cpp

Coverage Report

Created: 2025-05-10 05:26

/home/uke/oil/mycpp/mark_sweep_heap.h
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#ifndef MARKSWEEP_HEAP_H
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#define MARKSWEEP_HEAP_H
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#include <stdlib.h>
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6
#include <vector>
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8
#include "mycpp/common.h"
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#include "mycpp/gc_obj.h"
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class MarkSet {
12
 public:
13
209
  MarkSet() : bits_() {
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209
  }
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  // ReInit() must be called at the start of MarkObjects().  Allocate() should
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  // keep track of the maximum object ID.
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394
  void ReInit(int max_obj_id) {
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    // https://stackoverflow.com/questions/8848575/fastest-way-to-reset-every-value-of-stdvectorint-to-0
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394
    std::fill(bits_.begin(), bits_.end(), 0);
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394
    int max_byte_index = (max_obj_id >> 3) + 1;  // round up
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    // log("ReInit max_byte_index %d", max_byte_index);
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394
    bits_.resize(max_byte_index);
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394
  }
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  // Called by MarkObjects()
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1.73k
  void Mark(int obj_id) {
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1.73k
    DCHECK(obj_id >= 0);
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    // log("obj id %d", obj_id);
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1.73k
    DCHECK(!IsMarked(obj_id));
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0
    int byte_index = obj_id >> 3;  // 8 bits per byte
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1.73k
    int bit_index = obj_id & 0b111;
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    // log("byte_index %d %d", byte_index, bit_index);
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1.73k
    bits_[byte_index] |= (1 << bit_index);
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1.73k
  }
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  // Called by Sweep()
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139k
  bool IsMarked(int obj_id) {
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139k
    DCHECK(obj_id >= 0);
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0
    int byte_index = obj_id >> 3;
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139k
    int bit_index = obj_id & 0b111;
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139k
    return bits_[byte_index] & (1 << bit_index);
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139k
  }
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2
  void Debug() {
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2
    int n = bits_.size();
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2
    dprintf(2, "[ ");
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8
    for (int i = 0; i < n; ++i) {
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6
      dprintf(2, "%02x ", bits_[i]);
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6
    }
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2
    dprintf(2, "] (%d bytes) \n", n);
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2
    dprintf(2, "[ ");
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2
    int num_bits = 0;
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8
    for (int i = 0; i < n; ++i) {
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54
      for (int j = 0; j < 8; ++j) {
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48
        int bit = (bits_[i] & (1 << j)) != 0;
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48
        dprintf(2, "%d", bit);
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48
        num_bits += bit;
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48
      }
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6
    }
61
2
    dprintf(2, " ] (%d bits set)\n", num_bits);
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2
  }
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  std::vector<uint8_t> bits_;  // bit vector indexed by obj_id
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};
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// A simple Pool allocator for allocating small objects. It maintains an ever
68
// growing number of Blocks each consisting of a number of fixed size Cells.
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// Memory is handed out one Cell at a time.
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// Note: within the context of the Pool allocator we refer to object IDs as cell
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// IDs because in addition to identifying an object they're also used to index
72
// into the Cell storage.
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template <int CellsPerBlock, size_t CellSize>
74
class Pool {
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 public:
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  static constexpr size_t kMaxObjSize = CellSize;
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  static constexpr int kBlockSize = CellSize * CellsPerBlock;
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140
  Pool() = default;
_ZN4PoolILi682ELm24EEC2Ev
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  Pool() = default;
_ZN4PoolILi341ELm48EEC2Ev
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79
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  Pool() = default;
_ZN4PoolILi2ELm32EEC2Ev
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79
4
  Pool() = default;
_ZN4PoolILi1ELm32EEC2Ev
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79
2
  Pool() = default;
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16.3k
  void* Allocate(int* obj_id) {
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16.3k
    num_allocated_++;
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16.3k
    if (!free_list_) {
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      // Allocate a new Block and add every new Cell to the free list.
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137
      Block* block = static_cast<Block*>(malloc(sizeof(Block)));
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      blocks_.push_back(block);
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      bytes_allocated_ += kBlockSize;
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      num_free_ += CellsPerBlock;
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      // The starting cell_id for Cells in this block.
