// Copyright (c) 2012, the Dart project authors. Please see the AUTHORS file // for details. All rights reserved. Use of this source code is governed by a // BSD-style license that can be found in the LICENSE file. #include "vm/flow_graph_builder.h" #include "vm/ast_printer.h" #include "vm/code_descriptors.h" #include "vm/dart_entry.h" #include "vm/flags.h" #include "vm/il_printer.h" #include "vm/intermediate_language.h" #include "vm/longjump.h" #include "vm/object_store.h" #include "vm/os.h" #include "vm/parser.h" #include "vm/resolver.h" #include "vm/stub_code.h" #include "vm/symbols.h" namespace dart { DEFINE_FLAG(bool, eliminate_type_checks, true, "Eliminate type checks when allowed by static type analysis."); DEFINE_FLAG(bool, print_ast, false, "Print abstract syntax tree."); DEFINE_FLAG(bool, print_flow_graph, false, "Print the IR flow graph."); DEFINE_FLAG(bool, print_flow_graph_optimized, false, "Print the IR flow graph when optimizing."); DEFINE_FLAG(bool, trace_type_check_elimination, false, "Trace type check elimination at compile time."); DECLARE_FLAG(bool, enable_type_checks); static const String& PrivateCoreLibName(const String& str) { const Library& core_lib = Library::Handle(Library::CoreLibrary()); const String& private_name = String::ZoneHandle(core_lib.PrivateName(str)); return private_name; } FlowGraphBuilder::FlowGraphBuilder(const ParsedFunction& parsed_function, InliningContext* inlining_context) : parsed_function_(parsed_function), num_copied_params_(parsed_function.num_copied_params()), // All parameters are copied if any parameter is. num_non_copied_params_((num_copied_params_ == 0) ? parsed_function.function().num_fixed_parameters() : 0), num_stack_locals_(parsed_function.num_stack_locals()), inlining_context_(inlining_context), last_used_block_id_(0), // 0 is used for the graph entry. context_level_(0), last_used_try_index_(CatchClauseNode::kInvalidTryIndex), try_index_(CatchClauseNode::kInvalidTryIndex), graph_entry_(NULL) { } void FlowGraphBuilder::AddCatchEntry(TargetEntryInstr* entry) { graph_entry_->AddCatchEntry(entry); } InliningContext* InliningContext::Create(Definition* call) { return new ValueInliningContext(); } void InliningContext::PrepareGraphs(FlowGraph* caller_graph, Definition* call, FlowGraph* callee_graph) { ASSERT(callee_graph->graph_entry()->SuccessorCount() == 1); ASSERT(callee_graph->max_block_id() > caller_graph->max_block_id()); ASSERT(callee_graph->max_virtual_register_number() > caller_graph->max_virtual_register_number()); // Adjust the caller's maximum block id and current SSA temp index. caller_graph->set_max_block_id(callee_graph->max_block_id()); caller_graph->set_current_ssa_temp_index( callee_graph->max_virtual_register_number()); // Attach the outer environment on each instruction in the callee graph. for (BlockIterator block_it = callee_graph->postorder_iterator(); !block_it.Done(); block_it.Advance()) { for (ForwardInstructionIterator it(block_it.Current()); !it.Done(); it.Advance()) { Instruction* instr = it.Current(); // TODO(zerny): Avoid creating unnecessary environments. Note that some // optimizations need deoptimization info for non-deoptable instructions, // eg, LICM on GOTOs. if (instr->env() != NULL) call->env()->DeepCopyToOuter(instr); } } } void ValueInliningContext::AddExit(ReturnInstr* exit) { Data data = { NULL, exit }; exits_.Add(data); } int ValueInliningContext::LowestBlockIdFirst(const Data* a, const Data* b) { return (a->exit_block->block_id() - b->exit_block->block_id()); } void ValueInliningContext::SortExits() { // Assign block entries here because we did not necessarily know them when // the return exit was added to the array. for (int i = 0; i < exits_.length(); ++i) { exits_[i].exit_block = exits_[i].exit_return->GetBlock(); } exits_.Sort(LowestBlockIdFirst); } void ValueInliningContext::ReplaceCall(FlowGraph* caller_graph, Definition* call, FlowGraph* callee_graph) { ASSERT(call->previous() != NULL); ASSERT(call->next() != NULL); PrepareGraphs(caller_graph, call, callee_graph); BlockEntryInstr* caller_entry = call->GetBlock(); TargetEntryInstr* callee_entry = callee_graph->graph_entry()->normal_entry(); // Insert the callee graph into the caller graph. First sort the list of // exits by block id (recording block entries as a side effect). SortExits(); intptr_t num_exits = exits_.length(); if (num_exits == 0) { // TODO(zerny): Add support for non-local exits, such as throw. UNREACHABLE(); } else if (num_exits == 1) { // For just one exit, replace the uses and remove the call from the graph. call->ReplaceUsesWith(ValueAt(0)->definition()); call->previous()->LinkTo(callee_entry->next()); LastInstructionAt(0)->LinkTo(call->next()); // In case of control flow, locally update the predecessors, phis and // dominator tree. // TODO(zerny): should we leave the dominator tree since we recompute it // after a full inlining pass? if (callee_graph->preorder().length() > 2) { BlockEntryInstr* exit_block = ExitBlockAt(0); // Pictorially, the graph structure is: // // Bc : caller_entry Bi : callee_entry // before_call inlined_head // call ... other blocks ... // after_call Be : exit_block // inlined_foot // And becomes: // // Bc : caller_entry // before_call // inlined_head // ... other blocks ... // Be : exit_block // inlined_foot // after_call // // For 'after_call', caller entry (Bc) is replaced by callee exit (Be). caller_entry->ReplaceAsPredecessorWith(exit_block); // For 'inlined_head', callee entry (Bi) is replaced by caller entry (Bc). callee_entry->ReplaceAsPredecessorWith(caller_entry); // The callee exit is now the immediate dominator of blocks whose // immediate dominator was the caller entry. ASSERT(exit_block->dominated_blocks().is_empty()); for (intptr_t i = 0; i < caller_entry->dominated_blocks().length(); ++i) { BlockEntryInstr* block = caller_entry->dominated_blocks()[i]; block->set_dominator(exit_block); exit_block->AddDominatedBlock(block); } // The caller entry is now the immediate dominator of blocks whose // immediate dominator was the callee entry. caller_entry->ClearDominatedBlocks(); for (intptr_t i = 0; i < callee_entry->dominated_blocks().length(); ++i) { BlockEntryInstr* block = callee_entry->dominated_blocks()[i]; block->set_dominator(caller_entry); caller_entry->AddDominatedBlock(block); } } } else { // Create a join of the returns. intptr_t join_id = caller_graph->max_block_id() + 1; caller_graph->set_max_block_id(join_id); JoinEntryInstr* join = new JoinEntryInstr(join_id, CatchClauseNode::kInvalidTryIndex); for (intptr_t i = 0; i < num_exits; ++i) { LastInstructionAt(i)->Goto(join); // Directly add the predecessors of the join in ascending block id order. join->predecessors_.Add(ExitBlockAt(i)); } // If the call has uses, create a phi of the returns. if (call->HasUses()) { // Environment count: length before call - argument count (+ return) intptr_t env_count = call->env()->Length() - call->ArgumentCount(); // Add a phi of the return values. join->InsertPhi(env_count, env_count + 1); PhiInstr* phi = join->phis()->Last(); phi->set_ssa_temp_index(caller_graph->alloc_ssa_temp_index()); phi->mark_alive(); for (intptr_t i = 0; i < num_exits; ++i) { Value* value = ValueAt(i); phi->SetInputAt(i, value); value->set_instruction(phi); value->set_use_index(i); } // Replace uses of the call with the phi. call->ReplaceUsesWith(phi); } // Remove the call from the graph. call->previous()->LinkTo(callee_entry->next()); join->LinkTo(call->next()); // Replace the blocks after splitting (see comment in the len=1 case above). caller_entry->ReplaceAsPredecessorWith(join); callee_entry->ReplaceAsPredecessorWith(caller_entry); // Update the last instruction pointers on each exit block to the new goto. for (intptr_t i = 0; i < num_exits; ++i) { ExitBlockAt(i)->set_last_instruction(LastInstructionAt(i)->next()); } // Mark that the dominator tree is invalid. // TODO(zerny): Compute the dominator frontier locally. caller_graph->InvalidateDominatorTree(); } } void EffectGraphVisitor::Append(const EffectGraphVisitor& other_fragment) { ASSERT(is_open()); if (other_fragment.is_empty()) return; if (is_empty()) { entry_ = other_fragment.entry(); exit_ = other_fragment.exit(); } else { exit()->LinkTo(other_fragment.entry()); exit_ = other_fragment.exit(); } temp_index_ = other_fragment.temp_index(); } Value* EffectGraphVisitor::Bind(Definition* definition) { ASSERT(is_open()); DeallocateTempIndex(definition->InputCount()); definition->set_use_kind(Definition::kValue); definition->set_temp_index(AllocateTempIndex()); if (is_empty()) { entry_ = definition; } else { exit()->LinkTo(definition); } exit_ = definition; return new Value(definition); } void EffectGraphVisitor::Do(Definition* definition) { ASSERT(is_open()); DeallocateTempIndex(definition->InputCount()); definition->set_use_kind(Definition::kEffect); if (is_empty()) { entry_ = definition; } else { exit()->LinkTo(definition); } exit_ = definition; } void EffectGraphVisitor::AddInstruction(Instruction* instruction) { ASSERT(is_open()); ASSERT(instruction->IsPushArgument() || !instruction->IsDefinition()); ASSERT(!instruction->IsBlockEntry()); DeallocateTempIndex(instruction->InputCount()); if (is_empty()) { entry_ = exit_ = instruction; } else { exit()->LinkTo(instruction); exit_ = instruction; } } void EffectGraphVisitor::AddReturnExit(intptr_t token_pos, Value* value) { ASSERT(is_open()); ReturnInstr* return_instr = new ReturnInstr(token_pos, value); AddInstruction(return_instr); InliningContext* inlining_context = owner()->inlining_context(); if (inlining_context != NULL) { inlining_context->AddExit(return_instr); } CloseFragment(); } void EffectGraphVisitor::Goto(JoinEntryInstr* join) { ASSERT(is_open()); if (is_empty()) { entry_ = new GotoInstr(join); } else { exit()->Goto(join); } exit_ = NULL; } // Appends a graph fragment to a block entry instruction. Returns the entry // instruction if the fragment was empty or else the exit of the fragment if // it was non-empty (so NULL if the fragment is closed). // // Note that the fragment is no longer a valid fragment after calling this // function -- the fragment is closed at its entry because the entry has a // predecessor in the graph. static Instruction* AppendFragment(BlockEntryInstr* entry, const EffectGraphVisitor& fragment) { if (fragment.is_empty()) return entry; entry->LinkTo(fragment.entry()); return fragment.exit(); } void EffectGraphVisitor::Join(const TestGraphVisitor& test_fragment, const EffectGraphVisitor& true_fragment, const EffectGraphVisitor& false_fragment) { // We have: a test graph fragment with zero, one, or two available exits; // and a pair of effect graph fragments with zero or one available exits. // We want to append the branch and (if necessary) a join node to this // graph fragment. ASSERT(is_open()); // 1. Connect the test to this graph. Append(test_fragment); // 2. Connect the true and false bodies to the test and record their exits // (if any). BlockEntryInstr* true_entry = test_fragment.CreateTrueSuccessor(); Instruction* true_exit = AppendFragment(true_entry, true_fragment); BlockEntryInstr* false_entry = test_fragment.CreateFalseSuccessor(); Instruction* false_exit = AppendFragment(false_entry, false_fragment); // 3. Add a join or select one (or neither) of the arms as exit. if (true_exit == NULL) { exit_ = false_exit; // May be NULL. if (false_exit != NULL) temp_index_ = false_fragment.temp_index(); } else if (false_exit == NULL) { exit_ = true_exit; temp_index_ = true_fragment.temp_index(); } else { JoinEntryInstr* join = new JoinEntryInstr(owner()->AllocateBlockId(), owner()->try_index()); true_exit->Goto(join); false_exit->Goto(join); exit_ = join; ASSERT(true_fragment.temp_index() == false_fragment.temp_index()); temp_index_ = true_fragment.temp_index(); } } void EffectGraphVisitor::TieLoop(const TestGraphVisitor& test_fragment, const EffectGraphVisitor& body_fragment) { // We have: a test graph fragment with zero, one, or two available exits; // and an effect graph fragment with zero or one available exits. We want // to append the 'while loop' consisting of the test graph fragment as // condition and the effect graph fragment as body. ASSERT(is_open()); // 1. Connect the body to the test if it is reachable, and if so record // its exit (if any). BlockEntryInstr* body_entry = test_fragment.CreateTrueSuccessor(); Instruction* body_exit = AppendFragment(body_entry, body_fragment); // 2. Connect the test to this graph, including the body if reachable and // using a fresh join node if the body is reachable and has an open exit. if (body_exit == NULL) { Append(test_fragment); } else { JoinEntryInstr* join = new JoinEntryInstr(owner()->AllocateBlockId(), owner()->try_index()); join->LinkTo(test_fragment.entry()); Goto(join); body_exit->Goto(join); } // 3. Set the exit to the graph to be the false successor of the test, a // fresh target node exit_ = test_fragment.CreateFalseSuccessor(); } PushArgumentInstr* EffectGraphVisitor::PushArgument(Value* value) { PushArgumentInstr* result = new PushArgumentInstr(value); AddInstruction(result); return result; } Definition* EffectGraphVisitor::BuildStoreTemp(const LocalVariable& local, Value* value) { ASSERT(!local.is_captured()); return new StoreLocalInstr(local, value, owner()->context_level()); } Definition* EffectGraphVisitor::BuildStoreExprTemp(Value* value) { return BuildStoreTemp(*owner()->parsed_function().expression_temp_var(), value); } Definition* EffectGraphVisitor::BuildLoadExprTemp() { return BuildLoadLocal(*owner()->parsed_function().expression_temp_var()); } Definition* EffectGraphVisitor::BuildStoreLocal( const LocalVariable& local, Value* value, bool result_is_needed) { if (local.is_captured()) { InlineBailout("EffectGraphVisitor::BuildStoreLocal (context)"); if (result_is_needed) { value = Bind(BuildStoreExprTemp(value)); } intptr_t delta = owner()->context_level() - local.owner()->context_level(); ASSERT(delta >= 0); Value* context = Bind(new CurrentContextInstr()); while (delta-- > 0) { context = Bind(new LoadFieldInstr( context, Context::parent_offset(), Type::ZoneHandle())); } StoreVMFieldInstr* store = new StoreVMFieldInstr(context, Context::variable_offset(local.index()), value, local.type()); if (result_is_needed) { Do(store); return BuildLoadExprTemp(); } else { return store; } } else { return new StoreLocalInstr(local, value, owner()->context_level()); } } Definition* EffectGraphVisitor::BuildLoadLocal(const LocalVariable& local) { if (local.is_captured()) { InlineBailout("EffectGraphVisitor::BuildLoadLocal (context)"); intptr_t delta = owner()->context_level() - local.owner()->context_level(); ASSERT(delta >= 0); Value* context = Bind(new CurrentContextInstr()); while (delta-- > 0) { context = Bind(new LoadFieldInstr( context, Context::parent_offset(), Type::ZoneHandle())); } return new LoadFieldInstr(context, Context::variable_offset(local.index()), local.type()); } else { return new LoadLocalInstr(local, owner()->context_level()); } } // Stores current context into the 'variable' void EffectGraphVisitor::BuildStoreContext(const LocalVariable& variable) { Value* context = Bind(new CurrentContextInstr()); Do(BuildStoreLocal(variable, context, kResultNotNeeded)); } // Loads context saved in 'context_variable' into the current context. void EffectGraphVisitor::BuildLoadContext(const LocalVariable& variable) { Value* load_saved_context = Bind(BuildLoadLocal(variable)); AddInstruction(new StoreContextInstr(load_saved_context)); } void TestGraphVisitor::ConnectBranchesTo( const GrowableArray& branches, JoinEntryInstr* join) const { ASSERT(!branches.is_empty()); for (intptr_t i = 0; i < branches.length(); i++) { TargetEntryInstr* target = new TargetEntryInstr(owner()->AllocateBlockId(), owner()->try_index()); *(branches[i]) = target; target->Goto(join); } } void TestGraphVisitor::IfTrueGoto(JoinEntryInstr* join) const { ConnectBranchesTo(true_successor_addresses_, join); } void TestGraphVisitor::IfFalseGoto(JoinEntryInstr* join) const { ConnectBranchesTo(false_successor_addresses_, join); } BlockEntryInstr* TestGraphVisitor::CreateSuccessorFor( const GrowableArray& branches) const { ASSERT(!branches.is_empty()); if (branches.length() == 1) { TargetEntryInstr* target = new TargetEntryInstr(owner()->AllocateBlockId(), owner()->try_index()); *(branches[0]) = target; return target; } JoinEntryInstr* join = new JoinEntryInstr(owner()->AllocateBlockId(), owner()->try_index()); ConnectBranchesTo(branches, join); return join; } BlockEntryInstr* TestGraphVisitor::CreateTrueSuccessor() const { return CreateSuccessorFor(true_successor_addresses_); } BlockEntryInstr* TestGraphVisitor::CreateFalseSuccessor() const { return CreateSuccessorFor(false_successor_addresses_); } void TestGraphVisitor::ReturnValue(Value* value) { if (FLAG_enable_type_checks) { value = Bind(new AssertBooleanInstr(condition_token_pos(), value)); } Value* constant_true = Bind(new ConstantInstr(Bool::True())); StrictCompareInstr* comp = new StrictCompareInstr(Token::kEQ_STRICT, value, constant_true); BranchInstr* branch = new BranchInstr(comp); AddInstruction(branch); CloseFragment(); true_successor_addresses_.Add(branch->true_successor_address()); false_successor_addresses_.Add(branch->false_successor_address()); } void TestGraphVisitor::MergeBranchWithComparison(ComparisonInstr* comp) { ControlInstruction* branch; if (Token::IsStrictEqualityOperator(comp->kind())) { branch = new BranchInstr(new StrictCompareInstr(comp->kind(), comp->left(), comp->right())); } else if (Token::IsEqualityOperator(comp->kind()) && (comp->left()->BindsToConstantNull() || comp->right()->BindsToConstantNull())) { branch = new BranchInstr(new StrictCompareInstr( (comp->kind() == Token::kEQ) ? Token::kEQ_STRICT : Token::kNE_STRICT, comp->left(), comp->right())); } else { branch = new BranchInstr(comp, FLAG_enable_type_checks); } AddInstruction(branch); CloseFragment(); true_successor_addresses_.Add(branch->true_successor_address()); false_successor_addresses_.Add(branch->false_successor_address()); } void TestGraphVisitor::MergeBranchWithNegate(BooleanNegateInstr* neg) { ASSERT(!FLAG_enable_type_checks); Value* constant_true = Bind(new ConstantInstr(Bool::True())); BranchInstr* branch = new BranchInstr( new StrictCompareInstr(Token::kNE_STRICT, neg->value(), constant_true)); AddInstruction(branch); CloseFragment(); true_successor_addresses_.Add(branch->true_successor_address()); false_successor_addresses_.Add(branch->false_successor_address()); } void TestGraphVisitor::ReturnDefinition(Definition* definition) { ComparisonInstr* comp = definition->AsComparison(); if (comp != NULL) { MergeBranchWithComparison(comp); return; } if (!FLAG_enable_type_checks) { BooleanNegateInstr* neg = definition->AsBooleanNegate(); if (neg != NULL) { MergeBranchWithNegate(neg); return; } } ReturnValue(Bind(definition)); } // Special handling for AND/OR. void TestGraphVisitor::VisitBinaryOpNode(BinaryOpNode* node) { // Operators "&&" and "||" cannot be overloaded therefore do not call // operator. if ((node->kind() == Token::kAND) || (node->kind() == Token::kOR)) { TestGraphVisitor for_left(owner(), temp_index(), node->left()->token_pos()); node->left()->Visit(&for_left); TestGraphVisitor for_right(owner(), temp_index(), node->right()->token_pos()); node->right()->Visit(&for_right); Append(for_left); if (node->kind() == Token::kAND) { AppendFragment(for_left.CreateTrueSuccessor(), for_right); true_successor_addresses_.AddArray(for_right.true_successor_addresses_); false_successor_addresses_.AddArray(for_left.false_successor_addresses_); false_successor_addresses_.AddArray(for_right.false_successor_addresses_); } else { ASSERT(node->kind() == Token::kOR); AppendFragment(for_left.CreateFalseSuccessor(), for_right); false_successor_addresses_.AddArray(for_right.false_successor_addresses_); true_successor_addresses_.AddArray(for_left.true_successor_addresses_); true_successor_addresses_.AddArray(for_right.true_successor_addresses_); } CloseFragment(); return; } ValueGraphVisitor::VisitBinaryOpNode(node); } void EffectGraphVisitor::Bailout(const char* reason) { owner()->Bailout(reason); } void EffectGraphVisitor::InlineBailout(const char* reason) { owner()->parsed_function().function().set_is_inlinable(false); if (owner()->InInliningContext()) owner()->Bailout(reason); } // ::= Return { value: // inlined_finally_list: * } void EffectGraphVisitor::VisitReturnNode(ReturnNode* node) { ValueGraphVisitor for_value(owner(), temp_index()); node->value()->Visit(&for_value); Append(for_value); for (intptr_t i = 0; i < node->inlined_finally_list_length(); i++) { InlineBailout("EffectGraphVisitor::VisitReturnNode (exception)"); EffectGraphVisitor for_effect(owner(), temp_index()); node->InlinedFinallyNodeAt(i)->Visit(&for_effect); Append(for_effect); if (!is_open()) return; } Value* return_value = for_value.value(); if (FLAG_enable_type_checks) { const Function& function = owner()->parsed_function().function(); const bool is_implicit_dynamic_getter = (!function.is_static() && ((function.kind() == RawFunction::kImplicitGetter) || (function.kind() == RawFunction::kConstImplicitGetter))); // Implicit getters do not need a type check at return, unless they compute // the initial value of a static field. // The body of a constructor cannot modify the type of the // constructed instance, which is passed in as an implicit parameter. // However, factories may create an instance of the wrong type. if (!is_implicit_dynamic_getter && !function.IsConstructor()) { const AbstractType& dst_type = AbstractType::ZoneHandle( owner()->parsed_function().function().result_type()); return_value = BuildAssignableValue(node->value()->token_pos(), return_value, dst_type, Symbols::FunctionResult()); } } intptr_t current_context_level = owner()->context_level(); ASSERT(current_context_level >= 0); if (owner()->parsed_function().saved_entry_context_var() != NULL) { // CTX on entry was saved, but not linked as context parent. BuildLoadContext(*owner()->parsed_function().saved_entry_context_var()); } else { while (current_context_level-- > 0) { UnchainContext(); } } AddReturnExit(node->token_pos(), return_value); } // ::= Literal { literal: Instance } void EffectGraphVisitor::VisitLiteralNode(LiteralNode* node) { return; } void ValueGraphVisitor::VisitLiteralNode(LiteralNode* node) { ReturnDefinition(new ConstantInstr(node->literal())); } // Type nodes are used when a type is referenced as a literal. Type nodes // can also be used for the right-hand side of instanceof comparisons, // but they are handled specially in that context, not here. void EffectGraphVisitor::VisitTypeNode(TypeNode* node) { return; } void ValueGraphVisitor::VisitTypeNode(TypeNode* node) { ReturnDefinition(new ConstantInstr(node->type())); } // Returns true if the type check can be skipped, for example, if the // destination type is dynamic or if the compile type of the value is a subtype // of the destination type. bool EffectGraphVisitor::CanSkipTypeCheck(intptr_t token_pos, Value* value, const AbstractType& dst_type, const String& dst_name) { ASSERT(!dst_type.IsNull()); ASSERT(dst_type.IsFinalized()); // If the destination type is malformed, a dynamic type error must be thrown // at run time. if (dst_type.IsMalformed()) { return false; } // Any type is more specific than the dynamic type and than the Object type. if (dst_type.IsDynamicType() || dst_type.IsObjectType()) { return true; } // Do not perform type check elimination if this optimization is turned off. if (!FLAG_eliminate_type_checks) { return false; } // If nothing is known about the value, as is the case for passed-in // parameters, and since dst_type is not one of the tested cases above, then // the type test cannot be eliminated. if (value == NULL) { return false; } const bool eliminated = value->Type()->IsAssignableTo(dst_type); if (FLAG_trace_type_check_elimination) { FlowGraphPrinter::PrintTypeCheck(owner()->parsed_function(), token_pos, value, dst_type, dst_name, eliminated); } return eliminated; } // :: Assignable { expr: // type: AbstractType // dst_name: String } void EffectGraphVisitor::VisitAssignableNode(AssignableNode* node) { ValueGraphVisitor for_value(owner(), temp_index()); node->expr()->Visit(&for_value); Append(for_value); Definition* checked_value; if (CanSkipTypeCheck(node->expr()->token_pos(), for_value.value(), node->type(), node->dst_name())) { checked_value = for_value.value()->definition(); // No check needed. } else { checked_value = BuildAssertAssignable(node->expr()->token_pos(), for_value.value(), node->type(), node->dst_name()); } ReturnDefinition(checked_value); } void ValueGraphVisitor::VisitAssignableNode(AssignableNode* node) { ValueGraphVisitor for_value(owner(), temp_index()); node->expr()->Visit(&for_value); Append(for_value); ReturnValue(BuildAssignableValue(node->expr()->token_pos(), for_value.value(), node->type(), node->dst_name())); } // :: BinaryOp { kind: Token::Kind // left: // right: } void EffectGraphVisitor::VisitBinaryOpNode(BinaryOpNode* node) { // Operators "&&" and "||" cannot be overloaded therefore do not call // operator. if ((node->kind() == Token::kAND) || (node->kind() == Token::kOR)) { // See ValueGraphVisitor::VisitBinaryOpNode. TestGraphVisitor for_left(owner(), temp_index(), node->left()->token_pos()); node->left()->Visit(&for_left); EffectGraphVisitor for_right(owner(), temp_index()); node->right()->Visit(&for_right); EffectGraphVisitor empty(owner(), temp_index()); if (node->kind() == Token::kAND) { Join(for_left, for_right, empty); } else { Join(for_left, empty, for_right); } return; } ValueGraphVisitor for_left_value(owner(), temp_index()); node->left()->Visit(&for_left_value); Append(for_left_value); PushArgumentInstr* push_left = PushArgument(for_left_value.value()); ValueGraphVisitor for_right_value(owner(), temp_index()); node->right()->Visit(&for_right_value); Append(for_right_value); PushArgumentInstr* push_right = PushArgument(for_right_value.value()); ZoneGrowableArray* arguments = new ZoneGrowableArray(2); arguments->Add(push_left); arguments->Add(push_right); const String& name = String::ZoneHandle(Symbols::New(node->Name())); InstanceCallInstr* call = new InstanceCallInstr(node->token_pos(), name, node->kind(), arguments, Array::ZoneHandle(), 2); ReturnDefinition(call); } // Special handling for AND/OR. void ValueGraphVisitor::VisitBinaryOpNode(BinaryOpNode* node) { // Operators "&&" and "||" cannot be overloaded therefore do not call // operator. if ((node->kind() == Token::kAND) || (node->kind() == Token::kOR)) { // Implement short-circuit logic: do not evaluate right if evaluation // of left is sufficient. // AND: left ? right === true : false; // OR: left ? true : right === true; TestGraphVisitor for_test(owner(), temp_index(), node->left()->token_pos()); node->left()->Visit(&for_test); ValueGraphVisitor for_right(owner(), temp_index()); node->right()->Visit(&for_right); Value* right_value = for_right.value(); if (FLAG_enable_type_checks) { right_value = for_right.Bind(new AssertBooleanInstr(node->right()->token_pos(), right_value)); } Value* constant_true = for_right.Bind(new ConstantInstr(Bool::True())); Value* compare = for_right.Bind(new StrictCompareInstr(Token::kEQ_STRICT, right_value, constant_true)); for_right.Do(BuildStoreExprTemp(compare)); if (node->kind() == Token::kAND) { ValueGraphVisitor for_false(owner(), temp_index()); Value* constant_false = for_false.Bind(new ConstantInstr(Bool::False())); for_false.Do(BuildStoreExprTemp(constant_false)); Join(for_test, for_right, for_false); } else { ASSERT(node->kind() == Token::kOR); ValueGraphVisitor for_true(owner(), temp_index()); Value* constant_true = for_true.Bind(new ConstantInstr(Bool::True())); for_true.Do(BuildStoreExprTemp(constant_true)); Join(for_test, for_true, for_right); } ReturnDefinition(BuildLoadExprTemp()); return; } EffectGraphVisitor::VisitBinaryOpNode(node); } void EffectGraphVisitor::BuildTypecheckPushArguments( intptr_t token_pos, PushArgumentInstr** push_instantiator_result, PushArgumentInstr** push_instantiator_type_arguments_result) { const Class& instantiator_class = Class::Handle( owner()->parsed_function().function().Owner()); // Since called only when type tested against is not instantiated. ASSERT(instantiator_class.NumTypeParameters() > 0); Value* instantiator_type_arguments = NULL; Value* instantiator = BuildInstantiator(); if (instantiator == NULL) { // No instantiator when inside factory. *push_instantiator_result = PushArgument(BuildNullValue()); instantiator_type_arguments = BuildInstantiatorTypeArguments(token_pos, NULL); } else { instantiator = Bind(BuildStoreExprTemp(instantiator)); *push_instantiator_result = PushArgument(instantiator); Value* loaded = Bind(BuildLoadExprTemp()); instantiator_type_arguments = BuildInstantiatorTypeArguments(token_pos, loaded); } *push_instantiator_type_arguments_result = PushArgument(instantiator_type_arguments); } void EffectGraphVisitor::BuildTypecheckArguments( intptr_t token_pos, Value** instantiator_result, Value** instantiator_type_arguments_result) { Value* instantiator = NULL; Value* instantiator_type_arguments = NULL; const Class& instantiator_class = Class::Handle( owner()->parsed_function().function().Owner()); // Since called only when type tested against is not instantiated. ASSERT(instantiator_class.NumTypeParameters() > 0); instantiator = BuildInstantiator(); if (instantiator == NULL) { // No instantiator when inside factory. instantiator = BuildNullValue(); instantiator_type_arguments = BuildInstantiatorTypeArguments(token_pos, NULL); } else { // Preserve instantiator. instantiator = Bind(BuildStoreExprTemp(instantiator)); Value* loaded = Bind(BuildLoadExprTemp()); instantiator_type_arguments = BuildInstantiatorTypeArguments(token_pos, loaded); } *instantiator_result = instantiator; *instantiator_type_arguments_result = instantiator_type_arguments; } Value* EffectGraphVisitor::BuildNullValue() { return Bind(new ConstantInstr(Object::ZoneHandle())); } // Used for testing incoming arguments. AssertAssignableInstr* EffectGraphVisitor::BuildAssertAssignable( intptr_t token_pos, Value* value, const AbstractType& dst_type, const String& dst_name) { // Build the type check computation. Value* instantiator = NULL; Value* instantiator_type_arguments = NULL; if (dst_type.IsInstantiated()) { instantiator = BuildNullValue(); instantiator_type_arguments = BuildNullValue(); } else { BuildTypecheckArguments(token_pos, &instantiator, &instantiator_type_arguments); } return new AssertAssignableInstr(token_pos, value, instantiator, instantiator_type_arguments, dst_type, dst_name); } // Used for type casts and to test assignments. Value* EffectGraphVisitor::BuildAssignableValue(intptr_t token_pos, Value* value, const AbstractType& dst_type, const String& dst_name) { if (CanSkipTypeCheck(token_pos, value, dst_type, dst_name)) { return value; } return Bind(BuildAssertAssignable(token_pos, value, dst_type, dst_name)); } void EffectGraphVisitor::BuildTypeTest(ComparisonNode* node) { ASSERT(Token::IsTypeTestOperator(node->kind())); EffectGraphVisitor for_left_value(owner(), temp_index()); node->left()->Visit(&for_left_value); Append(for_left_value); } void EffectGraphVisitor::BuildTypeCast(ComparisonNode* node) { ASSERT(Token::IsTypeCastOperator(node->kind())); const AbstractType& type = node->right()->AsTypeNode()->type(); ASSERT(type.IsFinalized()); // The type in a type cast may be malformed. ValueGraphVisitor for_value(owner(), temp_index()); node->left()->Visit(&for_value); const String& dst_name = String::ZoneHandle( Symbols::New(Exceptions::kCastErrorDstName)); if (!CanSkipTypeCheck(node->token_pos(), for_value.value(), type, dst_name)) { Append(for_value); Do(BuildAssertAssignable( node->token_pos(), for_value.value(), type, dst_name)); } } void ValueGraphVisitor::BuildTypeTest(ComparisonNode* node) { ASSERT(Token::IsTypeTestOperator(node->kind())); const AbstractType& type = node->right()->AsTypeNode()->type(); ASSERT(type.IsFinalized() && !type.IsMalformed()); const bool negate_result = (node->kind() == Token::kISNOT); // All objects are instances of type T if Object type is a subtype of type T. const Type& object_type = Type::Handle(Type::ObjectType()); if (type.IsInstantiated() && object_type.IsSubtypeOf(type, NULL)) { // Must evaluate left side. EffectGraphVisitor for_left_value(owner(), temp_index()); node->left()->Visit(&for_left_value); Append(for_left_value); ReturnDefinition(new ConstantInstr(negate_result ? Bool::False() : Bool::True())); return; } // Eliminate the test if it can be performed successfully at compile time. if ((node->left() != NULL) && node->left()->IsLiteralNode() && type.IsInstantiated()) { const Instance& literal_value = node->left()->AsLiteralNode()->literal(); const Class& cls = Class::Handle(literal_value.clazz()); ConstantInstr* result = NULL; if (cls.IsNullClass()) { // A null object is only an instance of Object and dynamic, which has // already been checked above (if the type is instantiated). So we can // return false here if the instance is null (and if the type is // instantiated). result = new ConstantInstr(negate_result ? Bool::True() : Bool::False()); } else { if (literal_value.IsInstanceOf(type, TypeArguments::Handle(), NULL)) { result = new ConstantInstr(negate_result ? Bool::False() : Bool::True()); } else { result = new ConstantInstr(negate_result ? Bool::True() : Bool::False()); } } ReturnDefinition(result); return; } ValueGraphVisitor for_left_value(owner(), temp_index()); node->left()->Visit(&for_left_value); Append(for_left_value); PushArgumentInstr* push_left = PushArgument(for_left_value.value()); PushArgumentInstr* push_instantiator = NULL; PushArgumentInstr* push_type_args = NULL; if (type.IsInstantiated()) { push_instantiator = PushArgument(BuildNullValue()); push_type_args = PushArgument(BuildNullValue()); } else { BuildTypecheckPushArguments(node->token_pos(), &push_instantiator, &push_type_args); } ZoneGrowableArray* arguments = new ZoneGrowableArray(5); arguments->Add(push_left); arguments->Add(push_instantiator); arguments->Add(push_type_args); ASSERT(!node->right()->AsTypeNode()->type().IsNull()); Value* type_arg = Bind( new ConstantInstr(node->right()->AsTypeNode()->type())); arguments->Add(PushArgument(type_arg)); const Bool& negate = (node->kind() == Token::kISNOT) ? Bool::True() : Bool::False(); Value* negate_arg = Bind(new ConstantInstr(negate)); arguments->Add(PushArgument(negate_arg)); const intptr_t kNumArgsChecked = 1; InstanceCallInstr* call = new InstanceCallInstr( node->token_pos(), PrivateCoreLibName(Symbols::_instanceOf()), node->kind(), arguments, Array::ZoneHandle(), kNumArgsChecked); ReturnDefinition(call); } void ValueGraphVisitor::BuildTypeCast(ComparisonNode* node) { ASSERT(Token::IsTypeCastOperator(node->kind())); const AbstractType& type = node->right()->AsTypeNode()->type(); ASSERT(type.IsFinalized()); // The type in a type cast may be malformed. ValueGraphVisitor for_value(owner(), temp_index()); node->left()->Visit(&for_value); Append(for_value); const String& dst_name = String::ZoneHandle( Symbols::New(Exceptions::kCastErrorDstName)); ReturnValue(BuildAssignableValue(node->token_pos(), for_value.value(), type, dst_name)); } // :: Comparison { kind: Token::Kind // left: // right: } // TODO(srdjan): Implement new equality. void EffectGraphVisitor::VisitComparisonNode(ComparisonNode* node) { if (Token::IsTypeTestOperator(node->kind())) { BuildTypeTest(node); return; } if (Token::IsTypeCastOperator(node->kind())) { BuildTypeCast(node); return; } if ((node->kind() == Token::kEQ_STRICT) || (node->kind() == Token::kNE_STRICT)) { ValueGraphVisitor for_left_value(owner(), temp_index()); node->left()->Visit(&for_left_value); Append(for_left_value); ValueGraphVisitor for_right_value(owner(), temp_index()); node->right()->Visit(&for_right_value); Append(for_right_value); StrictCompareInstr* comp = new StrictCompareInstr( node->kind(), for_left_value.value(), for_right_value.value()); ReturnDefinition(comp); return; } if ((node->kind() == Token::kEQ) || (node->kind() == Token::kNE)) { ValueGraphVisitor for_left_value(owner(), temp_index()); node->left()->Visit(&for_left_value); Append(for_left_value); ValueGraphVisitor for_right_value(owner(), temp_index()); node->right()->Visit(&for_right_value); Append(for_right_value); if (FLAG_enable_type_checks) { EqualityCompareInstr* comp = new EqualityCompareInstr( node->token_pos(), Token::kEQ, for_left_value.value(), for_right_value.value()); if (node->kind() == Token::kEQ) { ReturnDefinition(comp); } else { Value* eq_result = Bind(comp); eq_result = Bind(new AssertBooleanInstr(node->token_pos(), eq_result)); ReturnDefinition(new BooleanNegateInstr(eq_result)); } } else { EqualityCompareInstr* comp = new EqualityCompareInstr( node->token_pos(), node->kind(), for_left_value.value(), for_right_value.value()); ReturnDefinition(comp); } return; } ValueGraphVisitor for_left_value(owner(), temp_index()); node->left()->Visit(&for_left_value); Append(for_left_value); ValueGraphVisitor for_right_value(owner(), temp_index()); node->right()->Visit(&for_right_value); Append(for_right_value); RelationalOpInstr* comp = new RelationalOpInstr(node->token_pos(), node->kind(), for_left_value.value(), for_right_value.value()); ReturnDefinition(comp); } void EffectGraphVisitor::VisitUnaryOpNode(UnaryOpNode* node) { // "!" cannot be overloaded, therefore do not call operator. if (node->kind() == Token::kNOT) { ValueGraphVisitor for_value(owner(), temp_index()); node->operand()->Visit(&for_value); Append(for_value); Value* value = for_value.value(); if (FLAG_enable_type_checks) { value = Bind(new AssertBooleanInstr(node->operand()->token_pos(), value)); } BooleanNegateInstr* negate = new BooleanNegateInstr(value); ReturnDefinition(negate); return; } ValueGraphVisitor for_value(owner(), temp_index()); node->operand()->Visit(&for_value); Append(for_value); PushArgumentInstr* push_value = PushArgument(for_value.value()); ZoneGrowableArray* arguments = new ZoneGrowableArray(1); arguments->Add(push_value); InstanceCallInstr* call = new InstanceCallInstr(node->token_pos(), String::ZoneHandle( Symbols::New(Token::Str(node->kind()))), node->kind(), arguments, Array::ZoneHandle(), 1); ReturnDefinition(call); } void EffectGraphVisitor::VisitConditionalExprNode(ConditionalExprNode* node) { TestGraphVisitor for_test(owner(), temp_index(), node->condition()->token_pos()); node->condition()->Visit(&for_test); // Translate the subexpressions for their effects. EffectGraphVisitor for_true(owner(), temp_index()); node->true_expr()->Visit(&for_true); EffectGraphVisitor for_false(owner(), temp_index()); node->false_expr()->Visit(&for_false); Join(for_test, for_true, for_false); } void ValueGraphVisitor::VisitConditionalExprNode(ConditionalExprNode* node) { TestGraphVisitor