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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
75int64_t max_delay;
76int64_t max_advance;
296af7c9 77
2adcc85d
JH
78/* vcpu throttling controls */
79static QEMUTimer *throttle_timer;
80static 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
86bool cpu_is_stopped(CPUState *cpu)
87{
88 return cpu->stopped || !runstate_is_running();
89}
90
a98ae1d8 91static 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
106static 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 123static bool icount_sleep = true;
946fb27c
PB
124/* Arbitrarily pick 1MIPS as the minimum allowable speed. */
125#define MAX_ICOUNT_SHIFT 10
a3270e19 126
946fb27c 127typedef 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 158static TimersState timers_state;
8d4e9146
FK
159bool 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
181static 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
190static 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
203void 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 */
238static 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 248static 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 */
262void 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 271static 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
287static 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
294int64_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
308int64_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
321int64_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
326static 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
347int64_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 361static 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
376int64_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
392void 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
409void 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
428static 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
471static 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
478static 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
486static 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 492static 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 538static 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
546void 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 570void 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
671static 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
693static bool icount_state_needed(void *opaque)
694{
695 return use_icount;
696}
697
b39e3f34
PD
698static bool warp_timer_state_needed(void *opaque)
699{
700 TimersState *s = opaque;
701 return s->icount_warp_timer != NULL;
702}
703
704static 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 */
713static 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
725static 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 */
740static 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
757static 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 773static 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
793static 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
814void 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
826void cpu_throttle_stop(void)
827{
828 atomic_set(&throttle_percentage, 0);
829}
830
831bool cpu_throttle_active(void)
832{
833 return (cpu_throttle_get_percentage() != 0);
834}
835
836int cpu_throttle_get_percentage(void)
837{
838 return atomic_read(&throttle_percentage);
839}
840
4603ea01
PD
841void 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 850void 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
923static QEMUTimer *tcg_kick_vcpu_timer;
791158d9 924static CPUState *tcg_current_rr_cpu;
6546706d
AB
925
926#define TCG_KICK_PERIOD (NANOSECONDS_PER_SECOND / 10)
927
928static 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 */
934static 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
945static void do_nothing(CPUState *cpu, run_on_cpu_data unused)
946{
947}
948
3f53bc61
PB
949void 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
974static 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
980static 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);
986 timer_mod(tcg_kick_vcpu_timer, qemu_tcg_next_kick());
987 }
988}
989
990static void stop_tcg_kick_timer(void)
991{
db08b687 992 assert(!mttcg_enabled);
6546706d
AB
993 if (tcg_kick_vcpu_timer) {
994 timer_del(tcg_kick_vcpu_timer);
995 tcg_kick_vcpu_timer = NULL;
996 }
997}
998
296af7c9
BS
999/***********************************************************/
1000void hw_error(const char *fmt, ...)
1001{
1002 va_list ap;
55e5c285 1003 CPUState *cpu;
296af7c9
BS
1004
1005 va_start(ap, fmt);
1006 fprintf(stderr, "qemu: hardware error: ");
1007 vfprintf(stderr, fmt, ap);
1008 fprintf(stderr, "\n");
bdc44640 1009 CPU_FOREACH(cpu) {
55e5c285 1010 fprintf(stderr, "CPU #%d:\n", cpu->cpu_index);
878096ee 1011 cpu_dump_state(cpu, stderr, fprintf, CPU_DUMP_FPU);
296af7c9
BS
1012 }
1013 va_end(ap);
1014 abort();
1015}
1016
1017void cpu_synchronize_all_states(void)
1018{
182735ef 1019 CPUState *cpu;
296af7c9 1020
bdc44640 1021 CPU_FOREACH(cpu) {
182735ef 1022 cpu_synchronize_state(cpu);
c97d6d2c
SAGDR
1023 /* TODO: move to cpu_synchronize_state() */
1024 if (hvf_enabled()) {
1025 hvf_cpu_synchronize_state(cpu);
1026 }
296af7c9
BS
1027 }
1028}
1029
1030void cpu_synchronize_all_post_reset(void)
1031{
182735ef 1032 CPUState *cpu;
296af7c9 1033
bdc44640 1034 CPU_FOREACH(cpu) {
182735ef 1035 cpu_synchronize_post_reset(cpu);
c97d6d2c
SAGDR
1036 /* TODO: move to cpu_synchronize_post_reset() */
1037 if (hvf_enabled()) {
1038 hvf_cpu_synchronize_post_reset(cpu);
1039 }
296af7c9
BS
1040 }
1041}
1042
1043void cpu_synchronize_all_post_init(void)
1044{
182735ef 1045 CPUState *cpu;
296af7c9 1046
bdc44640 1047 CPU_FOREACH(cpu) {
182735ef 1048 cpu_synchronize_post_init(cpu);
c97d6d2c
SAGDR
1049 /* TODO: move to cpu_synchronize_post_init() */
1050 if (hvf_enabled()) {
1051 hvf_cpu_synchronize_post_init(cpu);
1052 }
296af7c9
BS
1053 }
1054}
1055
75e972da
DG
1056void cpu_synchronize_all_pre_loadvm(void)
1057{
1058 CPUState *cpu;
1059
1060 CPU_FOREACH(cpu) {
1061 cpu_synchronize_pre_loadvm(cpu);
1062 }
1063}
1064
4486e89c 1065static int do_vm_stop(RunState state, bool send_stop)
296af7c9 1066{
56983463
KW
1067 int ret = 0;
1068
1354869c 1069 if (runstate_is_running()) {
296af7c9 1070 cpu_disable_ticks();
296af7c9 1071 pause_all_vcpus();
f5bbfba1 1072 runstate_set(state);
1dfb4dd9 1073 vm_state_notify(0, state);
4486e89c 1074 if (send_stop) {
3ab72385 1075 qapi_event_send_stop();
4486e89c 1076 }
296af7c9 1077 }
56983463 1078
594a45ce 1079 bdrv_drain_all();
6d0ceb80 1080 replay_disable_events();
22af08ea 1081 ret = bdrv_flush_all();
594a45ce 1082
56983463 1083 return ret;
296af7c9
BS
1084}
1085
4486e89c
SH
1086/* Special vm_stop() variant for terminating the process. Historically clients
1087 * did not expect a QMP STOP event and so we need to retain compatibility.
