7804 if (!NEWABI_P(abfd)
7805 && (sym->st_shndx == SHN_ABS)
7806 && (strcmp (*namep, "_gp_disp") == 0))
7807 {
7808 *namep = NULL;
7809 return TRUE;
7810 }
7811
b49e97c9
TS
7812 switch (sym->st_shndx)
7813 {
7814 case SHN_COMMON:
7815 /* Common symbols less than the GP size are automatically
7816 treated as SHN_MIPS_SCOMMON symbols. */
7817 if (sym->st_size > elf_gp_size (abfd)
b59eed79 7818 || ELF_ST_TYPE (sym->st_info) == STT_TLS
b49e97c9
TS
7819 || IRIX_COMPAT (abfd) == ict_irix6)
7820 break;
7821 /* Fall through. */
7822 case SHN_MIPS_SCOMMON:
7823 *secp = bfd_make_section_old_way (abfd, ".scommon");
7824 (*secp)->flags |= SEC_IS_COMMON;
7825 *valp = sym->st_size;
7826 break;
7827
7828 case SHN_MIPS_TEXT:
7829 /* This section is used in a shared object. */
698600e4 7830 if (mips_elf_tdata (abfd)->elf_text_section == NULL)
b49e97c9
TS
7831 {
7832 asymbol *elf_text_symbol;
7833 asection *elf_text_section;
7834 bfd_size_type amt = sizeof (asection);
7835
7836 elf_text_section = bfd_zalloc (abfd, amt);
7837 if (elf_text_section == NULL)
b34976b6 7838 return FALSE;
b49e97c9
TS
7839
7840 amt = sizeof (asymbol);
7841 elf_text_symbol = bfd_zalloc (abfd, amt);
7842 if (elf_text_symbol == NULL)
b34976b6 7843 return FALSE;
b49e97c9
TS
7844
7845 /* Initialize the section. */
7846
698600e4
AM
7847 mips_elf_tdata (abfd)->elf_text_section = elf_text_section;
7848 mips_elf_tdata (abfd)->elf_text_symbol = elf_text_symbol;
b49e97c9
TS
7849
7850 elf_text_section->symbol = elf_text_symbol;
698600e4 7851 elf_text_section->symbol_ptr_ptr = &mips_elf_tdata (abfd)->elf_text_symbol;
b49e97c9
TS
7852
7853 elf_text_section->name = ".text";
7854 elf_text_section->flags = SEC_NO_FLAGS;
7855 elf_text_section->output_section = NULL;
7856 elf_text_section->owner = abfd;
7857 elf_text_symbol->name = ".text";
7858 elf_text_symbol->flags = BSF_SECTION_SYM | BSF_DYNAMIC;
7859 elf_text_symbol->section = elf_text_section;
7860 }
7861 /* This code used to do *secp = bfd_und_section_ptr if
07d6d2b8
AM
7862 bfd_link_pic (info). I don't know why, and that doesn't make sense,
7863 so I took it out. */
698600e4 7864 *secp = mips_elf_tdata (abfd)->elf_text_section;
b49e97c9
TS
7865 break;
7866
7867 case SHN_MIPS_ACOMMON:
7868 /* Fall through. XXX Can we treat this as allocated data? */
7869 case SHN_MIPS_DATA:
7870 /* This section is used in a shared object. */
698600e4 7871 if (mips_elf_tdata (abfd)->elf_data_section == NULL)
b49e97c9
TS
7872 {
7873 asymbol *elf_data_symbol;
7874 asection *elf_data_section;
7875 bfd_size_type amt = sizeof (asection);
7876
7877 elf_data_section = bfd_zalloc (abfd, amt);
7878 if (elf_data_section == NULL)
b34976b6 7879 return FALSE;
b49e97c9
TS
7880
7881 amt = sizeof (asymbol);
7882 elf_data_symbol = bfd_zalloc (abfd, amt);
7883 if (elf_data_symbol == NULL)
b34976b6 7884 return FALSE;
b49e97c9
TS
7885
7886 /* Initialize the section. */
7887
698600e4
AM
7888 mips_elf_tdata (abfd)->elf_data_section = elf_data_section;
7889 mips_elf_tdata (abfd)->elf_data_symbol = elf_data_symbol;
b49e97c9
TS
7890
7891 elf_data_section->symbol = elf_data_symbol;
698600e4 7892 elf_data_section->symbol_ptr_ptr = &mips_elf_tdata (abfd)->elf_data_symbol;
b49e97c9
TS
7893
7894 elf_data_section->name = ".data";
7895 elf_data_section->flags = SEC_NO_FLAGS;
7896 elf_data_section->output_section = NULL;
7897 elf_data_section->owner = abfd;
7898 elf_data_symbol->name = ".data";
7899 elf_data_symbol->flags = BSF_SECTION_SYM | BSF_DYNAMIC;
7900 elf_data_symbol->section = elf_data_section;
7901 }
7902 /* This code used to do *secp = bfd_und_section_ptr if
07d6d2b8
AM
7903 bfd_link_pic (info). I don't know why, and that doesn't make sense,
7904 so I took it out. */
698600e4 7905 *secp = mips_elf_tdata (abfd)->elf_data_section;
b49e97c9
TS
7906 break;
7907
7908 case SHN_MIPS_SUNDEFINED:
7909 *secp = bfd_und_section_ptr;
7910 break;
7911 }
7912
7913 if (SGI_COMPAT (abfd)
0e1862bb 7914 && ! bfd_link_pic (info)
f13a99db 7915 && info->output_bfd->xvec == abfd->xvec
b49e97c9
TS
7916 && strcmp (*namep, "__rld_obj_head") == 0)
7917 {
7918 struct elf_link_hash_entry *h;
14a793b2 7919 struct bfd_link_hash_entry *bh;
b49e97c9
TS
7920
7921 /* Mark __rld_obj_head as dynamic. */
14a793b2 7922 bh = NULL;
b49e97c9 7923 if (! (_bfd_generic_link_add_one_symbol
9719ad41 7924 (info, abfd, *namep, BSF_GLOBAL, *secp, *valp, NULL, FALSE,
14a793b2 7925 get_elf_backend_data (abfd)->collect, &bh)))
b34976b6 7926 return FALSE;
14a793b2
AM
7927
7928 h = (struct elf_link_hash_entry *) bh;
f5385ebf
AM
7929 h->non_elf = 0;
7930 h->def_regular = 1;
b49e97c9
TS
7931 h->type = STT_OBJECT;
7932
c152c796 7933 if (! bfd_elf_link_record_dynamic_symbol (info, h))
b34976b6 7934 return FALSE;
b49e97c9 7935
b34976b6 7936 mips_elf_hash_table (info)->use_rld_obj_head = TRUE;
b4082c70 7937 mips_elf_hash_table (info)->rld_symbol = h;
b49e97c9
TS
7938 }
7939
7940 /* If this is a mips16 text symbol, add 1 to the value to make it
7941 odd. This will cause something like .word SYM to come up with
7942 the right value when it is loaded into the PC. */
df58fc94 7943 if (ELF_ST_IS_COMPRESSED (sym->st_other))
b49e97c9
TS
7944 ++*valp;
7945
b34976b6 7946 return TRUE;
b49e97c9
TS
7947}
7948
7949/* This hook function is called before the linker writes out a global
7950 symbol. We mark symbols as small common if appropriate. This is
7951 also where we undo the increment of the value for a mips16 symbol. */
7952
6e0b88f1 7953int
9719ad41
RS
7954_bfd_mips_elf_link_output_symbol_hook
7955 (struct bfd_link_info *info ATTRIBUTE_UNUSED,
7956 const char *name ATTRIBUTE_UNUSED, Elf_Internal_Sym *sym,
7957 asection *input_sec, struct elf_link_hash_entry *h ATTRIBUTE_UNUSED)
b49e97c9
TS
7958{
7959 /* If we see a common symbol, which implies a relocatable link, then
7960 if a symbol was small common in an input file, mark it as small
7961 common in the output file. */
7962 if (sym->st_shndx == SHN_COMMON
7963 && strcmp (input_sec->name, ".scommon") == 0)
7964 sym->st_shndx = SHN_MIPS_SCOMMON;
7965
df58fc94 7966 if (ELF_ST_IS_COMPRESSED (sym->st_other))
79cda7cf 7967 sym->st_value &= ~1;
b49e97c9 7968
6e0b88f1 7969 return 1;
b49e97c9
TS
7970}
7971\f
7972/* Functions for the dynamic linker. */
7973
7974/* Create dynamic sections when linking against a dynamic object. */
7975
b34976b6 7976bfd_boolean
9719ad41 7977_bfd_mips_elf_create_dynamic_sections (bfd *abfd, struct bfd_link_info *info)
b49e97c9
TS
7978{
7979 struct elf_link_hash_entry *h;
14a793b2 7980 struct bfd_link_hash_entry *bh;
b49e97c9
TS
7981 flagword flags;
7982 register asection *s;
7983 const char * const *namep;
0a44bf69 7984 struct mips_elf_link_hash_table *htab;
b49e97c9 7985
0a44bf69 7986 htab = mips_elf_hash_table (info);
4dfe6ac6
NC
7987 BFD_ASSERT (htab != NULL);
7988
b49e97c9
TS
7989 flags = (SEC_ALLOC | SEC_LOAD | SEC_HAS_CONTENTS | SEC_IN_MEMORY
7990 | SEC_LINKER_CREATED | SEC_READONLY);
7991
0a44bf69
RS
7992 /* The psABI requires a read-only .dynamic section, but the VxWorks
7993 EABI doesn't. */
7994 if (!htab->is_vxworks)
b49e97c9 7995 {
3d4d4302 7996 s = bfd_get_linker_section (abfd, ".dynamic");
0a44bf69
RS
7997 if (s != NULL)
7998 {
7999 if (! bfd_set_section_flags (abfd, s, flags))
8000 return FALSE;
8001 }
b49e97c9
TS
8002 }
8003
8004 /* We need to create .got section. */
23cc69b6 8005 if (!mips_elf_create_got_section (abfd, info))
f4416af6
AO
8006 return FALSE;
8007
0a44bf69 8008 if (! mips_elf_rel_dyn_section (info, TRUE))
b34976b6 8009 return FALSE;
b49e97c9 8010
b49e97c9 8011 /* Create .stub section. */
3d4d4302
AM
8012 s = bfd_make_section_anyway_with_flags (abfd,
8013 MIPS_ELF_STUB_SECTION_NAME (abfd),
8014 flags | SEC_CODE);
4e41d0d7
RS
8015 if (s == NULL
8016 || ! bfd_set_section_alignment (abfd, s,
8017 MIPS_ELF_LOG_FILE_ALIGN (abfd)))
8018 return FALSE;
8019 htab->sstubs = s;
b49e97c9 8020
e6aea42d 8021 if (!mips_elf_hash_table (info)->use_rld_obj_head
0e1862bb 8022 && bfd_link_executable (info)
3d4d4302 8023 && bfd_get_linker_section (abfd, ".rld_map") == NULL)
b49e97c9 8024 {
3d4d4302
AM
8025 s = bfd_make_section_anyway_with_flags (abfd, ".rld_map",
8026 flags &~ (flagword) SEC_READONLY);
b49e97c9 8027 if (s == NULL
b49e97c9
TS
8028 || ! bfd_set_section_alignment (abfd, s,
8029 MIPS_ELF_LOG_FILE_ALIGN (abfd)))
b34976b6 8030 return FALSE;
b49e97c9
TS
8031 }
8032
f16a9783
MS
8033 /* Create .MIPS.xhash section. */
8034 if (info->emit_gnu_hash)
8035 s = bfd_make_section_anyway_with_flags (abfd, ".MIPS.xhash",
8036 flags | SEC_READONLY);
8037
b49e97c9
TS
8038 /* On IRIX5, we adjust add some additional symbols and change the
8039 alignments of several sections. There is no ABI documentation
8040 indicating that this is necessary on IRIX6, nor any evidence that
8041 the linker takes such action. */
8042 if (IRIX_COMPAT (abfd) == ict_irix5)
8043 {
8044 for (namep = mips_elf_dynsym_rtproc_names; *namep != NULL; namep++)
8045 {
14a793b2 8046 bh = NULL;
b49e97c9 8047 if (! (_bfd_generic_link_add_one_symbol
9719ad41
RS
8048 (info, abfd, *namep, BSF_GLOBAL, bfd_und_section_ptr, 0,
8049 NULL, FALSE, get_elf_backend_data (abfd)->collect, &bh)))
b34976b6 8050 return FALSE;
14a793b2
AM
8051
8052 h = (struct elf_link_hash_entry *) bh;
12f09816 8053 h->mark = 1;
f5385ebf
AM
8054 h->non_elf = 0;
8055 h->def_regular = 1;
b49e97c9
TS
8056 h->type = STT_SECTION;
8057
c152c796 8058 if (! bfd_elf_link_record_dynamic_symbol (info, h))
b34976b6 8059 return FALSE;
b49e97c9
TS
8060 }
8061
8062 /* We need to create a .compact_rel section. */
8063 if (SGI_COMPAT (abfd))
8064 {
8065 if (!mips_elf_create_compact_rel_section (abfd, info))
b34976b6 8066 return FALSE;
b49e97c9
TS
8067 }
8068
44c410de 8069 /* Change alignments of some sections. */
3d4d4302 8070 s = bfd_get_linker_section (abfd, ".hash");
b49e97c9 8071 if (s != NULL)
a253d456
NC
8072 (void) bfd_set_section_alignment (abfd, s, MIPS_ELF_LOG_FILE_ALIGN (abfd));
8073
3d4d4302 8074 s = bfd_get_linker_section (abfd, ".dynsym");
b49e97c9 8075 if (s != NULL)
a253d456
NC
8076 (void) bfd_set_section_alignment (abfd, s, MIPS_ELF_LOG_FILE_ALIGN (abfd));
8077
3d4d4302 8078 s = bfd_get_linker_section (abfd, ".dynstr");
b49e97c9 8079 if (s != NULL)
a253d456
NC
8080 (void) bfd_set_section_alignment (abfd, s, MIPS_ELF_LOG_FILE_ALIGN (abfd));
8081
3d4d4302 8082 /* ??? */
b49e97c9
TS
8083 s = bfd_get_section_by_name (abfd, ".reginfo");
8084 if (s != NULL)
a253d456
NC
8085 (void) bfd_set_section_alignment (abfd, s, MIPS_ELF_LOG_FILE_ALIGN (abfd));
8086
3d4d4302 8087 s = bfd_get_linker_section (abfd, ".dynamic");
b49e97c9 8088 if (s != NULL)
a253d456 8089 (void) bfd_set_section_alignment (abfd, s, MIPS_ELF_LOG_FILE_ALIGN (abfd));
b49e97c9
TS
8090 }
8091
0e1862bb 8092 if (bfd_link_executable (info))
b49e97c9 8093 {
14a793b2
AM
8094 const char *name;
8095
8096 name = SGI_COMPAT (abfd) ? "_DYNAMIC_LINK" : "_DYNAMIC_LINKING";
8097 bh = NULL;
8098 if (!(_bfd_generic_link_add_one_symbol
9719ad41
RS
8099 (info, abfd, name, BSF_GLOBAL, bfd_abs_section_ptr, 0,
8100 NULL, FALSE, get_elf_backend_data (abfd)->collect, &bh)))
b34976b6 8101 return FALSE;
14a793b2
AM
8102
8103 h = (struct elf_link_hash_entry *) bh;
f5385ebf
AM
8104 h->non_elf = 0;
8105 h->def_regular = 1;
b49e97c9
TS
8106 h->type = STT_SECTION;
8107
c152c796 8108 if (! bfd_elf_link_record_dynamic_symbol (info, h))
b34976b6 8109 return FALSE;
b49e97c9
TS
8110
8111 if (! mips_elf_hash_table (info)->use_rld_obj_head)
8112 {
8113 /* __rld_map is a four byte word located in the .data section
8114 and is filled in by the rtld to contain a pointer to
8115 the _r_debug structure. Its symbol value will be set in
8116 _bfd_mips_elf_finish_dynamic_symbol. */
3d4d4302 8117 s = bfd_get_linker_section (abfd, ".rld_map");
0abfb97a 8118 BFD_ASSERT (s != NULL);
14a793b2 8119
0abfb97a
L
8120 name = SGI_COMPAT (abfd) ? "__rld_map" : "__RLD_MAP";
8121 bh = NULL;
8122 if (!(_bfd_generic_link_add_one_symbol
8123 (info, abfd, name, BSF_GLOBAL, s, 0, NULL, FALSE,
8124 get_elf_backend_data (abfd)->collect, &bh)))
8125 return FALSE;
b49e97c9 8126
0abfb97a
L
8127 h = (struct elf_link_hash_entry *) bh;
8128 h->non_elf = 0;
8129 h->def_regular = 1;
8130 h->type = STT_OBJECT;
8131
8132 if (! bfd_elf_link_record_dynamic_symbol (info, h))
8133 return FALSE;
b4082c70 8134 mips_elf_hash_table (info)->rld_symbol = h;
b49e97c9
TS
8135 }
8136 }
8137
861fb55a 8138 /* Create the .plt, .rel(a).plt, .dynbss and .rel(a).bss sections.
c164a95d 8139 Also, on VxWorks, create the _PROCEDURE_LINKAGE_TABLE_ symbol. */
861fb55a
DJ
8140 if (!_bfd_elf_create_dynamic_sections (abfd, info))
8141 return FALSE;
8142
1bbce132
MR
8143 /* Do the usual VxWorks handling. */
8144 if (htab->is_vxworks
8145 && !elf_vxworks_create_dynamic_sections (abfd, info, &htab->srelplt2))
8146 return FALSE;
0a44bf69 8147
b34976b6 8148 return TRUE;
b49e97c9
TS
8149}
8150\f
c224138d
RS
8151/* Return true if relocation REL against section SEC is a REL rather than
8152 RELA relocation. RELOCS is the first relocation in the section and
8153 ABFD is the bfd that contains SEC. */
8154
8155static bfd_boolean
8156mips_elf_rel_relocation_p (bfd *abfd, asection *sec,
8157 const Elf_Internal_Rela *relocs,
8158 const Elf_Internal_Rela *rel)
8159{
8160 Elf_Internal_Shdr *rel_hdr;
8161 const struct elf_backend_data *bed;
8162
d4730f92
BS
8163 /* To determine which flavor of relocation this is, we depend on the
8164 fact that the INPUT_SECTION's REL_HDR is read before RELA_HDR. */
8165 rel_hdr = elf_section_data (sec)->rel.hdr;
8166 if (rel_hdr == NULL)
8167 return FALSE;
c224138d 8168 bed = get_elf_backend_data (abfd);
d4730f92
BS
8169 return ((size_t) (rel - relocs)
8170 < NUM_SHDR_ENTRIES (rel_hdr) * bed->s->int_rels_per_ext_rel);
c224138d
RS
8171}
8172
8173/* Read the addend for REL relocation REL, which belongs to bfd ABFD.
8174 HOWTO is the relocation's howto and CONTENTS points to the contents
8175 of the section that REL is against. */
8176
8177static bfd_vma
8178mips_elf_read_rel_addend (bfd *abfd, const Elf_Internal_Rela *rel,
8179 reloc_howto_type *howto, bfd_byte *contents)
8180{
8181 bfd_byte *location;
8182 unsigned int r_type;
8183 bfd_vma addend;
17c6c9d9 8184 bfd_vma bytes;
c224138d
RS
8185
8186 r_type = ELF_R_TYPE (abfd, rel->r_info);
8187 location = contents + rel->r_offset;
8188
8189 /* Get the addend, which is stored in the input file. */
df58fc94 8190 _bfd_mips_elf_reloc_unshuffle (abfd, r_type, FALSE, location);
17c6c9d9 8191 bytes = mips_elf_obtain_contents (howto, rel, abfd, contents);
df58fc94 8192 _bfd_mips_elf_reloc_shuffle (abfd, r_type, FALSE, location);
c224138d 8193
17c6c9d9
MR
8194 addend = bytes & howto->src_mask;
8195
8196 /* Shift is 2, unusually, for microMIPS JALX. Adjust the addend
8197 accordingly. */
8198 if (r_type == R_MICROMIPS_26_S1 && (bytes >> 26) == 0x3c)
8199 addend <<= 1;
8200
8201 return addend;
c224138d
RS
8202}
8203
8204/* REL is a relocation in ABFD that needs a partnering LO16 relocation
8205 and *ADDEND is the addend for REL itself. Look for the LO16 relocation
8206 and update *ADDEND with the final addend. Return true on success
8207 or false if the LO16 could not be found. RELEND is the exclusive
8208 upper bound on the relocations for REL's section. */
8209
8210static bfd_boolean
8211mips_elf_add_lo16_rel_addend (bfd *abfd,
8212 const Elf_Internal_Rela *rel,
8213 const Elf_Internal_Rela *relend,
8214 bfd_byte *contents, bfd_vma *addend)
8215{
8216 unsigned int r_type, lo16_type;
8217 const Elf_Internal_Rela *lo16_relocation;
8218 reloc_howto_type *lo16_howto;
8219 bfd_vma l;
8220
8221 r_type = ELF_R_TYPE (abfd, rel->r_info);
738e5348 8222 if (mips16_reloc_p (r_type))
c224138d 8223 lo16_type = R_MIPS16_LO16;
df58fc94
RS
8224 else if (micromips_reloc_p (r_type))
8225 lo16_type = R_MICROMIPS_LO16;
7361da2c
AB
8226 else if (r_type == R_MIPS_PCHI16)
8227 lo16_type = R_MIPS_PCLO16;
c224138d
RS
8228 else
8229 lo16_type = R_MIPS_LO16;
8230
8231 /* The combined value is the sum of the HI16 addend, left-shifted by
8232 sixteen bits, and the LO16 addend, sign extended. (Usually, the
8233 code does a `lui' of the HI16 value, and then an `addiu' of the
8234 LO16 value.)
8235
8236 Scan ahead to find a matching LO16 relocation.
8237
8238 According to the MIPS ELF ABI, the R_MIPS_LO16 relocation must
8239 be immediately following. However, for the IRIX6 ABI, the next
8240 relocation may be a composed relocation consisting of several
8241 relocations for the same address. In that case, the R_MIPS_LO16
8242 relocation may occur as one of these. We permit a similar
8243 extension in general, as that is useful for GCC.
8244
8245 In some cases GCC dead code elimination removes the LO16 but keeps
8246 the corresponding HI16. This is strictly speaking a violation of
8247 the ABI but not immediately harmful. */
8248 lo16_relocation = mips_elf_next_relocation (abfd, lo16_type, rel, relend);
8249 if (lo16_relocation == NULL)
8250 return FALSE;
8251
8252 /* Obtain the addend kept there. */
8253 lo16_howto = MIPS_ELF_RTYPE_TO_HOWTO (abfd, lo16_type, FALSE);
8254 l = mips_elf_read_rel_addend (abfd, lo16_relocation, lo16_howto, contents);
8255
8256 l <<= lo16_howto->rightshift;
8257 l = _bfd_mips_elf_sign_extend (l, 16);
8258
8259 *addend <<= 16;
8260 *addend += l;
8261 return TRUE;
8262}
8263
8264/* Try to read the contents of section SEC in bfd ABFD. Return true and
8265 store the contents in *CONTENTS on success. Assume that *CONTENTS
8266 already holds the contents if it is nonull on entry. */
8267
8268static bfd_boolean
8269mips_elf_get_section_contents (bfd *abfd, asection *sec, bfd_byte **contents)
8270{
8271 if (*contents)
8272 return TRUE;
8273
8274 /* Get cached copy if it exists. */
8275 if (elf_section_data (sec)->this_hdr.contents != NULL)
8276 {
8277 *contents = elf_section_data (sec)->this_hdr.contents;
8278 return TRUE;
8279 }
8280
8281 return bfd_malloc_and_get_section (abfd, sec, contents);
8282}
8283
1bbce132
MR
8284/* Make a new PLT record to keep internal data. */
8285
8286static struct plt_entry *
8287mips_elf_make_plt_record (bfd *abfd)
8288{
8289 struct plt_entry *entry;
8290
8291 entry = bfd_zalloc (abfd, sizeof (*entry));
8292 if (entry == NULL)
8293 return NULL;
8294
8295 entry->stub_offset = MINUS_ONE;
8296 entry->mips_offset = MINUS_ONE;
8297 entry->comp_offset = MINUS_ONE;
8298 entry->gotplt_index = MINUS_ONE;
8299 return entry;
8300}
8301
47275900
MR
8302/* Define the special `__gnu_absolute_zero' symbol. We only need this
8303 for PIC code, as otherwise there is no load-time relocation involved
8304 and local GOT entries whose value is zero at static link time will
8305 retain their value at load time. */
8306
8307static bfd_boolean
8308mips_elf_define_absolute_zero (bfd *abfd, struct bfd_link_info *info,
8309 struct mips_elf_link_hash_table *htab,
8310 unsigned int r_type)
8311{
8312 union
8313 {
8314 struct elf_link_hash_entry *eh;
8315 struct bfd_link_hash_entry *bh;
8316 }
8317 hzero;
8318
8319 BFD_ASSERT (!htab->use_absolute_zero);
8320 BFD_ASSERT (bfd_link_pic (info));
8321
8322 hzero.bh = NULL;
8323 if (!_bfd_generic_link_add_one_symbol (info, abfd, "__gnu_absolute_zero",
8324 BSF_GLOBAL, bfd_abs_section_ptr, 0,
8325 NULL, FALSE, FALSE, &hzero.bh))
8326 return FALSE;
8327
8328 BFD_ASSERT (hzero.bh != NULL);
8329 hzero.eh->size = 0;
8330 hzero.eh->type = STT_NOTYPE;
8331 hzero.eh->other = STV_PROTECTED;
8332 hzero.eh->def_regular = 1;
8333 hzero.eh->non_elf = 0;
8334
8335 if (!mips_elf_record_global_got_symbol (hzero.eh, abfd, info, TRUE, r_type))
8336 return FALSE;
8337
8338 htab->use_absolute_zero = TRUE;
8339
8340 return TRUE;
8341}
8342
b49e97c9 8343/* Look through the relocs for a section during the first phase, and
1bbce132
MR
8344 allocate space in the global offset table and record the need for
8345 standard MIPS and compressed procedure linkage table entries. */
b49e97c9 8346
b34976b6 8347bfd_boolean
9719ad41
RS
8348_bfd_mips_elf_check_relocs (bfd *abfd, struct bfd_link_info *info,
8349 asection *sec, const Elf_Internal_Rela *relocs)
b49e97c9
TS
8350{
8351 const char *name;
8352 bfd *dynobj;
8353 Elf_Internal_Shdr *symtab_hdr;
8354 struct elf_link_hash_entry **sym_hashes;
b49e97c9
TS
8355 size_t extsymoff;
8356 const Elf_Internal_Rela *rel;
8357 const Elf_Internal_Rela *rel_end;
b49e97c9 8358 asection *sreloc;
9c5bfbb7 8359 const struct elf_backend_data *bed;
0a44bf69 8360 struct mips_elf_link_hash_table *htab;
c224138d
RS
8361 bfd_byte *contents;
8362 bfd_vma addend;
8363 reloc_howto_type *howto;
b49e97c9 8364
0e1862bb 8365 if (bfd_link_relocatable (info))
b34976b6 8366 return TRUE;
b49e97c9 8367
0a44bf69 8368 htab = mips_elf_hash_table (info);
4dfe6ac6
NC
8369 BFD_ASSERT (htab != NULL);
8370
b49e97c9
TS
8371 dynobj = elf_hash_table (info)->dynobj;
8372 symtab_hdr = &elf_tdata (abfd)->symtab_hdr;
8373 sym_hashes = elf_sym_hashes (abfd);
8374 extsymoff = (elf_bad_symtab (abfd)) ? 0 : symtab_hdr->sh_info;
8375
738e5348 8376 bed = get_elf_backend_data (abfd);
056bafd4 8377 rel_end = relocs + sec->reloc_count;
738e5348 8378
b49e97c9
TS
8379 /* Check for the mips16 stub sections. */
8380
8381 name = bfd_get_section_name (abfd, sec);
b9d58d71 8382 if (FN_STUB_P (name))
b49e97c9
TS
8383 {
8384 unsigned long r_symndx;
8385
8386 /* Look at the relocation information to figure out which symbol
07d6d2b8 8387 this is for. */
b49e97c9 8388
cb4437b8 8389 r_symndx = mips16_stub_symndx (bed, sec, relocs, rel_end);
738e5348
RS
8390 if (r_symndx == 0)
8391 {
4eca0228 8392 _bfd_error_handler
695344c0 8393 /* xgettext:c-format */
2c1c9679 8394 (_("%pB: warning: cannot determine the target function for"
738e5348
RS
8395 " stub section `%s'"),
8396 abfd, name);
8397 bfd_set_error (bfd_error_bad_value);
8398 return FALSE;
8399 }
b49e97c9
TS
8400
8401 if (r_symndx < extsymoff
8402 || sym_hashes[r_symndx - extsymoff] == NULL)
8403 {
8404 asection *o;
8405
8406 /* This stub is for a local symbol. This stub will only be
07d6d2b8
AM
8407 needed if there is some relocation in this BFD, other
8408 than a 16 bit function call, which refers to this symbol. */
b49e97c9
TS
8409 for (o = abfd->sections; o != NULL; o = o->next)
8410 {
8411 Elf_Internal_Rela *sec_relocs;
8412 const Elf_Internal_Rela *r, *rend;
8413
8414 /* We can ignore stub sections when looking for relocs. */
8415 if ((o->flags & SEC_RELOC) == 0
8416 || o->reloc_count == 0
738e5348 8417 || section_allows_mips16_refs_p (o))
b49e97c9
TS
8418 continue;
8419
45d6a902 8420 sec_relocs
9719ad41 8421 = _bfd_elf_link_read_relocs (abfd, o, NULL, NULL,
45d6a902 8422 info->keep_memory);
b49e97c9 8423 if (sec_relocs == NULL)
b34976b6 8424 return FALSE;
b49e97c9
TS
8425
8426 rend = sec_relocs + o->reloc_count;
8427 for (r = sec_relocs; r < rend; r++)
8428 if (ELF_R_SYM (abfd, r->r_info) == r_symndx
738e5348 8429 && !mips16_call_reloc_p (ELF_R_TYPE (abfd, r->r_info)))
b49e97c9
TS
8430 break;
8431
6cdc0ccc 8432 if (elf_section_data (o)->relocs != sec_relocs)
b49e97c9
TS
8433 free (sec_relocs);
8434
8435 if (r < rend)
8436 break;
8437 }
8438
8439 if (o == NULL)
8440 {
8441 /* There is no non-call reloc for this stub, so we do
07d6d2b8
AM
8442 not need it. Since this function is called before
8443 the linker maps input sections to output sections, we
8444 can easily discard it by setting the SEC_EXCLUDE
8445 flag. */
b49e97c9 8446 sec->flags |= SEC_EXCLUDE;
b34976b6 8447 return TRUE;
b49e97c9
TS
8448 }
8449
8450 /* Record this stub in an array of local symbol stubs for
07d6d2b8 8451 this BFD. */
698600e4 8452 if (mips_elf_tdata (abfd)->local_stubs == NULL)
b49e97c9
TS
8453 {
8454 unsigned long symcount;
8455 asection **n;
8456 bfd_size_type amt;
8457
8458 if (elf_bad_symtab (abfd))
8459 symcount = NUM_SHDR_ENTRIES (symtab_hdr);
8460 else
8461 symcount = symtab_hdr->sh_info;
8462 amt = symcount * sizeof (asection *);
9719ad41 8463 n = bfd_zalloc (abfd, amt);
b49e97c9 8464 if (n == NULL)
b34976b6 8465 return FALSE;
698600e4 8466 mips_elf_tdata (abfd)->local_stubs = n;
b49e97c9
TS
8467 }
8468
b9d58d71 8469 sec->flags |= SEC_KEEP;
698600e4 8470 mips_elf_tdata (abfd)->local_stubs[r_symndx] = sec;
b49e97c9
TS
8471
8472 /* We don't need to set mips16_stubs_seen in this case.
07d6d2b8
AM
8473 That flag is used to see whether we need to look through
8474 the global symbol table for stubs. We don't need to set
8475 it here, because we just have a local stub. */
b49e97c9
TS
8476 }
8477 else
8478 {
8479 struct mips_elf_link_hash_entry *h;
8480
8481 h = ((struct mips_elf_link_hash_entry *)
8482 sym_hashes[r_symndx - extsymoff]);
8483
973a3492
L
8484 while (h->root.root.type == bfd_link_hash_indirect
8485 || h->root.root.type == bfd_link_hash_warning)
8486 h = (struct mips_elf_link_hash_entry *) h->root.root.u.i.link;
8487
b49e97c9
TS
8488 /* H is the symbol this stub is for. */
8489
b9d58d71
TS
8490 /* If we already have an appropriate stub for this function, we
8491 don't need another one, so we can discard this one. Since
8492 this function is called before the linker maps input sections
8493 to output sections, we can easily discard it by setting the
8494 SEC_EXCLUDE flag. */
8495 if (h->fn_stub != NULL)
8496 {
8497 sec->flags |= SEC_EXCLUDE;
8498 return TRUE;
8499 }
8500
8501 sec->flags |= SEC_KEEP;
b49e97c9 8502 h->fn_stub = sec;
b34976b6 8503 mips_elf_hash_table (info)->mips16_stubs_seen = TRUE;
b49e97c9
TS
8504 }
8505 }
b9d58d71 8506 else if (CALL_STUB_P (name) || CALL_FP_STUB_P (name))
b49e97c9
TS
8507 {
8508 unsigned long r_symndx;
8509 struct mips_elf_link_hash_entry *h;
8510 asection **loc;
8511
8512 /* Look at the relocation information to figure out which symbol
07d6d2b8 8513 this is for. */
b49e97c9 8514
cb4437b8 8515 r_symndx = mips16_stub_symndx (bed, sec, relocs, rel_end);
738e5348
RS
8516 if (r_symndx == 0)
8517 {
4eca0228 8518 _bfd_error_handler
695344c0 8519 /* xgettext:c-format */
2c1c9679 8520 (_("%pB: warning: cannot determine the target function for"
738e5348
RS
8521 " stub section `%s'"),
8522 abfd, name);
8523 bfd_set_error (bfd_error_bad_value);
8524 return FALSE;
8525 }
b49e97c9
TS
8526
8527 if (r_symndx < extsymoff
8528 || sym_hashes[r_symndx - extsymoff] == NULL)
8529 {
b9d58d71 8530 asection *o;
b49e97c9 8531
b9d58d71 8532 /* This stub is for a local symbol. This stub will only be
07d6d2b8
AM
8533 needed if there is some relocation (R_MIPS16_26) in this BFD
8534 that refers to this symbol. */
b9d58d71
TS
8535 for (o = abfd->sections; o != NULL; o = o->next)
8536 {
8537 Elf_Internal_Rela *sec_relocs;
8538 const Elf_Internal_Rela *r, *rend;
8539
8540 /* We can ignore stub sections when looking for relocs. */
8541 if ((o->flags & SEC_RELOC) == 0
8542 || o->reloc_count == 0
738e5348 8543 || section_allows_mips16_refs_p (o))
b9d58d71
TS
8544 continue;
8545
8546 sec_relocs
8547 = _bfd_elf_link_read_relocs (abfd, o, NULL, NULL,
8548 info->keep_memory);
8549 if (sec_relocs == NULL)
8550 return FALSE;
8551
8552 rend = sec_relocs + o->reloc_count;
8553 for (r = sec_relocs; r < rend; r++)
8554 if (ELF_R_SYM (abfd, r->r_info) == r_symndx
8555 && ELF_R_TYPE (abfd, r->r_info) == R_MIPS16_26)
8556 break;
8557
8558 if (elf_section_data (o)->relocs != sec_relocs)
8559 free (sec_relocs);
8560
8561 if (r < rend)
8562 break;
8563 }
8564
8565 if (o == NULL)
8566 {
8567 /* There is no non-call reloc for this stub, so we do
07d6d2b8
AM
8568 not need it. Since this function is called before
8569 the linker maps input sections to output sections, we
8570 can easily discard it by setting the SEC_EXCLUDE
8571 flag. */
b9d58d71
TS
8572 sec->flags |= SEC_EXCLUDE;
8573 return TRUE;
8574 }
8575
8576 /* Record this stub in an array of local symbol call_stubs for
07d6d2b8 8577 this BFD. */
698600e4 8578 if (mips_elf_tdata (abfd)->local_call_stubs == NULL)
b9d58d71
TS
8579 {
8580 unsigned long symcount;
8581 asection **n;
8582 bfd_size_type amt;
8583
8584 if (elf_bad_symtab (abfd))
8585 symcount = NUM_SHDR_ENTRIES (symtab_hdr);
8586 else
8587 symcount = symtab_hdr->sh_info;
8588 amt = symcount * sizeof (asection *);
8589 n = bfd_zalloc (abfd, amt);
8590 if (n == NULL)
8591 return FALSE;
698600e4 8592 mips_elf_tdata (abfd)->local_call_stubs = n;
b9d58d71 8593 }
b49e97c9 8594
b9d58d71 8595 sec->flags |= SEC_KEEP;
698600e4 8596 mips_elf_tdata (abfd)->local_call_stubs[r_symndx] = sec;
b49e97c9 8597
b9d58d71 8598 /* We don't need to set mips16_stubs_seen in this case.
07d6d2b8
AM
8599 That flag is used to see whether we need to look through
8600 the global symbol table for stubs. We don't need to set
8601 it here, because we just have a local stub. */
b9d58d71 8602 }
b49e97c9 8603 else
b49e97c9 8604 {
b9d58d71
TS
8605 h = ((struct mips_elf_link_hash_entry *)
8606 sym_hashes[r_symndx - extsymoff]);
68ffbac6 8607
b9d58d71 8608 /* H is the symbol this stub is for. */
68ffbac6 8609
b9d58d71
TS
8610 if (CALL_FP_STUB_P (name))
8611 loc = &h->call_fp_stub;
8612 else
8613 loc = &h->call_stub;
68ffbac6 8614
b9d58d71
TS
8615 /* If we already have an appropriate stub for this function, we
8616 don't need another one, so we can discard this one. Since
8617 this function is called before the linker maps input sections
8618 to output sections, we can easily discard it by setting the
8619 SEC_EXCLUDE flag. */
8620 if (*loc != NULL)
8621 {
8622 sec->flags |= SEC_EXCLUDE;
8623 return TRUE;
8624 }
b49e97c9 8625
b9d58d71
TS
8626 sec->flags |= SEC_KEEP;
8627 *loc = sec;
8628 mips_elf_hash_table (info)->mips16_stubs_seen = TRUE;
8629 }
b49e97c9
TS
8630 }
8631
b49e97c9 8632 sreloc = NULL;
c224138d 8633 contents = NULL;
b49e97c9
TS
8634 for (rel = relocs; rel < rel_end; ++rel)
8635 {
8636 unsigned long r_symndx;
8637 unsigned int r_type;
8638 struct elf_link_hash_entry *h;
861fb55a 8639 bfd_boolean can_make_dynamic_p;
c5d6fa44
RS
8640 bfd_boolean call_reloc_p;
8641 bfd_boolean constrain_symbol_p;
b49e97c9
TS
8642
8643 r_symndx = ELF_R_SYM (abfd, rel->r_info);
8644 r_type = ELF_R_TYPE (abfd, rel->r_info);
8645
8646 if (r_symndx < extsymoff)
8647 h = NULL;
8648 else if (r_symndx >= extsymoff + NUM_SHDR_ENTRIES (symtab_hdr))
8649 {
4eca0228 8650 _bfd_error_handler
695344c0 8651 /* xgettext:c-format */
2c1c9679 8652 (_("%pB: malformed reloc detected for section %s"),
d003868e 8653 abfd, name);
b49e97c9 8654 bfd_set_error (bfd_error_bad_value);
b34976b6 8655 return FALSE;
b49e97c9
TS
8656 }
8657 else
8658 {
8659 h = sym_hashes[r_symndx - extsymoff];
81fbe831
AM
8660 if (h != NULL)
8661 {
8662 while (h->root.type == bfd_link_hash_indirect
8663 || h->root.type == bfd_link_hash_warning)
8664 h = (struct elf_link_hash_entry *) h->root.u.i.link;
81fbe831 8665 }
861fb55a 8666 }
b49e97c9 8667
861fb55a
DJ
8668 /* Set CAN_MAKE_DYNAMIC_P to true if we can convert this
8669 relocation into a dynamic one. */
8670 can_make_dynamic_p = FALSE;
c5d6fa44
RS
8671
8672 /* Set CALL_RELOC_P to true if the relocation is for a call,
8673 and if pointer equality therefore doesn't matter. */
8674 call_reloc_p = FALSE;
8675
8676 /* Set CONSTRAIN_SYMBOL_P if we need to take the relocation
8677 into account when deciding how to define the symbol.
8678 Relocations in nonallocatable sections such as .pdr and
8679 .debug* should have no effect. */
8680 constrain_symbol_p = ((sec->flags & SEC_ALLOC) != 0);
8681
861fb55a
DJ
8682 switch (r_type)
8683 {
861fb55a
DJ
8684 case R_MIPS_CALL16:
8685 case R_MIPS_CALL_HI16:
8686 case R_MIPS_CALL_LO16:
c5d6fa44
RS
8687 case R_MIPS16_CALL16:
8688 case R_MICROMIPS_CALL16:
8689 case R_MICROMIPS_CALL_HI16:
8690 case R_MICROMIPS_CALL_LO16:
8691 call_reloc_p = TRUE;
8692 /* Fall through. */
8693
8694 case R_MIPS_GOT16:
861fb55a
DJ
8695 case R_MIPS_GOT_LO16:
8696 case R_MIPS_GOT_PAGE:
861fb55a 8697 case R_MIPS_GOT_DISP:
47275900
MR
8698 case R_MIPS16_GOT16:
8699 case R_MICROMIPS_GOT16:
8700 case R_MICROMIPS_GOT_LO16:
8701 case R_MICROMIPS_GOT_PAGE:
8702 case R_MICROMIPS_GOT_DISP:
8703 /* If we have a symbol that will resolve to zero at static link
8704 time and it is used by a GOT relocation applied to code we
8705 cannot relax to an immediate zero load, then we will be using
8706 the special `__gnu_absolute_zero' symbol whose value is zero
8707 at dynamic load time. We ignore HI16-type GOT relocations at
8708 this stage, because their handling will depend entirely on
8709 the corresponding LO16-type GOT relocation. */
8710 if (!call_hi16_reloc_p (r_type)
8711 && h != NULL
8712 && bfd_link_pic (info)
8713 && !htab->use_absolute_zero
8714 && UNDEFWEAK_NO_DYNAMIC_RELOC (info, h))
8715 {
8716 bfd_boolean rel_reloc;
8717
8718 if (!mips_elf_get_section_contents (abfd, sec, &contents))
8719 return FALSE;
8720
8721 rel_reloc = mips_elf_rel_relocation_p (abfd, sec, relocs, rel);
8722 howto = MIPS_ELF_RTYPE_TO_HOWTO (abfd, r_type, !rel_reloc);
8723
8724 if (!mips_elf_nullify_got_load (abfd, contents, rel, howto,
8725 FALSE))
8726 if (!mips_elf_define_absolute_zero (abfd, info, htab, r_type))
8727 return FALSE;
8728 }
8729
8730 /* Fall through. */
8731 case R_MIPS_GOT_HI16:
8732 case R_MIPS_GOT_OFST:
861fb55a
DJ
8733 case R_MIPS_TLS_GOTTPREL:
8734 case R_MIPS_TLS_GD:
8735 case R_MIPS_TLS_LDM:
d0f13682
CLT
8736 case R_MIPS16_TLS_GOTTPREL:
8737 case R_MIPS16_TLS_GD:
8738 case R_MIPS16_TLS_LDM:
df58fc94 8739 case R_MICROMIPS_GOT_HI16:
df58fc94 8740 case R_MICROMIPS_GOT_OFST:
df58fc94
RS
8741 case R_MICROMIPS_TLS_GOTTPREL:
8742 case R_MICROMIPS_TLS_GD:
8743 case R_MICROMIPS_TLS_LDM:
861fb55a
DJ
8744 if (dynobj == NULL)
8745 elf_hash_table (info)->dynobj = dynobj = abfd;
8746 if (!mips_elf_create_got_section (dynobj, info))
8747 return FALSE;
0e1862bb 8748 if (htab->is_vxworks && !bfd_link_pic (info))
b49e97c9 8749 {
4eca0228 8750 _bfd_error_handler
695344c0 8751 /* xgettext:c-format */
2dcf00ce
AM
8752 (_("%pB: GOT reloc at %#" PRIx64 " not expected in executables"),
8753 abfd, (uint64_t) rel->r_offset);
861fb55a
DJ
8754 bfd_set_error (bfd_error_bad_value);
8755 return FALSE;
b49e97c9 8756 }
c5d6fa44 8757 can_make_dynamic_p = TRUE;
861fb55a 8758 break;
b49e97c9 8759
c5d6fa44 8760 case R_MIPS_NONE:
99da6b5f 8761 case R_MIPS_JALR:
df58fc94 8762 case R_MICROMIPS_JALR:
c5d6fa44
RS
8763 /* These relocations have empty fields and are purely there to
8764 provide link information. The symbol value doesn't matter. */
8765 constrain_symbol_p = FALSE;
8766 break;
8767
8768 case R_MIPS_GPREL16:
8769 case R_MIPS_GPREL32:
8770 case R_MIPS16_GPREL:
8771 case R_MICROMIPS_GPREL16:
8772 /* GP-relative relocations always resolve to a definition in a
8773 regular input file, ignoring the one-definition rule. This is
8774 important for the GP setup sequence in NewABI code, which
8775 always resolves to a local function even if other relocations
8776 against the symbol wouldn't. */
8777 constrain_symbol_p = FALSE;
99da6b5f
AN
8778 break;
8779
861fb55a
DJ
8780 case R_MIPS_32:
8781 case R_MIPS_REL32:
8782 case R_MIPS_64:
8783 /* In VxWorks executables, references to external symbols
8784 must be handled using copy relocs or PLT entries; it is not
8785 possible to convert this relocation into a dynamic one.
8786
8787 For executables that use PLTs and copy-relocs, we have a
8788 choice between converting the relocation into a dynamic
8789 one or using copy relocations or PLT entries. It is
8790 usually better to do the former, unless the relocation is
8791 against a read-only section. */
0e1862bb 8792 if ((bfd_link_pic (info)
861fb55a
DJ
8793 || (h != NULL
8794 && !htab->is_vxworks
8795 && strcmp (h->root.root.string, "__gnu_local_gp") != 0
8796 && !(!info->nocopyreloc
8797 && !PIC_OBJECT_P (abfd)
8798 && MIPS_ELF_READONLY_SECTION (sec))))
8799 && (sec->flags & SEC_ALLOC) != 0)
b49e97c9 8800 {
861fb55a 8801 can_make_dynamic_p = TRUE;
b49e97c9
TS
8802 if (dynobj == NULL)
8803 elf_hash_table (info)->dynobj = dynobj = abfd;
861fb55a 8804 }
c5d6fa44 8805 break;
b49e97c9 8806
861fb55a
DJ
8807 case R_MIPS_26:
8808 case R_MIPS_PC16:
7361da2c
AB
8809 case R_MIPS_PC21_S2:
8810 case R_MIPS_PC26_S2:
861fb55a 8811 case R_MIPS16_26:
c9775dde 8812 case R_MIPS16_PC16_S1:
df58fc94
RS
8813 case R_MICROMIPS_26_S1:
8814 case R_MICROMIPS_PC7_S1:
8815 case R_MICROMIPS_PC10_S1:
8816 case R_MICROMIPS_PC16_S1:
8817 case R_MICROMIPS_PC23_S2:
c5d6fa44 8818 call_reloc_p = TRUE;
861fb55a 8819 break;
b49e97c9
TS
8820 }
8821
0a44bf69
RS
8822 if (h)
8823 {
c5d6fa44
RS
8824 if (constrain_symbol_p)
8825 {
8826 if (!can_make_dynamic_p)
8827 ((struct mips_elf_link_hash_entry *) h)->has_static_relocs = 1;
8828
8829 if (!call_reloc_p)
8830 h->pointer_equality_needed = 1;
8831
8832 /* We must not create a stub for a symbol that has
8833 relocations related to taking the function's address.
