f56b0f6907
Size: flutter_gallery total size -2.48% (arm), -2.3% (arm64) flutter_gallery instructions size -2.91% (arm), -2.77% (arm64) velocity_tracker_bench total size -7.5% (arm), -7.1% (arm64) Performance: SkeletalAnimation +46.02% (Intel Core i5), +37.75% (Intel Xeon), +24.86% (arm), +39.75% (arm64). FfiMemory.Pointer* +44-64% (x64) FfiMemory.PointerPointer +436-465% (x64), +443% (arm64). Issue: https://github.com/dart-lang/sdk/issues/37710 Change-Id: I6221bfa02b165ccc17d4ee8b857bb89212febaff Reviewed-on: https://dart-review.googlesource.com/c/sdk/+/125936 Reviewed-by: Régis Crelier <regis@google.com> Reviewed-by: Martin Kustermann <kustermann@google.com> Commit-Queue: Alexander Markov <alexmarkov@google.com>
336 lines
12 KiB
C++
336 lines
12 KiB
C++
// Copyright (c) 2012, the Dart project authors. Please see the AUTHORS file
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// for details. All rights reserved. Use of this source code is governed by a
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// BSD-style license that can be found in the LICENSE file.
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#include "vm/parser.h"
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#include "vm/flags.h"
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#ifndef DART_PRECOMPILED_RUNTIME
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#include "lib/invocation_mirror.h"
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#include "platform/utils.h"
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#include "vm/bit_vector.h"
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#include "vm/bootstrap.h"
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#include "vm/class_finalizer.h"
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#include "vm/compiler/aot/precompiler.h"
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#include "vm/compiler/backend/il_printer.h"
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#include "vm/compiler/frontend/scope_builder.h"
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#include "vm/compiler/jit/compiler.h"
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#include "vm/dart_api_impl.h"
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#include "vm/dart_entry.h"
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#include "vm/growable_array.h"
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#include "vm/handles.h"
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#include "vm/hash_table.h"
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#include "vm/heap/heap.h"
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#include "vm/heap/safepoint.h"
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#include "vm/isolate.h"
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#include "vm/longjump.h"
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#include "vm/native_arguments.h"
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#include "vm/native_entry.h"
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#include "vm/object.h"
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#include "vm/object_store.h"
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#include "vm/os.h"
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#include "vm/regexp_assembler.h"
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#include "vm/resolver.h"
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#include "vm/scopes.h"
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#include "vm/stack_frame.h"
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#include "vm/symbols.h"
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#include "vm/tags.h"
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#include "vm/timeline.h"
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#include "vm/zone.h"
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namespace dart {
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// Quick access to the current thread, isolate and zone.
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#define T (thread())
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#define I (isolate())
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#define Z (zone())
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ParsedFunction::ParsedFunction(Thread* thread, const Function& function)
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: thread_(thread),
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function_(function),
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code_(Code::Handle(zone(), function.unoptimized_code())),
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scope_(NULL),
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regexp_compile_data_(NULL),
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function_type_arguments_(NULL),
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parent_type_arguments_(NULL),
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current_context_var_(NULL),
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arg_desc_var_(NULL),
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expression_temp_var_(NULL),
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entry_points_temp_var_(NULL),
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finally_return_temp_var_(NULL),
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guarded_fields_(new ZoneGrowableArray<const Field*>()),
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default_parameter_values_(NULL),
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raw_type_arguments_var_(NULL),
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first_parameter_index_(),
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num_stack_locals_(0),
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have_seen_await_expr_(false),
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kernel_scopes_(NULL),
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default_function_type_arguments_(TypeArguments::ZoneHandle(zone())) {
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ASSERT(function.IsZoneHandle());
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// Every function has a local variable for the current context.
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LocalVariable* temp = new (zone())
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LocalVariable(function.token_pos(), function.token_pos(),
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Symbols::CurrentContextVar(), Object::dynamic_type());
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current_context_var_ = temp;
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const bool reify_generic_argument = function.IsGeneric();
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const bool load_optional_arguments = function.HasOptionalParameters();
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const bool check_arguments =
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function_.IsClosureFunction() || function.IsFfiTrampoline();
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const bool need_argument_descriptor =
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load_optional_arguments || check_arguments || reify_generic_argument;
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if (need_argument_descriptor) {
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arg_desc_var_ = new (zone())
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LocalVariable(TokenPosition::kNoSource, TokenPosition::kNoSource,
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Symbols::ArgDescVar(), Object::dynamic_type());
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}
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}
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void ParsedFunction::AddToGuardedFields(const Field* field) const {
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if ((field->guarded_cid() == kDynamicCid) ||
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(field->guarded_cid() == kIllegalCid)) {
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return;
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}
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for (intptr_t j = 0; j < guarded_fields_->length(); j++) {
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const Field* other = (*guarded_fields_)[j];
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if (field->Original() == other->Original()) {
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// Abort background compilation early if the guarded state of this field
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// has changed during compilation. We will not be able to commit
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// the resulting code anyway.
