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Commit | Line | Data |
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b9adb4a6 | 1 | /* General "disassemble this chunk" code. Used for debugging. */ |
d38ea87a | 2 | #include "qemu/osdep.h" |
3979fca4 | 3 | #include "disas/dis-asm.h" |
b9adb4a6 | 4 | #include "elf.h" |
30cc9831 | 5 | #include "qemu/qemu-print.h" |
b9adb4a6 | 6 | |
c6105c0a | 7 | #include "cpu.h" |
76cad711 | 8 | #include "disas/disas.h" |
8ca80760 | 9 | #include "disas/capstone.h" |
c6105c0a | 10 | |
f4359b9f BS |
11 | typedef struct CPUDebug { |
12 | struct disassemble_info info; | |
d49190c4 | 13 | CPUState *cpu; |
f4359b9f BS |
14 | } CPUDebug; |
15 | ||
b9adb4a6 | 16 | /* Filled in by elfload.c. Simplistic, but will do for now. */ |
e80cfcfc | 17 | struct syminfo *syminfos = NULL; |
b9adb4a6 | 18 | |
aa0aa4fa FB |
19 | /* Get LENGTH bytes from info's buffer, at target address memaddr. |
20 | Transfer them to myaddr. */ | |
21 | int | |
3a742b76 PB |
22 | buffer_read_memory(bfd_vma memaddr, bfd_byte *myaddr, int length, |
23 | struct disassemble_info *info) | |
aa0aa4fa | 24 | { |
c6105c0a FB |
25 | if (memaddr < info->buffer_vma |
26 | || memaddr + length > info->buffer_vma + info->buffer_length) | |
27 | /* Out of bounds. Use EIO because GDB uses it. */ | |
28 | return EIO; | |
29 | memcpy (myaddr, info->buffer + (memaddr - info->buffer_vma), length); | |
30 | return 0; | |
aa0aa4fa FB |
31 | } |
32 | ||
c6105c0a FB |
33 | /* Get LENGTH bytes from info's buffer, at target address memaddr. |
34 | Transfer them to myaddr. */ | |
35 | static int | |
c27004ec FB |
36 | target_read_memory (bfd_vma memaddr, |
37 | bfd_byte *myaddr, | |
38 | int length, | |
39 | struct disassemble_info *info) | |
c6105c0a | 40 | { |
f4359b9f BS |
41 | CPUDebug *s = container_of(info, CPUDebug, info); |
42 | ||
d49190c4 | 43 | cpu_memory_rw_debug(s->cpu, memaddr, myaddr, length, 0); |
c6105c0a FB |
44 | return 0; |
45 | } | |
c6105c0a | 46 | |
aa0aa4fa FB |
47 | /* Print an error message. We can assume that this is in response to |
48 | an error return from buffer_read_memory. */ | |
49 | void | |
3a742b76 | 50 | perror_memory (int status, bfd_vma memaddr, struct disassemble_info *info) |
aa0aa4fa FB |
51 | { |
52 | if (status != EIO) | |
53 | /* Can't happen. */ | |
54 | (*info->fprintf_func) (info->stream, "Unknown error %d\n", status); | |
55 | else | |
56 | /* Actually, address between memaddr and memaddr + len was | |
57 | out of bounds. */ | |
58 | (*info->fprintf_func) (info->stream, | |
26a76461 | 59 | "Address 0x%" PRIx64 " is out of bounds.\n", memaddr); |
aa0aa4fa FB |
60 | } |
61 | ||
a31f0531 | 62 | /* This could be in a separate file, to save minuscule amounts of space |
aa0aa4fa FB |
63 | in statically linked executables. */ |
64 | ||
65 | /* Just print the address is hex. This is included for completeness even | |
66 | though both GDB and objdump provide their own (to print symbolic | |
67 | addresses). */ | |
68 | ||
69 | void | |
3a742b76 | 70 | generic_print_address (bfd_vma addr, struct disassemble_info *info) |
aa0aa4fa | 71 | { |
26a76461 | 72 | (*info->fprintf_func) (info->stream, "0x%" PRIx64, addr); |
aa0aa4fa FB |
73 | } |
74 | ||
636bd289 PM |
75 | /* Print address in hex, truncated to the width of a host virtual address. */ |
76 | static void | |
77 | generic_print_host_address(bfd_vma addr, struct disassemble_info *info) | |
78 | { | |
79 | uint64_t mask = ~0ULL >> (64 - (sizeof(void *) * 8)); | |
80 | generic_print_address(addr & mask, info); | |