8834 This doesn't apply to VxWorks, where CALL relocs refer
8835 to a .got.plt entry instead of a normal .got entry. */
8836 if (!htab->is_vxworks && (!can_make_dynamic_p || !call_reloc_p))
8837 ((struct mips_elf_link_hash_entry *) h)->no_fn_stub = TRUE;
8838 }
8839
0a44bf69
RS
8840 /* Relocations against the special VxWorks __GOTT_BASE__ and
8841 __GOTT_INDEX__ symbols must be left to the loader. Allocate
8842 room for them in .rela.dyn. */
8843 if (is_gott_symbol (info, h))
8844 {
8845 if (sreloc == NULL)
8846 {
8847 sreloc = mips_elf_rel_dyn_section (info, TRUE);
8848 if (sreloc == NULL)
8849 return FALSE;
8850 }
8851 mips_elf_allocate_dynamic_relocations (dynobj, info, 1);
9e3313ae
RS
8852 if (MIPS_ELF_READONLY_SECTION (sec))
8853 /* We tell the dynamic linker that there are
8854 relocations against the text segment. */
8855 info->flags |= DF_TEXTREL;
0a44bf69
RS
8856 }
8857 }
df58fc94
RS
8858 else if (call_lo16_reloc_p (r_type)
8859 || got_lo16_reloc_p (r_type)
8860 || got_disp_reloc_p (r_type)
738e5348 8861 || (got16_reloc_p (r_type) && htab->is_vxworks))
b49e97c9
TS
8862 {
8863 /* We may need a local GOT entry for this relocation. We
8864 don't count R_MIPS_GOT_PAGE because we can estimate the
8865 maximum number of pages needed by looking at the size of
738e5348
RS
8866 the segment. Similar comments apply to R_MIPS*_GOT16 and
8867 R_MIPS*_CALL16, except on VxWorks, where GOT relocations
0a44bf69 8868 always evaluate to "G". We don't count R_MIPS_GOT_HI16, or
b49e97c9 8869 R_MIPS_CALL_HI16 because these are always followed by an
b15e6682 8870 R_MIPS_GOT_LO16 or R_MIPS_CALL_LO16. */
a8028dd0 8871 if (!mips_elf_record_local_got_symbol (abfd, r_symndx,
e641e783 8872 rel->r_addend, info, r_type))
f4416af6 8873 return FALSE;
b49e97c9
TS
8874 }
8875
8f0c309a
CLT
8876 if (h != NULL
8877 && mips_elf_relocation_needs_la25_stub (abfd, r_type,
8878 ELF_ST_IS_MIPS16 (h->other)))
861fb55a
DJ
8879 ((struct mips_elf_link_hash_entry *) h)->has_nonpic_branches = TRUE;
8880
b49e97c9
TS
8881 switch (r_type)
8882 {
8883 case R_MIPS_CALL16:
738e5348 8884 case R_MIPS16_CALL16:
df58fc94 8885 case R_MICROMIPS_CALL16:
b49e97c9
TS
8886 if (h == NULL)
8887 {
4eca0228 8888 _bfd_error_handler
695344c0 8889 /* xgettext:c-format */
2dcf00ce
AM
8890 (_("%pB: CALL16 reloc at %#" PRIx64 " not against global symbol"),
8891 abfd, (uint64_t) rel->r_offset);
b49e97c9 8892 bfd_set_error (bfd_error_bad_value);
b34976b6 8893 return FALSE;
b49e97c9
TS
8894 }
8895 /* Fall through. */
8896
8897 case R_MIPS_CALL_HI16:
8898 case R_MIPS_CALL_LO16:
df58fc94
RS
8899 case R_MICROMIPS_CALL_HI16:
8900 case R_MICROMIPS_CALL_LO16:
b49e97c9
TS
8901 if (h != NULL)
8902 {
6ccf4795
RS
8903 /* Make sure there is room in the regular GOT to hold the
8904 function's address. We may eliminate it in favour of
8905 a .got.plt entry later; see mips_elf_count_got_symbols. */
e641e783
RS
8906 if (!mips_elf_record_global_got_symbol (h, abfd, info, TRUE,
8907 r_type))
b34976b6 8908 return FALSE;
b49e97c9
TS
8909
8910 /* We need a stub, not a plt entry for the undefined
8911 function. But we record it as if it needs plt. See
c152c796 8912 _bfd_elf_adjust_dynamic_symbol. */
f5385ebf 8913 h->needs_plt = 1;
b49e97c9
TS
8914 h->type = STT_FUNC;
8915 }
8916 break;
8917
0fdc1bf1 8918 case R_MIPS_GOT_PAGE:
df58fc94 8919 case R_MICROMIPS_GOT_PAGE:
738e5348 8920 case R_MIPS16_GOT16:
b49e97c9
TS
8921 case R_MIPS_GOT16:
8922 case R_MIPS_GOT_HI16:
8923 case R_MIPS_GOT_LO16:
df58fc94
RS
8924 case R_MICROMIPS_GOT16:
8925 case R_MICROMIPS_GOT_HI16:
8926 case R_MICROMIPS_GOT_LO16:
8927 if (!h || got_page_reloc_p (r_type))
c224138d 8928 {
3a3b6725
DJ
8929 /* This relocation needs (or may need, if h != NULL) a
8930 page entry in the GOT. For R_MIPS_GOT_PAGE we do not
8931 know for sure until we know whether the symbol is
8932 preemptible. */
c224138d
RS
8933 if (mips_elf_rel_relocation_p (abfd, sec, relocs, rel))
8934 {
8935 if (!mips_elf_get_section_contents (abfd, sec, &contents))
8936 return FALSE;
8937 howto = MIPS_ELF_RTYPE_TO_HOWTO (abfd, r_type, FALSE);
8938 addend = mips_elf_read_rel_addend (abfd, rel,
8939 howto, contents);
9684f078 8940 if (got16_reloc_p (r_type))
c224138d
RS
8941 mips_elf_add_lo16_rel_addend (abfd, rel, rel_end,
8942 contents, &addend);
8943 else
8944 addend <<= howto->rightshift;
8945 }
8946 else
8947 addend = rel->r_addend;
13db6b44
RS
8948 if (!mips_elf_record_got_page_ref (info, abfd, r_symndx,
8949 h, addend))
c224138d 8950 return FALSE;
13db6b44
RS
8951
8952 if (h)
8953 {
8954 struct mips_elf_link_hash_entry *hmips =
8955 (struct mips_elf_link_hash_entry *) h;
8956
8957 /* This symbol is definitely not overridable. */
8958 if (hmips->root.def_regular
0e1862bb 8959 && ! (bfd_link_pic (info) && ! info->symbolic
13db6b44
RS
8960 && ! hmips->root.forced_local))
8961 h = NULL;
8962 }
c224138d 8963 }
13db6b44
RS
8964 /* If this is a global, overridable symbol, GOT_PAGE will
8965 decay to GOT_DISP, so we'll need a GOT entry for it. */
c224138d
RS
8966 /* Fall through. */
8967
b49e97c9 8968 case R_MIPS_GOT_DISP:
df58fc94 8969 case R_MICROMIPS_GOT_DISP:
6ccf4795 8970 if (h && !mips_elf_record_global_got_symbol (h, abfd, info,
e641e783 8971 FALSE, r_type))
b34976b6 8972 return FALSE;
b49e97c9
TS
8973 break;
8974
0f20cc35 8975 case R_MIPS_TLS_GOTTPREL:
d0f13682 8976 case R_MIPS16_TLS_GOTTPREL:
df58fc94 8977 case R_MICROMIPS_TLS_GOTTPREL:
0e1862bb 8978 if (bfd_link_pic (info))
0f20cc35
DJ
8979 info->flags |= DF_STATIC_TLS;
8980 /* Fall through */
8981
8982 case R_MIPS_TLS_LDM:
d0f13682 8983 case R_MIPS16_TLS_LDM:
df58fc94
RS
8984 case R_MICROMIPS_TLS_LDM:
8985 if (tls_ldm_reloc_p (r_type))
0f20cc35 8986 {
cf35638d 8987 r_symndx = STN_UNDEF;
0f20cc35
DJ
8988 h = NULL;
8989 }
8990 /* Fall through */
8991
8992 case R_MIPS_TLS_GD:
d0f13682 8993 case R_MIPS16_TLS_GD:
df58fc94 8994 case R_MICROMIPS_TLS_GD:
0f20cc35
DJ
8995 /* This symbol requires a global offset table entry, or two
8996 for TLS GD relocations. */
e641e783
RS
8997 if (h != NULL)
8998 {
8999 if (!mips_elf_record_global_got_symbol (h, abfd, info,
9000 FALSE, r_type))
9001 return FALSE;
9002 }
9003 else
9004 {
9005 if (!mips_elf_record_local_got_symbol (abfd, r_symndx,
9006 rel->r_addend,
9007 info, r_type))
9008 return FALSE;
9009 }
0f20cc35
DJ
9010 break;
9011
b49e97c9
TS
9012 case R_MIPS_32:
9013 case R_MIPS_REL32:
9014 case R_MIPS_64:
0a44bf69
RS
9015 /* In VxWorks executables, references to external symbols
9016 are handled using copy relocs or PLT stubs, so there's
9017 no need to add a .rela.dyn entry for this relocation. */
861fb55a 9018 if (can_make_dynamic_p)
b49e97c9
TS
9019 {
9020 if (sreloc == NULL)
9021 {
0a44bf69 9022 sreloc = mips_elf_rel_dyn_section (info, TRUE);
b49e97c9 9023 if (sreloc == NULL)
f4416af6 9024 return FALSE;
b49e97c9 9025 }
0e1862bb 9026 if (bfd_link_pic (info) && h == NULL)
82f0cfbd
EC
9027 {
9028 /* When creating a shared object, we must copy these
9029 reloc types into the output file as R_MIPS_REL32
0a44bf69
RS
9030 relocs. Make room for this reloc in .rel(a).dyn. */
9031 mips_elf_allocate_dynamic_relocations (dynobj, info, 1);
943284cc 9032 if (MIPS_ELF_READONLY_SECTION (sec))
82f0cfbd
EC
9033 /* We tell the dynamic linker that there are
9034 relocations against the text segment. */
9035 info->flags |= DF_TEXTREL;
9036 }
b49e97c9
TS
9037 else
9038 {
9039 struct mips_elf_link_hash_entry *hmips;
82f0cfbd 9040
9a59ad6b
DJ
9041 /* For a shared object, we must copy this relocation
9042 unless the symbol turns out to be undefined and
9043 weak with non-default visibility, in which case
9044 it will be left as zero.
9045
9046 We could elide R_MIPS_REL32 for locally binding symbols
9047 in shared libraries, but do not yet do so.
9048
9049 For an executable, we only need to copy this
9050 reloc if the symbol is defined in a dynamic
9051 object. */
b49e97c9
TS
9052 hmips = (struct mips_elf_link_hash_entry *) h;
9053 ++hmips->possibly_dynamic_relocs;
943284cc 9054 if (MIPS_ELF_READONLY_SECTION (sec))
82f0cfbd
EC
9055 /* We need it to tell the dynamic linker if there
9056 are relocations against the text segment. */
9057 hmips->readonly_reloc = TRUE;
b49e97c9 9058 }
b49e97c9
TS
9059 }
9060
9061 if (SGI_COMPAT (abfd))
9062 mips_elf_hash_table (info)->compact_rel_size +=
9063 sizeof (Elf32_External_crinfo);
9064 break;
9065
9066 case R_MIPS_26:
9067 case R_MIPS_GPREL16:
9068 case R_MIPS_LITERAL:
9069 case R_MIPS_GPREL32:
df58fc94
RS
9070 case R_MICROMIPS_26_S1:
9071 case R_MICROMIPS_GPREL16:
9072 case R_MICROMIPS_LITERAL:
9073 case R_MICROMIPS_GPREL7_S2:
b49e97c9
TS
9074 if (SGI_COMPAT (abfd))
9075 mips_elf_hash_table (info)->compact_rel_size +=
9076 sizeof (Elf32_External_crinfo);
9077 break;
9078
9079 /* This relocation describes the C++ object vtable hierarchy.
9080 Reconstruct it for later use during GC. */
9081 case R_MIPS_GNU_VTINHERIT:
c152c796 9082 if (!bfd_elf_gc_record_vtinherit (abfd, sec, h, rel->r_offset))
b34976b6 9083 return FALSE;
b49e97c9
TS
9084 break;
9085
9086 /* This relocation describes which C++ vtable entries are actually
9087 used. Record for later use during GC. */
9088 case R_MIPS_GNU_VTENTRY:
a0ea3a14 9089 if (!bfd_elf_gc_record_vtentry (abfd, sec, h, rel->r_offset))
b34976b6 9090 return FALSE;
b49e97c9
TS
9091 break;
9092
9093 default:
9094 break;
9095 }
9096
1bbce132 9097 /* Record the need for a PLT entry. At this point we don't know
07d6d2b8
AM
9098 yet if we are going to create a PLT in the first place, but
9099 we only record whether the relocation requires a standard MIPS
9100 or a compressed code entry anyway. If we don't make a PLT after
9101 all, then we'll just ignore these arrangements. Likewise if
9102 a PLT entry is not created because the symbol is satisfied
9103 locally. */
1bbce132 9104 if (h != NULL
54806ffa
MR
9105 && (branch_reloc_p (r_type)
9106 || mips16_branch_reloc_p (r_type)
9107 || micromips_branch_reloc_p (r_type))
1bbce132
MR
9108 && !SYMBOL_CALLS_LOCAL (info, h))
9109 {
9110 if (h->plt.plist == NULL)
9111 h->plt.plist = mips_elf_make_plt_record (abfd);
9112 if (h->plt.plist == NULL)
9113 return FALSE;
9114
54806ffa 9115 if (branch_reloc_p (r_type))
1bbce132
MR
9116 h->plt.plist->need_mips = TRUE;
9117 else
9118 h->plt.plist->need_comp = TRUE;
9119 }
9120
738e5348
RS
9121 /* See if this reloc would need to refer to a MIPS16 hard-float stub,
9122 if there is one. We only need to handle global symbols here;
9123 we decide whether to keep or delete stubs for local symbols
9124 when processing the stub's relocations. */
b49e97c9 9125 if (h != NULL
738e5348
RS
9126 && !mips16_call_reloc_p (r_type)
9127 && !section_allows_mips16_refs_p (sec))
b49e97c9
TS
9128 {
9129 struct mips_elf_link_hash_entry *mh;
9130
9131 mh = (struct mips_elf_link_hash_entry *) h;
b34976b6 9132 mh->need_fn_stub = TRUE;
b49e97c9 9133 }
861fb55a
DJ
9134
9135 /* Refuse some position-dependent relocations when creating a
9136 shared library. Do not refuse R_MIPS_32 / R_MIPS_64; they're
9137 not PIC, but we can create dynamic relocations and the result
9138 will be fine. Also do not refuse R_MIPS_LO16, which can be
9139 combined with R_MIPS_GOT16. */
0e1862bb 9140 if (bfd_link_pic (info))
861fb55a
DJ
9141 {
9142 switch (r_type)
9143 {
b474a202
FS
9144 case R_MIPS_TLS_TPREL_HI16:
9145 case R_MIPS16_TLS_TPREL_HI16:
9146 case R_MICROMIPS_TLS_TPREL_HI16:
9147 case R_MIPS_TLS_TPREL_LO16:
9148 case R_MIPS16_TLS_TPREL_LO16:
9149 case R_MICROMIPS_TLS_TPREL_LO16:
9150 /* These are okay in PIE, but not in a shared library. */
9151 if (bfd_link_executable (info))
9152 break;
9153
9154 /* FALLTHROUGH */
9155
861fb55a
DJ
9156 case R_MIPS16_HI16:
9157 case R_MIPS_HI16:
9158 case R_MIPS_HIGHER:
9159 case R_MIPS_HIGHEST:
df58fc94
RS
9160 case R_MICROMIPS_HI16:
9161 case R_MICROMIPS_HIGHER:
9162 case R_MICROMIPS_HIGHEST:
861fb55a
DJ
9163 /* Don't refuse a high part relocation if it's against
9164 no symbol (e.g. part of a compound relocation). */
cf35638d 9165 if (r_symndx == STN_UNDEF)
861fb55a
DJ
9166 break;
9167
3c7687b9 9168 /* Likewise an absolute symbol. */
304f09d0 9169 if (h != NULL && bfd_is_abs_symbol (&h->root))
3c7687b9
MR
9170 break;
9171
861fb55a
DJ
9172 /* R_MIPS_HI16 against _gp_disp is used for $gp setup,
9173 and has a special meaning. */
9174 if (!NEWABI_P (abfd) && h != NULL
9175 && strcmp (h->root.root.string, "_gp_disp") == 0)
9176 break;
9177
0fc1eb3c
RS
9178 /* Likewise __GOTT_BASE__ and __GOTT_INDEX__ on VxWorks. */
9179 if (is_gott_symbol (info, h))
9180 break;
9181
861fb55a
DJ
9182 /* FALLTHROUGH */
9183
9184 case R_MIPS16_26:
9185 case R_MIPS_26:
df58fc94 9186 case R_MICROMIPS_26_S1:
304f09d0
FS
9187 howto = MIPS_ELF_RTYPE_TO_HOWTO (abfd, r_type, NEWABI_P (abfd));
9188 /* An error for unsupported relocations is raised as part
9189 of the above search, so we can skip the following. */
9190 if (howto != NULL)
9191 info->callbacks->einfo
9192 /* xgettext:c-format */
9193 (_("%X%H: relocation %s against `%s' cannot be used"
9194 " when making a shared object; recompile with -fPIC\n"),
9195 abfd, sec, rel->r_offset, howto->name,
9196 (h) ? h->root.root.string : "a local symbol");
aff68bd0 9197 break;
861fb55a
DJ
9198 default:
9199 break;
9200 }
9201 }
b49e97c9
TS
9202 }
9203
b34976b6 9204 return TRUE;
b49e97c9
TS
9205}
9206\f
9a59ad6b
DJ
9207/* Allocate space for global sym dynamic relocs. */
9208
9209static bfd_boolean
9210allocate_dynrelocs (struct elf_link_hash_entry *h, void *inf)
9211{
9212 struct bfd_link_info *info = inf;
9213 bfd *dynobj;
9214 struct mips_elf_link_hash_entry *hmips;
9215 struct mips_elf_link_hash_table *htab;
9216
9217 htab = mips_elf_hash_table (info);
4dfe6ac6
NC
9218 BFD_ASSERT (htab != NULL);
9219
9a59ad6b
DJ
9220 dynobj = elf_hash_table (info)->dynobj;
9221 hmips = (struct mips_elf_link_hash_entry *) h;
9222
9223 /* VxWorks executables are handled elsewhere; we only need to
9224 allocate relocations in shared objects. */
0e1862bb 9225 if (htab->is_vxworks && !bfd_link_pic (info))
9a59ad6b
DJ
9226 return TRUE;
9227
7686d77d
AM
9228 /* Ignore indirect symbols. All relocations against such symbols
9229 will be redirected to the target symbol. */
9230 if (h->root.type == bfd_link_hash_indirect)
63897e2c
RS
9231 return TRUE;
9232
9a59ad6b
DJ
9233 /* If this symbol is defined in a dynamic object, or we are creating
9234 a shared library, we will need to copy any R_MIPS_32 or
9235 R_MIPS_REL32 relocs against it into the output file. */
0e1862bb 9236 if (! bfd_link_relocatable (info)
9a59ad6b
DJ
9237 && hmips->possibly_dynamic_relocs != 0
9238 && (h->root.type == bfd_link_hash_defweak
625ef6dc 9239 || (!h->def_regular && !ELF_COMMON_DEF_P (h))
0e1862bb 9240 || bfd_link_pic (info)))
9a59ad6b
DJ
9241 {
9242 bfd_boolean do_copy = TRUE;
9243
9244 if (h->root.type == bfd_link_hash_undefweak)
9245 {
262e07d0
MR
9246 /* Do not copy relocations for undefined weak symbols that
9247 we are not going to export. */
9248 if (UNDEFWEAK_NO_DYNAMIC_RELOC (info, h))
9a59ad6b
DJ
9249 do_copy = FALSE;
9250
9251 /* Make sure undefined weak symbols are output as a dynamic
9252 symbol in PIEs. */
9253 else if (h->dynindx == -1 && !h->forced_local)
9254 {
9255 if (! bfd_elf_link_record_dynamic_symbol (info, h))
9256 return FALSE;
9257 }
9258 }
9259
9260 if (do_copy)
9261 {
aff469fa 9262 /* Even though we don't directly need a GOT entry for this symbol,
f7ff1106
RS
9263 the SVR4 psABI requires it to have a dynamic symbol table
9264 index greater that DT_MIPS_GOTSYM if there are dynamic
9265 relocations against it.
9266
9267 VxWorks does not enforce the same mapping between the GOT
9268 and the symbol table, so the same requirement does not
9269 apply there. */
6ccf4795
RS
9270 if (!htab->is_vxworks)
9271 {
9272 if (hmips->global_got_area > GGA_RELOC_ONLY)
9273 hmips->global_got_area = GGA_RELOC_ONLY;
9274 hmips->got_only_for_calls = FALSE;
9275 }
aff469fa 9276
9a59ad6b
DJ
9277 mips_elf_allocate_dynamic_relocations
9278 (dynobj, info, hmips->possibly_dynamic_relocs);
9279 if (hmips->readonly_reloc)
9280 /* We tell the dynamic linker that there are relocations
9281 against the text segment. */
9282 info->flags |= DF_TEXTREL;
9283 }
9284 }
9285
9286 return TRUE;
9287}
9288
b49e97c9
TS
9289/* Adjust a symbol defined by a dynamic object and referenced by a
9290 regular object. The current definition is in some section of the
9291 dynamic object, but we're not including those sections. We have to
9292 change the definition to something the rest of the link can
9293 understand. */
9294
b34976b6 9295bfd_boolean
9719ad41
RS
9296_bfd_mips_elf_adjust_dynamic_symbol (struct bfd_link_info *info,
9297 struct elf_link_hash_entry *h)
b49e97c9
TS
9298{
9299 bfd *dynobj;
9300 struct mips_elf_link_hash_entry *hmips;
5108fc1b 9301 struct mips_elf_link_hash_table *htab;
5474d94f 9302 asection *s, *srel;
b49e97c9 9303
5108fc1b 9304 htab = mips_elf_hash_table (info);
4dfe6ac6
NC
9305 BFD_ASSERT (htab != NULL);
9306
b49e97c9 9307 dynobj = elf_hash_table (info)->dynobj;
861fb55a 9308 hmips = (struct mips_elf_link_hash_entry *) h;
b49e97c9
TS
9309
9310 /* Make sure we know what is going on here. */
9311 BFD_ASSERT (dynobj != NULL
f5385ebf 9312 && (h->needs_plt
60d67dc8 9313 || h->is_weakalias
f5385ebf
AM
9314 || (h->def_dynamic
9315 && h->ref_regular
9316 && !h->def_regular)));
b49e97c9 9317
b49e97c9 9318 hmips = (struct mips_elf_link_hash_entry *) h;
b49e97c9 9319
861fb55a
DJ
9320 /* If there are call relocations against an externally-defined symbol,
9321 see whether we can create a MIPS lazy-binding stub for it. We can
9322 only do this if all references to the function are through call
9323 relocations, and in that case, the traditional lazy-binding stubs
9324 are much more efficient than PLT entries.
9325
9326 Traditional stubs are only available on SVR4 psABI-based systems;
9327 VxWorks always uses PLTs instead. */
9328 if (!htab->is_vxworks && h->needs_plt && !hmips->no_fn_stub)
b49e97c9
TS
9329 {
9330 if (! elf_hash_table (info)->dynamic_sections_created)
b34976b6 9331 return TRUE;
b49e97c9
TS
9332
9333 /* If this symbol is not defined in a regular file, then set
9334 the symbol to the stub location. This is required to make
9335 function pointers compare as equal between the normal
9336 executable and the shared library. */
4b8377e7
MR
9337 if (!h->def_regular
9338 && !bfd_is_abs_section (htab->sstubs->output_section))
b49e97c9 9339 {
33bb52fb
RS
9340 hmips->needs_lazy_stub = TRUE;
9341 htab->lazy_stub_count++;
b34976b6 9342 return TRUE;
b49e97c9
TS
9343 }
9344 }
861fb55a
DJ
9345 /* As above, VxWorks requires PLT entries for externally-defined
9346 functions that are only accessed through call relocations.
b49e97c9 9347
861fb55a
DJ
9348 Both VxWorks and non-VxWorks targets also need PLT entries if there
9349 are static-only relocations against an externally-defined function.
9350 This can technically occur for shared libraries if there are
9351 branches to the symbol, although it is unlikely that this will be
9352 used in practice due to the short ranges involved. It can occur
9353 for any relative or absolute relocation in executables; in that
9354 case, the PLT entry becomes the function's canonical address. */
9355 else if (((h->needs_plt && !hmips->no_fn_stub)
9356 || (h->type == STT_FUNC && hmips->has_static_relocs))
9357 && htab->use_plts_and_copy_relocs
9358 && !SYMBOL_CALLS_LOCAL (info, h)
9359 && !(ELF_ST_VISIBILITY (h->other) != STV_DEFAULT
9360 && h->root.type == bfd_link_hash_undefweak))
b49e97c9 9361 {
1bbce132
MR
9362 bfd_boolean micromips_p = MICROMIPS_P (info->output_bfd);
9363 bfd_boolean newabi_p = NEWABI_P (info->output_bfd);
9364
9365 /* If this is the first symbol to need a PLT entry, then make some
07d6d2b8
AM
9366 basic setup. Also work out PLT entry sizes. We'll need them
9367 for PLT offset calculations. */
1bbce132 9368 if (htab->plt_mips_offset + htab->plt_comp_offset == 0)
861fb55a 9369 {
ce558b89 9370 BFD_ASSERT (htab->root.sgotplt->size == 0);
1bbce132 9371 BFD_ASSERT (htab->plt_got_index == 0);
0a44bf69 9372
861fb55a
DJ
9373 /* If we're using the PLT additions to the psABI, each PLT
9374 entry is 16 bytes and the PLT0 entry is 32 bytes.
9375 Encourage better cache usage by aligning. We do this
9376 lazily to avoid pessimizing traditional objects. */
9377 if (!htab->is_vxworks
ce558b89 9378 && !bfd_set_section_alignment (dynobj, htab->root.splt, 5))
861fb55a 9379 return FALSE;
0a44bf69 9380
861fb55a
DJ
9381 /* Make sure that .got.plt is word-aligned. We do this lazily
9382 for the same reason as above. */
ce558b89 9383 if (!bfd_set_section_alignment (dynobj, htab->root.sgotplt,
861fb55a
DJ
9384 MIPS_ELF_LOG_FILE_ALIGN (dynobj)))
9385 return FALSE;
0a44bf69 9386
861fb55a
DJ
9387 /* On non-VxWorks targets, the first two entries in .got.plt
9388 are reserved. */
9389 if (!htab->is_vxworks)
1bbce132
MR
9390 htab->plt_got_index
9391 += (get_elf_backend_data (dynobj)->got_header_size
9392 / MIPS_ELF_GOT_SIZE (dynobj));
0a44bf69 9393
861fb55a
DJ
9394 /* On VxWorks, also allocate room for the header's
9395 .rela.plt.unloaded entries. */
0e1862bb 9396 if (htab->is_vxworks && !bfd_link_pic (info))
0a44bf69 9397 htab->srelplt2->size += 2 * sizeof (Elf32_External_Rela);
1bbce132
MR
9398
9399 /* Now work out the sizes of individual PLT entries. */
0e1862bb 9400 if (htab->is_vxworks && bfd_link_pic (info))
1bbce132
MR
9401 htab->plt_mips_entry_size
9402 = 4 * ARRAY_SIZE (mips_vxworks_shared_plt_entry);
9403 else if (htab->is_vxworks)
9404 htab->plt_mips_entry_size
9405 = 4 * ARRAY_SIZE (mips_vxworks_exec_plt_entry);
9406 else if (newabi_p)
9407 htab->plt_mips_entry_size
9408 = 4 * ARRAY_SIZE (mips_exec_plt_entry);
833794fc 9409 else if (!micromips_p)
1bbce132
MR
9410 {
9411 htab->plt_mips_entry_size
9412 = 4 * ARRAY_SIZE (mips_exec_plt_entry);
9413 htab->plt_comp_entry_size
833794fc
MR
9414 = 2 * ARRAY_SIZE (mips16_o32_exec_plt_entry);
9415 }
9416 else if (htab->insn32)
9417 {
9418 htab->plt_mips_entry_size
9419 = 4 * ARRAY_SIZE (mips_exec_plt_entry);
9420 htab->plt_comp_entry_size
9421 = 2 * ARRAY_SIZE (micromips_insn32_o32_exec_plt_entry);
1bbce132
MR
9422 }
9423 else
9424 {
9425 htab->plt_mips_entry_size
9426 = 4 * ARRAY_SIZE (mips_exec_plt_entry);
9427 htab->plt_comp_entry_size
833794fc 9428 = 2 * ARRAY_SIZE (micromips_o32_exec_plt_entry);
1bbce132 9429 }
0a44bf69
RS
9430 }
9431
1bbce132
MR
9432 if (h->plt.plist == NULL)
9433 h->plt.plist = mips_elf_make_plt_record (dynobj);
9434 if (h->plt.plist == NULL)
9435 return FALSE;
9436
9437 /* There are no defined MIPS16 or microMIPS PLT entries for VxWorks,
07d6d2b8 9438 n32 or n64, so always use a standard entry there.
1bbce132 9439
07d6d2b8
AM
9440 If the symbol has a MIPS16 call stub and gets a PLT entry, then
9441 all MIPS16 calls will go via that stub, and there is no benefit
9442 to having a MIPS16 entry. And in the case of call_stub a
9443 standard entry actually has to be used as the stub ends with a J
9444 instruction. */
1bbce132
MR
9445 if (newabi_p
9446 || htab->is_vxworks
9447 || hmips->call_stub
9448 || hmips->call_fp_stub)
9449 {
9450 h->plt.plist->need_mips = TRUE;
9451 h->plt.plist->need_comp = FALSE;
9452 }
9453
9454 /* Otherwise, if there are no direct calls to the function, we
07d6d2b8
AM
9455 have a free choice of whether to use standard or compressed
9456 entries. Prefer microMIPS entries if the object is known to
9457 contain microMIPS code, so that it becomes possible to create
9458 pure microMIPS binaries. Prefer standard entries otherwise,
9459 because MIPS16 ones are no smaller and are usually slower. */
1bbce132
MR
9460 if (!h->plt.plist->need_mips && !h->plt.plist->need_comp)
9461 {
9462 if (micromips_p)
9463 h->plt.plist->need_comp = TRUE;
9464 else
9465 h->plt.plist->need_mips = TRUE;
9466 }
9467
9468 if (h->plt.plist->need_mips)
9469 {
9470 h->plt.plist->mips_offset = htab->plt_mips_offset;
9471 htab->plt_mips_offset += htab->plt_mips_entry_size;
9472 }
9473 if (h->plt.plist->need_comp)
9474 {
9475 h->plt.plist->comp_offset = htab->plt_comp_offset;
9476 htab->plt_comp_offset += htab->plt_comp_entry_size;
9477 }
9478
9479 /* Reserve the corresponding .got.plt entry now too. */
9480 h->plt.plist->gotplt_index = htab->plt_got_index++;
0a44bf69
RS
9481
9482 /* If the output file has no definition of the symbol, set the
861fb55a 9483 symbol's value to the address of the stub. */
0e1862bb 9484 if (!bfd_link_pic (info) && !h->def_regular)
1bbce132 9485 hmips->use_plt_entry = TRUE;
0a44bf69 9486
1bbce132 9487 /* Make room for the R_MIPS_JUMP_SLOT relocation. */
ce558b89
AM
9488 htab->root.srelplt->size += (htab->is_vxworks
9489 ? MIPS_ELF_RELA_SIZE (dynobj)
9490 : MIPS_ELF_REL_SIZE (dynobj));
0a44bf69
RS
9491
9492 /* Make room for the .rela.plt.unloaded relocations. */
0e1862bb 9493 if (htab->is_vxworks && !bfd_link_pic (info))
0a44bf69
RS
9494 htab->srelplt2->size += 3 * sizeof (Elf32_External_Rela);
9495
861fb55a
DJ
9496 /* All relocations against this symbol that could have been made
9497 dynamic will now refer to the PLT entry instead. */
9498 hmips->possibly_dynamic_relocs = 0;
0a44bf69 9499
0a44bf69
RS
9500 return TRUE;
9501 }
9502
9503 /* If this is a weak symbol, and there is a real definition, the
9504 processor independent code will have arranged for us to see the
9505 real definition first, and we can just use the same value. */
60d67dc8 9506 if (h->is_weakalias)
0a44bf69 9507 {
60d67dc8
AM
9508 struct elf_link_hash_entry *def = weakdef (h);
9509 BFD_ASSERT (def->root.type == bfd_link_hash_defined);
9510 h->root.u.def.section = def->root.u.def.section;
9511 h->root.u.def.value = def->root.u.def.value;
0a44bf69
RS
9512 return TRUE;
9513 }
9514
861fb55a
DJ
9515 /* Otherwise, there is nothing further to do for symbols defined
9516 in regular objects. */
9517 if (h->def_regular)
0a44bf69
RS
9518 return TRUE;
9519
861fb55a
DJ
9520 /* There's also nothing more to do if we'll convert all relocations
9521 against this symbol into dynamic relocations. */
9522 if (!hmips->has_static_relocs)
9523 return TRUE;
9524
9525 /* We're now relying on copy relocations. Complain if we have
9526 some that we can't convert. */
0e1862bb 9527 if (!htab->use_plts_and_copy_relocs || bfd_link_pic (info))
861fb55a 9528 {
4eca0228
AM
9529 _bfd_error_handler (_("non-dynamic relocations refer to "
9530 "dynamic symbol %s"),
9531 h->root.root.string);
861fb55a
DJ
9532 bfd_set_error (bfd_error_bad_value);
9533 return FALSE;
9534 }
9535
0a44bf69
RS
9536 /* We must allocate the symbol in our .dynbss section, which will
9537 become part of the .bss section of the executable. There will be
9538 an entry for this symbol in the .dynsym section. The dynamic
9539 object will contain position independent code, so all references
9540 from the dynamic object to this symbol will go through the global
9541 offset table. The dynamic linker will use the .dynsym entry to
9542 determine the address it must put in the global offset table, so
9543 both the dynamic object and the regular object will refer to the
9544 same memory location for the variable. */
9545
5474d94f
AM
9546 if ((h->root.u.def.section->flags & SEC_READONLY) != 0)
9547 {
9548 s = htab->root.sdynrelro;
9549 srel = htab->root.sreldynrelro;
9550 }
9551 else
9552 {
9553 s = htab->root.sdynbss;
9554 srel = htab->root.srelbss;
9555 }
0a44bf69
RS
9556 if ((h->root.u.def.section->flags & SEC_ALLOC) != 0)
9557 {
861fb55a 9558 if (htab->is_vxworks)
5474d94f 9559 srel->size += sizeof (Elf32_External_Rela);
861fb55a
DJ
9560 else
9561 mips_elf_allocate_dynamic_relocations (dynobj, info, 1);
0a44bf69
RS
9562 h->needs_copy = 1;
9563 }
9564
861fb55a
DJ
9565 /* All relocations against this symbol that could have been made
9566 dynamic will now refer to the local copy instead. */
9567 hmips->possibly_dynamic_relocs = 0;
9568
5474d94f 9569 return _bfd_elf_adjust_dynamic_copy (info, h, s);
0a44bf69 9570}
b49e97c9
TS
9571\f
9572/* This function is called after all the input files have been read,
9573 and the input sections have been assigned to output sections. We
9574 check for any mips16 stub sections that we can discard. */
9575
b34976b6 9576bfd_boolean
9719ad41
RS
9577_bfd_mips_elf_always_size_sections (bfd *output_bfd,
9578 struct bfd_link_info *info)
b49e97c9 9579{
351cdf24 9580 asection *sect;
0a44bf69 9581 struct mips_elf_link_hash_table *htab;
861fb55a 9582 struct mips_htab_traverse_info hti;
0a44bf69
RS
9583
9584 htab = mips_elf_hash_table (info);
4dfe6ac6 9585 BFD_ASSERT (htab != NULL);
f4416af6 9586
b49e97c9 9587 /* The .reginfo section has a fixed size. */
351cdf24
MF
9588 sect = bfd_get_section_by_name (output_bfd, ".reginfo");
9589 if (sect != NULL)
6798f8bf
MR
9590 {
9591 bfd_set_section_size (output_bfd, sect, sizeof (Elf32_External_RegInfo));
9592 sect->flags |= SEC_FIXED_SIZE | SEC_HAS_CONTENTS;
9593 }
351cdf24
MF
9594
9595 /* The .MIPS.abiflags section has a fixed size. */
9596 sect = bfd_get_section_by_name (output_bfd, ".MIPS.abiflags");
9597 if (sect != NULL)
6798f8bf
MR
9598 {
9599 bfd_set_section_size (output_bfd, sect,
9600 sizeof (Elf_External_ABIFlags_v0));
9601 sect->flags |= SEC_FIXED_SIZE | SEC_HAS_CONTENTS;
9602 }
b49e97c9 9603
861fb55a
DJ
9604 hti.info = info;
9605 hti.output_bfd = output_bfd;
9606 hti.error = FALSE;
9607 mips_elf_link_hash_traverse (mips_elf_hash_table (info),
9608 mips_elf_check_symbols, &hti);
9609 if (hti.error)
9610 return FALSE;
f4416af6 9611
33bb52fb
RS
9612 return TRUE;
9613}
9614
9615/* If the link uses a GOT, lay it out and work out its size. */
9616
9617static bfd_boolean
9618mips_elf_lay_out_got (bfd *output_bfd, struct bfd_link_info *info)
9619{
9620 bfd *dynobj;
9621 asection *s;
9622 struct mips_got_info *g;
33bb52fb
RS
9623 bfd_size_type loadable_size = 0;
9624 bfd_size_type page_gotno;
d7206569 9625 bfd *ibfd;
ab361d49 9626 struct mips_elf_traverse_got_arg tga;
33bb52fb
RS
9627 struct mips_elf_link_hash_table *htab;
9628
9629 htab = mips_elf_hash_table (info);
4dfe6ac6
NC
9630 BFD_ASSERT (htab != NULL);
9631
ce558b89 9632 s = htab->root.sgot;
f4416af6 9633 if (s == NULL)
b34976b6 9634 return TRUE;
b49e97c9 9635
33bb52fb 9636 dynobj = elf_hash_table (info)->dynobj;
a8028dd0
RS
9637 g = htab->got_info;
9638
861fb55a
DJ
9639 /* Allocate room for the reserved entries. VxWorks always reserves
9640 3 entries; other objects only reserve 2 entries. */
cb22ccf4 9641 BFD_ASSERT (g->assigned_low_gotno == 0);
861fb55a
DJ
9642 if (htab->is_vxworks)
9643 htab->reserved_gotno = 3;
9644 else
9645 htab->reserved_gotno = 2;
9646 g->local_gotno += htab->reserved_gotno;
cb22ccf4 9647 g->assigned_low_gotno = htab->reserved_gotno;
861fb55a 9648
6c42ddb9
RS
9649 /* Decide which symbols need to go in the global part of the GOT and
9650 count the number of reloc-only GOT symbols. */
020d7251 9651 mips_elf_link_hash_traverse (htab, mips_elf_count_got_symbols, info);
f4416af6 9652
13db6b44
RS
9653 if (!mips_elf_resolve_final_got_entries (info, g))
9654 return FALSE;
9655
33bb52fb
RS
9656 /* Calculate the total loadable size of the output. That
9657 will give us the maximum number of GOT_PAGE entries
9658 required. */
c72f2fb2 9659 for (ibfd = info->input_bfds; ibfd; ibfd = ibfd->link.next)
33bb52fb
RS
9660 {
9661 asection *subsection;
5108fc1b 9662
d7206569 9663 for (subsection = ibfd->sections;
33bb52fb
RS
9664 subsection;
9665 subsection = subsection->next)
9666 {
9667 if ((subsection->flags & SEC_ALLOC) == 0)
9668 continue;
9669 loadable_size += ((subsection->size + 0xf)
9670 &~ (bfd_size_type) 0xf);
9671 }
9672 }
f4416af6 9673
0a44bf69 9674 if (htab->is_vxworks)
738e5348 9675 /* There's no need to allocate page entries for VxWorks; R_MIPS*_GOT16
0a44bf69
RS
9676 relocations against local symbols evaluate to "G", and the EABI does
9677 not include R_MIPS_GOT_PAGE. */
c224138d 9678 page_gotno = 0;
0a44bf69
RS
9679 else
9680 /* Assume there are two loadable segments consisting of contiguous
9681 sections. Is 5 enough? */
c224138d
RS
9682 page_gotno = (loadable_size >> 16) + 5;
9683
13db6b44 9684 /* Choose the smaller of the two page estimates; both are intended to be
c224138d
RS
9685 conservative. */
9686 if (page_gotno > g->page_gotno)
9687 page_gotno = g->page_gotno;
f4416af6 9688
c224138d 9689 g->local_gotno += page_gotno;
cb22ccf4 9690 g->assigned_high_gotno = g->local_gotno - 1;
ab361d49 9691
ab361d49
RS
9692 s->size += g->local_gotno * MIPS_ELF_GOT_SIZE (output_bfd);
9693 s->size += g->global_gotno * MIPS_ELF_GOT_SIZE (output_bfd);
0f20cc35
DJ
9694 s->size += g->tls_gotno * MIPS_ELF_GOT_SIZE (output_bfd);
9695
0a44bf69
RS
9696 /* VxWorks does not support multiple GOTs. It initializes $gp to
9697 __GOTT_BASE__[__GOTT_INDEX__], the value of which is set by the
9698 dynamic loader. */
57093f5e 9699 if (!htab->is_vxworks && s->size > MIPS_ELF_GOT_MAX_SIZE (info))
0f20cc35 9700 {
a8028dd0 9701 if (!mips_elf_multi_got (output_bfd, info, s, page_gotno))
0f20cc35
DJ
9702 return FALSE;
9703 }
9704 else
9705 {
d7206569
RS
9706 /* Record that all bfds use G. This also has the effect of freeing
9707 the per-bfd GOTs, which we no longer need. */
c72f2fb2 9708 for (ibfd = info->input_bfds; ibfd; ibfd = ibfd->link.next)
d7206569
RS
9709 if (mips_elf_bfd_got (ibfd, FALSE))
9710 mips_elf_replace_bfd_got (ibfd, g);
9711 mips_elf_replace_bfd_got (output_bfd, g);
9712
33bb52fb 9713 /* Set up TLS entries. */
0f20cc35 9714 g->tls_assigned_gotno = g->global_gotno + g->local_gotno;
72e7511a
RS
9715 tga.info = info;
9716 tga.g = g;
9717 tga.value = MIPS_ELF_GOT_SIZE (output_bfd);
9718 htab_traverse (g->got_entries, mips_elf_initialize_tls_index, &tga);
9719 if (!tga.g)
9720 return FALSE;
1fd20d70
RS
9721 BFD_ASSERT (g->tls_assigned_gotno
9722 == g->global_gotno + g->local_gotno + g->tls_gotno);
33bb52fb 9723
57093f5e 9724 /* Each VxWorks GOT entry needs an explicit relocation. */
0e1862bb 9725 if (htab->is_vxworks && bfd_link_pic (info))
57093f5e
RS
9726 g->relocs += g->global_gotno + g->local_gotno - htab->reserved_gotno;
9727
33bb52fb 9728 /* Allocate room for the TLS relocations. */
ab361d49
RS
9729 if (g->relocs)
9730 mips_elf_allocate_dynamic_relocations (dynobj, info, g->relocs);
0f20cc35 9731 }
b49e97c9 9732
b34976b6 9733 return TRUE;
b49e97c9
TS
9734}
9735
33bb52fb
RS
9736/* Estimate the size of the .MIPS.stubs section. */
9737
9738static void
9739mips_elf_estimate_stub_size (bfd *output_bfd, struct bfd_link_info *info)
9740{
9741 struct mips_elf_link_hash_table *htab;
9742 bfd_size_type dynsymcount;
9743
9744 htab = mips_elf_hash_table (info);
4dfe6ac6
NC
9745 BFD_ASSERT (htab != NULL);
9746
33bb52fb
RS
9747 if (htab->lazy_stub_count == 0)
9748 return;
9749
9750 /* IRIX rld assumes that a function stub isn't at the end of the .text
9751 section, so add a dummy entry to the end. */
9752 htab->lazy_stub_count++;
9753
9754 /* Get a worst-case estimate of the number of dynamic symbols needed.
9755 At this point, dynsymcount does not account for section symbols
9756 and count_section_dynsyms may overestimate the number that will
9757 be needed. */
9758 dynsymcount = (elf_hash_table (info)->dynsymcount
9759 + count_section_dynsyms (output_bfd, info));
9760
1bbce132
MR
9761 /* Determine the size of one stub entry. There's no disadvantage
9762 from using microMIPS code here, so for the sake of pure-microMIPS
9763 binaries we prefer it whenever there's any microMIPS code in
9764 output produced at all. This has a benefit of stubs being
833794fc
MR
9765 shorter by 4 bytes each too, unless in the insn32 mode. */
9766 if (!MICROMIPS_P (output_bfd))
1bbce132
MR
9767 htab->function_stub_size = (dynsymcount > 0x10000
9768 ? MIPS_FUNCTION_STUB_BIG_SIZE
9769 : MIPS_FUNCTION_STUB_NORMAL_SIZE);
833794fc
MR
9770 else if (htab->insn32)
9771 htab->function_stub_size = (dynsymcount > 0x10000
9772 ? MICROMIPS_INSN32_FUNCTION_STUB_BIG_SIZE
9773 : MICROMIPS_INSN32_FUNCTION_STUB_NORMAL_SIZE);
9774 else
9775 htab->function_stub_size = (dynsymcount > 0x10000
9776 ? MICROMIPS_FUNCTION_STUB_BIG_SIZE
9777 : MICROMIPS_FUNCTION_STUB_NORMAL_SIZE);
33bb52fb
RS
9778
9779 htab->sstubs->size = htab->lazy_stub_count * htab->function_stub_size;
9780}
9781
1bbce132
MR
9782/* A mips_elf_link_hash_traverse callback for which DATA points to a
9783 mips_htab_traverse_info. If H needs a traditional MIPS lazy-binding
9784 stub, allocate an entry in the stubs section. */
33bb52fb
RS
9785
9786static bfd_boolean
af924177 9787mips_elf_allocate_lazy_stub (struct mips_elf_link_hash_entry *h, void *data)
33bb52fb 9788{
1bbce132 9789 struct mips_htab_traverse_info *hti = data;
33bb52fb 9790 struct mips_elf_link_hash_table *htab;
1bbce132
MR
9791 struct bfd_link_info *info;
9792 bfd *output_bfd;
9793
9794 info = hti->info;
9795 output_bfd = hti->output_bfd;
9796 htab = mips_elf_hash_table (info);
9797 BFD_ASSERT (htab != NULL);
33bb52fb 9798
33bb52fb
RS
9799 if (h->needs_lazy_stub)
9800 {
1bbce132
MR
9801 bfd_boolean micromips_p = MICROMIPS_P (output_bfd);
9802 unsigned int other = micromips_p ? STO_MICROMIPS : 0;
9803 bfd_vma isa_bit = micromips_p;
9804
9805 BFD_ASSERT (htab->root.dynobj != NULL);
9806 if (h->root.plt.plist == NULL)
9807 h->root.plt.plist = mips_elf_make_plt_record (htab->sstubs->owner);
9808 if (h->root.plt.plist == NULL)
9809 {
9810 hti->error = TRUE;
9811 return FALSE;
9812 }
33bb52fb 9813 h->root.root.u.def.section = htab->sstubs;
1bbce132
MR
9814 h->root.root.u.def.value = htab->sstubs->size + isa_bit;
9815 h->root.plt.plist->stub_offset = htab->sstubs->size;
9816 h->root.other = other;
33bb52fb
RS
9817 htab->sstubs->size += htab->function_stub_size;
9818 }
9819 return TRUE;
9820}
9821
9822/* Allocate offsets in the stubs section to each symbol that needs one.
9823 Set the final size of the .MIPS.stub section. */
9824
1bbce132 9825static bfd_boolean
33bb52fb
RS
9826mips_elf_lay_out_lazy_stubs (struct bfd_link_info *info)
9827{
1bbce132
MR
9828 bfd *output_bfd = info->output_bfd;
9829 bfd_boolean micromips_p = MICROMIPS_P (output_bfd);
9830 unsigned int other = micromips_p ? STO_MICROMIPS : 0;
9831 bfd_vma isa_bit = micromips_p;
33bb52fb 9832 struct mips_elf_link_hash_table *htab;
1bbce132
MR
9833 struct mips_htab_traverse_info hti;
9834 struct elf_link_hash_entry *h;
9835 bfd *dynobj;
33bb52fb
RS
9836
9837 htab = mips_elf_hash_table (info);
4dfe6ac6
NC
9838 BFD_ASSERT (htab != NULL);
9839
33bb52fb 9840 if (htab->lazy_stub_count == 0)
1bbce132 9841 return TRUE;
33bb52fb
RS
9842
9843 htab->sstubs->size = 0;
1bbce132
MR
9844 hti.info = info;
9845 hti.output_bfd = output_bfd;
9846 hti.error = FALSE;
9847 mips_elf_link_hash_traverse (htab, mips_elf_allocate_lazy_stub, &hti);
9848 if (hti.error)
9849 return FALSE;
33bb52fb
RS
9850 htab->sstubs->size += htab->function_stub_size;
9851 BFD_ASSERT (htab->sstubs->size
9852 == htab->lazy_stub_count * htab->function_stub_size);
1bbce132
MR
9853
9854 dynobj = elf_hash_table (info)->dynobj;
9855 BFD_ASSERT (dynobj != NULL);
9856 h = _bfd_elf_define_linkage_sym (dynobj, info, htab->sstubs, "_MIPS_STUBS_");
9857 if (h == NULL)
9858 return FALSE;
9859 h->root.u.def.value = isa_bit;
9860 h->other = other;
9861 h->type = STT_FUNC;
9862
9863 return TRUE;
9864}
9865
9866/* A mips_elf_link_hash_traverse callback for which DATA points to a
9867 bfd_link_info. If H uses the address of a PLT entry as the value
9868 of the symbol, then set the entry in the symbol table now. Prefer
9869 a standard MIPS PLT entry. */
9870
9871static bfd_boolean
9872mips_elf_set_plt_sym_value (struct mips_elf_link_hash_entry *h, void *data)
9873{
9874 struct bfd_link_info *info = data;
9875 bfd_boolean micromips_p = MICROMIPS_P (info->output_bfd);
9876 struct mips_elf_link_hash_table *htab;
9877 unsigned int other;
9878 bfd_vma isa_bit;
9879 bfd_vma val;
9880
9881 htab = mips_elf_hash_table (info);
9882 BFD_ASSERT (htab != NULL);
9883
9884 if (h->use_plt_entry)
9885 {
9886 BFD_ASSERT (h->root.plt.plist != NULL);
9887 BFD_ASSERT (h->root.plt.plist->mips_offset != MINUS_ONE
9888 || h->root.plt.plist->comp_offset != MINUS_ONE);
9889
9890 val = htab->plt_header_size;
9891 if (h->root.plt.plist->mips_offset != MINUS_ONE)
9892 {
9893 isa_bit = 0;
9894 val += h->root.plt.plist->mips_offset;
9895 other = 0;
9896 }
9897 else
9898 {
9899 isa_bit = 1;
9900 val += htab->plt_mips_offset + h->root.plt.plist->comp_offset;
9901 other = micromips_p ? STO_MICROMIPS : STO_MIPS16;
9902 }
9903 val += isa_bit;
9904 /* For VxWorks, point at the PLT load stub rather than the lazy
07d6d2b8
AM
9905 resolution stub; this stub will become the canonical function
9906 address. */
1bbce132
MR
9907 if (htab->is_vxworks)
9908 val += 8;
9909
ce558b89 9910 h->root.root.u.def.section = htab->root.splt;
1bbce132
MR
9911 h->root.root.u.def.value = val;
9912 h->root.other = other;
9913 }
9914
9915 return TRUE;
33bb52fb
RS
9916}
9917
b49e97c9
TS
9918/* Set the sizes of the dynamic sections. */
9919
b34976b6 9920bfd_boolean
9719ad41
RS
9921_bfd_mips_elf_size_dynamic_sections (bfd *output_bfd,
9922 struct bfd_link_info *info)
b49e97c9
TS
9923{
9924 bfd *dynobj;
861fb55a 9925 asection *s, *sreldyn;
b34976b6 9926 bfd_boolean reltext;
0a44bf69 9927 struct mips_elf_link_hash_table *htab;
b49e97c9 9928
0a44bf69 9929 htab = mips_elf_hash_table (info);
4dfe6ac6 9930 BFD_ASSERT (htab != NULL);
b49e97c9
TS
9931 dynobj = elf_hash_table (info)->dynobj;
9932 BFD_ASSERT (dynobj != NULL);
9933
9934 if (elf_hash_table (info)->dynamic_sections_created)
9935 {
9936 /* Set the contents of the .interp section to the interpreter. */
9b8b325a 9937 if (bfd_link_executable (info) && !info->nointerp)
b49e97c9 9938 {
3d4d4302 9939 s = bfd_get_linker_section (dynobj, ".interp");
b49e97c9 9940 BFD_ASSERT (s != NULL);
eea6121a 9941 s->size
b49e97c9
TS
9942 = strlen (ELF_DYNAMIC_INTERPRETER (output_bfd)) + 1;
9943 s->contents
9944 = (bfd_byte *) ELF_DYNAMIC_INTERPRETER (output_bfd);
9945 }
861fb55a 9946
1bbce132 9947 /* Figure out the size of the PLT header if we know that we
07d6d2b8
AM
9948 are using it. For the sake of cache alignment always use
9949 a standard header whenever any standard entries are present
9950 even if microMIPS entries are present as well. This also
9951 lets the microMIPS header rely on the value of $v0 only set
9952 by microMIPS entries, for a small size reduction.
1bbce132 9953
07d6d2b8
AM
9954 Set symbol table entry values for symbols that use the
9955 address of their PLT entry now that we can calculate it.
