284 lines
		
	
	
		
			8.2 KiB
		
	
	
	
		
			C++
		
	
	
			
		
		
	
	
			284 lines
		
	
	
		
			8.2 KiB
		
	
	
	
		
			C++
		
	
	
| #include "master.hpp"
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| 
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| namespace factor {
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| 
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| code_heap::code_heap(cell size) {
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|   if (size > ((uint64_t)1 << (sizeof(cell) * 8 - 6)))
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|     fatal_error("Heap too large", size);
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|   seg = new segment(align_page(size), true);
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|   if (!seg)
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|     fatal_error("Out of memory in code_heap constructor", size);
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| 
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|   cell start = seg->start + getpagesize() + seh_area_size;
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| 
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|   allocator = new free_list_allocator<code_block>(seg->end - start, start);
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| 
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|   /* See os-windows-x86.64.cpp for seh_area usage */
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|   safepoint_page = (void*)seg->start;
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|   seh_area = (char*)seg->start + getpagesize();
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| }
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| 
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| code_heap::~code_heap() {
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|   delete allocator;
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|   allocator = NULL;
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|   delete seg;
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|   seg = NULL;
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| }
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| 
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| void code_heap::write_barrier(code_block* compiled) {
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|   points_to_nursery.insert(compiled);
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|   points_to_aging.insert(compiled);
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| }
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| 
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| void code_heap::clear_remembered_set() {
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|   points_to_nursery.clear();
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|   points_to_aging.clear();
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| }
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| 
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| bool code_heap::uninitialized_p(code_block* compiled) {
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|   return uninitialized_blocks.count(compiled) > 0;
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| }
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| 
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| bool code_heap::marked_p(code_block* compiled) {
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|   return allocator->state.marked_p(compiled);
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| }
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| 
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| void code_heap::set_marked_p(code_block* compiled) {
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|   allocator->state.set_marked_p(compiled);
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| }
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| 
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| void code_heap::clear_mark_bits() { allocator->state.clear_mark_bits(); }
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| 
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| void code_heap::free(code_block* compiled) {
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|   FACTOR_ASSERT(!uninitialized_p(compiled));
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|   points_to_nursery.erase(compiled);
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|   points_to_aging.erase(compiled);
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|   all_blocks.erase((cell)compiled);
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|   allocator->free(compiled);
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| }
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| 
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| void code_heap::flush_icache() { factor::flush_icache(seg->start, seg->size); }
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| 
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| struct clear_free_blocks_from_all_blocks_iterator {
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|   code_heap* code;
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| 
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|   clear_free_blocks_from_all_blocks_iterator(code_heap* code) : code(code) {}
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| 
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|   void operator()(code_block* free_block, cell size) {
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|     std::set<cell>::iterator erase_from =
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|         code->all_blocks.lower_bound((cell)free_block);
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|     std::set<cell>::iterator erase_to =
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|         code->all_blocks.lower_bound((cell)free_block + size);
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| 
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|     code->all_blocks.erase(erase_from, erase_to);
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|   }
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| };
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| 
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| void code_heap::sweep() {
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|   clear_free_blocks_from_all_blocks_iterator clearer(this);
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|   allocator->sweep(clearer);
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| #ifdef FACTOR_DEBUG
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|   verify_all_blocks_set();
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| #endif
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| }
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| 
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| struct all_blocks_set_verifier {
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|   std::set<cell>* all_blocks;
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| 
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|   all_blocks_set_verifier(std::set<cell>* all_blocks)
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|       : all_blocks(all_blocks) {}
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| 
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|   void operator()(code_block* block, cell size) {
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|     FACTOR_ASSERT(all_blocks->find((cell)block) != all_blocks->end());
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|   }
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| };
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| 
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| void code_heap::verify_all_blocks_set() {
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|   all_blocks_set_verifier verifier(&all_blocks);
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|   allocator->iterate(verifier);
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| }
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| 
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| code_block* code_heap::code_block_for_address(cell address) {
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|   std::set<cell>::const_iterator blocki = all_blocks.upper_bound(address);
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|   FACTOR_ASSERT(blocki != all_blocks.begin());
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|   --blocki;
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|   code_block* found_block = (code_block*)*blocki;
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|   FACTOR_ASSERT((cell)found_block->entry_point() <=
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|                 address /* XXX this isn't valid during fixup. should store the
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|                                size in the map
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|                               && address - (cell)found_block->entry_point() <
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|                                  found_block->size()*/);
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|   return found_block;
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| }
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| 
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| struct all_blocks_set_inserter {
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|   code_heap* code;
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| 
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|   all_blocks_set_inserter(code_heap* code) : code(code) {}
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| 
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|   void operator()(code_block* block, cell size) {
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|     code->all_blocks.insert((cell)block);
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|   }
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| };
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| 
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| void code_heap::initialize_all_blocks_set() {
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|   all_blocks.clear();
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|   all_blocks_set_inserter inserter(this);
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|   allocator->iterate(inserter);
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| #ifdef FACTOR_DEBUG
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|   verify_all_blocks_set();
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| #endif
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| }
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| 
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| /* Allocate a code heap during startup */
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| void factor_vm::init_code_heap(cell size) { code = new code_heap(size); }
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| 
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| struct word_updater {
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|   factor_vm* parent;
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|   bool reset_inline_caches;
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| 
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|   word_updater(factor_vm* parent, bool reset_inline_caches)
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|       : parent(parent), reset_inline_caches(reset_inline_caches) {}
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| 
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|   void operator()(code_block* compiled, cell size) {
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|     parent->update_word_references(compiled, reset_inline_caches);