1088 */
1089int vm_shutdown(void)
1090{
1091 return do_vm_stop(RUN_STATE_SHUTDOWN, false);
1092}
1093
a1fcaa73 1094static bool cpu_can_run(CPUState *cpu)
296af7c9 1095{
4fdeee7c 1096 if (cpu->stop) {
a1fcaa73 1097 return false;
0ab07c62 1098 }
321bc0b2 1099 if (cpu_is_stopped(cpu)) {
a1fcaa73 1100 return false;
0ab07c62 1101 }
a1fcaa73 1102 return true;
296af7c9
BS
1103}
1104
91325046 1105static void cpu_handle_guest_debug(CPUState *cpu)
83f338f7 1106{
64f6b346 1107 gdb_set_stop_cpu(cpu);
8cf71710 1108 qemu_system_debug_request();
f324e766 1109 cpu->stopped = true;
3c638d06
JK
1110}
1111
6d9cb73c
JK
1112#ifdef CONFIG_LINUX
1113static void sigbus_reraise(void)
1114{
1115 sigset_t set;
1116 struct sigaction action;
1117
1118 memset(&action, 0, sizeof(action));
1119 action.sa_handler = SIG_DFL;
1120 if (!sigaction(SIGBUS, &action, NULL)) {
1121 raise(SIGBUS);
1122 sigemptyset(&set);
1123 sigaddset(&set, SIGBUS);
a2d1761d 1124 pthread_sigmask(SIG_UNBLOCK, &set, NULL);
6d9cb73c
JK
1125 }
1126 perror("Failed to re-raise SIGBUS!\n");
1127 abort();
1128}
1129
d98d4072 1130static void sigbus_handler(int n, siginfo_t *siginfo, void *ctx)
6d9cb73c 1131{
a16fc07e
PB
1132 if (siginfo->si_code != BUS_MCEERR_AO && siginfo->si_code != BUS_MCEERR_AR) {
1133 sigbus_reraise();
1134 }
1135
2ae41db2
PB
1136 if (current_cpu) {
1137 /* Called asynchronously in VCPU thread. */
1138 if (kvm_on_sigbus_vcpu(current_cpu, siginfo->si_code, siginfo->si_addr)) {
1139 sigbus_reraise();
1140 }
1141 } else {
1142 /* Called synchronously (via signalfd) in main thread. */
1143 if (kvm_on_sigbus(siginfo->si_code, siginfo->si_addr)) {
1144 sigbus_reraise();
1145 }
6d9cb73c
JK
1146 }
1147}
1148
1149static void qemu_init_sigbus(void)
1150{
1151 struct sigaction action;
1152
1153 memset(&action, 0, sizeof(action));
1154 action.sa_flags = SA_SIGINFO;
d98d4072 1155 action.sa_sigaction = sigbus_handler;
6d9cb73c
JK
1156 sigaction(SIGBUS, &action, NULL);
1157
1158 prctl(PR_MCE_KILL, PR_MCE_KILL_SET, PR_MCE_KILL_EARLY, 0, 0);
1159}
6d9cb73c 1160#else /* !CONFIG_LINUX */
6d9cb73c
JK
1161static void qemu_init_sigbus(void)
1162{
1163}
a16fc07e 1164#endif /* !CONFIG_LINUX */
ff48eb5f 1165
b2532d88 1166static QemuMutex qemu_global_mutex;
296af7c9
BS
1167
1168static QemuThread io_thread;
1169
296af7c9
BS
1170/* cpu creation */
1171static QemuCond qemu_cpu_cond;
1172/* system init */
296af7c9
BS
1173static QemuCond qemu_pause_cond;
1174
d3b12f5d 1175void qemu_init_cpu_loop(void)
296af7c9 1176{
6d9cb73c 1177 qemu_init_sigbus();
ed94592b 1178 qemu_cond_init(&qemu_cpu_cond);
ed94592b 1179 qemu_cond_init(&qemu_pause_cond);
296af7c9 1180 qemu_mutex_init(&qemu_global_mutex);
296af7c9 1181
b7680cb6 1182 qemu_thread_get_self(&io_thread);
296af7c9
BS
1183}
1184
14e6fe12 1185void run_on_cpu(CPUState *cpu, run_on_cpu_func func, run_on_cpu_data data)
e82bcec2 1186{
d148d90e 1187 do_run_on_cpu(cpu, func, data, &qemu_global_mutex);
3c02270d
CV
1188}
1189
4c055ab5
GZ
1190static void qemu_kvm_destroy_vcpu(CPUState *cpu)
1191{
1192 if (kvm_destroy_vcpu(cpu) < 0) {
1193 error_report("kvm_destroy_vcpu failed");
1194 exit(EXIT_FAILURE);
1195 }
1196}
1197
1198static void qemu_tcg_destroy_vcpu(CPUState *cpu)
1199{
1200}
1201
ebd05fea
DH
1202static void qemu_cpu_stop(CPUState *cpu, bool exit)
1203{
1204 g_assert(qemu_cpu_is_self(cpu));
1205 cpu->stop = false;
1206 cpu->stopped = true;
1207 if (exit) {
1208 cpu_exit(cpu);
1209 }
1210 qemu_cond_broadcast(&qemu_pause_cond);
1211}
1212
509a0d78 1213static void qemu_wait_io_event_common(CPUState *cpu)
296af7c9 1214{
37257942 1215 atomic_mb_set(&cpu->thread_kicked, false);
4fdeee7c 1216 if (cpu->stop) {
ebd05fea 1217 qemu_cpu_stop(cpu, false);
296af7c9 1218 }
a5403c69 1219 process_queued_cpu_work(cpu);
37257942
AB
1220}
1221
db08b687 1222static void qemu_tcg_rr_wait_io_event(CPUState *cpu)
37257942 1223{
db08b687 1224 while (all_cpu_threads_idle()) {
6546706d 1225 stop_tcg_kick_timer();
d5f8d613 1226 qemu_cond_wait(cpu->halt_cond, &qemu_global_mutex);
16400322 1227 }
296af7c9 1228
6546706d
AB
1229 start_tcg_kick_timer();
1230
37257942 1231 qemu_wait_io_event_common(cpu);
296af7c9
BS
1232}
1233
db08b687 1234static void qemu_wait_io_event(CPUState *cpu)
296af7c9 1235{
a98ae1d8 1236 while (cpu_thread_is_idle(cpu)) {
f5c121b8 1237 qemu_cond_wait(cpu->halt_cond, &qemu_global_mutex);
16400322 1238 }
296af7c9 1239
db08b687
PB
1240#ifdef _WIN32
1241 /* Eat dummy APC queued by qemu_cpu_kick_thread. */
1242 if (!tcg_enabled()) {
1243 SleepEx(0, TRUE);
c97d6d2c 1244 }
db08b687 1245#endif
c97d6d2c
SAGDR
1246 qemu_wait_io_event_common(cpu);
1247}
1248
7e97cd88 1249static void *qemu_kvm_cpu_thread_fn(void *arg)
296af7c9 1250{
48a106bd 1251 CPUState *cpu = arg;
84b4915d 1252 int r;
296af7c9 1253
ab28bd23
PB
1254 rcu_register_thread();
1255
2e7f7a3c 1256 qemu_mutex_lock_iothread();
814e612e 1257 qemu_thread_get_self(cpu->thread);
9f09e18a 1258 cpu->thread_id = qemu_get_thread_id();
626cf8f4 1259 cpu->can_do_io = 1;
4917cf44 1260 current_cpu = cpu;
296af7c9 1261
504134d2 1262 r = kvm_init_vcpu(cpu);
84b4915d 1263 if (r < 0) {
493d89bf 1264 error_report("kvm_init_vcpu failed: %s", strerror(-r));
84b4915d
JK
1265 exit(1);
1266 }
296af7c9 1267
18268b60 1268 kvm_init_cpu_signals(cpu);
296af7c9
BS
1269
1270 /* signal CPU creation */
61a46217 1271 cpu->created = true;
296af7c9
BS
1272 qemu_cond_signal(&qemu_cpu_cond);
1273
4c055ab5 1274 do {
a1fcaa73 1275 if (cpu_can_run(cpu)) {
1458c363 1276 r = kvm_cpu_exec(cpu);
83f338f7 1277 if (r == EXCP_DEBUG) {
91325046 1278 cpu_handle_guest_debug(cpu);
83f338f7 1279 }
0ab07c62 1280 }
db08b687 1281 qemu_wait_io_event(cpu);
4c055ab5 1282 } while (!cpu->unplug || cpu_can_run(cpu));
296af7c9 1283
4c055ab5 1284 qemu_kvm_destroy_vcpu(cpu);
2c579042
BR
1285 cpu->created = false;
1286 qemu_cond_signal(&qemu_cpu_cond);
4c055ab5 1287 qemu_mutex_unlock_iothread();
57615ed5 1288 rcu_unregister_thread();
296af7c9
BS
1289 return NULL;
1290}
1291
c7f0f3b1
AL
1292static void *qemu_dummy_cpu_thread_fn(void *arg)
1293{
1294#ifdef _WIN32
493d89bf 1295 error_report("qtest is not supported under Windows");
c7f0f3b1
AL
1296 exit(1);
1297#else
10a9021d 1298 CPUState *cpu = arg;
c7f0f3b1
AL
1299 sigset_t waitset;
1300 int r;
1301
ab28bd23
PB
1302 rcu_register_thread();
1303
c7f0f3b1 1304 qemu_mutex_lock_iothread();
814e612e 1305 qemu_thread_get_self(cpu->thread);
9f09e18a 1306 cpu->thread_id = qemu_get_thread_id();
626cf8f4 1307 cpu->can_do_io = 1;
37257942 1308 current_cpu = cpu;
c7f0f3b1
AL
1309
1310 sigemptyset(&waitset);
1311 sigaddset(&waitset, SIG_IPI);
1312
1313 /* signal CPU creation */
61a46217 1314 cpu->created = true;
c7f0f3b1
AL
1315 qemu_cond_signal(&qemu_cpu_cond);
1316
d2831ab0 1317 do {
c7f0f3b1
AL
1318 qemu_mutex_unlock_iothread();
1319 do {
1320 int sig;
1321 r = sigwait(&waitset, &sig);
1322 } while (r == -1 && (errno == EAGAIN || errno == EINTR));
1323 if (r == -1) {
1324 perror("sigwait");
1325 exit(1);
1326 }
1327 qemu_mutex_lock_iothread();
db08b687 1328 qemu_wait_io_event(cpu);
d2831ab0 1329 } while (!cpu->unplug);
c7f0f3b1 1330
d2831ab0 1331 rcu_unregister_thread();
c7f0f3b1
AL
1332 return NULL;
1333#endif
1334}
1335
1be7fcb8
AB
1336static int64_t tcg_get_icount_limit(void)
1337{
1338 int64_t deadline;
1339
1340 if (replay_mode != REPLAY_MODE_PLAY) {
1341 deadline = qemu_clock_deadline_ns_all(QEMU_CLOCK_VIRTUAL);
1342
1343 /* Maintain prior (possibly buggy) behaviour where if no deadline
1344 * was set (as there is no QEMU_CLOCK_VIRTUAL timer) or it is more than
1345 * INT32_MAX nanoseconds ahead, we still use INT32_MAX
1346 * nanoseconds.
