4 * Copyright (c) 2003-2006 Fabrice Bellard
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:
13 * The above copyright notice and this permission notice shall be included in
14 * all copies or substantial portions of the Software.
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
35 #include <sys/times.h>
40 #include <sys/ioctl.h>
41 #include <sys/socket.h>
42 #include <netinet/in.h>
53 #include <linux/if_tun.h>
56 #include <linux/rtc.h>
57 #include <linux/ppdev.h>
62 #if defined(CONFIG_SLIRP)
68 #include <sys/timeb.h>
70 #define getopt_long_only getopt_long
71 #define memalign(align, size) malloc(size)
74 #include "qemu_socket.h"
80 #endif /* CONFIG_SDL */
84 #define main qemu_main
85 #endif /* CONFIG_COCOA */
91 #define DEFAULT_NETWORK_SCRIPT "/etc/qemu-ifup"
93 //#define DEBUG_UNUSED_IOPORT
94 //#define DEBUG_IOPORT
96 #define PHYS_RAM_MAX_SIZE (2047 * 1024 * 1024)
99 #define DEFAULT_RAM_SIZE 144
101 #define DEFAULT_RAM_SIZE 128
104 #define GUI_REFRESH_INTERVAL 30
106 /* Max number of USB devices that can be specified on the commandline. */
107 #define MAX_USB_CMDLINE 8
109 /* XXX: use a two level table to limit memory usage */
110 #define MAX_IOPORTS 65536
112 const char *bios_dir
= CONFIG_QEMU_SHAREDIR
;
113 char phys_ram_file
[1024];
114 void *ioport_opaque
[MAX_IOPORTS
];
115 IOPortReadFunc
*ioport_read_table
[3][MAX_IOPORTS
];
116 IOPortWriteFunc
*ioport_write_table
[3][MAX_IOPORTS
];
117 /* Note: bs_table[MAX_DISKS] is a dummy block driver if none available
118 to store the VM snapshots */
119 BlockDriverState
*bs_table
[MAX_DISKS
+ 1], *fd_table
[MAX_FD
];
120 /* point to the block driver where the snapshots are managed */
121 BlockDriverState
*bs_snapshots
;
124 static DisplayState display_state
;
126 const char* keyboard_layout
= NULL
;
127 int64_t ticks_per_sec
;
128 int boot_device
= 'c';
130 int pit_min_timer_count
= 0;
132 NICInfo nd_table
[MAX_NICS
];
133 QEMUTimer
*gui_timer
;
136 int cirrus_vga_enabled
= 1;
138 int graphic_width
= 1024;
139 int graphic_height
= 768;
141 int graphic_width
= 800;
142 int graphic_height
= 600;
144 int graphic_depth
= 15;
146 CharDriverState
*serial_hds
[MAX_SERIAL_PORTS
];
147 CharDriverState
*parallel_hds
[MAX_PARALLEL_PORTS
];
149 int win2k_install_hack
= 0;
152 static VLANState
*first_vlan
;
154 int vnc_display
= -1;
155 #if defined(TARGET_SPARC)
157 #elif defined(TARGET_I386)
162 int acpi_enabled
= 1;
165 /***********************************************************/
166 /* x86 ISA bus support */
168 target_phys_addr_t isa_mem_base
= 0;
171 uint32_t default_ioport_readb(void *opaque
, uint32_t address
)
173 #ifdef DEBUG_UNUSED_IOPORT
174 fprintf(stderr
, "inb: port=0x%04x\n", address
);
179 void default_ioport_writeb(void *opaque
, uint32_t address
, uint32_t data
)
181 #ifdef DEBUG_UNUSED_IOPORT
182 fprintf(stderr
, "outb: port=0x%04x data=0x%02x\n", address
, data
);
186 /* default is to make two byte accesses */
187 uint32_t default_ioport_readw(void *opaque
, uint32_t address
)
190 data
= ioport_read_table
[0][address
](ioport_opaque
[address
], address
);
191 address
= (address
+ 1) & (MAX_IOPORTS
- 1);
192 data
|= ioport_read_table
[0][address
](ioport_opaque
[address
], address
) << 8;
196 void default_ioport_writew(void *opaque
, uint32_t address
, uint32_t data
)
198 ioport_write_table
[0][address
](ioport_opaque
[address
], address
, data
& 0xff);
199 address
= (address
+ 1) & (MAX_IOPORTS
- 1);
200 ioport_write_table
[0][address
](ioport_opaque
[address
], address
, (data
>> 8) & 0xff);
203 uint32_t default_ioport_readl(void *opaque
, uint32_t address
)
205 #ifdef DEBUG_UNUSED_IOPORT
206 fprintf(stderr
, "inl: port=0x%04x\n", address
);
211 void default_ioport_writel(void *opaque
, uint32_t address
, uint32_t data
)
213 #ifdef DEBUG_UNUSED_IOPORT
214 fprintf(stderr
, "outl: port=0x%04x data=0x%02x\n", address
, data
);
218 void init_ioports(void)
222 for(i
= 0; i
< MAX_IOPORTS
; i
++) {
223 ioport_read_table
[0][i
] = default_ioport_readb
;
224 ioport_write_table
[0][i
] = default_ioport_writeb
;
225 ioport_read_table
[1][i
] = default_ioport_readw
;
226 ioport_write_table
[1][i
] = default_ioport_writew
;
227 ioport_read_table
[2][i
] = default_ioport_readl
;
228 ioport_write_table
[2][i
] = default_ioport_writel
;
232 /* size is the word size in byte */
233 int register_ioport_read(int start
, int length
, int size
,
234 IOPortReadFunc
*func
, void *opaque
)
240 } else if (size
== 2) {
242 } else if (size
== 4) {
245 hw_error("register_ioport_read: invalid size");
248 for(i
= start
; i
< start
+ length
; i
+= size
) {
249 ioport_read_table
[bsize
][i
] = func
;
250 if (ioport_opaque
[i
] != NULL
&& ioport_opaque
[i
] != opaque
)
251 hw_error("register_ioport_read: invalid opaque");
252 ioport_opaque
[i
] = opaque
;
257 /* size is the word size in byte */
258 int register_ioport_write(int start
, int length
, int size
,
259 IOPortWriteFunc
*func
, void *opaque
)
265 } else if (size
== 2) {
267 } else if (size
== 4) {
270 hw_error("register_ioport_write: invalid size");
273 for(i
= start
; i
< start
+ length
; i
+= size
) {
274 ioport_write_table
[bsize
][i
] = func
;
275 if (ioport_opaque
[i
] != NULL
&& ioport_opaque
[i
] != opaque
)
276 hw_error("register_ioport_read: invalid opaque");
277 ioport_opaque
[i
] = opaque
;
282 void isa_unassign_ioport(int start
, int length
)
286 for(i
= start
; i
< start
+ length
; i
++) {
287 ioport_read_table
[0][i
] = default_ioport_readb
;
288 ioport_read_table
[1][i
] = default_ioport_readw
;
289 ioport_read_table
[2][i
] = default_ioport_readl
;
291 ioport_write_table
[0][i
] = default_ioport_writeb
;
292 ioport_write_table
[1][i
] = default_ioport_writew
;
293 ioport_write_table
[2][i
] = default_ioport_writel
;
297 /***********************************************************/
299 void pstrcpy(char *buf
, int buf_size
, const char *str
)
309 if (c
== 0 || q
>= buf
+ buf_size
- 1)
316 /* strcat and truncate. */
317 char *pstrcat(char *buf
, int buf_size
, const char *s
)
322 pstrcpy(buf
+ len
, buf_size
- len
, s
);
326 int strstart(const char *str
, const char *val
, const char **ptr
)
342 void cpu_outb(CPUState
*env
, int addr
, int val
)
345 if (loglevel
& CPU_LOG_IOPORT
)
346 fprintf(logfile
, "outb: %04x %02x\n", addr
, val
);
348 ioport_write_table
[0][addr
](ioport_opaque
[addr
], addr
, val
);
351 env
->last_io_time
= cpu_get_time_fast();
355 void cpu_outw(CPUState
*env
, int addr
, int val
)
358 if (loglevel
& CPU_LOG_IOPORT
)
359 fprintf(logfile
, "outw: %04x %04x\n", addr
, val
);
361 ioport_write_table
[1][addr
](ioport_opaque
[addr
], addr
, val
);
364 env
->last_io_time
= cpu_get_time_fast();
368 void cpu_outl(CPUState
*env
, int addr
, int val
)
371 if (loglevel
& CPU_LOG_IOPORT
)
372 fprintf(logfile
, "outl: %04x %08x\n", addr
, val
);
374 ioport_write_table
[2][addr
](ioport_opaque
[addr
], addr
, val
);
377 env
->last_io_time
= cpu_get_time_fast();
381 int cpu_inb(CPUState
*env
, int addr
)
384 val
= ioport_read_table
[0][addr
](ioport_opaque
[addr
], addr
);
386 if (loglevel
& CPU_LOG_IOPORT
)
387 fprintf(logfile
, "inb : %04x %02x\n", addr
, val
);
391 env
->last_io_time
= cpu_get_time_fast();
396 int cpu_inw(CPUState
*env
, int addr
)
399 val
= ioport_read_table
[1][addr
](ioport_opaque
[addr
], addr
);
401 if (loglevel
& CPU_LOG_IOPORT
)
402 fprintf(logfile
, "inw : %04x %04x\n", addr
, val
);
406 env
->last_io_time
= cpu_get_time_fast();
411 int cpu_inl(CPUState
*env
, int addr
)
414 val
= ioport_read_table
[2][addr
](ioport_opaque
[addr
], addr
);
416 if (loglevel
& CPU_LOG_IOPORT
)
417 fprintf(logfile
, "inl : %04x %08x\n", addr
, val
);
421 env
->last_io_time
= cpu_get_time_fast();
426 /***********************************************************/
427 void hw_error(const char *fmt
, ...)
433 fprintf(stderr
, "qemu: hardware error: ");
434 vfprintf(stderr
, fmt
, ap
);
435 fprintf(stderr
, "\n");
436 for(env
= first_cpu
; env
!= NULL
; env
= env
->next_cpu
) {
437 fprintf(stderr
, "CPU #%d:\n", env
->cpu_index
);
439 cpu_dump_state(env
, stderr
, fprintf
, X86_DUMP_FPU
);
441 cpu_dump_state(env
, stderr
, fprintf
, 0);
448 /***********************************************************/
451 static QEMUPutKBDEvent
*qemu_put_kbd_event
;
452 static void *qemu_put_kbd_event_opaque
;
453 static QEMUPutMouseEvent
*qemu_put_mouse_event
;
454 static void *qemu_put_mouse_event_opaque
;
455 static int qemu_put_mouse_event_absolute
;
457 void qemu_add_kbd_event_handler(QEMUPutKBDEvent
*func
, void *opaque
)
459 qemu_put_kbd_event_opaque
= opaque
;
460 qemu_put_kbd_event
= func
;
463 void qemu_add_mouse_event_handler(QEMUPutMouseEvent
*func
, void *opaque
, int absolute
)
465 qemu_put_mouse_event_opaque
= opaque
;
466 qemu_put_mouse_event
= func
;
467 qemu_put_mouse_event_absolute
= absolute
;
470 void kbd_put_keycode(int keycode
)
472 if (qemu_put_kbd_event
) {
473 qemu_put_kbd_event(qemu_put_kbd_event_opaque
, keycode
);
477 void kbd_mouse_event(int dx
, int dy
, int dz
, int buttons_state
)
479 if (qemu_put_mouse_event
) {
480 qemu_put_mouse_event(qemu_put_mouse_event_opaque
,
481 dx
, dy
, dz
, buttons_state
);
485 int kbd_mouse_is_absolute(void)
487 return qemu_put_mouse_event_absolute
;
490 /* compute with 96 bit intermediate result: (a*b)/c */
491 uint64_t muldiv64(uint64_t a
, uint32_t b
, uint32_t c
)
496 #ifdef WORDS_BIGENDIAN
506 rl
= (uint64_t)u
.l
.low
* (uint64_t)b
;
507 rh
= (uint64_t)u
.l
.high
* (uint64_t)b
;
510 res
.l
.low
= (((rh
% c
) << 32) + (rl
& 0xffffffff)) / c
;
514 /***********************************************************/
515 /* real time host monotonic timer */
517 #define QEMU_TIMER_BASE 1000000000LL
521 static int64_t clock_freq
;
523 static void init_get_clock(void)
527 ret
= QueryPerformanceFrequency(&freq
);
529 fprintf(stderr
, "Could not calibrate ticks\n");
532 clock_freq
= freq
.QuadPart
;
535 static int64_t get_clock(void)
538 QueryPerformanceCounter(&ti
);
539 return muldiv64(ti
.QuadPart
, QEMU_TIMER_BASE
, clock_freq
);
544 static int use_rt_clock
;
546 static void init_get_clock(void)
549 #if defined(__linux__)
552 if (clock_gettime(CLOCK_MONOTONIC
, &ts
) == 0) {
559 static int64_t get_clock(void)
561 #if defined(__linux__)
564 clock_gettime(CLOCK_MONOTONIC
, &ts
);
565 return ts
.tv_sec
* 1000000000LL + ts
.tv_nsec
;
569 /* XXX: using gettimeofday leads to problems if the date
570 changes, so it should be avoided. */
572 gettimeofday(&tv
, NULL
);
573 return tv
.tv_sec
* 1000000000LL + (tv
.tv_usec
* 1000);
579 /***********************************************************/
580 /* guest cycle counter */
582 static int64_t cpu_ticks_prev
;
583 static int64_t cpu_ticks_offset
;
584 static int64_t cpu_clock_offset
;
585 static int cpu_ticks_enabled
;
587 /* return the host CPU cycle counter and handle stop/restart */
588 int64_t cpu_get_ticks(void)
590 if (!cpu_ticks_enabled
) {
591 return cpu_ticks_offset
;
594 ticks
= cpu_get_real_ticks();
595 if (cpu_ticks_prev
> ticks
) {
596 /* Note: non increasing ticks may happen if the host uses
598 cpu_ticks_offset
+= cpu_ticks_prev
- ticks
;
600 cpu_ticks_prev
= ticks
;
601 return ticks
+ cpu_ticks_offset
;
605 /* return the host CPU monotonic timer and handle stop/restart */
606 static int64_t cpu_get_clock(void)
609 if (!cpu_ticks_enabled
) {
610 return cpu_clock_offset
;
613 return ti
+ cpu_clock_offset
;
617 /* enable cpu_get_ticks() */
618 void cpu_enable_ticks(void)
620 if (!cpu_ticks_enabled
) {
621 cpu_ticks_offset
-= cpu_get_real_ticks();
622 cpu_clock_offset
-= get_clock();
623 cpu_ticks_enabled
= 1;
627 /* disable cpu_get_ticks() : the clock is stopped. You must not call
628 cpu_get_ticks() after that. */
629 void cpu_disable_ticks(void)
631 if (cpu_ticks_enabled
) {
632 cpu_ticks_offset
= cpu_get_ticks();
633 cpu_clock_offset
= cpu_get_clock();
634 cpu_ticks_enabled
= 0;
638 /***********************************************************/
641 #define QEMU_TIMER_REALTIME 0
642 #define QEMU_TIMER_VIRTUAL 1
646 /* XXX: add frequency */
654 struct QEMUTimer
*next
;
660 static QEMUTimer
*active_timers
[2];
662 static MMRESULT timerID
;
663 static HANDLE host_alarm
= NULL
;
664 static unsigned int period
= 1;
666 /* frequency of the times() clock tick */
667 static int timer_freq
;
670 QEMUClock
*qemu_new_clock(int type
)
673 clock
= qemu_mallocz(sizeof(QEMUClock
));
680 QEMUTimer
*qemu_new_timer(QEMUClock
*clock
, QEMUTimerCB
*cb
, void *opaque
)
684 ts
= qemu_mallocz(sizeof(QEMUTimer
));
691 void qemu_free_timer(QEMUTimer
*ts
)
696 /* stop a timer, but do not dealloc it */
697 void qemu_del_timer(QEMUTimer
*ts
)
701 /* NOTE: this code must be signal safe because
702 qemu_timer_expired() can be called from a signal. */
703 pt
= &active_timers
[ts
->clock
->type
];
716 /* modify the current timer so that it will be fired when current_time
717 >= expire_time. The corresponding callback will be called. */
718 void qemu_mod_timer(QEMUTimer
*ts
, int64_t expire_time
)
724 /* add the timer in the sorted list */
725 /* NOTE: this code must be signal safe because
726 qemu_timer_expired() can be called from a signal. */
727 pt
= &active_timers
[ts
->clock
->type
];
732 if (t
->expire_time
> expire_time
)
736 ts
->expire_time
= expire_time
;
741 int qemu_timer_pending(QEMUTimer
*ts
)
744 for(t
= active_timers
[ts
->clock
->type
]; t
!= NULL
; t
= t
->next
) {
751 static inline int qemu_timer_expired(QEMUTimer
*timer_head
, int64_t current_time
)
755 return (timer_head
->expire_time
<= current_time
);
758 static void qemu_run_timers(QEMUTimer
**ptimer_head
, int64_t current_time
)
764 if (!ts
|| ts
->expire_time
> current_time
)
766 /* remove timer from the list before calling the callback */
767 *ptimer_head
= ts
->next
;
770 /* run the callback (the timer list can be modified) */
775 int64_t qemu_get_clock(QEMUClock
*clock
)
777 switch(clock
->type
) {
778 case QEMU_TIMER_REALTIME
:
779 return get_clock() / 1000000;
781 case QEMU_TIMER_VIRTUAL
:
782 return cpu_get_clock();
786 static void init_timers(void)
789 ticks_per_sec
= QEMU_TIMER_BASE
;
790 rt_clock
= qemu_new_clock(QEMU_TIMER_REALTIME
);
791 vm_clock
= qemu_new_clock(QEMU_TIMER_VIRTUAL
);
795 void qemu_put_timer(QEMUFile
*f
, QEMUTimer
*ts
)
797 uint64_t expire_time
;
799 if (qemu_timer_pending(ts
)) {
800 expire_time
= ts
->expire_time
;
804 qemu_put_be64(f
, expire_time
);
807 void qemu_get_timer(QEMUFile
*f
, QEMUTimer
*ts
)
809 uint64_t expire_time
;
811 expire_time
= qemu_get_be64(f
);
812 if (expire_time
!= -1) {
813 qemu_mod_timer(ts
, expire_time
);
819 static void timer_save(QEMUFile
*f
, void *opaque
)
821 if (cpu_ticks_enabled
) {
822 hw_error("cannot save state if virtual timers are running");
824 qemu_put_be64s(f
, &cpu_ticks_offset
);
825 qemu_put_be64s(f
, &ticks_per_sec
);
826 qemu_put_be64s(f
, &cpu_clock_offset
);
829 static int timer_load(QEMUFile
*f
, void *opaque
, int version_id
)
831 if (version_id
!= 1 && version_id
!= 2)
833 if (cpu_ticks_enabled
) {
836 qemu_get_be64s(f
, &cpu_ticks_offset
);
837 qemu_get_be64s(f
, &ticks_per_sec
);
838 if (version_id
== 2) {
839 qemu_get_be64s(f
, &cpu_clock_offset
);
845 void CALLBACK
host_alarm_handler(UINT uTimerID
, UINT uMsg
,
846 DWORD_PTR dwUser
, DWORD_PTR dw1
, DWORD_PTR dw2
)
848 static void host_alarm_handler(int host_signum
)
852 #define DISP_FREQ 1000
854 static int64_t delta_min
= INT64_MAX
;
855 static int64_t delta_max
, delta_cum
, last_clock
, delta
, ti
;
857 ti
= qemu_get_clock(vm_clock
);
858 if (last_clock
!= 0) {
859 delta
= ti
- last_clock
;
860 if (delta
< delta_min
)
862 if (delta
> delta_max
)
865 if (++count
== DISP_FREQ
) {
866 printf("timer: min=%" PRId64
" us max=%" PRId64
" us avg=%" PRId64
" us avg_freq=%0.3f Hz\n",
867 muldiv64(delta_min
, 1000000, ticks_per_sec
),
868 muldiv64(delta_max
, 1000000, ticks_per_sec
),
869 muldiv64(delta_cum
, 1000000 / DISP_FREQ
, ticks_per_sec
),
870 (double)ticks_per_sec
/ ((double)delta_cum
/ DISP_FREQ
));
872 delta_min
= INT64_MAX
;
880 if (qemu_timer_expired(active_timers
[QEMU_TIMER_VIRTUAL
],
881 qemu_get_clock(vm_clock
)) ||
882 qemu_timer_expired(active_timers
[QEMU_TIMER_REALTIME
],
883 qemu_get_clock(rt_clock
))) {
885 SetEvent(host_alarm
);
887 CPUState
*env
= cpu_single_env
;
889 /* stop the currently executing cpu because a timer occured */
890 cpu_interrupt(env
, CPU_INTERRUPT_EXIT
);
892 if (env
->kqemu_enabled
) {
893 kqemu_cpu_interrupt(env
);
902 #if defined(__linux__)
904 #define RTC_FREQ 1024
908 static int start_rtc_timer(void)
910 rtc_fd
= open("/dev/rtc", O_RDONLY
);
913 if (ioctl(rtc_fd
, RTC_IRQP_SET
, RTC_FREQ
) < 0) {
914 fprintf(stderr
, "Could not configure '/dev/rtc' to have a 1024 Hz timer. This is not a fatal\n"
915 "error, but for better emulation accuracy either use a 2.6 host Linux kernel or\n"
916 "type 'echo 1024 > /proc/sys/dev/rtc/max-user-freq' as root.\n");
919 if (ioctl(rtc_fd
, RTC_PIE_ON
, 0) < 0) {
924 pit_min_timer_count
= PIT_FREQ
/ RTC_FREQ
;
930 static int start_rtc_timer(void)
935 #endif /* !defined(__linux__) */
937 #endif /* !defined(_WIN32) */
939 static void init_timer_alarm(void)
946 ZeroMemory(&tc
, sizeof(TIMECAPS
));
947 timeGetDevCaps(&tc
, sizeof(TIMECAPS
));
948 if (period
< tc
.wPeriodMin
)
949 period
= tc
.wPeriodMin
;
950 timeBeginPeriod(period
);
951 timerID
= timeSetEvent(1, // interval (ms)
952 period
, // resolution
953 host_alarm_handler
, // function
954 (DWORD
)&count
, // user parameter
955 TIME_PERIODIC
| TIME_CALLBACK_FUNCTION
);
957 perror("failed timer alarm");
960 host_alarm
= CreateEvent(NULL
, FALSE
, FALSE
, NULL
);
962 perror("failed CreateEvent");
965 qemu_add_wait_object(host_alarm
, NULL
, NULL
);
967 pit_min_timer_count
= ((uint64_t)10000 * PIT_FREQ
) / 1000000;
970 struct sigaction act
;
971 struct itimerval itv
;
973 /* get times() syscall frequency */
974 timer_freq
= sysconf(_SC_CLK_TCK
);
977 sigfillset(&act
.sa_mask
);
979 #if defined (TARGET_I386) && defined(USE_CODE_COPY)
980 act
.sa_flags
|= SA_ONSTACK
;
982 act
.sa_handler
= host_alarm_handler
;
983 sigaction(SIGALRM
, &act
, NULL
);
985 itv
.it_interval
.tv_sec
= 0;
986 itv
.it_interval
.tv_usec
= 999; /* for i386 kernel 2.6 to get 1 ms */
987 itv
.it_value
.tv_sec
= 0;
988 itv
.it_value
.tv_usec
= 10 * 1000;
989 setitimer(ITIMER_REAL
, &itv
, NULL
);
990 /* we probe the tick duration of the kernel to inform the user if
991 the emulated kernel requested a too high timer frequency */
992 getitimer(ITIMER_REAL
, &itv
);
994 #if defined(__linux__)
995 /* XXX: force /dev/rtc usage because even 2.6 kernels may not
996 have timers with 1 ms resolution. The correct solution will
997 be to use the POSIX real time timers available in recent
999 if (itv
.it_interval
.tv_usec
> 1000 || 1) {
1000 /* try to use /dev/rtc to have a faster timer */
1001 if (start_rtc_timer() < 0)
1003 /* disable itimer */
1004 itv
.it_interval
.tv_sec
= 0;
1005 itv
.it_interval
.tv_usec
= 0;
1006 itv
.it_value
.tv_sec
= 0;
1007 itv
.it_value
.tv_usec
= 0;
1008 setitimer(ITIMER_REAL
, &itv
, NULL
);
1011 sigaction(SIGIO
, &act
, NULL
);
1012 fcntl(rtc_fd
, F_SETFL
, O_ASYNC
);
1013 fcntl(rtc_fd
, F_SETOWN
, getpid());
1015 #endif /* defined(__linux__) */
1018 pit_min_timer_count
= ((uint64_t)itv
.it_interval
.tv_usec
*
1019 PIT_FREQ
) / 1000000;
1025 void quit_timers(void)
1028 timeKillEvent(timerID
);
1029 timeEndPeriod(period
);
1031 CloseHandle(host_alarm
);
1037 /***********************************************************/
1038 /* character device */
1040 int qemu_chr_write(CharDriverState
*s
, const uint8_t *buf
, int len
)
1042 return s
->chr_write(s
, buf
, len
);
1045 int qemu_chr_ioctl(CharDriverState
*s
, int cmd
, void *arg
)
1049 return s
->chr_ioctl(s
, cmd
, arg
);
1052 void qemu_chr_printf(CharDriverState
*s
, const char *fmt
, ...)
