Files
FEX-Emu--FEX/Source/Linux/Utils/ELFSymbolDatabase.cpp
T
Ryan Houdek 069e279a18 Moves ELF handlers from FEXCore to frontend
Only the frontends need to deal with ELF files specifically.
The backend doesn't need to be aware of them at all.
Since the ELF handling is the frontend's responsibility, move all the code to the frontend.
2021-06-27 02:07:56 -07:00

354 lines
11 KiB
C++

/*
$info$
tags: glue|elf-parsing
desc: Part of our now defunct ld-linux replacement, keeps tracks of all symbols, loads elfs, handles relocations. Small parts of this are used.
$end_info$
*/
#include "Common/MathUtils.h"
#include "Linux/Utils/ELFSymbolDatabase.h"
#include <FEXCore/Utils/Allocator.h>
#include <FEXCore/Utils/LogManager.h>
#include <cstring>
#include <elf.h>
#include <filesystem>
#include <set>
#include <string>
#include <sys/mman.h>
#include <sys/stat.h>
namespace ELFLoader {
void ELFSymbolDatabase::FillLibrarySearchPaths() {
// XXX: Open /etc/ld.so.conf and parse the paths in that file
// For now I'm just filling with regular search paths
if (File->GetMode() == ELFContainer::MODE_64BIT) {
LibrarySearchPaths.emplace_back("/usr/local/lib/x86_64-linux-gnu");
LibrarySearchPaths.emplace_back("/lib/x86_64-linux-gnu");
LibrarySearchPaths.emplace_back("/usr/lib/x86_64-linux-gnu");
}
else {
LibrarySearchPaths.emplace_back("/usr/local/lib/i386-linux-gnu");
LibrarySearchPaths.emplace_back("/lib/i386-linux-gnu");
LibrarySearchPaths.emplace_back("/usr/lib/i386-linux-gnu");
}
// At least we can scan LD_LIBRARY_PATH
auto EnvVar = getenv("LD_LIBRARY_PATH");
if (EnvVar) {
std::string Env = EnvVar;
std::stringstream EnvStream(Env);
std::string Token;
while (std::getline(EnvStream, Token, ';')) {
LibrarySearchPaths.emplace_back(Token);
}
}
}
bool ELFSymbolDatabase::FindLibraryFile(std::string *Result, const char *Library) {
for (auto &Path : LibrarySearchPaths) {
std::string TmpPath = Path + "/" + Library;
struct stat buf;
// XXX: std::filesystem::exists was crashing in std::filesystem::path's destructor?
if (stat(TmpPath.c_str(), &buf) == 0) {
*Result = TmpPath;
return true;
}
}
return false;
}
ELFSymbolDatabase::ELFSymbolDatabase(::ELFLoader::ELFContainer *file)
: File {file} {
FillLibrarySearchPaths();
// Don't try to load the file if it was invalid
if (!File->WasLoaded()) {
return;
}
std::vector<std::string> UnfilledDependencies;
std::vector<ELFInfo*> NewLibraries;
auto FillDependencies = [&UnfilledDependencies, this](ELFInfo *ELF) {
for (auto &Lib : *ELF->Container->GetNecessaryLibs()) {
if (NameToELF.find(Lib) == NameToELF.end()) {
UnfilledDependencies.emplace_back(Lib);
}
}
};
auto LoadDependencies = [&UnfilledDependencies, &NewLibraries, this]() {
for (auto &Lib : UnfilledDependencies) {
if (NameToELF.find(Lib) == NameToELF.end()) {
std::string LibraryPath;
#if defined(ASSERTIONS_ENABLED) && ASSERTIONS_ENABLED
bool Found =
#endif
FindLibraryFile(&LibraryPath, Lib.c_str());
LOGMAN_THROW_A(Found, "Couldn't find library '%s'", Lib.c_str());
auto Info = DynamicELFInfo.emplace_back(new ELFInfo{});
Info->Name = Lib;
Info->Container = new ::ELFLoader::ELFContainer(LibraryPath, {}, true);
NewLibraries.emplace_back(Info);
NameToELF[Lib] = Info;
}
}
};
LocalInfo.Container = File;
LocalInfo.Name = "/proc/self/exe";
NewLibraries.emplace_back(&LocalInfo);
do {
std::vector<ELFInfo*> PreviousLibs;
PreviousLibs.swap(NewLibraries);
for (auto ELF : PreviousLibs) {
FillDependencies(ELF);
LoadDependencies();
}
