7976ca2cbc
git-svn-id: http://v8.googlecode.com/svn/branches/bleeding_edge@7271 ce2b1a6d-e550-0410-aec6-3dcde31c8c00
468 lines
16 KiB
C++
468 lines
16 KiB
C++
// Copyright 2010 the V8 project authors. All rights reserved.
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// Redistribution and use in source and binary forms, with or without
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// modification, are permitted provided that the following conditions are
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// met:
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//
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// * Redistributions of source code must retain the above copyright
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// notice, this list of conditions and the following disclaimer.
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// * Redistributions in binary form must reproduce the above
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// copyright notice, this list of conditions and the following
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// disclaimer in the documentation and/or other materials provided
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// with the distribution.
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// * Neither the name of Google Inc. nor the names of its
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// contributors may be used to endorse or promote products derived
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// from this software without specific prior written permission.
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//
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// THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
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// "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
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// LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
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// A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
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// OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
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// SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
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// LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
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// DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
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// THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
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// (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
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// OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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#include "v8.h"
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#include "ast.h"
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#include "compiler.h"
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#include "ic.h"
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#include "macro-assembler.h"
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#include "stub-cache.h"
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#include "type-info.h"
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#include "ic-inl.h"
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#include "objects-inl.h"
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namespace v8 {
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namespace internal {
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TypeInfo TypeInfo::TypeFromValue(Handle<Object> value) {
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TypeInfo info;
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if (value->IsSmi()) {
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info = TypeInfo::Smi();
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} else if (value->IsHeapNumber()) {
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info = TypeInfo::IsInt32Double(HeapNumber::cast(*value)->value())
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? TypeInfo::Integer32()
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: TypeInfo::Double();
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} else if (value->IsString()) {
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info = TypeInfo::String();
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} else {
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info = TypeInfo::Unknown();
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}
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return info;
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}
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STATIC_ASSERT(DEFAULT_STRING_STUB == Code::kNoExtraICState);
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TypeFeedbackOracle::TypeFeedbackOracle(Handle<Code> code,
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Handle<Context> global_context) {
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global_context_ = global_context;
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PopulateMap(code);
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ASSERT(reinterpret_cast<Address>(*dictionary_.location()) != kHandleZapValue);
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}
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Handle<Object> TypeFeedbackOracle::GetInfo(int pos) {
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int entry = dictionary_->FindEntry(pos);
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return entry != NumberDictionary::kNotFound
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? Handle<Object>(dictionary_->ValueAt(entry))
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: Isolate::Current()->factory()->undefined_value();
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}
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bool TypeFeedbackOracle::LoadIsMonomorphic(Property* expr) {
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Handle<Object> map_or_code(GetInfo(expr->position()));
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if (map_or_code->IsMap()) return true;
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if (map_or_code->IsCode()) {
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Handle<Code> code(Code::cast(*map_or_code));
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return code->kind() == Code::KEYED_EXTERNAL_ARRAY_LOAD_IC &&
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code->FindFirstMap() != NULL;
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}
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return false;
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}
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bool TypeFeedbackOracle::StoreIsMonomorphic(Assignment* expr) {
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Handle<Object> map_or_code(GetInfo(expr->position()));
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if (map_or_code->IsMap()) return true;
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if (map_or_code->IsCode()) {
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Handle<Code> code(Code::cast(*map_or_code));
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return code->kind() == Code::KEYED_EXTERNAL_ARRAY_STORE_IC &&
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code->FindFirstMap() != NULL;
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}
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return false;
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}
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bool TypeFeedbackOracle::CallIsMonomorphic(Call* expr) {
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Handle<Object> value = GetInfo(expr->position());
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return value->IsMap() || value->IsSmi();
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}
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Handle<Map> TypeFeedbackOracle::LoadMonomorphicReceiverType(Property* expr) {
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ASSERT(LoadIsMonomorphic(expr));
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Handle<Object> map_or_code(
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Handle<HeapObject>::cast(GetInfo(expr->position())));
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if (map_or_code->IsCode()) {
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Handle<Code> code(Code::cast(*map_or_code));
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return Handle<Map>(code->FindFirstMap());
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}
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return Handle<Map>(Map::cast(*map_or_code));
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}
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Handle<Map> TypeFeedbackOracle::StoreMonomorphicReceiverType(Assignment* expr) {
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ASSERT(StoreIsMonomorphic(expr));
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Handle<HeapObject> map_or_code(
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Handle<HeapObject>::cast(GetInfo(expr->position())));
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if (map_or_code->IsCode()) {
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Handle<Code> code(Code::cast(*map_or_code));
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return Handle<Map>(code->FindFirstMap());
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}
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return Handle<Map>(Map::cast(*map_or_code));
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}
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ZoneMapList* TypeFeedbackOracle::LoadReceiverTypes(Property* expr,
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Handle<String> name) {
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Code::Flags flags = Code::ComputeMonomorphicFlags(Code::LOAD_IC, NORMAL);
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return CollectReceiverTypes(expr->position(), name, flags);
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}
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ZoneMapList* TypeFeedbackOracle::StoreReceiverTypes(Assignment* expr,
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Handle<String> name) {
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Code::Flags flags = Code::ComputeMonomorphicFlags(Code::STORE_IC, NORMAL);
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return CollectReceiverTypes(expr->position(), name, flags);
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}
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ZoneMapList* TypeFeedbackOracle::CallReceiverTypes(Call* expr,
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Handle<String> name) {
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int arity = expr->arguments()->length();
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// Note: these flags won't let us get maps from stubs with
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// non-default extra ic state in the megamorphic case. In the more
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// important monomorphic case the map is obtained directly, so it's
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// not a problem until we decide to emit more polymorphic code.
