76ab55e3d3
When --harmony-async-iteration is enabled, it is now possible to use the for-await-of loop, which uses the Async Iteration protocol rather than the ordinary ES6 Iteration protocol. the Async-from-Sync Iterator object is not implemented in this CL, and so for-await-of loops will abort execution if the iterated object does not have a Symbol.asyncIterator() method. Async-from-Sync Iterators are implemented seperately in https://codereview.chromium.org/2645313003/ BUG=v8:5855, v8:4483 R=neis@chromium.org, littledan@chromium.org, adamk@chromium.org Review-Url: https://codereview.chromium.org/2637403008 Cr-Commit-Position: refs/heads/master@{#43224}
769 lines
27 KiB
C++
769 lines
27 KiB
C++
// Copyright 2015 the V8 project authors. All rights reserved.
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// Use of this source code is governed by a BSD-style license that can be
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// found in the LICENSE file.
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#include "src/ast/ast.h"
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#include "src/messages.h"
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#include "src/objects-inl.h"
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#include "src/parsing/parameter-initializer-rewriter.h"
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#include "src/parsing/parser.h"
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namespace v8 {
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namespace internal {
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void Parser::PatternRewriter::DeclareAndInitializeVariables(
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Parser* parser, Block* block,
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const DeclarationDescriptor* declaration_descriptor,
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const DeclarationParsingResult::Declaration* declaration,
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ZoneList<const AstRawString*>* names, bool* ok) {
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PatternRewriter rewriter;
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DCHECK(block->ignore_completion_value());
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rewriter.scope_ = declaration_descriptor->scope;
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rewriter.parser_ = parser;
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rewriter.context_ = BINDING;
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rewriter.pattern_ = declaration->pattern;
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rewriter.initializer_position_ = declaration->initializer_position;
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rewriter.block_ = block;
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rewriter.descriptor_ = declaration_descriptor;
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rewriter.names_ = names;
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rewriter.ok_ = ok;
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rewriter.recursion_level_ = 0;
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rewriter.RecurseIntoSubpattern(rewriter.pattern_, declaration->initializer);
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}
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void Parser::PatternRewriter::RewriteDestructuringAssignment(
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Parser* parser, RewritableExpression* to_rewrite, Scope* scope) {
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DCHECK(!scope->HasBeenRemoved());
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DCHECK(!to_rewrite->is_rewritten());
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bool ok = true;
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PatternRewriter rewriter;
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rewriter.scope_ = scope;
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rewriter.parser_ = parser;
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rewriter.context_ = ASSIGNMENT;
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rewriter.pattern_ = to_rewrite;
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rewriter.block_ = nullptr;
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rewriter.descriptor_ = nullptr;
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rewriter.names_ = nullptr;
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rewriter.ok_ = &ok;
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rewriter.recursion_level_ = 0;
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rewriter.RecurseIntoSubpattern(rewriter.pattern_, nullptr);
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DCHECK(ok);
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}
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Expression* Parser::PatternRewriter::RewriteDestructuringAssignment(
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Parser* parser, Assignment* assignment, Scope* scope) {
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DCHECK_NOT_NULL(assignment);
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DCHECK_EQ(Token::ASSIGN, assignment->op());
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auto to_rewrite = parser->factory()->NewRewritableExpression(assignment);
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RewriteDestructuringAssignment(parser, to_rewrite, scope);
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return to_rewrite->expression();
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}
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Parser::PatternRewriter::PatternContext
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Parser::PatternRewriter::SetAssignmentContextIfNeeded(Expression* node) {
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PatternContext old_context = context();
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// AssignmentExpressions may occur in the Initializer position of a
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// SingleNameBinding. Such expressions should not prompt a change in the
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// pattern's context.