81 | } | |
82 | ||
aa0aa4fa FB |
83 | /* Just return the given address. */ |
84 | ||
85 | int | |
3a742b76 | 86 | generic_symbol_at_address (bfd_vma addr, struct disassemble_info *info) |
aa0aa4fa FB |
87 | { |
88 | return 1; | |
89 | } | |
90 | ||
903ec55c AJ |
91 | bfd_vma bfd_getl64 (const bfd_byte *addr) |
92 | { | |
93 | unsigned long long v; | |
94 | ||
95 | v = (unsigned long long) addr[0]; | |
96 | v |= (unsigned long long) addr[1] << 8; | |
97 | v |= (unsigned long long) addr[2] << 16; | |
98 | v |= (unsigned long long) addr[3] << 24; | |
99 | v |= (unsigned long long) addr[4] << 32; | |
100 | v |= (unsigned long long) addr[5] << 40; | |
101 | v |= (unsigned long long) addr[6] << 48; | |
102 | v |= (unsigned long long) addr[7] << 56; | |
103 | return (bfd_vma) v; | |
104 | } | |
105 | ||
aa0aa4fa FB |
106 | bfd_vma bfd_getl32 (const bfd_byte *addr) |
107 | { | |
108 | unsigned long v; | |
109 | ||
110 | v = (unsigned long) addr[0]; | |
111 | v |= (unsigned long) addr[1] << 8; | |
112 | v |= (unsigned long) addr[2] << 16; | |
113 | v |= (unsigned long) addr[3] << 24; | |
114 | return (bfd_vma) v; | |
115 | } | |
116 | ||
117 | bfd_vma bfd_getb32 (const bfd_byte *addr) | |
118 | { | |
119 | unsigned long v; | |
120 | ||
121 | v = (unsigned long) addr[0] << 24; | |
122 | v |= (unsigned long) addr[1] << 16; | |
123 | v |= (unsigned long) addr[2] << 8; | |
124 | v |= (unsigned long) addr[3]; | |
125 | return (bfd_vma) v; | |
126 | } | |
127 | ||
6af0bf9c FB |
128 | bfd_vma bfd_getl16 (const bfd_byte *addr) |
129 | { | |
130 | unsigned long v; | |
131 | ||
132 | v = (unsigned long) addr[0]; | |
133 | v |= (unsigned long) addr[1] << 8; | |
134 | return (bfd_vma) v; | |
135 | } | |
136 | ||
137 | bfd_vma bfd_getb16 (const bfd_byte *addr) | |
138 | { | |
139 | unsigned long v; | |
140 | ||
141 | v = (unsigned long) addr[0] << 24; | |
142 | v |= (unsigned long) addr[1] << 16; | |
143 | return (bfd_vma) v; | |
144 | } | |
145 | ||
c46ffd57 RH |
146 | static int print_insn_objdump(bfd_vma pc, disassemble_info *info, |
147 | const char *prefix) | |
148 | { | |
149 | int i, n = info->buffer_length; | |
150 | uint8_t *buf = g_malloc(n); | |
151 | ||
152 | info->read_memory_func(pc, buf, n, info); | |
153 | ||
154 | for (i = 0; i < n; ++i) { | |
155 | if (i % 32 == 0) { | |
156 | info->fprintf_func(info->stream, "\n%s: ", prefix); | |
157 | } | |
158 | info->fprintf_func(info->stream, "%02x", buf[i]); | |
159 | } | |
160 | ||
161 | g_free(buf); | |
162 | return n; | |
163 | } | |
164 | ||
165 | static int print_insn_od_host(bfd_vma pc, disassemble_info *info) | |
166 | { | |
167 | return print_insn_objdump(pc, info, "OBJD-H"); | |
168 | } | |
169 | ||
170 | static int print_insn_od_target(bfd_vma pc, disassemble_info *info) | |
171 | { | |
172 | return print_insn_objdump(pc, info, "OBJD-T"); | |
173 | } | |
174 | ||
8ca80760 RH |
175 | #ifdef CONFIG_CAPSTONE |
176 | /* Temporary storage for the capstone library. This will be alloced via | |
177 | malloc with a size private to the library; thus there's no reason not | |
178 | to share this across calls and across host vs target disassembly. */ | |
179 | static __thread cs_insn *cap_insn; | |
180 | ||
181 | /* Initialize the Capstone library. */ | |
182 | /* ??? It would be nice to cache this. We would need one handle for the | |
183 | host and one for the target. For most targets we can reset specific | |
184 | parameters via cs_option(CS_OPT_MODE, new_mode), but we cannot change | |
