bbb463ac20
Now basically only Program (with ~no children) persists. BUG= R=kmillikin@google.com Review-Url: https://codereview.chromium.org/2931773005 .
335 lines
8.6 KiB
C++
335 lines
8.6 KiB
C++
// Copyright (c) 2017, the Dart project authors. Please see the AUTHORS file
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// for details. All rights reserved. Use of this source code is governed by a
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// BSD-style license that can be found in the LICENSE file.
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#ifndef RUNTIME_VM_KERNEL_BINARY_H_
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#define RUNTIME_VM_KERNEL_BINARY_H_
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#if !defined(DART_PRECOMPILED_RUNTIME)
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#include <map>
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#include "vm/kernel.h"
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#include "vm/kernel_to_il.h"
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#include "vm/object.h"
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namespace dart {
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namespace kernel {
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static const uint32_t kMagicProgramFile = 0x90ABCDEFu;
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// Keep in sync with package:dynamo/lib/binary/tag.dart
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enum Tag {
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kNothing = 0,
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kSomething = 1,
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kClass = 2,
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kFunctionNode = 3,
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kField = 4,
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kConstructor = 5,
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kProcedure = 6,
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kInvalidInitializer = 7,
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kFieldInitializer = 8,
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kSuperInitializer = 9,
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kRedirectingInitializer = 10,
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kLocalInitializer = 11,
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kDirectPropertyGet = 15,
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kDirectPropertySet = 16,
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kDirectMethodInvocation = 17,
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kConstStaticInvocation = 18,
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kInvalidExpression = 19,
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kVariableGet = 20,
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kVariableSet = 21,
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kPropertyGet = 22,
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kPropertySet = 23,
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kSuperPropertyGet = 24,
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kSuperPropertySet = 25,
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kStaticGet = 26,
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kStaticSet = 27,
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kMethodInvocation = 28,
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kSuperMethodInvocation = 29,
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kStaticInvocation = 30,
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kConstructorInvocation = 31,
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kConstConstructorInvocation = 32,
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kNot = 33,
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kLogicalExpression = 34,
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kConditionalExpression = 35,
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kStringConcatenation = 36,
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kIsExpression = 37,
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kAsExpression = 38,
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kStringLiteral = 39,
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kDoubleLiteral = 40,
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kTrueLiteral = 41,
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kFalseLiteral = 42,
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kNullLiteral = 43,
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kSymbolLiteral = 44,
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kTypeLiteral = 45,
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kThisExpression = 46,
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kRethrow = 47,
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kThrow = 48,
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kListLiteral = 49,
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kMapLiteral = 50,
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kAwaitExpression = 51,
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kFunctionExpression = 52,
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kLet = 53,
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kPositiveIntLiteral = 55,
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kNegativeIntLiteral = 56,
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kBigIntLiteral = 57,
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kConstListLiteral = 58,
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kConstMapLiteral = 59,
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kInvalidStatement = 60,
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kExpressionStatement = 61,
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kBlock = 62,
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kEmptyStatement = 63,
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kAssertStatement = 64,
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kLabeledStatement = 65,
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kBreakStatement = 66,
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kWhileStatement = 67,
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kDoStatement = 68,
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kForStatement = 69,
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kForInStatement = 70,
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kSwitchStatement = 71,
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kContinueSwitchStatement = 72,
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kIfStatement = 73,
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kReturnStatement = 74,
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kTryCatch = 75,
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kTryFinally = 76,
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kYieldStatement = 77,
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kVariableDeclaration = 78,
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kFunctionDeclaration = 79,
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kAsyncForInStatement = 80,
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kTypedefType = 87,
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kVectorType = 88,
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kBottomType = 89,
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kInvalidType = 90,
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kDynamicType = 91,
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kVoidType = 92,
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kInterfaceType = 93,
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kFunctionType = 94,
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kTypeParameterType = 95,
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kSimpleInterfaceType = 96,
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kSimpleFunctionType = 97,
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kVectorCreation = 102,
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kVectorGet = 103,
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kVectorSet = 104,
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kVectorCopy = 105,
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kClosureCreation = 106,
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kSpecializedTagHighBit = 0x80, // 10000000
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kSpecializedTagMask = 0xF8, // 11111000
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kSpecializedPayloadMask = 0x7, // 00000111
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kSpecializedVariableGet = 128,
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kSpecializedVariableSet = 136,
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kSpecialIntLiteral = 144,
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};
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static const int SpecializedIntLiteralBias = 3;
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class Reader {
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public:
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Reader(const uint8_t* buffer, intptr_t size)
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: buffer_(buffer), size_(size), offset_(0) {}
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uint32_t ReadUInt32() {
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ASSERT(offset_ + 4 <= size_);
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uint32_t value = (buffer_[offset_ + 0] << 24) |
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(buffer_[offset_ + 1] << 16) |
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(buffer_[offset_ + 2] << 8) | (buffer_[offset_ + 3] << 0);
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offset_ += 4;
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return value;
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}
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uint32_t ReadUInt() {
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ASSERT(offset_ + 1 <= size_);
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uint8_t byte0 = buffer_[offset_];
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if ((byte0 & 0x80) == 0) {
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// 0...
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offset_++;
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return byte0;
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} else if ((byte0 & 0xc0) == 0x80) {
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// 10...
