Count used RAMBlock pages for migration_dirty_pages
[qemu-kvm.git] / arch_init.c
blob0c8c07d6ba5be4a8ecf23fcbb3477a95c256efeb
1 /*
2 * QEMU System Emulator
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
22 * THE SOFTWARE.
24 #include <stdint.h>
25 #include <stdarg.h>
26 #include <stdlib.h>
27 #ifndef _WIN32
28 #include <sys/types.h>
29 #include <sys/mman.h>
30 #endif
31 #include "config.h"
32 #include "monitor/monitor.h"
33 #include "sysemu/sysemu.h"
34 #include "qemu/bitops.h"
35 #include "qemu/bitmap.h"
36 #include "sysemu/arch_init.h"
37 #include "audio/audio.h"
38 #include "hw/i386/pc.h"
39 #include "hw/pci/pci.h"
40 #include "hw/audio/audio.h"
41 #include "sysemu/kvm.h"
42 #include "migration/migration.h"
43 #include "hw/i386/smbios.h"
44 #include "exec/address-spaces.h"
45 #include "hw/audio/pcspk.h"
46 #include "migration/page_cache.h"
47 #include "qemu/config-file.h"
48 #include "qmp-commands.h"
49 #include "trace.h"
50 #include "exec/cpu-all.h"
51 #include "exec/ram_addr.h"
52 #include "hw/acpi/acpi.h"
53 #include "qemu/host-utils.h"
55 #ifdef DEBUG_ARCH_INIT
56 #define DPRINTF(fmt, ...) \
57 do { fprintf(stdout, "arch_init: " fmt, ## __VA_ARGS__); } while (0)
58 #else
59 #define DPRINTF(fmt, ...) \
60 do { } while (0)
61 #endif
63 #ifdef TARGET_SPARC
64 int graphic_width = 1024;
65 int graphic_height = 768;
66 int graphic_depth = 8;
67 #else
68 int graphic_width = 800;
69 int graphic_height = 600;
70 int graphic_depth = 32;
71 #endif
74 #if defined(TARGET_ALPHA)
75 #define QEMU_ARCH QEMU_ARCH_ALPHA
76 #elif defined(TARGET_ARM)
77 #define QEMU_ARCH QEMU_ARCH_ARM
78 #elif defined(TARGET_CRIS)
79 #define QEMU_ARCH QEMU_ARCH_CRIS
80 #elif defined(TARGET_I386)
81 #define QEMU_ARCH QEMU_ARCH_I386
82 #elif defined(TARGET_M68K)
83 #define QEMU_ARCH QEMU_ARCH_M68K
84 #elif defined(TARGET_LM32)
85 #define QEMU_ARCH QEMU_ARCH_LM32
86 #elif defined(TARGET_MICROBLAZE)
87 #define QEMU_ARCH QEMU_ARCH_MICROBLAZE
88 #elif defined(TARGET_MIPS)
89 #define QEMU_ARCH QEMU_ARCH_MIPS
90 #elif defined(TARGET_MOXIE)
91 #define QEMU_ARCH QEMU_ARCH_MOXIE
92 #elif defined(TARGET_OPENRISC)
93 #define QEMU_ARCH QEMU_ARCH_OPENRISC
94 #elif defined(TARGET_PPC)
95 #define QEMU_ARCH QEMU_ARCH_PPC
96 #elif defined(TARGET_S390X)
97 #define QEMU_ARCH QEMU_ARCH_S390X
98 #elif defined(TARGET_SH4)
99 #define QEMU_ARCH QEMU_ARCH_SH4
100 #elif defined(TARGET_SPARC)
101 #define QEMU_ARCH QEMU_ARCH_SPARC
102 #elif defined(TARGET_XTENSA)
103 #define QEMU_ARCH QEMU_ARCH_XTENSA
104 #elif defined(TARGET_UNICORE32)
105 #define QEMU_ARCH QEMU_ARCH_UNICORE32
106 #endif
108 const uint32_t arch_type = QEMU_ARCH;
109 static bool mig_throttle_on;
110 static int dirty_rate_high_cnt;
111 static void check_guest_throttling(void);
113 /***********************************************************/
114 /* ram save/restore */
116 #define RAM_SAVE_FLAG_FULL 0x01 /* Obsolete, not used anymore */
117 #define RAM_SAVE_FLAG_COMPRESS 0x02
118 #define RAM_SAVE_FLAG_MEM_SIZE 0x04
119 #define RAM_SAVE_FLAG_PAGE 0x08
120 #define RAM_SAVE_FLAG_EOS 0x10
121 #define RAM_SAVE_FLAG_CONTINUE 0x20
122 #define RAM_SAVE_FLAG_XBZRLE 0x40
123 /* 0x80 is reserved in migration.h start with 0x100 next */
125 static struct defconfig_file {
126 const char *filename;
127 /* Indicates it is an user config file (disabled by -no-user-config) */
128 bool userconfig;
129 } default_config_files[] = {
130 { CONFIG_QEMU_CONFDIR "/qemu.conf", true },
131 { CONFIG_QEMU_CONFDIR "/target-" TARGET_NAME ".conf", true },
132 { NULL }, /* end of list */
135 static const uint8_t ZERO_TARGET_PAGE[TARGET_PAGE_SIZE];
137 int qemu_read_default_config_files(bool userconfig)
139 int ret;
140 struct defconfig_file *f;
142 for (f = default_config_files; f->filename; f++) {
143 if (!userconfig && f->userconfig) {
144 continue;
146 ret = qemu_read_config_file(f->filename);
147 if (ret < 0 && ret != -ENOENT) {
148 return ret;
152 return 0;
