mirror of
https://github.com/FEX-Emu/FEX.git
synced 2026-10-07 00:00:17 +02:00
760 lines
23 KiB
C++
760 lines
23 KiB
C++
/*
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$info$
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tags: LinuxSyscalls|common
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desc: Rootfs overlay logic
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$end_info$
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*/
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#include "Common/FDUtils.h"
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#include "FEXCore/Config/Config.h"
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#include "Tests/LinuxSyscalls/FileManagement.h"
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#include "Tests/LinuxSyscalls/EmulatedFiles/EmulatedFiles.h"
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#include "Tests/LinuxSyscalls/Syscalls.h"
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#include "Tests/LinuxSyscalls/x64/Syscalls.h"
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#include <FEXCore/Common/Paths.h>
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#include <FEXCore/Utils/LogManager.h>
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#include <FEXHeaderUtils/ScopedSignalMask.h>
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#include <FEXHeaderUtils/Syscalls.h>
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#include <algorithm>
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#include <errno.h>
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#include <cstring>
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#include <fcntl.h>
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#include <filesystem>
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#include <fstream>
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#include <stdio.h>
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#include <string.h>
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#include <sys/stat.h>
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#include <sys/statfs.h>
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#include <syscall.h>
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#include <system_error>
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#include <unistd.h>
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#include <utility>
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#include <vector>
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#include <tiny-json.h>
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namespace JSON {
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struct JsonAllocator {
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jsonPool_t PoolObject;
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std::unique_ptr<std::list<json_t>> json_objects;
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};
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static_assert(offsetof(JsonAllocator, PoolObject) == 0, "This needs to be at offset zero");
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json_t* PoolInit(jsonPool_t* Pool) {
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JsonAllocator* alloc = reinterpret_cast<JsonAllocator*>(Pool);
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alloc->json_objects = std::make_unique<std::list<json_t>>();
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return &*alloc->json_objects->emplace(alloc->json_objects->end());
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}
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json_t* PoolAlloc(jsonPool_t* Pool) {
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JsonAllocator* alloc = reinterpret_cast<JsonAllocator*>(Pool);
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return &*alloc->json_objects->emplace(alloc->json_objects->end());
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}
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}
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namespace FEXCore::Context {
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struct Context;
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}
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namespace FEX::HLE {
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struct open_how;
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static bool LoadFile(std::vector<char> &Data, const std::string &Filename) {
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std::fstream File(Filename, std::ios::in);
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if (!File.is_open()) {
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return false;
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}
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if (!File.seekg(0, std::fstream::end)) {
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LogMan::Msg::DFmt("Couldn't load configuration file: Seek end");
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return false;
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}
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auto FileSize = File.tellg();
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if (File.fail()) {
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LogMan::Msg::DFmt("Couldn't load configuration file: tellg");
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return false;
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}
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if (!File.seekg(0, std::fstream::beg)) {
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LogMan::Msg::DFmt("Couldn't load configuration file: Seek beginning");
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return false;
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}
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if (FileSize <= 0) {
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LogMan::Msg::DFmt("FileSize less than or equal to zero specified");
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return false;
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}
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Data.resize(FileSize);
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if (!File.read(Data.data(), FileSize)) {
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// Probably means permissions aren't set. Just early exit
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return false;
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}
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return true;
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}
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struct ThunkDBObject {
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std::string LibraryName;
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std::unordered_set<std::string> Depends;
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std::vector<std::string> Overlays;
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bool Enabled{};
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};
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static void LoadThunkDatabase(std::unordered_map<std::string, ThunkDBObject>& ThunkDB, bool Is64BitMode, bool Global) {
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auto ThunkDBPath = FEXCore::Config::GetConfigDirectory(Global) + "ThunksDB.json";
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std::vector<char> FileData;
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if (LoadFile(FileData, ThunkDBPath)) {
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FileData.push_back(0);
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JSON::JsonAllocator Pool {
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.PoolObject = {
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.init = JSON::PoolInit,
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.alloc = JSON::PoolAlloc,
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},
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};
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json_t const *json = json_createWithPool(&FileData.at(0), &Pool.PoolObject);
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json_t const* DB = json_getProperty( json, "DB" );
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if ( !DB || JSON_OBJ != json_getType( DB ) ) {
