4 * Copyright (c) 2003-2008 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
25 #include "config-host.h"
28 #include <arpa/inet.h>
35 #include "qemu-common.h"
39 #include "monitor/monitor.h"
40 #include "sysemu/sysemu.h"
41 #include "qemu/timer.h"
42 #include "audio/audio.h"
43 #include "migration/migration.h"
44 #include "qemu/sockets.h"
45 #include "qemu/queue.h"
46 #include "sysemu/cpus.h"
47 #include "exec/memory.h"
48 #include "qmp-commands.h"
50 #include "qemu/bitops.h"
52 #define SELF_ANNOUNCE_ROUNDS 5
55 #define ETH_P_RARP 0x8035
57 #define ARP_HTYPE_ETH 0x0001
58 #define ARP_PTYPE_IP 0x0800
59 #define ARP_OP_REQUEST_REV 0x3
61 static int announce_self_create(uint8_t *buf
,
64 /* Ethernet header. */
65 memset(buf
, 0xff, 6); /* destination MAC addr */
66 memcpy(buf
+ 6, mac_addr
, 6); /* source MAC addr */
67 *(uint16_t *)(buf
+ 12) = htons(ETH_P_RARP
); /* ethertype */
70 *(uint16_t *)(buf
+ 14) = htons(ARP_HTYPE_ETH
); /* hardware addr space */
71 *(uint16_t *)(buf
+ 16) = htons(ARP_PTYPE_IP
); /* protocol addr space */
72 *(buf
+ 18) = 6; /* hardware addr length (ethernet) */
73 *(buf
+ 19) = 4; /* protocol addr length (IPv4) */
74 *(uint16_t *)(buf
+ 20) = htons(ARP_OP_REQUEST_REV
); /* opcode */
75 memcpy(buf
+ 22, mac_addr
, 6); /* source hw addr */
76 memset(buf
+ 28, 0x00, 4); /* source protocol addr */
77 memcpy(buf
+ 32, mac_addr
, 6); /* target hw addr */
78 memset(buf
+ 38, 0x00, 4); /* target protocol addr */
80 /* Padding to get up to 60 bytes (ethernet min packet size, minus FCS). */
81 memset(buf
+ 42, 0x00, 18);
83 return 60; /* len (FCS will be added by hardware) */
86 static void qemu_announce_self_iter(NICState
*nic
, void *opaque
)
91 len
= announce_self_create(buf
, nic
->conf
->macaddr
.a
);
93 qemu_send_packet_raw(&nic
->nc
, buf
, len
);
97 static void qemu_announce_self_once(void *opaque
)
99 static int count
= SELF_ANNOUNCE_ROUNDS
;
100 QEMUTimer
*timer
= *(QEMUTimer
**)opaque
;
102 qemu_foreach_nic(qemu_announce_self_iter
, NULL
);
105 /* delay 50ms, 150ms, 250ms, ... */
106 qemu_mod_timer(timer
, qemu_get_clock_ms(rt_clock
) +
107 50 + (SELF_ANNOUNCE_ROUNDS
- count
- 1) * 100);
109 qemu_del_timer(timer
);
110 qemu_free_timer(timer
);
114 void qemu_announce_self(void)
116 static QEMUTimer
*timer
;
117 timer
= qemu_new_timer_ms(rt_clock
, qemu_announce_self_once
, &timer
);
118 qemu_announce_self_once(&timer
);
121 /***********************************************************/
122 /* savevm/loadvm support */
124 #define IO_BUF_SIZE 32768
127 const QEMUFileOps
*ops
;
131 int64_t buf_offset
; /* start of buffer when writing, end of buffer
134 int buf_size
; /* 0 when writing */
135 uint8_t buf
[IO_BUF_SIZE
];
140 typedef struct QEMUFileStdio
146 typedef struct QEMUFileSocket
152 static int socket_get_fd(void *opaque
)
154 QEMUFileSocket
*s
= opaque
;
159 static int socket_get_buffer(void *opaque
, uint8_t *buf
, int64_t pos
, int size
)
161 QEMUFileSocket
*s
= opaque
;
165 len
= qemu_recv(s
->fd
, buf
, size
, 0);
169 if (socket_error() == EAGAIN
) {
170 assert(qemu_in_coroutine());
171 qemu_coroutine_yield();
172 } else if (socket_error() != EINTR
) {
178 len
= -socket_error();
183 static int socket_close(void *opaque
)
185 QEMUFileSocket
*s
= opaque
;
191 static int stdio_get_fd(void *opaque
)
193 QEMUFileStdio
*s
= opaque
;
195 return fileno(s
->stdio_file
);
198 static int stdio_put_buffer(void *opaque
, const uint8_t *buf
, int64_t pos
, int size
)
200 QEMUFileStdio
*s
= opaque
;
201 return fwrite(buf
, 1, size
, s
->stdio_file
);
204 static int stdio_get_buffer(void *opaque
, uint8_t *buf
, int64_t pos
, int size
)
206 QEMUFileStdio
*s
= opaque
;
207 FILE *fp
= s
->stdio_file
;
212 bytes
= fread(buf
, 1, size
, fp
);
213 if (bytes
!= 0 || !ferror(fp
)) {
216 if (errno
== EAGAIN
) {
217 assert(qemu_in_coroutine());
218 qemu_coroutine_yield();
219 } else if (errno
!= EINTR
) {
226 static int stdio_pclose(void *opaque
)
228 QEMUFileStdio
*s
= opaque
;
230 ret
= pclose(s
->stdio_file
);
238 static int stdio_fclose(void *opaque
)
240 QEMUFileStdio
*s
= opaque
;
242 if (fclose(s
->stdio_file
) == EOF
) {
249 static const QEMUFileOps stdio_pipe_read_ops
= {
250 .get_fd
= stdio_get_fd
,
251 .get_buffer
= stdio_get_buffer
,
252 .close
= stdio_pclose
255 static const QEMUFileOps stdio_pipe_write_ops
= {
256 .get_fd
= stdio_get_fd
,
257 .put_buffer
= stdio_put_buffer
,
258 .close
= stdio_pclose
261 QEMUFile
*qemu_popen(FILE *stdio_file
, const char *mode
)
265 if (stdio_file
== NULL
|| mode
== NULL
|| (mode
[0] != 'r' && mode
[0] != 'w') || mode
[1] != 0) {
266 fprintf(stderr
, "qemu_popen: Argument validity check failed\n");
270 s
= g_malloc0(sizeof(QEMUFileStdio
));
272 s
->stdio_file
= stdio_file
;
275 s
->file
= qemu_fopen_ops(s
, &stdio_pipe_read_ops
);
277 s
->file
= qemu_fopen_ops(s
, &stdio_pipe_write_ops
);
282 QEMUFile
*qemu_popen_cmd(const char *command
, const char *mode
)
286 popen_file
= popen(command
, mode
);
287 if(popen_file
== NULL
) {
291 return qemu_popen(popen_file
, mode
);
294 static const QEMUFileOps stdio_file_read_ops
= {
295 .get_fd
= stdio_get_fd
,
296 .get_buffer
= stdio_get_buffer
,
297 .close
= stdio_fclose
300 static const QEMUFileOps stdio_file_write_ops
= {
301 .get_fd
= stdio_get_fd
,
302 .put_buffer
= stdio_put_buffer
,
303 .close
= stdio_fclose
306 QEMUFile
*qemu_fdopen(int fd
, const char *mode
)
311 (mode
[0] != 'r' && mode
[0] != 'w') ||
312 mode
[1] != 'b' || mode
[2] != 0) {
313 fprintf(stderr
, "qemu_fdopen: Argument validity check failed\n");
317 s
= g_malloc0(sizeof(QEMUFileStdio
));
318 s
->stdio_file
= fdopen(fd
, mode
);
323 s
->file
= qemu_fopen_ops(s
, &stdio_file_read_ops
);
325 s
