Remove global variable arm_linux_vfp_register_count in arm-linux-nat.c
[deliverable/binutils-gdb.git] / gdb / arm-tdep.c
CommitLineData
ed9a39eb 1/* Common target dependent code for GDB on ARM systems.
0fd88904 2
32d0add0 3 Copyright (C) 1988-2015 Free Software Foundation, Inc.
c906108c 4
c5aa993b 5 This file is part of GDB.
c906108c 6
c5aa993b
JM
7 This program is free software; you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
a9762ec7 9 the Free Software Foundation; either version 3 of the License, or
c5aa993b 10 (at your option) any later version.
c906108c 11
c5aa993b
JM
12 This program is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
c906108c 16
c5aa993b 17 You should have received a copy of the GNU General Public License
a9762ec7 18 along with this program. If not, see <http://www.gnu.org/licenses/>. */
c906108c 19
0baeab03
PA
20#include "defs.h"
21
0963b4bd 22#include <ctype.h> /* XXX for isupper (). */
34e8f22d 23
c906108c
SS
24#include "frame.h"
25#include "inferior.h"
45741a9c 26#include "infrun.h"
c906108c
SS
27#include "gdbcmd.h"
28#include "gdbcore.h"
0963b4bd 29#include "dis-asm.h" /* For register styles. */
4e052eda 30#include "regcache.h"
54483882 31#include "reggroups.h"
d16aafd8 32#include "doublest.h"
fd0407d6 33#include "value.h"
34e8f22d 34#include "arch-utils.h"
4be87837 35#include "osabi.h"
eb5492fa
DJ
36#include "frame-unwind.h"
37#include "frame-base.h"
38#include "trad-frame.h"
842e1f1e
DJ
39#include "objfiles.h"
40#include "dwarf2-frame.h"
e4c16157 41#include "gdbtypes.h"
29d73ae4 42#include "prologue-value.h"
25f8c692 43#include "remote.h"
123dc839
DJ
44#include "target-descriptions.h"
45#include "user-regs.h"
0e9e9abd 46#include "observer.h"
34e8f22d
RE
47
48#include "arm-tdep.h"
26216b98 49#include "gdb/sim-arm.h"
34e8f22d 50
082fc60d
RE
51#include "elf-bfd.h"
52#include "coff/internal.h"
97e03143 53#include "elf/arm.h"
c906108c 54
60c5725c 55#include "vec.h"
26216b98 56
72508ac0 57#include "record.h"
d02ed0bb 58#include "record-full.h"
72508ac0 59
9779414d 60#include "features/arm-with-m.c"
25f8c692 61#include "features/arm-with-m-fpa-layout.c"
3184d3f9 62#include "features/arm-with-m-vfp-d16.c"
ef7e8358
UW
63#include "features/arm-with-iwmmxt.c"
64#include "features/arm-with-vfpv2.c"
65#include "features/arm-with-vfpv3.c"
66#include "features/arm-with-neon.c"
9779414d 67
6529d2dd
AC
68static int arm_debug;
69
082fc60d
RE
70/* Macros for setting and testing a bit in a minimal symbol that marks
71 it as Thumb function. The MSB of the minimal symbol's "info" field
f594e5e9 72 is used for this purpose.
082fc60d
RE
73
74 MSYMBOL_SET_SPECIAL Actually sets the "special" bit.
f594e5e9 75 MSYMBOL_IS_SPECIAL Tests the "special" bit in a minimal symbol. */
082fc60d 76
0963b4bd 77#define MSYMBOL_SET_SPECIAL(msym) \
b887350f 78 MSYMBOL_TARGET_FLAG_1 (msym) = 1
082fc60d
RE
79
80#define MSYMBOL_IS_SPECIAL(msym) \
b887350f 81 MSYMBOL_TARGET_FLAG_1 (msym)
082fc60d 82
60c5725c
DJ
83/* Per-objfile data used for mapping symbols. */
84static const struct objfile_data *arm_objfile_data_key;
85
86struct arm_mapping_symbol
87{
88 bfd_vma value;
89 char type;
90};
91typedef struct arm_mapping_symbol arm_mapping_symbol_s;
92DEF_VEC_O(arm_mapping_symbol_s);
93
94struct arm_per_objfile
95{
96 VEC(arm_mapping_symbol_s) **section_maps;
97};
98
afd7eef0
RE
99/* The list of available "set arm ..." and "show arm ..." commands. */
100static struct cmd_list_element *setarmcmdlist = NULL;
101static struct cmd_list_element *showarmcmdlist = NULL;
102
fd50bc42
RE
103/* The type of floating-point to use. Keep this in sync with enum
104 arm_float_model, and the help string in _initialize_arm_tdep. */
40478521 105static const char *const fp_model_strings[] =
fd50bc42
RE
106{
107 "auto",
108 "softfpa",
109 "fpa",
110 "softvfp",
28e97307
DJ
111 "vfp",
112 NULL
fd50bc42
RE
113};
114
115/* A variable that can be configured by the user. */
116static enum arm_float_model arm_fp_model = ARM_FLOAT_AUTO;
117static const char *current_fp_model = "auto";
118
28e97307 119/* The ABI to use. Keep this in sync with arm_abi_kind. */
40478521 120static const char *const arm_abi_strings[] =
28e97307
DJ
121{
122 "auto",
123 "APCS",
124 "AAPCS",
125 NULL
126};
127
128/* A variable that can be configured by the user. */
129static enum arm_abi_kind arm_abi_global = ARM_ABI_AUTO;
130static const char *arm_abi_string = "auto";
131
0428b8f5 132/* The execution mode to assume. */
40478521 133static const char *const arm_mode_strings[] =
0428b8f5
DJ
134 {
135 "auto",
136 "arm",
68770265
MGD
137 "thumb",
138 NULL
0428b8f5
DJ
139 };
140
141static const char *arm_fallback_mode_string = "auto";
142static const char *arm_force_mode_string = "auto";
143
18819fa6
UW
144/* Internal override of the execution mode. -1 means no override,
145 0 means override to ARM mode, 1 means override to Thumb mode.
146 The effect is the same as if arm_force_mode has been set by the
147 user (except the internal override has precedence over a user's
148 arm_force_mode override). */
149static int arm_override_mode = -1;
150
94c30b78 151/* Number of different reg name sets (options). */
afd7eef0 152static int num_disassembly_options;
bc90b915 153
f32bf4a4
YQ
154/* The standard register names, and all the valid aliases for them. Note
155 that `fp', `sp' and `pc' are not added in this alias list, because they
156 have been added as builtin user registers in
157 std-regs.c:_initialize_frame_reg. */
123dc839
DJ
158static const struct
159{
160 const char *name;
161 int regnum;
162} arm_register_aliases[] = {
163 /* Basic register numbers. */
164 { "r0", 0 },
165 { "r1", 1 },
166 { "r2", 2 },
167 { "r3", 3 },
168 { "r4", 4 },
169 { "r5", 5 },
170 { "r6", 6 },
171 { "r7", 7 },
172 { "r8", 8 },
173 { "r9", 9 },
174 { "r10", 10 },
175 { "r11", 11 },
176 { "r12", 12 },
177 { "r13", 13 },
178 { "r14", 14 },
179 { "r15", 15 },
180 /* Synonyms (argument and variable registers). */
181 { "a1", 0 },
182 { "a2", 1 },
183 { "a3", 2 },
184 { "a4", 3 },
185 { "v1", 4 },
186 { "v2", 5 },
187 { "v3", 6 },
188 { "v4", 7 },
189 { "v5", 8 },
190 { "v6", 9 },
191 { "v7", 10 },
192 { "v8", 11 },
193 /* Other platform-specific names for r9. */
194 { "sb", 9 },
195 { "tr", 9 },
196 /* Special names. */
197 { "ip", 12 },
123dc839 198 { "lr", 14 },
123dc839
DJ
199 /* Names used by GCC (not listed in the ARM EABI). */
200 { "sl", 10 },
123dc839
DJ
201 /* A special name from the older ATPCS. */
202 { "wr", 7 },
203};
bc90b915 204
123dc839 205static const char *const arm_register_names[] =
da59e081
JM
206{"r0", "r1", "r2", "r3", /* 0 1 2 3 */
207 "r4", "r5", "r6", "r7", /* 4 5 6 7 */
208 "r8", "r9", "r10", "r11", /* 8 9 10 11 */
209 "r12", "sp", "lr", "pc", /* 12 13 14 15 */
210 "f0", "f1", "f2", "f3", /* 16 17 18 19 */
211 "f4", "f5", "f6", "f7", /* 20 21 22 23 */
94c30b78 212 "fps", "cpsr" }; /* 24 25 */
ed9a39eb 213
afd7eef0
RE
214/* Valid register name styles. */
215static const char **valid_disassembly_styles;
ed9a39eb 216
afd7eef0
RE
217/* Disassembly style to use. Default to "std" register names. */
218static const char *disassembly_style;
96baa820 219
ed9a39eb 220/* This is used to keep the bfd arch_info in sync with the disassembly
afd7eef0
RE
221 style. */
222static void set_disassembly_style_sfunc(char *, int,
ed9a39eb 223 struct cmd_list_element *);
afd7eef0 224static void set_disassembly_style (void);
ed9a39eb 225
b508a996 226static void convert_from_extended (const struct floatformat *, const void *,
be8626e0 227 void *, int);
b508a996 228static void convert_to_extended (const struct floatformat *, void *,
be8626e0 229 const void *, int);
ed9a39eb 230
05d1431c
PA
231static enum register_status arm_neon_quad_read (struct gdbarch *gdbarch,
232 struct regcache *regcache,
233 int regnum, gdb_byte *buf);
58d6951d
DJ
234static void arm_neon_quad_write (struct gdbarch *gdbarch,
235 struct regcache *regcache,
236 int regnum, const gdb_byte *buf);
237
db24da6d
YQ
238static int thumb_insn_size (unsigned short inst1);
239
9b8d791a 240struct arm_prologue_cache
c3b4394c 241{
eb5492fa
DJ
242 /* The stack pointer at the time this frame was created; i.e. the
243 caller's stack pointer when this function was called. It is used
244 to identify this frame. */
245 CORE_ADDR prev_sp;
246
4be43953
DJ
247 /* The frame base for this frame is just prev_sp - frame size.
248 FRAMESIZE is the distance from the frame pointer to the
249 initial stack pointer. */
eb5492fa 250
c3b4394c 251 int framesize;
eb5492fa
DJ
252
253 /* The register used to hold the frame pointer for this frame. */
c3b4394c 254 int framereg;
eb5492fa
DJ
255
256 /* Saved register offsets. */
257 struct trad_frame_saved_reg *saved_regs;
c3b4394c 258};
ed9a39eb 259
0d39a070
DJ
260static CORE_ADDR arm_analyze_prologue (struct gdbarch *gdbarch,
261 CORE_ADDR prologue_start,
262 CORE_ADDR prologue_end,
263 struct arm_prologue_cache *cache);
264
cca44b1b
JB
265/* Architecture version for displaced stepping. This effects the behaviour of
266 certain instructions, and really should not be hard-wired. */
267
268#define DISPLACED_STEPPING_ARCH_VERSION 5
269
bc90b915
FN
270/* Addresses for calling Thumb functions have the bit 0 set.
271 Here are some macros to test, set, or clear bit 0 of addresses. */
272#define IS_THUMB_ADDR(addr) ((addr) & 1)
273#define MAKE_THUMB_ADDR(addr) ((addr) | 1)
274#define UNMAKE_THUMB_ADDR(addr) ((addr) & ~1)
275
94c30b78 276/* Set to true if the 32-bit mode is in use. */
c906108c
SS
277
278int arm_apcs_32 = 1;
279
9779414d
DJ
280/* Return the bit mask in ARM_PS_REGNUM that indicates Thumb mode. */
281
478fd957 282int
9779414d
DJ
283arm_psr_thumb_bit (struct gdbarch *gdbarch)
284{
285 if (gdbarch_tdep (gdbarch)->is_m)
286 return XPSR_T;
287 else
288 return CPSR_T;
289}
290
b39cc962
DJ
291/* Determine if FRAME is executing in Thumb mode. */
292
25b41d01 293int
b39cc962
DJ
294arm_frame_is_thumb (struct frame_info *frame)
295{
296 CORE_ADDR cpsr;
9779414d 297 ULONGEST t_bit = arm_psr_thumb_bit (get_frame_arch (frame));
b39cc962
DJ
298
299 /* Every ARM frame unwinder can unwind the T bit of the CPSR, either
300 directly (from a signal frame or dummy frame) or by interpreting
301 the saved LR (from a prologue or DWARF frame). So consult it and
302 trust the unwinders. */
303 cpsr = get_frame_register_unsigned (frame, ARM_PS_REGNUM);
304
9779414d 305 return (cpsr & t_bit) != 0;
b39cc962
DJ
306}
307
60c5725c
DJ
308/* Callback for VEC_lower_bound. */
309
310static inline int
311arm_compare_mapping_symbols (const struct arm_mapping_symbol *lhs,
312 const struct arm_mapping_symbol *rhs)
313{
314 return lhs->value < rhs->value;
315}
316
f9d67f43
DJ
317/* Search for the mapping symbol covering MEMADDR. If one is found,
318 return its type. Otherwise, return 0. If START is non-NULL,
319 set *START to the location of the mapping symbol. */
c906108c 320
f9d67f43
DJ
321static char
322arm_find_mapping_symbol (CORE_ADDR memaddr, CORE_ADDR *start)
c906108c 323{
60c5725c 324 struct obj_section *sec;
0428b8f5 325
60c5725c
DJ
326 /* If there are mapping symbols, consult them. */
327 sec = find_pc_section (memaddr);
328 if (sec != NULL)
329 {
330 struct arm_per_objfile *data;
331 VEC(arm_mapping_symbol_s) *map;
aded6f54
PA
332 struct arm_mapping_symbol map_key = { memaddr - obj_section_addr (sec),
333 0 };
60c5725c
DJ
334 unsigned int idx;
335
336 data = objfile_data (sec->objfile, arm_objfile_data_key);
337 if (data != NULL)
338 {
339 map = data->section_maps[sec->the_bfd_section->index];
340 if (!VEC_empty (arm_mapping_symbol_s, map))
341 {
342 struct arm_mapping_symbol *map_sym;
343
344 idx = VEC_lower_bound (arm_mapping_symbol_s, map, &map_key,
345 arm_compare_mapping_symbols);
346
347 /* VEC_lower_bound finds the earliest ordered insertion
348 point. If the following symbol starts at this exact
349 address, we use that; otherwise, the preceding
350 mapping symbol covers this address. */
351 if (idx < VEC_length (arm_mapping_symbol_s, map))
352 {
353 map_sym = VEC_index (arm_mapping_symbol_s, map, idx);
354 if (map_sym->value == map_key.value)
f9d67f43
DJ
355 {
356 if (start)
357 *start = map_sym->value + obj_section_addr (sec);
358 return map_sym->type;
359 }
60c5725c
DJ
360 }
361
362 if (idx > 0)
363 {
364 map_sym = VEC_index (arm_mapping_symbol_s, map, idx - 1);
f9d67f43
DJ
365 if (start)
366 *start = map_sym->value + obj_section_addr (sec);
367 return map_sym->type;
60c5725c
DJ
368 }
369 }
370 }
371 }
372
f9d67f43
DJ
373 return 0;
374}
375
376/* Determine if the program counter specified in MEMADDR is in a Thumb
377 function. This function should be called for addresses unrelated to
378 any executing frame; otherwise, prefer arm_frame_is_thumb. */
379
e3039479 380int
9779414d 381arm_pc_is_thumb (struct gdbarch *gdbarch, CORE_ADDR memaddr)
f9d67f43 382{
7cbd4a93 383 struct bound_minimal_symbol sym;
f9d67f43 384 char type;
a42244db
YQ
385 struct displaced_step_closure* dsc
386 = get_displaced_step_closure_by_addr(memaddr);
387
388 /* If checking the mode of displaced instruction in copy area, the mode
389 should be determined by instruction on the original address. */
390 if (dsc)
391 {
392 if (debug_displaced)
393 fprintf_unfiltered (gdb_stdlog,
394 "displaced: check mode of %.8lx instead of %.8lx\n",
395 (unsigned long) dsc->insn_addr,
396 (unsigned long) memaddr);
397 memaddr = dsc->insn_addr;
398 }
f9d67f43
DJ
399
400 /* If bit 0 of the address is set, assume this is a Thumb address. */
401 if (IS_THUMB_ADDR (memaddr))
402 return 1;
403
18819fa6
UW
404 /* Respect internal mode override if active. */
405 if (arm_override_mode != -1)
406 return arm_override_mode;
407
f9d67f43
DJ
408 /* If the user wants to override the symbol table, let him. */
409 if (strcmp (arm_force_mode_string, "arm") == 0)
410 return 0;
411 if (strcmp (arm_force_mode_string, "thumb") == 0)
412 return 1;
413
9779414d
DJ
414 /* ARM v6-M and v7-M are always in Thumb mode. */
415 if (gdbarch_tdep (gdbarch)->is_m)
416 return 1;
417
f9d67f43
DJ
418 /* If there are mapping symbols, consult them. */
419 type = arm_find_mapping_symbol (memaddr, NULL);
420 if (type)
421 return type == 't';
422
ed9a39eb 423 /* Thumb functions have a "special" bit set in minimal symbols. */
c906108c 424 sym = lookup_minimal_symbol_by_pc (memaddr);
7cbd4a93
TT
425 if (sym.minsym)
426 return (MSYMBOL_IS_SPECIAL (sym.minsym));
0428b8f5
DJ
427
428 /* If the user wants to override the fallback mode, let them. */
429 if (strcmp (arm_fallback_mode_string, "arm") == 0)
430 return 0;
431 if (strcmp (arm_fallback_mode_string, "thumb") == 0)
432 return 1;
433
434 /* If we couldn't find any symbol, but we're talking to a running
435 target, then trust the current value of $cpsr. This lets
436 "display/i $pc" always show the correct mode (though if there is
437 a symbol table we will not reach here, so it still may not be
18819fa6 438 displayed in the mode it will be executed). */
0428b8f5 439 if (target_has_registers)
18819fa6 440 return arm_frame_is_thumb (get_current_frame ());
0428b8f5
DJ
441
442 /* Otherwise we're out of luck; we assume ARM. */
443 return 0;
c906108c
SS
444}
445
181c1381 446/* Remove useless bits from addresses in a running program. */
34e8f22d 447static CORE_ADDR
24568a2c 448arm_addr_bits_remove (struct gdbarch *gdbarch, CORE_ADDR val)
c906108c 449{
2ae28aa9
YQ
450 /* On M-profile devices, do not strip the low bit from EXC_RETURN
451 (the magic exception return address). */
452 if (gdbarch_tdep (gdbarch)->is_m
453 && (val & 0xfffffff0) == 0xfffffff0)
454 return val;
455
a3a2ee65 456 if (arm_apcs_32)
dd6be234 457 return UNMAKE_THUMB_ADDR (val);
c906108c 458 else
a3a2ee65 459 return (val & 0x03fffffc);
c906108c
SS
460}
461
0d39a070 462/* Return 1 if PC is the start of a compiler helper function which
e0634ccf
UW
463 can be safely ignored during prologue skipping. IS_THUMB is true
464 if the function is known to be a Thumb function due to the way it
465 is being called. */
0d39a070 466static int
e0634ccf 467skip_prologue_function (struct gdbarch *gdbarch, CORE_ADDR pc, int is_thumb)
0d39a070 468{
e0634ccf 469 enum bfd_endian byte_order_for_code = gdbarch_byte_order_for_code (gdbarch);
7cbd4a93 470 struct bound_minimal_symbol msym;
0d39a070
DJ
471
472 msym = lookup_minimal_symbol_by_pc (pc);
7cbd4a93 473 if (msym.minsym != NULL
77e371c0 474 && BMSYMBOL_VALUE_ADDRESS (msym) == pc
efd66ac6 475 && MSYMBOL_LINKAGE_NAME (msym.minsym) != NULL)
e0634ccf 476 {
efd66ac6 477 const char *name = MSYMBOL_LINKAGE_NAME (msym.minsym);
0d39a070 478
e0634ccf
UW
479 /* The GNU linker's Thumb call stub to foo is named
480 __foo_from_thumb. */
481 if (strstr (name, "_from_thumb") != NULL)
482 name += 2;
0d39a070 483
e0634ccf
UW
484 /* On soft-float targets, __truncdfsf2 is called to convert promoted
485 arguments to their argument types in non-prototyped
486 functions. */
61012eef 487 if (startswith (name, "__truncdfsf2"))
e0634ccf 488 return 1;
61012eef 489 if (startswith (name, "__aeabi_d2f"))
e0634ccf 490 return 1;
0d39a070 491
e0634ccf 492 /* Internal functions related to thread-local storage. */
61012eef 493 if (startswith (name, "__tls_get_addr"))
e0634ccf 494 return 1;
61012eef 495 if (startswith (name, "__aeabi_read_tp"))
e0634ccf
UW
496 return 1;
497 }
498 else
499 {
500 /* If we run against a stripped glibc, we may be unable to identify
501 special functions by name. Check for one important case,
502 __aeabi_read_tp, by comparing the *code* against the default
503 implementation (this is hand-written ARM assembler in glibc). */
504
505 if (!is_thumb
506 && read_memory_unsigned_integer (pc, 4, byte_order_for_code)
507 == 0xe3e00a0f /* mov r0, #0xffff0fff */
508 && read_memory_unsigned_integer (pc + 4, 4, byte_order_for_code)
509 == 0xe240f01f) /* sub pc, r0, #31 */
510 return 1;
511 }
ec3d575a 512
0d39a070
DJ
513 return 0;
514}
515
516/* Support routines for instruction parsing. */
517#define submask(x) ((1L << ((x) + 1)) - 1)
518#define bit(obj,st) (((obj) >> (st)) & 1)
519#define bits(obj,st,fn) (((obj) >> (st)) & submask ((fn) - (st)))
520#define sbits(obj,st,fn) \
521 ((long) (bits(obj,st,fn) | ((long) bit(obj,fn) * ~ submask (fn - st))))
522#define BranchDest(addr,instr) \
9991b207 523 ((CORE_ADDR) (((unsigned long) (addr)) + 8 + (sbits (instr, 0, 23) << 2)))
0d39a070 524
621c6d5b
YQ
525/* Extract the immediate from instruction movw/movt of encoding T. INSN1 is
526 the first 16-bit of instruction, and INSN2 is the second 16-bit of
527 instruction. */
528#define EXTRACT_MOVW_MOVT_IMM_T(insn1, insn2) \
529 ((bits ((insn1), 0, 3) << 12) \
530 | (bits ((insn1), 10, 10) << 11) \
531 | (bits ((insn2), 12, 14) << 8) \
532 | bits ((insn2), 0, 7))
533
534/* Extract the immediate from instruction movw/movt of encoding A. INSN is
535 the 32-bit instruction. */
536#define EXTRACT_MOVW_MOVT_IMM_A(insn) \
537 ((bits ((insn), 16, 19) << 12) \
538 | bits ((insn), 0, 11))
539
ec3d575a
UW
540/* Decode immediate value; implements ThumbExpandImmediate pseudo-op. */
541
542static unsigned int
543thumb_expand_immediate (unsigned int imm)
544{
545 unsigned int count = imm >> 7;
546
547 if (count < 8)
548 switch (count / 2)
549 {
550 case 0:
551 return imm & 0xff;
552 case 1:
553 return (imm & 0xff) | ((imm & 0xff) << 16);
554 case 2:
555 return ((imm & 0xff) << 8) | ((imm & 0xff) << 24);
556 case 3:
557 return (imm & 0xff) | ((imm & 0xff) << 8)
558 | ((imm & 0xff) << 16) | ((imm & 0xff) << 24);
559 }
560
561 return (0x80 | (imm & 0x7f)) << (32 - count);
562}
563
564/* Return 1 if the 16-bit Thumb instruction INST might change
565 control flow, 0 otherwise. */
566
567static int
568thumb_instruction_changes_pc (unsigned short inst)
569{
570 if ((inst & 0xff00) == 0xbd00) /* pop {rlist, pc} */
571 return 1;
572
573 if ((inst & 0xf000) == 0xd000) /* conditional branch */
574 return 1;
575
576 if ((inst & 0xf800) == 0xe000) /* unconditional branch */
577 return 1;
578
579 if ((inst & 0xff00) == 0x4700) /* bx REG, blx REG */
580 return 1;
581
ad8b5167
UW
582 if ((inst & 0xff87) == 0x4687) /* mov pc, REG */
583 return 1;
584
ec3d575a
UW
585 if ((inst & 0xf500) == 0xb100) /* CBNZ or CBZ. */
586 return 1;
587
588 return 0;
589}
590
591/* Return 1 if the 32-bit Thumb instruction in INST1 and INST2
592 might change control flow, 0 otherwise. */
593
594static int
595thumb2_instruction_changes_pc (unsigned short inst1, unsigned short inst2)
596{
597 if ((inst1 & 0xf800) == 0xf000 && (inst2 & 0x8000) == 0x8000)
598 {
599 /* Branches and miscellaneous control instructions. */
600
601 if ((inst2 & 0x1000) != 0 || (inst2 & 0xd001) == 0xc000)
602 {
603 /* B, BL, BLX. */
604 return 1;
605 }
606 else if (inst1 == 0xf3de && (inst2 & 0xff00) == 0x3f00)
607 {
608 /* SUBS PC, LR, #imm8. */
609 return 1;
610 }
611 else if ((inst2 & 0xd000) == 0x8000 && (inst1 & 0x0380) != 0x0380)
612 {
613 /* Conditional branch. */
614 return 1;
615 }
616
617 return 0;
618 }
619
620 if ((inst1 & 0xfe50) == 0xe810)
621 {
622 /* Load multiple or RFE. */
623
624 if (bit (inst1, 7) && !bit (inst1, 8))
625 {
626 /* LDMIA or POP */
627 if (bit (inst2, 15))
628 return 1;
629 }
630 else if (!bit (inst1, 7) && bit (inst1, 8))
631 {
632 /* LDMDB */
633 if (bit (inst2, 15))
634 return 1;
635 }
636 else if (bit (inst1, 7) && bit (inst1, 8))
637 {
638 /* RFEIA */
639 return 1;
640 }
641 else if (!bit (inst1, 7) && !bit (inst1, 8))
642 {
643 /* RFEDB */
644 return 1;
645 }
646
647 return 0;
648 }
649
650 if ((inst1 & 0xffef) == 0xea4f && (inst2 & 0xfff0) == 0x0f00)
651 {
652 /* MOV PC or MOVS PC. */
653 return 1;
654 }
655
656 if ((inst1 & 0xff70) == 0xf850 && (inst2 & 0xf000) == 0xf000)
657 {
658 /* LDR PC. */
659 if (bits (inst1, 0, 3) == 15)
660 return 1;
661 if (bit (inst1, 7))
662 return 1;
663 if (bit (inst2, 11))
664 return 1;
665 if ((inst2 & 0x0fc0) == 0x0000)
666 return 1;
667
668 return 0;
669 }
670
671 if ((inst1 & 0xfff0) == 0xe8d0 && (inst2 & 0xfff0) == 0xf000)
672 {
673 /* TBB. */
674 return 1;
675 }
676
677 if ((inst1 & 0xfff0) == 0xe8d0 && (inst2 & 0xfff0) == 0xf010)
678 {
679 /* TBH. */
680 return 1;
681 }
682
683 return 0;
684}
685
540314bd
YQ
686/* Return 1 if the 16-bit Thumb instruction INSN restores SP in
687 epilogue, 0 otherwise. */
688
689static int
690thumb_instruction_restores_sp (unsigned short insn)
691{
692 return (insn == 0x46bd /* mov sp, r7 */
693 || (insn & 0xff80) == 0xb000 /* add sp, imm */
694 || (insn & 0xfe00) == 0xbc00); /* pop <registers> */
695}
696
29d73ae4
DJ
697/* Analyze a Thumb prologue, looking for a recognizable stack frame
698 and frame pointer. Scan until we encounter a store that could
0d39a070
DJ
699 clobber the stack frame unexpectedly, or an unknown instruction.
700 Return the last address which is definitely safe to skip for an
701 initial breakpoint. */
c906108c
SS
702
703static CORE_ADDR
29d73ae4
DJ
704thumb_analyze_prologue (struct gdbarch *gdbarch,
705 CORE_ADDR start, CORE_ADDR limit,
706 struct arm_prologue_cache *cache)
c906108c 707{
0d39a070 708 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
e17a4113 709 enum bfd_endian byte_order_for_code = gdbarch_byte_order_for_code (gdbarch);
29d73ae4
DJ
710 int i;
711 pv_t regs[16];
712 struct pv_area *stack;
713 struct cleanup *back_to;
714 CORE_ADDR offset;
ec3d575a 715 CORE_ADDR unrecognized_pc = 0;
da3c6d4a 716
29d73ae4
DJ
717 for (i = 0; i < 16; i++)
718 regs[i] = pv_register (i, 0);
55f960e1 719 stack = make_pv_area (ARM_SP_REGNUM, gdbarch_addr_bit (gdbarch));
29d73ae4
DJ
720 back_to = make_cleanup_free_pv_area (stack);
721
29d73ae4 722 while (start < limit)
c906108c 723 {
29d73ae4
DJ
724 unsigned short insn;
725
e17a4113 726 insn = read_memory_unsigned_integer (start, 2, byte_order_for_code);
9d4fde75 727
94c30b78 728 if ((insn & 0xfe00) == 0xb400) /* push { rlist } */
da59e081 729 {
29d73ae4
DJ
730 int regno;
731 int mask;
4be43953
DJ
732
733 if (pv_area_store_would_trash (stack, regs[ARM_SP_REGNUM]))
734 break;
29d73ae4
DJ
735
736 /* Bits 0-7 contain a mask for registers R0-R7. Bit 8 says
737 whether to save LR (R14). */
738 mask = (insn & 0xff) | ((insn & 0x100) << 6);
739
740 /* Calculate offsets of saved R0-R7 and LR. */
741 for (regno = ARM_LR_REGNUM; regno >= 0; regno--)
742 if (mask & (1 << regno))
743 {
29d73ae4
DJ
744 regs[ARM_SP_REGNUM] = pv_add_constant (regs[ARM_SP_REGNUM],
745 -4);
746 pv_area_store (stack, regs[ARM_SP_REGNUM], 4, regs[regno]);
747 }
da59e081 748 }
1db01f22 749 else if ((insn & 0xff80) == 0xb080) /* sub sp, #imm */
da59e081 750 {
29d73ae4 751 offset = (insn & 0x7f) << 2; /* get scaled offset */
1db01f22
YQ
752 regs[ARM_SP_REGNUM] = pv_add_constant (regs[ARM_SP_REGNUM],
753 -offset);
da59e081 754 }
808f7ab1
YQ
755 else if (thumb_instruction_restores_sp (insn))
756 {
757 /* Don't scan past the epilogue. */
758 break;
759 }
0d39a070
DJ
760 else if ((insn & 0xf800) == 0xa800) /* add Rd, sp, #imm */
761 regs[bits (insn, 8, 10)] = pv_add_constant (regs[ARM_SP_REGNUM],
762 (insn & 0xff) << 2);
763 else if ((insn & 0xfe00) == 0x1c00 /* add Rd, Rn, #imm */
764 && pv_is_register (regs[bits (insn, 3, 5)], ARM_SP_REGNUM))
765 regs[bits (insn, 0, 2)] = pv_add_constant (regs[bits (insn, 3, 5)],
766 bits (insn, 6, 8));
767 else if ((insn & 0xf800) == 0x3000 /* add Rd, #imm */
768 && pv_is_register (regs[bits (insn, 8, 10)], ARM_SP_REGNUM))
769 regs[bits (insn, 8, 10)] = pv_add_constant (regs[bits (insn, 8, 10)],
770 bits (insn, 0, 7));
771 else if ((insn & 0xfe00) == 0x1800 /* add Rd, Rn, Rm */
772 && pv_is_register (regs[bits (insn, 6, 8)], ARM_SP_REGNUM)
773 && pv_is_constant (regs[bits (insn, 3, 5)]))
774 regs[bits (insn, 0, 2)] = pv_add (regs[bits (insn, 3, 5)],
775 regs[bits (insn, 6, 8)]);
776 else if ((insn & 0xff00) == 0x4400 /* add Rd, Rm */
777 && pv_is_constant (regs[bits (insn, 3, 6)]))
778 {
779 int rd = (bit (insn, 7) << 3) + bits (insn, 0, 2);
780 int rm = bits (insn, 3, 6);
781 regs[rd] = pv_add (regs[rd], regs[rm]);
782 }
29d73ae4 783 else if ((insn & 0xff00) == 0x4600) /* mov hi, lo or mov lo, hi */
da59e081 784 {
29d73ae4
DJ
785 int dst_reg = (insn & 0x7) + ((insn & 0x80) >> 4);
786 int src_reg = (insn & 0x78) >> 3;
787 regs[dst_reg] = regs[src_reg];
da59e081 788 }
29d73ae4 789 else if ((insn & 0xf800) == 0x9000) /* str rd, [sp, #off] */
da59e081 790 {
29d73ae4
DJ
791 /* Handle stores to the stack. Normally pushes are used,
792 but with GCC -mtpcs-frame, there may be other stores
793 in the prologue to create the frame. */
794 int regno = (insn >> 8) & 0x7;
795 pv_t addr;
796
797 offset = (insn & 0xff) << 2;
798 addr = pv_add_constant (regs[ARM_SP_REGNUM], offset);
799
800 if (pv_area_store_would_trash (stack, addr))
801 break;
802
803 pv_area_store (stack, addr, 4, regs[regno]);
da59e081 804 }
0d39a070
DJ
805 else if ((insn & 0xf800) == 0x6000) /* str rd, [rn, #off] */
806 {
807 int rd = bits (insn, 0, 2);
808 int rn = bits (insn, 3, 5);
809 pv_t addr;
810
811 offset = bits (insn, 6, 10) << 2;
812 addr = pv_add_constant (regs[rn], offset);
813
814 if (pv_area_store_would_trash (stack, addr))
815 break;
816
817 pv_area_store (stack, addr, 4, regs[rd]);
818 }
819 else if (((insn & 0xf800) == 0x7000 /* strb Rd, [Rn, #off] */
820 || (insn & 0xf800) == 0x8000) /* strh Rd, [Rn, #off] */
821 && pv_is_register (regs[bits (insn, 3, 5)], ARM_SP_REGNUM))
822 /* Ignore stores of argument registers to the stack. */
823 ;
824 else if ((insn & 0xf800) == 0xc800 /* ldmia Rn!, { registers } */
825 && pv_is_register (regs[bits (insn, 8, 10)], ARM_SP_REGNUM))
826 /* Ignore block loads from the stack, potentially copying
827 parameters from memory. */
828 ;
829 else if ((insn & 0xf800) == 0x9800 /* ldr Rd, [Rn, #immed] */
830 || ((insn & 0xf800) == 0x6800 /* ldr Rd, [sp, #immed] */
831 && pv_is_register (regs[bits (insn, 3, 5)], ARM_SP_REGNUM)))
832 /* Similarly ignore single loads from the stack. */
833 ;
834 else if ((insn & 0xffc0) == 0x0000 /* lsls Rd, Rm, #0 */
835 || (insn & 0xffc0) == 0x1c00) /* add Rd, Rn, #0 */
836 /* Skip register copies, i.e. saves to another register
837 instead of the stack. */
838 ;
839 else if ((insn & 0xf800) == 0x2000) /* movs Rd, #imm */
840 /* Recognize constant loads; even with small stacks these are necessary
841 on Thumb. */
842 regs[bits (insn, 8, 10)] = pv_constant (bits (insn, 0, 7));
843 else if ((insn & 0xf800) == 0x4800) /* ldr Rd, [pc, #imm] */
844 {
845 /* Constant pool loads, for the same reason. */
846 unsigned int constant;
847 CORE_ADDR loc;
848
849 loc = start + 4 + bits (insn, 0, 7) * 4;
850 constant = read_memory_unsigned_integer (loc, 4, byte_order);
851 regs[bits (insn, 8, 10)] = pv_constant (constant);
852 }
db24da6d 853 else if (thumb_insn_size (insn) == 4) /* 32-bit Thumb-2 instructions. */
0d39a070 854 {
0d39a070
DJ
855 unsigned short inst2;
856
857 inst2 = read_memory_unsigned_integer (start + 2, 2,
858 byte_order_for_code);
859
860 if ((insn & 0xf800) == 0xf000 && (inst2 & 0xe800) == 0xe800)
861 {
862 /* BL, BLX. Allow some special function calls when
863 skipping the prologue; GCC generates these before
864 storing arguments to the stack. */
865 CORE_ADDR nextpc;
866 int j1, j2, imm1, imm2;
867
868 imm1 = sbits (insn, 0, 10);
869 imm2 = bits (inst2, 0, 10);
870 j1 = bit (inst2, 13);
871 j2 = bit (inst2, 11);
872
873 offset = ((imm1 << 12) + (imm2 << 1));
874 offset ^= ((!j2) << 22) | ((!j1) << 23);
875
876 nextpc = start + 4 + offset;
877 /* For BLX make sure to clear the low bits. */
878 if (bit (inst2, 12) == 0)
879 nextpc = nextpc & 0xfffffffc;
880
e0634ccf
UW
881 if (!skip_prologue_function (gdbarch, nextpc,
882 bit (inst2, 12) != 0))
0d39a070
DJ
883 break;
884 }
ec3d575a 885
0963b4bd
MS
886 else if ((insn & 0xffd0) == 0xe900 /* stmdb Rn{!},
887 { registers } */
ec3d575a
UW
888 && pv_is_register (regs[bits (insn, 0, 3)], ARM_SP_REGNUM))
889 {
890 pv_t addr = regs[bits (insn, 0, 3)];
891 int regno;
892
893 if (pv_area_store_would_trash (stack, addr))
894 break;
895
896 /* Calculate offsets of saved registers. */
897 for (regno = ARM_LR_REGNUM; regno >= 0; regno--)
898 if (inst2 & (1 << regno))
899 {
900 addr = pv_add_constant (addr, -4);
901 pv_area_store (stack, addr, 4, regs[regno]);
902 }
903
904 if (insn & 0x0020)
905 regs[bits (insn, 0, 3)] = addr;
906 }
907
0963b4bd
MS
908 else if ((insn & 0xff50) == 0xe940 /* strd Rt, Rt2,
909 [Rn, #+/-imm]{!} */
ec3d575a
UW
910 && pv_is_register (regs[bits (insn, 0, 3)], ARM_SP_REGNUM))
911 {
912 int regno1 = bits (inst2, 12, 15);
913 int regno2 = bits (inst2, 8, 11);
914 pv_t addr = regs[bits (insn, 0, 3)];
915
916 offset = inst2 & 0xff;
917 if (insn & 0x0080)
918 addr = pv_add_constant (addr, offset);
919 else
920 addr = pv_add_constant (addr, -offset);
921
922 if (pv_area_store_would_trash (stack, addr))
923 break;
924
925 pv_area_store (stack, addr, 4, regs[regno1]);
926 pv_area_store (stack, pv_add_constant (addr, 4),
927 4, regs[regno2]);
928
929 if (insn & 0x0020)
930 regs[bits (insn, 0, 3)] = addr;
931 }
932
933 else if ((insn & 0xfff0) == 0xf8c0 /* str Rt,[Rn,+/-#imm]{!} */
934 && (inst2 & 0x0c00) == 0x0c00
935 && pv_is_register (regs[bits (insn, 0, 3)], ARM_SP_REGNUM))
936 {
937 int regno = bits (inst2, 12, 15);
938 pv_t addr = regs[bits (insn, 0, 3)];
939
940 offset = inst2 & 0xff;
941 if (inst2 & 0x0200)
942 addr = pv_add_constant (addr, offset);
943 else
944 addr = pv_add_constant (addr, -offset);
945
946 if (pv_area_store_would_trash (stack, addr))
947 break;
948
949 pv_area_store (stack, addr, 4, regs[regno]);
950
951 if (inst2 & 0x0100)
952 regs[bits (insn, 0, 3)] = addr;
953 }
954
955 else if ((insn & 0xfff0) == 0xf8c0 /* str.w Rt,[Rn,#imm] */
956 && pv_is_register (regs[bits (insn, 0, 3)], ARM_SP_REGNUM))
957 {
958 int regno = bits (inst2, 12, 15);
959 pv_t addr;
960
961 offset = inst2 & 0xfff;
962 addr = pv_add_constant (regs[bits (insn, 0, 3)], offset);
963
964 if (pv_area_store_would_trash (stack, addr))
965 break;
966
967 pv_area_store (stack, addr, 4, regs[regno]);
968 }
969
970 else if ((insn & 0xffd0) == 0xf880 /* str{bh}.w Rt,[Rn,#imm] */
0d39a070 971 && pv_is_register (regs[bits (insn, 0, 3)], ARM_SP_REGNUM))
ec3d575a 972 /* Ignore stores of argument registers to the stack. */
0d39a070 973 ;
ec3d575a
UW
974
975 else if ((insn & 0xffd0) == 0xf800 /* str{bh} Rt,[Rn,#+/-imm] */
976 && (inst2 & 0x0d00) == 0x0c00
0d39a070 977 && pv_is_register (regs[bits (insn, 0, 3)], ARM_SP_REGNUM))
ec3d575a 978 /* Ignore stores of argument registers to the stack. */
0d39a070 979 ;
ec3d575a 980
0963b4bd
MS
981 else if ((insn & 0xffd0) == 0xe890 /* ldmia Rn[!],
982 { registers } */
ec3d575a
UW
983 && (inst2 & 0x8000) == 0x0000
984 && pv_is_register (regs[bits (insn, 0, 3)], ARM_SP_REGNUM))
985 /* Ignore block loads from the stack, potentially copying
986 parameters from memory. */
0d39a070 987 ;
ec3d575a 988
0963b4bd
MS
989 else if ((insn & 0xffb0) == 0xe950 /* ldrd Rt, Rt2,
990 [Rn, #+/-imm] */
0d39a070 991 && pv_is_register (regs[bits (insn, 0, 3)], ARM_SP_REGNUM))
ec3d575a 992 /* Similarly ignore dual loads from the stack. */
0d39a070 993 ;
ec3d575a
UW
994
995 else if ((insn & 0xfff0) == 0xf850 /* ldr Rt,[Rn,#+/-imm] */
996 && (inst2 & 0x0d00) == 0x0c00
0d39a070 997 && pv_is_register (regs[bits (insn, 0, 3)], ARM_SP_REGNUM))
ec3d575a 998 /* Similarly ignore single loads from the stack. */
0d39a070 999 ;
ec3d575a
UW
1000
1001 else if ((insn & 0xfff0) == 0xf8d0 /* ldr.w Rt,[Rn,#imm] */
0d39a070 1002 && pv_is_register (regs[bits (insn, 0, 3)], ARM_SP_REGNUM))
ec3d575a 1003 /* Similarly ignore single loads from the stack. */
0d39a070 1004 ;
ec3d575a
UW
1005
1006 else if ((insn & 0xfbf0) == 0xf100 /* add.w Rd, Rn, #imm */
1007 && (inst2 & 0x8000) == 0x0000)
1008 {
1009 unsigned int imm = ((bits (insn, 10, 10) << 11)
1010 | (bits (inst2, 12, 14) << 8)
1011 | bits (inst2, 0, 7));
1012
1013 regs[bits (inst2, 8, 11)]
1014 = pv_add_constant (regs[bits (insn, 0, 3)],
1015 thumb_expand_immediate (imm));
1016 }
1017
1018 else if ((insn & 0xfbf0) == 0xf200 /* addw Rd, Rn, #imm */
1019 && (inst2 & 0x8000) == 0x0000)
0d39a070 1020 {
ec3d575a
UW
1021 unsigned int imm = ((bits (insn, 10, 10) << 11)
1022 | (bits (inst2, 12, 14) << 8)
1023 | bits (inst2, 0, 7));
1024
1025 regs[bits (inst2, 8, 11)]
1026 = pv_add_constant (regs[bits (insn, 0, 3)], imm);
1027 }
1028
1029 else if ((insn & 0xfbf0) == 0xf1a0 /* sub.w Rd, Rn, #imm */
1030 && (inst2 & 0x8000) == 0x0000)
1031 {
1032 unsigned int imm = ((bits (insn, 10, 10) << 11)
1033 | (bits (inst2, 12, 14) << 8)
1034 | bits (inst2, 0, 7));
1035
1036 regs[bits (inst2, 8, 11)]
1037 = pv_add_constant (regs[bits (insn, 0, 3)],
1038 - (CORE_ADDR) thumb_expand_immediate (imm));
1039 }
1040
1041 else if ((insn & 0xfbf0) == 0xf2a0 /* subw Rd, Rn, #imm */
1042 && (inst2 & 0x8000) == 0x0000)
1043 {
1044 unsigned int imm = ((bits (insn, 10, 10) << 11)
1045 | (bits (inst2, 12, 14) << 8)
1046 | bits (inst2, 0, 7));
1047
1048 regs[bits (inst2, 8, 11)]
1049 = pv_add_constant (regs[bits (insn, 0, 3)], - (CORE_ADDR) imm);
1050 }
1051
1052 else if ((insn & 0xfbff) == 0xf04f) /* mov.w Rd, #const */
1053 {
1054 unsigned int imm = ((bits (insn, 10, 10) << 11)
1055 | (bits (inst2, 12, 14) << 8)
1056 | bits (inst2, 0, 7));
1057
1058 regs[bits (inst2, 8, 11)]
1059 = pv_constant (thumb_expand_immediate (imm));
1060 }
1061
1062 else if ((insn & 0xfbf0) == 0xf240) /* movw Rd, #const */
1063 {
621c6d5b
YQ
1064 unsigned int imm
1065 = EXTRACT_MOVW_MOVT_IMM_T (insn, inst2);
ec3d575a
UW
1066
1067 regs[bits (inst2, 8, 11)] = pv_constant (imm);
1068 }
1069
1070 else if (insn == 0xea5f /* mov.w Rd,Rm */
1071 && (inst2 & 0xf0f0) == 0)
1072 {
1073 int dst_reg = (inst2 & 0x0f00) >> 8;
1074 int src_reg = inst2 & 0xf;
1075 regs[dst_reg] = regs[src_reg];
1076 }
1077
1078 else if ((insn & 0xff7f) == 0xf85f) /* ldr.w Rt,<label> */
1079 {
1080 /* Constant pool loads. */
1081 unsigned int constant;
1082 CORE_ADDR loc;
1083
cac395ea 1084 offset = bits (inst2, 0, 11);
ec3d575a
UW
1085 if (insn & 0x0080)
1086 loc = start + 4 + offset;
1087 else
1088 loc = start + 4 - offset;
1089
1090 constant = read_memory_unsigned_integer (loc, 4, byte_order);
1091 regs[bits (inst2, 12, 15)] = pv_constant (constant);
1092 }
1093
1094 else if ((insn & 0xff7f) == 0xe95f) /* ldrd Rt,Rt2,<label> */
1095 {
1096 /* Constant pool loads. */
1097 unsigned int constant;
1098 CORE_ADDR loc;
1099
cac395ea 1100 offset = bits (inst2, 0, 7) << 2;
ec3d575a
UW
1101 if (insn & 0x0080)
1102 loc = start + 4 + offset;
1103 else
1104 loc = start + 4 - offset;
1105
1106 constant = read_memory_unsigned_integer (loc, 4, byte_order);
1107 regs[bits (inst2, 12, 15)] = pv_constant (constant);
1108
1109 constant = read_memory_unsigned_integer (loc + 4, 4, byte_order);
1110 regs[bits (inst2, 8, 11)] = pv_constant (constant);
1111 }
1112
1113 else if (thumb2_instruction_changes_pc (insn, inst2))
1114 {
1115 /* Don't scan past anything that might change control flow. */
0d39a070
DJ
1116 break;
1117 }
ec3d575a
UW
1118 else
1119 {
1120 /* The optimizer might shove anything into the prologue,
1121 so we just skip what we don't recognize. */
1122 unrecognized_pc = start;
1123 }
0d39a070
DJ
1124
1125 start += 2;
1126 }
ec3d575a 1127 else if (thumb_instruction_changes_pc (insn))
3d74b771 1128 {
ec3d575a 1129 /* Don't scan past anything that might change control flow. */
da3c6d4a 1130 break;
3d74b771 1131 }
ec3d575a
UW
1132 else
1133 {
1134 /* The optimizer might shove anything into the prologue,
1135 so we just skip what we don't recognize. */
1136 unrecognized_pc = start;
1137 }
29d73ae4
DJ
1138
1139 start += 2;
c906108c
SS
1140 }
1141
0d39a070
DJ
1142 if (arm_debug)
1143 fprintf_unfiltered (gdb_stdlog, "Prologue scan stopped at %s\n",
1144 paddress (gdbarch, start));
1145
ec3d575a
UW
1146 if (unrecognized_pc == 0)
1147 unrecognized_pc = start;
1148
29d73ae4
DJ
1149 if (cache == NULL)
1150 {
1151 do_cleanups (back_to);
ec3d575a 1152 return unrecognized_pc;
29d73ae4
DJ
1153 }
1154
29d73ae4
DJ
1155 if (pv_is_register (regs[ARM_FP_REGNUM], ARM_SP_REGNUM))
1156 {
1157 /* Frame pointer is fp. Frame size is constant. */
1158 cache->framereg = ARM_FP_REGNUM;
1159 cache->framesize = -regs[ARM_FP_REGNUM].k;
1160 }
1161 else if (pv_is_register (regs[THUMB_FP_REGNUM], ARM_SP_REGNUM))
1162 {
1163 /* Frame pointer is r7. Frame size is constant. */
1164 cache->framereg = THUMB_FP_REGNUM;
1165 cache->framesize = -regs[THUMB_FP_REGNUM].k;
1166 }
72a2e3dc 1167 else
29d73ae4
DJ
1168 {
1169 /* Try the stack pointer... this is a bit desperate. */
1170 cache->framereg = ARM_SP_REGNUM;
1171 cache->framesize = -regs[ARM_SP_REGNUM].k;
1172 }
29d73ae4
DJ
1173
1174 for (i = 0; i < 16; i++)
1175 if (pv_area_find_reg (stack, gdbarch, i, &offset))
1176 cache->saved_regs[i].addr = offset;
1177
1178 do_cleanups (back_to);
ec3d575a 1179 return unrecognized_pc;
c906108c
SS
1180}
1181
621c6d5b
YQ
1182
1183/* Try to analyze the instructions starting from PC, which load symbol
1184 __stack_chk_guard. Return the address of instruction after loading this
1185 symbol, set the dest register number to *BASEREG, and set the size of
1186 instructions for loading symbol in OFFSET. Return 0 if instructions are
1187 not recognized. */
1188
1189static CORE_ADDR
1190arm_analyze_load_stack_chk_guard(CORE_ADDR pc, struct gdbarch *gdbarch,
1191 unsigned int *destreg, int *offset)
1192{
1193 enum bfd_endian byte_order_for_code = gdbarch_byte_order_for_code (gdbarch);
1194 int is_thumb = arm_pc_is_thumb (gdbarch, pc);
1195 unsigned int low, high, address;
1196
1197 address = 0;
1198 if (is_thumb)
1199 {
1200 unsigned short insn1
1201 = read_memory_unsigned_integer (pc, 2, byte_order_for_code);
1202
1203 if ((insn1 & 0xf800) == 0x4800) /* ldr Rd, #immed */
1204 {
1205 *destreg = bits (insn1, 8, 10);
1206 *offset = 2;
6ae274b7
YQ
1207 address = (pc & 0xfffffffc) + 4 + (bits (insn1, 0, 7) << 2);
1208 address = read_memory_unsigned_integer (address, 4,
1209 byte_order_for_code);
621c6d5b
YQ
1210 }
1211 else if ((insn1 & 0xfbf0) == 0xf240) /* movw Rd, #const */
1212 {
1213 unsigned short insn2
1214 = read_memory_unsigned_integer (pc + 2, 2, byte_order_for_code);
1215
1216 low = EXTRACT_MOVW_MOVT_IMM_T (insn1, insn2);
1217
1218 insn1
1219 = read_memory_unsigned_integer (pc + 4, 2, byte_order_for_code);
1220 insn2
1221 = read_memory_unsigned_integer (pc + 6, 2, byte_order_for_code);
1222
1223 /* movt Rd, #const */
1224 if ((insn1 & 0xfbc0) == 0xf2c0)
1225 {
1226 high = EXTRACT_MOVW_MOVT_IMM_T (insn1, insn2);
1227 *destreg = bits (insn2, 8, 11);
1228 *offset = 8;
1229 address = (high << 16 | low);
1230 }
1231 }
1232 }
1233 else
1234 {
2e9e421f
UW
1235 unsigned int insn
1236 = read_memory_unsigned_integer (pc, 4, byte_order_for_code);
1237
6ae274b7 1238 if ((insn & 0x0e5f0000) == 0x041f0000) /* ldr Rd, [PC, #immed] */
2e9e421f 1239 {
6ae274b7
YQ
1240 address = bits (insn, 0, 11) + pc + 8;
1241 address = read_memory_unsigned_integer (address, 4,
1242 byte_order_for_code);
1243
2e9e421f
UW
1244 *destreg = bits (insn, 12, 15);
1245 *offset = 4;
1246 }
1247 else if ((insn & 0x0ff00000) == 0x03000000) /* movw Rd, #const */
1248 {
1249 low = EXTRACT_MOVW_MOVT_IMM_A (insn);
1250
1251 insn
1252 = read_memory_unsigned_integer (pc + 4, 4, byte_order_for_code);
1253
1254 if ((insn & 0x0ff00000) == 0x03400000) /* movt Rd, #const */
1255 {
1256 high = EXTRACT_MOVW_MOVT_IMM_A (insn);
1257 *destreg = bits (insn, 12, 15);
1258 *offset = 8;
1259 address = (high << 16 | low);
1260 }
1261 }
621c6d5b
YQ
1262 }
1263
1264 return address;
1265}
1266
1267/* Try to skip a sequence of instructions used for stack protector. If PC
0963b4bd
MS
1268 points to the first instruction of this sequence, return the address of
1269 first instruction after this sequence, otherwise, return original PC.
621c6d5b
YQ
1270
1271 On arm, this sequence of instructions is composed of mainly three steps,
1272 Step 1: load symbol __stack_chk_guard,
1273 Step 2: load from address of __stack_chk_guard,
1274 Step 3: store it to somewhere else.
1275
1276 Usually, instructions on step 2 and step 3 are the same on various ARM
1277 architectures. On step 2, it is one instruction 'ldr Rx, [Rn, #0]', and
1278 on step 3, it is also one instruction 'str Rx, [r7, #immd]'. However,
1279 instructions in step 1 vary from different ARM architectures. On ARMv7,
1280 they are,
1281
1282 movw Rn, #:lower16:__stack_chk_guard
1283 movt Rn, #:upper16:__stack_chk_guard
1284
1285 On ARMv5t, it is,
1286
1287 ldr Rn, .Label
1288 ....
1289 .Lable:
1290 .word __stack_chk_guard
1291
1292 Since ldr/str is a very popular instruction, we can't use them as
1293 'fingerprint' or 'signature' of stack protector sequence. Here we choose
1294 sequence {movw/movt, ldr}/ldr/str plus symbol __stack_chk_guard, if not
1295 stripped, as the 'fingerprint' of a stack protector cdoe sequence. */
1296
1297static CORE_ADDR
1298arm_skip_stack_protector(CORE_ADDR pc, struct gdbarch *gdbarch)
1299{
1300 enum bfd_endian byte_order_for_code = gdbarch_byte_order_for_code (gdbarch);
22e048c9 1301 unsigned int basereg;
7cbd4a93 1302 struct bound_minimal_symbol stack_chk_guard;
621c6d5b
YQ
1303 int offset;
1304 int is_thumb = arm_pc_is_thumb (gdbarch, pc);
1305 CORE_ADDR addr;
1306
1307 /* Try to parse the instructions in Step 1. */
1308 addr = arm_analyze_load_stack_chk_guard (pc, gdbarch,
1309 &basereg, &offset);
1310 if (!addr)
1311 return pc;
1312
1313 stack_chk_guard = lookup_minimal_symbol_by_pc (addr);
6041179a
JB
1314 /* ADDR must correspond to a symbol whose name is __stack_chk_guard.
1315 Otherwise, this sequence cannot be for stack protector. */
1316 if (stack_chk_guard.minsym == NULL
61012eef 1317 || !startswith (MSYMBOL_LINKAGE_NAME (stack_chk_guard.minsym), "__stack_chk_guard"))
621c6d5b
YQ
1318 return pc;
1319
1320 if (is_thumb)
1321 {
1322 unsigned int destreg;
1323 unsigned short insn
1324 = read_memory_unsigned_integer (pc + offset, 2, byte_order_for_code);
1325
1326 /* Step 2: ldr Rd, [Rn, #immed], encoding T1. */
1327 if ((insn & 0xf800) != 0x6800)
1328 return pc;
1329 if (bits (insn, 3, 5) != basereg)
1330 return pc;
1331 destreg = bits (insn, 0, 2);
1332
1333 insn = read_memory_unsigned_integer (pc + offset + 2, 2,
1334 byte_order_for_code);
1335 /* Step 3: str Rd, [Rn, #immed], encoding T1. */
1336 if ((insn & 0xf800) != 0x6000)
1337 return pc;
1338 if (destreg != bits (insn, 0, 2))
1339 return pc;
1340 }
1341 else
1342 {
1343 unsigned int destreg;
1344 unsigned int insn
1345 = read_memory_unsigned_integer (pc + offset, 4, byte_order_for_code);
1346
1347 /* Step 2: ldr Rd, [Rn, #immed], encoding A1. */
1348 if ((insn & 0x0e500000) != 0x04100000)
1349 return pc;
1350 if (bits (insn, 16, 19) != basereg)
1351 return pc;
1352 destreg = bits (insn, 12, 15);
1353 /* Step 3: str Rd, [Rn, #immed], encoding A1. */
1354 insn = read_memory_unsigned_integer (pc + offset + 4,
1355 4, byte_order_for_code);
1356 if ((insn & 0x0e500000) != 0x04000000)
1357 return pc;
1358 if (bits (insn, 12, 15) != destreg)
1359 return pc;
1360 }
1361 /* The size of total two instructions ldr/str is 4 on Thumb-2, while 8
1362 on arm. */
1363 if (is_thumb)
1364 return pc + offset + 4;
1365 else
1366 return pc + offset + 8;
1367}
1368
da3c6d4a
MS
1369/* Advance the PC across any function entry prologue instructions to
1370 reach some "real" code.
34e8f22d
RE
1371
1372 The APCS (ARM Procedure Call Standard) defines the following
ed9a39eb 1373 prologue:
c906108c 1374
c5aa993b
JM
1375 mov ip, sp
1376 [stmfd sp!, {a1,a2,a3,a4}]
1377 stmfd sp!, {...,fp,ip,lr,pc}
ed9a39eb
JM
1378 [stfe f7, [sp, #-12]!]
1379 [stfe f6, [sp, #-12]!]
1380 [stfe f5, [sp, #-12]!]
1381 [stfe f4, [sp, #-12]!]
0963b4bd 1382 sub fp, ip, #nn @@ nn == 20 or 4 depending on second insn. */
c906108c 1383
34e8f22d 1384static CORE_ADDR
6093d2eb 1385arm_skip_prologue (struct gdbarch *gdbarch, CORE_ADDR pc)
c906108c 1386{
e17a4113 1387 enum bfd_endian byte_order_for_code = gdbarch_byte_order_for_code (gdbarch);
c906108c 1388 unsigned long inst;
a89fea3c 1389 CORE_ADDR func_addr, limit_pc;
c906108c 1390
a89fea3c
JL
1391 /* See if we can determine the end of the prologue via the symbol table.
1392 If so, then return either PC, or the PC after the prologue, whichever
1393 is greater. */
1394 if (find_pc_partial_function (pc, NULL, &func_addr, NULL))
c906108c 1395 {
d80b854b
UW
1396 CORE_ADDR post_prologue_pc
1397 = skip_prologue_using_sal (gdbarch, func_addr);
43f3e411 1398 struct compunit_symtab *cust = find_pc_compunit_symtab (func_addr);
0d39a070 1399
621c6d5b
YQ
1400 if (post_prologue_pc)
1401 post_prologue_pc
1402 = arm_skip_stack_protector (post_prologue_pc, gdbarch);
1403
1404
0d39a070
DJ
1405 /* GCC always emits a line note before the prologue and another
1406 one after, even if the two are at the same address or on the
1407 same line. Take advantage of this so that we do not need to
1408 know every instruction that might appear in the prologue. We
1409 will have producer information for most binaries; if it is
1410 missing (e.g. for -gstabs), assuming the GNU tools. */
1411 if (post_prologue_pc
43f3e411
DE
1412 && (cust == NULL
1413 || COMPUNIT_PRODUCER (cust) == NULL
61012eef
GB
1414 || startswith (COMPUNIT_PRODUCER (cust), "GNU ")
1415 || startswith (COMPUNIT_PRODUCER (cust), "clang ")))
0d39a070
DJ
1416 return post_prologue_pc;
1417
a89fea3c 1418 if (post_prologue_pc != 0)
0d39a070
DJ
1419 {
1420 CORE_ADDR analyzed_limit;
1421
1422 /* For non-GCC compilers, make sure the entire line is an
1423 acceptable prologue; GDB will round this function's
1424 return value up to the end of the following line so we
1425 can not skip just part of a line (and we do not want to).
1426
1427 RealView does not treat the prologue specially, but does
1428 associate prologue code with the opening brace; so this
1429 lets us skip the first line if we think it is the opening
1430 brace. */
9779414d 1431 if (arm_pc_is_thumb (gdbarch, func_addr))
0d39a070
DJ
1432 analyzed_limit = thumb_analyze_prologue (gdbarch, func_addr,
1433 post_prologue_pc, NULL);
1434 else
1435 analyzed_limit = arm_analyze_prologue (gdbarch, func_addr,
1436 post_prologue_pc, NULL);
1437
1438 if (analyzed_limit != post_prologue_pc)
1439 return func_addr;
1440
1441 return post_prologue_pc;
1442 }
c906108c
SS
1443 }
1444
a89fea3c
JL
1445 /* Can't determine prologue from the symbol table, need to examine
1446 instructions. */
c906108c 1447
a89fea3c
JL
1448 /* Find an upper limit on the function prologue using the debug
1449 information. If the debug information could not be used to provide
1450 that bound, then use an arbitrary large number as the upper bound. */
0963b4bd 1451 /* Like arm_scan_prologue, stop no later than pc + 64. */
d80b854b 1452 limit_pc = skip_prologue_using_sal (gdbarch, pc);
a89fea3c
JL
1453 if (limit_pc == 0)
1454 limit_pc = pc + 64; /* Magic. */
1455
c906108c 1456
29d73ae4 1457 /* Check if this is Thumb code. */
9779414d 1458 if (arm_pc_is_thumb (gdbarch, pc))
a89fea3c 1459 return thumb_analyze_prologue (gdbarch, pc, limit_pc, NULL);
21daaaaf
YQ
1460 else
1461 return arm_analyze_prologue (gdbarch, pc, limit_pc, NULL);
c906108c 1462}
94c30b78 1463
c5aa993b 1464/* *INDENT-OFF* */
c906108c
SS
1465/* Function: thumb_scan_prologue (helper function for arm_scan_prologue)
1466 This function decodes a Thumb function prologue to determine:
1467 1) the size of the stack frame
1468 2) which registers are saved on it
1469 3) the offsets of saved regs
1470 4) the offset from the stack pointer to the frame pointer
c906108c 1471
da59e081
JM
1472 A typical Thumb function prologue would create this stack frame
1473 (offsets relative to FP)
c906108c
SS
1474 old SP -> 24 stack parameters
1475 20 LR
1476 16 R7
1477 R7 -> 0 local variables (16 bytes)
1478 SP -> -12 additional stack space (12 bytes)
1479 The frame size would thus be 36 bytes, and the frame offset would be
0963b4bd 1480 12 bytes. The frame register is R7.
da59e081 1481
da3c6d4a
MS
1482 The comments for thumb_skip_prolog() describe the algorithm we use
1483 to detect the end of the prolog. */
c5aa993b
JM
1484/* *INDENT-ON* */
1485
c906108c 1486static void
be8626e0 1487thumb_scan_prologue (struct gdbarch *gdbarch, CORE_ADDR prev_pc,
b39cc962 1488 CORE_ADDR block_addr, struct arm_prologue_cache *cache)
c906108c
SS
1489{
1490 CORE_ADDR prologue_start;
1491 CORE_ADDR prologue_end;
c906108c 1492
b39cc962
DJ
1493 if (find_pc_partial_function (block_addr, NULL, &prologue_start,
1494 &prologue_end))
c906108c 1495 {
ec3d575a
UW
1496 /* See comment in arm_scan_prologue for an explanation of
1497 this heuristics. */
1498 if (prologue_end > prologue_start + 64)
1499 {
1500 prologue_end = prologue_start + 64;
1501 }
c906108c
SS
1502 }
1503 else
f7060f85
DJ
1504 /* We're in the boondocks: we have no idea where the start of the
1505 function is. */
1506 return;
c906108c 1507
eb5492fa 1508 prologue_end = min (prologue_end, prev_pc);
c906108c 1509
be8626e0 1510 thumb_analyze_prologue (gdbarch, prologue_start, prologue_end, cache);
c906108c
SS
1511}
1512
0d39a070 1513/* Return 1 if THIS_INSTR might change control flow, 0 otherwise. */
c906108c 1514
0d39a070
DJ
1515static int
1516arm_instruction_changes_pc (uint32_t this_instr)
c906108c 1517{
0d39a070
DJ
1518 if (bits (this_instr, 28, 31) == INST_NV)
1519 /* Unconditional instructions. */
1520 switch (bits (this_instr, 24, 27))
1521 {
1522 case 0xa:
1523 case 0xb:
1524 /* Branch with Link and change to Thumb. */
1525 return 1;
1526 case 0xc:
1527 case 0xd:
1528 case 0xe:
1529 /* Coprocessor register transfer. */
1530 if (bits (this_instr, 12, 15) == 15)
1531 error (_("Invalid update to pc in instruction"));
1532 return 0;
1533 default:
1534 return 0;
1535 }
1536 else
1537 switch (bits (this_instr, 25, 27))
1538 {
1539 case 0x0:
1540 if (bits (this_instr, 23, 24) == 2 && bit (this_instr, 20) == 0)
1541 {
1542 /* Multiplies and extra load/stores. */
1543 if (bit (this_instr, 4) == 1 && bit (this_instr, 7) == 1)
1544 /* Neither multiplies nor extension load/stores are allowed
1545 to modify PC. */
1546 return 0;
1547
1548 /* Otherwise, miscellaneous instructions. */
1549
1550 /* BX <reg>, BXJ <reg>, BLX <reg> */
1551 if (bits (this_instr, 4, 27) == 0x12fff1
1552 || bits (this_instr, 4, 27) == 0x12fff2
1553 || bits (this_instr, 4, 27) == 0x12fff3)
1554 return 1;
1555
1556 /* Other miscellaneous instructions are unpredictable if they
1557 modify PC. */
1558 return 0;
1559 }
1560 /* Data processing instruction. Fall through. */
c906108c 1561
0d39a070
DJ
1562 case 0x1:
1563 if (bits (this_instr, 12, 15) == 15)
1564 return 1;
1565 else
1566 return 0;
c906108c 1567
0d39a070
DJ
1568 case 0x2:
1569 case 0x3:
1570 /* Media instructions and architecturally undefined instructions. */
1571 if (bits (this_instr, 25, 27) == 3 && bit (this_instr, 4) == 1)
1572 return 0;
c906108c 1573
0d39a070
DJ
1574 /* Stores. */
1575 if (bit (this_instr, 20) == 0)
1576 return 0;
2a451106 1577
0d39a070
DJ
1578 /* Loads. */
1579 if (bits (this_instr, 12, 15) == ARM_PC_REGNUM)
1580 return 1;
1581 else
1582 return 0;
2a451106 1583
0d39a070
DJ
1584 case 0x4:
1585 /* Load/store multiple. */
1586 if (bit (this_instr, 20) == 1 && bit (this_instr, 15) == 1)
1587 return 1;
1588 else
1589 return 0;
2a451106 1590
0d39a070
DJ
1591 case 0x5:
1592 /* Branch and branch with link. */
1593 return 1;
2a451106 1594
0d39a070
DJ
1595 case 0x6:
1596 case 0x7:
1597 /* Coprocessor transfers or SWIs can not affect PC. */
1598 return 0;
eb5492fa 1599
0d39a070 1600 default:
9b20d036 1601 internal_error (__FILE__, __LINE__, _("bad value in switch"));
0d39a070
DJ
1602 }
1603}
c906108c 1604
f303bc3e
YQ
1605/* Return 1 if the ARM instruction INSN restores SP in epilogue, 0
1606 otherwise. */
1607
1608static int
1609arm_instruction_restores_sp (unsigned int insn)
1610{
1611 if (bits (insn, 28, 31) != INST_NV)
1612 {
1613 if ((insn & 0x0df0f000) == 0x0080d000
1614 /* ADD SP (register or immediate). */
1615 || (insn & 0x0df0f000) == 0x0040d000
1616 /* SUB SP (register or immediate). */
1617 || (insn & 0x0ffffff0) == 0x01a0d000
1618 /* MOV SP. */
1619 || (insn & 0x0fff0000) == 0x08bd0000
1620 /* POP (LDMIA). */
1621 || (insn & 0x0fff0000) == 0x049d0000)
1622 /* POP of a single register. */
1623 return 1;
1624 }
1625
1626 return 0;
1627}
1628
0d39a070
DJ
1629/* Analyze an ARM mode prologue starting at PROLOGUE_START and
1630 continuing no further than PROLOGUE_END. If CACHE is non-NULL,
1631 fill it in. Return the first address not recognized as a prologue
1632 instruction.
eb5492fa 1633
0d39a070
DJ
1634 We recognize all the instructions typically found in ARM prologues,
1635 plus harmless instructions which can be skipped (either for analysis
1636 purposes, or a more restrictive set that can be skipped when finding
1637 the end of the prologue). */
1638
1639static CORE_ADDR
1640arm_analyze_prologue (struct gdbarch *gdbarch,
1641 CORE_ADDR prologue_start, CORE_ADDR prologue_end,
1642 struct arm_prologue_cache *cache)
1643{
1644 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
1645 enum bfd_endian byte_order_for_code = gdbarch_byte_order_for_code (gdbarch);
1646 int regno;
1647 CORE_ADDR offset, current_pc;
1648 pv_t regs[ARM_FPS_REGNUM];
1649 struct pv_area *stack;
1650 struct cleanup *back_to;
0d39a070
DJ
1651 CORE_ADDR unrecognized_pc = 0;
1652
1653 /* Search the prologue looking for instructions that set up the
96baa820 1654 frame pointer, adjust the stack pointer, and save registers.
ed9a39eb 1655
96baa820
JM
1656 Be careful, however, and if it doesn't look like a prologue,
1657 don't try to scan it. If, for instance, a frameless function
1658 begins with stmfd sp!, then we will tell ourselves there is
b8d5e71d 1659 a frame, which will confuse stack traceback, as well as "finish"
96baa820 1660 and other operations that rely on a knowledge of the stack
0d39a070 1661 traceback. */
d4473757 1662
4be43953
DJ
1663 for (regno = 0; regno < ARM_FPS_REGNUM; regno++)
1664 regs[regno] = pv_register (regno, 0);
55f960e1 1665 stack = make_pv_area (ARM_SP_REGNUM, gdbarch_addr_bit (gdbarch));
4be43953
DJ
1666 back_to = make_cleanup_free_pv_area (stack);
1667
94c30b78
MS
1668 for (current_pc = prologue_start;
1669 current_pc < prologue_end;
f43845b3 1670 current_pc += 4)
96baa820 1671 {
e17a4113
UW
1672 unsigned int insn
1673 = read_memory_unsigned_integer (current_pc, 4, byte_order_for_code);
9d4fde75 1674
94c30b78 1675 if (insn == 0xe1a0c00d) /* mov ip, sp */
f43845b3 1676 {
4be43953 1677 regs[ARM_IP_REGNUM] = regs[ARM_SP_REGNUM];
28cd8767
JG
1678 continue;
1679 }
0d39a070
DJ
1680 else if ((insn & 0xfff00000) == 0xe2800000 /* add Rd, Rn, #n */
1681 && pv_is_register (regs[bits (insn, 16, 19)], ARM_SP_REGNUM))
28cd8767
JG
1682 {
1683 unsigned imm = insn & 0xff; /* immediate value */
1684 unsigned rot = (insn & 0xf00) >> 7; /* rotate amount */
0d39a070 1685 int rd = bits (insn, 12, 15);
28cd8767 1686 imm = (imm >> rot) | (imm << (32 - rot));
0d39a070 1687 regs[rd] = pv_add_constant (regs[bits (insn, 16, 19)], imm);
28cd8767
JG
1688 continue;
1689 }
0d39a070
DJ
1690 else if ((insn & 0xfff00000) == 0xe2400000 /* sub Rd, Rn, #n */
1691 && pv_is_register (regs[bits (insn, 16, 19)], ARM_SP_REGNUM))
28cd8767
JG
1692 {
1693 unsigned imm = insn & 0xff; /* immediate value */
1694 unsigned rot = (insn & 0xf00) >> 7; /* rotate amount */
0d39a070 1695 int rd = bits (insn, 12, 15);
28cd8767 1696 imm = (imm >> rot) | (imm << (32 - rot));
0d39a070 1697 regs[rd] = pv_add_constant (regs[bits (insn, 16, 19)], -imm);
f43845b3
MS
1698 continue;
1699 }
0963b4bd
MS
1700 else if ((insn & 0xffff0fff) == 0xe52d0004) /* str Rd,
1701 [sp, #-4]! */
f43845b3 1702 {
4be43953
DJ
1703 if (pv_area_store_would_trash (stack, regs[ARM_SP_REGNUM]))
1704 break;
1705 regs[ARM_SP_REGNUM] = pv_add_constant (regs[ARM_SP_REGNUM], -4);
0d39a070
DJ
1706 pv_area_store (stack, regs[ARM_SP_REGNUM], 4,
1707 regs[bits (insn, 12, 15)]);
f43845b3
MS
1708 continue;
1709 }
1710 else if ((insn & 0xffff0000) == 0xe92d0000)
d4473757
KB
1711 /* stmfd sp!, {..., fp, ip, lr, pc}
1712 or
1713 stmfd sp!, {a1, a2, a3, a4} */
c906108c 1714 {
d4473757 1715 int mask = insn & 0xffff;
ed9a39eb 1716
4be43953
DJ
1717 if (pv_area_store_would_trash (stack, regs[ARM_SP_REGNUM]))
1718 break;
1719
94c30b78 1720 /* Calculate offsets of saved registers. */
34e8f22d 1721 for (regno = ARM_PC_REGNUM; regno >= 0; regno--)
d4473757
KB
1722 if (mask & (1 << regno))
1723 {
0963b4bd
MS
1724 regs[ARM_SP_REGNUM]
1725 = pv_add_constant (regs[ARM_SP_REGNUM], -4);
4be43953 1726 pv_area_store (stack, regs[ARM_SP_REGNUM], 4, regs[regno]);
d4473757
KB
1727 }
1728 }
0d39a070
DJ
1729 else if ((insn & 0xffff0000) == 0xe54b0000 /* strb rx,[r11,#-n] */
1730 || (insn & 0xffff00f0) == 0xe14b00b0 /* strh rx,[r11,#-n] */
f8bf5763 1731 || (insn & 0xffffc000) == 0xe50b0000) /* str rx,[r11,#-n] */
b8d5e71d
MS
1732 {
1733 /* No need to add this to saved_regs -- it's just an arg reg. */
1734 continue;
1735 }
0d39a070
DJ
1736 else if ((insn & 0xffff0000) == 0xe5cd0000 /* strb rx,[sp,#n] */
1737 || (insn & 0xffff00f0) == 0xe1cd00b0 /* strh rx,[sp,#n] */
f8bf5763 1738 || (insn & 0xffffc000) == 0xe58d0000) /* str rx,[sp,#n] */
f43845b3
MS
1739 {
1740 /* No need to add this to saved_regs -- it's just an arg reg. */
1741 continue;
1742 }
0963b4bd
MS
1743 else if ((insn & 0xfff00000) == 0xe8800000 /* stm Rn,
1744 { registers } */
0d39a070
DJ
1745 && pv_is_register (regs[bits (insn, 16, 19)], ARM_SP_REGNUM))
1746 {
1747 /* No need to add this to saved_regs -- it's just arg regs. */
1748 continue;
1749 }
d4473757
KB
1750 else if ((insn & 0xfffff000) == 0xe24cb000) /* sub fp, ip #n */
1751 {
94c30b78
MS
1752 unsigned imm = insn & 0xff; /* immediate value */
1753 unsigned rot = (insn & 0xf00) >> 7; /* rotate amount */
d4473757 1754 imm = (imm >> rot) | (imm << (32 - rot));
4be43953 1755 regs[ARM_FP_REGNUM] = pv_add_constant (regs[ARM_IP_REGNUM], -imm);
d4473757
KB
1756 }
1757 else if ((insn & 0xfffff000) == 0xe24dd000) /* sub sp, sp #n */
1758 {
94c30b78
MS
1759 unsigned imm = insn & 0xff; /* immediate value */
1760 unsigned rot = (insn & 0xf00) >> 7; /* rotate amount */
d4473757 1761 imm = (imm >> rot) | (imm << (32 - rot));
4be43953 1762 regs[ARM_SP_REGNUM] = pv_add_constant (regs[ARM_SP_REGNUM], -imm);
d4473757 1763 }
0963b4bd
MS
1764 else if ((insn & 0xffff7fff) == 0xed6d0103 /* stfe f?,
1765 [sp, -#c]! */
2af46ca0 1766 && gdbarch_tdep (gdbarch)->have_fpa_registers)
d4473757 1767 {
4be43953
DJ
1768 if (pv_area_store_would_trash (stack, regs[ARM_SP_REGNUM]))
1769 break;
1770
1771 regs[ARM_SP_REGNUM] = pv_add_constant (regs[ARM_SP_REGNUM], -12);
34e8f22d 1772 regno = ARM_F0_REGNUM + ((insn >> 12) & 0x07);
4be43953 1773 pv_area_store (stack, regs[ARM_SP_REGNUM], 12, regs[regno]);
d4473757 1774 }
0963b4bd
MS
1775 else if ((insn & 0xffbf0fff) == 0xec2d0200 /* sfmfd f0, 4,
1776 [sp!] */
2af46ca0 1777 && gdbarch_tdep (gdbarch)->have_fpa_registers)
d4473757
KB
1778 {
1779 int n_saved_fp_regs;
1780 unsigned int fp_start_reg, fp_bound_reg;
1781
4be43953
DJ
1782 if (pv_area_store_would_trash (stack, regs[ARM_SP_REGNUM]))
1783 break;
1784
94c30b78 1785 if ((insn & 0x800) == 0x800) /* N0 is set */
96baa820 1786 {
d4473757
KB
1787 if ((insn & 0x40000) == 0x40000) /* N1 is set */
1788 n_saved_fp_regs = 3;
1789 else
1790 n_saved_fp_regs = 1;
96baa820 1791 }
d4473757 1792 else
96baa820 1793 {
d4473757
KB
1794 if ((insn & 0x40000) == 0x40000) /* N1 is set */
1795 n_saved_fp_regs = 2;
1796 else
1797 n_saved_fp_regs = 4;
96baa820 1798 }
d4473757 1799
34e8f22d 1800 fp_start_reg = ARM_F0_REGNUM + ((insn >> 12) & 0x7);
d4473757
KB
1801 fp_bound_reg = fp_start_reg + n_saved_fp_regs;
1802 for (; fp_start_reg < fp_bound_reg; fp_start_reg++)
96baa820 1803 {
4be43953
DJ
1804 regs[ARM_SP_REGNUM] = pv_add_constant (regs[ARM_SP_REGNUM], -12);
1805 pv_area_store (stack, regs[ARM_SP_REGNUM], 12,
1806 regs[fp_start_reg++]);
96baa820 1807 }
c906108c 1808 }
0d39a070
DJ
1809 else if ((insn & 0xff000000) == 0xeb000000 && cache == NULL) /* bl */
1810 {
1811 /* Allow some special function calls when skipping the
1812 prologue; GCC generates these before storing arguments to
1813 the stack. */
1814 CORE_ADDR dest = BranchDest (current_pc, insn);
1815
e0634ccf 1816 if (skip_prologue_function (gdbarch, dest, 0))
0d39a070
DJ
1817 continue;
1818 else
1819 break;
1820 }
d4473757 1821 else if ((insn & 0xf0000000) != 0xe0000000)
0963b4bd 1822 break; /* Condition not true, exit early. */
0d39a070
DJ
1823 else if (arm_instruction_changes_pc (insn))
1824 /* Don't scan past anything that might change control flow. */
1825 break;
f303bc3e
YQ
1826 else if (arm_instruction_restores_sp (insn))
1827 {
1828 /* Don't scan past the epilogue. */
1829 break;
1830 }
d19f7eee
UW
1831 else if ((insn & 0xfe500000) == 0xe8100000 /* ldm */
1832 && pv_is_register (regs[bits (insn, 16, 19)], ARM_SP_REGNUM))
1833 /* Ignore block loads from the stack, potentially copying
1834 parameters from memory. */
1835 continue;
1836 else if ((insn & 0xfc500000) == 0xe4100000
1837 && pv_is_register (regs[bits (insn, 16, 19)], ARM_SP_REGNUM))
1838 /* Similarly ignore single loads from the stack. */
1839 continue;
0d39a070
DJ
1840 else if ((insn & 0xffff0ff0) == 0xe1a00000)
1841 /* MOV Rd, Rm. Skip register copies, i.e. saves to another
1842 register instead of the stack. */
d4473757 1843 continue;
0d39a070
DJ
1844 else
1845 {
21daaaaf
YQ
1846 /* The optimizer might shove anything into the prologue, if
1847 we build up cache (cache != NULL) from scanning prologue,
1848 we just skip what we don't recognize and scan further to
1849 make cache as complete as possible. However, if we skip
1850 prologue, we'll stop immediately on unrecognized
1851 instruction. */
0d39a070 1852 unrecognized_pc = current_pc;
21daaaaf
YQ
1853 if (cache != NULL)
1854 continue;
1855 else
1856 break;
0d39a070 1857 }
c906108c
SS
1858 }
1859
0d39a070
DJ
1860 if (unrecognized_pc == 0)
1861 unrecognized_pc = current_pc;
1862
0d39a070
DJ
1863 if (cache)
1864 {
4072f920
YQ
1865 int framereg, framesize;
1866
1867 /* The frame size is just the distance from the frame register
1868 to the original stack pointer. */
1869 if (pv_is_register (regs[ARM_FP_REGNUM], ARM_SP_REGNUM))
1870 {
1871 /* Frame pointer is fp. */
1872 framereg = ARM_FP_REGNUM;
1873 framesize = -regs[ARM_FP_REGNUM].k;
1874 }
1875 else
1876 {
1877 /* Try the stack pointer... this is a bit desperate. */
1878 framereg = ARM_SP_REGNUM;
1879 framesize = -regs[ARM_SP_REGNUM].k;
1880 }
1881
0d39a070
DJ
1882 cache->framereg = framereg;
1883 cache->framesize = framesize;
1884
1885 for (regno = 0; regno < ARM_FPS_REGNUM; regno++)
1886 if (pv_area_find_reg (stack, gdbarch, regno, &offset))
1887 cache->saved_regs[regno].addr = offset;
1888 }
1889
1890 if (arm_debug)
1891 fprintf_unfiltered (gdb_stdlog, "Prologue scan stopped at %s\n",
1892 paddress (gdbarch, unrecognized_pc));
4be43953
DJ
1893
1894 do_cleanups (back_to);
0d39a070
DJ
1895 return unrecognized_pc;
1896}
1897
1898static void
1899arm_scan_prologue (struct frame_info *this_frame,
1900 struct arm_prologue_cache *cache)
1901{
1902 struct gdbarch *gdbarch = get_frame_arch (this_frame);
1903 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
1904 int regno;
1905 CORE_ADDR prologue_start, prologue_end, current_pc;
1906 CORE_ADDR prev_pc = get_frame_pc (this_frame);
1907 CORE_ADDR block_addr = get_frame_address_in_block (this_frame);
1908 pv_t regs[ARM_FPS_REGNUM];
1909 struct pv_area *stack;
1910 struct cleanup *back_to;
1911 CORE_ADDR offset;
1912
1913 /* Assume there is no frame until proven otherwise. */
1914 cache->framereg = ARM_SP_REGNUM;
1915 cache->framesize = 0;
1916
1917 /* Check for Thumb prologue. */
1918 if (arm_frame_is_thumb (this_frame))
1919 {
1920 thumb_scan_prologue (gdbarch, prev_pc, block_addr, cache);
1921 return;
1922 }
1923
1924 /* Find the function prologue. If we can't find the function in
1925 the symbol table, peek in the stack frame to find the PC. */
1926 if (find_pc_partial_function (block_addr, NULL, &prologue_start,
1927 &prologue_end))
1928 {
1929 /* One way to find the end of the prologue (which works well
1930 for unoptimized code) is to do the following:
1931
1932 struct symtab_and_line sal = find_pc_line (prologue_start, 0);
1933
1934 if (sal.line == 0)
1935 prologue_end = prev_pc;
1936 else if (sal.end < prologue_end)
1937 prologue_end = sal.end;
1938
1939 This mechanism is very accurate so long as the optimizer
1940 doesn't move any instructions from the function body into the
1941 prologue. If this happens, sal.end will be the last
1942 instruction in the first hunk of prologue code just before
1943 the first instruction that the scheduler has moved from
1944 the body to the prologue.