for_test(owner(), temp_index(), node->condition()->token_pos()); node->condition()->Visit(&for_test); ValueGraphVisitor for_true(owner(), temp_index()); node->true_expr()->Visit(&for_true); ASSERT(for_true.is_open()); for_true.Do(BuildStoreExprTemp(for_true.value())); ValueGraphVisitor for_false(owner(), temp_index()); node->false_expr()->Visit(&for_false); ASSERT(for_false.is_open()); for_false.Do(BuildStoreExprTemp(for_false.value())); Join(for_test, for_true, for_false); ReturnDefinition(BuildLoadExprTemp()); } // ::= If { condition: // true_branch: // false_branch: } void EffectGraphVisitor::VisitIfNode(IfNode* node) { TestGraphVisitor for_test(owner(), temp_index(), node->condition()->token_pos()); node->condition()->Visit(&for_test); EffectGraphVisitor for_true(owner(), temp_index()); EffectGraphVisitor for_false(owner(), temp_index()); node->true_branch()->Visit(&for_true); // The for_false graph fragment will be empty (default graph fragment) if // we do not call Visit. if (node->false_branch() != NULL) node->false_branch()->Visit(&for_false); Join(for_test, for_true, for_false); } void EffectGraphVisitor::VisitSwitchNode(SwitchNode* node) { EffectGraphVisitor switch_body(owner(), temp_index()); node->body()->Visit(&switch_body); Append(switch_body); if ((node->label() != NULL) && (node->label()->join_for_break() != NULL)) { if (is_open()) Goto(node->label()->join_for_break()); exit_ = node->label()->join_for_break(); } // No continue label allowed. ASSERT((node->label() == NULL) || (node->label()->join_for_continue() == NULL)); } // A case node contains zero or more case expressions, can contain default // and a case statement body. // Compose fragment as follows: // - if no case expressions, must have default: // a) target // b) [ case-statements ] // // - if has 1 or more case statements // a) target-0 // b) [ case-expression-0 ] -> (true-target-0, target-1) // c) target-1 // d) [ case-expression-1 ] -> (true-target-1, exit-target) // e) true-target-0 -> case-statements-join // f) true-target-1 -> case-statements-join // g) case-statements-join // h) [ case-statements ] -> exit-join // i) exit-target -> exit-join // j) exit-join // // Note: The specification of switch/case is under discussion and may change // drastically. void EffectGraphVisitor::VisitCaseNode(CaseNode* node) { const intptr_t len = node->case_expressions()->length(); // Create case statements instructions. EffectGraphVisitor for_case_statements(owner(), temp_index()); // Compute start of statements fragment. JoinEntryInstr* statement_start = NULL; if ((node->label() != NULL) && node->label()->is_continue_target()) { // Since a labeled jump continue statement occur in a different case node, // allocate JoinNode here and use it as statement start. statement_start = node->label()->join_for_continue(); if (statement_start == NULL) { statement_start = new JoinEntryInstr(owner()->AllocateBlockId(), owner()->try_index()); node->label()->set_join_for_continue(statement_start); } } else { statement_start = new JoinEntryInstr(owner()->AllocateBlockId(), owner()->try_index()); } node->statements()->Visit(&for_case_statements); Instruction* statement_exit = AppendFragment(statement_start, for_case_statements); if (is_open() && (len == 0)) { ASSERT(node->contains_default()); // Default only case node. Goto(statement_start); exit_ = statement_exit; return; } // Generate instructions for all case expressions. TargetEntryInstr* next_target = NULL; for (intptr_t i = 0; i < len; i++) { AstNode* case_expr = node->case_expressions()->NodeAt(i); TestGraphVisitor for_case_expression(owner(), temp_index(), case_expr->token_pos()); case_expr->Visit(&for_case_expression); if (i == 0) { // Append only the first one, everything else is connected from it. Append(for_case_expression); } else { ASSERT(next_target != NULL); AppendFragment(next_target, for_case_expression); } for_case_expression.IfTrueGoto(statement_start); next_target = for_case_expression.CreateFalseSuccessor()->AsTargetEntry(); } // Once a test fragment has been added, this fragment is closed. ASSERT(!is_open()); Instruction* exit_instruction = NULL; // Handle last (or only) case: false goes to exit or to statement if this // node contains default. if (len > 0) { ASSERT(next_target != NULL); if (node->contains_default()) { // True and false go to statement start. next_target->Goto(statement_start); exit_instruction = statement_exit; } else { if (statement_exit != NULL) { JoinEntryInstr* join = new JoinEntryInstr(owner()->AllocateBlockId(), owner()->try_index()); statement_exit->Goto(join); next_target->Goto(join); exit_instruction = join; } else { exit_instruction = next_target; } } } else { // A CaseNode without case expressions must contain default. ASSERT(node->contains_default()); Goto(statement_start); exit_instruction = statement_exit; } ASSERT(!is_open()); exit_ = exit_instruction; } // ::= While { label: SourceLabel // condition: // body: } // The fragment is composed as follows: // a) loop-join // b) [ test ] -> (body-entry-target, loop-exit-target) // c) body-entry-target // d) [ body ] -> (continue-join) // e) continue-join -> (loop-join) // f) loop-exit-target // g) break-join (optional) void EffectGraphVisitor::VisitWhileNode(WhileNode* node) { TestGraphVisitor for_test(owner(), temp_index(), node->condition()->token_pos()); node->condition()->Visit(&for_test); ASSERT(!for_test.is_empty()); // Language spec. EffectGraphVisitor for_body(owner(), temp_index()); for_body.AddInstruction( new CheckStackOverflowInstr(node->token_pos())); node->body()->Visit(&for_body); // Labels are set after body traversal. SourceLabel* lbl = node->label(); ASSERT(lbl != NULL); JoinEntryInstr* join = lbl->join_for_continue(); if (join != NULL) { if (for_body.is_open()) for_body.Goto(join); for_body.exit_ = join; } TieLoop(for_test, for_body); join = lbl->join_for_break(); if (join != NULL) { Goto(join); exit_ = join; } } // The fragment is composed as follows: // a) body-entry-join // b) [ body ] // c) test-entry (continue-join or body-exit-target) // d) [ test-entry ] -> (back-target, loop-exit-target) // e) back-target -> (body-entry-join) // f) loop-exit-target // g) break-join void EffectGraphVisitor::VisitDoWhileNode(DoWhileNode* node) { // Traverse body first in order to generate continue and break labels. EffectGraphVisitor for_body(owner(), temp_index()); for_body.AddInstruction( new CheckStackOverflowInstr(node->token_pos())); node->body()->Visit(&for_body); TestGraphVisitor for_test(owner(), temp_index(), node->condition()->token_pos()); node->condition()->Visit(&for_test); ASSERT(is_open()); // Tie do-while loop (test is after the body). JoinEntryInstr* body_entry_join = new JoinEntryInstr(owner()->AllocateBlockId(), owner()->try_index()); Goto(body_entry_join); Instruction* body_exit = AppendFragment(body_entry_join, for_body); JoinEntryInstr* join = node->label()->join_for_continue(); if ((body_exit != NULL) || (join != NULL)) { if (join == NULL) { join = new JoinEntryInstr(owner()->AllocateBlockId(), owner()->try_index()); } join->LinkTo(for_test.entry()); if (body_exit != NULL) { body_exit->Goto(join); } } for_test.IfTrueGoto(body_entry_join); join = node->label()->join_for_break(); if (join == NULL) { exit_ = for_test.CreateFalseSuccessor(); } else { for_test.IfFalseGoto(join); exit_ = join; } } // A ForNode can contain break and continue jumps. 'break' joins to // ForNode exit, 'continue' joins at increment entry. The fragment is composed // as follows: // a) [ initializer ] // b) loop-join // c) [ test ] -> (body-entry-target, loop-exit-target) // d) body-entry-target // e) [ body ] // f) continue-join (optional) // g) [ increment ] -> (loop-join) // h) loop-exit-target // i) break-join void EffectGraphVisitor::VisitForNode(ForNode* node) { EffectGraphVisitor for_initializer(owner(), temp_index()); node->initializer()->Visit(&for_initializer); Append(for_initializer); ASSERT(is_open()); // Compose body to set any jump labels. EffectGraphVisitor for_body(owner(), temp_index()); for_body.AddInstruction( new CheckStackOverflowInstr(node->token_pos())); node->body()->Visit(&for_body); // Join loop body, increment and compute their end instruction. ASSERT(!for_body.is_empty()); Instruction* loop_increment_end = NULL; EffectGraphVisitor for_increment(owner(), temp_index()); node->increment()->Visit(&for_increment); JoinEntryInstr* join = node->label()->join_for_continue(); if (join != NULL) { // Insert the join between the body and increment. if (for_body.is_open()) for_body.Goto(join); loop_increment_end = AppendFragment(join, for_increment); ASSERT(loop_increment_end != NULL); } else if (for_body.is_open()) { // Do not insert an extra basic block. for_body.Append(for_increment); loop_increment_end = for_body.exit(); // 'for_body' contains at least the stack check. ASSERT(loop_increment_end != NULL); } else { loop_increment_end = NULL; } // 'loop_increment_end' is NULL only if there is no join for continue and the // body is not open, i.e., no backward branch exists. if (loop_increment_end != NULL) { JoinEntryInstr* loop_start = new JoinEntryInstr(owner()->AllocateBlockId(), owner()->try_index()); Goto(loop_start); loop_increment_end->Goto(loop_start); exit_ = loop_start; } if (node->condition() == NULL) { // Endless loop, no test. JoinEntryInstr* body_entry = new JoinEntryInstr(owner()->AllocateBlockId(), owner()->try_index()); AppendFragment(body_entry, for_body); Goto(body_entry); if (node->label()->join_for_break() != NULL) { // Control flow of ForLoop continues into join_for_break. exit_ = node->label()->join_for_break(); } } else { TestGraphVisitor for_test(owner(), temp_index(), node->condition()->token_pos()); node->condition()->Visit(&for_test); Append(for_test); BlockEntryInstr* body_entry = for_test.CreateTrueSuccessor(); AppendFragment(body_entry, for_body); if (node->label()->join_for_break() == NULL) { exit_ = for_test.CreateFalseSuccessor(); } else { for_test.IfFalseGoto(node->label()->join_for_break()); exit_ = node->label()->join_for_break(); } } } void EffectGraphVisitor::VisitJumpNode(JumpNode* node) { for (intptr_t i = 0; i < node->inlined_finally_list_length(); i++) { EffectGraphVisitor for_effect(owner(), temp_index()); node->InlinedFinallyNodeAt(i)->Visit(&for_effect); Append(for_effect); if (!is_open()) return; } // Unchain the context(s) up to the outer context level of the scope which // contains the destination label. SourceLabel* label = node->label(); ASSERT(label->owner() != NULL); int target_context_level = 0; LocalScope* target_scope = label->owner(); if (target_scope->num_context_variables() > 0) { // The scope of the target label allocates a context, therefore its outer // scope is at a lower context level. target_context_level = target_scope->context_level() - 1; } else { // The scope of the target label does not allocate a context, so its outer // scope is at the same context level. Find it. while ((target_scope != NULL) && (target_scope->num_context_variables() == 0)) { target_scope = target_scope->parent(); } if (target_scope != NULL) { target_context_level = target_scope->context_level(); } } ASSERT(target_context_level >= 0); intptr_t current_context_level = owner()->context_level(); ASSERT(current_context_level >= target_context_level); while (current_context_level-- > target_context_level) { UnchainContext(); } JoinEntryInstr* jump_target = NULL; if (node->kind() == Token::kBREAK) { if (node->label()->join_for_break() == NULL) { node->label()->set_join_for_break( new JoinEntryInstr(owner()->AllocateBlockId(), owner()->try_index())); } jump_target = node->label()->join_for_break(); } else { if (node->label()->join_for_continue() == NULL) { node->label()->set_join_for_continue( new JoinEntryInstr(owner()->AllocateBlockId(), owner()->try_index())); } jump_target = node->label()->join_for_continue(); } Goto(jump_target); } void EffectGraphVisitor::VisitArgumentListNode(ArgumentListNode* node) { UNREACHABLE(); } void EffectGraphVisitor::VisitArgumentDefinitionTestNode( ArgumentDefinitionTestNode* node) { InlineBailout("EffectGraphVisitor::VisitArgumentDefinitionTestNode"); Definition* load = BuildLoadLocal(node->saved_arguments_descriptor()); Value* arguments_descriptor = Bind(load); ArgumentDefinitionTestInstr* arg_def_test = new ArgumentDefinitionTestInstr(node, arguments_descriptor); ReturnDefinition(arg_def_test); } void EffectGraphVisitor::VisitArrayNode(ArrayNode* node) { const AbstractTypeArguments& type_args = AbstractTypeArguments::ZoneHandle(node->type().arguments()); Value* element_type = BuildInstantiatedTypeArguments(node->token_pos(), type_args); CreateArrayInstr* create = new CreateArrayInstr(node->token_pos(), node->length(), node->type(), element_type); Value* array_val = Bind(create); Definition* store = BuildStoreTemp(node->temp_local(), array_val); Do(store); const intptr_t class_id = create->Type()->ToCid(); const intptr_t deopt_id = Isolate::kNoDeoptId; for (int i = 0; i < node->length(); ++i) { Value* array = Bind( new LoadLocalInstr(node->temp_local(), owner()->context_level())); Value* index = Bind(new ConstantInstr(Smi::ZoneHandle(Smi::New(i)))); ValueGraphVisitor for_value(owner(), temp_index()); node->ElementAt(i)->Visit(&for_value); Append(for_value); // No store barrier needed for constants. const bool emit_store_barrier = !for_value.value()->BindsToConstant(); StoreIndexedInstr* store = new StoreIndexedInstr( array, index, for_value.value(), emit_store_barrier, class_id, deopt_id); Do(store); } ReturnDefinition( new LoadLocalInstr(node->temp_local(), owner()->context_level())); } void EffectGraphVisitor::VisitClosureNode(ClosureNode* node) { const Function& function = node->function(); if (function.IsImplicitStaticClosureFunction()) { Instance& closure = Instance::ZoneHandle(); closure ^= function.implicit_static_closure(); if (closure.IsNull()) { ObjectStore* object_store = Isolate::Current()->object_store(); const Context& context = Context::Handle(object_store->empty_context()); closure ^= Closure::New(function, context, Heap::kOld); function.set_implicit_static_closure(closure); } ReturnDefinition(new ConstantInstr(closure)); return; } Value* receiver = NULL; if (function.IsNonImplicitClosureFunction()) { // The context scope may have already been set by the non-optimizing // compiler. If it was not, set it here. if (function.context_scope() == ContextScope::null()) { // TODO(regis): Why are we not doing this in the parser? const ContextScope& context_scope = ContextScope::ZoneHandle( node->scope()->PreserveOuterScope(owner()->context_level())); ASSERT(!function.HasCode()); ASSERT(function.context_scope() == ContextScope::null()); function.set_context_scope(context_scope); } receiver = BuildNullValue(); } else { ASSERT(function.IsImplicitInstanceClosureFunction()); ValueGraphVisitor for_receiver(owner(), temp_index()); node->receiver()->Visit(&for_receiver); Append(for_receiver); receiver = for_receiver.value(); } PushArgumentInstr* push_receiver = PushArgument(receiver); ZoneGrowableArray* arguments = new ZoneGrowableArray(2); arguments->Add(push_receiver); ASSERT(function.context_scope() != ContextScope::null()); // The function type of a closure may have type arguments. In that case, pass // the type arguments of the instantiator. Otherwise, pass null object. const Class& cls = Class::Handle(function.signature_class()); ASSERT(!cls.IsNull()); const bool requires_type_arguments = cls.HasTypeArguments(); Value* type_arguments = NULL; if (requires_type_arguments) { ASSERT(!function.IsImplicitStaticClosureFunction()); type_arguments = BuildInstantiatorTypeArguments(node->token_pos(), NULL); } else { type_arguments = BuildNullValue(); } PushArgumentInstr* push_type_arguments = PushArgument(type_arguments); arguments->Add(push_type_arguments); ReturnDefinition( new CreateClosureInstr(node->function(), arguments, node->token_pos())); } void EffectGraphVisitor::TranslateArgumentList( const ArgumentListNode& node, ZoneGrowableArray* values) { for (intptr_t i = 0; i < node.length(); ++i) { ValueGraphVisitor for_argument(owner(), temp_index()); node.NodeAt(i)->Visit(&for_argument); Append(for_argument); values->Add(for_argument.value()); } } void EffectGraphVisitor::BuildPushArguments( const ArgumentListNode& node, ZoneGrowableArray* values) { for (intptr_t i = 0; i < node.length(); ++i) { ValueGraphVisitor for_argument(owner(), temp_index()); node.NodeAt(i)->Visit(&for_argument); Append(for_argument); PushArgumentInstr* push_arg = PushArgument(for_argument.value()); values->Add(push_arg); } } void EffectGraphVisitor::VisitInstanceCallNode(InstanceCallNode* node) { ValueGraphVisitor for_receiver(owner(), temp_index()); node->receiver()->Visit(&for_receiver); Append(for_receiver); PushArgumentInstr* push_receiver = PushArgument(for_receiver.value()); ZoneGrowableArray* arguments = new ZoneGrowableArray( node->arguments()->length() + 1); arguments->Add(push_receiver); BuildPushArguments(*node->arguments(), arguments); InstanceCallInstr* call = new InstanceCallInstr( node->token_pos(), node->function_name(), Token::kILLEGAL, arguments, node->arguments()->names(), 1); ReturnDefinition(call); } static intptr_t GetResultCidOfNative(const Function& function) { const Class& function_class = Class::Handle(function.Owner()); if (function_class.library() == Library::ScalarlistLibrary()) { const String& function_name = String::Handle(function.name()); if (!String::EqualsIgnoringPrivateKey(function_name, Symbols::_New())) { return kDynamicCid; } switch (function_class.id()) { case kInt8ArrayCid: case kUint8ArrayCid: case kUint8ClampedArrayCid: case kInt16ArrayCid: case kUint16ArrayCid: case kInt32ArrayCid: case kUint32ArrayCid: case kInt64ArrayCid: case kUint64ArrayCid: case kFloat32ArrayCid: case kFloat64ArrayCid: return function_class.id(); default: return kDynamicCid; // Unknown. } } return kDynamicCid; } // ::= StaticCall { function: Function // arguments: } void EffectGraphVisitor::VisitStaticCallNode(StaticCallNode* node) { if (node->function().name() == Symbols::Identical().raw()) { // Attempt to replace top level defined 'identical' from the core // library with strict equal early on. // TODO(hausner): Evaluate if this can happen at AST building time. const Class& cls = Class::Handle(node->function().Owner()); if (cls.IsTopLevel()) { const Library& core_lib = Library::Handle(Library::CoreLibrary()); if (cls.library() == core_lib.raw()) { ASSERT(node->arguments()->length() == 2); ValueGraphVisitor for_left_value(owner(), temp_index()); node->arguments()->NodeAt(0)->Visit(&for_left_value); Append(for_left_value); ValueGraphVisitor for_right_value(owner(), temp_index()); node->arguments()->NodeAt(1)->Visit(&for_right_value); Append(for_right_value); StrictCompareInstr* comp = new StrictCompareInstr( Token::kEQ_STRICT, for_left_value.value(), for_right_value.value()); ReturnDefinition(comp); return; } } } ZoneGrowableArray* arguments = new ZoneGrowableArray(node->arguments()->length()); BuildPushArguments(*node->arguments(), arguments); StaticCallInstr* call = new StaticCallInstr(node->token_pos(), node->function(), node->arguments()->names(), arguments); if (node->function().is_native()) { const intptr_t result_cid = GetResultCidOfNative(node->function()); call->set_result_cid(result_cid); } ReturnDefinition(call); } ClosureCallInstr* EffectGraphVisitor::BuildClosureCall( ClosureCallNode* node) { ValueGraphVisitor for_closure(owner(), temp_index()); node->closure()->Visit(&for_closure); Append(for_closure); PushArgumentInstr* push_closure = PushArgument(for_closure.value()); ZoneGrowableArray* arguments = new ZoneGrowableArray(node->arguments()->length()); arguments->Add(push_closure); BuildPushArguments(*node->arguments(), arguments); // Save context around the call. ASSERT(owner()->parsed_function().saved_current_context_var() != NULL); BuildStoreContext(*owner()->parsed_function().saved_current_context_var()); return new ClosureCallInstr(node, arguments); } void EffectGraphVisitor::VisitClosureCallNode(ClosureCallNode* node) { Do(BuildClosureCall(node)); // Restore context from saved location. ASSERT(owner()->parsed_function().saved_current_context_var() != NULL); BuildLoadContext(*owner()->parsed_function().saved_current_context_var()); } void ValueGraphVisitor::VisitClosureCallNode(ClosureCallNode* node) { Value* result = Bind(BuildClosureCall(node)); // Restore context from temp. ASSERT(owner()->parsed_function().saved_current_context_var() != NULL); BuildLoadContext(*owner()->parsed_function().saved_current_context_var()); ReturnValue(result); } void EffectGraphVisitor::VisitCloneContextNode(CloneContextNode* node) { InlineBailout("EffectGraphVisitor::VisitCloneContextNode (context)"); Value* context = Bind(new CurrentContextInstr()); Value* clone = Bind(new CloneContextInstr(node->token_pos(), context)); AddInstruction(new StoreContextInstr(clone)); } Value* EffectGraphVisitor::BuildObjectAllocation( ConstructorCallNode* node) { const Class& cls = Class::ZoneHandle(node->constructor().Owner()); const bool requires_type_arguments = cls.HasTypeArguments(); // In checked mode, if the type arguments are uninstantiated, they may need to // be checked against declared bounds at run time. Definition* allocate_comp = NULL; if (FLAG_enable_type_checks && requires_type_arguments && !node->type_arguments().IsNull() && !node->type_arguments().IsInstantiated() && !node->type_arguments().IsWithinBoundsOf(cls, node->type_arguments(), NULL)) { Value* type_arguments = NULL; Value* instantiator = NULL; BuildConstructorTypeArguments(node, &type_arguments, &instantiator, NULL); // The uninstantiated type arguments cannot be verified to be within their // bounds at compile time, so verify them at runtime. // Although the type arguments may be uninstantiated at compile time, they // may represent the identity vector and may be replaced by the instantiated // type arguments of the instantiator at run time. allocate_comp = new AllocateObjectWithBoundsCheckInstr(node, type_arguments, instantiator); } else { ZoneGrowableArray* allocate_arguments = new ZoneGrowableArray(); if (requires_type_arguments) { BuildConstructorTypeArguments(node, NULL, NULL, allocate_arguments); } allocate_comp = new AllocateObjectInstr(node, allocate_arguments); } return Bind(allocate_comp); } void EffectGraphVisitor::BuildConstructorCall( ConstructorCallNode* node, PushArgumentInstr* push_alloc_value) { Value* ctor_arg = Bind( new ConstantInstr(Smi::ZoneHandle(Smi::New(Function::kCtorPhaseAll)))); PushArgumentInstr* push_ctor_arg = PushArgument(ctor_arg); ZoneGrowableArray* arguments = new ZoneGrowableArray(2); arguments->Add(push_alloc_value); arguments->Add(push_ctor_arg); BuildPushArguments(*node->arguments(), arguments); Do(new StaticCallInstr(node->token_pos(), node->constructor(), node->arguments()->names(), arguments)); } static bool IsRecognizedConstructor(const Function& function, const String& expected) { const Class& clazz = Class::Handle(function.Owner()); const Library& lib = Library::Handle(clazz.library()); const String& expected_class_name = String::Handle(lib.PrivateName(expected)); if (!String::Handle(clazz.Name()).Equals(expected_class_name)) { return false; } const String& function_name = String::Handle(function.name()); const String& expected_function_name = String::Handle( String::Concat(expected_class_name, Symbols::Dot())); return function_name.Equals(expected_function_name); } static intptr_t GetResultCidOfConstructor(ConstructorCallNode* node) { const Function& function = node->constructor(); const Class& function_class = Class::Handle(function.Owner()); const Library& core_lib = Library::Handle(Library::CoreLibrary()); if (function_class.library() != core_lib.raw()) { return kDynamicCid; } if (node->constructor().IsFactory()) { if ((function_class.Name() == Symbols::List().raw()) && (function.name() == Symbols::ListFactory().raw())) { return kGrowableObjectArrayCid; } else if ((function_class.Name() == Symbols::List().raw()) && (function.name() == Symbols::ListFixedLengthFactory().raw())) { return kArrayCid; } else { if (IsRecognizedConstructor(function, Symbols::ObjectArray()) && (node->arguments()->length() == 1)) { return kArrayCid; } else if (IsRecognizedConstructor(function, Symbols::GrowableObjectArray()) && (node->arguments()->length() == 0)) { return kGrowableObjectArrayCid; } } } return kDynamicCid; // Result cid not known. } void EffectGraphVisitor::VisitConstructorCallNode(ConstructorCallNode* node) { if (node->constructor().IsFactory()) { ZoneGrowableArray* arguments = new ZoneGrowableArray(); PushArgumentInstr* push_type_arguments = PushArgument( BuildInstantiatedTypeArguments(node->token_pos(), node->type_arguments())); arguments->Add(push_type_arguments); ASSERT(arguments->length() == 1); BuildPushArguments(*node->arguments(), arguments); StaticCallInstr* call = new StaticCallInstr(node->token_pos(), node->constructor(), node->arguments()->names(), arguments); // List factories return kArrayCid or kGrowableObjectArrayCid. const intptr_t result_cid = GetResultCidOfConstructor(node); call->set_result_cid(result_cid); call->set_is_known_constructor(result_cid != kDynamicCid); ReturnDefinition(call); return; } // t_n contains the allocated and initialized object. // t_n <- AllocateObject(class) // t_n+1 <- ctor-arg // t_n+2... <- constructor arguments start here // StaticCall(constructor, t_n+1, t_n+2, ...) // No need to preserve allocated value (simpler than in ValueGraphVisitor). Value* allocated_value = BuildObjectAllocation(node); PushArgumentInstr* push_allocated_value = PushArgument(allocated_value); BuildConstructorCall(node, push_allocated_value); } Value* EffectGraphVisitor::BuildInstantiator() { const Class& instantiator_class = Class::Handle( owner()->parsed_function().function().Owner()); if (instantiator_class.NumTypeParameters() == 0) { return NULL; } Function& outer_function = Function::Handle(owner()->parsed_function().function().raw()); while (outer_function.IsLocalFunction()) { outer_function = outer_function.parent_function(); } if (outer_function.IsFactory()) { return NULL; } ASSERT(owner()->parsed_function().instantiator() != NULL); ValueGraphVisitor for_instantiator(owner(), temp_index()); owner()->parsed_function().instantiator()->Visit(&for_instantiator); Append(for_instantiator); return for_instantiator.value(); } // 'expression_temp_var' may not be used inside this method if 'instantiator' // is not NULL. Value* EffectGraphVisitor::BuildInstantiatorTypeArguments( intptr_t token_pos, Value* instantiator) { const Class& instantiator_class = Class::Handle( owner()->parsed_function().function().Owner()); if (instantiator_class.NumTypeParameters() == 0) { // The type arguments are compile time constants. AbstractTypeArguments& type_arguments = AbstractTypeArguments::ZoneHandle(); // Type is temporary. Only its type arguments are preserved. Type& type = Type::Handle( Type::New(instantiator_class, type_arguments, token_pos, Heap::kNew)); type ^= ClassFinalizer::FinalizeType( instantiator_class, type, ClassFinalizer::kFinalize); ASSERT(!type.IsMalformed()); type_arguments = type.arguments(); type_arguments = type_arguments.Canonicalize(); return Bind(new ConstantInstr(type_arguments)); } Function& outer_function = Function::Handle(owner()->parsed_function().function().raw()); while (outer_function.IsLocalFunction()) { outer_function = outer_function.parent_function(); } if (outer_function.IsFactory()) { // No instantiator for factories. ASSERT(instantiator == NULL); ASSERT(owner()->parsed_function().instantiator() != NULL); ValueGraphVisitor for_instantiator(owner(), temp_index()); owner()->parsed_function().instantiator()->Visit(&for_instantiator); Append(for_instantiator); return for_instantiator.value(); } if (instantiator == NULL) { instantiator = BuildInstantiator(); } // The instantiator is the receiver of the caller, which is not a factory. // The receiver cannot be null; extract its AbstractTypeArguments object. // Note that in the factory case, the instantiator is the first parameter // of the factory, i.e. already an AbstractTypeArguments object. intptr_t type_arguments_field_offset = instantiator_class.type_arguments_field_offset(); ASSERT(type_arguments_field_offset != Class::kNoTypeArguments); return Bind(new LoadFieldInstr( instantiator, type_arguments_field_offset, Type::ZoneHandle())); // Not an instance, no type. } Value* EffectGraphVisitor::BuildInstantiatedTypeArguments( intptr_t token_pos, const AbstractTypeArguments& type_arguments) { if (type_arguments.IsNull() || type_arguments.IsInstantiated()) { return Bind(new ConstantInstr(type_arguments)); } // The type arguments are uninstantiated. Value* instantiator_value = BuildInstantiatorTypeArguments(token_pos, NULL); return Bind(new InstantiateTypeArgumentsInstr(token_pos, type_arguments, instantiator_value)); } void EffectGraphVisitor::BuildConstructorTypeArguments( ConstructorCallNode* node, Value** type_arguments, Value** instantiator, ZoneGrowableArray* call_arguments) { const Class& cls = Class::ZoneHandle(node->constructor().Owner()); ASSERT(cls.HasTypeArguments() && !node->constructor().IsFactory()); if (node->type_arguments().IsNull() || node->type_arguments().IsInstantiated()) { Value* type_arguments_val = Bind(new ConstantInstr(node->type_arguments())); if (call_arguments != NULL) { ASSERT(type_arguments == NULL); call_arguments->Add(PushArgument(type_arguments_val)); } else { ASSERT(type_arguments != NULL); *type_arguments = type_arguments_val; } // No instantiator required. Value* instantiator_val = Bind(new ConstantInstr( Smi::ZoneHandle(Smi::New(StubCode::kNoInstantiator)))); if (call_arguments != NULL) { ASSERT(instantiator == NULL); call_arguments->Add(PushArgument(instantiator_val)); } else { ASSERT(instantiator != NULL); *instantiator = instantiator_val; } return; } // The type arguments are uninstantiated. The generated pseudo code: // t1 = InstantiatorTypeArguments(); // t2 = ExtractConstructorTypeArguments(t1); // t1 = ExtractConstructorInstantiator(t1); // t_n <- t2 // t_n+1 <- t1 // Use expression_temp_var and node->allocated_object_var() locals to keep // intermediate results around (t1 and t2 above). ASSERT(owner()->parsed_function().expression_temp_var() != NULL); const LocalVariable& t1 = *owner()->parsed_function().expression_temp_var(); const LocalVariable& t2 = node->allocated_object_var(); Value* instantiator_type_arguments = BuildInstantiatorTypeArguments( node->token_pos(), NULL); Value* stored_instantiator = Bind(BuildStoreTemp(t1, instantiator_type_arguments)); // t1: instantiator type arguments. Value* extract_type_arguments = Bind( new ExtractConstructorTypeArgumentsInstr( node->token_pos(), node->type_arguments(), stored_instantiator)); Do(BuildStoreTemp(t2, extract_type_arguments)); // t2: extracted constructor type arguments. Value* load_instantiator = Bind(BuildLoadLocal(t1)); Value* extract_instantiator = Bind(new ExtractConstructorInstantiatorInstr(node, load_instantiator)); Do(BuildStoreTemp(t1, extract_instantiator)); // t2: extracted constructor type arguments. // t1: extracted constructor instantiator. Value* type_arguments_val = Bind(BuildLoadLocal(t2)); if (call_arguments != NULL) { ASSERT(type_arguments == NULL); call_arguments->Add(PushArgument(type_arguments_val)); } else { ASSERT(type_arguments != NULL); *type_arguments = type_arguments_val; } Value* instantiator_val = Bind(BuildLoadLocal(t1)); if (call_arguments != NULL) { ASSERT(instantiator == NULL); call_arguments->Add(PushArgument(instantiator_val)); } else { ASSERT(instantiator != NULL); *instantiator = instantiator_val; } } void ValueGraphVisitor::VisitConstructorCallNode(ConstructorCallNode* node) { if (node->constructor().IsFactory()) { EffectGraphVisitor::VisitConstructorCallNode(node); return; } // t_n contains the allocated and initialized object. // t_n <- AllocateObject(class) // t_n <- StoreLocal(temp, t_n); // t_n+1 <- ctor-arg // t_n+2... <- constructor arguments start here // StaticCall(constructor, t_n, t_n+1, ...) // tn <- LoadLocal(temp) Value* allocate = BuildObjectAllocation(node); Value* allocated_value = Bind(BuildStoreTemp( node->allocated_object_var(), allocate)); PushArgumentInstr* push_allocated_value = PushArgument(allocated_value); BuildConstructorCall(node, push_allocated_value); Definition* load_allocated = BuildLoadLocal( node->allocated_object_var()); allocated_value = Bind(load_allocated); ReturnValue(allocated_value); } void EffectGraphVisitor::VisitInstanceGetterNode(InstanceGetterNode* node) { ValueGraphVisitor for_receiver(owner(), temp_index()); node->receiver()->Visit(&for_receiver); Append(for_receiver); PushArgumentInstr* push_receiver = PushArgument(for_receiver.value()); ZoneGrowableArray* arguments = new ZoneGrowableArray(1); arguments->Add(push_receiver); const String& name = String::ZoneHandle(Field::GetterSymbol(node->field_name())); InstanceCallInstr* call = new InstanceCallInstr( node->token_pos(), name, Token::kGET, arguments, Array::ZoneHandle(), 1); ReturnDefinition(call); } void EffectGraphVisitor::BuildInstanceSetterArguments( InstanceSetterNode* node, ZoneGrowableArray* arguments, bool result_is_needed) { ValueGraphVisitor for_receiver(owner(), temp_index()); node->receiver()->Visit(&for_receiver); Append(for_receiver); arguments->Add(PushArgument(for_receiver.value())); ValueGraphVisitor for_value(owner(), temp_index()); node->value()->Visit(&for_value); Append(for_value); Value* value = NULL; if (result_is_needed) { value = Bind(BuildStoreExprTemp(for_value.value())); } else { value = for_value.value(); } arguments->Add(PushArgument(value)); } void EffectGraphVisitor::VisitInstanceSetterNode(InstanceSetterNode* node) { ZoneGrowableArray* arguments = new ZoneGrowableArray(2); BuildInstanceSetterArguments(node, arguments, kResultNotNeeded); const String& name = String::ZoneHandle(Field::SetterSymbol(node->field_name())); InstanceCallInstr* call = new InstanceCallInstr(node->token_pos(), name, Token::kSET, arguments, Array::ZoneHandle(), 2); // Checked arg count. ReturnDefinition(call); } void ValueGraphVisitor::VisitInstanceSetterNode(InstanceSetterNode* node) { ZoneGrowableArray* arguments = new ZoneGrowableArray(2); BuildInstanceSetterArguments(node, arguments, kResultNeeded); const String& name = String::ZoneHandle(Field::SetterSymbol(node->field_name())); Do(new InstanceCallInstr(node->token_pos(), name, Token::kSET, arguments, Array::ZoneHandle(), 2)); // Checked argument count. ReturnDefinition(BuildLoadExprTemp()); } void EffectGraphVisitor::VisitStaticGetterNode(StaticGetterNode* node) { const String& getter_name = String::ZoneHandle(Field::GetterSymbol(node->field_name())); ZoneGrowableArray* arguments = new ZoneGrowableArray(); Function& getter_function = Function::ZoneHandle(); if (node->is_super_getter()) { // Statically resolved instance getter, i.e. "super getter". ASSERT(node->receiver() != NULL); getter_function = Resolver::ResolveDynamicAnyArgs(node->cls(), getter_name); if (getter_function.IsNull()) { // Resolve and call noSuchMethod. ArgumentListNode* arguments = new ArgumentListNode(node->token_pos()); arguments->Add(node->receiver()); StaticCallInstr* call = BuildStaticNoSuchMethodCall(node->cls(), node->receiver(), getter_name, arguments); ReturnDefinition(call); return; } else { ValueGraphVisitor receiver_value(owner(), temp_index()); node->receiver()->Visit(&receiver_value); Append(receiver_value); arguments->Add(PushArgument(receiver_value.value())); } } else { getter_function = node->cls().LookupStaticFunction(getter_name); if (getter_function.IsNull()) { // When the parser encounters a reference to a static field materialized // only by a static setter, but no corresponding static getter, it creates // a StaticGetterNode ast node referring to the non-existing static getter // for the case this field reference appears in a left hand side // expression (the parser has not distinguished between left and right // hand side yet at this stage). If the parser establishes later that the // field access is part of a left hand side expression, the // StaticGetterNode is transformed into a StaticSetterNode referring to // the existing static setter. // However, if the field reference appears in a right hand side // expression, no such transformation occurs and we land here with a // StaticGetterNode missing a getter function, so we throw a // NoSuchMethodError. // Throw a NoSuchMethodError. StaticCallInstr* call = BuildThrowNoSuchMethodError(node->token_pos(), node->cls(), getter_name); ReturnDefinition(call); return; } } ASSERT(!getter_function.IsNull()); StaticCallInstr* call = new StaticCallInstr(node->token_pos(), getter_function, Array::ZoneHandle(), // No names. arguments); ReturnDefinition(call); } void EffectGraphVisitor::BuildStaticSetter(StaticSetterNode* node, bool result_is_needed) { const String& setter_name = String::ZoneHandle(Field::SetterSymbol(node->field_name())); ZoneGrowableArray* arguments = new ZoneGrowableArray(1); // A super setter is an instance setter whose setter function is // resolved at compile time (in the caller instance getter's super class). // Unlike a static getter, a super getter has a receiver parameter. const bool is_super_setter = (node->receiver() != NULL); Function& setter_function = Function::ZoneHandle(is_super_setter ? Resolver::ResolveDynamicAnyArgs(node->cls(), setter_name) : node->cls().LookupStaticFunction(setter_name)); StaticCallInstr* call; if (setter_function.IsNull()) { if (is_super_setter) { ASSERT(node->receiver() != NULL); // Resolve and call noSuchMethod. ArgumentListNode* arguments = new ArgumentListNode(node->token_pos()); arguments->Add(node->receiver()); arguments->Add(node->value()); call = BuildStaticNoSuchMethodCall(node->cls(), node->receiver(), setter_name, arguments); } else { // Throw a NoSuchMethodError. call = BuildThrowNoSuchMethodError(node->token_pos(), node->cls(), setter_name); } } else { if (is_super_setter) { // Add receiver of instance getter. ValueGraphVisitor for_receiver(owner(), temp_index()); node->receiver()->Visit(&for_receiver); Append(for_receiver); arguments->Add(PushArgument(for_receiver.value())); } ValueGraphVisitor for_value(owner(), temp_index()); node->value()->Visit(&for_value); Append(for_value); Value* value = NULL; if (result_is_needed) { value = Bind(BuildStoreExprTemp(for_value.value())); } else { value = for_value.value(); } arguments->Add(PushArgument(value)); call = new StaticCallInstr(node->token_pos(), setter_function, Array::ZoneHandle(), // No names. arguments); } if (result_is_needed) { Do(call); ReturnDefinition(BuildLoadExprTemp()); } else { ReturnDefinition(call); } } void EffectGraphVisitor::VisitStaticSetterNode(StaticSetterNode* node) { BuildStaticSetter(node, false); // Result not needed. } void ValueGraphVisitor::VisitStaticSetterNode(StaticSetterNode* node) { BuildStaticSetter(node, true); // Result