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      int cell_id = (blocks_.size() - 1) * CellsPerBlock;
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64.4k
      for (Cell& cell : block->cells) {
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        FreeCell* free_cell = reinterpret_cast<FreeCell*>(cell);
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64.4k
        free_cell->id = cell_id++;
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64.4k
        free_cell->next = free_list_;
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64.4k
        free_list_ = free_cell;
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64.4k
      }
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137
    }
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    FreeCell* cell = free_list_;
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    free_list_ = free_list_->next;
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    num_free_--;
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    *obj_id = cell->id;
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16.3k
    return cell;
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16.3k
  }
_ZN4PoolILi682ELm24EE8AllocateEPi
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81
11.1k
  void* Allocate(int* obj_id) {
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    num_allocated_++;
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    if (!free_list_) {
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      // Allocate a new Block and add every new Cell to the free list.
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      Block* block = static_cast<Block*>(malloc(sizeof(Block)));
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      blocks_.push_back(block);
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      bytes_allocated_ += kBlockSize;
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      num_free_ += CellsPerBlock;
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      // The starting cell_id for Cells in this block.
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      int cell_id = (blocks_.size() - 1) * CellsPerBlock;
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      for (Cell& cell : block->cells) {
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        FreeCell* free_cell = reinterpret_cast<FreeCell*>(cell);
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42.2k
        free_cell->id = cell_id++;
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        free_cell->next = free_list_;
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        free_list_ = free_cell;
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      }
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    }
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11.1k
    FreeCell* cell = free_list_;
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    free_list_ = free_list_->next;
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    num_free_--;
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    *obj_id = cell->id;
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11.1k
    return cell;
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  }
_ZN4PoolILi341ELm48EE8AllocateEPi
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81
5.19k
  void* Allocate(int* obj_id) {
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5.19k
    num_allocated_++;
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5.19k
    if (!free_list_) {
85
      // Allocate a new Block and add every new Cell to the free list.
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      Block* block = static_cast<Block*>(malloc(sizeof(Block)));
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      blocks_.push_back(block);
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      bytes_allocated_ += kBlockSize;
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      num_free_ += CellsPerBlock;
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      // The starting cell_id for Cells in this block.
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      int cell_id = (blocks_.size() - 1) * CellsPerBlock;
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22.1k
      for (Cell& cell : block->cells) {
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        FreeCell* free_cell = reinterpret_cast<FreeCell*>(cell);
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        free_cell->id = cell_id++;
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22.1k
        free_cell->next = free_list_;
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        free_list_ = free_cell;
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      }
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65
    }
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101
5.19k
    FreeCell* cell = free_list_;
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    free_list_ = free_list_->next;
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    num_free_--;
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    *obj_id = cell->id;
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    return cell;
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5.19k
  }
_ZN4PoolILi2ELm32EE8AllocateEPi
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81
14
  void* Allocate(int* obj_id) {
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14
    num_allocated_++;
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14
    if (!free_list_) {
85
      // Allocate a new Block and add every new Cell to the free list.
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6
      Block* block = static_cast<Block*>(malloc(sizeof(Block)));
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      blocks_.push_back(block);
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      bytes_allocated_ += kBlockSize;
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      num_free_ += CellsPerBlock;
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      // The starting cell_id for Cells in this block.
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      int cell_id = (blocks_.size() - 1) * CellsPerBlock;
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12
      for (Cell& cell : block->cells) {
94
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        FreeCell* free_cell = reinterpret_cast<FreeCell*>(cell);
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        free_cell->id = cell_id++;
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        free_cell->next = free_list_;
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        free_list_ = free_cell;
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      }
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6
    }
100
101
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    FreeCell* cell = free_list_;
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    free_list_ = free_list_->next;
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    num_free_--;
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    *obj_id = cell->id;
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    return cell;
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14
  }
_ZN4PoolILi1ELm32EE8AllocateEPi
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81
4
  void* Allocate(int* obj_id) {
82
4
    num_allocated_++;
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4
    if (!free_list_) {
85
      // Allocate a new Block and add every new Cell to the free list.
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4
      Block* block = static_cast<Block*>(malloc(sizeof(Block)));
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4
      blocks_.push_back(block);
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4
      bytes_allocated_ += kBlockSize;
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4
      num_free_ += CellsPerBlock;
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      // The starting cell_id for Cells in this block.