->file
= qemu_fopen_ops(s
, &stdio_file_write_ops
);
334 static const QEMUFileOps socket_read_ops
= {
335 .get_fd
= socket_get_fd
,
336 .get_buffer
= socket_get_buffer
,
337 .close
= socket_close
340 QEMUFile
*qemu_fopen_socket(int fd
)
342 QEMUFileSocket
*s
= g_malloc0(sizeof(QEMUFileSocket
));
345 s
->file
= qemu_fopen_ops(s
, &socket_read_ops
);
349 QEMUFile
*qemu_fopen(const char *filename
, const char *mode
)
354 (mode
[0] != 'r' && mode
[0] != 'w') ||
355 mode
[1] != 'b' || mode
[2] != 0) {
356 fprintf(stderr
, "qemu_fopen: Argument validity check failed\n");
360 s
= g_malloc0(sizeof(QEMUFileStdio
));
362 s
->stdio_file
= fopen(filename
, mode
);
367 s
->file
= qemu_fopen_ops(s
, &stdio_file_write_ops
);
369 s
->file
= qemu_fopen_ops(s
, &stdio_file_read_ops
);
377 static int block_put_buffer(void *opaque
, const uint8_t *buf
,
378 int64_t pos
, int size
)
380 bdrv_save_vmstate(opaque
, buf
, pos
, size
);
384 static int block_get_buffer(void *opaque
, uint8_t *buf
, int64_t pos
, int size
)
386 return bdrv_load_vmstate(opaque
, buf
, pos
, size
);
389 static int bdrv_fclose(void *opaque
)
391 return bdrv_flush(opaque
);
394 static const QEMUFileOps bdrv_read_ops
= {
395 .get_buffer
= block_get_buffer
,
399 static const QEMUFileOps bdrv_write_ops
= {
400 .put_buffer
= block_put_buffer
,
404 static QEMUFile
*qemu_fopen_bdrv(BlockDriverState
*bs
, int is_writable
)
407 return qemu_fopen_ops(bs
, &bdrv_write_ops
);
408 return qemu_fopen_ops(bs
, &bdrv_read_ops
);
411 QEMUFile
*qemu_fopen_ops(void *opaque
, const QEMUFileOps
*ops
)
415 f
= g_malloc0(sizeof(QEMUFile
));
424 int qemu_file_get_error(QEMUFile
*f
)
426 return f
->last_error
;
429 static void qemu_file_set_error(QEMUFile
*f
, int ret
)
434 /** Flushes QEMUFile buffer
437 static int qemu_fflush(QEMUFile
*f
)
441 if (!f
->ops
->put_buffer
)
444 if (f
->is_write
&& f
->buf_index
> 0) {
445 ret
= f
->ops
->put_buffer(f
->opaque
, f
->buf
, f
->buf_offset
, f
->buf_index
);
447 f
->buf_offset
+= f
->buf_index
;
454 static void qemu_fill_buffer(QEMUFile
*f
)
459 if (!f
->ops
->get_buffer
)
465 pending
= f
->buf_size
- f
->buf_index
;
467 memmove(f
->buf
, f
->buf
+ f
->buf_index
, pending
);
470 f
->buf_size
= pending
;
472 len
= f
->ops
->get_buffer(f
->opaque
, f
->buf
+ pending
, f
->buf_offset
,
473 IO_BUF_SIZE
- pending
);
476 f
->buf_offset
+= len
;
477 } else if (len
== 0) {
478 qemu_file_set_error(f
, -EIO
);
479 } else if (len
!= -EAGAIN
)
480 qemu_file_set_error(f
, len
);
483 int qemu_get_fd(QEMUFile
*f
)
485 if (f
->ops
->get_fd
) {
486 return f
->ops
->get_fd(f
->opaque
);
493 * Returns negative error value if any error happened on previous operations or
494 * while closing the file. Returns 0 or positive number on success.
496 * The meaning of return value on success depends on the specific backend
499 int qemu_fclose(QEMUFile
*f
)
502 ret
= qemu_fflush(f
);
505 int ret2
= f
->ops
->close(f
->opaque
);
510 /* If any error was spotted before closing, we should report it
511 * instead of the close() return value.
520 void qemu_put_buffer(QEMUFile
*f
, const uint8_t *buf
, int size
)
528 if (f
->is_write
== 0 && f
->buf_index
> 0) {
530 "Attempted to write to buffer while read buffer is not empty\n");
535 l
= IO_BUF_SIZE
- f
->buf_index
;
538 memcpy(f
->buf
+ f
->buf_index
, buf
, l
);
543 if (f
->buf_index
>= IO_BUF_SIZE
) {
544 int ret
= qemu_fflush(f
);
546 qemu_file_set_error(f
, ret
);
553 void qemu_put_byte(QEMUFile
*f
, int v
)
559 if (f
->is_write
== 0 && f
->buf_index
> 0) {
561 "Attempted to write to buffer while read buffer is not empty\n");
565 f
->buf
[f
->buf_index
++] = v
;
567 if (f
->buf_index
>= IO_BUF_SIZE
) {
568 int ret
= qemu_fflush(f
);
570 qemu_file_set_error(f
, ret
);
575 static void qemu_file_skip(QEMUFile
*f
, int size
)
577 if (f
->buf_index
+ size
<= f
->buf_size
) {
578 f
->buf_index
+= size
;
582 static int qemu_peek_buffer(QEMUFile
*f
, uint8_t *buf
, int size
, size_t offset
)
591 index
= f
->buf_index
+ offset
;
592 pending
= f
->buf_size
- index
;
593 if (pending
< size
) {
595 index
= f
->buf_index
+ offset
;
596 pending
= f
->buf_size
- index
;
602 if (size
> pending
) {
606 memcpy(buf
, f
->buf
+ index
, size
);
610 int qemu_get_buffer(QEMUFile
*f
, uint8_t *buf
, int size
)
615 while (pending
> 0) {
618 res
= qemu_peek_buffer(f
, buf
, pending
, 0);
622 qemu_file_skip(f
, res
);
630 static int qemu_peek_byte(QEMUFile
*f
, int offset
)
632 int index
= f
->buf_index
+ offset
;
638 if (index
>= f
->buf_size
) {
640 index
= f
->buf_index
+ offset
;
641 if (index
>= f
->buf_size
) {
645 return f
->buf
[index
];
648 int qemu_get_byte(QEMUFile
*f
)
652 result
= qemu_peek_byte(f
, 0);
653 qemu_file_skip(f
, 1);
657 static int64_t qemu_ftell(QEMUFile
*f
)
659 return f
->buf_offset
- f
->buf_size
+ f
->buf_index
;
662 int qemu_file_rate_limit(QEMUFile
*f
)
664 if (f
->ops
->rate_limit
)
665 return f
->ops
->rate_limit(f
->opaque
);
670 int64_t qemu_file_get_rate_limit(QEMUFile
*f
)
672 if (f
->ops
->get_rate_limit
)
673 return f
->ops
->get_rate_limit(f
->opaque
);
678 int64_t qemu_file_set_rate_limit(QEMUFile
*f
, int64_t new_rate
)
680 /* any failed or completed migration keeps its state to allow probing of
681 * migration data, but has no associated file anymore */
682 if (f
&& f
->ops
->set_rate_limit
)
683 return f
->ops
->set_rate_limit(f
->opaque
, new_rate
);
688 void qemu_put_be16(QEMUFile
*f
, unsigned int v
)
690 qemu_put_byte(f
, v
>> 8);
694 void qemu_put_be32(QEMUFile
*f
, unsigned int v
)
696 qemu_put_byte(f
, v
>> 24);
697 qemu_put_byte(f
, v
>> 16);
698 qemu_put_byte(f
, v
>> 8);
702 void qemu_put_be64(QEMUFile
*f
, uint64_t v
)
704 qemu_put_be32(f
, v
