gdb: Add ax_pseudo_register_collect for powerpc.
[deliverable/binutils-gdb.git] / gdb / mips-tdep.c
CommitLineData
c906108c 1/* Target-dependent code for the MIPS architecture, for GDB, the GNU Debugger.
bf64bfd6 2
618f726f 3 Copyright (C) 1988-2016 Free Software Foundation, Inc.
bf64bfd6 4
c906108c
SS
5 Contributed by Alessandro Forin(af@cs.cmu.edu) at CMU
6 and by Per Bothner(bothner@cs.wisc.edu) at U.Wisconsin.
7
c5aa993b 8 This file is part of GDB.
c906108c 9
c5aa993b
JM
10 This program is free software; you can redistribute it and/or modify
11 it under the terms of the GNU General Public License as published by
a9762ec7 12 the Free Software Foundation; either version 3 of the License, or
c5aa993b 13 (at your option) any later version.
c906108c 14
c5aa993b
JM
15 This program is distributed in the hope that it will be useful,
16 but WITHOUT ANY WARRANTY; without even the implied warranty of
17 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
18 GNU General Public License for more details.
c906108c 19
c5aa993b 20 You should have received a copy of the GNU General Public License
a9762ec7 21 along with this program. If not, see <http://www.gnu.org/licenses/>. */
c906108c
SS
22
23#include "defs.h"
c906108c
SS
24#include "frame.h"
25#include "inferior.h"
26#include "symtab.h"
27#include "value.h"
28#include "gdbcmd.h"
29#include "language.h"
30#include "gdbcore.h"
31#include "symfile.h"
32#include "objfiles.h"
33#include "gdbtypes.h"
34#include "target.h"
28d069e6 35#include "arch-utils.h"
4e052eda 36#include "regcache.h"
70f80edf 37#include "osabi.h"
d1973055 38#include "mips-tdep.h"
fe898f56 39#include "block.h"
a4b8ebc8 40#include "reggroups.h"
c906108c 41#include "opcode/mips.h"
c2d11a7d
JM
42#include "elf/mips.h"
43#include "elf-bfd.h"
2475bac3 44#include "symcat.h"
a4b8ebc8 45#include "sim-regno.h"
a89aa300 46#include "dis-asm.h"
edfae063
AC
47#include "frame-unwind.h"
48#include "frame-base.h"
49#include "trad-frame.h"
7d9b040b 50#include "infcall.h"
fed7ba43 51#include "floatformat.h"
29709017
DJ
52#include "remote.h"
53#include "target-descriptions.h"
2bd0c3d7 54#include "dwarf2-frame.h"
f8b73d13 55#include "user-regs.h"
79a45b7d 56#include "valprint.h"
175ff332 57#include "ax.h"
c906108c 58
8d5f9dcb
DJ
59static const struct objfile_data *mips_pdr_data;
60
5bbcb741 61static struct type *mips_register_type (struct gdbarch *gdbarch, int regnum);
e0f7ec59 62
ab50adb6
MR
63static int mips32_instruction_has_delay_slot (struct gdbarch *gdbarch,
64 ULONGEST inst);
65static int micromips_instruction_has_delay_slot (ULONGEST insn, int mustbe32);
66static int mips16_instruction_has_delay_slot (unsigned short inst,
67 int mustbe32);
68
69static int mips32_insn_at_pc_has_delay_slot (struct gdbarch *gdbarch,
70 CORE_ADDR addr);
71static int micromips_insn_at_pc_has_delay_slot (struct gdbarch *gdbarch,
72 CORE_ADDR addr, int mustbe32);
73static int mips16_insn_at_pc_has_delay_slot (struct gdbarch *gdbarch,
74 CORE_ADDR addr, int mustbe32);
4cc0665f 75
1bab7383
YQ
76static void mips_print_float_info (struct gdbarch *, struct ui_file *,
77 struct frame_info *, const char *);
78
24e05951 79/* A useful bit in the CP0 status register (MIPS_PS_REGNUM). */
dd824b04
DJ
80/* This bit is set if we are emulating 32-bit FPRs on a 64-bit chip. */
81#define ST0_FR (1 << 26)
82
b0069a17
AC
83/* The sizes of floating point registers. */
84
85enum
86{
87 MIPS_FPU_SINGLE_REGSIZE = 4,
88 MIPS_FPU_DOUBLE_REGSIZE = 8
89};
90
1a69e1e4
DJ
91enum
92{
93 MIPS32_REGSIZE = 4,
94 MIPS64_REGSIZE = 8
95};
0dadbba0 96
2e4ebe70
DJ
97static const char *mips_abi_string;
98
40478521 99static const char *const mips_abi_strings[] = {
2e4ebe70
DJ
100 "auto",
101 "n32",
102 "o32",
28d169de 103 "n64",
2e4ebe70
DJ
104 "o64",
105 "eabi32",
106 "eabi64",
107 NULL
108};
109
4cc0665f
MR
110/* For backwards compatibility we default to MIPS16. This flag is
111 overridden as soon as unambiguous ELF file flags tell us the
112 compressed ISA encoding used. */
113static const char mips_compression_mips16[] = "mips16";
114static const char mips_compression_micromips[] = "micromips";
115static const char *const mips_compression_strings[] =
116{
117 mips_compression_mips16,
118 mips_compression_micromips,
119 NULL
120};
121
122static const char *mips_compression_string = mips_compression_mips16;
123
f8b73d13
DJ
124/* The standard register names, and all the valid aliases for them. */
125struct register_alias
126{
127 const char *name;
128 int regnum;
129};
130
131/* Aliases for o32 and most other ABIs. */
132const struct register_alias mips_o32_aliases[] = {
133 { "ta0", 12 },
134 { "ta1", 13 },
135 { "ta2", 14 },
136 { "ta3", 15 }
137};
138
139/* Aliases for n32 and n64. */
140const struct register_alias mips_n32_n64_aliases[] = {
141 { "ta0", 8 },
142 { "ta1", 9 },
143 { "ta2", 10 },
144 { "ta3", 11 }
145};
146
147/* Aliases for ABI-independent registers. */
148const struct register_alias mips_register_aliases[] = {
149 /* The architecture manuals specify these ABI-independent names for
150 the GPRs. */
151#define R(n) { "r" #n, n }
152 R(0), R(1), R(2), R(3), R(4), R(5), R(6), R(7),
153 R(8), R(9), R(10), R(11), R(12), R(13), R(14), R(15),
154 R(16), R(17), R(18), R(19), R(20), R(21), R(22), R(23),
155 R(24), R(25), R(26), R(27), R(28), R(29), R(30), R(31),
156#undef R
157
158 /* k0 and k1 are sometimes called these instead (for "kernel
159 temp"). */
160 { "kt0", 26 },
161 { "kt1", 27 },
162
163 /* This is the traditional GDB name for the CP0 status register. */
164 { "sr", MIPS_PS_REGNUM },
165
166 /* This is the traditional GDB name for the CP0 BadVAddr register. */
167 { "bad", MIPS_EMBED_BADVADDR_REGNUM },
168
169 /* This is the traditional GDB name for the FCSR. */
170 { "fsr", MIPS_EMBED_FP0_REGNUM + 32 }
171};
172
865093a3
AR
173const struct register_alias mips_numeric_register_aliases[] = {
174#define R(n) { #n, n }
175 R(0), R(1), R(2), R(3), R(4), R(5), R(6), R(7),
176 R(8), R(9), R(10), R(11), R(12), R(13), R(14), R(15),
177 R(16), R(17), R(18), R(19), R(20), R(21), R(22), R(23),
178 R(24), R(25), R(26), R(27), R(28), R(29), R(30), R(31),
179#undef R
180};
181
c906108c
SS
182#ifndef MIPS_DEFAULT_FPU_TYPE
183#define MIPS_DEFAULT_FPU_TYPE MIPS_FPU_DOUBLE
184#endif
185static int mips_fpu_type_auto = 1;
186static enum mips_fpu_type mips_fpu_type = MIPS_DEFAULT_FPU_TYPE;
7a292a7a 187
ccce17b0 188static unsigned int mips_debug = 0;
7a292a7a 189
29709017
DJ
190/* Properties (for struct target_desc) describing the g/G packet
191 layout. */
192#define PROPERTY_GP32 "internal: transfers-32bit-registers"
193#define PROPERTY_GP64 "internal: transfers-64bit-registers"
194
4eb0ad19
DJ
195struct target_desc *mips_tdesc_gp32;
196struct target_desc *mips_tdesc_gp64;
197
56cea623
AC
198const struct mips_regnum *
199mips_regnum (struct gdbarch *gdbarch)
200{
201 return gdbarch_tdep (gdbarch)->regnum;
202}
203
204static int
205mips_fpa0_regnum (struct gdbarch *gdbarch)
206{
207 return mips_regnum (gdbarch)->fp0 + 12;
208}
209
004159a2
MR
210/* Return 1 if REGNUM refers to a floating-point general register, raw
211 or cooked. Otherwise return 0. */
212
213static int
214mips_float_register_p (struct gdbarch *gdbarch, int regnum)
215{
216 int rawnum = regnum % gdbarch_num_regs (gdbarch);
217
218 return (rawnum >= mips_regnum (gdbarch)->fp0
219 && rawnum < mips_regnum (gdbarch)->fp0 + 32);
220}
221
74ed0bb4
MD
222#define MIPS_EABI(gdbarch) (gdbarch_tdep (gdbarch)->mips_abi \
223 == MIPS_ABI_EABI32 \
224 || gdbarch_tdep (gdbarch)->mips_abi == MIPS_ABI_EABI64)
c2d11a7d 225
025bb325
MS
226#define MIPS_LAST_FP_ARG_REGNUM(gdbarch) \
227 (gdbarch_tdep (gdbarch)->mips_last_fp_arg_regnum)
c2d11a7d 228
025bb325
MS
229#define MIPS_LAST_ARG_REGNUM(gdbarch) \
230 (gdbarch_tdep (gdbarch)->mips_last_arg_regnum)
c2d11a7d 231
74ed0bb4 232#define MIPS_FPU_TYPE(gdbarch) (gdbarch_tdep (gdbarch)->mips_fpu_type)
c2d11a7d 233
d1973055
KB
234/* Return the MIPS ABI associated with GDBARCH. */
235enum mips_abi
236mips_abi (struct gdbarch *gdbarch)
237{
238 return gdbarch_tdep (gdbarch)->mips_abi;
239}
240
4246e332 241int
1b13c4f6 242mips_isa_regsize (struct gdbarch *gdbarch)
4246e332 243{
29709017
DJ
244 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
245
246 /* If we know how big the registers are, use that size. */
247 if (tdep->register_size_valid_p)
248 return tdep->register_size;
249
250 /* Fall back to the previous behavior. */
4246e332
AC
251 return (gdbarch_bfd_arch_info (gdbarch)->bits_per_word
252 / gdbarch_bfd_arch_info (gdbarch)->bits_per_byte);
253}
254
025bb325 255/* Return the currently configured (or set) saved register size. */
480d3dd2 256
e6bc2e8a 257unsigned int
13326b4e 258mips_abi_regsize (struct gdbarch *gdbarch)
d929b26f 259{
1a69e1e4
DJ
260 switch (mips_abi (gdbarch))
261 {
262 case MIPS_ABI_EABI32:
263 case MIPS_ABI_O32:
264 return 4;
265 case MIPS_ABI_N32:
266 case MIPS_ABI_N64:
267 case MIPS_ABI_O64:
268 case MIPS_ABI_EABI64:
269 return 8;
270 case MIPS_ABI_UNKNOWN:
271 case MIPS_ABI_LAST:
272 default:
273 internal_error (__FILE__, __LINE__, _("bad switch"));
274 }
d929b26f
AC
275}
276
4cc0665f
MR
277/* MIPS16/microMIPS function addresses are odd (bit 0 is set). Here
278 are some functions to handle addresses associated with compressed
279 code including but not limited to testing, setting, or clearing
280 bit 0 of such addresses. */
742c84f6 281
4cc0665f
MR
282/* Return one iff compressed code is the MIPS16 instruction set. */
283
284static int
285is_mips16_isa (struct gdbarch *gdbarch)
286{
287 return gdbarch_tdep (gdbarch)->mips_isa == ISA_MIPS16;
288}
289
290/* Return one iff compressed code is the microMIPS instruction set. */
291
292static int
293is_micromips_isa (struct gdbarch *gdbarch)
294{
295 return gdbarch_tdep (gdbarch)->mips_isa == ISA_MICROMIPS;
296}
297
298/* Return one iff ADDR denotes compressed code. */
299
300static int
301is_compact_addr (CORE_ADDR addr)
742c84f6
MR
302{
303 return ((addr) & 1);
304}
305
4cc0665f
MR
306/* Return one iff ADDR denotes standard ISA code. */
307
308static int
309is_mips_addr (CORE_ADDR addr)
310{
311 return !is_compact_addr (addr);
312}
313
314/* Return one iff ADDR denotes MIPS16 code. */
315
316static int
317is_mips16_addr (struct gdbarch *gdbarch, CORE_ADDR addr)
318{
319 return is_compact_addr (addr) && is_mips16_isa (gdbarch);
320}
321
322/* Return one iff ADDR denotes microMIPS code. */
323
324static int
325is_micromips_addr (struct gdbarch *gdbarch, CORE_ADDR addr)
326{
327 return is_compact_addr (addr) && is_micromips_isa (gdbarch);
328}
329
330/* Strip the ISA (compression) bit off from ADDR. */
331
742c84f6 332static CORE_ADDR
4cc0665f 333unmake_compact_addr (CORE_ADDR addr)
742c84f6
MR
334{
335 return ((addr) & ~(CORE_ADDR) 1);
336}
337
4cc0665f
MR
338/* Add the ISA (compression) bit to ADDR. */
339
742c84f6 340static CORE_ADDR
4cc0665f 341make_compact_addr (CORE_ADDR addr)
742c84f6
MR
342{
343 return ((addr) | (CORE_ADDR) 1);
344}
345
3e29f34a
MR
346/* Extern version of unmake_compact_addr; we use a separate function
347 so that unmake_compact_addr can be inlined throughout this file. */
348
349CORE_ADDR
350mips_unmake_compact_addr (CORE_ADDR addr)
351{
352 return unmake_compact_addr (addr);
353}
354
71b8ef93 355/* Functions for setting and testing a bit in a minimal symbol that
4cc0665f
MR
356 marks it as MIPS16 or microMIPS function. The MSB of the minimal
357 symbol's "info" field is used for this purpose.
5a89d8aa 358
4cc0665f
MR
359 gdbarch_elf_make_msymbol_special tests whether an ELF symbol is
360 "special", i.e. refers to a MIPS16 or microMIPS function, and sets
361 one of the "special" bits in a minimal symbol to mark it accordingly.
362 The test checks an ELF-private flag that is valid for true function
1bbce132
MR
363 symbols only; for synthetic symbols such as for PLT stubs that have
364 no ELF-private part at all the MIPS BFD backend arranges for this
365 information to be carried in the asymbol's udata field instead.
5a89d8aa 366
4cc0665f
MR
367 msymbol_is_mips16 and msymbol_is_micromips test the "special" bit
368 in a minimal symbol. */
5a89d8aa 369
5a89d8aa 370static void
6d82d43b
AC
371mips_elf_make_msymbol_special (asymbol * sym, struct minimal_symbol *msym)
372{
4cc0665f 373 elf_symbol_type *elfsym = (elf_symbol_type *) sym;
1bbce132 374 unsigned char st_other;
4cc0665f 375
1bbce132
MR
376 if ((sym->flags & BSF_SYNTHETIC) == 0)
377 st_other = elfsym->internal_elf_sym.st_other;
378 else if ((sym->flags & BSF_FUNCTION) != 0)
379 st_other = sym->udata.i;
380 else
4cc0665f
MR
381 return;
382
1bbce132 383 if (ELF_ST_IS_MICROMIPS (st_other))
3e29f34a 384 {
f161c171 385 MSYMBOL_TARGET_FLAG_MICROMIPS (msym) = 1;
3e29f34a
MR
386 SET_MSYMBOL_VALUE_ADDRESS (msym, MSYMBOL_VALUE_RAW_ADDRESS (msym) | 1);
387 }
1bbce132 388 else if (ELF_ST_IS_MIPS16 (st_other))
3e29f34a 389 {
f161c171 390 MSYMBOL_TARGET_FLAG_MIPS16 (msym) = 1;
3e29f34a
MR
391 SET_MSYMBOL_VALUE_ADDRESS (msym, MSYMBOL_VALUE_RAW_ADDRESS (msym) | 1);
392 }
4cc0665f
MR
393}
394
395/* Return one iff MSYM refers to standard ISA code. */
396
397static int
398msymbol_is_mips (struct minimal_symbol *msym)
399{
f161c171
MR
400 return !(MSYMBOL_TARGET_FLAG_MIPS16 (msym)
401 | MSYMBOL_TARGET_FLAG_MICROMIPS (msym));
5a89d8aa
MS
402}
403
4cc0665f
MR
404/* Return one iff MSYM refers to MIPS16 code. */
405
71b8ef93 406static int
4cc0665f 407msymbol_is_mips16 (struct minimal_symbol *msym)
71b8ef93 408{
f161c171 409 return MSYMBOL_TARGET_FLAG_MIPS16 (msym);
71b8ef93
MS
410}
411
4cc0665f
MR
412/* Return one iff MSYM refers to microMIPS code. */
413
414static int
415msymbol_is_micromips (struct minimal_symbol *msym)
416{
f161c171 417 return MSYMBOL_TARGET_FLAG_MICROMIPS (msym);
4cc0665f
MR
418}
419
3e29f34a
MR
420/* Set the ISA bit in the main symbol too, complementing the corresponding
421 minimal symbol setting and reflecting the run-time value of the symbol.
422 The need for comes from the ISA bit having been cleared as code in
423 `_bfd_mips_elf_symbol_processing' separated it into the ELF symbol's
424 `st_other' STO_MIPS16 or STO_MICROMIPS annotation, making the values
425 of symbols referring to compressed code different in GDB to the values
426 used by actual code. That in turn makes them evaluate incorrectly in
427 expressions, producing results different to what the same expressions
428 yield when compiled into the program being debugged. */
429
430static void
431mips_make_symbol_special (struct symbol *sym, struct objfile *objfile)
432{
433 if (SYMBOL_CLASS (sym) == LOC_BLOCK)
434 {
435 /* We are in symbol reading so it is OK to cast away constness. */
436 struct block *block = (struct block *) SYMBOL_BLOCK_VALUE (sym);
437 CORE_ADDR compact_block_start;
438 struct bound_minimal_symbol msym;
439
440 compact_block_start = BLOCK_START (block) | 1;
441 msym = lookup_minimal_symbol_by_pc (compact_block_start);
442 if (msym.minsym && !msymbol_is_mips (msym.minsym))
443 {
444 BLOCK_START (block) = compact_block_start;
445 }
446 }
447}
448
88658117
AC
449/* XFER a value from the big/little/left end of the register.
450 Depending on the size of the value it might occupy the entire
451 register or just part of it. Make an allowance for this, aligning
452 things accordingly. */
453
454static void
ba32f989
DJ
455mips_xfer_register (struct gdbarch *gdbarch, struct regcache *regcache,
456 int reg_num, int length,
870cd05e
MK
457 enum bfd_endian endian, gdb_byte *in,
458 const gdb_byte *out, int buf_offset)
88658117 459{
88658117 460 int reg_offset = 0;
72a155b4
UW
461
462 gdb_assert (reg_num >= gdbarch_num_regs (gdbarch));
cb1d2653
AC
463 /* Need to transfer the left or right part of the register, based on
464 the targets byte order. */
88658117
AC
465 switch (endian)
466 {
467 case BFD_ENDIAN_BIG:
72a155b4 468 reg_offset = register_size (gdbarch, reg_num) - length;
88658117
AC
469 break;
470 case BFD_ENDIAN_LITTLE:
471 reg_offset = 0;
472 break;
6d82d43b 473 case BFD_ENDIAN_UNKNOWN: /* Indicates no alignment. */
88658117
AC
474 reg_offset = 0;
475 break;
476 default:
e2e0b3e5 477 internal_error (__FILE__, __LINE__, _("bad switch"));
88658117
AC
478 }
479 if (mips_debug)
cb1d2653
AC
480 fprintf_unfiltered (gdb_stderr,
481 "xfer $%d, reg offset %d, buf offset %d, length %d, ",
482 reg_num, reg_offset, buf_offset, length);
88658117
AC
483 if (mips_debug && out != NULL)
484 {
485 int i;
cb1d2653 486 fprintf_unfiltered (gdb_stdlog, "out ");
88658117 487 for (i = 0; i < length; i++)
cb1d2653 488 fprintf_unfiltered (gdb_stdlog, "%02x", out[buf_offset + i]);
88658117
AC
489 }
490 if (in != NULL)
6d82d43b
AC
491 regcache_cooked_read_part (regcache, reg_num, reg_offset, length,
492 in + buf_offset);
88658117 493 if (out != NULL)
6d82d43b
AC
494 regcache_cooked_write_part (regcache, reg_num, reg_offset, length,
495 out + buf_offset);
88658117
AC
496 if (mips_debug && in != NULL)
497 {
498 int i;
cb1d2653 499 fprintf_unfiltered (gdb_stdlog, "in ");
88658117 500 for (i = 0; i < length; i++)
cb1d2653 501 fprintf_unfiltered (gdb_stdlog, "%02x", in[buf_offset + i]);
88658117
AC
502 }
503 if (mips_debug)
504 fprintf_unfiltered (gdb_stdlog, "\n");
505}
506
dd824b04
DJ
507/* Determine if a MIPS3 or later cpu is operating in MIPS{1,2} FPU
508 compatiblity mode. A return value of 1 means that we have
509 physical 64-bit registers, but should treat them as 32-bit registers. */
510
511static int
9c9acae0 512mips2_fp_compat (struct frame_info *frame)
dd824b04 513{
72a155b4 514 struct gdbarch *gdbarch = get_frame_arch (frame);
dd824b04
DJ
515 /* MIPS1 and MIPS2 have only 32 bit FPRs, and the FR bit is not
516 meaningful. */
72a155b4 517 if (register_size (gdbarch, mips_regnum (gdbarch)->fp0) == 4)
dd824b04
DJ
518 return 0;
519
520#if 0
521 /* FIXME drow 2002-03-10: This is disabled until we can do it consistently,
522 in all the places we deal with FP registers. PR gdb/413. */
523 /* Otherwise check the FR bit in the status register - it controls
524 the FP compatiblity mode. If it is clear we are in compatibility
525 mode. */
9c9acae0 526 if ((get_frame_register_unsigned (frame, MIPS_PS_REGNUM) & ST0_FR) == 0)
dd824b04
DJ
527 return 1;
528#endif
361d1df0 529
dd824b04
DJ
530 return 0;
531}
532
7a292a7a 533#define VM_MIN_ADDRESS (CORE_ADDR)0x400000
c906108c 534
74ed0bb4 535static CORE_ADDR heuristic_proc_start (struct gdbarch *, CORE_ADDR);
c906108c 536
a14ed312 537static void reinit_frame_cache_sfunc (char *, int, struct cmd_list_element *);
c906108c 538
025bb325 539/* The list of available "set mips " and "show mips " commands. */
acdb74a0
AC
540
541static struct cmd_list_element *setmipscmdlist = NULL;
542static struct cmd_list_element *showmipscmdlist = NULL;
543
5e2e9765
KB
544/* Integer registers 0 thru 31 are handled explicitly by
545 mips_register_name(). Processor specific registers 32 and above
8a9fc081 546 are listed in the following tables. */
691c0433 547
6d82d43b
AC
548enum
549{ NUM_MIPS_PROCESSOR_REGS = (90 - 32) };
691c0433
AC
550
551/* Generic MIPS. */
552
553static const char *mips_generic_reg_names[NUM_MIPS_PROCESSOR_REGS] = {
6d82d43b
AC
554 "sr", "lo", "hi", "bad", "cause", "pc",
555 "f0", "f1", "f2", "f3", "f4", "f5", "f6", "f7",
556 "f8", "f9", "f10", "f11", "f12", "f13", "f14", "f15",
557 "f16", "f17", "f18", "f19", "f20", "f21", "f22", "f23",
558 "f24", "f25", "f26", "f27", "f28", "f29", "f30", "f31",
1faeff08 559 "fsr", "fir",
691c0433
AC
560};
561
562/* Names of IDT R3041 registers. */
563
564static const char *mips_r3041_reg_names[] = {
6d82d43b
AC
565 "sr", "lo", "hi", "bad", "cause", "pc",
566 "f0", "f1", "f2", "f3", "f4", "f5", "f6", "f7",
567 "f8", "f9", "f10", "f11", "f12", "f13", "f14", "f15",
568 "f16", "f17", "f18", "f19", "f20", "f21", "f22", "f23",
569 "f24", "f25", "f26", "f27", "f28", "f29", "f30", "f31",
570 "fsr", "fir", "", /*"fp" */ "",
571 "", "", "bus", "ccfg", "", "", "", "",
572 "", "", "port", "cmp", "", "", "epc", "prid",
691c0433
AC
573};
574
575/* Names of tx39 registers. */
576
577static const char *mips_tx39_reg_names[NUM_MIPS_PROCESSOR_REGS] = {
6d82d43b
AC
578 "sr", "lo", "hi", "bad", "cause", "pc",
579 "", "", "", "", "", "", "", "",
580 "", "", "", "", "", "", "", "",
581 "", "", "", "", "", "", "", "",
582 "", "", "", "", "", "", "", "",
583 "", "", "", "",
584 "", "", "", "", "", "", "", "",
1faeff08 585 "", "", "config", "cache", "debug", "depc", "epc",
691c0433
AC
586};
587
588/* Names of IRIX registers. */
589static const char *mips_irix_reg_names[NUM_MIPS_PROCESSOR_REGS] = {
6d82d43b
AC
590 "f0", "f1", "f2", "f3", "f4", "f5", "f6", "f7",
591 "f8", "f9", "f10", "f11", "f12", "f13", "f14", "f15",
592 "f16", "f17", "f18", "f19", "f20", "f21", "f22", "f23",
593 "f24", "f25", "f26", "f27", "f28", "f29", "f30", "f31",
594 "pc", "cause", "bad", "hi", "lo", "fsr", "fir"
691c0433
AC
595};
596
44099a67 597/* Names of registers with Linux kernels. */
1faeff08
MR
598static const char *mips_linux_reg_names[NUM_MIPS_PROCESSOR_REGS] = {
599 "sr", "lo", "hi", "bad", "cause", "pc",
600 "f0", "f1", "f2", "f3", "f4", "f5", "f6", "f7",
601 "f8", "f9", "f10", "f11", "f12", "f13", "f14", "f15",
602 "f16", "f17", "f18", "f19", "f20", "f21", "f22", "f23",
603 "f24", "f25", "f26", "f27", "f28", "f29", "f30", "f31",
604 "fsr", "fir"
605};
606
cce74817 607
5e2e9765 608/* Return the name of the register corresponding to REGNO. */
5a89d8aa 609static const char *
d93859e2 610mips_register_name (struct gdbarch *gdbarch, int regno)
cce74817 611{
d93859e2 612 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
5e2e9765
KB
613 /* GPR names for all ABIs other than n32/n64. */
614 static char *mips_gpr_names[] = {
6d82d43b
AC
615 "zero", "at", "v0", "v1", "a0", "a1", "a2", "a3",
616 "t0", "t1", "t2", "t3", "t4", "t5", "t6", "t7",
617 "s0", "s1", "s2", "s3", "s4", "s5", "s6", "s7",
618 "t8", "t9", "k0", "k1", "gp", "sp", "s8", "ra",
5e2e9765
KB
619 };
620
621 /* GPR names for n32 and n64 ABIs. */
622 static char *mips_n32_n64_gpr_names[] = {
6d82d43b
AC
623 "zero", "at", "v0", "v1", "a0", "a1", "a2", "a3",
624 "a4", "a5", "a6", "a7", "t0", "t1", "t2", "t3",
625 "s0", "s1", "s2", "s3", "s4", "s5", "s6", "s7",
626 "t8", "t9", "k0", "k1", "gp", "sp", "s8", "ra"
5e2e9765
KB
627 };
628
d93859e2 629 enum mips_abi abi = mips_abi (gdbarch);
5e2e9765 630
f57d151a 631 /* Map [gdbarch_num_regs .. 2*gdbarch_num_regs) onto the raw registers,
6229fbea
HZ
632 but then don't make the raw register names visible. This (upper)
633 range of user visible register numbers are the pseudo-registers.
634
635 This approach was adopted accommodate the following scenario:
636 It is possible to debug a 64-bit device using a 32-bit
637 programming model. In such instances, the raw registers are
638 configured to be 64-bits wide, while the pseudo registers are
639 configured to be 32-bits wide. The registers that the user
640 sees - the pseudo registers - match the users expectations
641 given the programming model being used. */
d93859e2
UW
642 int rawnum = regno % gdbarch_num_regs (gdbarch);
643 if (regno < gdbarch_num_regs (gdbarch))
a4b8ebc8
AC
644 return "";
645
5e2e9765
KB
646 /* The MIPS integer registers are always mapped from 0 to 31. The
647 names of the registers (which reflects the conventions regarding
648 register use) vary depending on the ABI. */
a4b8ebc8 649 if (0 <= rawnum && rawnum < 32)
5e2e9765
KB
650 {
651 if (abi == MIPS_ABI_N32 || abi == MIPS_ABI_N64)
a4b8ebc8 652 return mips_n32_n64_gpr_names[rawnum];
5e2e9765 653 else
a4b8ebc8 654 return mips_gpr_names[rawnum];
5e2e9765 655 }
d93859e2
UW
656 else if (tdesc_has_registers (gdbarch_target_desc (gdbarch)))
657 return tdesc_register_name (gdbarch, rawnum);
658 else if (32 <= rawnum && rawnum < gdbarch_num_regs (gdbarch))
691c0433
AC
659 {
660 gdb_assert (rawnum - 32 < NUM_MIPS_PROCESSOR_REGS);
1faeff08
MR
661 if (tdep->mips_processor_reg_names[rawnum - 32])
662 return tdep->mips_processor_reg_names[rawnum - 32];
663 return "";
691c0433 664 }
5e2e9765
KB
665 else
666 internal_error (__FILE__, __LINE__,
e2e0b3e5 667 _("mips_register_name: bad register number %d"), rawnum);
cce74817 668}
5e2e9765 669
a4b8ebc8 670/* Return the groups that a MIPS register can be categorised into. */
c5aa993b 671
a4b8ebc8
AC
672static int
673mips_register_reggroup_p (struct gdbarch *gdbarch, int regnum,
674 struct reggroup *reggroup)
675{
676 int vector_p;
677 int float_p;
678 int raw_p;
72a155b4
UW
679 int rawnum = regnum % gdbarch_num_regs (gdbarch);
680 int pseudo = regnum / gdbarch_num_regs (gdbarch);
a4b8ebc8
AC
681 if (reggroup == all_reggroup)
682 return pseudo;
683 vector_p = TYPE_VECTOR (register_type (gdbarch, regnum));
684 float_p = TYPE_CODE (register_type (gdbarch, regnum)) == TYPE_CODE_FLT;
685 /* FIXME: cagney/2003-04-13: Can't yet use gdbarch_num_regs
686 (gdbarch), as not all architectures are multi-arch. */
72a155b4
UW
687 raw_p = rawnum < gdbarch_num_regs (gdbarch);
688 if (gdbarch_register_name (gdbarch, regnum) == NULL
689 || gdbarch_register_name (gdbarch, regnum)[0] == '\0')
a4b8ebc8
AC
690 return 0;
691 if (reggroup == float_reggroup)
692 return float_p && pseudo;
693 if (reggroup == vector_reggroup)
694 return vector_p && pseudo;
695 if (reggroup == general_reggroup)
696 return (!vector_p && !float_p) && pseudo;
697 /* Save the pseudo registers. Need to make certain that any code
698 extracting register values from a saved register cache also uses
699 pseudo registers. */
700 if (reggroup == save_reggroup)
701 return raw_p && pseudo;
702 /* Restore the same pseudo register. */
703 if (reggroup == restore_reggroup)
704 return raw_p && pseudo;
6d82d43b 705 return 0;
a4b8ebc8
AC
706}
707
f8b73d13
DJ
708/* Return the groups that a MIPS register can be categorised into.
709 This version is only used if we have a target description which
710 describes real registers (and their groups). */
711
712static int
713mips_tdesc_register_reggroup_p (struct gdbarch *gdbarch, int regnum,
714 struct reggroup *reggroup)
715{
716 int rawnum = regnum % gdbarch_num_regs (gdbarch);
717 int pseudo = regnum / gdbarch_num_regs (gdbarch);
718 int ret;
719
720 /* Only save, restore, and display the pseudo registers. Need to
721 make certain that any code extracting register values from a
722 saved register cache also uses pseudo registers.
723
724 Note: saving and restoring the pseudo registers is slightly
725 strange; if we have 64 bits, we should save and restore all
726 64 bits. But this is hard and has little benefit. */
727 if (!pseudo)
728 return 0;
729
730 ret = tdesc_register_in_reggroup_p (gdbarch, rawnum, reggroup);
731 if (ret != -1)
732 return ret;
733
734 return mips_register_reggroup_p (gdbarch, regnum, reggroup);
735}
736
a4b8ebc8 737/* Map the symbol table registers which live in the range [1 *
f57d151a 738 gdbarch_num_regs .. 2 * gdbarch_num_regs) back onto the corresponding raw
47ebcfbe 739 registers. Take care of alignment and size problems. */
c5aa993b 740
05d1431c 741static enum register_status
a4b8ebc8 742mips_pseudo_register_read (struct gdbarch *gdbarch, struct regcache *regcache,
47a35522 743 int cookednum, gdb_byte *buf)
a4b8ebc8 744{
72a155b4
UW
745 int rawnum = cookednum % gdbarch_num_regs (gdbarch);
746 gdb_assert (cookednum >= gdbarch_num_regs (gdbarch)
747 && cookednum < 2 * gdbarch_num_regs (gdbarch));
47ebcfbe 748 if (register_size (gdbarch, rawnum) == register_size (gdbarch, cookednum))
05d1431c 749 return regcache_raw_read (regcache, rawnum, buf);
6d82d43b
AC
750 else if (register_size (gdbarch, rawnum) >
751 register_size (gdbarch, cookednum))
47ebcfbe 752 {
8bdf35dc 753 if (gdbarch_tdep (gdbarch)->mips64_transfers_32bit_regs_p)
05d1431c 754 return regcache_raw_read_part (regcache, rawnum, 0, 4, buf);
47ebcfbe 755 else
8bdf35dc
KB
756 {
757 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
758 LONGEST regval;
05d1431c
PA
759 enum register_status status;
760
761 status = regcache_raw_read_signed (regcache, rawnum, &regval);
762 if (status == REG_VALID)
763 store_signed_integer (buf, 4, byte_order, regval);
764 return status;
8bdf35dc 765 }
47ebcfbe
AC
766 }
767 else
e2e0b3e5 768 internal_error (__FILE__, __LINE__, _("bad register size"));
a4b8ebc8
AC
769}
770
771static void
6d82d43b
AC
772mips_pseudo_register_write (struct gdbarch *gdbarch,
773 struct regcache *regcache, int cookednum,
47a35522 774 const gdb_byte *buf)
a4b8ebc8 775{
72a155b4
UW
776 int rawnum = cookednum % gdbarch_num_regs (gdbarch);
777 gdb_assert (cookednum >= gdbarch_num_regs (gdbarch)
778 && cookednum < 2 * gdbarch_num_regs (gdbarch));
47ebcfbe 779 if (register_size (gdbarch, rawnum) == register_size (gdbarch, cookednum))
de38af99 780 regcache_raw_write (regcache, rawnum, buf);
6d82d43b
AC
781 else if (register_size (gdbarch, rawnum) >
782 register_size (gdbarch, cookednum))
47ebcfbe 783 {
8bdf35dc 784 if (gdbarch_tdep (gdbarch)->mips64_transfers_32bit_regs_p)
47ebcfbe
AC
785 regcache_raw_write_part (regcache, rawnum, 0, 4, buf);
786 else
8bdf35dc
KB
787 {
788 /* Sign extend the shortened version of the register prior
789 to placing it in the raw register. This is required for
790 some mips64 parts in order to avoid unpredictable behavior. */
791 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
792 LONGEST regval = extract_signed_integer (buf, 4, byte_order);
793 regcache_raw_write_signed (regcache, rawnum, regval);
794 }
47ebcfbe
AC
795 }
796 else
e2e0b3e5 797 internal_error (__FILE__, __LINE__, _("bad register size"));
a4b8ebc8 798}
c5aa993b 799
175ff332
HZ
800static int
801mips_ax_pseudo_register_collect (struct gdbarch *gdbarch,
802 struct agent_expr *ax, int reg)
803{
804 int rawnum = reg % gdbarch_num_regs (gdbarch);
805 gdb_assert (reg >= gdbarch_num_regs (gdbarch)
806 && reg < 2 * gdbarch_num_regs (gdbarch));
807
808 ax_reg_mask (ax, rawnum);
809
810 return 0;
811}
812
813static int
814mips_ax_pseudo_register_push_stack (struct gdbarch *gdbarch,
815 struct agent_expr *ax, int reg)
816{
817 int rawnum = reg % gdbarch_num_regs (gdbarch);
818 gdb_assert (reg >= gdbarch_num_regs (gdbarch)
819 && reg < 2 * gdbarch_num_regs (gdbarch));
820 if (register_size (gdbarch, rawnum) >= register_size (gdbarch, reg))
821 {
822 ax_reg (ax, rawnum);
823
824 if (register_size (gdbarch, rawnum) > register_size (gdbarch, reg))
825 {
826 if (!gdbarch_tdep (gdbarch)->mips64_transfers_32bit_regs_p
827 || gdbarch_byte_order (gdbarch) != BFD_ENDIAN_BIG)
828 {
829 ax_const_l (ax, 32);
830 ax_simple (ax, aop_lsh);
831 }
832 ax_const_l (ax, 32);
833 ax_simple (ax, aop_rsh_signed);
834 }
835 }
836 else
837 internal_error (__FILE__, __LINE__, _("bad register size"));
838
839 return 0;
840}
841
4cc0665f 842/* Table to translate 3-bit register field to actual register number. */
d467df4e 843static const signed char mips_reg3_to_reg[8] = { 16, 17, 2, 3, 4, 5, 6, 7 };
c906108c
SS
844
845/* Heuristic_proc_start may hunt through the text section for a long
846 time across a 2400 baud serial line. Allows the user to limit this
847 search. */
848
44096aee 849static int heuristic_fence_post = 0;
c906108c 850
46cd78fb 851/* Number of bytes of storage in the actual machine representation for
719ec221
AC
852 register N. NOTE: This defines the pseudo register type so need to
853 rebuild the architecture vector. */
43e526b9
JM
854
855static int mips64_transfers_32bit_regs_p = 0;
856
719ec221
AC
857static void
858set_mips64_transfers_32bit_regs (char *args, int from_tty,
859 struct cmd_list_element *c)
43e526b9 860{
719ec221
AC
861 struct gdbarch_info info;
862 gdbarch_info_init (&info);
863 /* FIXME: cagney/2003-11-15: Should be setting a field in "info"
864 instead of relying on globals. Doing that would let generic code
865 handle the search for this specific architecture. */
866 if (!gdbarch_update_p (info))
a4b8ebc8 867 {
719ec221 868 mips64_transfers_32bit_regs_p = 0;
8a3fe4f8 869 error (_("32-bit compatibility mode not supported"));
a4b8ebc8 870 }
a4b8ebc8
AC
871}
872
47ebcfbe 873/* Convert to/from a register and the corresponding memory value. */
43e526b9 874
ee51a8c7
KB
875/* This predicate tests for the case of an 8 byte floating point
876 value that is being transferred to or from a pair of floating point
877 registers each of which are (or are considered to be) only 4 bytes
878 wide. */
ff2e87ac 879static int
ee51a8c7
KB
880mips_convert_register_float_case_p (struct gdbarch *gdbarch, int regnum,
881 struct type *type)
ff2e87ac 882{
0abe36f5
MD
883 return (gdbarch_byte_order (gdbarch) == BFD_ENDIAN_BIG
884 && register_size (gdbarch, regnum) == 4
004159a2 885 && mips_float_register_p (gdbarch, regnum)
6d82d43b 886 && TYPE_CODE (type) == TYPE_CODE_FLT && TYPE_LENGTH (type) == 8);
ff2e87ac
AC
887}
888
ee51a8c7
KB
889/* This predicate tests for the case of a value of less than 8
890 bytes in width that is being transfered to or from an 8 byte
891 general purpose register. */
892static int
893mips_convert_register_gpreg_case_p (struct gdbarch *gdbarch, int regnum,
894 struct type *type)
895{
896 int num_regs = gdbarch_num_regs (gdbarch);
897
898 return (register_size (gdbarch, regnum) == 8
899 && regnum % num_regs > 0 && regnum % num_regs < 32
900 && TYPE_LENGTH (type) < 8);
901}
902
903static int
025bb325
MS
904mips_convert_register_p (struct gdbarch *gdbarch,
905 int regnum, struct type *type)
ee51a8c7 906{
eaa05d59
MR
907 return (mips_convert_register_float_case_p (gdbarch, regnum, type)
908 || mips_convert_register_gpreg_case_p (gdbarch, regnum, type));
ee51a8c7
KB
909}
910
8dccd430 911static int
ff2e87ac 912mips_register_to_value (struct frame_info *frame, int regnum,
8dccd430
PA
913 struct type *type, gdb_byte *to,
914 int *optimizedp, int *unavailablep)
102182a9 915{
ee51a8c7
KB
916 struct gdbarch *gdbarch = get_frame_arch (frame);
917
918 if (mips_convert_register_float_case_p (gdbarch, regnum, type))
919 {
920 get_frame_register (frame, regnum + 0, to + 4);
921 get_frame_register (frame, regnum + 1, to + 0);
8dccd430
PA
922
923 if (!get_frame_register_bytes (frame, regnum + 0, 0, 4, to + 4,
924 optimizedp, unavailablep))
925 return 0;
926
927 if (!get_frame_register_bytes (frame, regnum + 1, 0, 4, to + 0,
928 optimizedp, unavailablep))
929 return 0;
930 *optimizedp = *unavailablep = 0;
931 return 1;
ee51a8c7
KB
932 }
933 else if (mips_convert_register_gpreg_case_p (gdbarch, regnum, type))
934 {
935 int len = TYPE_LENGTH (type);
8dccd430
PA
936 CORE_ADDR offset;
937
938 offset = gdbarch_byte_order (gdbarch) == BFD_ENDIAN_BIG ? 8 - len : 0;
939 if (!get_frame_register_bytes (frame, regnum, offset, len, to,
940 optimizedp, unavailablep))
941 return 0;
942
943 *optimizedp = *unavailablep = 0;
944 return 1;
ee51a8c7
KB
945 }
946 else
947 {
948 internal_error (__FILE__, __LINE__,
949 _("mips_register_to_value: unrecognized case"));
950 }
102182a9
MS
951}
952
42c466d7 953static void
ff2e87ac 954mips_value_to_register (struct frame_info *frame, int regnum,
47a35522 955 struct type *type, const gdb_byte *from)
102182a9 956{
ee51a8c7
KB
957 struct gdbarch *gdbarch = get_frame_arch (frame);
958
959 if (mips_convert_register_float_case_p (gdbarch, regnum, type))
960 {
961 put_frame_register (frame, regnum + 0, from + 4);
962 put_frame_register (frame, regnum + 1, from + 0);
963 }
964 else if (mips_convert_register_gpreg_case_p (gdbarch, regnum, type))
965 {
966 gdb_byte fill[8];
967 int len = TYPE_LENGTH (type);
968
969 /* Sign extend values, irrespective of type, that are stored to
970 a 64-bit general purpose register. (32-bit unsigned values
971 are stored as signed quantities within a 64-bit register.
972 When performing an operation, in compiled code, that combines
973 a 32-bit unsigned value with a signed 64-bit value, a type
974 conversion is first performed that zeroes out the high 32 bits.) */
975 if (gdbarch_byte_order (gdbarch) == BFD_ENDIAN_BIG)
976 {
977 if (from[0] & 0x80)
978 store_signed_integer (fill, 8, BFD_ENDIAN_BIG, -1);
979 else
980 store_signed_integer (fill, 8, BFD_ENDIAN_BIG, 0);
981 put_frame_register_bytes (frame, regnum, 0, 8 - len, fill);
982 put_frame_register_bytes (frame, regnum, 8 - len, len, from);
983 }
984 else
985 {
986 if (from[len-1] & 0x80)
987 store_signed_integer (fill, 8, BFD_ENDIAN_LITTLE, -1);
988 else
989 store_signed_integer (fill, 8, BFD_ENDIAN_LITTLE, 0);
990 put_frame_register_bytes (frame, regnum, 0, len, from);
991 put_frame_register_bytes (frame, regnum, len, 8 - len, fill);
992 }
993 }
994 else
995 {
996 internal_error (__FILE__, __LINE__,
997 _("mips_value_to_register: unrecognized case"));
998 }
102182a9
MS
999}
1000
a4b8ebc8
AC
1001/* Return the GDB type object for the "standard" data type of data in
1002 register REG. */
78fde5f8
KB
1003
1004static struct type *
a4b8ebc8
AC
1005mips_register_type (struct gdbarch *gdbarch, int regnum)
1006{
72a155b4 1007 gdb_assert (regnum >= 0 && regnum < 2 * gdbarch_num_regs (gdbarch));
004159a2 1008 if (mips_float_register_p (gdbarch, regnum))
a6425924 1009 {
5ef80fb0 1010 /* The floating-point registers raw, or cooked, always match
1b13c4f6 1011 mips_isa_regsize(), and also map 1:1, byte for byte. */
8da61cc4 1012 if (mips_isa_regsize (gdbarch) == 4)
27067745 1013 return builtin_type (gdbarch)->builtin_float;
8da61cc4 1014 else
27067745 1015 return builtin_type (gdbarch)->builtin_double;
a6425924 1016 }
72a155b4 1017 else if (regnum < gdbarch_num_regs (gdbarch))
d5ac5a39
AC
1018 {
1019 /* The raw or ISA registers. These are all sized according to
1020 the ISA regsize. */
1021 if (mips_isa_regsize (gdbarch) == 4)
df4df182 1022 return builtin_type (gdbarch)->builtin_int32;
d5ac5a39 1023 else
df4df182 1024 return builtin_type (gdbarch)->builtin_int64;
d5ac5a39 1025 }
78fde5f8 1026 else
d5ac5a39 1027 {
1faeff08
MR
1028 int rawnum = regnum - gdbarch_num_regs (gdbarch);
1029
d5ac5a39
AC
1030 /* The cooked or ABI registers. These are sized according to
1031 the ABI (with a few complications). */
1faeff08
MR
1032 if (rawnum == mips_regnum (gdbarch)->fp_control_status
1033 || rawnum == mips_regnum (gdbarch)->fp_implementation_revision)
1034 return builtin_type (gdbarch)->builtin_int32;
1035 else if (gdbarch_osabi (gdbarch) != GDB_OSABI_IRIX
1036 && gdbarch_osabi (gdbarch) != GDB_OSABI_LINUX
1037 && rawnum >= MIPS_FIRST_EMBED_REGNUM
1038 && rawnum <= MIPS_LAST_EMBED_REGNUM)
d5ac5a39
AC
1039 /* The pseudo/cooked view of the embedded registers is always
1040 32-bit. The raw view is handled below. */
df4df182 1041 return builtin_type (gdbarch)->builtin_int32;
d5ac5a39
AC
1042 else if (gdbarch_tdep (gdbarch)->mips64_transfers_32bit_regs_p)
1043 /* The target, while possibly using a 64-bit register buffer,
1044 is only transfering 32-bits of each integer register.
1045 Reflect this in the cooked/pseudo (ABI) register value. */
df4df182 1046 return builtin_type (gdbarch)->builtin_int32;
d5ac5a39
AC
1047 else if (mips_abi_regsize (gdbarch) == 4)
1048 /* The ABI is restricted to 32-bit registers (the ISA could be
1049 32- or 64-bit). */
df4df182 1050 return builtin_type (gdbarch)->builtin_int32;
d5ac5a39
AC
1051 else
1052 /* 64-bit ABI. */
df4df182 1053 return builtin_type (gdbarch)->builtin_int64;
d5ac5a39 1054 }
78fde5f8
KB
1055}
1056
f8b73d13
DJ
1057/* Return the GDB type for the pseudo register REGNUM, which is the
1058 ABI-level view. This function is only called if there is a target
1059 description which includes registers, so we know precisely the
1060 types of hardware registers. */
1061
1062static struct type *
1063mips_pseudo_register_type (struct gdbarch *gdbarch, int regnum)
1064{
1065 const int num_regs = gdbarch_num_regs (gdbarch);
f8b73d13
DJ
1066 int rawnum = regnum % num_regs;
1067 struct type *rawtype;
1068
1069 gdb_assert (regnum >= num_regs && regnum < 2 * num_regs);
1070
1071 /* Absent registers are still absent. */
1072 rawtype = gdbarch_register_type (gdbarch, rawnum);
1073 if (TYPE_LENGTH (rawtype) == 0)
1074 return rawtype;
1075
de13fcf2 1076 if (mips_float_register_p (gdbarch, rawnum))
f8b73d13
DJ
1077 /* Present the floating point registers however the hardware did;
1078 do not try to convert between FPU layouts. */
1079 return rawtype;
1080
f8b73d13
DJ
1081 /* Use pointer types for registers if we can. For n32 we can not,
1082 since we do not have a 64-bit pointer type. */
0dfff4cb
UW
1083 if (mips_abi_regsize (gdbarch)
1084 == TYPE_LENGTH (builtin_type (gdbarch)->builtin_data_ptr))
f8b73d13 1085 {
1faeff08
MR
1086 if (rawnum == MIPS_SP_REGNUM
1087 || rawnum == mips_regnum (gdbarch)->badvaddr)
0dfff4cb 1088 return builtin_type (gdbarch)->builtin_data_ptr;
1faeff08 1089 else if (rawnum == mips_regnum (gdbarch)->pc)
0dfff4cb 1090 return builtin_type (gdbarch)->builtin_func_ptr;
f8b73d13
DJ
1091 }
1092
1093 if (mips_abi_regsize (gdbarch) == 4 && TYPE_LENGTH (rawtype) == 8
1faeff08
MR
1094 && ((rawnum >= MIPS_ZERO_REGNUM && rawnum <= MIPS_PS_REGNUM)
1095 || rawnum == mips_regnum (gdbarch)->lo
1096 || rawnum == mips_regnum (gdbarch)->hi
1097 || rawnum == mips_regnum (gdbarch)->badvaddr
1098 || rawnum == mips_regnum (gdbarch)->cause
1099 || rawnum == mips_regnum (gdbarch)->pc
1100 || (mips_regnum (gdbarch)->dspacc != -1
1101 && rawnum >= mips_regnum (gdbarch)->dspacc
1102 && rawnum < mips_regnum (gdbarch)->dspacc + 6)))
df4df182 1103 return builtin_type (gdbarch)->builtin_int32;
f8b73d13 1104
1faeff08
MR
1105 if (gdbarch_osabi (gdbarch) != GDB_OSABI_IRIX
1106 && gdbarch_osabi (gdbarch) != GDB_OSABI_LINUX
1107 && rawnum >= MIPS_EMBED_FP0_REGNUM + 32
1108 && rawnum <= MIPS_LAST_EMBED_REGNUM)
1109 {
1110 /* The pseudo/cooked view of embedded registers is always
1111 32-bit, even if the target transfers 64-bit values for them.
1112 New targets relying on XML descriptions should only transfer
1113 the necessary 32 bits, but older versions of GDB expected 64,
1114 so allow the target to provide 64 bits without interfering
1115 with the displayed type. */
1116 return builtin_type (gdbarch)->builtin_int32;
1117 }
1118
f8b73d13
DJ
1119 /* For all other registers, pass through the hardware type. */
1120 return rawtype;
1121}
bcb0cc15 1122
025bb325 1123/* Should the upper word of 64-bit addresses be zeroed? */
7f19b9a2 1124enum auto_boolean mask_address_var = AUTO_BOOLEAN_AUTO;
4014092b
AC
1125
1126static int
480d3dd2 1127mips_mask_address_p (struct gdbarch_tdep *tdep)
4014092b
AC
1128{
1129 switch (mask_address_var)
1130 {
7f19b9a2 1131 case AUTO_BOOLEAN_TRUE:
4014092b 1132 return 1;
7f19b9a2 1133 case AUTO_BOOLEAN_FALSE:
4014092b
AC
1134 return 0;
1135 break;
7f19b9a2 1136 case AUTO_BOOLEAN_AUTO:
480d3dd2 1137 return tdep->default_mask_address_p;
4014092b 1138 default:
025bb325
MS
1139 internal_error (__FILE__, __LINE__,
1140 _("mips_mask_address_p: bad switch"));
4014092b 1141 return -1;
361d1df0 1142 }
4014092b
AC
1143}
1144
1145static void
08546159
AC
1146show_mask_address (struct ui_file *file, int from_tty,
1147 struct cmd_list_element *c, const char *value)
4014092b 1148{
f5656ead 1149 struct gdbarch_tdep *tdep = gdbarch_tdep (target_gdbarch ());
08546159
AC
1150
1151 deprecated_show_value_hack (file, from_tty, c, value);
4014092b
AC
1152 switch (mask_address_var)
1153 {
7f19b9a2 1154 case AUTO_BOOLEAN_TRUE:
4014092b
AC
1155 printf_filtered ("The 32 bit mips address mask is enabled\n");
1156 break;
7f19b9a2 1157 case AUTO_BOOLEAN_FALSE:
4014092b
AC
1158 printf_filtered ("The 32 bit mips address mask is disabled\n");
1159 break;
7f19b9a2 1160 case AUTO_BOOLEAN_AUTO:
6d82d43b
AC
1161 printf_filtered
1162 ("The 32 bit address mask is set automatically. Currently %s\n",
1163 mips_mask_address_p (tdep) ? "enabled" : "disabled");
4014092b
AC
1164 break;
1165 default:
e2e0b3e5 1166 internal_error (__FILE__, __LINE__, _("show_mask_address: bad switch"));
4014092b 1167 break;
361d1df0 1168 }
4014092b 1169}
c906108c 1170
4cc0665f
MR
1171/* Tell if the program counter value in MEMADDR is in a standard ISA
1172 function. */
1173
1174int
1175mips_pc_is_mips (CORE_ADDR memaddr)
1176{
7cbd4a93 1177 struct bound_minimal_symbol sym;
4cc0665f
MR
1178
1179 /* Flags indicating that this is a MIPS16 or microMIPS function is
1180 stored by elfread.c in the high bit of the info field. Use this
1181 to decide if the function is standard MIPS. Otherwise if bit 0
1182 of the address is clear, then this is a standard MIPS function. */
3e29f34a 1183 sym = lookup_minimal_symbol_by_pc (make_compact_addr (memaddr));
7cbd4a93
TT
1184 if (sym.minsym)
1185 return msymbol_is_mips (sym.minsym);
4cc0665f
MR
1186 else
1187 return is_mips_addr (memaddr);
1188}
1189
c906108c
SS
1190/* Tell if the program counter value in MEMADDR is in a MIPS16 function. */
1191
0fe7e7c8 1192int
4cc0665f 1193mips_pc_is_mips16 (struct gdbarch *gdbarch, CORE_ADDR memaddr)
c906108c 1194{
7cbd4a93 1195 struct bound_minimal_symbol sym;
c906108c 1196
91912e4d
MR
1197 /* A flag indicating that this is a MIPS16 function is stored by
1198 elfread.c in the high bit of the info field. Use this to decide
4cc0665f
MR
1199 if the function is MIPS16. Otherwise if bit 0 of the address is
1200 set, then ELF file flags will tell if this is a MIPS16 function. */
3e29f34a 1201 sym = lookup_minimal_symbol_by_pc (make_compact_addr (memaddr));
7cbd4a93
TT
1202 if (sym.minsym)
1203 return msymbol_is_mips16 (sym.minsym);
4cc0665f
MR
1204 else
1205 return is_mips16_addr (gdbarch, memaddr);
1206}
1207
1208/* Tell if the program counter value in MEMADDR is in a microMIPS function. */
1209
1210int
1211mips_pc_is_micromips (struct gdbarch *gdbarch, CORE_ADDR memaddr)
1212{
7cbd4a93 1213 struct bound_minimal_symbol sym;
4cc0665f
MR
1214
1215 /* A flag indicating that this is a microMIPS function is stored by
1216 elfread.c in the high bit of the info field. Use this to decide
1217 if the function is microMIPS. Otherwise if bit 0 of the address
1218 is set, then ELF file flags will tell if this is a microMIPS
1219 function. */
3e29f34a 1220 sym = lookup_minimal_symbol_by_pc (make_compact_addr (memaddr));
7cbd4a93
TT
1221 if (sym.minsym)
1222 return msymbol_is_micromips (sym.minsym);
4cc0665f
MR
1223 else
1224 return is_micromips_addr (gdbarch, memaddr);
1225}
1226
1227/* Tell the ISA type of the function the program counter value in MEMADDR
1228 is in. */
1229
1230static enum mips_isa
1231mips_pc_isa (struct gdbarch *gdbarch, CORE_ADDR memaddr)
1232{
7cbd4a93 1233 struct bound_minimal_symbol sym;
4cc0665f
MR
1234
1235 /* A flag indicating that this is a MIPS16 or a microMIPS function
1236 is stored by elfread.c in the high bit of the info field. Use
1237 this to decide if the function is MIPS16 or microMIPS or normal
1238 MIPS. Otherwise if bit 0 of the address is set, then ELF file
1239 flags will tell if this is a MIPS16 or a microMIPS function. */
3e29f34a 1240 sym = lookup_minimal_symbol_by_pc (make_compact_addr (memaddr));
7cbd4a93 1241 if (sym.minsym)
4cc0665f 1242 {
7cbd4a93 1243 if (msymbol_is_micromips (sym.minsym))
4cc0665f 1244 return ISA_MICROMIPS;
7cbd4a93 1245 else if (msymbol_is_mips16 (sym.minsym))
4cc0665f
MR
1246 return ISA_MIPS16;
1247 else
1248 return ISA_MIPS;
1249 }
c906108c 1250 else
4cc0665f
MR
1251 {
1252 if (is_mips_addr (memaddr))
1253 return ISA_MIPS;
1254 else if (is_micromips_addr (gdbarch, memaddr))
1255 return ISA_MICROMIPS;
1256 else
1257 return ISA_MIPS16;
1258 }
c906108c
SS
1259}
1260
3e29f34a
MR
1261/* Set the ISA bit correctly in the PC, used by DWARF-2 machinery.
