546bf07f7d
TEST=ci Change-Id: I65c315e9efc3cd7b8b47d2c167681986278644da Reviewed-on: https://dart-review.googlesource.com/c/sdk/+/502780 Reviewed-by: Alexander Markov <alexmarkov@google.com> Commit-Queue: Ryan Macnak <rmacnak@google.com>
483 lines
17 KiB
C++
483 lines
17 KiB
C++
// Copyright (c) 2019, 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 "bin/elf_loader.h"
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#include <memory>
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#include <utility>
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#include "platform/globals.h"
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#if defined(DART_HOST_OS_FUCHSIA)
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#include <sys/mman.h>
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#endif
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#include "platform/elf.h"
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#include "platform/unwinding_records.h"
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#include "bin/file.h"
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#include "bin/mappable.h"
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#include "bin/virtual_memory.h"
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namespace dart {
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namespace bin {
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namespace elf {
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/// A loader for a subset of ELF which may be used to load objects produced by
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/// Dart_CreateAppAOTSnapshotAsElf.
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class LoadedElf {
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public:
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explicit LoadedElf(std::unique_ptr<Mappable> mappable,
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uint64_t elf_data_offset)
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: mappable_(std::move(mappable)), elf_data_offset_(elf_data_offset) {}
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~LoadedElf();
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/// Loads the ELF object into memory. Returns whether the load was successful.
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/// On failure, the error may be retrieved by 'error()'.
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bool Load();
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/// Reads Dart-specific symbols from the loaded ELF.
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///
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/// Stores the address of the corresponding symbol in each non-null output
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/// parameter.
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///
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/// Fails if any output parameter is non-null but points to null and the
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/// corresponding symbol was not found, or if the dynamic symbol table could
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/// not be decoded.
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///
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/// Has the side effect of initializing the relocated addresses for the text
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/// sections corresponding to non-null output parameters in the BSS segment.
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///
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/// On failure, the error may be retrieved by 'error()'.
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bool ResolveSymbols(const uint8_t** snapshot_data,
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const uint8_t** snapshot_text);
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const char* error() { return error_; }
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private:
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bool ReadHeader();
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bool ReadProgramTable();
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bool LoadSegments();
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bool ReadSectionTable();
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bool ReadSectionStringTable();
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bool ReadSections();
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static uword PageSize() { return VirtualMemory::PageSize(); }
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// Unlike File::Map, allows non-aligned 'start' and 'length'.
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MappedMemory* MapFilePiece(uword start,
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uword length,
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const void** mapping_start);
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// Initialized on a successful Load().
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std::unique_ptr<Mappable> mappable_;
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const uint64_t elf_data_offset_;
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// Initialized on error.
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const char* error_ = nullptr;
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// Initialized by ReadHeader().
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dart::elf::ElfHeader header_;
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// Initialized by ReadProgramTable().
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std::unique_ptr<MappedMemory> program_table_mapping_;
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const dart::elf::ProgramHeader* program_table_ = nullptr;
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// Initialized by LoadSegments().
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std::unique_ptr<VirtualMemory> base_;
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// Initialized by ReadSectionTable().
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std::unique_ptr<MappedMemory> section_table_mapping_;
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const dart::elf::SectionHeader* section_table_ = nullptr;
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// Initialized by ReadSectionStringTable().
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std::unique_ptr<MappedMemory> section_string_table_mapping_;
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const char* section_string_table_ = nullptr;
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// Initialized by ReadSections().
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const char* dynamic_string_table_ = nullptr;
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const dart::elf::Symbol* dynamic_symbol_table_ = nullptr;
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uword dynamic_symbol_count_ = 0;
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#if defined(UNWINDING_RECORDS_WINDOWS_HOST)
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// Dynamic table for looking up unwinding exceptions info.
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// Initialized by LoadSegments as we load executable segment.