1bbce132 9956
07d6d2b8
AM
9957 Also create the _PROCEDURE_LINKAGE_TABLE_ symbol if we
9958 haven't already in _bfd_elf_create_dynamic_sections. */
ce558b89 9959 if (htab->root.splt && htab->plt_mips_offset + htab->plt_comp_offset != 0)
861fb55a 9960 {
1bbce132
MR
9961 bfd_boolean micromips_p = (MICROMIPS_P (output_bfd)
9962 && !htab->plt_mips_offset);
9963 unsigned int other = micromips_p ? STO_MICROMIPS : 0;
9964 bfd_vma isa_bit = micromips_p;
861fb55a 9965 struct elf_link_hash_entry *h;
1bbce132 9966 bfd_vma size;
861fb55a
DJ
9967
9968 BFD_ASSERT (htab->use_plts_and_copy_relocs);
ce558b89
AM
9969 BFD_ASSERT (htab->root.sgotplt->size == 0);
9970 BFD_ASSERT (htab->root.splt->size == 0);
1bbce132 9971
0e1862bb 9972 if (htab->is_vxworks && bfd_link_pic (info))
1bbce132
MR
9973 size = 4 * ARRAY_SIZE (mips_vxworks_shared_plt0_entry);
9974 else if (htab->is_vxworks)
9975 size = 4 * ARRAY_SIZE (mips_vxworks_exec_plt0_entry);
9976 else if (ABI_64_P (output_bfd))
9977 size = 4 * ARRAY_SIZE (mips_n64_exec_plt0_entry);
9978 else if (ABI_N32_P (output_bfd))
9979 size = 4 * ARRAY_SIZE (mips_n32_exec_plt0_entry);
9980 else if (!micromips_p)
9981 size = 4 * ARRAY_SIZE (mips_o32_exec_plt0_entry);
833794fc
MR
9982 else if (htab->insn32)
9983 size = 2 * ARRAY_SIZE (micromips_insn32_o32_exec_plt0_entry);
1bbce132
MR
9984 else
9985 size = 2 * ARRAY_SIZE (micromips_o32_exec_plt0_entry);
861fb55a 9986
1bbce132
MR
9987 htab->plt_header_is_comp = micromips_p;
9988 htab->plt_header_size = size;
ce558b89
AM
9989 htab->root.splt->size = (size
9990 + htab->plt_mips_offset
9991 + htab->plt_comp_offset);
9992 htab->root.sgotplt->size = (htab->plt_got_index
9993 * MIPS_ELF_GOT_SIZE (dynobj));
1bbce132
MR
9994
9995 mips_elf_link_hash_traverse (htab, mips_elf_set_plt_sym_value, info);
9996
9997 if (htab->root.hplt == NULL)
9998 {
ce558b89 9999 h = _bfd_elf_define_linkage_sym (dynobj, info, htab->root.splt,
1bbce132
MR
10000 "_PROCEDURE_LINKAGE_TABLE_");
10001 htab->root.hplt = h;
10002 if (h == NULL)
10003 return FALSE;
10004 }
10005
10006 h = htab->root.hplt;
10007 h->root.u.def.value = isa_bit;
10008 h->other = other;
861fb55a
DJ
10009 h->type = STT_FUNC;
10010 }
10011 }
4e41d0d7 10012
9a59ad6b 10013 /* Allocate space for global sym dynamic relocs. */
2c3fc389 10014 elf_link_hash_traverse (&htab->root, allocate_dynrelocs, info);
9a59ad6b 10015
33bb52fb
RS
10016 mips_elf_estimate_stub_size (output_bfd, info);
10017
10018 if (!mips_elf_lay_out_got (output_bfd, info))
10019 return FALSE;
10020
10021 mips_elf_lay_out_lazy_stubs (info);
10022
b49e97c9
TS
10023 /* The check_relocs and adjust_dynamic_symbol entry points have
10024 determined the sizes of the various dynamic sections. Allocate
10025 memory for them. */
b34976b6 10026 reltext = FALSE;
b49e97c9
TS
10027 for (s = dynobj->sections; s != NULL; s = s->next)
10028 {
10029 const char *name;
b49e97c9
TS
10030
10031 /* It's OK to base decisions on the section name, because none
10032 of the dynobj section names depend upon the input files. */
10033 name = bfd_get_section_name (dynobj, s);
10034
10035 if ((s->flags & SEC_LINKER_CREATED) == 0)
10036 continue;
10037
0112cd26 10038 if (CONST_STRNEQ (name, ".rel"))
b49e97c9 10039 {
c456f082 10040 if (s->size != 0)
b49e97c9
TS
10041 {
10042 const char *outname;
10043 asection *target;
10044
10045 /* If this relocation section applies to a read only
07d6d2b8
AM
10046 section, then we probably need a DT_TEXTREL entry.
10047 If the relocation section is .rel(a).dyn, we always
10048 assert a DT_TEXTREL entry rather than testing whether
10049 there exists a relocation to a read only section or
10050 not. */
b49e97c9
TS
10051 outname = bfd_get_section_name (output_bfd,
10052 s->output_section);
10053 target = bfd_get_section_by_name (output_bfd, outname + 4);
10054 if ((target != NULL
10055 && (target->flags & SEC_READONLY) != 0
10056 && (target->flags & SEC_ALLOC) != 0)
0a44bf69 10057 || strcmp (outname, MIPS_ELF_REL_DYN_NAME (info)) == 0)
b34976b6 10058 reltext = TRUE;
b49e97c9
TS
10059
10060 /* We use the reloc_count field as a counter if we need
10061 to copy relocs into the output file. */
0a44bf69 10062 if (strcmp (name, MIPS_ELF_REL_DYN_NAME (info)) != 0)
b49e97c9 10063 s->reloc_count = 0;
f4416af6
AO
10064
10065 /* If combreloc is enabled, elf_link_sort_relocs() will
10066 sort relocations, but in a different way than we do,
10067 and before we're done creating relocations. Also, it
10068 will move them around between input sections'
10069 relocation's contents, so our sorting would be
10070 broken, so don't let it run. */
10071 info->combreloc = 0;
b49e97c9
TS
10072 }
10073 }
0e1862bb 10074 else if (bfd_link_executable (info)
b49e97c9 10075 && ! mips_elf_hash_table (info)->use_rld_obj_head
0112cd26 10076 && CONST_STRNEQ (name, ".rld_map"))
b49e97c9 10077 {
5108fc1b 10078 /* We add a room for __rld_map. It will be filled in by the
b49e97c9 10079 rtld to contain a pointer to the _r_debug structure. */
b4082c70 10080 s->size += MIPS_ELF_RLD_MAP_SIZE (output_bfd);
b49e97c9
TS
10081 }
10082 else if (SGI_COMPAT (output_bfd)
0112cd26 10083 && CONST_STRNEQ (name, ".compact_rel"))
eea6121a 10084 s->size += mips_elf_hash_table (info)->compact_rel_size;
ce558b89 10085 else if (s == htab->root.splt)
861fb55a
DJ
10086 {
10087 /* If the last PLT entry has a branch delay slot, allocate
6d30f5b2
NC
10088 room for an extra nop to fill the delay slot. This is
10089 for CPUs without load interlocking. */
10090 if (! LOAD_INTERLOCKS_P (output_bfd)
10091 && ! htab->is_vxworks && s->size > 0)
861fb55a
DJ
10092 s->size += 4;
10093 }
0112cd26 10094 else if (! CONST_STRNEQ (name, ".init")
ce558b89
AM
10095 && s != htab->root.sgot
10096 && s != htab->root.sgotplt
861fb55a 10097 && s != htab->sstubs
5474d94f
AM
10098 && s != htab->root.sdynbss
10099 && s != htab->root.sdynrelro)
b49e97c9
TS
10100 {
10101 /* It's not one of our sections, so don't allocate space. */
10102 continue;
10103 }
10104
c456f082 10105 if (s->size == 0)
b49e97c9 10106 {
8423293d 10107 s->flags |= SEC_EXCLUDE;
b49e97c9
TS
10108 continue;
10109 }
10110
c456f082
AM
10111 if ((s->flags & SEC_HAS_CONTENTS) == 0)
10112 continue;
10113
b49e97c9 10114 /* Allocate memory for the section contents. */
eea6121a 10115 s->contents = bfd_zalloc (dynobj, s->size);
c456f082 10116 if (s->contents == NULL)
b49e97c9
TS
10117 {
10118 bfd_set_error (bfd_error_no_memory);
b34976b6 10119 return FALSE;
b49e97c9
TS
10120 }
10121 }
10122
10123 if (elf_hash_table (info)->dynamic_sections_created)
10124 {
10125 /* Add some entries to the .dynamic section. We fill in the
10126 values later, in _bfd_mips_elf_finish_dynamic_sections, but we
10127 must add the entries now so that we get the correct size for
5750dcec 10128 the .dynamic section. */
af5978fb
RS
10129
10130 /* SGI object has the equivalence of DT_DEBUG in the
5750dcec 10131 DT_MIPS_RLD_MAP entry. This must come first because glibc
6e6be592
MR
10132 only fills in DT_MIPS_RLD_MAP (not DT_DEBUG) and some tools
10133 may only look at the first one they see. */
0e1862bb 10134 if (!bfd_link_pic (info)
af5978fb
RS
10135 && !MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_MIPS_RLD_MAP, 0))
10136 return FALSE;
b49e97c9 10137
0e1862bb 10138 if (bfd_link_executable (info)
a5499fa4
MF
10139 && !MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_MIPS_RLD_MAP_REL, 0))
10140 return FALSE;
10141
5750dcec
DJ
10142 /* The DT_DEBUG entry may be filled in by the dynamic linker and
10143 used by the debugger. */
0e1862bb 10144 if (bfd_link_executable (info)
5750dcec
DJ
10145 && !SGI_COMPAT (output_bfd)
10146 && !MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_DEBUG, 0))
10147 return FALSE;
10148
0a44bf69 10149 if (reltext && (SGI_COMPAT (output_bfd) || htab->is_vxworks))
b49e97c9
TS
10150 info->flags |= DF_TEXTREL;
10151
10152 if ((info->flags & DF_TEXTREL) != 0)
10153 {
10154 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_TEXTREL, 0))
b34976b6 10155 return FALSE;
943284cc
DJ
10156
10157 /* Clear the DF_TEXTREL flag. It will be set again if we
10158 write out an actual text relocation; we may not, because
10159 at this point we do not know whether e.g. any .eh_frame
10160 absolute relocations have been converted to PC-relative. */
10161 info->flags &= ~DF_TEXTREL;
b49e97c9
TS
10162 }
10163
10164 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_PLTGOT, 0))
b34976b6 10165 return FALSE;
b49e97c9 10166
861fb55a 10167 sreldyn = mips_elf_rel_dyn_section (info, FALSE);
0a44bf69 10168 if (htab->is_vxworks)
b49e97c9 10169 {
0a44bf69
RS
10170 /* VxWorks uses .rela.dyn instead of .rel.dyn. It does not
10171 use any of the DT_MIPS_* tags. */
861fb55a 10172 if (sreldyn && sreldyn->size > 0)
0a44bf69
RS
10173 {
10174 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_RELA, 0))
10175 return FALSE;
b49e97c9 10176
0a44bf69
RS
10177 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_RELASZ, 0))
10178 return FALSE;
b49e97c9 10179
0a44bf69
RS
10180 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_RELAENT, 0))
10181 return FALSE;
10182 }
b49e97c9 10183 }
0a44bf69
RS
10184 else
10185 {
db841b6f
MR
10186 if (sreldyn && sreldyn->size > 0
10187 && !bfd_is_abs_section (sreldyn->output_section))
0a44bf69
RS
10188 {
10189 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_REL, 0))
10190 return FALSE;
b49e97c9 10191
0a44bf69
RS
10192 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_RELSZ, 0))
10193 return FALSE;
b49e97c9 10194
0a44bf69
RS
10195 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_RELENT, 0))
10196 return FALSE;
10197 }
b49e97c9 10198
0a44bf69
RS
10199 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_MIPS_RLD_VERSION, 0))
10200 return FALSE;
b49e97c9 10201
0a44bf69
RS
10202 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_MIPS_FLAGS, 0))
10203 return FALSE;
b49e97c9 10204
0a44bf69
RS
10205 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_MIPS_BASE_ADDRESS, 0))
10206 return FALSE;
b49e97c9 10207
0a44bf69
RS
10208 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_MIPS_LOCAL_GOTNO, 0))
10209 return FALSE;
b49e97c9 10210
0a44bf69
RS
10211 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_MIPS_SYMTABNO, 0))
10212 return FALSE;
b49e97c9 10213
0a44bf69
RS
10214 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_MIPS_UNREFEXTNO, 0))
10215 return FALSE;
b49e97c9 10216
0a44bf69
RS
10217 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_MIPS_GOTSYM, 0))
10218 return FALSE;
10219
f16a9783
MS
10220 if (info->emit_gnu_hash
10221 && ! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_MIPS_XHASH, 0))
10222 return FALSE;
10223
0a44bf69
RS
10224 if (IRIX_COMPAT (dynobj) == ict_irix5
10225 && ! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_MIPS_HIPAGENO, 0))
10226 return FALSE;
10227
10228 if (IRIX_COMPAT (dynobj) == ict_irix6
10229 && (bfd_get_section_by_name
af0edeb8 10230 (output_bfd, MIPS_ELF_OPTIONS_SECTION_NAME (dynobj)))
0a44bf69
RS
10231 && !MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_MIPS_OPTIONS, 0))
10232 return FALSE;
10233 }
ce558b89 10234 if (htab->root.splt->size > 0)
861fb55a
DJ
10235 {
10236 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_PLTREL, 0))
10237 return FALSE;
10238
10239 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_JMPREL, 0))
10240 return FALSE;
10241
10242 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_PLTRELSZ, 0))
10243 return FALSE;
10244
10245 if (! MIPS_ELF_ADD_DYNAMIC_ENTRY (info, DT_MIPS_PLTGOT, 0))
10246 return FALSE;
10247 }
7a2b07ff
NS
10248 if (htab->is_vxworks
10249 && !elf_vxworks_add_dynamic_entries (output_bfd, info))
10250 return FALSE;
b49e97c9
TS
10251 }
10252
b34976b6 10253 return TRUE;
b49e97c9
TS
10254}
10255\f
81d43bff
RS
10256/* REL is a relocation in INPUT_BFD that is being copied to OUTPUT_BFD.
10257 Adjust its R_ADDEND field so that it is correct for the output file.
10258 LOCAL_SYMS and LOCAL_SECTIONS are arrays of INPUT_BFD's local symbols
10259 and sections respectively; both use symbol indexes. */
10260
10261static void
10262mips_elf_adjust_addend (bfd *output_bfd, struct bfd_link_info *info,
10263 bfd *input_bfd, Elf_Internal_Sym *local_syms,
10264 asection **local_sections, Elf_Internal_Rela *rel)
10265{
10266 unsigned int r_type, r_symndx;
10267 Elf_Internal_Sym *sym;
10268 asection *sec;
10269
020d7251 10270 if (mips_elf_local_relocation_p (input_bfd, rel, local_sections))
81d43bff
RS
10271 {
10272 r_type = ELF_R_TYPE (output_bfd, rel->r_info);
df58fc94 10273 if (gprel16_reloc_p (r_type)
81d43bff 10274 || r_type == R_MIPS_GPREL32
df58fc94 10275 || literal_reloc_p (r_type))
81d43bff
RS
10276 {
10277 rel->r_addend += _bfd_get_gp_value (input_bfd);
10278 rel->r_addend -= _bfd_get_gp_value (output_bfd);
10279 }
10280
10281 r_symndx = ELF_R_SYM (output_bfd, rel->r_info);
10282 sym = local_syms + r_symndx;
10283
10284 /* Adjust REL's addend to account for section merging. */
0e1862bb 10285 if (!bfd_link_relocatable (info))
81d43bff
RS
10286 {
10287 sec = local_sections[r_symndx];
10288 _bfd_elf_rela_local_sym (output_bfd, sym, &sec, rel);
10289 }
10290
10291 /* This would normally be done by the rela_normal code in elflink.c. */
10292 if (ELF_ST_TYPE (sym->st_info) == STT_SECTION)
10293 rel->r_addend += local_sections[r_symndx]->output_offset;
10294 }
10295}
10296
545fd46b
MR
10297/* Handle relocations against symbols from removed linkonce sections,
10298 or sections discarded by a linker script. We use this wrapper around
10299 RELOC_AGAINST_DISCARDED_SECTION to handle triplets of compound relocs
10300 on 64-bit ELF targets. In this case for any relocation handled, which
10301 always be the first in a triplet, the remaining two have to be processed
10302 together with the first, even if they are R_MIPS_NONE. It is the symbol
10303 index referred by the first reloc that applies to all the three and the
10304 remaining two never refer to an object symbol. And it is the final
10305 relocation (the last non-null one) that determines the output field of
10306 the whole relocation so retrieve the corresponding howto structure for
10307 the relocatable field to be cleared by RELOC_AGAINST_DISCARDED_SECTION.
10308
10309 Note that RELOC_AGAINST_DISCARDED_SECTION is a macro that uses "continue"
10310 and therefore requires to be pasted in a loop. It also defines a block
10311 and does not protect any of its arguments, hence the extra brackets. */
10312
10313static void
10314mips_reloc_against_discarded_section (bfd *output_bfd,
10315 struct bfd_link_info *info,
10316 bfd *input_bfd, asection *input_section,
10317 Elf_Internal_Rela **rel,
10318 const Elf_Internal_Rela **relend,
10319 bfd_boolean rel_reloc,
10320 reloc_howto_type *howto,
10321 bfd_byte *contents)
10322{
10323 const struct elf_backend_data *bed = get_elf_backend_data (output_bfd);
10324 int count = bed->s->int_rels_per_ext_rel;
10325 unsigned int r_type;
10326 int i;
10327
10328 for (i = count - 1; i > 0; i--)
10329 {
10330 r_type = ELF_R_TYPE (output_bfd, (*rel)[i].r_info);
10331 if (r_type != R_MIPS_NONE)
10332 {
10333 howto = MIPS_ELF_RTYPE_TO_HOWTO (input_bfd, r_type, !rel_reloc);
10334 break;
10335 }
10336 }
10337 do
10338 {
10339 RELOC_AGAINST_DISCARDED_SECTION (info, input_bfd, input_section,
10340 (*rel), count, (*relend),
10341 howto, i, contents);
10342 }
10343 while (0);
10344}
10345
b49e97c9
TS
10346/* Relocate a MIPS ELF section. */
10347
b34976b6 10348bfd_boolean
9719ad41
RS
10349_bfd_mips_elf_relocate_section (bfd *output_bfd, struct bfd_link_info *info,
10350 bfd *input_bfd, asection *input_section,
10351 bfd_byte *contents, Elf_Internal_Rela *relocs,
10352 Elf_Internal_Sym *local_syms,
10353 asection **local_sections)
b49e97c9
TS
10354{
10355 Elf_Internal_Rela *rel;
10356 const Elf_Internal_Rela *relend;
10357 bfd_vma addend = 0;
b34976b6 10358 bfd_boolean use_saved_addend_p = FALSE;
b49e97c9 10359
056bafd4 10360 relend = relocs + input_section->reloc_count;
b49e97c9
TS
10361 for (rel = relocs; rel < relend; ++rel)
10362 {
10363 const char *name;
c9adbffe 10364 bfd_vma value = 0;
b49e97c9 10365 reloc_howto_type *howto;
ad3d9127 10366 bfd_boolean cross_mode_jump_p = FALSE;
b34976b6 10367 /* TRUE if the relocation is a RELA relocation, rather than a
07d6d2b8 10368 REL relocation. */
b34976b6 10369 bfd_boolean rela_relocation_p = TRUE;
b49e97c9 10370 unsigned int r_type = ELF_R_TYPE (output_bfd, rel->r_info);
9719ad41 10371 const char *msg;
ab96bf03
AM
10372 unsigned long r_symndx;
10373 asection *sec;
749b8d9d
L
10374 Elf_Internal_Shdr *symtab_hdr;
10375 struct elf_link_hash_entry *h;
d4730f92 10376 bfd_boolean rel_reloc;
b49e97c9 10377
d4730f92
BS
10378 rel_reloc = (NEWABI_P (input_bfd)
10379 && mips_elf_rel_relocation_p (input_bfd, input_section,
10380 relocs, rel));
b49e97c9 10381 /* Find the relocation howto for this relocation. */
d4730f92 10382 howto = MIPS_ELF_RTYPE_TO_HOWTO (input_bfd, r_type, !rel_reloc);
ab96bf03
AM
10383
10384 r_symndx = ELF_R_SYM (input_bfd, rel->r_info);
749b8d9d 10385 symtab_hdr = &elf_tdata (input_bfd)->symtab_hdr;
020d7251 10386 if (mips_elf_local_relocation_p (input_bfd, rel, local_sections))
749b8d9d
L
10387 {
10388 sec = local_sections[r_symndx];
10389 h = NULL;
10390 }
ab96bf03
AM
10391 else
10392 {
ab96bf03 10393 unsigned long extsymoff;
ab96bf03 10394
ab96bf03
AM
10395 extsymoff = 0;
10396 if (!elf_bad_symtab (input_bfd))
10397 extsymoff = symtab_hdr->sh_info;
10398 h = elf_sym_hashes (input_bfd) [r_symndx - extsymoff];
10399 while (h->root.type == bfd_link_hash_indirect
10400 || h->root.type == bfd_link_hash_warning)
10401 h = (struct elf_link_hash_entry *) h->root.u.i.link;
10402
10403 sec = NULL;
10404 if (h->root.type == bfd_link_hash_defined
10405 || h->root.type == bfd_link_hash_defweak)
10406 sec = h->root.u.def.section;
10407 }
10408
dbaa2011 10409 if (sec != NULL && discarded_section (sec))
545fd46b
MR
10410 {
10411 mips_reloc_against_discarded_section (output_bfd, info, input_bfd,
10412 input_section, &rel, &relend,
10413 rel_reloc, howto, contents);
10414 continue;
10415 }
ab96bf03 10416
4a14403c 10417 if (r_type == R_MIPS_64 && ! NEWABI_P (input_bfd))
b49e97c9
TS
10418 {
10419 /* Some 32-bit code uses R_MIPS_64. In particular, people use
10420 64-bit code, but make sure all their addresses are in the
10421 lowermost or uppermost 32-bit section of the 64-bit address
10422 space. Thus, when they use an R_MIPS_64 they mean what is
10423 usually meant by R_MIPS_32, with the exception that the
10424 stored value is sign-extended to 64 bits. */
b34976b6 10425 howto = MIPS_ELF_RTYPE_TO_HOWTO (input_bfd, R_MIPS_32, FALSE);
b49e97c9
TS
10426
10427 /* On big-endian systems, we need to lie about the position
10428 of the reloc. */
10429 if (bfd_big_endian (input_bfd))
10430 rel->r_offset += 4;
10431 }
b49e97c9
TS
10432
10433 if (!use_saved_addend_p)
10434 {
b49e97c9
TS
10435 /* If these relocations were originally of the REL variety,
10436 we must pull the addend out of the field that will be
10437 relocated. Otherwise, we simply use the contents of the
c224138d
RS
10438 RELA relocation. */
10439 if (mips_elf_rel_relocation_p (input_bfd, input_section,
10440 relocs, rel))
b49e97c9 10441 {
b34976b6 10442 rela_relocation_p = FALSE;
c224138d
RS
10443 addend = mips_elf_read_rel_addend (input_bfd, rel,
10444 howto, contents);
738e5348
RS
10445 if (hi16_reloc_p (r_type)
10446 || (got16_reloc_p (r_type)
b49e97c9 10447 && mips_elf_local_relocation_p (input_bfd, rel,
020d7251 10448 local_sections)))
b49e97c9 10449 {
c224138d
RS
10450 if (!mips_elf_add_lo16_rel_addend (input_bfd, rel, relend,
10451 contents, &addend))
749b8d9d 10452 {
749b8d9d
L
10453 if (h)
10454 name = h->root.root.string;
10455 else
10456 name = bfd_elf_sym_name (input_bfd, symtab_hdr,
10457 local_syms + r_symndx,
10458 sec);
4eca0228 10459 _bfd_error_handler
695344c0 10460 /* xgettext:c-format */
2c1c9679 10461 (_("%pB: can't find matching LO16 reloc against `%s'"
2dcf00ce 10462 " for %s at %#" PRIx64 " in section `%pA'"),
c08bb8dd 10463 input_bfd, name,
2dcf00ce 10464 howto->name, (uint64_t) rel->r_offset, input_section);
749b8d9d 10465 }
b49e97c9 10466 }
30ac9238
RS
10467 else
10468 addend <<= howto->rightshift;
b49e97c9
TS
10469 }
10470 else
10471 addend = rel->r_addend;
81d43bff
RS
10472 mips_elf_adjust_addend (output_bfd, info, input_bfd,
10473 local_syms, local_sections, rel);
b49e97c9
TS
10474 }
10475
0e1862bb 10476 if (bfd_link_relocatable (info))
b49e97c9 10477 {
4a14403c 10478 if (r_type == R_MIPS_64 && ! NEWABI_P (output_bfd)
b49e97c9
TS
10479 && bfd_big_endian (input_bfd))
10480 rel->r_offset -= 4;
10481
81d43bff 10482 if (!rela_relocation_p && rel->r_addend)
5a659663 10483 {
81d43bff 10484 addend += rel->r_addend;
738e5348 10485 if (hi16_reloc_p (r_type) || got16_reloc_p (r_type))
5a659663
TS
10486 addend = mips_elf_high (addend);
10487 else if (r_type == R_MIPS_HIGHER)
10488 addend = mips_elf_higher (addend);
10489 else if (r_type == R_MIPS_HIGHEST)
10490 addend = mips_elf_highest (addend);
30ac9238
RS
10491 else
10492 addend >>= howto->rightshift;
b49e97c9 10493
30ac9238
RS
10494 /* We use the source mask, rather than the destination
10495 mask because the place to which we are writing will be
10496 source of the addend in the final link. */
b49e97c9
TS
10497 addend &= howto->src_mask;
10498
5a659663 10499 if (r_type == R_MIPS_64 && ! NEWABI_P (output_bfd))
b49e97c9
TS
10500 /* See the comment above about using R_MIPS_64 in the 32-bit
10501 ABI. Here, we need to update the addend. It would be
10502 possible to get away with just using the R_MIPS_32 reloc
10503 but for endianness. */
10504 {
10505 bfd_vma sign_bits;
10506 bfd_vma low_bits;
10507 bfd_vma high_bits;
10508
10509 if (addend & ((bfd_vma) 1 << 31))
10510#ifdef BFD64
10511 sign_bits = ((bfd_vma) 1 << 32) - 1;
10512#else
10513 sign_bits = -1;
10514#endif
10515 else
10516 sign_bits = 0;
10517
10518 /* If we don't know that we have a 64-bit type,
10519 do two separate stores. */
10520 if (bfd_big_endian (input_bfd))
10521 {
10522 /* Store the sign-bits (which are most significant)
10523 first. */
10524 low_bits = sign_bits;
10525 high_bits = addend;
10526 }
10527 else
10528 {
10529 low_bits = addend;
10530 high_bits = sign_bits;
10531 }
10532 bfd_put_32 (input_bfd, low_bits,
10533 contents + rel->r_offset);
10534 bfd_put_32 (input_bfd, high_bits,
10535 contents + rel->r_offset + 4);
10536 continue;
10537 }
10538
10539 if (! mips_elf_perform_relocation (info, howto, rel, addend,
10540 input_bfd, input_section,
b34976b6
AM
10541 contents, FALSE))
10542 return FALSE;
b49e97c9
TS
10543 }
10544
10545 /* Go on to the next relocation. */
10546 continue;
10547 }
10548
10549 /* In the N32 and 64-bit ABIs there may be multiple consecutive
10550 relocations for the same offset. In that case we are
10551 supposed to treat the output of each relocation as the addend
10552 for the next. */
10553 if (rel + 1 < relend
10554 && rel->r_offset == rel[1].r_offset
10555 && ELF_R_TYPE (input_bfd, rel[1].r_info) != R_MIPS_NONE)
b34976b6 10556 use_saved_addend_p = TRUE;
b49e97c9 10557 else
b34976b6 10558 use_saved_addend_p = FALSE;
b49e97c9
TS
10559
10560 /* Figure out what value we are supposed to relocate. */
10561 switch (mips_elf_calculate_relocation (output_bfd, input_bfd,
47275900
MR
10562 input_section, contents,
10563 info, rel, addend, howto,
10564 local_syms, local_sections,
10565 &value, &name, &cross_mode_jump_p,
bce03d3d 10566 use_saved_addend_p))
b49e97c9
TS
10567 {
10568 case bfd_reloc_continue:
10569 /* There's nothing to do. */
10570 continue;
10571
10572 case bfd_reloc_undefined:
10573 /* mips_elf_calculate_relocation already called the
10574 undefined_symbol callback. There's no real point in
10575 trying to perform the relocation at this point, so we
10576 just skip ahead to the next relocation. */
10577 continue;
10578
10579 case bfd_reloc_notsupported:
10580 msg = _("internal error: unsupported relocation error");
10581 info->callbacks->warning
10582 (info, msg, name, input_bfd, input_section, rel->r_offset);
b34976b6 10583 return FALSE;
b49e97c9
TS
10584
10585 case bfd_reloc_overflow:
10586 if (use_saved_addend_p)
10587 /* Ignore overflow until we reach the last relocation for
10588 a given location. */
10589 ;
10590 else
10591 {
0e53d9da
AN
10592 struct mips_elf_link_hash_table *htab;
10593
10594 htab = mips_elf_hash_table (info);
4dfe6ac6 10595 BFD_ASSERT (htab != NULL);
b49e97c9 10596 BFD_ASSERT (name != NULL);
0e53d9da 10597 if (!htab->small_data_overflow_reported
9684f078 10598 && (gprel16_reloc_p (howto->type)
df58fc94 10599 || literal_reloc_p (howto->type)))
0e53d9da 10600 {
91d6fa6a
NC
10601 msg = _("small-data section exceeds 64KB;"
10602 " lower small-data size limit (see option -G)");
0e53d9da
AN
10603
10604 htab->small_data_overflow_reported = TRUE;
10605 (*info->callbacks->einfo) ("%P: %s\n", msg);
10606 }
1a72702b
AM
10607 (*info->callbacks->reloc_overflow)
10608 (info, NULL, name, howto->name, (bfd_vma) 0,
10609 input_bfd, input_section, rel->r_offset);
b49e97c9
TS
10610 }
10611 break;
10612
10613 case bfd_reloc_ok:
10614 break;
10615
df58fc94 10616 case bfd_reloc_outofrange:
7db9a74e 10617 msg = NULL;
df58fc94 10618 if (jal_reloc_p (howto->type))
9d862524 10619 msg = (cross_mode_jump_p
2c1c9679 10620 ? _("cannot convert a jump to JALX "
9d862524
MR
10621 "for a non-word-aligned address")
10622 : (howto->type == R_MIPS16_26
2c1c9679
AM
10623 ? _("jump to a non-word-aligned address")
10624 : _("jump to a non-instruction-aligned address")));
99aefae6 10625 else if (b_reloc_p (howto->type))
a6ebf616 10626 msg = (cross_mode_jump_p
2c1c9679 10627 ? _("cannot convert a branch to JALX "
a6ebf616 10628 "for a non-word-aligned address")
2c1c9679 10629 : _("branch to a non-instruction-aligned address"));
7db9a74e
MR
10630 else if (aligned_pcrel_reloc_p (howto->type))
10631 msg = _("PC-relative load from unaligned address");
10632 if (msg)
df58fc94 10633 {
de341542 10634 info->callbacks->einfo
ed53407e
MR
10635 ("%X%H: %s\n", input_bfd, input_section, rel->r_offset, msg);
10636 break;
7361da2c 10637 }
df58fc94
RS
10638 /* Fall through. */
10639
b49e97c9
TS
10640 default:
10641 abort ();
10642 break;
10643 }
10644
10645 /* If we've got another relocation for the address, keep going
10646 until we reach the last one. */
10647 if (use_saved_addend_p)
10648 {
10649 addend = value;
10650 continue;
10651 }
10652
4a14403c 10653 if (r_type == R_MIPS_64 && ! NEWABI_P (output_bfd))
b49e97c9
TS
10654 /* See the comment above about using R_MIPS_64 in the 32-bit
10655 ABI. Until now, we've been using the HOWTO for R_MIPS_32;
10656 that calculated the right value. Now, however, we
10657 sign-extend the 32-bit result to 64-bits, and store it as a
10658 64-bit value. We are especially generous here in that we
10659 go to extreme lengths to support this usage on systems with
10660 only a 32-bit VMA. */
10661 {
10662 bfd_vma sign_bits;
10663 bfd_vma low_bits;
10664 bfd_vma high_bits;
10665
10666 if (value & ((bfd_vma) 1 << 31))
10667#ifdef BFD64
10668 sign_bits = ((bfd_vma) 1 << 32) - 1;
10669#else
10670 sign_bits = -1;
10671#endif
10672 else
10673 sign_bits = 0;
10674
10675 /* If we don't know that we have a 64-bit type,
10676 do two separate stores. */
10677 if (bfd_big_endian (input_bfd))
10678 {
10679 /* Undo what we did above. */
10680 rel->r_offset -= 4;
10681 /* Store the sign-bits (which are most significant)
10682 first. */
10683 low_bits = sign_bits;
10684 high_bits = value;
10685 }
10686 else
10687 {
10688 low_bits = value;
10689 high_bits = sign_bits;
10690 }
10691 bfd_put_32 (input_bfd, low_bits,
10692 contents + rel->r_offset);
10693 bfd_put_32 (input_bfd, high_bits,
10694 contents + rel->r_offset + 4);
10695 continue;
10696 }
10697
10698 /* Actually perform the relocation. */
10699 if (! mips_elf_perform_relocation (info, howto, rel, value,
10700 input_bfd, input_section,
38a7df63 10701 contents, cross_mode_jump_p))
b34976b6 10702 return FALSE;
b49e97c9
TS
10703 }
10704
b34976b6 10705 return TRUE;
b49e97c9
TS
10706}
10707\f
861fb55a
DJ
10708/* A function that iterates over each entry in la25_stubs and fills
10709 in the code for each one. DATA points to a mips_htab_traverse_info. */
10710
10711static int
10712mips_elf_create_la25_stub (void **slot, void *data)
10713{
10714 struct mips_htab_traverse_info *hti;
10715 struct mips_elf_link_hash_table *htab;
10716 struct mips_elf_la25_stub *stub;
10717 asection *s;
10718 bfd_byte *loc;
10719 bfd_vma offset, target, target_high, target_low;
3734320d
MF
10720 bfd_vma branch_pc;
10721 bfd_signed_vma pcrel_offset = 0;
861fb55a
DJ
10722
10723 stub = (struct mips_elf_la25_stub *) *slot;
10724 hti = (struct mips_htab_traverse_info *) data;
10725 htab = mips_elf_hash_table (hti->info);
4dfe6ac6 10726 BFD_ASSERT (htab != NULL);
861fb55a
DJ
10727
10728 /* Create the section contents, if we haven't already. */
10729 s = stub->stub_section;
10730 loc = s->contents;
10731 if (loc == NULL)
10732 {
10733 loc = bfd_malloc (s->size);
10734 if (loc == NULL)
10735 {
10736 hti->error = TRUE;
10737 return FALSE;
10738 }
10739 s->contents = loc;
10740 }
10741
10742 /* Work out where in the section this stub should go. */
10743 offset = stub->offset;
10744
3734320d
MF
10745 /* We add 8 here to account for the LUI/ADDIU instructions
10746 before the branch instruction. This cannot be moved down to
10747 where pcrel_offset is calculated as 's' is updated in
10748 mips_elf_get_la25_target. */
10749 branch_pc = s->output_section->vma + s->output_offset + offset + 8;
10750
861fb55a 10751 /* Work out the target address. */
8f0c309a
CLT
10752 target = mips_elf_get_la25_target (stub, &s);
10753 target += s->output_section->vma + s->output_offset;
10754
861fb55a
DJ
10755 target_high = ((target + 0x8000) >> 16) & 0xffff;
10756 target_low = (target & 0xffff);
10757
3734320d
MF
10758 /* Calculate the PC of the compact branch instruction (for the case where
10759 compact branches are used for either microMIPSR6 or MIPSR6 with
10760 compact branches. Add 4-bytes to account for BC using the PC of the
10761 next instruction as the base. */
10762 pcrel_offset = target - (branch_pc + 4);
10763
861fb55a
DJ
10764 if (stub->stub_section != htab->strampoline)
10765 {
df58fc94 10766 /* This is a simple LUI/ADDIU stub. Zero out the beginning
861fb55a
DJ
10767 of the section and write the two instructions at the end. */
10768 memset (loc, 0, offset);
10769 loc += offset;
df58fc94
RS
10770 if (ELF_ST_IS_MICROMIPS (stub->h->root.other))
10771 {
d21911ea
MR
10772 bfd_put_micromips_32 (hti->output_bfd,
10773 LA25_LUI_MICROMIPS (target_high),
10774 loc);
10775 bfd_put_micromips_32 (hti->output_bfd,
10776 LA25_ADDIU_MICROMIPS (target_low),
10777 loc + 4);
df58fc94
RS
10778 }
10779 else
10780 {
10781 bfd_put_32 (hti->output_bfd, LA25_LUI (target_high), loc);
10782 bfd_put_32 (hti->output_bfd, LA25_ADDIU (target_low), loc + 4);
10783 }
861fb55a
DJ
10784 }
10785 else
10786 {
10787 /* This is trampoline. */
10788 loc += offset;
df58fc94
RS
10789 if (ELF_ST_IS_MICROMIPS (stub->h->root.other))
10790 {
d21911ea
MR
10791 bfd_put_micromips_32 (hti->output_bfd,
10792 LA25_LUI_MICROMIPS (target_high), loc);
10793 bfd_put_micromips_32 (hti->output_bfd,
10794 LA25_J_MICROMIPS (target), loc + 4);
10795 bfd_put_micromips_32 (hti->output_bfd,
10796 LA25_ADDIU_MICROMIPS (target_low), loc + 8);
df58fc94
RS
10797 bfd_put_32 (hti->output_bfd, 0, loc + 12);
10798 }
10799 else
10800 {
10801 bfd_put_32 (hti->output_bfd, LA25_LUI (target_high), loc);
3734320d
MF
10802 if (MIPSR6_P (hti->output_bfd) && htab->compact_branches)
10803 {
10804 bfd_put_32 (hti->output_bfd, LA25_ADDIU (target_low), loc + 4);
10805 bfd_put_32 (hti->output_bfd, LA25_BC (pcrel_offset), loc + 8);
10806 }
10807 else
10808 {
10809 bfd_put_32 (hti->output_bfd, LA25_J (target), loc + 4);
10810 bfd_put_32 (hti->output_bfd, LA25_ADDIU (target_low), loc + 8);
10811 }
df58fc94
RS
10812 bfd_put_32 (hti->output_bfd, 0, loc + 12);
10813 }
861fb55a
DJ
10814 }
10815 return TRUE;
10816}
10817
b49e97c9
TS
10818/* If NAME is one of the special IRIX6 symbols defined by the linker,
10819 adjust it appropriately now. */
10820
10821static void
9719ad41
RS
10822mips_elf_irix6_finish_dynamic_symbol (bfd *abfd ATTRIBUTE_UNUSED,
10823 const char *name, Elf_Internal_Sym *sym)
b49e97c9
TS
10824{
10825 /* The linker script takes care of providing names and values for
10826 these, but we must place them into the right sections. */
10827 static const char* const text_section_symbols[] = {
10828 "_ftext",
10829 "_etext",
10830 "__dso_displacement",
10831 "__elf_header",
10832 "__program_header_table",
10833 NULL
10834 };
10835
10836 static const char* const data_section_symbols[] = {
10837 "_fdata",
10838 "_edata",
10839 "_end",
10840 "_fbss",
10841 NULL
10842 };
10843
10844 const char* const *p;
10845 int i;
10846
10847 for (i = 0; i < 2; ++i)
10848 for (p = (i == 0) ? text_section_symbols : data_section_symbols;
10849 *p;
10850 ++p)
10851 if (strcmp (*p, name) == 0)
10852 {
10853 /* All of these symbols are given type STT_SECTION by the
10854 IRIX6 linker. */
10855 sym->st_info = ELF_ST_INFO (STB_GLOBAL, STT_SECTION);
e10609d3 10856 sym->st_other = STO_PROTECTED;
b49e97c9
TS
10857
10858 /* The IRIX linker puts these symbols in special sections. */
10859 if (i == 0)
10860 sym->st_shndx = SHN_MIPS_TEXT;
10861 else
10862 sym->st_shndx = SHN_MIPS_DATA;
10863
10864 break;
10865 }
10866}
10867
10868/* Finish up dynamic symbol handling. We set the contents of various
10869 dynamic sections here. */
10870
b34976b6 10871bfd_boolean
9719ad41
RS
10872_bfd_mips_elf_finish_dynamic_symbol (bfd *output_bfd,
10873 struct bfd_link_info *info,
10874 struct elf_link_hash_entry *h,
10875 Elf_Internal_Sym *sym)
b49e97c9
TS
10876{
10877 bfd *dynobj;
b49e97c9 10878 asection *sgot;
f4416af6 10879 struct mips_got_info *g, *gg;
b49e97c9 10880 const char *name;
3d6746ca 10881 int idx;
5108fc1b 10882 struct mips_elf_link_hash_table *htab;
738e5348 10883 struct mips_elf_link_hash_entry *hmips;
b49e97c9 10884
5108fc1b 10885 htab = mips_elf_hash_table (info);
4dfe6ac6 10886 BFD_ASSERT (htab != NULL);
b49e97c9 10887 dynobj = elf_hash_table (info)->dynobj;
738e5348 10888 hmips = (struct mips_elf_link_hash_entry *) h;
b49e97c9 10889
861fb55a
DJ
10890 BFD_ASSERT (!htab->is_vxworks);
10891
1bbce132
MR
10892 if (h->plt.plist != NULL
10893 && (h->plt.plist->mips_offset != MINUS_ONE
10894 || h->plt.plist->comp_offset != MINUS_ONE))
861fb55a
DJ
10895 {
10896 /* We've decided to create a PLT entry for this symbol. */
10897 bfd_byte *loc;
1bbce132 10898 bfd_vma header_address, got_address;
861fb55a 10899 bfd_vma got_address_high, got_address_low, load;
1bbce132
MR
10900 bfd_vma got_index;
10901 bfd_vma isa_bit;
10902
10903 got_index = h->plt.plist->gotplt_index;
861fb55a
DJ
10904
10905 BFD_ASSERT (htab->use_plts_and_copy_relocs);
10906 BFD_ASSERT (h->dynindx != -1);
ce558b89 10907 BFD_ASSERT (htab->root.splt != NULL);
1bbce132 10908 BFD_ASSERT (got_index != MINUS_ONE);
861fb55a
DJ
10909 BFD_ASSERT (!h->def_regular);
10910
10911 /* Calculate the address of the PLT header. */
1bbce132 10912 isa_bit = htab->plt_header_is_comp;
ce558b89
AM
10913 header_address = (htab->root.splt->output_section->vma
10914 + htab->root.splt->output_offset + isa_bit);
861fb55a
DJ
10915
10916 /* Calculate the address of the .got.plt entry. */
ce558b89
AM
10917 got_address = (htab->root.sgotplt->output_section->vma
10918 + htab->root.sgotplt->output_offset
1bbce132
MR
10919 + got_index * MIPS_ELF_GOT_SIZE (dynobj));
10920
861fb55a
DJ
10921 got_address_high = ((got_address + 0x8000) >> 16) & 0xffff;
10922 got_address_low = got_address & 0xffff;
10923
789ff5b6
MR
10924 /* The PLT sequence is not safe for N64 if .got.plt entry's address
10925 cannot be loaded in two instructions. */
10926 if (ABI_64_P (output_bfd)
10927 && ((got_address + 0x80008000) & ~(bfd_vma) 0xffffffff) != 0)
10928 {
10929 _bfd_error_handler
10930 /* xgettext:c-format */
10931 (_("%pB: `%pA' entry VMA of %#" PRIx64 " outside the 32-bit range "
10932 "supported; consider using `-Ttext-segment=...'"),
10933 output_bfd,
10934 htab->root.sgotplt->output_section,
10935 (int64_t) got_address);
10936 bfd_set_error (bfd_error_no_error);
10937 return FALSE;
10938 }
10939
861fb55a 10940 /* Initially point the .got.plt entry at the PLT header. */
6a382bce
MR
10941 loc = (htab->root.sgotplt->contents
10942 + got_index * MIPS_ELF_GOT_SIZE (dynobj));
861fb55a
DJ
10943 if (ABI_64_P (output_bfd))
10944 bfd_put_64 (output_bfd, header_address, loc);
10945 else
10946 bfd_put_32 (output_bfd, header_address, loc);
10947
1bbce132 10948 /* Now handle the PLT itself. First the standard entry (the order
07d6d2b8 10949 does not matter, we just have to pick one). */
1bbce132
MR
10950 if (h->plt.plist->mips_offset != MINUS_ONE)
10951 {
10952 const bfd_vma *plt_entry;
10953 bfd_vma plt_offset;
861fb55a 10954
1bbce132 10955 plt_offset = htab->plt_header_size + h->plt.plist->mips_offset;
861fb55a 10956
ce558b89 10957 BFD_ASSERT (plt_offset <= htab->root.splt->size);
6d30f5b2 10958
1bbce132 10959 /* Find out where the .plt entry should go. */
ce558b89 10960 loc = htab->root.splt->contents + plt_offset;
1bbce132
MR
10961
10962 /* Pick the load opcode. */
10963 load = MIPS_ELF_LOAD_WORD (output_bfd);
10964
10965 /* Fill in the PLT entry itself. */
7361da2c
AB
10966
10967 if (MIPSR6_P (output_bfd))
3734320d
MF
10968 plt_entry = htab->compact_branches ? mipsr6_exec_plt_entry_compact
10969 : mipsr6_exec_plt_entry;
7361da2c
AB
10970 else
10971 plt_entry = mips_exec_plt_entry;
1bbce132
MR
10972 bfd_put_32 (output_bfd, plt_entry[0] | got_address_high, loc);
10973 bfd_put_32 (output_bfd, plt_entry[1] | got_address_low | load,
10974 loc + 4);
10975
3734320d
MF
10976 if (! LOAD_INTERLOCKS_P (output_bfd)
10977 || (MIPSR6_P (output_bfd) && htab->compact_branches))
1bbce132
MR
10978 {
10979 bfd_put_32 (output_bfd, plt_entry[2] | got_address_low, loc + 8);
10980 bfd_put_32 (output_bfd, plt_entry[3], loc + 12);
10981 }
10982 else
10983 {
10984 bfd_put_32 (output_bfd, plt_entry[3], loc + 8);
10985 bfd_put_32 (output_bfd, plt_entry[2] | got_address_low,
10986 loc + 12);
10987 }
6d30f5b2 10988 }
1bbce132
MR
10989
10990 /* Now the compressed entry. They come after any standard ones. */
10991 if (h->plt.plist->comp_offset != MINUS_ONE)
