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7d13299d FB |
1 | /* |
2 | * i386 emulator main execution loop | |
5fafdf24 | 3 | * |
66321a11 | 4 | * Copyright (c) 2003-2005 Fabrice Bellard |
7d13299d | 5 | * |
3ef693a0 FB |
6 | * This library is free software; you can redistribute it and/or |
7 | * modify it under the terms of the GNU Lesser General Public | |
8 | * License as published by the Free Software Foundation; either | |
9 | * version 2 of the License, or (at your option) any later version. | |
7d13299d | 10 | * |
3ef693a0 FB |
11 | * This library is distributed in the hope that it will be useful, |
12 | * but WITHOUT ANY WARRANTY; without even the implied warranty of | |
13 | * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU | |
14 | * Lesser General Public License for more details. | |
7d13299d | 15 | * |
3ef693a0 FB |
16 | * You should have received a copy of the GNU Lesser General Public |
17 | * License along with this library; if not, write to the Free Software | |
18 | * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA | |
7d13299d | 19 | */ |
e4533c7a | 20 | #include "config.h" |
93ac68bc | 21 | #include "exec.h" |
956034d7 | 22 | #include "disas.h" |
7d13299d | 23 | |
fbf9eeb3 FB |
24 | #if !defined(CONFIG_SOFTMMU) |
25 | #undef EAX | |
26 | #undef ECX | |
27 | #undef EDX | |
28 | #undef EBX | |
29 | #undef ESP | |
30 | #undef EBP | |
31 | #undef ESI | |
32 | #undef EDI | |
33 | #undef EIP | |
34 | #include <signal.h> | |
35 | #include <sys/ucontext.h> | |
36 | #endif | |
37 | ||
36bdbe54 FB |
38 | int tb_invalidated_flag; |
39 | ||
dc99065b | 40 | //#define DEBUG_EXEC |
9de5e440 | 41 | //#define DEBUG_SIGNAL |
7d13299d | 42 | |
66f1cdbd BS |
43 | #define SAVE_GLOBALS() |
44 | #define RESTORE_GLOBALS() | |
45 | ||
46 | #if defined(__sparc__) && !defined(HOST_SOLARIS) | |
47 | #include <features.h> | |
48 | #if defined(__GLIBC__) && ((__GLIBC__ < 2) || \ | |
49 | ((__GLIBC__ == 2) && (__GLIBC_MINOR__ <= 90))) | |
50 | // Work around ugly bugs in glibc that mangle global register contents | |
51 | ||
52 | static volatile void *saved_env; | |
53 | static volatile unsigned long saved_t0, saved_i7; | |
54 | #undef SAVE_GLOBALS | |
55 | #define SAVE_GLOBALS() do { \ | |
56 | saved_env = env; \ | |
57 | saved_t0 = T0; \ | |
58 | asm volatile ("st %%i7, [%0]" : : "r" (&saved_i7)); \ | |
59 | } while(0) | |
60 | ||
61 | #undef RESTORE_GLOBALS | |
62 | #define RESTORE_GLOBALS() do { \ | |
63 | env = (void *)saved_env; \ | |
64 | T0 = saved_t0; \ | |
65 | asm volatile ("ld [%0], %%i7" : : "r" (&saved_i7)); \ | |
66 | } while(0) | |
67 | ||
68 | static int sparc_setjmp(jmp_buf buf) | |
69 | { | |
70 | int ret; | |
71 | ||
72 | SAVE_GLOBALS(); | |
73 | ret = setjmp(buf); | |
74 | RESTORE_GLOBALS(); | |
75 | return ret; | |
76 | } | |
77 | #undef setjmp | |
78 | #define setjmp(jmp_buf) sparc_setjmp(jmp_buf) | |
79 | ||
80 | static void sparc_longjmp(jmp_buf buf, int val) | |
81 | { | |
82 | SAVE_GLOBALS(); | |
83 | longjmp(buf, val); | |
84 | } | |
85 | #define longjmp(jmp_buf, val) sparc_longjmp(jmp_buf, val) | |
86 | #endif | |
87 | #endif | |
88 | ||
e4533c7a FB |
89 | void cpu_loop_exit(void) |
90 | { | |
bfed01fc TS |
91 | /* NOTE: the register at this point must be saved by hand because |
92 | longjmp restore them */ | |
93 | regs_to_env(); | |
e4533c7a FB |
94 | longjmp(env->jmp_env, 1); |
95 | } | |
bfed01fc | 96 | |
e6e5906b | 97 | #if !(defined(TARGET_SPARC) || defined(TARGET_SH4) || defined(TARGET_M68K)) |
3475187d FB |
98 | #define reg_T2 |
99 | #endif | |
e4533c7a | 100 | |
fbf9eeb3 FB |
101 | /* exit the current TB from a signal handler. The host registers are |
102 | restored in a state compatible with the CPU emulator | |
103 | */ | |
5fafdf24 | 104 | void cpu_resume_from_signal(CPUState *env1, void *puc) |
fbf9eeb3 FB |
105 | { |
106 | #if !defined(CONFIG_SOFTMMU) | |
107 | struct ucontext *uc = puc; | |
108 | #endif | |
109 | ||
110 | env = env1; | |
111 | ||
112 | /* XXX: restore cpu registers saved in host registers */ | |
113 | ||
114 | #if !defined(CONFIG_SOFTMMU) | |
115 | if (puc) { | |
116 | /* XXX: use siglongjmp ? */ | |
117 | sigprocmask(SIG_SETMASK, &uc->uc_sigmask, NULL); | |
118 | } | |
119 | #endif | |
120 | longjmp(env->jmp_env, 1); | |
121 | } | |
122 | ||
8a40a180 FB |
123 | static TranslationBlock *tb_find_slow(target_ulong pc, |
124 | target_ulong cs_base, | |
c068688b | 125 | uint64_t flags) |
8a40a180 FB |
126 | { |
127 | TranslationBlock *tb, **ptb1; | |
128 | int code_gen_size; | |
129 | unsigned int h; | |
130 | target_ulong phys_pc, phys_page1, phys_page2, virt_page2; | |
131 | uint8_t *tc_ptr; | |
3b46e624 | 132 | |
8a40a180 FB |
133 | spin_lock(&tb_lock); |
134 | ||
135 | tb_invalidated_flag = 0; | |
3b46e624 | 136 | |
8a40a180 | 137 | regs_to_env(); /* XXX: do it just before cpu_gen_code() */ |
3b46e624 | 138 | |
8a40a180 FB |
139 | /* find translated block using physical mappings */ |
140 | phys_pc = get_phys_addr_code(env, pc); | |
141 | phys_page1 = phys_pc & TARGET_PAGE_MASK; | |
142 | phys_page2 = -1; | |
143 | h = tb_phys_hash_func(phys_pc); | |
144 | ptb1 = &tb_phys_hash[h]; | |
145 | for(;;) { | |
146 | tb = *ptb1; | |
147 | if (!tb) | |
148 | goto not_found; | |
5fafdf24 | 149 | if (tb->pc == pc && |
8a40a180 | 150 | tb->page_addr[0] == phys_page1 && |
5fafdf24 | 151 | tb->cs_base == cs_base && |
8a40a180 FB |
152 | tb->flags == flags) { |
153 | /* check next page if needed */ | |
154 | if (tb->page_addr[1] != -1) { | |
5fafdf24 | 155 | virt_page2 = (pc & TARGET_PAGE_MASK) + |
8a40a180 FB |
156 | TARGET_PAGE_SIZE; |
157 | phys_page2 = get_phys_addr_code(env, virt_page2); | |
158 | if (tb->page_addr[1] == phys_page2) | |
159 | goto found; | |
160 | } else { | |
161 | goto found; | |
162 | } | |
163 | } | |
164 | ptb1 = &tb->phys_hash_next; | |
165 | } | |
166 | not_found: | |
167 | /* if no translated code available, then translate it now */ | |
168 | tb = tb_alloc(pc); | |
169 | if (!tb) { | |
170 | /* flush must be done */ | |
171 | tb_flush(env); | |
172 | /* cannot fail at this point */ | |
173 | tb = tb_alloc(pc); | |
174 | /* don't forget to invalidate previous TB info */ | |
15388002 | 175 | tb_invalidated_flag = 1; |
8a40a180 FB |
176 | } |
177 | tc_ptr = code_gen_ptr; | |
178 | tb->tc_ptr = tc_ptr; | |
179 | tb->cs_base = cs_base; | |
180 | tb->flags = flags; | |
66f1cdbd | 181 | SAVE_GLOBALS(); |
d07bde88 | 182 | cpu_gen_code(env, tb, &code_gen_size); |
66f1cdbd | 183 | RESTORE_GLOBALS(); |
8a40a180 | 184 | code_gen_ptr = (void *)(((unsigned long)code_gen_ptr + code_gen_size + CODE_GEN_ALIGN - 1) & ~(CODE_GEN_ALIGN - 1)); |
3b46e624 | 185 | |
8a40a180 FB |
186 | /* check next page if needed */ |
187 | virt_page2 = (pc + tb->size - 1) & TARGET_PAGE_MASK; | |
188 | phys_page2 = -1; | |
189 | if ((pc & TARGET_PAGE_MASK) != virt_page2) { | |
190 | phys_page2 = get_phys_addr_code(env, virt_page2); | |
191 | } | |
192 | tb_link_phys(tb, phys_pc, phys_page2); | |
3b46e624 | 193 | |
8a40a180 | 194 | found: |
8a40a180 FB |
195 | /* we add the TB in the virtual pc hash table */ |
196 | env->tb_jmp_cache[tb_jmp_cache_hash_func(pc)] = tb; | |
197 | spin_unlock(&tb_lock); | |
198 | return tb; | |
199 | } | |
200 | ||
201 | static inline TranslationBlock *tb_find_fast(void) | |
202 | { | |
203 | TranslationBlock *tb; | |
204 | target_ulong cs_base, pc; | |
c068688b | 205 | uint64_t flags; |
8a40a180 FB |
206 | |
207 | /* we record a subset of the CPU state. It will | |
208 | always be the same before a given translated block | |
209 | is executed. */ | |
210 | #if defined(TARGET_I386) | |
211 | flags = env->hflags; | |
212 | flags |= (env->eflags & (IOPL_MASK | TF_MASK | VM_MASK)); | |
0573fbfc | 213 | flags |= env->intercept; |
8a40a180 FB |
214 | cs_base = env->segs[R_CS].base; |
215 | pc = cs_base + env->eip; | |