185 | CS_ARCH_* in this way. Thus we would need to be able to close and | |
186 | re-open the target handle with a different arch for the target in order | |
187 | to handle AArch64 vs AArch32 mode switching. */ | |
188 | static cs_err cap_disas_start(disassemble_info *info, csh *handle) | |
189 | { | |
190 | cs_mode cap_mode = info->cap_mode; | |
191 | cs_err err; | |
192 | ||
193 | cap_mode += (info->endian == BFD_ENDIAN_BIG ? CS_MODE_BIG_ENDIAN | |
194 | : CS_MODE_LITTLE_ENDIAN); | |
195 | ||
196 | err = cs_open(info->cap_arch, cap_mode, handle); | |
197 | if (err != CS_ERR_OK) { | |
198 | return err; | |
199 | } | |
200 | ||
201 | /* ??? There probably ought to be a better place to put this. */ | |
202 | if (info->cap_arch == CS_ARCH_X86) { | |
203 | /* We don't care about errors (if for some reason the library | |
204 | is compiled without AT&T syntax); the user will just have | |
205 | to deal with the Intel syntax. */ | |
206 | cs_option(*handle, CS_OPT_SYNTAX, CS_OPT_SYNTAX_ATT); | |
207 | } | |
208 | ||
209 | /* "Disassemble" unknown insns as ".byte W,X,Y,Z". */ | |
210 | cs_option(*handle, CS_OPT_SKIPDATA, CS_OPT_ON); | |
211 | ||
212 | /* Allocate temp space for cs_disasm_iter. */ | |
213 | if (cap_insn == NULL) { | |
214 | cap_insn = cs_malloc(*handle); | |
215 | if (cap_insn == NULL) { | |
216 | cs_close(handle); | |
217 | return CS_ERR_MEM; | |
218 | } | |
219 | } | |
220 | return CS_ERR_OK; | |
221 | } | |
222 | ||
15fa1a0a RH |
223 | static void cap_dump_insn_units(disassemble_info *info, cs_insn *insn, |
224 | int i, int n) | |
225 | { | |
226 | fprintf_function print = info->fprintf_func; | |
227 | FILE *stream = info->stream; | |
228 | ||
229 | switch (info->cap_insn_unit) { | |
230 | case 4: | |
231 | if (info->endian == BFD_ENDIAN_BIG) { | |
232 | for (; i < n; i += 4) { | |
233 | print(stream, " %08x", ldl_be_p(insn->bytes + i)); | |
234 | ||
235 | } | |
236 | } else { | |
237 | for (; i < n; i += 4) { | |
238 | print(stream, " %08x", ldl_le_p(insn->bytes + i)); | |
239 | } | |
240 | } | |
241 | break; | |
242 | ||
243 | case 2: | |
244 | if (info->endian == BFD_ENDIAN_BIG) { | |
245 | for (; i < n; i += 2) { | |
246 | print(stream, " %04x", lduw_be_p(insn->bytes + i)); | |
247 | } | |
248 | } else { | |
249 | for (; i < n; i += 2) { | |
250 | print(stream, " %04x", lduw_le_p(insn->bytes + i)); | |
251 | } | |
252 | } | |
253 | break; | |
254 | ||
255 | default: | |
256 | for (; i < n; i++) { | |
257 | print(stream, " %02x", insn->bytes[i]); | |
258 | } | |
259 | break; | |
260 | } | |
261 | } | |
262 | ||
16b22e02 AB |
263 | static void cap_dump_insn(disassemble_info *info, cs_insn *insn, |
264 | const char *note) | |
15fa1a0a RH |
265 | { |
266 | fprintf_function print = info->fprintf_func; | |
267 | int i, n, split; | |
268 | ||
269 | print(info->stream, "0x%08" PRIx64 ": ", insn->address); | |
270 | ||
271 | n = insn->size; | |
272 | split = info->cap_insn_split; | |
273 | ||
274 | /* Dump the first SPLIT bytes of the instruction. */ | |
275 | cap_dump_insn_units(info, insn, 0, MIN(n, split)); | |
276 | ||
277 | /* Add padding up to SPLIT so that mnemonics line up. */ | |
278 | if (n < split) { | |
279 | int width = (split - n) / info->cap_insn_unit; | |
280 | width *= (2 * info->cap_insn_unit + 1); | |
281 | print(info->stream, "%*s", width, ""); | |
282 | } | |
283 | ||
284 | /* Print the actual instruction. */ | |
16b22e02 AB |
285 | print(info->stream, " %-8s %s", insn->mnemonic, insn->op_str); |
286 | if (note) { | |
287 | print(info->stream, "\t\t%s", note); | |