1057 vsnprintf(buf
, sizeof(buf
), fmt
, ap
);
1058 qemu_chr_write(s
, buf
, strlen(buf
));
1062 void qemu_chr_send_event(CharDriverState
*s
, int event
)
1064 if (s
->chr_send_event
)
1065 s
->chr_send_event(s
, event
);
1068 void qemu_chr_add_read_handler(CharDriverState
*s
,
1069 IOCanRWHandler
*fd_can_read
,
1070 IOReadHandler
*fd_read
, void *opaque
)
1072 s
->chr_add_read_handler(s
, fd_can_read
, fd_read
, opaque
);
1075 void qemu_chr_add_event_handler(CharDriverState
*s
, IOEventHandler
*chr_event
)
1077 s
->chr_event
= chr_event
;
1080 static int null_chr_write(CharDriverState
*chr
, const uint8_t *buf
, int len
)
1085 static void null_chr_add_read_handler(CharDriverState
*chr
,
1086 IOCanRWHandler
*fd_can_read
,
1087 IOReadHandler
*fd_read
, void *opaque
)
1091 CharDriverState
*qemu_chr_open_null(void)
1093 CharDriverState
*chr
;
1095 chr
= qemu_mallocz(sizeof(CharDriverState
));
1098 chr
->chr_write
= null_chr_write
;
1099 chr
->chr_add_read_handler
= null_chr_add_read_handler
;
1105 static void socket_cleanup(void)
1110 static int socket_init(void)
1115 ret
= WSAStartup(MAKEWORD(2,2), &Data
);
1117 err
= WSAGetLastError();
1118 fprintf(stderr
, "WSAStartup: %d\n", err
);
1121 atexit(socket_cleanup
);
1125 static int send_all(int fd
, const uint8_t *buf
, int len1
)
1131 ret
= send(fd
, buf
, len
, 0);
1134 errno
= WSAGetLastError();
1135 if (errno
!= WSAEWOULDBLOCK
) {
1138 } else if (ret
== 0) {
1148 void socket_set_nonblock(int fd
)
1150 unsigned long opt
= 1;
1151 ioctlsocket(fd
, FIONBIO
, &opt
);
1156 static int unix_write(int fd
, const uint8_t *buf
, int len1
)
1162 ret
= write(fd
, buf
, len
);
1164 if (errno
!= EINTR
&& errno
!= EAGAIN
)
1166 } else if (ret
== 0) {
1176 static inline int send_all(int fd
, const uint8_t *buf
, int len1
)
1178 return unix_write(fd
, buf
, len1
);
1181 void socket_set_nonblock(int fd
)
1183 fcntl(fd
, F_SETFL
, O_NONBLOCK
);
1185 #endif /* !_WIN32 */
1191 IOCanRWHandler
*fd_can_read
;
1192 IOReadHandler
*fd_read
;
1197 #define STDIO_MAX_CLIENTS 2
1199 static int stdio_nb_clients
;
1200 static CharDriverState
*stdio_clients
[STDIO_MAX_CLIENTS
];
1202 static int fd_chr_write(CharDriverState
*chr
, const uint8_t *buf
, int len
)
1204 FDCharDriver
*s
= chr
->opaque
;
1205 return unix_write(s
->fd_out
, buf
, len
);
1208 static int fd_chr_read_poll(void *opaque
)
1210 CharDriverState
*chr
= opaque
;
1211 FDCharDriver
*s
= chr
->opaque
;
1213 s
->max_size
= s
->fd_can_read(s
->fd_opaque
);
1217 static void fd_chr_read(void *opaque
)
1219 CharDriverState
*chr
= opaque
;
1220 FDCharDriver
*s
= chr
->opaque
;
1225 if (len
> s
->max_size
)
1229 size
= read(s
->fd_in
, buf
, len
);
1231 s
->fd_read(s
->fd_opaque
, buf
, size
);
1235 static void fd_chr_add_read_handler(CharDriverState
*chr
,
1236 IOCanRWHandler
*fd_can_read
,
1237 IOReadHandler
*fd_read
, void *opaque
)
1239 FDCharDriver
*s
= chr
->opaque
;
1241 if (s
->fd_in
>= 0) {
1242 s
->fd_can_read
= fd_can_read
;
1243 s
->fd_read
= fd_read
;
1244 s
->fd_opaque
= opaque
;
1245 if (nographic
&& s
->fd_in
== 0) {
1247 qemu_set_fd_handler2(s
->fd_in
, fd_chr_read_poll
,
1248 fd_chr_read
, NULL
, chr
);
1253 /* open a character device to a unix fd */
1254 CharDriverState
*qemu_chr_open_fd(int fd_in
, int fd_out
)
1256 CharDriverState
*chr
;
1259 chr
= qemu_mallocz(sizeof(CharDriverState
));
1262 s
= qemu_mallocz(sizeof(FDCharDriver
));
1270 chr
->chr_write
= fd_chr_write
;
1271 chr
->chr_add_read_handler
= fd_chr_add_read_handler
;
1275 CharDriverState
*qemu_chr_open_file_out(const char *file_out
)
1279 fd_out
= open(file_out
, O_WRONLY
| O_TRUNC
| O_CREAT
| O_BINARY
, 0666);
1282 return qemu_chr_open_fd(-1, fd_out
);
1285 CharDriverState
*qemu_chr_open_pipe(const char *filename
)
1289 fd
= open(filename
, O_RDWR
| O_BINARY
);
1292 return qemu_chr_open_fd(fd
, fd
);
1296 /* for STDIO, we handle the case where several clients use it
1299 #define TERM_ESCAPE 0x01 /* ctrl-a is used for escape */
1301 #define TERM_FIFO_MAX_SIZE 1
1303 static int term_got_escape
, client_index
;
1304 static uint8_t term_fifo
[TERM_FIFO_MAX_SIZE
];
1305 static int term_fifo_size
;
1306 static int term_timestamps
;
1307 static int64_t term_timestamps_start
;
1309 void term_print_help(void)
1312 "C-a h print this help\n"
1313 "C-a x exit emulator\n"
1314 "C-a s save disk data back to file (if -snapshot)\n"
1315 "C-a b send break (magic sysrq)\n"
1316 "C-a t toggle console timestamps\n"
1317 "C-a c switch between console and monitor\n"
1318 "C-a C-a send C-a\n"
1322 /* called when a char is received */
1323 static void stdio_received_byte(int ch
)
1325 if (term_got_escape
) {
1326 term_got_escape
= 0;
1337 for (i
= 0; i
< MAX_DISKS
; i
++) {
1339 bdrv_commit(bs_table
[i
]);
1344 if (client_index
< stdio_nb_clients
) {
1345 CharDriverState
*chr
;
1348 chr
= stdio_clients
[client_index
];
1350 chr
->chr_event(s
->fd_opaque
, CHR_EVENT_BREAK
);
1355 if (client_index
>= stdio_nb_clients
)
1357 if (client_index
== 0) {
1358 /* send a new line in the monitor to get the prompt */
1364 term_timestamps
= !term_timestamps
;
1365 term_timestamps_start
= -1;
1370 } else if (ch
== TERM_ESCAPE
) {
1371 term_got_escape
= 1;
1374 if (client_index
< stdio_nb_clients
) {
1376 CharDriverState
*chr
;
1379 chr
= stdio_clients
[client_index
];
1381 if (s
->fd_can_read(s
->fd_opaque
) > 0) {
1383 s
->fd_read(s
->fd_opaque
, buf
, 1);
1384 } else if (term_fifo_size
== 0) {
1385 term_fifo
[term_fifo_size
++] = ch
;
1391 static int stdio_read_poll(void *opaque
)
1393 CharDriverState
*chr
;
1396 if (client_index
< stdio_nb_clients
) {
1397 chr
= stdio_clients
[client_index
];
1399 /* try to flush the queue if needed */
1400 if (term_fifo_size
!= 0 && s
->fd_can_read(s
->fd_opaque
) > 0) {
1401 s
->fd_read(s
->fd_opaque
, term_fifo
, 1);
1404 /* see if we can absorb more chars */
1405 if (term_fifo_size
== 0)
1414 static void stdio_read(void *opaque
)
1419 size
= read(0, buf
, 1);
1421 stdio_received_byte(buf
[0]);
1424 static int stdio_write(CharDriverState
*chr
, const uint8_t *buf
, int len
)
1426 FDCharDriver
*s
= chr
->opaque
;
1427 if (!term_timestamps
) {
1428 return unix_write(s
->fd_out
, buf
, len
);
1433 for(i
= 0; i
< len
; i
++) {
1434 unix_write(s
->fd_out
, buf
+ i
, 1);
1435 if (buf
[i
] == '\n') {
1440 if (term_timestamps_start
== -1)
1441 term_timestamps_start
= ti
;
1442 ti
-= term_timestamps_start
;
1443 secs
= ti
/ 1000000000;
1444 snprintf(buf1
, sizeof(buf1
),
1445 "[%02d:%02d:%02d.%03d] ",
1449 (int)((ti
/ 1000000) % 1000));
1450 unix_write(s
->fd_out
, buf1
, strlen(buf1
));
1457 /* init terminal so that we can grab keys */
1458 static struct termios oldtty
;
1459 static int old_fd0_flags
;
1461 static void term_exit(void)
1463 tcsetattr (0, TCSANOW
, &oldtty
);
1464 fcntl(0, F_SETFL
, old_fd0_flags
);
1467 static void term_init(void)
1471 tcgetattr (0, &tty
);
1473 old_fd0_flags
= fcntl(0, F_GETFL
);
1475 tty
.c_iflag
&= ~(IGNBRK
|BRKINT
|PARMRK
|ISTRIP
1476 |INLCR
|IGNCR
|ICRNL
|IXON
);
1477 tty
.c_oflag
|= OPOST
;
1478 tty
.c_lflag
&= ~(ECHO
|ECHONL
|ICANON
|IEXTEN
);
1479 /* if graphical mode, we allow Ctrl-C handling */
1481 tty
.c_lflag
&= ~ISIG
;
1482 tty
.c_cflag
&= ~(CSIZE
|PARENB
);
1485 tty
.c_cc
[VTIME
] = 0;
1487 tcsetattr (0, TCSANOW
, &tty
);
1491 fcntl(0, F_SETFL
, O_NONBLOCK
);
1494 CharDriverState
*qemu_chr_open_stdio(void)
1496 CharDriverState
*chr
;
1499 if (stdio_nb_clients
>= STDIO_MAX_CLIENTS
)
1501 chr
= qemu_chr_open_fd(0, 1);
1502 chr
->chr_write
= stdio_write
;
1503 if (stdio_nb_clients
== 0)
1504 qemu_set_fd_handler2(0, stdio_read_poll
, stdio_read
, NULL
, NULL
);
1505 client_index
= stdio_nb_clients
;
1507 if (stdio_nb_clients
!= 0)
1509 chr
= qemu_chr_open_fd(0, 1);
1511 stdio_clients
[stdio_nb_clients
++] = chr
;
1512 if (stdio_nb_clients
== 1) {
1513 /* set the terminal in raw mode */
1519 #if defined(__linux__)
1520 CharDriverState
*qemu_chr_open_pty(void)
1523 char slave_name
[1024];
1524 int master_fd
, slave_fd
;
1526 /* Not satisfying */
1527 if (openpty(&master_fd
, &slave_fd
, slave_name
, NULL
, NULL
) < 0) {
1531 /* Disabling local echo and line-buffered output */
1532 tcgetattr (master_fd
, &tty
);
1533 tty
.c_lflag
&= ~(ECHO
|ICANON
|ISIG
);
1535 tty
.c_cc
[VTIME
] = 0;
1536 tcsetattr (master_fd
, TCSAFLUSH
, &tty
);
1538 fprintf(stderr
, "char device redirected to %s\n", slave_name
);
1539 return qemu_chr_open_fd(master_fd
, master_fd
);
1542 static void tty_serial_init(int fd
, int speed
,
1543 int parity
, int data_bits
, int stop_bits
)
1549 printf("tty_serial_init: speed=%d parity=%c data=%d stop=%d\n",
1550 speed
, parity
, data_bits
, stop_bits
);
1552 tcgetattr (fd
, &tty
);
1594 cfsetispeed(&tty
, spd
);
1595 cfsetospeed(&tty
, spd
);
1597 tty
.c_iflag
&= ~(IGNBRK
|BRKINT
|PARMRK
|ISTRIP
1598 |INLCR
|IGNCR
|ICRNL
|IXON
);
1599 tty
.c_oflag
|= OPOST
;
1600 tty
.c_lflag
&= ~(ECHO
|ECHONL
|ICANON
|IEXTEN
|ISIG
);
1601 tty
.c_cflag
&= ~(CSIZE
|PARENB
|PARODD
|CRTSCTS
);
1622 tty
.c_cflag
|= PARENB
;
1625 tty
.c_cflag
|= PARENB
| PARODD
;
1629 tcsetattr (fd
, TCSANOW
, &tty
);
1632 static int tty_serial_ioctl(CharDriverState
*chr
, int cmd
, void *arg
)
1634 FDCharDriver
*s
= chr
->opaque
;
1637 case CHR_IOCTL_SERIAL_SET_PARAMS
:
1639 QEMUSerialSetParams
*ssp
= arg
;
1640 tty_serial_init(s
->fd_in
, ssp
->speed
, ssp
->parity
,
1641 ssp
->data_bits
, ssp
->stop_bits
);
1644 case CHR_IOCTL_SERIAL_SET_BREAK
:
1646 int enable
= *(int *)arg
;
1648 tcsendbreak(s
->fd_in
, 1);
1657 CharDriverState
*qemu_chr_open_tty(const char *filename
)
1659 CharDriverState
*chr
;
1662 fd
= open(filename
, O_RDWR
| O_NONBLOCK
);
1665 fcntl(fd
, F_SETFL
, O_NONBLOCK
);
1666 tty_serial_init(fd
, 115200, 'N', 8, 1);
1667 chr
= qemu_chr_open_fd(fd
, fd
);
1670 chr
->chr_ioctl
= tty_serial_ioctl
;
1674 static int pp_ioctl(CharDriverState
*chr
, int cmd
, void *arg
)
1676 int fd
= (int)chr
->opaque
;
1680 case CHR_IOCTL_PP_READ_DATA
:
1681 if (ioctl(fd
, PPRDATA
, &b
) < 0)
1683 *(uint8_t *)arg
= b
;
1685 case CHR_IOCTL_PP_WRITE_DATA
:
1686 b
= *(uint8_t *)arg
;
1687 if (ioctl(fd
, PPWDATA
, &b
) < 0)
1690 case CHR_IOCTL_PP_READ_CONTROL
:
1691 if (ioctl(fd
, PPRCONTROL
, &b
) < 0)
1693 *(uint8_t *)arg
= b
;
1695 case CHR_IOCTL_PP_WRITE_CONTROL
:
1696 b
= *(uint8_t *)arg
;
1697 if (ioctl(fd
, PPWCONTROL
, &b
) < 0)
1700 case CHR_IOCTL_PP_READ_STATUS
:
1701 if (ioctl(fd
, PPRSTATUS
, &b
) < 0)
1703 *(uint8_t *)arg
= b
;
1711 CharDriverState
*qemu_chr_open_pp(const char *filename
)
1713 CharDriverState
*chr
;
1716 fd
= open(filename
, O_RDWR
);
1720 if (ioctl(fd
, PPCLAIM
) < 0) {
1725 chr
= qemu_mallocz(sizeof(CharDriverState
));
1730 chr
->opaque
= (void *)fd
;
1731 chr
->chr_write
= null_chr_write
;
1732 chr
->chr_add_read_handler
= null_chr_add_read_handler
;
1733 chr
->chr_ioctl
= pp_ioctl
;
1738 CharDriverState
*qemu_chr_open_pty(void)
1744 #endif /* !defined(_WIN32) */
1748 IOCanRWHandler
*fd_can_read
;
1749 IOReadHandler
*fd_read
;
1752 HANDLE hcom
, hrecv
, hsend
;
1753 OVERLAPPED orecv
, osend
;
1758 #define NSENDBUF 2048
1759 #define NRECVBUF 2048
1760 #define MAXCONNECT 1
1761 #define NTIMEOUT 5000
1763 static int win_chr_poll(void *opaque
);
1764 static int win_chr_pipe_poll(void *opaque
);
1766 static void win_chr_close2(WinCharState
*s
)
1769 CloseHandle(s
->hsend
);
1773 CloseHandle(s
->hrecv
);
1777 CloseHandle(s
->hcom
);
1781 qemu_del_polling_cb(win_chr_pipe_poll
, s
);
1783 qemu_del_polling_cb(win_chr_poll
, s
);
1786 static void win_chr_close(CharDriverState
*chr
)
1788 WinCharState
*s
= chr
->opaque
;
1792 static int win_chr_init(WinCharState
*s
, const char *filename
)
1795 COMMTIMEOUTS cto
= { 0, 0, 0, 0, 0};
1800 s
->hsend
= CreateEvent(NULL
, TRUE
, FALSE
, NULL
);
1802 fprintf(stderr
, "Failed CreateEvent\n");
1805 s
->hrecv
= CreateEvent(NULL
, TRUE
, FALSE
, NULL
);
1807 fprintf(stderr
, "Failed CreateEvent\n");
1811 s
->hcom
= CreateFile(filename
, GENERIC_READ
|GENERIC_WRITE
, 0, NULL
,
1812 OPEN_EXISTING
, FILE_FLAG_OVERLAPPED
, 0);
1813 if (s
->hcom
== INVALID_HANDLE_VALUE
) {
1814 fprintf(stderr
, "Failed CreateFile (%lu)\n", GetLastError());
1819 if (!SetupComm(s
->hcom
, NRECVBUF
, NSENDBUF
)) {
1820 fprintf(stderr
, "Failed SetupComm\n");
1824 ZeroMemory(&comcfg
, sizeof(COMMCONFIG
));
1825 size
= sizeof(COMMCONFIG
);
1826 GetDefaultCommConfig(filename
, &comcfg
, &size
);
1827 comcfg
.dcb
.DCBlength
= sizeof(DCB
);
1828 CommConfigDialog(filename
, NULL
, &comcfg
);
1830 if (!SetCommState(s
->hcom
, &comcfg
.dcb
)) {
1831 fprintf(stderr
, "Failed SetCommState\n");
1835 if (!SetCommMask(s
->hcom
, EV_ERR
)) {
1836 fprintf(stderr
, "Failed SetCommMask\n");
1840 cto
.ReadIntervalTimeout
= MAXDWORD
;
1841 if (!SetCommTimeouts(s
->hcom
, &cto
)) {
1842 fprintf(stderr
, "Failed SetCommTimeouts\n");
1846 if (!ClearCommError(s
->hcom
, &err
, &comstat
)) {
1847 fprintf(stderr
, "Failed ClearCommError\n");
1850 qemu_add_polling_cb(win_chr_poll
, s
);
1858 static int win_chr_write(CharDriverState
*chr
, const uint8_t *buf
, int len1
)
1860 WinCharState
*s
= chr
->opaque
;
1861 DWORD len
, ret
, size
, err
;
1864 ZeroMemory(&s
->osend
, sizeof(s
->osend
));
1865 s
->osend
.hEvent
= s
->hsend
;
1868 ret
= WriteFile(s
->hcom
, buf
, len
, &size
, &s
->osend
);
1870 ret
= WriteFile(s
->hcom
, buf
, len
, &size
, NULL
);
1872 err
= GetLastError();
1873 if (err
== ERROR_IO_PENDING
) {
1874 ret
= GetOverlappedResult(s
->hcom
, &s
->osend
, &size
, TRUE
);
1892 static int win_chr_read_poll(WinCharState
*s
)
1894 s
->max_size
= s
->fd_can_read(s
->win_opaque
);
1898 static void win_chr_readfile(WinCharState
*s
)
1904 ZeroMemory(&s
->orecv
, sizeof(s
->orecv
));
1905 s
->orecv
.hEvent
= s
->hrecv
;
1906 ret
= ReadFile(s
->hcom
, buf
, s
->len
, &size
, &s
->orecv