6d30f5b2 10992 {
1bbce132
MR
10993 bfd_vma plt_offset;
10994
10995 plt_offset = (htab->plt_header_size + htab->plt_mips_offset
10996 + h->plt.plist->comp_offset);
10997
ce558b89 10998 BFD_ASSERT (plt_offset <= htab->root.splt->size);
1bbce132
MR
10999
11000 /* Find out where the .plt entry should go. */
ce558b89 11001 loc = htab->root.splt->contents + plt_offset;
1bbce132
MR
11002
11003 /* Fill in the PLT entry itself. */
833794fc
MR
11004 if (!MICROMIPS_P (output_bfd))
11005 {
11006 const bfd_vma *plt_entry = mips16_o32_exec_plt_entry;
11007
11008 bfd_put_16 (output_bfd, plt_entry[0], loc);
11009 bfd_put_16 (output_bfd, plt_entry[1], loc + 2);
11010 bfd_put_16 (output_bfd, plt_entry[2], loc + 4);
11011 bfd_put_16 (output_bfd, plt_entry[3], loc + 6);
11012 bfd_put_16 (output_bfd, plt_entry[4], loc + 8);
11013 bfd_put_16 (output_bfd, plt_entry[5], loc + 10);
11014 bfd_put_32 (output_bfd, got_address, loc + 12);
11015 }
11016 else if (htab->insn32)
11017 {
11018 const bfd_vma *plt_entry = micromips_insn32_o32_exec_plt_entry;
11019
11020 bfd_put_16 (output_bfd, plt_entry[0], loc);
11021 bfd_put_16 (output_bfd, got_address_high, loc + 2);
11022 bfd_put_16 (output_bfd, plt_entry[2], loc + 4);
11023 bfd_put_16 (output_bfd, got_address_low, loc + 6);
11024 bfd_put_16 (output_bfd, plt_entry[4], loc + 8);
11025 bfd_put_16 (output_bfd, plt_entry[5], loc + 10);
11026 bfd_put_16 (output_bfd, plt_entry[6], loc + 12);
11027 bfd_put_16 (output_bfd, got_address_low, loc + 14);
11028 }
11029 else
1bbce132
MR
11030 {
11031 const bfd_vma *plt_entry = micromips_o32_exec_plt_entry;
11032 bfd_signed_vma gotpc_offset;
11033 bfd_vma loc_address;
11034
11035 BFD_ASSERT (got_address % 4 == 0);
11036
ce558b89
AM
11037 loc_address = (htab->root.splt->output_section->vma
11038 + htab->root.splt->output_offset + plt_offset);
1bbce132
MR
11039 gotpc_offset = got_address - ((loc_address | 3) ^ 3);
11040
11041 /* ADDIUPC has a span of +/-16MB, check we're in range. */
11042 if (gotpc_offset + 0x1000000 >= 0x2000000)
11043 {
4eca0228 11044 _bfd_error_handler
695344c0 11045 /* xgettext:c-format */
2dcf00ce 11046 (_("%pB: `%pA' offset of %" PRId64 " from `%pA' "
1bbce132
MR
11047 "beyond the range of ADDIUPC"),
11048 output_bfd,
ce558b89 11049 htab->root.sgotplt->output_section,
2dcf00ce 11050 (int64_t) gotpc_offset,
c08bb8dd 11051 htab->root.splt->output_section);
1bbce132
MR
11052 bfd_set_error (bfd_error_no_error);
11053 return FALSE;
11054 }
11055 bfd_put_16 (output_bfd,
11056 plt_entry[0] | ((gotpc_offset >> 18) & 0x7f), loc);
11057 bfd_put_16 (output_bfd, (gotpc_offset >> 2) & 0xffff, loc + 2);
11058 bfd_put_16 (output_bfd, plt_entry[2], loc + 4);
11059 bfd_put_16 (output_bfd, plt_entry[3], loc + 6);
11060 bfd_put_16 (output_bfd, plt_entry[4], loc + 8);
11061 bfd_put_16 (output_bfd, plt_entry[5], loc + 10);
11062 }
6d30f5b2 11063 }
861fb55a
DJ
11064
11065 /* Emit an R_MIPS_JUMP_SLOT relocation against the .got.plt entry. */
ce558b89 11066 mips_elf_output_dynamic_relocation (output_bfd, htab->root.srelplt,
1bbce132 11067 got_index - 2, h->dynindx,
861fb55a
DJ
11068 R_MIPS_JUMP_SLOT, got_address);
11069
11070 /* We distinguish between PLT entries and lazy-binding stubs by
11071 giving the former an st_other value of STO_MIPS_PLT. Set the
11072 flag and leave the value if there are any relocations in the
11073 binary where pointer equality matters. */
11074 sym->st_shndx = SHN_UNDEF;
11075 if (h->pointer_equality_needed)
1bbce132 11076 sym->st_other = ELF_ST_SET_MIPS_PLT (sym->st_other);
861fb55a 11077 else
1bbce132
MR
11078 {
11079 sym->st_value = 0;
11080 sym->st_other = 0;
11081 }
861fb55a 11082 }
1bbce132
MR
11083
11084 if (h->plt.plist != NULL && h->plt.plist->stub_offset != MINUS_ONE)
b49e97c9 11085 {
861fb55a 11086 /* We've decided to create a lazy-binding stub. */
1bbce132
MR
11087 bfd_boolean micromips_p = MICROMIPS_P (output_bfd);
11088 unsigned int other = micromips_p ? STO_MICROMIPS : 0;
11089 bfd_vma stub_size = htab->function_stub_size;
5108fc1b 11090 bfd_byte stub[MIPS_FUNCTION_STUB_BIG_SIZE];
1bbce132
MR
11091 bfd_vma isa_bit = micromips_p;
11092 bfd_vma stub_big_size;
11093
833794fc 11094 if (!micromips_p)
1bbce132 11095 stub_big_size = MIPS_FUNCTION_STUB_BIG_SIZE;
833794fc
MR
11096 else if (htab->insn32)
11097 stub_big_size = MICROMIPS_INSN32_FUNCTION_STUB_BIG_SIZE;
11098 else
11099 stub_big_size = MICROMIPS_FUNCTION_STUB_BIG_SIZE;
b49e97c9
TS
11100
11101 /* This symbol has a stub. Set it up. */
11102
11103 BFD_ASSERT (h->dynindx != -1);
11104
1bbce132 11105 BFD_ASSERT (stub_size == stub_big_size || h->dynindx <= 0xffff);
3d6746ca
DD
11106
11107 /* Values up to 2^31 - 1 are allowed. Larger values would cause
5108fc1b
RS
11108 sign extension at runtime in the stub, resulting in a negative
11109 index value. */
11110 if (h->dynindx & ~0x7fffffff)
b34976b6 11111 return FALSE;
b49e97c9
TS
11112
11113 /* Fill the stub. */
1bbce132
MR
11114 if (micromips_p)
11115 {
11116 idx = 0;
11117 bfd_put_micromips_32 (output_bfd, STUB_LW_MICROMIPS (output_bfd),
11118 stub + idx);
11119 idx += 4;
833794fc
MR
11120 if (htab->insn32)
11121 {
11122 bfd_put_micromips_32 (output_bfd,
40fc1451 11123 STUB_MOVE32_MICROMIPS, stub + idx);
833794fc
MR
11124 idx += 4;
11125 }
11126 else
11127 {
11128 bfd_put_16 (output_bfd, STUB_MOVE_MICROMIPS, stub + idx);
11129 idx += 2;
11130 }
1bbce132
MR
11131 if (stub_size == stub_big_size)
11132 {
11133 long dynindx_hi = (h->dynindx >> 16) & 0x7fff;
11134
11135 bfd_put_micromips_32 (output_bfd,
11136 STUB_LUI_MICROMIPS (dynindx_hi),
11137 stub + idx);
11138 idx += 4;
11139 }
833794fc
MR
11140 if (htab->insn32)
11141 {
11142 bfd_put_micromips_32 (output_bfd, STUB_JALR32_MICROMIPS,
11143 stub + idx);
11144 idx += 4;
11145 }
11146 else
11147 {
11148 bfd_put_16 (output_bfd, STUB_JALR_MICROMIPS, stub + idx);
11149 idx += 2;
11150 }
1bbce132
MR
11151
11152 /* If a large stub is not required and sign extension is not a
11153 problem, then use legacy code in the stub. */
11154 if (stub_size == stub_big_size)
11155 bfd_put_micromips_32 (output_bfd,
11156 STUB_ORI_MICROMIPS (h->dynindx & 0xffff),
11157 stub + idx);
11158 else if (h->dynindx & ~0x7fff)
11159 bfd_put_micromips_32 (output_bfd,
11160 STUB_LI16U_MICROMIPS (h->dynindx & 0xffff),
11161 stub + idx);
11162 else
11163 bfd_put_micromips_32 (output_bfd,
11164 STUB_LI16S_MICROMIPS (output_bfd,
11165 h->dynindx),
11166 stub + idx);
11167 }
3d6746ca 11168 else
1bbce132
MR
11169 {
11170 idx = 0;
11171 bfd_put_32 (output_bfd, STUB_LW (output_bfd), stub + idx);
11172 idx += 4;
40fc1451 11173 bfd_put_32 (output_bfd, STUB_MOVE, stub + idx);
1bbce132
MR
11174 idx += 4;
11175 if (stub_size == stub_big_size)
11176 {
11177 bfd_put_32 (output_bfd, STUB_LUI ((h->dynindx >> 16) & 0x7fff),
11178 stub + idx);
11179 idx += 4;
11180 }
3734320d
MF
11181
11182 if (!(MIPSR6_P (output_bfd) && htab->compact_branches))
11183 {
11184 bfd_put_32 (output_bfd, STUB_JALR, stub + idx);
11185 idx += 4;
11186 }
1bbce132
MR
11187
11188 /* If a large stub is not required and sign extension is not a
11189 problem, then use legacy code in the stub. */
11190 if (stub_size == stub_big_size)
11191 bfd_put_32 (output_bfd, STUB_ORI (h->dynindx & 0xffff),
11192 stub + idx);
11193 else if (h->dynindx & ~0x7fff)
11194 bfd_put_32 (output_bfd, STUB_LI16U (h->dynindx & 0xffff),
11195 stub + idx);
11196 else
11197 bfd_put_32 (output_bfd, STUB_LI16S (output_bfd, h->dynindx),
11198 stub + idx);
3734320d
MF
11199 idx += 4;
11200
11201 if (MIPSR6_P (output_bfd) && htab->compact_branches)
11202 bfd_put_32 (output_bfd, STUB_JALRC, stub + idx);
1bbce132 11203 }
5108fc1b 11204
1bbce132
MR
11205 BFD_ASSERT (h->plt.plist->stub_offset <= htab->sstubs->size);
11206 memcpy (htab->sstubs->contents + h->plt.plist->stub_offset,
11207 stub, stub_size);
b49e97c9 11208
1bbce132 11209 /* Mark the symbol as undefined. stub_offset != -1 occurs
b49e97c9
TS
11210 only for the referenced symbol. */
11211 sym->st_shndx = SHN_UNDEF;
11212
11213 /* The run-time linker uses the st_value field of the symbol
11214 to reset the global offset table entry for this external
11215 to its stub address when unlinking a shared object. */
4e41d0d7
RS
11216 sym->st_value = (htab->sstubs->output_section->vma
11217 + htab->sstubs->output_offset
1bbce132
MR
11218 + h->plt.plist->stub_offset
11219 + isa_bit);
11220 sym->st_other = other;
b49e97c9
TS
11221 }
11222
738e5348
RS
11223 /* If we have a MIPS16 function with a stub, the dynamic symbol must
11224 refer to the stub, since only the stub uses the standard calling
11225 conventions. */
11226 if (h->dynindx != -1 && hmips->fn_stub != NULL)
11227 {
11228 BFD_ASSERT (hmips->need_fn_stub);
11229 sym->st_value = (hmips->fn_stub->output_section->vma
11230 + hmips->fn_stub->output_offset);
11231 sym->st_size = hmips->fn_stub->size;
11232 sym->st_other = ELF_ST_VISIBILITY (sym->st_other);
11233 }
11234
b49e97c9 11235 BFD_ASSERT (h->dynindx != -1
f5385ebf 11236 || h->forced_local);
b49e97c9 11237
ce558b89 11238 sgot = htab->root.sgot;
a8028dd0 11239 g = htab->got_info;
b49e97c9
TS
11240 BFD_ASSERT (g != NULL);
11241
11242 /* Run through the global symbol table, creating GOT entries for all
11243 the symbols that need them. */
020d7251 11244 if (hmips->global_got_area != GGA_NONE)
b49e97c9
TS
11245 {
11246 bfd_vma offset;
11247 bfd_vma value;
11248
6eaa6adc 11249 value = sym->st_value;
13fbec83 11250 offset = mips_elf_primary_global_got_index (output_bfd, info, h);
b49e97c9
TS
11251 MIPS_ELF_PUT_WORD (output_bfd, value, sgot->contents + offset);
11252 }
11253
e641e783 11254 if (hmips->global_got_area != GGA_NONE && g->next)
f4416af6
AO
11255 {
11256 struct mips_got_entry e, *p;
0626d451 11257 bfd_vma entry;
f4416af6 11258 bfd_vma offset;
f4416af6
AO
11259
11260 gg = g;
11261
11262 e.abfd = output_bfd;
11263 e.symndx = -1;
738e5348 11264 e.d.h = hmips;
9ab066b4 11265 e.tls_type = GOT_TLS_NONE;
143d77c5 11266
f4416af6
AO
11267 for (g = g->next; g->next != gg; g = g->next)
11268 {
11269 if (g->got_entries
11270 && (p = (struct mips_got_entry *) htab_find (g->got_entries,
11271 &e)))
11272 {
11273 offset = p->gotidx;
ce558b89 11274 BFD_ASSERT (offset > 0 && offset < htab->root.sgot->size);
0e1862bb 11275 if (bfd_link_pic (info)
0626d451
RS
11276 || (elf_hash_table (info)->dynamic_sections_created
11277 && p->d.h != NULL
f5385ebf
AM
11278 && p->d.h->root.def_dynamic
11279 && !p->d.h->root.def_regular))
0626d451
RS
11280 {
11281 /* Create an R_MIPS_REL32 relocation for this entry. Due to
11282 the various compatibility problems, it's easier to mock
11283 up an R_MIPS_32 or R_MIPS_64 relocation and leave
11284 mips_elf_create_dynamic_relocation to calculate the
11285 appropriate addend. */
11286 Elf_Internal_Rela rel[3];
11287
11288 memset (rel, 0, sizeof (rel));
11289 if (ABI_64_P (output_bfd))
11290 rel[0].r_info = ELF_R_INFO (output_bfd, 0, R_MIPS_64);
11291 else
11292 rel[0].r_info = ELF_R_INFO (output_bfd, 0, R_MIPS_32);
11293 rel[0].r_offset = rel[1].r_offset = rel[2].r_offset = offset;
11294
11295 entry = 0;
11296 if (! (mips_elf_create_dynamic_relocation
11297 (output_bfd, info, rel,
11298 e.d.h, NULL, sym->st_value, &entry, sgot)))
11299 return FALSE;
11300 }
11301 else
11302 entry = sym->st_value;
11303 MIPS_ELF_PUT_WORD (output_bfd, entry, sgot->contents + offset);
f4416af6
AO
11304 }
11305 }
11306 }
11307
b49e97c9
TS
11308 /* Mark _DYNAMIC and _GLOBAL_OFFSET_TABLE_ as absolute. */
11309 name = h->root.root.string;
9637f6ef 11310 if (h == elf_hash_table (info)->hdynamic
22edb2f1 11311 || h == elf_hash_table (info)->hgot)
b49e97c9
TS
11312 sym->st_shndx = SHN_ABS;
11313 else if (strcmp (name, "_DYNAMIC_LINK") == 0
11314 || strcmp (name, "_DYNAMIC_LINKING") == 0)
11315 {
11316 sym->st_shndx = SHN_ABS;
11317 sym->st_info = ELF_ST_INFO (STB_GLOBAL, STT_SECTION);
11318 sym->st_value = 1;
11319 }
b49e97c9
TS
11320 else if (SGI_COMPAT (output_bfd))
11321 {
11322 if (strcmp (name, mips_elf_dynsym_rtproc_names[0]) == 0
11323 || strcmp (name, mips_elf_dynsym_rtproc_names[1]) == 0)
11324 {
11325 sym->st_info = ELF_ST_INFO (STB_GLOBAL, STT_SECTION);
11326 sym->st_other = STO_PROTECTED;
11327 sym->st_value = 0;
11328 sym->st_shndx = SHN_MIPS_DATA;
11329 }
11330 else if (strcmp (name, mips_elf_dynsym_rtproc_names[2]) == 0)
11331 {
11332 sym->st_info = ELF_ST_INFO (STB_GLOBAL, STT_SECTION);
11333 sym->st_other = STO_PROTECTED;
11334 sym->st_value = mips_elf_hash_table (info)->procedure_count;
11335 sym->st_shndx = SHN_ABS;
11336 }
11337 else if (sym->st_shndx != SHN_UNDEF && sym->st_shndx != SHN_ABS)
11338 {
11339 if (h->type == STT_FUNC)
11340 sym->st_shndx = SHN_MIPS_TEXT;
11341 else if (h->type == STT_OBJECT)
11342 sym->st_shndx = SHN_MIPS_DATA;
11343 }
11344 }
11345
861fb55a
DJ
11346 /* Emit a copy reloc, if needed. */
11347 if (h->needs_copy)
11348 {
11349 asection *s;
11350 bfd_vma symval;
11351
11352 BFD_ASSERT (h->dynindx != -1);
11353 BFD_ASSERT (htab->use_plts_and_copy_relocs);
11354
11355 s = mips_elf_rel_dyn_section (info, FALSE);
11356 symval = (h->root.u.def.section->output_section->vma
11357 + h->root.u.def.section->output_offset
11358 + h->root.u.def.value);
11359 mips_elf_output_dynamic_relocation (output_bfd, s, s->reloc_count++,
11360 h->dynindx, R_MIPS_COPY, symval);
11361 }
11362
b49e97c9
TS
11363 /* Handle the IRIX6-specific symbols. */
11364 if (IRIX_COMPAT (output_bfd) == ict_irix6)
11365 mips_elf_irix6_finish_dynamic_symbol (output_bfd, name, sym);
11366
cbf8d970
MR
11367 /* Keep dynamic compressed symbols odd. This allows the dynamic linker
11368 to treat compressed symbols like any other. */
30c09090 11369 if (ELF_ST_IS_MIPS16 (sym->st_other))
738e5348
RS
11370 {
11371 BFD_ASSERT (sym->st_value & 1);
11372 sym->st_other -= STO_MIPS16;
11373 }
cbf8d970
MR
11374 else if (ELF_ST_IS_MICROMIPS (sym->st_other))
11375 {
11376 BFD_ASSERT (sym->st_value & 1);
11377 sym->st_other -= STO_MICROMIPS;
11378 }
b49e97c9 11379
b34976b6 11380 return TRUE;
b49e97c9
TS
11381}
11382
0a44bf69
RS
11383/* Likewise, for VxWorks. */
11384
11385bfd_boolean
11386_bfd_mips_vxworks_finish_dynamic_symbol (bfd *output_bfd,
11387 struct bfd_link_info *info,
11388 struct elf_link_hash_entry *h,
11389 Elf_Internal_Sym *sym)
11390{
11391 bfd *dynobj;
11392 asection *sgot;
11393 struct mips_got_info *g;
11394 struct mips_elf_link_hash_table *htab;
020d7251 11395 struct mips_elf_link_hash_entry *hmips;
0a44bf69
RS
11396
11397 htab = mips_elf_hash_table (info);
4dfe6ac6 11398 BFD_ASSERT (htab != NULL);
0a44bf69 11399 dynobj = elf_hash_table (info)->dynobj;
020d7251 11400 hmips = (struct mips_elf_link_hash_entry *) h;
0a44bf69 11401
1bbce132 11402 if (h->plt.plist != NULL && h->plt.plist->mips_offset != MINUS_ONE)
0a44bf69 11403 {
6d79d2ed 11404 bfd_byte *loc;
1bbce132 11405 bfd_vma plt_address, got_address, got_offset, branch_offset;
0a44bf69
RS
11406 Elf_Internal_Rela rel;
11407 static const bfd_vma *plt_entry;
1bbce132
MR
11408 bfd_vma gotplt_index;
11409 bfd_vma plt_offset;
11410
11411 plt_offset = htab->plt_header_size + h->plt.plist->mips_offset;
11412 gotplt_index = h->plt.plist->gotplt_index;
0a44bf69
RS
11413
11414 BFD_ASSERT (h->dynindx != -1);
ce558b89 11415 BFD_ASSERT (htab->root.splt != NULL);
1bbce132 11416 BFD_ASSERT (gotplt_index != MINUS_ONE);
ce558b89 11417 BFD_ASSERT (plt_offset <= htab->root.splt->size);
0a44bf69
RS
11418
11419 /* Calculate the address of the .plt entry. */
ce558b89
AM
11420 plt_address = (htab->root.splt->output_section->vma
11421 + htab->root.splt->output_offset
1bbce132 11422 + plt_offset);
0a44bf69
RS
11423
11424 /* Calculate the address of the .got.plt entry. */
ce558b89
AM
11425 got_address = (htab->root.sgotplt->output_section->vma
11426 + htab->root.sgotplt->output_offset
1bbce132 11427 + gotplt_index * MIPS_ELF_GOT_SIZE (output_bfd));
0a44bf69
RS
11428
11429 /* Calculate the offset of the .got.plt entry from
11430 _GLOBAL_OFFSET_TABLE_. */
11431 got_offset = mips_elf_gotplt_index (info, h);
11432
11433 /* Calculate the offset for the branch at the start of the PLT
11434 entry. The branch jumps to the beginning of .plt. */
1bbce132 11435 branch_offset = -(plt_offset / 4 + 1) & 0xffff;
0a44bf69
RS
11436
11437 /* Fill in the initial value of the .got.plt entry. */
11438 bfd_put_32 (output_bfd, plt_address,
ce558b89 11439 (htab->root.sgotplt->contents
1bbce132 11440 + gotplt_index * MIPS_ELF_GOT_SIZE (output_bfd)));
0a44bf69
RS
11441
11442 /* Find out where the .plt entry should go. */
ce558b89 11443 loc = htab->root.splt->contents + plt_offset;
0a44bf69 11444
0e1862bb 11445 if (bfd_link_pic (info))
0a44bf69
RS
11446 {
11447 plt_entry = mips_vxworks_shared_plt_entry;
11448 bfd_put_32 (output_bfd, plt_entry[0] | branch_offset, loc);
1bbce132 11449 bfd_put_32 (output_bfd, plt_entry[1] | gotplt_index, loc + 4);
0a44bf69
RS
11450 }
11451 else
11452 {
11453 bfd_vma got_address_high, got_address_low;
11454
11455 plt_entry = mips_vxworks_exec_plt_entry;
11456 got_address_high = ((got_address + 0x8000) >> 16) & 0xffff;
11457 got_address_low = got_address & 0xffff;
11458
11459 bfd_put_32 (output_bfd, plt_entry[0] | branch_offset, loc);
1bbce132 11460 bfd_put_32 (output_bfd, plt_entry[1] | gotplt_index, loc + 4);
0a44bf69
RS
11461 bfd_put_32 (output_bfd, plt_entry[2] | got_address_high, loc + 8);
11462 bfd_put_32 (output_bfd, plt_entry[3] | got_address_low, loc + 12);
11463 bfd_put_32 (output_bfd, plt_entry[4], loc + 16);
11464 bfd_put_32 (output_bfd, plt_entry[5], loc + 20);
11465 bfd_put_32 (output_bfd, plt_entry[6], loc + 24);
11466 bfd_put_32 (output_bfd, plt_entry[7], loc + 28);
11467
11468 loc = (htab->srelplt2->contents
1bbce132 11469 + (gotplt_index * 3 + 2) * sizeof (Elf32_External_Rela));
0a44bf69
RS
11470
11471 /* Emit a relocation for the .got.plt entry. */
11472 rel.r_offset = got_address;
11473 rel.r_info = ELF32_R_INFO (htab->root.hplt->indx, R_MIPS_32);
1bbce132 11474 rel.r_addend = plt_offset;
0a44bf69
RS
11475 bfd_elf32_swap_reloca_out (output_bfd, &rel, loc);
11476
11477 /* Emit a relocation for the lui of %hi(<.got.plt slot>). */
11478 loc += sizeof (Elf32_External_Rela);
11479 rel.r_offset = plt_address + 8;
11480 rel.r_info = ELF32_R_INFO (htab->root.hgot->indx, R_MIPS_HI16);
11481 rel.r_addend = got_offset;
11482 bfd_elf32_swap_reloca_out (output_bfd, &rel, loc);
11483
11484 /* Emit a relocation for the addiu of %lo(<.got.plt slot>). */
11485 loc += sizeof (Elf32_External_Rela);
11486 rel.r_offset += 4;
11487 rel.r_info = ELF32_R_INFO (htab->root.hgot->indx, R_MIPS_LO16);
11488 bfd_elf32_swap_reloca_out (output_bfd, &rel, loc);
11489 }
11490
11491 /* Emit an R_MIPS_JUMP_SLOT relocation against the .got.plt entry. */
ce558b89 11492 loc = (htab->root.srelplt->contents
1bbce132 11493 + gotplt_index * sizeof (Elf32_External_Rela));
0a44bf69
RS
11494 rel.r_offset = got_address;
11495 rel.r_info = ELF32_R_INFO (h->dynindx, R_MIPS_JUMP_SLOT);
11496 rel.r_addend = 0;
11497 bfd_elf32_swap_reloca_out (output_bfd, &rel, loc);
11498
11499 if (!h->def_regular)
11500 sym->st_shndx = SHN_UNDEF;
11501 }
11502
11503 BFD_ASSERT (h->dynindx != -1 || h->forced_local);
11504
ce558b89 11505 sgot = htab->root.sgot;
a8028dd0 11506 g = htab->got_info;
0a44bf69
RS
11507 BFD_ASSERT (g != NULL);
11508
11509 /* See if this symbol has an entry in the GOT. */
020d7251 11510 if (hmips->global_got_area != GGA_NONE)
0a44bf69
RS
11511 {
11512 bfd_vma offset;
11513 Elf_Internal_Rela outrel;
11514 bfd_byte *loc;
11515 asection *s;
11516
11517 /* Install the symbol value in the GOT. */
13fbec83 11518 offset = mips_elf_primary_global_got_index (output_bfd, info, h);
0a44bf69
RS
11519 MIPS_ELF_PUT_WORD (output_bfd, sym->st_value, sgot->contents + offset);
11520
11521 /* Add a dynamic relocation for it. */
11522 s = mips_elf_rel_dyn_section (info, FALSE);
11523 loc = s->contents + (s->reloc_count++ * sizeof (Elf32_External_Rela));
11524 outrel.r_offset = (sgot->output_section->vma
11525 + sgot->output_offset
11526 + offset);
11527 outrel.r_info = ELF32_R_INFO (h->dynindx, R_MIPS_32);
11528 outrel.r_addend = 0;
11529 bfd_elf32_swap_reloca_out (dynobj, &outrel, loc);
11530 }
11531
11532 /* Emit a copy reloc, if needed. */
11533 if (h->needs_copy)
11534 {
11535 Elf_Internal_Rela rel;
5474d94f
AM
11536 asection *srel;
11537 bfd_byte *loc;
0a44bf69
RS
11538
11539 BFD_ASSERT (h->dynindx != -1);
11540
11541 rel.r_offset = (h->root.u.def.section->output_section->vma
11542 + h->root.u.def.section->output_offset
11543 + h->root.u.def.value);
11544 rel.r_info = ELF32_R_INFO (h->dynindx, R_MIPS_COPY);
11545 rel.r_addend = 0;
afbf7e8e 11546 if (h->root.u.def.section == htab->root.sdynrelro)
5474d94f
AM
11547 srel = htab->root.sreldynrelro;
11548 else
11549 srel = htab->root.srelbss;
11550 loc = srel->contents + srel->reloc_count * sizeof (Elf32_External_Rela);
11551 bfd_elf32_swap_reloca_out (output_bfd, &rel, loc);
11552 ++srel->reloc_count;
0a44bf69
RS
11553 }
11554
df58fc94
RS
11555 /* If this is a mips16/microMIPS symbol, force the value to be even. */
11556 if (ELF_ST_IS_COMPRESSED (sym->st_other))
0a44bf69
RS
11557 sym->st_value &= ~1;
11558
11559 return TRUE;
11560}
11561
861fb55a
DJ
11562/* Write out a plt0 entry to the beginning of .plt. */
11563
1bbce132 11564static bfd_boolean
861fb55a
DJ
11565mips_finish_exec_plt (bfd *output_bfd, struct bfd_link_info *info)
11566{
11567 bfd_byte *loc;
11568 bfd_vma gotplt_value, gotplt_value_high, gotplt_value_low;
11569 static const bfd_vma *plt_entry;
11570 struct mips_elf_link_hash_table *htab;
11571
11572 htab = mips_elf_hash_table (info);
4dfe6ac6
NC
11573 BFD_ASSERT (htab != NULL);
11574
861fb55a 11575 if (ABI_64_P (output_bfd))
3734320d
MF
11576 plt_entry = (htab->compact_branches
11577 ? mipsr6_n64_exec_plt0_entry_compact
11578 : mips_n64_exec_plt0_entry);
861fb55a 11579 else if (ABI_N32_P (output_bfd))
3734320d
MF
11580 plt_entry = (htab->compact_branches
11581 ? mipsr6_n32_exec_plt0_entry_compact
11582 : mips_n32_exec_plt0_entry);
833794fc 11583 else if (!htab->plt_header_is_comp)
3734320d
MF
11584 plt_entry = (htab->compact_branches
11585 ? mipsr6_o32_exec_plt0_entry_compact
11586 : mips_o32_exec_plt0_entry);
833794fc
MR
11587 else if (htab->insn32)
11588 plt_entry = micromips_insn32_o32_exec_plt0_entry;
11589 else
11590 plt_entry = micromips_o32_exec_plt0_entry;
861fb55a
DJ
11591
11592 /* Calculate the value of .got.plt. */
ce558b89
AM
11593 gotplt_value = (htab->root.sgotplt->output_section->vma
11594 + htab->root.sgotplt->output_offset);
861fb55a
DJ
11595 gotplt_value_high = ((gotplt_value + 0x8000) >> 16) & 0xffff;
11596 gotplt_value_low = gotplt_value & 0xffff;
11597
11598 /* The PLT sequence is not safe for N64 if .got.plt's address can
11599 not be loaded in two instructions. */
789ff5b6
MR
11600 if (ABI_64_P (output_bfd)
11601 && ((gotplt_value + 0x80008000) & ~(bfd_vma) 0xffffffff) != 0)
11602 {
11603 _bfd_error_handler
11604 /* xgettext:c-format */
11605 (_("%pB: `%pA' start VMA of %#" PRIx64 " outside the 32-bit range "
11606 "supported; consider using `-Ttext-segment=...'"),
11607 output_bfd,
11608 htab->root.sgotplt->output_section,
11609 (int64_t) gotplt_value);
11610 bfd_set_error (bfd_error_no_error);
11611 return FALSE;
11612 }
861fb55a
DJ
11613
11614 /* Install the PLT header. */
ce558b89 11615 loc = htab->root.splt->contents;
1bbce132
MR
11616 if (plt_entry == micromips_o32_exec_plt0_entry)
11617 {
11618 bfd_vma gotpc_offset;
11619 bfd_vma loc_address;
11620 size_t i;
11621
11622 BFD_ASSERT (gotplt_value % 4 == 0);
11623
ce558b89
AM
11624 loc_address = (htab->root.splt->output_section->vma
11625 + htab->root.splt->output_offset);
1bbce132
MR
11626 gotpc_offset = gotplt_value - ((loc_address | 3) ^ 3);
11627
11628 /* ADDIUPC has a span of +/-16MB, check we're in range. */
11629 if (gotpc_offset + 0x1000000 >= 0x2000000)
11630 {
4eca0228 11631 _bfd_error_handler
695344c0 11632 /* xgettext:c-format */
2dcf00ce
AM
11633 (_("%pB: `%pA' offset of %" PRId64 " from `%pA' "
11634 "beyond the range of ADDIUPC"),
1bbce132 11635 output_bfd,
ce558b89 11636 htab->root.sgotplt->output_section,
2dcf00ce 11637 (int64_t) gotpc_offset,
c08bb8dd 11638 htab->root.splt->output_section);
1bbce132
MR
11639 bfd_set_error (bfd_error_no_error);
11640 return FALSE;
11641 }
11642 bfd_put_16 (output_bfd,
11643 plt_entry[0] | ((gotpc_offset >> 18) & 0x7f), loc);
11644 bfd_put_16 (output_bfd, (gotpc_offset >> 2) & 0xffff, loc + 2);
11645 for (i = 2; i < ARRAY_SIZE (micromips_o32_exec_plt0_entry); i++)
11646 bfd_put_16 (output_bfd, plt_entry[i], loc + (i * 2));
11647 }
833794fc
MR
11648 else if (plt_entry == micromips_insn32_o32_exec_plt0_entry)
11649 {
11650 size_t i;
11651
11652 bfd_put_16 (output_bfd, plt_entry[0], loc);
11653 bfd_put_16 (output_bfd, gotplt_value_high, loc + 2);
11654 bfd_put_16 (output_bfd, plt_entry[2], loc + 4);
11655 bfd_put_16 (output_bfd, gotplt_value_low, loc + 6);
11656 bfd_put_16 (output_bfd, plt_entry[4], loc + 8);
11657 bfd_put_16 (output_bfd, gotplt_value_low, loc + 10);
11658 for (i = 6; i < ARRAY_SIZE (micromips_insn32_o32_exec_plt0_entry); i++)
11659 bfd_put_16 (output_bfd, plt_entry[i], loc + (i * 2));
11660 }
1bbce132
MR
11661 else
11662 {
11663 bfd_put_32 (output_bfd, plt_entry[0] | gotplt_value_high, loc);
11664 bfd_put_32 (output_bfd, plt_entry[1] | gotplt_value_low, loc + 4);
11665 bfd_put_32 (output_bfd, plt_entry[2] | gotplt_value_low, loc + 8);
11666 bfd_put_32 (output_bfd, plt_entry[3], loc + 12);
11667 bfd_put_32 (output_bfd, plt_entry[4], loc + 16);
11668 bfd_put_32 (output_bfd, plt_entry[5], loc + 20);
11669 bfd_put_32 (output_bfd, plt_entry[6], loc + 24);
11670 bfd_put_32 (output_bfd, plt_entry[7], loc + 28);
11671 }
11672
11673 return TRUE;
861fb55a
DJ
11674}
11675
0a44bf69
RS
11676/* Install the PLT header for a VxWorks executable and finalize the
11677 contents of .rela.plt.unloaded. */
11678
11679static void
11680mips_vxworks_finish_exec_plt (bfd *output_bfd, struct bfd_link_info *info)
11681{
11682 Elf_Internal_Rela rela;
11683 bfd_byte *loc;
11684 bfd_vma got_value, got_value_high, got_value_low, plt_address;
11685 static const bfd_vma *plt_entry;
11686 struct mips_elf_link_hash_table *htab;
11687
11688 htab = mips_elf_hash_table (info);
4dfe6ac6
NC
11689 BFD_ASSERT (htab != NULL);
11690
0a44bf69
RS
11691 plt_entry = mips_vxworks_exec_plt0_entry;
11692
11693 /* Calculate the value of _GLOBAL_OFFSET_TABLE_. */
11694 got_value = (htab->root.hgot->root.u.def.section->output_section->vma
11695 + htab->root.hgot->root.u.def.section->output_offset
11696 + htab->root.hgot->root.u.def.value);
11697
11698 got_value_high = ((got_value + 0x8000) >> 16) & 0xffff;
11699 got_value_low = got_value & 0xffff;
11700
11701 /* Calculate the address of the PLT header. */
ce558b89
AM
11702 plt_address = (htab->root.splt->output_section->vma
11703 + htab->root.splt->output_offset);
0a44bf69
RS
11704
11705 /* Install the PLT header. */
ce558b89 11706 loc = htab->root.splt->contents;
0a44bf69
RS
11707 bfd_put_32 (output_bfd, plt_entry[0] | got_value_high, loc);
11708 bfd_put_32 (output_bfd, plt_entry[1] | got_value_low, loc + 4);
11709 bfd_put_32 (output_bfd, plt_entry[2], loc + 8);
11710 bfd_put_32 (output_bfd, plt_entry[3], loc + 12);
11711 bfd_put_32 (output_bfd, plt_entry[4], loc + 16);
11712 bfd_put_32 (output_bfd, plt_entry[5], loc + 20);
11713
11714 /* Output the relocation for the lui of %hi(_GLOBAL_OFFSET_TABLE_). */
11715 loc = htab->srelplt2->contents;
11716 rela.r_offset = plt_address;
11717 rela.r_info = ELF32_R_INFO (htab->root.hgot->indx, R_MIPS_HI16);
11718 rela.r_addend = 0;
11719 bfd_elf32_swap_reloca_out (output_bfd, &rela, loc);
11720 loc += sizeof (Elf32_External_Rela);
11721
11722 /* Output the relocation for the following addiu of
11723 %lo(_GLOBAL_OFFSET_TABLE_). */
11724 rela.r_offset += 4;
11725 rela.r_info = ELF32_R_INFO (htab->root.hgot->indx, R_MIPS_LO16);
11726 bfd_elf32_swap_reloca_out (output_bfd, &rela, loc);
11727 loc += sizeof (Elf32_External_Rela);
11728
11729 /* Fix up the remaining relocations. They may have the wrong
11730 symbol index for _G_O_T_ or _P_L_T_ depending on the order
11731 in which symbols were output. */
11732 while (loc < htab->srelplt2->contents + htab->srelplt2->size)
11733 {
11734 Elf_Internal_Rela rel;
11735
11736 bfd_elf32_swap_reloca_in (output_bfd, loc, &rel);
11737 rel.r_info = ELF32_R_INFO (htab->root.hplt->indx, R_MIPS_32);
11738 bfd_elf32_swap_reloca_out (output_bfd, &rel, loc);
11739 loc += sizeof (Elf32_External_Rela);
11740
11741 bfd_elf32_swap_reloca_in (output_bfd, loc, &rel);
11742 rel.r_info = ELF32_R_INFO (htab->root.hgot->indx, R_MIPS_HI16);
11743 bfd_elf32_swap_reloca_out (output_bfd, &rel, loc);
11744 loc += sizeof (Elf32_External_Rela);
11745
11746 bfd_elf32_swap_reloca_in (output_bfd, loc, &rel);
11747 rel.r_info = ELF32_R_INFO (htab->root.hgot->indx, R_MIPS_LO16);
11748 bfd_elf32_swap_reloca_out (output_bfd, &rel, loc);
11749 loc += sizeof (Elf32_External_Rela);
11750 }
11751}
11752
11753/* Install the PLT header for a VxWorks shared library. */
11754
11755static void
11756mips_vxworks_finish_shared_plt (bfd *output_bfd, struct bfd_link_info *info)
11757{
11758 unsigned int i;
11759 struct mips_elf_link_hash_table *htab;
11760
11761 htab = mips_elf_hash_table (info);
4dfe6ac6 11762 BFD_ASSERT (htab != NULL);
0a44bf69
RS
11763
11764 /* We just need to copy the entry byte-by-byte. */
11765 for (i = 0; i < ARRAY_SIZE (mips_vxworks_shared_plt0_entry); i++)
11766 bfd_put_32 (output_bfd, mips_vxworks_shared_plt0_entry[i],
ce558b89 11767 htab->root.splt->contents + i * 4);
0a44bf69
RS
11768}
11769
b49e97c9
TS
11770/* Finish up the dynamic sections. */
11771
b34976b6 11772bfd_boolean
9719ad41
RS
11773_bfd_mips_elf_finish_dynamic_sections (bfd *output_bfd,
11774 struct bfd_link_info *info)
b49e97c9
TS
11775{
11776 bfd *dynobj;
11777 asection *sdyn;
11778 asection *sgot;
f4416af6 11779 struct mips_got_info *gg, *g;
0a44bf69 11780 struct mips_elf_link_hash_table *htab;
b49e97c9 11781
0a44bf69 11782 htab = mips_elf_hash_table (info);
4dfe6ac6
NC
11783 BFD_ASSERT (htab != NULL);
11784
b49e97c9
TS
11785 dynobj = elf_hash_table (info)->dynobj;
11786
3d4d4302 11787 sdyn = bfd_get_linker_section (dynobj, ".dynamic");
b49e97c9 11788
ce558b89 11789 sgot = htab->root.sgot;
23cc69b6 11790 gg = htab->got_info;
b49e97c9
TS
11791
11792 if (elf_hash_table (info)->dynamic_sections_created)
11793 {
11794 bfd_byte *b;
943284cc 11795 int dyn_to_skip = 0, dyn_skipped = 0;
b49e97c9
TS
11796
11797 BFD_ASSERT (sdyn != NULL);
23cc69b6
RS
11798 BFD_ASSERT (gg != NULL);
11799
d7206569 11800 g = mips_elf_bfd_got (output_bfd, FALSE);
b49e97c9
TS
11801 BFD_ASSERT (g != NULL);
11802
11803 for (b = sdyn->contents;
eea6121a 11804 b < sdyn->contents + sdyn->size;
b49e97c9
TS
11805 b += MIPS_ELF_DYN_SIZE (dynobj))
11806 {
11807 Elf_Internal_Dyn dyn;
11808 const char *name;
11809 size_t elemsize;
11810 asection *s;
b34976b6 11811 bfd_boolean swap_out_p;
b49e97c9
TS
11812
11813 /* Read in the current dynamic entry. */
11814 (*get_elf_backend_data (dynobj)->s->swap_dyn_in) (dynobj, b, &dyn);
11815
11816 /* Assume that we're going to modify it and write it out. */
b34976b6 11817 swap_out_p = TRUE;
b49e97c9
TS
11818
11819 switch (dyn.d_tag)
11820 {
11821 case DT_RELENT:
b49e97c9
TS
11822 dyn.d_un.d_val = MIPS_ELF_REL_SIZE (dynobj);
11823 break;
11824
0a44bf69
RS
11825 case DT_RELAENT:
11826 BFD_ASSERT (htab->is_vxworks);
11827 dyn.d_un.d_val = MIPS_ELF_RELA_SIZE (dynobj);
11828 break;
11829
b49e97c9
TS
11830 case DT_STRSZ:
11831 /* Rewrite DT_STRSZ. */
11832 dyn.d_un.d_val =
11833 _bfd_elf_strtab_size (elf_hash_table (info)->dynstr);
11834 break;
11835
11836 case DT_PLTGOT:
ce558b89 11837 s = htab->root.sgot;
861fb55a
DJ
11838 dyn.d_un.d_ptr = s->output_section->vma + s->output_offset;
11839 break;
11840
11841 case DT_MIPS_PLTGOT:
ce558b89 11842 s = htab->root.sgotplt;
861fb55a 11843 dyn.d_un.d_ptr = s->output_section->vma + s->output_offset;
b49e97c9
TS
11844 break;
11845
11846 case DT_MIPS_RLD_VERSION:
11847 dyn.d_un.d_val = 1; /* XXX */
11848 break;
11849
11850 case DT_MIPS_FLAGS:
11851 dyn.d_un.d_val = RHF_NOTPOT; /* XXX */
11852 break;
11853
b49e97c9 11854 case DT_MIPS_TIME_STAMP:
6edfbbad
DJ
11855 {
11856 time_t t;
11857 time (&t);
11858 dyn.d_un.d_val = t;
11859 }
b49e97c9
TS
11860 break;
11861
11862 case DT_MIPS_ICHECKSUM:
11863 /* XXX FIXME: */
b34976b6 11864 swap_out_p = FALSE;
b49e97c9
TS
11865 break;
11866
11867 case DT_MIPS_IVERSION:
11868 /* XXX FIXME: */
b34976b6 11869 swap_out_p = FALSE;
b49e97c9
TS
11870 break;
11871
11872 case DT_MIPS_BASE_ADDRESS:
11873 s = output_bfd->sections;
11874 BFD_ASSERT (s != NULL);
11875 dyn.d_un.d_ptr = s->vma & ~(bfd_vma) 0xffff;
11876 break;
11877
11878 case DT_MIPS_LOCAL_GOTNO:
11879 dyn.d_un.d_val = g->local_gotno;
11880 break;
11881
11882 case DT_MIPS_UNREFEXTNO:
11883 /* The index into the dynamic symbol table which is the
11884 entry of the first external symbol that is not
11885 referenced within the same object. */
11886 dyn.d_un.d_val = bfd_count_sections (output_bfd) + 1;
11887 break;
11888
11889 case DT_MIPS_GOTSYM:
d222d210 11890 if (htab->global_gotsym)
b49e97c9 11891 {
d222d210 11892 dyn.d_un.d_val = htab->global_gotsym->dynindx;
b49e97c9
TS
11893 break;
11894 }
11895 /* In case if we don't have global got symbols we default
11896 to setting DT_MIPS_GOTSYM to the same value as
1a0670f3
AM
11897 DT_MIPS_SYMTABNO. */
11898 /* Fall through. */
b49e97c9
TS
11899
11900 case DT_MIPS_SYMTABNO:
11901 name = ".dynsym";
11902 elemsize = MIPS_ELF_SYM_SIZE (output_bfd);
4ade44b7 11903 s = bfd_get_linker_section (dynobj, name);
b49e97c9 11904
131e2f8e
MF
11905 if (s != NULL)
11906 dyn.d_un.d_val = s->size / elemsize;
11907 else
11908 dyn.d_un.d_val = 0;
b49e97c9
TS
11909 break;
11910
11911 case DT_MIPS_HIPAGENO:
861fb55a 11912 dyn.d_un.d_val = g->local_gotno - htab->reserved_gotno;
b49e97c9
TS
11913 break;
11914
11915 case DT_MIPS_RLD_MAP:
b4082c70
DD
11916 {
11917 struct elf_link_hash_entry *h;
11918 h = mips_elf_hash_table (info)->rld_symbol;
11919 if (!h)
11920 {
11921 dyn_to_skip = MIPS_ELF_DYN_SIZE (dynobj);
11922 swap_out_p = FALSE;
11923 break;
11924 }
11925 s = h->root.u.def.section;
a5499fa4
MF
11926
11927 /* The MIPS_RLD_MAP tag stores the absolute address of the
11928 debug pointer. */
b4082c70
DD
11929 dyn.d_un.d_ptr = (s->output_section->vma + s->output_offset
11930 + h->root.u.def.value);
11931 }
b49e97c9
TS
11932 break;
11933
a5499fa4
MF
11934 case DT_MIPS_RLD_MAP_REL:
11935 {
11936 struct elf_link_hash_entry *h;
11937 bfd_vma dt_addr, rld_addr;
11938 h = mips_elf_hash_table (info)->rld_symbol;
11939 if (!h)
11940 {
11941 dyn_to_skip = MIPS_ELF_DYN_SIZE (dynobj);
11942 swap_out_p = FALSE;
11943 break;
11944 }
11945 s = h->root.u.def.section;
11946
11947 /* The MIPS_RLD_MAP_REL tag stores the offset to the debug
11948 pointer, relative to the address of the tag. */
11949 dt_addr = (sdyn->output_section->vma + sdyn->output_offset
d5cff5df 11950 + (b - sdyn->contents));
a5499fa4
MF
11951 rld_addr = (s->output_section->vma + s->output_offset
11952 + h->root.u.def.value);
11953 dyn.d_un.d_ptr = rld_addr - dt_addr;
11954 }
11955 break;
11956
b49e97c9
TS
11957 case DT_MIPS_OPTIONS:
11958 s = (bfd_get_section_by_name
11959 (output_bfd, MIPS_ELF_OPTIONS_SECTION_NAME (output_bfd)));
11960 dyn.d_un.d_ptr = s->vma;
11961 break;
11962
0a44bf69 11963 case DT_PLTREL:
861fb55a
DJ
11964 BFD_ASSERT (htab->use_plts_and_copy_relocs);
11965 if (htab->is_vxworks)
11966 dyn.d_un.d_val = DT_RELA;
11967 else
11968 dyn.d_un.d_val = DT_REL;
0a44bf69
RS
11969 break;
11970
11971 case DT_PLTRELSZ:
861fb55a 11972 BFD_ASSERT (htab->use_plts_and_copy_relocs);
ce558b89 11973 dyn.d_un.d_val = htab->root.srelplt->size;
0a44bf69
RS
11974 break;
11975
11976 case DT_JMPREL:
861fb55a 11977 BFD_ASSERT (htab->use_plts_and_copy_relocs);
ce558b89
AM
11978 dyn.d_un.d_ptr = (htab->root.srelplt->output_section->vma
11979 + htab->root.srelplt->output_offset);
0a44bf69
RS
11980 break;
11981
943284cc
DJ
11982 case DT_TEXTREL:
11983 /* If we didn't need any text relocations after all, delete
11984 the dynamic tag. */
11985 if (!(info->flags & DF_TEXTREL))
11986 {
11987 dyn_to_skip = MIPS_ELF_DYN_SIZE (dynobj);
11988 swap_out_p = FALSE;
11989 }
11990 break;
11991
11992 case DT_FLAGS:
11993 /* If we didn't need any text relocations after all, clear
11994 DF_TEXTREL from DT_FLAGS. */
11995 if (!(info->flags & DF_TEXTREL))
11996 dyn.d_un.d_val &= ~DF_TEXTREL;
11997 else
11998 swap_out_p = FALSE;
11999 break;
12000
f16a9783
MS
12001 case DT_MIPS_XHASH:
12002 name = ".MIPS.xhash";
12003 s = bfd_get_linker_section (dynobj, name);
12004 dyn.d_un.d_ptr = s->output_section->vma + s->output_offset;
12005 break;
12006
b49e97c9 12007 default:
b34976b6 12008 swap_out_p = FALSE;
7a2b07ff
NS
12009 if (htab->is_vxworks
12010 && elf_vxworks_finish_dynamic_entry (output_bfd, &dyn))
12011 swap_out_p = TRUE;
b49e97c9
TS
12012 break;
12013 }
12014
943284cc 12015 if (swap_out_p || dyn_skipped)
b49e97c9 12016 (*get_elf_backend_data (dynobj)->s->swap_dyn_out)
943284cc
DJ
12017 (dynobj, &dyn, b - dyn_skipped);
12018
12019 if (dyn_to_skip)
12020 {
12021 dyn_skipped += dyn_to_skip;
12022 dyn_to_skip = 0;
12023 }
b49e97c9 12024 }
943284cc
DJ
12025
12026 /* Wipe out any trailing entries if we shifted down a dynamic tag. */
12027 if (dyn_skipped > 0)
12028 memset (b - dyn_skipped, 0, dyn_skipped);
b49e97c9
TS
12029 }
12030
b55fd4d4
DJ
12031 if (sgot != NULL && sgot->size > 0
12032 && !bfd_is_abs_section (sgot->output_section))
b49e97c9 12033 {
0a44bf69
RS
12034 if (htab->is_vxworks)
12035 {
12036 /* The first entry of the global offset table points to the
12037 ".dynamic" section. The second is initialized by the
12038 loader and contains the shared library identifier.
12039 The third is also initialized by the loader and points
12040 to the lazy resolution stub. */
12041 MIPS_ELF_PUT_WORD (output_bfd,
12042 sdyn->output_offset + sdyn->output_section->vma,
12043 sgot->contents);
12044 MIPS_ELF_PUT_WORD (output_bfd, 0,
12045 sgot->contents + MIPS_ELF_GOT_SIZE (output_bfd));
12046 MIPS_ELF_PUT_WORD (output_bfd, 0,
12047 sgot->contents
12048 + 2 * MIPS_ELF_GOT_SIZE (output_bfd));
12049 }
12050 else
12051 {
12052 /* The first entry of the global offset table will be filled at
12053 runtime. The second entry will be used by some runtime loaders.
