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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 #include <unistd.h>
25 #include <fcntl.h>
26 #include <signal.h>
27 #include <time.h>
28 #include <errno.h>
29 #include <sys/time.h>
30 #include <zlib.h>
31
32 /* Needed early for CONFIG_BSD etc. */
33 #include "config-host.h"
34 /* Needed early to override system queue definitions on BSD */
35 #include "sys-queue.h"
36
37 #ifndef _WIN32
38 #include <libgen.h>
39 #include <pwd.h>
40 #include <sys/times.h>
41 #include <sys/wait.h>
42 #include <termios.h>
43 #include <sys/mman.h>
44 #include <sys/ioctl.h>
45 #include <sys/resource.h>
46 #include <sys/socket.h>
47 #include <netinet/in.h>
48 #include <net/if.h>
49 #if defined(__NetBSD__)
50 #include <net/if_tap.h>
51 #endif
52 #ifdef __linux__
53 #include <linux/if_tun.h>
54 #endif
55 #include <arpa/inet.h>
56 #include <dirent.h>
57 #include <netdb.h>
58 #include <sys/select.h>
59 #ifdef CONFIG_BSD
60 #include <sys/stat.h>
61 #if defined(__FreeBSD__) || defined(__DragonFly__)
62 #include <libutil.h>
63 #else
64 #include <util.h>
65 #endif
66 #elif defined (__GLIBC__) && defined (__FreeBSD_kernel__)
67 #include <freebsd/stdlib.h>
68 #else
69 #ifdef __linux__
70 #include <pty.h>
71 #include <malloc.h>
72 #include <linux/rtc.h>
73 #include <sys/prctl.h>
74
75 /* For the benefit of older linux systems which don't supply it,
76 we use a local copy of hpet.h. */
77 /* #include <linux/hpet.h> */
78 #include "hpet.h"
79
80 #include <linux/ppdev.h>
81 #include <linux/parport.h>
82 #endif
83 #ifdef __sun__
84 #include <sys/stat.h>
85 #include <sys/ethernet.h>
86 #include <sys/sockio.h>
87 #include <netinet/arp.h>
88 #include <netinet/in.h>
89 #include <netinet/in_systm.h>
90 #include <netinet/ip.h>
91 #include <netinet/ip_icmp.h> // must come after ip.h
92 #include <netinet/udp.h>
93 #include <netinet/tcp.h>
94 #include <net/if.h>
95 #include <syslog.h>
96 #include <stropts.h>
97 #endif
98 #endif
99 #endif
100
101 #if defined(__OpenBSD__)
102 #include <util.h>
103 #endif
104
105 #if defined(CONFIG_VDE)
106 #include <libvdeplug.h>
107 #endif
108
109 #ifdef _WIN32
110 #include <windows.h>
111 #include <mmsystem.h>
112 #endif
113
114 #ifdef CONFIG_SDL
115 #if defined(__APPLE__) || defined(main)
116 #include <SDL.h>
117 int qemu_main(int argc, char **argv, char **envp);
118 int main(int argc, char **argv)
119 {
120 return qemu_main(argc, argv, NULL);
121 }
122 #undef main
123 #define main qemu_main
124 #endif
125 #endif /* CONFIG_SDL */
126
127 #ifdef CONFIG_COCOA
128 #undef main
129 #define main qemu_main
130 #endif /* CONFIG_COCOA */
131
132 #include "hw/hw.h"
133 #include "hw/boards.h"
134 #include "hw/usb.h"
135 #include "hw/pcmcia.h"
136 #include "hw/pc.h"
137 #include "hw/audiodev.h"
138 #include "hw/isa.h"
139 #include "hw/baum.h"
140 #include "hw/bt.h"
141 #include "hw/watchdog.h"
142 #include "hw/smbios.h"
143 #include "hw/xen.h"
144 #include "hw/qdev.h"
145 #include "bt-host.h"
146 #include "net.h"
147 #include "monitor.h"
148 #include "console.h"
149 #include "sysemu.h"
150 #include "gdbstub.h"
151 #include "qemu-timer.h"
152 #include "qemu-char.h"
153 #include "cache-utils.h"
154 #include "block.h"
155 #include "dma.h"
156 #include "audio/audio.h"
157 #include "migration.h"
158 #include "kvm.h"
159 #include "balloon.h"
160 #include "qemu-option.h"
161 #include "qemu-config.h"
162
163 #include "disas.h"
164
165 #include "exec-all.h"
166
167 #include "qemu_socket.h"
168
169 #include "slirp/libslirp.h"
170
171 //#define DEBUG_NET
172 //#define DEBUG_SLIRP
173
174 #define DEFAULT_RAM_SIZE 128
175
176 static const char *data_dir;
177 const char *bios_name = NULL;
178 /* Note: drives_table[MAX_DRIVES] is a dummy block driver if none available
179 to store the VM snapshots */
180 struct drivelist drives = TAILQ_HEAD_INITIALIZER(drives);
181 struct driveoptlist driveopts = TAILQ_HEAD_INITIALIZER(driveopts);
182 enum vga_retrace_method vga_retrace_method = VGA_RETRACE_DUMB;
183 static DisplayState *display_state;
184 DisplayType display_type = DT_DEFAULT;
185 const char* keyboard_layout = NULL;
186 int64_t ticks_per_sec;
187 ram_addr_t ram_size;
188 int nb_nics;
189 NICInfo nd_table[MAX_NICS];
190 int vm_running;
191 int autostart;
192 static int rtc_utc = 1;
193 static int rtc_date_offset = -1; /* -1 means no change */
194 int vga_interface_type = VGA_CIRRUS;
195 #ifdef TARGET_SPARC
196 int graphic_width = 1024;
197 int graphic_height = 768;
198 int graphic_depth = 8;
199 #else
200 int graphic_width = 800;
201 int graphic_height = 600;
202 int graphic_depth = 15;
203 #endif
204 static int full_screen = 0;
205 #ifdef CONFIG_SDL
206 static int no_frame = 0;
207 #endif
208 int no_quit = 0;
209 CharDriverState *serial_hds[MAX_SERIAL_PORTS];
210 CharDriverState *parallel_hds[MAX_PARALLEL_PORTS];
211 CharDriverState *virtcon_hds[MAX_VIRTIO_CONSOLES];
212 #ifdef TARGET_I386
213 int win2k_install_hack = 0;
214 int rtc_td_hack = 0;
215 #endif
216 int usb_enabled = 0;
217 int singlestep = 0;
218 int smp_cpus = 1;
219 int max_cpus = 0;
220 int smp_cores = 1;
221 int smp_threads = 1;
222 const char *vnc_display;
223 int acpi_enabled = 1;
224 int no_hpet = 0;
225 int virtio_balloon = 1;
226 const char *virtio_balloon_devaddr;
227 int fd_bootchk = 1;
228 int no_reboot = 0;
229 int no_shutdown = 0;
230 int cursor_hide = 1;
231 int graphic_rotate = 0;
232 uint8_t irq0override = 1;
233 #ifndef _WIN32
234 int daemonize = 0;
235 #endif
236 const char *watchdog;
237 const char *option_rom[MAX_OPTION_ROMS];
238 int nb_option_roms;
239 int semihosting_enabled = 0;
240 #ifdef TARGET_ARM
241 int old_param = 0;
242 #endif
243 const char *qemu_name;
244 int alt_grab = 0;
245 #if defined(TARGET_SPARC) || defined(TARGET_PPC)
246 unsigned int nb_prom_envs = 0;
247 const char *prom_envs[MAX_PROM_ENVS];
248 #endif
249 int boot_menu;
250
251 int nb_numa_nodes;
252 uint64_t node_mem[MAX_NODES];
253 uint64_t node_cpumask[MAX_NODES];
254
255 static CPUState *cur_cpu;
256 static CPUState *next_cpu;
257 static int timer_alarm_pending = 1;
258 /* Conversion factor from emulated instructions to virtual clock ticks. */
259 static int icount_time_shift;
260 /* Arbitrarily pick 1MIPS as the minimum allowable speed. */
261 #define MAX_ICOUNT_SHIFT 10
262 /* Compensate for varying guest execution speed. */
263 static int64_t qemu_icount_bias;
264 static QEMUTimer *icount_rt_timer;
265 static QEMUTimer *icount_vm_timer;
266 static QEMUTimer *nographic_timer;
267
268 uint8_t qemu_uuid[16];
269
270 static QEMUBootSetHandler *boot_set_handler;
271 static void *boot_set_opaque;
272
273 /***********************************************************/
274 /* x86 ISA bus support */
275
276 target_phys_addr_t isa_mem_base = 0;
277 PicState2 *isa_pic;
278
279 /***********************************************************/
280 void hw_error(const char *fmt, ...)
281 {
282 va_list ap;
283 CPUState *env;
284
285 va_start(ap, fmt);
286 fprintf(stderr, "qemu: hardware error: ");
287 vfprintf(stderr, fmt, ap);
288 fprintf(stderr, "\n");
289 for(env = first_cpu; env != NULL; env = env->next_cpu) {
290 fprintf(stderr, "CPU #%d:\n", env->cpu_index);
291 #ifdef TARGET_I386
292 cpu_dump_state(env, stderr, fprintf, X86_DUMP_FPU);
293 #else
294 cpu_dump_state(env, stderr, fprintf, 0);
295 #endif
296 }
297 va_end(ap);
298 abort();
299 }
300
301 static void set_proc_name(const char *s)
302 {
303 #if defined(__linux__) && defined(PR_SET_NAME)
304 char name[16];
305 if (!s)
306 return;
307 name[sizeof(name) - 1] = 0;
308 strncpy(name, s, sizeof(name));
309 /* Could rewrite argv[0] too, but that's a bit more complicated.
310 This simple way is enough for `top'. */
311 prctl(PR_SET_NAME, name);
312 #endif
313 }
314
315 /***************/
316 /* ballooning */
317
318 static QEMUBalloonEvent *qemu_balloon_event;
319 void *qemu_balloon_event_opaque;
320
321 void qemu_add_balloon_handler(QEMUBalloonEvent *func, void *opaque)
322 {
323 qemu_balloon_event = func;
324 qemu_balloon_event_opaque = opaque;
325 }
326
327 void qemu_balloon(ram_addr_t target)
328 {
329 if (qemu_balloon_event)
330 qemu_balloon_event(qemu_balloon_event_opaque, target);
331 }
332
333 ram_addr_t qemu_balloon_status(void)
334 {
335 if (qemu_balloon_event)
336 return qemu_balloon_event(qemu_balloon_event_opaque, 0);
337 return 0;
338 }
339
340 /***********************************************************/
341 /* keyboard/mouse */
342
343 static QEMUPutKBDEvent *qemu_put_kbd_event;
344 static void *qemu_put_kbd_event_opaque;
345 static QEMUPutMouseEntry *qemu_put_mouse_event_head;
346 static QEMUPutMouseEntry *qemu_put_mouse_event_current;
347
348 void qemu_add_kbd_event_handler(QEMUPutKBDEvent *func, void *opaque)
349 {
350 qemu_put_kbd_event_opaque = opaque;
351 qemu_put_kbd_event = func;
352 }
353
354 QEMUPutMouseEntry *qemu_add_mouse_event_handler(QEMUPutMouseEvent *func,
355 void *opaque, int absolute,
356 const char *name)
357 {
358 QEMUPutMouseEntry *s, *cursor;
359
360 s = qemu_mallocz(sizeof(QEMUPutMouseEntry));
361
362 s->qemu_put_mouse_event = func;
363 s->qemu_put_mouse_event_opaque = opaque;
364 s->qemu_put_mouse_event_absolute = absolute;
365 s->qemu_put_mouse_event_name = qemu_strdup(name);
366 s->next = NULL;
367
368 if (!qemu_put_mouse_event_head) {
369 qemu_put_mouse_event_head = qemu_put_mouse_event_current = s;
370 return s;
371 }
372
373 cursor = qemu_put_mouse_event_head;
374 while (cursor->next != NULL)
375 cursor = cursor->next;
376
377 cursor->next = s;
378 qemu_put_mouse_event_current = s;
379
380 return s;
381 }
382
383 void qemu_remove_mouse_event_handler(QEMUPutMouseEntry *entry)
384 {
385 QEMUPutMouseEntry *prev = NULL, *cursor;
386
387 if (!qemu_put_mouse_event_head || entry == NULL)
388 return;
389
390 cursor = qemu_put_mouse_event_head;
391 while (cursor != NULL && cursor != entry) {
392 prev = cursor;
393 cursor = cursor->next;
394 }
395
396 if (cursor == NULL) // does not exist or list empty
397 return;
398 else if (prev == NULL) { // entry is head
399 qemu_put_mouse_event_head = cursor->next;
400 if (qemu_put_mouse_event_current == entry)
401 qemu_put_mouse_event_current = cursor->next;
402 qemu_free(entry->qemu_put_mouse_event_name);
403 qemu_free(entry);
404 return;
405 }
406
407 prev->next = entry->next;
408
409 if (qemu_put_mouse_event_current == entry)
410 qemu_put_mouse_event_current = prev;
411
412 qemu_free(entry->qemu_put_mouse_event_name);
413 qemu_free(entry);
414 }
415
416 void kbd_put_keycode(int keycode)
417 {
418 if (qemu_put_kbd_event) {
419 qemu_put_kbd_event(qemu_put_kbd_event_opaque, keycode);
420 }
421 }
422
423 void kbd_mouse_event(int dx, int dy, int dz, int buttons_state)
424 {
425 QEMUPutMouseEvent *mouse_event;
426 void *mouse_event_opaque;
427 int width;
428
429 if (!qemu_put_mouse_event_current) {
430 return;
431 }
432
433 mouse_event =
434 qemu_put_mouse_event_current->qemu_put_mouse_event;
435 mouse_event_opaque =
436 qemu_put_mouse_event_current->qemu_put_mouse_event_opaque;
437
438 if (mouse_event) {
439 if (graphic_rotate) {
440 if (qemu_put_mouse_event_current->qemu_put_mouse_event_absolute)
441 width = 0x7fff;
442 else
443 width = graphic_width - 1;
444 mouse_event(mouse_event_opaque,
445 width - dy, dx, dz, buttons_state);
446 } else
447 mouse_event(mouse_event_opaque,
448 dx, dy, dz, buttons_state);
449 }
450 }
451
452 int kbd_mouse_is_absolute(void)
453 {
454 if (!qemu_put_mouse_event_current)
455 return 0;
456
457 return qemu_put_mouse_event_current->qemu_put_mouse_event_absolute;
458 }
459
460 void do_info_mice(Monitor *mon)
461 {
462 QEMUPutMouseEntry *cursor;
463 int index = 0;
464
465 if (!qemu_put_mouse_event_head) {
466 monitor_printf(mon, "No mouse devices connected\n");
467 return;
468 }
469
470 monitor_printf(mon, "Mouse devices available:\n");
471 cursor = qemu_put_mouse_event_head;
472 while (cursor != NULL) {
473 monitor_printf(mon, "%c Mouse #%d: %s\n",
474 (cursor == qemu_put_mouse_event_current ? '*' : ' '),
475 index, cursor->qemu_put_mouse_event_name);
476 index++;
477 cursor = cursor->next;
478 }
479 }
480
481 void do_mouse_set(Monitor *mon, int index)
482 {
483 QEMUPutMouseEntry *cursor;
484 int i = 0;
485
486 if (!qemu_put_mouse_event_head) {
487 monitor_printf(mon, "No mouse devices connected\n");
488 return;
489 }
490
491 cursor = qemu_put_mouse_event_head;
492 while (cursor != NULL && index != i) {
493 i++;
494 cursor = cursor->next;
495 }
496
497 if (cursor != NULL)
498 qemu_put_mouse_event_current = cursor;
499 else
500 monitor_printf(mon, "Mouse at given index not found\n");
501 }
502
503 /* compute with 96 bit intermediate result: (a*b)/c */
504 uint64_t muldiv64(uint64_t a, uint32_t b, uint32_t c)
505 {
506 union {
507 uint64_t ll;
508 struct {
509 #ifdef HOST_WORDS_BIGENDIAN
510 uint32_t high, low;
511 #else
512 uint32_t low, high;
513 #endif
514 } l;
515 } u, res;
516 uint64_t rl, rh;
517
518 u.ll = a;
519 rl = (uint64_t)u.l.low * (uint64_t)b;
520 rh = (uint64_t)u.l.high * (uint64_t)b;
521 rh += (rl >> 32);
522 res.l.high = rh / c;
523 res.l.low = (((rh % c) << 32) + (rl & 0xffffffff)) / c;
524 return res.ll;
525 }
526
527 /***********************************************************/
528 /* real time host monotonic timer */
529
530 #define QEMU_TIMER_BASE 1000000000LL
531
532 #ifdef WIN32
533
534 static int64_t clock_freq;
535
536 static void init_get_clock(void)
537 {
538 LARGE_INTEGER freq;
539 int ret;
540 ret = QueryPerformanceFrequency(&freq);
541 if (ret == 0) {
542 fprintf(stderr, "Could not calibrate ticks\n");
543 exit(1);
544 }
545 clock_freq = freq.QuadPart;
546 }
547
548 static int64_t get_clock(void)
549 {
550 LARGE_INTEGER ti;
551 QueryPerformanceCounter(&ti);
552 return muldiv64(ti.QuadPart, QEMU_TIMER_BASE, clock_freq);
553 }
554
555 #else
556
557 static int use_rt_clock;
558
559 static void init_get_clock(void)
560 {
561 use_rt_clock = 0;
562 #if defined(__linux__) || (defined(__FreeBSD__) && __FreeBSD_version >= 500000) \
563 || defined(__DragonFly__)
564 {
565 struct timespec ts;
566 if (clock_gettime(CLOCK_MONOTONIC, &ts) == 0) {
567 use_rt_clock = 1;
568 }
569 }
570 #endif
571 }
572
573 static int64_t get_clock(void)
574 {
575 #if defined(__linux__) || (defined(__FreeBSD__) && __FreeBSD_version >= 500000) \
576 || defined(__DragonFly__)
577 if (use_rt_clock) {
578 struct timespec ts;
579 clock_gettime(CLOCK_MONOTONIC, &ts);
580 return ts.tv_sec * 1000000000LL + ts.tv_nsec;
581 } else
582 #endif
583 {
584 /* XXX: using gettimeofday leads to problems if the date
585 changes, so it should be avoided. */
586 struct timeval tv;
587 gettimeofday(&tv, NULL);
588 return tv.tv_sec * 1000000000LL + (tv.tv_usec * 1000);
589 }
590 }
591 #endif
592
593 /* Return the virtual CPU time, based on the instruction counter. */
594 static int64_t cpu_get_icount(void)
595 {
596 int64_t icount;
597 CPUState *env = cpu_single_env;;
598 icount = qemu_icount;
599 if (env) {
600 if (!can_do_io(env))
601 fprintf(stderr, "Bad clock read\n");
602 icount -= (env->icount_decr.u16.low + env->icount_extra);
603 }
604 return qemu_icount_bias + (icount << icount_time_shift);
605 }
606
607 /***********************************************************/
608 /* guest cycle counter */
609
610 static int64_t cpu_ticks_prev;
611 static int64_t cpu_ticks_offset;
612 static int64_t cpu_clock_offset;
613 static int cpu_ticks_enabled;
614
615 /* return the host CPU cycle counter and handle stop/restart */
616 int64_t cpu_get_ticks(void)
617 {
618 if (use_icount) {
619 return cpu_get_icount();
620 }
621 if (!cpu_ticks_enabled) {
622 return cpu_ticks_offset;
623 } else {
624 int64_t ticks;
625 ticks = cpu_get_real_ticks();
626 if (cpu_ticks_prev > ticks) {
627 /* Note: non increasing ticks may happen if the host uses
628 software suspend */
629 cpu_ticks_offset += cpu_ticks_prev - ticks;
630 }
631 cpu_ticks_prev = ticks;
632 return ticks + cpu_ticks_offset;
633 }
634 }
635
636 /* return the host CPU monotonic timer and handle stop/restart */
637 static int64_t cpu_get_clock(void)
638 {
639 int64_t ti;
640 if (!cpu_ticks_enabled) {
641 return cpu_clock_offset;
642 } else {
643 ti = get_clock();
644 return ti + cpu_clock_offset;
645 }
646 }
647
648 /* enable cpu_get_ticks() */
649 void cpu_enable_ticks(void)
650 {
651 if (!cpu_ticks_enabled) {
652 cpu_ticks_offset -= cpu_get_real_ticks();
653 cpu_clock_offset -= get_clock();
654 cpu_ticks_enabled = 1;
655 }
656 }
657
658 /* disable cpu_get_ticks() : the clock is stopped. You must not call
659 cpu_get_ticks() after that. */
660 void cpu_disable_ticks(void)
661 {
662 if (cpu_ticks_enabled) {
663 cpu_ticks_offset = cpu_get_ticks();
664 cpu_clock_offset = cpu_get_clock();
665 cpu_ticks_enabled = 0;
666 }
667 }
668
669 /***********************************************************/
670 /* timers */
671
672 #define QEMU_TIMER_REALTIME 0
673 #define QEMU_TIMER_VIRTUAL 1
674
675 struct QEMUClock {
676 int type;
677 /* XXX: add frequency */
678 };
679
680 struct QEMUTimer {
681 QEMUClock *clock;
682 int64_t expire_time;
683 QEMUTimerCB *cb;
684 void *opaque;
685 struct QEMUTimer *next;
686 };
687
688 struct qemu_alarm_timer {
689 char const *name;
690 unsigned int flags;
691
692 int (*start)(struct qemu_alarm_timer *t);
693 void (*stop)(struct qemu_alarm_timer *t);
694 void (*rearm)(struct qemu_alarm_timer *t);
695 void *priv;
696 };
697
698 #define ALARM_FLAG_DYNTICKS 0x1
699 #define ALARM_FLAG_EXPIRED 0x2
700
701 static inline int alarm_has_dynticks(struct qemu_alarm_timer *t)
702 {
703 return t && (t->flags & ALARM_FLAG_DYNTICKS);
704 }
705
706 static void qemu_rearm_alarm_timer(struct qemu_alarm_timer *t)
707 {
708 if (!alarm_has_dynticks(t))
709 return;
710
711 t->rearm(t);
712 }
713
714 /* TODO: MIN_TIMER_REARM_US should be optimized */
715 #define MIN_TIMER_REARM_US 250
716
717 static struct qemu_alarm_timer *alarm_timer;
718
719 #ifdef _WIN32
720
721 struct qemu_alarm_win32 {
722 MMRESULT timerId;
723 unsigned int period;
724 } alarm_win32_data = {0, -1};
725
726 static int win32_start_timer(struct qemu_alarm_timer *t);
727 static void win32_stop_timer(struct qemu_alarm_timer *t);
728 static void win32_rearm_timer(struct qemu_alarm_timer *t);
729
730 #else
731
732 static int unix_start_timer(struct qemu_alarm_timer *t);
733 static void unix_stop_timer(struct qemu_alarm_timer *t);
734
735 #ifdef __linux__
736
737 static int dynticks_start_timer(struct qemu_alarm_timer *t);
738 static void dynticks_stop_timer(struct qemu_alarm_timer *t);
739 static void dynticks_rearm_timer(struct qemu_alarm_timer *t);
740
741 static int hpet_start_timer(struct qemu_alarm_timer *t);
742 static void hpet_stop_timer(struct qemu_alarm_timer *t);
743
744 static int rtc_start_timer(struct qemu_alarm_timer *t);
745 static void rtc_stop_timer(struct qemu_alarm_timer *t);
746
747 #endif /* __linux__ */
748
749 #endif /* _WIN32 */
750
751 /* Correlation between real and virtual time is always going to be
752 fairly approximate, so ignore small variation.
753 When the guest is idle real and virtual time will be aligned in
754 the IO wait loop. */
755 #define ICOUNT_WOBBLE (QEMU_TIMER_BASE / 10)
756
757 static void icount_adjust(void)
758 {
759 int64_t cur_time;
760 int64_t cur_icount;
761 int64_t delta;
762 static int64_t last_delta;
763 /* If the VM is not running, then do nothing. */
764 if (!vm_running)
765 return;
766
767 cur_time = cpu_get_clock();
768 cur_icount = qemu_get_clock(vm_clock);
769 delta = cur_icount - cur_time;
770 /* FIXME: This is a very crude algorithm, somewhat prone to oscillation. */
771 if (delta > 0
772 && last_delta + ICOUNT_WOBBLE < delta * 2
773 && icount_time_shift > 0) {
774 /* The guest is getting too far ahead. Slow time down. */
775 icount_time_shift--;
776 }
777 if (delta < 0
778 && last_delta - ICOUNT_WOBBLE > delta * 2
779 && icount_time_shift < MAX_ICOUNT_SHIFT) {
780 /* The guest is getting too far behind. Speed time up. */
781 icount_time_shift++;
782 }
783 last_delta = delta;
784 qemu_icount_bias = cur_icount - (qemu_icount << icount_time_shift);
785 }
786
787 static void icount_adjust_rt(void * opaque)
788 {
789 qemu_mod_timer(icount_rt_timer,
790 qemu_get_clock(rt_clock) + 1000);
791 icount_adjust();
792 }
793
794 static void icount_adjust_vm(void * opaque)
795 {
796 qemu_mod_timer(icount_vm_timer,
797 qemu_get_clock(vm_clock) + QEMU_TIMER_BASE / 10);
798 icount_adjust();
799 }
800
801 static void init_icount_adjust(void)
802 {
803 /* Have both realtime and virtual time triggers for speed adjustment.