1347 */
1348 if ((deadline < 0) || (deadline > INT32_MAX)) {
1349 deadline = INT32_MAX;
1350 }
1351
1352 return qemu_icount_round(deadline);
1353 } else {
1354 return replay_get_instructions();
1355 }
1356}
1357
12e9700d
AB
1358static void handle_icount_deadline(void)
1359{
6b8f0187 1360 assert(qemu_in_vcpu_thread());
12e9700d
AB
1361 if (use_icount) {
1362 int64_t deadline =
1363 qemu_clock_deadline_ns_all(QEMU_CLOCK_VIRTUAL);
1364
1365 if (deadline == 0) {
6b8f0187 1366 /* Wake up other AioContexts. */
12e9700d 1367 qemu_clock_notify(QEMU_CLOCK_VIRTUAL);
6b8f0187 1368 qemu_clock_run_timers(QEMU_CLOCK_VIRTUAL);
12e9700d
AB
1369 }
1370 }
1371}
1372
05248382 1373static void prepare_icount_for_run(CPUState *cpu)
1be7fcb8 1374{
1be7fcb8 1375 if (use_icount) {
eda5f7c6 1376 int insns_left;
05248382
AB
1377
1378 /* These should always be cleared by process_icount_data after
1379 * each vCPU execution. However u16.high can be raised
1380 * asynchronously by cpu_exit/cpu_interrupt/tcg_handle_interrupt
1381 */
1382 g_assert(cpu->icount_decr.u16.low == 0);
1383 g_assert(cpu->icount_extra == 0);
1384
eda5f7c6
AB
1385 cpu->icount_budget = tcg_get_icount_limit();
1386 insns_left = MIN(0xffff, cpu->icount_budget);
1387 cpu->icount_decr.u16.low = insns_left;
1388 cpu->icount_extra = cpu->icount_budget - insns_left;
d759c951
AB
1389
1390 replay_mutex_lock();
1be7fcb8 1391 }
05248382
AB
1392}
1393
1394static void process_icount_data(CPUState *cpu)
1395{
1be7fcb8 1396 if (use_icount) {
e4cd9657 1397 /* Account for executed instructions */
512d3c80 1398 cpu_update_icount(cpu);
05248382
AB
1399
1400 /* Reset the counters */
1401 cpu->icount_decr.u16.low = 0;
1be7fcb8 1402 cpu->icount_extra = 0;
e4cd9657
AB
1403 cpu->icount_budget = 0;
1404
1be7fcb8 1405 replay_account_executed_instructions();
d759c951
AB
1406
1407 replay_mutex_unlock();
1be7fcb8 1408 }
05248382
AB
1409}
1410
1411
1412static int tcg_cpu_exec(CPUState *cpu)
1413{
1414 int ret;
1415#ifdef CONFIG_PROFILER
1416 int64_t ti;
1417#endif
1418
f28d0dfd 1419 assert(tcg_enabled());
05248382
AB
1420#ifdef CONFIG_PROFILER
1421 ti = profile_getclock();
1422#endif
05248382
AB
1423 cpu_exec_start(cpu);
1424 ret = cpu_exec(cpu);
1425 cpu_exec_end(cpu);
05248382
AB
1426#ifdef CONFIG_PROFILER
1427 tcg_time += profile_getclock() - ti;
1428#endif
1be7fcb8
AB
1429 return ret;
1430}
1431
c93bbbef
AB
1432/* Destroy any remaining vCPUs which have been unplugged and have
1433 * finished running
1434 */
1435static void deal_with_unplugged_cpus(void)
1be7fcb8 1436{
c93bbbef 1437 CPUState *cpu;
1be7fcb8 1438
c93bbbef
AB
1439 CPU_FOREACH(cpu) {
1440 if (cpu->unplug && !cpu_can_run(cpu)) {
1441 qemu_tcg_destroy_vcpu(cpu);
1442 cpu->created = false;
1443 qemu_cond_signal(&qemu_cpu_cond);
1be7fcb8
AB
1444 break;
1445 }
1446 }
1be7fcb8 1447}
bdb7ca67 1448
6546706d
AB
1449/* Single-threaded TCG
1450 *
1451 * In the single-threaded case each vCPU is simulated in turn. If
1452 * there is more than a single vCPU we create a simple timer to kick
1453 * the vCPU and ensure we don't get stuck in a tight loop in one vCPU.
1454 * This is done explicitly rather than relying on side-effects
1455 * elsewhere.
1456 */
1457
37257942 1458static void *qemu_tcg_rr_cpu_thread_fn(void *arg)
296af7c9 1459{
c3586ba7 1460 CPUState *cpu = arg;
296af7c9 1461
f28d0dfd 1462 assert(tcg_enabled());
ab28bd23 1463 rcu_register_thread();
3468b59e 1464 tcg_register_thread();
ab28bd23 1465
2e7f7a3c 1466 qemu_mutex_lock_iothread();
814e612e 1467 qemu_thread_get_self(cpu->thread);
296af7c9 1468
5a9c973b
DH
1469 cpu->thread_id = qemu_get_thread_id();
1470 cpu->created = true;
1471 cpu->can_do_io = 1;
296af7c9
BS
1472 qemu_cond_signal(&qemu_cpu_cond);
1473
fa7d1867 1474 /* wait for initial kick-off after machine start */
c28e399c 1475 while (first_cpu->stopped) {
d5f8d613 1476 qemu_cond_wait(first_cpu->halt_cond, &qemu_global_mutex);
8e564b4e
JK
1477
1478 /* process any pending work */
bdc44640 1479 CPU_FOREACH(cpu) {
37257942 1480 current_cpu = cpu;
182735ef 1481 qemu_wait_io_event_common(cpu);
8e564b4e 1482 }
0ab07c62 1483 }
296af7c9 1484
6546706d
AB
1485 start_tcg_kick_timer();
1486
c93bbbef
AB
1487 cpu = first_cpu;
1488
e5143e30
AB
1489 /* process any pending work */
1490 cpu->exit_request = 1;
1491
296af7c9 1492 while (1) {
d759c951
AB
1493 qemu_mutex_unlock_iothread();
1494 replay_mutex_lock();
1495 qemu_mutex_lock_iothread();
c93bbbef
AB
1496 /* Account partial waits to QEMU_CLOCK_VIRTUAL. */
1497 qemu_account_warp_timer();
1498
6b8f0187
PB
1499 /* Run the timers here. This is much more efficient than
1500 * waking up the I/O thread and waiting for completion.