12054 This isn't the case of IRIX rld. */
12055 MIPS_ELF_PUT_WORD (output_bfd, (bfd_vma) 0, sgot->contents);
51e38d68 12056 MIPS_ELF_PUT_WORD (output_bfd, MIPS_ELF_GNU_GOT1_MASK (output_bfd),
0a44bf69
RS
12057 sgot->contents + MIPS_ELF_GOT_SIZE (output_bfd));
12058 }
b49e97c9 12059
54938e2a
TS
12060 elf_section_data (sgot->output_section)->this_hdr.sh_entsize
12061 = MIPS_ELF_GOT_SIZE (output_bfd);
12062 }
b49e97c9 12063
f4416af6
AO
12064 /* Generate dynamic relocations for the non-primary gots. */
12065 if (gg != NULL && gg->next)
12066 {
12067 Elf_Internal_Rela rel[3];
12068 bfd_vma addend = 0;
12069
12070 memset (rel, 0, sizeof (rel));
12071 rel[0].r_info = ELF_R_INFO (output_bfd, 0, R_MIPS_REL32);
12072
12073 for (g = gg->next; g->next != gg; g = g->next)
12074 {
91d6fa6a 12075 bfd_vma got_index = g->next->local_gotno + g->next->global_gotno
0f20cc35 12076 + g->next->tls_gotno;
f4416af6 12077
9719ad41 12078 MIPS_ELF_PUT_WORD (output_bfd, 0, sgot->contents
91d6fa6a 12079 + got_index++ * MIPS_ELF_GOT_SIZE (output_bfd));
51e38d68
RS
12080 MIPS_ELF_PUT_WORD (output_bfd, MIPS_ELF_GNU_GOT1_MASK (output_bfd),
12081 sgot->contents
91d6fa6a 12082 + got_index++ * MIPS_ELF_GOT_SIZE (output_bfd));
f4416af6 12083
0e1862bb 12084 if (! bfd_link_pic (info))
f4416af6
AO
12085 continue;
12086
cb22ccf4 12087 for (; got_index < g->local_gotno; got_index++)
f4416af6 12088 {
cb22ccf4
KCY
12089 if (got_index >= g->assigned_low_gotno
12090 && got_index <= g->assigned_high_gotno)
12091 continue;
12092
f4416af6 12093 rel[0].r_offset = rel[1].r_offset = rel[2].r_offset
cb22ccf4 12094 = got_index * MIPS_ELF_GOT_SIZE (output_bfd);
f4416af6
AO
12095 if (!(mips_elf_create_dynamic_relocation
12096 (output_bfd, info, rel, NULL,
12097 bfd_abs_section_ptr,
12098 0, &addend, sgot)))
12099 return FALSE;
12100 BFD_ASSERT (addend == 0);
12101 }
12102 }
12103 }
12104
3133ddbf
DJ
12105 /* The generation of dynamic relocations for the non-primary gots
12106 adds more dynamic relocations. We cannot count them until
12107 here. */
12108
12109 if (elf_hash_table (info)->dynamic_sections_created)
12110 {
12111 bfd_byte *b;
12112 bfd_boolean swap_out_p;
12113
12114 BFD_ASSERT (sdyn != NULL);
12115
12116 for (b = sdyn->contents;
12117 b < sdyn->contents + sdyn->size;
12118 b += MIPS_ELF_DYN_SIZE (dynobj))
12119 {
12120 Elf_Internal_Dyn dyn;
12121 asection *s;
12122
12123 /* Read in the current dynamic entry. */
12124 (*get_elf_backend_data (dynobj)->s->swap_dyn_in) (dynobj, b, &dyn);
12125
12126 /* Assume that we're going to modify it and write it out. */
12127 swap_out_p = TRUE;
12128
12129 switch (dyn.d_tag)
12130 {
12131 case DT_RELSZ:
12132 /* Reduce DT_RELSZ to account for any relocations we
12133 decided not to make. This is for the n64 irix rld,
12134 which doesn't seem to apply any relocations if there
12135 are trailing null entries. */
0a44bf69 12136 s = mips_elf_rel_dyn_section (info, FALSE);
3133ddbf
DJ
12137 dyn.d_un.d_val = (s->reloc_count
12138 * (ABI_64_P (output_bfd)
12139 ? sizeof (Elf64_Mips_External_Rel)
12140 : sizeof (Elf32_External_Rel)));
bcfdf036
RS
12141 /* Adjust the section size too. Tools like the prelinker
12142 can reasonably expect the values to the same. */
db841b6f 12143 BFD_ASSERT (!bfd_is_abs_section (s->output_section));
bcfdf036
RS
12144 elf_section_data (s->output_section)->this_hdr.sh_size
12145 = dyn.d_un.d_val;
3133ddbf
DJ
12146 break;
12147
12148 default:
12149 swap_out_p = FALSE;
12150 break;
12151 }
12152
12153 if (swap_out_p)
12154 (*get_elf_backend_data (dynobj)->s->swap_dyn_out)
12155 (dynobj, &dyn, b);
12156 }
12157 }
12158
b49e97c9 12159 {
b49e97c9
TS
12160 asection *s;
12161 Elf32_compact_rel cpt;
12162
b49e97c9
TS
12163 if (SGI_COMPAT (output_bfd))
12164 {
12165 /* Write .compact_rel section out. */
3d4d4302 12166 s = bfd_get_linker_section (dynobj, ".compact_rel");
b49e97c9
TS
12167 if (s != NULL)
12168 {
12169 cpt.id1 = 1;
12170 cpt.num = s->reloc_count;
12171 cpt.id2 = 2;
12172 cpt.offset = (s->output_section->filepos
12173 + sizeof (Elf32_External_compact_rel));
12174 cpt.reserved0 = 0;
12175 cpt.reserved1 = 0;
12176 bfd_elf32_swap_compact_rel_out (output_bfd, &cpt,
12177 ((Elf32_External_compact_rel *)
12178 s->contents));
12179
12180 /* Clean up a dummy stub function entry in .text. */
4e41d0d7 12181 if (htab->sstubs != NULL)
b49e97c9
TS
12182 {
12183 file_ptr dummy_offset;
12184
4e41d0d7
RS
12185 BFD_ASSERT (htab->sstubs->size >= htab->function_stub_size);
12186 dummy_offset = htab->sstubs->size - htab->function_stub_size;
12187 memset (htab->sstubs->contents + dummy_offset, 0,
5108fc1b 12188 htab->function_stub_size);
b49e97c9
TS
12189 }
12190 }
12191 }
12192
0a44bf69
RS
12193 /* The psABI says that the dynamic relocations must be sorted in
12194 increasing order of r_symndx. The VxWorks EABI doesn't require
12195 this, and because the code below handles REL rather than RELA
12196 relocations, using it for VxWorks would be outright harmful. */
12197 if (!htab->is_vxworks)
b49e97c9 12198 {
0a44bf69
RS
12199 s = mips_elf_rel_dyn_section (info, FALSE);
12200 if (s != NULL
12201 && s->size > (bfd_vma)2 * MIPS_ELF_REL_SIZE (output_bfd))
12202 {
12203 reldyn_sorting_bfd = output_bfd;
b49e97c9 12204
0a44bf69
RS
12205 if (ABI_64_P (output_bfd))
12206 qsort ((Elf64_External_Rel *) s->contents + 1,
12207 s->reloc_count - 1, sizeof (Elf64_Mips_External_Rel),
12208 sort_dynamic_relocs_64);
12209 else
12210 qsort ((Elf32_External_Rel *) s->contents + 1,
12211 s->reloc_count - 1, sizeof (Elf32_External_Rel),
12212 sort_dynamic_relocs);
12213 }
b49e97c9 12214 }
b49e97c9
TS
12215 }
12216
ce558b89 12217 if (htab->root.splt && htab->root.splt->size > 0)
0a44bf69 12218 {
861fb55a
DJ
12219 if (htab->is_vxworks)
12220 {
0e1862bb 12221 if (bfd_link_pic (info))
861fb55a
DJ
12222 mips_vxworks_finish_shared_plt (output_bfd, info);
12223 else
12224 mips_vxworks_finish_exec_plt (output_bfd, info);
12225 }
0a44bf69 12226 else
861fb55a 12227 {
0e1862bb 12228 BFD_ASSERT (!bfd_link_pic (info));
1bbce132
MR
12229 if (!mips_finish_exec_plt (output_bfd, info))
12230 return FALSE;
861fb55a 12231 }
0a44bf69 12232 }
b34976b6 12233 return TRUE;
b49e97c9
TS
12234}
12235
b49e97c9 12236
64543e1a
RS
12237/* Set ABFD's EF_MIPS_ARCH and EF_MIPS_MACH flags. */
12238
12239static void
9719ad41 12240mips_set_isa_flags (bfd *abfd)
b49e97c9 12241{
64543e1a 12242 flagword val;
b49e97c9
TS
12243
12244 switch (bfd_get_mach (abfd))
12245 {
12246 default:
c7c860d2
YS
12247 if (ABI_N32_P (abfd) || ABI_64_P (abfd))
12248 val = E_MIPS_ARCH_3;
12249 else
12250 val = E_MIPS_ARCH_1;
12251 break;
12252
b49e97c9
TS
12253 case bfd_mach_mips3000:
12254 val = E_MIPS_ARCH_1;
12255 break;
12256
12257 case bfd_mach_mips3900:
12258 val = E_MIPS_ARCH_1 | E_MIPS_MACH_3900;
12259 break;
12260
12261 case bfd_mach_mips6000:
12262 val = E_MIPS_ARCH_2;
12263 break;
12264
b417536f
MR
12265 case bfd_mach_mips4010:
12266 val = E_MIPS_ARCH_2 | E_MIPS_MACH_4010;
12267 break;
12268
b49e97c9
TS
12269 case bfd_mach_mips4000:
12270 case bfd_mach_mips4300:
12271 case bfd_mach_mips4400:
12272 case bfd_mach_mips4600:
12273 val = E_MIPS_ARCH_3;
12274 break;
12275
b49e97c9
TS
12276 case bfd_mach_mips4100:
12277 val = E_MIPS_ARCH_3 | E_MIPS_MACH_4100;
12278 break;
12279
12280 case bfd_mach_mips4111:
12281 val = E_MIPS_ARCH_3 | E_MIPS_MACH_4111;
12282 break;
12283
00707a0e
RS
12284 case bfd_mach_mips4120:
12285 val = E_MIPS_ARCH_3 | E_MIPS_MACH_4120;
12286 break;
12287
b49e97c9
TS
12288 case bfd_mach_mips4650:
12289 val = E_MIPS_ARCH_3 | E_MIPS_MACH_4650;
12290 break;
12291
00707a0e
RS
12292 case bfd_mach_mips5400:
12293 val = E_MIPS_ARCH_4 | E_MIPS_MACH_5400;
12294 break;
12295
12296 case bfd_mach_mips5500:
12297 val = E_MIPS_ARCH_4 | E_MIPS_MACH_5500;
12298 break;
12299
e407c74b
NC
12300 case bfd_mach_mips5900:
12301 val = E_MIPS_ARCH_3 | E_MIPS_MACH_5900;
12302 break;
12303
0d2e43ed
ILT
12304 case bfd_mach_mips9000:
12305 val = E_MIPS_ARCH_4 | E_MIPS_MACH_9000;
12306 break;
12307
b49e97c9 12308 case bfd_mach_mips5000:
5a7ea749 12309 case bfd_mach_mips7000:
b49e97c9
TS
12310 case bfd_mach_mips8000:
12311 case bfd_mach_mips10000:
12312 case bfd_mach_mips12000:
3aa3176b
TS
12313 case bfd_mach_mips14000:
12314 case bfd_mach_mips16000:
b49e97c9
TS
12315 val = E_MIPS_ARCH_4;
12316 break;
12317
12318 case bfd_mach_mips5:
12319 val = E_MIPS_ARCH_5;
12320 break;
12321
350cc38d
MS
12322 case bfd_mach_mips_loongson_2e:
12323 val = E_MIPS_ARCH_3 | E_MIPS_MACH_LS2E;
12324 break;
12325
12326 case bfd_mach_mips_loongson_2f:
12327 val = E_MIPS_ARCH_3 | E_MIPS_MACH_LS2F;
12328 break;
12329
b49e97c9
TS
12330 case bfd_mach_mips_sb1:
12331 val = E_MIPS_ARCH_64 | E_MIPS_MACH_SB1;
12332 break;
12333
ac8cb70f
CX
12334 case bfd_mach_mips_gs464:
12335 val = E_MIPS_ARCH_64R2 | E_MIPS_MACH_GS464;
d051516a
NC
12336 break;
12337
bd782c07
CX
12338 case bfd_mach_mips_gs464e:
12339 val = E_MIPS_ARCH_64R2 | E_MIPS_MACH_GS464E;
12340 break;
12341
9108bc33
CX
12342 case bfd_mach_mips_gs264e:
12343 val = E_MIPS_ARCH_64R2 | E_MIPS_MACH_GS264E;
12344 break;
12345
6f179bd0 12346 case bfd_mach_mips_octeon:
dd6a37e7 12347 case bfd_mach_mips_octeonp:
6f179bd0
AN
12348 val = E_MIPS_ARCH_64R2 | E_MIPS_MACH_OCTEON;
12349 break;
12350
2c629856
N
12351 case bfd_mach_mips_octeon3:
12352 val = E_MIPS_ARCH_64R2 | E_MIPS_MACH_OCTEON3;
12353 break;
12354
52b6b6b9
JM
12355 case bfd_mach_mips_xlr:
12356 val = E_MIPS_ARCH_64 | E_MIPS_MACH_XLR;
12357 break;
12358
432233b3
AP
12359 case bfd_mach_mips_octeon2:
12360 val = E_MIPS_ARCH_64R2 | E_MIPS_MACH_OCTEON2;
12361 break;
12362
b49e97c9
TS
12363 case bfd_mach_mipsisa32:
12364 val = E_MIPS_ARCH_32;
12365 break;
12366
12367 case bfd_mach_mipsisa64:
12368 val = E_MIPS_ARCH_64;
af7ee8bf
CD
12369 break;
12370
12371 case bfd_mach_mipsisa32r2:
ae52f483
AB
12372 case bfd_mach_mipsisa32r3:
12373 case bfd_mach_mipsisa32r5:
af7ee8bf
CD
12374 val = E_MIPS_ARCH_32R2;
12375 break;
5f74bc13 12376
38bf472a
MR
12377 case bfd_mach_mips_interaptiv_mr2:
12378 val = E_MIPS_ARCH_32R2 | E_MIPS_MACH_IAMR2;
12379 break;
12380
5f74bc13 12381 case bfd_mach_mipsisa64r2:
ae52f483
AB
12382 case bfd_mach_mipsisa64r3:
12383 case bfd_mach_mipsisa64r5:
5f74bc13
CD
12384 val = E_MIPS_ARCH_64R2;
12385 break;
7361da2c
AB
12386
12387 case bfd_mach_mipsisa32r6:
12388 val = E_MIPS_ARCH_32R6;
12389 break;
12390
12391 case bfd_mach_mipsisa64r6:
12392 val = E_MIPS_ARCH_64R6;
12393 break;
b49e97c9 12394 }
b49e97c9
TS
12395 elf_elfheader (abfd)->e_flags &= ~(EF_MIPS_ARCH | EF_MIPS_MACH);
12396 elf_elfheader (abfd)->e_flags |= val;
12397
64543e1a
RS
12398}
12399
12400
28dbcedc
AM
12401/* Whether to sort relocs output by ld -r or ld --emit-relocs, by r_offset.
12402 Don't do so for code sections. We want to keep ordering of HI16/LO16
12403 as is. On the other hand, elf-eh-frame.c processing requires .eh_frame
12404 relocs to be sorted. */
12405
12406bfd_boolean
12407_bfd_mips_elf_sort_relocs_p (asection *sec)
12408{
12409 return (sec->flags & SEC_CODE) == 0;
12410}
12411
12412
64543e1a
RS
12413/* The final processing done just before writing out a MIPS ELF object
12414 file. This gets the MIPS architecture right based on the machine
12415 number. This is used by both the 32-bit and the 64-bit ABI. */
12416
12417void
cc364be6 12418_bfd_mips_final_write_processing (bfd *abfd)
64543e1a
RS
12419{
12420 unsigned int i;
12421 Elf_Internal_Shdr **hdrpp;
12422 const char *name;
12423 asection *sec;
12424
12425 /* Keep the existing EF_MIPS_MACH and EF_MIPS_ARCH flags if the former
12426 is nonzero. This is for compatibility with old objects, which used
12427 a combination of a 32-bit EF_MIPS_ARCH and a 64-bit EF_MIPS_MACH. */
12428 if ((elf_elfheader (abfd)->e_flags & EF_MIPS_MACH) == 0)
12429 mips_set_isa_flags (abfd);
12430
b49e97c9
TS
12431 /* Set the sh_info field for .gptab sections and other appropriate
12432 info for each special section. */
12433 for (i = 1, hdrpp = elf_elfsections (abfd) + 1;
12434 i < elf_numsections (abfd);
12435 i++, hdrpp++)
12436 {
12437 switch ((*hdrpp)->sh_type)
12438 {
12439 case SHT_MIPS_MSYM:
12440 case SHT_MIPS_LIBLIST:
12441 sec = bfd_get_section_by_name (abfd, ".dynstr");
12442 if (sec != NULL)
12443 (*hdrpp)->sh_link = elf_section_data (sec)->this_idx;
12444 break;
12445
12446 case SHT_MIPS_GPTAB:
12447 BFD_ASSERT ((*hdrpp)->bfd_section != NULL);
12448 name = bfd_get_section_name (abfd, (*hdrpp)->bfd_section);
12449 BFD_ASSERT (name != NULL
0112cd26 12450 && CONST_STRNEQ (name, ".gptab."));
b49e97c9
TS
12451 sec = bfd_get_section_by_name (abfd, name + sizeof ".gptab" - 1);
12452 BFD_ASSERT (sec != NULL);
12453 (*hdrpp)->sh_info = elf_section_data (sec)->this_idx;
12454 break;
12455
12456 case SHT_MIPS_CONTENT:
12457 BFD_ASSERT ((*hdrpp)->bfd_section != NULL);
12458 name = bfd_get_section_name (abfd, (*hdrpp)->bfd_section);
12459 BFD_ASSERT (name != NULL
0112cd26 12460 && CONST_STRNEQ (name, ".MIPS.content"));
b49e97c9
TS
12461 sec = bfd_get_section_by_name (abfd,
12462 name + sizeof ".MIPS.content" - 1);
12463 BFD_ASSERT (sec != NULL);
12464 (*hdrpp)->sh_link = elf_section_data (sec)->this_idx;
12465 break;
12466
12467 case SHT_MIPS_SYMBOL_LIB:
12468 sec = bfd_get_section_by_name (abfd, ".dynsym");
12469 if (sec != NULL)
12470 (*hdrpp)->sh_link = elf_section_data (sec)->this_idx;
12471 sec = bfd_get_section_by_name (abfd, ".liblist");
12472 if (sec != NULL)
12473 (*hdrpp)->sh_info = elf_section_data (sec)->this_idx;
12474 break;
12475
12476 case SHT_MIPS_EVENTS:
12477 BFD_ASSERT ((*hdrpp)->bfd_section != NULL);
12478 name = bfd_get_section_name (abfd, (*hdrpp)->bfd_section);
12479 BFD_ASSERT (name != NULL);
0112cd26 12480 if (CONST_STRNEQ (name, ".MIPS.events"))
b49e97c9
TS
12481 sec = bfd_get_section_by_name (abfd,
12482 name + sizeof ".MIPS.events" - 1);
12483 else
12484 {
0112cd26 12485 BFD_ASSERT (CONST_STRNEQ (name, ".MIPS.post_rel"));
b49e97c9
TS
12486 sec = bfd_get_section_by_name (abfd,
12487 (name
12488 + sizeof ".MIPS.post_rel" - 1));
12489 }
12490 BFD_ASSERT (sec != NULL);
12491 (*hdrpp)->sh_link = elf_section_data (sec)->this_idx;
12492 break;
12493
f16a9783
MS
12494 case SHT_MIPS_XHASH:
12495 sec = bfd_get_section_by_name (abfd, ".dynsym");
12496 if (sec != NULL)
12497 (*hdrpp)->sh_link = elf_section_data (sec)->this_idx;
b49e97c9
TS
12498 }
12499 }
12500}
06f44071 12501
cc364be6
AM
12502bfd_boolean
12503_bfd_mips_elf_final_write_processing (bfd *abfd)
06f44071 12504{
cc364be6
AM
12505 _bfd_mips_final_write_processing (abfd);
12506 return _bfd_elf_final_write_processing (abfd);
06f44071 12507}
b49e97c9 12508\f
8dc1a139 12509/* When creating an IRIX5 executable, we need REGINFO and RTPROC
b49e97c9
TS
12510 segments. */
12511
12512int
a6b96beb
AM
12513_bfd_mips_elf_additional_program_headers (bfd *abfd,
12514 struct bfd_link_info *info ATTRIBUTE_UNUSED)
b49e97c9
TS
12515{
12516 asection *s;
12517 int ret = 0;
12518
12519 /* See if we need a PT_MIPS_REGINFO segment. */
12520 s = bfd_get_section_by_name (abfd, ".reginfo");
12521 if (s && (s->flags & SEC_LOAD))
12522 ++ret;
12523
351cdf24
MF
12524 /* See if we need a PT_MIPS_ABIFLAGS segment. */
12525 if (bfd_get_section_by_name (abfd, ".MIPS.abiflags"))
12526 ++ret;
12527
b49e97c9
TS
12528 /* See if we need a PT_MIPS_OPTIONS segment. */
12529 if (IRIX_COMPAT (abfd) == ict_irix6
12530 && bfd_get_section_by_name (abfd,
12531 MIPS_ELF_OPTIONS_SECTION_NAME (abfd)))
12532 ++ret;
12533
12534 /* See if we need a PT_MIPS_RTPROC segment. */
12535 if (IRIX_COMPAT (abfd) == ict_irix5
12536 && bfd_get_section_by_name (abfd, ".dynamic")
12537 && bfd_get_section_by_name (abfd, ".mdebug"))
12538 ++ret;
12539
98c904a8
RS
12540 /* Allocate a PT_NULL header in dynamic objects. See
12541 _bfd_mips_elf_modify_segment_map for details. */
12542 if (!SGI_COMPAT (abfd)
12543 && bfd_get_section_by_name (abfd, ".dynamic"))
12544 ++ret;
12545
b49e97c9
TS
12546 return ret;
12547}
12548
8dc1a139 12549/* Modify the segment map for an IRIX5 executable. */
b49e97c9 12550
b34976b6 12551bfd_boolean
9719ad41 12552_bfd_mips_elf_modify_segment_map (bfd *abfd,
7c8b76cc 12553 struct bfd_link_info *info)
b49e97c9
TS
12554{
12555 asection *s;
12556 struct elf_segment_map *m, **pm;
12557 bfd_size_type amt;
12558
12559 /* If there is a .reginfo section, we need a PT_MIPS_REGINFO
12560 segment. */
12561 s = bfd_get_section_by_name (abfd, ".reginfo");
12562 if (s != NULL && (s->flags & SEC_LOAD) != 0)
12563 {
12bd6957 12564 for (m = elf_seg_map (abfd); m != NULL; m = m->next)
b49e97c9
TS
12565 if (m->p_type == PT_MIPS_REGINFO)
12566 break;
12567 if (m == NULL)
12568 {
12569 amt = sizeof *m;
9719ad41 12570 m = bfd_zalloc (abfd, amt);
b49e97c9 12571 if (m == NULL)
b34976b6 12572 return FALSE;
b49e97c9
TS
12573
12574 m->p_type = PT_MIPS_REGINFO;
12575 m->count = 1;
12576 m->sections[0] = s;
12577
12578 /* We want to put it after the PHDR and INTERP segments. */
12bd6957 12579 pm = &elf_seg_map (abfd);
b49e97c9
TS
12580 while (*pm != NULL
12581 && ((*pm)->p_type == PT_PHDR
12582 || (*pm)->p_type == PT_INTERP))
12583 pm = &(*pm)->next;
12584
12585 m->next = *pm;
12586 *pm = m;
12587 }
12588 }
12589
351cdf24
MF
12590 /* If there is a .MIPS.abiflags section, we need a PT_MIPS_ABIFLAGS
12591 segment. */
12592 s = bfd_get_section_by_name (abfd, ".MIPS.abiflags");
12593 if (s != NULL && (s->flags & SEC_LOAD) != 0)
12594 {
12595 for (m = elf_seg_map (abfd); m != NULL; m = m->next)
12596 if (m->p_type == PT_MIPS_ABIFLAGS)
12597 break;
12598 if (m == NULL)
12599 {
12600 amt = sizeof *m;
12601 m = bfd_zalloc (abfd, amt);
12602 if (m == NULL)
12603 return FALSE;
12604
12605 m->p_type = PT_MIPS_ABIFLAGS;
12606 m->count = 1;
12607 m->sections[0] = s;
12608
12609 /* We want to put it after the PHDR and INTERP segments. */
12610 pm = &elf_seg_map (abfd);
12611 while (*pm != NULL
12612 && ((*pm)->p_type == PT_PHDR
12613 || (*pm)->p_type == PT_INTERP))
12614 pm = &(*pm)->next;
12615
12616 m->next = *pm;
12617 *pm = m;
12618 }
12619 }
12620
b49e97c9
TS
12621 /* For IRIX 6, we don't have .mdebug sections, nor does anything but
12622 .dynamic end up in PT_DYNAMIC. However, we do have to insert a
98a8deaf 12623 PT_MIPS_OPTIONS segment immediately following the program header
b49e97c9 12624 table. */
c1fd6598
AO
12625 if (NEWABI_P (abfd)
12626 /* On non-IRIX6 new abi, we'll have already created a segment
12627 for this section, so don't create another. I'm not sure this
12628 is not also the case for IRIX 6, but I can't test it right
12629 now. */
12630 && IRIX_COMPAT (abfd) == ict_irix6)
b49e97c9
TS
12631 {
12632 for (s = abfd->sections; s; s = s->next)
12633 if (elf_section_data (s)->this_hdr.sh_type == SHT_MIPS_OPTIONS)
12634 break;
12635
12636 if (s)
12637 {
12638 struct elf_segment_map *options_segment;
12639
12bd6957 12640 pm = &elf_seg_map (abfd);
98a8deaf
RS
12641 while (*pm != NULL
12642 && ((*pm)->p_type == PT_PHDR
12643 || (*pm)->p_type == PT_INTERP))
12644 pm = &(*pm)->next;
b49e97c9 12645
8ded5a0f
AM
12646 if (*pm == NULL || (*pm)->p_type != PT_MIPS_OPTIONS)
12647 {
12648 amt = sizeof (struct elf_segment_map);
12649 options_segment = bfd_zalloc (abfd, amt);
12650 options_segment->next = *pm;
12651 options_segment->p_type = PT_MIPS_OPTIONS;
12652 options_segment->p_flags = PF_R;
12653 options_segment->p_flags_valid = TRUE;
12654 options_segment->count = 1;
12655 options_segment->sections[0] = s;
12656 *pm = options_segment;
12657 }
b49e97c9
TS
12658 }
12659 }
12660 else
12661 {
12662 if (IRIX_COMPAT (abfd) == ict_irix5)
12663 {
12664 /* If there are .dynamic and .mdebug sections, we make a room
12665 for the RTPROC header. FIXME: Rewrite without section names. */
12666 if (bfd_get_section_by_name (abfd, ".interp") == NULL
12667 && bfd_get_section_by_name (abfd, ".dynamic") != NULL
12668 && bfd_get_section_by_name (abfd, ".mdebug") != NULL)
12669 {
12bd6957 12670 for (m = elf_seg_map (abfd); m != NULL; m = m->next)
b49e97c9
TS
12671 if (m->p_type == PT_MIPS_RTPROC)
12672 break;
12673 if (m == NULL)
12674 {
12675 amt = sizeof *m;
9719ad41 12676 m = bfd_zalloc (abfd, amt);
b49e97c9 12677 if (m == NULL)
b34976b6 12678 return FALSE;
b49e97c9
TS
12679
12680 m->p_type = PT_MIPS_RTPROC;
12681
12682 s = bfd_get_section_by_name (abfd, ".rtproc");
12683 if (s == NULL)
12684 {
12685 m->count = 0;
12686 m->p_flags = 0;
12687 m->p_flags_valid = 1;
12688 }
12689 else
12690 {
12691 m->count = 1;
12692 m->sections[0] = s;
12693 }
12694
12695 /* We want to put it after the DYNAMIC segment. */
12bd6957 12696 pm = &elf_seg_map (abfd);
b49e97c9
TS
12697 while (*pm != NULL && (*pm)->p_type != PT_DYNAMIC)
12698 pm = &(*pm)->next;
12699 if (*pm != NULL)
12700 pm = &(*pm)->next;
12701
12702 m->next = *pm;
12703 *pm = m;
12704 }
12705 }
12706 }
8dc1a139 12707 /* On IRIX5, the PT_DYNAMIC segment includes the .dynamic,
b49e97c9
TS
12708 .dynstr, .dynsym, and .hash sections, and everything in
12709 between. */
12bd6957 12710 for (pm = &elf_seg_map (abfd); *pm != NULL;
b49e97c9
TS
12711 pm = &(*pm)->next)
12712 if ((*pm)->p_type == PT_DYNAMIC)
12713 break;
12714 m = *pm;
f6f62d6f
RS
12715 /* GNU/Linux binaries do not need the extended PT_DYNAMIC section.
12716 glibc's dynamic linker has traditionally derived the number of
12717 tags from the p_filesz field, and sometimes allocates stack
12718 arrays of that size. An overly-big PT_DYNAMIC segment can
12719 be actively harmful in such cases. Making PT_DYNAMIC contain
12720 other sections can also make life hard for the prelinker,
12721 which might move one of the other sections to a different
12722 PT_LOAD segment. */
12723 if (SGI_COMPAT (abfd)
12724 && m != NULL
12725 && m->count == 1
12726 && strcmp (m->sections[0]->name, ".dynamic") == 0)
b49e97c9
TS
12727 {
12728 static const char *sec_names[] =
12729 {
12730 ".dynamic", ".dynstr", ".dynsym", ".hash"
12731 };
12732 bfd_vma low, high;
12733 unsigned int i, c;
12734 struct elf_segment_map *n;
12735
792b4a53 12736 low = ~(bfd_vma) 0;
b49e97c9
TS
12737 high = 0;
12738 for (i = 0; i < sizeof sec_names / sizeof sec_names[0]; i++)
12739 {
12740 s = bfd_get_section_by_name (abfd, sec_names[i]);
12741 if (s != NULL && (s->flags & SEC_LOAD) != 0)
12742 {
12743 bfd_size_type sz;
12744
12745 if (low > s->vma)
12746 low = s->vma;
eea6121a 12747 sz = s->size;
b49e97c9
TS
12748 if (high < s->vma + sz)
12749 high = s->vma + sz;
12750 }
12751 }
12752
12753 c = 0;
12754 for (s = abfd->sections; s != NULL; s = s->next)
12755 if ((s->flags & SEC_LOAD) != 0
12756 && s->vma >= low
eea6121a 12757 && s->vma + s->size <= high)
b49e97c9
TS
12758 ++c;
12759
12760 amt = sizeof *n + (bfd_size_type) (c - 1) * sizeof (asection *);
9719ad41 12761 n = bfd_zalloc (abfd, amt);
b49e97c9 12762 if (n == NULL)
b34976b6 12763 return FALSE;
b49e97c9
TS
12764 *n = *m;
12765 n->count = c;
12766
12767 i = 0;
12768 for (s = abfd->sections; s != NULL; s = s->next)
12769 {
12770 if ((s->flags & SEC_LOAD) != 0
12771 && s->vma >= low
eea6121a 12772 && s->vma + s->size <= high)
b49e97c9
TS
12773 {
12774 n->sections[i] = s;
12775 ++i;
12776 }
12777 }
12778
12779 *pm = n;
12780 }
12781 }
12782
98c904a8
RS
12783 /* Allocate a spare program header in dynamic objects so that tools
12784 like the prelinker can add an extra PT_LOAD entry.
12785
12786 If the prelinker needs to make room for a new PT_LOAD entry, its
12787 standard procedure is to move the first (read-only) sections into
12788 the new (writable) segment. However, the MIPS ABI requires
12789 .dynamic to be in a read-only segment, and the section will often
12790 start within sizeof (ElfNN_Phdr) bytes of the last program header.
12791
12792 Although the prelinker could in principle move .dynamic to a
12793 writable segment, it seems better to allocate a spare program
12794 header instead, and avoid the need to move any sections.
12795 There is a long tradition of allocating spare dynamic tags,
12796 so allocating a spare program header seems like a natural
7c8b76cc
JM
12797 extension.
12798
12799 If INFO is NULL, we may be copying an already prelinked binary
12800 with objcopy or strip, so do not add this header. */
12801 if (info != NULL
12802 && !SGI_COMPAT (abfd)
98c904a8
RS
12803 && bfd_get_section_by_name (abfd, ".dynamic"))
12804 {
12bd6957 12805 for (pm = &elf_seg_map (abfd); *pm != NULL; pm = &(*pm)->next)
98c904a8
RS
12806 if ((*pm)->p_type == PT_NULL)
12807 break;
12808 if (*pm == NULL)
12809 {
12810 m = bfd_zalloc (abfd, sizeof (*m));
12811 if (m == NULL)
12812 return FALSE;
12813
12814 m->p_type = PT_NULL;
12815 *pm = m;
12816 }
12817 }
12818
b34976b6 12819 return TRUE;
b49e97c9
TS
12820}
12821\f
12822/* Return the section that should be marked against GC for a given
12823 relocation. */
12824
12825asection *
9719ad41 12826_bfd_mips_elf_gc_mark_hook (asection *sec,
07adf181 12827 struct bfd_link_info *info,
9719ad41
RS
12828 Elf_Internal_Rela *rel,
12829 struct elf_link_hash_entry *h,
12830 Elf_Internal_Sym *sym)
b49e97c9
TS
12831{
12832 /* ??? Do mips16 stub sections need to be handled special? */
12833
12834 if (h != NULL)
07adf181
AM
12835 switch (ELF_R_TYPE (sec->owner, rel->r_info))
12836 {
12837 case R_MIPS_GNU_VTINHERIT:
12838 case R_MIPS_GNU_VTENTRY:
12839 return NULL;
12840 }
b49e97c9 12841
07adf181 12842 return _bfd_elf_gc_mark_hook (sec, info, rel, h, sym);
b49e97c9
TS
12843}
12844
351cdf24
MF
12845/* Prevent .MIPS.abiflags from being discarded with --gc-sections. */
12846
12847bfd_boolean
12848_bfd_mips_elf_gc_mark_extra_sections (struct bfd_link_info *info,
12849 elf_gc_mark_hook_fn gc_mark_hook)
12850{
12851 bfd *sub;
12852
12853 _bfd_elf_gc_mark_extra_sections (info, gc_mark_hook);
12854
12855 for (sub = info->input_bfds; sub != NULL; sub = sub->link.next)
12856 {
12857 asection *o;
12858
12859 if (! is_mips_elf (sub))
12860 continue;
12861
12862 for (o = sub->sections; o != NULL; o = o->next)
12863 if (!o->gc_mark
12864 && MIPS_ELF_ABIFLAGS_SECTION_NAME_P
12865 (bfd_get_section_name (sub, o)))
12866 {
12867 if (!_bfd_elf_gc_mark (info, o, gc_mark_hook))
12868 return FALSE;
12869 }
12870 }
12871
12872 return TRUE;
12873}
b49e97c9
TS
12874\f
12875/* Copy data from a MIPS ELF indirect symbol to its direct symbol,
12876 hiding the old indirect symbol. Process additional relocation
12877 information. Also called for weakdefs, in which case we just let
12878 _bfd_elf_link_hash_copy_indirect copy the flags for us. */
12879
12880void
fcfa13d2 12881_bfd_mips_elf_copy_indirect_symbol (struct bfd_link_info *info,
9719ad41
RS
12882 struct elf_link_hash_entry *dir,
12883 struct elf_link_hash_entry *ind)
b49e97c9
TS
12884{
12885 struct mips_elf_link_hash_entry *dirmips, *indmips;
12886
fcfa13d2 12887 _bfd_elf_link_hash_copy_indirect (info, dir, ind);
b49e97c9 12888
861fb55a
DJ
12889 dirmips = (struct mips_elf_link_hash_entry *) dir;
12890 indmips = (struct mips_elf_link_hash_entry *) ind;
12891 /* Any absolute non-dynamic relocations against an indirect or weak
12892 definition will be against the target symbol. */
12893 if (indmips->has_static_relocs)
12894 dirmips->has_static_relocs = TRUE;
12895
b49e97c9
TS
12896 if (ind->root.type != bfd_link_hash_indirect)
12897 return;
12898
b49e97c9
TS
12899 dirmips->possibly_dynamic_relocs += indmips->possibly_dynamic_relocs;
12900 if (indmips->readonly_reloc)
b34976b6 12901 dirmips->readonly_reloc = TRUE;
b49e97c9 12902 if (indmips->no_fn_stub)
b34976b6 12903 dirmips->no_fn_stub = TRUE;
61b0a4af
RS
12904 if (indmips->fn_stub)
12905 {
12906 dirmips->fn_stub = indmips->fn_stub;
12907 indmips->fn_stub = NULL;
12908 }
12909 if (indmips->need_fn_stub)
12910 {
12911 dirmips->need_fn_stub = TRUE;
12912 indmips->need_fn_stub = FALSE;
12913 }
12914 if (indmips->call_stub)
12915 {
12916 dirmips->call_stub = indmips->call_stub;
12917 indmips->call_stub = NULL;
12918 }
12919 if (indmips->call_fp_stub)
12920 {
12921 dirmips->call_fp_stub = indmips->call_fp_stub;
12922 indmips->call_fp_stub = NULL;
12923 }
634835ae
RS
12924 if (indmips->global_got_area < dirmips->global_got_area)
12925 dirmips->global_got_area = indmips->global_got_area;
12926 if (indmips->global_got_area < GGA_NONE)
12927 indmips->global_got_area = GGA_NONE;
861fb55a
DJ
12928 if (indmips->has_nonpic_branches)
12929 dirmips->has_nonpic_branches = TRUE;
b49e97c9 12930}
47275900
MR
12931
12932/* Take care of the special `__gnu_absolute_zero' symbol and ignore attempts
12933 to hide it. It has to remain global (it will also be protected) so as to
12934 be assigned a global GOT entry, which will then remain unchanged at load
12935 time. */
12936
12937void
12938_bfd_mips_elf_hide_symbol (struct bfd_link_info *info,
12939 struct elf_link_hash_entry *entry,
12940 bfd_boolean force_local)
12941{
12942 struct mips_elf_link_hash_table *htab;
12943
12944 htab = mips_elf_hash_table (info);
12945 BFD_ASSERT (htab != NULL);
12946 if (htab->use_absolute_zero
12947 && strcmp (entry->root.root.string, "__gnu_absolute_zero") == 0)
12948 return;
12949
12950 _bfd_elf_link_hash_hide_symbol (info, entry, force_local);
12951}
b49e97c9 12952\f
d01414a5
TS
12953#define PDR_SIZE 32
12954
b34976b6 12955bfd_boolean
9719ad41
RS
12956_bfd_mips_elf_discard_info (bfd *abfd, struct elf_reloc_cookie *cookie,
12957 struct bfd_link_info *info)
d01414a5
TS
12958{
12959 asection *o;
b34976b6 12960 bfd_boolean ret = FALSE;
d01414a5
TS
12961 unsigned char *tdata;
12962 size_t i, skip;
12963
12964 o = bfd_get_section_by_name (abfd, ".pdr");
12965 if (! o)
b34976b6 12966 return FALSE;
eea6121a 12967 if (o->size == 0)
b34976b6 12968 return FALSE;
eea6121a 12969 if (o->size % PDR_SIZE != 0)
b34976b6 12970 return FALSE;
d01414a5
TS
12971 if (o->output_section != NULL
12972 && bfd_is_abs_section (o->output_section))
b34976b6 12973 return FALSE;
d01414a5 12974
eea6121a 12975 tdata = bfd_zmalloc (o->size / PDR_SIZE);
d01414a5 12976 if (! tdata)
b34976b6 12977 return FALSE;
d01414a5 12978
9719ad41 12979 cookie->rels = _bfd_elf_link_read_relocs (abfd, o, NULL, NULL,
45d6a902 12980 info->keep_memory);
d01414a5
TS
12981 if (!cookie->rels)
12982 {
12983 free (tdata);
b34976b6 12984 return FALSE;
d01414a5
TS
12985 }
12986
12987 cookie->rel = cookie->rels;
12988 cookie->relend = cookie->rels + o->reloc_count;
12989
eea6121a 12990 for (i = 0, skip = 0; i < o->size / PDR_SIZE; i ++)
d01414a5 12991 {
c152c796 12992 if (bfd_elf_reloc_symbol_deleted_p (i * PDR_SIZE, cookie))
d01414a5
TS
12993 {
12994 tdata[i] = 1;
12995 skip ++;
12996 }
12997 }
12998
12999 if (skip != 0)
13000 {
f0abc2a1 13001 mips_elf_section_data (o)->u.tdata = tdata;
e034b2cc
MR
13002 if (o->rawsize == 0)
13003 o->rawsize = o->size;
eea6121a 13004 o->size -= skip * PDR_SIZE;
b34976b6 13005 ret = TRUE;
d01414a5
TS
13006 }
13007 else
13008 free (tdata);
13009
13010 if (! info->keep_memory)
13011 free (cookie->rels);
13012
13013 return ret;
13014}
13015
b34976b6 13016bfd_boolean
9719ad41 13017_bfd_mips_elf_ignore_discarded_relocs (asection *sec)
53bfd6b4
MR
13018{
13019 if (strcmp (sec->name, ".pdr") == 0)
b34976b6
AM
13020 return TRUE;
13021 return FALSE;
53bfd6b4 13022}
d01414a5 13023
b34976b6 13024bfd_boolean
c7b8f16e
JB
13025_bfd_mips_elf_write_section (bfd *output_bfd,
13026 struct bfd_link_info *link_info ATTRIBUTE_UNUSED,
07d6d2b8 13027 asection *sec, bfd_byte *contents)
d01414a5
TS
13028{
13029 bfd_byte *to, *from, *end;
13030 int i;
13031
13032 if (strcmp (sec->name, ".pdr") != 0)
b34976b6 13033 return FALSE;
d01414a5 13034
f0abc2a1 13035 if (mips_elf_section_data (sec)->u.tdata == NULL)
b34976b6 13036 return FALSE;
d01414a5
TS
13037
13038 to = contents;
eea6121a 13039 end = contents + sec->size;
d01414a5
TS
13040 for (from = contents, i = 0;
13041 from < end;
13042 from += PDR_SIZE, i++)
13043 {
f0abc2a1 13044 if ((mips_elf_section_data (sec)->u.tdata)[i] == 1)
d01414a5
TS
13045 continue;
13046 if (to != from)
13047 memcpy (to, from, PDR_SIZE);
13048 to += PDR_SIZE;
13049 }
13050 bfd_set_section_contents (output_bfd, sec->output_section, contents,
eea6121a 13051 sec->output_offset, sec->size);
b34976b6 13052 return TRUE;
d01414a5 13053}
53bfd6b4 13054\f
df58fc94
RS
13055/* microMIPS code retains local labels for linker relaxation. Omit them
13056 from output by default for clarity. */
13057
13058bfd_boolean
13059_bfd_mips_elf_is_target_special_symbol (bfd *abfd, asymbol *sym)
13060{
13061 return _bfd_elf_is_local_label_name (abfd, sym->name);
13062}
13063
b49e97c9
TS
13064/* MIPS ELF uses a special find_nearest_line routine in order the
13065 handle the ECOFF debugging information. */
13066
13067struct mips_elf_find_line
13068{
13069 struct ecoff_debug_info d;
13070 struct ecoff_find_line i;
13071};
13072
b34976b6 13073bfd_boolean
fb167eb2
AM
13074_bfd_mips_elf_find_nearest_line (bfd *abfd, asymbol **symbols,
13075 asection *section, bfd_vma offset,
9719ad41
RS
13076 const char **filename_ptr,
13077 const char **functionname_ptr,
fb167eb2
AM
13078 unsigned int *line_ptr,
13079 unsigned int *discriminator_ptr)
b49e97c9
TS
13080{
13081 asection *msec;
13082
fb167eb2 13083 if (_bfd_dwarf2_find_nearest_line (abfd, symbols, NULL, section, offset,
b49e97c9 13084 filename_ptr, functionname_ptr,
fb167eb2
AM
13085 line_ptr, discriminator_ptr,
13086 dwarf_debug_sections,
46d09186
NC
13087 &elf_tdata (abfd)->dwarf2_find_line_info)
13088 || _bfd_dwarf1_find_nearest_line (abfd, symbols, section, offset,
13089 filename_ptr, functionname_ptr,
13090 line_ptr))
13091 {
13092 /* PR 22789: If the function name or filename was not found through
13093 the debug information, then try an ordinary lookup instead. */
13094 if ((functionname_ptr != NULL && *functionname_ptr == NULL)
13095 || (filename_ptr != NULL && *filename_ptr == NULL))
13096 {
13097 /* Do not override already discovered names. */
13098 if (functionname_ptr != NULL && *functionname_ptr != NULL)
13099 functionname_ptr = NULL;
b49e97c9 13100
46d09186
NC
13101 if (filename_ptr != NULL && *filename_ptr != NULL)
13102 filename_ptr = NULL;
13103
13104 _bfd_elf_find_function (abfd, symbols, section, offset,
13105 filename_ptr, functionname_ptr);
13106 }
13107
13108 return TRUE;
13109 }
b49e97c9
TS
13110
13111 msec = bfd_get_section_by_name (abfd, ".mdebug");
13112 if (msec != NULL)
13113 {
13114 flagword origflags;
13115 struct mips_elf_find_line *fi;
13116 const struct ecoff_debug_swap * const swap =
13117 get_elf_backend_data (abfd)->elf_backend_ecoff_debug_swap;
13118
13119 /* If we are called during a link, mips_elf_final_link may have
13120 cleared the SEC_HAS_CONTENTS field. We force it back on here
13121 if appropriate (which it normally will be). */
13122 origflags = msec->flags;
13123 if (elf_section_data (msec)->this_hdr.sh_type != SHT_NOBITS)
13124 msec->flags |= SEC_HAS_CONTENTS;
13125
698600e4 13126 fi = mips_elf_tdata (abfd)->find_line_info;
b49e97c9
TS
13127 if (fi == NULL)
13128 {
13129 bfd_size_type external_fdr_size;
13130 char *fraw_src;
13131 char *fraw_end;
13132 struct fdr *fdr_ptr;
13133 bfd_size_type amt = sizeof (struct mips_elf_find_line);
13134
9719ad41 13135 fi = bfd_zalloc (abfd, amt);
b49e97c9
TS
13136 if (fi == NULL)
13137 {
13138 msec->flags = origflags;
b34976b6 13139 return FALSE;
b49e97c9
TS
13140 }
13141
13142 if (! _bfd_mips_elf_read_ecoff_info (abfd, msec, &fi->d))
13143 {
13144 msec->flags = origflags;
b34976b6 13145 return FALSE;
b49e97c9
TS
13146 }
13147
13148 /* Swap in the FDR information. */
13149 amt = fi->d.symbolic_header.ifdMax * sizeof (struct fdr);
9719ad41 13150 fi->d.fdr = bfd_alloc (abfd, amt);
b49e97c9
TS
13151 if (fi->d.fdr == NULL)
13152 {
13153 msec->flags = origflags;
b34976b6 13154 return FALSE;
b49e97c9
TS
13155 }
13156 external_fdr_size = swap->external_fdr_size;
13157 fdr_ptr = fi->d.fdr;
13158 fraw_src = (char *) fi->d.external_fdr;
13159 fraw_end = (fraw_src
13160 + fi->d.symbolic_header.ifdMax * external_fdr_size);
13161 for (; fraw_src < fraw_end; fraw_src += external_fdr_size, fdr_ptr++)
9719ad41 13162 (*swap->swap_fdr_in) (abfd, fraw_src, fdr_ptr);
b49e97c9 13163
698600e4 13164 mips_elf_tdata (abfd)->find_line_info = fi;
b49e97c9
TS
13165
13166 /* Note that we don't bother to ever free this information.
