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Commit | Line | Data |
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296af7c9 BS |
1 | /* |
2 | * QEMU System Emulator | |
3 | * | |
4 | * Copyright (c) 2003-2008 Fabrice Bellard | |
5 | * | |
6 | * Permission is hereby granted, free of charge, to any person obtaining a copy | |
7 | * of this software and associated documentation files (the "Software"), to deal | |
8 | * in the Software without restriction, including without limitation the rights | |
9 | * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell | |
10 | * copies of the Software, and to permit persons to whom the Software is | |
11 | * furnished to do so, subject to the following conditions: | |
12 | * | |
13 | * The above copyright notice and this permission notice shall be included in | |
14 | * all copies or substantial portions of the Software. | |
15 | * | |
16 | * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR | |
17 | * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY, | |
18 | * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL | |
19 | * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER | |
20 | * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, | |
21 | * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN | |
22 | * THE SOFTWARE. | |
23 | */ | |
24 | ||
7b31bbc2 | 25 | #include "qemu/osdep.h" |
8d4e9146 | 26 | #include "qemu/config-file.h" |
33c11879 | 27 | #include "cpu.h" |
83c9089e | 28 | #include "monitor/monitor.h" |
e688df6b | 29 | #include "qapi/error.h" |
112ed241 | 30 | #include "qapi/qapi-commands-misc.h" |
9af23989 | 31 | #include "qapi/qapi-events-run-state.h" |
a4e15de9 | 32 | #include "qapi/qmp/qerror.h" |
d49b6836 | 33 | #include "qemu/error-report.h" |
9c17d615 | 34 | #include "sysemu/sysemu.h" |
da31d594 | 35 | #include "sysemu/block-backend.h" |
022c62cb | 36 | #include "exec/gdbstub.h" |
9c17d615 | 37 | #include "sysemu/dma.h" |
b3946626 | 38 | #include "sysemu/hw_accel.h" |
9c17d615 | 39 | #include "sysemu/kvm.h" |
b0cb0a66 | 40 | #include "sysemu/hax.h" |
c97d6d2c | 41 | #include "sysemu/hvf.h" |
19306806 | 42 | #include "sysemu/whpx.h" |
63c91552 | 43 | #include "exec/exec-all.h" |
296af7c9 | 44 | |
1de7afc9 | 45 | #include "qemu/thread.h" |
9c17d615 PB |
46 | #include "sysemu/cpus.h" |
47 | #include "sysemu/qtest.h" | |
1de7afc9 | 48 | #include "qemu/main-loop.h" |
922a01a0 | 49 | #include "qemu/option.h" |
1de7afc9 | 50 | #include "qemu/bitmap.h" |
cb365646 | 51 | #include "qemu/seqlock.h" |
8d4e9146 | 52 | #include "tcg.h" |
9cb805fd | 53 | #include "hw/nmi.h" |
8b427044 | 54 | #include "sysemu/replay.h" |
afed5a5a | 55 | #include "hw/boards.h" |
0ff0fc19 | 56 | |
6d9cb73c JK |
57 | #ifdef CONFIG_LINUX |
58 | ||
59 | #include <sys/prctl.h> | |
60 | ||
c0532a76 MT |
61 | #ifndef PR_MCE_KILL |
62 | #define PR_MCE_KILL 33 | |
63 | #endif | |
64 | ||
6d9cb73c JK |
65 | #ifndef PR_MCE_KILL_SET |
66 | #define PR_MCE_KILL_SET 1 | |
67 | #endif | |
68 | ||
69 | #ifndef PR_MCE_KILL_EARLY | |
70 | #define PR_MCE_KILL_EARLY 1 | |
71 | #endif | |
72 | ||
73 | #endif /* CONFIG_LINUX */ | |
74 | ||
27498bef ST |
75 | int64_t max_delay; |
76 | int64_t max_advance; | |
296af7c9 | 77 | |
2adcc85d JH |
78 | /* vcpu throttling controls */ |
79 | static QEMUTimer *throttle_timer; | |
80 | static unsigned int throttle_percentage; | |
81 | ||
82 | #define CPU_THROTTLE_PCT_MIN 1 | |
83 | #define CPU_THROTTLE_PCT_MAX 99 | |
84 | #define CPU_THROTTLE_TIMESLICE_NS 10000000 | |
85 | ||
321bc0b2 TC |
86 | bool cpu_is_stopped(CPUState *cpu) |
87 | { | |
88 | return cpu->stopped || !runstate_is_running(); | |
89 | } | |
90 | ||
a98ae1d8 | 91 | static bool cpu_thread_is_idle(CPUState *cpu) |
ac873f1e | 92 | { |
c64ca814 | 93 | if (cpu->stop || cpu->queued_work_first) { |
ac873f1e PM |
94 | return false; |
95 | } | |
321bc0b2 | 96 | if (cpu_is_stopped(cpu)) { |
ac873f1e PM |
97 | return true; |
98 | } | |
8c2e1b00 | 99 | if (!cpu->halted || cpu_has_work(cpu) || |
215e79c0 | 100 | kvm_halt_in_kernel()) { |
ac873f1e PM |
101 | return false; |
102 | } | |
103 | return true; | |
104 | } | |
105 | ||
106 | static bool all_cpu_threads_idle(void) | |
107 | { | |
182735ef | 108 | CPUState *cpu; |
ac873f1e | 109 | |
bdc44640 | 110 | CPU_FOREACH(cpu) { |
182735ef | 111 | if (!cpu_thread_is_idle(cpu)) { |
ac873f1e PM |
112 | return false; |
113 | } | |
114 | } | |
115 | return true; | |
116 | } | |
117 | ||
946fb27c PB |
118 | /***********************************************************/ |
119 | /* guest cycle counter */ | |
120 | ||
a3270e19 PB |
121 | /* Protected by TimersState seqlock */ |
122 | ||
5045e9d9 | 123 | static bool icount_sleep = true; |
946fb27c PB |
124 | /* Arbitrarily pick 1MIPS as the minimum allowable speed. */ |
125 | #define MAX_ICOUNT_SHIFT 10 | |
a3270e19 | 126 | |
946fb27c | 127 | typedef struct TimersState { |
cb365646 | 128 | /* Protected by BQL. */ |
946fb27c PB |
129 | int64_t cpu_ticks_prev; |
130 | int64_t cpu_ticks_offset; | |
cb365646 | 131 | |
94377115 PB |
132 | /* Protect fields that can be respectively read outside the |
133 | * BQL, and written from multiple threads. | |
cb365646 LPF |
134 | */ |
135 | QemuSeqLock vm_clock_seqlock; | |
94377115 PB |
136 | QemuSpin vm_clock_lock; |
137 | ||
138 | int16_t cpu_ticks_enabled; | |
c96778bb | 139 | |
c1ff073c | 140 | /* Conversion factor from emulated instructions to virtual clock ticks. */ |
94377115 PB |
141 | int16_t icount_time_shift; |
142 | ||
c96778bb FK |
143 | /* Compensate for varying guest execution speed. */ |
144 | int64_t qemu_icount_bias; | |
94377115 PB |
145 | |
146 | int64_t vm_clock_warp_start; | |
147 | int64_t cpu_clock_offset; | |
148 | ||
c96778bb FK |
149 | /* Only written by TCG thread */ |
150 | int64_t qemu_icount; | |
94377115 | 151 | |
b39e3f34 | 152 | /* for adjusting icount */ |
b39e3f34 PD |
153 | QEMUTimer *icount_rt_timer; |
154 | QEMUTimer *icount_vm_timer; | |
155 | QEMUTimer *icount_warp_timer; | |
946fb27c PB |
156 | } TimersState; |
157 | ||
d9cd4007 | 158 | static TimersState timers_state; |
8d4e9146 FK |
159 | bool mttcg_enabled; |
160 | ||
161 | /* | |
162 | * We default to false if we know other options have been enabled | |
163 | * which are currently incompatible with MTTCG. Otherwise when each | |
164 | * guest (target) has been updated to support: | |
165 | * - atomic instructions | |
166 | * - memory ordering primitives (barriers) | |
167 | * they can set the appropriate CONFIG flags in ${target}-softmmu.mak | |
168 | * | |
169 | * Once a guest architecture has been converted to the new primitives | |
170 | * there are two remaining limitations to check. | |
171 | * | |
172 | * - The guest can't be oversized (e.g. 64 bit guest on 32 bit host) | |
173 | * - The host must have a stronger memory order than the guest | |
174 | * | |
175 | * It may be possible in future to support strong guests on weak hosts | |
176 | * but that will require tagging all load/stores in a guest with their | |
177 | * implicit memory order requirements which would likely slow things | |
178 | * down a lot. | |
179 | */ | |
180 | ||
181 | static bool check_tcg_memory_orders_compatible(void) | |
182 | { | |
183 | #if defined(TCG_GUEST_DEFAULT_MO) && defined(TCG_TARGET_DEFAULT_MO) | |
184 | return (TCG_GUEST_DEFAULT_MO & ~TCG_TARGET_DEFAULT_MO) == 0; | |
185 | #else | |
186 | return false; | |
187 | #endif | |
188 | } | |
189 | ||
190 | static bool default_mttcg_enabled(void) | |
191 | { | |
83fd9629 | 192 | if (use_icount || TCG_OVERSIZED_GUEST) { |
8d4e9146 FK |
193 | return false; |
194 | } else { | |
195 | #ifdef TARGET_SUPPORTS_MTTCG | |
196 | return check_tcg_memory_orders_compatible(); | |
197 | #else | |
198 | return false; | |
199 | #endif | |
200 | } | |
201 | } | |
202 | ||
203 | void qemu_tcg_configure(QemuOpts *opts, Error **errp) | |
204 | { | |
205 | const char *t = qemu_opt_get(opts, "thread"); | |
206 | if (t) { | |
207 | if (strcmp(t, "multi") == 0) { | |
208 | if (TCG_OVERSIZED_GUEST) { | |
209 | error_setg(errp, "No MTTCG when guest word size > hosts"); | |
83fd9629 AB |
210 | } else if (use_icount) { |
211 | error_setg(errp, "No MTTCG when icount is enabled"); | |
8d4e9146 | 212 | } else { |
86953503 | 213 | #ifndef TARGET_SUPPORTS_MTTCG |
c34c7620 AB |
214 | error_report("Guest not yet converted to MTTCG - " |
215 | "you may get unexpected results"); | |
216 | #endif | |
8d4e9146 FK |
217 | if (!check_tcg_memory_orders_compatible()) { |
218 | error_report("Guest expects a stronger memory ordering " | |
219 | "than the host provides"); | |
8cfef892 | 220 | error_printf("This may cause strange/hard to debug errors\n"); |
8d4e9146 FK |
221 | } |
222 | mttcg_enabled = true; | |
223 | } | |
224 | } else if (strcmp(t, "single") == 0) { | |
225 | mttcg_enabled = false; | |
226 | } else { | |
227 | error_setg(errp, "Invalid 'thread' setting %s", t); | |
228 | } | |
229 | } else { | |
230 | mttcg_enabled = default_mttcg_enabled(); | |
231 | } | |
232 | } | |
946fb27c | 233 | |
e4cd9657 AB |
234 | /* The current number of executed instructions is based on what we |
235 | * originally budgeted minus the current state of the decrementing | |
236 | * icount counters in extra/u16.low. | |
237 | */ | |
238 | static int64_t cpu_get_icount_executed(CPUState *cpu) | |
239 | { | |
240 | return cpu->icount_budget - (cpu->icount_decr.u16.low + cpu->icount_extra); | |
241 | } | |
242 | ||
512d3c80 AB |
243 | /* |
244 | * Update the global shared timer_state.qemu_icount to take into | |
245 | * account executed instructions. This is done by the TCG vCPU | |
246 | * thread so the main-loop can see time has moved forward. | |
247 | */ | |
9b4e6f49 | 248 | static void cpu_update_icount_locked(CPUState *cpu) |
512d3c80 AB |
249 | { |
250 | int64_t executed = cpu_get_icount_executed(cpu); | |
251 | cpu->icount_budget -= executed; | |
252 | ||
38adcb6e EC |
253 | atomic_set_i64(&timers_state.qemu_icount, |
254 | timers_state.qemu_icount + executed); | |
9b4e6f49 PB |
255 | } |
256 | ||
257 | /* | |
258 | * Update the global shared timer_state.qemu_icount to take into | |
259 | * account executed instructions. This is done by the TCG vCPU | |
260 | * thread so the main-loop can see time has moved forward. | |
261 | */ | |
262 | void cpu_update_icount(CPUState *cpu) | |
263 | { | |
264 | seqlock_write_lock(&timers_state.vm_clock_seqlock, | |
265 | &timers_state.vm_clock_lock); | |
266 | cpu_update_icount_locked(cpu); | |
94377115 PB |
267 | seqlock_write_unlock(&timers_state.vm_clock_seqlock, |
268 | &timers_state.vm_clock_lock); | |
512d3c80 AB |
269 | } |
270 | ||
c1ff073c | 271 | static int64_t cpu_get_icount_raw_locked(void) |
946fb27c | 272 | { |
4917cf44 | 273 | CPUState *cpu = current_cpu; |
946fb27c | 274 | |
243c5f77 | 275 | if (cpu && cpu->running) { |
414b15c9 | 276 | if (!cpu->can_do_io) { |
493d89bf | 277 | error_report("Bad icount read"); |
2a62914b | 278 | exit(1); |
946fb27c | 279 | } |
e4cd9657 | 280 | /* Take into account what has run */ |
9b4e6f49 | 281 | cpu_update_icount_locked(cpu); |
946fb27c | 282 | } |
38adcb6e EC |
283 | /* The read is protected by the seqlock, but needs atomic64 to avoid UB */ |
284 | return atomic_read_i64(&timers_state.qemu_icount); | |
2a62914b PD |
285 | } |
286 | ||
2a62914b PD |
287 | static int64_t cpu_get_icount_locked(void) |
288 | { | |
c1ff073c | 289 | int64_t icount = cpu_get_icount_raw_locked(); |
c97595d1 EC |
290 | return atomic_read_i64(&timers_state.qemu_icount_bias) + |
291 | cpu_icount_to_ns(icount); | |