155 static inline bool is_zero_range(uint8_t *p, uint64_t size)
157 return buffer_find_nonzero_offset(p, size) == size;
160 /* struct contains XBZRLE cache and a static page
161 used by the compression */
162 static struct {
163 /* buffer used for XBZRLE encoding */
164 uint8_t *encoded_buf;
165 /* buffer for storing page content */
166 uint8_t *current_buf;
167 /* Cache for XBZRLE, Protected by lock. */
168 PageCache *cache;
169 QemuMutex lock;
170 } XBZRLE = {
171 .encoded_buf = NULL,
172 .current_buf = NULL,
173 .cache = NULL,
175 /* buffer used for XBZRLE decoding */
176 static uint8_t *xbzrle_decoded_buf;
178 static void XBZRLE_cache_lock(void)
180 if (migrate_use_xbzrle())
181 qemu_mutex_lock(&XBZRLE.lock);
184 static void XBZRLE_cache_unlock(void)
186 if (migrate_use_xbzrle())
187 qemu_mutex_unlock(&XBZRLE.lock);
190 int64_t xbzrle_cache_resize(int64_t new_size)
192 PageCache *new_cache, *cache_to_free;
194 if (new_size < TARGET_PAGE_SIZE) {
195 return -1;
198 /* no need to lock, the current thread holds qemu big lock */
199 if (XBZRLE.cache != NULL) {
200 /* check XBZRLE.cache again later */
201 if (pow2floor(new_size) == migrate_xbzrle_cache_size()) {
202 return pow2floor(new_size);
204 new_cache = cache_init(new_size / TARGET_PAGE_SIZE,
205 TARGET_PAGE_SIZE);
206 if (!new_cache) {
207 DPRINTF("Error creating cache\n");
208 return -1;
211 XBZRLE_cache_lock();
212 /* the XBZRLE.cache may have be destroyed, check it again */
213 if (XBZRLE.cache != NULL) {
214 cache_to_free = XBZRLE.cache;
215 XBZRLE.cache = new_cache;
216 } else {
217 cache_to_free = new_cache;
219 XBZRLE_cache_unlock();
221 cache_fini(cache_to_free);
224 return pow2floor(new_size);
227 /* accounting for migration statistics */
228 typedef struct AccountingInfo {
229 uint64_t dup_pages;
230 uint64_t skipped_pages;
231 uint64_t norm_pages;
232 uint64_t iterations;
233 uint64_t xbzrle_bytes;
234 uint64_t xbzrle_pages;
235 uint64_t xbzrle_cache_miss;
236 uint64_t xbzrle_overflows;
237 } AccountingInfo;
239 static AccountingInfo acct_info;
241 static void acct_clear(void)
243 memset(&acct_info, 0, sizeof(acct_info));
246 uint64_t dup_mig_bytes_transferred(void)
248 return acct_info.dup_pages * TARGET_PAGE_SIZE;
251 uint64_t dup_mig_pages_transferred(void)
253 return acct_info.dup_pages;
256 uint64_t skipped_mig_bytes_transferred(void)
258 return acct_info.skipped_pages * TARGET_PAGE_SIZE;
261 uint64_t skipped_mig_pages_transferred(void)
263 return acct_info.skipped_pages;
266 uint64_t norm_mig_bytes_transferred(void)
268 return acct_info.norm_pages * TARGET_PAGE_SIZE;
271 uint64_t norm_mig_pages_transferred(void)
273 return acct_info.norm_pages;
276 uint64_t xbzrle_mig_bytes_transferred(void)
278 return acct_info.xbzrle_bytes;
281 uint64_t xbzrle_mig_pages_transferred(void)
283 return acct_info.xbzrle_pages;
286 uint64_t xbzrle_mig_pages_cache_miss(void)
288 return acct_info.xbzrle_cache_miss;
291 uint64_t xbzrle_mig_pages_overflow(void)
293 return acct_info.xbzrle_overflows;
296 static size_t save_block_hdr(QEMUFile *f, RAMBlock *block, ram_addr_t offset,
297 int cont, int flag)
299 size_t size;
301 qemu_put_be64(f, offset | cont | flag);
302 size = 8;
304 if (!cont) {
305 qemu_put_byte(f, strlen(block->idstr));
306 qemu_put_buffer(f, (uint8_t *)block->idstr,
307 strlen(block->idstr));
308 size += 1 + strlen(block->idstr);
310 return size;
313 /* This is the last block that we have visited serching for dirty pages
315 static RAMBlock *last_seen_block;
316 /* This is the last block from where we have sent data */
317 static RAMBlock *last_sent_block;
318 static ram_addr_t last_offset;
319 static unsigned long *migration_bitmap;
320 static uint64_t migration_dirty_pages;
321 static uint32_t last_version;
322 static bool ram_bulk_stage;
324 /* Update the xbzrle cache to reflect a page that's been sent as all 0.
325 * The important thing is that a stale (not-yet-0'd) page be replaced
326 * by the new data.