);
1908 err
= GetLastError();
1909 if (err
== ERROR_IO_PENDING
) {
1910 ret
= GetOverlappedResult(s
->hcom
, &s
->orecv
, &size
, TRUE
);
1915 s
->fd_read(s
->win_opaque
, buf
, size
);
1919 static void win_chr_read(WinCharState
*s
)
1921 if (s
->len
> s
->max_size
)
1922 s
->len
= s
->max_size
;
1926 win_chr_readfile(s
);
1929 static int win_chr_poll(void *opaque
)
1931 WinCharState
*s
= opaque
;
1935 ClearCommError(s
->hcom
, &comerr
, &status
);
1936 if (status
.cbInQue
> 0) {
1937 s
->len
= status
.cbInQue
;
1938 win_chr_read_poll(s
);
1945 static void win_chr_add_read_handler(CharDriverState
*chr
,
1946 IOCanRWHandler
*fd_can_read
,
1947 IOReadHandler
*fd_read
, void *opaque
)
1949 WinCharState
*s
= chr
->opaque
;
1951 s
->fd_can_read
= fd_can_read
;
1952 s
->fd_read
= fd_read
;
1953 s
->win_opaque
= opaque
;
1956 CharDriverState
*qemu_chr_open_win(const char *filename
)
1958 CharDriverState
*chr
;
1961 chr
= qemu_mallocz(sizeof(CharDriverState
));
1964 s
= qemu_mallocz(sizeof(WinCharState
));
1970 chr
->chr_write
= win_chr_write
;
1971 chr
->chr_add_read_handler
= win_chr_add_read_handler
;
1972 chr
->chr_close
= win_chr_close
;
1974 if (win_chr_init(s
, filename
) < 0) {
1982 static int win_chr_pipe_poll(void *opaque
)
1984 WinCharState
*s
= opaque
;
1987 PeekNamedPipe(s
->hcom
, NULL
, 0, NULL
, &size
, NULL
);
1990 win_chr_read_poll(s
);
1997 static int win_chr_pipe_init(WinCharState
*s
, const char *filename
)
2006 s
->hsend
= CreateEvent(NULL
, TRUE
, FALSE
, NULL
);
2008 fprintf(stderr
, "Failed CreateEvent\n");
2011 s
->hrecv
= CreateEvent(NULL
, TRUE
, FALSE
, NULL
);
2013 fprintf(stderr
, "Failed CreateEvent\n");
2017 snprintf(openname
, sizeof(openname
), "\\\\.\\pipe\\%s", filename
);
2018 s
->hcom
= CreateNamedPipe(openname
, PIPE_ACCESS_DUPLEX
| FILE_FLAG_OVERLAPPED
,
2019 PIPE_TYPE_BYTE
| PIPE_READMODE_BYTE
|
2021 MAXCONNECT
, NSENDBUF
, NRECVBUF
, NTIMEOUT
, NULL
);
2022 if (s
->hcom
== INVALID_HANDLE_VALUE
) {
2023 fprintf(stderr
, "Failed CreateNamedPipe (%lu)\n", GetLastError());
2028 ZeroMemory(&ov
, sizeof(ov
));
2029 ov
.hEvent
= CreateEvent(NULL
, TRUE
, FALSE
, NULL
);
2030 ret
= ConnectNamedPipe(s
->hcom
, &ov
);
2032 fprintf(stderr
, "Failed ConnectNamedPipe\n");
2036 ret
= GetOverlappedResult(s
->hcom
, &ov
, &size
, TRUE
);
2038 fprintf(stderr
, "Failed GetOverlappedResult\n");
2040 CloseHandle(ov
.hEvent
);
2047 CloseHandle(ov
.hEvent
);
2050 qemu_add_polling_cb(win_chr_pipe_poll
, s
);
2059 CharDriverState
*qemu_chr_open_win_pipe(const char *filename
)
2061 CharDriverState
*chr
;
2064 chr
= qemu_mallocz(sizeof(CharDriverState
));
2067 s
= qemu_mallocz(sizeof(WinCharState
));
2073 chr
->chr_write
= win_chr_write
;
2074 chr
->chr_add_read_handler
= win_chr_add_read_handler
;
2075 chr
->chr_close
= win_chr_close
;
2077 if (win_chr_pipe_init(s
, filename
) < 0) {
2085 CharDriverState
*qemu_chr_open_win_file(HANDLE fd_out
)
2087 CharDriverState
*chr
;
2090 chr
= qemu_mallocz(sizeof(CharDriverState
));
2093 s
= qemu_mallocz(sizeof(WinCharState
));
2100 chr
->chr_write
= win_chr_write
;
2101 chr
->chr_add_read_handler
= win_chr_add_read_handler
;
2105 CharDriverState
*qemu_chr_open_win_file_out(const char *file_out
)
2109 fd_out
= CreateFile(file_out
, GENERIC_WRITE
, FILE_SHARE_READ
, NULL
,
2110 OPEN_ALWAYS
, FILE_ATTRIBUTE_NORMAL
, NULL
);
2111 if (fd_out
== INVALID_HANDLE_VALUE
)
2114 return qemu_chr_open_win_file(fd_out
);
2118 /***********************************************************/
2119 /* UDP Net console */
2122 IOCanRWHandler
*fd_can_read
;
2123 IOReadHandler
*fd_read
;
2126 struct sockaddr_in daddr
;
2133 static int udp_chr_write(CharDriverState
*chr
, const uint8_t *buf
, int len
)
2135 NetCharDriver
*s
= chr
->opaque
;
2137 return sendto(s
->fd
, buf
, len
, 0,
2138 (struct sockaddr
*)&s
->daddr
, sizeof(struct sockaddr_in
));
2141 static int udp_chr_read_poll(void *opaque
)
2143 CharDriverState
*chr
= opaque
;
2144 NetCharDriver
*s
= chr
->opaque
;
2146 s
->max_size
= s
->fd_can_read(s
->fd_opaque
);
2148 /* If there were any stray characters in the queue process them
2151 while (s
->max_size
> 0 && s
->bufptr
< s
->bufcnt
) {
2152 s
->fd_read(s
->fd_opaque
, &s
->buf
[s
->bufptr
], 1);
2154 s
->max_size
= s
->fd_can_read(s
->fd_opaque
);
2159 static void udp_chr_read(void *opaque
)
2161 CharDriverState
*chr
= opaque
;
2162 NetCharDriver
*s
= chr
->opaque
;
2164 if (s
->max_size
== 0)
2166 s
->bufcnt
= recv(s
->fd
, s
->buf
, sizeof(s
->buf
), 0);
2167 s
->bufptr
= s
->bufcnt
;
2172 while (s
->max_size
> 0 && s
->bufptr
< s
->bufcnt
) {
2173 s
->fd_read(s
->fd_opaque
, &s
->buf
[s
->bufptr
], 1);
2175 s
->max_size
= s
->fd_can_read(s
->fd_opaque
);
2179 static void udp_chr_add_read_handler(CharDriverState
*chr
,
2180 IOCanRWHandler
*fd_can_read
,
2181 IOReadHandler
*fd_read
, void *opaque
)
2183 NetCharDriver
*s
= chr
->opaque
;
2186 s
->fd_can_read
= fd_can_read
;
2187 s
->fd_read
= fd_read
;
2188 s
->fd_opaque
= opaque
;
2189 qemu_set_fd_handler2(s
->fd
, udp_chr_read_poll
,
2190 udp_chr_read
, NULL
, chr
);
2194 int parse_host_port(struct sockaddr_in
*saddr
, const char *str
);
2195 int parse_host_src_port(struct sockaddr_in
*haddr
,
2196 struct sockaddr_in
*saddr
,
2199 CharDriverState
*qemu_chr_open_udp(const char *def
)
2201 CharDriverState
*chr
= NULL
;
2202 NetCharDriver
*s
= NULL
;
2204 struct sockaddr_in saddr
;
2206 chr
= qemu_mallocz(sizeof(CharDriverState
));
2209 s
= qemu_mallocz(sizeof(NetCharDriver
));
2213 fd
= socket(PF_INET
, SOCK_DGRAM
, 0);
2215 perror("socket(PF_INET, SOCK_DGRAM)");
2219 if (parse_host_src_port(&s
->daddr
, &saddr
, def
) < 0) {
2220 printf("Could not parse: %s\n", def
);
2224 if (bind(fd
, (struct sockaddr
*)&saddr
, sizeof(saddr
)) < 0)
2234 chr
->chr_write
= udp_chr_write
;
2235 chr
->chr_add_read_handler
= udp_chr_add_read_handler
;
2248 /***********************************************************/
2249 /* TCP Net console */
2252 IOCanRWHandler
*fd_can_read
;
2253 IOReadHandler
*fd_read
;
2261 static void tcp_chr_accept(void *opaque
);
2263 static int tcp_chr_write(CharDriverState
*chr
, const uint8_t *buf
, int len
)
2265 TCPCharDriver
*s
= chr
->opaque
;
2267 return send_all(s
->fd
, buf
, len
);
2269 /* XXX: indicate an error ? */
2274 static int tcp_chr_read_poll(void *opaque
)
2276 CharDriverState
*chr
= opaque
;
2277 TCPCharDriver
*s
= chr
->opaque
;
2280 s
->max_size
= s
->fd_can_read(s
->fd_opaque
);
2285 #define IAC_BREAK 243
2286 static void tcp_chr_process_IAC_bytes(CharDriverState
*chr
,
2288 char *buf
, int *size
)
2290 /* Handle any telnet client's basic IAC options to satisfy char by
2291 * char mode with no echo. All IAC options will be removed from
2292 * the buf and the do_telnetopt variable will be used to track the
2293 * state of the width of the IAC information.
2295 * IAC commands come in sets of 3 bytes with the exception of the
2296 * "IAC BREAK" command and the double IAC.
2302 for (i
= 0; i
< *size
; i
++) {
2303 if (s
->do_telnetopt
> 1) {
2304 if ((unsigned char)buf
[i
] == IAC
&& s
->do_telnetopt
== 2) {
2305 /* Double IAC means send an IAC */
2309 s
->do_telnetopt
= 1;
2311 if ((unsigned char)buf
[i
] == IAC_BREAK
&& s
->do_telnetopt
== 2) {
2312 /* Handle IAC break commands by sending a serial break */
2313 chr
->chr_event(s
->fd_opaque
, CHR_EVENT_BREAK
);
2318 if (s
->do_telnetopt
>= 4) {
2319 s
->do_telnetopt
= 1;
2322 if ((unsigned char)buf
[i
] == IAC
) {
2323 s
->do_telnetopt
= 2;
2334 static void tcp_chr_read(void *opaque
)
2336 CharDriverState
*chr
= opaque
;
2337 TCPCharDriver
*s
= chr
->opaque
;
2341 if (!s
->connected
|| s
->max_size
<= 0)
2344 if (len
> s
->max_size
)
2346 size
= recv(s
->fd
, buf
, len
, 0);
2348 /* connection closed */
2350 if (s
->listen_fd
>= 0) {
2351 qemu_set_fd_handler(s
->listen_fd
, tcp_chr_accept
, NULL
, chr
);
2353 qemu_set_fd_handler(s
->fd
, NULL
, NULL
, NULL
);
2356 } else if (size
> 0) {
2357 if (s
->do_telnetopt
)
2358 tcp_chr_process_IAC_bytes(chr
, s
, buf
, &size
);
2360 s
->fd_read(s
->fd_opaque
, buf
, size
);
2364 static void tcp_chr_add_read_handler(CharDriverState
*chr
,
2365 IOCanRWHandler
*fd_can_read
,
2366 IOReadHandler
*fd_read
, void *opaque
)
2368 TCPCharDriver
*s
= chr
->opaque
;
2370 s
->fd_can_read
= fd_can_read
;
2371 s
->fd_read
= fd_read
;
2372 s
->fd_opaque
= opaque
;
2375 static void tcp_chr_connect(void *opaque
)
2377 CharDriverState
*chr
= opaque
;
2378 TCPCharDriver
*s
= chr
->opaque
;
2381 qemu_set_fd_handler2(s
->fd
, tcp_chr_read_poll
,
2382 tcp_chr_read
, NULL
, chr
);
2385 #define IACSET(x,a,b,c) x[0] = a; x[1] = b; x[2] = c;
2386 static void tcp_chr_telnet_init(int fd
)
2389 /* Send the telnet negotion to put telnet in binary, no echo, single char mode */
2390 IACSET(buf
, 0xff, 0xfb, 0x01); /* IAC WILL ECHO */
2391 send(fd
, (char *)buf
, 3, 0);
2392 IACSET(buf
, 0xff, 0xfb, 0x03); /* IAC WILL Suppress go ahead */
2393 send(fd
, (char *)buf
, 3, 0);
2394 IACSET(buf
, 0xff, 0xfb, 0x00); /* IAC WILL Binary */
2395 send(fd
, (char *)buf
, 3, 0);
2396 IACSET(buf
, 0xff, 0xfd, 0x00); /* IAC DO Binary */
2397 send(fd
, (char *)buf
, 3, 0);
2400 static void tcp_chr_accept(void *opaque
)
2402 CharDriverState
*chr
= opaque
;
2403 TCPCharDriver
*s
= chr
->opaque
;
2404 struct sockaddr_in saddr
;
2409 len
= sizeof(saddr
);
2410 fd
= accept(s
->listen_fd
, (struct sockaddr
*)&saddr
, &len
);
2411 if (fd
< 0 && errno
!= EINTR
) {
2413 } else if (fd
>= 0) {
2414 if (s
->do_telnetopt
)
2415 tcp_chr_telnet_init(fd
);
2419 socket_set_nonblock(fd
);
2421 qemu_set_fd_handler(s
->listen_fd
, NULL
, NULL
, NULL
);
2422 tcp_chr_connect(chr
);
2425 static void tcp_chr_close(CharDriverState
*chr
)
2427 TCPCharDriver
*s
= chr
->opaque
;
2430 if (s
->listen_fd
>= 0)
2431 closesocket(s
->listen_fd
);
2435 static CharDriverState
*qemu_chr_open_tcp(const char *host_str
,
2438 CharDriverState
*chr
= NULL
;
2439 TCPCharDriver
*s
= NULL
;
2440 int fd
= -1, ret
, err
, val
;
2442 int is_waitconnect
= 1;
2444 struct sockaddr_in saddr
;
2446 if (parse_host_port(&saddr
, host_str
) < 0)
2450 while((ptr
= strchr(ptr
,','))) {
2452 if (!strncmp(ptr
,"server",6)) {
2454 } else if (!strncmp(ptr
,"nowait",6)) {
2457 printf("Unknown option: %s\n", ptr
);
2464 chr
= qemu_mallocz(sizeof(CharDriverState
));
2467 s
= qemu_mallocz(sizeof(TCPCharDriver
));
2471 fd
= socket(PF_INET
, SOCK_STREAM
, 0);
2475 if (!is_waitconnect
)
2476 socket_set_nonblock(fd
);
2482 /* allow fast reuse */
2484 setsockopt(fd
, SOL_SOCKET
, SO_REUSEADDR
, (const char *)&val
, sizeof(val
));
2486 ret
= bind(fd
, (struct sockaddr
*)&saddr
, sizeof(saddr
));
2489 ret
= listen(fd
, 0);
2493 qemu_set_fd_handler(s
->listen_fd
, tcp_chr_accept
, NULL
, chr
);
2495 s
->do_telnetopt
= 1;
2498 ret
= connect(fd
, (struct sockaddr
*)&saddr
, sizeof(saddr
));
2500 err
= socket_error();
2501 if (err
== EINTR
|| err
== EWOULDBLOCK
) {
2502 } else if (err
== EINPROGRESS
) {
2514 tcp_chr_connect(chr
);
2516 qemu_set_fd_handler(s
->fd
, NULL
, tcp_chr_connect
, chr
);
2520 chr
->chr_write
= tcp_chr_write
;
2521 chr
->chr_add_read_handler
= tcp_chr_add_read_handler
;
2522 chr
->chr_close
= tcp_chr_close
;
2523 if (is_listen
&& is_waitconnect
) {
2524 printf("QEMU waiting for connection on: %s\n", host_str
);
2525 tcp_chr_accept(chr
);
2526 socket_set_nonblock(s
->listen_fd
);
2538 CharDriverState
*qemu_chr_open(const char *filename
)
2542 if (!strcmp(filename
, "vc")) {
2543 return text_console_init(&display_state
);
2544 } else if (!strcmp(filename
, "null")) {
2545 return qemu_chr_open_null();
2547 if (strstart(filename
, "tcp:", &p
)) {
2548 return qemu_chr_open_tcp(p
, 0);
2550 if (strstart(filename
, "telnet:", &p
)) {
2551 return qemu_chr_open_tcp(p
, 1);
2553 if (strstart(filename
, "udp:", &p
)) {
2554 return qemu_chr_open_udp(p
);
2557 if (strstart(filename
, "file:", &p
)) {
2558 return qemu_chr_open_file_out(p
);
2559 } else if (strstart(filename
, "pipe:", &p
)) {
2560 return qemu_chr_open_pipe(p
);
2561 } else if (!strcmp(filename
, "pty")) {
2562 return qemu_chr_open_pty();
2563 } else if (!strcmp(filename
, "stdio")) {
2564 return qemu_chr_open_stdio();
2567 #if defined(__linux__)
2568 if (strstart(filename
, "/dev/parport", NULL
)) {
2569 return qemu_chr_open_pp(filename
);
2571 if (strstart(filename
, "/dev/", NULL
)) {
2572 return qemu_chr_open_tty(filename
);
2576 if (strstart(filename
, "COM", NULL
)) {
2577 return qemu_chr_open_win(filename
);
2579 if (strstart(filename
, "pipe:", &p
)) {
2580 return qemu_chr_open_win_pipe(p
);
2582 if (strstart(filename
, "file:", &p
)) {
2583 return qemu_chr_open_win_file_out(p
);
2591 void qemu_chr_close(CharDriverState
*chr
)
2594 chr
->chr_close(chr
);
2597 /***********************************************************/
2598 /* network device redirectors */
2600 void hex_dump(FILE *f
, const uint8_t *buf
, int size
)
2604 for(i
=0;i
<size
;i
+=16) {
2608 fprintf(f
, "%08x ", i
);
2611 fprintf(f
, " %02x", buf
[i
+j
]);
2616 for(j
=0;j
<len
;j
++) {
2618 if (c
< ' ' || c
> '~')
2620 fprintf(f
, "%c", c
);
2626 static int parse_macaddr(uint8_t *macaddr
, const char *p
)
2629 for(i
= 0; i
< 6; i
++) {
2630 macaddr
[i
] = strtol(p
, (char **)&p
, 16);
2643 static int get_str_sep(char *buf
, int buf_size
, const char **pp
, int sep
)
2648 p1
= strchr(p
, sep
);
2654 if (len
> buf_size
- 1)
2656 memcpy(buf
, p
, len
);
2663 int parse_host_src_port(struct sockaddr_in
*haddr
,
2664 struct sockaddr_in
*saddr
,
2665 const char *input_str
)
2667 char *str
= strdup(input_str
);
2668 char *host_str
= str
;
2673 * Chop off any extra arguments at the end of the string which
2674 * would start with a comma, then fill in the src port information
2675 * if it was provided else use the "any address" and "any port".