c1ff073c PB |
292 | } |
293 | ||
294 | int64_t cpu_get_icount_raw(void) | |
295 | { | |
296 | int64_t icount; | |
297 | unsigned start; | |
298 | ||
299 | do { | |
300 | start = seqlock_read_begin(&timers_state.vm_clock_seqlock); | |
301 | icount = cpu_get_icount_raw_locked(); | |
302 | } while (seqlock_read_retry(&timers_state.vm_clock_seqlock, start)); | |
303 | ||
304 | return icount; | |
946fb27c PB |
305 | } |
306 | ||
c1ff073c | 307 | /* Return the virtual CPU time, based on the instruction counter. */ |
17a15f1b PB |
308 | int64_t cpu_get_icount(void) |
309 | { | |
310 | int64_t icount; | |
311 | unsigned start; | |
312 | ||
313 | do { | |
314 | start = seqlock_read_begin(&timers_state.vm_clock_seqlock); | |
315 | icount = cpu_get_icount_locked(); | |
316 | } while (seqlock_read_retry(&timers_state.vm_clock_seqlock, start)); | |
317 | ||
318 | return icount; | |
319 | } | |
320 | ||
3f031313 FK |
321 | int64_t cpu_icount_to_ns(int64_t icount) |
322 | { | |
c1ff073c | 323 | return icount << atomic_read(&timers_state.icount_time_shift); |
3f031313 FK |
324 | } |
325 | ||
f2a4ad6d PB |
326 | static int64_t cpu_get_ticks_locked(void) |
327 | { | |
328 | int64_t ticks = timers_state.cpu_ticks_offset; | |
329 | if (timers_state.cpu_ticks_enabled) { | |
330 | ticks += cpu_get_host_ticks(); | |
331 | } | |
332 | ||
333 | if (timers_state.cpu_ticks_prev > ticks) { | |
334 | /* Non increasing ticks may happen if the host uses software suspend. */ | |
335 | timers_state.cpu_ticks_offset += timers_state.cpu_ticks_prev - ticks; | |
336 | ticks = timers_state.cpu_ticks_prev; | |
337 | } | |
338 | ||
339 | timers_state.cpu_ticks_prev = ticks; | |
340 | return ticks; | |
341 | } | |
342 | ||
d90f3cca C |
343 | /* return the time elapsed in VM between vm_start and vm_stop. Unless |
344 | * icount is active, cpu_get_ticks() uses units of the host CPU cycle | |
345 | * counter. | |
d90f3cca | 346 | */ |
946fb27c PB |
347 | int64_t cpu_get_ticks(void) |
348 | { | |
5f3e3101 PB |
349 | int64_t ticks; |
350 | ||
946fb27c PB |
351 | if (use_icount) { |
352 | return cpu_get_icount(); | |
353 | } | |
5f3e3101 | 354 | |
f2a4ad6d PB |
355 | qemu_spin_lock(&timers_state.vm_clock_lock); |
356 | ticks = cpu_get_ticks_locked(); | |
357 | qemu_spin_unlock(&timers_state.vm_clock_lock); | |
5f3e3101 | 358 | return ticks; |
946fb27c PB |
359 | } |
360 | ||
cb365646 | 361 | static int64_t cpu_get_clock_locked(void) |
946fb27c | 362 | { |
1d45cea5 | 363 | int64_t time; |
cb365646 | 364 | |
1d45cea5 | 365 | time = timers_state.cpu_clock_offset; |
5f3e3101 | 366 | if (timers_state.cpu_ticks_enabled) { |
1d45cea5 | 367 | time += get_clock(); |
946fb27c | 368 | } |
cb365646 | 369 | |
1d45cea5 | 370 | return time; |
cb365646 LPF |
371 | } |
372 | ||
d90f3cca | 373 | /* Return the monotonic time elapsed in VM, i.e., |
8212ff86 PM |
374 | * the time between vm_start and vm_stop |
375 | */ | |
cb365646 LPF |
376 | int64_t cpu_get_clock(void) |
377 | { | |
378 | int64_t ti; | |
379 | unsigned start; | |
380 | ||
381 | do { | |
382 | start = seqlock_read_begin(&timers_state.vm_clock_seqlock); | |
383 | ti = cpu_get_clock_locked(); | |
384 | } while (seqlock_read_retry(&timers_state.vm_clock_seqlock, start)); | |
385 | ||
386 | return ti; | |
946fb27c PB |
387 | } |
388 | ||
cb365646 | 389 | /* enable cpu_get_ticks() |
3224e878 | 390 | * Caller must hold BQL which serves as mutex for vm_clock_seqlock. |
cb365646 | 391 | */ |
946fb27c PB |
392 | void cpu_enable_ticks(void) |
393 | { | |
94377115 PB |
394 | seqlock_write_lock(&timers_state.vm_clock_seqlock, |
395 | &timers_state.vm_clock_lock); | |
946fb27c | 396 | if (!timers_state.cpu_ticks_enabled) { |
4a7428c5 | 397 | timers_state.cpu_ticks_offset -= cpu_get_host_ticks(); |
946fb27c PB |
398 | timers_state.cpu_clock_offset -= get_clock(); |
399 | timers_state.cpu_ticks_enabled = 1; | |
400 | } | |
94377115 PB |
401 | seqlock_write_unlock(&timers_state.vm_clock_seqlock, |
402 | &timers_state.vm_clock_lock); | |
946fb27c PB |
403 | } |
404 | ||
405 | /* disable cpu_get_ticks() : the clock is stopped. You must not call | |
cb365646 | 406 | * cpu_get_ticks() after that. |
3224e878 | 407 | * Caller must hold BQL which serves as mutex for vm_clock_seqlock. |
cb365646 | 408 | */ |
946fb27c PB |
409 | void cpu_disable_ticks(void) |
410 | { | |
94377115 PB |
411 | seqlock_write_lock(&timers_state.vm_clock_seqlock, |
412 | &timers_state.vm_clock_lock); | |
946fb27c | 413 | if (timers_state.cpu_ticks_enabled) { |
4a7428c5 | 414 | timers_state.cpu_ticks_offset += cpu_get_host_ticks(); |
cb365646 | 415 | timers_state.cpu_clock_offset = cpu_get_clock_locked(); |
946fb27c PB |
416 | timers_state.cpu_ticks_enabled = 0; |
417 | } | |
94377115 PB |
418 | seqlock_write_unlock(&timers_state.vm_clock_seqlock, |
419 | &timers_state.vm_clock_lock); | |
946fb27c PB |
420 | } |
421 | ||
422 | /* Correlation between real and virtual time is always going to be | |
423 | fairly approximate, so ignore small variation. | |
424 | When the guest is idle real and virtual time will be aligned in | |
425 | the IO wait loop. */ | |
73bcb24d | 426 | #define ICOUNT_WOBBLE (NANOSECONDS_PER_SECOND / 10) |
946fb27c PB |
427 | |
428 | static void icount_adjust(void) | |
429 | { | |
430 | int64_t cur_time; | |
431 | int64_t cur_icount; | |
432 | int64_t delta; | |
a3270e19 PB |
433 | |
434 | /* Protected by TimersState mutex. */ | |
946fb27c | 435 | static int64_t last_delta; |
468cc7cf | 436 | |
946fb27c PB |
437 | /* If the VM is not running, then do nothing. */ |
438 | if (!runstate_is_running()) { | |
439 | return; | |
440 | } | |
468cc7cf | 441 | |
94377115 PB |
442 | seqlock_write_lock(&timers_state.vm_clock_seqlock, |
443 | &timers_state.vm_clock_lock); | |
17a15f1b PB |
444 | cur_time = cpu_get_clock_locked(); |
445 | cur_icount = cpu_get_icount_locked(); | |
468cc7cf | 446 | |
946fb27c PB |
447 | delta = cur_icount - cur_time; |
448 | /* FIXME: This is a very crude algorithm, somewhat prone to oscillation. */ | |
449 | if (delta > 0 | |
450 | && last_delta + ICOUNT_WOBBLE < delta * 2 | |
c1ff073c | 451 | && timers_state.icount_time_shift > 0) { |
946fb27c | 452 | /* The guest is getting too far ahead. Slow time down. */ |
c1ff073c PB |
453 | atomic_set(&timers_state.icount_time_shift, |
454 | timers_state.icount_time_shift - 1); | |
946fb27c PB |
455 | } |
456 | if (delta < 0 | |
457 | && last_delta - ICOUNT_WOBBLE > delta * 2 | |
c1ff073c | 458 | && timers_state.icount_time_shift < MAX_ICOUNT_SHIFT) { |
946fb27c | 459 | /* The guest is getting too far behind. Speed time up. */ |
c1ff073c PB |
460 | atomic_set(&timers_state.icount_time_shift, |
461 | timers_state.icount_time_shift + 1); | |
946fb27c PB |
462 | } |
463 | last_delta = delta; | |
c97595d1 EC |
464 | atomic_set_i64(&timers_state.qemu_icount_bias, |
465 | cur_icount - (timers_state.qemu_icount | |
466 | << timers_state.icount_time_shift)); | |
94377115 PB |
467 | seqlock_write_unlock(&timers_state.vm_clock_seqlock, |
468 | &timers_state.vm_clock_lock); | |
946fb27c PB |
469 | } |
470 | ||
471 | static void icount_adjust_rt(void *opaque) | |
472 | { | |
b39e3f34 | 473 | timer_mod(timers_state.icount_rt_timer, |
1979b908 | 474 | qemu_clock_get_ms(QEMU_CLOCK_VIRTUAL_RT) + 1000); |
946fb27c PB |
475 | icount_adjust(); |
476 | } | |
477 | ||
478 | static void icount_adjust_vm(void *opaque) | |
479 | { | |
b39e3f34 | 480 | timer_mod(timers_state.icount_vm_timer, |
40daca54 | 481 | qemu_clock_get_ns(QEMU_CLOCK_VIRTUAL) + |
73bcb24d | 482 | NANOSECONDS_PER_SECOND / 10); |
946fb27c PB |
483 | icount_adjust(); |
484 | } | |
485 | ||
486 | static int64_t qemu_icount_round(int64_t count) | |
487 | { | |
c1ff073c PB |
488 | int shift = atomic_read(&timers_state.icount_time_shift); |
489 | return (count + (1 << shift) - 1) >> shift; | |
946fb27c PB |
490 | } |
491 | ||
efab87cf | 492 | static void icount_warp_rt(void) |
946fb27c | 493 | { |
ccffff48 AB |
494 | unsigned seq; |
495 | int64_t warp_start; | |
496 | ||
17a15f1b PB |
497 | /* The icount_warp_timer is rescheduled soon after vm_clock_warp_start |
498 | * changes from -1 to another value, so the race here is okay. | |
499 | */ | |
ccffff48 AB |
500 | do { |
501 | seq = seqlock_read_begin(&timers_state.vm_clock_seqlock); | |
b39e3f34 | 502 | warp_start = timers_state.vm_clock_warp_start; |
ccffff48 AB |
503 | } while (seqlock_read_retry(&timers_state.vm_clock_seqlock, seq)); |
504 | ||
505 | if (warp_start == -1) { | |
946fb27c PB |
506 | return; |
507 | } | |
508 | ||
94377115 PB |
509 | seqlock_write_lock(&timers_state.vm_clock_seqlock, |
510 | &timers_state.vm_clock_lock); | |
946fb27c | 511 | if (runstate_is_running()) { |
8eda206e PD |
512 | int64_t clock = REPLAY_CLOCK(REPLAY_CLOCK_VIRTUAL_RT, |
513 | cpu_get_clock_locked()); | |
8ed961d9 PB |
514 | int64_t warp_delta; |
515 | ||
b39e3f34 | 516 | warp_delta = clock - timers_state.vm_clock_warp_start; |
8ed961d9 | 517 | if (use_icount == 2) { |
946fb27c | 518 | /* |
40daca54 | 519 | * In adaptive mode, do not let QEMU_CLOCK_VIRTUAL run too |
946fb27c PB |
520 | * far ahead of real time. |
521 | */ | |
17a15f1b | 522 | int64_t cur_icount = cpu_get_icount_locked(); |
bf2a7ddb | 523 | int64_t delta = clock - cur_icount; |
8ed961d9 | 524 | warp_delta = MIN(warp_delta, delta); |
946fb27c | 525 | } |
c97595d1 EC |
526 | atomic_set_i64(&timers_state.qemu_icount_bias, |
527 | timers_state.qemu_icount_bias + warp_delta); | |
946fb27c | 528 | } |
b39e3f34 | 529 | timers_state.vm_clock_warp_start = -1; |
94377115 PB |
530 | seqlock_write_unlock(&timers_state.vm_clock_seqlock, |
531 | &timers_state.vm_clock_lock); | |
8ed961d9 PB |
532 | |
533 | if (qemu_clock_expired(QEMU_CLOCK_VIRTUAL)) { | |
534 | qemu_clock_notify(QEMU_CLOCK_VIRTUAL); | |
535 | } | |
946fb27c PB |
536 | } |
537 | ||
e76d1798 | 538 | static void icount_timer_cb(void *opaque) |
efab87cf | 539 | { |
e76d1798 PD |
540 | /* No need for a checkpoint because the timer already synchronizes |
541 | * with CHECKPOINT_CLOCK_VIRTUAL_RT. | |
542 | */ | |
543 | icount_warp_rt(); | |
efab87cf PD |
544 | } |
545 | ||
8156be56 PB |
546 | void qtest_clock_warp(int64_t dest) |
547 | { | |
40daca54 | 548 | int64_t clock = qemu_clock_get_ns(QEMU_CLOCK_VIRTUAL); |
efef88b3 | 549 | AioContext *aio_context; |
8156be56 | 550 | assert(qtest_enabled()); |
efef88b3 | 551 | aio_context = qemu_get_aio_context(); |
8156be56 | 552 | while (clock < dest) { |
40daca54 | 553 | int64_t deadline = qemu_clock_deadline_ns_all(QEMU_CLOCK_VIRTUAL); |
c9299e2f | 554 | int64_t warp = qemu_soonest_timeout(dest - clock, deadline); |
efef88b3 | 555 | |
94377115 PB |
556 | seqlock_write_lock(&timers_state.vm_clock_seqlock, |
557 | &timers_state.vm_clock_lock); | |
c97595d1 EC |
558 | atomic_set_i64(&timers_state.qemu_icount_bias, |
559 | timers_state.qemu_icount_bias + warp); | |
94377115 PB |
560 | seqlock_write_unlock(&timers_state.vm_clock_seqlock, |
561 | &timers_state.vm_clock_lock); | |
17a15f1b | 562 | |
40daca54 | 563 | qemu_clock_run_timers(QEMU_CLOCK_VIRTUAL); |
efef88b3 | 564 | timerlist_run_timers(aio_context->tlg.tl[QEMU_CLOCK_VIRTUAL]); |
40daca54 | 565 | clock = qemu_clock_get_ns(QEMU_CLOCK_VIRTUAL); |
8156be56 | 566 | } |
40daca54 | 567 | qemu_clock_notify(QEMU_CLOCK_VIRTUAL); |
8156be56 PB |
568 | } |
569 | ||
e76d1798 | 570 | void qemu_start_warp_timer(void) |
946fb27c | 571 | { |
ce78d18c | 572 | int64_t clock; |
946fb27c PB |
573 | int64_t deadline; |
574 | ||
e76d1798 | 575 | if (!use_icount) { |
946fb27c PB |
576 | return; |