327 * As a bonus, if the page wasn't in the cache it gets added so that
328 * when a small write is made into the 0'd page it gets XBZRLE sent
330 static void xbzrle_cache_zero_page(ram_addr_t current_addr)
332 if (ram_bulk_stage || !migrate_use_xbzrle()) {
333 return;
336 /* We don't care if this fails to allocate a new cache page
337 * as long as it updated an old one */
338 cache_insert(XBZRLE.cache, current_addr, ZERO_TARGET_PAGE);
341 #define ENCODING_FLAG_XBZRLE 0x1
343 static int save_xbzrle_page(QEMUFile *f, uint8_t *current_data,
344 ram_addr_t current_addr, RAMBlock *block,
345 ram_addr_t offset, int cont, bool last_stage)
347 int encoded_len = 0, bytes_sent = -1;
348 uint8_t *prev_cached_page;
350 if (!cache_is_cached(XBZRLE.cache, current_addr)) {
351 if (!last_stage) {
352 if (cache_insert(XBZRLE.cache, current_addr, current_data) == -1) {
353 return -1;
356 acct_info.xbzrle_cache_miss++;
357 return -1;
360 prev_cached_page = get_cached_data(XBZRLE.cache, current_addr);
362 /* save current buffer into memory */
363 memcpy(XBZRLE.current_buf, current_data, TARGET_PAGE_SIZE);
365 /* XBZRLE encoding (if there is no overflow) */
366 encoded_len = xbzrle_encode_buffer(prev_cached_page, XBZRLE.current_buf,
367 TARGET_PAGE_SIZE, XBZRLE.encoded_buf,
368 TARGET_PAGE_SIZE);
369 if (encoded_len == 0) {
370 DPRINTF("Skipping unmodified page\n");
371 return 0;
372 } else if (encoded_len == -1) {
373 DPRINTF("Overflow\n");
374 acct_info.xbzrle_overflows++;
375 /* update data in the cache */
376 memcpy(prev_cached_page, current_data, TARGET_PAGE_SIZE);
377 return -1;
380 /* we need to update the data in the cache, in order to get the same data */
381 if (!last_stage) {
382 memcpy(prev_cached_page, XBZRLE.current_buf, TARGET_PAGE_SIZE);
385 /* Send XBZRLE based compressed page */
386 bytes_sent = save_block_hdr(f, block, offset, cont, RAM_SAVE_FLAG_XBZRLE);
387 qemu_put_byte(f, ENCODING_FLAG_XBZRLE);
388 qemu_put_be16(f, encoded_len);
389 qemu_put_buffer(f, XBZRLE.encoded_buf, encoded_len);
390 bytes_sent += encoded_len + 1 + 2;
391 acct_info.xbzrle_pages++;
392 acct_info.xbzrle_bytes += bytes_sent;
394 return bytes_sent;
397 static inline
398 ram_addr_t migration_bitmap_find_and_reset_dirty(MemoryRegion *mr,
399 ram_addr_t start)
401 unsigned long base = mr->ram_addr >> TARGET_PAGE_BITS;
402 unsigned long nr = base + (start >> TARGET_PAGE_BITS);
403 uint64_t mr_size = TARGET_PAGE_ALIGN(memory_region_size(mr));
404 unsigned long size = base + (mr_size >> TARGET_PAGE_BITS);
406 unsigned long next;
408 if (ram_bulk_stage && nr > base) {
409 next = nr + 1;
410 } else {
411 next = find_next_bit(migration_bitmap, size, nr);
414 if (next < size) {
415 clear_bit(next, migration_bitmap);
416 migration_dirty_pages--;
418 return (next - base) << TARGET_PAGE_BITS;
421 static inline bool migration_bitmap_set_dirty(ram_addr_t addr)
423 bool ret;
424 int nr = addr >> TARGET_PAGE_BITS;
426 ret = test_and_set_bit(nr, migration_bitmap);
428 if (!ret) {
429 migration_dirty_pages++;
431 return ret;
434 static void migration_bitmap_sync_range(ram_addr_t start, ram_addr_t length)
436 ram_addr_t addr;
437 unsigned long page = BIT_WORD(start >> TARGET_PAGE_BITS);
439 /* start address is aligned at the start of a word? */
440 if (((page * BITS_PER_LONG) << TARGET_PAGE_BITS) == start) {
441 int k;
442 int nr = BITS_TO_LONGS(length >> TARGET_PAGE_BITS);
443 unsigned long *src = ram_list.dirty_memory[DIRTY_MEMORY_MIGRATION];
445 for (k = page; k < page + nr; k++) {
446 if (src[k]) {
447 unsigned long new_dirty;
448 new_dirty = ~migration_bitmap[k];
449 migration_bitmap[k] |= src[k];
450 new_dirty &= src[k];
451 migration_dirty_pages += ctpopl(new_dirty);
452 src[k] = 0;
455 } else {
456 for (addr = 0; addr < length; addr += TARGET_PAGE_SIZE) {
457 if (cpu_physical_memory_get_dirty(start + addr,
458 TARGET_PAGE_SIZE,
459 DIRTY_MEMORY_MIGRATION)) {
460 cpu_physical_memory_reset_dirty(start + addr,
461 TARGET_PAGE_SIZE,
462 DIRTY_MEMORY_MIGRATION);
463 migration_bitmap_set_dirty(start + addr);
470 /* Needs iothread lock! */
472 static void migration_bitmap_sync(void)
474 RAMBlock *block;
475 uint64_t num_dirty_pages_init = migration_dirty_pages;
476 MigrationState *s = migrate_get_current();
477 static int64_t start_time;
478 static int64_t bytes_xfer_prev;
479 static int64_t num_dirty_pages_period;
480 int64_t end_time;
481 int64_t bytes_xfer_now;
483 if (!bytes_xfer_prev) {
484 bytes_xfer_prev = ram_bytes_transferred();
487 if (!start_time) {
488 start_time = qemu_clock_get_ms(QEMU_CLOCK_REALTIME);
491 trace_migration_bitmap_sync_start();
492 address_space_sync_dirty_bitmap(&address_space_memory);
494 QTAILQ_FOREACH(block, &ram_list.blocks, next) {
495 migration_bitmap_sync_range(block->mr->ram_addr, block->length);
497 trace_migration_bitmap_sync_end(migration_dirty_pages
498 - num_dirty_pages_init);
499 num_dirty_pages_period += migration_dirty_pages - num_dirty_pages_init;
500 end_time = qemu_clock_get_ms(QEMU_CLOCK_REALTIME);
502 /* more than 1 second = 1000 millisecons */
503 if (end_time > start_time + 1000) {
504 if (migrate_auto_converge()) {
505 /* The following detection logic can be refined later. For now:
506 Check to see if the dirtied bytes is 50% more than the approx.
507 amount of bytes that just got transferred since the last time we
508 were in this routine. If that happens >N times (for now N==4)
509 we turn on the throttle down logic */
510 bytes_xfer_now = ram_bytes_transferred();
511 if (s->dirty_pages_rate &&
512 (num_dirty_pages_period * TARGET_PAGE_SIZE >
513 (bytes_xfer_now - bytes_xfer_prev)/2) &&
514 (dirty_rate_high_cnt++ > 4)) {
515 trace_migration_throttle();
516 mig_throttle_on = true;
517 dirty_rate_high_cnt = 0;
519 bytes_xfer_prev = bytes_xfer_now;
520 } else {
521 mig_throttle_on = false;
523 s->dirty_pages_rate = num_dirty_pages_period * 1000
524 / (end_time - start_time);
525 s->dirty_bytes_rate = s->dirty_pages_rate * TARGET_PAGE_SIZE;
526 start_time = end_time;
527 num_dirty_pages_period = 0;
532 * ram_save_block: Writes a page of memory to the stream f
534 * Returns: The number of bytes written.
535 * 0 means no dirty pages
538 static int ram_save_block(QEMUFile *f, bool last_stage)
540 RAMBlock *block = last_seen_block;
541 ram_addr_t offset = last_offset;
542 bool complete_round = false;
543 int bytes_sent = 0;
544 MemoryRegion *mr;
545 ram_addr_t current_addr;
547 if (!block)
548 block = QTAILQ_FIRST(&ram_list.blocks);
550 while (true) {
551 mr = block->mr;
552 offset = migration_bitmap_find_and_reset_dirty(mr, offset);
553 if (complete_round && block == last_seen_block &&
554 offset >= last_offset) {
555 break;
557 if (offset >= block->length) {
558 offset = 0;
559 block = QTAILQ_NEXT(block, next);
560 if (!block) {
561 block = QTAILQ_FIRST(&ram_list.blocks);
562 complete_round = true;
563 ram_bulk_stage = false;
565 } else {
566 int ret;
567 uint8_t *p;
568 bool send_async = true;
569 int cont = (block == last_sent_block) ?
570 RAM_SAVE_FLAG_CONTINUE : 0;
572 p = memory_region_get_ram_ptr(mr) + offset;
574 /* In doubt sent page as normal */
575 bytes_sent = -1;
576 ret = ram_control_save_page(f, block->offset,
577 offset, TARGET_PAGE_SIZE, &bytes_sent);
579 XBZRLE_cache_lock();
581 current_addr = block->offset + offset;
582 if (ret != RAM_SAVE_CONTROL_NOT_SUPP) {
583 if (ret != RAM_SAVE_CONTROL_DELAYED) {
584 if (bytes_sent > 0) {
585 acct_info.norm_pages++;
586 } else if (bytes_sent == 0) {
587 acct_info.dup_pages++;
590 } else if (is_zero_range(p, TARGET_PAGE_SIZE)) {
591 acct_info.dup_pages++;
592 bytes_sent = save_block_hdr(f, block, offset, cont,
593 RAM_SAVE_FLAG_COMPRESS);
594 qemu_put_byte(f, 0);
595 bytes_sent++;
596 /* Must let xbzrle know, otherwise a previous (now 0'd) cached
597 * page would be stale
599 xbzrle_cache_zero_page(current_addr);
600 } else if (!ram_bulk_stage && migrate_use_xbzrle()) {
601 bytes_sent = save_xbzrle_page(f, p, current_addr, block,
602 offset, cont, last_stage);
603 if (!last_stage) {
604 /* We must send exactly what's in the xbzrle cache
605 * even if the page wasn't xbzrle compressed, so that
606 * it's right next time.