1501 */
1502 handle_icount_deadline();
1503
d759c951
AB
1504 replay_mutex_unlock();
1505
c93bbbef
AB
1506 if (!cpu) {
1507 cpu = first_cpu;
1508 }
1509
e5143e30
AB
1510 while (cpu && !cpu->queued_work_first && !cpu->exit_request) {
1511
791158d9 1512 atomic_mb_set(&tcg_current_rr_cpu, cpu);
37257942 1513 current_cpu = cpu;
c93bbbef
AB
1514
1515 qemu_clock_enable(QEMU_CLOCK_VIRTUAL,
1516 (cpu->singlestep_enabled & SSTEP_NOTIMER) == 0);
1517
1518 if (cpu_can_run(cpu)) {
1519 int r;
05248382 1520
d759c951 1521 qemu_mutex_unlock_iothread();
05248382
AB
1522 prepare_icount_for_run(cpu);
1523
c93bbbef 1524 r = tcg_cpu_exec(cpu);
05248382
AB
1525
1526 process_icount_data(cpu);
d759c951 1527 qemu_mutex_lock_iothread();
05248382 1528
c93bbbef
AB
1529 if (r == EXCP_DEBUG) {
1530 cpu_handle_guest_debug(cpu);
1531 break;
08e73c48
PK
1532 } else if (r == EXCP_ATOMIC) {
1533 qemu_mutex_unlock_iothread();
1534 cpu_exec_step_atomic(cpu);
1535 qemu_mutex_lock_iothread();
1536 break;
c93bbbef 1537 }
37257942 1538 } else if (cpu->stop) {
c93bbbef
AB
1539 if (cpu->unplug) {
1540 cpu = CPU_NEXT(cpu);
1541 }
1542 break;
1543 }
1544
e5143e30
AB
1545 cpu = CPU_NEXT(cpu);
1546 } /* while (cpu && !cpu->exit_request).. */
1547
791158d9
AB
1548 /* Does not need atomic_mb_set because a spurious wakeup is okay. */
1549 atomic_set(&tcg_current_rr_cpu, NULL);
c93bbbef 1550
e5143e30
AB
1551 if (cpu && cpu->exit_request) {
1552 atomic_mb_set(&cpu->exit_request, 0);
1553 }
ac70aafc 1554
068a5ea0 1555 qemu_tcg_rr_wait_io_event(cpu ? cpu : first_cpu);
c93bbbef 1556 deal_with_unplugged_cpus();
296af7c9
BS
1557 }
1558
9b0605f9 1559 rcu_unregister_thread();
296af7c9
BS
1560 return NULL;
1561}
1562
b0cb0a66
VP
1563static void *qemu_hax_cpu_thread_fn(void *arg)
1564{
1565 CPUState *cpu = arg;
1566 int r;
b3d3a426 1567
9857c2d2 1568 rcu_register_thread();
b3d3a426 1569 qemu_mutex_lock_iothread();
b0cb0a66 1570 qemu_thread_get_self(cpu->thread);
b0cb0a66
VP
1571
1572 cpu->thread_id = qemu_get_thread_id();
1573 cpu->created = true;
1574 cpu->halted = 0;
1575 current_cpu = cpu;
1576
1577 hax_init_vcpu(cpu);
1578 qemu_cond_signal(&qemu_cpu_cond);
1579
9857c2d2 1580 do {
b0cb0a66
VP
1581 if (cpu_can_run(cpu)) {
1582 r = hax_smp_cpu_exec(cpu);
1583 if (r == EXCP_DEBUG) {
1584 cpu_handle_guest_debug(cpu);
1585 }
1586 }
1587
db08b687 1588 qemu_wait_io_event(cpu);
9857c2d2
PB
1589 } while (!cpu->unplug || cpu_can_run(cpu));
1590 rcu_unregister_thread();
b0cb0a66
VP
1591 return NULL;
1592}
1593
c97d6d2c
SAGDR
1594/* The HVF-specific vCPU thread function. This one should only run when the host
1595 * CPU supports the VMX "unrestricted guest" feature. */
1596static void *qemu_hvf_cpu_thread_fn(void *arg)
1597{
1598 CPUState *cpu = arg;
1599
1600 int r;
1601
1602 assert(hvf_enabled());
1603
1604 rcu_register_thread();
1605
1606 qemu_mutex_lock_iothread();
1607 qemu_thread_get_self(cpu->thread);
1608
1609 cpu->thread_id = qemu_get_thread_id();
1610 cpu->can_do_io = 1;
1611 current_cpu = cpu;
1612
1613 hvf_init_vcpu(cpu);
1614
1615 /* signal CPU creation */
1616 cpu->created = true;
1617 qemu_cond_signal(&qemu_cpu_cond);
1618
1619 do {
1620 if (cpu_can_run(cpu)) {
1621 r = hvf_vcpu_exec(cpu);
1622 if (r == EXCP_DEBUG) {
1623 cpu_handle_guest_debug(cpu);
1624 }
1625 }
db08b687 1626 qemu_wait_io_event(cpu);
c97d6d2c
SAGDR
1627 } while (!cpu->unplug || cpu_can_run(cpu));
1628
1629 hvf_vcpu_destroy(cpu);
1630 cpu->created = false;
1631 qemu_cond_signal(&qemu_cpu_cond);
1632 qemu_mutex_unlock_iothread();
8178e637 1633 rcu_unregister_thread();
c97d6d2c
SAGDR
1634 return NULL;
1635}
1636
19306806
JTV
1637static void *qemu_whpx_cpu_thread_fn(void *arg)
1638{
1639 CPUState *cpu = arg;
1640 int r;
1641
1642 rcu_register_thread();
1643
1644 qemu_mutex_lock_iothread();
1645 qemu_thread_get_self(cpu->thread);
1646 cpu->thread_id = qemu_get_thread_id();
1647 current_cpu = cpu;
1648
1649 r = whpx_init_vcpu(cpu);
1650 if (r < 0) {
1651 fprintf(stderr, "whpx_init_vcpu failed: %s\n", strerror(-r));
1652 exit(1);
1653 }
1654
1655 /* signal CPU creation */
1656 cpu->created = true;
1657 qemu_cond_signal(&qemu_cpu_cond);
1658
1659 do {
1660 if (cpu_can_run(cpu)) {
1661 r = whpx_vcpu_exec(cpu);
1662 if (r == EXCP_DEBUG) {
1663 cpu_handle_guest_debug(cpu);
1664 }
1665 }
1666 while (cpu_thread_is_idle(cpu)) {
1667 qemu_cond_wait(cpu->halt_cond, &qemu_global_mutex);
1668 }
1669 qemu_wait_io_event_common(cpu);
1670 } while (!cpu->unplug || cpu_can_run(cpu));
1671
1672 whpx_destroy_vcpu(cpu);
1673 cpu->created = false;
1674 qemu_cond_signal(&qemu_cpu_cond);
1675 qemu_mutex_unlock_iothread();
1676 rcu_unregister_thread();
c97d6d2c
SAGDR
1677 return NULL;
1678}
1679
b0cb0a66
VP
1680#ifdef _WIN32
1681static void CALLBACK dummy_apc_func(ULONG_PTR unused)
1682{
1683}
1684#endif
1685
37257942
AB
1686/* Multi-threaded TCG
1687 *
1688 * In the multi-threaded case each vCPU has its own thread. The TLS
1689 * variable current_cpu can be used deep in the code to find the
1690 * current CPUState for a given thread.
1691 */
1692
1693static void *qemu_tcg_cpu_thread_fn(void *arg)
1694{
1695 CPUState *cpu = arg;
1696
f28d0dfd 1697 assert(tcg_enabled());
bf51c720
AB
1698 g_assert(!use_icount);
1699
37257942 1700 rcu_register_thread();
3468b59e 1701 tcg_register_thread();
37257942
AB
1702
1703 qemu_mutex_lock_iothread();
1704 qemu_thread_get_self(cpu->thread);
1705
1706 cpu->thread_id = qemu_get_thread_id();
1707 cpu->created = true;
1708 cpu->can_do_io = 1;
1709 current_cpu = cpu;
1710 qemu_cond_signal(&qemu_cpu_cond);
1711
1712 /* process any pending work */
1713 cpu->exit_request = 1;
1714
54961aac 1715 do {
37257942
AB
1716 if (cpu_can_run(cpu)) {
1717 int r;
d759c951 1718 qemu_mutex_unlock_iothread();
37257942 1719 r = tcg_cpu_exec(cpu);
d759c951 1720 qemu_mutex_lock_iothread();
37257942
AB
1721 switch (r) {
1722 case EXCP_DEBUG:
1723 cpu_handle_guest_debug(cpu);
1724 break;
1725 case EXCP_HALTED:
1726 /* during start-up the vCPU is reset and the thread is
1727 * kicked several times. If we don't ensure we go back
1728 * to sleep in the halted state we won't cleanly
1729 * start-up when the vCPU is enabled.