} while (!UnfilledDependencies.empty() && !NewLibraries.empty());
FillMemoryLayouts(0);
FillInitializationOrder();
FillSymbols();
if (LocalInfo.Container->WasDynamic() && File->GetMode() == ELFContainer::MODE_64BIT) {
ELFBase = FEXCore::Allocator::mmap(nullptr, ELFMemorySize, PROT_READ | PROT_WRITE, MAP_PRIVATE | MAP_ANONYMOUS, -1, 0);
FillMemoryLayouts(reinterpret_cast<uintptr_t>(ELFBase));
FillInitializationOrder();
FillSymbols();
FixedNoReplace = false;
}
}
ELFSymbolDatabase::~ELFSymbolDatabase() {
if (ELFBase) {
FEXCore::Allocator::munmap(ELFBase, ELFMemorySize);
ELFBase = nullptr;
}
}
void ELFSymbolDatabase::FillMemoryLayouts(uint64_t DefinedBase) {
uint64_t ELFBases = DefinedBase;
ELFMemorySize = 0;
if (!DefinedBase) {
if (File->GetMode() == ELFContainer::MODE_64BIT) {
ELFBases = 0x1'0000'0000;
}
else {
// 32bit we will just load at the lowest memory address we can
// Which on Linux is at 0x1'0000
ELFBases = 0x1'0000;
}
}
// We can only relocate the passed in ELF if it is dynamic
// If it is EXEC then it HAS to end up in the base offset it chose
if (LocalInfo.Container->WasDynamic()) {
LocalInfo.CustomLayout = File->GetLayout();
uint64_t CurrentELFBase = std::get<0>(LocalInfo.CustomLayout);
uint64_t CurrentELFEnd = std::get<1>(LocalInfo.CustomLayout);
uint64_t CurrentELFAlignedSize = AlignUp(std::get<2>(LocalInfo.CustomLayout), 4096);
CurrentELFBase += ELFBases;
CurrentELFEnd += ELFBases;
std::get<0>(LocalInfo.CustomLayout) = CurrentELFBase;
std::get<1>(LocalInfo.CustomLayout) = CurrentELFEnd;
std::get<2>(LocalInfo.CustomLayout) = CurrentELFAlignedSize;
LocalInfo.GuestBase = ELFBases;
ELFBases += CurrentELFAlignedSize;
ELFMemorySize += CurrentELFAlignedSize;
}
else {
LocalInfo.CustomLayout = File->GetLayout();
uint64_t CurrentELFBase = std::get<0>(LocalInfo.CustomLayout);
uint64_t CurrentELFAlignedSize = AlignUp(std::get<2>(LocalInfo.CustomLayout), 4096);
if (CurrentELFBase < 0x10000) {
// We can't allocate memory in the first 16KB, Hopefully no elfs require this.
LOGMAN_MSG_A("Elf requires memory mapped in the first 16kb");
}
std::get<2>(LocalInfo.CustomLayout) = CurrentELFAlignedSize;
LocalInfo.GuestBase = 0;
ELFMemorySize += CurrentELFAlignedSize;
}
for (size_t i = 0; i < DynamicELFInfo.size(); ++i) {
auto ELF = DynamicELFInfo[i]->Container;
auto Layout = ELF->GetLayout();
uint64_t CurrentELFBase = std::get<0>(Layout);
uint64_t CurrentELFEnd = std::get<1>(Layout);
uint64_t CurrentELFAlignedSize = AlignUp(std::get<2>(Layout), 4096);
CurrentELFBase += ELFBases;
CurrentELFEnd += ELFBases;
std::get<0>(Layout) = CurrentELFBase;
std::get<1>(Layout) = CurrentELFEnd;
std::get<2>(Layout) = CurrentELFAlignedSize;
DynamicELFInfo[i]->CustomLayout = Layout;
DynamicELFInfo[i]->GuestBase = ELFBases;
ELFBases += CurrentELFAlignedSize;
ELFMemorySize += CurrentELFAlignedSize;
}
}
void ELFSymbolDatabase::FillInitializationOrder() {
std::set<std::string> AlreadyInList;
while (true) {
if (InitializationOrder.size() == DynamicELFInfo.size())
break;
for (auto &ELF : DynamicELFInfo) {
// If this ELF is already in the list then skip it
if (AlreadyInList.find(ELF->Name) != AlreadyInList.end())
continue;
bool AllLibsLoaded = true;
for (auto &Lib : *ELF->Container->GetNecessaryLibs()) {
if (AlreadyInList.find(Lib) == AlreadyInList.end()) {
AllLibsLoaded = false;
break;
}
}
if (AllLibsLoaded) {
InitializationOrder.emplace_back(ELF);
AlreadyInList.insert(ELF->Name);
}
}
}
}
void ELFSymbolDatabase::FillSymbols() {
