* mips-tdep.c (mips_n32n64_push_dummy_call): Fix a typo in a
[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
6aba47ca
DJ
3 Copyright (C) 1988, 1989, 1990, 1991, 1992, 1993, 1994, 1995, 1996, 1997,
4 1998, 1999, 2000, 2001, 2002, 2003, 2004, 2005, 2006, 2007
47a35522 5 Free Software Foundation, Inc.
bf64bfd6 6
c906108c
SS
7 Contributed by Alessandro Forin(af@cs.cmu.edu) at CMU
8 and by Per Bothner(bothner@cs.wisc.edu) at U.Wisconsin.
9
c5aa993b 10 This file is part of GDB.
c906108c 11
c5aa993b
JM
12 This program is free software; you can redistribute it and/or modify
13 it under the terms of the GNU General Public License as published by
14 the Free Software Foundation; either version 2 of the License, or
15 (at your option) any later version.
c906108c 16
c5aa993b
JM
17 This program is distributed in the hope that it will be useful,
18 but WITHOUT ANY WARRANTY; without even the implied warranty of
19 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
20 GNU General Public License for more details.
c906108c 21
c5aa993b
JM
22 You should have received a copy of the GNU General Public License
23 along with this program; if not, write to the Free Software
197e01b6
EZ
24 Foundation, Inc., 51 Franklin Street, Fifth Floor,
25 Boston, MA 02110-1301, USA. */
c906108c
SS
26
27#include "defs.h"
28#include "gdb_string.h"
5e2e9765 29#include "gdb_assert.h"
c906108c
SS
30#include "frame.h"
31#include "inferior.h"
32#include "symtab.h"
33#include "value.h"
34#include "gdbcmd.h"
35#include "language.h"
36#include "gdbcore.h"
37#include "symfile.h"
38#include "objfiles.h"
39#include "gdbtypes.h"
40#include "target.h"
28d069e6 41#include "arch-utils.h"
4e052eda 42#include "regcache.h"
70f80edf 43#include "osabi.h"
d1973055 44#include "mips-tdep.h"
fe898f56 45#include "block.h"
a4b8ebc8 46#include "reggroups.h"
c906108c 47#include "opcode/mips.h"
c2d11a7d
JM
48#include "elf/mips.h"
49#include "elf-bfd.h"
2475bac3 50#include "symcat.h"
a4b8ebc8 51#include "sim-regno.h"
a89aa300 52#include "dis-asm.h"
edfae063
AC
53#include "frame-unwind.h"
54#include "frame-base.h"
55#include "trad-frame.h"
7d9b040b 56#include "infcall.h"
fed7ba43 57#include "floatformat.h"
29709017
DJ
58#include "remote.h"
59#include "target-descriptions.h"
c906108c 60
8d5f9dcb
DJ
61static const struct objfile_data *mips_pdr_data;
62
5bbcb741 63static struct type *mips_register_type (struct gdbarch *gdbarch, int regnum);
e0f7ec59 64
24e05951 65/* A useful bit in the CP0 status register (MIPS_PS_REGNUM). */
dd824b04
DJ
66/* This bit is set if we are emulating 32-bit FPRs on a 64-bit chip. */
67#define ST0_FR (1 << 26)
68
b0069a17
AC
69/* The sizes of floating point registers. */
70
71enum
72{
73 MIPS_FPU_SINGLE_REGSIZE = 4,
74 MIPS_FPU_DOUBLE_REGSIZE = 8
75};
76
0dadbba0 77
2e4ebe70
DJ
78static const char *mips_abi_string;
79
80static const char *mips_abi_strings[] = {
81 "auto",
82 "n32",
83 "o32",
28d169de 84 "n64",
2e4ebe70
DJ
85 "o64",
86 "eabi32",
87 "eabi64",
88 NULL
89};
90
d929b26f
AC
91/* Various MIPS ISA options (related to stack analysis) can be
92 overridden dynamically. Establish an enum/array for managing
93 them. */
94
53904c9e
AC
95static const char size_auto[] = "auto";
96static const char size_32[] = "32";
97static const char size_64[] = "64";
d929b26f 98
53904c9e 99static const char *size_enums[] = {
d929b26f
AC
100 size_auto,
101 size_32,
102 size_64,
a5ea2558
AC
103 0
104};
105
7a292a7a 106/* Some MIPS boards don't support floating point while others only
ceae6e75 107 support single-precision floating-point operations. */
c906108c
SS
108
109enum mips_fpu_type
6d82d43b
AC
110{
111 MIPS_FPU_DOUBLE, /* Full double precision floating point. */
112 MIPS_FPU_SINGLE, /* Single precision floating point (R4650). */
113 MIPS_FPU_NONE /* No floating point. */
114};
c906108c
SS
115
116#ifndef MIPS_DEFAULT_FPU_TYPE
117#define MIPS_DEFAULT_FPU_TYPE MIPS_FPU_DOUBLE
118#endif
119static int mips_fpu_type_auto = 1;
120static enum mips_fpu_type mips_fpu_type = MIPS_DEFAULT_FPU_TYPE;
7a292a7a 121
9ace0497 122static int mips_debug = 0;
7a292a7a 123
29709017
DJ
124/* Properties (for struct target_desc) describing the g/G packet
125 layout. */
126#define PROPERTY_GP32 "internal: transfers-32bit-registers"
127#define PROPERTY_GP64 "internal: transfers-64bit-registers"
128
c2d11a7d
JM
129/* MIPS specific per-architecture information */
130struct gdbarch_tdep
6d82d43b
AC
131{
132 /* from the elf header */
133 int elf_flags;
134
135 /* mips options */
136 enum mips_abi mips_abi;
137 enum mips_abi found_abi;
138 enum mips_fpu_type mips_fpu_type;
139 int mips_last_arg_regnum;
140 int mips_last_fp_arg_regnum;
6d82d43b
AC
141 int default_mask_address_p;
142 /* Is the target using 64-bit raw integer registers but only
143 storing a left-aligned 32-bit value in each? */
144 int mips64_transfers_32bit_regs_p;
145 /* Indexes for various registers. IRIX and embedded have
146 different values. This contains the "public" fields. Don't
147 add any that do not need to be public. */
148 const struct mips_regnum *regnum;
149 /* Register names table for the current register set. */
150 const char **mips_processor_reg_names;
29709017
DJ
151
152 /* The size of register data available from the target, if known.
153 This doesn't quite obsolete the manual
154 mips64_transfers_32bit_regs_p, since that is documented to force
155 left alignment even for big endian (very strange). */
156 int register_size_valid_p;
157 int register_size;
6d82d43b 158};
c2d11a7d 159
fed7ba43
JB
160static int
161n32n64_floatformat_always_valid (const struct floatformat *fmt,
2244f671 162 const void *from)
fed7ba43
JB
163{
164 return 1;
165}
166
167/* FIXME: brobecker/2004-08-08: Long Double values are 128 bit long.
168 They are implemented as a pair of 64bit doubles where the high
169 part holds the result of the operation rounded to double, and
170 the low double holds the difference between the exact result and
171 the rounded result. So "high" + "low" contains the result with
172 added precision. Unfortunately, the floatformat structure used
173 by GDB is not powerful enough to describe this format. As a temporary
174 measure, we define a 128bit floatformat that only uses the high part.
175 We lose a bit of precision but that's probably the best we can do
176 for now with the current infrastructure. */
177
178static const struct floatformat floatformat_n32n64_long_double_big =
179{
180 floatformat_big, 128, 0, 1, 11, 1023, 2047, 12, 52,
181 floatformat_intbit_no,
8da61cc4 182 "floatformat_n32n64_long_double_big",
fed7ba43
JB
183 n32n64_floatformat_always_valid
184};
185
8da61cc4
DJ
186static const struct floatformat *floatformats_n32n64_long[BFD_ENDIAN_UNKNOWN] =
187{
188 &floatformat_n32n64_long_double_big,
189 &floatformat_n32n64_long_double_big
190};
191
56cea623
AC
192const struct mips_regnum *
193mips_regnum (struct gdbarch *gdbarch)
194{
195 return gdbarch_tdep (gdbarch)->regnum;
196}
197
198static int
199mips_fpa0_regnum (struct gdbarch *gdbarch)
200{
201 return mips_regnum (gdbarch)->fp0 + 12;
202}
203
0dadbba0 204#define MIPS_EABI (gdbarch_tdep (current_gdbarch)->mips_abi == MIPS_ABI_EABI32 \
216a600b 205 || gdbarch_tdep (current_gdbarch)->mips_abi == MIPS_ABI_EABI64)
c2d11a7d 206
c2d11a7d 207#define MIPS_LAST_FP_ARG_REGNUM (gdbarch_tdep (current_gdbarch)->mips_last_fp_arg_regnum)
c2d11a7d 208
c2d11a7d 209#define MIPS_LAST_ARG_REGNUM (gdbarch_tdep (current_gdbarch)->mips_last_arg_regnum)
c2d11a7d 210
c2d11a7d 211#define MIPS_FPU_TYPE (gdbarch_tdep (current_gdbarch)->mips_fpu_type)
c2d11a7d 212
95404a3e
AC
213/* MIPS16 function addresses are odd (bit 0 is set). Here are some
214 functions to test, set, or clear bit 0 of addresses. */
215
216static CORE_ADDR
217is_mips16_addr (CORE_ADDR addr)
218{
219 return ((addr) & 1);
220}
221
95404a3e
AC
222static CORE_ADDR
223unmake_mips16_addr (CORE_ADDR addr)
224{
5b652102 225 return ((addr) & ~(CORE_ADDR) 1);
95404a3e
AC
226}
227
22540ece
AC
228/* Return the contents of register REGNUM as a signed integer. */
229
230static LONGEST
231read_signed_register (int regnum)
232{
1d93fe1a
AC
233 LONGEST val;
234 regcache_cooked_read_signed (current_regcache, regnum, &val);
235 return val;
22540ece
AC
236}
237
238static LONGEST
239read_signed_register_pid (int regnum, ptid_t ptid)
240{
241 ptid_t save_ptid;
242 LONGEST retval;
243
244 if (ptid_equal (ptid, inferior_ptid))
245 return read_signed_register (regnum);
246
247 save_ptid = inferior_ptid;
248
249 inferior_ptid = ptid;
250
251 retval = read_signed_register (regnum);
252
253 inferior_ptid = save_ptid;
254
255 return retval;
256}
257
d1973055
KB
258/* Return the MIPS ABI associated with GDBARCH. */
259enum mips_abi
260mips_abi (struct gdbarch *gdbarch)
261{
262 return gdbarch_tdep (gdbarch)->mips_abi;
263}
264
4246e332 265int
1b13c4f6 266mips_isa_regsize (struct gdbarch *gdbarch)
4246e332 267{
29709017
DJ
268 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
269
270 /* If we know how big the registers are, use that size. */
271 if (tdep->register_size_valid_p)
272 return tdep->register_size;
273
274 /* Fall back to the previous behavior. */
4246e332
AC
275 return (gdbarch_bfd_arch_info (gdbarch)->bits_per_word
276 / gdbarch_bfd_arch_info (gdbarch)->bits_per_byte);
277}
278
480d3dd2
AC
279/* Return the currently configured (or set) saved register size. */
280
1b13c4f6 281static const char *mips_abi_regsize_string = size_auto;
480d3dd2 282
e6bc2e8a 283unsigned int
13326b4e 284mips_abi_regsize (struct gdbarch *gdbarch)
d929b26f 285{
1b13c4f6 286 if (mips_abi_regsize_string == size_auto)
13326b4e
AC
287 switch (mips_abi (gdbarch))
288 {
289 case MIPS_ABI_EABI32:
290 case MIPS_ABI_O32:
291 return 4;
292 case MIPS_ABI_N32:
293 case MIPS_ABI_N64:
294 case MIPS_ABI_O64:
295 case MIPS_ABI_EABI64:
296 return 8;
297 case MIPS_ABI_UNKNOWN:
298 case MIPS_ABI_LAST:
299 default:
e2e0b3e5 300 internal_error (__FILE__, __LINE__, _("bad switch"));
13326b4e 301 }
1b13c4f6 302 else if (mips_abi_regsize_string == size_64)
d929b26f 303 return 8;
1b13c4f6 304 else /* if (mips_abi_regsize_string == size_32) */
d929b26f
AC
305 return 4;
306}
307
71b8ef93 308/* Functions for setting and testing a bit in a minimal symbol that
5a89d8aa 309 marks it as 16-bit function. The MSB of the minimal symbol's
f594e5e9 310 "info" field is used for this purpose.
5a89d8aa
MS
311
312 ELF_MAKE_MSYMBOL_SPECIAL tests whether an ELF symbol is "special",
313 i.e. refers to a 16-bit function, and sets a "special" bit in a
314 minimal symbol to mark it as a 16-bit function
315
f594e5e9 316 MSYMBOL_IS_SPECIAL tests the "special" bit in a minimal symbol */
5a89d8aa 317
5a89d8aa 318static void
6d82d43b
AC
319mips_elf_make_msymbol_special (asymbol * sym, struct minimal_symbol *msym)
320{
321 if (((elf_symbol_type *) (sym))->internal_elf_sym.st_other == STO_MIPS16)
322 {
323 MSYMBOL_INFO (msym) = (char *)
324 (((long) MSYMBOL_INFO (msym)) | 0x80000000);
325 SYMBOL_VALUE_ADDRESS (msym) |= 1;
326 }
5a89d8aa
MS
327}
328
71b8ef93
MS
329static int
330msymbol_is_special (struct minimal_symbol *msym)
331{
332 return (((long) MSYMBOL_INFO (msym) & 0x80000000) != 0);
333}
334
88658117
AC
335/* XFER a value from the big/little/left end of the register.
336 Depending on the size of the value it might occupy the entire
337 register or just part of it. Make an allowance for this, aligning
338 things accordingly. */
339
340static void
341mips_xfer_register (struct regcache *regcache, int reg_num, int length,
870cd05e
MK
342 enum bfd_endian endian, gdb_byte *in,
343 const gdb_byte *out, int buf_offset)
88658117 344{
88658117 345 int reg_offset = 0;
a4b8ebc8 346 gdb_assert (reg_num >= NUM_REGS);
cb1d2653
AC
347 /* Need to transfer the left or right part of the register, based on
348 the targets byte order. */
88658117
AC
349 switch (endian)
350 {
351 case BFD_ENDIAN_BIG:
719ec221 352 reg_offset = register_size (current_gdbarch, reg_num) - length;
88658117
AC
353 break;
354 case BFD_ENDIAN_LITTLE:
355 reg_offset = 0;
356 break;
6d82d43b 357 case BFD_ENDIAN_UNKNOWN: /* Indicates no alignment. */
88658117
AC
358 reg_offset = 0;
359 break;
360 default:
e2e0b3e5 361 internal_error (__FILE__, __LINE__, _("bad switch"));
88658117
AC
362 }
363 if (mips_debug)
cb1d2653
AC
364 fprintf_unfiltered (gdb_stderr,
365 "xfer $%d, reg offset %d, buf offset %d, length %d, ",
366 reg_num, reg_offset, buf_offset, length);
88658117
AC
367 if (mips_debug && out != NULL)
368 {
369 int i;
cb1d2653 370 fprintf_unfiltered (gdb_stdlog, "out ");
88658117 371 for (i = 0; i < length; i++)
cb1d2653 372 fprintf_unfiltered (gdb_stdlog, "%02x", out[buf_offset + i]);
88658117
AC
373 }
374 if (in != NULL)
6d82d43b
AC
375 regcache_cooked_read_part (regcache, reg_num, reg_offset, length,
376 in + buf_offset);
88658117 377 if (out != NULL)
6d82d43b
AC
378 regcache_cooked_write_part (regcache, reg_num, reg_offset, length,
379 out + buf_offset);
88658117
AC
380 if (mips_debug && in != NULL)
381 {
382 int i;
cb1d2653 383 fprintf_unfiltered (gdb_stdlog, "in ");
88658117 384 for (i = 0; i < length; i++)
cb1d2653 385 fprintf_unfiltered (gdb_stdlog, "%02x", in[buf_offset + i]);
88658117
AC
386 }
387 if (mips_debug)
388 fprintf_unfiltered (gdb_stdlog, "\n");
389}
390
dd824b04
DJ
391/* Determine if a MIPS3 or later cpu is operating in MIPS{1,2} FPU
392 compatiblity mode. A return value of 1 means that we have
393 physical 64-bit registers, but should treat them as 32-bit registers. */
394
395static int
396mips2_fp_compat (void)
397{
398 /* MIPS1 and MIPS2 have only 32 bit FPRs, and the FR bit is not
399 meaningful. */
6d82d43b
AC
400 if (register_size (current_gdbarch, mips_regnum (current_gdbarch)->fp0) ==
401 4)
dd824b04
DJ
402 return 0;
403
404#if 0
405 /* FIXME drow 2002-03-10: This is disabled until we can do it consistently,
406 in all the places we deal with FP registers. PR gdb/413. */
407 /* Otherwise check the FR bit in the status register - it controls
408 the FP compatiblity mode. If it is clear we are in compatibility
409 mode. */
24e05951 410 if ((read_register (MIPS_PS_REGNUM) & ST0_FR) == 0)
dd824b04
DJ
411 return 1;
412#endif
361d1df0 413
dd824b04
DJ
414 return 0;
415}
416
d929b26f 417/* The amount of space reserved on the stack for registers. This is
1b13c4f6 418 different to MIPS_ABI_REGSIZE as it determines the alignment of
d929b26f
AC
419 data allocated after the registers have run out. */
420
53904c9e 421static const char *mips_stack_argsize_string = size_auto;
d929b26f
AC
422
423static unsigned int
13326b4e 424mips_stack_argsize (struct gdbarch *gdbarch)
d929b26f
AC
425{
426 if (mips_stack_argsize_string == size_auto)
13326b4e 427 return mips_abi_regsize (gdbarch);
d929b26f
AC
428 else if (mips_stack_argsize_string == size_64)
429 return 8;
6d82d43b 430 else /* if (mips_stack_argsize_string == size_32) */
d929b26f
AC
431 return 4;
432}
433
7a292a7a 434#define VM_MIN_ADDRESS (CORE_ADDR)0x400000
c906108c 435
a14ed312 436static CORE_ADDR heuristic_proc_start (CORE_ADDR);
c906108c 437
a14ed312 438static CORE_ADDR read_next_frame_reg (struct frame_info *, int);
c906108c 439
a14ed312 440static void reinit_frame_cache_sfunc (char *, int, struct cmd_list_element *);
c906108c 441
67b2c998
DJ
442static struct type *mips_float_register_type (void);
443static struct type *mips_double_register_type (void);
444
acdb74a0
AC
445/* The list of available "set mips " and "show mips " commands */
446
447static struct cmd_list_element *setmipscmdlist = NULL;
448static struct cmd_list_element *showmipscmdlist = NULL;
449
5e2e9765
KB
450/* Integer registers 0 thru 31 are handled explicitly by
451 mips_register_name(). Processor specific registers 32 and above
8a9fc081 452 are listed in the following tables. */
691c0433 453
6d82d43b
AC
454enum
455{ NUM_MIPS_PROCESSOR_REGS = (90 - 32) };
691c0433
AC
456
457/* Generic MIPS. */
458
459static const char *mips_generic_reg_names[NUM_MIPS_PROCESSOR_REGS] = {
6d82d43b
AC
460 "sr", "lo", "hi", "bad", "cause", "pc",
461 "f0", "f1", "f2", "f3", "f4", "f5", "f6", "f7",
462 "f8", "f9", "f10", "f11", "f12", "f13", "f14", "f15",
463 "f16", "f17", "f18", "f19", "f20", "f21", "f22", "f23",
464 "f24", "f25", "f26", "f27", "f28", "f29", "f30", "f31",
465 "fsr", "fir", "" /*"fp" */ , "",
466 "", "", "", "", "", "", "", "",
467 "", "", "", "", "", "", "", "",
691c0433
AC
468};
469
470/* Names of IDT R3041 registers. */
471
472static const char *mips_r3041_reg_names[] = {
6d82d43b
AC
473 "sr", "lo", "hi", "bad", "cause", "pc",
474 "f0", "f1", "f2", "f3", "f4", "f5", "f6", "f7",
475 "f8", "f9", "f10", "f11", "f12", "f13", "f14", "f15",
476 "f16", "f17", "f18", "f19", "f20", "f21", "f22", "f23",
477 "f24", "f25", "f26", "f27", "f28", "f29", "f30", "f31",
478 "fsr", "fir", "", /*"fp" */ "",
479 "", "", "bus", "ccfg", "", "", "", "",
480 "", "", "port", "cmp", "", "", "epc", "prid",
691c0433
AC
481};
482
483/* Names of tx39 registers. */
484
485static const char *mips_tx39_reg_names[NUM_MIPS_PROCESSOR_REGS] = {
6d82d43b
AC
486 "sr", "lo", "hi", "bad", "cause", "pc",
487 "", "", "", "", "", "", "", "",
488 "", "", "", "", "", "", "", "",
489 "", "", "", "", "", "", "", "",
490 "", "", "", "", "", "", "", "",
491 "", "", "", "",
492 "", "", "", "", "", "", "", "",
493 "", "", "config", "cache", "debug", "depc", "epc", ""
691c0433
AC
494};
495
496/* Names of IRIX registers. */
497static const char *mips_irix_reg_names[NUM_MIPS_PROCESSOR_REGS] = {
6d82d43b
AC
498 "f0", "f1", "f2", "f3", "f4", "f5", "f6", "f7",
499 "f8", "f9", "f10", "f11", "f12", "f13", "f14", "f15",
500 "f16", "f17", "f18", "f19", "f20", "f21", "f22", "f23",
501 "f24", "f25", "f26", "f27", "f28", "f29", "f30", "f31",
502 "pc", "cause", "bad", "hi", "lo", "fsr", "fir"
691c0433
AC
503};
504
cce74817 505
5e2e9765 506/* Return the name of the register corresponding to REGNO. */
5a89d8aa 507static const char *
5e2e9765 508mips_register_name (int regno)
cce74817 509{
691c0433 510 struct gdbarch_tdep *tdep = gdbarch_tdep (current_gdbarch);
5e2e9765
KB
511 /* GPR names for all ABIs other than n32/n64. */
512 static char *mips_gpr_names[] = {
6d82d43b
AC
513 "zero", "at", "v0", "v1", "a0", "a1", "a2", "a3",
514 "t0", "t1", "t2", "t3", "t4", "t5", "t6", "t7",
515 "s0", "s1", "s2", "s3", "s4", "s5", "s6", "s7",
516 "t8", "t9", "k0", "k1", "gp", "sp", "s8", "ra",
5e2e9765
KB
517 };
518
519 /* GPR names for n32 and n64 ABIs. */
520 static char *mips_n32_n64_gpr_names[] = {
6d82d43b
AC
521 "zero", "at", "v0", "v1", "a0", "a1", "a2", "a3",
522 "a4", "a5", "a6", "a7", "t0", "t1", "t2", "t3",
523 "s0", "s1", "s2", "s3", "s4", "s5", "s6", "s7",
524 "t8", "t9", "k0", "k1", "gp", "sp", "s8", "ra"
5e2e9765
KB
525 };
526
527 enum mips_abi abi = mips_abi (current_gdbarch);
528
a4b8ebc8
AC
529 /* Map [NUM_REGS .. 2*NUM_REGS) onto the raw registers, but then
530 don't make the raw register names visible. */
531 int rawnum = regno % NUM_REGS;
532 if (regno < NUM_REGS)
533 return "";
534
5e2e9765
KB
535 /* The MIPS integer registers are always mapped from 0 to 31. The
536 names of the registers (which reflects the conventions regarding
537 register use) vary depending on the ABI. */
a4b8ebc8 538 if (0 <= rawnum && rawnum < 32)
5e2e9765
KB
539 {
540 if (abi == MIPS_ABI_N32 || abi == MIPS_ABI_N64)
a4b8ebc8 541 return mips_n32_n64_gpr_names[rawnum];
5e2e9765 542 else
a4b8ebc8 543 return mips_gpr_names[rawnum];
5e2e9765 544 }
a4b8ebc8 545 else if (32 <= rawnum && rawnum < NUM_REGS)
691c0433
AC
546 {
547 gdb_assert (rawnum - 32 < NUM_MIPS_PROCESSOR_REGS);
548 return tdep->mips_processor_reg_names[rawnum - 32];
549 }
5e2e9765
KB
550 else
551 internal_error (__FILE__, __LINE__,
e2e0b3e5 552 _("mips_register_name: bad register number %d"), rawnum);
cce74817 553}
5e2e9765 554
a4b8ebc8 555/* Return the groups that a MIPS register can be categorised into. */
c5aa993b 556
a4b8ebc8
AC
557static int
558mips_register_reggroup_p (struct gdbarch *gdbarch, int regnum,
559 struct reggroup *reggroup)
560{
561 int vector_p;
562 int float_p;
563 int raw_p;
564 int rawnum = regnum % NUM_REGS;
565 int pseudo = regnum / NUM_REGS;
566 if (reggroup == all_reggroup)
567 return pseudo;
568 vector_p = TYPE_VECTOR (register_type (gdbarch, regnum));
569 float_p = TYPE_CODE (register_type (gdbarch, regnum)) == TYPE_CODE_FLT;
570 /* FIXME: cagney/2003-04-13: Can't yet use gdbarch_num_regs
571 (gdbarch), as not all architectures are multi-arch. */
572 raw_p = rawnum < NUM_REGS;
6d82d43b 573 if (REGISTER_NAME (regnum) == NULL || REGISTER_NAME (regnum)[0] == '\0')
a4b8ebc8
AC
574 return 0;
575 if (reggroup == float_reggroup)
576 return float_p && pseudo;
577 if (reggroup == vector_reggroup)
578 return vector_p && pseudo;
579 if (reggroup == general_reggroup)
580 return (!vector_p && !float_p) && pseudo;
581 /* Save the pseudo registers. Need to make certain that any code
582 extracting register values from a saved register cache also uses
583 pseudo registers. */
584 if (reggroup == save_reggroup)
585 return raw_p && pseudo;
586 /* Restore the same pseudo register. */
587 if (reggroup == restore_reggroup)
588 return raw_p && pseudo;
6d82d43b 589 return 0;
a4b8ebc8
AC
590}
591
592/* Map the symbol table registers which live in the range [1 *
593 NUM_REGS .. 2 * NUM_REGS) back onto the corresponding raw
47ebcfbe 594 registers. Take care of alignment and size problems. */
c5aa993b 595
a4b8ebc8
AC
596static void
597mips_pseudo_register_read (struct gdbarch *gdbarch, struct regcache *regcache,
47a35522 598 int cookednum, gdb_byte *buf)
a4b8ebc8 599{
47ebcfbe 600 int rawnum = cookednum % NUM_REGS;
a4b8ebc8 601 gdb_assert (cookednum >= NUM_REGS && cookednum < 2 * NUM_REGS);
47ebcfbe 602 if (register_size (gdbarch, rawnum) == register_size (gdbarch, cookednum))
de38af99 603 regcache_raw_read (regcache, rawnum, buf);
6d82d43b
AC
604 else if (register_size (gdbarch, rawnum) >
605 register_size (gdbarch, cookednum))
47ebcfbe
AC
606 {
607 if (gdbarch_tdep (gdbarch)->mips64_transfers_32bit_regs_p
608 || TARGET_BYTE_ORDER == BFD_ENDIAN_LITTLE)
609 regcache_raw_read_part (regcache, rawnum, 0, 4, buf);
610 else
611 regcache_raw_read_part (regcache, rawnum, 4, 4, buf);
612 }
613 else
e2e0b3e5 614 internal_error (__FILE__, __LINE__, _("bad register size"));
a4b8ebc8
AC
615}
616
617static void
6d82d43b
AC
618mips_pseudo_register_write (struct gdbarch *gdbarch,
619 struct regcache *regcache, int cookednum,
47a35522 620 const gdb_byte *buf)
a4b8ebc8 621{
47ebcfbe 622 int rawnum = cookednum % NUM_REGS;
a4b8ebc8 623 gdb_assert (cookednum >= NUM_REGS && cookednum < 2 * NUM_REGS);
47ebcfbe 624 if (register_size (gdbarch, rawnum) == register_size (gdbarch, cookednum))
de38af99 625 regcache_raw_write (regcache, rawnum, buf);
6d82d43b
AC
626 else if (register_size (gdbarch, rawnum) >
627 register_size (gdbarch, cookednum))
47ebcfbe
AC
628 {
629 if (gdbarch_tdep (gdbarch)->mips64_transfers_32bit_regs_p
630 || TARGET_BYTE_ORDER == BFD_ENDIAN_LITTLE)
631 regcache_raw_write_part (regcache, rawnum, 0, 4, buf);
632 else
633 regcache_raw_write_part (regcache, rawnum, 4, 4, buf);
634 }
635 else
e2e0b3e5 636 internal_error (__FILE__, __LINE__, _("bad register size"));
a4b8ebc8 637}
c5aa993b 638
c906108c 639/* Table to translate MIPS16 register field to actual register number. */
6d82d43b 640static int mips16_to_32_reg[8] = { 16, 17, 2, 3, 4, 5, 6, 7 };
c906108c
SS
641
642/* Heuristic_proc_start may hunt through the text section for a long
643 time across a 2400 baud serial line. Allows the user to limit this
644 search. */
645
646static unsigned int heuristic_fence_post = 0;
647
46cd78fb 648/* Number of bytes of storage in the actual machine representation for
719ec221
AC
649 register N. NOTE: This defines the pseudo register type so need to
650 rebuild the architecture vector. */
43e526b9
JM
651
652static int mips64_transfers_32bit_regs_p = 0;
653
719ec221
AC
654static void
655set_mips64_transfers_32bit_regs (char *args, int from_tty,
656 struct cmd_list_element *c)
43e526b9 657{
719ec221
AC
658 struct gdbarch_info info;
659 gdbarch_info_init (&info);
660 /* FIXME: cagney/2003-11-15: Should be setting a field in "info"
661 instead of relying on globals. Doing that would let generic code
662 handle the search for this specific architecture. */
663 if (!gdbarch_update_p (info))
a4b8ebc8 664 {
719ec221 665 mips64_transfers_32bit_regs_p = 0;
8a3fe4f8 666 error (_("32-bit compatibility mode not supported"));
a4b8ebc8 667 }
a4b8ebc8
AC
668}
669
47ebcfbe 670/* Convert to/from a register and the corresponding memory value. */
43e526b9 671
ff2e87ac
AC
672static int
673mips_convert_register_p (int regnum, struct type *type)
674{
675 return (TARGET_BYTE_ORDER == BFD_ENDIAN_BIG
719ec221 676 && register_size (current_gdbarch, regnum) == 4
87783b8b
AC
677 && (regnum % NUM_REGS) >= mips_regnum (current_gdbarch)->fp0
678 && (regnum % NUM_REGS) < mips_regnum (current_gdbarch)->fp0 + 32
6d82d43b 679 && TYPE_CODE (type) == TYPE_CODE_FLT && TYPE_LENGTH (type) == 8);
ff2e87ac
AC
680}
681
42c466d7 682static void
ff2e87ac 683mips_register_to_value (struct frame_info *frame, int regnum,
47a35522 684 struct type *type, gdb_byte *to)
102182a9 685{
47a35522
MK
686 get_frame_register (frame, regnum + 0, to + 4);
687 get_frame_register (frame, regnum + 1, to + 0);
102182a9
MS
688}
689
42c466d7 690static void
ff2e87ac 691mips_value_to_register (struct frame_info *frame, int regnum,
47a35522 692 struct type *type, const gdb_byte *from)
102182a9 693{
47a35522
MK
694 put_frame_register (frame, regnum + 0, from + 4);
695 put_frame_register (frame, regnum + 1, from + 0);
102182a9
MS
696}
697
a4b8ebc8
AC
698/* Return the GDB type object for the "standard" data type of data in
699 register REG. */
78fde5f8
KB
700
701static struct type *
a4b8ebc8
AC
702mips_register_type (struct gdbarch *gdbarch, int regnum)
703{
5ef80fb0 704 gdb_assert (regnum >= 0 && regnum < 2 * NUM_REGS);
56cea623
AC
705 if ((regnum % NUM_REGS) >= mips_regnum (current_gdbarch)->fp0
706 && (regnum % NUM_REGS) < mips_regnum (current_gdbarch)->fp0 + 32)
a6425924 707 {
5ef80fb0 708 /* The floating-point registers raw, or cooked, always match
1b13c4f6 709 mips_isa_regsize(), and also map 1:1, byte for byte. */
8da61cc4
DJ
710 if (mips_isa_regsize (gdbarch) == 4)
711 return builtin_type_ieee_single;
712 else
713 return builtin_type_ieee_double;
a6425924 714 }
d5ac5a39
AC
715 else if (regnum < NUM_REGS)
716 {
717 /* The raw or ISA registers. These are all sized according to
718 the ISA regsize. */
719 if (mips_isa_regsize (gdbarch) == 4)
720 return builtin_type_int32;
721 else
722 return builtin_type_int64;
723 }
78fde5f8 724 else
d5ac5a39
AC
725 {
726 /* The cooked or ABI registers. These are sized according to
727 the ABI (with a few complications). */
728 if (regnum >= (NUM_REGS
729 + mips_regnum (current_gdbarch)->fp_control_status)
607fc93c 730 && regnum <= NUM_REGS + MIPS_LAST_EMBED_REGNUM)
d5ac5a39
AC
731 /* The pseudo/cooked view of the embedded registers is always
732 32-bit. The raw view is handled below. */
733 return builtin_type_int32;
734 else if (gdbarch_tdep (gdbarch)->mips64_transfers_32bit_regs_p)
735 /* The target, while possibly using a 64-bit register buffer,
736 is only transfering 32-bits of each integer register.