216 | #elif defined(TARGET_ARM) | |
217 | flags = env->thumb | (env->vfp.vec_len << 1) | |
b5ff1b31 FB |
218 | | (env->vfp.vec_stride << 4); |
219 | if ((env->uncached_cpsr & CPSR_M) != ARM_CPU_MODE_USR) | |
220 | flags |= (1 << 6); | |
40f137e1 PB |
221 | if (env->vfp.xregs[ARM_VFP_FPEXC] & (1 << 30)) |
222 | flags |= (1 << 7); | |
9ee6e8bb | 223 | flags |= (env->condexec_bits << 8); |
8a40a180 FB |
224 | cs_base = 0; |
225 | pc = env->regs[15]; | |
226 | #elif defined(TARGET_SPARC) | |
227 | #ifdef TARGET_SPARC64 | |
a80dde08 FB |
228 | // Combined FPU enable bits . PRIV . DMMU enabled . IMMU enabled |
229 | flags = (((env->pstate & PS_PEF) >> 1) | ((env->fprs & FPRS_FEF) << 2)) | |
230 | | (env->pstate & PS_PRIV) | ((env->lsu & (DMMU_E | IMMU_E)) >> 2); | |
8a40a180 | 231 | #else |
6d5f237a BS |
232 | // FPU enable . Supervisor |
233 | flags = (env->psref << 4) | env->psrs; | |
8a40a180 FB |
234 | #endif |
235 | cs_base = env->npc; | |
236 | pc = env->pc; | |
237 | #elif defined(TARGET_PPC) | |
1527c87e | 238 | flags = env->hflags; |
8a40a180 FB |
239 | cs_base = 0; |
240 | pc = env->nip; | |
241 | #elif defined(TARGET_MIPS) | |
56b19403 | 242 | flags = env->hflags & (MIPS_HFLAG_TMASK | MIPS_HFLAG_BMASK); |
cc9442b9 | 243 | cs_base = 0; |
ead9360e | 244 | pc = env->PC[env->current_tc]; |
e6e5906b | 245 | #elif defined(TARGET_M68K) |
acf930aa PB |
246 | flags = (env->fpcr & M68K_FPCR_PREC) /* Bit 6 */ |
247 | | (env->sr & SR_S) /* Bit 13 */ | |
248 | | ((env->macsr >> 4) & 0xf); /* Bits 0-3 */ | |
e6e5906b PB |
249 | cs_base = 0; |
250 | pc = env->pc; | |
fdf9b3e8 | 251 | #elif defined(TARGET_SH4) |
823029f9 TS |
252 | flags = env->flags; |
253 | cs_base = 0; | |
fdf9b3e8 | 254 | pc = env->pc; |
eddf68a6 JM |
255 | #elif defined(TARGET_ALPHA) |
256 | flags = env->ps; | |
257 | cs_base = 0; | |
258 | pc = env->pc; | |
f1ccf904 TS |
259 | #elif defined(TARGET_CRIS) |
260 | flags = 0; | |
261 | cs_base = 0; | |
262 | pc = env->pc; | |
8a40a180 FB |
263 | #else |
264 | #error unsupported CPU | |
265 | #endif | |
bce61846 | 266 | tb = env->tb_jmp_cache[tb_jmp_cache_hash_func(pc)]; |
8a40a180 FB |
267 | if (__builtin_expect(!tb || tb->pc != pc || tb->cs_base != cs_base || |
268 | tb->flags != flags, 0)) { | |
269 | tb = tb_find_slow(pc, cs_base, flags); | |
15388002 FB |
270 | /* Note: we do it here to avoid a gcc bug on Mac OS X when |
271 | doing it in tb_find_slow */ | |
272 | if (tb_invalidated_flag) { | |
273 | /* as some TB could have been invalidated because | |
274 | of memory exceptions while generating the code, we | |
275 | must recompute the hash index here */ | |
276 | T0 = 0; | |
277 | } | |
8a40a180 FB |
278 | } |
279 | return tb; | |
280 | } | |
281 | ||
497ad68c | 282 | #define BREAK_CHAIN T0 = 0 |
8a40a180 | 283 | |
7d13299d FB |
284 | /* main execution loop */ |
285 | ||
e4533c7a | 286 | int cpu_exec(CPUState *env1) |
7d13299d | 287 | { |
1057eaa7 PB |
288 | #define DECLARE_HOST_REGS 1 |
289 | #include "hostregs_helper.h" | |
290 | #if defined(TARGET_SPARC) | |
3475187d FB |
291 | #if defined(reg_REGWPTR) |
292 | uint32_t *saved_regwptr; | |
293 | #endif | |
04369ff2 | 294 | #endif |
8a40a180 | 295 | int ret, interrupt_request; |
57fec1fe | 296 | long (*gen_func)(void); |
8a40a180 | 297 | TranslationBlock *tb; |
c27004ec | 298 | uint8_t *tc_ptr; |
8c6939c0 | 299 | |
bfed01fc TS |
300 | if (cpu_halted(env1) == EXCP_HALTED) |
301 | return EXCP_HALTED; | |
5a1e3cfc | 302 | |
5fafdf24 | 303 | cpu_single_env = env1; |
6a00d601 | 304 | |
7d13299d | 305 | /* first we save global registers */ |
1057eaa7 PB |
306 | #define SAVE_HOST_REGS 1 |
307 | #include "hostregs_helper.h" | |
c27004ec | 308 | env = env1; |
66f1cdbd | 309 | SAVE_GLOBALS(); |
e4533c7a | 310 | |
0d1a29f9 | 311 | env_to_regs(); |
ecb644f4 | 312 | #if defined(TARGET_I386) |
9de5e440 | 313 | /* put eflags in CPU temporary format */ |
fc2b4c48 FB |
314 | CC_SRC = env->eflags & (CC_O | CC_S | CC_Z | CC_A | CC_P | CC_C); |
315 | DF = 1 - (2 * ((env->eflags >> 10) & 1)); | |
9de5e440 | 316 | CC_OP = CC_OP_EFLAGS; |
fc2b4c48 | 317 | env->eflags &= ~(DF_MASK | CC_O | CC_S | CC_Z | CC_A | CC_P | CC_C); |
93ac68bc | 318 | #elif defined(TARGET_SPARC) |
3475187d FB |
319 | #if defined(reg_REGWPTR) |
320 | saved_regwptr = REGWPTR; | |
321 | #endif | |
e6e5906b PB |
322 | #elif defined(TARGET_M68K) |
323 | env->cc_op = CC_OP_FLAGS; | |
324 | env->cc_dest = env->sr & 0xf; | |
325 | env->cc_x = (env->sr >> 4) & 1; | |
ecb644f4 TS |
326 | #elif defined(TARGET_ALPHA) |
327 | #elif defined(TARGET_ARM) | |
328 | #elif defined(TARGET_PPC) | |
6af0bf9c | 329 | #elif defined(TARGET_MIPS) |
fdf9b3e8 | 330 | #elif defined(TARGET_SH4) |
f1ccf904 | 331 | #elif defined(TARGET_CRIS) |
fdf9b3e8 | 332 | /* XXXXX */ |
e4533c7a FB |
333 | #else |
334 | #error unsupported target CPU | |
335 | #endif | |
3fb2ded1 | 336 | env->exception_index = -1; |
9d27abd9 | 337 | |
7d13299d | 338 | /* prepare setjmp context for exception handling */ |
3fb2ded1 FB |
339 | for(;;) { |
340 | if (setjmp(env->jmp_env) == 0) { | |
ee8b7021 | 341 | env->current_tb = NULL; |
3fb2ded1 FB |
342 | /* if an exception is pending, we execute it here */ |
343 | if (env->exception_index >= 0) { | |
344 | if (env->exception_index >= EXCP_INTERRUPT) { | |
345 | /* exit request from the cpu execution loop */ | |
346 | ret = env->exception_index; | |
347 | break; | |
348 | } else if (env->user_mode_only) { | |
349 | /* if user mode only, we simulate a fake exception | |
9f083493 | 350 | which will be handled outside the cpu execution |
3fb2ded1 | 351 | loop */ |
83479e77 | 352 | #if defined(TARGET_I386) |
5fafdf24 TS |
353 | do_interrupt_user(env->exception_index, |
354 | env->exception_is_int, | |
355 | env->error_code, | |
3fb2ded1 | 356 | env->exception_next_eip); |
83479e77 | 357 | #endif |
3fb2ded1 FB |
358 | ret = env->exception_index; |
359 | break; | |
360 | } else { | |
83479e77 | 361 | #if defined(TARGET_I386) |
3fb2ded1 FB |
362 | /* simulate a real cpu exception. On i386, it can |
363 | trigger new exceptions, but we do not handle | |
364 | double or triple faults yet. */ | |
5fafdf24 TS |
365 | do_interrupt(env->exception_index, |
366 | env->exception_is_int, | |
367 | env->error_code, | |
d05e66d2 | 368 | env->exception_next_eip, 0); |
678dde13 TS |
369 | /* successfully delivered */ |
370 | env->old_exception = -1; | |
ce09776b FB |
371 | #elif defined(TARGET_PPC) |
372 | do_interrupt(env); | |
6af0bf9c FB |
373 | #elif defined(TARGET_MIPS) |
374 | do_interrupt(env); | |
e95c8d51 | 375 | #elif defined(TARGET_SPARC) |
1a0c3292 | 376 | do_interrupt(env->exception_index); |
b5ff1b31 FB |
377 | #elif defined(TARGET_ARM) |
378 | do_interrupt(env); | |
fdf9b3e8 FB |
379 | #elif defined(TARGET_SH4) |
380 | do_interrupt(env); | |
eddf68a6 JM |
381 | #elif defined(TARGET_ALPHA) |
382 | do_interrupt(env); | |
f1ccf904 TS |
383 | #elif defined(TARGET_CRIS) |
384 | do_interrupt(env); | |
0633879f PB |
385 | #elif defined(TARGET_M68K) |
386 | do_interrupt(0); | |
83479e77 | 387 | #endif |
3fb2ded1 FB |
388 | } |
389 | env->exception_index = -1; | |
5fafdf24 | 390 | } |
9df217a3 FB |
391 | #ifdef USE_KQEMU |
392 | if (kqemu_is_ok(env) && env->interrupt_request == 0) { | |
393 | int ret; | |
394 | env->eflags = env->eflags | cc_table[CC_OP].compute_all() | (DF & DF_MASK); | |
395 | ret = kqemu_cpu_exec(env); | |
396 | /* put eflags in CPU temporary format */ | |
397 | CC_SRC = env->eflags & (CC_O | CC_S | CC_Z | CC_A | CC_P | CC_C); | |
398 | DF = 1 - (2 * ((env->eflags >> 10) & 1)); | |
399 | CC_OP = CC_OP_EFLAGS; | |
400 | env->eflags &= ~(DF_MASK | CC_O | CC_S | CC_Z | CC_A | CC_P | CC_C); | |
401 | if (ret == 1) { | |
402 | /* exception */ | |
403 | longjmp(env->jmp_env, 1); | |
404 | } else if (ret == 2) { | |
405 | /* softmmu execution needed */ | |
406 | } else { | |