>> 32);
708 unsigned int qemu_get_be16(QEMUFile
*f
)
711 v
= qemu_get_byte(f
) << 8;
712 v
|= qemu_get_byte(f
);
716 unsigned int qemu_get_be32(QEMUFile
*f
)
719 v
= qemu_get_byte(f
) << 24;
720 v
|= qemu_get_byte(f
) << 16;
721 v
|= qemu_get_byte(f
) << 8;
722 v
|= qemu_get_byte(f
);
726 uint64_t qemu_get_be64(QEMUFile
*f
)
729 v
= (uint64_t)qemu_get_be32(f
) << 32;
730 v
|= qemu_get_be32(f
);
737 void qemu_put_timer(QEMUFile
*f
, QEMUTimer
*ts
)
739 uint64_t expire_time
;
741 expire_time
= qemu_timer_expire_time_ns(ts
);
742 qemu_put_be64(f
, expire_time
);
745 void qemu_get_timer(QEMUFile
*f
, QEMUTimer
*ts
)
747 uint64_t expire_time
;
749 expire_time
= qemu_get_be64(f
);
750 if (expire_time
!= -1) {
751 qemu_mod_timer_ns(ts
, expire_time
);
760 static int get_bool(QEMUFile
*f
, void *pv
, size_t size
)
763 *v
= qemu_get_byte(f
);
767 static void put_bool(QEMUFile
*f
, void *pv
, size_t size
)
770 qemu_put_byte(f
, *v
);
773 const VMStateInfo vmstate_info_bool
= {
781 static int get_int8(QEMUFile
*f
, void *pv
, size_t size
)
788 static void put_int8(QEMUFile
*f
, void *pv
, size_t size
)
794 const VMStateInfo vmstate_info_int8
= {
802 static int get_int16(QEMUFile
*f
, void *pv
, size_t size
)
805 qemu_get_sbe16s(f
, v
);
809 static void put_int16(QEMUFile
*f
, void *pv
, size_t size
)
812 qemu_put_sbe16s(f
, v
);
815 const VMStateInfo vmstate_info_int16
= {
823 static int get_int32(QEMUFile
*f
, void *pv
, size_t size
)
826 qemu_get_sbe32s(f
, v
);
830 static void put_int32(QEMUFile
*f
, void *pv
, size_t size
)
833 qemu_put_sbe32s(f
, v
);
836 const VMStateInfo vmstate_info_int32
= {
842 /* 32 bit int. See that the received value is the same than the one
845 static int get_int32_equal(QEMUFile
*f
, void *pv
, size_t size
)
849 qemu_get_sbe32s(f
, &v2
);
856 const VMStateInfo vmstate_info_int32_equal
= {
857 .name
= "int32 equal",
858 .get
= get_int32_equal
,
862 /* 32 bit int. See that the received value is the less or the same
863 than the one in the field */
865 static int get_int32_le(QEMUFile
*f
, void *pv
, size_t size
)
869 qemu_get_sbe32s(f
, &new);
876 const VMStateInfo vmstate_info_int32_le
= {
877 .name
= "int32 equal",
884 static int get_int64(QEMUFile
*f
, void *pv
, size_t size
)
887 qemu_get_sbe64s(f
, v
);
891 static void put_int64(QEMUFile
*f
, void *pv
, size_t size
)
894 qemu_put_sbe64s(f
, v
);
897 const VMStateInfo vmstate_info_int64
= {
903 /* 8 bit unsigned int */
905 static int get_uint8(QEMUFile
*f
, void *pv
, size_t size
)
912 static void put_uint8(QEMUFile
*f
, void *pv
, size_t size
)
918 const VMStateInfo vmstate_info_uint8
= {
924 /* 16 bit unsigned int */
926 static int get_uint16(QEMUFile
*f
, void *pv
, size_t size
)
929 qemu_get_be16s(f
, v
);
933 static void put_uint16(QEMUFile
*f
, void *pv
, size_t size
)
936 qemu_put_be16s(f
, v
);
939 const VMStateInfo vmstate_info_uint16
= {
945 /* 32 bit unsigned int */
947 static int get_uint32(QEMUFile
*f
, void *pv
, size_t size
)
950 qemu_get_be32s(f
, v
);
954 static void put_uint32(QEMUFile
*f
, void *pv
, size_t size
)
957 qemu_put_be32s(f
, v
);
960 const VMStateInfo vmstate_info_uint32
= {
966 /* 32 bit uint. See that the received value is the same than the one
969 static int get_uint32_equal(QEMUFile
*f
, void *pv
, size_t size
)
973 qemu_get_be32s(f
, &v2
);
981 const VMStateInfo vmstate_info_uint32_equal
= {
982 .name
= "uint32 equal",
983 .get
= get_uint32_equal
,
987 /* 64 bit unsigned int */
989 static int get_uint64(QEMUFile
*f
, void *pv
, size_t size
)
992 qemu_get_be64s(f
, v
);
996 static void put_uint64(QEMUFile
*f
, void *pv
, size_t size
)
999 qemu_put_be64s(f
, v
);
1002 const VMStateInfo vmstate_info_uint64
= {
1008 /* 8 bit int. See that the received value is the same than the one
1011 static int get_uint8_equal(QEMUFile
*f
, void *pv
, size_t size
)
1015 qemu_get_8s(f
, &v2
);
1022 const VMStateInfo vmstate_info_uint8_equal
= {
1023 .name
= "uint8 equal",
1024 .get
= get_uint8_equal
,
1028 /* 16 bit unsigned int int. See that the received value is the same than the one
1031 static int get_uint16_equal(QEMUFile
*f
, void *pv
, size_t size
)
1035 qemu_get_be16s(f
, &v2
);
1042 const VMStateInfo vmstate_info_uint16_equal
= {
1043 .name
= "uint16 equal",
1044 .get
= get_uint16_equal
,
1050 static int get_timer(QEMUFile
*f
, void *pv
, size_t size
)
1053 qemu_get_timer(f
, v
);
1057 static void put_timer(QEMUFile
*f
, void *pv
, size_t size
)
1060 qemu_put_timer(f
, v
);
1063 const VMStateInfo vmstate_info_timer
= {
1069 /* uint8_t buffers */
1071 static int get_buffer(QEMUFile
*f
, void *pv
, size_t size
)
1074 qemu_get_buffer(f
, v
, size
);
1078 static void put_buffer(QEMUFile
*f
, void *pv
, size_t size
)
1081 qemu_put_buffer(f
, v
, size
);
1084 const VMStateInfo vmstate_info_buffer
= {
1090 /* unused buffers: space that was used for some fields that are
1091 not useful anymore */
1093 static int get_unused_buffer(QEMUFile
*f
, void *pv
, size_t size
)
1099 block_len
= MIN(sizeof(buf
), size
);
1101 qemu_get_buffer(f
, buf
, block_len
);
1106 static void put_unused_buffer(QEMUFile
*f
, void *pv
, size_t size
)
1108 static const uint8_t buf
[1024];
1112 block_len
= MIN(sizeof(buf
), size
);
1114 qemu_put_buffer(f
, buf
, block_len
);
1118 const VMStateInfo vmstate_info_unused_buffer
= {
1119 .name
= "unused_buffer",
1120 .get
= get_unused_buffer
,
1121 .put
= put_unused_buffer
,
1124 /* bitmaps (as defined by bitmap.h). Note that size here is the size
1125 * of the bitmap in bits. The on-the-wire format of a bitmap is 64
1126 * bit words with the bits in big endian order. The in-memory format
1127 * is an array of 'unsigned long', which may be either 32 or 64 bits.