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return;
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}
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std::string_view HomeDirectory = FEXCore::Paths::GetHomeDirectory();
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for( json_t const* Library = json_getChild( DB ); Library != nullptr; Library = json_getSibling( Library )) {
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// Get the user defined name for the library
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const char* LibraryName = json_getName(Library);
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auto DBObject = ThunkDB.insert_or_assign(LibraryName, ThunkDBObject{}).first;
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// Walk the libraries items to get the data
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for (json_t const* LibraryItem = json_getChild(Library); LibraryItem != nullptr; LibraryItem = json_getSibling(LibraryItem)) {
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std::string_view ItemName = json_getName(LibraryItem);
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if (ItemName == "Library") {
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// "Library": "libGL-guest.so"
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DBObject->second.LibraryName = json_getValue(LibraryItem);
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}
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else if (ItemName == "Depends") {
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jsonType_t PropertyType = json_getType(LibraryItem);
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if (PropertyType == JSON_TEXT) {
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DBObject->second.Depends.insert(json_getValue(LibraryItem));
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}
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else if (PropertyType == JSON_ARRAY) {
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for (json_t const* Depend = json_getChild(LibraryItem); Depend != nullptr; Depend = json_getSibling(Depend)) {
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DBObject->second.Depends.insert(json_getValue(Depend));
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}
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}
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}
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else if (ItemName == "Overlay") {
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auto AddWithReplacement = [Is64BitMode, HomeDirectory](ThunkDBObject& DBObject, std::string LibraryItem) {
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constexpr static std::array<std::string_view, 4> LibPrefixes = {
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"/usr/lib",
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"/usr/local/lib",
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"/lib",
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"/usr/lib/pressure-vessel/overrides/lib",
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};
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constexpr static std::array<std::string_view, 2> ArchPrefixes = {
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"i386",
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"x86_64",
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};
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// Walk through template string and fill in prefixes from right to left
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using namespace std::string_view_literals;
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const std::pair PrefixArch { "@PREFIX_ARCH@"sv, LibraryItem.find("@PREFIX_ARCH@") };
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const std::pair PrefixHome { "@HOME@"sv, LibraryItem.find("@HOME@") };
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const std::pair PrefixLib { "@PREFIX_LIB@"sv, LibraryItem.find("@PREFIX_LIB@") };
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std::string::size_type PrefixPositions[] = {
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PrefixArch.second, PrefixHome.second, PrefixLib.second,
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};
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// Sort offsets in descending order to enable safe in-place replacement
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std::sort(std::begin(PrefixPositions), std::end(PrefixPositions), std::greater<>{});
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for (auto& LibPrefix : LibPrefixes) {
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std::string Replacement = LibraryItem;
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for (auto PrefixPos : PrefixPositions) {
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if (PrefixPos == std::string::npos) {
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continue;
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} else if (PrefixPos == PrefixArch.second) {
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Replacement.replace(PrefixPos, PrefixArch.first.size(), ArchPrefixes[Is64BitMode]);
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} else if (PrefixPos == PrefixHome.second) {
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Replacement.replace(PrefixPos, PrefixHome.first.size(), HomeDirectory);
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} else if (PrefixPos == PrefixLib.second) {
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Replacement.replace(PrefixPos, PrefixLib.first.size(), LibPrefix);
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}
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}
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DBObject.Overlays.emplace_back(std::move(Replacement));
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if (PrefixLib.second == std::string::npos) {
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// Don't repeat for other LibPrefixes entries if the prefix wasn't used
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break;
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}
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}
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};
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jsonType_t PropertyType = json_getType(LibraryItem);
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if (PropertyType == JSON_TEXT) {
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AddWithReplacement(DBObject->second, json_getValue(LibraryItem));
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}
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else if (PropertyType == JSON_ARRAY) {
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for (json_t const* Overlay = json_getChild(LibraryItem); Overlay != nullptr; Overlay = json_getSibling(Overlay)) {
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AddWithReplacement(DBObject->second, json_getValue(Overlay));
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}
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}
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}
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}
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}
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}
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}
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FileManager::FileManager(FEXCore::Context::Context *ctx)
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: EmuFD {ctx} {
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auto ThunkConfigFile = ThunkConfig();
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// We try to load ThunksDB from:
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// - FEX global config
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// - FEX user config
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// - Defined ThunksConfig option
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// - Steam AppConfig Global
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// - AppConfig Global
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// - Steam AppConfig Local
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// - AppConfig Local
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// This doesn't support the classic thunks interface.