577 | } | |
578 | ||
8bd7f71d PD |
579 | /* Nothing to do if the VM is stopped: QEMU_CLOCK_VIRTUAL timers |
580 | * do not fire, so computing the deadline does not make sense. | |
581 | */ | |
582 | if (!runstate_is_running()) { | |
583 | return; | |
584 | } | |
585 | ||
0c08185f PD |
586 | if (replay_mode != REPLAY_MODE_PLAY) { |
587 | if (!all_cpu_threads_idle()) { | |
588 | return; | |
589 | } | |
8bd7f71d | 590 | |
0c08185f PD |
591 | if (qtest_enabled()) { |
592 | /* When testing, qtest commands advance icount. */ | |
593 | return; | |
594 | } | |
946fb27c | 595 | |
0c08185f PD |
596 | replay_checkpoint(CHECKPOINT_CLOCK_WARP_START); |
597 | } else { | |
598 | /* warp clock deterministically in record/replay mode */ | |
599 | if (!replay_checkpoint(CHECKPOINT_CLOCK_WARP_START)) { | |
600 | /* vCPU is sleeping and warp can't be started. | |
601 | It is probably a race condition: notification sent | |
602 | to vCPU was processed in advance and vCPU went to sleep. | |
603 | Therefore we have to wake it up for doing someting. */ | |
604 | if (replay_has_checkpoint()) { | |
605 | qemu_clock_notify(QEMU_CLOCK_VIRTUAL); | |
606 | } | |
607 | return; | |
608 | } | |
8156be56 PB |
609 | } |
610 | ||
ac70aafc | 611 | /* We want to use the earliest deadline from ALL vm_clocks */ |
bf2a7ddb | 612 | clock = qemu_clock_get_ns(QEMU_CLOCK_VIRTUAL_RT); |
40daca54 | 613 | deadline = qemu_clock_deadline_ns_all(QEMU_CLOCK_VIRTUAL); |
ce78d18c | 614 | if (deadline < 0) { |
d7a0f71d VC |
615 | static bool notified; |
616 | if (!icount_sleep && !notified) { | |
3dc6f869 | 617 | warn_report("icount sleep disabled and no active timers"); |
d7a0f71d VC |
618 | notified = true; |
619 | } | |
ce78d18c | 620 | return; |
ac70aafc AB |
621 | } |
622 | ||
946fb27c PB |
623 | if (deadline > 0) { |
624 | /* | |
40daca54 | 625 | * Ensure QEMU_CLOCK_VIRTUAL proceeds even when the virtual CPU goes to |
946fb27c PB |
626 | * sleep. Otherwise, the CPU might be waiting for a future timer |
627 | * interrupt to wake it up, but the interrupt never comes because | |
628 | * the vCPU isn't running any insns and thus doesn't advance the | |
40daca54 | 629 | * QEMU_CLOCK_VIRTUAL. |
946fb27c | 630 | */ |
5045e9d9 VC |
631 | if (!icount_sleep) { |
632 | /* | |
633 | * We never let VCPUs sleep in no sleep icount mode. | |
634 | * If there is a pending QEMU_CLOCK_VIRTUAL timer we just advance | |
635 | * to the next QEMU_CLOCK_VIRTUAL event and notify it. | |
636 | * It is useful when we want a deterministic execution time, | |
637 | * isolated from host latencies. | |
638 | */ | |
94377115 PB |
639 | seqlock_write_lock(&timers_state.vm_clock_seqlock, |
640 | &timers_state.vm_clock_lock); | |
c97595d1 EC |
641 | atomic_set_i64(&timers_state.qemu_icount_bias, |
642 | timers_state.qemu_icount_bias + deadline); | |
94377115 PB |
643 | seqlock_write_unlock(&timers_state.vm_clock_seqlock, |
644 | &timers_state.vm_clock_lock); | |
5045e9d9 VC |
645 | qemu_clock_notify(QEMU_CLOCK_VIRTUAL); |
646 | } else { | |
647 | /* | |
648 | * We do stop VCPUs and only advance QEMU_CLOCK_VIRTUAL after some | |
649 | * "real" time, (related to the time left until the next event) has | |
650 | * passed. The QEMU_CLOCK_VIRTUAL_RT clock will do this. | |
651 | * This avoids that the warps are visible externally; for example, | |
652 | * you will not be sending network packets continuously instead of | |
653 | * every 100ms. | |
654 | */ | |
94377115 PB |
655 | seqlock_write_lock(&timers_state.vm_clock_seqlock, |
656 | &timers_state.vm_clock_lock); | |
b39e3f34 PD |
657 | if (timers_state.vm_clock_warp_start == -1 |
658 | || timers_state.vm_clock_warp_start > clock) { | |
659 | timers_state.vm_clock_warp_start = clock; | |
5045e9d9 | 660 | } |
94377115 PB |
661 | seqlock_write_unlock(&timers_state.vm_clock_seqlock, |
662 | &timers_state.vm_clock_lock); | |
b39e3f34 PD |
663 | timer_mod_anticipate(timers_state.icount_warp_timer, |
664 | clock + deadline); | |
ce78d18c | 665 | } |
ac70aafc | 666 | } else if (deadline == 0) { |
40daca54 | 667 | qemu_clock_notify(QEMU_CLOCK_VIRTUAL); |
946fb27c PB |
668 | } |
669 | } | |
670 | ||
e76d1798 PD |
671 | static void qemu_account_warp_timer(void) |
672 | { | |
673 | if (!use_icount || !icount_sleep) { | |
674 | return; | |
675 | } | |
676 | ||
677 | /* Nothing to do if the VM is stopped: QEMU_CLOCK_VIRTUAL timers | |
678 | * do not fire, so computing the deadline does not make sense. | |
679 | */ | |
680 | if (!runstate_is_running()) { | |
681 | return; | |
682 | } | |
683 | ||
684 | /* warp clock deterministically in record/replay mode */ | |
685 | if (!replay_checkpoint(CHECKPOINT_CLOCK_WARP_ACCOUNT)) { | |
686 | return; | |
687 | } | |
688 | ||
b39e3f34 | 689 | timer_del(timers_state.icount_warp_timer); |
e76d1798 PD |
690 | icount_warp_rt(); |
691 | } | |
692 | ||
d09eae37 FK |
693 | static bool icount_state_needed(void *opaque) |
694 | { | |
695 | return use_icount; | |
696 | } | |
697 | ||
b39e3f34 PD |
698 | static bool warp_timer_state_needed(void *opaque) |
699 | { | |
700 | TimersState *s = opaque; | |
701 | return s->icount_warp_timer != NULL; | |
702 | } | |
703 | ||
704 | static bool adjust_timers_state_needed(void *opaque) | |
705 | { | |
706 | TimersState *s = opaque; | |
707 | return s->icount_rt_timer != NULL; | |
708 | } | |
709 | ||
710 | /* | |
711 | * Subsection for warp timer migration is optional, because may not be created | |
712 | */ | |
713 | static const VMStateDescription icount_vmstate_warp_timer = { | |
714 | .name = "timer/icount/warp_timer", | |
715 | .version_id = 1, | |
716 | .minimum_version_id = 1, | |
717 | .needed = warp_timer_state_needed, | |
718 | .fields = (VMStateField[]) { | |
719 | VMSTATE_INT64(vm_clock_warp_start, TimersState), | |
720 | VMSTATE_TIMER_PTR(icount_warp_timer, TimersState), | |
721 | VMSTATE_END_OF_LIST() | |
722 | } | |
723 | }; | |
724 | ||
725 | static const VMStateDescription icount_vmstate_adjust_timers = { | |
726 | .name = "timer/icount/timers", | |
727 | .version_id = 1, | |
728 | .minimum_version_id = 1, | |
729 | .needed = adjust_timers_state_needed, | |
730 | .fields = (VMStateField[]) { | |
731 | VMSTATE_TIMER_PTR(icount_rt_timer, TimersState), | |
732 | VMSTATE_TIMER_PTR(icount_vm_timer, TimersState), | |
733 | VMSTATE_END_OF_LIST() | |
734 | } | |
735 | }; | |
736 | ||
d09eae37 FK |
737 | /* |
738 | * This is a subsection for icount migration. | |
739 | */ | |
740 | static const VMStateDescription icount_vmstate_timers = { | |
741 | .name = "timer/icount", | |
742 | .version_id = 1, | |
743 | .minimum_version_id = 1, | |
5cd8cada | 744 | .needed = icount_state_needed, |
d09eae37 FK |
745 | .fields = (VMStateField[]) { |
746 | VMSTATE_INT64(qemu_icount_bias, TimersState), | |
747 | VMSTATE_INT64(qemu_icount, TimersState), | |
748 | VMSTATE_END_OF_LIST() | |
b39e3f34 PD |
749 | }, |
750 | .subsections = (const VMStateDescription*[]) { | |
751 | &icount_vmstate_warp_timer, | |
752 | &icount_vmstate_adjust_timers, | |
753 | NULL | |
d09eae37 FK |
754 | } |
755 | }; | |
756 | ||
946fb27c PB |
757 | static const VMStateDescription vmstate_timers = { |
758 | .name = "timer", | |
759 | .version_id = 2, | |
760 | .minimum_version_id = 1, | |
35d08458 | 761 | .fields = (VMStateField[]) { |
946fb27c | 762 | VMSTATE_INT64(cpu_ticks_offset, TimersState), |
c1ff073c | 763 | VMSTATE_UNUSED(8), |
946fb27c PB |
764 | VMSTATE_INT64_V(cpu_clock_offset, TimersState, 2), |
765 | VMSTATE_END_OF_LIST() | |
d09eae37 | 766 | }, |
5cd8cada JQ |
767 | .subsections = (const VMStateDescription*[]) { |
768 | &icount_vmstate_timers, | |
769 | NULL | |
946fb27c PB |
770 | } |
771 | }; | |
772 | ||
14e6fe12 | 773 | static void cpu_throttle_thread(CPUState *cpu, run_on_cpu_data opaque) |
2adcc85d | 774 | { |
2adcc85d JH |
775 | double pct; |
776 | double throttle_ratio; | |
777 | long sleeptime_ns; | |
778 | ||
779 | if (!cpu_throttle_get_percentage()) { | |
780 | return; | |
781 | } | |
782 | ||
783 | pct = (double)cpu_throttle_get_percentage()/100; | |
784 | throttle_ratio = pct / (1 - pct); | |
785 | sleeptime_ns = (long)(throttle_ratio * CPU_THROTTLE_TIMESLICE_NS); | |
786 | ||
787 | qemu_mutex_unlock_iothread(); | |
2adcc85d JH |
788 | g_usleep(sleeptime_ns / 1000); /* Convert ns to us for usleep call */ |
789 | qemu_mutex_lock_iothread(); | |
90bb0c04 | 790 | atomic_set(&cpu->throttle_thread_scheduled, 0); |
2adcc85d JH |
791 | } |
792 | ||
793 | static void cpu_throttle_timer_tick(void *opaque) | |
794 | { | |
795 | CPUState *cpu; | |
796 | double pct; | |
797 | ||
798 | /* Stop the timer if needed */ | |
799 | if (!cpu_throttle_get_percentage()) { | |
800 | return; | |
801 | } | |
802 | CPU_FOREACH(cpu) { | |
803 | if (!atomic_xchg(&cpu->throttle_thread_scheduled, 1)) { | |
14e6fe12 PB |
804 | async_run_on_cpu(cpu, cpu_throttle_thread, |
805 | RUN_ON_CPU_NULL); | |
2adcc85d JH |
806 | } |
807 | } | |
808 | ||
809 | pct = (double)cpu_throttle_get_percentage()/100; | |
810 | timer_mod(throttle_timer, qemu_clock_get_ns(QEMU_CLOCK_VIRTUAL_RT) + | |
811 | CPU_THROTTLE_TIMESLICE_NS / (1-pct)); | |
812 | } | |
813 | ||
814 | void cpu_throttle_set(int new_throttle_pct) | |
815 | { | |
816 | /* Ensure throttle percentage is within valid range */ | |
817 | new_throttle_pct = MIN(new_throttle_pct, CPU_THROTTLE_PCT_MAX); | |
818 | new_throttle_pct = MAX(new_throttle_pct, CPU_THROTTLE_PCT_MIN); | |
819 | ||
820 | atomic_set(&throttle_percentage, new_throttle_pct); | |
821 | ||
822 | timer_mod(throttle_timer, qemu_clock_get_ns(QEMU_CLOCK_VIRTUAL_RT) + | |
823 | CPU_THROTTLE_TIMESLICE_NS); | |
824 | } | |
825 | ||
826 | void cpu_throttle_stop(void) | |
827 | { | |
828 | atomic_set(&throttle_percentage, 0); | |
829 | } | |
830 | ||
831 | bool cpu_throttle_active(void) | |
832 | { | |
833 | return (cpu_throttle_get_percentage() != 0); | |
834 | } | |
835 | ||
836 | int cpu_throttle_get_percentage(void) | |
837 | { | |
838 | return atomic_read(&throttle_percentage); | |
839 | } | |
840 | ||
4603ea01 PD |
841 | void cpu_ticks_init(void) |
842 | { | |
ccdb3c1f | 843 | seqlock_init(&timers_state.vm_clock_seqlock); |
87a09cdc | 844 | qemu_spin_init(&timers_state.vm_clock_lock); |
4603ea01 | 845 | vmstate_register(NULL, 0, &vmstate_timers, &timers_state); |
2adcc85d JH |
846 | throttle_timer = timer_new_ns(QEMU_CLOCK_VIRTUAL_RT, |
847 | cpu_throttle_timer_tick, NULL); | |
4603ea01 PD |
848 | } |
849 | ||
1ad9580b | 850 | void configure_icount(QemuOpts *opts, Error **errp) |
946fb27c | 851 | { |
1ad9580b | 852 | const char *option; |
a8bfac37 | 853 | char *rem_str = NULL; |
1ad9580b | 854 | |
1ad9580b | 855 | option = qemu_opt_get(opts, "shift"); |
946fb27c | 856 | if (!option) { |
a8bfac37 ST |
857 | if (qemu_opt_get(opts, "align") != NULL) { |
858 | error_setg(errp, "Please specify shift option when using align"); | |
859 | } | |
946fb27c PB |
860 | return; |
861 | } | |
f1f4b57e VC |
862 | |
863 | icount_sleep = qemu_opt_get_bool(opts, "sleep", true); | |
5045e9d9 | 864 | if (icount_sleep) { |
b39e3f34 | 865 | timers_state.icount_warp_timer = timer_new_ns(QEMU_CLOCK_VIRTUAL_RT, |
e76d1798 | 866 | icount_timer_cb, NULL); |
5045e9d9 | 867 | } |
f1f4b57e | 868 | |
a8bfac37 | 869 | icount_align_option = qemu_opt_get_bool(opts, "align", false); |
f1f4b57e VC |
870 | |
871 | if (icount_align_option && !icount_sleep) { | |
778d9f9b | 872 | error_setg(errp, "align=on and sleep=off are incompatible"); |
f1f4b57e | 873 | } |
946fb27c | 874 | if (strcmp(option, "auto") != 0) { |
a8bfac37 | 875 | errno = 0; |