288 | } | |
289 | print(info->stream, "\n"); | |
15fa1a0a RH |
290 | |
291 | /* Dump any remaining part of the insn on subsequent lines. */ | |
292 | for (i = split; i < n; i += split) { | |
293 | print(info->stream, "0x%08" PRIx64 ": ", insn->address + i); | |
294 | cap_dump_insn_units(info, insn, i, MIN(n, i + split)); | |
295 | print(info->stream, "\n"); | |
296 | } | |
297 | } | |
298 | ||
8ca80760 RH |
299 | /* Disassemble SIZE bytes at PC for the target. */ |
300 | static bool cap_disas_target(disassemble_info *info, uint64_t pc, size_t size) | |
301 | { | |
302 | uint8_t cap_buf[1024]; | |
303 | csh handle; | |
304 | cs_insn *insn; | |
305 | size_t csize = 0; | |
306 | ||
307 | if (cap_disas_start(info, &handle) != CS_ERR_OK) { | |
308 | return false; | |
309 | } | |
310 | insn = cap_insn; | |
311 | ||
312 | while (1) { | |
313 | size_t tsize = MIN(sizeof(cap_buf) - csize, size); | |
314 | const uint8_t *cbuf = cap_buf; | |
315 | ||
316 | target_read_memory(pc + csize, cap_buf + csize, tsize, info); | |
317 | csize += tsize; | |
318 | size -= tsize; | |
319 | ||
320 | while (cs_disasm_iter(handle, &cbuf, &csize, &pc, insn)) { | |
16b22e02 | 321 | cap_dump_insn(info, insn, NULL); |
8ca80760 RH |
322 | } |
323 | ||
324 | /* If the target memory is not consumed, go back for more... */ | |
325 | if (size != 0) { | |
326 | /* ... taking care to move any remaining fractional insn | |
327 | to the beginning of the buffer. */ | |
328 | if (csize != 0) { | |
329 | memmove(cap_buf, cbuf, csize); | |
330 | } | |
331 | continue; | |
332 | } | |
333 | ||
334 | /* Since the target memory is consumed, we should not have | |
335 | a remaining fractional insn. */ | |
336 | if (csize != 0) { | |
337 | (*info->fprintf_func)(info->stream, | |
338 | "Disassembler disagrees with translator " | |
339 | "over instruction decoding\n" | |
340 | "Please report this to [email protected]\n"); | |
341 | } | |
342 | break; | |
343 | } | |
344 | ||
345 | cs_close(&handle); | |
346 | return true; | |
347 | } | |
348 | ||
349 | /* Disassemble SIZE bytes at CODE for the host. */ | |
16b22e02 AB |
350 | static bool cap_disas_host(disassemble_info *info, void *code, size_t size, |
351 | const char *note) | |
8ca80760 RH |
352 | { |
353 | csh handle; | |
354 | const uint8_t *cbuf; | |
355 | cs_insn *insn; | |
356 | uint64_t pc; | |
357 | ||
358 | if (cap_disas_start(info, &handle) != CS_ERR_OK) { | |
359 | return false; | |
360 | } | |
361 | insn = cap_insn; | |
362 | ||
363 | cbuf = code; | |
364 | pc = (uintptr_t)code; | |
365 | ||
366 | while (cs_disasm_iter(handle, &cbuf, &size, &pc, insn)) { | |
16b22e02 AB |
367 | cap_dump_insn(info, insn, note); |
368 | note = NULL; | |
8ca80760 RH |
369 | } |
370 | if (size != 0) { | |
371 | (*info->fprintf_func)(info->stream, | |
372 | "Disassembler disagrees with TCG over instruction encoding\n" | |
373 | "Please report this to [email protected]\n"); | |
374 | } | |
375 | ||
376 | cs_close(&handle); | |
377 | return true; | |
378 | } | |
379 | ||
380 | #if !defined(CONFIG_USER_ONLY) | |
381 | /* Disassemble COUNT insns at PC for the target. */ | |
382 | static bool cap_disas_monitor(disassemble_info *info, uint64_t pc, int count) | |
383 | { | |
384 | uint8_t cap_buf[32]; | |
385 | csh handle; | |
386 | cs_insn *insn; | |
387 | size_t csize = 0; | |
388 | ||
389 | if (cap_disas_start(info, &handle) != CS_ERR_OK) { | |
390 | return false; | |
391 | } | |
392 | insn = cap_insn; | |
393 | ||
394 | while (1) { | |
395 | /* We want to read memory for one insn, but generically we do not | |