1129 /* This is the number of 64 bit words sent over the wire */
1130 #define BITS_TO_U64S(nr) DIV_ROUND_UP(nr, 64)
1131 static int get_bitmap(QEMUFile
*f
, void *pv
, size_t size
)
1133 unsigned long *bmp
= pv
;
1135 for (i
= 0; i
< BITS_TO_U64S(size
); i
++) {
1136 uint64_t w
= qemu_get_be64(f
);
1138 if (sizeof(unsigned long) == 4 && idx
< BITS_TO_LONGS(size
)) {
1139 bmp
[idx
++] = w
>> 32;
1145 static void put_bitmap(QEMUFile
*f
, void *pv
, size_t size
)
1147 unsigned long *bmp
= pv
;
1149 for (i
= 0; i
< BITS_TO_U64S(size
); i
++) {
1150 uint64_t w
= bmp
[idx
++];
1151 if (sizeof(unsigned long) == 4 && idx
< BITS_TO_LONGS(size
)) {
1152 w
|= ((uint64_t)bmp
[idx
++]) << 32;
1154 qemu_put_be64(f
, w
);
1158 const VMStateInfo vmstate_info_bitmap
= {
1164 typedef struct CompatEntry
{
1169 typedef struct SaveStateEntry
{
1170 QTAILQ_ENTRY(SaveStateEntry
) entry
;
1176 SaveVMHandlers
*ops
;
1177 const VMStateDescription
*vmsd
;
1179 CompatEntry
*compat
;
1185 static QTAILQ_HEAD(savevm_handlers
, SaveStateEntry
) savevm_handlers
=
1186 QTAILQ_HEAD_INITIALIZER(savevm_handlers
);
1187 static int global_section_id
;
1189 static int calculate_new_instance_id(const char *idstr
)
1192 int instance_id
= 0;
1194 QTAILQ_FOREACH(se
, &savevm_handlers
, entry
) {
1195 if (strcmp(idstr
, se
->idstr
) == 0
1196 && instance_id
<= se
->instance_id
) {
1197 instance_id
= se
->instance_id
+ 1;
1203 static int calculate_compat_instance_id(const char *idstr
)
1206 int instance_id
= 0;
1208 QTAILQ_FOREACH(se
, &savevm_handlers
, entry
) {
1212 if (strcmp(idstr
, se
->compat
->idstr
) == 0
1213 && instance_id
<= se
->compat
->instance_id
) {
1214 instance_id
= se
->compat
->instance_id
+ 1;
1220 /* TODO: Individual devices generally have very little idea about the rest
1221 of the system, so instance_id should be removed/replaced.
1222 Meanwhile pass -1 as instance_id if you do not already have a clearly
1223 distinguishing id for all instances of your device class. */
1224 int register_savevm_live(DeviceState
*dev
,
1228 SaveVMHandlers
*ops
,
1233 se
= g_malloc0(sizeof(SaveStateEntry
));
1234 se
->version_id
= version_id
;
1235 se
->section_id
= global_section_id
++;
1237 se
->opaque
= opaque
;
1240 /* if this is a live_savem then set is_ram */
1241 if (ops
->save_live_setup
!= NULL
) {
1246 char *id
= qdev_get_dev_path(dev
);
1248 pstrcpy(se
->idstr
, sizeof(se
->idstr
), id
);
1249 pstrcat(se
->idstr
, sizeof(se
->idstr
), "/");
1252 se
->compat
= g_malloc0(sizeof(CompatEntry
));
1253 pstrcpy(se
->compat
->idstr
, sizeof(se
->compat
->idstr
), idstr
);
1254 se
->compat
->instance_id
= instance_id
== -1 ?
1255 calculate_compat_instance_id(idstr
) : instance_id
;
1259 pstrcat(se
->idstr
, sizeof(se
->idstr
), idstr
);
1261 if (instance_id
== -1) {
1262 se
->instance_id
= calculate_new_instance_id(se
->idstr
);
1264 se
->instance_id
= instance_id
;
1266 assert(!se
->compat
|| se
->instance_id
== 0);
1267 /* add at the end of list */
1268 QTAILQ_INSERT_TAIL(&savevm_handlers
, se
, entry
);
1272 int register_savevm(DeviceState
*dev
,
1276 SaveStateHandler
*save_state
,
1277 LoadStateHandler
*load_state
,
1280 SaveVMHandlers
*ops
= g_malloc0(sizeof(SaveVMHandlers
));
1281 ops
->save_state
= save_state
;
1282 ops
->load_state
= load_state
;
1283 return register_savevm_live(dev
, idstr
, instance_id
, version_id
,
1287 void unregister_savevm(DeviceState
*dev
, const char *idstr
, void *opaque
)
1289 SaveStateEntry
*se
, *new_se
;
1293 char *path
= qdev_get_dev_path(dev
);
1295 pstrcpy(id
, sizeof(id
), path
);
1296 pstrcat(id
, sizeof(id
), "/");
1300 pstrcat(id
, sizeof(id
), idstr
);
1302 QTAILQ_FOREACH_SAFE(se
, &savevm_handlers
, entry
, new_se
) {
1303 if (strcmp(se
->idstr
, id
) == 0 && se
->opaque
== opaque
) {
1304 QTAILQ_REMOVE(&savevm_handlers
, se
, entry
);
1314 int vmstate_register_with_alias_id(DeviceState
*dev
, int instance_id
,
1315 const VMStateDescription
*vmsd
,
1316 void *opaque
, int alias_id
,
1317 int required_for_version
)
1321 /* If this triggers, alias support can be dropped for the vmsd. */
1322 assert(alias_id
== -1 || required_for_version
>= vmsd
->minimum_version_id
);
1324 se
= g_malloc0(sizeof(SaveStateEntry
));
1325 se
->version_id
= vmsd
->version_id
;
1326 se
->section_id
= global_section_id
++;
1327 se
->opaque
= opaque
;
1329 se
->alias_id
= alias_id
;
1330 se
->no_migrate
= vmsd
->unmigratable
;
1333 char *id
= qdev_get_dev_path(dev
);
1335 pstrcpy(se
->idstr
, sizeof(se
->idstr
), id
);
1336 pstrcat(se
->idstr
, sizeof(se
->idstr
), "/");
1339 se
->compat
= g_malloc0(sizeof(CompatEntry
));
1340 pstrcpy(se
->compat
->idstr
, sizeof(se
->compat
->idstr
), vmsd
->name
);
1341 se
->compat
->instance_id
= instance_id
== -1 ?