1262 The need for comes from the ISA bit having been cleared, making
1263 addresses in FDE, range records, etc. referring to compressed code
1264 different to those in line information, the symbol table and finally
1265 the PC register. That in turn confuses many operations. */
1266
1267static CORE_ADDR
1268mips_adjust_dwarf2_addr (CORE_ADDR pc)
1269{
1270 pc = unmake_compact_addr (pc);
1271 return mips_pc_is_mips (pc) ? pc : make_compact_addr (pc);
1272}
1273
1274/* Recalculate the line record requested so that the resulting PC has
1275 the ISA bit set correctly, used by DWARF-2 machinery. The need for
1276 this adjustment comes from some records associated with compressed
1277 code having the ISA bit cleared, most notably at function prologue
1278 ends. The ISA bit is in this context retrieved from the minimal
1279 symbol covering the address requested, which in turn has been
1280 constructed from the binary's symbol table rather than DWARF-2
1281 information. The correct setting of the ISA bit is required for
1282 breakpoint addresses to correctly match against the stop PC.
1283
1284 As line entries can specify relative address adjustments we need to
1285 keep track of the absolute value of the last line address recorded
1286 in line information, so that we can calculate the actual address to
1287 apply the ISA bit adjustment to. We use PC for this tracking and
1288 keep the original address there.
1289
1290 As such relative address adjustments can be odd within compressed
1291 code we need to keep track of the last line address with the ISA
1292 bit adjustment applied too, as the original address may or may not
1293 have had the ISA bit set. We use ADJ_PC for this tracking and keep
1294 the adjusted address there.
1295
1296 For relative address adjustments we then use these variables to
1297 calculate the address intended by line information, which will be
1298 PC-relative, and return an updated adjustment carrying ISA bit
1299 information, which will be ADJ_PC-relative. For absolute address
1300 adjustments we just return the same address that we store in ADJ_PC
1301 too.
1302
1303 As the first line entry can be relative to an implied address value
1304 of 0 we need to have the initial address set up that we store in PC
1305 and ADJ_PC. This is arranged with a call from `dwarf_decode_lines_1'
1306 that sets PC to 0 and ADJ_PC accordingly, usually 0 as well. */
1307
1308static CORE_ADDR
1309mips_adjust_dwarf2_line (CORE_ADDR addr, int rel)
1310{
1311 static CORE_ADDR adj_pc;
1312 static CORE_ADDR pc;
1313 CORE_ADDR isa_pc;
1314
1315 pc = rel ? pc + addr : addr;
1316 isa_pc = mips_adjust_dwarf2_addr (pc);
1317 addr = rel ? isa_pc - adj_pc : isa_pc;
1318 adj_pc = isa_pc;
1319 return addr;
1320}
1321
14132e89
MR
1322/* Various MIPS16 thunk (aka stub or trampoline) names. */
1323
1324static const char mips_str_mips16_call_stub[] = "__mips16_call_stub_";
1325static const char mips_str_mips16_ret_stub[] = "__mips16_ret_";
1326static const char mips_str_call_fp_stub[] = "__call_stub_fp_";
1327static const char mips_str_call_stub[] = "__call_stub_";
1328static const char mips_str_fn_stub[] = "__fn_stub_";
1329
1330/* This is used as a PIC thunk prefix. */
1331
1332static const char mips_str_pic[] = ".pic.";
1333
1334/* Return non-zero if the PC is inside a call thunk (aka stub or
1335 trampoline) that should be treated as a temporary frame. */
1336
1337static int
1338mips_in_frame_stub (CORE_ADDR pc)
1339{
1340 CORE_ADDR start_addr;
1341 const char *name;
1342
1343 /* Find the starting address of the function containing the PC. */
1344 if (find_pc_partial_function (pc, &name, &start_addr, NULL) == 0)
1345 return 0;
1346
1347 /* If the PC is in __mips16_call_stub_*, this is a call/return stub. */
61012eef 1348 if (startswith (name, mips_str_mips16_call_stub))
14132e89
MR
1349 return 1;
1350 /* If the PC is in __call_stub_*, this is a call/return or a call stub. */
61012eef 1351 if (startswith (name, mips_str_call_stub))
14132e89
MR
1352 return 1;
1353 /* If the PC is in __fn_stub_*, this is a call stub. */
61012eef 1354 if (startswith (name, mips_str_fn_stub))
14132e89
MR
1355 return 1;
1356
1357 return 0; /* Not a stub. */
1358}
1359
b2fa5097 1360/* MIPS believes that the PC has a sign extended value. Perhaps the
025bb325 1361 all registers should be sign extended for simplicity? */
6c997a34
AC
1362
1363static CORE_ADDR
61a1198a 1364mips_read_pc (struct regcache *regcache)
6c997a34 1365{
8376de04 1366 int regnum = gdbarch_pc_regnum (get_regcache_arch (regcache));
70242eb1 1367 LONGEST pc;
8376de04 1368
61a1198a
UW
1369 regcache_cooked_read_signed (regcache, regnum, &pc);
1370 return pc;
b6cb9035
AC
1371}
1372
58dfe9ff
AC
1373static CORE_ADDR
1374mips_unwind_pc (struct gdbarch *gdbarch, struct frame_info *next_frame)
1375{
14132e89 1376 CORE_ADDR pc;
930bd0e0 1377
8376de04 1378 pc = frame_unwind_register_signed (next_frame, gdbarch_pc_regnum (gdbarch));
14132e89
MR
1379 /* macro/2012-04-20: This hack skips over MIPS16 call thunks as
1380 intermediate frames. In this case we can get the caller's address
1381 from $ra, or if $ra contains an address within a thunk as well, then
1382 it must be in the return path of __mips16_call_stub_{s,d}{f,c}_{0..10}
1383 and thus the caller's address is in $s2. */
1384 if (frame_relative_level (next_frame) >= 0 && mips_in_frame_stub (pc))
1385 {
1386 pc = frame_unwind_register_signed
1387 (next_frame, gdbarch_num_regs (gdbarch) + MIPS_RA_REGNUM);
14132e89 1388 if (mips_in_frame_stub (pc))
3e29f34a
MR
1389 pc = frame_unwind_register_signed
1390 (next_frame, gdbarch_num_regs (gdbarch) + MIPS_S2_REGNUM);
14132e89 1391 }
930bd0e0 1392 return pc;
edfae063
AC
1393}
1394
30244cd8
UW
1395static CORE_ADDR
1396mips_unwind_sp (struct gdbarch *gdbarch, struct frame_info *next_frame)
1397{
72a155b4
UW
1398 return frame_unwind_register_signed
1399 (next_frame, gdbarch_num_regs (gdbarch) + MIPS_SP_REGNUM);
30244cd8
UW
1400}
1401
b8a22b94 1402/* Assuming THIS_FRAME is a dummy, return the frame ID of that
edfae063
AC
1403 dummy frame. The frame ID's base needs to match the TOS value
1404 saved by save_dummy_frame_tos(), and the PC match the dummy frame's
1405 breakpoint. */
1406
1407static struct frame_id
b8a22b94 1408mips_dummy_id (struct gdbarch *gdbarch, struct frame_info *this_frame)
edfae063 1409{
f57d151a 1410 return frame_id_build
b8a22b94
DJ
1411 (get_frame_register_signed (this_frame,
1412 gdbarch_num_regs (gdbarch)
1413 + MIPS_SP_REGNUM),
1414 get_frame_pc (this_frame));
58dfe9ff
AC
1415}
1416
5a439849
MR
1417/* Implement the "write_pc" gdbarch method. */
1418
1419void
61a1198a 1420mips_write_pc (struct regcache *regcache, CORE_ADDR pc)
b6cb9035 1421{
8376de04
MR
1422 int regnum = gdbarch_pc_regnum (get_regcache_arch (regcache));
1423
3e29f34a 1424 regcache_cooked_write_unsigned (regcache, regnum, pc);
6c997a34 1425}
c906108c 1426
4cc0665f
MR
1427/* Fetch and return instruction from the specified location. Handle
1428 MIPS16/microMIPS as appropriate. */
c906108c 1429
d37cca3d 1430static ULONGEST
4cc0665f 1431mips_fetch_instruction (struct gdbarch *gdbarch,
d09f2c3f 1432 enum mips_isa isa, CORE_ADDR addr, int *errp)
c906108c 1433{
e17a4113 1434 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
47a35522 1435 gdb_byte buf[MIPS_INSN32_SIZE];
c906108c 1436 int instlen;
d09f2c3f 1437 int err;
c906108c 1438
4cc0665f 1439 switch (isa)
c906108c 1440 {
4cc0665f
MR
1441 case ISA_MICROMIPS:
1442 case ISA_MIPS16:
95ac2dcf 1443 instlen = MIPS_INSN16_SIZE;
4cc0665f
MR
1444 addr = unmake_compact_addr (addr);
1445 break;
1446 case ISA_MIPS:
1447 instlen = MIPS_INSN32_SIZE;
1448 break;
1449 default:
1450 internal_error (__FILE__, __LINE__, _("invalid ISA"));
1451 break;
c906108c 1452 }
d09f2c3f
PA
1453 err = target_read_memory (addr, buf, instlen);
1454 if (errp != NULL)
1455 *errp = err;
1456 if (err != 0)
4cc0665f 1457 {
d09f2c3f
PA
1458 if (errp == NULL)
1459 memory_error (TARGET_XFER_E_IO, addr);
4cc0665f
MR
1460 return 0;
1461 }
e17a4113 1462 return extract_unsigned_integer (buf, instlen, byte_order);
c906108c
SS
1463}
1464
025bb325 1465/* These are the fields of 32 bit mips instructions. */
e135b889
DJ
1466#define mips32_op(x) (x >> 26)
1467#define itype_op(x) (x >> 26)
1468#define itype_rs(x) ((x >> 21) & 0x1f)
c906108c 1469#define itype_rt(x) ((x >> 16) & 0x1f)
e135b889 1470#define itype_immediate(x) (x & 0xffff)
c906108c 1471
e135b889
DJ
1472#define jtype_op(x) (x >> 26)
1473#define jtype_target(x) (x & 0x03ffffff)
c906108c 1474
e135b889
DJ
1475#define rtype_op(x) (x >> 26)
1476#define rtype_rs(x) ((x >> 21) & 0x1f)
1477#define rtype_rt(x) ((x >> 16) & 0x1f)
1478#define rtype_rd(x) ((x >> 11) & 0x1f)
1479#define rtype_shamt(x) ((x >> 6) & 0x1f)
1480#define rtype_funct(x) (x & 0x3f)
c906108c 1481
4cc0665f
MR
1482/* MicroMIPS instruction fields. */
1483#define micromips_op(x) ((x) >> 10)
1484
1485/* 16-bit/32-bit-high-part instruction formats, B and S refer to the lowest
1486 bit and the size respectively of the field extracted. */
1487#define b0s4_imm(x) ((x) & 0xf)
1488#define b0s5_imm(x) ((x) & 0x1f)
1489#define b0s5_reg(x) ((x) & 0x1f)
1490#define b0s7_imm(x) ((x) & 0x7f)
1491#define b0s10_imm(x) ((x) & 0x3ff)
1492#define b1s4_imm(x) (((x) >> 1) & 0xf)
1493#define b1s9_imm(x) (((x) >> 1) & 0x1ff)
1494#define b2s3_cc(x) (((x) >> 2) & 0x7)
1495#define b4s2_regl(x) (((x) >> 4) & 0x3)
1496#define b5s5_op(x) (((x) >> 5) & 0x1f)
1497#define b5s5_reg(x) (((x) >> 5) & 0x1f)
1498#define b6s4_op(x) (((x) >> 6) & 0xf)
1499#define b7s3_reg(x) (((x) >> 7) & 0x7)
1500
1501/* 32-bit instruction formats, B and S refer to the lowest bit and the size
1502 respectively of the field extracted. */
1503#define b0s6_op(x) ((x) & 0x3f)
1504#define b0s11_op(x) ((x) & 0x7ff)
1505#define b0s12_imm(x) ((x) & 0xfff)
1506#define b0s16_imm(x) ((x) & 0xffff)
1507#define b0s26_imm(x) ((x) & 0x3ffffff)
1508#define b6s10_ext(x) (((x) >> 6) & 0x3ff)
1509#define b11s5_reg(x) (((x) >> 11) & 0x1f)
1510#define b12s4_op(x) (((x) >> 12) & 0xf)
1511
1512/* Return the size in bytes of the instruction INSN encoded in the ISA
1513 instruction set. */
1514
1515static int
1516mips_insn_size (enum mips_isa isa, ULONGEST insn)
1517{
1518 switch (isa)
1519 {
1520 case ISA_MICROMIPS:
100b4f2e
MR
1521 if ((micromips_op (insn) & 0x4) == 0x4
1522 || (micromips_op (insn) & 0x7) == 0x0)
4cc0665f
MR
1523 return 2 * MIPS_INSN16_SIZE;
1524 else
1525 return MIPS_INSN16_SIZE;
1526 case ISA_MIPS16:
1527 if ((insn & 0xf800) == 0xf000)
1528 return 2 * MIPS_INSN16_SIZE;
1529 else
1530 return MIPS_INSN16_SIZE;
1531 case ISA_MIPS:
1532 return MIPS_INSN32_SIZE;
1533 }
1534 internal_error (__FILE__, __LINE__, _("invalid ISA"));
1535}
1536
06987e64
MK
1537static LONGEST
1538mips32_relative_offset (ULONGEST inst)
c5aa993b 1539{
06987e64 1540 return ((itype_immediate (inst) ^ 0x8000) - 0x8000) << 2;
c906108c
SS
1541}
1542
a385295e
MR
1543/* Determine the address of the next instruction executed after the INST
1544 floating condition branch instruction at PC. COUNT specifies the
1545 number of the floating condition bits tested by the branch. */
1546
1547static CORE_ADDR
1548mips32_bc1_pc (struct gdbarch *gdbarch, struct frame_info *frame,
1549 ULONGEST inst, CORE_ADDR pc, int count)
1550{
1551 int fcsr = mips_regnum (gdbarch)->fp_control_status;
1552 int cnum = (itype_rt (inst) >> 2) & (count - 1);
1553 int tf = itype_rt (inst) & 1;
1554 int mask = (1 << count) - 1;
1555 ULONGEST fcs;
1556 int cond;
1557
1558 if (fcsr == -1)
1559 /* No way to handle; it'll most likely trap anyway. */
1560 return pc;
1561
1562 fcs = get_frame_register_unsigned (frame, fcsr);
1563 cond = ((fcs >> 24) & 0xfe) | ((fcs >> 23) & 0x01);
1564
1565 if (((cond >> cnum) & mask) != mask * !tf)
1566 pc += mips32_relative_offset (inst);
1567 else
1568 pc += 4;
1569
1570 return pc;
1571}
1572
f94363d7
AP
1573/* Return nonzero if the gdbarch is an Octeon series. */
1574
1575static int
1576is_octeon (struct gdbarch *gdbarch)
1577{
1578 const struct bfd_arch_info *info = gdbarch_bfd_arch_info (gdbarch);
1579
1580 return (info->mach == bfd_mach_mips_octeon
1581 || info->mach == bfd_mach_mips_octeonp
1582 || info->mach == bfd_mach_mips_octeon2);
1583}
1584
1585/* Return true if the OP represents the Octeon's BBIT instruction. */
1586
1587static int
1588is_octeon_bbit_op (int op, struct gdbarch *gdbarch)
1589{
1590 if (!is_octeon (gdbarch))
1591 return 0;
1592 /* BBIT0 is encoded as LWC2: 110 010. */
1593 /* BBIT032 is encoded as LDC2: 110 110. */
1594 /* BBIT1 is encoded as SWC2: 111 010. */
1595 /* BBIT132 is encoded as SDC2: 111 110. */
1596 if (op == 50 || op == 54 || op == 58 || op == 62)
1597 return 1;
1598 return 0;
1599}
1600
1601
f49e4e6d
MS
1602/* Determine where to set a single step breakpoint while considering
1603 branch prediction. */
78a59c2f 1604
5a89d8aa 1605static CORE_ADDR
0b1b3e42 1606mips32_next_pc (struct frame_info *frame, CORE_ADDR pc)
c5aa993b 1607{
e17a4113 1608 struct gdbarch *gdbarch = get_frame_arch (frame);
c5aa993b
JM
1609 unsigned long inst;
1610 int op;
4cc0665f 1611 inst = mips_fetch_instruction (gdbarch, ISA_MIPS, pc, NULL);
4f5bcb50 1612 op = itype_op (inst);
025bb325
MS
1613 if ((inst & 0xe0000000) != 0) /* Not a special, jump or branch
1614 instruction. */
c5aa993b 1615 {
4f5bcb50 1616 if (op >> 2 == 5)
6d82d43b 1617 /* BEQL, BNEL, BLEZL, BGTZL: bits 0101xx */
c5aa993b 1618 {
4f5bcb50 1619 switch (op & 0x03)
c906108c 1620 {
e135b889
DJ
1621 case 0: /* BEQL */
1622 goto equal_branch;
1623 case 1: /* BNEL */
1624 goto neq_branch;
1625 case 2: /* BLEZL */
1626 goto less_branch;
313628cc 1627 case 3: /* BGTZL */
e135b889 1628 goto greater_branch;
c5aa993b
JM
1629 default:
1630 pc += 4;
c906108c
SS
1631 }
1632 }
4f5bcb50 1633 else if (op == 17 && itype_rs (inst) == 8)
6d82d43b 1634 /* BC1F, BC1FL, BC1T, BC1TL: 010001 01000 */
a385295e 1635 pc = mips32_bc1_pc (gdbarch, frame, inst, pc + 4, 1);
4f5bcb50 1636 else if (op == 17 && itype_rs (inst) == 9
a385295e
MR
1637 && (itype_rt (inst) & 2) == 0)
1638 /* BC1ANY2F, BC1ANY2T: 010001 01001 xxx0x */
1639 pc = mips32_bc1_pc (gdbarch, frame, inst, pc + 4, 2);
4f5bcb50 1640 else if (op == 17 && itype_rs (inst) == 10
a385295e
MR
1641 && (itype_rt (inst) & 2) == 0)
1642 /* BC1ANY4F, BC1ANY4T: 010001 01010 xxx0x */
1643 pc = mips32_bc1_pc (gdbarch, frame, inst, pc + 4, 4);
4f5bcb50 1644 else if (op == 29)
9e8da49c
MR
1645 /* JALX: 011101 */
1646 /* The new PC will be alternate mode. */
1647 {
1648 unsigned long reg;
1649
1650 reg = jtype_target (inst) << 2;
1651 /* Add 1 to indicate 16-bit mode -- invert ISA mode. */
1652 pc = ((pc + 4) & ~(CORE_ADDR) 0x0fffffff) + reg + 1;
1653 }
f94363d7
AP
1654 else if (is_octeon_bbit_op (op, gdbarch))
1655 {
1656 int bit, branch_if;
1657
1658 branch_if = op == 58 || op == 62;
1659 bit = itype_rt (inst);
1660
1661 /* Take into account the *32 instructions. */
1662 if (op == 54 || op == 62)
1663 bit += 32;
1664
1665 if (((get_frame_register_signed (frame,
1666 itype_rs (inst)) >> bit) & 1)
1667 == branch_if)
1668 pc += mips32_relative_offset (inst) + 4;
1669 else
1670 pc += 8; /* After the delay slot. */
1671 }
1672
c5aa993b 1673 else
025bb325 1674 pc += 4; /* Not a branch, next instruction is easy. */
c906108c
SS
1675 }
1676 else
025bb325 1677 { /* This gets way messy. */
c5aa993b 1678
025bb325 1679 /* Further subdivide into SPECIAL, REGIMM and other. */
4f5bcb50 1680 switch (op & 0x07) /* Extract bits 28,27,26. */
c906108c 1681 {
c5aa993b
JM
1682 case 0: /* SPECIAL */
1683 op = rtype_funct (inst);
1684 switch (op)
1685 {
1686 case 8: /* JR */
1687 case 9: /* JALR */
025bb325 1688 /* Set PC to that address. */
0b1b3e42 1689 pc = get_frame_register_signed (frame, rtype_rs (inst));
c5aa993b 1690 break;
e38d4e1a
DJ
1691 case 12: /* SYSCALL */
1692 {
1693 struct gdbarch_tdep *tdep;
1694
1695 tdep = gdbarch_tdep (get_frame_arch (frame));
1696 if (tdep->syscall_next_pc != NULL)
1697 pc = tdep->syscall_next_pc (frame);
1698 else
1699 pc += 4;
1700 }
1701 break;
c5aa993b
JM
1702 default:
1703 pc += 4;
1704 }
1705
6d82d43b 1706 break; /* end SPECIAL */
025bb325 1707 case 1: /* REGIMM */
c906108c 1708 {
e135b889
DJ
1709 op = itype_rt (inst); /* branch condition */
1710 switch (op)
c906108c 1711 {
c5aa993b 1712 case 0: /* BLTZ */
e135b889
DJ
1713 case 2: /* BLTZL */
1714 case 16: /* BLTZAL */
c5aa993b 1715 case 18: /* BLTZALL */
c906108c 1716 less_branch:
0b1b3e42 1717 if (get_frame_register_signed (frame, itype_rs (inst)) < 0)
c5aa993b
JM
1718 pc += mips32_relative_offset (inst) + 4;
1719 else
1720 pc += 8; /* after the delay slot */
1721 break;
e135b889 1722 case 1: /* BGEZ */
c5aa993b
JM
1723 case 3: /* BGEZL */
1724 case 17: /* BGEZAL */
1725 case 19: /* BGEZALL */
0b1b3e42 1726 if (get_frame_register_signed (frame, itype_rs (inst)) >= 0)
c5aa993b
JM
1727 pc += mips32_relative_offset (inst) + 4;
1728 else
1729 pc += 8; /* after the delay slot */
1730 break;
a385295e
MR
1731 case 0x1c: /* BPOSGE32 */
1732 case 0x1e: /* BPOSGE64 */
1733 pc += 4;
1734 if (itype_rs (inst) == 0)
1735 {
1736 unsigned int pos = (op & 2) ? 64 : 32;
1737 int dspctl = mips_regnum (gdbarch)->dspctl;
1738
1739 if (dspctl == -1)
1740 /* No way to handle; it'll most likely trap anyway. */
1741 break;
1742
1743 if ((get_frame_register_unsigned (frame,
1744 dspctl) & 0x7f) >= pos)
1745 pc += mips32_relative_offset (inst);
1746 else
1747 pc += 4;
1748 }
1749 break;
e135b889 1750 /* All of the other instructions in the REGIMM category */
c5aa993b
JM
1751 default:
1752 pc += 4;
c906108c
SS
1753 }
1754 }
6d82d43b 1755 break; /* end REGIMM */
c5aa993b
JM
1756 case 2: /* J */
1757 case 3: /* JAL */
1758 {
1759 unsigned long reg;
1760 reg = jtype_target (inst) << 2;
025bb325 1761 /* Upper four bits get never changed... */
5b652102 1762 pc = reg + ((pc + 4) & ~(CORE_ADDR) 0x0fffffff);
c906108c 1763 }
c5aa993b 1764 break;
e135b889 1765 case 4: /* BEQ, BEQL */
c5aa993b 1766 equal_branch:
0b1b3e42
UW
1767 if (get_frame_register_signed (frame, itype_rs (inst)) ==
1768 get_frame_register_signed (frame, itype_rt (inst)))
c5aa993b
JM
1769 pc += mips32_relative_offset (inst) + 4;
1770 else
1771 pc += 8;
1772 break;
e135b889 1773 case 5: /* BNE, BNEL */
c5aa993b 1774 neq_branch:
0b1b3e42
UW
1775 if (get_frame_register_signed (frame, itype_rs (inst)) !=
1776 get_frame_register_signed (frame, itype_rt (inst)))
c5aa993b
JM
1777 pc += mips32_relative_offset (inst) + 4;
1778 else
1779 pc += 8;
1780 break;
e135b889 1781 case 6: /* BLEZ, BLEZL */
0b1b3e42 1782 if (get_frame_register_signed (frame, itype_rs (inst)) <= 0)
c5aa993b
JM
1783 pc += mips32_relative_offset (inst) + 4;
1784 else
1785 pc += 8;
1786 break;
1787 case 7:
e135b889
DJ
1788 default:
1789 greater_branch: /* BGTZ, BGTZL */
0b1b3e42 1790 if (get_frame_register_signed (frame, itype_rs (inst)) > 0)
c5aa993b
JM
1791 pc += mips32_relative_offset (inst) + 4;
1792 else
1793 pc += 8;
1794 break;
c5aa993b
JM
1795 } /* switch */
1796 } /* else */
1797 return pc;
1798} /* mips32_next_pc */
c906108c 1799
4cc0665f
MR
1800/* Extract the 7-bit signed immediate offset from the microMIPS instruction
1801 INSN. */
1802
1803static LONGEST
1804micromips_relative_offset7 (ULONGEST insn)
1805{
1806 return ((b0s7_imm (insn) ^ 0x40) - 0x40) << 1;
1807}
1808
1809/* Extract the 10-bit signed immediate offset from the microMIPS instruction
1810 INSN. */
1811
1812static LONGEST
1813micromips_relative_offset10 (ULONGEST insn)
1814{
1815 return ((b0s10_imm (insn) ^ 0x200) - 0x200) << 1;
1816}
1817
1818/* Extract the 16-bit signed immediate offset from the microMIPS instruction
1819 INSN. */
1820
1821static LONGEST
1822micromips_relative_offset16 (ULONGEST insn)
1823{
1824 return ((b0s16_imm (insn) ^ 0x8000) - 0x8000) << 1;
1825}
1826
1827/* Return the size in bytes of the microMIPS instruction at the address PC. */
1828
1829static int
1830micromips_pc_insn_size (struct gdbarch *gdbarch, CORE_ADDR pc)
1831{
1832 ULONGEST insn;
1833
1834 insn = mips_fetch_instruction (gdbarch, ISA_MICROMIPS, pc, NULL);
1835 return mips_insn_size (ISA_MICROMIPS, insn);
1836}
1837
1838/* Calculate the address of the next microMIPS instruction to execute
1839 after the INSN coprocessor 1 conditional branch instruction at the
1840 address PC. COUNT denotes the number of coprocessor condition bits
1841 examined by the branch. */
1842
1843static CORE_ADDR
1844micromips_bc1_pc (struct gdbarch *gdbarch, struct frame_info *frame,
1845 ULONGEST insn, CORE_ADDR pc, int count)
1846{
1847 int fcsr = mips_regnum (gdbarch)->fp_control_status;
1848 int cnum = b2s3_cc (insn >> 16) & (count - 1);
1849 int tf = b5s5_op (insn >> 16) & 1;
1850 int mask = (1 << count) - 1;
1851 ULONGEST fcs;
1852 int cond;
1853
1854 if (fcsr == -1)
1855 /* No way to handle; it'll most likely trap anyway. */
1856 return pc;
1857
1858 fcs = get_frame_register_unsigned (frame, fcsr);
1859 cond = ((fcs >> 24) & 0xfe) | ((fcs >> 23) & 0x01);
1860
1861 if (((cond >> cnum) & mask) != mask * !tf)
1862 pc += micromips_relative_offset16 (insn);
1863 else
1864 pc += micromips_pc_insn_size (gdbarch, pc);
1865
1866 return pc;
1867}
1868
1869/* Calculate the address of the next microMIPS instruction to execute
1870 after the instruction at the address PC. */
1871
1872static CORE_ADDR
1873micromips_next_pc (struct frame_info *frame, CORE_ADDR pc)
1874{
1875 struct gdbarch *gdbarch = get_frame_arch (frame);
1876 ULONGEST insn;
1877
1878 insn = mips_fetch_instruction (gdbarch, ISA_MICROMIPS, pc, NULL);
1879 pc += MIPS_INSN16_SIZE;
1880 switch (mips_insn_size (ISA_MICROMIPS, insn))
1881 {
4cc0665f
MR
1882 /* 32-bit instructions. */
1883 case 2 * MIPS_INSN16_SIZE:
1884 insn <<= 16;
1885 insn |= mips_fetch_instruction (gdbarch, ISA_MICROMIPS, pc, NULL);
1886 pc += MIPS_INSN16_SIZE;
1887 switch (micromips_op (insn >> 16))
1888 {
1889 case 0x00: /* POOL32A: bits 000000 */
1890 if (b0s6_op (insn) == 0x3c
1891 /* POOL32Axf: bits 000000 ... 111100 */
1892 && (b6s10_ext (insn) & 0x2bf) == 0x3c)
1893 /* JALR, JALR.HB: 000000 000x111100 111100 */
1894 /* JALRS, JALRS.HB: 000000 010x111100 111100 */
1895 pc = get_frame_register_signed (frame, b0s5_reg (insn >> 16));
1896 break;
1897
1898 case 0x10: /* POOL32I: bits 010000 */
1899 switch (b5s5_op (insn >> 16))
1900 {
1901 case 0x00: /* BLTZ: bits 010000 00000 */
1902 case 0x01: /* BLTZAL: bits 010000 00001 */
1903 case 0x11: /* BLTZALS: bits 010000 10001 */
1904 if (get_frame_register_signed (frame,
1905 b0s5_reg (insn >> 16)) < 0)
1906 pc += micromips_relative_offset16 (insn);
1907 else
1908 pc += micromips_pc_insn_size (gdbarch, pc);
1909 break;
1910
1911 case 0x02: /* BGEZ: bits 010000 00010 */
1912 case 0x03: /* BGEZAL: bits 010000 00011 */
1913 case 0x13: /* BGEZALS: bits 010000 10011 */
1914 if (get_frame_register_signed (frame,
1915 b0s5_reg (insn >> 16)) >= 0)
1916 pc += micromips_relative_offset16 (insn);
1917 else
1918 pc += micromips_pc_insn_size (gdbarch, pc);
1919 break;
1920
1921 case 0x04: /* BLEZ: bits 010000 00100 */
1922 if (get_frame_register_signed (frame,
1923 b0s5_reg (insn >> 16)) <= 0)
1924 pc += micromips_relative_offset16 (insn);
1925 else
1926 pc += micromips_pc_insn_size (gdbarch, pc);
1927 break;
1928
1929 case 0x05: /* BNEZC: bits 010000 00101 */
1930 if (get_frame_register_signed (frame,
1931 b0s5_reg (insn >> 16)) != 0)
1932 pc += micromips_relative_offset16 (insn);
1933 break;
1934
1935 case 0x06: /* BGTZ: bits 010000 00110 */
1936 if (get_frame_register_signed (frame,
1937 b0s5_reg (insn >> 16)) > 0)
1938 pc += micromips_relative_offset16 (insn);
1939 else
1940 pc += micromips_pc_insn_size (gdbarch, pc);
1941 break;
1942
1943 case 0x07: /* BEQZC: bits 010000 00111 */
1944 if (get_frame_register_signed (frame,
1945 b0s5_reg (insn >> 16)) == 0)
1946 pc += micromips_relative_offset16 (insn);
1947 break;
1948
1949 case 0x14: /* BC2F: bits 010000 10100 xxx00 */
1950 case 0x15: /* BC2T: bits 010000 10101 xxx00 */
1951 if (((insn >> 16) & 0x3) == 0x0)
1952 /* BC2F, BC2T: don't know how to handle these. */
1953 break;
1954 break;
1955
1956 case 0x1a: /* BPOSGE64: bits 010000 11010 */
1957 case 0x1b: /* BPOSGE32: bits 010000 11011 */
1958 {
1959 unsigned int pos = (b5s5_op (insn >> 16) & 1) ? 32 : 64;
1960 int dspctl = mips_regnum (gdbarch)->dspctl;
1961
1962 if (dspctl == -1)
1963 /* No way to handle; it'll most likely trap anyway. */
1964 break;
1965
1966 if ((get_frame_register_unsigned (frame,
1967 dspctl) & 0x7f) >= pos)
1968 pc += micromips_relative_offset16 (insn);
1969 else
1970 pc += micromips_pc_insn_size (gdbarch, pc);
1971 }
1972 break;
1973
1974 case 0x1c: /* BC1F: bits 010000 11100 xxx00 */
1975 /* BC1ANY2F: bits 010000 11100 xxx01 */
1976 case 0x1d: /* BC1T: bits 010000 11101 xxx00 */
1977 /* BC1ANY2T: bits 010000 11101 xxx01 */
1978 if (((insn >> 16) & 0x2) == 0x0)
1979 pc = micromips_bc1_pc (gdbarch, frame, insn, pc,
1980 ((insn >> 16) & 0x1) + 1);
1981 break;
1982
1983 case 0x1e: /* BC1ANY4F: bits 010000 11110 xxx01 */
1984 case 0x1f: /* BC1ANY4T: bits 010000 11111 xxx01 */
1985 if (((insn >> 16) & 0x3) == 0x1)
1986 pc = micromips_bc1_pc (gdbarch, frame, insn, pc, 4);
1987 break;
1988 }
1989 break;
1990
1991 case 0x1d: /* JALS: bits 011101 */
1992 case 0x35: /* J: bits 110101 */
1993 case 0x3d: /* JAL: bits 111101 */
1994 pc = ((pc | 0x7fffffe) ^ 0x7fffffe) | (b0s26_imm (insn) << 1);
1995 break;
1996
1997 case 0x25: /* BEQ: bits 100101 */
1998 if (get_frame_register_signed (frame, b0s5_reg (insn >> 16))
1999 == get_frame_register_signed (frame, b5s5_reg (insn >> 16)))
2000 pc += micromips_relative_offset16 (insn);
2001 else
2002 pc += micromips_pc_insn_size (gdbarch, pc);
2003 break;
2004
2005 case 0x2d: /* BNE: bits 101101 */
2006 if (get_frame_register_signed (frame, b0s5_reg (insn >> 16))
2007 != get_frame_register_signed (frame, b5s5_reg (insn >> 16)))
2008 pc += micromips_relative_offset16 (insn);
2009 else
2010 pc += micromips_pc_insn_size (gdbarch, pc);
2011 break;
2012
2013 case 0x3c: /* JALX: bits 111100 */
2014 pc = ((pc | 0xfffffff) ^ 0xfffffff) | (b0s26_imm (insn) << 2);
2015 break;
2016 }
2017 break;
2018
2019 /* 16-bit instructions. */
2020 case MIPS_INSN16_SIZE:
2021 switch (micromips_op (insn))
2022 {
2023 case 0x11: /* POOL16C: bits 010001 */
2024 if ((b5s5_op (insn) & 0x1c) == 0xc)
2025 /* JR16, JRC, JALR16, JALRS16: 010001 011xx */
2026 pc = get_frame_register_signed (frame, b0s5_reg (insn));
2027 else if (b5s5_op (insn) == 0x18)
2028 /* JRADDIUSP: bits 010001 11000 */
2029 pc = get_frame_register_signed (frame, MIPS_RA_REGNUM);
2030 break;
2031
2032 case 0x23: /* BEQZ16: bits 100011 */
2033 {
2034 int rs = mips_reg3_to_reg[b7s3_reg (insn)];
2035
2036 if (get_frame_register_signed (frame, rs) == 0)
2037 pc += micromips_relative_offset7 (insn);
2038 else
2039 pc += micromips_pc_insn_size (gdbarch, pc);
2040 }
2041 break;
2042
2043 case 0x2b: /* BNEZ16: bits 101011 */
2044 {
2045 int rs = mips_reg3_to_reg[b7s3_reg (insn)];
2046
2047 if (get_frame_register_signed (frame, rs) != 0)
2048 pc += micromips_relative_offset7 (insn);
2049 else
2050 pc += micromips_pc_insn_size (gdbarch, pc);
2051 }
2052 break;
2053
2054 case 0x33: /* B16: bits 110011 */
2055 pc += micromips_relative_offset10 (insn);
2056 break;
2057 }
2058 break;
2059 }
2060
2061 return pc;
2062}
2063
c906108c 2064/* Decoding the next place to set a breakpoint is irregular for the
025bb325
MS
2065 mips 16 variant, but fortunately, there fewer instructions. We have
2066 to cope ith extensions for 16 bit instructions and a pair of actual
2067 32 bit instructions. We dont want to set a single step instruction
2068 on the extend instruction either. */
c906108c
SS
2069
2070/* Lots of mips16 instruction formats */
2071/* Predicting jumps requires itype,ritype,i8type
025bb325 2072 and their extensions extItype,extritype,extI8type. */
c906108c
SS
2073enum mips16_inst_fmts
2074{
c5aa993b
JM
2075 itype, /* 0 immediate 5,10 */
2076 ritype, /* 1 5,3,8 */
2077 rrtype, /* 2 5,3,3,5 */
2078 rritype, /* 3 5,3,3,5 */
2079 rrrtype, /* 4 5,3,3,3,2 */
2080 rriatype, /* 5 5,3,3,1,4 */
2081 shifttype, /* 6 5,3,3,3,2 */
2082 i8type, /* 7 5,3,8 */
2083 i8movtype, /* 8 5,3,3,5 */
2084 i8mov32rtype, /* 9 5,3,5,3 */
2085 i64type, /* 10 5,3,8 */
2086 ri64type, /* 11 5,3,3,5 */
2087 jalxtype, /* 12 5,1,5,5,16 - a 32 bit instruction */
2088 exiItype, /* 13 5,6,5,5,1,1,1,1,1,1,5 */
2089 extRitype, /* 14 5,6,5,5,3,1,1,1,5 */
2090 extRRItype, /* 15 5,5,5,5,3,3,5 */
2091 extRRIAtype, /* 16 5,7,4,5,3,3,1,4 */
2092 EXTshifttype, /* 17 5,5,1,1,1,1,1,1,5,3,3,1,1,1,2 */
2093 extI8type, /* 18 5,6,5,5,3,1,1,1,5 */
2094 extI64type, /* 19 5,6,5,5,3,1,1,1,5 */
2095 extRi64type, /* 20 5,6,5,5,3,3,5 */
2096 extshift64type /* 21 5,5,1,1,1,1,1,1,5,1,1,1,3,5 */
2097};
12f02c2a 2098/* I am heaping all the fields of the formats into one structure and
025bb325 2099 then, only the fields which are involved in instruction extension. */
c906108c 2100struct upk_mips16
6d82d43b
AC
2101{
2102 CORE_ADDR offset;
025bb325 2103 unsigned int regx; /* Function in i8 type. */
6d82d43b
AC
2104 unsigned int regy;
2105};
c906108c
SS
2106
2107
12f02c2a 2108/* The EXT-I, EXT-ri nad EXT-I8 instructions all have the same format
c68cf8ad 2109 for the bits which make up the immediate extension. */
c906108c 2110
12f02c2a
AC
2111static CORE_ADDR
2112extended_offset (unsigned int extension)
c906108c 2113{
12f02c2a 2114 CORE_ADDR value;
130854df 2115
4c2051c6 2116 value = (extension >> 16) & 0x1f; /* Extract 15:11. */
c5aa993b 2117 value = value << 6;
4c2051c6 2118 value |= (extension >> 21) & 0x3f; /* Extract 10:5. */
c5aa993b 2119 value = value << 5;
130854df
MR
2120 value |= extension & 0x1f; /* Extract 4:0. */
2121
c5aa993b 2122 return value;
c906108c
SS
2123}
2124
2125/* Only call this function if you know that this is an extendable
bcf1ea1e
MR
2126 instruction. It won't malfunction, but why make excess remote memory
2127 references? If the immediate operands get sign extended or something,
2128 do it after the extension is performed. */
c906108c 2129/* FIXME: Every one of these cases needs to worry about sign extension
bcf1ea1e 2130 when the offset is to be used in relative addressing. */
c906108c 2131
12f02c2a 2132static unsigned int
e17a4113 2133fetch_mips_16 (struct gdbarch *gdbarch, CORE_ADDR pc)
c906108c 2134{
e17a4113 2135 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
47a35522 2136 gdb_byte buf[8];
a2fb2cee
MR
2137
2138 pc = unmake_compact_addr (pc); /* Clear the low order bit. */
c5aa993b 2139 target_read_memory (pc, buf, 2);
e17a4113 2140 return extract_unsigned_integer (buf, 2, byte_order);
c906108c
SS
2141}
2142
2143static void
e17a4113 2144unpack_mips16 (struct gdbarch *gdbarch, CORE_ADDR pc,
12f02c2a
AC
2145 unsigned int extension,
2146 unsigned int inst,
6d82d43b 2147 enum mips16_inst_fmts insn_format, struct upk_mips16 *upk)
c906108c 2148{
12f02c2a
AC
2149 CORE_ADDR offset;
2150 int regx;
2151 int regy;
2152 switch (insn_format)
c906108c 2153 {
c5aa993b 2154 case itype:
c906108c 2155 {
12f02c2a
AC
2156 CORE_ADDR value;
2157 if (extension)
c5aa993b 2158 {
4c2051c6
MR
2159 value = extended_offset ((extension << 16) | inst);
2160 value = (value ^ 0x8000) - 0x8000; /* Sign-extend. */
c906108c
SS
2161 }
2162 else
c5aa993b 2163 {
12f02c2a 2164 value = inst & 0x7ff;
4c2051c6 2165 value = (value ^ 0x400) - 0x400; /* Sign-extend. */
c906108c 2166 }
12f02c2a
AC
2167 offset = value;
2168 regx = -1;
2169 regy = -1;
c906108c 2170 }
c5aa993b
JM
2171 break;
2172 case ritype:
2173 case i8type:
025bb325 2174 { /* A register identifier and an offset. */
c906108c 2175 /* Most of the fields are the same as I type but the
025bb325 2176 immediate value is of a different length. */
12f02c2a
AC
2177 CORE_ADDR value;
2178 if (extension)
c906108c 2179 {
4c2051c6
MR
2180 value = extended_offset ((extension << 16) | inst);
2181 value = (value ^ 0x8000) - 0x8000; /* Sign-extend. */
c906108c 2182 }
c5aa993b
JM
2183 else
2184 {
4c2051c6
MR
2185 value = inst & 0xff; /* 8 bits */
2186 value = (value ^ 0x80) - 0x80; /* Sign-extend. */
c5aa993b 2187 }
12f02c2a 2188 offset = value;
4c2051c6 2189 regx = (inst >> 8) & 0x07; /* i8 funct */
12f02c2a 2190 regy = -1;
c5aa993b 2191 break;
c906108c 2192 }
c5aa993b 2193 case jalxtype:
c906108c 2194 {
c5aa993b 2195 unsigned long value;
12f02c2a
AC
2196 unsigned int nexthalf;
2197 value = ((inst & 0x1f) << 5) | ((inst >> 5) & 0x1f);
c5aa993b 2198 value = value << 16;
4cc0665f
MR
2199 nexthalf = mips_fetch_instruction (gdbarch, ISA_MIPS16, pc + 2, NULL);
2200 /* Low bit still set. */
c5aa993b 2201 value |= nexthalf;
12f02c2a
AC
2202 offset = value;
2203 regx = -1;
2204 regy = -1;
c5aa993b 2205 break;
c906108c
SS
2206 }
2207 default:
e2e0b3e5 2208 internal_error (__FILE__, __LINE__, _("bad switch"));
c906108c 2209 }
12f02c2a
AC
2210 upk->offset = offset;
2211 upk->regx = regx;
2212 upk->regy = regy;
c906108c
SS
2213}
2214
2215
484933d1
MR
2216/* Calculate the destination of a branch whose 16-bit opcode word is at PC,
2217 and having a signed 16-bit OFFSET. */
2218
c5aa993b
JM
2219static CORE_ADDR
2220add_offset_16 (CORE_ADDR pc, int offset)
c906108c 2221{
484933d1 2222 return pc + (offset << 1) + 2;
c906108c
SS
2223}
2224
12f02c2a 2225static CORE_ADDR
0b1b3e42 2226extended_mips16_next_pc (struct frame_info *frame, CORE_ADDR pc,
6d82d43b 2227 unsigned int extension, unsigned int insn)
c906108c 2228{
e17a4113 2229 struct gdbarch *gdbarch = get_frame_arch (frame);
12f02c2a
AC
2230 int op = (insn >> 11);
2231 switch (op)
c906108c 2232 {
6d82d43b 2233 case 2: /* Branch */
12f02c2a 2234 {
12f02c2a 2235 struct upk_mips16 upk;
e17a4113 2236 unpack_mips16 (gdbarch, pc, extension, insn, itype, &upk);
484933d1 2237 pc = add_offset_16 (pc, upk.offset);
12f02c2a
AC
2238 break;
2239 }
025bb325
MS
2240 case 3: /* JAL , JALX - Watch out, these are 32 bit
2241 instructions. */
12f02c2a
AC
2242 {
2243 struct upk_mips16 upk;
e17a4113 2244 unpack_mips16 (gdbarch, pc, extension, insn, jalxtype, &upk);
484933d1 2245 pc = ((pc + 2) & (~(CORE_ADDR) 0x0fffffff)) | (upk.offset << 2);
12f02c2a 2246 if ((insn >> 10) & 0x01) /* Exchange mode */
025bb325 2247 pc = pc & ~0x01; /* Clear low bit, indicate 32 bit mode. */
12f02c2a
AC
2248 else
2249 pc |= 0x01;
2250 break;
2251 }
6d82d43b 2252 case 4: /* beqz */
12f02c2a
AC
2253 {
2254 struct upk_mips16 upk;
2255 int reg;
e17a4113 2256 unpack_mips16 (gdbarch, pc, extension, insn, ritype, &upk);
4cc0665f 2257 reg = get_frame_register_signed (frame, mips_reg3_to_reg[upk.regx]);
12f02c2a 2258 if (reg == 0)
484933d1 2259 pc = add_offset_16 (pc, upk.offset);
12f02c2a
AC
2260 else
2261 pc += 2;
2262 break;
2263 }
6d82d43b 2264 case 5: /* bnez */
12f02c2a
AC
2265 {
2266 struct upk_mips16 upk;
2267 int reg;
e17a4113 2268 unpack_mips16 (gdbarch, pc, extension, insn, ritype, &upk);
4cc0665f 2269 reg = get_frame_register_signed (frame, mips_reg3_to_reg[upk.regx]);
12f02c2a 2270 if (reg != 0)
484933d1 2271 pc = add_offset_16 (pc, upk.offset);
12f02c2a
AC
2272 else
2273 pc += 2;
2274 break;
2275 }
6d82d43b 2276 case 12: /* I8 Formats btez btnez */
12f02c2a
AC
2277 {
2278 struct upk_mips16 upk;
2279 int reg;
e17a4113 2280 unpack_mips16 (gdbarch, pc, extension, insn, i8type, &upk);
12f02c2a 2281 /* upk.regx contains the opcode */
0b1b3e42 2282 reg = get_frame_register_signed (frame, 24); /* Test register is 24 */
12f02c2a
AC
2283 if (((upk.regx == 0) && (reg == 0)) /* BTEZ */
2284 || ((upk.regx == 1) && (reg != 0))) /* BTNEZ */
484933d1 2285 pc = add_offset_16 (pc, upk.offset);
12f02c2a
AC
2286 else
2287 pc += 2;
2288 break;
2289 }
6d82d43b 2290 case 29: /* RR Formats JR, JALR, JALR-RA */
12f02c2a
AC
2291 {
2292 struct upk_mips16 upk;
2293 /* upk.fmt = rrtype; */
2294 op = insn & 0x1f;
2295 if (op == 0)
c5aa993b 2296 {
12f02c2a
AC
2297 int reg;
2298 upk.regx = (insn >> 8) & 0x07;
2299 upk.regy = (insn >> 5) & 0x07;
4c2051c6 2300 if ((upk.regy & 1) == 0)
4cc0665f 2301 reg = mips_reg3_to_reg[upk.regx];
4c2051c6
MR
2302 else
2303 reg = 31; /* Function return instruction. */
0b1b3e42 2304 pc = get_frame_register_signed (frame, reg);
c906108c 2305 }
12f02c2a 2306 else
c5aa993b 2307 pc += 2;
12f02c2a
AC
2308 break;
2309 }
2310 case 30:
2311 /* This is an instruction extension. Fetch the real instruction
2312 (which follows the extension) and decode things based on
025bb325 2313 that. */
12f02c2a
AC
2314 {
2315 pc += 2;
e17a4113
UW
2316 pc = extended_mips16_next_pc (frame, pc, insn,
2317 fetch_mips_16 (gdbarch, pc));
12f02c2a
AC
2318 break;
2319 }
2320 default:
2321 {
2322 pc += 2;
2323 break;
2324 }
c906108c 2325 }
c5aa993b 2326 return pc;
12f02c2a 2327}
c906108c 2328
5a89d8aa 2329static CORE_ADDR
0b1b3e42 2330mips16_next_pc (struct frame_info *frame, CORE_ADDR pc)
12f02c2a 2331{
e17a4113
UW
2332 struct gdbarch *gdbarch = get_frame_arch (frame);
2333 unsigned int insn = fetch_mips_16 (gdbarch, pc);
0b1b3e42 2334 return extended_mips16_next_pc (frame, pc, 0, insn);
12f02c2a
AC
2335}
2336
2337/* The mips_next_pc function supports single_step when the remote
7e73cedf 2338 target monitor or stub is not developed enough to do a single_step.
12f02c2a 2339 It works by decoding the current instruction and predicting where a
1aee363c 2340 branch will go. This isn't hard because all the data is available.
4cc0665f 2341 The MIPS32, MIPS16 and microMIPS variants are quite different. */
ad527d2e 2342static CORE_ADDR
0b1b3e42 2343mips_next_pc (struct frame_info *frame, CORE_ADDR pc)
c906108c 2344{
4cc0665f
MR
2345 struct gdbarch *gdbarch = get_frame_arch (frame);
2346
2347 if (mips_pc_is_mips16 (gdbarch, pc))
0b1b3e42 2348 return mips16_next_pc (frame, pc);
4cc0665f
MR
2349 else if (mips_pc_is_micromips (gdbarch, pc))
2350 return micromips_next_pc (frame, pc);
c5aa993b 2351 else
0b1b3e42 2352 return mips32_next_pc (frame, pc);
12f02c2a 2353}
c906108c 2354
ab50adb6
MR
2355/* Return non-zero if the MIPS16 instruction INSN is a compact branch
2356 or jump. */
2357
2358static int
2359mips16_instruction_is_compact_branch (unsigned short insn)
2360{
2361 switch (insn & 0xf800)
2362 {
2363 case 0xe800:
2364 return (insn & 0x009f) == 0x80; /* JALRC/JRC */
2365 case 0x6000:
2366 return (insn & 0x0600) == 0; /* BTNEZ/BTEQZ */
2367 case 0x2800: /* BNEZ */
2368 case 0x2000: /* BEQZ */
2369 case 0x1000: /* B */
2370 return 1;
2371 default:
2372 return 0;
2373 }
2374}
2375
2376/* Return non-zero if the microMIPS instruction INSN is a compact branch
2377 or jump. */
2378
2379static int
2380micromips_instruction_is_compact_branch (unsigned short insn)
2381{
2382 switch (micromips_op (insn))
2383 {
2384 case 0x11: /* POOL16C: bits 010001 */
2385 return (b5s5_op (insn) == 0x18
2386 /* JRADDIUSP: bits 010001 11000 */
2387 || b5s5_op (insn) == 0xd);
2388 /* JRC: bits 010011 01101 */
2389 case 0x10: /* POOL32I: bits 010000 */
2390 return (b5s5_op (insn) & 0x1d) == 0x5;
2391 /* BEQZC/BNEZC: bits 010000 001x1 */
2392 default:
2393 return 0;
2394 }
2395}
2396
edfae063
AC
2397struct mips_frame_cache
2398{
2399 CORE_ADDR base;
2400 struct trad_frame_saved_reg *saved_regs;
2401};
2402
29639122
JB
2403/* Set a register's saved stack address in temp_saved_regs. If an
2404 address has already been set for this register, do nothing; this
2405 way we will only recognize the first save of a given register in a
2406 function prologue.
eec63939 2407
f57d151a
UW
2408 For simplicity, save the address in both [0 .. gdbarch_num_regs) and
2409 [gdbarch_num_regs .. 2*gdbarch_num_regs).