07d6d2b8
AM
13167 find_nearest_line is either called all the time, as in
13168 objdump -l, so the information should be saved, or it is
13169 rarely called, as in ld error messages, so the memory
13170 wasted is unimportant. Still, it would probably be a
13171 good idea for free_cached_info to throw it away. */
b49e97c9
TS
13172 }
13173
13174 if (_bfd_ecoff_locate_line (abfd, section, offset, &fi->d, swap,
13175 &fi->i, filename_ptr, functionname_ptr,
13176 line_ptr))
13177 {
13178 msec->flags = origflags;
b34976b6 13179 return TRUE;
b49e97c9
TS
13180 }
13181
13182 msec->flags = origflags;
13183 }
13184
13185 /* Fall back on the generic ELF find_nearest_line routine. */
13186
fb167eb2 13187 return _bfd_elf_find_nearest_line (abfd, symbols, section, offset,
b49e97c9 13188 filename_ptr, functionname_ptr,
fb167eb2 13189 line_ptr, discriminator_ptr);
b49e97c9 13190}
4ab527b0
FF
13191
13192bfd_boolean
13193_bfd_mips_elf_find_inliner_info (bfd *abfd,
13194 const char **filename_ptr,
13195 const char **functionname_ptr,
13196 unsigned int *line_ptr)
13197{
13198 bfd_boolean found;
13199 found = _bfd_dwarf2_find_inliner_info (abfd, filename_ptr,
13200 functionname_ptr, line_ptr,
13201 & elf_tdata (abfd)->dwarf2_find_line_info);
13202 return found;
13203}
13204
b49e97c9
TS
13205\f
13206/* When are writing out the .options or .MIPS.options section,
13207 remember the bytes we are writing out, so that we can install the
13208 GP value in the section_processing routine. */
13209
b34976b6 13210bfd_boolean
9719ad41
RS
13211_bfd_mips_elf_set_section_contents (bfd *abfd, sec_ptr section,
13212 const void *location,
13213 file_ptr offset, bfd_size_type count)
b49e97c9 13214{
cc2e31b9 13215 if (MIPS_ELF_OPTIONS_SECTION_NAME_P (section->name))
b49e97c9
TS
13216 {
13217 bfd_byte *c;
13218
13219 if (elf_section_data (section) == NULL)
13220 {
13221 bfd_size_type amt = sizeof (struct bfd_elf_section_data);
9719ad41 13222 section->used_by_bfd = bfd_zalloc (abfd, amt);
b49e97c9 13223 if (elf_section_data (section) == NULL)
b34976b6 13224 return FALSE;
b49e97c9 13225 }
f0abc2a1 13226 c = mips_elf_section_data (section)->u.tdata;
b49e97c9
TS
13227 if (c == NULL)
13228 {
eea6121a 13229 c = bfd_zalloc (abfd, section->size);
b49e97c9 13230 if (c == NULL)
b34976b6 13231 return FALSE;
f0abc2a1 13232 mips_elf_section_data (section)->u.tdata = c;
b49e97c9
TS
13233 }
13234
9719ad41 13235 memcpy (c + offset, location, count);
b49e97c9
TS
13236 }
13237
13238 return _bfd_elf_set_section_contents (abfd, section, location, offset,
13239 count);
13240}
13241
13242/* This is almost identical to bfd_generic_get_... except that some
13243 MIPS relocations need to be handled specially. Sigh. */
13244
13245bfd_byte *
9719ad41
RS
13246_bfd_elf_mips_get_relocated_section_contents
13247 (bfd *abfd,
13248 struct bfd_link_info *link_info,
13249 struct bfd_link_order *link_order,
13250 bfd_byte *data,
13251 bfd_boolean relocatable,
13252 asymbol **symbols)
b49e97c9
TS
13253{
13254 /* Get enough memory to hold the stuff */
13255 bfd *input_bfd = link_order->u.indirect.section->owner;
13256 asection *input_section = link_order->u.indirect.section;
eea6121a 13257 bfd_size_type sz;
b49e97c9
TS
13258
13259 long reloc_size = bfd_get_reloc_upper_bound (input_bfd, input_section);
13260 arelent **reloc_vector = NULL;
13261 long reloc_count;
13262
13263 if (reloc_size < 0)
13264 goto error_return;
13265
9719ad41 13266 reloc_vector = bfd_malloc (reloc_size);
b49e97c9
TS
13267 if (reloc_vector == NULL && reloc_size != 0)
13268 goto error_return;
13269
13270 /* read in the section */
eea6121a
AM
13271 sz = input_section->rawsize ? input_section->rawsize : input_section->size;
13272 if (!bfd_get_section_contents (input_bfd, input_section, data, 0, sz))
b49e97c9
TS
13273 goto error_return;
13274
b49e97c9
TS
13275 reloc_count = bfd_canonicalize_reloc (input_bfd,
13276 input_section,
13277 reloc_vector,
13278 symbols);
13279 if (reloc_count < 0)
13280 goto error_return;
13281
13282 if (reloc_count > 0)
13283 {
13284 arelent **parent;
13285 /* for mips */
13286 int gp_found;
13287 bfd_vma gp = 0x12345678; /* initialize just to shut gcc up */
13288
13289 {
13290 struct bfd_hash_entry *h;
13291 struct bfd_link_hash_entry *lh;
13292 /* Skip all this stuff if we aren't mixing formats. */
13293 if (abfd && input_bfd
13294 && abfd->xvec == input_bfd->xvec)
13295 lh = 0;
13296 else
13297 {
b34976b6 13298 h = bfd_hash_lookup (&link_info->hash->table, "_gp", FALSE, FALSE);
b49e97c9
TS
13299 lh = (struct bfd_link_hash_entry *) h;
13300 }
13301 lookup:
13302 if (lh)
13303 {
13304 switch (lh->type)
13305 {
13306 case bfd_link_hash_undefined:
13307 case bfd_link_hash_undefweak:
13308 case bfd_link_hash_common:
13309 gp_found = 0;
13310 break;
13311 case bfd_link_hash_defined:
13312 case bfd_link_hash_defweak:
13313 gp_found = 1;
13314 gp = lh->u.def.value;
13315 break;
13316 case bfd_link_hash_indirect:
13317 case bfd_link_hash_warning:
13318 lh = lh->u.i.link;
13319 /* @@FIXME ignoring warning for now */
13320 goto lookup;
13321 case bfd_link_hash_new:
13322 default:
13323 abort ();
13324 }
13325 }
13326 else
13327 gp_found = 0;
13328 }
13329 /* end mips */
9719ad41 13330 for (parent = reloc_vector; *parent != NULL; parent++)
b49e97c9 13331 {
9719ad41 13332 char *error_message = NULL;
b49e97c9
TS
13333 bfd_reloc_status_type r;
13334
13335 /* Specific to MIPS: Deal with relocation types that require
13336 knowing the gp of the output bfd. */
13337 asymbol *sym = *(*parent)->sym_ptr_ptr;
b49e97c9 13338
8236346f
EC
13339 /* If we've managed to find the gp and have a special
13340 function for the relocation then go ahead, else default
13341 to the generic handling. */
13342 if (gp_found
13343 && (*parent)->howto->special_function
13344 == _bfd_mips_elf32_gprel16_reloc)
13345 r = _bfd_mips_elf_gprel16_with_gp (input_bfd, sym, *parent,
13346 input_section, relocatable,
13347 data, gp);
13348 else
86324f90 13349 r = bfd_perform_relocation (input_bfd, *parent, data,
8236346f
EC
13350 input_section,
13351 relocatable ? abfd : NULL,
13352 &error_message);
b49e97c9 13353
1049f94e 13354 if (relocatable)
b49e97c9
TS
13355 {
13356 asection *os = input_section->output_section;
13357
13358 /* A partial link, so keep the relocs */
13359 os->orelocation[os->reloc_count] = *parent;
13360 os->reloc_count++;
13361 }
13362
13363 if (r != bfd_reloc_ok)
13364 {
13365 switch (r)
13366 {
13367 case bfd_reloc_undefined:
1a72702b
AM
13368 (*link_info->callbacks->undefined_symbol)
13369 (link_info, bfd_asymbol_name (*(*parent)->sym_ptr_ptr),
13370 input_bfd, input_section, (*parent)->address, TRUE);
b49e97c9
TS
13371 break;
13372 case bfd_reloc_dangerous:
9719ad41 13373 BFD_ASSERT (error_message != NULL);
1a72702b
AM
13374 (*link_info->callbacks->reloc_dangerous)
13375 (link_info, error_message,
13376 input_bfd, input_section, (*parent)->address);
b49e97c9
TS
13377 break;
13378 case bfd_reloc_overflow:
1a72702b
AM
13379 (*link_info->callbacks->reloc_overflow)
13380 (link_info, NULL,
13381 bfd_asymbol_name (*(*parent)->sym_ptr_ptr),
13382 (*parent)->howto->name, (*parent)->addend,
13383 input_bfd, input_section, (*parent)->address);
b49e97c9
TS
13384 break;
13385 case bfd_reloc_outofrange:
13386 default:
13387 abort ();
13388 break;
13389 }
13390
13391 }
13392 }
13393 }
13394 if (reloc_vector != NULL)
13395 free (reloc_vector);
13396 return data;
13397
13398error_return:
13399 if (reloc_vector != NULL)
13400 free (reloc_vector);
13401 return NULL;
13402}
13403\f
df58fc94
RS
13404static bfd_boolean
13405mips_elf_relax_delete_bytes (bfd *abfd,
13406 asection *sec, bfd_vma addr, int count)
13407{
13408 Elf_Internal_Shdr *symtab_hdr;
13409 unsigned int sec_shndx;
13410 bfd_byte *contents;
13411 Elf_Internal_Rela *irel, *irelend;
13412 Elf_Internal_Sym *isym;
13413 Elf_Internal_Sym *isymend;
13414 struct elf_link_hash_entry **sym_hashes;
13415 struct elf_link_hash_entry **end_hashes;
13416 struct elf_link_hash_entry **start_hashes;
13417 unsigned int symcount;
13418
13419 sec_shndx = _bfd_elf_section_from_bfd_section (abfd, sec);
13420 contents = elf_section_data (sec)->this_hdr.contents;
13421
13422 irel = elf_section_data (sec)->relocs;
13423 irelend = irel + sec->reloc_count;
13424
13425 /* Actually delete the bytes. */
13426 memmove (contents + addr, contents + addr + count,
13427 (size_t) (sec->size - addr - count));
13428 sec->size -= count;
13429
13430 /* Adjust all the relocs. */
13431 for (irel = elf_section_data (sec)->relocs; irel < irelend; irel++)
13432 {
13433 /* Get the new reloc address. */
13434 if (irel->r_offset > addr)
13435 irel->r_offset -= count;
13436 }
13437
13438 BFD_ASSERT (addr % 2 == 0);
13439 BFD_ASSERT (count % 2 == 0);
13440
13441 /* Adjust the local symbols defined in this section. */
13442 symtab_hdr = &elf_tdata (abfd)->symtab_hdr;
13443 isym = (Elf_Internal_Sym *) symtab_hdr->contents;
13444 for (isymend = isym + symtab_hdr->sh_info; isym < isymend; isym++)
2309ddf2 13445 if (isym->st_shndx == sec_shndx && isym->st_value > addr)
df58fc94
RS
13446 isym->st_value -= count;
13447
13448 /* Now adjust the global symbols defined in this section. */
13449 symcount = (symtab_hdr->sh_size / sizeof (Elf32_External_Sym)
13450 - symtab_hdr->sh_info);
13451 sym_hashes = start_hashes = elf_sym_hashes (abfd);
13452 end_hashes = sym_hashes + symcount;
13453
13454 for (; sym_hashes < end_hashes; sym_hashes++)
13455 {
13456 struct elf_link_hash_entry *sym_hash = *sym_hashes;
13457
13458 if ((sym_hash->root.type == bfd_link_hash_defined
13459 || sym_hash->root.type == bfd_link_hash_defweak)
13460 && sym_hash->root.u.def.section == sec)
13461 {
2309ddf2 13462 bfd_vma value = sym_hash->root.u.def.value;
df58fc94 13463
df58fc94
RS
13464 if (ELF_ST_IS_MICROMIPS (sym_hash->other))
13465 value &= MINUS_TWO;
13466 if (value > addr)
13467 sym_hash->root.u.def.value -= count;
13468 }
13469 }
13470
13471 return TRUE;
13472}
13473
13474
13475/* Opcodes needed for microMIPS relaxation as found in
13476 opcodes/micromips-opc.c. */
13477
13478struct opcode_descriptor {
13479 unsigned long match;
13480 unsigned long mask;
13481};
13482
13483/* The $ra register aka $31. */
13484
13485#define RA 31
13486
13487/* 32-bit instruction format register fields. */
13488
13489#define OP32_SREG(opcode) (((opcode) >> 16) & 0x1f)
13490#define OP32_TREG(opcode) (((opcode) >> 21) & 0x1f)
13491
13492/* Check if a 5-bit register index can be abbreviated to 3 bits. */
13493
13494#define OP16_VALID_REG(r) \
13495 ((2 <= (r) && (r) <= 7) || (16 <= (r) && (r) <= 17))
13496
13497
13498/* 32-bit and 16-bit branches. */
13499
13500static const struct opcode_descriptor b_insns_32[] = {
13501 { /* "b", "p", */ 0x40400000, 0xffff0000 }, /* bgez 0 */
13502 { /* "b", "p", */ 0x94000000, 0xffff0000 }, /* beq 0, 0 */
13503 { 0, 0 } /* End marker for find_match(). */
13504};
13505
13506static const struct opcode_descriptor bc_insn_32 =
13507 { /* "bc(1|2)(ft)", "N,p", */ 0x42800000, 0xfec30000 };
13508
13509static const struct opcode_descriptor bz_insn_32 =
13510 { /* "b(g|l)(e|t)z", "s,p", */ 0x40000000, 0xff200000 };
13511
13512static const struct opcode_descriptor bzal_insn_32 =
13513 { /* "b(ge|lt)zal", "s,p", */ 0x40200000, 0xffa00000 };
13514
13515static const struct opcode_descriptor beq_insn_32 =
13516 { /* "b(eq|ne)", "s,t,p", */ 0x94000000, 0xdc000000 };
13517
13518static const struct opcode_descriptor b_insn_16 =
13519 { /* "b", "mD", */ 0xcc00, 0xfc00 };
13520
13521static const struct opcode_descriptor bz_insn_16 =
c088dedf 13522 { /* "b(eq|ne)z", "md,mE", */ 0x8c00, 0xdc00 };
df58fc94
RS
13523
13524
13525/* 32-bit and 16-bit branch EQ and NE zero. */
13526
13527/* NOTE: All opcode tables have BEQ/BNE in the same order: first the
13528 eq and second the ne. This convention is used when replacing a
13529 32-bit BEQ/BNE with the 16-bit version. */
13530
13531#define BZC32_REG_FIELD(r) (((r) & 0x1f) << 16)
13532
13533static const struct opcode_descriptor bz_rs_insns_32[] = {
13534 { /* "beqz", "s,p", */ 0x94000000, 0xffe00000 },
13535 { /* "bnez", "s,p", */ 0xb4000000, 0xffe00000 },
13536 { 0, 0 } /* End marker for find_match(). */
13537};
13538
13539static const struct opcode_descriptor bz_rt_insns_32[] = {
13540 { /* "beqz", "t,p", */ 0x94000000, 0xfc01f000 },
13541 { /* "bnez", "t,p", */ 0xb4000000, 0xfc01f000 },
13542 { 0, 0 } /* End marker for find_match(). */
13543};
13544
13545static const struct opcode_descriptor bzc_insns_32[] = {
13546 { /* "beqzc", "s,p", */ 0x40e00000, 0xffe00000 },
13547 { /* "bnezc", "s,p", */ 0x40a00000, 0xffe00000 },
13548 { 0, 0 } /* End marker for find_match(). */
13549};
13550
13551static const struct opcode_descriptor bz_insns_16[] = {
13552 { /* "beqz", "md,mE", */ 0x8c00, 0xfc00 },
13553 { /* "bnez", "md,mE", */ 0xac00, 0xfc00 },
13554 { 0, 0 } /* End marker for find_match(). */
13555};
13556
13557/* Switch between a 5-bit register index and its 3-bit shorthand. */
13558
e67f83e5 13559#define BZ16_REG(opcode) ((((((opcode) >> 7) & 7) + 0x1e) & 0xf) + 2)
eb6b0cf4 13560#define BZ16_REG_FIELD(r) (((r) & 7) << 7)
df58fc94
RS
13561
13562
13563/* 32-bit instructions with a delay slot. */
13564
13565static const struct opcode_descriptor jal_insn_32_bd16 =
13566 { /* "jals", "a", */ 0x74000000, 0xfc000000 };
13567
13568static const struct opcode_descriptor jal_insn_32_bd32 =
13569 { /* "jal", "a", */ 0xf4000000, 0xfc000000 };
13570
13571static const struct opcode_descriptor jal_x_insn_32_bd32 =
13572 { /* "jal[x]", "a", */ 0xf0000000, 0xf8000000 };
13573
13574static const struct opcode_descriptor j_insn_32 =
13575 { /* "j", "a", */ 0xd4000000, 0xfc000000 };
13576
13577static const struct opcode_descriptor jalr_insn_32 =
13578 { /* "jalr[.hb]", "t,s", */ 0x00000f3c, 0xfc00efff };
13579
13580/* This table can be compacted, because no opcode replacement is made. */
13581
13582static const struct opcode_descriptor ds_insns_32_bd16[] = {
13583 { /* "jals", "a", */ 0x74000000, 0xfc000000 },
13584
13585 { /* "jalrs[.hb]", "t,s", */ 0x00004f3c, 0xfc00efff },
13586 { /* "b(ge|lt)zals", "s,p", */ 0x42200000, 0xffa00000 },
13587
13588 { /* "b(g|l)(e|t)z", "s,p", */ 0x40000000, 0xff200000 },
13589 { /* "b(eq|ne)", "s,t,p", */ 0x94000000, 0xdc000000 },
13590 { /* "j", "a", */ 0xd4000000, 0xfc000000 },
13591 { 0, 0 } /* End marker for find_match(). */
13592};
13593
13594/* This table can be compacted, because no opcode replacement is made. */
13595
13596static const struct opcode_descriptor ds_insns_32_bd32[] = {
13597 { /* "jal[x]", "a", */ 0xf0000000, 0xf8000000 },
13598
13599 { /* "jalr[.hb]", "t,s", */ 0x00000f3c, 0xfc00efff },
13600 { /* "b(ge|lt)zal", "s,p", */ 0x40200000, 0xffa00000 },
13601 { 0, 0 } /* End marker for find_match(). */
13602};
13603
13604
13605/* 16-bit instructions with a delay slot. */
13606
13607static const struct opcode_descriptor jalr_insn_16_bd16 =
13608 { /* "jalrs", "my,mj", */ 0x45e0, 0xffe0 };
13609
13610static const struct opcode_descriptor jalr_insn_16_bd32 =
13611 { /* "jalr", "my,mj", */ 0x45c0, 0xffe0 };
13612
13613static const struct opcode_descriptor jr_insn_16 =
13614 { /* "jr", "mj", */ 0x4580, 0xffe0 };
13615
13616#define JR16_REG(opcode) ((opcode) & 0x1f)
13617
13618/* This table can be compacted, because no opcode replacement is made. */
13619
13620static const struct opcode_descriptor ds_insns_16_bd16[] = {
13621 { /* "jalrs", "my,mj", */ 0x45e0, 0xffe0 },
13622
13623 { /* "b", "mD", */ 0xcc00, 0xfc00 },
13624 { /* "b(eq|ne)z", "md,mE", */ 0x8c00, 0xdc00 },
13625 { /* "jr", "mj", */ 0x4580, 0xffe0 },
13626 { 0, 0 } /* End marker for find_match(). */
13627};
13628
13629
13630/* LUI instruction. */
13631
13632static const struct opcode_descriptor lui_insn =
13633 { /* "lui", "s,u", */ 0x41a00000, 0xffe00000 };
13634
13635
13636/* ADDIU instruction. */
13637
13638static const struct opcode_descriptor addiu_insn =
13639 { /* "addiu", "t,r,j", */ 0x30000000, 0xfc000000 };
13640
13641static const struct opcode_descriptor addiupc_insn =
13642 { /* "addiu", "mb,$pc,mQ", */ 0x78000000, 0xfc000000 };
13643
13644#define ADDIUPC_REG_FIELD(r) \
13645 (((2 <= (r) && (r) <= 7) ? (r) : ((r) - 16)) << 23)
13646
13647
13648/* Relaxable instructions in a JAL delay slot: MOVE. */
13649
13650/* The 16-bit move has rd in 9:5 and rs in 4:0. The 32-bit moves
13651 (ADDU, OR) have rd in 15:11 and rs in 10:16. */
13652#define MOVE32_RD(opcode) (((opcode) >> 11) & 0x1f)
13653#define MOVE32_RS(opcode) (((opcode) >> 16) & 0x1f)
13654
13655#define MOVE16_RD_FIELD(r) (((r) & 0x1f) << 5)
13656#define MOVE16_RS_FIELD(r) (((r) & 0x1f) )
13657
13658static const struct opcode_descriptor move_insns_32[] = {
df58fc94 13659 { /* "move", "d,s", */ 0x00000290, 0xffe007ff }, /* or d,s,$0 */
40fc1451 13660 { /* "move", "d,s", */ 0x00000150, 0xffe007ff }, /* addu d,s,$0 */
df58fc94
RS
13661 { 0, 0 } /* End marker for find_match(). */
13662};
13663
13664static const struct opcode_descriptor move_insn_16 =
13665 { /* "move", "mp,mj", */ 0x0c00, 0xfc00 };
13666
13667
13668/* NOP instructions. */
13669
13670static const struct opcode_descriptor nop_insn_32 =
13671 { /* "nop", "", */ 0x00000000, 0xffffffff };
13672
13673static const struct opcode_descriptor nop_insn_16 =
13674 { /* "nop", "", */ 0x0c00, 0xffff };
13675
13676
13677/* Instruction match support. */
13678
13679#define MATCH(opcode, insn) ((opcode & insn.mask) == insn.match)
13680
13681static int
13682find_match (unsigned long opcode, const struct opcode_descriptor insn[])
13683{
13684 unsigned long indx;
13685
13686 for (indx = 0; insn[indx].mask != 0; indx++)
13687 if (MATCH (opcode, insn[indx]))
13688 return indx;
13689
13690 return -1;
13691}
13692
13693
13694/* Branch and delay slot decoding support. */
13695
13696/* If PTR points to what *might* be a 16-bit branch or jump, then
13697 return the minimum length of its delay slot, otherwise return 0.
13698 Non-zero results are not definitive as we might be checking against
13699 the second half of another instruction. */
13700
13701static int
13702check_br16_dslot (bfd *abfd, bfd_byte *ptr)
13703{
13704 unsigned long opcode;
13705 int bdsize;
13706
13707 opcode = bfd_get_16 (abfd, ptr);
13708 if (MATCH (opcode, jalr_insn_16_bd32) != 0)
13709 /* 16-bit branch/jump with a 32-bit delay slot. */
13710 bdsize = 4;
13711 else if (MATCH (opcode, jalr_insn_16_bd16) != 0
13712 || find_match (opcode, ds_insns_16_bd16) >= 0)
13713 /* 16-bit branch/jump with a 16-bit delay slot. */
13714 bdsize = 2;
13715 else
13716 /* No delay slot. */
13717 bdsize = 0;
13718
13719 return bdsize;
13720}
13721
13722/* If PTR points to what *might* be a 32-bit branch or jump, then
13723 return the minimum length of its delay slot, otherwise return 0.
13724 Non-zero results are not definitive as we might be checking against
13725 the second half of another instruction. */
13726
13727static int
13728check_br32_dslot (bfd *abfd, bfd_byte *ptr)
13729{
13730 unsigned long opcode;
13731 int bdsize;
13732
d21911ea 13733 opcode = bfd_get_micromips_32 (abfd, ptr);
df58fc94
RS
13734 if (find_match (opcode, ds_insns_32_bd32) >= 0)
13735 /* 32-bit branch/jump with a 32-bit delay slot. */
13736 bdsize = 4;
13737 else if (find_match (opcode, ds_insns_32_bd16) >= 0)
13738 /* 32-bit branch/jump with a 16-bit delay slot. */
13739 bdsize = 2;
13740 else
13741 /* No delay slot. */
13742 bdsize = 0;
13743
13744 return bdsize;
13745}
13746
13747/* If PTR points to a 16-bit branch or jump with a 32-bit delay slot
13748 that doesn't fiddle with REG, then return TRUE, otherwise FALSE. */
13749
13750static bfd_boolean
13751check_br16 (bfd *abfd, bfd_byte *ptr, unsigned long reg)
13752{
13753 unsigned long opcode;
13754
13755 opcode = bfd_get_16 (abfd, ptr);
13756 if (MATCH (opcode, b_insn_16)
13757 /* B16 */
13758 || (MATCH (opcode, jr_insn_16) && reg != JR16_REG (opcode))
13759 /* JR16 */
13760 || (MATCH (opcode, bz_insn_16) && reg != BZ16_REG (opcode))
13761 /* BEQZ16, BNEZ16 */
13762 || (MATCH (opcode, jalr_insn_16_bd32)
13763 /* JALR16 */
13764 && reg != JR16_REG (opcode) && reg != RA))
13765 return TRUE;
13766
13767 return FALSE;
13768}
13769
13770/* If PTR points to a 32-bit branch or jump that doesn't fiddle with REG,
13771 then return TRUE, otherwise FALSE. */
13772
f41e5fcc 13773static bfd_boolean
df58fc94
RS
13774check_br32 (bfd *abfd, bfd_byte *ptr, unsigned long reg)
13775{
13776 unsigned long opcode;
13777
d21911ea 13778 opcode = bfd_get_micromips_32 (abfd, ptr);
df58fc94
RS
13779 if (MATCH (opcode, j_insn_32)
13780 /* J */
13781 || MATCH (opcode, bc_insn_32)
13782 /* BC1F, BC1T, BC2F, BC2T */
13783 || (MATCH (opcode, jal_x_insn_32_bd32) && reg != RA)
13784 /* JAL, JALX */
13785 || (MATCH (opcode, bz_insn_32) && reg != OP32_SREG (opcode))
13786 /* BGEZ, BGTZ, BLEZ, BLTZ */
13787 || (MATCH (opcode, bzal_insn_32)
13788 /* BGEZAL, BLTZAL */
13789 && reg != OP32_SREG (opcode) && reg != RA)
13790 || ((MATCH (opcode, jalr_insn_32) || MATCH (opcode, beq_insn_32))
13791 /* JALR, JALR.HB, BEQ, BNE */
13792 && reg != OP32_SREG (opcode) && reg != OP32_TREG (opcode)))
13793 return TRUE;
13794
13795 return FALSE;
13796}
13797
80cab405
MR
13798/* If the instruction encoding at PTR and relocations [INTERNAL_RELOCS,
13799 IRELEND) at OFFSET indicate that there must be a compact branch there,
13800 then return TRUE, otherwise FALSE. */
df58fc94
RS
13801
13802static bfd_boolean
80cab405
MR
13803check_relocated_bzc (bfd *abfd, const bfd_byte *ptr, bfd_vma offset,
13804 const Elf_Internal_Rela *internal_relocs,
13805 const Elf_Internal_Rela *irelend)
df58fc94 13806{
80cab405
MR
13807 const Elf_Internal_Rela *irel;
13808 unsigned long opcode;
13809
d21911ea 13810 opcode = bfd_get_micromips_32 (abfd, ptr);
80cab405
MR
13811 if (find_match (opcode, bzc_insns_32) < 0)
13812 return FALSE;
df58fc94
RS
13813
13814 for (irel = internal_relocs; irel < irelend; irel++)
80cab405
MR
13815 if (irel->r_offset == offset
13816 && ELF32_R_TYPE (irel->r_info) == R_MICROMIPS_PC16_S1)
13817 return TRUE;
13818
df58fc94
RS
13819 return FALSE;
13820}
80cab405
MR
13821
13822/* Bitsize checking. */
13823#define IS_BITSIZE(val, N) \
13824 (((((val) & ((1ULL << (N)) - 1)) ^ (1ULL << ((N) - 1))) \
13825 - (1ULL << ((N) - 1))) == (val))
13826
df58fc94
RS
13827\f
13828bfd_boolean
13829_bfd_mips_elf_relax_section (bfd *abfd, asection *sec,
13830 struct bfd_link_info *link_info,
13831 bfd_boolean *again)
13832{
833794fc 13833 bfd_boolean insn32 = mips_elf_hash_table (link_info)->insn32;
df58fc94
RS
13834 Elf_Internal_Shdr *symtab_hdr;
13835 Elf_Internal_Rela *internal_relocs;
13836 Elf_Internal_Rela *irel, *irelend;
13837 bfd_byte *contents = NULL;
13838 Elf_Internal_Sym *isymbuf = NULL;
13839
13840 /* Assume nothing changes. */
13841 *again = FALSE;
13842
13843 /* We don't have to do anything for a relocatable link, if
13844 this section does not have relocs, or if this is not a
13845 code section. */
13846
0e1862bb 13847 if (bfd_link_relocatable (link_info)
df58fc94
RS
13848 || (sec->flags & SEC_RELOC) == 0
13849 || sec->reloc_count == 0
13850 || (sec->flags & SEC_CODE) == 0)
13851 return TRUE;
13852
13853 symtab_hdr = &elf_tdata (abfd)->symtab_hdr;
13854
13855 /* Get a copy of the native relocations. */
13856 internal_relocs = (_bfd_elf_link_read_relocs
2c3fc389 13857 (abfd, sec, NULL, (Elf_Internal_Rela *) NULL,
df58fc94
RS
13858 link_info->keep_memory));
13859 if (internal_relocs == NULL)
13860 goto error_return;
13861
13862 /* Walk through them looking for relaxing opportunities. */
13863 irelend = internal_relocs + sec->reloc_count;
13864 for (irel = internal_relocs; irel < irelend; irel++)
13865 {
13866 unsigned long r_symndx = ELF32_R_SYM (irel->r_info);
13867 unsigned int r_type = ELF32_R_TYPE (irel->r_info);
13868 bfd_boolean target_is_micromips_code_p;
13869 unsigned long opcode;
13870 bfd_vma symval;
13871 bfd_vma pcrval;
2309ddf2 13872 bfd_byte *ptr;
df58fc94
RS
13873 int fndopc;
13874
13875 /* The number of bytes to delete for relaxation and from where
07d6d2b8 13876 to delete these bytes starting at irel->r_offset. */
df58fc94
RS
13877 int delcnt = 0;
13878 int deloff = 0;
13879
13880 /* If this isn't something that can be relaxed, then ignore
07d6d2b8 13881 this reloc. */
df58fc94
RS
13882 if (r_type != R_MICROMIPS_HI16
13883 && r_type != R_MICROMIPS_PC16_S1
2309ddf2 13884 && r_type != R_MICROMIPS_26_S1)
df58fc94
RS
13885 continue;
13886
13887 /* Get the section contents if we haven't done so already. */
13888 if (contents == NULL)
13889 {
13890 /* Get cached copy if it exists. */
13891 if (elf_section_data (sec)->this_hdr.contents != NULL)
13892 contents = elf_section_data (sec)->this_hdr.contents;
13893 /* Go get them off disk. */
13894 else if (!bfd_malloc_and_get_section (abfd, sec, &contents))
13895 goto error_return;
13896 }
2309ddf2 13897 ptr = contents + irel->r_offset;
df58fc94
RS
13898
13899 /* Read this BFD's local symbols if we haven't done so already. */
13900 if (isymbuf == NULL && symtab_hdr->sh_info != 0)
13901 {
13902 isymbuf = (Elf_Internal_Sym *) symtab_hdr->contents;
13903 if (isymbuf == NULL)
13904 isymbuf = bfd_elf_get_elf_syms (abfd, symtab_hdr,
13905 symtab_hdr->sh_info, 0,
13906 NULL, NULL, NULL);
13907 if (isymbuf == NULL)
13908 goto error_return;
13909 }
13910
13911 /* Get the value of the symbol referred to by the reloc. */
13912 if (r_symndx < symtab_hdr->sh_info)
13913 {
13914 /* A local symbol. */
13915 Elf_Internal_Sym *isym;
13916 asection *sym_sec;
13917
13918 isym = isymbuf + r_symndx;
13919 if (isym->st_shndx == SHN_UNDEF)
13920 sym_sec = bfd_und_section_ptr;
13921 else if (isym->st_shndx == SHN_ABS)
13922 sym_sec = bfd_abs_section_ptr;
13923 else if (isym->st_shndx == SHN_COMMON)
13924 sym_sec = bfd_com_section_ptr;
13925 else
13926 sym_sec = bfd_section_from_elf_index (abfd, isym->st_shndx);
13927 symval = (isym->st_value
13928 + sym_sec->output_section->vma
13929 + sym_sec->output_offset);
13930 target_is_micromips_code_p = ELF_ST_IS_MICROMIPS (isym->st_other);
13931 }
13932 else
13933 {
13934 unsigned long indx;
13935 struct elf_link_hash_entry *h;
13936
13937 /* An external symbol. */
13938 indx = r_symndx - symtab_hdr->sh_info;
13939 h = elf_sym_hashes (abfd)[indx];
13940 BFD_ASSERT (h != NULL);
13941
13942 if (h->root.type != bfd_link_hash_defined
13943 && h->root.type != bfd_link_hash_defweak)
13944 /* This appears to be a reference to an undefined
13945 symbol. Just ignore it -- it will be caught by the
13946 regular reloc processing. */
13947 continue;
13948
13949 symval = (h->root.u.def.value
13950 + h->root.u.def.section->output_section->vma
13951 + h->root.u.def.section->output_offset);
13952 target_is_micromips_code_p = (!h->needs_plt
13953 && ELF_ST_IS_MICROMIPS (h->other));
13954 }
13955
13956
13957 /* For simplicity of coding, we are going to modify the
07d6d2b8
AM
13958 section contents, the section relocs, and the BFD symbol
13959 table. We must tell the rest of the code not to free up this
13960 information. It would be possible to instead create a table
13961 of changes which have to be made, as is done in coff-mips.c;
13962 that would be more work, but would require less memory when
13963 the linker is run. */
df58fc94
RS
13964
13965 /* Only 32-bit instructions relaxed. */
13966 if (irel->r_offset + 4 > sec->size)
13967 continue;
13968
d21911ea 13969 opcode = bfd_get_micromips_32 (abfd, ptr);
df58fc94
RS
13970
13971 /* This is the pc-relative distance from the instruction the
07d6d2b8 13972 relocation is applied to, to the symbol referred. */
df58fc94
RS
13973 pcrval = (symval
13974 - (sec->output_section->vma + sec->output_offset)
13975 - irel->r_offset);
13976
13977 /* R_MICROMIPS_HI16 / LUI relaxation to nil, performing relaxation
07d6d2b8
AM
13978 of corresponding R_MICROMIPS_LO16 to R_MICROMIPS_HI0_LO16 or
13979 R_MICROMIPS_PC23_S2. The R_MICROMIPS_PC23_S2 condition is
df58fc94 13980
07d6d2b8 13981 (symval % 4 == 0 && IS_BITSIZE (pcrval, 25))
df58fc94 13982
07d6d2b8
AM
13983 where pcrval has first to be adjusted to apply against the LO16
13984 location (we make the adjustment later on, when we have figured
13985 out the offset). */
df58fc94
RS
13986 if (r_type == R_MICROMIPS_HI16 && MATCH (opcode, lui_insn))
13987 {
80cab405 13988 bfd_boolean bzc = FALSE;
df58fc94
RS
13989 unsigned long nextopc;
13990 unsigned long reg;
13991 bfd_vma offset;
13992
13993 /* Give up if the previous reloc was a HI16 against this symbol
13994 too. */
13995 if (irel > internal_relocs
13996 && ELF32_R_TYPE (irel[-1].r_info) == R_MICROMIPS_HI16
13997 && ELF32_R_SYM (irel[-1].r_info) == r_symndx)
13998 continue;
13999
14000 /* Or if the next reloc is not a LO16 against this symbol. */
14001 if (irel + 1 >= irelend
14002 || ELF32_R_TYPE (irel[1].r_info) != R_MICROMIPS_LO16
14003 || ELF32_R_SYM (irel[1].r_info) != r_symndx)
14004 continue;
14005
14006 /* Or if the second next reloc is a LO16 against this symbol too. */
14007 if (irel + 2 >= irelend
14008 && ELF32_R_TYPE (irel[2].r_info) == R_MICROMIPS_LO16
14009 && ELF32_R_SYM (irel[2].r_info) == r_symndx)
14010 continue;
14011
80cab405
MR
14012 /* See if the LUI instruction *might* be in a branch delay slot.
14013 We check whether what looks like a 16-bit branch or jump is
14014 actually an immediate argument to a compact branch, and let
14015 it through if so. */
df58fc94 14016 if (irel->r_offset >= 2
2309ddf2 14017 && check_br16_dslot (abfd, ptr - 2)
df58fc94 14018 && !(irel->r_offset >= 4
80cab405
MR
14019 && (bzc = check_relocated_bzc (abfd,
14020 ptr - 4, irel->r_offset - 4,
14021 internal_relocs, irelend))))
df58fc94
RS
14022 continue;
14023 if (irel->r_offset >= 4
80cab405 14024 && !bzc
2309ddf2 14025 && check_br32_dslot (abfd, ptr - 4))
df58fc94
RS
14026 continue;
14027
14028 reg = OP32_SREG (opcode);
14029
14030 /* We only relax adjacent instructions or ones separated with
14031 a branch or jump that has a delay slot. The branch or jump
14032 must not fiddle with the register used to hold the address.
14033 Subtract 4 for the LUI itself. */
14034 offset = irel[1].r_offset - irel[0].r_offset;
14035 switch (offset - 4)
14036 {
14037 case 0:
14038 break;
14039 case 2:
2309ddf2 14040 if (check_br16 (abfd, ptr + 4, reg))
df58fc94
RS
14041 break;
14042 continue;
14043 case 4:
2309ddf2 14044 if (check_br32 (abfd, ptr + 4, reg))
df58fc94
RS
14045 break;
14046 continue;
14047 default:
14048 continue;
14049 }
14050
d21911ea 14051 nextopc = bfd_get_micromips_32 (abfd, contents + irel[1].r_offset);
df58fc94
RS
14052
14053 /* Give up unless the same register is used with both
14054 relocations. */
14055 if (OP32_SREG (nextopc) != reg)
14056 continue;
14057
14058 /* Now adjust pcrval, subtracting the offset to the LO16 reloc
14059 and rounding up to take masking of the two LSBs into account. */
14060 pcrval = ((pcrval - offset + 3) | 3) ^ 3;
14061
14062 /* R_MICROMIPS_LO16 relaxation to R_MICROMIPS_HI0_LO16. */
14063 if (IS_BITSIZE (symval, 16))
14064 {
14065 /* Fix the relocation's type. */
14066 irel[1].r_info = ELF32_R_INFO (r_symndx, R_MICROMIPS_HI0_LO16);
14067
14068 /* Instructions using R_MICROMIPS_LO16 have the base or
07d6d2b8
AM
14069 source register in bits 20:16. This register becomes $0
14070 (zero) as the result of the R_MICROMIPS_HI16 being 0. */
df58fc94
RS
14071 nextopc &= ~0x001f0000;
14072 bfd_put_16 (abfd, (nextopc >> 16) & 0xffff,
14073 contents + irel[1].r_offset);
14074 }
14075
14076 /* R_MICROMIPS_LO16 / ADDIU relaxation to R_MICROMIPS_PC23_S2.
14077 We add 4 to take LUI deletion into account while checking
14078 the PC-relative distance. */
14079 else if (symval % 4 == 0
14080 && IS_BITSIZE (pcrval + 4, 25)
14081 && MATCH (nextopc, addiu_insn)
14082 && OP32_TREG (nextopc) == OP32_SREG (nextopc)
14083 && OP16_VALID_REG (OP32_TREG (nextopc)))
14084 {
14085 /* Fix the relocation's type. */
14086 irel[1].r_info = ELF32_R_INFO (r_symndx, R_MICROMIPS_PC23_S2);
14087
14088 /* Replace ADDIU with the ADDIUPC version. */
14089 nextopc = (addiupc_insn.match
14090 | ADDIUPC_REG_FIELD (OP32_TREG (nextopc)));
14091
d21911ea
MR
14092 bfd_put_micromips_32 (abfd, nextopc,
14093 contents + irel[1].r_offset);
df58fc94
RS
14094 }
14095
14096 /* Can't do anything, give up, sigh... */
14097 else
14098 continue;
14099
14100 /* Fix the relocation's type. */
14101 irel->r_info = ELF32_R_INFO (r_symndx, R_MIPS_NONE);
14102
14103 /* Delete the LUI instruction: 4 bytes at irel->r_offset. */
14104 delcnt = 4;
14105 deloff = 0;
14106 }
14107
14108 /* Compact branch relaxation -- due to the multitude of macros
07d6d2b8
AM
14109 employed by the compiler/assembler, compact branches are not
14110 always generated. Obviously, this can/will be fixed elsewhere,
14111 but there is no drawback in double checking it here. */
df58fc94
RS
14112 else if (r_type == R_MICROMIPS_PC16_S1
14113 && irel->r_offset + 5 < sec->size
14114 && ((fndopc = find_match (opcode, bz_rs_insns_32)) >= 0
14115 || (fndopc = find_match (opcode, bz_rt_insns_32)) >= 0)
833794fc
MR
14116 && ((!insn32
14117 && (delcnt = MATCH (bfd_get_16 (abfd, ptr + 4),
14118 nop_insn_16) ? 2 : 0))
14119 || (irel->r_offset + 7 < sec->size
14120 && (delcnt = MATCH (bfd_get_micromips_32 (abfd,
14121 ptr + 4),
14122 nop_insn_32) ? 4 : 0))))
df58fc94
RS
14123 {
14124 unsigned long reg;
14125
14126 reg = OP32_SREG (opcode) ? OP32_SREG (opcode) : OP32_TREG (opcode);
14127
14128 /* Replace BEQZ/BNEZ with the compact version. */
14129 opcode = (bzc_insns_32[fndopc].match
14130 | BZC32_REG_FIELD (reg)
14131 | (opcode & 0xffff)); /* Addend value. */
14132
d21911ea 14133 bfd_put_micromips_32 (abfd, opcode, ptr);
df58fc94 14134
833794fc
MR
14135 /* Delete the delay slot NOP: two or four bytes from
14136 irel->offset + 4; delcnt has already been set above. */
df58fc94
RS
14137 deloff = 4;
14138 }
14139
14140 /* R_MICROMIPS_PC16_S1 relaxation to R_MICROMIPS_PC10_S1. We need
07d6d2b8 14141 to check the distance from the next instruction, so subtract 2. */
833794fc
MR
14142 else if (!insn32
14143 && r_type == R_MICROMIPS_PC16_S1
df58fc94
RS
14144 && IS_BITSIZE (pcrval - 2, 11)
14145 && find_match (opcode, b_insns_32) >= 0)
14146 {
14147 /* Fix the relocation's type. */
14148 irel->r_info = ELF32_R_INFO (r_symndx, R_MICROMIPS_PC10_S1);
14149
a8685210 14150 /* Replace the 32-bit opcode with a 16-bit opcode. */
df58fc94
RS
14151 bfd_put_16 (abfd,
14152 (b_insn_16.match
14153 | (opcode & 0x3ff)), /* Addend value. */
2309ddf2 14154 ptr);
df58fc94
RS
14155
14156 /* Delete 2 bytes from irel->r_offset + 2. */
14157 delcnt = 2;
14158 deloff = 2;
14159 }
14160
14161 /* R_MICROMIPS_PC16_S1 relaxation to R_MICROMIPS_PC7_S1. We need
07d6d2b8 14162 to check the distance from the next instruction, so subtract 2. */
833794fc
MR
14163 else if (!insn32
14164 && r_type == R_MICROMIPS_PC16_S1
df58fc94
RS
14165 && IS_BITSIZE (pcrval - 2, 8)
14166 && (((fndopc = find_match (opcode, bz_rs_insns_32)) >= 0
14167 && OP16_VALID_REG (OP32_SREG (opcode)))
14168 || ((fndopc = find_match (opcode, bz_rt_insns_32)) >= 0
14169 && OP16_VALID_REG (OP32_TREG (opcode)))))
14170 {
14171 unsigned long reg;
14172
14173 reg = OP32_SREG (opcode) ? OP32_SREG (opcode) : OP32_TREG (opcode);
14174
14175 /* Fix the relocation's type. */
14176 irel->r_info = ELF32_R_INFO (r_symndx, R_MICROMIPS_PC7_S1);
14177
a8685210 14178 /* Replace the 32-bit opcode with a 16-bit opcode. */
df58fc94
RS
14179 bfd_put_16 (abfd,
14180 (bz_insns_16[fndopc].match
14181 | BZ16_REG_FIELD (reg)
14182 | (opcode & 0x7f)), /* Addend value. */
2309ddf2 14183 ptr);
df58fc94
RS
14184
14185 /* Delete 2 bytes from irel->r_offset + 2. */
14186 delcnt = 2;
14187 deloff = 2;
14188 }
14189
14190 /* R_MICROMIPS_26_S1 -- JAL to JALS relaxation for microMIPS targets. */
833794fc
MR
14191 else if (!insn32
14192 && r_type == R_MICROMIPS_26_S1
df58fc94
RS
14193 && target_is_micromips_code_p
14194 && irel->r_offset + 7 < sec->size
14195 && MATCH (opcode, jal_insn_32_bd32))
14196 {
14197 unsigned long n32opc;
14198 bfd_boolean relaxed = FALSE;
14199
d21911ea 14200 n32opc = bfd_get_micromips_32 (abfd, ptr + 4);
df58fc94
RS
14201
14202 if (MATCH (n32opc, nop_insn_32))
14203 {
14204 /* Replace delay slot 32-bit NOP with a 16-bit NOP. */
2309ddf2 14205 bfd_put_16 (abfd, nop_insn_16.match, ptr + 4);
df58fc94
RS
14206
14207 relaxed = TRUE;
14208 }
14209 else if (find_match (n32opc, move_insns_32) >= 0)
14210 {
14211 /* Replace delay slot 32-bit MOVE with 16-bit MOVE. */
14212 bfd_put_16 (abfd,
14213 (move_insn_16.match
14214 | MOVE16_RD_FIELD (MOVE32_RD (n32opc))
14215 | MOVE16_RS_FIELD (MOVE32_RS (n32opc))),
2309ddf2 14216 ptr + 4);
df58fc94
RS
14217
14218 relaxed = TRUE;
14219 }
14220 /* Other 32-bit instructions relaxable to 16-bit
14221 instructions will be handled here later. */
14222
14223 if (relaxed)
14224 {
14225 /* JAL with 32-bit delay slot that is changed to a JALS
07d6d2b8 14226 with 16-bit delay slot. */
d21911ea 14227 bfd_put_micromips_32 (abfd, jal_insn_32_bd16.match, ptr);
df58fc94
RS
14228
14229 /* Delete 2 bytes from irel->r_offset + 6. */
14230 delcnt = 2;
14231 deloff = 6;
14232 }
14233 }
14234
14235 if (delcnt != 0)
14236 {
14237 /* Note that we've changed the relocs, section contents, etc. */
14238 elf_section_data (sec)->relocs = internal_relocs;
14239 elf_section_data (sec)->this_hdr.contents = contents;
14240 symtab_hdr->contents = (unsigned char *) isymbuf;
14241
14242 /* Delete bytes depending on the delcnt and deloff. */
14243 if (!mips_elf_relax_delete_bytes (abfd, sec,
14244 irel->r_offset + deloff, delcnt))
14245 goto error_return;
14246
14247 /* That will change things, so we should relax again.
14248 Note that this is not required, and it may be slow. */
14249 *again = TRUE;
14250 }
14251 }
14252
14253 if (isymbuf != NULL
14254 && symtab_hdr->contents != (unsigned char *) isymbuf)
14255 {
14256 if (! link_info->keep_memory)
14257 free (isymbuf);
14258 else
14259 {
14260 /* Cache the symbols for elf_link_input_bfd. */
14261 symtab_hdr->contents = (unsigned char *) isymbuf;
14262 }
14263 }
14264
14265 if (contents != NULL
14266 && elf_section_data (sec)->this_hdr.contents != contents)
14267 {
14268 if (! link_info->keep_memory)
14269 free (contents);
14270 else
14271 {
14272 /* Cache the section contents for elf_link_input_bfd. */
14273 elf_section_data (sec)->this_hdr.contents = contents;
14274 }
14275 }
14276
14277 if (internal_relocs != NULL
14278 && elf_section_data (sec)->relocs != internal_relocs)
14279 free (internal_relocs);
14280
14281 return TRUE;
14282
14283 error_return:
14284 if (isymbuf != NULL
14285 && symtab_hdr->contents != (unsigned char *) isymbuf)
14286 free (isymbuf);
14287 if (contents != NULL
14288 && elf_section_data (sec)->this_hdr.contents != contents)
14289 free (contents);
14290 if (internal_relocs != NULL
14291 && elf_section_data (sec)->relocs != internal_relocs)
14292 free (internal_relocs);
14293
14294 return FALSE;
14295}
14296\f
b49e97c9
TS
14297/* Create a MIPS ELF linker hash table. */
14298
14299struct bfd_link_hash_table *
9719ad41 14300_bfd_mips_elf_link_hash_table_create (bfd *abfd)
b49e97c9
TS
14301{
14302 struct mips_elf_link_hash_table *ret;
14303 bfd_size_type amt = sizeof (struct mips_elf_link_hash_table);
14304
7bf52ea2 14305 ret = bfd_zmalloc (amt);
9719ad41 14306 if (ret == NULL)
b49e97c9
TS
14307 return NULL;
14308
66eb6687
AM
14309 if (!_bfd_elf_link_hash_table_init (&ret->root, abfd,
14310 mips_elf_link_hash_newfunc,
4dfe6ac6
NC
14311 sizeof (struct mips_elf_link_hash_entry),
14312 MIPS_ELF_DATA))
b49e97c9 14313 {
e2d34d7d 14314 free (ret);
b49e97c9
TS
14315 return NULL;
14316 }
1bbce132
MR
14317 ret->root.init_plt_refcount.plist = NULL;
14318 ret->root.init_plt_offset.plist = NULL;
b49e97c9 14319
b49e97c9
TS
14320 return &ret->root.root;
14321}
0a44bf69
RS
14322
14323/* Likewise, but indicate that the target is VxWorks. */
14324
14325struct bfd_link_hash_table *
14326_bfd_mips_vxworks_link_hash_table_create (bfd *abfd)
14327{
14328 struct bfd_link_hash_table *ret;
14329
14330 ret = _bfd_mips_elf_link_hash_table_create (abfd);
14331 if (ret)
14332 {
14333 struct mips_elf_link_hash_table *htab;
14334
14335 htab = (struct mips_elf_link_hash_table *) ret;
861fb55a
DJ
14336 htab->use_plts_and_copy_relocs = TRUE;
14337 htab->is_vxworks = TRUE;
0a44bf69
RS
14338 }
14339 return ret;
14340}
861fb55a
DJ
14341
14342/* A function that the linker calls if we are allowed to use PLTs
14343 and copy relocs. */
14344
14345void
14346_bfd_mips_elf_use_plts_and_copy_relocs (struct bfd_link_info *info)
14347{
14348 mips_elf_hash_table (info)->use_plts_and_copy_relocs = TRUE;
14349}
833794fc
MR
14350
14351/* A function that the linker calls to select between all or only
8b10b0b3 14352 32-bit microMIPS instructions, and between making or ignoring
47275900
MR
14353 branch relocation checks for invalid transitions between ISA modes.
14354 Also record whether we have been configured for a GNU target. */
833794fc
MR
14355
14356void
8b10b0b3 14357_bfd_mips_elf_linker_flags (struct bfd_link_info *info, bfd_boolean insn32,
47275900
MR
14358 bfd_boolean ignore_branch_isa,
14359 bfd_boolean gnu_target)
833794fc 14360{
8b10b0b3
MR
14361 mips_elf_hash_table (info)->insn32 = insn32;
14362 mips_elf_hash_table (info)->ignore_branch_isa = ignore_branch_isa;
47275900 14363 mips_elf_hash_table (info)->gnu_target = gnu_target;
833794fc 14364}
3734320d
MF
14365
14366/* A function that the linker calls to enable use of compact branches in
14367 linker generated code for MIPSR6. */
14368
14369void
14370_bfd_mips_elf_compact_branches (struct bfd_link_info *info, bfd_boolean on)
14371{
14372 mips_elf_hash_table (info)->compact_branches = on;
14373}
14374
b49e97c9 14375\f
c97c330b
MF
14376/* Structure for saying that BFD machine EXTENSION extends BASE. */
14377
14378struct mips_mach_extension
14379{
14380 unsigned long extension, base;
14381};
14382
14383
14384/* An array describing how BFD machines relate to one another. The entries
14385 are ordered topologically with MIPS I extensions listed last. */
14386
14387static const struct mips_mach_extension mips_mach_extensions[] =
14388{
14389 /* MIPS64r2 extensions. */
14390 { bfd_mach_mips_octeon3, bfd_mach_mips_octeon2 },
14391 { bfd_mach_mips_octeon2, bfd_mach_mips_octeonp },
14392 { bfd_mach_mips_octeonp, bfd_mach_mips_octeon },
14393 { bfd_mach_mips_octeon, bfd_mach_mipsisa64r2 },
9108bc33 14394 { bfd_mach_mips_gs264e, bfd_mach_mips_gs464e },
bd782c07 14395 { bfd_mach_mips_gs464e, bfd_mach_mips_gs464 },
ac8cb70f 14396 { bfd_mach_mips_gs464, bfd_mach_mipsisa64r2 },
c97c330b
MF
14397
14398 /* MIPS64 extensions. */
14399 { bfd_mach_mipsisa64r2, bfd_mach_mipsisa64 },
14400 { bfd_mach_mips_sb1, bfd_mach_mipsisa64 },
14401 { bfd_mach_mips_xlr, bfd_mach_mipsisa64 },
14402
14403 /* MIPS V extensions. */
14404 { bfd_mach_mipsisa64, bfd_mach_mips5 },
14405
14406 /* R10000 extensions. */
14407 { bfd_mach_mips12000, bfd_mach_mips10000 },
14408 { bfd_mach_mips14000, bfd_mach_mips10000 },
14409 { bfd_mach_mips16000, bfd_mach_mips10000 },
14410
14411 /* R5000 extensions. Note: the vr5500 ISA is an extension of the core
14412 vr5400 ISA, but doesn't include the multimedia stuff. It seems
14413 better to allow vr5400 and vr5500 code to be merged anyway, since
14414 many libraries will just use the core ISA. Perhaps we could add
14415 some sort of ASE flag if this ever proves a problem. */
14416 { bfd_mach_mips5500, bfd_mach_mips5400 },
14417 { bfd_mach_mips5400, bfd_mach_mips5000 },
14418
14419 /* MIPS IV extensions. */
14420 { bfd_mach_mips5, bfd_mach_mips8000 },
14421 { bfd_mach_mips10000, bfd_mach_mips8000 },
14422 { bfd_mach_mips5000, bfd_mach_mips8000 },
14423 { bfd_mach_mips7000, bfd_mach_mips8000 },
14424 { bfd_mach_mips9000, bfd_mach_mips8000 },
14425
14426 /* VR4100 extensions. */
14427 { bfd_mach_mips4120, bfd_mach_mips4100 },
14428 { bfd_mach_mips4111, bfd_mach_mips4100 },
14429
14430 /* MIPS III extensions. */
14431 { bfd_mach_mips_loongson_2e, bfd_mach_mips4000 },
14432 { bfd_mach_mips_loongson_2f, bfd_mach_mips4000 },
14433 { bfd_mach_mips8000, bfd_mach_mips4000 },
14434 { bfd_mach_mips4650, bfd_mach_mips4000 },
14435 { bfd_mach_mips4600, bfd_mach_mips4000 },
14436 { bfd_mach_mips4400, bfd_mach_mips4000 },
14437 { bfd_mach_mips4300, bfd_mach_mips4000 },
14438 { bfd_mach_mips4100, bfd_mach_mips4000 },
c97c330b
MF
14439 { bfd_mach_mips5900, bfd_mach_mips4000 },
14440
38bf472a
MR
14441 /* MIPS32r3 extensions. */
14442 { bfd_mach_mips_interaptiv_mr2, bfd_mach_mipsisa32r3 },
14443
14444 /* MIPS32r2 extensions. */
14445 { bfd_mach_mipsisa32r3, bfd_mach_mipsisa32r2 },
14446
c97c330b
MF
14447 /* MIPS32 extensions. */
14448 { bfd_mach_mipsisa32r2, bfd_mach_mipsisa32 },
14449
14450 /* MIPS II extensions. */
14451 { bfd_mach_mips4000, bfd_mach_mips6000 },
14452 { bfd_mach_mipsisa32, bfd_mach_mips6000 },
b417536f 14453 { bfd_mach_mips4010, bfd_mach_mips6000 },
c97c330b
MF
14454
14455 /* MIPS I extensions. */
14456 { bfd_mach_mips6000, bfd_mach_mips3000 },
14457 { bfd_mach_mips3900, bfd_mach_mips3000 }
14458};
14459
14460/* Return true if bfd machine EXTENSION is an extension of machine BASE. */
14461
14462static bfd_boolean
14463mips_mach_extends_p (unsigned long base, unsigned long extension)
14464{
14465 size_t i;
14466
14467 if (extension == base)
14468 return TRUE;
14469
14470 if (base == bfd_mach_mipsisa32
14471 && mips_mach_extends_p (bfd_mach_mipsisa64, extension))
14472 return TRUE;
14473
14474 if (base == bfd_mach_mipsisa32r2
14475 && mips_mach_extends_p (bfd_mach_mipsisa64r2, extension))
14476 return TRUE;
14477
14478 for (i = 0; i < ARRAY_SIZE (mips_mach_extensions); i++)
14479 if (extension == mips_mach_extensions[i].extension)
14480 {
14481 extension = mips_mach_extensions[i].base;
14482 if (extension == base)
14483 return TRUE;
14484 }
14485
14486 return FALSE;
14487}
14488
14489/* Return the BFD mach for each .MIPS.abiflags ISA Extension. */
14490
14491static unsigned long
14492bfd_mips_isa_ext_mach (unsigned int isa_ext)
14493{
14494 switch (isa_ext)
14495 {
07d6d2b8
AM
14496 case AFL_EXT_3900: return bfd_mach_mips3900;
14497 case AFL_EXT_4010: return bfd_mach_mips4010;
14498 case AFL_EXT_4100: return bfd_mach_mips4100;
14499 case AFL_EXT_4111: return bfd_mach_mips4111;
14500 case AFL_EXT_4120: return bfd_mach_mips4120;
14501 case AFL_EXT_4650: return bfd_mach_mips4650;
14502 case AFL_EXT_5400: return bfd_mach_mips5400;
14503 case AFL_EXT_5500: return bfd_mach_mips5500;
14504 case AFL_EXT_5900: return bfd_mach_mips5900;
14505 case AFL_EXT_10000: return bfd_mach_mips10000;
c97c330b
MF
14506 case AFL_EXT_LOONGSON_2E: return bfd_mach_mips_loongson_2e;
14507 case AFL_EXT_LOONGSON_2F: return bfd_mach_mips_loongson_2f;
07d6d2b8 14508 case AFL_EXT_SB1: return bfd_mach_mips_sb1;
c97c330b
MF
14509 case AFL_EXT_OCTEON: return bfd_mach_mips_octeon;
14510 case AFL_EXT_OCTEONP: return bfd_mach_mips_octeonp;
14511 case AFL_EXT_OCTEON2: return bfd_mach_mips_octeon2;
07d6d2b8
AM
14512 case AFL_EXT_XLR: return bfd_mach_mips_xlr;
14513 default: return bfd_mach_mips3000;
c97c330b
MF
14514 }
14515}
14516
351cdf24
MF
14517/* Return the .MIPS.abiflags value representing each ISA Extension. */
14518
14519unsigned int
14520bfd_mips_isa_ext (bfd *abfd)
14521{
14522 switch (bfd_get_mach (abfd))
14523 {
07d6d2b8
AM
14524 case bfd_mach_mips3900: return AFL_EXT_3900;
14525 case bfd_mach_mips4010: return AFL_EXT_4010;
14526 case bfd_mach_mips4100: return AFL_EXT_4100;
14527 case bfd_mach_mips4111: return AFL_EXT_4111;
14528 case bfd_mach_mips4120: return AFL_EXT_4120;
14529 case bfd_mach_mips4650: return AFL_EXT_4650;
14530 case bfd_mach_mips5400: return AFL_EXT_5400;
14531 case bfd_mach_mips5500: return AFL_EXT_5500;
14532 case bfd_mach_mips5900: return AFL_EXT_5900;
14533 case bfd_mach_mips10000: return AFL_EXT_10000;
c97c330b
MF
14534 case bfd_mach_mips_loongson_2e: return AFL_EXT_LOONGSON_2E;
14535 case bfd_mach_mips_loongson_2f: return AFL_EXT_LOONGSON_2F;
07d6d2b8
AM
14536 case bfd_mach_mips_sb1: return AFL_EXT_SB1;
14537 case bfd_mach_mips_octeon: return AFL_EXT_OCTEON;
14538 case bfd_mach_mips_octeonp: return AFL_EXT_OCTEONP;
14539 case bfd_mach_mips_octeon3: return AFL_EXT_OCTEON3;
14540 case bfd_mach_mips_octeon2: return AFL_EXT_OCTEON2;
14541 case bfd_mach_mips_xlr: return AFL_EXT_XLR;
38bf472a
MR
14542 case bfd_mach_mips_interaptiv_mr2:
14543 return AFL_EXT_INTERAPTIV_MR2;
07d6d2b8 14544 default: return 0;
c97c330b
MF
14545 }
14546}
14547
14548/* Encode ISA level and revision as a single value. */
14549#define LEVEL_REV(LEV,REV) ((LEV) << 3 | (REV))
14550
14551/* Decode a single value into level and revision. */
14552#define ISA_LEVEL(LEVREV) ((LEVREV) >> 3)
14553#define ISA_REV(LEVREV) ((LEVREV) & 0x7)
351cdf24
MF
14554
14555/* Update the isa_level, isa_rev, isa_ext fields of abiflags. */
14556
14557static void
14558update_mips_abiflags_isa (bfd *abfd, Elf_Internal_ABIFlags_v0 *abiflags)
14559{
c97c330b 14560 int new_isa = 0;
351cdf24
MF
14561 switch (elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH)
14562 {
c97c330b
MF
14563 case E_MIPS_ARCH_1: new_isa = LEVEL_REV (1, 0); break;
14564 case E_MIPS_ARCH_2: new_isa = LEVEL_REV (2, 0); break;
14565 case E_MIPS_ARCH_3: new_isa = LEVEL_REV (3, 0); break;
14566 case E_MIPS_ARCH_4: new_isa = LEVEL_REV (4, 0); break;
14567 case E_MIPS_ARCH_5: new_isa = LEVEL_REV (5, 0); break;
14568 case E_MIPS_ARCH_32: new_isa = LEVEL_REV (32, 1); break;
14569 case E_MIPS_ARCH_32R2: new_isa = LEVEL_REV (32, 2); break;
14570 case E_MIPS_ARCH_32R6: new_isa = LEVEL_REV (32, 6); break;
14571 case E_MIPS_ARCH_64: new_isa = LEVEL_REV (64, 1); break;
14572 case E_MIPS_ARCH_64R2: new_isa = LEVEL_REV (64, 2); break;
14573 case E_MIPS_ARCH_64R6: new_isa = LEVEL_REV (64, 6); break;
351cdf24 14574 default:
4eca0228 14575 _bfd_error_handler
695344c0 14576 /* xgettext:c-format */
2c1c9679 14577 (_("%pB: unknown architecture %s"),
351cdf24
MF
14578 abfd, bfd_printable_name (abfd));
14579 }
14580
c97c330b
MF
14581 if (new_isa > LEVEL_REV (abiflags->isa_level, abiflags->isa_rev))
14582 {
14583 abiflags->isa_level = ISA_LEVEL (new_isa);
14584 abiflags->isa_rev = ISA_REV (new_isa);
14585 }
14586
14587 /* Update the isa_ext if ABFD describes a further extension. */
14588 if (mips_mach_extends_p (bfd_mips_isa_ext_mach (abiflags->isa_ext),
14589 bfd_get_mach (abfd)))
14590 abiflags->isa_ext = bfd_mips_isa_ext (abfd);
351cdf24
MF
14591}
14592
14593/* Return true if the given ELF header flags describe a 32-bit binary. */
14594
14595static bfd_boolean
14596mips_32bit_flags_p (flagword flags)
14597{
14598 return ((flags & EF_MIPS_32BITMODE) != 0
14599 || (flags & EF_MIPS_ABI) == E_MIPS_ABI_O32
14600 || (flags & EF_MIPS_ABI) == E_MIPS_ABI_EABI32
14601 || (flags & EF_MIPS_ARCH) == E_MIPS_ARCH_1
14602 || (flags & EF_MIPS_ARCH) == E_MIPS_ARCH_2
14603 || (flags & EF_MIPS_ARCH) == E_MIPS_ARCH_32
7361da2c
AB
14604 || (flags & EF_MIPS_ARCH) == E_MIPS_ARCH_32R2
14605 || (flags & EF_MIPS_ARCH) == E_MIPS_ARCH_32R6);
351cdf24
MF
14606}
14607
14608/* Infer the content of the ABI flags based on the elf header. */
14609
14610static void
14611infer_mips_abiflags (bfd *abfd, Elf_Internal_ABIFlags_v0* abiflags)
14612{
14613 obj_attribute *in_attr;
14614
14615 memset (abiflags, 0, sizeof (Elf_Internal_ABIFlags_v0));
14616 update_mips_abiflags_isa (abfd, abiflags);
14617
14618 if (mips_32bit_flags_p (elf_elfheader (abfd)->e_flags))
14619 abiflags->gpr_size = AFL_REG_32;
14620 else
14621 abiflags->gpr_size = AFL_REG_64;
14622
14623 abiflags->cpr1_size = AFL_REG_NONE;
14624
14625 in_attr = elf_known_obj_attributes (abfd)[OBJ_ATTR_GNU];
14626 abiflags->fp_abi = in_attr[Tag_GNU_MIPS_ABI_FP].i;
14627
14628 if (abiflags->fp_abi == Val_GNU_MIPS_ABI_FP_SINGLE
14629 || abiflags->fp_abi == Val_GNU_MIPS_ABI_FP_XX
14630 || (abiflags->fp_abi == Val_GNU_MIPS_ABI_FP_DOUBLE
14631 && abiflags->gpr_size == AFL_REG_32))
14632 abiflags->cpr1_size = AFL_REG_32;
14633 else if (abiflags->fp_abi == Val_GNU_MIPS_ABI_FP_DOUBLE
14634 || abiflags->fp_abi == Val_GNU_MIPS_ABI_FP_64
14635 || abiflags->fp_abi == Val_GNU_MIPS_ABI_FP_64A)
14636 abiflags->cpr1_size = AFL_REG_64;
14637
14638 abiflags->cpr2_size = AFL_REG_NONE;
14639
14640 if (elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH_ASE_MDMX)
14641 abiflags->ases |= AFL_ASE_MDMX;
14642 if (elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH_ASE_M16)
14643 abiflags->ases |= AFL_ASE_MIPS16;
14644 if (elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH_ASE_MICROMIPS)
14645 abiflags->ases |= AFL_ASE_MICROMIPS;
14646
14647 if (abiflags->fp_abi != Val_GNU_MIPS_ABI_FP_ANY
14648 && abiflags->fp_abi != Val_GNU_MIPS_ABI_FP_SOFT
14649 && abiflags->fp_abi != Val_GNU_MIPS_ABI_FP_64A
14650 && abiflags->isa_level >= 32
bdc6c06e 14651 && abiflags->ases != AFL_ASE_LOONGSON_EXT)
351cdf24
MF
14652 abiflags->flags1 |= AFL_FLAGS1_ODDSPREG;
14653}
14654
b49e97c9
TS
14655/* We need to use a special link routine to handle the .reginfo and
14656 the .mdebug sections. We need to merge all instances of these
14657 sections together, not write them all out sequentially. */
14658
b34976b6 14659bfd_boolean
9719ad41 14660_bfd_mips_elf_final_link (bfd *abfd, struct bfd_link_info *info)
b49e97c9 14661{
b49e97c9
TS
14662 asection *o;
14663 struct bfd_link_order *p;
14664 asection *reginfo_sec, *mdebug_sec, *gptab_data_sec, *gptab_bss_sec;
351cdf24 14665 asection *rtproc_sec, *abiflags_sec;
b49e97c9
TS
14666 Elf32_RegInfo reginfo;
14667 struct ecoff_debug_info debug;
861fb55a 14668 struct mips_htab_traverse_info hti;
7a2a6943
NC
14669 const struct elf_backend_data *bed = get_elf_backend_data (abfd);
14670 const struct ecoff_debug_swap *swap = bed->elf_backend_ecoff_debug_swap;
b49e97c9 14671 HDRR *symhdr = &debug.symbolic_header;
9719ad41 14672 void *mdebug_handle = NULL;
b49e97c9
TS
14673 asection *s;
14674 EXTR esym;
14675 unsigned int i;
14676 bfd_size_type amt;
0a44bf69 14677 struct mips_elf_link_hash_table *htab;
b49e97c9
TS
14678
14679 static const char * const secname[] =
14680 {
14681 ".text", ".init", ".fini", ".data",
14682 ".rodata", ".sdata", ".sbss", ".bss"
14683 };
14684 static const int sc[] =
14685 {
14686 scText, scInit, scFini, scData,
14687 scRData, scSData, scSBss, scBss
14688 };
14689
0a44bf69 14690 htab = mips_elf_hash_table (info);
4dfe6ac6
NC
14691 BFD_ASSERT (htab != NULL);
14692
64575f78
MR
14693 /* Sort the dynamic symbols so that those with GOT entries come after
14694 those without. */
d4596a51
RS
14695 if (!mips_elf_sort_hash_table (abfd, info))
14696 return FALSE;
b49e97c9 14697
861fb55a
DJ
14698 /* Create any scheduled LA25 stubs. */
14699 hti.info = info;
14700 hti.output_bfd = abfd;
14701 hti.error = FALSE;
14702 htab_traverse (htab->la25_stubs, mips_elf_create_la25_stub, &hti);
14703 if (hti.error)
14704 return FALSE;
14705
b49e97c9
TS
14706 /* Get a value for the GP register. */
14707 if (elf_gp (abfd) == 0)
14708 {
14709 struct bfd_link_hash_entry *h;
14710
b34976b6 14711 h = bfd_link_hash_lookup (info->hash, "_gp", FALSE, FALSE, TRUE);
9719ad41 14712 if (h != NULL && h->type == bfd_link_hash_defined)
b49e97c9
TS
14713 elf_gp (abfd) = (h->u.def.value
14714 + h->u.def.section->output_section->vma
14715 + h->u.def.section->output_offset);
0a44bf69
RS
14716 else if (htab->is_vxworks
14717 && (h = bfd_link_hash_lookup (info->hash,
14718 "_GLOBAL_OFFSET_TABLE_",
14719 FALSE, FALSE, TRUE))
14720 && h->type == bfd_link_hash_defined)
14721 elf_gp (abfd) = (h->u.def.section->output_section->vma
14722 + h->u.def.section->output_offset
14723 + h->u.def.value);
0e1862bb 14724 else if (bfd_link_relocatable (info))
b49e97c9
TS
14725 {
14726 bfd_vma lo = MINUS_ONE;
14727
14728 /* Find the GP-relative section with the lowest offset. */
9719ad41 14729 for (o = abfd->sections; o != NULL; o = o->next)
b49e97c9
TS
14730 if (o->vma < lo
14731 && (elf_section_data (o)->this_hdr.sh_flags & SHF_MIPS_GPREL))
14732 lo = o->vma;
14733
14734 /* And calculate GP relative to that. */
0a44bf69 14735 elf_gp (abfd) = lo + ELF_MIPS_GP_OFFSET (info);
b49e97c9
TS
14736 }
14737 else
14738 {
14739 /* If the relocate_section function needs to do a reloc
14740 involving the GP value, it should make a reloc_dangerous
14741 callback to warn that GP is not defined. */
14742 }
14743 }
14744
14745 /* Go through the sections and collect the .reginfo and .mdebug
14746 information. */
351cdf24 14747 abiflags_sec = NULL;
b49e97c9
TS
14748 reginfo_sec = NULL;
14749 mdebug_sec = NULL;
14750 gptab_data_sec = NULL;
14751 gptab_bss_sec = NULL;
9719ad41 14752 for (o = abfd->sections; o != NULL; o = o->next)
b49e97c9 14753 {
351cdf24
MF
14754 if (strcmp (o->name, ".MIPS.abiflags") == 0)
14755 {
14756 /* We have found the .MIPS.abiflags section in the output file.