737 Reflect this in the cooked/pseudo (ABI) register value. */
738 return builtin_type_int32;
739 else if (mips_abi_regsize (gdbarch) == 4)
740 /* The ABI is restricted to 32-bit registers (the ISA could be
741 32- or 64-bit). */
742 return builtin_type_int32;
743 else
744 /* 64-bit ABI. */
745 return builtin_type_int64;
746 }
78fde5f8
KB
747}
748
bcb0cc15
MS
749/* TARGET_READ_SP -- Remove useless bits from the stack pointer. */
750
751static CORE_ADDR
752mips_read_sp (void)
753{
f10683bb 754 return read_signed_register (MIPS_SP_REGNUM);
bcb0cc15
MS
755}
756
c906108c 757/* Should the upper word of 64-bit addresses be zeroed? */
7f19b9a2 758enum auto_boolean mask_address_var = AUTO_BOOLEAN_AUTO;
4014092b
AC
759
760static int
480d3dd2 761mips_mask_address_p (struct gdbarch_tdep *tdep)
4014092b
AC
762{
763 switch (mask_address_var)
764 {
7f19b9a2 765 case AUTO_BOOLEAN_TRUE:
4014092b 766 return 1;
7f19b9a2 767 case AUTO_BOOLEAN_FALSE:
4014092b
AC
768 return 0;
769 break;
7f19b9a2 770 case AUTO_BOOLEAN_AUTO:
480d3dd2 771 return tdep->default_mask_address_p;
4014092b 772 default:
e2e0b3e5 773 internal_error (__FILE__, __LINE__, _("mips_mask_address_p: bad switch"));
4014092b 774 return -1;
361d1df0 775 }
4014092b
AC
776}
777
778static void
08546159
AC
779show_mask_address (struct ui_file *file, int from_tty,
780 struct cmd_list_element *c, const char *value)
4014092b 781{
480d3dd2 782 struct gdbarch_tdep *tdep = gdbarch_tdep (current_gdbarch);
08546159
AC
783
784 deprecated_show_value_hack (file, from_tty, c, value);
4014092b
AC
785 switch (mask_address_var)
786 {
7f19b9a2 787 case AUTO_BOOLEAN_TRUE:
4014092b
AC
788 printf_filtered ("The 32 bit mips address mask is enabled\n");
789 break;
7f19b9a2 790 case AUTO_BOOLEAN_FALSE:
4014092b
AC
791 printf_filtered ("The 32 bit mips address mask is disabled\n");
792 break;
7f19b9a2 793 case AUTO_BOOLEAN_AUTO:
6d82d43b
AC
794 printf_filtered
795 ("The 32 bit address mask is set automatically. Currently %s\n",
796 mips_mask_address_p (tdep) ? "enabled" : "disabled");
4014092b
AC
797 break;
798 default:
e2e0b3e5 799 internal_error (__FILE__, __LINE__, _("show_mask_address: bad switch"));
4014092b 800 break;
361d1df0 801 }
4014092b 802}
c906108c 803
c906108c
SS
804/* Tell if the program counter value in MEMADDR is in a MIPS16 function. */
805
0fe7e7c8
AC
806int
807mips_pc_is_mips16 (CORE_ADDR memaddr)
c906108c
SS
808{
809 struct minimal_symbol *sym;
810
811 /* If bit 0 of the address is set, assume this is a MIPS16 address. */
95404a3e 812 if (is_mips16_addr (memaddr))
c906108c
SS
813 return 1;
814
815 /* A flag indicating that this is a MIPS16 function is stored by elfread.c in
816 the high bit of the info field. Use this to decide if the function is
817 MIPS16 or normal MIPS. */
818 sym = lookup_minimal_symbol_by_pc (memaddr);
819 if (sym)
71b8ef93 820 return msymbol_is_special (sym);
c906108c
SS
821 else
822 return 0;
823}
824
b2fa5097 825/* MIPS believes that the PC has a sign extended value. Perhaps the
6c997a34
AC
826 all registers should be sign extended for simplicity? */
827
828static CORE_ADDR
39f77062 829mips_read_pc (ptid_t ptid)
6c997a34 830{
b6cb9035
AC
831 return read_signed_register_pid (mips_regnum (current_gdbarch)->pc, ptid);
832}
833
58dfe9ff
AC
834static CORE_ADDR
835mips_unwind_pc (struct gdbarch *gdbarch, struct frame_info *next_frame)
836{
edfae063
AC
837 return frame_unwind_register_signed (next_frame,
838 NUM_REGS + mips_regnum (gdbarch)->pc);
839}
840
841/* Assuming NEXT_FRAME->prev is a dummy, return the frame ID of that
842 dummy frame. The frame ID's base needs to match the TOS value
843 saved by save_dummy_frame_tos(), and the PC match the dummy frame's
844 breakpoint. */
845
846static struct frame_id
847mips_unwind_dummy_id (struct gdbarch *gdbarch, struct frame_info *next_frame)
848{
f10683bb 849 return frame_id_build (frame_unwind_register_signed (next_frame, NUM_REGS + MIPS_SP_REGNUM),
edfae063 850 frame_pc_unwind (next_frame));
58dfe9ff
AC
851}
852
b6cb9035
AC
853static void
854mips_write_pc (CORE_ADDR pc, ptid_t ptid)
855{
856 write_register_pid (mips_regnum (current_gdbarch)->pc, pc, ptid);
6c997a34 857}
c906108c 858
c906108c
SS
859/* Fetch and return instruction from the specified location. If the PC
860 is odd, assume it's a MIPS16 instruction; otherwise MIPS32. */
861
d37cca3d 862static ULONGEST
acdb74a0 863mips_fetch_instruction (CORE_ADDR addr)
c906108c 864{
47a35522 865 gdb_byte buf[MIPS_INSN32_SIZE];
c906108c
SS
866 int instlen;
867 int status;
868
0fe7e7c8 869 if (mips_pc_is_mips16 (addr))
c906108c 870 {
95ac2dcf 871 instlen = MIPS_INSN16_SIZE;
95404a3e 872 addr = unmake_mips16_addr (addr);
c906108c
SS
873 }
874 else
95ac2dcf 875 instlen = MIPS_INSN32_SIZE;
359a9262 876 status = read_memory_nobpt (addr, buf, instlen);
c906108c
SS
877 if (status)
878 memory_error (status, addr);
879 return extract_unsigned_integer (buf, instlen);
880}
881
c906108c 882/* These the fields of 32 bit mips instructions */
e135b889
DJ
883#define mips32_op(x) (x >> 26)
884#define itype_op(x) (x >> 26)
885#define itype_rs(x) ((x >> 21) & 0x1f)
c906108c 886#define itype_rt(x) ((x >> 16) & 0x1f)
e135b889 887#define itype_immediate(x) (x & 0xffff)
c906108c 888
e135b889
DJ
889#define jtype_op(x) (x >> 26)
890#define jtype_target(x) (x & 0x03ffffff)
c906108c 891
e135b889
DJ
892#define rtype_op(x) (x >> 26)
893#define rtype_rs(x) ((x >> 21) & 0x1f)
894#define rtype_rt(x) ((x >> 16) & 0x1f)
895#define rtype_rd(x) ((x >> 11) & 0x1f)
896#define rtype_shamt(x) ((x >> 6) & 0x1f)
897#define rtype_funct(x) (x & 0x3f)
c906108c 898
06987e64
MK
899static LONGEST
900mips32_relative_offset (ULONGEST inst)
c5aa993b 901{
06987e64 902 return ((itype_immediate (inst) ^ 0x8000) - 0x8000) << 2;
c906108c
SS
903}
904
f49e4e6d
MS
905/* Determine where to set a single step breakpoint while considering
906 branch prediction. */
5a89d8aa 907static CORE_ADDR
c5aa993b
JM
908mips32_next_pc (CORE_ADDR pc)
909{
910 unsigned long inst;
911 int op;
912 inst = mips_fetch_instruction (pc);
e135b889 913 if ((inst & 0xe0000000) != 0) /* Not a special, jump or branch instruction */
c5aa993b 914 {
e135b889 915 if (itype_op (inst) >> 2 == 5)
6d82d43b 916 /* BEQL, BNEL, BLEZL, BGTZL: bits 0101xx */
c5aa993b 917 {
e135b889 918 op = (itype_op (inst) & 0x03);
c906108c
SS
919 switch (op)
920 {
e135b889
DJ
921 case 0: /* BEQL */
922 goto equal_branch;
923 case 1: /* BNEL */
924 goto neq_branch;
925 case 2: /* BLEZL */
926 goto less_branch;
927 case 3: /* BGTZ */
928 goto greater_branch;
c5aa993b
JM
929 default:
930 pc += 4;
c906108c
SS
931 }
932 }
e135b889 933 else if (itype_op (inst) == 17 && itype_rs (inst) == 8)
6d82d43b 934 /* BC1F, BC1FL, BC1T, BC1TL: 010001 01000 */
e135b889
DJ
935 {
936 int tf = itype_rt (inst) & 0x01;
937 int cnum = itype_rt (inst) >> 2;
6d82d43b
AC
938 int fcrcs =
939 read_signed_register (mips_regnum (current_gdbarch)->
940 fp_control_status);
e135b889
DJ
941 int cond = ((fcrcs >> 24) & 0x0e) | ((fcrcs >> 23) & 0x01);
942
943 if (((cond >> cnum) & 0x01) == tf)
944 pc += mips32_relative_offset (inst) + 4;
945 else
946 pc += 8;
947 }
c5aa993b
JM
948 else
949 pc += 4; /* Not a branch, next instruction is easy */
c906108c
SS
950 }
951 else
c5aa993b
JM
952 { /* This gets way messy */
953
c906108c 954 /* Further subdivide into SPECIAL, REGIMM and other */
e135b889 955 switch (op = itype_op (inst) & 0x07) /* extract bits 28,27,26 */
c906108c 956 {
c5aa993b
JM
957 case 0: /* SPECIAL */
958 op = rtype_funct (inst);
959 switch (op)
960 {
961 case 8: /* JR */
962 case 9: /* JALR */
6c997a34
AC
963 /* Set PC to that address */
964 pc = read_signed_register (rtype_rs (inst));
c5aa993b
JM
965 break;
966 default:
967 pc += 4;
968 }
969
6d82d43b 970 break; /* end SPECIAL */
c5aa993b 971 case 1: /* REGIMM */
c906108c 972 {
e135b889
DJ
973 op = itype_rt (inst); /* branch condition */
974 switch (op)
c906108c 975 {
c5aa993b 976 case 0: /* BLTZ */
e135b889
DJ
977 case 2: /* BLTZL */
978 case 16: /* BLTZAL */
c5aa993b 979 case 18: /* BLTZALL */
c906108c 980 less_branch:
6c997a34 981 if (read_signed_register (itype_rs (inst)) < 0)
c5aa993b
JM
982 pc += mips32_relative_offset (inst) + 4;
983 else
984 pc += 8; /* after the delay slot */
985 break;
e135b889 986 case 1: /* BGEZ */
c5aa993b
JM
987 case 3: /* BGEZL */
988 case 17: /* BGEZAL */
989 case 19: /* BGEZALL */
6c997a34 990 if (read_signed_register (itype_rs (inst)) >= 0)
c5aa993b
JM
991 pc += mips32_relative_offset (inst) + 4;
992 else
993 pc += 8; /* after the delay slot */
994 break;
e135b889 995 /* All of the other instructions in the REGIMM category */
c5aa993b
JM
996 default:
997 pc += 4;
c906108c
SS
998 }
999 }
6d82d43b 1000 break; /* end REGIMM */
c5aa993b
JM
1001 case 2: /* J */
1002 case 3: /* JAL */
1003 {
1004 unsigned long reg;
1005 reg = jtype_target (inst) << 2;
e135b889 1006 /* Upper four bits get never changed... */
5b652102 1007 pc = reg + ((pc + 4) & ~(CORE_ADDR) 0x0fffffff);
c906108c 1008 }
c5aa993b
JM
1009 break;
1010 /* FIXME case JALX : */
1011 {
1012 unsigned long reg;
1013 reg = jtype_target (inst) << 2;
5b652102 1014 pc = reg + ((pc + 4) & ~(CORE_ADDR) 0x0fffffff) + 1; /* yes, +1 */
c906108c
SS
1015 /* Add 1 to indicate 16 bit mode - Invert ISA mode */
1016 }
c5aa993b 1017 break; /* The new PC will be alternate mode */
e135b889 1018 case 4: /* BEQ, BEQL */
c5aa993b 1019 equal_branch:
6c997a34
AC
1020 if (read_signed_register (itype_rs (inst)) ==
1021 read_signed_register (itype_rt (inst)))
c5aa993b
JM
1022 pc += mips32_relative_offset (inst) + 4;
1023 else
1024 pc += 8;
1025 break;
e135b889 1026 case 5: /* BNE, BNEL */
c5aa993b 1027 neq_branch:
6c997a34 1028 if (read_signed_register (itype_rs (inst)) !=
e135b889 1029 read_signed_register (itype_rt (inst)))
c5aa993b
JM
1030 pc += mips32_relative_offset (inst) + 4;
1031 else
1032 pc += 8;
1033 break;
e135b889 1034 case 6: /* BLEZ, BLEZL */
1fd8cd20 1035 if (read_signed_register (itype_rs (inst)) <= 0)
c5aa993b
JM
1036 pc += mips32_relative_offset (inst) + 4;
1037 else
1038 pc += 8;
1039 break;
1040 case 7:
e135b889
DJ
1041 default:
1042 greater_branch: /* BGTZ, BGTZL */
1fd8cd20 1043 if (read_signed_register (itype_rs (inst)) > 0)
c5aa993b
JM
1044 pc += mips32_relative_offset (inst) + 4;
1045 else
1046 pc += 8;
1047 break;
c5aa993b
JM
1048 } /* switch */
1049 } /* else */
1050 return pc;
1051} /* mips32_next_pc */
c906108c
SS
1052
1053/* Decoding the next place to set a breakpoint is irregular for the
e26cc349 1054 mips 16 variant, but fortunately, there fewer instructions. We have to cope
c906108c
SS
1055 ith extensions for 16 bit instructions and a pair of actual 32 bit instructions.
1056 We dont want to set a single step instruction on the extend instruction
1057 either.
c5aa993b 1058 */
c906108c
SS
1059
1060/* Lots of mips16 instruction formats */
1061/* Predicting jumps requires itype,ritype,i8type
1062 and their extensions extItype,extritype,extI8type
c5aa993b 1063 */
c906108c
SS
1064enum mips16_inst_fmts
1065{
c5aa993b
JM
1066 itype, /* 0 immediate 5,10 */
1067 ritype, /* 1 5,3,8 */
1068 rrtype, /* 2 5,3,3,5 */
1069 rritype, /* 3 5,3,3,5 */
1070 rrrtype, /* 4 5,3,3,3,2 */
1071 rriatype, /* 5 5,3,3,1,4 */
1072 shifttype, /* 6 5,3,3,3,2 */
1073 i8type, /* 7 5,3,8 */
1074 i8movtype, /* 8 5,3,3,5 */
1075 i8mov32rtype, /* 9 5,3,5,3 */
1076 i64type, /* 10 5,3,8 */
1077 ri64type, /* 11 5,3,3,5 */
1078 jalxtype, /* 12 5,1,5,5,16 - a 32 bit instruction */
1079 exiItype, /* 13 5,6,5,5,1,1,1,1,1,1,5 */
1080 extRitype, /* 14 5,6,5,5,3,1,1,1,5 */
1081 extRRItype, /* 15 5,5,5,5,3,3,5 */
1082 extRRIAtype, /* 16 5,7,4,5,3,3,1,4 */
1083 EXTshifttype, /* 17 5,5,1,1,1,1,1,1,5,3,3,1,1,1,2 */
1084 extI8type, /* 18 5,6,5,5,3,1,1,1,5 */
1085 extI64type, /* 19 5,6,5,5,3,1,1,1,5 */
1086 extRi64type, /* 20 5,6,5,5,3,3,5 */
1087 extshift64type /* 21 5,5,1,1,1,1,1,1,5,1,1,1,3,5 */
1088};
12f02c2a
AC
1089/* I am heaping all the fields of the formats into one structure and
1090 then, only the fields which are involved in instruction extension */
c906108c 1091struct upk_mips16
6d82d43b
AC
1092{
1093 CORE_ADDR offset;
1094 unsigned int regx; /* Function in i8 type */
1095 unsigned int regy;
1096};
c906108c
SS
1097
1098
12f02c2a
AC
1099/* The EXT-I, EXT-ri nad EXT-I8 instructions all have the same format
1100 for the bits which make up the immediatate extension. */
c906108c 1101
12f02c2a
AC
1102static CORE_ADDR
1103extended_offset (unsigned int extension)
c906108c 1104{
12f02c2a 1105 CORE_ADDR value;
c5aa993b
JM
1106 value = (extension >> 21) & 0x3f; /* * extract 15:11 */
1107 value = value << 6;
1108 value |= (extension >> 16) & 0x1f; /* extrace 10:5 */
1109 value = value << 5;
1110 value |= extension & 0x01f; /* extract 4:0 */
1111 return value;
c906108c
SS
1112}
1113
1114/* Only call this function if you know that this is an extendable
1115 instruction, It wont malfunction, but why make excess remote memory references?
1116 If the immediate operands get sign extended or somthing, do it after
1117 the extension is performed.
c5aa993b 1118 */
c906108c
SS
1119/* FIXME: Every one of these cases needs to worry about sign extension
1120 when the offset is to be used in relative addressing */
1121
1122
12f02c2a 1123static unsigned int
c5aa993b 1124fetch_mips_16 (CORE_ADDR pc)
c906108c 1125{
47a35522 1126 gdb_byte buf[8];
c5aa993b
JM
1127 pc &= 0xfffffffe; /* clear the low order bit */
1128 target_read_memory (pc, buf, 2);
1129 return extract_unsigned_integer (buf, 2);
c906108c
SS
1130}
1131
1132static void
c5aa993b 1133unpack_mips16 (CORE_ADDR pc,
12f02c2a
AC
1134 unsigned int extension,
1135 unsigned int inst,
6d82d43b 1136 enum mips16_inst_fmts insn_format, struct upk_mips16 *upk)
c906108c 1137{
12f02c2a
AC
1138 CORE_ADDR offset;
1139 int regx;
1140 int regy;
1141 switch (insn_format)
c906108c 1142 {
c5aa993b 1143 case itype:
c906108c 1144 {
12f02c2a
AC
1145 CORE_ADDR value;
1146 if (extension)
c5aa993b
JM
1147 {
1148 value = extended_offset (extension);
1149 value = value << 11; /* rom for the original value */
6d82d43b 1150 value |= inst & 0x7ff; /* eleven bits from instruction */
c906108c
SS
1151 }
1152 else
c5aa993b 1153 {
12f02c2a 1154 value = inst & 0x7ff;
c5aa993b 1155 /* FIXME : Consider sign extension */
c906108c 1156 }
12f02c2a
AC
1157 offset = value;
1158 regx = -1;
1159 regy = -1;
c906108c 1160 }
c5aa993b
JM
1161 break;
1162 case ritype:
1163 case i8type:
1164 { /* A register identifier and an offset */
c906108c
SS
1165 /* Most of the fields are the same as I type but the
1166 immediate value is of a different length */
12f02c2a
AC
1167 CORE_ADDR value;
1168 if (extension)
c906108c 1169 {
c5aa993b
JM
1170 value = extended_offset (extension);
1171 value = value << 8; /* from the original instruction */
12f02c2a
AC
1172 value |= inst & 0xff; /* eleven bits from instruction */
1173 regx = (extension >> 8) & 0x07; /* or i8 funct */
c5aa993b
JM
1174 if (value & 0x4000) /* test the sign bit , bit 26 */
1175 {
1176 value &= ~0x3fff; /* remove the sign bit */
1177 value = -value;
c906108c
SS
1178 }
1179 }
c5aa993b
JM
1180 else
1181 {
12f02c2a
AC
1182 value = inst & 0xff; /* 8 bits */
1183 regx = (inst >> 8) & 0x07; /* or i8 funct */
c5aa993b
JM
1184 /* FIXME: Do sign extension , this format needs it */
1185 if (value & 0x80) /* THIS CONFUSES ME */
1186 {
1187 value &= 0xef; /* remove the sign bit */
1188 value = -value;
1189 }
c5aa993b 1190 }
12f02c2a
AC
1191 offset = value;
1192 regy = -1;
c5aa993b 1193 break;
c906108c 1194 }
c5aa993b 1195 case jalxtype:
c906108c 1196 {
c5aa993b 1197 unsigned long value;
12f02c2a
AC
1198 unsigned int nexthalf;
1199 value = ((inst & 0x1f) << 5) | ((inst >> 5) & 0x1f);
c5aa993b
JM
1200 value = value << 16;
1201 nexthalf = mips_fetch_instruction (pc + 2); /* low bit still set */
1202 value |= nexthalf;
12f02c2a
AC
1203 offset = value;
1204 regx = -1;
1205 regy = -1;
c5aa993b 1206 break;
c906108c
SS
1207 }
1208 default:
e2e0b3e5 1209 internal_error (__FILE__, __LINE__, _("bad switch"));
c906108c 1210 }
12f02c2a
AC
1211 upk->offset = offset;
1212 upk->regx = regx;
1213 upk->regy = regy;
c906108c
SS
1214}
1215
1216
c5aa993b
JM
1217static CORE_ADDR
1218add_offset_16 (CORE_ADDR pc, int offset)
c906108c 1219{
5b652102 1220 return ((offset << 2) | ((pc + 2) & (~(CORE_ADDR) 0x0fffffff)));
c906108c
SS
1221}
1222
12f02c2a
AC
1223static CORE_ADDR
1224extended_mips16_next_pc (CORE_ADDR pc,
6d82d43b 1225 unsigned int extension, unsigned int insn)
c906108c 1226{
12f02c2a
AC
1227 int op = (insn >> 11);
1228 switch (op)
c906108c 1229 {
6d82d43b 1230 case 2: /* Branch */
12f02c2a
AC
1231 {
1232 CORE_ADDR offset;
1233 struct upk_mips16 upk;
1234 unpack_mips16 (pc, extension, insn, itype, &upk);
1235 offset = upk.offset;
1236 if (offset & 0x800)
1237 {
1238 offset &= 0xeff;
1239 offset = -offset;
1240 }
1241 pc += (offset << 1) + 2;
1242 break;
1243 }
6d82d43b 1244 case 3: /* JAL , JALX - Watch out, these are 32 bit instruction */
12f02c2a
AC
1245 {
1246 struct upk_mips16 upk;
1247 unpack_mips16 (pc, extension, insn, jalxtype, &upk);
1248 pc = add_offset_16 (pc, upk.offset);
1249 if ((insn >> 10) & 0x01) /* Exchange mode */
1250 pc = pc & ~0x01; /* Clear low bit, indicate 32 bit mode */
1251 else
1252 pc |= 0x01;
1253 break;
1254 }
6d82d43b 1255 case 4: /* beqz */
12f02c2a
AC
1256 {
1257 struct upk_mips16 upk;
1258 int reg;
1259 unpack_mips16 (pc, extension, insn, ritype, &upk);
1260 reg = read_signed_register (upk.regx);
1261 if (reg == 0)
1262 pc += (upk.offset << 1) + 2;
1263 else
1264 pc += 2;
1265 break;
1266 }
6d82d43b 1267 case 5: /* bnez */
12f02c2a
AC
1268 {
1269 struct upk_mips16 upk;
1270 int reg;
1271 unpack_mips16 (pc, extension, insn, ritype, &upk);
1272 reg = read_signed_register (upk.regx);
1273 if (reg != 0)
1274 pc += (upk.offset << 1) + 2;
1275 else
1276 pc += 2;
1277 break;
1278 }
6d82d43b 1279 case 12: /* I8 Formats btez btnez */
12f02c2a
AC
1280 {
1281 struct upk_mips16 upk;
1282 int reg;
1283 unpack_mips16 (pc, extension, insn, i8type, &upk);
1284 /* upk.regx contains the opcode */
1285 reg = read_signed_register (24); /* Test register is 24 */
1286 if (((upk.regx == 0) && (reg == 0)) /* BTEZ */
1287 || ((upk.regx == 1) && (reg != 0))) /* BTNEZ */
1288 /* pc = add_offset_16(pc,upk.offset) ; */
1289 pc += (upk.offset << 1) + 2;
1290 else
1291 pc += 2;
1292 break;
1293 }
6d82d43b 1294 case 29: /* RR Formats JR, JALR, JALR-RA */
12f02c2a
AC
1295 {
1296 struct upk_mips16 upk;
1297 /* upk.fmt = rrtype; */
1298 op = insn & 0x1f;
1299 if (op == 0)
c5aa993b 1300 {
12f02c2a
AC
1301 int reg;
1302 upk.regx = (insn >> 8) & 0x07;
1303 upk.regy = (insn >> 5) & 0x07;
1304 switch (upk.regy)
c5aa993b 1305 {
12f02c2a
AC
1306 case 0:
1307 reg = upk.regx;
1308 break;
1309 case 1:
1310 reg = 31;
6d82d43b 1311 break; /* Function return instruction */
12f02c2a
AC
1312 case 2:
1313 reg = upk.regx;
1314 break;
1315 default:
1316 reg = 31;
6d82d43b 1317 break; /* BOGUS Guess */
c906108c 1318 }
12f02c2a 1319 pc = read_signed_register (reg);
c906108c 1320 }
12f02c2a 1321 else
c5aa993b 1322 pc += 2;
12f02c2a
AC
1323 break;
1324 }
1325 case 30:
1326 /* This is an instruction extension. Fetch the real instruction
1327 (which follows the extension) and decode things based on
1328 that. */
1329 {
1330 pc += 2;
1331 pc = extended_mips16_next_pc (pc, insn, fetch_mips_16 (pc));
1332 break;
1333 }
1334 default:
1335 {
1336 pc += 2;
1337 break;
1338 }
c906108c 1339 }
c5aa993b 1340 return pc;
12f02c2a 1341}
c906108c 1342
5a89d8aa 1343static CORE_ADDR
12f02c2a
AC
1344mips16_next_pc (CORE_ADDR pc)
1345{
1346 unsigned int insn = fetch_mips_16 (pc);
1347 return extended_mips16_next_pc (pc, 0, insn);
1348}
1349
1350/* The mips_next_pc function supports single_step when the remote
7e73cedf 1351 target monitor or stub is not developed enough to do a single_step.
12f02c2a
AC
1352 It works by decoding the current instruction and predicting where a
1353 branch will go. This isnt hard because all the data is available.
1354 The MIPS32 and MIPS16 variants are quite different */
ad527d2e 1355static CORE_ADDR
c5aa993b 1356mips_next_pc (CORE_ADDR pc)
c906108c 1357{
c5aa993b
JM
1358 if (pc & 0x01)
1359 return mips16_next_pc (pc);
1360 else
1361 return mips32_next_pc (pc);
12f02c2a 1362}
c906108c 1363
edfae063
AC
1364struct mips_frame_cache
1365{
1366 CORE_ADDR base;
1367 struct trad_frame_saved_reg *saved_regs;
1368};
1369
29639122
JB
1370/* Set a register's saved stack address in temp_saved_regs. If an
1371 address has already been set for this register, do nothing; this
1372 way we will only recognize the first save of a given register in a
1373 function prologue.
eec63939 1374
29639122
JB
1375 For simplicity, save the address in both [0 .. NUM_REGS) and
1376 [NUM_REGS .. 2*NUM_REGS). Strictly speaking, only the second range
1377 is used as it is only second range (the ABI instead of ISA
1378 registers) that comes into play when finding saved registers in a
1379 frame. */
eec63939
AC
1380
1381static void
29639122
JB
1382set_reg_offset (struct mips_frame_cache *this_cache, int regnum,
1383 CORE_ADDR offset)
eec63939 1384{
29639122
JB
1385 if (this_cache != NULL
1386 && this_cache->saved_regs[regnum].addr == -1)
1387 {
1388 this_cache->saved_regs[regnum + 0 * NUM_REGS].addr = offset;
1389 this_cache->saved_regs[regnum + 1 * NUM_REGS].addr = offset;
1390 }
eec63939
AC
1391}
1392
eec63939 1393
29639122
JB
1394/* Fetch the immediate value from a MIPS16 instruction.
1395 If the previous instruction was an EXTEND, use it to extend
1396 the upper bits of the immediate value. This is a helper function
1397 for mips16_scan_prologue. */
eec63939 1398
29639122
JB
1399static int
1400mips16_get_imm (unsigned short prev_inst, /* previous instruction */
1401 unsigned short inst, /* current instruction */
1402 int nbits, /* number of bits in imm field */
1403 int scale, /* scale factor to be applied to imm */
1404 int is_signed) /* is the imm field signed? */
eec63939 1405{
29639122 1406 int offset;
eec63939 1407
29639122
JB
1408 if ((prev_inst & 0xf800) == 0xf000) /* prev instruction was EXTEND? */
1409 {
1410 offset = ((prev_inst & 0x1f) << 11) | (prev_inst & 0x7e0);
1411 if (offset & 0x8000) /* check for negative extend */
1412 offset = 0 - (0x10000 - (offset & 0xffff));
1413 return offset | (inst & 0x1f);
1414 }
eec63939 1415 else
29639122
JB
1416 {
1417 int max_imm = 1 << nbits;
1418 int mask = max_imm - 1;
1419 int sign_bit = max_imm >> 1;
45c9dd44 1420
29639122
JB
1421 offset = inst & mask;
1422 if (is_signed && (offset & sign_bit))
1423 offset = 0 - (max_imm - offset);
1424 return offset * scale;
1425 }
1426}
eec63939 1427
65596487 1428
29639122
JB
1429/* Analyze the function prologue from START_PC to LIMIT_PC. Builds
1430 the associated FRAME_CACHE if not null.