2410 Strictly speaking, only the second range is used as it is only second
2411 range (the ABI instead of ISA registers) that comes into play when finding
2412 saved registers in a frame. */
eec63939
AC
2413
2414static void
74ed0bb4
MD
2415set_reg_offset (struct gdbarch *gdbarch, struct mips_frame_cache *this_cache,
2416 int regnum, CORE_ADDR offset)
eec63939 2417{
29639122
JB
2418 if (this_cache != NULL
2419 && this_cache->saved_regs[regnum].addr == -1)
2420 {
74ed0bb4
MD
2421 this_cache->saved_regs[regnum + 0 * gdbarch_num_regs (gdbarch)].addr
2422 = offset;
2423 this_cache->saved_regs[regnum + 1 * gdbarch_num_regs (gdbarch)].addr
2424 = offset;
29639122 2425 }
eec63939
AC
2426}
2427
eec63939 2428
29639122
JB
2429/* Fetch the immediate value from a MIPS16 instruction.
2430 If the previous instruction was an EXTEND, use it to extend
2431 the upper bits of the immediate value. This is a helper function
2432 for mips16_scan_prologue. */
eec63939 2433
29639122
JB
2434static int
2435mips16_get_imm (unsigned short prev_inst, /* previous instruction */
2436 unsigned short inst, /* current instruction */
2437 int nbits, /* number of bits in imm field */
2438 int scale, /* scale factor to be applied to imm */
025bb325 2439 int is_signed) /* is the imm field signed? */
eec63939 2440{
29639122 2441 int offset;
eec63939 2442
29639122
JB
2443 if ((prev_inst & 0xf800) == 0xf000) /* prev instruction was EXTEND? */
2444 {
2445 offset = ((prev_inst & 0x1f) << 11) | (prev_inst & 0x7e0);
2446 if (offset & 0x8000) /* check for negative extend */
2447 offset = 0 - (0x10000 - (offset & 0xffff));
2448 return offset | (inst & 0x1f);
2449 }
eec63939 2450 else
29639122
JB
2451 {
2452 int max_imm = 1 << nbits;
2453 int mask = max_imm - 1;
2454 int sign_bit = max_imm >> 1;
45c9dd44 2455
29639122
JB
2456 offset = inst & mask;
2457 if (is_signed && (offset & sign_bit))
2458 offset = 0 - (max_imm - offset);
2459 return offset * scale;
2460 }
2461}
eec63939 2462
65596487 2463
29639122
JB
2464/* Analyze the function prologue from START_PC to LIMIT_PC. Builds
2465 the associated FRAME_CACHE if not null.
2466 Return the address of the first instruction past the prologue. */
eec63939 2467
29639122 2468static CORE_ADDR
e17a4113
UW
2469mips16_scan_prologue (struct gdbarch *gdbarch,
2470 CORE_ADDR start_pc, CORE_ADDR limit_pc,
b8a22b94 2471 struct frame_info *this_frame,
29639122
JB
2472 struct mips_frame_cache *this_cache)
2473{
ab50adb6
MR
2474 int prev_non_prologue_insn = 0;
2475 int this_non_prologue_insn;
2476 int non_prologue_insns = 0;
2477 CORE_ADDR prev_pc;
29639122 2478 CORE_ADDR cur_pc;
025bb325 2479 CORE_ADDR frame_addr = 0; /* Value of $r17, used as frame pointer. */
29639122
JB
2480 CORE_ADDR sp;
2481 long frame_offset = 0; /* Size of stack frame. */
2482 long frame_adjust = 0; /* Offset of FP from SP. */
2483 int frame_reg = MIPS_SP_REGNUM;
025bb325 2484 unsigned short prev_inst = 0; /* saved copy of previous instruction. */
29639122
JB
2485 unsigned inst = 0; /* current instruction */
2486 unsigned entry_inst = 0; /* the entry instruction */
2207132d 2487 unsigned save_inst = 0; /* the save instruction */
ab50adb6
MR
2488 int prev_delay_slot = 0;
2489 int in_delay_slot;
29639122 2490 int reg, offset;
a343eb3c 2491
29639122 2492 int extend_bytes = 0;
ab50adb6
MR
2493 int prev_extend_bytes = 0;
2494 CORE_ADDR end_prologue_addr;
a343eb3c 2495
29639122 2496 /* Can be called when there's no process, and hence when there's no
b8a22b94
DJ
2497 THIS_FRAME. */
2498 if (this_frame != NULL)
2499 sp = get_frame_register_signed (this_frame,
2500 gdbarch_num_regs (gdbarch)
2501 + MIPS_SP_REGNUM);
29639122
JB
2502 else
2503 sp = 0;
eec63939 2504
29639122
JB
2505 if (limit_pc > start_pc + 200)
2506 limit_pc = start_pc + 200;
ab50adb6 2507 prev_pc = start_pc;
eec63939 2508
ab50adb6
MR
2509 /* Permit at most one non-prologue non-control-transfer instruction
2510 in the middle which may have been reordered by the compiler for
2511 optimisation. */
95ac2dcf 2512 for (cur_pc = start_pc; cur_pc < limit_pc; cur_pc += MIPS_INSN16_SIZE)
29639122 2513 {
ab50adb6
MR
2514 this_non_prologue_insn = 0;
2515 in_delay_slot = 0;
2516
29639122
JB
2517 /* Save the previous instruction. If it's an EXTEND, we'll extract
2518 the immediate offset extension from it in mips16_get_imm. */
2519 prev_inst = inst;
eec63939 2520
025bb325 2521 /* Fetch and decode the instruction. */
4cc0665f
MR
2522 inst = (unsigned short) mips_fetch_instruction (gdbarch, ISA_MIPS16,
2523 cur_pc, NULL);
eec63939 2524
29639122
JB
2525 /* Normally we ignore extend instructions. However, if it is
2526 not followed by a valid prologue instruction, then this
2527 instruction is not part of the prologue either. We must
2528 remember in this case to adjust the end_prologue_addr back
2529 over the extend. */
2530 if ((inst & 0xf800) == 0xf000) /* extend */
2531 {
95ac2dcf 2532 extend_bytes = MIPS_INSN16_SIZE;
29639122
JB
2533 continue;
2534 }
eec63939 2535
29639122
JB
2536 prev_extend_bytes = extend_bytes;
2537 extend_bytes = 0;
eec63939 2538
29639122
JB
2539 if ((inst & 0xff00) == 0x6300 /* addiu sp */
2540 || (inst & 0xff00) == 0xfb00) /* daddiu sp */
2541 {
2542 offset = mips16_get_imm (prev_inst, inst, 8, 8, 1);
025bb325 2543 if (offset < 0) /* Negative stack adjustment? */
29639122
JB
2544 frame_offset -= offset;
2545 else
2546 /* Exit loop if a positive stack adjustment is found, which
2547 usually means that the stack cleanup code in the function
2548 epilogue is reached. */
2549 break;
2550 }
2551 else if ((inst & 0xf800) == 0xd000) /* sw reg,n($sp) */
2552 {
2553 offset = mips16_get_imm (prev_inst, inst, 8, 4, 0);
4cc0665f 2554 reg = mips_reg3_to_reg[(inst & 0x700) >> 8];
74ed0bb4 2555 set_reg_offset (gdbarch, this_cache, reg, sp + offset);
29639122
JB
2556 }
2557 else if ((inst & 0xff00) == 0xf900) /* sd reg,n($sp) */
2558 {
2559 offset = mips16_get_imm (prev_inst, inst, 5, 8, 0);
4cc0665f 2560 reg = mips_reg3_to_reg[(inst & 0xe0) >> 5];
74ed0bb4 2561 set_reg_offset (gdbarch, this_cache, reg, sp + offset);
29639122
JB
2562 }
2563 else if ((inst & 0xff00) == 0x6200) /* sw $ra,n($sp) */
2564 {
2565 offset = mips16_get_imm (prev_inst, inst, 8, 4, 0);
74ed0bb4 2566 set_reg_offset (gdbarch, this_cache, MIPS_RA_REGNUM, sp + offset);
29639122
JB
2567 }
2568 else if ((inst & 0xff00) == 0xfa00) /* sd $ra,n($sp) */
2569 {
2570 offset = mips16_get_imm (prev_inst, inst, 8, 8, 0);
74ed0bb4 2571 set_reg_offset (gdbarch, this_cache, MIPS_RA_REGNUM, sp + offset);
29639122
JB
2572 }
2573 else if (inst == 0x673d) /* move $s1, $sp */
2574 {
2575 frame_addr = sp;
2576 frame_reg = 17;
2577 }
2578 else if ((inst & 0xff00) == 0x0100) /* addiu $s1,sp,n */
2579 {
2580 offset = mips16_get_imm (prev_inst, inst, 8, 4, 0);
2581 frame_addr = sp + offset;
2582 frame_reg = 17;
2583 frame_adjust = offset;
2584 }
2585 else if ((inst & 0xFF00) == 0xd900) /* sw reg,offset($s1) */
2586 {
2587 offset = mips16_get_imm (prev_inst, inst, 5, 4, 0);
4cc0665f 2588 reg = mips_reg3_to_reg[(inst & 0xe0) >> 5];
74ed0bb4 2589 set_reg_offset (gdbarch, this_cache, reg, frame_addr + offset);
29639122
JB
2590 }
2591 else if ((inst & 0xFF00) == 0x7900) /* sd reg,offset($s1) */
2592 {
2593 offset = mips16_get_imm (prev_inst, inst, 5, 8, 0);
4cc0665f 2594 reg = mips_reg3_to_reg[(inst & 0xe0) >> 5];
74ed0bb4 2595 set_reg_offset (gdbarch, this_cache, reg, frame_addr + offset);
29639122
JB
2596 }
2597 else if ((inst & 0xf81f) == 0xe809
2598 && (inst & 0x700) != 0x700) /* entry */
025bb325 2599 entry_inst = inst; /* Save for later processing. */
2207132d
MR
2600 else if ((inst & 0xff80) == 0x6480) /* save */
2601 {
025bb325 2602 save_inst = inst; /* Save for later processing. */
2207132d
MR
2603 if (prev_extend_bytes) /* extend */
2604 save_inst |= prev_inst << 16;
2605 }
29639122
JB
2606 else if ((inst & 0xff1c) == 0x6704) /* move reg,$a0-$a3 */
2607 {
2608 /* This instruction is part of the prologue, but we don't
2609 need to do anything special to handle it. */
2610 }
ab50adb6
MR
2611 else if (mips16_instruction_has_delay_slot (inst, 0))
2612 /* JAL/JALR/JALX/JR */
2613 {
2614 /* The instruction in the delay slot can be a part
2615 of the prologue, so move forward once more. */
2616 in_delay_slot = 1;
2617 if (mips16_instruction_has_delay_slot (inst, 1))
2618 /* JAL/JALX */
2619 {
2620 prev_extend_bytes = MIPS_INSN16_SIZE;
2621 cur_pc += MIPS_INSN16_SIZE; /* 32-bit instruction */
2622 }
2623 }
29639122
JB
2624 else
2625 {
ab50adb6 2626 this_non_prologue_insn = 1;
29639122 2627 }
ab50adb6
MR
2628
2629 non_prologue_insns += this_non_prologue_insn;
2630
2631 /* A jump or branch, or enough non-prologue insns seen? If so,
2632 then we must have reached the end of the prologue by now. */
2633 if (prev_delay_slot || non_prologue_insns > 1
2634 || mips16_instruction_is_compact_branch (inst))
2635 break;
2636
2637 prev_non_prologue_insn = this_non_prologue_insn;
2638 prev_delay_slot = in_delay_slot;
2639 prev_pc = cur_pc - prev_extend_bytes;
29639122 2640 }
eec63939 2641
29639122
JB
2642 /* The entry instruction is typically the first instruction in a function,
2643 and it stores registers at offsets relative to the value of the old SP
2644 (before the prologue). But the value of the sp parameter to this
2645 function is the new SP (after the prologue has been executed). So we
2646 can't calculate those offsets until we've seen the entire prologue,
025bb325 2647 and can calculate what the old SP must have been. */
29639122
JB
2648 if (entry_inst != 0)
2649 {
2650 int areg_count = (entry_inst >> 8) & 7;
2651 int sreg_count = (entry_inst >> 6) & 3;
eec63939 2652
29639122
JB
2653 /* The entry instruction always subtracts 32 from the SP. */
2654 frame_offset += 32;
2655
2656 /* Now we can calculate what the SP must have been at the
2657 start of the function prologue. */
2658 sp += frame_offset;
2659
2660 /* Check if a0-a3 were saved in the caller's argument save area. */
2661 for (reg = 4, offset = 0; reg < areg_count + 4; reg++)
2662 {
74ed0bb4 2663 set_reg_offset (gdbarch, this_cache, reg, sp + offset);
72a155b4 2664 offset += mips_abi_regsize (gdbarch);
29639122
JB
2665 }
2666
2667 /* Check if the ra register was pushed on the stack. */
2668 offset = -4;
2669 if (entry_inst & 0x20)
2670 {
74ed0bb4 2671 set_reg_offset (gdbarch, this_cache, MIPS_RA_REGNUM, sp + offset);
72a155b4 2672 offset -= mips_abi_regsize (gdbarch);
29639122
JB
2673 }
2674
2675 /* Check if the s0 and s1 registers were pushed on the stack. */
2676 for (reg = 16; reg < sreg_count + 16; reg++)
2677 {
74ed0bb4 2678 set_reg_offset (gdbarch, this_cache, reg, sp + offset);
72a155b4 2679 offset -= mips_abi_regsize (gdbarch);
29639122
JB
2680 }
2681 }
2682
2207132d
MR
2683 /* The SAVE instruction is similar to ENTRY, except that defined by the
2684 MIPS16e ASE of the MIPS Architecture. Unlike with ENTRY though, the
2685 size of the frame is specified as an immediate field of instruction
2686 and an extended variation exists which lets additional registers and
2687 frame space to be specified. The instruction always treats registers
2688 as 32-bit so its usefulness for 64-bit ABIs is questionable. */
2689 if (save_inst != 0 && mips_abi_regsize (gdbarch) == 4)
2690 {
2691 static int args_table[16] = {
2692 0, 0, 0, 0, 1, 1, 1, 1,
2693 2, 2, 2, 0, 3, 3, 4, -1,
2694 };
2695 static int astatic_table[16] = {
2696 0, 1, 2, 3, 0, 1, 2, 3,
2697 0, 1, 2, 4, 0, 1, 0, -1,
2698 };
2699 int aregs = (save_inst >> 16) & 0xf;
2700 int xsregs = (save_inst >> 24) & 0x7;
2701 int args = args_table[aregs];
2702 int astatic = astatic_table[aregs];
2703 long frame_size;
2704
2705 if (args < 0)
2706 {
2707 warning (_("Invalid number of argument registers encoded in SAVE."));
2708 args = 0;
2709 }
2710 if (astatic < 0)
2711 {
2712 warning (_("Invalid number of static registers encoded in SAVE."));
2713 astatic = 0;
2714 }
2715
2716 /* For standard SAVE the frame size of 0 means 128. */
2717 frame_size = ((save_inst >> 16) & 0xf0) | (save_inst & 0xf);
2718 if (frame_size == 0 && (save_inst >> 16) == 0)
2719 frame_size = 16;
2720 frame_size *= 8;
2721 frame_offset += frame_size;
2722
2723 /* Now we can calculate what the SP must have been at the
2724 start of the function prologue. */
2725 sp += frame_offset;
2726
2727 /* Check if A0-A3 were saved in the caller's argument save area. */
2728 for (reg = MIPS_A0_REGNUM, offset = 0; reg < args + 4; reg++)
2729 {
74ed0bb4 2730 set_reg_offset (gdbarch, this_cache, reg, sp + offset);
2207132d
MR
2731 offset += mips_abi_regsize (gdbarch);
2732 }
2733
2734 offset = -4;
2735
2736 /* Check if the RA register was pushed on the stack. */
2737 if (save_inst & 0x40)
2738 {
74ed0bb4 2739 set_reg_offset (gdbarch, this_cache, MIPS_RA_REGNUM, sp + offset);
2207132d
MR
2740 offset -= mips_abi_regsize (gdbarch);
2741 }
2742
2743 /* Check if the S8 register was pushed on the stack. */
2744 if (xsregs > 6)
2745 {
74ed0bb4 2746 set_reg_offset (gdbarch, this_cache, 30, sp + offset);
2207132d
MR
2747 offset -= mips_abi_regsize (gdbarch);
2748 xsregs--;
2749 }
2750 /* Check if S2-S7 were pushed on the stack. */
2751 for (reg = 18 + xsregs - 1; reg > 18 - 1; reg--)
2752 {
74ed0bb4 2753 set_reg_offset (gdbarch, this_cache, reg, sp + offset);
2207132d
MR
2754 offset -= mips_abi_regsize (gdbarch);
2755 }
2756
2757 /* Check if the S1 register was pushed on the stack. */
2758 if (save_inst & 0x10)
2759 {
74ed0bb4 2760 set_reg_offset (gdbarch, this_cache, 17, sp + offset);
2207132d
MR
2761 offset -= mips_abi_regsize (gdbarch);
2762 }
2763 /* Check if the S0 register was pushed on the stack. */
2764 if (save_inst & 0x20)
2765 {
74ed0bb4 2766 set_reg_offset (gdbarch, this_cache, 16, sp + offset);
2207132d
MR
2767 offset -= mips_abi_regsize (gdbarch);
2768 }
2769
4cc0665f
MR
2770 /* Check if A0-A3 were pushed on the stack. */
2771 for (reg = MIPS_A0_REGNUM + 3; reg > MIPS_A0_REGNUM + 3 - astatic; reg--)
2772 {
2773 set_reg_offset (gdbarch, this_cache, reg, sp + offset);
2774 offset -= mips_abi_regsize (gdbarch);
2775 }
2776 }
2777
2778 if (this_cache != NULL)
2779 {
2780 this_cache->base =
2781 (get_frame_register_signed (this_frame,
2782 gdbarch_num_regs (gdbarch) + frame_reg)
2783 + frame_offset - frame_adjust);
2784 /* FIXME: brobecker/2004-10-10: Just as in the mips32 case, we should
2785 be able to get rid of the assignment below, evetually. But it's
2786 still needed for now. */
2787 this_cache->saved_regs[gdbarch_num_regs (gdbarch)
2788 + mips_regnum (gdbarch)->pc]
2789 = this_cache->saved_regs[gdbarch_num_regs (gdbarch) + MIPS_RA_REGNUM];
2790 }
2791
ab50adb6
MR
2792 /* Set end_prologue_addr to the address of the instruction immediately
2793 after the last one we scanned. Unless the last one looked like a
2794 non-prologue instruction (and we looked ahead), in which case use
2795 its address instead. */
2796 end_prologue_addr = (prev_non_prologue_insn || prev_delay_slot
2797 ? prev_pc : cur_pc - prev_extend_bytes);
4cc0665f
MR
2798
2799 return end_prologue_addr;
2800}
2801
2802/* Heuristic unwinder for 16-bit MIPS instruction set (aka MIPS16).
2803 Procedures that use the 32-bit instruction set are handled by the
2804 mips_insn32 unwinder. */
2805
2806static struct mips_frame_cache *
2807mips_insn16_frame_cache (struct frame_info *this_frame, void **this_cache)
2808{
2809 struct gdbarch *gdbarch = get_frame_arch (this_frame);
2810 struct mips_frame_cache *cache;
2811
2812 if ((*this_cache) != NULL)
19ba03f4 2813 return (struct mips_frame_cache *) (*this_cache);
4cc0665f
MR
2814 cache = FRAME_OBSTACK_ZALLOC (struct mips_frame_cache);
2815 (*this_cache) = cache;
2816 cache->saved_regs = trad_frame_alloc_saved_regs (this_frame);
2817
2818 /* Analyze the function prologue. */
2819 {
2820 const CORE_ADDR pc = get_frame_address_in_block (this_frame);
2821 CORE_ADDR start_addr;
2822
2823 find_pc_partial_function (pc, NULL, &start_addr, NULL);
2824 if (start_addr == 0)
2825 start_addr = heuristic_proc_start (gdbarch, pc);
2826 /* We can't analyze the prologue if we couldn't find the begining
2827 of the function. */
2828 if (start_addr == 0)
2829 return cache;
2830
19ba03f4
SM
2831 mips16_scan_prologue (gdbarch, start_addr, pc, this_frame,
2832 (struct mips_frame_cache *) *this_cache);
4cc0665f
MR
2833 }
2834
2835 /* gdbarch_sp_regnum contains the value and not the address. */
2836 trad_frame_set_value (cache->saved_regs,
2837 gdbarch_num_regs (gdbarch) + MIPS_SP_REGNUM,
2838 cache->base);
2839
19ba03f4 2840 return (struct mips_frame_cache *) (*this_cache);
4cc0665f
MR
2841}
2842
2843static void
2844mips_insn16_frame_this_id (struct frame_info *this_frame, void **this_cache,
2845 struct frame_id *this_id)
2846{
2847 struct mips_frame_cache *info = mips_insn16_frame_cache (this_frame,
2848 this_cache);
2849 /* This marks the outermost frame. */
2850 if (info->base == 0)
2851 return;
2852 (*this_id) = frame_id_build (info->base, get_frame_func (this_frame));
2853}
2854
2855static struct value *
2856mips_insn16_frame_prev_register (struct frame_info *this_frame,
2857 void **this_cache, int regnum)
2858{
2859 struct mips_frame_cache *info = mips_insn16_frame_cache (this_frame,
2860 this_cache);
2861 return trad_frame_get_prev_register (this_frame, info->saved_regs, regnum);
2862}
2863
2864static int
2865mips_insn16_frame_sniffer (const struct frame_unwind *self,
2866 struct frame_info *this_frame, void **this_cache)
2867{
2868 struct gdbarch *gdbarch = get_frame_arch (this_frame);
2869 CORE_ADDR pc = get_frame_pc (this_frame);
2870 if (mips_pc_is_mips16 (gdbarch, pc))
2871 return 1;
2872 return 0;
2873}
2874
2875static const struct frame_unwind mips_insn16_frame_unwind =
2876{
2877 NORMAL_FRAME,
2878 default_frame_unwind_stop_reason,
2879 mips_insn16_frame_this_id,
2880 mips_insn16_frame_prev_register,
2881 NULL,
2882 mips_insn16_frame_sniffer
2883};
2884
2885static CORE_ADDR
2886mips_insn16_frame_base_address (struct frame_info *this_frame,
2887 void **this_cache)
2888{
2889 struct mips_frame_cache *info = mips_insn16_frame_cache (this_frame,
2890 this_cache);
2891 return info->base;
2892}
2893
2894static const struct frame_base mips_insn16_frame_base =
2895{
2896 &mips_insn16_frame_unwind,
2897 mips_insn16_frame_base_address,
2898 mips_insn16_frame_base_address,
2899 mips_insn16_frame_base_address
2900};
2901
2902static const struct frame_base *
2903mips_insn16_frame_base_sniffer (struct frame_info *this_frame)
2904{
2905 struct gdbarch *gdbarch = get_frame_arch (this_frame);
2906 CORE_ADDR pc = get_frame_pc (this_frame);
2907 if (mips_pc_is_mips16 (gdbarch, pc))
2908 return &mips_insn16_frame_base;
2909 else
2910 return NULL;
2911}
2912
2913/* Decode a 9-bit signed immediate argument of ADDIUSP -- -2 is mapped
2914 to -258, -1 -- to -257, 0 -- to 256, 1 -- to 257 and other values are
2915 interpreted directly, and then multiplied by 4. */
2916
2917static int
2918micromips_decode_imm9 (int imm)
2919{
2920 imm = (imm ^ 0x100) - 0x100;
2921 if (imm > -3 && imm < 2)
2922 imm ^= 0x100;
2923 return imm << 2;
2924}
2925
2926/* Analyze the function prologue from START_PC to LIMIT_PC. Return
2927 the address of the first instruction past the prologue. */
2928
2929static CORE_ADDR
2930micromips_scan_prologue (struct gdbarch *gdbarch,
2931 CORE_ADDR start_pc, CORE_ADDR limit_pc,
2932 struct frame_info *this_frame,
2933 struct mips_frame_cache *this_cache)
2934{
ab50adb6 2935 CORE_ADDR end_prologue_addr;
4cc0665f
MR
2936 int prev_non_prologue_insn = 0;
2937 int frame_reg = MIPS_SP_REGNUM;
2938 int this_non_prologue_insn;
2939 int non_prologue_insns = 0;
2940 long frame_offset = 0; /* Size of stack frame. */
2941 long frame_adjust = 0; /* Offset of FP from SP. */
2942 CORE_ADDR frame_addr = 0; /* Value of $30, used as frame pointer. */
ab50adb6
MR
2943 int prev_delay_slot = 0;
2944 int in_delay_slot;
4cc0665f
MR
2945 CORE_ADDR prev_pc;
2946 CORE_ADDR cur_pc;
2947 ULONGEST insn; /* current instruction */
2948 CORE_ADDR sp;
2949 long offset;
2950 long sp_adj;
2951 long v1_off = 0; /* The assumption is LUI will replace it. */
2952 int reglist;
2953 int breg;
2954 int dreg;
2955 int sreg;
2956 int treg;
2957 int loc;
2958 int op;
2959 int s;
2960 int i;
2961
2962 /* Can be called when there's no process, and hence when there's no
2963 THIS_FRAME. */
2964 if (this_frame != NULL)
2965 sp = get_frame_register_signed (this_frame,
2966 gdbarch_num_regs (gdbarch)
2967 + MIPS_SP_REGNUM);
2968 else
2969 sp = 0;
2970
2971 if (limit_pc > start_pc + 200)
2972 limit_pc = start_pc + 200;
2973 prev_pc = start_pc;
2974
2975 /* Permit at most one non-prologue non-control-transfer instruction
2976 in the middle which may have been reordered by the compiler for
2977 optimisation. */
2978 for (cur_pc = start_pc; cur_pc < limit_pc; cur_pc += loc)
2979 {
2980 this_non_prologue_insn = 0;
ab50adb6 2981 in_delay_slot = 0;
4cc0665f
MR
2982 sp_adj = 0;
2983 loc = 0;
2984 insn = mips_fetch_instruction (gdbarch, ISA_MICROMIPS, cur_pc, NULL);
2985 loc += MIPS_INSN16_SIZE;
2986 switch (mips_insn_size (ISA_MICROMIPS, insn))
2987 {
4cc0665f
MR
2988 /* 32-bit instructions. */
2989 case 2 * MIPS_INSN16_SIZE:
2990 insn <<= 16;
2991 insn |= mips_fetch_instruction (gdbarch,
2992 ISA_MICROMIPS, cur_pc + loc, NULL);
2993 loc += MIPS_INSN16_SIZE;
2994 switch (micromips_op (insn >> 16))
2995 {
2996 /* Record $sp/$fp adjustment. */
2997 /* Discard (D)ADDU $gp,$jp used for PIC code. */
2998 case 0x0: /* POOL32A: bits 000000 */
2999 case 0x16: /* POOL32S: bits 010110 */
3000 op = b0s11_op (insn);
3001 sreg = b0s5_reg (insn >> 16);
3002 treg = b5s5_reg (insn >> 16);
3003 dreg = b11s5_reg (insn);
3004 if (op == 0x1d0
3005 /* SUBU: bits 000000 00111010000 */
3006 /* DSUBU: bits 010110 00111010000 */
3007 && dreg == MIPS_SP_REGNUM && sreg == MIPS_SP_REGNUM
3008 && treg == 3)
3009 /* (D)SUBU $sp, $v1 */
3010 sp_adj = v1_off;
3011 else if (op != 0x150
3012 /* ADDU: bits 000000 00101010000 */
3013 /* DADDU: bits 010110 00101010000 */
3014 || dreg != 28 || sreg != 28 || treg != MIPS_T9_REGNUM)
3015 this_non_prologue_insn = 1;
3016 break;
3017
3018 case 0x8: /* POOL32B: bits 001000 */
3019 op = b12s4_op (insn);
3020 breg = b0s5_reg (insn >> 16);
3021 reglist = sreg = b5s5_reg (insn >> 16);
3022 offset = (b0s12_imm (insn) ^ 0x800) - 0x800;
3023 if ((op == 0x9 || op == 0xc)
3024 /* SWP: bits 001000 1001 */
3025 /* SDP: bits 001000 1100 */
3026 && breg == MIPS_SP_REGNUM && sreg < MIPS_RA_REGNUM)
3027 /* S[DW]P reg,offset($sp) */
3028 {
3029 s = 4 << ((b12s4_op (insn) & 0x4) == 0x4);
3030 set_reg_offset (gdbarch, this_cache,
3031 sreg, sp + offset);
3032 set_reg_offset (gdbarch, this_cache,
3033 sreg + 1, sp + offset + s);
3034 }
3035 else if ((op == 0xd || op == 0xf)
3036 /* SWM: bits 001000 1101 */
3037 /* SDM: bits 001000 1111 */
3038 && breg == MIPS_SP_REGNUM
3039 /* SWM reglist,offset($sp) */
3040 && ((reglist >= 1 && reglist <= 9)
3041 || (reglist >= 16 && reglist <= 25)))
3042 {
3043 int sreglist = min(reglist & 0xf, 8);
3044
3045 s = 4 << ((b12s4_op (insn) & 0x2) == 0x2);
3046 for (i = 0; i < sreglist; i++)
3047 set_reg_offset (gdbarch, this_cache, 16 + i, sp + s * i);
3048 if ((reglist & 0xf) > 8)
3049 set_reg_offset (gdbarch, this_cache, 30, sp + s * i++);
3050 if ((reglist & 0x10) == 0x10)
3051 set_reg_offset (gdbarch, this_cache,
3052 MIPS_RA_REGNUM, sp + s * i++);
3053 }
3054 else
3055 this_non_prologue_insn = 1;
3056 break;
3057
3058 /* Record $sp/$fp adjustment. */
3059 /* Discard (D)ADDIU $gp used for PIC code. */
3060 case 0xc: /* ADDIU: bits 001100 */
3061 case 0x17: /* DADDIU: bits 010111 */
3062 sreg = b0s5_reg (insn >> 16);
3063 dreg = b5s5_reg (insn >> 16);
3064 offset = (b0s16_imm (insn) ^ 0x8000) - 0x8000;
3065 if (sreg == MIPS_SP_REGNUM && dreg == MIPS_SP_REGNUM)
3066 /* (D)ADDIU $sp, imm */
3067 sp_adj = offset;
3068 else if (sreg == MIPS_SP_REGNUM && dreg == 30)
3069 /* (D)ADDIU $fp, $sp, imm */
3070 {
3071 frame_addr = sp + offset;
3072 frame_adjust = offset;
3073 frame_reg = 30;
3074 }
3075 else if (sreg != 28 || dreg != 28)
3076 /* (D)ADDIU $gp, imm */
3077 this_non_prologue_insn = 1;
3078 break;
3079
3080 /* LUI $v1 is used for larger $sp adjustments. */
3356937a 3081 /* Discard LUI $gp used for PIC code. */
4cc0665f
MR
3082 case 0x10: /* POOL32I: bits 010000 */
3083 if (b5s5_op (insn >> 16) == 0xd
3084 /* LUI: bits 010000 001101 */
3085 && b0s5_reg (insn >> 16) == 3)
3086 /* LUI $v1, imm */
3087 v1_off = ((b0s16_imm (insn) << 16) ^ 0x80000000) - 0x80000000;
3088 else if (b5s5_op (insn >> 16) != 0xd
3089 /* LUI: bits 010000 001101 */
3090 || b0s5_reg (insn >> 16) != 28)
3091 /* LUI $gp, imm */
3092 this_non_prologue_insn = 1;
3093 break;
3094
3095 /* ORI $v1 is used for larger $sp adjustments. */
3096 case 0x14: /* ORI: bits 010100 */
3097 sreg = b0s5_reg (insn >> 16);
3098 dreg = b5s5_reg (insn >> 16);
3099 if (sreg == 3 && dreg == 3)
3100 /* ORI $v1, imm */
3101 v1_off |= b0s16_imm (insn);
3102 else
3103 this_non_prologue_insn = 1;
3104 break;
3105
3106 case 0x26: /* SWC1: bits 100110 */
3107 case 0x2e: /* SDC1: bits 101110 */
3108 breg = b0s5_reg (insn >> 16);
3109 if (breg != MIPS_SP_REGNUM)
3110 /* S[DW]C1 reg,offset($sp) */
3111 this_non_prologue_insn = 1;
3112 break;
3113
3114 case 0x36: /* SD: bits 110110 */
3115 case 0x3e: /* SW: bits 111110 */
3116 breg = b0s5_reg (insn >> 16);
3117 sreg = b5s5_reg (insn >> 16);
3118 offset = (b0s16_imm (insn) ^ 0x8000) - 0x8000;
3119 if (breg == MIPS_SP_REGNUM)
3120 /* S[DW] reg,offset($sp) */
3121 set_reg_offset (gdbarch, this_cache, sreg, sp + offset);
3122 else
3123 this_non_prologue_insn = 1;
3124 break;
3125
3126 default:
ab50adb6
MR
3127 /* The instruction in the delay slot can be a part
3128 of the prologue, so move forward once more. */
3129 if (micromips_instruction_has_delay_slot (insn, 0))
3130 in_delay_slot = 1;
3131 else
3132 this_non_prologue_insn = 1;
4cc0665f
MR
3133 break;
3134 }
ab50adb6 3135 insn >>= 16;
4cc0665f
MR
3136 break;
3137
3138 /* 16-bit instructions. */
3139 case MIPS_INSN16_SIZE:
3140 switch (micromips_op (insn))
3141 {
3142 case 0x3: /* MOVE: bits 000011 */
3143 sreg = b0s5_reg (insn);
3144 dreg = b5s5_reg (insn);
3145 if (sreg == MIPS_SP_REGNUM && dreg == 30)
3146 /* MOVE $fp, $sp */
3147 {
3148 frame_addr = sp;
3149 frame_reg = 30;
3150 }
3151 else if ((sreg & 0x1c) != 0x4)
3152 /* MOVE reg, $a0-$a3 */
3153 this_non_prologue_insn = 1;
3154 break;
3155
3156 case 0x11: /* POOL16C: bits 010001 */
3157 if (b6s4_op (insn) == 0x5)
3158 /* SWM: bits 010001 0101 */
3159 {
3160 offset = ((b0s4_imm (insn) << 2) ^ 0x20) - 0x20;
3161 reglist = b4s2_regl (insn);
3162 for (i = 0; i <= reglist; i++)
3163 set_reg_offset (gdbarch, this_cache, 16 + i, sp + 4 * i);
3164 set_reg_offset (gdbarch, this_cache,
3165 MIPS_RA_REGNUM, sp + 4 * i++);
3166 }
3167 else
3168 this_non_prologue_insn = 1;
3169 break;
3170
3171 case 0x13: /* POOL16D: bits 010011 */
3172 if ((insn & 0x1) == 0x1)
3173 /* ADDIUSP: bits 010011 1 */
3174 sp_adj = micromips_decode_imm9 (b1s9_imm (insn));
3175 else if (b5s5_reg (insn) == MIPS_SP_REGNUM)
3176 /* ADDIUS5: bits 010011 0 */
3177 /* ADDIUS5 $sp, imm */
3178 sp_adj = (b1s4_imm (insn) ^ 8) - 8;
3179 else
3180 this_non_prologue_insn = 1;
3181 break;
3182
3183 case 0x32: /* SWSP: bits 110010 */
3184 offset = b0s5_imm (insn) << 2;
3185 sreg = b5s5_reg (insn);
3186 set_reg_offset (gdbarch, this_cache, sreg, sp + offset);
3187 break;
3188
3189 default:
ab50adb6
MR
3190 /* The instruction in the delay slot can be a part
3191 of the prologue, so move forward once more. */
3192 if (micromips_instruction_has_delay_slot (insn << 16, 0))
3193 in_delay_slot = 1;
3194 else
3195 this_non_prologue_insn = 1;
4cc0665f
MR
3196 break;
3197 }
3198 break;
3199 }
3200 if (sp_adj < 0)
3201 frame_offset -= sp_adj;
3202
3203 non_prologue_insns += this_non_prologue_insn;
ab50adb6
MR
3204
3205 /* A jump or branch, enough non-prologue insns seen or positive
3206 stack adjustment? If so, then we must have reached the end
3207 of the prologue by now. */
3208 if (prev_delay_slot || non_prologue_insns > 1 || sp_adj > 0
3209 || micromips_instruction_is_compact_branch (insn))
3210 break;
3211
4cc0665f 3212 prev_non_prologue_insn = this_non_prologue_insn;
ab50adb6 3213 prev_delay_slot = in_delay_slot;
4cc0665f 3214 prev_pc = cur_pc;
2207132d
MR
3215 }
3216
29639122
JB
3217 if (this_cache != NULL)
3218 {
3219 this_cache->base =
4cc0665f 3220 (get_frame_register_signed (this_frame,
b8a22b94 3221 gdbarch_num_regs (gdbarch) + frame_reg)
4cc0665f 3222 + frame_offset - frame_adjust);
29639122 3223 /* FIXME: brobecker/2004-10-10: Just as in the mips32 case, we should
4cc0665f
MR
3224 be able to get rid of the assignment below, evetually. But it's
3225 still needed for now. */
72a155b4
UW
3226 this_cache->saved_regs[gdbarch_num_regs (gdbarch)
3227 + mips_regnum (gdbarch)->pc]
4cc0665f 3228 = this_cache->saved_regs[gdbarch_num_regs (gdbarch) + MIPS_RA_REGNUM];
29639122
JB
3229 }
3230
ab50adb6
MR
3231 /* Set end_prologue_addr to the address of the instruction immediately
3232 after the last one we scanned. Unless the last one looked like a
3233 non-prologue instruction (and we looked ahead), in which case use
3234 its address instead. */
3235 end_prologue_addr
3236 = prev_non_prologue_insn || prev_delay_slot ? prev_pc : cur_pc;
29639122
JB
3237
3238 return end_prologue_addr;
eec63939
AC
3239}
3240
4cc0665f 3241/* Heuristic unwinder for procedures using microMIPS instructions.
29639122 3242 Procedures that use the 32-bit instruction set are handled by the
4cc0665f 3243 mips_insn32 unwinder. Likewise MIPS16 and the mips_insn16 unwinder. */
29639122
JB
3244
3245static struct mips_frame_cache *
4cc0665f 3246mips_micro_frame_cache (struct frame_info *this_frame, void **this_cache)
eec63939 3247{
e17a4113 3248 struct gdbarch *gdbarch = get_frame_arch (this_frame);
29639122 3249 struct mips_frame_cache *cache;
eec63939
AC
3250
3251 if ((*this_cache) != NULL)
19ba03f4 3252 return (struct mips_frame_cache *) (*this_cache);
4cc0665f 3253
29639122
JB
3254 cache = FRAME_OBSTACK_ZALLOC (struct mips_frame_cache);
3255 (*this_cache) = cache;
b8a22b94 3256 cache->saved_regs = trad_frame_alloc_saved_regs (this_frame);
eec63939 3257
29639122
JB
3258 /* Analyze the function prologue. */
3259 {
b8a22b94 3260 const CORE_ADDR pc = get_frame_address_in_block (this_frame);
29639122 3261 CORE_ADDR start_addr;
eec63939 3262
29639122
JB
3263 find_pc_partial_function (pc, NULL, &start_addr, NULL);
3264 if (start_addr == 0)
4cc0665f 3265 start_addr = heuristic_proc_start (get_frame_arch (this_frame), pc);
29639122
JB
3266 /* We can't analyze the prologue if we couldn't find the begining
3267 of the function. */
3268 if (start_addr == 0)
3269 return cache;
eec63939 3270
19ba03f4
SM
3271 micromips_scan_prologue (gdbarch, start_addr, pc, this_frame,
3272 (struct mips_frame_cache *) *this_cache);
29639122 3273 }
4cc0665f 3274
3e8c568d 3275 /* gdbarch_sp_regnum contains the value and not the address. */
72a155b4 3276 trad_frame_set_value (cache->saved_regs,
e17a4113 3277 gdbarch_num_regs (gdbarch) + MIPS_SP_REGNUM,
72a155b4 3278 cache->base);
eec63939 3279
19ba03f4 3280 return (struct mips_frame_cache *) (*this_cache);
eec63939
AC
3281}
3282
3283static void
4cc0665f
MR
3284mips_micro_frame_this_id (struct frame_info *this_frame, void **this_cache,
3285 struct frame_id *this_id)
eec63939 3286{
4cc0665f
MR
3287 struct mips_frame_cache *info = mips_micro_frame_cache (this_frame,
3288 this_cache);
21327321
DJ
3289 /* This marks the outermost frame. */
3290 if (info->base == 0)
3291 return;
b8a22b94 3292 (*this_id) = frame_id_build (info->base, get_frame_func (this_frame));
eec63939
AC
3293}
3294
b8a22b94 3295static struct value *
4cc0665f
MR
3296mips_micro_frame_prev_register (struct frame_info *this_frame,
3297 void **this_cache, int regnum)
eec63939 3298{
4cc0665f
MR
3299 struct mips_frame_cache *info = mips_micro_frame_cache (this_frame,
3300 this_cache);
b8a22b94
DJ
3301 return trad_frame_get_prev_register (this_frame, info->saved_regs, regnum);
3302}
3303
3304static int
4cc0665f
MR
3305mips_micro_frame_sniffer (const struct frame_unwind *self,
3306 struct frame_info *this_frame, void **this_cache)
b8a22b94 3307{
4cc0665f 3308 struct gdbarch *gdbarch = get_frame_arch (this_frame);
b8a22b94 3309 CORE_ADDR pc = get_frame_pc (this_frame);
4cc0665f
MR
3310
3311 if (mips_pc_is_micromips (gdbarch, pc))
b8a22b94
DJ
3312 return 1;
3313 return 0;
eec63939
AC
3314}
3315
4cc0665f 3316static const struct frame_unwind mips_micro_frame_unwind =
eec63939
AC
3317{
3318 NORMAL_FRAME,
8fbca658 3319 default_frame_unwind_stop_reason,
4cc0665f
MR
3320 mips_micro_frame_this_id,
3321 mips_micro_frame_prev_register,
b8a22b94 3322 NULL,
4cc0665f 3323 mips_micro_frame_sniffer
eec63939
AC
3324};
3325
eec63939 3326static CORE_ADDR
4cc0665f
MR
3327mips_micro_frame_base_address (struct frame_info *this_frame,
3328 void **this_cache)
eec63939 3329{
4cc0665f
MR
3330 struct mips_frame_cache *info = mips_micro_frame_cache (this_frame,
3331 this_cache);
29639122 3332 return info->base;
eec63939
AC
3333}
3334
4cc0665f 3335static const struct frame_base mips_micro_frame_base =
eec63939 3336{
4cc0665f
MR
3337 &mips_micro_frame_unwind,
3338 mips_micro_frame_base_address,
3339 mips_micro_frame_base_address,
3340 mips_micro_frame_base_address
eec63939
AC
3341};
3342
3343static const struct frame_base *
4cc0665f 3344mips_micro_frame_base_sniffer (struct frame_info *this_frame)
eec63939 3345{
4cc0665f 3346 struct gdbarch *gdbarch = get_frame_arch (this_frame);
b8a22b94 3347 CORE_ADDR pc = get_frame_pc (this_frame);
4cc0665f
MR
3348
3349 if (mips_pc_is_micromips (gdbarch, pc))
3350 return &mips_micro_frame_base;
eec63939
AC
3351 else
3352 return NULL;
edfae063
AC
3353}
3354
29639122
JB
3355/* Mark all the registers as unset in the saved_regs array
3356 of THIS_CACHE. Do nothing if THIS_CACHE is null. */
3357
74ed0bb4
MD
3358static void
3359reset_saved_regs (struct gdbarch *gdbarch, struct mips_frame_cache *this_cache)
c906108c 3360{
29639122
JB
3361 if (this_cache == NULL || this_cache->saved_regs == NULL)
3362 return;
3363
3364 {
74ed0bb4 3365 const int num_regs = gdbarch_num_regs (gdbarch);
29639122 3366 int i;
64159455 3367
29639122
JB
3368 for (i = 0; i < num_regs; i++)
3369 {
3370 this_cache->saved_regs[i].addr = -1;
3371 }
3372 }
c906108c
SS
3373}
3374
025bb325 3375/* Analyze the function prologue from START_PC to LIMIT_PC. Builds
29639122
JB
3376 the associated FRAME_CACHE if not null.
3377 Return the address of the first instruction past the prologue. */
c906108c 3378
875e1767 3379static CORE_ADDR
e17a4113
UW
3380mips32_scan_prologue (struct gdbarch *gdbarch,
3381 CORE_ADDR start_pc, CORE_ADDR limit_pc,
b8a22b94 3382 struct frame_info *this_frame,
29639122 3383 struct mips_frame_cache *this_cache)
c906108c 3384{
ab50adb6
MR
3385 int prev_non_prologue_insn;
3386 int this_non_prologue_insn;
3387 int non_prologue_insns;
025bb325
MS
3388 CORE_ADDR frame_addr = 0; /* Value of $r30. Used by gcc for
3389 frame-pointer. */
ab50adb6
MR
3390 int prev_delay_slot;
3391 CORE_ADDR prev_pc;
3392 CORE_ADDR cur_pc;
29639122
JB
3393 CORE_ADDR sp;
3394 long frame_offset;
3395 int frame_reg = MIPS_SP_REGNUM;
8fa9cfa1 3396
ab50adb6 3397 CORE_ADDR end_prologue_addr;
29639122
JB
3398 int seen_sp_adjust = 0;
3399 int load_immediate_bytes = 0;
ab50adb6 3400 int in_delay_slot;
7d1e6fb8 3401 int regsize_is_64_bits = (mips_abi_regsize (gdbarch) == 8);
8fa9cfa1 3402
29639122 3403 /* Can be called when there's no process, and hence when there's no
b8a22b94
DJ
3404 THIS_FRAME. */
3405 if (this_frame != NULL)
3406 sp = get_frame_register_signed (this_frame,
3407 gdbarch_num_regs (gdbarch)
3408 + MIPS_SP_REGNUM);
8fa9cfa1 3409 else
29639122 3410 sp = 0;
9022177c 3411
29639122
JB
3412 if (limit_pc > start_pc + 200)
3413 limit_pc = start_pc + 200;
9022177c 3414
29639122 3415restart:
ab50adb6
MR
3416 prev_non_prologue_insn = 0;
3417 non_prologue_insns = 0;
3418 prev_delay_slot = 0;
3419 prev_pc = start_pc;
9022177c 3420
ab50adb6
MR
3421 /* Permit at most one non-prologue non-control-transfer instruction
3422 in the middle which may have been reordered by the compiler for
3423 optimisation. */
29639122 3424 frame_offset = 0;
95ac2dcf 3425 for (cur_pc = start_pc; cur_pc < limit_pc; cur_pc += MIPS_INSN32_SIZE)
9022177c 3426 {
eaa6a9a4
MR
3427 unsigned long inst, high_word;
3428 long offset;
29639122 3429 int reg;
9022177c 3430
ab50adb6
MR
3431 this_non_prologue_insn = 0;
3432 in_delay_slot = 0;
3433
025bb325 3434 /* Fetch the instruction. */
4cc0665f
MR
3435 inst = (unsigned long) mips_fetch_instruction (gdbarch, ISA_MIPS,
3436 cur_pc, NULL);
9022177c 3437
29639122
JB
3438 /* Save some code by pre-extracting some useful fields. */
3439 high_word = (inst >> 16) & 0xffff;
eaa6a9a4 3440 offset = ((inst & 0xffff) ^ 0x8000) - 0x8000;
29639122 3441 reg = high_word & 0x1f;
fe29b929 3442
025bb325 3443 if (high_word == 0x27bd /* addiu $sp,$sp,-i */
29639122
JB
3444 || high_word == 0x23bd /* addi $sp,$sp,-i */
3445 || high_word == 0x67bd) /* daddiu $sp,$sp,-i */
3446 {
eaa6a9a4
MR
3447 if (offset < 0) /* Negative stack adjustment? */
3448 frame_offset -= offset;
29639122
JB
3449 else
3450 /* Exit loop if a positive stack adjustment is found, which
3451 usually means that the stack cleanup code in the function
3452 epilogue is reached. */
3453 break;
3454 seen_sp_adjust = 1;
3455 }
7d1e6fb8
KB
3456 else if (((high_word & 0xFFE0) == 0xafa0) /* sw reg,offset($sp) */
3457 && !regsize_is_64_bits)
29639122 3458 {
eaa6a9a4 3459 set_reg_offset (gdbarch, this_cache, reg, sp + offset);
29639122 3460 }
7d1e6fb8
KB
3461 else if (((high_word & 0xFFE0) == 0xffa0) /* sd reg,offset($sp) */
3462 && regsize_is_64_bits)
29639122
JB
3463 {
3464 /* Irix 6.2 N32 ABI uses sd instructions for saving $gp and $ra. */
eaa6a9a4 3465 set_reg_offset (gdbarch, this_cache, reg, sp + offset);
29639122
JB
3466 }
3467 else if (high_word == 0x27be) /* addiu $30,$sp,size */
3468 {
3469 /* Old gcc frame, r30 is virtual frame pointer. */
eaa6a9a4
MR
3470 if (offset != frame_offset)
3471 frame_addr = sp + offset;
b8a22b94 3472 else if (this_frame && frame_reg == MIPS_SP_REGNUM)
29639122
JB
3473 {
3474 unsigned alloca_adjust;
a4b8ebc8 3475
29639122 3476 frame_reg = 30;
b8a22b94
DJ
3477 frame_addr = get_frame_register_signed
3478 (this_frame, gdbarch_num_regs (gdbarch) + 30);
ca9c94ef 3479 frame_offset = 0;
d2ca4222 3480
eaa6a9a4 3481 alloca_adjust = (unsigned) (frame_addr - (sp + offset));
29639122
JB
3482 if (alloca_adjust > 0)
3483 {
025bb325 3484 /* FP > SP + frame_size. This may be because of
29639122
JB
3485 an alloca or somethings similar. Fix sp to
3486 "pre-alloca" value, and try again. */
3487 sp += alloca_adjust;
3488 /* Need to reset the status of all registers. Otherwise,
3489 we will hit a guard that prevents the new address
3490 for each register to be recomputed during the second
3491 pass. */
74ed0bb4 3492 reset_saved_regs (gdbarch, this_cache);
29639122
JB
3493 goto restart;
3494 }
3495 }
3496 }
3497 /* move $30,$sp. With different versions of gas this will be either
3498 `addu $30,$sp,$zero' or `or $30,$sp,$zero' or `daddu 30,sp,$0'.