1945
1946 In order to make sure that we scan all of the prologue
1947 instructions, we use a slightly less accurate mechanism which
1948 may scan more than necessary. To help compensate for this
1949 lack of accuracy, the prologue scanning loop below contains
1950 several clauses which'll cause the loop to terminate early if
1951 an implausible prologue instruction is encountered.
1952
1953 The expression
1954
1955 prologue_start + 64
1956
1957 is a suitable endpoint since it accounts for the largest
1958 possible prologue plus up to five instructions inserted by
1959 the scheduler. */
1960
1961 if (prologue_end > prologue_start + 64)
1962 {
1963 prologue_end = prologue_start + 64; /* See above. */
1964 }
1965 }
1966 else
1967 {
1968 /* We have no symbol information. Our only option is to assume this
1969 function has a standard stack frame and the normal frame register.
1970 Then, we can find the value of our frame pointer on entrance to
1971 the callee (or at the present moment if this is the innermost frame).
1972 The value stored there should be the address of the stmfd + 8. */
1973 CORE_ADDR frame_loc;
1974 LONGEST return_value;
1975
1976 frame_loc = get_frame_register_unsigned (this_frame, ARM_FP_REGNUM);
1977 if (!safe_read_memory_integer (frame_loc, 4, byte_order, &return_value))
1978 return;
1979 else
1980 {
1981 prologue_start = gdbarch_addr_bits_remove
1982 (gdbarch, return_value) - 8;
1983 prologue_end = prologue_start + 64; /* See above. */
1984 }
1985 }
1986
1987 if (prev_pc < prologue_end)
1988 prologue_end = prev_pc;
1989
1990 arm_analyze_prologue (gdbarch, prologue_start, prologue_end, cache);
c906108c
SS
1991}
1992
eb5492fa 1993static struct arm_prologue_cache *
a262aec2 1994arm_make_prologue_cache (struct frame_info *this_frame)
c906108c 1995{
eb5492fa
DJ
1996 int reg;
1997 struct arm_prologue_cache *cache;
1998 CORE_ADDR unwound_fp;
c5aa993b 1999
35d5d4ee 2000 cache = FRAME_OBSTACK_ZALLOC (struct arm_prologue_cache);
a262aec2 2001 cache->saved_regs = trad_frame_alloc_saved_regs (this_frame);
c906108c 2002
a262aec2 2003 arm_scan_prologue (this_frame, cache);
848cfffb 2004
a262aec2 2005 unwound_fp = get_frame_register_unsigned (this_frame, cache->framereg);
eb5492fa
DJ
2006 if (unwound_fp == 0)
2007 return cache;
c906108c 2008
4be43953 2009 cache->prev_sp = unwound_fp + cache->framesize;
c906108c 2010
eb5492fa
DJ
2011 /* Calculate actual addresses of saved registers using offsets
2012 determined by arm_scan_prologue. */
a262aec2 2013 for (reg = 0; reg < gdbarch_num_regs (get_frame_arch (this_frame)); reg++)
e28a332c 2014 if (trad_frame_addr_p (cache->saved_regs, reg))
eb5492fa
DJ
2015 cache->saved_regs[reg].addr += cache->prev_sp;
2016
2017 return cache;
c906108c
SS
2018}
2019
c1ee9414
LM
2020/* Implementation of the stop_reason hook for arm_prologue frames. */
2021
2022static enum unwind_stop_reason
2023arm_prologue_unwind_stop_reason (struct frame_info *this_frame,
2024 void **this_cache)
2025{
2026 struct arm_prologue_cache *cache;
2027 CORE_ADDR pc;
2028
2029 if (*this_cache == NULL)
2030 *this_cache = arm_make_prologue_cache (this_frame);
2031 cache = *this_cache;
2032
2033 /* This is meant to halt the backtrace at "_start". */
2034 pc = get_frame_pc (this_frame);
2035 if (pc <= gdbarch_tdep (get_frame_arch (this_frame))->lowest_pc)
2036 return UNWIND_OUTERMOST;
2037
2038 /* If we've hit a wall, stop. */
2039 if (cache->prev_sp == 0)
2040 return UNWIND_OUTERMOST;
2041
2042 return UNWIND_NO_REASON;
2043}
2044
eb5492fa
DJ
2045/* Our frame ID for a normal frame is the current function's starting PC
2046 and the caller's SP when we were called. */
c906108c 2047
148754e5 2048static void
a262aec2 2049arm_prologue_this_id (struct frame_info *this_frame,
eb5492fa
DJ
2050 void **this_cache,
2051 struct frame_id *this_id)
c906108c 2052{
eb5492fa
DJ
2053 struct arm_prologue_cache *cache;
2054 struct frame_id id;
2c404490 2055 CORE_ADDR pc, func;
f079148d 2056
eb5492fa 2057 if (*this_cache == NULL)
a262aec2 2058 *this_cache = arm_make_prologue_cache (this_frame);
eb5492fa 2059 cache = *this_cache;
2a451106 2060
0e9e9abd
UW
2061 /* Use function start address as part of the frame ID. If we cannot
2062 identify the start address (due to missing symbol information),
2063 fall back to just using the current PC. */
c1ee9414 2064 pc = get_frame_pc (this_frame);
2c404490 2065 func = get_frame_func (this_frame);
0e9e9abd
UW
2066 if (!func)
2067 func = pc;
2068
eb5492fa 2069 id = frame_id_build (cache->prev_sp, func);
eb5492fa 2070 *this_id = id;
c906108c
SS
2071}
2072
a262aec2
DJ
2073static struct value *
2074arm_prologue_prev_register (struct frame_info *this_frame,
eb5492fa 2075 void **this_cache,
a262aec2 2076 int prev_regnum)
24de872b 2077{
24568a2c 2078 struct gdbarch *gdbarch = get_frame_arch (this_frame);
24de872b
DJ
2079 struct arm_prologue_cache *cache;
2080
eb5492fa 2081 if (*this_cache == NULL)
a262aec2 2082 *this_cache = arm_make_prologue_cache (this_frame);
eb5492fa 2083 cache = *this_cache;
24de872b 2084
eb5492fa 2085 /* If we are asked to unwind the PC, then we need to return the LR
b39cc962
DJ
2086 instead. The prologue may save PC, but it will point into this
2087 frame's prologue, not the next frame's resume location. Also
2088 strip the saved T bit. A valid LR may have the low bit set, but
2089 a valid PC never does. */
eb5492fa 2090 if (prev_regnum == ARM_PC_REGNUM)
b39cc962
DJ
2091 {
2092 CORE_ADDR lr;
2093
2094 lr = frame_unwind_register_unsigned (this_frame, ARM_LR_REGNUM);
2095 return frame_unwind_got_constant (this_frame, prev_regnum,
24568a2c 2096 arm_addr_bits_remove (gdbarch, lr));
b39cc962 2097 }
24de872b 2098
eb5492fa 2099 /* SP is generally not saved to the stack, but this frame is
a262aec2 2100 identified by the next frame's stack pointer at the time of the call.
eb5492fa
DJ
2101 The value was already reconstructed into PREV_SP. */
2102 if (prev_regnum == ARM_SP_REGNUM)
a262aec2 2103 return frame_unwind_got_constant (this_frame, prev_regnum, cache->prev_sp);
eb5492fa 2104
b39cc962
DJ
2105 /* The CPSR may have been changed by the call instruction and by the
2106 called function. The only bit we can reconstruct is the T bit,
2107 by checking the low bit of LR as of the call. This is a reliable
2108 indicator of Thumb-ness except for some ARM v4T pre-interworking
2109 Thumb code, which could get away with a clear low bit as long as
2110 the called function did not use bx. Guess that all other
2111 bits are unchanged; the condition flags are presumably lost,
2112 but the processor status is likely valid. */
2113 if (prev_regnum == ARM_PS_REGNUM)
2114 {
2115 CORE_ADDR lr, cpsr;
9779414d 2116 ULONGEST t_bit = arm_psr_thumb_bit (gdbarch);
b39cc962
DJ
2117
2118 cpsr = get_frame_register_unsigned (this_frame, prev_regnum);
2119 lr = frame_unwind_register_unsigned (this_frame, ARM_LR_REGNUM);
2120 if (IS_THUMB_ADDR (lr))
9779414d 2121 cpsr |= t_bit;
b39cc962 2122 else
9779414d 2123 cpsr &= ~t_bit;
b39cc962
DJ
2124 return frame_unwind_got_constant (this_frame, prev_regnum, cpsr);
2125 }
2126
a262aec2
DJ
2127 return trad_frame_get_prev_register (this_frame, cache->saved_regs,
2128 prev_regnum);
eb5492fa
DJ
2129}
2130
2131struct frame_unwind arm_prologue_unwind = {
2132 NORMAL_FRAME,
c1ee9414 2133 arm_prologue_unwind_stop_reason,
eb5492fa 2134 arm_prologue_this_id,
a262aec2
DJ
2135 arm_prologue_prev_register,
2136 NULL,
2137 default_frame_sniffer
eb5492fa
DJ
2138};
2139
0e9e9abd
UW
2140/* Maintain a list of ARM exception table entries per objfile, similar to the
2141 list of mapping symbols. We only cache entries for standard ARM-defined
2142 personality routines; the cache will contain only the frame unwinding
2143 instructions associated with the entry (not the descriptors). */
2144
2145static const struct objfile_data *arm_exidx_data_key;
2146
2147struct arm_exidx_entry
2148{
2149 bfd_vma addr;
2150 gdb_byte *entry;
2151};
2152typedef struct arm_exidx_entry arm_exidx_entry_s;
2153DEF_VEC_O(arm_exidx_entry_s);
2154
2155struct arm_exidx_data
2156{
2157 VEC(arm_exidx_entry_s) **section_maps;
2158};
2159
2160static void
2161arm_exidx_data_free (struct objfile *objfile, void *arg)
2162{
2163 struct arm_exidx_data *data = arg;
2164 unsigned int i;
2165
2166 for (i = 0; i < objfile->obfd->section_count; i++)
2167 VEC_free (arm_exidx_entry_s, data->section_maps[i]);
2168}
2169
2170static inline int
2171arm_compare_exidx_entries (const struct arm_exidx_entry *lhs,
2172 const struct arm_exidx_entry *rhs)
2173{
2174 return lhs->addr < rhs->addr;
2175}
2176
2177static struct obj_section *
2178arm_obj_section_from_vma (struct objfile *objfile, bfd_vma vma)
2179{
2180 struct obj_section *osect;
2181
2182 ALL_OBJFILE_OSECTIONS (objfile, osect)
2183 if (bfd_get_section_flags (objfile->obfd,
2184 osect->the_bfd_section) & SEC_ALLOC)
2185 {
2186 bfd_vma start, size;
2187 start = bfd_get_section_vma (objfile->obfd, osect->the_bfd_section);
2188 size = bfd_get_section_size (osect->the_bfd_section);
2189
2190 if (start <= vma && vma < start + size)
2191 return osect;
2192 }
2193
2194 return NULL;
2195}
2196
2197/* Parse contents of exception table and exception index sections
2198 of OBJFILE, and fill in the exception table entry cache.
2199
2200 For each entry that refers to a standard ARM-defined personality
2201 routine, extract the frame unwinding instructions (from either
2202 the index or the table section). The unwinding instructions
2203 are normalized by:
2204 - extracting them from the rest of the table data
2205 - converting to host endianness
2206 - appending the implicit 0xb0 ("Finish") code
2207
2208 The extracted and normalized instructions are stored for later
2209 retrieval by the arm_find_exidx_entry routine. */
2210
2211static void
2212arm_exidx_new_objfile (struct objfile *objfile)
2213{
3bb47e8b 2214 struct cleanup *cleanups;
0e9e9abd
UW
2215 struct arm_exidx_data *data;
2216 asection *exidx, *extab;
2217 bfd_vma exidx_vma = 0, extab_vma = 0;
2218 bfd_size_type exidx_size = 0, extab_size = 0;
2219 gdb_byte *exidx_data = NULL, *extab_data = NULL;
2220 LONGEST i;
2221
2222 /* If we've already touched this file, do nothing. */
2223 if (!objfile || objfile_data (objfile, arm_exidx_data_key) != NULL)
2224 return;
3bb47e8b 2225 cleanups = make_cleanup (null_cleanup, NULL);
0e9e9abd
UW
2226
2227 /* Read contents of exception table and index. */
2228 exidx = bfd_get_section_by_name (objfile->obfd, ".ARM.exidx");
2229 if (exidx)
2230 {
2231 exidx_vma = bfd_section_vma (objfile->obfd, exidx);
2232 exidx_size = bfd_get_section_size (exidx);
2233 exidx_data = xmalloc (exidx_size);
2234 make_cleanup (xfree, exidx_data);
2235
2236 if (!bfd_get_section_contents (objfile->obfd, exidx,
2237 exidx_data, 0, exidx_size))
2238 {
2239 do_cleanups (cleanups);
2240 return;
2241 }
2242 }
2243
2244 extab = bfd_get_section_by_name (objfile->obfd, ".ARM.extab");
2245 if (extab)
2246 {
2247 extab_vma = bfd_section_vma (objfile->obfd, extab);
2248 extab_size = bfd_get_section_size (extab);
2249 extab_data = xmalloc (extab_size);
2250 make_cleanup (xfree, extab_data);
2251
2252 if (!bfd_get_section_contents (objfile->obfd, extab,
2253 extab_data, 0, extab_size))
2254 {
2255 do_cleanups (cleanups);
2256 return;
2257 }
2258 }
2259
2260 /* Allocate exception table data structure. */
2261 data = OBSTACK_ZALLOC (&objfile->objfile_obstack, struct arm_exidx_data);
2262 set_objfile_data (objfile, arm_exidx_data_key, data);
2263 data->section_maps = OBSTACK_CALLOC (&objfile->objfile_obstack,
2264 objfile->obfd->section_count,
2265 VEC(arm_exidx_entry_s) *);
2266
2267 /* Fill in exception table. */
2268 for (i = 0; i < exidx_size / 8; i++)
2269 {
2270 struct arm_exidx_entry new_exidx_entry;
2271 bfd_vma idx = bfd_h_get_32 (objfile->obfd, exidx_data + i * 8);
2272 bfd_vma val = bfd_h_get_32 (objfile->obfd, exidx_data + i * 8 + 4);
2273 bfd_vma addr = 0, word = 0;
2274 int n_bytes = 0, n_words = 0;
2275 struct obj_section *sec;
2276 gdb_byte *entry = NULL;
2277
2278 /* Extract address of start of function. */
2279 idx = ((idx & 0x7fffffff) ^ 0x40000000) - 0x40000000;
2280 idx += exidx_vma + i * 8;
2281
2282 /* Find section containing function and compute section offset. */
2283 sec = arm_obj_section_from_vma (objfile, idx);
2284 if (sec == NULL)
2285 continue;
2286 idx -= bfd_get_section_vma (objfile->obfd, sec->the_bfd_section);
2287
2288 /* Determine address of exception table entry. */
2289 if (val == 1)
2290 {
2291 /* EXIDX_CANTUNWIND -- no exception table entry present. */
2292 }
2293 else if ((val & 0xff000000) == 0x80000000)
2294 {
2295 /* Exception table entry embedded in .ARM.exidx
2296 -- must be short form. */
2297 word = val;
2298 n_bytes = 3;
2299 }
2300 else if (!(val & 0x80000000))
2301 {
2302 /* Exception table entry in .ARM.extab. */
2303 addr = ((val & 0x7fffffff) ^ 0x40000000) - 0x40000000;
2304 addr += exidx_vma + i * 8 + 4;
2305
2306 if (addr >= extab_vma && addr + 4 <= extab_vma + extab_size)
2307 {
2308 word = bfd_h_get_32 (objfile->obfd,
2309 extab_data + addr - extab_vma);
2310 addr += 4;
2311
2312 if ((word & 0xff000000) == 0x80000000)
2313 {
2314 /* Short form. */
2315 n_bytes = 3;
2316 }
2317 else if ((word & 0xff000000) == 0x81000000
2318 || (word & 0xff000000) == 0x82000000)
2319 {
2320 /* Long form. */
2321 n_bytes = 2;
2322 n_words = ((word >> 16) & 0xff);
2323 }
2324 else if (!(word & 0x80000000))
2325 {
2326 bfd_vma pers;
2327 struct obj_section *pers_sec;
2328 int gnu_personality = 0;
2329
2330 /* Custom personality routine. */
2331 pers = ((word & 0x7fffffff) ^ 0x40000000) - 0x40000000;
2332 pers = UNMAKE_THUMB_ADDR (pers + addr - 4);
2333
2334 /* Check whether we've got one of the variants of the
2335 GNU personality routines. */
2336 pers_sec = arm_obj_section_from_vma (objfile, pers);
2337 if (pers_sec)
2338 {
2339 static const char *personality[] =
2340 {
2341 "__gcc_personality_v0",
2342 "__gxx_personality_v0",
2343 "__gcj_personality_v0",
2344 "__gnu_objc_personality_v0",
2345 NULL
2346 };
2347
2348 CORE_ADDR pc = pers + obj_section_offset (pers_sec);
2349 int k;
2350
2351 for (k = 0; personality[k]; k++)
2352 if (lookup_minimal_symbol_by_pc_name
2353 (pc, personality[k], objfile))
2354 {
2355 gnu_personality = 1;
2356 break;
2357 }
2358 }
2359
2360 /* If so, the next word contains a word count in the high
2361 byte, followed by the same unwind instructions as the
2362 pre-defined forms. */
2363 if (gnu_personality
2364 && addr + 4 <= extab_vma + extab_size)
2365 {
2366 word = bfd_h_get_32 (objfile->obfd,
2367 extab_data + addr - extab_vma);
2368 addr += 4;
2369 n_bytes = 3;
2370 n_words = ((word >> 24) & 0xff);
2371 }
2372 }
2373 }
2374 }
2375
2376 /* Sanity check address. */
2377 if (n_words)
2378 if (addr < extab_vma || addr + 4 * n_words > extab_vma + extab_size)
2379 n_words = n_bytes = 0;
2380
2381 /* The unwind instructions reside in WORD (only the N_BYTES least
2382 significant bytes are valid), followed by N_WORDS words in the
2383 extab section starting at ADDR. */
2384 if (n_bytes || n_words)
2385 {
2386 gdb_byte *p = entry = obstack_alloc (&objfile->objfile_obstack,
2387 n_bytes + n_words * 4 + 1);
2388
2389 while (n_bytes--)
2390 *p++ = (gdb_byte) ((word >> (8 * n_bytes)) & 0xff);
2391
2392 while (n_words--)
2393 {
2394 word = bfd_h_get_32 (objfile->obfd,
2395 extab_data + addr - extab_vma);
2396 addr += 4;
2397
2398 *p++ = (gdb_byte) ((word >> 24) & 0xff);
2399 *p++ = (gdb_byte) ((word >> 16) & 0xff);
2400 *p++ = (gdb_byte) ((word >> 8) & 0xff);
2401 *p++ = (gdb_byte) (word & 0xff);
2402 }
2403
2404 /* Implied "Finish" to terminate the list. */
2405 *p++ = 0xb0;
2406 }
2407
2408 /* Push entry onto vector. They are guaranteed to always
2409 appear in order of increasing addresses. */
2410 new_exidx_entry.addr = idx;
2411 new_exidx_entry.entry = entry;
2412 VEC_safe_push (arm_exidx_entry_s,
2413 data->section_maps[sec->the_bfd_section->index],
2414 &new_exidx_entry);
2415 }
2416
2417 do_cleanups (cleanups);
2418}
2419
2420/* Search for the exception table entry covering MEMADDR. If one is found,
2421 return a pointer to its data. Otherwise, return 0. If START is non-NULL,
2422 set *START to the start of the region covered by this entry. */
2423
2424static gdb_byte *
2425arm_find_exidx_entry (CORE_ADDR memaddr, CORE_ADDR *start)
2426{
2427 struct obj_section *sec;
2428
2429 sec = find_pc_section (memaddr);
2430 if (sec != NULL)
2431 {
2432 struct arm_exidx_data *data;
2433 VEC(arm_exidx_entry_s) *map;
2434 struct arm_exidx_entry map_key = { memaddr - obj_section_addr (sec), 0 };
2435 unsigned int idx;
2436
2437 data = objfile_data (sec->objfile, arm_exidx_data_key);
2438 if (data != NULL)
2439 {
2440 map = data->section_maps[sec->the_bfd_section->index];
2441 if (!VEC_empty (arm_exidx_entry_s, map))
2442 {
2443 struct arm_exidx_entry *map_sym;
2444
2445 idx = VEC_lower_bound (arm_exidx_entry_s, map, &map_key,
2446 arm_compare_exidx_entries);
2447
2448 /* VEC_lower_bound finds the earliest ordered insertion
2449 point. If the following symbol starts at this exact
2450 address, we use that; otherwise, the preceding
2451 exception table entry covers this address. */
2452 if (idx < VEC_length (arm_exidx_entry_s, map))
2453 {
2454 map_sym = VEC_index (arm_exidx_entry_s, map, idx);
2455 if (map_sym->addr == map_key.addr)
2456 {
2457 if (start)
2458 *start = map_sym->addr + obj_section_addr (sec);
2459 return map_sym->entry;
2460 }
2461 }
2462
2463 if (idx > 0)
2464 {
2465 map_sym = VEC_index (arm_exidx_entry_s, map, idx - 1);
2466 if (start)
2467 *start = map_sym->addr + obj_section_addr (sec);
2468 return map_sym->entry;
2469 }
2470 }
2471 }
2472 }
2473
2474 return NULL;
2475}
2476
2477/* Given the current frame THIS_FRAME, and its associated frame unwinding
2478 instruction list from the ARM exception table entry ENTRY, allocate and
2479 return a prologue cache structure describing how to unwind this frame.
2480
2481 Return NULL if the unwinding instruction list contains a "spare",
2482 "reserved" or "refuse to unwind" instruction as defined in section
2483 "9.3 Frame unwinding instructions" of the "Exception Handling ABI
2484 for the ARM Architecture" document. */
2485
2486static struct arm_prologue_cache *
2487arm_exidx_fill_cache (struct frame_info *this_frame, gdb_byte *entry)
2488{
2489 CORE_ADDR vsp = 0;
2490 int vsp_valid = 0;
2491
2492 struct arm_prologue_cache *cache;
2493 cache = FRAME_OBSTACK_ZALLOC (struct arm_prologue_cache);
2494 cache->saved_regs = trad_frame_alloc_saved_regs (this_frame);
2495
2496 for (;;)
2497 {
2498 gdb_byte insn;
2499
2500 /* Whenever we reload SP, we actually have to retrieve its
2501 actual value in the current frame. */
2502 if (!vsp_valid)
2503 {
2504 if (trad_frame_realreg_p (cache->saved_regs, ARM_SP_REGNUM))
2505 {
2506 int reg = cache->saved_regs[ARM_SP_REGNUM].realreg;
2507 vsp = get_frame_register_unsigned (this_frame, reg);
2508 }
2509 else
2510 {
2511 CORE_ADDR addr = cache->saved_regs[ARM_SP_REGNUM].addr;
2512 vsp = get_frame_memory_unsigned (this_frame, addr, 4);
2513 }
2514
2515 vsp_valid = 1;
2516 }
2517
2518 /* Decode next unwind instruction. */
2519 insn = *entry++;
2520
2521 if ((insn & 0xc0) == 0)
2522 {
2523 int offset = insn & 0x3f;
2524 vsp += (offset << 2) + 4;
2525 }
2526 else if ((insn & 0xc0) == 0x40)
2527 {
2528 int offset = insn & 0x3f;
2529 vsp -= (offset << 2) + 4;
2530 }
2531 else if ((insn & 0xf0) == 0x80)
2532 {
2533 int mask = ((insn & 0xf) << 8) | *entry++;
2534 int i;
2535
2536 /* The special case of an all-zero mask identifies
2537 "Refuse to unwind". We return NULL to fall back
2538 to the prologue analyzer. */
2539 if (mask == 0)
2540 return NULL;
2541
2542 /* Pop registers r4..r15 under mask. */
2543 for (i = 0; i < 12; i++)
2544 if (mask & (1 << i))
2545 {
2546 cache->saved_regs[4 + i].addr = vsp;
2547 vsp += 4;
2548 }
2549
2550 /* Special-case popping SP -- we need to reload vsp. */
2551 if (mask & (1 << (ARM_SP_REGNUM - 4)))
2552 vsp_valid = 0;
2553 }
2554 else if ((insn & 0xf0) == 0x90)
2555 {
2556 int reg = insn & 0xf;
2557
2558 /* Reserved cases. */
2559 if (reg == ARM_SP_REGNUM || reg == ARM_PC_REGNUM)
2560 return NULL;
2561
2562 /* Set SP from another register and mark VSP for reload. */
2563 cache->saved_regs[ARM_SP_REGNUM] = cache->saved_regs[reg];
2564 vsp_valid = 0;
2565 }
2566 else if ((insn & 0xf0) == 0xa0)
2567 {
2568 int count = insn & 0x7;
2569 int pop_lr = (insn & 0x8) != 0;
2570 int i;
2571
2572 /* Pop r4..r[4+count]. */
2573 for (i = 0; i <= count; i++)
2574 {
2575 cache->saved_regs[4 + i].addr = vsp;
2576 vsp += 4;
2577 }
2578
2579 /* If indicated by flag, pop LR as well. */
2580 if (pop_lr)
2581 {
2582 cache->saved_regs[ARM_LR_REGNUM].addr = vsp;
2583 vsp += 4;
2584 }
2585 }
2586 else if (insn == 0xb0)
2587 {
2588 /* We could only have updated PC by popping into it; if so, it
2589 will show up as address. Otherwise, copy LR into PC. */
2590 if (!trad_frame_addr_p (cache->saved_regs, ARM_PC_REGNUM))
2591 cache->saved_regs[ARM_PC_REGNUM]
2592 = cache->saved_regs[ARM_LR_REGNUM];
2593
2594 /* We're done. */
2595 break;
2596 }
2597 else if (insn == 0xb1)
2598 {
2599 int mask = *entry++;
2600 int i;
2601
2602 /* All-zero mask and mask >= 16 is "spare". */
2603 if (mask == 0 || mask >= 16)
2604 return NULL;
2605
2606 /* Pop r0..r3 under mask. */
2607 for (i = 0; i < 4; i++)
2608 if (mask & (1 << i))
2609 {
2610 cache->saved_regs[i].addr = vsp;
2611 vsp += 4;
2612 }
2613 }
2614 else if (insn == 0xb2)
2615 {
2616 ULONGEST offset = 0;
2617 unsigned shift = 0;
2618
2619 do
2620 {
2621 offset |= (*entry & 0x7f) << shift;
2622 shift += 7;
2623 }
2624 while (*entry++ & 0x80);
2625
2626 vsp += 0x204 + (offset << 2);
2627 }
2628 else if (insn == 0xb3)
2629 {
2630 int start = *entry >> 4;
2631 int count = (*entry++) & 0xf;
2632 int i;
2633
2634 /* Only registers D0..D15 are valid here. */
2635 if (start + count >= 16)
2636 return NULL;
2637
2638 /* Pop VFP double-precision registers D[start]..D[start+count]. */
2639 for (i = 0; i <= count; i++)
2640 {
2641 cache->saved_regs[ARM_D0_REGNUM + start + i].addr = vsp;
2642 vsp += 8;
2643 }
2644
2645 /* Add an extra 4 bytes for FSTMFDX-style stack. */
2646 vsp += 4;
2647 }
2648 else if ((insn & 0xf8) == 0xb8)
2649 {
2650 int count = insn & 0x7;
2651 int i;
2652
2653 /* Pop VFP double-precision registers D[8]..D[8+count]. */
2654 for (i = 0; i <= count; i++)
2655 {
2656 cache->saved_regs[ARM_D0_REGNUM + 8 + i].addr = vsp;
2657 vsp += 8;
2658 }
2659
2660 /* Add an extra 4 bytes for FSTMFDX-style stack. */
2661 vsp += 4;
2662 }
2663 else if (insn == 0xc6)
2664 {
2665 int start = *entry >> 4;
2666 int count = (*entry++) & 0xf;
2667 int i;
2668
2669 /* Only registers WR0..WR15 are valid. */
2670 if (start + count >= 16)
2671 return NULL;
2672
2673 /* Pop iwmmx registers WR[start]..WR[start+count]. */
2674 for (i = 0; i <= count; i++)
2675 {
2676 cache->saved_regs[ARM_WR0_REGNUM + start + i].addr = vsp;
2677 vsp += 8;
2678 }
2679 }
2680 else if (insn == 0xc7)
2681 {
2682 int mask = *entry++;
2683 int i;
2684
2685 /* All-zero mask and mask >= 16 is "spare". */
2686 if (mask == 0 || mask >= 16)
2687 return NULL;
2688
2689 /* Pop iwmmx general-purpose registers WCGR0..WCGR3 under mask. */
2690 for (i = 0; i < 4; i++)
2691 if (mask & (1 << i))
2692 {
2693 cache->saved_regs[ARM_WCGR0_REGNUM + i].addr = vsp;
2694 vsp += 4;
2695 }
2696 }
2697 else if ((insn & 0xf8) == 0xc0)
2698 {
2699 int count = insn & 0x7;
2700 int i;
2701
2702 /* Pop iwmmx registers WR[10]..WR[10+count]. */
2703 for (i = 0; i <= count; i++)
2704 {
2705 cache->saved_regs[ARM_WR0_REGNUM + 10 + i].addr = vsp;
2706 vsp += 8;
2707 }
2708 }
2709 else if (insn == 0xc8)
2710 {
2711 int start = *entry >> 4;
2712 int count = (*entry++) & 0xf;
2713 int i;
2714
2715 /* Only registers D0..D31 are valid. */
2716 if (start + count >= 16)
2717 return NULL;
2718
2719 /* Pop VFP double-precision registers
2720 D[16+start]..D[16+start+count]. */
2721 for (i = 0; i <= count; i++)
2722 {
2723 cache->saved_regs[ARM_D0_REGNUM + 16 + start + i].addr = vsp;
2724 vsp += 8;
2725 }
2726 }
2727 else if (insn == 0xc9)
2728 {
2729 int start = *entry >> 4;
2730 int count = (*entry++) & 0xf;
2731 int i;
2732
2733 /* Pop VFP double-precision registers D[start]..D[start+count]. */
2734 for (i = 0; i <= count; i++)
2735 {
2736 cache->saved_regs[ARM_D0_REGNUM + start + i].addr = vsp;
2737 vsp += 8;
2738 }
2739 }
2740 else if ((insn & 0xf8) == 0xd0)
2741 {
2742 int count = insn & 0x7;
2743 int i;
2744
2745 /* Pop VFP double-precision registers D[8]..D[8+count]. */
2746 for (i = 0; i <= count; i++)
2747 {
2748 cache->saved_regs[ARM_D0_REGNUM + 8 + i].addr = vsp;
2749 vsp += 8;
2750 }
2751 }
2752 else
2753 {
2754 /* Everything else is "spare". */
2755 return NULL;
2756 }
2757 }
2758
2759 /* If we restore SP from a register, assume this was the frame register.
2760 Otherwise just fall back to SP as frame register. */
2761 if (trad_frame_realreg_p (cache->saved_regs, ARM_SP_REGNUM))
2762 cache->framereg = cache->saved_regs[ARM_SP_REGNUM].realreg;
2763 else
2764 cache->framereg = ARM_SP_REGNUM;
2765
2766 /* Determine offset to previous frame. */
2767 cache->framesize
2768 = vsp - get_frame_register_unsigned (this_frame, cache->framereg);
2769
2770 /* We already got the previous SP. */
2771 cache->prev_sp = vsp;
2772
2773 return cache;
2774}
2775
2776/* Unwinding via ARM exception table entries. Note that the sniffer
2777 already computes a filled-in prologue cache, which is then used
2778 with the same arm_prologue_this_id and arm_prologue_prev_register
2779 routines also used for prologue-parsing based unwinding. */
2780
2781static int
2782arm_exidx_unwind_sniffer (const struct frame_unwind *self,
2783 struct frame_info *this_frame,
2784 void **this_prologue_cache)
2785{
2786 struct gdbarch *gdbarch = get_frame_arch (this_frame);
2787 enum bfd_endian byte_order_for_code = gdbarch_byte_order_for_code (gdbarch);
2788 CORE_ADDR addr_in_block, exidx_region, func_start;
2789 struct arm_prologue_cache *cache;
2790 gdb_byte *entry;
2791
2792 /* See if we have an ARM exception table entry covering this address. */
2793 addr_in_block = get_frame_address_in_block (this_frame);
2794 entry = arm_find_exidx_entry (addr_in_block, &exidx_region);
2795 if (!entry)
2796 return 0;
2797
2798 /* The ARM exception table does not describe unwind information
2799 for arbitrary PC values, but is guaranteed to be correct only
2800 at call sites. We have to decide here whether we want to use
2801 ARM exception table information for this frame, or fall back
2802 to using prologue parsing. (Note that if we have DWARF CFI,
2803 this sniffer isn't even called -- CFI is always preferred.)
2804
2805 Before we make this decision, however, we check whether we
2806 actually have *symbol* information for the current frame.
2807 If not, prologue parsing would not work anyway, so we might
2808 as well use the exception table and hope for the best. */
2809 if (find_pc_partial_function (addr_in_block, NULL, &func_start, NULL))
2810 {
2811 int exc_valid = 0;
2812
2813 /* If the next frame is "normal", we are at a call site in this
2814 frame, so exception information is guaranteed to be valid. */
2815 if (get_next_frame (this_frame)
2816 && get_frame_type (get_next_frame (this_frame)) == NORMAL_FRAME)
2817 exc_valid = 1;
2818
2819 /* We also assume exception information is valid if we're currently
2820 blocked in a system call. The system library is supposed to
2821 ensure this, so that e.g. pthread cancellation works. */
2822 if (arm_frame_is_thumb (this_frame))
2823 {
2824 LONGEST insn;
2825
2826 if (safe_read_memory_integer (get_frame_pc (this_frame) - 2, 2,
2827 byte_order_for_code, &insn)
2828 && (insn & 0xff00) == 0xdf00 /* svc */)
2829 exc_valid = 1;
2830 }
2831 else
2832 {
2833 LONGEST insn;
2834
2835 if (safe_read_memory_integer (get_frame_pc (this_frame) - 4, 4,
2836 byte_order_for_code, &insn)
2837 && (insn & 0x0f000000) == 0x0f000000 /* svc */)
2838 exc_valid = 1;
2839 }
2840
2841 /* Bail out if we don't know that exception information is valid. */
2842 if (!exc_valid)
2843 return 0;
2844
2845 /* The ARM exception index does not mark the *end* of the region
2846 covered by the entry, and some functions will not have any entry.
2847 To correctly recognize the end of the covered region, the linker
2848 should have inserted dummy records with a CANTUNWIND marker.
2849
2850 Unfortunately, current versions of GNU ld do not reliably do
2851 this, and thus we may have found an incorrect entry above.
2852 As a (temporary) sanity check, we only use the entry if it
2853 lies *within* the bounds of the function. Note that this check
2854 might reject perfectly valid entries that just happen to cover
2855 multiple functions; therefore this check ought to be removed
2856 once the linker is fixed. */
2857 if (func_start > exidx_region)
2858 return 0;
2859 }
2860
2861 /* Decode the list of unwinding instructions into a prologue cache.
2862 Note that this may fail due to e.g. a "refuse to unwind" code. */
2863 cache = arm_exidx_fill_cache (this_frame, entry);
2864 if (!cache)
2865 return 0;
2866
2867 *this_prologue_cache = cache;
2868 return 1;
2869}
2870
2871struct frame_unwind arm_exidx_unwind = {
2872 NORMAL_FRAME,
8fbca658 2873 default_frame_unwind_stop_reason,
0e9e9abd
UW
2874 arm_prologue_this_id,
2875 arm_prologue_prev_register,
2876 NULL,
2877 arm_exidx_unwind_sniffer
2878};
2879
80d8d390
YQ
2880/* Recognize GCC's trampoline for thumb call-indirect. If we are in a
2881 trampoline, return the target PC. Otherwise return 0.
2882
2883 void call0a (char c, short s, int i, long l) {}
2884
2885 int main (void)
2886 {
2887 (*pointer_to_call0a) (c, s, i, l);
2888 }
2889
2890 Instead of calling a stub library function _call_via_xx (xx is
2891 the register name), GCC may inline the trampoline in the object
2892 file as below (register r2 has the address of call0a).
2893
2894 .global main
2895 .type main, %function
2896 ...
2897 bl .L1
2898 ...
2899 .size main, .-main
2900
2901 .L1:
2902 bx r2
2903
2904 The trampoline 'bx r2' doesn't belong to main. */
2905
2906static CORE_ADDR
2907arm_skip_bx_reg (struct frame_info *frame, CORE_ADDR pc)
2908{
2909 /* The heuristics of recognizing such trampoline is that FRAME is
2910 executing in Thumb mode and the instruction on PC is 'bx Rm'. */
2911 if (arm_frame_is_thumb (frame))
2912 {
2913 gdb_byte buf[2];
2914
2915 if (target_read_memory (pc, buf, 2) == 0)
2916 {
2917 struct gdbarch *gdbarch = get_frame_arch (frame);
2918 enum bfd_endian byte_order_for_code
2919 = gdbarch_byte_order_for_code (gdbarch);
2920 uint16_t insn
2921 = extract_unsigned_integer (buf, 2, byte_order_for_code);
2922
2923 if ((insn & 0xff80) == 0x4700) /* bx <Rm> */
2924 {
2925 CORE_ADDR dest
2926 = get_frame_register_unsigned (frame, bits (insn, 3, 6));
2927
2928 /* Clear the LSB so that gdb core sets step-resume
2929 breakpoint at the right address. */
2930 return UNMAKE_THUMB_ADDR (dest);
2931 }
2932 }
2933 }
2934
2935 return 0;
2936}
2937
909cf6ea 2938static struct arm_prologue_cache *
a262aec2 2939arm_make_stub_cache (struct frame_info *this_frame)
909cf6ea 2940{
909cf6ea 2941 struct arm_prologue_cache *cache;
909cf6ea 2942
35d5d4ee 2943 cache = FRAME_OBSTACK_ZALLOC (struct arm_prologue_cache);
a262aec2 2944 cache->saved_regs = trad_frame_alloc_saved_regs (this_frame);
909cf6ea 2945
a262aec2 2946 cache->prev_sp = get_frame_register_unsigned (this_frame, ARM_SP_REGNUM);
909cf6ea
DJ
2947
2948 return cache;
2949}
2950
2951/* Our frame ID for a stub frame is the current SP and LR. */
2952
2953static void
a262aec2 2954arm_stub_this_id (struct frame_info *this_frame,
909cf6ea
DJ
2955 void **this_cache,
2956 struct frame_id *this_id)
2957{
2958 struct arm_prologue_cache *cache;
2959
2960 if (*this_cache == NULL)
a262aec2 2961 *this_cache = arm_make_stub_cache (this_frame);
909cf6ea
DJ
2962 cache = *this_cache;
2963
a262aec2 2964 *this_id = frame_id_build (cache->prev_sp, get_frame_pc (this_frame));
909cf6ea
DJ
2965}
2966
a262aec2
DJ
2967static int
2968arm_stub_unwind_sniffer (const struct frame_unwind *self,
2969 struct frame_info *this_frame,
2970 void **this_prologue_cache)
909cf6ea 2971{
93d42b30 2972 CORE_ADDR addr_in_block;
948f8e3d 2973 gdb_byte dummy[4];
18d18ac8
YQ
2974 CORE_ADDR pc, start_addr;
2975 const char *name;
909cf6ea 2976
a262aec2 2977 addr_in_block = get_frame_address_in_block (this_frame);
18d18ac8 2978 pc = get_frame_pc (this_frame);
3e5d3a5a 2979 if (in_plt_section (addr_in_block)
fc36e839
DE
2980 /* We also use the stub winder if the target memory is unreadable
2981 to avoid having the prologue unwinder trying to read it. */
18d18ac8
YQ
2982 || target_read_memory (pc, dummy, 4) != 0)
2983 return 1;
2984
2985 if (find_pc_partial_function (pc, &name, &start_addr, NULL) == 0
2986 && arm_skip_bx_reg (this_frame, pc) != 0)
a262aec2 2987 return 1;
909cf6ea 2988
a262aec2 2989 return 0;
909cf6ea
DJ
2990}
2991
a262aec2
DJ
2992struct frame_unwind arm_stub_unwind = {
2993 NORMAL_FRAME,
8fbca658 2994 default_frame_unwind_stop_reason,
a262aec2
DJ
2995 arm_stub_this_id,
2996 arm_prologue_prev_register,
2997 NULL,
2998 arm_stub_unwind_sniffer
2999};
3000
2ae28aa9
YQ
3001/* Put here the code to store, into CACHE->saved_regs, the addresses
3002 of the saved registers of frame described by THIS_FRAME. CACHE is
3003 returned. */
3004
3005static struct arm_prologue_cache *
3006arm_m_exception_cache (struct frame_info *this_frame)
3007{
3008 struct gdbarch *gdbarch = get_frame_arch (this_frame);
3009 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
3010 struct arm_prologue_cache *cache;
3011 CORE_ADDR unwound_sp;
3012 LONGEST xpsr;
3013
3014 cache = FRAME_OBSTACK_ZALLOC (struct arm_prologue_cache);
3015 cache->saved_regs = trad_frame_alloc_saved_regs (this_frame);
3016
3017 unwound_sp = get_frame_register_unsigned (this_frame,
3018 ARM_SP_REGNUM);
3019
3020 /* The hardware saves eight 32-bit words, comprising xPSR,
3021 ReturnAddress, LR (R14), R12, R3, R2, R1, R0. See details in
3022 "B1.5.6 Exception entry behavior" in
3023 "ARMv7-M Architecture Reference Manual". */
3024 cache->saved_regs[0].addr = unwound_sp;
3025 cache->saved_regs[1].addr = unwound_sp + 4;
3026 cache->saved_regs[2].addr = unwound_sp + 8;
3027 cache->saved_regs[3].addr = unwound_sp + 12;
3028 cache->saved_regs[12].addr = unwound_sp + 16;
3029 cache->saved_regs[14].addr = unwound_sp + 20;
3030 cache->saved_regs[15].addr = unwound_sp + 24;
3031 cache->saved_regs[ARM_PS_REGNUM].addr = unwound_sp + 28;
3032
3033 /* If bit 9 of the saved xPSR is set, then there is a four-byte
3034 aligner between the top of the 32-byte stack frame and the
3035 previous context's stack pointer. */
3036 cache->prev_sp = unwound_sp + 32;
3037 if (safe_read_memory_integer (unwound_sp + 28, 4, byte_order, &xpsr)
3038 && (xpsr & (1 << 9)) != 0)
3039 cache->prev_sp += 4;
3040
3041 return cache;
3042}
3043
3044/* Implementation of function hook 'this_id' in
3045 'struct frame_uwnind'. */
3046
3047static void
3048arm_m_exception_this_id (struct frame_info *this_frame,
3049 void **this_cache,
3050 struct frame_id *this_id)
3051{
3052 struct arm_prologue_cache *cache;
3053
3054 if (*this_cache == NULL)
3055 *this_cache = arm_m_exception_cache (this_frame);
3056 cache = *this_cache;
3057
3058 /* Our frame ID for a stub frame is the current SP and LR. */
3059 *this_id = frame_id_build (cache->prev_sp,
3060 get_frame_pc (this_frame));
3061}
3062
3063/* Implementation of function hook 'prev_register' in
3064 'struct frame_uwnind'. */
3065
3066static struct value *
3067arm_m_exception_prev_register (struct frame_info *this_frame,
3068 void **this_cache,
3069 int prev_regnum)
3070{
3071 struct gdbarch *gdbarch = get_frame_arch (this_frame);
3072 struct arm_prologue_cache *cache;
3073
3074 if (*this_cache == NULL)
3075 *this_cache = arm_m_exception_cache (this_frame);
3076 cache = *this_cache;
3077
3078 /* The value was already reconstructed into PREV_SP. */
3079 if (prev_regnum == ARM_SP_REGNUM)
3080 return frame_unwind_got_constant (this_frame, prev_regnum,
3081 cache->prev_sp);
3082
3083 return trad_frame_get_prev_register (this_frame, cache->saved_regs,
3084 prev_regnum);
3085}
3086
3087/* Implementation of function hook 'sniffer' in
3088 'struct frame_uwnind'. */
3089
3090static int
3091arm_m_exception_unwind_sniffer (const struct frame_unwind *self,
3092 struct frame_info *this_frame,
3093 void **this_prologue_cache)
3094{
3095 CORE_ADDR this_pc = get_frame_pc (this_frame);
3096
3097 /* No need to check is_m; this sniffer is only registered for
3098 M-profile architectures. */
3099
3100 /* Exception frames return to one of these magic PCs. Other values
3101 are not defined as of v7-M. See details in "B1.5.8 Exception
3102 return behavior" in "ARMv7-M Architecture Reference Manual". */
3103 if (this_pc == 0xfffffff1 || this_pc == 0xfffffff9
3104 || this_pc == 0xfffffffd)
3105 return 1;
3106
3107 return 0;
3108}
3109
3110/* Frame unwinder for M-profile exceptions. */
3111
3112struct frame_unwind arm_m_exception_unwind =
3113{
3114 SIGTRAMP_FRAME,
3115 default_frame_unwind_stop_reason,
3116 arm_m_exception_this_id,
3117 arm_m_exception_prev_register,
3118 NULL,
3119 arm_m_exception_unwind_sniffer
3120};
3121
24de872b 3122static CORE_ADDR
a262aec2 3123arm_normal_frame_base (struct frame_info *this_frame, void **this_cache)
24de872b
DJ
3124{
3125 struct arm_prologue_cache *cache;
3126
eb5492fa 3127 if (*this_cache == NULL)
a262aec2 3128 *this_cache = arm_make_prologue_cache (this_frame);
eb5492fa
DJ
3129 cache = *this_cache;
3130
4be43953 3131 return cache->prev_sp - cache->framesize;
24de872b
DJ
3132}
3133
eb5492fa
DJ
3134struct frame_base arm_normal_base = {
3135 &arm_prologue_unwind,
3136 arm_normal_frame_base,
3137 arm_normal_frame_base,
3138 arm_normal_frame_base
3139};
3140
a262aec2 3141/* Assuming THIS_FRAME is a dummy, return the frame ID of that
eb5492fa
DJ
3142 dummy frame. The frame ID's base needs to match the TOS value
3143 saved by save_dummy_frame_tos() and returned from
3144 arm_push_dummy_call, and the PC needs to match the dummy frame's
3145 breakpoint. */
c906108c 3146
eb5492fa 3147static struct frame_id
a262aec2 3148arm_dummy_id (struct gdbarch *gdbarch, struct frame_info *this_frame)
c906108c 3149{
0963b4bd
MS
3150 return frame_id_build (get_frame_register_unsigned (this_frame,
3151 ARM_SP_REGNUM),
a262aec2 3152 get_frame_pc (this_frame));
eb5492fa 3153}
c3b4394c 3154
eb5492fa
DJ
3155/* Given THIS_FRAME, find the previous frame's resume PC (which will
3156 be used to construct the previous frame's ID, after looking up the
3157 containing function). */
c3b4394c 3158
eb5492fa
DJ
3159static CORE_ADDR
3160arm_unwind_pc (struct gdbarch *gdbarch, struct frame_info *this_frame)
3161{
3162 CORE_ADDR pc;
3163 pc = frame_unwind_register_unsigned (this_frame, ARM_PC_REGNUM);
24568a2c 3164 return arm_addr_bits_remove (gdbarch, pc);
eb5492fa
DJ
3165}
3166
3167static CORE_ADDR
3168arm_unwind_sp (struct gdbarch *gdbarch, struct frame_info *this_frame)
3169{
3170 return frame_unwind_register_unsigned (this_frame, ARM_SP_REGNUM);
c906108c
SS
3171}
3172
b39cc962
DJ
3173static struct value *
3174arm_dwarf2_prev_register (struct frame_info *this_frame, void **this_cache,
3175 int regnum)
3176{
24568a2c 3177 struct gdbarch * gdbarch = get_frame_arch (this_frame);
b39cc962 3178 CORE_ADDR lr, cpsr;
9779414d 3179 ULONGEST t_bit = arm_psr_thumb_bit (gdbarch);
b39cc962
DJ
3180
3181 switch (regnum)
3182 {
3183 case ARM_PC_REGNUM:
3184 /* The PC is normally copied from the return column, which
3185 describes saves of LR. However, that version may have an
3186 extra bit set to indicate Thumb state. The bit is not
3187 part of the PC. */
3188 lr = frame_unwind_register_unsigned (this_frame, ARM_LR_REGNUM);
3189 return frame_unwind_got_constant (this_frame, regnum,
24568a2c 3190 arm_addr_bits_remove (gdbarch, lr));
b39cc962
DJ
3191
3192 case ARM_PS_REGNUM:
3193 /* Reconstruct the T bit; see arm_prologue_prev_register for details. */
ca38c58e 3194 cpsr = get_frame_register_unsigned (this_frame, regnum);
b39cc962
DJ
3195 lr = frame_unwind_register_unsigned (this_frame, ARM_LR_REGNUM);
3196 if (IS_THUMB_ADDR (lr))
9779414d 3197 cpsr |= t_bit;
b39cc962 3198 else
9779414d 3199 cpsr &= ~t_bit;
ca38c58e 3200 return frame_unwind_got_constant (this_frame, regnum, cpsr);
b39cc962
DJ
3201
3202 default:
3203 internal_error (__FILE__, __LINE__,
3204 _("Unexpected register %d"), regnum);
3205 }
3206}
3207
3208static void
3209arm_dwarf2_frame_init_reg (struct gdbarch *gdbarch, int regnum,
3210 struct dwarf2_frame_state_reg *reg,
3211 struct frame_info *this_frame)
3212{
3213 switch (regnum)
3214 {
3215 case ARM_PC_REGNUM:
3216 case ARM_PS_REGNUM:
3217 reg->how = DWARF2_FRAME_REG_FN;
3218 reg->loc.fn = arm_dwarf2_prev_register;
3219 break;
3220 case ARM_SP_REGNUM:
3221 reg->how = DWARF2_FRAME_REG_CFA;
3222 break;
3223 }
3224}
3225
c9cf6e20 3226/* Implement the stack_frame_destroyed_p gdbarch method. */
4024ca99
UW
3227
3228static int
c9cf6e20 3229thumb_stack_frame_destroyed_p (struct gdbarch *gdbarch, CORE_ADDR pc)
4024ca99
UW
3230{
3231 enum bfd_endian byte_order_for_code = gdbarch_byte_order_for_code (gdbarch);
3232 unsigned int insn, insn2;
3233 int found_return = 0, found_stack_adjust = 0;
3234 CORE_ADDR func_start, func_end;
3235 CORE_ADDR scan_pc;
3236 gdb_byte buf[4];
3237
3238 if (!find_pc_partial_function (pc, NULL, &func_start, &func_end))
3239 return 0;
3240
3241 /* The epilogue is a sequence of instructions along the following lines:
3242
3243 - add stack frame size to SP or FP
3244 - [if frame pointer used] restore SP from FP
3245 - restore registers from SP [may include PC]
3246 - a return-type instruction [if PC wasn't already restored]
3247
3248 In a first pass, we scan forward from the current PC and verify the
3249 instructions we find as compatible with this sequence, ending in a
3250 return instruction.
3251
3252 However, this is not sufficient to distinguish indirect function calls
3253 within a function from indirect tail calls in the epilogue in some cases.
3254 Therefore, if we didn't already find any SP-changing instruction during
3255 forward scan, we add a backward scanning heuristic to ensure we actually
3256 are in the epilogue. */
3257
3258 scan_pc = pc;
3259 while (scan_pc < func_end && !found_return)
3260 {
3261 if (target_read_memory (scan_pc, buf, 2))
3262 break;
3263
3264 scan_pc += 2;
3265 insn = extract_unsigned_integer (buf, 2, byte_order_for_code);
3266
3267 if ((insn & 0xff80) == 0x4700) /* bx <Rm> */
3268 found_return = 1;
3269 else if (insn == 0x46f7) /* mov pc, lr */
3270 found_return = 1;
540314bd 3271 else if (thumb_instruction_restores_sp (insn))
4024ca99 3272 {
b7576e5c 3273 if ((insn & 0xff00) == 0xbd00) /* pop <registers, PC> */
4024ca99
UW
3274 found_return = 1;
3275 }
db24da6d 3276 else if (thumb_insn_size (insn) == 4) /* 32-bit Thumb-2 instruction */
4024ca99
UW
3277 {
3278 if (target_read_memory (scan_pc, buf, 2))
3279 break;
3280
3281 scan_pc += 2;
3282 insn2 = extract_unsigned_integer (buf, 2, byte_order_for_code);
3283
3284 if (insn == 0xe8bd) /* ldm.w sp!, <registers> */
3285 {
4024ca99
UW
3286 if (insn2 & 0x8000) /* <registers> include PC. */
3287 found_return = 1;
3288 }
3289 else if (insn == 0xf85d /* ldr.w <Rt>, [sp], #4 */
3290 && (insn2 & 0x0fff) == 0x0b04)
3291 {
4024ca99
UW
3292 if ((insn2 & 0xf000) == 0xf000) /* <Rt> is PC. */
3293 found_return = 1;
3294 }
3295 else if ((insn & 0xffbf) == 0xecbd /* vldm sp!, <list> */
3296 && (insn2 & 0x0e00) == 0x0a00)
6b65d1b6 3297 ;
4024ca99
UW
3298 else
3299 break;
3300 }
3301 else
3302 break;
3303 }
3304
3305 if (!found_return)
3306 return 0;
3307
3308 /* Since any instruction in the epilogue sequence, with the possible
3309 exception of return itself, updates the stack pointer, we need to
3310 scan backwards for at most one instruction. Try either a 16-bit or
3311 a 32-bit instruction. This is just a heuristic, so we do not worry
0963b4bd 3312 too much about false positives. */
4024ca99 3313
6b65d1b6
YQ
3314 if (pc - 4 < func_start)
3315 return 0;
3316 if (target_read_memory (pc - 4, buf, 4))
3317 return 0;
4024ca99 3318
6b65d1b6
YQ
3319 insn = extract_unsigned_integer (buf, 2, byte_order_for_code);
3320 insn2 = extract_unsigned_integer (buf + 2, 2, byte_order_for_code);
3321
3322 if (thumb_instruction_restores_sp (insn2))
3323 found_stack_adjust = 1;
3324 else if (insn == 0xe8bd) /* ldm.w sp!, <registers> */
3325 found_stack_adjust = 1;
3326 else if (insn == 0xf85d /* ldr.w <Rt>, [sp], #4 */
3327 && (insn2 & 0x0fff) == 0x0b04)
3328 found_stack_adjust = 1;
3329 else if ((insn & 0xffbf) == 0xecbd /* vldm sp!, <list> */
3330 && (insn2 & 0x0e00) == 0x0a00)
3331 found_stack_adjust = 1;
4024ca99
UW
3332
3333 return found_stack_adjust;
3334}
3335
c9cf6e20 3336/* Implement the stack_frame_destroyed_p gdbarch method. */
4024ca99
UW
3337
3338static int
c9cf6e20 3339arm_stack_frame_destroyed_p (struct gdbarch *gdbarch, CORE_ADDR pc)
4024ca99
UW
3340{
3341 enum bfd_endian byte_order_for_code = gdbarch_byte_order_for_code (gdbarch);
3342 unsigned int insn;
f303bc3e 3343 int found_return;
4024ca99
UW
3344 CORE_ADDR func_start, func_end;
3345
3346 if (arm_pc_is_thumb (gdbarch, pc))
c9cf6e20 3347 return thumb_stack_frame_destroyed_p (gdbarch, pc);
4024ca99
UW
3348
3349 if (!find_pc_partial_function (pc, NULL, &func_start, &func_end))
3350 return 0;
3351
3352 /* We are in the epilogue if the previous instruction was a stack
3353 adjustment and the next instruction is a possible return (bx, mov
3354 pc, or pop). We could have to scan backwards to find the stack
3355 adjustment, or forwards to find the return, but this is a decent
3356 approximation. First scan forwards. */
3357
3358 found_return = 0;
3359 insn = read_memory_unsigned_integer (pc, 4, byte_order_for_code);
3360 if (bits (insn, 28, 31) != INST_NV)
3361 {
3362 if ((insn & 0x0ffffff0) == 0x012fff10)
3363 /* BX. */
3364 found_return = 1;
3365 else if ((insn & 0x0ffffff0) == 0x01a0f000)
3366 /* MOV PC. */
3367 found_return = 1;
3368 else if ((insn & 0x0fff0000) == 0x08bd0000
3369 && (insn & 0x0000c000) != 0)
3370 /* POP (LDMIA), including PC or LR. */
3371 found_return = 1;
3372 }
3373
3374 if (!found_return)
3375 return 0;
3376
3377 /* Scan backwards. This is just a heuristic, so do not worry about
3378 false positives from mode changes. */
3379
3380 if (pc < func_start + 4)
3381 return 0;
3382
3383 insn = read_memory_unsigned_integer (pc - 4, 4, byte_order_for_code);
f303bc3e 3384 if (arm_instruction_restores_sp (insn))
4024ca99
UW
3385 return 1;
3386
3387 return 0;
3388}
3389
3390
2dd604e7
RE
3391/* When arguments must be pushed onto the stack, they go on in reverse
3392 order. The code below implements a FILO (stack) to do this. */
3393
3394struct stack_item
3395{
3396 int len;
3397 struct stack_item *prev;
3398 void *data;
3399};
3400
3401static struct stack_item *
8c6363cf 3402push_stack_item (struct stack_item *prev, const void *contents, int len)
2dd604e7
RE
3403{
3404 struct stack_item *si;
3405 si = xmalloc (sizeof (struct stack_item));
226c7fbc 3406 si->data = xmalloc (len);
2dd604e7
RE
3407 si->len = len;
3408 si->prev = prev;
3409 memcpy (si->data, contents, len);
3410 return si;
3411}
3412
3413static struct stack_item *
3414pop_stack_item (struct stack_item *si)
3415{
3416 struct stack_item *dead = si;
3417 si = si->prev;
3418 xfree (dead->data);
3419 xfree (dead);
3420 return si;
3421}
3422
2af48f68
PB
3423
3424/* Return the alignment (in bytes) of the given type. */
3425
3426static int
3427arm_type_align (struct type *t)
3428{
3429 int n;
3430 int align;
3431 int falign;
3432
3433 t = check_typedef (t);
3434 switch (TYPE_CODE (t))
3435 {
3436 default:
3437 /* Should never happen. */
3438 internal_error (__FILE__, __LINE__, _("unknown type alignment"));
3439 return 4;
3440
3441 case TYPE_CODE_PTR:
3442 case TYPE_CODE_ENUM:
3443 case TYPE_CODE_INT:
3444 case TYPE_CODE_FLT:
3445 case TYPE_CODE_SET:
3446 case TYPE_CODE_RANGE:
2af48f68
PB
3447 case TYPE_CODE_REF:
3448 case TYPE_CODE_CHAR:
3449 case TYPE_CODE_BOOL:
3450 return TYPE_LENGTH (t);
3451
3452 case TYPE_CODE_ARRAY:
3453 case TYPE_CODE_COMPLEX:
3454 /* TODO: What about vector types? */
3455 return arm_type_align (TYPE_TARGET_TYPE (t));
3456
3457 case TYPE_CODE_STRUCT:
3458 case TYPE_CODE_UNION:
3459 align = 1;
3460 for (n = 0; n < TYPE_NFIELDS (t); n++)
3461 {
3462 falign = arm_type_align (TYPE_FIELD_TYPE (t, n));
3463 if (falign > align)
3464 align = falign;
3465 }
3466 return align;
3467 }
3468}
3469
90445bd3
DJ
3470/* Possible base types for a candidate for passing and returning in
3471 VFP registers. */
3472
3473enum arm_vfp_cprc_base_type
3474{
3475 VFP_CPRC_UNKNOWN,
3476 VFP_CPRC_SINGLE,
3477 VFP_CPRC_DOUBLE,
3478 VFP_CPRC_VEC64,
3479 VFP_CPRC_VEC128
3480};
3481
3482/* The length of one element of base type B. */
3483
3484static unsigned
3485arm_vfp_cprc_unit_length (enum arm_vfp_cprc_base_type b)
3486{
3487 switch (b)
3488 {
3489 case VFP_CPRC_SINGLE:
3490 return 4;
3491 case VFP_CPRC_DOUBLE:
3492 return 8;
3493 case VFP_CPRC_VEC64:
3494 return 8;
3495 case VFP_CPRC_VEC128:
3496 return 16;
3497 default:
3498 internal_error (__FILE__, __LINE__, _("Invalid VFP CPRC type: %d."),
3499 (int) b);
3500 }
3501}
3502
3503/* The character ('s', 'd' or 'q') for the type of VFP register used
3504 for passing base type B. */
3505
3506static int
3507arm_vfp_cprc_reg_char (enum arm_vfp_cprc_base_type b)
3508{
3509 switch (b)
3510 {
3511 case VFP_CPRC_SINGLE:
3512 return 's';
3513 case VFP_CPRC_DOUBLE:
3514 return 'd';
3515 case VFP_CPRC_VEC64:
3516 return 'd';
3517 case VFP_CPRC_VEC128:
3518 return 'q';
3519 default:
3520 internal_error (__FILE__, __LINE__, _("Invalid VFP CPRC type: %d."),
3521 (int) b);
3522 }
3523}
3524
3525/* Determine whether T may be part of a candidate for passing and
3526 returning in VFP registers, ignoring the limit on the total number
3527 of components. If *BASE_TYPE is VFP_CPRC_UNKNOWN, set it to the
3528 classification of the first valid component found; if it is not
3529 VFP_CPRC_UNKNOWN, all components must have the same classification
3530 as *BASE_TYPE. If it is found that T contains a type not permitted
3531 for passing and returning in VFP registers, a type differently
3532 classified from *BASE_TYPE, or two types differently classified
3533 from each other, return -1, otherwise return the total number of
3534 base-type elements found (possibly 0 in an empty structure or
817e0957
YQ
3535 array). Vector types are not currently supported, matching the
3536 generic AAPCS support. */
90445bd3
DJ
3537
3538static int
3539arm_vfp_cprc_sub_candidate (struct type *t,
3540 enum arm_vfp_cprc_base_type *base_type)
3541{
3542 t = check_typedef (t);
3543 switch (TYPE_CODE (t))
3544 {
3545 case TYPE_CODE_FLT:
3546 switch (TYPE_LENGTH (t))
3547 {
3548 case 4:
3549 if (*base_type == VFP_CPRC_UNKNOWN)
3550 *base_type = VFP_CPRC_SINGLE;
3551 else if (*base_type != VFP_CPRC_SINGLE)
3552 return -1;
3553 return 1;
3554
3555 case 8:
3556 if (*base_type == VFP_CPRC_UNKNOWN)
3557 *base_type = VFP_CPRC_DOUBLE;
3558 else if (*base_type != VFP_CPRC_DOUBLE)
3559 return -1;
3560 return 1;
3561
3562 default:
3563 return -1;
3564 }
3565 break;
3566
817e0957
YQ
3567 case TYPE_CODE_COMPLEX:
3568 /* Arguments of complex T where T is one of the types float or
3569 double get treated as if they are implemented as:
3570
3571 struct complexT
3572 {
3573 T real;
3574 T imag;
5f52445b
YQ
3575 };
3576
3577 */
817e0957
YQ
3578 switch (TYPE_LENGTH (t))
3579 {
3580 case 8:
3581 if (*base_type == VFP_CPRC_UNKNOWN)
3582 *base_type = VFP_CPRC_SINGLE;
3583 else if (*base_type != VFP_CPRC_SINGLE)
3584 return -1;
3585 return 2;
3586
3587 case 16:
3588 if (*base_type == VFP_CPRC_UNKNOWN)
3589 *base_type = VFP_CPRC_DOUBLE;
3590 else if (*base_type != VFP_CPRC_DOUBLE)
3591 return -1;
3592 return 2;
3593
3594 default:
3595 return -1;
3596 }
3597 break;
3598
90445bd3
DJ
3599 case TYPE_CODE_ARRAY:
3600 {
3601 int count;
3602 unsigned unitlen;
3603 count = arm_vfp_cprc_sub_candidate (TYPE_TARGET_TYPE (t), base_type);
3604 if (count == -1)
3605 return -1;
3606 if (TYPE_LENGTH (t) == 0)
3607 {
3608 gdb_assert (count == 0);
3609 return 0;
3610 }
3611 else if (count == 0)
3612 return -1;
3613 unitlen = arm_vfp_cprc_unit_length (*base_type);
3614 gdb_assert ((TYPE_LENGTH (t) % unitlen) == 0);
3615 return TYPE_LENGTH (t) / unitlen;
3616 }
3617 break;
3618
3619 case TYPE_CODE_STRUCT:
3620 {
3621 int count = 0;
3622 unsigned unitlen;
3623 int i;
3624 for (i = 0; i < TYPE_NFIELDS (t); i++)
3625 {
3626 int sub_count = arm_vfp_cprc_sub_candidate (TYPE_FIELD_TYPE (t, i),
3627 base_type);
3628 if (sub_count == -1)
3629 return -1;
3630 count += sub_count;
3631 }
3632 if (TYPE_LENGTH (t) == 0)
3633 {
3634 gdb_assert (count == 0);
3635 return 0;
3636 }
3637 else if (count == 0)
3638 return -1;
3639 unitlen = arm_vfp_cprc_unit_length (*base_type);
3640 if (TYPE_LENGTH (t) != unitlen * count)
3641 return -1;
3642 return count;
3643 }
3644
3645 case TYPE_CODE_UNION:
3646 {
3647 int count = 0;
3648 unsigned unitlen;
3649 int i;
3650 for (i = 0; i < TYPE_NFIELDS (t); i++)
3651 {
3652 int sub_count = arm_vfp_cprc_sub_candidate (TYPE_FIELD_TYPE (t, i),
3653 base_type);
3654 if (sub_count == -1)
3655 return -1;
3656 count = (count > sub_count ? count : sub_count);
3657 }
3658 if (TYPE_LENGTH (t) == 0)
3659 {
3660 gdb_assert (count == 0);
3661 return 0;
3662 }
3663 else if (count == 0)
3664 return -1;
3665 unitlen = arm_vfp_cprc_unit_length (*base_type);
3666 if (TYPE_LENGTH (t) != unitlen * count)
3667 return -1;
3668 return count;
3669 }
3670
3671 default:
3672 break;
3673 }
3674
3675 return -1;
3676}
3677
3678/* Determine whether T is a VFP co-processor register candidate (CPRC)
3679 if passed to or returned from a non-variadic function with the VFP
3680 ABI in effect. Return 1 if it is, 0 otherwise. If it is, set
3681 *BASE_TYPE to the base type for T and *COUNT to the number of
3682 elements of that base type before returning. */
3683
3684static int
3685arm_vfp_call_candidate (struct type *t, enum arm_vfp_cprc_base_type *base_type,
3686 int *count)
3687{
3688 enum arm_vfp_cprc_base_type b = VFP_CPRC_UNKNOWN;
3689 int c = arm_vfp_cprc_sub_candidate (t, &b);
3690 if (c <= 0 || c > 4)
3691 return 0;
3692 *base_type = b;
3693 *count = c;
3694 return 1;
3695}
3696
3697/* Return 1 if the VFP ABI should be used for passing arguments to and
3698 returning values from a function of type FUNC_TYPE, 0
3699 otherwise. */
3700
3701static int
3702arm_vfp_abi_for_function (struct gdbarch *gdbarch, struct type *func_type)
3703{
3704 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
3705 /* Variadic functions always use the base ABI. Assume that functions
3706 without debug info are not variadic. */
3707 if (func_type && TYPE_VARARGS (check_typedef (func_type)))
3708 return 0;
3709 /* The VFP ABI is only supported as a variant of AAPCS. */
3710 if (tdep->arm_abi != ARM_ABI_AAPCS)
3711 return 0;
3712 return gdbarch_tdep (gdbarch)->fp_model == ARM_FLOAT_VFP;
3713}
3714
3715/* We currently only support passing parameters in integer registers, which
3716 conforms with GCC's default model, and VFP argument passing following
3717 the VFP variant of AAPCS. Several other variants exist and
2dd604e7
RE
3718 we should probably support some of them based on the selected ABI. */
3719
3720static CORE_ADDR
7d9b040b 3721arm_push_dummy_call (struct gdbarch *gdbarch, struct value *function,
6a65450a
AC
3722 struct regcache *regcache, CORE_ADDR bp_addr, int nargs,
3723 struct value **args, CORE_ADDR sp, int struct_return,
3724 CORE_ADDR struct_addr)
2dd604e7 3725{
e17a4113 3726 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
2dd604e7
RE
3727 int argnum;
3728 int argreg;
3729 int nstack;
3730 struct stack_item *si = NULL;
90445bd3
DJ
3731 int use_vfp_abi;
3732 struct type *ftype;
3733 unsigned vfp_regs_free = (1 << 16) - 1;
3734
3735 /* Determine the type of this function and whether the VFP ABI
3736 applies. */
3737 ftype = check_typedef (value_type (function));
3738 if (TYPE_CODE (ftype) == TYPE_CODE_PTR)
3739 ftype = check_typedef (TYPE_TARGET_TYPE (ftype));
3740 use_vfp_abi = arm_vfp_abi_for_function (gdbarch, ftype);
2dd604e7 3741
6a65450a
AC
3742 /* Set the return address. For the ARM, the return breakpoint is
3743 always at BP_ADDR. */
9779414d 3744 if (arm_pc_is_thumb (gdbarch, bp_addr))
9dca5578 3745 bp_addr |= 1;
6a65450a 3746 regcache_cooked_write_unsigned (regcache, ARM_LR_REGNUM, bp_addr);
2dd604e7
RE
3747
3748 /* Walk through the list of args and determine how large a temporary
3749 stack is required. Need to take care here as structs may be
7a9dd1b2 3750 passed on the stack, and we have to push them. */
2dd604e7
RE
3751 nstack = 0;
3752
3753 argreg = ARM_A1_REGNUM;
3754 nstack = 0;
3755
2dd604e7
RE
3756 /* The struct_return pointer occupies the first parameter
3757 passing register. */
3758 if (struct_return)
3759 {
3760 if (arm_debug)
5af949e3 3761 fprintf_unfiltered (gdb_stdlog, "struct return in %s = %s\n",
2af46ca0 3762 gdbarch_register_name (gdbarch, argreg),
5af949e3 3763 paddress (gdbarch, struct_addr));
2dd604e7
RE
3764 regcache_cooked_write_unsigned (regcache, argreg, struct_addr);
3765 argreg++;
3766 }
3767
3768 for (argnum = 0; argnum < nargs; argnum++)
3769 {
3770 int len;
3771 struct type *arg_type;
3772 struct type *target_type;
3773 enum type_code typecode;
8c6363cf 3774 const bfd_byte *val;
2af48f68 3775 int align;
90445bd3
DJ
3776 enum arm_vfp_cprc_base_type vfp_base_type;
3777 int vfp_base_count;
3778 int may_use_core_reg = 1;
2dd604e7 3779
df407dfe 3780 arg_type = check_typedef (value_type (args[argnum]));
2dd604e7
RE
3781 len = TYPE_LENGTH (arg_type);
3782 target_type = TYPE_TARGET_TYPE (arg_type);
3783 typecode = TYPE_CODE (arg_type);
8c6363cf 3784 val = value_contents (args[argnum]);
2dd604e7 3785
2af48f68
PB
3786 align = arm_type_align (arg_type);
3787 /* Round alignment up to a whole number of words. */
3788 align = (align + INT_REGISTER_SIZE - 1) & ~(INT_REGISTER_SIZE - 1);
3789 /* Different ABIs have different maximum alignments. */
3790 if (gdbarch_tdep (gdbarch)->arm_abi == ARM_ABI_APCS)
3791 {
3792 /* The APCS ABI only requires word alignment. */
3793 align = INT_REGISTER_SIZE;
3794 }
3795 else
3796 {
3797 /* The AAPCS requires at most doubleword alignment. */
3798 if (align > INT_REGISTER_SIZE * 2)
3799 align = INT_REGISTER_SIZE * 2;
3800 }
3801
90445bd3
DJ
3802 if (use_vfp_abi
3803 && arm_vfp_call_candidate (arg_type, &vfp_base_type,
3804 &vfp_base_count))
3805 {
3806 int regno;
3807 int unit_length;
3808 int shift;
3809 unsigned mask;
3810
3811 /* Because this is a CPRC it cannot go in a core register or
3812 cause a core register to be skipped for alignment.