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auto AppName = AppConfigName();
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std::vector<std::string> ConfigPaths {
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FEXCore::Config::GetConfigFileLocation(true),
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FEXCore::Config::GetConfigFileLocation(false),
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ThunkConfigFile,
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};
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auto SteamID = getenv("SteamAppId");
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if (SteamID) {
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// If a SteamID exists then let's search for Steam application configs as well.
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// We want to key off both the SteamAppId number /and/ the executable since we may not want to thunk all binaries.
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auto SteamAppName = fmt::format("Steam_{}_{}", SteamID, AppName);
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// Steam application configs interleaved with non-steam for priority sorting.
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ConfigPaths.emplace_back(FEXCore::Config::GetApplicationConfig(SteamAppName, true));
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ConfigPaths.emplace_back(FEXCore::Config::GetApplicationConfig(AppName, true));
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ConfigPaths.emplace_back(FEXCore::Config::GetApplicationConfig(SteamAppName, false));
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ConfigPaths.emplace_back(FEXCore::Config::GetApplicationConfig(AppName, false));
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}
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else {
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ConfigPaths.emplace_back(FEXCore::Config::GetApplicationConfig(AppName, true));
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ConfigPaths.emplace_back(FEXCore::Config::GetApplicationConfig(AppName, false));
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}
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std::unordered_map<std::string, ThunkDBObject> ThunkDB;
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LoadThunkDatabase(ThunkDB, Is64BitMode(), true);
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LoadThunkDatabase(ThunkDB, Is64BitMode(), false);
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for (const auto &Path : ConfigPaths) {
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std::vector<char> FileData;
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if (LoadFile(FileData, Path)) {
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JSON::JsonAllocator Pool {
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.PoolObject = {
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.init = JSON::PoolInit,
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.alloc = JSON::PoolAlloc,
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},
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};
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// If a thunks DB property exists then we pull in data from the thunks database
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json_t const *json = json_createWithPool(&FileData.at(0), &Pool.PoolObject);
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json_t const* ThunksDB = json_getProperty( json, "ThunksDB" );
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if (!ThunksDB) {
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continue;
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}
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for (json_t const* Item = json_getChild(ThunksDB); Item != nullptr; Item = json_getSibling(Item)) {
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const char *LibraryName = json_getName(Item);
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bool LibraryEnabled = json_getInteger(Item) != 0;
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// If the library is enabled then find it in the DB
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auto DBObject = ThunkDB.find(LibraryName);
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if (DBObject != ThunkDB.end()) {
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DBObject->second.Enabled = LibraryEnabled;
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}
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}
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}
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}
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// Now that we loaded the thunks object, walk through and ensure dependencies are enabled as well
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auto ThunkGuestPath = std::filesystem::path { Is64BitMode() ? ThunkGuestLibs() : ThunkGuestLibs32() };
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for (auto const &DBObject : ThunkDB) {
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if (!DBObject.second.Enabled) {
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continue;
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}
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// Recursively add paths for this thunk library and its dependencies to ThunkOverlays.