608 p = get_cached_data(XBZRLE.cache, current_addr);
610 /* Can't send this cached data async, since the cache page
611 * might get updated before it gets to the wire
613 send_async = false;
617 /* XBZRLE overflow or normal page */
618 if (bytes_sent == -1) {
619 bytes_sent = save_block_hdr(f, block, offset, cont, RAM_SAVE_FLAG_PAGE);
620 if (send_async) {
621 qemu_put_buffer_async(f, p, TARGET_PAGE_SIZE);
622 } else {
623 qemu_put_buffer(f, p, TARGET_PAGE_SIZE);
625 bytes_sent += TARGET_PAGE_SIZE;
626 acct_info.norm_pages++;
629 XBZRLE_cache_unlock();
630 /* if page is unmodified, continue to the next */
631 if (bytes_sent > 0) {
632 last_sent_block = block;
633 break;
637 last_seen_block = block;
638 last_offset = offset;
640 return bytes_sent;
643 static uint64_t bytes_transferred;
645 void acct_update_position(QEMUFile *f, size_t size, bool zero)
647 uint64_t pages = size / TARGET_PAGE_SIZE;
648 if (zero) {
649 acct_info.dup_pages += pages;
650 } else {
651 acct_info.norm_pages += pages;
652 bytes_transferred += size;
653 qemu_update_position(f, size);
657 static ram_addr_t ram_save_remaining(void)
659 return migration_dirty_pages;
662 uint64_t ram_bytes_remaining(void)
664 return ram_save_remaining() * TARGET_PAGE_SIZE;
667 uint64_t ram_bytes_transferred(void)
669 return bytes_transferred;
672 uint64_t ram_bytes_total(void)
674 RAMBlock *block;
675 uint64_t total = 0;
677 QTAILQ_FOREACH(block, &ram_list.blocks, next)
678 total += block->length;
680 return total;
683 void free_xbzrle_decoded_buf(void)
685 g_free(xbzrle_decoded_buf);
686 xbzrle_decoded_buf = NULL;
689 static void migration_end(void)
691 if (migration_bitmap) {
692 memory_global_dirty_log_stop();
693 g_free(migration_bitmap);
694 migration_bitmap = NULL;
697 XBZRLE_cache_lock();
698 if (XBZRLE.cache) {
699 cache_fini(XBZRLE.cache);
700 g_free(XBZRLE.cache);
701 g_free(XBZRLE.encoded_buf);
702 g_free(XBZRLE.current_buf);
703 XBZRLE.cache = NULL;
704 XBZRLE.encoded_buf = NULL;
705 XBZRLE.current_buf = NULL;
707 XBZRLE_cache_unlock();
710 static void ram_migration_cancel(void *opaque)
712 migration_end();
715 static void reset_ram_globals(void)
717 last_seen_block = NULL;
718 last_sent_block = NULL;
719 last_offset = 0;
720 last_version = ram_list.version;
721 ram_bulk_stage = true;
724 #define MAX_WAIT 50 /* ms, half buffered_file limit */
726 static int ram_save_setup(QEMUFile *f, void *opaque)
728 RAMBlock *block;
729 int64_t ram_bitmap_pages; /* Size of bitmap in pages, including gaps */
731 mig_throttle_on = false;
732 dirty_rate_high_cnt = 0;
734 if (migrate_use_xbzrle()) {
735 qemu_mutex_lock_iothread();
736 XBZRLE.cache = cache_init(migrate_xbzrle_cache_size() /
737 TARGET_PAGE_SIZE,
738 TARGET_PAGE_SIZE);
739 if (!XBZRLE.cache) {
740 qemu_mutex_unlock_iothread();
741 DPRINTF("Error creating cache\n");
742 return -1;
744 qemu_mutex_init(&XBZRLE.lock);
745 qemu_mutex_unlock_iothread();
747 /* We prefer not to abort if there is no memory */
748 XBZRLE.encoded_buf = g_try_malloc0(TARGET_PAGE_SIZE);
749 if (!XBZRLE.encoded_buf) {
750 DPRINTF("Error allocating encoded_buf\n");
751 return -1;
754 XBZRLE.current_buf = g_try_malloc(TARGET_PAGE_SIZE);
755 if (!XBZRLE.current_buf) {
756 DPRINTF("Error allocating current_buf\n");
757 g_free(XBZRLE.encoded_buf);
758 XBZRLE.encoded_buf = NULL;
759 return -1;
762 acct_clear();
765 qemu_mutex_lock_iothread();
766 qemu_mutex_lock_ramlist();
767 bytes_transferred = 0;
768 reset_ram_globals();
770 ram_bitmap_pages = last_ram_offset() >> TARGET_PAGE_BITS;
771 migration_bitmap = bitmap_new(ram_bitmap_pages);
772 bitmap_set(migration_bitmap, 0, ram_bitmap_pages);
775 * Count the total number of pages used by ram blocks not including any
776 * gaps due to alignment or unplugs.
778 migration_dirty_pages = 0;
779 QTAILQ_FOREACH(block, &ram_list.blocks, next) {
780 uint64_t block_pages;
782 block_pages = block->length >> TARGET_PAGE_BITS;
783 migration_dirty_pages += block_pages;
786 memory_global_dirty_log_start();
787 migration_bitmap_sync();
788 qemu_mutex_unlock_iothread();
790 qemu_put_be64(f, ram_bytes_total() | RAM_SAVE_FLAG_MEM_SIZE);
792 QTAILQ_FOREACH(block, &ram_list.blocks, next) {
793 qemu_put_byte(f, strlen(block->idstr));
794 qemu_put_buffer(f, (uint8_t *)block->idstr, strlen(block->idstr));
795 qemu_put_be64(f, block->length);
798 qemu_mutex_unlock_ramlist();
800 ram_control_before_iterate(f, RAM_CONTROL_SETUP);
801 ram_control_after_iterate(f, RAM_CONTROL_SETUP);
803 qemu_put_be64(f, RAM_SAVE_FLAG_EOS);
805 return 0;
808 static int ram_save_iterate(QEMUFile *f, void *opaque)
810 int ret;
811 int i;
812 int64_t t0;
813 int total_sent = 0;
815 qemu_mutex_lock_ramlist();
817 if (ram_list.version != last_version) {
818 reset_ram_globals();
821 ram_control_before_iterate(f, RAM_CONTROL_ROUND);
823 t0 = qemu_clock_get_ns(QEMU_CLOCK_REALTIME);
824 i = 0;
825 while ((ret = qemu_file_rate_limit(f)) == 0) {
826 int bytes_sent;
828 bytes_sent = ram_save_block(f, false);
829 /* no more blocks to sent */
830 if (bytes_sent == 0) {
831 break;
833 total_sent += bytes_sent;
834 acct_info.iterations++;
835 check_guest_throttling();
836 /* we want to check in the 1st loop, just in case it was the 1st time
837 and we had to sync the dirty bitmap.