3813 Either it goes in VFP registers and the rest of this loop
3814 iteration is skipped for this argument, or it goes on the
3815 stack (and the stack alignment code is correct for this
3816 case). */
3817 may_use_core_reg = 0;
3818
3819 unit_length = arm_vfp_cprc_unit_length (vfp_base_type);
3820 shift = unit_length / 4;
3821 mask = (1 << (shift * vfp_base_count)) - 1;
3822 for (regno = 0; regno < 16; regno += shift)
3823 if (((vfp_regs_free >> regno) & mask) == mask)
3824 break;
3825
3826 if (regno < 16)
3827 {
3828 int reg_char;
3829 int reg_scaled;
3830 int i;
3831
3832 vfp_regs_free &= ~(mask << regno);
3833 reg_scaled = regno / shift;
3834 reg_char = arm_vfp_cprc_reg_char (vfp_base_type);
3835 for (i = 0; i < vfp_base_count; i++)
3836 {
3837 char name_buf[4];
3838 int regnum;
58d6951d
DJ
3839 if (reg_char == 'q')
3840 arm_neon_quad_write (gdbarch, regcache, reg_scaled + i,
90445bd3 3841 val + i * unit_length);
58d6951d
DJ
3842 else
3843 {
8c042590
PM
3844 xsnprintf (name_buf, sizeof (name_buf), "%c%d",
3845 reg_char, reg_scaled + i);
58d6951d
DJ
3846 regnum = user_reg_map_name_to_regnum (gdbarch, name_buf,
3847 strlen (name_buf));
3848 regcache_cooked_write (regcache, regnum,
3849 val + i * unit_length);
3850 }
90445bd3
DJ
3851 }
3852 continue;
3853 }
3854 else
3855 {
3856 /* This CPRC could not go in VFP registers, so all VFP
3857 registers are now marked as used. */
3858 vfp_regs_free = 0;
3859 }
3860 }
3861
2af48f68
PB
3862 /* Push stack padding for dowubleword alignment. */
3863 if (nstack & (align - 1))
3864 {
3865 si = push_stack_item (si, val, INT_REGISTER_SIZE);
3866 nstack += INT_REGISTER_SIZE;
3867 }
3868
3869 /* Doubleword aligned quantities must go in even register pairs. */
90445bd3
DJ
3870 if (may_use_core_reg
3871 && argreg <= ARM_LAST_ARG_REGNUM
2af48f68
PB
3872 && align > INT_REGISTER_SIZE
3873 && argreg & 1)
3874 argreg++;
3875
2dd604e7
RE
3876 /* If the argument is a pointer to a function, and it is a
3877 Thumb function, create a LOCAL copy of the value and set
3878 the THUMB bit in it. */
3879 if (TYPE_CODE_PTR == typecode
3880 && target_type != NULL
f96b8fa0 3881 && TYPE_CODE_FUNC == TYPE_CODE (check_typedef (target_type)))
2dd604e7 3882 {
e17a4113 3883 CORE_ADDR regval = extract_unsigned_integer (val, len, byte_order);
9779414d 3884 if (arm_pc_is_thumb (gdbarch, regval))
2dd604e7 3885 {
8c6363cf
TT
3886 bfd_byte *copy = alloca (len);
3887 store_unsigned_integer (copy, len, byte_order,
e17a4113 3888 MAKE_THUMB_ADDR (regval));
8c6363cf 3889 val = copy;
2dd604e7
RE
3890 }
3891 }
3892
3893 /* Copy the argument to general registers or the stack in
3894 register-sized pieces. Large arguments are split between
3895 registers and stack. */
3896 while (len > 0)
3897 {
f0c9063c 3898 int partial_len = len < INT_REGISTER_SIZE ? len : INT_REGISTER_SIZE;
2dd604e7 3899
90445bd3 3900 if (may_use_core_reg && argreg <= ARM_LAST_ARG_REGNUM)
2dd604e7
RE
3901 {
3902 /* The argument is being passed in a general purpose
3903 register. */
e17a4113
UW
3904 CORE_ADDR regval
3905 = extract_unsigned_integer (val, partial_len, byte_order);
3906 if (byte_order == BFD_ENDIAN_BIG)
8bf8793c 3907 regval <<= (INT_REGISTER_SIZE - partial_len) * 8;
2dd604e7
RE
3908 if (arm_debug)
3909 fprintf_unfiltered (gdb_stdlog, "arg %d in %s = 0x%s\n",
c9f4d572
UW
3910 argnum,
3911 gdbarch_register_name
2af46ca0 3912 (gdbarch, argreg),
f0c9063c 3913 phex (regval, INT_REGISTER_SIZE));
2dd604e7
RE
3914 regcache_cooked_write_unsigned (regcache, argreg, regval);
3915 argreg++;
3916 }
3917 else
3918 {
3919 /* Push the arguments onto the stack. */
3920 if (arm_debug)
3921 fprintf_unfiltered (gdb_stdlog, "arg %d @ sp + %d\n",
3922 argnum, nstack);
f0c9063c
UW
3923 si = push_stack_item (si, val, INT_REGISTER_SIZE);
3924 nstack += INT_REGISTER_SIZE;
2dd604e7
RE
3925 }
3926
3927 len -= partial_len;
3928 val += partial_len;
3929 }
3930 }
3931 /* If we have an odd number of words to push, then decrement the stack
3932 by one word now, so first stack argument will be dword aligned. */
3933 if (nstack & 4)
3934 sp -= 4;
3935
3936 while (si)
3937 {
3938 sp -= si->len;
3939 write_memory (sp, si->data, si->len);
3940 si = pop_stack_item (si);
3941 }
3942
3943 /* Finally, update teh SP register. */
3944 regcache_cooked_write_unsigned (regcache, ARM_SP_REGNUM, sp);
3945
3946 return sp;
3947}
3948
f53f0d0b
PB
3949
3950/* Always align the frame to an 8-byte boundary. This is required on
3951 some platforms and harmless on the rest. */
3952
3953static CORE_ADDR
3954arm_frame_align (struct gdbarch *gdbarch, CORE_ADDR sp)
3955{
3956 /* Align the stack to eight bytes. */
3957 return sp & ~ (CORE_ADDR) 7;
3958}
3959
c906108c 3960static void
12b27276 3961print_fpu_flags (struct ui_file *file, int flags)
c906108c 3962{
c5aa993b 3963 if (flags & (1 << 0))
12b27276 3964 fputs_filtered ("IVO ", file);
c5aa993b 3965 if (flags & (1 << 1))
12b27276 3966 fputs_filtered ("DVZ ", file);
c5aa993b 3967 if (flags & (1 << 2))
12b27276 3968 fputs_filtered ("OFL ", file);
c5aa993b 3969 if (flags & (1 << 3))
12b27276 3970 fputs_filtered ("UFL ", file);
c5aa993b 3971 if (flags & (1 << 4))
12b27276
WN
3972 fputs_filtered ("INX ", file);
3973 fputc_filtered ('\n', file);
c906108c
SS
3974}
3975
5e74b15c
RE
3976/* Print interesting information about the floating point processor
3977 (if present) or emulator. */
34e8f22d 3978static void
d855c300 3979arm_print_float_info (struct gdbarch *gdbarch, struct ui_file *file,
23e3a7ac 3980 struct frame_info *frame, const char *args)
c906108c 3981{
9c9acae0 3982 unsigned long status = get_frame_register_unsigned (frame, ARM_FPS_REGNUM);
c5aa993b
JM
3983 int type;
3984
3985 type = (status >> 24) & 127;
edefbb7c 3986 if (status & (1 << 31))
12b27276 3987 fprintf_filtered (file, _("Hardware FPU type %d\n"), type);
edefbb7c 3988 else
12b27276 3989 fprintf_filtered (file, _("Software FPU type %d\n"), type);
edefbb7c 3990 /* i18n: [floating point unit] mask */
12b27276
WN
3991 fputs_filtered (_("mask: "), file);
3992 print_fpu_flags (file, status >> 16);
edefbb7c 3993 /* i18n: [floating point unit] flags */
12b27276
WN
3994 fputs_filtered (_("flags: "), file);
3995 print_fpu_flags (file, status);
c906108c
SS
3996}
3997
27067745
UW
3998/* Construct the ARM extended floating point type. */
3999static struct type *
4000arm_ext_type (struct gdbarch *gdbarch)
4001{
4002 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
4003
4004 if (!tdep->arm_ext_type)
4005 tdep->arm_ext_type
e9bb382b 4006 = arch_float_type (gdbarch, -1, "builtin_type_arm_ext",
27067745
UW
4007 floatformats_arm_ext);
4008
4009 return tdep->arm_ext_type;
4010}
4011
58d6951d
DJ
4012static struct type *
4013arm_neon_double_type (struct gdbarch *gdbarch)
4014{
4015 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
4016
4017 if (tdep->neon_double_type == NULL)
4018 {
4019 struct type *t, *elem;
4020
4021 t = arch_composite_type (gdbarch, "__gdb_builtin_type_neon_d",
4022 TYPE_CODE_UNION);
4023 elem = builtin_type (gdbarch)->builtin_uint8;
4024 append_composite_type_field (t, "u8", init_vector_type (elem, 8));
4025 elem = builtin_type (gdbarch)->builtin_uint16;
4026 append_composite_type_field (t, "u16", init_vector_type (elem, 4));
4027 elem = builtin_type (gdbarch)->builtin_uint32;
4028 append_composite_type_field (t, "u32", init_vector_type (elem, 2));
4029 elem = builtin_type (gdbarch)->builtin_uint64;
4030 append_composite_type_field (t, "u64", elem);
4031 elem = builtin_type (gdbarch)->builtin_float;
4032 append_composite_type_field (t, "f32", init_vector_type (elem, 2));
4033 elem = builtin_type (gdbarch)->builtin_double;
4034 append_composite_type_field (t, "f64", elem);
4035
4036 TYPE_VECTOR (t) = 1;
4037 TYPE_NAME (t) = "neon_d";
4038 tdep->neon_double_type = t;
4039 }
4040
4041 return tdep->neon_double_type;
4042}
4043
4044/* FIXME: The vector types are not correctly ordered on big-endian
4045 targets. Just as s0 is the low bits of d0, d0[0] is also the low
4046 bits of d0 - regardless of what unit size is being held in d0. So
4047 the offset of the first uint8 in d0 is 7, but the offset of the
4048 first float is 4. This code works as-is for little-endian
4049 targets. */
4050
4051static struct type *
4052arm_neon_quad_type (struct gdbarch *gdbarch)
4053{
4054 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
4055
4056 if (tdep->neon_quad_type == NULL)
4057 {
4058 struct type *t, *elem;
4059
4060 t = arch_composite_type (gdbarch, "__gdb_builtin_type_neon_q",
4061 TYPE_CODE_UNION);
4062 elem = builtin_type (gdbarch)->builtin_uint8;
4063 append_composite_type_field (t, "u8", init_vector_type (elem, 16));
4064 elem = builtin_type (gdbarch)->builtin_uint16;
4065 append_composite_type_field (t, "u16", init_vector_type (elem, 8));
4066 elem = builtin_type (gdbarch)->builtin_uint32;
4067 append_composite_type_field (t, "u32", init_vector_type (elem, 4));
4068 elem = builtin_type (gdbarch)->builtin_uint64;
4069 append_composite_type_field (t, "u64", init_vector_type (elem, 2));
4070 elem = builtin_type (gdbarch)->builtin_float;
4071 append_composite_type_field (t, "f32", init_vector_type (elem, 4));
4072 elem = builtin_type (gdbarch)->builtin_double;
4073 append_composite_type_field (t, "f64", init_vector_type (elem, 2));
4074
4075 TYPE_VECTOR (t) = 1;
4076 TYPE_NAME (t) = "neon_q";
4077 tdep->neon_quad_type = t;
4078 }
4079
4080 return tdep->neon_quad_type;
4081}
4082
34e8f22d
RE
4083/* Return the GDB type object for the "standard" data type of data in
4084 register N. */
4085
4086static struct type *
7a5ea0d4 4087arm_register_type (struct gdbarch *gdbarch, int regnum)
032758dc 4088{
58d6951d
DJ
4089 int num_regs = gdbarch_num_regs (gdbarch);
4090
4091 if (gdbarch_tdep (gdbarch)->have_vfp_pseudos
4092 && regnum >= num_regs && regnum < num_regs + 32)
4093 return builtin_type (gdbarch)->builtin_float;
4094
4095 if (gdbarch_tdep (gdbarch)->have_neon_pseudos
4096 && regnum >= num_regs + 32 && regnum < num_regs + 32 + 16)
4097 return arm_neon_quad_type (gdbarch);
4098
4099 /* If the target description has register information, we are only
4100 in this function so that we can override the types of
4101 double-precision registers for NEON. */
4102 if (tdesc_has_registers (gdbarch_target_desc (gdbarch)))
4103 {
4104 struct type *t = tdesc_register_type (gdbarch, regnum);
4105
4106 if (regnum >= ARM_D0_REGNUM && regnum < ARM_D0_REGNUM + 32
4107 && TYPE_CODE (t) == TYPE_CODE_FLT
4108 && gdbarch_tdep (gdbarch)->have_neon)
4109 return arm_neon_double_type (gdbarch);
4110 else
4111 return t;
4112 }
4113
34e8f22d 4114 if (regnum >= ARM_F0_REGNUM && regnum < ARM_F0_REGNUM + NUM_FREGS)
58d6951d
DJ
4115 {
4116 if (!gdbarch_tdep (gdbarch)->have_fpa_registers)
4117 return builtin_type (gdbarch)->builtin_void;
4118
4119 return arm_ext_type (gdbarch);
4120 }
e4c16157 4121 else if (regnum == ARM_SP_REGNUM)
0dfff4cb 4122 return builtin_type (gdbarch)->builtin_data_ptr;
e4c16157 4123 else if (regnum == ARM_PC_REGNUM)
0dfff4cb 4124 return builtin_type (gdbarch)->builtin_func_ptr;
ff6f572f
DJ
4125 else if (regnum >= ARRAY_SIZE (arm_register_names))
4126 /* These registers are only supported on targets which supply
4127 an XML description. */
df4df182 4128 return builtin_type (gdbarch)->builtin_int0;
032758dc 4129 else
df4df182 4130 return builtin_type (gdbarch)->builtin_uint32;
032758dc
AC
4131}
4132
ff6f572f
DJ
4133/* Map a DWARF register REGNUM onto the appropriate GDB register
4134 number. */
4135
4136static int
d3f73121 4137arm_dwarf_reg_to_regnum (struct gdbarch *gdbarch, int reg)
ff6f572f
DJ
4138{
4139 /* Core integer regs. */
4140 if (reg >= 0 && reg <= 15)
4141 return reg;
4142
4143 /* Legacy FPA encoding. These were once used in a way which
4144 overlapped with VFP register numbering, so their use is
4145 discouraged, but GDB doesn't support the ARM toolchain
4146 which used them for VFP. */
4147 if (reg >= 16 && reg <= 23)
4148 return ARM_F0_REGNUM + reg - 16;
4149
4150 /* New assignments for the FPA registers. */
4151 if (reg >= 96 && reg <= 103)
4152 return ARM_F0_REGNUM + reg - 96;
4153
4154 /* WMMX register assignments. */
4155 if (reg >= 104 && reg <= 111)
4156 return ARM_WCGR0_REGNUM + reg - 104;
4157
4158 if (reg >= 112 && reg <= 127)
4159 return ARM_WR0_REGNUM + reg - 112;
4160
4161 if (reg >= 192 && reg <= 199)
4162 return ARM_WC0_REGNUM + reg - 192;
4163
58d6951d
DJ
4164 /* VFP v2 registers. A double precision value is actually
4165 in d1 rather than s2, but the ABI only defines numbering
4166 for the single precision registers. This will "just work"
4167 in GDB for little endian targets (we'll read eight bytes,
4168 starting in s0 and then progressing to s1), but will be
4169 reversed on big endian targets with VFP. This won't
4170 be a problem for the new Neon quad registers; you're supposed
4171 to use DW_OP_piece for those. */
4172 if (reg >= 64 && reg <= 95)
4173 {
4174 char name_buf[4];
4175
8c042590 4176 xsnprintf (name_buf, sizeof (name_buf), "s%d", reg - 64);
58d6951d
DJ
4177 return user_reg_map_name_to_regnum (gdbarch, name_buf,
4178 strlen (name_buf));
4179 }
4180
4181 /* VFP v3 / Neon registers. This range is also used for VFP v2
4182 registers, except that it now describes d0 instead of s0. */
4183 if (reg >= 256 && reg <= 287)
4184 {
4185 char name_buf[4];
4186
8c042590 4187 xsnprintf (name_buf, sizeof (name_buf), "d%d", reg - 256);
58d6951d
DJ
4188 return user_reg_map_name_to_regnum (gdbarch, name_buf,
4189 strlen (name_buf));
4190 }
4191
ff6f572f
DJ
4192 return -1;
4193}
4194
26216b98
AC
4195/* Map GDB internal REGNUM onto the Arm simulator register numbers. */
4196static int
e7faf938 4197arm_register_sim_regno (struct gdbarch *gdbarch, int regnum)
26216b98
AC
4198{
4199 int reg = regnum;
e7faf938 4200 gdb_assert (reg >= 0 && reg < gdbarch_num_regs (gdbarch));
26216b98 4201
ff6f572f
DJ
4202 if (regnum >= ARM_WR0_REGNUM && regnum <= ARM_WR15_REGNUM)
4203 return regnum - ARM_WR0_REGNUM + SIM_ARM_IWMMXT_COP0R0_REGNUM;
4204
4205 if (regnum >= ARM_WC0_REGNUM && regnum <= ARM_WC7_REGNUM)
4206 return regnum - ARM_WC0_REGNUM + SIM_ARM_IWMMXT_COP1R0_REGNUM;
4207
4208 if (regnum >= ARM_WCGR0_REGNUM && regnum <= ARM_WCGR7_REGNUM)
4209 return regnum - ARM_WCGR0_REGNUM + SIM_ARM_IWMMXT_COP1R8_REGNUM;
4210
26216b98
AC
4211 if (reg < NUM_GREGS)
4212 return SIM_ARM_R0_REGNUM + reg;
4213 reg -= NUM_GREGS;
4214
4215 if (reg < NUM_FREGS)
4216 return SIM_ARM_FP0_REGNUM + reg;
4217 reg -= NUM_FREGS;
4218
4219 if (reg < NUM_SREGS)
4220 return SIM_ARM_FPS_REGNUM + reg;
4221 reg -= NUM_SREGS;
4222
edefbb7c 4223 internal_error (__FILE__, __LINE__, _("Bad REGNUM %d"), regnum);
26216b98 4224}
34e8f22d 4225
a37b3cc0
AC
4226/* NOTE: cagney/2001-08-20: Both convert_from_extended() and
4227 convert_to_extended() use floatformat_arm_ext_littlebyte_bigword.
4228 It is thought that this is is the floating-point register format on
4229 little-endian systems. */
c906108c 4230
ed9a39eb 4231static void
b508a996 4232convert_from_extended (const struct floatformat *fmt, const void *ptr,
be8626e0 4233 void *dbl, int endianess)
c906108c 4234{
a37b3cc0 4235 DOUBLEST d;
be8626e0
MD
4236
4237 if (endianess == BFD_ENDIAN_BIG)
a37b3cc0
AC
4238 floatformat_to_doublest (&floatformat_arm_ext_big, ptr, &d);
4239 else
4240 floatformat_to_doublest (&floatformat_arm_ext_littlebyte_bigword,
4241 ptr, &d);
b508a996 4242 floatformat_from_doublest (fmt, &d, dbl);
c906108c
SS
4243}
4244
34e8f22d 4245static void
be8626e0
MD
4246convert_to_extended (const struct floatformat *fmt, void *dbl, const void *ptr,
4247 int endianess)
c906108c 4248{
a37b3cc0 4249 DOUBLEST d;
be8626e0 4250
b508a996 4251 floatformat_to_doublest (fmt, ptr, &d);
be8626e0 4252 if (endianess == BFD_ENDIAN_BIG)
a37b3cc0
AC
4253 floatformat_from_doublest (&floatformat_arm_ext_big, &d, dbl);
4254 else
4255 floatformat_from_doublest (&floatformat_arm_ext_littlebyte_bigword,
4256 &d, dbl);
c906108c 4257}
ed9a39eb 4258
c906108c 4259static int
ed9a39eb 4260condition_true (unsigned long cond, unsigned long status_reg)
c906108c
SS
4261{
4262 if (cond == INST_AL || cond == INST_NV)
4263 return 1;
4264
4265 switch (cond)
4266 {
4267 case INST_EQ:
4268 return ((status_reg & FLAG_Z) != 0);
4269 case INST_NE:
4270 return ((status_reg & FLAG_Z) == 0);
4271 case INST_CS:
4272 return ((status_reg & FLAG_C) != 0);
4273 case INST_CC:
4274 return ((status_reg & FLAG_C) == 0);
4275 case INST_MI:
4276 return ((status_reg & FLAG_N) != 0);
4277 case INST_PL:
4278 return ((status_reg & FLAG_N) == 0);
4279 case INST_VS:
4280 return ((status_reg & FLAG_V) != 0);
4281 case INST_VC:
4282 return ((status_reg & FLAG_V) == 0);
4283 case INST_HI:
4284 return ((status_reg & (FLAG_C | FLAG_Z)) == FLAG_C);
4285 case INST_LS:
4286 return ((status_reg & (FLAG_C | FLAG_Z)) != FLAG_C);
4287 case INST_GE:
4288 return (((status_reg & FLAG_N) == 0) == ((status_reg & FLAG_V) == 0));
4289 case INST_LT:
4290 return (((status_reg & FLAG_N) == 0) != ((status_reg & FLAG_V) == 0));
4291 case INST_GT:
f8bf5763
PM
4292 return (((status_reg & FLAG_Z) == 0)
4293 && (((status_reg & FLAG_N) == 0)
4294 == ((status_reg & FLAG_V) == 0)));
c906108c 4295 case INST_LE:
f8bf5763
PM
4296 return (((status_reg & FLAG_Z) != 0)
4297 || (((status_reg & FLAG_N) == 0)
4298 != ((status_reg & FLAG_V) == 0)));
c906108c
SS
4299 }
4300 return 1;
4301}
4302
c906108c 4303static unsigned long
0b1b3e42
UW
4304shifted_reg_val (struct frame_info *frame, unsigned long inst, int carry,
4305 unsigned long pc_val, unsigned long status_reg)
c906108c
SS
4306{
4307 unsigned long res, shift;
4308 int rm = bits (inst, 0, 3);
4309 unsigned long shifttype = bits (inst, 5, 6);
c5aa993b
JM
4310
4311 if (bit (inst, 4))
c906108c
SS
4312 {
4313 int rs = bits (inst, 8, 11);
0b1b3e42
UW
4314 shift = (rs == 15 ? pc_val + 8
4315 : get_frame_register_unsigned (frame, rs)) & 0xFF;
c906108c
SS
4316 }
4317 else
4318 shift = bits (inst, 7, 11);
c5aa993b 4319
bf9f652a 4320 res = (rm == ARM_PC_REGNUM
0d39a070 4321 ? (pc_val + (bit (inst, 4) ? 12 : 8))
0b1b3e42 4322 : get_frame_register_unsigned (frame, rm));
c906108c
SS
4323
4324 switch (shifttype)
4325 {
c5aa993b 4326 case 0: /* LSL */
c906108c
SS
4327 res = shift >= 32 ? 0 : res << shift;
4328 break;
c5aa993b
JM
4329
4330 case 1: /* LSR */
c906108c
SS
4331 res = shift >= 32 ? 0 : res >> shift;
4332 break;
4333
c5aa993b
JM
4334 case 2: /* ASR */
4335 if (shift >= 32)
4336 shift = 31;
c906108c
SS
4337 res = ((res & 0x80000000L)
4338 ? ~((~res) >> shift) : res >> shift);
4339 break;
4340
c5aa993b 4341 case 3: /* ROR/RRX */
c906108c
SS
4342 shift &= 31;
4343 if (shift == 0)
4344 res = (res >> 1) | (carry ? 0x80000000L : 0);
4345 else
c5aa993b 4346 res = (res >> shift) | (res << (32 - shift));
c906108c
SS
4347 break;
4348 }
4349
4350 return res & 0xffffffff;
4351}
4352
c906108c
SS
4353/* Return number of 1-bits in VAL. */
4354
4355static int
ed9a39eb 4356bitcount (unsigned long val)
c906108c
SS
4357{
4358 int nbits;
4359 for (nbits = 0; val != 0; nbits++)
0963b4bd 4360 val &= val - 1; /* Delete rightmost 1-bit in val. */
c906108c
SS
4361 return nbits;
4362}
4363
177321bd
DJ
4364/* Return the size in bytes of the complete Thumb instruction whose
4365 first halfword is INST1. */
4366
4367static int
4368thumb_insn_size (unsigned short inst1)
4369{
4370 if ((inst1 & 0xe000) == 0xe000 && (inst1 & 0x1800) != 0)
4371 return 4;
4372 else
4373 return 2;
4374}
4375
4376static int
4377thumb_advance_itstate (unsigned int itstate)
4378{
4379 /* Preserve IT[7:5], the first three bits of the condition. Shift
4380 the upcoming condition flags left by one bit. */
4381 itstate = (itstate & 0xe0) | ((itstate << 1) & 0x1f);
4382
4383 /* If we have finished the IT block, clear the state. */
4384 if ((itstate & 0x0f) == 0)
4385 itstate = 0;
4386
4387 return itstate;
4388}
4389
4390/* Find the next PC after the current instruction executes. In some
4391 cases we can not statically determine the answer (see the IT state
4392 handling in this function); in that case, a breakpoint may be
4393 inserted in addition to the returned PC, which will be used to set
4394 another breakpoint by our caller. */
4395
ad527d2e 4396static CORE_ADDR
18819fa6 4397thumb_get_next_pc_raw (struct frame_info *frame, CORE_ADDR pc)
c906108c 4398{
2af46ca0 4399 struct gdbarch *gdbarch = get_frame_arch (frame);
177321bd 4400 struct address_space *aspace = get_frame_address_space (frame);
e17a4113
UW
4401 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
4402 enum bfd_endian byte_order_for_code = gdbarch_byte_order_for_code (gdbarch);
c5aa993b 4403 unsigned long pc_val = ((unsigned long) pc) + 4; /* PC after prefetch */
e17a4113 4404 unsigned short inst1;
0963b4bd 4405 CORE_ADDR nextpc = pc + 2; /* Default is next instruction. */
c906108c 4406 unsigned long offset;
177321bd 4407 ULONGEST status, itstate;
c906108c 4408
50e98be4
DJ
4409 nextpc = MAKE_THUMB_ADDR (nextpc);
4410 pc_val = MAKE_THUMB_ADDR (pc_val);
4411
e17a4113 4412 inst1 = read_memory_unsigned_integer (pc, 2, byte_order_for_code);
9d4fde75 4413
9dca5578
DJ
4414 /* Thumb-2 conditional execution support. There are eight bits in
4415 the CPSR which describe conditional execution state. Once
4416 reconstructed (they're in a funny order), the low five bits
4417 describe the low bit of the condition for each instruction and
4418 how many instructions remain. The high three bits describe the
4419 base condition. One of the low four bits will be set if an IT
4420 block is active. These bits read as zero on earlier
4421 processors. */
4422 status = get_frame_register_unsigned (frame, ARM_PS_REGNUM);
177321bd 4423 itstate = ((status >> 8) & 0xfc) | ((status >> 25) & 0x3);
9dca5578 4424
177321bd
DJ
4425 /* If-Then handling. On GNU/Linux, where this routine is used, we
4426 use an undefined instruction as a breakpoint. Unlike BKPT, IT
4427 can disable execution of the undefined instruction. So we might
4428 miss the breakpoint if we set it on a skipped conditional
4429 instruction. Because conditional instructions can change the
4430 flags, affecting the execution of further instructions, we may
4431 need to set two breakpoints. */
9dca5578 4432
177321bd
DJ
4433 if (gdbarch_tdep (gdbarch)->thumb2_breakpoint != NULL)
4434 {
4435 if ((inst1 & 0xff00) == 0xbf00 && (inst1 & 0x000f) != 0)
4436 {
4437 /* An IT instruction. Because this instruction does not
4438 modify the flags, we can accurately predict the next
4439 executed instruction. */
4440 itstate = inst1 & 0x00ff;
4441 pc += thumb_insn_size (inst1);
4442
4443 while (itstate != 0 && ! condition_true (itstate >> 4, status))
4444 {
0963b4bd
MS
4445 inst1 = read_memory_unsigned_integer (pc, 2,
4446 byte_order_for_code);
177321bd
DJ
4447 pc += thumb_insn_size (inst1);
4448 itstate = thumb_advance_itstate (itstate);
4449 }
4450
50e98be4 4451 return MAKE_THUMB_ADDR (pc);
177321bd
DJ
4452 }
4453 else if (itstate != 0)
4454 {
4455 /* We are in a conditional block. Check the condition. */
4456 if (! condition_true (itstate >> 4, status))
4457 {
4458 /* Advance to the next executed instruction. */
4459 pc += thumb_insn_size (inst1);
4460 itstate = thumb_advance_itstate (itstate);
4461
4462 while (itstate != 0 && ! condition_true (itstate >> 4, status))
4463 {
0963b4bd
MS
4464 inst1 = read_memory_unsigned_integer (pc, 2,
4465 byte_order_for_code);
177321bd
DJ
4466 pc += thumb_insn_size (inst1);
4467 itstate = thumb_advance_itstate (itstate);
4468 }
4469
50e98be4 4470 return MAKE_THUMB_ADDR (pc);
177321bd
DJ
4471 }
4472 else if ((itstate & 0x0f) == 0x08)
4473 {
4474 /* This is the last instruction of the conditional
4475 block, and it is executed. We can handle it normally
4476 because the following instruction is not conditional,
4477 and we must handle it normally because it is
4478 permitted to branch. Fall through. */
4479 }
4480 else
4481 {
4482 int cond_negated;
4483
4484 /* There are conditional instructions after this one.
4485 If this instruction modifies the flags, then we can
4486 not predict what the next executed instruction will
4487 be. Fortunately, this instruction is architecturally
4488 forbidden to branch; we know it will fall through.
4489 Start by skipping past it. */
4490 pc += thumb_insn_size (inst1);
4491 itstate = thumb_advance_itstate (itstate);
4492
4493 /* Set a breakpoint on the following instruction. */
4494 gdb_assert ((itstate & 0x0f) != 0);
18819fa6
UW
4495 arm_insert_single_step_breakpoint (gdbarch, aspace,
4496 MAKE_THUMB_ADDR (pc));
177321bd
DJ
4497 cond_negated = (itstate >> 4) & 1;
4498
4499 /* Skip all following instructions with the same
4500 condition. If there is a later instruction in the IT
4501 block with the opposite condition, set the other
4502 breakpoint there. If not, then set a breakpoint on
4503 the instruction after the IT block. */
4504 do
4505 {
0963b4bd
MS
4506 inst1 = read_memory_unsigned_integer (pc, 2,
4507 byte_order_for_code);
177321bd
DJ
4508 pc += thumb_insn_size (inst1);
4509 itstate = thumb_advance_itstate (itstate);
4510 }
4511 while (itstate != 0 && ((itstate >> 4) & 1) == cond_negated);
4512
50e98be4 4513 return MAKE_THUMB_ADDR (pc);
177321bd
DJ
4514 }
4515 }
4516 }
4517 else if (itstate & 0x0f)
9dca5578
DJ
4518 {
4519 /* We are in a conditional block. Check the condition. */
177321bd 4520 int cond = itstate >> 4;
9dca5578
DJ
4521
4522 if (! condition_true (cond, status))
db24da6d
YQ
4523 /* Advance to the next instruction. All the 32-bit
4524 instructions share a common prefix. */
4525 return MAKE_THUMB_ADDR (pc + thumb_insn_size (inst1));
177321bd
DJ
4526
4527 /* Otherwise, handle the instruction normally. */
9dca5578
DJ
4528 }
4529
c906108c
SS
4530 if ((inst1 & 0xff00) == 0xbd00) /* pop {rlist, pc} */
4531 {
4532 CORE_ADDR sp;
4533
4534 /* Fetch the saved PC from the stack. It's stored above
4535 all of the other registers. */
f0c9063c 4536 offset = bitcount (bits (inst1, 0, 7)) * INT_REGISTER_SIZE;
0b1b3e42 4537 sp = get_frame_register_unsigned (frame, ARM_SP_REGNUM);
e17a4113 4538 nextpc = read_memory_unsigned_integer (sp + offset, 4, byte_order);
c906108c
SS
4539 }
4540 else if ((inst1 & 0xf000) == 0xd000) /* conditional branch */
4541 {
c5aa993b 4542 unsigned long cond = bits (inst1, 8, 11);
25b41d01
YQ
4543 if (cond == 0x0f) /* 0x0f = SWI */
4544 {
4545 struct gdbarch_tdep *tdep;
4546 tdep = gdbarch_tdep (gdbarch);
4547
4548 if (tdep->syscall_next_pc != NULL)
4549 nextpc = tdep->syscall_next_pc (frame);
4550
4551 }
4552 else if (cond != 0x0f && condition_true (cond, status))
c906108c
SS
4553 nextpc = pc_val + (sbits (inst1, 0, 7) << 1);
4554 }
4555 else if ((inst1 & 0xf800) == 0xe000) /* unconditional branch */
4556 {
4557 nextpc = pc_val + (sbits (inst1, 0, 10) << 1);
4558 }
db24da6d 4559 else if (thumb_insn_size (inst1) == 4) /* 32-bit instruction */
c906108c 4560 {
e17a4113
UW
4561 unsigned short inst2;
4562 inst2 = read_memory_unsigned_integer (pc + 2, 2, byte_order_for_code);
9dca5578
DJ
4563
4564 /* Default to the next instruction. */
4565 nextpc = pc + 4;
50e98be4 4566 nextpc = MAKE_THUMB_ADDR (nextpc);
9dca5578
DJ
4567
4568 if ((inst1 & 0xf800) == 0xf000 && (inst2 & 0x8000) == 0x8000)
4569 {
4570 /* Branches and miscellaneous control instructions. */
4571
4572 if ((inst2 & 0x1000) != 0 || (inst2 & 0xd001) == 0xc000)
4573 {
4574 /* B, BL, BLX. */
4575 int j1, j2, imm1, imm2;
4576
4577 imm1 = sbits (inst1, 0, 10);
4578 imm2 = bits (inst2, 0, 10);
4579 j1 = bit (inst2, 13);
4580 j2 = bit (inst2, 11);
4581
4582 offset = ((imm1 << 12) + (imm2 << 1));
4583 offset ^= ((!j2) << 22) | ((!j1) << 23);
4584
4585 nextpc = pc_val + offset;
4586 /* For BLX make sure to clear the low bits. */
4587 if (bit (inst2, 12) == 0)
4588 nextpc = nextpc & 0xfffffffc;
4589 }
4590 else if (inst1 == 0xf3de && (inst2 & 0xff00) == 0x3f00)
4591 {
4592 /* SUBS PC, LR, #imm8. */
4593 nextpc = get_frame_register_unsigned (frame, ARM_LR_REGNUM);
4594 nextpc -= inst2 & 0x00ff;
4595 }
4069ebbe 4596 else if ((inst2 & 0xd000) == 0x8000 && (inst1 & 0x0380) != 0x0380)
9dca5578
DJ
4597 {
4598 /* Conditional branch. */
4599 if (condition_true (bits (inst1, 6, 9), status))
4600 {
4601 int sign, j1, j2, imm1, imm2;
4602
4603 sign = sbits (inst1, 10, 10);
4604 imm1 = bits (inst1, 0, 5);
4605 imm2 = bits (inst2, 0, 10);
4606 j1 = bit (inst2, 13);
4607 j2 = bit (inst2, 11);
4608
4609 offset = (sign << 20) + (j2 << 19) + (j1 << 18);
4610 offset += (imm1 << 12) + (imm2 << 1);
4611
4612 nextpc = pc_val + offset;
4613 }
4614 }
4615 }
4616 else if ((inst1 & 0xfe50) == 0xe810)
4617 {
4618 /* Load multiple or RFE. */
4619 int rn, offset, load_pc = 1;
4620
4621 rn = bits (inst1, 0, 3);
4622 if (bit (inst1, 7) && !bit (inst1, 8))
4623 {
4624 /* LDMIA or POP */
4625 if (!bit (inst2, 15))
4626 load_pc = 0;
4627 offset = bitcount (inst2) * 4 - 4;
4628 }
4629 else if (!bit (inst1, 7) && bit (inst1, 8))
4630 {
4631 /* LDMDB */
4632 if (!bit (inst2, 15))
4633 load_pc = 0;
4634 offset = -4;
4635 }
4636 else if (bit (inst1, 7) && bit (inst1, 8))
4637 {
4638 /* RFEIA */
4639 offset = 0;
4640 }
4641 else if (!bit (inst1, 7) && !bit (inst1, 8))
4642 {
4643 /* RFEDB */
4644 offset = -8;
4645 }
4646 else
4647 load_pc = 0;
4648
4649 if (load_pc)
4650 {
4651 CORE_ADDR addr = get_frame_register_unsigned (frame, rn);
4652 nextpc = get_frame_memory_unsigned (frame, addr + offset, 4);
4653 }
4654 }
4655 else if ((inst1 & 0xffef) == 0xea4f && (inst2 & 0xfff0) == 0x0f00)
4656 {
4657 /* MOV PC or MOVS PC. */
4658 nextpc = get_frame_register_unsigned (frame, bits (inst2, 0, 3));
50e98be4 4659 nextpc = MAKE_THUMB_ADDR (nextpc);
9dca5578
DJ
4660 }
4661 else if ((inst1 & 0xff70) == 0xf850 && (inst2 & 0xf000) == 0xf000)
4662 {
4663 /* LDR PC. */
4664 CORE_ADDR base;
4665 int rn, load_pc = 1;
4666
4667 rn = bits (inst1, 0, 3);
4668 base = get_frame_register_unsigned (frame, rn);
bf9f652a 4669 if (rn == ARM_PC_REGNUM)
9dca5578
DJ
4670 {
4671 base = (base + 4) & ~(CORE_ADDR) 0x3;
4672 if (bit (inst1, 7))
4673 base += bits (inst2, 0, 11);
4674 else
4675 base -= bits (inst2, 0, 11);
4676 }
4677 else if (bit (inst1, 7))
4678 base += bits (inst2, 0, 11);
4679 else if (bit (inst2, 11))
4680 {
4681 if (bit (inst2, 10))
4682 {
4683 if (bit (inst2, 9))
4684 base += bits (inst2, 0, 7);
4685 else
4686 base -= bits (inst2, 0, 7);
4687 }
4688 }
4689 else if ((inst2 & 0x0fc0) == 0x0000)
4690 {
4691 int shift = bits (inst2, 4, 5), rm = bits (inst2, 0, 3);
4692 base += get_frame_register_unsigned (frame, rm) << shift;
4693 }
4694 else
4695 /* Reserved. */
4696 load_pc = 0;
4697
4698 if (load_pc)
4699 nextpc = get_frame_memory_unsigned (frame, base, 4);
4700 }
4701 else if ((inst1 & 0xfff0) == 0xe8d0 && (inst2 & 0xfff0) == 0xf000)
4702 {
4703 /* TBB. */
d476da0e
RE
4704 CORE_ADDR tbl_reg, table, offset, length;
4705
4706 tbl_reg = bits (inst1, 0, 3);
4707 if (tbl_reg == 0x0f)
4708 table = pc + 4; /* Regcache copy of PC isn't right yet. */
4709 else
4710 table = get_frame_register_unsigned (frame, tbl_reg);
9dca5578 4711
9dca5578
DJ
4712 offset = get_frame_register_unsigned (frame, bits (inst2, 0, 3));
4713 length = 2 * get_frame_memory_unsigned (frame, table + offset, 1);
4714 nextpc = pc_val + length;
4715 }
d476da0e 4716 else if ((inst1 & 0xfff0) == 0xe8d0 && (inst2 & 0xfff0) == 0xf010)
9dca5578
DJ
4717 {
4718 /* TBH. */
d476da0e
RE
4719 CORE_ADDR tbl_reg, table, offset, length;
4720
4721 tbl_reg = bits (inst1, 0, 3);
4722 if (tbl_reg == 0x0f)
4723 table = pc + 4; /* Regcache copy of PC isn't right yet. */
4724 else
4725 table = get_frame_register_unsigned (frame, tbl_reg);
9dca5578 4726
9dca5578
DJ
4727 offset = 2 * get_frame_register_unsigned (frame, bits (inst2, 0, 3));
4728 length = 2 * get_frame_memory_unsigned (frame, table + offset, 2);
4729 nextpc = pc_val + length;
4730 }
c906108c 4731 }
aa17d93e 4732 else if ((inst1 & 0xff00) == 0x4700) /* bx REG, blx REG */
9498281f
DJ
4733 {
4734 if (bits (inst1, 3, 6) == 0x0f)
6ca1b147 4735 nextpc = UNMAKE_THUMB_ADDR (pc_val);
9498281f 4736 else
0b1b3e42 4737 nextpc = get_frame_register_unsigned (frame, bits (inst1, 3, 6));
9498281f 4738 }
ad8b5167
UW
4739 else if ((inst1 & 0xff87) == 0x4687) /* mov pc, REG */
4740 {
4741 if (bits (inst1, 3, 6) == 0x0f)
4742 nextpc = pc_val;
4743 else
4744 nextpc = get_frame_register_unsigned (frame, bits (inst1, 3, 6));
4745
4746 nextpc = MAKE_THUMB_ADDR (nextpc);
4747 }
9dca5578
DJ
4748 else if ((inst1 & 0xf500) == 0xb100)
4749 {
4750 /* CBNZ or CBZ. */
4751 int imm = (bit (inst1, 9) << 6) + (bits (inst1, 3, 7) << 1);
4752 ULONGEST reg = get_frame_register_unsigned (frame, bits (inst1, 0, 2));
4753
4754 if (bit (inst1, 11) && reg != 0)
4755 nextpc = pc_val + imm;
4756 else if (!bit (inst1, 11) && reg == 0)
4757 nextpc = pc_val + imm;
4758 }
c906108c
SS
4759 return nextpc;
4760}
4761
50e98be4 4762/* Get the raw next address. PC is the current program counter, in
18819fa6 4763 FRAME, which is assumed to be executing in ARM mode.
50e98be4
DJ
4764
4765 The value returned has the execution state of the next instruction
4766 encoded in it. Use IS_THUMB_ADDR () to see whether the instruction is
4767 in Thumb-State, and gdbarch_addr_bits_remove () to get the plain memory
0963b4bd
MS
4768 address. */
4769
50e98be4 4770static CORE_ADDR
18819fa6 4771arm_get_next_pc_raw (struct frame_info *frame, CORE_ADDR pc)
c906108c 4772{
2af46ca0 4773 struct gdbarch *gdbarch = get_frame_arch (frame);
e17a4113
UW
4774 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
4775 enum bfd_endian byte_order_for_code = gdbarch_byte_order_for_code (gdbarch);
c906108c
SS
4776 unsigned long pc_val;
4777 unsigned long this_instr;
4778 unsigned long status;
4779 CORE_ADDR nextpc;
4780
c906108c 4781 pc_val = (unsigned long) pc;
e17a4113 4782 this_instr = read_memory_unsigned_integer (pc, 4, byte_order_for_code);
9d4fde75 4783
0b1b3e42 4784 status = get_frame_register_unsigned (frame, ARM_PS_REGNUM);
c5aa993b 4785 nextpc = (CORE_ADDR) (pc_val + 4); /* Default case */
c906108c 4786
daddc3c1
DJ
4787 if (bits (this_instr, 28, 31) == INST_NV)
4788 switch (bits (this_instr, 24, 27))
4789 {
4790 case 0xa:
4791 case 0xb:
4792 {
4793 /* Branch with Link and change to Thumb. */
4794 nextpc = BranchDest (pc, this_instr);
4795 nextpc |= bit (this_instr, 24) << 1;
50e98be4 4796 nextpc = MAKE_THUMB_ADDR (nextpc);
daddc3c1
DJ
4797 break;
4798 }
4799 case 0xc:
4800 case 0xd:
4801 case 0xe:
4802 /* Coprocessor register transfer. */
4803 if (bits (this_instr, 12, 15) == 15)
4804 error (_("Invalid update to pc in instruction"));
4805 break;
4806 }
4807 else if (condition_true (bits (this_instr, 28, 31), status))
c906108c
SS
4808 {
4809 switch (bits (this_instr, 24, 27))
4810 {
c5aa993b 4811 case 0x0:
94c30b78 4812 case 0x1: /* data processing */
c5aa993b
JM
4813 case 0x2:
4814 case 0x3:
c906108c
SS
4815 {
4816 unsigned long operand1, operand2, result = 0;
4817 unsigned long rn;
4818 int c;
c5aa993b 4819
c906108c
SS
4820 if (bits (this_instr, 12, 15) != 15)
4821 break;
4822
4823 if (bits (this_instr, 22, 25) == 0
c5aa993b 4824 && bits (this_instr, 4, 7) == 9) /* multiply */
edefbb7c 4825 error (_("Invalid update to pc in instruction"));
c906108c 4826
9498281f 4827 /* BX <reg>, BLX <reg> */
e150acc7
PB
4828 if (bits (this_instr, 4, 27) == 0x12fff1
4829 || bits (this_instr, 4, 27) == 0x12fff3)
9498281f
DJ
4830 {
4831 rn = bits (this_instr, 0, 3);
bf9f652a
YQ
4832 nextpc = ((rn == ARM_PC_REGNUM)
4833 ? (pc_val + 8)
4834 : get_frame_register_unsigned (frame, rn));
4835
9498281f
DJ
4836 return nextpc;
4837 }
4838
0963b4bd 4839 /* Multiply into PC. */
c906108c
SS
4840 c = (status & FLAG_C) ? 1 : 0;
4841 rn = bits (this_instr, 16, 19);
bf9f652a
YQ
4842 operand1 = ((rn == ARM_PC_REGNUM)
4843 ? (pc_val + 8)
4844 : get_frame_register_unsigned (frame, rn));
c5aa993b 4845
c906108c
SS
4846 if (bit (this_instr, 25))
4847 {
4848 unsigned long immval = bits (this_instr, 0, 7);
4849 unsigned long rotate = 2 * bits (this_instr, 8, 11);
c5aa993b
JM
4850 operand2 = ((immval >> rotate) | (immval << (32 - rotate)))
4851 & 0xffffffff;
c906108c 4852 }
0963b4bd
MS
4853 else /* operand 2 is a shifted register. */
4854 operand2 = shifted_reg_val (frame, this_instr, c,
4855 pc_val, status);
c5aa993b 4856
c906108c
SS
4857 switch (bits (this_instr, 21, 24))
4858 {
c5aa993b 4859 case 0x0: /*and */
c906108c
SS
4860 result = operand1 & operand2;
4861 break;
4862
c5aa993b 4863 case 0x1: /*eor */
c906108c
SS
4864 result = operand1 ^ operand2;
4865 break;
4866
c5aa993b 4867 case 0x2: /*sub */
c906108c
SS
4868 result = operand1 - operand2;
4869 break;
4870
c5aa993b 4871 case 0x3: /*rsb */
c906108c
SS
4872 result = operand2 - operand1;
4873 break;
4874
c5aa993b 4875 case 0x4: /*add */
c906108c
SS
4876 result = operand1 + operand2;
4877 break;
4878
c5aa993b 4879 case 0x5: /*adc */
c906108c
SS
4880 result = operand1 + operand2 + c;
4881 break;
4882
c5aa993b 4883 case 0x6: /*sbc */
c906108c
SS
4884 result = operand1 - operand2 + c;
4885 break;
4886
c5aa993b 4887 case 0x7: /*rsc */
c906108c
SS
4888 result = operand2 - operand1 + c;
4889 break;
4890
c5aa993b
JM
4891 case 0x8:
4892 case 0x9:
4893 case 0xa:
4894 case 0xb: /* tst, teq, cmp, cmn */
c906108c
SS
4895 result = (unsigned long) nextpc;
4896 break;
4897
c5aa993b 4898 case 0xc: /*orr */
c906108c
SS
4899 result = operand1 | operand2;
4900 break;
4901
c5aa993b 4902 case 0xd: /*mov */
c906108c
SS
4903 /* Always step into a function. */
4904 result = operand2;
c5aa993b 4905 break;
c906108c 4906
c5aa993b 4907 case 0xe: /*bic */
c906108c
SS
4908 result = operand1 & ~operand2;
4909 break;
4910
c5aa993b 4911 case 0xf: /*mvn */
c906108c
SS
4912 result = ~operand2;
4913 break;
4914 }
c906108c 4915
50e98be4
DJ
4916 /* In 26-bit APCS the bottom two bits of the result are
4917 ignored, and we always end up in ARM state. */
4918 if (!arm_apcs_32)
4919 nextpc = arm_addr_bits_remove (gdbarch, result);
4920 else
4921 nextpc = result;
4922
c906108c
SS
4923 break;
4924 }
c5aa993b
JM
4925
4926 case 0x4:
4927 case 0x5: /* data transfer */
4928 case 0x6:
4929 case 0x7:
c906108c
SS
4930 if (bit (this_instr, 20))
4931 {
4932 /* load */
4933 if (bits (this_instr, 12, 15) == 15)
4934 {
4935 /* rd == pc */
c5aa993b 4936 unsigned long rn;
c906108c 4937 unsigned long base;
c5aa993b 4938
c906108c 4939 if (bit (this_instr, 22))
edefbb7c 4940 error (_("Invalid update to pc in instruction"));
c906108c
SS
4941
4942 /* byte write to PC */
4943 rn = bits (this_instr, 16, 19);
bf9f652a
YQ
4944 base = ((rn == ARM_PC_REGNUM)
4945 ? (pc_val + 8)
4946 : get_frame_register_unsigned (frame, rn));
4947
c906108c
SS
4948 if (bit (this_instr, 24))
4949 {
4950 /* pre-indexed */
4951 int c = (status & FLAG_C) ? 1 : 0;
4952 unsigned long offset =
c5aa993b 4953 (bit (this_instr, 25)
0b1b3e42 4954 ? shifted_reg_val (frame, this_instr, c, pc_val, status)
c5aa993b 4955 : bits (this_instr, 0, 11));
c906108c
SS
4956
4957 if (bit (this_instr, 23))
4958 base += offset;
4959 else
4960 base -= offset;
4961 }
51370a33
YQ
4962 nextpc =
4963 (CORE_ADDR) read_memory_unsigned_integer ((CORE_ADDR) base,
4964 4, byte_order);
c906108c
SS
4965 }
4966 }
4967 break;
c5aa993b
JM
4968
4969 case 0x8:
4970 case 0x9: /* block transfer */
c906108c
SS
4971 if (bit (this_instr, 20))
4972 {
4973 /* LDM */
4974 if (bit (this_instr, 15))
4975 {
4976 /* loading pc */
4977 int offset = 0;
51370a33
YQ
4978 unsigned long rn_val
4979 = get_frame_register_unsigned (frame,
4980 bits (this_instr, 16, 19));
c906108c
SS
4981
4982 if (bit (this_instr, 23))
4983 {
4984 /* up */
4985 unsigned long reglist = bits (this_instr, 0, 14);
4986 offset = bitcount (reglist) * 4;
c5aa993b 4987 if (bit (this_instr, 24)) /* pre */
c906108c
SS
4988 offset += 4;
4989 }
4990 else if (bit (this_instr, 24))
4991 offset = -4;
c5aa993b 4992
51370a33
YQ
4993 nextpc =
4994 (CORE_ADDR) read_memory_unsigned_integer ((CORE_ADDR)
4995 (rn_val + offset),
4996 4, byte_order);
c906108c
SS
4997 }
4998 }
4999 break;
c5aa993b
JM
5000
5001 case 0xb: /* branch & link */
5002 case 0xa: /* branch */
c906108c
SS
5003 {
5004 nextpc = BranchDest (pc, this_instr);
c906108c
SS
5005 break;
5006 }
c5aa993b
JM
5007
5008 case 0xc:
5009 case 0xd:
5010 case 0xe: /* coproc ops */
25b41d01 5011 break;
c5aa993b 5012 case 0xf: /* SWI */
25b41d01
YQ
5013 {
5014 struct gdbarch_tdep *tdep;
5015 tdep = gdbarch_tdep (gdbarch);
5016
5017 if (tdep->syscall_next_pc != NULL)
5018 nextpc = tdep->syscall_next_pc (frame);
5019
5020 }
c906108c
SS
5021 break;
5022
5023 default:
edefbb7c 5024 fprintf_filtered (gdb_stderr, _("Bad bit-field extraction\n"));
c906108c
SS
5025 return (pc);
5026 }
5027 }
5028
5029 return nextpc;
5030}
5031
18819fa6
UW
5032/* Determine next PC after current instruction executes. Will call either
5033 arm_get_next_pc_raw or thumb_get_next_pc_raw. Error out if infinite
5034 loop is detected. */
5035
50e98be4
DJ
5036CORE_ADDR
5037arm_get_next_pc (struct frame_info *frame, CORE_ADDR pc)
5038{
18819fa6
UW
5039 CORE_ADDR nextpc;
5040
5041 if (arm_frame_is_thumb (frame))
2b59118e 5042 nextpc = thumb_get_next_pc_raw (frame, pc);
18819fa6 5043 else
2b59118e 5044 nextpc = arm_get_next_pc_raw (frame, pc);
18819fa6 5045
50e98be4
DJ
5046 return nextpc;
5047}
5048
18819fa6
UW
5049/* Like insert_single_step_breakpoint, but make sure we use a breakpoint
5050 of the appropriate mode (as encoded in the PC value), even if this
5051 differs from what would be expected according to the symbol tables. */
5052
5053void
5054arm_insert_single_step_breakpoint (struct gdbarch *gdbarch,
5055 struct address_space *aspace,
5056 CORE_ADDR pc)
5057{
5058 struct cleanup *old_chain
5059 = make_cleanup_restore_integer (&arm_override_mode);
5060
5061 arm_override_mode = IS_THUMB_ADDR (pc);
5062 pc = gdbarch_addr_bits_remove (gdbarch, pc);
5063
5064 insert_single_step_breakpoint (gdbarch, aspace, pc);
5065
5066 do_cleanups (old_chain);
5067}
5068
35f73cfc
UW
5069/* Checks for an atomic sequence of instructions beginning with a LDREX{,B,H,D}
5070 instruction and ending with a STREX{,B,H,D} instruction. If such a sequence
5071 is found, attempt to step through it. A breakpoint is placed at the end of
5072 the sequence. */
5073
5074static int
5075thumb_deal_with_atomic_sequence_raw (struct frame_info *frame)
5076{
5077 struct gdbarch *gdbarch = get_frame_arch (frame);
5078 struct address_space *aspace = get_frame_address_space (frame);
5079 enum bfd_endian byte_order_for_code = gdbarch_byte_order_for_code (gdbarch);
5080 CORE_ADDR pc = get_frame_pc (frame);
5081 CORE_ADDR breaks[2] = {-1, -1};
5082 CORE_ADDR loc = pc;
5083 unsigned short insn1, insn2;
5084 int insn_count;
5085 int index;
5086 int last_breakpoint = 0; /* Defaults to 0 (no breakpoints placed). */
5087 const int atomic_sequence_length = 16; /* Instruction sequence length. */
5088 ULONGEST status, itstate;
5089
5090 /* We currently do not support atomic sequences within an IT block. */
5091 status = get_frame_register_unsigned (frame, ARM_PS_REGNUM);
5092 itstate = ((status >> 8) & 0xfc) | ((status >> 25) & 0x3);
5093 if (itstate & 0x0f)
5094 return 0;
5095
5096 /* Assume all atomic sequences start with a ldrex{,b,h,d} instruction. */
5097 insn1 = read_memory_unsigned_integer (loc, 2, byte_order_for_code);
5098 loc += 2;
5099 if (thumb_insn_size (insn1) != 4)
5100 return 0;
5101
5102 insn2 = read_memory_unsigned_integer (loc, 2, byte_order_for_code);
5103 loc += 2;
5104 if (!((insn1 & 0xfff0) == 0xe850
5105 || ((insn1 & 0xfff0) == 0xe8d0 && (insn2 & 0x00c0) == 0x0040)))
5106 return 0;
5107
5108 /* Assume that no atomic sequence is longer than "atomic_sequence_length"
5109 instructions. */
5110 for (insn_count = 0; insn_count < atomic_sequence_length; ++insn_count)
5111 {
5112 insn1 = read_memory_unsigned_integer (loc, 2, byte_order_for_code);
5113 loc += 2;
5114
5115 if (thumb_insn_size (insn1) != 4)
5116 {
5117 /* Assume that there is at most one conditional branch in the
5118 atomic sequence. If a conditional branch is found, put a
5119 breakpoint in its destination address. */
5120 if ((insn1 & 0xf000) == 0xd000 && bits (insn1, 8, 11) != 0x0f)
5121 {
5122 if (last_breakpoint > 0)
5123 return 0; /* More than one conditional branch found,
5124 fallback to the standard code. */
5125
5126 breaks[1] = loc + 2 + (sbits (insn1, 0, 7) << 1);
5127 last_breakpoint++;
5128 }
5129
5130 /* We do not support atomic sequences that use any *other*
5131 instructions but conditional branches to change the PC.
5132 Fall back to standard code to avoid losing control of
5133 execution. */
5134 else if (thumb_instruction_changes_pc (insn1))
5135 return 0;
5136 }
5137 else
5138 {
5139 insn2 = read_memory_unsigned_integer (loc, 2, byte_order_for_code);
5140 loc += 2;
5141
5142 /* Assume that there is at most one conditional branch in the
5143 atomic sequence. If a conditional branch is found, put a
5144 breakpoint in its destination address. */
5145 if ((insn1 & 0xf800) == 0xf000
5146 && (insn2 & 0xd000) == 0x8000
5147 && (insn1 & 0x0380) != 0x0380)
5148 {
5149 int sign, j1, j2, imm1, imm2;
5150 unsigned int offset;
5151
5152 sign = sbits (insn1, 10, 10);
5153 imm1 = bits (insn1, 0, 5);
5154 imm2 = bits (insn2, 0, 10);
5155 j1 = bit (insn2, 13);
5156 j2 = bit (insn2, 11);
5157
5158 offset = (sign << 20) + (j2 << 19) + (j1 << 18);
5159 offset += (imm1 << 12) + (imm2 << 1);
5160
5161 if (last_breakpoint > 0)
5162 return 0; /* More than one conditional branch found,
5163 fallback to the standard code. */
5164
5165 breaks[1] = loc + offset;
5166 last_breakpoint++;
5167 }
5168
5169 /* We do not support atomic sequences that use any *other*
5170 instructions but conditional branches to change the PC.
5171 Fall back to standard code to avoid losing control of
5172 execution. */
5173 else if (thumb2_instruction_changes_pc (insn1, insn2))
5174 return 0;
5175
5176 /* If we find a strex{,b,h,d}, we're done. */
5177 if ((insn1 & 0xfff0) == 0xe840
5178 || ((insn1 & 0xfff0) == 0xe8c0 && (insn2 & 0x00c0) == 0x0040))
5179 break;
5180 }
5181 }
5182
5183 /* If we didn't find the strex{,b,h,d}, we cannot handle the sequence. */
5184 if (insn_count == atomic_sequence_length)
5185 return 0;
5186
5187 /* Insert a breakpoint right after the end of the atomic sequence. */
5188 breaks[0] = loc;
5189
5190 /* Check for duplicated breakpoints. Check also for a breakpoint
5191 placed (branch instruction's destination) anywhere in sequence. */
5192 if (last_breakpoint
5193 && (breaks[1] == breaks[0]
5194 || (breaks[1] >= pc && breaks[1] < loc)))
5195 last_breakpoint = 0;
5196
5197 /* Effectively inserts the breakpoints. */
5198 for (index = 0; index <= last_breakpoint; index++)
5199 arm_insert_single_step_breakpoint (gdbarch, aspace,
5200 MAKE_THUMB_ADDR (breaks[index]));
5201
5202 return 1;
5203}
5204
5205static int
5206arm_deal_with_atomic_sequence_raw (struct frame_info *frame)
5207{
5208 struct gdbarch *gdbarch = get_frame_arch (frame);
5209 struct address_space *aspace = get_frame_address_space (frame);
5210 enum bfd_endian byte_order_for_code = gdbarch_byte_order_for_code (gdbarch);
5211 CORE_ADDR pc = get_frame_pc (frame);
5212 CORE_ADDR breaks[2] = {-1, -1};
5213 CORE_ADDR loc = pc;
5214 unsigned int insn;
5215 int insn_count;
5216 int index;
5217 int last_breakpoint = 0; /* Defaults to 0 (no breakpoints placed). */
5218 const int atomic_sequence_length = 16; /* Instruction sequence length. */
5219
5220 /* Assume all atomic sequences start with a ldrex{,b,h,d} instruction.
5221 Note that we do not currently support conditionally executed atomic
5222 instructions. */
5223 insn = read_memory_unsigned_integer (loc, 4, byte_order_for_code);
5224 loc += 4;
5225 if ((insn & 0xff9000f0) != 0xe1900090)
5226 return 0;
5227
5228 /* Assume that no atomic sequence is longer than "atomic_sequence_length"
5229 instructions. */
5230 for (insn_count = 0; insn_count < atomic_sequence_length; ++insn_count)
5231 {
5232 insn = read_memory_unsigned_integer (loc, 4, byte_order_for_code);
5233 loc += 4;
5234
5235 /* Assume that there is at most one conditional branch in the atomic
5236 sequence. If a conditional branch is found, put a breakpoint in
5237 its destination address. */
5238 if (bits (insn, 24, 27) == 0xa)
5239 {
5240 if (last_breakpoint > 0)
5241 return 0; /* More than one conditional branch found, fallback
5242 to the standard single-step code. */
5243
5244 breaks[1] = BranchDest (loc - 4, insn);
5245 last_breakpoint++;
5246 }
5247
5248 /* We do not support atomic sequences that use any *other* instructions
5249 but conditional branches to change the PC. Fall back to standard
5250 code to avoid losing control of execution. */
5251 else if (arm_instruction_changes_pc (insn))
5252 return 0;
5253
5254 /* If we find a strex{,b,h,d}, we're done. */
5255 if ((insn & 0xff9000f0) == 0xe1800090)
5256 break;
5257 }
5258
5259 /* If we didn't find the strex{,b,h,d}, we cannot handle the sequence. */
5260 if (insn_count == atomic_sequence_length)
5261 return 0;
5262
5263 /* Insert a breakpoint right after the end of the atomic sequence. */
5264 breaks[0] = loc;
5265
5266 /* Check for duplicated breakpoints. Check also for a breakpoint
5267 placed (branch instruction's destination) anywhere in sequence. */
5268 if (last_breakpoint
5269 && (breaks[1] == breaks[0]
5270 || (breaks[1] >= pc && breaks[1] < loc)))
5271 last_breakpoint = 0;
5272
5273 /* Effectively inserts the breakpoints. */
5274 for (index = 0; index <= last_breakpoint; index++)
5275 arm_insert_single_step_breakpoint (gdbarch, aspace, breaks[index]);
5276
5277 return 1;
5278}
5279
5280int
5281arm_deal_with_atomic_sequence (struct frame_info *frame)
5282{
5283 if (arm_frame_is_thumb (frame))
5284 return thumb_deal_with_atomic_sequence_raw (frame);
5285 else
5286 return arm_deal_with_atomic_sequence_raw (frame);
5287}
5288
9512d7fd
FN
5289/* single_step() is called just before we want to resume the inferior,
5290 if we want to single-step it but there is no hardware or kernel
5291 single-step support. We find the target of the coming instruction
e0cd558a 5292 and breakpoint it. */
9512d7fd 5293
190dce09 5294int
0b1b3e42 5295arm_software_single_step (struct frame_info *frame)
9512d7fd 5296{
a6d9a66e 5297 struct gdbarch *gdbarch = get_frame_arch (frame);
6c95b8df 5298 struct address_space *aspace = get_frame_address_space (frame);
35f73cfc
UW
5299 CORE_ADDR next_pc;
5300
5301 if (arm_deal_with_atomic_sequence (frame))
5302 return 1;
18819fa6 5303
35f73cfc 5304 next_pc = arm_get_next_pc (frame, get_frame_pc (frame));
18819fa6 5305 arm_insert_single_step_breakpoint (gdbarch, aspace, next_pc);
e6590a1b
UW
5306
5307 return 1;
9512d7fd 5308}
9512d7fd 5309
f9d67f43
DJ
5310/* Given BUF, which is OLD_LEN bytes ending at ENDADDR, expand
5311 the buffer to be NEW_LEN bytes ending at ENDADDR. Return
5312 NULL if an error occurs. BUF is freed. */
5313
5314static gdb_byte *
5315extend_buffer_earlier (gdb_byte *buf, CORE_ADDR endaddr,
5316 int old_len, int new_len)
5317{
22e048c9 5318 gdb_byte *new_buf;
f9d67f43
DJ
5319 int bytes_to_read = new_len - old_len;
5320
5321 new_buf = xmalloc (new_len);
5322 memcpy (new_buf + bytes_to_read, buf, old_len);
5323 xfree (buf);
5324 if (target_read_memory (endaddr - new_len, new_buf, bytes_to_read) != 0)
5325 {
5326 xfree (new_buf);
5327 return NULL;
5328 }
5329 return new_buf;
5330}
5331
5332/* An IT block is at most the 2-byte IT instruction followed by
5333 four 4-byte instructions. The furthest back we must search to
5334 find an IT block that affects the current instruction is thus
5335 2 + 3 * 4 == 14 bytes. */
5336#define MAX_IT_BLOCK_PREFIX 14
5337
5338/* Use a quick scan if there are more than this many bytes of
5339 code. */
5340#define IT_SCAN_THRESHOLD 32
5341
5342/* Adjust a breakpoint's address to move breakpoints out of IT blocks.