c1ff073c | 876 | timers_state.icount_time_shift = strtol(option, &rem_str, 0); |
a8bfac37 ST |
877 | if (errno != 0 || *rem_str != '\0' || !strlen(option)) { |
878 | error_setg(errp, "icount: Invalid shift value"); | |
879 | } | |
946fb27c PB |
880 | use_icount = 1; |
881 | return; | |
a8bfac37 ST |
882 | } else if (icount_align_option) { |
883 | error_setg(errp, "shift=auto and align=on are incompatible"); | |
f1f4b57e | 884 | } else if (!icount_sleep) { |
778d9f9b | 885 | error_setg(errp, "shift=auto and sleep=off are incompatible"); |
946fb27c PB |
886 | } |
887 | ||
888 | use_icount = 2; | |
889 | ||
890 | /* 125MIPS seems a reasonable initial guess at the guest speed. | |
891 | It will be corrected fairly quickly anyway. */ | |
c1ff073c | 892 | timers_state.icount_time_shift = 3; |
946fb27c PB |
893 | |
894 | /* Have both realtime and virtual time triggers for speed adjustment. | |
895 | The realtime trigger catches emulated time passing too slowly, | |
896 | the virtual time trigger catches emulated time passing too fast. | |
897 | Realtime triggers occur even when idle, so use them less frequently | |
898 | than VM triggers. */ | |
b39e3f34 PD |
899 | timers_state.vm_clock_warp_start = -1; |
900 | timers_state.icount_rt_timer = timer_new_ms(QEMU_CLOCK_VIRTUAL_RT, | |
bf2a7ddb | 901 | icount_adjust_rt, NULL); |
b39e3f34 | 902 | timer_mod(timers_state.icount_rt_timer, |
bf2a7ddb | 903 | qemu_clock_get_ms(QEMU_CLOCK_VIRTUAL_RT) + 1000); |
b39e3f34 | 904 | timers_state.icount_vm_timer = timer_new_ns(QEMU_CLOCK_VIRTUAL, |
40daca54 | 905 | icount_adjust_vm, NULL); |
b39e3f34 | 906 | timer_mod(timers_state.icount_vm_timer, |
40daca54 | 907 | qemu_clock_get_ns(QEMU_CLOCK_VIRTUAL) + |
73bcb24d | 908 | NANOSECONDS_PER_SECOND / 10); |
946fb27c PB |
909 | } |
910 | ||
6546706d AB |
911 | /***********************************************************/ |
912 | /* TCG vCPU kick timer | |
913 | * | |
914 | * The kick timer is responsible for moving single threaded vCPU | |
915 | * emulation on to the next vCPU. If more than one vCPU is running a | |
916 | * timer event with force a cpu->exit so the next vCPU can get | |
917 | * scheduled. | |
918 | * | |
919 | * The timer is removed if all vCPUs are idle and restarted again once | |
920 | * idleness is complete. | |
921 | */ | |
922 | ||
923 | static QEMUTimer *tcg_kick_vcpu_timer; | |
791158d9 | 924 | static CPUState *tcg_current_rr_cpu; |
6546706d AB |
925 | |
926 | #define TCG_KICK_PERIOD (NANOSECONDS_PER_SECOND / 10) | |
927 | ||
928 | static inline int64_t qemu_tcg_next_kick(void) | |
929 | { | |
930 | return qemu_clock_get_ns(QEMU_CLOCK_VIRTUAL) + TCG_KICK_PERIOD; | |
931 | } | |
932 | ||
791158d9 AB |
933 | /* Kick the currently round-robin scheduled vCPU */ |
934 | static void qemu_cpu_kick_rr_cpu(void) | |
935 | { | |
936 | CPUState *cpu; | |
791158d9 AB |
937 | do { |
938 | cpu = atomic_mb_read(&tcg_current_rr_cpu); | |
939 | if (cpu) { | |
940 | cpu_exit(cpu); | |
941 | } | |
942 | } while (cpu != atomic_mb_read(&tcg_current_rr_cpu)); | |
943 | } | |
944 | ||
6b8f0187 PB |
945 | static void do_nothing(CPUState *cpu, run_on_cpu_data unused) |
946 | { | |
947 | } | |
948 | ||
3f53bc61 PB |
949 | void qemu_timer_notify_cb(void *opaque, QEMUClockType type) |
950 | { | |
6b8f0187 PB |
951 | if (!use_icount || type != QEMU_CLOCK_VIRTUAL) { |
952 | qemu_notify_event(); | |
953 | return; | |
954 | } | |
955 | ||
c52e7132 PM |
956 | if (qemu_in_vcpu_thread()) { |
957 | /* A CPU is currently running; kick it back out to the | |
958 | * tcg_cpu_exec() loop so it will recalculate its | |
959 | * icount deadline immediately. | |
960 | */ | |
961 | qemu_cpu_kick(current_cpu); | |
962 | } else if (first_cpu) { | |
6b8f0187 PB |
963 | /* qemu_cpu_kick is not enough to kick a halted CPU out of |
964 | * qemu_tcg_wait_io_event. async_run_on_cpu, instead, | |
965 | * causes cpu_thread_is_idle to return false. This way, | |
966 | * handle_icount_deadline can run. | |
c52e7132 PM |
967 | * If we have no CPUs at all for some reason, we don't |
968 | * need to do anything. | |
6b8f0187 PB |
969 | */ |
970 | async_run_on_cpu(first_cpu, do_nothing, RUN_ON_CPU_NULL); | |
971 | } | |
3f53bc61 PB |
972 | } |
973 | ||
6546706d AB |
974 | static void kick_tcg_thread(void *opaque) |
975 | { | |
976 | timer_mod(tcg_kick_vcpu_timer, qemu_tcg_next_kick()); | |
791158d9 | 977 | qemu_cpu_kick_rr_cpu(); |
6546706d AB |
978 | } |
979 | ||
980 | static void start_tcg_kick_timer(void) | |
981 | { | |
db08b687 PB |
982 | assert(!mttcg_enabled); |
983 | if (!tcg_kick_vcpu_timer && CPU_NEXT(first_cpu)) { | |
6546706d AB |
984 | tcg_kick_vcpu_timer = timer_new_ns(QEMU_CLOCK_VIRTUAL, |
985 | kick_tcg_thread, NULL); | |
1926ab27 AB |
986 | } |
987 | if (tcg_kick_vcpu_timer && !timer_pending(tcg_kick_vcpu_timer)) { | |
6546706d AB |
988 | timer_mod(tcg_kick_vcpu_timer, qemu_tcg_next_kick()); |
989 | } | |
990 | } | |
991 | ||
992 | static void stop_tcg_kick_timer(void) | |
993 | { | |
db08b687 | 994 | assert(!mttcg_enabled); |
1926ab27 | 995 | if (tcg_kick_vcpu_timer && timer_pending(tcg_kick_vcpu_timer)) { |
6546706d | 996 | timer_del(tcg_kick_vcpu_timer); |
6546706d AB |
997 | } |
998 | } | |
999 | ||
296af7c9 BS |
1000 | /***********************************************************/ |
1001 | void hw_error(const char *fmt, ...) | |
1002 | { | |
1003 | va_list ap; | |
55e5c285 | 1004 | CPUState *cpu; |
296af7c9 BS |
1005 | |
1006 | va_start(ap, fmt); | |
1007 | fprintf(stderr, "qemu: hardware error: "); | |
1008 | vfprintf(stderr, fmt, ap); | |
1009 | fprintf(stderr, "\n"); | |
bdc44640 | 1010 | CPU_FOREACH(cpu) { |
55e5c285 | 1011 | fprintf(stderr, "CPU #%d:\n", cpu->cpu_index); |
878096ee | 1012 | cpu_dump_state(cpu, stderr, fprintf, CPU_DUMP_FPU); |
296af7c9 BS |
1013 | } |
1014 | va_end(ap); | |
1015 | abort(); | |
1016 | } | |
1017 | ||
1018 | void cpu_synchronize_all_states(void) | |
1019 | { | |
182735ef | 1020 | CPUState *cpu; |
296af7c9 | 1021 | |
bdc44640 | 1022 | CPU_FOREACH(cpu) { |
182735ef | 1023 | cpu_synchronize_state(cpu); |
c97d6d2c SAGDR |
1024 | /* TODO: move to cpu_synchronize_state() */ |
1025 | if (hvf_enabled()) { | |
1026 | hvf_cpu_synchronize_state(cpu); | |
1027 | } | |
296af7c9 BS |
1028 | } |
1029 | } | |
1030 | ||
1031 | void cpu_synchronize_all_post_reset(void) | |
1032 | { | |
182735ef | 1033 | CPUState *cpu; |
296af7c9 | 1034 | |
bdc44640 | 1035 | CPU_FOREACH(cpu) { |
182735ef | 1036 | cpu_synchronize_post_reset(cpu); |
c97d6d2c SAGDR |
1037 | /* TODO: move to cpu_synchronize_post_reset() */ |
1038 | if (hvf_enabled()) { | |
1039 | hvf_cpu_synchronize_post_reset(cpu); | |
1040 | } | |
296af7c9 BS |
1041 | } |
1042 | } | |
1043 | ||
1044 | void cpu_synchronize_all_post_init(void) | |
1045 | { | |
182735ef | 1046 | CPUState *cpu; |
296af7c9 | 1047 | |
bdc44640 | 1048 | CPU_FOREACH(cpu) { |
182735ef | 1049 | cpu_synchronize_post_init(cpu); |
c97d6d2c SAGDR |
1050 | /* TODO: move to cpu_synchronize_post_init() */ |
1051 | if (hvf_enabled()) { | |
1052 | hvf_cpu_synchronize_post_init(cpu); | |
1053 | } | |
296af7c9 BS |
1054 | } |
1055 | } | |
1056 | ||
75e972da DG |
1057 | void cpu_synchronize_all_pre_loadvm(void) |
1058 | { | |
1059 | CPUState *cpu; | |
1060 | ||
1061 | CPU_FOREACH(cpu) { | |
1062 | cpu_synchronize_pre_loadvm(cpu); | |
1063 | } | |
1064 | } | |
1065 | ||
4486e89c | 1066 | static int do_vm_stop(RunState state, bool send_stop) |
296af7c9 | 1067 | { |
56983463 KW |
1068 | int ret = 0; |
1069 | ||
1354869c | 1070 | if (runstate_is_running()) { |
296af7c9 | 1071 | cpu_disable_ticks(); |
296af7c9 | 1072 | pause_all_vcpus(); |
f5bbfba1 | 1073 | runstate_set(state); |
1dfb4dd9 | 1074 | vm_state_notify(0, state); |
4486e89c | 1075 | if (send_stop) { |
3ab72385 | 1076 | qapi_event_send_stop(); |
4486e89c | 1077 | } |
296af7c9 | 1078 | } |
56983463 | 1079 | |
594a45ce | 1080 | bdrv_drain_all(); |
6d0ceb80 | 1081 | replay_disable_events(); |
22af08ea | 1082 | ret = bdrv_flush_all(); |
594a45ce | 1083 | |
56983463 | 1084 | return ret; |
296af7c9 BS |
1085 | } |
1086 | ||
4486e89c SH |
1087 | /* Special vm_stop() variant for terminating the process. Historically clients |
1088 | * did not expect a QMP STOP event and so we need to retain compatibility. | |
1089 | */ | |
1090 | int vm_shutdown(void) | |
1091 | { | |
1092 | return do_vm_stop(RUN_STATE_SHUTDOWN, false); | |
1093 | } | |
1094 | ||
a1fcaa73 | 1095 | static bool cpu_can_run(CPUState *cpu) |
296af7c9 | 1096 | { |
4fdeee7c | 1097 | if (cpu->stop) { |
a1fcaa73 | 1098 | return false; |
0ab07c62 | 1099 | } |
321bc0b2 | 1100 | if (cpu_is_stopped(cpu)) { |
a1fcaa73 | 1101 | return false; |
0ab07c62 | 1102 | } |
a1fcaa73 | 1103 | return true; |
296af7c9 BS |
1104 | } |
1105 | ||
91325046 | 1106 | static void cpu_handle_guest_debug(CPUState *cpu) |
83f338f7 | 1107 | { |
64f6b346 | 1108 | gdb_set_stop_cpu(cpu); |
8cf71710 | 1109 | qemu_system_debug_request(); |
f324e766 | 1110 | cpu->stopped = true; |
3c638d06 JK |
1111 | } |
1112 | ||
6d9cb73c JK |
1113 | #ifdef CONFIG_LINUX |
1114 | static void sigbus_reraise(void) | |
1115 | { | |
1116 | sigset_t set; | |
1117 | struct sigaction action; | |
1118 | ||
1119 | memset(&action, 0, sizeof(action)); | |
1120 | action.sa_handler = SIG_DFL; | |
1121 | if (!sigaction(SIGBUS, &action, NULL)) { | |
1122 | raise(SIGBUS); | |
1123 | sigemptyset(&set); | |
1124 | sigaddset(&set, SIGBUS); | |
a2d1761d | 1125 | pthread_sigmask(SIG_UNBLOCK, &set, NULL); |
6d9cb73c JK |
1126 | } |
1127 | perror("Failed to re-raise SIGBUS!\n"); | |
1128 | abort(); | |
1129 | } | |
1130 | ||
d98d4072 | 1131 | static void sigbus_handler(int n, siginfo_t *siginfo, void *ctx) |
6d9cb73c | 1132 | { |
a16fc07e PB |
1133 | if (siginfo->si_code != BUS_MCEERR_AO && siginfo->si_code != BUS_MCEERR_AR) { |
1134 | sigbus_reraise(); | |
1135 | } | |
1136 | ||
2ae41db2 PB |
1137 | if (current_cpu) { |
1138 | /* Called asynchronously in VCPU thread. */ | |
1139 | if (kvm_on_sigbus_vcpu(current_cpu, siginfo->si_code, siginfo->si_addr)) { | |
1140 | sigbus_reraise(); | |
1141 | } | |
1142 | } else { | |
1143 | /* Called synchronously (via signalfd) in main thread. */ | |
1144 | if (kvm_on_sigbus(siginfo->si_code, siginfo->si_addr)) { | |
1145 | sigbus_reraise(); | |
1146 | } | |
6d9cb73c JK |
1147 | } |
1148 | } | |
1149 | ||
1150 | static void qemu_init_sigbus(void) | |
1151 | { | |
1152 | struct sigaction action; | |
1153 | ||
1154 | memset(&action, 0, sizeof(action)); | |
1155 | action.sa_flags = SA_SIGINFO; | |
d98d4072 | 1156 | action.sa_sigaction = sigbus_handler; |
6d9cb73c JK |
1157 | sigaction(SIGBUS, &action, NULL); |
1158 | ||
1159 | prctl(PR_MCE_KILL, PR_MCE_KILL_SET, PR_MCE_KILL_EARLY, 0, 0); | |
1160 | } | |
6d9cb73c | 1161 | #else /* !CONFIG_LINUX */ |
6d9cb73c JK |
1162 | static void qemu_init_sigbus(void) |
1163 | { | |
1164 | } | |
a16fc07e | 1165 | #endif /* !CONFIG_LINUX */ |
ff48eb5f | 1166 | |
b2532d88 | 1167 | static QemuMutex qemu_global_mutex; |
296af7c9 BS |
1168 | |
1169 | static QemuThread io_thread; | |
1170 | ||
296af7c9 BS |
1171 | /* cpu creation */ |
1172 | static QemuCond qemu_cpu_cond; | |
1173 | /* system init */ | |
296af7c9 BS |
1174 | static QemuCond qemu_pause_cond; |
1175 | ||
d3b12f5d | 1176 | void qemu_init_cpu_loop(void) |
296af7c9 | 1177 | { |
6d9cb73c | 1178 | qemu_init_sigbus(); |
ed94592b | 1179 | qemu_cond_init(&qemu_cpu_cond); |
ed94592b | 1180 | qemu_cond_init(&qemu_pause_cond); |
296af7c9 | 1181 | qemu_mutex_init(&qemu_global_mutex); |
296af7c9 | 1182 | |
