e9eec70cad
The print-ast output is useful for debugging front end issues. It is a mix of fully-parenthesized prefix notation (i.e., Lisp S-expressions) with some infix. It is not valid S-expressions for various other reasons. Most obviously, it uses ' (single quote) instead of " (double quote) to delimit strings. This change makes the print-ast output a valid Scheme S-expression. It can be pretty printed by copying it, quoting it (by preceding it with a single quote), and evaluating it at the REPL of a Scheme implementation. Also, the AST node pretty names are changed to predictably match the class name. It doesn't seem helpful to have them be arbitrary. BUG= R=regis@google.com Review URL: https://codereview.chromium.org//23923005 git-svn-id: https://dart.googlecode.com/svn/branches/bleeding_edge/dart@27282 260f80e4-7a28-3924-810f-c04153c831b5
532 lines
19 KiB
C++
532 lines
19 KiB
C++
// Copyright (c) 2012, the Dart project authors. Please see the AUTHORS file
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// for details. All rights reserved. Use of this source code is governed by a
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// BSD-style license that can be found in the LICENSE file.
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#ifndef VM_FLOW_GRAPH_BUILDER_H_
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#define VM_FLOW_GRAPH_BUILDER_H_
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#include "vm/allocation.h"
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#include "vm/ast.h"
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#include "vm/growable_array.h"
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#include "vm/intermediate_language.h"
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namespace dart {
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class FlowGraph;
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class Instruction;
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class ParsedFunction;
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// List of recognized list factories:
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// (factory-name-symbol, result-cid, fingerprint).
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// TODO(srdjan): Store the values in the snapshot instead.
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#define RECOGNIZED_LIST_FACTORY_LIST(V) \
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V(ObjectArrayFactory, kArrayCid, 1930677134) \
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V(GrowableObjectArrayWithData, kGrowableObjectArrayCid, 1012992871) \
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V(GrowableObjectArrayFactory, kGrowableObjectArrayCid, 1707369421) \
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V(_Int8ArrayFactory, kTypedDataInt8ArrayCid, 1340298556) \
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V(_Uint8ArrayFactory, kTypedDataUint8ArrayCid, 1775618642) \
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V(_Uint8ClampedArrayFactory, kTypedDataUint8ClampedArrayCid, 264668024) \
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V(_Int16ArrayFactory, kTypedDataInt16ArrayCid, 1095249987) \
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V(_Uint16ArrayFactory, kTypedDataUint16ArrayCid, 1275304272) \
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V(_Int32ArrayFactory, kTypedDataInt32ArrayCid, 523449884) \
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V(_Uint32ArrayFactory, kTypedDataUint32ArrayCid, 458531362) \
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V(_Int64ArrayFactory, kTypedDataInt64ArrayCid, 1753070829) \
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V(_Uint64ArrayFactory, kTypedDataUint64ArrayCid, 1561660391) \
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V(_Float64ArrayFactory, kTypedDataFloat64ArrayCid, 245916452) \
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V(_Float32ArrayFactory, kTypedDataFloat32ArrayCid, 368082071) \
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V(_Float32x4ArrayFactory, kTypedDataFloat32x4ArrayCid, 1674296969) \
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// A class to collect the exits from an inlined function during graph
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// construction so they can be plugged into the caller's flow graph.
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class InlineExitCollector: public ZoneAllocated {
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public:
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InlineExitCollector(FlowGraph* caller_graph, Definition* call)
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: caller_graph_(caller_graph), call_(call), exits_(4) { }
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void AddExit(ReturnInstr* exit);
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void Union(const InlineExitCollector* other);
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// Before replacing a call with a graph, the outer environment needs to be
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// attached to each instruction in the callee graph and the caller graph
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// needs to have its block and instruction ID state updated.
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void PrepareGraphs(FlowGraph* callee_graph);
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// Inline a graph at a call site.
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//
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// Assumes the callee is in SSA with a correct dominator tree and use
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// lists.
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//
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// After inlining the caller graph will have correctly adjusted the use
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// lists. The block orders will need to be recomputed.