804 The realtime trigger catches emulated time passing too slowly,
805 the virtual time trigger catches emulated time passing too fast.
806 Realtime triggers occur even when idle, so use them less frequently
807 than VM triggers. */
808 icount_rt_timer = qemu_new_timer(rt_clock, icount_adjust_rt, NULL);
809 qemu_mod_timer(icount_rt_timer,
810 qemu_get_clock(rt_clock) + 1000);
811 icount_vm_timer = qemu_new_timer(vm_clock, icount_adjust_vm, NULL);
812 qemu_mod_timer(icount_vm_timer,
813 qemu_get_clock(vm_clock) + QEMU_TIMER_BASE / 10);
814 }
815
816 static struct qemu_alarm_timer alarm_timers[] = {
817 #ifndef _WIN32
818 #ifdef __linux__
819 {"dynticks", ALARM_FLAG_DYNTICKS, dynticks_start_timer,
820 dynticks_stop_timer, dynticks_rearm_timer, NULL},
821 /* HPET - if available - is preferred */
822 {"hpet", 0, hpet_start_timer, hpet_stop_timer, NULL, NULL},
823 /* ...otherwise try RTC */
824 {"rtc", 0, rtc_start_timer, rtc_stop_timer, NULL, NULL},
825 #endif
826 {"unix", 0, unix_start_timer, unix_stop_timer, NULL, NULL},
827 #else
828 {"dynticks", ALARM_FLAG_DYNTICKS, win32_start_timer,
829 win32_stop_timer, win32_rearm_timer, &alarm_win32_data},
830 {"win32", 0, win32_start_timer,
831 win32_stop_timer, NULL, &alarm_win32_data},
832 #endif
833 {NULL, }
834 };
835
836 static void show_available_alarms(void)
837 {
838 int i;
839
840 printf("Available alarm timers, in order of precedence:\n");
841 for (i = 0; alarm_timers[i].name; i++)
842 printf("%s\n", alarm_timers[i].name);
843 }
844
845 static void configure_alarms(char const *opt)
846 {
847 int i;
848 int cur = 0;
849 int count = ARRAY_SIZE(alarm_timers) - 1;
850 char *arg;
851 char *name;
852 struct qemu_alarm_timer tmp;
853
854 if (!strcmp(opt, "?")) {
855 show_available_alarms();
856 exit(0);
857 }
858
859 arg = strdup(opt);
860
861 /* Reorder the array */
862 name = strtok(arg, ",");
863 while (name) {
864 for (i = 0; i < count && alarm_timers[i].name; i++) {
865 if (!strcmp(alarm_timers[i].name, name))
866 break;
867 }
868
869 if (i == count) {
870 fprintf(stderr, "Unknown clock %s\n", name);
871 goto next;
872 }
873
874 if (i < cur)
875 /* Ignore */
876 goto next;
877
878 /* Swap */
879 tmp = alarm_timers[i];
880 alarm_timers[i] = alarm_timers[cur];
881 alarm_timers[cur] = tmp;
882
883 cur++;
884 next:
885 name = strtok(NULL, ",");
886 }
887
888 free(arg);
889
890 if (cur) {
891 /* Disable remaining timers */
892 for (i = cur; i < count; i++)
893 alarm_timers[i].name = NULL;
894 } else {
895 show_available_alarms();
896 exit(1);
897 }
898 }
899
900 QEMUClock *rt_clock;
901 QEMUClock *vm_clock;
902
903 static QEMUTimer *active_timers[2];
904
905 static QEMUClock *qemu_new_clock(int type)
906 {
907 QEMUClock *clock;
908 clock = qemu_mallocz(sizeof(QEMUClock));
909 clock->type = type;
910 return clock;
911 }
912
913 QEMUTimer *qemu_new_timer(QEMUClock *clock, QEMUTimerCB *cb, void *opaque)
914 {
915 QEMUTimer *ts;
916
917 ts = qemu_mallocz(sizeof(QEMUTimer));
918 ts->clock = clock;
919 ts->cb = cb;
920 ts->opaque = opaque;
921 return ts;
922 }
923
924 void qemu_free_timer(QEMUTimer *ts)
925 {
926 qemu_free(ts);
927 }
928
929 /* stop a timer, but do not dealloc it */
930 void qemu_del_timer(QEMUTimer *ts)
931 {
932 QEMUTimer **pt, *t;
933
934 /* NOTE: this code must be signal safe because
935 qemu_timer_expired() can be called from a signal. */
936 pt = &active_timers[ts->clock->type];
937 for(;;) {
938 t = *pt;
939 if (!t)
940 break;
941 if (t == ts) {
942 *pt = t->next;
943 break;
944 }
945 pt = &t->next;
946 }
947 }
948
949 /* modify the current timer so that it will be fired when current_time
950 >= expire_time. The corresponding callback will be called. */
951 void qemu_mod_timer(QEMUTimer *ts, int64_t expire_time)
952 {
953 QEMUTimer **pt, *t;
954
955 qemu_del_timer(ts);
956
957 /* add the timer in the sorted list */
958 /* NOTE: this code must be signal safe because
959 qemu_timer_expired() can be called from a signal. */
960 pt = &active_timers[ts->clock->type];
961 for(;;) {
962 t = *pt;
963 if (!t)
964 break;
965 if (t->expire_time > expire_time)
966 break;
967 pt = &t->next;
968 }
969 ts->expire_time = expire_time;
970 ts->next = *pt;
971 *pt = ts;
972
973 /* Rearm if necessary */
974 if (pt == &active_timers[ts->clock->type]) {
975 if ((alarm_timer->flags & ALARM_FLAG_EXPIRED) == 0) {
976 qemu_rearm_alarm_timer(alarm_timer);
977 }
978 /* Interrupt execution to force deadline recalculation. */
979 if (use_icount)
980 qemu_notify_event();
981 }
982 }
983
984 int qemu_timer_pending(QEMUTimer *ts)
985 {
986 QEMUTimer *t;
987 for(t = active_timers[ts->clock->type]; t != NULL; t = t->next) {
988 if (t == ts)
989 return 1;
990 }
991 return 0;
992 }
993
994 int qemu_timer_expired(QEMUTimer *timer_head, int64_t current_time)
995 {
996 if (!timer_head)
997 return 0;
998 return (timer_head->expire_time <= current_time);
999 }
1000
1001 static void qemu_run_timers(QEMUTimer **ptimer_head, int64_t current_time)
1002 {
1003 QEMUTimer *ts;
1004
1005 for(;;) {
1006 ts = *ptimer_head;
1007 if (!ts || ts->expire_time > current_time)
1008 break;
1009 /* remove timer from the list before calling the callback */
1010 *ptimer_head = ts->next;
1011 ts->next = NULL;
1012
1013 /* run the callback (the timer list can be modified) */
1014 ts->cb(ts->opaque);
1015 }
1016 }
1017
1018 int64_t qemu_get_clock(QEMUClock *clock)
1019 {
1020 switch(clock->type) {
1021 case QEMU_TIMER_REALTIME:
1022 return get_clock() / 1000000;
1023 default:
1024 case QEMU_TIMER_VIRTUAL:
1025 if (use_icount) {
1026 return cpu_get_icount();
1027 } else {
1028 return cpu_get_clock();
1029 }
1030 }
1031 }
1032
1033 static void init_timers(void)
1034 {
1035 init_get_clock();
1036 ticks_per_sec = QEMU_TIMER_BASE;
1037 rt_clock = qemu_new_clock(QEMU_TIMER_REALTIME);
1038 vm_clock = qemu_new_clock(QEMU_TIMER_VIRTUAL);
1039 }
1040
1041 /* save a timer */
1042 void qemu_put_timer(QEMUFile *f, QEMUTimer *ts)
1043 {
1044 uint64_t expire_time;
1045
1046 if (qemu_timer_pending(ts)) {
1047 expire_time = ts->expire_time;
1048 } else {
1049 expire_time = -1;
1050 }
1051 qemu_put_be64(f, expire_time);
1052 }
1053
1054 void qemu_get_timer(QEMUFile *f, QEMUTimer *ts)
1055 {
1056 uint64_t expire_time;
1057
1058 expire_time = qemu_get_be64(f);
1059 if (expire_time != -1) {
1060 qemu_mod_timer(ts, expire_time);
1061 } else {
1062 qemu_del_timer(ts);
1063 }
1064 }
1065
1066 static void timer_save(QEMUFile *f, void *opaque)
1067 {
1068 if (cpu_ticks_enabled) {
1069 hw_error("cannot save state if virtual timers are running");
1070 }
1071 qemu_put_be64(f, cpu_ticks_offset);
1072 qemu_put_be64(f, ticks_per_sec);
1073 qemu_put_be64(f, cpu_clock_offset);
1074 }
1075
1076 static int timer_load(QEMUFile *f, void *opaque, int version_id)
1077 {
1078 if (version_id != 1 && version_id != 2)
1079 return -EINVAL;
1080 if (cpu_ticks_enabled) {
1081 return -EINVAL;
1082 }
1083 cpu_ticks_offset=qemu_get_be64(f);
1084 ticks_per_sec=qemu_get_be64(f);
1085 if (version_id == 2) {
1086 cpu_clock_offset=qemu_get_be64(f);
1087 }
1088 return 0;
1089 }
1090
1091 static void qemu_event_increment(void);
1092
1093 #ifdef _WIN32
1094 static void CALLBACK host_alarm_handler(UINT uTimerID, UINT uMsg,
1095 DWORD_PTR dwUser, DWORD_PTR dw1,
1096 DWORD_PTR dw2)
1097 #else
1098 static void host_alarm_handler(int host_signum)
1099 #endif
1100 {
1101 #if 0
1102 #define DISP_FREQ 1000
1103 {
1104 static int64_t delta_min = INT64_MAX;
1105 static int64_t delta_max, delta_cum, last_clock, delta, ti;
1106 static int count;
1107 ti = qemu_get_clock(vm_clock);
1108 if (last_clock != 0) {
1109 delta = ti - last_clock;
1110 if (delta < delta_min)
1111 delta_min = delta;
1112 if (delta > delta_max)
1113 delta_max = delta;
1114 delta_cum += delta;
1115 if (++count == DISP_FREQ) {
1116 printf("timer: min=%" PRId64 " us max=%" PRId64 " us avg=%" PRId64 " us avg_freq=%0.3f Hz\n",
1117 muldiv64(delta_min, 1000000, ticks_per_sec),
1118 muldiv64(delta_max, 1000000, ticks_per_sec),
1119 muldiv64(delta_cum, 1000000 / DISP_FREQ, ticks_per_sec),
1120 (double)ticks_per_sec / ((double)delta_cum / DISP_FREQ));
1121 count = 0;
1122 delta_min = INT64_MAX;
1123 delta_max = 0;
1124 delta_cum = 0;
1125 }
1126 }
1127 last_clock = ti;
1128 }
1129 #endif
1130 if (alarm_has_dynticks(alarm_timer) ||
1131 (!use_icount &&
1132 qemu_timer_expired(active_timers[QEMU_TIMER_VIRTUAL],
1133 qemu_get_clock(vm_clock))) ||
1134 qemu_timer_expired(active_timers[QEMU_TIMER_REALTIME],
1135 qemu_get_clock(rt_clock))) {
1136 qemu_event_increment();
1137 if (alarm_timer) alarm_timer->flags |= ALARM_FLAG_EXPIRED;
1138
1139 #ifndef CONFIG_IOTHREAD
1140 if (next_cpu) {
1141 /* stop the currently executing cpu because a timer occured */
1142 cpu_exit(next_cpu);
1143 }
1144 #endif
1145 timer_alarm_pending = 1;
1146 qemu_notify_event();
1147 }
1148 }
1149
1150 static int64_t qemu_next_deadline(void)
1151 {
1152 int64_t delta;
1153
1154 if (active_timers[QEMU_TIMER_VIRTUAL]) {
1155 delta = active_timers[QEMU_TIMER_VIRTUAL]->expire_time -
1156 qemu_get_clock(vm_clock);
1157 } else {
1158 /* To avoid problems with overflow limit this to 2^32. */
1159 delta = INT32_MAX;
1160 }
1161
1162 if (delta < 0)
1163 delta = 0;
1164
1165 return delta;
1166 }
1167
1168 #if defined(__linux__) || defined(_WIN32)
1169 static uint64_t qemu_next_deadline_dyntick(void)
1170 {
1171 int64_t delta;
1172 int64_t rtdelta;
1173
1174 if (use_icount)
1175 delta = INT32_MAX;
1176 else
1177 delta = (qemu_next_deadline() + 999) / 1000;
1178
1179 if (active_timers[QEMU_TIMER_REALTIME]) {
1180 rtdelta = (active_timers[QEMU_TIMER_REALTIME]->expire_time -
1181 qemu_get_clock(rt_clock))*1000;
1182 if (rtdelta < delta)
1183 delta = rtdelta;
1184 }
1185
1186 if (delta < MIN_TIMER_REARM_US)
1187 delta = MIN_TIMER_REARM_US;
1188
1189 return delta;
1190 }
1191 #endif
1192
1193 #ifndef _WIN32
1194
1195 /* Sets a specific flag */
1196 static int fcntl_setfl(int fd, int flag)
1197 {
1198 int flags;
1199
1200 flags = fcntl(fd, F_GETFL);
1201 if (flags == -1)
1202 return -errno;
1203
1204 if (fcntl(fd, F_SETFL, flags | flag) == -1)
1205 return -errno;
1206
1207 return 0;
1208 }
1209
1210 #if defined(__linux__)
1211
1212 #define RTC_FREQ 1024
1213
1214 static void enable_sigio_timer(int fd)
1215 {
1216 struct sigaction act;
1217
1218 /* timer signal */
1219 sigfillset(&act.sa_mask);
1220 act.sa_flags = 0;
1221 act.sa_handler = host_alarm_handler;
1222
1223 sigaction(SIGIO, &act, NULL);
1224 fcntl_setfl(fd, O_ASYNC);
1225 fcntl(fd, F_SETOWN, getpid());
1226 }
1227
1228 static int hpet_start_timer(struct qemu_alarm_timer *t)
1229 {
1230 struct hpet_info info;
1231 int r, fd;
1232
1233 fd = open("/dev/hpet", O_RDONLY);
1234 if (fd < 0)
1235 return -1;
1236
1237 /* Set frequency */
1238 r = ioctl(fd, HPET_IRQFREQ, RTC_FREQ);
1239 if (r < 0) {
1240 fprintf(stderr, "Could not configure '/dev/hpet' to have a 1024Hz timer. This is not a fatal\n"
1241 "error, but for better emulation accuracy type:\n"
1242 "'echo 1024 > /proc/sys/dev/hpet/max-user-freq' as root.\n");
1243 goto fail;
1244 }
1245
1246 /* Check capabilities */
1247 r = ioctl(fd, HPET_INFO, &info);
1248 if (r < 0)
1249 goto fail;
1250
1251 /* Enable periodic mode */
1252 r = ioctl(fd, HPET_EPI, 0);
1253 if (info.hi_flags && (r < 0))
1254 goto fail;
1255
1256 /* Enable interrupt */
1257 r = ioctl(fd, HPET_IE_ON, 0);
1258 if (r < 0)
1259 goto fail;
1260
1261 enable_sigio_timer(fd);
1262 t->priv = (void *)(long)fd;
1263
1264 return 0;
1265 fail:
1266 close(fd);
1267 return -1;
1268 }
1269
1270 static void hpet_stop_timer(struct qemu_alarm_timer *t)
1271 {
1272 int fd = (long)t->priv;
1273
1274 close(fd);
1275 }
1276
1277 static int rtc_start_timer(struct qemu_alarm_timer *t)
1278 {
1279 int rtc_fd;
1280 unsigned long current_rtc_freq = 0;
1281
1282 TFR(rtc_fd = open("/dev/rtc", O_RDONLY));
1283 if (rtc_fd < 0)
1284 return -1;
1285 ioctl(rtc_fd, RTC_IRQP_READ, &current_rtc_freq);
1286 if (current_rtc_freq != RTC_FREQ &&
1287 ioctl(rtc_fd, RTC_IRQP_SET, RTC_FREQ) < 0) {
1288 fprintf(stderr, "Could not configure '/dev/rtc' to have a 1024 Hz timer. This is not a fatal\n"
1289 "error, but for better emulation accuracy either use a 2.6 host Linux kernel or\n"
1290 "type 'echo 1024 > /proc/sys/dev/rtc/max-user-freq' as root.\n");
1291 goto fail;
1292 }
1293 if (ioctl(rtc_fd, RTC_PIE_ON, 0) < 0) {
1294 fail:
1295 close(rtc_fd);
1296 return -1;
1297 }
1298
1299 enable_sigio_timer(rtc_fd);
1300
1301 t->priv = (void *)(long)rtc_fd;
1302
1303 return 0;
1304 }
1305
1306 static void rtc_stop_timer(struct qemu_alarm_timer *t)
1307 {
1308 int rtc_fd = (long)t->priv;
1309
1310 close(rtc_fd);
1311 }
1312
1313 static int dynticks_start_timer(struct qemu_alarm_timer *t)
1314 {
1315 struct sigevent ev;
1316 timer_t host_timer;
1317 struct sigaction act;
1318
1319 sigfillset(&act.sa_mask);
1320 act.sa_flags = 0;
1321 act.sa_handler = host_alarm_handler;
1322
1323 sigaction(SIGALRM, &act, NULL);
1324
1325 /*
1326 * Initialize ev struct to 0 to avoid valgrind complaining
1327 * about uninitialized data in timer_create call
1328 */
1329 memset(&ev, 0, sizeof(ev));
1330 ev.sigev_value.sival_int = 0;
1331 ev.sigev_notify = SIGEV_SIGNAL;
1332 ev.sigev_signo = SIGALRM;
1333
1334 if (timer_create(CLOCK_REALTIME, &ev, &host_timer)) {
1335 perror("timer_create");
1336
1337 /* disable dynticks */
1338 fprintf(stderr, "Dynamic Ticks disabled\n");
1339
1340 return -1;
1341 }
1342
1343 t->priv = (void *)(long)host_timer;
1344
1345 return 0;
1346 }
1347
1348 static void dynticks_stop_timer(struct qemu_alarm_timer *t)
1349 {
1350 timer_t host_timer = (timer_t)(long)t->priv;
1351
1352 timer_delete(host_timer);
1353 }
1354
1355 static void dynticks_rearm_timer(struct qemu_alarm_timer *t)
1356 {
1357 timer_t host_timer = (timer_t)(long)t->priv;
1358 struct itimerspec timeout;
1359 int64_t nearest_delta_us = INT64_MAX;
1360 int64_t current_us;
1361
1362 if (!active_timers[QEMU_TIMER_REALTIME] &&
1363 !active_timers[QEMU_TIMER_VIRTUAL])
1364 return;
1365
1366 nearest_delta_us = qemu_next_deadline_dyntick();
1367
1368 /* check whether a timer is already running */
1369 if (timer_gettime(host_timer, &timeout)) {
1370 perror("gettime");
1371 fprintf(stderr, "Internal timer error: aborting\n");
1372 exit(1);
1373 }
1374 current_us = timeout.it_value.tv_sec * 1000000 + timeout.it_value.tv_nsec/1000;
1375 if (current_us && current_us <= nearest_delta_us)
1376 return;
1377
1378 timeout.it_interval.tv_sec = 0;
1379 timeout.it_interval.tv_nsec = 0; /* 0 for one-shot timer */
1380 timeout.it_value.tv_sec = nearest_delta_us / 1000000;
1381 timeout.it_value.tv_nsec = (nearest_delta_us % 1000000) * 1000;
1382 if (timer_settime(host_timer, 0 /* RELATIVE */, &timeout, NULL)) {
1383 perror("settime");
1384 fprintf(stderr, "Internal timer error: aborting\n");
1385 exit(1);
1386 }
1387 }
1388
1389 #endif /* defined(__linux__) */
1390
1391 static int unix_start_timer(struct qemu_alarm_timer *t)
1392 {
1393 struct sigaction act;
1394 struct itimerval itv;
1395 int err;
1396
1397 /* timer signal */
1398 sigfillset(&act.sa_mask);
1399 act.sa_flags = 0;
1400 act.sa_handler = host_alarm_handler;
1401
1402 sigaction(SIGALRM, &act, NULL);
1403
1404 itv.it_interval.tv_sec = 0;
1405 /* for i386 kernel 2.6 to get 1 ms */
1406 itv.it_interval.tv_usec = 999;
1407 itv.it_value.tv_sec = 0;
1408 itv.it_value.tv_usec = 10 * 1000;
1409
1410 err = setitimer(ITIMER_REAL, &itv, NULL);
1411 if (err)
1412 return -1;
1413
1414 return 0;
1415 }
1416
1417 static void unix_stop_timer(struct qemu_alarm_timer *t)
1418 {
1419 struct itimerval itv;
1420
1421 memset(&itv, 0, sizeof(itv));
1422 setitimer(ITIMER_REAL, &itv, NULL);
1423 }
1424
1425 #endif /* !defined(_WIN32) */
1426
1427
1428 #ifdef _WIN32
1429
1430 static int win32_start_timer(struct qemu_alarm_timer *t)
1431 {
1432 TIMECAPS tc;
1433 struct qemu_alarm_win32 *data = t->priv;
1434 UINT flags;
1435
1436 memset(&tc, 0, sizeof(tc));
1437 timeGetDevCaps(&tc, sizeof(tc));
1438
1439 if (data->period < tc.wPeriodMin)
1440 data->period = tc.wPeriodMin;
1441
1442 timeBeginPeriod(data->period);
1443
1444 flags = TIME_CALLBACK_FUNCTION;
1445 if (alarm_has_dynticks(t))
1446 flags |= TIME_ONESHOT;
1447 else
1448 flags |= TIME_PERIODIC;
1449
1450 data->timerId = timeSetEvent(1, // interval (ms)
1451 data->period, // resolution
1452 host_alarm_handler, // function
1453 (DWORD)t, // parameter
1454 flags);
1455
1456 if (!data->timerId) {
1457 perror("Failed to initialize win32 alarm timer");
1458 timeEndPeriod(data->period);
1459 return -1;
1460 }
1461
1462 return 0;
1463 }
1464
1465 static void win32_stop_timer(struct qemu_alarm_timer *t)
1466 {
1467 struct qemu_alarm_win32 *data = t->priv;
1468
1469 timeKillEvent(data->timerId);
1470 timeEndPeriod(data->period);
1471 }
1472
1473 static void win32_rearm_timer(struct qemu_alarm_timer *t)
1474 {
1475 struct qemu_alarm_win32 *data = t->priv;
1476 uint64_t nearest_delta_us;
1477
1478 if (!active_timers[QEMU_TIMER_REALTIME] &&
1479 !active_timers[QEMU_TIMER_VIRTUAL])
1480 return;
1481
1482 nearest_delta_us = qemu_next_deadline_dyntick();
1483 nearest_delta_us /= 1000;
1484
1485 timeKillEvent(data->timerId);
1486
1487 data->timerId = timeSetEvent(1,
1488 data->period,
1489 host_alarm_handler,
1490 (DWORD)t,
1491 TIME_ONESHOT | TIME_PERIODIC);
1492
1493 if (!data->timerId) {
1494 perror("Failed to re-arm win32 alarm timer");
1495
1496 timeEndPeriod(data->period);
1497 exit(1);
1498 }
1499 }
1500
1501 #endif /* _WIN32 */
1502
1503 static int init_timer_alarm(void)
1504 {
1505 struct qemu_alarm_timer *t = NULL;
1506 int i, err = -1;
1507
1508 for (i = 0; alarm_timers[i].name; i++) {
1509 t = &alarm_timers[i];
1510
1511 err = t->start(t);
1512 if (!err)
1513 break;
1514 }
1515
1516 if (err) {
1517 err = -ENOENT;
1518 goto fail;
1519 }
1520
1521 alarm_timer = t;
1522
1523 return 0;
1524
1525 fail:
1526 return err;
1527 }
1528
1529 static void quit_timers(void)
1530 {
1531 alarm_timer->stop(alarm_timer);
1532 alarm_timer = NULL;
1533 }
1534
1535 /***********************************************************/
1536 /* host time/date access */
1537 void qemu_get_timedate(struct tm *tm, int offset)
1538 {
1539 time_t ti;
1540 struct tm *ret;
1541
1542 time(&ti);
1543 ti += offset;
1544 if (rtc_date_offset == -1) {
1545 if (rtc_utc)
1546 ret = gmtime(&ti);
1547 else
1548 ret = localtime(&ti);
1549 } else {
1550 ti -= rtc_date_offset;
1551 ret = gmtime(&ti);
1552 }
1553
1554 memcpy(tm, ret, sizeof(struct tm));
1555 }
1556
1557 int qemu_timedate_diff(struct tm *tm)
1558 {
1559 time_t seconds;
1560
1561 if (rtc_date_offset == -1)
1562 if (rtc_utc)
1563 seconds = mktimegm(tm);
1564 else
1565 seconds = mktime(tm);