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if (Compiler::IsBackgroundCompilation()) {
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if (!other->IsConsistentWith(*field)) {
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Compiler::AbortBackgroundCompilation(
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DeoptId::kNone,
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"Field's guarded state changed during compilation");
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}
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}
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return;
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}
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}
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// Note: the list of guarded fields must contain copies during background
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// compilation because we will look at their guarded_cid when copying
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// the array of guarded fields from callee into the caller during
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// inlining.
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ASSERT(!field->IsOriginal() || Thread::Current()->IsMutatorThread());
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guarded_fields_->Add(&Field::ZoneHandle(Z, field->raw()));
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}
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void ParsedFunction::Bailout(const char* origin, const char* reason) const {
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Report::MessageF(Report::kBailout, Script::Handle(function_.script()),
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function_.token_pos(), Report::AtLocation,
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"%s Bailout in %s: %s", origin,
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String::Handle(function_.name()).ToCString(), reason);
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UNREACHABLE();
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}
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kernel::ScopeBuildingResult* ParsedFunction::EnsureKernelScopes() {
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if (kernel_scopes_ == NULL) {
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kernel::ScopeBuilder builder(this);
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kernel_scopes_ = builder.BuildScopes();
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}
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return kernel_scopes_;
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}
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LocalVariable* ParsedFunction::EnsureExpressionTemp() {
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if (!has_expression_temp_var()) {
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LocalVariable* temp =
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new (Z) LocalVariable(function_.token_pos(), function_.token_pos(),
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Symbols::ExprTemp(), Object::dynamic_type());
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ASSERT(temp != NULL);
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set_expression_temp_var(temp);
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}
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ASSERT(has_expression_temp_var());
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return expression_temp_var();
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}
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LocalVariable* ParsedFunction::EnsureEntryPointsTemp() {
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if (!has_entry_points_temp_var()) {
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LocalVariable* temp = new (Z)
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LocalVariable(function_.token_pos(), function_.token_pos(),
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Symbols::EntryPointsTemp(), Object::dynamic_type());
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ASSERT(temp != NULL);
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set_entry_points_temp_var(temp);
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}
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ASSERT(has_entry_points_temp_var());
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return entry_points_temp_var();
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}
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void ParsedFunction::EnsureFinallyReturnTemp(bool is_async) {
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if (!has_finally_return_temp_var()) {
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LocalVariable* temp =
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new (Z) LocalVariable(function_.token_pos(), function_.token_pos(),
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Symbols::FinallyRetVal(), Object::dynamic_type());
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ASSERT(temp != NULL);
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temp->set_is_final();
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if (is_async) {
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temp->set_is_captured();
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}
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set_finally_return_temp_var(temp);
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}
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ASSERT(has_finally_return_temp_var());
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}
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void ParsedFunction::SetRegExpCompileData(
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RegExpCompileData* regexp_compile_data) {
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ASSERT(regexp_compile_data_ == NULL);
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ASSERT(regexp_compile_data != NULL);
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regexp_compile_data_ = regexp_compile_data;
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}
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void ParsedFunction::AllocateVariables() {
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ASSERT(!function().IsIrregexpFunction());
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LocalScope* scope = this->scope();
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const intptr_t num_fixed_params = function().num_fixed_parameters();
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const intptr_t num_opt_params = function().NumOptionalParameters();
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const intptr_t num_params = num_fixed_params + num_opt_params;
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// Before we start allocating indices to variables, we'll setup the
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// parameters array, which can be used to access the raw parameters (i.e. not
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// the potentially variables which are in the context)
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raw_parameters_ = new (Z) ZoneGrowableArray<LocalVariable*>(Z, num_params);
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for (intptr_t param = 0; param < num_params; ++param) {
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LocalVariable* variable = ParameterVariable(param);
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LocalVariable* raw_parameter = variable;
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if (variable->is_captured()) {
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String& tmp = String::ZoneHandle(Z);
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tmp = Symbols::FromConcat(T, Symbols::OriginalParam(), variable->name());
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RELEASE_ASSERT(scope->LocalLookupVariable(tmp) == NULL);
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raw_parameter = new LocalVariable(
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variable->declaration_token_pos(), variable->token_pos(), tmp,
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variable->type(), variable->parameter_type(),
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variable->parameter_value());
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if (variable->is_explicit_covariant_parameter()) {
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raw_parameter->set_is_explicit_covariant_parameter();
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}
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raw_parameter->set_type_check_mode(variable->type_check_mode());
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if (function().HasOptionalParameters()) {
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bool ok = scope->AddVariable(raw_parameter);
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ASSERT(ok);
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// Currently our optimizer cannot prove liveness of variables properly
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// when a function has try/catch. It therefore makes the conservative
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// estimate that all [LocalVariable]s in the frame are live and spills
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// them before call sites (in some shape or form).