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// Using a local struct for this is slightly less ugly than using self-capturing lambdas
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struct {
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decltype(FileManager::ThunkOverlays)& ThunkOverlays;
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decltype(ThunkDB)& ThunkDB;
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const std::filesystem::path& ThunkGuestPath;
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bool Is64BitMode;
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void SetupOverlay(const ThunkDBObject& DBDepend) {
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auto ThunkPath = ThunkGuestPath / DBDepend.LibraryName;
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if (!std::filesystem::exists(ThunkPath)) {
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if (!Is64BitMode) {
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// Guest libraries not existing is expected since not all libraries are thunked on 32-bit
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return;
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}
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ERROR_AND_DIE_FMT("Requested thunking via guest library \"{}\" that does not exist", ThunkPath.string());
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}
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for (const auto& Overlay : DBDepend.Overlays) {
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// Direct full path in guest RootFS to our overlay file
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ThunkOverlays.emplace(Overlay, ThunkPath);
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}
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};
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void InsertDependencies(const std::unordered_set<std::string> &Depends) {
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for (auto const &Depend : Depends) {
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auto& DBDepend = ThunkDB.at(Depend);
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if (DBDepend.Enabled) {
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continue;
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}
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SetupOverlay(DBDepend);
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// Mark enabled and recurse into dependencies
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DBDepend.Enabled = true;
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InsertDependencies(DBDepend.Depends);
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}
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};
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} DBObjectHandler { ThunkOverlays, ThunkDB, ThunkGuestPath, Is64BitMode() };
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DBObjectHandler.SetupOverlay(DBObject.second);
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DBObjectHandler.InsertDependencies(DBObject.second.Depends);
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}
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if (false) {
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// Useful for debugging
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if (ThunkOverlays.size()) {
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LogMan::Msg::IFmt("Thunk Overlays:");
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for (const auto& [Overlay, ThunkPath] : ThunkOverlays) {
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LogMan::Msg::IFmt("\t{} -> {}", Overlay, ThunkPath);
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}
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}
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}
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UpdatePID(::getpid());
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}
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FileManager::~FileManager() {
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}
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std::string FileManager::GetEmulatedPath(const char *pathname, bool FollowSymlink) {
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if (!pathname || // If no pathname
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pathname[0] != '/' || // If relative
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strcmp(pathname, "/") == 0) { // If we are getting root
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return {};
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}
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auto thunkOverlay = ThunkOverlays.find(pathname);
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if (thunkOverlay != ThunkOverlays.end()) {
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return thunkOverlay->second;
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}
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auto RootFSPath = LDPath();
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if (RootFSPath.empty()) { // If RootFS doesn't exist
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return {};
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}
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std::string Path = RootFSPath + pathname;
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if (FollowSymlink) {