1730 *
1731 * cpu->halted should ensure we sleep in wait_io_event
1732 */
1733 g_assert(cpu->halted);
1734 break;
08e73c48
PK
1735 case EXCP_ATOMIC:
1736 qemu_mutex_unlock_iothread();
1737 cpu_exec_step_atomic(cpu);
1738 qemu_mutex_lock_iothread();
37257942
AB
1739 default:
1740 /* Ignore everything else? */
1741 break;
1742 }
1743 }
1744
37257942 1745 atomic_mb_set(&cpu->exit_request, 0);
db08b687 1746 qemu_wait_io_event(cpu);
9b0605f9 1747 } while (!cpu->unplug || cpu_can_run(cpu));
37257942 1748
9b0605f9
PB
1749 qemu_tcg_destroy_vcpu(cpu);
1750 cpu->created = false;
1751 qemu_cond_signal(&qemu_cpu_cond);
1752 qemu_mutex_unlock_iothread();
1753 rcu_unregister_thread();
37257942
AB
1754 return NULL;
1755}
1756
2ff09a40 1757static void qemu_cpu_kick_thread(CPUState *cpu)
cc015e9a
PB
1758{
1759#ifndef _WIN32
1760 int err;
1761
e0c38211
PB
1762 if (cpu->thread_kicked) {
1763 return;
9102deda 1764 }
e0c38211 1765 cpu->thread_kicked = true;
814e612e 1766 err = pthread_kill(cpu->thread->thread, SIG_IPI);
cc015e9a
PB
1767 if (err) {
1768 fprintf(stderr, "qemu:%s: %s", __func__, strerror(err));
1769 exit(1);
1770 }
1771#else /* _WIN32 */
b0cb0a66 1772 if (!qemu_cpu_is_self(cpu)) {
19306806
JTV
1773 if (whpx_enabled()) {
1774 whpx_vcpu_kick(cpu);
1775 } else if (!QueueUserAPC(dummy_apc_func, cpu->hThread, 0)) {
b0cb0a66
VP
1776 fprintf(stderr, "%s: QueueUserAPC failed with error %lu\n",
1777 __func__, GetLastError());
1778 exit(1);
1779 }
1780 }
e0c38211
PB
1781#endif
1782}
ed9164a3 1783
c08d7424 1784void qemu_cpu_kick(CPUState *cpu)
296af7c9 1785{
f5c121b8 1786 qemu_cond_broadcast(cpu->halt_cond);
e0c38211 1787 if (tcg_enabled()) {
791158d9 1788 cpu_exit(cpu);
37257942 1789 /* NOP unless doing single-thread RR */
791158d9 1790 qemu_cpu_kick_rr_cpu();
e0c38211 1791 } else {
b0cb0a66
VP
1792 if (hax_enabled()) {
1793 /*
1794 * FIXME: race condition with the exit_request check in
1795 * hax_vcpu_hax_exec
1796 */
1797 cpu->exit_request = 1;
1798 }
e0c38211
PB
1799 qemu_cpu_kick_thread(cpu);
1800 }
296af7c9
BS
1801}
1802
46d62fac 1803void qemu_cpu_kick_self(void)
296af7c9 1804{
4917cf44 1805 assert(current_cpu);
9102deda 1806 qemu_cpu_kick_thread(current_cpu);
296af7c9
BS
1807}
1808
60e82579 1809bool qemu_cpu_is_self(CPUState *cpu)
296af7c9 1810{
814e612e 1811 return qemu_thread_is_self(cpu->thread);
296af7c9
BS
1812}
1813
79e2b9ae 1814bool qemu_in_vcpu_thread(void)
aa723c23 1815{
4917cf44 1816 return current_cpu && qemu_cpu_is_self(current_cpu);
aa723c23
JQ
1817}
1818
afbe7053
PB
1819static __thread bool iothread_locked = false;
1820
1821bool qemu_mutex_iothread_locked(void)
1822{
1823 return iothread_locked;
1824}
1825
cb764d06
EC
1826/*
1827 * The BQL is taken from so many places that it is worth profiling the
1828 * callers directly, instead of funneling them all through a single function.
1829 */
1830void qemu_mutex_lock_iothread_impl(const char *file, int line)
296af7c9 1831{
cb764d06
EC
1832 QemuMutexLockFunc bql_lock = atomic_read(&qemu_bql_mutex_lock_func);
1833
8d04fb55 1834 g_assert(!qemu_mutex_iothread_locked());
cb764d06 1835 bql_lock(&qemu_global_mutex, file, line);
afbe7053 1836 iothread_locked = true;
296af7c9
BS
1837}
1838
1839void qemu_mutex_unlock_iothread(void)
1840{
8d04fb55 1841 g_assert(qemu_mutex_iothread_locked());
afbe7053 1842 iothread_locked = false;
296af7c9
BS
1843 qemu_mutex_unlock(&qemu_global_mutex);
1844}
1845
e8faee06 1846static bool all_vcpus_paused(void)
296af7c9 1847{
bdc44640 1848 CPUState *cpu;
296af7c9 1849
bdc44640 1850 CPU_FOREACH(cpu) {
182735ef 1851 if (!cpu->stopped) {
e8faee06 1852 return false;
0ab07c62 1853 }
296af7c9
BS
1854 }
1855
e8faee06 1856 return true;
296af7c9
BS
1857}
1858
1859void pause_all_vcpus(void)
1860{
bdc44640 1861 CPUState *cpu;
296af7c9 1862
40daca54 1863 qemu_clock_enable(QEMU_CLOCK_VIRTUAL, false);
bdc44640 1864 CPU_FOREACH(cpu) {
ebd05fea
DH
1865 if (qemu_cpu_is_self(cpu)) {
1866 qemu_cpu_stop(cpu, true);
1867 } else {
1868 cpu->stop = true;
1869 qemu_cpu_kick(cpu);
1870 }
d798e974
JK
1871 }
1872
d759c951
AB
1873 /* We need to drop the replay_lock so any vCPU threads woken up
1874 * can finish their replay tasks
1875 */
1876 replay_mutex_unlock();
1877
296af7c9 1878 while (!all_vcpus_paused()) {
be7d6c57 1879 qemu_cond_wait(&qemu_pause_cond, &qemu_global_mutex);
bdc44640 1880 CPU_FOREACH(cpu) {
182735ef 1881 qemu_cpu_kick(cpu);
296af7c9
BS
1882 }
1883 }
d759c951
AB
1884
1885 qemu_mutex_unlock_iothread();
1886 replay_mutex_lock();
1887 qemu_mutex_lock_iothread();
296af7c9
BS
1888}
1889
2993683b
IM
1890void cpu_resume(CPUState *cpu)
1891{
1892 cpu->stop = false;
1893 cpu->stopped = false;
1894 qemu_cpu_kick(cpu);
1895}
1896
296af7c9
BS
1897void resume_all_vcpus(void)
1898{
bdc44640 1899 CPUState *cpu;
296af7c9 1900
40daca54 1901 qemu_clock_enable(QEMU_CLOCK_VIRTUAL, true);
bdc44640 1902 CPU_FOREACH(cpu) {
182735ef 1903 cpu_resume(cpu);
296af7c9
BS
1904 }
1905}
1906
dbadee4f 1907void cpu_remove_sync(CPUState *cpu)
4c055ab5
GZ
1908{
1909 cpu->stop = true;
1910 cpu->unplug = true;
1911 qemu_cpu_kick(cpu);
dbadee4f
PB
1912 qemu_mutex_unlock_iothread();
1913 qemu_thread_join(cpu->thread);
1914 qemu_mutex_lock_iothread();
2c579042
BR
1915}
1916
4900116e
DDAG
1917/* For temporary buffers for forming a name */
1918#define VCPU_THREAD_NAME_SIZE 16
1919
e5ab30a2 1920static void qemu_tcg_init_vcpu(CPUState *cpu)
296af7c9 1921{
4900116e 1922 char thread_name[VCPU_THREAD_NAME_SIZE];
37257942
AB
1923 static QemuCond *single_tcg_halt_cond;
1924 static QemuThread *single_tcg_cpu_thread;
e8feb96f
EC
1925 static int tcg_region_inited;
1926
f28d0dfd 1927 assert(tcg_enabled());
e8feb96f
EC
1928 /*
1929 * Initialize TCG regions--once. Now is a good time, because:
1930 * (1) TCG's init context, prologue and target globals have been set up.