5343 A breakpoint in an IT block may not be hit, depending on the
5344 condition flags. */
5345static CORE_ADDR
5346arm_adjust_breakpoint_address (struct gdbarch *gdbarch, CORE_ADDR bpaddr)
5347{
5348 gdb_byte *buf;
5349 char map_type;
5350 CORE_ADDR boundary, func_start;
22e048c9 5351 int buf_len;
f9d67f43
DJ
5352 enum bfd_endian order = gdbarch_byte_order_for_code (gdbarch);
5353 int i, any, last_it, last_it_count;
5354
5355 /* If we are using BKPT breakpoints, none of this is necessary. */
5356 if (gdbarch_tdep (gdbarch)->thumb2_breakpoint == NULL)
5357 return bpaddr;
5358
5359 /* ARM mode does not have this problem. */
9779414d 5360 if (!arm_pc_is_thumb (gdbarch, bpaddr))
f9d67f43
DJ
5361 return bpaddr;
5362
5363 /* We are setting a breakpoint in Thumb code that could potentially
5364 contain an IT block. The first step is to find how much Thumb
5365 code there is; we do not need to read outside of known Thumb
5366 sequences. */
5367 map_type = arm_find_mapping_symbol (bpaddr, &boundary);
5368 if (map_type == 0)
5369 /* Thumb-2 code must have mapping symbols to have a chance. */
5370 return bpaddr;
5371
5372 bpaddr = gdbarch_addr_bits_remove (gdbarch, bpaddr);
5373
5374 if (find_pc_partial_function (bpaddr, NULL, &func_start, NULL)
5375 && func_start > boundary)
5376 boundary = func_start;
5377
5378 /* Search for a candidate IT instruction. We have to do some fancy
5379 footwork to distinguish a real IT instruction from the second
5380 half of a 32-bit instruction, but there is no need for that if
5381 there's no candidate. */
5382 buf_len = min (bpaddr - boundary, MAX_IT_BLOCK_PREFIX);
5383 if (buf_len == 0)
5384 /* No room for an IT instruction. */
5385 return bpaddr;
5386
5387 buf = xmalloc (buf_len);
5388 if (target_read_memory (bpaddr - buf_len, buf, buf_len) != 0)
5389 return bpaddr;
5390 any = 0;
5391 for (i = 0; i < buf_len; i += 2)
5392 {
5393 unsigned short inst1 = extract_unsigned_integer (&buf[i], 2, order);
5394 if ((inst1 & 0xff00) == 0xbf00 && (inst1 & 0x000f) != 0)
5395 {
5396 any = 1;
5397 break;
5398 }
5399 }
5400 if (any == 0)
5401 {
5402 xfree (buf);
5403 return bpaddr;
5404 }
5405
5406 /* OK, the code bytes before this instruction contain at least one
5407 halfword which resembles an IT instruction. We know that it's
5408 Thumb code, but there are still two possibilities. Either the
5409 halfword really is an IT instruction, or it is the second half of
5410 a 32-bit Thumb instruction. The only way we can tell is to
5411 scan forwards from a known instruction boundary. */
5412 if (bpaddr - boundary > IT_SCAN_THRESHOLD)
5413 {
5414 int definite;
5415
5416 /* There's a lot of code before this instruction. Start with an
5417 optimistic search; it's easy to recognize halfwords that can
5418 not be the start of a 32-bit instruction, and use that to
5419 lock on to the instruction boundaries. */
5420 buf = extend_buffer_earlier (buf, bpaddr, buf_len, IT_SCAN_THRESHOLD);
5421 if (buf == NULL)
5422 return bpaddr;
5423 buf_len = IT_SCAN_THRESHOLD;
5424
5425 definite = 0;
5426 for (i = 0; i < buf_len - sizeof (buf) && ! definite; i += 2)
5427 {
5428 unsigned short inst1 = extract_unsigned_integer (&buf[i], 2, order);
5429 if (thumb_insn_size (inst1) == 2)
5430 {
5431 definite = 1;
5432 break;
5433 }
5434 }
5435
5436 /* At this point, if DEFINITE, BUF[I] is the first place we
5437 are sure that we know the instruction boundaries, and it is far
5438 enough from BPADDR that we could not miss an IT instruction
5439 affecting BPADDR. If ! DEFINITE, give up - start from a
5440 known boundary. */
5441 if (! definite)
5442 {
0963b4bd
MS
5443 buf = extend_buffer_earlier (buf, bpaddr, buf_len,
5444 bpaddr - boundary);
f9d67f43
DJ
5445 if (buf == NULL)
5446 return bpaddr;
5447 buf_len = bpaddr - boundary;
5448 i = 0;
5449 }
5450 }
5451 else
5452 {
5453 buf = extend_buffer_earlier (buf, bpaddr, buf_len, bpaddr - boundary);
5454 if (buf == NULL)
5455 return bpaddr;
5456 buf_len = bpaddr - boundary;
5457 i = 0;
5458 }
5459
5460 /* Scan forwards. Find the last IT instruction before BPADDR. */
5461 last_it = -1;
5462 last_it_count = 0;
5463 while (i < buf_len)
5464 {
5465 unsigned short inst1 = extract_unsigned_integer (&buf[i], 2, order);
5466 last_it_count--;
5467 if ((inst1 & 0xff00) == 0xbf00 && (inst1 & 0x000f) != 0)
5468 {
5469 last_it = i;
5470 if (inst1 & 0x0001)
5471 last_it_count = 4;
5472 else if (inst1 & 0x0002)
5473 last_it_count = 3;
5474 else if (inst1 & 0x0004)
5475 last_it_count = 2;
5476 else
5477 last_it_count = 1;
5478 }
5479 i += thumb_insn_size (inst1);
5480 }
5481
5482 xfree (buf);
5483
5484 if (last_it == -1)
5485 /* There wasn't really an IT instruction after all. */
5486 return bpaddr;
5487
5488 if (last_it_count < 1)
5489 /* It was too far away. */
5490 return bpaddr;
5491
5492 /* This really is a trouble spot. Move the breakpoint to the IT
5493 instruction. */
5494 return bpaddr - buf_len + last_it;
5495}
5496
cca44b1b 5497/* ARM displaced stepping support.
c906108c 5498
cca44b1b 5499 Generally ARM displaced stepping works as follows:
c906108c 5500
cca44b1b
JB
5501 1. When an instruction is to be single-stepped, it is first decoded by
5502 arm_process_displaced_insn (called from arm_displaced_step_copy_insn).
5503 Depending on the type of instruction, it is then copied to a scratch
5504 location, possibly in a modified form. The copy_* set of functions
0963b4bd 5505 performs such modification, as necessary. A breakpoint is placed after
cca44b1b
JB
5506 the modified instruction in the scratch space to return control to GDB.
5507 Note in particular that instructions which modify the PC will no longer
5508 do so after modification.
c5aa993b 5509
cca44b1b
JB
5510 2. The instruction is single-stepped, by setting the PC to the scratch
5511 location address, and resuming. Control returns to GDB when the
5512 breakpoint is hit.
c5aa993b 5513
cca44b1b
JB
5514 3. A cleanup function (cleanup_*) is called corresponding to the copy_*
5515 function used for the current instruction. This function's job is to
5516 put the CPU/memory state back to what it would have been if the
5517 instruction had been executed unmodified in its original location. */
c5aa993b 5518
cca44b1b
JB
5519/* NOP instruction (mov r0, r0). */
5520#define ARM_NOP 0xe1a00000
34518530 5521#define THUMB_NOP 0x4600
cca44b1b
JB
5522
5523/* Helper for register reads for displaced stepping. In particular, this
5524 returns the PC as it would be seen by the instruction at its original
5525 location. */
5526
5527ULONGEST
36073a92
YQ
5528displaced_read_reg (struct regcache *regs, struct displaced_step_closure *dsc,
5529 int regno)
cca44b1b
JB
5530{
5531 ULONGEST ret;
36073a92 5532 CORE_ADDR from = dsc->insn_addr;
cca44b1b 5533
bf9f652a 5534 if (regno == ARM_PC_REGNUM)
cca44b1b 5535 {
4db71c0b
YQ
5536 /* Compute pipeline offset:
5537 - When executing an ARM instruction, PC reads as the address of the
5538 current instruction plus 8.
5539 - When executing a Thumb instruction, PC reads as the address of the
5540 current instruction plus 4. */
5541
36073a92 5542 if (!dsc->is_thumb)
4db71c0b
YQ
5543 from += 8;
5544 else
5545 from += 4;
5546
cca44b1b
JB
5547 if (debug_displaced)
5548 fprintf_unfiltered (gdb_stdlog, "displaced: read pc value %.8lx\n",
4db71c0b
YQ
5549 (unsigned long) from);
5550 return (ULONGEST) from;
cca44b1b 5551 }
c906108c 5552 else
cca44b1b
JB
5553 {
5554 regcache_cooked_read_unsigned (regs, regno, &ret);
5555 if (debug_displaced)
5556 fprintf_unfiltered (gdb_stdlog, "displaced: read r%d value %.8lx\n",
5557 regno, (unsigned long) ret);
5558 return ret;
5559 }
c906108c
SS
5560}
5561
cca44b1b
JB
5562static int
5563displaced_in_arm_mode (struct regcache *regs)
5564{
5565 ULONGEST ps;
9779414d 5566 ULONGEST t_bit = arm_psr_thumb_bit (get_regcache_arch (regs));
66e810cd 5567
cca44b1b 5568 regcache_cooked_read_unsigned (regs, ARM_PS_REGNUM, &ps);
66e810cd 5569
9779414d 5570 return (ps & t_bit) == 0;
cca44b1b 5571}
66e810cd 5572
cca44b1b 5573/* Write to the PC as from a branch instruction. */
c906108c 5574
cca44b1b 5575static void
36073a92
YQ
5576branch_write_pc (struct regcache *regs, struct displaced_step_closure *dsc,
5577 ULONGEST val)
c906108c 5578{
36073a92 5579 if (!dsc->is_thumb)
cca44b1b
JB
5580 /* Note: If bits 0/1 are set, this branch would be unpredictable for
5581 architecture versions < 6. */
0963b4bd
MS
5582 regcache_cooked_write_unsigned (regs, ARM_PC_REGNUM,
5583 val & ~(ULONGEST) 0x3);
cca44b1b 5584 else
0963b4bd
MS
5585 regcache_cooked_write_unsigned (regs, ARM_PC_REGNUM,
5586 val & ~(ULONGEST) 0x1);
cca44b1b 5587}
66e810cd 5588
cca44b1b
JB
5589/* Write to the PC as from a branch-exchange instruction. */
5590
5591static void
5592bx_write_pc (struct regcache *regs, ULONGEST val)
5593{
5594 ULONGEST ps;
9779414d 5595 ULONGEST t_bit = arm_psr_thumb_bit (get_regcache_arch (regs));
cca44b1b
JB
5596
5597 regcache_cooked_read_unsigned (regs, ARM_PS_REGNUM, &ps);
5598
5599 if ((val & 1) == 1)
c906108c 5600 {
9779414d 5601 regcache_cooked_write_unsigned (regs, ARM_PS_REGNUM, ps | t_bit);
cca44b1b
JB
5602 regcache_cooked_write_unsigned (regs, ARM_PC_REGNUM, val & 0xfffffffe);
5603 }
5604 else if ((val & 2) == 0)
5605 {
9779414d 5606 regcache_cooked_write_unsigned (regs, ARM_PS_REGNUM, ps & ~t_bit);
cca44b1b 5607 regcache_cooked_write_unsigned (regs, ARM_PC_REGNUM, val);
c906108c
SS
5608 }
5609 else
5610 {
cca44b1b
JB
5611 /* Unpredictable behaviour. Try to do something sensible (switch to ARM
5612 mode, align dest to 4 bytes). */
5613 warning (_("Single-stepping BX to non-word-aligned ARM instruction."));
9779414d 5614 regcache_cooked_write_unsigned (regs, ARM_PS_REGNUM, ps & ~t_bit);
cca44b1b 5615 regcache_cooked_write_unsigned (regs, ARM_PC_REGNUM, val & 0xfffffffc);
c906108c
SS
5616 }
5617}
ed9a39eb 5618
cca44b1b 5619/* Write to the PC as if from a load instruction. */
ed9a39eb 5620
34e8f22d 5621static void
36073a92
YQ
5622load_write_pc (struct regcache *regs, struct displaced_step_closure *dsc,
5623 ULONGEST val)
ed9a39eb 5624{
cca44b1b
JB
5625 if (DISPLACED_STEPPING_ARCH_VERSION >= 5)
5626 bx_write_pc (regs, val);
5627 else
36073a92 5628 branch_write_pc (regs, dsc, val);
cca44b1b 5629}
be8626e0 5630
cca44b1b
JB
5631/* Write to the PC as if from an ALU instruction. */
5632
5633static void
36073a92
YQ
5634alu_write_pc (struct regcache *regs, struct displaced_step_closure *dsc,
5635 ULONGEST val)
cca44b1b 5636{
36073a92 5637 if (DISPLACED_STEPPING_ARCH_VERSION >= 7 && !dsc->is_thumb)
cca44b1b
JB
5638 bx_write_pc (regs, val);
5639 else
36073a92 5640 branch_write_pc (regs, dsc, val);
cca44b1b
JB
5641}
5642
5643/* Helper for writing to registers for displaced stepping. Writing to the PC
5644 has a varying effects depending on the instruction which does the write:
5645 this is controlled by the WRITE_PC argument. */
5646
5647void
5648displaced_write_reg (struct regcache *regs, struct displaced_step_closure *dsc,
5649 int regno, ULONGEST val, enum pc_write_style write_pc)
5650{
bf9f652a 5651 if (regno == ARM_PC_REGNUM)
08216dd7 5652 {
cca44b1b
JB
5653 if (debug_displaced)
5654 fprintf_unfiltered (gdb_stdlog, "displaced: writing pc %.8lx\n",
5655 (unsigned long) val);
5656 switch (write_pc)
08216dd7 5657 {
cca44b1b 5658 case BRANCH_WRITE_PC:
36073a92 5659 branch_write_pc (regs, dsc, val);
08216dd7
RE
5660 break;
5661
cca44b1b
JB
5662 case BX_WRITE_PC:
5663 bx_write_pc (regs, val);
5664 break;
5665
5666 case LOAD_WRITE_PC:
36073a92 5667 load_write_pc (regs, dsc, val);
cca44b1b
JB
5668 break;
5669
5670 case ALU_WRITE_PC:
36073a92 5671 alu_write_pc (regs, dsc, val);
cca44b1b
JB
5672 break;
5673
5674 case CANNOT_WRITE_PC:
5675 warning (_("Instruction wrote to PC in an unexpected way when "
5676 "single-stepping"));
08216dd7
RE
5677 break;
5678
5679 default:
97b9747c
JB
5680 internal_error (__FILE__, __LINE__,
5681 _("Invalid argument to displaced_write_reg"));
08216dd7 5682 }
b508a996 5683
cca44b1b 5684 dsc->wrote_to_pc = 1;
b508a996 5685 }
ed9a39eb 5686 else
b508a996 5687 {
cca44b1b
JB
5688 if (debug_displaced)
5689 fprintf_unfiltered (gdb_stdlog, "displaced: writing r%d value %.8lx\n",
5690 regno, (unsigned long) val);
5691 regcache_cooked_write_unsigned (regs, regno, val);
b508a996 5692 }
34e8f22d
RE
5693}
5694
cca44b1b
JB
5695/* This function is used to concisely determine if an instruction INSN
5696 references PC. Register fields of interest in INSN should have the
0963b4bd
MS
5697 corresponding fields of BITMASK set to 0b1111. The function
5698 returns return 1 if any of these fields in INSN reference the PC
5699 (also 0b1111, r15), else it returns 0. */
67255d04
RE
5700
5701static int
cca44b1b 5702insn_references_pc (uint32_t insn, uint32_t bitmask)
67255d04 5703{
cca44b1b 5704 uint32_t lowbit = 1;
67255d04 5705
cca44b1b
JB
5706 while (bitmask != 0)
5707 {
5708 uint32_t mask;
44e1a9eb 5709
cca44b1b
JB
5710 for (; lowbit && (bitmask & lowbit) == 0; lowbit <<= 1)
5711 ;
67255d04 5712
cca44b1b
JB
5713 if (!lowbit)
5714 break;
67255d04 5715
cca44b1b 5716 mask = lowbit * 0xf;
67255d04 5717
cca44b1b
JB
5718 if ((insn & mask) == mask)
5719 return 1;
5720
5721 bitmask &= ~mask;
67255d04
RE
5722 }
5723
cca44b1b
JB
5724 return 0;
5725}
2af48f68 5726
cca44b1b
JB
5727/* The simplest copy function. Many instructions have the same effect no
5728 matter what address they are executed at: in those cases, use this. */
67255d04 5729
cca44b1b 5730static int
7ff120b4
YQ
5731arm_copy_unmodified (struct gdbarch *gdbarch, uint32_t insn,
5732 const char *iname, struct displaced_step_closure *dsc)
cca44b1b
JB
5733{
5734 if (debug_displaced)
5735 fprintf_unfiltered (gdb_stdlog, "displaced: copying insn %.8lx, "
5736 "opcode/class '%s' unmodified\n", (unsigned long) insn,
5737 iname);
67255d04 5738
cca44b1b 5739 dsc->modinsn[0] = insn;
67255d04 5740
cca44b1b
JB
5741 return 0;
5742}
5743
34518530
YQ
5744static int
5745thumb_copy_unmodified_32bit (struct gdbarch *gdbarch, uint16_t insn1,
5746 uint16_t insn2, const char *iname,
5747 struct displaced_step_closure *dsc)
5748{
5749 if (debug_displaced)
5750 fprintf_unfiltered (gdb_stdlog, "displaced: copying insn %.4x %.4x, "
5751 "opcode/class '%s' unmodified\n", insn1, insn2,
5752 iname);
5753
5754 dsc->modinsn[0] = insn1;
5755 dsc->modinsn[1] = insn2;
5756 dsc->numinsns = 2;
5757
5758 return 0;
5759}
5760
5761/* Copy 16-bit Thumb(Thumb and 16-bit Thumb-2) instruction without any
5762 modification. */
5763static int
5764thumb_copy_unmodified_16bit (struct gdbarch *gdbarch, unsigned int insn,
5765 const char *iname,
5766 struct displaced_step_closure *dsc)
5767{
5768 if (debug_displaced)
5769 fprintf_unfiltered (gdb_stdlog, "displaced: copying insn %.4x, "
5770 "opcode/class '%s' unmodified\n", insn,
5771 iname);
5772
5773 dsc->modinsn[0] = insn;
5774
5775 return 0;
5776}
5777
cca44b1b
JB
5778/* Preload instructions with immediate offset. */
5779
5780static void
6e39997a 5781cleanup_preload (struct gdbarch *gdbarch,
cca44b1b
JB
5782 struct regcache *regs, struct displaced_step_closure *dsc)
5783{
5784 displaced_write_reg (regs, dsc, 0, dsc->tmp[0], CANNOT_WRITE_PC);
5785 if (!dsc->u.preload.immed)
5786 displaced_write_reg (regs, dsc, 1, dsc->tmp[1], CANNOT_WRITE_PC);
5787}
5788
7ff120b4
YQ
5789static void
5790install_preload (struct gdbarch *gdbarch, struct regcache *regs,
5791 struct displaced_step_closure *dsc, unsigned int rn)
cca44b1b 5792{
cca44b1b 5793 ULONGEST rn_val;
cca44b1b
JB
5794 /* Preload instructions:
5795
5796 {pli/pld} [rn, #+/-imm]
5797 ->
5798 {pli/pld} [r0, #+/-imm]. */
5799
36073a92
YQ
5800 dsc->tmp[0] = displaced_read_reg (regs, dsc, 0);
5801 rn_val = displaced_read_reg (regs, dsc, rn);
cca44b1b 5802 displaced_write_reg (regs, dsc, 0, rn_val, CANNOT_WRITE_PC);
cca44b1b
JB
5803 dsc->u.preload.immed = 1;
5804
cca44b1b 5805 dsc->cleanup = &cleanup_preload;
cca44b1b
JB
5806}
5807
cca44b1b 5808static int
7ff120b4 5809arm_copy_preload (struct gdbarch *gdbarch, uint32_t insn, struct regcache *regs,
cca44b1b
JB
5810 struct displaced_step_closure *dsc)
5811{
5812 unsigned int rn = bits (insn, 16, 19);
cca44b1b 5813
7ff120b4
YQ
5814 if (!insn_references_pc (insn, 0x000f0000ul))
5815 return arm_copy_unmodified (gdbarch, insn, "preload", dsc);
cca44b1b
JB
5816
5817 if (debug_displaced)
5818 fprintf_unfiltered (gdb_stdlog, "displaced: copying preload insn %.8lx\n",
5819 (unsigned long) insn);
5820
7ff120b4
YQ
5821 dsc->modinsn[0] = insn & 0xfff0ffff;
5822
5823 install_preload (gdbarch, regs, dsc, rn);
5824
5825 return 0;
5826}
5827
34518530
YQ
5828static int
5829thumb2_copy_preload (struct gdbarch *gdbarch, uint16_t insn1, uint16_t insn2,
5830 struct regcache *regs, struct displaced_step_closure *dsc)
5831{
5832 unsigned int rn = bits (insn1, 0, 3);
5833 unsigned int u_bit = bit (insn1, 7);
5834 int imm12 = bits (insn2, 0, 11);
5835 ULONGEST pc_val;
5836
5837 if (rn != ARM_PC_REGNUM)
5838 return thumb_copy_unmodified_32bit (gdbarch, insn1, insn2, "preload", dsc);
5839
5840 /* PC is only allowed to use in PLI (immediate,literal) Encoding T3, and
5841 PLD (literal) Encoding T1. */
5842 if (debug_displaced)
5843 fprintf_unfiltered (gdb_stdlog,
5844 "displaced: copying pld/pli pc (0x%x) %c imm12 %.4x\n",
5845 (unsigned int) dsc->insn_addr, u_bit ? '+' : '-',
5846 imm12);
5847
5848 if (!u_bit)
5849 imm12 = -1 * imm12;
5850
5851 /* Rewrite instruction {pli/pld} PC imm12 into:
5852 Prepare: tmp[0] <- r0, tmp[1] <- r1, r0 <- pc, r1 <- imm12
5853
5854 {pli/pld} [r0, r1]
5855
5856 Cleanup: r0 <- tmp[0], r1 <- tmp[1]. */
5857
5858 dsc->tmp[0] = displaced_read_reg (regs, dsc, 0);
5859 dsc->tmp[1] = displaced_read_reg (regs, dsc, 1);
5860
5861 pc_val = displaced_read_reg (regs, dsc, ARM_PC_REGNUM);
5862
5863 displaced_write_reg (regs, dsc, 0, pc_val, CANNOT_WRITE_PC);
5864 displaced_write_reg (regs, dsc, 1, imm12, CANNOT_WRITE_PC);
5865 dsc->u.preload.immed = 0;
5866
5867 /* {pli/pld} [r0, r1] */
5868 dsc->modinsn[0] = insn1 & 0xfff0;
5869 dsc->modinsn[1] = 0xf001;
5870 dsc->numinsns = 2;
5871
5872 dsc->cleanup = &cleanup_preload;
5873 return 0;
5874}
5875
7ff120b4
YQ
5876/* Preload instructions with register offset. */
5877
5878static void
5879install_preload_reg(struct gdbarch *gdbarch, struct regcache *regs,
5880 struct displaced_step_closure *dsc, unsigned int rn,
5881 unsigned int rm)
5882{
5883 ULONGEST rn_val, rm_val;
5884
cca44b1b
JB
5885 /* Preload register-offset instructions:
5886
5887 {pli/pld} [rn, rm {, shift}]
5888 ->
5889 {pli/pld} [r0, r1 {, shift}]. */
5890
36073a92
YQ
5891 dsc->tmp[0] = displaced_read_reg (regs, dsc, 0);
5892 dsc->tmp[1] = displaced_read_reg (regs, dsc, 1);
5893 rn_val = displaced_read_reg (regs, dsc, rn);
5894 rm_val = displaced_read_reg (regs, dsc, rm);
cca44b1b
JB
5895 displaced_write_reg (regs, dsc, 0, rn_val, CANNOT_WRITE_PC);
5896 displaced_write_reg (regs, dsc, 1, rm_val, CANNOT_WRITE_PC);
cca44b1b
JB
5897 dsc->u.preload.immed = 0;
5898
cca44b1b 5899 dsc->cleanup = &cleanup_preload;
7ff120b4
YQ
5900}
5901
5902static int
5903arm_copy_preload_reg (struct gdbarch *gdbarch, uint32_t insn,
5904 struct regcache *regs,
5905 struct displaced_step_closure *dsc)
5906{
5907 unsigned int rn = bits (insn, 16, 19);
5908 unsigned int rm = bits (insn, 0, 3);
5909
5910
5911 if (!insn_references_pc (insn, 0x000f000ful))
5912 return arm_copy_unmodified (gdbarch, insn, "preload reg", dsc);
5913
5914 if (debug_displaced)
5915 fprintf_unfiltered (gdb_stdlog, "displaced: copying preload insn %.8lx\n",
5916 (unsigned long) insn);
5917
5918 dsc->modinsn[0] = (insn & 0xfff0fff0) | 0x1;
cca44b1b 5919
7ff120b4 5920 install_preload_reg (gdbarch, regs, dsc, rn, rm);
cca44b1b
JB
5921 return 0;
5922}
5923
5924/* Copy/cleanup coprocessor load and store instructions. */
5925
5926static void
6e39997a 5927cleanup_copro_load_store (struct gdbarch *gdbarch,
cca44b1b
JB
5928 struct regcache *regs,
5929 struct displaced_step_closure *dsc)
5930{
36073a92 5931 ULONGEST rn_val = displaced_read_reg (regs, dsc, 0);
cca44b1b
JB
5932
5933 displaced_write_reg (regs, dsc, 0, dsc->tmp[0], CANNOT_WRITE_PC);
5934
5935 if (dsc->u.ldst.writeback)
5936 displaced_write_reg (regs, dsc, dsc->u.ldst.rn, rn_val, LOAD_WRITE_PC);
5937}
5938
7ff120b4
YQ
5939static void
5940install_copro_load_store (struct gdbarch *gdbarch, struct regcache *regs,
5941 struct displaced_step_closure *dsc,
5942 int writeback, unsigned int rn)
cca44b1b 5943{
cca44b1b 5944 ULONGEST rn_val;
cca44b1b 5945
cca44b1b
JB
5946 /* Coprocessor load/store instructions:
5947
5948 {stc/stc2} [<Rn>, #+/-imm] (and other immediate addressing modes)
5949 ->
5950 {stc/stc2} [r0, #+/-imm].
5951
5952 ldc/ldc2 are handled identically. */
5953
36073a92
YQ
5954 dsc->tmp[0] = displaced_read_reg (regs, dsc, 0);
5955 rn_val = displaced_read_reg (regs, dsc, rn);
2b16b2e3
YQ
5956 /* PC should be 4-byte aligned. */
5957 rn_val = rn_val & 0xfffffffc;
cca44b1b
JB
5958 displaced_write_reg (regs, dsc, 0, rn_val, CANNOT_WRITE_PC);
5959
7ff120b4 5960 dsc->u.ldst.writeback = writeback;
cca44b1b
JB
5961 dsc->u.ldst.rn = rn;
5962
7ff120b4
YQ
5963 dsc->cleanup = &cleanup_copro_load_store;
5964}
5965
5966static int
5967arm_copy_copro_load_store (struct gdbarch *gdbarch, uint32_t insn,
5968 struct regcache *regs,
5969 struct displaced_step_closure *dsc)
5970{
5971 unsigned int rn = bits (insn, 16, 19);
5972
5973 if (!insn_references_pc (insn, 0x000f0000ul))
5974 return arm_copy_unmodified (gdbarch, insn, "copro load/store", dsc);
5975
5976 if (debug_displaced)
5977 fprintf_unfiltered (gdb_stdlog, "displaced: copying coprocessor "
5978 "load/store insn %.8lx\n", (unsigned long) insn);
5979
cca44b1b
JB
5980 dsc->modinsn[0] = insn & 0xfff0ffff;
5981
7ff120b4 5982 install_copro_load_store (gdbarch, regs, dsc, bit (insn, 25), rn);
cca44b1b
JB
5983
5984 return 0;
5985}
5986
34518530
YQ
5987static int
5988thumb2_copy_copro_load_store (struct gdbarch *gdbarch, uint16_t insn1,
5989 uint16_t insn2, struct regcache *regs,
5990 struct displaced_step_closure *dsc)
5991{
5992 unsigned int rn = bits (insn1, 0, 3);
5993
5994 if (rn != ARM_PC_REGNUM)
5995 return thumb_copy_unmodified_32bit (gdbarch, insn1, insn2,
5996 "copro load/store", dsc);
5997
5998 if (debug_displaced)
5999 fprintf_unfiltered (gdb_stdlog, "displaced: copying coprocessor "
6000 "load/store insn %.4x%.4x\n", insn1, insn2);
6001
6002 dsc->modinsn[0] = insn1 & 0xfff0;
6003 dsc->modinsn[1] = insn2;
6004 dsc->numinsns = 2;
6005
6006 /* This function is called for copying instruction LDC/LDC2/VLDR, which
6007 doesn't support writeback, so pass 0. */
6008 install_copro_load_store (gdbarch, regs, dsc, 0, rn);
6009
6010 return 0;
6011}
6012
cca44b1b
JB
6013/* Clean up branch instructions (actually perform the branch, by setting
6014 PC). */
6015
6016static void
6e39997a 6017cleanup_branch (struct gdbarch *gdbarch, struct regcache *regs,
cca44b1b
JB
6018 struct displaced_step_closure *dsc)
6019{
36073a92 6020 uint32_t status = displaced_read_reg (regs, dsc, ARM_PS_REGNUM);
cca44b1b
JB
6021 int branch_taken = condition_true (dsc->u.branch.cond, status);
6022 enum pc_write_style write_pc = dsc->u.branch.exchange
6023 ? BX_WRITE_PC : BRANCH_WRITE_PC;
6024
6025 if (!branch_taken)
6026 return;
6027
6028 if (dsc->u.branch.link)
6029 {
8c8dba6d
YQ
6030 /* The value of LR should be the next insn of current one. In order
6031 not to confuse logic hanlding later insn `bx lr', if current insn mode
6032 is Thumb, the bit 0 of LR value should be set to 1. */
6033 ULONGEST next_insn_addr = dsc->insn_addr + dsc->insn_size;
6034
6035 if (dsc->is_thumb)
6036 next_insn_addr |= 0x1;
6037
6038 displaced_write_reg (regs, dsc, ARM_LR_REGNUM, next_insn_addr,
6039 CANNOT_WRITE_PC);
cca44b1b
JB
6040 }
6041
bf9f652a 6042 displaced_write_reg (regs, dsc, ARM_PC_REGNUM, dsc->u.branch.dest, write_pc);
cca44b1b
JB
6043}
6044
6045/* Copy B/BL/BLX instructions with immediate destinations. */
6046
7ff120b4
YQ
6047static void
6048install_b_bl_blx (struct gdbarch *gdbarch, struct regcache *regs,
6049 struct displaced_step_closure *dsc,
6050 unsigned int cond, int exchange, int link, long offset)
6051{
6052 /* Implement "BL<cond> <label>" as:
6053
6054 Preparation: cond <- instruction condition
6055 Insn: mov r0, r0 (nop)
6056 Cleanup: if (condition true) { r14 <- pc; pc <- label }.
6057
6058 B<cond> similar, but don't set r14 in cleanup. */
6059
6060 dsc->u.branch.cond = cond;
6061 dsc->u.branch.link = link;
6062 dsc->u.branch.exchange = exchange;
6063
2b16b2e3
YQ
6064 dsc->u.branch.dest = dsc->insn_addr;
6065 if (link && exchange)
6066 /* For BLX, offset is computed from the Align (PC, 4). */
6067 dsc->u.branch.dest = dsc->u.branch.dest & 0xfffffffc;
6068
7ff120b4 6069 if (dsc->is_thumb)
2b16b2e3 6070 dsc->u.branch.dest += 4 + offset;
7ff120b4 6071 else
2b16b2e3 6072 dsc->u.branch.dest += 8 + offset;
7ff120b4
YQ
6073
6074 dsc->cleanup = &cleanup_branch;
6075}
cca44b1b 6076static int
7ff120b4
YQ
6077arm_copy_b_bl_blx (struct gdbarch *gdbarch, uint32_t insn,
6078 struct regcache *regs, struct displaced_step_closure *dsc)
cca44b1b
JB
6079{
6080 unsigned int cond = bits (insn, 28, 31);
6081 int exchange = (cond == 0xf);
6082 int link = exchange || bit (insn, 24);
cca44b1b
JB
6083 long offset;
6084
6085 if (debug_displaced)
6086 fprintf_unfiltered (gdb_stdlog, "displaced: copying %s immediate insn "
6087 "%.8lx\n", (exchange) ? "blx" : (link) ? "bl" : "b",
6088 (unsigned long) insn);
cca44b1b
JB
6089 if (exchange)
6090 /* For BLX, set bit 0 of the destination. The cleanup_branch function will
6091 then arrange the switch into Thumb mode. */
6092 offset = (bits (insn, 0, 23) << 2) | (bit (insn, 24) << 1) | 1;
6093 else
6094 offset = bits (insn, 0, 23) << 2;
6095
6096 if (bit (offset, 25))
6097 offset = offset | ~0x3ffffff;
6098
cca44b1b
JB
6099 dsc->modinsn[0] = ARM_NOP;
6100
7ff120b4 6101 install_b_bl_blx (gdbarch, regs, dsc, cond, exchange, link, offset);
cca44b1b
JB
6102 return 0;
6103}
6104
34518530
YQ
6105static int
6106thumb2_copy_b_bl_blx (struct gdbarch *gdbarch, uint16_t insn1,
6107 uint16_t insn2, struct regcache *regs,
6108 struct displaced_step_closure *dsc)
6109{
6110 int link = bit (insn2, 14);
6111 int exchange = link && !bit (insn2, 12);
6112 int cond = INST_AL;
6113 long offset = 0;
6114 int j1 = bit (insn2, 13);
6115 int j2 = bit (insn2, 11);
6116 int s = sbits (insn1, 10, 10);
6117 int i1 = !(j1 ^ bit (insn1, 10));
6118 int i2 = !(j2 ^ bit (insn1, 10));
6119
6120 if (!link && !exchange) /* B */
6121 {
6122 offset = (bits (insn2, 0, 10) << 1);
6123 if (bit (insn2, 12)) /* Encoding T4 */
6124 {
6125 offset |= (bits (insn1, 0, 9) << 12)
6126 | (i2 << 22)
6127 | (i1 << 23)
6128 | (s << 24);
6129 cond = INST_AL;
6130 }
6131 else /* Encoding T3 */
6132 {
6133 offset |= (bits (insn1, 0, 5) << 12)
6134 | (j1 << 18)
6135 | (j2 << 19)
6136 | (s << 20);
6137 cond = bits (insn1, 6, 9);
6138 }
6139 }
6140 else
6141 {
6142 offset = (bits (insn1, 0, 9) << 12);
6143 offset |= ((i2 << 22) | (i1 << 23) | (s << 24));
6144 offset |= exchange ?
6145 (bits (insn2, 1, 10) << 2) : (bits (insn2, 0, 10) << 1);
6146 }
6147
6148 if (debug_displaced)
6149 fprintf_unfiltered (gdb_stdlog, "displaced: copying %s insn "
6150 "%.4x %.4x with offset %.8lx\n",
6151 link ? (exchange) ? "blx" : "bl" : "b",
6152 insn1, insn2, offset);
6153
6154 dsc->modinsn[0] = THUMB_NOP;
6155
6156 install_b_bl_blx (gdbarch, regs, dsc, cond, exchange, link, offset);
6157 return 0;
6158}
6159
6160/* Copy B Thumb instructions. */
6161static int
6162thumb_copy_b (struct gdbarch *gdbarch, unsigned short insn,
6163 struct displaced_step_closure *dsc)
6164{
6165 unsigned int cond = 0;
6166 int offset = 0;
6167 unsigned short bit_12_15 = bits (insn, 12, 15);
6168 CORE_ADDR from = dsc->insn_addr;
6169
6170 if (bit_12_15 == 0xd)
6171 {
6172 /* offset = SignExtend (imm8:0, 32) */
6173 offset = sbits ((insn << 1), 0, 8);
6174 cond = bits (insn, 8, 11);
6175 }
6176 else if (bit_12_15 == 0xe) /* Encoding T2 */
6177 {
6178 offset = sbits ((insn << 1), 0, 11);
6179 cond = INST_AL;
6180 }
6181
6182 if (debug_displaced)
6183 fprintf_unfiltered (gdb_stdlog,
6184 "displaced: copying b immediate insn %.4x "
6185 "with offset %d\n", insn, offset);
6186
6187 dsc->u.branch.cond = cond;
6188 dsc->u.branch.link = 0;
6189 dsc->u.branch.exchange = 0;
6190 dsc->u.branch.dest = from + 4 + offset;
6191
6192 dsc->modinsn[0] = THUMB_NOP;
6193
6194 dsc->cleanup = &cleanup_branch;
6195
6196 return 0;
6197}
6198
cca44b1b
JB
6199/* Copy BX/BLX with register-specified destinations. */
6200
7ff120b4
YQ
6201static void
6202install_bx_blx_reg (struct gdbarch *gdbarch, struct regcache *regs,
6203 struct displaced_step_closure *dsc, int link,
6204 unsigned int cond, unsigned int rm)
cca44b1b 6205{
cca44b1b
JB
6206 /* Implement {BX,BLX}<cond> <reg>" as:
6207
6208 Preparation: cond <- instruction condition
6209 Insn: mov r0, r0 (nop)
6210 Cleanup: if (condition true) { r14 <- pc; pc <- dest; }.
6211
6212 Don't set r14 in cleanup for BX. */
6213
36073a92 6214 dsc->u.branch.dest = displaced_read_reg (regs, dsc, rm);
cca44b1b
JB
6215
6216 dsc->u.branch.cond = cond;
6217 dsc->u.branch.link = link;
cca44b1b 6218
7ff120b4 6219 dsc->u.branch.exchange = 1;
cca44b1b
JB
6220
6221 dsc->cleanup = &cleanup_branch;
7ff120b4 6222}
cca44b1b 6223
7ff120b4
YQ
6224static int
6225arm_copy_bx_blx_reg (struct gdbarch *gdbarch, uint32_t insn,
6226 struct regcache *regs, struct displaced_step_closure *dsc)
6227{
6228 unsigned int cond = bits (insn, 28, 31);
6229 /* BX: x12xxx1x
6230 BLX: x12xxx3x. */
6231 int link = bit (insn, 5);
6232 unsigned int rm = bits (insn, 0, 3);
6233
6234 if (debug_displaced)
6235 fprintf_unfiltered (gdb_stdlog, "displaced: copying insn %.8lx",
6236 (unsigned long) insn);
6237
6238 dsc->modinsn[0] = ARM_NOP;
6239
6240 install_bx_blx_reg (gdbarch, regs, dsc, link, cond, rm);
cca44b1b
JB
6241 return 0;
6242}
6243
34518530
YQ
6244static int
6245thumb_copy_bx_blx_reg (struct gdbarch *gdbarch, uint16_t insn,
6246 struct regcache *regs,
6247 struct displaced_step_closure *dsc)
6248{
6249 int link = bit (insn, 7);
6250 unsigned int rm = bits (insn, 3, 6);
6251
6252 if (debug_displaced)
6253 fprintf_unfiltered (gdb_stdlog, "displaced: copying insn %.4x",
6254 (unsigned short) insn);
6255
6256 dsc->modinsn[0] = THUMB_NOP;
6257
6258 install_bx_blx_reg (gdbarch, regs, dsc, link, INST_AL, rm);
6259
6260 return 0;
6261}
6262
6263
0963b4bd 6264/* Copy/cleanup arithmetic/logic instruction with immediate RHS. */
cca44b1b
JB
6265
6266static void
6e39997a 6267cleanup_alu_imm (struct gdbarch *gdbarch,
cca44b1b
JB
6268 struct regcache *regs, struct displaced_step_closure *dsc)
6269{
36073a92 6270 ULONGEST rd_val = displaced_read_reg (regs, dsc, 0);
cca44b1b
JB
6271 displaced_write_reg (regs, dsc, 0, dsc->tmp[0], CANNOT_WRITE_PC);
6272 displaced_write_reg (regs, dsc, 1, dsc->tmp[1], CANNOT_WRITE_PC);
6273 displaced_write_reg (regs, dsc, dsc->rd, rd_val, ALU_WRITE_PC);
6274}
6275
6276static int
7ff120b4
YQ
6277arm_copy_alu_imm (struct gdbarch *gdbarch, uint32_t insn, struct regcache *regs,
6278 struct displaced_step_closure *dsc)
cca44b1b
JB
6279{
6280 unsigned int rn = bits (insn, 16, 19);
6281 unsigned int rd = bits (insn, 12, 15);
6282 unsigned int op = bits (insn, 21, 24);
6283 int is_mov = (op == 0xd);
6284 ULONGEST rd_val, rn_val;
cca44b1b
JB
6285
6286 if (!insn_references_pc (insn, 0x000ff000ul))
7ff120b4 6287 return arm_copy_unmodified (gdbarch, insn, "ALU immediate", dsc);
cca44b1b
JB
6288
6289 if (debug_displaced)
6290 fprintf_unfiltered (gdb_stdlog, "displaced: copying immediate %s insn "
6291 "%.8lx\n", is_mov ? "move" : "ALU",
6292 (unsigned long) insn);
6293
6294 /* Instruction is of form:
6295
6296 <op><cond> rd, [rn,] #imm
6297
6298 Rewrite as:
6299
6300 Preparation: tmp1, tmp2 <- r0, r1;
6301 r0, r1 <- rd, rn
6302 Insn: <op><cond> r0, r1, #imm
6303 Cleanup: rd <- r0; r0 <- tmp1; r1 <- tmp2
6304 */
6305
36073a92
YQ
6306 dsc->tmp[0] = displaced_read_reg (regs, dsc, 0);
6307 dsc->tmp[1] = displaced_read_reg (regs, dsc, 1);
6308 rn_val = displaced_read_reg (regs, dsc, rn);
6309 rd_val = displaced_read_reg (regs, dsc, rd);
cca44b1b
JB
6310 displaced_write_reg (regs, dsc, 0, rd_val, CANNOT_WRITE_PC);
6311 displaced_write_reg (regs, dsc, 1, rn_val, CANNOT_WRITE_PC);
6312 dsc->rd = rd;
6313
6314 if (is_mov)
6315 dsc->modinsn[0] = insn & 0xfff00fff;
6316 else
6317 dsc->modinsn[0] = (insn & 0xfff00fff) | 0x10000;
6318
6319 dsc->cleanup = &cleanup_alu_imm;
6320
6321 return 0;
6322}
6323
34518530
YQ
6324static int
6325thumb2_copy_alu_imm (struct gdbarch *gdbarch, uint16_t insn1,
6326 uint16_t insn2, struct regcache *regs,
6327 struct displaced_step_closure *dsc)
6328{
6329 unsigned int op = bits (insn1, 5, 8);
6330 unsigned int rn, rm, rd;
6331 ULONGEST rd_val, rn_val;
6332
6333 rn = bits (insn1, 0, 3); /* Rn */
6334 rm = bits (insn2, 0, 3); /* Rm */
6335 rd = bits (insn2, 8, 11); /* Rd */
6336
6337 /* This routine is only called for instruction MOV. */
6338 gdb_assert (op == 0x2 && rn == 0xf);
6339
6340 if (rm != ARM_PC_REGNUM && rd != ARM_PC_REGNUM)
6341 return thumb_copy_unmodified_32bit (gdbarch, insn1, insn2, "ALU imm", dsc);
6342
6343 if (debug_displaced)
6344 fprintf_unfiltered (gdb_stdlog, "displaced: copying reg %s insn %.4x%.4x\n",
6345 "ALU", insn1, insn2);
6346
6347 /* Instruction is of form:
6348
6349 <op><cond> rd, [rn,] #imm
6350
6351 Rewrite as:
6352
6353 Preparation: tmp1, tmp2 <- r0, r1;
6354 r0, r1 <- rd, rn
6355 Insn: <op><cond> r0, r1, #imm
6356 Cleanup: rd <- r0; r0 <- tmp1; r1 <- tmp2
6357 */
6358
6359 dsc->tmp[0] = displaced_read_reg (regs, dsc, 0);
6360 dsc->tmp[1] = displaced_read_reg (regs, dsc, 1);
6361 rn_val = displaced_read_reg (regs, dsc, rn);
6362 rd_val = displaced_read_reg (regs, dsc, rd);
6363 displaced_write_reg (regs, dsc, 0, rd_val, CANNOT_WRITE_PC);
6364 displaced_write_reg (regs, dsc, 1, rn_val, CANNOT_WRITE_PC);
6365 dsc->rd = rd;
6366
6367 dsc->modinsn[0] = insn1;
6368 dsc->modinsn[1] = ((insn2 & 0xf0f0) | 0x1);
6369 dsc->numinsns = 2;
6370
6371 dsc->cleanup = &cleanup_alu_imm;
6372
6373 return 0;
6374}
6375
cca44b1b
JB
6376/* Copy/cleanup arithmetic/logic insns with register RHS. */
6377
6378static void
6e39997a 6379cleanup_alu_reg (struct gdbarch *gdbarch,
cca44b1b
JB
6380 struct regcache *regs, struct displaced_step_closure *dsc)
6381{
6382 ULONGEST rd_val;
6383 int i;
6384
36073a92 6385 rd_val = displaced_read_reg (regs, dsc, 0);
cca44b1b
JB
6386
6387 for (i = 0; i < 3; i++)
6388 displaced_write_reg (regs, dsc, i, dsc->tmp[i], CANNOT_WRITE_PC);
6389
6390 displaced_write_reg (regs, dsc, dsc->rd, rd_val, ALU_WRITE_PC);
6391}
6392
7ff120b4
YQ
6393static void
6394install_alu_reg (struct gdbarch *gdbarch, struct regcache *regs,
6395 struct displaced_step_closure *dsc,
6396 unsigned int rd, unsigned int rn, unsigned int rm)
cca44b1b 6397{
cca44b1b 6398 ULONGEST rd_val, rn_val, rm_val;
cca44b1b 6399
cca44b1b
JB
6400 /* Instruction is of form:
6401
6402 <op><cond> rd, [rn,] rm [, <shift>]
6403
6404 Rewrite as:
6405
6406 Preparation: tmp1, tmp2, tmp3 <- r0, r1, r2;
6407 r0, r1, r2 <- rd, rn, rm
ef713951 6408 Insn: <op><cond> r0, [r1,] r2 [, <shift>]
cca44b1b
JB
6409 Cleanup: rd <- r0; r0, r1, r2 <- tmp1, tmp2, tmp3
6410 */
6411
36073a92
YQ
6412 dsc->tmp[0] = displaced_read_reg (regs, dsc, 0);
6413 dsc->tmp[1] = displaced_read_reg (regs, dsc, 1);
6414 dsc->tmp[2] = displaced_read_reg (regs, dsc, 2);
6415 rd_val = displaced_read_reg (regs, dsc, rd);
6416 rn_val = displaced_read_reg (regs, dsc, rn);
6417 rm_val = displaced_read_reg (regs, dsc, rm);
cca44b1b
JB
6418 displaced_write_reg (regs, dsc, 0, rd_val, CANNOT_WRITE_PC);
6419 displaced_write_reg (regs, dsc, 1, rn_val, CANNOT_WRITE_PC);
6420 displaced_write_reg (regs, dsc, 2, rm_val, CANNOT_WRITE_PC);
6421 dsc->rd = rd;
6422
7ff120b4
YQ
6423 dsc->cleanup = &cleanup_alu_reg;
6424}
6425
6426static int
6427arm_copy_alu_reg (struct gdbarch *gdbarch, uint32_t insn, struct regcache *regs,
6428 struct displaced_step_closure *dsc)
6429{
6430 unsigned int op = bits (insn, 21, 24);
6431 int is_mov = (op == 0xd);
6432
6433 if (!insn_references_pc (insn, 0x000ff00ful))
6434 return arm_copy_unmodified (gdbarch, insn, "ALU reg", dsc);
6435
6436 if (debug_displaced)
6437 fprintf_unfiltered (gdb_stdlog, "displaced: copying reg %s insn %.8lx\n",
6438 is_mov ? "move" : "ALU", (unsigned long) insn);
6439
cca44b1b
JB
6440 if (is_mov)
6441 dsc->modinsn[0] = (insn & 0xfff00ff0) | 0x2;
6442 else
6443 dsc->modinsn[0] = (insn & 0xfff00ff0) | 0x10002;
6444
7ff120b4
YQ
6445 install_alu_reg (gdbarch, regs, dsc, bits (insn, 12, 15), bits (insn, 16, 19),
6446 bits (insn, 0, 3));
cca44b1b
JB
6447 return 0;
6448}
6449
34518530
YQ
6450static int
6451thumb_copy_alu_reg (struct gdbarch *gdbarch, uint16_t insn,
6452 struct regcache *regs,
6453 struct displaced_step_closure *dsc)
6454{
ef713951 6455 unsigned rm, rd;
34518530 6456
ef713951
YQ
6457 rm = bits (insn, 3, 6);
6458 rd = (bit (insn, 7) << 3) | bits (insn, 0, 2);
34518530 6459
ef713951 6460 if (rd != ARM_PC_REGNUM && rm != ARM_PC_REGNUM)
34518530
YQ
6461 return thumb_copy_unmodified_16bit (gdbarch, insn, "ALU reg", dsc);
6462
6463 if (debug_displaced)
ef713951
YQ
6464 fprintf_unfiltered (gdb_stdlog, "displaced: copying ALU reg insn %.4x\n",
6465 (unsigned short) insn);
34518530 6466
ef713951 6467 dsc->modinsn[0] = ((insn & 0xff00) | 0x10);
34518530 6468
ef713951 6469 install_alu_reg (gdbarch, regs, dsc, rd, rd, rm);
34518530
YQ
6470
6471 return 0;
6472}
6473
cca44b1b
JB
6474/* Cleanup/copy arithmetic/logic insns with shifted register RHS. */
6475
6476static void
6e39997a 6477cleanup_alu_shifted_reg (struct gdbarch *gdbarch,
cca44b1b
JB
6478 struct regcache *regs,
6479 struct displaced_step_closure *dsc)
6480{
36073a92 6481 ULONGEST rd_val = displaced_read_reg (regs, dsc, 0);
cca44b1b
JB
6482 int i;
6483
6484 for (i = 0; i < 4; i++)
6485 displaced_write_reg (regs, dsc, i, dsc->tmp[i], CANNOT_WRITE_PC);
6486
6487 displaced_write_reg (regs, dsc, dsc->rd, rd_val, ALU_WRITE_PC);
6488}
6489
7ff120b4
YQ
6490static void
6491install_alu_shifted_reg (struct gdbarch *gdbarch, struct regcache *regs,
6492 struct displaced_step_closure *dsc,
6493 unsigned int rd, unsigned int rn, unsigned int rm,
6494 unsigned rs)
cca44b1b 6495{
7ff120b4 6496 int i;
cca44b1b 6497 ULONGEST rd_val, rn_val, rm_val, rs_val;
cca44b1b 6498
cca44b1b
JB
6499 /* Instruction is of form:
6500
6501 <op><cond> rd, [rn,] rm, <shift> rs
6502
6503 Rewrite as:
6504
6505 Preparation: tmp1, tmp2, tmp3, tmp4 <- r0, r1, r2, r3
6506 r0, r1, r2, r3 <- rd, rn, rm, rs
6507 Insn: <op><cond> r0, r1, r2, <shift> r3
6508 Cleanup: tmp5 <- r0
6509 r0, r1, r2, r3 <- tmp1, tmp2, tmp3, tmp4
6510 rd <- tmp5
6511 */
6512
6513 for (i = 0; i < 4; i++)
36073a92 6514 dsc->tmp[i] = displaced_read_reg (regs, dsc, i);
cca44b1b 6515
36073a92
YQ
6516 rd_val = displaced_read_reg (regs, dsc, rd);
6517 rn_val = displaced_read_reg (regs, dsc, rn);
6518 rm_val = displaced_read_reg (regs, dsc, rm);
6519 rs_val = displaced_read_reg (regs, dsc, rs);
cca44b1b
JB
6520 displaced_write_reg (regs, dsc, 0, rd_val, CANNOT_WRITE_PC);
6521 displaced_write_reg (regs, dsc, 1, rn_val, CANNOT_WRITE_PC);
6522 displaced_write_reg (regs, dsc, 2, rm_val, CANNOT_WRITE_PC);
6523 displaced_write_reg (regs, dsc, 3, rs_val, CANNOT_WRITE_PC);
6524 dsc->rd = rd;
7ff120b4
YQ
6525 dsc->cleanup = &cleanup_alu_shifted_reg;
6526}
6527
6528static int
6529arm_copy_alu_shifted_reg (struct gdbarch *gdbarch, uint32_t insn,
6530 struct regcache *regs,
6531 struct displaced_step_closure *dsc)
6532{
6533 unsigned int op = bits (insn, 21, 24);
6534 int is_mov = (op == 0xd);
6535 unsigned int rd, rn, rm, rs;
6536
6537 if (!insn_references_pc (insn, 0x000fff0ful))
6538 return arm_copy_unmodified (gdbarch, insn, "ALU shifted reg", dsc);
6539
6540 if (debug_displaced)
6541 fprintf_unfiltered (gdb_stdlog, "displaced: copying shifted reg %s insn "
6542 "%.8lx\n", is_mov ? "move" : "ALU",
6543 (unsigned long) insn);
6544
6545 rn = bits (insn, 16, 19);
6546 rm = bits (insn, 0, 3);
6547 rs = bits (insn, 8, 11);
6548 rd = bits (insn, 12, 15);
cca44b1b
JB
6549
6550 if (is_mov)
6551 dsc->modinsn[0] = (insn & 0xfff000f0) | 0x302;
6552 else
6553 dsc->modinsn[0] = (insn & 0xfff000f0) | 0x10302;
6554
7ff120b4 6555 install_alu_shifted_reg (gdbarch, regs, dsc, rd, rn, rm, rs);
cca44b1b
JB
6556
6557 return 0;
6558}
6559
6560/* Clean up load instructions. */
6561
6562static void
6e39997a 6563cleanup_load (struct gdbarch *gdbarch, struct regcache *regs,
cca44b1b
JB
6564 struct displaced_step_closure *dsc)
6565{
6566 ULONGEST rt_val, rt_val2 = 0, rn_val;
cca44b1b 6567
36073a92 6568 rt_val = displaced_read_reg (regs, dsc, 0);
cca44b1b 6569 if (dsc->u.ldst.xfersize == 8)
36073a92
YQ
6570 rt_val2 = displaced_read_reg (regs, dsc, 1);
6571 rn_val = displaced_read_reg (regs, dsc, 2);
cca44b1b
JB
6572
6573 displaced_write_reg (regs, dsc, 0, dsc->tmp[0], CANNOT_WRITE_PC);
6574 if (dsc->u.ldst.xfersize > 4)
6575 displaced_write_reg (regs, dsc, 1, dsc->tmp[1], CANNOT_WRITE_PC);
6576 displaced_write_reg (regs, dsc, 2, dsc->tmp[2], CANNOT_WRITE_PC);
6577 if (!dsc->u.ldst.immed)
6578 displaced_write_reg (regs, dsc, 3, dsc->tmp[3], CANNOT_WRITE_PC);
6579
6580 /* Handle register writeback. */
6581 if (dsc->u.ldst.writeback)
6582 displaced_write_reg (regs, dsc, dsc->u.ldst.rn, rn_val, CANNOT_WRITE_PC);
6583 /* Put result in right place. */
6584 displaced_write_reg (regs, dsc, dsc->rd, rt_val, LOAD_WRITE_PC);
6585 if (dsc->u.ldst.xfersize == 8)
6586 displaced_write_reg (regs, dsc, dsc->rd + 1, rt_val2, LOAD_WRITE_PC);
6587}
6588
6589/* Clean up store instructions. */
6590
6591static void
6e39997a 6592cleanup_store (struct gdbarch *gdbarch, struct regcache *regs,
cca44b1b
JB
6593 struct displaced_step_closure *dsc)
6594{
36073a92 6595 ULONGEST rn_val = displaced_read_reg (regs, dsc, 2);
cca44b1b
JB
6596
6597 displaced_write_reg (regs, dsc, 0, dsc->tmp[0], CANNOT_WRITE_PC);
6598 if (dsc->u.ldst.xfersize > 4)
6599 displaced_write_reg (regs, dsc, 1, dsc->tmp[1], CANNOT_WRITE_PC);
6600 displaced_write_reg (regs, dsc, 2, dsc->tmp[2], CANNOT_WRITE_PC);
6601 if (!dsc->u.ldst.immed)
6602 displaced_write_reg (regs, dsc, 3, dsc->tmp[3], CANNOT_WRITE_PC);
6603 if (!dsc->u.ldst.restore_r4)
6604 displaced_write_reg (regs, dsc, 4, dsc->tmp[4], CANNOT_WRITE_PC);
6605
6606 /* Writeback. */
6607 if (dsc->u.ldst.writeback)
6608 displaced_write_reg (regs, dsc, dsc->u.ldst.rn, rn_val, CANNOT_WRITE_PC);
6609}
6610
6611/* Copy "extra" load/store instructions. These are halfword/doubleword
6612 transfers, which have a different encoding to byte/word transfers. */
6613
6614static int
7ff120b4
YQ
6615arm_copy_extra_ld_st (struct gdbarch *gdbarch, uint32_t insn, int unpriveleged,
6616 struct regcache *regs, struct displaced_step_closure *dsc)
cca44b1b
JB
6617{
6618 unsigned int op1 = bits (insn, 20, 24);
6619 unsigned int op2 = bits (insn, 5, 6);
6620 unsigned int rt = bits (insn, 12, 15);
6621 unsigned int rn = bits (insn, 16, 19);
6622 unsigned int rm = bits (insn, 0, 3);
6623 char load[12] = {0, 1, 0, 1, 1, 1, 1, 1, 0, 1, 0, 1};
6624 char bytesize[12] = {2, 2, 2, 2, 8, 1, 8, 1, 8, 2, 8, 2};
6625 int immed = (op1 & 0x4) != 0;
6626 int opcode;
6627 ULONGEST rt_val, rt_val2 = 0, rn_val, rm_val = 0;
cca44b1b
JB
6628
6629 if (!insn_references_pc (insn, 0x000ff00ful))
7ff120b4 6630 return arm_copy_unmodified (gdbarch, insn, "extra load/store", dsc);
cca44b1b
JB
6631
6632 if (debug_displaced)
6633 fprintf_unfiltered (gdb_stdlog, "displaced: copying %sextra load/store "
6634 "insn %.8lx\n", unpriveleged ? "unpriveleged " : "",
6635 (unsigned long) insn);
6636
6637 opcode = ((op2 << 2) | (op1 & 0x1) | ((op1 & 0x4) >> 1)) - 4;
6638
6639 if (opcode < 0)
6640 internal_error (__FILE__, __LINE__,
6641 _("copy_extra_ld_st: instruction decode error"));
6642
36073a92
YQ
6643 dsc->tmp[0] = displaced_read_reg (regs, dsc, 0);
6644 dsc->tmp[1] = displaced_read_reg (regs, dsc, 1);
6645 dsc->tmp[2] = displaced_read_reg (regs, dsc, 2);
cca44b1b 6646 if (!immed)
36073a92 6647 dsc->tmp[3] = displaced_read_reg (regs, dsc, 3);
cca44b1b 6648
36073a92 6649 rt_val = displaced_read_reg (regs, dsc, rt);
cca44b1b 6650 if (bytesize[opcode] == 8)
36073a92
YQ
6651 rt_val2 = displaced_read_reg (regs, dsc, rt + 1);
6652 rn_val = displaced_read_reg (regs, dsc, rn);
cca44b1b 6653 if (!immed)
36073a92 6654 rm_val = displaced_read_reg (regs, dsc, rm);
cca44b1b
JB
6655
6656 displaced_write_reg (regs, dsc, 0, rt_val, CANNOT_WRITE_PC);
6657 if (bytesize[opcode] == 8)
6658 displaced_write_reg (regs, dsc, 1, rt_val2, CANNOT_WRITE_PC);
6659 displaced_write_reg (regs, dsc, 2, rn_val, CANNOT_WRITE_PC);
6660 if (!immed)
6661 displaced_write_reg (regs, dsc, 3, rm_val, CANNOT_WRITE_PC);
6662
6663 dsc->rd = rt;
6664 dsc->u.ldst.xfersize = bytesize[opcode];
6665 dsc->u.ldst.rn = rn;
6666 dsc->u.ldst.immed = immed;
6667 dsc->u.ldst.writeback = bit (insn, 24) == 0 || bit (insn, 21) != 0;
6668 dsc->u.ldst.restore_r4 = 0;
6669
6670 if (immed)
6671 /* {ldr,str}<width><cond> rt, [rt2,] [rn, #imm]
6672 ->
6673 {ldr,str}<width><cond> r0, [r1,] [r2, #imm]. */
6674 dsc->modinsn[0] = (insn & 0xfff00fff) | 0x20000;
6675 else
6676 /* {ldr,str}<width><cond> rt, [rt2,] [rn, +/-rm]
6677 ->
6678 {ldr,str}<width><cond> r0, [r1,] [r2, +/-r3]. */
6679 dsc->modinsn[0] = (insn & 0xfff00ff0) | 0x20003;
6680
6681 dsc->cleanup = load[opcode] ? &cleanup_load : &cleanup_store;
6682
6683 return 0;
6684}
6685
0f6f04ba 6686/* Copy byte/half word/word loads and stores. */
cca44b1b 6687
7ff120b4 6688static void
0f6f04ba
YQ
6689install_load_store (struct gdbarch *gdbarch, struct regcache *regs,
6690 struct displaced_step_closure *dsc, int load,
6691 int immed, int writeback, int size, int usermode,
6692 int rt, int rm, int rn)
cca44b1b 6693{
cca44b1b 6694 ULONGEST rt_val, rn_val, rm_val = 0;
cca44b1b 6695
36073a92
YQ
6696 dsc->tmp[0] = displaced_read_reg (regs, dsc, 0);
6697 dsc->tmp[2] = displaced_read_reg (regs, dsc, 2);
cca44b1b 6698 if (!immed)
36073a92 6699 dsc->tmp[3] = displaced_read_reg (regs, dsc, 3);
cca44b1b 6700 if (!load)
36073a92 6701 dsc->tmp[4] = displaced_read_reg (regs, dsc, 4);
cca44b1b 6702
36073a92
YQ
6703 rt_val = displaced_read_reg (regs, dsc, rt);
6704 rn_val = displaced_read_reg (regs, dsc, rn);
cca44b1b 6705 if (!immed)
36073a92 6706 rm_val = displaced_read_reg (regs, dsc, rm);
cca44b1b
JB
6707
6708 displaced_write_reg (regs, dsc, 0, rt_val, CANNOT_WRITE_PC);
6709 displaced_write_reg (regs, dsc, 2, rn_val, CANNOT_WRITE_PC);
6710 if (!immed)
6711 displaced_write_reg (regs, dsc, 3, rm_val, CANNOT_WRITE_PC);
cca44b1b 6712 dsc->rd = rt;
0f6f04ba 6713 dsc->u.ldst.xfersize = size;
cca44b1b
JB
6714 dsc->u.ldst.rn = rn;
6715 dsc->u.ldst.immed = immed;
7ff120b4 6716 dsc->u.ldst.writeback = writeback;
cca44b1b
JB
6717
6718 /* To write PC we can do:
6719
494e194e
YQ
6720 Before this sequence of instructions:
6721 r0 is the PC value got from displaced_read_reg, so r0 = from + 8;
6722 r2 is the Rn value got from dispalced_read_reg.
6723
6724 Insn1: push {pc} Write address of STR instruction + offset on stack
6725 Insn2: pop {r4} Read it back from stack, r4 = addr(Insn1) + offset
6726 Insn3: sub r4, r4, pc r4 = addr(Insn1) + offset - pc
6727 = addr(Insn1) + offset - addr(Insn3) - 8
6728 = offset - 16
6729 Insn4: add r4, r4, #8 r4 = offset - 8
6730 Insn5: add r0, r0, r4 r0 = from + 8 + offset - 8
6731 = from + offset
6732 Insn6: str r0, [r2, #imm] (or str r0, [r2, r3])
cca44b1b
JB
6733
6734 Otherwise we don't know what value to write for PC, since the offset is
494e194e
YQ
6735 architecture-dependent (sometimes PC+8, sometimes PC+12). More details
6736 of this can be found in Section "Saving from r15" in
6737 http://infocenter.arm.com/help/index.jsp?topic=/com.arm.doc.dui0204g/Cihbjifh.html */
cca44b1b 6738
7ff120b4
YQ
6739 dsc->cleanup = load ? &cleanup_load : &cleanup_store;
6740}
6741
34518530
YQ
6742
6743static int
6744thumb2_copy_load_literal (struct gdbarch *gdbarch, uint16_t insn1,
6745 uint16_t insn2, struct regcache *regs,
6746 struct displaced_step_closure *dsc, int size)
6747{
6748 unsigned int u_bit = bit (insn1, 7);
6749 unsigned int rt = bits (insn2, 12, 15);
6750 int imm12 = bits (insn2, 0, 11);
6751 ULONGEST pc_val;
6752
6753 if (debug_displaced)
6754 fprintf_unfiltered (gdb_stdlog,
6755 "displaced: copying ldr pc (0x%x) R%d %c imm12 %.4x\n",
6756 (unsigned int) dsc->insn_addr, rt, u_bit ? '+' : '-',
6757 imm12);
6758
6759 if (!u_bit)
6760 imm12 = -1 * imm12;
6761
6762 /* Rewrite instruction LDR Rt imm12 into:
6763
6764 Prepare: tmp[0] <- r0, tmp[1] <- r2, tmp[2] <- r3, r2 <- pc, r3 <- imm12
6765
6766 LDR R0, R2, R3,
6767
6768 Cleanup: rt <- r0, r0 <- tmp[0], r2 <- tmp[1], r3 <- tmp[2]. */
6769
6770
6771 dsc->tmp[0] = displaced_read_reg (regs, dsc, 0);
6772 dsc->tmp[2] = displaced_read_reg (regs, dsc, 2);
6773 dsc->tmp[3] = displaced_read_reg (regs, dsc, 3);
6774
6775 pc_val = displaced_read_reg (regs, dsc, ARM_PC_REGNUM);
6776
6777 pc_val = pc_val & 0xfffffffc;
6778
6779 displaced_write_reg (regs, dsc, 2, pc_val, CANNOT_WRITE_PC);
6780 displaced_write_reg (regs, dsc, 3, imm12, CANNOT_WRITE_PC);
6781
6782 dsc->rd = rt;
6783
6784 dsc->u.ldst.xfersize = size;
6785 dsc->u.ldst.immed = 0;
6786 dsc->u.ldst.writeback = 0;
6787 dsc->u.ldst.restore_r4 = 0;
6788
6789 /* LDR R0, R2, R3 */
6790 dsc->modinsn[0] = 0xf852;
6791 dsc->modinsn[1] = 0x3;
6792 dsc->numinsns = 2;
6793
6794 dsc->cleanup = &cleanup_load;
6795
6796 return 0;
6797}
6798
6799static int
6800thumb2_copy_load_reg_imm (struct gdbarch *gdbarch, uint16_t insn1,
6801 uint16_t insn2, struct regcache *regs,
6802 struct displaced_step_closure *dsc,
6803 int writeback, int immed)
6804{
6805 unsigned int rt = bits (insn2, 12, 15);
6806 unsigned int rn = bits (insn1, 0, 3);
6807 unsigned int rm = bits (insn2, 0, 3); /* Only valid if !immed. */
6808 /* In LDR (register), there is also a register Rm, which is not allowed to
6809 be PC, so we don't have to check it. */
6810
6811 if (rt != ARM_PC_REGNUM && rn != ARM_PC_REGNUM)
6812 return thumb_copy_unmodified_32bit (gdbarch, insn1, insn2, "load",
6813 dsc);
6814
6815 if (debug_displaced)
6816 fprintf_unfiltered (gdb_stdlog,
6817 "displaced: copying ldr r%d [r%d] insn %.4x%.4x\n",
6818 rt, rn, insn1, insn2);
6819
6820 install_load_store (gdbarch, regs, dsc, 1, immed, writeback, 4,
6821 0, rt, rm, rn);
6822
6823 dsc->u.ldst.restore_r4 = 0;
6824
6825 if (immed)
6826 /* ldr[b]<cond> rt, [rn, #imm], etc.
6827 ->
6828 ldr[b]<cond> r0, [r2, #imm]. */
6829 {
6830 dsc->modinsn[0] = (insn1 & 0xfff0) | 0x2;
6831 dsc->modinsn[1] = insn2 & 0x0fff;
6832 }
6833 else
6834 /* ldr[b]<cond> rt, [rn, rm], etc.
6835 ->
6836 ldr[b]<cond> r0, [r2, r3]. */
6837 {
6838 dsc->modinsn[0] = (insn1 & 0xfff0) | 0x2;
6839 dsc->modinsn[1] = (insn2 & 0x0ff0) | 0x3;
6840 }
6841
6842 dsc->numinsns = 2;
6843
6844 return 0;
6845}
6846
6847
7ff120b4
YQ
6848static int
6849arm_copy_ldr_str_ldrb_strb (struct gdbarch *gdbarch, uint32_t insn,
6850 struct regcache *regs,
6851 struct displaced_step_closure *dsc,
0f6f04ba 6852 int load, int size, int usermode)
7ff120b4
YQ
6853{
6854 int immed = !bit (insn, 25);
6855 int writeback = (bit (insn, 24) == 0 || bit (insn, 21) != 0);
6856 unsigned int rt = bits (insn, 12, 15);
6857 unsigned int rn = bits (insn, 16, 19);
6858 unsigned int rm = bits (insn, 0, 3); /* Only valid if !immed. */
6859
6860 if (!insn_references_pc (insn, 0x000ff00ful))
6861 return arm_copy_unmodified (gdbarch, insn, "load/store", dsc);
6862
6863 if (debug_displaced)
6864 fprintf_unfiltered (gdb_stdlog,
6865 "displaced: copying %s%s r%d [r%d] insn %.8lx\n",
0f6f04ba
YQ
6866 load ? (size == 1 ? "ldrb" : "ldr")
6867 : (size == 1 ? "strb" : "str"), usermode ? "t" : "",
7ff120b4
YQ
6868 rt, rn,
6869 (unsigned long) insn);
6870
0f6f04ba
YQ
6871 install_load_store (gdbarch, regs, dsc, load, immed, writeback, size,
6872 usermode, rt, rm, rn);
7ff120b4 6873
bf9f652a 6874 if (load || rt != ARM_PC_REGNUM)
cca44b1b
JB
6875 {
6876 dsc->u.ldst.restore_r4 = 0;
6877
6878 if (immed)
6879 /* {ldr,str}[b]<cond> rt, [rn, #imm], etc.
6880 ->
6881 {ldr,str}[b]<cond> r0, [r2, #imm]. */
6882 dsc->modinsn[0] = (insn & 0xfff00fff) | 0x20000;
6883 else
6884 /* {ldr,str}[b]<cond> rt, [rn, rm], etc.
6885 ->
6886 {ldr,str}[b]<cond> r0, [r2, r3]. */
6887 dsc->modinsn[0] = (insn & 0xfff00ff0) | 0x20003;
6888 }
6889 else
6890 {
6891 /* We need to use r4 as scratch. Make sure it's restored afterwards. */
6892 dsc->u.ldst.restore_r4 = 1;
494e194e
YQ
6893 dsc->modinsn[0] = 0xe92d8000; /* push {pc} */
6894 dsc->modinsn[1] = 0xe8bd0010; /* pop {r4} */
cca44b1b
JB
6895 dsc->modinsn[2] = 0xe044400f; /* sub r4, r4, pc. */
6896 dsc->modinsn[3] = 0xe2844008; /* add r4, r4, #8. */
6897 dsc->modinsn[4] = 0xe0800004; /* add r0, r0, r4. */
6898
6899 /* As above. */
6900 if (immed)
6901 dsc->modinsn[5] = (insn & 0xfff00fff) | 0x20000;
6902 else
6903 dsc->modinsn[5] = (insn & 0xfff00ff0) | 0x20003;
6904
cca44b1b
JB
6905 dsc->numinsns = 6;
6906 }
6907
6908 dsc->cleanup = load ? &cleanup_load : &cleanup_store;
6909
6910 return 0;
6911}
6912
6913/* Cleanup LDM instructions with fully-populated register list. This is an
6914 unfortunate corner case: it's impossible to implement correctly by modifying
6915 the instruction. The issue is as follows: we have an instruction,
6916
6917 ldm rN, {r0-r15}
6918
6919 which we must rewrite to avoid loading PC. A possible solution would be to
6920 do the load in two halves, something like (with suitable cleanup
6921 afterwards):
6922
6923 mov r8, rN
6924 ldm[id][ab] r8!, {r0-r7}
6925 str r7, <temp>
6926 ldm[id][ab] r8, {r7-r14}
6927 <bkpt>
6928
6929 but at present there's no suitable place for <temp>, since the scratch space
6930 is overwritten before the cleanup routine is called. For now, we simply
6931 emulate the instruction. */
6932
6933static void
6934cleanup_block_load_all (struct gdbarch *gdbarch, struct regcache *regs,
6935 struct displaced_step_closure *dsc)
6936{
cca44b1b
JB
6937 int inc = dsc->u.block.increment;
6938 int bump_before = dsc->u.block.before ? (inc ? 4 : -4) : 0;
6939 int bump_after = dsc->u.block.before ? 0 : (inc ? 4 : -4);
6940 uint32_t regmask = dsc->u.block.regmask;
6941 int regno = inc ? 0 : 15;
6942 CORE_ADDR xfer_addr = dsc->u.block.xfer_addr;
6943 int exception_return = dsc->u.block.load && dsc->u.block.user
6944 && (regmask & 0x8000) != 0;
36073a92 6945 uint32_t status = displaced_read_reg (regs, dsc, ARM_PS_REGNUM);
cca44b1b
JB
6946 int do_transfer = condition_true (dsc->u.block.cond, status);
6947 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
6948
6949 if (!do_transfer)
6950 return;
6951
6952 /* If the instruction is ldm rN, {...pc}^, I don't think there's anything
6953 sensible we can do here. Complain loudly. */
6954 if (exception_return)
6955 error (_("Cannot single-step exception return"));
6956
6957 /* We don't handle any stores here for now. */
6958 gdb_assert (dsc->u.block.load != 0);
6959
6960 if (debug_displaced)
6961 fprintf_unfiltered (gdb_stdlog, "displaced: emulating block transfer: "
6962 "%s %s %s\n", dsc->u.block.load ? "ldm" : "stm",
6963 dsc->u.block.increment ? "inc" : "dec",
6964 dsc->u.block.before ? "before" : "after");
6965
6966 while (regmask)
6967 {
6968 uint32_t memword;
6969
6970 if (inc)
bf9f652a 6971 while (regno <= ARM_PC_REGNUM && (regmask & (1 << regno)) == 0)
cca44b1b
JB
6972 regno++;
6973 else
6974 while (regno >= 0 && (regmask & (1 << regno)) == 0)
6975 regno--;
6976
6977 xfer_addr += bump_before;
6978
6979 memword = read_memory_unsigned_integer (xfer_addr, 4, byte_order);
6980 displaced_write_reg (regs, dsc, regno, memword, LOAD_WRITE_PC);
6981
6982 xfer_addr += bump_after;
6983
6984 regmask &= ~(1 << regno);
6985 }
6986
6987 if (dsc->u.block.writeback)
6988 displaced_write_reg (regs, dsc, dsc->u.block.rn, xfer_addr,
6989 CANNOT_WRITE_PC);
6990}
6991
6992/* Clean up an STM which included the PC in the register list. */
6993
6994static void
6995cleanup_block_store_pc (struct gdbarch *gdbarch, struct regcache *regs,
6996 struct displaced_step_closure *dsc)
6997{
36073a92 6998 uint32_t status = displaced_read_reg (regs, dsc, ARM_PS_REGNUM);
cca44b1b
JB
6999 int store_executed = condition_true (dsc->u.block.cond, status);
7000 CORE_ADDR pc_stored_at, transferred_regs = bitcount (dsc->u.block.regmask);
7001 CORE_ADDR stm_insn_addr;
7002 uint32_t pc_val;
7003 long offset;
7004 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
7005
7006 /* If condition code fails, there's nothing else to do. */
7007 if (!store_executed)
7008 return;
7009
7010 if (dsc->u.block.increment)
7011 {
7012 pc_stored_at = dsc->u.block.xfer_addr + 4 * transferred_regs;
7013
7014 if (dsc->u.block.before)
7015 pc_stored_at += 4;
7016 }
7017 else
7018 {
7019 pc_stored_at = dsc->u.block.xfer_addr;
7020
7021 if (dsc->u.block.before)
7022 pc_stored_at -= 4;
7023 }
7024
7025 pc_val = read_memory_unsigned_integer (pc_stored_at, 4, byte_order);
7026 stm_insn_addr = dsc->scratch_base;
7027 offset = pc_val - stm_insn_addr;
7028
7029 if (debug_displaced)
7030 fprintf_unfiltered (gdb_stdlog, "displaced: detected PC offset %.8lx for "
7031 "STM instruction\n", offset);
7032
7033 /* Rewrite the stored PC to the proper value for the non-displaced original
7034 instruction. */
7035 write_memory_unsigned_integer (pc_stored_at, 4, byte_order,
7036 dsc->insn_addr + offset);
7037}
7038
7039/* Clean up an LDM which includes the PC in the register list. We clumped all
7040 the registers in the transferred list into a contiguous range r0...rX (to
7041 avoid loading PC directly and losing control of the debugged program), so we
7042 must undo that here. */
7043
7044static void
6e39997a 7045cleanup_block_load_pc (struct gdbarch *gdbarch,
cca44b1b
JB
7046 struct regcache *regs,
7047 struct displaced_step_closure *dsc)
7048{
36073a92 7049 uint32_t status = displaced_read_reg (regs, dsc, ARM_PS_REGNUM);
22e048c9 7050 int load_executed = condition_true (dsc->u.block.cond, status);
bf9f652a 7051 unsigned int mask = dsc->u.block.regmask, write_reg = ARM_PC_REGNUM;
cca44b1b
JB
7052 unsigned int regs_loaded = bitcount (mask);
7053 unsigned int num_to_shuffle = regs_loaded, clobbered;
7054
7055 /* The method employed here will fail if the register list is fully populated
7056 (we need to avoid loading PC directly). */
7057 gdb_assert (num_to_shuffle < 16);
7058
7059 if (!load_executed)
7060 return;
7061
7062 clobbered = (1 << num_to_shuffle) - 1;
7063
7064 while (num_to_shuffle > 0)
7065 {
7066 if ((mask & (1 << write_reg)) != 0)
7067 {
7068 unsigned int read_reg = num_to_shuffle - 1;
7069
7070 if (read_reg != write_reg)
7071 {
36073a92 7072 ULONGEST rval = displaced_read_reg (regs, dsc, read_reg);
cca44b1b
JB
7073 displaced_write_reg (regs, dsc, write_reg, rval, LOAD_WRITE_PC);
7074 if (debug_displaced)
7075 fprintf_unfiltered (gdb_stdlog, _("displaced: LDM: move "
7076 "loaded register r%d to r%d\n"), read_reg,
7077 write_reg);
7078 }
7079 else if (debug_displaced)
7080 fprintf_unfiltered (gdb_stdlog, _("displaced: LDM: register "
7081 "r%d already in the right place\n"),
7082 write_reg);
7083
7084 clobbered &= ~(1 << write_reg);
7085
7086 num_to_shuffle--;
7087 }
7088
7089 write_reg--;
7090 }
7091
7092 /* Restore any registers we scribbled over. */
7093 for (write_reg = 0; clobbered != 0; write_reg++)
7094 {
7095 if ((clobbered & (1 << write_reg)) != 0)
7096 {
7097 displaced_write_reg (regs, dsc, write_reg, dsc->tmp[write_reg],
7098 CANNOT_WRITE_PC);
7099 if (debug_displaced)
7100 fprintf_unfiltered (gdb_stdlog, _("displaced: LDM: restored "
7101 "clobbered register r%d\n"), write_reg);
7102 clobbered &= ~(1 << write_reg);
7103 }
7104 }
7105
7106 /* Perform register writeback manually. */
7107 if (dsc->u.block.writeback)
7108 {
7109 ULONGEST new_rn_val = dsc->u.block.xfer_addr;
7110
7111 if (dsc->u.block.increment)
7112 new_rn_val += regs_loaded * 4;
7113 else
7114 new_rn_val -= regs_loaded * 4;
7115
7116 displaced_write_reg (regs, dsc, dsc->u.block.rn, new_rn_val,
7117 CANNOT_WRITE_PC);
7118 }
7119}
7120
7121/* Handle ldm/stm, apart from some tricky cases which are unlikely to occur
7122 in user-level code (in particular exception return, ldm rn, {...pc}^). */
7123
7124static int
7ff120b4
YQ
7125arm_copy_block_xfer (struct gdbarch *gdbarch, uint32_t insn,
7126 struct regcache *regs,
7127 struct displaced_step_closure *dsc)
cca44b1b
JB
7128{
7129 int load = bit (insn, 20);
7130 int user = bit (insn, 22);
7131 int increment = bit (insn, 23);
7132 int before = bit (insn, 24);
7133 int writeback = bit (insn, 21);
7134 int rn = bits (insn, 16, 19);
cca44b1b 7135
0963b4bd
MS
7136 /* Block transfers which don't mention PC can be run directly
7137 out-of-line. */
bf9f652a 7138 if (rn != ARM_PC_REGNUM && (insn & 0x8000) == 0)
7ff120b4 7139 return arm_copy_unmodified (gdbarch, insn, "ldm/stm", dsc);
cca44b1b 7140
bf9f652a 7141 if (rn == ARM_PC_REGNUM)
cca44b1b 7142 {
0963b4bd
MS
7143 warning (_("displaced: Unpredictable LDM or STM with "
7144 "base register r15"));
7ff120b4 7145 return arm_copy_unmodified (gdbarch, insn, "unpredictable ldm/stm", dsc);
cca44b1b
JB
7146 }
7147
7148 if (debug_displaced)
7149 fprintf_unfiltered (gdb_stdlog, "displaced: copying block transfer insn "
7150 "%.8lx\n", (unsigned long) insn);
7151
36073a92 7152 dsc->u.block.xfer_addr = displaced_read_reg (regs, dsc, rn);
cca44b1b
JB
7153 dsc->u.block.rn = rn;
7154
7155 dsc->u.block.load = load;
7156 dsc->u.block.user = user;
7157 dsc->u.block.increment = increment;
7158 dsc->u.block.before = before;
7159 dsc->u.block.writeback = writeback;
7160 dsc->u.block.cond = bits (insn, 28, 31);
7161
7162 dsc->u.block.regmask = insn & 0xffff;
7163
7164 if (load)
7165 {
7166 if ((insn & 0xffff) == 0xffff)
7167 {
7168 /* LDM with a fully-populated register list. This case is
7169 particularly tricky. Implement for now by fully emulating the
7170 instruction (which might not behave perfectly in all cases, but
7171 these instructions should be rare enough for that not to matter
7172 too much). */
7173 dsc->modinsn[0] = ARM_NOP;
7174
7175 dsc->cleanup = &cleanup_block_load_all;
7176 }
7177 else
7178 {
7179 /* LDM of a list of registers which includes PC. Implement by
7180 rewriting the list of registers to be transferred into a
7181 contiguous chunk r0...rX before doing the transfer, then shuffling
7182 registers into the correct places in the cleanup routine. */
7183 unsigned int regmask = insn & 0xffff;
7184 unsigned int num_in_list = bitcount (regmask), new_regmask, bit = 1;
7185 unsigned int to = 0, from = 0, i, new_rn;
7186
7187 for (i = 0; i < num_in_list; i++)
36073a92 7188 dsc->tmp[i] = displaced_read_reg (regs, dsc, i);
cca44b1b
JB
7189
7190 /* Writeback makes things complicated. We need to avoid clobbering
7191 the base register with one of the registers in our modified
7192 register list, but just using a different register can't work in
7193 all cases, e.g.:
7194
7195 ldm r14!, {r0-r13,pc}
7196
7197 which would need to be rewritten as:
7198
7199 ldm rN!, {r0-r14}
7200
7201 but that can't work, because there's no free register for N.