1431 Return the address of the first instruction past the prologue. */
eec63939 1432
29639122
JB
1433static CORE_ADDR
1434mips16_scan_prologue (CORE_ADDR start_pc, CORE_ADDR limit_pc,
1435 struct frame_info *next_frame,
1436 struct mips_frame_cache *this_cache)
1437{
1438 CORE_ADDR cur_pc;
1439 CORE_ADDR frame_addr = 0; /* Value of $r17, used as frame pointer */
1440 CORE_ADDR sp;
1441 long frame_offset = 0; /* Size of stack frame. */
1442 long frame_adjust = 0; /* Offset of FP from SP. */
1443 int frame_reg = MIPS_SP_REGNUM;
1444 unsigned short prev_inst = 0; /* saved copy of previous instruction */
1445 unsigned inst = 0; /* current instruction */
1446 unsigned entry_inst = 0; /* the entry instruction */
1447 int reg, offset;
a343eb3c 1448
29639122
JB
1449 int extend_bytes = 0;
1450 int prev_extend_bytes;
1451 CORE_ADDR end_prologue_addr = 0;
a343eb3c 1452
29639122
JB
1453 /* Can be called when there's no process, and hence when there's no
1454 NEXT_FRAME. */
1455 if (next_frame != NULL)
1456 sp = read_next_frame_reg (next_frame, NUM_REGS + MIPS_SP_REGNUM);
1457 else
1458 sp = 0;
eec63939 1459
29639122
JB
1460 if (limit_pc > start_pc + 200)
1461 limit_pc = start_pc + 200;
eec63939 1462
95ac2dcf 1463 for (cur_pc = start_pc; cur_pc < limit_pc; cur_pc += MIPS_INSN16_SIZE)
29639122
JB
1464 {
1465 /* Save the previous instruction. If it's an EXTEND, we'll extract
1466 the immediate offset extension from it in mips16_get_imm. */
1467 prev_inst = inst;
eec63939 1468
29639122
JB
1469 /* Fetch and decode the instruction. */
1470 inst = (unsigned short) mips_fetch_instruction (cur_pc);
eec63939 1471
29639122
JB
1472 /* Normally we ignore extend instructions. However, if it is
1473 not followed by a valid prologue instruction, then this
1474 instruction is not part of the prologue either. We must
1475 remember in this case to adjust the end_prologue_addr back
1476 over the extend. */
1477 if ((inst & 0xf800) == 0xf000) /* extend */
1478 {
95ac2dcf 1479 extend_bytes = MIPS_INSN16_SIZE;
29639122
JB
1480 continue;
1481 }
eec63939 1482
29639122
JB
1483 prev_extend_bytes = extend_bytes;
1484 extend_bytes = 0;
eec63939 1485
29639122
JB
1486 if ((inst & 0xff00) == 0x6300 /* addiu sp */
1487 || (inst & 0xff00) == 0xfb00) /* daddiu sp */
1488 {
1489 offset = mips16_get_imm (prev_inst, inst, 8, 8, 1);
1490 if (offset < 0) /* negative stack adjustment? */
1491 frame_offset -= offset;
1492 else
1493 /* Exit loop if a positive stack adjustment is found, which
1494 usually means that the stack cleanup code in the function
1495 epilogue is reached. */
1496 break;
1497 }
1498 else if ((inst & 0xf800) == 0xd000) /* sw reg,n($sp) */
1499 {
1500 offset = mips16_get_imm (prev_inst, inst, 8, 4, 0);
1501 reg = mips16_to_32_reg[(inst & 0x700) >> 8];
1502 set_reg_offset (this_cache, reg, sp + offset);
1503 }
1504 else if ((inst & 0xff00) == 0xf900) /* sd reg,n($sp) */
1505 {
1506 offset = mips16_get_imm (prev_inst, inst, 5, 8, 0);
1507 reg = mips16_to_32_reg[(inst & 0xe0) >> 5];
1508 set_reg_offset (this_cache, reg, sp + offset);
1509 }
1510 else if ((inst & 0xff00) == 0x6200) /* sw $ra,n($sp) */
1511 {
1512 offset = mips16_get_imm (prev_inst, inst, 8, 4, 0);
4c7d22cb 1513 set_reg_offset (this_cache, MIPS_RA_REGNUM, sp + offset);
29639122
JB
1514 }
1515 else if ((inst & 0xff00) == 0xfa00) /* sd $ra,n($sp) */
1516 {
1517 offset = mips16_get_imm (prev_inst, inst, 8, 8, 0);
4c7d22cb 1518 set_reg_offset (this_cache, MIPS_RA_REGNUM, sp + offset);
29639122
JB
1519 }
1520 else if (inst == 0x673d) /* move $s1, $sp */
1521 {
1522 frame_addr = sp;
1523 frame_reg = 17;
1524 }
1525 else if ((inst & 0xff00) == 0x0100) /* addiu $s1,sp,n */
1526 {
1527 offset = mips16_get_imm (prev_inst, inst, 8, 4, 0);
1528 frame_addr = sp + offset;
1529 frame_reg = 17;
1530 frame_adjust = offset;
1531 }
1532 else if ((inst & 0xFF00) == 0xd900) /* sw reg,offset($s1) */
1533 {
1534 offset = mips16_get_imm (prev_inst, inst, 5, 4, 0);
1535 reg = mips16_to_32_reg[(inst & 0xe0) >> 5];
1536 set_reg_offset (this_cache, reg, frame_addr + offset);
1537 }
1538 else if ((inst & 0xFF00) == 0x7900) /* sd reg,offset($s1) */
1539 {
1540 offset = mips16_get_imm (prev_inst, inst, 5, 8, 0);
1541 reg = mips16_to_32_reg[(inst & 0xe0) >> 5];
1542 set_reg_offset (this_cache, reg, frame_addr + offset);
1543 }
1544 else if ((inst & 0xf81f) == 0xe809
1545 && (inst & 0x700) != 0x700) /* entry */
1546 entry_inst = inst; /* save for later processing */
1547 else if ((inst & 0xf800) == 0x1800) /* jal(x) */
95ac2dcf 1548 cur_pc += MIPS_INSN16_SIZE; /* 32-bit instruction */
29639122
JB
1549 else if ((inst & 0xff1c) == 0x6704) /* move reg,$a0-$a3 */
1550 {
1551 /* This instruction is part of the prologue, but we don't
1552 need to do anything special to handle it. */
1553 }
1554 else
1555 {
1556 /* This instruction is not an instruction typically found
1557 in a prologue, so we must have reached the end of the
1558 prologue. */
1559 if (end_prologue_addr == 0)
1560 end_prologue_addr = cur_pc - prev_extend_bytes;
1561 }
1562 }
eec63939 1563
29639122
JB
1564 /* The entry instruction is typically the first instruction in a function,
1565 and it stores registers at offsets relative to the value of the old SP
1566 (before the prologue). But the value of the sp parameter to this
1567 function is the new SP (after the prologue has been executed). So we
1568 can't calculate those offsets until we've seen the entire prologue,
1569 and can calculate what the old SP must have been. */
1570 if (entry_inst != 0)
1571 {
1572 int areg_count = (entry_inst >> 8) & 7;
1573 int sreg_count = (entry_inst >> 6) & 3;
eec63939 1574
29639122
JB
1575 /* The entry instruction always subtracts 32 from the SP. */
1576 frame_offset += 32;
1577
1578 /* Now we can calculate what the SP must have been at the
1579 start of the function prologue. */
1580 sp += frame_offset;
1581
1582 /* Check if a0-a3 were saved in the caller's argument save area. */
1583 for (reg = 4, offset = 0; reg < areg_count + 4; reg++)
1584 {
1585 set_reg_offset (this_cache, reg, sp + offset);
1586 offset += mips_abi_regsize (current_gdbarch);
1587 }
1588
1589 /* Check if the ra register was pushed on the stack. */
1590 offset = -4;
1591 if (entry_inst & 0x20)
1592 {
4c7d22cb 1593 set_reg_offset (this_cache, MIPS_RA_REGNUM, sp + offset);
29639122
JB
1594 offset -= mips_abi_regsize (current_gdbarch);
1595 }
1596
1597 /* Check if the s0 and s1 registers were pushed on the stack. */
1598 for (reg = 16; reg < sreg_count + 16; reg++)
1599 {
1600 set_reg_offset (this_cache, reg, sp + offset);
1601 offset -= mips_abi_regsize (current_gdbarch);
1602 }
1603 }
1604
1605 if (this_cache != NULL)
1606 {
1607 this_cache->base =
1608 (frame_unwind_register_signed (next_frame, NUM_REGS + frame_reg)
1609 + frame_offset - frame_adjust);
1610 /* FIXME: brobecker/2004-10-10: Just as in the mips32 case, we should
1611 be able to get rid of the assignment below, evetually. But it's
1612 still needed for now. */
1613 this_cache->saved_regs[NUM_REGS + mips_regnum (current_gdbarch)->pc]
4c7d22cb 1614 = this_cache->saved_regs[NUM_REGS + MIPS_RA_REGNUM];
29639122
JB
1615 }
1616
1617 /* If we didn't reach the end of the prologue when scanning the function
1618 instructions, then set end_prologue_addr to the address of the
1619 instruction immediately after the last one we scanned. */
1620 if (end_prologue_addr == 0)
1621 end_prologue_addr = cur_pc;
1622
1623 return end_prologue_addr;
eec63939
AC
1624}
1625
29639122
JB
1626/* Heuristic unwinder for 16-bit MIPS instruction set (aka MIPS16).
1627 Procedures that use the 32-bit instruction set are handled by the
1628 mips_insn32 unwinder. */
1629
1630static struct mips_frame_cache *
1631mips_insn16_frame_cache (struct frame_info *next_frame, void **this_cache)
eec63939 1632{
29639122 1633 struct mips_frame_cache *cache;
eec63939
AC
1634
1635 if ((*this_cache) != NULL)
1636 return (*this_cache);
29639122
JB
1637 cache = FRAME_OBSTACK_ZALLOC (struct mips_frame_cache);
1638 (*this_cache) = cache;
1639 cache->saved_regs = trad_frame_alloc_saved_regs (next_frame);
eec63939 1640
29639122
JB
1641 /* Analyze the function prologue. */
1642 {
6de5b849
JB
1643 const CORE_ADDR pc =
1644 frame_unwind_address_in_block (next_frame, NORMAL_FRAME);
29639122 1645 CORE_ADDR start_addr;
eec63939 1646
29639122
JB
1647 find_pc_partial_function (pc, NULL, &start_addr, NULL);
1648 if (start_addr == 0)
1649 start_addr = heuristic_proc_start (pc);
1650 /* We can't analyze the prologue if we couldn't find the begining
1651 of the function. */
1652 if (start_addr == 0)
1653 return cache;
eec63939 1654
29639122
JB
1655 mips16_scan_prologue (start_addr, pc, next_frame, *this_cache);
1656 }
1657
1658 /* SP_REGNUM, contains the value and not the address. */
1659 trad_frame_set_value (cache->saved_regs, NUM_REGS + MIPS_SP_REGNUM, cache->base);
eec63939 1660
29639122 1661 return (*this_cache);
eec63939
AC
1662}
1663
1664static void
29639122
JB
1665mips_insn16_frame_this_id (struct frame_info *next_frame, void **this_cache,
1666 struct frame_id *this_id)
eec63939 1667{
29639122
JB
1668 struct mips_frame_cache *info = mips_insn16_frame_cache (next_frame,
1669 this_cache);
93d42b30
DJ
1670 (*this_id) = frame_id_build (info->base,
1671 frame_func_unwind (next_frame, NORMAL_FRAME));
eec63939
AC
1672}
1673
1674static void
29639122 1675mips_insn16_frame_prev_register (struct frame_info *next_frame,
eec63939
AC
1676 void **this_cache,
1677 int regnum, int *optimizedp,
1678 enum lval_type *lvalp, CORE_ADDR *addrp,
a8a0fc4c 1679 int *realnump, gdb_byte *valuep)
eec63939 1680{
29639122
JB
1681 struct mips_frame_cache *info = mips_insn16_frame_cache (next_frame,
1682 this_cache);
1683 trad_frame_get_prev_register (next_frame, info->saved_regs, regnum,
1684 optimizedp, lvalp, addrp, realnump, valuep);
eec63939
AC
1685}
1686
29639122 1687static const struct frame_unwind mips_insn16_frame_unwind =
eec63939
AC
1688{
1689 NORMAL_FRAME,
29639122
JB
1690 mips_insn16_frame_this_id,
1691 mips_insn16_frame_prev_register
eec63939
AC
1692};
1693
1694static const struct frame_unwind *
29639122 1695mips_insn16_frame_sniffer (struct frame_info *next_frame)
eec63939 1696{
6de5b849 1697 CORE_ADDR pc = frame_pc_unwind (next_frame);
0fe7e7c8 1698 if (mips_pc_is_mips16 (pc))
29639122
JB
1699 return &mips_insn16_frame_unwind;
1700 return NULL;
eec63939
AC
1701}
1702
1703static CORE_ADDR
29639122
JB
1704mips_insn16_frame_base_address (struct frame_info *next_frame,
1705 void **this_cache)
eec63939 1706{
29639122
JB
1707 struct mips_frame_cache *info = mips_insn16_frame_cache (next_frame,
1708 this_cache);
1709 return info->base;
eec63939
AC
1710}
1711
29639122 1712static const struct frame_base mips_insn16_frame_base =
eec63939 1713{
29639122
JB
1714 &mips_insn16_frame_unwind,
1715 mips_insn16_frame_base_address,
1716 mips_insn16_frame_base_address,
1717 mips_insn16_frame_base_address
eec63939
AC
1718};
1719
1720static const struct frame_base *
29639122 1721mips_insn16_frame_base_sniffer (struct frame_info *next_frame)
eec63939 1722{
29639122
JB
1723 if (mips_insn16_frame_sniffer (next_frame) != NULL)
1724 return &mips_insn16_frame_base;
eec63939
AC
1725 else
1726 return NULL;
edfae063
AC
1727}
1728
29639122
JB
1729/* Mark all the registers as unset in the saved_regs array
1730 of THIS_CACHE. Do nothing if THIS_CACHE is null. */
1731
1732void
1733reset_saved_regs (struct mips_frame_cache *this_cache)
c906108c 1734{
29639122
JB
1735 if (this_cache == NULL || this_cache->saved_regs == NULL)
1736 return;
1737
1738 {
1739 const int num_regs = NUM_REGS;
1740 int i;
64159455 1741
29639122
JB
1742 for (i = 0; i < num_regs; i++)
1743 {
1744 this_cache->saved_regs[i].addr = -1;
1745 }
1746 }
c906108c
SS
1747}
1748
29639122
JB
1749/* Analyze the function prologue from START_PC to LIMIT_PC. Builds
1750 the associated FRAME_CACHE if not null.
1751 Return the address of the first instruction past the prologue. */
c906108c 1752
875e1767 1753static CORE_ADDR
29639122
JB
1754mips32_scan_prologue (CORE_ADDR start_pc, CORE_ADDR limit_pc,
1755 struct frame_info *next_frame,
1756 struct mips_frame_cache *this_cache)
c906108c 1757{
29639122
JB
1758 CORE_ADDR cur_pc;
1759 CORE_ADDR frame_addr = 0; /* Value of $r30. Used by gcc for frame-pointer */
1760 CORE_ADDR sp;
1761 long frame_offset;
1762 int frame_reg = MIPS_SP_REGNUM;
8fa9cfa1 1763
29639122
JB
1764 CORE_ADDR end_prologue_addr = 0;
1765 int seen_sp_adjust = 0;
1766 int load_immediate_bytes = 0;
8fa9cfa1 1767
29639122
JB
1768 /* Can be called when there's no process, and hence when there's no
1769 NEXT_FRAME. */
1770 if (next_frame != NULL)
1771 sp = read_next_frame_reg (next_frame, NUM_REGS + MIPS_SP_REGNUM);
8fa9cfa1 1772 else
29639122 1773 sp = 0;
9022177c 1774
29639122
JB
1775 if (limit_pc > start_pc + 200)
1776 limit_pc = start_pc + 200;
9022177c 1777
29639122 1778restart:
9022177c 1779
29639122 1780 frame_offset = 0;
95ac2dcf 1781 for (cur_pc = start_pc; cur_pc < limit_pc; cur_pc += MIPS_INSN32_SIZE)
9022177c 1782 {
29639122
JB
1783 unsigned long inst, high_word, low_word;
1784 int reg;
9022177c 1785
29639122
JB
1786 /* Fetch the instruction. */
1787 inst = (unsigned long) mips_fetch_instruction (cur_pc);
9022177c 1788
29639122
JB
1789 /* Save some code by pre-extracting some useful fields. */
1790 high_word = (inst >> 16) & 0xffff;
1791 low_word = inst & 0xffff;
1792 reg = high_word & 0x1f;
fe29b929 1793
29639122
JB
1794 if (high_word == 0x27bd /* addiu $sp,$sp,-i */
1795 || high_word == 0x23bd /* addi $sp,$sp,-i */
1796 || high_word == 0x67bd) /* daddiu $sp,$sp,-i */
1797 {
1798 if (low_word & 0x8000) /* negative stack adjustment? */
1799 frame_offset += 0x10000 - low_word;
1800 else
1801 /* Exit loop if a positive stack adjustment is found, which
1802 usually means that the stack cleanup code in the function
1803 epilogue is reached. */
1804 break;
1805 seen_sp_adjust = 1;
1806 }
1807 else if ((high_word & 0xFFE0) == 0xafa0) /* sw reg,offset($sp) */
1808 {
1809 set_reg_offset (this_cache, reg, sp + low_word);
1810 }
1811 else if ((high_word & 0xFFE0) == 0xffa0) /* sd reg,offset($sp) */
1812 {
1813 /* Irix 6.2 N32 ABI uses sd instructions for saving $gp and $ra. */
1814 set_reg_offset (this_cache, reg, sp + low_word);
1815 }
1816 else if (high_word == 0x27be) /* addiu $30,$sp,size */
1817 {
1818 /* Old gcc frame, r30 is virtual frame pointer. */
1819 if ((long) low_word != frame_offset)
1820 frame_addr = sp + low_word;
1821 else if (frame_reg == MIPS_SP_REGNUM)
1822 {
1823 unsigned alloca_adjust;
a4b8ebc8 1824
29639122
JB
1825 frame_reg = 30;
1826 frame_addr = read_next_frame_reg (next_frame, NUM_REGS + 30);
1827 alloca_adjust = (unsigned) (frame_addr - (sp + low_word));
1828 if (alloca_adjust > 0)
1829 {
1830 /* FP > SP + frame_size. This may be because of
1831 an alloca or somethings similar. Fix sp to
1832 "pre-alloca" value, and try again. */
1833 sp += alloca_adjust;
1834 /* Need to reset the status of all registers. Otherwise,
1835 we will hit a guard that prevents the new address
1836 for each register to be recomputed during the second
1837 pass. */
1838 reset_saved_regs (this_cache);
1839 goto restart;
1840 }
1841 }
1842 }
1843 /* move $30,$sp. With different versions of gas this will be either
1844 `addu $30,$sp,$zero' or `or $30,$sp,$zero' or `daddu 30,sp,$0'.
1845 Accept any one of these. */
1846 else if (inst == 0x03A0F021 || inst == 0x03a0f025 || inst == 0x03a0f02d)
1847 {
1848 /* New gcc frame, virtual frame pointer is at r30 + frame_size. */
1849 if (frame_reg == MIPS_SP_REGNUM)
1850 {
1851 unsigned alloca_adjust;
c906108c 1852
29639122
JB
1853 frame_reg = 30;
1854 frame_addr = read_next_frame_reg (next_frame, NUM_REGS + 30);
1855 alloca_adjust = (unsigned) (frame_addr - sp);
1856 if (alloca_adjust > 0)
1857 {
1858 /* FP > SP + frame_size. This may be because of
1859 an alloca or somethings similar. Fix sp to
1860 "pre-alloca" value, and try again. */
1861 sp = frame_addr;
1862 /* Need to reset the status of all registers. Otherwise,
1863 we will hit a guard that prevents the new address
1864 for each register to be recomputed during the second
1865 pass. */
1866 reset_saved_regs (this_cache);
1867 goto restart;
1868 }
1869 }
1870 }
1871 else if ((high_word & 0xFFE0) == 0xafc0) /* sw reg,offset($30) */
1872 {
1873 set_reg_offset (this_cache, reg, frame_addr + low_word);
1874 }
1875 else if ((high_word & 0xFFE0) == 0xE7A0 /* swc1 freg,n($sp) */
1876 || (high_word & 0xF3E0) == 0xA3C0 /* sx reg,n($s8) */
1877 || (inst & 0xFF9F07FF) == 0x00800021 /* move reg,$a0-$a3 */
1878 || high_word == 0x3c1c /* lui $gp,n */
1879 || high_word == 0x279c /* addiu $gp,$gp,n */
1880 || inst == 0x0399e021 /* addu $gp,$gp,$t9 */
1881 || inst == 0x033ce021 /* addu $gp,$t9,$gp */
1882 )
1883 {
1884 /* These instructions are part of the prologue, but we don't
1885 need to do anything special to handle them. */
1886 }
1887 /* The instructions below load $at or $t0 with an immediate
1888 value in preparation for a stack adjustment via
1889 subu $sp,$sp,[$at,$t0]. These instructions could also
1890 initialize a local variable, so we accept them only before
1891 a stack adjustment instruction was seen. */
1892 else if (!seen_sp_adjust
1893 && (high_word == 0x3c01 /* lui $at,n */
1894 || high_word == 0x3c08 /* lui $t0,n */
1895 || high_word == 0x3421 /* ori $at,$at,n */
1896 || high_word == 0x3508 /* ori $t0,$t0,n */
1897 || high_word == 0x3401 /* ori $at,$zero,n */
1898 || high_word == 0x3408 /* ori $t0,$zero,n */
1899 ))
1900 {
95ac2dcf 1901 load_immediate_bytes += MIPS_INSN32_SIZE; /* FIXME! */
29639122
JB
1902 }
1903 else
1904 {
1905 /* This instruction is not an instruction typically found
1906 in a prologue, so we must have reached the end of the
1907 prologue. */
1908 /* FIXME: brobecker/2004-10-10: Can't we just break out of this
1909 loop now? Why would we need to continue scanning the function
1910 instructions? */
1911 if (end_prologue_addr == 0)
1912 end_prologue_addr = cur_pc;
1913 }
a4b8ebc8 1914 }
c906108c 1915
29639122
JB
1916 if (this_cache != NULL)
1917 {
1918 this_cache->base =
1919 (frame_unwind_register_signed (next_frame, NUM_REGS + frame_reg)
1920 + frame_offset);
1921 /* FIXME: brobecker/2004-09-15: We should be able to get rid of
1922 this assignment below, eventually. But it's still needed
1923 for now. */
1924 this_cache->saved_regs[NUM_REGS + mips_regnum (current_gdbarch)->pc]
4c7d22cb 1925 = this_cache->saved_regs[NUM_REGS + MIPS_RA_REGNUM];
29639122 1926 }
c906108c 1927
29639122
JB
1928 /* If we didn't reach the end of the prologue when scanning the function
1929 instructions, then set end_prologue_addr to the address of the
1930 instruction immediately after the last one we scanned. */
1931 /* brobecker/2004-10-10: I don't think this would ever happen, but
1932 we may as well be careful and do our best if we have a null
1933 end_prologue_addr. */
1934 if (end_prologue_addr == 0)
1935 end_prologue_addr = cur_pc;
1936
1937 /* In a frameless function, we might have incorrectly
1938 skipped some load immediate instructions. Undo the skipping
1939 if the load immediate was not followed by a stack adjustment. */
1940 if (load_immediate_bytes && !seen_sp_adjust)
1941 end_prologue_addr -= load_immediate_bytes;
c906108c 1942
29639122 1943 return end_prologue_addr;
c906108c
SS
1944}
1945
29639122
JB
1946/* Heuristic unwinder for procedures using 32-bit instructions (covers
1947 both 32-bit and 64-bit MIPS ISAs). Procedures using 16-bit
1948 instructions (a.k.a. MIPS16) are handled by the mips_insn16
1949 unwinder. */
c906108c 1950
29639122
JB
1951static struct mips_frame_cache *
1952mips_insn32_frame_cache (struct frame_info *next_frame, void **this_cache)
c906108c 1953{
29639122 1954 struct mips_frame_cache *cache;
c906108c 1955
29639122
JB
1956 if ((*this_cache) != NULL)
1957 return (*this_cache);
c5aa993b 1958
29639122
JB
1959 cache = FRAME_OBSTACK_ZALLOC (struct mips_frame_cache);
1960 (*this_cache) = cache;
1961 cache->saved_regs = trad_frame_alloc_saved_regs (next_frame);
c5aa993b 1962
29639122
JB
1963 /* Analyze the function prologue. */
1964 {
6de5b849
JB
1965 const CORE_ADDR pc =
1966 frame_unwind_address_in_block (next_frame, NORMAL_FRAME);
29639122 1967 CORE_ADDR start_addr;
c906108c 1968
29639122
JB
1969 find_pc_partial_function (pc, NULL, &start_addr, NULL);
1970 if (start_addr == 0)
1971 start_addr = heuristic_proc_start (pc);
1972 /* We can't analyze the prologue if we couldn't find the begining
1973 of the function. */
1974 if (start_addr == 0)
1975 return cache;
c5aa993b 1976
29639122
JB
1977 mips32_scan_prologue (start_addr, pc, next_frame, *this_cache);
1978 }
1979
1980 /* SP_REGNUM, contains the value and not the address. */
1981 trad_frame_set_value (cache->saved_regs, NUM_REGS + MIPS_SP_REGNUM, cache->base);
c5aa993b 1982
29639122 1983 return (*this_cache);
c906108c
SS
1984}
1985
29639122
JB
1986static void
1987mips_insn32_frame_this_id (struct frame_info *next_frame, void **this_cache,
1988 struct frame_id *this_id)
c906108c 1989{
29639122
JB
1990 struct mips_frame_cache *info = mips_insn32_frame_cache (next_frame,
1991 this_cache);
93d42b30
DJ
1992 (*this_id) = frame_id_build (info->base,
1993 frame_func_unwind (next_frame, NORMAL_FRAME));
29639122 1994}
c906108c 1995
29639122
JB
1996static void
1997mips_insn32_frame_prev_register (struct frame_info *next_frame,
1998 void **this_cache,
1999 int regnum, int *optimizedp,
2000 enum lval_type *lvalp, CORE_ADDR *addrp,
a8a0fc4c 2001 int *realnump, gdb_byte *valuep)
29639122
JB
2002{
2003 struct mips_frame_cache *info = mips_insn32_frame_cache (next_frame,
2004 this_cache);
2005 trad_frame_get_prev_register (next_frame, info->saved_regs, regnum,
2006 optimizedp, lvalp, addrp, realnump, valuep);
c906108c
SS
2007}
2008
29639122
JB
2009static const struct frame_unwind mips_insn32_frame_unwind =
2010{
2011 NORMAL_FRAME,
2012 mips_insn32_frame_this_id,
2013 mips_insn32_frame_prev_register
2014};
c906108c 2015
29639122
JB
2016static const struct frame_unwind *
2017mips_insn32_frame_sniffer (struct frame_info *next_frame)
2018{
6de5b849 2019 CORE_ADDR pc = frame_pc_unwind (next_frame);
0fe7e7c8 2020 if (! mips_pc_is_mips16 (pc))
29639122
JB
2021 return &mips_insn32_frame_unwind;
2022 return NULL;
2023}
c906108c 2024
1c645fec 2025static CORE_ADDR
29639122
JB
2026mips_insn32_frame_base_address (struct frame_info *next_frame,
2027 void **this_cache)
c906108c 2028{
29639122
JB
2029 struct mips_frame_cache *info = mips_insn32_frame_cache (next_frame,
2030 this_cache);
2031 return info->base;
2032}
c906108c 2033
29639122
JB
2034static const struct frame_base mips_insn32_frame_base =
2035{
2036 &mips_insn32_frame_unwind,
2037 mips_insn32_frame_base_address,
2038 mips_insn32_frame_base_address,
2039 mips_insn32_frame_base_address
2040};
1c645fec 2041
29639122
JB
2042static const struct frame_base *
2043mips_insn32_frame_base_sniffer (struct frame_info *next_frame)
2044{
2045 if (mips_insn32_frame_sniffer (next_frame) != NULL)
2046 return &mips_insn32_frame_base;
a65bbe44 2047 else
29639122
JB
2048 return NULL;
2049}
a65bbe44 2050
29639122
JB
2051static struct trad_frame_cache *
2052mips_stub_frame_cache (struct frame_info *next_frame, void **this_cache)
2053{
2054 CORE_ADDR pc;
2055 CORE_ADDR start_addr;
2056 CORE_ADDR stack_addr;
2057 struct trad_frame_cache *this_trad_cache;
c906108c 2058
29639122
JB
2059 if ((*this_cache) != NULL)
2060 return (*this_cache);
2061 this_trad_cache = trad_frame_cache_zalloc (next_frame);
2062 (*this_cache) = this_trad_cache;
1c645fec 2063
29639122 2064 /* The return address is in the link register. */
4c7d22cb 2065 trad_frame_set_reg_realreg (this_trad_cache, PC_REGNUM, MIPS_RA_REGNUM);
1c645fec 2066
29639122
JB
2067 /* Frame ID, since it's a frameless / stackless function, no stack
2068 space is allocated and SP on entry is the current SP. */
2069 pc = frame_pc_unwind (next_frame);
2070 find_pc_partial_function (pc, NULL, &start_addr, NULL);
4c7d22cb 2071 stack_addr = frame_unwind_register_signed (next_frame, MIPS_SP_REGNUM);
29639122 2072 trad_frame_set_id (this_trad_cache, frame_id_build (start_addr, stack_addr));
1c645fec 2073
29639122
JB
2074 /* Assume that the frame's base is the same as the
2075 stack-pointer. */
2076 trad_frame_set_this_base (this_trad_cache, stack_addr);
c906108c 2077
29639122
JB
2078 return this_trad_cache;
2079}
c906108c 2080
29639122
JB
2081static void
2082mips_stub_frame_this_id (struct frame_info *next_frame, void **this_cache,
2083 struct frame_id *this_id)
2084{
2085 struct trad_frame_cache *this_trad_cache
2086 = mips_stub_frame_cache (next_frame, this_cache);
2087 trad_frame_get_id (this_trad_cache, this_id);
2088}
c906108c 2089
29639122
JB
2090static void
2091mips_stub_frame_prev_register (struct frame_info *next_frame,
2092 void **this_cache,
2093 int regnum, int *optimizedp,
2094 enum lval_type *lvalp, CORE_ADDR *addrp,
a8a0fc4c 2095 int *realnump, gdb_byte *valuep)
29639122
JB
2096{
2097 struct trad_frame_cache *this_trad_cache
2098 = mips_stub_frame_cache (next_frame, this_cache);
2099 trad_frame_get_register (this_trad_cache, next_frame, regnum, optimizedp,
2100 lvalp, addrp, realnump, valuep);
2101}
c906108c 2102
29639122
JB
2103static const struct frame_unwind mips_stub_frame_unwind =
2104{
2105 NORMAL_FRAME,
2106 mips_stub_frame_this_id,
2107 mips_stub_frame_prev_register
2108};
c906108c 2109
29639122
JB
2110static const struct frame_unwind *
2111mips_stub_frame_sniffer (struct frame_info *next_frame)
2112{
979b38e0 2113 struct obj_section *s;
93d42b30 2114 CORE_ADDR pc = frame_unwind_address_in_block (next_frame, NORMAL_FRAME);
979b38e0 2115
29639122
JB
2116 if (in_plt_section (pc, NULL))
2117 return &mips_stub_frame_unwind;
979b38e0
DJ
2118
2119 /* Binutils for MIPS puts lazy resolution stubs into .MIPS.stubs. */
2120 s = find_pc_section (pc);
2121
2122 if (s != NULL
2123 && strcmp (bfd_get_section_name (s->objfile->obfd, s->the_bfd_section),
2124 ".MIPS.stubs") == 0)
2125 return &mips_stub_frame_unwind;
2126
2127 return NULL;
29639122 2128}
c906108c 2129
29639122
JB
2130static CORE_ADDR
2131mips_stub_frame_base_address (struct frame_info *next_frame,
2132 void **this_cache)
2133{
2134 struct trad_frame_cache *this_trad_cache
2135 = mips_stub_frame_cache (next_frame, this_cache);
2136 return trad_frame_get_this_base (this_trad_cache);
2137}
0fce0821 2138
29639122
JB
2139static const struct frame_base mips_stub_frame_base =
2140{
2141 &mips_stub_frame_unwind,
2142 mips_stub_frame_base_address,
2143 mips_stub_frame_base_address,
2144 mips_stub_frame_base_address
2145};
2146
2147static const struct frame_base *
2148mips_stub_frame_base_sniffer (struct frame_info *next_frame)
2149{
2150 if (mips_stub_frame_sniffer (next_frame) != NULL)
2151 return &mips_stub_frame_base;
2152 else
2153 return NULL;
2154}
2155
2156static CORE_ADDR
2157read_next_frame_reg (struct frame_info *fi, int regno)
2158{
2159 /* Always a pseudo. */
2160 gdb_assert (regno >= NUM_REGS);
2161 if (fi == NULL)
0fce0821 2162 {
29639122
JB
2163 LONGEST val;
2164 regcache_cooked_read_signed (current_regcache, regno, &val);
2165 return val;
0fce0821 2166 }
29639122
JB
2167 else