1566 else
1567 seconds = mktimegm(tm) + rtc_date_offset;
1568
1569 return seconds - time(NULL);
1570 }
1571
1572 #ifdef _WIN32
1573 static void socket_cleanup(void)
1574 {
1575 WSACleanup();
1576 }
1577
1578 static int socket_init(void)
1579 {
1580 WSADATA Data;
1581 int ret, err;
1582
1583 ret = WSAStartup(MAKEWORD(2,2), &Data);
1584 if (ret != 0) {
1585 err = WSAGetLastError();
1586 fprintf(stderr, "WSAStartup: %d\n", err);
1587 return -1;
1588 }
1589 atexit(socket_cleanup);
1590 return 0;
1591 }
1592 #endif
1593
1594 /***********************************************************/
1595 /* Bluetooth support */
1596 static int nb_hcis;
1597 static int cur_hci;
1598 static struct HCIInfo *hci_table[MAX_NICS];
1599
1600 static struct bt_vlan_s {
1601 struct bt_scatternet_s net;
1602 int id;
1603 struct bt_vlan_s *next;
1604 } *first_bt_vlan;
1605
1606 /* find or alloc a new bluetooth "VLAN" */
1607 static struct bt_scatternet_s *qemu_find_bt_vlan(int id)
1608 {
1609 struct bt_vlan_s **pvlan, *vlan;
1610 for (vlan = first_bt_vlan; vlan != NULL; vlan = vlan->next) {
1611 if (vlan->id == id)
1612 return &vlan->net;
1613 }
1614 vlan = qemu_mallocz(sizeof(struct bt_vlan_s));
1615 vlan->id = id;
1616 pvlan = &first_bt_vlan;
1617 while (*pvlan != NULL)
1618 pvlan = &(*pvlan)->next;
1619 *pvlan = vlan;
1620 return &vlan->net;
1621 }
1622
1623 static void null_hci_send(struct HCIInfo *hci, const uint8_t *data, int len)
1624 {
1625 }
1626
1627 static int null_hci_addr_set(struct HCIInfo *hci, const uint8_t *bd_addr)
1628 {
1629 return -ENOTSUP;
1630 }
1631
1632 static struct HCIInfo null_hci = {
1633 .cmd_send = null_hci_send,
1634 .sco_send = null_hci_send,
1635 .acl_send = null_hci_send,
1636 .bdaddr_set = null_hci_addr_set,
1637 };
1638
1639 struct HCIInfo *qemu_next_hci(void)
1640 {
1641 if (cur_hci == nb_hcis)
1642 return &null_hci;
1643
1644 return hci_table[cur_hci++];
1645 }
1646
1647 static struct HCIInfo *hci_init(const char *str)
1648 {
1649 char *endp;
1650 struct bt_scatternet_s *vlan = 0;
1651
1652 if (!strcmp(str, "null"))
1653 /* null */
1654 return &null_hci;
1655 else if (!strncmp(str, "host", 4) && (str[4] == '\0' || str[4] == ':'))
1656 /* host[:hciN] */
1657 return bt_host_hci(str[4] ? str + 5 : "hci0");
1658 else if (!strncmp(str, "hci", 3)) {
1659 /* hci[,vlan=n] */
1660 if (str[3]) {
1661 if (!strncmp(str + 3, ",vlan=", 6)) {
1662 vlan = qemu_find_bt_vlan(strtol(str + 9, &endp, 0));
1663 if (*endp)
1664 vlan = 0;
1665 }
1666 } else
1667 vlan = qemu_find_bt_vlan(0);
1668 if (vlan)
1669 return bt_new_hci(vlan);
1670 }
1671
1672 fprintf(stderr, "qemu: Unknown bluetooth HCI `%s'.\n", str);
1673
1674 return 0;
1675 }
1676
1677 static int bt_hci_parse(const char *str)
1678 {
1679 struct HCIInfo *hci;
1680 bdaddr_t bdaddr;
1681
1682 if (nb_hcis >= MAX_NICS) {
1683 fprintf(stderr, "qemu: Too many bluetooth HCIs (max %i).\n", MAX_NICS);
1684 return -1;
1685 }
1686
1687 hci = hci_init(str);
1688 if (!hci)
1689 return -1;
1690
1691 bdaddr.b[0] = 0x52;
1692 bdaddr.b[1] = 0x54;
1693 bdaddr.b[2] = 0x00;
1694 bdaddr.b[3] = 0x12;
1695 bdaddr.b[4] = 0x34;
1696 bdaddr.b[5] = 0x56 + nb_hcis;
1697 hci->bdaddr_set(hci, bdaddr.b);
1698
1699 hci_table[nb_hcis++] = hci;
1700
1701 return 0;
1702 }
1703
1704 static void bt_vhci_add(int vlan_id)
1705 {
1706 struct bt_scatternet_s *vlan = qemu_find_bt_vlan(vlan_id);
1707
1708 if (!vlan->slave)
1709 fprintf(stderr, "qemu: warning: adding a VHCI to "
1710 "an empty scatternet %i\n", vlan_id);
1711
1712 bt_vhci_init(bt_new_hci(vlan));
1713 }
1714
1715 static struct bt_device_s *bt_device_add(const char *opt)
1716 {
1717 struct bt_scatternet_s *vlan;
1718 int vlan_id = 0;
1719 char *endp = strstr(opt, ",vlan=");
1720 int len = (endp ? endp - opt : strlen(opt)) + 1;
1721 char devname[10];
1722
1723 pstrcpy(devname, MIN(sizeof(devname), len), opt);
1724
1725 if (endp) {
1726 vlan_id = strtol(endp + 6, &endp, 0);
1727 if (*endp) {
1728 fprintf(stderr, "qemu: unrecognised bluetooth vlan Id\n");
1729 return 0;
1730 }
1731 }
1732
1733 vlan = qemu_find_bt_vlan(vlan_id);
1734
1735 if (!vlan->slave)
1736 fprintf(stderr, "qemu: warning: adding a slave device to "
1737 "an empty scatternet %i\n", vlan_id);
1738
1739 if (!strcmp(devname, "keyboard"))
1740 return bt_keyboard_init(vlan);
1741
1742 fprintf(stderr, "qemu: unsupported bluetooth device `%s'\n", devname);
1743 return 0;
1744 }
1745
1746 static int bt_parse(const char *opt)
1747 {
1748 const char *endp, *p;
1749 int vlan;
1750
1751 if (strstart(opt, "hci", &endp)) {
1752 if (!*endp || *endp == ',') {
1753 if (*endp)
1754 if (!strstart(endp, ",vlan=", 0))
1755 opt = endp + 1;
1756
1757 return bt_hci_parse(opt);
1758 }
1759 } else if (strstart(opt, "vhci", &endp)) {
1760 if (!*endp || *endp == ',') {
1761 if (*endp) {
1762 if (strstart(endp, ",vlan=", &p)) {
1763 vlan = strtol(p, (char **) &endp, 0);
1764 if (*endp) {
1765 fprintf(stderr, "qemu: bad scatternet '%s'\n", p);
1766 return 1;
1767 }
1768 } else {
1769 fprintf(stderr, "qemu: bad parameter '%s'\n", endp + 1);
1770 return 1;
1771 }
1772 } else
1773 vlan = 0;
1774
1775 bt_vhci_add(vlan);
1776 return 0;
1777 }
1778 } else if (strstart(opt, "device:", &endp))
1779 return !bt_device_add(endp);
1780
1781 fprintf(stderr, "qemu: bad bluetooth parameter '%s'\n", opt);
1782 return 1;
1783 }
1784
1785 /***********************************************************/
1786 /* QEMU Block devices */
1787
1788 #define HD_ALIAS "index=%d,media=disk"
1789 #define CDROM_ALIAS "index=2,media=cdrom"
1790 #define FD_ALIAS "index=%d,if=floppy"
1791 #define PFLASH_ALIAS "if=pflash"
1792 #define MTD_ALIAS "if=mtd"
1793 #define SD_ALIAS "index=0,if=sd"
1794
1795 QemuOpts *drive_add(const char *file, const char *fmt, ...)
1796 {
1797 va_list ap;
1798 char optstr[1024];
1799 QemuOpts *opts;
1800
1801 va_start(ap, fmt);
1802 vsnprintf(optstr, sizeof(optstr), fmt, ap);
1803 va_end(ap);
1804
1805 opts = qemu_opts_parse(&qemu_drive_opts, optstr, NULL);
1806 if (!opts) {
1807 fprintf(stderr, "%s: huh? duplicate? (%s)\n",
1808 __FUNCTION__, optstr);
1809 return NULL;
1810 }
1811 if (file)
1812 qemu_opt_set(opts, "file", file);
1813 return opts;
1814 }
1815
1816 DriveInfo *drive_get(BlockInterfaceType type, int bus, int unit)
1817 {
1818 DriveInfo *dinfo;
1819
1820 /* seek interface, bus and unit */
1821
1822 TAILQ_FOREACH(dinfo, &drives, next) {
1823 if (dinfo->type == type &&
1824 dinfo->bus == bus &&
1825 dinfo->unit == unit)
1826 return dinfo;
1827 }
1828
1829 return NULL;
1830 }
1831
1832 DriveInfo *drive_get_by_id(const char *id)
1833 {
1834 DriveInfo *dinfo;
1835
1836 TAILQ_FOREACH(dinfo, &drives, next) {
1837 if (strcmp(id, dinfo->id))
1838 continue;
1839 return dinfo;
1840 }
1841 return NULL;
1842 }
1843
1844 int drive_get_max_bus(BlockInterfaceType type)
1845 {
1846 int max_bus;
1847 DriveInfo *dinfo;
1848
1849 max_bus = -1;
1850 TAILQ_FOREACH(dinfo, &drives, next) {
1851 if(dinfo->type == type &&
1852 dinfo->bus > max_bus)
1853 max_bus = dinfo->bus;
1854 }
1855 return max_bus;
1856 }
1857
1858 const char *drive_get_serial(BlockDriverState *bdrv)
1859 {
1860 DriveInfo *dinfo;
1861
1862 TAILQ_FOREACH(dinfo, &drives, next) {
1863 if (dinfo->bdrv == bdrv)
1864 return dinfo->serial;
1865 }
1866
1867 return "\0";
1868 }
1869
1870 BlockInterfaceErrorAction drive_get_onerror(BlockDriverState *bdrv)
1871 {
1872 DriveInfo *dinfo;
1873
1874 TAILQ_FOREACH(dinfo, &drives, next) {
1875 if (dinfo->bdrv == bdrv)
1876 return dinfo->onerror;
1877 }
1878
1879 return BLOCK_ERR_STOP_ENOSPC;
1880 }
1881
1882 static void bdrv_format_print(void *opaque, const char *name)
1883 {
1884 fprintf(stderr, " %s", name);
1885 }
1886
1887 void drive_uninit(BlockDriverState *bdrv)
1888 {
1889 DriveInfo *dinfo;
1890
1891 TAILQ_FOREACH(dinfo, &drives, next) {
1892 if (dinfo->bdrv != bdrv)
1893 continue;
1894 qemu_opts_del(dinfo->opts);
1895 TAILQ_REMOVE(&drives, dinfo, next);
1896 qemu_free(dinfo);
1897 break;
1898 }
1899 }
1900
1901 DriveInfo *drive_init(QemuOpts *opts, void *opaque,
1902 int *fatal_error)
1903 {
1904 const char *buf;
1905 const char *file = NULL;
1906 char devname[128];
1907 const char *serial;
1908 const char *mediastr = "";
1909 BlockInterfaceType type;
1910 enum { MEDIA_DISK, MEDIA_CDROM } media;
1911 int bus_id, unit_id;
1912 int cyls, heads, secs, translation;
1913 BlockDriver *drv = NULL;
1914 QEMUMachine *machine = opaque;
1915 int max_devs;
1916 int index;
1917 int cache;
1918 int aio = 0;
1919 int bdrv_flags, onerror;
1920 const char *devaddr;
1921 DriveInfo *dinfo;
1922 int snapshot = 0;
1923
1924 *fatal_error = 1;
1925
1926 translation = BIOS_ATA_TRANSLATION_AUTO;
1927 cache = 1;
1928
1929 if (machine->use_scsi) {
1930 type = IF_SCSI;
1931 max_devs = MAX_SCSI_DEVS;
1932 pstrcpy(devname, sizeof(devname), "scsi");
1933 } else {
1934 type = IF_IDE;
1935 max_devs = MAX_IDE_DEVS;
1936 pstrcpy(devname, sizeof(devname), "ide");
1937 }
1938 media = MEDIA_DISK;
1939
1940 /* extract parameters */
1941 bus_id = qemu_opt_get_number(opts, "bus", 0);
1942 unit_id = qemu_opt_get_number(opts, "unit", -1);
1943 index = qemu_opt_get_number(opts, "index", -1);
1944
1945 cyls = qemu_opt_get_number(opts, "cyls", 0);
1946 heads = qemu_opt_get_number(opts, "heads", 0);
1947 secs = qemu_opt_get_number(opts, "secs", 0);
1948
1949 snapshot = qemu_opt_get_bool(opts, "snapshot", 0);
1950
1951 file = qemu_opt_get(opts, "file");
1952 serial = qemu_opt_get(opts, "serial");
1953
1954 if ((buf = qemu_opt_get(opts, "if")) != NULL) {
1955 pstrcpy(devname, sizeof(devname), buf);
1956 if (!strcmp(buf, "ide")) {
1957 type = IF_IDE;
1958 max_devs = MAX_IDE_DEVS;
1959 } else if (!strcmp(buf, "scsi")) {
1960 type = IF_SCSI;
1961 max_devs = MAX_SCSI_DEVS;
1962 } else if (!strcmp(buf, "floppy")) {
1963 type = IF_FLOPPY;
1964 max_devs = 0;
1965 } else if (!strcmp(buf, "pflash")) {
1966 type = IF_PFLASH;
1967 max_devs = 0;
1968 } else if (!strcmp(buf, "mtd")) {
1969 type = IF_MTD;
1970 max_devs = 0;
1971 } else if (!strcmp(buf, "sd")) {
1972 type = IF_SD;
1973 max_devs = 0;
1974 } else if (!strcmp(buf, "virtio")) {
1975 type = IF_VIRTIO;
1976 max_devs = 0;
1977 } else if (!strcmp(buf, "xen")) {
1978 type = IF_XEN;
1979 max_devs = 0;
1980 } else if (!strcmp(buf, "none")) {
1981 type = IF_NONE;
1982 max_devs = 0;
1983 } else {
1984 fprintf(stderr, "qemu: unsupported bus type '%s'\n", buf);
1985 return NULL;
1986 }
1987 }
1988
1989 if (cyls || heads || secs) {
1990 if (cyls < 1 || cyls > 16383) {
1991 fprintf(stderr, "qemu: '%s' invalid physical cyls number\n", buf);
1992 return NULL;
1993 }
1994 if (heads < 1 || heads > 16) {
1995 fprintf(stderr, "qemu: '%s' invalid physical heads number\n", buf);
1996 return NULL;
1997 }
1998 if (secs < 1 || secs > 63) {
1999 fprintf(stderr, "qemu: '%s' invalid physical secs number\n", buf);
2000 return NULL;
2001 }
2002 }
2003
2004 if ((buf = qemu_opt_get(opts, "trans")) != NULL) {
2005 if (!cyls) {
2006 fprintf(stderr,
2007 "qemu: '%s' trans must be used with cyls,heads and secs\n",
2008 buf);
2009 return NULL;
2010 }
2011 if (!strcmp(buf, "none"))
2012 translation = BIOS_ATA_TRANSLATION_NONE;
2013 else if (!strcmp(buf, "lba"))
2014 translation = BIOS_ATA_TRANSLATION_LBA;
2015 else if (!strcmp(buf, "auto"))
2016 translation = BIOS_ATA_TRANSLATION_AUTO;
2017 else {
2018 fprintf(stderr, "qemu: '%s' invalid translation type\n", buf);
2019 return NULL;
2020 }
2021 }
2022
2023 if ((buf = qemu_opt_get(opts, "media")) != NULL) {
2024 if (!strcmp(buf, "disk")) {
2025 media = MEDIA_DISK;
2026 } else if (!strcmp(buf, "cdrom")) {
2027 if (cyls || secs || heads) {
2028 fprintf(stderr,
2029 "qemu: '%s' invalid physical CHS format\n", buf);
2030 return NULL;
2031 }
2032 media = MEDIA_CDROM;
2033 } else {
2034 fprintf(stderr, "qemu: '%s' invalid media\n", buf);
2035 return NULL;
2036 }
2037 }
2038
2039 if ((buf = qemu_opt_get(opts, "cache")) != NULL) {
2040 if (!strcmp(buf, "off") || !strcmp(buf, "none"))
2041 cache = 0;
2042 else if (!strcmp(buf, "writethrough"))
2043 cache = 1;
2044 else if (!strcmp(buf, "writeback"))
2045 cache = 2;
2046 else {
2047 fprintf(stderr, "qemu: invalid cache option\n");
2048 return NULL;
2049 }
2050 }
2051
2052 #ifdef CONFIG_LINUX_AIO
2053 if ((buf = qemu_opt_get(opts, "aio")) != NULL) {
2054 if (!strcmp(buf, "threads"))
2055 aio = 0;
2056 else if (!strcmp(buf, "native"))
2057 aio = 1;
2058 else {
2059 fprintf(stderr, "qemu: invalid aio option\n");
2060 return NULL;
2061 }
2062 }
2063 #endif
2064
2065 if ((buf = qemu_opt_get(opts, "format")) != NULL) {
2066 if (strcmp(buf, "?") == 0) {
2067 fprintf(stderr, "qemu: Supported formats:");
2068 bdrv_iterate_format(bdrv_format_print, NULL);
2069 fprintf(stderr, "\n");
2070 return NULL;
2071 }
2072 drv = bdrv_find_format(buf);
2073 if (!drv) {
2074 fprintf(stderr, "qemu: '%s' invalid format\n", buf);
2075 return NULL;
2076 }
2077 }
2078
2079 onerror = BLOCK_ERR_STOP_ENOSPC;
2080 if ((buf = qemu_opt_get(opts, "werror")) != NULL) {
2081 if (type != IF_IDE && type != IF_SCSI && type != IF_VIRTIO) {
2082 fprintf(stderr, "werror is no supported by this format\n");
2083 return NULL;
2084 }
2085 if (!strcmp(buf, "ignore"))
2086 onerror = BLOCK_ERR_IGNORE;
2087 else if (!strcmp(buf, "enospc"))
2088 onerror = BLOCK_ERR_STOP_ENOSPC;
2089 else if (!strcmp(buf, "stop"))
2090 onerror = BLOCK_ERR_STOP_ANY;
2091 else if (!strcmp(buf, "report"))
2092 onerror = BLOCK_ERR_REPORT;
2093 else {
2094 fprintf(stderr, "qemu: '%s' invalid write error action\n", buf);
2095 return NULL;
2096 }
2097 }
2098
2099 if ((devaddr = qemu_opt_get(opts, "addr")) != NULL) {
2100 if (type != IF_VIRTIO) {
2101 fprintf(stderr, "addr is not supported\n");
2102 return NULL;
2103 }
2104 }
2105
2106 /* compute bus and unit according index */
2107
2108 if (index != -1) {
2109 if (bus_id != 0 || unit_id != -1) {
2110 fprintf(stderr,
2111 "qemu: index cannot be used with bus and unit\n");
2112 return NULL;
2113 }
2114 if (max_devs == 0)
2115 {
2116 unit_id = index;
2117 bus_id = 0;
2118 } else {
2119 unit_id = index % max_devs;
2120 bus_id = index / max_devs;
2121 }
2122 }
2123
2124 /* if user doesn't specify a unit_id,
2125 * try to find the first free
2126 */
2127
2128 if (unit_id == -1) {
2129 unit_id = 0;
2130 while (drive_get(type, bus_id, unit_id) != NULL) {
2131 unit_id++;
2132 if (max_devs && unit_id >= max_devs) {
2133 unit_id -= max_devs;
2134 bus_id++;
2135 }
2136 }
2137 }
2138
2139 /* check unit id */
2140
2141 if (max_devs && unit_id >= max_devs) {
2142 fprintf(stderr, "qemu: unit %d too big (max is %d)\n",
2143 unit_id, max_devs - 1);
2144 return NULL;
2145 }
2146
2147 /*
2148 * ignore multiple definitions
2149 */
2150
2151 if (drive_get(type, bus_id, unit_id) != NULL) {
2152 *fatal_error = 0;
2153 return NULL;
2154 }
2155
2156 /* init */
2157
2158 dinfo = qemu_mallocz(sizeof(*dinfo));
2159 if ((buf = qemu_opts_id(opts)) != NULL) {
2160 dinfo->id = qemu_strdup(buf);
2161 } else {
2162 /* no id supplied -> create one */
2163 dinfo->id = qemu_mallocz(32);
2164 if (type == IF_IDE || type == IF_SCSI)
2165 mediastr = (media == MEDIA_CDROM) ? "-cd" : "-hd";
2166 if (max_devs)
2167 snprintf(dinfo->id, 32, "%s%i%s%i",
2168 devname, bus_id, mediastr, unit_id);
2169 else
2170 snprintf(dinfo->id, 32, "%s%s%i",
2171 devname, mediastr, unit_id);
2172 }
2173 dinfo->bdrv = bdrv_new(dinfo->id);
2174 dinfo->devaddr = devaddr;
2175 dinfo->type = type;
2176 dinfo->bus = bus_id;
2177 dinfo->unit = unit_id;
2178 dinfo->onerror = onerror;
2179 dinfo->opts = opts;
2180 if (serial)
2181 strncpy(dinfo->serial, serial, sizeof(serial));
2182 TAILQ_INSERT_TAIL(&drives, dinfo, next);
2183
2184 switch(type) {
2185 case IF_IDE:
2186 case IF_SCSI:
2187 case IF_XEN:
2188 switch(media) {
2189 case MEDIA_DISK:
2190 if (cyls != 0) {
2191 bdrv_set_geometry_hint(dinfo->bdrv, cyls, heads, secs);
2192 bdrv_set_translation_hint(dinfo->bdrv, translation);
2193 }
2194 break;
2195 case MEDIA_CDROM:
2196 bdrv_set_type_hint(dinfo->bdrv, BDRV_TYPE_CDROM);
2197 break;
2198 }
2199 break;
2200 case IF_SD:
2201 /* FIXME: This isn't really a floppy, but it's a reasonable
2202 approximation. */
2203 case IF_FLOPPY:
2204 bdrv_set_type_hint(dinfo->bdrv, BDRV_TYPE_FLOPPY);
2205 break;
2206 case IF_PFLASH:
2207 case IF_MTD:
2208 case IF_NONE:
2209 break;
2210 case IF_VIRTIO:
2211 /* add virtio block device */
2212 opts = qemu_opts_create(&qemu_device_opts, NULL, 0);
2213 qemu_opt_set(opts, "driver", "virtio-blk-pci");
2214 qemu_opt_set(opts, "drive", dinfo->id);
2215 if (devaddr)
2216 qemu_opt_set(opts, "addr", devaddr);
2217 break;
2218 case IF_COUNT:
2219 abort();
2220 }
2221 if (!file) {
2222 *fatal_error = 0;
2223 return NULL;
2224 }
2225 bdrv_flags = 0;
2226 if (snapshot) {
2227 bdrv_flags |= BDRV_O_SNAPSHOT;
2228 cache = 2; /* always use write-back with snapshot */
2229 }
2230 if (cache == 0) /* no caching */
2231 bdrv_flags |= BDRV_O_NOCACHE;
2232 else if (cache == 2) /* write-back */
2233 bdrv_flags |= BDRV_O_CACHE_WB;
2234
2235 if (aio == 1) {
2236 bdrv_flags |= BDRV_O_NATIVE_AIO;
2237 } else {
2238 bdrv_flags &= ~BDRV_O_NATIVE_AIO;
2239 }
2240
2241 if (bdrv_open2(dinfo->bdrv, file, bdrv_flags, drv) < 0) {
2242 fprintf(stderr, "qemu: could not open disk image %s\n",
2243 file);
2244 return NULL;
2245 }
2246
2247 if (bdrv_key_required(dinfo->bdrv))
2248 autostart = 0;
2249 *fatal_error = 0;
2250 return dinfo;
2251 }
2252
2253 static int drive_init_func(QemuOpts *opts, void *opaque)
2254 {
2255 QEMUMachine *machine = opaque;
2256 int fatal_error = 0;
2257
2258 if (drive_init(opts, machine, &fatal_error) == NULL) {
2259 if (fatal_error)
2260 return 1;
2261 }
2262 return 0;
2263 }
2264
2265 static int drive_enable_snapshot(QemuOpts *opts, void *opaque)
2266 {
2267 if (NULL == qemu_opt_get(opts, "snapshot")) {
2268 qemu_opt_set(opts, "snapshot", "on");
2269 }
2270 return 0;
2271 }
2272
2273 void qemu_register_boot_set(QEMUBootSetHandler *func, void *opaque)
2274 {
2275 boot_set_handler = func;
2276 boot_set_opaque = opaque;
2277 }
2278
2279 int qemu_boot_set(const char *boot_devices)
2280 {
2281 if (!boot_set_handler) {
2282 return -EINVAL;
2283 }
2284 return boot_set_handler(boot_set_opaque, boot_devices);
2285 }
2286
2287 static int parse_bootdevices(char *devices)
2288 {
2289 /* We just do some generic consistency checks */
2290 const char *p;
2291 int bitmap = 0;
2292
2293 for (p = devices; *p != '\0'; p++) {
2294 /* Allowed boot devices are:
2295 * a-b: floppy disk drives
2296 * c-f: IDE disk drives
2297 * g-m: machine implementation dependant drives
2298 * n-p: network devices
2299 * It's up to each machine implementation to check if the given boot
2300 * devices match the actual hardware implementation and firmware
2301 * features.