1342 calculate_compat_instance_id(vmsd
->name
) : instance_id
;
1346 pstrcat(se
->idstr
, sizeof(se
->idstr
), vmsd
->name
);
1348 if (instance_id
== -1) {
1349 se
->instance_id
= calculate_new_instance_id(se
->idstr
);
1351 se
->instance_id
= instance_id
;
1353 assert(!se
->compat
|| se
->instance_id
== 0);
1354 /* add at the end of list */
1355 QTAILQ_INSERT_TAIL(&savevm_handlers
, se
, entry
);
1359 int vmstate_register(DeviceState
*dev
, int instance_id
,
1360 const VMStateDescription
*vmsd
, void *opaque
)
1362 return vmstate_register_with_alias_id(dev
, instance_id
, vmsd
,
1366 void vmstate_unregister(DeviceState
*dev
, const VMStateDescription
*vmsd
,
1369 SaveStateEntry
*se
, *new_se
;
1371 QTAILQ_FOREACH_SAFE(se
, &savevm_handlers
, entry
, new_se
) {
1372 if (se
->vmsd
== vmsd
&& se
->opaque
== opaque
) {
1373 QTAILQ_REMOVE(&savevm_handlers
, se
, entry
);
1382 static void vmstate_subsection_save(QEMUFile
*f
, const VMStateDescription
*vmsd
,
1384 static int vmstate_subsection_load(QEMUFile
*f
, const VMStateDescription
*vmsd
,
1387 int vmstate_load_state(QEMUFile
*f
, const VMStateDescription
*vmsd
,
1388 void *opaque
, int version_id
)
1390 VMStateField
*field
= vmsd
->fields
;
1393 if (version_id
> vmsd
->version_id
) {
1396 if (version_id
< vmsd
->minimum_version_id_old
) {
1399 if (version_id
< vmsd
->minimum_version_id
) {
1400 return vmsd
->load_state_old(f
, opaque
, version_id
);
1402 if (vmsd
->pre_load
) {
1403 int ret
= vmsd
->pre_load(opaque
);
1407 while(field
->name
) {
1408 if ((field
->field_exists
&&
1409 field
->field_exists(opaque
, version_id
)) ||
1410 (!field
->field_exists
&&
1411 field
->version_id
<= version_id
)) {
1412 void *base_addr
= opaque
+ field
->offset
;
1414 int size
= field
->size
;
1416 if (field
->flags
& VMS_VBUFFER
) {
1417 size
= *(int32_t *)(opaque
+field
->size_offset
);
1418 if (field
->flags
& VMS_MULTIPLY
) {
1419 size
*= field
->size
;
1422 if (field
->flags
& VMS_ARRAY
) {
1423 n_elems
= field
->num
;
1424 } else if (field
->flags
& VMS_VARRAY_INT32
) {
1425 n_elems
= *(int32_t *)(opaque
+field
->num_offset
);
1426 } else if (field
->flags
& VMS_VARRAY_UINT32
) {
1427 n_elems
= *(uint32_t *)(opaque
+field
->num_offset
);
1428 } else if (field
->flags
& VMS_VARRAY_UINT16
) {
1429 n_elems
= *(uint16_t *)(opaque
+field
->num_offset
);
1430 } else if (field
->flags
& VMS_VARRAY_UINT8
) {
1431 n_elems
= *(uint8_t *)(opaque
+field
->num_offset
);
1433 if (field
->flags
& VMS_POINTER
) {
1434 base_addr
= *(void **)base_addr
+ field
->start
;
1436 for (i
= 0; i
< n_elems
; i
++) {
1437 void *addr
= base_addr
+ size
* i
;
1439 if (field
->flags
& VMS_ARRAY_OF_POINTER
) {
1440 addr
= *(void **)addr
;
1442 if (field
->flags
& VMS_STRUCT
) {
1443 ret
= vmstate_load_state(f
, field
->vmsd
, addr
, field
->vmsd
->version_id
);
1445 ret
= field
->info
->get(f
, addr
, size
);
1455 ret
= vmstate_subsection_load(f
, vmsd
, opaque
);
1459 if (vmsd
->post_load
) {
1460 return vmsd
->post_load(opaque
, version_id
);
1465 void vmstate_save_state(QEMUFile
*f
, const VMStateDescription
*vmsd
,
1468 VMStateField
*field
= vmsd
->fields
;
1470 if (vmsd
->pre_save
) {
1471 vmsd
->pre_save(opaque
);
1473 while(field
->name
) {
1474 if (!field
->field_exists
||
1475 field
->field_exists(opaque
, vmsd
->version_id
)) {
1476 void *base_addr
= opaque
+ field
->offset
;
1478 int size
= field
->size
;
1480 if (field
->flags
& VMS_VBUFFER
) {
1481 size
= *(int32_t *)(opaque
+field
->size_offset
);
1482 if (field
->flags
& VMS_MULTIPLY
) {
1483 size
*= field
->size
;
1486 if (field
->flags
& VMS_ARRAY
) {
1487 n_elems
= field
->num
;
1488 } else if (field
->flags
& VMS_VARRAY_INT32
) {
1489 n_elems
= *(int32_t *)(opaque
+field
->num_offset
);
1490 } else if (field
->flags
& VMS_VARRAY_UINT32
) {
1491 n_elems
= *(uint32_t *)(opaque
+field
->num_offset
);
1492 } else if (field
->flags
& VMS_VARRAY_UINT16
) {
1493 n_elems
= *(uint16_t *)(opaque
+field
->num_offset
);
1494 } else if (field
->flags
& VMS_VARRAY_UINT8
) {
1495 n_elems
= *(uint8_t *)(opaque
+field
->num_offset
);
1497 if (field
->flags
& VMS_POINTER
) {
1498 base_addr
= *(void **)base_addr
+ field
->start
;
1500 for (i
= 0; i
< n_elems
; i
++) {
1501 void *addr
= base_addr
+ size
* i
;
1503 if (field
->flags
& VMS_ARRAY_OF_POINTER
) {
1504 addr
= *(void **)addr
;
1506 if (field
->flags
& VMS_STRUCT
) {
1507 vmstate_save_state(f
, field
->vmsd
, addr
);
1509 field
->info
->put(f
, addr
, size
);
1515 vmstate_subsection_save(f
, vmsd
, opaque
);
1518 static int vmstate_load(QEMUFile
*f
, SaveStateEntry
*se
, int version_id
)
1520 if (!se
->vmsd
) { /* Old style */
1521 return se
->ops
->load_state(f
, se
->opaque
, version_id
);
1523 return vmstate_load_state(f
, se
->vmsd
, se
->opaque
, version_id
);
1526 static void vmstate_save(QEMUFile
*f
, SaveStateEntry
*se
)
1528 if (!se
->vmsd
) { /* Old style */
1529 se
->ops
->save_state(f
, se
->opaque
);
1532 vmstate_save_state(f
,se
->vmsd
, se
->opaque
);
1535 #define QEMU_VM_FILE_MAGIC 0x5145564d
1536 #define QEMU_VM_FILE_VERSION_COMPAT 0x00000002
1537 #define QEMU_VM_FILE_VERSION 0x00000003
1539 #define QEMU_VM_EOF 0x00
1540 #define QEMU_VM_SECTION_START 0x01
1541 #define QEMU_VM_SECTION_PART 0x02
1542 #define QEMU_VM_SECTION_END 0x03
1543 #define QEMU_VM_SECTION_FULL 0x04
1544 #define QEMU_VM_SUBSECTION 0x05
1546 bool qemu_savevm_state_blocked(Error
**errp
)
1550 QTAILQ_FOREACH(se
, &savevm_handlers
, entry
) {
1551 if (se
->no_migrate
) {
1552 error_set(errp
, QERR_MIGRATION_NOT_SUPPORTED
, se
->idstr
);
1559 int qemu_savevm_state_begin(QEMUFile
*f
,
1560 const MigrationParams
*params
)
1565 QTAILQ_FOREACH(se
, &savevm_handlers
, entry
) {
1566 if (!se
->ops
|| !se
->ops
->set_params
) {
1569 se
->ops
->set_params(params
, se
->opaque
);
1572 qemu_put_be32(f
, QEMU_VM_FILE_MAGIC
);
1573 qemu_put_be32(f
, QEMU_VM_FILE_VERSION
);
1575 QTAILQ_FOREACH(se
, &savevm_handlers
, entry
) {
1578 if (!se
->ops
|| !se
->ops
->save_live_setup
) {
1581 if (se
->ops
&& se
->ops
->is_active
) {
1582 if (!se
->ops
->is_active(se
->opaque
)) {
1587 qemu_put_byte(f
, QEMU_VM_SECTION_START
);
1588 qemu_put_be32(f
, se
->section_id
);
1591 len
= strlen(se
->idstr
);
1592 qemu_put_byte(f
, len
);
1593 qemu_put_buffer(f
, (uint8_t *)se
->idstr
, len
);
1595 qemu_put_be32(f
, se
->instance_id
);
1596 qemu_put_be32(f
, se
->version_id
);
1598 ret
= se
->ops
->save_live_setup(f
, se
->opaque
);
1600 qemu_savevm_state_cancel(f
);
1604 ret
= qemu_file_get_error(f
);
1606 qemu_savevm_state_cancel(f
);
1614 * this function has three return values:
1615 * negative: there was one error, and we have -errno.
