117 lines
		
	
	
		
			3.2 KiB
		
	
	
	
		
			C++
		
	
	
			
		
		
	
	
			117 lines
		
	
	
		
			3.2 KiB
		
	
	
	
		
			C++
		
	
	
namespace factor {
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/* The compiled code heap is structured into blocks. */
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struct code_block {
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  // header format (bits indexed with least significant as zero):
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  // bit   0  : free?
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  // bits  1-2: type (as a code_block_type)
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  // if not free:
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  //   bits  3-23: code size / 8
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  //   bits 24-31: stack frame size / 16
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  // if free:
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  //   bits  3-end: code size / 8
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  cell header;
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  cell owner;      /* tagged pointer to word, quotation or f */
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  cell parameters; /* tagged pointer to array or f */
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  cell relocation; /* tagged pointer to byte-array or f */
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  bool free_p() const { return (header & 1) == 1; }
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  code_block_type type() const {
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    return (code_block_type)((header >> 1) & 0x3);
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  }
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  void set_type(code_block_type type) {
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    header = ((header & ~0x7) | (type << 1));
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  }
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  bool pic_p() const { return type() == code_block_pic; }
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  bool optimized_p() const { return type() == code_block_optimized; }
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  cell size() const {
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    cell size;
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    if (free_p())
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      size = header & ~7;
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    else
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      size = header & 0xFFFFF8;
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    FACTOR_ASSERT(size > 0);
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    return size;
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  }
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  cell stack_frame_size() const {
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    if (free_p())
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      return 0;
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    return (header >> 20) & 0xFF0;
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  }
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  cell stack_frame_size_for_address(cell addr) const {
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    cell natural_frame_size = stack_frame_size();
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    /* The first instruction in a code block is the prolog safepoint,
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       and a leaf procedure code block will record a frame size of zero.
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       If we're seeing a stack frame in either of these cases, it's a
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       fake "leaf frame" set up by the signal handler. */
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    if (natural_frame_size == 0 || addr == entry_point())
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      return LEAF_FRAME_SIZE;
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    return natural_frame_size;
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  }
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  void set_stack_frame_size(cell frame_size) {
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    FACTOR_ASSERT(size() < 0xFFFFFF);
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    FACTOR_ASSERT(!free_p());
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    FACTOR_ASSERT(frame_size % 16 == 0);
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    FACTOR_ASSERT(frame_size <= 0xFF0);
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    header = (header & 0xFFFFFF) | (frame_size << 20);
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  }
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  template <typename Fixup> cell size(Fixup fixup) const { return size(); }
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  cell entry_point() const { return (cell)(this + 1); }
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  /* GC info is stored at the end of the block */
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  gc_info* block_gc_info() const {
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    return (gc_info*)((uint8_t*)this + size() - sizeof(gc_info));
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  }
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  void flush_icache() { factor::flush_icache((cell)this, size()); }
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  template <typename Iterator> void each_instruction_operand(Iterator& iter) {
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    if (!to_boolean(relocation))
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      return;
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    byte_array* rels = untag<byte_array>(relocation);
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    cell index = 0;
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    cell length = untag_fixnum(rels->capacity) / sizeof(relocation_entry);
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    for (cell i = 0; i < length; i++) {
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      relocation_entry rel = rels->data<relocation_entry>()[i];
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      iter(instruction_operand(rel, this, index));
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      index += rel.number_of_parameters();
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    }
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  }
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  cell offset(cell addr) const { return addr - entry_point(); }
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  cell address_for_offset(cell offset) const {
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    return entry_point() + offset;
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  }
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  cell scan(factor_vm* vm, cell addr) const;
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  cell owner_quot() const;
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};
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VM_C_API void undefined_symbol(void);
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inline code_block* word::code() const {
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  FACTOR_ASSERT(entry_point != 0);
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  return (code_block*)entry_point - 1;
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}
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inline code_block* quotation::code() const {
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  FACTOR_ASSERT(entry_point != 0);
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  return (code_block*)entry_point - 1;
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}
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}
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