14757 Look through all the link_orders comprising it and remove them.
14758 The data is merged in _bfd_mips_elf_merge_private_bfd_data. */
14759 for (p = o->map_head.link_order; p != NULL; p = p->next)
14760 {
14761 asection *input_section;
14762
14763 if (p->type != bfd_indirect_link_order)
14764 {
14765 if (p->type == bfd_data_link_order)
14766 continue;
14767 abort ();
14768 }
14769
14770 input_section = p->u.indirect.section;
14771
14772 /* Hack: reset the SEC_HAS_CONTENTS flag so that
14773 elf_link_input_bfd ignores this section. */
14774 input_section->flags &= ~SEC_HAS_CONTENTS;
14775 }
14776
14777 /* Size has been set in _bfd_mips_elf_always_size_sections. */
14778 BFD_ASSERT(o->size == sizeof (Elf_External_ABIFlags_v0));
14779
14780 /* Skip this section later on (I don't think this currently
14781 matters, but someday it might). */
14782 o->map_head.link_order = NULL;
14783
14784 abiflags_sec = o;
14785 }
14786
b49e97c9
TS
14787 if (strcmp (o->name, ".reginfo") == 0)
14788 {
14789 memset (&reginfo, 0, sizeof reginfo);
14790
14791 /* We have found the .reginfo section in the output file.
14792 Look through all the link_orders comprising it and merge
14793 the information together. */
8423293d 14794 for (p = o->map_head.link_order; p != NULL; p = p->next)
b49e97c9
TS
14795 {
14796 asection *input_section;
14797 bfd *input_bfd;
14798 Elf32_External_RegInfo ext;
14799 Elf32_RegInfo sub;
6798f8bf 14800 bfd_size_type sz;
b49e97c9
TS
14801
14802 if (p->type != bfd_indirect_link_order)
14803 {
14804 if (p->type == bfd_data_link_order)
14805 continue;
14806 abort ();
14807 }
14808
14809 input_section = p->u.indirect.section;
14810 input_bfd = input_section->owner;
14811
6798f8bf
MR
14812 sz = (input_section->size < sizeof (ext)
14813 ? input_section->size : sizeof (ext));
14814 memset (&ext, 0, sizeof (ext));
b49e97c9 14815 if (! bfd_get_section_contents (input_bfd, input_section,
6798f8bf 14816 &ext, 0, sz))
b34976b6 14817 return FALSE;
b49e97c9
TS
14818
14819 bfd_mips_elf32_swap_reginfo_in (input_bfd, &ext, &sub);
14820
14821 reginfo.ri_gprmask |= sub.ri_gprmask;
14822 reginfo.ri_cprmask[0] |= sub.ri_cprmask[0];
14823 reginfo.ri_cprmask[1] |= sub.ri_cprmask[1];
14824 reginfo.ri_cprmask[2] |= sub.ri_cprmask[2];
14825 reginfo.ri_cprmask[3] |= sub.ri_cprmask[3];
14826
14827 /* ri_gp_value is set by the function
1c5e4ee9 14828 `_bfd_mips_elf_section_processing' when the section is
b49e97c9
TS
14829 finally written out. */
14830
14831 /* Hack: reset the SEC_HAS_CONTENTS flag so that
14832 elf_link_input_bfd ignores this section. */
14833 input_section->flags &= ~SEC_HAS_CONTENTS;
14834 }
14835
14836 /* Size has been set in _bfd_mips_elf_always_size_sections. */
b248d650 14837 BFD_ASSERT(o->size == sizeof (Elf32_External_RegInfo));
b49e97c9
TS
14838
14839 /* Skip this section later on (I don't think this currently
14840 matters, but someday it might). */
8423293d 14841 o->map_head.link_order = NULL;
b49e97c9
TS
14842
14843 reginfo_sec = o;
14844 }
14845
14846 if (strcmp (o->name, ".mdebug") == 0)
14847 {
14848 struct extsym_info einfo;
14849 bfd_vma last;
14850
14851 /* We have found the .mdebug section in the output file.
14852 Look through all the link_orders comprising it and merge
14853 the information together. */
14854 symhdr->magic = swap->sym_magic;
14855 /* FIXME: What should the version stamp be? */
14856 symhdr->vstamp = 0;
14857 symhdr->ilineMax = 0;
14858 symhdr->cbLine = 0;
14859 symhdr->idnMax = 0;
14860 symhdr->ipdMax = 0;
14861 symhdr->isymMax = 0;
14862 symhdr->ioptMax = 0;
14863 symhdr->iauxMax = 0;
14864 symhdr->issMax = 0;
14865 symhdr->issExtMax = 0;
14866 symhdr->ifdMax = 0;
14867 symhdr->crfd = 0;
14868 symhdr->iextMax = 0;
14869
14870 /* We accumulate the debugging information itself in the
14871 debug_info structure. */
14872 debug.line = NULL;
14873 debug.external_dnr = NULL;
14874 debug.external_pdr = NULL;
14875 debug.external_sym = NULL;
14876 debug.external_opt = NULL;
14877 debug.external_aux = NULL;
14878 debug.ss = NULL;
14879 debug.ssext = debug.ssext_end = NULL;
14880 debug.external_fdr = NULL;
14881 debug.external_rfd = NULL;
14882 debug.external_ext = debug.external_ext_end = NULL;
14883
14884 mdebug_handle = bfd_ecoff_debug_init (abfd, &debug, swap, info);
9719ad41 14885 if (mdebug_handle == NULL)
b34976b6 14886 return FALSE;
b49e97c9
TS
14887
14888 esym.jmptbl = 0;
14889 esym.cobol_main = 0;
14890 esym.weakext = 0;
14891 esym.reserved = 0;
14892 esym.ifd = ifdNil;
14893 esym.asym.iss = issNil;
14894 esym.asym.st = stLocal;
14895 esym.asym.reserved = 0;
14896 esym.asym.index = indexNil;
14897 last = 0;
14898 for (i = 0; i < sizeof (secname) / sizeof (secname[0]); i++)
14899 {
14900 esym.asym.sc = sc[i];
14901 s = bfd_get_section_by_name (abfd, secname[i]);
14902 if (s != NULL)
14903 {
14904 esym.asym.value = s->vma;
eea6121a 14905 last = s->vma + s->size;
b49e97c9
TS
14906 }
14907 else
14908 esym.asym.value = last;
14909 if (!bfd_ecoff_debug_one_external (abfd, &debug, swap,
14910 secname[i], &esym))
b34976b6 14911 return FALSE;
b49e97c9
TS
14912 }
14913
8423293d 14914 for (p = o->map_head.link_order; p != NULL; p = p->next)
b49e97c9
TS
14915 {
14916 asection *input_section;
14917 bfd *input_bfd;
14918 const struct ecoff_debug_swap *input_swap;
14919 struct ecoff_debug_info input_debug;
14920 char *eraw_src;
14921 char *eraw_end;
14922
14923 if (p->type != bfd_indirect_link_order)
14924 {
14925 if (p->type == bfd_data_link_order)
14926 continue;
14927 abort ();
14928 }
14929
14930 input_section = p->u.indirect.section;
14931 input_bfd = input_section->owner;
14932
d5eaccd7 14933 if (!is_mips_elf (input_bfd))
b49e97c9
TS
14934 {
14935 /* I don't know what a non MIPS ELF bfd would be
14936 doing with a .mdebug section, but I don't really
14937 want to deal with it. */
14938 continue;
14939 }
14940
14941 input_swap = (get_elf_backend_data (input_bfd)
14942 ->elf_backend_ecoff_debug_swap);
14943
eea6121a 14944 BFD_ASSERT (p->size == input_section->size);
b49e97c9
TS
14945
14946 /* The ECOFF linking code expects that we have already
14947 read in the debugging information and set up an
14948 ecoff_debug_info structure, so we do that now. */
14949 if (! _bfd_mips_elf_read_ecoff_info (input_bfd, input_section,
14950 &input_debug))
b34976b6 14951 return FALSE;
b49e97c9
TS
14952
14953 if (! (bfd_ecoff_debug_accumulate
14954 (mdebug_handle, abfd, &debug, swap, input_bfd,
14955 &input_debug, input_swap, info)))
b34976b6 14956 return FALSE;
b49e97c9
TS
14957
14958 /* Loop through the external symbols. For each one with
14959 interesting information, try to find the symbol in
14960 the linker global hash table and save the information
14961 for the output external symbols. */
14962 eraw_src = input_debug.external_ext;
14963 eraw_end = (eraw_src
14964 + (input_debug.symbolic_header.iextMax
14965 * input_swap->external_ext_size));
14966 for (;
14967 eraw_src < eraw_end;
14968 eraw_src += input_swap->external_ext_size)
14969 {
14970 EXTR ext;
14971 const char *name;
14972 struct mips_elf_link_hash_entry *h;
14973
9719ad41 14974 (*input_swap->swap_ext_in) (input_bfd, eraw_src, &ext);
b49e97c9
TS
14975 if (ext.asym.sc == scNil
14976 || ext.asym.sc == scUndefined
14977 || ext.asym.sc == scSUndefined)
14978 continue;
14979
14980 name = input_debug.ssext + ext.asym.iss;
14981 h = mips_elf_link_hash_lookup (mips_elf_hash_table (info),
b34976b6 14982 name, FALSE, FALSE, TRUE);
b49e97c9
TS
14983 if (h == NULL || h->esym.ifd != -2)
14984 continue;
14985
14986 if (ext.ifd != -1)
14987 {
14988 BFD_ASSERT (ext.ifd
14989 < input_debug.symbolic_header.ifdMax);
14990 ext.ifd = input_debug.ifdmap[ext.ifd];
14991 }
14992
14993 h->esym = ext;
14994 }
14995
14996 /* Free up the information we just read. */
14997 free (input_debug.line);
14998 free (input_debug.external_dnr);
14999 free (input_debug.external_pdr);
15000 free (input_debug.external_sym);
15001 free (input_debug.external_opt);
15002 free (input_debug.external_aux);
15003 free (input_debug.ss);
15004 free (input_debug.ssext);
15005 free (input_debug.external_fdr);
15006 free (input_debug.external_rfd);
15007 free (input_debug.external_ext);
15008
15009 /* Hack: reset the SEC_HAS_CONTENTS flag so that
15010 elf_link_input_bfd ignores this section. */
15011 input_section->flags &= ~SEC_HAS_CONTENTS;
15012 }
15013
0e1862bb 15014 if (SGI_COMPAT (abfd) && bfd_link_pic (info))
b49e97c9
TS
15015 {
15016 /* Create .rtproc section. */
87e0a731 15017 rtproc_sec = bfd_get_linker_section (abfd, ".rtproc");
b49e97c9
TS
15018 if (rtproc_sec == NULL)
15019 {
15020 flagword flags = (SEC_HAS_CONTENTS | SEC_IN_MEMORY
15021 | SEC_LINKER_CREATED | SEC_READONLY);
15022
87e0a731
AM
15023 rtproc_sec = bfd_make_section_anyway_with_flags (abfd,
15024 ".rtproc",
15025 flags);
b49e97c9 15026 if (rtproc_sec == NULL
b49e97c9 15027 || ! bfd_set_section_alignment (abfd, rtproc_sec, 4))
b34976b6 15028 return FALSE;
b49e97c9
TS
15029 }
15030
15031 if (! mips_elf_create_procedure_table (mdebug_handle, abfd,
15032 info, rtproc_sec,
15033 &debug))
b34976b6 15034 return FALSE;
b49e97c9
TS
15035 }
15036
15037 /* Build the external symbol information. */
15038 einfo.abfd = abfd;
15039 einfo.info = info;
15040 einfo.debug = &debug;
15041 einfo.swap = swap;
b34976b6 15042 einfo.failed = FALSE;
b49e97c9 15043 mips_elf_link_hash_traverse (mips_elf_hash_table (info),
9719ad41 15044 mips_elf_output_extsym, &einfo);
b49e97c9 15045 if (einfo.failed)
b34976b6 15046 return FALSE;
b49e97c9
TS
15047
15048 /* Set the size of the .mdebug section. */
eea6121a 15049 o->size = bfd_ecoff_debug_size (abfd, &debug, swap);
b49e97c9
TS
15050
15051 /* Skip this section later on (I don't think this currently
15052 matters, but someday it might). */
8423293d 15053 o->map_head.link_order = NULL;
b49e97c9
TS
15054
15055 mdebug_sec = o;
15056 }
15057
0112cd26 15058 if (CONST_STRNEQ (o->name, ".gptab."))
b49e97c9
TS
15059 {
15060 const char *subname;
15061 unsigned int c;
15062 Elf32_gptab *tab;
15063 Elf32_External_gptab *ext_tab;
15064 unsigned int j;
15065
15066 /* The .gptab.sdata and .gptab.sbss sections hold
15067 information describing how the small data area would
15068 change depending upon the -G switch. These sections
15069 not used in executables files. */
0e1862bb 15070 if (! bfd_link_relocatable (info))
b49e97c9 15071 {
8423293d 15072 for (p = o->map_head.link_order; p != NULL; p = p->next)
b49e97c9
TS
15073 {
15074 asection *input_section;
15075
15076 if (p->type != bfd_indirect_link_order)
15077 {
15078 if (p->type == bfd_data_link_order)
15079 continue;
15080 abort ();
15081 }
15082
15083 input_section = p->u.indirect.section;
15084
15085 /* Hack: reset the SEC_HAS_CONTENTS flag so that
15086 elf_link_input_bfd ignores this section. */
15087 input_section->flags &= ~SEC_HAS_CONTENTS;
15088 }
15089
15090 /* Skip this section later on (I don't think this
15091 currently matters, but someday it might). */
8423293d 15092 o->map_head.link_order = NULL;
b49e97c9
TS
15093
15094 /* Really remove the section. */
5daa8fe7 15095 bfd_section_list_remove (abfd, o);
b49e97c9
TS
15096 --abfd->section_count;
15097
15098 continue;
15099 }
15100
15101 /* There is one gptab for initialized data, and one for
15102 uninitialized data. */
15103 if (strcmp (o->name, ".gptab.sdata") == 0)
15104 gptab_data_sec = o;
15105 else if (strcmp (o->name, ".gptab.sbss") == 0)
15106 gptab_bss_sec = o;
15107 else
15108 {
4eca0228 15109 _bfd_error_handler
695344c0 15110 /* xgettext:c-format */
871b3ab2 15111 (_("%pB: illegal section name `%pA'"), abfd, o);
b49e97c9 15112 bfd_set_error (bfd_error_nonrepresentable_section);
b34976b6 15113 return FALSE;
b49e97c9
TS
15114 }
15115
15116 /* The linker script always combines .gptab.data and
15117 .gptab.sdata into .gptab.sdata, and likewise for
15118 .gptab.bss and .gptab.sbss. It is possible that there is
15119 no .sdata or .sbss section in the output file, in which
15120 case we must change the name of the output section. */
15121 subname = o->name + sizeof ".gptab" - 1;
15122 if (bfd_get_section_by_name (abfd, subname) == NULL)
15123 {
15124 if (o == gptab_data_sec)
15125 o->name = ".gptab.data";
15126 else
15127 o->name = ".gptab.bss";
15128 subname = o->name + sizeof ".gptab" - 1;
15129 BFD_ASSERT (bfd_get_section_by_name (abfd, subname) != NULL);
15130 }
15131
15132 /* Set up the first entry. */
15133 c = 1;
15134 amt = c * sizeof (Elf32_gptab);
9719ad41 15135 tab = bfd_malloc (amt);
b49e97c9 15136 if (tab == NULL)
b34976b6 15137 return FALSE;
b49e97c9
TS
15138 tab[0].gt_header.gt_current_g_value = elf_gp_size (abfd);
15139 tab[0].gt_header.gt_unused = 0;
15140
15141 /* Combine the input sections. */
8423293d 15142 for (p = o->map_head.link_order; p != NULL; p = p->next)
b49e97c9
TS
15143 {
15144 asection *input_section;
15145 bfd *input_bfd;
15146 bfd_size_type size;
15147 unsigned long last;
15148 bfd_size_type gpentry;
15149
15150 if (p->type != bfd_indirect_link_order)
15151 {
15152 if (p->type == bfd_data_link_order)
15153 continue;
15154 abort ();
15155 }
15156
15157 input_section = p->u.indirect.section;
15158 input_bfd = input_section->owner;
15159
15160 /* Combine the gptab entries for this input section one
15161 by one. We know that the input gptab entries are
15162 sorted by ascending -G value. */
eea6121a 15163 size = input_section->size;
b49e97c9
TS
15164 last = 0;
15165 for (gpentry = sizeof (Elf32_External_gptab);
15166 gpentry < size;
15167 gpentry += sizeof (Elf32_External_gptab))
15168 {
15169 Elf32_External_gptab ext_gptab;
15170 Elf32_gptab int_gptab;
15171 unsigned long val;
15172 unsigned long add;
b34976b6 15173 bfd_boolean exact;
b49e97c9
TS
15174 unsigned int look;
15175
15176 if (! (bfd_get_section_contents
9719ad41
RS
15177 (input_bfd, input_section, &ext_gptab, gpentry,
15178 sizeof (Elf32_External_gptab))))
b49e97c9
TS
15179 {
15180 free (tab);
b34976b6 15181 return FALSE;
b49e97c9
TS
15182 }
15183
15184 bfd_mips_elf32_swap_gptab_in (input_bfd, &ext_gptab,
15185 &int_gptab);
15186 val = int_gptab.gt_entry.gt_g_value;
15187 add = int_gptab.gt_entry.gt_bytes - last;
15188
b34976b6 15189 exact = FALSE;
b49e97c9
TS
15190 for (look = 1; look < c; look++)
15191 {
15192 if (tab[look].gt_entry.gt_g_value >= val)
15193 tab[look].gt_entry.gt_bytes += add;
15194
15195 if (tab[look].gt_entry.gt_g_value == val)
b34976b6 15196 exact = TRUE;
b49e97c9
TS
15197 }
15198
15199 if (! exact)
15200 {
15201 Elf32_gptab *new_tab;
15202 unsigned int max;
15203
15204 /* We need a new table entry. */
15205 amt = (bfd_size_type) (c + 1) * sizeof (Elf32_gptab);
9719ad41 15206 new_tab = bfd_realloc (tab, amt);
b49e97c9
TS
15207 if (new_tab == NULL)
15208 {
15209 free (tab);
b34976b6 15210 return FALSE;
b49e97c9
TS
15211 }
15212 tab = new_tab;
15213 tab[c].gt_entry.gt_g_value = val;
15214 tab[c].gt_entry.gt_bytes = add;
15215
15216 /* Merge in the size for the next smallest -G
15217 value, since that will be implied by this new
15218 value. */
15219 max = 0;
15220 for (look = 1; look < c; look++)
15221 {
15222 if (tab[look].gt_entry.gt_g_value < val
15223 && (max == 0
15224 || (tab[look].gt_entry.gt_g_value
15225 > tab[max].gt_entry.gt_g_value)))
15226 max = look;
15227 }
15228 if (max != 0)
15229 tab[c].gt_entry.gt_bytes +=
15230 tab[max].gt_entry.gt_bytes;
15231
15232 ++c;
15233 }
15234
15235 last = int_gptab.gt_entry.gt_bytes;
15236 }
15237
15238 /* Hack: reset the SEC_HAS_CONTENTS flag so that
15239 elf_link_input_bfd ignores this section. */
15240 input_section->flags &= ~SEC_HAS_CONTENTS;
15241 }
15242
15243 /* The table must be sorted by -G value. */
15244 if (c > 2)
15245 qsort (tab + 1, c - 1, sizeof (tab[0]), gptab_compare);
15246
15247 /* Swap out the table. */
15248 amt = (bfd_size_type) c * sizeof (Elf32_External_gptab);
9719ad41 15249 ext_tab = bfd_alloc (abfd, amt);
b49e97c9
TS
15250 if (ext_tab == NULL)
15251 {
15252 free (tab);
b34976b6 15253 return FALSE;
b49e97c9
TS
15254 }
15255
15256 for (j = 0; j < c; j++)
15257 bfd_mips_elf32_swap_gptab_out (abfd, tab + j, ext_tab + j);
15258 free (tab);
15259
eea6121a 15260 o->size = c * sizeof (Elf32_External_gptab);
b49e97c9
TS
15261 o->contents = (bfd_byte *) ext_tab;
15262
15263 /* Skip this section later on (I don't think this currently
15264 matters, but someday it might). */
8423293d 15265 o->map_head.link_order = NULL;
b49e97c9
TS
15266 }
15267 }
15268
15269 /* Invoke the regular ELF backend linker to do all the work. */
c152c796 15270 if (!bfd_elf_final_link (abfd, info))
b34976b6 15271 return FALSE;
b49e97c9
TS
15272
15273 /* Now write out the computed sections. */
15274
351cdf24
MF
15275 if (abiflags_sec != NULL)
15276 {
15277 Elf_External_ABIFlags_v0 ext;
15278 Elf_Internal_ABIFlags_v0 *abiflags;
15279
15280 abiflags = &mips_elf_tdata (abfd)->abiflags;
15281
15282 /* Set up the abiflags if no valid input sections were found. */
15283 if (!mips_elf_tdata (abfd)->abiflags_valid)
15284 {
15285 infer_mips_abiflags (abfd, abiflags);
15286 mips_elf_tdata (abfd)->abiflags_valid = TRUE;
15287 }
15288 bfd_mips_elf_swap_abiflags_v0_out (abfd, abiflags, &ext);
15289 if (! bfd_set_section_contents (abfd, abiflags_sec, &ext, 0, sizeof ext))
15290 return FALSE;
15291 }
15292
9719ad41 15293 if (reginfo_sec != NULL)
b49e97c9
TS
15294 {
15295 Elf32_External_RegInfo ext;
15296
15297 bfd_mips_elf32_swap_reginfo_out (abfd, &reginfo, &ext);
9719ad41 15298 if (! bfd_set_section_contents (abfd, reginfo_sec, &ext, 0, sizeof ext))
b34976b6 15299 return FALSE;
b49e97c9
TS
15300 }
15301
9719ad41 15302 if (mdebug_sec != NULL)
b49e97c9
TS
15303 {
15304 BFD_ASSERT (abfd->output_has_begun);
15305 if (! bfd_ecoff_write_accumulated_debug (mdebug_handle, abfd, &debug,
15306 swap, info,
15307 mdebug_sec->filepos))
b34976b6 15308 return FALSE;
b49e97c9
TS
15309
15310 bfd_ecoff_debug_free (mdebug_handle, abfd, &debug, swap, info);
15311 }
15312
9719ad41 15313 if (gptab_data_sec != NULL)
b49e97c9
TS
15314 {
15315 if (! bfd_set_section_contents (abfd, gptab_data_sec,
15316 gptab_data_sec->contents,
eea6121a 15317 0, gptab_data_sec->size))
b34976b6 15318 return FALSE;
b49e97c9
TS
15319 }
15320
9719ad41 15321 if (gptab_bss_sec != NULL)
b49e97c9
TS
15322 {
15323 if (! bfd_set_section_contents (abfd, gptab_bss_sec,
15324 gptab_bss_sec->contents,
eea6121a 15325 0, gptab_bss_sec->size))
b34976b6 15326 return FALSE;
b49e97c9
TS
15327 }
15328
15329 if (SGI_COMPAT (abfd))
15330 {
15331 rtproc_sec = bfd_get_section_by_name (abfd, ".rtproc");
15332 if (rtproc_sec != NULL)
15333 {
15334 if (! bfd_set_section_contents (abfd, rtproc_sec,
15335 rtproc_sec->contents,
eea6121a 15336 0, rtproc_sec->size))
b34976b6 15337 return FALSE;
b49e97c9
TS
15338 }
15339 }
15340
b34976b6 15341 return TRUE;
b49e97c9
TS
15342}
15343\f
b2e9744f
MR
15344/* Merge object file header flags from IBFD into OBFD. Raise an error
15345 if there are conflicting settings. */
15346
15347static bfd_boolean
50e03d47 15348mips_elf_merge_obj_e_flags (bfd *ibfd, struct bfd_link_info *info)
b2e9744f 15349{
50e03d47 15350 bfd *obfd = info->output_bfd;
b2e9744f
MR
15351 struct mips_elf_obj_tdata *out_tdata = mips_elf_tdata (obfd);
15352 flagword old_flags;
15353 flagword new_flags;
15354 bfd_boolean ok;
15355
15356 new_flags = elf_elfheader (ibfd)->e_flags;
15357 elf_elfheader (obfd)->e_flags |= new_flags & EF_MIPS_NOREORDER;
15358 old_flags = elf_elfheader (obfd)->e_flags;
15359
15360 /* Check flag compatibility. */
15361
15362 new_flags &= ~EF_MIPS_NOREORDER;
15363 old_flags &= ~EF_MIPS_NOREORDER;
15364
15365 /* Some IRIX 6 BSD-compatibility objects have this bit set. It
15366 doesn't seem to matter. */
15367 new_flags &= ~EF_MIPS_XGOT;
15368 old_flags &= ~EF_MIPS_XGOT;
15369
15370 /* MIPSpro generates ucode info in n64 objects. Again, we should
15371 just be able to ignore this. */
15372 new_flags &= ~EF_MIPS_UCODE;
15373 old_flags &= ~EF_MIPS_UCODE;
15374
15375 /* DSOs should only be linked with CPIC code. */
15376 if ((ibfd->flags & DYNAMIC) != 0)
15377 new_flags |= EF_MIPS_PIC | EF_MIPS_CPIC;
15378
15379 if (new_flags == old_flags)
15380 return TRUE;
15381
15382 ok = TRUE;
15383
15384 if (((new_flags & (EF_MIPS_PIC | EF_MIPS_CPIC)) != 0)
15385 != ((old_flags & (EF_MIPS_PIC | EF_MIPS_CPIC)) != 0))
15386 {
4eca0228 15387 _bfd_error_handler
871b3ab2 15388 (_("%pB: warning: linking abicalls files with non-abicalls files"),
b2e9744f
MR
15389 ibfd);
15390 ok = TRUE;
15391 }
15392
15393 if (new_flags & (EF_MIPS_PIC | EF_MIPS_CPIC))
15394 elf_elfheader (obfd)->e_flags |= EF_MIPS_CPIC;
15395 if (! (new_flags & EF_MIPS_PIC))
15396 elf_elfheader (obfd)->e_flags &= ~EF_MIPS_PIC;
15397
15398 new_flags &= ~ (EF_MIPS_PIC | EF_MIPS_CPIC);
15399 old_flags &= ~ (EF_MIPS_PIC | EF_MIPS_CPIC);
15400
15401 /* Compare the ISAs. */
15402 if (mips_32bit_flags_p (old_flags) != mips_32bit_flags_p (new_flags))
15403 {
4eca0228 15404 _bfd_error_handler
871b3ab2 15405 (_("%pB: linking 32-bit code with 64-bit code"),
b2e9744f
MR
15406 ibfd);
15407 ok = FALSE;
15408 }
15409 else if (!mips_mach_extends_p (bfd_get_mach (ibfd), bfd_get_mach (obfd)))
15410 {
15411 /* OBFD's ISA isn't the same as, or an extension of, IBFD's. */
15412 if (mips_mach_extends_p (bfd_get_mach (obfd), bfd_get_mach (ibfd)))
15413 {
15414 /* Copy the architecture info from IBFD to OBFD. Also copy
15415 the 32-bit flag (if set) so that we continue to recognise
15416 OBFD as a 32-bit binary. */
15417 bfd_set_arch_info (obfd, bfd_get_arch_info (ibfd));
15418 elf_elfheader (obfd)->e_flags &= ~(EF_MIPS_ARCH | EF_MIPS_MACH);
15419 elf_elfheader (obfd)->e_flags
15420 |= new_flags & (EF_MIPS_ARCH | EF_MIPS_MACH | EF_MIPS_32BITMODE);
15421
15422 /* Update the ABI flags isa_level, isa_rev, isa_ext fields. */
15423 update_mips_abiflags_isa (obfd, &out_tdata->abiflags);
15424
15425 /* Copy across the ABI flags if OBFD doesn't use them
15426 and if that was what caused us to treat IBFD as 32-bit. */
15427 if ((old_flags & EF_MIPS_ABI) == 0
15428 && mips_32bit_flags_p (new_flags)
15429 && !mips_32bit_flags_p (new_flags & ~EF_MIPS_ABI))
15430 elf_elfheader (obfd)->e_flags |= new_flags & EF_MIPS_ABI;
15431 }
15432 else
15433 {
15434 /* The ISAs aren't compatible. */
4eca0228 15435 _bfd_error_handler
695344c0 15436 /* xgettext:c-format */
871b3ab2 15437 (_("%pB: linking %s module with previous %s modules"),
b2e9744f
MR
15438 ibfd,
15439 bfd_printable_name (ibfd),
15440 bfd_printable_name (obfd));
15441 ok = FALSE;
15442 }
15443 }
15444
15445 new_flags &= ~(EF_MIPS_ARCH | EF_MIPS_MACH | EF_MIPS_32BITMODE);
15446 old_flags &= ~(EF_MIPS_ARCH | EF_MIPS_MACH | EF_MIPS_32BITMODE);
15447
15448 /* Compare ABIs. The 64-bit ABI does not use EF_MIPS_ABI. But, it
15449 does set EI_CLASS differently from any 32-bit ABI. */
15450 if ((new_flags & EF_MIPS_ABI) != (old_flags & EF_MIPS_ABI)
15451 || (elf_elfheader (ibfd)->e_ident[EI_CLASS]
15452 != elf_elfheader (obfd)->e_ident[EI_CLASS]))
15453 {
15454 /* Only error if both are set (to different values). */
15455 if (((new_flags & EF_MIPS_ABI) && (old_flags & EF_MIPS_ABI))
15456 || (elf_elfheader (ibfd)->e_ident[EI_CLASS]
15457 != elf_elfheader (obfd)->e_ident[EI_CLASS]))
15458 {
4eca0228 15459 _bfd_error_handler
695344c0 15460 /* xgettext:c-format */
871b3ab2 15461 (_("%pB: ABI mismatch: linking %s module with previous %s modules"),
b2e9744f
MR
15462 ibfd,
15463 elf_mips_abi_name (ibfd),
15464 elf_mips_abi_name (obfd));
15465 ok = FALSE;
15466 }
15467 new_flags &= ~EF_MIPS_ABI;
15468 old_flags &= ~EF_MIPS_ABI;
15469 }
15470
15471 /* Compare ASEs. Forbid linking MIPS16 and microMIPS ASE modules together
15472 and allow arbitrary mixing of the remaining ASEs (retain the union). */
15473 if ((new_flags & EF_MIPS_ARCH_ASE) != (old_flags & EF_MIPS_ARCH_ASE))
15474 {
15475 int old_micro = old_flags & EF_MIPS_ARCH_ASE_MICROMIPS;
15476 int new_micro = new_flags & EF_MIPS_ARCH_ASE_MICROMIPS;
15477 int old_m16 = old_flags & EF_MIPS_ARCH_ASE_M16;
15478 int new_m16 = new_flags & EF_MIPS_ARCH_ASE_M16;
15479 int micro_mis = old_m16 && new_micro;
15480 int m16_mis = old_micro && new_m16;
15481
15482 if (m16_mis || micro_mis)
15483 {
4eca0228 15484 _bfd_error_handler
695344c0 15485 /* xgettext:c-format */
871b3ab2 15486 (_("%pB: ASE mismatch: linking %s module with previous %s modules"),
b2e9744f
MR
15487 ibfd,
15488 m16_mis ? "MIPS16" : "microMIPS",
15489 m16_mis ? "microMIPS" : "MIPS16");
15490 ok = FALSE;
15491 }
15492
15493 elf_elfheader (obfd)->e_flags |= new_flags & EF_MIPS_ARCH_ASE;
15494
15495 new_flags &= ~ EF_MIPS_ARCH_ASE;
15496 old_flags &= ~ EF_MIPS_ARCH_ASE;
15497 }
15498
15499 /* Compare NaN encodings. */
15500 if ((new_flags & EF_MIPS_NAN2008) != (old_flags & EF_MIPS_NAN2008))
15501 {
695344c0 15502 /* xgettext:c-format */
871b3ab2 15503 _bfd_error_handler (_("%pB: linking %s module with previous %s modules"),
b2e9744f
MR
15504 ibfd,
15505 (new_flags & EF_MIPS_NAN2008
15506 ? "-mnan=2008" : "-mnan=legacy"),
15507 (old_flags & EF_MIPS_NAN2008
15508 ? "-mnan=2008" : "-mnan=legacy"));
15509 ok = FALSE;
15510 new_flags &= ~EF_MIPS_NAN2008;
15511 old_flags &= ~EF_MIPS_NAN2008;
15512 }
15513
15514 /* Compare FP64 state. */
15515 if ((new_flags & EF_MIPS_FP64) != (old_flags & EF_MIPS_FP64))
15516 {
695344c0 15517 /* xgettext:c-format */
871b3ab2 15518 _bfd_error_handler (_("%pB: linking %s module with previous %s modules"),
b2e9744f
MR
15519 ibfd,
15520 (new_flags & EF_MIPS_FP64
15521 ? "-mfp64" : "-mfp32"),
15522 (old_flags & EF_MIPS_FP64
15523 ? "-mfp64" : "-mfp32"));
15524 ok = FALSE;
15525 new_flags &= ~EF_MIPS_FP64;
15526 old_flags &= ~EF_MIPS_FP64;
15527 }
15528
15529 /* Warn about any other mismatches */
15530 if (new_flags != old_flags)
15531 {
695344c0 15532 /* xgettext:c-format */
4eca0228 15533 _bfd_error_handler
871b3ab2 15534 (_("%pB: uses different e_flags (%#x) fields than previous modules "
d42c267e
AM
15535 "(%#x)"),
15536 ibfd, new_flags, old_flags);
b2e9744f
MR
15537 ok = FALSE;
15538 }
15539
15540 return ok;
15541}
15542
2cf19d5c
JM
15543/* Merge object attributes from IBFD into OBFD. Raise an error if
15544 there are conflicting attributes. */
15545static bfd_boolean
50e03d47 15546mips_elf_merge_obj_attributes (bfd *ibfd, struct bfd_link_info *info)
2cf19d5c 15547{
50e03d47 15548 bfd *obfd = info->output_bfd;
2cf19d5c
JM
15549 obj_attribute *in_attr;
15550 obj_attribute *out_attr;
6ae68ba3 15551 bfd *abi_fp_bfd;
b60bf9be 15552 bfd *abi_msa_bfd;
6ae68ba3
MR
15553
15554 abi_fp_bfd = mips_elf_tdata (obfd)->abi_fp_bfd;
15555 in_attr = elf_known_obj_attributes (ibfd)[OBJ_ATTR_GNU];
d929bc19 15556 if (!abi_fp_bfd && in_attr[Tag_GNU_MIPS_ABI_FP].i != Val_GNU_MIPS_ABI_FP_ANY)
6ae68ba3 15557 mips_elf_tdata (obfd)->abi_fp_bfd = ibfd;
2cf19d5c 15558
b60bf9be
CF
15559 abi_msa_bfd = mips_elf_tdata (obfd)->abi_msa_bfd;
15560 if (!abi_msa_bfd
15561 && in_attr[Tag_GNU_MIPS_ABI_MSA].i != Val_GNU_MIPS_ABI_MSA_ANY)
15562 mips_elf_tdata (obfd)->abi_msa_bfd = ibfd;
15563
2cf19d5c
JM
15564 if (!elf_known_obj_attributes_proc (obfd)[0].i)
15565 {
15566 /* This is the first object. Copy the attributes. */
15567 _bfd_elf_copy_obj_attributes (ibfd, obfd);
15568
15569 /* Use the Tag_null value to indicate the attributes have been
15570 initialized. */
15571 elf_known_obj_attributes_proc (obfd)[0].i = 1;
15572
15573 return TRUE;
15574 }
15575
15576 /* Check for conflicting Tag_GNU_MIPS_ABI_FP attributes and merge
15577 non-conflicting ones. */
2cf19d5c
JM
15578 out_attr = elf_known_obj_attributes (obfd)[OBJ_ATTR_GNU];
15579 if (in_attr[Tag_GNU_MIPS_ABI_FP].i != out_attr[Tag_GNU_MIPS_ABI_FP].i)
15580 {
757a636f 15581 int out_fp, in_fp;
6ae68ba3 15582
757a636f
RS
15583 out_fp = out_attr[Tag_GNU_MIPS_ABI_FP].i;
15584 in_fp = in_attr[Tag_GNU_MIPS_ABI_FP].i;
15585 out_attr[Tag_GNU_MIPS_ABI_FP].type = 1;
15586 if (out_fp == Val_GNU_MIPS_ABI_FP_ANY)
15587 out_attr[Tag_GNU_MIPS_ABI_FP].i = in_fp;
351cdf24
MF
15588 else if (out_fp == Val_GNU_MIPS_ABI_FP_XX
15589 && (in_fp == Val_GNU_MIPS_ABI_FP_DOUBLE
15590 || in_fp == Val_GNU_MIPS_ABI_FP_64
15591 || in_fp == Val_GNU_MIPS_ABI_FP_64A))
15592 {
15593 mips_elf_tdata (obfd)->abi_fp_bfd = ibfd;
15594 out_attr[Tag_GNU_MIPS_ABI_FP].i = in_attr[Tag_GNU_MIPS_ABI_FP].i;
15595 }
15596 else if (in_fp == Val_GNU_MIPS_ABI_FP_XX
15597 && (out_fp == Val_GNU_MIPS_ABI_FP_DOUBLE
15598 || out_fp == Val_GNU_MIPS_ABI_FP_64
15599 || out_fp == Val_GNU_MIPS_ABI_FP_64A))
15600 /* Keep the current setting. */;
15601 else if (out_fp == Val_GNU_MIPS_ABI_FP_64A
15602 && in_fp == Val_GNU_MIPS_ABI_FP_64)
15603 {
15604 mips_elf_tdata (obfd)->abi_fp_bfd = ibfd;
15605 out_attr[Tag_GNU_MIPS_ABI_FP].i = in_attr[Tag_GNU_MIPS_ABI_FP].i;
15606 }
15607 else if (in_fp == Val_GNU_MIPS_ABI_FP_64A
15608 && out_fp == Val_GNU_MIPS_ABI_FP_64)
15609 /* Keep the current setting. */;
757a636f
RS
15610 else if (in_fp != Val_GNU_MIPS_ABI_FP_ANY)
15611 {
15612 const char *out_string, *in_string;
6ae68ba3 15613
757a636f
RS
15614 out_string = _bfd_mips_fp_abi_string (out_fp);
15615 in_string = _bfd_mips_fp_abi_string (in_fp);
15616 /* First warn about cases involving unrecognised ABIs. */
15617 if (!out_string && !in_string)
695344c0 15618 /* xgettext:c-format */
757a636f 15619 _bfd_error_handler
2c1c9679 15620 (_("warning: %pB uses unknown floating point ABI %d "
871b3ab2 15621 "(set by %pB), %pB uses unknown floating point ABI %d"),
c08bb8dd 15622 obfd, out_fp, abi_fp_bfd, ibfd, in_fp);
757a636f
RS
15623 else if (!out_string)
15624 _bfd_error_handler
695344c0 15625 /* xgettext:c-format */
2c1c9679 15626 (_("warning: %pB uses unknown floating point ABI %d "
871b3ab2 15627 "(set by %pB), %pB uses %s"),
c08bb8dd 15628 obfd, out_fp, abi_fp_bfd, ibfd, in_string);
757a636f
RS
15629 else if (!in_string)
15630 _bfd_error_handler
695344c0 15631 /* xgettext:c-format */
2c1c9679 15632 (_("warning: %pB uses %s (set by %pB), "
871b3ab2 15633 "%pB uses unknown floating point ABI %d"),
c08bb8dd 15634 obfd, out_string, abi_fp_bfd, ibfd, in_fp);
757a636f
RS
15635 else
15636 {
15637 /* If one of the bfds is soft-float, the other must be
15638 hard-float. The exact choice of hard-float ABI isn't
15639 really relevant to the error message. */
15640 if (in_fp == Val_GNU_MIPS_ABI_FP_SOFT)
15641 out_string = "-mhard-float";
15642 else if (out_fp == Val_GNU_MIPS_ABI_FP_SOFT)
15643 in_string = "-mhard-float";
15644 _bfd_error_handler
695344c0 15645 /* xgettext:c-format */
2c1c9679 15646 (_("warning: %pB uses %s (set by %pB), %pB uses %s"),
c08bb8dd 15647 obfd, out_string, abi_fp_bfd, ibfd, in_string);
757a636f
RS
15648 }
15649 }
2cf19d5c
JM
15650 }
15651
b60bf9be
CF
15652 /* Check for conflicting Tag_GNU_MIPS_ABI_MSA attributes and merge
15653 non-conflicting ones. */
15654 if (in_attr[Tag_GNU_MIPS_ABI_MSA].i != out_attr[Tag_GNU_MIPS_ABI_MSA].i)
15655 {
15656 out_attr[Tag_GNU_MIPS_ABI_MSA].type = 1;
15657 if (out_attr[Tag_GNU_MIPS_ABI_MSA].i == Val_GNU_MIPS_ABI_MSA_ANY)
15658 out_attr[Tag_GNU_MIPS_ABI_MSA].i = in_attr[Tag_GNU_MIPS_ABI_MSA].i;
15659 else if (in_attr[Tag_GNU_MIPS_ABI_MSA].i != Val_GNU_MIPS_ABI_MSA_ANY)
15660 switch (out_attr[Tag_GNU_MIPS_ABI_MSA].i)
15661 {
15662 case Val_GNU_MIPS_ABI_MSA_128:
15663 _bfd_error_handler
695344c0 15664 /* xgettext:c-format */
2c1c9679 15665 (_("warning: %pB uses %s (set by %pB), "
871b3ab2 15666 "%pB uses unknown MSA ABI %d"),
c08bb8dd
AM
15667 obfd, "-mmsa", abi_msa_bfd,
15668 ibfd, in_attr[Tag_GNU_MIPS_ABI_MSA].i);
b60bf9be
CF
15669 break;
15670
15671 default:
15672 switch (in_attr[Tag_GNU_MIPS_ABI_MSA].i)
15673 {
15674 case Val_GNU_MIPS_ABI_MSA_128:
15675 _bfd_error_handler
695344c0 15676 /* xgettext:c-format */
2c1c9679 15677 (_("warning: %pB uses unknown MSA ABI %d "
871b3ab2 15678 "(set by %pB), %pB uses %s"),
c08bb8dd
AM
15679 obfd, out_attr[Tag_GNU_MIPS_ABI_MSA].i,
15680 abi_msa_bfd, ibfd, "-mmsa");
b60bf9be
CF
15681 break;
15682
15683 default:
15684 _bfd_error_handler
695344c0 15685 /* xgettext:c-format */
2c1c9679 15686 (_("warning: %pB uses unknown MSA ABI %d "
871b3ab2 15687 "(set by %pB), %pB uses unknown MSA ABI %d"),
c08bb8dd
AM
15688 obfd, out_attr[Tag_GNU_MIPS_ABI_MSA].i,
15689 abi_msa_bfd, ibfd, in_attr[Tag_GNU_MIPS_ABI_MSA].i);
b60bf9be
CF
15690 break;
15691 }
15692 }
15693 }
15694
2cf19d5c 15695 /* Merge Tag_compatibility attributes and any common GNU ones. */
50e03d47 15696 return _bfd_elf_merge_object_attributes (ibfd, info);
2cf19d5c
JM
15697}
15698
a3dc0a7f
MR
15699/* Merge object ABI flags from IBFD into OBFD. Raise an error if
15700 there are conflicting settings. */
15701
15702static bfd_boolean
15703mips_elf_merge_obj_abiflags (bfd *ibfd, bfd *obfd)
15704{
15705 obj_attribute *out_attr = elf_known_obj_attributes (obfd)[OBJ_ATTR_GNU];
15706 struct mips_elf_obj_tdata *out_tdata = mips_elf_tdata (obfd);
15707 struct mips_elf_obj_tdata *in_tdata = mips_elf_tdata (ibfd);
15708
15709 /* Update the output abiflags fp_abi using the computed fp_abi. */
15710 out_tdata->abiflags.fp_abi = out_attr[Tag_GNU_MIPS_ABI_FP].i;
15711
15712#define max(a, b) ((a) > (b) ? (a) : (b))
15713 /* Merge abiflags. */
15714 out_tdata->abiflags.isa_level = max (out_tdata->abiflags.isa_level,
15715 in_tdata->abiflags.isa_level);
15716 out_tdata->abiflags.isa_rev = max (out_tdata->abiflags.isa_rev,
15717 in_tdata->abiflags.isa_rev);
15718 out_tdata->abiflags.gpr_size = max (out_tdata->abiflags.gpr_size,
15719 in_tdata->abiflags.gpr_size);
15720 out_tdata->abiflags.cpr1_size = max (out_tdata->abiflags.cpr1_size,
15721 in_tdata->abiflags.cpr1_size);
15722 out_tdata->abiflags.cpr2_size = max (out_tdata->abiflags.cpr2_size,
15723 in_tdata->abiflags.cpr2_size);
15724#undef max
15725 out_tdata->abiflags.ases |= in_tdata->abiflags.ases;
15726 out_tdata->abiflags.flags1 |= in_tdata->abiflags.flags1;
15727
15728 return TRUE;
15729}
15730
b49e97c9
TS
15731/* Merge backend specific data from an object file to the output
15732 object file when linking. */
15733
b34976b6 15734bfd_boolean
50e03d47 15735_bfd_mips_elf_merge_private_bfd_data (bfd *ibfd, struct bfd_link_info *info)
b49e97c9 15736{
50e03d47 15737 bfd *obfd = info->output_bfd;
cf8502c1
MR
15738 struct mips_elf_obj_tdata *out_tdata;
15739 struct mips_elf_obj_tdata *in_tdata;
b34976b6 15740 bfd_boolean null_input_bfd = TRUE;
b49e97c9 15741 asection *sec;
d537eeb5 15742 bfd_boolean ok;
b49e97c9 15743
58238693 15744 /* Check if we have the same endianness. */
50e03d47 15745 if (! _bfd_generic_verify_endian_match (ibfd, info))
aa701218 15746 {
4eca0228 15747 _bfd_error_handler
871b3ab2 15748 (_("%pB: endianness incompatible with that of the selected emulation"),
d003868e 15749 ibfd);
aa701218
AO