2302 */
2303 if (*p < 'a' || *p > 'p') {
2304 fprintf(stderr, "Invalid boot device '%c'\n", *p);
2305 exit(1);
2306 }
2307 if (bitmap & (1 << (*p - 'a'))) {
2308 fprintf(stderr, "Boot device '%c' was given twice\n", *p);
2309 exit(1);
2310 }
2311 bitmap |= 1 << (*p - 'a');
2312 }
2313 return bitmap;
2314 }
2315
2316 static void restore_boot_devices(void *opaque)
2317 {
2318 char *standard_boot_devices = opaque;
2319
2320 qemu_boot_set(standard_boot_devices);
2321
2322 qemu_unregister_reset(restore_boot_devices, standard_boot_devices);
2323 qemu_free(standard_boot_devices);
2324 }
2325
2326 static void numa_add(const char *optarg)
2327 {
2328 char option[128];
2329 char *endptr;
2330 unsigned long long value, endvalue;
2331 int nodenr;
2332
2333 optarg = get_opt_name(option, 128, optarg, ',') + 1;
2334 if (!strcmp(option, "node")) {
2335 if (get_param_value(option, 128, "nodeid", optarg) == 0) {
2336 nodenr = nb_numa_nodes;
2337 } else {
2338 nodenr = strtoull(option, NULL, 10);
2339 }
2340
2341 if (get_param_value(option, 128, "mem", optarg) == 0) {
2342 node_mem[nodenr] = 0;
2343 } else {
2344 value = strtoull(option, &endptr, 0);
2345 switch (*endptr) {
2346 case 0: case 'M': case 'm':
2347 value <<= 20;
2348 break;
2349 case 'G': case 'g':
2350 value <<= 30;
2351 break;
2352 }
2353 node_mem[nodenr] = value;
2354 }
2355 if (get_param_value(option, 128, "cpus", optarg) == 0) {
2356 node_cpumask[nodenr] = 0;
2357 } else {
2358 value = strtoull(option, &endptr, 10);
2359 if (value >= 64) {
2360 value = 63;
2361 fprintf(stderr, "only 64 CPUs in NUMA mode supported.\n");
2362 } else {
2363 if (*endptr == '-') {
2364 endvalue = strtoull(endptr+1, &endptr, 10);
2365 if (endvalue >= 63) {
2366 endvalue = 62;
2367 fprintf(stderr,
2368 "only 63 CPUs in NUMA mode supported.\n");
2369 }
2370 value = (1 << (endvalue + 1)) - (1 << value);
2371 } else {
2372 value = 1 << value;
2373 }
2374 }
2375 node_cpumask[nodenr] = value;
2376 }
2377 nb_numa_nodes++;
2378 }
2379 return;
2380 }
2381
2382 static void smp_parse(const char *optarg)
2383 {
2384 int smp, sockets = 0, threads = 0, cores = 0;
2385 char *endptr;
2386 char option[128];
2387
2388 smp = strtoul(optarg, &endptr, 10);
2389 if (endptr != optarg) {
2390 if (*endptr == ',') {
2391 endptr++;
2392 }
2393 }
2394 if (get_param_value(option, 128, "sockets", endptr) != 0)
2395 sockets = strtoull(option, NULL, 10);
2396 if (get_param_value(option, 128, "cores", endptr) != 0)
2397 cores = strtoull(option, NULL, 10);
2398 if (get_param_value(option, 128, "threads", endptr) != 0)
2399 threads = strtoull(option, NULL, 10);
2400 if (get_param_value(option, 128, "maxcpus", endptr) != 0)
2401 max_cpus = strtoull(option, NULL, 10);
2402
2403 /* compute missing values, prefer sockets over cores over threads */
2404 if (smp == 0 || sockets == 0) {
2405 sockets = sockets > 0 ? sockets : 1;
2406 cores = cores > 0 ? cores : 1;
2407 threads = threads > 0 ? threads : 1;
2408 if (smp == 0) {
2409 smp = cores * threads * sockets;
2410 } else {
2411 sockets = smp / (cores * threads);
2412 }
2413 } else {
2414 if (cores == 0) {
2415 threads = threads > 0 ? threads : 1;
2416 cores = smp / (sockets * threads);
2417 } else {
2418 if (sockets == 0) {
2419 sockets = smp / (cores * threads);
2420 } else {
2421 threads = smp / (cores * sockets);
2422 }
2423 }
2424 }
2425 smp_cpus = smp;
2426 smp_cores = cores > 0 ? cores : 1;
2427 smp_threads = threads > 0 ? threads : 1;
2428 if (max_cpus == 0)
2429 max_cpus = smp_cpus;
2430 }
2431
2432 /***********************************************************/
2433 /* USB devices */
2434
2435 static USBPort *used_usb_ports;
2436 static USBPort *free_usb_ports;
2437
2438 /* ??? Maybe change this to register a hub to keep track of the topology. */
2439 void qemu_register_usb_port(USBPort *port, void *opaque, int index,
2440 usb_attachfn attach)
2441 {
2442 port->opaque = opaque;
2443 port->index = index;
2444 port->attach = attach;
2445 port->next = free_usb_ports;
2446 free_usb_ports = port;
2447 }
2448
2449 int usb_device_add_dev(USBDevice *dev)
2450 {
2451 USBPort *port;
2452
2453 /* Find a USB port to add the device to. */
2454 port = free_usb_ports;
2455 if (!port->next) {
2456 USBDevice *hub;
2457
2458 /* Create a new hub and chain it on. */
2459 free_usb_ports = NULL;
2460 port->next = used_usb_ports;
2461 used_usb_ports = port;
2462
2463 hub = usb_hub_init(VM_USB_HUB_SIZE);
2464 usb_attach(port, hub);
2465 port = free_usb_ports;
2466 }
2467
2468 free_usb_ports = port->next;
2469 port->next = used_usb_ports;
2470 used_usb_ports = port;
2471 usb_attach(port, dev);
2472 return 0;
2473 }
2474
2475 static void usb_msd_password_cb(void *opaque, int err)
2476 {
2477 USBDevice *dev = opaque;
2478
2479 if (!err)
2480 usb_device_add_dev(dev);
2481 else
2482 dev->handle_destroy(dev);
2483 }
2484
2485 static int usb_device_add(const char *devname, int is_hotplug)
2486 {
2487 const char *p;
2488 USBDevice *dev;
2489
2490 if (!free_usb_ports)
2491 return -1;
2492
2493 if (strstart(devname, "host:", &p)) {
2494 dev = usb_host_device_open(p);
2495 } else if (!strcmp(devname, "mouse")) {
2496 dev = usb_mouse_init();
2497 } else if (!strcmp(devname, "tablet")) {
2498 dev = usb_tablet_init();
2499 } else if (!strcmp(devname, "keyboard")) {
2500 dev = usb_keyboard_init();
2501 } else if (strstart(devname, "disk:", &p)) {
2502 BlockDriverState *bs;
2503
2504 dev = usb_msd_init(p);
2505 if (!dev)
2506 return -1;
2507 bs = usb_msd_get_bdrv(dev);
2508 if (bdrv_key_required(bs)) {
2509 autostart = 0;
2510 if (is_hotplug) {
2511 monitor_read_bdrv_key_start(cur_mon, bs, usb_msd_password_cb,
2512 dev);
2513 return 0;
2514 }
2515 }
2516 } else if (!strcmp(devname, "wacom-tablet")) {
2517 dev = usb_wacom_init();
2518 } else if (strstart(devname, "serial:", &p)) {
2519 dev = usb_serial_init(p);
2520 #ifdef CONFIG_BRLAPI
2521 } else if (!strcmp(devname, "braille")) {
2522 dev = usb_baum_init();
2523 #endif
2524 } else if (strstart(devname, "net:", &p)) {
2525 int nic = nb_nics;
2526
2527 if (net_client_init(NULL, "nic", p) < 0)
2528 return -1;
2529 nd_table[nic].model = "usb";
2530 dev = usb_net_init(&nd_table[nic]);
2531 } else if (!strcmp(devname, "bt") || strstart(devname, "bt:", &p)) {
2532 dev = usb_bt_init(devname[2] ? hci_init(p) :
2533 bt_new_hci(qemu_find_bt_vlan(0)));
2534 } else {
2535 return -1;
2536 }
2537 if (!dev)
2538 return -1;
2539
2540 return usb_device_add_dev(dev);
2541 }
2542
2543 int usb_device_del_addr(int bus_num, int addr)
2544 {
2545 USBPort *port;
2546 USBPort **lastp;
2547 USBDevice *dev;
2548
2549 if (!used_usb_ports)
2550 return -1;
2551
2552 if (bus_num != 0)
2553 return -1;
2554
2555 lastp = &used_usb_ports;
2556 port = used_usb_ports;
2557 while (port && port->dev->addr != addr) {
2558 lastp = &port->next;
2559 port = port->next;
2560 }
2561
2562 if (!port)
2563 return -1;
2564
2565 dev = port->dev;
2566 *lastp = port->next;
2567 usb_attach(port, NULL);
2568 dev->handle_destroy(dev);
2569 port->next = free_usb_ports;
2570 free_usb_ports = port;
2571 return 0;
2572 }
2573
2574 static int usb_device_del(const char *devname)
2575 {
2576 int bus_num, addr;
2577 const char *p;
2578
2579 if (strstart(devname, "host:", &p))
2580 return usb_host_device_close(p);
2581
2582 if (!used_usb_ports)
2583 return -1;
2584
2585 p = strchr(devname, '.');
2586 if (!p)
2587 return -1;
2588 bus_num = strtoul(devname, NULL, 0);
2589 addr = strtoul(p + 1, NULL, 0);
2590
2591 return usb_device_del_addr(bus_num, addr);
2592 }
2593
2594 static int usb_parse(const char *cmdline)
2595 {
2596 return usb_device_add(cmdline, 0);
2597 }
2598
2599 void do_usb_add(Monitor *mon, const char *devname)
2600 {
2601 usb_device_add(devname, 1);
2602 }
2603
2604 void do_usb_del(Monitor *mon, const char *devname)
2605 {
2606 usb_device_del(devname);
2607 }
2608
2609 void usb_info(Monitor *mon)
2610 {
2611 USBDevice *dev;
2612 USBPort *port;
2613 const char *speed_str;
2614
2615 if (!usb_enabled) {
2616 monitor_printf(mon, "USB support not enabled\n");
2617 return;
2618 }
2619
2620 for (port = used_usb_ports; port; port = port->next) {
2621 dev = port->dev;
2622 if (!dev)
2623 continue;
2624 switch(dev->speed) {
2625 case USB_SPEED_LOW:
2626 speed_str = "1.5";
2627 break;
2628 case USB_SPEED_FULL:
2629 speed_str = "12";
2630 break;
2631 case USB_SPEED_HIGH:
2632 speed_str = "480";
2633 break;
2634 default:
2635 speed_str = "?";
2636 break;
2637 }
2638 monitor_printf(mon, " Device %d.%d, Speed %s Mb/s, Product %s\n",
2639 0, dev->addr, speed_str, dev->devname);
2640 }
2641 }
2642
2643 /***********************************************************/
2644 /* PCMCIA/Cardbus */
2645
2646 static struct pcmcia_socket_entry_s {
2647 PCMCIASocket *socket;
2648 struct pcmcia_socket_entry_s *next;
2649 } *pcmcia_sockets = 0;
2650
2651 void pcmcia_socket_register(PCMCIASocket *socket)
2652 {
2653 struct pcmcia_socket_entry_s *entry;
2654
2655 entry = qemu_malloc(sizeof(struct pcmcia_socket_entry_s));
2656 entry->socket = socket;
2657 entry->next = pcmcia_sockets;
2658 pcmcia_sockets = entry;
2659 }
2660
2661 void pcmcia_socket_unregister(PCMCIASocket *socket)
2662 {
2663 struct pcmcia_socket_entry_s *entry, **ptr;
2664
2665 ptr = &pcmcia_sockets;
2666 for (entry = *ptr; entry; ptr = &entry->next, entry = *ptr)
2667 if (entry->socket == socket) {
2668 *ptr = entry->next;
2669 qemu_free(entry);
2670 }
2671 }
2672
2673 void pcmcia_info(Monitor *mon)
2674 {
2675 struct pcmcia_socket_entry_s *iter;
2676
2677 if (!pcmcia_sockets)
2678 monitor_printf(mon, "No PCMCIA sockets\n");
2679
2680 for (iter = pcmcia_sockets; iter; iter = iter->next)
2681 monitor_printf(mon, "%s: %s\n", iter->socket->slot_string,
2682 iter->socket->attached ? iter->socket->card_string :
2683 "Empty");
2684 }
2685
2686 /***********************************************************/
2687 /* register display */
2688
2689 struct DisplayAllocator default_allocator = {
2690 defaultallocator_create_displaysurface,
2691 defaultallocator_resize_displaysurface,
2692 defaultallocator_free_displaysurface
2693 };
2694
2695 void register_displaystate(DisplayState *ds)
2696 {
2697 DisplayState **s;
2698 s = &display_state;
2699 while (*s != NULL)
2700 s = &(*s)->next;
2701 ds->next = NULL;
2702 *s = ds;
2703 }
2704
2705 DisplayState *get_displaystate(void)
2706 {
2707 return display_state;
2708 }
2709
2710 DisplayAllocator *register_displayallocator(DisplayState *ds, DisplayAllocator *da)
2711 {
2712 if(ds->allocator == &default_allocator) ds->allocator = da;
2713 return ds->allocator;
2714 }
2715
2716 /* dumb display */
2717
2718 static void dumb_display_init(void)
2719 {
2720 DisplayState *ds = qemu_mallocz(sizeof(DisplayState));
2721 ds->allocator = &default_allocator;
2722 ds->surface = qemu_create_displaysurface(ds, 640, 480);
2723 register_displaystate(ds);
2724 }
2725
2726 /***********************************************************/
2727 /* I/O handling */
2728
2729 typedef struct IOHandlerRecord {
2730 int fd;
2731 IOCanRWHandler *fd_read_poll;
2732 IOHandler *fd_read;
2733 IOHandler *fd_write;
2734 int deleted;
2735 void *opaque;
2736 /* temporary data */
2737 struct pollfd *ufd;
2738 struct IOHandlerRecord *next;
2739 } IOHandlerRecord;
2740
2741 static IOHandlerRecord *first_io_handler;
2742
2743 /* XXX: fd_read_poll should be suppressed, but an API change is
2744 necessary in the character devices to suppress fd_can_read(). */
2745 int qemu_set_fd_handler2(int fd,
2746 IOCanRWHandler *fd_read_poll,
2747 IOHandler *fd_read,
2748 IOHandler *fd_write,
2749 void *opaque)
2750 {
2751 IOHandlerRecord **pioh, *ioh;
2752
2753 if (!fd_read && !fd_write) {
2754 pioh = &first_io_handler;
2755 for(;;) {
2756 ioh = *pioh;
2757 if (ioh == NULL)
2758 break;
2759 if (ioh->fd == fd) {
2760 ioh->deleted = 1;
2761 break;
2762 }
2763 pioh = &ioh->next;
2764 }
2765 } else {
2766 for(ioh = first_io_handler; ioh != NULL; ioh = ioh->next) {
2767 if (ioh->fd == fd)
2768 goto found;
2769 }
2770 ioh = qemu_mallocz(sizeof(IOHandlerRecord));
2771 ioh->next = first_io_handler;
2772 first_io_handler = ioh;
2773 found:
2774 ioh->fd = fd;
2775 ioh->fd_read_poll = fd_read_poll;
2776 ioh->fd_read = fd_read;
2777 ioh->fd_write = fd_write;
2778 ioh->opaque = opaque;
2779 ioh->deleted = 0;
2780 }
2781 return 0;
2782 }
2783
2784 int qemu_set_fd_handler(int fd,
2785 IOHandler *fd_read,
2786 IOHandler *fd_write,
2787 void *opaque)
2788 {
2789 return qemu_set_fd_handler2(fd, NULL, fd_read, fd_write, opaque);
2790 }
2791
2792 #ifdef _WIN32
2793 /***********************************************************/
2794 /* Polling handling */
2795
2796 typedef struct PollingEntry {
2797 PollingFunc *func;
2798 void *opaque;
2799 struct PollingEntry *next;
2800 } PollingEntry;
2801
2802 static PollingEntry *first_polling_entry;
2803
2804 int qemu_add_polling_cb(PollingFunc *func, void *opaque)
2805 {
2806 PollingEntry **ppe, *pe;
2807 pe = qemu_mallocz(sizeof(PollingEntry));
2808 pe->func = func;
2809 pe->opaque = opaque;
2810 for(ppe = &first_polling_entry; *ppe != NULL; ppe = &(*ppe)->next);
2811 *ppe = pe;
2812 return 0;
2813 }
2814
2815 void qemu_del_polling_cb(PollingFunc *func, void *opaque)
2816 {
2817 PollingEntry **ppe, *pe;
2818 for(ppe = &first_polling_entry; *ppe != NULL; ppe = &(*ppe)->next) {
2819 pe = *ppe;
2820 if (pe->func == func && pe->opaque == opaque) {
2821 *ppe = pe->next;
2822 qemu_free(pe);
2823 break;
2824 }
2825 }
2826 }
2827
2828 /***********************************************************/
2829 /* Wait objects support */
2830 typedef struct WaitObjects {
2831 int num;
2832 HANDLE events[MAXIMUM_WAIT_OBJECTS + 1];
2833 WaitObjectFunc *func[MAXIMUM_WAIT_OBJECTS + 1];
2834 void *opaque[MAXIMUM_WAIT_OBJECTS + 1];
2835 } WaitObjects;
2836
2837 static WaitObjects wait_objects = {0};
2838
2839 int qemu_add_wait_object(HANDLE handle, WaitObjectFunc *func, void *opaque)
2840 {
2841 WaitObjects *w = &wait_objects;
2842
2843 if (w->num >= MAXIMUM_WAIT_OBJECTS)
2844 return -1;
2845 w->events[w->num] = handle;
2846 w->func[w->num] = func;
2847 w->opaque[w->num] = opaque;
2848 w->num++;
2849 return 0;
2850 }
2851
2852 void qemu_del_wait_object(HANDLE handle, WaitObjectFunc *func, void *opaque)
2853 {
2854 int i, found;
2855 WaitObjects *w = &wait_objects;
2856
2857 found = 0;
2858 for (i = 0; i < w->num; i++) {
2859 if (w->events[i] == handle)
2860 found = 1;
2861 if (found) {
2862 w->events[i] = w->events[i + 1];
2863 w->func[i] = w->func[i + 1];
2864 w->opaque[i] = w->opaque[i + 1];
2865 }
2866 }
2867 if (found)
2868 w->num--;
2869 }
2870 #endif
2871
2872 /***********************************************************/
2873 /* ram save/restore */
2874
2875 static int ram_get_page(QEMUFile *f, uint8_t *buf, int len)
2876 {
2877 int v;
2878
2879 v = qemu_get_byte(f);
2880 switch(v) {
2881 case 0:
2882 if (qemu_get_buffer(f, buf, len) != len)
2883 return -EIO;
2884 break;
2885 case 1:
2886 v = qemu_get_byte(f);
2887 memset(buf, v, len);
2888 break;
2889 default:
2890 return -EINVAL;
2891 }
2892
2893 if (qemu_file_has_error(f))
2894 return -EIO;
2895
2896 return 0;
2897 }
2898
2899 static int ram_load_v1(QEMUFile *f, void *opaque)
2900 {
2901 int ret;
2902 ram_addr_t i;
2903
2904 if (qemu_get_be32(f) != last_ram_offset)
2905 return -EINVAL;
2906 for(i = 0; i < last_ram_offset; i+= TARGET_PAGE_SIZE) {
2907 ret = ram_get_page(f, qemu_get_ram_ptr(i), TARGET_PAGE_SIZE);
2908 if (ret)
2909 return ret;
2910 }
2911 return 0;
2912 }
2913
2914 #define BDRV_HASH_BLOCK_SIZE 1024
2915 #define IOBUF_SIZE 4096
2916 #define RAM_CBLOCK_MAGIC 0xfabe
2917
2918 typedef struct RamDecompressState {
2919 z_stream zstream;
2920 QEMUFile *f;
2921 uint8_t buf[IOBUF_SIZE];
2922 } RamDecompressState;
2923
2924 static int ram_decompress_open(RamDecompressState *s, QEMUFile *f)
2925 {
2926 int ret;
2927 memset(s, 0, sizeof(*s));
2928 s->f = f;
2929 ret = inflateInit(&s->zstream);
2930 if (ret != Z_OK)
2931 return -1;
2932 return 0;
2933 }
2934
2935 static int ram_decompress_buf(RamDecompressState *s, uint8_t *buf, int len)
2936 {
2937 int ret, clen;
2938
2939 s->zstream.avail_out = len;
2940 s->zstream.next_out = buf;
2941 while (s->zstream.avail_out > 0) {
2942 if (s->zstream.avail_in == 0) {
2943 if (qemu_get_be16(s->f) != RAM_CBLOCK_MAGIC)
2944 return -1;
2945 clen = qemu_get_be16(s->f);
2946 if (clen > IOBUF_SIZE)
2947 return -1;
2948 qemu_get_buffer(s->f, s->buf, clen);
2949 s->zstream.avail_in = clen;
2950 s->zstream.next_in = s->buf;
2951 }
2952 ret = inflate(&s->zstream, Z_PARTIAL_FLUSH);
2953 if (ret != Z_OK && ret != Z_STREAM_END) {
2954 return -1;
2955 }
2956 }
2957 return 0;
2958 }
2959
2960 static void ram_decompress_close(RamDecompressState *s)
2961 {
2962 inflateEnd(&s->zstream);
2963 }
2964
2965 #define RAM_SAVE_FLAG_FULL 0x01
2966 #define RAM_SAVE_FLAG_COMPRESS 0x02
2967 #define RAM_SAVE_FLAG_MEM_SIZE 0x04
2968 #define RAM_SAVE_FLAG_PAGE 0x08
2969 #define RAM_SAVE_FLAG_EOS 0x10
2970
2971 static int is_dup_page(uint8_t *page, uint8_t ch)
2972 {
2973 uint32_t val = ch << 24 | ch << 16 | ch << 8 | ch;
2974 uint32_t *array = (uint32_t *)page;
2975 int i;
2976
2977 for (i = 0; i < (TARGET_PAGE_SIZE / 4); i++) {
2978 if (array[i] != val)
2979 return 0;
2980 }
2981
2982 return 1;
2983 }
2984
2985 static int ram_save_block(QEMUFile *f)
2986 {
2987 static ram_addr_t current_addr = 0;
2988 ram_addr_t saved_addr = current_addr;
2989 ram_addr_t addr = 0;
2990 int found = 0;
2991
2992 while (addr < last_ram_offset) {
2993 if (cpu_physical_memory_get_dirty(current_addr, MIGRATION_DIRTY_FLAG)) {
2994 uint8_t *p;
2995
2996 cpu_physical_memory_reset_dirty(current_addr,
2997 current_addr + TARGET_PAGE_SIZE,
2998 MIGRATION_DIRTY_FLAG);
2999
3000 p = qemu_get_ram_ptr(current_addr);
3001
3002 if (is_dup_page(p, *p)) {
3003 qemu_put_be64(f, current_addr | RAM_SAVE_FLAG_COMPRESS);
3004 qemu_put_byte(f, *p);
3005 } else {
3006 qemu_put_be64(f, current_addr | RAM_SAVE_FLAG_PAGE);
3007 qemu_put_buffer(f, p, TARGET_PAGE_SIZE);
3008 }
3009
3010 found = 1;
3011 break;
3012 }
3013 addr += TARGET_PAGE_SIZE;
3014 current_addr = (saved_addr + addr) % last_ram_offset;
3015 }
3016
3017 return found;
3018 }
3019
3020 static uint64_t bytes_transferred = 0;
3021
3022 static ram_addr_t ram_save_remaining(void)
3023 {
3024 ram_addr_t addr;
3025 ram_addr_t count = 0;
3026
3027 for (addr = 0; addr < last_ram_offset; addr += TARGET_PAGE_SIZE) {
3028 if (cpu_physical_memory_get_dirty(addr, MIGRATION_DIRTY_FLAG))
3029 count++;
3030 }
3031
3032 return count;
3033 }
3034
3035 uint64_t ram_bytes_remaining(void)
3036 {
3037 return ram_save_remaining() * TARGET_PAGE_SIZE;
3038 }
3039
3040 uint64_t ram_bytes_transferred(void)
3041 {
3042 return bytes_transferred;
3043 }
3044
3045 uint64_t ram_bytes_total(void)
3046 {
3047 return last_ram_offset;
3048 }
3049
3050 static int ram_save_live(QEMUFile *f, int stage, void *opaque)
3051 {
3052 ram_addr_t addr;
3053 uint64_t bytes_transferred_last;
3054 double bwidth = 0;
3055 uint64_t expected_time = 0;
3056
3057 if (cpu_physical_sync_dirty_bitmap(0, TARGET_PHYS_ADDR_MAX) != 0) {
3058 qemu_file_set_error(f);
3059 return 0;
3060 }
3061
3062 if (stage == 1) {
3063 /* Make sure all dirty bits are set */
3064 for (addr = 0; addr < last_ram_offset; addr += TARGET_PAGE_SIZE) {
3065 if (!cpu_physical_memory_get_dirty(addr, MIGRATION_DIRTY_FLAG))
3066 cpu_physical_memory_set_dirty(addr);
3067 }
3068
3069 /* Enable dirty memory tracking */
3070 cpu_physical_memory_set_dirty_tracking(1);
3071
3072 qemu_put_be64(f, last_ram_offset | RAM_SAVE_FLAG_MEM_SIZE);
3073 }
3074
3075 bytes_transferred_last = bytes_transferred;
3076 bwidth = get_clock();
3077
3078 while (!qemu_file_rate_limit(f)) {
3079 int ret;
3080
3081 ret = ram_save_block(f);
3082 bytes_transferred += ret * TARGET_PAGE_SIZE;
3083 if (ret == 0) /* no more blocks */
3084 break;
3085 }
3086
3087 bwidth = get_clock() - bwidth;
3088 bwidth = (bytes_transferred - bytes_transferred_last) / bwidth;
3089
3090 /* if we haven't transferred anything this round, force expected_time to a
3091 * a very high value, but without crashing */
3092 if (bwidth == 0)
3093 bwidth = 0.000001;
3094
3095 /* try transferring iterative blocks of memory */
3096
3097 if (stage == 3) {
3098
3099 /* flush all remaining blocks regardless of rate limiting */
3100 while (ram_save_block(f) != 0) {
3101 bytes_transferred += TARGET_PAGE_SIZE;
3102 }