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4
      int cell_id = (blocks_.size() - 1) * CellsPerBlock;
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4
      for (Cell& cell : block->cells) {
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4
        FreeCell* free_cell = reinterpret_cast<FreeCell*>(cell);
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4
        free_cell->id = cell_id++;
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4
        free_cell->next = free_list_;
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4
        free_list_ = free_cell;
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4
      }
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4
    }
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    FreeCell* cell = free_list_;
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    free_list_ = free_list_->next;
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    num_free_--;
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    *obj_id = cell->id;
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    return cell;
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4
  }
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108
262
  void PrepareForGc() {
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262
    DCHECK(!gc_underway_);
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0
    gc_underway_ = true;
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    mark_set_.ReInit(blocks_.size() * CellsPerBlock);
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  }
_ZN4PoolILi682ELm24EE12PrepareForGcEv
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108
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  void PrepareForGc() {
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    DCHECK(!gc_underway_);
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0
    gc_underway_ = true;
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    mark_set_.ReInit(blocks_.size() * CellsPerBlock);
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128
  }
_ZN4PoolILi341ELm48EE12PrepareForGcEv
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108
128
  void PrepareForGc() {
109
128
    DCHECK(!gc_underway_);
110
0
    gc_underway_ = true;
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128
    mark_set_.ReInit(blocks_.size() * CellsPerBlock);
112
128
  }
_ZN4PoolILi2ELm32EE12PrepareForGcEv
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108
4
  void PrepareForGc() {
109
4
    DCHECK(!gc_underway_);
110
0
    gc_underway_ = true;
111
4
    mark_set_.ReInit(blocks_.size() * CellsPerBlock);
112
4
  }
_ZN4PoolILi1ELm32EE12PrepareForGcEv
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108
2
  void PrepareForGc() {
109
2
    DCHECK(!gc_underway_);
110
0
    gc_underway_ = true;
111
2
    mark_set_.ReInit(blocks_.size() * CellsPerBlock);
112
2
  }
113
114
1.89k
  bool IsMarked(int cell_id) {
115
1.89k
    DCHECK(gc_underway_);
116
0
    return mark_set_.IsMarked(cell_id);
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1.89k
  }
_ZN4PoolILi682ELm24EE8IsMarkedEi
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114
1.61k
  bool IsMarked(int cell_id) {
115
1.61k
    DCHECK(gc_underway_);
116
0
    return mark_set_.IsMarked(cell_id);
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1.61k
  }
_ZN4PoolILi341ELm48EE8IsMarkedEi
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114
276
  bool IsMarked(int cell_id) {
115
276
    DCHECK(gc_underway_);
116
0
    return mark_set_.IsMarked(cell_id);
117
276
  }
118
119
1.69k
  void Mark(int cell_id) {
120
1.69k
    DCHECK(gc_underway_);
121
0
    mark_set_.Mark(cell_id);
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1.69k
  }
_ZN4PoolILi682ELm24EE4MarkEi
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119
1.47k
  void Mark(int cell_id) {
120
1.47k
    DCHECK(gc_underway_);
121
0
    mark_set_.Mark(cell_id);
122
1.47k
  }
_ZN4PoolILi341ELm48EE4MarkEi
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119
220
  void Mark(int cell_id) {
120
220
    DCHECK(gc_underway_);
121
0
    mark_set_.Mark(cell_id);
122
220
  }
_ZN4PoolILi1ELm32EE4MarkEi
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119
2
  void Mark(int cell_id) {
120
2
    DCHECK(gc_underway_);
121
0
    mark_set_.Mark(cell_id);
122
2
  }
123
124
262
  void Sweep() {
125
262
    DCHECK(gc_underway_);
126
    // Iterate over every Cell linking the free ones into a new free list.
127
0
    num_free_ = 0;
128
262
    free_list_ = nullptr;
129
262
    int cell_id = 0;
130
267
    for (Block* block : blocks_) {
131
134k
      for (Cell& cell : block->cells) {
132
134k
        if (!mark_set_.IsMarked(cell_id)) {
133
132k
          num_free_++;
134
132k
          FreeCell* free_cell = reinterpret_cast<FreeCell*>(cell);
135
132k
          free_cell->id = cell_id;
136
132k
          free_cell->next = free_list_;
137
132k
          free_list_ = free_cell;
138
132k
        }
139
134k
        cell_id++;
140
134k
      }
141
267
    }
142
262
    gc_underway_ = false;
143
262
  }
_ZN4PoolILi682ELm24EE5SweepEv
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124
128
  void Sweep() {
125
128
    DCHECK(gc_underway_);
126
    // Iterate over every Cell linking the free ones into a new free list.