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if (node->IsAssignment() && node->AsAssignment()->op() == Token::ASSIGN &&
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!IsInitializerContext()) {
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set_context(ASSIGNMENT);
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}
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return old_context;
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}
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Parser::PatternRewriter::PatternContext
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Parser::PatternRewriter::SetInitializerContextIfNeeded(Expression* node) {
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// Set appropriate initializer context for BindingElement and
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// AssignmentElement nodes
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PatternContext old_context = context();
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bool is_destructuring_assignment =
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node->IsRewritableExpression() &&
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!node->AsRewritableExpression()->is_rewritten();
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bool is_assignment =
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node->IsAssignment() && node->AsAssignment()->op() == Token::ASSIGN;
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if (is_destructuring_assignment || is_assignment) {
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switch (old_context) {
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case BINDING:
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set_context(INITIALIZER);
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break;
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case ASSIGNMENT:
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set_context(ASSIGNMENT_INITIALIZER);
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break;
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default:
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break;
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}
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}
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return old_context;
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}
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void Parser::PatternRewriter::VisitVariableProxy(VariableProxy* pattern) {
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Expression* value = current_value_;
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if (IsAssignmentContext()) {
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// In an assignment context, simply perform the assignment
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Assignment* assignment = factory()->NewAssignment(
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Token::ASSIGN, pattern, value, pattern->position());
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block_->statements()->Add(
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factory()->NewExpressionStatement(assignment, pattern->position()),
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zone());
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return;
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}
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descriptor_->scope->RemoveUnresolved(pattern);
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// Declare variable.
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// Note that we *always* must treat the initial value via a separate init
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// assignment for variables and constants because the value must be assigned
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// when the variable is encountered in the source. But the variable/constant
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// is declared (and set to 'undefined') upon entering the function within
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// which the variable or constant is declared. Only function variables have
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// an initial value in the declaration (because they are initialized upon
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// entering the function).
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const AstRawString* name = pattern->raw_name();
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VariableProxy* proxy =
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factory()->NewVariableProxy(name, NORMAL_VARIABLE, pattern->position());
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Declaration* declaration = factory()->NewVariableDeclaration(
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proxy, descriptor_->scope, descriptor_->declaration_pos);
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// When an extra declaration scope needs to be inserted to account for
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// a sloppy eval in a default parameter or function body, the parameter
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// needs to be declared in the function's scope, not in the varblock
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// scope which will be used for the initializer expression.
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Scope* outer_function_scope = nullptr;
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if (DeclaresParameterContainingSloppyEval()) {
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outer_function_scope = descriptor_->scope->outer_scope();
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}
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Variable* var = parser_->Declare(
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declaration, descriptor_->declaration_kind, descriptor_->mode,
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Variable::DefaultInitializationFlag(descriptor_->mode), ok_,
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outer_function_scope);
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if (!*ok_) return;
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DCHECK_NOT_NULL(var);
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DCHECK(proxy->is_resolved());
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DCHECK(initializer_position_ != kNoSourcePosition);
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var->set_initializer_position(initializer_position_);
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Scope* declaration_scope =
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outer_function_scope != nullptr
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? outer_function_scope
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: (IsLexicalVariableMode(descriptor_->mode)
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? descriptor_->scope
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: descriptor_->scope->GetDeclarationScope());
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if (declaration_scope->num_var() > kMaxNumFunctionLocals) {
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parser_->ReportMessage(MessageTemplate::kTooManyVariables);
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*ok_ = false;
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return;
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}
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if (names_) {
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names_->Add(name, zone());
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}
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// If there's no initializer, we're done.
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if (value == nullptr) return;
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Scope* var_init_scope = descriptor_->scope;
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MarkLoopVariableAsAssigned(var_init_scope, proxy->var());
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// A declaration of the form:
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//
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// var v = x;
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//
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// is syntactic sugar for:
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//
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// var v; v = x;
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//
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// In particular, we need to re-lookup 'v' as it may be a different
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// 'v' than the 'v' in the declaration (e.g., if we are inside a
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// 'with' statement or 'catch' block). Global var declarations
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// also need special treatment.