7202
7203 Solve this by turning off the writeback bit, and emulating
7204 writeback manually in the cleanup routine. */
7205
7206 if (writeback)
7207 insn &= ~(1 << 21);
7208
7209 new_regmask = (1 << num_in_list) - 1;
7210
7211 if (debug_displaced)
7212 fprintf_unfiltered (gdb_stdlog, _("displaced: LDM r%d%s, "
7213 "{..., pc}: original reg list %.4x, modified "
7214 "list %.4x\n"), rn, writeback ? "!" : "",
7215 (int) insn & 0xffff, new_regmask);
7216
7217 dsc->modinsn[0] = (insn & ~0xffff) | (new_regmask & 0xffff);
7218
7219 dsc->cleanup = &cleanup_block_load_pc;
7220 }
7221 }
7222 else
7223 {
7224 /* STM of a list of registers which includes PC. Run the instruction
7225 as-is, but out of line: this will store the wrong value for the PC,
7226 so we must manually fix up the memory in the cleanup routine.
7227 Doing things this way has the advantage that we can auto-detect
7228 the offset of the PC write (which is architecture-dependent) in
7229 the cleanup routine. */
7230 dsc->modinsn[0] = insn;
7231
7232 dsc->cleanup = &cleanup_block_store_pc;
7233 }
7234
7235 return 0;
7236}
7237
34518530
YQ
7238static int
7239thumb2_copy_block_xfer (struct gdbarch *gdbarch, uint16_t insn1, uint16_t insn2,
7240 struct regcache *regs,
7241 struct displaced_step_closure *dsc)
cca44b1b 7242{
34518530
YQ
7243 int rn = bits (insn1, 0, 3);
7244 int load = bit (insn1, 4);
7245 int writeback = bit (insn1, 5);
cca44b1b 7246
34518530
YQ
7247 /* Block transfers which don't mention PC can be run directly
7248 out-of-line. */
7249 if (rn != ARM_PC_REGNUM && (insn2 & 0x8000) == 0)
7250 return thumb_copy_unmodified_32bit (gdbarch, insn1, insn2, "ldm/stm", dsc);
7ff120b4 7251
34518530
YQ
7252 if (rn == ARM_PC_REGNUM)
7253 {
7254 warning (_("displaced: Unpredictable LDM or STM with "
7255 "base register r15"));
7256 return thumb_copy_unmodified_32bit (gdbarch, insn1, insn2,
7257 "unpredictable ldm/stm", dsc);
7258 }
cca44b1b
JB
7259
7260 if (debug_displaced)
34518530
YQ
7261 fprintf_unfiltered (gdb_stdlog, "displaced: copying block transfer insn "
7262 "%.4x%.4x\n", insn1, insn2);
cca44b1b 7263
34518530
YQ
7264 /* Clear bit 13, since it should be always zero. */
7265 dsc->u.block.regmask = (insn2 & 0xdfff);
7266 dsc->u.block.rn = rn;
cca44b1b 7267
34518530
YQ
7268 dsc->u.block.load = load;
7269 dsc->u.block.user = 0;
7270 dsc->u.block.increment = bit (insn1, 7);
7271 dsc->u.block.before = bit (insn1, 8);
7272 dsc->u.block.writeback = writeback;
7273 dsc->u.block.cond = INST_AL;
7274 dsc->u.block.xfer_addr = displaced_read_reg (regs, dsc, rn);
cca44b1b 7275
34518530
YQ
7276 if (load)
7277 {
7278 if (dsc->u.block.regmask == 0xffff)
7279 {
7280 /* This branch is impossible to happen. */
7281 gdb_assert (0);
7282 }
7283 else
7284 {
7285 unsigned int regmask = dsc->u.block.regmask;
7286 unsigned int num_in_list = bitcount (regmask), new_regmask, bit = 1;
7287 unsigned int to = 0, from = 0, i, new_rn;
7288
7289 for (i = 0; i < num_in_list; i++)
7290 dsc->tmp[i] = displaced_read_reg (regs, dsc, i);
7291
7292 if (writeback)
7293 insn1 &= ~(1 << 5);
7294
7295 new_regmask = (1 << num_in_list) - 1;
7296
7297 if (debug_displaced)
7298 fprintf_unfiltered (gdb_stdlog, _("displaced: LDM r%d%s, "
7299 "{..., pc}: original reg list %.4x, modified "
7300 "list %.4x\n"), rn, writeback ? "!" : "",
7301 (int) dsc->u.block.regmask, new_regmask);
7302
7303 dsc->modinsn[0] = insn1;
7304 dsc->modinsn[1] = (new_regmask & 0xffff);
7305 dsc->numinsns = 2;
7306
7307 dsc->cleanup = &cleanup_block_load_pc;
7308 }
7309 }
7310 else
7311 {
7312 dsc->modinsn[0] = insn1;
7313 dsc->modinsn[1] = insn2;
7314 dsc->numinsns = 2;
7315 dsc->cleanup = &cleanup_block_store_pc;
7316 }
7317 return 0;
7318}
7319
7320/* Cleanup/copy SVC (SWI) instructions. These two functions are overridden
7321 for Linux, where some SVC instructions must be treated specially. */
7322
7323static void
7324cleanup_svc (struct gdbarch *gdbarch, struct regcache *regs,
7325 struct displaced_step_closure *dsc)
7326{
7327 CORE_ADDR resume_addr = dsc->insn_addr + dsc->insn_size;
7328
7329 if (debug_displaced)
7330 fprintf_unfiltered (gdb_stdlog, "displaced: cleanup for svc, resume at "
7331 "%.8lx\n", (unsigned long) resume_addr);
7332
7333 displaced_write_reg (regs, dsc, ARM_PC_REGNUM, resume_addr, BRANCH_WRITE_PC);
7334}
7335
7336
7337/* Common copy routine for svc instruciton. */
7338
7339static int
7340install_svc (struct gdbarch *gdbarch, struct regcache *regs,
7341 struct displaced_step_closure *dsc)
7342{
7343 /* Preparation: none.
7344 Insn: unmodified svc.
7345 Cleanup: pc <- insn_addr + insn_size. */
7346
7347 /* Pretend we wrote to the PC, so cleanup doesn't set PC to the next
7348 instruction. */
7349 dsc->wrote_to_pc = 1;
7350
7351 /* Allow OS-specific code to override SVC handling. */
bd18283a
YQ
7352 if (dsc->u.svc.copy_svc_os)
7353 return dsc->u.svc.copy_svc_os (gdbarch, regs, dsc);
7354 else
7355 {
7356 dsc->cleanup = &cleanup_svc;
7357 return 0;
7358 }
34518530
YQ
7359}
7360
7361static int
7362arm_copy_svc (struct gdbarch *gdbarch, uint32_t insn,
7363 struct regcache *regs, struct displaced_step_closure *dsc)
7364{
7365
7366 if (debug_displaced)
7367 fprintf_unfiltered (gdb_stdlog, "displaced: copying svc insn %.8lx\n",
7368 (unsigned long) insn);
7369
7370 dsc->modinsn[0] = insn;
7371
7372 return install_svc (gdbarch, regs, dsc);
7373}
7374
7375static int
7376thumb_copy_svc (struct gdbarch *gdbarch, uint16_t insn,
7377 struct regcache *regs, struct displaced_step_closure *dsc)
7378{
7379
7380 if (debug_displaced)
7381 fprintf_unfiltered (gdb_stdlog, "displaced: copying svc insn %.4x\n",
7382 insn);
bd18283a 7383
34518530
YQ
7384 dsc->modinsn[0] = insn;
7385
7386 return install_svc (gdbarch, regs, dsc);
cca44b1b
JB
7387}
7388
7389/* Copy undefined instructions. */
7390
7391static int
7ff120b4
YQ
7392arm_copy_undef (struct gdbarch *gdbarch, uint32_t insn,
7393 struct displaced_step_closure *dsc)
cca44b1b
JB
7394{
7395 if (debug_displaced)
0963b4bd
MS
7396 fprintf_unfiltered (gdb_stdlog,
7397 "displaced: copying undefined insn %.8lx\n",
cca44b1b
JB
7398 (unsigned long) insn);
7399
7400 dsc->modinsn[0] = insn;
7401
7402 return 0;
7403}
7404
34518530
YQ
7405static int
7406thumb_32bit_copy_undef (struct gdbarch *gdbarch, uint16_t insn1, uint16_t insn2,
7407 struct displaced_step_closure *dsc)
7408{
7409
7410 if (debug_displaced)
7411 fprintf_unfiltered (gdb_stdlog, "displaced: copying undefined insn "
7412 "%.4x %.4x\n", (unsigned short) insn1,
7413 (unsigned short) insn2);
7414
7415 dsc->modinsn[0] = insn1;
7416 dsc->modinsn[1] = insn2;
7417 dsc->numinsns = 2;
7418
7419 return 0;
7420}
7421
cca44b1b
JB
7422/* Copy unpredictable instructions. */
7423
7424static int
7ff120b4
YQ
7425arm_copy_unpred (struct gdbarch *gdbarch, uint32_t insn,
7426 struct displaced_step_closure *dsc)
cca44b1b
JB
7427{
7428 if (debug_displaced)
7429 fprintf_unfiltered (gdb_stdlog, "displaced: copying unpredictable insn "
7430 "%.8lx\n", (unsigned long) insn);
7431
7432 dsc->modinsn[0] = insn;
7433
7434 return 0;
7435}
7436
7437/* The decode_* functions are instruction decoding helpers. They mostly follow
7438 the presentation in the ARM ARM. */
7439
7440static int
7ff120b4
YQ
7441arm_decode_misc_memhint_neon (struct gdbarch *gdbarch, uint32_t insn,
7442 struct regcache *regs,
7443 struct displaced_step_closure *dsc)
cca44b1b
JB
7444{
7445 unsigned int op1 = bits (insn, 20, 26), op2 = bits (insn, 4, 7);
7446 unsigned int rn = bits (insn, 16, 19);
7447
7448 if (op1 == 0x10 && (op2 & 0x2) == 0x0 && (rn & 0xe) == 0x0)
7ff120b4 7449 return arm_copy_unmodified (gdbarch, insn, "cps", dsc);
cca44b1b 7450 else if (op1 == 0x10 && op2 == 0x0 && (rn & 0xe) == 0x1)
7ff120b4 7451 return arm_copy_unmodified (gdbarch, insn, "setend", dsc);
cca44b1b 7452 else if ((op1 & 0x60) == 0x20)
7ff120b4 7453 return arm_copy_unmodified (gdbarch, insn, "neon dataproc", dsc);
cca44b1b 7454 else if ((op1 & 0x71) == 0x40)
7ff120b4
YQ
7455 return arm_copy_unmodified (gdbarch, insn, "neon elt/struct load/store",
7456 dsc);
cca44b1b 7457 else if ((op1 & 0x77) == 0x41)
7ff120b4 7458 return arm_copy_unmodified (gdbarch, insn, "unallocated mem hint", dsc);
cca44b1b 7459 else if ((op1 & 0x77) == 0x45)
7ff120b4 7460 return arm_copy_preload (gdbarch, insn, regs, dsc); /* pli. */
cca44b1b
JB
7461 else if ((op1 & 0x77) == 0x51)
7462 {
7463 if (rn != 0xf)
7ff120b4 7464 return arm_copy_preload (gdbarch, insn, regs, dsc); /* pld/pldw. */
cca44b1b 7465 else
7ff120b4 7466 return arm_copy_unpred (gdbarch, insn, dsc);
cca44b1b
JB
7467 }
7468 else if ((op1 & 0x77) == 0x55)
7ff120b4 7469 return arm_copy_preload (gdbarch, insn, regs, dsc); /* pld/pldw. */
cca44b1b
JB
7470 else if (op1 == 0x57)
7471 switch (op2)
7472 {
7ff120b4
YQ
7473 case 0x1: return arm_copy_unmodified (gdbarch, insn, "clrex", dsc);
7474 case 0x4: return arm_copy_unmodified (gdbarch, insn, "dsb", dsc);
7475 case 0x5: return arm_copy_unmodified (gdbarch, insn, "dmb", dsc);
7476 case 0x6: return arm_copy_unmodified (gdbarch, insn, "isb", dsc);
7477 default: return arm_copy_unpred (gdbarch, insn, dsc);
cca44b1b
JB
7478 }
7479 else if ((op1 & 0x63) == 0x43)
7ff120b4 7480 return arm_copy_unpred (gdbarch, insn, dsc);
cca44b1b
JB
7481 else if ((op2 & 0x1) == 0x0)
7482 switch (op1 & ~0x80)
7483 {
7484 case 0x61:
7ff120b4 7485 return arm_copy_unmodified (gdbarch, insn, "unallocated mem hint", dsc);
cca44b1b 7486 case 0x65:
7ff120b4 7487 return arm_copy_preload_reg (gdbarch, insn, regs, dsc); /* pli reg. */
cca44b1b
JB
7488 case 0x71: case 0x75:
7489 /* pld/pldw reg. */
7ff120b4 7490 return arm_copy_preload_reg (gdbarch, insn, regs, dsc);
cca44b1b 7491 case 0x63: case 0x67: case 0x73: case 0x77:
7ff120b4 7492 return arm_copy_unpred (gdbarch, insn, dsc);
cca44b1b 7493 default:
7ff120b4 7494 return arm_copy_undef (gdbarch, insn, dsc);
cca44b1b
JB
7495 }
7496 else
7ff120b4 7497 return arm_copy_undef (gdbarch, insn, dsc); /* Probably unreachable. */
cca44b1b
JB
7498}
7499
7500static int
7ff120b4
YQ
7501arm_decode_unconditional (struct gdbarch *gdbarch, uint32_t insn,
7502 struct regcache *regs,
7503 struct displaced_step_closure *dsc)
cca44b1b
JB
7504{
7505 if (bit (insn, 27) == 0)
7ff120b4 7506 return arm_decode_misc_memhint_neon (gdbarch, insn, regs, dsc);
cca44b1b
JB
7507 /* Switch on bits: 0bxxxxx321xxx0xxxxxxxxxxxxxxxxxxxx. */
7508 else switch (((insn & 0x7000000) >> 23) | ((insn & 0x100000) >> 20))
7509 {
7510 case 0x0: case 0x2:
7ff120b4 7511 return arm_copy_unmodified (gdbarch, insn, "srs", dsc);
cca44b1b
JB
7512
7513 case 0x1: case 0x3:
7ff120b4 7514 return arm_copy_unmodified (gdbarch, insn, "rfe", dsc);
cca44b1b
JB
7515
7516 case 0x4: case 0x5: case 0x6: case 0x7:
7ff120b4 7517 return arm_copy_b_bl_blx (gdbarch, insn, regs, dsc);
cca44b1b
JB
7518
7519 case 0x8:
7520 switch ((insn & 0xe00000) >> 21)
7521 {
7522 case 0x1: case 0x3: case 0x4: case 0x5: case 0x6: case 0x7:
7523 /* stc/stc2. */
7ff120b4 7524 return arm_copy_copro_load_store (gdbarch, insn, regs, dsc);
cca44b1b
JB
7525
7526 case 0x2:
7ff120b4 7527 return arm_copy_unmodified (gdbarch, insn, "mcrr/mcrr2", dsc);
cca44b1b
JB
7528
7529 default:
7ff120b4 7530 return arm_copy_undef (gdbarch, insn, dsc);
cca44b1b
JB
7531 }
7532
7533 case 0x9:
7534 {
7535 int rn_f = (bits (insn, 16, 19) == 0xf);
7536 switch ((insn & 0xe00000) >> 21)
7537 {
7538 case 0x1: case 0x3:
7539 /* ldc/ldc2 imm (undefined for rn == pc). */
7ff120b4
YQ
7540 return rn_f ? arm_copy_undef (gdbarch, insn, dsc)
7541 : arm_copy_copro_load_store (gdbarch, insn, regs, dsc);
cca44b1b
JB
7542
7543 case 0x2:
7ff120b4 7544 return arm_copy_unmodified (gdbarch, insn, "mrrc/mrrc2", dsc);
cca44b1b
JB
7545
7546 case 0x4: case 0x5: case 0x6: case 0x7:
7547 /* ldc/ldc2 lit (undefined for rn != pc). */
7ff120b4
YQ
7548 return rn_f ? arm_copy_copro_load_store (gdbarch, insn, regs, dsc)
7549 : arm_copy_undef (gdbarch, insn, dsc);
cca44b1b
JB
7550
7551 default:
7ff120b4 7552 return arm_copy_undef (gdbarch, insn, dsc);
cca44b1b
JB
7553 }
7554 }
7555
7556 case 0xa:
7ff120b4 7557 return arm_copy_unmodified (gdbarch, insn, "stc/stc2", dsc);
cca44b1b
JB
7558
7559 case 0xb:
7560 if (bits (insn, 16, 19) == 0xf)
7561 /* ldc/ldc2 lit. */
7ff120b4 7562 return arm_copy_copro_load_store (gdbarch, insn, regs, dsc);
cca44b1b 7563 else
7ff120b4 7564 return arm_copy_undef (gdbarch, insn, dsc);
cca44b1b
JB
7565
7566 case 0xc:
7567 if (bit (insn, 4))
7ff120b4 7568 return arm_copy_unmodified (gdbarch, insn, "mcr/mcr2", dsc);
cca44b1b 7569 else
7ff120b4 7570 return arm_copy_unmodified (gdbarch, insn, "cdp/cdp2", dsc);
cca44b1b
JB
7571
7572 case 0xd:
7573 if (bit (insn, 4))
7ff120b4 7574 return arm_copy_unmodified (gdbarch, insn, "mrc/mrc2", dsc);
cca44b1b 7575 else
7ff120b4 7576 return arm_copy_unmodified (gdbarch, insn, "cdp/cdp2", dsc);
cca44b1b
JB
7577
7578 default:
7ff120b4 7579 return arm_copy_undef (gdbarch, insn, dsc);
cca44b1b
JB
7580 }
7581}
7582
7583/* Decode miscellaneous instructions in dp/misc encoding space. */
7584
7585static int
7ff120b4
YQ
7586arm_decode_miscellaneous (struct gdbarch *gdbarch, uint32_t insn,
7587 struct regcache *regs,
7588 struct displaced_step_closure *dsc)
cca44b1b
JB
7589{
7590 unsigned int op2 = bits (insn, 4, 6);
7591 unsigned int op = bits (insn, 21, 22);
7592 unsigned int op1 = bits (insn, 16, 19);
7593
7594 switch (op2)
7595 {
7596 case 0x0:
7ff120b4 7597 return arm_copy_unmodified (gdbarch, insn, "mrs/msr", dsc);
cca44b1b
JB
7598
7599 case 0x1:
7600 if (op == 0x1) /* bx. */
7ff120b4 7601 return arm_copy_bx_blx_reg (gdbarch, insn, regs, dsc);
cca44b1b 7602 else if (op == 0x3)
7ff120b4 7603 return arm_copy_unmodified (gdbarch, insn, "clz", dsc);
cca44b1b 7604 else
7ff120b4 7605 return arm_copy_undef (gdbarch, insn, dsc);
cca44b1b
JB
7606
7607 case 0x2:
7608 if (op == 0x1)
7609 /* Not really supported. */
7ff120b4 7610 return arm_copy_unmodified (gdbarch, insn, "bxj", dsc);
cca44b1b 7611 else
7ff120b4 7612 return arm_copy_undef (gdbarch, insn, dsc);
cca44b1b
JB
7613
7614 case 0x3:
7615 if (op == 0x1)
7ff120b4 7616 return arm_copy_bx_blx_reg (gdbarch, insn,
0963b4bd 7617 regs, dsc); /* blx register. */
cca44b1b 7618 else
7ff120b4 7619 return arm_copy_undef (gdbarch, insn, dsc);
cca44b1b
JB
7620
7621 case 0x5:
7ff120b4 7622 return arm_copy_unmodified (gdbarch, insn, "saturating add/sub", dsc);
cca44b1b
JB
7623
7624 case 0x7:
7625 if (op == 0x1)
7ff120b4 7626 return arm_copy_unmodified (gdbarch, insn, "bkpt", dsc);
cca44b1b
JB
7627 else if (op == 0x3)
7628 /* Not really supported. */
7ff120b4 7629 return arm_copy_unmodified (gdbarch, insn, "smc", dsc);
cca44b1b
JB
7630
7631 default:
7ff120b4 7632 return arm_copy_undef (gdbarch, insn, dsc);
cca44b1b
JB
7633 }
7634}
7635
7636static int
7ff120b4
YQ
7637arm_decode_dp_misc (struct gdbarch *gdbarch, uint32_t insn,
7638 struct regcache *regs,
7639 struct displaced_step_closure *dsc)
cca44b1b
JB
7640{
7641 if (bit (insn, 25))
7642 switch (bits (insn, 20, 24))
7643 {
7644 case 0x10:
7ff120b4 7645 return arm_copy_unmodified (gdbarch, insn, "movw", dsc);
cca44b1b
JB
7646
7647 case 0x14:
7ff120b4 7648 return arm_copy_unmodified (gdbarch, insn, "movt", dsc);
cca44b1b
JB
7649
7650 case 0x12: case 0x16:
7ff120b4 7651 return arm_copy_unmodified (gdbarch, insn, "msr imm", dsc);
cca44b1b
JB
7652
7653 default:
7ff120b4 7654 return arm_copy_alu_imm (gdbarch, insn, regs, dsc);
cca44b1b
JB
7655 }
7656 else
7657 {
7658 uint32_t op1 = bits (insn, 20, 24), op2 = bits (insn, 4, 7);
7659
7660 if ((op1 & 0x19) != 0x10 && (op2 & 0x1) == 0x0)
7ff120b4 7661 return arm_copy_alu_reg (gdbarch, insn, regs, dsc);
cca44b1b 7662 else if ((op1 & 0x19) != 0x10 && (op2 & 0x9) == 0x1)
7ff120b4 7663 return arm_copy_alu_shifted_reg (gdbarch, insn, regs, dsc);
cca44b1b 7664 else if ((op1 & 0x19) == 0x10 && (op2 & 0x8) == 0x0)
7ff120b4 7665 return arm_decode_miscellaneous (gdbarch, insn, regs, dsc);
cca44b1b 7666 else if ((op1 & 0x19) == 0x10 && (op2 & 0x9) == 0x8)
7ff120b4 7667 return arm_copy_unmodified (gdbarch, insn, "halfword mul/mla", dsc);
cca44b1b 7668 else if ((op1 & 0x10) == 0x00 && op2 == 0x9)
7ff120b4 7669 return arm_copy_unmodified (gdbarch, insn, "mul/mla", dsc);
cca44b1b 7670 else if ((op1 & 0x10) == 0x10 && op2 == 0x9)
7ff120b4 7671 return arm_copy_unmodified (gdbarch, insn, "synch", dsc);
cca44b1b
JB
7672 else if (op2 == 0xb || (op2 & 0xd) == 0xd)
7673 /* 2nd arg means "unpriveleged". */
7ff120b4
YQ
7674 return arm_copy_extra_ld_st (gdbarch, insn, (op1 & 0x12) == 0x02, regs,
7675 dsc);
cca44b1b
JB
7676 }
7677
7678 /* Should be unreachable. */
7679 return 1;
7680}
7681
7682static int
7ff120b4
YQ
7683arm_decode_ld_st_word_ubyte (struct gdbarch *gdbarch, uint32_t insn,
7684 struct regcache *regs,
7685 struct displaced_step_closure *dsc)
cca44b1b
JB
7686{
7687 int a = bit (insn, 25), b = bit (insn, 4);
7688 uint32_t op1 = bits (insn, 20, 24);
7689 int rn_f = bits (insn, 16, 19) == 0xf;
7690
7691 if ((!a && (op1 & 0x05) == 0x00 && (op1 & 0x17) != 0x02)
7692 || (a && (op1 & 0x05) == 0x00 && (op1 & 0x17) != 0x02 && !b))
0f6f04ba 7693 return arm_copy_ldr_str_ldrb_strb (gdbarch, insn, regs, dsc, 0, 4, 0);
cca44b1b
JB
7694 else if ((!a && (op1 & 0x17) == 0x02)
7695 || (a && (op1 & 0x17) == 0x02 && !b))
0f6f04ba 7696 return arm_copy_ldr_str_ldrb_strb (gdbarch, insn, regs, dsc, 0, 4, 1);
cca44b1b
JB
7697 else if ((!a && (op1 & 0x05) == 0x01 && (op1 & 0x17) != 0x03)
7698 || (a && (op1 & 0x05) == 0x01 && (op1 & 0x17) != 0x03 && !b))
0f6f04ba 7699 return arm_copy_ldr_str_ldrb_strb (gdbarch, insn, regs, dsc, 1, 4, 0);
cca44b1b
JB
7700 else if ((!a && (op1 & 0x17) == 0x03)
7701 || (a && (op1 & 0x17) == 0x03 && !b))
0f6f04ba 7702 return arm_copy_ldr_str_ldrb_strb (gdbarch, insn, regs, dsc, 1, 4, 1);
cca44b1b
JB
7703 else if ((!a && (op1 & 0x05) == 0x04 && (op1 & 0x17) != 0x06)
7704 || (a && (op1 & 0x05) == 0x04 && (op1 & 0x17) != 0x06 && !b))
7ff120b4 7705 return arm_copy_ldr_str_ldrb_strb (gdbarch, insn, regs, dsc, 0, 1, 0);
cca44b1b
JB
7706 else if ((!a && (op1 & 0x17) == 0x06)
7707 || (a && (op1 & 0x17) == 0x06 && !b))
7ff120b4 7708 return arm_copy_ldr_str_ldrb_strb (gdbarch, insn, regs, dsc, 0, 1, 1);
cca44b1b
JB
7709 else if ((!a && (op1 & 0x05) == 0x05 && (op1 & 0x17) != 0x07)
7710 || (a && (op1 & 0x05) == 0x05 && (op1 & 0x17) != 0x07 && !b))
7ff120b4 7711 return arm_copy_ldr_str_ldrb_strb (gdbarch, insn, regs, dsc, 1, 1, 0);
cca44b1b
JB
7712 else if ((!a && (op1 & 0x17) == 0x07)
7713 || (a && (op1 & 0x17) == 0x07 && !b))
7ff120b4 7714 return arm_copy_ldr_str_ldrb_strb (gdbarch, insn, regs, dsc, 1, 1, 1);
cca44b1b
JB
7715
7716 /* Should be unreachable. */
7717 return 1;
7718}
7719
7720static int
7ff120b4
YQ
7721arm_decode_media (struct gdbarch *gdbarch, uint32_t insn,
7722 struct displaced_step_closure *dsc)
cca44b1b
JB
7723{
7724 switch (bits (insn, 20, 24))
7725 {
7726 case 0x00: case 0x01: case 0x02: case 0x03:
7ff120b4 7727 return arm_copy_unmodified (gdbarch, insn, "parallel add/sub signed", dsc);
cca44b1b
JB
7728
7729 case 0x04: case 0x05: case 0x06: case 0x07:
7ff120b4 7730 return arm_copy_unmodified (gdbarch, insn, "parallel add/sub unsigned", dsc);
cca44b1b
JB
7731
7732 case 0x08: case 0x09: case 0x0a: case 0x0b:
7733 case 0x0c: case 0x0d: case 0x0e: case 0x0f:
7ff120b4 7734 return arm_copy_unmodified (gdbarch, insn,
cca44b1b
JB
7735 "decode/pack/unpack/saturate/reverse", dsc);
7736
7737 case 0x18:
7738 if (bits (insn, 5, 7) == 0) /* op2. */
7739 {
7740 if (bits (insn, 12, 15) == 0xf)
7ff120b4 7741 return arm_copy_unmodified (gdbarch, insn, "usad8", dsc);
cca44b1b 7742 else
7ff120b4 7743 return arm_copy_unmodified (gdbarch, insn, "usada8", dsc);
cca44b1b
JB
7744 }
7745 else
7ff120b4 7746 return arm_copy_undef (gdbarch, insn, dsc);
cca44b1b
JB
7747
7748 case 0x1a: case 0x1b:
7749 if (bits (insn, 5, 6) == 0x2) /* op2[1:0]. */
7ff120b4 7750 return arm_copy_unmodified (gdbarch, insn, "sbfx", dsc);
cca44b1b 7751 else
7ff120b4 7752 return arm_copy_undef (gdbarch, insn, dsc);
cca44b1b
JB
7753
7754 case 0x1c: case 0x1d:
7755 if (bits (insn, 5, 6) == 0x0) /* op2[1:0]. */
7756 {
7757 if (bits (insn, 0, 3) == 0xf)
7ff120b4 7758 return arm_copy_unmodified (gdbarch, insn, "bfc", dsc);
cca44b1b 7759 else
7ff120b4 7760 return arm_copy_unmodified (gdbarch, insn, "bfi", dsc);
cca44b1b
JB
7761 }
7762 else
7ff120b4 7763 return arm_copy_undef (gdbarch, insn, dsc);
cca44b1b
JB
7764
7765 case 0x1e: case 0x1f:
7766 if (bits (insn, 5, 6) == 0x2) /* op2[1:0]. */
7ff120b4 7767 return arm_copy_unmodified (gdbarch, insn, "ubfx", dsc);
cca44b1b 7768 else
7ff120b4 7769 return arm_copy_undef (gdbarch, insn, dsc);
cca44b1b
JB
7770 }
7771
7772 /* Should be unreachable. */
7773 return 1;
7774}
7775
7776static int
7ff120b4
YQ
7777arm_decode_b_bl_ldmstm (struct gdbarch *gdbarch, int32_t insn,
7778 struct regcache *regs,
7779 struct displaced_step_closure *dsc)
cca44b1b
JB
7780{
7781 if (bit (insn, 25))
7ff120b4 7782 return arm_copy_b_bl_blx (gdbarch, insn, regs, dsc);
cca44b1b 7783 else
7ff120b4 7784 return arm_copy_block_xfer (gdbarch, insn, regs, dsc);
cca44b1b
JB
7785}
7786
7787static int
7ff120b4
YQ
7788arm_decode_ext_reg_ld_st (struct gdbarch *gdbarch, uint32_t insn,
7789 struct regcache *regs,
7790 struct displaced_step_closure *dsc)
cca44b1b
JB
7791{
7792 unsigned int opcode = bits (insn, 20, 24);
7793
7794 switch (opcode)
7795 {
7796 case 0x04: case 0x05: /* VFP/Neon mrrc/mcrr. */
7ff120b4 7797 return arm_copy_unmodified (gdbarch, insn, "vfp/neon mrrc/mcrr", dsc);
cca44b1b
JB
7798
7799 case 0x08: case 0x0a: case 0x0c: case 0x0e:
7800 case 0x12: case 0x16:
7ff120b4 7801 return arm_copy_unmodified (gdbarch, insn, "vfp/neon vstm/vpush", dsc);
cca44b1b
JB
7802
7803 case 0x09: case 0x0b: case 0x0d: case 0x0f:
7804 case 0x13: case 0x17:
7ff120b4 7805 return arm_copy_unmodified (gdbarch, insn, "vfp/neon vldm/vpop", dsc);
cca44b1b
JB
7806
7807 case 0x10: case 0x14: case 0x18: case 0x1c: /* vstr. */
7808 case 0x11: case 0x15: case 0x19: case 0x1d: /* vldr. */
7809 /* Note: no writeback for these instructions. Bit 25 will always be
7810 zero though (via caller), so the following works OK. */
7ff120b4 7811 return arm_copy_copro_load_store (gdbarch, insn, regs, dsc);
cca44b1b
JB
7812 }
7813
7814 /* Should be unreachable. */
7815 return 1;
7816}
7817
34518530
YQ
7818/* Decode shifted register instructions. */
7819
7820static int
7821thumb2_decode_dp_shift_reg (struct gdbarch *gdbarch, uint16_t insn1,
7822 uint16_t insn2, struct regcache *regs,
7823 struct displaced_step_closure *dsc)
7824{
7825 /* PC is only allowed to be used in instruction MOV. */
7826
7827 unsigned int op = bits (insn1, 5, 8);
7828 unsigned int rn = bits (insn1, 0, 3);
7829
7830 if (op == 0x2 && rn == 0xf) /* MOV */
7831 return thumb2_copy_alu_imm (gdbarch, insn1, insn2, regs, dsc);
7832 else
7833 return thumb_copy_unmodified_32bit (gdbarch, insn1, insn2,
7834 "dp (shift reg)", dsc);
7835}
7836
7837
7838/* Decode extension register load/store. Exactly the same as
7839 arm_decode_ext_reg_ld_st. */
7840
7841static int
7842thumb2_decode_ext_reg_ld_st (struct gdbarch *gdbarch, uint16_t insn1,
7843 uint16_t insn2, struct regcache *regs,
7844 struct displaced_step_closure *dsc)
7845{
7846 unsigned int opcode = bits (insn1, 4, 8);
7847
7848 switch (opcode)
7849 {
7850 case 0x04: case 0x05:
7851 return thumb_copy_unmodified_32bit (gdbarch, insn1, insn2,
7852 "vfp/neon vmov", dsc);
7853
7854 case 0x08: case 0x0c: /* 01x00 */
7855 case 0x0a: case 0x0e: /* 01x10 */
7856 case 0x12: case 0x16: /* 10x10 */
7857 return thumb_copy_unmodified_32bit (gdbarch, insn1, insn2,
7858 "vfp/neon vstm/vpush", dsc);
7859
7860 case 0x09: case 0x0d: /* 01x01 */
7861 case 0x0b: case 0x0f: /* 01x11 */
7862 case 0x13: case 0x17: /* 10x11 */
7863 return thumb_copy_unmodified_32bit (gdbarch, insn1, insn2,
7864 "vfp/neon vldm/vpop", dsc);
7865
7866 case 0x10: case 0x14: case 0x18: case 0x1c: /* vstr. */
7867 return thumb_copy_unmodified_32bit (gdbarch, insn1, insn2,
7868 "vstr", dsc);
7869 case 0x11: case 0x15: case 0x19: case 0x1d: /* vldr. */
7870 return thumb2_copy_copro_load_store (gdbarch, insn1, insn2, regs, dsc);
7871 }
7872
7873 /* Should be unreachable. */
7874 return 1;
7875}
7876
cca44b1b 7877static int
7ff120b4
YQ
7878arm_decode_svc_copro (struct gdbarch *gdbarch, uint32_t insn, CORE_ADDR to,
7879 struct regcache *regs, struct displaced_step_closure *dsc)
cca44b1b
JB
7880{
7881 unsigned int op1 = bits (insn, 20, 25);
7882 int op = bit (insn, 4);
7883 unsigned int coproc = bits (insn, 8, 11);
7884 unsigned int rn = bits (insn, 16, 19);
7885
7886 if ((op1 & 0x20) == 0x00 && (op1 & 0x3a) != 0x00 && (coproc & 0xe) == 0xa)
7ff120b4 7887 return arm_decode_ext_reg_ld_st (gdbarch, insn, regs, dsc);
cca44b1b
JB
7888 else if ((op1 & 0x21) == 0x00 && (op1 & 0x3a) != 0x00
7889 && (coproc & 0xe) != 0xa)
7890 /* stc/stc2. */
7ff120b4 7891 return arm_copy_copro_load_store (gdbarch, insn, regs, dsc);
cca44b1b
JB
7892 else if ((op1 & 0x21) == 0x01 && (op1 & 0x3a) != 0x00
7893 && (coproc & 0xe) != 0xa)
7894 /* ldc/ldc2 imm/lit. */
7ff120b4 7895 return arm_copy_copro_load_store (gdbarch, insn, regs, dsc);
cca44b1b 7896 else if ((op1 & 0x3e) == 0x00)
7ff120b4 7897 return arm_copy_undef (gdbarch, insn, dsc);
cca44b1b 7898 else if ((op1 & 0x3e) == 0x04 && (coproc & 0xe) == 0xa)
7ff120b4 7899 return arm_copy_unmodified (gdbarch, insn, "neon 64bit xfer", dsc);
cca44b1b 7900 else if (op1 == 0x04 && (coproc & 0xe) != 0xa)
7ff120b4 7901 return arm_copy_unmodified (gdbarch, insn, "mcrr/mcrr2", dsc);
cca44b1b 7902 else if (op1 == 0x05 && (coproc & 0xe) != 0xa)
7ff120b4 7903 return arm_copy_unmodified (gdbarch, insn, "mrrc/mrrc2", dsc);
cca44b1b
JB
7904 else if ((op1 & 0x30) == 0x20 && !op)
7905 {
7906 if ((coproc & 0xe) == 0xa)
7ff120b4 7907 return arm_copy_unmodified (gdbarch, insn, "vfp dataproc", dsc);
cca44b1b 7908 else
7ff120b4 7909 return arm_copy_unmodified (gdbarch, insn, "cdp/cdp2", dsc);
cca44b1b
JB
7910 }
7911 else if ((op1 & 0x30) == 0x20 && op)
7ff120b4 7912 return arm_copy_unmodified (gdbarch, insn, "neon 8/16/32 bit xfer", dsc);
cca44b1b 7913 else if ((op1 & 0x31) == 0x20 && op && (coproc & 0xe) != 0xa)
7ff120b4 7914 return arm_copy_unmodified (gdbarch, insn, "mcr/mcr2", dsc);
cca44b1b 7915 else if ((op1 & 0x31) == 0x21 && op && (coproc & 0xe) != 0xa)
7ff120b4 7916 return arm_copy_unmodified (gdbarch, insn, "mrc/mrc2", dsc);
cca44b1b 7917 else if ((op1 & 0x30) == 0x30)
7ff120b4 7918 return arm_copy_svc (gdbarch, insn, regs, dsc);
cca44b1b 7919 else
7ff120b4 7920 return arm_copy_undef (gdbarch, insn, dsc); /* Possibly unreachable. */
cca44b1b
JB
7921}
7922
34518530
YQ
7923static int
7924thumb2_decode_svc_copro (struct gdbarch *gdbarch, uint16_t insn1,
7925 uint16_t insn2, struct regcache *regs,
7926 struct displaced_step_closure *dsc)
7927{
7928 unsigned int coproc = bits (insn2, 8, 11);
7929 unsigned int op1 = bits (insn1, 4, 9);
7930 unsigned int bit_5_8 = bits (insn1, 5, 8);
7931 unsigned int bit_9 = bit (insn1, 9);
7932 unsigned int bit_4 = bit (insn1, 4);
7933 unsigned int rn = bits (insn1, 0, 3);
7934
7935 if (bit_9 == 0)
7936 {
7937 if (bit_5_8 == 2)
7938 return thumb_copy_unmodified_32bit (gdbarch, insn1, insn2,
7939 "neon 64bit xfer/mrrc/mrrc2/mcrr/mcrr2",
7940 dsc);
7941 else if (bit_5_8 == 0) /* UNDEFINED. */
7942 return thumb_32bit_copy_undef (gdbarch, insn1, insn2, dsc);
7943 else
7944 {
7945 /*coproc is 101x. SIMD/VFP, ext registers load/store. */
7946 if ((coproc & 0xe) == 0xa)
7947 return thumb2_decode_ext_reg_ld_st (gdbarch, insn1, insn2, regs,
7948 dsc);
7949 else /* coproc is not 101x. */
7950 {
7951 if (bit_4 == 0) /* STC/STC2. */
7952 return thumb_copy_unmodified_32bit (gdbarch, insn1, insn2,
7953 "stc/stc2", dsc);
7954 else /* LDC/LDC2 {literal, immeidate}. */
7955 return thumb2_copy_copro_load_store (gdbarch, insn1, insn2,
7956 regs, dsc);
7957 }
7958 }
7959 }
7960 else
7961 return thumb_copy_unmodified_32bit (gdbarch, insn1, insn2, "coproc", dsc);
7962
7963 return 0;
7964}
7965
7966static void
7967install_pc_relative (struct gdbarch *gdbarch, struct regcache *regs,
7968 struct displaced_step_closure *dsc, int rd)
7969{
7970 /* ADR Rd, #imm
7971
7972 Rewrite as:
7973
7974 Preparation: Rd <- PC
7975 Insn: ADD Rd, #imm
7976 Cleanup: Null.
7977 */
7978
7979 /* Rd <- PC */
7980 int val = displaced_read_reg (regs, dsc, ARM_PC_REGNUM);
7981 displaced_write_reg (regs, dsc, rd, val, CANNOT_WRITE_PC);
7982}
7983
7984static int
7985thumb_copy_pc_relative_16bit (struct gdbarch *gdbarch, struct regcache *regs,
7986 struct displaced_step_closure *dsc,
7987 int rd, unsigned int imm)
7988{
7989
7990 /* Encoding T2: ADDS Rd, #imm */
7991 dsc->modinsn[0] = (0x3000 | (rd << 8) | imm);
7992
7993 install_pc_relative (gdbarch, regs, dsc, rd);
7994
7995 return 0;
7996}
7997
7998static int
7999thumb_decode_pc_relative_16bit (struct gdbarch *gdbarch, uint16_t insn,
8000 struct regcache *regs,
8001 struct displaced_step_closure *dsc)
8002{
8003 unsigned int rd = bits (insn, 8, 10);
8004 unsigned int imm8 = bits (insn, 0, 7);
8005
8006 if (debug_displaced)
8007 fprintf_unfiltered (gdb_stdlog,
8008 "displaced: copying thumb adr r%d, #%d insn %.4x\n",
8009 rd, imm8, insn);
8010
8011 return thumb_copy_pc_relative_16bit (gdbarch, regs, dsc, rd, imm8);
8012}
8013
8014static int
8015thumb_copy_pc_relative_32bit (struct gdbarch *gdbarch, uint16_t insn1,
8016 uint16_t insn2, struct regcache *regs,
8017 struct displaced_step_closure *dsc)
8018{
8019 unsigned int rd = bits (insn2, 8, 11);
8020 /* Since immediate has the same encoding in ADR ADD and SUB, so we simply
8021 extract raw immediate encoding rather than computing immediate. When
8022 generating ADD or SUB instruction, we can simply perform OR operation to
8023 set immediate into ADD. */
8024 unsigned int imm_3_8 = insn2 & 0x70ff;
8025 unsigned int imm_i = insn1 & 0x0400; /* Clear all bits except bit 10. */
8026
8027 if (debug_displaced)
8028 fprintf_unfiltered (gdb_stdlog,
8029 "displaced: copying thumb adr r%d, #%d:%d insn %.4x%.4x\n",
8030 rd, imm_i, imm_3_8, insn1, insn2);
8031
8032 if (bit (insn1, 7)) /* Encoding T2 */
8033 {
8034 /* Encoding T3: SUB Rd, Rd, #imm */
8035 dsc->modinsn[0] = (0xf1a0 | rd | imm_i);
8036 dsc->modinsn[1] = ((rd << 8) | imm_3_8);
8037 }
8038 else /* Encoding T3 */
8039 {
8040 /* Encoding T3: ADD Rd, Rd, #imm */
8041 dsc->modinsn[0] = (0xf100 | rd | imm_i);
8042 dsc->modinsn[1] = ((rd << 8) | imm_3_8);
8043 }
8044 dsc->numinsns = 2;
8045
8046 install_pc_relative (gdbarch, regs, dsc, rd);
8047
8048 return 0;
8049}
8050
8051static int
8052thumb_copy_16bit_ldr_literal (struct gdbarch *gdbarch, unsigned short insn1,
8053 struct regcache *regs,
8054 struct displaced_step_closure *dsc)
8055{
8056 unsigned int rt = bits (insn1, 8, 10);
8057 unsigned int pc;
8058 int imm8 = (bits (insn1, 0, 7) << 2);
8059 CORE_ADDR from = dsc->insn_addr;
8060
8061 /* LDR Rd, #imm8
8062
8063 Rwrite as:
8064
8065 Preparation: tmp0 <- R0, tmp2 <- R2, tmp3 <- R3, R2 <- PC, R3 <- #imm8;
8066
8067 Insn: LDR R0, [R2, R3];
8068 Cleanup: R2 <- tmp2, R3 <- tmp3, Rd <- R0, R0 <- tmp0 */
8069
8070 if (debug_displaced)
8071 fprintf_unfiltered (gdb_stdlog,
8072 "displaced: copying thumb ldr r%d [pc #%d]\n"
8073 , rt, imm8);
8074
8075 dsc->tmp[0] = displaced_read_reg (regs, dsc, 0);
8076 dsc->tmp[2] = displaced_read_reg (regs, dsc, 2);
8077 dsc->tmp[3] = displaced_read_reg (regs, dsc, 3);
8078 pc = displaced_read_reg (regs, dsc, ARM_PC_REGNUM);
8079 /* The assembler calculates the required value of the offset from the
8080 Align(PC,4) value of this instruction to the label. */
8081 pc = pc & 0xfffffffc;
8082
8083 displaced_write_reg (regs, dsc, 2, pc, CANNOT_WRITE_PC);
8084 displaced_write_reg (regs, dsc, 3, imm8, CANNOT_WRITE_PC);
8085
8086 dsc->rd = rt;
8087 dsc->u.ldst.xfersize = 4;
8088 dsc->u.ldst.rn = 0;
8089 dsc->u.ldst.immed = 0;
8090 dsc->u.ldst.writeback = 0;
8091 dsc->u.ldst.restore_r4 = 0;
8092
8093 dsc->modinsn[0] = 0x58d0; /* ldr r0, [r2, r3]*/
8094
8095 dsc->cleanup = &cleanup_load;
8096
8097 return 0;
8098}
8099
8100/* Copy Thumb cbnz/cbz insruction. */
8101
8102static int
8103thumb_copy_cbnz_cbz (struct gdbarch *gdbarch, uint16_t insn1,
8104 struct regcache *regs,
8105 struct displaced_step_closure *dsc)
8106{
8107 int non_zero = bit (insn1, 11);
8108 unsigned int imm5 = (bit (insn1, 9) << 6) | (bits (insn1, 3, 7) << 1);
8109 CORE_ADDR from = dsc->insn_addr;
8110 int rn = bits (insn1, 0, 2);
8111 int rn_val = displaced_read_reg (regs, dsc, rn);
8112
8113 dsc->u.branch.cond = (rn_val && non_zero) || (!rn_val && !non_zero);
8114 /* CBNZ and CBZ do not affect the condition flags. If condition is true,
8115 set it INST_AL, so cleanup_branch will know branch is taken, otherwise,
8116 condition is false, let it be, cleanup_branch will do nothing. */
8117 if (dsc->u.branch.cond)
8118 {
8119 dsc->u.branch.cond = INST_AL;
8120 dsc->u.branch.dest = from + 4 + imm5;
8121 }
8122 else
8123 dsc->u.branch.dest = from + 2;
8124
8125 dsc->u.branch.link = 0;
8126 dsc->u.branch.exchange = 0;
8127
8128 if (debug_displaced)
8129 fprintf_unfiltered (gdb_stdlog, "displaced: copying %s [r%d = 0x%x]"
8130 " insn %.4x to %.8lx\n", non_zero ? "cbnz" : "cbz",
8131 rn, rn_val, insn1, dsc->u.branch.dest);
8132
8133 dsc->modinsn[0] = THUMB_NOP;
8134
8135 dsc->cleanup = &cleanup_branch;
8136 return 0;
8137}
8138
8139/* Copy Table Branch Byte/Halfword */
8140static int
8141thumb2_copy_table_branch (struct gdbarch *gdbarch, uint16_t insn1,
8142 uint16_t insn2, struct regcache *regs,
8143 struct displaced_step_closure *dsc)
8144{
8145 ULONGEST rn_val, rm_val;
8146 int is_tbh = bit (insn2, 4);
8147 CORE_ADDR halfwords = 0;
8148 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
8149
8150 rn_val = displaced_read_reg (regs, dsc, bits (insn1, 0, 3));
8151 rm_val = displaced_read_reg (regs, dsc, bits (insn2, 0, 3));
8152
8153 if (is_tbh)
8154 {
8155 gdb_byte buf[2];
8156
8157 target_read_memory (rn_val + 2 * rm_val, buf, 2);
8158 halfwords = extract_unsigned_integer (buf, 2, byte_order);
8159 }
8160 else
8161 {
8162 gdb_byte buf[1];
8163
8164 target_read_memory (rn_val + rm_val, buf, 1);
8165 halfwords = extract_unsigned_integer (buf, 1, byte_order);
8166 }
8167
8168 if (debug_displaced)
8169 fprintf_unfiltered (gdb_stdlog, "displaced: %s base 0x%x offset 0x%x"
8170 " offset 0x%x\n", is_tbh ? "tbh" : "tbb",
8171 (unsigned int) rn_val, (unsigned int) rm_val,
8172 (unsigned int) halfwords);
8173
8174 dsc->u.branch.cond = INST_AL;
8175 dsc->u.branch.link = 0;
8176 dsc->u.branch.exchange = 0;
8177 dsc->u.branch.dest = dsc->insn_addr + 4 + 2 * halfwords;
8178
8179 dsc->cleanup = &cleanup_branch;
8180
8181 return 0;
8182}
8183
8184static void
8185cleanup_pop_pc_16bit_all (struct gdbarch *gdbarch, struct regcache *regs,
8186 struct displaced_step_closure *dsc)
8187{
8188 /* PC <- r7 */
8189 int val = displaced_read_reg (regs, dsc, 7);
8190 displaced_write_reg (regs, dsc, ARM_PC_REGNUM, val, BX_WRITE_PC);
8191
8192 /* r7 <- r8 */
8193 val = displaced_read_reg (regs, dsc, 8);
8194 displaced_write_reg (regs, dsc, 7, val, CANNOT_WRITE_PC);
8195
8196 /* r8 <- tmp[0] */
8197 displaced_write_reg (regs, dsc, 8, dsc->tmp[0], CANNOT_WRITE_PC);
8198
8199}
8200
8201static int
8202thumb_copy_pop_pc_16bit (struct gdbarch *gdbarch, unsigned short insn1,
8203 struct regcache *regs,
8204 struct displaced_step_closure *dsc)
8205{
8206 dsc->u.block.regmask = insn1 & 0x00ff;
8207
8208 /* Rewrite instruction: POP {rX, rY, ...,rZ, PC}
8209 to :
8210
8211 (1) register list is full, that is, r0-r7 are used.
8212 Prepare: tmp[0] <- r8
8213
8214 POP {r0, r1, ...., r6, r7}; remove PC from reglist
8215 MOV r8, r7; Move value of r7 to r8;
8216 POP {r7}; Store PC value into r7.
8217
8218 Cleanup: PC <- r7, r7 <- r8, r8 <-tmp[0]
8219
8220 (2) register list is not full, supposing there are N registers in
8221 register list (except PC, 0 <= N <= 7).
8222 Prepare: for each i, 0 - N, tmp[i] <- ri.
8223
8224 POP {r0, r1, ...., rN};
8225
8226 Cleanup: Set registers in original reglist from r0 - rN. Restore r0 - rN
8227 from tmp[] properly.
8228 */
8229 if (debug_displaced)
8230 fprintf_unfiltered (gdb_stdlog,
8231 "displaced: copying thumb pop {%.8x, pc} insn %.4x\n",
8232 dsc->u.block.regmask, insn1);
8233
8234 if (dsc->u.block.regmask == 0xff)
8235 {
8236 dsc->tmp[0] = displaced_read_reg (regs, dsc, 8);
8237
8238 dsc->modinsn[0] = (insn1 & 0xfeff); /* POP {r0,r1,...,r6, r7} */
8239 dsc->modinsn[1] = 0x46b8; /* MOV r8, r7 */
8240 dsc->modinsn[2] = 0xbc80; /* POP {r7} */
8241
8242 dsc->numinsns = 3;
8243 dsc->cleanup = &cleanup_pop_pc_16bit_all;
8244 }
8245 else
8246 {
8247 unsigned int num_in_list = bitcount (dsc->u.block.regmask);
8248 unsigned int new_regmask, bit = 1;
8249 unsigned int to = 0, from = 0, i, new_rn;
8250
8251 for (i = 0; i < num_in_list + 1; i++)
8252 dsc->tmp[i] = displaced_read_reg (regs, dsc, i);
8253
8254 new_regmask = (1 << (num_in_list + 1)) - 1;
8255
8256 if (debug_displaced)
8257 fprintf_unfiltered (gdb_stdlog, _("displaced: POP "
8258 "{..., pc}: original reg list %.4x,"
8259 " modified list %.4x\n"),
8260 (int) dsc->u.block.regmask, new_regmask);
8261
8262 dsc->u.block.regmask |= 0x8000;
8263 dsc->u.block.writeback = 0;
8264 dsc->u.block.cond = INST_AL;
8265
8266 dsc->modinsn[0] = (insn1 & ~0x1ff) | (new_regmask & 0xff);
8267
8268 dsc->cleanup = &cleanup_block_load_pc;
8269 }
8270
8271 return 0;
8272}
8273
8274static void
8275thumb_process_displaced_16bit_insn (struct gdbarch *gdbarch, uint16_t insn1,
8276 struct regcache *regs,
8277 struct displaced_step_closure *dsc)
8278{
8279 unsigned short op_bit_12_15 = bits (insn1, 12, 15);
8280 unsigned short op_bit_10_11 = bits (insn1, 10, 11);
8281 int err = 0;
8282
8283 /* 16-bit thumb instructions. */
8284 switch (op_bit_12_15)
8285 {
8286 /* Shift (imme), add, subtract, move and compare. */
8287 case 0: case 1: case 2: case 3:
8288 err = thumb_copy_unmodified_16bit (gdbarch, insn1,
8289 "shift/add/sub/mov/cmp",
8290 dsc);
8291 break;
8292 case 4:
8293 switch (op_bit_10_11)
8294 {
8295 case 0: /* Data-processing */
8296 err = thumb_copy_unmodified_16bit (gdbarch, insn1,
8297 "data-processing",
8298 dsc);
8299 break;
8300 case 1: /* Special data instructions and branch and exchange. */
8301 {
8302 unsigned short op = bits (insn1, 7, 9);
8303 if (op == 6 || op == 7) /* BX or BLX */
8304 err = thumb_copy_bx_blx_reg (gdbarch, insn1, regs, dsc);
8305 else if (bits (insn1, 6, 7) != 0) /* ADD/MOV/CMP high registers. */
8306 err = thumb_copy_alu_reg (gdbarch, insn1, regs, dsc);
8307 else
8308 err = thumb_copy_unmodified_16bit (gdbarch, insn1, "special data",
8309 dsc);
8310 }
8311 break;
8312 default: /* LDR (literal) */
8313 err = thumb_copy_16bit_ldr_literal (gdbarch, insn1, regs, dsc);
8314 }
8315 break;
8316 case 5: case 6: case 7: case 8: case 9: /* Load/Store single data item */
8317 err = thumb_copy_unmodified_16bit (gdbarch, insn1, "ldr/str", dsc);
8318 break;
8319 case 10:
8320 if (op_bit_10_11 < 2) /* Generate PC-relative address */
8321 err = thumb_decode_pc_relative_16bit (gdbarch, insn1, regs, dsc);
8322 else /* Generate SP-relative address */
8323 err = thumb_copy_unmodified_16bit (gdbarch, insn1, "sp-relative", dsc);
8324 break;
8325 case 11: /* Misc 16-bit instructions */
8326 {
8327 switch (bits (insn1, 8, 11))
8328 {
8329 case 1: case 3: case 9: case 11: /* CBNZ, CBZ */
8330 err = thumb_copy_cbnz_cbz (gdbarch, insn1, regs, dsc);
8331 break;
8332 case 12: case 13: /* POP */
8333 if (bit (insn1, 8)) /* PC is in register list. */
8334 err = thumb_copy_pop_pc_16bit (gdbarch, insn1, regs, dsc);
8335 else
8336 err = thumb_copy_unmodified_16bit (gdbarch, insn1, "pop", dsc);
8337 break;
8338 case 15: /* If-Then, and hints */
8339 if (bits (insn1, 0, 3))
8340 /* If-Then makes up to four following instructions conditional.
8341 IT instruction itself is not conditional, so handle it as a
8342 common unmodified instruction. */
8343 err = thumb_copy_unmodified_16bit (gdbarch, insn1, "If-Then",
8344 dsc);
8345 else
8346 err = thumb_copy_unmodified_16bit (gdbarch, insn1, "hints", dsc);
8347 break;
8348 default:
8349 err = thumb_copy_unmodified_16bit (gdbarch, insn1, "misc", dsc);
8350 }
8351 }
8352 break;
8353 case 12:
8354 if (op_bit_10_11 < 2) /* Store multiple registers */
8355 err = thumb_copy_unmodified_16bit (gdbarch, insn1, "stm", dsc);
8356 else /* Load multiple registers */
8357 err = thumb_copy_unmodified_16bit (gdbarch, insn1, "ldm", dsc);
8358 break;
8359 case 13: /* Conditional branch and supervisor call */
8360 if (bits (insn1, 9, 11) != 7) /* conditional branch */
8361 err = thumb_copy_b (gdbarch, insn1, dsc);
8362 else
8363 err = thumb_copy_svc (gdbarch, insn1, regs, dsc);
8364 break;
8365 case 14: /* Unconditional branch */
8366 err = thumb_copy_b (gdbarch, insn1, dsc);
8367 break;
8368 default:
8369 err = 1;
8370 }
8371
8372 if (err)
8373 internal_error (__FILE__, __LINE__,
8374 _("thumb_process_displaced_16bit_insn: Instruction decode error"));
8375}
8376
8377static int
8378decode_thumb_32bit_ld_mem_hints (struct gdbarch *gdbarch,
8379 uint16_t insn1, uint16_t insn2,
8380 struct regcache *regs,
8381 struct displaced_step_closure *dsc)
8382{
8383 int rt = bits (insn2, 12, 15);
8384 int rn = bits (insn1, 0, 3);
8385 int op1 = bits (insn1, 7, 8);
8386 int err = 0;
8387
8388 switch (bits (insn1, 5, 6))
8389 {
8390 case 0: /* Load byte and memory hints */
8391 if (rt == 0xf) /* PLD/PLI */
8392 {
8393 if (rn == 0xf)
8394 /* PLD literal or Encoding T3 of PLI(immediate, literal). */
8395 return thumb2_copy_preload (gdbarch, insn1, insn2, regs, dsc);
8396 else
8397 return thumb_copy_unmodified_32bit (gdbarch, insn1, insn2,
8398 "pli/pld", dsc);
8399 }
8400 else
8401 {
8402 if (rn == 0xf) /* LDRB/LDRSB (literal) */
8403 return thumb2_copy_load_literal (gdbarch, insn1, insn2, regs, dsc,
8404 1);
8405 else
8406 return thumb_copy_unmodified_32bit (gdbarch, insn1, insn2,
8407 "ldrb{reg, immediate}/ldrbt",
8408 dsc);
8409 }
8410
8411 break;
8412 case 1: /* Load halfword and memory hints. */
8413 if (rt == 0xf) /* PLD{W} and Unalloc memory hint. */
8414 return thumb_copy_unmodified_32bit (gdbarch, insn1, insn2,
8415 "pld/unalloc memhint", dsc);
8416 else
8417 {
8418 if (rn == 0xf)
8419 return thumb2_copy_load_literal (gdbarch, insn1, insn2, regs, dsc,
8420 2);
8421 else
8422 return thumb_copy_unmodified_32bit (gdbarch, insn1, insn2,
8423 "ldrh/ldrht", dsc);
8424 }
8425 break;
8426 case 2: /* Load word */
8427 {
8428 int insn2_bit_8_11 = bits (insn2, 8, 11);
8429
8430 if (rn == 0xf)
8431 return thumb2_copy_load_literal (gdbarch, insn1, insn2, regs, dsc, 4);
8432 else if (op1 == 0x1) /* Encoding T3 */
8433 return thumb2_copy_load_reg_imm (gdbarch, insn1, insn2, regs, dsc,
8434 0, 1);
8435 else /* op1 == 0x0 */
8436 {
8437 if (insn2_bit_8_11 == 0xc || (insn2_bit_8_11 & 0x9) == 0x9)
8438 /* LDR (immediate) */
8439 return thumb2_copy_load_reg_imm (gdbarch, insn1, insn2, regs,
8440 dsc, bit (insn2, 8), 1);
8441 else if (insn2_bit_8_11 == 0xe) /* LDRT */
8442 return thumb_copy_unmodified_32bit (gdbarch, insn1, insn2,
8443 "ldrt", dsc);
8444 else
8445 /* LDR (register) */
8446 return thumb2_copy_load_reg_imm (gdbarch, insn1, insn2, regs,
8447 dsc, 0, 0);
8448 }
8449 break;
8450 }
8451 default:
8452 return thumb_32bit_copy_undef (gdbarch, insn1, insn2, dsc);
8453 break;
8454 }
8455 return 0;
8456}
8457
8458static void
8459thumb_process_displaced_32bit_insn (struct gdbarch *gdbarch, uint16_t insn1,
8460 uint16_t insn2, struct regcache *regs,
8461 struct displaced_step_closure *dsc)
8462{
8463 int err = 0;
8464 unsigned short op = bit (insn2, 15);
8465 unsigned int op1 = bits (insn1, 11, 12);
8466
8467 switch (op1)
8468 {
8469 case 1:
8470 {
8471 switch (bits (insn1, 9, 10))
8472 {
8473 case 0:
8474 if (bit (insn1, 6))
8475 {
8476 /* Load/store {dual, execlusive}, table branch. */
8477 if (bits (insn1, 7, 8) == 1 && bits (insn1, 4, 5) == 1
8478 && bits (insn2, 5, 7) == 0)
8479 err = thumb2_copy_table_branch (gdbarch, insn1, insn2, regs,
8480 dsc);
8481 else
8482 /* PC is not allowed to use in load/store {dual, exclusive}
8483 instructions. */
8484 err = thumb_copy_unmodified_32bit (gdbarch, insn1, insn2,
8485 "load/store dual/ex", dsc);
8486 }
8487 else /* load/store multiple */
8488 {
8489 switch (bits (insn1, 7, 8))
8490 {
8491 case 0: case 3: /* SRS, RFE */
8492 err = thumb_copy_unmodified_32bit (gdbarch, insn1, insn2,
8493 "srs/rfe", dsc);
8494 break;
8495 case 1: case 2: /* LDM/STM/PUSH/POP */
8496 err = thumb2_copy_block_xfer (gdbarch, insn1, insn2, regs, dsc);
8497 break;
8498 }
8499 }
8500 break;
8501
8502 case 1:
8503 /* Data-processing (shift register). */
8504 err = thumb2_decode_dp_shift_reg (gdbarch, insn1, insn2, regs,
8505 dsc);
8506 break;
8507 default: /* Coprocessor instructions. */
8508 err = thumb2_decode_svc_copro (gdbarch, insn1, insn2, regs, dsc);
8509 break;
8510 }
8511 break;
8512 }
8513 case 2: /* op1 = 2 */
8514 if (op) /* Branch and misc control. */
8515 {
8516 if (bit (insn2, 14) /* BLX/BL */
8517 || bit (insn2, 12) /* Unconditional branch */
8518 || (bits (insn1, 7, 9) != 0x7)) /* Conditional branch */
8519 err = thumb2_copy_b_bl_blx (gdbarch, insn1, insn2, regs, dsc);
8520 else
8521 err = thumb_copy_unmodified_32bit (gdbarch, insn1, insn2,
8522 "misc ctrl", dsc);
8523 }
8524 else
8525 {
8526 if (bit (insn1, 9)) /* Data processing (plain binary imm). */
8527 {
8528 int op = bits (insn1, 4, 8);
8529 int rn = bits (insn1, 0, 3);
8530 if ((op == 0 || op == 0xa) && rn == 0xf)
8531 err = thumb_copy_pc_relative_32bit (gdbarch, insn1, insn2,
8532 regs, dsc);
8533 else
8534 err = thumb_copy_unmodified_32bit (gdbarch, insn1, insn2,
8535 "dp/pb", dsc);
8536 }
8537 else /* Data processing (modified immeidate) */
8538 err = thumb_copy_unmodified_32bit (gdbarch, insn1, insn2,
8539 "dp/mi", dsc);
8540 }
8541 break;
8542 case 3: /* op1 = 3 */
8543 switch (bits (insn1, 9, 10))
8544 {
8545 case 0:
8546 if (bit (insn1, 4))
8547 err = decode_thumb_32bit_ld_mem_hints (gdbarch, insn1, insn2,
8548 regs, dsc);
8549 else /* NEON Load/Store and Store single data item */
8550 err = thumb_copy_unmodified_32bit (gdbarch, insn1, insn2,
8551 "neon elt/struct load/store",
8552 dsc);
8553 break;
8554 case 1: /* op1 = 3, bits (9, 10) == 1 */
8555 switch (bits (insn1, 7, 8))
8556 {
8557 case 0: case 1: /* Data processing (register) */
8558 err = thumb_copy_unmodified_32bit (gdbarch, insn1, insn2,
8559 "dp(reg)", dsc);
8560 break;
8561 case 2: /* Multiply and absolute difference */
8562 err = thumb_copy_unmodified_32bit (gdbarch, insn1, insn2,
8563 "mul/mua/diff", dsc);
8564 break;
8565 case 3: /* Long multiply and divide */
8566 err = thumb_copy_unmodified_32bit (gdbarch, insn1, insn2,
8567 "lmul/lmua", dsc);
8568 break;
8569 }
8570 break;
8571 default: /* Coprocessor instructions */
8572 err = thumb2_decode_svc_copro (gdbarch, insn1, insn2, regs, dsc);
8573 break;
8574 }
8575 break;
8576 default:
8577 err = 1;
8578 }
8579
8580 if (err)
8581 internal_error (__FILE__, __LINE__,
8582 _("thumb_process_displaced_32bit_insn: Instruction decode error"));
8583
8584}
8585
b434a28f
YQ
8586static void
8587thumb_process_displaced_insn (struct gdbarch *gdbarch, CORE_ADDR from,
8588 CORE_ADDR to, struct regcache *regs,
8589 struct displaced_step_closure *dsc)
8590{
34518530
YQ
8591 enum bfd_endian byte_order_for_code = gdbarch_byte_order_for_code (gdbarch);
8592 uint16_t insn1
8593 = read_memory_unsigned_integer (from, 2, byte_order_for_code);
8594
8595 if (debug_displaced)
8596 fprintf_unfiltered (gdb_stdlog, "displaced: process thumb insn %.4x "
8597 "at %.8lx\n", insn1, (unsigned long) from);
8598
8599 dsc->is_thumb = 1;
8600 dsc->insn_size = thumb_insn_size (insn1);
8601 if (thumb_insn_size (insn1) == 4)
8602 {
8603 uint16_t insn2
8604 = read_memory_unsigned_integer (from + 2, 2, byte_order_for_code);
8605 thumb_process_displaced_32bit_insn (gdbarch, insn1, insn2, regs, dsc);
8606 }
8607 else
8608 thumb_process_displaced_16bit_insn (gdbarch, insn1, regs, dsc);
b434a28f
YQ
8609}
8610
cca44b1b 8611void
b434a28f
YQ
8612arm_process_displaced_insn (struct gdbarch *gdbarch, CORE_ADDR from,
8613 CORE_ADDR to, struct regcache *regs,
cca44b1b
JB
8614 struct displaced_step_closure *dsc)
8615{
8616 int err = 0;
b434a28f
YQ
8617 enum bfd_endian byte_order_for_code = gdbarch_byte_order_for_code (gdbarch);
8618 uint32_t insn;
cca44b1b
JB
8619
8620 /* Most displaced instructions use a 1-instruction scratch space, so set this
8621 here and override below if/when necessary. */
8622 dsc->numinsns = 1;
8623 dsc->insn_addr = from;
8624 dsc->scratch_base = to;
8625 dsc->cleanup = NULL;
8626 dsc->wrote_to_pc = 0;
8627
b434a28f
YQ
8628 if (!displaced_in_arm_mode (regs))
8629 return thumb_process_displaced_insn (gdbarch, from, to, regs, dsc);
8630
4db71c0b
YQ
8631 dsc->is_thumb = 0;
8632 dsc->insn_size = 4;
b434a28f
YQ
8633 insn = read_memory_unsigned_integer (from, 4, byte_order_for_code);
8634 if (debug_displaced)
8635 fprintf_unfiltered (gdb_stdlog, "displaced: stepping insn %.8lx "
8636 "at %.8lx\n", (unsigned long) insn,
8637 (unsigned long) from);
8638
cca44b1b 8639 if ((insn & 0xf0000000) == 0xf0000000)
7ff120b4 8640 err = arm_decode_unconditional (gdbarch, insn, regs, dsc);
cca44b1b
JB
8641 else switch (((insn & 0x10) >> 4) | ((insn & 0xe000000) >> 24))
8642 {
8643 case 0x0: case 0x1: case 0x2: case 0x3:
7ff120b4 8644 err = arm_decode_dp_misc (gdbarch, insn, regs, dsc);
cca44b1b
JB
8645 break;
8646
8647 case 0x4: case 0x5: case 0x6:
7ff120b4 8648 err = arm_decode_ld_st_word_ubyte (gdbarch, insn, regs, dsc);
cca44b1b
JB
8649 break;
8650
8651 case 0x7:
7ff120b4 8652 err = arm_decode_media (gdbarch, insn, dsc);
cca44b1b
JB
8653 break;
8654
8655 case 0x8: case 0x9: case 0xa: case 0xb:
7ff120b4 8656 err = arm_decode_b_bl_ldmstm (gdbarch, insn, regs, dsc);
cca44b1b
JB
8657 break;
8658
8659 case 0xc: case 0xd: case 0xe: case 0xf:
7ff120b4 8660 err = arm_decode_svc_copro (gdbarch, insn, to, regs, dsc);
cca44b1b
JB
8661 break;
8662 }
8663
8664 if (err)
8665 internal_error (__FILE__, __LINE__,
8666 _("arm_process_displaced_insn: Instruction decode error"));
8667}
8668
8669/* Actually set up the scratch space for a displaced instruction. */
8670
8671void
8672arm_displaced_init_closure (struct gdbarch *gdbarch, CORE_ADDR from,
8673 CORE_ADDR to, struct displaced_step_closure *dsc)
8674{
8675 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
4db71c0b 8676 unsigned int i, len, offset;
cca44b1b 8677 enum bfd_endian byte_order_for_code = gdbarch_byte_order_for_code (gdbarch);
4db71c0b 8678 int size = dsc->is_thumb? 2 : 4;
948f8e3d 8679 const gdb_byte *bkp_insn;
cca44b1b 8680
4db71c0b 8681 offset = 0;
cca44b1b
JB
8682 /* Poke modified instruction(s). */
8683 for (i = 0; i < dsc->numinsns; i++)
8684 {
8685 if (debug_displaced)
4db71c0b
YQ
8686 {
8687 fprintf_unfiltered (gdb_stdlog, "displaced: writing insn ");
8688 if (size == 4)
8689 fprintf_unfiltered (gdb_stdlog, "%.8lx",
8690 dsc->modinsn[i]);
8691 else if (size == 2)
8692 fprintf_unfiltered (gdb_stdlog, "%.4x",
8693 (unsigned short)dsc->modinsn[i]);
8694
8695 fprintf_unfiltered (gdb_stdlog, " at %.8lx\n",
8696 (unsigned long) to + offset);
8697
8698 }
8699 write_memory_unsigned_integer (to + offset, size,
8700 byte_order_for_code,
cca44b1b 8701 dsc->modinsn[i]);
4db71c0b
YQ
8702 offset += size;
8703 }
8704
8705 /* Choose the correct breakpoint instruction. */
8706 if (dsc->is_thumb)
8707 {
8708 bkp_insn = tdep->thumb_breakpoint;
8709 len = tdep->thumb_breakpoint_size;
8710 }
8711 else
8712 {
8713 bkp_insn = tdep->arm_breakpoint;
8714 len = tdep->arm_breakpoint_size;
cca44b1b
JB
8715 }
8716
8717 /* Put breakpoint afterwards. */
4db71c0b 8718 write_memory (to + offset, bkp_insn, len);
cca44b1b
JB
8719
8720 if (debug_displaced)
8721 fprintf_unfiltered (gdb_stdlog, "displaced: copy %s->%s: ",
8722 paddress (gdbarch, from), paddress (gdbarch, to));
8723}
8724
8725/* Entry point for copying an instruction into scratch space for displaced
8726 stepping. */
8727
8728struct displaced_step_closure *
8729arm_displaced_step_copy_insn (struct gdbarch *gdbarch,
8730 CORE_ADDR from, CORE_ADDR to,
8731 struct regcache *regs)
8732{
8733 struct displaced_step_closure *dsc
8734 = xmalloc (sizeof (struct displaced_step_closure));
b434a28f 8735 arm_process_displaced_insn (gdbarch, from, to, regs, dsc);
cca44b1b
JB
8736 arm_displaced_init_closure (gdbarch, from, to, dsc);
8737
8738 return dsc;
8739}
8740
8741/* Entry point for cleaning things up after a displaced instruction has been
8742 single-stepped. */
8743
8744void
8745arm_displaced_step_fixup (struct gdbarch *gdbarch,
8746 struct displaced_step_closure *dsc,
8747 CORE_ADDR from, CORE_ADDR to,
8748 struct regcache *regs)
8749{
8750 if (dsc->cleanup)
8751 dsc->cleanup (gdbarch, regs, dsc);
8752
8753 if (!dsc->wrote_to_pc)
4db71c0b
YQ
8754 regcache_cooked_write_unsigned (regs, ARM_PC_REGNUM,
8755 dsc->insn_addr + dsc->insn_size);
8756
cca44b1b
JB
8757}
8758
8759#include "bfd-in2.h"
8760#include "libcoff.h"
8761
8762static int
8763gdb_print_insn_arm (bfd_vma memaddr, disassemble_info *info)
8764{
9779414d
DJ
8765 struct gdbarch *gdbarch = info->application_data;
8766
8767 if (arm_pc_is_thumb (gdbarch, memaddr))
cca44b1b
JB
8768 {
8769 static asymbol *asym;
8770 static combined_entry_type ce;
8771 static struct coff_symbol_struct csym;
8772 static struct bfd fake_bfd;
8773 static bfd_target fake_target;
8774
8775 if (csym.native == NULL)
8776 {
8777 /* Create a fake symbol vector containing a Thumb symbol.