127
0
    num_free_ = 0;
128
128
    free_list_ = nullptr;
129
128
    int cell_id = 0;
130
133
    for (Block* block : blocks_) {
131
90.7k
      for (Cell& cell : block->cells) {
132
90.7k
        if (!mark_set_.IsMarked(cell_id)) {
133
89.2k
          num_free_++;
134
89.2k
          FreeCell* free_cell = reinterpret_cast<FreeCell*>(cell);
135
89.2k
          free_cell->id = cell_id;
136
89.2k
          free_cell->next = free_list_;
137
89.2k
          free_list_ = free_cell;
138
89.2k
        }
139
90.7k
        cell_id++;
140
90.7k
      }
141
133
    }
142
128
    gc_underway_ = false;
143
128
  }
_ZN4PoolILi341ELm48EE5SweepEv
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124
128
  void Sweep() {
125
128
    DCHECK(gc_underway_);
126
    // Iterate over every Cell linking the free ones into a new free list.
127
0
    num_free_ = 0;
128
128
    free_list_ = nullptr;
129
128
    int cell_id = 0;
130
128
    for (Block* block : blocks_) {
131
43.6k
      for (Cell& cell : block->cells) {
132
43.6k
        if (!mark_set_.IsMarked(cell_id)) {
133
43.4k
          num_free_++;
134
43.4k
          FreeCell* free_cell = reinterpret_cast<FreeCell*>(cell);
135
43.4k
          free_cell->id = cell_id;
136
43.4k
          free_cell->next = free_list_;
137
43.4k
          free_list_ = free_cell;
138
43.4k
        }
139
43.6k
        cell_id++;
140
43.6k
      }
141
128
    }
142
128
    gc_underway_ = false;
143
128
  }
_ZN4PoolILi2ELm32EE5SweepEv
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124
4
  void Sweep() {
125
4
    DCHECK(gc_underway_);
126
    // Iterate over every Cell linking the free ones into a new free list.
127
0
    num_free_ = 0;
128
4
    free_list_ = nullptr;
129
4
    int cell_id = 0;
130
4
    for (Block* block : blocks_) {
131
4
      for (Cell& cell : block->cells) {
132
4
        if (!mark_set_.IsMarked(cell_id)) {
133
4
          num_free_++;
134
4
          FreeCell* free_cell = reinterpret_cast<FreeCell*>(cell);
135
4
          free_cell->id = cell_id;
136
4
          free_cell->next = free_list_;
137
4
          free_list_ = free_cell;
138
4
        }
139
4
        cell_id++;
140
4
      }
141
2
    }
142
4
    gc_underway_ = false;
143
4
  }
_ZN4PoolILi1ELm32EE5SweepEv
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124
2
  void Sweep() {
125
2
    DCHECK(gc_underway_);
126
    // Iterate over every Cell linking the free ones into a new free list.
127
0
    num_free_ = 0;
128
2
    free_list_ = nullptr;
129
2
    int cell_id = 0;
130
4
    for (Block* block : blocks_) {
131
4
      for (Cell& cell : block->cells) {
132
4
        if (!mark_set_.IsMarked(cell_id)) {
133
2
          num_free_++;
134
2
          FreeCell* free_cell = reinterpret_cast<FreeCell*>(cell);
135
2
          free_cell->id = cell_id;
136
2
          free_cell->next = free_list_;
137
2
          free_list_ = free_cell;
138
2
        }
139
4
        cell_id++;
140
4
      }
141
4
    }
142
2
    gc_underway_ = false;
143
2
  }
144
145
136
  void Free() {
146
137
    for (Block* block : blocks_) {
147
137
      free(block);
148
137
    }
149
136
    blocks_.clear();
150
136
    num_free_ = 0;
151
136
  }
_ZN4PoolILi682ELm24EE4FreeEv
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145
65
  void Free() {
146
65
    for (Block* block : blocks_) {
147
62
      free(block);
148
62
    }
149
65
    blocks_.clear();
150
65
    num_free_ = 0;
151
65
  }
_ZN4PoolILi341ELm48EE4FreeEv
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145
65
  void Free() {
146
65
    for (Block* block : blocks_) {
147
65
      free(block);
148
65
    }
149
65
    blocks_.clear();
150
65
    num_free_ = 0;
151
65
  }
_ZN4PoolILi2ELm32EE4FreeEv
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145
4
  void Free() {
146
6
    for (Block* block : blocks_) {