1931 * (2) qemu_tcg_mttcg_enabled() works now (TCG init code runs before the
1932 * -accel flag is processed, so the check doesn't work then).
1933 */
1934 if (!tcg_region_inited) {
1935 tcg_region_inited = 1;
1936 tcg_region_init();
1937 }
4900116e 1938
37257942 1939 if (qemu_tcg_mttcg_enabled() || !single_tcg_cpu_thread) {
814e612e 1940 cpu->thread = g_malloc0(sizeof(QemuThread));
f5c121b8
AF
1941 cpu->halt_cond = g_malloc0(sizeof(QemuCond));
1942 qemu_cond_init(cpu->halt_cond);
37257942
AB
1943
1944 if (qemu_tcg_mttcg_enabled()) {
1945 /* create a thread per vCPU with TCG (MTTCG) */
1946 parallel_cpus = true;
1947 snprintf(thread_name, VCPU_THREAD_NAME_SIZE, "CPU %d/TCG",
4900116e 1948 cpu->cpu_index);
37257942
AB
1949
1950 qemu_thread_create(cpu->thread, thread_name, qemu_tcg_cpu_thread_fn,
1951 cpu, QEMU_THREAD_JOINABLE);
1952
1953 } else {
1954 /* share a single thread for all cpus with TCG */
1955 snprintf(thread_name, VCPU_THREAD_NAME_SIZE, "ALL CPUs/TCG");
1956 qemu_thread_create(cpu->thread, thread_name,
1957 qemu_tcg_rr_cpu_thread_fn,
1958 cpu, QEMU_THREAD_JOINABLE);
1959
1960 single_tcg_halt_cond = cpu->halt_cond;
1961 single_tcg_cpu_thread = cpu->thread;
1962 }
1ecf47bf 1963#ifdef _WIN32
814e612e 1964 cpu->hThread = qemu_thread_get_handle(cpu->thread);
1ecf47bf 1965#endif
296af7c9 1966 } else {
37257942
AB
1967 /* For non-MTTCG cases we share the thread */
1968 cpu->thread = single_tcg_cpu_thread;
1969 cpu->halt_cond = single_tcg_halt_cond;
a342173a
DH
1970 cpu->thread_id = first_cpu->thread_id;
1971 cpu->can_do_io = 1;
1972 cpu->created = true;
296af7c9
BS
1973 }
1974}
1975
b0cb0a66
VP
1976static void qemu_hax_start_vcpu(CPUState *cpu)
1977{
1978 char thread_name[VCPU_THREAD_NAME_SIZE];
1979
1980 cpu->thread = g_malloc0(sizeof(QemuThread));
1981 cpu->halt_cond = g_malloc0(sizeof(QemuCond));
1982 qemu_cond_init(cpu->halt_cond);
1983
1984 snprintf(thread_name, VCPU_THREAD_NAME_SIZE, "CPU %d/HAX",
1985 cpu->cpu_index);
1986 qemu_thread_create(cpu->thread, thread_name, qemu_hax_cpu_thread_fn,
1987 cpu, QEMU_THREAD_JOINABLE);
1988#ifdef _WIN32
1989 cpu->hThread = qemu_thread_get_handle(cpu->thread);
1990#endif
b0cb0a66
VP
1991}
1992
48a106bd 1993static void qemu_kvm_start_vcpu(CPUState *cpu)
296af7c9 1994{
4900116e
DDAG
1995 char thread_name[VCPU_THREAD_NAME_SIZE];
1996
814e612e 1997 cpu->thread = g_malloc0(sizeof(QemuThread));
f5c121b8
AF
1998 cpu->halt_cond = g_malloc0(sizeof(QemuCond));
1999 qemu_cond_init(cpu->halt_cond);
4900116e
DDAG
2000 snprintf(thread_name, VCPU_THREAD_NAME_SIZE, "CPU %d/KVM",
2001 cpu->cpu_index);
2002 qemu_thread_create(cpu->thread, thread_name, qemu_kvm_cpu_thread_fn,
2003 cpu, QEMU_THREAD_JOINABLE);
296af7c9
BS
2004}
2005
c97d6d2c
SAGDR
2006static void qemu_hvf_start_vcpu(CPUState *cpu)
2007{
2008 char thread_name[VCPU_THREAD_NAME_SIZE];
2009
2010 /* HVF currently does not support TCG, and only runs in
2011 * unrestricted-guest mode. */
2012 assert(hvf_enabled());
2013
2014 cpu->thread = g_malloc0(sizeof(QemuThread));
2015 cpu->halt_cond = g_malloc0(sizeof(QemuCond));
2016 qemu_cond_init(cpu->halt_cond);
2017
2018 snprintf(thread_name, VCPU_THREAD_NAME_SIZE, "CPU %d/HVF",
2019 cpu->cpu_index);
2020 qemu_thread_create(cpu->thread, thread_name, qemu_hvf_cpu_thread_fn,
2021 cpu, QEMU_THREAD_JOINABLE);
c97d6d2c
SAGDR
2022}
2023
19306806
JTV
2024static void qemu_whpx_start_vcpu(CPUState *cpu)
2025{
2026 char thread_name[VCPU_THREAD_NAME_SIZE];
2027
2028 cpu->thread = g_malloc0(sizeof(QemuThread));
2029 cpu->halt_cond = g_malloc0(sizeof(QemuCond));
2030 qemu_cond_init(cpu->halt_cond);
2031 snprintf(thread_name, VCPU_THREAD_NAME_SIZE, "CPU %d/WHPX",
2032 cpu->cpu_index);
2033 qemu_thread_create(cpu->thread, thread_name, qemu_whpx_cpu_thread_fn,
2034 cpu, QEMU_THREAD_JOINABLE);
2035#ifdef _WIN32
2036 cpu->hThread = qemu_thread_get_handle(cpu->thread);
2037#endif
19306806
JTV
2038}
2039
10a9021d 2040static void qemu_dummy_start_vcpu(CPUState *cpu)
c7f0f3b1 2041{
4900116e
DDAG
2042 char thread_name[VCPU_THREAD_NAME_SIZE];
2043
814e612e 2044 cpu->thread = g_malloc0(sizeof(QemuThread));
f5c121b8
AF
2045 cpu->halt_cond = g_malloc0(sizeof(QemuCond));
2046 qemu_cond_init(cpu->halt_cond);
4900116e
DDAG
2047 snprintf(thread_name, VCPU_THREAD_NAME_SIZE, "CPU %d/DUMMY",
2048 cpu->cpu_index);
2049 qemu_thread_create(cpu->thread, thread_name, qemu_dummy_cpu_thread_fn, cpu,
c7f0f3b1 2050 QEMU_THREAD_JOINABLE);
c7f0f3b1
AL
2051}
2052
c643bed9 2053void qemu_init_vcpu(CPUState *cpu)
296af7c9 2054{
ce3960eb
AF
2055 cpu->nr_cores = smp_cores;
2056 cpu->nr_threads = smp_threads;
f324e766 2057 cpu->stopped = true;
56943e8c
PM
2058
2059 if (!cpu->as) {
2060 /* If the target cpu hasn't set up any address spaces itself,
2061 * give it the default one.
2062 */
12ebc9a7 2063 cpu->num_ases = 1;
80ceb07a 2064 cpu_address_space_init(cpu, 0, "cpu-memory", cpu->memory);
56943e8c
PM
2065 }
2066
0ab07c62 2067 if (kvm_enabled()) {
48a106bd 2068 qemu_kvm_start_vcpu(cpu);
b0cb0a66
VP
2069 } else if (hax_enabled()) {
2070 qemu_hax_start_vcpu(cpu);
c97d6d2c
SAGDR
2071 } else if (hvf_enabled()) {
2072 qemu_hvf_start_vcpu(cpu);
c7f0f3b1 2073 } else if (tcg_enabled()) {
e5ab30a2 2074 qemu_tcg_init_vcpu(cpu);
19306806
JTV
2075 } else if (whpx_enabled()) {
2076 qemu_whpx_start_vcpu(cpu);
c7f0f3b1 2077 } else {
10a9021d 2078 qemu_dummy_start_vcpu(cpu);
0ab07c62 2079 }
81e96311
DH
2080
2081 while (!cpu->created) {
2082 qemu_cond_wait(&qemu_cpu_cond, &qemu_global_mutex);
2083 }
296af7c9
BS
2084}
2085
b4a3d965 2086void cpu_stop_current(void)
296af7c9 2087{
4917cf44 2088 if (current_cpu) {
ebd05fea 2089 qemu_cpu_stop(current_cpu, true);
b4a3d965 2090 }
296af7c9
BS
2091}
2092
56983463 2093int vm_stop(RunState state)
296af7c9 2094{
aa723c23 2095 if (qemu_in_vcpu_thread()) {
74892d24 2096 qemu_system_vmstop_request_prepare();
1dfb4dd9 2097 qemu_system_vmstop_request(state);
296af7c9
BS
2098 /*
2099 * FIXME: should not return to device code in case
2100 * vm_stop() has been requested.