396 | know how much memory that is. We have a small buffer which is | |
397 | known to be sufficient for all supported targets. Try to not | |
398 | read beyond the page, Just In Case. For even more simplicity, | |
399 | ignore the actual target page size and use a 1k boundary. If | |
400 | that turns out to be insufficient, we'll come back around the | |
401 | loop and read more. */ | |
402 | uint64_t epc = QEMU_ALIGN_UP(pc + csize + 1, 1024); | |
403 | size_t tsize = MIN(sizeof(cap_buf) - csize, epc - pc); | |
404 | const uint8_t *cbuf = cap_buf; | |
405 | ||
406 | /* Make certain that we can make progress. */ | |
407 | assert(tsize != 0); | |
408 | info->read_memory_func(pc, cap_buf + csize, tsize, info); | |
409 | csize += tsize; | |
410 | ||
411 | if (cs_disasm_iter(handle, &cbuf, &csize, &pc, insn)) { | |
16b22e02 | 412 | cap_dump_insn(info, insn, NULL); |
8ca80760 RH |
413 | if (--count <= 0) { |
414 | break; | |
415 | } | |
416 | } | |
417 | memmove(cap_buf, cbuf, csize); | |
418 | } | |
419 | ||
420 | cs_close(&handle); | |
421 | return true; | |
422 | } | |
423 | #endif /* !CONFIG_USER_ONLY */ | |
424 | #else | |
425 | # define cap_disas_target(i, p, s) false | |
16b22e02 | 426 | # define cap_disas_host(i, p, s, n) false |
8ca80760 | 427 | # define cap_disas_monitor(i, p, c) false |
cbafa236 | 428 | # define cap_disas_plugin(i, p, c) false |
8ca80760 RH |
429 | #endif /* CONFIG_CAPSTONE */ |
430 | ||
1d48474d | 431 | /* Disassemble this for me please... (debugging). */ |
d49190c4 | 432 | void target_disas(FILE *out, CPUState *cpu, target_ulong code, |
1d48474d | 433 | target_ulong size) |
b9adb4a6 | 434 | { |
37b9de46 | 435 | CPUClass *cc = CPU_GET_CLASS(cpu); |
c27004ec | 436 | target_ulong pc; |
b9adb4a6 | 437 | int count; |
f4359b9f | 438 | CPUDebug s; |
b9adb4a6 | 439 | |
f4359b9f | 440 | INIT_DISASSEMBLE_INFO(s.info, out, fprintf); |
b9adb4a6 | 441 | |
d49190c4 | 442 | s.cpu = cpu; |
f4359b9f BS |
443 | s.info.read_memory_func = target_read_memory; |
444 | s.info.buffer_vma = code; | |
445 | s.info.buffer_length = size; | |
9504c544 | 446 | s.info.print_address_func = generic_print_address; |
8ca80760 RH |
447 | s.info.cap_arch = -1; |
448 | s.info.cap_mode = 0; | |
15fa1a0a RH |
449 | s.info.cap_insn_unit = 4; |
450 | s.info.cap_insn_split = 4; | |
c27004ec FB |
451 | |
452 | #ifdef TARGET_WORDS_BIGENDIAN | |
f4359b9f | 453 | s.info.endian = BFD_ENDIAN_BIG; |
c27004ec | 454 | #else |
f4359b9f | 455 | s.info.endian = BFD_ENDIAN_LITTLE; |
c27004ec | 456 | #endif |
37b9de46 PC |
457 | |
458 | if (cc->disas_set_info) { | |
459 | cc->disas_set_info(cpu, &s.info); | |
460 | } | |
461 | ||
8ca80760 RH |
462 | if (s.info.cap_arch >= 0 && cap_disas_target(&s.info, code, size)) { |
463 | return; | |
464 | } | |
465 | ||
2de295c5 PC |
466 | if (s.info.print_insn == NULL) { |
467 | s.info.print_insn = print_insn_od_target; | |
c46ffd57 | 468 | } |
c6105c0a | 469 | |
7e000c2e | 470 | for (pc = code; size > 0; pc += count, size -= count) { |
fa15e030 | 471 | fprintf(out, "0x" TARGET_FMT_lx ": ", pc); |
2de295c5 | 472 | count = s.info.print_insn(pc, &s.info); |
c27004ec FB |
473 | fprintf(out, "\n"); |
474 | if (count < 0) | |
475 | break; | |
754d00ae | 476 | if (size < count) { |
477 | fprintf(out, | |
478 | "Disassembler disagrees with translator over instruction " | |
479 | "decoding\n" | |
480 | "Please report this to [email protected]\n"); | |
481 | break; | |
482 | } | |
c27004ec FB |
483 | } |
484 | } | |
485 | ||
cbafa236 AB |
