memory: RCU ram_list.dirty_memory[] for safe RAM hotplug
Although accesses to ram_list.dirty_memory[] use atomics so multiple threads can safely dirty the bitmap, the data structure is not fully thread-safe yet. This patch handles the RAM hotplug case where ram_list.dirty_memory[] is grown. ram_list.dirty_memory[] is change from a regular bitmap to an RCU array of pointers to fixed-size bitmap blocks. Threads can continue accessing bitmap blocks while the array is being extended. See the comments in the code for an in-depth explanation of struct DirtyMemoryBlocks. I have tested that live migration with virtio-blk dataplane works. Signed-off-by: Stefan Hajnoczi <stefanha@redhat.com> Message-Id: <1453728801-5398-2-git-send-email-stefanha@redhat.com> Signed-off-by: Paolo Bonzini <pbonzini@redhat.com>
This commit is contained in:
parent
8bafcb2164
commit
5b82b703b6
75
exec.c
75
exec.c
@ -980,8 +980,9 @@ bool cpu_physical_memory_test_and_clear_dirty(ram_addr_t start,
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ram_addr_t length,
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unsigned client)
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{
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DirtyMemoryBlocks *blocks;
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unsigned long end, page;
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bool dirty;
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bool dirty = false;
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if (length == 0) {
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return false;
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@ -989,8 +990,22 @@ bool cpu_physical_memory_test_and_clear_dirty(ram_addr_t start,
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end = TARGET_PAGE_ALIGN(start + length) >> TARGET_PAGE_BITS;
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page = start >> TARGET_PAGE_BITS;
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dirty = bitmap_test_and_clear_atomic(ram_list.dirty_memory[client],
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page, end - page);
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rcu_read_lock();
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blocks = atomic_rcu_read(&ram_list.dirty_memory[client]);
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while (page < end) {
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unsigned long idx = page / DIRTY_MEMORY_BLOCK_SIZE;
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unsigned long offset = page % DIRTY_MEMORY_BLOCK_SIZE;
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unsigned long num = MIN(end - page, DIRTY_MEMORY_BLOCK_SIZE - offset);
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dirty |= bitmap_test_and_clear_atomic(blocks->blocks[idx],
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offset, num);
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page += num;
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}
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rcu_read_unlock();
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if (dirty && tcg_enabled()) {
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tlb_reset_dirty_range_all(start, length);
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@ -1504,6 +1519,47 @@ int qemu_ram_resize(ram_addr_t base, ram_addr_t newsize, Error **errp)
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return 0;
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}
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/* Called with ram_list.mutex held */
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static void dirty_memory_extend(ram_addr_t old_ram_size,
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ram_addr_t new_ram_size)
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{
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ram_addr_t old_num_blocks = DIV_ROUND_UP(old_ram_size,
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DIRTY_MEMORY_BLOCK_SIZE);
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ram_addr_t new_num_blocks = DIV_ROUND_UP(new_ram_size,
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DIRTY_MEMORY_BLOCK_SIZE);
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int i;
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/* Only need to extend if block count increased */
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if (new_num_blocks <= old_num_blocks) {
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return;
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}
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for (i = 0; i < DIRTY_MEMORY_NUM; i++) {
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DirtyMemoryBlocks *old_blocks;
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DirtyMemoryBlocks *new_blocks;
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int j;
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old_blocks = atomic_rcu_read(&ram_list.dirty_memory[i]);
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new_blocks = g_malloc(sizeof(*new_blocks) +
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sizeof(new_blocks->blocks[0]) * new_num_blocks);
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if (old_num_blocks) {
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memcpy(new_blocks->blocks, old_blocks->blocks,
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old_num_blocks * sizeof(old_blocks->blocks[0]));
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}
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for (j = old_num_blocks; j < new_num_blocks; j++) {
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new_blocks->blocks[j] = bitmap_new(DIRTY_MEMORY_BLOCK_SIZE);
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}
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atomic_rcu_set(&ram_list.dirty_memory[i], new_blocks);
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if (old_blocks) {
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g_free_rcu(old_blocks, rcu);
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}
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}
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}
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static ram_addr_t ram_block_add(RAMBlock *new_block, Error **errp)
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{
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RAMBlock *block;
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@ -1543,6 +1599,7 @@ static ram_addr_t ram_block_add(RAMBlock *new_block, Error **errp)
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(new_block->offset + new_block->max_length) >> TARGET_PAGE_BITS);
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if (new_ram_size > old_ram_size) {
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migration_bitmap_extend(old_ram_size, new_ram_size);
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dirty_memory_extend(old_ram_size, new_ram_size);
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}
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/* Keep the list sorted from biggest to smallest block. Unlike QTAILQ,
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* QLIST (which has an RCU-friendly variant) does not have insertion at
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@ -1568,18 +1625,6 @@ static ram_addr_t ram_block_add(RAMBlock *new_block, Error **errp)
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ram_list.version++;
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qemu_mutex_unlock_ramlist();