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if (descriptor_->mode == VAR && var_init_scope->is_script_scope()) {
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// Global variable declarations must be compiled in a specific
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// way. When the script containing the global variable declaration
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// is entered, the global variable must be declared, so that if it
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// doesn't exist (on the global object itself, see ES5 errata) it
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// gets created with an initial undefined value. This is handled
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// by the declarations part of the function representing the
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// top-level global code; see Runtime::DeclareGlobalVariable. If
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// it already exists (in the object or in a prototype), it is
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// *not* touched until the variable declaration statement is
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// executed.
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//
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// Executing the variable declaration statement will always
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// guarantee to give the global object an own property.
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// This way, global variable declarations can shadow
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// properties in the prototype chain, but only after the variable
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// declaration statement has been executed. This is important in
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// browsers where the global object (window) has lots of
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// properties defined in prototype objects.
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ZoneList<Expression*>* arguments =
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new (zone()) ZoneList<Expression*>(3, zone());
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arguments->Add(
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factory()->NewStringLiteral(name, descriptor_->declaration_pos),
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zone());
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arguments->Add(factory()->NewNumberLiteral(var_init_scope->language_mode(),
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kNoSourcePosition),
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zone());
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arguments->Add(value, zone());
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CallRuntime* initialize = factory()->NewCallRuntime(
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Runtime::kInitializeVarGlobal, arguments, value->position());
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block_->statements()->Add(
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factory()->NewExpressionStatement(initialize, initialize->position()),
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zone());
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} else {
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// For 'let' and 'const' declared variables the initialization always
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// assigns to the declared variable.
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// But for var declarations we need to do a new lookup.
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if (descriptor_->mode == VAR) {
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proxy = var_init_scope->NewUnresolved(factory(), name);
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} else {
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DCHECK_NOT_NULL(proxy);
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DCHECK_NOT_NULL(proxy->var());
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}
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// Add break location for destructured sub-pattern.
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int pos = IsSubPattern() ? pattern->position() : value->position();
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Assignment* assignment =
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factory()->NewAssignment(Token::INIT, proxy, value, pos);
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block_->statements()->Add(
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factory()->NewExpressionStatement(assignment, pos), zone());
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}
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}
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Variable* Parser::PatternRewriter::CreateTempVar(Expression* value) {
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auto temp = scope()->NewTemporary(ast_value_factory()->empty_string());
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if (value != nullptr) {
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auto assignment = factory()->NewAssignment(
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Token::ASSIGN, factory()->NewVariableProxy(temp), value,
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kNoSourcePosition);
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block_->statements()->Add(
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factory()->NewExpressionStatement(assignment, kNoSourcePosition),
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zone());
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}
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return temp;
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}
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void Parser::PatternRewriter::VisitRewritableExpression(
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RewritableExpression* node) {
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// If this is not a destructuring assignment...
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if (!IsAssignmentContext()) {
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// Mark the node as rewritten to prevent redundant rewriting, and
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// perform BindingPattern rewriting
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DCHECK(!node->is_rewritten());
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node->Rewrite(node->expression());
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return Visit(node->expression());
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} else if (!node->expression()->IsAssignment()) {
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return Visit(node->expression());
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}
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if (node->is_rewritten()) return;
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DCHECK(IsAssignmentContext());
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Assignment* assign = node->expression()->AsAssignment();
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DCHECK_NOT_NULL(assign);
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DCHECK_EQ(Token::ASSIGN, assign->op());
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auto initializer = assign->value();
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auto value = initializer;
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if (IsInitializerContext()) {
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// let {<pattern> = <init>} = <value>
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// becomes
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// temp = <value>;
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// <pattern> = temp === undefined ? <init> : temp;
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auto temp_var = CreateTempVar(current_value_);
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Expression* is_undefined = factory()->NewCompareOperation(
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Token::EQ_STRICT, factory()->NewVariableProxy(temp_var),
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factory()->NewUndefinedLiteral(kNoSourcePosition), kNoSourcePosition);
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value = factory()->NewConditional(is_undefined, initializer,
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factory()->NewVariableProxy(temp_var),
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kNoSourcePosition);
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}
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PatternContext old_context = SetAssignmentContextIfNeeded(initializer);
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int pos = assign->position();
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Block* old_block = block_;
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block_ = factory()->NewBlock(nullptr, 8, true, pos);
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Variable* temp = nullptr;
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Expression* pattern = assign->target();
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Expression* old_value = current_value_;
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current_value_ = value;
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if (pattern->IsObjectLiteral()) {
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VisitObjectLiteral(pattern->AsObjectLiteral(), &temp);
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} else {
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DCHECK(pattern->IsArrayLiteral());
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VisitArrayLiteral(pattern->AsArrayLiteral(), &temp);
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}
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DCHECK_NOT_NULL(temp);
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current_value_ = old_value;
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Expression* expr = factory()->NewDoExpression(block_, temp, pos);
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node->Rewrite(expr);
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block_ = old_block;
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if (block_) {
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block_->statements()->Add(factory()->NewExpressionStatement(expr, pos),
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zone());
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}
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set_context(old_context);
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}
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bool Parser::PatternRewriter::DeclaresParameterContainingSloppyEval() const {
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// Need to check for a binding context to make sure we have a descriptor.