1616 * 0 : We haven't finished, caller have to go again
1617 * 1 : We have finished, we can go to complete phase
1619 int qemu_savevm_state_iterate(QEMUFile
*f
)
1624 QTAILQ_FOREACH(se
, &savevm_handlers
, entry
) {
1625 if (!se
->ops
|| !se
->ops
->save_live_iterate
) {
1628 if (se
->ops
&& se
->ops
->is_active
) {
1629 if (!se
->ops
->is_active(se
->opaque
)) {
1633 if (qemu_file_rate_limit(f
)) {
1636 trace_savevm_section_start();
1638 qemu_put_byte(f
, QEMU_VM_SECTION_PART
);
1639 qemu_put_be32(f
, se
->section_id
);
1641 ret
= se
->ops
->save_live_iterate(f
, se
->opaque
);
1642 trace_savevm_section_end(se
->section_id
);
1645 /* Do not proceed to the next vmstate before this one reported
1646 completion of the current stage. This serializes the migration
1647 and reduces the probability that a faster changing state is
1648 synchronized over and over again. */
1655 ret
= qemu_file_get_error(f
);
1657 qemu_savevm_state_cancel(f
);
1662 int qemu_savevm_state_complete(QEMUFile
*f
)
1667 cpu_synchronize_all_states();
1669 QTAILQ_FOREACH(se
, &savevm_handlers
, entry
) {
1670 if (!se
->ops
|| !se
->ops
->save_live_complete
) {
1673 if (se
->ops
&& se
->ops
->is_active
) {
1674 if (!se
->ops
->is_active(se
->opaque
)) {
1678 trace_savevm_section_start();
1680 qemu_put_byte(f
, QEMU_VM_SECTION_END
);
1681 qemu_put_be32(f
, se
->section_id
);
1683 ret
= se
->ops
->save_live_complete(f
, se
->opaque
);
1684 trace_savevm_section_end(se
->section_id
);
1690 QTAILQ_FOREACH(se
, &savevm_handlers
, entry
) {
1693 if ((!se
->ops
|| !se
->ops
->save_state
) && !se
->vmsd
) {
1696 trace_savevm_section_start();
1698 qemu_put_byte(f
, QEMU_VM_SECTION_FULL
);
1699 qemu_put_be32(f
, se
->section_id
);
1702 len
= strlen(se
->idstr
);
1703 qemu_put_byte(f
, len
);
1704 qemu_put_buffer(f
, (uint8_t *)se
->idstr
, len
);
1706 qemu_put_be32(f
, se
->instance_id
);
1707 qemu_put_be32(f
, se
->version_id
);
1709 vmstate_save(f
, se
);
1710 trace_savevm_section_end(se
->section_id
);
1713 qemu_put_byte(f
, QEMU_VM_EOF
);
1715 return qemu_file_get_error(f
);
1718 uint64_t qemu_savevm_state_pending(QEMUFile
*f
, uint64_t max_size
)
1723 QTAILQ_FOREACH(se
, &savevm_handlers
, entry
) {
1724 if (!se
->ops
|| !se
->ops
->save_live_pending
) {
1727 if (se
->ops
&& se
->ops
->is_active
) {
1728 if (!se
->ops
->is_active(se
->opaque
)) {
1732 ret
+= se
->ops
->save_live_pending(f
, se
->opaque
, max_size
);
1737 void qemu_savevm_state_cancel(QEMUFile
*f
)
1741 QTAILQ_FOREACH(se
, &savevm_handlers
, entry
) {
1742 if (se
->ops
&& se
->ops
->cancel
) {
1743 se
->ops
->cancel(se
->opaque
);
1748 static int qemu_savevm_state(QEMUFile
*f
)
1751 MigrationParams params
= {
1756 if (qemu_savevm_state_blocked(NULL
)) {
1761 ret
= qemu_savevm_state_begin(f
, ¶ms
);
1766 ret
= qemu_savevm_state_iterate(f
);
1771 ret
= qemu_savevm_state_complete(f
);
1775 ret
= qemu_file_get_error(f
);
1781 static int qemu_save_device_state(QEMUFile
*f
)
1785 qemu_put_be32(f
, QEMU_VM_FILE_MAGIC
);
1786 qemu_put_be32(f
, QEMU_VM_FILE_VERSION
);
1788 cpu_synchronize_all_states();
1790 QTAILQ_FOREACH(se
, &savevm_handlers
, entry
) {
1796 if ((!se
->ops
|| !se
->ops
->save_state
) && !se
->vmsd
) {
1801 qemu_put_byte(f
, QEMU_VM_SECTION_FULL
);
1802 qemu_put_be32(f
, se
->section_id
);
1805 len
= strlen(se
->idstr
);
1806 qemu_put_byte(f
, len
);
1807 qemu_put_buffer(f
, (uint8_t *)se
->idstr
, len
);
1809 qemu_put_be32(f
, se
->instance_id
);
1810 qemu_put_be32(f
, se
->version_id
);
1812 vmstate_save(f
, se
);
1815 qemu_put_byte(f
, QEMU_VM_EOF
);
1817 return qemu_file_get_error(f
);
1820 static SaveStateEntry
*find_se(const char *idstr
, int instance_id
)
1824 QTAILQ_FOREACH(se
, &savevm_handlers
, entry
) {
1825 if (!strcmp(se
->idstr
, idstr
) &&
1826 (instance_id
== se
->instance_id
||
1827 instance_id
== se
->alias_id
))
1829 /* Migrating from an older version? */
1830 if (strstr(se
->idstr
, idstr
) && se
->compat
) {
1831 if (!strcmp(se
->compat
->idstr
, idstr
) &&
1832 (instance_id
== se
->compat
->instance_id
||
1833 instance_id
== se
->alias_id
))
1840 static const VMStateDescription
*vmstate_get_subsection(const VMStateSubsection
*sub
, char *idstr
)
1842 while(sub
&& sub
->needed
) {
1843 if (strcmp(idstr
, sub
->vmsd
->name
) == 0) {
1851 static int vmstate_subsection_load(QEMUFile
*f
, const VMStateDescription
*vmsd
,
1854 while (qemu_peek_byte(f
, 0) == QEMU_VM_SUBSECTION
) {
1857 uint8_t version_id
, len
, size
;
1858 const VMStateDescription
*sub_vmsd
;
1860 len
= qemu_peek_byte(f
, 1);
1861 if (len
< strlen(vmsd
->name
) + 1) {
1862 /* subsection name has be be "section_name/a" */
1865 size
= qemu_peek_buffer(f
, (uint8_t *)idstr
, len
, 2);
1871 if (strncmp(vmsd
->name
, idstr
, strlen(vmsd
->name
)) != 0) {
1872 /* it don't have a valid subsection name */
1875 sub_vmsd
= vmstate_get_subsection(vmsd
->subsections
, idstr
);
1876 if (sub_vmsd
== NULL
) {
1879 qemu_file_skip(f
, 1); /* subsection */
1880 qemu_file_skip(f
, 1); /* len */
1881 qemu_file_skip(f
, len
); /* idstr */
1882 version_id
= qemu_get_be32(f
);
1884 ret
= vmstate_load_state(f
, sub_vmsd
, opaque
, version_id
);
1892 static void vmstate_subsection_save(QEMUFile
*f
, const VMStateDescription
*vmsd
,
1895 const VMStateSubsection
*sub
= vmsd
->subsections
;
1897 while (sub
&& sub
->needed
) {
1898 if (sub
->needed(opaque
)) {
1899 const VMStateDescription
*vmsd
= sub
->vmsd
;
1902 qemu_put_byte(f
, QEMU_VM_SUBSECTION
);
1903 len
= strlen(vmsd
->name
);
1904 qemu_put_byte(f
, len
);
1905 qemu_put_buffer(f
, (uint8_t *)vmsd
->name
, len
);
1906 qemu_put_be32(f
, vmsd
->version_id
);
1907 vmstate_save_state(f
, vmsd
, opaque
);
1913 typedef struct LoadStateEntry
{
1914 QLIST_ENTRY(LoadStateEntry