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Code::Flags flags = Code::ComputeMonomorphicFlags(Code::CALL_IC,
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NORMAL,
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Code::kNoExtraICState,
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OWN_MAP,
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NOT_IN_LOOP,
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arity);
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return CollectReceiverTypes(expr->position(), name, flags);
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}
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CheckType TypeFeedbackOracle::GetCallCheckType(Call* expr) {
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Handle<Object> value = GetInfo(expr->position());
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if (!value->IsSmi()) return RECEIVER_MAP_CHECK;
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CheckType check = static_cast<CheckType>(Smi::cast(*value)->value());
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ASSERT(check != RECEIVER_MAP_CHECK);
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return check;
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}
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ExternalArrayType TypeFeedbackOracle::GetKeyedLoadExternalArrayType(
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Property* expr) {
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Handle<Object> stub = GetInfo(expr->position());
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ASSERT(stub->IsCode());
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return Code::cast(*stub)->external_array_type();
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}
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ExternalArrayType TypeFeedbackOracle::GetKeyedStoreExternalArrayType(
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Assignment* expr) {
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Handle<Object> stub = GetInfo(expr->position());
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ASSERT(stub->IsCode());
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return Code::cast(*stub)->external_array_type();
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}
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Handle<JSObject> TypeFeedbackOracle::GetPrototypeForPrimitiveCheck(
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CheckType check) {
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JSFunction* function = NULL;
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switch (check) {
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case RECEIVER_MAP_CHECK:
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UNREACHABLE();
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break;
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case STRING_CHECK:
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function = global_context_->string_function();
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break;
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case NUMBER_CHECK:
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function = global_context_->number_function();
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break;
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case BOOLEAN_CHECK:
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function = global_context_->boolean_function();
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break;
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}
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ASSERT(function != NULL);
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return Handle<JSObject>(JSObject::cast(function->instance_prototype()));
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}
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bool TypeFeedbackOracle::LoadIsBuiltin(Property* expr, Builtins::Name id) {
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return *GetInfo(expr->position()) ==
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Isolate::Current()->builtins()->builtin(id);
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}
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TypeInfo TypeFeedbackOracle::CompareType(CompareOperation* expr) {
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Handle<Object> object = GetInfo(expr->position());
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TypeInfo unknown = TypeInfo::Unknown();
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if (!object->IsCode()) return unknown;
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Handle<Code> code = Handle<Code>::cast(object);
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if (!code->is_compare_ic_stub()) return unknown;
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CompareIC::State state = static_cast<CompareIC::State>(code->compare_state());
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switch (state) {
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case CompareIC::UNINITIALIZED:
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// Uninitialized means never executed.
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// TODO(fschneider): Introduce a separate value for never-executed ICs.
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return unknown;
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case CompareIC::SMIS:
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return TypeInfo::Smi();
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case CompareIC::HEAP_NUMBERS:
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return TypeInfo::Number();
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case CompareIC::OBJECTS:
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// TODO(kasperl): We really need a type for JS objects here.