2677 if ((ptr
= strchr(str
,',')))
2680 if ((src_str
= strchr(input_str
,'@'))) {
2685 if (parse_host_port(haddr
, host_str
) < 0)
2688 if (!src_str
|| *src_str
== '\0')
2691 if (parse_host_port(saddr
, src_str
) < 0)
2702 int parse_host_port(struct sockaddr_in
*saddr
, const char *str
)
2710 if (get_str_sep(buf
, sizeof(buf
), &p
, ':') < 0)
2712 saddr
->sin_family
= AF_INET
;
2713 if (buf
[0] == '\0') {
2714 saddr
->sin_addr
.s_addr
= 0;
2716 if (isdigit(buf
[0])) {
2717 if (!inet_aton(buf
, &saddr
->sin_addr
))
2720 if ((he
= gethostbyname(buf
)) == NULL
)
2722 saddr
->sin_addr
= *(struct in_addr
*)he
->h_addr
;
2725 port
= strtol(p
, (char **)&r
, 0);
2728 saddr
->sin_port
= htons(port
);
2732 /* find or alloc a new VLAN */
2733 VLANState
*qemu_find_vlan(int id
)
2735 VLANState
**pvlan
, *vlan
;
2736 for(vlan
= first_vlan
; vlan
!= NULL
; vlan
= vlan
->next
) {
2740 vlan
= qemu_mallocz(sizeof(VLANState
));
2745 pvlan
= &first_vlan
;
2746 while (*pvlan
!= NULL
)
2747 pvlan
= &(*pvlan
)->next
;
2752 VLANClientState
*qemu_new_vlan_client(VLANState
*vlan
,
2753 IOReadHandler
*fd_read
,
2754 IOCanRWHandler
*fd_can_read
,
2757 VLANClientState
*vc
, **pvc
;
2758 vc
= qemu_mallocz(sizeof(VLANClientState
));
2761 vc
->fd_read
= fd_read
;
2762 vc
->fd_can_read
= fd_can_read
;
2763 vc
->opaque
= opaque
;
2767 pvc
= &vlan
->first_client
;
2768 while (*pvc
!= NULL
)
2769 pvc
= &(*pvc
)->next
;
2774 int qemu_can_send_packet(VLANClientState
*vc1
)
2776 VLANState
*vlan
= vc1
->vlan
;
2777 VLANClientState
*vc
;
2779 for(vc
= vlan
->first_client
; vc
!= NULL
; vc
= vc
->next
) {
2781 if (vc
->fd_can_read
&& !vc
->fd_can_read(vc
->opaque
))
2788 void qemu_send_packet(VLANClientState
*vc1
, const uint8_t *buf
, int size
)
2790 VLANState
*vlan
= vc1
->vlan
;
2791 VLANClientState
*vc
;
2794 printf("vlan %d send:\n", vlan
->id
);
2795 hex_dump(stdout
, buf
, size
);
2797 for(vc
= vlan
->first_client
; vc
!= NULL
; vc
= vc
->next
) {
2799 vc
->fd_read(vc
->opaque
, buf
, size
);
2804 #if defined(CONFIG_SLIRP)
2806 /* slirp network adapter */
2808 static int slirp_inited
;
2809 static VLANClientState
*slirp_vc
;
2811 int slirp_can_output(void)
2813 return !slirp_vc
|| qemu_can_send_packet(slirp_vc
);
2816 void slirp_output(const uint8_t *pkt
, int pkt_len
)
2819 printf("slirp output:\n");
2820 hex_dump(stdout
, pkt
, pkt_len
);
2824 qemu_send_packet(slirp_vc
, pkt
, pkt_len
);
2827 static void slirp_receive(void *opaque
, const uint8_t *buf
, int size
)
2830 printf("slirp input:\n");
2831 hex_dump(stdout
, buf
, size
);
2833 slirp_input(buf
, size
);
2836 static int net_slirp_init(VLANState
*vlan
)
2838 if (!slirp_inited
) {
2842 slirp_vc
= qemu_new_vlan_client(vlan
,
2843 slirp_receive
, NULL
, NULL
);
2844 snprintf(slirp_vc
->info_str
, sizeof(slirp_vc
->info_str
), "user redirector");
2848 static void net_slirp_redir(const char *redir_str
)
2853 struct in_addr guest_addr
;
2854 int host_port
, guest_port
;
2856 if (!slirp_inited
) {
2862 if (get_str_sep(buf
, sizeof(buf
), &p
, ':') < 0)
2864 if (!strcmp(buf
, "tcp")) {
2866 } else if (!strcmp(buf
, "udp")) {
2872 if (get_str_sep(buf
, sizeof(buf
), &p
, ':') < 0)
2874 host_port
= strtol(buf
, &r
, 0);
2878 if (get_str_sep(buf
, sizeof(buf
), &p
, ':') < 0)
2880 if (buf
[0] == '\0') {
2881 pstrcpy(buf
, sizeof(buf
), "10.0.2.15");
2883 if (!inet_aton(buf
, &guest_addr
))
2886 guest_port
= strtol(p
, &r
, 0);
2890 if (slirp_redir(is_udp
, host_port
, guest_addr
, guest_port
) < 0) {
2891 fprintf(stderr
, "qemu: could not set up redirection\n");
2896 fprintf(stderr
, "qemu: syntax: -redir [tcp|udp]:host-port:[guest-host]:guest-port\n");
2904 static void smb_exit(void)
2908 char filename
[1024];
2910 /* erase all the files in the directory */
2911 d
= opendir(smb_dir
);
2916 if (strcmp(de
->d_name
, ".") != 0 &&
2917 strcmp(de
->d_name
, "..") != 0) {
2918 snprintf(filename
, sizeof(filename
), "%s/%s",
2919 smb_dir
, de
->d_name
);
2927 /* automatic user mode samba server configuration */
2928 void net_slirp_smb(const char *exported_dir
)
2930 char smb_conf
[1024];
2931 char smb_cmdline
[1024];
2934 if (!slirp_inited
) {
2939 /* XXX: better tmp dir construction */
2940 snprintf(smb_dir
, sizeof(smb_dir
), "/tmp/qemu-smb.%d", getpid());
2941 if (mkdir(smb_dir
, 0700) < 0) {
2942 fprintf(stderr
, "qemu: could not create samba server dir '%s'\n", smb_dir
);
2945 snprintf(smb_conf
, sizeof(smb_conf
), "%s/%s", smb_dir
, "smb.conf");
2947 f
= fopen(smb_conf
, "w");
2949 fprintf(stderr
, "qemu: could not create samba server configuration file '%s'\n", smb_conf
);
2956 "socket address=127.0.0.1\n"
2957 "pid directory=%s\n"
2958 "lock directory=%s\n"
2959 "log file=%s/log.smbd\n"
2960 "smb passwd file=%s/smbpasswd\n"
2961 "security = share\n"
2976 snprintf(smb_cmdline
, sizeof(smb_cmdline
), "/usr/sbin/smbd -s %s",
2979 slirp_add_exec(0, smb_cmdline
, 4, 139);
2982 #endif /* !defined(_WIN32) */
2984 #endif /* CONFIG_SLIRP */
2986 #if !defined(_WIN32)
2988 typedef struct TAPState
{
2989 VLANClientState
*vc
;
2993 static void tap_receive(void *opaque
, const uint8_t *buf
, int size
)
2995 TAPState
*s
= opaque
;
2998 ret
= write(s
->fd
, buf
, size
);
2999 if (ret
< 0 && (errno
== EINTR
|| errno
== EAGAIN
)) {
3006 static void tap_send(void *opaque
)
3008 TAPState
*s
= opaque
;
3012 size
= read(s
->fd
, buf
, sizeof(buf
));
3014 qemu_send_packet(s
->vc
, buf
, size
);
3020 static TAPState
*net_tap_fd_init(VLANState
*vlan
, int fd
)
3024 s
= qemu_mallocz(sizeof(TAPState
));
3028 s
->vc
= qemu_new_vlan_client(vlan
, tap_receive
, NULL
, s
);
3029 qemu_set_fd_handler(s
->fd
, tap_send
, NULL
, s
);
3030 snprintf(s
->vc
->info_str
, sizeof(s
->vc
->info_str
), "tap: fd=%d", fd
);
3035 static int tap_open(char *ifname
, int ifname_size
)
3041 fd
= open("/dev/tap", O_RDWR
);
3043 fprintf(stderr
, "warning: could not open /dev/tap: no virtual network emulation\n");
3048 dev
= devname(s
.st_rdev
, S_IFCHR
);
3049 pstrcpy(ifname
, ifname_size
, dev
);
3051 fcntl(fd
, F_SETFL
, O_NONBLOCK
);
3054 #elif defined(__sun__)
3055 static int tap_open(char *ifname
, int ifname_size
)
3057 fprintf(stderr
, "warning: tap_open not yet implemented\n");
3061 static int tap_open(char *ifname
, int ifname_size
)
3066 fd
= open("/dev/net/tun", O_RDWR
);
3068 fprintf(stderr
, "warning: could not open /dev/net/tun: no virtual network emulation\n");
3071 memset(&ifr
, 0, sizeof(ifr
));
3072 ifr
.ifr_flags
= IFF_TAP
| IFF_NO_PI
;
3073 if (ifname
[0] != '\0')
3074 pstrcpy(ifr
.ifr_name
, IFNAMSIZ
, ifname
);
3076 pstrcpy(ifr
.ifr_name
, IFNAMSIZ
, "tap%d");
3077 ret
= ioctl(fd
, TUNSETIFF
, (void *) &ifr
);
3079 fprintf(stderr
, "warning: could not configure /dev/net/tun: no virtual network emulation\n");
3083 pstrcpy(ifname
, ifname_size
, ifr
.ifr_name
);
3084 fcntl(fd
, F_SETFL
, O_NONBLOCK
);
3089 static int net_tap_init(VLANState
*vlan
, const char *ifname1
,
3090 const char *setup_script
)
3093 int pid
, status
, fd
;
3098 if (ifname1
!= NULL
)
3099 pstrcpy(ifname
, sizeof(ifname
), ifname1
);
3102 fd
= tap_open(ifname
, sizeof(ifname
));
3108 if (setup_script
[0] != '\0') {
3109 /* try to launch network init script */
3114 *parg
++ = (char *)setup_script
;
3117 execv(setup_script
, args
);
3120 while (waitpid(pid
, &status
, 0) != pid
);
3121 if (!WIFEXITED(status
) ||
3122 WEXITSTATUS(status
) != 0) {
3123 fprintf(stderr
, "%s: could not launch network script\n",
3129 s
= net_tap_fd_init(vlan
, fd
);
3132 snprintf(s
->vc
->info_str
, sizeof(s
->vc
->info_str
),
3133 "tap: ifname=%s setup_script=%s", ifname
, setup_script
);
3137 #endif /* !_WIN32 */
3139 /* network connection */
3140 typedef struct NetSocketState
{
3141 VLANClientState
*vc
;
3143 int state
; /* 0 = getting length, 1 = getting data */
3147 struct sockaddr_in dgram_dst
; /* contains inet host and port destination iff connectionless (SOCK_DGRAM) */
3150 typedef struct NetSocketListenState
{
3153 } NetSocketListenState
;
3155 /* XXX: we consider we can send the whole packet without blocking */
3156 static void net_socket_receive(void *opaque
, const uint8_t *buf
, int size
)
3158 NetSocketState
*s
= opaque
;
3162 send_all(s
->fd
, (const uint8_t *)&len
, sizeof(len
));
3163 send_all(s
->fd
, buf
, size
);
3166 static void net_socket_receive_dgram(void *opaque
, const uint8_t *buf
, int size
)
3168 NetSocketState
*s
= opaque
;
3169 sendto(s
->fd
, buf
, size
, 0,
3170 (struct sockaddr
*)&s
->dgram_dst
, sizeof(s
->dgram_dst
));
3173 static void net_socket_send(void *opaque
)
3175 NetSocketState
*s
= opaque
;
3180 size
= recv(s
->fd
, buf1
, sizeof(buf1
), 0);
3182 err
= socket_error();
3183 if (err
!= EWOULDBLOCK
)
3185 } else if (size
== 0) {
3186 /* end of connection */
3188 qemu_set_fd_handler(s
->fd
, NULL
, NULL
, NULL
);
3194 /* reassemble a packet from the network */
3200 memcpy(s
->buf
+ s
->index
, buf
, l
);
3204 if (s
->index
== 4) {
3206 s
->packet_len
= ntohl(*(uint32_t *)s
->buf
);
3212 l
= s
->packet_len
- s
->index
;
3215 memcpy(s
->buf
+ s
->index
, buf
, l
);
3219 if (s
->index
>= s
->packet_len
) {
3220 qemu_send_packet(s
->vc
, s
->buf
, s
->packet_len
);
3229 static void net_socket_send_dgram(void *opaque
)
3231 NetSocketState
*s
= opaque
;
3234 size
= recv(s
->fd
, s
->buf
, sizeof(s
->buf
), 0);
3238 /* end of connection */
3239 qemu_set_fd_handler(s
->fd
, NULL
, NULL
, NULL
);
3242 qemu_send_packet(s
->vc
, s
->buf
, size
);
3245 static int net_socket_mcast_create(struct sockaddr_in
*mcastaddr
)
3250 if (!IN_MULTICAST(ntohl(mcastaddr
->sin_addr
.s_addr
))) {
3251 fprintf(stderr
, "qemu: error: specified mcastaddr \"%s\" (0x%08x) does not contain a multicast address\n",
3252 inet_ntoa(mcastaddr
->sin_addr
),
3253 (int)ntohl(mcastaddr
->sin_addr
.s_addr
));
3257 fd
= socket(PF_INET
, SOCK_DGRAM
, 0);
3259 perror("socket(PF_INET, SOCK_DGRAM)");
3264 ret
=setsockopt(fd
, SOL_SOCKET
, SO_REUSEADDR
,
3265 (const char *)&val
, sizeof(val
));
3267 perror("setsockopt(SOL_SOCKET, SO_REUSEADDR)");
3271 ret
= bind(fd
, (struct sockaddr
*)mcastaddr
, sizeof(*mcastaddr
));
3277 /* Add host to multicast group */
3278 imr
.imr_multiaddr
= mcastaddr
->sin_addr
;
3279 imr
.imr_interface
.s_addr
= htonl(INADDR_ANY
);
3281 ret
= setsockopt(fd
, IPPROTO_IP
, IP_ADD_MEMBERSHIP
,
3282 (const char *)&imr
, sizeof(struct ip_mreq
));
3284 perror("setsockopt(IP_ADD_MEMBERSHIP)");
3288 /* Force mcast msgs to loopback (eg. several QEMUs in same host */
3290 ret
=setsockopt(fd
, IPPROTO_IP
, IP_MULTICAST_LOOP
,
3291 (const char *)&val
, sizeof(val
));
3293 perror("setsockopt(SOL_IP, IP_MULTICAST_LOOP)");
3297 socket_set_nonblock(fd
);
3305 static NetSocketState
*net_socket_fd_init_dgram(VLANState
*vlan
, int fd
,
3308 struct sockaddr_in saddr
;
3310 socklen_t saddr_len
;
3313 /* fd passed: multicast: "learn" dgram_dst address from bound address and save it
3314 * Because this may be "shared" socket from a "master" process, datagrams would be recv()
3315 * by ONLY ONE process: we must "clone" this dgram socket --jjo
3319 if (getsockname(fd
, (struct sockaddr
*) &saddr
, &saddr_len
) == 0) {
3321 if (saddr
.sin_addr
.s_addr
==0) {
3322 fprintf(stderr
, "qemu: error: init_dgram: fd=%d unbound, cannot setup multicast dst addr\n",
3326 /* clone dgram socket */
3327 newfd
= net_socket_mcast_create(&saddr
);
3329 /* error already reported by net_socket_mcast_create() */
3333 /* clone newfd to fd, close newfd */
3338 fprintf(stderr
, "qemu: error: init_dgram: fd=%d failed getsockname(): %s\n",
3339 fd
, strerror(errno
));
3344 s
= qemu_mallocz(sizeof(NetSocketState
));
3349 s
->vc
= qemu_new_vlan_client(vlan
, net_socket_receive_dgram
, NULL
, s
);
3350 qemu_set_fd_handler(s
->fd
, net_socket_send_dgram
, NULL
, s
);
3352 /* mcast: save bound address as dst */
3353 if (is_connected
) s
->dgram_dst
=saddr
;
3355 snprintf(s
->vc
->info_str
, sizeof(s
->vc
->info_str
),
3356 "socket: fd=%d (%s mcast=%s:%d)",
3357 fd
, is_connected
? "cloned" : "",
3358 inet_ntoa(saddr
.sin_addr
), ntohs(saddr
.sin_port
));
3362 static void net_socket_connect(void *opaque
)
3364 NetSocketState
*s
= opaque
;
3365 qemu_set_fd_handler(s
->fd
, net_socket_send
, NULL
, s
);
3368 static NetSocketState
*net_socket_fd_init_stream(VLANState
*vlan
, int fd
,
3372 s
= qemu_mallocz(sizeof(NetSocketState
));
3376 s
->vc
= qemu_new_vlan_client(vlan
,
3377 net_socket_receive
, NULL
, s
);
3378 snprintf(s
->vc
->info_str
, sizeof(s
->vc
->info_str
),
3379 "socket: fd=%d", fd
);
3381 net_socket_connect(s
);
3383 qemu_set_fd_handler(s
->fd
, NULL
, net_socket_connect
, s
);
3388 static NetSocketState
*net_socket_fd_init(VLANState
*vlan
, int fd
,
3391 int so_type
=-1, optlen
=sizeof(so_type
);
3393 if(getsockopt(fd
, SOL_SOCKET
, SO_TYPE
, (char *)&so_type
, &optlen
)< 0) {
3394 fprintf(stderr
, "qemu: error: setsockopt(SO_TYPE) for fd=%d failed\n", fd
);
3399 return net_socket_fd_init_dgram(vlan
, fd
, is_connected
);
3401 return net_socket_fd_init_stream(vlan
, fd
, is_connected
);
3403 /* who knows ... this could be a eg. a pty, do warn and continue as stream */
3404 fprintf(stderr
, "qemu: warning: socket type=%d for fd=%d is not SOCK_DGRAM or SOCK_STREAM\n", so_type
, fd
);
3405 return net_socket_fd_init_stream(vlan
, fd
, is_connected
);
3410 static void net_socket_accept(void *opaque
)
3412 NetSocketListenState
*s
= opaque
;
3414 struct sockaddr_in saddr
;
3419 len
= sizeof(saddr
);
3420 fd
= accept(s
->fd
, (struct sockaddr
*)&saddr
, &len
);
3421 if (fd
< 0 && errno
!= EINTR
) {
3423 } else if (fd
>= 0) {
3427 s1
= net_socket_fd_init(s
->vlan
, fd
, 1);
3431 snprintf(s1
->vc
->info_str
, sizeof(s1
->vc
->info_str
),
3432 "socket: connection from %s:%d",
3433 inet_ntoa(saddr
.sin_addr
), ntohs(saddr
.sin_port
));
3437 static int net_socket_listen_init(VLANState
*vlan
, const char *host_str
)
3439 NetSocketListenState
*s
;
3441 struct sockaddr_in saddr
;
3443 if (parse_host_port(&saddr
, host_str
) < 0)
3446 s
= qemu_mallocz(sizeof(NetSocketListenState
));
3450 fd
= socket(PF_INET
, SOCK_STREAM
, 0);
3455 socket_set_nonblock(fd
);
3457 /* allow fast reuse */
3459 setsockopt(fd
, SOL_SOCKET
, SO_REUSEADDR
, (const char *)&val
, sizeof(val
));
3461 ret
= bind(fd
, (struct sockaddr
*)&saddr
, sizeof(saddr
));
3466 ret
= listen(fd
, 0);
3473 qemu_set_fd_handler(fd
, net_socket_accept
, NULL
, s
);
3477 static int net_socket_connect_init(VLANState
*vlan
, const char *host_str
)
3480 int fd
, connected
, ret
, err
;
3481 struct sockaddr_in saddr
;
3483 if (parse_host_port(&saddr
, host_str
) < 0)
3486 fd
= socket(PF_INET
, SOCK_STREAM
, 0);
3491 socket_set_nonblock(fd
);
3495 ret
= connect(fd
, (struct sockaddr
*)&saddr
, sizeof(saddr
));
3497 err
= socket_error();
3498 if (err
== EINTR
|| err
== EWOULDBLOCK
) {
3499 } else if (err
== EINPROGRESS
) {
3511 s
= net_socket_fd_init(vlan
, fd
, connected
);
3514 snprintf(s
->vc
->info_str
, sizeof(s
->vc
->info_str
),
3515 "socket: connect to %s:%d",
3516 inet_ntoa(saddr
.sin_addr
), ntohs(saddr
.sin_port
));
3520 static int net_socket_mcast_init(VLANState
*vlan
, const char *host_str
)
3524 struct sockaddr_in saddr
;
3526 if (parse_host_port(&saddr
, host_str
) < 0)
3530 fd
= net_socket_mcast_create(&saddr
);
3534 s
= net_socket_fd_init(vlan
, fd
, 0);
3538 s
->dgram_dst
= saddr
;
3540 snprintf(s
->vc
->info_str
, sizeof(s
->vc
->info_str
),
3541 "socket: mcast=%s:%d",
3542 inet_ntoa(saddr
.sin_addr
), ntohs(saddr
.sin_port
));
3547 static int get_param_value(char *buf
, int buf_size
,
3548 const char *tag
, const char *str
)
3557 while (*p
!= '\0' && *p
!= '=') {
3558 if ((q
- option
) < sizeof(option
) - 1)
3566 if (!strcmp(tag
, option
)) {
3568 while (*p
!= '\0' && *p
!= ',') {
3569 if ((q
- buf
) < buf_size
- 1)
3576 while (*p
!= '\0' && *p
!= ',') {
3587 int net_client_init(const char *str