) entry
;
1920 int qemu_loadvm_state(QEMUFile
*f
)
1922 QLIST_HEAD(, LoadStateEntry
) loadvm_handlers
=
1923 QLIST_HEAD_INITIALIZER(loadvm_handlers
);
1924 LoadStateEntry
*le
, *new_le
;
1925 uint8_t section_type
;
1929 if (qemu_savevm_state_blocked(NULL
)) {
1933 v
= qemu_get_be32(f
);
1934 if (v
!= QEMU_VM_FILE_MAGIC
)
1937 v
= qemu_get_be32(f
);
1938 if (v
== QEMU_VM_FILE_VERSION_COMPAT
) {
1939 fprintf(stderr
, "SaveVM v2 format is obsolete and don't work anymore\n");
1942 if (v
!= QEMU_VM_FILE_VERSION
)
1945 while ((section_type
= qemu_get_byte(f
)) != QEMU_VM_EOF
) {
1946 uint32_t instance_id
, version_id
, section_id
;
1951 switch (section_type
) {
1952 case QEMU_VM_SECTION_START
:
1953 case QEMU_VM_SECTION_FULL
:
1954 /* Read section start */
1955 section_id
= qemu_get_be32(f
);
1956 len
= qemu_get_byte(f
);
1957 qemu_get_buffer(f
, (uint8_t *)idstr
, len
);
1959 instance_id
= qemu_get_be32(f
);
1960 version_id
= qemu_get_be32(f
);
1962 /* Find savevm section */
1963 se
= find_se(idstr
, instance_id
);
1965 fprintf(stderr
, "Unknown savevm section or instance '%s' %d\n", idstr
, instance_id
);
1970 /* Validate version */
1971 if (version_id
> se
->version_id
) {
1972 fprintf(stderr
, "savevm: unsupported version %d for '%s' v%d\n",
1973 version_id
, idstr
, se
->version_id
);
1979 le
= g_malloc0(sizeof(*le
));
1982 le
->section_id
= section_id
;
1983 le
->version_id
= version_id
;
1984 QLIST_INSERT_HEAD(&loadvm_handlers
, le
, entry
);
1986 ret
= vmstate_load(f
, le
->se
, le
->version_id
);
1988 fprintf(stderr
, "qemu: warning: error while loading state for instance 0x%x of device '%s'\n",
1989 instance_id
, idstr
);
1993 case QEMU_VM_SECTION_PART
:
1994 case QEMU_VM_SECTION_END
:
1995 section_id
= qemu_get_be32(f
);
1997 QLIST_FOREACH(le
, &loadvm_handlers
, entry
) {
1998 if (le
->section_id
== section_id
) {
2003 fprintf(stderr
, "Unknown savevm section %d\n", section_id
);
2008 ret
= vmstate_load(f
, le
->se
, le
->version_id
);
2010 fprintf(stderr
, "qemu: warning: error while loading state section id %d\n",
2016 fprintf(stderr
, "Unknown savevm section type %d\n", section_type
);
2022 cpu_synchronize_all_post_init();
2027 QLIST_FOREACH_SAFE(le
, &loadvm_handlers
, entry
, new_le
) {
2028 QLIST_REMOVE(le
, entry
);
2033 ret
= qemu_file_get_error(f
);
2039 static int bdrv_snapshot_find(BlockDriverState
*bs
, QEMUSnapshotInfo
*sn_info
,
2042 QEMUSnapshotInfo
*sn_tab
, *sn
;
2046 nb_sns
= bdrv_snapshot_list(bs
, &sn_tab
);
2049 for(i
= 0; i
< nb_sns
; i
++) {
2051 if (!strcmp(sn
->id_str
, name
) || !strcmp(sn
->name
, name
)) {
2062 * Deletes snapshots of a given name in all opened images.
2064 static int del_existing_snapshots(Monitor
*mon
, const char *name
)
2066 BlockDriverState
*bs
;
2067 QEMUSnapshotInfo sn1
, *snapshot
= &sn1
;
2071 while ((bs
= bdrv_next(bs
))) {
2072 if (bdrv_can_snapshot(bs
) &&
2073 bdrv_snapshot_find(bs
, snapshot
, name
) >= 0)
2075 ret
= bdrv_snapshot_delete(bs
, name
);
2078 "Error while deleting snapshot on '%s'\n",
2079 bdrv_get_device_name(bs
));
2088 void do_savevm(Monitor
*mon
, const QDict
*qdict
)
2090 BlockDriverState
*bs
, *bs1
;
2091 QEMUSnapshotInfo sn1
, *sn
= &sn1
, old_sn1
, *old_sn
= &old_sn1
;
2094 int saved_vm_running
;
2095 uint64_t vm_state_size
;
2103 const char *name
= qdict_get_try_str(qdict
, "name");
2105 /* Verify if there is a device that doesn't support snapshots and is writable */
2107 while ((bs
= bdrv_next(bs
))) {
2109 if (!bdrv_is_inserted(bs
) || bdrv_is_read_only(bs
)) {
2113 if (!bdrv_can_snapshot(bs
)) {
2114 monitor_printf(mon
, "Device '%s' is writable but does not support snapshots.\n",
2115 bdrv_get_device_name(bs
));
2120 bs
= bdrv_snapshots();
2122 monitor_printf(mon
, "No block device can accept snapshots\n");
2126 saved_vm_running
= runstate_is_running();
2127 vm_stop(RUN_STATE_SAVE_VM
);
2129 memset(sn
, 0, sizeof(*sn
));
2131 /* fill auxiliary fields */
2134 sn
->date_sec
= tb
.time
;
2135 sn
->date_nsec
= tb
.millitm
* 1000000;
2137 gettimeofday(&tv
, NULL
);
2138 sn
->date_sec
= tv
.tv_sec
;
2139 sn
->date_nsec
= tv
.tv_usec
* 1000;
2141 sn
->vm_clock_nsec
= qemu_get_clock_ns(vm_clock
);
2144 ret
= bdrv_snapshot_find(bs
, old_sn
, name
);
2146 pstrcpy(sn
->name
, sizeof(sn
->name
), old_sn
->name
);
2147 pstrcpy(sn
->id_str
, sizeof(sn
->id_str
), old_sn
->id_str
);
2149 pstrcpy(sn
->name
, sizeof(sn
->name
), name
);
2154 ptm
= localtime(&t
);
2155 strftime(sn
->name
, sizeof(sn
->name
), "vm-%Y%m%d%H%M%S", ptm
);
2157 /* cast below needed for OpenBSD where tv_sec is still 'long' */
2158 localtime_r((const time_t *)&tv
.tv_sec
, &tm
);
2159 strftime(sn
->name
, sizeof(sn
->name
), "vm-%Y%m%d%H%M%S", &tm
);
2163 /* Delete old snapshots of the same name */
2164 if (name
&& del_existing_snapshots(mon
, name
) < 0) {
2168 /* save the VM state */
2169 f
= qemu_fopen_bdrv(bs
, 1);
2171 monitor_printf(mon
, "Could not open VM state file\n");
2174 ret
= qemu_savevm_state(f
);
2175 vm_state_size
= qemu_ftell(f
);
2178 monitor_printf(mon
, "Error %d while writing VM\n", ret
);
2182 /* create the snapshots */
2185 while ((bs1
= bdrv_next(bs1
))) {
2186 if (bdrv_can_snapshot(bs1
)) {
2187 /* Write VM state size only to the image that contains the state */
2188 sn
->vm_state_size
= (bs
== bs1
? vm_state_size
: 0);
2189 ret
= bdrv_snapshot_create(bs1
, sn
);
2191 monitor_printf(mon
, "Error while creating snapshot on '%s'\n",
2192 bdrv_get_device_name(bs1
));
2198 if (saved_vm_running
)
2202 void qmp_xen_save_devices_state(const char *filename
, Error
**errp
)
2205 int saved_vm_running
;
2208 saved_vm_running
= runstate_is_running();
2209 vm_stop(RUN_STATE_SAVE_VM
);
2211 f
= qemu_fopen(filename
, "wb");
2213 error_set(errp