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char Filename[PATH_MAX];
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while(FEX::HLE::IsSymlink(Path)) {
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auto SymlinkSize = FEX::HLE::GetSymlink(Path, Filename, PATH_MAX - 1);
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if (SymlinkSize > 0 && Filename[0] == '/') {
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Path = RootFSPath;
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Path += std::string_view(Filename, SymlinkSize);
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}
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else {
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break;
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}
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}
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}
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return Path;
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}
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std::optional<std::string> FileManager::GetSelf(const char *Pathname) {
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if (!Pathname) {
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return std::nullopt;
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}
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char PidSelfPath[50];
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snprintf(PidSelfPath, 50, "/proc/%i/exe", CurrentPID);
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if (strcmp(Pathname, "/proc/self/exe") == 0 ||
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strcmp(Pathname, "/proc/thread-self/exe") == 0 ||
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strcmp(Pathname, PidSelfPath) == 0) {
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return Filename();
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}
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return Pathname;
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}
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uint64_t FileManager::Open(const char *pathname, [[maybe_unused]] int flags, [[maybe_unused]] uint32_t mode) {
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auto NewPath = GetSelf(pathname);
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const char *SelfPath = NewPath ? NewPath->c_str() : nullptr;
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int fd = -1;
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fd = EmuFD.OpenAt(AT_FDCWD, SelfPath, flags, mode);
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if (fd == -1) {
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auto Path = GetEmulatedPath(SelfPath, true);
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if (!Path.empty()) {
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fd = ::open(Path.c_str(), flags, mode);
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}
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if (fd == -1) {
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fd = ::open(SelfPath, flags, mode);
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}
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}
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if (fd != -1) {
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FHU::ScopedSignalMaskWithMutex lk(FDLock);
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FDToNameMap.insert_or_assign(fd, SelfPath);
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}
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return fd;
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}
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uint64_t FileManager::Close(int fd) {
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{
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FHU::ScopedSignalMaskWithMutex lk(FDLock);
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FDToNameMap.erase(fd);
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}
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return ::close(fd);
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}
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uint64_t FileManager::CloseRange(unsigned int first, unsigned int last, unsigned int flags) {
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#ifndef CLOSE_RANGE_CLOEXEC
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#define CLOSE_RANGE_CLOEXEC (1U << 2)
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#endif
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if (!(flags & CLOSE_RANGE_CLOEXEC)) {
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// If the flag was set then it doesn't actually close the FDs
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// Just sets the flag on a range
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FHU::ScopedSignalMaskWithMutex lk(FDLock);
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auto Lower = FDToNameMap.lower_bound(first);
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auto Upper = FDToNameMap.upper_bound(last);
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// We remove from first to last inclusive
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FDToNameMap.erase(Lower, Upper);
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}
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return ::syscall(SYSCALL_DEF(close_range), first, last, flags);