2101 */
b4a3d965 2102 cpu_stop_current();
56983463 2103 return 0;
296af7c9 2104 }
56983463 2105
4486e89c 2106 return do_vm_stop(state, true);
296af7c9
BS
2107}
2108
2d76e823
CI
2109/**
2110 * Prepare for (re)starting the VM.
2111 * Returns -1 if the vCPUs are not to be restarted (e.g. if they are already
2112 * running or in case of an error condition), 0 otherwise.
2113 */
2114int vm_prepare_start(void)
2115{
2116 RunState requested;
2d76e823
CI
2117
2118 qemu_vmstop_requested(&requested);
2119 if (runstate_is_running() && requested == RUN_STATE__MAX) {
2120 return -1;
2121 }
2122
2123 /* Ensure that a STOP/RESUME pair of events is emitted if a
2124 * vmstop request was pending. The BLOCK_IO_ERROR event, for
2125 * example, according to documentation is always followed by
2126 * the STOP event.
2127 */
2128 if (runstate_is_running()) {
3ab72385
PX
2129 qapi_event_send_stop();
2130 qapi_event_send_resume();
f056158d 2131 return -1;
2d76e823
CI
2132 }
2133
2134 /* We are sending this now, but the CPUs will be resumed shortly later */
3ab72385 2135 qapi_event_send_resume();
f056158d
MA
2136
2137 replay_enable_events();
2138 cpu_enable_ticks();
2139 runstate_set(RUN_STATE_RUNNING);
2140 vm_state_notify(1, RUN_STATE_RUNNING);
2141 return 0;
2d76e823
CI
2142}
2143
2144void vm_start(void)
2145{
2146 if (!vm_prepare_start()) {
2147 resume_all_vcpus();
2148 }
2149}
2150
8a9236f1
LC
2151/* does a state transition even if the VM is already stopped,
2152 current state is forgotten forever */
56983463 2153int vm_stop_force_state(RunState state)
8a9236f1
LC
2154{
2155 if (runstate_is_running()) {
56983463 2156 return vm_stop(state);
8a9236f1
LC
2157 } else {
2158 runstate_set(state);
b2780d32
WC
2159
2160 bdrv_drain_all();
594a45ce
KW
2161 /* Make sure to return an error if the flush in a previous vm_stop()
2162 * failed. */
22af08ea 2163 return bdrv_flush_all();
8a9236f1
LC
2164 }
2165}
2166
9a78eead 2167void list_cpus(FILE *f, fprintf_function cpu_fprintf, const char *optarg)
262353cb
BS
2168{
2169 /* XXX: implement xxx_cpu_list for targets that still miss it */
e916cbf8
PM
2170#if defined(cpu_list)
2171 cpu_list(f, cpu_fprintf);
262353cb
BS
2172#endif
2173}
de0b36b6
LC
2174
2175CpuInfoList *qmp_query_cpus(Error **errp)
2176{
afed5a5a
IM
2177 MachineState *ms = MACHINE(qdev_get_machine());
2178 MachineClass *mc = MACHINE_GET_CLASS(ms);
de0b36b6 2179 CpuInfoList *head = NULL, *cur_item = NULL;
182735ef 2180 CPUState *cpu;
de0b36b6 2181
bdc44640 2182 CPU_FOREACH(cpu) {
de0b36b6 2183 CpuInfoList *info;
182735ef
AF
2184#if defined(TARGET_I386)
2185 X86CPU *x86_cpu = X86_CPU(cpu);
2186 CPUX86State *env = &x86_cpu->env;
2187#elif defined(TARGET_PPC)
2188 PowerPCCPU *ppc_cpu = POWERPC_CPU(cpu);
2189 CPUPPCState *env = &ppc_cpu->env;
2190#elif defined(TARGET_SPARC)
2191 SPARCCPU *sparc_cpu = SPARC_CPU(cpu);
2192 CPUSPARCState *env = &sparc_cpu->env;
25fa194b
MC
2193#elif defined(TARGET_RISCV)
2194 RISCVCPU *riscv_cpu = RISCV_CPU(cpu);
2195 CPURISCVState *env = &riscv_cpu->env;
182735ef
AF
2196#elif defined(TARGET_MIPS)
2197 MIPSCPU *mips_cpu = MIPS_CPU(cpu);
2198 CPUMIPSState *env = &mips_cpu->env;
48e06fe0
BK
2199#elif defined(TARGET_TRICORE)
2200 TriCoreCPU *tricore_cpu = TRICORE_CPU(cpu);
2201 CPUTriCoreState *env = &tricore_cpu->env;
9d0306df
VM
2202#elif defined(TARGET_S390X)
2203 S390CPU *s390_cpu = S390_CPU(cpu);
2204 CPUS390XState *env = &s390_cpu->env;
182735ef 2205#endif
de0b36b6 2206
cb446eca 2207 cpu_synchronize_state(cpu);
de0b36b6
LC
2208
2209 info = g_malloc0(sizeof(*info));
2210 info->value = g_malloc0(sizeof(*info->value));
55e5c285 2211 info->value->CPU = cpu->cpu_index;
182735ef 2212 info->value->current = (cpu == first_cpu);
259186a7 2213 info->value->halted = cpu->halted;
58f88d4b 2214 info->value->qom_path = object_get_canonical_path(OBJECT(cpu));
9f09e18a 2215 info->value->thread_id = cpu->thread_id;
de0b36b6 2216#if defined(TARGET_I386)
86f4b687 2217 info->value->arch = CPU_INFO_ARCH_X86;
544a3731 2218 info->value->u.x86.pc = env->eip + env->segs[R_CS].base;
de0b36b6 2219#elif defined(TARGET_PPC)
86f4b687 2220 info->value->arch = CPU_INFO_ARCH_PPC;
544a3731 2221 info->value->u.ppc.nip = env->nip;
de0b36b6 2222#elif defined(TARGET_SPARC)
86f4b687 2223 info->value->arch = CPU_INFO_ARCH_SPARC;
544a3731
EB
2224 info->value->u.q_sparc.pc = env->pc;
2225 info->value->u.q_sparc.npc = env->npc;
de0b36b6 2226#elif defined(TARGET_MIPS)
86f4b687 2227 info->value->arch = CPU_INFO_ARCH_MIPS;
544a3731 2228 info->value->u.q_mips.PC = env->active_tc.PC;
48e06fe0 2229#elif defined(TARGET_TRICORE)
86f4b687 2230 info->value->arch = CPU_INFO_ARCH_TRICORE;
544a3731 2231 info->value->u.tricore.PC = env->PC;
9d0306df
VM
2232#elif defined(TARGET_S390X)
2233 info->value->arch = CPU_INFO_ARCH_S390;
2234 info->value->u.s390.cpu_state = env->cpu_state;
25fa194b
MC
2235#elif defined(TARGET_RISCV)
2236 info->value->arch = CPU_INFO_ARCH_RISCV;
2237 info->value->u.riscv.pc = env->pc;
86f4b687
EB
2238#else
2239 info->value->arch = CPU_INFO_ARCH_OTHER;
de0b36b6 2240#endif
afed5a5a
IM
2241 info->value->has_props = !!mc->cpu_index_to_instance_props;
2242 if (info->value->has_props) {
2243 CpuInstanceProperties *props;
2244 props = g_malloc0(sizeof(*props));
2245 *props = mc->cpu_index_to_instance_props(ms, cpu->cpu_index);
2246 info->value->props = props;
2247 }
de0b36b6
LC
2248
2249 /* XXX: waiting for the qapi to support GSList */
2250 if (!cur_item) {
2251 head = cur_item = info;
2252 } else {
2253 cur_item->next = info;
2254 cur_item = info;
2255 }
2256 }
2257
2258 return head;
2259}
0cfd6a9a 2260
daa9d2bc
LE
2261static CpuInfoArch sysemu_target_to_cpuinfo_arch(SysEmuTarget target)
2262{
2263 /*
2264 * The @SysEmuTarget -> @CpuInfoArch mapping below is based on the
2265 * TARGET_ARCH -> TARGET_BASE_ARCH mapping in the "configure" script.
