185 lines
		
	
	
		
			5.0 KiB
		
	
	
	
		
			C++
		
	
	
			
		
		
	
	
			185 lines
		
	
	
		
			5.0 KiB
		
	
	
	
		
			C++
		
	
	
| namespace factor {
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| 
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| struct allocator_room {
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|   cell size;
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|   cell occupied_space;
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|   cell total_free;
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|   cell contiguous_free;
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|   cell free_block_count;
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| };
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| 
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| template <typename Block> struct free_list_allocator {
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|   cell size;
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|   cell start;
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|   cell end;
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|   free_list free_blocks;
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|   mark_bits state;
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| 
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|   free_list_allocator(cell size, cell start);
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|   void initial_free_list(cell occupied);
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|   bool contains_p(Block* block);
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|   bool can_allot_p(cell size);
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|   Block* allot(cell size);
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|   void free(Block* block);
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|   cell occupied_space();
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|   cell free_space();
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|   cell largest_free_block();
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|   cell free_block_count();
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|   void sweep();
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|   template <typename Iterator> void sweep(Iterator& iter);
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|   template <typename Iterator, typename Fixup>
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|   void compact(Iterator& iter, Fixup fixup, const Block** finger);
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|   template <typename Iterator, typename Fixup>
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|   void iterate(Iterator& iter, Fixup fixup);
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|   template <typename Iterator> void iterate(Iterator& iter);
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|   allocator_room as_allocator_room();
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| };
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| 
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| template <typename Block>
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| free_list_allocator<Block>::free_list_allocator(cell size, cell start)
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|     : size(size),
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|       start(start),
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|       end(start + size),
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|       state(mark_bits(size, start)) {
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|   initial_free_list(0);
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| }
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| 
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| template <typename Block>
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| void free_list_allocator<Block>::initial_free_list(cell occupied) {
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|   free_blocks.initial_free_list(start, end, occupied);
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| }
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| 
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| template <typename Block>
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| bool free_list_allocator<Block>::contains_p(Block* block) {
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|   return ((cell)block - start) < size;
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| }
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| 
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| template <typename Block>
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| bool free_list_allocator<Block>::can_allot_p(cell size) {
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|   return free_blocks.can_allot_p(size);
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| }
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| 
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| template <typename Block> Block* free_list_allocator<Block>::allot(cell size) {
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|   size = align(size, data_alignment);
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| 
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|   free_heap_block* block = free_blocks.find_free_block(size);
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|   if (block) {
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|     block = free_blocks.split_free_block(block, size);
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|     return (Block*)block;
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|   } else
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|     return NULL;
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| }
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| 
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| template <typename Block> void free_list_allocator<Block>::free(Block* block) {
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|   free_heap_block* free_block = (free_heap_block*)block;
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|   free_block->make_free(block->size());
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|   free_blocks.add_to_free_list(free_block);
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| }
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| 
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| template <typename Block> cell free_list_allocator<Block>::free_space() {
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|   return free_blocks.free_space;
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| }
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| 
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| template <typename Block> cell free_list_allocator<Block>::occupied_space() {
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|   return size - free_blocks.free_space;
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| }
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| 
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| template <typename Block>
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| cell free_list_allocator<Block>::largest_free_block() {
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|   return free_blocks.largest_free_block();
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| }
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| 
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| template <typename Block> cell free_list_allocator<Block>::free_block_count() {
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|   return free_blocks.free_block_count;
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| }
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| 
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| template <typename Block>
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| template <typename Iterator>
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| void free_list_allocator<Block>::sweep(Iterator& iter) {
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|   free_blocks.clear_free_list();
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| 
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|   cell start = this->start;
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|   cell end = this->end;
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| 
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|   while (start != end) {
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|     /* find next unmarked block */
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|     start = state.next_unmarked_block_after(start);
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| 
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|     if (start != end) {
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|       /* find size */
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|       cell size = state.unmarked_block_size(start);
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|       FACTOR_ASSERT(size > 0);
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| 
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|       free_heap_block* free_block = (free_heap_block*)start;
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|       free_block->make_free(size);
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|       free_blocks.add_to_free_list(free_block);
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|       iter((Block*)start, size);
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| 
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|       start = start + size;
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|     }
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|   }
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| }
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| 
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| template <typename Block> void free_list_allocator<Block>::sweep() {
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|   auto null_sweep = [](Block* free_block, cell size) { };
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|   sweep(null_sweep);
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| }
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| 
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| /* The forwarding map must be computed first by calling
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|    state.compute_forwarding(). */
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| template <typename Block>
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| template <typename Iterator, typename Fixup>
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| void free_list_allocator<Block>::compact(Iterator& iter, Fixup fixup,
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|                                          const Block** finger) {
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|   cell dest_addr = start;
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|   auto compact_block_func = [&](Block* block, cell size) {
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|     cell block_addr = (cell)block;
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|     if (!state.marked_p(block_addr))
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|       return;
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|     *finger = (Block*)(block_addr + size);
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|     memmove((Block*)dest_addr, block, size);
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|     iter(block, (Block*)dest_addr, size);
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|     dest_addr += size;
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|   };
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|   iterate(compact_block_func, fixup);
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| 
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|   /* Now update the free list; there will be a single free block at
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|      the end */
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|   free_blocks.initial_free_list(start, end, dest_addr - start);
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| }
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| 
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| /* During compaction we have to be careful and measure object sizes
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|    differently */
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| template <typename Block>
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| template <typename Iterator, typename Fixup>
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| void free_list_allocator<Block>::iterate(Iterator& iter, Fixup fixup) {
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|   cell scan = this->start;
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|   while (scan != this->end) {
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|     Block* block = (Block*)scan;
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|     cell size = fixup.size(block);
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|     if (!block->free_p())
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|       iter(block, size);
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|     scan += size;
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|   }
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| }
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| 
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| template <typename Block>
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| template <typename Iterator>
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| void free_list_allocator<Block>::iterate(Iterator& iter) {
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|   iterate(iter, no_fixup());
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| }
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| 
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| template <typename Block>
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| allocator_room free_list_allocator<Block>::as_allocator_room() {
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|   allocator_room room;
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| 
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|   room.size = size;
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|   room.occupied_space = occupied_space();
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|   room.total_free = free_space();
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|   room.contiguous_free = largest_free_block();
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|   room.free_block_count = free_block_count();
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|   return room;
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| }
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| 
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| }
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