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new_ram_size = last_ram_offset() >> TARGET_PAGE_BITS;
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if (new_ram_size > old_ram_size) {
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int i;
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/* ram_list.dirty_memory[] is protected by the iothread lock. */
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for (i = 0; i < DIRTY_MEMORY_NUM; i++) {
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ram_list.dirty_memory[i] =
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bitmap_zero_extend(ram_list.dirty_memory[i],
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old_ram_size, new_ram_size);
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}
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}
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cpu_physical_memory_set_dirty_range(new_block->offset,
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new_block->used_length,
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DIRTY_CLIENTS_ALL);
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@ -49,13 +49,43 @@ static inline void *ramblock_ptr(RAMBlock *block, ram_addr_t offset)
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return (char *)block->host + offset;
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}
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/* The dirty memory bitmap is split into fixed-size blocks to allow growth
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* under RCU. The bitmap for a block can be accessed as follows:
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*
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* rcu_read_lock();
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*
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* DirtyMemoryBlocks *blocks =
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* atomic_rcu_read(&ram_list.dirty_memory[DIRTY_MEMORY_MIGRATION]);
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*
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* ram_addr_t idx = (addr >> TARGET_PAGE_BITS) / DIRTY_MEMORY_BLOCK_SIZE;
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* unsigned long *block = blocks.blocks[idx];
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* ...access block bitmap...
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*
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* rcu_read_unlock();
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*
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* Remember to check for the end of the block when accessing a range of
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* addresses. Move on to the next block if you reach the end.
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*
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* Organization into blocks allows dirty memory to grow (but not shrink) under
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* RCU. When adding new RAMBlocks requires the dirty memory to grow, a new
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* DirtyMemoryBlocks array is allocated with pointers to existing blocks kept
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* the same. Other threads can safely access existing blocks while dirty
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* memory is being grown. When no threads are using the old DirtyMemoryBlocks
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* anymore it is freed by RCU (but the underlying blocks stay because they are
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* pointed to from the new DirtyMemoryBlocks).
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*/
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#define DIRTY_MEMORY_BLOCK_SIZE ((ram_addr_t)256 * 1024 * 8)
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typedef struct {
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struct rcu_head rcu;
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unsigned long *blocks[];
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} DirtyMemoryBlocks;
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typedef struct RAMList {
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QemuMutex mutex;
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/* Protected by the iothread lock. */
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unsigned long *dirty_memory[DIRTY_MEMORY_NUM];
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RAMBlock *mru_block;
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/* RCU-enabled, writes protected by the ramlist lock. */
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QLIST_HEAD(, RAMBlock) blocks;
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DirtyMemoryBlocks *dirty_memory[DIRTY_MEMORY_NUM];
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uint32_t version;
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} RAMList;
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extern RAMList ram_list;
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@ -89,30 +119,70 @@ static inline bool cpu_physical_memory_get_dirty(ram_addr_t start,
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ram_addr_t length,
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unsigned client)
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{
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unsigned long end, page, next;
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DirtyMemoryBlocks *blocks;
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unsigned long end, page;
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bool dirty = false;
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assert(client < DIRTY_MEMORY_NUM);
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end = TARGET_PAGE_ALIGN(start + length) >> TARGET_PAGE_BITS;
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page = start >> TARGET_PAGE_BITS;
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next = find_next_bit(ram_list.dirty_memory[client], end, page);
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return next < end;
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rcu_read_lock();
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blocks = atomic_rcu_read(&ram_list.dirty_memory[client]);
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while (page < end) {
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unsigned long idx = page / DIRTY_MEMORY_BLOCK_SIZE;
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unsigned long offset = page % DIRTY_MEMORY_BLOCK_SIZE;
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unsigned long num = MIN(end - page, DIRTY_MEMORY_BLOCK_SIZE - offset);
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if (find_next_bit(blocks->blocks[idx], offset, num) < num) {
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dirty = true;
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break;
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}
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page += num;
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}
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rcu_read_unlock();
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return dirty;
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}
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static inline bool cpu_physical_memory_all_dirty(ram_addr_t start,
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ram_addr_t length,
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unsigned client)
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{