8778 This is solely so that the code in print_insn_little_arm()
8779 and print_insn_big_arm() in opcodes/arm-dis.c will detect
8780 the presence of a Thumb symbol and switch to decoding
8781 Thumb instructions. */
8782
8783 fake_target.flavour = bfd_target_coff_flavour;
8784 fake_bfd.xvec = &fake_target;
8785 ce.u.syment.n_sclass = C_THUMBEXTFUNC;
8786 csym.native = &ce;
8787 csym.symbol.the_bfd = &fake_bfd;
8788 csym.symbol.name = "fake";
8789 asym = (asymbol *) & csym;
8790 }
8791
8792 memaddr = UNMAKE_THUMB_ADDR (memaddr);
8793 info->symbols = &asym;
8794 }
8795 else
8796 info->symbols = NULL;
8797
8798 if (info->endian == BFD_ENDIAN_BIG)
8799 return print_insn_big_arm (memaddr, info);
8800 else
8801 return print_insn_little_arm (memaddr, info);
8802}
8803
8804/* The following define instruction sequences that will cause ARM
8805 cpu's to take an undefined instruction trap. These are used to
8806 signal a breakpoint to GDB.
8807
8808 The newer ARMv4T cpu's are capable of operating in ARM or Thumb
8809 modes. A different instruction is required for each mode. The ARM
8810 cpu's can also be big or little endian. Thus four different
8811 instructions are needed to support all cases.
8812
8813 Note: ARMv4 defines several new instructions that will take the
8814 undefined instruction trap. ARM7TDMI is nominally ARMv4T, but does
8815 not in fact add the new instructions. The new undefined
8816 instructions in ARMv4 are all instructions that had no defined
8817 behaviour in earlier chips. There is no guarantee that they will
8818 raise an exception, but may be treated as NOP's. In practice, it
8819 may only safe to rely on instructions matching:
8820
8821 3 3 2 2 2 2 2 2 2 2 2 2 1 1 1 1 1 1 1 1 1 1
8822 1 0 9 8 7 6 5 4 3 2 1 0 9 8 7 6 5 4 3 2 1 0 9 8 7 6 5 4 3 2 1 0
8823 C C C C 0 1 1 x x x x x x x x x x x x x x x x x x x x 1 x x x x
8824
0963b4bd 8825 Even this may only true if the condition predicate is true. The
cca44b1b
JB
8826 following use a condition predicate of ALWAYS so it is always TRUE.
8827
8828 There are other ways of forcing a breakpoint. GNU/Linux, RISC iX,
8829 and NetBSD all use a software interrupt rather than an undefined
8830 instruction to force a trap. This can be handled by by the
8831 abi-specific code during establishment of the gdbarch vector. */
8832
8833#define ARM_LE_BREAKPOINT {0xFE,0xDE,0xFF,0xE7}
8834#define ARM_BE_BREAKPOINT {0xE7,0xFF,0xDE,0xFE}
8835#define THUMB_LE_BREAKPOINT {0xbe,0xbe}
8836#define THUMB_BE_BREAKPOINT {0xbe,0xbe}
8837
948f8e3d
PA
8838static const gdb_byte arm_default_arm_le_breakpoint[] = ARM_LE_BREAKPOINT;
8839static const gdb_byte arm_default_arm_be_breakpoint[] = ARM_BE_BREAKPOINT;
8840static const gdb_byte arm_default_thumb_le_breakpoint[] = THUMB_LE_BREAKPOINT;
8841static const gdb_byte arm_default_thumb_be_breakpoint[] = THUMB_BE_BREAKPOINT;
cca44b1b
JB
8842
8843/* Determine the type and size of breakpoint to insert at PCPTR. Uses
8844 the program counter value to determine whether a 16-bit or 32-bit
8845 breakpoint should be used. It returns a pointer to a string of
8846 bytes that encode a breakpoint instruction, stores the length of
8847 the string to *lenptr, and adjusts the program counter (if
8848 necessary) to point to the actual memory location where the
8849 breakpoint should be inserted. */
8850
8851static const unsigned char *
8852arm_breakpoint_from_pc (struct gdbarch *gdbarch, CORE_ADDR *pcptr, int *lenptr)
8853{
8854 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
177321bd 8855 enum bfd_endian byte_order_for_code = gdbarch_byte_order_for_code (gdbarch);
cca44b1b 8856
9779414d 8857 if (arm_pc_is_thumb (gdbarch, *pcptr))
cca44b1b
JB
8858 {
8859 *pcptr = UNMAKE_THUMB_ADDR (*pcptr);
177321bd
DJ
8860
8861 /* If we have a separate 32-bit breakpoint instruction for Thumb-2,
8862 check whether we are replacing a 32-bit instruction. */
8863 if (tdep->thumb2_breakpoint != NULL)
8864 {
8865 gdb_byte buf[2];
8866 if (target_read_memory (*pcptr, buf, 2) == 0)
8867 {
8868 unsigned short inst1;
8869 inst1 = extract_unsigned_integer (buf, 2, byte_order_for_code);
db24da6d 8870 if (thumb_insn_size (inst1) == 4)
177321bd
DJ
8871 {
8872 *lenptr = tdep->thumb2_breakpoint_size;
8873 return tdep->thumb2_breakpoint;
8874 }
8875 }
8876 }
8877
cca44b1b
JB
8878 *lenptr = tdep->thumb_breakpoint_size;
8879 return tdep->thumb_breakpoint;
8880 }
8881 else
8882 {
8883 *lenptr = tdep->arm_breakpoint_size;
8884 return tdep->arm_breakpoint;
8885 }
8886}
8887
177321bd
DJ
8888static void
8889arm_remote_breakpoint_from_pc (struct gdbarch *gdbarch, CORE_ADDR *pcptr,
8890 int *kindptr)
8891{
177321bd
DJ
8892 arm_breakpoint_from_pc (gdbarch, pcptr, kindptr);
8893
9779414d 8894 if (arm_pc_is_thumb (gdbarch, *pcptr) && *kindptr == 4)
177321bd
DJ
8895 /* The documented magic value for a 32-bit Thumb-2 breakpoint, so
8896 that this is not confused with a 32-bit ARM breakpoint. */
8897 *kindptr = 3;
8898}
8899
cca44b1b
JB
8900/* Extract from an array REGBUF containing the (raw) register state a
8901 function return value of type TYPE, and copy that, in virtual
8902 format, into VALBUF. */
8903
8904static void
8905arm_extract_return_value (struct type *type, struct regcache *regs,
8906 gdb_byte *valbuf)
8907{
8908 struct gdbarch *gdbarch = get_regcache_arch (regs);
8909 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
8910
8911 if (TYPE_CODE_FLT == TYPE_CODE (type))
8912 {
8913 switch (gdbarch_tdep (gdbarch)->fp_model)
8914 {
8915 case ARM_FLOAT_FPA:
8916 {
8917 /* The value is in register F0 in internal format. We need to
8918 extract the raw value and then convert it to the desired
8919 internal type. */
8920 bfd_byte tmpbuf[FP_REGISTER_SIZE];
8921
8922 regcache_cooked_read (regs, ARM_F0_REGNUM, tmpbuf);
8923 convert_from_extended (floatformat_from_type (type), tmpbuf,
8924 valbuf, gdbarch_byte_order (gdbarch));
8925 }
8926 break;
8927
8928 case ARM_FLOAT_SOFT_FPA:
8929 case ARM_FLOAT_SOFT_VFP:
8930 /* ARM_FLOAT_VFP can arise if this is a variadic function so
8931 not using the VFP ABI code. */
8932 case ARM_FLOAT_VFP:
8933 regcache_cooked_read (regs, ARM_A1_REGNUM, valbuf);
8934 if (TYPE_LENGTH (type) > 4)
8935 regcache_cooked_read (regs, ARM_A1_REGNUM + 1,
8936 valbuf + INT_REGISTER_SIZE);
8937 break;
8938
8939 default:
0963b4bd
MS
8940 internal_error (__FILE__, __LINE__,
8941 _("arm_extract_return_value: "
8942 "Floating point model not supported"));
cca44b1b
JB
8943 break;
8944 }
8945 }
8946 else if (TYPE_CODE (type) == TYPE_CODE_INT
8947 || TYPE_CODE (type) == TYPE_CODE_CHAR
8948 || TYPE_CODE (type) == TYPE_CODE_BOOL
8949 || TYPE_CODE (type) == TYPE_CODE_PTR
8950 || TYPE_CODE (type) == TYPE_CODE_REF
8951 || TYPE_CODE (type) == TYPE_CODE_ENUM)
8952 {
b021a221
MS
8953 /* If the type is a plain integer, then the access is
8954 straight-forward. Otherwise we have to play around a bit
8955 more. */
cca44b1b
JB
8956 int len = TYPE_LENGTH (type);
8957 int regno = ARM_A1_REGNUM;
8958 ULONGEST tmp;
8959
8960 while (len > 0)
8961 {
8962 /* By using store_unsigned_integer we avoid having to do
8963 anything special for small big-endian values. */
8964 regcache_cooked_read_unsigned (regs, regno++, &tmp);
8965 store_unsigned_integer (valbuf,
8966 (len > INT_REGISTER_SIZE
8967 ? INT_REGISTER_SIZE : len),
8968 byte_order, tmp);
8969 len -= INT_REGISTER_SIZE;
8970 valbuf += INT_REGISTER_SIZE;
8971 }
8972 }
8973 else
8974 {
8975 /* For a structure or union the behaviour is as if the value had
8976 been stored to word-aligned memory and then loaded into
8977 registers with 32-bit load instruction(s). */
8978 int len = TYPE_LENGTH (type);
8979 int regno = ARM_A1_REGNUM;
8980 bfd_byte tmpbuf[INT_REGISTER_SIZE];
8981
8982 while (len > 0)
8983 {
8984 regcache_cooked_read (regs, regno++, tmpbuf);
8985 memcpy (valbuf, tmpbuf,
8986 len > INT_REGISTER_SIZE ? INT_REGISTER_SIZE : len);
8987 len -= INT_REGISTER_SIZE;
8988 valbuf += INT_REGISTER_SIZE;
8989 }
8990 }
8991}
8992
8993
8994/* Will a function return an aggregate type in memory or in a
8995 register? Return 0 if an aggregate type can be returned in a
8996 register, 1 if it must be returned in memory. */
8997
8998static int
8999arm_return_in_memory (struct gdbarch *gdbarch, struct type *type)
9000{
9001 int nRc;
9002 enum type_code code;
9003
9004 CHECK_TYPEDEF (type);
9005
9006 /* In the ARM ABI, "integer" like aggregate types are returned in
9007 registers. For an aggregate type to be integer like, its size
9008 must be less than or equal to INT_REGISTER_SIZE and the
9009 offset of each addressable subfield must be zero. Note that bit
9010 fields are not addressable, and all addressable subfields of
9011 unions always start at offset zero.
9012
9013 This function is based on the behaviour of GCC 2.95.1.
9014 See: gcc/arm.c: arm_return_in_memory() for details.
9015
9016 Note: All versions of GCC before GCC 2.95.2 do not set up the
9017 parameters correctly for a function returning the following
9018 structure: struct { float f;}; This should be returned in memory,
9019 not a register. Richard Earnshaw sent me a patch, but I do not
9020 know of any way to detect if a function like the above has been
9021 compiled with the correct calling convention. */
9022
9023 /* All aggregate types that won't fit in a register must be returned
9024 in memory. */
9025 if (TYPE_LENGTH (type) > INT_REGISTER_SIZE)
9026 {
9027 return 1;
9028 }
9029
9030 /* The AAPCS says all aggregates not larger than a word are returned
9031 in a register. */
9032 if (gdbarch_tdep (gdbarch)->arm_abi != ARM_ABI_APCS)
9033 return 0;
9034
9035 /* The only aggregate types that can be returned in a register are
9036 structs and unions. Arrays must be returned in memory. */
9037 code = TYPE_CODE (type);
9038 if ((TYPE_CODE_STRUCT != code) && (TYPE_CODE_UNION != code))
9039 {
9040 return 1;
9041 }
9042
9043 /* Assume all other aggregate types can be returned in a register.
9044 Run a check for structures, unions and arrays. */
9045 nRc = 0;
9046
9047 if ((TYPE_CODE_STRUCT == code) || (TYPE_CODE_UNION == code))
9048 {
9049 int i;
9050 /* Need to check if this struct/union is "integer" like. For
9051 this to be true, its size must be less than or equal to
9052 INT_REGISTER_SIZE and the offset of each addressable
9053 subfield must be zero. Note that bit fields are not
9054 addressable, and unions always start at offset zero. If any
9055 of the subfields is a floating point type, the struct/union
9056 cannot be an integer type. */
9057
9058 /* For each field in the object, check:
9059 1) Is it FP? --> yes, nRc = 1;
67255d04
RE
9060 2) Is it addressable (bitpos != 0) and
9061 not packed (bitsize == 0)?
9062 --> yes, nRc = 1
9063 */
9064
9065 for (i = 0; i < TYPE_NFIELDS (type); i++)
9066 {
9067 enum type_code field_type_code;
0963b4bd
MS
9068 field_type_code = TYPE_CODE (check_typedef (TYPE_FIELD_TYPE (type,
9069 i)));
67255d04
RE
9070
9071 /* Is it a floating point type field? */
9072 if (field_type_code == TYPE_CODE_FLT)
9073 {
9074 nRc = 1;
9075 break;
9076 }
9077
9078 /* If bitpos != 0, then we have to care about it. */
9079 if (TYPE_FIELD_BITPOS (type, i) != 0)
9080 {
9081 /* Bitfields are not addressable. If the field bitsize is
9082 zero, then the field is not packed. Hence it cannot be
9083 a bitfield or any other packed type. */
9084 if (TYPE_FIELD_BITSIZE (type, i) == 0)
9085 {
9086 nRc = 1;
9087 break;
9088 }
9089 }
9090 }
9091 }
9092
9093 return nRc;
9094}
9095
34e8f22d
RE
9096/* Write into appropriate registers a function return value of type
9097 TYPE, given in virtual format. */
9098
9099static void
b508a996 9100arm_store_return_value (struct type *type, struct regcache *regs,
5238cf52 9101 const gdb_byte *valbuf)
34e8f22d 9102{
be8626e0 9103 struct gdbarch *gdbarch = get_regcache_arch (regs);
e17a4113 9104 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
be8626e0 9105
34e8f22d
RE
9106 if (TYPE_CODE (type) == TYPE_CODE_FLT)
9107 {
e362b510 9108 gdb_byte buf[MAX_REGISTER_SIZE];
34e8f22d 9109
be8626e0 9110 switch (gdbarch_tdep (gdbarch)->fp_model)
08216dd7
RE
9111 {
9112 case ARM_FLOAT_FPA:
9113
be8626e0
MD
9114 convert_to_extended (floatformat_from_type (type), buf, valbuf,
9115 gdbarch_byte_order (gdbarch));
b508a996 9116 regcache_cooked_write (regs, ARM_F0_REGNUM, buf);
08216dd7
RE
9117 break;
9118
fd50bc42 9119 case ARM_FLOAT_SOFT_FPA:
08216dd7 9120 case ARM_FLOAT_SOFT_VFP:
90445bd3
DJ
9121 /* ARM_FLOAT_VFP can arise if this is a variadic function so
9122 not using the VFP ABI code. */
9123 case ARM_FLOAT_VFP:
b508a996
RE
9124 regcache_cooked_write (regs, ARM_A1_REGNUM, valbuf);
9125 if (TYPE_LENGTH (type) > 4)
9126 regcache_cooked_write (regs, ARM_A1_REGNUM + 1,
7a5ea0d4 9127 valbuf + INT_REGISTER_SIZE);
08216dd7
RE
9128 break;
9129
9130 default:
9b20d036
MS
9131 internal_error (__FILE__, __LINE__,
9132 _("arm_store_return_value: Floating "
9133 "point model not supported"));
08216dd7
RE
9134 break;
9135 }
34e8f22d 9136 }
b508a996
RE
9137 else if (TYPE_CODE (type) == TYPE_CODE_INT
9138 || TYPE_CODE (type) == TYPE_CODE_CHAR
9139 || TYPE_CODE (type) == TYPE_CODE_BOOL
9140 || TYPE_CODE (type) == TYPE_CODE_PTR
9141 || TYPE_CODE (type) == TYPE_CODE_REF
9142 || TYPE_CODE (type) == TYPE_CODE_ENUM)
9143 {
9144 if (TYPE_LENGTH (type) <= 4)
9145 {
9146 /* Values of one word or less are zero/sign-extended and
9147 returned in r0. */
7a5ea0d4 9148 bfd_byte tmpbuf[INT_REGISTER_SIZE];
b508a996
RE
9149 LONGEST val = unpack_long (type, valbuf);
9150
e17a4113 9151 store_signed_integer (tmpbuf, INT_REGISTER_SIZE, byte_order, val);
b508a996
RE
9152 regcache_cooked_write (regs, ARM_A1_REGNUM, tmpbuf);
9153 }
9154 else
9155 {
9156 /* Integral values greater than one word are stored in consecutive
9157 registers starting with r0. This will always be a multiple of
9158 the regiser size. */
9159 int len = TYPE_LENGTH (type);
9160 int regno = ARM_A1_REGNUM;
9161
9162 while (len > 0)
9163 {
9164 regcache_cooked_write (regs, regno++, valbuf);
7a5ea0d4
DJ
9165 len -= INT_REGISTER_SIZE;
9166 valbuf += INT_REGISTER_SIZE;
b508a996
RE
9167 }
9168 }
9169 }
34e8f22d 9170 else
b508a996
RE
9171 {
9172 /* For a structure or union the behaviour is as if the value had
9173 been stored to word-aligned memory and then loaded into
9174 registers with 32-bit load instruction(s). */
9175 int len = TYPE_LENGTH (type);
9176 int regno = ARM_A1_REGNUM;
7a5ea0d4 9177 bfd_byte tmpbuf[INT_REGISTER_SIZE];
b508a996
RE
9178
9179 while (len > 0)
9180 {
9181 memcpy (tmpbuf, valbuf,
7a5ea0d4 9182 len > INT_REGISTER_SIZE ? INT_REGISTER_SIZE : len);
b508a996 9183 regcache_cooked_write (regs, regno++, tmpbuf);
7a5ea0d4
DJ
9184 len -= INT_REGISTER_SIZE;
9185 valbuf += INT_REGISTER_SIZE;
b508a996
RE
9186 }
9187 }
34e8f22d
RE
9188}
9189
2af48f68
PB
9190
9191/* Handle function return values. */
9192
9193static enum return_value_convention
6a3a010b 9194arm_return_value (struct gdbarch *gdbarch, struct value *function,
c055b101
CV
9195 struct type *valtype, struct regcache *regcache,
9196 gdb_byte *readbuf, const gdb_byte *writebuf)
2af48f68 9197{
7c00367c 9198 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
6a3a010b 9199 struct type *func_type = function ? value_type (function) : NULL;
90445bd3
DJ
9200 enum arm_vfp_cprc_base_type vfp_base_type;
9201 int vfp_base_count;
9202
9203 if (arm_vfp_abi_for_function (gdbarch, func_type)
9204 && arm_vfp_call_candidate (valtype, &vfp_base_type, &vfp_base_count))
9205 {
9206 int reg_char = arm_vfp_cprc_reg_char (vfp_base_type);
9207 int unit_length = arm_vfp_cprc_unit_length (vfp_base_type);
9208 int i;
9209 for (i = 0; i < vfp_base_count; i++)
9210 {
58d6951d
DJ
9211 if (reg_char == 'q')
9212 {
9213 if (writebuf)
9214 arm_neon_quad_write (gdbarch, regcache, i,
9215 writebuf + i * unit_length);
9216
9217 if (readbuf)
9218 arm_neon_quad_read (gdbarch, regcache, i,
9219 readbuf + i * unit_length);
9220 }
9221 else
9222 {
9223 char name_buf[4];
9224 int regnum;
9225
8c042590 9226 xsnprintf (name_buf, sizeof (name_buf), "%c%d", reg_char, i);
58d6951d
DJ
9227 regnum = user_reg_map_name_to_regnum (gdbarch, name_buf,
9228 strlen (name_buf));
9229 if (writebuf)
9230 regcache_cooked_write (regcache, regnum,
9231 writebuf + i * unit_length);
9232 if (readbuf)
9233 regcache_cooked_read (regcache, regnum,
9234 readbuf + i * unit_length);
9235 }
90445bd3
DJ
9236 }
9237 return RETURN_VALUE_REGISTER_CONVENTION;
9238 }
7c00367c 9239
2af48f68
PB
9240 if (TYPE_CODE (valtype) == TYPE_CODE_STRUCT
9241 || TYPE_CODE (valtype) == TYPE_CODE_UNION
9242 || TYPE_CODE (valtype) == TYPE_CODE_ARRAY)
9243 {
7c00367c
MK
9244 if (tdep->struct_return == pcc_struct_return
9245 || arm_return_in_memory (gdbarch, valtype))
2af48f68
PB
9246 return RETURN_VALUE_STRUCT_CONVENTION;
9247 }
9248
7052e42c
UW
9249 /* AAPCS returns complex types longer than a register in memory. */
9250 if (tdep->arm_abi != ARM_ABI_APCS
9251 && TYPE_CODE (valtype) == TYPE_CODE_COMPLEX
9252 && TYPE_LENGTH (valtype) > INT_REGISTER_SIZE)
9253 return RETURN_VALUE_STRUCT_CONVENTION;
9254
2af48f68
PB
9255 if (writebuf)
9256 arm_store_return_value (valtype, regcache, writebuf);
9257
9258 if (readbuf)
9259 arm_extract_return_value (valtype, regcache, readbuf);
9260
9261 return RETURN_VALUE_REGISTER_CONVENTION;
9262}
9263
9264
9df628e0 9265static int
60ade65d 9266arm_get_longjmp_target (struct frame_info *frame, CORE_ADDR *pc)
9df628e0 9267{
e17a4113
UW
9268 struct gdbarch *gdbarch = get_frame_arch (frame);
9269 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
9270 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
9df628e0 9271 CORE_ADDR jb_addr;
e362b510 9272 gdb_byte buf[INT_REGISTER_SIZE];
9df628e0 9273
60ade65d 9274 jb_addr = get_frame_register_unsigned (frame, ARM_A1_REGNUM);
9df628e0
RE
9275
9276 if (target_read_memory (jb_addr + tdep->jb_pc * tdep->jb_elt_size, buf,
7a5ea0d4 9277 INT_REGISTER_SIZE))
9df628e0
RE
9278 return 0;
9279
e17a4113 9280 *pc = extract_unsigned_integer (buf, INT_REGISTER_SIZE, byte_order);
9df628e0
RE
9281 return 1;
9282}
9283
faa95490
DJ
9284/* Recognize GCC and GNU ld's trampolines. If we are in a trampoline,
9285 return the target PC. Otherwise return 0. */
c906108c
SS
9286
9287CORE_ADDR
52f729a7 9288arm_skip_stub (struct frame_info *frame, CORE_ADDR pc)
c906108c 9289{
2c02bd72 9290 const char *name;
faa95490 9291 int namelen;
c906108c
SS
9292 CORE_ADDR start_addr;
9293
9294 /* Find the starting address and name of the function containing the PC. */
9295 if (find_pc_partial_function (pc, &name, &start_addr, NULL) == 0)
80d8d390
YQ
9296 {
9297 /* Trampoline 'bx reg' doesn't belong to any functions. Do the
9298 check here. */
9299 start_addr = arm_skip_bx_reg (frame, pc);
9300 if (start_addr != 0)
9301 return start_addr;
9302
9303 return 0;
9304 }
c906108c 9305
faa95490
DJ
9306 /* If PC is in a Thumb call or return stub, return the address of the
9307 target PC, which is in a register. The thunk functions are called
9308 _call_via_xx, where x is the register name. The possible names
3d8d5e79
DJ
9309 are r0-r9, sl, fp, ip, sp, and lr. ARM RealView has similar
9310 functions, named __ARM_call_via_r[0-7]. */
61012eef
GB
9311 if (startswith (name, "_call_via_")
9312 || startswith (name, "__ARM_call_via_"))
c906108c 9313 {
ed9a39eb
JM
9314 /* Use the name suffix to determine which register contains the
9315 target PC. */
c5aa993b
JM
9316 static char *table[15] =
9317 {"r0", "r1", "r2", "r3", "r4", "r5", "r6", "r7",
9318 "r8", "r9", "sl", "fp", "ip", "sp", "lr"
9319 };
c906108c 9320 int regno;
faa95490 9321 int offset = strlen (name) - 2;
c906108c
SS
9322
9323 for (regno = 0; regno <= 14; regno++)
faa95490 9324 if (strcmp (&name[offset], table[regno]) == 0)
52f729a7 9325 return get_frame_register_unsigned (frame, regno);
c906108c 9326 }
ed9a39eb 9327
faa95490
DJ
9328 /* GNU ld generates __foo_from_arm or __foo_from_thumb for
9329 non-interworking calls to foo. We could decode the stubs
9330 to find the target but it's easier to use the symbol table. */
9331 namelen = strlen (name);
9332 if (name[0] == '_' && name[1] == '_'
9333 && ((namelen > 2 + strlen ("_from_thumb")
61012eef 9334 && startswith (name + namelen - strlen ("_from_thumb"), "_from_thumb"))
faa95490 9335 || (namelen > 2 + strlen ("_from_arm")
61012eef 9336 && startswith (name + namelen - strlen ("_from_arm"), "_from_arm"))))
faa95490
DJ
9337 {
9338 char *target_name;
9339 int target_len = namelen - 2;
3b7344d5 9340 struct bound_minimal_symbol minsym;
faa95490
DJ
9341 struct objfile *objfile;
9342 struct obj_section *sec;
9343
9344 if (name[namelen - 1] == 'b')
9345 target_len -= strlen ("_from_thumb");
9346 else
9347 target_len -= strlen ("_from_arm");
9348
9349 target_name = alloca (target_len + 1);
9350 memcpy (target_name, name + 2, target_len);
9351 target_name[target_len] = '\0';
9352
9353 sec = find_pc_section (pc);
9354 objfile = (sec == NULL) ? NULL : sec->objfile;
9355 minsym = lookup_minimal_symbol (target_name, NULL, objfile);
3b7344d5 9356 if (minsym.minsym != NULL)
77e371c0 9357 return BMSYMBOL_VALUE_ADDRESS (minsym);
faa95490
DJ
9358 else
9359 return 0;
9360 }
9361
c5aa993b 9362 return 0; /* not a stub */
c906108c
SS
9363}
9364
afd7eef0
RE
9365static void
9366set_arm_command (char *args, int from_tty)
9367{
edefbb7c
AC
9368 printf_unfiltered (_("\
9369\"set arm\" must be followed by an apporpriate subcommand.\n"));
afd7eef0
RE
9370 help_list (setarmcmdlist, "set arm ", all_commands, gdb_stdout);
9371}
9372
9373static void
9374show_arm_command (char *args, int from_tty)
9375{
26304000 9376 cmd_show_list (showarmcmdlist, from_tty, "");
afd7eef0
RE
9377}
9378
28e97307
DJ
9379static void
9380arm_update_current_architecture (void)
fd50bc42 9381{
28e97307 9382 struct gdbarch_info info;
fd50bc42 9383
28e97307 9384 /* If the current architecture is not ARM, we have nothing to do. */
f5656ead 9385 if (gdbarch_bfd_arch_info (target_gdbarch ())->arch != bfd_arch_arm)
28e97307 9386 return;
fd50bc42 9387
28e97307
DJ
9388 /* Update the architecture. */
9389 gdbarch_info_init (&info);
fd50bc42 9390
28e97307 9391 if (!gdbarch_update_p (info))
9b20d036 9392 internal_error (__FILE__, __LINE__, _("could not update architecture"));
fd50bc42
RE
9393}
9394
9395static void
9396set_fp_model_sfunc (char *args, int from_tty,
9397 struct cmd_list_element *c)
9398{
570dc176 9399 int fp_model;
fd50bc42
RE
9400
9401 for (fp_model = ARM_FLOAT_AUTO; fp_model != ARM_FLOAT_LAST; fp_model++)
9402 if (strcmp (current_fp_model, fp_model_strings[fp_model]) == 0)
9403 {
9404 arm_fp_model = fp_model;
9405 break;
9406 }
9407
9408 if (fp_model == ARM_FLOAT_LAST)
edefbb7c 9409 internal_error (__FILE__, __LINE__, _("Invalid fp model accepted: %s."),
fd50bc42
RE
9410 current_fp_model);
9411
28e97307 9412 arm_update_current_architecture ();
fd50bc42
RE
9413}
9414
9415static void
08546159
AC
9416show_fp_model (struct ui_file *file, int from_tty,
9417 struct cmd_list_element *c, const char *value)
fd50bc42 9418{
f5656ead 9419 struct gdbarch_tdep *tdep = gdbarch_tdep (target_gdbarch ());
fd50bc42 9420
28e97307 9421 if (arm_fp_model == ARM_FLOAT_AUTO
f5656ead 9422 && gdbarch_bfd_arch_info (target_gdbarch ())->arch == bfd_arch_arm)
28e97307
DJ
9423 fprintf_filtered (file, _("\
9424The current ARM floating point model is \"auto\" (currently \"%s\").\n"),
9425 fp_model_strings[tdep->fp_model]);
9426 else
9427 fprintf_filtered (file, _("\
9428The current ARM floating point model is \"%s\".\n"),
9429 fp_model_strings[arm_fp_model]);
9430}
9431
9432static void
9433arm_set_abi (char *args, int from_tty,
9434 struct cmd_list_element *c)
9435{
570dc176 9436 int arm_abi;
28e97307
DJ
9437
9438 for (arm_abi = ARM_ABI_AUTO; arm_abi != ARM_ABI_LAST; arm_abi++)
9439 if (strcmp (arm_abi_string, arm_abi_strings[arm_abi]) == 0)
9440 {
9441 arm_abi_global = arm_abi;
9442 break;
9443 }
9444
9445 if (arm_abi == ARM_ABI_LAST)
9446 internal_error (__FILE__, __LINE__, _("Invalid ABI accepted: %s."),
9447 arm_abi_string);
9448
9449 arm_update_current_architecture ();
9450}
9451
9452static void
9453arm_show_abi (struct ui_file *file, int from_tty,
9454 struct cmd_list_element *c, const char *value)
9455{
f5656ead 9456 struct gdbarch_tdep *tdep = gdbarch_tdep (target_gdbarch ());
28e97307
DJ
9457
9458 if (arm_abi_global == ARM_ABI_AUTO
f5656ead 9459 && gdbarch_bfd_arch_info (target_gdbarch ())->arch == bfd_arch_arm)
28e97307
DJ
9460 fprintf_filtered (file, _("\
9461The current ARM ABI is \"auto\" (currently \"%s\").\n"),
9462 arm_abi_strings[tdep->arm_abi]);
9463 else
9464 fprintf_filtered (file, _("The current ARM ABI is \"%s\".\n"),
9465 arm_abi_string);
fd50bc42
RE
9466}
9467
0428b8f5
DJ
9468static void
9469arm_show_fallback_mode (struct ui_file *file, int from_tty,
9470 struct cmd_list_element *c, const char *value)
9471{
0963b4bd
MS
9472 fprintf_filtered (file,
9473 _("The current execution mode assumed "
9474 "(when symbols are unavailable) is \"%s\".\n"),
0428b8f5
DJ
9475 arm_fallback_mode_string);
9476}
9477
9478static void
9479arm_show_force_mode (struct ui_file *file, int from_tty,
9480 struct cmd_list_element *c, const char *value)
9481{
f5656ead 9482 struct gdbarch_tdep *tdep = gdbarch_tdep (target_gdbarch ());
0428b8f5 9483
0963b4bd
MS
9484 fprintf_filtered (file,
9485 _("The current execution mode assumed "
9486 "(even when symbols are available) is \"%s\".\n"),
0428b8f5
DJ
9487 arm_force_mode_string);
9488}
9489
afd7eef0
RE
9490/* If the user changes the register disassembly style used for info
9491 register and other commands, we have to also switch the style used
9492 in opcodes for disassembly output. This function is run in the "set
9493 arm disassembly" command, and does that. */
bc90b915
FN
9494
9495static void
afd7eef0 9496set_disassembly_style_sfunc (char *args, int from_tty,
bc90b915
FN
9497 struct cmd_list_element *c)
9498{
afd7eef0 9499 set_disassembly_style ();
bc90b915
FN
9500}
9501\f
966fbf70 9502/* Return the ARM register name corresponding to register I. */
a208b0cb 9503static const char *
d93859e2 9504arm_register_name (struct gdbarch *gdbarch, int i)
966fbf70 9505{
58d6951d
DJ
9506 const int num_regs = gdbarch_num_regs (gdbarch);
9507
9508 if (gdbarch_tdep (gdbarch)->have_vfp_pseudos
9509 && i >= num_regs && i < num_regs + 32)
9510 {
9511 static const char *const vfp_pseudo_names[] = {
9512 "s0", "s1", "s2", "s3", "s4", "s5", "s6", "s7",
9513 "s8", "s9", "s10", "s11", "s12", "s13", "s14", "s15",
9514 "s16", "s17", "s18", "s19", "s20", "s21", "s22", "s23",
9515 "s24", "s25", "s26", "s27", "s28", "s29", "s30", "s31",
9516 };
9517
9518 return vfp_pseudo_names[i - num_regs];
9519 }
9520
9521 if (gdbarch_tdep (gdbarch)->have_neon_pseudos
9522 && i >= num_regs + 32 && i < num_regs + 32 + 16)
9523 {
9524 static const char *const neon_pseudo_names[] = {
9525 "q0", "q1", "q2", "q3", "q4", "q5", "q6", "q7",
9526 "q8", "q9", "q10", "q11", "q12", "q13", "q14", "q15",
9527 };
9528
9529 return neon_pseudo_names[i - num_regs - 32];
9530 }
9531
ff6f572f
DJ
9532 if (i >= ARRAY_SIZE (arm_register_names))
9533 /* These registers are only supported on targets which supply
9534 an XML description. */
9535 return "";
9536
966fbf70
RE
9537 return arm_register_names[i];
9538}
9539
bc90b915 9540static void
afd7eef0 9541set_disassembly_style (void)
bc90b915 9542{
123dc839 9543 int current;
bc90b915 9544
123dc839
DJ
9545 /* Find the style that the user wants. */
9546 for (current = 0; current < num_disassembly_options; current++)
9547 if (disassembly_style == valid_disassembly_styles[current])
9548 break;
9549 gdb_assert (current < num_disassembly_options);
bc90b915 9550
94c30b78 9551 /* Synchronize the disassembler. */
bc90b915
FN
9552 set_arm_regname_option (current);
9553}
9554
082fc60d
RE
9555/* Test whether the coff symbol specific value corresponds to a Thumb
9556 function. */
9557
9558static int
9559coff_sym_is_thumb (int val)
9560{
f8bf5763
PM
9561 return (val == C_THUMBEXT
9562 || val == C_THUMBSTAT
9563 || val == C_THUMBEXTFUNC
9564 || val == C_THUMBSTATFUNC
9565 || val == C_THUMBLABEL);
082fc60d
RE
9566}
9567
9568/* arm_coff_make_msymbol_special()
9569 arm_elf_make_msymbol_special()
9570
9571 These functions test whether the COFF or ELF symbol corresponds to
9572 an address in thumb code, and set a "special" bit in a minimal
9573 symbol to indicate that it does. */
9574
34e8f22d 9575static void
082fc60d
RE
9576arm_elf_make_msymbol_special(asymbol *sym, struct minimal_symbol *msym)
9577{
467d42c4
UW
9578 if (ARM_SYM_BRANCH_TYPE (&((elf_symbol_type *)sym)->internal_elf_sym)
9579 == ST_BRANCH_TO_THUMB)
082fc60d
RE
9580 MSYMBOL_SET_SPECIAL (msym);
9581}
9582
34e8f22d 9583static void
082fc60d
RE
9584arm_coff_make_msymbol_special(int val, struct minimal_symbol *msym)
9585{
9586 if (coff_sym_is_thumb (val))
9587 MSYMBOL_SET_SPECIAL (msym);
9588}
9589
60c5725c 9590static void
c1bd65d0 9591arm_objfile_data_free (struct objfile *objfile, void *arg)
60c5725c
DJ
9592{
9593 struct arm_per_objfile *data = arg;
9594 unsigned int i;
9595
9596 for (i = 0; i < objfile->obfd->section_count; i++)
9597 VEC_free (arm_mapping_symbol_s, data->section_maps[i]);
9598}
9599
9600static void
9601arm_record_special_symbol (struct gdbarch *gdbarch, struct objfile *objfile,
9602 asymbol *sym)
9603{
9604 const char *name = bfd_asymbol_name (sym);
9605 struct arm_per_objfile *data;
9606 VEC(arm_mapping_symbol_s) **map_p;
9607 struct arm_mapping_symbol new_map_sym;
9608
9609 gdb_assert (name[0] == '$');
9610 if (name[1] != 'a' && name[1] != 't' && name[1] != 'd')
9611 return;
9612
9613 data = objfile_data (objfile, arm_objfile_data_key);
9614 if (data == NULL)
9615 {
9616 data = OBSTACK_ZALLOC (&objfile->objfile_obstack,
9617 struct arm_per_objfile);
9618 set_objfile_data (objfile, arm_objfile_data_key, data);
9619 data->section_maps = OBSTACK_CALLOC (&objfile->objfile_obstack,
9620 objfile->obfd->section_count,
9621 VEC(arm_mapping_symbol_s) *);
9622 }
9623 map_p = &data->section_maps[bfd_get_section (sym)->index];
9624
9625 new_map_sym.value = sym->value;
9626 new_map_sym.type = name[1];
9627
9628 /* Assume that most mapping symbols appear in order of increasing
9629 value. If they were randomly distributed, it would be faster to
9630 always push here and then sort at first use. */
9631 if (!VEC_empty (arm_mapping_symbol_s, *map_p))
9632 {
9633 struct arm_mapping_symbol *prev_map_sym;
9634
9635 prev_map_sym = VEC_last (arm_mapping_symbol_s, *map_p);
9636 if (prev_map_sym->value >= sym->value)
9637 {
9638 unsigned int idx;
9639 idx = VEC_lower_bound (arm_mapping_symbol_s, *map_p, &new_map_sym,
9640 arm_compare_mapping_symbols);
9641 VEC_safe_insert (arm_mapping_symbol_s, *map_p, idx, &new_map_sym);
9642 return;
9643 }
9644 }
9645
9646 VEC_safe_push (arm_mapping_symbol_s, *map_p, &new_map_sym);
9647}
9648
756fe439 9649static void
61a1198a 9650arm_write_pc (struct regcache *regcache, CORE_ADDR pc)
756fe439 9651{
9779414d 9652 struct gdbarch *gdbarch = get_regcache_arch (regcache);
61a1198a 9653 regcache_cooked_write_unsigned (regcache, ARM_PC_REGNUM, pc);
756fe439
DJ
9654
9655 /* If necessary, set the T bit. */
9656 if (arm_apcs_32)
9657 {
9779414d 9658 ULONGEST val, t_bit;
61a1198a 9659 regcache_cooked_read_unsigned (regcache, ARM_PS_REGNUM, &val);
9779414d
DJ
9660 t_bit = arm_psr_thumb_bit (gdbarch);
9661 if (arm_pc_is_thumb (gdbarch, pc))
9662 regcache_cooked_write_unsigned (regcache, ARM_PS_REGNUM,
9663 val | t_bit);
756fe439 9664 else
61a1198a 9665 regcache_cooked_write_unsigned (regcache, ARM_PS_REGNUM,
9779414d 9666 val & ~t_bit);
756fe439
DJ
9667 }
9668}
123dc839 9669
58d6951d
DJ
9670/* Read the contents of a NEON quad register, by reading from two
9671 double registers. This is used to implement the quad pseudo
9672 registers, and for argument passing in case the quad registers are
9673 missing; vectors are passed in quad registers when using the VFP
9674 ABI, even if a NEON unit is not present. REGNUM is the index of
9675 the quad register, in [0, 15]. */
9676
05d1431c 9677static enum register_status
58d6951d
DJ
9678arm_neon_quad_read (struct gdbarch *gdbarch, struct regcache *regcache,
9679 int regnum, gdb_byte *buf)
9680{
9681 char name_buf[4];
9682 gdb_byte reg_buf[8];
9683 int offset, double_regnum;
05d1431c 9684 enum register_status status;
58d6951d 9685
8c042590 9686 xsnprintf (name_buf, sizeof (name_buf), "d%d", regnum << 1);
58d6951d
DJ
9687 double_regnum = user_reg_map_name_to_regnum (gdbarch, name_buf,
9688 strlen (name_buf));
9689
9690 /* d0 is always the least significant half of q0. */
9691 if (gdbarch_byte_order (gdbarch) == BFD_ENDIAN_BIG)
9692 offset = 8;
9693 else
9694 offset = 0;
9695
05d1431c
PA
9696 status = regcache_raw_read (regcache, double_regnum, reg_buf);
9697 if (status != REG_VALID)
9698 return status;
58d6951d
DJ
9699 memcpy (buf + offset, reg_buf, 8);
9700
9701 offset = 8 - offset;
05d1431c
PA
9702 status = regcache_raw_read (regcache, double_regnum + 1, reg_buf);
9703 if (status != REG_VALID)
9704 return status;
58d6951d 9705 memcpy (buf + offset, reg_buf, 8);
05d1431c
PA
9706
9707 return REG_VALID;
58d6951d
DJ
9708}
9709
05d1431c 9710static enum register_status
58d6951d
DJ
9711arm_pseudo_read (struct gdbarch *gdbarch, struct regcache *regcache,
9712 int regnum, gdb_byte *buf)
9713{
9714 const int num_regs = gdbarch_num_regs (gdbarch);
9715 char name_buf[4];
9716 gdb_byte reg_buf[8];
9717 int offset, double_regnum;
9718
9719 gdb_assert (regnum >= num_regs);
9720 regnum -= num_regs;
9721
9722 if (gdbarch_tdep (gdbarch)->have_neon_pseudos && regnum >= 32 && regnum < 48)
9723 /* Quad-precision register. */
05d1431c 9724 return arm_neon_quad_read (gdbarch, regcache, regnum - 32, buf);
58d6951d
DJ
9725 else
9726 {
05d1431c
PA
9727 enum register_status status;
9728
58d6951d
DJ
9729 /* Single-precision register. */
9730 gdb_assert (regnum < 32);
9731
9732 /* s0 is always the least significant half of d0. */
9733 if (gdbarch_byte_order (gdbarch) == BFD_ENDIAN_BIG)
9734 offset = (regnum & 1) ? 0 : 4;
9735 else
9736 offset = (regnum & 1) ? 4 : 0;
9737
8c042590 9738 xsnprintf (name_buf, sizeof (name_buf), "d%d", regnum >> 1);
58d6951d
DJ
9739 double_regnum = user_reg_map_name_to_regnum (gdbarch, name_buf,
9740 strlen (name_buf));
9741
05d1431c
PA
9742 status = regcache_raw_read (regcache, double_regnum, reg_buf);
9743 if (status == REG_VALID)
9744 memcpy (buf, reg_buf + offset, 4);
9745 return status;
58d6951d
DJ
9746 }
9747}
9748
9749/* Store the contents of BUF to a NEON quad register, by writing to
9750 two double registers. This is used to implement the quad pseudo
9751 registers, and for argument passing in case the quad registers are
9752 missing; vectors are passed in quad registers when using the VFP
9753 ABI, even if a NEON unit is not present. REGNUM is the index
9754 of the quad register, in [0, 15]. */
9755
9756static void
9757arm_neon_quad_write (struct gdbarch *gdbarch, struct regcache *regcache,
9758 int regnum, const gdb_byte *buf)
9759{
9760 char name_buf[4];
58d6951d
DJ
9761 int offset, double_regnum;
9762
8c042590 9763 xsnprintf (name_buf, sizeof (name_buf), "d%d", regnum << 1);
58d6951d
DJ
9764 double_regnum = user_reg_map_name_to_regnum (gdbarch, name_buf,
9765 strlen (name_buf));
9766
9767 /* d0 is always the least significant half of q0. */
9768 if (gdbarch_byte_order (gdbarch) == BFD_ENDIAN_BIG)
9769 offset = 8;
9770 else
9771 offset = 0;
9772
9773 regcache_raw_write (regcache, double_regnum, buf + offset);
9774 offset = 8 - offset;
9775 regcache_raw_write (regcache, double_regnum + 1, buf + offset);
9776}
9777
9778static void
9779arm_pseudo_write (struct gdbarch *gdbarch, struct regcache *regcache,
9780 int regnum, const gdb_byte *buf)
9781{
9782 const int num_regs = gdbarch_num_regs (gdbarch);
9783 char name_buf[4];
9784 gdb_byte reg_buf[8];
9785 int offset, double_regnum;
9786
9787 gdb_assert (regnum >= num_regs);
9788 regnum -= num_regs;
9789
9790 if (gdbarch_tdep (gdbarch)->have_neon_pseudos && regnum >= 32 && regnum < 48)
9791 /* Quad-precision register. */
9792 arm_neon_quad_write (gdbarch, regcache, regnum - 32, buf);
9793 else
9794 {
9795 /* Single-precision register. */
9796 gdb_assert (regnum < 32);
9797
9798 /* s0 is always the least significant half of d0. */
9799 if (gdbarch_byte_order (gdbarch) == BFD_ENDIAN_BIG)
9800 offset = (regnum & 1) ? 0 : 4;
9801 else
9802 offset = (regnum & 1) ? 4 : 0;
9803
8c042590 9804 xsnprintf (name_buf, sizeof (name_buf), "d%d", regnum >> 1);
58d6951d
DJ
9805 double_regnum = user_reg_map_name_to_regnum (gdbarch, name_buf,
9806 strlen (name_buf));
9807
9808 regcache_raw_read (regcache, double_regnum, reg_buf);
9809 memcpy (reg_buf + offset, buf, 4);
9810 regcache_raw_write (regcache, double_regnum, reg_buf);
9811 }
9812}
9813
123dc839
DJ
9814static struct value *
9815value_of_arm_user_reg (struct frame_info *frame, const void *baton)
9816{
9817 const int *reg_p = baton;
9818 return value_of_register (*reg_p, frame);
9819}
97e03143 9820\f
70f80edf
JT
9821static enum gdb_osabi
9822arm_elf_osabi_sniffer (bfd *abfd)
97e03143 9823{
2af48f68 9824 unsigned int elfosabi;
70f80edf 9825 enum gdb_osabi osabi = GDB_OSABI_UNKNOWN;
97e03143 9826
70f80edf 9827 elfosabi = elf_elfheader (abfd)->e_ident[EI_OSABI];
97e03143 9828
28e97307
DJ
9829 if (elfosabi == ELFOSABI_ARM)
9830 /* GNU tools use this value. Check note sections in this case,
9831 as well. */
9832 bfd_map_over_sections (abfd,
9833 generic_elf_osabi_sniff_abi_tag_sections,
9834 &osabi);
97e03143 9835
28e97307 9836 /* Anything else will be handled by the generic ELF sniffer. */
70f80edf 9837 return osabi;
97e03143
RE
9838}
9839
54483882
YQ
9840static int
9841arm_register_reggroup_p (struct gdbarch *gdbarch, int regnum,
9842 struct reggroup *group)
9843{
2c291032
YQ
9844 /* FPS register's type is INT, but belongs to float_reggroup. Beside
9845 this, FPS register belongs to save_regroup, restore_reggroup, and
9846 all_reggroup, of course. */
54483882 9847 if (regnum == ARM_FPS_REGNUM)
2c291032
YQ
9848 return (group == float_reggroup
9849 || group == save_reggroup
9850 || group == restore_reggroup
9851 || group == all_reggroup);
54483882
YQ
9852 else
9853 return default_register_reggroup_p (gdbarch, regnum, group);
9854}
9855
25f8c692
JL
9856\f
9857/* For backward-compatibility we allow two 'g' packet lengths with
9858 the remote protocol depending on whether FPA registers are
9859 supplied. M-profile targets do not have FPA registers, but some
9860 stubs already exist in the wild which use a 'g' packet which
9861 supplies them albeit with dummy values. The packet format which
9862 includes FPA registers should be considered deprecated for
9863 M-profile targets. */
9864
9865static void
9866arm_register_g_packet_guesses (struct gdbarch *gdbarch)
9867{
9868 if (gdbarch_tdep (gdbarch)->is_m)
9869 {
9870 /* If we know from the executable this is an M-profile target,
9871 cater for remote targets whose register set layout is the
9872 same as the FPA layout. */
9873 register_remote_g_packet_guess (gdbarch,
03145bf4 9874 /* r0-r12,sp,lr,pc; f0-f7; fps,xpsr */
25f8c692
JL
9875 (16 * INT_REGISTER_SIZE)
9876 + (8 * FP_REGISTER_SIZE)
9877 + (2 * INT_REGISTER_SIZE),
9878 tdesc_arm_with_m_fpa_layout);
9879
9880 /* The regular M-profile layout. */
9881 register_remote_g_packet_guess (gdbarch,
9882 /* r0-r12,sp,lr,pc; xpsr */
9883 (16 * INT_REGISTER_SIZE)
9884 + INT_REGISTER_SIZE,
9885 tdesc_arm_with_m);
3184d3f9
JL
9886
9887 /* M-profile plus M4F VFP. */
9888 register_remote_g_packet_guess (gdbarch,
9889 /* r0-r12,sp,lr,pc; d0-d15; fpscr,xpsr */
9890 (16 * INT_REGISTER_SIZE)
9891 + (16 * VFP_REGISTER_SIZE)
9892 + (2 * INT_REGISTER_SIZE),
9893 tdesc_arm_with_m_vfp_d16);
25f8c692
JL
9894 }
9895
9896 /* Otherwise we don't have a useful guess. */
9897}
9898
70f80edf 9899\f
da3c6d4a
MS
9900/* Initialize the current architecture based on INFO. If possible,
9901 re-use an architecture from ARCHES, which is a list of
9902 architectures already created during this debugging session.
97e03143 9903
da3c6d4a
MS
9904 Called e.g. at program startup, when reading a core file, and when
9905 reading a binary file. */
97e03143 9906
39bbf761
RE
9907static struct gdbarch *
9908arm_gdbarch_init (struct gdbarch_info info, struct gdbarch_list *arches)
9909{
97e03143 9910 struct gdbarch_tdep *tdep;
39bbf761 9911 struct gdbarch *gdbarch;
28e97307
DJ
9912 struct gdbarch_list *best_arch;
9913 enum arm_abi_kind arm_abi = arm_abi_global;
9914 enum arm_float_model fp_model = arm_fp_model;
123dc839 9915 struct tdesc_arch_data *tdesc_data = NULL;
9779414d 9916 int i, is_m = 0;
330c6ca9 9917 int vfp_register_count = 0, have_vfp_pseudos = 0, have_neon_pseudos = 0;
58d6951d 9918 int have_neon = 0;
ff6f572f 9919 int have_fpa_registers = 1;
9779414d
DJ
9920 const struct target_desc *tdesc = info.target_desc;
9921
9922 /* If we have an object to base this architecture on, try to determine
9923 its ABI. */
9924
9925 if (arm_abi == ARM_ABI_AUTO && info.abfd != NULL)
9926 {
9927 int ei_osabi, e_flags;
9928
9929 switch (bfd_get_flavour (info.abfd))
9930 {
9931 case bfd_target_aout_flavour:
9932 /* Assume it's an old APCS-style ABI. */
9933 arm_abi = ARM_ABI_APCS;
9934 break;
9935
9936 case bfd_target_coff_flavour:
9937 /* Assume it's an old APCS-style ABI. */
9938 /* XXX WinCE? */
9939 arm_abi = ARM_ABI_APCS;
9940 break;
9941
9942 case bfd_target_elf_flavour:
9943 ei_osabi = elf_elfheader (info.abfd)->e_ident[EI_OSABI];
9944 e_flags = elf_elfheader (info.abfd)->e_flags;
9945
9946 if (ei_osabi == ELFOSABI_ARM)
9947 {
9948 /* GNU tools used to use this value, but do not for EABI
9949 objects. There's nowhere to tag an EABI version
9950 anyway, so assume APCS. */
9951 arm_abi = ARM_ABI_APCS;
9952 }
d403db27 9953 else if (ei_osabi == ELFOSABI_NONE || ei_osabi == ELFOSABI_GNU)
9779414d
DJ
9954 {
9955 int eabi_ver = EF_ARM_EABI_VERSION (e_flags);
9956 int attr_arch, attr_profile;
9957
9958 switch (eabi_ver)
9959 {
9960 case EF_ARM_EABI_UNKNOWN:
9961 /* Assume GNU tools. */
9962 arm_abi = ARM_ABI_APCS;
9963 break;
9964
9965 case EF_ARM_EABI_VER4:
9966 case EF_ARM_EABI_VER5:
9967 arm_abi = ARM_ABI_AAPCS;
9968 /* EABI binaries default to VFP float ordering.
9969 They may also contain build attributes that can
9970 be used to identify if the VFP argument-passing
9971 ABI is in use. */
9972 if (fp_model == ARM_FLOAT_AUTO)
9973 {
9974#ifdef HAVE_ELF
9975 switch (bfd_elf_get_obj_attr_int (info.abfd,
9976 OBJ_ATTR_PROC,
9977 Tag_ABI_VFP_args))
9978 {
b35b0298 9979 case AEABI_VFP_args_base:
9779414d
DJ
9980 /* "The user intended FP parameter/result
9981 passing to conform to AAPCS, base
9982 variant". */
9983 fp_model = ARM_FLOAT_SOFT_VFP;
9984 break;
b35b0298 9985 case AEABI_VFP_args_vfp:
9779414d
DJ
9986 /* "The user intended FP parameter/result
9987 passing to conform to AAPCS, VFP
9988 variant". */
9989 fp_model = ARM_FLOAT_VFP;
9990 break;
b35b0298 9991 case AEABI_VFP_args_toolchain:
9779414d
DJ
9992 /* "The user intended FP parameter/result
9993 passing to conform to tool chain-specific
9994 conventions" - we don't know any such
9995 conventions, so leave it as "auto". */
9996 break;
b35b0298 9997 case AEABI_VFP_args_compatible:
5c294fee
TG
9998 /* "Code is compatible with both the base
9999 and VFP variants; the user did not permit
10000 non-variadic functions to pass FP
10001 parameters/results" - leave it as
10002 "auto". */
10003 break;
9779414d
DJ
10004 default:
10005 /* Attribute value not mentioned in the
5c294fee 10006 November 2012 ABI, so leave it as
9779414d
DJ
10007 "auto". */
10008 break;
10009 }
10010#else
10011 fp_model = ARM_FLOAT_SOFT_VFP;
10012#endif
10013 }
10014 break;
10015
10016 default:
10017 /* Leave it as "auto". */
10018 warning (_("unknown ARM EABI version 0x%x"), eabi_ver);
10019 break;
10020 }
10021
10022#ifdef HAVE_ELF
10023 /* Detect M-profile programs. This only works if the
10024 executable file includes build attributes; GCC does
10025 copy them to the executable, but e.g. RealView does
10026 not. */
10027 attr_arch = bfd_elf_get_obj_attr_int (info.abfd, OBJ_ATTR_PROC,
10028 Tag_CPU_arch);
0963b4bd
MS
10029 attr_profile = bfd_elf_get_obj_attr_int (info.abfd,
10030 OBJ_ATTR_PROC,
9779414d
DJ
10031 Tag_CPU_arch_profile);
10032 /* GCC specifies the profile for v6-M; RealView only
10033 specifies the profile for architectures starting with
10034 V7 (as opposed to architectures with a tag
10035 numerically greater than TAG_CPU_ARCH_V7). */
10036 if (!tdesc_has_registers (tdesc)
10037 && (attr_arch == TAG_CPU_ARCH_V6_M
10038 || attr_arch == TAG_CPU_ARCH_V6S_M
10039 || attr_profile == 'M'))
25f8c692 10040 is_m = 1;
9779414d
DJ
10041#endif
10042 }
10043
10044 if (fp_model == ARM_FLOAT_AUTO)
10045 {
10046 int e_flags = elf_elfheader (info.abfd)->e_flags;
10047
10048 switch (e_flags & (EF_ARM_SOFT_FLOAT | EF_ARM_VFP_FLOAT))
10049 {
10050 case 0:
10051 /* Leave it as "auto". Strictly speaking this case
10052 means FPA, but almost nobody uses that now, and
10053 many toolchains fail to set the appropriate bits
10054 for the floating-point model they use. */
10055 break;
10056 case EF_ARM_SOFT_FLOAT:
10057 fp_model = ARM_FLOAT_SOFT_FPA;
10058 break;
10059 case EF_ARM_VFP_FLOAT:
10060 fp_model = ARM_FLOAT_VFP;
10061 break;
10062 case EF_ARM_SOFT_FLOAT | EF_ARM_VFP_FLOAT:
10063 fp_model = ARM_FLOAT_SOFT_VFP;
10064 break;
10065 }
10066 }
10067
10068 if (e_flags & EF_ARM_BE8)
10069 info.byte_order_for_code = BFD_ENDIAN_LITTLE;
10070
10071 break;
10072
10073 default:
10074 /* Leave it as "auto". */
10075 break;
10076 }
10077 }
123dc839
DJ
10078
10079 /* Check any target description for validity. */
9779414d 10080 if (tdesc_has_registers (tdesc))
123dc839
DJ
10081 {
10082 /* For most registers we require GDB's default names; but also allow
10083 the numeric names for sp / lr / pc, as a convenience. */
10084 static const char *const arm_sp_names[] = { "r13", "sp", NULL };
10085 static const char *const arm_lr_names[] = { "r14", "lr", NULL };
10086 static const char *const arm_pc_names[] = { "r15", "pc", NULL };
10087
10088 const struct tdesc_feature *feature;
58d6951d 10089 int valid_p;
123dc839 10090
9779414d 10091 feature = tdesc_find_feature (tdesc,
123dc839
DJ
10092 "org.gnu.gdb.arm.core");
10093 if (feature == NULL)
9779414d
DJ
10094 {
10095 feature = tdesc_find_feature (tdesc,
10096 "org.gnu.gdb.arm.m-profile");
10097 if (feature == NULL)
10098 return NULL;
10099 else
10100 is_m = 1;
10101 }
123dc839
DJ
10102
10103 tdesc_data = tdesc_data_alloc ();
10104
10105 valid_p = 1;
10106 for (i = 0; i < ARM_SP_REGNUM; i++)
10107 valid_p &= tdesc_numbered_register (feature, tdesc_data, i,
10108 arm_register_names[i]);
10109 valid_p &= tdesc_numbered_register_choices (feature, tdesc_data,
10110 ARM_SP_REGNUM,
10111 arm_sp_names);
10112 valid_p &= tdesc_numbered_register_choices (feature, tdesc_data,
10113 ARM_LR_REGNUM,
10114 arm_lr_names);
10115 valid_p &= tdesc_numbered_register_choices (feature, tdesc_data,
10116 ARM_PC_REGNUM,
10117 arm_pc_names);
9779414d
DJ
10118 if (is_m)
10119 valid_p &= tdesc_numbered_register (feature, tdesc_data,
10120 ARM_PS_REGNUM, "xpsr");
10121 else
10122 valid_p &= tdesc_numbered_register (feature, tdesc_data,
10123 ARM_PS_REGNUM, "cpsr");
123dc839
DJ
10124
10125 if (!valid_p)
10126 {
10127 tdesc_data_cleanup (tdesc_data);
10128 return NULL;
10129 }
10130
9779414d 10131 feature = tdesc_find_feature (tdesc,
123dc839
DJ
10132 "org.gnu.gdb.arm.fpa");
10133 if (feature != NULL)
10134 {
10135 valid_p = 1;
10136 for (i = ARM_F0_REGNUM; i <= ARM_FPS_REGNUM; i++)
10137 valid_p &= tdesc_numbered_register (feature, tdesc_data, i,
10138 arm_register_names[i]);
10139 if (!valid_p)
10140 {
10141 tdesc_data_cleanup (tdesc_data);
10142 return NULL;
10143 }
10144 }
ff6f572f
DJ
10145 else
10146 have_fpa_registers = 0;
10147
9779414d 10148 feature = tdesc_find_feature (tdesc,
ff6f572f
DJ
10149 "org.gnu.gdb.xscale.iwmmxt");
10150 if (feature != NULL)
10151 {
10152 static const char *const iwmmxt_names[] = {
10153 "wR0", "wR1", "wR2", "wR3", "wR4", "wR5", "wR6", "wR7",
10154 "wR8", "wR9", "wR10", "wR11", "wR12", "wR13", "wR14", "wR15",
10155 "wCID", "wCon", "wCSSF", "wCASF", "", "", "", "",
10156 "wCGR0", "wCGR1", "wCGR2", "wCGR3", "", "", "", "",
10157 };
10158
10159 valid_p = 1;
10160 for (i = ARM_WR0_REGNUM; i <= ARM_WR15_REGNUM; i++)
10161 valid_p
10162 &= tdesc_numbered_register (feature, tdesc_data, i,
10163 iwmmxt_names[i - ARM_WR0_REGNUM]);
10164
10165 /* Check for the control registers, but do not fail if they
10166 are missing. */
10167 for (i = ARM_WC0_REGNUM; i <= ARM_WCASF_REGNUM; i++)
10168 tdesc_numbered_register (feature, tdesc_data, i,
10169 iwmmxt_names[i - ARM_WR0_REGNUM]);
10170
10171 for (i = ARM_WCGR0_REGNUM; i <= ARM_WCGR3_REGNUM; i++)
10172 valid_p
10173 &= tdesc_numbered_register (feature, tdesc_data, i,
10174 iwmmxt_names[i - ARM_WR0_REGNUM]);
10175
10176 if (!valid_p)
10177 {
10178 tdesc_data_cleanup (tdesc_data);
10179 return NULL;
10180 }
10181 }
58d6951d
DJ
10182
10183 /* If we have a VFP unit, check whether the single precision registers
10184 are present. If not, then we will synthesize them as pseudo
10185 registers. */
9779414d 10186 feature = tdesc_find_feature (tdesc,
58d6951d
DJ
10187 "org.gnu.gdb.arm.vfp");
10188 if (feature != NULL)
10189 {
10190 static const char *const vfp_double_names[] = {
10191 "d0", "d1", "d2", "d3", "d4", "d5", "d6", "d7",
10192 "d8", "d9", "d10", "d11", "d12", "d13", "d14", "d15",
10193 "d16", "d17", "d18", "d19", "d20", "d21", "d22", "d23",
10194 "d24", "d25", "d26", "d27", "d28", "d29", "d30", "d31",
10195 };
10196
10197 /* Require the double precision registers. There must be either
10198 16 or 32. */
10199 valid_p = 1;
10200 for (i = 0; i < 32; i++)
10201 {
10202 valid_p &= tdesc_numbered_register (feature, tdesc_data,
10203 ARM_D0_REGNUM + i,
10204 vfp_double_names[i]);
10205 if (!valid_p)
10206 break;
10207 }
2b9e5ea6
UW
10208 if (!valid_p && i == 16)
10209 valid_p = 1;
58d6951d 10210
2b9e5ea6
UW
10211 /* Also require FPSCR. */
10212 valid_p &= tdesc_numbered_register (feature, tdesc_data,
10213 ARM_FPSCR_REGNUM, "fpscr");
10214 if (!valid_p)
58d6951d
DJ
10215 {
10216 tdesc_data_cleanup (tdesc_data);
10217 return NULL;
10218 }
10219
10220 if (tdesc_unnumbered_register (feature, "s0") == 0)
10221 have_vfp_pseudos = 1;
10222
330c6ca9 10223 vfp_register_count = i;
58d6951d
DJ
10224
10225 /* If we have VFP, also check for NEON. The architecture allows
10226 NEON without VFP (integer vector operations only), but GDB
10227 does not support that. */
9779414d 10228 feature = tdesc_find_feature (tdesc,
58d6951d
DJ
10229 "org.gnu.gdb.arm.neon");
10230 if (feature != NULL)
10231 {
10232 /* NEON requires 32 double-precision registers. */
10233 if (i != 32)
10234 {
10235 tdesc_data_cleanup (tdesc_data);
10236 return NULL;
10237 }
10238
10239 /* If there are quad registers defined by the stub, use
10240 their type; otherwise (normally) provide them with
10241 the default type. */
10242 if (tdesc_unnumbered_register (feature, "q0") == 0)
10243 have_neon_pseudos = 1;
10244
10245 have_neon = 1;
10246 }
10247 }
123dc839 10248 }
39bbf761 10249
28e97307
DJ
10250 /* If there is already a candidate, use it. */
10251 for (best_arch = gdbarch_list_lookup_by_info (arches, &info);
10252 best_arch != NULL;
10253 best_arch = gdbarch_list_lookup_by_info (best_arch->next, &info))
10254 {
b8926edc
DJ
10255 if (arm_abi != ARM_ABI_AUTO
10256 && arm_abi != gdbarch_tdep (best_arch->gdbarch)->arm_abi)
28e97307
DJ
10257 continue;
10258
b8926edc
DJ
10259 if (fp_model != ARM_FLOAT_AUTO
10260 && fp_model != gdbarch_tdep (best_arch->gdbarch)->fp_model)
28e97307
DJ
10261 continue;
10262
58d6951d
DJ
10263 /* There are various other properties in tdep that we do not
10264 need to check here: those derived from a target description,
10265 since gdbarches with a different target description are
10266 automatically disqualified. */
10267
9779414d
DJ
10268 /* Do check is_m, though, since it might come from the binary. */
10269 if (is_m != gdbarch_tdep (best_arch->gdbarch)->is_m)
10270 continue;
10271
28e97307
DJ
10272 /* Found a match. */
10273 break;
10274 }
97e03143 10275
28e97307 10276 if (best_arch != NULL)
123dc839
DJ
10277 {
10278 if (tdesc_data != NULL)
10279 tdesc_data_cleanup (tdesc_data);
10280 return best_arch->gdbarch;
10281 }
28e97307
DJ
10282
10283 tdep = xcalloc (1, sizeof (struct gdbarch_tdep));
97e03143
RE
10284 gdbarch = gdbarch_alloc (&info, tdep);
10285
28e97307
DJ
10286 /* Record additional information about the architecture we are defining.