407 | if (env->interrupt_request != 0) { | |
408 | /* hardware interrupt will be executed just after */ | |
409 | } else { | |
410 | /* otherwise, we restart */ | |
411 | longjmp(env->jmp_env, 1); | |
412 | } | |
413 | } | |
3fb2ded1 | 414 | } |
9df217a3 FB |
415 | #endif |
416 | ||
3fb2ded1 FB |
417 | T0 = 0; /* force lookup of first TB */ |
418 | for(;;) { | |
66f1cdbd | 419 | SAVE_GLOBALS(); |
68a79315 | 420 | interrupt_request = env->interrupt_request; |
0573fbfc TS |
421 | if (__builtin_expect(interrupt_request, 0) |
422 | #if defined(TARGET_I386) | |
423 | && env->hflags & HF_GIF_MASK | |
424 | #endif | |
425 | ) { | |
6658ffb8 PB |
426 | if (interrupt_request & CPU_INTERRUPT_DEBUG) { |
427 | env->interrupt_request &= ~CPU_INTERRUPT_DEBUG; | |
428 | env->exception_index = EXCP_DEBUG; | |
429 | cpu_loop_exit(); | |
430 | } | |
a90b7318 | 431 | #if defined(TARGET_ARM) || defined(TARGET_SPARC) || defined(TARGET_MIPS) || \ |
f1ccf904 | 432 | defined(TARGET_PPC) || defined(TARGET_ALPHA) || defined(TARGET_CRIS) |
a90b7318 AZ |
433 | if (interrupt_request & CPU_INTERRUPT_HALT) { |
434 | env->interrupt_request &= ~CPU_INTERRUPT_HALT; | |
435 | env->halted = 1; | |
436 | env->exception_index = EXCP_HLT; | |
437 | cpu_loop_exit(); | |
438 | } | |
439 | #endif | |
68a79315 | 440 | #if defined(TARGET_I386) |
3b21e03e FB |
441 | if ((interrupt_request & CPU_INTERRUPT_SMI) && |
442 | !(env->hflags & HF_SMM_MASK)) { | |
0573fbfc | 443 | svm_check_intercept(SVM_EXIT_SMI); |
3b21e03e FB |
444 | env->interrupt_request &= ~CPU_INTERRUPT_SMI; |
445 | do_smm_enter(); | |
497ad68c | 446 | BREAK_CHAIN; |
474ea849 AJ |
447 | } else if ((interrupt_request & CPU_INTERRUPT_NMI) && |
448 | !(env->hflags & HF_NMI_MASK)) { | |
449 | env->interrupt_request &= ~CPU_INTERRUPT_NMI; | |
450 | env->hflags |= HF_NMI_MASK; | |
451 | do_interrupt(EXCP02_NMI, 0, 0, 0, 1); | |
452 | BREAK_CHAIN; | |
3b21e03e | 453 | } else if ((interrupt_request & CPU_INTERRUPT_HARD) && |
0573fbfc | 454 | (env->eflags & IF_MASK || env->hflags & HF_HIF_MASK) && |
3f337316 | 455 | !(env->hflags & HF_INHIBIT_IRQ_MASK)) { |
68a79315 | 456 | int intno; |
0573fbfc | 457 | svm_check_intercept(SVM_EXIT_INTR); |
52621688 | 458 | env->interrupt_request &= ~(CPU_INTERRUPT_HARD | CPU_INTERRUPT_VIRQ); |
a541f297 | 459 | intno = cpu_get_pic_interrupt(env); |
f193c797 | 460 | if (loglevel & CPU_LOG_TB_IN_ASM) { |
68a79315 FB |
461 | fprintf(logfile, "Servicing hardware INT=0x%02x\n", intno); |
462 | } | |
d05e66d2 | 463 | do_interrupt(intno, 0, 0, 0, 1); |
907a5b26 FB |
464 | /* ensure that no TB jump will be modified as |
465 | the program flow was changed */ | |
497ad68c | 466 | BREAK_CHAIN; |
0573fbfc TS |
467 | #if !defined(CONFIG_USER_ONLY) |
468 | } else if ((interrupt_request & CPU_INTERRUPT_VIRQ) && | |
469 | (env->eflags & IF_MASK) && !(env->hflags & HF_INHIBIT_IRQ_MASK)) { | |
470 | int intno; | |
471 | /* FIXME: this should respect TPR */ | |
472 | env->interrupt_request &= ~CPU_INTERRUPT_VIRQ; | |
52621688 | 473 | svm_check_intercept(SVM_EXIT_VINTR); |
0573fbfc TS |
474 | intno = ldl_phys(env->vm_vmcb + offsetof(struct vmcb, control.int_vector)); |
475 | if (loglevel & CPU_LOG_TB_IN_ASM) | |
476 | fprintf(logfile, "Servicing virtual hardware INT=0x%02x\n", intno); | |
477 | do_interrupt(intno, 0, 0, -1, 1); | |
52621688 TS |
478 | stl_phys(env->vm_vmcb + offsetof(struct vmcb, control.int_ctl), |
479 | ldl_phys(env->vm_vmcb + offsetof(struct vmcb, control.int_ctl)) & ~V_IRQ_MASK); | |
497ad68c | 480 | BREAK_CHAIN; |
907a5b26 | 481 | #endif |
68a79315 | 482 | } |
ce09776b | 483 | #elif defined(TARGET_PPC) |
9fddaa0c FB |
484 | #if 0 |
485 | if ((interrupt_request & CPU_INTERRUPT_RESET)) { | |
486 | cpu_ppc_reset(env); | |
487 | } | |
488 | #endif | |
47103572 | 489 | if (interrupt_request & CPU_INTERRUPT_HARD) { |
e9df014c JM |
490 | ppc_hw_interrupt(env); |
491 | if (env->pending_interrupts == 0) | |
492 | env->interrupt_request &= ~CPU_INTERRUPT_HARD; | |
497ad68c | 493 | BREAK_CHAIN; |
ce09776b | 494 | } |
6af0bf9c FB |
495 | #elif defined(TARGET_MIPS) |
496 | if ((interrupt_request & CPU_INTERRUPT_HARD) && | |
24c7b0e3 | 497 | (env->CP0_Status & env->CP0_Cause & CP0Ca_IP_mask) && |
6af0bf9c | 498 | (env->CP0_Status & (1 << CP0St_IE)) && |
24c7b0e3 TS |
499 | !(env->CP0_Status & (1 << CP0St_EXL)) && |
500 | !(env->CP0_Status & (1 << CP0St_ERL)) && | |
6af0bf9c FB |
501 | !(env->hflags & MIPS_HFLAG_DM)) { |
502 | /* Raise it */ | |
503 | env->exception_index = EXCP_EXT_INTERRUPT; | |
504 | env->error_code = 0; | |
505 | do_interrupt(env); | |
497ad68c | 506 | BREAK_CHAIN; |
6af0bf9c | 507 | } |
e95c8d51 | 508 | #elif defined(TARGET_SPARC) |
66321a11 FB |
509 | if ((interrupt_request & CPU_INTERRUPT_HARD) && |
510 | (env->psret != 0)) { | |
511 | int pil = env->interrupt_index & 15; | |
512 | int type = env->interrupt_index & 0xf0; | |
513 | ||
514 | if (((type == TT_EXTINT) && | |
515 | (pil == 15 || pil > env->psrpil)) || | |
516 | type != TT_EXTINT) { | |
517 | env->interrupt_request &= ~CPU_INTERRUPT_HARD; | |
518 | do_interrupt(env->interrupt_index); | |
519 | env->interrupt_index = 0; | |
327ac2e7 BS |
520 | #if !defined(TARGET_SPARC64) && !defined(CONFIG_USER_ONLY) |
521 | cpu_check_irqs(env); | |
522 | #endif | |
497ad68c | 523 | BREAK_CHAIN; |
66321a11 | 524 | } |
e95c8d51 FB |
525 | } else if (interrupt_request & CPU_INTERRUPT_TIMER) { |
526 | //do_interrupt(0, 0, 0, 0, 0); | |
527 | env->interrupt_request &= ~CPU_INTERRUPT_TIMER; | |
a90b7318 | 528 | } |
b5ff1b31 FB |
529 | #elif defined(TARGET_ARM) |
530 | if (interrupt_request & CPU_INTERRUPT_FIQ | |
531 | && !(env->uncached_cpsr & CPSR_F)) { | |
532 | env->exception_index = EXCP_FIQ; | |
533 | do_interrupt(env); | |
497ad68c | 534 | BREAK_CHAIN; |
b5ff1b31 | 535 | } |
9ee6e8bb PB |
536 | /* ARMv7-M interrupt return works by loading a magic value |
537 | into the PC. On real hardware the load causes the | |
538 | return to occur. The qemu implementation performs the | |
539 | jump normally, then does the exception return when the | |
540 | CPU tries to execute code at the magic address. | |
541 | This will cause the magic PC value to be pushed to | |
542 | the stack if an interrupt occured at the wrong time. | |
543 | We avoid this by disabling interrupts when | |
544 | pc contains a magic address. */ | |
b5ff1b31 | 545 | if (interrupt_request & CPU_INTERRUPT_HARD |
9ee6e8bb PB |
546 | && ((IS_M(env) && env->regs[15] < 0xfffffff0) |
547 | || !(env->uncached_cpsr & CPSR_I))) { | |
b5ff1b31 FB |
548 | env->exception_index = EXCP_IRQ; |
549 | do_interrupt(env); | |
497ad68c | 550 | BREAK_CHAIN; |
b5ff1b31 | 551 | } |
fdf9b3e8 | 552 | #elif defined(TARGET_SH4) |
e96e2044 TS |
553 | if (interrupt_request & CPU_INTERRUPT_HARD) { |
554 | do_interrupt(env); | |
555 | BREAK_CHAIN; | |
556 | } | |
eddf68a6 JM |
557 | #elif defined(TARGET_ALPHA) |
558 | if (interrupt_request & CPU_INTERRUPT_HARD) { | |
559 | do_interrupt(env); | |
497ad68c | 560 | BREAK_CHAIN; |
eddf68a6 | 561 | } |
f1ccf904 TS |
562 | #elif defined(TARGET_CRIS) |
563 | if (interrupt_request & CPU_INTERRUPT_HARD) { | |
564 | do_interrupt(env); | |
497ad68c | 565 | BREAK_CHAIN; |
f1ccf904 | 566 | } |
0633879f PB |
567 | #elif defined(TARGET_M68K) |
568 | if (interrupt_request & CPU_INTERRUPT_HARD | |
569 | && ((env->sr & SR_I) >> SR_I_SHIFT) | |
570 | < env->pending_level) { | |
571 | /* Real hardware gets the interrupt vector via an | |
572 | IACK cycle at this point. Current emulated | |
573 | hardware doesn't rely on this, so we | |
574 | provide/save the vector when the interrupt is | |
575 | first signalled. */ | |
576 | env->exception_index = env->pending_vector; | |
577 | do_interrupt(1); | |
497ad68c | 578 | BREAK_CHAIN; |
0633879f | 579 | } |
68a79315 | 580 | #endif |
9d05095e FB |
581 | /* Don't use the cached interupt_request value, |