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unsigned long end, page, next;
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DirtyMemoryBlocks *blocks;
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unsigned long end, page;
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bool dirty = true;
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assert(client < DIRTY_MEMORY_NUM);
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end = TARGET_PAGE_ALIGN(start + length) >> TARGET_PAGE_BITS;
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page = start >> TARGET_PAGE_BITS;
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next = find_next_zero_bit(ram_list.dirty_memory[client], end, page);
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return next >= end;
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rcu_read_lock();
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blocks = atomic_rcu_read(&ram_list.dirty_memory[client]);
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while (page < end) {
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unsigned long idx = page / DIRTY_MEMORY_BLOCK_SIZE;
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unsigned long offset = page % DIRTY_MEMORY_BLOCK_SIZE;
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unsigned long num = MIN(end - page, DIRTY_MEMORY_BLOCK_SIZE - offset);
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if (find_next_zero_bit(blocks->blocks[idx], offset, num) < num) {
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dirty = false;
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break;
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}
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page += num;
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}
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rcu_read_unlock();
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return dirty;
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}
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static inline bool cpu_physical_memory_get_dirty_flag(ram_addr_t addr,
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@ -154,16 +224,31 @@ static inline uint8_t cpu_physical_memory_range_includes_clean(ram_addr_t start,
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static inline void cpu_physical_memory_set_dirty_flag(ram_addr_t addr,
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unsigned client)
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{
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unsigned long page, idx, offset;
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DirtyMemoryBlocks *blocks;
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assert(client < DIRTY_MEMORY_NUM);
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set_bit_atomic(addr >> TARGET_PAGE_BITS, ram_list.dirty_memory[client]);
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page = addr >> TARGET_PAGE_BITS;
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idx = page / DIRTY_MEMORY_BLOCK_SIZE;
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offset = page % DIRTY_MEMORY_BLOCK_SIZE;
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rcu_read_lock();
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blocks = atomic_rcu_read(&ram_list.dirty_memory[client]);
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set_bit_atomic(offset, blocks->blocks[idx]);
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rcu_read_unlock();
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}
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static inline void cpu_physical_memory_set_dirty_range(ram_addr_t start,
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ram_addr_t length,
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uint8_t mask)
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{
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DirtyMemoryBlocks *blocks[DIRTY_MEMORY_NUM];
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unsigned long end, page;
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unsigned long **d = ram_list.dirty_memory;
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int i;
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if (!mask && !xen_enabled()) {
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return;
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@ -171,15 +256,36 @@ static inline void cpu_physical_memory_set_dirty_range(ram_addr_t start,
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end = TARGET_PAGE_ALIGN(start + length) >> TARGET_PAGE_BITS;
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page = start >> TARGET_PAGE_BITS;
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if (likely(mask & (1 << DIRTY_MEMORY_MIGRATION))) {
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bitmap_set_atomic(d[DIRTY_MEMORY_MIGRATION], page, end - page);
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rcu_read_lock();
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for (i = 0; i < DIRTY_MEMORY_NUM; i++) {
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blocks[i] = atomic_rcu_read(&ram_list.dirty_memory[i]);
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}
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if (unlikely(mask & (1 << DIRTY_MEMORY_VGA))) {
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bitmap_set_atomic(d[DIRTY_MEMORY_VGA], page, end - page);
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}
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if (unlikely(mask & (1 << DIRTY_MEMORY_CODE))) {
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bitmap_set_atomic(d[DIRTY_MEMORY_CODE], page, end - page);
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while (page < end) {
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unsigned long idx = page / DIRTY_MEMORY_BLOCK_SIZE;
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unsigned long offset = page % DIRTY_MEMORY_BLOCK_SIZE;
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unsigned long num = MIN(end - page, DIRTY_MEMORY_BLOCK_SIZE - offset);
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if (likely(mask & (1 << DIRTY_MEMORY_MIGRATION))) {
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bitmap_set_atomic(blocks[DIRTY_MEMORY_MIGRATION]->blocks[idx],
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offset, num);
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}
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if (unlikely(mask & (1 << DIRTY_MEMORY_VGA))) {
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bitmap_set_atomic(blocks[DIRTY_MEMORY_VGA]->blocks[idx],
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offset, num);
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}
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if (unlikely(mask & (1 << DIRTY_MEMORY_CODE))) {
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bitmap_set_atomic(blocks[DIRTY_MEMORY_CODE]->blocks[idx],
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offset, num);
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}
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page += num;
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}
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rcu_read_unlock();
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xen_modified_memory(start, length);
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}
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@ -199,21 +305,41 @@ static inline void cpu_physical_memory_set_dirty_lebitmap(unsigned long *bitmap,
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/* start address is aligned at the start of a word? */
