d36adbacaf
The former contents of the VM isolate are now included into each isolate group. This makes each isolate group's heap independent, and in particular allows each heap to be allocated to a separate pointer cage (not done in this CL). The duplicated stubs that allowed PC relative calls are removed, since the originals can now be the target of PC relative calls. The bootstrapping needing to load an AppJIT or AppAOT snapshot is reduced to allocating the oddballs. The code is entirely dropped in the AOT runtime, but the JIT runtime still has it to allow for flags to affect the compilation of the stub code. Further refactoring might be able to remove this for the JIT runtime too, with only gen_snapshot knowing how to bootstrap. Class serialization no longer distinguishes predefined classes. The page containing null is marked as never-evacuate. null, false and true must not move because the compiler relies on their low bits having certain patterns for some optimizations. (Previously, the entire VM isolate heap never moved.) Compaction is disabled for IA32. Due to register pressure, some stub calls must not use a scratch register and embed the address of Code. The page containing the call-through-safepoint stub is frozen when running with --write-protect-code and the stub is created at runtime (instead of loaded from an AppJIT or AppAOT snapshot). This stub must remain executable even during a safepoint, as a foreign call might during return during a safepoint and only block after the stub directs it to the runtime. The snapshot symbols are renamed to kDartSnapshotData and kDartSnapshotText. There is no need to distinguish the VM isolate's snapshot, and snaphots are per isolate group not per isolate. Aliases with the old names are added to ease migration. Some global flags that were automatically set based on the VM isolate's snapshot are now isolate group flags and automatically set by the isolate group's snapshot. TEST=ci Change-Id: Iee82016057d609112e9b021d178fc3d4d18b5044 Reviewed-on: https://dart-review.googlesource.com/c/sdk/+/500621 Reviewed-by: Alexander Markov <alexmarkov@google.com> Reviewed-by: Tess Strickland <sstrickl@google.com> SLSA-Policy-Verified: SLSA Policy Verification Service <devtools-gerritcodereview-exitgate@google.com> Commit-Queue: Ryan Macnak <rmacnak@google.com>
484 lines
17 KiB
C++
484 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_Fd2(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_LoadELF2(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_Memory2(
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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;
|
|
}
|
|
std::unique_ptr<LoadedElf> elf(
|
|
new LoadedElf(std::move(mappable), /*elf_data_offset=*/0));
|
|
|
|
if (!elf->Load() || !elf->ResolveSymbols(snapshot_data, snapshot_text)) {
|
|
*error = elf->error();
|
|
return nullptr;
|
|
}
|
|
|
|
return reinterpret_cast<Dart_LoadedElf*>(elf.release());
|
|
}
|
|
|
|
DART_EXPORT void Dart_UnloadELF(Dart_LoadedElf* loaded) {
|
|
delete reinterpret_cast<LoadedElf*>(loaded);
|
|
}
|