486 | static __thread GString plugin_disas_output; |
487 | ||
488 | static int plugin_printf(FILE *stream, const char *fmt, ...) | |
489 | { | |
490 | va_list va; | |
491 | GString *s = &plugin_disas_output; | |
492 | int initial_len = s->len; | |
493 | ||
494 | va_start(va, fmt); | |
495 | g_string_append_vprintf(s, fmt, va); | |
496 | va_end(va); | |
497 | ||
498 | return s->len - initial_len; | |
499 | } | |
500 | ||
501 | static void plugin_print_address(bfd_vma addr, struct disassemble_info *info) | |
502 | { | |
503 | /* does nothing */ | |
504 | } | |
505 | ||
506 | ||
507 | #ifdef CONFIG_CAPSTONE | |
508 | /* Disassemble a single instruction directly into plugin output */ | |
509 | static | |
510 | bool cap_disas_plugin(disassemble_info *info, uint64_t pc, size_t size) | |
511 | { | |
512 | uint8_t cap_buf[1024]; | |
513 | csh handle; | |
514 | cs_insn *insn; | |
515 | size_t csize = 0; | |
516 | int count; | |
517 | GString *s = &plugin_disas_output; | |
518 | ||
519 | if (cap_disas_start(info, &handle) != CS_ERR_OK) { | |
520 | return false; | |
521 | } | |
522 | insn = cap_insn; | |
523 | ||
524 | size_t tsize = MIN(sizeof(cap_buf) - csize, size); | |
525 | const uint8_t *cbuf = cap_buf; | |
526 | target_read_memory(pc, cap_buf, tsize, info); | |
527 | ||
528 | count = cs_disasm(handle, cbuf, size, 0, 1, &insn); | |
529 | ||
530 | if (count) { | |
531 | g_string_printf(s, "%s %s", insn->mnemonic, insn->op_str); | |
532 | } else { | |
533 | g_string_printf(s, "cs_disasm failed"); | |
534 | } | |
535 | ||
536 | cs_close(&handle); | |
537 | return true; | |
538 | } | |
539 | #endif | |
540 | ||
541 | /* | |
542 | * We should only be dissembling one instruction at a time here. If | |
543 | * there is left over it usually indicates the front end has read more | |
544 | * bytes than it needed. | |
545 | */ | |
546 | char *plugin_disas(CPUState *cpu, uint64_t addr, size_t size) | |
547 | { | |
548 | CPUClass *cc = CPU_GET_CLASS(cpu); | |
549 | int count; | |
550 | CPUDebug s; | |
551 | GString *ds = g_string_set_size(&plugin_disas_output, 0); | |
552 | ||
553 | g_assert(ds == &plugin_disas_output); | |
554 | ||
555 | INIT_DISASSEMBLE_INFO(s.info, NULL, plugin_printf); | |
556 | ||
557 | s.cpu = cpu; | |
558 | s.info.read_memory_func = target_read_memory; | |
559 | s.info.buffer_vma = addr; | |
560 | s.info.buffer_length = size; | |
561 | s.info.print_address_func = plugin_print_address; | |
562 | s.info.cap_arch = -1; | |
563 | s.info.cap_mode = 0; | |
564 | s.info.cap_insn_unit = 4; | |
565 | s.info.cap_insn_split = 4; | |
566 | ||
567 | #ifdef TARGET_WORDS_BIGENDIAN | |
568 | s.info.endian = BFD_ENDIAN_BIG; | |
569 | #else | |
570 | s.info.endian = BFD_ENDIAN_LITTLE; | |
571 | #endif | |
572 | ||
573 | if (cc->disas_set_info) { | |
574 | cc->disas_set_info(cpu, &s.info); | |
575 | } | |
576 | ||
577 | if (s.info.cap_arch >= 0 && cap_disas_plugin(&s.info, addr, size)) { | |
578 | return g_strdup(ds->str); | |
579 | } | |
580 | ||
581 | if (s.info.print_insn == NULL) { | |
582 | s.info.print_insn = print_insn_od_target; | |
583 | } | |
584 | ||
585 | count = s.info.print_insn(addr, &s.info); | |
586 | ||
587 | /* The decoder probably read more than it needed it's not critical */ | |
588 | if (count < size) { | |
589 | warn_report("%s: %zu bytes left over", __func__, size - count); | |
590 | } | |
591 | ||
592 | return g_strdup(ds->str); | |
593 | } | |
594 | ||
c27004ec | 595 | /* Disassemble this for me please... (debugging). */ |