3499 Accept any one of these. */
3500 else if (inst == 0x03A0F021 || inst == 0x03a0f025 || inst == 0x03a0f02d)
3501 {
3502 /* New gcc frame, virtual frame pointer is at r30 + frame_size. */
b8a22b94 3503 if (this_frame && frame_reg == MIPS_SP_REGNUM)
29639122
JB
3504 {
3505 unsigned alloca_adjust;
c906108c 3506
29639122 3507 frame_reg = 30;
b8a22b94
DJ
3508 frame_addr = get_frame_register_signed
3509 (this_frame, gdbarch_num_regs (gdbarch) + 30);
d2ca4222 3510
29639122
JB
3511 alloca_adjust = (unsigned) (frame_addr - sp);
3512 if (alloca_adjust > 0)
3513 {
025bb325 3514 /* FP > SP + frame_size. This may be because of
29639122
JB
3515 an alloca or somethings similar. Fix sp to
3516 "pre-alloca" value, and try again. */
3517 sp = frame_addr;
3518 /* Need to reset the status of all registers. Otherwise,
3519 we will hit a guard that prevents the new address
3520 for each register to be recomputed during the second
3521 pass. */
74ed0bb4 3522 reset_saved_regs (gdbarch, this_cache);
29639122
JB
3523 goto restart;
3524 }
3525 }
3526 }
7d1e6fb8
KB
3527 else if ((high_word & 0xFFE0) == 0xafc0 /* sw reg,offset($30) */
3528 && !regsize_is_64_bits)
29639122 3529 {
eaa6a9a4 3530 set_reg_offset (gdbarch, this_cache, reg, frame_addr + offset);
29639122
JB
3531 }
3532 else if ((high_word & 0xFFE0) == 0xE7A0 /* swc1 freg,n($sp) */
3533 || (high_word & 0xF3E0) == 0xA3C0 /* sx reg,n($s8) */
3534 || (inst & 0xFF9F07FF) == 0x00800021 /* move reg,$a0-$a3 */
3535 || high_word == 0x3c1c /* lui $gp,n */
3536 || high_word == 0x279c /* addiu $gp,$gp,n */
3537 || inst == 0x0399e021 /* addu $gp,$gp,$t9 */
3538 || inst == 0x033ce021 /* addu $gp,$t9,$gp */
3539 )
19080931
MR
3540 {
3541 /* These instructions are part of the prologue, but we don't
3542 need to do anything special to handle them. */
3543 }
29639122
JB
3544 /* The instructions below load $at or $t0 with an immediate
3545 value in preparation for a stack adjustment via
025bb325 3546 subu $sp,$sp,[$at,$t0]. These instructions could also
29639122
JB
3547 initialize a local variable, so we accept them only before
3548 a stack adjustment instruction was seen. */
3549 else if (!seen_sp_adjust
ab50adb6 3550 && !prev_delay_slot
19080931
MR
3551 && (high_word == 0x3c01 /* lui $at,n */
3552 || high_word == 0x3c08 /* lui $t0,n */
3553 || high_word == 0x3421 /* ori $at,$at,n */
3554 || high_word == 0x3508 /* ori $t0,$t0,n */
3555 || high_word == 0x3401 /* ori $at,$zero,n */
3556 || high_word == 0x3408 /* ori $t0,$zero,n */
3557 ))
3558 {
ab50adb6 3559 load_immediate_bytes += MIPS_INSN32_SIZE; /* FIXME! */
19080931 3560 }
ab50adb6
MR
3561 /* Check for branches and jumps. The instruction in the delay
3562 slot can be a part of the prologue, so move forward once more. */
3563 else if (mips32_instruction_has_delay_slot (gdbarch, inst))
3564 {
3565 in_delay_slot = 1;
3566 }
3567 /* This instruction is not an instruction typically found
3568 in a prologue, so we must have reached the end of the
3569 prologue. */
29639122 3570 else
19080931 3571 {
ab50adb6 3572 this_non_prologue_insn = 1;
19080931 3573 }
db5f024e 3574
ab50adb6
MR
3575 non_prologue_insns += this_non_prologue_insn;
3576
3577 /* A jump or branch, or enough non-prologue insns seen? If so,
3578 then we must have reached the end of the prologue by now. */
3579 if (prev_delay_slot || non_prologue_insns > 1)
db5f024e 3580 break;
ab50adb6
MR
3581
3582 prev_non_prologue_insn = this_non_prologue_insn;
3583 prev_delay_slot = in_delay_slot;
3584 prev_pc = cur_pc;
a4b8ebc8 3585 }
c906108c 3586
29639122
JB
3587 if (this_cache != NULL)
3588 {
3589 this_cache->base =
b8a22b94
DJ
3590 (get_frame_register_signed (this_frame,
3591 gdbarch_num_regs (gdbarch) + frame_reg)
29639122
JB
3592 + frame_offset);
3593 /* FIXME: brobecker/2004-09-15: We should be able to get rid of
3594 this assignment below, eventually. But it's still needed
3595 for now. */
72a155b4
UW
3596 this_cache->saved_regs[gdbarch_num_regs (gdbarch)
3597 + mips_regnum (gdbarch)->pc]
3598 = this_cache->saved_regs[gdbarch_num_regs (gdbarch)
f57d151a 3599 + MIPS_RA_REGNUM];
29639122 3600 }
c906108c 3601
ab50adb6
MR
3602 /* Set end_prologue_addr to the address of the instruction immediately
3603 after the last one we scanned. Unless the last one looked like a
3604 non-prologue instruction (and we looked ahead), in which case use
3605 its address instead. */
3606 end_prologue_addr
3607 = prev_non_prologue_insn || prev_delay_slot ? prev_pc : cur_pc;
29639122
JB
3608
3609 /* In a frameless function, we might have incorrectly
025bb325 3610 skipped some load immediate instructions. Undo the skipping
29639122
JB
3611 if the load immediate was not followed by a stack adjustment. */
3612 if (load_immediate_bytes && !seen_sp_adjust)
3613 end_prologue_addr -= load_immediate_bytes;
c906108c 3614
29639122 3615 return end_prologue_addr;
c906108c
SS
3616}
3617
29639122
JB
3618/* Heuristic unwinder for procedures using 32-bit instructions (covers
3619 both 32-bit and 64-bit MIPS ISAs). Procedures using 16-bit
3620 instructions (a.k.a. MIPS16) are handled by the mips_insn16
4cc0665f 3621 unwinder. Likewise microMIPS and the mips_micro unwinder. */
c906108c 3622
29639122 3623static struct mips_frame_cache *
b8a22b94 3624mips_insn32_frame_cache (struct frame_info *this_frame, void **this_cache)
c906108c 3625{
e17a4113 3626 struct gdbarch *gdbarch = get_frame_arch (this_frame);
29639122 3627 struct mips_frame_cache *cache;
c906108c 3628
29639122 3629 if ((*this_cache) != NULL)
19ba03f4 3630 return (struct mips_frame_cache *) (*this_cache);
c5aa993b 3631
29639122
JB
3632 cache = FRAME_OBSTACK_ZALLOC (struct mips_frame_cache);
3633 (*this_cache) = cache;
b8a22b94 3634 cache->saved_regs = trad_frame_alloc_saved_regs (this_frame);
c5aa993b 3635
29639122
JB
3636 /* Analyze the function prologue. */
3637 {
b8a22b94 3638 const CORE_ADDR pc = get_frame_address_in_block (this_frame);
29639122 3639 CORE_ADDR start_addr;
c906108c 3640
29639122
JB
3641 find_pc_partial_function (pc, NULL, &start_addr, NULL);
3642 if (start_addr == 0)
e17a4113 3643 start_addr = heuristic_proc_start (gdbarch, pc);
29639122
JB
3644 /* We can't analyze the prologue if we couldn't find the begining
3645 of the function. */
3646 if (start_addr == 0)
3647 return cache;
c5aa993b 3648
19ba03f4
SM
3649 mips32_scan_prologue (gdbarch, start_addr, pc, this_frame,
3650 (struct mips_frame_cache *) *this_cache);
29639122
JB
3651 }
3652
3e8c568d 3653 /* gdbarch_sp_regnum contains the value and not the address. */
f57d151a 3654 trad_frame_set_value (cache->saved_regs,
e17a4113 3655 gdbarch_num_regs (gdbarch) + MIPS_SP_REGNUM,
f57d151a 3656 cache->base);
c5aa993b 3657
19ba03f4 3658 return (struct mips_frame_cache *) (*this_cache);
c906108c
SS
3659}
3660
29639122 3661static void
b8a22b94 3662mips_insn32_frame_this_id (struct frame_info *this_frame, void **this_cache,
29639122 3663 struct frame_id *this_id)
c906108c 3664{
b8a22b94 3665 struct mips_frame_cache *info = mips_insn32_frame_cache (this_frame,
29639122 3666 this_cache);
21327321
DJ
3667 /* This marks the outermost frame. */
3668 if (info->base == 0)
3669 return;
b8a22b94 3670 (*this_id) = frame_id_build (info->base, get_frame_func (this_frame));
29639122 3671}
c906108c 3672
b8a22b94
DJ
3673static struct value *
3674mips_insn32_frame_prev_register (struct frame_info *this_frame,
3675 void **this_cache, int regnum)
29639122 3676{
b8a22b94 3677 struct mips_frame_cache *info = mips_insn32_frame_cache (this_frame,
29639122 3678 this_cache);
b8a22b94
DJ
3679 return trad_frame_get_prev_register (this_frame, info->saved_regs, regnum);
3680}
3681
3682static int
3683mips_insn32_frame_sniffer (const struct frame_unwind *self,
3684 struct frame_info *this_frame, void **this_cache)
3685{
3686 CORE_ADDR pc = get_frame_pc (this_frame);
4cc0665f 3687 if (mips_pc_is_mips (pc))
b8a22b94
DJ
3688 return 1;
3689 return 0;
c906108c
SS
3690}
3691
29639122
JB
3692static const struct frame_unwind mips_insn32_frame_unwind =
3693{
3694 NORMAL_FRAME,
8fbca658 3695 default_frame_unwind_stop_reason,
29639122 3696 mips_insn32_frame_this_id,
b8a22b94
DJ
3697 mips_insn32_frame_prev_register,
3698 NULL,
3699 mips_insn32_frame_sniffer
29639122 3700};
c906108c 3701
1c645fec 3702static CORE_ADDR
b8a22b94 3703mips_insn32_frame_base_address (struct frame_info *this_frame,
29639122 3704 void **this_cache)
c906108c 3705{
b8a22b94 3706 struct mips_frame_cache *info = mips_insn32_frame_cache (this_frame,
29639122
JB
3707 this_cache);
3708 return info->base;
3709}
c906108c 3710
29639122
JB
3711static const struct frame_base mips_insn32_frame_base =
3712{
3713 &mips_insn32_frame_unwind,
3714 mips_insn32_frame_base_address,
3715 mips_insn32_frame_base_address,
3716 mips_insn32_frame_base_address
3717};
1c645fec 3718
29639122 3719static const struct frame_base *
b8a22b94 3720mips_insn32_frame_base_sniffer (struct frame_info *this_frame)
29639122 3721{
b8a22b94 3722 CORE_ADDR pc = get_frame_pc (this_frame);
4cc0665f 3723 if (mips_pc_is_mips (pc))
29639122 3724 return &mips_insn32_frame_base;
a65bbe44 3725 else
29639122
JB
3726 return NULL;
3727}
a65bbe44 3728
29639122 3729static struct trad_frame_cache *
b8a22b94 3730mips_stub_frame_cache (struct frame_info *this_frame, void **this_cache)
29639122
JB
3731{
3732 CORE_ADDR pc;
3733 CORE_ADDR start_addr;
3734 CORE_ADDR stack_addr;
3735 struct trad_frame_cache *this_trad_cache;
b8a22b94
DJ
3736 struct gdbarch *gdbarch = get_frame_arch (this_frame);
3737 int num_regs = gdbarch_num_regs (gdbarch);
c906108c 3738
29639122 3739 if ((*this_cache) != NULL)
19ba03f4 3740 return (struct trad_frame_cache *) (*this_cache);
b8a22b94 3741 this_trad_cache = trad_frame_cache_zalloc (this_frame);
29639122 3742 (*this_cache) = this_trad_cache;
1c645fec 3743
29639122 3744 /* The return address is in the link register. */
3e8c568d 3745 trad_frame_set_reg_realreg (this_trad_cache,
72a155b4 3746 gdbarch_pc_regnum (gdbarch),
b8a22b94 3747 num_regs + MIPS_RA_REGNUM);
1c645fec 3748
29639122
JB
3749 /* Frame ID, since it's a frameless / stackless function, no stack
3750 space is allocated and SP on entry is the current SP. */
b8a22b94 3751 pc = get_frame_pc (this_frame);
29639122 3752 find_pc_partial_function (pc, NULL, &start_addr, NULL);
b8a22b94
DJ
3753 stack_addr = get_frame_register_signed (this_frame,
3754 num_regs + MIPS_SP_REGNUM);
aa6c981f 3755 trad_frame_set_id (this_trad_cache, frame_id_build (stack_addr, start_addr));
1c645fec 3756
29639122
JB
3757 /* Assume that the frame's base is the same as the
3758 stack-pointer. */
3759 trad_frame_set_this_base (this_trad_cache, stack_addr);
c906108c 3760
29639122
JB
3761 return this_trad_cache;
3762}
c906108c 3763
29639122 3764static void
b8a22b94 3765mips_stub_frame_this_id (struct frame_info *this_frame, void **this_cache,
29639122
JB
3766 struct frame_id *this_id)
3767{
3768 struct trad_frame_cache *this_trad_cache
b8a22b94 3769 = mips_stub_frame_cache (this_frame, this_cache);
29639122
JB
3770 trad_frame_get_id (this_trad_cache, this_id);
3771}
c906108c 3772
b8a22b94
DJ
3773static struct value *
3774mips_stub_frame_prev_register (struct frame_info *this_frame,
3775 void **this_cache, int regnum)
29639122
JB
3776{
3777 struct trad_frame_cache *this_trad_cache
b8a22b94
DJ
3778 = mips_stub_frame_cache (this_frame, this_cache);
3779 return trad_frame_get_register (this_trad_cache, this_frame, regnum);
29639122 3780}
c906108c 3781
b8a22b94
DJ
3782static int
3783mips_stub_frame_sniffer (const struct frame_unwind *self,
3784 struct frame_info *this_frame, void **this_cache)
29639122 3785{
aa6c981f 3786 gdb_byte dummy[4];
979b38e0 3787 struct obj_section *s;
b8a22b94 3788 CORE_ADDR pc = get_frame_address_in_block (this_frame);
7cbd4a93 3789 struct bound_minimal_symbol msym;
979b38e0 3790
aa6c981f 3791 /* Use the stub unwinder for unreadable code. */
b8a22b94
DJ
3792 if (target_read_memory (get_frame_pc (this_frame), dummy, 4) != 0)
3793 return 1;
aa6c981f 3794
3e5d3a5a 3795 if (in_plt_section (pc) || in_mips_stubs_section (pc))
b8a22b94 3796 return 1;
979b38e0 3797
db5f024e
DJ
3798 /* Calling a PIC function from a non-PIC function passes through a
3799 stub. The stub for foo is named ".pic.foo". */
3800 msym = lookup_minimal_symbol_by_pc (pc);
7cbd4a93 3801 if (msym.minsym != NULL
efd66ac6 3802 && MSYMBOL_LINKAGE_NAME (msym.minsym) != NULL
61012eef 3803 && startswith (MSYMBOL_LINKAGE_NAME (msym.minsym), ".pic."))
db5f024e
DJ
3804 return 1;
3805
b8a22b94 3806 return 0;
29639122 3807}
c906108c 3808
b8a22b94
DJ
3809static const struct frame_unwind mips_stub_frame_unwind =
3810{
3811 NORMAL_FRAME,
8fbca658 3812 default_frame_unwind_stop_reason,
b8a22b94
DJ
3813 mips_stub_frame_this_id,
3814 mips_stub_frame_prev_register,
3815 NULL,
3816 mips_stub_frame_sniffer
3817};
3818
29639122 3819static CORE_ADDR
b8a22b94 3820mips_stub_frame_base_address (struct frame_info *this_frame,
29639122
JB
3821 void **this_cache)
3822{
3823 struct trad_frame_cache *this_trad_cache
b8a22b94 3824 = mips_stub_frame_cache (this_frame, this_cache);
29639122
JB
3825 return trad_frame_get_this_base (this_trad_cache);
3826}
0fce0821 3827
29639122
JB
3828static const struct frame_base mips_stub_frame_base =
3829{
3830 &mips_stub_frame_unwind,
3831 mips_stub_frame_base_address,
3832 mips_stub_frame_base_address,
3833 mips_stub_frame_base_address
3834};
3835
3836static const struct frame_base *
b8a22b94 3837mips_stub_frame_base_sniffer (struct frame_info *this_frame)
29639122 3838{
b8a22b94 3839 if (mips_stub_frame_sniffer (&mips_stub_frame_unwind, this_frame, NULL))
29639122
JB
3840 return &mips_stub_frame_base;
3841 else
3842 return NULL;
3843}
3844
29639122 3845/* mips_addr_bits_remove - remove useless address bits */
65596487 3846
29639122 3847static CORE_ADDR
24568a2c 3848mips_addr_bits_remove (struct gdbarch *gdbarch, CORE_ADDR addr)
65596487 3849{
24568a2c 3850 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
930bd0e0 3851
29639122
JB
3852 if (mips_mask_address_p (tdep) && (((ULONGEST) addr) >> 32 == 0xffffffffUL))
3853 /* This hack is a work-around for existing boards using PMON, the
3854 simulator, and any other 64-bit targets that doesn't have true
3855 64-bit addressing. On these targets, the upper 32 bits of
3856 addresses are ignored by the hardware. Thus, the PC or SP are
3857 likely to have been sign extended to all 1s by instruction
3858 sequences that load 32-bit addresses. For example, a typical
3859 piece of code that loads an address is this:
65596487 3860
29639122
JB
3861 lui $r2, <upper 16 bits>
3862 ori $r2, <lower 16 bits>
65596487 3863
29639122
JB
3864 But the lui sign-extends the value such that the upper 32 bits
3865 may be all 1s. The workaround is simply to mask off these
3866 bits. In the future, gcc may be changed to support true 64-bit
3867 addressing, and this masking will have to be disabled. */
3868 return addr &= 0xffffffffUL;
3869 else
3870 return addr;
65596487
JB
3871}
3872
3d5f6d12
DJ
3873
3874/* Checks for an atomic sequence of instructions beginning with a LL/LLD
3875 instruction and ending with a SC/SCD instruction. If such a sequence
3876 is found, attempt to step through it. A breakpoint is placed at the end of
3877 the sequence. */
3878
4cc0665f
MR
3879/* Instructions used during single-stepping of atomic sequences, standard
3880 ISA version. */
3881#define LL_OPCODE 0x30
3882#define LLD_OPCODE 0x34
3883#define SC_OPCODE 0x38
3884#define SCD_OPCODE 0x3c
3885
3d5f6d12 3886static int
4cc0665f
MR
3887mips_deal_with_atomic_sequence (struct gdbarch *gdbarch,
3888 struct address_space *aspace, CORE_ADDR pc)
3d5f6d12
DJ
3889{
3890 CORE_ADDR breaks[2] = {-1, -1};
3891 CORE_ADDR loc = pc;
3892 CORE_ADDR branch_bp; /* Breakpoint at branch instruction's destination. */
4cc0665f 3893 ULONGEST insn;
3d5f6d12
DJ
3894 int insn_count;
3895 int index;
3896 int last_breakpoint = 0; /* Defaults to 0 (no breakpoints placed). */
3897 const int atomic_sequence_length = 16; /* Instruction sequence length. */
3898
4cc0665f 3899 insn = mips_fetch_instruction (gdbarch, ISA_MIPS, loc, NULL);
3d5f6d12
DJ
3900 /* Assume all atomic sequences start with a ll/lld instruction. */
3901 if (itype_op (insn) != LL_OPCODE && itype_op (insn) != LLD_OPCODE)
3902 return 0;
3903
3904 /* Assume that no atomic sequence is longer than "atomic_sequence_length"
3905 instructions. */
3906 for (insn_count = 0; insn_count < atomic_sequence_length; ++insn_count)
3907 {
3908 int is_branch = 0;
3909 loc += MIPS_INSN32_SIZE;
4cc0665f 3910 insn = mips_fetch_instruction (gdbarch, ISA_MIPS, loc, NULL);
3d5f6d12
DJ
3911
3912 /* Assume that there is at most one branch in the atomic
3913 sequence. If a branch is found, put a breakpoint in its
3914 destination address. */
3915 switch (itype_op (insn))
3916 {
3917 case 0: /* SPECIAL */
3918 if (rtype_funct (insn) >> 1 == 4) /* JR, JALR */
025bb325 3919 return 0; /* fallback to the standard single-step code. */
3d5f6d12
DJ
3920 break;
3921 case 1: /* REGIMM */
a385295e
MR
3922 is_branch = ((itype_rt (insn) & 0xc) == 0 /* B{LT,GE}Z* */
3923 || ((itype_rt (insn) & 0x1e) == 0
3924 && itype_rs (insn) == 0)); /* BPOSGE* */
3d5f6d12
DJ
3925 break;
3926 case 2: /* J */
3927 case 3: /* JAL */
025bb325 3928 return 0; /* fallback to the standard single-step code. */
3d5f6d12
DJ
3929 case 4: /* BEQ */
3930 case 5: /* BNE */
3931 case 6: /* BLEZ */
3932 case 7: /* BGTZ */
3933 case 20: /* BEQL */
3934 case 21: /* BNEL */
3935 case 22: /* BLEZL */
3936 case 23: /* BGTTL */
3937 is_branch = 1;
3938 break;
3939 case 17: /* COP1 */
a385295e
MR
3940 is_branch = ((itype_rs (insn) == 9 || itype_rs (insn) == 10)
3941 && (itype_rt (insn) & 0x2) == 0);
3942 if (is_branch) /* BC1ANY2F, BC1ANY2T, BC1ANY4F, BC1ANY4T */
3943 break;
3944 /* Fall through. */
3d5f6d12
DJ
3945 case 18: /* COP2 */
3946 case 19: /* COP3 */
3947 is_branch = (itype_rs (insn) == 8); /* BCzF, BCzFL, BCzT, BCzTL */
3948 break;
3949 }
3950 if (is_branch)
3951 {
3952 branch_bp = loc + mips32_relative_offset (insn) + 4;
3953 if (last_breakpoint >= 1)
3954 return 0; /* More than one branch found, fallback to the
3955 standard single-step code. */
3956 breaks[1] = branch_bp;
3957 last_breakpoint++;
3958 }
3959
3960 if (itype_op (insn) == SC_OPCODE || itype_op (insn) == SCD_OPCODE)
3961 break;
3962 }
3963
3964 /* Assume that the atomic sequence ends with a sc/scd instruction. */
3965 if (itype_op (insn) != SC_OPCODE && itype_op (insn) != SCD_OPCODE)
3966 return 0;
3967
3968 loc += MIPS_INSN32_SIZE;
3969
3970 /* Insert a breakpoint right after the end of the atomic sequence. */
3971 breaks[0] = loc;
3972
3973 /* Check for duplicated breakpoints. Check also for a breakpoint
025bb325 3974 placed (branch instruction's destination) in the atomic sequence. */
3d5f6d12
DJ
3975 if (last_breakpoint && pc <= breaks[1] && breaks[1] <= breaks[0])
3976 last_breakpoint = 0;
3977
3978 /* Effectively inserts the breakpoints. */
3979 for (index = 0; index <= last_breakpoint; index++)
6c95b8df 3980 insert_single_step_breakpoint (gdbarch, aspace, breaks[index]);
3d5f6d12
DJ
3981
3982 return 1;
3983}
3984
4cc0665f
MR
3985static int
3986micromips_deal_with_atomic_sequence (struct gdbarch *gdbarch,
3987 struct address_space *aspace,
3988 CORE_ADDR pc)
3989{
3990 const int atomic_sequence_length = 16; /* Instruction sequence length. */
3991 int last_breakpoint = 0; /* Defaults to 0 (no breakpoints placed). */
3992 CORE_ADDR breaks[2] = {-1, -1};
4b844a38
AT
3993 CORE_ADDR branch_bp = 0; /* Breakpoint at branch instruction's
3994 destination. */
4cc0665f
MR
3995 CORE_ADDR loc = pc;
3996 int sc_found = 0;
3997 ULONGEST insn;
3998 int insn_count;
3999 int index;
4000
4001 /* Assume all atomic sequences start with a ll/lld instruction. */
4002 insn = mips_fetch_instruction (gdbarch, ISA_MICROMIPS, loc, NULL);
4003 if (micromips_op (insn) != 0x18) /* POOL32C: bits 011000 */
4004 return 0;
4005 loc += MIPS_INSN16_SIZE;
4006 insn <<= 16;
4007 insn |= mips_fetch_instruction (gdbarch, ISA_MICROMIPS, loc, NULL);
4008 if ((b12s4_op (insn) & 0xb) != 0x3) /* LL, LLD: bits 011000 0x11 */
4009 return 0;
4010 loc += MIPS_INSN16_SIZE;
4011
4012 /* Assume all atomic sequences end with an sc/scd instruction. Assume
4013 that no atomic sequence is longer than "atomic_sequence_length"
4014 instructions. */
4015 for (insn_count = 0;
4016 !sc_found && insn_count < atomic_sequence_length;
4017 ++insn_count)
4018 {
4019 int is_branch = 0;
4020
4021 insn = mips_fetch_instruction (gdbarch, ISA_MICROMIPS, loc, NULL);
4022 loc += MIPS_INSN16_SIZE;
4023
4024 /* Assume that there is at most one conditional branch in the
4025 atomic sequence. If a branch is found, put a breakpoint in
4026 its destination address. */
4027 switch (mips_insn_size (ISA_MICROMIPS, insn))
4028 {
4cc0665f
MR
4029 /* 32-bit instructions. */
4030 case 2 * MIPS_INSN16_SIZE:
4031 switch (micromips_op (insn))
4032 {
4033 case 0x10: /* POOL32I: bits 010000 */
4034 if ((b5s5_op (insn) & 0x18) != 0x0
4035 /* BLTZ, BLTZAL, BGEZ, BGEZAL: 010000 000xx */
4036 /* BLEZ, BNEZC, BGTZ, BEQZC: 010000 001xx */
4037 && (b5s5_op (insn) & 0x1d) != 0x11
4038 /* BLTZALS, BGEZALS: bits 010000 100x1 */
4039 && ((b5s5_op (insn) & 0x1e) != 0x14
4040 || (insn & 0x3) != 0x0)
4041 /* BC2F, BC2T: bits 010000 1010x xxx00 */
4042 && (b5s5_op (insn) & 0x1e) != 0x1a
4043 /* BPOSGE64, BPOSGE32: bits 010000 1101x */
4044 && ((b5s5_op (insn) & 0x1e) != 0x1c
4045 || (insn & 0x3) != 0x0)
4046 /* BC1F, BC1T: bits 010000 1110x xxx00 */
4047 && ((b5s5_op (insn) & 0x1c) != 0x1c
4048 || (insn & 0x3) != 0x1))
4049 /* BC1ANY*: bits 010000 111xx xxx01 */
4050 break;
4051 /* Fall through. */
4052
4053 case 0x25: /* BEQ: bits 100101 */
4054 case 0x2d: /* BNE: bits 101101 */
4055 insn <<= 16;
4056 insn |= mips_fetch_instruction (gdbarch,
4057 ISA_MICROMIPS, loc, NULL);
4058 branch_bp = (loc + MIPS_INSN16_SIZE
4059 + micromips_relative_offset16 (insn));
4060 is_branch = 1;
4061 break;
4062
4063 case 0x00: /* POOL32A: bits 000000 */
4064 insn <<= 16;
4065 insn |= mips_fetch_instruction (gdbarch,
4066 ISA_MICROMIPS, loc, NULL);
4067 if (b0s6_op (insn) != 0x3c
4068 /* POOL32Axf: bits 000000 ... 111100 */
4069 || (b6s10_ext (insn) & 0x2bf) != 0x3c)
4070 /* JALR, JALR.HB: 000000 000x111100 111100 */
4071 /* JALRS, JALRS.HB: 000000 010x111100 111100 */
4072 break;
4073 /* Fall through. */
4074
4075 case 0x1d: /* JALS: bits 011101 */
4076 case 0x35: /* J: bits 110101 */
4077 case 0x3d: /* JAL: bits 111101 */
4078 case 0x3c: /* JALX: bits 111100 */
4079 return 0; /* Fall back to the standard single-step code. */
4080
4081 case 0x18: /* POOL32C: bits 011000 */
4082 if ((b12s4_op (insn) & 0xb) == 0xb)
4083 /* SC, SCD: bits 011000 1x11 */
4084 sc_found = 1;
4085 break;
4086 }
4087 loc += MIPS_INSN16_SIZE;
4088 break;
4089
4090 /* 16-bit instructions. */
4091 case MIPS_INSN16_SIZE:
4092 switch (micromips_op (insn))
4093 {
4094 case 0x23: /* BEQZ16: bits 100011 */
4095 case 0x2b: /* BNEZ16: bits 101011 */
4096 branch_bp = loc + micromips_relative_offset7 (insn);
4097 is_branch = 1;
4098 break;
4099
4100 case 0x11: /* POOL16C: bits 010001 */
4101 if ((b5s5_op (insn) & 0x1c) != 0xc
4102 /* JR16, JRC, JALR16, JALRS16: 010001 011xx */
4103 && b5s5_op (insn) != 0x18)
4104 /* JRADDIUSP: bits 010001 11000 */
4105 break;
4106 return 0; /* Fall back to the standard single-step code. */
4107
4108 case 0x33: /* B16: bits 110011 */
4109 return 0; /* Fall back to the standard single-step code. */
4110 }
4111 break;
4112 }
4113 if (is_branch)
4114 {
4115 if (last_breakpoint >= 1)
4116 return 0; /* More than one branch found, fallback to the
4117 standard single-step code. */
4118 breaks[1] = branch_bp;
4119 last_breakpoint++;
4120 }
4121 }
4122 if (!sc_found)
4123 return 0;
4124
4125 /* Insert a breakpoint right after the end of the atomic sequence. */
4126 breaks[0] = loc;
4127
4128 /* Check for duplicated breakpoints. Check also for a breakpoint
4129 placed (branch instruction's destination) in the atomic sequence */
4130 if (last_breakpoint && pc <= breaks[1] && breaks[1] <= breaks[0])
4131 last_breakpoint = 0;
4132
4133 /* Effectively inserts the breakpoints. */
4134 for (index = 0; index <= last_breakpoint; index++)
3373342d 4135 insert_single_step_breakpoint (gdbarch, aspace, breaks[index]);
4cc0665f
MR
4136
4137 return 1;
4138}
4139
4140static int
4141deal_with_atomic_sequence (struct gdbarch *gdbarch,
4142 struct address_space *aspace, CORE_ADDR pc)
4143{
4144 if (mips_pc_is_mips (pc))
4145 return mips_deal_with_atomic_sequence (gdbarch, aspace, pc);
4146 else if (mips_pc_is_micromips (gdbarch, pc))
4147 return micromips_deal_with_atomic_sequence (gdbarch, aspace, pc);
4148 else
4149 return 0;
4150}
4151
29639122
JB
4152/* mips_software_single_step() is called just before we want to resume
4153 the inferior, if we want to single-step it but there is no hardware
4154 or kernel single-step support (MIPS on GNU/Linux for example). We find
e0cd558a 4155 the target of the coming instruction and breakpoint it. */
29639122 4156
e6590a1b 4157int
0b1b3e42 4158mips_software_single_step (struct frame_info *frame)
c906108c 4159{
a6d9a66e 4160 struct gdbarch *gdbarch = get_frame_arch (frame);
6c95b8df 4161 struct address_space *aspace = get_frame_address_space (frame);
8181d85f 4162 CORE_ADDR pc, next_pc;
65596487 4163
0b1b3e42 4164 pc = get_frame_pc (frame);
6c95b8df 4165 if (deal_with_atomic_sequence (gdbarch, aspace, pc))
3d5f6d12
DJ
4166 return 1;
4167
0b1b3e42 4168 next_pc = mips_next_pc (frame, pc);
e6590a1b 4169
6c95b8df 4170 insert_single_step_breakpoint (gdbarch, aspace, next_pc);
e6590a1b 4171 return 1;
29639122 4172}
a65bbe44 4173
29639122 4174/* Test whether the PC points to the return instruction at the
025bb325 4175 end of a function. */
65596487 4176
29639122 4177static int
e17a4113 4178mips_about_to_return (struct gdbarch *gdbarch, CORE_ADDR pc)
29639122 4179{
6321c22a
MR
4180 ULONGEST insn;
4181 ULONGEST hint;
4182
4183 /* This used to check for MIPS16, but this piece of code is never
4cc0665f
MR
4184 called for MIPS16 functions. And likewise microMIPS ones. */
4185 gdb_assert (mips_pc_is_mips (pc));
6321c22a 4186
4cc0665f 4187 insn = mips_fetch_instruction (gdbarch, ISA_MIPS, pc, NULL);
6321c22a
MR
4188 hint = 0x7c0;
4189 return (insn & ~hint) == 0x3e00008; /* jr(.hb) $ra */
29639122 4190}
c906108c 4191
c906108c 4192
29639122
JB
4193/* This fencepost looks highly suspicious to me. Removing it also
4194 seems suspicious as it could affect remote debugging across serial
4195 lines. */
c906108c 4196
29639122 4197static CORE_ADDR
74ed0bb4 4198heuristic_proc_start (struct gdbarch *gdbarch, CORE_ADDR pc)
29639122
JB
4199{
4200 CORE_ADDR start_pc;
4201 CORE_ADDR fence;
4202 int instlen;
4203 int seen_adjsp = 0;
d6b48e9c 4204 struct inferior *inf;
65596487 4205
74ed0bb4 4206 pc = gdbarch_addr_bits_remove (gdbarch, pc);
29639122
JB
4207 start_pc = pc;
4208 fence = start_pc - heuristic_fence_post;
4209 if (start_pc == 0)
4210 return 0;
65596487 4211
44096aee 4212 if (heuristic_fence_post == -1 || fence < VM_MIN_ADDRESS)
29639122 4213 fence = VM_MIN_ADDRESS;
65596487 4214
4cc0665f 4215 instlen = mips_pc_is_mips (pc) ? MIPS_INSN32_SIZE : MIPS_INSN16_SIZE;
98b4dd94 4216
d6b48e9c
PA
4217 inf = current_inferior ();
4218
025bb325 4219 /* Search back for previous return. */
29639122
JB
4220 for (start_pc -= instlen;; start_pc -= instlen)
4221 if (start_pc < fence)
4222 {
4223 /* It's not clear to me why we reach this point when
4224 stop_soon, but with this test, at least we
4225 don't print out warnings for every child forked (eg, on
4226 decstation). 22apr93 rich@cygnus.com. */
16c381f0 4227 if (inf->control.stop_soon == NO_STOP_QUIETLY)
29639122
JB
4228 {
4229 static int blurb_printed = 0;
98b4dd94 4230
5af949e3
UW
4231 warning (_("GDB can't find the start of the function at %s."),
4232 paddress (gdbarch, pc));
29639122
JB
4233
4234 if (!blurb_printed)
4235 {
4236 /* This actually happens frequently in embedded
4237 development, when you first connect to a board
4238 and your stack pointer and pc are nowhere in
4239 particular. This message needs to give people
4240 in that situation enough information to
4241 determine that it's no big deal. */
4242 printf_filtered ("\n\
5af949e3 4243 GDB is unable to find the start of the function at %s\n\
29639122
JB
4244and thus can't determine the size of that function's stack frame.\n\
4245This means that GDB may be unable to access that stack frame, or\n\
4246the frames below it.\n\
4247 This problem is most likely caused by an invalid program counter or\n\
4248stack pointer.\n\
4249 However, if you think GDB should simply search farther back\n\
5af949e3 4250from %s for code which looks like the beginning of a\n\
29639122 4251function, you can increase the range of the search using the `set\n\
5af949e3
UW
4252heuristic-fence-post' command.\n",
4253 paddress (gdbarch, pc), paddress (gdbarch, pc));
29639122
JB
4254 blurb_printed = 1;
4255 }
4256 }
4257
4258 return 0;
4259 }
4cc0665f 4260 else if (mips_pc_is_mips16 (gdbarch, start_pc))
29639122
JB
4261 {
4262 unsigned short inst;
4263
4264 /* On MIPS16, any one of the following is likely to be the
4265 start of a function:
193774b3
MR
4266 extend save
4267 save
29639122
JB
4268 entry
4269 addiu sp,-n
4270 daddiu sp,-n
025bb325 4271 extend -n followed by 'addiu sp,+n' or 'daddiu sp,+n'. */
4cc0665f 4272 inst = mips_fetch_instruction (gdbarch, ISA_MIPS16, start_pc, NULL);
193774b3
MR
4273 if ((inst & 0xff80) == 0x6480) /* save */
4274 {
4275 if (start_pc - instlen >= fence)
4276 {
4cc0665f
MR
4277 inst = mips_fetch_instruction (gdbarch, ISA_MIPS16,
4278 start_pc - instlen, NULL);
193774b3
MR
4279 if ((inst & 0xf800) == 0xf000) /* extend */
4280 start_pc -= instlen;
4281 }
4282 break;
4283 }
4284 else if (((inst & 0xf81f) == 0xe809
4285 && (inst & 0x700) != 0x700) /* entry */
4286 || (inst & 0xff80) == 0x6380 /* addiu sp,-n */
4287 || (inst & 0xff80) == 0xfb80 /* daddiu sp,-n */
4288 || ((inst & 0xf810) == 0xf010 && seen_adjsp)) /* extend -n */
29639122
JB
4289 break;
4290 else if ((inst & 0xff00) == 0x6300 /* addiu sp */
4291 || (inst & 0xff00) == 0xfb00) /* daddiu sp */
4292 seen_adjsp = 1;
4293 else
4294 seen_adjsp = 0;
4295 }
4cc0665f
MR
4296 else if (mips_pc_is_micromips (gdbarch, start_pc))
4297 {
4298 ULONGEST insn;
4299 int stop = 0;
4300 long offset;
4301 int dreg;
4302 int sreg;
4303
4304 /* On microMIPS, any one of the following is likely to be the
4305 start of a function:
4306 ADDIUSP -imm
4307 (D)ADDIU $sp, -imm
4308 LUI $gp, imm */
4309 insn = mips_fetch_instruction (gdbarch, ISA_MICROMIPS, pc, NULL);
4310 switch (micromips_op (insn))
4311 {
4312 case 0xc: /* ADDIU: bits 001100 */
4313 case 0x17: /* DADDIU: bits 010111 */
4314 sreg = b0s5_reg (insn);
4315 dreg = b5s5_reg (insn);
4316 insn <<= 16;
4317 insn |= mips_fetch_instruction (gdbarch, ISA_MICROMIPS,
4318 pc + MIPS_INSN16_SIZE, NULL);
4319 offset = (b0s16_imm (insn) ^ 0x8000) - 0x8000;
4320 if (sreg == MIPS_SP_REGNUM && dreg == MIPS_SP_REGNUM
4321 /* (D)ADDIU $sp, imm */
4322 && offset < 0)
4323 stop = 1;
4324 break;
4325
4326 case 0x10: /* POOL32I: bits 010000 */
4327 if (b5s5_op (insn) == 0xd
4328 /* LUI: bits 010000 001101 */
4329 && b0s5_reg (insn >> 16) == 28)
4330 /* LUI $gp, imm */
4331 stop = 1;
4332 break;
4333
4334 case 0x13: /* POOL16D: bits 010011 */
4335 if ((insn & 0x1) == 0x1)
4336 /* ADDIUSP: bits 010011 1 */
4337 {
4338 offset = micromips_decode_imm9 (b1s9_imm (insn));
4339 if (offset < 0)
4340 /* ADDIUSP -imm */
4341 stop = 1;
4342 }
4343 else
4344 /* ADDIUS5: bits 010011 0 */
4345 {
4346 dreg = b5s5_reg (insn);
4347 offset = (b1s4_imm (insn) ^ 8) - 8;
4348 if (dreg == MIPS_SP_REGNUM && offset < 0)
4349 /* ADDIUS5 $sp, -imm */
4350 stop = 1;
4351 }
4352 break;
4353 }
4354 if (stop)
4355 break;
4356 }
e17a4113 4357 else if (mips_about_to_return (gdbarch, start_pc))
29639122 4358 {
4c7d22cb 4359 /* Skip return and its delay slot. */
95ac2dcf 4360 start_pc += 2 * MIPS_INSN32_SIZE;
29639122
JB
4361 break;
4362 }
4363
4364 return start_pc;
c906108c
SS
4365}
4366
6c0d6680
DJ
4367struct mips_objfile_private
4368{
4369 bfd_size_type size;
4370 char *contents;
4371};
4372
f09ded24
AC
4373/* According to the current ABI, should the type be passed in a
4374 floating-point register (assuming that there is space)? When there
a1f5b845 4375 is no FPU, FP are not even considered as possible candidates for
f09ded24 4376 FP registers and, consequently this returns false - forces FP
025bb325 4377 arguments into integer registers. */
f09ded24
AC
4378
4379static int
74ed0bb4
MD
4380fp_register_arg_p (struct gdbarch *gdbarch, enum type_code typecode,
4381 struct type *arg_type)
f09ded24
AC
4382{
4383 return ((typecode == TYPE_CODE_FLT
74ed0bb4 4384 || (MIPS_EABI (gdbarch)
6d82d43b
AC
4385 && (typecode == TYPE_CODE_STRUCT
4386 || typecode == TYPE_CODE_UNION)
f09ded24 4387 && TYPE_NFIELDS (arg_type) == 1
b2d6f210
MS
4388 && TYPE_CODE (check_typedef (TYPE_FIELD_TYPE (arg_type, 0)))
4389 == TYPE_CODE_FLT))
74ed0bb4 4390 && MIPS_FPU_TYPE(gdbarch) != MIPS_FPU_NONE);
f09ded24
AC
4391}
4392
49e790b0 4393/* On o32, argument passing in GPRs depends on the alignment of the type being
025bb325 4394 passed. Return 1 if this type must be aligned to a doubleword boundary. */
49e790b0
DJ
4395
4396static int
4397mips_type_needs_double_align (struct type *type)
4398{
4399 enum type_code typecode = TYPE_CODE (type);
361d1df0 4400
49e790b0
DJ
4401 if (typecode == TYPE_CODE_FLT && TYPE_LENGTH (type) == 8)
4402 return 1;
4403 else if (typecode == TYPE_CODE_STRUCT)
4404 {
4405 if (TYPE_NFIELDS (type) < 1)
4406 return 0;
4407 return mips_type_needs_double_align (TYPE_FIELD_TYPE (type, 0));
4408 }
4409 else if (typecode == TYPE_CODE_UNION)
4410 {
361d1df0 4411 int i, n;
49e790b0
DJ
4412
4413 n = TYPE_NFIELDS (type);
4414 for (i = 0; i < n; i++)
4415 if (mips_type_needs_double_align (TYPE_FIELD_TYPE (type, i)))
4416 return 1;
4417 return 0;
4418 }
4419 return 0;
4420}
4421
dc604539
AC
4422/* Adjust the address downward (direction of stack growth) so that it
4423 is correctly aligned for a new stack frame. */
4424static CORE_ADDR
4425mips_frame_align (struct gdbarch *gdbarch, CORE_ADDR addr)
4426{
5b03f266 4427 return align_down (addr, 16);
dc604539
AC
4428}
4429
8ae38c14 4430/* Implement the "push_dummy_code" gdbarch method. */
2c76a0c7
JB
4431
4432static CORE_ADDR
4433mips_push_dummy_code (struct gdbarch *gdbarch, CORE_ADDR sp,
4434 CORE_ADDR funaddr, struct value **args,
4435 int nargs, struct type *value_type,
4436 CORE_ADDR *real_pc, CORE_ADDR *bp_addr,
4437 struct regcache *regcache)
4438{
2c76a0c7 4439 static gdb_byte nop_insn[] = { 0, 0, 0, 0 };
2e81047f
MR
4440 CORE_ADDR nop_addr;
4441 CORE_ADDR bp_slot;
2c76a0c7
JB
4442
4443 /* Reserve enough room on the stack for our breakpoint instruction. */
2e81047f
MR
4444 bp_slot = sp - sizeof (nop_insn);
4445
4446 /* Return to microMIPS mode if calling microMIPS code to avoid
4447 triggering an address error exception on processors that only
4448 support microMIPS execution. */
4449 *bp_addr = (mips_pc_is_micromips (gdbarch, funaddr)
4450 ? make_compact_addr (bp_slot) : bp_slot);
2c76a0c7
JB
4451
4452 /* The breakpoint layer automatically adjusts the address of
4453 breakpoints inserted in a branch delay slot. With enough
4454 bad luck, the 4 bytes located just before our breakpoint
4455 instruction could look like a branch instruction, and thus
4456 trigger the adjustement, and break the function call entirely.
4457 So, we reserve those 4 bytes and write a nop instruction
4458 to prevent that from happening. */
2e81047f 4459 nop_addr = bp_slot - sizeof (nop_insn);
2c76a0c7
JB
4460 write_memory (nop_addr, nop_insn, sizeof (nop_insn));
4461 sp = mips_frame_align (gdbarch, nop_addr);
4462
4463 /* Inferior resumes at the function entry point. */
4464 *real_pc = funaddr;
4465
4466 return sp;
4467}
4468
f7ab6ec6 4469static CORE_ADDR
7d9b040b 4470mips_eabi_push_dummy_call (struct gdbarch *gdbarch, struct value *function,
6d82d43b
AC
4471 struct regcache *regcache, CORE_ADDR bp_addr,
4472 int nargs, struct value **args, CORE_ADDR sp,
4473 int struct_return, CORE_ADDR struct_addr)
c906108c
SS
4474{
4475 int argreg;
4476 int float_argreg;
4477 int argnum;
4478 int len = 0;
4479 int stack_offset = 0;
e17a4113 4480 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
7d9b040b 4481 CORE_ADDR func_addr = find_function_addr (function, NULL);
1a69e1e4 4482 int regsize = mips_abi_regsize (gdbarch);
c906108c 4483
25ab4790
AC
4484 /* For shared libraries, "t9" needs to point at the function
4485 address. */
4c7d22cb 4486 regcache_cooked_write_signed (regcache, MIPS_T9_REGNUM, func_addr);
25ab4790
AC
4487
4488 /* Set the return address register to point to the entry point of
4489 the program, where a breakpoint lies in wait. */
4c7d22cb 4490 regcache_cooked_write_signed (regcache, MIPS_RA_REGNUM, bp_addr);
25ab4790 4491
c906108c 4492 /* First ensure that the stack and structure return address (if any)
cb3d25d1
MS
4493 are properly aligned. The stack has to be at least 64-bit
4494 aligned even on 32-bit machines, because doubles must be 64-bit
4495 aligned. For n32 and n64, stack frames need to be 128-bit
4496 aligned, so we round to this widest known alignment. */
4497
5b03f266
AC
4498 sp = align_down (sp, 16);
4499 struct_addr = align_down (struct_addr, 16);
c5aa993b 4500
46e0f506 4501 /* Now make space on the stack for the args. We allocate more
c906108c 4502 than necessary for EABI, because the first few arguments are
46e0f506 4503 passed in registers, but that's OK. */
c906108c 4504 for (argnum = 0; argnum < nargs; argnum++)
1a69e1e4 4505 len += align_up (TYPE_LENGTH (value_type (args[argnum])), regsize);
5b03f266 4506 sp -= align_up (len, 16);
c906108c 4507
9ace0497 4508 if (mips_debug)
6d82d43b 4509 fprintf_unfiltered (gdb_stdlog,
5af949e3
UW
4510 "mips_eabi_push_dummy_call: sp=%s allocated %ld\n",
4511 paddress (gdbarch, sp), (long) align_up (len, 16));
9ace0497 4512
c906108c 4513 /* Initialize the integer and float register pointers. */
4c7d22cb 4514 argreg = MIPS_A0_REGNUM;
72a155b4 4515 float_argreg = mips_fpa0_regnum (gdbarch);
c906108c 4516
46e0f506 4517 /* The struct_return pointer occupies the first parameter-passing reg. */
c906108c 4518 if (struct_return)
9ace0497
AC
4519 {
4520 if (mips_debug)
4521 fprintf_unfiltered (gdb_stdlog,
025bb325
MS
4522 "mips_eabi_push_dummy_call: "
4523 "struct_return reg=%d %s\n",
5af949e3 4524 argreg, paddress (gdbarch, struct_addr));
9c9acae0 4525 regcache_cooked_write_unsigned (regcache, argreg++, struct_addr);
9ace0497 4526 }
c906108c
SS
4527
4528 /* Now load as many as possible of the first arguments into
4529 registers, and push the rest onto the stack. Loop thru args
4530 from first to last. */
4531 for (argnum = 0; argnum < nargs; argnum++)
4532 {
47a35522
MK
4533 const gdb_byte *val;
4534 gdb_byte valbuf[MAX_REGISTER_SIZE];
ea7c478f 4535 struct value *arg = args[argnum];
4991999e 4536 struct type *arg_type = check_typedef (value_type (arg));
c906108c
SS
4537 int len = TYPE_LENGTH (arg_type);
4538 enum type_code typecode = TYPE_CODE (arg_type);
4539
9ace0497
AC
4540 if (mips_debug)
4541 fprintf_unfiltered (gdb_stdlog,
25ab4790 4542 "mips_eabi_push_dummy_call: %d len=%d type=%d",
acdb74a0 4543 argnum + 1, len, (int) typecode);
9ace0497 4544
c906108c 4545 /* The EABI passes structures that do not fit in a register by
46e0f506 4546 reference. */
3e29f34a 4547 if (len > regsize
9ace0497 4548 && (typecode == TYPE_CODE_STRUCT || typecode == TYPE_CODE_UNION))
c906108c 4549 {
e17a4113
UW
4550 store_unsigned_integer (valbuf, regsize, byte_order,
4551 value_address (arg));
c906108c 4552 typecode = TYPE_CODE_PTR;
1a69e1e4 4553 len = regsize;
c906108c 4554 val = valbuf;
9ace0497
AC
4555 if (mips_debug)
4556 fprintf_unfiltered (gdb_stdlog, " push");
c906108c
SS
4557 }
4558 else
47a35522 4559 val = value_contents (arg);
c906108c
SS
4560
4561 /* 32-bit ABIs always start floating point arguments in an
acdb74a0
AC
4562 even-numbered floating point register. Round the FP register
4563 up before the check to see if there are any FP registers
46e0f506
MS
4564 left. Non MIPS_EABI targets also pass the FP in the integer
4565 registers so also round up normal registers. */
74ed0bb4 4566 if (regsize < 8 && fp_register_arg_p (gdbarch, typecode, arg_type))
acdb74a0
AC
4567 {
4568 if ((float_argreg & 1))
4569 float_argreg++;
4570 }
c906108c
SS
4571
4572 /* Floating point arguments passed in registers have to be
4573 treated specially. On 32-bit architectures, doubles
c5aa993b
JM
4574 are passed in register pairs; the even register gets
4575 the low word, and the odd register gets the high word.
4576 On non-EABI processors, the first two floating point arguments are
4577 also copied to general registers, because MIPS16 functions
4578 don't use float registers for arguments. This duplication of
4579 arguments in general registers can't hurt non-MIPS16 functions
4580 because those registers are normally skipped. */
1012bd0e
EZ
4581 /* MIPS_EABI squeezes a struct that contains a single floating
4582 point value into an FP register instead of pushing it onto the
46e0f506 4583 stack. */
74ed0bb4
MD
4584 if (fp_register_arg_p (gdbarch, typecode, arg_type)
4585 && float_argreg <= MIPS_LAST_FP_ARG_REGNUM (gdbarch))
c906108c 4586 {
6da397e0
KB
4587 /* EABI32 will pass doubles in consecutive registers, even on
4588 64-bit cores. At one time, we used to check the size of
4589 `float_argreg' to determine whether or not to pass doubles
4590 in consecutive registers, but this is not sufficient for
4591 making the ABI determination. */
4592 if (len == 8 && mips_abi (gdbarch) == MIPS_ABI_EABI32)
c906108c 4593 {
72a155b4 4594 int low_offset = gdbarch_byte_order (gdbarch)
4c6b5505 4595 == BFD_ENDIAN_BIG ? 4 : 0;
a8852dc5 4596 long regval;
c906108c
SS
4597
4598 /* Write the low word of the double to the even register(s). */
a8852dc5
KB
4599 regval = extract_signed_integer (val + low_offset,
4600 4, byte_order);
9ace0497 4601 if (mips_debug)
acdb74a0 4602 fprintf_unfiltered (gdb_stdlog, " - fpreg=%d val=%s",
9ace0497 4603 float_argreg, phex (regval, 4));
a8852dc5 4604 regcache_cooked_write_signed (regcache, float_argreg++, regval);
c906108c
SS
4605
4606 /* Write the high word of the double to the odd register(s). */
a8852dc5
KB
4607 regval = extract_signed_integer (val + 4 - low_offset,
4608 4, byte_order);
9ace0497 4609 if (mips_debug)
acdb74a0 4610 fprintf_unfiltered (gdb_stdlog, " - fpreg=%d val=%s",
9ace0497 4611 float_argreg, phex (regval, 4));
a8852dc5 4612 regcache_cooked_write_signed (regcache, float_argreg++, regval);
c906108c
SS
4613 }
4614 else
4615 {
4616 /* This is a floating point value that fits entirely
4617 in a single register. */
53a5351d 4618 /* On 32 bit ABI's the float_argreg is further adjusted
6d82d43b 4619 above to ensure that it is even register aligned. */
a8852dc5 4620 LONGEST regval = extract_signed_integer (val, len, byte_order);
9ace0497 4621 if (mips_debug)
acdb74a0 4622 fprintf_unfiltered (gdb_stdlog, " - fpreg=%d val=%s",
9ace0497 4623 float_argreg, phex (regval, len));
a8852dc5 4624 regcache_cooked_write_signed (regcache, float_argreg++, regval);
c906108c
SS
4625 }
4626 }
4627 else
4628 {
4629 /* Copy the argument to general registers or the stack in
4630 register-sized pieces. Large arguments are split between
4631 registers and stack. */
1a69e1e4
DJ
4632 /* Note: structs whose size is not a multiple of regsize
4633 are treated specially: Irix cc passes
d5ac5a39
AC
4634 them in registers where gcc sometimes puts them on the
4635 stack. For maximum compatibility, we will put them in
4636 both places. */
1a69e1e4 4637 int odd_sized_struct = (len > regsize && len % regsize != 0);
46e0f506 4638
f09ded24 4639 /* Note: Floating-point values that didn't fit into an FP
6d82d43b 4640 register are only written to memory. */
c906108c
SS
4641 while (len > 0)
4642 {
ebafbe83 4643 /* Remember if the argument was written to the stack. */
566f0f7a 4644 int stack_used_p = 0;
1a69e1e4 4645 int partial_len = (len < regsize ? len : regsize);
c906108c 4646
acdb74a0
AC
4647 if (mips_debug)
4648 fprintf_unfiltered (gdb_stdlog, " -- partial=%d",
4649 partial_len);
4650
566f0f7a 4651 /* Write this portion of the argument to the stack. */
74ed0bb4 4652 if (argreg > MIPS_LAST_ARG_REGNUM (gdbarch)
f09ded24 4653 || odd_sized_struct
74ed0bb4 4654 || fp_register_arg_p (gdbarch, typecode, arg_type))
c906108c 4655 {
c906108c 4656 /* Should shorter than int integer values be
025bb325 4657 promoted to int before being stored? */
c906108c 4658 int longword_offset = 0;
9ace0497 4659 CORE_ADDR addr;
566f0f7a 4660 stack_used_p = 1;
72a155b4 4661 if (gdbarch_byte_order (gdbarch) == BFD_ENDIAN_BIG)
7a292a7a 4662 {
1a69e1e4 4663 if (regsize == 8
480d3dd2
AC
4664 && (typecode == TYPE_CODE_INT
4665 || typecode == TYPE_CODE_PTR
6d82d43b 4666 || typecode == TYPE_CODE_FLT) && len <= 4)
1a69e1e4 4667 longword_offset = regsize - len;
480d3dd2
AC
4668 else if ((typecode == TYPE_CODE_STRUCT
4669 || typecode == TYPE_CODE_UNION)
1a69e1e4
DJ
4670 && TYPE_LENGTH (arg_type) < regsize)
4671 longword_offset = regsize - len;
7a292a7a 4672 }
c5aa993b 4673
9ace0497
AC
4674 if (mips_debug)
4675 {
5af949e3
UW
4676 fprintf_unfiltered (gdb_stdlog, " - stack_offset=%s",
4677 paddress (gdbarch, stack_offset));
4678 fprintf_unfiltered (gdb_stdlog, " longword_offset=%s",
4679 paddress (gdbarch, longword_offset));
9ace0497 4680 }
361d1df0 4681
9ace0497
AC
4682 addr = sp + stack_offset + longword_offset;
4683
4684 if (mips_debug)
4685 {
4686 int i;
5af949e3
UW
4687 fprintf_unfiltered (gdb_stdlog, " @%s ",
4688 paddress (gdbarch, addr));
9ace0497
AC
4689 for (i = 0; i < partial_len; i++)
4690 {
6d82d43b 4691 fprintf_unfiltered (gdb_stdlog, "%02x",
cb3d25d1 4692 val[i] & 0xff);
9ace0497
AC
4693 }
4694 }
4695 write_memory (addr, val, partial_len);
c906108c
SS
4696 }
4697
f09ded24
AC
4698 /* Note!!! This is NOT an else clause. Odd sized
4699 structs may go thru BOTH paths. Floating point
46e0f506 4700 arguments will not. */
566f0f7a 4701 /* Write this portion of the argument to a general
6d82d43b 4702 purpose register. */
74ed0bb4
MD
4703 if (argreg <= MIPS_LAST_ARG_REGNUM (gdbarch)
4704 && !fp_register_arg_p (gdbarch, typecode, arg_type))
c906108c 4705 {
6d82d43b 4706 LONGEST regval =
a8852dc5 4707 extract_signed_integer (val, partial_len, byte_order);
c906108c 4708
9ace0497 4709 if (mips_debug)
acdb74a0 4710 fprintf_filtered (gdb_stdlog, " - reg=%d val=%s",
9ace0497 4711 argreg,
1a69e1e4 4712 phex (regval, regsize));
a8852dc5 4713 regcache_cooked_write_signed (regcache, argreg, regval);
c906108c 4714 argreg++;
c906108c 4715 }
c5aa993b 4716
c906108c
SS
4717 len -= partial_len;
4718 val += partial_len;
4719
b021a221
MS
4720 /* Compute the offset into the stack at which we will
4721 copy the next parameter.