3103 cpu_physical_memory_set_dirty_tracking(0);
3104 }
3105
3106 qemu_put_be64(f, RAM_SAVE_FLAG_EOS);
3107
3108 expected_time = ram_save_remaining() * TARGET_PAGE_SIZE / bwidth;
3109
3110 return (stage == 2) && (expected_time <= migrate_max_downtime());
3111 }
3112
3113 static int ram_load_dead(QEMUFile *f, void *opaque)
3114 {
3115 RamDecompressState s1, *s = &s1;
3116 uint8_t buf[10];
3117 ram_addr_t i;
3118
3119 if (ram_decompress_open(s, f) < 0)
3120 return -EINVAL;
3121 for(i = 0; i < last_ram_offset; i+= BDRV_HASH_BLOCK_SIZE) {
3122 if (ram_decompress_buf(s, buf, 1) < 0) {
3123 fprintf(stderr, "Error while reading ram block header\n");
3124 goto error;
3125 }
3126 if (buf[0] == 0) {
3127 if (ram_decompress_buf(s, qemu_get_ram_ptr(i),
3128 BDRV_HASH_BLOCK_SIZE) < 0) {
3129 fprintf(stderr, "Error while reading ram block address=0x%08" PRIx64, (uint64_t)i);
3130 goto error;
3131 }
3132 } else {
3133 error:
3134 printf("Error block header\n");
3135 return -EINVAL;
3136 }
3137 }
3138 ram_decompress_close(s);
3139
3140 return 0;
3141 }
3142
3143 static int ram_load(QEMUFile *f, void *opaque, int version_id)
3144 {
3145 ram_addr_t addr;
3146 int flags;
3147
3148 if (version_id == 1)
3149 return ram_load_v1(f, opaque);
3150
3151 if (version_id == 2) {
3152 if (qemu_get_be32(f) != last_ram_offset)
3153 return -EINVAL;
3154 return ram_load_dead(f, opaque);
3155 }
3156
3157 if (version_id != 3)
3158 return -EINVAL;
3159
3160 do {
3161 addr = qemu_get_be64(f);
3162
3163 flags = addr & ~TARGET_PAGE_MASK;
3164 addr &= TARGET_PAGE_MASK;
3165
3166 if (flags & RAM_SAVE_FLAG_MEM_SIZE) {
3167 if (addr != last_ram_offset)
3168 return -EINVAL;
3169 }
3170
3171 if (flags & RAM_SAVE_FLAG_FULL) {
3172 if (ram_load_dead(f, opaque) < 0)
3173 return -EINVAL;
3174 }
3175
3176 if (flags & RAM_SAVE_FLAG_COMPRESS) {
3177 uint8_t ch = qemu_get_byte(f);
3178 memset(qemu_get_ram_ptr(addr), ch, TARGET_PAGE_SIZE);
3179 #ifndef _WIN32
3180 if (ch == 0 &&
3181 (!kvm_enabled() || kvm_has_sync_mmu())) {
3182 madvise(qemu_get_ram_ptr(addr), TARGET_PAGE_SIZE, MADV_DONTNEED);
3183 }
3184 #endif
3185 } else if (flags & RAM_SAVE_FLAG_PAGE)
3186 qemu_get_buffer(f, qemu_get_ram_ptr(addr), TARGET_PAGE_SIZE);
3187 } while (!(flags & RAM_SAVE_FLAG_EOS));
3188
3189 return 0;
3190 }
3191
3192 void qemu_service_io(void)
3193 {
3194 qemu_notify_event();
3195 }
3196
3197 /***********************************************************/
3198 /* bottom halves (can be seen as timers which expire ASAP) */
3199
3200 struct QEMUBH {
3201 QEMUBHFunc *cb;
3202 void *opaque;
3203 int scheduled;
3204 int idle;
3205 int deleted;
3206 QEMUBH *next;
3207 };
3208
3209 static QEMUBH *first_bh = NULL;
3210
3211 QEMUBH *qemu_bh_new(QEMUBHFunc *cb, void *opaque)
3212 {
3213 QEMUBH *bh;
3214 bh = qemu_mallocz(sizeof(QEMUBH));
3215 bh->cb = cb;
3216 bh->opaque = opaque;
3217 bh->next = first_bh;
3218 first_bh = bh;
3219 return bh;
3220 }
3221
3222 int qemu_bh_poll(void)
3223 {
3224 QEMUBH *bh, **bhp;
3225 int ret;
3226
3227 ret = 0;
3228 for (bh = first_bh; bh; bh = bh->next) {
3229 if (!bh->deleted && bh->scheduled) {
3230 bh->scheduled = 0;
3231 if (!bh->idle)
3232 ret = 1;
3233 bh->idle = 0;
3234 bh->cb(bh->opaque);
3235 }
3236 }
3237
3238 /* remove deleted bhs */
3239 bhp = &first_bh;
3240 while (*bhp) {
3241 bh = *bhp;
3242 if (bh->deleted) {
3243 *bhp = bh->next;
3244 qemu_free(bh);
3245 } else
3246 bhp = &bh->next;
3247 }
3248
3249 return ret;
3250 }
3251
3252 void qemu_bh_schedule_idle(QEMUBH *bh)
3253 {
3254 if (bh->scheduled)
3255 return;
3256 bh->scheduled = 1;
3257 bh->idle = 1;
3258 }
3259
3260 void qemu_bh_schedule(QEMUBH *bh)
3261 {
3262 if (bh->scheduled)
3263 return;
3264 bh->scheduled = 1;
3265 bh->idle = 0;
3266 /* stop the currently executing CPU to execute the BH ASAP */
3267 qemu_notify_event();
3268 }
3269
3270 void qemu_bh_cancel(QEMUBH *bh)
3271 {
3272 bh->scheduled = 0;
3273 }
3274
3275 void qemu_bh_delete(QEMUBH *bh)
3276 {
3277 bh->scheduled = 0;
3278 bh->deleted = 1;
3279 }
3280
3281 static void qemu_bh_update_timeout(int *timeout)
3282 {
3283 QEMUBH *bh;
3284
3285 for (bh = first_bh; bh; bh = bh->next) {
3286 if (!bh->deleted && bh->scheduled) {
3287 if (bh->idle) {
3288 /* idle bottom halves will be polled at least
3289 * every 10ms */
3290 *timeout = MIN(10, *timeout);
3291 } else {
3292 /* non-idle bottom halves will be executed
3293 * immediately */
3294 *timeout = 0;
3295 break;
3296 }
3297 }
3298 }
3299 }
3300
3301 /***********************************************************/
3302 /* machine registration */
3303
3304 static QEMUMachine *first_machine = NULL;
3305 QEMUMachine *current_machine = NULL;
3306
3307 int qemu_register_machine(QEMUMachine *m)
3308 {
3309 QEMUMachine **pm;
3310 pm = &first_machine;
3311 while (*pm != NULL)
3312 pm = &(*pm)->next;
3313 m->next = NULL;
3314 *pm = m;
3315 return 0;
3316 }
3317
3318 static QEMUMachine *find_machine(const char *name)
3319 {
3320 QEMUMachine *m;
3321
3322 for(m = first_machine; m != NULL; m = m->next) {
3323 if (!strcmp(m->name, name))
3324 return m;
3325 if (m->alias && !strcmp(m->alias, name))
3326 return m;
3327 }
3328 return NULL;
3329 }
3330
3331 static QEMUMachine *find_default_machine(void)
3332 {
3333 QEMUMachine *m;
3334
3335 for(m = first_machine; m != NULL; m = m->next) {
3336 if (m->is_default) {
3337 return m;
3338 }
3339 }
3340 return NULL;
3341 }
3342
3343 /***********************************************************/
3344 /* main execution loop */
3345
3346 static void gui_update(void *opaque)
3347 {
3348 uint64_t interval = GUI_REFRESH_INTERVAL;
3349 DisplayState *ds = opaque;
3350 DisplayChangeListener *dcl = ds->listeners;
3351
3352 dpy_refresh(ds);
3353
3354 while (dcl != NULL) {
3355 if (dcl->gui_timer_interval &&
3356 dcl->gui_timer_interval < interval)
3357 interval = dcl->gui_timer_interval;
3358 dcl = dcl->next;
3359 }
3360 qemu_mod_timer(ds->gui_timer, interval + qemu_get_clock(rt_clock));
3361 }
3362
3363 static void nographic_update(void *opaque)
3364 {
3365 uint64_t interval = GUI_REFRESH_INTERVAL;
3366
3367 qemu_mod_timer(nographic_timer, interval + qemu_get_clock(rt_clock));
3368 }
3369
3370 struct vm_change_state_entry {
3371 VMChangeStateHandler *cb;
3372 void *opaque;
3373 LIST_ENTRY (vm_change_state_entry) entries;
3374 };
3375
3376 static LIST_HEAD(vm_change_state_head, vm_change_state_entry) vm_change_state_head;
3377
3378 VMChangeStateEntry *qemu_add_vm_change_state_handler(VMChangeStateHandler *cb,
3379 void *opaque)
3380 {
3381 VMChangeStateEntry *e;
3382
3383 e = qemu_mallocz(sizeof (*e));
3384
3385 e->cb = cb;
3386 e->opaque = opaque;
3387 LIST_INSERT_HEAD(&vm_change_state_head, e, entries);
3388 return e;
3389 }
3390
3391 void qemu_del_vm_change_state_handler(VMChangeStateEntry *e)
3392 {
3393 LIST_REMOVE (e, entries);
3394 qemu_free (e);
3395 }
3396
3397 static void vm_state_notify(int running, int reason)
3398 {
3399 VMChangeStateEntry *e;
3400
3401 for (e = vm_change_state_head.lh_first; e; e = e->entries.le_next) {
3402 e->cb(e->opaque, running, reason);
3403 }
3404 }
3405
3406 static void resume_all_vcpus(void);
3407 static void pause_all_vcpus(void);
3408
3409 void vm_start(void)
3410 {
3411 if (!vm_running) {
3412 cpu_enable_ticks();
3413 vm_running = 1;
3414 vm_state_notify(1, 0);
3415 qemu_rearm_alarm_timer(alarm_timer);
3416 resume_all_vcpus();
3417 }
3418 }
3419
3420 /* reset/shutdown handler */
3421
3422 typedef struct QEMUResetEntry {
3423 TAILQ_ENTRY(QEMUResetEntry) entry;
3424 QEMUResetHandler *func;
3425 void *opaque;
3426 } QEMUResetEntry;
3427
3428 static TAILQ_HEAD(reset_handlers, QEMUResetEntry) reset_handlers =
3429 TAILQ_HEAD_INITIALIZER(reset_handlers);
3430 static int reset_requested;
3431 static int shutdown_requested;
3432 static int powerdown_requested;
3433 static int debug_requested;
3434 static int vmstop_requested;
3435
3436 int qemu_shutdown_requested(void)
3437 {
3438 int r = shutdown_requested;
3439 shutdown_requested = 0;
3440 return r;
3441 }
3442
3443 int qemu_reset_requested(void)
3444 {
3445 int r = reset_requested;
3446 reset_requested = 0;
3447 return r;
3448 }
3449
3450 int qemu_powerdown_requested(void)
3451 {
3452 int r = powerdown_requested;
3453 powerdown_requested = 0;
3454 return r;
3455 }
3456
3457 static int qemu_debug_requested(void)
3458 {
3459 int r = debug_requested;
3460 debug_requested = 0;
3461 return r;
3462 }
3463
3464 static int qemu_vmstop_requested(void)
3465 {
3466 int r = vmstop_requested;
3467 vmstop_requested = 0;
3468 return r;
3469 }
3470
3471 static void do_vm_stop(int reason)
3472 {
3473 if (vm_running) {
3474 cpu_disable_ticks();
3475 vm_running = 0;
3476 pause_all_vcpus();
3477 vm_state_notify(0, reason);
3478 }
3479 }
3480
3481 void qemu_register_reset(QEMUResetHandler *func, void *opaque)
3482 {
3483 QEMUResetEntry *re = qemu_mallocz(sizeof(QEMUResetEntry));
3484
3485 re->func = func;
3486 re->opaque = opaque;
3487 TAILQ_INSERT_TAIL(&reset_handlers, re, entry);
3488 }
3489
3490 void qemu_unregister_reset(QEMUResetHandler *func, void *opaque)
3491 {
3492 QEMUResetEntry *re;
3493
3494 TAILQ_FOREACH(re, &reset_handlers, entry) {
3495 if (re->func == func && re->opaque == opaque) {
3496 TAILQ_REMOVE(&reset_handlers, re, entry);
3497 qemu_free(re);
3498 return;
3499 }
3500 }
3501 }
3502
3503 void qemu_system_reset(void)
3504 {
3505 QEMUResetEntry *re, *nre;
3506
3507 /* reset all devices */
3508 TAILQ_FOREACH_SAFE(re, &reset_handlers, entry, nre) {
3509 re->func(re->opaque);
3510 }
3511 }
3512
3513 void qemu_system_reset_request(void)
3514 {
3515 if (no_reboot) {
3516 shutdown_requested = 1;
3517 } else {
3518 reset_requested = 1;
3519 }
3520 qemu_notify_event();
3521 }
3522
3523 void qemu_system_shutdown_request(void)
3524 {
3525 shutdown_requested = 1;
3526 qemu_notify_event();
3527 }
3528
3529 void qemu_system_powerdown_request(void)
3530 {
3531 powerdown_requested = 1;
3532 qemu_notify_event();
3533 }
3534
3535 #ifdef CONFIG_IOTHREAD
3536 static void qemu_system_vmstop_request(int reason)
3537 {
3538 vmstop_requested = reason;
3539 qemu_notify_event();
3540 }
3541 #endif
3542
3543 #ifndef _WIN32
3544 static int io_thread_fd = -1;
3545
3546 static void qemu_event_increment(void)
3547 {
3548 static const char byte = 0;
3549
3550 if (io_thread_fd == -1)
3551 return;
3552
3553 write(io_thread_fd, &byte, sizeof(byte));
3554 }
3555
3556 static void qemu_event_read(void *opaque)
3557 {
3558 int fd = (unsigned long)opaque;
3559 ssize_t len;
3560
3561 /* Drain the notify pipe */
3562 do {
3563 char buffer[512];
3564 len = read(fd, buffer, sizeof(buffer));
3565 } while ((len == -1 && errno == EINTR) || len > 0);
3566 }
3567
3568 static int qemu_event_init(void)
3569 {
3570 int err;
3571 int fds[2];
3572
3573 err = pipe(fds);
3574 if (err == -1)
3575 return -errno;
3576
3577 err = fcntl_setfl(fds[0], O_NONBLOCK);
3578 if (err < 0)
3579 goto fail;
3580
3581 err = fcntl_setfl(fds[1], O_NONBLOCK);
3582 if (err < 0)
3583 goto fail;
3584
3585 qemu_set_fd_handler2(fds[0], NULL, qemu_event_read, NULL,
3586 (void *)(unsigned long)fds[0]);
3587
3588 io_thread_fd = fds[1];
3589 return 0;
3590
3591 fail:
3592 close(fds[0]);
3593 close(fds[1]);
3594 return err;
3595 }
3596 #else
3597 HANDLE qemu_event_handle;
3598
3599 static void dummy_event_handler(void *opaque)
3600 {
3601 }
3602
3603 static int qemu_event_init(void)
3604 {
3605 qemu_event_handle = CreateEvent(NULL, FALSE, FALSE, NULL);
3606 if (!qemu_event_handle) {
3607 perror("Failed CreateEvent");
3608 return -1;
3609 }
3610 qemu_add_wait_object(qemu_event_handle, dummy_event_handler, NULL);
3611 return 0;
3612 }
3613
3614 static void qemu_event_increment(void)
3615 {
3616 SetEvent(qemu_event_handle);
3617 }
3618 #endif
3619
3620 static int cpu_can_run(CPUState *env)
3621 {
3622 if (env->stop)
3623 return 0;
3624 if (env->stopped)
3625 return 0;
3626 return 1;
3627 }
3628
3629 #ifndef CONFIG_IOTHREAD
3630 static int qemu_init_main_loop(void)
3631 {
3632 return qemu_event_init();
3633 }
3634
3635 void qemu_init_vcpu(void *_env)
3636 {
3637 CPUState *env = _env;
3638
3639 if (kvm_enabled())
3640 kvm_init_vcpu(env);
3641 env->nr_cores = smp_cores;
3642 env->nr_threads = smp_threads;
3643 return;
3644 }
3645
3646 int qemu_cpu_self(void *env)
3647 {
3648 return 1;
3649 }
3650
3651 static void resume_all_vcpus(void)
3652 {
3653 }
3654
3655 static void pause_all_vcpus(void)
3656 {
3657 }
3658
3659 void qemu_cpu_kick(void *env)
3660 {
3661 return;
3662 }
3663
3664 void qemu_notify_event(void)
3665 {
3666 CPUState *env = cpu_single_env;
3667
3668 if (env) {
3669 cpu_exit(env);
3670 }
3671 }
3672
3673 #define qemu_mutex_lock_iothread() do { } while (0)
3674 #define qemu_mutex_unlock_iothread() do { } while (0)
3675
3676 void vm_stop(int reason)
3677 {
3678 do_vm_stop(reason);
3679 }
3680
3681 #else /* CONFIG_IOTHREAD */
3682
3683 #include "qemu-thread.h"
3684
3685 QemuMutex qemu_global_mutex;
3686 static QemuMutex qemu_fair_mutex;
3687
3688 static QemuThread io_thread;
3689
3690 static QemuThread *tcg_cpu_thread;
3691 static QemuCond *tcg_halt_cond;
3692
3693 static int qemu_system_ready;
3694 /* cpu creation */
3695 static QemuCond qemu_cpu_cond;
3696 /* system init */
3697 static QemuCond qemu_system_cond;
3698 static QemuCond qemu_pause_cond;
3699
3700 static void block_io_signals(void);
3701 static void unblock_io_signals(void);
3702 static int tcg_has_work(void);
3703
3704 static int qemu_init_main_loop(void)
3705 {
3706 int ret;
3707
3708 ret = qemu_event_init();
3709 if (ret)
3710 return ret;
3711
3712 qemu_cond_init(&qemu_pause_cond);
3713 qemu_mutex_init(&qemu_fair_mutex);
3714 qemu_mutex_init(&qemu_global_mutex);
3715 qemu_mutex_lock(&qemu_global_mutex);
3716
3717 unblock_io_signals();
3718 qemu_thread_self(&io_thread);
3719
3720 return 0;
3721 }
3722
3723 static void qemu_wait_io_event(CPUState *env)
3724 {
3725 while (!tcg_has_work())
3726 qemu_cond_timedwait(env->halt_cond, &qemu_global_mutex, 1000);
3727
3728 qemu_mutex_unlock(&qemu_global_mutex);
3729
3730 /*
3731 * Users of qemu_global_mutex can be starved, having no chance
3732 * to acquire it since this path will get to it first.
3733 * So use another lock to provide fairness.
3734 */
3735 qemu_mutex_lock(&qemu_fair_mutex);
3736 qemu_mutex_unlock(&qemu_fair_mutex);
3737
3738 qemu_mutex_lock(&qemu_global_mutex);
3739 if (env->stop) {
3740 env->stop = 0;
3741 env->stopped = 1;
3742 qemu_cond_signal(&qemu_pause_cond);
3743 }
3744 }
3745
3746 static int qemu_cpu_exec(CPUState *env);
3747
3748 static void *kvm_cpu_thread_fn(void *arg)
3749 {
3750 CPUState *env = arg;
3751
3752 block_io_signals();
3753 qemu_thread_self(env->thread);
3754
3755 /* signal CPU creation */
3756 qemu_mutex_lock(&qemu_global_mutex);
3757 env->created = 1;
3758 qemu_cond_signal(&qemu_cpu_cond);
3759
3760 /* and wait for machine initialization */
3761 while (!qemu_system_ready)
3762 qemu_cond_timedwait(&qemu_system_cond, &qemu_global_mutex, 100);
3763
3764 while (1) {
3765 if (cpu_can_run(env))
3766 qemu_cpu_exec(env);
3767 qemu_wait_io_event(env);
3768 }
3769
3770 return NULL;
3771 }
3772
3773 static void tcg_cpu_exec(void);
3774
3775 static void *tcg_cpu_thread_fn(void *arg)
3776 {
3777 CPUState *env = arg;
3778
3779 block_io_signals();
3780 qemu_thread_self(env->thread);
3781
3782 /* signal CPU creation */
3783 qemu_mutex_lock(&qemu_global_mutex);
3784 for (env = first_cpu; env != NULL; env = env->next_cpu)
3785 env->created = 1;
3786 qemu_cond_signal(&qemu_cpu_cond);
3787
3788 /* and wait for machine initialization */
3789 while (!qemu_system_ready)
3790 qemu_cond_timedwait(&qemu_system_cond, &qemu_global_mutex, 100);
3791
3792 while (1) {
3793 tcg_cpu_exec();
3794 qemu_wait_io_event(cur_cpu);
3795 }
3796
3797 return NULL;
3798 }
3799
3800 void qemu_cpu_kick(void *_env)
3801 {
3802 CPUState *env = _env;
3803 qemu_cond_broadcast(env->halt_cond);
3804 if (kvm_enabled())
3805 qemu_thread_signal(env->thread, SIGUSR1);
3806 }
3807
3808 int qemu_cpu_self(void *env)
3809 {
3810 return (cpu_single_env != NULL);
3811 }
3812
3813 static void cpu_signal(int sig)
3814 {
3815 if (cpu_single_env)
3816 cpu_exit(cpu_single_env);
3817 }
3818
3819 static void block_io_signals(void)
3820 {
3821 sigset_t set;
3822 struct sigaction sigact;
3823
3824 sigemptyset(&set);
3825 sigaddset(&set, SIGUSR2);
3826 sigaddset(&set, SIGIO);
3827 sigaddset(&set, SIGALRM);
3828 pthread_sigmask(SIG_BLOCK, &set, NULL);
3829
3830 sigemptyset(&set);
3831 sigaddset(&set, SIGUSR1);
3832 pthread_sigmask(SIG_UNBLOCK, &set, NULL);
3833
3834 memset(&sigact, 0, sizeof(sigact));
3835 sigact.sa_handler = cpu_signal;
3836 sigaction(SIGUSR1, &sigact, NULL);
3837 }
3838
3839 static void unblock_io_signals(void)
3840 {
3841 sigset_t set;
3842
3843 sigemptyset(&set);
3844 sigaddset(&set, SIGUSR2);
3845 sigaddset(&set, SIGIO);
3846 sigaddset(&set, SIGALRM);
3847 pthread_sigmask(SIG_UNBLOCK, &set, NULL);
3848
3849 sigemptyset(&set);
3850 sigaddset(&set, SIGUSR1);
3851 pthread_sigmask(SIG_BLOCK, &set, NULL);
3852 }
3853
3854 static void qemu_signal_lock(unsigned int msecs)
3855 {
3856 qemu_mutex_lock(&qemu_fair_mutex);
3857
3858 while (qemu_mutex_trylock(&qemu_global_mutex)) {
3859 qemu_thread_signal(tcg_cpu_thread, SIGUSR1);
3860 if (!qemu_mutex_timedlock(&qemu_global_mutex, msecs))
3861 break;
3862 }
3863 qemu_mutex_unlock(&qemu_fair_mutex);
3864 }
3865
3866 static void qemu_mutex_lock_iothread(void)
3867 {
3868 if (kvm_enabled()) {
3869 qemu_mutex_lock(&qemu_fair_mutex);
3870 qemu_mutex_lock(&qemu_global_mutex);
3871 qemu_mutex_unlock(&qemu_fair_mutex);
3872 } else
3873 qemu_signal_lock(100);
3874 }
3875
3876 static void qemu_mutex_unlock_iothread(void)
3877 {
3878 qemu_mutex_unlock(&qemu_global_mutex);
3879 }
3880
3881 static int all_vcpus_paused(void)
3882 {
3883 CPUState *penv = first_cpu;
3884
3885 while (penv) {
3886 if (!penv->stopped)
3887 return 0;
3888 penv = (CPUState *)penv->next_cpu;
3889 }
3890
3891 return 1;
3892 }
3893
3894 static void pause_all_vcpus(void)
3895 {
3896 CPUState *penv = first_cpu;
3897
3898 while (penv) {
3899 penv->stop = 1;
3900 qemu_thread_signal(penv->thread, SIGUSR1);
3901 qemu_cpu_kick(penv);
3902 penv = (CPUState *)penv->next_cpu;
3903 }
3904
3905 while (!all_vcpus_paused()) {
3906 qemu_cond_timedwait(&qemu_pause_cond, &qemu_global_mutex, 100);
3907 penv = first_cpu;
3908 while (penv) {
3909 qemu_thread_signal(penv->thread, SIGUSR1);
3910 penv = (CPUState *)penv->next_cpu;
3911 }
3912 }
3913 }
3914
3915 static void resume_all_vcpus(void)
3916 {
3917 CPUState *penv = first_cpu;
3918
3919 while (penv) {
3920 penv->stop = 0;
3921 penv->stopped = 0;
3922 qemu_thread_signal(penv->thread, SIGUSR1);
3923 qemu_cpu_kick(penv);
3924 penv = (CPUState *)penv->next_cpu;
3925 }
3926 }
3927
3928 static void tcg_init_vcpu(void *_env)
3929 {
3930 CPUState *env = _env;
3931 /* share a single thread for all cpus with TCG */
3932 if (!tcg_cpu_thread) {
3933 env->thread = qemu_mallocz(sizeof(QemuThread));
3934 env->halt_cond = qemu_mallocz(sizeof(QemuCond));
3935 qemu_cond_init(env->halt_cond);
3936 qemu_thread_create(env->thread, tcg_cpu_thread_fn, env);
3937 while (env->created == 0)
3938 qemu_cond_timedwait(&qemu_cpu_cond, &qemu_global_mutex, 100);
3939 tcg_cpu_thread = env->thread;
3940 tcg_halt_cond = env->halt_cond;
3941 } else {
3942 env->thread = tcg_cpu_thread;
3943 env->halt_cond = tcg_halt_cond;
3944 }
3945 }
3946
3947 static void kvm_start_vcpu(CPUState *env)
3948 {
3949 kvm_init_vcpu(env);
3950 env->thread = qemu_mallocz(sizeof(QemuThread));
3951 env->halt_cond = qemu_mallocz(sizeof(QemuCond));
3952 qemu_cond_init(env->halt_cond);
3953 qemu_thread_create(env->thread, kvm_cpu_thread_fn, env);
3954 while (env->created == 0)
3955 qemu_cond_timedwait(&qemu_cpu_cond, &qemu_global_mutex, 100);
3956 }
3957
3958 void qemu_init_vcpu(void *_env)
3959 {
3960 CPUState *env = _env;
3961
3962 if (kvm_enabled())
3963 kvm_start_vcpu(env);
3964 else
3965 tcg_init_vcpu(env);
3966 env->nr_cores = smp_cores;
3967 env->nr_threads = smp_threads;
3968 }
3969
3970 void qemu_notify_event(void)
3971 {
3972 qemu_event_increment();
3973 }
3974
3975 void vm_stop(int reason)
3976 {
3977 QemuThread me;
3978 qemu_thread_self(&me);
3979
3980 if (!qemu_thread_equal(&me, &io_thread)) {
3981 qemu_system_vmstop_request(reason);
3982 /*
3983 * FIXME: should not return to device code in case
3984 * vm_stop() has been requested.