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void ReplaceCall(TargetEntryInstr* callee_entry);
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private:
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struct Data {
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BlockEntryInstr* exit_block;
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ReturnInstr* exit_return;
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};
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BlockEntryInstr* ExitBlockAt(intptr_t i) const {
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ASSERT(exits_[i].exit_block != NULL);
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return exits_[i].exit_block;
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}
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Instruction* LastInstructionAt(intptr_t i) const {
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return ReturnAt(i)->previous();
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}
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Value* ValueAt(intptr_t i) const {
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return ReturnAt(i)->value();
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}
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ReturnInstr* ReturnAt(intptr_t i) const {
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return exits_[i].exit_return;
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}
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static int LowestBlockIdFirst(const Data* a, const Data* b);
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void SortExits();
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Definition* JoinReturns(BlockEntryInstr** exit_block,
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Instruction** last_instruction);
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FlowGraph* caller_graph_;
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Definition* call_;
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GrowableArray<Data> exits_;
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};
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// Build a flow graph from a parsed function's AST.
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class FlowGraphBuilder: public ValueObject {
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public:
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// The inlining context is NULL if not inlining. The osr_id is the deopt
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// id of the OSR entry or Isolate::kNoDeoptId if not compiling for OSR.
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FlowGraphBuilder(ParsedFunction* parsed_function,
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const Array& ic_data_array,
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InlineExitCollector* exit_collector,
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intptr_t osr_id);
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FlowGraph* BuildGraph();
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ParsedFunction* parsed_function() const { return parsed_function_; }
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const Array& ic_data_array() const { return ic_data_array_; }
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void Bailout(const char* reason);
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intptr_t AllocateBlockId() { return ++last_used_block_id_; }
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void SetInitialBlockId(intptr_t id) { last_used_block_id_ = id; }
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void set_context_level(intptr_t value) { context_level_ = value; }
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intptr_t context_level() const { return context_level_; }
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void IncrementLoopDepth() { ++loop_depth_; }
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void DecrementLoopDepth() { --loop_depth_; }
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intptr_t loop_depth() const { return loop_depth_; }
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// Manage the currently active try index.
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void set_try_index(intptr_t value) { try_index_ = value; }
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intptr_t try_index() const { return try_index_; }
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// Manage the currently active catch-handler try index.
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void set_catch_try_index(intptr_t value) { catch_try_index_ = value; }
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intptr_t catch_try_index() const { return catch_try_index_; }
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void AddCatchEntry(CatchBlockEntryInstr* entry);
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intptr_t num_copied_params() const {
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return num_copied_params_;
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}
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intptr_t num_non_copied_params() const {
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return num_non_copied_params_;
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}
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intptr_t num_stack_locals() const {
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return num_stack_locals_;
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}
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bool IsInlining() const { return (exit_collector_ != NULL); }
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InlineExitCollector* exit_collector() const { return exit_collector_; }
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intptr_t args_pushed() const { return args_pushed_; }
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void add_args_pushed(intptr_t n) { args_pushed_ += n; }
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// When compiling for OSR, remove blocks that are not reachable from the
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// OSR entry point.
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void PruneUnreachable();
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private:
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intptr_t parameter_count() const {
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return num_copied_params_ + num_non_copied_params_;
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}
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intptr_t variable_count() const {
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return parameter_count() + num_stack_locals_;
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}
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ParsedFunction* parsed_function_;
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const Array& ic_data_array_;
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const intptr_t num_copied_params_;
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const intptr_t num_non_copied_params_;
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const intptr_t num_stack_locals_; // Does not include any parameters.
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InlineExitCollector* const exit_collector_;
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intptr_t last_used_block_id_;
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intptr_t context_level_;
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intptr_t try_index_;
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intptr_t catch_try_index_;
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intptr_t loop_depth_;
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GraphEntryInstr* graph_entry_;
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// Outgoing argument stack height.
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intptr_t args_pushed_;
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// The deopt id of the OSR entry or Isolate::kNoDeoptId if not compiling
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// for OSR.