566f0f7a 4722
566f0f7a 4723 In the new EABI (and the NABI32), the stack_offset
46e0f506 4724 only needs to be adjusted when it has been used. */
c906108c 4725
46e0f506 4726 if (stack_used_p)
1a69e1e4 4727 stack_offset += align_up (partial_len, regsize);
c906108c
SS
4728 }
4729 }
9ace0497
AC
4730 if (mips_debug)
4731 fprintf_unfiltered (gdb_stdlog, "\n");
c906108c
SS
4732 }
4733
f10683bb 4734 regcache_cooked_write_signed (regcache, MIPS_SP_REGNUM, sp);
310e9b6a 4735
0f71a2f6
JM
4736 /* Return adjusted stack pointer. */
4737 return sp;
4738}
4739
a1f5b845 4740/* Determine the return value convention being used. */
6d82d43b 4741
9c8fdbfa 4742static enum return_value_convention
6a3a010b 4743mips_eabi_return_value (struct gdbarch *gdbarch, struct value *function,
9c8fdbfa 4744 struct type *type, struct regcache *regcache,
47a35522 4745 gdb_byte *readbuf, const gdb_byte *writebuf)
6d82d43b 4746{
609ba780
JM
4747 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
4748 int fp_return_type = 0;
4749 int offset, regnum, xfer;
4750
9c8fdbfa
AC
4751 if (TYPE_LENGTH (type) > 2 * mips_abi_regsize (gdbarch))
4752 return RETURN_VALUE_STRUCT_CONVENTION;
609ba780
JM
4753
4754 /* Floating point type? */
4755 if (tdep->mips_fpu_type != MIPS_FPU_NONE)
4756 {
4757 if (TYPE_CODE (type) == TYPE_CODE_FLT)
4758 fp_return_type = 1;
4759 /* Structs with a single field of float type
4760 are returned in a floating point register. */
4761 if ((TYPE_CODE (type) == TYPE_CODE_STRUCT
4762 || TYPE_CODE (type) == TYPE_CODE_UNION)
4763 && TYPE_NFIELDS (type) == 1)
4764 {
4765 struct type *fieldtype = TYPE_FIELD_TYPE (type, 0);
4766
4767 if (TYPE_CODE (check_typedef (fieldtype)) == TYPE_CODE_FLT)
4768 fp_return_type = 1;
4769 }
4770 }
4771
4772 if (fp_return_type)
4773 {
4774 /* A floating-point value belongs in the least significant part
4775 of FP0/FP1. */
4776 if (mips_debug)
4777 fprintf_unfiltered (gdb_stderr, "Return float in $fp0\n");
4778 regnum = mips_regnum (gdbarch)->fp0;
4779 }
4780 else
4781 {
4782 /* An integer value goes in V0/V1. */
4783 if (mips_debug)
4784 fprintf_unfiltered (gdb_stderr, "Return scalar in $v0\n");
4785 regnum = MIPS_V0_REGNUM;
4786 }
4787 for (offset = 0;
4788 offset < TYPE_LENGTH (type);
4789 offset += mips_abi_regsize (gdbarch), regnum++)
4790 {
4791 xfer = mips_abi_regsize (gdbarch);
4792 if (offset + xfer > TYPE_LENGTH (type))
4793 xfer = TYPE_LENGTH (type) - offset;
4794 mips_xfer_register (gdbarch, regcache,
4795 gdbarch_num_regs (gdbarch) + regnum, xfer,
4796 gdbarch_byte_order (gdbarch), readbuf, writebuf,
4797 offset);
4798 }
4799
9c8fdbfa 4800 return RETURN_VALUE_REGISTER_CONVENTION;
6d82d43b
AC
4801}
4802
6d82d43b
AC
4803
4804/* N32/N64 ABI stuff. */
ebafbe83 4805
8d26208a
DJ
4806/* Search for a naturally aligned double at OFFSET inside a struct
4807 ARG_TYPE. The N32 / N64 ABIs pass these in floating point
4808 registers. */
4809
4810static int
74ed0bb4
MD
4811mips_n32n64_fp_arg_chunk_p (struct gdbarch *gdbarch, struct type *arg_type,
4812 int offset)
8d26208a
DJ
4813{
4814 int i;
4815
4816 if (TYPE_CODE (arg_type) != TYPE_CODE_STRUCT)
4817 return 0;
4818
74ed0bb4 4819 if (MIPS_FPU_TYPE (gdbarch) != MIPS_FPU_DOUBLE)
8d26208a
DJ
4820 return 0;
4821
4822 if (TYPE_LENGTH (arg_type) < offset + MIPS64_REGSIZE)
4823 return 0;
4824
4825 for (i = 0; i < TYPE_NFIELDS (arg_type); i++)
4826 {
4827 int pos;
4828 struct type *field_type;
4829
4830 /* We're only looking at normal fields. */
5bc60cfb 4831 if (field_is_static (&TYPE_FIELD (arg_type, i))
8d26208a
DJ
4832 || (TYPE_FIELD_BITPOS (arg_type, i) % 8) != 0)
4833 continue;
4834
4835 /* If we have gone past the offset, there is no double to pass. */
4836 pos = TYPE_FIELD_BITPOS (arg_type, i) / 8;
4837 if (pos > offset)
4838 return 0;
4839
4840 field_type = check_typedef (TYPE_FIELD_TYPE (arg_type, i));
4841
4842 /* If this field is entirely before the requested offset, go
4843 on to the next one. */
4844 if (pos + TYPE_LENGTH (field_type) <= offset)
4845 continue;
4846
4847 /* If this is our special aligned double, we can stop. */
4848 if (TYPE_CODE (field_type) == TYPE_CODE_FLT
4849 && TYPE_LENGTH (field_type) == MIPS64_REGSIZE)
4850 return 1;
4851
4852 /* This field starts at or before the requested offset, and
4853 overlaps it. If it is a structure, recurse inwards. */
74ed0bb4 4854 return mips_n32n64_fp_arg_chunk_p (gdbarch, field_type, offset - pos);
8d26208a
DJ
4855 }
4856
4857 return 0;
4858}
4859
f7ab6ec6 4860static CORE_ADDR
7d9b040b 4861mips_n32n64_push_dummy_call (struct gdbarch *gdbarch, struct value *function,
6d82d43b
AC
4862 struct regcache *regcache, CORE_ADDR bp_addr,
4863 int nargs, struct value **args, CORE_ADDR sp,
4864 int struct_return, CORE_ADDR struct_addr)
cb3d25d1
MS
4865{
4866 int argreg;
4867 int float_argreg;
4868 int argnum;
4869 int len = 0;
4870 int stack_offset = 0;
e17a4113 4871 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
7d9b040b 4872 CORE_ADDR func_addr = find_function_addr (function, NULL);
cb3d25d1 4873
25ab4790
AC
4874 /* For shared libraries, "t9" needs to point at the function
4875 address. */
4c7d22cb 4876 regcache_cooked_write_signed (regcache, MIPS_T9_REGNUM, func_addr);
25ab4790
AC
4877
4878 /* Set the return address register to point to the entry point of
4879 the program, where a breakpoint lies in wait. */
4c7d22cb 4880 regcache_cooked_write_signed (regcache, MIPS_RA_REGNUM, bp_addr);
25ab4790 4881
cb3d25d1
MS
4882 /* First ensure that the stack and structure return address (if any)
4883 are properly aligned. The stack has to be at least 64-bit
4884 aligned even on 32-bit machines, because doubles must be 64-bit
4885 aligned. For n32 and n64, stack frames need to be 128-bit
4886 aligned, so we round to this widest known alignment. */
4887
5b03f266
AC
4888 sp = align_down (sp, 16);
4889 struct_addr = align_down (struct_addr, 16);
cb3d25d1
MS
4890
4891 /* Now make space on the stack for the args. */
4892 for (argnum = 0; argnum < nargs; argnum++)
1a69e1e4 4893 len += align_up (TYPE_LENGTH (value_type (args[argnum])), MIPS64_REGSIZE);
5b03f266 4894 sp -= align_up (len, 16);
cb3d25d1
MS
4895
4896 if (mips_debug)
6d82d43b 4897 fprintf_unfiltered (gdb_stdlog,
5af949e3
UW
4898 "mips_n32n64_push_dummy_call: sp=%s allocated %ld\n",
4899 paddress (gdbarch, sp), (long) align_up (len, 16));
cb3d25d1
MS
4900
4901 /* Initialize the integer and float register pointers. */
4c7d22cb 4902 argreg = MIPS_A0_REGNUM;
72a155b4 4903 float_argreg = mips_fpa0_regnum (gdbarch);
cb3d25d1 4904
46e0f506 4905 /* The struct_return pointer occupies the first parameter-passing reg. */
cb3d25d1
MS
4906 if (struct_return)
4907 {
4908 if (mips_debug)
4909 fprintf_unfiltered (gdb_stdlog,
025bb325
MS
4910 "mips_n32n64_push_dummy_call: "
4911 "struct_return reg=%d %s\n",
5af949e3 4912 argreg, paddress (gdbarch, struct_addr));
9c9acae0 4913 regcache_cooked_write_unsigned (regcache, argreg++, struct_addr);
cb3d25d1
MS
4914 }
4915
4916 /* Now load as many as possible of the first arguments into
4917 registers, and push the rest onto the stack. Loop thru args
4918 from first to last. */
4919 for (argnum = 0; argnum < nargs; argnum++)
4920 {
47a35522 4921 const gdb_byte *val;
cb3d25d1 4922 struct value *arg = args[argnum];
4991999e 4923 struct type *arg_type = check_typedef (value_type (arg));
cb3d25d1
MS
4924 int len = TYPE_LENGTH (arg_type);
4925 enum type_code typecode = TYPE_CODE (arg_type);
4926
4927 if (mips_debug)
4928 fprintf_unfiltered (gdb_stdlog,
25ab4790 4929 "mips_n32n64_push_dummy_call: %d len=%d type=%d",
cb3d25d1
MS
4930 argnum + 1, len, (int) typecode);
4931
47a35522 4932 val = value_contents (arg);
cb3d25d1 4933
5b68030f
JM
4934 /* A 128-bit long double value requires an even-odd pair of
4935 floating-point registers. */
4936 if (len == 16
4937 && fp_register_arg_p (gdbarch, typecode, arg_type)
4938 && (float_argreg & 1))
4939 {
4940 float_argreg++;
4941 argreg++;
4942 }
4943
74ed0bb4
MD
4944 if (fp_register_arg_p (gdbarch, typecode, arg_type)
4945 && argreg <= MIPS_LAST_ARG_REGNUM (gdbarch))
cb3d25d1
MS
4946 {
4947 /* This is a floating point value that fits entirely
5b68030f
JM
4948 in a single register or a pair of registers. */
4949 int reglen = (len <= MIPS64_REGSIZE ? len : MIPS64_REGSIZE);
e17a4113 4950 LONGEST regval = extract_unsigned_integer (val, reglen, byte_order);
cb3d25d1
MS
4951 if (mips_debug)
4952 fprintf_unfiltered (gdb_stdlog, " - fpreg=%d val=%s",
5b68030f 4953 float_argreg, phex (regval, reglen));
8d26208a 4954 regcache_cooked_write_unsigned (regcache, float_argreg, regval);
cb3d25d1
MS
4955
4956 if (mips_debug)
4957 fprintf_unfiltered (gdb_stdlog, " - reg=%d val=%s",
5b68030f 4958 argreg, phex (regval, reglen));
9c9acae0 4959 regcache_cooked_write_unsigned (regcache, argreg, regval);
8d26208a
DJ
4960 float_argreg++;
4961 argreg++;
5b68030f
JM
4962 if (len == 16)
4963 {
e17a4113
UW
4964 regval = extract_unsigned_integer (val + reglen,
4965 reglen, byte_order);
5b68030f
JM
4966 if (mips_debug)
4967 fprintf_unfiltered (gdb_stdlog, " - fpreg=%d val=%s",
4968 float_argreg, phex (regval, reglen));
4969 regcache_cooked_write_unsigned (regcache, float_argreg, regval);
4970
4971 if (mips_debug)
4972 fprintf_unfiltered (gdb_stdlog, " - reg=%d val=%s",
4973 argreg, phex (regval, reglen));
4974 regcache_cooked_write_unsigned (regcache, argreg, regval);
4975 float_argreg++;
4976 argreg++;
4977 }
cb3d25d1
MS
4978 }
4979 else
4980 {
4981 /* Copy the argument to general registers or the stack in
4982 register-sized pieces. Large arguments are split between
4983 registers and stack. */
ab2e1992
MR
4984 /* For N32/N64, structs, unions, or other composite types are
4985 treated as a sequence of doublewords, and are passed in integer
4986 or floating point registers as though they were simple scalar
4987 parameters to the extent that they fit, with any excess on the
4988 stack packed according to the normal memory layout of the
4989 object.
4990 The caller does not reserve space for the register arguments;
4991 the callee is responsible for reserving it if required. */
cb3d25d1 4992 /* Note: Floating-point values that didn't fit into an FP
6d82d43b 4993 register are only written to memory. */
cb3d25d1
MS
4994 while (len > 0)
4995 {
ad018eee 4996 /* Remember if the argument was written to the stack. */
cb3d25d1 4997 int stack_used_p = 0;
1a69e1e4 4998 int partial_len = (len < MIPS64_REGSIZE ? len : MIPS64_REGSIZE);
cb3d25d1
MS
4999
5000 if (mips_debug)
5001 fprintf_unfiltered (gdb_stdlog, " -- partial=%d",
5002 partial_len);
5003
74ed0bb4
MD
5004 if (fp_register_arg_p (gdbarch, typecode, arg_type))
5005 gdb_assert (argreg > MIPS_LAST_ARG_REGNUM (gdbarch));
8d26208a 5006
cb3d25d1 5007 /* Write this portion of the argument to the stack. */
74ed0bb4 5008 if (argreg > MIPS_LAST_ARG_REGNUM (gdbarch))
cb3d25d1
MS
5009 {
5010 /* Should shorter than int integer values be
025bb325 5011 promoted to int before being stored? */
cb3d25d1
MS
5012 int longword_offset = 0;
5013 CORE_ADDR addr;
5014 stack_used_p = 1;
72a155b4 5015 if (gdbarch_byte_order (gdbarch) == BFD_ENDIAN_BIG)
cb3d25d1 5016 {
1a69e1e4 5017 if ((typecode == TYPE_CODE_INT
5b68030f 5018 || typecode == TYPE_CODE_PTR)
1a69e1e4
DJ
5019 && len <= 4)
5020 longword_offset = MIPS64_REGSIZE - len;
cb3d25d1
MS
5021 }
5022
5023 if (mips_debug)
5024 {
5af949e3
UW
5025 fprintf_unfiltered (gdb_stdlog, " - stack_offset=%s",
5026 paddress (gdbarch, stack_offset));
5027 fprintf_unfiltered (gdb_stdlog, " longword_offset=%s",
5028 paddress (gdbarch, longword_offset));
cb3d25d1
MS
5029 }
5030
5031 addr = sp + stack_offset + longword_offset;
5032
5033 if (mips_debug)
5034 {
5035 int i;
5af949e3
UW
5036 fprintf_unfiltered (gdb_stdlog, " @%s ",
5037 paddress (gdbarch, addr));
cb3d25d1
MS
5038 for (i = 0; i < partial_len; i++)
5039 {
6d82d43b 5040 fprintf_unfiltered (gdb_stdlog, "%02x",
cb3d25d1
MS
5041 val[i] & 0xff);
5042 }
5043 }
5044 write_memory (addr, val, partial_len);
5045 }
5046
5047 /* Note!!! This is NOT an else clause. Odd sized
8d26208a 5048 structs may go thru BOTH paths. */
cb3d25d1 5049 /* Write this portion of the argument to a general
6d82d43b 5050 purpose register. */
74ed0bb4 5051 if (argreg <= MIPS_LAST_ARG_REGNUM (gdbarch))
cb3d25d1 5052 {
5863b5d5
MR
5053 LONGEST regval;
5054
5055 /* Sign extend pointers, 32-bit integers and signed
5056 16-bit and 8-bit integers; everything else is taken
5057 as is. */
5058
5059 if ((partial_len == 4
5060 && (typecode == TYPE_CODE_PTR
5061 || typecode == TYPE_CODE_INT))
5062 || (partial_len < 4
5063 && typecode == TYPE_CODE_INT
5064 && !TYPE_UNSIGNED (arg_type)))
e17a4113
UW
5065 regval = extract_signed_integer (val, partial_len,
5066 byte_order);
5863b5d5 5067 else
e17a4113
UW
5068 regval = extract_unsigned_integer (val, partial_len,
5069 byte_order);
cb3d25d1
MS
5070
5071 /* A non-floating-point argument being passed in a
5072 general register. If a struct or union, and if
5073 the remaining length is smaller than the register
5074 size, we have to adjust the register value on
5075 big endian targets.
5076
5077 It does not seem to be necessary to do the
1a69e1e4 5078 same for integral types. */
cb3d25d1 5079
72a155b4 5080 if (gdbarch_byte_order (gdbarch) == BFD_ENDIAN_BIG
1a69e1e4 5081 && partial_len < MIPS64_REGSIZE
06f9a1af
MR
5082 && (typecode == TYPE_CODE_STRUCT
5083 || typecode == TYPE_CODE_UNION))
1a69e1e4 5084 regval <<= ((MIPS64_REGSIZE - partial_len)
9ecf7166 5085 * TARGET_CHAR_BIT);
cb3d25d1
MS
5086
5087 if (mips_debug)
5088 fprintf_filtered (gdb_stdlog, " - reg=%d val=%s",
5089 argreg,
1a69e1e4 5090 phex (regval, MIPS64_REGSIZE));
9c9acae0 5091 regcache_cooked_write_unsigned (regcache, argreg, regval);
8d26208a 5092
74ed0bb4 5093 if (mips_n32n64_fp_arg_chunk_p (gdbarch, arg_type,
8d26208a
DJ
5094 TYPE_LENGTH (arg_type) - len))
5095 {
5096 if (mips_debug)
5097 fprintf_filtered (gdb_stdlog, " - fpreg=%d val=%s",
5098 float_argreg,
5099 phex (regval, MIPS64_REGSIZE));
5100 regcache_cooked_write_unsigned (regcache, float_argreg,
5101 regval);
5102 }
5103
5104 float_argreg++;
cb3d25d1
MS
5105 argreg++;
5106 }
5107
5108 len -= partial_len;
5109 val += partial_len;
5110
b021a221
MS
5111 /* Compute the offset into the stack at which we will
5112 copy the next parameter.
cb3d25d1
MS
5113
5114 In N32 (N64?), the stack_offset only needs to be
5115 adjusted when it has been used. */
5116
5117 if (stack_used_p)
1a69e1e4 5118 stack_offset += align_up (partial_len, MIPS64_REGSIZE);
cb3d25d1
MS
5119 }
5120 }
5121 if (mips_debug)
5122 fprintf_unfiltered (gdb_stdlog, "\n");
5123 }
5124
f10683bb 5125 regcache_cooked_write_signed (regcache, MIPS_SP_REGNUM, sp);
310e9b6a 5126
cb3d25d1
MS
5127 /* Return adjusted stack pointer. */
5128 return sp;
5129}
5130
6d82d43b 5131static enum return_value_convention
6a3a010b 5132mips_n32n64_return_value (struct gdbarch *gdbarch, struct value *function,
6d82d43b 5133 struct type *type, struct regcache *regcache,
47a35522 5134 gdb_byte *readbuf, const gdb_byte *writebuf)
ebafbe83 5135{
72a155b4 5136 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
b18bb924
MR
5137
5138 /* From MIPSpro N32 ABI Handbook, Document Number: 007-2816-004
5139
5140 Function results are returned in $2 (and $3 if needed), or $f0 (and $f2
5141 if needed), as appropriate for the type. Composite results (struct,
5142 union, or array) are returned in $2/$f0 and $3/$f2 according to the
5143 following rules:
5144
5145 * A struct with only one or two floating point fields is returned in $f0
5146 (and $f2 if necessary). This is a generalization of the Fortran COMPLEX
5147 case.
5148
f08877ba 5149 * Any other composite results of at most 128 bits are returned in
b18bb924
MR
5150 $2 (first 64 bits) and $3 (remainder, if necessary).
5151
5152 * Larger composite results are handled by converting the function to a
5153 procedure with an implicit first parameter, which is a pointer to an area
5154 reserved by the caller to receive the result. [The o32-bit ABI requires
5155 that all composite results be handled by conversion to implicit first
5156 parameters. The MIPS/SGI Fortran implementation has always made a
5157 specific exception to return COMPLEX results in the floating point
5158 registers.] */
5159
f08877ba 5160 if (TYPE_LENGTH (type) > 2 * MIPS64_REGSIZE)
6d82d43b 5161 return RETURN_VALUE_STRUCT_CONVENTION;
d05f6826
DJ
5162 else if (TYPE_CODE (type) == TYPE_CODE_FLT
5163 && TYPE_LENGTH (type) == 16
5164 && tdep->mips_fpu_type != MIPS_FPU_NONE)
5165 {
5166 /* A 128-bit floating-point value fills both $f0 and $f2. The
5167 two registers are used in the same as memory order, so the
5168 eight bytes with the lower memory address are in $f0. */
5169 if (mips_debug)
5170 fprintf_unfiltered (gdb_stderr, "Return float in $f0 and $f2\n");
ba32f989 5171 mips_xfer_register (gdbarch, regcache,
dca9aa3a
MR
5172 (gdbarch_num_regs (gdbarch)
5173 + mips_regnum (gdbarch)->fp0),
72a155b4 5174 8, gdbarch_byte_order (gdbarch),
4c6b5505 5175 readbuf, writebuf, 0);
ba32f989 5176 mips_xfer_register (gdbarch, regcache,
dca9aa3a
MR
5177 (gdbarch_num_regs (gdbarch)
5178 + mips_regnum (gdbarch)->fp0 + 2),
72a155b4 5179 8, gdbarch_byte_order (gdbarch),
4c6b5505 5180 readbuf ? readbuf + 8 : readbuf,
d05f6826
DJ
5181 writebuf ? writebuf + 8 : writebuf, 0);
5182 return RETURN_VALUE_REGISTER_CONVENTION;
5183 }
6d82d43b
AC
5184 else if (TYPE_CODE (type) == TYPE_CODE_FLT
5185 && tdep->mips_fpu_type != MIPS_FPU_NONE)
5186 {
59aa1faa 5187 /* A single or double floating-point value that fits in FP0. */
6d82d43b
AC
5188 if (mips_debug)
5189 fprintf_unfiltered (gdb_stderr, "Return float in $fp0\n");
ba32f989 5190 mips_xfer_register (gdbarch, regcache,
dca9aa3a
MR
5191 (gdbarch_num_regs (gdbarch)
5192 + mips_regnum (gdbarch)->fp0),
6d82d43b 5193 TYPE_LENGTH (type),
72a155b4 5194 gdbarch_byte_order (gdbarch),
4c6b5505 5195 readbuf, writebuf, 0);
6d82d43b
AC
5196 return RETURN_VALUE_REGISTER_CONVENTION;
5197 }
5198 else if (TYPE_CODE (type) == TYPE_CODE_STRUCT
5199 && TYPE_NFIELDS (type) <= 2
5200 && TYPE_NFIELDS (type) >= 1
5201 && ((TYPE_NFIELDS (type) == 1
b18bb924 5202 && (TYPE_CODE (check_typedef (TYPE_FIELD_TYPE (type, 0)))
6d82d43b
AC
5203 == TYPE_CODE_FLT))
5204 || (TYPE_NFIELDS (type) == 2
b18bb924 5205 && (TYPE_CODE (check_typedef (TYPE_FIELD_TYPE (type, 0)))
6d82d43b 5206 == TYPE_CODE_FLT)
b18bb924 5207 && (TYPE_CODE (check_typedef (TYPE_FIELD_TYPE (type, 1)))
5b68030f 5208 == TYPE_CODE_FLT))))
6d82d43b
AC
5209 {
5210 /* A struct that contains one or two floats. Each value is part
5211 in the least significant part of their floating point
5b68030f 5212 register (or GPR, for soft float). */
6d82d43b
AC
5213 int regnum;
5214 int field;
5b68030f
JM
5215 for (field = 0, regnum = (tdep->mips_fpu_type != MIPS_FPU_NONE
5216 ? mips_regnum (gdbarch)->fp0
5217 : MIPS_V0_REGNUM);
6d82d43b
AC
5218 field < TYPE_NFIELDS (type); field++, regnum += 2)
5219 {
5220 int offset = (FIELD_BITPOS (TYPE_FIELDS (type)[field])
5221 / TARGET_CHAR_BIT);
5222 if (mips_debug)
5223 fprintf_unfiltered (gdb_stderr, "Return float struct+%d\n",
5224 offset);
5b68030f
JM
5225 if (TYPE_LENGTH (TYPE_FIELD_TYPE (type, field)) == 16)
5226 {
5227 /* A 16-byte long double field goes in two consecutive
5228 registers. */
5229 mips_xfer_register (gdbarch, regcache,
5230 gdbarch_num_regs (gdbarch) + regnum,
5231 8,
5232 gdbarch_byte_order (gdbarch),
5233 readbuf, writebuf, offset);
5234 mips_xfer_register (gdbarch, regcache,
5235 gdbarch_num_regs (gdbarch) + regnum + 1,
5236 8,
5237 gdbarch_byte_order (gdbarch),
5238 readbuf, writebuf, offset + 8);
5239 }
5240 else
5241 mips_xfer_register (gdbarch, regcache,
5242 gdbarch_num_regs (gdbarch) + regnum,
5243 TYPE_LENGTH (TYPE_FIELD_TYPE (type, field)),
5244 gdbarch_byte_order (gdbarch),
5245 readbuf, writebuf, offset);
6d82d43b
AC
5246 }
5247 return RETURN_VALUE_REGISTER_CONVENTION;
5248 }
5249 else if (TYPE_CODE (type) == TYPE_CODE_STRUCT
f08877ba
JB
5250 || TYPE_CODE (type) == TYPE_CODE_UNION
5251 || TYPE_CODE (type) == TYPE_CODE_ARRAY)
6d82d43b 5252 {
f08877ba 5253 /* A composite type. Extract the left justified value,
6d82d43b
AC
5254 regardless of the byte order. I.e. DO NOT USE
5255 mips_xfer_lower. */
5256 int offset;
5257 int regnum;
4c7d22cb 5258 for (offset = 0, regnum = MIPS_V0_REGNUM;
6d82d43b 5259 offset < TYPE_LENGTH (type);
72a155b4 5260 offset += register_size (gdbarch, regnum), regnum++)
6d82d43b 5261 {
72a155b4 5262 int xfer = register_size (gdbarch, regnum);
6d82d43b
AC
5263 if (offset + xfer > TYPE_LENGTH (type))
5264 xfer = TYPE_LENGTH (type) - offset;
5265 if (mips_debug)
5266 fprintf_unfiltered (gdb_stderr, "Return struct+%d:%d in $%d\n",
5267 offset, xfer, regnum);
ba32f989
DJ
5268 mips_xfer_register (gdbarch, regcache,
5269 gdbarch_num_regs (gdbarch) + regnum,
72a155b4
UW
5270 xfer, BFD_ENDIAN_UNKNOWN, readbuf, writebuf,
5271 offset);
6d82d43b
AC
5272 }
5273 return RETURN_VALUE_REGISTER_CONVENTION;
5274 }
5275 else
5276 {
5277 /* A scalar extract each part but least-significant-byte
5278 justified. */
5279 int offset;
5280 int regnum;
4c7d22cb 5281 for (offset = 0, regnum = MIPS_V0_REGNUM;
6d82d43b 5282 offset < TYPE_LENGTH (type);
72a155b4 5283 offset += register_size (gdbarch, regnum), regnum++)
6d82d43b 5284 {
72a155b4 5285 int xfer = register_size (gdbarch, regnum);
6d82d43b
AC
5286 if (offset + xfer > TYPE_LENGTH (type))
5287 xfer = TYPE_LENGTH (type) - offset;
5288 if (mips_debug)
5289 fprintf_unfiltered (gdb_stderr, "Return scalar+%d:%d in $%d\n",
5290 offset, xfer, regnum);
ba32f989
DJ
5291 mips_xfer_register (gdbarch, regcache,
5292 gdbarch_num_regs (gdbarch) + regnum,
72a155b4 5293 xfer, gdbarch_byte_order (gdbarch),
4c6b5505 5294 readbuf, writebuf, offset);
6d82d43b
AC
5295 }
5296 return RETURN_VALUE_REGISTER_CONVENTION;
5297 }
5298}
5299
6a3a010b
MR
5300/* Which registers to use for passing floating-point values between
5301 function calls, one of floating-point, general and both kinds of
5302 registers. O32 and O64 use different register kinds for standard
5303 MIPS and MIPS16 code; to make the handling of cases where we may
5304 not know what kind of code is being used (e.g. no debug information)
5305 easier we sometimes use both kinds. */
5306
5307enum mips_fval_reg
5308{
5309 mips_fval_fpr,
5310 mips_fval_gpr,
5311 mips_fval_both
5312};
5313
6d82d43b
AC
5314/* O32 ABI stuff. */
5315
5316static CORE_ADDR
7d9b040b 5317mips_o32_push_dummy_call (struct gdbarch *gdbarch, struct value *function,
6d82d43b
AC
5318 struct regcache *regcache, CORE_ADDR bp_addr,
5319 int nargs, struct value **args, CORE_ADDR sp,
5320 int struct_return, CORE_ADDR struct_addr)
5321{
5322 int argreg;
5323 int float_argreg;
5324 int argnum;
5325 int len = 0;
5326 int stack_offset = 0;
e17a4113 5327 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
7d9b040b 5328 CORE_ADDR func_addr = find_function_addr (function, NULL);
6d82d43b
AC
5329
5330 /* For shared libraries, "t9" needs to point at the function
5331 address. */
4c7d22cb 5332 regcache_cooked_write_signed (regcache, MIPS_T9_REGNUM, func_addr);
6d82d43b
AC
5333
5334 /* Set the return address register to point to the entry point of
5335 the program, where a breakpoint lies in wait. */
4c7d22cb 5336 regcache_cooked_write_signed (regcache, MIPS_RA_REGNUM, bp_addr);
6d82d43b
AC
5337
5338 /* First ensure that the stack and structure return address (if any)
5339 are properly aligned. The stack has to be at least 64-bit
5340 aligned even on 32-bit machines, because doubles must be 64-bit
ebafbe83
MS
5341 aligned. For n32 and n64, stack frames need to be 128-bit
5342 aligned, so we round to this widest known alignment. */
5343
5b03f266
AC
5344 sp = align_down (sp, 16);
5345 struct_addr = align_down (struct_addr, 16);
ebafbe83
MS
5346
5347 /* Now make space on the stack for the args. */
5348 for (argnum = 0; argnum < nargs; argnum++)
968b5391
MR
5349 {
5350 struct type *arg_type = check_typedef (value_type (args[argnum]));
968b5391
MR
5351
5352 /* Align to double-word if necessary. */
2afd3f0a 5353 if (mips_type_needs_double_align (arg_type))
1a69e1e4 5354 len = align_up (len, MIPS32_REGSIZE * 2);
968b5391 5355 /* Allocate space on the stack. */
354ecfd5 5356 len += align_up (TYPE_LENGTH (arg_type), MIPS32_REGSIZE);
968b5391 5357 }
5b03f266 5358 sp -= align_up (len, 16);
ebafbe83
MS
5359
5360 if (mips_debug)
6d82d43b 5361 fprintf_unfiltered (gdb_stdlog,
5af949e3
UW
5362 "mips_o32_push_dummy_call: sp=%s allocated %ld\n",
5363 paddress (gdbarch, sp), (long) align_up (len, 16));
ebafbe83
MS
5364
5365 /* Initialize the integer and float register pointers. */
4c7d22cb 5366 argreg = MIPS_A0_REGNUM;
72a155b4 5367 float_argreg = mips_fpa0_regnum (gdbarch);
ebafbe83 5368
bcb0cc15 5369 /* The struct_return pointer occupies the first parameter-passing reg. */
ebafbe83
MS
5370 if (struct_return)
5371 {
5372 if (mips_debug)
5373 fprintf_unfiltered (gdb_stdlog,
025bb325
MS
5374 "mips_o32_push_dummy_call: "
5375 "struct_return reg=%d %s\n",
5af949e3 5376 argreg, paddress (gdbarch, struct_addr));
9c9acae0 5377 regcache_cooked_write_unsigned (regcache, argreg++, struct_addr);
1a69e1e4 5378 stack_offset += MIPS32_REGSIZE;
ebafbe83
MS
5379 }
5380
5381 /* Now load as many as possible of the first arguments into
5382 registers, and push the rest onto the stack. Loop thru args
5383 from first to last. */
5384 for (argnum = 0; argnum < nargs; argnum++)
5385 {
47a35522 5386 const gdb_byte *val;
ebafbe83 5387 struct value *arg = args[argnum];
4991999e 5388 struct type *arg_type = check_typedef (value_type (arg));
ebafbe83
MS
5389 int len = TYPE_LENGTH (arg_type);
5390 enum type_code typecode = TYPE_CODE (arg_type);
5391
5392 if (mips_debug)
5393 fprintf_unfiltered (gdb_stdlog,
25ab4790 5394 "mips_o32_push_dummy_call: %d len=%d type=%d",
46cac009
AC
5395 argnum + 1, len, (int) typecode);
5396
47a35522 5397 val = value_contents (arg);
46cac009
AC
5398
5399 /* 32-bit ABIs always start floating point arguments in an
5400 even-numbered floating point register. Round the FP register
5401 up before the check to see if there are any FP registers
6a3a010b
MR
5402 left. O32 targets also pass the FP in the integer registers
5403 so also round up normal registers. */
74ed0bb4 5404 if (fp_register_arg_p (gdbarch, typecode, arg_type))
46cac009
AC
5405 {
5406 if ((float_argreg & 1))
5407 float_argreg++;
5408 }
5409
5410 /* Floating point arguments passed in registers have to be
6a3a010b
MR
5411 treated specially. On 32-bit architectures, doubles are
5412 passed in register pairs; the even FP register gets the
5413 low word, and the odd FP register gets the high word.
5414 On O32, the first two floating point arguments are also
5415 copied to general registers, following their memory order,
5416 because MIPS16 functions don't use float registers for
5417 arguments. This duplication of arguments in general
5418 registers can't hurt non-MIPS16 functions, because those
5419 registers are normally skipped. */
46cac009 5420
74ed0bb4
MD
5421 if (fp_register_arg_p (gdbarch, typecode, arg_type)
5422 && float_argreg <= MIPS_LAST_FP_ARG_REGNUM (gdbarch))
46cac009 5423 {
8b07f6d8 5424 if (register_size (gdbarch, float_argreg) < 8 && len == 8)
46cac009 5425 {
6a3a010b
MR
5426 int freg_offset = gdbarch_byte_order (gdbarch)
5427 == BFD_ENDIAN_BIG ? 1 : 0;
46cac009
AC
5428 unsigned long regval;
5429
6a3a010b
MR
5430 /* First word. */
5431 regval = extract_unsigned_integer (val, 4, byte_order);
46cac009
AC
5432 if (mips_debug)
5433 fprintf_unfiltered (gdb_stdlog, " - fpreg=%d val=%s",
6a3a010b
MR
5434 float_argreg + freg_offset,
5435 phex (regval, 4));
025bb325 5436 regcache_cooked_write_unsigned (regcache,
6a3a010b
MR
5437 float_argreg++ + freg_offset,
5438 regval);
46cac009
AC
5439 if (mips_debug)
5440 fprintf_unfiltered (gdb_stdlog, " - reg=%d val=%s",
5441 argreg, phex (regval, 4));
9c9acae0 5442 regcache_cooked_write_unsigned (regcache, argreg++, regval);
46cac009 5443
6a3a010b
MR
5444 /* Second word. */
5445 regval = extract_unsigned_integer (val + 4, 4, byte_order);
46cac009
AC
5446 if (mips_debug)
5447 fprintf_unfiltered (gdb_stdlog, " - fpreg=%d val=%s",
6a3a010b
MR
5448 float_argreg - freg_offset,
5449 phex (regval, 4));
025bb325 5450 regcache_cooked_write_unsigned (regcache,
6a3a010b
MR
5451 float_argreg++ - freg_offset,
5452 regval);
46cac009
AC
5453 if (mips_debug)
5454 fprintf_unfiltered (gdb_stdlog, " - reg=%d val=%s",
5455 argreg, phex (regval, 4));
9c9acae0 5456 regcache_cooked_write_unsigned (regcache, argreg++, regval);
46cac009
AC
5457 }
5458 else
5459 {
5460 /* This is a floating point value that fits entirely
5461 in a single register. */
5462 /* On 32 bit ABI's the float_argreg is further adjusted
6d82d43b 5463 above to ensure that it is even register aligned. */
e17a4113 5464 LONGEST regval = extract_unsigned_integer (val, len, byte_order);
46cac009
AC
5465 if (mips_debug)
5466 fprintf_unfiltered (gdb_stdlog, " - fpreg=%d val=%s",
5467 float_argreg, phex (regval, len));
025bb325
MS
5468 regcache_cooked_write_unsigned (regcache,
5469 float_argreg++, regval);
5b68030f
JM
5470 /* Although two FP registers are reserved for each
5471 argument, only one corresponding integer register is
5472 reserved. */
46cac009
AC
5473 if (mips_debug)
5474 fprintf_unfiltered (gdb_stdlog, " - reg=%d val=%s",
5475 argreg, phex (regval, len));
5b68030f 5476 regcache_cooked_write_unsigned (regcache, argreg++, regval);
46cac009
AC
5477 }
5478 /* Reserve space for the FP register. */
1a69e1e4 5479 stack_offset += align_up (len, MIPS32_REGSIZE);
46cac009
AC
5480 }
5481 else
5482 {
5483 /* Copy the argument to general registers or the stack in
5484 register-sized pieces. Large arguments are split between
5485 registers and stack. */
1a69e1e4
DJ
5486 /* Note: structs whose size is not a multiple of MIPS32_REGSIZE
5487 are treated specially: Irix cc passes
d5ac5a39
AC
5488 them in registers where gcc sometimes puts them on the
5489 stack. For maximum compatibility, we will put them in
5490 both places. */
1a69e1e4
DJ
5491 int odd_sized_struct = (len > MIPS32_REGSIZE
5492 && len % MIPS32_REGSIZE != 0);
46cac009
AC
5493 /* Structures should be aligned to eight bytes (even arg registers)
5494 on MIPS_ABI_O32, if their first member has double precision. */
2afd3f0a 5495 if (mips_type_needs_double_align (arg_type))
46cac009
AC
5496 {
5497 if ((argreg & 1))
968b5391
MR
5498 {
5499 argreg++;
1a69e1e4 5500 stack_offset += MIPS32_REGSIZE;
968b5391 5501 }
46cac009 5502 }
46cac009
AC
5503 while (len > 0)
5504 {
5505 /* Remember if the argument was written to the stack. */
5506 int stack_used_p = 0;
1a69e1e4 5507 int partial_len = (len < MIPS32_REGSIZE ? len : MIPS32_REGSIZE);
46cac009
AC
5508
5509 if (mips_debug)
5510 fprintf_unfiltered (gdb_stdlog, " -- partial=%d",
5511 partial_len);
5512
5513 /* Write this portion of the argument to the stack. */
74ed0bb4 5514 if (argreg > MIPS_LAST_ARG_REGNUM (gdbarch)
968b5391 5515 || odd_sized_struct)
46cac009
AC
5516 {
5517 /* Should shorter than int integer values be
025bb325 5518 promoted to int before being stored? */
46cac009
AC
5519 int longword_offset = 0;
5520 CORE_ADDR addr;
5521 stack_used_p = 1;
46cac009
AC
5522
5523 if (mips_debug)
5524 {
5af949e3
UW
5525 fprintf_unfiltered (gdb_stdlog, " - stack_offset=%s",
5526 paddress (gdbarch, stack_offset));
5527 fprintf_unfiltered (gdb_stdlog, " longword_offset=%s",
5528 paddress (gdbarch, longword_offset));
46cac009
AC
5529 }
5530
5531 addr = sp + stack_offset + longword_offset;
5532
5533 if (mips_debug)
5534 {
5535 int i;
5af949e3
UW
5536 fprintf_unfiltered (gdb_stdlog, " @%s ",
5537 paddress (gdbarch, addr));
46cac009
AC
5538 for (i = 0; i < partial_len; i++)
5539 {
6d82d43b 5540 fprintf_unfiltered (gdb_stdlog, "%02x",
46cac009
AC
5541 val[i] & 0xff);
5542 }
5543 }
5544 write_memory (addr, val, partial_len);
5545 }
5546
5547 /* Note!!! This is NOT an else clause. Odd sized
968b5391 5548 structs may go thru BOTH paths. */
46cac009 5549 /* Write this portion of the argument to a general
6d82d43b 5550 purpose register. */
74ed0bb4 5551 if (argreg <= MIPS_LAST_ARG_REGNUM (gdbarch))
46cac009 5552 {
e17a4113
UW
5553 LONGEST regval = extract_signed_integer (val, partial_len,
5554 byte_order);
4246e332 5555 /* Value may need to be sign extended, because
1b13c4f6 5556 mips_isa_regsize() != mips_abi_regsize(). */
46cac009
AC
5557
5558 /* A non-floating-point argument being passed in a
5559 general register. If a struct or union, and if
5560 the remaining length is smaller than the register
5561 size, we have to adjust the register value on
5562 big endian targets.
5563
5564 It does not seem to be necessary to do the
5565 same for integral types.
5566
5567 Also don't do this adjustment on O64 binaries.
5568
5569 cagney/2001-07-23: gdb/179: Also, GCC, when
5570 outputting LE O32 with sizeof (struct) <
e914cb17
MR
5571 mips_abi_regsize(), generates a left shift
5572 as part of storing the argument in a register
5573 (the left shift isn't generated when
1b13c4f6 5574 sizeof (struct) >= mips_abi_regsize()). Since
480d3dd2
AC
5575 it is quite possible that this is GCC
5576 contradicting the LE/O32 ABI, GDB has not been
5577 adjusted to accommodate this. Either someone
5578 needs to demonstrate that the LE/O32 ABI
5579 specifies such a left shift OR this new ABI gets
5580 identified as such and GDB gets tweaked
5581 accordingly. */
5582
72a155b4 5583 if (gdbarch_byte_order (gdbarch) == BFD_ENDIAN_BIG
1a69e1e4 5584 && partial_len < MIPS32_REGSIZE
06f9a1af
MR
5585 && (typecode == TYPE_CODE_STRUCT
5586 || typecode == TYPE_CODE_UNION))
1a69e1e4 5587 regval <<= ((MIPS32_REGSIZE - partial_len)
9ecf7166 5588 * TARGET_CHAR_BIT);
46cac009
AC
5589
5590 if (mips_debug)
5591 fprintf_filtered (gdb_stdlog, " - reg=%d val=%s",
5592 argreg,
1a69e1e4 5593 phex (regval, MIPS32_REGSIZE));
9c9acae0 5594 regcache_cooked_write_unsigned (regcache, argreg, regval);
46cac009
AC
5595 argreg++;
5596
5597 /* Prevent subsequent floating point arguments from
5598 being passed in floating point registers. */
74ed0bb4 5599 float_argreg = MIPS_LAST_FP_ARG_REGNUM (gdbarch) + 1;
46cac009
AC
5600 }
5601
5602 len -= partial_len;
5603 val += partial_len;
5604
b021a221
MS
5605 /* Compute the offset into the stack at which we will
5606 copy the next parameter.
46cac009 5607
6d82d43b
AC
5608 In older ABIs, the caller reserved space for
5609 registers that contained arguments. This was loosely
5610 refered to as their "home". Consequently, space is
5611 always allocated. */
46cac009 5612
1a69e1e4 5613 stack_offset += align_up (partial_len, MIPS32_REGSIZE);
46cac009
AC
5614 }
5615 }
5616 if (mips_debug)
5617 fprintf_unfiltered (gdb_stdlog, "\n");
5618 }
5619
f10683bb 5620 regcache_cooked_write_signed (regcache, MIPS_SP_REGNUM, sp);
310e9b6a 5621
46cac009
AC
5622 /* Return adjusted stack pointer. */
5623 return sp;
5624}
5625
6d82d43b 5626static enum return_value_convention
6a3a010b 5627mips_o32_return_value (struct gdbarch *gdbarch, struct value *function,
c055b101 5628 struct type *type, struct regcache *regcache,
47a35522 5629 gdb_byte *readbuf, const gdb_byte *writebuf)
6d82d43b 5630{
6a3a010b 5631 CORE_ADDR func_addr = function ? find_function_addr (function, NULL) : 0;
4cc0665f 5632 int mips16 = mips_pc_is_mips16 (gdbarch, func_addr);
72a155b4 5633 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
6a3a010b 5634 enum mips_fval_reg fval_reg;
6d82d43b 5635
6a3a010b 5636 fval_reg = readbuf ? mips16 ? mips_fval_gpr : mips_fval_fpr : mips_fval_both;
6d82d43b
AC
5637 if (TYPE_CODE (type) == TYPE_CODE_STRUCT
5638 || TYPE_CODE (type) == TYPE_CODE_UNION
5639 || TYPE_CODE (type) == TYPE_CODE_ARRAY)
5640 return RETURN_VALUE_STRUCT_CONVENTION;
5641 else if (TYPE_CODE (type) == TYPE_CODE_FLT
5642 && TYPE_LENGTH (type) == 4 && tdep->mips_fpu_type != MIPS_FPU_NONE)
5643 {
6a3a010b
MR
5644 /* A single-precision floating-point value. If reading in or copying,
5645 then we get it from/put it to FP0 for standard MIPS code or GPR2
5646 for MIPS16 code. If writing out only, then we put it to both FP0
5647 and GPR2. We do not support reading in with no function known, if
5648 this safety check ever triggers, then we'll have to try harder. */
5649 gdb_assert (function || !readbuf);
6d82d43b 5650 if (mips_debug)
6a3a010b
MR
5651 switch (fval_reg)
5652 {
5653 case mips_fval_fpr:
5654 fprintf_unfiltered (gdb_stderr, "Return float in $fp0\n");
5655 break;
5656 case mips_fval_gpr:
5657 fprintf_unfiltered (gdb_stderr, "Return float in $2\n");
5658 break;
5659 case mips_fval_both:
5660 fprintf_unfiltered (gdb_stderr, "Return float in $fp0 and $2\n");
5661 break;
5662 }
5663 if (fval_reg != mips_fval_gpr)
5664 mips_xfer_register (gdbarch, regcache,
5665 (gdbarch_num_regs (gdbarch)
5666 + mips_regnum (gdbarch)->fp0),
5667 TYPE_LENGTH (type),
5668 gdbarch_byte_order (gdbarch),
5669 readbuf, writebuf, 0);
5670 if (fval_reg != mips_fval_fpr)
5671 mips_xfer_register (gdbarch, regcache,
5672 gdbarch_num_regs (gdbarch) + 2,
5673 TYPE_LENGTH (type),
5674 gdbarch_byte_order (gdbarch),
5675 readbuf, writebuf, 0);
6d82d43b
AC
5676 return RETURN_VALUE_REGISTER_CONVENTION;
5677 }
5678 else if (TYPE_CODE (type) == TYPE_CODE_FLT
5679 && TYPE_LENGTH (type) == 8 && tdep->mips_fpu_type != MIPS_FPU_NONE)
5680 {
6a3a010b
MR
5681 /* A double-precision floating-point value. If reading in or copying,
5682 then we get it from/put it to FP1 and FP0 for standard MIPS code or
5683 GPR2 and GPR3 for MIPS16 code. If writing out only, then we put it
5684 to both FP1/FP0 and GPR2/GPR3. We do not support reading in with
5685 no function known, if this safety check ever triggers, then we'll
5686 have to try harder. */
5687 gdb_assert (function || !readbuf);
6d82d43b 5688 if (mips_debug)
6a3a010b
MR
5689 switch (fval_reg)
5690 {
5691 case mips_fval_fpr:
5692 fprintf_unfiltered (gdb_stderr, "Return float in $fp1/$fp0\n");
5693 break;
5694 case mips_fval_gpr:
5695 fprintf_unfiltered (gdb_stderr, "Return float in $2/$3\n");
5696 break;
5697 case mips_fval_both:
5698 fprintf_unfiltered (gdb_stderr,
5699 "Return float in $fp1/$fp0 and $2/$3\n");
5700 break;
5701 }
5702 if (fval_reg != mips_fval_gpr)
6d82d43b 5703 {
6a3a010b
MR
5704 /* The most significant part goes in FP1, and the least significant
5705 in FP0. */
5706 switch (gdbarch_byte_order (gdbarch))
5707 {
5708 case BFD_ENDIAN_LITTLE:
5709 mips_xfer_register (gdbarch, regcache,
5710 (gdbarch_num_regs (gdbarch)
5711 + mips_regnum (gdbarch)->fp0 + 0),
5712 4, gdbarch_byte_order (gdbarch),
5713 readbuf, writebuf, 0);
5714 mips_xfer_register (gdbarch, regcache,
5715 (gdbarch_num_regs (gdbarch)
5716 + mips_regnum (gdbarch)->fp0 + 1),
5717 4, gdbarch_byte_order (gdbarch),
5718 readbuf, writebuf, 4);
5719 break;
5720 case BFD_ENDIAN_BIG:
5721 mips_xfer_register (gdbarch, regcache,
5722 (gdbarch_num_regs (gdbarch)
5723 + mips_regnum (gdbarch)->fp0 + 1),
5724 4, gdbarch_byte_order (gdbarch),
5725 readbuf, writebuf, 0);
5726 mips_xfer_register (gdbarch, regcache,
5727 (gdbarch_num_regs (gdbarch)
5728 + mips_regnum (gdbarch)->fp0 + 0),
5729 4, gdbarch_byte_order (gdbarch),
5730 readbuf, writebuf, 4);
5731 break;
5732 default:
5733 internal_error (__FILE__, __LINE__, _("bad switch"));
5734 }
5735 }
5736 if (fval_reg != mips_fval_fpr)
5737 {
5738 /* The two 32-bit parts are always placed in GPR2 and GPR3
5739 following these registers' memory order. */
ba32f989 5740 mips_xfer_register (gdbarch, regcache,
6a3a010b 5741 gdbarch_num_regs (gdbarch) + 2,
72a155b4 5742 4, gdbarch_byte_order (gdbarch),
4c6b5505 5743 readbuf, writebuf, 0);
ba32f989 5744 mips_xfer_register (gdbarch, regcache,
6a3a010b 5745 gdbarch_num_regs (gdbarch) + 3,
72a155b4 5746 4, gdbarch_byte_order (gdbarch),
4c6b5505 5747 readbuf, writebuf, 4);
6d82d43b
AC
5748 }
5749 return RETURN_VALUE_REGISTER_CONVENTION;
5750 }
5751#if 0
5752 else if (TYPE_CODE (type) == TYPE_CODE_STRUCT
5753 && TYPE_NFIELDS (type) <= 2
5754 && TYPE_NFIELDS (type) >= 1
5755 && ((TYPE_NFIELDS (type) == 1
5756 && (TYPE_CODE (TYPE_FIELD_TYPE (type, 0))
5757 == TYPE_CODE_FLT))
5758 || (TYPE_NFIELDS (type) == 2
5759 && (TYPE_CODE (TYPE_FIELD_TYPE (type, 0))
5760 == TYPE_CODE_FLT)
5761 && (TYPE_CODE (TYPE_FIELD_TYPE (type, 1))
5762 == TYPE_CODE_FLT)))
5763 && tdep->mips_fpu_type != MIPS_FPU_NONE)
5764 {
5765 /* A struct that contains one or two floats. Each value is part
5766 in the least significant part of their floating point
5767 register.. */
870cd05e 5768 gdb_byte reg[MAX_REGISTER_SIZE];
6d82d43b
AC
5769 int regnum;
5770 int field;
72a155b4 5771 for (field = 0, regnum = mips_regnum (gdbarch)->fp0;
6d82d43b
AC
5772 field < TYPE_NFIELDS (type); field++, regnum += 2)
5773 {
5774 int offset = (FIELD_BITPOS (TYPE_FIELDS (type)[field])
5775 / TARGET_CHAR_BIT);
5776 if (mips_debug)
5777 fprintf_unfiltered (gdb_stderr, "Return float struct+%d\n",
5778 offset);
ba32f989
DJ
5779 mips_xfer_register (gdbarch, regcache,
5780 gdbarch_num_regs (gdbarch) + regnum,
6d82d43b 5781 TYPE_LENGTH (TYPE_FIELD_TYPE (type, field)),
72a155b4 5782 gdbarch_byte_order (gdbarch),
4c6b5505 5783 readbuf, writebuf, offset);
6d82d43b
AC
5784 }
5785 return RETURN_VALUE_REGISTER_CONVENTION;
5786 }
5787#endif
5788#if 0
5789 else if (TYPE_CODE (type) == TYPE_CODE_STRUCT
5790 || TYPE_CODE (type) == TYPE_CODE_UNION)
5791 {
5792 /* A structure or union. Extract the left justified value,
5793 regardless of the byte order. I.e. DO NOT USE
5794 mips_xfer_lower. */
5795 int offset;
5796 int regnum;
4c7d22cb 5797 for (offset = 0, regnum = MIPS_V0_REGNUM;
6d82d43b 5798 offset < TYPE_LENGTH (type);
72a155b4 5799 offset += register_size (gdbarch, regnum), regnum++)
6d82d43b 5800 {
72a155b4 5801 int xfer = register_size (gdbarch, regnum);
6d82d43b
AC
5802 if (offset + xfer > TYPE_LENGTH (type))
5803 xfer = TYPE_LENGTH (type) - offset;
5804 if (mips_debug)
5805 fprintf_unfiltered (gdb_stderr, "Return struct+%d:%d in $%d\n",
5806 offset, xfer, regnum);
ba32f989
DJ
5807 mips_xfer_register (gdbarch, regcache,
5808 gdbarch_num_regs (gdbarch) + regnum, xfer,
6d82d43b
AC
5809 BFD_ENDIAN_UNKNOWN, readbuf, writebuf, offset);
5810 }
5811 return RETURN_VALUE_REGISTER_CONVENTION;
5812 }
5813#endif
5814 else
5815 {
5816 /* A scalar extract each part but least-significant-byte
5817 justified. o32 thinks registers are 4 byte, regardless of
1a69e1e4 5818 the ISA. */
6d82d43b
AC
5819 int offset;
5820 int regnum;
4c7d22cb 5821 for (offset = 0, regnum = MIPS_V0_REGNUM;
6d82d43b 5822 offset < TYPE_LENGTH (type);
1a69e1e4 5823 offset += MIPS32_REGSIZE, regnum++)
6d82d43b 5824 {
1a69e1e4 5825 int xfer = MIPS32_REGSIZE;
6d82d43b
AC
5826 if (offset + xfer > TYPE_LENGTH (type))
5827 xfer = TYPE_LENGTH (type) - offset;
5828 if (mips_debug)
5829 fprintf_unfiltered (gdb_stderr, "Return scalar+%d:%d in $%d\n",
5830 offset, xfer, regnum);
ba32f989
DJ
5831 mips_xfer_register (gdbarch, regcache,
5832 gdbarch_num_regs (gdbarch) + regnum, xfer,
72a155b4 5833 gdbarch_byte_order (gdbarch),
4c6b5505 5834 readbuf, writebuf, offset);
6d82d43b
AC
5835 }
5836 return RETURN_VALUE_REGISTER_CONVENTION;
5837 }
5838}
5839
5840/* O64 ABI. This is a hacked up kind of 64-bit version of the o32
5841 ABI. */
46cac009
AC
5842
5843static CORE_ADDR
7d9b040b 5844mips_o64_push_dummy_call (struct gdbarch *gdbarch, struct value *function,
6d82d43b
AC
5845 struct regcache *regcache, CORE_ADDR bp_addr,
5846 int nargs,
5847 struct value **args, CORE_ADDR sp,
5848 int struct_return, CORE_ADDR struct_addr)
46cac009
AC
5849{
5850 int argreg;
5851 int float_argreg;
5852 int argnum;
5853 int len = 0;
5854 int stack_offset = 0;
e17a4113 5855 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
7d9b040b 5856 CORE_ADDR func_addr = find_function_addr (function, NULL);
46cac009 5857
25ab4790
AC
5858 /* For shared libraries, "t9" needs to point at the function
5859 address. */
4c7d22cb 5860 regcache_cooked_write_signed (regcache, MIPS_T9_REGNUM, func_addr);
25ab4790
AC
5861
5862 /* Set the return address register to point to the entry point of
5863 the program, where a breakpoint lies in wait. */
4c7d22cb 5864 regcache_cooked_write_signed (regcache, MIPS_RA_REGNUM, bp_addr);
25ab4790 5865
46cac009
AC
5866 /* First ensure that the stack and structure return address (if any)
5867 are properly aligned. The stack has to be at least 64-bit
5868 aligned even on 32-bit machines, because doubles must be 64-bit
5869 aligned. For n32 and n64, stack frames need to be 128-bit
5870 aligned, so we round to this widest known alignment. */
5871
5b03f266
AC
5872 sp = align_down (sp, 16);
5873 struct_addr = align_down (struct_addr, 16);
46cac009
AC
5874
5875 /* Now make space on the stack for the args. */
5876 for (argnum = 0; argnum < nargs; argnum++)
968b5391
MR
5877 {
5878 struct type *arg_type = check_typedef (value_type (args[argnum]));
968b5391 5879
968b5391 5880 /* Allocate space on the stack. */
354ecfd5 5881 len += align_up (TYPE_LENGTH (arg_type), MIPS64_REGSIZE);
968b5391 5882 }
5b03f266 5883 sp -= align_up (len, 16);
46cac009
AC
5884
5885 if (mips_debug)
6d82d43b 5886 fprintf_unfiltered (gdb_stdlog,
5af949e3
UW
5887 "mips_o64_push_dummy_call: sp=%s allocated %ld\n",
5888 paddress (gdbarch, sp), (long) align_up (len, 16));
46cac009
AC
5889
5890 /* Initialize the integer and float register pointers. */
4c7d22cb 5891 argreg = MIPS_A0_REGNUM;
72a155b4 5892 float_argreg = mips_fpa0_regnum (gdbarch);
46cac009
AC
5893
5894 /* The struct_return pointer occupies the first parameter-passing reg. */
5895 if (struct_return)
5896 {
5897 if (mips_debug)
5898 fprintf_unfiltered (gdb_stdlog,
025bb325
MS
5899 "mips_o64_push_dummy_call: "
5900 "struct_return reg=%d %s\n",
5af949e3 5901 argreg, paddress (gdbarch, struct_addr));
9c9acae0 5902 regcache_cooked_write_unsigned (regcache, argreg++, struct_addr);
1a69e1e4 5903 stack_offset += MIPS64_REGSIZE;
46cac009
AC
5904 }
5905
5906 /* Now load as many as possible of the first arguments into
5907 registers, and push the rest onto the stack. Loop thru args
5908 from first to last. */
5909 for (argnum = 0; argnum < nargs; argnum++)
5910 {
47a35522 5911 const gdb_byte *val;
46cac009 5912 struct value *arg = args[argnum];
4991999e 5913 struct type *arg_type = check_typedef (value_type (arg));
46cac009
AC
5914 int len = TYPE_LENGTH (arg_type);
5915 enum type_code typecode = TYPE_CODE (arg_type);
5916
5917 if (mips_debug)
5918 fprintf_unfiltered (gdb_stdlog,
25ab4790 5919 "mips_o64_push_dummy_call: %d len=%d type=%d",
ebafbe83
MS
5920 argnum + 1, len, (int) typecode);
5921
47a35522 5922 val = value_contents (arg);
ebafbe83 5923
ebafbe83 5924 /* Floating point arguments passed in registers have to be
6a3a010b
MR
5925 treated specially. On 32-bit architectures, doubles are
5926 passed in register pairs; the even FP register gets the
5927 low word, and the odd FP register gets the high word.