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|   }
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| };
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| 
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| /* Update pointers to words referenced from all code blocks.
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| Only needed after redefining an existing word.
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| If generic words were redefined, inline caches need to be reset. */
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| void factor_vm::update_code_heap_words(bool reset_inline_caches) {
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|   word_updater updater(this, reset_inline_caches);
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|   each_code_block(updater);
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| }
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| 
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| /* Fix up new words only.
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| Fast path for compilation units that only define new words. */
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| void factor_vm::initialize_code_blocks() {
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|   std::map<code_block*, cell>::const_iterator iter =
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|       code->uninitialized_blocks.begin();
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|   std::map<code_block*, cell>::const_iterator end =
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|       code->uninitialized_blocks.end();
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| 
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|   for (; iter != end; iter++)
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|     initialize_code_block(iter->first, iter->second);
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| 
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|   code->uninitialized_blocks.clear();
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| }
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| 
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| /* Allocates memory */
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| void factor_vm::primitive_modify_code_heap() {
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|   bool reset_inline_caches = to_boolean(ctx->pop());
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|   bool update_existing_words = to_boolean(ctx->pop());
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|   data_root<array> alist(ctx->pop(), this);
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| 
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|   cell count = array_capacity(alist.untagged());
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| 
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|   if (count == 0)
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|     return;
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| 
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|   for (cell i = 0; i < count; i++) {
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|     data_root<array> pair(array_nth(alist.untagged(), i), this);
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| 
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|     data_root<word> word(array_nth(pair.untagged(), 0), this);
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|     data_root<object> data(array_nth(pair.untagged(), 1), this);
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| 
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|     switch (data.type()) {
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|       case QUOTATION_TYPE:
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|         jit_compile_word(word.value(), data.value(), false);
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|         break;
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|       case ARRAY_TYPE: {
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|         array* compiled_data = data.as<array>().untagged();
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|         cell parameters = array_nth(compiled_data, 0);
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|         cell literals = array_nth(compiled_data, 1);
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|         cell relocation = array_nth(compiled_data, 2);
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|         cell labels = array_nth(compiled_data, 3);
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|         cell code = array_nth(compiled_data, 4);
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|         cell frame_size = untag_fixnum(array_nth(compiled_data, 5));
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| 
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|         code_block* compiled =
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|             add_code_block(code_block_optimized, code, labels, word.value(),
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|                            relocation, parameters, literals, frame_size);
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| 
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|         word->entry_point = compiled->entry_point();
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|       } break;
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|       default:
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|         critical_error("Expected a quotation or an array", data.value());
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|         break;
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|     }
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|   }
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| 
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|   if (update_existing_words)
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|     update_code_heap_words(reset_inline_caches);
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|   else
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|     initialize_code_blocks();
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| }
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| 
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| code_heap_room factor_vm::code_room() {
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|   code_heap_room room;
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| 
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|   room.size = code->allocator->size;
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|   room.occupied_space = code->allocator->occupied_space();
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|   room.total_free = code->allocator->free_space();
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|   room.contiguous_free = code->allocator->largest_free_block();
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|   room.free_block_count = code->allocator->free_block_count();
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| 
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|   return room;
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| }
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| 
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| /* Allocates memory */
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| void factor_vm::primitive_code_room() {
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|   code_heap_room room = code_room();
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|   ctx->push(tag<byte_array>(byte_array_from_value(&room)));
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| }
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| 
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| struct stack_trace_stripper {
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|   stack_trace_stripper() {}
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| 
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|   void operator()(code_block* compiled, cell size) {
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|     compiled->owner = false_object;
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|   }
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| };
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| 
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| void factor_vm::primitive_strip_stack_traces() {
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|   stack_trace_stripper stripper;
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|   each_code_block(stripper);
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| }
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| 
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| struct code_block_accumulator {
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|   std::vector<cell> objects;
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| 
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|   void operator()(code_block* compiled, cell size) {
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|     objects.push_back(compiled->owner);
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|     objects.push_back(compiled->parameters);
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|     objects.push_back(compiled->relocation);
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| 
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|     objects.push_back(tag_fixnum(compiled->type()));
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|     objects.push_back(tag_fixnum(compiled->size()));
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| 
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|     /* Note: the entry point is always a multiple of the heap
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|        alignment (16 bytes). We cannot allocate while iterating
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|        through the code heap, so it is not possible to call
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|        from_unsigned_cell() here. It is OK, however, to add it as
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|        if it were a fixnum, and have library code shift it to the
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|        left by 4. */
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|     cell entry_point = (cell)compiled->entry_point();
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|     FACTOR_ASSERT((entry_point & (data_alignment - 1)) == 0);
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|     FACTOR_ASSERT((entry_point & TAG_MASK) == FIXNUM_TYPE);
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|     objects.push_back(entry_point);
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|   }
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| };
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| 
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| /* Allocates memory */
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| cell factor_vm::code_blocks() {
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|   code_block_accumulator accum;
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|   each_code_block(accum);
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|   return std_vector_to_array(accum.objects);
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| }
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| 
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| /* Allocates memory */
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| void factor_vm::primitive_code_blocks() { ctx->push(code_blocks()); }
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| 
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| }
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