582 | do_interrupt may have updated the EXITTB flag. */ | |
b5ff1b31 | 583 | if (env->interrupt_request & CPU_INTERRUPT_EXITTB) { |
bf3e8bf1 FB |
584 | env->interrupt_request &= ~CPU_INTERRUPT_EXITTB; |
585 | /* ensure that no TB jump will be modified as | |
586 | the program flow was changed */ | |
497ad68c | 587 | BREAK_CHAIN; |
bf3e8bf1 | 588 | } |
68a79315 FB |
589 | if (interrupt_request & CPU_INTERRUPT_EXIT) { |
590 | env->interrupt_request &= ~CPU_INTERRUPT_EXIT; | |
591 | env->exception_index = EXCP_INTERRUPT; | |
592 | cpu_loop_exit(); | |
593 | } | |
3fb2ded1 | 594 | } |
7d13299d | 595 | #ifdef DEBUG_EXEC |
b5ff1b31 | 596 | if ((loglevel & CPU_LOG_TB_CPU)) { |
3fb2ded1 | 597 | /* restore flags in standard format */ |
ecb644f4 TS |
598 | regs_to_env(); |
599 | #if defined(TARGET_I386) | |
3fb2ded1 | 600 | env->eflags = env->eflags | cc_table[CC_OP].compute_all() | (DF & DF_MASK); |
7fe48483 | 601 | cpu_dump_state(env, logfile, fprintf, X86_DUMP_CCOP); |
3fb2ded1 | 602 | env->eflags &= ~(DF_MASK | CC_O | CC_S | CC_Z | CC_A | CC_P | CC_C); |
e4533c7a | 603 | #elif defined(TARGET_ARM) |
7fe48483 | 604 | cpu_dump_state(env, logfile, fprintf, 0); |
93ac68bc | 605 | #elif defined(TARGET_SPARC) |
3475187d FB |
606 | REGWPTR = env->regbase + (env->cwp * 16); |
607 | env->regwptr = REGWPTR; | |
608 | cpu_dump_state(env, logfile, fprintf, 0); | |
67867308 | 609 | #elif defined(TARGET_PPC) |
7fe48483 | 610 | cpu_dump_state(env, logfile, fprintf, 0); |
e6e5906b PB |
611 | #elif defined(TARGET_M68K) |
612 | cpu_m68k_flush_flags(env, env->cc_op); | |
613 | env->cc_op = CC_OP_FLAGS; | |
614 | env->sr = (env->sr & 0xffe0) | |
615 | | env->cc_dest | (env->cc_x << 4); | |
616 | cpu_dump_state(env, logfile, fprintf, 0); | |
6af0bf9c FB |
617 | #elif defined(TARGET_MIPS) |
618 | cpu_dump_state(env, logfile, fprintf, 0); | |
fdf9b3e8 FB |
619 | #elif defined(TARGET_SH4) |
620 | cpu_dump_state(env, logfile, fprintf, 0); | |
eddf68a6 JM |
621 | #elif defined(TARGET_ALPHA) |
622 | cpu_dump_state(env, logfile, fprintf, 0); | |
f1ccf904 TS |
623 | #elif defined(TARGET_CRIS) |
624 | cpu_dump_state(env, logfile, fprintf, 0); | |
e4533c7a | 625 | #else |
5fafdf24 | 626 | #error unsupported target CPU |
e4533c7a | 627 | #endif |
3fb2ded1 | 628 | } |
7d13299d | 629 | #endif |
8a40a180 | 630 | tb = tb_find_fast(); |
9d27abd9 | 631 | #ifdef DEBUG_EXEC |
c1135f61 | 632 | if ((loglevel & CPU_LOG_EXEC)) { |
c27004ec FB |
633 | fprintf(logfile, "Trace 0x%08lx [" TARGET_FMT_lx "] %s\n", |
634 | (long)tb->tc_ptr, tb->pc, | |
635 | lookup_symbol(tb->pc)); | |
3fb2ded1 | 636 | } |
9d27abd9 | 637 | #endif |
66f1cdbd | 638 | RESTORE_GLOBALS(); |
8a40a180 FB |
639 | /* see if we can patch the calling TB. When the TB |
640 | spans two pages, we cannot safely do a direct | |
641 | jump. */ | |
c27004ec | 642 | { |
8a40a180 | 643 | if (T0 != 0 && |
f32fc648 FB |
644 | #if USE_KQEMU |
645 | (env->kqemu_enabled != 2) && | |
646 | #endif | |
ec6338ba | 647 | tb->page_addr[1] == -1) { |
3fb2ded1 | 648 | spin_lock(&tb_lock); |
c27004ec | 649 | tb_add_jump((TranslationBlock *)(long)(T0 & ~3), T0 & 3, tb); |
3fb2ded1 FB |
650 | spin_unlock(&tb_lock); |
651 | } | |
c27004ec | 652 | } |
3fb2ded1 | 653 | tc_ptr = tb->tc_ptr; |
83479e77 | 654 | env->current_tb = tb; |
3fb2ded1 FB |
655 | /* execute the generated code */ |
656 | gen_func = (void *)tc_ptr; | |
8c6939c0 | 657 | #if defined(__sparc__) |
3fb2ded1 FB |
658 | __asm__ __volatile__("call %0\n\t" |
659 | "mov %%o7,%%i0" | |
660 | : /* no outputs */ | |
5fafdf24 | 661 | : "r" (gen_func) |
fdbb4691 | 662 | : "i0", "i1", "i2", "i3", "i4", "i5", |
faab7592 | 663 | "o0", "o1", "o2", "o3", "o4", "o5", |
fdbb4691 FB |
664 | "l0", "l1", "l2", "l3", "l4", "l5", |
665 | "l6", "l7"); | |
f54b3f92 AJ |
666 | #elif defined(__hppa__) |
667 | asm volatile ("ble 0(%%sr4,%1)\n" | |
668 | "copy %%r31,%%r18\n" | |
669 | "copy %%r28,%0\n" | |
670 | : "=r" (T0) | |
671 | : "r" (gen_func) | |
672 | : "r1", "r2", "r3", "r4", "r5", "r6", "r7", | |
673 | "r8", "r9", "r10", "r11", "r12", "r13", | |
674 | "r18", "r19", "r20", "r21", "r22", "r23", | |
675 | "r24", "r25", "r26", "r27", "r28", "r29", | |
676 | "r30", "r31"); | |
8c6939c0 | 677 | #elif defined(__arm__) |
3fb2ded1 FB |
678 | asm volatile ("mov pc, %0\n\t" |
679 | ".global exec_loop\n\t" | |
680 | "exec_loop:\n\t" | |
681 | : /* no outputs */ | |
682 | : "r" (gen_func) | |
683 | : "r1", "r2", "r3", "r8", "r9", "r10", "r12", "r14"); | |
b8076a74 FB |
684 | #elif defined(__ia64) |
685 | struct fptr { | |
686 | void *ip; | |
687 | void *gp; | |
688 | } fp; | |
689 | ||
690 | fp.ip = tc_ptr; | |
691 | fp.gp = code_gen_buffer + 2 * (1 << 20); | |
692 | (*(void (*)(void)) &fp)(); | |
ae228531 | 693 | #else |
57fec1fe | 694 | T0 = gen_func(); |
ae228531 | 695 | #endif |
83479e77 | 696 | env->current_tb = NULL; |
4cbf74b6 FB |
697 | /* reset soft MMU for next block (it can currently |
698 | only be set by a memory fault) */ | |
699 | #if defined(TARGET_I386) && !defined(CONFIG_SOFTMMU) | |
3f337316 FB |
700 | if (env->hflags & HF_SOFTMMU_MASK) { |
701 | env->hflags &= ~HF_SOFTMMU_MASK; | |
4cbf74b6 FB |
702 | /* do not allow linking to another block */ |
703 | T0 = 0; | |
704 | } | |
f32fc648 FB |
705 | #endif |
706 | #if defined(USE_KQEMU) | |
707 | #define MIN_CYCLE_BEFORE_SWITCH (100 * 1000) | |
708 | if (kqemu_is_ok(env) && | |
709 | (cpu_get_time_fast() - env->last_io_time) >= MIN_CYCLE_BEFORE_SWITCH) { | |
710 | cpu_loop_exit(); | |
711 | } | |
4cbf74b6 | 712 | #endif |
50a518e3 | 713 | } /* for(;;) */ |
3fb2ded1 | 714 | } else { |
0d1a29f9 | 715 | env_to_regs(); |
7d13299d | 716 | } |
3fb2ded1 FB |
717 | } /* for(;;) */ |
718 | ||
7d13299d | 719 | |
e4533c7a | 720 | #if defined(TARGET_I386) |
9de5e440 | 721 | /* restore flags in standard format */ |
fc2b4c48 | 722 | env->eflags = env->eflags | cc_table[CC_OP].compute_all() | (DF & DF_MASK); |
e4533c7a | 723 | #elif defined(TARGET_ARM) |
b7bcbe95 | 724 | /* XXX: Save/restore host fpu exception state?. */ |
93ac68bc | 725 | #elif defined(TARGET_SPARC) |
3475187d FB |
726 | #if defined(reg_REGWPTR) |
727 | REGWPTR = saved_regwptr; | |
728 | #endif | |
67867308 | 729 | #elif defined(TARGET_PPC) |
e6e5906b PB |
730 | #elif defined(TARGET_M68K) |
731 | cpu_m68k_flush_flags(env, env->cc_op); | |
732 | env->cc_op = CC_OP_FLAGS; | |
733 | env->sr = (env->sr & 0xffe0) | |
734 | | env->cc_dest | (env->cc_x << 4); | |
6af0bf9c | 735 | #elif defined(TARGET_MIPS) |
fdf9b3e8 | 736 | #elif defined(TARGET_SH4) |
eddf68a6 | 737 | #elif defined(TARGET_ALPHA) |
f1ccf904 | 738 | #elif defined(TARGET_CRIS) |
fdf9b3e8 | 739 | /* XXXXX */ |
e4533c7a FB |
740 | #else |
741 | #error unsupported target CPU | |
742 | #endif | |
1057eaa7 PB |
743 | |
744 | /* restore global registers */ | |
66f1cdbd | 745 | RESTORE_GLOBALS(); |
1057eaa7 PB |
746 | #include "hostregs_helper.h" |
747 | ||
6a00d601 | 748 | /* fail safe : never use cpu_single_env outside cpu_exec() */ |
5fafdf24 | 749 | cpu_single_env = NULL; |
7d13299d FB |
750 | return ret; |
751 | } | |
6dbad63e | 752 | |
fbf9eeb3 FB |
753 | /* must only be called from the generated code as an exception can be |
754 | generated */ | |
755 | void tb_invalidate_page_range(target_ulong start, target_ulong end) | |
756 | { | |
dc5d0b3d FB |
757 | /* XXX: cannot enable it yet because it yields to MMU exception |
758 | where NIP != read address on PowerPC */ | |
759 | #if 0 | |
fbf9eeb3 FB |
760 | target_ulong phys_addr; |
761 | phys_addr = get_phys_addr_code(env, start); | |
762 | tb_invalidate_phys_page_range(phys_addr, phys_addr + end - start, 0); | |
dc5d0b3d | 763 | #endif |
fbf9eeb3 FB |
764 | } |
765 | ||
1a18c71b | 766 | #if defined(TARGET_I386) && defined(CONFIG_USER_ONLY) |
e4533c7a | 767 | |
6dbad63e FB |