838 qemu_get_clock_ns() is a bit expensive, so we only check each some
839 iterations
841 if ((i & 63) == 0) {
842 uint64_t t1 = (qemu_clock_get_ns(QEMU_CLOCK_REALTIME) - t0) / 1000000;
843 if (t1 > MAX_WAIT) {
844 DPRINTF("big wait: %" PRIu64 " milliseconds, %d iterations\n",
845 t1, i);
846 break;
849 i++;
852 qemu_mutex_unlock_ramlist();
855 * Must occur before EOS (or any QEMUFile operation)
856 * because of RDMA protocol.
858 ram_control_after_iterate(f, RAM_CONTROL_ROUND);
860 bytes_transferred += total_sent;
863 * Do not count these 8 bytes into total_sent, so that we can
864 * return 0 if no page had been dirtied.
866 qemu_put_be64(f, RAM_SAVE_FLAG_EOS);
867 bytes_transferred += 8;
869 ret = qemu_file_get_error(f);
870 if (ret < 0) {
871 return ret;
874 return total_sent;
877 static int ram_save_complete(QEMUFile *f, void *opaque)
879 qemu_mutex_lock_ramlist();
880 migration_bitmap_sync();
882 ram_control_before_iterate(f, RAM_CONTROL_FINISH);
884 /* try transferring iterative blocks of memory */
886 /* flush all remaining blocks regardless of rate limiting */
887 while (true) {
888 int bytes_sent;
890 bytes_sent = ram_save_block(f, true);
891 /* no more blocks to sent */
892 if (bytes_sent == 0) {
893 break;
895 bytes_transferred += bytes_sent;
898 ram_control_after_iterate(f, RAM_CONTROL_FINISH);
899 migration_end();
901 qemu_mutex_unlock_ramlist();
902 qemu_put_be64(f, RAM_SAVE_FLAG_EOS);
904 return 0;
907 static uint64_t ram_save_pending(QEMUFile *f, void *opaque, uint64_t max_size)
909 uint64_t remaining_size;
911 remaining_size = ram_save_remaining() * TARGET_PAGE_SIZE;
913 if (remaining_size < max_size) {
914 qemu_mutex_lock_iothread();
915 migration_bitmap_sync();
916 qemu_mutex_unlock_iothread();
917 remaining_size = ram_save_remaining() * TARGET_PAGE_SIZE;
919 return remaining_size;
922 static int load_xbzrle(QEMUFile *f, ram_addr_t addr, void *host)
924 int ret, rc = 0;
925 unsigned int xh_len;
926 int xh_flags;
928 if (!xbzrle_decoded_buf) {
929 xbzrle_decoded_buf = g_malloc(TARGET_PAGE_SIZE);
932 /* extract RLE header */
933 xh_flags = qemu_get_byte(f);
934 xh_len = qemu_get_be16(f);
936 if (xh_flags != ENCODING_FLAG_XBZRLE) {
937 fprintf(stderr, "Failed to load XBZRLE page - wrong compression!\n");
938 return -1;
941 if (xh_len > TARGET_PAGE_SIZE) {
942 fprintf(stderr, "Failed to load XBZRLE page - len overflow!\n");
943 return -1;
945 /* load data and decode */
946 qemu_get_buffer(f, xbzrle_decoded_buf, xh_len);
948 /* decode RLE */
949 ret = xbzrle_decode_buffer(xbzrle_decoded_buf, xh_len, host,
950 TARGET_PAGE_SIZE);
951 if (ret == -1) {
952 fprintf(stderr, "Failed to load XBZRLE page - decode error!\n");
953 rc = -1;
954 } else if (ret > TARGET_PAGE_SIZE) {
955 fprintf(stderr, "Failed to load XBZRLE page - size %d exceeds %d!\n",
956 ret, TARGET_PAGE_SIZE);
957 abort();
960 return rc;
963 static inline void *host_from_stream_offset(QEMUFile *f,
964 ram_addr_t offset,
965 int flags)
967 static RAMBlock *block = NULL;
968 char id[256];
969 uint8_t len;
971 if (flags & RAM_SAVE_FLAG_CONTINUE) {
972 if (!block) {
973 fprintf(stderr, "Ack, bad migration stream!\n");
974 return NULL;
977 return memory_region_get_ram_ptr(block->mr) + offset;
980 len = qemu_get_byte(f);
981 qemu_get_buffer(f, (uint8_t *)id, len);
982 id[len] = 0;
984 QTAILQ_FOREACH(block, &ram_list.blocks, next) {
985 if (!strncmp(id, block->idstr, sizeof(id)))
986 return memory_region_get_ram_ptr(block->mr) + offset;
989 fprintf(stderr, "Can't find block %s!\n", id);
990 return NULL;
994 * If a page (or a whole RDMA chunk) has been
995 * determined to be zero, then zap it.