b7680cb6 | 1183 | qemu_thread_get_self(&io_thread); |
296af7c9 BS |
1184 | } |
1185 | ||
14e6fe12 | 1186 | void run_on_cpu(CPUState *cpu, run_on_cpu_func func, run_on_cpu_data data) |
e82bcec2 | 1187 | { |
d148d90e | 1188 | do_run_on_cpu(cpu, func, data, &qemu_global_mutex); |
3c02270d CV |
1189 | } |
1190 | ||
4c055ab5 GZ |
1191 | static void qemu_kvm_destroy_vcpu(CPUState *cpu) |
1192 | { | |
1193 | if (kvm_destroy_vcpu(cpu) < 0) { | |
1194 | error_report("kvm_destroy_vcpu failed"); | |
1195 | exit(EXIT_FAILURE); | |
1196 | } | |
1197 | } | |
1198 | ||
1199 | static void qemu_tcg_destroy_vcpu(CPUState *cpu) | |
1200 | { | |
1201 | } | |
1202 | ||
ebd05fea DH |
1203 | static void qemu_cpu_stop(CPUState *cpu, bool exit) |
1204 | { | |
1205 | g_assert(qemu_cpu_is_self(cpu)); | |
1206 | cpu->stop = false; | |
1207 | cpu->stopped = true; | |
1208 | if (exit) { | |
1209 | cpu_exit(cpu); | |
1210 | } | |
1211 | qemu_cond_broadcast(&qemu_pause_cond); | |
1212 | } | |
1213 | ||
509a0d78 | 1214 | static void qemu_wait_io_event_common(CPUState *cpu) |
296af7c9 | 1215 | { |
37257942 | 1216 | atomic_mb_set(&cpu->thread_kicked, false); |
4fdeee7c | 1217 | if (cpu->stop) { |
ebd05fea | 1218 | qemu_cpu_stop(cpu, false); |
296af7c9 | 1219 | } |
a5403c69 | 1220 | process_queued_cpu_work(cpu); |
37257942 AB |
1221 | } |
1222 | ||
db08b687 | 1223 | static void qemu_tcg_rr_wait_io_event(CPUState *cpu) |
37257942 | 1224 | { |
db08b687 | 1225 | while (all_cpu_threads_idle()) { |
6546706d | 1226 | stop_tcg_kick_timer(); |
d5f8d613 | 1227 | qemu_cond_wait(cpu->halt_cond, &qemu_global_mutex); |
16400322 | 1228 | } |
296af7c9 | 1229 | |
6546706d AB |
1230 | start_tcg_kick_timer(); |
1231 | ||
37257942 | 1232 | qemu_wait_io_event_common(cpu); |
296af7c9 BS |
1233 | } |
1234 | ||
db08b687 | 1235 | static void qemu_wait_io_event(CPUState *cpu) |
296af7c9 | 1236 | { |
a98ae1d8 | 1237 | while (cpu_thread_is_idle(cpu)) { |
f5c121b8 | 1238 | qemu_cond_wait(cpu->halt_cond, &qemu_global_mutex); |
16400322 | 1239 | } |
296af7c9 | 1240 | |
db08b687 PB |
1241 | #ifdef _WIN32 |
1242 | /* Eat dummy APC queued by qemu_cpu_kick_thread. */ | |
1243 | if (!tcg_enabled()) { | |
1244 | SleepEx(0, TRUE); | |
c97d6d2c | 1245 | } |
db08b687 | 1246 | #endif |
c97d6d2c SAGDR |
1247 | qemu_wait_io_event_common(cpu); |
1248 | } | |
1249 | ||
7e97cd88 | 1250 | static void *qemu_kvm_cpu_thread_fn(void *arg) |
296af7c9 | 1251 | { |
48a106bd | 1252 | CPUState *cpu = arg; |
84b4915d | 1253 | int r; |
296af7c9 | 1254 | |
ab28bd23 PB |
1255 | rcu_register_thread(); |
1256 | ||
2e7f7a3c | 1257 | qemu_mutex_lock_iothread(); |
814e612e | 1258 | qemu_thread_get_self(cpu->thread); |
9f09e18a | 1259 | cpu->thread_id = qemu_get_thread_id(); |
626cf8f4 | 1260 | cpu->can_do_io = 1; |
4917cf44 | 1261 | current_cpu = cpu; |
296af7c9 | 1262 | |
504134d2 | 1263 | r = kvm_init_vcpu(cpu); |
84b4915d | 1264 | if (r < 0) { |
493d89bf | 1265 | error_report("kvm_init_vcpu failed: %s", strerror(-r)); |
84b4915d JK |
1266 | exit(1); |
1267 | } | |
296af7c9 | 1268 | |
18268b60 | 1269 | kvm_init_cpu_signals(cpu); |
296af7c9 BS |
1270 | |
1271 | /* signal CPU creation */ | |
61a46217 | 1272 | cpu->created = true; |
296af7c9 BS |
1273 | qemu_cond_signal(&qemu_cpu_cond); |
1274 | ||
4c055ab5 | 1275 | do { |
a1fcaa73 | 1276 | if (cpu_can_run(cpu)) { |
1458c363 | 1277 | r = kvm_cpu_exec(cpu); |
83f338f7 | 1278 | if (r == EXCP_DEBUG) { |
91325046 | 1279 | cpu_handle_guest_debug(cpu); |
83f338f7 | 1280 | } |
0ab07c62 | 1281 | } |
db08b687 | 1282 | qemu_wait_io_event(cpu); |
4c055ab5 | 1283 | } while (!cpu->unplug || cpu_can_run(cpu)); |
296af7c9 | 1284 | |
4c055ab5 | 1285 | qemu_kvm_destroy_vcpu(cpu); |
2c579042 BR |
1286 | cpu->created = false; |
1287 | qemu_cond_signal(&qemu_cpu_cond); | |
4c055ab5 | 1288 | qemu_mutex_unlock_iothread(); |
57615ed5 | 1289 | rcu_unregister_thread(); |
296af7c9 BS |
1290 | return NULL; |
1291 | } | |
1292 | ||
c7f0f3b1 AL |
1293 | static void *qemu_dummy_cpu_thread_fn(void *arg) |
1294 | { | |
1295 | #ifdef _WIN32 | |
493d89bf | 1296 | error_report("qtest is not supported under Windows"); |
c7f0f3b1 AL |
1297 | exit(1); |
1298 | #else | |
10a9021d | 1299 | CPUState *cpu = arg; |
c7f0f3b1 AL |
1300 | sigset_t waitset; |
1301 | int r; | |
1302 | ||
ab28bd23 PB |
1303 | rcu_register_thread(); |
1304 | ||
c7f0f3b1 | 1305 | qemu_mutex_lock_iothread(); |
814e612e | 1306 | qemu_thread_get_self(cpu->thread); |
9f09e18a | 1307 | cpu->thread_id = qemu_get_thread_id(); |
626cf8f4 | 1308 | cpu->can_do_io = 1; |
37257942 | 1309 | current_cpu = cpu; |
c7f0f3b1 AL |
1310 | |
1311 | sigemptyset(&waitset); | |
1312 | sigaddset(&waitset, SIG_IPI); | |
1313 | ||
1314 | /* signal CPU creation */ | |
61a46217 | 1315 | cpu->created = true; |
c7f0f3b1 AL |
1316 | qemu_cond_signal(&qemu_cpu_cond); |
1317 | ||
d2831ab0 | 1318 | do { |
c7f0f3b1 AL |
1319 | qemu_mutex_unlock_iothread(); |
1320 | do { | |
1321 | int sig; | |
1322 | r = sigwait(&waitset, &sig); | |
1323 | } while (r == -1 && (errno == EAGAIN || errno == EINTR)); | |
1324 | if (r == -1) { | |
1325 | perror("sigwait"); | |
1326 | exit(1); | |
1327 | } | |
1328 | qemu_mutex_lock_iothread(); | |
db08b687 | 1329 | qemu_wait_io_event(cpu); |
d2831ab0 | 1330 | } while (!cpu->unplug); |
c7f0f3b1 | 1331 | |
d2831ab0 | 1332 | rcu_unregister_thread(); |
c7f0f3b1 AL |
1333 | return NULL; |
1334 | #endif | |
1335 | } | |
1336 | ||
1be7fcb8 AB |
1337 | static int64_t tcg_get_icount_limit(void) |
1338 | { | |
1339 | int64_t deadline; | |
1340 | ||
1341 | if (replay_mode != REPLAY_MODE_PLAY) { | |
1342 | deadline = qemu_clock_deadline_ns_all(QEMU_CLOCK_VIRTUAL); | |
1343 | ||
1344 | /* Maintain prior (possibly buggy) behaviour where if no deadline | |
1345 | * was set (as there is no QEMU_CLOCK_VIRTUAL timer) or it is more than | |
1346 | * INT32_MAX nanoseconds ahead, we still use INT32_MAX | |
1347 | * nanoseconds. | |
1348 | */ | |
1349 | if ((deadline < 0) || (deadline > INT32_MAX)) { | |
1350 | deadline = INT32_MAX; | |
1351 | } | |
1352 | ||
1353 | return qemu_icount_round(deadline); | |
1354 | } else { | |
1355 | return replay_get_instructions(); | |
1356 | } | |
1357 | } | |
1358 | ||
12e9700d AB |
1359 | static void handle_icount_deadline(void) |
1360 | { | |
6b8f0187 | 1361 | assert(qemu_in_vcpu_thread()); |
12e9700d AB |
1362 | if (use_icount) { |
1363 | int64_t deadline = | |
1364 | qemu_clock_deadline_ns_all(QEMU_CLOCK_VIRTUAL); | |
1365 | ||
1366 | if (deadline == 0) { | |
6b8f0187 | 1367 | /* Wake up other AioContexts. */ |
12e9700d | 1368 | qemu_clock_notify(QEMU_CLOCK_VIRTUAL); |
6b8f0187 | 1369 | qemu_clock_run_timers(QEMU_CLOCK_VIRTUAL); |
12e9700d AB |
1370 | } |
1371 | } | |
1372 | } | |
1373 | ||
05248382 | 1374 | static void prepare_icount_for_run(CPUState *cpu) |
1be7fcb8 | 1375 | { |
1be7fcb8 | 1376 | if (use_icount) { |
eda5f7c6 | 1377 | int insns_left; |
05248382 AB |
1378 | |
1379 | /* These should always be cleared by process_icount_data after | |
1380 | * each vCPU execution. However u16.high can be raised | |
1381 | * asynchronously by cpu_exit/cpu_interrupt/tcg_handle_interrupt | |
1382 | */ | |
1383 | g_assert(cpu->icount_decr.u16.low == 0); | |
1384 | g_assert(cpu->icount_extra == 0); | |
1385 | ||
eda5f7c6 AB |
1386 | cpu->icount_budget = tcg_get_icount_limit(); |
1387 | insns_left = MIN(0xffff, cpu->icount_budget); | |
1388 | cpu->icount_decr.u16.low = insns_left; | |
1389 | cpu->icount_extra = cpu->icount_budget - insns_left; | |
d759c951 AB |
1390 | |
1391 | replay_mutex_lock(); | |
1be7fcb8 | 1392 | } |
05248382 AB |
1393 | } |
1394 | ||
1395 | static void process_icount_data(CPUState *cpu) | |
1396 | { | |
1be7fcb8 | 1397 | if (use_icount) { |
e4cd9657 | 1398 | /* Account for executed instructions */ |
512d3c80 | 1399 | cpu_update_icount(cpu); |
05248382 AB |
1400 | |
1401 | /* Reset the counters */ | |
1402 | cpu->icount_decr.u16.low = 0; | |
1be7fcb8 | 1403 | cpu->icount_extra = 0; |
e4cd9657 AB |
1404 | cpu->icount_budget = 0; |
1405 | ||
1be7fcb8 | 1406 | replay_account_executed_instructions(); |
d759c951 AB |
1407 | |
1408 | replay_mutex_unlock(); | |
1be7fcb8 | 1409 | } |
05248382 AB |
1410 | } |
1411 | ||
1412 | ||
1413 | static int tcg_cpu_exec(CPUState *cpu) | |
1414 | { | |
1415 | int ret; | |
1416 | #ifdef CONFIG_PROFILER | |
1417 | int64_t ti; | |
1418 | #endif | |
1419 | ||
f28d0dfd | 1420 | assert(tcg_enabled()); |
05248382 AB |
1421 | #ifdef CONFIG_PROFILER |
1422 | ti = profile_getclock(); | |
1423 | #endif | |
05248382 AB |
1424 | cpu_exec_start(cpu); |
1425 | ret = cpu_exec(cpu); | |
1426 | cpu_exec_end(cpu); | |
05248382 AB |
1427 | #ifdef CONFIG_PROFILER |
1428 | tcg_time += profile_getclock() - ti; | |
1429 | #endif | |
1be7fcb8 AB |
1430 | return ret; |
1431 | } | |
1432 | ||
c93bbbef AB |
1433 | /* Destroy any remaining vCPUs which have been unplugged and have |
1434 | * finished running | |
1435 | */ | |
1436 | static void deal_with_unplugged_cpus(void) | |
1be7fcb8 | 1437 | { |
c93bbbef | 1438 | CPUState *cpu; |
1be7fcb8 | 1439 | |
c93bbbef AB |
1440 | CPU_FOREACH(cpu) { |
1441 | if (cpu->unplug && !cpu_can_run(cpu)) { | |
1442 | qemu_tcg_destroy_vcpu(cpu); | |
1443 | cpu->created = false; | |
1444 | qemu_cond_signal(&qemu_cpu_cond); | |
1be7fcb8 AB |
1445 | break; |
1446 | } | |
1447 | } | |
1be7fcb8 | 1448 | } |
bdb7ca67 | 1449 | |
6546706d AB |
1450 | /* Single-threaded TCG |
1451 | * | |
1452 | * In the single-threaded case each vCPU is simulated in turn. If | |
1453 | * there is more than a single vCPU we create a simple timer to kick | |
1454 | * the vCPU and ensure we don't get stuck in a tight loop in one vCPU. | |
1455 | * This is done explicitly rather than relying on side-effects | |
1456 | * elsewhere. | |
1457 | */ | |
1458 | ||
37257942 | 1459 | static void *qemu_tcg_rr_cpu_thread_fn(void *arg) |
296af7c9 | 1460 | { |
c3586ba7 | 1461 | CPUState *cpu = arg; |
296af7c9 | 1462 | |
f28d0dfd | 1463 | assert(tcg_enabled()); |
ab28bd23 | 1464 | rcu_register_thread(); |
3468b59e | 1465 | tcg_register_thread(); |
ab28bd23 | 1466 | |
2e7f7a3c | 1467 | qemu_mutex_lock_iothread(); |
814e612e | 1468 | qemu_thread_get_self(cpu->thread); |
296af7c9 | 1469 | |
5a9c973b DH |
1470 | cpu->thread_id = qemu_get_thread_id(); |
1471 | cpu->created = true; | |
1472 | cpu->can_do_io = 1; | |
296af7c9 BS |
1473 | qemu_cond_signal(&qemu_cpu_cond); |
1474 | ||
fa7d1867 | 1475 | /* wait for initial kick-off after machine start */ |
c28e399c | 1476 | while (first_cpu->stopped) { |
d5f8d613 | 1477 | qemu_cond_wait(first_cpu->halt_cond, &qemu_global_mutex); |
8e564b4e JK |
1478 | |
1479 | /* process any pending work */ | |
bdc44640 | 1480 | CPU_FOREACH(cpu) { |
37257942 | 1481 | current_cpu = cpu; |
182735ef | 1482 | qemu_wait_io_event_common(cpu); |
8e564b4e | 1483 | } |
0ab07c62 | 1484 | } |
296af7c9 | 1485 | |
6546706d AB |
1486 | start_tcg_kick_timer(); |
1487 | ||
c93bbbef AB |
1488 | cpu = first_cpu; |
1489 | ||
e5143e30 AB |
1490 | /* process any pending work */ |
1491 | cpu->exit_request = 1; | |
1492 | ||
296af7c9 | 1493 | while (1) { |
d759c951 AB |
1494 | qemu_mutex_unlock_iothread(); |
1495 | replay_mutex_lock(); | |
1496 | qemu_mutex_lock_iothread(); | |
c93bbbef AB |
1497 | /* Account partial waits to QEMU_CLOCK_VIRTUAL. */ |
1498 | qemu_account_warp_timer(); | |
1499 | ||
6b8f0187 PB |
1500 | /* Run the timers here. This is much more efficient than |
1501 | * waking up the I/O thread and waiting for completion. | |
1502 | */ | |
1503 | handle_icount_deadline(); | |
1504 | ||
d759c951 AB |
