Files
FEX-Emu--FEX/External/FEXCore/Source/Utils/Threads.cpp
T
Ryan Houdek 1e40148f60 Fixes host thread stacks ending up in lower 32-bit VA
Overriding glibc's mmap and munmap functions don't encapsulate that functions they use
for allocating stack data so it was falling down the system mmap/munmap path.
This was causing host side stacks to end up in the 32-bit VA space in 32-bit applications.
2021-05-04 22:15:46 -07:00

132 lines
3.3 KiB
C++

#include <FEXCore/Utils/Allocator.h>
#include <FEXCore/Utils/LogManager.h>
#include <FEXCore/Utils/Threads.h>
#include <cstring>
#include <mutex>
#include <pthread.h>
#include <sys/mman.h>
#include <deque>
namespace FEXCore::Threads {
// Stack pool handling
struct StackPoolItem {
void *Ptr;
size_t Size;
};
std::mutex StackPoolMutex{};
std::deque<StackPoolItem> StackPool;
void *AllocateStackObject(size_t Size) {
std::unique_lock<std::mutex> lk{StackPoolMutex};
if (StackPool.size() == 0) {
// Nothing in the pool, just allocate
return FEXCore::Allocator::mmap(nullptr, Size, PROT_READ | PROT_WRITE, MAP_PRIVATE | MAP_ANONYMOUS | MAP_GROWSDOWN, -1, 0);
}
// Keep the first item in the stack pool
auto Result = StackPool.front().Ptr;
StackPool.pop_front();
// Erase the rest as a garbage collection step
for (auto &Item : StackPool) {
FEXCore::Allocator::munmap(Item.Ptr, Item.Size);
}
return Result;
}
void AddStackToPool(void *Ptr, size_t Size) {
std::unique_lock<std::mutex> lk{StackPoolMutex};
StackPool.emplace_back(StackPoolItem{Ptr, Size});
}
void *InitializeThread(void *Ptr);
class PThread final : public Thread {
public:
PThread(FEXCore::Threads::ThreadFunc Func, void *Arg)
: UserFunc {Func}
, UserArg {Arg} {
pthread_attr_t Attr{};
Stack = AllocateStackObject(STACK_SIZE);
pthread_attr_init(&Attr);
pthread_attr_setstack(&Attr, Stack, STACK_SIZE);
pthread_create(&Thread, &Attr, Func, Arg);
pthread_attr_destroy(&Attr);
}
bool joinable() override {
pthread_attr_t Attr{};
if (pthread_getattr_np(Thread, &Attr) == 0) {
int AttachState{};
if (pthread_attr_getdetachstate(&Attr, &AttachState) == 0) {
if (AttachState == PTHREAD_CREATE_JOINABLE) {
return true;
}
}
}
return false;
}
bool join(void **ret) override {
return pthread_join(Thread, ret) == 0;
}
bool detach() override {
return pthread_detach(Thread) == 0;
}
bool IsSelf() override {
auto self = pthread_self();
return self == Thread;
}
void *Execute() {
return UserFunc(UserArg);
}
void FreeStack() {
AddStackToPool(Stack, STACK_SIZE);
}
private:
pthread_t Thread;
FEXCore::Threads::ThreadFunc UserFunc;
void *UserArg;
void *Stack{};
constexpr static size_t STACK_SIZE = 8 * 1024 * 1024;
};
void *InitializeThread(void *Ptr) {
PThread *Thread{reinterpret_cast<PThread*>(Ptr)};
// Run the user function
void *Result = Thread->Execute();
// Put the stack back in to the stack pool
Thread->FreeStack();
return Result;
}
std::unique_ptr<FEXCore::Threads::Thread> CreateThread_PThread(
ThreadFunc Func,
void* Arg) {
return std::make_unique<PThread>(Func, Arg);
}
static FEXCore::Threads::Pointers Ptrs = {
.CreateThread = CreateThread_PThread,
};
std::unique_ptr<FEXCore::Threads::Thread> FEXCore::Threads::Thread::Create(
ThreadFunc Func,
void* Arg) {
return Ptrs.CreateThread(Func, Arg);
}
void FEXCore::Threads::Thread::SetInternalPointers(Pointers const &_Ptrs) {
memcpy(&Ptrs, &_Ptrs, sizeof(FEXCore::Threads::Pointers));
}
}