3985 */
3986 if (cpu_single_env) {
3987 cpu_exit(cpu_single_env);
3988 cpu_single_env->stop = 1;
3989 }
3990 return;
3991 }
3992 do_vm_stop(reason);
3993 }
3994
3995 #endif
3996
3997
3998 #ifdef _WIN32
3999 static void host_main_loop_wait(int *timeout)
4000 {
4001 int ret, ret2, i;
4002 PollingEntry *pe;
4003
4004
4005 /* XXX: need to suppress polling by better using win32 events */
4006 ret = 0;
4007 for(pe = first_polling_entry; pe != NULL; pe = pe->next) {
4008 ret |= pe->func(pe->opaque);
4009 }
4010 if (ret == 0) {
4011 int err;
4012 WaitObjects *w = &wait_objects;
4013
4014 ret = WaitForMultipleObjects(w->num, w->events, FALSE, *timeout);
4015 if (WAIT_OBJECT_0 + 0 <= ret && ret <= WAIT_OBJECT_0 + w->num - 1) {
4016 if (w->func[ret - WAIT_OBJECT_0])
4017 w->func[ret - WAIT_OBJECT_0](w->opaque[ret - WAIT_OBJECT_0]);
4018
4019 /* Check for additional signaled events */
4020 for(i = (ret - WAIT_OBJECT_0 + 1); i < w->num; i++) {
4021
4022 /* Check if event is signaled */
4023 ret2 = WaitForSingleObject(w->events[i], 0);
4024 if(ret2 == WAIT_OBJECT_0) {
4025 if (w->func[i])
4026 w->func[i](w->opaque[i]);
4027 } else if (ret2 == WAIT_TIMEOUT) {
4028 } else {
4029 err = GetLastError();
4030 fprintf(stderr, "WaitForSingleObject error %d %d\n", i, err);
4031 }
4032 }
4033 } else if (ret == WAIT_TIMEOUT) {
4034 } else {
4035 err = GetLastError();
4036 fprintf(stderr, "WaitForMultipleObjects error %d %d\n", ret, err);
4037 }
4038 }
4039
4040 *timeout = 0;
4041 }
4042 #else
4043 static void host_main_loop_wait(int *timeout)
4044 {
4045 }
4046 #endif
4047
4048 void main_loop_wait(int timeout)
4049 {
4050 IOHandlerRecord *ioh;
4051 fd_set rfds, wfds, xfds;
4052 int ret, nfds;
4053 struct timeval tv;
4054
4055 qemu_bh_update_timeout(&timeout);
4056
4057 host_main_loop_wait(&timeout);
4058
4059 /* poll any events */
4060 /* XXX: separate device handlers from system ones */
4061 nfds = -1;
4062 FD_ZERO(&rfds);
4063 FD_ZERO(&wfds);
4064 FD_ZERO(&xfds);
4065 for(ioh = first_io_handler; ioh != NULL; ioh = ioh->next) {
4066 if (ioh->deleted)
4067 continue;
4068 if (ioh->fd_read &&
4069 (!ioh->fd_read_poll ||
4070 ioh->fd_read_poll(ioh->opaque) != 0)) {
4071 FD_SET(ioh->fd, &rfds);
4072 if (ioh->fd > nfds)
4073 nfds = ioh->fd;
4074 }
4075 if (ioh->fd_write) {
4076 FD_SET(ioh->fd, &wfds);
4077 if (ioh->fd > nfds)
4078 nfds = ioh->fd;
4079 }
4080 }
4081
4082 tv.tv_sec = timeout / 1000;
4083 tv.tv_usec = (timeout % 1000) * 1000;
4084
4085 slirp_select_fill(&nfds, &rfds, &wfds, &xfds);
4086
4087 qemu_mutex_unlock_iothread();
4088 ret = select(nfds + 1, &rfds, &wfds, &xfds, &tv);
4089 qemu_mutex_lock_iothread();
4090 if (ret > 0) {
4091 IOHandlerRecord **pioh;
4092
4093 for(ioh = first_io_handler; ioh != NULL; ioh = ioh->next) {
4094 if (!ioh->deleted && ioh->fd_read && FD_ISSET(ioh->fd, &rfds)) {
4095 ioh->fd_read(ioh->opaque);
4096 }
4097 if (!ioh->deleted && ioh->fd_write && FD_ISSET(ioh->fd, &wfds)) {
4098 ioh->fd_write(ioh->opaque);
4099 }
4100 }
4101
4102 /* remove deleted IO handlers */
4103 pioh = &first_io_handler;
4104 while (*pioh) {
4105 ioh = *pioh;
4106 if (ioh->deleted) {
4107 *pioh = ioh->next;
4108 qemu_free(ioh);
4109 } else
4110 pioh = &ioh->next;
4111 }
4112 }
4113
4114 slirp_select_poll(&rfds, &wfds, &xfds, (ret < 0));
4115
4116 /* rearm timer, if not periodic */
4117 if (alarm_timer->flags & ALARM_FLAG_EXPIRED) {
4118 alarm_timer->flags &= ~ALARM_FLAG_EXPIRED;
4119 qemu_rearm_alarm_timer(alarm_timer);
4120 }
4121
4122 /* vm time timers */
4123 if (vm_running) {
4124 if (!cur_cpu || likely(!(cur_cpu->singlestep_enabled & SSTEP_NOTIMER)))
4125 qemu_run_timers(&active_timers[QEMU_TIMER_VIRTUAL],
4126 qemu_get_clock(vm_clock));
4127 }
4128
4129 /* real time timers */
4130 qemu_run_timers(&active_timers[QEMU_TIMER_REALTIME],
4131 qemu_get_clock(rt_clock));
4132
4133 /* Check bottom-halves last in case any of the earlier events triggered
4134 them. */
4135 qemu_bh_poll();
4136
4137 }
4138
4139 static int qemu_cpu_exec(CPUState *env)
4140 {
4141 int ret;
4142 #ifdef CONFIG_PROFILER
4143 int64_t ti;
4144 #endif
4145
4146 #ifdef CONFIG_PROFILER
4147 ti = profile_getclock();
4148 #endif
4149 if (use_icount) {
4150 int64_t count;
4151 int decr;
4152 qemu_icount -= (env->icount_decr.u16.low + env->icount_extra);
4153 env->icount_decr.u16.low = 0;
4154 env->icount_extra = 0;
4155 count = qemu_next_deadline();
4156 count = (count + (1 << icount_time_shift) - 1)
4157 >> icount_time_shift;
4158 qemu_icount += count;
4159 decr = (count > 0xffff) ? 0xffff : count;
4160 count -= decr;
4161 env->icount_decr.u16.low = decr;
4162 env->icount_extra = count;
4163 }
4164 ret = cpu_exec(env);
4165 #ifdef CONFIG_PROFILER
4166 qemu_time += profile_getclock() - ti;
4167 #endif
4168 if (use_icount) {
4169 /* Fold pending instructions back into the
4170 instruction counter, and clear the interrupt flag. */
4171 qemu_icount -= (env->icount_decr.u16.low
4172 + env->icount_extra);
4173 env->icount_decr.u32 = 0;
4174 env->icount_extra = 0;
4175 }
4176 return ret;
4177 }
4178
4179 static void tcg_cpu_exec(void)
4180 {
4181 int ret = 0;
4182
4183 if (next_cpu == NULL)
4184 next_cpu = first_cpu;
4185 for (; next_cpu != NULL; next_cpu = next_cpu->next_cpu) {
4186 CPUState *env = cur_cpu = next_cpu;
4187
4188 if (!vm_running)
4189 break;
4190 if (timer_alarm_pending) {
4191 timer_alarm_pending = 0;
4192 break;
4193 }
4194 if (cpu_can_run(env))
4195 ret = qemu_cpu_exec(env);
4196 if (ret == EXCP_DEBUG) {
4197 gdb_set_stop_cpu(env);
4198 debug_requested = 1;
4199 break;
4200 }
4201 }
4202 }
4203
4204 static int cpu_has_work(CPUState *env)
4205 {
4206 if (env->stop)
4207 return 1;
4208 if (env->stopped)
4209 return 0;
4210 if (!env->halted)
4211 return 1;
4212 if (qemu_cpu_has_work(env))
4213 return 1;
4214 return 0;
4215 }
4216
4217 static int tcg_has_work(void)
4218 {
4219 CPUState *env;
4220
4221 for (env = first_cpu; env != NULL; env = env->next_cpu)
4222 if (cpu_has_work(env))
4223 return 1;
4224 return 0;
4225 }
4226
4227 static int qemu_calculate_timeout(void)
4228 {
4229 #ifndef CONFIG_IOTHREAD
4230 int timeout;
4231
4232 if (!vm_running)
4233 timeout = 5000;
4234 else if (tcg_has_work())
4235 timeout = 0;
4236 else if (!use_icount)
4237 timeout = 5000;
4238 else {
4239 /* XXX: use timeout computed from timers */
4240 int64_t add;
4241 int64_t delta;
4242 /* Advance virtual time to the next event. */
4243 if (use_icount == 1) {
4244 /* When not using an adaptive execution frequency
4245 we tend to get badly out of sync with real time,
4246 so just delay for a reasonable amount of time. */
4247 delta = 0;
4248 } else {
4249 delta = cpu_get_icount() - cpu_get_clock();
4250 }
4251 if (delta > 0) {
4252 /* If virtual time is ahead of real time then just
4253 wait for IO. */
4254 timeout = (delta / 1000000) + 1;
4255 } else {
4256 /* Wait for either IO to occur or the next
4257 timer event. */
4258 add = qemu_next_deadline();
4259 /* We advance the timer before checking for IO.
4260 Limit the amount we advance so that early IO
4261 activity won't get the guest too far ahead. */
4262 if (add > 10000000)
4263 add = 10000000;
4264 delta += add;
4265 add = (add + (1 << icount_time_shift) - 1)
4266 >> icount_time_shift;
4267 qemu_icount += add;
4268 timeout = delta / 1000000;
4269 if (timeout < 0)
4270 timeout = 0;
4271 }
4272 }
4273
4274 return timeout;
4275 #else /* CONFIG_IOTHREAD */
4276 return 1000;
4277 #endif
4278 }
4279
4280 static int vm_can_run(void)
4281 {
4282 if (powerdown_requested)
4283 return 0;
4284 if (reset_requested)
4285 return 0;
4286 if (shutdown_requested)
4287 return 0;
4288 if (debug_requested)
4289 return 0;
4290 return 1;
4291 }
4292
4293 qemu_irq qemu_system_powerdown;
4294
4295 static void main_loop(void)
4296 {
4297 int r;
4298
4299 #ifdef CONFIG_IOTHREAD
4300 qemu_system_ready = 1;
4301 qemu_cond_broadcast(&qemu_system_cond);
4302 #endif
4303
4304 for (;;) {
4305 do {
4306 #ifdef CONFIG_PROFILER
4307 int64_t ti;
4308 #endif
4309 #ifndef CONFIG_IOTHREAD
4310 tcg_cpu_exec();
4311 #endif
4312 #ifdef CONFIG_PROFILER
4313 ti = profile_getclock();
4314 #endif
4315 main_loop_wait(qemu_calculate_timeout());
4316 #ifdef CONFIG_PROFILER
4317 dev_time += profile_getclock() - ti;
4318 #endif
4319 } while (vm_can_run());
4320
4321 if (qemu_debug_requested())
4322 vm_stop(EXCP_DEBUG);
4323 if (qemu_shutdown_requested()) {
4324 if (no_shutdown) {
4325 vm_stop(0);
4326 no_shutdown = 0;
4327 } else
4328 break;
4329 }
4330 if (qemu_reset_requested()) {
4331 pause_all_vcpus();
4332 qemu_system_reset();
4333 resume_all_vcpus();
4334 }
4335 if (qemu_powerdown_requested()) {
4336 qemu_irq_raise(qemu_system_powerdown);
4337 }
4338 if ((r = qemu_vmstop_requested()))
4339 vm_stop(r);
4340 }
4341 pause_all_vcpus();
4342 }
4343
4344 static void version(void)
4345 {
4346 printf("QEMU PC emulator version " QEMU_VERSION QEMU_PKGVERSION ", Copyright (c) 2003-2008 Fabrice Bellard\n");
4347 }
4348
4349 static void help(int exitcode)
4350 {
4351 version();
4352 printf("usage: %s [options] [disk_image]\n"
4353 "\n"
4354 "'disk_image' is a raw hard image image for IDE hard disk 0\n"
4355 "\n"
4356 #define DEF(option, opt_arg, opt_enum, opt_help) \
4357 opt_help
4358 #define DEFHEADING(text) stringify(text) "\n"
4359 #include "qemu-options.h"
4360 #undef DEF
4361 #undef DEFHEADING
4362 #undef GEN_DOCS
4363 "\n"
4364 "During emulation, the following keys are useful:\n"
4365 "ctrl-alt-f toggle full screen\n"
4366 "ctrl-alt-n switch to virtual console 'n'\n"
4367 "ctrl-alt toggle mouse and keyboard grab\n"
4368 "\n"
4369 "When using -nographic, press 'ctrl-a h' to get some help.\n"
4370 ,
4371 "qemu",
4372 DEFAULT_RAM_SIZE,
4373 #ifndef _WIN32
4374 DEFAULT_NETWORK_SCRIPT,
4375 DEFAULT_NETWORK_DOWN_SCRIPT,
4376 #endif
4377 DEFAULT_GDBSTUB_PORT,
4378 "/tmp/qemu.log");
4379 exit(exitcode);
4380 }
4381
4382 #define HAS_ARG 0x0001
4383
4384 enum {
4385 #define DEF(option, opt_arg, opt_enum, opt_help) \
4386 opt_enum,
4387 #define DEFHEADING(text)
4388 #include "qemu-options.h"
4389 #undef DEF
4390 #undef DEFHEADING
4391 #undef GEN_DOCS
4392 };
4393
4394 typedef struct QEMUOption {
4395 const char *name;
4396 int flags;
4397 int index;
4398 } QEMUOption;
4399
4400 static const QEMUOption qemu_options[] = {
4401 { "h", 0, QEMU_OPTION_h },
4402 #define DEF(option, opt_arg, opt_enum, opt_help) \
4403 { option, opt_arg, opt_enum },
4404 #define DEFHEADING(text)
4405 #include "qemu-options.h"
4406 #undef DEF
4407 #undef DEFHEADING
4408 #undef GEN_DOCS
4409 { NULL },
4410 };
4411
4412 #ifdef HAS_AUDIO
4413 struct soundhw soundhw[] = {
4414 #ifdef HAS_AUDIO_CHOICE
4415 #if defined(TARGET_I386) || defined(TARGET_MIPS)
4416 {
4417 "pcspk",
4418 "PC speaker",
4419 0,
4420 1,
4421 { .init_isa = pcspk_audio_init }
4422 },
4423 #endif
4424
4425 #ifdef CONFIG_SB16
4426 {
4427 "sb16",
4428 "Creative Sound Blaster 16",
4429 0,
4430 1,
4431 { .init_isa = SB16_init }
4432 },
4433 #endif
4434
4435 #ifdef CONFIG_CS4231A
4436 {
4437 "cs4231a",
4438 "CS4231A",
4439 0,
4440 1,
4441 { .init_isa = cs4231a_init }
4442 },
4443 #endif
4444
4445 #ifdef CONFIG_ADLIB
4446 {
4447 "adlib",
4448 #ifdef HAS_YMF262
4449 "Yamaha YMF262 (OPL3)",
4450 #else
4451 "Yamaha YM3812 (OPL2)",
4452 #endif
4453 0,
4454 1,
4455 { .init_isa = Adlib_init }
4456 },
4457 #endif
4458
4459 #ifdef CONFIG_GUS
4460 {
4461 "gus",
4462 "Gravis Ultrasound GF1",
4463 0,
4464 1,
4465 { .init_isa = GUS_init }
4466 },
4467 #endif
4468
4469 #ifdef CONFIG_AC97
4470 {
4471 "ac97",
4472 "Intel 82801AA AC97 Audio",
4473 0,
4474 0,
4475 { .init_pci = ac97_init }
4476 },
4477 #endif
4478
4479 #ifdef CONFIG_ES1370
4480 {
4481 "es1370",
4482 "ENSONIQ AudioPCI ES1370",
4483 0,
4484 0,
4485 { .init_pci = es1370_init }
4486 },
4487 #endif
4488
4489 #endif /* HAS_AUDIO_CHOICE */
4490
4491 { NULL, NULL, 0, 0, { NULL } }
4492 };
4493
4494 static void select_soundhw (const char *optarg)
4495 {
4496 struct soundhw *c;
4497
4498 if (*optarg == '?') {
4499 show_valid_cards:
4500
4501 printf ("Valid sound card names (comma separated):\n");
4502 for (c = soundhw; c->name; ++c) {
4503 printf ("%-11s %s\n", c->name, c->descr);
4504 }
4505 printf ("\n-soundhw all will enable all of the above\n");
4506 exit (*optarg != '?');
4507 }
4508 else {
4509 size_t l;
4510 const char *p;
4511 char *e;
4512 int bad_card = 0;
4513
4514 if (!strcmp (optarg, "all")) {
4515 for (c = soundhw; c->name; ++c) {
4516 c->enabled = 1;
4517 }
4518 return;
4519 }
4520
4521 p = optarg;
4522 while (*p) {
4523 e = strchr (p, ',');
4524 l = !e ? strlen (p) : (size_t) (e - p);
4525
4526 for (c = soundhw; c->name; ++c) {
4527 if (!strncmp (c->name, p, l)) {
4528 c->enabled = 1;
4529 break;
4530 }
4531 }
4532
4533 if (!c->name) {
4534 if (l > 80) {
4535 fprintf (stderr,
4536 "Unknown sound card name (too big to show)\n");
4537 }
4538 else {
4539 fprintf (stderr, "Unknown sound card name `%.*s'\n",
4540 (int) l, p);
4541 }
4542 bad_card = 1;
4543 }
4544 p += l + (e != NULL);
4545 }
4546
4547 if (bad_card)
4548 goto show_valid_cards;
4549 }
4550 }
4551 #endif
4552
4553 static void select_vgahw (const char *p)
4554 {
4555 const char *opts;
4556
4557 vga_interface_type = VGA_NONE;
4558 if (strstart(p, "std", &opts)) {
4559 vga_interface_type = VGA_STD;
4560 } else if (strstart(p, "cirrus", &opts)) {
4561 vga_interface_type = VGA_CIRRUS;
4562 } else if (strstart(p, "vmware", &opts)) {
4563 vga_interface_type = VGA_VMWARE;
4564 } else if (strstart(p, "xenfb", &opts)) {
4565 vga_interface_type = VGA_XENFB;
4566 } else if (!strstart(p, "none", &opts)) {
4567 invalid_vga:
4568 fprintf(stderr, "Unknown vga type: %s\n", p);
4569 exit(1);
4570 }
4571 while (*opts) {
4572 const char *nextopt;
4573
4574 if (strstart(opts, ",retrace=", &nextopt)) {
4575 opts = nextopt;
4576 if (strstart(opts, "dumb", &nextopt))
4577 vga_retrace_method = VGA_RETRACE_DUMB;
4578 else if (strstart(opts, "precise", &nextopt))
4579 vga_retrace_method = VGA_RETRACE_PRECISE;
4580 else goto invalid_vga;
4581 } else goto invalid_vga;
4582 opts = nextopt;
4583 }
4584 }
4585
4586 #ifdef TARGET_I386
4587 static int balloon_parse(const char *arg)
4588 {
4589 char buf[128];
4590 const char *p;
4591
4592 if (!strcmp(arg, "none")) {
4593 virtio_balloon = 0;
4594 } else if (!strncmp(arg, "virtio", 6)) {
4595 virtio_balloon = 1;
4596 if (arg[6] == ',') {
4597 p = arg + 7;
4598 if (get_param_value(buf, sizeof(buf), "addr", p)) {
4599 virtio_balloon_devaddr = strdup(buf);
4600 }
4601 }
4602 } else {
4603 return -1;
4604 }
4605 return 0;
4606 }
4607 #endif
4608
4609 #ifdef _WIN32
4610 static BOOL WINAPI qemu_ctrl_handler(DWORD type)
4611 {
4612 exit(STATUS_CONTROL_C_EXIT);
4613 return TRUE;
4614 }
4615 #endif
4616
4617 int qemu_uuid_parse(const char *str, uint8_t *uuid)
4618 {
4619 int ret;
4620
4621 if(strlen(str) != 36)
4622 return -1;
4623
4624 ret = sscanf(str, UUID_FMT, &uuid[0], &uuid[1], &uuid[2], &uuid[3],
4625 &uuid[4], &uuid[5], &uuid[6], &uuid[7], &uuid[8], &uuid[9],
4626 &uuid[10], &uuid[11], &uuid[12], &uuid[13], &uuid[14], &uuid[15]);
4627
4628 if(ret != 16)
4629 return -1;
4630
4631 #ifdef TARGET_I386
4632 smbios_add_field(1, offsetof(struct smbios_type_1, uuid), 16, uuid);
4633 #endif
4634
4635 return 0;
4636 }
4637
4638 #define MAX_NET_CLIENTS 32
4639
4640 #ifndef _WIN32
4641
4642 static void termsig_handler(int signal)
4643 {
4644 qemu_system_shutdown_request();
4645 }
4646
4647 static void sigchld_handler(int signal)
4648 {
4649 waitpid(-1, NULL, WNOHANG);
4650 }
4651
4652 static void sighandler_setup(void)
4653 {
4654 struct sigaction act;
4655
4656 memset(&act, 0, sizeof(act));
4657 act.sa_handler = termsig_handler;
4658 sigaction(SIGINT, &act, NULL);
4659 sigaction(SIGHUP, &act, NULL);
4660 sigaction(SIGTERM, &act, NULL);
4661
4662 act.sa_handler = sigchld_handler;
4663 act.sa_flags = SA_NOCLDSTOP;
4664 sigaction(SIGCHLD, &act, NULL);
4665 }
4666
4667 #endif
4668
4669 #ifdef _WIN32
4670 /* Look for support files in the same directory as the executable. */
4671 static char *find_datadir(const char *argv0)
4672 {
4673 char *p;
4674 char buf[MAX_PATH];
4675 DWORD len;
4676
4677 len = GetModuleFileName(NULL, buf, sizeof(buf) - 1);
4678 if (len == 0) {
4679 return NULL;
4680 }
4681
4682 buf[len] = 0;
4683 p = buf + len - 1;
4684 while (p != buf && *p != '\\')
4685 p--;
4686 *p = 0;
4687 if (access(buf, R_OK) == 0) {
4688 return qemu_strdup(buf);
4689 }
4690 return NULL;
4691 }
4692 #else /* !_WIN32 */
4693
4694 /* Find a likely location for support files using the location of the binary.