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const intptr_t osr_id_;
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DISALLOW_IMPLICIT_CONSTRUCTORS(FlowGraphBuilder);
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};
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class TestGraphVisitor;
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// Translate an AstNode to a control-flow graph fragment for its effects
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// (e.g., a statement or an expression in an effect context). Implements a
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// function from an AstNode and next temporary index to a graph fragment
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// with a single entry and at most one exit. The fragment is represented by
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// an (entry, exit) pair of Instruction pointers:
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//
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// - (NULL, NULL): an empty and open graph fragment
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// - (i0, NULL): a closed graph fragment which has only non-local exits
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// - (i0, i1): an open graph fragment
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class EffectGraphVisitor : public AstNodeVisitor {
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public:
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EffectGraphVisitor(FlowGraphBuilder* owner,
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intptr_t temp_index)
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: owner_(owner),
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temp_index_(temp_index),
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entry_(NULL),
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exit_(NULL) { }
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#define DECLARE_VISIT(BaseName) \
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virtual void Visit##BaseName##Node(BaseName##Node* node);
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FOR_EACH_NODE(DECLARE_VISIT)
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#undef DECLARE_VISIT
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FlowGraphBuilder* owner() const { return owner_; }
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intptr_t temp_index() const { return temp_index_; }
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Instruction* entry() const { return entry_; }
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Instruction* exit() const { return exit_; }
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bool is_empty() const { return entry_ == NULL; }
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bool is_open() const { return is_empty() || exit_ != NULL; }
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void Bailout(const char* reason);
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void InlineBailout(const char* reason);
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// Append a graph fragment to this graph. Assumes this graph is open.
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void Append(const EffectGraphVisitor& other_fragment);
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// Append a definition that can have uses. Assumes this graph is open.
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Value* Bind(Definition* definition);
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// Append a computation with no uses. Assumes this graph is open.
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void Do(Definition* definition);
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// Append a single (non-Definition, non-Entry) instruction. Assumes this
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// graph is open.
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void AddInstruction(Instruction* instruction);
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// Append a Goto (unconditional control flow) instruction and close
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// the graph fragment. Assumes this graph fragment is open.
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void Goto(JoinEntryInstr* join);
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// Append a 'diamond' branch and join to this graph, depending on which
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// parts are reachable. Assumes this graph is open.
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void Join(const TestGraphVisitor& test_fragment,
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const EffectGraphVisitor& true_fragment,
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const EffectGraphVisitor& false_fragment);
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// Append a 'while loop' test and back edge to this graph, depending on
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// which parts are reachable. Afterward, the graph exit is the false
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// successor of the loop condition.
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void TieLoop(intptr_t token_pos,
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const TestGraphVisitor& test_fragment,
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const EffectGraphVisitor& body_fragment);
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// Wraps a value in a push-argument instruction and adds the result to the
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// graph.
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PushArgumentInstr* PushArgument(Value* value);
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// This implementation shares state among visitors by using the builder.
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// The implementation is incorrect if a visitor that hits a return is not
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// actually added to the graph.
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void AddReturnExit(intptr_t token_pos, Value* value);
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protected:
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Definition* BuildStoreTemp(const LocalVariable& local, Value* value);
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Definition* BuildStoreExprTemp(Value* value);
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Definition* BuildLoadExprTemp();
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Definition* BuildStoreLocal(const LocalVariable& local,
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Value* value,
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bool result_is_needed);
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Definition* BuildLoadLocal(const LocalVariable& local);
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void HandleStoreLocal(StoreLocalNode* node, bool result_is_needed);
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// Helpers for translating parts of the AST.
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void TranslateArgumentList(const ArgumentListNode& node,
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ZoneGrowableArray<Value*>* values);
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void BuildPushArguments(const ArgumentListNode& node,
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ZoneGrowableArray<PushArgumentInstr*>* values);
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// Creates an instantiated type argument vector used in preparation of an
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// allocation call.
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// May be called only if allocating an object of a parameterized class.
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Value* BuildInstantiatedTypeArguments(
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intptr_t token_pos,
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const AbstractTypeArguments& type_arguments);
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// Creates a possibly uninstantiated type argument vector and the type
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// argument vector of the instantiator used in
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// preparation of a constructor call.
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// May be called only if allocating an object of a parameterized class.
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void BuildConstructorTypeArguments(
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ConstructorCallNode* node,
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ZoneGrowableArray<PushArgumentInstr*>* call_arguments);
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void BuildTypecheckPushArguments(
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intptr_t token_pos,
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PushArgumentInstr** push_instantiator,
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PushArgumentInstr** push_instantiator_type_arguments);
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void BuildTypecheckArguments(intptr_t token_pos,
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Value** instantiator,
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Value** instantiator_type_arguments);
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Value* BuildInstantiator();
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Value* BuildInstantiatorTypeArguments(intptr_t token_pos,
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const Class& instantiator_class,
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Value* instantiator);
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// Perform a type check on the given value.