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if (IsBindingContext() &&
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// Only relevant for parameters.
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descriptor_->declaration_kind == DeclarationDescriptor::PARAMETER &&
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// And only when scope is a block scope;
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// without eval, it is a function scope.
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scope()->is_block_scope()) {
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DCHECK(scope()->calls_sloppy_eval());
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DCHECK(scope()->is_declaration_scope());
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DCHECK(scope()->outer_scope()->is_function_scope());
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return true;
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}
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return false;
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}
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// When an extra declaration scope needs to be inserted to account for
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// a sloppy eval in a default parameter or function body, the expressions
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// needs to be in that new inner scope which was added after initial
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// parsing.
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void Parser::PatternRewriter::RewriteParameterScopes(Expression* expr) {
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if (DeclaresParameterContainingSloppyEval()) {
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ReparentParameterExpressionScope(parser_->stack_limit(), expr, scope());
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}
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}
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void Parser::PatternRewriter::VisitObjectLiteral(ObjectLiteral* pattern,
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Variable** temp_var) {
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auto temp = *temp_var = CreateTempVar(current_value_);
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ZoneList<Expression*>* rest_runtime_callargs = nullptr;
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if (pattern->has_rest_property()) {
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// non_rest_properties_count = pattern->properties()->length - 1;
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// args_length = 1 + non_rest_properties_count because we need to
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// pass temp as well to the runtime function.
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int args_length = pattern->properties()->length();
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rest_runtime_callargs =
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new (zone()) ZoneList<Expression*>(args_length, zone());
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rest_runtime_callargs->Add(factory()->NewVariableProxy(temp), zone());
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}
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block_->statements()->Add(parser_->BuildAssertIsCoercible(temp), zone());
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for (ObjectLiteralProperty* property : *pattern->properties()) {
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PatternContext context = SetInitializerContextIfNeeded(property->value());
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Expression* value;
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if (property->kind() == ObjectLiteralProperty::Kind::SPREAD) {
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// var { y, [x++]: a, ...c } = temp
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// becomes
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// var y = temp.y;
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// var temp1 = %ToName(x++);
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// var a = temp[temp1];
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// var c;
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// c = %CopyDataPropertiesWithExcludedProperties(temp, "y", temp1);
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value = factory()->NewCallRuntime(
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Runtime::kCopyDataPropertiesWithExcludedProperties,
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rest_runtime_callargs, kNoSourcePosition);
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} else {
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Expression* key = property->key();
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if (!key->IsLiteral()) {
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// Computed property names contain expressions which might require
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// scope rewriting.