5928 On O64, the first two floating point arguments are also
5929 copied to general registers, because MIPS16 functions
5930 don't use float registers for arguments. This duplication
5931 of arguments in general registers can't hurt non-MIPS16
5932 functions because those registers are normally skipped. */
ebafbe83 5933
74ed0bb4
MD
5934 if (fp_register_arg_p (gdbarch, typecode, arg_type)
5935 && float_argreg <= MIPS_LAST_FP_ARG_REGNUM (gdbarch))
ebafbe83 5936 {
e17a4113 5937 LONGEST regval = extract_unsigned_integer (val, len, byte_order);
2afd3f0a
MR
5938 if (mips_debug)
5939 fprintf_unfiltered (gdb_stdlog, " - fpreg=%d val=%s",
5940 float_argreg, phex (regval, len));
9c9acae0 5941 regcache_cooked_write_unsigned (regcache, float_argreg++, regval);
2afd3f0a
MR
5942 if (mips_debug)
5943 fprintf_unfiltered (gdb_stdlog, " - reg=%d val=%s",
5944 argreg, phex (regval, len));
9c9acae0 5945 regcache_cooked_write_unsigned (regcache, argreg, regval);
2afd3f0a 5946 argreg++;
ebafbe83 5947 /* Reserve space for the FP register. */
1a69e1e4 5948 stack_offset += align_up (len, MIPS64_REGSIZE);
ebafbe83
MS
5949 }
5950 else
5951 {
5952 /* Copy the argument to general registers or the stack in
5953 register-sized pieces. Large arguments are split between
5954 registers and stack. */
1a69e1e4 5955 /* Note: structs whose size is not a multiple of MIPS64_REGSIZE
436aafc4
MR
5956 are treated specially: Irix cc passes them in registers
5957 where gcc sometimes puts them on the stack. For maximum
5958 compatibility, we will put them in both places. */
1a69e1e4
DJ
5959 int odd_sized_struct = (len > MIPS64_REGSIZE
5960 && len % MIPS64_REGSIZE != 0);
ebafbe83
MS
5961 while (len > 0)
5962 {
5963 /* Remember if the argument was written to the stack. */
5964 int stack_used_p = 0;
1a69e1e4 5965 int partial_len = (len < MIPS64_REGSIZE ? len : MIPS64_REGSIZE);
ebafbe83
MS
5966
5967 if (mips_debug)
5968 fprintf_unfiltered (gdb_stdlog, " -- partial=%d",
5969 partial_len);
5970
5971 /* Write this portion of the argument to the stack. */
74ed0bb4 5972 if (argreg > MIPS_LAST_ARG_REGNUM (gdbarch)
968b5391 5973 || odd_sized_struct)
ebafbe83
MS
5974 {
5975 /* Should shorter than int integer values be
025bb325 5976 promoted to int before being stored? */
ebafbe83
MS
5977 int longword_offset = 0;
5978 CORE_ADDR addr;
5979 stack_used_p = 1;
72a155b4 5980 if (gdbarch_byte_order (gdbarch) == BFD_ENDIAN_BIG)
ebafbe83 5981 {
1a69e1e4
DJ
5982 if ((typecode == TYPE_CODE_INT
5983 || typecode == TYPE_CODE_PTR
5984 || typecode == TYPE_CODE_FLT)
5985 && len <= 4)
5986 longword_offset = MIPS64_REGSIZE - len;
ebafbe83
MS
5987 }
5988
5989 if (mips_debug)
5990 {
5af949e3
UW
5991 fprintf_unfiltered (gdb_stdlog, " - stack_offset=%s",
5992 paddress (gdbarch, stack_offset));
5993 fprintf_unfiltered (gdb_stdlog, " longword_offset=%s",
5994 paddress (gdbarch, longword_offset));
ebafbe83
MS
5995 }
5996
5997 addr = sp + stack_offset + longword_offset;
5998
5999 if (mips_debug)
6000 {
6001 int i;
5af949e3
UW
6002 fprintf_unfiltered (gdb_stdlog, " @%s ",
6003 paddress (gdbarch, addr));
ebafbe83
MS
6004 for (i = 0; i < partial_len; i++)
6005 {
6d82d43b 6006 fprintf_unfiltered (gdb_stdlog, "%02x",
ebafbe83
MS
6007 val[i] & 0xff);
6008 }
6009 }
6010 write_memory (addr, val, partial_len);
6011 }
6012
6013 /* Note!!! This is NOT an else clause. Odd sized
968b5391 6014 structs may go thru BOTH paths. */
ebafbe83 6015 /* Write this portion of the argument to a general
6d82d43b 6016 purpose register. */
74ed0bb4 6017 if (argreg <= MIPS_LAST_ARG_REGNUM (gdbarch))
ebafbe83 6018 {
e17a4113
UW
6019 LONGEST regval = extract_signed_integer (val, partial_len,
6020 byte_order);
4246e332 6021 /* Value may need to be sign extended, because
1b13c4f6 6022 mips_isa_regsize() != mips_abi_regsize(). */
ebafbe83
MS
6023
6024 /* A non-floating-point argument being passed in a
6025 general register. If a struct or union, and if
6026 the remaining length is smaller than the register
6027 size, we have to adjust the register value on
6028 big endian targets.
6029
6030 It does not seem to be necessary to do the
025bb325 6031 same for integral types. */
480d3dd2 6032
72a155b4 6033 if (gdbarch_byte_order (gdbarch) == BFD_ENDIAN_BIG
1a69e1e4 6034 && partial_len < MIPS64_REGSIZE
06f9a1af
MR
6035 && (typecode == TYPE_CODE_STRUCT
6036 || typecode == TYPE_CODE_UNION))
1a69e1e4 6037 regval <<= ((MIPS64_REGSIZE - partial_len)
9ecf7166 6038 * TARGET_CHAR_BIT);
ebafbe83
MS
6039
6040 if (mips_debug)
6041 fprintf_filtered (gdb_stdlog, " - reg=%d val=%s",
6042 argreg,
1a69e1e4 6043 phex (regval, MIPS64_REGSIZE));
9c9acae0 6044 regcache_cooked_write_unsigned (regcache, argreg, regval);
ebafbe83
MS
6045 argreg++;
6046
6047 /* Prevent subsequent floating point arguments from
6048 being passed in floating point registers. */
74ed0bb4 6049 float_argreg = MIPS_LAST_FP_ARG_REGNUM (gdbarch) + 1;
ebafbe83
MS
6050 }
6051
6052 len -= partial_len;
6053 val += partial_len;
6054
b021a221
MS
6055 /* Compute the offset into the stack at which we will
6056 copy the next parameter.
ebafbe83 6057
6d82d43b
AC
6058 In older ABIs, the caller reserved space for
6059 registers that contained arguments. This was loosely
6060 refered to as their "home". Consequently, space is
6061 always allocated. */
ebafbe83 6062
1a69e1e4 6063 stack_offset += align_up (partial_len, MIPS64_REGSIZE);
ebafbe83
MS
6064 }
6065 }
6066 if (mips_debug)
6067 fprintf_unfiltered (gdb_stdlog, "\n");
6068 }
6069
f10683bb 6070 regcache_cooked_write_signed (regcache, MIPS_SP_REGNUM, sp);
310e9b6a 6071
ebafbe83
MS
6072 /* Return adjusted stack pointer. */
6073 return sp;
6074}
6075
9c8fdbfa 6076static enum return_value_convention
6a3a010b 6077mips_o64_return_value (struct gdbarch *gdbarch, struct value *function,
9c8fdbfa 6078 struct type *type, struct regcache *regcache,
47a35522 6079 gdb_byte *readbuf, const gdb_byte *writebuf)
6d82d43b 6080{
6a3a010b 6081 CORE_ADDR func_addr = function ? find_function_addr (function, NULL) : 0;
4cc0665f 6082 int mips16 = mips_pc_is_mips16 (gdbarch, func_addr);
72a155b4 6083 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
6a3a010b 6084 enum mips_fval_reg fval_reg;
7a076fd2 6085
6a3a010b 6086 fval_reg = readbuf ? mips16 ? mips_fval_gpr : mips_fval_fpr : mips_fval_both;
7a076fd2
FF
6087 if (TYPE_CODE (type) == TYPE_CODE_STRUCT
6088 || TYPE_CODE (type) == TYPE_CODE_UNION
6089 || TYPE_CODE (type) == TYPE_CODE_ARRAY)
6090 return RETURN_VALUE_STRUCT_CONVENTION;
74ed0bb4 6091 else if (fp_register_arg_p (gdbarch, TYPE_CODE (type), type))
7a076fd2 6092 {
6a3a010b
MR
6093 /* A floating-point value. If reading in or copying, then we get it
6094 from/put it to FP0 for standard MIPS code or GPR2 for MIPS16 code.
6095 If writing out only, then we put it to both FP0 and GPR2. We do
6096 not support reading in with no function known, if this safety
6097 check ever triggers, then we'll have to try harder. */
6098 gdb_assert (function || !readbuf);
7a076fd2 6099 if (mips_debug)
6a3a010b
MR
6100 switch (fval_reg)
6101 {
6102 case mips_fval_fpr:
6103 fprintf_unfiltered (gdb_stderr, "Return float in $fp0\n");
6104 break;
6105 case mips_fval_gpr:
6106 fprintf_unfiltered (gdb_stderr, "Return float in $2\n");
6107 break;
6108 case mips_fval_both:
6109 fprintf_unfiltered (gdb_stderr, "Return float in $fp0 and $2\n");
6110 break;
6111 }
6112 if (fval_reg != mips_fval_gpr)
6113 mips_xfer_register (gdbarch, regcache,
6114 (gdbarch_num_regs (gdbarch)
6115 + mips_regnum (gdbarch)->fp0),
6116 TYPE_LENGTH (type),
6117 gdbarch_byte_order (gdbarch),
6118 readbuf, writebuf, 0);
6119 if (fval_reg != mips_fval_fpr)
6120 mips_xfer_register (gdbarch, regcache,
6121 gdbarch_num_regs (gdbarch) + 2,
6122 TYPE_LENGTH (type),
6123 gdbarch_byte_order (gdbarch),
6124 readbuf, writebuf, 0);
7a076fd2
FF
6125 return RETURN_VALUE_REGISTER_CONVENTION;
6126 }
6127 else
6128 {
6129 /* A scalar extract each part but least-significant-byte
025bb325 6130 justified. */
7a076fd2
FF
6131 int offset;
6132 int regnum;
6133 for (offset = 0, regnum = MIPS_V0_REGNUM;
6134 offset < TYPE_LENGTH (type);
1a69e1e4 6135 offset += MIPS64_REGSIZE, regnum++)
7a076fd2 6136 {
1a69e1e4 6137 int xfer = MIPS64_REGSIZE;
7a076fd2
FF
6138 if (offset + xfer > TYPE_LENGTH (type))
6139 xfer = TYPE_LENGTH (type) - offset;
6140 if (mips_debug)
6141 fprintf_unfiltered (gdb_stderr, "Return scalar+%d:%d in $%d\n",
6142 offset, xfer, regnum);
ba32f989
DJ
6143 mips_xfer_register (gdbarch, regcache,
6144 gdbarch_num_regs (gdbarch) + regnum,
72a155b4 6145 xfer, gdbarch_byte_order (gdbarch),
4c6b5505 6146 readbuf, writebuf, offset);
7a076fd2
FF
6147 }
6148 return RETURN_VALUE_REGISTER_CONVENTION;
6149 }
6d82d43b
AC
6150}
6151
dd824b04
DJ
6152/* Floating point register management.
6153
6154 Background: MIPS1 & 2 fp registers are 32 bits wide. To support
6155 64bit operations, these early MIPS cpus treat fp register pairs
6156 (f0,f1) as a single register (d0). Later MIPS cpu's have 64 bit fp
6157 registers and offer a compatibility mode that emulates the MIPS2 fp
6158 model. When operating in MIPS2 fp compat mode, later cpu's split
6159 double precision floats into two 32-bit chunks and store them in
6160 consecutive fp regs. To display 64-bit floats stored in this
6161 fashion, we have to combine 32 bits from f0 and 32 bits from f1.
6162 Throw in user-configurable endianness and you have a real mess.
6163
6164 The way this works is:
6165 - If we are in 32-bit mode or on a 32-bit processor, then a 64-bit
6166 double-precision value will be split across two logical registers.
6167 The lower-numbered logical register will hold the low-order bits,
6168 regardless of the processor's endianness.
6169 - If we are on a 64-bit processor, and we are looking for a
6170 single-precision value, it will be in the low ordered bits
6171 of a 64-bit GPR (after mfc1, for example) or a 64-bit register
6172 save slot in memory.
6173 - If we are in 64-bit mode, everything is straightforward.
6174
6175 Note that this code only deals with "live" registers at the top of the
6176 stack. We will attempt to deal with saved registers later, when
025bb325 6177 the raw/cooked register interface is in place. (We need a general
dd824b04
DJ
6178 interface that can deal with dynamic saved register sizes -- fp
6179 regs could be 32 bits wide in one frame and 64 on the frame above
6180 and below). */
6181
6182/* Copy a 32-bit single-precision value from the current frame
6183 into rare_buffer. */
6184
6185static void
e11c53d2 6186mips_read_fp_register_single (struct frame_info *frame, int regno,
47a35522 6187 gdb_byte *rare_buffer)
dd824b04 6188{
72a155b4
UW
6189 struct gdbarch *gdbarch = get_frame_arch (frame);
6190 int raw_size = register_size (gdbarch, regno);
224c3ddb 6191 gdb_byte *raw_buffer = (gdb_byte *) alloca (raw_size);
dd824b04 6192
ca9d61b9 6193 if (!deprecated_frame_register_read (frame, regno, raw_buffer))
c9f4d572 6194 error (_("can't read register %d (%s)"),
72a155b4 6195 regno, gdbarch_register_name (gdbarch, regno));
dd824b04
DJ
6196 if (raw_size == 8)
6197 {
6198 /* We have a 64-bit value for this register. Find the low-order
6d82d43b 6199 32 bits. */
dd824b04
DJ
6200 int offset;
6201
72a155b4 6202 if (gdbarch_byte_order (gdbarch) == BFD_ENDIAN_BIG)
dd824b04
DJ
6203 offset = 4;
6204 else
6205 offset = 0;
6206
6207 memcpy (rare_buffer, raw_buffer + offset, 4);
6208 }
6209 else
6210 {
6211 memcpy (rare_buffer, raw_buffer, 4);
6212 }
6213}
6214
6215/* Copy a 64-bit double-precision value from the current frame into
6216 rare_buffer. This may include getting half of it from the next
6217 register. */
6218
6219static void
e11c53d2 6220mips_read_fp_register_double (struct frame_info *frame, int regno,
47a35522 6221 gdb_byte *rare_buffer)
dd824b04 6222{
72a155b4
UW
6223 struct gdbarch *gdbarch = get_frame_arch (frame);
6224 int raw_size = register_size (gdbarch, regno);
dd824b04 6225
9c9acae0 6226 if (raw_size == 8 && !mips2_fp_compat (frame))
dd824b04
DJ
6227 {
6228 /* We have a 64-bit value for this register, and we should use
6d82d43b 6229 all 64 bits. */
ca9d61b9 6230 if (!deprecated_frame_register_read (frame, regno, rare_buffer))
c9f4d572 6231 error (_("can't read register %d (%s)"),
72a155b4 6232 regno, gdbarch_register_name (gdbarch, regno));
dd824b04
DJ
6233 }
6234 else
6235 {
72a155b4 6236 int rawnum = regno % gdbarch_num_regs (gdbarch);
82e91389 6237
72a155b4 6238 if ((rawnum - mips_regnum (gdbarch)->fp0) & 1)
dd824b04 6239 internal_error (__FILE__, __LINE__,
e2e0b3e5
AC
6240 _("mips_read_fp_register_double: bad access to "
6241 "odd-numbered FP register"));
dd824b04
DJ
6242
6243 /* mips_read_fp_register_single will find the correct 32 bits from
6d82d43b 6244 each register. */
72a155b4 6245 if (gdbarch_byte_order (gdbarch) == BFD_ENDIAN_BIG)
dd824b04 6246 {
e11c53d2
AC
6247 mips_read_fp_register_single (frame, regno, rare_buffer + 4);
6248 mips_read_fp_register_single (frame, regno + 1, rare_buffer);
dd824b04 6249 }
361d1df0 6250 else
dd824b04 6251 {
e11c53d2
AC
6252 mips_read_fp_register_single (frame, regno, rare_buffer);
6253 mips_read_fp_register_single (frame, regno + 1, rare_buffer + 4);
dd824b04
DJ
6254 }
6255 }
6256}
6257
c906108c 6258static void
e11c53d2
AC
6259mips_print_fp_register (struct ui_file *file, struct frame_info *frame,
6260 int regnum)
025bb325 6261{ /* Do values for FP (float) regs. */
72a155b4 6262 struct gdbarch *gdbarch = get_frame_arch (frame);
47a35522 6263 gdb_byte *raw_buffer;
025bb325 6264 double doub, flt1; /* Doubles extracted from raw hex data. */
3903d437 6265 int inv1, inv2;
c5aa993b 6266
224c3ddb
SM
6267 raw_buffer
6268 = ((gdb_byte *)
6269 alloca (2 * register_size (gdbarch, mips_regnum (gdbarch)->fp0)));
c906108c 6270
72a155b4 6271 fprintf_filtered (file, "%s:", gdbarch_register_name (gdbarch, regnum));
c9f4d572 6272 fprintf_filtered (file, "%*s",
72a155b4 6273 4 - (int) strlen (gdbarch_register_name (gdbarch, regnum)),
e11c53d2 6274 "");
f0ef6b29 6275
72a155b4 6276 if (register_size (gdbarch, regnum) == 4 || mips2_fp_compat (frame))
c906108c 6277 {
79a45b7d
TT
6278 struct value_print_options opts;
6279
f0ef6b29
KB
6280 /* 4-byte registers: Print hex and floating. Also print even
6281 numbered registers as doubles. */
e11c53d2 6282 mips_read_fp_register_single (frame, regnum, raw_buffer);
025bb325
MS
6283 flt1 = unpack_double (builtin_type (gdbarch)->builtin_float,
6284 raw_buffer, &inv1);
c5aa993b 6285
79a45b7d 6286 get_formatted_print_options (&opts, 'x');
df4df182
UW
6287 print_scalar_formatted (raw_buffer,
6288 builtin_type (gdbarch)->builtin_uint32,
6289 &opts, 'w', file);
dd824b04 6290
e11c53d2 6291 fprintf_filtered (file, " flt: ");
1adad886 6292 if (inv1)
e11c53d2 6293 fprintf_filtered (file, " <invalid float> ");
1adad886 6294 else
e11c53d2 6295 fprintf_filtered (file, "%-17.9g", flt1);
1adad886 6296
72a155b4 6297 if ((regnum - gdbarch_num_regs (gdbarch)) % 2 == 0)
f0ef6b29 6298 {
e11c53d2 6299 mips_read_fp_register_double (frame, regnum, raw_buffer);
27067745
UW
6300 doub = unpack_double (builtin_type (gdbarch)->builtin_double,
6301 raw_buffer, &inv2);
1adad886 6302
e11c53d2 6303 fprintf_filtered (file, " dbl: ");
f0ef6b29 6304 if (inv2)
e11c53d2 6305 fprintf_filtered (file, "<invalid double>");
f0ef6b29 6306 else
e11c53d2 6307 fprintf_filtered (file, "%-24.17g", doub);
f0ef6b29 6308 }
c906108c
SS
6309 }
6310 else
dd824b04 6311 {
79a45b7d
TT
6312 struct value_print_options opts;
6313
f0ef6b29 6314 /* Eight byte registers: print each one as hex, float and double. */
e11c53d2 6315 mips_read_fp_register_single (frame, regnum, raw_buffer);
27067745
UW
6316 flt1 = unpack_double (builtin_type (gdbarch)->builtin_float,
6317 raw_buffer, &inv1);
c906108c 6318
e11c53d2 6319 mips_read_fp_register_double (frame, regnum, raw_buffer);
27067745
UW
6320 doub = unpack_double (builtin_type (gdbarch)->builtin_double,
6321 raw_buffer, &inv2);
f0ef6b29 6322
79a45b7d 6323 get_formatted_print_options (&opts, 'x');
df4df182
UW
6324 print_scalar_formatted (raw_buffer,
6325 builtin_type (gdbarch)->builtin_uint64,
6326 &opts, 'g', file);
f0ef6b29 6327
e11c53d2 6328 fprintf_filtered (file, " flt: ");
1adad886 6329 if (inv1)
e11c53d2 6330 fprintf_filtered (file, "<invalid float>");
1adad886 6331 else
e11c53d2 6332 fprintf_filtered (file, "%-17.9g", flt1);
1adad886 6333
e11c53d2 6334 fprintf_filtered (file, " dbl: ");
f0ef6b29 6335 if (inv2)
e11c53d2 6336 fprintf_filtered (file, "<invalid double>");
1adad886 6337 else
e11c53d2 6338 fprintf_filtered (file, "%-24.17g", doub);
f0ef6b29
KB
6339 }
6340}
6341
6342static void
e11c53d2 6343mips_print_register (struct ui_file *file, struct frame_info *frame,
0cc93a06 6344 int regnum)
f0ef6b29 6345{
a4b8ebc8 6346 struct gdbarch *gdbarch = get_frame_arch (frame);
79a45b7d 6347 struct value_print_options opts;
de15c4ab 6348 struct value *val;
1adad886 6349
004159a2 6350 if (mips_float_register_p (gdbarch, regnum))
f0ef6b29 6351 {
e11c53d2 6352 mips_print_fp_register (file, frame, regnum);
f0ef6b29
KB
6353 return;
6354 }
6355
de15c4ab 6356 val = get_frame_register_value (frame, regnum);
f0ef6b29 6357
72a155b4 6358 fputs_filtered (gdbarch_register_name (gdbarch, regnum), file);
f0ef6b29
KB
6359
6360 /* The problem with printing numeric register names (r26, etc.) is that
6361 the user can't use them on input. Probably the best solution is to
6362 fix it so that either the numeric or the funky (a2, etc.) names
6363 are accepted on input. */
6364 if (regnum < MIPS_NUMREGS)
e11c53d2 6365 fprintf_filtered (file, "(r%d): ", regnum);
f0ef6b29 6366 else
e11c53d2 6367 fprintf_filtered (file, ": ");
f0ef6b29 6368
79a45b7d 6369 get_formatted_print_options (&opts, 'x');
de15c4ab
PA
6370 val_print_scalar_formatted (value_type (val),
6371 value_contents_for_printing (val),
6372 value_embedded_offset (val),
6373 val,
6374 &opts, 0, file);
c906108c
SS
6375}
6376
1bab7383
YQ
6377/* Print IEEE exception condition bits in FLAGS. */
6378
6379static void
6380print_fpu_flags (struct ui_file *file, int flags)
6381{
6382 if (flags & (1 << 0))
6383 fputs_filtered (" inexact", file);
6384 if (flags & (1 << 1))
6385 fputs_filtered (" uflow", file);
6386 if (flags & (1 << 2))
6387 fputs_filtered (" oflow", file);
6388 if (flags & (1 << 3))
6389 fputs_filtered (" div0", file);
6390 if (flags & (1 << 4))
6391 fputs_filtered (" inval", file);
6392 if (flags & (1 << 5))
6393 fputs_filtered (" unimp", file);
6394 fputc_filtered ('\n', file);
6395}
6396
6397/* Print interesting information about the floating point processor
6398 (if present) or emulator. */
6399
6400static void
6401mips_print_float_info (struct gdbarch *gdbarch, struct ui_file *file,
6402 struct frame_info *frame, const char *args)
6403{
6404 int fcsr = mips_regnum (gdbarch)->fp_control_status;
6405 enum mips_fpu_type type = MIPS_FPU_TYPE (gdbarch);
6406 ULONGEST fcs = 0;
6407 int i;
6408
6409 if (fcsr == -1 || !read_frame_register_unsigned (frame, fcsr, &fcs))
6410 type = MIPS_FPU_NONE;
6411
6412 fprintf_filtered (file, "fpu type: %s\n",
6413 type == MIPS_FPU_DOUBLE ? "double-precision"
6414 : type == MIPS_FPU_SINGLE ? "single-precision"
6415 : "none / unused");
6416
6417 if (type == MIPS_FPU_NONE)
6418 return;
6419
6420 fprintf_filtered (file, "reg size: %d bits\n",
6421 register_size (gdbarch, mips_regnum (gdbarch)->fp0) * 8);
6422
6423 fputs_filtered ("cond :", file);
6424 if (fcs & (1 << 23))
6425 fputs_filtered (" 0", file);
6426 for (i = 1; i <= 7; i++)
6427 if (fcs & (1 << (24 + i)))
6428 fprintf_filtered (file, " %d", i);
6429 fputc_filtered ('\n', file);
6430
6431 fputs_filtered ("cause :", file);
6432 print_fpu_flags (file, (fcs >> 12) & 0x3f);
6433 fputs ("mask :", stdout);
6434 print_fpu_flags (file, (fcs >> 7) & 0x1f);
6435 fputs ("flags :", stdout);
6436 print_fpu_flags (file, (fcs >> 2) & 0x1f);
6437
6438 fputs_filtered ("rounding: ", file);
6439 switch (fcs & 3)
6440 {
6441 case 0: fputs_filtered ("nearest\n", file); break;
6442 case 1: fputs_filtered ("zero\n", file); break;
6443 case 2: fputs_filtered ("+inf\n", file); break;
6444 case 3: fputs_filtered ("-inf\n", file); break;
6445 }
6446
6447 fputs_filtered ("flush :", file);
6448 if (fcs & (1 << 21))
6449 fputs_filtered (" nearest", file);
6450 if (fcs & (1 << 22))
6451 fputs_filtered (" override", file);
6452 if (fcs & (1 << 24))
6453 fputs_filtered (" zero", file);
6454 if ((fcs & (0xb << 21)) == 0)
6455 fputs_filtered (" no", file);
6456 fputc_filtered ('\n', file);
6457
6458 fprintf_filtered (file, "nan2008 : %s\n", fcs & (1 << 18) ? "yes" : "no");
6459 fprintf_filtered (file, "abs2008 : %s\n", fcs & (1 << 19) ? "yes" : "no");
6460 fputc_filtered ('\n', file);
6461
6462 default_print_float_info (gdbarch, file, frame, args);
6463}
6464
f0ef6b29
KB
6465/* Replacement for generic do_registers_info.
6466 Print regs in pretty columns. */
6467
6468static int
e11c53d2
AC
6469print_fp_register_row (struct ui_file *file, struct frame_info *frame,
6470 int regnum)
f0ef6b29 6471{
e11c53d2
AC
6472 fprintf_filtered (file, " ");
6473 mips_print_fp_register (file, frame, regnum);
6474 fprintf_filtered (file, "\n");
f0ef6b29
KB
6475 return regnum + 1;
6476}
6477
6478
025bb325 6479/* Print a row's worth of GP (int) registers, with name labels above. */
c906108c
SS
6480
6481static int
e11c53d2 6482print_gp_register_row (struct ui_file *file, struct frame_info *frame,
a4b8ebc8 6483 int start_regnum)
c906108c 6484{
a4b8ebc8 6485 struct gdbarch *gdbarch = get_frame_arch (frame);
025bb325 6486 /* Do values for GP (int) regs. */
47a35522 6487 gdb_byte raw_buffer[MAX_REGISTER_SIZE];
025bb325
MS
6488 int ncols = (mips_abi_regsize (gdbarch) == 8 ? 4 : 8); /* display cols
6489 per row. */
c906108c 6490 int col, byte;
a4b8ebc8 6491 int regnum;
c906108c 6492
025bb325 6493 /* For GP registers, we print a separate row of names above the vals. */
a4b8ebc8 6494 for (col = 0, regnum = start_regnum;
72a155b4
UW
6495 col < ncols && regnum < gdbarch_num_regs (gdbarch)
6496 + gdbarch_num_pseudo_regs (gdbarch);
f57d151a 6497 regnum++)
c906108c 6498 {
72a155b4 6499 if (*gdbarch_register_name (gdbarch, regnum) == '\0')
c5aa993b 6500 continue; /* unused register */
004159a2 6501 if (mips_float_register_p (gdbarch, regnum))
025bb325 6502 break; /* End the row: reached FP register. */
0cc93a06 6503 /* Large registers are handled separately. */
72a155b4 6504 if (register_size (gdbarch, regnum) > mips_abi_regsize (gdbarch))
0cc93a06
DJ
6505 {
6506 if (col > 0)
6507 break; /* End the row before this register. */
6508
6509 /* Print this register on a row by itself. */
6510 mips_print_register (file, frame, regnum);
6511 fprintf_filtered (file, "\n");
6512 return regnum + 1;
6513 }
d05f6826
DJ
6514 if (col == 0)
6515 fprintf_filtered (file, " ");
6d82d43b 6516 fprintf_filtered (file,
72a155b4
UW
6517 mips_abi_regsize (gdbarch) == 8 ? "%17s" : "%9s",
6518 gdbarch_register_name (gdbarch, regnum));
c906108c
SS
6519 col++;
6520 }
d05f6826
DJ
6521
6522 if (col == 0)
6523 return regnum;
6524
025bb325 6525 /* Print the R0 to R31 names. */
72a155b4 6526 if ((start_regnum % gdbarch_num_regs (gdbarch)) < MIPS_NUMREGS)
f57d151a 6527 fprintf_filtered (file, "\n R%-4d",
72a155b4 6528 start_regnum % gdbarch_num_regs (gdbarch));
20e6603c
AC
6529 else
6530 fprintf_filtered (file, "\n ");
c906108c 6531
025bb325 6532 /* Now print the values in hex, 4 or 8 to the row. */
a4b8ebc8 6533 for (col = 0, regnum = start_regnum;
72a155b4
UW
6534 col < ncols && regnum < gdbarch_num_regs (gdbarch)
6535 + gdbarch_num_pseudo_regs (gdbarch);
f57d151a 6536 regnum++)
c906108c 6537 {
72a155b4 6538 if (*gdbarch_register_name (gdbarch, regnum) == '\0')
c5aa993b 6539 continue; /* unused register */
004159a2 6540 if (mips_float_register_p (gdbarch, regnum))
025bb325 6541 break; /* End row: reached FP register. */
72a155b4 6542 if (register_size (gdbarch, regnum) > mips_abi_regsize (gdbarch))
0cc93a06
DJ
6543 break; /* End row: large register. */
6544
c906108c 6545 /* OK: get the data in raw format. */
ca9d61b9 6546 if (!deprecated_frame_register_read (frame, regnum, raw_buffer))
c9f4d572 6547 error (_("can't read register %d (%s)"),
72a155b4 6548 regnum, gdbarch_register_name (gdbarch, regnum));
c906108c 6549 /* pad small registers */
4246e332 6550 for (byte = 0;
72a155b4
UW
6551 byte < (mips_abi_regsize (gdbarch)
6552 - register_size (gdbarch, regnum)); byte++)
c906108c 6553 printf_filtered (" ");
025bb325 6554 /* Now print the register value in hex, endian order. */
72a155b4 6555 if (gdbarch_byte_order (gdbarch) == BFD_ENDIAN_BIG)
6d82d43b 6556 for (byte =
72a155b4
UW
6557 register_size (gdbarch, regnum) - register_size (gdbarch, regnum);
6558 byte < register_size (gdbarch, regnum); byte++)
47a35522 6559 fprintf_filtered (file, "%02x", raw_buffer[byte]);
c906108c 6560 else
72a155b4 6561 for (byte = register_size (gdbarch, regnum) - 1;
6d82d43b 6562 byte >= 0; byte--)
47a35522 6563 fprintf_filtered (file, "%02x", raw_buffer[byte]);
e11c53d2 6564 fprintf_filtered (file, " ");
c906108c
SS
6565 col++;
6566 }
025bb325 6567 if (col > 0) /* ie. if we actually printed anything... */
e11c53d2 6568 fprintf_filtered (file, "\n");
c906108c
SS
6569
6570 return regnum;
6571}
6572
025bb325 6573/* MIPS_DO_REGISTERS_INFO(): called by "info register" command. */
c906108c 6574
bf1f5b4c 6575static void
e11c53d2
AC
6576mips_print_registers_info (struct gdbarch *gdbarch, struct ui_file *file,
6577 struct frame_info *frame, int regnum, int all)
c906108c 6578{
025bb325 6579 if (regnum != -1) /* Do one specified register. */
c906108c 6580 {
72a155b4
UW
6581 gdb_assert (regnum >= gdbarch_num_regs (gdbarch));
6582 if (*(gdbarch_register_name (gdbarch, regnum)) == '\0')
8a3fe4f8 6583 error (_("Not a valid register for the current processor type"));
c906108c 6584
0cc93a06 6585 mips_print_register (file, frame, regnum);
e11c53d2 6586 fprintf_filtered (file, "\n");
c906108c 6587 }
c5aa993b 6588 else
025bb325 6589 /* Do all (or most) registers. */
c906108c 6590 {
72a155b4
UW
6591 regnum = gdbarch_num_regs (gdbarch);
6592 while (regnum < gdbarch_num_regs (gdbarch)
6593 + gdbarch_num_pseudo_regs (gdbarch))
c906108c 6594 {
004159a2 6595 if (mips_float_register_p (gdbarch, regnum))
e11c53d2 6596 {
025bb325 6597 if (all) /* True for "INFO ALL-REGISTERS" command. */
e11c53d2
AC
6598 regnum = print_fp_register_row (file, frame, regnum);
6599 else
025bb325 6600 regnum += MIPS_NUMREGS; /* Skip floating point regs. */
e11c53d2 6601 }
c906108c 6602 else
e11c53d2 6603 regnum = print_gp_register_row (file, frame, regnum);
c906108c
SS
6604 }
6605 }
6606}
6607
63807e1d 6608static int
3352ef37
AC
6609mips_single_step_through_delay (struct gdbarch *gdbarch,
6610 struct frame_info *frame)
c906108c 6611{
e17a4113 6612 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
3352ef37 6613 CORE_ADDR pc = get_frame_pc (frame);
4cc0665f
MR
6614 struct address_space *aspace;
6615 enum mips_isa isa;
6616 ULONGEST insn;
6617 int status;
6618 int size;
6619
6620 if ((mips_pc_is_mips (pc)
ab50adb6 6621 && !mips32_insn_at_pc_has_delay_slot (gdbarch, pc))
4cc0665f 6622 || (mips_pc_is_micromips (gdbarch, pc)
ab50adb6 6623 && !micromips_insn_at_pc_has_delay_slot (gdbarch, pc, 0))
4cc0665f 6624 || (mips_pc_is_mips16 (gdbarch, pc)
ab50adb6 6625 && !mips16_insn_at_pc_has_delay_slot (gdbarch, pc, 0)))
06648491
MK
6626 return 0;
6627
4cc0665f
MR
6628 isa = mips_pc_isa (gdbarch, pc);
6629 /* _has_delay_slot above will have validated the read. */
6630 insn = mips_fetch_instruction (gdbarch, isa, pc, NULL);
6631 size = mips_insn_size (isa, insn);
6632 aspace = get_frame_address_space (frame);
6633 return breakpoint_here_p (aspace, pc + size) != no_breakpoint_here;
c906108c
SS
6634}
6635
6d82d43b
AC
6636/* To skip prologues, I use this predicate. Returns either PC itself
6637 if the code at PC does not look like a function prologue; otherwise
6638 returns an address that (if we're lucky) follows the prologue. If
6639 LENIENT, then we must skip everything which is involved in setting
6640 up the frame (it's OK to skip more, just so long as we don't skip
6641 anything which might clobber the registers which are being saved.
6642 We must skip more in the case where part of the prologue is in the
6643 delay slot of a non-prologue instruction). */
6644
6645static CORE_ADDR
6093d2eb 6646mips_skip_prologue (struct gdbarch *gdbarch, CORE_ADDR pc)
6d82d43b 6647{
8b622e6a
AC
6648 CORE_ADDR limit_pc;
6649 CORE_ADDR func_addr;
6650
6d82d43b
AC
6651 /* See if we can determine the end of the prologue via the symbol table.
6652 If so, then return either PC, or the PC after the prologue, whichever
6653 is greater. */
8b622e6a
AC
6654 if (find_pc_partial_function (pc, NULL, &func_addr, NULL))
6655 {
d80b854b
UW
6656 CORE_ADDR post_prologue_pc
6657 = skip_prologue_using_sal (gdbarch, func_addr);
8b622e6a
AC
6658 if (post_prologue_pc != 0)
6659 return max (pc, post_prologue_pc);
6660 }
6d82d43b
AC
6661
6662 /* Can't determine prologue from the symbol table, need to examine
6663 instructions. */
6664
98b4dd94
JB
6665 /* Find an upper limit on the function prologue using the debug
6666 information. If the debug information could not be used to provide
6667 that bound, then use an arbitrary large number as the upper bound. */
d80b854b 6668 limit_pc = skip_prologue_using_sal (gdbarch, pc);
98b4dd94
JB
6669 if (limit_pc == 0)
6670 limit_pc = pc + 100; /* Magic. */
6671
4cc0665f 6672 if (mips_pc_is_mips16 (gdbarch, pc))
e17a4113 6673 return mips16_scan_prologue (gdbarch, pc, limit_pc, NULL, NULL);
4cc0665f
MR
6674 else if (mips_pc_is_micromips (gdbarch, pc))
6675 return micromips_scan_prologue (gdbarch, pc, limit_pc, NULL, NULL);
6d82d43b 6676 else
e17a4113 6677 return mips32_scan_prologue (gdbarch, pc, limit_pc, NULL, NULL);
88658117
AC
6678}
6679
c9cf6e20
MG
6680/* Implement the stack_frame_destroyed_p gdbarch method (32-bit version).
6681 This is a helper function for mips_stack_frame_destroyed_p. */
6682
97ab0fdd 6683static int
c9cf6e20 6684mips32_stack_frame_destroyed_p (struct gdbarch *gdbarch, CORE_ADDR pc)
97ab0fdd
MR
6685{
6686 CORE_ADDR func_addr = 0, func_end = 0;
6687
6688 if (find_pc_partial_function (pc, NULL, &func_addr, &func_end))
6689 {
6690 /* The MIPS epilogue is max. 12 bytes long. */
6691 CORE_ADDR addr = func_end - 12;
6692
6693 if (addr < func_addr + 4)
6694 addr = func_addr + 4;
6695 if (pc < addr)
6696 return 0;
6697
6698 for (; pc < func_end; pc += MIPS_INSN32_SIZE)
6699 {
6700 unsigned long high_word;
6701 unsigned long inst;
6702
4cc0665f 6703 inst = mips_fetch_instruction (gdbarch, ISA_MIPS, pc, NULL);
97ab0fdd
MR
6704 high_word = (inst >> 16) & 0xffff;
6705
6706 if (high_word != 0x27bd /* addiu $sp,$sp,offset */
6707 && high_word != 0x67bd /* daddiu $sp,$sp,offset */
6708 && inst != 0x03e00008 /* jr $ra */
6709 && inst != 0x00000000) /* nop */
6710 return 0;
6711 }
6712
6713 return 1;
6714 }
6715
6716 return 0;
6717}
6718
c9cf6e20
MG
6719/* Implement the stack_frame_destroyed_p gdbarch method (microMIPS version).
6720 This is a helper function for mips_stack_frame_destroyed_p. */
4cc0665f
MR
6721
6722static int
c9cf6e20 6723micromips_stack_frame_destroyed_p (struct gdbarch *gdbarch, CORE_ADDR pc)
4cc0665f
MR
6724{
6725 CORE_ADDR func_addr = 0;
6726 CORE_ADDR func_end = 0;
6727 CORE_ADDR addr;
6728 ULONGEST insn;
6729 long offset;
6730 int dreg;
6731 int sreg;
6732 int loc;
6733
6734 if (!find_pc_partial_function (pc, NULL, &func_addr, &func_end))
6735 return 0;
6736
6737 /* The microMIPS epilogue is max. 12 bytes long. */
6738 addr = func_end - 12;
6739
6740 if (addr < func_addr + 2)
6741 addr = func_addr + 2;
6742 if (pc < addr)
6743 return 0;
6744
6745 for (; pc < func_end; pc += loc)
6746 {
6747 loc = 0;
6748 insn = mips_fetch_instruction (gdbarch, ISA_MICROMIPS, pc, NULL);
6749 loc += MIPS_INSN16_SIZE;
6750 switch (mips_insn_size (ISA_MICROMIPS, insn))
6751 {
4cc0665f
MR
6752 /* 32-bit instructions. */
6753 case 2 * MIPS_INSN16_SIZE:
6754 insn <<= 16;
6755 insn |= mips_fetch_instruction (gdbarch,
6756 ISA_MICROMIPS, pc + loc, NULL);
6757 loc += MIPS_INSN16_SIZE;
6758 switch (micromips_op (insn >> 16))
6759 {
6760 case 0xc: /* ADDIU: bits 001100 */
6761 case 0x17: /* DADDIU: bits 010111 */
6762 sreg = b0s5_reg (insn >> 16);
6763 dreg = b5s5_reg (insn >> 16);
6764 offset = (b0s16_imm (insn) ^ 0x8000) - 0x8000;
6765 if (sreg == MIPS_SP_REGNUM && dreg == MIPS_SP_REGNUM
6766 /* (D)ADDIU $sp, imm */
6767 && offset >= 0)
6768 break;
6769 return 0;
6770
6771 default:
6772 return 0;
6773 }
6774 break;
6775
6776 /* 16-bit instructions. */
6777 case MIPS_INSN16_SIZE:
6778 switch (micromips_op (insn))
6779 {
6780 case 0x3: /* MOVE: bits 000011 */
6781 sreg = b0s5_reg (insn);
6782 dreg = b5s5_reg (insn);
6783 if (sreg == 0 && dreg == 0)
6784 /* MOVE $zero, $zero aka NOP */
6785 break;
6786 return 0;
6787
6788 case 0x11: /* POOL16C: bits 010001 */
6789 if (b5s5_op (insn) == 0x18
6790 /* JRADDIUSP: bits 010011 11000 */
6791 || (b5s5_op (insn) == 0xd
6792 /* JRC: bits 010011 01101 */
6793 && b0s5_reg (insn) == MIPS_RA_REGNUM))
6794 /* JRC $ra */
6795 break;
6796 return 0;
6797
6798 case 0x13: /* POOL16D: bits 010011 */
6799 offset = micromips_decode_imm9 (b1s9_imm (insn));
6800 if ((insn & 0x1) == 0x1
6801 /* ADDIUSP: bits 010011 1 */
6802 && offset > 0)
6803 break;
6804 return 0;
6805
6806 default:
6807 return 0;
6808 }
6809 }
6810 }
6811
6812 return 1;
6813}
6814
c9cf6e20
MG
6815/* Implement the stack_frame_destroyed_p gdbarch method (16-bit version).
6816 This is a helper function for mips_stack_frame_destroyed_p. */
6817
97ab0fdd 6818static int
c9cf6e20 6819mips16_stack_frame_destroyed_p (struct gdbarch *gdbarch, CORE_ADDR pc)
97ab0fdd
MR
6820{
6821 CORE_ADDR func_addr = 0, func_end = 0;
6822
6823 if (find_pc_partial_function (pc, NULL, &func_addr, &func_end))
6824 {
6825 /* The MIPS epilogue is max. 12 bytes long. */
6826 CORE_ADDR addr = func_end - 12;
6827
6828 if (addr < func_addr + 4)
6829 addr = func_addr + 4;
6830 if (pc < addr)
6831 return 0;
6832
6833 for (; pc < func_end; pc += MIPS_INSN16_SIZE)
6834 {
6835 unsigned short inst;
6836
4cc0665f 6837 inst = mips_fetch_instruction (gdbarch, ISA_MIPS16, pc, NULL);
97ab0fdd
MR
6838
6839 if ((inst & 0xf800) == 0xf000) /* extend */
6840 continue;
6841
6842 if (inst != 0x6300 /* addiu $sp,offset */
6843 && inst != 0xfb00 /* daddiu $sp,$sp,offset */
6844 && inst != 0xe820 /* jr $ra */
6845 && inst != 0xe8a0 /* jrc $ra */
6846 && inst != 0x6500) /* nop */
6847 return 0;
6848 }
6849
6850 return 1;
6851 }
6852
6853 return 0;
6854}
6855
c9cf6e20
MG
6856/* Implement the stack_frame_destroyed_p gdbarch method.