997 void ram_handle_compressed(void *host, uint8_t ch, uint64_t size)
999 if (ch != 0 || !is_zero_range(host, size)) {
1000 memset(host, ch, size);
1004 static int ram_load(QEMUFile *f, void *opaque, int version_id)
1006 ram_addr_t addr;
1007 int flags, ret = 0;
1008 int error;
1009 static uint64_t seq_iter;
1011 seq_iter++;
1013 if (version_id < 4 || version_id > 4) {
1014 return -EINVAL;
1017 do {
1018 addr = qemu_get_be64(f);
1020 flags = addr & ~TARGET_PAGE_MASK;
1021 addr &= TARGET_PAGE_MASK;
1023 if (flags & RAM_SAVE_FLAG_MEM_SIZE) {
1024 if (version_id == 4) {
1025 /* Synchronize RAM block list */
1026 char id[256];
1027 ram_addr_t length;
1028 ram_addr_t total_ram_bytes = addr;
1030 while (total_ram_bytes) {
1031 RAMBlock *block;
1032 uint8_t len;
1034 len = qemu_get_byte(f);
1035 qemu_get_buffer(f, (uint8_t *)id, len);
1036 id[len] = 0;
1037 length = qemu_get_be64(f);
1039 QTAILQ_FOREACH(block, &ram_list.blocks, next) {
1040 if (!strncmp(id, block->idstr, sizeof(id))) {
1041 if (block->length != length) {
1042 fprintf(stderr,
1043 "Length mismatch: %s: " RAM_ADDR_FMT
1044 " in != " RAM_ADDR_FMT "\n", id, length,
1045 block->length);
1046 ret = -EINVAL;
1047 goto done;
1049 break;
1053 if (!block) {
1054 fprintf(stderr, "Unknown ramblock \"%s\", cannot "
1055 "accept migration\n", id);
1056 ret = -EINVAL;
1057 goto done;
1060 total_ram_bytes -= length;
1065 if (flags & RAM_SAVE_FLAG_COMPRESS) {
1066 void *host;
1067 uint8_t ch;
1069 host = host_from_stream_offset(f, addr, flags);
1070 if (!host) {
1071 return -EINVAL;
1074 ch = qemu_get_byte(f);
1075 ram_handle_compressed(host, ch, TARGET_PAGE_SIZE);
1076 } else if (flags & RAM_SAVE_FLAG_PAGE) {
1077 void *host;
1079 host = host_from_stream_offset(f, addr, flags);
1080 if (!host) {
1081 return -EINVAL;
1084 qemu_get_buffer(f, host, TARGET_PAGE_SIZE);
1085 } else if (flags & RAM_SAVE_FLAG_XBZRLE) {
1086 void *host = host_from_stream_offset(f, addr, flags);
1087 if (!host) {
1088 return -EINVAL;
1091 if (load_xbzrle(f, addr, host) < 0) {
1092 ret = -EINVAL;
1093 goto done;
1095 } else if (flags & RAM_SAVE_FLAG_HOOK) {
1096 ram_control_load_hook(f, flags);
1098 error = qemu_file_get_error(f);
1099 if (error) {
1100 ret = error;
1101 goto done;
1103 } while (!(flags & RAM_SAVE_FLAG_EOS));
1105 done:
1106 DPRINTF("Completed load of VM with exit code %d seq iteration "
1107 "%" PRIu64 "\n", ret, seq_iter);
1108 return ret;
1111 SaveVMHandlers savevm_ram_handlers = {
1112 .save_live_setup = ram_save_setup,
1113 .save_live_iterate = ram_save_iterate,
1114 .save_live_complete = ram_save_complete,
1115 .save_live_pending = ram_save_pending,
1116 .load_state = ram_load,
1117 .cancel = ram_migration_cancel,
1120 struct soundhw {
1121 const char *name;
1122 const char *descr;
1123 int enabled;
1124 int isa;
1125 union {
1126 int (*init_isa) (ISABus *bus);
1127 int (*init_pci) (PCIBus *bus);
1128 } init;
1131 static struct soundhw soundhw[9];
1132 static int soundhw_count;
1134 void isa_register_soundhw(const char *name, const char *descr,
1135 int (*init_isa)(ISABus *bus))
1137 assert(soundhw_count < ARRAY_SIZE(soundhw) - 1);
1138 soundhw[soundhw_count].name = name;
1139 soundhw[soundhw_count].descr = descr;
1140 soundhw[soundhw_count].isa = 1;
1141 soundhw[soundhw_count].init.init_isa = init_isa;
1142 soundhw_count++;
1145 void pci_register_soundhw(const char *name, const char *descr,
1146 int (*init_pci)(PCIBus *bus))
1148 assert(soundhw_count < ARRAY_SIZE(soundhw) - 1);
1149 soundhw[soundhw_count].name = name;
1150 soundhw[soundhw_count].descr = descr;
1151 soundhw[soundhw_count].isa = 0;
1152 soundhw[soundhw_count].init.init_pci = init_pci;
1153 soundhw_count++;
1156 void select_soundhw(const char *optarg)
1158 struct soundhw *c;
1160 if (is_help_option(optarg)) {
1161 show_valid_cards:
1163 if (soundhw_count) {
1164 printf("Valid sound card names (comma separated):\n");
1165 for (c = soundhw; c->name; ++c) {
1166 printf ("%-11s %s\n", c->name, c->descr);