147
6
      free(block);
148
6
    }
149
4
    blocks_.clear();
150
4
    num_free_ = 0;
151
4
  }
_ZN4PoolILi1ELm32EE4FreeEv
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145
2
  void Free() {
146
4
    for (Block* block : blocks_) {
147
4
      free(block);
148
4
    }
149
2
    blocks_.clear();
150
2
    num_free_ = 0;
151
2
  }
152
153
28
  int num_allocated() {
154
28
    return num_allocated_;
155
28
  }
_ZN4PoolILi682ELm24EE13num_allocatedEv
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153
12
  int num_allocated() {
154
12
    return num_allocated_;
155
12
  }
_ZN4PoolILi341ELm48EE13num_allocatedEv
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153
12
  int num_allocated() {
154
12
    return num_allocated_;
155
12
  }
_ZN4PoolILi2ELm32EE13num_allocatedEv
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153
4
  int num_allocated() {
154
4
    return num_allocated_;
155
4
  }
156
157
16
  int64_t bytes_allocated() {
158
16
    return bytes_allocated_;
159
16
  }
_ZN4PoolILi682ELm24EE15bytes_allocatedEv
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157
6
  int64_t bytes_allocated() {
158
6
    return bytes_allocated_;
159
6
  }
_ZN4PoolILi341ELm48EE15bytes_allocatedEv
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157
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  int64_t bytes_allocated() {
158
6
    return bytes_allocated_;
159
6
  }
_ZN4PoolILi2ELm32EE15bytes_allocatedEv
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157
4
  int64_t bytes_allocated() {
158
4
    return bytes_allocated_;
159
4
  }
160
161
3.04k
  int num_live() {
162
3.04k
#ifndef OPTIMIZED
163
3.04k
    int capacity = blocks_.size() * CellsPerBlock;
164
    // log("Pool capacity = %d", capacity);
165
    // log("Pool num_free_ = %d", num_free_);
166
3.04k
    DCHECK(num_free_ <= capacity);
167
0
#endif
168
0
    return blocks_.size() * CellsPerBlock - num_free_;
169
3.04k
  }
_ZN4PoolILi682ELm24EE8num_liveEv
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1.51k
  int num_live() {
162
1.51k
#ifndef OPTIMIZED
163
1.51k
    int capacity = blocks_.size() * CellsPerBlock;
164
    // log("Pool capacity = %d", capacity);
165
    // log("Pool num_free_ = %d", num_free_);
166
1.51k
    DCHECK(num_free_ <= capacity);
167
0
#endif
168
0
    return blocks_.size() * CellsPerBlock - num_free_;
169
1.51k
  }
_ZN4PoolILi341ELm48EE8num_liveEv
Line
Count
Source
161
1.51k
  int num_live() {
162
1.51k
#ifndef OPTIMIZED
163
1.51k
    int capacity = blocks_.size() * CellsPerBlock;
164
    // log("Pool capacity = %d", capacity);
165
    // log("Pool num_free_ = %d", num_free_);
166
1.51k
    DCHECK(num_free_ <= capacity);
167
0
#endif
168
0
    return blocks_.size() * CellsPerBlock - num_free_;
169
1.51k
  }
_ZN4PoolILi2ELm32EE8num_liveEv
Line
Count
Source
161
6
  int num_live() {
162
6
#ifndef OPTIMIZED
163
6
    int capacity = blocks_.size() * CellsPerBlock;
164
    // log("Pool capacity = %d", capacity);
165
    // log("Pool num_free_ = %d", num_free_);
166
6
    DCHECK(num_free_ <= capacity);
167
0
#endif
168
0
    return blocks_.size() * CellsPerBlock - num_free_;
169
6
  }
_ZN4PoolILi1ELm32EE8num_liveEv
Line
Count
Source
161
2
  int num_live() {
162
2
#ifndef OPTIMIZED
163
2
    int capacity = blocks_.size() * CellsPerBlock;
164
    // log("Pool capacity = %d", capacity);
165
    // log("Pool num_free_ = %d", num_free_);
166
2
    DCHECK(num_free_ <= capacity);
167
0
#endif
168
0
    return blocks_.size() * CellsPerBlock - num_free_;
169
2
  }
170
171
 private:
172
  using Cell = uint8_t[CellSize];
173
174
  struct Block {
175
    Cell cells[CellsPerBlock];
176
  };
177
178
  // Unused/free cells are tracked via a linked list of FreeCells. The FreeCells
179
  // are stored in the unused Cells, so it takes no extra memory to track them.