6857
6858 The epilogue is defined here as the area at the end of a function,
97ab0fdd 6859 after an instruction which destroys the function's stack frame. */
c9cf6e20 6860
97ab0fdd 6861static int
c9cf6e20 6862mips_stack_frame_destroyed_p (struct gdbarch *gdbarch, CORE_ADDR pc)
97ab0fdd 6863{
4cc0665f 6864 if (mips_pc_is_mips16 (gdbarch, pc))
c9cf6e20 6865 return mips16_stack_frame_destroyed_p (gdbarch, pc);
4cc0665f 6866 else if (mips_pc_is_micromips (gdbarch, pc))
c9cf6e20 6867 return micromips_stack_frame_destroyed_p (gdbarch, pc);
97ab0fdd 6868 else
c9cf6e20 6869 return mips32_stack_frame_destroyed_p (gdbarch, pc);
97ab0fdd
MR
6870}
6871
025bb325 6872/* Root of all "set mips "/"show mips " commands. This will eventually be
a5ea2558
AC
6873 used for all MIPS-specific commands. */
6874
a5ea2558 6875static void
acdb74a0 6876show_mips_command (char *args, int from_tty)
a5ea2558
AC
6877{
6878 help_list (showmipscmdlist, "show mips ", all_commands, gdb_stdout);
6879}
6880
a5ea2558 6881static void
acdb74a0 6882set_mips_command (char *args, int from_tty)
a5ea2558 6883{
6d82d43b
AC
6884 printf_unfiltered
6885 ("\"set mips\" must be followed by an appropriate subcommand.\n");
a5ea2558
AC
6886 help_list (setmipscmdlist, "set mips ", all_commands, gdb_stdout);
6887}
6888
c906108c
SS
6889/* Commands to show/set the MIPS FPU type. */
6890
c906108c 6891static void
acdb74a0 6892show_mipsfpu_command (char *args, int from_tty)
c906108c 6893{
c906108c 6894 char *fpu;
6ca0852e 6895
f5656ead 6896 if (gdbarch_bfd_arch_info (target_gdbarch ())->arch != bfd_arch_mips)
6ca0852e
UW
6897 {
6898 printf_unfiltered
6899 ("The MIPS floating-point coprocessor is unknown "
6900 "because the current architecture is not MIPS.\n");
6901 return;
6902 }
6903
f5656ead 6904 switch (MIPS_FPU_TYPE (target_gdbarch ()))
c906108c
SS
6905 {
6906 case MIPS_FPU_SINGLE:
6907 fpu = "single-precision";
6908 break;
6909 case MIPS_FPU_DOUBLE:
6910 fpu = "double-precision";
6911 break;
6912 case MIPS_FPU_NONE:
6913 fpu = "absent (none)";
6914 break;
93d56215 6915 default:
e2e0b3e5 6916 internal_error (__FILE__, __LINE__, _("bad switch"));
c906108c
SS
6917 }
6918 if (mips_fpu_type_auto)
025bb325
MS
6919 printf_unfiltered ("The MIPS floating-point coprocessor "
6920 "is set automatically (currently %s)\n",
6921 fpu);
c906108c 6922 else
6d82d43b
AC
6923 printf_unfiltered
6924 ("The MIPS floating-point coprocessor is assumed to be %s\n", fpu);
c906108c
SS
6925}
6926
6927
c906108c 6928static void
acdb74a0 6929set_mipsfpu_command (char *args, int from_tty)
c906108c 6930{
025bb325
MS
6931 printf_unfiltered ("\"set mipsfpu\" must be followed by \"double\", "
6932 "\"single\",\"none\" or \"auto\".\n");
c906108c
SS
6933 show_mipsfpu_command (args, from_tty);
6934}
6935
c906108c 6936static void
acdb74a0 6937set_mipsfpu_single_command (char *args, int from_tty)
c906108c 6938{
8d5838b5
AC
6939 struct gdbarch_info info;
6940 gdbarch_info_init (&info);
c906108c
SS
6941 mips_fpu_type = MIPS_FPU_SINGLE;
6942 mips_fpu_type_auto = 0;
8d5838b5
AC
6943 /* FIXME: cagney/2003-11-15: Should be setting a field in "info"
6944 instead of relying on globals. Doing that would let generic code
6945 handle the search for this specific architecture. */
6946 if (!gdbarch_update_p (info))
e2e0b3e5 6947 internal_error (__FILE__, __LINE__, _("set mipsfpu failed"));
c906108c
SS
6948}
6949
c906108c 6950static void
acdb74a0 6951set_mipsfpu_double_command (char *args, int from_tty)
c906108c 6952{
8d5838b5
AC
6953 struct gdbarch_info info;
6954 gdbarch_info_init (&info);
c906108c
SS
6955 mips_fpu_type = MIPS_FPU_DOUBLE;
6956 mips_fpu_type_auto = 0;
8d5838b5
AC
6957 /* FIXME: cagney/2003-11-15: Should be setting a field in "info"
6958 instead of relying on globals. Doing that would let generic code
6959 handle the search for this specific architecture. */
6960 if (!gdbarch_update_p (info))
e2e0b3e5 6961 internal_error (__FILE__, __LINE__, _("set mipsfpu failed"));
c906108c
SS
6962}
6963
c906108c 6964static void
acdb74a0 6965set_mipsfpu_none_command (char *args, int from_tty)
c906108c 6966{
8d5838b5
AC
6967 struct gdbarch_info info;
6968 gdbarch_info_init (&info);
c906108c
SS
6969 mips_fpu_type = MIPS_FPU_NONE;
6970 mips_fpu_type_auto = 0;
8d5838b5
AC
6971 /* FIXME: cagney/2003-11-15: Should be setting a field in "info"
6972 instead of relying on globals. Doing that would let generic code
6973 handle the search for this specific architecture. */
6974 if (!gdbarch_update_p (info))
e2e0b3e5 6975 internal_error (__FILE__, __LINE__, _("set mipsfpu failed"));
c906108c
SS
6976}
6977
c906108c 6978static void
acdb74a0 6979set_mipsfpu_auto_command (char *args, int from_tty)
c906108c
SS
6980{
6981 mips_fpu_type_auto = 1;
6982}
6983
c906108c 6984/* Attempt to identify the particular processor model by reading the
691c0433
AC
6985 processor id. NOTE: cagney/2003-11-15: Firstly it isn't clear that
6986 the relevant processor still exists (it dates back to '94) and
6987 secondly this is not the way to do this. The processor type should
6988 be set by forcing an architecture change. */
c906108c 6989
691c0433
AC
6990void
6991deprecated_mips_set_processor_regs_hack (void)
c906108c 6992{
bb486190
UW
6993 struct regcache *regcache = get_current_regcache ();
6994 struct gdbarch *gdbarch = get_regcache_arch (regcache);
6995 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
a9614958 6996 ULONGEST prid;
c906108c 6997
bb486190 6998 regcache_cooked_read_unsigned (regcache, MIPS_PRID_REGNUM, &prid);
c906108c 6999 if ((prid & ~0xf) == 0x700)
691c0433 7000 tdep->mips_processor_reg_names = mips_r3041_reg_names;
c906108c
SS
7001}
7002
7003/* Just like reinit_frame_cache, but with the right arguments to be
7004 callable as an sfunc. */
7005
7006static void
acdb74a0
AC
7007reinit_frame_cache_sfunc (char *args, int from_tty,
7008 struct cmd_list_element *c)
c906108c
SS
7009{
7010 reinit_frame_cache ();
7011}
7012
a89aa300
AC
7013static int
7014gdb_print_insn_mips (bfd_vma memaddr, struct disassemble_info *info)
c906108c 7015{
19ba03f4 7016 struct gdbarch *gdbarch = (struct gdbarch *) info->application_data;
4cc0665f 7017
d31431ed
AC
7018 /* FIXME: cagney/2003-06-26: Is this even necessary? The
7019 disassembler needs to be able to locally determine the ISA, and
7020 not rely on GDB. Otherwize the stand-alone 'objdump -d' will not
7021 work. */
4cc0665f 7022 if (mips_pc_is_mips16 (gdbarch, memaddr))
ec4045ea 7023 info->mach = bfd_mach_mips16;
4cc0665f
MR
7024 else if (mips_pc_is_micromips (gdbarch, memaddr))
7025 info->mach = bfd_mach_mips_micromips;
c906108c
SS
7026
7027 /* Round down the instruction address to the appropriate boundary. */
4cc0665f
MR
7028 memaddr &= (info->mach == bfd_mach_mips16
7029 || info->mach == bfd_mach_mips_micromips) ? ~1 : ~3;
c5aa993b 7030
e5ab0dce 7031 /* Set the disassembler options. */
9dae60cc 7032 if (!info->disassembler_options)
e5ab0dce
AC
7033 /* This string is not recognized explicitly by the disassembler,
7034 but it tells the disassembler to not try to guess the ABI from
7035 the bfd elf headers, such that, if the user overrides the ABI
7036 of a program linked as NewABI, the disassembly will follow the
7037 register naming conventions specified by the user. */
7038 info->disassembler_options = "gpr-names=32";
7039
c906108c 7040 /* Call the appropriate disassembler based on the target endian-ness. */
40887e1a 7041 if (info->endian == BFD_ENDIAN_BIG)
c906108c
SS
7042 return print_insn_big_mips (memaddr, info);
7043 else
7044 return print_insn_little_mips (memaddr, info);
7045}
7046
9dae60cc
UW
7047static int
7048gdb_print_insn_mips_n32 (bfd_vma memaddr, struct disassemble_info *info)
7049{
7050 /* Set up the disassembler info, so that we get the right
7051 register names from libopcodes. */
7052 info->disassembler_options = "gpr-names=n32";
7053 info->flavour = bfd_target_elf_flavour;
7054
7055 return gdb_print_insn_mips (memaddr, info);
7056}
7057
7058static int
7059gdb_print_insn_mips_n64 (bfd_vma memaddr, struct disassemble_info *info)
7060{
7061 /* Set up the disassembler info, so that we get the right
7062 register names from libopcodes. */
7063 info->disassembler_options = "gpr-names=64";
7064 info->flavour = bfd_target_elf_flavour;
7065
7066 return gdb_print_insn_mips (memaddr, info);
7067}
7068
025bb325
MS
7069/* This function implements gdbarch_breakpoint_from_pc. It uses the
7070 program counter value to determine whether a 16- or 32-bit breakpoint
7071 should be used. It returns a pointer to a string of bytes that encode a
7072 breakpoint instruction, stores the length of the string to *lenptr, and
7073 adjusts pc (if necessary) to point to the actual memory location where
7074 the breakpoint should be inserted. */
c906108c 7075
47a35522 7076static const gdb_byte *
025bb325
MS
7077mips_breakpoint_from_pc (struct gdbarch *gdbarch,
7078 CORE_ADDR *pcptr, int *lenptr)
c906108c 7079{
4cc0665f
MR
7080 CORE_ADDR pc = *pcptr;
7081
67d57894 7082 if (gdbarch_byte_order (gdbarch) == BFD_ENDIAN_BIG)
c906108c 7083 {
4cc0665f 7084 if (mips_pc_is_mips16 (gdbarch, pc))
c906108c 7085 {
47a35522 7086 static gdb_byte mips16_big_breakpoint[] = { 0xe8, 0xa5 };
4cc0665f 7087 *pcptr = unmake_compact_addr (pc);
c5aa993b 7088 *lenptr = sizeof (mips16_big_breakpoint);
c906108c
SS
7089 return mips16_big_breakpoint;
7090 }
4cc0665f
MR
7091 else if (mips_pc_is_micromips (gdbarch, pc))
7092 {
7093 static gdb_byte micromips16_big_breakpoint[] = { 0x46, 0x85 };
7094 static gdb_byte micromips32_big_breakpoint[] = { 0, 0x5, 0, 0x7 };
7095 ULONGEST insn;
d09f2c3f 7096 int err;
4cc0665f
MR
7097 int size;
7098
d09f2c3f 7099 insn = mips_fetch_instruction (gdbarch, ISA_MICROMIPS, pc, &err);
100b4f2e 7100 size = err ? 2 : mips_insn_size (ISA_MICROMIPS, insn);
4cc0665f
MR
7101 *pcptr = unmake_compact_addr (pc);
7102 *lenptr = size;
7103 return (size == 2) ? micromips16_big_breakpoint
7104 : micromips32_big_breakpoint;
7105 }
c906108c
SS
7106 else
7107 {
aaab4dba
AC
7108 /* The IDT board uses an unusual breakpoint value, and
7109 sometimes gets confused when it sees the usual MIPS
7110 breakpoint instruction. */
47a35522
MK
7111 static gdb_byte big_breakpoint[] = { 0, 0x5, 0, 0xd };
7112 static gdb_byte pmon_big_breakpoint[] = { 0, 0, 0, 0xd };
7113 static gdb_byte idt_big_breakpoint[] = { 0, 0, 0x0a, 0xd };
f2ec0ecf 7114 /* Likewise, IRIX appears to expect a different breakpoint,
025bb325 7115 although this is not apparent until you try to use pthreads. */
f2ec0ecf 7116 static gdb_byte irix_big_breakpoint[] = { 0, 0, 0, 0xd };
c906108c 7117
c5aa993b 7118 *lenptr = sizeof (big_breakpoint);
c906108c
SS
7119
7120 if (strcmp (target_shortname, "mips") == 0)
7121 return idt_big_breakpoint;
7122 else if (strcmp (target_shortname, "ddb") == 0
7123 || strcmp (target_shortname, "pmon") == 0
7124 || strcmp (target_shortname, "lsi") == 0)
7125 return pmon_big_breakpoint;
f2ec0ecf
JB
7126 else if (gdbarch_osabi (gdbarch) == GDB_OSABI_IRIX)
7127 return irix_big_breakpoint;
c906108c
SS
7128 else
7129 return big_breakpoint;
7130 }
7131 }
7132 else
7133 {
4cc0665f 7134 if (mips_pc_is_mips16 (gdbarch, pc))
c906108c 7135 {
47a35522 7136 static gdb_byte mips16_little_breakpoint[] = { 0xa5, 0xe8 };
4cc0665f 7137 *pcptr = unmake_compact_addr (pc);
c5aa993b 7138 *lenptr = sizeof (mips16_little_breakpoint);
c906108c
SS
7139 return mips16_little_breakpoint;
7140 }
4cc0665f
MR
7141 else if (mips_pc_is_micromips (gdbarch, pc))
7142 {
7143 static gdb_byte micromips16_little_breakpoint[] = { 0x85, 0x46 };
7144 static gdb_byte micromips32_little_breakpoint[] = { 0x5, 0, 0x7, 0 };
7145 ULONGEST insn;
5dd05630 7146 int err;
4cc0665f
MR
7147 int size;
7148
5dd05630 7149 insn = mips_fetch_instruction (gdbarch, ISA_MICROMIPS, pc, &err);
100b4f2e 7150 size = err ? 2 : mips_insn_size (ISA_MICROMIPS, insn);
4cc0665f
MR
7151 *pcptr = unmake_compact_addr (pc);
7152 *lenptr = size;
7153 return (size == 2) ? micromips16_little_breakpoint
7154 : micromips32_little_breakpoint;
7155 }
c906108c
SS
7156 else
7157 {
47a35522
MK
7158 static gdb_byte little_breakpoint[] = { 0xd, 0, 0x5, 0 };
7159 static gdb_byte pmon_little_breakpoint[] = { 0xd, 0, 0, 0 };
7160 static gdb_byte idt_little_breakpoint[] = { 0xd, 0x0a, 0, 0 };
c906108c 7161
c5aa993b 7162 *lenptr = sizeof (little_breakpoint);
c906108c
SS
7163
7164 if (strcmp (target_shortname, "mips") == 0)
7165 return idt_little_breakpoint;
7166 else if (strcmp (target_shortname, "ddb") == 0
7167 || strcmp (target_shortname, "pmon") == 0
7168 || strcmp (target_shortname, "lsi") == 0)
7169 return pmon_little_breakpoint;
7170 else
7171 return little_breakpoint;
7172 }
7173 }
7174}
7175
4cc0665f
MR
7176/* Determine the remote breakpoint kind suitable for the PC. The following
7177 kinds are used:
7178
7179 * 2 -- 16-bit MIPS16 mode breakpoint,
7180
7181 * 3 -- 16-bit microMIPS mode breakpoint,
7182
7183 * 4 -- 32-bit standard MIPS mode breakpoint,
7184
7185 * 5 -- 32-bit microMIPS mode breakpoint. */
7186
7187static void
7188mips_remote_breakpoint_from_pc (struct gdbarch *gdbarch, CORE_ADDR *pcptr,
7189 int *kindptr)
7190{
7191 CORE_ADDR pc = *pcptr;
7192
7193 if (mips_pc_is_mips16 (gdbarch, pc))
7194 {
7195 *pcptr = unmake_compact_addr (pc);
7196 *kindptr = 2;
7197 }
7198 else if (mips_pc_is_micromips (gdbarch, pc))
7199 {
7200 ULONGEST insn;
7201 int status;
7202 int size;
7203
7204 insn = mips_fetch_instruction (gdbarch, ISA_MICROMIPS, pc, &status);
7205 size = status ? 2 : mips_insn_size (ISA_MICROMIPS, insn) == 2 ? 2 : 4;
7206 *pcptr = unmake_compact_addr (pc);
7207 *kindptr = size | 1;
7208 }
7209 else
7210 *kindptr = 4;
7211}
7212
ab50adb6
MR
7213/* Return non-zero if the standard MIPS instruction INST has a branch
7214 delay slot (i.e. it is a jump or branch instruction). This function
7215 is based on mips32_next_pc. */
c8cef75f
MR
7216
7217static int
ab50adb6 7218mips32_instruction_has_delay_slot (struct gdbarch *gdbarch, ULONGEST inst)
c8cef75f 7219{
c8cef75f 7220 int op;
a385295e
MR
7221 int rs;
7222 int rt;
c8cef75f 7223
c8cef75f
MR
7224 op = itype_op (inst);
7225 if ((inst & 0xe0000000) != 0)
a385295e
MR
7226 {
7227 rs = itype_rs (inst);
7228 rt = itype_rt (inst);
f94363d7
AP
7229 return (is_octeon_bbit_op (op, gdbarch)
7230 || op >> 2 == 5 /* BEQL, BNEL, BLEZL, BGTZL: bits 0101xx */
a385295e
MR
7231 || op == 29 /* JALX: bits 011101 */
7232 || (op == 17
7233 && (rs == 8
c8cef75f 7234 /* BC1F, BC1FL, BC1T, BC1TL: 010001 01000 */
a385295e
MR
7235 || (rs == 9 && (rt & 0x2) == 0)
7236 /* BC1ANY2F, BC1ANY2T: bits 010001 01001 */
7237 || (rs == 10 && (rt & 0x2) == 0))));
7238 /* BC1ANY4F, BC1ANY4T: bits 010001 01010 */
7239 }
c8cef75f
MR
7240 else
7241 switch (op & 0x07) /* extract bits 28,27,26 */
7242 {
7243 case 0: /* SPECIAL */
7244 op = rtype_funct (inst);
7245 return (op == 8 /* JR */
7246 || op == 9); /* JALR */
7247 break; /* end SPECIAL */
7248 case 1: /* REGIMM */
a385295e
MR
7249 rs = itype_rs (inst);
7250 rt = itype_rt (inst); /* branch condition */
7251 return ((rt & 0xc) == 0
c8cef75f
MR
7252 /* BLTZ, BLTZL, BGEZ, BGEZL: bits 000xx */
7253 /* BLTZAL, BLTZALL, BGEZAL, BGEZALL: 100xx */
a385295e
MR
7254 || ((rt & 0x1e) == 0x1c && rs == 0));
7255 /* BPOSGE32, BPOSGE64: bits 1110x */
c8cef75f
MR
7256 break; /* end REGIMM */
7257 default: /* J, JAL, BEQ, BNE, BLEZ, BGTZ */
7258 return 1;
7259 break;
7260 }
7261}
7262
ab50adb6
MR
7263/* Return non-zero if a standard MIPS instruction at ADDR has a branch
7264 delay slot (i.e. it is a jump or branch instruction). */
c8cef75f 7265
4cc0665f 7266static int
ab50adb6 7267mips32_insn_at_pc_has_delay_slot (struct gdbarch *gdbarch, CORE_ADDR addr)
4cc0665f
MR
7268{
7269 ULONGEST insn;
7270 int status;
7271
ab50adb6 7272 insn = mips_fetch_instruction (gdbarch, ISA_MIPS, addr, &status);
4cc0665f
MR
7273 if (status)
7274 return 0;
7275
ab50adb6
MR
7276 return mips32_instruction_has_delay_slot (gdbarch, insn);
7277}
4cc0665f 7278
ab50adb6
MR
7279/* Return non-zero if the microMIPS instruction INSN, comprising the
7280 16-bit major opcode word in the high 16 bits and any second word
7281 in the low 16 bits, has a branch delay slot (i.e. it is a non-compact
7282 jump or branch instruction). The instruction must be 32-bit if
7283 MUSTBE32 is set or can be any instruction otherwise. */
7284
7285static int
7286micromips_instruction_has_delay_slot (ULONGEST insn, int mustbe32)
7287{
7288 ULONGEST major = insn >> 16;
4cc0665f 7289
ab50adb6
MR
7290 switch (micromips_op (major))
7291 {
7292 /* 16-bit instructions. */
7293 case 0x33: /* B16: bits 110011 */
7294 case 0x2b: /* BNEZ16: bits 101011 */
7295 case 0x23: /* BEQZ16: bits 100011 */
7296 return !mustbe32;
7297 case 0x11: /* POOL16C: bits 010001 */
7298 return (!mustbe32
7299 && ((b5s5_op (major) == 0xc
7300 /* JR16: bits 010001 01100 */
7301 || (b5s5_op (major) & 0x1e) == 0xe)));
7302 /* JALR16, JALRS16: bits 010001 0111x */
7303 /* 32-bit instructions. */
7304 case 0x3d: /* JAL: bits 111101 */
7305 case 0x3c: /* JALX: bits 111100 */
7306 case 0x35: /* J: bits 110101 */
7307 case 0x2d: /* BNE: bits 101101 */
7308 case 0x25: /* BEQ: bits 100101 */
7309 case 0x1d: /* JALS: bits 011101 */
7310 return 1;
7311 case 0x10: /* POOL32I: bits 010000 */
7312 return ((b5s5_op (major) & 0x1c) == 0x0
4cc0665f 7313 /* BLTZ, BLTZAL, BGEZ, BGEZAL: 010000 000xx */
ab50adb6 7314 || (b5s5_op (major) & 0x1d) == 0x4
4cc0665f 7315 /* BLEZ, BGTZ: bits 010000 001x0 */
ab50adb6 7316 || (b5s5_op (major) & 0x1d) == 0x11
4cc0665f 7317 /* BLTZALS, BGEZALS: bits 010000 100x1 */
ab50adb6
MR
7318 || ((b5s5_op (major) & 0x1e) == 0x14
7319 && (major & 0x3) == 0x0)
4cc0665f 7320 /* BC2F, BC2T: bits 010000 1010x xxx00 */
ab50adb6 7321 || (b5s5_op (major) & 0x1e) == 0x1a
4cc0665f 7322 /* BPOSGE64, BPOSGE32: bits 010000 1101x */
ab50adb6
MR
7323 || ((b5s5_op (major) & 0x1e) == 0x1c
7324 && (major & 0x3) == 0x0)
4cc0665f 7325 /* BC1F, BC1T: bits 010000 1110x xxx00 */
ab50adb6
MR
7326 || ((b5s5_op (major) & 0x1c) == 0x1c
7327 && (major & 0x3) == 0x1));
4cc0665f 7328 /* BC1ANY*: bits 010000 111xx xxx01 */
ab50adb6
MR
7329 case 0x0: /* POOL32A: bits 000000 */
7330 return (b0s6_op (insn) == 0x3c
7331 /* POOL32Axf: bits 000000 ... 111100 */
7332 && (b6s10_ext (insn) & 0x2bf) == 0x3c);
7333 /* JALR, JALR.HB: 000000 000x111100 111100 */
7334 /* JALRS, JALRS.HB: 000000 010x111100 111100 */
7335 default:
7336 return 0;
7337 }
4cc0665f
MR
7338}
7339
ab50adb6 7340/* Return non-zero if a microMIPS instruction at ADDR has a branch delay
ae790652
MR
7341 slot (i.e. it is a non-compact jump instruction). The instruction
7342 must be 32-bit if MUSTBE32 is set or can be any instruction otherwise. */
7343
c8cef75f 7344static int
ab50adb6
MR
7345micromips_insn_at_pc_has_delay_slot (struct gdbarch *gdbarch,
7346 CORE_ADDR addr, int mustbe32)
c8cef75f 7347{
ab50adb6 7348 ULONGEST insn;
c8cef75f 7349 int status;
3f7f3650 7350 int size;
c8cef75f 7351
ab50adb6 7352 insn = mips_fetch_instruction (gdbarch, ISA_MICROMIPS, addr, &status);
c8cef75f
MR
7353 if (status)
7354 return 0;
3f7f3650 7355 size = mips_insn_size (ISA_MICROMIPS, insn);
ab50adb6 7356 insn <<= 16;
3f7f3650 7357 if (size == 2 * MIPS_INSN16_SIZE)
ab50adb6
MR
7358 {
7359 insn |= mips_fetch_instruction (gdbarch, ISA_MICROMIPS, addr, &status);
7360 if (status)
7361 return 0;
7362 }
7363
7364 return micromips_instruction_has_delay_slot (insn, mustbe32);
7365}
c8cef75f 7366
ab50adb6
MR
7367/* Return non-zero if the MIPS16 instruction INST, which must be
7368 a 32-bit instruction if MUSTBE32 is set or can be any instruction
7369 otherwise, has a branch delay slot (i.e. it is a non-compact jump
7370 instruction). This function is based on mips16_next_pc. */
7371
7372static int
7373mips16_instruction_has_delay_slot (unsigned short inst, int mustbe32)
7374{
ae790652
MR
7375 if ((inst & 0xf89f) == 0xe800) /* JR/JALR (16-bit instruction) */
7376 return !mustbe32;
c8cef75f
MR
7377 return (inst & 0xf800) == 0x1800; /* JAL/JALX (32-bit instruction) */
7378}
7379
ab50adb6
MR
7380/* Return non-zero if a MIPS16 instruction at ADDR has a branch delay
7381 slot (i.e. it is a non-compact jump instruction). The instruction
7382 must be 32-bit if MUSTBE32 is set or can be any instruction otherwise. */
7383
7384static int
7385mips16_insn_at_pc_has_delay_slot (struct gdbarch *gdbarch,
7386 CORE_ADDR addr, int mustbe32)
7387{
7388 unsigned short insn;
7389 int status;
7390
7391 insn = mips_fetch_instruction (gdbarch, ISA_MIPS16, addr, &status);
7392 if (status)
7393 return 0;
7394
7395 return mips16_instruction_has_delay_slot (insn, mustbe32);
7396}
7397
c8cef75f
MR
7398/* Calculate the starting address of the MIPS memory segment BPADDR is in.
7399 This assumes KSSEG exists. */
7400
7401static CORE_ADDR
7402mips_segment_boundary (CORE_ADDR bpaddr)
7403{
7404 CORE_ADDR mask = CORE_ADDR_MAX;
7405 int segsize;
7406
7407 if (sizeof (CORE_ADDR) == 8)
7408 /* Get the topmost two bits of bpaddr in a 32-bit safe manner (avoid
7409 a compiler warning produced where CORE_ADDR is a 32-bit type even
7410 though in that case this is dead code). */
7411 switch (bpaddr >> ((sizeof (CORE_ADDR) << 3) - 2) & 3)
7412 {
7413 case 3:
7414 if (bpaddr == (bfd_signed_vma) (int32_t) bpaddr)
7415 segsize = 29; /* 32-bit compatibility segment */
7416 else
7417 segsize = 62; /* xkseg */
7418 break;
7419 case 2: /* xkphys */
7420 segsize = 59;
7421 break;
7422 default: /* xksseg (1), xkuseg/kuseg (0) */
7423 segsize = 62;
7424 break;
7425 }
7426 else if (bpaddr & 0x80000000) /* kernel segment */
7427 segsize = 29;
7428 else
7429 segsize = 31; /* user segment */
7430 mask <<= segsize;
7431 return bpaddr & mask;
7432}
7433
7434/* Move the breakpoint at BPADDR out of any branch delay slot by shifting
7435 it backwards if necessary. Return the address of the new location. */
7436
7437static CORE_ADDR
7438mips_adjust_breakpoint_address (struct gdbarch *gdbarch, CORE_ADDR bpaddr)
7439{
22e048c9 7440 CORE_ADDR prev_addr;
c8cef75f
MR
7441 CORE_ADDR boundary;
7442 CORE_ADDR func_addr;
7443
7444 /* If a breakpoint is set on the instruction in a branch delay slot,
7445 GDB gets confused. When the breakpoint is hit, the PC isn't on
7446 the instruction in the branch delay slot, the PC will point to
7447 the branch instruction. Since the PC doesn't match any known
7448 breakpoints, GDB reports a trap exception.
7449
7450 There are two possible fixes for this problem.
7451
7452 1) When the breakpoint gets hit, see if the BD bit is set in the
7453 Cause register (which indicates the last exception occurred in a
7454 branch delay slot). If the BD bit is set, fix the PC to point to
7455 the instruction in the branch delay slot.
7456
7457 2) When the user sets the breakpoint, don't allow him to set the
7458 breakpoint on the instruction in the branch delay slot. Instead
7459 move the breakpoint to the branch instruction (which will have
7460 the same result).
7461
7462 The problem with the first solution is that if the user then
7463 single-steps the processor, the branch instruction will get
7464 skipped (since GDB thinks the PC is on the instruction in the
7465 branch delay slot).
7466
7467 So, we'll use the second solution. To do this we need to know if
7468 the instruction we're trying to set the breakpoint on is in the
7469 branch delay slot. */
7470
7471 boundary = mips_segment_boundary (bpaddr);
7472
7473 /* Make sure we don't scan back before the beginning of the current
7474 function, since we may fetch constant data or insns that look like
7475 a jump. Of course we might do that anyway if the compiler has
7476 moved constants inline. :-( */
7477 if (find_pc_partial_function (bpaddr, NULL, &func_addr, NULL)
7478 && func_addr > boundary && func_addr <= bpaddr)
7479 boundary = func_addr;
7480
4cc0665f 7481 if (mips_pc_is_mips (bpaddr))
c8cef75f
MR
7482 {
7483 if (bpaddr == boundary)
7484 return bpaddr;
7485
7486 /* If the previous instruction has a branch delay slot, we have
7487 to move the breakpoint to the branch instruction. */
7488 prev_addr = bpaddr - 4;
ab50adb6 7489 if (mips32_insn_at_pc_has_delay_slot (gdbarch, prev_addr))
c8cef75f
MR
7490 bpaddr = prev_addr;
7491 }
7492 else
7493 {
ab50adb6 7494 int (*insn_at_pc_has_delay_slot) (struct gdbarch *, CORE_ADDR, int);
c8cef75f
MR
7495 CORE_ADDR addr, jmpaddr;
7496 int i;
7497
4cc0665f 7498 boundary = unmake_compact_addr (boundary);
c8cef75f
MR
7499
7500 /* The only MIPS16 instructions with delay slots are JAL, JALX,
7501 JALR and JR. An absolute JAL/JALX is always 4 bytes long,
7502 so try for that first, then try the 2 byte JALR/JR.
4cc0665f
MR
7503 The microMIPS ASE has a whole range of jumps and branches
7504 with delay slots, some of which take 4 bytes and some take
7505 2 bytes, so the idea is the same.
c8cef75f
MR
7506 FIXME: We have to assume that bpaddr is not the second half
7507 of an extended instruction. */
ab50adb6
MR
7508 insn_at_pc_has_delay_slot = (mips_pc_is_micromips (gdbarch, bpaddr)
7509 ? micromips_insn_at_pc_has_delay_slot
7510 : mips16_insn_at_pc_has_delay_slot);
c8cef75f
MR
7511
7512 jmpaddr = 0;
7513 addr = bpaddr;
7514 for (i = 1; i < 4; i++)
7515 {
4cc0665f 7516 if (unmake_compact_addr (addr) == boundary)
c8cef75f 7517 break;
4cc0665f 7518 addr -= MIPS_INSN16_SIZE;
ab50adb6 7519 if (i == 1 && insn_at_pc_has_delay_slot (gdbarch, addr, 0))
c8cef75f
MR
7520 /* Looks like a JR/JALR at [target-1], but it could be
7521 the second word of a previous JAL/JALX, so record it
7522 and check back one more. */
7523 jmpaddr = addr;
ab50adb6 7524 else if (i > 1 && insn_at_pc_has_delay_slot (gdbarch, addr, 1))
c8cef75f
MR
7525 {
7526 if (i == 2)
7527 /* Looks like a JAL/JALX at [target-2], but it could also
7528 be the second word of a previous JAL/JALX, record it,
7529 and check back one more. */
7530 jmpaddr = addr;
7531 else
7532 /* Looks like a JAL/JALX at [target-3], so any previously
7533 recorded JAL/JALX or JR/JALR must be wrong, because:
7534
7535 >-3: JAL
7536 -2: JAL-ext (can't be JAL/JALX)
7537 -1: bdslot (can't be JR/JALR)
7538 0: target insn
7539
7540 Of course it could be another JAL-ext which looks
7541 like a JAL, but in that case we'd have broken out
7542 of this loop at [target-2]:
7543
7544 -4: JAL
7545 >-3: JAL-ext
7546 -2: bdslot (can't be jmp)
7547 -1: JR/JALR
7548 0: target insn */
7549 jmpaddr = 0;
7550 }
7551 else
7552 {
7553 /* Not a jump instruction: if we're at [target-1] this
7554 could be the second word of a JAL/JALX, so continue;
7555 otherwise we're done. */
7556 if (i > 1)
7557 break;
7558 }
7559 }
7560
7561 if (jmpaddr)
7562 bpaddr = jmpaddr;
7563 }
7564
7565 return bpaddr;
7566}
7567
14132e89
MR
7568/* Return non-zero if SUFFIX is one of the numeric suffixes used for MIPS16
7569 call stubs, one of 1, 2, 5, 6, 9, 10, or, if ZERO is non-zero, also 0. */
7570
7571static int
7572mips_is_stub_suffix (const char *suffix, int zero)
7573{
7574 switch (suffix[0])
7575 {
7576 case '0':
7577 return zero && suffix[1] == '\0';
7578 case '1':
7579 return suffix[1] == '\0' || (suffix[1] == '0' && suffix[2] == '\0');
7580 case '2':
7581 case '5':
7582 case '6':
7583 case '9':
7584 return suffix[1] == '\0';
7585 default:
7586 return 0;
7587 }
7588}
7589
7590/* Return non-zero if MODE is one of the mode infixes used for MIPS16
7591 call stubs, one of sf, df, sc, or dc. */
7592
7593static int
7594mips_is_stub_mode (const char *mode)
7595{
7596 return ((mode[0] == 's' || mode[0] == 'd')
7597 && (mode[1] == 'f' || mode[1] == 'c'));
7598}
7599
7600/* Code at PC is a compiler-generated stub. Such a stub for a function
7601 bar might have a name like __fn_stub_bar, and might look like this:
7602
7603 mfc1 $4, $f13
7604 mfc1 $5, $f12
7605 mfc1 $6, $f15
7606 mfc1 $7, $f14
7607
7608 followed by (or interspersed with):
7609
7610 j bar
7611
7612 or:
7613
7614 lui $25, %hi(bar)
7615 addiu $25, $25, %lo(bar)
7616 jr $25
7617
7618 ($1 may be used in old code; for robustness we accept any register)
7619 or, in PIC code:
7620
7621 lui $28, %hi(_gp_disp)
7622 addiu $28, $28, %lo(_gp_disp)
7623 addu $28, $28, $25
7624 lw $25, %got(bar)
7625 addiu $25, $25, %lo(bar)
7626 jr $25
7627
7628 In the case of a __call_stub_bar stub, the sequence to set up
7629 arguments might look like this:
7630
7631 mtc1 $4, $f13
7632 mtc1 $5, $f12
7633 mtc1 $6, $f15
7634 mtc1 $7, $f14
7635
7636 followed by (or interspersed with) one of the jump sequences above.
7637
7638 In the case of a __call_stub_fp_bar stub, JAL or JALR is used instead
7639 of J or JR, respectively, followed by:
7640
7641 mfc1 $2, $f0
7642 mfc1 $3, $f1
7643 jr $18
7644
7645 We are at the beginning of the stub here, and scan down and extract
7646 the target address from the jump immediate instruction or, if a jump
7647 register instruction is used, from the register referred. Return
7648 the value of PC calculated or 0 if inconclusive.
7649
7650 The limit on the search is arbitrarily set to 20 instructions. FIXME. */
7651
7652static CORE_ADDR
7653mips_get_mips16_fn_stub_pc (struct frame_info *frame, CORE_ADDR pc)
7654{
7655 struct gdbarch *gdbarch = get_frame_arch (frame);
7656 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
7657 int addrreg = MIPS_ZERO_REGNUM;
7658 CORE_ADDR start_pc = pc;
7659 CORE_ADDR target_pc = 0;
7660 CORE_ADDR addr = 0;
7661 CORE_ADDR gp = 0;
7662 int status = 0;
7663 int i;
7664
7665 for (i = 0;
7666 status == 0 && target_pc == 0 && i < 20;
7667 i++, pc += MIPS_INSN32_SIZE)
7668 {
4cc0665f 7669 ULONGEST inst = mips_fetch_instruction (gdbarch, ISA_MIPS, pc, NULL);
14132e89
MR
7670 CORE_ADDR imm;
7671 int rt;
7672 int rs;
7673 int rd;
7674
7675 switch (itype_op (inst))
7676 {
7677 case 0: /* SPECIAL */
7678 switch (rtype_funct (inst))
7679 {
7680 case 8: /* JR */
7681 case 9: /* JALR */
7682 rs = rtype_rs (inst);
7683 if (rs == MIPS_GP_REGNUM)
7684 target_pc = gp; /* Hmm... */
7685 else if (rs == addrreg)
7686 target_pc = addr;
7687 break;
7688
7689 case 0x21: /* ADDU */
7690 rt = rtype_rt (inst);
7691 rs = rtype_rs (inst);
7692 rd = rtype_rd (inst);
7693 if (rd == MIPS_GP_REGNUM
7694 && ((rs == MIPS_GP_REGNUM && rt == MIPS_T9_REGNUM)
7695 || (rs == MIPS_T9_REGNUM && rt == MIPS_GP_REGNUM)))
7696 gp += start_pc;
7697 break;
7698 }
7699 break;
7700
7701 case 2: /* J */
7702 case 3: /* JAL */
7703 target_pc = jtype_target (inst) << 2;
7704 target_pc += ((pc + 4) & ~(CORE_ADDR) 0x0fffffff);
7705 break;
7706
7707 case 9: /* ADDIU */
7708 rt = itype_rt (inst);
7709 rs = itype_rs (inst);
7710 if (rt == rs)
7711 {
7712 imm = (itype_immediate (inst) ^ 0x8000) - 0x8000;
7713 if (rt == MIPS_GP_REGNUM)
7714 gp += imm;
7715 else if (rt == addrreg)
7716 addr += imm;
7717 }
7718 break;
7719
7720 case 0xf: /* LUI */
7721 rt = itype_rt (inst);
7722 imm = ((itype_immediate (inst) ^ 0x8000) - 0x8000) << 16;
7723 if (rt == MIPS_GP_REGNUM)
7724 gp = imm;
7725 else if (rt != MIPS_ZERO_REGNUM)
7726 {
7727 addrreg = rt;
7728 addr = imm;
7729 }
7730 break;
7731
7732 case 0x23: /* LW */
7733 rt = itype_rt (inst);
7734 rs = itype_rs (inst);
7735 imm = (itype_immediate (inst) ^ 0x8000) - 0x8000;
7736 if (gp != 0 && rs == MIPS_GP_REGNUM)
7737 {
7738 gdb_byte buf[4];
7739
7740 memset (buf, 0, sizeof (buf));
7741 status = target_read_memory (gp + imm, buf, sizeof (buf));
7742 addrreg = rt;
7743 addr = extract_signed_integer (buf, sizeof (buf), byte_order);
7744 }
7745 break;
7746 }
7747 }
7748
7749 return target_pc;
7750}
7751
7752/* If PC is in a MIPS16 call or return stub, return the address of the
7753 target PC, which is either the callee or the caller. There are several
c906108c
SS
7754 cases which must be handled:
7755
14132e89
MR
7756 * If the PC is in __mips16_ret_{d,s}{f,c}, this is a return stub
7757 and the target PC is in $31 ($ra).
c906108c 7758 * If the PC is in __mips16_call_stub_{1..10}, this is a call stub
14132e89
MR
7759 and the target PC is in $2.
7760 * If the PC at the start of __mips16_call_stub_{s,d}{f,c}_{0..10},
7761 i.e. before the JALR instruction, this is effectively a call stub
7762 and the target PC is in $2. Otherwise this is effectively
7763 a return stub and the target PC is in $18.
7764 * If the PC is at the start of __call_stub_fp_*, i.e. before the
7765 JAL or JALR instruction, this is effectively a call stub and the
7766 target PC is buried in the instruction stream. Otherwise this
7767 is effectively a return stub and the target PC is in $18.
7768 * If the PC is in __call_stub_* or in __fn_stub_*, this is a call
7769 stub and the target PC is buried in the instruction stream.
7770
7771 See the source code for the stubs in gcc/config/mips/mips16.S, or the
7772 stub builder in gcc/config/mips/mips.c (mips16_build_call_stub) for the
e7d6a6d2 7773 gory details. */
c906108c 7774
757a7cc6 7775static CORE_ADDR
db5f024e 7776mips_skip_mips16_trampoline_code (struct frame_info *frame, CORE_ADDR pc)
c906108c 7777{
e17a4113 7778 struct gdbarch *gdbarch = get_frame_arch (frame);
c906108c 7779 CORE_ADDR start_addr;
14132e89
MR
7780 const char *name;
7781 size_t prefixlen;
c906108c
SS
7782
7783 /* Find the starting address and name of the function containing the PC. */
7784 if (find_pc_partial_function (pc, &name, &start_addr, NULL) == 0)
7785 return 0;
7786
14132e89
MR
7787 /* If the PC is in __mips16_ret_{d,s}{f,c}, this is a return stub
7788 and the target PC is in $31 ($ra). */
7789 prefixlen = strlen (mips_str_mips16_ret_stub);
7790 if (strncmp (name, mips_str_mips16_ret_stub, prefixlen) == 0
7791 && mips_is_stub_mode (name + prefixlen)
7792 && name[prefixlen + 2] == '\0')
7793 return get_frame_register_signed
7794 (frame, gdbarch_num_regs (gdbarch) + MIPS_RA_REGNUM);
7795
7796 /* If the PC is in __mips16_call_stub_*, this is one of the call
7797 call/return stubs. */
7798 prefixlen = strlen (mips_str_mips16_call_stub);
7799 if (strncmp (name, mips_str_mips16_call_stub, prefixlen) == 0)
c906108c
SS
7800 {
7801 /* If the PC is in __mips16_call_stub_{1..10}, this is a call stub
7802 and the target PC is in $2. */
14132e89
MR
7803 if (mips_is_stub_suffix (name + prefixlen, 0))
7804 return get_frame_register_signed
7805 (frame, gdbarch_num_regs (gdbarch) + MIPS_V0_REGNUM);
c906108c 7806
14132e89
MR
7807 /* If the PC at the start of __mips16_call_stub_{s,d}{f,c}_{0..10},
7808 i.e. before the JALR instruction, this is effectively a call stub
b021a221 7809 and the target PC is in $2. Otherwise this is effectively
c5aa993b 7810 a return stub and the target PC is in $18. */
14132e89
MR
7811 else if (mips_is_stub_mode (name + prefixlen)
7812 && name[prefixlen + 2] == '_'
7813 && mips_is_stub_suffix (name + prefixlen + 3, 0))
c906108c
SS
7814 {
7815 if (pc == start_addr)
14132e89
MR
7816 /* This is the 'call' part of a call stub. The return
7817 address is in $2. */
7818 return get_frame_register_signed
7819 (frame, gdbarch_num_regs (gdbarch) + MIPS_V0_REGNUM);
c906108c
SS
7820 else
7821 /* This is the 'return' part of a call stub. The return
14132e89
MR
7822 address is in $18. */
7823 return get_frame_register_signed
7824 (frame, gdbarch_num_regs (gdbarch) + MIPS_S2_REGNUM);
c906108c 7825 }
14132e89
MR
7826 else
7827 return 0; /* Not a stub. */
7828 }
7829
7830 /* If the PC is in __call_stub_* or __fn_stub*, this is one of the
7831 compiler-generated call or call/return stubs. */
61012eef
GB
7832 if (startswith (name, mips_str_fn_stub)
7833 || startswith (name, mips_str_call_stub))
14132e89
MR
7834 {
7835 if (pc == start_addr)
7836 /* This is the 'call' part of a call stub. Call this helper
7837 to scan through this code for interesting instructions
7838 and determine the final PC. */
7839 return mips_get_mips16_fn_stub_pc (frame, pc);
7840 else
7841 /* This is the 'return' part of a call stub. The return address
7842 is in $18. */
7843 return get_frame_register_signed
7844 (frame, gdbarch_num_regs (gdbarch) + MIPS_S2_REGNUM);
c906108c 7845 }
14132e89
MR
7846
7847 return 0; /* Not a stub. */
7848}
7849
7850/* Return non-zero if the PC is inside a return thunk (aka stub or trampoline).
7851 This implements the IN_SOLIB_RETURN_TRAMPOLINE macro. */
7852
7853static int
7854mips_in_return_stub (struct gdbarch *gdbarch, CORE_ADDR pc, const char *name)
7855{
7856 CORE_ADDR start_addr;
7857 size_t prefixlen;
7858
7859 /* Find the starting address of the function containing the PC. */
7860 if (find_pc_partial_function (pc, NULL, &start_addr, NULL) == 0)
7861 return 0;
7862
7863 /* If the PC is in __mips16_call_stub_{s,d}{f,c}_{0..10} but not at
7864 the start, i.e. after the JALR instruction, this is effectively
7865 a return stub. */
7866 prefixlen = strlen (mips_str_mips16_call_stub);
7867 if (pc != start_addr
7868 && strncmp (name, mips_str_mips16_call_stub, prefixlen) == 0
7869 && mips_is_stub_mode (name + prefixlen)
7870 && name[prefixlen + 2] == '_'
7871 && mips_is_stub_suffix (name + prefixlen + 3, 1))
7872 return 1;
7873
7874 /* If the PC is in __call_stub_fp_* but not at the start, i.e. after
7875 the JAL or JALR instruction, this is effectively a return stub. */
7876 prefixlen = strlen (mips_str_call_fp_stub);
7877 if (pc != start_addr
7878 && strncmp (name, mips_str_call_fp_stub, prefixlen) == 0)
7879 return 1;
7880
7881 /* Consume the .pic. prefix of any PIC stub, this function must return
7882 true when the PC is in a PIC stub of a __mips16_ret_{d,s}{f,c} stub
7883 or the call stub path will trigger in handle_inferior_event causing
7884 it to go astray. */
7885 prefixlen = strlen (mips_str_pic);
7886 if (strncmp (name, mips_str_pic, prefixlen) == 0)
7887 name += prefixlen;
7888
7889 /* If the PC is in __mips16_ret_{d,s}{f,c}, this is a return stub. */
7890 prefixlen = strlen (mips_str_mips16_ret_stub);
7891 if (strncmp (name, mips_str_mips16_ret_stub, prefixlen) == 0
7892 && mips_is_stub_mode (name + prefixlen)
7893 && name[prefixlen + 2] == '\0')
7894 return 1;
7895
7896 return 0; /* Not a stub. */
c906108c
SS
7897}
7898
db5f024e
DJ
7899/* If the current PC is the start of a non-PIC-to-PIC stub, return the
7900 PC of the stub target. The stub just loads $t9 and jumps to it,
7901 so that $t9 has the correct value at function entry. */
7902
7903static CORE_ADDR
7904mips_skip_pic_trampoline_code (struct frame_info *frame, CORE_ADDR pc)
7905{
e17a4113
UW
7906 struct gdbarch *gdbarch = get_frame_arch (frame);
7907 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
7cbd4a93 7908 struct bound_minimal_symbol msym;
db5f024e
DJ
7909 int i;
7910 gdb_byte stub_code[16];
7911 int32_t stub_words[4];
7912
7913 /* The stub for foo is named ".pic.foo", and is either two
7914 instructions inserted before foo or a three instruction sequence
7915 which jumps to foo. */
7916 msym = lookup_minimal_symbol_by_pc (pc);
7cbd4a93 7917 if (msym.minsym == NULL
77e371c0 7918 || BMSYMBOL_VALUE_ADDRESS (msym) != pc
efd66ac6 7919 || MSYMBOL_LINKAGE_NAME (msym.minsym) == NULL
61012eef 7920 || !startswith (MSYMBOL_LINKAGE_NAME (msym.minsym), ".pic."))
db5f024e
DJ
7921 return 0;
7922
7923 /* A two-instruction header. */
7cbd4a93 7924 if (MSYMBOL_SIZE (msym.minsym) == 8)
db5f024e
DJ
7925 return pc + 8;
7926
7927 /* A three-instruction (plus delay slot) trampoline. */
7cbd4a93 7928 if (MSYMBOL_SIZE (msym.minsym) == 16)
db5f024e
DJ
7929 {
7930 if (target_read_memory (pc, stub_code, 16) != 0)
7931 return 0;
7932 for (i = 0; i < 4; i++)
e17a4113
UW
7933 stub_words[i] = extract_unsigned_integer (stub_code + i * 4,
7934 4, byte_order);
db5f024e
DJ
7935
7936 /* A stub contains these instructions:
7937 lui t9, %hi(target)
7938 j target
7939 addiu t9, t9, %lo(target)
7940 nop
7941
7942 This works even for N64, since stubs are only generated with
7943 -msym32. */
7944 if ((stub_words[0] & 0xffff0000U) == 0x3c190000
7945 && (stub_words[1] & 0xfc000000U) == 0x08000000
7946 && (stub_words[2] & 0xffff0000U) == 0x27390000
7947 && stub_words[3] == 0x00000000)
34b192ce
MR
7948 return ((((stub_words[0] & 0x0000ffff) << 16)
7949 + (stub_words[2] & 0x0000ffff)) ^ 0x8000) - 0x8000;
db5f024e
DJ
7950 }
7951
7952 /* Not a recognized stub. */
7953 return 0;
7954}
7955
7956static CORE_ADDR
7957mips_skip_trampoline_code (struct frame_info *frame, CORE_ADDR pc)
7958{
14132e89 7959 CORE_ADDR requested_pc = pc;
db5f024e 7960 CORE_ADDR target_pc;
14132e89
MR
7961 CORE_ADDR new_pc;
7962
7963 do
7964 {
7965 target_pc = pc;
db5f024e 7966
14132e89
MR
7967 new_pc = mips_skip_mips16_trampoline_code (frame, pc);
7968 if (new_pc)
3e29f34a 7969 pc = new_pc;
db5f024e 7970
14132e89
MR
7971 new_pc = find_solib_trampoline_target (frame, pc);
7972 if (new_pc)
3e29f34a 7973 pc = new_pc;
db5f024e 7974
14132e89
MR
7975 new_pc = mips_skip_pic_trampoline_code (frame, pc);
7976 if (new_pc)
3e29f34a 7977 pc = new_pc;
14132e89
MR
7978 }
7979 while (pc != target_pc);
db5f024e 7980
14132e89 7981 return pc != requested_pc ? pc : 0;
db5f024e
DJ
7982}
7983
a4b8ebc8 7984/* Convert a dbx stab register number (from `r' declaration) to a GDB
f57d151a 7985 [1 * gdbarch_num_regs .. 2 * gdbarch_num_regs) REGNUM. */
88c72b7d
AC
7986
7987static int
d3f73121 7988mips_stab_reg_to_regnum (struct gdbarch *gdbarch, int num)
88c72b7d 7989{
a4b8ebc8 7990 int regnum;
2f38ef89 7991 if (num >= 0 && num < 32)
a4b8ebc8 7992 regnum = num;
2f38ef89 7993 else if (num >= 38 && num < 70)
d3f73121 7994 regnum = num + mips_regnum (gdbarch)->fp0 - 38;
040b99fd 7995 else if (num == 70)
d3f73121 7996 regnum = mips_regnum (gdbarch)->hi;
040b99fd 7997 else if (num == 71)
d3f73121 7998 regnum = mips_regnum (gdbarch)->lo;
1faeff08
MR
7999 else if (mips_regnum (gdbarch)->dspacc != -1 && num >= 72 && num < 78)
8000 regnum = num + mips_regnum (gdbarch)->dspacc - 72;
2f38ef89 8001 else
0fde2c53 8002 return -1;
d3f73121 8003 return gdbarch_num_regs (gdbarch) + regnum;
88c72b7d
AC
8004}
8005
2f38ef89 8006
a4b8ebc8 8007/* Convert a dwarf, dwarf2, or ecoff register number to a GDB [1 *
f57d151a 8008 gdbarch_num_regs .. 2 * gdbarch_num_regs) REGNUM. */
88c72b7d
AC
8009
8010static int
d3f73121 8011mips_dwarf_dwarf2_ecoff_reg_to_regnum (struct gdbarch *gdbarch, int num)
88c72b7d 8012{
a4b8ebc8 8013 int regnum;
2f38ef89 8014 if (num >= 0 && num < 32)
a4b8ebc8 8015 regnum = num;
2f38ef89 8016 else if (num >= 32 && num < 64)
d3f73121 8017 regnum = num + mips_regnum (gdbarch)->fp0 - 32;
040b99fd 8018 else if (num == 64)
d3f73121 8019 regnum = mips_regnum (gdbarch)->hi;
040b99fd 8020 else if (num == 65)
d3f73121 8021 regnum = mips_regnum (gdbarch)->lo;
1faeff08
MR
8022 else if (mips_regnum (gdbarch)->dspacc != -1 && num >= 66 && num < 72)
8023 regnum = num + mips_regnum (gdbarch)->dspacc - 66;
2f38ef89 8024 else
0fde2c53 8025 return -1;
d3f73121 8026 return gdbarch_num_regs (gdbarch) + regnum;
a4b8ebc8
AC
8027}
8028
8029static int
e7faf938 8030mips_register_sim_regno (struct gdbarch *gdbarch, int regnum)
a4b8ebc8
AC
8031{
8032 /* Only makes sense to supply raw registers. */
e7faf938 8033 gdb_assert (regnum >= 0 && regnum < gdbarch_num_regs (gdbarch));
a4b8ebc8
AC
8034 /* FIXME: cagney/2002-05-13: Need to look at the pseudo register to
8035 decide if it is valid. Should instead define a standard sim/gdb
8036 register numbering scheme. */
e7faf938
MD
8037 if (gdbarch_register_name (gdbarch,
8038 gdbarch_num_regs (gdbarch) + regnum) != NULL
8039 && gdbarch_register_name (gdbarch,
025bb325
MS
8040 gdbarch_num_regs (gdbarch)
8041 + regnum)[0] != '\0')
a4b8ebc8
AC
8042 return regnum;
8043 else
6d82d43b 8044 return LEGACY_SIM_REGNO_IGNORE;
88c72b7d
AC
8045}
8046
2f38ef89 8047
4844f454
CV
8048/* Convert an integer into an address. Extracting the value signed
8049 guarantees a correctly sign extended address. */
fc0c74b1
AC
8050
8051static CORE_ADDR
79dd2d24 8052mips_integer_to_address (struct gdbarch *gdbarch,
870cd05e 8053 struct type *type, const gdb_byte *buf)
fc0c74b1 8054{
e17a4113
UW
8055 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
8056 return extract_signed_integer (buf, TYPE_LENGTH (type), byte_order);
fc0c74b1
AC
8057}
8058
82e91389
DJ
8059/* Dummy virtual frame pointer method. This is no more or less accurate
8060 than most other architectures; we just need to be explicit about it,
8061 because the pseudo-register gdbarch_sp_regnum will otherwise lead to
8062 an assertion failure. */
8063
8064static void
a54fba4c
MD
8065mips_virtual_frame_pointer (struct gdbarch *gdbarch,
8066 CORE_ADDR pc, int *reg, LONGEST *offset)
82e91389
DJ
8067{
8068 *reg = MIPS_SP_REGNUM;
8069 *offset = 0;
8070}
8071
caaa3122
DJ
8072static void
8073mips_find_abi_section (bfd *abfd, asection *sect, void *obj)
8074{
8075 enum mips_abi *abip = (enum mips_abi *) obj;
8076 const char *name = bfd_get_section_name (abfd, sect);
8077
8078 if (*abip != MIPS_ABI_UNKNOWN)
8079 return;
8080
61012eef 8081 if (!startswith (name, ".mdebug."))