768 | void cpu_x86_load_seg(CPUX86State *s, int seg_reg, int selector) |
769 | { | |
770 | CPUX86State *saved_env; | |
771 | ||
772 | saved_env = env; | |
773 | env = s; | |
a412ac57 | 774 | if (!(env->cr[0] & CR0_PE_MASK) || (env->eflags & VM_MASK)) { |
a513fe19 | 775 | selector &= 0xffff; |
5fafdf24 | 776 | cpu_x86_load_seg_cache(env, seg_reg, selector, |
c27004ec | 777 | (selector << 4), 0xffff, 0); |
a513fe19 | 778 | } else { |
b453b70b | 779 | load_seg(seg_reg, selector); |
a513fe19 | 780 | } |
6dbad63e FB |
781 | env = saved_env; |
782 | } | |
9de5e440 | 783 | |
6f12a2a6 | 784 | void cpu_x86_fsave(CPUX86State *s, target_ulong ptr, int data32) |
d0a1ffc9 FB |
785 | { |
786 | CPUX86State *saved_env; | |
787 | ||
788 | saved_env = env; | |
789 | env = s; | |
3b46e624 | 790 | |
6f12a2a6 | 791 | helper_fsave(ptr, data32); |
d0a1ffc9 FB |
792 | |
793 | env = saved_env; | |
794 | } | |
795 | ||
6f12a2a6 | 796 | void cpu_x86_frstor(CPUX86State *s, target_ulong ptr, int data32) |
d0a1ffc9 FB |
797 | { |
798 | CPUX86State *saved_env; | |
799 | ||
800 | saved_env = env; | |
801 | env = s; | |
3b46e624 | 802 | |
6f12a2a6 | 803 | helper_frstor(ptr, data32); |
d0a1ffc9 FB |
804 | |
805 | env = saved_env; | |
806 | } | |
807 | ||
e4533c7a FB |
808 | #endif /* TARGET_I386 */ |
809 | ||
67b915a5 FB |
810 | #if !defined(CONFIG_SOFTMMU) |
811 | ||
3fb2ded1 FB |
812 | #if defined(TARGET_I386) |
813 | ||
b56dad1c | 814 | /* 'pc' is the host PC at which the exception was raised. 'address' is |
fd6ce8f6 FB |
815 | the effective address of the memory exception. 'is_write' is 1 if a |
816 | write caused the exception and otherwise 0'. 'old_set' is the | |
817 | signal set which should be restored */ | |
2b413144 | 818 | static inline int handle_cpu_signal(unsigned long pc, unsigned long address, |
5fafdf24 | 819 | int is_write, sigset_t *old_set, |
bf3e8bf1 | 820 | void *puc) |
9de5e440 | 821 | { |
a513fe19 FB |
822 | TranslationBlock *tb; |
823 | int ret; | |
68a79315 | 824 | |
83479e77 FB |
825 | if (cpu_single_env) |
826 | env = cpu_single_env; /* XXX: find a correct solution for multithread */ | |
fd6ce8f6 | 827 | #if defined(DEBUG_SIGNAL) |
5fafdf24 | 828 | qemu_printf("qemu: SIGSEGV pc=0x%08lx address=%08lx w=%d oldset=0x%08lx\n", |
bf3e8bf1 | 829 | pc, address, is_write, *(unsigned long *)old_set); |
9de5e440 | 830 | #endif |
25eb4484 | 831 | /* XXX: locking issue */ |
53a5960a | 832 | if (is_write && page_unprotect(h2g(address), pc, puc)) { |
fd6ce8f6 FB |
833 | return 1; |
834 | } | |
fbf9eeb3 | 835 | |
3fb2ded1 | 836 | /* see if it is an MMU fault */ |
6ebbf390 | 837 | ret = cpu_x86_handle_mmu_fault(env, address, is_write, MMU_USER_IDX, 0); |
3fb2ded1 FB |
838 | if (ret < 0) |
839 | return 0; /* not an MMU fault */ | |
840 | if (ret == 0) | |
841 | return 1; /* the MMU fault was handled without causing real CPU fault */ | |
842 | /* now we have a real cpu fault */ | |
a513fe19 FB |
843 | tb = tb_find_pc(pc); |
844 | if (tb) { | |
9de5e440 FB |
845 | /* the PC is inside the translated code. It means that we have |
846 | a virtual CPU fault */ | |
bf3e8bf1 | 847 | cpu_restore_state(tb, env, pc, puc); |
3fb2ded1 | 848 | } |
4cbf74b6 | 849 | if (ret == 1) { |
3fb2ded1 | 850 | #if 0 |
5fafdf24 | 851 | printf("PF exception: EIP=0x%08x CR2=0x%08x error=0x%x\n", |
4cbf74b6 | 852 | env->eip, env->cr[2], env->error_code); |
3fb2ded1 | 853 | #endif |
4cbf74b6 FB |
854 | /* we restore the process signal mask as the sigreturn should |
855 | do it (XXX: use sigsetjmp) */ | |
856 | sigprocmask(SIG_SETMASK, old_set, NULL); | |
54ca9095 | 857 | raise_exception_err(env->exception_index, env->error_code); |
4cbf74b6 FB |
858 | } else { |
859 | /* activate soft MMU for this block */ | |
3f337316 | 860 | env->hflags |= HF_SOFTMMU_MASK; |
fbf9eeb3 | 861 | cpu_resume_from_signal(env, puc); |
4cbf74b6 | 862 | } |
3fb2ded1 FB |
863 | /* never comes here */ |
864 | return 1; | |
865 | } | |
866 | ||
e4533c7a | 867 | #elif defined(TARGET_ARM) |
3fb2ded1 | 868 | static inline int handle_cpu_signal(unsigned long pc, unsigned long address, |
bf3e8bf1 FB |
869 | int is_write, sigset_t *old_set, |
870 | void *puc) | |
3fb2ded1 | 871 | { |
68016c62 FB |
872 | TranslationBlock *tb; |
873 | int ret; | |
874 | ||
875 | if (cpu_single_env) | |
876 | env = cpu_single_env; /* XXX: find a correct solution for multithread */ | |
877 | #if defined(DEBUG_SIGNAL) | |
5fafdf24 | 878 | printf("qemu: SIGSEGV pc=0x%08lx address=%08lx w=%d oldset=0x%08lx\n", |
68016c62 FB |
879 | pc, address, is_write, *(unsigned long *)old_set); |
880 | #endif | |
9f0777ed | 881 | /* XXX: locking issue */ |
53a5960a | 882 | if (is_write && page_unprotect(h2g(address), pc, puc)) { |
9f0777ed FB |
883 | return 1; |
884 | } | |
68016c62 | 885 | /* see if it is an MMU fault */ |
6ebbf390 | 886 | ret = cpu_arm_handle_mmu_fault(env, address, is_write, MMU_USER_IDX, 0); |
68016c62 FB |
887 | if (ret < 0) |
888 | return 0; /* not an MMU fault */ | |
889 | if (ret == 0) | |
890 | return 1; /* the MMU fault was handled without causing real CPU fault */ | |
891 | /* now we have a real cpu fault */ | |
892 | tb = tb_find_pc(pc); | |
893 | if (tb) { | |
894 | /* the PC is inside the translated code. It means that we have | |
895 | a virtual CPU fault */ | |
896 | cpu_restore_state(tb, env, pc, puc); | |
897 | } | |
898 | /* we restore the process signal mask as the sigreturn should | |
899 | do it (XXX: use sigsetjmp) */ | |
900 | sigprocmask(SIG_SETMASK, old_set, NULL); | |
901 | cpu_loop_exit(); | |
968c74da AJ |
902 | /* never comes here */ |
903 | return 1; | |
3fb2ded1 | 904 | } |
93ac68bc FB |
905 | #elif defined(TARGET_SPARC) |
906 | static inline int handle_cpu_signal(unsigned long pc, unsigned long address, | |
bf3e8bf1 FB |
907 | int is_write, sigset_t *old_set, |
908 | void *puc) | |
93ac68bc | 909 | { |
68016c62 FB |
910 | TranslationBlock *tb; |
911 | int ret; | |
912 | ||
913 | if (cpu_single_env) | |
914 | env = cpu_single_env; /* XXX: find a correct solution for multithread */ | |
915 | #if defined(DEBUG_SIGNAL) | |
5fafdf24 | 916 | printf("qemu: SIGSEGV pc=0x%08lx address=%08lx w=%d oldset=0x%08lx\n", |
68016c62 FB |
917 | pc, address, is_write, *(unsigned long *)old_set); |
918 | #endif | |
b453b70b | 919 | /* XXX: locking issue */ |
53a5960a | 920 | if (is_write && page_unprotect(h2g(address), pc, puc)) { |
b453b70b FB |
921 | return 1; |
922 | } | |
68016c62 | 923 | /* see if it is an MMU fault */ |
6ebbf390 | 924 | ret = cpu_sparc_handle_mmu_fault(env, address, is_write, MMU_USER_IDX, 0); |
68016c62 FB |
925 | if (ret < 0) |
926 | return 0; /* not an MMU fault */ | |
927 | if (ret == 0) | |
928 | return 1; /* the MMU fault was handled without causing real CPU fault */ | |
929 | /* now we have a real cpu fault */ | |
930 | tb = tb_find_pc(pc); | |
931 | if (tb) { | |
932 | /* the PC is inside the translated code. It means that we have | |
933 | a virtual CPU fault */ | |
934 | cpu_restore_state(tb, env, pc, puc); | |
935 | } | |
936 | /* we restore the process signal mask as the sigreturn should | |
937 | do it (XXX: use sigsetjmp) */ | |
938 | sigprocmask(SIG_SETMASK, old_set, NULL); | |
939 | cpu_loop_exit(); | |
968c74da AJ |
940 | /* never comes here */ |
941 | return 1; | |
93ac68bc | 942 | } |
67867308 FB |
943 | #elif defined (TARGET_PPC) |
944 | static inline int handle_cpu_signal(unsigned long pc, unsigned long address, | |
bf3e8bf1 FB |
945 | int is_write, sigset_t *old_set, |
946 | void *puc) | |
67867308 FB |
947 | { |
948 | TranslationBlock *tb; | |
ce09776b | 949 | int ret; |
3b46e624 | 950 | |
67867308 FB |
951 | if (cpu_single_env) |
952 | env = cpu_single_env; /* XXX: find a correct solution for multithread */ | |
67867308 | 953 | #if defined(DEBUG_SIGNAL) |
5fafdf24 | 954 | printf("qemu: SIGSEGV pc=0x%08lx address=%08lx w=%d oldset=0x%08lx\n", |
67867308 FB |