15750 return FALSE;
15751 }
b49e97c9 15752
d5eaccd7 15753 if (!is_mips_elf (ibfd) || !is_mips_elf (obfd))
b34976b6 15754 return TRUE;
b49e97c9 15755
cf8502c1
MR
15756 in_tdata = mips_elf_tdata (ibfd);
15757 out_tdata = mips_elf_tdata (obfd);
15758
aa701218
AO
15759 if (strcmp (bfd_get_target (ibfd), bfd_get_target (obfd)) != 0)
15760 {
4eca0228 15761 _bfd_error_handler
871b3ab2 15762 (_("%pB: ABI is incompatible with that of the selected emulation"),
d003868e 15763 ibfd);
aa701218
AO
15764 return FALSE;
15765 }
15766
23ba6f18
MR
15767 /* Check to see if the input BFD actually contains any sections. If not,
15768 then it has no attributes, and its flags may not have been initialized
15769 either, but it cannot actually cause any incompatibility. */
351cdf24
MF
15770 for (sec = ibfd->sections; sec != NULL; sec = sec->next)
15771 {
15772 /* Ignore synthetic sections and empty .text, .data and .bss sections
15773 which are automatically generated by gas. Also ignore fake
15774 (s)common sections, since merely defining a common symbol does
15775 not affect compatibility. */
15776 if ((sec->flags & SEC_IS_COMMON) == 0
15777 && strcmp (sec->name, ".reginfo")
15778 && strcmp (sec->name, ".mdebug")
15779 && (sec->size != 0
15780 || (strcmp (sec->name, ".text")
15781 && strcmp (sec->name, ".data")
15782 && strcmp (sec->name, ".bss"))))
15783 {
15784 null_input_bfd = FALSE;
15785 break;
15786 }
15787 }
15788 if (null_input_bfd)
15789 return TRUE;
15790
28d45e28 15791 /* Populate abiflags using existing information. */
23ba6f18
MR
15792 if (in_tdata->abiflags_valid)
15793 {
15794 obj_attribute *in_attr = elf_known_obj_attributes (ibfd)[OBJ_ATTR_GNU];
28d45e28
MR
15795 Elf_Internal_ABIFlags_v0 in_abiflags;
15796 Elf_Internal_ABIFlags_v0 abiflags;
15797
15798 /* Set up the FP ABI attribute from the abiflags if it is not already
07d6d2b8 15799 set. */
23ba6f18 15800 if (in_attr[Tag_GNU_MIPS_ABI_FP].i == Val_GNU_MIPS_ABI_FP_ANY)
07d6d2b8 15801 in_attr[Tag_GNU_MIPS_ABI_FP].i = in_tdata->abiflags.fp_abi;
23ba6f18 15802
351cdf24 15803 infer_mips_abiflags (ibfd, &abiflags);
cf8502c1 15804 in_abiflags = in_tdata->abiflags;
351cdf24
MF
15805
15806 /* It is not possible to infer the correct ISA revision
07d6d2b8 15807 for R3 or R5 so drop down to R2 for the checks. */
351cdf24
MF
15808 if (in_abiflags.isa_rev == 3 || in_abiflags.isa_rev == 5)
15809 in_abiflags.isa_rev = 2;
15810
c97c330b
MF
15811 if (LEVEL_REV (in_abiflags.isa_level, in_abiflags.isa_rev)
15812 < LEVEL_REV (abiflags.isa_level, abiflags.isa_rev))
4eca0228 15813 _bfd_error_handler
2c1c9679 15814 (_("%pB: warning: inconsistent ISA between e_flags and "
351cdf24
MF
15815 ".MIPS.abiflags"), ibfd);
15816 if (abiflags.fp_abi != Val_GNU_MIPS_ABI_FP_ANY
15817 && in_abiflags.fp_abi != abiflags.fp_abi)
4eca0228 15818 _bfd_error_handler
2c1c9679 15819 (_("%pB: warning: inconsistent FP ABI between .gnu.attributes and "
351cdf24
MF
15820 ".MIPS.abiflags"), ibfd);
15821 if ((in_abiflags.ases & abiflags.ases) != abiflags.ases)
4eca0228 15822 _bfd_error_handler
2c1c9679 15823 (_("%pB: warning: inconsistent ASEs between e_flags and "
351cdf24 15824 ".MIPS.abiflags"), ibfd);
c97c330b
MF
15825 /* The isa_ext is allowed to be an extension of what can be inferred
15826 from e_flags. */
15827 if (!mips_mach_extends_p (bfd_mips_isa_ext_mach (abiflags.isa_ext),
15828 bfd_mips_isa_ext_mach (in_abiflags.isa_ext)))
4eca0228 15829 _bfd_error_handler
2c1c9679 15830 (_("%pB: warning: inconsistent ISA extensions between e_flags and "
351cdf24
MF
15831 ".MIPS.abiflags"), ibfd);
15832 if (in_abiflags.flags2 != 0)
4eca0228 15833 _bfd_error_handler
2c1c9679 15834 (_("%pB: warning: unexpected flag in the flags2 field of "
351cdf24 15835 ".MIPS.abiflags (0x%lx)"), ibfd,
d42c267e 15836 in_abiflags.flags2);
351cdf24 15837 }
28d45e28
MR
15838 else
15839 {
15840 infer_mips_abiflags (ibfd, &in_tdata->abiflags);
15841 in_tdata->abiflags_valid = TRUE;
15842 }
15843
cf8502c1 15844 if (!out_tdata->abiflags_valid)
351cdf24
MF
15845 {
15846 /* Copy input abiflags if output abiflags are not already valid. */
cf8502c1
MR
15847 out_tdata->abiflags = in_tdata->abiflags;
15848 out_tdata->abiflags_valid = TRUE;
351cdf24 15849 }
b49e97c9
TS
15850
15851 if (! elf_flags_init (obfd))
15852 {
b34976b6 15853 elf_flags_init (obfd) = TRUE;
351cdf24 15854 elf_elfheader (obfd)->e_flags = elf_elfheader (ibfd)->e_flags;
b49e97c9
TS
15855 elf_elfheader (obfd)->e_ident[EI_CLASS]
15856 = elf_elfheader (ibfd)->e_ident[EI_CLASS];
15857
15858 if (bfd_get_arch (obfd) == bfd_get_arch (ibfd)
2907b861 15859 && (bfd_get_arch_info (obfd)->the_default
68ffbac6 15860 || mips_mach_extends_p (bfd_get_mach (obfd),
2907b861 15861 bfd_get_mach (ibfd))))
b49e97c9
TS
15862 {
15863 if (! bfd_set_arch_mach (obfd, bfd_get_arch (ibfd),
15864 bfd_get_mach (ibfd)))
b34976b6 15865 return FALSE;
351cdf24
MF
15866
15867 /* Update the ABI flags isa_level, isa_rev and isa_ext fields. */
cf8502c1 15868 update_mips_abiflags_isa (obfd, &out_tdata->abiflags);
b49e97c9
TS
15869 }
15870
d537eeb5 15871 ok = TRUE;
b49e97c9 15872 }
d537eeb5 15873 else
50e03d47 15874 ok = mips_elf_merge_obj_e_flags (ibfd, info);
d537eeb5 15875
50e03d47 15876 ok = mips_elf_merge_obj_attributes (ibfd, info) && ok;
b49e97c9 15877
a3dc0a7f 15878 ok = mips_elf_merge_obj_abiflags (ibfd, obfd) && ok;
351cdf24 15879
d537eeb5 15880 if (!ok)
b49e97c9
TS
15881 {
15882 bfd_set_error (bfd_error_bad_value);
b34976b6 15883 return FALSE;
b49e97c9
TS
15884 }
15885
b34976b6 15886 return TRUE;
b49e97c9
TS
15887}
15888
15889/* Function to keep MIPS specific file flags like as EF_MIPS_PIC. */
15890
b34976b6 15891bfd_boolean
9719ad41 15892_bfd_mips_elf_set_private_flags (bfd *abfd, flagword flags)
b49e97c9
TS
15893{
15894 BFD_ASSERT (!elf_flags_init (abfd)
15895 || elf_elfheader (abfd)->e_flags == flags);
15896
15897 elf_elfheader (abfd)->e_flags = flags;
b34976b6
AM
15898 elf_flags_init (abfd) = TRUE;
15899 return TRUE;
b49e97c9
TS
15900}
15901
ad9563d6
CM
15902char *
15903_bfd_mips_elf_get_target_dtag (bfd_vma dtag)
15904{
15905 switch (dtag)
15906 {
15907 default: return "";
15908 case DT_MIPS_RLD_VERSION:
15909 return "MIPS_RLD_VERSION";
15910 case DT_MIPS_TIME_STAMP:
15911 return "MIPS_TIME_STAMP";
15912 case DT_MIPS_ICHECKSUM:
15913 return "MIPS_ICHECKSUM";
15914 case DT_MIPS_IVERSION:
15915 return "MIPS_IVERSION";
15916 case DT_MIPS_FLAGS:
15917 return "MIPS_FLAGS";
15918 case DT_MIPS_BASE_ADDRESS:
15919 return "MIPS_BASE_ADDRESS";
15920 case DT_MIPS_MSYM:
15921 return "MIPS_MSYM";
15922 case DT_MIPS_CONFLICT:
15923 return "MIPS_CONFLICT";
15924 case DT_MIPS_LIBLIST:
15925 return "MIPS_LIBLIST";
15926 case DT_MIPS_LOCAL_GOTNO:
15927 return "MIPS_LOCAL_GOTNO";
15928 case DT_MIPS_CONFLICTNO:
15929 return "MIPS_CONFLICTNO";
15930 case DT_MIPS_LIBLISTNO:
15931 return "MIPS_LIBLISTNO";
15932 case DT_MIPS_SYMTABNO:
15933 return "MIPS_SYMTABNO";
15934 case DT_MIPS_UNREFEXTNO:
15935 return "MIPS_UNREFEXTNO";
15936 case DT_MIPS_GOTSYM:
15937 return "MIPS_GOTSYM";
15938 case DT_MIPS_HIPAGENO:
15939 return "MIPS_HIPAGENO";
15940 case DT_MIPS_RLD_MAP:
15941 return "MIPS_RLD_MAP";
a5499fa4
MF
15942 case DT_MIPS_RLD_MAP_REL:
15943 return "MIPS_RLD_MAP_REL";
ad9563d6
CM
15944 case DT_MIPS_DELTA_CLASS:
15945 return "MIPS_DELTA_CLASS";
15946 case DT_MIPS_DELTA_CLASS_NO:
15947 return "MIPS_DELTA_CLASS_NO";
15948 case DT_MIPS_DELTA_INSTANCE:
15949 return "MIPS_DELTA_INSTANCE";
15950 case DT_MIPS_DELTA_INSTANCE_NO:
15951 return "MIPS_DELTA_INSTANCE_NO";
15952 case DT_MIPS_DELTA_RELOC:
15953 return "MIPS_DELTA_RELOC";
15954 case DT_MIPS_DELTA_RELOC_NO:
15955 return "MIPS_DELTA_RELOC_NO";
15956 case DT_MIPS_DELTA_SYM:
15957 return "MIPS_DELTA_SYM";
15958 case DT_MIPS_DELTA_SYM_NO:
15959 return "MIPS_DELTA_SYM_NO";
15960 case DT_MIPS_DELTA_CLASSSYM:
15961 return "MIPS_DELTA_CLASSSYM";
15962 case DT_MIPS_DELTA_CLASSSYM_NO:
15963 return "MIPS_DELTA_CLASSSYM_NO";
15964 case DT_MIPS_CXX_FLAGS:
15965 return "MIPS_CXX_FLAGS";
15966 case DT_MIPS_PIXIE_INIT:
15967 return "MIPS_PIXIE_INIT";
15968 case DT_MIPS_SYMBOL_LIB:
15969 return "MIPS_SYMBOL_LIB";
15970 case DT_MIPS_LOCALPAGE_GOTIDX:
15971 return "MIPS_LOCALPAGE_GOTIDX";
15972 case DT_MIPS_LOCAL_GOTIDX:
15973 return "MIPS_LOCAL_GOTIDX";
15974 case DT_MIPS_HIDDEN_GOTIDX:
15975 return "MIPS_HIDDEN_GOTIDX";
15976 case DT_MIPS_PROTECTED_GOTIDX:
15977 return "MIPS_PROTECTED_GOT_IDX";
15978 case DT_MIPS_OPTIONS:
15979 return "MIPS_OPTIONS";
15980 case DT_MIPS_INTERFACE:
15981 return "MIPS_INTERFACE";
15982 case DT_MIPS_DYNSTR_ALIGN:
15983 return "DT_MIPS_DYNSTR_ALIGN";
15984 case DT_MIPS_INTERFACE_SIZE:
15985 return "DT_MIPS_INTERFACE_SIZE";
15986 case DT_MIPS_RLD_TEXT_RESOLVE_ADDR:
15987 return "DT_MIPS_RLD_TEXT_RESOLVE_ADDR";
15988 case DT_MIPS_PERF_SUFFIX:
15989 return "DT_MIPS_PERF_SUFFIX";
15990 case DT_MIPS_COMPACT_SIZE:
15991 return "DT_MIPS_COMPACT_SIZE";
15992 case DT_MIPS_GP_VALUE:
15993 return "DT_MIPS_GP_VALUE";
15994 case DT_MIPS_AUX_DYNAMIC:
15995 return "DT_MIPS_AUX_DYNAMIC";
861fb55a
DJ
15996 case DT_MIPS_PLTGOT:
15997 return "DT_MIPS_PLTGOT";
15998 case DT_MIPS_RWPLT:
15999 return "DT_MIPS_RWPLT";
f16a9783
MS
16000 case DT_MIPS_XHASH:
16001 return "DT_MIPS_XHASH";
ad9563d6
CM
16002 }
16003}
16004
757a636f
RS
16005/* Return the meaning of Tag_GNU_MIPS_ABI_FP value FP, or null if
16006 not known. */
16007
16008const char *
16009_bfd_mips_fp_abi_string (int fp)
16010{
16011 switch (fp)
16012 {
16013 /* These strings aren't translated because they're simply
16014 option lists. */
16015 case Val_GNU_MIPS_ABI_FP_DOUBLE:
16016 return "-mdouble-float";
16017
16018 case Val_GNU_MIPS_ABI_FP_SINGLE:
16019 return "-msingle-float";
16020
16021 case Val_GNU_MIPS_ABI_FP_SOFT:
16022 return "-msoft-float";
16023
351cdf24
MF
16024 case Val_GNU_MIPS_ABI_FP_OLD_64:
16025 return _("-mips32r2 -mfp64 (12 callee-saved)");
16026
16027 case Val_GNU_MIPS_ABI_FP_XX:
16028 return "-mfpxx";
16029
757a636f 16030 case Val_GNU_MIPS_ABI_FP_64:
351cdf24
MF
16031 return "-mgp32 -mfp64";
16032
16033 case Val_GNU_MIPS_ABI_FP_64A:
16034 return "-mgp32 -mfp64 -mno-odd-spreg";
757a636f
RS
16035
16036 default:
16037 return 0;
16038 }
16039}
16040
351cdf24
MF
16041static void
16042print_mips_ases (FILE *file, unsigned int mask)
16043{
16044 if (mask & AFL_ASE_DSP)
16045 fputs ("\n\tDSP ASE", file);
16046 if (mask & AFL_ASE_DSPR2)
16047 fputs ("\n\tDSP R2 ASE", file);
8f4f9071
MF
16048 if (mask & AFL_ASE_DSPR3)
16049 fputs ("\n\tDSP R3 ASE", file);
351cdf24
MF
16050 if (mask & AFL_ASE_EVA)
16051 fputs ("\n\tEnhanced VA Scheme", file);
16052 if (mask & AFL_ASE_MCU)
16053 fputs ("\n\tMCU (MicroController) ASE", file);
16054 if (mask & AFL_ASE_MDMX)
16055 fputs ("\n\tMDMX ASE", file);
16056 if (mask & AFL_ASE_MIPS3D)
16057 fputs ("\n\tMIPS-3D ASE", file);
16058 if (mask & AFL_ASE_MT)
16059 fputs ("\n\tMT ASE", file);
16060 if (mask & AFL_ASE_SMARTMIPS)
16061 fputs ("\n\tSmartMIPS ASE", file);
16062 if (mask & AFL_ASE_VIRT)
16063 fputs ("\n\tVZ ASE", file);
16064 if (mask & AFL_ASE_MSA)
16065 fputs ("\n\tMSA ASE", file);
16066 if (mask & AFL_ASE_MIPS16)
16067 fputs ("\n\tMIPS16 ASE", file);
16068 if (mask & AFL_ASE_MICROMIPS)
16069 fputs ("\n\tMICROMIPS ASE", file);
16070 if (mask & AFL_ASE_XPA)
16071 fputs ("\n\tXPA ASE", file);
25499ac7
MR
16072 if (mask & AFL_ASE_MIPS16E2)
16073 fputs ("\n\tMIPS16e2 ASE", file);
730c3174
SE
16074 if (mask & AFL_ASE_CRC)
16075 fputs ("\n\tCRC ASE", file);
6f20c942
FS
16076 if (mask & AFL_ASE_GINV)
16077 fputs ("\n\tGINV ASE", file);
8095d2f7
CX
16078 if (mask & AFL_ASE_LOONGSON_MMI)
16079 fputs ("\n\tLoongson MMI ASE", file);
716c08de
CX
16080 if (mask & AFL_ASE_LOONGSON_CAM)
16081 fputs ("\n\tLoongson CAM ASE", file);
bdc6c06e
CX
16082 if (mask & AFL_ASE_LOONGSON_EXT)
16083 fputs ("\n\tLoongson EXT ASE", file);
a693765e
CX
16084 if (mask & AFL_ASE_LOONGSON_EXT2)
16085 fputs ("\n\tLoongson EXT2 ASE", file);
351cdf24
MF
16086 if (mask == 0)
16087 fprintf (file, "\n\t%s", _("None"));
00ac7aa0
MF
16088 else if ((mask & ~AFL_ASE_MASK) != 0)
16089 fprintf (stdout, "\n\t%s (%x)", _("Unknown"), mask & ~AFL_ASE_MASK);
351cdf24
MF
16090}
16091
16092static void
16093print_mips_isa_ext (FILE *file, unsigned int isa_ext)
16094{
16095 switch (isa_ext)
16096 {
16097 case 0:
16098 fputs (_("None"), file);
16099 break;
16100 case AFL_EXT_XLR:
16101 fputs ("RMI XLR", file);
16102 break;
2c629856
N
16103 case AFL_EXT_OCTEON3:
16104 fputs ("Cavium Networks Octeon3", file);
16105 break;
351cdf24
MF
16106 case AFL_EXT_OCTEON2:
16107 fputs ("Cavium Networks Octeon2", file);
16108 break;
16109 case AFL_EXT_OCTEONP:
16110 fputs ("Cavium Networks OcteonP", file);
16111 break;
351cdf24
MF
16112 case AFL_EXT_OCTEON:
16113 fputs ("Cavium Networks Octeon", file);
16114 break;
16115 case AFL_EXT_5900:
16116 fputs ("Toshiba R5900", file);
16117 break;
16118 case AFL_EXT_4650:
16119 fputs ("MIPS R4650", file);
16120 break;
16121 case AFL_EXT_4010:
16122 fputs ("LSI R4010", file);
16123 break;
16124 case AFL_EXT_4100:
16125 fputs ("NEC VR4100", file);
16126 break;
16127 case AFL_EXT_3900:
16128 fputs ("Toshiba R3900", file);
16129 break;
16130 case AFL_EXT_10000:
16131 fputs ("MIPS R10000", file);
16132 break;
16133 case AFL_EXT_SB1:
16134 fputs ("Broadcom SB-1", file);
16135 break;
16136 case AFL_EXT_4111:
16137 fputs ("NEC VR4111/VR4181", file);
16138 break;
16139 case AFL_EXT_4120:
16140 fputs ("NEC VR4120", file);
16141 break;
16142 case AFL_EXT_5400:
16143 fputs ("NEC VR5400", file);
16144 break;
16145 case AFL_EXT_5500:
16146 fputs ("NEC VR5500", file);
16147 break;
16148 case AFL_EXT_LOONGSON_2E:
16149 fputs ("ST Microelectronics Loongson 2E", file);
16150 break;
16151 case AFL_EXT_LOONGSON_2F:
16152 fputs ("ST Microelectronics Loongson 2F", file);
16153 break;
38bf472a
MR
16154 case AFL_EXT_INTERAPTIV_MR2:
16155 fputs ("Imagination interAptiv MR2", file);
16156 break;
351cdf24 16157 default:
00ac7aa0 16158 fprintf (file, "%s (%d)", _("Unknown"), isa_ext);
351cdf24
MF
16159 break;
16160 }
16161}
16162
16163static void
16164print_mips_fp_abi_value (FILE *file, int val)
16165{
16166 switch (val)
16167 {
16168 case Val_GNU_MIPS_ABI_FP_ANY:
16169 fprintf (file, _("Hard or soft float\n"));
16170 break;
16171 case Val_GNU_MIPS_ABI_FP_DOUBLE:
16172 fprintf (file, _("Hard float (double precision)\n"));
16173 break;
16174 case Val_GNU_MIPS_ABI_FP_SINGLE:
16175 fprintf (file, _("Hard float (single precision)\n"));
16176 break;
16177 case Val_GNU_MIPS_ABI_FP_SOFT:
16178 fprintf (file, _("Soft float\n"));
16179 break;
16180 case Val_GNU_MIPS_ABI_FP_OLD_64:
16181 fprintf (file, _("Hard float (MIPS32r2 64-bit FPU 12 callee-saved)\n"));
16182 break;
16183 case Val_GNU_MIPS_ABI_FP_XX:
16184 fprintf (file, _("Hard float (32-bit CPU, Any FPU)\n"));
16185 break;
16186 case Val_GNU_MIPS_ABI_FP_64:
16187 fprintf (file, _("Hard float (32-bit CPU, 64-bit FPU)\n"));
16188 break;
16189 case Val_GNU_MIPS_ABI_FP_64A:
16190 fprintf (file, _("Hard float compat (32-bit CPU, 64-bit FPU)\n"));
16191 break;
16192 default:
16193 fprintf (file, "??? (%d)\n", val);
16194 break;
16195 }
16196}
16197
16198static int
16199get_mips_reg_size (int reg_size)
16200{
16201 return (reg_size == AFL_REG_NONE) ? 0
16202 : (reg_size == AFL_REG_32) ? 32
16203 : (reg_size == AFL_REG_64) ? 64
16204 : (reg_size == AFL_REG_128) ? 128
16205 : -1;
16206}
16207
b34976b6 16208bfd_boolean
9719ad41 16209_bfd_mips_elf_print_private_bfd_data (bfd *abfd, void *ptr)
b49e97c9 16210{
9719ad41 16211 FILE *file = ptr;
b49e97c9
TS
16212
16213 BFD_ASSERT (abfd != NULL && ptr != NULL);
16214
16215 /* Print normal ELF private data. */
16216 _bfd_elf_print_private_bfd_data (abfd, ptr);
16217
16218 /* xgettext:c-format */
16219 fprintf (file, _("private flags = %lx:"), elf_elfheader (abfd)->e_flags);
16220
16221 if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ABI) == E_MIPS_ABI_O32)
16222 fprintf (file, _(" [abi=O32]"));
16223 else if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ABI) == E_MIPS_ABI_O64)
16224 fprintf (file, _(" [abi=O64]"));
16225 else if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ABI) == E_MIPS_ABI_EABI32)
16226 fprintf (file, _(" [abi=EABI32]"));
16227 else if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ABI) == E_MIPS_ABI_EABI64)
16228 fprintf (file, _(" [abi=EABI64]"));
16229 else if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ABI))
16230 fprintf (file, _(" [abi unknown]"));
16231 else if (ABI_N32_P (abfd))
16232 fprintf (file, _(" [abi=N32]"));
16233 else if (ABI_64_P (abfd))
16234 fprintf (file, _(" [abi=64]"));
16235 else
16236 fprintf (file, _(" [no abi set]"));
16237
16238 if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH) == E_MIPS_ARCH_1)
ae0d2616 16239 fprintf (file, " [mips1]");
b49e97c9 16240 else if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH) == E_MIPS_ARCH_2)
ae0d2616 16241 fprintf (file, " [mips2]");
b49e97c9 16242 else if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH) == E_MIPS_ARCH_3)
ae0d2616 16243 fprintf (file, " [mips3]");
b49e97c9 16244 else if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH) == E_MIPS_ARCH_4)
ae0d2616 16245 fprintf (file, " [mips4]");
b49e97c9 16246 else if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH) == E_MIPS_ARCH_5)
ae0d2616 16247 fprintf (file, " [mips5]");
b49e97c9 16248 else if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH) == E_MIPS_ARCH_32)
ae0d2616 16249 fprintf (file, " [mips32]");
b49e97c9 16250 else if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH) == E_MIPS_ARCH_64)
ae0d2616 16251 fprintf (file, " [mips64]");
af7ee8bf 16252 else if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH) == E_MIPS_ARCH_32R2)
ae0d2616 16253 fprintf (file, " [mips32r2]");
5f74bc13 16254 else if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH) == E_MIPS_ARCH_64R2)
ae0d2616 16255 fprintf (file, " [mips64r2]");
7361da2c
AB
16256 else if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH) == E_MIPS_ARCH_32R6)
16257 fprintf (file, " [mips32r6]");
16258 else if ((elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH) == E_MIPS_ARCH_64R6)
16259 fprintf (file, " [mips64r6]");
b49e97c9
TS
16260 else
16261 fprintf (file, _(" [unknown ISA]"));
16262
40d32fc6 16263 if (elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH_ASE_MDMX)
ae0d2616 16264 fprintf (file, " [mdmx]");
40d32fc6
CD
16265
16266 if (elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH_ASE_M16)
ae0d2616 16267 fprintf (file, " [mips16]");
40d32fc6 16268
df58fc94
RS
16269 if (elf_elfheader (abfd)->e_flags & EF_MIPS_ARCH_ASE_MICROMIPS)
16270 fprintf (file, " [micromips]");
16271
ba92f887
MR
16272 if (elf_elfheader (abfd)->e_flags & EF_MIPS_NAN2008)
16273 fprintf (file, " [nan2008]");
16274
5baf5e34 16275 if (elf_elfheader (abfd)->e_flags & EF_MIPS_FP64)
351cdf24 16276 fprintf (file, " [old fp64]");
5baf5e34 16277
b49e97c9 16278 if (elf_elfheader (abfd)->e_flags & EF_MIPS_32BITMODE)
ae0d2616 16279 fprintf (file, " [32bitmode]");
b49e97c9
TS
16280 else
16281 fprintf (file, _(" [not 32bitmode]"));
16282
c0e3f241 16283 if (elf_elfheader (abfd)->e_flags & EF_MIPS_NOREORDER)
ae0d2616 16284 fprintf (file, " [noreorder]");
c0e3f241
CD
16285
16286 if (elf_elfheader (abfd)->e_flags & EF_MIPS_PIC)
ae0d2616 16287 fprintf (file, " [PIC]");
c0e3f241
CD
16288
16289 if (elf_elfheader (abfd)->e_flags & EF_MIPS_CPIC)
ae0d2616 16290 fprintf (file, " [CPIC]");
c0e3f241
CD
16291
16292 if (elf_elfheader (abfd)->e_flags & EF_MIPS_XGOT)
ae0d2616 16293 fprintf (file, " [XGOT]");
c0e3f241
CD
16294
16295 if (elf_elfheader (abfd)->e_flags & EF_MIPS_UCODE)
ae0d2616 16296 fprintf (file, " [UCODE]");
c0e3f241 16297
b49e97c9
TS
16298 fputc ('\n', file);
16299
351cdf24
MF
16300 if (mips_elf_tdata (abfd)->abiflags_valid)
16301 {
16302 Elf_Internal_ABIFlags_v0 *abiflags = &mips_elf_tdata (abfd)->abiflags;
16303 fprintf (file, "\nMIPS ABI Flags Version: %d\n", abiflags->version);
16304 fprintf (file, "\nISA: MIPS%d", abiflags->isa_level);
16305 if (abiflags->isa_rev > 1)
16306 fprintf (file, "r%d", abiflags->isa_rev);
16307 fprintf (file, "\nGPR size: %d",
16308 get_mips_reg_size (abiflags->gpr_size));
16309 fprintf (file, "\nCPR1 size: %d",
16310 get_mips_reg_size (abiflags->cpr1_size));
16311 fprintf (file, "\nCPR2 size: %d",
16312 get_mips_reg_size (abiflags->cpr2_size));
16313 fputs ("\nFP ABI: ", file);
16314 print_mips_fp_abi_value (file, abiflags->fp_abi);
16315 fputs ("ISA Extension: ", file);
16316 print_mips_isa_ext (file, abiflags->isa_ext);
16317 fputs ("\nASEs:", file);
16318 print_mips_ases (file, abiflags->ases);
16319 fprintf (file, "\nFLAGS 1: %8.8lx", abiflags->flags1);
16320 fprintf (file, "\nFLAGS 2: %8.8lx", abiflags->flags2);
16321 fputc ('\n', file);
16322 }
16323
b34976b6 16324 return TRUE;
b49e97c9 16325}
2f89ff8d 16326
b35d266b 16327const struct bfd_elf_special_section _bfd_mips_elf_special_sections[] =
2f89ff8d 16328{
07d6d2b8
AM
16329 { STRING_COMMA_LEN (".lit4"), 0, SHT_PROGBITS, SHF_ALLOC + SHF_WRITE + SHF_MIPS_GPREL },
16330 { STRING_COMMA_LEN (".lit8"), 0, SHT_PROGBITS, SHF_ALLOC + SHF_WRITE + SHF_MIPS_GPREL },
0112cd26 16331 { STRING_COMMA_LEN (".mdebug"), 0, SHT_MIPS_DEBUG, 0 },
07d6d2b8 16332 { STRING_COMMA_LEN (".sbss"), -2, SHT_NOBITS, SHF_ALLOC + SHF_WRITE + SHF_MIPS_GPREL },
0112cd26
NC
16333 { STRING_COMMA_LEN (".sdata"), -2, SHT_PROGBITS, SHF_ALLOC + SHF_WRITE + SHF_MIPS_GPREL },
16334 { STRING_COMMA_LEN (".ucode"), 0, SHT_MIPS_UCODE, 0 },
f16a9783 16335 { STRING_COMMA_LEN (".MIPS.xhash"), 0, SHT_MIPS_XHASH, SHF_ALLOC },
07d6d2b8 16336 { NULL, 0, 0, 0, 0 }
2f89ff8d 16337};
5e2b0d47 16338
8992f0d7
TS
16339/* Merge non visibility st_other attributes. Ensure that the
16340 STO_OPTIONAL flag is copied into h->other, even if this is not a
16341 definiton of the symbol. */
5e2b0d47
NC
16342void
16343_bfd_mips_elf_merge_symbol_attribute (struct elf_link_hash_entry *h,
16344 const Elf_Internal_Sym *isym,
16345 bfd_boolean definition,
16346 bfd_boolean dynamic ATTRIBUTE_UNUSED)
16347{
8992f0d7
TS
16348 if ((isym->st_other & ~ELF_ST_VISIBILITY (-1)) != 0)
16349 {
16350 unsigned char other;
16351
16352 other = (definition ? isym->st_other : h->other);
16353 other &= ~ELF_ST_VISIBILITY (-1);
16354 h->other = other | ELF_ST_VISIBILITY (h->other);
16355 }
16356
16357 if (!definition
5e2b0d47
NC
16358 && ELF_MIPS_IS_OPTIONAL (isym->st_other))
16359 h->other |= STO_OPTIONAL;
16360}
12ac1cf5
NC
16361
16362/* Decide whether an undefined symbol is special and can be ignored.
16363 This is the case for OPTIONAL symbols on IRIX. */
16364bfd_boolean
16365_bfd_mips_elf_ignore_undef_symbol (struct elf_link_hash_entry *h)
16366{
16367 return ELF_MIPS_IS_OPTIONAL (h->other) ? TRUE : FALSE;
16368}
e0764319
NC
16369
16370bfd_boolean
16371_bfd_mips_elf_common_definition (Elf_Internal_Sym *sym)
16372{
16373 return (sym->st_shndx == SHN_COMMON
16374 || sym->st_shndx == SHN_MIPS_ACOMMON
16375 || sym->st_shndx == SHN_MIPS_SCOMMON);
16376}
861fb55a
DJ
16377
16378/* Return address for Ith PLT stub in section PLT, for relocation REL
16379 or (bfd_vma) -1 if it should not be included. */
16380
16381bfd_vma
16382_bfd_mips_elf_plt_sym_val (bfd_vma i, const asection *plt,
16383 const arelent *rel ATTRIBUTE_UNUSED)
16384{
16385 return (plt->vma
16386 + 4 * ARRAY_SIZE (mips_o32_exec_plt0_entry)
16387 + i * 4 * ARRAY_SIZE (mips_exec_plt_entry));
16388}
16389
1bbce132
MR
16390/* Build a table of synthetic symbols to represent the PLT. As with MIPS16
16391 and microMIPS PLT slots we may have a many-to-one mapping between .plt
16392 and .got.plt and also the slots may be of a different size each we walk
16393 the PLT manually fetching instructions and matching them against known
16394 patterns. To make things easier standard MIPS slots, if any, always come
16395 first. As we don't create proper ELF symbols we use the UDATA.I member
16396 of ASYMBOL to carry ISA annotation. The encoding used is the same as
16397 with the ST_OTHER member of the ELF symbol. */
16398
16399long
16400_bfd_mips_elf_get_synthetic_symtab (bfd *abfd,
16401 long symcount ATTRIBUTE_UNUSED,
16402 asymbol **syms ATTRIBUTE_UNUSED,
16403 long dynsymcount, asymbol **dynsyms,
16404 asymbol **ret)
16405{
16406 static const char pltname[] = "_PROCEDURE_LINKAGE_TABLE_";
16407 static const char microsuffix[] = "@micromipsplt";
16408 static const char m16suffix[] = "@mips16plt";
16409 static const char mipssuffix[] = "@plt";
16410
16411 bfd_boolean (*slurp_relocs) (bfd *, asection *, asymbol **, bfd_boolean);
16412 const struct elf_backend_data *bed = get_elf_backend_data (abfd);
16413 bfd_boolean micromips_p = MICROMIPS_P (abfd);
16414 Elf_Internal_Shdr *hdr;
16415 bfd_byte *plt_data;
16416 bfd_vma plt_offset;
16417 unsigned int other;
16418 bfd_vma entry_size;
16419 bfd_vma plt0_size;
16420 asection *relplt;
16421 bfd_vma opcode;
16422 asection *plt;
16423 asymbol *send;
16424 size_t size;
16425 char *names;
16426 long counti;
16427 arelent *p;
16428 asymbol *s;
16429 char *nend;
16430 long count;
16431 long pi;
16432 long i;
16433 long n;
16434
16435 *ret = NULL;
16436
16437 if ((abfd->flags & (DYNAMIC | EXEC_P)) == 0 || dynsymcount <= 0)
16438 return 0;
16439
16440 relplt = bfd_get_section_by_name (abfd, ".rel.plt");
16441 if (relplt == NULL)
16442 return 0;
16443
16444 hdr = &elf_section_data (relplt)->this_hdr;
16445 if (hdr->sh_link != elf_dynsymtab (abfd) || hdr->sh_type != SHT_REL)
16446 return 0;
16447
16448 plt = bfd_get_section_by_name (abfd, ".plt");
16449 if (plt == NULL)
16450 return 0;
16451
16452 slurp_relocs = get_elf_backend_data (abfd)->s->slurp_reloc_table;
16453 if (!(*slurp_relocs) (abfd, relplt, dynsyms, TRUE))
16454 return -1;
16455 p = relplt->relocation;
16456
16457 /* Calculating the exact amount of space required for symbols would
16458 require two passes over the PLT, so just pessimise assuming two
16459 PLT slots per relocation. */
16460 count = relplt->size / hdr->sh_entsize;
16461 counti = count * bed->s->int_rels_per_ext_rel;
16462 size = 2 * count * sizeof (asymbol);
16463 size += count * (sizeof (mipssuffix) +
16464 (micromips_p ? sizeof (microsuffix) : sizeof (m16suffix)));
16465 for (pi = 0; pi < counti; pi += bed->s->int_rels_per_ext_rel)
16466 size += 2 * strlen ((*p[pi].sym_ptr_ptr)->name);
16467
16468 /* Add the size of "_PROCEDURE_LINKAGE_TABLE_" too. */
16469 size += sizeof (asymbol) + sizeof (pltname);
16470
16471 if (!bfd_malloc_and_get_section (abfd, plt, &plt_data))
16472 return -1;
16473
16474 if (plt->size < 16)
16475 return -1;
16476
16477 s = *ret = bfd_malloc (size);
16478 if (s == NULL)
16479 return -1;
16480 send = s + 2 * count + 1;
16481
16482 names = (char *) send;
16483 nend = (char *) s + size;
16484 n = 0;
16485
16486 opcode = bfd_get_micromips_32 (abfd, plt_data + 12);
16487 if (opcode == 0x3302fffe)
16488 {
16489 if (!micromips_p)
16490 return -1;
16491 plt0_size = 2 * ARRAY_SIZE (micromips_o32_exec_plt0_entry);
16492 other = STO_MICROMIPS;
16493 }
833794fc
MR
16494 else if (opcode == 0x0398c1d0)
16495 {
16496 if (!micromips_p)
16497 return -1;
16498 plt0_size = 2 * ARRAY_SIZE (micromips_insn32_o32_exec_plt0_entry);
16499 other = STO_MICROMIPS;
16500 }
1bbce132
MR
16501 else
16502 {
16503 plt0_size = 4 * ARRAY_SIZE (mips_o32_exec_plt0_entry);
16504 other = 0;
16505 }
16506
16507 s->the_bfd = abfd;
16508 s->flags = BSF_SYNTHETIC | BSF_FUNCTION | BSF_LOCAL;
16509 s->section = plt;
16510 s->value = 0;
16511 s->name = names;
16512 s->udata.i = other;
16513 memcpy (names, pltname, sizeof (pltname));
16514 names += sizeof (pltname);
16515 ++s, ++n;
16516
16517 pi = 0;
16518 for (plt_offset = plt0_size;
16519 plt_offset + 8 <= plt->size && s < send;
16520 plt_offset += entry_size)
16521 {
16522 bfd_vma gotplt_addr;
16523 const char *suffix;
16524 bfd_vma gotplt_hi;
16525 bfd_vma gotplt_lo;
16526 size_t suffixlen;
16527
16528 opcode = bfd_get_micromips_32 (abfd, plt_data + plt_offset + 4);
16529
16530 /* Check if the second word matches the expected MIPS16 instruction. */
16531 if (opcode == 0x651aeb00)
16532 {
16533 if (micromips_p)
16534 return -1;
16535 /* Truncated table??? */
16536 if (plt_offset + 16 > plt->size)
16537 break;
16538 gotplt_addr = bfd_get_32 (abfd, plt_data + plt_offset + 12);
16539 entry_size = 2 * ARRAY_SIZE (mips16_o32_exec_plt_entry);
16540 suffixlen = sizeof (m16suffix);
16541 suffix = m16suffix;
16542 other = STO_MIPS16;
16543 }
833794fc 16544 /* Likewise the expected microMIPS instruction (no insn32 mode). */
1bbce132
MR
16545 else if (opcode == 0xff220000)
16546 {
16547 if (!micromips_p)
16548 return -1;
16549 gotplt_hi = bfd_get_16 (abfd, plt_data + plt_offset) & 0x7f;
16550 gotplt_lo = bfd_get_16 (abfd, plt_data + plt_offset + 2) & 0xffff;
16551 gotplt_hi = ((gotplt_hi ^ 0x40) - 0x40) << 18;
16552 gotplt_lo <<= 2;
16553 gotplt_addr = gotplt_hi + gotplt_lo;
16554 gotplt_addr += ((plt->vma + plt_offset) | 3) ^ 3;
16555 entry_size = 2 * ARRAY_SIZE (micromips_o32_exec_plt_entry);
16556 suffixlen = sizeof (microsuffix);
16557 suffix = microsuffix;
16558 other = STO_MICROMIPS;
16559 }
833794fc
MR
16560 /* Likewise the expected microMIPS instruction (insn32 mode). */
16561 else if ((opcode & 0xffff0000) == 0xff2f0000)
16562 {
16563 gotplt_hi = bfd_get_16 (abfd, plt_data + plt_offset + 2) & 0xffff;
16564 gotplt_lo = bfd_get_16 (abfd, plt_data + plt_offset + 6) & 0xffff;
16565 gotplt_hi = ((gotplt_hi ^ 0x8000) - 0x8000) << 16;
16566 gotplt_lo = (gotplt_lo ^ 0x8000) - 0x8000;
16567 gotplt_addr = gotplt_hi + gotplt_lo;
16568 entry_size = 2 * ARRAY_SIZE (micromips_insn32_o32_exec_plt_entry);
16569 suffixlen = sizeof (microsuffix);
16570 suffix = microsuffix;
16571 other = STO_MICROMIPS;
16572 }
1bbce132
MR
16573 /* Otherwise assume standard MIPS code. */
16574 else
16575 {
16576 gotplt_hi = bfd_get_32 (abfd, plt_data + plt_offset) & 0xffff;
16577 gotplt_lo = bfd_get_32 (abfd, plt_data + plt_offset + 4) & 0xffff;
16578 gotplt_hi = ((gotplt_hi ^ 0x8000) - 0x8000) << 16;
16579 gotplt_lo = (gotplt_lo ^ 0x8000) - 0x8000;
16580 gotplt_addr = gotplt_hi + gotplt_lo;
16581 entry_size = 4 * ARRAY_SIZE (mips_exec_plt_entry);
16582 suffixlen = sizeof (mipssuffix);
16583 suffix = mipssuffix;
16584 other = 0;
16585 }
16586 /* Truncated table??? */
16587 if (plt_offset + entry_size > plt->size)
16588 break;
16589
16590 for (i = 0;
16591 i < count && p[pi].address != gotplt_addr;
16592 i++, pi = (pi + bed->s->int_rels_per_ext_rel) % counti);
16593
16594 if (i < count)
16595 {
16596 size_t namelen;
16597 size_t len;
16598
16599 *s = **p[pi].sym_ptr_ptr;
16600 /* Undefined syms won't have BSF_LOCAL or BSF_GLOBAL set. Since
16601 we are defining a symbol, ensure one of them is set. */
16602 if ((s->flags & BSF_LOCAL) == 0)
16603 s->flags |= BSF_GLOBAL;
16604 s->flags |= BSF_SYNTHETIC;
16605 s->section = plt;
16606 s->value = plt_offset;
16607 s->name = names;
16608 s->udata.i = other;
16609
16610 len = strlen ((*p[pi].sym_ptr_ptr)->name);
16611 namelen = len + suffixlen;
16612 if (names + namelen > nend)
16613 break;
16614
16615 memcpy (names, (*p[pi].sym_ptr_ptr)->name, len);
16616 names += len;
16617 memcpy (names, suffix, suffixlen);
16618 names += suffixlen;
16619
16620 ++s, ++n;
16621 pi = (pi + bed->s->int_rels_per_ext_rel) % counti;
16622 }
16623 }
16624
16625 free (plt_data);
16626
16627 return n;
16628}
16629
5e7fc731
MR
16630/* Return the ABI flags associated with ABFD if available. */
16631
16632Elf_Internal_ABIFlags_v0 *
16633bfd_mips_elf_get_abiflags (bfd *abfd)
16634{
16635 struct mips_elf_obj_tdata *tdata = mips_elf_tdata (abfd);
16636
16637 return tdata->abiflags_valid ? &tdata->abiflags : NULL;
16638}
16639
bb29b84d
MR
16640/* MIPS libc ABI versions, used with the EI_ABIVERSION ELF file header
16641 field. Taken from `libc-abis.h' generated at GNU libc build time.
16642 Using a MIPS_ prefix as other libc targets use different values. */
16643enum
16644{
16645 MIPS_LIBC_ABI_DEFAULT = 0,
16646 MIPS_LIBC_ABI_MIPS_PLT,
16647 MIPS_LIBC_ABI_UNIQUE,
16648 MIPS_LIBC_ABI_MIPS_O32_FP64,
47275900 16649 MIPS_LIBC_ABI_ABSOLUTE,
f16a9783 16650 MIPS_LIBC_ABI_XHASH,
bb29b84d
MR
16651 MIPS_LIBC_ABI_MAX
16652};
16653
861fb55a
DJ
16654void
16655_bfd_mips_post_process_headers (bfd *abfd, struct bfd_link_info *link_info)
16656{
47275900 16657 struct mips_elf_link_hash_table *htab = NULL;
861fb55a
DJ
16658 Elf_Internal_Ehdr *i_ehdrp;
16659
16660 i_ehdrp = elf_elfheader (abfd);
16661 if (link_info)
16662 {
16663 htab = mips_elf_hash_table (link_info);
4dfe6ac6 16664 BFD_ASSERT (htab != NULL);
861fb55a 16665 }
0af03126 16666
47275900
MR
16667 if (htab != NULL && htab->use_plts_and_copy_relocs && !htab->is_vxworks)
16668 i_ehdrp->e_ident[EI_ABIVERSION] = MIPS_LIBC_ABI_MIPS_PLT;
16669
351cdf24
MF
16670 if (mips_elf_tdata (abfd)->abiflags.fp_abi == Val_GNU_MIPS_ABI_FP_64
16671 || mips_elf_tdata (abfd)->abiflags.fp_abi == Val_GNU_MIPS_ABI_FP_64A)
bb29b84d 16672 i_ehdrp->e_ident[EI_ABIVERSION] = MIPS_LIBC_ABI_MIPS_O32_FP64;
334cd8a7 16673
47275900
MR
16674 /* Mark that we need support for absolute symbols in the dynamic loader. */
16675 if (htab != NULL && htab->use_absolute_zero && htab->gnu_target)
16676 i_ehdrp->e_ident[EI_ABIVERSION] = MIPS_LIBC_ABI_ABSOLUTE;
16677
f16a9783
MS
16678 /* Mark that we need support for .MIPS.xhash in the dynamic linker,
16679 if it is the only hash section that will be created. */
16680 if (link_info && link_info->emit_gnu_hash && !link_info->emit_hash)
16681 i_ehdrp->e_ident[EI_ABIVERSION] = MIPS_LIBC_ABI_XHASH;
16682
334cd8a7 16683 _bfd_elf_post_process_headers (abfd, link_info);
861fb55a 16684}
2f0c68f2
CM
16685
16686int
1ced1a5f
MR
16687_bfd_mips_elf_compact_eh_encoding
16688 (struct bfd_link_info *link_info ATTRIBUTE_UNUSED)
2f0c68f2
CM
16689{
16690 return DW_EH_PE_pcrel | DW_EH_PE_sdata4;
16691}
16692
16693/* Return the opcode for can't unwind. */
16694
16695int
1ced1a5f
MR
16696_bfd_mips_elf_cant_unwind_opcode
16697 (struct bfd_link_info *link_info ATTRIBUTE_UNUSED)
2f0c68f2
CM
16698{
16699 return COMPACT_EH_CANT_UNWIND_OPCODE;
16700}
f16a9783
MS
16701
16702/* Record a position XLAT_LOC in the xlat translation table, associated with
16703 the hash entry H. The entry in the translation table will later be
16704 populated with the real symbol dynindx. */
16705
16706void
16707_bfd_mips_elf_record_xhash_symbol (struct elf_link_hash_entry *h,
16708 bfd_vma xlat_loc)
16709{
16710 struct mips_elf_link_hash_entry *hmips;
16711
16712 hmips = (struct mips_elf_link_hash_entry *) h;
16713 hmips->mipsxhash_loc = xlat_loc;
16714}
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