10287 These are gdbarch discriminators, like the OSABI. */
10288 tdep->arm_abi = arm_abi;
10289 tdep->fp_model = fp_model;
9779414d 10290 tdep->is_m = is_m;
ff6f572f 10291 tdep->have_fpa_registers = have_fpa_registers;
330c6ca9
YQ
10292 gdb_assert (vfp_register_count == 0
10293 || vfp_register_count == 16
10294 || vfp_register_count == 32);
10295 tdep->vfp_register_count = vfp_register_count;
58d6951d
DJ
10296 tdep->have_vfp_pseudos = have_vfp_pseudos;
10297 tdep->have_neon_pseudos = have_neon_pseudos;
10298 tdep->have_neon = have_neon;
08216dd7 10299
25f8c692
JL
10300 arm_register_g_packet_guesses (gdbarch);
10301
08216dd7 10302 /* Breakpoints. */
9d4fde75 10303 switch (info.byte_order_for_code)
67255d04
RE
10304 {
10305 case BFD_ENDIAN_BIG:
66e810cd
RE
10306 tdep->arm_breakpoint = arm_default_arm_be_breakpoint;
10307 tdep->arm_breakpoint_size = sizeof (arm_default_arm_be_breakpoint);
10308 tdep->thumb_breakpoint = arm_default_thumb_be_breakpoint;
10309 tdep->thumb_breakpoint_size = sizeof (arm_default_thumb_be_breakpoint);
10310
67255d04
RE
10311 break;
10312
10313 case BFD_ENDIAN_LITTLE:
66e810cd
RE
10314 tdep->arm_breakpoint = arm_default_arm_le_breakpoint;
10315 tdep->arm_breakpoint_size = sizeof (arm_default_arm_le_breakpoint);
10316 tdep->thumb_breakpoint = arm_default_thumb_le_breakpoint;
10317 tdep->thumb_breakpoint_size = sizeof (arm_default_thumb_le_breakpoint);
10318
67255d04
RE
10319 break;
10320
10321 default:
10322 internal_error (__FILE__, __LINE__,
edefbb7c 10323 _("arm_gdbarch_init: bad byte order for float format"));
67255d04
RE
10324 }
10325
d7b486e7
RE
10326 /* On ARM targets char defaults to unsigned. */
10327 set_gdbarch_char_signed (gdbarch, 0);
10328
cca44b1b
JB
10329 /* Note: for displaced stepping, this includes the breakpoint, and one word
10330 of additional scratch space. This setting isn't used for anything beside
10331 displaced stepping at present. */
10332 set_gdbarch_max_insn_length (gdbarch, 4 * DISPLACED_MODIFIED_INSNS);
10333
9df628e0 10334 /* This should be low enough for everything. */
97e03143 10335 tdep->lowest_pc = 0x20;
94c30b78 10336 tdep->jb_pc = -1; /* Longjump support not enabled by default. */
97e03143 10337
7c00367c
MK
10338 /* The default, for both APCS and AAPCS, is to return small
10339 structures in registers. */
10340 tdep->struct_return = reg_struct_return;
10341
2dd604e7 10342 set_gdbarch_push_dummy_call (gdbarch, arm_push_dummy_call);
f53f0d0b 10343 set_gdbarch_frame_align (gdbarch, arm_frame_align);
39bbf761 10344
756fe439
DJ
10345 set_gdbarch_write_pc (gdbarch, arm_write_pc);
10346
148754e5 10347 /* Frame handling. */
a262aec2 10348 set_gdbarch_dummy_id (gdbarch, arm_dummy_id);
eb5492fa
DJ
10349 set_gdbarch_unwind_pc (gdbarch, arm_unwind_pc);
10350 set_gdbarch_unwind_sp (gdbarch, arm_unwind_sp);
10351
eb5492fa 10352 frame_base_set_default (gdbarch, &arm_normal_base);
148754e5 10353
34e8f22d 10354 /* Address manipulation. */
34e8f22d
RE
10355 set_gdbarch_addr_bits_remove (gdbarch, arm_addr_bits_remove);
10356
34e8f22d
RE
10357 /* Advance PC across function entry code. */
10358 set_gdbarch_skip_prologue (gdbarch, arm_skip_prologue);
10359
c9cf6e20
MG
10360 /* Detect whether PC is at a point where the stack has been destroyed. */
10361 set_gdbarch_stack_frame_destroyed_p (gdbarch, arm_stack_frame_destroyed_p);
4024ca99 10362
190dce09
UW
10363 /* Skip trampolines. */
10364 set_gdbarch_skip_trampoline_code (gdbarch, arm_skip_stub);
10365
34e8f22d
RE
10366 /* The stack grows downward. */
10367 set_gdbarch_inner_than (gdbarch, core_addr_lessthan);
10368
10369 /* Breakpoint manipulation. */
10370 set_gdbarch_breakpoint_from_pc (gdbarch, arm_breakpoint_from_pc);
177321bd
DJ
10371 set_gdbarch_remote_breakpoint_from_pc (gdbarch,
10372 arm_remote_breakpoint_from_pc);
34e8f22d
RE
10373
10374 /* Information about registers, etc. */
34e8f22d
RE
10375 set_gdbarch_sp_regnum (gdbarch, ARM_SP_REGNUM);
10376 set_gdbarch_pc_regnum (gdbarch, ARM_PC_REGNUM);
ff6f572f 10377 set_gdbarch_num_regs (gdbarch, ARM_NUM_REGS);
7a5ea0d4 10378 set_gdbarch_register_type (gdbarch, arm_register_type);
54483882 10379 set_gdbarch_register_reggroup_p (gdbarch, arm_register_reggroup_p);
34e8f22d 10380
ff6f572f
DJ
10381 /* This "info float" is FPA-specific. Use the generic version if we
10382 do not have FPA. */
10383 if (gdbarch_tdep (gdbarch)->have_fpa_registers)
10384 set_gdbarch_print_float_info (gdbarch, arm_print_float_info);
10385
26216b98 10386 /* Internal <-> external register number maps. */
ff6f572f 10387 set_gdbarch_dwarf2_reg_to_regnum (gdbarch, arm_dwarf_reg_to_regnum);
26216b98
AC
10388 set_gdbarch_register_sim_regno (gdbarch, arm_register_sim_regno);
10389
34e8f22d
RE
10390 set_gdbarch_register_name (gdbarch, arm_register_name);
10391
10392 /* Returning results. */
2af48f68 10393 set_gdbarch_return_value (gdbarch, arm_return_value);
34e8f22d 10394
03d48a7d
RE
10395 /* Disassembly. */
10396 set_gdbarch_print_insn (gdbarch, gdb_print_insn_arm);
10397
34e8f22d
RE
10398 /* Minsymbol frobbing. */
10399 set_gdbarch_elf_make_msymbol_special (gdbarch, arm_elf_make_msymbol_special);
10400 set_gdbarch_coff_make_msymbol_special (gdbarch,
10401 arm_coff_make_msymbol_special);
60c5725c 10402 set_gdbarch_record_special_symbol (gdbarch, arm_record_special_symbol);
34e8f22d 10403
f9d67f43
DJ
10404 /* Thumb-2 IT block support. */
10405 set_gdbarch_adjust_breakpoint_address (gdbarch,
10406 arm_adjust_breakpoint_address);
10407
0d5de010
DJ
10408 /* Virtual tables. */
10409 set_gdbarch_vbit_in_delta (gdbarch, 1);
10410
97e03143 10411 /* Hook in the ABI-specific overrides, if they have been registered. */
4be87837 10412 gdbarch_init_osabi (info, gdbarch);
97e03143 10413
b39cc962
DJ
10414 dwarf2_frame_set_init_reg (gdbarch, arm_dwarf2_frame_init_reg);
10415
eb5492fa 10416 /* Add some default predicates. */
2ae28aa9
YQ
10417 if (is_m)
10418 frame_unwind_append_unwinder (gdbarch, &arm_m_exception_unwind);
a262aec2
DJ
10419 frame_unwind_append_unwinder (gdbarch, &arm_stub_unwind);
10420 dwarf2_append_unwinders (gdbarch);
0e9e9abd 10421 frame_unwind_append_unwinder (gdbarch, &arm_exidx_unwind);
a262aec2 10422 frame_unwind_append_unwinder (gdbarch, &arm_prologue_unwind);
eb5492fa 10423
97e03143
RE
10424 /* Now we have tuned the configuration, set a few final things,
10425 based on what the OS ABI has told us. */
10426
b8926edc
DJ
10427 /* If the ABI is not otherwise marked, assume the old GNU APCS. EABI
10428 binaries are always marked. */
10429 if (tdep->arm_abi == ARM_ABI_AUTO)
10430 tdep->arm_abi = ARM_ABI_APCS;
10431
e3039479
UW
10432 /* Watchpoints are not steppable. */
10433 set_gdbarch_have_nonsteppable_watchpoint (gdbarch, 1);
10434
b8926edc
DJ
10435 /* We used to default to FPA for generic ARM, but almost nobody
10436 uses that now, and we now provide a way for the user to force
10437 the model. So default to the most useful variant. */
10438 if (tdep->fp_model == ARM_FLOAT_AUTO)
10439 tdep->fp_model = ARM_FLOAT_SOFT_FPA;
10440
9df628e0
RE
10441 if (tdep->jb_pc >= 0)
10442 set_gdbarch_get_longjmp_target (gdbarch, arm_get_longjmp_target);
10443
08216dd7 10444 /* Floating point sizes and format. */
8da61cc4 10445 set_gdbarch_float_format (gdbarch, floatformats_ieee_single);
b8926edc 10446 if (tdep->fp_model == ARM_FLOAT_SOFT_FPA || tdep->fp_model == ARM_FLOAT_FPA)
08216dd7 10447 {
8da61cc4
DJ
10448 set_gdbarch_double_format
10449 (gdbarch, floatformats_ieee_double_littlebyte_bigword);
10450 set_gdbarch_long_double_format
10451 (gdbarch, floatformats_ieee_double_littlebyte_bigword);
10452 }
10453 else
10454 {
10455 set_gdbarch_double_format (gdbarch, floatformats_ieee_double);
10456 set_gdbarch_long_double_format (gdbarch, floatformats_ieee_double);
08216dd7
RE
10457 }
10458
58d6951d
DJ
10459 if (have_vfp_pseudos)
10460 {
10461 /* NOTE: These are the only pseudo registers used by
10462 the ARM target at the moment. If more are added, a
10463 little more care in numbering will be needed. */
10464
10465 int num_pseudos = 32;
10466 if (have_neon_pseudos)
10467 num_pseudos += 16;
10468 set_gdbarch_num_pseudo_regs (gdbarch, num_pseudos);
10469 set_gdbarch_pseudo_register_read (gdbarch, arm_pseudo_read);
10470 set_gdbarch_pseudo_register_write (gdbarch, arm_pseudo_write);
10471 }
10472
123dc839 10473 if (tdesc_data)
58d6951d
DJ
10474 {
10475 set_tdesc_pseudo_register_name (gdbarch, arm_register_name);
10476
9779414d 10477 tdesc_use_registers (gdbarch, tdesc, tdesc_data);
58d6951d
DJ
10478
10479 /* Override tdesc_register_type to adjust the types of VFP
10480 registers for NEON. */
10481 set_gdbarch_register_type (gdbarch, arm_register_type);
10482 }
123dc839
DJ
10483
10484 /* Add standard register aliases. We add aliases even for those
10485 nanes which are used by the current architecture - it's simpler,
10486 and does no harm, since nothing ever lists user registers. */
10487 for (i = 0; i < ARRAY_SIZE (arm_register_aliases); i++)
10488 user_reg_add (gdbarch, arm_register_aliases[i].name,
10489 value_of_arm_user_reg, &arm_register_aliases[i].regnum);
10490
39bbf761
RE
10491 return gdbarch;
10492}
10493
97e03143 10494static void
2af46ca0 10495arm_dump_tdep (struct gdbarch *gdbarch, struct ui_file *file)
97e03143 10496{
2af46ca0 10497 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
97e03143
RE
10498
10499 if (tdep == NULL)
10500 return;
10501
edefbb7c 10502 fprintf_unfiltered (file, _("arm_dump_tdep: Lowest pc = 0x%lx"),
97e03143
RE
10503 (unsigned long) tdep->lowest_pc);
10504}
10505
a78f21af
AC
10506extern initialize_file_ftype _initialize_arm_tdep; /* -Wmissing-prototypes */
10507
c906108c 10508void
ed9a39eb 10509_initialize_arm_tdep (void)
c906108c 10510{
bc90b915
FN
10511 struct ui_file *stb;
10512 long length;
26304000 10513 struct cmd_list_element *new_set, *new_show;
53904c9e
AC
10514 const char *setname;
10515 const char *setdesc;
4bd7b427 10516 const char *const *regnames;
bc90b915
FN
10517 int numregs, i, j;
10518 static char *helptext;
edefbb7c
AC
10519 char regdesc[1024], *rdptr = regdesc;
10520 size_t rest = sizeof (regdesc);
085dd6e6 10521
42cf1509 10522 gdbarch_register (bfd_arch_arm, arm_gdbarch_init, arm_dump_tdep);
97e03143 10523
60c5725c 10524 arm_objfile_data_key
c1bd65d0 10525 = register_objfile_data_with_cleanup (NULL, arm_objfile_data_free);
60c5725c 10526
0e9e9abd
UW
10527 /* Add ourselves to objfile event chain. */
10528 observer_attach_new_objfile (arm_exidx_new_objfile);
10529 arm_exidx_data_key
10530 = register_objfile_data_with_cleanup (NULL, arm_exidx_data_free);
10531
70f80edf
JT
10532 /* Register an ELF OS ABI sniffer for ARM binaries. */
10533 gdbarch_register_osabi_sniffer (bfd_arch_arm,
10534 bfd_target_elf_flavour,
10535 arm_elf_osabi_sniffer);
10536
9779414d
DJ
10537 /* Initialize the standard target descriptions. */
10538 initialize_tdesc_arm_with_m ();
25f8c692 10539 initialize_tdesc_arm_with_m_fpa_layout ();
3184d3f9 10540 initialize_tdesc_arm_with_m_vfp_d16 ();
ef7e8358
UW
10541 initialize_tdesc_arm_with_iwmmxt ();
10542 initialize_tdesc_arm_with_vfpv2 ();
10543 initialize_tdesc_arm_with_vfpv3 ();
10544 initialize_tdesc_arm_with_neon ();
9779414d 10545
94c30b78 10546 /* Get the number of possible sets of register names defined in opcodes. */
afd7eef0
RE
10547 num_disassembly_options = get_arm_regname_num_options ();
10548
10549 /* Add root prefix command for all "set arm"/"show arm" commands. */
10550 add_prefix_cmd ("arm", no_class, set_arm_command,
edefbb7c 10551 _("Various ARM-specific commands."),
afd7eef0
RE
10552 &setarmcmdlist, "set arm ", 0, &setlist);
10553
10554 add_prefix_cmd ("arm", no_class, show_arm_command,
edefbb7c 10555 _("Various ARM-specific commands."),
afd7eef0 10556 &showarmcmdlist, "show arm ", 0, &showlist);
bc90b915 10557
94c30b78 10558 /* Sync the opcode insn printer with our register viewer. */
bc90b915 10559 parse_arm_disassembler_option ("reg-names-std");
c5aa993b 10560
eefe576e
AC
10561 /* Initialize the array that will be passed to
10562 add_setshow_enum_cmd(). */
afd7eef0
RE
10563 valid_disassembly_styles
10564 = xmalloc ((num_disassembly_options + 1) * sizeof (char *));
10565 for (i = 0; i < num_disassembly_options; i++)
bc90b915
FN
10566 {
10567 numregs = get_arm_regnames (i, &setname, &setdesc, &regnames);
afd7eef0 10568 valid_disassembly_styles[i] = setname;
edefbb7c
AC
10569 length = snprintf (rdptr, rest, "%s - %s\n", setname, setdesc);
10570 rdptr += length;
10571 rest -= length;
123dc839
DJ
10572 /* When we find the default names, tell the disassembler to use
10573 them. */
bc90b915
FN
10574 if (!strcmp (setname, "std"))
10575 {
afd7eef0 10576 disassembly_style = setname;
bc90b915
FN
10577 set_arm_regname_option (i);
10578 }
10579 }
94c30b78 10580 /* Mark the end of valid options. */
afd7eef0 10581 valid_disassembly_styles[num_disassembly_options] = NULL;
c906108c 10582
edefbb7c
AC
10583 /* Create the help text. */
10584 stb = mem_fileopen ();
10585 fprintf_unfiltered (stb, "%s%s%s",
10586 _("The valid values are:\n"),
10587 regdesc,
10588 _("The default is \"std\"."));
759ef836 10589 helptext = ui_file_xstrdup (stb, NULL);
bc90b915 10590 ui_file_delete (stb);
ed9a39eb 10591
edefbb7c
AC
10592 add_setshow_enum_cmd("disassembler", no_class,
10593 valid_disassembly_styles, &disassembly_style,
10594 _("Set the disassembly style."),
10595 _("Show the disassembly style."),
10596 helptext,
2c5b56ce 10597 set_disassembly_style_sfunc,
0963b4bd
MS
10598 NULL, /* FIXME: i18n: The disassembly style is
10599 \"%s\". */
7376b4c2 10600 &setarmcmdlist, &showarmcmdlist);
edefbb7c
AC
10601
10602 add_setshow_boolean_cmd ("apcs32", no_class, &arm_apcs_32,
10603 _("Set usage of ARM 32-bit mode."),
10604 _("Show usage of ARM 32-bit mode."),
10605 _("When off, a 26-bit PC will be used."),
2c5b56ce 10606 NULL,
0963b4bd
MS
10607 NULL, /* FIXME: i18n: Usage of ARM 32-bit
10608 mode is %s. */
26304000 10609 &setarmcmdlist, &showarmcmdlist);
c906108c 10610
fd50bc42 10611 /* Add a command to allow the user to force the FPU model. */
edefbb7c
AC
10612 add_setshow_enum_cmd ("fpu", no_class, fp_model_strings, &current_fp_model,
10613 _("Set the floating point type."),
10614 _("Show the floating point type."),
10615 _("auto - Determine the FP typefrom the OS-ABI.\n\
10616softfpa - Software FP, mixed-endian doubles on little-endian ARMs.\n\
10617fpa - FPA co-processor (GCC compiled).\n\
10618softvfp - Software FP with pure-endian doubles.\n\
10619vfp - VFP co-processor."),
edefbb7c 10620 set_fp_model_sfunc, show_fp_model,
7376b4c2 10621 &setarmcmdlist, &showarmcmdlist);
fd50bc42 10622
28e97307
DJ
10623 /* Add a command to allow the user to force the ABI. */
10624 add_setshow_enum_cmd ("abi", class_support, arm_abi_strings, &arm_abi_string,
10625 _("Set the ABI."),
10626 _("Show the ABI."),
10627 NULL, arm_set_abi, arm_show_abi,
10628 &setarmcmdlist, &showarmcmdlist);
10629
0428b8f5
DJ
10630 /* Add two commands to allow the user to force the assumed
10631 execution mode. */
10632 add_setshow_enum_cmd ("fallback-mode", class_support,
10633 arm_mode_strings, &arm_fallback_mode_string,
10634 _("Set the mode assumed when symbols are unavailable."),
10635 _("Show the mode assumed when symbols are unavailable."),
10636 NULL, NULL, arm_show_fallback_mode,
10637 &setarmcmdlist, &showarmcmdlist);
10638 add_setshow_enum_cmd ("force-mode", class_support,
10639 arm_mode_strings, &arm_force_mode_string,
10640 _("Set the mode assumed even when symbols are available."),
10641 _("Show the mode assumed even when symbols are available."),
10642 NULL, NULL, arm_show_force_mode,
10643 &setarmcmdlist, &showarmcmdlist);
10644
6529d2dd 10645 /* Debugging flag. */
edefbb7c
AC
10646 add_setshow_boolean_cmd ("arm", class_maintenance, &arm_debug,
10647 _("Set ARM debugging."),
10648 _("Show ARM debugging."),
10649 _("When on, arm-specific debugging is enabled."),
2c5b56ce 10650 NULL,
7915a72c 10651 NULL, /* FIXME: i18n: "ARM debugging is %s. */
26304000 10652 &setdebuglist, &showdebuglist);
c906108c 10653}
72508ac0
PO
10654
10655/* ARM-reversible process record data structures. */
10656
10657#define ARM_INSN_SIZE_BYTES 4
10658#define THUMB_INSN_SIZE_BYTES 2
10659#define THUMB2_INSN_SIZE_BYTES 4
10660
10661
71e396f9
LM
10662/* Position of the bit within a 32-bit ARM instruction
10663 that defines whether the instruction is a load or store. */
72508ac0
PO
10664#define INSN_S_L_BIT_NUM 20
10665
10666#define REG_ALLOC(REGS, LENGTH, RECORD_BUF) \
10667 do \
10668 { \
10669 unsigned int reg_len = LENGTH; \
10670 if (reg_len) \
10671 { \
10672 REGS = XNEWVEC (uint32_t, reg_len); \
10673 memcpy(&REGS[0], &RECORD_BUF[0], sizeof(uint32_t)*LENGTH); \
10674 } \
10675 } \
10676 while (0)
10677
10678#define MEM_ALLOC(MEMS, LENGTH, RECORD_BUF) \
10679 do \
10680 { \
10681 unsigned int mem_len = LENGTH; \
10682 if (mem_len) \
10683 { \
10684 MEMS = XNEWVEC (struct arm_mem_r, mem_len); \
10685 memcpy(&MEMS->len, &RECORD_BUF[0], \
10686 sizeof(struct arm_mem_r) * LENGTH); \
10687 } \
10688 } \
10689 while (0)
10690
10691/* Checks whether insn is already recorded or yet to be decoded. (boolean expression). */
10692#define INSN_RECORDED(ARM_RECORD) \
10693 (0 != (ARM_RECORD)->reg_rec_count || 0 != (ARM_RECORD)->mem_rec_count)
10694
10695/* ARM memory record structure. */
10696struct arm_mem_r
10697{
10698 uint32_t len; /* Record length. */
bfbbec00 10699 uint32_t addr; /* Memory address. */
72508ac0
PO
10700};
10701
10702/* ARM instruction record contains opcode of current insn
10703 and execution state (before entry to decode_insn()),
10704 contains list of to-be-modified registers and
10705 memory blocks (on return from decode_insn()). */
10706
10707typedef struct insn_decode_record_t
10708{
10709 struct gdbarch *gdbarch;
10710 struct regcache *regcache;
10711 CORE_ADDR this_addr; /* Address of the insn being decoded. */
10712 uint32_t arm_insn; /* Should accommodate thumb. */
10713 uint32_t cond; /* Condition code. */
10714 uint32_t opcode; /* Insn opcode. */
10715 uint32_t decode; /* Insn decode bits. */
10716 uint32_t mem_rec_count; /* No of mem records. */
10717 uint32_t reg_rec_count; /* No of reg records. */
10718 uint32_t *arm_regs; /* Registers to be saved for this record. */
10719 struct arm_mem_r *arm_mems; /* Memory to be saved for this record. */
10720} insn_decode_record;
10721
10722
10723/* Checks ARM SBZ and SBO mandatory fields. */
10724
10725static int
10726sbo_sbz (uint32_t insn, uint32_t bit_num, uint32_t len, uint32_t sbo)
10727{
10728 uint32_t ones = bits (insn, bit_num - 1, (bit_num -1) + (len - 1));
10729
10730 if (!len)
10731 return 1;
10732
10733 if (!sbo)
10734 ones = ~ones;
10735
10736 while (ones)
10737 {
10738 if (!(ones & sbo))
10739 {
10740 return 0;
10741 }
10742 ones = ones >> 1;
10743 }
10744 return 1;
10745}
10746
c6ec2b30
OJ
10747enum arm_record_result
10748{
10749 ARM_RECORD_SUCCESS = 0,
10750 ARM_RECORD_FAILURE = 1
10751};
10752
72508ac0
PO
10753typedef enum
10754{
10755 ARM_RECORD_STRH=1,
10756 ARM_RECORD_STRD
10757} arm_record_strx_t;
10758
10759typedef enum
10760{
10761 ARM_RECORD=1,
10762 THUMB_RECORD,
10763 THUMB2_RECORD
10764} record_type_t;
10765
10766
10767static int
10768arm_record_strx (insn_decode_record *arm_insn_r, uint32_t *record_buf,
10769 uint32_t *record_buf_mem, arm_record_strx_t str_type)
10770{
10771
10772 struct regcache *reg_cache = arm_insn_r->regcache;
10773 ULONGEST u_regval[2]= {0};
10774
10775 uint32_t reg_src1 = 0, reg_src2 = 0;
10776 uint32_t immed_high = 0, immed_low = 0,offset_8 = 0, tgt_mem_addr = 0;
10777 uint32_t opcode1 = 0;
10778
10779 arm_insn_r->opcode = bits (arm_insn_r->arm_insn, 21, 24);
10780 arm_insn_r->decode = bits (arm_insn_r->arm_insn, 4, 7);
10781 opcode1 = bits (arm_insn_r->arm_insn, 20, 24);
10782
10783
10784 if (14 == arm_insn_r->opcode || 10 == arm_insn_r->opcode)
10785 {
10786 /* 1) Handle misc store, immediate offset. */
10787 immed_low = bits (arm_insn_r->arm_insn, 0, 3);
10788 immed_high = bits (arm_insn_r->arm_insn, 8, 11);
10789 reg_src1 = bits (arm_insn_r->arm_insn, 16, 19);
10790 regcache_raw_read_unsigned (reg_cache, reg_src1,
10791 &u_regval[0]);
10792 if (ARM_PC_REGNUM == reg_src1)
10793 {
10794 /* If R15 was used as Rn, hence current PC+8. */
10795 u_regval[0] = u_regval[0] + 8;
10796 }
10797 offset_8 = (immed_high << 4) | immed_low;
10798 /* Calculate target store address. */
10799 if (14 == arm_insn_r->opcode)
10800 {
10801 tgt_mem_addr = u_regval[0] + offset_8;
10802 }
10803 else
10804 {
10805 tgt_mem_addr = u_regval[0] - offset_8;
10806 }
10807 if (ARM_RECORD_STRH == str_type)
10808 {
10809 record_buf_mem[0] = 2;
10810 record_buf_mem[1] = tgt_mem_addr;
10811 arm_insn_r->mem_rec_count = 1;
10812 }
10813 else if (ARM_RECORD_STRD == str_type)
10814 {
10815 record_buf_mem[0] = 4;
10816 record_buf_mem[1] = tgt_mem_addr;
10817 record_buf_mem[2] = 4;
10818 record_buf_mem[3] = tgt_mem_addr + 4;
10819 arm_insn_r->mem_rec_count = 2;
10820 }
10821 }
10822 else if (12 == arm_insn_r->opcode || 8 == arm_insn_r->opcode)
10823 {
10824 /* 2) Store, register offset. */
10825 /* Get Rm. */
10826 reg_src1 = bits (arm_insn_r->arm_insn, 0, 3);
10827 /* Get Rn. */
10828 reg_src2 = bits (arm_insn_r->arm_insn, 16, 19);
10829 regcache_raw_read_unsigned (reg_cache, reg_src1, &u_regval[0]);
10830 regcache_raw_read_unsigned (reg_cache, reg_src2, &u_regval[1]);
10831 if (15 == reg_src2)
10832 {
10833 /* If R15 was used as Rn, hence current PC+8. */
10834 u_regval[0] = u_regval[0] + 8;
10835 }
10836 /* Calculate target store address, Rn +/- Rm, register offset. */
10837 if (12 == arm_insn_r->opcode)
10838 {
10839 tgt_mem_addr = u_regval[0] + u_regval[1];
10840 }
10841 else
10842 {
10843 tgt_mem_addr = u_regval[1] - u_regval[0];
10844 }
10845 if (ARM_RECORD_STRH == str_type)
10846 {
10847 record_buf_mem[0] = 2;
10848 record_buf_mem[1] = tgt_mem_addr;
10849 arm_insn_r->mem_rec_count = 1;
10850 }
10851 else if (ARM_RECORD_STRD == str_type)
10852 {
10853 record_buf_mem[0] = 4;
10854 record_buf_mem[1] = tgt_mem_addr;
10855 record_buf_mem[2] = 4;
10856 record_buf_mem[3] = tgt_mem_addr + 4;
10857 arm_insn_r->mem_rec_count = 2;
10858 }
10859 }
10860 else if (11 == arm_insn_r->opcode || 15 == arm_insn_r->opcode
10861 || 2 == arm_insn_r->opcode || 6 == arm_insn_r->opcode)
10862 {
10863 /* 3) Store, immediate pre-indexed. */
10864 /* 5) Store, immediate post-indexed. */
10865 immed_low = bits (arm_insn_r->arm_insn, 0, 3);
10866 immed_high = bits (arm_insn_r->arm_insn, 8, 11);
10867 offset_8 = (immed_high << 4) | immed_low;
10868 reg_src1 = bits (arm_insn_r->arm_insn, 16, 19);
10869 regcache_raw_read_unsigned (reg_cache, reg_src1, &u_regval[0]);
10870 /* Calculate target store address, Rn +/- Rm, register offset. */
10871 if (15 == arm_insn_r->opcode || 6 == arm_insn_r->opcode)
10872 {
10873 tgt_mem_addr = u_regval[0] + offset_8;
10874 }
10875 else
10876 {
10877 tgt_mem_addr = u_regval[0] - offset_8;
10878 }
10879 if (ARM_RECORD_STRH == str_type)
10880 {
10881 record_buf_mem[0] = 2;
10882 record_buf_mem[1] = tgt_mem_addr;
10883 arm_insn_r->mem_rec_count = 1;
10884 }
10885 else if (ARM_RECORD_STRD == str_type)
10886 {
10887 record_buf_mem[0] = 4;
10888 record_buf_mem[1] = tgt_mem_addr;
10889 record_buf_mem[2] = 4;
10890 record_buf_mem[3] = tgt_mem_addr + 4;
10891 arm_insn_r->mem_rec_count = 2;
10892 }
10893 /* Record Rn also as it changes. */
10894 *(record_buf) = bits (arm_insn_r->arm_insn, 16, 19);
10895 arm_insn_r->reg_rec_count = 1;
10896 }
10897 else if (9 == arm_insn_r->opcode || 13 == arm_insn_r->opcode
10898 || 0 == arm_insn_r->opcode || 4 == arm_insn_r->opcode)
10899 {
10900 /* 4) Store, register pre-indexed. */
10901 /* 6) Store, register post -indexed. */
10902 reg_src1 = bits (arm_insn_r->arm_insn, 0, 3);
10903 reg_src2 = bits (arm_insn_r->arm_insn, 16, 19);
10904 regcache_raw_read_unsigned (reg_cache, reg_src1, &u_regval[0]);
10905 regcache_raw_read_unsigned (reg_cache, reg_src2, &u_regval[1]);
10906 /* Calculate target store address, Rn +/- Rm, register offset. */
10907 if (13 == arm_insn_r->opcode || 4 == arm_insn_r->opcode)
10908 {
10909 tgt_mem_addr = u_regval[0] + u_regval[1];
10910 }
10911 else
10912 {
10913 tgt_mem_addr = u_regval[1] - u_regval[0];
10914 }
10915 if (ARM_RECORD_STRH == str_type)
10916 {
10917 record_buf_mem[0] = 2;
10918 record_buf_mem[1] = tgt_mem_addr;
10919 arm_insn_r->mem_rec_count = 1;
10920 }
10921 else if (ARM_RECORD_STRD == str_type)
10922 {
10923 record_buf_mem[0] = 4;
10924 record_buf_mem[1] = tgt_mem_addr;
10925 record_buf_mem[2] = 4;
10926 record_buf_mem[3] = tgt_mem_addr + 4;
10927 arm_insn_r->mem_rec_count = 2;
10928 }
10929 /* Record Rn also as it changes. */
10930 *(record_buf) = bits (arm_insn_r->arm_insn, 16, 19);
10931 arm_insn_r->reg_rec_count = 1;
10932 }
10933 return 0;
10934}
10935
10936/* Handling ARM extension space insns. */
10937
10938static int
10939arm_record_extension_space (insn_decode_record *arm_insn_r)
10940{
10941 uint32_t ret = 0; /* Return value: -1:record failure ; 0:success */
10942 uint32_t opcode1 = 0, opcode2 = 0, insn_op1 = 0;
10943 uint32_t record_buf[8], record_buf_mem[8];
10944 uint32_t reg_src1 = 0;
10945 uint32_t immed_high = 0, immed_low = 0,offset_8 = 0, tgt_mem_addr = 0;
10946 struct regcache *reg_cache = arm_insn_r->regcache;
10947 ULONGEST u_regval = 0;
10948
10949 gdb_assert (!INSN_RECORDED(arm_insn_r));
10950 /* Handle unconditional insn extension space. */
10951
10952 opcode1 = bits (arm_insn_r->arm_insn, 20, 27);
10953 opcode2 = bits (arm_insn_r->arm_insn, 4, 7);
10954 if (arm_insn_r->cond)
10955 {
10956 /* PLD has no affect on architectural state, it just affects
10957 the caches. */
10958 if (5 == ((opcode1 & 0xE0) >> 5))
10959 {
10960 /* BLX(1) */
10961 record_buf[0] = ARM_PS_REGNUM;
10962 record_buf[1] = ARM_LR_REGNUM;
10963 arm_insn_r->reg_rec_count = 2;
10964 }
10965 /* STC2, LDC2, MCR2, MRC2, CDP2: <TBD>, co-processor insn. */
10966 }
10967
10968
10969 opcode1 = bits (arm_insn_r->arm_insn, 25, 27);
10970 if (3 == opcode1 && bit (arm_insn_r->arm_insn, 4))
10971 {
10972 ret = -1;
10973 /* Undefined instruction on ARM V5; need to handle if later
10974 versions define it. */
10975 }
10976
10977 opcode1 = bits (arm_insn_r->arm_insn, 24, 27);
10978 opcode2 = bits (arm_insn_r->arm_insn, 4, 7);
10979 insn_op1 = bits (arm_insn_r->arm_insn, 20, 23);
10980
10981 /* Handle arithmetic insn extension space. */
10982 if (!opcode1 && 9 == opcode2 && 1 != arm_insn_r->cond
10983 && !INSN_RECORDED(arm_insn_r))
10984 {
10985 /* Handle MLA(S) and MUL(S). */
10986 if (0 <= insn_op1 && 3 >= insn_op1)
10987 {
10988 record_buf[0] = bits (arm_insn_r->arm_insn, 12, 15);
10989 record_buf[1] = ARM_PS_REGNUM;
10990 arm_insn_r->reg_rec_count = 2;
10991 }
10992 else if (4 <= insn_op1 && 15 >= insn_op1)
10993 {
10994 /* Handle SMLAL(S), SMULL(S), UMLAL(S), UMULL(S). */
10995 record_buf[0] = bits (arm_insn_r->arm_insn, 16, 19);
10996 record_buf[1] = bits (arm_insn_r->arm_insn, 12, 15);
10997 record_buf[2] = ARM_PS_REGNUM;
10998 arm_insn_r->reg_rec_count = 3;
10999 }
11000 }
11001
11002 opcode1 = bits (arm_insn_r->arm_insn, 26, 27);
11003 opcode2 = bits (arm_insn_r->arm_insn, 23, 24);
11004 insn_op1 = bits (arm_insn_r->arm_insn, 21, 22);
11005
11006 /* Handle control insn extension space. */
11007
11008 if (!opcode1 && 2 == opcode2 && !bit (arm_insn_r->arm_insn, 20)
11009 && 1 != arm_insn_r->cond && !INSN_RECORDED(arm_insn_r))
11010 {
11011 if (!bit (arm_insn_r->arm_insn,25))
11012 {
11013 if (!bits (arm_insn_r->arm_insn, 4, 7))
11014 {
11015 if ((0 == insn_op1) || (2 == insn_op1))
11016 {
11017 /* MRS. */
11018 record_buf[0] = bits (arm_insn_r->arm_insn, 12, 15);
11019 arm_insn_r->reg_rec_count = 1;
11020 }
11021 else if (1 == insn_op1)
11022 {
11023 /* CSPR is going to be changed. */
11024 record_buf[0] = ARM_PS_REGNUM;
11025 arm_insn_r->reg_rec_count = 1;
11026 }
11027 else if (3 == insn_op1)
11028 {
11029 /* SPSR is going to be changed. */
11030 /* We need to get SPSR value, which is yet to be done. */
11031 printf_unfiltered (_("Process record does not support "
11032 "instruction 0x%0x at address %s.\n"),
11033 arm_insn_r->arm_insn,
11034 paddress (arm_insn_r->gdbarch,
11035 arm_insn_r->this_addr));
11036 return -1;
11037 }
11038 }
11039 else if (1 == bits (arm_insn_r->arm_insn, 4, 7))
11040 {
11041 if (1 == insn_op1)
11042 {
11043 /* BX. */
11044 record_buf[0] = ARM_PS_REGNUM;
11045 arm_insn_r->reg_rec_count = 1;
11046 }
11047 else if (3 == insn_op1)
11048 {
11049 /* CLZ. */
11050 record_buf[0] = bits (arm_insn_r->arm_insn, 12, 15);
11051 arm_insn_r->reg_rec_count = 1;
11052 }
11053 }
11054 else if (3 == bits (arm_insn_r->arm_insn, 4, 7))
11055 {
11056 /* BLX. */
11057 record_buf[0] = ARM_PS_REGNUM;
11058 record_buf[1] = ARM_LR_REGNUM;
11059 arm_insn_r->reg_rec_count = 2;
11060 }
11061 else if (5 == bits (arm_insn_r->arm_insn, 4, 7))
11062 {
11063 /* QADD, QSUB, QDADD, QDSUB */
11064 record_buf[0] = ARM_PS_REGNUM;
11065 record_buf[1] = bits (arm_insn_r->arm_insn, 12, 15);
11066 arm_insn_r->reg_rec_count = 2;
11067 }
11068 else if (7 == bits (arm_insn_r->arm_insn, 4, 7))
11069 {
11070 /* BKPT. */
11071 record_buf[0] = ARM_PS_REGNUM;
11072 record_buf[1] = ARM_LR_REGNUM;
11073 arm_insn_r->reg_rec_count = 2;
11074
11075 /* Save SPSR also;how? */
11076 printf_unfiltered (_("Process record does not support "
11077 "instruction 0x%0x at address %s.\n"),
11078 arm_insn_r->arm_insn,
11079 paddress (arm_insn_r->gdbarch, arm_insn_r->this_addr));
11080 return -1;
11081 }
11082 else if(8 == bits (arm_insn_r->arm_insn, 4, 7)
11083 || 10 == bits (arm_insn_r->arm_insn, 4, 7)
11084 || 12 == bits (arm_insn_r->arm_insn, 4, 7)
11085 || 14 == bits (arm_insn_r->arm_insn, 4, 7)
11086 )
11087 {
11088 if (0 == insn_op1 || 1 == insn_op1)
11089 {
11090 /* SMLA<x><y>, SMLAW<y>, SMULW<y>. */
11091 /* We dont do optimization for SMULW<y> where we
11092 need only Rd. */
11093 record_buf[0] = bits (arm_insn_r->arm_insn, 12, 15);
11094 record_buf[1] = ARM_PS_REGNUM;
11095 arm_insn_r->reg_rec_count = 2;
11096 }
11097 else if (2 == insn_op1)
11098 {
11099 /* SMLAL<x><y>. */
11100 record_buf[0] = bits (arm_insn_r->arm_insn, 12, 15);
11101 record_buf[1] = bits (arm_insn_r->arm_insn, 16, 19);
11102 arm_insn_r->reg_rec_count = 2;
11103 }
11104 else if (3 == insn_op1)
11105 {
11106 /* SMUL<x><y>. */
11107 record_buf[0] = bits (arm_insn_r->arm_insn, 12, 15);
11108 arm_insn_r->reg_rec_count = 1;
11109 }
11110 }
11111 }
11112 else
11113 {
11114 /* MSR : immediate form. */
11115 if (1 == insn_op1)
11116 {
11117 /* CSPR is going to be changed. */
11118 record_buf[0] = ARM_PS_REGNUM;
11119 arm_insn_r->reg_rec_count = 1;
11120 }
11121 else if (3 == insn_op1)
11122 {
11123 /* SPSR is going to be changed. */
11124 /* we need to get SPSR value, which is yet to be done */
11125 printf_unfiltered (_("Process record does not support "
11126 "instruction 0x%0x at address %s.\n"),
11127 arm_insn_r->arm_insn,
11128 paddress (arm_insn_r->gdbarch,
11129 arm_insn_r->this_addr));
11130 return -1;
11131 }
11132 }
11133 }
11134
11135 opcode1 = bits (arm_insn_r->arm_insn, 25, 27);
11136 opcode2 = bits (arm_insn_r->arm_insn, 20, 24);
11137 insn_op1 = bits (arm_insn_r->arm_insn, 5, 6);
11138
11139 /* Handle load/store insn extension space. */
11140
11141 if (!opcode1 && bit (arm_insn_r->arm_insn, 7)
11142 && bit (arm_insn_r->arm_insn, 4) && 1 != arm_insn_r->cond
11143 && !INSN_RECORDED(arm_insn_r))
11144 {
11145 /* SWP/SWPB. */
11146 if (0 == insn_op1)
11147 {
11148 /* These insn, changes register and memory as well. */
11149 /* SWP or SWPB insn. */
11150 /* Get memory address given by Rn. */
11151 reg_src1 = bits (arm_insn_r->arm_insn, 16, 19);
11152 regcache_raw_read_unsigned (reg_cache, reg_src1, &u_regval);
11153 /* SWP insn ?, swaps word. */
11154 if (8 == arm_insn_r->opcode)
11155 {
11156 record_buf_mem[0] = 4;
11157 }
11158 else
11159 {
11160 /* SWPB insn, swaps only byte. */
11161 record_buf_mem[0] = 1;
11162 }
11163 record_buf_mem[1] = u_regval;
11164 arm_insn_r->mem_rec_count = 1;
11165 record_buf[0] = bits (arm_insn_r->arm_insn, 12, 15);
11166 arm_insn_r->reg_rec_count = 1;
11167 }
11168 else if (1 == insn_op1 && !bit (arm_insn_r->arm_insn, 20))
11169 {
11170 /* STRH. */
11171 arm_record_strx(arm_insn_r, &record_buf[0], &record_buf_mem[0],
11172 ARM_RECORD_STRH);
11173 }
11174 else if (2 == insn_op1 && !bit (arm_insn_r->arm_insn, 20))
11175 {
11176 /* LDRD. */
11177 record_buf[0] = bits (arm_insn_r->arm_insn, 12, 15);
11178 record_buf[1] = record_buf[0] + 1;
11179 arm_insn_r->reg_rec_count = 2;
11180 }
11181 else if (3 == insn_op1 && !bit (arm_insn_r->arm_insn, 20))
11182 {
11183 /* STRD. */
11184 arm_record_strx(arm_insn_r, &record_buf[0], &record_buf_mem[0],
11185 ARM_RECORD_STRD);
11186 }
11187 else if (bit (arm_insn_r->arm_insn, 20) && insn_op1 <= 3)
11188 {
11189 /* LDRH, LDRSB, LDRSH. */
11190 record_buf[0] = bits (arm_insn_r->arm_insn, 12, 15);
11191 arm_insn_r->reg_rec_count = 1;
11192 }
11193
11194 }
11195
11196 opcode1 = bits (arm_insn_r->arm_insn, 23, 27);
11197 if (24 == opcode1 && bit (arm_insn_r->arm_insn, 21)
11198 && !INSN_RECORDED(arm_insn_r))
11199 {
11200 ret = -1;
11201 /* Handle coprocessor insn extension space. */
11202 }
11203
11204 /* To be done for ARMv5 and later; as of now we return -1. */
11205 if (-1 == ret)
11206 printf_unfiltered (_("Process record does not support instruction x%0x "
11207 "at address %s.\n"),arm_insn_r->arm_insn,
11208 paddress (arm_insn_r->gdbarch, arm_insn_r->this_addr));
11209
11210
11211 REG_ALLOC (arm_insn_r->arm_regs, arm_insn_r->reg_rec_count, record_buf);
11212 MEM_ALLOC (arm_insn_r->arm_mems, arm_insn_r->mem_rec_count, record_buf_mem);
11213
11214 return ret;
11215}
11216
11217/* Handling opcode 000 insns. */
11218
11219static int
11220arm_record_data_proc_misc_ld_str (insn_decode_record *arm_insn_r)
11221{
11222 struct regcache *reg_cache = arm_insn_r->regcache;
11223 uint32_t record_buf[8], record_buf_mem[8];
11224 ULONGEST u_regval[2] = {0};
11225
11226 uint32_t reg_src1 = 0, reg_src2 = 0, reg_dest = 0;
11227 uint32_t immed_high = 0, immed_low = 0, offset_8 = 0, tgt_mem_addr = 0;
11228 uint32_t opcode1 = 0;
11229
11230 arm_insn_r->opcode = bits (arm_insn_r->arm_insn, 21, 24);
11231 arm_insn_r->decode = bits (arm_insn_r->arm_insn, 4, 7);
11232 opcode1 = bits (arm_insn_r->arm_insn, 20, 24);
11233
11234 /* Data processing insn /multiply insn. */
11235 if (9 == arm_insn_r->decode
11236 && ((4 <= arm_insn_r->opcode && 7 >= arm_insn_r->opcode)
11237 || (0 == arm_insn_r->opcode || 1 == arm_insn_r->opcode)))
11238 {
11239 /* Handle multiply instructions. */
11240 /* MLA, MUL, SMLAL, SMULL, UMLAL, UMULL. */
11241 if (0 == arm_insn_r->opcode || 1 == arm_insn_r->opcode)
11242 {
11243 /* Handle MLA and MUL. */
11244 record_buf[0] = bits (arm_insn_r->arm_insn, 16, 19);
11245 record_buf[1] = ARM_PS_REGNUM;
11246 arm_insn_r->reg_rec_count = 2;
11247 }
11248 else if (4 <= arm_insn_r->opcode && 7 >= arm_insn_r->opcode)
11249 {
11250 /* Handle SMLAL, SMULL, UMLAL, UMULL. */
11251 record_buf[0] = bits (arm_insn_r->arm_insn, 16, 19);
11252 record_buf[1] = bits (arm_insn_r->arm_insn, 12, 15);
11253 record_buf[2] = ARM_PS_REGNUM;
11254 arm_insn_r->reg_rec_count = 3;
11255 }
11256 }
11257 else if (bit (arm_insn_r->arm_insn, INSN_S_L_BIT_NUM)
11258 && (11 == arm_insn_r->decode || 13 == arm_insn_r->decode))
11259 {
11260 /* Handle misc load insns, as 20th bit (L = 1). */
11261 /* LDR insn has a capability to do branching, if
11262 MOV LR, PC is precceded by LDR insn having Rn as R15
11263 in that case, it emulates branch and link insn, and hence we
11264 need to save CSPR and PC as well. I am not sure this is right
11265 place; as opcode = 010 LDR insn make this happen, if R15 was
11266 used. */
11267 reg_dest = bits (arm_insn_r->arm_insn, 12, 15);
11268 if (15 != reg_dest)
11269 {
11270 record_buf[0] = bits (arm_insn_r->arm_insn, 12, 15);
11271 arm_insn_r->reg_rec_count = 1;
11272 }
11273 else
11274 {
11275 record_buf[0] = reg_dest;
11276 record_buf[1] = ARM_PS_REGNUM;
11277 arm_insn_r->reg_rec_count = 2;
11278 }
11279 }
11280 else if ((9 == arm_insn_r->opcode || 11 == arm_insn_r->opcode)
11281 && sbo_sbz (arm_insn_r->arm_insn, 5, 12, 0)
11282 && sbo_sbz (arm_insn_r->arm_insn, 13, 4, 1)
11283 && 2 == bits (arm_insn_r->arm_insn, 20, 21))
11284 {
11285 /* Handle MSR insn. */
11286 if (9 == arm_insn_r->opcode)
11287 {
11288 /* CSPR is going to be changed. */
11289 record_buf[0] = ARM_PS_REGNUM;
11290 arm_insn_r->reg_rec_count = 1;
11291 }
11292 else
11293 {
11294 /* SPSR is going to be changed. */
11295 /* How to read SPSR value? */
11296 printf_unfiltered (_("Process record does not support instruction "
11297 "0x%0x at address %s.\n"),
11298 arm_insn_r->arm_insn,
11299 paddress (arm_insn_r->gdbarch, arm_insn_r->this_addr));
11300 return -1;
11301 }
11302 }
11303 else if (9 == arm_insn_r->decode
11304 && (8 == arm_insn_r->opcode || 10 == arm_insn_r->opcode)
11305 && !bit (arm_insn_r->arm_insn, INSN_S_L_BIT_NUM))
11306 {
11307 /* Handling SWP, SWPB. */
11308 /* These insn, changes register and memory as well. */
11309 /* SWP or SWPB insn. */
11310
11311 reg_src1 = bits (arm_insn_r->arm_insn, 16, 19);
11312 regcache_raw_read_unsigned (reg_cache, reg_src1, &u_regval[0]);
11313 /* SWP insn ?, swaps word. */
11314 if (8 == arm_insn_r->opcode)
11315 {
11316 record_buf_mem[0] = 4;
11317 }
11318 else
11319 {
11320 /* SWPB insn, swaps only byte. */
11321 record_buf_mem[0] = 1;
11322 }
11323 record_buf_mem[1] = u_regval[0];
11324 arm_insn_r->mem_rec_count = 1;
11325 record_buf[0] = bits (arm_insn_r->arm_insn, 12, 15);
11326 arm_insn_r->reg_rec_count = 1;
11327 }
11328 else if (3 == arm_insn_r->decode && 0x12 == opcode1
11329 && sbo_sbz (arm_insn_r->arm_insn, 9, 12, 1))
11330 {
11331 /* Handle BLX, branch and link/exchange. */
11332 if (9 == arm_insn_r->opcode)
11333 {
11334 /* Branch is chosen by setting T bit of CSPR, bitp[0] of Rm,
11335 and R14 stores the return address. */
11336 record_buf[0] = ARM_PS_REGNUM;
11337 record_buf[1] = ARM_LR_REGNUM;
11338 arm_insn_r->reg_rec_count = 2;
11339 }
11340 }
11341 else if (7 == arm_insn_r->decode && 0x12 == opcode1)
11342 {
11343 /* Handle enhanced software breakpoint insn, BKPT. */
11344 /* CPSR is changed to be executed in ARM state, disabling normal
11345 interrupts, entering abort mode. */
11346 /* According to high vector configuration PC is set. */
11347 /* user hit breakpoint and type reverse, in
11348 that case, we need to go back with previous CPSR and
11349 Program Counter. */
11350 record_buf[0] = ARM_PS_REGNUM;
11351 record_buf[1] = ARM_LR_REGNUM;
11352 arm_insn_r->reg_rec_count = 2;
11353
11354 /* Save SPSR also; how? */
11355 printf_unfiltered (_("Process record does not support instruction "
11356 "0x%0x at address %s.\n"),arm_insn_r->arm_insn,
11357 paddress (arm_insn_r->gdbarch,
11358 arm_insn_r->this_addr));
11359 return -1;
11360 }
11361 else if (11 == arm_insn_r->decode
11362 && !bit (arm_insn_r->arm_insn, INSN_S_L_BIT_NUM))
11363 {
11364 /* Handle enhanced store insns and DSP insns (e.g. LDRD). */
11365
11366 /* Handle str(x) insn */
11367 arm_record_strx(arm_insn_r, &record_buf[0], &record_buf_mem[0],
11368 ARM_RECORD_STRH);
11369 }
11370 else if (1 == arm_insn_r->decode && 0x12 == opcode1
11371 && sbo_sbz (arm_insn_r->arm_insn, 9, 12, 1))
11372 {
11373 /* Handle BX, branch and link/exchange. */
11374 /* Branch is chosen by setting T bit of CSPR, bitp[0] of Rm. */
11375 record_buf[0] = ARM_PS_REGNUM;
11376 arm_insn_r->reg_rec_count = 1;
11377 }
11378 else if (1 == arm_insn_r->decode && 0x16 == opcode1
11379 && sbo_sbz (arm_insn_r->arm_insn, 9, 4, 1)
11380 && sbo_sbz (arm_insn_r->arm_insn, 17, 4, 1))
11381 {
11382 /* Count leading zeros: CLZ. */
11383 record_buf[0] = bits (arm_insn_r->arm_insn, 12, 15);
11384 arm_insn_r->reg_rec_count = 1;
11385 }
11386 else if (!bit (arm_insn_r->arm_insn, INSN_S_L_BIT_NUM)
11387 && (8 == arm_insn_r->opcode || 10 == arm_insn_r->opcode)
11388 && sbo_sbz (arm_insn_r->arm_insn, 17, 4, 1)
11389 && sbo_sbz (arm_insn_r->arm_insn, 1, 12, 0)
11390 )
11391 {
11392 /* Handle MRS insn. */
11393 record_buf[0] = bits (arm_insn_r->arm_insn, 12, 15);
11394 arm_insn_r->reg_rec_count = 1;
11395 }
11396 else if (arm_insn_r->opcode <= 15)
11397 {
11398 /* Normal data processing insns. */
11399 /* Out of 11 shifter operands mode, all the insn modifies destination
11400 register, which is specified by 13-16 decode. */
11401 record_buf[0] = bits (arm_insn_r->arm_insn, 12, 15);
11402 record_buf[1] = ARM_PS_REGNUM;
11403 arm_insn_r->reg_rec_count = 2;
11404 }
11405 else
11406 {
11407 return -1;
11408 }
11409
11410 REG_ALLOC (arm_insn_r->arm_regs, arm_insn_r->reg_rec_count, record_buf);
11411 MEM_ALLOC (arm_insn_r->arm_mems, arm_insn_r->mem_rec_count, record_buf_mem);
11412 return 0;
11413}
11414
11415/* Handling opcode 001 insns. */
11416
11417static int
11418arm_record_data_proc_imm (insn_decode_record *arm_insn_r)
11419{
11420 uint32_t record_buf[8], record_buf_mem[8];
11421
11422 arm_insn_r->opcode = bits (arm_insn_r->arm_insn, 21, 24);
11423 arm_insn_r->decode = bits (arm_insn_r->arm_insn, 4, 7);
11424
11425 if ((9 == arm_insn_r->opcode || 11 == arm_insn_r->opcode)
11426 && 2 == bits (arm_insn_r->arm_insn, 20, 21)
11427 && sbo_sbz (arm_insn_r->arm_insn, 13, 4, 1)
11428 )
11429 {
11430 /* Handle MSR insn. */
11431 if (9 == arm_insn_r->opcode)
11432 {
11433 /* CSPR is going to be changed. */
11434 record_buf[0] = ARM_PS_REGNUM;
11435 arm_insn_r->reg_rec_count = 1;
11436 }
11437 else
11438 {
11439 /* SPSR is going to be changed. */
11440 }
11441 }
11442 else if (arm_insn_r->opcode <= 15)
11443 {
11444 /* Normal data processing insns. */
11445 /* Out of 11 shifter operands mode, all the insn modifies destination
11446 register, which is specified by 13-16 decode. */
11447 record_buf[0] = bits (arm_insn_r->arm_insn, 12, 15);
11448 record_buf[1] = ARM_PS_REGNUM;
11449 arm_insn_r->reg_rec_count = 2;
11450 }
11451 else
11452 {
11453 return -1;
11454 }
11455
11456 REG_ALLOC (arm_insn_r->arm_regs, arm_insn_r->reg_rec_count, record_buf);
11457 MEM_ALLOC (arm_insn_r->arm_mems, arm_insn_r->mem_rec_count, record_buf_mem);
11458 return 0;
11459}
11460
71e396f9 11461/* Handle ARM mode instructions with opcode 010. */
72508ac0
PO
11462
11463static int
11464arm_record_ld_st_imm_offset (insn_decode_record *arm_insn_r)
11465{
11466 struct regcache *reg_cache = arm_insn_r->regcache;
11467
71e396f9
LM
11468 uint32_t reg_base , reg_dest;
11469 uint32_t offset_12, tgt_mem_addr;
72508ac0 11470 uint32_t record_buf[8], record_buf_mem[8];
71e396f9
LM
11471 unsigned char wback;
11472 ULONGEST u_regval;
72508ac0 11473
71e396f9
LM
11474 /* Calculate wback. */
11475 wback = (bit (arm_insn_r->arm_insn, 24) == 0)
11476 || (bit (arm_insn_r->arm_insn, 21) == 1);
72508ac0 11477
71e396f9
LM
11478 arm_insn_r->reg_rec_count = 0;
11479 reg_base = bits (arm_insn_r->arm_insn, 16, 19);
72508ac0
PO
11480
11481 if (bit (arm_insn_r->arm_insn, INSN_S_L_BIT_NUM))
11482 {
71e396f9
LM
11483 /* LDR (immediate), LDR (literal), LDRB (immediate), LDRB (literal), LDRBT
11484 and LDRT. */
11485
72508ac0 11486 reg_dest = bits (arm_insn_r->arm_insn, 12, 15);
71e396f9
LM
11487 record_buf[arm_insn_r->reg_rec_count++] = reg_dest;
11488
11489 /* The LDR instruction is capable of doing branching. If MOV LR, PC
11490 preceeds a LDR instruction having R15 as reg_base, it
11491 emulates a branch and link instruction, and hence we need to save
11492 CPSR and PC as well. */
11493 if (ARM_PC_REGNUM == reg_dest)
11494 record_buf[arm_insn_r->reg_rec_count++] = ARM_PS_REGNUM;
11495
11496 /* If wback is true, also save the base register, which is going to be
11497 written to. */
11498 if (wback)
11499 record_buf[arm_insn_r->reg_rec_count++] = reg_base;
72508ac0
PO
11500 }
11501 else
11502 {
71e396f9
LM
11503 /* STR (immediate), STRB (immediate), STRBT and STRT. */
11504
72508ac0 11505 offset_12 = bits (arm_insn_r->arm_insn, 0, 11);
71e396f9
LM
11506 regcache_raw_read_unsigned (reg_cache, reg_base, &u_regval);
11507
11508 /* Handle bit U. */
72508ac0 11509 if (bit (arm_insn_r->arm_insn, 23))
71e396f9
LM
11510 {
11511 /* U == 1: Add the offset. */
11512 tgt_mem_addr = (uint32_t) u_regval + offset_12;
11513 }
72508ac0 11514 else
71e396f9
LM
11515 {
11516 /* U == 0: subtract the offset. */
11517 tgt_mem_addr = (uint32_t) u_regval - offset_12;
11518 }
11519
11520 /* Bit 22 tells us whether the store instruction writes 1 byte or 4
11521 bytes. */
11522 if (bit (arm_insn_r->arm_insn, 22))
11523 {
11524 /* STRB and STRBT: 1 byte. */
11525 record_buf_mem[0] = 1;
11526 }
11527 else
11528 {
11529 /* STR and STRT: 4 bytes. */
11530 record_buf_mem[0] = 4;
11531 }
11532
11533 /* Handle bit P. */
11534 if (bit (arm_insn_r->arm_insn, 24))
11535 record_buf_mem[1] = tgt_mem_addr;
11536 else
11537 record_buf_mem[1] = (uint32_t) u_regval;
72508ac0 11538
72508ac0
PO
11539 arm_insn_r->mem_rec_count = 1;
11540
71e396f9
LM
11541 /* If wback is true, also save the base register, which is going to be
11542 written to. */
11543 if (wback)
11544 record_buf[arm_insn_r->reg_rec_count++] = reg_base;
72508ac0
PO
11545 }
11546
11547 REG_ALLOC (arm_insn_r->arm_regs, arm_insn_r->reg_rec_count, record_buf);
11548 MEM_ALLOC (arm_insn_r->arm_mems, arm_insn_r->mem_rec_count, record_buf_mem);
11549 return 0;
11550}
11551
11552/* Handling opcode 011 insns. */
11553
11554static int
11555arm_record_ld_st_reg_offset (insn_decode_record *arm_insn_r)
11556{
11557 struct regcache *reg_cache = arm_insn_r->regcache;
11558
11559 uint32_t shift_imm = 0;
11560 uint32_t reg_src1 = 0, reg_src2 = 0, reg_dest = 0;
11561 uint32_t offset_12 = 0, tgt_mem_addr = 0;
11562 uint32_t record_buf[8], record_buf_mem[8];
11563
11564 LONGEST s_word;
11565 ULONGEST u_regval[2];
11566
11567 arm_insn_r->opcode = bits (arm_insn_r->arm_insn, 21, 24);
11568 arm_insn_r->decode = bits (arm_insn_r->arm_insn, 4, 7);
11569
11570 /* Handle enhanced store insns and LDRD DSP insn,
11571 order begins according to addressing modes for store insns
11572 STRH insn. */
11573
11574 /* LDR or STR? */
11575 if (bit (arm_insn_r->arm_insn, INSN_S_L_BIT_NUM))
11576 {
11577 reg_dest = bits (arm_insn_r->arm_insn, 12, 15);
11578 /* LDR insn has a capability to do branching, if
11579 MOV LR, PC is precedded by LDR insn having Rn as R15
11580 in that case, it emulates branch and link insn, and hence we
11581 need to save CSPR and PC as well. */
11582 if (15 != reg_dest)
11583 {
11584 record_buf[0] = bits (arm_insn_r->arm_insn, 12, 15);
11585 arm_insn_r->reg_rec_count = 1;
11586 }
11587 else
11588 {
11589 record_buf[0] = reg_dest;
11590 record_buf[1] = ARM_PS_REGNUM;
11591 arm_insn_r->reg_rec_count = 2;
11592 }
11593 }
11594 else
11595 {
11596 if (! bits (arm_insn_r->arm_insn, 4, 11))
11597 {
11598 /* Store insn, register offset and register pre-indexed,
11599 register post-indexed. */
11600 /* Get Rm. */
11601 reg_src1 = bits (arm_insn_r->arm_insn, 0, 3);
11602 /* Get Rn. */
11603 reg_src2 = bits (arm_insn_r->arm_insn, 16, 19);
11604 regcache_raw_read_unsigned (reg_cache, reg_src1
11605 , &u_regval[0]);
11606 regcache_raw_read_unsigned (reg_cache, reg_src2
11607 , &u_regval[1]);
11608 if (15 == reg_src2)
11609 {
11610 /* If R15 was used as Rn, hence current PC+8. */
11611 /* Pre-indexed mode doesnt reach here ; illegal insn. */
11612 u_regval[0] = u_regval[0] + 8;
11613 }
11614 /* Calculate target store address, Rn +/- Rm, register offset. */
11615 /* U == 1. */
11616 if (bit (arm_insn_r->arm_insn, 23))
11617 {
11618 tgt_mem_addr = u_regval[0] + u_regval[1];
11619 }
11620 else
11621 {
11622 tgt_mem_addr = u_regval[1] - u_regval[0];
11623 }
11624
11625 switch (arm_insn_r->opcode)
11626 {
11627 /* STR. */
11628 case 8:
11629 case 12:
11630 /* STR. */
11631 case 9:
11632 case 13:
11633 /* STRT. */
11634 case 1:
11635 case 5:
11636 /* STR. */
11637 case 0:
11638 case 4:
11639 record_buf_mem[0] = 4;
11640 break;
11641
11642 /* STRB. */
11643 case 10:
11644 case 14:
11645 /* STRB. */
11646 case 11:
11647 case 15:
11648 /* STRBT. */
11649 case 3:
11650 case 7:
11651 /* STRB. */
11652 case 2:
11653 case 6:
11654 record_buf_mem[0] = 1;
11655 break;
11656
11657 default:
11658 gdb_assert_not_reached ("no decoding pattern found");
11659 break;
11660 }
11661 record_buf_mem[1] = tgt_mem_addr;
11662 arm_insn_r->mem_rec_count = 1;
11663
11664 if (9 == arm_insn_r->opcode || 11 == arm_insn_r->opcode
11665 || 13 == arm_insn_r->opcode || 15 == arm_insn_r->opcode
11666 || 0 == arm_insn_r->opcode || 2 == arm_insn_r->opcode
11667 || 4 == arm_insn_r->opcode || 6 == arm_insn_r->opcode
11668 || 1 == arm_insn_r->opcode || 3 == arm_insn_r->opcode
11669 || 5 == arm_insn_r->opcode || 7 == arm_insn_r->opcode
11670 )
11671 {
11672 /* Rn is going to be changed in pre-indexed mode and
11673 post-indexed mode as well. */
11674 record_buf[0] = reg_src2;
11675 arm_insn_r->reg_rec_count = 1;
11676 }
11677 }
11678 else
11679 {
11680 /* Store insn, scaled register offset; scaled pre-indexed. */
11681 offset_12 = bits (arm_insn_r->arm_insn, 5, 6);
11682 /* Get Rm. */
11683 reg_src1 = bits (arm_insn_r->arm_insn, 0, 3);
11684 /* Get Rn. */
11685 reg_src2 = bits (arm_insn_r->arm_insn, 16, 19);
11686 /* Get shift_imm. */
11687 shift_imm = bits (arm_insn_r->arm_insn, 7, 11);
11688 regcache_raw_read_unsigned (reg_cache, reg_src1, &u_regval[0]);
11689 regcache_raw_read_signed (reg_cache, reg_src1, &s_word);
11690 regcache_raw_read_unsigned (reg_cache, reg_src2, &u_regval[1]);
11691 /* Offset_12 used as shift. */
11692 switch (offset_12)
11693 {
11694 case 0:
11695 /* Offset_12 used as index. */
11696 offset_12 = u_regval[0] << shift_imm;
11697 break;
11698
11699 case 1:
11700 offset_12 = (!shift_imm)?0:u_regval[0] >> shift_imm;
11701 break;
11702
11703 case 2:
11704 if (!shift_imm)
11705 {
11706 if (bit (u_regval[0], 31))
11707 {
11708 offset_12 = 0xFFFFFFFF;
11709 }
11710 else
11711 {
11712 offset_12 = 0;
11713 }
11714 }
11715 else
11716 {
11717 /* This is arithmetic shift. */
11718 offset_12 = s_word >> shift_imm;
11719 }
11720 break;
11721
11722 case 3:
11723 if (!shift_imm)
11724 {
11725 regcache_raw_read_unsigned (reg_cache, ARM_PS_REGNUM,
11726 &u_regval[1]);
11727 /* Get C flag value and shift it by 31. */
11728 offset_12 = (((bit (u_regval[1], 29)) << 31) \
11729 | (u_regval[0]) >> 1);
11730 }
11731 else
11732 {
11733 offset_12 = (u_regval[0] >> shift_imm) \
11734 | (u_regval[0] <<
11735 (sizeof(uint32_t) - shift_imm));
11736 }
11737 break;
11738
11739 default:
11740 gdb_assert_not_reached ("no decoding pattern found");
11741 break;
11742 }
11743
11744 regcache_raw_read_unsigned (reg_cache, reg_src2, &u_regval[1]);
11745 /* bit U set. */
11746 if (bit (arm_insn_r->arm_insn, 23))
11747 {
11748 tgt_mem_addr = u_regval[1] + offset_12;
11749 }
11750 else
11751 {
11752 tgt_mem_addr = u_regval[1] - offset_12;
11753 }
11754
11755 switch (arm_insn_r->opcode)
11756 {
11757 /* STR. */
11758 case 8:
11759 case 12:
11760 /* STR. */
11761 case 9:
11762 case 13:
11763 /* STRT. */
11764 case 1:
11765 case 5:
11766 /* STR. */
11767 case 0:
11768 case 4:
11769 record_buf_mem[0] = 4;
11770 break;
11771
11772 /* STRB. */
11773 case 10:
11774 case 14:
11775 /* STRB. */
11776 case 11:
11777 case 15:
11778 /* STRBT. */
11779 case 3:
11780 case 7:
11781 /* STRB. */
11782 case 2:
11783 case 6:
11784 record_buf_mem[0] = 1;
11785 break;
11786
11787 default:
11788 gdb_assert_not_reached ("no decoding pattern found");
11789 break;
11790 }
11791 record_buf_mem[1] = tgt_mem_addr;
11792 arm_insn_r->mem_rec_count = 1;
11793
11794 if (9 == arm_insn_r->opcode || 11 == arm_insn_r->opcode
11795 || 13 == arm_insn_r->opcode || 15 == arm_insn_r->opcode
11796 || 0 == arm_insn_r->opcode || 2 == arm_insn_r->opcode
11797 || 4 == arm_insn_r->opcode || 6 == arm_insn_r->opcode
11798 || 1 == arm_insn_r->opcode || 3 == arm_insn_r->opcode
11799 || 5 == arm_insn_r->opcode || 7 == arm_insn_r->opcode
11800 )
11801 {
11802 /* Rn is going to be changed in register scaled pre-indexed
11803 mode,and scaled post indexed mode. */
11804 record_buf[0] = reg_src2;
11805 arm_insn_r->reg_rec_count = 1;
11806 }
11807 }
11808 }
11809
11810 REG_ALLOC (arm_insn_r->arm_regs, arm_insn_r->reg_rec_count, record_buf);
11811 MEM_ALLOC (arm_insn_r->arm_mems, arm_insn_r->mem_rec_count, record_buf_mem);
11812 return 0;
11813}
11814
71e396f9 11815/* Handle ARM mode instructions with opcode 100. */
72508ac0
PO
11816
11817static int
11818arm_record_ld_st_multiple (insn_decode_record *arm_insn_r)
11819{
11820 struct regcache *reg_cache = arm_insn_r->regcache;
71e396f9
LM
11821 uint32_t register_count = 0, register_bits;
11822 uint32_t reg_base, addr_mode;
72508ac0 11823 uint32_t record_buf[24], record_buf_mem[48];
71e396f9
LM
11824 uint32_t wback;
11825 ULONGEST u_regval;
72508ac0 11826
71e396f9
LM
11827 /* Fetch the list of registers. */
11828 register_bits = bits (arm_insn_r->arm_insn, 0, 15);
11829 arm_insn_r->reg_rec_count = 0;
11830
11831 /* Fetch the base register that contains the address we are loading data
11832 to. */
11833 reg_base = bits (arm_insn_r->arm_insn, 16, 19);
72508ac0 11834
71e396f9
LM
11835 /* Calculate wback. */
11836 wback = (bit (arm_insn_r->arm_insn, 21) == 1);
72508ac0
PO
11837
11838 if (bit (arm_insn_r->arm_insn, INSN_S_L_BIT_NUM))
11839 {
71e396f9 11840 /* LDM/LDMIA/LDMFD, LDMDA/LDMFA, LDMDB and LDMIB. */
72508ac0 11841
71e396f9 11842 /* Find out which registers are going to be loaded from memory. */
72508ac0 11843 while (register_bits)
71e396f9
LM
11844 {
11845 if (register_bits & 0x00000001)
11846 record_buf[arm_insn_r->reg_rec_count++] = register_count;
11847 register_bits = register_bits >> 1;
11848 register_count++;
11849 }
72508ac0 11850
71e396f9
LM
11851
11852 /* If wback is true, also save the base register, which is going to be
11853 written to. */
11854 if (wback)
11855 record_buf[arm_insn_r->reg_rec_count++] = reg_base;
11856
11857 /* Save the CPSR register. */
11858 record_buf[arm_insn_r->reg_rec_count++] = ARM_PS_REGNUM;
72508ac0
PO
11859 }
11860 else
11861 {
71e396f9 11862 /* STM (STMIA, STMEA), STMDA (STMED), STMDB (STMFD) and STMIB (STMFA). */
72508ac0 11863
71e396f9
LM
11864 addr_mode = bits (arm_insn_r->arm_insn, 23, 24);
11865
11866 regcache_raw_read_unsigned (reg_cache, reg_base, &u_regval);
11867
11868 /* Find out how many registers are going to be stored to memory. */
72508ac0 11869 while (register_bits)
71e396f9
LM
11870 {
11871 if (register_bits & 0x00000001)
11872 register_count++;
11873 register_bits = register_bits >> 1;
11874 }
72508ac0
PO
11875
11876 switch (addr_mode)
71e396f9
LM
11877 {
11878 /* STMDA (STMED): Decrement after. */
11879 case 0:
11880 record_buf_mem[1] = (uint32_t) u_regval
11881 - register_count * INT_REGISTER_SIZE + 4;
11882 break;
11883 /* STM (STMIA, STMEA): Increment after. */
11884 case 1:
11885 record_buf_mem[1] = (uint32_t) u_regval;
11886 break;
11887 /* STMDB (STMFD): Decrement before. */
11888 case 2:
11889 record_buf_mem[1] = (uint32_t) u_regval
11890 - register_count * INT_REGISTER_SIZE;
11891 break;
11892 /* STMIB (STMFA): Increment before. */
11893 case 3:
11894 record_buf_mem[1] = (uint32_t) u_regval + INT_REGISTER_SIZE;
11895 break;
11896 default:
11897 gdb_assert_not_reached ("no decoding pattern found");
11898 break;
11899 }
72508ac0 11900
71e396f9
LM
11901 record_buf_mem[0] = register_count * INT_REGISTER_SIZE;
11902 arm_insn_r->mem_rec_count = 1;
11903
11904 /* If wback is true, also save the base register, which is going to be
11905 written to. */
11906 if (wback)
11907 record_buf[arm_insn_r->reg_rec_count++] = reg_base;
72508ac0
PO
11908 }
11909
11910 REG_ALLOC (arm_insn_r->arm_regs, arm_insn_r->reg_rec_count, record_buf);
11911 MEM_ALLOC (arm_insn_r->arm_mems, arm_insn_r->mem_rec_count, record_buf_mem);
11912 return 0;
11913}
11914
11915/* Handling opcode 101 insns. */
11916
11917static int
11918arm_record_b_bl (insn_decode_record *arm_insn_r)
11919{
11920 uint32_t record_buf[8];
11921
11922 /* Handle B, BL, BLX(1) insns. */
11923 /* B simply branches so we do nothing here. */
11924 /* Note: BLX(1) doesnt fall here but instead it falls into
11925 extension space. */
11926 if (bit (arm_insn_r->arm_insn, 24))
11927 {
11928 record_buf[0] = ARM_LR_REGNUM;
11929 arm_insn_r->reg_rec_count = 1;
11930 }
11931
11932 REG_ALLOC (arm_insn_r->arm_regs, arm_insn_r->reg_rec_count, record_buf);
11933
11934 return 0;
11935}
11936
11937/* Handling opcode 110 insns. */
11938
11939static int
c6ec2b30 11940arm_record_unsupported_insn (insn_decode_record *arm_insn_r)
72508ac0
PO
11941{
11942 printf_unfiltered (_("Process record does not support instruction "
11943 "0x%0x at address %s.\n"),arm_insn_r->arm_insn,
11944 paddress (arm_insn_r->gdbarch, arm_insn_r->this_addr));
11945
11946 return -1;
11947}
11948
5a578da5
OJ
11949/* Record handler for vector data transfer instructions. */
11950
11951static int
11952arm_record_vdata_transfer_insn (insn_decode_record *arm_insn_r)
11953{
11954 uint32_t bits_a, bit_c, bit_l, reg_t, reg_v;
11955 uint32_t record_buf[4];
11956
11957 const int num_regs = gdbarch_num_regs (arm_insn_r->gdbarch);
11958 reg_t = bits (arm_insn_r->arm_insn, 12, 15);
11959 reg_v = bits (arm_insn_r->arm_insn, 21, 23);
11960 bits_a = bits (arm_insn_r->arm_insn, 21, 23);
11961 bit_l = bit (arm_insn_r->arm_insn, 20);
11962 bit_c = bit (arm_insn_r->arm_insn, 8);
11963
11964 /* Handle VMOV instruction. */
11965 if (bit_l && bit_c)
11966 {
11967 record_buf[0] = reg_t;
11968 arm_insn_r->reg_rec_count = 1;
11969 }
11970 else if (bit_l && !bit_c)
11971 {
11972 /* Handle VMOV instruction. */
11973 if (bits_a == 0x00)
11974 {
11975 if (bit (arm_insn_r->arm_insn, 20))
11976 record_buf[0] = reg_t;
11977 else
11978 record_buf[0] = num_regs + (bit (arm_insn_r->arm_insn, 7) |
11979 (reg_v << 1));
11980
11981 arm_insn_r->reg_rec_count = 1;
11982 }
11983 /* Handle VMRS instruction. */
11984 else if (bits_a == 0x07)
11985 {
11986 if (reg_t == 15)
11987 reg_t = ARM_PS_REGNUM;
11988
11989 record_buf[0] = reg_t;
11990 arm_insn_r->reg_rec_count = 1;
11991 }
11992 }
11993 else if (!bit_l && !bit_c)
11994 {
11995 /* Handle VMOV instruction. */
11996 if (bits_a == 0x00)
11997 {
11998 if (bit (arm_insn_r->arm_insn, 20))
11999 record_buf[0] = reg_t;
12000 else
12001 record_buf[0] = num_regs + (bit (arm_insn_r->arm_insn, 7) |
12002 (reg_v << 1));
12003
12004 arm_insn_r->reg_rec_count = 1;
12005 }
12006 /* Handle VMSR instruction. */
12007 else if (bits_a == 0x07)
12008 {
12009 record_buf[0] = ARM_FPSCR_REGNUM;
12010 arm_insn_r->reg_rec_count = 1;
12011 }
12012 }
12013 else if (!bit_l && bit_c)
12014 {
12015 /* Handle VMOV instruction. */
12016 if (!(bits_a & 0x04))
12017 {
12018 record_buf[0] = (reg_v | (bit (arm_insn_r->arm_insn, 7) << 4))
12019 + ARM_D0_REGNUM;
12020 arm_insn_r->reg_rec_count = 1;
12021 }
12022 /* Handle VDUP instruction. */
12023 else
12024 {
12025 if (bit (arm_insn_r->arm_insn, 21))
12026 {
12027 reg_v = reg_v | (bit (arm_insn_r->arm_insn, 7) << 4);
12028 record_buf[0] = reg_v + ARM_D0_REGNUM;
12029 record_buf[1] = reg_v + ARM_D0_REGNUM + 1;
12030 arm_insn_r->reg_rec_count = 2;
12031 }