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RewriteParameterScopes(key);
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}
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if (pattern->has_rest_property()) {
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Expression* excluded_property = key;
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if (property->is_computed_name()) {
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DCHECK(!key->IsPropertyName() || !key->IsNumberLiteral());
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auto args = new (zone()) ZoneList<Expression*>(1, zone());
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args->Add(key, zone());
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auto to_name_key = CreateTempVar(factory()->NewCallRuntime(
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Runtime::kToName, args, kNoSourcePosition));
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key = factory()->NewVariableProxy(to_name_key);
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excluded_property = factory()->NewVariableProxy(to_name_key);
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} else {
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DCHECK(key->IsPropertyName() || key->IsNumberLiteral());
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}
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DCHECK(rest_runtime_callargs != nullptr);
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rest_runtime_callargs->Add(excluded_property, zone());
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}
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value = factory()->NewProperty(factory()->NewVariableProxy(temp), key,
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kNoSourcePosition);
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}
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RecurseIntoSubpattern(property->value(), value);
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set_context(context);
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}
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}
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void Parser::PatternRewriter::VisitObjectLiteral(ObjectLiteral* node) {
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Variable* temp_var = nullptr;
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VisitObjectLiteral(node, &temp_var);
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}
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void Parser::PatternRewriter::VisitArrayLiteral(ArrayLiteral* node,
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Variable** temp_var) {
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DCHECK(block_->ignore_completion_value());
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auto temp = *temp_var = CreateTempVar(current_value_);
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auto iterator = CreateTempVar(
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factory()->NewGetIterator(factory()->NewVariableProxy(temp),
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IteratorType::kNormal, kNoSourcePosition));
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auto done =
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CreateTempVar(factory()->NewBooleanLiteral(false, kNoSourcePosition));
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auto result = CreateTempVar();
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auto v = CreateTempVar();
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auto completion = CreateTempVar();
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auto nopos = kNoSourcePosition;
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// For the purpose of iterator finalization, we temporarily set block_ to a
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// new block. In the main body of this function, we write to block_ (both
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// explicitly and implicitly via recursion). At the end of the function, we
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// wrap this new block in a try-finally statement, restore block_ to its
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// original value, and add the try-finally statement to block_.
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auto target = block_;
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block_ = factory()->NewBlock(nullptr, 8, true, nopos);
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Spread* spread = nullptr;
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for (Expression* value : *node->values()) {
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if (value->IsSpread()) {
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spread = value->AsSpread();
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break;