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MallocGrowableArray<void*> dynamic_runtime_function_tables_;
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#endif
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DISALLOW_COPY_AND_ASSIGN(LoadedElf);
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};
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#define CHECK(value) \
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if (!(value)) { \
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ASSERT(error_ != nullptr); \
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return false; \
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}
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#define ERROR(message) \
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{ \
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error_ = (message); \
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return false; \
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}
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#define CHECK_ERROR(value, message) \
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if (!(value)) { \
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error_ = (message); \
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return false; \
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}
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bool LoadedElf::Load() {
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VirtualMemory::Init();
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if (error_ != nullptr) {
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return false;
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}
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CHECK_ERROR(Utils::IsAligned(elf_data_offset_, PageSize()),
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"File offset must be page-aligned.");
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ASSERT(mappable_ != nullptr);
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CHECK_ERROR(mappable_->SetPosition(elf_data_offset_), "Invalid file offset.");
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CHECK(ReadHeader());
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CHECK(ReadProgramTable());
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CHECK(LoadSegments());
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CHECK(ReadSectionTable());
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CHECK(ReadSectionStringTable());
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CHECK(ReadSections());
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mappable_.reset();
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return true;
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}
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LoadedElf::~LoadedElf() {
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#if defined(UNWINDING_RECORDS_WINDOWS_HOST)
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for (intptr_t i = 0; i < dynamic_runtime_function_tables_.length(); i++) {
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UnwindingRecordsPlatform::UnregisterDynamicTable(
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dynamic_runtime_function_tables_[i]);
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}
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#endif
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// Unmap the image.
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base_.reset();
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// Explicitly destroy all the mappings before closing the file.
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program_table_mapping_.reset();
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section_table_mapping_.reset();
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section_string_table_mapping_.reset();
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}
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bool LoadedElf::ReadHeader() {
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CHECK_ERROR(mappable_->ReadFully(&header_, sizeof(dart::elf::ElfHeader)),
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"Could not read ELF file.");
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CHECK_ERROR(header_.ident[dart::elf::EI_DATA] == dart::elf::ELFDATA2LSB,
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"Expected little-endian ELF object.");
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CHECK_ERROR(header_.type == dart::elf::ET_DYN,
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"Can only load dynamic libraries.");
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#if defined(TARGET_ARCH_IA32)
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CHECK_ERROR(header_.machine == dart::elf::EM_386, "Architecture mismatch.");
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#elif defined(TARGET_ARCH_X64)
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CHECK_ERROR(header_.machine == dart::elf::EM_X86_64,
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"Architecture mismatch.");
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#elif defined(TARGET_ARCH_ARM)
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CHECK_ERROR(header_.machine == dart::elf::EM_ARM, "Architecture mismatch.");
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#elif defined(TARGET_ARCH_ARM64)
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CHECK_ERROR(header_.machine == dart::elf::EM_AARCH64,
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"Architecture mismatch.");
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#elif defined(TARGET_ARCH_RISCV32) || defined(TARGET_ARCH_RISCV64)
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CHECK_ERROR(header_.machine == dart::elf::EM_RISCV, "Architecture mismatch.");
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#else
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#error Unsupported architecture architecture.
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#endif
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CHECK_ERROR(header_.version == dart::elf::EV_CURRENT,
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"Unexpected ELF version.");
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CHECK_ERROR(header_.header_size == sizeof(dart::elf::ElfHeader),
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"Unexpected header size.");
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CHECK_ERROR(
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header_.program_table_entry_size == sizeof(dart::elf::ProgramHeader),
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"Unexpected program header size.");
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CHECK_ERROR(
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header_.section_table_entry_size == sizeof(dart::elf::SectionHeader),
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"Unexpected section header size.");
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return true;
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}
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bool LoadedElf::ReadProgramTable() {
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const uword file_start = header_.program_table_offset;
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const uword file_length =
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header_.num_program_headers * sizeof(dart::elf::ProgramHeader);
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program_table_mapping_.reset(
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MapFilePiece(file_start, file_length,
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reinterpret_cast<const void**>(&program_table_)));
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CHECK_ERROR(program_table_mapping_ != nullptr,
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"Could not mmap the program table.");
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return true;
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}
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bool LoadedElf::ReadSectionTable() {
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const uword file_start = header_.section_table_offset;
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const uword file_length =
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header_.num_section_headers * sizeof(dart::elf::SectionHeader);
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section_table_mapping_.reset(
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MapFilePiece(file_start, file_length,
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reinterpret_cast<const void**>(§ion_table_)));
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CHECK_ERROR(section_table_mapping_ != nullptr,
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"Could not mmap the section table.");
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return true;
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}
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bool LoadedElf::ReadSectionStringTable() {
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const dart::elf::SectionHeader header =
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section_table_[header_.shstrtab_section_index];
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section_string_table_mapping_.reset(
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MapFilePiece(header.file_offset, header.file_size,
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reinterpret_cast<const void**>(§ion_string_table_)));
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CHECK_ERROR(section_string_table_mapping_ != nullptr,
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"Could not mmap the section string table.");
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return true;
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}
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bool LoadedElf::LoadSegments() {
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// Calculate the total amount of virtual memory needed.