)
3598 while (*p
!= '\0' && *p
!= ',') {
3599 if ((q
- device
) < sizeof(device
) - 1)
3607 if (get_param_value(buf
, sizeof(buf
), "vlan", p
)) {
3608 vlan_id
= strtol(buf
, NULL
, 0);
3610 vlan
= qemu_find_vlan(vlan_id
);
3612 fprintf(stderr
, "Could not create vlan %d\n", vlan_id
);
3615 if (!strcmp(device
, "nic")) {
3619 if (nb_nics
>= MAX_NICS
) {
3620 fprintf(stderr
, "Too Many NICs\n");
3623 nd
= &nd_table
[nb_nics
];
3624 macaddr
= nd
->macaddr
;
3630 macaddr
[5] = 0x56 + nb_nics
;
3632 if (get_param_value(buf
, sizeof(buf
), "macaddr", p
)) {
3633 if (parse_macaddr(macaddr
, buf
) < 0) {
3634 fprintf(stderr
, "invalid syntax for ethernet address\n");
3638 if (get_param_value(buf
, sizeof(buf
), "model", p
)) {
3639 nd
->model
= strdup(buf
);
3645 if (!strcmp(device
, "none")) {
3646 /* does nothing. It is needed to signal that no network cards
3651 if (!strcmp(device
, "user")) {
3652 if (get_param_value(buf
, sizeof(buf
), "hostname", p
)) {
3653 pstrcpy(slirp_hostname
, sizeof(slirp_hostname
), buf
);
3655 ret
= net_slirp_init(vlan
);
3659 if (!strcmp(device
, "tap")) {
3661 if (get_param_value(ifname
, sizeof(ifname
), "ifname", p
) <= 0) {
3662 fprintf(stderr
, "tap: no interface name\n");
3665 ret
= tap_win32_init(vlan
, ifname
);
3668 if (!strcmp(device
, "tap")) {
3670 char setup_script
[1024];
3672 if (get_param_value(buf
, sizeof(buf
), "fd", p
) > 0) {
3673 fd
= strtol(buf
, NULL
, 0);
3675 if (net_tap_fd_init(vlan
, fd
))
3678 get_param_value(ifname
, sizeof(ifname
), "ifname", p
);
3679 if (get_param_value(setup_script
, sizeof(setup_script
), "script", p
) == 0) {
3680 pstrcpy(setup_script
, sizeof(setup_script
), DEFAULT_NETWORK_SCRIPT
);
3682 ret
= net_tap_init(vlan
, ifname
, setup_script
);
3686 if (!strcmp(device
, "socket")) {
3687 if (get_param_value(buf
, sizeof(buf
), "fd", p
) > 0) {
3689 fd
= strtol(buf
, NULL
, 0);
3691 if (net_socket_fd_init(vlan
, fd
, 1))
3693 } else if (get_param_value(buf
, sizeof(buf
), "listen", p
) > 0) {
3694 ret
= net_socket_listen_init(vlan
, buf
);
3695 } else if (get_param_value(buf
, sizeof(buf
), "connect", p
) > 0) {
3696 ret
= net_socket_connect_init(vlan
, buf
);
3697 } else if (get_param_value(buf
, sizeof(buf
), "mcast", p
) > 0) {
3698 ret
= net_socket_mcast_init(vlan
, buf
);
3700 fprintf(stderr
, "Unknown socket options: %s\n", p
);
3705 fprintf(stderr
, "Unknown network device: %s\n", device
);
3709 fprintf(stderr
, "Could not initialize device '%s'\n", device
);
3715 void do_info_network(void)
3718 VLANClientState
*vc
;
3720 for(vlan
= first_vlan
; vlan
!= NULL
; vlan
= vlan
->next
) {
3721 term_printf("VLAN %d devices:\n", vlan
->id
);
3722 for(vc
= vlan
->first_client
; vc
!= NULL
; vc
= vc
->next
)
3723 term_printf(" %s\n", vc
->info_str
);
3727 /***********************************************************/
3730 static USBPort
*used_usb_ports
;
3731 static USBPort
*free_usb_ports
;
3733 /* ??? Maybe change this to register a hub to keep track of the topology. */
3734 void qemu_register_usb_port(USBPort
*port
, void *opaque
, int index
,
3735 usb_attachfn attach
)
3737 port
->opaque
= opaque
;
3738 port
->index
= index
;
3739 port
->attach
= attach
;
3740 port
->next
= free_usb_ports
;
3741 free_usb_ports
= port
;
3744 static int usb_device_add(const char *devname
)
3750 if (!free_usb_ports
)
3753 if (strstart(devname
, "host:", &p
)) {
3754 dev
= usb_host_device_open(p
);
3755 } else if (!strcmp(devname
, "mouse")) {
3756 dev
= usb_mouse_init();
3757 } else if (!strcmp(devname
, "tablet")) {
3758 dev
= usb_tablet_init();
3759 } else if (strstart(devname
, "disk:", &p
)) {
3760 dev
= usb_msd_init(p
);
3767 /* Find a USB port to add the device to. */
3768 port
= free_usb_ports
;
3772 /* Create a new hub and chain it on. */
3773 free_usb_ports
= NULL
;
3774 port
->next
= used_usb_ports
;
3775 used_usb_ports
= port
;
3777 hub
= usb_hub_init(VM_USB_HUB_SIZE
);
3778 usb_attach(port
, hub
);
3779 port
= free_usb_ports
;
3782 free_usb_ports
= port
->next
;
3783 port
->next
= used_usb_ports
;
3784 used_usb_ports
= port
;
3785 usb_attach(port
, dev
);
3789 static int usb_device_del(const char *devname
)
3797 if (!used_usb_ports
)
3800 p
= strchr(devname
, '.');
3803 bus_num
= strtoul(devname
, NULL
, 0);
3804 addr
= strtoul(p
+ 1, NULL
, 0);
3808 lastp
= &used_usb_ports
;
3809 port
= used_usb_ports
;
3810 while (port
&& port
->dev
->addr
!= addr
) {
3811 lastp
= &port
->next
;
3819 *lastp
= port
->next
;
3820 usb_attach(port
, NULL
);
3821 dev
->handle_destroy(dev
);
3822 port
->next
= free_usb_ports
;
3823 free_usb_ports
= port
;
3827 void do_usb_add(const char *devname
)
3830 ret
= usb_device_add(devname
);
3832 term_printf("Could not add USB device '%s'\n", devname
);
3835 void do_usb_del(const char *devname
)
3838 ret
= usb_device_del(devname
);
3840 term_printf("Could not remove USB device '%s'\n", devname
);
3847 const char *speed_str
;
3850 term_printf("USB support not enabled\n");
3854 for (port
= used_usb_ports
; port
; port
= port
->next
) {
3858 switch(dev
->speed
) {
3862 case USB_SPEED_FULL
:
3865 case USB_SPEED_HIGH
:
3872 term_printf(" Device %d.%d, Speed %s Mb/s, Product %s\n",
3873 0, dev
->addr
, speed_str
, dev
->devname
);
3877 /***********************************************************/
3880 static char *pid_filename
;
3882 /* Remove PID file. Called on normal exit */
3884 static void remove_pidfile(void)
3886 unlink (pid_filename
);
3889 static void create_pidfile(const char *filename
)
3891 struct stat pidstat
;
3894 /* Try to write our PID to the named file */
3895 if (stat(filename
, &pidstat
) < 0) {
3896 if (errno
== ENOENT
) {
3897 if ((f
= fopen (filename
, "w")) == NULL
) {
3898 perror("Opening pidfile");
3901 fprintf(f
, "%d\n", getpid());
3903 pid_filename
= qemu_strdup(filename
);
3904 if (!pid_filename
) {
3905 fprintf(stderr
, "Could not save PID filename");
3908 atexit(remove_pidfile
);
3911 fprintf(stderr
, "%s already exists. Remove it and try again.\n",
3917 /***********************************************************/
3920 static void dumb_update(DisplayState
*ds
, int x
, int y
, int w
, int h
)
3924 static void dumb_resize(DisplayState
*ds
, int w
, int h
)
3928 static void dumb_refresh(DisplayState
*ds
)
3933 void dumb_display_init(DisplayState
*ds
)
3938 ds
->dpy_update
= dumb_update
;
3939 ds
->dpy_resize
= dumb_resize
;
3940 ds
->dpy_refresh
= dumb_refresh
;
3943 /***********************************************************/
3946 #define MAX_IO_HANDLERS 64
3948 typedef struct IOHandlerRecord
{
3950 IOCanRWHandler
*fd_read_poll
;
3952 IOHandler
*fd_write
;
3954 /* temporary data */
3956 struct IOHandlerRecord
*next
;
3959 static IOHandlerRecord
*first_io_handler
;
3961 /* XXX: fd_read_poll should be suppressed, but an API change is
3962 necessary in the character devices to suppress fd_can_read(). */
3963 int qemu_set_fd_handler2(int fd
,
3964 IOCanRWHandler
*fd_read_poll
,
3966 IOHandler
*fd_write
,
3969 IOHandlerRecord
**pioh
, *ioh
;
3971 if (!fd_read
&& !fd_write
) {
3972 pioh
= &first_io_handler
;
3977 if (ioh
->fd
== fd
) {
3985 for(ioh
= first_io_handler
; ioh
!= NULL
; ioh
= ioh
->next
) {
3989 ioh
= qemu_mallocz(sizeof(IOHandlerRecord
));
3992 ioh
->next
= first_io_handler
;
3993 first_io_handler
= ioh
;
3996 ioh
->fd_read_poll
= fd_read_poll
;
3997 ioh
->fd_read
= fd_read
;
3998 ioh
->fd_write
= fd_write
;
3999 ioh
->opaque
= opaque
;
4004 int qemu_set_fd_handler(int fd
,
4006 IOHandler
*fd_write
,
4009 return qemu_set_fd_handler2(fd
, NULL
, fd_read
, fd_write
, opaque
);
4012 /***********************************************************/
4013 /* Polling handling */
4015 typedef struct PollingEntry
{
4018 struct PollingEntry
*next
;
4021 static PollingEntry
*first_polling_entry
;
4023 int qemu_add_polling_cb(PollingFunc
*func
, void *opaque
)
4025 PollingEntry
**ppe
, *pe
;
4026 pe
= qemu_mallocz(sizeof(PollingEntry
));
4030 pe
->opaque
= opaque
;
4031 for(ppe
= &first_polling_entry
; *ppe
!= NULL
; ppe
= &(*ppe
)->next
);
4036 void qemu_del_polling_cb(PollingFunc
*func
, void *opaque
)
4038 PollingEntry
**ppe
, *pe
;
4039 for(ppe
= &first_polling_entry
; *ppe
!= NULL
; ppe
= &(*ppe
)->next
) {
4041 if (pe
->func
== func
&& pe
->opaque
== opaque
) {
4050 /***********************************************************/
4051 /* Wait objects support */
4052 typedef struct WaitObjects
{
4054 HANDLE events
[MAXIMUM_WAIT_OBJECTS
+ 1];
4055 WaitObjectFunc
*func
[MAXIMUM_WAIT_OBJECTS
+ 1];
4056 void *opaque
[MAXIMUM_WAIT_OBJECTS
+ 1];
4059 static WaitObjects wait_objects
= {0};
4061 int qemu_add_wait_object(HANDLE handle
, WaitObjectFunc
*func
, void *opaque
)
4063 WaitObjects
*w
= &wait_objects
;
4065 if (w
->num
>= MAXIMUM_WAIT_OBJECTS
)
4067 w
->events
[w
->num
] = handle
;
4068 w
->func
[w
->num
] = func
;
4069 w
->opaque
[w
->num
] = opaque
;
4074 void qemu_del_wait_object(HANDLE handle
, WaitObjectFunc
*func
, void *opaque
)
4077 WaitObjects
*w
= &wait_objects
;
4080 for (i
= 0; i
< w
->num
; i
++) {
4081 if (w
->events
[i
] == handle
)
4084 w
->events
[i
] = w
->events
[i
+ 1];
4085 w
->func
[i
] = w
->func
[i
+ 1];
4086 w
->opaque
[i
] = w
->opaque
[i
+ 1];
4094 /***********************************************************/
4095 /* savevm/loadvm support */
4097 #define IO_BUF_SIZE 32768
4101 BlockDriverState
*bs
;
4104 int64_t base_offset
;
4105 int64_t buf_offset
; /* start of buffer when writing, end of buffer
4108 int buf_size
; /* 0 when writing */
4109 uint8_t buf
[IO_BUF_SIZE
];
4112 QEMUFile
*qemu_fopen(const char *filename
, const char *mode
)
4116 f
= qemu_mallocz(sizeof(QEMUFile
));
4119 if (!strcmp(mode
, "wb")) {
4121 } else if (!strcmp(mode
, "rb")) {
4126 f
->outfile
= fopen(filename
, mode
);
4138 QEMUFile
*qemu_fopen_bdrv(BlockDriverState
*bs
, int64_t offset
, int is_writable
)
4142 f
= qemu_mallocz(sizeof(QEMUFile
));
4147 f
->is_writable
= is_writable
;
4148 f
->base_offset
= offset
;
4152 void qemu_fflush(QEMUFile
*f
)
4154 if (!f
->is_writable
)
4156 if (f
->buf_index
> 0) {
4158 fseek(f
->outfile
, f
->buf_offset
, SEEK_SET
);
4159 fwrite(f
->buf
, 1, f
->buf_index
, f
->outfile
);
4161 bdrv_pwrite(f
->bs
, f
->base_offset
+ f
->buf_offset
,
4162 f
->buf
, f
->buf_index
);
4164 f
->buf_offset
+= f
->buf_index
;
4169 static void qemu_fill_buffer(QEMUFile
*f
)
4176 fseek(f
->outfile
, f
->buf_offset
, SEEK_SET
);
4177 len
= fread(f
->buf
, 1, IO_BUF_SIZE
, f
->outfile
);
4181 len
= bdrv_pread(f
->bs
, f
->base_offset
+ f
->buf_offset
,
4182 f
->buf
, IO_BUF_SIZE
);
4188 f
->buf_offset
+= len
;
4191 void qemu_fclose(QEMUFile
*f
)
4201 void qemu_put_buffer(QEMUFile
*f
, const uint8_t *buf
, int size
)
4205 l
= IO_BUF_SIZE
- f
->buf_index
;
4208 memcpy(f
->buf
+ f
->buf_index
, buf
, l
);
4212 if (f
->buf_index
>= IO_BUF_SIZE
)
4217 void qemu_put_byte(QEMUFile
*f
, int v
)
4219 f
->buf
[f
->buf_index
++] = v
;
4220 if (f
->buf_index
>= IO_BUF_SIZE
)
4224 int qemu_get_buffer(QEMUFile
*f
, uint8_t *buf
, int size1
)
4230 l
= f
->buf_size
- f
->buf_index
;
4232 qemu_fill_buffer(f
);
4233 l
= f
->buf_size
- f
->buf_index
;
4239 memcpy(buf
, f
->buf
+ f
->buf_index
, l
);
4244 return size1
- size
;
4247 int qemu_get_byte(QEMUFile
*f
)
4249 if (f
->buf_index
>= f
->buf_size
) {
4250 qemu_fill_buffer(f
);
4251 if (f
->buf_index
>= f
->buf_size
)
4254 return f
->buf
[f
->buf_index
++];
4257 int64_t qemu_ftell(QEMUFile
*f
)
4259 return f
->buf_offset
- f
->buf_size
+ f
->buf_index
;
4262 int64_t qemu_fseek(QEMUFile
*f
, int64_t pos
, int whence
)
4264 if (whence
== SEEK_SET
) {
4266 } else if (whence
== SEEK_CUR
) {
4267 pos
+= qemu_ftell(f
);
4269 /* SEEK_END not supported */
4272 if (f
->is_writable
) {
4274 f
->buf_offset
= pos
;
4276 f
->buf_offset
= pos
;
4283 void qemu_put_be16(QEMUFile
*f
, unsigned int v
)
4285 qemu_put_byte(f
, v
>> 8);
4286 qemu_put_byte(f
, v
);
4289 void qemu_put_be32(QEMUFile
*f
, unsigned int v
)
4291 qemu_put_byte(f
, v
>> 24);
4292 qemu_put_byte(f
, v
>> 16);
4293 qemu_put_byte(f
, v
>> 8);
4294 qemu_put_byte(f
, v
);
4297 void qemu_put_be64(QEMUFile
*f
, uint64_t v
)
4299 qemu_put_be32(f
, v
>> 32);
4300 qemu_put_be32(f
, v
);
4303 unsigned int qemu_get_be16(QEMUFile
*f
)
4306 v
= qemu_get_byte(f
) << 8;
4307 v
|= qemu_get_byte(f
);
4311 unsigned int qemu_get_be32(QEMUFile
*f
)
4314 v
= qemu_get_byte(f
) << 24;
4315 v
|= qemu_get_byte(f
) << 16;
4316 v
|= qemu_get_byte(f
) << 8;
4317 v
|= qemu_get_byte(f
);
4321 uint64_t qemu_get_be64(QEMUFile
*f
)
4324 v
= (uint64_t)qemu_get_be32(f
) << 32;
4325 v
|= qemu_get_be32(f
);
4329 typedef struct SaveStateEntry
{
4333 SaveStateHandler
*save_state
;
4334 LoadStateHandler
*load_state
;
4336 struct SaveStateEntry
*next
;
4339 static SaveStateEntry
*first_se
;
4341 int register_savevm(const char *idstr
,
4344 SaveStateHandler
*save_state
,
4345 LoadStateHandler
*load_state
,
4348 SaveStateEntry
*se
, **pse
;
4350 se
= qemu_malloc(sizeof(SaveStateEntry
));
4353 pstrcpy(se
->idstr
, sizeof(se
->idstr
), idstr
);
4354 se
->instance_id
= instance_id
;
4355 se
->version_id
= version_id
;
4356 se
->save_state
= save_state
;
4357 se
->load_state
= load_state
;
4358 se
->opaque
= opaque
;
4361 /* add at the end of list */
4363 while (*pse
!= NULL
)
4364 pse
= &(*pse
)->next
;
4369 #define QEMU_VM_FILE_MAGIC 0x5145564d
4370 #define QEMU_VM_FILE_VERSION 0x00000002
4372 int qemu_savevm_state(QEMUFile
*f
)
4376 int64_t cur_pos
, len_pos
, total_len_pos
;
4378 qemu_put_be32(f
, QEMU_VM_FILE_MAGIC
);
4379 qemu_put_be32(f
, QEMU_VM_FILE_VERSION
);
4380 total_len_pos
= qemu_ftell(f
);
4381 qemu_put_be64(f
, 0); /* total size */
4383 for(se
= first_se
; se
!= NULL
; se
= se
->next
) {
4385 len
= strlen(se
->idstr
);
4386 qemu_put_byte(f
, len
);
4387 qemu_put_buffer(f
, se
->idstr
, len
);
4389 qemu_put_be32(f
, se
->instance_id
);
4390 qemu_put_be32(f
, se
->version_id
);
4392 /* record size: filled later */
4393 len_pos
= qemu_ftell(f
);
4394 qemu_put_be32(f
, 0);
4396 se
->save_state(f
, se
->opaque
);
4398 /* fill record size */
4399 cur_pos
= qemu_ftell(f
);
4400 len
= cur_pos
- len_pos
- 4;
4401 qemu_fseek(f
, len_pos
, SEEK_SET
);
4402 qemu_put_be32(f
, len
);
4403 qemu_fseek(f
, cur_pos
, SEEK_SET
);
4405 cur_pos
= qemu_ftell(f
);
4406 qemu_fseek(f
, total_len_pos
, SEEK_SET
);
4407 qemu_put_be64(f
, cur_pos
- total_len_pos
- 8);
4408 qemu_fseek(f
, cur_pos
, SEEK_SET
);
4414 static SaveStateEntry
*find_se(const char *idstr
, int instance_id
)
4418 for(se
= first_se
; se
!= NULL
; se
= se
->next
) {
4419 if (!strcmp(se
->idstr
, idstr
) &&
4420 instance_id
== se
->instance_id
)
4426 int qemu_loadvm_state(QEMUFile
*f
)
4429 int len
, ret
, instance_id
, record_len
, version_id
;
4430 int64_t total_len
, end_pos
, cur_pos
;
4434 v
= qemu_get_be32(f
);
4435 if (v
!= QEMU_VM_FILE_MAGIC
)
4437 v
= qemu_get_be32(f
);
4438 if (v
!= QEMU_VM_FILE_VERSION
) {
4443 total_len
= qemu_get_be64(f
);
4444 end_pos
= total_len
+ qemu_ftell(f
);
4446 if (qemu_ftell(f
) >= end_pos
)
4448 len
= qemu_get_byte(f
);
4449 qemu_get_buffer(f
, idstr
, len
);
4451 instance_id
= qemu_get_be32(f
);
4452 version_id
= qemu_get_be32(f
);
4453 record_len
= qemu_get_be32(f
);
4455 printf("idstr=%s instance=0x%x version=%d len=%d\n",
4456 idstr
, instance_id
, version_id
, record_len
);
4458 cur_pos
= qemu_ftell(f
);
4459 se
= find_se(idstr
, instance_id
);
4461 fprintf(stderr
, "qemu: warning: instance 0x%x of device '%s' not present in current VM\n",
4462 instance_id
, idstr
);
4464 ret
= se
->load_state(f
, se
->opaque
, version_id
);
4466 fprintf(stderr
, "qemu: warning: error while loading state for instance 0x%x of device '%s'\n",
4467 instance_id
, idstr
);
4470 /* always seek to exact end of record */
4471 qemu_fseek(f
, cur_pos
+ record_len
, SEEK_SET
);