2168 return frame_unwind_register_signed (fi, regno);
1c645fec 2169
c906108c
SS
2170}
2171
29639122 2172/* mips_addr_bits_remove - remove useless address bits */
65596487 2173
29639122
JB
2174static CORE_ADDR
2175mips_addr_bits_remove (CORE_ADDR addr)
65596487 2176{
29639122
JB
2177 struct gdbarch_tdep *tdep = gdbarch_tdep (current_gdbarch);
2178 if (mips_mask_address_p (tdep) && (((ULONGEST) addr) >> 32 == 0xffffffffUL))
2179 /* This hack is a work-around for existing boards using PMON, the
2180 simulator, and any other 64-bit targets that doesn't have true
2181 64-bit addressing. On these targets, the upper 32 bits of
2182 addresses are ignored by the hardware. Thus, the PC or SP are
2183 likely to have been sign extended to all 1s by instruction
2184 sequences that load 32-bit addresses. For example, a typical
2185 piece of code that loads an address is this:
65596487 2186
29639122
JB
2187 lui $r2, <upper 16 bits>
2188 ori $r2, <lower 16 bits>
65596487 2189
29639122
JB
2190 But the lui sign-extends the value such that the upper 32 bits
2191 may be all 1s. The workaround is simply to mask off these
2192 bits. In the future, gcc may be changed to support true 64-bit
2193 addressing, and this masking will have to be disabled. */
2194 return addr &= 0xffffffffUL;
2195 else
2196 return addr;
65596487
JB
2197}
2198
29639122
JB
2199/* mips_software_single_step() is called just before we want to resume
2200 the inferior, if we want to single-step it but there is no hardware
2201 or kernel single-step support (MIPS on GNU/Linux for example). We find
e0cd558a 2202 the target of the coming instruction and breakpoint it. */
29639122 2203
e6590a1b 2204int
e0cd558a 2205mips_software_single_step (struct regcache *regcache)
c906108c 2206{
8181d85f 2207 CORE_ADDR pc, next_pc;
65596487 2208
e0cd558a
UW
2209 pc = read_register (mips_regnum (current_gdbarch)->pc);
2210 next_pc = mips_next_pc (pc);
e6590a1b 2211
e0cd558a 2212 insert_single_step_breakpoint (next_pc);
e6590a1b 2213 return 1;
29639122 2214}
a65bbe44 2215
29639122
JB
2216/* Test whether the PC points to the return instruction at the
2217 end of a function. */
65596487 2218
29639122
JB
2219static int
2220mips_about_to_return (CORE_ADDR pc)
2221{
0fe7e7c8 2222 if (mips_pc_is_mips16 (pc))
29639122
JB
2223 /* This mips16 case isn't necessarily reliable. Sometimes the compiler
2224 generates a "jr $ra"; other times it generates code to load
2225 the return address from the stack to an accessible register (such
2226 as $a3), then a "jr" using that register. This second case
2227 is almost impossible to distinguish from an indirect jump
2228 used for switch statements, so we don't even try. */
2229 return mips_fetch_instruction (pc) == 0xe820; /* jr $ra */
2230 else
2231 return mips_fetch_instruction (pc) == 0x3e00008; /* jr $ra */
2232}
c906108c 2233
c906108c 2234
29639122
JB
2235/* This fencepost looks highly suspicious to me. Removing it also
2236 seems suspicious as it could affect remote debugging across serial
2237 lines. */
c906108c 2238
29639122
JB
2239static CORE_ADDR
2240heuristic_proc_start (CORE_ADDR pc)
2241{
2242 CORE_ADDR start_pc;
2243 CORE_ADDR fence;
2244 int instlen;
2245 int seen_adjsp = 0;
65596487 2246
29639122
JB
2247 pc = ADDR_BITS_REMOVE (pc);
2248 start_pc = pc;
2249 fence = start_pc - heuristic_fence_post;
2250 if (start_pc == 0)
2251 return 0;
65596487 2252
29639122
JB
2253 if (heuristic_fence_post == UINT_MAX || fence < VM_MIN_ADDRESS)
2254 fence = VM_MIN_ADDRESS;
65596487 2255
95ac2dcf 2256 instlen = mips_pc_is_mips16 (pc) ? MIPS_INSN16_SIZE : MIPS_INSN32_SIZE;
98b4dd94 2257
29639122
JB
2258 /* search back for previous return */
2259 for (start_pc -= instlen;; start_pc -= instlen)
2260 if (start_pc < fence)
2261 {
2262 /* It's not clear to me why we reach this point when
2263 stop_soon, but with this test, at least we
2264 don't print out warnings for every child forked (eg, on
2265 decstation). 22apr93 rich@cygnus.com. */
2266 if (stop_soon == NO_STOP_QUIETLY)
2267 {
2268 static int blurb_printed = 0;
98b4dd94 2269
8a3fe4f8 2270 warning (_("GDB can't find the start of the function at 0x%s."),
29639122
JB
2271 paddr_nz (pc));
2272
2273 if (!blurb_printed)
2274 {
2275 /* This actually happens frequently in embedded
2276 development, when you first connect to a board
2277 and your stack pointer and pc are nowhere in
2278 particular. This message needs to give people
2279 in that situation enough information to
2280 determine that it's no big deal. */
2281 printf_filtered ("\n\
2282 GDB is unable to find the start of the function at 0x%s\n\
2283and thus can't determine the size of that function's stack frame.\n\
2284This means that GDB may be unable to access that stack frame, or\n\
2285the frames below it.\n\
2286 This problem is most likely caused by an invalid program counter or\n\
2287stack pointer.\n\
2288 However, if you think GDB should simply search farther back\n\
2289from 0x%s for code which looks like the beginning of a\n\
2290function, you can increase the range of the search using the `set\n\
2291heuristic-fence-post' command.\n", paddr_nz (pc), paddr_nz (pc));
2292 blurb_printed = 1;
2293 }
2294 }
2295
2296 return 0;
2297 }
0fe7e7c8 2298 else if (mips_pc_is_mips16 (start_pc))
29639122
JB
2299 {
2300 unsigned short inst;
2301
2302 /* On MIPS16, any one of the following is likely to be the
2303 start of a function:
2304 entry
2305 addiu sp,-n
2306 daddiu sp,-n
2307 extend -n followed by 'addiu sp,+n' or 'daddiu sp,+n' */
2308 inst = mips_fetch_instruction (start_pc);
2309 if (((inst & 0xf81f) == 0xe809 && (inst & 0x700) != 0x700) /* entry */
2310 || (inst & 0xff80) == 0x6380 /* addiu sp,-n */
2311 || (inst & 0xff80) == 0xfb80 /* daddiu sp,-n */
2312 || ((inst & 0xf810) == 0xf010 && seen_adjsp)) /* extend -n */
2313 break;
2314 else if ((inst & 0xff00) == 0x6300 /* addiu sp */
2315 || (inst & 0xff00) == 0xfb00) /* daddiu sp */
2316 seen_adjsp = 1;
2317 else
2318 seen_adjsp = 0;
2319 }
2320 else if (mips_about_to_return (start_pc))
2321 {
4c7d22cb 2322 /* Skip return and its delay slot. */
95ac2dcf 2323 start_pc += 2 * MIPS_INSN32_SIZE;
29639122
JB
2324 break;
2325 }
2326
2327 return start_pc;
c906108c
SS
2328}
2329
6c0d6680
DJ
2330struct mips_objfile_private
2331{
2332 bfd_size_type size;
2333 char *contents;
2334};
2335
f09ded24
AC
2336/* According to the current ABI, should the type be passed in a
2337 floating-point register (assuming that there is space)? When there
a1f5b845 2338 is no FPU, FP are not even considered as possible candidates for
f09ded24
AC
2339 FP registers and, consequently this returns false - forces FP
2340 arguments into integer registers. */
2341
2342static int
2343fp_register_arg_p (enum type_code typecode, struct type *arg_type)
2344{
2345 return ((typecode == TYPE_CODE_FLT
2346 || (MIPS_EABI
6d82d43b
AC
2347 && (typecode == TYPE_CODE_STRUCT
2348 || typecode == TYPE_CODE_UNION)
f09ded24 2349 && TYPE_NFIELDS (arg_type) == 1
b2d6f210
MS
2350 && TYPE_CODE (check_typedef (TYPE_FIELD_TYPE (arg_type, 0)))
2351 == TYPE_CODE_FLT))
c86b5b38 2352 && MIPS_FPU_TYPE != MIPS_FPU_NONE);
f09ded24
AC
2353}
2354
49e790b0
DJ
2355/* On o32, argument passing in GPRs depends on the alignment of the type being
2356 passed. Return 1 if this type must be aligned to a doubleword boundary. */
2357
2358static int
2359mips_type_needs_double_align (struct type *type)
2360{
2361 enum type_code typecode = TYPE_CODE (type);
361d1df0 2362
49e790b0
DJ
2363 if (typecode == TYPE_CODE_FLT && TYPE_LENGTH (type) == 8)
2364 return 1;
2365 else if (typecode == TYPE_CODE_STRUCT)
2366 {
2367 if (TYPE_NFIELDS (type) < 1)
2368 return 0;
2369 return mips_type_needs_double_align (TYPE_FIELD_TYPE (type, 0));
2370 }
2371 else if (typecode == TYPE_CODE_UNION)
2372 {
361d1df0 2373 int i, n;
49e790b0
DJ
2374
2375 n = TYPE_NFIELDS (type);
2376 for (i = 0; i < n; i++)
2377 if (mips_type_needs_double_align (TYPE_FIELD_TYPE (type, i)))
2378 return 1;
2379 return 0;
2380 }
2381 return 0;
2382}
2383
dc604539
AC
2384/* Adjust the address downward (direction of stack growth) so that it
2385 is correctly aligned for a new stack frame. */
2386static CORE_ADDR
2387mips_frame_align (struct gdbarch *gdbarch, CORE_ADDR addr)
2388{
5b03f266 2389 return align_down (addr, 16);
dc604539
AC
2390}
2391
f7ab6ec6 2392static CORE_ADDR
7d9b040b 2393mips_eabi_push_dummy_call (struct gdbarch *gdbarch, struct value *function,
6d82d43b
AC
2394 struct regcache *regcache, CORE_ADDR bp_addr,
2395 int nargs, struct value **args, CORE_ADDR sp,
2396 int struct_return, CORE_ADDR struct_addr)
c906108c
SS
2397{
2398 int argreg;
2399 int float_argreg;
2400 int argnum;
2401 int len = 0;
2402 int stack_offset = 0;
480d3dd2 2403 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
7d9b040b 2404 CORE_ADDR func_addr = find_function_addr (function, NULL);
c906108c 2405
25ab4790
AC
2406 /* For shared libraries, "t9" needs to point at the function
2407 address. */
4c7d22cb 2408 regcache_cooked_write_signed (regcache, MIPS_T9_REGNUM, func_addr);
25ab4790
AC
2409
2410 /* Set the return address register to point to the entry point of
2411 the program, where a breakpoint lies in wait. */
4c7d22cb 2412 regcache_cooked_write_signed (regcache, MIPS_RA_REGNUM, bp_addr);
25ab4790 2413
c906108c 2414 /* First ensure that the stack and structure return address (if any)
cb3d25d1
MS
2415 are properly aligned. The stack has to be at least 64-bit
2416 aligned even on 32-bit machines, because doubles must be 64-bit
2417 aligned. For n32 and n64, stack frames need to be 128-bit
2418 aligned, so we round to this widest known alignment. */
2419
5b03f266
AC
2420 sp = align_down (sp, 16);
2421 struct_addr = align_down (struct_addr, 16);
c5aa993b 2422
46e0f506 2423 /* Now make space on the stack for the args. We allocate more
c906108c 2424 than necessary for EABI, because the first few arguments are
46e0f506 2425 passed in registers, but that's OK. */
c906108c 2426 for (argnum = 0; argnum < nargs; argnum++)
4991999e 2427 len += align_up (TYPE_LENGTH (value_type (args[argnum])),
13326b4e 2428 mips_stack_argsize (gdbarch));
5b03f266 2429 sp -= align_up (len, 16);
c906108c 2430
9ace0497 2431 if (mips_debug)
6d82d43b 2432 fprintf_unfiltered (gdb_stdlog,
5b03f266
AC
2433 "mips_eabi_push_dummy_call: sp=0x%s allocated %ld\n",
2434 paddr_nz (sp), (long) align_up (len, 16));
9ace0497 2435
c906108c 2436 /* Initialize the integer and float register pointers. */
4c7d22cb 2437 argreg = MIPS_A0_REGNUM;
56cea623 2438 float_argreg = mips_fpa0_regnum (current_gdbarch);
c906108c 2439
46e0f506 2440 /* The struct_return pointer occupies the first parameter-passing reg. */
c906108c 2441 if (struct_return)
9ace0497
AC
2442 {
2443 if (mips_debug)
2444 fprintf_unfiltered (gdb_stdlog,
25ab4790 2445 "mips_eabi_push_dummy_call: struct_return reg=%d 0x%s\n",
cb3d25d1 2446 argreg, paddr_nz (struct_addr));
9ace0497
AC
2447 write_register (argreg++, struct_addr);
2448 }
c906108c
SS
2449
2450 /* Now load as many as possible of the first arguments into
2451 registers, and push the rest onto the stack. Loop thru args
2452 from first to last. */
2453 for (argnum = 0; argnum < nargs; argnum++)
2454 {
47a35522
MK
2455 const gdb_byte *val;
2456 gdb_byte valbuf[MAX_REGISTER_SIZE];
ea7c478f 2457 struct value *arg = args[argnum];
4991999e 2458 struct type *arg_type = check_typedef (value_type (arg));
c906108c
SS
2459 int len = TYPE_LENGTH (arg_type);
2460 enum type_code typecode = TYPE_CODE (arg_type);
2461
9ace0497
AC
2462 if (mips_debug)
2463 fprintf_unfiltered (gdb_stdlog,
25ab4790 2464 "mips_eabi_push_dummy_call: %d len=%d type=%d",
acdb74a0 2465 argnum + 1, len, (int) typecode);
9ace0497 2466
c906108c 2467 /* The EABI passes structures that do not fit in a register by
46e0f506 2468 reference. */
13326b4e 2469 if (len > mips_abi_regsize (gdbarch)
9ace0497 2470 && (typecode == TYPE_CODE_STRUCT || typecode == TYPE_CODE_UNION))
c906108c 2471 {
13326b4e 2472 store_unsigned_integer (valbuf, mips_abi_regsize (gdbarch),
480d3dd2 2473 VALUE_ADDRESS (arg));
c906108c 2474 typecode = TYPE_CODE_PTR;
13326b4e 2475 len = mips_abi_regsize (gdbarch);
c906108c 2476 val = valbuf;
9ace0497
AC
2477 if (mips_debug)
2478 fprintf_unfiltered (gdb_stdlog, " push");
c906108c
SS
2479 }
2480 else
47a35522 2481 val = value_contents (arg);
c906108c
SS
2482
2483 /* 32-bit ABIs always start floating point arguments in an
acdb74a0
AC
2484 even-numbered floating point register. Round the FP register
2485 up before the check to see if there are any FP registers
46e0f506
MS
2486 left. Non MIPS_EABI targets also pass the FP in the integer
2487 registers so also round up normal registers. */
ceae6e75
AC
2488 if (mips_abi_regsize (gdbarch) < 8
2489 && fp_register_arg_p (typecode, arg_type))
acdb74a0
AC
2490 {
2491 if ((float_argreg & 1))
2492 float_argreg++;
2493 }
c906108c
SS
2494
2495 /* Floating point arguments passed in registers have to be
2496 treated specially. On 32-bit architectures, doubles
c5aa993b
JM
2497 are passed in register pairs; the even register gets
2498 the low word, and the odd register gets the high word.
2499 On non-EABI processors, the first two floating point arguments are
2500 also copied to general registers, because MIPS16 functions
2501 don't use float registers for arguments. This duplication of
2502 arguments in general registers can't hurt non-MIPS16 functions
2503 because those registers are normally skipped. */
1012bd0e
EZ
2504 /* MIPS_EABI squeezes a struct that contains a single floating
2505 point value into an FP register instead of pushing it onto the
46e0f506 2506 stack. */
f09ded24
AC
2507 if (fp_register_arg_p (typecode, arg_type)
2508 && float_argreg <= MIPS_LAST_FP_ARG_REGNUM)
c906108c 2509 {
8b07f6d8 2510 if (register_size (gdbarch, float_argreg) < 8 && len == 8)
c906108c 2511 {
d7449b42 2512 int low_offset = TARGET_BYTE_ORDER == BFD_ENDIAN_BIG ? 4 : 0;
c906108c
SS
2513 unsigned long regval;
2514
2515 /* Write the low word of the double to the even register(s). */
c5aa993b 2516 regval = extract_unsigned_integer (val + low_offset, 4);
9ace0497 2517 if (mips_debug)
acdb74a0 2518 fprintf_unfiltered (gdb_stdlog, " - fpreg=%d val=%s",
9ace0497 2519 float_argreg, phex (regval, 4));
c906108c 2520 write_register (float_argreg++, regval);
c906108c
SS
2521
2522 /* Write the high word of the double to the odd register(s). */
c5aa993b 2523 regval = extract_unsigned_integer (val + 4 - low_offset, 4);
9ace0497 2524 if (mips_debug)
acdb74a0 2525 fprintf_unfiltered (gdb_stdlog, " - fpreg=%d val=%s",
9ace0497 2526 float_argreg, phex (regval, 4));
c906108c 2527 write_register (float_argreg++, regval);
c906108c
SS
2528 }
2529 else
2530 {
2531 /* This is a floating point value that fits entirely
2532 in a single register. */
53a5351d 2533 /* On 32 bit ABI's the float_argreg is further adjusted
6d82d43b 2534 above to ensure that it is even register aligned. */
9ace0497
AC
2535 LONGEST regval = extract_unsigned_integer (val, len);
2536 if (mips_debug)
acdb74a0 2537 fprintf_unfiltered (gdb_stdlog, " - fpreg=%d val=%s",
9ace0497 2538 float_argreg, phex (regval, len));
c906108c 2539 write_register (float_argreg++, regval);
c906108c
SS
2540 }
2541 }
2542 else
2543 {
2544 /* Copy the argument to general registers or the stack in
2545 register-sized pieces. Large arguments are split between
2546 registers and stack. */
4246e332 2547 /* Note: structs whose size is not a multiple of
d5ac5a39
AC
2548 mips_abi_regsize() are treated specially: Irix cc passes
2549 them in registers where gcc sometimes puts them on the
2550 stack. For maximum compatibility, we will put them in
2551 both places. */
13326b4e
AC
2552 int odd_sized_struct = ((len > mips_abi_regsize (gdbarch))
2553 && (len % mips_abi_regsize (gdbarch) != 0));
46e0f506 2554
f09ded24 2555 /* Note: Floating-point values that didn't fit into an FP
6d82d43b 2556 register are only written to memory. */
c906108c
SS
2557 while (len > 0)
2558 {
ebafbe83 2559 /* Remember if the argument was written to the stack. */
566f0f7a 2560 int stack_used_p = 0;
13326b4e
AC
2561 int partial_len = (len < mips_abi_regsize (gdbarch)
2562 ? len : mips_abi_regsize (gdbarch));
c906108c 2563
acdb74a0
AC
2564 if (mips_debug)
2565 fprintf_unfiltered (gdb_stdlog, " -- partial=%d",
2566 partial_len);
2567
566f0f7a 2568 /* Write this portion of the argument to the stack. */
f09ded24
AC
2569 if (argreg > MIPS_LAST_ARG_REGNUM
2570 || odd_sized_struct
2571 || fp_register_arg_p (typecode, arg_type))
c906108c 2572 {
c906108c
SS
2573 /* Should shorter than int integer values be
2574 promoted to int before being stored? */
c906108c 2575 int longword_offset = 0;
9ace0497 2576 CORE_ADDR addr;
566f0f7a 2577 stack_used_p = 1;
d7449b42 2578 if (TARGET_BYTE_ORDER == BFD_ENDIAN_BIG)
7a292a7a 2579 {
13326b4e 2580 if (mips_stack_argsize (gdbarch) == 8
480d3dd2
AC
2581 && (typecode == TYPE_CODE_INT
2582 || typecode == TYPE_CODE_PTR
6d82d43b 2583 || typecode == TYPE_CODE_FLT) && len <= 4)
13326b4e 2584 longword_offset = mips_stack_argsize (gdbarch) - len;
480d3dd2
AC
2585 else if ((typecode == TYPE_CODE_STRUCT
2586 || typecode == TYPE_CODE_UNION)
2587 && (TYPE_LENGTH (arg_type)
13326b4e
AC
2588 < mips_stack_argsize (gdbarch)))
2589 longword_offset = mips_stack_argsize (gdbarch) - len;
7a292a7a 2590 }
c5aa993b 2591
9ace0497
AC
2592 if (mips_debug)
2593 {
cb3d25d1
MS
2594 fprintf_unfiltered (gdb_stdlog, " - stack_offset=0x%s",
2595 paddr_nz (stack_offset));
2596 fprintf_unfiltered (gdb_stdlog, " longword_offset=0x%s",
2597 paddr_nz (longword_offset));
9ace0497 2598 }
361d1df0 2599
9ace0497
AC
2600 addr = sp + stack_offset + longword_offset;
2601
2602 if (mips_debug)
2603 {
2604 int i;
6d82d43b 2605 fprintf_unfiltered (gdb_stdlog, " @0x%s ",
cb3d25d1 2606 paddr_nz (addr));
9ace0497
AC
2607 for (i = 0; i < partial_len; i++)
2608 {
6d82d43b 2609 fprintf_unfiltered (gdb_stdlog, "%02x",
cb3d25d1 2610 val[i] & 0xff);
9ace0497
AC
2611 }
2612 }
2613 write_memory (addr, val, partial_len);
c906108c
SS
2614 }
2615
f09ded24
AC
2616 /* Note!!! This is NOT an else clause. Odd sized
2617 structs may go thru BOTH paths. Floating point
46e0f506 2618 arguments will not. */
566f0f7a 2619 /* Write this portion of the argument to a general
6d82d43b 2620 purpose register. */
f09ded24
AC
2621 if (argreg <= MIPS_LAST_ARG_REGNUM
2622 && !fp_register_arg_p (typecode, arg_type))
c906108c 2623 {
6d82d43b
AC
2624 LONGEST regval =
2625 extract_unsigned_integer (val, partial_len);
c906108c 2626
9ace0497 2627 if (mips_debug)
acdb74a0 2628 fprintf_filtered (gdb_stdlog, " - reg=%d val=%s",
9ace0497 2629 argreg,
6d82d43b 2630 phex (regval,
13326b4e 2631 mips_abi_regsize (gdbarch)));
c906108c
SS
2632 write_register (argreg, regval);
2633 argreg++;
c906108c 2634 }
c5aa993b 2635
c906108c
SS
2636 len -= partial_len;
2637 val += partial_len;
2638
566f0f7a 2639 /* Compute the the offset into the stack at which we
6d82d43b 2640 will copy the next parameter.
566f0f7a 2641
566f0f7a 2642 In the new EABI (and the NABI32), the stack_offset
46e0f506 2643 only needs to be adjusted when it has been used. */
c906108c 2644
46e0f506 2645 if (stack_used_p)
480d3dd2 2646 stack_offset += align_up (partial_len,
13326b4e 2647 mips_stack_argsize (gdbarch));
c906108c
SS
2648 }
2649 }
9ace0497
AC
2650 if (mips_debug)
2651 fprintf_unfiltered (gdb_stdlog, "\n");
c906108c
SS
2652 }
2653
f10683bb 2654 regcache_cooked_write_signed (regcache, MIPS_SP_REGNUM, sp);
310e9b6a 2655
0f71a2f6
JM
2656 /* Return adjusted stack pointer. */
2657 return sp;
2658}
2659
a1f5b845 2660/* Determine the return value convention being used. */
6d82d43b 2661
9c8fdbfa
AC
2662static enum return_value_convention
2663mips_eabi_return_value (struct gdbarch *gdbarch,
2664 struct type *type, struct regcache *regcache,
47a35522 2665 gdb_byte *readbuf, const gdb_byte *writebuf)
6d82d43b 2666{
9c8fdbfa
AC
2667 if (TYPE_LENGTH (type) > 2 * mips_abi_regsize (gdbarch))
2668 return RETURN_VALUE_STRUCT_CONVENTION;
2669 if (readbuf)
2670 memset (readbuf, 0, TYPE_LENGTH (type));
2671 return RETURN_VALUE_REGISTER_CONVENTION;
6d82d43b
AC
2672}
2673
6d82d43b
AC
2674
2675/* N32/N64 ABI stuff. */
ebafbe83 2676
f7ab6ec6 2677static CORE_ADDR
7d9b040b 2678mips_n32n64_push_dummy_call (struct gdbarch *gdbarch, struct value *function,
6d82d43b
AC
2679 struct regcache *regcache, CORE_ADDR bp_addr,
2680 int nargs, struct value **args, CORE_ADDR sp,
2681 int struct_return, CORE_ADDR struct_addr)
cb3d25d1
MS
2682{
2683 int argreg;
2684 int float_argreg;
2685 int argnum;
2686 int len = 0;
2687 int stack_offset = 0;
480d3dd2 2688 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
7d9b040b 2689 CORE_ADDR func_addr = find_function_addr (function, NULL);
cb3d25d1 2690
25ab4790
AC
2691 /* For shared libraries, "t9" needs to point at the function
2692 address. */
4c7d22cb 2693 regcache_cooked_write_signed (regcache, MIPS_T9_REGNUM, func_addr);
25ab4790
AC
2694
2695 /* Set the return address register to point to the entry point of
2696 the program, where a breakpoint lies in wait. */
4c7d22cb 2697 regcache_cooked_write_signed (regcache, MIPS_RA_REGNUM, bp_addr);
25ab4790 2698
cb3d25d1
MS
2699 /* First ensure that the stack and structure return address (if any)
2700 are properly aligned. The stack has to be at least 64-bit
2701 aligned even on 32-bit machines, because doubles must be 64-bit
2702 aligned. For n32 and n64, stack frames need to be 128-bit
2703 aligned, so we round to this widest known alignment. */
2704
5b03f266
AC
2705 sp = align_down (sp, 16);
2706 struct_addr = align_down (struct_addr, 16);
cb3d25d1
MS
2707
2708 /* Now make space on the stack for the args. */
2709 for (argnum = 0; argnum < nargs; argnum++)
4991999e 2710 len += align_up (TYPE_LENGTH (value_type (args[argnum])),
13326b4e 2711 mips_stack_argsize (gdbarch));
5b03f266 2712 sp -= align_up (len, 16);
cb3d25d1
MS
2713
2714 if (mips_debug)
6d82d43b 2715 fprintf_unfiltered (gdb_stdlog,
5b03f266
AC
2716 "mips_n32n64_push_dummy_call: sp=0x%s allocated %ld\n",
2717 paddr_nz (sp), (long) align_up (len, 16));
cb3d25d1
MS
2718
2719 /* Initialize the integer and float register pointers. */
4c7d22cb 2720 argreg = MIPS_A0_REGNUM;
56cea623 2721 float_argreg = mips_fpa0_regnum (current_gdbarch);
cb3d25d1 2722
46e0f506 2723 /* The struct_return pointer occupies the first parameter-passing reg. */
cb3d25d1
MS
2724 if (struct_return)
2725 {
2726 if (mips_debug)
2727 fprintf_unfiltered (gdb_stdlog,
25ab4790 2728 "mips_n32n64_push_dummy_call: struct_return reg=%d 0x%s\n",
cb3d25d1
MS
2729 argreg, paddr_nz (struct_addr));
2730 write_register (argreg++, struct_addr);
2731 }
2732
2733 /* Now load as many as possible of the first arguments into
2734 registers, and push the rest onto the stack. Loop thru args
2735 from first to last. */
2736 for (argnum = 0; argnum < nargs; argnum++)
2737 {
47a35522 2738 const gdb_byte *val;
cb3d25d1 2739 struct value *arg = args[argnum];
4991999e 2740 struct type *arg_type = check_typedef (value_type (arg));
cb3d25d1
MS
2741 int len = TYPE_LENGTH (arg_type);
2742 enum type_code typecode = TYPE_CODE (arg_type);
2743
2744 if (mips_debug)
2745 fprintf_unfiltered (gdb_stdlog,
25ab4790 2746 "mips_n32n64_push_dummy_call: %d len=%d type=%d",
cb3d25d1
MS
2747 argnum + 1, len, (int) typecode);
2748
47a35522 2749 val = value_contents (arg);
cb3d25d1
MS
2750
2751 if (fp_register_arg_p (typecode, arg_type)
2752 && float_argreg <= MIPS_LAST_FP_ARG_REGNUM)
2753 {
2754 /* This is a floating point value that fits entirely
2755 in a single register. */
2756 /* On 32 bit ABI's the float_argreg is further adjusted
2757 above to ensure that it is even register aligned. */
2758 LONGEST regval = extract_unsigned_integer (val, len);
2759 if (mips_debug)
2760 fprintf_unfiltered (gdb_stdlog, " - fpreg=%d val=%s",
2761 float_argreg, phex (regval, len));
2762 write_register (float_argreg++, regval);
2763
2764 if (mips_debug)
2765 fprintf_unfiltered (gdb_stdlog, " - reg=%d val=%s",
2766 argreg, phex (regval, len));
2767 write_register (argreg, regval);
2768 argreg += 1;
2769 }
2770 else
2771 {
2772 /* Copy the argument to general registers or the stack in
2773 register-sized pieces. Large arguments are split between
2774 registers and stack. */
4246e332 2775 /* Note: structs whose size is not a multiple of
d5ac5a39
AC
2776 mips_abi_regsize() are treated specially: Irix cc passes
2777 them in registers where gcc sometimes puts them on the
2778 stack. For maximum compatibility, we will put them in
2779 both places. */
13326b4e
AC
2780 int odd_sized_struct = ((len > mips_abi_regsize (gdbarch))
2781 && (len % mips_abi_regsize (gdbarch) != 0));
cb3d25d1 2782 /* Note: Floating-point values that didn't fit into an FP
6d82d43b 2783 register are only written to memory. */
cb3d25d1
MS
2784 while (len > 0)
2785 {
ad018eee 2786 /* Remember if the argument was written to the stack. */
cb3d25d1 2787 int stack_used_p = 0;
13326b4e
AC
2788 int partial_len = (len < mips_abi_regsize (gdbarch)
2789 ? len : mips_abi_regsize (gdbarch));
cb3d25d1
MS
2790
2791 if (mips_debug)
2792 fprintf_unfiltered (gdb_stdlog, " -- partial=%d",
2793 partial_len);
2794
2795 /* Write this portion of the argument to the stack. */
2796 if (argreg > MIPS_LAST_ARG_REGNUM
2797 || odd_sized_struct
2798 || fp_register_arg_p (typecode, arg_type))
2799 {
2800 /* Should shorter than int integer values be
2801 promoted to int before being stored? */
2802 int longword_offset = 0;
2803 CORE_ADDR addr;
2804 stack_used_p = 1;
2805 if (TARGET_BYTE_ORDER == BFD_ENDIAN_BIG)
2806 {
13326b4e 2807 if (mips_stack_argsize (gdbarch) == 8
480d3dd2
AC
2808 && (typecode == TYPE_CODE_INT
2809 || typecode == TYPE_CODE_PTR
6d82d43b 2810 || typecode == TYPE_CODE_FLT) && len <= 4)
13326b4e 2811 longword_offset = mips_stack_argsize (gdbarch) - len;
cb3d25d1
MS
2812 }
2813
2814 if (mips_debug)
2815 {
2816 fprintf_unfiltered (gdb_stdlog, " - stack_offset=0x%s",
2817 paddr_nz (stack_offset));
2818 fprintf_unfiltered (gdb_stdlog, " longword_offset=0x%s",
2819 paddr_nz (longword_offset));
2820 }
2821
2822 addr = sp + stack_offset + longword_offset;
2823
2824 if (mips_debug)
2825 {
2826 int i;
6d82d43b 2827 fprintf_unfiltered (gdb_stdlog, " @0x%s ",
cb3d25d1
MS
2828 paddr_nz (addr));
2829 for (i = 0; i < partial_len; i++)
2830 {
6d82d43b 2831 fprintf_unfiltered (gdb_stdlog, "%02x",
cb3d25d1
MS
2832 val[i] & 0xff);
2833 }
2834 }
2835 write_memory (addr, val, partial_len);
2836 }
2837
2838 /* Note!!! This is NOT an else clause. Odd sized
2839 structs may go thru BOTH paths. Floating point
2840 arguments will not. */
2841 /* Write this portion of the argument to a general
6d82d43b 2842 purpose register. */
cb3d25d1
MS
2843 if (argreg <= MIPS_LAST_ARG_REGNUM
2844 && !fp_register_arg_p (typecode, arg_type))
2845 {
6d82d43b
AC
2846 LONGEST regval =
2847 extract_unsigned_integer (val, partial_len);
cb3d25d1
MS
2848
2849 /* A non-floating-point argument being passed in a
2850 general register. If a struct or union, and if
2851 the remaining length is smaller than the register
2852 size, we have to adjust the register value on
2853 big endian targets.
2854
2855 It does not seem to be necessary to do the
2856 same for integral types.