caaa3122
DJ
8082 return;
8083
8084 if (strcmp (name, ".mdebug.abi32") == 0)
8085 *abip = MIPS_ABI_O32;
8086 else if (strcmp (name, ".mdebug.abiN32") == 0)
8087 *abip = MIPS_ABI_N32;
62a49b2c 8088 else if (strcmp (name, ".mdebug.abi64") == 0)
e3bddbfa 8089 *abip = MIPS_ABI_N64;
caaa3122
DJ
8090 else if (strcmp (name, ".mdebug.abiO64") == 0)
8091 *abip = MIPS_ABI_O64;
8092 else if (strcmp (name, ".mdebug.eabi32") == 0)
8093 *abip = MIPS_ABI_EABI32;
8094 else if (strcmp (name, ".mdebug.eabi64") == 0)
8095 *abip = MIPS_ABI_EABI64;
8096 else
8a3fe4f8 8097 warning (_("unsupported ABI %s."), name + 8);
caaa3122
DJ
8098}
8099
22e47e37
FF
8100static void
8101mips_find_long_section (bfd *abfd, asection *sect, void *obj)
8102{
8103 int *lbp = (int *) obj;
8104 const char *name = bfd_get_section_name (abfd, sect);
8105
61012eef 8106 if (startswith (name, ".gcc_compiled_long32"))
22e47e37 8107 *lbp = 32;
61012eef 8108 else if (startswith (name, ".gcc_compiled_long64"))
22e47e37 8109 *lbp = 64;
61012eef 8110 else if (startswith (name, ".gcc_compiled_long"))
22e47e37
FF
8111 warning (_("unrecognized .gcc_compiled_longXX"));
8112}
8113
2e4ebe70
DJ
8114static enum mips_abi
8115global_mips_abi (void)
8116{
8117 int i;
8118
8119 for (i = 0; mips_abi_strings[i] != NULL; i++)
8120 if (mips_abi_strings[i] == mips_abi_string)
8121 return (enum mips_abi) i;
8122
e2e0b3e5 8123 internal_error (__FILE__, __LINE__, _("unknown ABI string"));
2e4ebe70
DJ
8124}
8125
4cc0665f
MR
8126/* Return the default compressed instruction set, either of MIPS16
8127 or microMIPS, selected when none could have been determined from
8128 the ELF header of the binary being executed (or no binary has been
8129 selected. */
8130
8131static enum mips_isa
8132global_mips_compression (void)
8133{
8134 int i;
8135
8136 for (i = 0; mips_compression_strings[i] != NULL; i++)
8137 if (mips_compression_strings[i] == mips_compression_string)
8138 return (enum mips_isa) i;
8139
8140 internal_error (__FILE__, __LINE__, _("unknown compressed ISA string"));
8141}
8142
29709017
DJ
8143static void
8144mips_register_g_packet_guesses (struct gdbarch *gdbarch)
8145{
29709017
DJ
8146 /* If the size matches the set of 32-bit or 64-bit integer registers,
8147 assume that's what we've got. */
4eb0ad19
DJ
8148 register_remote_g_packet_guess (gdbarch, 38 * 4, mips_tdesc_gp32);
8149 register_remote_g_packet_guess (gdbarch, 38 * 8, mips_tdesc_gp64);
29709017
DJ
8150
8151 /* If the size matches the full set of registers GDB traditionally
8152 knows about, including floating point, for either 32-bit or
8153 64-bit, assume that's what we've got. */
4eb0ad19
DJ
8154 register_remote_g_packet_guess (gdbarch, 90 * 4, mips_tdesc_gp32);
8155 register_remote_g_packet_guess (gdbarch, 90 * 8, mips_tdesc_gp64);
29709017
DJ
8156
8157 /* Otherwise we don't have a useful guess. */
8158}
8159
f8b73d13
DJ
8160static struct value *
8161value_of_mips_user_reg (struct frame_info *frame, const void *baton)
8162{
19ba03f4 8163 const int *reg_p = (const int *) baton;
f8b73d13
DJ
8164 return value_of_register (*reg_p, frame);
8165}
8166
c2d11a7d 8167static struct gdbarch *
6d82d43b 8168mips_gdbarch_init (struct gdbarch_info info, struct gdbarch_list *arches)
c2d11a7d 8169{
c2d11a7d
JM
8170 struct gdbarch *gdbarch;
8171 struct gdbarch_tdep *tdep;
8172 int elf_flags;
2e4ebe70 8173 enum mips_abi mips_abi, found_abi, wanted_abi;
f8b73d13 8174 int i, num_regs;
8d5838b5 8175 enum mips_fpu_type fpu_type;
f8b73d13 8176 struct tdesc_arch_data *tdesc_data = NULL;
d929bc19 8177 int elf_fpu_type = Val_GNU_MIPS_ABI_FP_ANY;
1faeff08
MR
8178 const char **reg_names;
8179 struct mips_regnum mips_regnum, *regnum;
4cc0665f 8180 enum mips_isa mips_isa;
1faeff08
MR
8181 int dspacc;
8182 int dspctl;
8183
8184 /* Fill in the OS dependent register numbers and names. */
8185 if (info.osabi == GDB_OSABI_IRIX)
8186 {
8187 mips_regnum.fp0 = 32;
8188 mips_regnum.pc = 64;
8189 mips_regnum.cause = 65;
8190 mips_regnum.badvaddr = 66;
8191 mips_regnum.hi = 67;
8192 mips_regnum.lo = 68;
8193 mips_regnum.fp_control_status = 69;
8194 mips_regnum.fp_implementation_revision = 70;
8195 mips_regnum.dspacc = dspacc = -1;
8196 mips_regnum.dspctl = dspctl = -1;
8197 num_regs = 71;
8198 reg_names = mips_irix_reg_names;
8199 }
8200 else if (info.osabi == GDB_OSABI_LINUX)
8201 {
8202 mips_regnum.fp0 = 38;
8203 mips_regnum.pc = 37;
8204 mips_regnum.cause = 36;
8205 mips_regnum.badvaddr = 35;
8206 mips_regnum.hi = 34;
8207 mips_regnum.lo = 33;
8208 mips_regnum.fp_control_status = 70;
8209 mips_regnum.fp_implementation_revision = 71;
8210 mips_regnum.dspacc = -1;
8211 mips_regnum.dspctl = -1;
8212 dspacc = 72;
8213 dspctl = 78;
8214 num_regs = 79;
8215 reg_names = mips_linux_reg_names;
8216 }
8217 else
8218 {
8219 mips_regnum.lo = MIPS_EMBED_LO_REGNUM;
8220 mips_regnum.hi = MIPS_EMBED_HI_REGNUM;
8221 mips_regnum.badvaddr = MIPS_EMBED_BADVADDR_REGNUM;
8222 mips_regnum.cause = MIPS_EMBED_CAUSE_REGNUM;
8223 mips_regnum.pc = MIPS_EMBED_PC_REGNUM;
8224 mips_regnum.fp0 = MIPS_EMBED_FP0_REGNUM;
8225 mips_regnum.fp_control_status = 70;
8226 mips_regnum.fp_implementation_revision = 71;
8227 mips_regnum.dspacc = dspacc = -1;
8228 mips_regnum.dspctl = dspctl = -1;
8229 num_regs = MIPS_LAST_EMBED_REGNUM + 1;
8230 if (info.bfd_arch_info != NULL
8231 && info.bfd_arch_info->mach == bfd_mach_mips3900)
8232 reg_names = mips_tx39_reg_names;
8233 else
8234 reg_names = mips_generic_reg_names;
8235 }
f8b73d13
DJ
8236
8237 /* Check any target description for validity. */
8238 if (tdesc_has_registers (info.target_desc))
8239 {
8240 static const char *const mips_gprs[] = {
8241 "r0", "r1", "r2", "r3", "r4", "r5", "r6", "r7",
8242 "r8", "r9", "r10", "r11", "r12", "r13", "r14", "r15",
8243 "r16", "r17", "r18", "r19", "r20", "r21", "r22", "r23",
8244 "r24", "r25", "r26", "r27", "r28", "r29", "r30", "r31"
8245 };
8246 static const char *const mips_fprs[] = {
8247 "f0", "f1", "f2", "f3", "f4", "f5", "f6", "f7",
8248 "f8", "f9", "f10", "f11", "f12", "f13", "f14", "f15",
8249 "f16", "f17", "f18", "f19", "f20", "f21", "f22", "f23",
8250 "f24", "f25", "f26", "f27", "f28", "f29", "f30", "f31",
8251 };
8252
8253 const struct tdesc_feature *feature;
8254 int valid_p;
8255
8256 feature = tdesc_find_feature (info.target_desc,
8257 "org.gnu.gdb.mips.cpu");
8258 if (feature == NULL)
8259 return NULL;
8260
8261 tdesc_data = tdesc_data_alloc ();
8262
8263 valid_p = 1;
8264 for (i = MIPS_ZERO_REGNUM; i <= MIPS_RA_REGNUM; i++)
8265 valid_p &= tdesc_numbered_register (feature, tdesc_data, i,
8266 mips_gprs[i]);
8267
8268
8269 valid_p &= tdesc_numbered_register (feature, tdesc_data,
1faeff08 8270 mips_regnum.lo, "lo");
f8b73d13 8271 valid_p &= tdesc_numbered_register (feature, tdesc_data,
1faeff08 8272 mips_regnum.hi, "hi");
f8b73d13 8273 valid_p &= tdesc_numbered_register (feature, tdesc_data,
1faeff08 8274 mips_regnum.pc, "pc");
f8b73d13
DJ
8275
8276 if (!valid_p)
8277 {
8278 tdesc_data_cleanup (tdesc_data);
8279 return NULL;
8280 }
8281
8282 feature = tdesc_find_feature (info.target_desc,
8283 "org.gnu.gdb.mips.cp0");
8284 if (feature == NULL)
8285 {
8286 tdesc_data_cleanup (tdesc_data);
8287 return NULL;
8288 }
8289
8290 valid_p = 1;
8291 valid_p &= tdesc_numbered_register (feature, tdesc_data,
1faeff08 8292 mips_regnum.badvaddr, "badvaddr");
f8b73d13
DJ
8293 valid_p &= tdesc_numbered_register (feature, tdesc_data,
8294 MIPS_PS_REGNUM, "status");
8295 valid_p &= tdesc_numbered_register (feature, tdesc_data,
1faeff08 8296 mips_regnum.cause, "cause");
f8b73d13
DJ
8297
8298 if (!valid_p)
8299 {
8300 tdesc_data_cleanup (tdesc_data);
8301 return NULL;
8302 }
8303
8304 /* FIXME drow/2007-05-17: The FPU should be optional. The MIPS
8305 backend is not prepared for that, though. */
8306 feature = tdesc_find_feature (info.target_desc,
8307 "org.gnu.gdb.mips.fpu");
8308 if (feature == NULL)
8309 {
8310 tdesc_data_cleanup (tdesc_data);
8311 return NULL;
8312 }
8313
8314 valid_p = 1;
8315 for (i = 0; i < 32; i++)
8316 valid_p &= tdesc_numbered_register (feature, tdesc_data,
1faeff08 8317 i + mips_regnum.fp0, mips_fprs[i]);
f8b73d13
DJ
8318
8319 valid_p &= tdesc_numbered_register (feature, tdesc_data,
1faeff08
MR
8320 mips_regnum.fp_control_status,
8321 "fcsr");
8322 valid_p
8323 &= tdesc_numbered_register (feature, tdesc_data,
8324 mips_regnum.fp_implementation_revision,
8325 "fir");
f8b73d13
DJ
8326
8327 if (!valid_p)
8328 {
8329 tdesc_data_cleanup (tdesc_data);
8330 return NULL;
8331 }
8332
1faeff08
MR
8333 if (dspacc >= 0)
8334 {
8335 feature = tdesc_find_feature (info.target_desc,
8336 "org.gnu.gdb.mips.dsp");
8337 /* The DSP registers are optional; it's OK if they are absent. */
8338 if (feature != NULL)
8339 {
8340 i = 0;
8341 valid_p = 1;
8342 valid_p &= tdesc_numbered_register (feature, tdesc_data,
8343 dspacc + i++, "hi1");
8344 valid_p &= tdesc_numbered_register (feature, tdesc_data,
8345 dspacc + i++, "lo1");
8346 valid_p &= tdesc_numbered_register (feature, tdesc_data,
8347 dspacc + i++, "hi2");
8348 valid_p &= tdesc_numbered_register (feature, tdesc_data,
8349 dspacc + i++, "lo2");
8350 valid_p &= tdesc_numbered_register (feature, tdesc_data,
8351 dspacc + i++, "hi3");
8352 valid_p &= tdesc_numbered_register (feature, tdesc_data,
8353 dspacc + i++, "lo3");
8354
8355 valid_p &= tdesc_numbered_register (feature, tdesc_data,
8356 dspctl, "dspctl");
8357
8358 if (!valid_p)
8359 {
8360 tdesc_data_cleanup (tdesc_data);
8361 return NULL;
8362 }
8363
8364 mips_regnum.dspacc = dspacc;
8365 mips_regnum.dspctl = dspctl;
8366 }
8367 }
8368
f8b73d13
DJ
8369 /* It would be nice to detect an attempt to use a 64-bit ABI
8370 when only 32-bit registers are provided. */
1faeff08 8371 reg_names = NULL;
f8b73d13 8372 }
c2d11a7d 8373
ec03c1ac
AC
8374 /* First of all, extract the elf_flags, if available. */
8375 if (info.abfd && bfd_get_flavour (info.abfd) == bfd_target_elf_flavour)
8376 elf_flags = elf_elfheader (info.abfd)->e_flags;
6214a8a1
AC
8377 else if (arches != NULL)
8378 elf_flags = gdbarch_tdep (arches->gdbarch)->elf_flags;
ec03c1ac
AC
8379 else
8380 elf_flags = 0;
8381 if (gdbarch_debug)
8382 fprintf_unfiltered (gdb_stdlog,
6d82d43b 8383 "mips_gdbarch_init: elf_flags = 0x%08x\n", elf_flags);
c2d11a7d 8384
102182a9 8385 /* Check ELF_FLAGS to see if it specifies the ABI being used. */
0dadbba0
AC
8386 switch ((elf_flags & EF_MIPS_ABI))
8387 {
8388 case E_MIPS_ABI_O32:
ec03c1ac 8389 found_abi = MIPS_ABI_O32;
0dadbba0
AC
8390 break;
8391 case E_MIPS_ABI_O64:
ec03c1ac 8392 found_abi = MIPS_ABI_O64;
0dadbba0
AC
8393 break;
8394 case E_MIPS_ABI_EABI32:
ec03c1ac 8395 found_abi = MIPS_ABI_EABI32;
0dadbba0
AC
8396 break;
8397 case E_MIPS_ABI_EABI64:
ec03c1ac 8398 found_abi = MIPS_ABI_EABI64;
0dadbba0
AC
8399 break;
8400 default:
acdb74a0 8401 if ((elf_flags & EF_MIPS_ABI2))
ec03c1ac 8402 found_abi = MIPS_ABI_N32;
acdb74a0 8403 else
ec03c1ac 8404 found_abi = MIPS_ABI_UNKNOWN;
0dadbba0
AC
8405 break;
8406 }
acdb74a0 8407
caaa3122 8408 /* GCC creates a pseudo-section whose name describes the ABI. */
ec03c1ac
AC
8409 if (found_abi == MIPS_ABI_UNKNOWN && info.abfd != NULL)
8410 bfd_map_over_sections (info.abfd, mips_find_abi_section, &found_abi);
caaa3122 8411
dc305454 8412 /* If we have no useful BFD information, use the ABI from the last
ec03c1ac
AC
8413 MIPS architecture (if there is one). */
8414 if (found_abi == MIPS_ABI_UNKNOWN && info.abfd == NULL && arches != NULL)
8415 found_abi = gdbarch_tdep (arches->gdbarch)->found_abi;
2e4ebe70 8416
32a6503c 8417 /* Try the architecture for any hint of the correct ABI. */
ec03c1ac 8418 if (found_abi == MIPS_ABI_UNKNOWN
bf64bfd6
AC
8419 && info.bfd_arch_info != NULL
8420 && info.bfd_arch_info->arch == bfd_arch_mips)
8421 {
8422 switch (info.bfd_arch_info->mach)
8423 {
8424 case bfd_mach_mips3900:
ec03c1ac 8425 found_abi = MIPS_ABI_EABI32;
bf64bfd6
AC
8426 break;
8427 case bfd_mach_mips4100:
8428 case bfd_mach_mips5000:
ec03c1ac 8429 found_abi = MIPS_ABI_EABI64;
bf64bfd6 8430 break;
1d06468c
EZ
8431 case bfd_mach_mips8000:
8432 case bfd_mach_mips10000:
32a6503c
KB
8433 /* On Irix, ELF64 executables use the N64 ABI. The
8434 pseudo-sections which describe the ABI aren't present
8435 on IRIX. (Even for executables created by gcc.) */
e6c2f47b
PA
8436 if (info.abfd != NULL
8437 && bfd_get_flavour (info.abfd) == bfd_target_elf_flavour
28d169de 8438 && elf_elfheader (info.abfd)->e_ident[EI_CLASS] == ELFCLASS64)
ec03c1ac 8439 found_abi = MIPS_ABI_N64;
28d169de 8440 else
ec03c1ac 8441 found_abi = MIPS_ABI_N32;
1d06468c 8442 break;
bf64bfd6
AC
8443 }
8444 }
2e4ebe70 8445
26c53e50
DJ
8446 /* Default 64-bit objects to N64 instead of O32. */
8447 if (found_abi == MIPS_ABI_UNKNOWN
8448 && info.abfd != NULL
8449 && bfd_get_flavour (info.abfd) == bfd_target_elf_flavour
8450 && elf_elfheader (info.abfd)->e_ident[EI_CLASS] == ELFCLASS64)
8451 found_abi = MIPS_ABI_N64;
8452
ec03c1ac
AC
8453 if (gdbarch_debug)
8454 fprintf_unfiltered (gdb_stdlog, "mips_gdbarch_init: found_abi = %d\n",
8455 found_abi);
8456
8457 /* What has the user specified from the command line? */
8458 wanted_abi = global_mips_abi ();
8459 if (gdbarch_debug)
8460 fprintf_unfiltered (gdb_stdlog, "mips_gdbarch_init: wanted_abi = %d\n",
8461 wanted_abi);
2e4ebe70
DJ
8462
8463 /* Now that we have found what the ABI for this binary would be,
8464 check whether the user is overriding it. */
2e4ebe70
DJ
8465 if (wanted_abi != MIPS_ABI_UNKNOWN)
8466 mips_abi = wanted_abi;
ec03c1ac
AC
8467 else if (found_abi != MIPS_ABI_UNKNOWN)
8468 mips_abi = found_abi;
8469 else
8470 mips_abi = MIPS_ABI_O32;
8471 if (gdbarch_debug)
8472 fprintf_unfiltered (gdb_stdlog, "mips_gdbarch_init: mips_abi = %d\n",
8473 mips_abi);
2e4ebe70 8474
4cc0665f
MR
8475 /* Determine the default compressed ISA. */
8476 if ((elf_flags & EF_MIPS_ARCH_ASE_MICROMIPS) != 0
8477 && (elf_flags & EF_MIPS_ARCH_ASE_M16) == 0)
8478 mips_isa = ISA_MICROMIPS;
8479 else if ((elf_flags & EF_MIPS_ARCH_ASE_M16) != 0
8480 && (elf_flags & EF_MIPS_ARCH_ASE_MICROMIPS) == 0)
8481 mips_isa = ISA_MIPS16;
8482 else
8483 mips_isa = global_mips_compression ();
8484 mips_compression_string = mips_compression_strings[mips_isa];
8485
ec03c1ac 8486 /* Also used when doing an architecture lookup. */
4b9b3959 8487 if (gdbarch_debug)
ec03c1ac 8488 fprintf_unfiltered (gdb_stdlog,
025bb325
MS
8489 "mips_gdbarch_init: "
8490 "mips64_transfers_32bit_regs_p = %d\n",
ec03c1ac 8491 mips64_transfers_32bit_regs_p);
0dadbba0 8492
8d5838b5 8493 /* Determine the MIPS FPU type. */
609ca2b9
DJ
8494#ifdef HAVE_ELF
8495 if (info.abfd
8496 && bfd_get_flavour (info.abfd) == bfd_target_elf_flavour)
8497 elf_fpu_type = bfd_elf_get_obj_attr_int (info.abfd, OBJ_ATTR_GNU,
8498 Tag_GNU_MIPS_ABI_FP);
8499#endif /* HAVE_ELF */
8500
8d5838b5
AC
8501 if (!mips_fpu_type_auto)
8502 fpu_type = mips_fpu_type;
d929bc19 8503 else if (elf_fpu_type != Val_GNU_MIPS_ABI_FP_ANY)
609ca2b9
DJ
8504 {
8505 switch (elf_fpu_type)
8506 {
d929bc19 8507 case Val_GNU_MIPS_ABI_FP_DOUBLE:
609ca2b9
DJ
8508 fpu_type = MIPS_FPU_DOUBLE;
8509 break;
d929bc19 8510 case Val_GNU_MIPS_ABI_FP_SINGLE:
609ca2b9
DJ
8511 fpu_type = MIPS_FPU_SINGLE;
8512 break;
d929bc19 8513 case Val_GNU_MIPS_ABI_FP_SOFT:
609ca2b9
DJ
8514 default:
8515 /* Soft float or unknown. */
8516 fpu_type = MIPS_FPU_NONE;
8517 break;
8518 }
8519 }
8d5838b5
AC
8520 else if (info.bfd_arch_info != NULL
8521 && info.bfd_arch_info->arch == bfd_arch_mips)
8522 switch (info.bfd_arch_info->mach)
8523 {
8524 case bfd_mach_mips3900:
8525 case bfd_mach_mips4100:
8526 case bfd_mach_mips4111:
a9d61c86 8527 case bfd_mach_mips4120:
8d5838b5
AC
8528 fpu_type = MIPS_FPU_NONE;
8529 break;
8530 case bfd_mach_mips4650:
8531 fpu_type = MIPS_FPU_SINGLE;
8532 break;
8533 default:
8534 fpu_type = MIPS_FPU_DOUBLE;
8535 break;
8536 }
8537 else if (arches != NULL)
8538 fpu_type = gdbarch_tdep (arches->gdbarch)->mips_fpu_type;
8539 else
8540 fpu_type = MIPS_FPU_DOUBLE;
8541 if (gdbarch_debug)
8542 fprintf_unfiltered (gdb_stdlog,
6d82d43b 8543 "mips_gdbarch_init: fpu_type = %d\n", fpu_type);
8d5838b5 8544
29709017
DJ
8545 /* Check for blatant incompatibilities. */
8546
8547 /* If we have only 32-bit registers, then we can't debug a 64-bit
8548 ABI. */
8549 if (info.target_desc
8550 && tdesc_property (info.target_desc, PROPERTY_GP32) != NULL
8551 && mips_abi != MIPS_ABI_EABI32
8552 && mips_abi != MIPS_ABI_O32)
f8b73d13
DJ
8553 {
8554 if (tdesc_data != NULL)
8555 tdesc_data_cleanup (tdesc_data);
8556 return NULL;
8557 }
29709017 8558
025bb325 8559 /* Try to find a pre-existing architecture. */
c2d11a7d
JM
8560 for (arches = gdbarch_list_lookup_by_info (arches, &info);
8561 arches != NULL;
8562 arches = gdbarch_list_lookup_by_info (arches->next, &info))
8563 {
d54398a7
MR
8564 /* MIPS needs to be pedantic about which ABI and the compressed
8565 ISA variation the object is using. */
9103eae0 8566 if (gdbarch_tdep (arches->gdbarch)->elf_flags != elf_flags)
c2d11a7d 8567 continue;
9103eae0 8568 if (gdbarch_tdep (arches->gdbarch)->mips_abi != mips_abi)
0dadbba0 8569 continue;
d54398a7
MR
8570 if (gdbarch_tdep (arches->gdbarch)->mips_isa != mips_isa)
8571 continue;
719ec221
AC
8572 /* Need to be pedantic about which register virtual size is
8573 used. */
8574 if (gdbarch_tdep (arches->gdbarch)->mips64_transfers_32bit_regs_p
8575 != mips64_transfers_32bit_regs_p)
8576 continue;
8d5838b5
AC
8577 /* Be pedantic about which FPU is selected. */
8578 if (gdbarch_tdep (arches->gdbarch)->mips_fpu_type != fpu_type)
8579 continue;
f8b73d13
DJ
8580
8581 if (tdesc_data != NULL)
8582 tdesc_data_cleanup (tdesc_data);
4be87837 8583 return arches->gdbarch;
c2d11a7d
JM
8584 }
8585
102182a9 8586 /* Need a new architecture. Fill in a target specific vector. */
8d749320 8587 tdep = XNEW (struct gdbarch_tdep);
c2d11a7d
JM
8588 gdbarch = gdbarch_alloc (&info, tdep);
8589 tdep->elf_flags = elf_flags;
719ec221 8590 tdep->mips64_transfers_32bit_regs_p = mips64_transfers_32bit_regs_p;
ec03c1ac
AC
8591 tdep->found_abi = found_abi;
8592 tdep->mips_abi = mips_abi;
4cc0665f 8593 tdep->mips_isa = mips_isa;
8d5838b5 8594 tdep->mips_fpu_type = fpu_type;
29709017
DJ
8595 tdep->register_size_valid_p = 0;
8596 tdep->register_size = 0;
8597
8598 if (info.target_desc)
8599 {
8600 /* Some useful properties can be inferred from the target. */
8601 if (tdesc_property (info.target_desc, PROPERTY_GP32) != NULL)
8602 {
8603 tdep->register_size_valid_p = 1;
8604 tdep->register_size = 4;
8605 }
8606 else if (tdesc_property (info.target_desc, PROPERTY_GP64) != NULL)
8607 {
8608 tdep->register_size_valid_p = 1;
8609 tdep->register_size = 8;
8610 }
8611 }
c2d11a7d 8612
102182a9 8613 /* Initially set everything according to the default ABI/ISA. */
c2d11a7d
JM
8614 set_gdbarch_short_bit (gdbarch, 16);
8615 set_gdbarch_int_bit (gdbarch, 32);
8616 set_gdbarch_float_bit (gdbarch, 32);
8617 set_gdbarch_double_bit (gdbarch, 64);
8618 set_gdbarch_long_double_bit (gdbarch, 64);
a4b8ebc8
AC
8619 set_gdbarch_register_reggroup_p (gdbarch, mips_register_reggroup_p);
8620 set_gdbarch_pseudo_register_read (gdbarch, mips_pseudo_register_read);
8621 set_gdbarch_pseudo_register_write (gdbarch, mips_pseudo_register_write);
1d06468c 8622
175ff332
HZ
8623 set_gdbarch_ax_pseudo_register_collect (gdbarch,
8624 mips_ax_pseudo_register_collect);
8625 set_gdbarch_ax_pseudo_register_push_stack
8626 (gdbarch, mips_ax_pseudo_register_push_stack);
8627
6d82d43b 8628 set_gdbarch_elf_make_msymbol_special (gdbarch,
f7ab6ec6 8629 mips_elf_make_msymbol_special);
3e29f34a
MR
8630 set_gdbarch_make_symbol_special (gdbarch, mips_make_symbol_special);
8631 set_gdbarch_adjust_dwarf2_addr (gdbarch, mips_adjust_dwarf2_addr);
8632 set_gdbarch_adjust_dwarf2_line (gdbarch, mips_adjust_dwarf2_line);
f7ab6ec6 8633
1faeff08
MR
8634 regnum = GDBARCH_OBSTACK_ZALLOC (gdbarch, struct mips_regnum);
8635 *regnum = mips_regnum;
1faeff08
MR
8636 set_gdbarch_fp0_regnum (gdbarch, regnum->fp0);
8637 set_gdbarch_num_regs (gdbarch, num_regs);
8638 set_gdbarch_num_pseudo_regs (gdbarch, num_regs);
8639 set_gdbarch_register_name (gdbarch, mips_register_name);
8640 set_gdbarch_virtual_frame_pointer (gdbarch, mips_virtual_frame_pointer);
8641 tdep->mips_processor_reg_names = reg_names;
8642 tdep->regnum = regnum;
fe29b929 8643
0dadbba0 8644 switch (mips_abi)
c2d11a7d 8645 {
0dadbba0 8646 case MIPS_ABI_O32:
25ab4790 8647 set_gdbarch_push_dummy_call (gdbarch, mips_o32_push_dummy_call);
29dfb2ac 8648 set_gdbarch_return_value (gdbarch, mips_o32_return_value);
4c7d22cb 8649 tdep->mips_last_arg_regnum = MIPS_A0_REGNUM + 4 - 1;
56cea623 8650 tdep->mips_last_fp_arg_regnum = tdep->regnum->fp0 + 12 + 4 - 1;
4014092b 8651 tdep->default_mask_address_p = 0;
c2d11a7d
JM
8652 set_gdbarch_long_bit (gdbarch, 32);
8653 set_gdbarch_ptr_bit (gdbarch, 32);
8654 set_gdbarch_long_long_bit (gdbarch, 64);
8655 break;
0dadbba0 8656 case MIPS_ABI_O64:
25ab4790 8657 set_gdbarch_push_dummy_call (gdbarch, mips_o64_push_dummy_call);
9c8fdbfa 8658 set_gdbarch_return_value (gdbarch, mips_o64_return_value);
4c7d22cb 8659 tdep->mips_last_arg_regnum = MIPS_A0_REGNUM + 4 - 1;
56cea623 8660 tdep->mips_last_fp_arg_regnum = tdep->regnum->fp0 + 12 + 4 - 1;
361d1df0 8661 tdep->default_mask_address_p = 0;
c2d11a7d
JM
8662 set_gdbarch_long_bit (gdbarch, 32);
8663 set_gdbarch_ptr_bit (gdbarch, 32);
8664 set_gdbarch_long_long_bit (gdbarch, 64);
8665 break;
0dadbba0 8666 case MIPS_ABI_EABI32:
25ab4790 8667 set_gdbarch_push_dummy_call (gdbarch, mips_eabi_push_dummy_call);
9c8fdbfa 8668 set_gdbarch_return_value (gdbarch, mips_eabi_return_value);
4c7d22cb 8669 tdep->mips_last_arg_regnum = MIPS_A0_REGNUM + 8 - 1;
56cea623 8670 tdep->mips_last_fp_arg_regnum = tdep->regnum->fp0 + 12 + 8 - 1;
4014092b 8671 tdep->default_mask_address_p = 0;
c2d11a7d
JM
8672 set_gdbarch_long_bit (gdbarch, 32);
8673 set_gdbarch_ptr_bit (gdbarch, 32);
8674 set_gdbarch_long_long_bit (gdbarch, 64);
8675 break;
0dadbba0 8676 case MIPS_ABI_EABI64:
25ab4790 8677 set_gdbarch_push_dummy_call (gdbarch, mips_eabi_push_dummy_call);
9c8fdbfa 8678 set_gdbarch_return_value (gdbarch, mips_eabi_return_value);
4c7d22cb 8679 tdep->mips_last_arg_regnum = MIPS_A0_REGNUM + 8 - 1;
56cea623 8680 tdep->mips_last_fp_arg_regnum = tdep->regnum->fp0 + 12 + 8 - 1;
4014092b 8681 tdep->default_mask_address_p = 0;
c2d11a7d
JM
8682 set_gdbarch_long_bit (gdbarch, 64);
8683 set_gdbarch_ptr_bit (gdbarch, 64);
8684 set_gdbarch_long_long_bit (gdbarch, 64);
8685 break;
0dadbba0 8686 case MIPS_ABI_N32:
25ab4790 8687 set_gdbarch_push_dummy_call (gdbarch, mips_n32n64_push_dummy_call);
29dfb2ac 8688 set_gdbarch_return_value (gdbarch, mips_n32n64_return_value);
4c7d22cb 8689 tdep->mips_last_arg_regnum = MIPS_A0_REGNUM + 8 - 1;
56cea623 8690 tdep->mips_last_fp_arg_regnum = tdep->regnum->fp0 + 12 + 8 - 1;
4014092b 8691 tdep->default_mask_address_p = 0;
0dadbba0
AC
8692 set_gdbarch_long_bit (gdbarch, 32);
8693 set_gdbarch_ptr_bit (gdbarch, 32);
8694 set_gdbarch_long_long_bit (gdbarch, 64);
fed7ba43 8695 set_gdbarch_long_double_bit (gdbarch, 128);
b14d30e1 8696 set_gdbarch_long_double_format (gdbarch, floatformats_ibm_long_double);
28d169de
KB
8697 break;
8698 case MIPS_ABI_N64:
25ab4790 8699 set_gdbarch_push_dummy_call (gdbarch, mips_n32n64_push_dummy_call);
29dfb2ac 8700 set_gdbarch_return_value (gdbarch, mips_n32n64_return_value);
4c7d22cb 8701 tdep->mips_last_arg_regnum = MIPS_A0_REGNUM + 8 - 1;
56cea623 8702 tdep->mips_last_fp_arg_regnum = tdep->regnum->fp0 + 12 + 8 - 1;
28d169de
KB
8703 tdep->default_mask_address_p = 0;
8704 set_gdbarch_long_bit (gdbarch, 64);
8705 set_gdbarch_ptr_bit (gdbarch, 64);
8706 set_gdbarch_long_long_bit (gdbarch, 64);
fed7ba43 8707 set_gdbarch_long_double_bit (gdbarch, 128);
b14d30e1 8708 set_gdbarch_long_double_format (gdbarch, floatformats_ibm_long_double);
0dadbba0 8709 break;
c2d11a7d 8710 default:
e2e0b3e5 8711 internal_error (__FILE__, __LINE__, _("unknown ABI in switch"));
c2d11a7d
JM
8712 }
8713
22e47e37
FF
8714 /* GCC creates a pseudo-section whose name specifies the size of
8715 longs, since -mlong32 or -mlong64 may be used independent of
8716 other options. How those options affect pointer sizes is ABI and
8717 architecture dependent, so use them to override the default sizes
8718 set by the ABI. This table shows the relationship between ABI,
8719 -mlongXX, and size of pointers:
8720
8721 ABI -mlongXX ptr bits
8722 --- -------- --------
8723 o32 32 32
8724 o32 64 32
8725 n32 32 32
8726 n32 64 64
8727 o64 32 32
8728 o64 64 64
8729 n64 32 32
8730 n64 64 64
8731 eabi32 32 32
8732 eabi32 64 32
8733 eabi64 32 32
8734 eabi64 64 64
8735
8736 Note that for o32 and eabi32, pointers are always 32 bits
8737 regardless of any -mlongXX option. For all others, pointers and
025bb325 8738 longs are the same, as set by -mlongXX or set by defaults. */
22e47e37
FF
8739
8740 if (info.abfd != NULL)
8741 {
8742 int long_bit = 0;
8743
8744 bfd_map_over_sections (info.abfd, mips_find_long_section, &long_bit);
8745 if (long_bit)
8746 {
8747 set_gdbarch_long_bit (gdbarch, long_bit);
8748 switch (mips_abi)
8749 {
8750 case MIPS_ABI_O32:
8751 case MIPS_ABI_EABI32:
8752 break;
8753 case MIPS_ABI_N32:
8754 case MIPS_ABI_O64:
8755 case MIPS_ABI_N64:
8756 case MIPS_ABI_EABI64:
8757 set_gdbarch_ptr_bit (gdbarch, long_bit);
8758 break;
8759 default:
8760 internal_error (__FILE__, __LINE__, _("unknown ABI in switch"));
8761 }
8762 }
8763 }
8764
a5ea2558
AC
8765 /* FIXME: jlarmour/2000-04-07: There *is* a flag EF_MIPS_32BIT_MODE
8766 that could indicate -gp32 BUT gas/config/tc-mips.c contains the
8767 comment:
8768
8769 ``We deliberately don't allow "-gp32" to set the MIPS_32BITMODE
8770 flag in object files because to do so would make it impossible to
102182a9 8771 link with libraries compiled without "-gp32". This is
a5ea2558 8772 unnecessarily restrictive.
361d1df0 8773
a5ea2558
AC
8774 We could solve this problem by adding "-gp32" multilibs to gcc,
8775 but to set this flag before gcc is built with such multilibs will
8776 break too many systems.''
8777
8778 But even more unhelpfully, the default linker output target for
8779 mips64-elf is elf32-bigmips, and has EF_MIPS_32BIT_MODE set, even
8780 for 64-bit programs - you need to change the ABI to change this,
102182a9 8781 and not all gcc targets support that currently. Therefore using
a5ea2558
AC
8782 this flag to detect 32-bit mode would do the wrong thing given
8783 the current gcc - it would make GDB treat these 64-bit programs
102182a9 8784 as 32-bit programs by default. */
a5ea2558 8785
6c997a34 8786 set_gdbarch_read_pc (gdbarch, mips_read_pc);
b6cb9035 8787 set_gdbarch_write_pc (gdbarch, mips_write_pc);
c2d11a7d 8788
102182a9
MS
8789 /* Add/remove bits from an address. The MIPS needs be careful to
8790 ensure that all 32 bit addresses are sign extended to 64 bits. */
875e1767
AC
8791 set_gdbarch_addr_bits_remove (gdbarch, mips_addr_bits_remove);
8792
58dfe9ff
AC
8793 /* Unwind the frame. */
8794 set_gdbarch_unwind_pc (gdbarch, mips_unwind_pc);
30244cd8 8795 set_gdbarch_unwind_sp (gdbarch, mips_unwind_sp);
b8a22b94 8796 set_gdbarch_dummy_id (gdbarch, mips_dummy_id);
10312cc4 8797
102182a9 8798 /* Map debug register numbers onto internal register numbers. */
88c72b7d 8799 set_gdbarch_stab_reg_to_regnum (gdbarch, mips_stab_reg_to_regnum);
6d82d43b
AC
8800 set_gdbarch_ecoff_reg_to_regnum (gdbarch,
8801 mips_dwarf_dwarf2_ecoff_reg_to_regnum);
6d82d43b
AC
8802 set_gdbarch_dwarf2_reg_to_regnum (gdbarch,
8803 mips_dwarf_dwarf2_ecoff_reg_to_regnum);
a4b8ebc8 8804 set_gdbarch_register_sim_regno (gdbarch, mips_register_sim_regno);
88c72b7d 8805
025bb325 8806 /* MIPS version of CALL_DUMMY. */
c2d11a7d 8807
2c76a0c7
JB
8808 set_gdbarch_call_dummy_location (gdbarch, ON_STACK);
8809 set_gdbarch_push_dummy_code (gdbarch, mips_push_dummy_code);
dc604539 8810 set_gdbarch_frame_align (gdbarch, mips_frame_align);
d05285fa 8811
1bab7383
YQ
8812 set_gdbarch_print_float_info (gdbarch, mips_print_float_info);
8813
87783b8b
AC
8814 set_gdbarch_convert_register_p (gdbarch, mips_convert_register_p);
8815 set_gdbarch_register_to_value (gdbarch, mips_register_to_value);
8816 set_gdbarch_value_to_register (gdbarch, mips_value_to_register);
8817
f7b9e9fc
AC
8818 set_gdbarch_inner_than (gdbarch, core_addr_lessthan);
8819 set_gdbarch_breakpoint_from_pc (gdbarch, mips_breakpoint_from_pc);
4cc0665f
MR
8820 set_gdbarch_remote_breakpoint_from_pc (gdbarch,
8821 mips_remote_breakpoint_from_pc);
c8cef75f
MR
8822 set_gdbarch_adjust_breakpoint_address (gdbarch,
8823 mips_adjust_breakpoint_address);
f7b9e9fc
AC
8824
8825 set_gdbarch_skip_prologue (gdbarch, mips_skip_prologue);
f7b9e9fc 8826
c9cf6e20 8827 set_gdbarch_stack_frame_destroyed_p (gdbarch, mips_stack_frame_destroyed_p);
97ab0fdd 8828
fc0c74b1
AC
8829 set_gdbarch_pointer_to_address (gdbarch, signed_pointer_to_address);
8830 set_gdbarch_address_to_pointer (gdbarch, address_to_signed_pointer);
8831 set_gdbarch_integer_to_address (gdbarch, mips_integer_to_address);
70f80edf 8832
a4b8ebc8 8833 set_gdbarch_register_type (gdbarch, mips_register_type);
78fde5f8 8834
e11c53d2 8835 set_gdbarch_print_registers_info (gdbarch, mips_print_registers_info);
bf1f5b4c 8836
9dae60cc
UW
8837 if (mips_abi == MIPS_ABI_N32)
8838 set_gdbarch_print_insn (gdbarch, gdb_print_insn_mips_n32);
8839 else if (mips_abi == MIPS_ABI_N64)
8840 set_gdbarch_print_insn (gdbarch, gdb_print_insn_mips_n64);
8841 else
8842 set_gdbarch_print_insn (gdbarch, gdb_print_insn_mips);
e5ab0dce 8843
d92524f1
PM
8844 /* FIXME: cagney/2003-08-29: The macros target_have_steppable_watchpoint,
8845 HAVE_NONSTEPPABLE_WATCHPOINT, and target_have_continuable_watchpoint
3a3bc038 8846 need to all be folded into the target vector. Since they are
d92524f1
PM
8847 being used as guards for target_stopped_by_watchpoint, why not have
8848 target_stopped_by_watchpoint return the type of watchpoint that the code
3a3bc038
AC
8849 is sitting on? */
8850 set_gdbarch_have_nonsteppable_watchpoint (gdbarch, 1);
8851
e7d6a6d2 8852 set_gdbarch_skip_trampoline_code (gdbarch, mips_skip_trampoline_code);
757a7cc6 8853
14132e89
MR
8854 /* NOTE drow/2012-04-25: We overload the core solib trampoline code
8855 to support MIPS16. This is a bad thing. Make sure not to do it
8856 if we have an OS ABI that actually supports shared libraries, since
8857 shared library support is more important. If we have an OS someday
8858 that supports both shared libraries and MIPS16, we'll have to find
8859 a better place for these.
8860 macro/2012-04-25: But that applies to return trampolines only and
8861 currently no MIPS OS ABI uses shared libraries that have them. */
8862 set_gdbarch_in_solib_return_trampoline (gdbarch, mips_in_return_stub);
8863
025bb325
MS
8864 set_gdbarch_single_step_through_delay (gdbarch,
8865 mips_single_step_through_delay);
3352ef37 8866
0d5de010
DJ
8867 /* Virtual tables. */
8868 set_gdbarch_vbit_in_delta (gdbarch, 1);
8869
29709017
DJ
8870 mips_register_g_packet_guesses (gdbarch);
8871
6de918a6 8872 /* Hook in OS ABI-specific overrides, if they have been registered. */
ede5f151 8873 info.tdep_info = tdesc_data;
6de918a6 8874 gdbarch_init_osabi (info, gdbarch);
757a7cc6 8875
9aac7884
MR
8876 /* The hook may have adjusted num_regs, fetch the final value and
8877 set pc_regnum and sp_regnum now that it has been fixed. */
9aac7884
MR
8878 num_regs = gdbarch_num_regs (gdbarch);
8879 set_gdbarch_pc_regnum (gdbarch, regnum->pc + num_regs);
8880 set_gdbarch_sp_regnum (gdbarch, MIPS_SP_REGNUM + num_regs);
8881
5792a79b 8882 /* Unwind the frame. */
b8a22b94
DJ
8883 dwarf2_append_unwinders (gdbarch);
8884 frame_unwind_append_unwinder (gdbarch, &mips_stub_frame_unwind);
8885 frame_unwind_append_unwinder (gdbarch, &mips_insn16_frame_unwind);
4cc0665f 8886 frame_unwind_append_unwinder (gdbarch, &mips_micro_frame_unwind);
b8a22b94 8887 frame_unwind_append_unwinder (gdbarch, &mips_insn32_frame_unwind);
2bd0c3d7 8888 frame_base_append_sniffer (gdbarch, dwarf2_frame_base_sniffer);
eec63939 8889 frame_base_append_sniffer (gdbarch, mips_stub_frame_base_sniffer);
45c9dd44 8890 frame_base_append_sniffer (gdbarch, mips_insn16_frame_base_sniffer);
4cc0665f 8891 frame_base_append_sniffer (gdbarch, mips_micro_frame_base_sniffer);
45c9dd44 8892 frame_base_append_sniffer (gdbarch, mips_insn32_frame_base_sniffer);
5792a79b 8893
f8b73d13
DJ
8894 if (tdesc_data)
8895 {
8896 set_tdesc_pseudo_register_type (gdbarch, mips_pseudo_register_type);
7cc46491 8897 tdesc_use_registers (gdbarch, info.target_desc, tdesc_data);
f8b73d13
DJ
8898
8899 /* Override the normal target description methods to handle our
8900 dual real and pseudo registers. */
8901 set_gdbarch_register_name (gdbarch, mips_register_name);
025bb325
MS
8902 set_gdbarch_register_reggroup_p (gdbarch,
8903 mips_tdesc_register_reggroup_p);
f8b73d13
DJ
8904
8905 num_regs = gdbarch_num_regs (gdbarch);
8906 set_gdbarch_num_pseudo_regs (gdbarch, num_regs);
8907 set_gdbarch_pc_regnum (gdbarch, tdep->regnum->pc + num_regs);
8908 set_gdbarch_sp_regnum (gdbarch, MIPS_SP_REGNUM + num_regs);
8909 }
8910
8911 /* Add ABI-specific aliases for the registers. */
8912 if (mips_abi == MIPS_ABI_N32 || mips_abi == MIPS_ABI_N64)
8913 for (i = 0; i < ARRAY_SIZE (mips_n32_n64_aliases); i++)
8914 user_reg_add (gdbarch, mips_n32_n64_aliases[i].name,
8915 value_of_mips_user_reg, &mips_n32_n64_aliases[i].regnum);
8916 else
8917 for (i = 0; i < ARRAY_SIZE (mips_o32_aliases); i++)
8918 user_reg_add (gdbarch, mips_o32_aliases[i].name,
8919 value_of_mips_user_reg, &mips_o32_aliases[i].regnum);
8920
8921 /* Add some other standard aliases. */
8922 for (i = 0; i < ARRAY_SIZE (mips_register_aliases); i++)
8923 user_reg_add (gdbarch, mips_register_aliases[i].name,
8924 value_of_mips_user_reg, &mips_register_aliases[i].regnum);
8925
865093a3
AR
8926 for (i = 0; i < ARRAY_SIZE (mips_numeric_register_aliases); i++)
8927 user_reg_add (gdbarch, mips_numeric_register_aliases[i].name,
8928 value_of_mips_user_reg,
8929 &mips_numeric_register_aliases[i].regnum);
8930
4b9b3959
AC
8931 return gdbarch;
8932}
8933
2e4ebe70 8934static void
6d82d43b 8935mips_abi_update (char *ignore_args, int from_tty, struct cmd_list_element *c)
2e4ebe70
DJ
8936{
8937 struct gdbarch_info info;
8938
8939 /* Force the architecture to update, and (if it's a MIPS architecture)
8940 mips_gdbarch_init will take care of the rest. */
8941 gdbarch_info_init (&info);
8942 gdbarch_update_p (info);
8943}
8944
ad188201
KB
8945/* Print out which MIPS ABI is in use. */
8946
8947static void
1f8ca57c
JB
8948show_mips_abi (struct ui_file *file,
8949 int from_tty,
8950 struct cmd_list_element *ignored_cmd,
8951 const char *ignored_value)
ad188201 8952{
f5656ead 8953 if (gdbarch_bfd_arch_info (target_gdbarch ())->arch != bfd_arch_mips)
1f8ca57c
JB
8954 fprintf_filtered
8955 (file,
8956 "The MIPS ABI is unknown because the current architecture "
8957 "is not MIPS.\n");
ad188201
KB
8958 else
8959 {
8960 enum mips_abi global_abi = global_mips_abi ();
f5656ead 8961 enum mips_abi actual_abi = mips_abi (target_gdbarch ());
ad188201
KB
8962 const char *actual_abi_str = mips_abi_strings[actual_abi];
8963
8964 if (global_abi == MIPS_ABI_UNKNOWN)
1f8ca57c
JB
8965 fprintf_filtered
8966 (file,
8967 "The MIPS ABI is set automatically (currently \"%s\").\n",
6d82d43b 8968 actual_abi_str);
ad188201 8969 else if (global_abi == actual_abi)
1f8ca57c
JB
8970 fprintf_filtered
8971 (file,
8972 "The MIPS ABI is assumed to be \"%s\" (due to user setting).\n",
6d82d43b 8973 actual_abi_str);
ad188201
KB
8974 else
8975 {
8976 /* Probably shouldn't happen... */
025bb325
MS
8977 fprintf_filtered (file,
8978 "The (auto detected) MIPS ABI \"%s\" is in use "
8979 "even though the user setting was \"%s\".\n",
6d82d43b 8980 actual_abi_str, mips_abi_strings[global_abi]);
ad188201
KB
8981 }
8982 }
8983}
8984
4cc0665f
MR
8985/* Print out which MIPS compressed ISA encoding is used. */
8986
8987static void
8988show_mips_compression (struct ui_file *file, int from_tty,
8989 struct cmd_list_element *c, const char *value)
8990{
8991 fprintf_filtered (file, _("The compressed ISA encoding used is %s.\n"),
8992 value);
8993}
8994
4b9b3959 8995static void
72a155b4 8996mips_dump_tdep (struct gdbarch *gdbarch, struct ui_file *file)
4b9b3959 8997{
72a155b4 8998 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
4b9b3959 8999 if (tdep != NULL)
c2d11a7d 9000 {
acdb74a0
AC
9001 int ef_mips_arch;
9002 int ef_mips_32bitmode;
f49e4e6d 9003 /* Determine the ISA. */
acdb74a0
AC
9004 switch (tdep->elf_flags & EF_MIPS_ARCH)
9005 {
9006 case E_MIPS_ARCH_1:
9007 ef_mips_arch = 1;
9008 break;
9009 case E_MIPS_ARCH_2:
9010 ef_mips_arch = 2;
9011 break;
9012 case E_MIPS_ARCH_3:
9013 ef_mips_arch = 3;
9014 break;
9015 case E_MIPS_ARCH_4:
93d56215 9016 ef_mips_arch = 4;
acdb74a0
AC
9017 break;
9018 default:
93d56215 9019 ef_mips_arch = 0;
acdb74a0
AC
9020 break;
9021 }
f49e4e6d 9022 /* Determine the size of a pointer. */
acdb74a0 9023 ef_mips_32bitmode = (tdep->elf_flags & EF_MIPS_32BITMODE);
4b9b3959
AC
9024 fprintf_unfiltered (file,
9025 "mips_dump_tdep: tdep->elf_flags = 0x%x\n",
0dadbba0 9026 tdep->elf_flags);
4b9b3959 9027 fprintf_unfiltered (file,
acdb74a0
AC
9028 "mips_dump_tdep: ef_mips_32bitmode = %d\n",
9029 ef_mips_32bitmode);
9030 fprintf_unfiltered (file,
9031 "mips_dump_tdep: ef_mips_arch = %d\n",
9032 ef_mips_arch);
9033 fprintf_unfiltered (file,
9034 "mips_dump_tdep: tdep->mips_abi = %d (%s)\n",
6d82d43b 9035 tdep->mips_abi, mips_abi_strings[tdep->mips_abi]);
4014092b 9036 fprintf_unfiltered (file,
025bb325
MS
9037 "mips_dump_tdep: "
9038 "mips_mask_address_p() %d (default %d)\n",
480d3dd2 9039 mips_mask_address_p (tdep),
4014092b 9040 tdep->default_mask_address_p);
c2d11a7d 9041 }
4b9b3959
AC
9042 fprintf_unfiltered (file,
9043 "mips_dump_tdep: MIPS_DEFAULT_FPU_TYPE = %d (%s)\n",
9044 MIPS_DEFAULT_FPU_TYPE,
9045 (MIPS_DEFAULT_FPU_TYPE == MIPS_FPU_NONE ? "none"
9046 : MIPS_DEFAULT_FPU_TYPE == MIPS_FPU_SINGLE ? "single"
9047 : MIPS_DEFAULT_FPU_TYPE == MIPS_FPU_DOUBLE ? "double"
9048 : "???"));
74ed0bb4
MD
9049 fprintf_unfiltered (file, "mips_dump_tdep: MIPS_EABI = %d\n",
9050 MIPS_EABI (gdbarch));
4b9b3959
AC
9051 fprintf_unfiltered (file,
9052 "mips_dump_tdep: MIPS_FPU_TYPE = %d (%s)\n",
74ed0bb4
MD
9053 MIPS_FPU_TYPE (gdbarch),
9054 (MIPS_FPU_TYPE (gdbarch) == MIPS_FPU_NONE ? "none"
9055 : MIPS_FPU_TYPE (gdbarch) == MIPS_FPU_SINGLE ? "single"
9056 : MIPS_FPU_TYPE (gdbarch) == MIPS_FPU_DOUBLE ? "double"
4b9b3959 9057 : "???"));
c2d11a7d
JM
9058}
9059
025bb325 9060extern initialize_file_ftype _initialize_mips_tdep; /* -Wmissing-prototypes */
a78f21af 9061
c906108c 9062void
acdb74a0 9063_initialize_mips_tdep (void)
c906108c
SS
9064{
9065 static struct cmd_list_element *mipsfpulist = NULL;
9066 struct cmd_list_element *c;
9067
6d82d43b 9068 mips_abi_string = mips_abi_strings[MIPS_ABI_UNKNOWN];
2e4ebe70
DJ
9069 if (MIPS_ABI_LAST + 1
9070 != sizeof (mips_abi_strings) / sizeof (mips_abi_strings[0]))
e2e0b3e5 9071 internal_error (__FILE__, __LINE__, _("mips_abi_strings out of sync"));
2e4ebe70 9072
4b9b3959 9073 gdbarch_register (bfd_arch_mips, mips_gdbarch_init, mips_dump_tdep);
c906108c 9074
8d5f9dcb
DJ
9075 mips_pdr_data = register_objfile_data ();
9076
4eb0ad19
DJ
9077 /* Create feature sets with the appropriate properties. The values
9078 are not important. */
9079 mips_tdesc_gp32 = allocate_target_description ();
9080 set_tdesc_property (mips_tdesc_gp32, PROPERTY_GP32, "");
9081
9082 mips_tdesc_gp64 = allocate_target_description ();
9083 set_tdesc_property (mips_tdesc_gp64, PROPERTY_GP64, "");
9084
025bb325 9085 /* Add root prefix command for all "set mips"/"show mips" commands. */
a5ea2558 9086 add_prefix_cmd ("mips", no_class, set_mips_command,
1bedd215 9087 _("Various MIPS specific commands."),
a5ea2558
AC
9088 &setmipscmdlist, "set mips ", 0, &setlist);
9089
9090 add_prefix_cmd ("mips", no_class, show_mips_command,
1bedd215 9091 _("Various MIPS specific commands."),
a5ea2558
AC
9092 &showmipscmdlist, "show mips ", 0, &showlist);
9093
025bb325 9094 /* Allow the user to override the ABI. */
7ab04401
AC
9095 add_setshow_enum_cmd ("abi", class_obscure, mips_abi_strings,
9096 &mips_abi_string, _("\
9097Set the MIPS ABI used by this program."), _("\
9098Show the MIPS ABI used by this program."), _("\
9099This option can be set to one of:\n\
9100 auto - the default ABI associated with the current binary\n\
9101 o32\n\
9102 o64\n\
9103 n32\n\
9104 n64\n\
9105 eabi32\n\
9106 eabi64"),
9107 mips_abi_update,
9108 show_mips_abi,
9109 &setmipscmdlist, &showmipscmdlist);
2e4ebe70 9110
4cc0665f
MR
9111 /* Allow the user to set the ISA to assume for compressed code if ELF
9112 file flags don't tell or there is no program file selected. This
9113 setting is updated whenever unambiguous ELF file flags are interpreted,
9114 and carried over to subsequent sessions. */
9115 add_setshow_enum_cmd ("compression", class_obscure, mips_compression_strings,
9116 &mips_compression_string, _("\
9117Set the compressed ISA encoding used by MIPS code."), _("\
9118Show the compressed ISA encoding used by MIPS code."), _("\
9119Select the compressed ISA encoding used in functions that have no symbol\n\
9120information available. The encoding can be set to either of:\n\
9121 mips16\n\
9122 micromips\n\
9123and is updated automatically from ELF file flags if available."),
9124 mips_abi_update,
9125 show_mips_compression,
9126 &setmipscmdlist, &showmipscmdlist);
9127
c906108c
SS
9128 /* Let the user turn off floating point and set the fence post for
9129 heuristic_proc_start. */
9130
9131 add_prefix_cmd ("mipsfpu", class_support, set_mipsfpu_command,
1bedd215 9132 _("Set use of MIPS floating-point coprocessor."),
c906108c
SS
9133 &mipsfpulist, "set mipsfpu ", 0, &setlist);
9134 add_cmd ("single", class_support, set_mipsfpu_single_command,
1a966eab 9135 _("Select single-precision MIPS floating-point coprocessor."),
c906108c
SS
9136 &mipsfpulist);
9137 add_cmd ("double", class_support, set_mipsfpu_double_command,
1a966eab 9138 _("Select double-precision MIPS floating-point coprocessor."),
c906108c
SS
9139 &mipsfpulist);
9140 add_alias_cmd ("on", "double", class_support, 1, &mipsfpulist);
9141 add_alias_cmd ("yes", "double", class_support, 1, &mipsfpulist);
9142 add_alias_cmd ("1", "double", class_support, 1, &mipsfpulist);
9143 add_cmd ("none", class_support, set_mipsfpu_none_command,
1a966eab 9144 _("Select no MIPS floating-point coprocessor."), &mipsfpulist);
c906108c
SS
9145 add_alias_cmd ("off", "none", class_support, 1, &mipsfpulist);
9146 add_alias_cmd ("no", "none", class_support, 1, &mipsfpulist);
9147 add_alias_cmd ("0", "none", class_support, 1, &mipsfpulist);
9148 add_cmd ("auto", class_support, set_mipsfpu_auto_command,
1a966eab 9149 _("Select MIPS floating-point coprocessor automatically."),
c906108c
SS
9150 &mipsfpulist);
9151 add_cmd ("mipsfpu", class_support, show_mipsfpu_command,
1a966eab 9152 _("Show current use of MIPS floating-point coprocessor target."),
c906108c
SS
9153 &showlist);
9154
c906108c
SS
9155 /* We really would like to have both "0" and "unlimited" work, but
9156 command.c doesn't deal with that. So make it a var_zinteger
9157 because the user can always use "999999" or some such for unlimited. */
6bcadd06 9158 add_setshow_zinteger_cmd ("heuristic-fence-post", class_support,
7915a72c
AC
9159 &heuristic_fence_post, _("\
9160Set the distance searched for the start of a function."), _("\
9161Show the distance searched for the start of a function."), _("\
c906108c
SS
9162If you are debugging a stripped executable, GDB needs to search through the\n\
9163program for the start of a function. This command sets the distance of the\n\
7915a72c 9164search. The only need to set it is when debugging a stripped executable."),
2c5b56ce 9165 reinit_frame_cache_sfunc,
025bb325
MS
9166 NULL, /* FIXME: i18n: The distance searched for
9167 the start of a function is %s. */
6bcadd06 9168 &setlist, &showlist);
c906108c
SS
9169
9170 /* Allow the user to control whether the upper bits of 64-bit
9171 addresses should be zeroed. */
7915a72c
AC
9172 add_setshow_auto_boolean_cmd ("mask-address", no_class,
9173 &mask_address_var, _("\
9174Set zeroing of upper 32 bits of 64-bit addresses."), _("\
9175Show zeroing of upper 32 bits of 64-bit addresses."), _("\
cce7e648 9176Use \"on\" to enable the masking, \"off\" to disable it and \"auto\" to\n\
7915a72c 9177allow GDB to determine the correct value."),
08546159
AC
9178 NULL, show_mask_address,
9179 &setmipscmdlist, &showmipscmdlist);
43e526b9
JM
9180
9181 /* Allow the user to control the size of 32 bit registers within the
9182 raw remote packet. */
b3f42336 9183 add_setshow_boolean_cmd ("remote-mips64-transfers-32bit-regs", class_obscure,
7915a72c
AC
9184 &mips64_transfers_32bit_regs_p, _("\
9185Set compatibility with 64-bit MIPS target that transfers 32-bit quantities."),
9186 _("\
9187Show compatibility with 64-bit MIPS target that transfers 32-bit quantities."),
9188 _("\
719ec221
AC
9189Use \"on\" to enable backward compatibility with older MIPS 64 GDB+target\n\
9190that would transfer 32 bits for some registers (e.g. SR, FSR) and\n\
7915a72c 919164 bits for others. Use \"off\" to disable compatibility mode"),
2c5b56ce 9192 set_mips64_transfers_32bit_regs,
025bb325
MS
9193 NULL, /* FIXME: i18n: Compatibility with 64-bit
9194 MIPS target that transfers 32-bit
9195 quantities is %s. */
7915a72c 9196 &setlist, &showlist);
9ace0497 9197
025bb325 9198 /* Debug this files internals. */
ccce17b0
YQ
9199 add_setshow_zuinteger_cmd ("mips", class_maintenance,
9200 &mips_debug, _("\
7915a72c
AC
9201Set mips debugging."), _("\
9202Show mips debugging."), _("\
9203When non-zero, mips specific debugging is enabled."),
ccce17b0
YQ
9204 NULL,
9205 NULL, /* FIXME: i18n: Mips debugging is
9206 currently %s. */
9207 &setdebuglist, &showdebuglist);
c906108c 9208}
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