955 | pc, address, is_write, *(unsigned long *)old_set); |
956 | #endif | |
957 | /* XXX: locking issue */ | |
53a5960a | 958 | if (is_write && page_unprotect(h2g(address), pc, puc)) { |
67867308 FB |
959 | return 1; |
960 | } | |
961 | ||
ce09776b | 962 | /* see if it is an MMU fault */ |
6ebbf390 | 963 | ret = cpu_ppc_handle_mmu_fault(env, address, is_write, MMU_USER_IDX, 0); |
ce09776b FB |
964 | if (ret < 0) |
965 | return 0; /* not an MMU fault */ | |
966 | if (ret == 0) | |
967 | return 1; /* the MMU fault was handled without causing real CPU fault */ | |
968 | ||
67867308 FB |
969 | /* now we have a real cpu fault */ |
970 | tb = tb_find_pc(pc); | |
971 | if (tb) { | |
972 | /* the PC is inside the translated code. It means that we have | |
973 | a virtual CPU fault */ | |
bf3e8bf1 | 974 | cpu_restore_state(tb, env, pc, puc); |
67867308 | 975 | } |
ce09776b | 976 | if (ret == 1) { |
67867308 | 977 | #if 0 |
5fafdf24 | 978 | printf("PF exception: NIP=0x%08x error=0x%x %p\n", |
ce09776b | 979 | env->nip, env->error_code, tb); |
67867308 FB |
980 | #endif |
981 | /* we restore the process signal mask as the sigreturn should | |
982 | do it (XXX: use sigsetjmp) */ | |
bf3e8bf1 | 983 | sigprocmask(SIG_SETMASK, old_set, NULL); |
9fddaa0c | 984 | do_raise_exception_err(env->exception_index, env->error_code); |
ce09776b FB |
985 | } else { |
986 | /* activate soft MMU for this block */ | |
fbf9eeb3 | 987 | cpu_resume_from_signal(env, puc); |
ce09776b | 988 | } |
67867308 | 989 | /* never comes here */ |
e6e5906b PB |
990 | return 1; |
991 | } | |
992 | ||
993 | #elif defined(TARGET_M68K) | |
994 | static inline int handle_cpu_signal(unsigned long pc, unsigned long address, | |
995 | int is_write, sigset_t *old_set, | |
996 | void *puc) | |
997 | { | |
998 | TranslationBlock *tb; | |
999 | int ret; | |
1000 | ||
1001 | if (cpu_single_env) | |
1002 | env = cpu_single_env; /* XXX: find a correct solution for multithread */ | |
1003 | #if defined(DEBUG_SIGNAL) | |
5fafdf24 | 1004 | printf("qemu: SIGSEGV pc=0x%08lx address=%08lx w=%d oldset=0x%08lx\n", |
e6e5906b PB |
1005 | pc, address, is_write, *(unsigned long *)old_set); |
1006 | #endif | |
1007 | /* XXX: locking issue */ | |
1008 | if (is_write && page_unprotect(address, pc, puc)) { | |
1009 | return 1; | |
1010 | } | |
1011 | /* see if it is an MMU fault */ | |
6ebbf390 | 1012 | ret = cpu_m68k_handle_mmu_fault(env, address, is_write, MMU_USER_IDX, 0); |
e6e5906b PB |
1013 | if (ret < 0) |
1014 | return 0; /* not an MMU fault */ | |
1015 | if (ret == 0) | |
1016 | return 1; /* the MMU fault was handled without causing real CPU fault */ | |
1017 | /* now we have a real cpu fault */ | |
1018 | tb = tb_find_pc(pc); | |
1019 | if (tb) { | |
1020 | /* the PC is inside the translated code. It means that we have | |
1021 | a virtual CPU fault */ | |
1022 | cpu_restore_state(tb, env, pc, puc); | |
1023 | } | |
1024 | /* we restore the process signal mask as the sigreturn should | |
1025 | do it (XXX: use sigsetjmp) */ | |
1026 | sigprocmask(SIG_SETMASK, old_set, NULL); | |
1027 | cpu_loop_exit(); | |
1028 | /* never comes here */ | |
67867308 FB |
1029 | return 1; |
1030 | } | |
6af0bf9c FB |
1031 | |
1032 | #elif defined (TARGET_MIPS) | |
1033 | static inline int handle_cpu_signal(unsigned long pc, unsigned long address, | |
1034 | int is_write, sigset_t *old_set, | |
1035 | void *puc) | |
1036 | { | |
1037 | TranslationBlock *tb; | |
1038 | int ret; | |
3b46e624 | 1039 | |
6af0bf9c FB |
1040 | if (cpu_single_env) |
1041 | env = cpu_single_env; /* XXX: find a correct solution for multithread */ | |
1042 | #if defined(DEBUG_SIGNAL) | |
5fafdf24 | 1043 | printf("qemu: SIGSEGV pc=0x%08lx address=%08lx w=%d oldset=0x%08lx\n", |
6af0bf9c FB |
1044 | pc, address, is_write, *(unsigned long *)old_set); |
1045 | #endif | |
1046 | /* XXX: locking issue */ | |
53a5960a | 1047 | if (is_write && page_unprotect(h2g(address), pc, puc)) { |
6af0bf9c FB |
1048 | return 1; |
1049 | } | |
1050 | ||
1051 | /* see if it is an MMU fault */ | |
6ebbf390 | 1052 | ret = cpu_mips_handle_mmu_fault(env, address, is_write, MMU_USER_IDX, 0); |
6af0bf9c FB |
1053 | if (ret < 0) |
1054 | return 0; /* not an MMU fault */ | |
1055 | if (ret == 0) | |
1056 | return 1; /* the MMU fault was handled without causing real CPU fault */ | |
1057 | ||
1058 | /* now we have a real cpu fault */ | |
1059 | tb = tb_find_pc(pc); | |
1060 | if (tb) { | |
1061 | /* the PC is inside the translated code. It means that we have | |
1062 | a virtual CPU fault */ | |
1063 | cpu_restore_state(tb, env, pc, puc); | |
1064 | } | |
1065 | if (ret == 1) { | |
1066 | #if 0 | |
5fafdf24 | 1067 | printf("PF exception: PC=0x" TARGET_FMT_lx " error=0x%x %p\n", |
1eb5207b | 1068 | env->PC, env->error_code, tb); |
6af0bf9c FB |
1069 | #endif |
1070 | /* we restore the process signal mask as the sigreturn should | |
1071 | do it (XXX: use sigsetjmp) */ | |
1072 | sigprocmask(SIG_SETMASK, old_set, NULL); | |
1073 | do_raise_exception_err(env->exception_index, env->error_code); | |
1074 | } else { | |
1075 | /* activate soft MMU for this block */ | |
1076 | cpu_resume_from_signal(env, puc); | |
1077 | } | |
1078 | /* never comes here */ | |
1079 | return 1; | |
1080 | } | |
1081 | ||
fdf9b3e8 FB |
1082 | #elif defined (TARGET_SH4) |
1083 | static inline int handle_cpu_signal(unsigned long pc, unsigned long address, | |
1084 | int is_write, sigset_t *old_set, | |
1085 | void *puc) | |
1086 | { | |
1087 | TranslationBlock *tb; | |
1088 | int ret; | |
3b46e624 | 1089 | |
fdf9b3e8 FB |
1090 | if (cpu_single_env) |
1091 | env = cpu_single_env; /* XXX: find a correct solution for multithread */ | |
1092 | #if defined(DEBUG_SIGNAL) | |
5fafdf24 | 1093 | printf("qemu: SIGSEGV pc=0x%08lx address=%08lx w=%d oldset=0x%08lx\n", |
fdf9b3e8 FB |
1094 | pc, address, is_write, *(unsigned long *)old_set); |
1095 | #endif | |
1096 | /* XXX: locking issue */ | |
1097 | if (is_write && page_unprotect(h2g(address), pc, puc)) { | |
1098 | return 1; | |
1099 | } | |
1100 | ||
1101 | /* see if it is an MMU fault */ | |
6ebbf390 | 1102 | ret = cpu_sh4_handle_mmu_fault(env, address, is_write, MMU_USER_IDX, 0); |
fdf9b3e8 FB |
1103 | if (ret < 0) |
1104 | return 0; /* not an MMU fault */ | |
1105 | if (ret == 0) | |
1106 | return 1; /* the MMU fault was handled without causing real CPU fault */ | |
1107 | ||
1108 | /* now we have a real cpu fault */ | |
eddf68a6 JM |
1109 | tb = tb_find_pc(pc); |
1110 | if (tb) { | |
1111 | /* the PC is inside the translated code. It means that we have | |
1112 | a virtual CPU fault */ | |
1113 | cpu_restore_state(tb, env, pc, puc); | |
1114 | } | |
1115 | #if 0 | |
5fafdf24 | 1116 | printf("PF exception: NIP=0x%08x error=0x%x %p\n", |
eddf68a6 JM |
1117 | env->nip, env->error_code, tb); |
1118 | #endif | |
1119 | /* we restore the process signal mask as the sigreturn should | |
1120 | do it (XXX: use sigsetjmp) */ | |
1121 | sigprocmask(SIG_SETMASK, old_set, NULL); | |
1122 | cpu_loop_exit(); | |
1123 | /* never comes here */ | |
1124 | return 1; | |
1125 | } | |
1126 | ||
1127 | #elif defined (TARGET_ALPHA) | |
1128 | static inline int handle_cpu_signal(unsigned long pc, unsigned long address, | |
1129 | int is_write, sigset_t *old_set, | |
1130 | void *puc) | |
1131 | { | |
1132 | TranslationBlock *tb; | |
1133 | int ret; | |
3b46e624 | 1134 | |
eddf68a6 JM |
1135 | if (cpu_single_env) |
1136 | env = cpu_single_env; /* XXX: find a correct solution for multithread */ | |
1137 | #if defined(DEBUG_SIGNAL) | |
5fafdf24 | 1138 | printf("qemu: SIGSEGV pc=0x%08lx address=%08lx w=%d oldset=0x%08lx\n", |
eddf68a6 JM |
1139 | pc, address, is_write, *(unsigned long *)old_set); |
1140 | #endif | |
1141 | /* XXX: locking issue */ | |
1142 | if (is_write && page_unprotect(h2g(address), pc, puc)) { | |
1143 | return 1; | |