4478 /* device can contain snapshots */
4479 static int bdrv_can_snapshot(BlockDriverState
*bs
)
4482 !bdrv_is_removable(bs
) &&
4483 !bdrv_is_read_only(bs
));
4486 /* device must be snapshots in order to have a reliable snapshot */
4487 static int bdrv_has_snapshot(BlockDriverState
*bs
)
4490 !bdrv_is_removable(bs
) &&
4491 !bdrv_is_read_only(bs
));
4494 static BlockDriverState
*get_bs_snapshots(void)
4496 BlockDriverState
*bs
;
4500 return bs_snapshots
;
4501 for(i
= 0; i
<= MAX_DISKS
; i
++) {
4503 if (bdrv_can_snapshot(bs
))
4512 static int bdrv_snapshot_find(BlockDriverState
*bs
, QEMUSnapshotInfo
*sn_info
,
4515 QEMUSnapshotInfo
*sn_tab
, *sn
;
4519 nb_sns
= bdrv_snapshot_list(bs
, &sn_tab
);
4522 for(i
= 0; i
< nb_sns
; i
++) {
4524 if (!strcmp(sn
->id_str
, name
) || !strcmp(sn
->name
, name
)) {
4534 void do_savevm(const char *name
)
4536 BlockDriverState
*bs
, *bs1
;
4537 QEMUSnapshotInfo sn1
, *sn
= &sn1
, old_sn1
, *old_sn
= &old_sn1
;
4538 int must_delete
, ret
, i
;
4539 BlockDriverInfo bdi1
, *bdi
= &bdi1
;
4541 int saved_vm_running
;
4544 bs
= get_bs_snapshots();
4546 term_printf("No block device can accept snapshots\n");
4550 saved_vm_running
= vm_running
;
4555 ret
= bdrv_snapshot_find(bs
, old_sn
, name
);
4560 memset(sn
, 0, sizeof(*sn
));
4562 pstrcpy(sn
->name
, sizeof(sn
->name
), old_sn
->name
);
4563 pstrcpy(sn
->id_str
, sizeof(sn
->id_str
), old_sn
->id_str
);
4566 pstrcpy(sn
->name
, sizeof(sn
->name
), name
);
4569 /* fill auxiliary fields */
4570 gettimeofday(&tv
, NULL
);
4571 sn
->date_sec
= tv
.tv_sec
;
4572 sn
->date_nsec
= tv
.tv_usec
* 1000;
4573 sn
->vm_clock_nsec
= qemu_get_clock(vm_clock
);
4575 if (bdrv_get_info(bs
, bdi
) < 0 || bdi
->vm_state_offset
<= 0) {
4576 term_printf("Device %s does not support VM state snapshots\n",
4577 bdrv_get_device_name(bs
));
4581 /* save the VM state */
4582 f
= qemu_fopen_bdrv(bs
, bdi
->vm_state_offset
, 1);
4584 term_printf("Could not open VM state file\n");
4587 ret
= qemu_savevm_state(f
);
4588 sn
->vm_state_size
= qemu_ftell(f
);
4591 term_printf("Error %d while writing VM\n", ret
);
4595 /* create the snapshots */
4597 for(i
= 0; i
< MAX_DISKS
; i
++) {
4599 if (bdrv_has_snapshot(bs1
)) {
4601 ret
= bdrv_snapshot_delete(bs1
, old_sn
->id_str
);
4603 term_printf("Error while deleting snapshot on '%s'\n",
4604 bdrv_get_device_name(bs1
));
4607 ret
= bdrv_snapshot_create(bs1
, sn
);
4609 term_printf("Error while creating snapshot on '%s'\n",
4610 bdrv_get_device_name(bs1
));
4616 if (saved_vm_running
)
4620 void do_loadvm(const char *name
)
4622 BlockDriverState
*bs
, *bs1
;
4623 BlockDriverInfo bdi1
, *bdi
= &bdi1
;
4626 int saved_vm_running
;
4628 bs
= get_bs_snapshots();
4630 term_printf("No block device supports snapshots\n");
4634 saved_vm_running
= vm_running
;
4637 for(i
= 0; i
<= MAX_DISKS
; i
++) {
4639 if (bdrv_has_snapshot(bs1
)) {
4640 ret
= bdrv_snapshot_goto(bs1
, name
);
4643 term_printf("Warning: ");
4646 term_printf("Snapshots not supported on device '%s'\n",
4647 bdrv_get_device_name(bs1
));
4650 term_printf("Could not find snapshot '%s' on device '%s'\n",
4651 name
, bdrv_get_device_name(bs1
));
4654 term_printf("Error %d while activating snapshot on '%s'\n",
4655 ret
, bdrv_get_device_name(bs1
));
4658 /* fatal on snapshot block device */
4665 if (bdrv_get_info(bs
, bdi
) < 0 || bdi
->vm_state_offset
<= 0) {
4666 term_printf("Device %s does not support VM state snapshots\n",
4667 bdrv_get_device_name(bs
));
4671 /* restore the VM state */
4672 f
= qemu_fopen_bdrv(bs
, bdi
->vm_state_offset
, 0);
4674 term_printf("Could not open VM state file\n");
4677 ret
= qemu_loadvm_state(f
);
4680 term_printf("Error %d while loading VM state\n", ret
);
4683 if (saved_vm_running
)
4687 void do_delvm(const char *name
)
4689 BlockDriverState
*bs
, *bs1
;
4692 bs
= get_bs_snapshots();
4694 term_printf("No block device supports snapshots\n");
4698 for(i
= 0; i
<= MAX_DISKS
; i
++) {
4700 if (bdrv_has_snapshot(bs1
)) {
4701 ret
= bdrv_snapshot_delete(bs1
, name
);
4703 if (ret
== -ENOTSUP
)
4704 term_printf("Snapshots not supported on device '%s'\n",
4705 bdrv_get_device_name(bs1
));
4707 term_printf("Error %d while deleting snapshot on '%s'\n",
4708 ret
, bdrv_get_device_name(bs1
));
4714 void do_info_snapshots(void)
4716 BlockDriverState
*bs
, *bs1
;
4717 QEMUSnapshotInfo
*sn_tab
, *sn
;
4721 bs
= get_bs_snapshots();
4723 term_printf("No available block device supports snapshots\n");
4726 term_printf("Snapshot devices:");
4727 for(i
= 0; i
<= MAX_DISKS
; i
++) {
4729 if (bdrv_has_snapshot(bs1
)) {
4731 term_printf(" %s", bdrv_get_device_name(bs1
));
4736 nb_sns
= bdrv_snapshot_list(bs
, &sn_tab
);
4738 term_printf("bdrv_snapshot_list: error %d\n", nb_sns
);
4741 term_printf("Snapshot list (from %s):\n", bdrv_get_device_name(bs
));
4742 term_printf("%s\n", bdrv_snapshot_dump(buf
, sizeof(buf
), NULL
));
4743 for(i
= 0; i
< nb_sns
; i
++) {
4745 term_printf("%s\n", bdrv_snapshot_dump(buf
, sizeof(buf
), sn
));
4750 /***********************************************************/
4751 /* cpu save/restore */
4753 #if defined(TARGET_I386)
4755 static void cpu_put_seg(QEMUFile
*f
, SegmentCache
*dt
)
4757 qemu_put_be32(f
, dt
->selector
);
4758 qemu_put_betl(f
, dt
->base
);
4759 qemu_put_be32(f
, dt
->limit
);
4760 qemu_put_be32(f
, dt
->flags
);
4763 static void cpu_get_seg(QEMUFile
*f
, SegmentCache
*dt
)
4765 dt
->selector
= qemu_get_be32(f
);
4766 dt
->base
= qemu_get_betl(f
);
4767 dt
->limit
= qemu_get_be32(f
);
4768 dt
->flags
= qemu_get_be32(f
);
4771 void cpu_save(QEMUFile
*f
, void *opaque
)
4773 CPUState
*env
= opaque
;
4774 uint16_t fptag
, fpus
, fpuc
, fpregs_format
;
4778 for(i
= 0; i
< CPU_NB_REGS
; i
++)
4779 qemu_put_betls(f
, &env
->regs
[i
]);
4780 qemu_put_betls(f
, &env
->eip
);
4781 qemu_put_betls(f
, &env
->eflags
);
4782 hflags
= env
->hflags
; /* XXX: suppress most of the redundant hflags */
4783 qemu_put_be32s(f
, &hflags
);
4787 fpus
= (env
->fpus
& ~0x3800) | (env
->fpstt
& 0x7) << 11;
4789 for(i
= 0; i
< 8; i
++) {
4790 fptag
|= ((!env
->fptags
[i
]) << i
);
4793 qemu_put_be16s(f
, &fpuc
);
4794 qemu_put_be16s(f
, &fpus
);
4795 qemu_put_be16s(f
, &fptag
);
4797 #ifdef USE_X86LDOUBLE
4802 qemu_put_be16s(f
, &fpregs_format
);
4804 for(i
= 0; i
< 8; i
++) {
4805 #ifdef USE_X86LDOUBLE
4809 /* we save the real CPU data (in case of MMX usage only 'mant'
4810 contains the MMX register */
4811 cpu_get_fp80(&mant
, &exp
, env
->fpregs
[i
].d
);
4812 qemu_put_be64(f
, mant
);
4813 qemu_put_be16(f
, exp
);
4816 /* if we use doubles for float emulation, we save the doubles to
4817 avoid losing information in case of MMX usage. It can give
4818 problems if the image is restored on a CPU where long
4819 doubles are used instead. */
4820 qemu_put_be64(f
, env
->fpregs
[i
].mmx
.MMX_Q(0));
4824 for(i
= 0; i
< 6; i
++)
4825 cpu_put_seg(f
, &env
->segs
[i
]);
4826 cpu_put_seg(f
, &env
->ldt
);
4827 cpu_put_seg(f
, &env
->tr
);
4828 cpu_put_seg(f
, &env
->gdt
);
4829 cpu_put_seg(f
, &env
->idt
);
4831 qemu_put_be32s(f
, &env
->sysenter_cs
);
4832 qemu_put_be32s(f
, &env
->sysenter_esp
);
4833 qemu_put_be32s(f
, &env
->sysenter_eip
);
4835 qemu_put_betls(f
, &env
->cr
[0]);
4836 qemu_put_betls(f
, &env
->cr
[2]);
4837 qemu_put_betls(f
, &env
->cr
[3]);
4838 qemu_put_betls(f
, &env
->cr
[4]);
4840 for(i
= 0; i
< 8; i
++)
4841 qemu_put_betls(f
, &env
->dr
[i
]);
4844 qemu_put_be32s(f
, &env
->a20_mask
);
4847 qemu_put_be32s(f
, &env
->mxcsr
);
4848 for(i
= 0; i
< CPU_NB_REGS
; i
++) {
4849 qemu_put_be64s(f
, &env
->xmm_regs
[i
].XMM_Q(0));
4850 qemu_put_be64s(f
, &env
->xmm_regs
[i
].XMM_Q(1));
4853 #ifdef TARGET_X86_64
4854 qemu_put_be64s(f
, &env
->efer
);
4855 qemu_put_be64s(f
, &env
->star
);
4856 qemu_put_be64s(f
, &env
->lstar
);
4857 qemu_put_be64s(f
, &env
->cstar
);
4858 qemu_put_be64s(f
, &env
->fmask
);
4859 qemu_put_be64s(f
, &env
->kernelgsbase
);
4863 #ifdef USE_X86LDOUBLE
4864 /* XXX: add that in a FPU generic layer */
4865 union x86_longdouble
{
4870 #define MANTD1(fp) (fp & ((1LL << 52) - 1))
4871 #define EXPBIAS1 1023
4872 #define EXPD1(fp) ((fp >> 52) & 0x7FF)
4873 #define SIGND1(fp) ((fp >> 32) & 0x80000000)
4875 static void fp64_to_fp80(union x86_longdouble
*p
, uint64_t temp
)
4879 p
->mant
= (MANTD1(temp
) << 11) | (1LL << 63);
4880 /* exponent + sign */
4881 e
= EXPD1(temp
) - EXPBIAS1
+ 16383;
4882 e
|= SIGND1(temp
) >> 16;
4887 int cpu_load(QEMUFile
*f
, void *opaque
, int version_id
)
4889 CPUState
*env
= opaque
;
4892 uint16_t fpus
, fpuc
, fptag
, fpregs_format
;
4894 if (version_id
!= 3)
4896 for(i
= 0; i
< CPU_NB_REGS
; i
++)
4897 qemu_get_betls(f
, &env
->regs
[i
]);
4898 qemu_get_betls(f
, &env
->eip
);
4899 qemu_get_betls(f
, &env
->eflags
);
4900 qemu_get_be32s(f
, &hflags
);
4902 qemu_get_be16s(f
, &fpuc
);
4903 qemu_get_be16s(f
, &fpus
);
4904 qemu_get_be16s(f
, &fptag
);
4905 qemu_get_be16s(f
, &fpregs_format
);
4907 /* NOTE: we cannot always restore the FPU state if the image come
4908 from a host with a different 'USE_X86LDOUBLE' define. We guess
4909 if we are in an MMX state to restore correctly in that case. */
4910 guess_mmx
= ((fptag
== 0xff) && (fpus
& 0x3800) == 0);
4911 for(i
= 0; i
< 8; i
++) {
4915 switch(fpregs_format
) {
4917 mant
= qemu_get_be64(f
);
4918 exp
= qemu_get_be16(f
);
4919 #ifdef USE_X86LDOUBLE
4920 env
->fpregs
[i
].d
= cpu_set_fp80(mant
, exp
);
4922 /* difficult case */
4924 env
->fpregs
[i
].mmx
.MMX_Q(0) = mant
;
4926 env
->fpregs
[i
].d
= cpu_set_fp80(mant
, exp
);
4930 mant
= qemu_get_be64(f
);
4931 #ifdef USE_X86LDOUBLE
4933 union x86_longdouble
*p
;
4934 /* difficult case */
4935 p
= (void *)&env
->fpregs
[i
];
4940 fp64_to_fp80(p
, mant
);
4944 env
->fpregs
[i
].mmx
.MMX_Q(0) = mant
;
4953 /* XXX: restore FPU round state */
4954 env
->fpstt
= (fpus
>> 11) & 7;
4955 env
->fpus
= fpus
& ~0x3800;
4957 for(i
= 0; i
< 8; i
++) {
4958 env
->fptags
[i
] = (fptag
>> i
) & 1;
4961 for(i
= 0; i
< 6; i
++)
4962 cpu_get_seg(f
, &env
->segs
[i
]);
4963 cpu_get_seg(f
, &env
->ldt
);
4964 cpu_get_seg(f
, &env
->tr
);
4965 cpu_get_seg(f
, &env
->gdt
);
4966 cpu_get_seg(f
, &env
->idt
);
4968 qemu_get_be32s(f
, &env
->sysenter_cs
);
4969 qemu_get_be32s(f
, &env
->sysenter_esp
);
4970 qemu_get_be32s(f
, &env
->sysenter_eip
);
4972 qemu_get_betls(f
, &env
->cr
[0]);
4973 qemu_get_betls(f
, &env
->cr
[2]);
4974 qemu_get_betls(f
, &env
->cr
[3]);
4975 qemu_get_betls(f
, &env
->cr
[4]);
4977 for(i
= 0; i
< 8; i
++)
4978 qemu_get_betls(f
, &env
->dr
[i
]);
4981 qemu_get_be32s(f
, &env
->a20_mask
);
4983 qemu_get_be32s(f
, &env
->mxcsr
);
4984 for(i
= 0; i
< CPU_NB_REGS
; i
++) {
4985 qemu_get_be64s(f
, &env
->xmm_regs
[i
].XMM_Q(0));
4986 qemu_get_be64s(f
, &env
->xmm_regs
[i
].XMM_Q(1));
4989 #ifdef TARGET_X86_64
4990 qemu_get_be64s(f
, &env
->efer
);
4991 qemu_get_be64s(f
, &env
->star
);
4992 qemu_get_be64s(f
, &env
->lstar
);
4993 qemu_get_be64s(f
, &env
->cstar
);
4994 qemu_get_be64s(f
, &env
->fmask
);
4995 qemu_get_be64s(f
, &env
->kernelgsbase
);
4998 /* XXX: compute hflags from scratch, except for CPL and IIF */
4999 env
->hflags
= hflags
;
5004 #elif defined(TARGET_PPC)
5005 void cpu_save(QEMUFile
*f
, void *opaque
)
5009 int cpu_load(QEMUFile
*f
, void *opaque
, int version_id
)
5014 #elif defined(TARGET_MIPS)
5015 void cpu_save(QEMUFile
*f
, void *opaque
)
5019 int cpu_load(QEMUFile
*f
, void *opaque
, int version_id
)
5024 #elif defined(TARGET_SPARC)
5025 void cpu_save(QEMUFile
*f
, void *opaque
)
5027 CPUState
*env
= opaque
;
5031 for(i
= 0; i
< 8; i
++)
5032 qemu_put_betls(f
, &env
->gregs
[i
]);
5033 for(i
= 0; i
< NWINDOWS
* 16; i
++)
5034 qemu_put_betls(f
, &env
->regbase
[i
]);
5037 for(i
= 0; i
< TARGET_FPREGS
; i
++) {
5043 qemu_put_be32(f
, u
.i
);
5046 qemu_put_betls(f
, &env
->pc
);
5047 qemu_put_betls(f
, &env
->npc
);
5048 qemu_put_betls(f
, &env
->y
);
5050 qemu_put_be32(f
, tmp
);
5051 qemu_put_betls(f
, &env
->fsr
);
5052 qemu_put_betls(f
, &env
->tbr
);
5053 #ifndef TARGET_SPARC64
5054 qemu_put_be32s(f
, &env
->wim
);
5056 for(i
= 0; i
< 16; i
++)
5057 qemu_put_be32s(f
, &env
->mmuregs
[i
]);
5061 int cpu_load(QEMUFile
*f
, void *opaque
, int version_id
)
5063 CPUState
*env
= opaque
;
5067 for(i
= 0; i
< 8; i
++)
5068 qemu_get_betls(f
, &env
->gregs
[i
]);
5069 for(i
= 0; i
< NWINDOWS
* 16; i
++)
5070 qemu_get_betls(f
, &env
->regbase
[i
]);
5073 for(i
= 0; i
< TARGET_FPREGS
; i
++) {
5078 u
.i
= qemu_get_be32(f
);
5082 qemu_get_betls(f
, &env
->pc
);
5083 qemu_get_betls(f
, &env
->npc
);
5084 qemu_get_betls(f
, &env
->y
);
5085 tmp
= qemu_get_be32(f
);
5086 env
->cwp
= 0; /* needed to ensure that the wrapping registers are
5087 correctly updated */
5089 qemu_get_betls(f
, &env
->fsr
);
5090 qemu_get_betls(f
, &env
->tbr
);
5091 #ifndef TARGET_SPARC64
5092 qemu_get_be32s(f
, &env
->wim
);
5094 for(i
= 0; i
< 16; i
++)
5095 qemu_get_be32s(f
, &env
->mmuregs
[i
]);
5101 #elif defined(TARGET_ARM)
5103 /* ??? Need to implement these. */
5104 void cpu_save(QEMUFile
*f
, void *opaque
)
5108 int cpu_load(QEMUFile
*f
, void *opaque
, int version_id
)
5115 #warning No CPU save/restore functions
5119 /***********************************************************/
5120 /* ram save/restore */
5122 static int ram_get_page(QEMUFile
*f
, uint8_t *buf
, int len
)
5126 v
= qemu_get_byte(f
);
5129 if (qemu_get_buffer(f
, buf
, len
) != len
)
5133 v
= qemu_get_byte(f
);
5134 memset(buf
, v
, len
);
5142 static int ram_load_v1(QEMUFile
*f
, void *opaque
)
5146 if (qemu_get_be32(f
) != phys_ram_size
)
5148 for(i
= 0; i
< phys_ram_size
; i
+= TARGET_PAGE_SIZE
) {
5149 ret
= ram_get_page(f
, phys_ram_base
+ i
, TARGET_PAGE_SIZE
);
5156 #define BDRV_HASH_BLOCK_SIZE 1024
5157 #define IOBUF_SIZE 4096
5158 #define RAM_CBLOCK_MAGIC 0xfabe
5160 typedef struct RamCompressState
{
5163 uint8_t buf
[IOBUF_SIZE
];
5166 static int ram_compress_open(RamCompressState
*s
, QEMUFile
*f
)
5169 memset(s
, 0, sizeof(*s
));
5171 ret
= deflateInit2(&s
->zstream
, 1,
5173 9, Z_DEFAULT_STRATEGY
);
5176 s
->zstream
.avail_out
= IOBUF_SIZE
;
5177 s
->zstream
.next_out
= s
->buf
;
5181 static void ram_put_cblock(RamCompressState
*s
, const uint8_t *buf
, int len
)
5183 qemu_put_be16(s
->f
, RAM_CBLOCK_MAGIC
);
5184 qemu_put_be16(s
->f
, len
);
5185 qemu_put_buffer(s
->f
, buf
, len
);
5188 static int ram_compress_buf(RamCompressState
*s
, const uint8_t *buf
, int len
)
5192 s
->zstream
.avail_in
= len
;
5193 s
->zstream
.next_in
= (uint8_t *)buf
;
5194 while (s
->zstream
.avail_in
> 0) {
5195 ret
= deflate(&s
->zstream
, Z_NO_FLUSH
);
5198 if (s
->zstream
.avail_out
== 0) {
5199 ram_put_cblock(s
, s
->buf
, IOBUF_SIZE
);
5200 s
->zstream
.avail_out
= IOBUF_SIZE
;
5201 s
->zstream
.next_out
= s
->buf
;
5207 static void ram_compress_close(RamCompressState
*s
)
5211 /* compress last bytes */
5213 ret
= deflate(&s
->zstream
, Z_FINISH
);
5214 if (ret
== Z_OK
|| ret
== Z_STREAM_END
) {
5215 len
= IOBUF_SIZE
- s
->zstream
.avail_out
;
5217 ram_put_cblock(s
, s
->buf
, len
);
5219 s
->zstream
.avail_out
= IOBUF_SIZE
;
5220 s
->zstream
.next_out
= s
->buf
;
5221 if (ret
== Z_STREAM_END
)
5228 deflateEnd(&s
->zstream
);
5231 typedef struct RamDecompressState
{
5234 uint8_t buf
[IOBUF_SIZE
];
5235 } RamDecompressState
;
5237 static int ram_decompress_open(RamDecompressState
*s
, QEMUFile
*f
)
5240 memset(s
, 0, sizeof(*s
));
5242 ret
= inflateInit(&s
->zstream
);
5248 static int ram_decompress_buf(RamDecompressState
*s
, uint8_t *buf
, int len
)
5252 s
->zstream
.avail_out
= len
;
5253 s
->zstream
.next_out
= buf
;
5254 while (s
->zstream
.avail_out
> 0) {
5255 if (s
->zstream
.avail_in
== 0) {
5256 if (qemu_get_be16(s
->f
) != RAM_CBLOCK_MAGIC
)
5258 clen
= qemu_get_be16(s
->f
);
5259 if (clen
> IOBUF_SIZE
)
5261 qemu_get_buffer(s
->f