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}
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uint64_t FileManager::Stat(const char *pathname, void *buf) {
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auto NewPath = GetSelf(pathname);
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const char *SelfPath = NewPath ? NewPath->c_str() : nullptr;
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// Stat follows symlinks
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auto Path = GetEmulatedPath(SelfPath, true);
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if (!Path.empty()) {
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uint64_t Result = ::stat(Path.c_str(), reinterpret_cast<struct stat*>(buf));
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if (Result != -1)
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return Result;
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}
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return ::stat(SelfPath, reinterpret_cast<struct stat*>(buf));
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}
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uint64_t FileManager::Lstat(const char *pathname, void *buf) {
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auto NewPath = GetSelf(pathname);
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const char *SelfPath = NewPath ? NewPath->c_str() : nullptr;
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// lstat does not follow symlinks
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auto Path = GetEmulatedPath(SelfPath, false);
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if (!Path.empty()) {
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uint64_t Result = ::lstat(Path.c_str(), reinterpret_cast<struct stat*>(buf));
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if (Result != -1)
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return Result;
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}
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return ::lstat(pathname, reinterpret_cast<struct stat*>(buf));
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}
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uint64_t FileManager::Access(const char *pathname, [[maybe_unused]] int mode) {
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auto NewPath = GetSelf(pathname);
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const char *SelfPath = NewPath ? NewPath->c_str() : nullptr;
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// Access follows symlinks
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auto Path = GetEmulatedPath(SelfPath, true);
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if (!Path.empty()) {
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uint64_t Result = ::access(Path.c_str(), mode);
|
|
if (Result != -1)
|
|
return Result;
|
|
}
|
|
|
|
return ::access(SelfPath, mode);
|
|
}
|
|
|
|
uint64_t FileManager::FAccessat(int dirfd, const char *pathname, int mode) {
|
|
auto NewPath = GetSelf(pathname);
|
|
const char *SelfPath = NewPath ? NewPath->c_str() : nullptr;
|
|
|
|
auto Path = GetEmulatedPath(SelfPath);
|
|
if (!Path.empty()) {
|
|
uint64_t Result = ::syscall(SYS_faccessat, dirfd, Path.c_str(), mode);
|
|
if (Result != -1)
|
|
return Result;
|
|
}
|
|
|
|
return ::syscall(SYS_faccessat, dirfd, SelfPath, mode);
|
|
}
|
|
|
|
uint64_t FileManager::FAccessat2(int dirfd, const char *pathname, int mode, int flags) {
|
|
auto NewPath = GetSelf(pathname);
|
|
const char *SelfPath = NewPath ? NewPath->c_str() : nullptr;
|
|
|
|
auto Path = GetEmulatedPath(SelfPath, (flags & AT_SYMLINK_NOFOLLOW) == 0);
|
|
if (!Path.empty()) {
|
|
uint64_t Result = ::syscall(SYSCALL_DEF(faccessat2), dirfd, Path.c_str(), mode, flags);
|
|
if (Result != -1)
|
|
return Result;
|
|
}
|
|
|
|
return ::syscall(SYSCALL_DEF(faccessat2), dirfd, SelfPath, mode, flags);
|
|
}
|
|
|
|
uint64_t FileManager::Readlink(const char *pathname, char *buf, size_t bufsiz) {
|
|
// calculate the non-self link to exe
|
|
// Some executables do getpid, stat("/proc/$pid/exe")
|
|
char PidSelfPath[50];
|
|
snprintf(PidSelfPath, 50, "/proc/%i/exe", CurrentPID);
|
|
|
|
if (strcmp(pathname, "/proc/self/exe") == 0 ||
|
|
strcmp(pathname, "/proc/thread-self/exe") == 0 ||
|
|
strcmp(pathname, PidSelfPath) == 0) {
|
|
auto App = Filename();
|
|
strncpy(buf, App.c_str(), bufsiz);
|
|
return std::min(bufsiz, App.size());
|
|
}
|
|
|
|
auto Path = GetEmulatedPath(pathname);
|
|
if (!Path.empty()) {
|
|
uint64_t Result = ::readlink(Path.c_str(), buf, bufsiz);
|
|
if (Result != -1)
|
|
return Result;
|
|
|
|
if (Result == -1 &&
|
|
errno == EINVAL) {
|
|
// This means that the file wasn't a symlink
|
|
// This is expected behaviour
|
|
return -errno;
|
|
}
|
|
}
|
|
|
|
return ::readlink(pathname, buf, bufsiz);
|
|
}
|
|
|
|
uint64_t FileManager::Chmod(const char *pathname, mode_t mode) {
|
|
auto NewPath = GetSelf(pathname);
|
|
const char *SelfPath = NewPath ? NewPath->c_str() : nullptr;
|
|
|
|
auto Path = GetEmulatedPath(SelfPath);
|
|
if (!Path.empty()) {
|
|
uint64_t Result = ::chmod(Path.c_str(), mode);
|
|
if (Result != -1)
|
|
return Result;
|
|
}
|
|
|
|
return ::chmod(SelfPath, mode);
|
|
}
|
|
|
|
uint64_t FileManager::Readlinkat(int dirfd, const char *pathname, char *buf, size_t bufsiz) {
|
|
// calculate the non-self link to exe
|
|