4695 For installed binaries this will be "$bindir/../share/qemu". When
4696 running from the build tree this will be "$bindir/../pc-bios". */
4697 #define SHARE_SUFFIX "/share/qemu"
4698 #define BUILD_SUFFIX "/pc-bios"
4699 static char *find_datadir(const char *argv0)
4700 {
4701 char *dir;
4702 char *p = NULL;
4703 char *res;
4704 #ifdef PATH_MAX
4705 char buf[PATH_MAX];
4706 #endif
4707 size_t max_len;
4708
4709 #if defined(__linux__)
4710 {
4711 int len;
4712 len = readlink("/proc/self/exe", buf, sizeof(buf) - 1);
4713 if (len > 0) {
4714 buf[len] = 0;
4715 p = buf;
4716 }
4717 }
4718 #elif defined(__FreeBSD__)
4719 {
4720 int len;
4721 len = readlink("/proc/curproc/file", buf, sizeof(buf) - 1);
4722 if (len > 0) {
4723 buf[len] = 0;
4724 p = buf;
4725 }
4726 }
4727 #endif
4728 /* If we don't have any way of figuring out the actual executable
4729 location then try argv[0]. */
4730 if (!p) {
4731 #ifdef PATH_MAX
4732 p = buf;
4733 #endif
4734 p = realpath(argv0, p);
4735 if (!p) {
4736 return NULL;
4737 }
4738 }
4739 dir = dirname(p);
4740 dir = dirname(dir);
4741
4742 max_len = strlen(dir) +
4743 MAX(strlen(SHARE_SUFFIX), strlen(BUILD_SUFFIX)) + 1;
4744 res = qemu_mallocz(max_len);
4745 snprintf(res, max_len, "%s%s", dir, SHARE_SUFFIX);
4746 if (access(res, R_OK)) {
4747 snprintf(res, max_len, "%s%s", dir, BUILD_SUFFIX);
4748 if (access(res, R_OK)) {
4749 qemu_free(res);
4750 res = NULL;
4751 }
4752 }
4753 #ifndef PATH_MAX
4754 free(p);
4755 #endif
4756 return res;
4757 }
4758 #undef SHARE_SUFFIX
4759 #undef BUILD_SUFFIX
4760 #endif
4761
4762 char *qemu_find_file(int type, const char *name)
4763 {
4764 int len;
4765 const char *subdir;
4766 char *buf;
4767
4768 /* If name contains path separators then try it as a straight path. */
4769 if ((strchr(name, '/') || strchr(name, '\\'))
4770 && access(name, R_OK) == 0) {
4771 return strdup(name);
4772 }
4773 switch (type) {
4774 case QEMU_FILE_TYPE_BIOS:
4775 subdir = "";
4776 break;
4777 case QEMU_FILE_TYPE_KEYMAP:
4778 subdir = "keymaps/";
4779 break;
4780 default:
4781 abort();
4782 }
4783 len = strlen(data_dir) + strlen(name) + strlen(subdir) + 2;
4784 buf = qemu_mallocz(len);
4785 snprintf(buf, len, "%s/%s%s", data_dir, subdir, name);
4786 if (access(buf, R_OK)) {
4787 qemu_free(buf);
4788 return NULL;
4789 }
4790 return buf;
4791 }
4792
4793 static int device_init_func(QemuOpts *opts, void *opaque)
4794 {
4795 DeviceState *dev;
4796
4797 dev = qdev_device_add(opts);
4798 if (!dev)
4799 return -1;
4800 return 0;
4801 }
4802
4803 struct device_config {
4804 enum {
4805 DEV_USB, /* -usbdevice */
4806 DEV_BT, /* -bt */
4807 } type;
4808 const char *cmdline;
4809 TAILQ_ENTRY(device_config) next;
4810 };
4811 TAILQ_HEAD(, device_config) device_configs = TAILQ_HEAD_INITIALIZER(device_configs);
4812
4813 static void add_device_config(int type, const char *cmdline)
4814 {
4815 struct device_config *conf;
4816
4817 conf = qemu_mallocz(sizeof(*conf));
4818 conf->type = type;
4819 conf->cmdline = cmdline;
4820 TAILQ_INSERT_TAIL(&device_configs, conf, next);
4821 }
4822
4823 static int foreach_device_config(int type, int (*func)(const char *cmdline))
4824 {
4825 struct device_config *conf;
4826 int rc;
4827
4828 TAILQ_FOREACH(conf, &device_configs, next) {
4829 if (conf->type != type)
4830 continue;
4831 rc = func(conf->cmdline);
4832 if (0 != rc)
4833 return rc;
4834 }
4835 return 0;
4836 }
4837
4838 int main(int argc, char **argv, char **envp)
4839 {
4840 const char *gdbstub_dev = NULL;
4841 uint32_t boot_devices_bitmap = 0;
4842 int i;
4843 int snapshot, linux_boot, net_boot;
4844 const char *initrd_filename;
4845 const char *kernel_filename, *kernel_cmdline;
4846 char boot_devices[33] = "cad"; /* default to HD->floppy->CD-ROM */
4847 DisplayState *ds;
4848 DisplayChangeListener *dcl;
4849 int cyls, heads, secs, translation;
4850 const char *net_clients[MAX_NET_CLIENTS];
4851 int nb_net_clients;
4852 QemuOpts *hda_opts = NULL, *opts;
4853 int optind;
4854 const char *r, *optarg;
4855 CharDriverState *monitor_hd = NULL;
4856 const char *monitor_device;
4857 const char *serial_devices[MAX_SERIAL_PORTS];
4858 int serial_device_index;
4859 const char *parallel_devices[MAX_PARALLEL_PORTS];
4860 int parallel_device_index;
4861 const char *virtio_consoles[MAX_VIRTIO_CONSOLES];
4862 int virtio_console_index;
4863 const char *loadvm = NULL;
4864 QEMUMachine *machine;
4865 const char *cpu_model;
4866 #ifndef _WIN32
4867 int fds[2];
4868 #endif
4869 int tb_size;
4870 const char *pid_file = NULL;
4871 const char *incoming = NULL;
4872 #ifndef _WIN32
4873 int fd = 0;
4874 struct passwd *pwd = NULL;
4875 const char *chroot_dir = NULL;
4876 const char *run_as = NULL;
4877 #endif
4878 CPUState *env;
4879 int show_vnc_port = 0;
4880
4881 qemu_errors_to_file(stderr);
4882 qemu_cache_utils_init(envp);
4883
4884 LIST_INIT (&vm_change_state_head);
4885 #ifndef _WIN32
4886 {
4887 struct sigaction act;
4888 sigfillset(&act.sa_mask);
4889 act.sa_flags = 0;
4890 act.sa_handler = SIG_IGN;
4891 sigaction(SIGPIPE, &act, NULL);
4892 }
4893 #else
4894 SetConsoleCtrlHandler(qemu_ctrl_handler, TRUE);
4895 /* Note: cpu_interrupt() is currently not SMP safe, so we force
4896 QEMU to run on a single CPU */
4897 {
4898 HANDLE h;
4899 DWORD mask, smask;
4900 int i;
4901 h = GetCurrentProcess();
4902 if (GetProcessAffinityMask(h, &mask, &smask)) {
4903 for(i = 0; i < 32; i++) {
4904 if (mask & (1 << i))
4905 break;
4906 }
4907 if (i != 32) {
4908 mask = 1 << i;
4909 SetProcessAffinityMask(h, mask);
4910 }
4911 }
4912 }
4913 #endif
4914
4915 module_call_init(MODULE_INIT_MACHINE);
4916 machine = find_default_machine();
4917 cpu_model = NULL;
4918 initrd_filename = NULL;
4919 ram_size = 0;
4920 snapshot = 0;
4921 kernel_filename = NULL;
4922 kernel_cmdline = "";
4923 cyls = heads = secs = 0;
4924 translation = BIOS_ATA_TRANSLATION_AUTO;
4925 monitor_device = "vc:80Cx24C";
4926
4927 serial_devices[0] = "vc:80Cx24C";
4928 for(i = 1; i < MAX_SERIAL_PORTS; i++)
4929 serial_devices[i] = NULL;
4930 serial_device_index = 0;
4931
4932 parallel_devices[0] = "vc:80Cx24C";
4933 for(i = 1; i < MAX_PARALLEL_PORTS; i++)
4934 parallel_devices[i] = NULL;
4935 parallel_device_index = 0;
4936
4937 for(i = 0; i < MAX_VIRTIO_CONSOLES; i++)
4938 virtio_consoles[i] = NULL;
4939 virtio_console_index = 0;
4940
4941 for (i = 0; i < MAX_NODES; i++) {
4942 node_mem[i] = 0;
4943 node_cpumask[i] = 0;
4944 }
4945
4946 nb_net_clients = 0;
4947 nb_numa_nodes = 0;
4948 nb_nics = 0;
4949
4950 tb_size = 0;
4951 autostart= 1;
4952
4953 optind = 1;
4954 for(;;) {
4955 if (optind >= argc)
4956 break;
4957 r = argv[optind];
4958 if (r[0] != '-') {
4959 hda_opts = drive_add(argv[optind++], HD_ALIAS, 0);
4960 } else {
4961 const QEMUOption *popt;
4962
4963 optind++;
4964 /* Treat --foo the same as -foo. */
4965 if (r[1] == '-')
4966 r++;
4967 popt = qemu_options;
4968 for(;;) {
4969 if (!popt->name) {
4970 fprintf(stderr, "%s: invalid option -- '%s'\n",
4971 argv[0], r);
4972 exit(1);
4973 }
4974 if (!strcmp(popt->name, r + 1))
4975 break;
4976 popt++;
4977 }
4978 if (popt->flags & HAS_ARG) {
4979 if (optind >= argc) {
4980 fprintf(stderr, "%s: option '%s' requires an argument\n",
4981 argv[0], r);
4982 exit(1);
4983 }
4984 optarg = argv[optind++];
4985 } else {
4986 optarg = NULL;
4987 }
4988
4989 switch(popt->index) {
4990 case QEMU_OPTION_M:
4991 machine = find_machine(optarg);
4992 if (!machine) {
4993 QEMUMachine *m;
4994 printf("Supported machines are:\n");
4995 for(m = first_machine; m != NULL; m = m->next) {
4996 if (m->alias)
4997 printf("%-10s %s (alias of %s)\n",
4998 m->alias, m->desc, m->name);
4999 printf("%-10s %s%s\n",
5000 m->name, m->desc,
5001 m->is_default ? " (default)" : "");
5002 }
5003 exit(*optarg != '?');
5004 }
5005 break;
5006 case QEMU_OPTION_cpu:
5007 /* hw initialization will check this */
5008 if (*optarg == '?') {
5009 /* XXX: implement xxx_cpu_list for targets that still miss it */
5010 #if defined(cpu_list)
5011 cpu_list(stdout, &fprintf);
5012 #endif
5013 exit(0);
5014 } else {
5015 cpu_model = optarg;
5016 }
5017 break;
5018 case QEMU_OPTION_initrd:
5019 initrd_filename = optarg;
5020 break;
5021 case QEMU_OPTION_hda:
5022 if (cyls == 0)
5023 hda_opts = drive_add(optarg, HD_ALIAS, 0);
5024 else
5025 hda_opts = drive_add(optarg, HD_ALIAS
5026 ",cyls=%d,heads=%d,secs=%d%s",
5027 0, cyls, heads, secs,
5028 translation == BIOS_ATA_TRANSLATION_LBA ?
5029 ",trans=lba" :
5030 translation == BIOS_ATA_TRANSLATION_NONE ?
5031 ",trans=none" : "");
5032 break;
5033 case QEMU_OPTION_hdb:
5034 case QEMU_OPTION_hdc:
5035 case QEMU_OPTION_hdd:
5036 drive_add(optarg, HD_ALIAS, popt->index - QEMU_OPTION_hda);
5037 break;
5038 case QEMU_OPTION_drive:
5039 drive_add(NULL, "%s", optarg);
5040 break;
5041 case QEMU_OPTION_set:
5042 if (qemu_set_option(optarg) != 0)
5043 exit(1);
5044 break;
5045 case QEMU_OPTION_mtdblock:
5046 drive_add(optarg, MTD_ALIAS);
5047 break;
5048 case QEMU_OPTION_sd:
5049 drive_add(optarg, SD_ALIAS);
5050 break;
5051 case QEMU_OPTION_pflash:
5052 drive_add(optarg, PFLASH_ALIAS);
5053 break;
5054 case QEMU_OPTION_snapshot:
5055 snapshot = 1;
5056 break;
5057 case QEMU_OPTION_hdachs:
5058 {
5059 const char *p;
5060 p = optarg;
5061 cyls = strtol(p, (char **)&p, 0);
5062 if (cyls < 1 || cyls > 16383)
5063 goto chs_fail;
5064 if (*p != ',')
5065 goto chs_fail;
5066 p++;
5067 heads = strtol(p, (char **)&p, 0);
5068 if (heads < 1 || heads > 16)
5069 goto chs_fail;
5070 if (*p != ',')
5071 goto chs_fail;
5072 p++;
5073 secs = strtol(p, (char **)&p, 0);
5074 if (secs < 1 || secs > 63)
5075 goto chs_fail;
5076 if (*p == ',') {
5077 p++;
5078 if (!strcmp(p, "none"))
5079 translation = BIOS_ATA_TRANSLATION_NONE;
5080 else if (!strcmp(p, "lba"))
5081 translation = BIOS_ATA_TRANSLATION_LBA;
5082 else if (!strcmp(p, "auto"))
5083 translation = BIOS_ATA_TRANSLATION_AUTO;
5084 else
5085 goto chs_fail;
5086 } else if (*p != '\0') {
5087 chs_fail:
5088 fprintf(stderr, "qemu: invalid physical CHS format\n");
5089 exit(1);
5090 }
5091 if (hda_opts != NULL) {
5092 char num[16];
5093 snprintf(num, sizeof(num), "%d", cyls);
5094 qemu_opt_set(hda_opts, "cyls", num);
5095 snprintf(num, sizeof(num), "%d", heads);
5096 qemu_opt_set(hda_opts, "heads", num);
5097 snprintf(num, sizeof(num), "%d", secs);
5098 qemu_opt_set(hda_opts, "secs", num);
5099 if (translation == BIOS_ATA_TRANSLATION_LBA)
5100 qemu_opt_set(hda_opts, "trans", "lba");
5101 if (translation == BIOS_ATA_TRANSLATION_NONE)
5102 qemu_opt_set(hda_opts, "trans", "none");
5103 }
5104 }
5105 break;
5106 case QEMU_OPTION_numa:
5107 if (nb_numa_nodes >= MAX_NODES) {
5108 fprintf(stderr, "qemu: too many NUMA nodes\n");
5109 exit(1);
5110 }
5111 numa_add(optarg);
5112 break;
5113 case QEMU_OPTION_nographic:
5114 display_type = DT_NOGRAPHIC;
5115 break;
5116 #ifdef CONFIG_CURSES
5117 case QEMU_OPTION_curses:
5118 display_type = DT_CURSES;
5119 break;
5120 #endif
5121 case QEMU_OPTION_portrait:
5122 graphic_rotate = 1;
5123 break;
5124 case QEMU_OPTION_kernel:
5125 kernel_filename = optarg;
5126 break;
5127 case QEMU_OPTION_append:
5128 kernel_cmdline = optarg;
5129 break;
5130 case QEMU_OPTION_cdrom:
5131 drive_add(optarg, CDROM_ALIAS);
5132 break;
5133 case QEMU_OPTION_boot:
5134 {
5135 static const char * const params[] = {
5136 "order", "once", "menu", NULL
5137 };
5138 char buf[sizeof(boot_devices)];
5139 char *standard_boot_devices;
5140 int legacy = 0;
5141
5142 if (!strchr(optarg, '=')) {
5143 legacy = 1;
5144 pstrcpy(buf, sizeof(buf), optarg);
5145 } else if (check_params(buf, sizeof(buf), params, optarg) < 0) {
5146 fprintf(stderr,
5147 "qemu: unknown boot parameter '%s' in '%s'\n",
5148 buf, optarg);
5149 exit(1);
5150 }
5151
5152 if (legacy ||
5153 get_param_value(buf, sizeof(buf), "order", optarg)) {
5154 boot_devices_bitmap = parse_bootdevices(buf);
5155 pstrcpy(boot_devices, sizeof(boot_devices), buf);
5156 }
5157 if (!legacy) {
5158 if (get_param_value(buf, sizeof(buf),
5159 "once", optarg)) {
5160 boot_devices_bitmap |= parse_bootdevices(buf);
5161 standard_boot_devices = qemu_strdup(boot_devices);
5162 pstrcpy(boot_devices, sizeof(boot_devices), buf);
5163 qemu_register_reset(restore_boot_devices,
5164 standard_boot_devices);
5165 }
5166 if (get_param_value(buf, sizeof(buf),
5167 "menu", optarg)) {
5168 if (!strcmp(buf, "on")) {
5169 boot_menu = 1;
5170 } else if (!strcmp(buf, "off")) {
5171 boot_menu = 0;
5172 } else {
5173 fprintf(stderr,
5174 "qemu: invalid option value '%s'\n",
5175 buf);
5176 exit(1);
5177 }
5178 }
5179 }
5180 }
5181 break;
5182 case QEMU_OPTION_fda:
5183 case QEMU_OPTION_fdb:
5184 drive_add(optarg, FD_ALIAS, popt->index - QEMU_OPTION_fda);
5185 break;
5186 #ifdef TARGET_I386
5187 case QEMU_OPTION_no_fd_bootchk:
5188 fd_bootchk = 0;
5189 break;
5190 #endif
5191 case QEMU_OPTION_net:
5192 if (nb_net_clients >= MAX_NET_CLIENTS) {
5193 fprintf(stderr, "qemu: too many network clients\n");
5194 exit(1);
5195 }
5196 net_clients[nb_net_clients] = optarg;
5197 nb_net_clients++;
5198 break;
5199 #ifdef CONFIG_SLIRP
5200 case QEMU_OPTION_tftp:
5201 legacy_tftp_prefix = optarg;
5202 break;
5203 case QEMU_OPTION_bootp:
5204 legacy_bootp_filename = optarg;
5205 break;
5206 #ifndef _WIN32
5207 case QEMU_OPTION_smb:
5208 net_slirp_smb(optarg);
5209 break;
5210 #endif
5211 case QEMU_OPTION_redir:
5212 net_slirp_redir(optarg);
5213 break;
5214 #endif
5215 case QEMU_OPTION_bt:
5216 add_device_config(DEV_BT, optarg);
5217 break;
5218 #ifdef HAS_AUDIO
5219 case QEMU_OPTION_audio_help:
5220 AUD_help ();
5221 exit (0);
5222 break;
5223 case QEMU_OPTION_soundhw:
5224 select_soundhw (optarg);
5225 break;
5226 #endif
5227 case QEMU_OPTION_h:
5228 help(0);
5229 break;
5230 case QEMU_OPTION_version:
5231 version();
5232 exit(0);
5233 break;
5234 case QEMU_OPTION_m: {
5235 uint64_t value;
5236 char *ptr;
5237
5238 value = strtoul(optarg, &ptr, 10);
5239 switch (*ptr) {
5240 case 0: case 'M': case 'm':
5241 value <<= 20;
5242 break;
5243 case 'G': case 'g':
5244 value <<= 30;
5245 break;
5246 default:
5247 fprintf(stderr, "qemu: invalid ram size: %s\n", optarg);
5248 exit(1);
5249 }
5250
5251 /* On 32-bit hosts, QEMU is limited by virtual address space */
5252 if (value > (2047 << 20) && HOST_LONG_BITS == 32) {
5253 fprintf(stderr, "qemu: at most 2047 MB RAM can be simulated\n");
5254 exit(1);
5255 }
5256 if (value != (uint64_t)(ram_addr_t)value) {
5257 fprintf(stderr, "qemu: ram size too large\n");
5258 exit(1);
5259 }
5260 ram_size = value;
5261 break;
5262 }
5263 case QEMU_OPTION_d:
5264 {
5265 int mask;
5266 const CPULogItem *item;
5267
5268 mask = cpu_str_to_log_mask(optarg);
5269 if (!mask) {
5270 printf("Log items (comma separated):\n");
5271 for(item = cpu_log_items; item->mask != 0; item++) {
5272 printf("%-10s %s\n", item->name, item->help);
5273 }
5274 exit(1);
5275 }
5276 cpu_set_log(mask);
5277 }
5278 break;
5279 case QEMU_OPTION_s:
5280 gdbstub_dev = "tcp::" DEFAULT_GDBSTUB_PORT;
5281 break;
5282 case QEMU_OPTION_gdb:
5283 gdbstub_dev = optarg;
5284 break;
5285 case QEMU_OPTION_L:
5286 data_dir = optarg;
5287 break;
5288 case QEMU_OPTION_bios:
5289 bios_name = optarg;
5290 break;
5291 case QEMU_OPTION_singlestep:
5292 singlestep = 1;
5293 break;
5294 case QEMU_OPTION_S:
5295 autostart = 0;
5296 break;
5297 #ifndef _WIN32
5298 case QEMU_OPTION_k:
5299 keyboard_layout = optarg;
5300 break;
5301 #endif
5302 case QEMU_OPTION_localtime:
5303 rtc_utc = 0;
5304 break;
5305 case QEMU_OPTION_vga:
5306 select_vgahw (optarg);
5307 break;
5308 #if defined(TARGET_PPC) || defined(TARGET_SPARC)
5309 case QEMU_OPTION_g:
5310 {
5311 const char *p;
5312 int w, h, depth;
5313 p = optarg;
5314 w = strtol(p, (char **)&p, 10);
5315 if (w <= 0) {
5316 graphic_error:
5317 fprintf(stderr, "qemu: invalid resolution or depth\n");
5318 exit(1);
5319 }
5320 if (*p != 'x')
5321 goto graphic_error;
5322 p++;
5323 h = strtol(p, (char **)&p, 10);
5324 if (h <= 0)
5325 goto graphic_error;
5326 if (*p == 'x') {
5327 p++;
5328 depth = strtol(p, (char **)&p, 10);
5329 if (depth != 8 && depth != 15 && depth != 16 &&
5330 depth != 24 && depth != 32)
5331 goto graphic_error;
5332 } else if (*p == '\0') {
5333 depth = graphic_depth;
5334 } else {
5335 goto graphic_error;
5336 }
5337
5338 graphic_width = w;
5339 graphic_height = h;
5340 graphic_depth = depth;
5341 }
5342 break;
5343 #endif
5344 case QEMU_OPTION_echr:
5345 {
5346 char *r;
5347 term_escape_char = strtol(optarg, &r, 0);
5348 if (r == optarg)
5349 printf("Bad argument to echr\n");
5350 break;
5351 }
5352 case QEMU_OPTION_monitor:
5353 monitor_device = optarg;
5354 break;
5355 case QEMU_OPTION_serial:
5356 if (serial_device_index >= MAX_SERIAL_PORTS) {
5357 fprintf(stderr, "qemu: too many serial ports\n");
5358 exit(1);
5359 }
5360 serial_devices[serial_device_index] = optarg;
5361 serial_device_index++;
5362 break;
5363 case QEMU_OPTION_watchdog:
5364 if (watchdog) {
5365 fprintf(stderr,
5366 "qemu: only one watchdog option may be given\n");
5367 return 1;
5368 }
5369 watchdog = optarg;
5370 break;
5371 case QEMU_OPTION_watchdog_action:
5372 if (select_watchdog_action(optarg) == -1) {
5373 fprintf(stderr, "Unknown -watchdog-action parameter\n");
5374 exit(1);
5375 }
5376 break;
5377 case QEMU_OPTION_virtiocon:
5378 if (virtio_console_index >= MAX_VIRTIO_CONSOLES) {
5379 fprintf(stderr, "qemu: too many virtio consoles\n");
5380 exit(1);
5381 }
5382 virtio_consoles[virtio_console_index] = optarg;
5383 virtio_console_index++;
5384 break;
5385 case QEMU_OPTION_parallel:
5386 if (parallel_device_index >= MAX_PARALLEL_PORTS) {
5387 fprintf(stderr, "qemu: too many parallel ports\n");
5388 exit(1);
5389 }
5390 parallel_devices[parallel_device_index] = optarg;
5391 parallel_device_index++;
5392 break;
5393 case QEMU_OPTION_loadvm:
5394 loadvm = optarg;
5395 break;
5396 case QEMU_OPTION_full_screen:
5397 full_screen = 1;
5398 break;
5399 #ifdef CONFIG_SDL
5400 case QEMU_OPTION_no_frame:
5401 no_frame = 1;
5402 break;
5403 case QEMU_OPTION_alt_grab:
5404 alt_grab = 1;
5405 break;
5406 case QEMU_OPTION_no_quit:
5407 no_quit = 1;
5408 break;
5409 case QEMU_OPTION_sdl:
5410 display_type = DT_SDL;
5411 break;
5412 #endif
5413 case QEMU_OPTION_pidfile:
5414 pid_file = optarg;
5415 break;
5416 #ifdef TARGET_I386
5417 case QEMU_OPTION_win2k_hack:
5418 win2k_install_hack = 1;
5419 break;
5420 case QEMU_OPTION_rtc_td_hack:
5421 rtc_td_hack = 1;
5422 break;
5423 case QEMU_OPTION_acpitable:
5424 if(acpi_table_add(optarg) < 0) {
5425 fprintf(stderr, "Wrong acpi table provided\n");
5426 exit(1);
5427 }
5428 break;
5429 case QEMU_OPTION_smbios:
5430 if(smbios_entry_add(optarg) < 0) {
5431 fprintf(stderr, "Wrong smbios provided\n");
5432 exit(1);
5433 }
5434 break;
5435 #endif
5436 #ifdef CONFIG_KVM
5437 case QEMU_OPTION_enable_kvm:
5438 kvm_allowed = 1;
5439 break;
5440 #endif
5441 case QEMU_OPTION_usb:
5442 usb_enabled = 1;
5443 break;
5444 case QEMU_OPTION_usbdevice:
5445 usb_enabled = 1;
5446 add_device_config(DEV_USB, optarg);
5447 break;
5448 case QEMU_OPTION_device:
5449 opts = qemu_opts_parse(&qemu_device_opts, optarg, "driver");
5450 if (!opts) {
5451 fprintf(stderr, "parse error: %s\n", optarg);
5452 exit(1);
5453 }
5454 break;
5455 case QEMU_OPTION_smp:
5456 smp_parse(optarg);
5457 if (smp_cpus < 1) {
5458 fprintf(stderr, "Invalid number of CPUs\n");
5459 exit(1);
5460 }
5461 if (max_cpus < smp_cpus) {
5462 fprintf(stderr, "maxcpus must be equal to or greater than "
5463 "smp\n");
5464 exit(1);
5465 }
5466 if (max_cpus > 255) {
5467 fprintf(stderr, "Unsupported number of maxcpus\n");
5468 exit(1);
5469 }
5470 break;
5471 case QEMU_OPTION_vnc:
5472 display_type = DT_VNC;
5473 vnc_display = optarg;
5474 break;
5475 #ifdef TARGET_I386
5476 case QEMU_OPTION_no_acpi:
5477 acpi_enabled = 0;
5478 break;
5479 case QEMU_OPTION_no_hpet:
5480 no_hpet = 1;
5481 break;
5482 case QEMU_OPTION_balloon:
5483 if (balloon_parse(optarg) < 0) {
5484 fprintf(stderr, "Unknown -balloon argument %s\n", optarg);
5485 exit(1);
5486 }
5487 break;
5488 #endif
5489 case QEMU_OPTION_no_reboot:
5490 no_reboot = 1;
5491 break;
5492 case QEMU_OPTION_no_shutdown:
5493 no_shutdown = 1;
5494 break;
5495 case QEMU_OPTION_show_cursor:
5496 cursor_hide = 0;
5497 break;
5498 case QEMU_OPTION_uuid:
5499 if(qemu_uuid_parse(optarg, qemu_uuid) < 0) {
5500 fprintf(stderr, "Fail to parse UUID string."