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return TypeInfo::NonPrimitive();
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case CompareIC::GENERIC:
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default:
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return unknown;
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}
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}
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TypeInfo TypeFeedbackOracle::BinaryType(BinaryOperation* expr) {
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Handle<Object> object = GetInfo(expr->position());
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TypeInfo unknown = TypeInfo::Unknown();
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if (!object->IsCode()) return unknown;
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Handle<Code> code = Handle<Code>::cast(object);
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if (code->is_binary_op_stub()) {
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BinaryOpIC::TypeInfo type = static_cast<BinaryOpIC::TypeInfo>(
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code->binary_op_type());
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switch (type) {
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case BinaryOpIC::UNINIT_OR_SMI:
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return TypeInfo::Smi();
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case BinaryOpIC::DEFAULT:
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return (expr->op() == Token::DIV || expr->op() == Token::MUL)
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? TypeInfo::Double()
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: TypeInfo::Integer32();
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case BinaryOpIC::HEAP_NUMBERS:
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return TypeInfo::Double();
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default:
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return unknown;
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}
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} else if (code->is_type_recording_binary_op_stub()) {
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TRBinaryOpIC::TypeInfo type = static_cast<TRBinaryOpIC::TypeInfo>(
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code->type_recording_binary_op_type());
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TRBinaryOpIC::TypeInfo result_type = static_cast<TRBinaryOpIC::TypeInfo>(
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code->type_recording_binary_op_result_type());
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switch (type) {
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case TRBinaryOpIC::UNINITIALIZED:
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// Uninitialized means never executed.
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// TODO(fschneider): Introduce a separate value for never-executed ICs
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return unknown;
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case TRBinaryOpIC::SMI:
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switch (result_type) {
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case TRBinaryOpIC::UNINITIALIZED:
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case TRBinaryOpIC::SMI:
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return TypeInfo::Smi();
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case TRBinaryOpIC::INT32:
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return TypeInfo::Integer32();
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case TRBinaryOpIC::HEAP_NUMBER:
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return TypeInfo::Double();
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default:
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return unknown;
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}
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case TRBinaryOpIC::INT32:
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if (expr->op() == Token::DIV ||
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result_type == TRBinaryOpIC::HEAP_NUMBER) {
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return TypeInfo::Double();
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}
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return TypeInfo::Integer32();
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case TRBinaryOpIC::HEAP_NUMBER:
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return TypeInfo::Double();
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case TRBinaryOpIC::STRING:
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case TRBinaryOpIC::GENERIC:
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return unknown;
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default:
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return unknown;
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}
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}
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return unknown;
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}
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TypeInfo TypeFeedbackOracle::SwitchType(CaseClause* clause) {
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Handle<Object> object = GetInfo(clause->position());
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TypeInfo unknown = TypeInfo::Unknown();
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if (!object->IsCode()) return unknown;
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Handle<Code> code = Handle<Code>::cast(object);
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if (!code->is_compare_ic_stub()) return unknown;
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CompareIC::State state = static_cast<CompareIC::State>(code->compare_state());
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switch (state) {
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case CompareIC::UNINITIALIZED:
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// Uninitialized means never executed.
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// TODO(fschneider): Introduce a separate value for never-executed ICs.
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return unknown;
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case CompareIC::SMIS:
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return TypeInfo::Smi();
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case CompareIC::HEAP_NUMBERS:
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return TypeInfo::Number();
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case CompareIC::OBJECTS:
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// TODO(kasperl): We really need a type for JS objects here.
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return TypeInfo::NonPrimitive();
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case CompareIC::GENERIC:
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default:
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return unknown;
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}
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}
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ZoneMapList* TypeFeedbackOracle::CollectReceiverTypes(int position,
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Handle<String> name,
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Code::Flags flags) {
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Isolate* isolate = Isolate::Current();
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Handle<Object> object = GetInfo(position);
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if (object->IsUndefined() || object->IsSmi()) return NULL;
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if (*object == isolate->builtins()->builtin(Builtins::StoreIC_GlobalProxy)) {
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// TODO(fschneider): We could collect the maps and signal that
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// we need a generic store (or load) here.
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ASSERT(Handle<Code>::cast(object)->ic_state() == MEGAMORPHIC);
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return NULL;
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} else if (object->IsMap()) {
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ZoneMapList* types = new ZoneMapList(1);
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types->Add(Handle<Map>::cast(object));
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return types;
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} else if (Handle<Code>::cast(object)->ic_state() == MEGAMORPHIC) {
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ZoneMapList* types = new ZoneMapList(4);
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ASSERT(object->IsCode());
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isolate->stub_cache()->CollectMatchingMaps(types, *name, flags);
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return types->length() > 0 ? types : NULL;
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} else {
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return NULL;
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}
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}
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void TypeFeedbackOracle::PopulateMap(Handle<Code> code) {
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Isolate* isolate = Isolate::Current();
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HandleScope scope(isolate);
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const int kInitialCapacity = 16;
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List<int> code_positions(kInitialCapacity);
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List<int> source_positions(kInitialCapacity);
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CollectPositions(*code, &code_positions, &source_positions);
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ASSERT(dictionary_.is_null()); // Only initialize once.