, QERR_OPEN_FILE_FAILED
, filename
);
2216 ret
= qemu_save_device_state(f
);
2219 error_set(errp
, QERR_IO_ERROR
);
2223 if (saved_vm_running
)
2227 int load_vmstate(const char *name
)
2229 BlockDriverState
*bs
, *bs_vm_state
;
2230 QEMUSnapshotInfo sn
;
2234 bs_vm_state
= bdrv_snapshots();
2236 error_report("No block device supports snapshots");
2240 /* Don't even try to load empty VM states */
2241 ret
= bdrv_snapshot_find(bs_vm_state
, &sn
, name
);
2244 } else if (sn
.vm_state_size
== 0) {
2245 error_report("This is a disk-only snapshot. Revert to it offline "
2250 /* Verify if there is any device that doesn't support snapshots and is
2251 writable and check if the requested snapshot is available too. */
2253 while ((bs
= bdrv_next(bs
))) {
2255 if (!bdrv_is_inserted(bs
) || bdrv_is_read_only(bs
)) {
2259 if (!bdrv_can_snapshot(bs
)) {
2260 error_report("Device '%s' is writable but does not support snapshots.",
2261 bdrv_get_device_name(bs
));
2265 ret
= bdrv_snapshot_find(bs
, &sn
, name
);
2267 error_report("Device '%s' does not have the requested snapshot '%s'",
2268 bdrv_get_device_name(bs
), name
);
2273 /* Flush all IO requests so they don't interfere with the new state. */
2277 while ((bs
= bdrv_next(bs
))) {
2278 if (bdrv_can_snapshot(bs
)) {
2279 ret
= bdrv_snapshot_goto(bs
, name
);
2281 error_report("Error %d while activating snapshot '%s' on '%s'",
2282 ret
, name
, bdrv_get_device_name(bs
));
2288 /* restore the VM state */
2289 f
= qemu_fopen_bdrv(bs_vm_state
, 0);
2291 error_report("Could not open VM state file");
2295 qemu_system_reset(VMRESET_SILENT
);
2296 ret
= qemu_loadvm_state(f
);
2300 error_report("Error %d while loading VM state", ret
);
2307 void do_delvm(Monitor
*mon
, const QDict
*qdict
)
2309 BlockDriverState
*bs
, *bs1
;
2311 const char *name
= qdict_get_str(qdict
, "name");
2313 bs
= bdrv_snapshots();
2315 monitor_printf(mon
, "No block device supports snapshots\n");
2320 while ((bs1
= bdrv_next(bs1
))) {
2321 if (bdrv_can_snapshot(bs1
)) {
2322 ret
= bdrv_snapshot_delete(bs1
, name
);
2324 if (ret
== -ENOTSUP
)
2326 "Snapshots not supported on device '%s'\n",
2327 bdrv_get_device_name(bs1
));
2329 monitor_printf(mon
, "Error %d while deleting snapshot on "
2330 "'%s'\n", ret
, bdrv_get_device_name(bs1
));
2336 void do_info_snapshots(Monitor
*mon
)
2338 BlockDriverState
*bs
, *bs1
;
2339 QEMUSnapshotInfo
*sn_tab
, *sn
, s
, *sn_info
= &s
;
2340 int nb_sns
, i
, ret
, available
;
2342 int *available_snapshots
;
2345 bs
= bdrv_snapshots();
2347 monitor_printf(mon
, "No available block device supports snapshots\n");
2351 nb_sns
= bdrv_snapshot_list(bs
, &sn_tab
);
2353 monitor_printf(mon
, "bdrv_snapshot_list: error %d\n", nb_sns
);
2358 monitor_printf(mon
, "There is no snapshot available.\n");
2362 available_snapshots
= g_malloc0(sizeof(int) * nb_sns
);
2364 for (i
= 0; i
< nb_sns
; i
++) {
2369 while ((bs1
= bdrv_next(bs1
))) {
2370 if (bdrv_can_snapshot(bs1
) && bs1
!= bs
) {
2371 ret
= bdrv_snapshot_find(bs1
, sn_info
, sn
->id_str
);
2380 available_snapshots
[total
] = i
;
2386 monitor_printf(mon
, "%s\n", bdrv_snapshot_dump(buf
, sizeof(buf
), NULL
));
2387 for (i
= 0; i
< total
; i
++) {
2388 sn
= &sn_tab
[available_snapshots
[i
]];
2389 monitor_printf(mon
, "%s\n", bdrv_snapshot_dump(buf
, sizeof(buf
), sn
));
2392 monitor_printf(mon
, "There is no suitable snapshot available\n");
2396 g_free(available_snapshots
);
2400 void vmstate_register_ram(MemoryRegion
*mr
, DeviceState
*dev
)
2402 qemu_ram_set_idstr(memory_region_get_ram_addr(mr
) & TARGET_PAGE_MASK
,
2403 memory_region_name(mr
), dev
);
2406 void vmstate_unregister_ram(MemoryRegion
*mr
, DeviceState
*dev
)
2408 /* Nothing do to while the implementation is in RAMBlock */
2411 void vmstate_register_ram_global(MemoryRegion
*mr
)
2413 vmstate_register_ram(mr
, NULL
);
2422 nzrun = length byte...
2424 length = uleb128 encoded integer
2426 int xbzrle_encode_buffer(uint8_t *old_buf
, uint8_t *new_buf
, int slen
,
2427 uint8_t *dst
, int dlen
)
2429 uint32_t zrun_len
= 0, nzrun_len
= 0;
2432 uint8_t *nzrun_start
= NULL
;
2434 g_assert(!(((uintptr_t)old_buf
| (uintptr_t)new_buf
| slen
) %
2443 /* not aligned to sizeof(long) */
2444 res
= (slen
- i
) % sizeof(long);
2445 while (res
&& old_buf
[i
] == new_buf
[i
]) {
2451 /* word at a time for speed */
2454 (*(long *)(old_buf
+ i
)) == (*(long *)(new_buf
+ i
))) {
2456 zrun_len
+= sizeof(long);
2459 /* go over the rest */
2460 while (i
< slen
&& old_buf
[i
] == new_buf
[i
]) {
2466 /* buffer unchanged */
2467 if (zrun_len
== slen
) {
2471 /* skip last zero run */
2476 d
+= uleb128_encode_small(dst
+ d
, zrun_len
);
2479 nzrun_start
= new_buf
+ i
;
2485 /* not aligned to sizeof(long) */
2486 res
= (slen
- i
) % sizeof(long);
2487 while (res
&& old_buf
[i
] != new_buf
[i
]) {
2493 /* word at a time for speed, use of 32-bit long okay */
2495 /* truncation to 32-bit long okay */
2496 long mask
= (long)0x0101010101010101ULL
;
2498 xor = *(long *)(old_buf
+ i
) ^ *(long *)(new_buf
+ i
);
2499 if ((xor - mask
) & ~xor & (mask
<< 7)) {
2500 /* found the end of an nzrun within the current long */
2501 while (old_buf
[i
] != new_buf
[i
]) {
2508 nzrun_len
+= sizeof(long);
2513 d
+= uleb128_encode_small(dst
+ d
, nzrun_len
);
2515 if (d
+ nzrun_len
> dlen
) {
2518 memcpy(dst
+ d
, nzrun_start
, nzrun_len
);
2526 int xbzrle_decode_buffer(uint8_t *src
, int slen
, uint8_t *dst
, int dlen
)
2535 if ((slen
- i
) < 2) {
2539 ret
= uleb128_decode_small(src
+ i
, &count
);
2540 if (ret
< 0 || (i
&& !count
)) {
2552 if ((slen
- i
) < 2) {
2556 ret
= uleb128_decode_small(src
+ i
, &count
);
2557 if (ret
< 0 || !count
) {
2563 if (d
+ count
> dlen
|| i
+ count
> slen
) {
2567 memcpy(dst
+ d
, src
+ i
, count
);