12032 else
12033 {
12034 reg_v = reg_v | (bit (arm_insn_r->arm_insn, 7) << 4);
12035 record_buf[0] = reg_v + ARM_D0_REGNUM;
12036 arm_insn_r->reg_rec_count = 1;
12037 }
12038 }
12039 }
12040
12041 REG_ALLOC (arm_insn_r->arm_regs, arm_insn_r->reg_rec_count, record_buf);
12042 return 0;
12043}
12044
f20f80dd
OJ
12045/* Record handler for extension register load/store instructions. */
12046
12047static int
12048arm_record_exreg_ld_st_insn (insn_decode_record *arm_insn_r)
12049{
12050 uint32_t opcode, single_reg;
12051 uint8_t op_vldm_vstm;
12052 uint32_t record_buf[8], record_buf_mem[128];
12053 ULONGEST u_regval = 0;
12054
12055 struct regcache *reg_cache = arm_insn_r->regcache;
12056 const int num_regs = gdbarch_num_regs (arm_insn_r->gdbarch);
12057
12058 opcode = bits (arm_insn_r->arm_insn, 20, 24);
12059 single_reg = bit (arm_insn_r->arm_insn, 8);
12060 op_vldm_vstm = opcode & 0x1b;
12061
12062 /* Handle VMOV instructions. */
12063 if ((opcode & 0x1e) == 0x04)
12064 {
12065 if (bit (arm_insn_r->arm_insn, 4))
12066 {
12067 record_buf[0] = bits (arm_insn_r->arm_insn, 12, 15);
12068 record_buf[1] = bits (arm_insn_r->arm_insn, 16, 19);
12069 arm_insn_r->reg_rec_count = 2;
12070 }
12071 else
12072 {
12073 uint8_t reg_m = (bits (arm_insn_r->arm_insn, 0, 3) << 1)
12074 | bit (arm_insn_r->arm_insn, 5);
12075
12076 if (!single_reg)
12077 {
12078 record_buf[0] = num_regs + reg_m;
12079 record_buf[1] = num_regs + reg_m + 1;
12080 arm_insn_r->reg_rec_count = 2;
12081 }
12082 else
12083 {
12084 record_buf[0] = reg_m + ARM_D0_REGNUM;
12085 arm_insn_r->reg_rec_count = 1;
12086 }
12087 }
12088 }
12089 /* Handle VSTM and VPUSH instructions. */
12090 else if (op_vldm_vstm == 0x08 || op_vldm_vstm == 0x0a
12091 || op_vldm_vstm == 0x12)
12092 {
12093 uint32_t start_address, reg_rn, imm_off32, imm_off8, memory_count;
12094 uint32_t memory_index = 0;
12095
12096 reg_rn = bits (arm_insn_r->arm_insn, 16, 19);
12097 regcache_raw_read_unsigned (reg_cache, reg_rn, &u_regval);
12098 imm_off8 = bits (arm_insn_r->arm_insn, 0, 7);
12099 imm_off32 = imm_off8 << 24;
12100 memory_count = imm_off8;
12101
12102 if (bit (arm_insn_r->arm_insn, 23))
12103 start_address = u_regval;
12104 else
12105 start_address = u_regval - imm_off32;
12106
12107 if (bit (arm_insn_r->arm_insn, 21))
12108 {
12109 record_buf[0] = reg_rn;
12110 arm_insn_r->reg_rec_count = 1;
12111 }
12112
12113 while (memory_count > 0)
12114 {
12115 if (!single_reg)
12116 {
12117 record_buf_mem[memory_index] = start_address;
12118 record_buf_mem[memory_index + 1] = 4;
12119 start_address = start_address + 4;
12120 memory_index = memory_index + 2;
12121 }
12122 else
12123 {
12124 record_buf_mem[memory_index] = start_address;
12125 record_buf_mem[memory_index + 1] = 4;
12126 record_buf_mem[memory_index + 2] = start_address + 4;
12127 record_buf_mem[memory_index + 3] = 4;
12128 start_address = start_address + 8;
12129 memory_index = memory_index + 4;
12130 }
12131 memory_count--;
12132 }
12133 arm_insn_r->mem_rec_count = (memory_index >> 1);
12134 }
12135 /* Handle VLDM instructions. */
12136 else if (op_vldm_vstm == 0x09 || op_vldm_vstm == 0x0b
12137 || op_vldm_vstm == 0x13)
12138 {
12139 uint32_t reg_count, reg_vd;
12140 uint32_t reg_index = 0;
12141
12142 reg_vd = bits (arm_insn_r->arm_insn, 12, 15);
12143 reg_count = bits (arm_insn_r->arm_insn, 0, 7);
12144
12145 if (single_reg)
12146 reg_vd = reg_vd | (bit (arm_insn_r->arm_insn, 22) << 4);
12147 else
12148 reg_vd = (reg_vd << 1) | bit (arm_insn_r->arm_insn, 22);
12149
12150 if (bit (arm_insn_r->arm_insn, 21))
12151 record_buf[reg_index++] = bits (arm_insn_r->arm_insn, 16, 19);
12152
12153 while (reg_count > 0)
12154 {
12155 if (single_reg)
12156 record_buf[reg_index++] = num_regs + reg_vd + reg_count - 1;
12157 else
12158 record_buf[reg_index++] = ARM_D0_REGNUM + reg_vd + reg_count - 1;
12159
12160 reg_count--;
12161 }
12162 arm_insn_r->reg_rec_count = reg_index;
12163 }
12164 /* VSTR Vector store register. */
12165 else if ((opcode & 0x13) == 0x10)
12166 {
12167 uint32_t start_address, reg_rn, imm_off32, imm_off8, memory_count;
12168 uint32_t memory_index = 0;
12169
12170 reg_rn = bits (arm_insn_r->arm_insn, 16, 19);
12171 regcache_raw_read_unsigned (reg_cache, reg_rn, &u_regval);
12172 imm_off8 = bits (arm_insn_r->arm_insn, 0, 7);
12173 imm_off32 = imm_off8 << 24;
12174 memory_count = imm_off8;
12175
12176 if (bit (arm_insn_r->arm_insn, 23))
12177 start_address = u_regval + imm_off32;
12178 else
12179 start_address = u_regval - imm_off32;
12180
12181 if (single_reg)
12182 {
12183 record_buf_mem[memory_index] = start_address;
12184 record_buf_mem[memory_index + 1] = 4;
12185 arm_insn_r->mem_rec_count = 1;
12186 }
12187 else
12188 {
12189 record_buf_mem[memory_index] = start_address;
12190 record_buf_mem[memory_index + 1] = 4;
12191 record_buf_mem[memory_index + 2] = start_address + 4;
12192 record_buf_mem[memory_index + 3] = 4;
12193 arm_insn_r->mem_rec_count = 2;
12194 }
12195 }
12196 /* VLDR Vector load register. */
12197 else if ((opcode & 0x13) == 0x11)
12198 {
12199 uint32_t reg_vd = bits (arm_insn_r->arm_insn, 12, 15);
12200
12201 if (!single_reg)
12202 {
12203 reg_vd = reg_vd | (bit (arm_insn_r->arm_insn, 22) << 4);
12204 record_buf[0] = ARM_D0_REGNUM + reg_vd;
12205 }
12206 else
12207 {
12208 reg_vd = (reg_vd << 1) | bit (arm_insn_r->arm_insn, 22);
12209 record_buf[0] = num_regs + reg_vd;
12210 }
12211 arm_insn_r->reg_rec_count = 1;
12212 }
12213
12214 REG_ALLOC (arm_insn_r->arm_regs, arm_insn_r->reg_rec_count, record_buf);
12215 MEM_ALLOC (arm_insn_r->arm_mems, arm_insn_r->mem_rec_count, record_buf_mem);
12216 return 0;
12217}
12218
851f26ae
OJ
12219/* Record handler for arm/thumb mode VFP data processing instructions. */
12220
12221static int
12222arm_record_vfp_data_proc_insn (insn_decode_record *arm_insn_r)
12223{
12224 uint32_t opc1, opc2, opc3, dp_op_sz, bit_d, reg_vd;
12225 uint32_t record_buf[4];
12226 enum insn_types {INSN_T0, INSN_T1, INSN_T2, INSN_T3, INSN_INV};
12227 enum insn_types curr_insn_type = INSN_INV;
12228
12229 reg_vd = bits (arm_insn_r->arm_insn, 12, 15);
12230 opc1 = bits (arm_insn_r->arm_insn, 20, 23);
12231 opc2 = bits (arm_insn_r->arm_insn, 16, 19);
12232 opc3 = bits (arm_insn_r->arm_insn, 6, 7);
12233 dp_op_sz = bit (arm_insn_r->arm_insn, 8);
12234 bit_d = bit (arm_insn_r->arm_insn, 22);
12235 opc1 = opc1 & 0x04;
12236
12237 /* Handle VMLA, VMLS. */
12238 if (opc1 == 0x00)
12239 {
12240 if (bit (arm_insn_r->arm_insn, 10))
12241 {
12242 if (bit (arm_insn_r->arm_insn, 6))
12243 curr_insn_type = INSN_T0;
12244 else
12245 curr_insn_type = INSN_T1;
12246 }
12247 else
12248 {
12249 if (dp_op_sz)
12250 curr_insn_type = INSN_T1;
12251 else
12252 curr_insn_type = INSN_T2;
12253 }
12254 }
12255 /* Handle VNMLA, VNMLS, VNMUL. */
12256 else if (opc1 == 0x01)
12257 {
12258 if (dp_op_sz)
12259 curr_insn_type = INSN_T1;
12260 else
12261 curr_insn_type = INSN_T2;
12262 }
12263 /* Handle VMUL. */
12264 else if (opc1 == 0x02 && !(opc3 & 0x01))
12265 {
12266 if (bit (arm_insn_r->arm_insn, 10))
12267 {
12268 if (bit (arm_insn_r->arm_insn, 6))
12269 curr_insn_type = INSN_T0;
12270 else
12271 curr_insn_type = INSN_T1;
12272 }
12273 else
12274 {
12275 if (dp_op_sz)
12276 curr_insn_type = INSN_T1;
12277 else
12278 curr_insn_type = INSN_T2;
12279 }
12280 }
12281 /* Handle VADD, VSUB. */
12282 else if (opc1 == 0x03)
12283 {
12284 if (!bit (arm_insn_r->arm_insn, 9))
12285 {
12286 if (bit (arm_insn_r->arm_insn, 6))
12287 curr_insn_type = INSN_T0;
12288 else
12289 curr_insn_type = INSN_T1;
12290 }
12291 else
12292 {
12293 if (dp_op_sz)
12294 curr_insn_type = INSN_T1;
12295 else
12296 curr_insn_type = INSN_T2;
12297 }
12298 }
12299 /* Handle VDIV. */
12300 else if (opc1 == 0x0b)
12301 {
12302 if (dp_op_sz)
12303 curr_insn_type = INSN_T1;
12304 else
12305 curr_insn_type = INSN_T2;
12306 }
12307 /* Handle all other vfp data processing instructions. */
12308 else if (opc1 == 0x0b)
12309 {
12310 /* Handle VMOV. */
12311 if (!(opc3 & 0x01) || (opc2 == 0x00 && opc3 == 0x01))
12312 {
12313 if (bit (arm_insn_r->arm_insn, 4))
12314 {
12315 if (bit (arm_insn_r->arm_insn, 6))
12316 curr_insn_type = INSN_T0;
12317 else
12318 curr_insn_type = INSN_T1;
12319 }
12320 else
12321 {
12322 if (dp_op_sz)
12323 curr_insn_type = INSN_T1;
12324 else
12325 curr_insn_type = INSN_T2;
12326 }
12327 }
12328 /* Handle VNEG and VABS. */
12329 else if ((opc2 == 0x01 && opc3 == 0x01)
12330 || (opc2 == 0x00 && opc3 == 0x03))
12331 {
12332 if (!bit (arm_insn_r->arm_insn, 11))
12333 {
12334 if (bit (arm_insn_r->arm_insn, 6))
12335 curr_insn_type = INSN_T0;
12336 else
12337 curr_insn_type = INSN_T1;
12338 }
12339 else
12340 {
12341 if (dp_op_sz)
12342 curr_insn_type = INSN_T1;
12343 else
12344 curr_insn_type = INSN_T2;
12345 }
12346 }
12347 /* Handle VSQRT. */
12348 else if (opc2 == 0x01 && opc3 == 0x03)
12349 {
12350 if (dp_op_sz)
12351 curr_insn_type = INSN_T1;
12352 else
12353 curr_insn_type = INSN_T2;
12354 }
12355 /* Handle VCVT. */
12356 else if (opc2 == 0x07 && opc3 == 0x03)
12357 {
12358 if (!dp_op_sz)
12359 curr_insn_type = INSN_T1;
12360 else
12361 curr_insn_type = INSN_T2;
12362 }
12363 else if (opc3 & 0x01)
12364 {
12365 /* Handle VCVT. */
12366 if ((opc2 == 0x08) || (opc2 & 0x0e) == 0x0c)
12367 {
12368 if (!bit (arm_insn_r->arm_insn, 18))
12369 curr_insn_type = INSN_T2;
12370 else
12371 {
12372 if (dp_op_sz)
12373 curr_insn_type = INSN_T1;
12374 else
12375 curr_insn_type = INSN_T2;
12376 }
12377 }
12378 /* Handle VCVT. */
12379 else if ((opc2 & 0x0e) == 0x0a || (opc2 & 0x0e) == 0x0e)
12380 {
12381 if (dp_op_sz)
12382 curr_insn_type = INSN_T1;
12383 else
12384 curr_insn_type = INSN_T2;
12385 }
12386 /* Handle VCVTB, VCVTT. */
12387 else if ((opc2 & 0x0e) == 0x02)
12388 curr_insn_type = INSN_T2;
12389 /* Handle VCMP, VCMPE. */
12390 else if ((opc2 & 0x0e) == 0x04)
12391 curr_insn_type = INSN_T3;
12392 }
12393 }
12394
12395 switch (curr_insn_type)
12396 {
12397 case INSN_T0:
12398 reg_vd = reg_vd | (bit_d << 4);
12399 record_buf[0] = reg_vd + ARM_D0_REGNUM;
12400 record_buf[1] = reg_vd + ARM_D0_REGNUM + 1;
12401 arm_insn_r->reg_rec_count = 2;
12402 break;
12403
12404 case INSN_T1:
12405 reg_vd = reg_vd | (bit_d << 4);
12406 record_buf[0] = reg_vd + ARM_D0_REGNUM;
12407 arm_insn_r->reg_rec_count = 1;
12408 break;
12409
12410 case INSN_T2:
12411 reg_vd = (reg_vd << 1) | bit_d;
12412 record_buf[0] = reg_vd + ARM_D0_REGNUM;
12413 arm_insn_r->reg_rec_count = 1;
12414 break;
12415
12416 case INSN_T3:
12417 record_buf[0] = ARM_FPSCR_REGNUM;
12418 arm_insn_r->reg_rec_count = 1;
12419 break;
12420
12421 default:
12422 gdb_assert_not_reached ("no decoding pattern found");
12423 break;
12424 }
12425
12426 REG_ALLOC (arm_insn_r->arm_regs, arm_insn_r->reg_rec_count, record_buf);
12427 return 0;
12428}
12429
60cc5e93
OJ
12430/* Handling opcode 110 insns. */
12431
12432static int
12433arm_record_asimd_vfp_coproc (insn_decode_record *arm_insn_r)
12434{
12435 uint32_t op, op1, op1_sbit, op1_ebit, coproc;
12436
12437 coproc = bits (arm_insn_r->arm_insn, 8, 11);
12438 op1 = bits (arm_insn_r->arm_insn, 20, 25);
12439 op1_ebit = bit (arm_insn_r->arm_insn, 20);
12440
12441 if ((coproc & 0x0e) == 0x0a)
12442 {
12443 /* Handle extension register ld/st instructions. */
12444 if (!(op1 & 0x20))
f20f80dd 12445 return arm_record_exreg_ld_st_insn (arm_insn_r);
60cc5e93
OJ
12446
12447 /* 64-bit transfers between arm core and extension registers. */
12448 if ((op1 & 0x3e) == 0x04)
f20f80dd 12449 return arm_record_exreg_ld_st_insn (arm_insn_r);
60cc5e93
OJ
12450 }
12451 else
12452 {
12453 /* Handle coprocessor ld/st instructions. */
12454 if (!(op1 & 0x3a))
12455 {
12456 /* Store. */
12457 if (!op1_ebit)
12458 return arm_record_unsupported_insn (arm_insn_r);
12459 else
12460 /* Load. */
12461 return arm_record_unsupported_insn (arm_insn_r);
12462 }
12463
12464 /* Move to coprocessor from two arm core registers. */
12465 if (op1 == 0x4)
12466 return arm_record_unsupported_insn (arm_insn_r);
12467
12468 /* Move to two arm core registers from coprocessor. */
12469 if (op1 == 0x5)
12470 {
12471 uint32_t reg_t[2];
12472
12473 reg_t[0] = bits (arm_insn_r->arm_insn, 12, 15);
12474 reg_t[1] = bits (arm_insn_r->arm_insn, 16, 19);
12475 arm_insn_r->reg_rec_count = 2;
12476
12477 REG_ALLOC (arm_insn_r->arm_regs, arm_insn_r->reg_rec_count, reg_t);
12478 return 0;
12479 }
12480 }
12481 return arm_record_unsupported_insn (arm_insn_r);
12482}
12483
72508ac0
PO
12484/* Handling opcode 111 insns. */
12485
12486static int
12487arm_record_coproc_data_proc (insn_decode_record *arm_insn_r)
12488{
60cc5e93 12489 uint32_t op, op1_sbit, op1_ebit, coproc;
72508ac0
PO
12490 struct gdbarch_tdep *tdep = gdbarch_tdep (arm_insn_r->gdbarch);
12491 struct regcache *reg_cache = arm_insn_r->regcache;
97dfe206 12492 ULONGEST u_regval = 0;
72508ac0
PO
12493
12494 arm_insn_r->opcode = bits (arm_insn_r->arm_insn, 24, 27);
60cc5e93
OJ
12495 coproc = bits (arm_insn_r->arm_insn, 8, 11);
12496 op1_sbit = bit (arm_insn_r->arm_insn, 24);
12497 op1_ebit = bit (arm_insn_r->arm_insn, 20);
12498 op = bit (arm_insn_r->arm_insn, 4);
97dfe206
OJ
12499
12500 /* Handle arm SWI/SVC system call instructions. */
60cc5e93 12501 if (op1_sbit)
97dfe206
OJ
12502 {
12503 if (tdep->arm_syscall_record != NULL)
12504 {
12505 ULONGEST svc_operand, svc_number;
12506
12507 svc_operand = (0x00ffffff & arm_insn_r->arm_insn);
12508
12509 if (svc_operand) /* OABI. */
12510 svc_number = svc_operand - 0x900000;
12511 else /* EABI. */
12512 regcache_raw_read_unsigned (reg_cache, 7, &svc_number);
12513
60cc5e93 12514 return tdep->arm_syscall_record (reg_cache, svc_number);
97dfe206
OJ
12515 }
12516 else
12517 {
12518 printf_unfiltered (_("no syscall record support\n"));
60cc5e93 12519 return -1;
97dfe206
OJ
12520 }
12521 }
60cc5e93
OJ
12522
12523 if ((coproc & 0x0e) == 0x0a)
12524 {
12525 /* VFP data-processing instructions. */
12526 if (!op1_sbit && !op)
851f26ae 12527 return arm_record_vfp_data_proc_insn (arm_insn_r);
60cc5e93
OJ
12528
12529 /* Advanced SIMD, VFP instructions. */
12530 if (!op1_sbit && op)
5a578da5 12531 return arm_record_vdata_transfer_insn (arm_insn_r);
60cc5e93 12532 }
97dfe206
OJ
12533 else
12534 {
60cc5e93
OJ
12535 /* Coprocessor data operations. */
12536 if (!op1_sbit && !op)
12537 return arm_record_unsupported_insn (arm_insn_r);
12538
12539 /* Move to Coprocessor from ARM core register. */
12540 if (!op1_sbit && !op1_ebit && op)
12541 return arm_record_unsupported_insn (arm_insn_r);
12542
12543 /* Move to arm core register from coprocessor. */
12544 if (!op1_sbit && op1_ebit && op)
12545 {
12546 uint32_t record_buf[1];
12547
12548 record_buf[0] = bits (arm_insn_r->arm_insn, 12, 15);
12549 if (record_buf[0] == 15)
12550 record_buf[0] = ARM_PS_REGNUM;
12551
12552 arm_insn_r->reg_rec_count = 1;
12553 REG_ALLOC (arm_insn_r->arm_regs, arm_insn_r->reg_rec_count,
12554 record_buf);
12555 return 0;
12556 }
97dfe206 12557 }
72508ac0 12558
60cc5e93 12559 return arm_record_unsupported_insn (arm_insn_r);
72508ac0
PO
12560}
12561
12562/* Handling opcode 000 insns. */
12563
12564static int
12565thumb_record_shift_add_sub (insn_decode_record *thumb_insn_r)
12566{
12567 uint32_t record_buf[8];
12568 uint32_t reg_src1 = 0;
12569
12570 reg_src1 = bits (thumb_insn_r->arm_insn, 0, 2);
12571
12572 record_buf[0] = ARM_PS_REGNUM;
12573 record_buf[1] = reg_src1;
12574 thumb_insn_r->reg_rec_count = 2;
12575
12576 REG_ALLOC (thumb_insn_r->arm_regs, thumb_insn_r->reg_rec_count, record_buf);
12577
12578 return 0;
12579}
12580
12581
12582/* Handling opcode 001 insns. */
12583
12584static int
12585thumb_record_add_sub_cmp_mov (insn_decode_record *thumb_insn_r)
12586{
12587 uint32_t record_buf[8];
12588 uint32_t reg_src1 = 0;
12589
12590 reg_src1 = bits (thumb_insn_r->arm_insn, 8, 10);
12591
12592 record_buf[0] = ARM_PS_REGNUM;
12593 record_buf[1] = reg_src1;
12594 thumb_insn_r->reg_rec_count = 2;
12595
12596 REG_ALLOC (thumb_insn_r->arm_regs, thumb_insn_r->reg_rec_count, record_buf);
12597
12598 return 0;
12599}
12600
12601/* Handling opcode 010 insns. */
12602
12603static int
12604thumb_record_ld_st_reg_offset (insn_decode_record *thumb_insn_r)
12605{
12606 struct regcache *reg_cache = thumb_insn_r->regcache;
12607 uint32_t record_buf[8], record_buf_mem[8];
12608
12609 uint32_t reg_src1 = 0, reg_src2 = 0;
12610 uint32_t opcode1 = 0, opcode2 = 0, opcode3 = 0;
12611
12612 ULONGEST u_regval[2] = {0};
12613
12614 opcode1 = bits (thumb_insn_r->arm_insn, 10, 12);
12615
12616 if (bit (thumb_insn_r->arm_insn, 12))
12617 {
12618 /* Handle load/store register offset. */
12619 opcode2 = bits (thumb_insn_r->arm_insn, 9, 10);
12620 if (opcode2 >= 12 && opcode2 <= 15)
12621 {
12622 /* LDR(2), LDRB(2) , LDRH(2), LDRSB, LDRSH. */
12623 reg_src1 = bits (thumb_insn_r->arm_insn,0, 2);
12624 record_buf[0] = reg_src1;
12625 thumb_insn_r->reg_rec_count = 1;
12626 }
12627 else if (opcode2 >= 8 && opcode2 <= 10)
12628 {
12629 /* STR(2), STRB(2), STRH(2) . */
12630 reg_src1 = bits (thumb_insn_r->arm_insn, 3, 5);
12631 reg_src2 = bits (thumb_insn_r->arm_insn, 6, 8);
12632 regcache_raw_read_unsigned (reg_cache, reg_src1, &u_regval[0]);
12633 regcache_raw_read_unsigned (reg_cache, reg_src2, &u_regval[1]);
12634 if (8 == opcode2)
12635 record_buf_mem[0] = 4; /* STR (2). */
12636 else if (10 == opcode2)
12637 record_buf_mem[0] = 1; /* STRB (2). */
12638 else if (9 == opcode2)
12639 record_buf_mem[0] = 2; /* STRH (2). */
12640 record_buf_mem[1] = u_regval[0] + u_regval[1];
12641 thumb_insn_r->mem_rec_count = 1;
12642 }
12643 }
12644 else if (bit (thumb_insn_r->arm_insn, 11))
12645 {
12646 /* Handle load from literal pool. */
12647 /* LDR(3). */
12648 reg_src1 = bits (thumb_insn_r->arm_insn, 8, 10);
12649 record_buf[0] = reg_src1;
12650 thumb_insn_r->reg_rec_count = 1;
12651 }
12652 else if (opcode1)
12653 {
12654 opcode2 = bits (thumb_insn_r->arm_insn, 8, 9);
12655 opcode3 = bits (thumb_insn_r->arm_insn, 0, 2);
12656 if ((3 == opcode2) && (!opcode3))
12657 {
12658 /* Branch with exchange. */
12659 record_buf[0] = ARM_PS_REGNUM;
12660 thumb_insn_r->reg_rec_count = 1;
12661 }
12662 else
12663 {
12664 /* Format 8; special data processing insns. */
12665 reg_src1 = bits (thumb_insn_r->arm_insn, 0, 2);
12666 record_buf[0] = ARM_PS_REGNUM;
12667 record_buf[1] = reg_src1;
12668 thumb_insn_r->reg_rec_count = 2;
12669 }
12670 }
12671 else
12672 {
12673 /* Format 5; data processing insns. */
12674 reg_src1 = bits (thumb_insn_r->arm_insn, 0, 2);
12675 if (bit (thumb_insn_r->arm_insn, 7))
12676 {
12677 reg_src1 = reg_src1 + 8;
12678 }
12679 record_buf[0] = ARM_PS_REGNUM;
12680 record_buf[1] = reg_src1;
12681 thumb_insn_r->reg_rec_count = 2;
12682 }
12683
12684 REG_ALLOC (thumb_insn_r->arm_regs, thumb_insn_r->reg_rec_count, record_buf);
12685 MEM_ALLOC (thumb_insn_r->arm_mems, thumb_insn_r->mem_rec_count,
12686 record_buf_mem);
12687
12688 return 0;
12689}
12690
12691/* Handling opcode 001 insns. */
12692
12693static int
12694thumb_record_ld_st_imm_offset (insn_decode_record *thumb_insn_r)
12695{
12696 struct regcache *reg_cache = thumb_insn_r->regcache;
12697 uint32_t record_buf[8], record_buf_mem[8];
12698
12699 uint32_t reg_src1 = 0;
12700 uint32_t opcode = 0, immed_5 = 0;
12701
12702 ULONGEST u_regval = 0;
12703
12704 opcode = bits (thumb_insn_r->arm_insn, 11, 12);
12705
12706 if (opcode)
12707 {
12708 /* LDR(1). */
12709 reg_src1 = bits (thumb_insn_r->arm_insn, 0, 2);
12710 record_buf[0] = reg_src1;
12711 thumb_insn_r->reg_rec_count = 1;
12712 }
12713 else
12714 {
12715 /* STR(1). */
12716 reg_src1 = bits (thumb_insn_r->arm_insn, 3, 5);
12717 immed_5 = bits (thumb_insn_r->arm_insn, 6, 10);
12718 regcache_raw_read_unsigned (reg_cache, reg_src1, &u_regval);
12719 record_buf_mem[0] = 4;
12720 record_buf_mem[1] = u_regval + (immed_5 * 4);
12721 thumb_insn_r->mem_rec_count = 1;
12722 }
12723
12724 REG_ALLOC (thumb_insn_r->arm_regs, thumb_insn_r->reg_rec_count, record_buf);
12725 MEM_ALLOC (thumb_insn_r->arm_mems, thumb_insn_r->mem_rec_count,
12726 record_buf_mem);
12727
12728 return 0;
12729}
12730
12731/* Handling opcode 100 insns. */
12732
12733static int
12734thumb_record_ld_st_stack (insn_decode_record *thumb_insn_r)
12735{
12736 struct regcache *reg_cache = thumb_insn_r->regcache;
12737 uint32_t record_buf[8], record_buf_mem[8];
12738
12739 uint32_t reg_src1 = 0;
12740 uint32_t opcode = 0, immed_8 = 0, immed_5 = 0;
12741
12742 ULONGEST u_regval = 0;
12743
12744 opcode = bits (thumb_insn_r->arm_insn, 11, 12);
12745
12746 if (3 == opcode)
12747 {
12748 /* LDR(4). */
12749 reg_src1 = bits (thumb_insn_r->arm_insn, 8, 10);
12750 record_buf[0] = reg_src1;
12751 thumb_insn_r->reg_rec_count = 1;
12752 }
12753 else if (1 == opcode)
12754 {
12755 /* LDRH(1). */
12756 reg_src1 = bits (thumb_insn_r->arm_insn, 0, 2);
12757 record_buf[0] = reg_src1;
12758 thumb_insn_r->reg_rec_count = 1;
12759 }
12760 else if (2 == opcode)
12761 {
12762 /* STR(3). */
12763 immed_8 = bits (thumb_insn_r->arm_insn, 0, 7);
12764 regcache_raw_read_unsigned (reg_cache, ARM_SP_REGNUM, &u_regval);
12765 record_buf_mem[0] = 4;
12766 record_buf_mem[1] = u_regval + (immed_8 * 4);
12767 thumb_insn_r->mem_rec_count = 1;
12768 }
12769 else if (0 == opcode)
12770 {
12771 /* STRH(1). */
12772 immed_5 = bits (thumb_insn_r->arm_insn, 6, 10);
12773 reg_src1 = bits (thumb_insn_r->arm_insn, 3, 5);
12774 regcache_raw_read_unsigned (reg_cache, reg_src1, &u_regval);
12775 record_buf_mem[0] = 2;
12776 record_buf_mem[1] = u_regval + (immed_5 * 2);
12777 thumb_insn_r->mem_rec_count = 1;
12778 }
12779
12780 REG_ALLOC (thumb_insn_r->arm_regs, thumb_insn_r->reg_rec_count, record_buf);
12781 MEM_ALLOC (thumb_insn_r->arm_mems, thumb_insn_r->mem_rec_count,
12782 record_buf_mem);
12783
12784 return 0;
12785}
12786
12787/* Handling opcode 101 insns. */
12788
12789static int
12790thumb_record_misc (insn_decode_record *thumb_insn_r)
12791{
12792 struct regcache *reg_cache = thumb_insn_r->regcache;
12793
12794 uint32_t opcode = 0, opcode1 = 0, opcode2 = 0;
12795 uint32_t register_bits = 0, register_count = 0;
12796 uint32_t register_list[8] = {0}, index = 0, start_address = 0;
12797 uint32_t record_buf[24], record_buf_mem[48];
12798 uint32_t reg_src1;
12799
12800 ULONGEST u_regval = 0;
12801
12802 opcode = bits (thumb_insn_r->arm_insn, 11, 12);
12803 opcode1 = bits (thumb_insn_r->arm_insn, 8, 12);
12804 opcode2 = bits (thumb_insn_r->arm_insn, 9, 12);
12805
12806 if (14 == opcode2)
12807 {
12808 /* POP. */
12809 register_bits = bits (thumb_insn_r->arm_insn, 0, 7);
12810 while (register_bits)
f969241e
OJ
12811 {
12812 if (register_bits & 0x00000001)
12813 record_buf[index++] = register_count;
12814 register_bits = register_bits >> 1;
12815 register_count++;
12816 }
12817 record_buf[index++] = ARM_PS_REGNUM;
12818 record_buf[index++] = ARM_SP_REGNUM;
12819 thumb_insn_r->reg_rec_count = index;
72508ac0
PO
12820 }
12821 else if (10 == opcode2)
12822 {
12823 /* PUSH. */
12824 register_bits = bits (thumb_insn_r->arm_insn, 0, 7);
9904a494 12825 regcache_raw_read_unsigned (reg_cache, ARM_SP_REGNUM, &u_regval);
72508ac0
PO
12826 while (register_bits)
12827 {
12828 if (register_bits & 0x00000001)
12829 register_count++;
12830 register_bits = register_bits >> 1;
12831 }
12832 start_address = u_regval - \
12833 (4 * (bit (thumb_insn_r->arm_insn, 8) + register_count));
12834 thumb_insn_r->mem_rec_count = register_count;
12835 while (register_count)
12836 {
12837 record_buf_mem[(register_count * 2) - 1] = start_address;
12838 record_buf_mem[(register_count * 2) - 2] = 4;
12839 start_address = start_address + 4;
12840 register_count--;
12841 }
12842 record_buf[0] = ARM_SP_REGNUM;
12843 thumb_insn_r->reg_rec_count = 1;
12844 }
12845 else if (0x1E == opcode1)
12846 {
12847 /* BKPT insn. */
12848 /* Handle enhanced software breakpoint insn, BKPT. */
12849 /* CPSR is changed to be executed in ARM state, disabling normal
12850 interrupts, entering abort mode. */
12851 /* According to high vector configuration PC is set. */
12852 /* User hits breakpoint and type reverse, in that case, we need to go back with
12853 previous CPSR and Program Counter. */
12854 record_buf[0] = ARM_PS_REGNUM;
12855 record_buf[1] = ARM_LR_REGNUM;
12856 thumb_insn_r->reg_rec_count = 2;
12857 /* We need to save SPSR value, which is not yet done. */
12858 printf_unfiltered (_("Process record does not support instruction "
12859 "0x%0x at address %s.\n"),
12860 thumb_insn_r->arm_insn,
12861 paddress (thumb_insn_r->gdbarch,
12862 thumb_insn_r->this_addr));
12863 return -1;
12864 }
12865 else if ((0 == opcode) || (1 == opcode))
12866 {
12867 /* ADD(5), ADD(6). */
12868 reg_src1 = bits (thumb_insn_r->arm_insn, 8, 10);
12869 record_buf[0] = reg_src1;
12870 thumb_insn_r->reg_rec_count = 1;
12871 }
12872 else if (2 == opcode)
12873 {
12874 /* ADD(7), SUB(4). */
12875 reg_src1 = bits (thumb_insn_r->arm_insn, 8, 10);
12876 record_buf[0] = ARM_SP_REGNUM;
12877 thumb_insn_r->reg_rec_count = 1;
12878 }
12879
12880 REG_ALLOC (thumb_insn_r->arm_regs, thumb_insn_r->reg_rec_count, record_buf);
12881 MEM_ALLOC (thumb_insn_r->arm_mems, thumb_insn_r->mem_rec_count,
12882 record_buf_mem);
12883
12884 return 0;
12885}
12886
12887/* Handling opcode 110 insns. */
12888
12889static int
12890thumb_record_ldm_stm_swi (insn_decode_record *thumb_insn_r)
12891{
12892 struct gdbarch_tdep *tdep = gdbarch_tdep (thumb_insn_r->gdbarch);
12893 struct regcache *reg_cache = thumb_insn_r->regcache;
12894
12895 uint32_t ret = 0; /* function return value: -1:record failure ; 0:success */
12896 uint32_t reg_src1 = 0;
12897 uint32_t opcode1 = 0, opcode2 = 0, register_bits = 0, register_count = 0;
12898 uint32_t register_list[8] = {0}, index = 0, start_address = 0;
12899 uint32_t record_buf[24], record_buf_mem[48];
12900
12901 ULONGEST u_regval = 0;
12902
12903 opcode1 = bits (thumb_insn_r->arm_insn, 8, 12);
12904 opcode2 = bits (thumb_insn_r->arm_insn, 11, 12);
12905
12906 if (1 == opcode2)
12907 {
12908
12909 /* LDMIA. */
12910 register_bits = bits (thumb_insn_r->arm_insn, 0, 7);
12911 /* Get Rn. */
12912 reg_src1 = bits (thumb_insn_r->arm_insn, 8, 10);
12913 while (register_bits)
12914 {
12915 if (register_bits & 0x00000001)
f969241e 12916 record_buf[index++] = register_count;
72508ac0 12917 register_bits = register_bits >> 1;
f969241e 12918 register_count++;
72508ac0 12919 }
f969241e
OJ
12920 record_buf[index++] = reg_src1;
12921 thumb_insn_r->reg_rec_count = index;
72508ac0
PO
12922 }
12923 else if (0 == opcode2)
12924 {
12925 /* It handles both STMIA. */
12926 register_bits = bits (thumb_insn_r->arm_insn, 0, 7);
12927 /* Get Rn. */
12928 reg_src1 = bits (thumb_insn_r->arm_insn, 8, 10);
12929 regcache_raw_read_unsigned (reg_cache, reg_src1, &u_regval);
12930 while (register_bits)
12931 {
12932 if (register_bits & 0x00000001)
12933 register_count++;
12934 register_bits = register_bits >> 1;
12935 }
12936 start_address = u_regval;
12937 thumb_insn_r->mem_rec_count = register_count;
12938 while (register_count)
12939 {
12940 record_buf_mem[(register_count * 2) - 1] = start_address;
12941 record_buf_mem[(register_count * 2) - 2] = 4;
12942 start_address = start_address + 4;
12943 register_count--;
12944 }
12945 }
12946 else if (0x1F == opcode1)
12947 {
12948 /* Handle arm syscall insn. */
97dfe206 12949 if (tdep->arm_syscall_record != NULL)
72508ac0 12950 {
97dfe206
OJ
12951 regcache_raw_read_unsigned (reg_cache, 7, &u_regval);
12952 ret = tdep->arm_syscall_record (reg_cache, u_regval);
72508ac0
PO
12953 }
12954 else
12955 {
12956 printf_unfiltered (_("no syscall record support\n"));
12957 return -1;
12958 }
12959 }
12960
12961 /* B (1), conditional branch is automatically taken care in process_record,
12962 as PC is saved there. */
12963
12964 REG_ALLOC (thumb_insn_r->arm_regs, thumb_insn_r->reg_rec_count, record_buf);
12965 MEM_ALLOC (thumb_insn_r->arm_mems, thumb_insn_r->mem_rec_count,
12966 record_buf_mem);
12967
12968 return ret;
12969}
12970
12971/* Handling opcode 111 insns. */
12972
12973static int
12974thumb_record_branch (insn_decode_record *thumb_insn_r)
12975{
12976 uint32_t record_buf[8];
12977 uint32_t bits_h = 0;
12978
12979 bits_h = bits (thumb_insn_r->arm_insn, 11, 12);
12980
12981 if (2 == bits_h || 3 == bits_h)
12982 {
12983 /* BL */
12984 record_buf[0] = ARM_LR_REGNUM;
12985 thumb_insn_r->reg_rec_count = 1;
12986 }
12987 else if (1 == bits_h)
12988 {
12989 /* BLX(1). */
12990 record_buf[0] = ARM_PS_REGNUM;
12991 record_buf[1] = ARM_LR_REGNUM;
12992 thumb_insn_r->reg_rec_count = 2;
12993 }
12994
12995 /* B(2) is automatically taken care in process_record, as PC is
12996 saved there. */
12997
12998 REG_ALLOC (thumb_insn_r->arm_regs, thumb_insn_r->reg_rec_count, record_buf);
12999
13000 return 0;
13001}
13002
c6ec2b30
OJ
13003/* Handler for thumb2 load/store multiple instructions. */
13004
13005static int
13006thumb2_record_ld_st_multiple (insn_decode_record *thumb2_insn_r)
13007{
13008 struct regcache *reg_cache = thumb2_insn_r->regcache;
13009
13010 uint32_t reg_rn, op;
13011 uint32_t register_bits = 0, register_count = 0;
13012 uint32_t index = 0, start_address = 0;
13013 uint32_t record_buf[24], record_buf_mem[48];
13014
13015 ULONGEST u_regval = 0;
13016
13017 reg_rn = bits (thumb2_insn_r->arm_insn, 16, 19);
13018 op = bits (thumb2_insn_r->arm_insn, 23, 24);
13019
13020 if (0 == op || 3 == op)
13021 {
13022 if (bit (thumb2_insn_r->arm_insn, INSN_S_L_BIT_NUM))
13023 {
13024 /* Handle RFE instruction. */
13025 record_buf[0] = ARM_PS_REGNUM;
13026 thumb2_insn_r->reg_rec_count = 1;
13027 }
13028 else
13029 {
13030 /* Handle SRS instruction after reading banked SP. */
13031 return arm_record_unsupported_insn (thumb2_insn_r);
13032 }
13033 }
13034 else if (1 == op || 2 == op)
13035 {
13036 if (bit (thumb2_insn_r->arm_insn, INSN_S_L_BIT_NUM))
13037 {
13038 /* Handle LDM/LDMIA/LDMFD and LDMDB/LDMEA instructions. */
13039 register_bits = bits (thumb2_insn_r->arm_insn, 0, 15);
13040 while (register_bits)
13041 {
13042 if (register_bits & 0x00000001)
13043 record_buf[index++] = register_count;
13044
13045 register_count++;
13046 register_bits = register_bits >> 1;
13047 }
13048 record_buf[index++] = reg_rn;
13049 record_buf[index++] = ARM_PS_REGNUM;
13050 thumb2_insn_r->reg_rec_count = index;
13051 }
13052 else
13053 {
13054 /* Handle STM/STMIA/STMEA and STMDB/STMFD. */
13055 register_bits = bits (thumb2_insn_r->arm_insn, 0, 15);
13056 regcache_raw_read_unsigned (reg_cache, reg_rn, &u_regval);
13057 while (register_bits)
13058 {
13059 if (register_bits & 0x00000001)
13060 register_count++;
13061
13062 register_bits = register_bits >> 1;
13063 }
13064
13065 if (1 == op)
13066 {
13067 /* Start address calculation for LDMDB/LDMEA. */
13068 start_address = u_regval;
13069 }
13070 else if (2 == op)
13071 {
13072 /* Start address calculation for LDMDB/LDMEA. */
13073 start_address = u_regval - register_count * 4;
13074 }
13075
13076 thumb2_insn_r->mem_rec_count = register_count;
13077 while (register_count)
13078 {
13079 record_buf_mem[register_count * 2 - 1] = start_address;
13080 record_buf_mem[register_count * 2 - 2] = 4;
13081 start_address = start_address + 4;
13082 register_count--;
13083 }
13084 record_buf[0] = reg_rn;
13085 record_buf[1] = ARM_PS_REGNUM;
13086 thumb2_insn_r->reg_rec_count = 2;
13087 }
13088 }
13089
13090 MEM_ALLOC (thumb2_insn_r->arm_mems, thumb2_insn_r->mem_rec_count,
13091 record_buf_mem);
13092 REG_ALLOC (thumb2_insn_r->arm_regs, thumb2_insn_r->reg_rec_count,
13093 record_buf);
13094 return ARM_RECORD_SUCCESS;
13095}
13096
13097/* Handler for thumb2 load/store (dual/exclusive) and table branch
13098 instructions. */
13099
13100static int
13101thumb2_record_ld_st_dual_ex_tbb (insn_decode_record *thumb2_insn_r)
13102{
13103 struct regcache *reg_cache = thumb2_insn_r->regcache;
13104
13105 uint32_t reg_rd, reg_rn, offset_imm;
13106 uint32_t reg_dest1, reg_dest2;
13107 uint32_t address, offset_addr;
13108 uint32_t record_buf[8], record_buf_mem[8];
13109 uint32_t op1, op2, op3;
13110 LONGEST s_word;
13111
13112 ULONGEST u_regval[2];
13113
13114 op1 = bits (thumb2_insn_r->arm_insn, 23, 24);
13115 op2 = bits (thumb2_insn_r->arm_insn, 20, 21);
13116 op3 = bits (thumb2_insn_r->arm_insn, 4, 7);
13117
13118 if (bit (thumb2_insn_r->arm_insn, INSN_S_L_BIT_NUM))
13119 {
13120 if(!(1 == op1 && 1 == op2 && (0 == op3 || 1 == op3)))
13121 {
13122 reg_dest1 = bits (thumb2_insn_r->arm_insn, 12, 15);
13123 record_buf[0] = reg_dest1;
13124 record_buf[1] = ARM_PS_REGNUM;
13125 thumb2_insn_r->reg_rec_count = 2;
13126 }
13127
13128 if (3 == op2 || (op1 & 2) || (1 == op1 && 1 == op2 && 7 == op3))
13129 {
13130 reg_dest2 = bits (thumb2_insn_r->arm_insn, 8, 11);
13131 record_buf[2] = reg_dest2;
13132 thumb2_insn_r->reg_rec_count = 3;
13133 }
13134 }
13135 else
13136 {
13137 reg_rn = bits (thumb2_insn_r->arm_insn, 16, 19);
13138 regcache_raw_read_unsigned (reg_cache, reg_rn, &u_regval[0]);
13139
13140 if (0 == op1 && 0 == op2)
13141 {
13142 /* Handle STREX. */
13143 offset_imm = bits (thumb2_insn_r->arm_insn, 0, 7);
13144 address = u_regval[0] + (offset_imm * 4);
13145 record_buf_mem[0] = 4;
13146 record_buf_mem[1] = address;
13147 thumb2_insn_r->mem_rec_count = 1;
13148 reg_rd = bits (thumb2_insn_r->arm_insn, 0, 3);
13149 record_buf[0] = reg_rd;
13150 thumb2_insn_r->reg_rec_count = 1;
13151 }
13152 else if (1 == op1 && 0 == op2)
13153 {
13154 reg_rd = bits (thumb2_insn_r->arm_insn, 0, 3);
13155 record_buf[0] = reg_rd;
13156 thumb2_insn_r->reg_rec_count = 1;
13157 address = u_regval[0];
13158 record_buf_mem[1] = address;
13159
13160 if (4 == op3)
13161 {
13162 /* Handle STREXB. */
13163 record_buf_mem[0] = 1;
13164 thumb2_insn_r->mem_rec_count = 1;
13165 }
13166 else if (5 == op3)
13167 {
13168 /* Handle STREXH. */
13169 record_buf_mem[0] = 2 ;
13170 thumb2_insn_r->mem_rec_count = 1;
13171 }
13172 else if (7 == op3)
13173 {
13174 /* Handle STREXD. */
13175 address = u_regval[0];
13176 record_buf_mem[0] = 4;
13177 record_buf_mem[2] = 4;
13178 record_buf_mem[3] = address + 4;
13179 thumb2_insn_r->mem_rec_count = 2;
13180 }
13181 }
13182 else
13183 {
13184 offset_imm = bits (thumb2_insn_r->arm_insn, 0, 7);
13185
13186 if (bit (thumb2_insn_r->arm_insn, 24))
13187 {
13188 if (bit (thumb2_insn_r->arm_insn, 23))
13189 offset_addr = u_regval[0] + (offset_imm * 4);
13190 else
13191 offset_addr = u_regval[0] - (offset_imm * 4);
13192
13193 address = offset_addr;
13194 }
13195 else
13196 address = u_regval[0];
13197
13198 record_buf_mem[0] = 4;
13199 record_buf_mem[1] = address;
13200 record_buf_mem[2] = 4;
13201 record_buf_mem[3] = address + 4;
13202 thumb2_insn_r->mem_rec_count = 2;
13203 record_buf[0] = reg_rn;
13204 thumb2_insn_r->reg_rec_count = 1;
13205 }
13206 }
13207
13208 REG_ALLOC (thumb2_insn_r->arm_regs, thumb2_insn_r->reg_rec_count,
13209 record_buf);
13210 MEM_ALLOC (thumb2_insn_r->arm_mems, thumb2_insn_r->mem_rec_count,
13211 record_buf_mem);
13212 return ARM_RECORD_SUCCESS;
13213}
13214
13215/* Handler for thumb2 data processing (shift register and modified immediate)
13216 instructions. */
13217
13218static int
13219thumb2_record_data_proc_sreg_mimm (insn_decode_record *thumb2_insn_r)
13220{
13221 uint32_t reg_rd, op;
13222 uint32_t record_buf[8];
13223
13224 op = bits (thumb2_insn_r->arm_insn, 21, 24);
13225 reg_rd = bits (thumb2_insn_r->arm_insn, 8, 11);
13226
13227 if ((0 == op || 4 == op || 8 == op || 13 == op) && 15 == reg_rd)
13228 {
13229 record_buf[0] = ARM_PS_REGNUM;
13230 thumb2_insn_r->reg_rec_count = 1;
13231 }
13232 else
13233 {
13234 record_buf[0] = reg_rd;
13235 record_buf[1] = ARM_PS_REGNUM;
13236 thumb2_insn_r->reg_rec_count = 2;
13237 }
13238
13239 REG_ALLOC (thumb2_insn_r->arm_regs, thumb2_insn_r->reg_rec_count,
13240 record_buf);
13241 return ARM_RECORD_SUCCESS;
13242}
13243
13244/* Generic handler for thumb2 instructions which effect destination and PS
13245 registers. */
13246
13247static int
13248thumb2_record_ps_dest_generic (insn_decode_record *thumb2_insn_r)
13249{
13250 uint32_t reg_rd;
13251 uint32_t record_buf[8];
13252
13253 reg_rd = bits (thumb2_insn_r->arm_insn, 8, 11);
13254
13255 record_buf[0] = reg_rd;
13256 record_buf[1] = ARM_PS_REGNUM;
13257 thumb2_insn_r->reg_rec_count = 2;
13258
13259 REG_ALLOC (thumb2_insn_r->arm_regs, thumb2_insn_r->reg_rec_count,
13260 record_buf);
13261 return ARM_RECORD_SUCCESS;
13262}
13263
13264/* Handler for thumb2 branch and miscellaneous control instructions. */
13265
13266static int
13267thumb2_record_branch_misc_cntrl (insn_decode_record *thumb2_insn_r)
13268{
13269 uint32_t op, op1, op2;
13270 uint32_t record_buf[8];
13271
13272 op = bits (thumb2_insn_r->arm_insn, 20, 26);
13273 op1 = bits (thumb2_insn_r->arm_insn, 12, 14);
13274 op2 = bits (thumb2_insn_r->arm_insn, 8, 11);
13275
13276 /* Handle MSR insn. */
13277 if (!(op1 & 0x2) && 0x38 == op)
13278 {
13279 if (!(op2 & 0x3))
13280 {
13281 /* CPSR is going to be changed. */
13282 record_buf[0] = ARM_PS_REGNUM;
13283 thumb2_insn_r->reg_rec_count = 1;
13284 }
13285 else
13286 {
13287 arm_record_unsupported_insn(thumb2_insn_r);
13288 return -1;
13289 }
13290 }
13291 else if (4 == (op1 & 0x5) || 5 == (op1 & 0x5))
13292 {
13293 /* BLX. */
13294 record_buf[0] = ARM_PS_REGNUM;
13295 record_buf[1] = ARM_LR_REGNUM;
13296 thumb2_insn_r->reg_rec_count = 2;
13297 }
13298
13299 REG_ALLOC (thumb2_insn_r->arm_regs, thumb2_insn_r->reg_rec_count,
13300 record_buf);
13301 return ARM_RECORD_SUCCESS;
13302}
13303
13304/* Handler for thumb2 store single data item instructions. */
13305
13306static int
13307thumb2_record_str_single_data (insn_decode_record *thumb2_insn_r)
13308{
13309 struct regcache *reg_cache = thumb2_insn_r->regcache;
13310
13311 uint32_t reg_rn, reg_rm, offset_imm, shift_imm;
13312 uint32_t address, offset_addr;
13313 uint32_t record_buf[8], record_buf_mem[8];
13314 uint32_t op1, op2;
13315
13316 ULONGEST u_regval[2];
13317
13318 op1 = bits (thumb2_insn_r->arm_insn, 21, 23);
13319 op2 = bits (thumb2_insn_r->arm_insn, 6, 11);
13320 reg_rn = bits (thumb2_insn_r->arm_insn, 16, 19);
13321 regcache_raw_read_unsigned (reg_cache, reg_rn, &u_regval[0]);
13322
13323 if (bit (thumb2_insn_r->arm_insn, 23))
13324 {
13325 /* T2 encoding. */
13326 offset_imm = bits (thumb2_insn_r->arm_insn, 0, 11);
13327 offset_addr = u_regval[0] + offset_imm;
13328 address = offset_addr;
13329 }
13330 else
13331 {
13332 /* T3 encoding. */
13333 if ((0 == op1 || 1 == op1 || 2 == op1) && !(op2 & 0x20))
13334 {
13335 /* Handle STRB (register). */
13336 reg_rm = bits (thumb2_insn_r->arm_insn, 0, 3);
13337 regcache_raw_read_unsigned (reg_cache, reg_rm, &u_regval[1]);
13338 shift_imm = bits (thumb2_insn_r->arm_insn, 4, 5);
13339 offset_addr = u_regval[1] << shift_imm;
13340 address = u_regval[0] + offset_addr;
13341 }
13342 else
13343 {
13344 offset_imm = bits (thumb2_insn_r->arm_insn, 0, 7);
13345 if (bit (thumb2_insn_r->arm_insn, 10))
13346 {
13347 if (bit (thumb2_insn_r->arm_insn, 9))
13348 offset_addr = u_regval[0] + offset_imm;
13349 else
13350 offset_addr = u_regval[0] - offset_imm;
13351
13352 address = offset_addr;
13353 }
13354 else
13355 address = u_regval[0];
13356 }
13357 }
13358
13359 switch (op1)
13360 {
13361 /* Store byte instructions. */
13362 case 4:
13363 case 0:
13364 record_buf_mem[0] = 1;
13365 break;
13366 /* Store half word instructions. */
13367 case 1:
13368 case 5:
13369 record_buf_mem[0] = 2;
13370 break;
13371 /* Store word instructions. */
13372 case 2:
13373 case 6:
13374 record_buf_mem[0] = 4;
13375 break;
13376
13377 default:
13378 gdb_assert_not_reached ("no decoding pattern found");
13379 break;
13380 }
13381
13382 record_buf_mem[1] = address;
13383 thumb2_insn_r->mem_rec_count = 1;
13384 record_buf[0] = reg_rn;
13385 thumb2_insn_r->reg_rec_count = 1;
13386
13387 REG_ALLOC (thumb2_insn_r->arm_regs, thumb2_insn_r->reg_rec_count,
13388 record_buf);
13389 MEM_ALLOC (thumb2_insn_r->arm_mems, thumb2_insn_r->mem_rec_count,
13390 record_buf_mem);
13391 return ARM_RECORD_SUCCESS;
13392}
13393
13394/* Handler for thumb2 load memory hints instructions. */
13395
13396static int
13397thumb2_record_ld_mem_hints (insn_decode_record *thumb2_insn_r)
13398{
13399 uint32_t record_buf[8];
13400 uint32_t reg_rt, reg_rn;
13401
13402 reg_rt = bits (thumb2_insn_r->arm_insn, 12, 15);
13403 reg_rn = bits (thumb2_insn_r->arm_insn, 16, 19);
13404
13405 if (ARM_PC_REGNUM != reg_rt)
13406 {
13407 record_buf[0] = reg_rt;
13408 record_buf[1] = reg_rn;
13409 record_buf[2] = ARM_PS_REGNUM;
13410 thumb2_insn_r->reg_rec_count = 3;
13411
13412 REG_ALLOC (thumb2_insn_r->arm_regs, thumb2_insn_r->reg_rec_count,
13413 record_buf);
13414 return ARM_RECORD_SUCCESS;
13415 }
13416
13417 return ARM_RECORD_FAILURE;
13418}
13419
13420/* Handler for thumb2 load word instructions. */
13421
13422static int
13423thumb2_record_ld_word (insn_decode_record *thumb2_insn_r)
13424{
13425 uint32_t opcode1 = 0, opcode2 = 0;
13426 uint32_t record_buf[8];
13427
13428 record_buf[0] = bits (thumb2_insn_r->arm_insn, 12, 15);
13429 record_buf[1] = ARM_PS_REGNUM;
13430 thumb2_insn_r->reg_rec_count = 2;
13431
13432 REG_ALLOC (thumb2_insn_r->arm_regs, thumb2_insn_r->reg_rec_count,
13433 record_buf);
13434 return ARM_RECORD_SUCCESS;
13435}
13436
13437/* Handler for thumb2 long multiply, long multiply accumulate, and
13438 divide instructions. */
13439
13440static int
13441thumb2_record_lmul_lmla_div (insn_decode_record *thumb2_insn_r)
13442{
13443 uint32_t opcode1 = 0, opcode2 = 0;
13444 uint32_t record_buf[8];
13445 uint32_t reg_src1 = 0;
13446
13447 opcode1 = bits (thumb2_insn_r->arm_insn, 20, 22);
13448 opcode2 = bits (thumb2_insn_r->arm_insn, 4, 7);
13449
13450 if (0 == opcode1 || 2 == opcode1 || (opcode1 >= 4 && opcode1 <= 6))
13451 {
13452 /* Handle SMULL, UMULL, SMULAL. */
13453 /* Handle SMLAL(S), SMULL(S), UMLAL(S), UMULL(S). */
13454 record_buf[0] = bits (thumb2_insn_r->arm_insn, 16, 19);
13455 record_buf[1] = bits (thumb2_insn_r->arm_insn, 12, 15);
13456 record_buf[2] = ARM_PS_REGNUM;
13457 thumb2_insn_r->reg_rec_count = 3;
13458 }
13459 else if (1 == opcode1 || 3 == opcode2)
13460 {
13461 /* Handle SDIV and UDIV. */
13462 record_buf[0] = bits (thumb2_insn_r->arm_insn, 16, 19);
13463 record_buf[1] = bits (thumb2_insn_r->arm_insn, 12, 15);
13464 record_buf[2] = ARM_PS_REGNUM;
13465 thumb2_insn_r->reg_rec_count = 3;
13466 }
13467 else
13468 return ARM_RECORD_FAILURE;
13469
13470 REG_ALLOC (thumb2_insn_r->arm_regs, thumb2_insn_r->reg_rec_count,
13471 record_buf);
13472 return ARM_RECORD_SUCCESS;
13473}
13474
60cc5e93
OJ
13475/* Record handler for thumb32 coprocessor instructions. */
13476
13477static int
13478thumb2_record_coproc_insn (insn_decode_record *thumb2_insn_r)
13479{
13480 if (bit (thumb2_insn_r->arm_insn, 25))
13481 return arm_record_coproc_data_proc (thumb2_insn_r);
13482 else
13483 return arm_record_asimd_vfp_coproc (thumb2_insn_r);
13484}
13485
1e1b6563
OJ
13486/* Record handler for advance SIMD structure load/store instructions. */
13487
13488static int
13489thumb2_record_asimd_struct_ld_st (insn_decode_record *thumb2_insn_r)
13490{
13491 struct regcache *reg_cache = thumb2_insn_r->regcache;
13492 uint32_t l_bit, a_bit, b_bits;
13493 uint32_t record_buf[128], record_buf_mem[128];
13494 uint32_t reg_rn, reg_vd, address, f_esize, f_elem;
13495 uint32_t index_r = 0, index_e = 0, bf_regs = 0, index_m = 0, loop_t = 0;
13496 uint8_t f_ebytes;
13497
13498 l_bit = bit (thumb2_insn_r->arm_insn, 21);
13499 a_bit = bit (thumb2_insn_r->arm_insn, 23);
13500 b_bits = bits (thumb2_insn_r->arm_insn, 8, 11);
13501 reg_rn = bits (thumb2_insn_r->arm_insn, 16, 19);
13502 reg_vd = bits (thumb2_insn_r->arm_insn, 12, 15);
13503 reg_vd = (bit (thumb2_insn_r->arm_insn, 22) << 4) | reg_vd;
13504 f_ebytes = (1 << bits (thumb2_insn_r->arm_insn, 6, 7));
13505 f_esize = 8 * f_ebytes;
13506 f_elem = 8 / f_ebytes;
13507
13508 if (!l_bit)
13509 {
13510 ULONGEST u_regval = 0;
13511 regcache_raw_read_unsigned (reg_cache, reg_rn, &u_regval);
13512 address = u_regval;
13513
13514 if (!a_bit)
13515 {
13516 /* Handle VST1. */
13517 if (b_bits == 0x02 || b_bits == 0x0a || (b_bits & 0x0e) == 0x06)
13518 {
13519 if (b_bits == 0x07)
13520 bf_regs = 1;
13521 else if (b_bits == 0x0a)
13522 bf_regs = 2;
13523 else if (b_bits == 0x06)
13524 bf_regs = 3;
13525 else if (b_bits == 0x02)
13526 bf_regs = 4;
13527 else
13528 bf_regs = 0;
13529
13530 for (index_r = 0; index_r < bf_regs; index_r++)
13531 {
13532 for (index_e = 0; index_e < f_elem; index_e++)
13533 {
13534 record_buf_mem[index_m++] = f_ebytes;
13535 record_buf_mem[index_m++] = address;
13536 address = address + f_ebytes;
13537 thumb2_insn_r->mem_rec_count += 1;
13538 }
13539 }
13540 }
13541 /* Handle VST2. */
13542 else if (b_bits == 0x03 || (b_bits & 0x0e) == 0x08)
13543 {
13544 if (b_bits == 0x09 || b_bits == 0x08)
13545 bf_regs = 1;
13546 else if (b_bits == 0x03)
13547 bf_regs = 2;
13548 else
13549 bf_regs = 0;
13550
13551 for (index_r = 0; index_r < bf_regs; index_r++)
13552 for (index_e = 0; index_e < f_elem; index_e++)
13553 {
13554 for (loop_t = 0; loop_t < 2; loop_t++)
13555 {
13556 record_buf_mem[index_m++] = f_ebytes;
13557 record_buf_mem[index_m++] = address + (loop_t * f_ebytes);
13558 thumb2_insn_r->mem_rec_count += 1;
13559 }
13560 address = address + (2 * f_ebytes);
13561 }
13562 }
13563 /* Handle VST3. */
13564 else if ((b_bits & 0x0e) == 0x04)
13565 {
13566 for (index_e = 0; index_e < f_elem; index_e++)
13567 {
13568 for (loop_t = 0; loop_t < 3; loop_t++)
13569 {
13570 record_buf_mem[index_m++] = f_ebytes;
13571 record_buf_mem[index_m++] = address + (loop_t * f_ebytes);
13572 thumb2_insn_r->mem_rec_count += 1;
13573 }
13574 address = address + (3 * f_ebytes);
13575 }
13576 }
13577 /* Handle VST4. */
13578 else if (!(b_bits & 0x0e))
13579 {
13580 for (index_e = 0; index_e < f_elem; index_e++)
13581 {
13582 for (loop_t = 0; loop_t < 4; loop_t++)
13583 {
13584 record_buf_mem[index_m++] = f_ebytes;
13585 record_buf_mem[index_m++] = address + (loop_t * f_ebytes);
13586 thumb2_insn_r->mem_rec_count += 1;
13587 }
13588 address = address + (4 * f_ebytes);
13589 }
13590 }
13591 }
13592 else
13593 {
13594 uint8_t bft_size = bits (thumb2_insn_r->arm_insn, 10, 11);
13595
13596 if (bft_size == 0x00)
13597 f_ebytes = 1;
13598 else if (bft_size == 0x01)
13599 f_ebytes = 2;
13600 else if (bft_size == 0x02)
13601 f_ebytes = 4;
13602 else
13603 f_ebytes = 0;
13604
13605 /* Handle VST1. */
13606 if (!(b_bits & 0x0b) || b_bits == 0x08)
13607 thumb2_insn_r->mem_rec_count = 1;
13608 /* Handle VST2. */
13609 else if ((b_bits & 0x0b) == 0x01 || b_bits == 0x09)
13610 thumb2_insn_r->mem_rec_count = 2;
13611 /* Handle VST3. */
13612 else if ((b_bits & 0x0b) == 0x02 || b_bits == 0x0a)
13613 thumb2_insn_r->mem_rec_count = 3;
13614 /* Handle VST4. */
13615 else if ((b_bits & 0x0b) == 0x03 || b_bits == 0x0b)
13616 thumb2_insn_r->mem_rec_count = 4;
13617
13618 for (index_m = 0; index_m < thumb2_insn_r->mem_rec_count; index_m++)
13619 {
13620 record_buf_mem[index_m] = f_ebytes;
13621 record_buf_mem[index_m] = address + (index_m * f_ebytes);
13622 }
13623 }
13624 }
13625 else
13626 {
13627 if (!a_bit)
13628 {
13629 /* Handle VLD1. */
13630 if (b_bits == 0x02 || b_bits == 0x0a || (b_bits & 0x0e) == 0x06)
13631 thumb2_insn_r->reg_rec_count = 1;
13632 /* Handle VLD2. */
13633 else if (b_bits == 0x03 || (b_bits & 0x0e) == 0x08)
13634 thumb2_insn_r->reg_rec_count = 2;
13635 /* Handle VLD3. */
13636 else if ((b_bits & 0x0e) == 0x04)
13637 thumb2_insn_r->reg_rec_count = 3;
13638 /* Handle VLD4. */
13639 else if (!(b_bits & 0x0e))
13640 thumb2_insn_r->reg_rec_count = 4;
13641 }
13642 else
13643 {
13644 /* Handle VLD1. */
13645 if (!(b_bits & 0x0b) || b_bits == 0x08 || b_bits == 0x0c)
13646 thumb2_insn_r->reg_rec_count = 1;
13647 /* Handle VLD2. */
13648 else if ((b_bits & 0x0b) == 0x01 || b_bits == 0x09 || b_bits == 0x0d)
13649 thumb2_insn_r->reg_rec_count = 2;
13650 /* Handle VLD3. */
13651 else if ((b_bits & 0x0b) == 0x02 || b_bits == 0x0a || b_bits == 0x0e)
13652 thumb2_insn_r->reg_rec_count = 3;
13653 /* Handle VLD4. */
13654 else if ((b_bits & 0x0b) == 0x03 || b_bits == 0x0b || b_bits == 0x0f)
13655 thumb2_insn_r->reg_rec_count = 4;
13656
13657 for (index_r = 0; index_r < thumb2_insn_r->reg_rec_count; index_r++)
13658 record_buf[index_r] = reg_vd + ARM_D0_REGNUM + index_r;
13659 }
13660 }
13661
13662 if (bits (thumb2_insn_r->arm_insn, 0, 3) != 15)
13663 {
13664 record_buf[index_r] = reg_rn;
13665 thumb2_insn_r->reg_rec_count += 1;
13666 }
13667
13668 REG_ALLOC (thumb2_insn_r->arm_regs, thumb2_insn_r->reg_rec_count,
13669 record_buf);
13670 MEM_ALLOC (thumb2_insn_r->arm_mems, thumb2_insn_r->mem_rec_count,
13671 record_buf_mem);
13672 return 0;
13673}
13674
c6ec2b30
OJ
13675/* Decodes thumb2 instruction type and invokes its record handler. */
13676
13677static unsigned int
13678thumb2_record_decode_insn_handler (insn_decode_record *thumb2_insn_r)
13679{
13680 uint32_t op, op1, op2;
13681
13682 op = bit (thumb2_insn_r->arm_insn, 15);
13683 op1 = bits (thumb2_insn_r->arm_insn, 27, 28);
13684 op2 = bits (thumb2_insn_r->arm_insn, 20, 26);
13685
13686 if (op1 == 0x01)
13687 {
13688 if (!(op2 & 0x64 ))
13689 {
13690 /* Load/store multiple instruction. */
13691 return thumb2_record_ld_st_multiple (thumb2_insn_r);
13692 }
13693 else if (!((op2 & 0x64) ^ 0x04))
13694 {
13695 /* Load/store (dual/exclusive) and table branch instruction. */
13696 return thumb2_record_ld_st_dual_ex_tbb (thumb2_insn_r);
13697 }
13698 else if (!((op2 & 0x20) ^ 0x20))
13699 {
13700 /* Data-processing (shifted register). */
13701 return thumb2_record_data_proc_sreg_mimm (thumb2_insn_r);
13702 }
13703 else if (op2 & 0x40)
13704 {
13705 /* Co-processor instructions. */
60cc5e93 13706 return thumb2_record_coproc_insn (thumb2_insn_r);
c6ec2b30
OJ
13707 }
13708 }
13709 else if (op1 == 0x02)
13710 {
13711 if (op)
13712 {
13713 /* Branches and miscellaneous control instructions. */
13714 return thumb2_record_branch_misc_cntrl (thumb2_insn_r);
13715 }
13716 else if (op2 & 0x20)
13717 {
13718 /* Data-processing (plain binary immediate) instruction. */
13719 return thumb2_record_ps_dest_generic (thumb2_insn_r);
13720 }
13721 else
13722 {
13723 /* Data-processing (modified immediate). */
13724 return thumb2_record_data_proc_sreg_mimm (thumb2_insn_r);
13725 }
13726 }
13727 else if (op1 == 0x03)
13728 {
13729 if (!(op2 & 0x71 ))
13730 {
13731 /* Store single data item. */
13732 return thumb2_record_str_single_data (thumb2_insn_r);
13733 }
13734 else if (!((op2 & 0x71) ^ 0x10))
13735 {
13736 /* Advanced SIMD or structure load/store instructions. */
1e1b6563 13737 return thumb2_record_asimd_struct_ld_st (thumb2_insn_r);
c6ec2b30
OJ
13738 }
13739 else if (!((op2 & 0x67) ^ 0x01))
13740 {
13741 /* Load byte, memory hints instruction. */
13742 return thumb2_record_ld_mem_hints (thumb2_insn_r);
13743 }
13744 else if (!((op2 & 0x67) ^ 0x03))
13745 {
13746 /* Load halfword, memory hints instruction. */
13747 return thumb2_record_ld_mem_hints (thumb2_insn_r);
13748 }
13749 else if (!((op2 & 0x67) ^ 0x05))
13750 {
13751 /* Load word instruction. */
13752 return thumb2_record_ld_word (thumb2_insn_r);
13753 }
13754 else if (!((op2 & 0x70) ^ 0x20))
13755 {
13756 /* Data-processing (register) instruction. */
13757 return thumb2_record_ps_dest_generic (thumb2_insn_r);
13758 }
13759 else if (!((op2 & 0x78) ^ 0x30))
13760 {
13761 /* Multiply, multiply accumulate, abs diff instruction. */
13762 return thumb2_record_ps_dest_generic (thumb2_insn_r);
13763 }
13764 else if (!((op2 & 0x78) ^ 0x38))
13765 {
13766 /* Long multiply, long multiply accumulate, and divide. */
13767 return thumb2_record_lmul_lmla_div (thumb2_insn_r);
13768 }
13769 else if (op2 & 0x40)
13770 {
13771 /* Co-processor instructions. */
60cc5e93 13772 return thumb2_record_coproc_insn (thumb2_insn_r);
c6ec2b30
OJ
13773 }
13774 }
13775
13776 return -1;
13777}
72508ac0
PO
13778
13779/* Extracts arm/thumb/thumb2 insn depending on the size, and returns 0 on success
13780and positive val on fauilure. */
13781
13782static int
13783extract_arm_insn (insn_decode_record *insn_record, uint32_t insn_size)
13784{
13785 gdb_byte buf[insn_size];
13786
13787 memset (&buf[0], 0, insn_size);
13788
13789 if (target_read_memory (insn_record->this_addr, &buf[0], insn_size))
13790 return 1;
13791 insn_record->arm_insn = (uint32_t) extract_unsigned_integer (&buf[0],
13792 insn_size,
2959fed9 13793 gdbarch_byte_order_for_code (insn_record->gdbarch));
72508ac0
PO
13794 return 0;
13795}
13796
13797typedef int (*sti_arm_hdl_fp_t) (insn_decode_record*);
13798
13799/* Decode arm/thumb insn depending on condition cods and opcodes; and
13800 dispatch it. */
13801
13802static int
13803decode_insn (insn_decode_record *arm_record, record_type_t record_type,
13804 uint32_t insn_size)
13805{
13806
13807 /* (Starting from numerical 0); bits 25, 26, 27 decodes type of arm instruction. */
0fa9c223 13808 static const sti_arm_hdl_fp_t arm_handle_insn[8] =
72508ac0
PO
13809 {
13810 arm_record_data_proc_misc_ld_str, /* 000. */
13811 arm_record_data_proc_imm, /* 001. */
13812 arm_record_ld_st_imm_offset, /* 010. */
13813 arm_record_ld_st_reg_offset, /* 011. */
13814 arm_record_ld_st_multiple, /* 100. */
13815 arm_record_b_bl, /* 101. */
60cc5e93 13816 arm_record_asimd_vfp_coproc, /* 110. */
72508ac0
PO
13817 arm_record_coproc_data_proc /* 111. */
13818 };
13819
13820 /* (Starting from numerical 0); bits 13,14,15 decodes type of thumb instruction. */
0fa9c223 13821 static const sti_arm_hdl_fp_t thumb_handle_insn[8] =
72508ac0
PO
13822 { \
13823 thumb_record_shift_add_sub, /* 000. */
13824 thumb_record_add_sub_cmp_mov, /* 001. */
13825 thumb_record_ld_st_reg_offset, /* 010. */
13826 thumb_record_ld_st_imm_offset, /* 011. */
13827 thumb_record_ld_st_stack, /* 100. */
13828 thumb_record_misc, /* 101. */
13829 thumb_record_ldm_stm_swi, /* 110. */
13830 thumb_record_branch /* 111. */
13831 };
13832
13833 uint32_t ret = 0; /* return value: negative:failure 0:success. */
13834 uint32_t insn_id = 0;
13835
13836 if (extract_arm_insn (arm_record, insn_size))
13837 {
13838 if (record_debug)
13839 {
13840 printf_unfiltered (_("Process record: error reading memory at "
13841 "addr %s len = %d.\n"),
13842 paddress (arm_record->gdbarch, arm_record->this_addr), insn_size);
13843 }
13844 return -1;
13845 }
13846 else if (ARM_RECORD == record_type)
13847 {
13848 arm_record->cond = bits (arm_record->arm_insn, 28, 31);
13849 insn_id = bits (arm_record->arm_insn, 25, 27);
13850 ret = arm_record_extension_space (arm_record);
13851 /* If this insn has fallen into extension space
13852 then we need not decode it anymore. */
13853 if (ret != -1 && !INSN_RECORDED(arm_record))
13854 {
13855 ret = arm_handle_insn[insn_id] (arm_record);
13856 }
13857 }
13858 else if (THUMB_RECORD == record_type)
13859 {
13860 /* As thumb does not have condition codes, we set negative. */
13861 arm_record->cond = -1;
13862 insn_id = bits (arm_record->arm_insn, 13, 15);
13863 ret = thumb_handle_insn[insn_id] (arm_record);
13864 }
13865 else if (THUMB2_RECORD == record_type)
13866 {
c6ec2b30
OJ
13867 /* As thumb does not have condition codes, we set negative. */
13868 arm_record->cond = -1;
13869
13870 /* Swap first half of 32bit thumb instruction with second half. */
13871 arm_record->arm_insn
13872 = (arm_record->arm_insn >> 16) | (arm_record->arm_insn << 16);
13873
13874 insn_id = thumb2_record_decode_insn_handler (arm_record);
13875
13876 if (insn_id != ARM_RECORD_SUCCESS)
13877 {
13878 arm_record_unsupported_insn (arm_record);
13879 ret = -1;
13880 }
72508ac0
PO
13881 }
13882 else
13883 {
13884 /* Throw assertion. */
13885 gdb_assert_not_reached ("not a valid instruction, could not decode");
13886 }
13887
13888 return ret;
13889}
13890
13891
13892/* Cleans up local record registers and memory allocations. */
13893
13894static void
13895deallocate_reg_mem (insn_decode_record *record)
13896{
13897 xfree (record->arm_regs);
13898 xfree (record->arm_mems);
13899}
13900
13901
13902/* Parse the current instruction and record the values of the registers and
13903 memory that will be changed in current instruction to record_arch_list".
13904 Return -1 if something is wrong. */
13905
13906int
13907arm_process_record (struct gdbarch *gdbarch, struct regcache *regcache,
13908 CORE_ADDR insn_addr)
13909{
13910
13911 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
13912 uint32_t no_of_rec = 0;
13913 uint32_t ret = 0; /* return value: -1:record failure ; 0:success */
13914 ULONGEST t_bit = 0, insn_id = 0;
13915
13916 ULONGEST u_regval = 0;
13917
13918 insn_decode_record arm_record;
13919
13920 memset (&arm_record, 0, sizeof (insn_decode_record));
13921 arm_record.regcache = regcache;
13922 arm_record.this_addr = insn_addr;
13923 arm_record.gdbarch = gdbarch;
13924
13925
13926 if (record_debug > 1)
13927 {
13928 fprintf_unfiltered (gdb_stdlog, "Process record: arm_process_record "
13929 "addr = %s\n",
13930 paddress (gdbarch, arm_record.this_addr));
13931 }
13932
13933 if (extract_arm_insn (&arm_record, 2))
13934 {
13935 if (record_debug)
13936 {
13937 printf_unfiltered (_("Process record: error reading memory at "
13938 "addr %s len = %d.\n"),
13939 paddress (arm_record.gdbarch,
13940 arm_record.this_addr), 2);
13941 }
13942 return -1;
13943 }
13944
13945 /* Check the insn, whether it is thumb or arm one. */
13946
13947 t_bit = arm_psr_thumb_bit (arm_record.gdbarch);
13948 regcache_raw_read_unsigned (arm_record.regcache, ARM_PS_REGNUM, &u_regval);
13949
13950
13951 if (!(u_regval & t_bit))
13952 {
13953 /* We are decoding arm insn. */
13954 ret = decode_insn (&arm_record, ARM_RECORD, ARM_INSN_SIZE_BYTES);
13955 }
13956 else
13957 {
13958 insn_id = bits (arm_record.arm_insn, 11, 15);
13959 /* is it thumb2 insn? */
13960 if ((0x1D == insn_id) || (0x1E == insn_id) || (0x1F == insn_id))
13961 {
13962 ret = decode_insn (&arm_record, THUMB2_RECORD,
13963 THUMB2_INSN_SIZE_BYTES);
13964 }
13965 else
13966 {
13967 /* We are decoding thumb insn. */
13968 ret = decode_insn (&arm_record, THUMB_RECORD, THUMB_INSN_SIZE_BYTES);
13969 }
13970 }
13971
13972 if (0 == ret)
13973 {
13974 /* Record registers. */
25ea693b 13975 record_full_arch_list_add_reg (arm_record.regcache, ARM_PC_REGNUM);
72508ac0
PO
13976 if (arm_record.arm_regs)
13977 {
13978 for (no_of_rec = 0; no_of_rec < arm_record.reg_rec_count; no_of_rec++)
13979 {
25ea693b
MM
13980 if (record_full_arch_list_add_reg
13981 (arm_record.regcache , arm_record.arm_regs[no_of_rec]))
72508ac0
PO
13982 ret = -1;
13983 }
13984 }
13985 /* Record memories. */
13986 if (arm_record.arm_mems)
13987 {
13988 for (no_of_rec = 0; no_of_rec < arm_record.mem_rec_count; no_of_rec++)
13989 {
25ea693b 13990 if (record_full_arch_list_add_mem
72508ac0 13991 ((CORE_ADDR)arm_record.arm_mems[no_of_rec].addr,
25ea693b 13992 arm_record.arm_mems[no_of_rec].len))
72508ac0
PO
13993 ret = -1;
13994 }
13995 }
13996
25ea693b 13997 if (record_full_arch_list_add_end ())
72508ac0
PO
13998 ret = -1;
13999 }
14000
14001
14002 deallocate_reg_mem (&arm_record);
14003
14004 return ret;
14005}
14006
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