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AssertAssignableInstr* BuildAssertAssignable(intptr_t token_pos,
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Value* value,
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const AbstractType& dst_type,
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const String& dst_name);
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// Perform a type check on the given value and return it.
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Value* BuildAssignableValue(intptr_t token_pos,
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Value* value,
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const AbstractType& dst_type,
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const String& dst_name);
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static const bool kResultNeeded = true;
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static const bool kResultNotNeeded = false;
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Definition* BuildStoreIndexedValues(StoreIndexedNode* node,
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bool result_is_needed);
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void BuildInstanceSetterArguments(
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InstanceSetterNode* node,
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ZoneGrowableArray<PushArgumentInstr*>* arguments,
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bool result_is_needed);
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virtual void BuildTypeTest(ComparisonNode* node);
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virtual void BuildTypeCast(ComparisonNode* node);
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bool MustSaveRestoreContext(SequenceNode* node) const;
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// Moves parent context into the context register.
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void UnchainContext();
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void CloseFragment() { exit_ = NULL; }
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intptr_t AllocateTempIndex() { return temp_index_++; }
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void DeallocateTempIndex(intptr_t n) {
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ASSERT(temp_index_ >= n);
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temp_index_ -= n;
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}
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// Returns a local variable index for a temporary local that is
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// on top of the current expression stack.
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intptr_t GetCurrentTempLocalIndex() const;
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Value* BuildObjectAllocation(ConstructorCallNode* node);
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void BuildConstructorCall(ConstructorCallNode* node,
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PushArgumentInstr* alloc_value);
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void BuildSaveContext(const LocalVariable& variable);
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void BuildRestoreContext(const LocalVariable& variable);
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void BuildThrowNode(ThrowNode* node);
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StaticCallInstr* BuildStaticNoSuchMethodCall(
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const Class& target_class,
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AstNode* receiver,
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const String& method_name,
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ArgumentListNode* method_arguments,
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bool save_last_arg);
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StaticCallInstr* BuildThrowNoSuchMethodError(
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intptr_t token_pos,
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const Class& function_class,
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const String& function_name,
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ArgumentListNode* function_arguments,
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int invocation_type);
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void BuildStaticSetter(StaticSetterNode* node, bool result_is_needed);
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Definition* BuildStoreStaticField(StoreStaticFieldNode* node,
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bool result_is_needed);
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ClosureCallInstr* BuildClosureCall(ClosureCallNode* node);
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Value* BuildNullValue();
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// Returns true if the run-time type check can be eliminated.
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bool CanSkipTypeCheck(intptr_t token_pos,
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Value* value,
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const AbstractType& dst_type,
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const String& dst_name);
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// Helpers for allocating and deallocating temporary locals on top of the
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// expression stack.
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LocalVariable* EnterTempLocalScope(Value* value);
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Definition* ExitTempLocalScope(LocalVariable* var);
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void BuildLetTempExpressions(LetNode* node);
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private:
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friend class TempLocalScope; // For ReturnDefinition.
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// Specify a definition of the final result. Adds the definition to
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// the graph, but normally overridden in subclasses.
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virtual void ReturnDefinition(Definition* definition) {
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Do(definition);
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}
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// Shared global state.
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FlowGraphBuilder* owner_;
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// Input parameters.
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intptr_t temp_index_;
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// Output parameters.
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Instruction* entry_;
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Instruction* exit_;
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};
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// Translate an AstNode to a control-flow graph fragment for both its effects
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// and value (e.g., for an expression in a value context). Implements a
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// function from an AstNode and next temporary index to a graph fragment (as
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// in the EffectGraphVisitor), a next temporary index, and an intermediate
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// language Value.
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class ValueGraphVisitor : public EffectGraphVisitor {
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public:
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ValueGraphVisitor(FlowGraphBuilder* owner,
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intptr_t temp_index)
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: EffectGraphVisitor(owner, temp_index), value_(NULL) { }
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// Visit functions overridden by this class.