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ASSERT(offset_ + 2 <= size_);
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uint32_t value = ((byte0 & ~0x80) << 8) | (buffer_[offset_ + 1]);
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offset_ += 2;
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return value;
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} else {
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// 11...
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ASSERT(offset_ + 4 <= size_);
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uint32_t value = ((byte0 & ~0xc0) << 24) | (buffer_[offset_ + 1] << 16) |
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(buffer_[offset_ + 2] << 8) |
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(buffer_[offset_ + 3] << 0);
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offset_ += 4;
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return value;
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}
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}
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/**
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* Read and return a TokenPosition from this reader.
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* @param record specifies whether or not the read position is saved as a
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* valid token position in the current script.
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* If not be sure to record it later by calling record_token_position (after
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* setting the correct current_script_id).
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*/
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TokenPosition ReadPosition() {
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// Position is saved as unsigned,
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// but actually ranges from -1 and up (thus the -1)
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intptr_t value = ReadUInt() - 1;
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TokenPosition result = TokenPosition(value);
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max_position_ = Utils::Maximum(max_position_, result);
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if (min_position_.IsNoSource()) {
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min_position_ = result;
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} else if (result.IsReal()) {
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min_position_ = Utils::Minimum(min_position_, result);
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}
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return result;
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}
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intptr_t ReadListLength() { return ReadUInt(); }
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uint8_t ReadByte() { return buffer_[offset_++]; }
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uint8_t PeekByte() { return buffer_[offset_]; }
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bool ReadBool() { return (ReadByte() & 1) == 1; }
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word ReadFlags() { return ReadByte(); }
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Tag ReadTag(uint8_t* payload = NULL) {
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uint8_t byte = ReadByte();
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bool has_payload = (byte & kSpecializedTagHighBit) != 0;
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if (has_payload) {
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if (payload != NULL) {
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*payload = byte & kSpecializedPayloadMask;
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}
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return static_cast<Tag>(byte & kSpecializedTagMask);
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} else {
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return static_cast<Tag>(byte);
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}
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}
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Tag PeekTag(uint8_t* payload = NULL) {
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uint8_t byte = PeekByte();
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bool has_payload = (byte & kSpecializedTagHighBit) != 0;
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if (has_payload) {
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if (payload != NULL) {
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*payload = byte & kSpecializedPayloadMask;
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}
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return static_cast<Tag>(byte & kSpecializedTagMask);
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} else {
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return static_cast<Tag>(byte);
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}
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}
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const uint8_t* Consume(int count) {
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ASSERT(offset_ + count <= size_);
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const uint8_t* old = buffer_ + offset_;
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offset_ += count;
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return old;
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}
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void EnsureEnd() {
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if (offset_ != size_) {
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FATAL2(
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"Reading Kernel file: Expected to be at EOF "
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"(offset: %" Pd ", size: %" Pd ")",
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offset_, size_);
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}
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}
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// The largest position read yet (since last reset).
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// This is automatically updated when calling ReadPosition,
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// but can be overwritten (e.g. via the PositionScope class).
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TokenPosition max_position() { return max_position_; }
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// The smallest position read yet (since last reset).
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// This is automatically updated when calling ReadPosition,
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// but can be overwritten (e.g. via the PositionScope class).
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TokenPosition min_position() { return min_position_; }
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template <typename T, typename RT>
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T* ReadOptional() {
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Tag tag = ReadTag();
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if (tag == kNothing) {
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return NULL;
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}
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ASSERT(tag == kSomething);
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return RT::ReadFrom(this);
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}
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template <typename T>
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T* ReadOptional() {
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return ReadOptional<T, T>();
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}
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// A canonical name reference of -1 indicates none (for optional names), not
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// the root name as in the canonical name table.
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NameIndex ReadCanonicalNameReference() { return NameIndex(ReadUInt() - 1); }
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intptr_t offset() { return offset_; }
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void set_offset(intptr_t offset) { offset_ = offset; }
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intptr_t size() { return size_; }
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const uint8_t* buffer() { return buffer_; }
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private:
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const uint8_t* buffer_;
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intptr_t size_;
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intptr_t offset_;
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TokenPosition max_position_;
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TokenPosition min_position_;
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intptr_t current_script_id_;
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friend class PositionScope;
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friend class Program;
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};
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// A helper class that resets the readers min and max positions both upon
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// initialization and upon destruction, i.e. when created the min an max
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// positions will be reset to "noSource", when destructing the min and max will
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// be reset to have they value they would have had, if they hadn't been reset in
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// the first place.
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class PositionScope {
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public:
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explicit PositionScope(Reader* reader)
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: reader_(reader),
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min_(reader->min_position_),
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max_(reader->max_position_) {
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reader->min_position_ = reader->max_position_ = TokenPosition::kNoSource;
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}
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~PositionScope() {
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if (reader_->min_position_.IsNoSource()) {
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reader_->min_position_ = min_;
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} else if (min_.IsReal()) {
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reader_->min_position_ = Utils::Minimum(reader_->min_position_, min_);
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}
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reader_->max_position_ = Utils::Maximum(reader_->max_position_, max_);
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}
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private:
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Reader* reader_;
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TokenPosition min_;
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TokenPosition max_;
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};
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} // namespace kernel
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} // namespace dart
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#endif // !defined(DART_PRECOMPILED_RUNTIME)
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#endif // RUNTIME_VM_KERNEL_BINARY_H_
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