2857
2858 cagney/2001-07-23: gdb/179: Also, GCC, when
2859 outputting LE O32 with sizeof (struct) <
e914cb17
MR
2860 mips_abi_regsize(), generates a left shift
2861 as part of storing the argument in a register
2862 (the left shift isn't generated when
1b13c4f6 2863 sizeof (struct) >= mips_abi_regsize()). Since
480d3dd2
AC
2864 it is quite possible that this is GCC
2865 contradicting the LE/O32 ABI, GDB has not been
2866 adjusted to accommodate this. Either someone
2867 needs to demonstrate that the LE/O32 ABI
2868 specifies such a left shift OR this new ABI gets
2869 identified as such and GDB gets tweaked
2870 accordingly. */
cb3d25d1
MS
2871
2872 if (TARGET_BYTE_ORDER == BFD_ENDIAN_BIG
13326b4e 2873 && partial_len < mips_abi_regsize (gdbarch)
cb3d25d1
MS
2874 && (typecode == TYPE_CODE_STRUCT ||
2875 typecode == TYPE_CODE_UNION))
13326b4e 2876 regval <<= ((mips_abi_regsize (gdbarch) - partial_len) *
cb3d25d1
MS
2877 TARGET_CHAR_BIT);
2878
2879 if (mips_debug)
2880 fprintf_filtered (gdb_stdlog, " - reg=%d val=%s",
2881 argreg,
6d82d43b 2882 phex (regval,
13326b4e 2883 mips_abi_regsize (gdbarch)));
cb3d25d1
MS
2884 write_register (argreg, regval);
2885 argreg++;
2886 }
2887
2888 len -= partial_len;
2889 val += partial_len;
2890
2891 /* Compute the the offset into the stack at which we
6d82d43b 2892 will copy the next parameter.
cb3d25d1
MS
2893
2894 In N32 (N64?), the stack_offset only needs to be
2895 adjusted when it has been used. */
2896
2897 if (stack_used_p)
480d3dd2 2898 stack_offset += align_up (partial_len,
13326b4e 2899 mips_stack_argsize (gdbarch));
cb3d25d1
MS
2900 }
2901 }
2902 if (mips_debug)
2903 fprintf_unfiltered (gdb_stdlog, "\n");
2904 }
2905
f10683bb 2906 regcache_cooked_write_signed (regcache, MIPS_SP_REGNUM, sp);
310e9b6a 2907
cb3d25d1
MS
2908 /* Return adjusted stack pointer. */
2909 return sp;
2910}
2911
6d82d43b
AC
2912static enum return_value_convention
2913mips_n32n64_return_value (struct gdbarch *gdbarch,
2914 struct type *type, struct regcache *regcache,
47a35522 2915 gdb_byte *readbuf, const gdb_byte *writebuf)
ebafbe83 2916{
6d82d43b
AC
2917 struct gdbarch_tdep *tdep = gdbarch_tdep (current_gdbarch);
2918 if (TYPE_CODE (type) == TYPE_CODE_STRUCT
2919 || TYPE_CODE (type) == TYPE_CODE_UNION
2920 || TYPE_CODE (type) == TYPE_CODE_ARRAY
13326b4e 2921 || TYPE_LENGTH (type) > 2 * mips_abi_regsize (gdbarch))
6d82d43b 2922 return RETURN_VALUE_STRUCT_CONVENTION;
d05f6826
DJ
2923 else if (TYPE_CODE (type) == TYPE_CODE_FLT
2924 && TYPE_LENGTH (type) == 16
2925 && tdep->mips_fpu_type != MIPS_FPU_NONE)
2926 {
2927 /* A 128-bit floating-point value fills both $f0 and $f2. The
2928 two registers are used in the same as memory order, so the
2929 eight bytes with the lower memory address are in $f0. */
2930 if (mips_debug)
2931 fprintf_unfiltered (gdb_stderr, "Return float in $f0 and $f2\n");
2932 mips_xfer_register (regcache,
2933 NUM_REGS + mips_regnum (current_gdbarch)->fp0,
2934 8, TARGET_BYTE_ORDER, readbuf, writebuf, 0);
2935 mips_xfer_register (regcache,
2936 NUM_REGS + mips_regnum (current_gdbarch)->fp0 + 2,
2937 8, TARGET_BYTE_ORDER, readbuf ? readbuf + 8 : readbuf,
2938 writebuf ? writebuf + 8 : writebuf, 0);
2939 return RETURN_VALUE_REGISTER_CONVENTION;
2940 }
6d82d43b
AC
2941 else if (TYPE_CODE (type) == TYPE_CODE_FLT
2942 && tdep->mips_fpu_type != MIPS_FPU_NONE)
2943 {
2944 /* A floating-point value belongs in the least significant part
2945 of FP0. */
2946 if (mips_debug)
2947 fprintf_unfiltered (gdb_stderr, "Return float in $fp0\n");
2948 mips_xfer_register (regcache,
2949 NUM_REGS + mips_regnum (current_gdbarch)->fp0,
2950 TYPE_LENGTH (type),
2951 TARGET_BYTE_ORDER, readbuf, writebuf, 0);
2952 return RETURN_VALUE_REGISTER_CONVENTION;
2953 }
2954 else if (TYPE_CODE (type) == TYPE_CODE_STRUCT
2955 && TYPE_NFIELDS (type) <= 2
2956 && TYPE_NFIELDS (type) >= 1
2957 && ((TYPE_NFIELDS (type) == 1
2958 && (TYPE_CODE (TYPE_FIELD_TYPE (type, 0))
2959 == TYPE_CODE_FLT))
2960 || (TYPE_NFIELDS (type) == 2
2961 && (TYPE_CODE (TYPE_FIELD_TYPE (type, 0))
2962 == TYPE_CODE_FLT)
2963 && (TYPE_CODE (TYPE_FIELD_TYPE (type, 1))
2964 == TYPE_CODE_FLT)))
2965 && tdep->mips_fpu_type != MIPS_FPU_NONE)
2966 {
2967 /* A struct that contains one or two floats. Each value is part
2968 in the least significant part of their floating point
2969 register.. */
6d82d43b
AC
2970 int regnum;
2971 int field;
2972 for (field = 0, regnum = mips_regnum (current_gdbarch)->fp0;
2973 field < TYPE_NFIELDS (type); field++, regnum += 2)
2974 {
2975 int offset = (FIELD_BITPOS (TYPE_FIELDS (type)[field])
2976 / TARGET_CHAR_BIT);
2977 if (mips_debug)
2978 fprintf_unfiltered (gdb_stderr, "Return float struct+%d\n",
2979 offset);
2980 mips_xfer_register (regcache, NUM_REGS + regnum,
2981 TYPE_LENGTH (TYPE_FIELD_TYPE (type, field)),
2982 TARGET_BYTE_ORDER, readbuf, writebuf, offset);
2983 }
2984 return RETURN_VALUE_REGISTER_CONVENTION;
2985 }
2986 else if (TYPE_CODE (type) == TYPE_CODE_STRUCT
2987 || TYPE_CODE (type) == TYPE_CODE_UNION)
2988 {
2989 /* A structure or union. Extract the left justified value,
2990 regardless of the byte order. I.e. DO NOT USE
2991 mips_xfer_lower. */
2992 int offset;
2993 int regnum;
4c7d22cb 2994 for (offset = 0, regnum = MIPS_V0_REGNUM;
6d82d43b
AC
2995 offset < TYPE_LENGTH (type);
2996 offset += register_size (current_gdbarch, regnum), regnum++)
2997 {
2998 int xfer = register_size (current_gdbarch, regnum);
2999 if (offset + xfer > TYPE_LENGTH (type))
3000 xfer = TYPE_LENGTH (type) - offset;
3001 if (mips_debug)
3002 fprintf_unfiltered (gdb_stderr, "Return struct+%d:%d in $%d\n",
3003 offset, xfer, regnum);
3004 mips_xfer_register (regcache, NUM_REGS + regnum, xfer,
3005 BFD_ENDIAN_UNKNOWN, readbuf, writebuf, offset);
3006 }
3007 return RETURN_VALUE_REGISTER_CONVENTION;
3008 }
3009 else
3010 {
3011 /* A scalar extract each part but least-significant-byte
3012 justified. */
3013 int offset;
3014 int regnum;
4c7d22cb 3015 for (offset = 0, regnum = MIPS_V0_REGNUM;
6d82d43b
AC
3016 offset < TYPE_LENGTH (type);
3017 offset += register_size (current_gdbarch, regnum), regnum++)
3018 {
3019 int xfer = register_size (current_gdbarch, regnum);
6d82d43b
AC
3020 if (offset + xfer > TYPE_LENGTH (type))
3021 xfer = TYPE_LENGTH (type) - offset;
3022 if (mips_debug)
3023 fprintf_unfiltered (gdb_stderr, "Return scalar+%d:%d in $%d\n",
3024 offset, xfer, regnum);
3025 mips_xfer_register (regcache, NUM_REGS + regnum, xfer,
3026 TARGET_BYTE_ORDER, readbuf, writebuf, offset);
3027 }
3028 return RETURN_VALUE_REGISTER_CONVENTION;
3029 }
3030}
3031
3032/* O32 ABI stuff. */
3033
3034static CORE_ADDR
7d9b040b 3035mips_o32_push_dummy_call (struct gdbarch *gdbarch, struct value *function,
6d82d43b
AC
3036 struct regcache *regcache, CORE_ADDR bp_addr,
3037 int nargs, struct value **args, CORE_ADDR sp,
3038 int struct_return, CORE_ADDR struct_addr)
3039{
3040 int argreg;
3041 int float_argreg;
3042 int argnum;
3043 int len = 0;
3044 int stack_offset = 0;
3045 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
7d9b040b 3046 CORE_ADDR func_addr = find_function_addr (function, NULL);
6d82d43b
AC
3047
3048 /* For shared libraries, "t9" needs to point at the function
3049 address. */
4c7d22cb 3050 regcache_cooked_write_signed (regcache, MIPS_T9_REGNUM, func_addr);
6d82d43b
AC
3051
3052 /* Set the return address register to point to the entry point of
3053 the program, where a breakpoint lies in wait. */
4c7d22cb 3054 regcache_cooked_write_signed (regcache, MIPS_RA_REGNUM, bp_addr);
6d82d43b
AC
3055
3056 /* First ensure that the stack and structure return address (if any)
3057 are properly aligned. The stack has to be at least 64-bit
3058 aligned even on 32-bit machines, because doubles must be 64-bit
ebafbe83
MS
3059 aligned. For n32 and n64, stack frames need to be 128-bit
3060 aligned, so we round to this widest known alignment. */
3061
5b03f266
AC
3062 sp = align_down (sp, 16);
3063 struct_addr = align_down (struct_addr, 16);
ebafbe83
MS
3064
3065 /* Now make space on the stack for the args. */
3066 for (argnum = 0; argnum < nargs; argnum++)
968b5391
MR
3067 {
3068 struct type *arg_type = check_typedef (value_type (args[argnum]));
3069 int arglen = TYPE_LENGTH (arg_type);
3070
3071 /* Align to double-word if necessary. */
3072 if (mips_abi_regsize (gdbarch) < 8
3073 && mips_type_needs_double_align (arg_type))
3074 len = align_up (len, mips_stack_argsize (gdbarch) * 2);
3075 /* Allocate space on the stack. */
3076 len += align_up (arglen, mips_stack_argsize (gdbarch));
3077 }
5b03f266 3078 sp -= align_up (len, 16);
ebafbe83
MS
3079
3080 if (mips_debug)
6d82d43b 3081 fprintf_unfiltered (gdb_stdlog,
5b03f266
AC
3082 "mips_o32_push_dummy_call: sp=0x%s allocated %ld\n",
3083 paddr_nz (sp), (long) align_up (len, 16));
ebafbe83
MS
3084
3085 /* Initialize the integer and float register pointers. */
4c7d22cb 3086 argreg = MIPS_A0_REGNUM;
56cea623 3087 float_argreg = mips_fpa0_regnum (current_gdbarch);
ebafbe83 3088
bcb0cc15 3089 /* The struct_return pointer occupies the first parameter-passing reg. */
ebafbe83
MS
3090 if (struct_return)
3091 {
3092 if (mips_debug)
3093 fprintf_unfiltered (gdb_stdlog,
25ab4790 3094 "mips_o32_push_dummy_call: struct_return reg=%d 0x%s\n",
ebafbe83
MS
3095 argreg, paddr_nz (struct_addr));
3096 write_register (argreg++, struct_addr);
13326b4e 3097 stack_offset += mips_stack_argsize (gdbarch);
ebafbe83
MS
3098 }
3099
3100 /* Now load as many as possible of the first arguments into
3101 registers, and push the rest onto the stack. Loop thru args
3102 from first to last. */
3103 for (argnum = 0; argnum < nargs; argnum++)
3104 {
47a35522 3105 const gdb_byte *val;
ebafbe83 3106 struct value *arg = args[argnum];
4991999e 3107 struct type *arg_type = check_typedef (value_type (arg));
ebafbe83
MS
3108 int len = TYPE_LENGTH (arg_type);
3109 enum type_code typecode = TYPE_CODE (arg_type);
3110
3111 if (mips_debug)
3112 fprintf_unfiltered (gdb_stdlog,
25ab4790 3113 "mips_o32_push_dummy_call: %d len=%d type=%d",
46cac009
AC
3114 argnum + 1, len, (int) typecode);
3115
47a35522 3116 val = value_contents (arg);
46cac009
AC
3117
3118 /* 32-bit ABIs always start floating point arguments in an
3119 even-numbered floating point register. Round the FP register
3120 up before the check to see if there are any FP registers
3121 left. O32/O64 targets also pass the FP in the integer
3122 registers so also round up normal registers. */
ceae6e75
AC
3123 if (mips_abi_regsize (gdbarch) < 8
3124 && fp_register_arg_p (typecode, arg_type))
46cac009
AC
3125 {
3126 if ((float_argreg & 1))
3127 float_argreg++;
3128 }
3129
3130 /* Floating point arguments passed in registers have to be
3131 treated specially. On 32-bit architectures, doubles
3132 are passed in register pairs; the even register gets
3133 the low word, and the odd register gets the high word.
3134 On O32/O64, the first two floating point arguments are
3135 also copied to general registers, because MIPS16 functions
3136 don't use float registers for arguments. This duplication of
3137 arguments in general registers can't hurt non-MIPS16 functions
3138 because those registers are normally skipped. */
3139
3140 if (fp_register_arg_p (typecode, arg_type)
3141 && float_argreg <= MIPS_LAST_FP_ARG_REGNUM)
3142 {
8b07f6d8 3143 if (register_size (gdbarch, float_argreg) < 8 && len == 8)
46cac009
AC
3144 {
3145 int low_offset = TARGET_BYTE_ORDER == BFD_ENDIAN_BIG ? 4 : 0;
3146 unsigned long regval;
3147
3148 /* Write the low word of the double to the even register(s). */
3149 regval = extract_unsigned_integer (val + low_offset, 4);
3150 if (mips_debug)
3151 fprintf_unfiltered (gdb_stdlog, " - fpreg=%d val=%s",
3152 float_argreg, phex (regval, 4));
3153 write_register (float_argreg++, regval);
3154 if (mips_debug)
3155 fprintf_unfiltered (gdb_stdlog, " - reg=%d val=%s",
3156 argreg, phex (regval, 4));
3157 write_register (argreg++, regval);
3158
3159 /* Write the high word of the double to the odd register(s). */
3160 regval = extract_unsigned_integer (val + 4 - low_offset, 4);
3161 if (mips_debug)
3162 fprintf_unfiltered (gdb_stdlog, " - fpreg=%d val=%s",
3163 float_argreg, phex (regval, 4));
3164 write_register (float_argreg++, regval);
3165
3166 if (mips_debug)
3167 fprintf_unfiltered (gdb_stdlog, " - reg=%d val=%s",
3168 argreg, phex (regval, 4));
3169 write_register (argreg++, regval);
3170 }
3171 else
3172 {
3173 /* This is a floating point value that fits entirely
3174 in a single register. */
3175 /* On 32 bit ABI's the float_argreg is further adjusted
6d82d43b 3176 above to ensure that it is even register aligned. */
46cac009
AC
3177 LONGEST regval = extract_unsigned_integer (val, len);
3178 if (mips_debug)
3179 fprintf_unfiltered (gdb_stdlog, " - fpreg=%d val=%s",
3180 float_argreg, phex (regval, len));
3181 write_register (float_argreg++, regval);
3182 /* CAGNEY: 32 bit MIPS ABI's always reserve two FP
6d82d43b
AC
3183 registers for each argument. The below is (my
3184 guess) to ensure that the corresponding integer
3185 register has reserved the same space. */
46cac009
AC
3186 if (mips_debug)
3187 fprintf_unfiltered (gdb_stdlog, " - reg=%d val=%s",
3188 argreg, phex (regval, len));
3189 write_register (argreg, regval);
ceae6e75 3190 argreg += (mips_abi_regsize (gdbarch) == 8) ? 1 : 2;
46cac009
AC
3191 }
3192 /* Reserve space for the FP register. */
13326b4e 3193 stack_offset += align_up (len, mips_stack_argsize (gdbarch));
46cac009
AC
3194 }
3195 else
3196 {
3197 /* Copy the argument to general registers or the stack in
3198 register-sized pieces. Large arguments are split between
3199 registers and stack. */
4246e332 3200 /* Note: structs whose size is not a multiple of
d5ac5a39
AC
3201 mips_abi_regsize() are treated specially: Irix cc passes
3202 them in registers where gcc sometimes puts them on the
3203 stack. For maximum compatibility, we will put them in
3204 both places. */
13326b4e
AC
3205 int odd_sized_struct = ((len > mips_abi_regsize (gdbarch))
3206 && (len % mips_abi_regsize (gdbarch) != 0));
46cac009
AC
3207 /* Structures should be aligned to eight bytes (even arg registers)
3208 on MIPS_ABI_O32, if their first member has double precision. */
13326b4e 3209 if (mips_abi_regsize (gdbarch) < 8
46cac009
AC
3210 && mips_type_needs_double_align (arg_type))
3211 {
3212 if ((argreg & 1))
968b5391
MR
3213 {
3214 argreg++;
3215 stack_offset += mips_abi_regsize (gdbarch);
3216 }
46cac009 3217 }
46cac009
AC
3218 while (len > 0)
3219 {
3220 /* Remember if the argument was written to the stack. */
3221 int stack_used_p = 0;
13326b4e
AC
3222 int partial_len = (len < mips_abi_regsize (gdbarch)
3223 ? len : mips_abi_regsize (gdbarch));
46cac009
AC
3224
3225 if (mips_debug)
3226 fprintf_unfiltered (gdb_stdlog, " -- partial=%d",
3227 partial_len);
3228
3229 /* Write this portion of the argument to the stack. */
3230 if (argreg > MIPS_LAST_ARG_REGNUM
968b5391 3231 || odd_sized_struct)
46cac009
AC
3232 {
3233 /* Should shorter than int integer values be
3234 promoted to int before being stored? */
3235 int longword_offset = 0;
3236 CORE_ADDR addr;
3237 stack_used_p = 1;
3238 if (TARGET_BYTE_ORDER == BFD_ENDIAN_BIG)
3239 {
13326b4e 3240 if (mips_stack_argsize (gdbarch) == 8
480d3dd2
AC
3241 && (typecode == TYPE_CODE_INT
3242 || typecode == TYPE_CODE_PTR
6d82d43b 3243 || typecode == TYPE_CODE_FLT) && len <= 4)
13326b4e 3244 longword_offset = mips_stack_argsize (gdbarch) - len;
46cac009
AC
3245 }
3246
3247 if (mips_debug)
3248 {
3249 fprintf_unfiltered (gdb_stdlog, " - stack_offset=0x%s",
3250 paddr_nz (stack_offset));
3251 fprintf_unfiltered (gdb_stdlog, " longword_offset=0x%s",
3252 paddr_nz (longword_offset));
3253 }
3254
3255 addr = sp + stack_offset + longword_offset;
3256
3257 if (mips_debug)
3258 {
3259 int i;
6d82d43b 3260 fprintf_unfiltered (gdb_stdlog, " @0x%s ",
46cac009
AC
3261 paddr_nz (addr));
3262 for (i = 0; i < partial_len; i++)
3263 {
6d82d43b 3264 fprintf_unfiltered (gdb_stdlog, "%02x",
46cac009
AC
3265 val[i] & 0xff);
3266 }
3267 }
3268 write_memory (addr, val, partial_len);
3269 }
3270
3271 /* Note!!! This is NOT an else clause. Odd sized
968b5391 3272 structs may go thru BOTH paths. */
46cac009 3273 /* Write this portion of the argument to a general
6d82d43b 3274 purpose register. */
968b5391 3275 if (argreg <= MIPS_LAST_ARG_REGNUM)
46cac009
AC
3276 {
3277 LONGEST regval = extract_signed_integer (val, partial_len);
4246e332 3278 /* Value may need to be sign extended, because
1b13c4f6 3279 mips_isa_regsize() != mips_abi_regsize(). */
46cac009
AC
3280
3281 /* A non-floating-point argument being passed in a
3282 general register. If a struct or union, and if
3283 the remaining length is smaller than the register
3284 size, we have to adjust the register value on
3285 big endian targets.
3286
3287 It does not seem to be necessary to do the
3288 same for integral types.
3289
3290 Also don't do this adjustment on O64 binaries.
3291
3292 cagney/2001-07-23: gdb/179: Also, GCC, when
3293 outputting LE O32 with sizeof (struct) <
e914cb17
MR
3294 mips_abi_regsize(), generates a left shift
3295 as part of storing the argument in a register
3296 (the left shift isn't generated when
1b13c4f6 3297 sizeof (struct) >= mips_abi_regsize()). Since
480d3dd2
AC
3298 it is quite possible that this is GCC
3299 contradicting the LE/O32 ABI, GDB has not been
3300 adjusted to accommodate this. Either someone
3301 needs to demonstrate that the LE/O32 ABI
3302 specifies such a left shift OR this new ABI gets
3303 identified as such and GDB gets tweaked
3304 accordingly. */
3305
13326b4e 3306 if (mips_abi_regsize (gdbarch) < 8
46cac009 3307 && TARGET_BYTE_ORDER == BFD_ENDIAN_BIG
13326b4e 3308 && partial_len < mips_abi_regsize (gdbarch)
46cac009
AC
3309 && (typecode == TYPE_CODE_STRUCT ||
3310 typecode == TYPE_CODE_UNION))
13326b4e 3311 regval <<= ((mips_abi_regsize (gdbarch) - partial_len) *
46cac009
AC
3312 TARGET_CHAR_BIT);
3313
3314 if (mips_debug)
3315 fprintf_filtered (gdb_stdlog, " - reg=%d val=%s",
3316 argreg,
6d82d43b 3317 phex (regval,
13326b4e 3318 mips_abi_regsize (gdbarch)));
46cac009
AC
3319 write_register (argreg, regval);
3320 argreg++;
3321
3322 /* Prevent subsequent floating point arguments from
3323 being passed in floating point registers. */
3324 float_argreg = MIPS_LAST_FP_ARG_REGNUM + 1;
3325 }
3326
3327 len -= partial_len;
3328 val += partial_len;
3329
3330 /* Compute the the offset into the stack at which we
6d82d43b 3331 will copy the next parameter.
46cac009 3332
6d82d43b
AC
3333 In older ABIs, the caller reserved space for
3334 registers that contained arguments. This was loosely
3335 refered to as their "home". Consequently, space is
3336 always allocated. */
46cac009 3337
480d3dd2 3338 stack_offset += align_up (partial_len,
13326b4e 3339 mips_stack_argsize (gdbarch));
46cac009
AC
3340 }
3341 }
3342 if (mips_debug)
3343 fprintf_unfiltered (gdb_stdlog, "\n");
3344 }
3345
f10683bb 3346 regcache_cooked_write_signed (regcache, MIPS_SP_REGNUM, sp);
310e9b6a 3347
46cac009
AC
3348 /* Return adjusted stack pointer. */
3349 return sp;
3350}
3351
6d82d43b
AC
3352static enum return_value_convention
3353mips_o32_return_value (struct gdbarch *gdbarch, struct type *type,
3354 struct regcache *regcache,
47a35522 3355 gdb_byte *readbuf, const gdb_byte *writebuf)
6d82d43b
AC
3356{
3357 struct gdbarch_tdep *tdep = gdbarch_tdep (current_gdbarch);
3358
3359 if (TYPE_CODE (type) == TYPE_CODE_STRUCT
3360 || TYPE_CODE (type) == TYPE_CODE_UNION
3361 || TYPE_CODE (type) == TYPE_CODE_ARRAY)
3362 return RETURN_VALUE_STRUCT_CONVENTION;
3363 else if (TYPE_CODE (type) == TYPE_CODE_FLT
3364 && TYPE_LENGTH (type) == 4 && tdep->mips_fpu_type != MIPS_FPU_NONE)
3365 {
3366 /* A single-precision floating-point value. It fits in the
3367 least significant part of FP0. */
3368 if (mips_debug)
3369 fprintf_unfiltered (gdb_stderr, "Return float in $fp0\n");
3370 mips_xfer_register (regcache,
3371 NUM_REGS + mips_regnum (current_gdbarch)->fp0,
3372 TYPE_LENGTH (type),
3373 TARGET_BYTE_ORDER, readbuf, writebuf, 0);
3374 return RETURN_VALUE_REGISTER_CONVENTION;
3375 }
3376 else if (TYPE_CODE (type) == TYPE_CODE_FLT
3377 && TYPE_LENGTH (type) == 8 && tdep->mips_fpu_type != MIPS_FPU_NONE)
3378 {
3379 /* A double-precision floating-point value. The most
3380 significant part goes in FP1, and the least significant in
3381 FP0. */
3382 if (mips_debug)
3383 fprintf_unfiltered (gdb_stderr, "Return float in $fp1/$fp0\n");
3384 switch (TARGET_BYTE_ORDER)
3385 {
3386 case BFD_ENDIAN_LITTLE:
3387 mips_xfer_register (regcache,
3388 NUM_REGS + mips_regnum (current_gdbarch)->fp0 +
3389 0, 4, TARGET_BYTE_ORDER, readbuf, writebuf, 0);
3390 mips_xfer_register (regcache,
3391 NUM_REGS + mips_regnum (current_gdbarch)->fp0 +
3392 1, 4, TARGET_BYTE_ORDER, readbuf, writebuf, 4);
3393 break;
3394 case BFD_ENDIAN_BIG:
3395 mips_xfer_register (regcache,
3396 NUM_REGS + mips_regnum (current_gdbarch)->fp0 +
3397 1, 4, TARGET_BYTE_ORDER, readbuf, writebuf, 0);
3398 mips_xfer_register (regcache,
3399 NUM_REGS + mips_regnum (current_gdbarch)->fp0 +
3400 0, 4, TARGET_BYTE_ORDER, readbuf, writebuf, 4);
3401 break;
3402 default:
e2e0b3e5 3403 internal_error (__FILE__, __LINE__, _("bad switch"));
6d82d43b
AC
3404 }
3405 return RETURN_VALUE_REGISTER_CONVENTION;
3406 }
3407#if 0
3408 else if (TYPE_CODE (type) == TYPE_CODE_STRUCT
3409 && TYPE_NFIELDS (type) <= 2
3410 && TYPE_NFIELDS (type) >= 1
3411 && ((TYPE_NFIELDS (type) == 1
3412 && (TYPE_CODE (TYPE_FIELD_TYPE (type, 0))
3413 == TYPE_CODE_FLT))
3414 || (TYPE_NFIELDS (type) == 2
3415 && (TYPE_CODE (TYPE_FIELD_TYPE (type, 0))
3416 == TYPE_CODE_FLT)
3417 && (TYPE_CODE (TYPE_FIELD_TYPE (type, 1))
3418 == TYPE_CODE_FLT)))
3419 && tdep->mips_fpu_type != MIPS_FPU_NONE)
3420 {
3421 /* A struct that contains one or two floats. Each value is part
3422 in the least significant part of their floating point
3423 register.. */
870cd05e 3424 gdb_byte reg[MAX_REGISTER_SIZE];
6d82d43b
AC
3425 int regnum;
3426 int field;
3427 for (field = 0, regnum = mips_regnum (current_gdbarch)->fp0;
3428 field < TYPE_NFIELDS (type); field++, regnum += 2)
3429 {
3430 int offset = (FIELD_BITPOS (TYPE_FIELDS (type)[field])
3431 / TARGET_CHAR_BIT);
3432 if (mips_debug)
3433 fprintf_unfiltered (gdb_stderr, "Return float struct+%d\n",
3434 offset);
3435 mips_xfer_register (regcache, NUM_REGS + regnum,
3436 TYPE_LENGTH (TYPE_FIELD_TYPE (type, field)),
3437 TARGET_BYTE_ORDER, readbuf, writebuf, offset);
3438 }
3439 return RETURN_VALUE_REGISTER_CONVENTION;
3440 }
3441#endif
3442#if 0
3443 else if (TYPE_CODE (type) == TYPE_CODE_STRUCT
3444 || TYPE_CODE (type) == TYPE_CODE_UNION)
3445 {
3446 /* A structure or union. Extract the left justified value,
3447 regardless of the byte order. I.e. DO NOT USE
3448 mips_xfer_lower. */
3449 int offset;
3450 int regnum;
4c7d22cb 3451 for (offset = 0, regnum = MIPS_V0_REGNUM;
6d82d43b
AC
3452 offset < TYPE_LENGTH (type);
3453 offset += register_size (current_gdbarch, regnum), regnum++)
3454 {
3455 int xfer = register_size (current_gdbarch, regnum);
3456 if (offset + xfer > TYPE_LENGTH (type))
3457 xfer = TYPE_LENGTH (type) - offset;
3458 if (mips_debug)
3459 fprintf_unfiltered (gdb_stderr, "Return struct+%d:%d in $%d\n",
3460 offset, xfer, regnum);
3461 mips_xfer_register (regcache, NUM_REGS + regnum, xfer,
3462 BFD_ENDIAN_UNKNOWN, readbuf, writebuf, offset);
3463 }
3464 return RETURN_VALUE_REGISTER_CONVENTION;
3465 }
3466#endif
3467 else
3468 {
3469 /* A scalar extract each part but least-significant-byte
3470 justified. o32 thinks registers are 4 byte, regardless of
3471 the ISA. mips_stack_argsize controls this. */
3472 int offset;
3473 int regnum;
4c7d22cb 3474 for (offset = 0, regnum = MIPS_V0_REGNUM;
6d82d43b 3475 offset < TYPE_LENGTH (type);
13326b4e 3476 offset += mips_stack_argsize (gdbarch), regnum++)
6d82d43b 3477 {
13326b4e 3478 int xfer = mips_stack_argsize (gdbarch);
6d82d43b
AC
3479 if (offset + xfer > TYPE_LENGTH (type))
3480 xfer = TYPE_LENGTH (type) - offset;
3481 if (mips_debug)
3482 fprintf_unfiltered (gdb_stderr, "Return scalar+%d:%d in $%d\n",
3483 offset, xfer, regnum);
3484 mips_xfer_register (regcache, NUM_REGS + regnum, xfer,
3485 TARGET_BYTE_ORDER, readbuf, writebuf, offset);
3486 }
3487 return RETURN_VALUE_REGISTER_CONVENTION;
3488 }
3489}
3490
3491/* O64 ABI. This is a hacked up kind of 64-bit version of the o32
3492 ABI. */
46cac009
AC
3493
3494static CORE_ADDR
7d9b040b 3495mips_o64_push_dummy_call (struct gdbarch *gdbarch, struct value *function,
6d82d43b
AC
3496 struct regcache *regcache, CORE_ADDR bp_addr,
3497 int nargs,
3498 struct value **args, CORE_ADDR sp,
3499 int struct_return, CORE_ADDR struct_addr)
46cac009
AC
3500{
3501 int argreg;
3502 int float_argreg;
3503 int argnum;
3504 int len = 0;
3505 int stack_offset = 0;
480d3dd2 3506 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
7d9b040b 3507 CORE_ADDR func_addr = find_function_addr (function, NULL);
46cac009 3508
25ab4790
AC
3509 /* For shared libraries, "t9" needs to point at the function
3510 address. */
4c7d22cb 3511 regcache_cooked_write_signed (regcache, MIPS_T9_REGNUM, func_addr);
25ab4790
AC
3512
3513 /* Set the return address register to point to the entry point of
3514 the program, where a breakpoint lies in wait. */
4c7d22cb 3515 regcache_cooked_write_signed (regcache, MIPS_RA_REGNUM, bp_addr);
25ab4790 3516
46cac009
AC
3517 /* First ensure that the stack and structure return address (if any)
3518 are properly aligned. The stack has to be at least 64-bit
3519 aligned even on 32-bit machines, because doubles must be 64-bit
3520 aligned. For n32 and n64, stack frames need to be 128-bit
3521 aligned, so we round to this widest known alignment. */
3522
5b03f266
AC
3523 sp = align_down (sp, 16);
3524 struct_addr = align_down (struct_addr, 16);
46cac009
AC
3525
3526 /* Now make space on the stack for the args. */
3527 for (argnum = 0; argnum < nargs; argnum++)
968b5391
MR
3528 {
3529 struct type *arg_type = check_typedef (value_type (args[argnum]));
3530 int arglen = TYPE_LENGTH (arg_type);
3531
3532 /* Align to double-word if necessary. */
3533 if (mips_abi_regsize (gdbarch) < 8
3534 && mips_type_needs_double_align (arg_type))
3535 len = align_up (len, mips_stack_argsize (gdbarch) * 2);
3536 /* Allocate space on the stack. */
3537 len += align_up (arglen, mips_stack_argsize (gdbarch));
3538 }
5b03f266 3539 sp -= align_up (len, 16);
46cac009
AC
3540
3541 if (mips_debug)
6d82d43b 3542 fprintf_unfiltered (gdb_stdlog,
5b03f266
AC
3543 "mips_o64_push_dummy_call: sp=0x%s allocated %ld\n",
3544 paddr_nz (sp), (long) align_up (len, 16));
46cac009
AC
3545
3546 /* Initialize the integer and float register pointers. */
4c7d22cb 3547 argreg = MIPS_A0_REGNUM;
56cea623 3548 float_argreg = mips_fpa0_regnum (current_gdbarch);
46cac009
AC
3549
3550 /* The struct_return pointer occupies the first parameter-passing reg. */
3551 if (struct_return)
3552 {
3553 if (mips_debug)
3554 fprintf_unfiltered (gdb_stdlog,
25ab4790 3555 "mips_o64_push_dummy_call: struct_return reg=%d 0x%s\n",
46cac009
AC
3556 argreg, paddr_nz (struct_addr));
3557 write_register (argreg++, struct_addr);
13326b4e 3558 stack_offset += mips_stack_argsize (gdbarch);
46cac009
AC
3559 }
3560
3561 /* Now load as many as possible of the first arguments into
3562 registers, and push the rest onto the stack. Loop thru args
3563 from first to last. */
3564 for (argnum = 0; argnum < nargs; argnum++)
3565 {
47a35522 3566 const gdb_byte *val;
46cac009 3567 struct value *arg = args[argnum];
4991999e 3568 struct type *arg_type = check_typedef (value_type (arg));
46cac009
AC
3569 int len = TYPE_LENGTH (arg_type);
3570 enum type_code typecode = TYPE_CODE (arg_type);
3571
3572 if (mips_debug)
3573 fprintf_unfiltered (gdb_stdlog,
25ab4790 3574 "mips_o64_push_dummy_call: %d len=%d type=%d",
ebafbe83
MS
3575 argnum + 1, len, (int) typecode);
3576
47a35522 3577 val = value_contents (arg);
ebafbe83
MS
3578
3579 /* 32-bit ABIs always start floating point arguments in an
3580 even-numbered floating point register. Round the FP register
3581 up before the check to see if there are any FP registers
3582 left. O32/O64 targets also pass the FP in the integer
3583 registers so also round up normal registers. */
ceae6e75
AC
3584 if (mips_abi_regsize (gdbarch) < 8
3585 && fp_register_arg_p (typecode, arg_type))
ebafbe83
MS
3586 {
3587 if ((float_argreg & 1))
3588 float_argreg++;
3589 }
3590
3591 /* Floating point arguments passed in registers have to be
3592 treated specially. On 32-bit architectures, doubles
3593 are passed in register pairs; the even register gets
3594 the low word, and the odd register gets the high word.