needed. } void EffectGraphVisitor::VisitNativeBodyNode(NativeBodyNode* node) { InlineBailout("EffectGraphVisitor::VisitNativeBodyNode"); NativeCallInstr* native_call = new NativeCallInstr(node); ReturnDefinition(native_call); } void EffectGraphVisitor::VisitPrimaryNode(PrimaryNode* node) { // PrimaryNodes are temporary during parsing. UNREACHABLE(); } // ::= LoadLocal { local: LocalVariable } void EffectGraphVisitor::VisitLoadLocalNode(LoadLocalNode* node) { if (node->HasPseudo()) { EffectGraphVisitor for_pseudo(owner(), temp_index()); node->pseudo()->Visit(&for_pseudo); Append(for_pseudo); } } void ValueGraphVisitor::VisitLoadLocalNode(LoadLocalNode* node) { EffectGraphVisitor::VisitLoadLocalNode(node); Definition* load = BuildLoadLocal(node->local()); ReturnDefinition(load); } // ::= StoreLocal { local: LocalVariable // value: } void EffectGraphVisitor::HandleStoreLocal(StoreLocalNode* node, bool result_is_needed) { ValueGraphVisitor for_value(owner(), temp_index()); node->value()->Visit(&for_value); Append(for_value); Value* store_value = for_value.value(); if (FLAG_enable_type_checks) { store_value = BuildAssignableValue(node->value()->token_pos(), store_value, node->local().type(), node->local().name()); } Definition* store = BuildStoreLocal(node->local(), store_value, result_is_needed); ReturnDefinition(store); } void EffectGraphVisitor::VisitStoreLocalNode(StoreLocalNode* node) { HandleStoreLocal(node, kResultNotNeeded); } void ValueGraphVisitor::VisitStoreLocalNode(StoreLocalNode* node) { HandleStoreLocal(node, kResultNeeded); } void EffectGraphVisitor::VisitLoadInstanceFieldNode( LoadInstanceFieldNode* node) { ValueGraphVisitor for_instance(owner(), temp_index()); node->instance()->Visit(&for_instance); Append(for_instance); LoadFieldInstr* load = new LoadFieldInstr( for_instance.value(), node->field().Offset(), AbstractType::ZoneHandle(node->field().type())); ReturnDefinition(load); } void EffectGraphVisitor::VisitStoreInstanceFieldNode( StoreInstanceFieldNode* node) { ValueGraphVisitor for_instance(owner(), temp_index()); node->instance()->Visit(&for_instance); Append(for_instance); ValueGraphVisitor for_value(owner(), for_instance.temp_index()); node->value()->Visit(&for_value); Append(for_value); Value* store_value = for_value.value(); if (FLAG_enable_type_checks) { const AbstractType& type = AbstractType::ZoneHandle(node->field().type()); const String& dst_name = String::ZoneHandle(node->field().name()); store_value = BuildAssignableValue(node->value()->token_pos(), store_value, type, dst_name); } const bool kEmitStoreBarrier = true; StoreInstanceFieldInstr* store = new StoreInstanceFieldInstr( node->field(), for_instance.value(), store_value, kEmitStoreBarrier); ReturnDefinition(store); } // StoreInstanceFieldNode does not return result. void ValueGraphVisitor::VisitStoreInstanceFieldNode( StoreInstanceFieldNode* node) { UNIMPLEMENTED(); } void EffectGraphVisitor::VisitLoadStaticFieldNode(LoadStaticFieldNode* node) { LoadStaticFieldInstr* load = new LoadStaticFieldInstr(node->field()); ReturnDefinition(load); } Definition* EffectGraphVisitor::BuildStoreStaticField( StoreStaticFieldNode* node, bool result_is_needed) { ValueGraphVisitor for_value(owner(), temp_index()); node->value()->Visit(&for_value); Append(for_value); Value* store_value = NULL; if (result_is_needed) { store_value = Bind(BuildStoreExprTemp(for_value.value())); } else { store_value = for_value.value(); } if (FLAG_enable_type_checks) { const AbstractType& type = AbstractType::ZoneHandle(node->field().type()); const String& dst_name = String::ZoneHandle(node->field().name()); store_value = BuildAssignableValue(node->value()->token_pos(), store_value, type, dst_name); } StoreStaticFieldInstr* store = new StoreStaticFieldInstr(node->field(), store_value); if (result_is_needed) { Do(store); return BuildLoadExprTemp(); } else { return store; } } void EffectGraphVisitor::VisitStoreStaticFieldNode(StoreStaticFieldNode* node) { ReturnDefinition(BuildStoreStaticField(node, kResultNotNeeded)); } void ValueGraphVisitor::VisitStoreStaticFieldNode(StoreStaticFieldNode* node) { ReturnDefinition(BuildStoreStaticField(node, kResultNeeded)); } void EffectGraphVisitor::VisitLoadIndexedNode(LoadIndexedNode* node) { Function* super_function = NULL; if (node->IsSuperLoad()) { // Resolve the load indexed operator in the super class. super_function = &Function::ZoneHandle( Resolver::ResolveDynamicAnyArgs(node->super_class(), Symbols::IndexToken())); if (super_function->IsNull()) { // Could not resolve super operator. Generate call noSuchMethod() of the // super class instead. ArgumentListNode* arguments = new ArgumentListNode(node->token_pos()); arguments->Add(node->array()); arguments->Add(node->index_expr()); StaticCallInstr* call = BuildStaticNoSuchMethodCall(node->super_class(), node->array(), Symbols::IndexToken(), arguments); ReturnDefinition(call); return; } } ZoneGrowableArray* arguments = new ZoneGrowableArray(2); ValueGraphVisitor for_array(owner(), temp_index()); node->array()->Visit(&for_array); Append(for_array); arguments->Add(PushArgument(for_array.value())); ValueGraphVisitor for_index(owner(), temp_index()); node->index_expr()->Visit(&for_index); Append(for_index); arguments->Add(PushArgument(for_index.value())); if (super_function != NULL) { // Generate static call to super operator. StaticCallInstr* load = new StaticCallInstr(node->token_pos(), *super_function, Array::ZoneHandle(), arguments); ReturnDefinition(load); } else { // Generate dynamic call to index operator. const intptr_t checked_argument_count = 1; InstanceCallInstr* load = new InstanceCallInstr(node->token_pos(), Symbols::IndexToken(), Token::kINDEX, arguments, Array::ZoneHandle(), checked_argument_count); ReturnDefinition(load); } } Definition* EffectGraphVisitor::BuildStoreIndexedValues( StoreIndexedNode* node, bool result_is_needed) { Function* super_function = NULL; if (node->IsSuperStore()) { // Resolve the store indexed operator in the super class. super_function = &Function::ZoneHandle( Resolver::ResolveDynamicAnyArgs(node->super_class(), Symbols::AssignIndexToken())); if (super_function->IsNull()) { // Could not resolve super operator. Generate call noSuchMethod() of the // super class instead. if (result_is_needed) { // Even though noSuchMethod most likely does not return, // we save the stored value if the result is needed. ValueGraphVisitor for_value(owner(), temp_index()); node->value()->Visit(&for_value); Append(for_value); Bind(BuildStoreExprTemp(for_value.value())); } ArgumentListNode* arguments = new ArgumentListNode(node->token_pos()); arguments->Add(node->array()); arguments->Add(node->index_expr()); arguments->Add(node->value()); StaticCallInstr* call = BuildStaticNoSuchMethodCall(node->super_class(), node->array(), Symbols::AssignIndexToken(), arguments); if (result_is_needed) { Do(call); return BuildLoadExprTemp(); } else { return call; } } } ZoneGrowableArray* arguments = new ZoneGrowableArray(3); ValueGraphVisitor for_array(owner(), temp_index()); node->array()->Visit(&for_array); Append(for_array); arguments->Add(PushArgument(for_array.value())); ValueGraphVisitor for_index(owner(), temp_index()); node->index_expr()->Visit(&for_index); Append(for_index); arguments->Add(PushArgument(for_index.value())); ValueGraphVisitor for_value(owner(), temp_index()); node->value()->Visit(&for_value); Append(for_value); Value* value = NULL; if (result_is_needed) { value = Bind(BuildStoreExprTemp(for_value.value())); } else { value = for_value.value(); } arguments->Add(PushArgument(value)); if (super_function != NULL) { // Generate static call to super operator []=. StaticCallInstr* store = new StaticCallInstr(node->token_pos(), *super_function, Array::ZoneHandle(), arguments); if (result_is_needed) { Do(store); return BuildLoadExprTemp(); } else { return store; } } else { // Generate dynamic call to operator []=. const intptr_t checked_argument_count = 3; const String& name = String::ZoneHandle(Symbols::New(Token::Str(Token::kASSIGN_INDEX))); InstanceCallInstr* store = new InstanceCallInstr(node->token_pos(), name, Token::kASSIGN_INDEX, arguments, Array::ZoneHandle(), checked_argument_count); if (result_is_needed) { Do(store); return BuildLoadExprTemp(); } else { return store; } } } void EffectGraphVisitor::VisitStoreIndexedNode(StoreIndexedNode* node) { ReturnDefinition(BuildStoreIndexedValues(node, kResultNotNeeded)); } void ValueGraphVisitor::VisitStoreIndexedNode(StoreIndexedNode* node) { ReturnDefinition(BuildStoreIndexedValues(node, kResultNeeded)); } bool EffectGraphVisitor::MustSaveRestoreContext(SequenceNode* node) const { return (node == owner()->parsed_function().node_sequence()) && (owner()->parsed_function().saved_entry_context_var() != NULL); } void EffectGraphVisitor::UnchainContext() { InlineBailout("EffectGraphVisitor::UnchainContext (context)"); Value* context = Bind(new CurrentContextInstr()); Value* parent = Bind( new LoadFieldInstr(context, Context::parent_offset(), Type::ZoneHandle())); // Not an instance, no type. AddInstruction(new StoreContextInstr(parent)); } // ::= Sequence { scope: LocalScope // nodes: * // label: SourceLabel } void EffectGraphVisitor::VisitSequenceNode(SequenceNode* node) { LocalScope* scope = node->scope(); const intptr_t num_context_variables = (scope != NULL) ? scope->num_context_variables() : 0; int previous_context_level = owner()->context_level(); if (num_context_variables > 0) { InlineBailout("EffectGraphVisitor::VisitSequenceNode (context)"); // The loop local scope declares variables that are captured. // Allocate and chain a new context. // Allocate context computation (uses current CTX) Value* allocated_context = Bind(new AllocateContextInstr(node->token_pos(), num_context_variables)); // If this node_sequence is the body of the function being compiled, and if // this function allocates context variables, but none of its enclosing // functions do, the context on entry is not linked as parent of the // allocated context but saved on entry and restored on exit as to prevent // memory leaks. // In this case, the parser pre-allocates a variable to save the context. if (MustSaveRestoreContext(node)) { Value* current_context = Bind(new CurrentContextInstr()); Do(BuildStoreTemp(*owner()->parsed_function().saved_entry_context_var(), current_context)); Value* null_context = Bind(new ConstantInstr(Object::ZoneHandle())); AddInstruction(new StoreContextInstr(null_context)); } AddInstruction(new ChainContextInstr(allocated_context)); owner()->set_context_level(scope->context_level()); // If this node_sequence is the body of the function being compiled, copy // the captured parameters from the frame into the context. if (node == owner()->parsed_function().node_sequence()) { ASSERT(scope->context_level() == 1); const Function& function = owner()->parsed_function().function(); int num_params = function.NumParameters(); int param_frame_index = (num_params == function.num_fixed_parameters()) ? (1 + num_params) : ParsedFunction::kFirstLocalSlotIndex; // Handle the saved arguments descriptor as an additional parameter. if (owner()->parsed_function().GetSavedArgumentsDescriptorVar() != NULL) { ASSERT(param_frame_index == ParsedFunction::kFirstLocalSlotIndex); num_params++; } for (int pos = 0; pos < num_params; param_frame_index--, pos++) { const LocalVariable& parameter = *scope->VariableAt(pos); ASSERT(parameter.owner() == scope); if (parameter.is_captured()) { // Create a temporary local describing the original position. const String& temp_name = String::ZoneHandle(String::Concat( parameter.name(), String::Handle(Symbols::New("-orig")))); LocalVariable* temp_local = new LocalVariable( 0, // Token index. temp_name, Type::ZoneHandle(Type::DynamicType())); // Type. temp_local->set_index(param_frame_index); // Copy parameter from local frame to current context. Value* load = Bind(BuildLoadLocal(*temp_local)); Do(BuildStoreLocal(parameter, load, kResultNotNeeded)); // Write NULL to the source location to detect buggy accesses and // allow GC of passed value if it gets overwritten by a new value in // the function. Value* null_constant = Bind(new ConstantInstr(Object::ZoneHandle())); Do(BuildStoreLocal(*temp_local, null_constant, kResultNotNeeded)); } } } } if (FLAG_enable_type_checks && (node == owner()->parsed_function().node_sequence())) { const Function& function = owner()->parsed_function().function(); const int num_params = function.NumParameters(); int pos = 0; if (function.IsConstructor()) { // Skip type checking of receiver and phase for constructor functions. pos = 2; } else if (function.IsFactory() || function.IsDynamicFunction()) { // Skip type checking of type arguments for factory functions. // Skip type checking of receiver for instance functions. pos = 1; } while (pos < num_params) { const LocalVariable& parameter = *scope->VariableAt(pos); ASSERT(parameter.owner() == scope); if (!CanSkipTypeCheck(parameter.token_pos(), NULL, parameter.type(), parameter.name())) { Value* parameter_value = Bind(BuildLoadLocal(parameter)); AssertAssignableInstr* assert_assignable = BuildAssertAssignable(parameter.token_pos(), parameter_value, parameter.type(), parameter.name()); parameter_value = Bind(assert_assignable); // Store the type checked argument back to its corresponding local // variable so that ssa renaming detects the dependency and makes use // of the checked type in type propagation. Do(BuildStoreLocal(parameter, parameter_value, kResultNotNeeded)); } pos++; } } intptr_t i = 0; while (is_open() && (i < node->length())) { EffectGraphVisitor for_effect(owner(), temp_index()); node->NodeAt(i++)->Visit(&for_effect); Append(for_effect); if (!is_open()) { // E.g., because of a JumpNode. break; } } if (is_open()) { if (MustSaveRestoreContext(node)) { ASSERT(num_context_variables > 0); BuildLoadContext(*owner()->parsed_function().saved_entry_context_var()); } else if (num_context_variables > 0) { UnchainContext(); } } // No continue on sequence allowed. ASSERT((node->label() == NULL) || (node->label()->join_for_continue() == NULL)); // If this node sequence is labeled, a break out of the sequence will have // taken care of unchaining the context. if ((node->label() != NULL) && (node->label()->join_for_break() != NULL)) { if (is_open()) Goto(node->label()->join_for_break()); exit_ = node->label()->join_for_break(); } // The outermost function sequence cannot contain a label. ASSERT((node->label() == NULL) || (node != owner()->parsed_function().node_sequence())); owner()->set_context_level(previous_context_level); } void EffectGraphVisitor::VisitCatchClauseNode(CatchClauseNode* node) { InlineBailout("EffectGraphVisitor::VisitCatchClauseNode (exception)"); // NOTE: The implicit variables ':saved_context', ':exception_var' // and ':stacktrace_var' can never be captured variables. // Restores CTX from local variable ':saved_context'. AddInstruction( new CatchEntryInstr(node->exception_var(), node->stacktrace_var())); BuildLoadContext(node->context_var()); EffectGraphVisitor for_catch(owner(), temp_index()); node->VisitChildren(&for_catch); Append(for_catch); } void EffectGraphVisitor::VisitTryCatchNode(TryCatchNode* node) { InlineBailout("EffectGraphVisitor::VisitTryCatchNode (exception)"); intptr_t old_try_index = owner()->try_index(); intptr_t try_index = owner()->AllocateTryIndex(); owner()->set_try_index(try_index); // Preserve CTX into local variable '%saved_context'. BuildStoreContext(node->context_var()); EffectGraphVisitor for_try_block(owner(), temp_index()); node->try_block()->Visit(&for_try_block); if (for_try_block.is_open()) { JoinEntryInstr* after_try = new JoinEntryInstr(owner()->AllocateBlockId(), old_try_index); for_try_block.Goto(after_try); for_try_block.exit_ = after_try; } JoinEntryInstr* try_entry = new JoinEntryInstr(owner()->AllocateBlockId(), try_index); Goto(try_entry); AppendFragment(try_entry, for_try_block); exit_ = for_try_block.exit_; // We are done generating code for the try block. owner()->set_try_index(old_try_index); CatchClauseNode* catch_block = node->catch_block(); if (catch_block != NULL) { // Set the corresponding try index for this catch block so // that we can set the appropriate handler pc when we generate // code for this catch block. catch_block->set_try_index(try_index); EffectGraphVisitor for_catch_block(owner(), temp_index()); catch_block->Visit(&for_catch_block); TargetEntryInstr* catch_entry = new TargetEntryInstr(owner()->AllocateBlockId(), old_try_index); catch_entry->set_catch_try_index(try_index); catch_entry->set_catch_handler_types(catch_block->handler_types()); owner()->AddCatchEntry(catch_entry); ASSERT(!for_catch_block.is_open()); AppendFragment(catch_entry, for_catch_block); if (node->end_catch_label() != NULL) { JoinEntryInstr* join = node->end_catch_label()->join_for_continue(); if (join != NULL) { if (is_open()) Goto(join); exit_ = join; } } } // Generate code for the finally block if one exists. if ((node->finally_block() != NULL) && is_open()) { EffectGraphVisitor for_finally_block(owner(), temp_index()); node->finally_block()->Visit(&for_finally_block); Append(for_finally_block); } } // Looks up dynamic method noSuchMethod in target_class // (including its super class chain) and builds a static call to it. StaticCallInstr* EffectGraphVisitor::BuildStaticNoSuchMethodCall( const Class& target_class, AstNode* receiver, const String& method_name, ArgumentListNode* method_arguments) { // Build the graph to allocate an InvocationMirror object by calling // the static allocation method. const Library& corelib = Library::Handle(Library::CoreLibrary()); const Class& mirror_class = Class::Handle( corelib.LookupClassAllowPrivate(Symbols::InvocationMirror())); ASSERT(!mirror_class.IsNull()); const Function& allocation_function = Function::ZoneHandle( Resolver::ResolveStaticByName( mirror_class, PrivateCoreLibName(Symbols::AllocateInvocationMirror()), Resolver::kIsQualified)); ASSERT(!allocation_function.IsNull()); // Evaluate the receiver before the arguments. This will be used // as an argument to the noSuchMethod call. ValueGraphVisitor for_receiver(owner(), temp_index()); receiver->Visit(&for_receiver); Append(for_receiver); PushArgumentInstr* push_receiver = PushArgument(for_receiver.value()); // Allocate the arguments and pass them into the construction // of the InvocationMirror. const intptr_t args_pos = method_arguments->token_pos(); ArgumentListNode* arguments = new ArgumentListNode(args_pos); // The first argument is the original method name. arguments->Add(new LiteralNode(args_pos, method_name)); // The second argument is the arguments descriptor of the original method. const Array& args_descriptor = Array::ZoneHandle(ArgumentsDescriptor::New(method_arguments->length(), method_arguments->names())); arguments->Add(new LiteralNode(args_pos, args_descriptor)); // The third argument is an array containing the original method arguments, // including the receiver. ArrayNode* args_array = new ArrayNode( args_pos, Type::ZoneHandle(Type::ArrayType()), *owner()->parsed_function().array_literal_var()); for (intptr_t i = 0; i < method_arguments->length(); i++) { args_array->AddElement(method_arguments->NodeAt(i)); } arguments->Add(args_array); ZoneGrowableArray* allocation_args = new ZoneGrowableArray(arguments->length()); BuildPushArguments(*arguments, allocation_args); StaticCallInstr* allocation = new StaticCallInstr(args_pos, allocation_function, Array::ZoneHandle(), allocation_args); Value* invocation_mirror = Bind(allocation); PushArgumentInstr* push_invocation_mirror = PushArgument(invocation_mirror); // Lookup noSuchMethod and call it with the receiver and the InvocationMirror. const Function& no_such_method_func = Function::ZoneHandle( Resolver::ResolveDynamicAnyArgs(target_class, Symbols::NoSuchMethod())); // We are guaranteed to find noSuchMethod of class Object. ASSERT(!no_such_method_func.IsNull()); ZoneGrowableArray* args = new ZoneGrowableArray(2); args->Add(push_receiver); args->Add(push_invocation_mirror); return new StaticCallInstr(args_pos, no_such_method_func, Array::ZoneHandle(), args); } StaticCallInstr* EffectGraphVisitor::BuildThrowNoSuchMethodError( intptr_t token_pos, const Class& function_class, const String& function_name) { ZoneGrowableArray* arguments = new ZoneGrowableArray(); // Object receiver. // TODO(regis): For now, we pass a class literal of the unresolved // method's owner, but this is not specified and will probably change. Type& type = Type::ZoneHandle( Type::New(function_class, TypeArguments::Handle(), token_pos, Heap::kOld)); type ^= ClassFinalizer::FinalizeType( function_class, type, ClassFinalizer::kCanonicalize); Value* receiver_value = Bind(new ConstantInstr(type)); arguments->Add(PushArgument(receiver_value)); // String memberName. const String& member_name = String::ZoneHandle(Symbols::New(function_name)); Value* member_name_value = Bind(new ConstantInstr(member_name)); arguments->Add(PushArgument(member_name_value)); // List arguments. Value* arguments_value = Bind(new ConstantInstr(Array::ZoneHandle())); arguments->Add(PushArgument(arguments_value)); // List argumentNames. Value* argument_names_value = Bind(new ConstantInstr(Array::ZoneHandle())); arguments->Add(PushArgument(argument_names_value)); // List existingArgumentNames. Value* existing_argument_names_value = Bind(new ConstantInstr(Array::ZoneHandle())); arguments->Add(PushArgument(existing_argument_names_value)); // Resolve and call NoSuchMethodError._throwNew. const Library& core_lib = Library::Handle(Library::CoreLibrary()); const Class& cls = Class::Handle( core_lib.LookupClass(Symbols::NoSuchMethodError())); ASSERT(!cls.IsNull()); const Function& func = Function::ZoneHandle( Resolver::ResolveStatic(cls, PrivateCoreLibName(Symbols::ThrowNew()), arguments->length(), Array::ZoneHandle(), Resolver::kIsQualified)); ASSERT(!func.IsNull()); return new StaticCallInstr(token_pos, func, Array::ZoneHandle(), // No names. arguments); } void EffectGraphVisitor::BuildThrowNode(ThrowNode* node) { // TODO(kmillikin) non-local control flow is not handled correctly // by the inliner. InlineBailout("EffectGraphVisitor::BuildThrowNode (exception)"); ValueGraphVisitor for_exception(owner(), temp_index()); node->exception()->Visit(&for_exception); Append(for_exception); PushArgument(for_exception.value()); Instruction* instr = NULL; if (node->stacktrace() == NULL) { instr = new ThrowInstr(node->token_pos()); } else { ValueGraphVisitor for_stack_trace(owner(), temp_index()); node->stacktrace()->Visit(&for_stack_trace); Append(for_stack_trace); PushArgument(for_stack_trace.value()); instr = new ReThrowInstr(node->token_pos()); } AddInstruction(instr); } void EffectGraphVisitor::VisitThrowNode(ThrowNode* node) { BuildThrowNode(node); CloseFragment(); } // A throw cannot be part of an expression, however, the parser may replace // certain expression nodes with a throw. In that case generate a literal null // so that the fragment is not closed in the middle of an expression. void ValueGraphVisitor::VisitThrowNode(ThrowNode* node) { BuildThrowNode(node); ReturnDefinition(new ConstantInstr(Instance::ZoneHandle())); } void EffectGraphVisitor::VisitInlinedFinallyNode(InlinedFinallyNode* node) { InlineBailout("EffectGraphVisitor::VisitInlinedFinallyNode (exception)"); const intptr_t try_index = owner()->try_index(); if (try_index >= 0) { // We are about to generate code for an inlined finally block. Exceptions // thrown in this block of code should be treated as though they are // thrown not from the current try block but the outer try block if any. owner()->set_try_index((try_index - 1)); } BuildLoadContext(node->context_var()); JoinEntryInstr* finally_entry = new JoinEntryInstr(owner()->AllocateBlockId(), owner()->try_index()); EffectGraphVisitor for_finally_block(owner(), temp_index()); node->finally_block()->Visit(&for_finally_block); if (try_index >= 0) { owner()->set_try_index(try_index); } if (for_finally_block.is_open()) { JoinEntryInstr* after_finally = new JoinEntryInstr(owner()->AllocateBlockId(), owner()->try_index()); for_finally_block.Goto(after_finally); for_finally_block.exit_ = after_finally; } Goto(finally_entry); AppendFragment(finally_entry, for_finally_block); exit_ = for_finally_block.exit_; } FlowGraph* FlowGraphBuilder::BuildGraph() { if (FLAG_print_ast) { // Print the function ast before IL generation. AstPrinter::PrintFunctionNodes(parsed_function()); } // Compilation can be nested, preserve the computation-id. const Function& function = parsed_function().function(); TargetEntryInstr* normal_entry = new TargetEntryInstr(AllocateBlockId(), CatchClauseNode::kInvalidTryIndex); graph_entry_ = new GraphEntryInstr(normal_entry); EffectGraphVisitor for_effect(this, 0); // TODO(kmillikin): We can eliminate stack checks in some cases (e.g., the // stack check on entry for leaf routines). Instruction* check = new CheckStackOverflowInstr(function.token_pos()); // If we are inlining don't actually attach the stack check. We must still // create the stack check inorder to allocate a deopt id. if (!InInliningContext()) for_effect.AddInstruction(check); parsed_function().node_sequence()->Visit(&for_effect); AppendFragment(normal_entry, for_effect); // Check that the graph is properly terminated. ASSERT(!for_effect.is_open()); FlowGraph* graph = new FlowGraph(*this, graph_entry_, last_used_block_id_); return graph; } void FlowGraphBuilder::Bailout(const char* reason) { const char* kFormat = "FlowGraphBuilder Bailout: %s %s"; const char* function_name = parsed_function_.function().ToCString(); intptr_t len = OS::SNPrint(NULL, 0, kFormat, function_name, reason) + 1; char* chars = Isolate::Current()->current_zone()->Alloc(len); OS::SNPrint(chars, len, kFormat, function_name, reason); const Error& error = Error::Handle( LanguageError::New(String::Handle(String::New(chars)))); Isolate::Current()->long_jump_base()->Jump(1, error); } } // namespace dart