e5ef4ec2 | 596 | void disas(FILE *out, void *code, unsigned long size, const char *note) |
c27004ec | 597 | { |
b0b0f1c9 | 598 | uintptr_t pc; |
c27004ec | 599 | int count; |
f4359b9f | 600 | CPUDebug s; |
c46ffd57 | 601 | int (*print_insn)(bfd_vma pc, disassemble_info *info) = NULL; |
c27004ec | 602 | |
f4359b9f BS |
603 | INIT_DISASSEMBLE_INFO(s.info, out, fprintf); |
604 | s.info.print_address_func = generic_print_host_address; | |
c27004ec | 605 | |
f4359b9f BS |
606 | s.info.buffer = code; |
607 | s.info.buffer_vma = (uintptr_t)code; | |
608 | s.info.buffer_length = size; | |
8ca80760 RH |
609 | s.info.cap_arch = -1; |
610 | s.info.cap_mode = 0; | |
15fa1a0a RH |
611 | s.info.cap_insn_unit = 4; |
612 | s.info.cap_insn_split = 4; | |
b9adb4a6 | 613 | |
e2542fe2 | 614 | #ifdef HOST_WORDS_BIGENDIAN |
f4359b9f | 615 | s.info.endian = BFD_ENDIAN_BIG; |
b9adb4a6 | 616 | #else |
f4359b9f | 617 | s.info.endian = BFD_ENDIAN_LITTLE; |
b9adb4a6 | 618 | #endif |
5826e519 SW |
619 | #if defined(CONFIG_TCG_INTERPRETER) |
620 | print_insn = print_insn_tci; | |
621 | #elif defined(__i386__) | |
f4359b9f | 622 | s.info.mach = bfd_mach_i386_i386; |
c27004ec | 623 | print_insn = print_insn_i386; |
b666d2a4 RH |
624 | s.info.cap_arch = CS_ARCH_X86; |
625 | s.info.cap_mode = CS_MODE_32; | |
15fa1a0a RH |
626 | s.info.cap_insn_unit = 1; |
627 | s.info.cap_insn_split = 8; | |
bc51c5c9 | 628 | #elif defined(__x86_64__) |
f4359b9f | 629 | s.info.mach = bfd_mach_x86_64; |
c27004ec | 630 | print_insn = print_insn_i386; |
b666d2a4 RH |
631 | s.info.cap_arch = CS_ARCH_X86; |
632 | s.info.cap_mode = CS_MODE_64; | |
15fa1a0a RH |
633 | s.info.cap_insn_unit = 1; |
634 | s.info.cap_insn_split = 8; | |
e58ffeb3 | 635 | #elif defined(_ARCH_PPC) |
66d4f6a3 | 636 | s.info.disassembler_options = (char *)"any"; |
c27004ec | 637 | print_insn = print_insn_ppc; |
ac226899 RH |
638 | s.info.cap_arch = CS_ARCH_PPC; |
639 | # ifdef _ARCH_PPC64 | |
640 | s.info.cap_mode = CS_MODE_64; | |
641 | # endif | |
91468b27 AF |
642 | #elif defined(__riscv) && defined(CONFIG_RISCV_DIS) |
643 | #if defined(_ILP32) || (__riscv_xlen == 32) | |
644 | print_insn = print_insn_riscv32; | |
645 | #elif defined(_LP64) | |
646 | print_insn = print_insn_riscv64; | |
647 | #else | |
648 | #error unsupported RISC-V ABI | |
649 | #endif | |
999b53ec CF |
650 | #elif defined(__aarch64__) && defined(CONFIG_ARM_A64_DIS) |
651 | print_insn = print_insn_arm_a64; | |
110f6c70 | 652 | s.info.cap_arch = CS_ARCH_ARM64; |
a993ba85 | 653 | #elif defined(__alpha__) |
c27004ec | 654 | print_insn = print_insn_alpha; |
aa0aa4fa | 655 | #elif defined(__sparc__) |
c27004ec | 656 | print_insn = print_insn_sparc; |
f4359b9f | 657 | s.info.mach = bfd_mach_sparc_v9b; |
5fafdf24 | 658 | #elif defined(__arm__) |
c27004ec | 659 | print_insn = print_insn_arm; |
110f6c70 RH |
660 | s.info.cap_arch = CS_ARCH_ARM; |
661 | /* TCG only generates code for arm mode. */ | |
6af0bf9c FB |
662 | #elif defined(__MIPSEB__) |
663 | print_insn = print_insn_big_mips; | |
664 | #elif defined(__MIPSEL__) | |
665 | print_insn = print_insn_little_mips; | |
48024e4a FB |
666 | #elif defined(__m68k__) |
667 | print_insn = print_insn_m68k; | |
8f860bb8 TS |
668 | #elif defined(__s390__) |
669 | print_insn = print_insn_s390; | |
429b31a2 RH |
670 | #elif defined(__hppa__) |
671 | print_insn = print_insn_hppa; | |
b9adb4a6 | 672 | #endif |
8ca80760 | 673 | |
16b22e02 | 674 | if (s.info.cap_arch >= 0 && cap_disas_host(&s.info, code, size, note)) { |
8ca80760 RH |
675 | return; |
676 | } | |
677 | ||