, s
->buf
, clen
);
5262 s
->zstream
.avail_in
= clen
;
5263 s
->zstream
.next_in
= s
->buf
;
5265 ret
= inflate(&s
->zstream
, Z_PARTIAL_FLUSH
);
5266 if (ret
!= Z_OK
&& ret
!= Z_STREAM_END
) {
5273 static void ram_decompress_close(RamDecompressState
*s
)
5275 inflateEnd(&s
->zstream
);
5278 static void ram_save(QEMUFile
*f
, void *opaque
)
5281 RamCompressState s1
, *s
= &s1
;
5284 qemu_put_be32(f
, phys_ram_size
);
5285 if (ram_compress_open(s
, f
) < 0)
5287 for(i
= 0; i
< phys_ram_size
; i
+= BDRV_HASH_BLOCK_SIZE
) {
5289 if (tight_savevm_enabled
) {
5293 /* find if the memory block is available on a virtual
5296 for(j
= 0; j
< MAX_DISKS
; j
++) {
5298 sector_num
= bdrv_hash_find(bs_table
[j
],
5299 phys_ram_base
+ i
, BDRV_HASH_BLOCK_SIZE
);
5300 if (sector_num
>= 0)
5305 goto normal_compress
;
5308 cpu_to_be64wu((uint64_t *)(buf
+ 2), sector_num
);
5309 ram_compress_buf(s
, buf
, 10);
5315 ram_compress_buf(s
, buf
, 1);
5316 ram_compress_buf(s
, phys_ram_base
+ i
, BDRV_HASH_BLOCK_SIZE
);
5319 ram_compress_close(s
);
5322 static int ram_load(QEMUFile
*f
, void *opaque
, int version_id
)
5324 RamDecompressState s1
, *s
= &s1
;
5328 if (version_id
== 1)
5329 return ram_load_v1(f
, opaque
);
5330 if (version_id
!= 2)
5332 if (qemu_get_be32(f
) != phys_ram_size
)
5334 if (ram_decompress_open(s
, f
) < 0)
5336 for(i
= 0; i
< phys_ram_size
; i
+= BDRV_HASH_BLOCK_SIZE
) {
5337 if (ram_decompress_buf(s
, buf
, 1) < 0) {
5338 fprintf(stderr
, "Error while reading ram block header\n");
5342 if (ram_decompress_buf(s
, phys_ram_base
+ i
, BDRV_HASH_BLOCK_SIZE
) < 0) {
5343 fprintf(stderr
, "Error while reading ram block address=0x%08x", i
);
5352 ram_decompress_buf(s
, buf
+ 1, 9);
5354 sector_num
= be64_to_cpupu((const uint64_t *)(buf
+ 2));
5355 if (bs_index
>= MAX_DISKS
|| bs_table
[bs_index
] == NULL
) {
5356 fprintf(stderr
, "Invalid block device index %d\n", bs_index
);
5359 if (bdrv_read(bs_table
[bs_index
], sector_num
, phys_ram_base
+ i
,
5360 BDRV_HASH_BLOCK_SIZE
/ 512) < 0) {
5361 fprintf(stderr
, "Error while reading sector %d:%" PRId64
"\n",
5362 bs_index
, sector_num
);
5369 printf("Error block header\n");
5373 ram_decompress_close(s
);
5377 /***********************************************************/
5378 /* bottom halves (can be seen as timers which expire ASAP) */
5387 static QEMUBH
*first_bh
= NULL
;
5389 QEMUBH
*qemu_bh_new(QEMUBHFunc
*cb
, void *opaque
)
5392 bh
= qemu_mallocz(sizeof(QEMUBH
));
5396 bh
->opaque
= opaque
;
5400 int qemu_bh_poll(void)
5419 void qemu_bh_schedule(QEMUBH
*bh
)
5421 CPUState
*env
= cpu_single_env
;
5425 bh
->next
= first_bh
;
5428 /* stop the currently executing CPU to execute the BH ASAP */
5430 cpu_interrupt(env
, CPU_INTERRUPT_EXIT
);
5434 void qemu_bh_cancel(QEMUBH
*bh
)
5437 if (bh
->scheduled
) {
5440 pbh
= &(*pbh
)->next
;
5446 void qemu_bh_delete(QEMUBH
*bh
)
5452 /***********************************************************/
5453 /* machine registration */
5455 QEMUMachine
*first_machine
= NULL
;
5457 int qemu_register_machine(QEMUMachine
*m
)
5460 pm
= &first_machine
;
5468 QEMUMachine
*find_machine(const char *name
)
5472 for(m
= first_machine
; m
!= NULL
; m
= m
->next
) {
5473 if (!strcmp(m
->name
, name
))
5479 /***********************************************************/
5480 /* main execution loop */
5482 void gui_update(void *opaque
)
5484 display_state
.dpy_refresh(&display_state
);
5485 qemu_mod_timer(gui_timer
, GUI_REFRESH_INTERVAL
+ qemu_get_clock(rt_clock
));
5488 struct vm_change_state_entry
{
5489 VMChangeStateHandler
*cb
;
5491 LIST_ENTRY (vm_change_state_entry
) entries
;
5494 static LIST_HEAD(vm_change_state_head
, vm_change_state_entry
) vm_change_state_head
;
5496 VMChangeStateEntry
*qemu_add_vm_change_state_handler(VMChangeStateHandler
*cb
,
5499 VMChangeStateEntry
*e
;
5501 e
= qemu_mallocz(sizeof (*e
));
5507 LIST_INSERT_HEAD(&vm_change_state_head
, e
, entries
);
5511 void qemu_del_vm_change_state_handler(VMChangeStateEntry
*e
)
5513 LIST_REMOVE (e
, entries
);
5517 static void vm_state_notify(int running
)
5519 VMChangeStateEntry
*e
;
5521 for (e
= vm_change_state_head
.lh_first
; e
; e
= e
->entries
.le_next
) {
5522 e
->cb(e
->opaque
, running
);
5526 /* XXX: support several handlers */
5527 static VMStopHandler
*vm_stop_cb
;
5528 static void *vm_stop_opaque
;
5530 int qemu_add_vm_stop_handler(VMStopHandler
*cb
, void *opaque
)
5533 vm_stop_opaque
= opaque
;
5537 void qemu_del_vm_stop_handler(VMStopHandler
*cb
, void *opaque
)
5551 void vm_stop(int reason
)
5554 cpu_disable_ticks();
5558 vm_stop_cb(vm_stop_opaque
, reason
);
5565 /* reset/shutdown handler */
5567 typedef struct QEMUResetEntry
{
5568 QEMUResetHandler
*func
;
5570 struct QEMUResetEntry
*next
;
5573 static QEMUResetEntry
*first_reset_entry
;
5574 static int reset_requested
;
5575 static int shutdown_requested
;
5576 static int powerdown_requested
;
5578 void qemu_register_reset(QEMUResetHandler
*func
, void *opaque
)
5580 QEMUResetEntry
**pre
, *re
;
5582 pre
= &first_reset_entry
;
5583 while (*pre
!= NULL
)
5584 pre
= &(*pre
)->next
;
5585 re
= qemu_mallocz(sizeof(QEMUResetEntry
));
5587 re
->opaque
= opaque
;
5592 void qemu_system_reset(void)
5596 /* reset all devices */
5597 for(re
= first_reset_entry
; re
!= NULL
; re
= re
->next
) {
5598 re
->func(re
->opaque
);
5602 void qemu_system_reset_request(void)
5604 reset_requested
= 1;
5606 cpu_interrupt(cpu_single_env
, CPU_INTERRUPT_EXIT
);
5609 void qemu_system_shutdown_request(void)
5611 shutdown_requested
= 1;
5613 cpu_interrupt(cpu_single_env
, CPU_INTERRUPT_EXIT
);
5616 void qemu_system_powerdown_request(void)
5618 powerdown_requested
= 1;
5620 cpu_interrupt(cpu_single_env
, CPU_INTERRUPT_EXIT
);
5623 void main_loop_wait(int timeout
)
5625 IOHandlerRecord
*ioh
, *ioh_next
;
5626 fd_set rfds
, wfds
, xfds
;
5632 /* XXX: need to suppress polling by better using win32 events */
5634 for(pe
= first_polling_entry
; pe
!= NULL
; pe
= pe
->next
) {
5635 ret
|= pe
->func(pe
->opaque
);
5638 if (ret
== 0 && timeout
> 0) {
5640 WaitObjects
*w
= &wait_objects
;
5642 ret
= WaitForMultipleObjects(w
->num
, w
->events
, FALSE
, timeout
);
5643 if (WAIT_OBJECT_0
+ 0 <= ret
&& ret
<= WAIT_OBJECT_0
+ w
->num
- 1) {
5644 if (w
->func
[ret
- WAIT_OBJECT_0
])
5645 w
->func
[ret
- WAIT_OBJECT_0
](w
->opaque
[ret
- WAIT_OBJECT_0
]);
5646 } else if (ret
== WAIT_TIMEOUT
) {
5648 err
= GetLastError();
5649 fprintf(stderr
, "Wait error %d %d\n", ret
, err
);
5653 /* poll any events */
5654 /* XXX: separate device handlers from system ones */
5659 for(ioh
= first_io_handler
; ioh
!= NULL
; ioh
= ioh
->next
) {
5661 (!ioh
->fd_read_poll
||
5662 ioh
->fd_read_poll(ioh
->opaque
) != 0)) {
5663 FD_SET(ioh
->fd
, &rfds
);
5667 if (ioh
->fd_write
) {
5668 FD_SET(ioh
->fd
, &wfds
);
5678 tv
.tv_usec
= timeout
* 1000;
5680 #if defined(CONFIG_SLIRP)
5682 slirp_select_fill(&nfds
, &rfds
, &wfds
, &xfds
);
5685 ret
= select(nfds
+ 1, &rfds
, &wfds
, &xfds
, &tv
);
5687 /* XXX: better handling of removal */
5688 for(ioh
= first_io_handler
; ioh
!= NULL
; ioh
= ioh_next
) {
5689 ioh_next
= ioh
->next
;
5690 if (FD_ISSET(ioh
->fd
, &rfds
)) {
5691 ioh
->fd_read(ioh
->opaque
);
5693 if (FD_ISSET(ioh
->fd
, &wfds
)) {
5694 ioh
->fd_write(ioh
->opaque
);
5698 #if defined(CONFIG_SLIRP)
5705 slirp_select_poll(&rfds
, &wfds
, &xfds
);
5715 qemu_run_timers(&active_timers
[QEMU_TIMER_VIRTUAL
],
5716 qemu_get_clock(vm_clock
));
5717 /* run dma transfers, if any */
5721 /* real time timers */
5722 qemu_run_timers(&active_timers
[QEMU_TIMER_REALTIME
],
5723 qemu_get_clock(rt_clock
));
5726 static CPUState
*cur_cpu
;
5731 #ifdef CONFIG_PROFILER
5736 cur_cpu
= first_cpu
;
5743 env
= env
->next_cpu
;
5746 #ifdef CONFIG_PROFILER
5747 ti
= profile_getclock();
5749 ret
= cpu_exec(env
);
5750 #ifdef CONFIG_PROFILER
5751 qemu_time
+= profile_getclock() - ti
;
5753 if (ret
!= EXCP_HALTED
)
5755 /* all CPUs are halted ? */
5756 if (env
== cur_cpu
) {
5763 if (shutdown_requested
) {
5764 ret
= EXCP_INTERRUPT
;
5767 if (reset_requested
) {
5768 reset_requested
= 0;
5769 qemu_system_reset();
5770 ret
= EXCP_INTERRUPT
;
5772 if (powerdown_requested
) {
5773 powerdown_requested
= 0;
5774 qemu_system_powerdown();
5775 ret
= EXCP_INTERRUPT
;
5777 if (ret
== EXCP_DEBUG
) {
5778 vm_stop(EXCP_DEBUG
);
5780 /* if hlt instruction, we wait until the next IRQ */
5781 /* XXX: use timeout computed from timers */
5782 if (ret
== EXCP_HLT
)
5789 #ifdef CONFIG_PROFILER
5790 ti
= profile_getclock();
5792 main_loop_wait(timeout
);
5793 #ifdef CONFIG_PROFILER
5794 dev_time
+= profile_getclock() - ti
;
5797 cpu_disable_ticks();
5803 printf("QEMU PC emulator version " QEMU_VERSION
", Copyright (c) 2003-2006 Fabrice Bellard\n"
5804 "usage: %s [options] [disk_image]\n"
5806 "'disk_image' is a raw hard image image for IDE hard disk 0\n"
5808 "Standard options:\n"
5809 "-M machine select emulated machine (-M ? for list)\n"
5810 "-fda/-fdb file use 'file' as floppy disk 0/1 image\n"
5811 "-hda/-hdb file use 'file' as IDE hard disk 0/1 image\n"
5812 "-hdc/-hdd file use 'file' as IDE hard disk 2/3 image\n"
5813 "-cdrom file use 'file' as IDE cdrom image (cdrom is ide1 master)\n"
5814 "-boot [a|c|d] boot on floppy (a), hard disk (c) or CD-ROM (d)\n"
5815 "-snapshot write to temporary files instead of disk image files\n"
5817 "-no-fd-bootchk disable boot signature checking for floppy disks\n"
5819 "-m megs set virtual RAM size to megs MB [default=%d]\n"
5820 "-smp n set the number of CPUs to 'n' [default=1]\n"
5821 "-nographic disable graphical output and redirect serial I/Os to console\n"
5823 "-k language use keyboard layout (for example \"fr\" for French)\n"
5826 "-audio-help print list of audio drivers and their options\n"
5827 "-soundhw c1,... enable audio support\n"
5828 " and only specified sound cards (comma separated list)\n"
5829 " use -soundhw ? to get the list of supported cards\n"
5830 " use -soundhw all to enable all of them\n"
5832 "-localtime set the real time clock to local time [default=utc]\n"
5833 "-full-screen start in full screen\n"
5835 "-win2k-hack use it when installing Windows 2000 to avoid a disk full bug\n"
5837 "-usb enable the USB driver (will be the default soon)\n"
5838 "-usbdevice name add the host or guest USB device 'name'\n"
5839 #if defined(TARGET_PPC) || defined(TARGET_SPARC)
5840 "-g WxH[xDEPTH] Set the initial graphical resolution and depth\n"
5843 "Network options:\n"
5844 "-net nic[,vlan=n][,macaddr=addr][,model=type]\n"
5845 " create a new Network Interface Card and connect it to VLAN 'n'\n"
5847 "-net user[,vlan=n][,hostname=host]\n"
5848 " connect the user mode network stack to VLAN 'n' and send\n"
5849 " hostname 'host' to DHCP clients\n"
5852 "-net tap[,vlan=n],ifname=name\n"
5853 " connect the host TAP network interface to VLAN 'n'\n"
5855 "-net tap[,vlan=n][,fd=h][,ifname=name][,script=file]\n"
5856 " connect the host TAP network interface to VLAN 'n' and use\n"
5857 " the network script 'file' (default=%s);\n"
5858 " use 'fd=h' to connect to an already opened TAP interface\n"
5860 "-net socket[,vlan=n][,fd=h][,listen=[host]:port][,connect=host:port]\n"
5861 " connect the vlan 'n' to another VLAN using a socket connection\n"
5862 "-net socket[,vlan=n][,fd=h][,mcast=maddr:port]\n"
5863 " connect the vlan 'n' to multicast maddr and port\n"
5864 "-net none use it alone to have zero network devices; if no -net option\n"
5865 " is provided, the default is '-net nic -net user'\n"
5868 "-tftp prefix allow tftp access to files starting with prefix [-net user]\n"
5870 "-smb dir allow SMB access to files in 'dir' [-net user]\n"
5872 "-redir [tcp|udp]:host-port:[guest-host]:guest-port\n"
5873 " redirect TCP or UDP connections from host to guest [-net user]\n"
5876 "Linux boot specific:\n"
5877 "-kernel bzImage use 'bzImage' as kernel image\n"
5878 "-append cmdline use 'cmdline' as kernel command line\n"
5879 "-initrd file use 'file' as initial ram disk\n"
5881 "Debug/Expert options:\n"
5882 "-monitor dev redirect the monitor to char device 'dev'\n"
5883 "-serial dev redirect the serial port to char device 'dev'\n"
5884 "-parallel dev redirect the parallel port to char device 'dev'\n"
5885 "-pidfile file Write PID to 'file'\n"
5886 "-S freeze CPU at startup (use 'c' to start execution)\n"
5887 "-s wait gdb connection to port %d\n"
5888 "-p port change gdb connection port\n"
5889 "-d item1,... output log to %s (use -d ? for a list of log items)\n"
5890 "-hdachs c,h,s[,t] force hard disk 0 physical geometry and the optional BIOS\n"
5891 " translation (t=none or lba) (usually qemu can guess them)\n"
5892 "-L path set the directory for the BIOS and VGA BIOS\n"
5894 "-kernel-kqemu enable KQEMU full virtualization (default is user mode only)\n"
5895 "-no-kqemu disable KQEMU kernel module usage\n"
5897 #ifdef USE_CODE_COPY
5898 "-no-code-copy disable code copy acceleration\n"
5901 "-std-vga simulate a standard VGA card with VESA Bochs Extensions\n"
5902 " (default is CL-GD5446 PCI VGA)\n"
5903 "-no-acpi disable ACPI\n"
5905 "-loadvm file start right away with a saved state (loadvm in monitor)\n"
5906 "-vnc display start a VNC server on display\n"
5908 "During emulation, the following keys are useful:\n"
5909 "ctrl-alt-f toggle full screen\n"
5910 "ctrl-alt-n switch to virtual console 'n'\n"
5911 "ctrl-alt toggle mouse and keyboard grab\n"
5913 "When using -nographic, press 'ctrl-a h' to get some help.\n"
5918 DEFAULT_NETWORK_SCRIPT
,
5920 DEFAULT_GDBSTUB_PORT
,
5925 #define HAS_ARG 0x0001
5939 QEMU_OPTION_snapshot
,
5941 QEMU_OPTION_no_fd_bootchk
,
5944 QEMU_OPTION_nographic
,
5946 QEMU_OPTION_audio_help
,
5947 QEMU_OPTION_soundhw
,
5965 QEMU_OPTION_no_code_copy
,
5967 QEMU_OPTION_localtime
,
5968 QEMU_OPTION_cirrusvga
,
5970 QEMU_OPTION_std_vga
,
5971 QEMU_OPTION_monitor
,
5973 QEMU_OPTION_parallel
,
5975 QEMU_OPTION_full_screen
,
5976 QEMU_OPTION_pidfile
,
5977 QEMU_OPTION_no_kqemu
,
5978 QEMU_OPTION_kernel_kqemu
,
5979 QEMU_OPTION_win2k_hack
,
5981 QEMU_OPTION_usbdevice
,
5984 QEMU_OPTION_no_acpi
,
5987 typedef struct QEMUOption
{
5993 const QEMUOption qemu_options
[] = {
5994 { "h", 0, QEMU_OPTION_h
},
5996 { "M", HAS_ARG
, QEMU_OPTION_M
},
5997 { "fda", HAS_ARG
, QEMU_OPTION_fda
},
5998 { "fdb", HAS_ARG
, QEMU_OPTION_fdb
},
5999 { "hda", HAS_ARG
, QEMU_OPTION_hda
},
6000 { "hdb", HAS_ARG
, QEMU_OPTION_hdb
},
6001 { "hdc", HAS_ARG
, QEMU_OPTION_hdc
},
6002 { "hdd", HAS_ARG
, QEMU_OPTION_hdd
},
6003 { "cdrom", HAS_ARG
, QEMU_OPTION_cdrom
},
6004 { "boot", HAS_ARG
, QEMU_OPTION_boot
},
6005 { "snapshot", 0, QEMU_OPTION_snapshot
},
6007 { "no-fd-bootchk", 0, QEMU_OPTION_no_fd_bootchk
},
6009 { "m", HAS_ARG
, QEMU_OPTION_m
},
6010 { "nographic", 0, QEMU_OPTION_nographic
},
6011 { "k", HAS_ARG
, QEMU_OPTION_k
},
6013 { "audio-help", 0, QEMU_OPTION_audio_help
},
6014 { "soundhw", HAS_ARG
, QEMU_OPTION_soundhw
},
6017 { "net", HAS_ARG
, QEMU_OPTION_net
},
6019 { "tftp", HAS_ARG
, QEMU_OPTION_tftp
},
6021 { "smb", HAS_ARG
, QEMU_OPTION_smb
},
6023 { "redir", HAS_ARG
, QEMU_OPTION_redir
},
6026 { "kernel", HAS_ARG
, QEMU_OPTION_kernel
},
6027 { "append", HAS_ARG
, QEMU_OPTION_append
},
6028 { "initrd", HAS_ARG
, QEMU_OPTION_initrd
},
6030 { "S", 0, QEMU_OPTION_S
},
6031 { "s", 0, QEMU_OPTION_s
},
6032 { "p", HAS_ARG
, QEMU_OPTION_p
},
6033 { "d", HAS_ARG
, QEMU_OPTION_d
},
6034 { "hdachs", HAS_ARG
, QEMU_OPTION_hdachs
},
6035 { "L", HAS_ARG
, QEMU_OPTION_L
},
6036 { "no-code-copy", 0, QEMU_OPTION_no_code_copy
},
6038 { "no-kqemu", 0, QEMU_OPTION_no_kqemu
},
6039 { "kernel-kqemu", 0, QEMU_OPTION_kernel_kqemu
},
6041 #if defined(TARGET_PPC) || defined(TARGET_SPARC)
6042 { "g", 1, QEMU_OPTION_g
},
6044 { "localtime", 0, QEMU_OPTION_localtime
},
6045 { "std-vga", 0, QEMU_OPTION_std_vga
},