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}
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PatternContext context = SetInitializerContextIfNeeded(value);
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// if (!done) {
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// done = true; // If .next, .done or .value throws, don't close.
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// result = IteratorNext(iterator);
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// if (result.done) {
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// v = undefined;
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// } else {
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// v = result.value;
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// done = false;
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// }
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// }
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Statement* if_not_done;
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{
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auto result_done = factory()->NewProperty(
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factory()->NewVariableProxy(result),
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factory()->NewStringLiteral(ast_value_factory()->done_string(),
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kNoSourcePosition),
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kNoSourcePosition);
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auto assign_undefined = factory()->NewAssignment(
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Token::ASSIGN, factory()->NewVariableProxy(v),
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factory()->NewUndefinedLiteral(kNoSourcePosition), kNoSourcePosition);
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auto assign_value = factory()->NewAssignment(
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Token::ASSIGN, factory()->NewVariableProxy(v),
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factory()->NewProperty(
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factory()->NewVariableProxy(result),
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factory()->NewStringLiteral(ast_value_factory()->value_string(),
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kNoSourcePosition),
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kNoSourcePosition),
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kNoSourcePosition);
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auto unset_done = factory()->NewAssignment(
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Token::ASSIGN, factory()->NewVariableProxy(done),
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factory()->NewBooleanLiteral(false, kNoSourcePosition),
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kNoSourcePosition);
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auto inner_else =
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factory()->NewBlock(nullptr, 2, true, kNoSourcePosition);
|
|
inner_else->statements()->Add(
|
|
factory()->NewExpressionStatement(assign_value, nopos), zone());
|
|
inner_else->statements()->Add(
|
|
factory()->NewExpressionStatement(unset_done, nopos), zone());
|
|
|
|
auto inner_if = factory()->NewIfStatement(
|
|
result_done,
|
|
factory()->NewExpressionStatement(assign_undefined, nopos),
|
|
inner_else, nopos);
|
|
|
|
auto next_block =
|
|
factory()->NewBlock(nullptr, 3, true, kNoSourcePosition);
|
|
next_block->statements()->Add(
|
|
factory()->NewExpressionStatement(
|
|
factory()->NewAssignment(
|
|
Token::ASSIGN, factory()->NewVariableProxy(done),
|
|
factory()->NewBooleanLiteral(true, nopos), nopos),
|
|
nopos),
|
|
zone());
|
|
next_block->statements()->Add(
|
|
factory()->NewExpressionStatement(
|
|
parser_->BuildIteratorNextResult(
|
|
factory()->NewVariableProxy(iterator), result,
|
|
IteratorType::kNormal, kNoSourcePosition),
|
|
kNoSourcePosition),
|
|
zone());
|
|
next_block->statements()->Add(inner_if, zone());
|
|
|
|
if_not_done = factory()->NewIfStatement(
|
|
factory()->NewUnaryOperation(
|
|
Token::NOT, factory()->NewVariableProxy(done), kNoSourcePosition),
|
|
next_block, factory()->NewEmptyStatement(kNoSourcePosition),
|
|
kNoSourcePosition);
|
|
}
|
|
block_->statements()->Add(if_not_done, zone());
|
|
|
|
if (!(value->IsLiteral() && value->AsLiteral()->raw_value()->IsTheHole())) {
|
|
{
|
|
// completion = kAbruptCompletion;
|
|
Expression* proxy = factory()->NewVariableProxy(completion);
|
|
Expression* assignment = factory()->NewAssignment(
|
|
Token::ASSIGN, proxy,
|
|
factory()->NewSmiLiteral(kAbruptCompletion, nopos), nopos);
|
|
block_->statements()->Add(
|
|
factory()->NewExpressionStatement(assignment, nopos), zone());
|
|
}
|
|
|
|
RecurseIntoSubpattern(value, factory()->NewVariableProxy(v));