auto LocalSymbolFiller = [this](ELFLoader::ELFSymbol *Symbol) {
Symbols.emplace_back(Symbol);
Symbol->Address += LocalInfo.GuestBase;
SymbolMap[Symbol->Name] = Symbol;
SymbolMapByAddress[Symbol->Address] = Symbol;
if (Symbol->Bind == STB_GLOBAL) {
SymbolMapGlobalOnly[Symbol->Name] = Symbol;
}
if (Symbol->Bind != STB_WEAK) {
SymbolMapNoWeak[Symbol->Name] = Symbol;
}
};
LocalInfo.Container->AddSymbols(LocalSymbolFiller);
// Let us fill symbols based on initialization order
for (auto ELF : InitializationOrder) {
auto SymbolFiller = [this, &ELF](ELFLoader::ELFSymbol *Symbol) {
Symbols.emplace_back(Symbol);
// Offset the address by the guest base
Symbol->Address += ELF->GuestBase;
SymbolMap[Symbol->Name] = Symbol;
SymbolMapNoMain[Symbol->Name] = Symbol;
SymbolMapByAddress[Symbol->Address] = Symbol;
if (Symbol->Bind == STB_GLOBAL) {
SymbolMapGlobalOnly[Symbol->Name] = Symbol;
}
if (Symbol->Bind != STB_WEAK) {
SymbolMapNoWeak[Symbol->Name] = Symbol;
SymbolMapNoMainNoWeak[Symbol->Name] = Symbol;
}
};
ELF->Container->AddSymbols(SymbolFiller);
}
}
void ELFSymbolDatabase::MapMemoryRegions(std::function<void*(uint64_t, uint64_t, bool)> Mapper) {
auto Map = [&](ELFInfo& ELF) {
uint64_t ELFBase = std::get<0>(ELF.CustomLayout);
uint64_t ELFSize = std::get<2>(ELF.CustomLayout);
uint64_t OffsetFromBase = ELFBase - ELF.GuestBase;
ELF.ELFBase = static_cast<uint8_t*>(Mapper(ELFBase, ELFSize, FixedNoReplace)) - OffsetFromBase;
};
Map(LocalInfo);
for (auto *ELF : DynamicELFInfo) {
Map(*ELF);
}
}
void ELFSymbolDatabase::WriteLoadableSections(::ELFLoader::ELFContainer::MemoryWriter Writer) {
File->WriteLoadableSections(Writer, LocalInfo.GuestBase);
for (size_t i = 0; i < DynamicELFInfo.size(); ++i) {
auto ELF = DynamicELFInfo[i]->Container;
ELF->WriteLoadableSections(Writer, DynamicELFInfo[i]->GuestBase);
}
HandleRelocations();
}
void ELFSymbolDatabase::HandleRelocations() {
auto SymbolGetter = [this](char const *SymbolName, uint8_t Table) -> ELFLoader::ELFSymbol* {
SymbolTableType &TablePtr = SymbolMap;
if (Table == 0)
TablePtr = SymbolMap;
else if (Table == 1) // Global
TablePtr = SymbolMapGlobalOnly;
else if (Table == 2) // NoWeak
TablePtr = SymbolMapNoWeak;
else if (Table == 3) // No Main
TablePtr = SymbolMapNoMain;
else if (Table == 4) // No Main No Weak
TablePtr = SymbolMapNoMainNoWeak;
auto Sym = TablePtr.find(SymbolName);
if (Sym == TablePtr.end())
return nullptr;
return Sym->second;
};
for (auto ELF : InitializationOrder) {
ELF->Container->FixupRelocations(ELF->ELFBase, ELF->GuestBase, SymbolGetter);
}
LocalInfo.Container->FixupRelocations(LocalInfo.ELFBase, LocalInfo.GuestBase, SymbolGetter);
}
uint64_t ELFSymbolDatabase::GetElfBase() const {
return LocalInfo.GuestBase;
}
uint64_t ELFSymbolDatabase::DefaultRIP() const {
return File->GetEntryPoint() + LocalInfo.GuestBase;
}
ELFSymbol const *ELFSymbolDatabase::GetSymbolInRange(RangeType Address) {
auto Sym = SymbolMapByAddress.upper_bound(Address.first);
if (Sym != SymbolMapByAddress.begin())
--Sym;
if (Sym == SymbolMapByAddress.end())
return nullptr;
if ((Sym->second->Address + Sym->second->Size) < Address.first)
return nullptr;
if (Sym->second->Address > Address.first)
return nullptr;
return Sym->second;
}
void ELFSymbolDatabase::GetInitLocations(std::vector<uint64_t> *Locations) {
// Walk the initialization order and fill the locations for initializations
for (auto ELF : InitializationOrder) {
ELF->Container->GetInitLocations(ELF->GuestBase, Locations);
}
}
}