2266 */
2267 switch (target) {
2268 case SYS_EMU_TARGET_I386:
2269 case SYS_EMU_TARGET_X86_64:
2270 return CPU_INFO_ARCH_X86;
2271
2272 case SYS_EMU_TARGET_PPC:
daa9d2bc
LE
2273 case SYS_EMU_TARGET_PPC64:
2274 return CPU_INFO_ARCH_PPC;
2275
2276 case SYS_EMU_TARGET_SPARC:
2277 case SYS_EMU_TARGET_SPARC64:
2278 return CPU_INFO_ARCH_SPARC;
2279
2280 case SYS_EMU_TARGET_MIPS:
2281 case SYS_EMU_TARGET_MIPSEL:
2282 case SYS_EMU_TARGET_MIPS64:
2283 case SYS_EMU_TARGET_MIPS64EL:
2284 return CPU_INFO_ARCH_MIPS;
2285
2286 case SYS_EMU_TARGET_TRICORE:
2287 return CPU_INFO_ARCH_TRICORE;
2288
2289 case SYS_EMU_TARGET_S390X:
2290 return CPU_INFO_ARCH_S390;
2291
2292 case SYS_EMU_TARGET_RISCV32:
2293 case SYS_EMU_TARGET_RISCV64:
2294 return CPU_INFO_ARCH_RISCV;
2295
2296 default:
2297 return CPU_INFO_ARCH_OTHER;
2298 }
2299}
2300
2301static void cpustate_to_cpuinfo_s390(CpuInfoS390 *info, const CPUState *cpu)
2302{
2303#ifdef TARGET_S390X
2304 S390CPU *s390_cpu = S390_CPU(cpu);
2305 CPUS390XState *env = &s390_cpu->env;
2306
2307 info->cpu_state = env->cpu_state;
2308#else
2309 abort();
2310#endif
2311}
2312
ce74ee3d
LC
2313/*
2314 * fast means: we NEVER interrupt vCPU threads to retrieve
2315 * information from KVM.
2316 */
2317CpuInfoFastList *qmp_query_cpus_fast(Error **errp)
2318{
2319 MachineState *ms = MACHINE(qdev_get_machine());
2320 MachineClass *mc = MACHINE_GET_CLASS(ms);
2321 CpuInfoFastList *head = NULL, *cur_item = NULL;
daa9d2bc
LE
2322 SysEmuTarget target = qapi_enum_parse(&SysEmuTarget_lookup, TARGET_NAME,
2323 -1, &error_abort);
ce74ee3d
LC
2324 CPUState *cpu;
2325
2326 CPU_FOREACH(cpu) {
2327 CpuInfoFastList *info = g_malloc0(sizeof(*info));
2328 info->value = g_malloc0(sizeof(*info->value));
2329
2330 info->value->cpu_index = cpu->cpu_index;
2331 info->value->qom_path = object_get_canonical_path(OBJECT(cpu));
2332 info->value->thread_id = cpu->thread_id;
2333
2334 info->value->has_props = !!mc->cpu_index_to_instance_props;
2335 if (info->value->has_props) {
2336 CpuInstanceProperties *props;
2337 props = g_malloc0(sizeof(*props));
2338 *props = mc->cpu_index_to_instance_props(ms, cpu->cpu_index);
2339 info->value->props = props;
2340 }
2341
daa9d2bc
LE
2342 info->value->arch = sysemu_target_to_cpuinfo_arch(target);
2343 info->value->target = target;
2344 if (target == SYS_EMU_TARGET_S390X) {
2345 cpustate_to_cpuinfo_s390(&info->value->u.s390x, cpu);
daa9d2bc
LE
2346 }
2347
ce74ee3d
LC
2348 if (!cur_item) {
2349 head = cur_item = info;
2350 } else {
2351 cur_item->next = info;
2352 cur_item = info;
2353 }
2354 }
2355
2356 return head;
2357}
2358
0cfd6a9a
LC
2359void qmp_memsave(int64_t addr, int64_t size, const char *filename,
2360 bool has_cpu, int64_t cpu_index, Error **errp)
2361{
2362 FILE *f;
2363 uint32_t l;
55e5c285 2364 CPUState *cpu;
0cfd6a9a 2365 uint8_t buf[1024];
0dc9daf0 2366 int64_t orig_addr = addr, orig_size = size;
0cfd6a9a
LC
2367
2368 if (!has_cpu) {
2369 cpu_index = 0;
2370 }
2371
151d1322
AF
2372 cpu = qemu_get_cpu(cpu_index);
2373 if (cpu == NULL) {
c6bd8c70
MA
2374 error_setg(errp, QERR_INVALID_PARAMETER_VALUE, "cpu-index",
2375 "a CPU number");
0cfd6a9a
LC
2376 return;
2377 }
2378
2379 f = fopen(filename, "wb");
2380 if (!f) {
618da851 2381 error_setg_file_open(errp, errno, filename);
0cfd6a9a
LC
2382 return;
2383 }
2384
2385 while (size != 0) {
2386 l = sizeof(buf);
2387 if (l > size)
2388 l = size;
2f4d0f59 2389 if (cpu_memory_rw_debug(cpu, addr, buf, l, 0) != 0) {
0dc9daf0
BP
2390 error_setg(errp, "Invalid addr 0x%016" PRIx64 "/size %" PRId64
2391 " specified", orig_addr, orig_size);
2f4d0f59
AK
2392 goto exit;
2393 }
0cfd6a9a 2394 if (fwrite(buf, 1, l, f) != l) {
c6bd8c70 2395 error_setg(errp, QERR_IO_ERROR);
0cfd6a9a
LC
2396 goto exit;
2397 }
2398 addr += l;
2399 size -= l;
2400 }
2401
2402exit:
2403 fclose(f);
2404}
6d3962bf
LC
2405
2406void qmp_pmemsave(int64_t addr, int64_t size, const char *filename,
2407 Error **errp)
2408{
2409 FILE *f;
2410 uint32_t l;
2411 uint8_t buf[1024];
2412
2413 f = fopen(filename, "wb");
2414 if (!f) {
618da851 2415 error_setg_file_open(errp, errno, filename);
6d3962bf
LC
2416 return;
2417 }
2418
2419 while (size != 0) {
2420 l = sizeof(buf);
2421 if (l > size)
2422 l = size;
eb6282f2 2423 cpu_physical_memory_read(addr, buf, l);
6d3962bf 2424 if (fwrite(buf, 1, l, f) != l) {
c6bd8c70 2425 error_setg(errp, QERR_IO_ERROR);
6d3962bf
LC
2426 goto exit;
2427 }
2428 addr += l;
2429 size -= l;
2430 }
2431
2432exit:
2433 fclose(f);
2434}
ab49ab5c
LC
2435
2436void qmp_inject_nmi(Error **errp)
2437{
9cb805fd 2438 nmi_monitor_handle(monitor_get_cpu_index(), errp);
ab49ab5c 2439}
27498bef
ST
2440
2441void dump_drift_info(FILE *f, fprintf_function cpu_fprintf)
2442{
2443 if (!use_icount) {
2444 return;
2445 }
2446
2447 cpu_fprintf(f, "Host - Guest clock %"PRIi64" ms\n",
2448 (cpu_get_clock() - cpu_get_icount())/SCALE_MS);
2449 if (icount_align_option) {
2450 cpu_fprintf(f, "Max guest delay %"PRIi64" ms\n", -max_delay/SCALE_MS);
2451 cpu_fprintf(f, "Max guest advance %"PRIi64" ms\n", max_advance/SCALE_MS);
2452 } else {
2453 cpu_fprintf(f, "Max guest delay NA\n");
2454 cpu_fprintf(f, "Max guest advance NA\n");
2455 }
2456}