14f6276945
Devirtualization optimization now adds metadata to kernel AST instead of transforming nodes to Direct* ones. The direct call metadata provides information about checking receiver for null, while Direct* kernel nodes do not support null checking. VM's kernel binary loader is extended to extract arbitrary metadata from kernel binaries and keep it for flow graph builder. Kernel flow graph builder is extended to take direct call metadata into account and generate CheckNull/StaticCall instructions for devirtualized PropertyGet, PropertySet and MethodInvocation nodes. Issue: https://github.com/dart-lang/sdk/issues/30480 Change-Id: I57f56fbf4a8981d33b1571c0d93105cf8ca71d76 Reviewed-on: https://dart-review.googlesource.com/12260 Reviewed-by: Vyacheslav Egorov <vegorov@google.com>
369 lines
10 KiB
C++
369 lines
10 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/compiler/frontend/kernel_to_il.h"
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#include "vm/kernel.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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static const int LibraryCountFieldCountFromEnd = 1;
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static const int SourceTableFieldCountFromFirstLibraryOffset = 3;
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static const int MetadataPayloadOffset = 4; // Right after 'magic'.
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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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: raw_buffer_(buffer), typed_data_(NULL), size_(size), offset_(0) {}
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explicit Reader(const TypedData& typed_data)
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: raw_buffer_(NULL),
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typed_data_(&typed_data),
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size_(typed_data.IsNull() ? 0 : typed_data.Length()),
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offset_(0) {}
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uint32_t ReadFromIndex(intptr_t end_offset,
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intptr_t fields_before,
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intptr_t list_size,
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intptr_t list_index) {
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intptr_t org_offset = offset();
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uint32_t result =
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ReadFromIndexNoReset(end_offset, fields_before, list_size, list_index);
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set_offset(org_offset);
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return result;
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}
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uint32_t ReadUInt32At(intptr_t offset) {
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set_offset(offset);
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return ReadUInt32();
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}
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uint32_t ReadFromIndexNoReset(intptr_t end_offset,
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intptr_t fields_before,
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intptr_t list_size,
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intptr_t list_index) {
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return ReadUInt32At(end_offset -
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(fields_before + list_size - list_index) * 4);
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}
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uint32_t ReadUInt32() {
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ASSERT((size_ >= 4) && (offset_ >= 0) && (offset_ <= size_ - 4));
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const uint8_t* buffer = this->buffer();
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uint32_t value = (buffer[offset_ + 0] << 24) | (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((size_ >= 1) && (offset_ >= 0) && (offset_ <= size_ - 1));
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const uint8_t* buffer = this->buffer();
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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((size_ >= 2) && (offset_ >= 0) && (offset_ <= size_ - 2));
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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((size_ >= 4) && (offset_ >= 0) && (offset_ <= size_ - 4));
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uint32_t value = ((byte0 & ~0xc0) << 24) | (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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}
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/**
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* Read and return a TokenPosition from this reader.
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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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uint8_t 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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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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// 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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void set_size(intptr_t size) { size_ = size; }
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const TypedData* typed_data() { return typed_data_; }
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void set_typed_data(const TypedData* typed_data) { typed_data_ = typed_data; }
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const uint8_t* raw_buffer() { return raw_buffer_; }
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void set_raw_buffer(const uint8_t* raw_buffer) { raw_buffer_ = raw_buffer; }
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void CopyDataToVMHeap(const TypedData& typed_data,
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intptr_t offset,
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intptr_t size) {
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NoSafepointScope no_safepoint;
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memmove(typed_data.DataAddr(0), buffer() + offset, size);
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}
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uint8_t* CopyDataIntoZone(Zone* zone, intptr_t offset, intptr_t length) {
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uint8_t* buffer_ = zone->Alloc<uint8_t>(length);
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{
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NoSafepointScope no_safepoint;
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memmove(buffer_, buffer() + offset, length);
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}
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return buffer_;
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}
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private:
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const uint8_t* buffer() {
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if (raw_buffer_ != NULL) {
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return raw_buffer_;
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}
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NoSafepointScope no_safepoint;
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return reinterpret_cast<uint8_t*>(typed_data_->DataAddr(0));
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}
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const uint8_t* raw_buffer_;
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const TypedData* typed_data_;
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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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