// Some executables do getpid, stat("/proc/$pid/exe")
|
|
// Can't use `GetSelf` directly here since readlink{at,} returns EINVAL if it isn't a symlink
|
|
// Self is always a symlink and isn't expected to fail
|
|
|
|
std::string Path{};
|
|
if (((pathname && pathname[0] != '/') || // If pathname exists then it must not be absolute
|
|
!pathname) &&
|
|
dirfd != AT_FDCWD) {
|
|
// Passed in a dirfd that isn't magic FDCWD
|
|
// We need to get the path from the fd now
|
|
Path = FEX::get_fdpath(dirfd).value_or("");
|
|
|
|
if (pathname) {
|
|
if (!Path.empty()) {
|
|
// If the path returned empty then we don't need a separator
|
|
Path += "/";
|
|
}
|
|
Path += pathname;
|
|
}
|
|
}
|
|
else {
|
|
if (!pathname || strlen(pathname) == 0) {
|
|
return -1;
|
|
}
|
|
else if (pathname) {
|
|
Path = pathname;
|
|
}
|
|
}
|
|
|
|
char PidSelfPath[50];
|
|
snprintf(PidSelfPath, 50, "/proc/%i/exe", CurrentPID);
|
|
|
|
if (Path == "/proc/self/exe" ||
|
|
Path == "/proc/thread-self/exe" ||
|
|
Path == PidSelfPath) {
|
|
auto App = Filename();
|
|
strncpy(buf, App.c_str(), bufsiz);
|
|
return std::min(bufsiz, App.size());
|
|
}
|
|
|
|
Path = GetEmulatedPath(pathname);
|
|
if (!Path.empty()) {
|
|
uint64_t Result = ::readlinkat(dirfd, Path.c_str(), buf, bufsiz);
|
|
if (Result != -1)
|
|
return Result;
|
|
|
|
if (Result == -1 &&
|
|
errno == EINVAL) {
|
|
// This means that the file wasn't a symlink
|
|
// This is expected behaviour
|
|
return -errno;
|
|
}
|
|
}
|
|
|
|
return ::readlinkat(dirfd, pathname, buf, bufsiz);
|
|
}
|
|
|
|
uint64_t FileManager::Openat([[maybe_unused]] int dirfs, const char *pathname, int flags, uint32_t mode) {
|
|
auto NewPath = GetSelf(pathname);
|
|
const char *SelfPath = NewPath ? NewPath->c_str() : nullptr;
|
|
|
|
int32_t fd = -1;
|
|
|
|
fd = EmuFD.OpenAt(dirfs, SelfPath, flags, mode);
|
|
if (fd == -1) {
|
|
auto Path = GetEmulatedPath(SelfPath, true);
|
|
if (!Path.empty()) {
|
|
fd = ::openat(dirfs, Path.c_str(), flags, mode);
|
|
}
|
|
|
|
if (fd == -1)
|
|
fd = ::openat(dirfs, SelfPath, flags, mode);
|
|
}
|
|
|
|
if (fd != -1) {
|
|
FHU::ScopedSignalMaskWithMutex lk(FDLock);
|
|
FDToNameMap.insert_or_assign(fd, SelfPath);
|
|
}
|
|
|
|
return fd;
|
|
}
|
|
|
|
uint64_t FileManager::Openat2(int dirfs, const char *pathname, FEX::HLE::open_how *how, size_t usize) {
|
|
auto NewPath = GetSelf(pathname);
|
|
const char *SelfPath = NewPath ? NewPath->c_str() : nullptr;
|
|
|
|
int32_t fd = -1;
|
|
|
|
fd = EmuFD.OpenAt(dirfs, SelfPath, how->flags, how->mode);
|
|
if (fd == -1) {
|
|
auto Path = GetEmulatedPath(SelfPath, true);
|
|
if (!Path.empty()) {
|
|
fd = ::syscall(SYSCALL_DEF(openat2), dirfs, Path.c_str(), how, usize);
|
|
}
|
|
|
|
if (fd == -1)
|
|
fd = ::syscall(SYSCALL_DEF(openat2), dirfs, SelfPath, how, usize);
|
|
}
|
|
|
|
if (fd != -1) {
|
|
FHU::ScopedSignalMaskWithMutex lk(FDLock);
|
|
FDToNameMap.insert_or_assign(fd, SelfPath);
|
|
}
|
|
|
|
return fd;
|
|
|
|
}
|
|
|
|
uint64_t FileManager::Statx(int dirfd, const char *pathname, int flags, uint32_t mask, struct statx *statxbuf) {
|
|
auto NewPath = GetSelf(pathname);
|
|
const char *SelfPath = NewPath ? NewPath->c_str() : nullptr;
|
|
|
|
auto Path = GetEmulatedPath(SelfPath, (flags & AT_SYMLINK_NOFOLLOW) == 0);
|
|
if (!Path.empty()) {
|
|
uint64_t Result = FHU::Syscalls::statx(dirfd, Path.c_str(), flags, mask, statxbuf);
|
|
if (Result != -1)
|
|
return Result;
|
|
}
|
|
return FHU::Syscalls::statx(dirfd, SelfPath, flags, mask, statxbuf);
|
|
}
|
|
|
|
uint64_t FileManager::Mknod(const char *pathname, mode_t mode, dev_t dev) {
|
|
auto NewPath = GetSelf(pathname);
|
|
const char *SelfPath = NewPath ? NewPath->c_str() : nullptr;
|
|
|
|
auto Path = GetEmulatedPath(SelfPath);
|
|
if (!Path.empty()) {
|
|
uint64_t Result = ::mknod(Path.c_str(), mode, dev);
|
|
if (Result != -1)
|
|
return Result;
|
|
}
|
|
return ::mknod(SelfPath, mode, dev);
|
|
}
|
|
|
|
uint64_t FileManager::Statfs(const char *path, void *buf) {
|
|
auto Path = GetEmulatedPath(path);
|
|
if (!Path.empty()) {
|
|
uint64_t Result = ::statfs(Path.c_str(), reinterpret_cast<struct statfs*>(buf));
|
|
if (Result != -1)
|
|
return Result;
|
|
}
|
|
return ::statfs(path, reinterpret_cast<struct statfs*>(buf));
|
|
}
|
|
|
|
uint64_t FileManager::NewFSStatAt(int dirfd, const char *pathname, struct stat *buf, int flag) {
|
|
auto NewPath = GetSelf(pathname);
|
|
const char *SelfPath = NewPath ? NewPath->c_str() : nullptr;
|
|
|
|
auto Path = GetEmulatedPath(SelfPath, (flag & AT_SYMLINK_NOFOLLOW) == 0);
|
|
if (!Path.empty()) {
|
|
uint64_t Result = ::fstatat(dirfd, Path.c_str(), buf, flag);
|
|
if (Result != -1) {
|
|
return Result;
|
|
}
|
|
}
|
|
return ::fstatat(dirfd, SelfPath, buf, flag);
|
|
}
|
|
|
|
uint64_t FileManager::NewFSStatAt64(int dirfd, const char *pathname, struct stat64 *buf, int flag) {
|
|
auto NewPath = GetSelf(pathname);
|
|
const char *SelfPath = NewPath ? NewPath->c_str() : nullptr;
|
|
|
|
auto Path = GetEmulatedPath(SelfPath, (flag & AT_SYMLINK_NOFOLLOW) == 0);
|
|
if (!Path.empty()) {
|
|
uint64_t Result = ::fstatat64(dirfd, Path.c_str(), buf, flag);
|
|
if (Result != -1) {
|
|
return Result;
|
|
}
|
|
}
|
|
return ::fstatat64(dirfd, SelfPath, buf, flag);
|
|
}
|
|
|
|
std::string *FileManager::FindFDName(int fd) {
|
|
FHU::ScopedSignalMaskWithMutex lk(FDLock);
|
|
auto it = FDToNameMap.find(fd);
|
|
if (it == FDToNameMap.end()) {
|
|
return nullptr;
|
|
}
|
|
return &it->second;
|
|
}
|
|
|
|
}
|