3595 On O32/O64, the first two floating point arguments are
3596 also copied to general registers, because MIPS16 functions
3597 don't use float registers for arguments. This duplication of
3598 arguments in general registers can't hurt non-MIPS16 functions
3599 because those registers are normally skipped. */
3600
3601 if (fp_register_arg_p (typecode, arg_type)
3602 && float_argreg <= MIPS_LAST_FP_ARG_REGNUM)
3603 {
ceae6e75 3604 if (mips_abi_regsize (gdbarch) < 8 && len == 8)
ebafbe83
MS
3605 {
3606 int low_offset = TARGET_BYTE_ORDER == BFD_ENDIAN_BIG ? 4 : 0;
3607 unsigned long regval;
3608
3609 /* Write the low word of the double to the even register(s). */
3610 regval = extract_unsigned_integer (val + low_offset, 4);
3611 if (mips_debug)
3612 fprintf_unfiltered (gdb_stdlog, " - fpreg=%d val=%s",
3613 float_argreg, phex (regval, 4));
3614 write_register (float_argreg++, regval);
3615 if (mips_debug)
3616 fprintf_unfiltered (gdb_stdlog, " - reg=%d val=%s",
3617 argreg, phex (regval, 4));
3618 write_register (argreg++, regval);
3619
3620 /* Write the high word of the double to the odd register(s). */
3621 regval = extract_unsigned_integer (val + 4 - low_offset, 4);
3622 if (mips_debug)
3623 fprintf_unfiltered (gdb_stdlog, " - fpreg=%d val=%s",
3624 float_argreg, phex (regval, 4));
3625 write_register (float_argreg++, regval);
3626
3627 if (mips_debug)
3628 fprintf_unfiltered (gdb_stdlog, " - reg=%d val=%s",
3629 argreg, phex (regval, 4));
3630 write_register (argreg++, regval);
3631 }
3632 else
3633 {
3634 /* This is a floating point value that fits entirely
3635 in a single register. */
3636 /* On 32 bit ABI's the float_argreg is further adjusted
6d82d43b 3637 above to ensure that it is even register aligned. */
ebafbe83
MS
3638 LONGEST regval = extract_unsigned_integer (val, len);
3639 if (mips_debug)
3640 fprintf_unfiltered (gdb_stdlog, " - fpreg=%d val=%s",
3641 float_argreg, phex (regval, len));
3642 write_register (float_argreg++, regval);
3643 /* CAGNEY: 32 bit MIPS ABI's always reserve two FP
6d82d43b
AC
3644 registers for each argument. The below is (my
3645 guess) to ensure that the corresponding integer
3646 register has reserved the same space. */
ebafbe83
MS
3647 if (mips_debug)
3648 fprintf_unfiltered (gdb_stdlog, " - reg=%d val=%s",
3649 argreg, phex (regval, len));
3650 write_register (argreg, regval);
ceae6e75 3651 argreg += (mips_abi_regsize (gdbarch) == 8) ? 1 : 2;
ebafbe83
MS
3652 }
3653 /* Reserve space for the FP register. */
13326b4e 3654 stack_offset += align_up (len, mips_stack_argsize (gdbarch));
ebafbe83
MS
3655 }
3656 else
3657 {
3658 /* Copy the argument to general registers or the stack in
3659 register-sized pieces. Large arguments are split between
3660 registers and stack. */
4246e332 3661 /* Note: structs whose size is not a multiple of
d5ac5a39
AC
3662 mips_abi_regsize() are treated specially: Irix cc passes
3663 them in registers where gcc sometimes puts them on the
3664 stack. For maximum compatibility, we will put them in
3665 both places. */
13326b4e
AC
3666 int odd_sized_struct = ((len > mips_abi_regsize (gdbarch))
3667 && (len % mips_abi_regsize (gdbarch) != 0));
ebafbe83
MS
3668 /* Structures should be aligned to eight bytes (even arg registers)
3669 on MIPS_ABI_O32, if their first member has double precision. */
13326b4e 3670 if (mips_abi_regsize (gdbarch) < 8
ebafbe83
MS
3671 && mips_type_needs_double_align (arg_type))
3672 {
3673 if ((argreg & 1))
968b5391
MR
3674 {
3675 argreg++;
3676 stack_offset += mips_abi_regsize (gdbarch);
3677 }
ebafbe83 3678 }
ebafbe83
MS
3679 while (len > 0)
3680 {
3681 /* Remember if the argument was written to the stack. */
3682 int stack_used_p = 0;
13326b4e
AC
3683 int partial_len = (len < mips_abi_regsize (gdbarch)
3684 ? len : mips_abi_regsize (gdbarch));
ebafbe83
MS
3685
3686 if (mips_debug)
3687 fprintf_unfiltered (gdb_stdlog, " -- partial=%d",
3688 partial_len);
3689
3690 /* Write this portion of the argument to the stack. */
3691 if (argreg > MIPS_LAST_ARG_REGNUM
968b5391 3692 || odd_sized_struct)
ebafbe83
MS
3693 {
3694 /* Should shorter than int integer values be
3695 promoted to int before being stored? */
3696 int longword_offset = 0;
3697 CORE_ADDR addr;
3698 stack_used_p = 1;
3699 if (TARGET_BYTE_ORDER == BFD_ENDIAN_BIG)
3700 {
13326b4e 3701 if (mips_stack_argsize (gdbarch) == 8
480d3dd2
AC
3702 && (typecode == TYPE_CODE_INT
3703 || typecode == TYPE_CODE_PTR
6d82d43b 3704 || typecode == TYPE_CODE_FLT) && len <= 4)
13326b4e 3705 longword_offset = mips_stack_argsize (gdbarch) - len;
ebafbe83
MS
3706 }
3707
3708 if (mips_debug)
3709 {
3710 fprintf_unfiltered (gdb_stdlog, " - stack_offset=0x%s",
3711 paddr_nz (stack_offset));
3712 fprintf_unfiltered (gdb_stdlog, " longword_offset=0x%s",
3713 paddr_nz (longword_offset));
3714 }
3715
3716 addr = sp + stack_offset + longword_offset;
3717
3718 if (mips_debug)
3719 {
3720 int i;
6d82d43b 3721 fprintf_unfiltered (gdb_stdlog, " @0x%s ",
ebafbe83
MS
3722 paddr_nz (addr));
3723 for (i = 0; i < partial_len; i++)
3724 {
6d82d43b 3725 fprintf_unfiltered (gdb_stdlog, "%02x",
ebafbe83
MS
3726 val[i] & 0xff);
3727 }
3728 }
3729 write_memory (addr, val, partial_len);
3730 }
3731
3732 /* Note!!! This is NOT an else clause. Odd sized
968b5391 3733 structs may go thru BOTH paths. */
ebafbe83 3734 /* Write this portion of the argument to a general
6d82d43b 3735 purpose register. */
968b5391 3736 if (argreg <= MIPS_LAST_ARG_REGNUM)
ebafbe83
MS
3737 {
3738 LONGEST regval = extract_signed_integer (val, partial_len);
4246e332 3739 /* Value may need to be sign extended, because
1b13c4f6 3740 mips_isa_regsize() != mips_abi_regsize(). */
ebafbe83
MS
3741
3742 /* A non-floating-point argument being passed in a
3743 general register. If a struct or union, and if
3744 the remaining length is smaller than the register
3745 size, we have to adjust the register value on
3746 big endian targets.
3747
3748 It does not seem to be necessary to do the
401835eb 3749 same for integral types. */
480d3dd2 3750
401835eb 3751 if (TARGET_BYTE_ORDER == BFD_ENDIAN_BIG
13326b4e 3752 && partial_len < mips_abi_regsize (gdbarch)
ebafbe83
MS
3753 && (typecode == TYPE_CODE_STRUCT ||
3754 typecode == TYPE_CODE_UNION))
13326b4e 3755 regval <<= ((mips_abi_regsize (gdbarch) - partial_len) *
ebafbe83
MS
3756 TARGET_CHAR_BIT);
3757
3758 if (mips_debug)
3759 fprintf_filtered (gdb_stdlog, " - reg=%d val=%s",
3760 argreg,
6d82d43b 3761 phex (regval,
13326b4e 3762 mips_abi_regsize (gdbarch)));
ebafbe83
MS
3763 write_register (argreg, regval);
3764 argreg++;
3765
3766 /* Prevent subsequent floating point arguments from
3767 being passed in floating point registers. */
3768 float_argreg = MIPS_LAST_FP_ARG_REGNUM + 1;
3769 }
3770
3771 len -= partial_len;
3772 val += partial_len;
3773
3774 /* Compute the the offset into the stack at which we
6d82d43b 3775 will copy the next parameter.
ebafbe83 3776
6d82d43b
AC
3777 In older ABIs, the caller reserved space for
3778 registers that contained arguments. This was loosely
3779 refered to as their "home". Consequently, space is
3780 always allocated. */
ebafbe83 3781
480d3dd2 3782 stack_offset += align_up (partial_len,
13326b4e 3783 mips_stack_argsize (gdbarch));
ebafbe83
MS
3784 }
3785 }
3786 if (mips_debug)
3787 fprintf_unfiltered (gdb_stdlog, "\n");
3788 }
3789
f10683bb 3790 regcache_cooked_write_signed (regcache, MIPS_SP_REGNUM, sp);
310e9b6a 3791
ebafbe83
MS
3792 /* Return adjusted stack pointer. */
3793 return sp;
3794}
3795
9c8fdbfa
AC
3796static enum return_value_convention
3797mips_o64_return_value (struct gdbarch *gdbarch,
3798 struct type *type, struct regcache *regcache,
47a35522 3799 gdb_byte *readbuf, const gdb_byte *writebuf)
6d82d43b 3800{
7a076fd2
FF
3801 struct gdbarch_tdep *tdep = gdbarch_tdep (current_gdbarch);
3802
3803 if (TYPE_CODE (type) == TYPE_CODE_STRUCT
3804 || TYPE_CODE (type) == TYPE_CODE_UNION
3805 || TYPE_CODE (type) == TYPE_CODE_ARRAY)
3806 return RETURN_VALUE_STRUCT_CONVENTION;
3807 else if (fp_register_arg_p (TYPE_CODE (type), type))
3808 {
3809 /* A floating-point value. It fits in the least significant
3810 part of FP0. */
3811 if (mips_debug)
3812 fprintf_unfiltered (gdb_stderr, "Return float in $fp0\n");
3813 mips_xfer_register (regcache,
3814 NUM_REGS + mips_regnum (current_gdbarch)->fp0,
3815 TYPE_LENGTH (type),
3816 TARGET_BYTE_ORDER, readbuf, writebuf, 0);
3817 return RETURN_VALUE_REGISTER_CONVENTION;
3818 }
3819 else
3820 {
3821 /* A scalar extract each part but least-significant-byte
3822 justified. */
3823 int offset;
3824 int regnum;
3825 for (offset = 0, regnum = MIPS_V0_REGNUM;
3826 offset < TYPE_LENGTH (type);
3827 offset += mips_stack_argsize (gdbarch), regnum++)
3828 {
3829 int xfer = mips_stack_argsize (gdbarch);
3830 if (offset + xfer > TYPE_LENGTH (type))
3831 xfer = TYPE_LENGTH (type) - offset;
3832 if (mips_debug)
3833 fprintf_unfiltered (gdb_stderr, "Return scalar+%d:%d in $%d\n",
3834 offset, xfer, regnum);
3835 mips_xfer_register (regcache, NUM_REGS + regnum, xfer,
3836 TARGET_BYTE_ORDER, readbuf, writebuf, offset);
3837 }
3838 return RETURN_VALUE_REGISTER_CONVENTION;
3839 }
6d82d43b
AC
3840}
3841
dd824b04
DJ
3842/* Floating point register management.
3843
3844 Background: MIPS1 & 2 fp registers are 32 bits wide. To support
3845 64bit operations, these early MIPS cpus treat fp register pairs
3846 (f0,f1) as a single register (d0). Later MIPS cpu's have 64 bit fp
3847 registers and offer a compatibility mode that emulates the MIPS2 fp
3848 model. When operating in MIPS2 fp compat mode, later cpu's split
3849 double precision floats into two 32-bit chunks and store them in
3850 consecutive fp regs. To display 64-bit floats stored in this
3851 fashion, we have to combine 32 bits from f0 and 32 bits from f1.
3852 Throw in user-configurable endianness and you have a real mess.
3853
3854 The way this works is:
3855 - If we are in 32-bit mode or on a 32-bit processor, then a 64-bit
3856 double-precision value will be split across two logical registers.
3857 The lower-numbered logical register will hold the low-order bits,
3858 regardless of the processor's endianness.
3859 - If we are on a 64-bit processor, and we are looking for a
3860 single-precision value, it will be in the low ordered bits
3861 of a 64-bit GPR (after mfc1, for example) or a 64-bit register
3862 save slot in memory.
3863 - If we are in 64-bit mode, everything is straightforward.
3864
3865 Note that this code only deals with "live" registers at the top of the
3866 stack. We will attempt to deal with saved registers later, when
3867 the raw/cooked register interface is in place. (We need a general
3868 interface that can deal with dynamic saved register sizes -- fp
3869 regs could be 32 bits wide in one frame and 64 on the frame above
3870 and below). */
3871
67b2c998
DJ
3872static struct type *
3873mips_float_register_type (void)
3874{
8da61cc4 3875 return builtin_type_ieee_single;
67b2c998
DJ
3876}
3877
3878static struct type *
3879mips_double_register_type (void)
3880{
8da61cc4 3881 return builtin_type_ieee_double;
67b2c998
DJ
3882}
3883
dd824b04
DJ
3884/* Copy a 32-bit single-precision value from the current frame
3885 into rare_buffer. */
3886
3887static void
e11c53d2 3888mips_read_fp_register_single (struct frame_info *frame, int regno,
47a35522 3889 gdb_byte *rare_buffer)
dd824b04 3890{
719ec221 3891 int raw_size = register_size (current_gdbarch, regno);
47a35522 3892 gdb_byte *raw_buffer = alloca (raw_size);
dd824b04 3893
e11c53d2 3894 if (!frame_register_read (frame, regno, raw_buffer))
8a3fe4f8 3895 error (_("can't read register %d (%s)"), regno, REGISTER_NAME (regno));
dd824b04
DJ
3896 if (raw_size == 8)
3897 {
3898 /* We have a 64-bit value for this register. Find the low-order
6d82d43b 3899 32 bits. */
dd824b04
DJ
3900 int offset;
3901
3902 if (TARGET_BYTE_ORDER == BFD_ENDIAN_BIG)
3903 offset = 4;
3904 else
3905 offset = 0;
3906
3907 memcpy (rare_buffer, raw_buffer + offset, 4);
3908 }
3909 else
3910 {
3911 memcpy (rare_buffer, raw_buffer, 4);
3912 }
3913}
3914
3915/* Copy a 64-bit double-precision value from the current frame into
3916 rare_buffer. This may include getting half of it from the next
3917 register. */
3918
3919static void
e11c53d2 3920mips_read_fp_register_double (struct frame_info *frame, int regno,
47a35522 3921 gdb_byte *rare_buffer)
dd824b04 3922{
719ec221 3923 int raw_size = register_size (current_gdbarch, regno);
dd824b04
DJ
3924
3925 if (raw_size == 8 && !mips2_fp_compat ())
3926 {
3927 /* We have a 64-bit value for this register, and we should use
6d82d43b 3928 all 64 bits. */
e11c53d2 3929 if (!frame_register_read (frame, regno, rare_buffer))
8a3fe4f8 3930 error (_("can't read register %d (%s)"), regno, REGISTER_NAME (regno));
dd824b04
DJ
3931 }
3932 else
3933 {
56cea623 3934 if ((regno - mips_regnum (current_gdbarch)->fp0) & 1)
dd824b04 3935 internal_error (__FILE__, __LINE__,
e2e0b3e5
AC
3936 _("mips_read_fp_register_double: bad access to "
3937 "odd-numbered FP register"));
dd824b04
DJ
3938
3939 /* mips_read_fp_register_single will find the correct 32 bits from
6d82d43b 3940 each register. */
dd824b04
DJ
3941 if (TARGET_BYTE_ORDER == BFD_ENDIAN_BIG)
3942 {
e11c53d2
AC
3943 mips_read_fp_register_single (frame, regno, rare_buffer + 4);
3944 mips_read_fp_register_single (frame, regno + 1, rare_buffer);
dd824b04 3945 }
361d1df0 3946 else
dd824b04 3947 {
e11c53d2
AC
3948 mips_read_fp_register_single (frame, regno, rare_buffer);
3949 mips_read_fp_register_single (frame, regno + 1, rare_buffer + 4);
dd824b04
DJ
3950 }
3951 }
3952}
3953
c906108c 3954static void
e11c53d2
AC
3955mips_print_fp_register (struct ui_file *file, struct frame_info *frame,
3956 int regnum)
c5aa993b 3957{ /* do values for FP (float) regs */
47a35522 3958 gdb_byte *raw_buffer;
3903d437
AC
3959 double doub, flt1; /* doubles extracted from raw hex data */
3960 int inv1, inv2;
c5aa993b 3961
47a35522
MK
3962 raw_buffer = alloca (2 * register_size (current_gdbarch,
3963 mips_regnum (current_gdbarch)->fp0));
c906108c 3964
e11c53d2
AC
3965 fprintf_filtered (file, "%s:", REGISTER_NAME (regnum));
3966 fprintf_filtered (file, "%*s", 4 - (int) strlen (REGISTER_NAME (regnum)),
3967 "");
f0ef6b29 3968
719ec221 3969 if (register_size (current_gdbarch, regnum) == 4 || mips2_fp_compat ())
c906108c 3970 {
f0ef6b29
KB
3971 /* 4-byte registers: Print hex and floating. Also print even
3972 numbered registers as doubles. */
e11c53d2 3973 mips_read_fp_register_single (frame, regnum, raw_buffer);
67b2c998 3974 flt1 = unpack_double (mips_float_register_type (), raw_buffer, &inv1);
c5aa993b 3975
6d82d43b
AC
3976 print_scalar_formatted (raw_buffer, builtin_type_uint32, 'x', 'w',
3977 file);
dd824b04 3978
e11c53d2 3979 fprintf_filtered (file, " flt: ");
1adad886 3980 if (inv1)
e11c53d2 3981 fprintf_filtered (file, " <invalid float> ");
1adad886 3982 else
e11c53d2 3983 fprintf_filtered (file, "%-17.9g", flt1);
1adad886 3984
f0ef6b29
KB
3985 if (regnum % 2 == 0)
3986 {
e11c53d2 3987 mips_read_fp_register_double (frame, regnum, raw_buffer);
f0ef6b29 3988 doub = unpack_double (mips_double_register_type (), raw_buffer,
6d82d43b 3989 &inv2);
1adad886 3990
e11c53d2 3991 fprintf_filtered (file, " dbl: ");
f0ef6b29 3992 if (inv2)
e11c53d2 3993 fprintf_filtered (file, "<invalid double>");
f0ef6b29 3994 else
e11c53d2 3995 fprintf_filtered (file, "%-24.17g", doub);
f0ef6b29 3996 }
c906108c
SS
3997 }
3998 else
dd824b04 3999 {
f0ef6b29 4000 /* Eight byte registers: print each one as hex, float and double. */
e11c53d2 4001 mips_read_fp_register_single (frame, regnum, raw_buffer);
2f38ef89 4002 flt1 = unpack_double (mips_float_register_type (), raw_buffer, &inv1);
c906108c 4003
e11c53d2 4004 mips_read_fp_register_double (frame, regnum, raw_buffer);
f0ef6b29
KB
4005 doub = unpack_double (mips_double_register_type (), raw_buffer, &inv2);
4006
361d1df0 4007
6d82d43b
AC
4008 print_scalar_formatted (raw_buffer, builtin_type_uint64, 'x', 'g',
4009 file);
f0ef6b29 4010
e11c53d2 4011 fprintf_filtered (file, " flt: ");
1adad886 4012 if (inv1)
e11c53d2 4013 fprintf_filtered (file, "<invalid float>");
1adad886 4014 else
e11c53d2 4015 fprintf_filtered (file, "%-17.9g", flt1);
1adad886 4016
e11c53d2 4017 fprintf_filtered (file, " dbl: ");
f0ef6b29 4018 if (inv2)
e11c53d2 4019 fprintf_filtered (file, "<invalid double>");
1adad886 4020 else
e11c53d2 4021 fprintf_filtered (file, "%-24.17g", doub);
f0ef6b29
KB
4022 }
4023}
4024
4025static void
e11c53d2
AC
4026mips_print_register (struct ui_file *file, struct frame_info *frame,
4027 int regnum, int all)
f0ef6b29 4028{
a4b8ebc8 4029 struct gdbarch *gdbarch = get_frame_arch (frame);
47a35522 4030 gdb_byte raw_buffer[MAX_REGISTER_SIZE];
f0ef6b29 4031 int offset;
1adad886 4032
7b9ee6a8 4033 if (TYPE_CODE (register_type (gdbarch, regnum)) == TYPE_CODE_FLT)
f0ef6b29 4034 {
e11c53d2 4035 mips_print_fp_register (file, frame, regnum);
f0ef6b29
KB
4036 return;
4037 }
4038
4039 /* Get the data in raw format. */
e11c53d2 4040 if (!frame_register_read (frame, regnum, raw_buffer))
f0ef6b29 4041 {
e11c53d2 4042 fprintf_filtered (file, "%s: [Invalid]", REGISTER_NAME (regnum));
f0ef6b29 4043 return;
c906108c 4044 }
f0ef6b29 4045
e11c53d2 4046 fputs_filtered (REGISTER_NAME (regnum), file);
f0ef6b29
KB
4047
4048 /* The problem with printing numeric register names (r26, etc.) is that
4049 the user can't use them on input. Probably the best solution is to
4050 fix it so that either the numeric or the funky (a2, etc.) names
4051 are accepted on input. */
4052 if (regnum < MIPS_NUMREGS)
e11c53d2 4053 fprintf_filtered (file, "(r%d): ", regnum);
f0ef6b29 4054 else
e11c53d2 4055 fprintf_filtered (file, ": ");
f0ef6b29
KB
4056
4057 if (TARGET_BYTE_ORDER == BFD_ENDIAN_BIG)
6d82d43b
AC
4058 offset =
4059 register_size (current_gdbarch,
4060 regnum) - register_size (current_gdbarch, regnum);
f0ef6b29
KB
4061 else
4062 offset = 0;
4063
6d82d43b 4064 print_scalar_formatted (raw_buffer + offset,
7b9ee6a8 4065 register_type (gdbarch, regnum), 'x', 0,
6d82d43b 4066 file);
c906108c
SS
4067}
4068
f0ef6b29
KB
4069/* Replacement for generic do_registers_info.
4070 Print regs in pretty columns. */
4071
4072static int
e11c53d2
AC
4073print_fp_register_row (struct ui_file *file, struct frame_info *frame,
4074 int regnum)
f0ef6b29 4075{
e11c53d2
AC
4076 fprintf_filtered (file, " ");
4077 mips_print_fp_register (file, frame, regnum);
4078 fprintf_filtered (file, "\n");
f0ef6b29
KB
4079 return regnum + 1;
4080}
4081
4082
c906108c
SS
4083/* Print a row's worth of GP (int) registers, with name labels above */
4084
4085static int
e11c53d2 4086print_gp_register_row (struct ui_file *file, struct frame_info *frame,
a4b8ebc8 4087 int start_regnum)
c906108c 4088{
a4b8ebc8 4089 struct gdbarch *gdbarch = get_frame_arch (frame);
c906108c 4090 /* do values for GP (int) regs */
47a35522 4091 gdb_byte raw_buffer[MAX_REGISTER_SIZE];
d5ac5a39 4092 int ncols = (mips_abi_regsize (gdbarch) == 8 ? 4 : 8); /* display cols per row */
c906108c 4093 int col, byte;
a4b8ebc8 4094 int regnum;
c906108c
SS
4095
4096 /* For GP registers, we print a separate row of names above the vals */
a4b8ebc8 4097 for (col = 0, regnum = start_regnum;
6d82d43b 4098 col < ncols && regnum < NUM_REGS + NUM_PSEUDO_REGS; regnum++)
c906108c
SS
4099 {
4100 if (*REGISTER_NAME (regnum) == '\0')
c5aa993b 4101 continue; /* unused register */
7b9ee6a8 4102 if (TYPE_CODE (register_type (gdbarch, regnum)) ==
6d82d43b 4103 TYPE_CODE_FLT)
c5aa993b 4104 break; /* end the row: reached FP register */
d05f6826
DJ
4105 if (col == 0)
4106 fprintf_filtered (file, " ");
6d82d43b 4107 fprintf_filtered (file,
d5ac5a39 4108 mips_abi_regsize (current_gdbarch) == 8 ? "%17s" : "%9s",
e11c53d2 4109 REGISTER_NAME (regnum));
c906108c
SS
4110 col++;
4111 }
d05f6826
DJ
4112
4113 if (col == 0)
4114 return regnum;
4115
a4b8ebc8 4116 /* print the R0 to R31 names */
20e6603c
AC
4117 if ((start_regnum % NUM_REGS) < MIPS_NUMREGS)
4118 fprintf_filtered (file, "\n R%-4d", start_regnum % NUM_REGS);
4119 else
4120 fprintf_filtered (file, "\n ");
c906108c 4121
c906108c 4122 /* now print the values in hex, 4 or 8 to the row */
a4b8ebc8 4123 for (col = 0, regnum = start_regnum;
6d82d43b 4124 col < ncols && regnum < NUM_REGS + NUM_PSEUDO_REGS; regnum++)
c906108c
SS
4125 {
4126 if (*REGISTER_NAME (regnum) == '\0')
c5aa993b 4127 continue; /* unused register */
7b9ee6a8 4128 if (TYPE_CODE (register_type (gdbarch, regnum)) ==
6d82d43b 4129 TYPE_CODE_FLT)
c5aa993b 4130 break; /* end row: reached FP register */
c906108c 4131 /* OK: get the data in raw format. */
e11c53d2 4132 if (!frame_register_read (frame, regnum, raw_buffer))
8a3fe4f8 4133 error (_("can't read register %d (%s)"), regnum, REGISTER_NAME (regnum));
c906108c 4134 /* pad small registers */
4246e332 4135 for (byte = 0;
d5ac5a39 4136 byte < (mips_abi_regsize (current_gdbarch)
6d82d43b 4137 - register_size (current_gdbarch, regnum)); byte++)
c906108c
SS
4138 printf_filtered (" ");
4139 /* Now print the register value in hex, endian order. */
d7449b42 4140 if (TARGET_BYTE_ORDER == BFD_ENDIAN_BIG)
6d82d43b
AC
4141 for (byte =
4142 register_size (current_gdbarch,
4143 regnum) - register_size (current_gdbarch, regnum);
4144 byte < register_size (current_gdbarch, regnum); byte++)
47a35522 4145 fprintf_filtered (file, "%02x", raw_buffer[byte]);
c906108c 4146 else
c73e8f27 4147 for (byte = register_size (current_gdbarch, regnum) - 1;
6d82d43b 4148 byte >= 0; byte--)
47a35522 4149 fprintf_filtered (file, "%02x", raw_buffer[byte]);
e11c53d2 4150 fprintf_filtered (file, " ");
c906108c
SS
4151 col++;
4152 }
c5aa993b 4153 if (col > 0) /* ie. if we actually printed anything... */
e11c53d2 4154 fprintf_filtered (file, "\n");
c906108c
SS
4155
4156 return regnum;
4157}
4158
4159/* MIPS_DO_REGISTERS_INFO(): called by "info register" command */
4160
bf1f5b4c 4161static void
e11c53d2
AC
4162mips_print_registers_info (struct gdbarch *gdbarch, struct ui_file *file,
4163 struct frame_info *frame, int regnum, int all)
c906108c 4164{
c5aa993b 4165 if (regnum != -1) /* do one specified register */
c906108c 4166 {
a4b8ebc8 4167 gdb_assert (regnum >= NUM_REGS);
c906108c 4168 if (*(REGISTER_NAME (regnum)) == '\0')
8a3fe4f8 4169 error (_("Not a valid register for the current processor type"));
c906108c 4170
e11c53d2
AC
4171 mips_print_register (file, frame, regnum, 0);
4172 fprintf_filtered (file, "\n");
c906108c 4173 }
c5aa993b
JM
4174 else
4175 /* do all (or most) registers */
c906108c 4176 {
a4b8ebc8
AC
4177 regnum = NUM_REGS;
4178 while (regnum < NUM_REGS + NUM_PSEUDO_REGS)
c906108c 4179 {
7b9ee6a8 4180 if (TYPE_CODE (register_type (gdbarch, regnum)) ==
6d82d43b 4181 TYPE_CODE_FLT)
e11c53d2
AC
4182 {
4183 if (all) /* true for "INFO ALL-REGISTERS" command */
4184 regnum = print_fp_register_row (file, frame, regnum);
4185 else
4186 regnum += MIPS_NUMREGS; /* skip floating point regs */
4187 }
c906108c 4188 else
e11c53d2 4189 regnum = print_gp_register_row (file, frame, regnum);
c906108c
SS
4190 }
4191 }
4192}
4193
c906108c
SS
4194/* Is this a branch with a delay slot? */
4195
c906108c 4196static int
acdb74a0 4197is_delayed (unsigned long insn)
c906108c
SS
4198{
4199 int i;
4200 for (i = 0; i < NUMOPCODES; ++i)
4201 if (mips_opcodes[i].pinfo != INSN_MACRO
4202 && (insn & mips_opcodes[i].mask) == mips_opcodes[i].match)
4203 break;
4204 return (i < NUMOPCODES
4205 && (mips_opcodes[i].pinfo & (INSN_UNCOND_BRANCH_DELAY
4206 | INSN_COND_BRANCH_DELAY
4207 | INSN_COND_BRANCH_LIKELY)));
4208}
4209
4210int
3352ef37
AC
4211mips_single_step_through_delay (struct gdbarch *gdbarch,
4212 struct frame_info *frame)
c906108c 4213{
3352ef37 4214 CORE_ADDR pc = get_frame_pc (frame);
47a35522 4215 gdb_byte buf[MIPS_INSN32_SIZE];
c906108c
SS
4216
4217 /* There is no branch delay slot on MIPS16. */
0fe7e7c8 4218 if (mips_pc_is_mips16 (pc))
c906108c
SS
4219 return 0;
4220
06648491
MK
4221 if (!breakpoint_here_p (pc + 4))
4222 return 0;
4223
3352ef37
AC
4224 if (!safe_frame_unwind_memory (frame, pc, buf, sizeof buf))
4225 /* If error reading memory, guess that it is not a delayed
4226 branch. */
c906108c 4227 return 0;
4c7d22cb 4228 return is_delayed (extract_unsigned_integer (buf, sizeof buf));
c906108c
SS
4229}
4230
6d82d43b
AC
4231/* To skip prologues, I use this predicate. Returns either PC itself
4232 if the code at PC does not look like a function prologue; otherwise
4233 returns an address that (if we're lucky) follows the prologue. If
4234 LENIENT, then we must skip everything which is involved in setting
4235 up the frame (it's OK to skip more, just so long as we don't skip
4236 anything which might clobber the registers which are being saved.
4237 We must skip more in the case where part of the prologue is in the
4238 delay slot of a non-prologue instruction). */
4239
4240static CORE_ADDR
4241mips_skip_prologue (CORE_ADDR pc)
4242{
8b622e6a
AC
4243 CORE_ADDR limit_pc;
4244 CORE_ADDR func_addr;
4245
6d82d43b
AC
4246 /* See if we can determine the end of the prologue via the symbol table.