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dictionary_ = isolate->factory()->NewNumberDictionary(
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code_positions.length());
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int length = code_positions.length();
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ASSERT(source_positions.length() == length);
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for (int i = 0; i < length; i++) {
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HandleScope loop_scope(isolate);
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RelocInfo info(code->instruction_start() + code_positions[i],
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RelocInfo::CODE_TARGET, 0);
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Handle<Code> target(Code::GetCodeFromTargetAddress(info.target_address()));
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int position = source_positions[i];
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InlineCacheState state = target->ic_state();
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Code::Kind kind = target->kind();
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Handle<Object> value;
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if (kind == Code::BINARY_OP_IC ||
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kind == Code::TYPE_RECORDING_BINARY_OP_IC ||
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kind == Code::COMPARE_IC) {
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// TODO(kasperl): Avoid having multiple ICs with the same
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// position by making sure that we have position information
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// recorded for all binary ICs.
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int entry = dictionary_->FindEntry(position);
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if (entry == NumberDictionary::kNotFound) {
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value = target;
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}
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} else if (state == MONOMORPHIC) {
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if (kind == Code::KEYED_EXTERNAL_ARRAY_LOAD_IC ||
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kind == Code::KEYED_EXTERNAL_ARRAY_STORE_IC) {
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value = target;
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} else if (target->kind() != Code::CALL_IC ||
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target->check_type() == RECEIVER_MAP_CHECK) {
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Map* map = target->FindFirstMap();
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if (map == NULL) {
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value = target;
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} else {
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value = Handle<Map>(map);
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}
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} else {
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ASSERT(target->kind() == Code::CALL_IC);
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CheckType check = target->check_type();
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ASSERT(check != RECEIVER_MAP_CHECK);
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value = Handle<Object>(Smi::FromInt(check));
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}
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} else if (state == MEGAMORPHIC) {
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value = target;
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}
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if (!value.is_null()) {
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Handle<NumberDictionary> new_dict =
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isolate->factory()->DictionaryAtNumberPut(
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dictionary_, position, value);
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dictionary_ = loop_scope.CloseAndEscape(new_dict);
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}
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}
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// Allocate handle in the parent scope.
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dictionary_ = scope.CloseAndEscape(dictionary_);
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}
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void TypeFeedbackOracle::CollectPositions(Code* code,
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List<int>* code_positions,
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List<int>* source_positions) {
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AssertNoAllocation no_allocation;
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int position = 0;
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// Because the ICs we use for global variables access in the full
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// code generator do not have any meaningful positions, we avoid
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// collecting those by filtering out contextual code targets.
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int mask = RelocInfo::ModeMask(RelocInfo::CODE_TARGET) |
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RelocInfo::kPositionMask;
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for (RelocIterator it(code, mask); !it.done(); it.next()) {
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RelocInfo* info = it.rinfo();
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RelocInfo::Mode mode = info->rmode();
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if (RelocInfo::IsCodeTarget(mode)) {
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Code* target = Code::GetCodeFromTargetAddress(info->target_address());
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if (target->is_inline_cache_stub()) {
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InlineCacheState state = target->ic_state();
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Code::Kind kind = target->kind();
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if (kind == Code::BINARY_OP_IC) {
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if (target->binary_op_type() == BinaryOpIC::GENERIC) continue;
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} else if (kind == Code::TYPE_RECORDING_BINARY_OP_IC) {
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if (target->type_recording_binary_op_type() ==
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TRBinaryOpIC::GENERIC) {
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continue;
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}
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} else if (kind == Code::COMPARE_IC) {
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if (target->compare_state() == CompareIC::GENERIC) continue;
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} else {
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if (state != MONOMORPHIC && state != MEGAMORPHIC) continue;
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}
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code_positions->Add(
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static_cast<int>(info->pc() - code->instruction_start()));
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source_positions->Add(position);
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}
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} else {
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ASSERT(RelocInfo::IsPosition(mode));
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position = static_cast<int>(info->data());
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}
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}
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}
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} } // namespace v8::internal
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