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uword total_memory = 0;
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for (uword i = 0; i < header_.num_program_headers; ++i) {
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const dart::elf::ProgramHeader header = program_table_[i];
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// Only PT_LOAD segments need to be loaded.
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if (header.type != dart::elf::ProgramHeaderType::PT_LOAD) continue;
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total_memory = Utils::Maximum(
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static_cast<uword>(header.memory_offset + header.memory_size),
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total_memory);
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CHECK_ERROR(Utils::IsPowerOfTwo(header.alignment),
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"Alignment must be a power of two.");
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}
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total_memory = Utils::RoundUp(total_memory, PageSize());
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base_.reset(VirtualMemory::Allocate(total_memory,
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/*is_executable=*/false,
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"dart-compiled-image"));
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CHECK_ERROR(base_ != nullptr, "Could not reserve virtual memory.");
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for (uword i = 0; i < header_.num_program_headers; ++i) {
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const dart::elf::ProgramHeader header = program_table_[i];
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// Only PT_LOAD segments need to be loaded.
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if (header.type != dart::elf::ProgramHeaderType::PT_LOAD) continue;
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const uword memory_offset = header.memory_offset,
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file_offset = header.file_offset;
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CHECK_ERROR(
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(memory_offset % PageSize()) == (file_offset % PageSize()),
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"Difference between file and memory offset must be page-aligned.");
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const intptr_t adjustment = header.memory_offset % PageSize();
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void* const memory_start =
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static_cast<char*>(base_->address()) + memory_offset - adjustment;
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const uword file_start = elf_data_offset_ + file_offset - adjustment;
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const uword length = header.memory_size + adjustment;
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File::MapType map_type = File::kReadOnly;
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if (header.flags == (dart::elf::PF_R | dart::elf::PF_W)) {
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map_type = File::kReadWrite;
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} else if (header.flags == (dart::elf::PF_R | dart::elf::PF_X)) {
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map_type = File::kReadExecute;
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} else if (header.flags == dart::elf::PF_R) {
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map_type = File::kReadOnly;
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} else {
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ERROR("Unsupported segment flag set.");
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}
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#if defined(DART_HOST_OS_FUCHSIA)
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// mmap is less flexible on Fuchsia than on Linux and Darwin, in (at least)
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// two important ways:
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//
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// 1. We cannot map a file opened as RX into an RW mapping, even if the
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// mode is MAP_PRIVATE (which implies copy-on-write).
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// 2. We cannot atomically replace an existing anonymous mapping with a
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// file mapping: we must first unmap the existing mapping.
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if (map_type == File::kReadWrite) {
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CHECK_ERROR(mappable_->SetPosition(file_start),
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"Could not advance file position.");
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CHECK_ERROR(mappable_->ReadFully(memory_start, length),
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"Could not read file.");
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continue;
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}
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CHECK_ERROR(munmap(memory_start, length) == 0,
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"Could not unmap reservation.");
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#endif
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std::unique_ptr<MappedMemory> memory(
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mappable_->Map(map_type, file_start, length, memory_start));
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CHECK_ERROR(memory != nullptr, "Could not map segment.");
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CHECK_ERROR(memory->address() == memory_start,
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"Mapping not at requested address.");
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#if defined(UNWINDING_RECORDS_WINDOWS_HOST)
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// For executable pages register unwinding information that should be
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// present on the page.
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if (map_type == File::kReadExecute) {
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void* ptable = nullptr;
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UnwindingRecordsPlatform::RegisterExecutableMemory(memory->address(),
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length, &ptable);
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dynamic_runtime_function_tables_.Add(ptable);
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}
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#endif
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}
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return true;
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}
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bool LoadedElf::ReadSections() {
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for (uword i = 0; i < header_.num_section_headers; ++i) {
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const dart::elf::SectionHeader header = section_table_[i];
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const char* const name = section_string_table_ + header.name;
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if (strcmp(name, ".dynstr") == 0) {
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CHECK_ERROR(header.memory_offset != 0, ".dynstr must be loaded.");
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dynamic_string_table_ =
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static_cast<const char*>(base_->address()) + header.memory_offset;
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} else if (strcmp(name, ".dynsym") == 0) {
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CHECK_ERROR(header.memory_offset != 0, ".dynsym must be loaded.");
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dynamic_symbol_table_ = reinterpret_cast<const dart::elf::Symbol*>(
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base_->start() + header.memory_offset);
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dynamic_symbol_count_ = header.file_size / sizeof(dart::elf::Symbol);
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}
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}
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CHECK_ERROR(dynamic_string_table_ != nullptr, "Couldn't find .dynstr.");
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CHECK_ERROR(dynamic_symbol_table_ != nullptr, "Couldn't find .dynsym.");
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return true;
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}
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bool LoadedElf::ResolveSymbols(const uint8_t** data, const uint8_t** text) {
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if (error_ != nullptr) {
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return false;
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}
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// The first entry of the symbol table is reserved.