1505 | replay_mutex_unlock(); |
1506 | ||
c93bbbef AB |
1507 | if (!cpu) { |
1508 | cpu = first_cpu; | |
1509 | } | |
1510 | ||
e5143e30 AB |
1511 | while (cpu && !cpu->queued_work_first && !cpu->exit_request) { |
1512 | ||
791158d9 | 1513 | atomic_mb_set(&tcg_current_rr_cpu, cpu); |
37257942 | 1514 | current_cpu = cpu; |
c93bbbef AB |
1515 | |
1516 | qemu_clock_enable(QEMU_CLOCK_VIRTUAL, | |
1517 | (cpu->singlestep_enabled & SSTEP_NOTIMER) == 0); | |
1518 | ||
1519 | if (cpu_can_run(cpu)) { | |
1520 | int r; | |
05248382 | 1521 | |
d759c951 | 1522 | qemu_mutex_unlock_iothread(); |
05248382 AB |
1523 | prepare_icount_for_run(cpu); |
1524 | ||
c93bbbef | 1525 | r = tcg_cpu_exec(cpu); |
05248382 AB |
1526 | |
1527 | process_icount_data(cpu); | |
d759c951 | 1528 | qemu_mutex_lock_iothread(); |
05248382 | 1529 | |
c93bbbef AB |
1530 | if (r == EXCP_DEBUG) { |
1531 | cpu_handle_guest_debug(cpu); | |
1532 | break; | |
08e73c48 PK |
1533 | } else if (r == EXCP_ATOMIC) { |
1534 | qemu_mutex_unlock_iothread(); | |
1535 | cpu_exec_step_atomic(cpu); | |
1536 | qemu_mutex_lock_iothread(); | |
1537 | break; | |
c93bbbef | 1538 | } |
37257942 | 1539 | } else if (cpu->stop) { |
c93bbbef AB |
1540 | if (cpu->unplug) { |
1541 | cpu = CPU_NEXT(cpu); | |
1542 | } | |
1543 | break; | |
1544 | } | |
1545 | ||
e5143e30 AB |
1546 | cpu = CPU_NEXT(cpu); |
1547 | } /* while (cpu && !cpu->exit_request).. */ | |
1548 | ||
791158d9 AB |
1549 | /* Does not need atomic_mb_set because a spurious wakeup is okay. */ |
1550 | atomic_set(&tcg_current_rr_cpu, NULL); | |
c93bbbef | 1551 | |
e5143e30 AB |
1552 | if (cpu && cpu->exit_request) { |
1553 | atomic_mb_set(&cpu->exit_request, 0); | |
1554 | } | |
ac70aafc | 1555 | |
068a5ea0 | 1556 | qemu_tcg_rr_wait_io_event(cpu ? cpu : first_cpu); |
c93bbbef | 1557 | deal_with_unplugged_cpus(); |
296af7c9 BS |
1558 | } |
1559 | ||
9b0605f9 | 1560 | rcu_unregister_thread(); |
296af7c9 BS |
1561 | return NULL; |
1562 | } | |
1563 | ||
b0cb0a66 VP |
1564 | static void *qemu_hax_cpu_thread_fn(void *arg) |
1565 | { | |
1566 | CPUState *cpu = arg; | |
1567 | int r; | |
b3d3a426 | 1568 | |
9857c2d2 | 1569 | rcu_register_thread(); |
b3d3a426 | 1570 | qemu_mutex_lock_iothread(); |
b0cb0a66 | 1571 | qemu_thread_get_self(cpu->thread); |
b0cb0a66 VP |
1572 | |
1573 | cpu->thread_id = qemu_get_thread_id(); | |
1574 | cpu->created = true; | |
1575 | cpu->halted = 0; | |
1576 | current_cpu = cpu; | |
1577 | ||
1578 | hax_init_vcpu(cpu); | |
1579 | qemu_cond_signal(&qemu_cpu_cond); | |
1580 | ||
9857c2d2 | 1581 | do { |
b0cb0a66 VP |
1582 | if (cpu_can_run(cpu)) { |
1583 | r = hax_smp_cpu_exec(cpu); | |
1584 | if (r == EXCP_DEBUG) { | |
1585 | cpu_handle_guest_debug(cpu); | |
1586 | } | |
1587 | } | |
1588 | ||
db08b687 | 1589 | qemu_wait_io_event(cpu); |
9857c2d2 PB |
1590 | } while (!cpu->unplug || cpu_can_run(cpu)); |
1591 | rcu_unregister_thread(); | |
b0cb0a66 VP |
1592 | return NULL; |
1593 | } | |
1594 | ||
c97d6d2c SAGDR |
1595 | /* The HVF-specific vCPU thread function. This one should only run when the host |
1596 | * CPU supports the VMX "unrestricted guest" feature. */ | |
1597 | static void *qemu_hvf_cpu_thread_fn(void *arg) | |
1598 | { | |
1599 | CPUState *cpu = arg; | |
1600 | ||
1601 | int r; | |
1602 | ||
1603 | assert(hvf_enabled()); | |
1604 | ||
1605 | rcu_register_thread(); | |
1606 | ||
1607 | qemu_mutex_lock_iothread(); | |
1608 | qemu_thread_get_self(cpu->thread); | |
1609 | ||
1610 | cpu->thread_id = qemu_get_thread_id(); | |
1611 | cpu->can_do_io = 1; | |
1612 | current_cpu = cpu; | |
1613 | ||
1614 | hvf_init_vcpu(cpu); | |
1615 | ||
1616 | /* signal CPU creation */ | |
1617 | cpu->created = true; | |
1618 | qemu_cond_signal(&qemu_cpu_cond); | |
1619 | ||
1620 | do { | |
1621 | if (cpu_can_run(cpu)) { | |
1622 | r = hvf_vcpu_exec(cpu); | |
1623 | if (r == EXCP_DEBUG) { | |
1624 | cpu_handle_guest_debug(cpu); | |
1625 | } | |
1626 | } | |
db08b687 | 1627 | qemu_wait_io_event(cpu); |
c97d6d2c SAGDR |
1628 | } while (!cpu->unplug || cpu_can_run(cpu)); |
1629 | ||
1630 | hvf_vcpu_destroy(cpu); | |
1631 | cpu->created = false; | |
1632 | qemu_cond_signal(&qemu_cpu_cond); | |
1633 | qemu_mutex_unlock_iothread(); | |
8178e637 | 1634 | rcu_unregister_thread(); |
c97d6d2c SAGDR |
1635 | return NULL; |
1636 | } | |
1637 | ||
19306806 JTV |
1638 | static void *qemu_whpx_cpu_thread_fn(void *arg) |
1639 | { | |
1640 | CPUState *cpu = arg; | |
1641 | int r; | |
1642 | ||
1643 | rcu_register_thread(); | |
1644 | ||
1645 | qemu_mutex_lock_iothread(); | |
1646 | qemu_thread_get_self(cpu->thread); | |
1647 | cpu->thread_id = qemu_get_thread_id(); | |
1648 | current_cpu = cpu; | |
1649 | ||
1650 | r = whpx_init_vcpu(cpu); | |
1651 | if (r < 0) { | |
1652 | fprintf(stderr, "whpx_init_vcpu failed: %s\n", strerror(-r)); | |
1653 | exit(1); | |
1654 | } | |
1655 | ||
1656 | /* signal CPU creation */ | |
1657 | cpu->created = true; | |
1658 | qemu_cond_signal(&qemu_cpu_cond); | |
1659 | ||
1660 | do { | |
1661 | if (cpu_can_run(cpu)) { | |
1662 | r = whpx_vcpu_exec(cpu); | |
1663 | if (r == EXCP_DEBUG) { | |
1664 | cpu_handle_guest_debug(cpu); | |
1665 | } | |
1666 | } | |
1667 | while (cpu_thread_is_idle(cpu)) { | |
1668 | qemu_cond_wait(cpu->halt_cond, &qemu_global_mutex); | |
1669 | } | |
1670 | qemu_wait_io_event_common(cpu); | |
1671 | } while (!cpu->unplug || cpu_can_run(cpu)); | |
1672 | ||
1673 | whpx_destroy_vcpu(cpu); | |
1674 | cpu->created = false; | |
1675 | qemu_cond_signal(&qemu_cpu_cond); | |
1676 | qemu_mutex_unlock_iothread(); | |
1677 | rcu_unregister_thread(); | |
c97d6d2c SAGDR |
1678 | return NULL; |
1679 | } | |
1680 | ||
b0cb0a66 VP |
1681 | #ifdef _WIN32 |
1682 | static void CALLBACK dummy_apc_func(ULONG_PTR unused) | |
1683 | { | |
1684 | } | |
1685 | #endif | |
1686 | ||
37257942 AB |
1687 | /* Multi-threaded TCG |
1688 | * | |
1689 | * In the multi-threaded case each vCPU has its own thread. The TLS | |
1690 | * variable current_cpu can be used deep in the code to find the | |
1691 | * current CPUState for a given thread. | |
1692 | */ | |
1693 | ||
1694 | static void *qemu_tcg_cpu_thread_fn(void *arg) | |
1695 | { | |
1696 | CPUState *cpu = arg; | |
1697 | ||
f28d0dfd | 1698 | assert(tcg_enabled()); |
bf51c720 AB |
1699 | g_assert(!use_icount); |
1700 | ||
37257942 | 1701 | rcu_register_thread(); |
3468b59e | 1702 | tcg_register_thread(); |
37257942 AB |
1703 | |
1704 | qemu_mutex_lock_iothread(); | |
1705 | qemu_thread_get_self(cpu->thread); | |
1706 | ||
1707 | cpu->thread_id = qemu_get_thread_id(); | |
1708 | cpu->created = true; | |
1709 | cpu->can_do_io = 1; | |
1710 | current_cpu = cpu; | |
1711 | qemu_cond_signal(&qemu_cpu_cond); | |
1712 | ||
1713 | /* process any pending work */ | |
1714 | cpu->exit_request = 1; | |
1715 | ||
54961aac | 1716 | do { |
37257942 AB |
1717 | if (cpu_can_run(cpu)) { |
1718 | int r; | |
d759c951 | 1719 | qemu_mutex_unlock_iothread(); |
37257942 | 1720 | r = tcg_cpu_exec(cpu); |
d759c951 | 1721 | qemu_mutex_lock_iothread(); |
37257942 AB |
1722 | switch (r) { |
1723 | case EXCP_DEBUG: | |
1724 | cpu_handle_guest_debug(cpu); | |
1725 | break; | |
1726 | case EXCP_HALTED: | |
1727 | /* during start-up the vCPU is reset and the thread is | |
1728 | * kicked several times. If we don't ensure we go back | |
1729 | * to sleep in the halted state we won't cleanly | |
1730 | * start-up when the vCPU is enabled. | |
1731 | * | |
1732 | * cpu->halted should ensure we sleep in wait_io_event | |
1733 | */ | |
1734 | g_assert(cpu->halted); | |
1735 | break; | |
08e73c48 PK |
1736 | case EXCP_ATOMIC: |
1737 | qemu_mutex_unlock_iothread(); | |
1738 | cpu_exec_step_atomic(cpu); | |
1739 | qemu_mutex_lock_iothread(); | |
37257942 AB |
1740 | default: |
1741 | /* Ignore everything else? */ | |
1742 | break; | |
1743 | } | |
1744 | } | |
1745 | ||
37257942 | 1746 | atomic_mb_set(&cpu->exit_request, 0); |
db08b687 | 1747 | qemu_wait_io_event(cpu); |
9b0605f9 | 1748 | } while (!cpu->unplug || cpu_can_run(cpu)); |
37257942 | 1749 | |
9b0605f9 PB |
1750 | qemu_tcg_destroy_vcpu(cpu); |
1751 | cpu->created = false; | |
1752 | qemu_cond_signal(&qemu_cpu_cond); | |
1753 | qemu_mutex_unlock_iothread(); | |
1754 | rcu_unregister_thread(); | |
37257942 AB |
1755 | return NULL; |
1756 | } | |
1757 | ||
2ff09a40 | 1758 | static void qemu_cpu_kick_thread(CPUState *cpu) |
cc015e9a PB |
1759 | { |
1760 | #ifndef _WIN32 | |
1761 | int err; | |
1762 | ||
e0c38211 PB |
1763 | if (cpu->thread_kicked) { |
1764 | return; | |
9102deda | 1765 | } |
e0c38211 | 1766 | cpu->thread_kicked = true; |
814e612e | 1767 | err = pthread_kill(cpu->thread->thread, SIG_IPI); |
cc015e9a PB |
1768 | if (err) { |
1769 | fprintf(stderr, "qemu:%s: %s", __func__, strerror(err)); | |
1770 | exit(1); | |
1771 | } | |
1772 | #else /* _WIN32 */ | |
b0cb0a66 | 1773 | if (!qemu_cpu_is_self(cpu)) { |
19306806 JTV |
1774 | if (whpx_enabled()) { |
1775 | whpx_vcpu_kick(cpu); | |
1776 | } else if (!QueueUserAPC(dummy_apc_func, cpu->hThread, 0)) { | |
b0cb0a66 VP |
1777 | fprintf(stderr, "%s: QueueUserAPC failed with error %lu\n", |
1778 | __func__, GetLastError()); | |
1779 | exit(1); | |
1780 | } | |
1781 | } | |
e0c38211 PB |
1782 | #endif |
1783 | } | |
ed9164a3 | 1784 | |
c08d7424 | 1785 | void qemu_cpu_kick(CPUState *cpu) |
296af7c9 | 1786 | { |
f5c121b8 | 1787 | qemu_cond_broadcast(cpu->halt_cond); |
e0c38211 | 1788 | if (tcg_enabled()) { |
791158d9 | 1789 | cpu_exit(cpu); |
37257942 | 1790 | /* NOP unless doing single-thread RR */ |
791158d9 | 1791 | qemu_cpu_kick_rr_cpu(); |
e0c38211 | 1792 | } else { |
b0cb0a66 VP |
1793 | if (hax_enabled()) { |
1794 | /* | |
1795 | * FIXME: race condition with the exit_request check in | |
1796 | * hax_vcpu_hax_exec | |
1797 | */ | |
1798 | cpu->exit_request = 1; | |
1799 | } | |
e0c38211 PB |
1800 | qemu_cpu_kick_thread(cpu); |
1801 | } | |
296af7c9 BS |
1802 | } |
1803 | ||
46d62fac | 1804 | void qemu_cpu_kick_self(void) |
296af7c9 | 1805 | { |
4917cf44 | 1806 | assert(current_cpu); |
9102deda | 1807 | qemu_cpu_kick_thread(current_cpu); |
296af7c9 BS |
1808 | } |
1809 | ||
60e82579 | 1810 | bool qemu_cpu_is_self(CPUState *cpu) |
296af7c9 | 1811 | { |
814e612e | 1812 | return qemu_thread_is_self(cpu->thread); |
296af7c9 BS |
1813 | } |
1814 | ||
79e2b9ae | 1815 | bool qemu_in_vcpu_thread(void) |
aa723c23 | 1816 | { |
4917cf44 | 1817 | return current_cpu && qemu_cpu_is_self(current_cpu); |
aa723c23 JQ |
1818 | } |
1819 | ||
afbe7053 PB |
1820 | static __thread bool iothread_locked = false; |
1821 | ||
1822 | bool qemu_mutex_iothread_locked(void) | |
1823 | { | |
1824 | return iothread_locked; | |
1825 | } | |
1826 | ||
cb764d06 EC |
1827 | /* |
1828 | * The BQL is taken from so many places that it is worth profiling the | |
1829 | * callers directly, instead of funneling them all through a single function. | |
1830 | */ | |
1831 | void qemu_mutex_lock_iothread_impl(const char *file, int line) | |
296af7c9 | 1832 | { |
cb764d06 EC |
1833 | QemuMutexLockFunc bql_lock = atomic_read(&qemu_bql_mutex_lock_func); |
1834 | ||
8d04fb55 | 1835 | g_assert(!qemu_mutex_iothread_locked()); |
cb764d06 | 1836 | bql_lock(&qemu_global_mutex, file, line); |
afbe7053 | 1837 | iothread_locked = true; |
296af7c9 BS |
1838 | } |
1839 | ||
1840 | void qemu_mutex_unlock_iothread(void) | |
1841 | { | |
8d04fb55 | 1842 | g_assert(qemu_mutex_iothread_locked()); |
afbe7053 | 1843 | iothread_locked = false; |
296af7c9 BS |
1844 | qemu_mutex_unlock(&qemu_global_mutex); |
1845 | } | |
1846 | ||