6046 { "monitor", 1, QEMU_OPTION_monitor
},
6047 { "serial", 1, QEMU_OPTION_serial
},
6048 { "parallel", 1, QEMU_OPTION_parallel
},
6049 { "loadvm", HAS_ARG
, QEMU_OPTION_loadvm
},
6050 { "full-screen", 0, QEMU_OPTION_full_screen
},
6051 { "pidfile", HAS_ARG
, QEMU_OPTION_pidfile
},
6052 { "win2k-hack", 0, QEMU_OPTION_win2k_hack
},
6053 { "usbdevice", HAS_ARG
, QEMU_OPTION_usbdevice
},
6054 { "smp", HAS_ARG
, QEMU_OPTION_smp
},
6055 { "vnc", HAS_ARG
, QEMU_OPTION_vnc
},
6057 /* temporary options */
6058 { "usb", 0, QEMU_OPTION_usb
},
6059 { "cirrusvga", 0, QEMU_OPTION_cirrusvga
},
6060 { "no-acpi", 0, QEMU_OPTION_no_acpi
},
6064 #if defined (TARGET_I386) && defined(USE_CODE_COPY)
6066 /* this stack is only used during signal handling */
6067 #define SIGNAL_STACK_SIZE 32768
6069 static uint8_t *signal_stack
;
6073 /* password input */
6075 static BlockDriverState
*get_bdrv(int index
)
6077 BlockDriverState
*bs
;
6080 bs
= bs_table
[index
];
6081 } else if (index
< 6) {
6082 bs
= fd_table
[index
- 4];
6089 static void read_passwords(void)
6091 BlockDriverState
*bs
;
6095 for(i
= 0; i
< 6; i
++) {
6097 if (bs
&& bdrv_is_encrypted(bs
)) {
6098 term_printf("%s is encrypted.\n", bdrv_get_device_name(bs
));
6099 for(j
= 0; j
< 3; j
++) {
6100 monitor_readline("Password: ",
6101 1, password
, sizeof(password
));
6102 if (bdrv_set_key(bs
, password
) == 0)
6104 term_printf("invalid password\n");
6110 /* XXX: currently we cannot use simultaneously different CPUs */
6111 void register_machines(void)
6113 #if defined(TARGET_I386)
6114 qemu_register_machine(&pc_machine
);
6115 qemu_register_machine(&isapc_machine
);
6116 #elif defined(TARGET_PPC)
6117 qemu_register_machine(&heathrow_machine
);
6118 qemu_register_machine(&core99_machine
);
6119 qemu_register_machine(&prep_machine
);
6120 #elif defined(TARGET_MIPS)
6121 qemu_register_machine(&mips_machine
);
6122 #elif defined(TARGET_SPARC)
6123 #ifdef TARGET_SPARC64
6124 qemu_register_machine(&sun4u_machine
);
6126 qemu_register_machine(&sun4m_machine
);
6128 #elif defined(TARGET_ARM)
6129 qemu_register_machine(&integratorcp926_machine
);
6130 qemu_register_machine(&integratorcp1026_machine
);
6131 qemu_register_machine(&versatilepb_machine
);
6132 qemu_register_machine(&versatileab_machine
);
6133 #elif defined(TARGET_SH4)
6134 qemu_register_machine(&shix_machine
);
6136 #error unsupported CPU
6141 struct soundhw soundhw
[] = {
6148 { .init_isa
= pcspk_audio_init
}
6153 "Creative Sound Blaster 16",
6156 { .init_isa
= SB16_init
}
6163 "Yamaha YMF262 (OPL3)",
6165 "Yamaha YM3812 (OPL2)",
6169 { .init_isa
= Adlib_init
}
6176 "Gravis Ultrasound GF1",
6179 { .init_isa
= GUS_init
}
6185 "ENSONIQ AudioPCI ES1370",
6188 { .init_pci
= es1370_init
}
6191 { NULL
, NULL
, 0, 0, { NULL
} }
6194 static void select_soundhw (const char *optarg
)
6198 if (*optarg
== '?') {
6201 printf ("Valid sound card names (comma separated):\n");
6202 for (c
= soundhw
; c
->name
; ++c
) {
6203 printf ("%-11s %s\n", c
->name
, c
->descr
);
6205 printf ("\n-soundhw all will enable all of the above\n");
6206 exit (*optarg
!= '?');
6214 if (!strcmp (optarg
, "all")) {
6215 for (c
= soundhw
; c
->name
; ++c
) {
6223 e
= strchr (p
, ',');
6224 l
= !e
? strlen (p
) : (size_t) (e
- p
);
6226 for (c
= soundhw
; c
->name
; ++c
) {
6227 if (!strncmp (c
->name
, p
, l
)) {
6236 "Unknown sound card name (too big to show)\n");
6239 fprintf (stderr
, "Unknown sound card name `%.*s'\n",
6244 p
+= l
+ (e
!= NULL
);
6248 goto show_valid_cards
;
6254 static BOOL WINAPI
qemu_ctrl_handler(DWORD type
)
6256 exit(STATUS_CONTROL_C_EXIT
);
6261 #define MAX_NET_CLIENTS 32
6263 int main(int argc
, char **argv
)
6265 #ifdef CONFIG_GDBSTUB
6266 int use_gdbstub
, gdbstub_port
;
6269 int snapshot
, linux_boot
;
6270 const char *initrd_filename
;
6271 const char *hd_filename
[MAX_DISKS
], *fd_filename
[MAX_FD
];
6272 const char *kernel_filename
, *kernel_cmdline
;
6273 DisplayState
*ds
= &display_state
;
6274 int cyls
, heads
, secs
, translation
;
6275 int start_emulation
= 1;
6276 char net_clients
[MAX_NET_CLIENTS
][256];
6279 const char *r
, *optarg
;
6280 CharDriverState
*monitor_hd
;
6281 char monitor_device
[128];
6282 char serial_devices
[MAX_SERIAL_PORTS
][128];
6283 int serial_device_index
;
6284 char parallel_devices
[MAX_PARALLEL_PORTS
][128];
6285 int parallel_device_index
;
6286 const char *loadvm
= NULL
;
6287 QEMUMachine
*machine
;
6288 char usb_devices
[MAX_USB_CMDLINE
][128];
6289 int usb_devices_index
;
6291 LIST_INIT (&vm_change_state_head
);
6294 struct sigaction act
;
6295 sigfillset(&act
.sa_mask
);
6297 act
.sa_handler
= SIG_IGN
;
6298 sigaction(SIGPIPE
, &act
, NULL
);
6301 SetConsoleCtrlHandler(qemu_ctrl_handler
, TRUE
);
6302 /* Note: cpu_interrupt() is currently not SMP safe, so we force
6303 QEMU to run on a single CPU */
6308 h
= GetCurrentProcess();
6309 if (GetProcessAffinityMask(h
, &mask
, &smask
)) {
6310 for(i
= 0; i
< 32; i
++) {
6311 if (mask
& (1 << i
))
6316 SetProcessAffinityMask(h
, mask
);
6322 register_machines();
6323 machine
= first_machine
;
6324 initrd_filename
= NULL
;
6325 for(i
= 0; i
< MAX_FD
; i
++)
6326 fd_filename
[i
] = NULL
;
6327 for(i
= 0; i
< MAX_DISKS
; i
++)
6328 hd_filename
[i
] = NULL
;
6329 ram_size
= DEFAULT_RAM_SIZE
* 1024 * 1024;
6330 vga_ram_size
= VGA_RAM_SIZE
;
6331 bios_size
= BIOS_SIZE
;
6332 #ifdef CONFIG_GDBSTUB
6334 gdbstub_port
= DEFAULT_GDBSTUB_PORT
;
6338 kernel_filename
= NULL
;
6339 kernel_cmdline
= "";
6345 cyls
= heads
= secs
= 0;
6346 translation
= BIOS_ATA_TRANSLATION_AUTO
;
6347 pstrcpy(monitor_device
, sizeof(monitor_device
), "vc");
6349 pstrcpy(serial_devices
[0], sizeof(serial_devices
[0]), "vc");
6350 for(i
= 1; i
< MAX_SERIAL_PORTS
; i
++)
6351 serial_devices
[i
][0] = '\0';
6352 serial_device_index
= 0;
6354 pstrcpy(parallel_devices
[0], sizeof(parallel_devices
[0]), "vc");
6355 for(i
= 1; i
< MAX_PARALLEL_PORTS
; i
++)
6356 parallel_devices
[i
][0] = '\0';
6357 parallel_device_index
= 0;
6359 usb_devices_index
= 0;
6364 /* default mac address of the first network interface */
6372 hd_filename
[0] = argv
[optind
++];
6374 const QEMUOption
*popt
;
6377 popt
= qemu_options
;
6380 fprintf(stderr
, "%s: invalid option -- '%s'\n",
6384 if (!strcmp(popt
->name
, r
+ 1))
6388 if (popt
->flags
& HAS_ARG
) {
6389 if (optind
>= argc
) {
6390 fprintf(stderr
, "%s: option '%s' requires an argument\n",
6394 optarg
= argv
[optind
++];
6399 switch(popt
->index
) {
6401 machine
= find_machine(optarg
);
6404 printf("Supported machines are:\n");
6405 for(m
= first_machine
; m
!= NULL
; m
= m
->next
) {
6406 printf("%-10s %s%s\n",
6408 m
== first_machine
? " (default)" : "");
6413 case QEMU_OPTION_initrd
:
6414 initrd_filename
= optarg
;
6416 case QEMU_OPTION_hda
:
6417 case QEMU_OPTION_hdb
:
6418 case QEMU_OPTION_hdc
:
6419 case QEMU_OPTION_hdd
:
6422 hd_index
= popt
->index
- QEMU_OPTION_hda
;
6423 hd_filename
[hd_index
] = optarg
;
6424 if (hd_index
== cdrom_index
)
6428 case QEMU_OPTION_snapshot
:
6431 case QEMU_OPTION_hdachs
:
6435 cyls
= strtol(p
, (char **)&p
, 0);
6436 if (cyls
< 1 || cyls
> 16383)
6441 heads
= strtol(p
, (char **)&p
, 0);
6442 if (heads
< 1 || heads
> 16)
6447 secs
= strtol(p
, (char **)&p
, 0);
6448 if (secs
< 1 || secs
> 63)
6452 if (!strcmp(p
, "none"))
6453 translation
= BIOS_ATA_TRANSLATION_NONE
;
6454 else if (!strcmp(p
, "lba"))
6455 translation
= BIOS_ATA_TRANSLATION_LBA
;
6456 else if (!strcmp(p
, "auto"))
6457 translation
= BIOS_ATA_TRANSLATION_AUTO
;
6460 } else if (*p
!= '\0') {
6462 fprintf(stderr
, "qemu: invalid physical CHS format\n");
6467 case QEMU_OPTION_nographic
:
6468 pstrcpy(monitor_device
, sizeof(monitor_device
), "stdio");
6469 pstrcpy(serial_devices
[0], sizeof(serial_devices
[0]), "stdio");
6472 case QEMU_OPTION_kernel
:
6473 kernel_filename
= optarg
;
6475 case QEMU_OPTION_append
:
6476 kernel_cmdline
= optarg
;
6478 case QEMU_OPTION_cdrom
:
6479 if (cdrom_index
>= 0) {
6480 hd_filename
[cdrom_index
] = optarg
;
6483 case QEMU_OPTION_boot
:
6484 boot_device
= optarg
[0];
6485 if (boot_device
!= 'a' &&
6488 boot_device
!= 'n' &&
6490 boot_device
!= 'c' && boot_device
!= 'd') {
6491 fprintf(stderr
, "qemu: invalid boot device '%c'\n", boot_device
);
6495 case QEMU_OPTION_fda
:
6496 fd_filename
[0] = optarg
;
6498 case QEMU_OPTION_fdb
:
6499 fd_filename
[1] = optarg
;
6502 case QEMU_OPTION_no_fd_bootchk
:
6506 case QEMU_OPTION_no_code_copy
:
6507 code_copy_enabled
= 0;
6509 case QEMU_OPTION_net
:
6510 if (nb_net_clients
>= MAX_NET_CLIENTS
) {
6511 fprintf(stderr
, "qemu: too many network clients\n");
6514 pstrcpy(net_clients
[nb_net_clients
],
6515 sizeof(net_clients
[0]),
6520 case QEMU_OPTION_tftp
:
6521 tftp_prefix
= optarg
;
6524 case QEMU_OPTION_smb
:
6525 net_slirp_smb(optarg
);
6528 case QEMU_OPTION_redir
:
6529 net_slirp_redir(optarg
);
6533 case QEMU_OPTION_audio_help
:
6537 case QEMU_OPTION_soundhw
:
6538 select_soundhw (optarg
);
6545 ram_size
= atoi(optarg
) * 1024 * 1024;
6548 if (ram_size
> PHYS_RAM_MAX_SIZE
) {
6549 fprintf(stderr
, "qemu: at most %d MB RAM can be simulated\n",
6550 PHYS_RAM_MAX_SIZE
/ (1024 * 1024));
6559 mask
= cpu_str_to_log_mask(optarg
);
6561 printf("Log items (comma separated):\n");
6562 for(item
= cpu_log_items
; item
->mask
!= 0; item
++) {
6563 printf("%-10s %s\n", item
->name
, item
->help
);
6570 #ifdef CONFIG_GDBSTUB
6575 gdbstub_port
= atoi(optarg
);
6582 start_emulation
= 0;
6585 keyboard_layout
= optarg
;
6587 case QEMU_OPTION_localtime
:
6590 case QEMU_OPTION_cirrusvga
:
6591 cirrus_vga_enabled
= 1;
6593 case QEMU_OPTION_std_vga
:
6594 cirrus_vga_enabled
= 0;
6601 w
= strtol(p
, (char **)&p
, 10);
6604 fprintf(stderr
, "qemu: invalid resolution or depth\n");
6610 h
= strtol(p
, (char **)&p
, 10);
6615 depth
= strtol(p
, (char **)&p
, 10);
6616 if (depth
!= 8 && depth
!= 15 && depth
!= 16 &&
6617 depth
!= 24 && depth
!= 32)
6619 } else if (*p
== '\0') {
6620 depth
= graphic_depth
;
6627 graphic_depth
= depth
;
6630 case QEMU_OPTION_monitor
:
6631 pstrcpy(monitor_device
, sizeof(monitor_device
), optarg
);
6633 case QEMU_OPTION_serial
:
6634 if (serial_device_index
>= MAX_SERIAL_PORTS
) {
6635 fprintf(stderr
, "qemu: too many serial ports\n");
6638 pstrcpy(serial_devices
[serial_device_index
],
6639 sizeof(serial_devices
[0]), optarg
);
6640 serial_device_index
++;
6642 case QEMU_OPTION_parallel
:
6643 if (parallel_device_index
>= MAX_PARALLEL_PORTS
) {
6644 fprintf(stderr
, "qemu: too many parallel ports\n");
6647 pstrcpy(parallel_devices
[parallel_device_index
],
6648 sizeof(parallel_devices
[0]), optarg
);
6649 parallel_device_index
++;
6651 case QEMU_OPTION_loadvm
:
6654 case QEMU_OPTION_full_screen
:
6657 case QEMU_OPTION_pidfile
:
6658 create_pidfile(optarg
);
6661 case QEMU_OPTION_win2k_hack
:
6662 win2k_install_hack
= 1;
6666 case QEMU_OPTION_no_kqemu
:
6669 case QEMU_OPTION_kernel_kqemu
:
6673 case QEMU_OPTION_usb
:
6676 case QEMU_OPTION_usbdevice
:
6678 if (usb_devices_index
>= MAX_USB_CMDLINE
) {
6679 fprintf(stderr
, "Too many USB devices\n");
6682 pstrcpy(usb_devices
[usb_devices_index
],
6683 sizeof(usb_devices
[usb_devices_index
]),
6685 usb_devices_index
++;
6687 case QEMU_OPTION_smp
:
6688 smp_cpus
= atoi(optarg
);
6689 if (smp_cpus
< 1 || smp_cpus
> MAX_CPUS
) {
6690 fprintf(stderr
, "Invalid number of CPUs\n");
6694 case QEMU_OPTION_vnc
:
6695 vnc_display
= atoi(optarg
);
6696 if (vnc_display
< 0) {
6697 fprintf(stderr
, "Invalid VNC display\n");
6701 case QEMU_OPTION_no_acpi
:
6712 linux_boot
= (kernel_filename
!= NULL
);
6715 hd_filename
[0] == '\0' &&
6716 (cdrom_index
>= 0 && hd_filename
[cdrom_index
] == '\0') &&
6717 fd_filename
[0] == '\0')
6720 /* boot to cd by default if no hard disk */
6721 if (hd_filename
[0] == '\0' && boot_device
== 'c') {
6722 if (fd_filename
[0] != '\0')
6728 setvbuf(stdout
, NULL
, _IOLBF
, 0);
6738 /* init network clients */
6739 if (nb_net_clients
== 0) {
6740 /* if no clients, we use a default config */
6741 pstrcpy(net_clients
[0], sizeof(net_clients
[0]),
6743 pstrcpy(net_clients
[1], sizeof(net_clients
[0]),
6748 for(i
= 0;i
< nb_net_clients
; i
++) {
6749 if (net_client_init(net_clients
[i
]) < 0)
6753 /* init the memory */
6754 phys_ram_size
= ram_size
+ vga_ram_size
+ bios_size
;
6756 phys_ram_base
= qemu_vmalloc(phys_ram_size
);
6757 if (!phys_ram_base
) {
6758 fprintf(stderr
, "Could not allocate physical memory\n");
6762 /* we always create the cdrom drive, even if no disk is there */
6764 if (cdrom_index
>= 0) {
6765 bs_table
[cdrom_index
] = bdrv_new("cdrom");
6766 bdrv_set_type_hint(bs_table
[cdrom_index
], BDRV_TYPE_CDROM
);
6769 /* open the virtual block devices */
6770 for(i
= 0; i
< MAX_DISKS
; i
++) {
6771 if (hd_filename
[i
]) {
6774 snprintf(buf
, sizeof(buf
), "hd%c", i
+ 'a');
6775 bs_table
[i
] = bdrv_new(buf
);
6777 if (bdrv_open(bs_table
[i
], hd_filename
[i
], snapshot
? BDRV_O_SNAPSHOT
: 0) < 0) {
6778 fprintf(stderr
, "qemu: could not open hard disk image '%s'\n",
6782 if (i
== 0 && cyls
!= 0) {
6783 bdrv_set_geometry_hint(bs_table
[i
], cyls
, heads
, secs
);
6784 bdrv_set_translation_hint(bs_table
[i
], translation
);
6789 /* we always create at least one floppy disk */
6790 fd_table
[0] = bdrv_new("fda");
6791 bdrv_set_type_hint(fd_table
[0], BDRV_TYPE_FLOPPY
);
6793 for(i
= 0; i
< MAX_FD
; i
++) {
6794 if (fd_filename
[i
]) {
6797 snprintf(buf
, sizeof(buf
), "fd%c", i
+ 'a');
6798 fd_table
[i
] = bdrv_new(buf
);
6799 bdrv_set_type_hint(fd_table
[i
], BDRV_TYPE_FLOPPY
);
6801 if (fd_filename
[i
] != '\0') {
6802 if (bdrv_open(fd_table
[i
], fd_filename
[i
],
6803 snapshot
? BDRV_O_SNAPSHOT
: 0) < 0) {
6804 fprintf(stderr
, "qemu: could not open floppy disk image '%s'\n",
6812 register_savevm("timer", 0, 2, timer_save
, timer_load
, NULL
);
6813 register_savevm("ram", 0, 2, ram_save
, ram_load
, NULL
);
6819 dumb_display_init(ds
);
6820 } else if (vnc_display
!= -1) {
6821 vnc_display_init(ds
, vnc_display
);
6823 #if defined(CONFIG_SDL)
6824 sdl_display_init(ds
, full_screen
);
6825 #elif defined(CONFIG_COCOA)
6826 cocoa_display_init(ds
, full_screen
);
6828 dumb_display_init(ds
);
6832 monitor_hd
= qemu_chr_open(monitor_device
);
6834 fprintf(stderr
, "qemu: could not open monitor device '%s'\n", monitor_device
);
6837 monitor_init(monitor_hd
, !nographic
);
6839 for(i
= 0; i
< MAX_SERIAL_PORTS
; i
++) {
6840 if (serial_devices
[i
][0] != '\0') {
6841 serial_hds
[i
] = qemu_chr_open(serial_devices
[i
]);
6842 if (!serial_hds
[i
]) {
6843 fprintf(stderr
, "qemu: could not open serial device '%s'\n",
6847 if (!strcmp(serial_devices
[i
], "vc"))
6848 qemu_chr_printf(serial_hds
[i
], "serial%d console\r\n", i
);
6852 for(i
= 0; i
< MAX_PARALLEL_PORTS
; i
++) {
6853 if (parallel_devices
[i
][0] != '\0') {
6854 parallel_hds
[i
] = qemu_chr_open(parallel_devices
[i
]);
6855 if (!parallel_hds
[i
]) {
6856 fprintf(stderr
, "qemu: could not open parallel device '%s'\n",
6857 parallel_devices
[i
]);
6860 if (!strcmp(parallel_devices
[i
], "vc"))
6861 qemu_chr_printf(parallel_hds
[i
], "parallel%d console\r\n", i
);
6865 machine
->init(ram_size
, vga_ram_size
, boot_device
,
6866 ds
, fd_filename
, snapshot
,
6867 kernel_filename
, kernel_cmdline
, initrd_filename
);
6869 /* init USB devices */
6871 for(i
= 0; i
< usb_devices_index
; i
++) {
6872 if (usb_device_add(usb_devices
[i
]) < 0) {
6873 fprintf(stderr
, "Warning: could not add USB device %s\n",
6879 gui_timer
= qemu_new_timer(rt_clock
, gui_update
, NULL
);
6880 qemu_mod_timer(gui_timer
, qemu_get_clock(rt_clock
));
6882 #ifdef CONFIG_GDBSTUB
6884 if (gdbserver_start(gdbstub_port
) < 0) {
6885 fprintf(stderr
, "Could not open gdbserver socket on port %d\n",
6889 printf("Waiting gdb connection on port %d\n", gdbstub_port
);
6897 /* XXX: simplify init */
6899 if (start_emulation
) {