|
|
|
|
{
|
|
// completion = kNormalCompletion;
|
|
Expression* proxy = factory()->NewVariableProxy(completion);
|
|
Expression* assignment = factory()->NewAssignment(
|
|
Token::ASSIGN, proxy,
|
|
factory()->NewSmiLiteral(kNormalCompletion, nopos), nopos);
|
|
block_->statements()->Add(
|
|
factory()->NewExpressionStatement(assignment, nopos), zone());
|
|
}
|
|
}
|
|
set_context(context);
|
|
}
|
|
|
|
if (spread != nullptr) {
|
|
// A spread can only occur as the last component. It is not handled by
|
|
// RecurseIntoSubpattern above.
|
|
|
|
// let array = [];
|
|
// while (!done) {
|
|
// done = true; // If .next, .done or .value throws, don't close.
|
|
// result = IteratorNext(iterator);
|
|
// if (!result.done) {
|
|
// %AppendElement(array, result.value);
|
|
// done = false;
|
|
// }
|
|
// }
|
|
|
|
// let array = [];
|
|
Variable* array;
|
|
{
|
|
auto empty_exprs = new (zone()) ZoneList<Expression*>(0, zone());
|
|
array = CreateTempVar(
|
|
factory()->NewArrayLiteral(empty_exprs, kNoSourcePosition));
|
|
}
|
|
|
|
// done = true;
|
|
Statement* set_done = factory()->NewExpressionStatement(
|
|
factory()->NewAssignment(
|
|
Token::ASSIGN, factory()->NewVariableProxy(done),
|
|
factory()->NewBooleanLiteral(true, nopos), nopos),
|
|
nopos);
|
|
|
|
// result = IteratorNext(iterator);
|
|
Statement* get_next = factory()->NewExpressionStatement(
|
|
parser_->BuildIteratorNextResult(factory()->NewVariableProxy(iterator),
|
|
result, IteratorType::kNormal, nopos),
|
|
nopos);
|
|
|
|
// %AppendElement(array, result.value);
|
|
Statement* append_element;
|
|
{
|
|
auto args = new (zone()) ZoneList<Expression*>(2, zone());
|
|
args->Add(factory()->NewVariableProxy(array), zone());
|
|
args->Add(factory()->NewProperty(
|
|
factory()->NewVariableProxy(result),
|
|
factory()->NewStringLiteral(
|
|
ast_value_factory()->value_string(), nopos),
|
|
nopos),
|
|
zone());
|
|
append_element = factory()->NewExpressionStatement(
|
|
factory()->NewCallRuntime(Runtime::kAppendElement, args, nopos),
|
|
nopos);
|
|
}
|
|
|
|
// done = false;
|
|
Statement* unset_done = factory()->NewExpressionStatement(
|
|
factory()->NewAssignment(
|
|
Token::ASSIGN, factory()->NewVariableProxy(done),
|
|
factory()->NewBooleanLiteral(false, nopos), nopos),
|
|
nopos);
|
|
|
|
// if (!result.done) { #append_element; #unset_done }
|
|
Statement* maybe_append_and_unset_done;
|
|
{
|
|
Expression* result_done =
|
|
factory()->NewProperty(factory()->NewVariableProxy(result),
|
|
factory()->NewStringLiteral(
|
|
ast_value_factory()->done_string(), nopos),
|
|
nopos);
|
|
|
|
Block* then = factory()->NewBlock(nullptr, 2, true, nopos);
|
|
then->statements()->Add(append_element, zone());
|
|
then->statements()->Add(unset_done, zone());
|
|
|
|
maybe_append_and_unset_done = factory()->NewIfStatement(
|
|
factory()->NewUnaryOperation(Token::NOT, result_done, nopos), then,
|
|
factory()->NewEmptyStatement(nopos), nopos);
|
|
}
|
|
|
|
// while (!done) {
|
|
// #set_done;
|
|
// #get_next;
|
|
// #maybe_append_and_unset_done;
|
|
// }
|
|
WhileStatement* loop = factory()->NewWhileStatement(nullptr, nopos);
|
|
{
|
|
Expression* condition = factory()->NewUnaryOperation(
|
|
Token::NOT, factory()->NewVariableProxy(done), nopos);
|
|
Block* body = factory()->NewBlock(nullptr, 3, true, nopos);
|
|
body->statements()->Add(set_done, zone());
|
|
body->statements()->Add(get_next, zone());
|
|
body->statements()->Add(maybe_append_and_unset_done, zone());
|
|
loop->Initialize(condition, body);
|
|
}
|
|
|
|
block_->statements()->Add(loop, zone());
|
|
RecurseIntoSubpattern(spread->expression(),
|
|
factory()->NewVariableProxy(array));
|
|
}
|
|
|
|
Expression* closing_condition = factory()->NewUnaryOperation(
|
|
Token::NOT, factory()->NewVariableProxy(done), nopos);
|
|
|
|
parser_->FinalizeIteratorUse(scope(), completion, closing_condition, iterator,
|
|
block_, target, IteratorType::kNormal);
|
|
block_ = target;
|
|
}
|
|
|
|
|
|
void Parser::PatternRewriter::VisitArrayLiteral(ArrayLiteral* node) {
|
|
Variable* temp_var = nullptr;
|
|
VisitArrayLiteral(node, &temp_var);
|
|
}
|
|
|
|
|
|
void Parser::PatternRewriter::VisitAssignment(Assignment* node) {
|
|
// let {<pattern> = <init>} = <value>
|
|
// becomes
|
|
// temp = <value>;
|
|
// <pattern> = temp === undefined ? <init> : temp;
|
|
DCHECK_EQ(Token::ASSIGN, node->op());
|
|
|
|
auto initializer = node->value();
|
|
auto value = initializer;
|
|
auto temp = CreateTempVar(current_value_);
|
|
|
|
if (IsInitializerContext()) {
|
|
Expression* is_undefined = factory()->NewCompareOperation(
|
|
Token::EQ_STRICT, factory()->NewVariableProxy(temp),
|
|
factory()->NewUndefinedLiteral(kNoSourcePosition), kNoSourcePosition);
|
|
value = factory()->NewConditional(is_undefined, initializer,
|
|
factory()->NewVariableProxy(temp),
|
|
kNoSourcePosition);
|
|
}
|
|
|
|
// Initializer may have been parsed in the wrong scope.