e8faee06 | 1847 | static bool all_vcpus_paused(void) |
296af7c9 | 1848 | { |
bdc44640 | 1849 | CPUState *cpu; |
296af7c9 | 1850 | |
bdc44640 | 1851 | CPU_FOREACH(cpu) { |
182735ef | 1852 | if (!cpu->stopped) { |
e8faee06 | 1853 | return false; |
0ab07c62 | 1854 | } |
296af7c9 BS |
1855 | } |
1856 | ||
e8faee06 | 1857 | return true; |
296af7c9 BS |
1858 | } |
1859 | ||
1860 | void pause_all_vcpus(void) | |
1861 | { | |
bdc44640 | 1862 | CPUState *cpu; |
296af7c9 | 1863 | |
40daca54 | 1864 | qemu_clock_enable(QEMU_CLOCK_VIRTUAL, false); |
bdc44640 | 1865 | CPU_FOREACH(cpu) { |
ebd05fea DH |
1866 | if (qemu_cpu_is_self(cpu)) { |
1867 | qemu_cpu_stop(cpu, true); | |
1868 | } else { | |
1869 | cpu->stop = true; | |
1870 | qemu_cpu_kick(cpu); | |
1871 | } | |
d798e974 JK |
1872 | } |
1873 | ||
d759c951 AB |
1874 | /* We need to drop the replay_lock so any vCPU threads woken up |
1875 | * can finish their replay tasks | |
1876 | */ | |
1877 | replay_mutex_unlock(); | |
1878 | ||
296af7c9 | 1879 | while (!all_vcpus_paused()) { |
be7d6c57 | 1880 | qemu_cond_wait(&qemu_pause_cond, &qemu_global_mutex); |
bdc44640 | 1881 | CPU_FOREACH(cpu) { |
182735ef | 1882 | qemu_cpu_kick(cpu); |
296af7c9 BS |
1883 | } |
1884 | } | |
d759c951 AB |
1885 | |
1886 | qemu_mutex_unlock_iothread(); | |
1887 | replay_mutex_lock(); | |
1888 | qemu_mutex_lock_iothread(); | |
296af7c9 BS |
1889 | } |
1890 | ||
2993683b IM |
1891 | void cpu_resume(CPUState *cpu) |
1892 | { | |
1893 | cpu->stop = false; | |
1894 | cpu->stopped = false; | |
1895 | qemu_cpu_kick(cpu); | |
1896 | } | |
1897 | ||
296af7c9 BS |
1898 | void resume_all_vcpus(void) |
1899 | { | |
bdc44640 | 1900 | CPUState *cpu; |
296af7c9 | 1901 | |
40daca54 | 1902 | qemu_clock_enable(QEMU_CLOCK_VIRTUAL, true); |
bdc44640 | 1903 | CPU_FOREACH(cpu) { |
182735ef | 1904 | cpu_resume(cpu); |
296af7c9 BS |
1905 | } |
1906 | } | |
1907 | ||
dbadee4f | 1908 | void cpu_remove_sync(CPUState *cpu) |
4c055ab5 GZ |
1909 | { |
1910 | cpu->stop = true; | |
1911 | cpu->unplug = true; | |
1912 | qemu_cpu_kick(cpu); | |
dbadee4f PB |
1913 | qemu_mutex_unlock_iothread(); |
1914 | qemu_thread_join(cpu->thread); | |
1915 | qemu_mutex_lock_iothread(); | |
2c579042 BR |
1916 | } |
1917 | ||
4900116e DDAG |
1918 | /* For temporary buffers for forming a name */ |
1919 | #define VCPU_THREAD_NAME_SIZE 16 | |
1920 | ||
e5ab30a2 | 1921 | static void qemu_tcg_init_vcpu(CPUState *cpu) |
296af7c9 | 1922 | { |
4900116e | 1923 | char thread_name[VCPU_THREAD_NAME_SIZE]; |
37257942 AB |
1924 | static QemuCond *single_tcg_halt_cond; |
1925 | static QemuThread *single_tcg_cpu_thread; | |
e8feb96f EC |
1926 | static int tcg_region_inited; |
1927 | ||
f28d0dfd | 1928 | assert(tcg_enabled()); |
e8feb96f EC |
1929 | /* |
1930 | * Initialize TCG regions--once. Now is a good time, because: | |
1931 | * (1) TCG's init context, prologue and target globals have been set up. | |
1932 | * (2) qemu_tcg_mttcg_enabled() works now (TCG init code runs before the | |
1933 | * -accel flag is processed, so the check doesn't work then). | |
1934 | */ | |
1935 | if (!tcg_region_inited) { | |
1936 | tcg_region_inited = 1; | |
1937 | tcg_region_init(); | |
1938 | } | |
4900116e | 1939 | |
37257942 | 1940 | if (qemu_tcg_mttcg_enabled() || !single_tcg_cpu_thread) { |
814e612e | 1941 | cpu->thread = g_malloc0(sizeof(QemuThread)); |
f5c121b8 AF |
1942 | cpu->halt_cond = g_malloc0(sizeof(QemuCond)); |
1943 | qemu_cond_init(cpu->halt_cond); | |
37257942 AB |
1944 | |
1945 | if (qemu_tcg_mttcg_enabled()) { | |
1946 | /* create a thread per vCPU with TCG (MTTCG) */ | |
1947 | parallel_cpus = true; | |
1948 | snprintf(thread_name, VCPU_THREAD_NAME_SIZE, "CPU %d/TCG", | |
4900116e | 1949 | cpu->cpu_index); |
37257942 AB |
1950 | |
1951 | qemu_thread_create(cpu->thread, thread_name, qemu_tcg_cpu_thread_fn, | |
1952 | cpu, QEMU_THREAD_JOINABLE); | |
1953 | ||
1954 | } else { | |
1955 | /* share a single thread for all cpus with TCG */ | |
1956 | snprintf(thread_name, VCPU_THREAD_NAME_SIZE, "ALL CPUs/TCG"); | |
1957 | qemu_thread_create(cpu->thread, thread_name, | |
1958 | qemu_tcg_rr_cpu_thread_fn, | |
1959 | cpu, QEMU_THREAD_JOINABLE); | |
1960 | ||
1961 | single_tcg_halt_cond = cpu->halt_cond; | |
1962 | single_tcg_cpu_thread = cpu->thread; | |
1963 | } | |
1ecf47bf | 1964 | #ifdef _WIN32 |
814e612e | 1965 | cpu->hThread = qemu_thread_get_handle(cpu->thread); |
1ecf47bf | 1966 | #endif |
296af7c9 | 1967 | } else { |
37257942 AB |
1968 | /* For non-MTTCG cases we share the thread */ |
1969 | cpu->thread = single_tcg_cpu_thread; | |
1970 | cpu->halt_cond = single_tcg_halt_cond; | |
a342173a DH |
1971 | cpu->thread_id = first_cpu->thread_id; |
1972 | cpu->can_do_io = 1; | |
1973 | cpu->created = true; | |
296af7c9 BS |
1974 | } |
1975 | } | |
1976 | ||
b0cb0a66 VP |
1977 | static void qemu_hax_start_vcpu(CPUState *cpu) |
1978 | { | |
1979 | char thread_name[VCPU_THREAD_NAME_SIZE]; | |
1980 | ||
1981 | cpu->thread = g_malloc0(sizeof(QemuThread)); | |
1982 | cpu->halt_cond = g_malloc0(sizeof(QemuCond)); | |
1983 | qemu_cond_init(cpu->halt_cond); | |
1984 | ||
1985 | snprintf(thread_name, VCPU_THREAD_NAME_SIZE, "CPU %d/HAX", | |
1986 | cpu->cpu_index); | |
1987 | qemu_thread_create(cpu->thread, thread_name, qemu_hax_cpu_thread_fn, | |
1988 | cpu, QEMU_THREAD_JOINABLE); | |
1989 | #ifdef _WIN32 | |
1990 | cpu->hThread = qemu_thread_get_handle(cpu->thread); | |
1991 | #endif | |
b0cb0a66 VP |
1992 | } |
1993 | ||
48a106bd | 1994 | static void qemu_kvm_start_vcpu(CPUState *cpu) |
296af7c9 | 1995 | { |
4900116e DDAG |
1996 | char thread_name[VCPU_THREAD_NAME_SIZE]; |
1997 | ||
814e612e | 1998 | cpu->thread = g_malloc0(sizeof(QemuThread)); |
f5c121b8 AF |
1999 | cpu->halt_cond = g_malloc0(sizeof(QemuCond)); |
2000 | qemu_cond_init(cpu->halt_cond); | |
4900116e DDAG |
2001 | snprintf(thread_name, VCPU_THREAD_NAME_SIZE, "CPU %d/KVM", |
2002 | cpu->cpu_index); | |
2003 | qemu_thread_create(cpu->thread, thread_name, qemu_kvm_cpu_thread_fn, | |
2004 | cpu, QEMU_THREAD_JOINABLE); | |
296af7c9 BS |
2005 | } |
2006 | ||
c97d6d2c SAGDR |
2007 | static void qemu_hvf_start_vcpu(CPUState *cpu) |
2008 | { | |
2009 | char thread_name[VCPU_THREAD_NAME_SIZE]; | |
2010 | ||
2011 | /* HVF currently does not support TCG, and only runs in | |
2012 | * unrestricted-guest mode. */ | |
2013 | assert(hvf_enabled()); | |
2014 | ||
2015 | cpu->thread = g_malloc0(sizeof(QemuThread)); | |
2016 | cpu->halt_cond = g_malloc0(sizeof(QemuCond)); | |
2017 | qemu_cond_init(cpu->halt_cond); | |
2018 | ||
2019 | snprintf(thread_name, VCPU_THREAD_NAME_SIZE, "CPU %d/HVF", | |
2020 | cpu->cpu_index); | |
2021 | qemu_thread_create(cpu->thread, thread_name, qemu_hvf_cpu_thread_fn, | |
2022 | cpu, QEMU_THREAD_JOINABLE); | |
c97d6d2c SAGDR |
2023 | } |
2024 | ||
19306806 JTV |
2025 | static void qemu_whpx_start_vcpu(CPUState *cpu) |
2026 | { | |
2027 | char thread_name[VCPU_THREAD_NAME_SIZE]; | |
2028 | ||
2029 | cpu->thread = g_malloc0(sizeof(QemuThread)); | |
2030 | cpu->halt_cond = g_malloc0(sizeof(QemuCond)); | |
2031 | qemu_cond_init(cpu->halt_cond); | |
2032 | snprintf(thread_name, VCPU_THREAD_NAME_SIZE, "CPU %d/WHPX", | |
2033 | cpu->cpu_index); | |
2034 | qemu_thread_create(cpu->thread, thread_name, qemu_whpx_cpu_thread_fn, | |
2035 | cpu, QEMU_THREAD_JOINABLE); | |
2036 | #ifdef _WIN32 | |
2037 | cpu->hThread = qemu_thread_get_handle(cpu->thread); | |
2038 | #endif | |
19306806 JTV |
2039 | } |
2040 | ||
10a9021d | 2041 | static void qemu_dummy_start_vcpu(CPUState *cpu) |
c7f0f3b1 | 2042 | { |
4900116e DDAG |
2043 | char thread_name[VCPU_THREAD_NAME_SIZE]; |
2044 | ||
814e612e | 2045 | cpu->thread = g_malloc0(sizeof(QemuThread)); |
f5c121b8 AF |
2046 | cpu->halt_cond = g_malloc0(sizeof(QemuCond)); |
2047 | qemu_cond_init(cpu->halt_cond); | |
4900116e DDAG |
2048 | snprintf(thread_name, VCPU_THREAD_NAME_SIZE, "CPU %d/DUMMY", |
2049 | cpu->cpu_index); | |
2050 | qemu_thread_create(cpu->thread, thread_name, qemu_dummy_cpu_thread_fn, cpu, | |
c7f0f3b1 | 2051 | QEMU_THREAD_JOINABLE); |
c7f0f3b1 AL |
2052 | } |
2053 | ||
c643bed9 | 2054 | void qemu_init_vcpu(CPUState *cpu) |
296af7c9 | 2055 | { |
ce3960eb AF |
2056 | cpu->nr_cores = smp_cores; |
2057 | cpu->nr_threads = smp_threads; | |
f324e766 | 2058 | cpu->stopped = true; |
56943e8c PM |
2059 | |
2060 | if (!cpu->as) { | |
2061 | /* If the target cpu hasn't set up any address spaces itself, | |
2062 | * give it the default one. | |
2063 | */ | |
12ebc9a7 | 2064 | cpu->num_ases = 1; |
80ceb07a | 2065 | cpu_address_space_init(cpu, 0, "cpu-memory", cpu->memory); |
56943e8c PM |
2066 | } |
2067 | ||
0ab07c62 | 2068 | if (kvm_enabled()) { |
48a106bd | 2069 | qemu_kvm_start_vcpu(cpu); |
b0cb0a66 VP |
2070 | } else if (hax_enabled()) { |
2071 | qemu_hax_start_vcpu(cpu); | |
c97d6d2c SAGDR |
2072 | } else if (hvf_enabled()) { |
2073 | qemu_hvf_start_vcpu(cpu); | |
c7f0f3b1 | 2074 | } else if (tcg_enabled()) { |
e5ab30a2 | 2075 | qemu_tcg_init_vcpu(cpu); |
19306806 JTV |
2076 | } else if (whpx_enabled()) { |
2077 | qemu_whpx_start_vcpu(cpu); | |
c7f0f3b1 | 2078 | } else { |
10a9021d | 2079 | qemu_dummy_start_vcpu(cpu); |
0ab07c62 | 2080 | } |
81e96311 DH |
2081 | |
2082 | while (!cpu->created) { | |
2083 | qemu_cond_wait(&qemu_cpu_cond, &qemu_global_mutex); | |
2084 | } | |
296af7c9 BS |
2085 | } |
2086 | ||
b4a3d965 | 2087 | void cpu_stop_current(void) |
296af7c9 | 2088 | { |
4917cf44 | 2089 | if (current_cpu) { |
ebd05fea | 2090 | qemu_cpu_stop(current_cpu, true); |
b4a3d965 | 2091 | } |
296af7c9 BS |
2092 | } |
2093 | ||
56983463 | 2094 | int vm_stop(RunState state) |
296af7c9 | 2095 | { |
aa723c23 | 2096 | if (qemu_in_vcpu_thread()) { |
74892d24 | 2097 | qemu_system_vmstop_request_prepare(); |
1dfb4dd9 | 2098 | qemu_system_vmstop_request(state); |
296af7c9 BS |
2099 | /* |
2100 | * FIXME: should not return to device code in case | |
2101 | * vm_stop() has been requested. | |
2102 | */ | |
b4a3d965 | 2103 | cpu_stop_current(); |
56983463 | 2104 | return 0; |
296af7c9 | 2105 | } |
56983463 | 2106 | |
4486e89c | 2107 | return do_vm_stop(state, true); |
296af7c9 BS |
2108 | } |
2109 | ||
2d76e823 CI |
2110 | /** |
2111 | * Prepare for (re)starting the VM. | |
2112 | * Returns -1 if the vCPUs are not to be restarted (e.g. if they are already | |
2113 | * running or in case of an error condition), 0 otherwise. | |
2114 | */ | |
2115 | int vm_prepare_start(void) | |
2116 | { | |
2117 | RunState requested; | |
2d76e823 CI |
2118 | |
2119 | qemu_vmstop_requested(&requested); | |
2120 | if (runstate_is_running() && requested == RUN_STATE__MAX) { | |
2121 | return -1; | |
2122 | } | |
2123 | ||
2124 | /* Ensure that a STOP/RESUME pair of events is emitted if a | |
2125 | * vmstop request was pending. The BLOCK_IO_ERROR event, for | |
2126 | * example, according to documentation is always followed by | |
2127 | * the STOP event. | |
2128 | */ | |
2129 | if (runstate_is_running()) { | |
3ab72385 PX |
2130 | qapi_event_send_stop(); |
2131 | qapi_event_send_resume(); | |
f056158d | 2132 | return -1; |
2d76e823 CI |
2133 | } |
2134 | ||
2135 | /* We are sending this now, but the CPUs will be resumed shortly later */ | |
3ab72385 | 2136 | qapi_event_send_resume(); |
f056158d MA |
2137 | |
2138 | replay_enable_events(); | |
2139 | cpu_enable_ticks(); | |
2140 | runstate_set(RUN_STATE_RUNNING); | |
2141 | vm_state_notify(1, RUN_STATE_RUNNING); | |
2142 | return 0; | |
2d76e823 CI |
2143 | } |
2144 | ||
2145 | void vm_start(void) | |
2146 | { | |
2147 | if (!vm_prepare_start()) { | |