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for (uword i = 1; i < dynamic_symbol_count_; ++i) {
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const dart::elf::Symbol sym = dynamic_symbol_table_[i];
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const char* name = dynamic_string_table_ + sym.name;
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const uint8_t** output = nullptr;
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if (strcmp(name, kSnapshotDataAsmSymbol) == 0) {
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output = data;
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} else if (strcmp(name, kSnapshotTextAsmSymbol) == 0) {
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output = text;
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}
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if (output != nullptr) {
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*output = reinterpret_cast<const uint8_t*>(base_->start() + sym.value);
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}
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}
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CHECK_ERROR(data == nullptr || *data != nullptr,
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"Could not find snapshot data.");
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CHECK_ERROR(text == nullptr || *text != nullptr,
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"Could not find snapshot text.");
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return true;
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}
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MappedMemory* LoadedElf::MapFilePiece(uword file_start,
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uword file_length,
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const void** mem_start) {
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const uword adjustment = (elf_data_offset_ + file_start) % PageSize();
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const uword mapping_offset = elf_data_offset_ + file_start - adjustment;
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const uword mapping_length =
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Utils::RoundUp(elf_data_offset_ + file_start + file_length, PageSize()) -
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mapping_offset;
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MappedMemory* const mapping =
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mappable_->Map(bin::File::kReadOnly, mapping_offset, mapping_length);
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if (mapping != nullptr) {
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*mem_start = reinterpret_cast<uint8_t*>(mapping->start() +
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(file_start % PageSize()));
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}
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return mapping;
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}
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} // namespace elf
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} // namespace bin
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} // namespace dart
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using namespace dart::bin::elf; // NOLINT
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using Mappable = dart::bin::Mappable;
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#if defined(DART_HOST_OS_FUCHSIA) || defined(DART_HOST_OS_LINUX)
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DART_EXPORT Dart_LoadedElf* Dart_LoadELF_Fd(int fd,
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uint64_t file_offset,
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const char** error,
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const uint8_t** snapshot_data,
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const uint8_t** snapshot_text) {
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std::unique_ptr<Mappable> mappable(Mappable::FromFD(fd));
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std::unique_ptr<LoadedElf> elf(
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new LoadedElf(std::move(mappable), file_offset));
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if (!elf->Load() || !elf->ResolveSymbols(snapshot_data, snapshot_text)) {
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*error = elf->error();
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return nullptr;
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}
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return reinterpret_cast<Dart_LoadedElf*>(elf.release());
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}
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#endif
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DART_EXPORT Dart_LoadedElf* Dart_LoadELF(const char* filename,
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uint64_t file_offset,
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const char** error,
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const uint8_t** snapshot_data,
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const uint8_t** snapshot_text) {
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std::unique_ptr<Mappable> mappable(Mappable::FromPath(filename));
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if (mappable == nullptr) {
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*error = "Couldn't open file.";
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return nullptr;
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}
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std::unique_ptr<LoadedElf> elf(
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new LoadedElf(std::move(mappable), file_offset));
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if (!elf->Load() || !elf->ResolveSymbols(snapshot_data, snapshot_text)) {
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*error = elf->error();
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return nullptr;
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}
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return reinterpret_cast<Dart_LoadedElf*>(elf.release());
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}
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DART_EXPORT Dart_LoadedElf* Dart_LoadELF_Memory(const uint8_t* snapshot,
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uint64_t snapshot_size,
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const char** error,
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const uint8_t** snapshot_data,
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const uint8_t** snapshot_text) {
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std::unique_ptr<Mappable> mappable(
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Mappable::FromMemory(snapshot, snapshot_size));
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if (mappable == nullptr) {
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*error = "Couldn't open file.";
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return nullptr;
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}
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std::unique_ptr<LoadedElf> elf(
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new LoadedElf(std::move(mappable), /*elf_data_offset=*/0));
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if (!elf->Load() || !elf->ResolveSymbols(snapshot_data, snapshot_text)) {
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*error = elf->error();
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return nullptr;
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}
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return reinterpret_cast<Dart_LoadedElf*>(elf.release());
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}
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DART_EXPORT void Dart_UnloadELF(Dart_LoadedElf* loaded) {
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delete reinterpret_cast<LoadedElf*>(loaded);
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}
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