4247 If so, then return either PC, or the PC after the prologue, whichever
4248 is greater. */
8b622e6a
AC
4249 if (find_pc_partial_function (pc, NULL, &func_addr, NULL))
4250 {
4251 CORE_ADDR post_prologue_pc = skip_prologue_using_sal (func_addr);
4252 if (post_prologue_pc != 0)
4253 return max (pc, post_prologue_pc);
4254 }
6d82d43b
AC
4255
4256 /* Can't determine prologue from the symbol table, need to examine
4257 instructions. */
4258
98b4dd94
JB
4259 /* Find an upper limit on the function prologue using the debug
4260 information. If the debug information could not be used to provide
4261 that bound, then use an arbitrary large number as the upper bound. */
4262 limit_pc = skip_prologue_using_sal (pc);
4263 if (limit_pc == 0)
4264 limit_pc = pc + 100; /* Magic. */
4265
0fe7e7c8 4266 if (mips_pc_is_mips16 (pc))
a65bbe44 4267 return mips16_scan_prologue (pc, limit_pc, NULL, NULL);
6d82d43b 4268 else
a65bbe44 4269 return mips32_scan_prologue (pc, limit_pc, NULL, NULL);
88658117
AC
4270}
4271
a5ea2558
AC
4272/* Root of all "set mips "/"show mips " commands. This will eventually be
4273 used for all MIPS-specific commands. */
4274
a5ea2558 4275static void
acdb74a0 4276show_mips_command (char *args, int from_tty)
a5ea2558
AC
4277{
4278 help_list (showmipscmdlist, "show mips ", all_commands, gdb_stdout);
4279}
4280
a5ea2558 4281static void
acdb74a0 4282set_mips_command (char *args, int from_tty)
a5ea2558 4283{
6d82d43b
AC
4284 printf_unfiltered
4285 ("\"set mips\" must be followed by an appropriate subcommand.\n");
a5ea2558
AC
4286 help_list (setmipscmdlist, "set mips ", all_commands, gdb_stdout);
4287}
4288
c906108c
SS
4289/* Commands to show/set the MIPS FPU type. */
4290
c906108c 4291static void
acdb74a0 4292show_mipsfpu_command (char *args, int from_tty)
c906108c 4293{
c906108c
SS
4294 char *fpu;
4295 switch (MIPS_FPU_TYPE)
4296 {
4297 case MIPS_FPU_SINGLE:
4298 fpu = "single-precision";
4299 break;
4300 case MIPS_FPU_DOUBLE:
4301 fpu = "double-precision";
4302 break;
4303 case MIPS_FPU_NONE:
4304 fpu = "absent (none)";
4305 break;
93d56215 4306 default:
e2e0b3e5 4307 internal_error (__FILE__, __LINE__, _("bad switch"));
c906108c
SS
4308 }
4309 if (mips_fpu_type_auto)
6d82d43b
AC
4310 printf_unfiltered
4311 ("The MIPS floating-point coprocessor is set automatically (currently %s)\n",
4312 fpu);
c906108c 4313 else
6d82d43b
AC
4314 printf_unfiltered
4315 ("The MIPS floating-point coprocessor is assumed to be %s\n", fpu);
c906108c
SS
4316}
4317
4318
c906108c 4319static void
acdb74a0 4320set_mipsfpu_command (char *args, int from_tty)
c906108c 4321{
6d82d43b
AC
4322 printf_unfiltered
4323 ("\"set mipsfpu\" must be followed by \"double\", \"single\",\"none\" or \"auto\".\n");
c906108c
SS
4324 show_mipsfpu_command (args, from_tty);
4325}
4326
c906108c 4327static void
acdb74a0 4328set_mipsfpu_single_command (char *args, int from_tty)
c906108c 4329{
8d5838b5
AC
4330 struct gdbarch_info info;
4331 gdbarch_info_init (&info);
c906108c
SS
4332 mips_fpu_type = MIPS_FPU_SINGLE;
4333 mips_fpu_type_auto = 0;
8d5838b5
AC
4334 /* FIXME: cagney/2003-11-15: Should be setting a field in "info"
4335 instead of relying on globals. Doing that would let generic code
4336 handle the search for this specific architecture. */
4337 if (!gdbarch_update_p (info))
e2e0b3e5 4338 internal_error (__FILE__, __LINE__, _("set mipsfpu failed"));
c906108c
SS
4339}
4340
c906108c 4341static void
acdb74a0 4342set_mipsfpu_double_command (char *args, int from_tty)
c906108c 4343{
8d5838b5
AC
4344 struct gdbarch_info info;
4345 gdbarch_info_init (&info);
c906108c
SS
4346 mips_fpu_type = MIPS_FPU_DOUBLE;
4347 mips_fpu_type_auto = 0;
8d5838b5
AC
4348 /* FIXME: cagney/2003-11-15: Should be setting a field in "info"
4349 instead of relying on globals. Doing that would let generic code
4350 handle the search for this specific architecture. */
4351 if (!gdbarch_update_p (info))
e2e0b3e5 4352 internal_error (__FILE__, __LINE__, _("set mipsfpu failed"));
c906108c
SS
4353}
4354
c906108c 4355static void
acdb74a0 4356set_mipsfpu_none_command (char *args, int from_tty)
c906108c 4357{
8d5838b5
AC
4358 struct gdbarch_info info;
4359 gdbarch_info_init (&info);
c906108c
SS
4360 mips_fpu_type = MIPS_FPU_NONE;
4361 mips_fpu_type_auto = 0;
8d5838b5
AC
4362 /* FIXME: cagney/2003-11-15: Should be setting a field in "info"
4363 instead of relying on globals. Doing that would let generic code
4364 handle the search for this specific architecture. */
4365 if (!gdbarch_update_p (info))
e2e0b3e5 4366 internal_error (__FILE__, __LINE__, _("set mipsfpu failed"));
c906108c
SS
4367}
4368
c906108c 4369static void
acdb74a0 4370set_mipsfpu_auto_command (char *args, int from_tty)
c906108c
SS
4371{
4372 mips_fpu_type_auto = 1;
4373}
4374
c906108c 4375/* Attempt to identify the particular processor model by reading the
691c0433
AC
4376 processor id. NOTE: cagney/2003-11-15: Firstly it isn't clear that
4377 the relevant processor still exists (it dates back to '94) and
4378 secondly this is not the way to do this. The processor type should
4379 be set by forcing an architecture change. */
c906108c 4380
691c0433
AC
4381void
4382deprecated_mips_set_processor_regs_hack (void)
c906108c 4383{
691c0433 4384 struct gdbarch_tdep *tdep = gdbarch_tdep (current_gdbarch);
c906108c
SS
4385 CORE_ADDR prid;
4386
a5c9623c 4387 prid = read_register (MIPS_PRID_REGNUM);
c906108c
SS
4388
4389 if ((prid & ~0xf) == 0x700)
691c0433 4390 tdep->mips_processor_reg_names = mips_r3041_reg_names;
c906108c
SS
4391}
4392
4393/* Just like reinit_frame_cache, but with the right arguments to be
4394 callable as an sfunc. */
4395
4396static void
acdb74a0
AC
4397reinit_frame_cache_sfunc (char *args, int from_tty,
4398 struct cmd_list_element *c)
c906108c
SS
4399{
4400 reinit_frame_cache ();
4401}
4402
a89aa300
AC
4403static int
4404gdb_print_insn_mips (bfd_vma memaddr, struct disassemble_info *info)
c906108c 4405{
e5ab0dce 4406 struct gdbarch_tdep *tdep = gdbarch_tdep (current_gdbarch);
c906108c 4407
d31431ed
AC
4408 /* FIXME: cagney/2003-06-26: Is this even necessary? The
4409 disassembler needs to be able to locally determine the ISA, and
4410 not rely on GDB. Otherwize the stand-alone 'objdump -d' will not
4411 work. */
ec4045ea
AC
4412 if (mips_pc_is_mips16 (memaddr))
4413 info->mach = bfd_mach_mips16;
c906108c
SS
4414
4415 /* Round down the instruction address to the appropriate boundary. */
65c11066 4416 memaddr &= (info->mach == bfd_mach_mips16 ? ~1 : ~3);
c5aa993b 4417
e5ab0dce 4418 /* Set the disassembler options. */
6d82d43b 4419 if (tdep->mips_abi == MIPS_ABI_N32 || tdep->mips_abi == MIPS_ABI_N64)
e5ab0dce
AC
4420 {
4421 /* Set up the disassembler info, so that we get the right
6d82d43b 4422 register names from libopcodes. */
e5ab0dce
AC
4423 if (tdep->mips_abi == MIPS_ABI_N32)
4424 info->disassembler_options = "gpr-names=n32";
4425 else
4426 info->disassembler_options = "gpr-names=64";
4427 info->flavour = bfd_target_elf_flavour;
4428 }
4429 else
4430 /* This string is not recognized explicitly by the disassembler,
4431 but it tells the disassembler to not try to guess the ABI from
4432 the bfd elf headers, such that, if the user overrides the ABI
4433 of a program linked as NewABI, the disassembly will follow the
4434 register naming conventions specified by the user. */
4435 info->disassembler_options = "gpr-names=32";
4436
c906108c 4437 /* Call the appropriate disassembler based on the target endian-ness. */
d7449b42 4438 if (TARGET_BYTE_ORDER == BFD_ENDIAN_BIG)
c906108c
SS
4439 return print_insn_big_mips (memaddr, info);
4440 else
4441 return print_insn_little_mips (memaddr, info);
4442}
4443
c906108c
SS
4444/* This function implements the BREAKPOINT_FROM_PC macro. It uses the program
4445 counter value to determine whether a 16- or 32-bit breakpoint should be
4446 used. It returns a pointer to a string of bytes that encode a breakpoint
4447 instruction, stores the length of the string to *lenptr, and adjusts pc
4448 (if necessary) to point to the actual memory location where the
4449 breakpoint should be inserted. */
4450
47a35522 4451static const gdb_byte *
6d82d43b 4452mips_breakpoint_from_pc (CORE_ADDR *pcptr, int *lenptr)
c906108c 4453{
d7449b42 4454 if (TARGET_BYTE_ORDER == BFD_ENDIAN_BIG)
c906108c 4455 {
0fe7e7c8 4456 if (mips_pc_is_mips16 (*pcptr))
c906108c 4457 {
47a35522 4458 static gdb_byte mips16_big_breakpoint[] = { 0xe8, 0xa5 };
95404a3e 4459 *pcptr = unmake_mips16_addr (*pcptr);
c5aa993b 4460 *lenptr = sizeof (mips16_big_breakpoint);
c906108c
SS
4461 return mips16_big_breakpoint;
4462 }
4463 else
4464 {
aaab4dba
AC
4465 /* The IDT board uses an unusual breakpoint value, and
4466 sometimes gets confused when it sees the usual MIPS
4467 breakpoint instruction. */
47a35522
MK
4468 static gdb_byte big_breakpoint[] = { 0, 0x5, 0, 0xd };
4469 static gdb_byte pmon_big_breakpoint[] = { 0, 0, 0, 0xd };
4470 static gdb_byte idt_big_breakpoint[] = { 0, 0, 0x0a, 0xd };
c906108c 4471
c5aa993b 4472 *lenptr = sizeof (big_breakpoint);
c906108c
SS
4473
4474 if (strcmp (target_shortname, "mips") == 0)
4475 return idt_big_breakpoint;
4476 else if (strcmp (target_shortname, "ddb") == 0
4477 || strcmp (target_shortname, "pmon") == 0
4478 || strcmp (target_shortname, "lsi") == 0)
4479 return pmon_big_breakpoint;
4480 else
4481 return big_breakpoint;
4482 }
4483 }
4484 else
4485 {
0fe7e7c8 4486 if (mips_pc_is_mips16 (*pcptr))
c906108c 4487 {
47a35522 4488 static gdb_byte mips16_little_breakpoint[] = { 0xa5, 0xe8 };
95404a3e 4489 *pcptr = unmake_mips16_addr (*pcptr);
c5aa993b 4490 *lenptr = sizeof (mips16_little_breakpoint);
c906108c
SS
4491 return mips16_little_breakpoint;
4492 }
4493 else
4494 {
47a35522
MK
4495 static gdb_byte little_breakpoint[] = { 0xd, 0, 0x5, 0 };
4496 static gdb_byte pmon_little_breakpoint[] = { 0xd, 0, 0, 0 };
4497 static gdb_byte idt_little_breakpoint[] = { 0xd, 0x0a, 0, 0 };
c906108c 4498
c5aa993b 4499 *lenptr = sizeof (little_breakpoint);
c906108c
SS
4500
4501 if (strcmp (target_shortname, "mips") == 0)
4502 return idt_little_breakpoint;
4503 else if (strcmp (target_shortname, "ddb") == 0
4504 || strcmp (target_shortname, "pmon") == 0
4505 || strcmp (target_shortname, "lsi") == 0)
4506 return pmon_little_breakpoint;
4507 else
4508 return little_breakpoint;
4509 }
4510 }
4511}
4512
4513/* If PC is in a mips16 call or return stub, return the address of the target
4514 PC, which is either the callee or the caller. There are several
4515 cases which must be handled:
4516
4517 * If the PC is in __mips16_ret_{d,s}f, this is a return stub and the
c5aa993b 4518 target PC is in $31 ($ra).
c906108c 4519 * If the PC is in __mips16_call_stub_{1..10}, this is a call stub
c5aa993b 4520 and the target PC is in $2.
c906108c 4521 * If the PC at the start of __mips16_call_stub_{s,d}f_{0..10}, i.e.
c5aa993b
JM
4522 before the jal instruction, this is effectively a call stub
4523 and the the target PC is in $2. Otherwise this is effectively
4524 a return stub and the target PC is in $18.
c906108c
SS
4525
4526 See the source code for the stubs in gcc/config/mips/mips16.S for
e7d6a6d2 4527 gory details. */
c906108c 4528
757a7cc6 4529static CORE_ADDR
e7d6a6d2 4530mips_skip_trampoline_code (CORE_ADDR pc)
c906108c
SS
4531{
4532 char *name;
4533 CORE_ADDR start_addr;
4534
4535 /* Find the starting address and name of the function containing the PC. */
4536 if (find_pc_partial_function (pc, &name, &start_addr, NULL) == 0)
4537 return 0;
4538
4539 /* If the PC is in __mips16_ret_{d,s}f, this is a return stub and the
4540 target PC is in $31 ($ra). */
4541 if (strcmp (name, "__mips16_ret_sf") == 0
4542 || strcmp (name, "__mips16_ret_df") == 0)
4c7d22cb 4543 return read_signed_register (MIPS_RA_REGNUM);
c906108c
SS
4544
4545 if (strncmp (name, "__mips16_call_stub_", 19) == 0)
4546 {
4547 /* If the PC is in __mips16_call_stub_{1..10}, this is a call stub
4548 and the target PC is in $2. */
4549 if (name[19] >= '0' && name[19] <= '9')
6c997a34 4550 return read_signed_register (2);
c906108c
SS
4551
4552 /* If the PC at the start of __mips16_call_stub_{s,d}f_{0..10}, i.e.
c5aa993b
JM
4553 before the jal instruction, this is effectively a call stub
4554 and the the target PC is in $2. Otherwise this is effectively
4555 a return stub and the target PC is in $18. */
c906108c
SS
4556 else if (name[19] == 's' || name[19] == 'd')
4557 {
4558 if (pc == start_addr)
4559 {
4560 /* Check if the target of the stub is a compiler-generated
c5aa993b
JM
4561 stub. Such a stub for a function bar might have a name
4562 like __fn_stub_bar, and might look like this:
4563 mfc1 $4,$f13
4564 mfc1 $5,$f12
4565 mfc1 $6,$f15
4566 mfc1 $7,$f14
4567 la $1,bar (becomes a lui/addiu pair)
4568 jr $1
4569 So scan down to the lui/addi and extract the target
4570 address from those two instructions. */
c906108c 4571
6c997a34 4572 CORE_ADDR target_pc = read_signed_register (2);
d37cca3d 4573 ULONGEST inst;
c906108c
SS
4574 int i;
4575
4576 /* See if the name of the target function is __fn_stub_*. */
6d82d43b
AC
4577 if (find_pc_partial_function (target_pc, &name, NULL, NULL) ==
4578 0)
c906108c
SS
4579 return target_pc;
4580 if (strncmp (name, "__fn_stub_", 10) != 0
4581 && strcmp (name, "etext") != 0
4582 && strcmp (name, "_etext") != 0)
4583 return target_pc;
4584
4585 /* Scan through this _fn_stub_ code for the lui/addiu pair.
c5aa993b
JM
4586 The limit on the search is arbitrarily set to 20
4587 instructions. FIXME. */
95ac2dcf 4588 for (i = 0, pc = 0; i < 20; i++, target_pc += MIPS_INSN32_SIZE)
c906108c 4589 {
c5aa993b
JM
4590 inst = mips_fetch_instruction (target_pc);
4591 if ((inst & 0xffff0000) == 0x3c010000) /* lui $at */
4592 pc = (inst << 16) & 0xffff0000; /* high word */
4593 else if ((inst & 0xffff0000) == 0x24210000) /* addiu $at */
4594 return pc | (inst & 0xffff); /* low word */
c906108c
SS
4595 }
4596
4597 /* Couldn't find the lui/addui pair, so return stub address. */
4598 return target_pc;
4599 }
4600 else
4601 /* This is the 'return' part of a call stub. The return
4602 address is in $r18. */
6c997a34 4603 return read_signed_register (18);
c906108c
SS
4604 }
4605 }
c5aa993b 4606 return 0; /* not a stub */
c906108c
SS
4607}
4608
a4b8ebc8
AC
4609/* Convert a dbx stab register number (from `r' declaration) to a GDB
4610 [1 * NUM_REGS .. 2 * NUM_REGS) REGNUM. */
88c72b7d
AC
4611
4612static int
4613mips_stab_reg_to_regnum (int num)
4614{
a4b8ebc8 4615 int regnum;
2f38ef89 4616 if (num >= 0 && num < 32)
a4b8ebc8 4617 regnum = num;
2f38ef89 4618 else if (num >= 38 && num < 70)
56cea623 4619 regnum = num + mips_regnum (current_gdbarch)->fp0 - 38;
040b99fd 4620 else if (num == 70)
56cea623 4621 regnum = mips_regnum (current_gdbarch)->hi;
040b99fd 4622 else if (num == 71)
56cea623 4623 regnum = mips_regnum (current_gdbarch)->lo;
2f38ef89 4624 else
a4b8ebc8
AC
4625 /* This will hopefully (eventually) provoke a warning. Should
4626 we be calling complaint() here? */
4627 return NUM_REGS + NUM_PSEUDO_REGS;
4628 return NUM_REGS + regnum;
88c72b7d
AC
4629}
4630
2f38ef89 4631
a4b8ebc8
AC
4632/* Convert a dwarf, dwarf2, or ecoff register number to a GDB [1 *
4633 NUM_REGS .. 2 * NUM_REGS) REGNUM. */
88c72b7d
AC
4634
4635static int
2f38ef89 4636mips_dwarf_dwarf2_ecoff_reg_to_regnum (int num)
88c72b7d 4637{
a4b8ebc8 4638 int regnum;
2f38ef89 4639 if (num >= 0 && num < 32)
a4b8ebc8 4640 regnum = num;
2f38ef89 4641 else if (num >= 32 && num < 64)
56cea623 4642 regnum = num + mips_regnum (current_gdbarch)->fp0 - 32;
040b99fd 4643 else if (num == 64)
56cea623 4644 regnum = mips_regnum (current_gdbarch)->hi;
040b99fd 4645 else if (num == 65)
56cea623 4646 regnum = mips_regnum (current_gdbarch)->lo;
2f38ef89 4647 else
a4b8ebc8
AC
4648 /* This will hopefully (eventually) provoke a warning. Should we
4649 be calling complaint() here? */
4650 return NUM_REGS + NUM_PSEUDO_REGS;
4651 return NUM_REGS + regnum;
4652}
4653
4654static int
4655mips_register_sim_regno (int regnum)
4656{
4657 /* Only makes sense to supply raw registers. */
4658 gdb_assert (regnum >= 0 && regnum < NUM_REGS);
4659 /* FIXME: cagney/2002-05-13: Need to look at the pseudo register to
4660 decide if it is valid. Should instead define a standard sim/gdb
4661 register numbering scheme. */
4662 if (REGISTER_NAME (NUM_REGS + regnum) != NULL
4663 && REGISTER_NAME (NUM_REGS + regnum)[0] != '\0')
4664 return regnum;
4665 else
6d82d43b 4666 return LEGACY_SIM_REGNO_IGNORE;
88c72b7d
AC
4667}
4668
2f38ef89 4669
4844f454
CV
4670/* Convert an integer into an address. Extracting the value signed
4671 guarantees a correctly sign extended address. */
fc0c74b1
AC
4672
4673static CORE_ADDR
79dd2d24 4674mips_integer_to_address (struct gdbarch *gdbarch,
870cd05e 4675 struct type *type, const gdb_byte *buf)
fc0c74b1 4676{
4844f454 4677 return (CORE_ADDR) extract_signed_integer (buf, TYPE_LENGTH (type));
fc0c74b1
AC
4678}
4679
caaa3122
DJ
4680static void
4681mips_find_abi_section (bfd *abfd, asection *sect, void *obj)
4682{
4683 enum mips_abi *abip = (enum mips_abi *) obj;
4684 const char *name = bfd_get_section_name (abfd, sect);
4685
4686 if (*abip != MIPS_ABI_UNKNOWN)
4687 return;
4688
4689 if (strncmp (name, ".mdebug.", 8) != 0)
4690 return;
4691
4692 if (strcmp (name, ".mdebug.abi32") == 0)
4693 *abip = MIPS_ABI_O32;
4694 else if (strcmp (name, ".mdebug.abiN32") == 0)
4695 *abip = MIPS_ABI_N32;
62a49b2c 4696 else if (strcmp (name, ".mdebug.abi64") == 0)
e3bddbfa 4697 *abip = MIPS_ABI_N64;
caaa3122
DJ
4698 else if (strcmp (name, ".mdebug.abiO64") == 0)
4699 *abip = MIPS_ABI_O64;
4700 else if (strcmp (name, ".mdebug.eabi32") == 0)
4701 *abip = MIPS_ABI_EABI32;
4702 else if (strcmp (name, ".mdebug.eabi64") == 0)
4703 *abip = MIPS_ABI_EABI64;
4704 else
8a3fe4f8 4705 warning (_("unsupported ABI %s."), name + 8);
caaa3122
DJ
4706}
4707
22e47e37
FF
4708static void
4709mips_find_long_section (bfd *abfd, asection *sect, void *obj)
4710{
4711 int *lbp = (int *) obj;
4712 const char *name = bfd_get_section_name (abfd, sect);
4713
4714 if (strncmp (name, ".gcc_compiled_long32", 20) == 0)
4715 *lbp = 32;
4716 else if (strncmp (name, ".gcc_compiled_long64", 20) == 0)
4717 *lbp = 64;
4718 else if (strncmp (name, ".gcc_compiled_long", 18) == 0)
4719 warning (_("unrecognized .gcc_compiled_longXX"));
4720}
4721
2e4ebe70
DJ
4722static enum mips_abi
4723global_mips_abi (void)
4724{
4725 int i;
4726
4727 for (i = 0; mips_abi_strings[i] != NULL; i++)
4728 if (mips_abi_strings[i] == mips_abi_string)
4729 return (enum mips_abi) i;
4730
e2e0b3e5 4731 internal_error (__FILE__, __LINE__, _("unknown ABI string"));
2e4ebe70
DJ
4732}
4733
29709017
DJ
4734static void
4735mips_register_g_packet_guesses (struct gdbarch *gdbarch)
4736{
4737 static struct target_desc *tdesc_gp32, *tdesc_gp64;
4738
4739 if (tdesc_gp32 == NULL)
4740 {
4741 /* Create feature sets with the appropriate properties. The values
4742 are not important. */
4743
4744 tdesc_gp32 = allocate_target_description ();
4745 set_tdesc_property (tdesc_gp32, PROPERTY_GP32, "");
4746
4747 tdesc_gp64 = allocate_target_description ();
4748 set_tdesc_property (tdesc_gp64, PROPERTY_GP64, "");
4749 }
4750
4751 /* If the size matches the set of 32-bit or 64-bit integer registers,
4752 assume that's what we've got. */
4753 register_remote_g_packet_guess (gdbarch, 38 * 4, tdesc_gp32);
4754 register_remote_g_packet_guess (gdbarch, 38 * 8, tdesc_gp64);
4755
4756 /* If the size matches the full set of registers GDB traditionally
4757 knows about, including floating point, for either 32-bit or
4758 64-bit, assume that's what we've got. */
4759 register_remote_g_packet_guess (gdbarch, 90 * 4, tdesc_gp32);
4760 register_remote_g_packet_guess (gdbarch, 90 * 8, tdesc_gp64);
4761
4762 /* Otherwise we don't have a useful guess. */
4763}
4764
c2d11a7d 4765static struct gdbarch *
6d82d43b 4766mips_gdbarch_init (struct gdbarch_info info, struct gdbarch_list *arches)
c2d11a7d 4767{
c2d11a7d
JM
4768 struct gdbarch *gdbarch;
4769 struct gdbarch_tdep *tdep;
4770 int elf_flags;
2e4ebe70 4771 enum mips_abi mips_abi, found_abi, wanted_abi;
a4b8ebc8 4772 int num_regs;
8d5838b5 4773 enum mips_fpu_type fpu_type;
c2d11a7d 4774
ec03c1ac
AC
4775 /* First of all, extract the elf_flags, if available. */
4776 if (info.abfd && bfd_get_flavour (info.abfd) == bfd_target_elf_flavour)
4777 elf_flags = elf_elfheader (info.abfd)->e_flags;
6214a8a1
AC
4778 else if (arches != NULL)
4779 elf_flags = gdbarch_tdep (arches->gdbarch)->elf_flags;
ec03c1ac
AC
4780 else
4781 elf_flags = 0;
4782 if (gdbarch_debug)
4783 fprintf_unfiltered (gdb_stdlog,
6d82d43b 4784 "mips_gdbarch_init: elf_flags = 0x%08x\n", elf_flags);
c2d11a7d 4785
102182a9 4786 /* Check ELF_FLAGS to see if it specifies the ABI being used. */
0dadbba0
AC
4787 switch ((elf_flags & EF_MIPS_ABI))
4788 {
4789 case E_MIPS_ABI_O32:
ec03c1ac 4790 found_abi = MIPS_ABI_O32;
0dadbba0
AC
4791 break;
4792 case E_MIPS_ABI_O64:
ec03c1ac 4793 found_abi = MIPS_ABI_O64;
0dadbba0
AC
4794 break;
4795 case E_MIPS_ABI_EABI32:
ec03c1ac 4796 found_abi = MIPS_ABI_EABI32;
0dadbba0
AC
4797 break;
4798 case E_MIPS_ABI_EABI64:
ec03c1ac 4799 found_abi = MIPS_ABI_EABI64;
0dadbba0
AC
4800 break;
4801 default:
acdb74a0 4802 if ((elf_flags & EF_MIPS_ABI2))
ec03c1ac 4803 found_abi = MIPS_ABI_N32;
acdb74a0 4804 else
ec03c1ac 4805 found_abi = MIPS_ABI_UNKNOWN;
0dadbba0
AC
4806 break;
4807 }
acdb74a0 4808
caaa3122 4809 /* GCC creates a pseudo-section whose name describes the ABI. */
ec03c1ac
AC
4810 if (found_abi == MIPS_ABI_UNKNOWN && info.abfd != NULL)
4811 bfd_map_over_sections (info.abfd, mips_find_abi_section, &found_abi);
caaa3122 4812
dc305454 4813 /* If we have no useful BFD information, use the ABI from the last
ec03c1ac
AC
4814 MIPS architecture (if there is one). */
4815 if (found_abi == MIPS_ABI_UNKNOWN && info.abfd == NULL && arches != NULL)
4816 found_abi = gdbarch_tdep (arches->gdbarch)->found_abi;
2e4ebe70 4817
32a6503c 4818 /* Try the architecture for any hint of the correct ABI. */
ec03c1ac 4819 if (found_abi == MIPS_ABI_UNKNOWN
bf64bfd6
AC
4820 && info.bfd_arch_info != NULL
4821 && info.bfd_arch_info->arch == bfd_arch_mips)
4822 {
4823 switch (info.bfd_arch_info->mach)
4824 {
4825 case bfd_mach_mips3900:
ec03c1ac 4826 found_abi = MIPS_ABI_EABI32;
bf64bfd6
AC
4827 break;
4828 case bfd_mach_mips4100:
4829 case bfd_mach_mips5000:
ec03c1ac 4830 found_abi = MIPS_ABI_EABI64;
bf64bfd6 4831 break;
1d06468c
EZ
4832 case bfd_mach_mips8000:
4833 case bfd_mach_mips10000:
32a6503c
KB
4834 /* On Irix, ELF64 executables use the N64 ABI. The
4835 pseudo-sections which describe the ABI aren't present
4836 on IRIX. (Even for executables created by gcc.) */
28d169de
KB
4837 if (bfd_get_flavour (info.abfd) == bfd_target_elf_flavour
4838 && elf_elfheader (info.abfd)->e_ident[EI_CLASS] == ELFCLASS64)
ec03c1ac 4839 found_abi = MIPS_ABI_N64;
28d169de 4840 else
ec03c1ac 4841 found_abi = MIPS_ABI_N32;
1d06468c 4842 break;
bf64bfd6
AC
4843 }
4844 }
2e4ebe70 4845
26c53e50
DJ
4846 /* Default 64-bit objects to N64 instead of O32. */
4847 if (found_abi == MIPS_ABI_UNKNOWN
4848 && info.abfd != NULL
4849 && bfd_get_flavour (info.abfd) == bfd_target_elf_flavour
4850 && elf_elfheader (info.abfd)->e_ident[EI_CLASS] == ELFCLASS64)
4851 found_abi = MIPS_ABI_N64;
4852
ec03c1ac
AC
4853 if (gdbarch_debug)
4854 fprintf_unfiltered (gdb_stdlog, "mips_gdbarch_init: found_abi = %d\n",
4855 found_abi);
4856
4857 /* What has the user specified from the command line? */
4858 wanted_abi = global_mips_abi ();
4859 if (gdbarch_debug)
4860 fprintf_unfiltered (gdb_stdlog, "mips_gdbarch_init: wanted_abi = %d\n",
4861 wanted_abi);
2e4ebe70
DJ
4862
4863 /* Now that we have found what the ABI for this binary would be,
4864 check whether the user is overriding it. */
2e4ebe70
DJ
4865 if (wanted_abi != MIPS_ABI_UNKNOWN)
4866 mips_abi = wanted_abi;
ec03c1ac
AC
4867 else if (found_abi != MIPS_ABI_UNKNOWN)
4868 mips_abi = found_abi;
4869 else
4870 mips_abi = MIPS_ABI_O32;
4871 if (gdbarch_debug)
4872 fprintf_unfiltered (gdb_stdlog, "mips_gdbarch_init: mips_abi = %d\n",
4873 mips_abi);
2e4ebe70 4874
ec03c1ac 4875 /* Also used when doing an architecture lookup. */
4b9b3959 4876 if (gdbarch_debug)
ec03c1ac
AC
4877 fprintf_unfiltered (gdb_stdlog,
4878 "mips_gdbarch_init: mips64_transfers_32bit_regs_p = %d\n",
4879 mips64_transfers_32bit_regs_p);
0dadbba0 4880
8d5838b5
AC
4881 /* Determine the MIPS FPU type. */
4882 if (!mips_fpu_type_auto)
4883 fpu_type = mips_fpu_type;
4884 else if (info.bfd_arch_info != NULL
4885 && info.bfd_arch_info->arch == bfd_arch_mips)
4886 switch (info.bfd_arch_info->mach)
4887 {
4888 case bfd_mach_mips3900:
4889 case bfd_mach_mips4100:
4890 case bfd_mach_mips4111:
a9d61c86 4891 case bfd_mach_mips4120:
8d5838b5
AC
4892 fpu_type = MIPS_FPU_NONE;
4893 break;
4894 case bfd_mach_mips4650:
4895 fpu_type = MIPS_FPU_SINGLE;
4896 break;
4897 default:
4898 fpu_type = MIPS_FPU_DOUBLE;
4899 break;
4900 }
4901 else if (arches != NULL)
4902 fpu_type = gdbarch_tdep (arches->gdbarch)->mips_fpu_type;
4903 else
4904 fpu_type = MIPS_FPU_DOUBLE;
4905 if (gdbarch_debug)
4906 fprintf_unfiltered (gdb_stdlog,
6d82d43b 4907 "mips_gdbarch_init: fpu_type = %d\n", fpu_type);
8d5838b5 4908
29709017
DJ
4909 /* Check for blatant incompatibilities. */
4910
4911 /* If we have only 32-bit registers, then we can't debug a 64-bit
4912 ABI. */
4913 if (info.target_desc
4914 && tdesc_property (info.target_desc, PROPERTY_GP32) != NULL
4915 && mips_abi != MIPS_ABI_EABI32
4916 && mips_abi != MIPS_ABI_O32)
4917 return NULL;
4918
c2d11a7d
JM
4919 /* try to find a pre-existing architecture */
4920 for (arches = gdbarch_list_lookup_by_info (arches, &info);
4921 arches != NULL;
4922 arches = gdbarch_list_lookup_by_info (arches->next, &info))
4923 {
4924 /* MIPS needs to be pedantic about which ABI the object is
102182a9 4925 using. */
9103eae0 4926 if (gdbarch_tdep (arches->gdbarch)->elf_flags != elf_flags)
c2d11a7d 4927 continue;
9103eae0 4928 if (gdbarch_tdep (arches->gdbarch)->mips_abi != mips_abi)
0dadbba0 4929 continue;
719ec221
AC
4930 /* Need to be pedantic about which register virtual size is