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//
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// Since we are guaranteed to not need that, we tell the try/catch
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// spilling mechanism not to care about this variable.
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raw_parameter->set_is_captured_parameter(true);
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} else {
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raw_parameter->set_index(
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VariableIndex(function().NumParameters() - param));
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}
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}
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raw_parameters_->Add(raw_parameter);
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}
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if (function_type_arguments_ != NULL) {
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LocalVariable* raw_type_args_parameter = function_type_arguments_;
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if (function_type_arguments_->is_captured()) {
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String& tmp = String::ZoneHandle(Z);
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tmp = Symbols::FromConcat(T, Symbols::OriginalParam(),
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function_type_arguments_->name());
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ASSERT(scope->LocalLookupVariable(tmp) == NULL);
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raw_type_args_parameter =
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new LocalVariable(raw_type_args_parameter->declaration_token_pos(),
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raw_type_args_parameter->token_pos(), tmp,
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raw_type_args_parameter->type());
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bool ok = scope->AddVariable(raw_type_args_parameter);
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ASSERT(ok);
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}
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raw_type_arguments_var_ = raw_type_args_parameter;
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}
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// The copy parameters implementation will still write to local variables
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// which we assign indices as with the old CopyParams implementation.
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VariableIndex parameter_index_start;
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VariableIndex reamining_local_variables_start;
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{
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// Compute start indices to parameters and locals, and the number of
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// parameters to copy.
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if (num_opt_params == 0) {
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parameter_index_start = first_parameter_index_ =
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VariableIndex(num_params);
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reamining_local_variables_start = VariableIndex(0);
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} else {
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parameter_index_start = first_parameter_index_ = VariableIndex(0);
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reamining_local_variables_start = VariableIndex(-num_params);
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}
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}
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if (function_type_arguments_ != NULL && num_opt_params > 0) {
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reamining_local_variables_start =
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VariableIndex(reamining_local_variables_start.value() - 1);
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}
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// Allocate parameters and local variables, either in the local frame or
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// in the context(s).
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bool found_captured_variables = false;
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VariableIndex first_local_index =
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VariableIndex(parameter_index_start.value() > 0 ? 0 : -num_params);
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VariableIndex next_free_index = scope->AllocateVariables(
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parameter_index_start, num_params, first_local_index, NULL,
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&found_captured_variables);
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num_stack_locals_ = -next_free_index.value();
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}
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void ParsedFunction::AllocateIrregexpVariables(intptr_t num_stack_locals) {
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ASSERT(function().IsIrregexpFunction());
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ASSERT(function().NumOptionalParameters() == 0);
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const intptr_t num_params = function().num_fixed_parameters();
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ASSERT(num_params == RegExpMacroAssembler::kParamCount);
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// Compute start indices to parameters and locals, and the number of
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// parameters to copy.
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first_parameter_index_ = VariableIndex(num_params);
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// Frame indices are relative to the frame pointer and are decreasing.
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num_stack_locals_ = num_stack_locals;
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}
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void ParsedFunction::AllocateBytecodeVariables(intptr_t num_stack_locals) {
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ASSERT(!function().IsIrregexpFunction());
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first_parameter_index_ = VariableIndex(function().num_fixed_parameters());
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num_stack_locals_ = num_stack_locals;
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}
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void ParsedFunction::SetCovariantParameters(
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const BitVector* covariant_parameters) {
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ASSERT(covariant_parameters_ == nullptr);
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ASSERT(covariant_parameters->length() == function_.NumParameters());
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covariant_parameters_ = covariant_parameters;
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}
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void ParsedFunction::SetGenericCovariantImplParameters(
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const BitVector* generic_covariant_impl_parameters) {
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ASSERT(generic_covariant_impl_parameters_ == nullptr);
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ASSERT(generic_covariant_impl_parameters->length() ==
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function_.NumParameters());
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generic_covariant_impl_parameters_ = generic_covariant_impl_parameters;
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}
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bool ParsedFunction::IsCovariantParameter(intptr_t i) const {
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ASSERT(covariant_parameters_ != nullptr);
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ASSERT((i >= 0) && (i < function_.NumParameters()));
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return covariant_parameters_->Contains(i);
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}
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bool ParsedFunction::IsGenericCovariantImplParameter(intptr_t i) const {
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ASSERT(generic_covariant_impl_parameters_ != nullptr);
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ASSERT((i >= 0) && (i < function_.NumParameters()));
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return generic_covariant_impl_parameters_->Contains(i);
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}
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} // namespace dart
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#endif // DART_PRECOMPILED_RUNTIME
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