2148 | resume_all_vcpus(); | |
2149 | } | |
2150 | } | |
2151 | ||
8a9236f1 LC |
2152 | /* does a state transition even if the VM is already stopped, |
2153 | current state is forgotten forever */ | |
56983463 | 2154 | int vm_stop_force_state(RunState state) |
8a9236f1 LC |
2155 | { |
2156 | if (runstate_is_running()) { | |
56983463 | 2157 | return vm_stop(state); |
8a9236f1 LC |
2158 | } else { |
2159 | runstate_set(state); | |
b2780d32 WC |
2160 | |
2161 | bdrv_drain_all(); | |
594a45ce KW |
2162 | /* Make sure to return an error if the flush in a previous vm_stop() |
2163 | * failed. */ | |
22af08ea | 2164 | return bdrv_flush_all(); |
8a9236f1 LC |
2165 | } |
2166 | } | |
2167 | ||
9a78eead | 2168 | void list_cpus(FILE *f, fprintf_function cpu_fprintf, const char *optarg) |
262353cb BS |
2169 | { |
2170 | /* XXX: implement xxx_cpu_list for targets that still miss it */ | |
e916cbf8 PM |
2171 | #if defined(cpu_list) |
2172 | cpu_list(f, cpu_fprintf); | |
262353cb BS |
2173 | #endif |
2174 | } | |
de0b36b6 LC |
2175 | |
2176 | CpuInfoList *qmp_query_cpus(Error **errp) | |
2177 | { | |
afed5a5a IM |
2178 | MachineState *ms = MACHINE(qdev_get_machine()); |
2179 | MachineClass *mc = MACHINE_GET_CLASS(ms); | |
de0b36b6 | 2180 | CpuInfoList *head = NULL, *cur_item = NULL; |
182735ef | 2181 | CPUState *cpu; |
de0b36b6 | 2182 | |
bdc44640 | 2183 | CPU_FOREACH(cpu) { |
de0b36b6 | 2184 | CpuInfoList *info; |
182735ef AF |
2185 | #if defined(TARGET_I386) |
2186 | X86CPU *x86_cpu = X86_CPU(cpu); | |
2187 | CPUX86State *env = &x86_cpu->env; | |
2188 | #elif defined(TARGET_PPC) | |
2189 | PowerPCCPU *ppc_cpu = POWERPC_CPU(cpu); | |
2190 | CPUPPCState *env = &ppc_cpu->env; | |
2191 | #elif defined(TARGET_SPARC) | |
2192 | SPARCCPU *sparc_cpu = SPARC_CPU(cpu); | |
2193 | CPUSPARCState *env = &sparc_cpu->env; | |
25fa194b MC |
2194 | #elif defined(TARGET_RISCV) |
2195 | RISCVCPU *riscv_cpu = RISCV_CPU(cpu); | |
2196 | CPURISCVState *env = &riscv_cpu->env; | |
182735ef AF |
2197 | #elif defined(TARGET_MIPS) |
2198 | MIPSCPU *mips_cpu = MIPS_CPU(cpu); | |
2199 | CPUMIPSState *env = &mips_cpu->env; | |
48e06fe0 BK |
2200 | #elif defined(TARGET_TRICORE) |
2201 | TriCoreCPU *tricore_cpu = TRICORE_CPU(cpu); | |
2202 | CPUTriCoreState *env = &tricore_cpu->env; | |
9d0306df VM |
2203 | #elif defined(TARGET_S390X) |
2204 | S390CPU *s390_cpu = S390_CPU(cpu); | |
2205 | CPUS390XState *env = &s390_cpu->env; | |
182735ef | 2206 | #endif |
de0b36b6 | 2207 | |
cb446eca | 2208 | cpu_synchronize_state(cpu); |
de0b36b6 LC |
2209 | |
2210 | info = g_malloc0(sizeof(*info)); | |
2211 | info->value = g_malloc0(sizeof(*info->value)); | |
55e5c285 | 2212 | info->value->CPU = cpu->cpu_index; |
182735ef | 2213 | info->value->current = (cpu == first_cpu); |
259186a7 | 2214 | info->value->halted = cpu->halted; |
58f88d4b | 2215 | info->value->qom_path = object_get_canonical_path(OBJECT(cpu)); |
9f09e18a | 2216 | info->value->thread_id = cpu->thread_id; |
de0b36b6 | 2217 | #if defined(TARGET_I386) |
86f4b687 | 2218 | info->value->arch = CPU_INFO_ARCH_X86; |
544a3731 | 2219 | info->value->u.x86.pc = env->eip + env->segs[R_CS].base; |
de0b36b6 | 2220 | #elif defined(TARGET_PPC) |
86f4b687 | 2221 | info->value->arch = CPU_INFO_ARCH_PPC; |
544a3731 | 2222 | info->value->u.ppc.nip = env->nip; |
de0b36b6 | 2223 | #elif defined(TARGET_SPARC) |
86f4b687 | 2224 | info->value->arch = CPU_INFO_ARCH_SPARC; |
544a3731 EB |
2225 | info->value->u.q_sparc.pc = env->pc; |
2226 | info->value->u.q_sparc.npc = env->npc; | |
de0b36b6 | 2227 | #elif defined(TARGET_MIPS) |
86f4b687 | 2228 | info->value->arch = CPU_INFO_ARCH_MIPS; |
544a3731 | 2229 | info->value->u.q_mips.PC = env->active_tc.PC; |
48e06fe0 | 2230 | #elif defined(TARGET_TRICORE) |
86f4b687 | 2231 | info->value->arch = CPU_INFO_ARCH_TRICORE; |
544a3731 | 2232 | info->value->u.tricore.PC = env->PC; |
9d0306df VM |
2233 | #elif defined(TARGET_S390X) |
2234 | info->value->arch = CPU_INFO_ARCH_S390; | |
2235 | info->value->u.s390.cpu_state = env->cpu_state; | |
25fa194b MC |
2236 | #elif defined(TARGET_RISCV) |
2237 | info->value->arch = CPU_INFO_ARCH_RISCV; | |
2238 | info->value->u.riscv.pc = env->pc; | |
86f4b687 EB |
2239 | #else |
2240 | info->value->arch = CPU_INFO_ARCH_OTHER; | |
de0b36b6 | 2241 | #endif |
afed5a5a IM |
2242 | info->value->has_props = !!mc->cpu_index_to_instance_props; |
2243 | if (info->value->has_props) { | |
2244 | CpuInstanceProperties *props; | |
2245 | props = g_malloc0(sizeof(*props)); | |
2246 | *props = mc->cpu_index_to_instance_props(ms, cpu->cpu_index); | |
2247 | info->value->props = props; | |
2248 | } | |
de0b36b6 LC |
2249 | |
2250 | /* XXX: waiting for the qapi to support GSList */ | |
2251 | if (!cur_item) { | |
2252 | head = cur_item = info; | |
2253 | } else { | |
2254 | cur_item->next = info; | |
2255 | cur_item = info; | |
2256 | } | |
2257 | } | |
2258 | ||
2259 | return head; | |
2260 | } | |
0cfd6a9a | 2261 | |
daa9d2bc LE |
2262 | static CpuInfoArch sysemu_target_to_cpuinfo_arch(SysEmuTarget target) |
2263 | { | |
2264 | /* | |
2265 | * The @SysEmuTarget -> @CpuInfoArch mapping below is based on the | |
2266 | * TARGET_ARCH -> TARGET_BASE_ARCH mapping in the "configure" script. | |
2267 | */ | |
2268 | switch (target) { | |
2269 | case SYS_EMU_TARGET_I386: | |
2270 | case SYS_EMU_TARGET_X86_64: | |
2271 | return CPU_INFO_ARCH_X86; | |
2272 | ||
2273 | case SYS_EMU_TARGET_PPC: | |
daa9d2bc LE |
2274 | case SYS_EMU_TARGET_PPC64: |
2275 | return CPU_INFO_ARCH_PPC; | |
2276 | ||
2277 | case SYS_EMU_TARGET_SPARC: | |
2278 | case SYS_EMU_TARGET_SPARC64: | |
2279 | return CPU_INFO_ARCH_SPARC; | |
2280 | ||
2281 | case SYS_EMU_TARGET_MIPS: | |
2282 | case SYS_EMU_TARGET_MIPSEL: | |
2283 | case SYS_EMU_TARGET_MIPS64: | |
2284 | case SYS_EMU_TARGET_MIPS64EL: | |
2285 | return CPU_INFO_ARCH_MIPS; | |
2286 | ||
2287 | case SYS_EMU_TARGET_TRICORE: | |
2288 | return CPU_INFO_ARCH_TRICORE; | |
2289 | ||
2290 | case SYS_EMU_TARGET_S390X: | |
2291 | return CPU_INFO_ARCH_S390; | |
2292 | ||
2293 | case SYS_EMU_TARGET_RISCV32: | |
2294 | case SYS_EMU_TARGET_RISCV64: | |
2295 | return CPU_INFO_ARCH_RISCV; | |
2296 | ||
2297 | default: | |
2298 | return CPU_INFO_ARCH_OTHER; | |
2299 | } | |
2300 | } | |
2301 | ||
2302 | static void cpustate_to_cpuinfo_s390(CpuInfoS390 *info, const CPUState *cpu) | |
2303 | { | |
2304 | #ifdef TARGET_S390X | |
2305 | S390CPU *s390_cpu = S390_CPU(cpu); | |
2306 | CPUS390XState *env = &s390_cpu->env; | |
2307 | ||
2308 | info->cpu_state = env->cpu_state; | |
2309 | #else | |
2310 | abort(); | |
2311 | #endif | |
2312 | } | |
2313 | ||
ce74ee3d LC |
2314 | /* |
2315 | * fast means: we NEVER interrupt vCPU threads to retrieve | |
2316 | * information from KVM. | |
2317 | */ | |
2318 | CpuInfoFastList *qmp_query_cpus_fast(Error **errp) | |
2319 | { | |
2320 | MachineState *ms = MACHINE(qdev_get_machine()); | |
2321 | MachineClass *mc = MACHINE_GET_CLASS(ms); | |
2322 | CpuInfoFastList *head = NULL, *cur_item = NULL; | |
daa9d2bc LE |
2323 | SysEmuTarget target = qapi_enum_parse(&SysEmuTarget_lookup, TARGET_NAME, |
2324 | -1, &error_abort); | |
ce74ee3d LC |
2325 | CPUState *cpu; |
2326 | ||
2327 | CPU_FOREACH(cpu) { | |
2328 | CpuInfoFastList *info = g_malloc0(sizeof(*info)); | |
2329 | info->value = g_malloc0(sizeof(*info->value)); | |
2330 | ||
2331 | info->value->cpu_index = cpu->cpu_index; | |
2332 | info->value->qom_path = object_get_canonical_path(OBJECT(cpu)); | |
2333 | info->value->thread_id = cpu->thread_id; | |
2334 | ||
2335 | info->value->has_props = !!mc->cpu_index_to_instance_props; | |
2336 | if (info->value->has_props) { | |
2337 | CpuInstanceProperties *props; | |
2338 | props = g_malloc0(sizeof(*props)); | |
2339 | *props = mc->cpu_index_to_instance_props(ms, cpu->cpu_index); | |
2340 | info->value->props = props; | |
2341 | } | |
2342 | ||
daa9d2bc LE |
2343 | info->value->arch = sysemu_target_to_cpuinfo_arch(target); |
2344 | info->value->target = target; | |
2345 | if (target == SYS_EMU_TARGET_S390X) { | |
2346 | cpustate_to_cpuinfo_s390(&info->value->u.s390x, cpu); | |
daa9d2bc LE |
2347 | } |
2348 | ||
ce74ee3d LC |
2349 | if (!cur_item) { |
2350 | head = cur_item = info; | |
2351 | } else { | |
2352 | cur_item->next = info; | |
2353 | cur_item = info; | |
2354 | } | |
2355 | } | |
2356 | ||
2357 | return head; | |
2358 | } | |
2359 | ||
0cfd6a9a LC |
2360 | void qmp_memsave(int64_t addr, int64_t size, const char *filename, |
2361 | bool has_cpu, int64_t cpu_index, Error **errp) | |
2362 | { | |
2363 | FILE *f; | |
2364 | uint32_t l; | |
55e5c285 | 2365 | CPUState *cpu; |
0cfd6a9a | 2366 | uint8_t buf[1024]; |
0dc9daf0 | 2367 | int64_t orig_addr = addr, orig_size = size; |
0cfd6a9a LC |
2368 | |
2369 | if (!has_cpu) { | |
2370 | cpu_index = 0; | |
2371 | } | |
2372 | ||
151d1322 AF |
2373 | cpu = qemu_get_cpu(cpu_index); |
2374 | if (cpu == NULL) { | |
c6bd8c70 MA |
2375 | error_setg(errp, QERR_INVALID_PARAMETER_VALUE, "cpu-index", |
2376 | "a CPU number"); | |
0cfd6a9a LC |
2377 | return; |
2378 | } | |
2379 | ||
2380 | f = fopen(filename, "wb"); | |
2381 | if (!f) { | |
618da851 | 2382 | error_setg_file_open(errp, errno, filename); |
0cfd6a9a LC |
2383 | return; |
2384 | } | |
2385 | ||
2386 | while (size != 0) { | |
2387 | l = sizeof(buf); | |
2388 | if (l > size) | |
2389 | l = size; | |
2f4d0f59 | 2390 | if (cpu_memory_rw_debug(cpu, addr, buf, l, 0) != 0) { |
0dc9daf0 BP |
2391 | error_setg(errp, "Invalid addr 0x%016" PRIx64 "/size %" PRId64 |
2392 | " specified", orig_addr, orig_size); | |
2f4d0f59 AK |
2393 | goto exit; |
2394 | } | |
0cfd6a9a | 2395 | if (fwrite(buf, 1, l, f) != l) { |
c6bd8c70 | 2396 | error_setg(errp, QERR_IO_ERROR); |
0cfd6a9a LC |
2397 | goto exit; |
2398 | } | |
2399 | addr += l; | |
2400 | size -= l; | |
2401 | } | |
2402 | ||
2403 | exit: | |
2404 | fclose(f); | |
2405 | } | |
6d3962bf LC |
2406 | |
2407 | void qmp_pmemsave(int64_t addr, int64_t size, const char *filename, | |
2408 | Error **errp) | |
2409 | { | |
2410 | FILE *f; | |
2411 | uint32_t l; | |
2412 | uint8_t buf[1024]; | |
2413 | ||
2414 | f = fopen(filename, "wb"); | |
2415 | if (!f) { | |
618da851 | 2416 | error_setg_file_open(errp, errno, filename); |
6d3962bf LC |
2417 | return; |
2418 | } | |
2419 | ||
2420 | while (size != 0) { | |
2421 | l = sizeof(buf); | |
2422 | if (l > size) | |
2423 | l = size; | |
eb6282f2 | 2424 | cpu_physical_memory_read(addr, buf, l); |
6d3962bf | 2425 | if (fwrite(buf, 1, l, f) != l) { |
c6bd8c70 | 2426 | error_setg(errp, QERR_IO_ERROR); |
6d3962bf LC |
2427 | goto exit; |
2428 | } | |
2429 | addr += l; | |
2430 | size -= l; | |
2431 | } | |
2432 | ||
2433 | exit: | |
2434 | fclose(f); | |
2435 | } | |
ab49ab5c LC |
2436 | |
2437 | void qmp_inject_nmi(Error **errp) | |
2438 | { | |
9cb805fd | 2439 | nmi_monitor_handle(monitor_get_cpu_index(), errp); |
ab49ab5c | 2440 | } |
27498bef ST |
2441 | |
2442 | void dump_drift_info(FILE *f, fprintf_function cpu_fprintf) | |
2443 | { | |
2444 | if (!use_icount) { | |
2445 | return; | |
2446 | } | |
2447 | ||
2448 | cpu_fprintf(f, "Host - Guest clock %"PRIi64" ms\n", | |
2449 | (cpu_get_clock() - cpu_get_icount())/SCALE_MS); | |
2450 | if (icount_align_option) { | |
2451 | cpu_fprintf(f, "Max guest delay %"PRIi64" ms\n", -max_delay/SCALE_MS); | |
2452 | cpu_fprintf(f, "Max guest advance %"PRIi64" ms\n", max_advance/SCALE_MS); | |
2453 | } else { | |
2454 | cpu_fprintf(f, "Max guest delay NA\n"); | |
2455 | cpu_fprintf(f, "Max guest advance NA\n"); | |
2456 | } | |
2457 | } |