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virtual void VisitLiteralNode(LiteralNode* node);
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virtual void VisitAssignableNode(AssignableNode* node);
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virtual void VisitConstructorCallNode(ConstructorCallNode* node);
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virtual void VisitBinaryOpNode(BinaryOpNode* node);
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virtual void VisitConditionalExprNode(ConditionalExprNode* node);
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virtual void VisitLoadLocalNode(LoadLocalNode* node);
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virtual void VisitStoreLocalNode(StoreLocalNode* node);
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virtual void VisitStoreIndexedNode(StoreIndexedNode* node);
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virtual void VisitStoreInstanceFieldNode(StoreInstanceFieldNode* node);
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virtual void VisitInstanceSetterNode(InstanceSetterNode* node);
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virtual void VisitThrowNode(ThrowNode* node);
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virtual void VisitClosureCallNode(ClosureCallNode* node);
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virtual void VisitStaticSetterNode(StaticSetterNode* node);
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virtual void VisitStoreStaticFieldNode(StoreStaticFieldNode* node);
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virtual void VisitTypeNode(TypeNode* node);
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virtual void VisitLetNode(LetNode* node);
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Value* value() const { return value_; }
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protected:
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// Output parameters.
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Value* value_;
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private:
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// Helper to set the output state to return a Value.
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virtual void ReturnValue(Value* value) { value_ = value; }
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// Specify a definition of the final result. Adds the definition to
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// the graph and returns a use of it (i.e., set the visitor's output
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// parameters).
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virtual void ReturnDefinition(Definition* definition) {
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ReturnValue(Bind(definition));
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}
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virtual void BuildTypeTest(ComparisonNode* node);
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virtual void BuildTypeCast(ComparisonNode* node);
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};
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// Translate an AstNode to a control-flow graph fragment for both its
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// effects and true/false control flow (e.g., for an expression in a test
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// context). The resulting graph is always closed (even if it is empty)
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// Successor control flow is explicitly set by a pair of pointers to
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// TargetEntryInstr*.
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//
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// To distinguish between the graphs with only nonlocal exits and graphs
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// with both true and false exits, there are a pair of TargetEntryInstr**:
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//
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// - Both NULL: only non-local exits, truly closed
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// - Neither NULL: true and false successors at the given addresses
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//
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// We expect that AstNode in test contexts either have only nonlocal exits
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// or else control flow has both true and false successors.
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//
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// The cis and token_pos are used in checked mode to verify that the
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// condition of the test is of type bool.
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class TestGraphVisitor : public ValueGraphVisitor {
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public:
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TestGraphVisitor(FlowGraphBuilder* owner,
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intptr_t temp_index,
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intptr_t condition_token_pos)
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: ValueGraphVisitor(owner, temp_index),
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true_successor_addresses_(1),
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false_successor_addresses_(1),
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condition_token_pos_(condition_token_pos) { }
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void IfFalseGoto(JoinEntryInstr* join) const;
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void IfTrueGoto(JoinEntryInstr* join) const;
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BlockEntryInstr* CreateTrueSuccessor() const;
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BlockEntryInstr* CreateFalseSuccessor() const;
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virtual void VisitBinaryOpNode(BinaryOpNode* node);
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intptr_t condition_token_pos() const { return condition_token_pos_; }
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private:
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// Construct and concatenate a Branch instruction to this graph fragment.
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// Closes the fragment and sets the output parameters.
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virtual void ReturnValue(Value* value);
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// Either merges the definition into a BranchInstr (Comparison, BooleanNegate)
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// or adds the definition to the graph and returns a use of its value.
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virtual void ReturnDefinition(Definition* definition);
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void MergeBranchWithComparison(ComparisonInstr* comp);
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void MergeBranchWithNegate(BooleanNegateInstr* comp);
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BlockEntryInstr* CreateSuccessorFor(
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const GrowableArray<TargetEntryInstr**>& branches) const;
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void ConnectBranchesTo(
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const GrowableArray<TargetEntryInstr**>& branches,
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JoinEntryInstr* join) const;
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// Output parameters.
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GrowableArray<TargetEntryInstr**> true_successor_addresses_;
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GrowableArray<TargetEntryInstr**> false_successor_addresses_;
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intptr_t condition_token_pos_;
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};
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} // namespace dart
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#endif // VM_FLOW_GRAPH_BUILDER_H_
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