c46ffd57 RH |
678 | if (print_insn == NULL) { |
679 | print_insn = print_insn_od_host; | |
680 | } | |
b0b0f1c9 SW |
681 | for (pc = (uintptr_t)code; size > 0; pc += count, size -= count) { |
682 | fprintf(out, "0x%08" PRIxPTR ": ", pc); | |
f4359b9f | 683 | count = print_insn(pc, &s.info); |
e5ef4ec2 AB |
684 | if (note) { |
685 | fprintf(out, "\t\t%s", note); | |
686 | note = NULL; | |
687 | } | |
688 | fprintf(out, "\n"); | |
689 | if (count < 0) { | |
690 | break; | |
691 | } | |
b9adb4a6 | 692 | } |
e5ef4ec2 | 693 | |
b9adb4a6 FB |
694 | } |
695 | ||
696 | /* Look up symbol for debugging purpose. Returns "" if unknown. */ | |
c27004ec | 697 | const char *lookup_symbol(target_ulong orig_addr) |
b9adb4a6 | 698 | { |
49918a75 | 699 | const char *symbol = ""; |
e80cfcfc | 700 | struct syminfo *s; |
3b46e624 | 701 | |
e80cfcfc | 702 | for (s = syminfos; s; s = s->next) { |
49918a75 PB |
703 | symbol = s->lookup_symbol(s, orig_addr); |
704 | if (symbol[0] != '\0') { | |
705 | break; | |
706 | } | |
b9adb4a6 | 707 | } |
49918a75 PB |
708 | |
709 | return symbol; | |
b9adb4a6 | 710 | } |
9307c4c1 FB |
711 | |
712 | #if !defined(CONFIG_USER_ONLY) | |
713 | ||
83c9089e | 714 | #include "monitor/monitor.h" |
3d2cfdf1 | 715 | |
9307c4c1 | 716 | static int |
b8d87208 | 717 | physical_read_memory(bfd_vma memaddr, bfd_byte *myaddr, int length, |
a5f1b965 | 718 | struct disassemble_info *info) |
9307c4c1 | 719 | { |
f2c6abc8 PM |
720 | CPUDebug *s = container_of(info, CPUDebug, info); |
721 | ||
722 | address_space_read(s->cpu->as, memaddr, MEMTXATTRS_UNSPECIFIED, | |
723 | myaddr, length); | |
9307c4c1 FB |
724 | return 0; |
725 | } | |
726 | ||
1d48474d | 727 | /* Disassembler for the monitor. */ |
d49190c4 | 728 | void monitor_disas(Monitor *mon, CPUState *cpu, |
1d48474d | 729 | target_ulong pc, int nb_insn, int is_physical) |
9307c4c1 | 730 | { |
37b9de46 | 731 | CPUClass *cc = CPU_GET_CLASS(cpu); |
9307c4c1 | 732 | int count, i; |
f4359b9f | 733 | CPUDebug s; |
9307c4c1 | 734 | |
30cc9831 | 735 | INIT_DISASSEMBLE_INFO(s.info, NULL, qemu_fprintf); |
9307c4c1 | 736 | |
d49190c4 | 737 | s.cpu = cpu; |
b8d87208 RH |
738 | s.info.read_memory_func |
739 | = (is_physical ? physical_read_memory : target_read_memory); | |
9504c544 | 740 | s.info.print_address_func = generic_print_address; |
f4359b9f | 741 | s.info.buffer_vma = pc; |
8ca80760 RH |
742 | s.info.cap_arch = -1; |
743 | s.info.cap_mode = 0; | |
15fa1a0a RH |
744 | s.info.cap_insn_unit = 4; |
745 | s.info.cap_insn_split = 4; | |
9307c4c1 FB |
746 | |
747 | #ifdef TARGET_WORDS_BIGENDIAN | |
f4359b9f | 748 | s.info.endian = BFD_ENDIAN_BIG; |
9307c4c1 | 749 | #else |
f4359b9f | 750 | s.info.endian = BFD_ENDIAN_LITTLE; |
9307c4c1 | 751 | #endif |
37b9de46 PC |
752 | |
753 | if (cc->disas_set_info) { | |
754 | cc->disas_set_info(cpu, &s.info); | |
755 | } | |
756 | ||
8ca80760 RH |
757 | if (s.info.cap_arch >= 0 && cap_disas_monitor(&s.info, pc, nb_insn)) { |
758 | return; | |
759 | } | |
760 | ||
37b9de46 PC |
761 | if (!s.info.print_insn) { |
762 | monitor_printf(mon, "0x" TARGET_FMT_lx | |
763 | ": Asm output not supported on this arch\n", pc); | |
764 | return; | |
765 | } | |
9307c4c1 FB |
766 | |
767 | for(i = 0; i < nb_insn; i++) { | |
376253ec | 768 | monitor_printf(mon, "0x" TARGET_FMT_lx ": ", pc); |
2de295c5 | 769 | count = s.info.print_insn(pc, &s.info); |
376253ec | 770 | monitor_printf(mon, "\n"); |
9307c4c1 FB |
771 | if (count < 0) |
772 | break; | |
773 | pc += count; | |
774 | } | |
775 | } | |
776 | #endif |