|
|
RewriteParameterScopes(initializer);
|
|
|
|
PatternContext old_context = SetAssignmentContextIfNeeded(initializer);
|
|
RecurseIntoSubpattern(node->target(), value);
|
|
set_context(old_context);
|
|
}
|
|
|
|
|
|
// =============== AssignmentPattern only ==================
|
|
|
|
void Parser::PatternRewriter::VisitProperty(v8::internal::Property* node) {
|
|
DCHECK(IsAssignmentContext());
|
|
auto value = current_value_;
|
|
|
|
Assignment* assignment =
|
|
factory()->NewAssignment(Token::ASSIGN, node, value, node->position());
|
|
|
|
block_->statements()->Add(
|
|
factory()->NewExpressionStatement(assignment, kNoSourcePosition), zone());
|
|
}
|
|
|
|
|
|
// =============== UNREACHABLE =============================
|
|
|
|
#define NOT_A_PATTERN(Node) \
|
|
void Parser::PatternRewriter::Visit##Node(v8::internal::Node*) { \
|
|
UNREACHABLE(); \
|
|
}
|
|
|
|
NOT_A_PATTERN(BinaryOperation)
|
|
NOT_A_PATTERN(Block)
|
|
NOT_A_PATTERN(BreakStatement)
|
|
NOT_A_PATTERN(Call)
|
|
NOT_A_PATTERN(CallNew)
|
|
NOT_A_PATTERN(CallRuntime)
|
|
NOT_A_PATTERN(CaseClause)
|
|
NOT_A_PATTERN(ClassLiteral)
|
|
NOT_A_PATTERN(CompareOperation)
|
|
NOT_A_PATTERN(Conditional)
|
|
NOT_A_PATTERN(ContinueStatement)
|
|
NOT_A_PATTERN(CountOperation)
|
|
NOT_A_PATTERN(DebuggerStatement)
|
|
NOT_A_PATTERN(DoExpression)
|
|
NOT_A_PATTERN(DoWhileStatement)
|
|
NOT_A_PATTERN(EmptyStatement)
|
|
NOT_A_PATTERN(EmptyParentheses)
|
|
NOT_A_PATTERN(ExpressionStatement)
|
|
NOT_A_PATTERN(ForInStatement)
|
|
NOT_A_PATTERN(ForOfStatement)
|
|
NOT_A_PATTERN(ForStatement)
|
|
NOT_A_PATTERN(FunctionDeclaration)
|
|
NOT_A_PATTERN(FunctionLiteral)
|
|
NOT_A_PATTERN(GetIterator)
|
|
NOT_A_PATTERN(IfStatement)
|
|
NOT_A_PATTERN(Literal)
|
|
NOT_A_PATTERN(NativeFunctionLiteral)
|
|
NOT_A_PATTERN(RegExpLiteral)
|
|
NOT_A_PATTERN(ReturnStatement)
|
|
NOT_A_PATTERN(SloppyBlockFunctionStatement)
|
|
NOT_A_PATTERN(Spread)
|
|
NOT_A_PATTERN(SuperPropertyReference)
|
|
NOT_A_PATTERN(SuperCallReference)
|
|
NOT_A_PATTERN(SwitchStatement)
|
|
NOT_A_PATTERN(ThisFunction)
|
|
NOT_A_PATTERN(Throw)
|
|
NOT_A_PATTERN(TryCatchStatement)
|
|
NOT_A_PATTERN(TryFinallyStatement)
|
|
NOT_A_PATTERN(UnaryOperation)
|
|
NOT_A_PATTERN(VariableDeclaration)
|
|
NOT_A_PATTERN(WhileStatement)
|
|
NOT_A_PATTERN(WithStatement)
|
|
NOT_A_PATTERN(Yield)
|
|
|
|
#undef NOT_A_PATTERN
|
|
} // namespace internal
|
|
} // namespace v8
|