1144 | } | |
1145 | ||
1146 | /* see if it is an MMU fault */ | |
6ebbf390 | 1147 | ret = cpu_alpha_handle_mmu_fault(env, address, is_write, MMU_USER_IDX, 0); |
eddf68a6 JM |
1148 | if (ret < 0) |
1149 | return 0; /* not an MMU fault */ | |
1150 | if (ret == 0) | |
1151 | return 1; /* the MMU fault was handled without causing real CPU fault */ | |
1152 | ||
1153 | /* now we have a real cpu fault */ | |
fdf9b3e8 FB |
1154 | tb = tb_find_pc(pc); |
1155 | if (tb) { | |
1156 | /* the PC is inside the translated code. It means that we have | |
1157 | a virtual CPU fault */ | |
1158 | cpu_restore_state(tb, env, pc, puc); | |
1159 | } | |
fdf9b3e8 | 1160 | #if 0 |
5fafdf24 | 1161 | printf("PF exception: NIP=0x%08x error=0x%x %p\n", |
fdf9b3e8 FB |
1162 | env->nip, env->error_code, tb); |
1163 | #endif | |
1164 | /* we restore the process signal mask as the sigreturn should | |
1165 | do it (XXX: use sigsetjmp) */ | |
355fb23d PB |
1166 | sigprocmask(SIG_SETMASK, old_set, NULL); |
1167 | cpu_loop_exit(); | |
fdf9b3e8 FB |
1168 | /* never comes here */ |
1169 | return 1; | |
1170 | } | |
f1ccf904 TS |
1171 | #elif defined (TARGET_CRIS) |
1172 | static inline int handle_cpu_signal(unsigned long pc, unsigned long address, | |
1173 | int is_write, sigset_t *old_set, | |
1174 | void *puc) | |
1175 | { | |
1176 | TranslationBlock *tb; | |
1177 | int ret; | |
1178 | ||
1179 | if (cpu_single_env) | |
1180 | env = cpu_single_env; /* XXX: find a correct solution for multithread */ | |
1181 | #if defined(DEBUG_SIGNAL) | |
1182 | printf("qemu: SIGSEGV pc=0x%08lx address=%08lx w=%d oldset=0x%08lx\n", | |
1183 | pc, address, is_write, *(unsigned long *)old_set); | |
1184 | #endif | |
1185 | /* XXX: locking issue */ | |
1186 | if (is_write && page_unprotect(h2g(address), pc, puc)) { | |
1187 | return 1; | |
1188 | } | |
1189 | ||
1190 | /* see if it is an MMU fault */ | |
6ebbf390 | 1191 | ret = cpu_cris_handle_mmu_fault(env, address, is_write, MMU_USER_IDX, 0); |
f1ccf904 TS |
1192 | if (ret < 0) |
1193 | return 0; /* not an MMU fault */ | |
1194 | if (ret == 0) | |
1195 | return 1; /* the MMU fault was handled without causing real CPU fault */ | |
1196 | ||
1197 | /* now we have a real cpu fault */ | |
1198 | tb = tb_find_pc(pc); | |
1199 | if (tb) { | |
1200 | /* the PC is inside the translated code. It means that we have | |
1201 | a virtual CPU fault */ | |
1202 | cpu_restore_state(tb, env, pc, puc); | |
1203 | } | |
f1ccf904 TS |
1204 | /* we restore the process signal mask as the sigreturn should |
1205 | do it (XXX: use sigsetjmp) */ | |
1206 | sigprocmask(SIG_SETMASK, old_set, NULL); | |
1207 | cpu_loop_exit(); | |
1208 | /* never comes here */ | |
1209 | return 1; | |
1210 | } | |
1211 | ||
e4533c7a FB |
1212 | #else |
1213 | #error unsupported target CPU | |
1214 | #endif | |
9de5e440 | 1215 | |
2b413144 FB |
1216 | #if defined(__i386__) |
1217 | ||
d8ecc0b9 FB |
1218 | #if defined(__APPLE__) |
1219 | # include <sys/ucontext.h> | |
1220 | ||
1221 | # define EIP_sig(context) (*((unsigned long*)&(context)->uc_mcontext->ss.eip)) | |
1222 | # define TRAP_sig(context) ((context)->uc_mcontext->es.trapno) | |
1223 | # define ERROR_sig(context) ((context)->uc_mcontext->es.err) | |
1224 | #else | |
1225 | # define EIP_sig(context) ((context)->uc_mcontext.gregs[REG_EIP]) | |
1226 | # define TRAP_sig(context) ((context)->uc_mcontext.gregs[REG_TRAPNO]) | |
1227 | # define ERROR_sig(context) ((context)->uc_mcontext.gregs[REG_ERR]) | |
1228 | #endif | |
1229 | ||
5fafdf24 | 1230 | int cpu_signal_handler(int host_signum, void *pinfo, |
e4533c7a | 1231 | void *puc) |
9de5e440 | 1232 | { |
5a7b542b | 1233 | siginfo_t *info = pinfo; |
9de5e440 FB |
1234 | struct ucontext *uc = puc; |
1235 | unsigned long pc; | |
bf3e8bf1 | 1236 | int trapno; |
97eb5b14 | 1237 | |
d691f669 FB |
1238 | #ifndef REG_EIP |
1239 | /* for glibc 2.1 */ | |
fd6ce8f6 FB |
1240 | #define REG_EIP EIP |
1241 | #define REG_ERR ERR | |
1242 | #define REG_TRAPNO TRAPNO | |
d691f669 | 1243 | #endif |
d8ecc0b9 FB |
1244 | pc = EIP_sig(uc); |
1245 | trapno = TRAP_sig(uc); | |
ec6338ba FB |
1246 | return handle_cpu_signal(pc, (unsigned long)info->si_addr, |
1247 | trapno == 0xe ? | |
1248 | (ERROR_sig(uc) >> 1) & 1 : 0, | |
1249 | &uc->uc_sigmask, puc); | |
2b413144 FB |
1250 | } |
1251 | ||
bc51c5c9 FB |
1252 | #elif defined(__x86_64__) |
1253 | ||
5a7b542b | 1254 | int cpu_signal_handler(int host_signum, void *pinfo, |
bc51c5c9 FB |
1255 | void *puc) |
1256 | { | |
5a7b542b | 1257 | siginfo_t *info = pinfo; |
bc51c5c9 FB |
1258 | struct ucontext *uc = puc; |
1259 | unsigned long pc; | |
1260 | ||
1261 | pc = uc->uc_mcontext.gregs[REG_RIP]; | |
5fafdf24 TS |
1262 | return handle_cpu_signal(pc, (unsigned long)info->si_addr, |
1263 | uc->uc_mcontext.gregs[REG_TRAPNO] == 0xe ? | |
bc51c5c9 FB |
1264 | (uc->uc_mcontext.gregs[REG_ERR] >> 1) & 1 : 0, |
1265 | &uc->uc_sigmask, puc); | |
1266 | } | |
1267 | ||
83fb7adf | 1268 | #elif defined(__powerpc__) |
2b413144 | 1269 | |
83fb7adf FB |
1270 | /*********************************************************************** |
1271 | * signal context platform-specific definitions | |
1272 | * From Wine | |
1273 | */ | |
1274 | #ifdef linux | |
1275 | /* All Registers access - only for local access */ | |
1276 | # define REG_sig(reg_name, context) ((context)->uc_mcontext.regs->reg_name) | |
1277 | /* Gpr Registers access */ | |
1278 | # define GPR_sig(reg_num, context) REG_sig(gpr[reg_num], context) | |
1279 | # define IAR_sig(context) REG_sig(nip, context) /* Program counter */ | |
1280 | # define MSR_sig(context) REG_sig(msr, context) /* Machine State Register (Supervisor) */ | |
1281 | # define CTR_sig(context) REG_sig(ctr, context) /* Count register */ | |
1282 | # define XER_sig(context) REG_sig(xer, context) /* User's integer exception register */ | |
1283 | # define LR_sig(context) REG_sig(link, context) /* Link register */ | |
1284 | # define CR_sig(context) REG_sig(ccr, context) /* Condition register */ | |
1285 | /* Float Registers access */ | |
1286 | # define FLOAT_sig(reg_num, context) (((double*)((char*)((context)->uc_mcontext.regs+48*4)))[reg_num]) | |
1287 | # define FPSCR_sig(context) (*(int*)((char*)((context)->uc_mcontext.regs+(48+32*2)*4))) | |
1288 | /* Exception Registers access */ | |
1289 | # define DAR_sig(context) REG_sig(dar, context) | |
1290 | # define DSISR_sig(context) REG_sig(dsisr, context) | |
1291 | # define TRAP_sig(context) REG_sig(trap, context) | |
1292 | #endif /* linux */ | |
1293 | ||
1294 | #ifdef __APPLE__ | |
1295 | # include <sys/ucontext.h> | |
1296 | typedef struct ucontext SIGCONTEXT; | |
1297 | /* All Registers access - only for local access */ | |
1298 | # define REG_sig(reg_name, context) ((context)->uc_mcontext->ss.reg_name) | |
1299 | # define FLOATREG_sig(reg_name, context) ((context)->uc_mcontext->fs.reg_name) | |
1300 | # define EXCEPREG_sig(reg_name, context) ((context)->uc_mcontext->es.reg_name) | |
1301 | # define VECREG_sig(reg_name, context) ((context)->uc_mcontext->vs.reg_name) | |
1302 | /* Gpr Registers access */ | |
1303 | # define GPR_sig(reg_num, context) REG_sig(r##reg_num, context) | |
1304 | # define IAR_sig(context) REG_sig(srr0, context) /* Program counter */ | |
1305 | # define MSR_sig(context) REG_sig(srr1, context) /* Machine State Register (Supervisor) */ | |
1306 | # define CTR_sig(context) REG_sig(ctr, context) | |
1307 | # define XER_sig(context) REG_sig(xer, context) /* Link register */ | |
1308 | # define LR_sig(context) REG_sig(lr, context) /* User's integer exception register */ | |
1309 | # define CR_sig(context) REG_sig(cr, context) /* Condition register */ | |
1310 | /* Float Registers access */ | |
1311 | # define FLOAT_sig(reg_num, context) FLOATREG_sig(fpregs[reg_num], context) | |