5501 " Wrong format.\n");
5502 exit(1);
5503 }
5504 break;
5505 #ifndef _WIN32
5506 case QEMU_OPTION_daemonize:
5507 daemonize = 1;
5508 break;
5509 #endif
5510 case QEMU_OPTION_option_rom:
5511 if (nb_option_roms >= MAX_OPTION_ROMS) {
5512 fprintf(stderr, "Too many option ROMs\n");
5513 exit(1);
5514 }
5515 option_rom[nb_option_roms] = optarg;
5516 nb_option_roms++;
5517 break;
5518 #if defined(TARGET_ARM) || defined(TARGET_M68K)
5519 case QEMU_OPTION_semihosting:
5520 semihosting_enabled = 1;
5521 break;
5522 #endif
5523 case QEMU_OPTION_name:
5524 qemu_name = qemu_strdup(optarg);
5525 {
5526 char *p = strchr(qemu_name, ',');
5527 if (p != NULL) {
5528 *p++ = 0;
5529 if (strncmp(p, "process=", 8)) {
5530 fprintf(stderr, "Unknown subargument %s to -name", p);
5531 exit(1);
5532 }
5533 p += 8;
5534 set_proc_name(p);
5535 }
5536 }
5537 break;
5538 #if defined(TARGET_SPARC) || defined(TARGET_PPC)
5539 case QEMU_OPTION_prom_env:
5540 if (nb_prom_envs >= MAX_PROM_ENVS) {
5541 fprintf(stderr, "Too many prom variables\n");
5542 exit(1);
5543 }
5544 prom_envs[nb_prom_envs] = optarg;
5545 nb_prom_envs++;
5546 break;
5547 #endif
5548 #ifdef TARGET_ARM
5549 case QEMU_OPTION_old_param:
5550 old_param = 1;
5551 break;
5552 #endif
5553 case QEMU_OPTION_clock:
5554 configure_alarms(optarg);
5555 break;
5556 case QEMU_OPTION_startdate:
5557 {
5558 struct tm tm;
5559 time_t rtc_start_date;
5560 if (!strcmp(optarg, "now")) {
5561 rtc_date_offset = -1;
5562 } else {
5563 if (sscanf(optarg, "%d-%d-%dT%d:%d:%d",
5564 &tm.tm_year,
5565 &tm.tm_mon,
5566 &tm.tm_mday,
5567 &tm.tm_hour,
5568 &tm.tm_min,
5569 &tm.tm_sec) == 6) {
5570 /* OK */
5571 } else if (sscanf(optarg, "%d-%d-%d",
5572 &tm.tm_year,
5573 &tm.tm_mon,
5574 &tm.tm_mday) == 3) {
5575 tm.tm_hour = 0;
5576 tm.tm_min = 0;
5577 tm.tm_sec = 0;
5578 } else {
5579 goto date_fail;
5580 }
5581 tm.tm_year -= 1900;
5582 tm.tm_mon--;
5583 rtc_start_date = mktimegm(&tm);
5584 if (rtc_start_date == -1) {
5585 date_fail:
5586 fprintf(stderr, "Invalid date format. Valid format are:\n"
5587 "'now' or '2006-06-17T16:01:21' or '2006-06-17'\n");
5588 exit(1);
5589 }
5590 rtc_date_offset = time(NULL) - rtc_start_date;
5591 }
5592 }
5593 break;
5594 case QEMU_OPTION_tb_size:
5595 tb_size = strtol(optarg, NULL, 0);
5596 if (tb_size < 0)
5597 tb_size = 0;
5598 break;
5599 case QEMU_OPTION_icount:
5600 use_icount = 1;
5601 if (strcmp(optarg, "auto") == 0) {
5602 icount_time_shift = -1;
5603 } else {
5604 icount_time_shift = strtol(optarg, NULL, 0);
5605 }
5606 break;
5607 case QEMU_OPTION_incoming:
5608 incoming = optarg;
5609 break;
5610 #ifndef _WIN32
5611 case QEMU_OPTION_chroot:
5612 chroot_dir = optarg;
5613 break;
5614 case QEMU_OPTION_runas:
5615 run_as = optarg;
5616 break;
5617 #endif
5618 #ifdef CONFIG_XEN
5619 case QEMU_OPTION_xen_domid:
5620 xen_domid = atoi(optarg);
5621 break;
5622 case QEMU_OPTION_xen_create:
5623 xen_mode = XEN_CREATE;
5624 break;
5625 case QEMU_OPTION_xen_attach:
5626 xen_mode = XEN_ATTACH;
5627 break;
5628 #endif
5629 }
5630 }
5631 }
5632
5633 /* If no data_dir is specified then try to find it relative to the
5634 executable path. */
5635 if (!data_dir) {
5636 data_dir = find_datadir(argv[0]);
5637 }
5638 /* If all else fails use the install patch specified when building. */
5639 if (!data_dir) {
5640 data_dir = CONFIG_QEMU_SHAREDIR;
5641 }
5642
5643 /*
5644 * Default to max_cpus = smp_cpus, in case the user doesn't
5645 * specify a max_cpus value.
5646 */
5647 if (!max_cpus)
5648 max_cpus = smp_cpus;
5649
5650 machine->max_cpus = machine->max_cpus ?: 1; /* Default to UP */
5651 if (smp_cpus > machine->max_cpus) {
5652 fprintf(stderr, "Number of SMP cpus requested (%d), exceeds max cpus "
5653 "supported by machine `%s' (%d)\n", smp_cpus, machine->name,
5654 machine->max_cpus);
5655 exit(1);
5656 }
5657
5658 if (display_type == DT_NOGRAPHIC) {
5659 if (serial_device_index == 0)
5660 serial_devices[0] = "stdio";
5661 if (parallel_device_index == 0)
5662 parallel_devices[0] = "null";
5663 if (strncmp(monitor_device, "vc", 2) == 0)
5664 monitor_device = "stdio";
5665 }
5666
5667 #ifndef _WIN32
5668 if (daemonize) {
5669 pid_t pid;
5670
5671 if (pipe(fds) == -1)
5672 exit(1);
5673
5674 pid = fork();
5675 if (pid > 0) {
5676 uint8_t status;
5677 ssize_t len;
5678
5679 close(fds[1]);
5680
5681 again:
5682 len = read(fds[0], &status, 1);
5683 if (len == -1 && (errno == EINTR))
5684 goto again;
5685
5686 if (len != 1)
5687 exit(1);
5688 else if (status == 1) {
5689 fprintf(stderr, "Could not acquire pidfile\n");
5690 exit(1);
5691 } else
5692 exit(0);
5693 } else if (pid < 0)
5694 exit(1);
5695
5696 setsid();
5697
5698 pid = fork();
5699 if (pid > 0)
5700 exit(0);
5701 else if (pid < 0)
5702 exit(1);
5703
5704 umask(027);
5705
5706 signal(SIGTSTP, SIG_IGN);
5707 signal(SIGTTOU, SIG_IGN);
5708 signal(SIGTTIN, SIG_IGN);
5709 }
5710
5711 if (pid_file && qemu_create_pidfile(pid_file) != 0) {
5712 if (daemonize) {
5713 uint8_t status = 1;
5714 write(fds[1], &status, 1);
5715 } else
5716 fprintf(stderr, "Could not acquire pid file\n");
5717 exit(1);
5718 }
5719 #endif
5720
5721 if (qemu_init_main_loop()) {
5722 fprintf(stderr, "qemu_init_main_loop failed\n");
5723 exit(1);
5724 }
5725 linux_boot = (kernel_filename != NULL);
5726
5727 if (!linux_boot && *kernel_cmdline != '\0') {
5728 fprintf(stderr, "-append only allowed with -kernel option\n");
5729 exit(1);
5730 }
5731
5732 if (!linux_boot && initrd_filename != NULL) {
5733 fprintf(stderr, "-initrd only allowed with -kernel option\n");
5734 exit(1);
5735 }
5736
5737 #ifndef _WIN32
5738 /* Win32 doesn't support line-buffering and requires size >= 2 */
5739 setvbuf(stdout, NULL, _IOLBF, 0);
5740 #endif
5741
5742 init_timers();
5743 if (init_timer_alarm() < 0) {
5744 fprintf(stderr, "could not initialize alarm timer\n");
5745 exit(1);
5746 }
5747 if (use_icount && icount_time_shift < 0) {
5748 use_icount = 2;
5749 /* 125MIPS seems a reasonable initial guess at the guest speed.
5750 It will be corrected fairly quickly anyway. */
5751 icount_time_shift = 3;
5752 init_icount_adjust();
5753 }
5754
5755 #ifdef _WIN32
5756 socket_init();
5757 #endif
5758
5759 /* init network clients */
5760 if (nb_net_clients == 0) {
5761 /* if no clients, we use a default config */
5762 net_clients[nb_net_clients++] = "nic";
5763 #ifdef CONFIG_SLIRP
5764 net_clients[nb_net_clients++] = "user";
5765 #endif
5766 }
5767
5768 for(i = 0;i < nb_net_clients; i++) {
5769 if (net_client_parse(net_clients[i]) < 0)
5770 exit(1);
5771 }
5772
5773 net_boot = (boot_devices_bitmap >> ('n' - 'a')) & 0xF;
5774 net_set_boot_mask(net_boot);
5775
5776 net_client_check();
5777
5778 /* init the bluetooth world */
5779 if (foreach_device_config(DEV_BT, bt_parse))
5780 exit(1);
5781
5782 /* init the memory */
5783 if (ram_size == 0)
5784 ram_size = DEFAULT_RAM_SIZE * 1024 * 1024;
5785
5786 /* init the dynamic translator */
5787 cpu_exec_init_all(tb_size * 1024 * 1024);
5788
5789 bdrv_init();
5790
5791 /* we always create the cdrom drive, even if no disk is there */
5792 drive_add(NULL, CDROM_ALIAS);
5793
5794 /* we always create at least one floppy */
5795 drive_add(NULL, FD_ALIAS, 0);
5796
5797 /* we always create one sd slot, even if no card is in it */
5798 drive_add(NULL, SD_ALIAS);
5799
5800 /* open the virtual block devices */
5801 if (snapshot)
5802 qemu_opts_foreach(&qemu_drive_opts, drive_enable_snapshot, NULL, 0);
5803 if (qemu_opts_foreach(&qemu_drive_opts, drive_init_func, machine, 1) != 0)
5804 exit(1);
5805
5806 register_savevm("timer", 0, 2, timer_save, timer_load, NULL);
5807 register_savevm_live("ram", 0, 3, ram_save_live, NULL, ram_load, NULL);
5808
5809 #ifndef _WIN32
5810 /* must be after terminal init, SDL library changes signal handlers */
5811 sighandler_setup();
5812 #endif
5813
5814 /* Maintain compatibility with multiple stdio monitors */
5815 if (!strcmp(monitor_device,"stdio")) {
5816 for (i = 0; i < MAX_SERIAL_PORTS; i++) {
5817 const char *devname = serial_devices[i];
5818 if (devname && !strcmp(devname,"mon:stdio")) {
5819 monitor_device = NULL;
5820 break;
5821 } else if (devname && !strcmp(devname,"stdio")) {
5822 monitor_device = NULL;
5823 serial_devices[i] = "mon:stdio";
5824 break;
5825 }
5826 }
5827 }
5828
5829 if (nb_numa_nodes > 0) {
5830 int i;
5831
5832 if (nb_numa_nodes > smp_cpus) {
5833 nb_numa_nodes = smp_cpus;
5834 }
5835
5836 /* If no memory size if given for any node, assume the default case
5837 * and distribute the available memory equally across all nodes
5838 */
5839 for (i = 0; i < nb_numa_nodes; i++) {
5840 if (node_mem[i] != 0)
5841 break;
5842 }
5843 if (i == nb_numa_nodes) {
5844 uint64_t usedmem = 0;
5845
5846 /* On Linux, the each node's border has to be 8MB aligned,
5847 * the final node gets the rest.
5848 */
5849 for (i = 0; i < nb_numa_nodes - 1; i++) {
5850 node_mem[i] = (ram_size / nb_numa_nodes) & ~((1 << 23UL) - 1);
5851 usedmem += node_mem[i];
5852 }
5853 node_mem[i] = ram_size - usedmem;
5854 }
5855
5856 for (i = 0; i < nb_numa_nodes; i++) {
5857 if (node_cpumask[i] != 0)
5858 break;
5859 }
5860 /* assigning the VCPUs round-robin is easier to implement, guest OSes
5861 * must cope with this anyway, because there are BIOSes out there in
5862 * real machines which also use this scheme.
5863 */
5864 if (i == nb_numa_nodes) {
5865 for (i = 0; i < smp_cpus; i++) {
5866 node_cpumask[i % nb_numa_nodes] |= 1 << i;
5867 }
5868 }
5869 }
5870
5871 if (kvm_enabled()) {
5872 int ret;
5873
5874 ret = kvm_init(smp_cpus);
5875 if (ret < 0) {
5876 fprintf(stderr, "failed to initialize KVM\n");
5877 exit(1);
5878 }
5879 }
5880
5881 if (monitor_device) {
5882 monitor_hd = qemu_chr_open("monitor", monitor_device, NULL);
5883 if (!monitor_hd) {
5884 fprintf(stderr, "qemu: could not open monitor device '%s'\n", monitor_device);
5885 exit(1);
5886 }
5887 }
5888
5889 for(i = 0; i < MAX_SERIAL_PORTS; i++) {
5890 const char *devname = serial_devices[i];
5891 if (devname && strcmp(devname, "none")) {
5892 char label[32];
5893 snprintf(label, sizeof(label), "serial%d", i);
5894 serial_hds[i] = qemu_chr_open(label, devname, NULL);
5895 if (!serial_hds[i]) {
5896 fprintf(stderr, "qemu: could not open serial device '%s'\n",
5897 devname);
5898 exit(1);
5899 }
5900 }
5901 }
5902
5903 for(i = 0; i < MAX_PARALLEL_PORTS; i++) {
5904 const char *devname = parallel_devices[i];
5905 if (devname && strcmp(devname, "none")) {
5906 char label[32];
5907 snprintf(label, sizeof(label), "parallel%d", i);
5908 parallel_hds[i] = qemu_chr_open(label, devname, NULL);
5909 if (!parallel_hds[i]) {
5910 fprintf(stderr, "qemu: could not open parallel device '%s'\n",
5911 devname);
5912 exit(1);
5913 }
5914 }
5915 }
5916
5917 for(i = 0; i < MAX_VIRTIO_CONSOLES; i++) {
5918 const char *devname = virtio_consoles[i];
5919 if (devname && strcmp(devname, "none")) {
5920 char label[32];
5921 snprintf(label, sizeof(label), "virtcon%d", i);
5922 virtcon_hds[i] = qemu_chr_open(label, devname, NULL);
5923 if (!virtcon_hds[i]) {
5924 fprintf(stderr, "qemu: could not open virtio console '%s'\n",
5925 devname);
5926 exit(1);
5927 }
5928 }
5929 }
5930
5931 module_call_init(MODULE_INIT_DEVICE);
5932
5933 if (watchdog) {
5934 i = select_watchdog(watchdog);
5935 if (i > 0)
5936 exit (i == 1 ? 1 : 0);
5937 }
5938
5939 if (machine->compat_props) {
5940 qdev_prop_register_compat(machine->compat_props);
5941 }
5942 machine->init(ram_size, boot_devices,
5943 kernel_filename, kernel_cmdline, initrd_filename, cpu_model);
5944
5945
5946 for (env = first_cpu; env != NULL; env = env->next_cpu) {
5947 for (i = 0; i < nb_numa_nodes; i++) {
5948 if (node_cpumask[i] & (1 << env->cpu_index)) {
5949 env->numa_node = i;
5950 }
5951 }
5952 }
5953
5954 current_machine = machine;
5955
5956 /* init USB devices */
5957 if (usb_enabled) {
5958 foreach_device_config(DEV_USB, usb_parse);
5959 }
5960
5961 /* init generic devices */
5962 if (qemu_opts_foreach(&qemu_device_opts, device_init_func, NULL, 1) != 0)
5963 exit(1);
5964
5965 if (!display_state)
5966 dumb_display_init();
5967 /* just use the first displaystate for the moment */
5968 ds = display_state;
5969
5970 if (display_type == DT_DEFAULT) {
5971 #if defined(CONFIG_SDL) || defined(CONFIG_COCOA)
5972 display_type = DT_SDL;
5973 #else
5974 display_type = DT_VNC;
5975 vnc_display = "localhost:0,to=99";
5976 show_vnc_port = 1;
5977 #endif
5978 }
5979
5980
5981 switch (display_type) {
5982 case DT_NOGRAPHIC:
5983 break;
5984 #if defined(CONFIG_CURSES)
5985 case DT_CURSES:
5986 curses_display_init(ds, full_screen);
5987 break;
5988 #endif
5989 #if defined(CONFIG_SDL)
5990 case DT_SDL:
5991 sdl_display_init(ds, full_screen, no_frame);
5992 break;
5993 #elif defined(CONFIG_COCOA)
5994 case DT_SDL:
5995 cocoa_display_init(ds, full_screen);
5996 break;
5997 #endif
5998 case DT_VNC:
5999 vnc_display_init(ds);
6000 if (vnc_display_open(ds, vnc_display) < 0)
6001 exit(1);
6002
6003 if (show_vnc_port) {
6004 printf("VNC server running on `%s'\n", vnc_display_local_addr(ds));
6005 }
6006 break;
6007 default:
6008 break;
6009 }
6010 dpy_resize(ds);
6011
6012 dcl = ds->listeners;
6013 while (dcl != NULL) {
6014 if (dcl->dpy_refresh != NULL) {
6015 ds->gui_timer = qemu_new_timer(rt_clock, gui_update, ds);
6016 qemu_mod_timer(ds->gui_timer, qemu_get_clock(rt_clock));
6017 }
6018 dcl = dcl->next;
6019 }
6020
6021 if (display_type == DT_NOGRAPHIC || display_type == DT_VNC) {
6022 nographic_timer = qemu_new_timer(rt_clock, nographic_update, NULL);
6023 qemu_mod_timer(nographic_timer, qemu_get_clock(rt_clock));
6024 }
6025
6026 text_consoles_set_display(display_state);
6027 qemu_chr_initial_reset();
6028
6029 if (monitor_device && monitor_hd)
6030 monitor_init(monitor_hd, MONITOR_USE_READLINE | MONITOR_IS_DEFAULT);
6031
6032 for(i = 0; i < MAX_SERIAL_PORTS; i++) {
6033 const char *devname = serial_devices[i];
6034 if (devname && strcmp(devname, "none")) {
6035 if (strstart(devname, "vc", 0))
6036 qemu_chr_printf(serial_hds[i], "serial%d console\r\n", i);
6037 }
6038 }
6039
6040 for(i = 0; i < MAX_PARALLEL_PORTS; i++) {
6041 const char *devname = parallel_devices[i];
6042 if (devname && strcmp(devname, "none")) {
6043 if (strstart(devname, "vc", 0))
6044 qemu_chr_printf(parallel_hds[i], "parallel%d console\r\n", i);
6045 }
6046 }
6047
6048 for(i = 0; i < MAX_VIRTIO_CONSOLES; i++) {
6049 const char *devname = virtio_consoles[i];
6050 if (virtcon_hds[i] && devname) {
6051 if (strstart(devname, "vc", 0))
6052 qemu_chr_printf(virtcon_hds[i], "virtio console%d\r\n", i);
6053 }
6054 }
6055
6056 if (gdbstub_dev && gdbserver_start(gdbstub_dev) < 0) {
6057 fprintf(stderr, "qemu: could not open gdbserver on device '%s'\n",
6058 gdbstub_dev);
6059 exit(1);
6060 }
6061
6062 if (loadvm) {
6063 if (load_vmstate(cur_mon, loadvm) < 0) {
6064 autostart = 0;
6065 }
6066 }
6067
6068 if (incoming) {
6069 qemu_start_incoming_migration(incoming);
6070 } else if (autostart) {
6071 vm_start();
6072 }
6073
6074 #ifndef _WIN32
6075 if (daemonize) {
6076 uint8_t status = 0;
6077 ssize_t len;
6078
6079 again1:
6080 len = write(fds[1], &status, 1);
6081 if (len == -1 && (errno == EINTR))
6082 goto again1;
6083
6084 if (len != 1)
6085 exit(1);
6086
6087 chdir("/");
6088 TFR(fd = open("/dev/null", O_RDWR));
6089 if (fd == -1)
6090 exit(1);
6091 }
6092
6093 if (run_as) {
6094 pwd = getpwnam(run_as);
6095 if (!pwd) {
6096 fprintf(stderr, "User \"%s\" doesn't exist\n", run_as);
6097 exit(1);
6098 }
6099 }
6100
6101 if (chroot_dir) {
6102 if (chroot(chroot_dir) < 0) {
6103 fprintf(stderr, "chroot failed\n");
6104 exit(1);
6105 }
6106 chdir("/");
6107 }
6108
6109 if (run_as) {
6110 if (setgid(pwd->pw_gid) < 0) {
6111 fprintf(stderr, "Failed to setgid(%d)\n", pwd->pw_gid);
6112 exit(1);
6113 }
6114 if (setuid(pwd->pw_uid) < 0) {
6115 fprintf(stderr, "Failed to setuid(%d)\n", pwd->pw_uid);
6116 exit(1);
6117 }
6118 if (setuid(0) != -1) {
6119 fprintf(stderr, "Dropping privileges failed\n");
6120 exit(1);
6121 }
6122 }
6123
6124 if (daemonize) {
6125 dup2(fd, 0);
6126 dup2(fd, 1);
6127 dup2(fd, 2);
6128
6129 close(fd);
6130 }
6131 #endif
6132
6133 main_loop();
6134 quit_timers();
6135 net_cleanup();
6136
6137 return 0;
6138 }