180
  struct FreeCell {
181
    int id;
182
    FreeCell* next;
183
  };
184
  static_assert(CellSize >= sizeof(FreeCell), "CellSize is too small");
185
186
  // Whether a GC is underway, for asserting that calls are in order.
187
  bool gc_underway_ = false;
188
189
  FreeCell* free_list_ = nullptr;
190
  int num_free_ = 0;
191
  int num_allocated_ = 0;
192
  int64_t bytes_allocated_ = 0;
193
  std::vector<Block*> blocks_;
194
  MarkSet mark_set_;
195
196
  DISALLOW_COPY_AND_ASSIGN(Pool);
197
};
198
199
class MarkSweepHeap {
200
 public:
201
  // reserve 32 frames to start
202
67
  MarkSweepHeap() {
203
67
  }
204
205
  void Init();  // use default threshold
206
  void Init(int gc_threshold);
207
208
123k
  void PushRoot(RawObject** p) {
209
123k
    roots_.push_back(p);
210
123k
  }
211
212
123k
  void PopRoot() {
213
123k
    roots_.pop_back();
214
123k
  }
215
216
9
  void RootGlobalVar(void* root) {
217
9
    global_roots_.push_back(reinterpret_cast<RawObject*>(root));
218
9
  }
219
220
  void* Allocate(size_t num_bytes, int* obj_id, int* pool_id);
221
222
#if 0
223
  void* Reallocate(void* p, size_t num_bytes);
224
#endif
225
  int MaybeCollect();
226
  int Collect();
227
228
  void MaybeMarkAndPush(RawObject* obj);
229
  void TraceChildren();
230
231
  void Sweep();
232
233
  void PrintStats(int fd);  // public for testing
234
  void PrintShortStats();
235
236
  void CleanProcessExit();  // do one last GC, used in unit tests
237
  void ProcessExit();       // main() lets OS clean up, except ASAN variant
238
239
1.51k
  int num_live() {
240
1.51k
    return num_live_
241
1.51k
#ifndef NO_POOL_ALLOC
242
1.51k
           + pool1_.num_live() + pool2_.num_live()
243
1.51k
#endif
244
1.51k
        ;
245
1.51k
  }
246
247
  bool is_initialized_ = true;  // mark/sweep doesn't need to be initialized
248
249
  // Runtime params
250
251
  // Threshold is a number of live objects, since we aren't keeping track of
252
  // total bytes
253
  int gc_threshold_;
254
255
  // Show debug logging
256
  bool gc_verbose_ = false;
257
258
  // Current stats
259
  int num_live_ = 0;
260
  // Should we keep track of sizes?
261
  // int64_t bytes_live_ = 0;
262
263
  // Cumulative stats
264
  int max_survived_ = 0;  // max # live after a collection
265
  int num_allocated_ = 0;
266
  int64_t bytes_allocated_ = 0;  // avoid overflow
267
  int num_gc_points_ = 0;        // manual collection points
268
  int num_collections_ = 0;
269
  int num_growths_;
270
  double max_gc_millis_ = 0.0;
271
  double total_gc_millis_ = 0.0;
272
273
#ifndef NO_POOL_ALLOC
274
  // 16,384 / 24 bytes = 682 cells (rounded), 16,368 bytes
275
  // 16,384 / 48 bytes = 341 cells (rounded), 16,368 bytes
276
  // Conveniently, the glibc malloc header is 16 bytes, giving exactly 16 Ki
277
  // differences
278
  Pool<682, 24> pool1_;
279
  Pool<341, 48> pool2_;
280
#endif
281
282
  std::vector<RawObject**> roots_;
283
  std::vector<RawObject*> global_roots_;
284
285
  // Allocate() appends live objects, and Sweep() compacts it
286
  std::vector<ObjHeader*> live_objs_;
287
  // Allocate lazily frees these, and Sweep() replenishes it
288
  std::vector<ObjHeader*> to_free_;
289
290
  std::vector<ObjHeader*> gray_stack_;
291
  MarkSet mark_set_;
292
293
  int greatest_obj_id_ = 0;
294
295
 private:
296
  void FreeEverything();
297
  void MaybePrintStats();
298
299
  DISALLOW_COPY_AND_ASSIGN(MarkSweepHeap);
300
};
301
302
#endif  // MARKSWEEP_HEAP_H