4931 used. */
4932 if (gdbarch_tdep (arches->gdbarch)->mips64_transfers_32bit_regs_p
4933 != mips64_transfers_32bit_regs_p)
4934 continue;
8d5838b5
AC
4935 /* Be pedantic about which FPU is selected. */
4936 if (gdbarch_tdep (arches->gdbarch)->mips_fpu_type != fpu_type)
4937 continue;
4be87837 4938 return arches->gdbarch;
c2d11a7d
JM
4939 }
4940
102182a9 4941 /* Need a new architecture. Fill in a target specific vector. */
c2d11a7d
JM
4942 tdep = (struct gdbarch_tdep *) xmalloc (sizeof (struct gdbarch_tdep));
4943 gdbarch = gdbarch_alloc (&info, tdep);
4944 tdep->elf_flags = elf_flags;
719ec221 4945 tdep->mips64_transfers_32bit_regs_p = mips64_transfers_32bit_regs_p;
ec03c1ac
AC
4946 tdep->found_abi = found_abi;
4947 tdep->mips_abi = mips_abi;
8d5838b5 4948 tdep->mips_fpu_type = fpu_type;
29709017
DJ
4949 tdep->register_size_valid_p = 0;
4950 tdep->register_size = 0;
4951
4952 if (info.target_desc)
4953 {
4954 /* Some useful properties can be inferred from the target. */
4955 if (tdesc_property (info.target_desc, PROPERTY_GP32) != NULL)
4956 {
4957 tdep->register_size_valid_p = 1;
4958 tdep->register_size = 4;
4959 }
4960 else if (tdesc_property (info.target_desc, PROPERTY_GP64) != NULL)
4961 {
4962 tdep->register_size_valid_p = 1;
4963 tdep->register_size = 8;
4964 }
4965 }
c2d11a7d 4966
102182a9 4967 /* Initially set everything according to the default ABI/ISA. */
c2d11a7d
JM
4968 set_gdbarch_short_bit (gdbarch, 16);
4969 set_gdbarch_int_bit (gdbarch, 32);
4970 set_gdbarch_float_bit (gdbarch, 32);
4971 set_gdbarch_double_bit (gdbarch, 64);
4972 set_gdbarch_long_double_bit (gdbarch, 64);
a4b8ebc8
AC
4973 set_gdbarch_register_reggroup_p (gdbarch, mips_register_reggroup_p);
4974 set_gdbarch_pseudo_register_read (gdbarch, mips_pseudo_register_read);
4975 set_gdbarch_pseudo_register_write (gdbarch, mips_pseudo_register_write);
1d06468c 4976
6d82d43b 4977 set_gdbarch_elf_make_msymbol_special (gdbarch,
f7ab6ec6
MS
4978 mips_elf_make_msymbol_special);
4979
16e109ca 4980 /* Fill in the OS dependant register numbers and names. */
56cea623 4981 {
16e109ca 4982 const char **reg_names;
56cea623
AC
4983 struct mips_regnum *regnum = GDBARCH_OBSTACK_ZALLOC (gdbarch,
4984 struct mips_regnum);
56cea623
AC
4985 if (info.osabi == GDB_OSABI_IRIX)
4986 {
4987 regnum->fp0 = 32;
4988 regnum->pc = 64;
4989 regnum->cause = 65;
4990 regnum->badvaddr = 66;
4991 regnum->hi = 67;
4992 regnum->lo = 68;
4993 regnum->fp_control_status = 69;
4994 regnum->fp_implementation_revision = 70;
4995 num_regs = 71;
16e109ca 4996 reg_names = mips_irix_reg_names;
56cea623
AC
4997 }
4998 else
4999 {
5000 regnum->lo = MIPS_EMBED_LO_REGNUM;
5001 regnum->hi = MIPS_EMBED_HI_REGNUM;
5002 regnum->badvaddr = MIPS_EMBED_BADVADDR_REGNUM;
5003 regnum->cause = MIPS_EMBED_CAUSE_REGNUM;
5004 regnum->pc = MIPS_EMBED_PC_REGNUM;
5005 regnum->fp0 = MIPS_EMBED_FP0_REGNUM;
5006 regnum->fp_control_status = 70;
5007 regnum->fp_implementation_revision = 71;
5008 num_regs = 90;
16e109ca
AC
5009 if (info.bfd_arch_info != NULL
5010 && info.bfd_arch_info->mach == bfd_mach_mips3900)
5011 reg_names = mips_tx39_reg_names;
5012 else
5013 reg_names = mips_generic_reg_names;
56cea623
AC
5014 }
5015 /* FIXME: cagney/2003-11-15: For MIPS, hasn't PC_REGNUM been
5016 replaced by read_pc? */
f10683bb
MH
5017 set_gdbarch_pc_regnum (gdbarch, regnum->pc + num_regs);
5018 set_gdbarch_sp_regnum (gdbarch, MIPS_SP_REGNUM + num_regs);
56cea623
AC
5019 set_gdbarch_fp0_regnum (gdbarch, regnum->fp0);
5020 set_gdbarch_num_regs (gdbarch, num_regs);
5021 set_gdbarch_num_pseudo_regs (gdbarch, num_regs);
16e109ca
AC
5022 set_gdbarch_register_name (gdbarch, mips_register_name);
5023 tdep->mips_processor_reg_names = reg_names;
5024 tdep->regnum = regnum;
56cea623 5025 }
fe29b929 5026
0dadbba0 5027 switch (mips_abi)
c2d11a7d 5028 {
0dadbba0 5029 case MIPS_ABI_O32:
25ab4790 5030 set_gdbarch_push_dummy_call (gdbarch, mips_o32_push_dummy_call);
29dfb2ac 5031 set_gdbarch_return_value (gdbarch, mips_o32_return_value);
4c7d22cb 5032 tdep->mips_last_arg_regnum = MIPS_A0_REGNUM + 4 - 1;
56cea623 5033 tdep->mips_last_fp_arg_regnum = tdep->regnum->fp0 + 12 + 4 - 1;
4014092b 5034 tdep->default_mask_address_p = 0;
c2d11a7d
JM
5035 set_gdbarch_long_bit (gdbarch, 32);
5036 set_gdbarch_ptr_bit (gdbarch, 32);
5037 set_gdbarch_long_long_bit (gdbarch, 64);
5038 break;
0dadbba0 5039 case MIPS_ABI_O64:
25ab4790 5040 set_gdbarch_push_dummy_call (gdbarch, mips_o64_push_dummy_call);
9c8fdbfa 5041 set_gdbarch_return_value (gdbarch, mips_o64_return_value);
4c7d22cb 5042 tdep->mips_last_arg_regnum = MIPS_A0_REGNUM + 4 - 1;
56cea623 5043 tdep->mips_last_fp_arg_regnum = tdep->regnum->fp0 + 12 + 4 - 1;
361d1df0 5044 tdep->default_mask_address_p = 0;
c2d11a7d
JM
5045 set_gdbarch_long_bit (gdbarch, 32);
5046 set_gdbarch_ptr_bit (gdbarch, 32);
5047 set_gdbarch_long_long_bit (gdbarch, 64);
5048 break;
0dadbba0 5049 case MIPS_ABI_EABI32:
25ab4790 5050 set_gdbarch_push_dummy_call (gdbarch, mips_eabi_push_dummy_call);
9c8fdbfa 5051 set_gdbarch_return_value (gdbarch, mips_eabi_return_value);
4c7d22cb 5052 tdep->mips_last_arg_regnum = MIPS_A0_REGNUM + 8 - 1;
56cea623 5053 tdep->mips_last_fp_arg_regnum = tdep->regnum->fp0 + 12 + 8 - 1;
4014092b 5054 tdep->default_mask_address_p = 0;
c2d11a7d
JM
5055 set_gdbarch_long_bit (gdbarch, 32);
5056 set_gdbarch_ptr_bit (gdbarch, 32);
5057 set_gdbarch_long_long_bit (gdbarch, 64);
5058 break;
0dadbba0 5059 case MIPS_ABI_EABI64:
25ab4790 5060 set_gdbarch_push_dummy_call (gdbarch, mips_eabi_push_dummy_call);
9c8fdbfa 5061 set_gdbarch_return_value (gdbarch, mips_eabi_return_value);
4c7d22cb 5062 tdep->mips_last_arg_regnum = MIPS_A0_REGNUM + 8 - 1;
56cea623 5063 tdep->mips_last_fp_arg_regnum = tdep->regnum->fp0 + 12 + 8 - 1;
4014092b 5064 tdep->default_mask_address_p = 0;
c2d11a7d
JM
5065 set_gdbarch_long_bit (gdbarch, 64);
5066 set_gdbarch_ptr_bit (gdbarch, 64);
5067 set_gdbarch_long_long_bit (gdbarch, 64);
5068 break;
0dadbba0 5069 case MIPS_ABI_N32:
25ab4790 5070 set_gdbarch_push_dummy_call (gdbarch, mips_n32n64_push_dummy_call);
29dfb2ac 5071 set_gdbarch_return_value (gdbarch, mips_n32n64_return_value);
4c7d22cb 5072 tdep->mips_last_arg_regnum = MIPS_A0_REGNUM + 8 - 1;
56cea623 5073 tdep->mips_last_fp_arg_regnum = tdep->regnum->fp0 + 12 + 8 - 1;
4014092b 5074 tdep->default_mask_address_p = 0;
0dadbba0
AC
5075 set_gdbarch_long_bit (gdbarch, 32);
5076 set_gdbarch_ptr_bit (gdbarch, 32);
5077 set_gdbarch_long_long_bit (gdbarch, 64);
fed7ba43 5078 set_gdbarch_long_double_bit (gdbarch, 128);
8da61cc4 5079 set_gdbarch_long_double_format (gdbarch, floatformats_n32n64_long);
28d169de
KB
5080 break;
5081 case MIPS_ABI_N64:
25ab4790 5082 set_gdbarch_push_dummy_call (gdbarch, mips_n32n64_push_dummy_call);
29dfb2ac 5083 set_gdbarch_return_value (gdbarch, mips_n32n64_return_value);
4c7d22cb 5084 tdep->mips_last_arg_regnum = MIPS_A0_REGNUM + 8 - 1;
56cea623 5085 tdep->mips_last_fp_arg_regnum = tdep->regnum->fp0 + 12 + 8 - 1;
28d169de
KB
5086 tdep->default_mask_address_p = 0;
5087 set_gdbarch_long_bit (gdbarch, 64);
5088 set_gdbarch_ptr_bit (gdbarch, 64);
5089 set_gdbarch_long_long_bit (gdbarch, 64);
fed7ba43 5090 set_gdbarch_long_double_bit (gdbarch, 128);
8da61cc4 5091 set_gdbarch_long_double_format (gdbarch, floatformats_n32n64_long);
0dadbba0 5092 break;
c2d11a7d 5093 default:
e2e0b3e5 5094 internal_error (__FILE__, __LINE__, _("unknown ABI in switch"));
c2d11a7d
JM
5095 }
5096
22e47e37
FF
5097 /* GCC creates a pseudo-section whose name specifies the size of
5098 longs, since -mlong32 or -mlong64 may be used independent of
5099 other options. How those options affect pointer sizes is ABI and
5100 architecture dependent, so use them to override the default sizes
5101 set by the ABI. This table shows the relationship between ABI,
5102 -mlongXX, and size of pointers:
5103
5104 ABI -mlongXX ptr bits
5105 --- -------- --------
5106 o32 32 32
5107 o32 64 32
5108 n32 32 32
5109 n32 64 64
5110 o64 32 32
5111 o64 64 64
5112 n64 32 32
5113 n64 64 64
5114 eabi32 32 32
5115 eabi32 64 32
5116 eabi64 32 32
5117 eabi64 64 64
5118
5119 Note that for o32 and eabi32, pointers are always 32 bits
5120 regardless of any -mlongXX option. For all others, pointers and
5121 longs are the same, as set by -mlongXX or set by defaults.
5122 */
5123
5124 if (info.abfd != NULL)
5125 {
5126 int long_bit = 0;
5127
5128 bfd_map_over_sections (info.abfd, mips_find_long_section, &long_bit);
5129 if (long_bit)
5130 {
5131 set_gdbarch_long_bit (gdbarch, long_bit);
5132 switch (mips_abi)
5133 {
5134 case MIPS_ABI_O32:
5135 case MIPS_ABI_EABI32:
5136 break;
5137 case MIPS_ABI_N32:
5138 case MIPS_ABI_O64:
5139 case MIPS_ABI_N64:
5140 case MIPS_ABI_EABI64:
5141 set_gdbarch_ptr_bit (gdbarch, long_bit);
5142 break;
5143 default:
5144 internal_error (__FILE__, __LINE__, _("unknown ABI in switch"));
5145 }
5146 }
5147 }
5148
a5ea2558
AC
5149 /* FIXME: jlarmour/2000-04-07: There *is* a flag EF_MIPS_32BIT_MODE
5150 that could indicate -gp32 BUT gas/config/tc-mips.c contains the
5151 comment:
5152
5153 ``We deliberately don't allow "-gp32" to set the MIPS_32BITMODE
5154 flag in object files because to do so would make it impossible to
102182a9 5155 link with libraries compiled without "-gp32". This is
a5ea2558 5156 unnecessarily restrictive.
361d1df0 5157
a5ea2558
AC
5158 We could solve this problem by adding "-gp32" multilibs to gcc,
5159 but to set this flag before gcc is built with such multilibs will
5160 break too many systems.''
5161
5162 But even more unhelpfully, the default linker output target for
5163 mips64-elf is elf32-bigmips, and has EF_MIPS_32BIT_MODE set, even
5164 for 64-bit programs - you need to change the ABI to change this,
102182a9 5165 and not all gcc targets support that currently. Therefore using
a5ea2558
AC
5166 this flag to detect 32-bit mode would do the wrong thing given
5167 the current gcc - it would make GDB treat these 64-bit programs
102182a9 5168 as 32-bit programs by default. */
a5ea2558 5169
6c997a34 5170 set_gdbarch_read_pc (gdbarch, mips_read_pc);
b6cb9035 5171 set_gdbarch_write_pc (gdbarch, mips_write_pc);
bcb0cc15 5172 set_gdbarch_read_sp (gdbarch, mips_read_sp);
c2d11a7d 5173
102182a9
MS
5174 /* Add/remove bits from an address. The MIPS needs be careful to
5175 ensure that all 32 bit addresses are sign extended to 64 bits. */
875e1767
AC
5176 set_gdbarch_addr_bits_remove (gdbarch, mips_addr_bits_remove);
5177
58dfe9ff
AC
5178 /* Unwind the frame. */
5179 set_gdbarch_unwind_pc (gdbarch, mips_unwind_pc);
edfae063 5180 set_gdbarch_unwind_dummy_id (gdbarch, mips_unwind_dummy_id);
10312cc4 5181
102182a9 5182 /* Map debug register numbers onto internal register numbers. */
88c72b7d 5183 set_gdbarch_stab_reg_to_regnum (gdbarch, mips_stab_reg_to_regnum);
6d82d43b
AC
5184 set_gdbarch_ecoff_reg_to_regnum (gdbarch,
5185 mips_dwarf_dwarf2_ecoff_reg_to_regnum);
5186 set_gdbarch_dwarf_reg_to_regnum (gdbarch,
5187 mips_dwarf_dwarf2_ecoff_reg_to_regnum);
5188 set_gdbarch_dwarf2_reg_to_regnum (gdbarch,
5189 mips_dwarf_dwarf2_ecoff_reg_to_regnum);
a4b8ebc8 5190 set_gdbarch_register_sim_regno (gdbarch, mips_register_sim_regno);
88c72b7d 5191
c2d11a7d
JM
5192 /* MIPS version of CALL_DUMMY */
5193
9710e734
AC
5194 /* NOTE: cagney/2003-08-05: Eventually call dummy location will be
5195 replaced by a command, and all targets will default to on stack
5196 (regardless of the stack's execute status). */
5197 set_gdbarch_call_dummy_location (gdbarch, AT_SYMBOL);
dc604539 5198 set_gdbarch_frame_align (gdbarch, mips_frame_align);
d05285fa 5199
87783b8b
AC
5200 set_gdbarch_convert_register_p (gdbarch, mips_convert_register_p);
5201 set_gdbarch_register_to_value (gdbarch, mips_register_to_value);
5202 set_gdbarch_value_to_register (gdbarch, mips_value_to_register);
5203
f7b9e9fc
AC
5204 set_gdbarch_inner_than (gdbarch, core_addr_lessthan);
5205 set_gdbarch_breakpoint_from_pc (gdbarch, mips_breakpoint_from_pc);
f7b9e9fc
AC
5206
5207 set_gdbarch_skip_prologue (gdbarch, mips_skip_prologue);
f7b9e9fc 5208
fc0c74b1
AC
5209 set_gdbarch_pointer_to_address (gdbarch, signed_pointer_to_address);
5210 set_gdbarch_address_to_pointer (gdbarch, address_to_signed_pointer);
5211 set_gdbarch_integer_to_address (gdbarch, mips_integer_to_address);
70f80edf 5212
a4b8ebc8 5213 set_gdbarch_register_type (gdbarch, mips_register_type);
78fde5f8 5214
e11c53d2 5215 set_gdbarch_print_registers_info (gdbarch, mips_print_registers_info);
bf1f5b4c 5216
e5ab0dce
AC
5217 set_gdbarch_print_insn (gdbarch, gdb_print_insn_mips);
5218
3a3bc038
AC
5219 /* FIXME: cagney/2003-08-29: The macros HAVE_STEPPABLE_WATCHPOINT,
5220 HAVE_NONSTEPPABLE_WATCHPOINT, and HAVE_CONTINUABLE_WATCHPOINT
5221 need to all be folded into the target vector. Since they are
5222 being used as guards for STOPPED_BY_WATCHPOINT, why not have
5223 STOPPED_BY_WATCHPOINT return the type of watchpoint that the code
5224 is sitting on? */
5225 set_gdbarch_have_nonsteppable_watchpoint (gdbarch, 1);
5226
e7d6a6d2 5227 set_gdbarch_skip_trampoline_code (gdbarch, mips_skip_trampoline_code);
757a7cc6 5228
3352ef37
AC
5229 set_gdbarch_single_step_through_delay (gdbarch, mips_single_step_through_delay);
5230
0d5de010
DJ
5231 /* Virtual tables. */
5232 set_gdbarch_vbit_in_delta (gdbarch, 1);
5233
29709017
DJ
5234 mips_register_g_packet_guesses (gdbarch);
5235
6de918a6
DJ
5236 /* Hook in OS ABI-specific overrides, if they have been registered. */
5237 gdbarch_init_osabi (info, gdbarch);
757a7cc6 5238
5792a79b 5239 /* Unwind the frame. */
eec63939 5240 frame_unwind_append_sniffer (gdbarch, mips_stub_frame_sniffer);
45c9dd44
AC
5241 frame_unwind_append_sniffer (gdbarch, mips_insn16_frame_sniffer);
5242 frame_unwind_append_sniffer (gdbarch, mips_insn32_frame_sniffer);
eec63939 5243 frame_base_append_sniffer (gdbarch, mips_stub_frame_base_sniffer);
45c9dd44
AC
5244 frame_base_append_sniffer (gdbarch, mips_insn16_frame_base_sniffer);
5245 frame_base_append_sniffer (gdbarch, mips_insn32_frame_base_sniffer);
5792a79b 5246
4b9b3959
AC
5247 return gdbarch;
5248}
5249
2e4ebe70 5250static void
6d82d43b 5251mips_abi_update (char *ignore_args, int from_tty, struct cmd_list_element *c)
2e4ebe70
DJ
5252{
5253 struct gdbarch_info info;
5254
5255 /* Force the architecture to update, and (if it's a MIPS architecture)
5256 mips_gdbarch_init will take care of the rest. */
5257 gdbarch_info_init (&info);
5258 gdbarch_update_p (info);
5259}
5260
ad188201
KB
5261/* Print out which MIPS ABI is in use. */
5262
5263static void
1f8ca57c
JB
5264show_mips_abi (struct ui_file *file,
5265 int from_tty,
5266 struct cmd_list_element *ignored_cmd,
5267 const char *ignored_value)
ad188201
KB
5268{
5269 if (gdbarch_bfd_arch_info (current_gdbarch)->arch != bfd_arch_mips)
1f8ca57c
JB
5270 fprintf_filtered
5271 (file,
5272 "The MIPS ABI is unknown because the current architecture "
5273 "is not MIPS.\n");
ad188201
KB
5274 else
5275 {
5276 enum mips_abi global_abi = global_mips_abi ();
5277 enum mips_abi actual_abi = mips_abi (current_gdbarch);
5278 const char *actual_abi_str = mips_abi_strings[actual_abi];
5279
5280 if (global_abi == MIPS_ABI_UNKNOWN)
1f8ca57c
JB
5281 fprintf_filtered
5282 (file,
5283 "The MIPS ABI is set automatically (currently \"%s\").\n",
6d82d43b 5284 actual_abi_str);
ad188201 5285 else if (global_abi == actual_abi)
1f8ca57c
JB
5286 fprintf_filtered
5287 (file,
5288 "The MIPS ABI is assumed to be \"%s\" (due to user setting).\n",
6d82d43b 5289 actual_abi_str);
ad188201
KB
5290 else
5291 {
5292 /* Probably shouldn't happen... */
1f8ca57c
JB
5293 fprintf_filtered
5294 (file,
5295 "The (auto detected) MIPS ABI \"%s\" is in use even though the user setting was \"%s\".\n",
6d82d43b 5296 actual_abi_str, mips_abi_strings[global_abi]);
ad188201
KB
5297 }
5298 }
5299}
5300
4b9b3959
AC
5301static void
5302mips_dump_tdep (struct gdbarch *current_gdbarch, struct ui_file *file)
5303{
5304 struct gdbarch_tdep *tdep = gdbarch_tdep (current_gdbarch);
5305 if (tdep != NULL)
c2d11a7d 5306 {
acdb74a0
AC
5307 int ef_mips_arch;
5308 int ef_mips_32bitmode;
f49e4e6d 5309 /* Determine the ISA. */
acdb74a0
AC
5310 switch (tdep->elf_flags & EF_MIPS_ARCH)
5311 {
5312 case E_MIPS_ARCH_1:
5313 ef_mips_arch = 1;
5314 break;
5315 case E_MIPS_ARCH_2:
5316 ef_mips_arch = 2;
5317 break;
5318 case E_MIPS_ARCH_3:
5319 ef_mips_arch = 3;
5320 break;
5321 case E_MIPS_ARCH_4:
93d56215 5322 ef_mips_arch = 4;
acdb74a0
AC
5323 break;
5324 default:
93d56215 5325 ef_mips_arch = 0;
acdb74a0
AC
5326 break;
5327 }
f49e4e6d 5328 /* Determine the size of a pointer. */
acdb74a0 5329 ef_mips_32bitmode = (tdep->elf_flags & EF_MIPS_32BITMODE);
4b9b3959
AC
5330 fprintf_unfiltered (file,
5331 "mips_dump_tdep: tdep->elf_flags = 0x%x\n",
0dadbba0 5332 tdep->elf_flags);
4b9b3959 5333 fprintf_unfiltered (file,
acdb74a0
AC
5334 "mips_dump_tdep: ef_mips_32bitmode = %d\n",
5335 ef_mips_32bitmode);
5336 fprintf_unfiltered (file,
5337 "mips_dump_tdep: ef_mips_arch = %d\n",
5338 ef_mips_arch);
5339 fprintf_unfiltered (file,
5340 "mips_dump_tdep: tdep->mips_abi = %d (%s)\n",
6d82d43b 5341 tdep->mips_abi, mips_abi_strings[tdep->mips_abi]);
4014092b
AC
5342 fprintf_unfiltered (file,
5343 "mips_dump_tdep: mips_mask_address_p() %d (default %d)\n",
480d3dd2 5344 mips_mask_address_p (tdep),
4014092b 5345 tdep->default_mask_address_p);
c2d11a7d 5346 }
4b9b3959
AC
5347 fprintf_unfiltered (file,
5348 "mips_dump_tdep: MIPS_DEFAULT_FPU_TYPE = %d (%s)\n",
5349 MIPS_DEFAULT_FPU_TYPE,
5350 (MIPS_DEFAULT_FPU_TYPE == MIPS_FPU_NONE ? "none"
5351 : MIPS_DEFAULT_FPU_TYPE == MIPS_FPU_SINGLE ? "single"
5352 : MIPS_DEFAULT_FPU_TYPE == MIPS_FPU_DOUBLE ? "double"
5353 : "???"));
6d82d43b 5354 fprintf_unfiltered (file, "mips_dump_tdep: MIPS_EABI = %d\n", MIPS_EABI);
4b9b3959
AC
5355 fprintf_unfiltered (file,
5356 "mips_dump_tdep: MIPS_FPU_TYPE = %d (%s)\n",
5357 MIPS_FPU_TYPE,
5358 (MIPS_FPU_TYPE == MIPS_FPU_NONE ? "none"
5359 : MIPS_FPU_TYPE == MIPS_FPU_SINGLE ? "single"
5360 : MIPS_FPU_TYPE == MIPS_FPU_DOUBLE ? "double"
5361 : "???"));
4b9b3959 5362 fprintf_unfiltered (file,
480d3dd2 5363 "mips_dump_tdep: mips_stack_argsize() = %d\n",
13326b4e 5364 mips_stack_argsize (current_gdbarch));
c2d11a7d
JM
5365}
5366
6d82d43b 5367extern initialize_file_ftype _initialize_mips_tdep; /* -Wmissing-prototypes */
a78f21af 5368
c906108c 5369void
acdb74a0 5370_initialize_mips_tdep (void)
c906108c
SS
5371{
5372 static struct cmd_list_element *mipsfpulist = NULL;
5373 struct cmd_list_element *c;
5374
6d82d43b 5375 mips_abi_string = mips_abi_strings[MIPS_ABI_UNKNOWN];
2e4ebe70
DJ
5376 if (MIPS_ABI_LAST + 1
5377 != sizeof (mips_abi_strings) / sizeof (mips_abi_strings[0]))
e2e0b3e5 5378 internal_error (__FILE__, __LINE__, _("mips_abi_strings out of sync"));
2e4ebe70 5379
4b9b3959 5380 gdbarch_register (bfd_arch_mips, mips_gdbarch_init, mips_dump_tdep);
c906108c 5381
8d5f9dcb
DJ
5382 mips_pdr_data = register_objfile_data ();
5383
a5ea2558
AC
5384 /* Add root prefix command for all "set mips"/"show mips" commands */
5385 add_prefix_cmd ("mips", no_class, set_mips_command,
1bedd215 5386 _("Various MIPS specific commands."),
a5ea2558
AC
5387 &setmipscmdlist, "set mips ", 0, &setlist);
5388
5389 add_prefix_cmd ("mips", no_class, show_mips_command,
1bedd215 5390 _("Various MIPS specific commands."),
a5ea2558
AC
5391 &showmipscmdlist, "show mips ", 0, &showlist);
5392
5393 /* Allow the user to override the saved register size. */
1b295c3d 5394 add_setshow_enum_cmd ("saved-gpreg-size", class_obscure,
7915a72c
AC
5395 size_enums, &mips_abi_regsize_string, _("\
5396Set size of general purpose registers saved on the stack."), _("\
5397Show size of general purpose registers saved on the stack."), _("\
a5ea2558
AC
5398This option can be set to one of:\n\
5399 32 - Force GDB to treat saved GP registers as 32-bit\n\
5400 64 - Force GDB to treat saved GP registers as 64-bit\n\
5401 auto - Allow GDB to use the target's default setting or autodetect the\n\
7915a72c
AC
5402 saved GP register size from information contained in the\n\
5403 executable (default)."),
2c5b56ce 5404 NULL,
7915a72c 5405 NULL, /* FIXME: i18n: Size of general purpose registers saved on the stack is %s. */
2c5b56ce 5406 &setmipscmdlist, &showmipscmdlist);
a5ea2558 5407
d929b26f 5408 /* Allow the user to override the argument stack size. */
1b295c3d 5409 add_setshow_enum_cmd ("stack-arg-size", class_obscure,
7915a72c
AC
5410 size_enums, &mips_stack_argsize_string, _("\
5411Set the amount of stack space reserved for each argument."), _("\
5412Show the amount of stack space reserved for each argument."), _("\
d929b26f
AC
5413This option can be set to one of:\n\
5414 32 - Force GDB to allocate 32-bit chunks per argument\n\
5415 64 - Force GDB to allocate 64-bit chunks per argument\n\
5416 auto - Allow GDB to determine the correct setting from the current\n\
7915a72c 5417 target and executable (default)"),
2c5b56ce 5418 NULL,
7915a72c 5419 NULL, /* FIXME: i18n: The amount of stack space reserved for each argument is %s. */
2c5b56ce 5420 &setmipscmdlist, &showmipscmdlist);
d929b26f 5421
2e4ebe70 5422 /* Allow the user to override the ABI. */
7ab04401
AC
5423 add_setshow_enum_cmd ("abi", class_obscure, mips_abi_strings,
5424 &mips_abi_string, _("\
5425Set the MIPS ABI used by this program."), _("\
5426Show the MIPS ABI used by this program."), _("\
5427This option can be set to one of:\n\
5428 auto - the default ABI associated with the current binary\n\
5429 o32\n\
5430 o64\n\
5431 n32\n\
5432 n64\n\
5433 eabi32\n\
5434 eabi64"),
5435 mips_abi_update,
5436 show_mips_abi,
5437 &setmipscmdlist, &showmipscmdlist);
2e4ebe70 5438
c906108c
SS
5439 /* Let the user turn off floating point and set the fence post for
5440 heuristic_proc_start. */
5441
5442 add_prefix_cmd ("mipsfpu", class_support, set_mipsfpu_command,
1bedd215 5443 _("Set use of MIPS floating-point coprocessor."),
c906108c
SS
5444 &mipsfpulist, "set mipsfpu ", 0, &setlist);
5445 add_cmd ("single", class_support, set_mipsfpu_single_command,
1a966eab 5446 _("Select single-precision MIPS floating-point coprocessor."),
c906108c
SS
5447 &mipsfpulist);
5448 add_cmd ("double", class_support, set_mipsfpu_double_command,
1a966eab 5449 _("Select double-precision MIPS floating-point coprocessor."),
c906108c
SS
5450 &mipsfpulist);
5451 add_alias_cmd ("on", "double", class_support, 1, &mipsfpulist);
5452 add_alias_cmd ("yes", "double", class_support, 1, &mipsfpulist);
5453 add_alias_cmd ("1", "double", class_support, 1, &mipsfpulist);
5454 add_cmd ("none", class_support, set_mipsfpu_none_command,
1a966eab 5455 _("Select no MIPS floating-point coprocessor."), &mipsfpulist);
c906108c
SS
5456 add_alias_cmd ("off", "none", class_support, 1, &mipsfpulist);
5457 add_alias_cmd ("no", "none", class_support, 1, &mipsfpulist);
5458 add_alias_cmd ("0", "none", class_support, 1, &mipsfpulist);
5459 add_cmd ("auto", class_support, set_mipsfpu_auto_command,
1a966eab 5460 _("Select MIPS floating-point coprocessor automatically."),
c906108c
SS
5461 &mipsfpulist);
5462 add_cmd ("mipsfpu", class_support, show_mipsfpu_command,
1a966eab 5463 _("Show current use of MIPS floating-point coprocessor target."),
c906108c
SS
5464 &showlist);
5465
c906108c
SS
5466 /* We really would like to have both "0" and "unlimited" work, but
5467 command.c doesn't deal with that. So make it a var_zinteger
5468 because the user can always use "999999" or some such for unlimited. */
6bcadd06 5469 add_setshow_zinteger_cmd ("heuristic-fence-post", class_support,
7915a72c
AC
5470 &heuristic_fence_post, _("\
5471Set the distance searched for the start of a function."), _("\
5472Show the distance searched for the start of a function."), _("\
c906108c
SS
5473If you are debugging a stripped executable, GDB needs to search through the\n\
5474program for the start of a function. This command sets the distance of the\n\
7915a72c 5475search. The only need to set it is when debugging a stripped executable."),
2c5b56ce 5476 reinit_frame_cache_sfunc,
7915a72c 5477 NULL, /* FIXME: i18n: The distance searched for the start of a function is %s. */
6bcadd06 5478 &setlist, &showlist);
c906108c
SS
5479
5480 /* Allow the user to control whether the upper bits of 64-bit
5481 addresses should be zeroed. */
7915a72c
AC
5482 add_setshow_auto_boolean_cmd ("mask-address", no_class,
5483 &mask_address_var, _("\
5484Set zeroing of upper 32 bits of 64-bit addresses."), _("\
5485Show zeroing of upper 32 bits of 64-bit addresses."), _("\
e9e68a56 5486Use \"on\" to enable the masking, \"off\" to disable it and \"auto\" to \n\
7915a72c 5487allow GDB to determine the correct value."),
08546159
AC
5488 NULL, show_mask_address,
5489 &setmipscmdlist, &showmipscmdlist);
43e526b9
JM
5490
5491 /* Allow the user to control the size of 32 bit registers within the
5492 raw remote packet. */
b3f42336 5493 add_setshow_boolean_cmd ("remote-mips64-transfers-32bit-regs", class_obscure,
7915a72c
AC
5494 &mips64_transfers_32bit_regs_p, _("\
5495Set compatibility with 64-bit MIPS target that transfers 32-bit quantities."),
5496 _("\
5497Show compatibility with 64-bit MIPS target that transfers 32-bit quantities."),
5498 _("\
719ec221
AC
5499Use \"on\" to enable backward compatibility with older MIPS 64 GDB+target\n\
5500that would transfer 32 bits for some registers (e.g. SR, FSR) and\n\
7915a72c 550164 bits for others. Use \"off\" to disable compatibility mode"),
2c5b56ce 5502 set_mips64_transfers_32bit_regs,
7915a72c 5503 NULL, /* FIXME: i18n: Compatibility with 64-bit MIPS target that transfers 32-bit quantities is %s. */
7915a72c 5504 &setlist, &showlist);
9ace0497
AC
5505
5506 /* Debug this files internals. */
6bcadd06 5507 add_setshow_zinteger_cmd ("mips", class_maintenance,
7915a72c
AC
5508 &mips_debug, _("\
5509Set mips debugging."), _("\
5510Show mips debugging."), _("\
5511When non-zero, mips specific debugging is enabled."),
2c5b56ce 5512 NULL,
7915a72c 5513 NULL, /* FIXME: i18n: Mips debugging is currently %s. */
6bcadd06 5514 &setdebuglist, &showdebuglist);
c906108c 5515}
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