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if ((((page * BITS_PER_LONG) << TARGET_PAGE_BITS) == start) &&
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(hpratio == 1)) {
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unsigned long **blocks[DIRTY_MEMORY_NUM];
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unsigned long idx;
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unsigned long offset;
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long k;
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long nr = BITS_TO_LONGS(pages);
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idx = (start >> TARGET_PAGE_BITS) / DIRTY_MEMORY_BLOCK_SIZE;
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offset = BIT_WORD((start >> TARGET_PAGE_BITS) %
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DIRTY_MEMORY_BLOCK_SIZE);
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rcu_read_lock();
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for (i = 0; i < DIRTY_MEMORY_NUM; i++) {
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blocks[i] = atomic_rcu_read(&ram_list.dirty_memory[i])->blocks;
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}
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for (k = 0; k < nr; k++) {
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if (bitmap[k]) {
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unsigned long temp = leul_to_cpu(bitmap[k]);
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unsigned long **d = ram_list.dirty_memory;
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atomic_or(&d[DIRTY_MEMORY_MIGRATION][page + k], temp);
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atomic_or(&d[DIRTY_MEMORY_VGA][page + k], temp);
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atomic_or(&blocks[DIRTY_MEMORY_MIGRATION][idx][offset], temp);
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atomic_or(&blocks[DIRTY_MEMORY_VGA][idx][offset], temp);
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if (tcg_enabled()) {
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atomic_or(&d[DIRTY_MEMORY_CODE][page + k], temp);
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atomic_or(&blocks[DIRTY_MEMORY_CODE][idx][offset], temp);
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}
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}
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if (++offset >= BITS_TO_LONGS(DIRTY_MEMORY_BLOCK_SIZE)) {
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offset = 0;
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idx++;
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}
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}
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rcu_read_unlock();
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xen_modified_memory(start, pages << TARGET_PAGE_BITS);
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} else {
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uint8_t clients = tcg_enabled() ? DIRTY_CLIENTS_ALL : DIRTY_CLIENTS_NOCODE;
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@ -265,18 +391,33 @@ uint64_t cpu_physical_memory_sync_dirty_bitmap(unsigned long *dest,
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if (((page * BITS_PER_LONG) << TARGET_PAGE_BITS) == start) {
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int k;
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int nr = BITS_TO_LONGS(length >> TARGET_PAGE_BITS);
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unsigned long *src = ram_list.dirty_memory[DIRTY_MEMORY_MIGRATION];
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unsigned long * const *src;
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unsigned long idx = (page * BITS_PER_LONG) / DIRTY_MEMORY_BLOCK_SIZE;
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unsigned long offset = BIT_WORD((page * BITS_PER_LONG) %
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DIRTY_MEMORY_BLOCK_SIZE);
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rcu_read_lock();
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src = atomic_rcu_read(
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&ram_list.dirty_memory[DIRTY_MEMORY_MIGRATION])->blocks;
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for (k = page; k < page + nr; k++) {
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if (src[k]) {
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unsigned long bits = atomic_xchg(&src[k], 0);
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if (src[idx][offset]) {
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unsigned long bits = atomic_xchg(&src[idx][offset], 0);
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unsigned long new_dirty;
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new_dirty = ~dest[k];
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dest[k] |= bits;
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new_dirty &= bits;
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num_dirty += ctpopl(new_dirty);
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}
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if (++offset >= BITS_TO_LONGS(DIRTY_MEMORY_BLOCK_SIZE)) {
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offset = 0;
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idx++;
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}
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}
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rcu_read_unlock();
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} else {
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for (addr = 0; addr < length; addr += TARGET_PAGE_SIZE) {
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if (cpu_physical_memory_test_and_clear_dirty(
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@ -609,7 +609,6 @@ static void migration_bitmap_sync_init(void)
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iterations_prev = 0;
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}
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/* Called with iothread lock held, to protect ram_list.dirty_memory[] */
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static void migration_bitmap_sync(void)
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{
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RAMBlock *block;
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@ -1921,8 +1920,6 @@ static int ram_save_setup(QEMUFile *f, void *opaque)
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acct_clear();
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}
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/* iothread lock needed for ram_list.dirty_memory[] */
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qemu_mutex_lock_iothread();
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qemu_mutex_lock_ramlist();
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rcu_read_lock();
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bytes_transferred = 0;
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@ -1947,7 +1944,6 @@ static int ram_save_setup(QEMUFile *f, void *opaque)
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memory_global_dirty_log_start();
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migration_bitmap_sync();
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qemu_mutex_unlock_ramlist();
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qemu_mutex_unlock_iothread();
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qemu_put_be64(f, ram_bytes_total() | RAM_SAVE_FLAG_MEM_SIZE);
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