1168 printf("\n-soundhw all will enable all of the above\n");
1169 } else {
1170 printf("Machine has no user-selectable audio hardware "
1171 "(it may or may not have always-present audio hardware).\n");
1173 exit(!is_help_option(optarg));
1175 else {
1176 size_t l;
1177 const char *p;
1178 char *e;
1179 int bad_card = 0;
1181 if (!strcmp(optarg, "all")) {
1182 for (c = soundhw; c->name; ++c) {
1183 c->enabled = 1;
1185 return;
1188 p = optarg;
1189 while (*p) {
1190 e = strchr(p, ',');
1191 l = !e ? strlen(p) : (size_t) (e - p);
1193 for (c = soundhw; c->name; ++c) {
1194 if (!strncmp(c->name, p, l) && !c->name[l]) {
1195 c->enabled = 1;
1196 break;
1200 if (!c->name) {
1201 if (l > 80) {
1202 fprintf(stderr,
1203 "Unknown sound card name (too big to show)\n");
1205 else {
1206 fprintf(stderr, "Unknown sound card name `%.*s'\n",
1207 (int) l, p);
1209 bad_card = 1;
1211 p += l + (e != NULL);
1214 if (bad_card) {
1215 goto show_valid_cards;
1220 void audio_init(void)
1222 struct soundhw *c;
1223 ISABus *isa_bus = (ISABus *) object_resolve_path_type("", TYPE_ISA_BUS, NULL);
1224 PCIBus *pci_bus = (PCIBus *) object_resolve_path_type("", TYPE_PCI_BUS, NULL);
1226 for (c = soundhw; c->name; ++c) {
1227 if (c->enabled) {
1228 if (c->isa) {
1229 if (!isa_bus) {
1230 fprintf(stderr, "ISA bus not available for %s\n", c->name);
1231 exit(1);
1233 c->init.init_isa(isa_bus);
1234 } else {
1235 if (!pci_bus) {
1236 fprintf(stderr, "PCI bus not available for %s\n", c->name);
1237 exit(1);
1239 c->init.init_pci(pci_bus);
1245 int qemu_uuid_parse(const char *str, uint8_t *uuid)
1247 int ret;
1249 if (strlen(str) != 36) {
1250 return -1;
1253 ret = sscanf(str, UUID_FMT, &uuid[0], &uuid[1], &uuid[2], &uuid[3],
1254 &uuid[4], &uuid[5], &uuid[6], &uuid[7], &uuid[8], &uuid[9],
1255 &uuid[10], &uuid[11], &uuid[12], &uuid[13], &uuid[14],
1256 &uuid[15]);
1258 if (ret != 16) {
1259 return -1;
1261 return 0;
1264 void do_acpitable_option(const QemuOpts *opts)
1266 #ifdef TARGET_I386
1267 Error *err = NULL;
1269 acpi_table_add(opts, &err);
1270 if (err) {
1271 error_report("Wrong acpi table provided: %s",
1272 error_get_pretty(err));
1273 error_free(err);
1274 exit(1);
1276 #endif
1279 void do_smbios_option(QemuOpts *opts)
1281 #ifdef TARGET_I386
1282 smbios_entry_add(opts);
1283 #endif
1286 void cpudef_init(void)
1288 #if defined(cpudef_setup)
1289 cpudef_setup(); /* parse cpu definitions in target config file */
1290 #endif
1293 int tcg_available(void)
1295 return 1;
1298 int kvm_available(void)
1300 #ifdef CONFIG_KVM
1301 return 1;
1302 #else
1303 return 0;
1304 #endif
1307 int xen_available(void)
1309 #ifdef CONFIG_XEN
1310 return 1;
1311 #else
1312 return 0;
1313 #endif
1317 TargetInfo *qmp_query_target(Error **errp)
1319 TargetInfo *info = g_malloc0(sizeof(*info));
1321 info->arch = g_strdup(TARGET_NAME);
1323 return info;
1326 /* Stub function that's gets run on the vcpu when its brought out of the
1327 VM to run inside qemu via async_run_on_cpu()*/
1328 static void mig_sleep_cpu(void *opq)
1330 qemu_mutex_unlock_iothread();
1331 g_usleep(30*1000);
1332 qemu_mutex_lock_iothread();
1335 /* To reduce the dirty rate explicitly disallow the VCPUs from spending
1336 much time in the VM. The migration thread will try to catchup.
1337 Workload will experience a performance drop.
1339 static void mig_throttle_guest_down(void)
1341 CPUState *cpu;
1343 qemu_mutex_lock_iothread();
1344 CPU_FOREACH(cpu) {
1345 async_run_on_cpu(cpu, mig_sleep_cpu, NULL);
1347 qemu_mutex_unlock_iothread();
1350 static void check_guest_throttling(void)
1352 static int64_t t0;
1353 int64_t t1;
1355 if (!mig_throttle_on) {
1356 return;
1359 if (!t0) {
1360 t0 = qemu_clock_get_ns(QEMU_CLOCK_REALTIME);
1361 return;
1364 t1 = qemu_clock_get_ns(QEMU_CLOCK_REALTIME);
1366 /* If it has been more than 40 ms since the last time the guest
1367 * was throttled then do it again.
1369 if (40 < (t1-t0)/1000000) {
1370 mig_throttle_guest_down();
1371 t0 = t1;