1312 | # define FPSCR_sig(context) ((double)FLOATREG_sig(fpscr, context)) | |
1313 | /* Exception Registers access */ | |
1314 | # define DAR_sig(context) EXCEPREG_sig(dar, context) /* Fault registers for coredump */ | |
1315 | # define DSISR_sig(context) EXCEPREG_sig(dsisr, context) | |
1316 | # define TRAP_sig(context) EXCEPREG_sig(exception, context) /* number of powerpc exception taken */ | |
1317 | #endif /* __APPLE__ */ | |
1318 | ||
5fafdf24 | 1319 | int cpu_signal_handler(int host_signum, void *pinfo, |
e4533c7a | 1320 | void *puc) |
2b413144 | 1321 | { |
5a7b542b | 1322 | siginfo_t *info = pinfo; |
25eb4484 | 1323 | struct ucontext *uc = puc; |
25eb4484 | 1324 | unsigned long pc; |
25eb4484 FB |
1325 | int is_write; |
1326 | ||
83fb7adf | 1327 | pc = IAR_sig(uc); |
25eb4484 FB |
1328 | is_write = 0; |
1329 | #if 0 | |
1330 | /* ppc 4xx case */ | |
83fb7adf | 1331 | if (DSISR_sig(uc) & 0x00800000) |
25eb4484 FB |
1332 | is_write = 1; |
1333 | #else | |
83fb7adf | 1334 | if (TRAP_sig(uc) != 0x400 && (DSISR_sig(uc) & 0x02000000)) |
25eb4484 FB |
1335 | is_write = 1; |
1336 | #endif | |
5fafdf24 | 1337 | return handle_cpu_signal(pc, (unsigned long)info->si_addr, |
bf3e8bf1 | 1338 | is_write, &uc->uc_sigmask, puc); |
2b413144 FB |
1339 | } |
1340 | ||
2f87c607 FB |
1341 | #elif defined(__alpha__) |
1342 | ||
5fafdf24 | 1343 | int cpu_signal_handler(int host_signum, void *pinfo, |
2f87c607 FB |
1344 | void *puc) |
1345 | { | |
5a7b542b | 1346 | siginfo_t *info = pinfo; |
2f87c607 FB |
1347 | struct ucontext *uc = puc; |
1348 | uint32_t *pc = uc->uc_mcontext.sc_pc; | |
1349 | uint32_t insn = *pc; | |
1350 | int is_write = 0; | |
1351 | ||
8c6939c0 | 1352 | /* XXX: need kernel patch to get write flag faster */ |
2f87c607 FB |
1353 | switch (insn >> 26) { |
1354 | case 0x0d: // stw | |
1355 | case 0x0e: // stb | |
1356 | case 0x0f: // stq_u | |
1357 | case 0x24: // stf | |
1358 | case 0x25: // stg | |
1359 | case 0x26: // sts | |
1360 | case 0x27: // stt | |
1361 | case 0x2c: // stl | |
1362 | case 0x2d: // stq | |
1363 | case 0x2e: // stl_c | |
1364 | case 0x2f: // stq_c | |
1365 | is_write = 1; | |
1366 | } | |
1367 | ||
5fafdf24 | 1368 | return handle_cpu_signal(pc, (unsigned long)info->si_addr, |
bf3e8bf1 | 1369 | is_write, &uc->uc_sigmask, puc); |
2f87c607 | 1370 | } |
8c6939c0 FB |
1371 | #elif defined(__sparc__) |
1372 | ||
5fafdf24 | 1373 | int cpu_signal_handler(int host_signum, void *pinfo, |
e4533c7a | 1374 | void *puc) |
8c6939c0 | 1375 | { |
5a7b542b | 1376 | siginfo_t *info = pinfo; |
8c6939c0 FB |
1377 | uint32_t *regs = (uint32_t *)(info + 1); |
1378 | void *sigmask = (regs + 20); | |
1379 | unsigned long pc; | |
1380 | int is_write; | |
1381 | uint32_t insn; | |
3b46e624 | 1382 | |
8c6939c0 FB |
1383 | /* XXX: is there a standard glibc define ? */ |
1384 | pc = regs[1]; | |
1385 | /* XXX: need kernel patch to get write flag faster */ | |
1386 | is_write = 0; | |
1387 | insn = *(uint32_t *)pc; | |
1388 | if ((insn >> 30) == 3) { | |
1389 | switch((insn >> 19) & 0x3f) { | |
1390 | case 0x05: // stb | |
1391 | case 0x06: // sth | |
1392 | case 0x04: // st | |
1393 | case 0x07: // std | |
1394 | case 0x24: // stf | |
1395 | case 0x27: // stdf | |
1396 | case 0x25: // stfsr | |
1397 | is_write = 1; | |
1398 | break; | |
1399 | } | |
1400 | } | |
5fafdf24 | 1401 | return handle_cpu_signal(pc, (unsigned long)info->si_addr, |
bf3e8bf1 | 1402 | is_write, sigmask, NULL); |
8c6939c0 FB |
1403 | } |
1404 | ||
1405 | #elif defined(__arm__) | |
1406 | ||
5fafdf24 | 1407 | int cpu_signal_handler(int host_signum, void *pinfo, |
e4533c7a | 1408 | void *puc) |
8c6939c0 | 1409 | { |
5a7b542b | 1410 | siginfo_t *info = pinfo; |
8c6939c0 FB |
1411 | struct ucontext *uc = puc; |
1412 | unsigned long pc; | |
1413 | int is_write; | |
3b46e624 | 1414 | |
8c6939c0 FB |
1415 | pc = uc->uc_mcontext.gregs[R15]; |
1416 | /* XXX: compute is_write */ | |
1417 | is_write = 0; | |
5fafdf24 | 1418 | return handle_cpu_signal(pc, (unsigned long)info->si_addr, |
8c6939c0 | 1419 | is_write, |
f3a9676a | 1420 | &uc->uc_sigmask, puc); |
8c6939c0 FB |
1421 | } |
1422 | ||
38e584a0 FB |
1423 | #elif defined(__mc68000) |
1424 | ||
5fafdf24 | 1425 | int cpu_signal_handler(int host_signum, void *pinfo, |
38e584a0 FB |
1426 | void *puc) |
1427 | { | |
5a7b542b | 1428 | siginfo_t *info = pinfo; |
38e584a0 FB |
1429 | struct ucontext *uc = puc; |
1430 | unsigned long pc; | |
1431 | int is_write; | |
3b46e624 | 1432 | |
38e584a0 FB |
1433 | pc = uc->uc_mcontext.gregs[16]; |
1434 | /* XXX: compute is_write */ | |
1435 | is_write = 0; | |
5fafdf24 | 1436 | return handle_cpu_signal(pc, (unsigned long)info->si_addr, |
38e584a0 | 1437 | is_write, |
bf3e8bf1 | 1438 | &uc->uc_sigmask, puc); |
38e584a0 FB |
1439 | } |
1440 | ||
b8076a74 FB |
1441 | #elif defined(__ia64) |
1442 | ||
1443 | #ifndef __ISR_VALID | |
1444 | /* This ought to be in <bits/siginfo.h>... */ | |
1445 | # define __ISR_VALID 1 | |
b8076a74 FB |
1446 | #endif |
1447 | ||
5a7b542b | 1448 | int cpu_signal_handler(int host_signum, void *pinfo, void *puc) |
b8076a74 | 1449 | { |
5a7b542b | 1450 | siginfo_t *info = pinfo; |
b8076a74 FB |
1451 | struct ucontext *uc = puc; |
1452 | unsigned long ip; | |
1453 | int is_write = 0; | |
1454 | ||
1455 | ip = uc->uc_mcontext.sc_ip; | |
1456 | switch (host_signum) { | |
1457 | case SIGILL: | |
1458 | case SIGFPE: | |
1459 | case SIGSEGV: | |
1460 | case SIGBUS: | |
1461 | case SIGTRAP: | |
fd4a43e4 | 1462 | if (info->si_code && (info->si_segvflags & __ISR_VALID)) |
b8076a74 FB |
1463 | /* ISR.W (write-access) is bit 33: */ |
1464 | is_write = (info->si_isr >> 33) & 1; | |
1465 | break; | |
1466 | ||
1467 | default: | |
1468 | break; | |
1469 | } | |
1470 | return handle_cpu_signal(ip, (unsigned long)info->si_addr, | |
1471 | is_write, | |
1472 | &uc->uc_sigmask, puc); | |
1473 | } | |
1474 | ||
90cb9493 FB |
1475 | #elif defined(__s390__) |
1476 | ||
5fafdf24 | 1477 | int cpu_signal_handler(int host_signum, void *pinfo, |
90cb9493 FB |
1478 | void *puc) |
1479 | { | |
5a7b542b | 1480 | siginfo_t *info = pinfo; |
90cb9493 FB |
1481 | struct ucontext *uc = puc; |
1482 | unsigned long pc; | |
1483 | int is_write; | |
3b46e624 | 1484 | |
90cb9493 FB |
1485 | pc = uc->uc_mcontext.psw.addr; |
1486 | /* XXX: compute is_write */ | |
1487 | is_write = 0; | |
5fafdf24 | 1488 | return handle_cpu_signal(pc, (unsigned long)info->si_addr, |
c4b89d18 TS |
1489 | is_write, &uc->uc_sigmask, puc); |
1490 | } | |
1491 | ||
1492 | #elif defined(__mips__) | |
1493 | ||
5fafdf24 | 1494 | int cpu_signal_handler(int host_signum, void *pinfo, |
c4b89d18 TS |
1495 | void *puc) |
1496 | { | |
9617efe8 | 1497 | siginfo_t *info = pinfo; |
c4b89d18 TS |
1498 | struct ucontext *uc = puc; |
1499 | greg_t pc = uc->uc_mcontext.pc; | |
1500 | int is_write; | |
3b46e624 | 1501 | |
c4b89d18 TS |
1502 | /* XXX: compute is_write */ |
1503 | is_write = 0; | |
5fafdf24 | 1504 | return handle_cpu_signal(pc, (unsigned long)info->si_addr, |
c4b89d18 | 1505 | is_write, &uc->uc_sigmask, puc); |
90cb9493 FB |
1506 | } |
1507 | ||
f54b3f92 AJ |
1508 | #elif defined(__hppa__) |
1509 | ||
1510 | int cpu_signal_handler(int host_signum, void *pinfo, | |
1511 | void *puc) | |
1512 | { | |
1513 | struct siginfo *info = pinfo; | |
1514 | struct ucontext *uc = puc; | |
1515 | unsigned long pc; | |
1516 | int is_write; | |
1517 | ||
1518 | pc = uc->uc_mcontext.sc_iaoq[0]; | |
1519 | /* FIXME: compute is_write */ | |
1520 | is_write = 0; | |
1521 | return handle_cpu_signal(pc, (unsigned long)info->si_addr, | |
1522 | is_write, | |
1523 | &uc->uc_sigmask, puc); | |
1524 | } | |
1525 | ||
9de5e440 | 1526 | #else |
2b413144 | 1527 | |
3fb2ded1 | 1528 | #error host CPU specific signal handler needed |
2b413144 | 1529 | |
9de5e440 | 1530 | #endif |
67b915a5 FB |
1531 | |
1532 | #endif /* !defined(CONFIG_SOFTMMU) */ |