Files
ARMSX2/common/Linux/LnxHostSys.cpp
T
Brian Degenhardt 3e077eff9b Merge yaps2: arm64 JIT transplant + test/perf/libretro infrastructure
Merges yaps2/main (github.com/yaps2/yaps2, c16b88cb7) into ARMSX2,
replacing the arm64 recompiler family with the yaps2 JITs and importing
the yaps2 testing, perf, and libretro infrastructure. Common ancestor is
upstream PCSX2 342db5152 (2026-06-19); git auto-merged all but 38 files.

Replaced (deleted in this merge, recoverable from history):
- arm64/aR5900*, aR3000A*, aVU* -> arm64/iR5900*/iR3000A*/microVU*-arm64:
  EE static-pin register file with lazy dirty tracking, dual-residence
  allocator, IOP block linking, native COP2 macro ops, inline unaligned
  fastmem, persisted VU program cache, call-ret shadow ring, VU0 spin
  fast-forward.
- MVU_DIFF shadow-run hooks in shared VU interpreter TUs (superseded by
  the offline vurunner JIT-vs-interp oracle).

Imported from yaps2:
- tests/ctest/core/recompilers: ~80 gtest suites (EE/IOP/VU differential
  harnesses, fuzzers, ABI digest tripwire, capture format pins) plus the
  gs_vertex_tests kernel oracle.
- pcsx2-vurunner / pcsx2-eerunner headless capture-replay runners.
- tools/perf counter-based A/B rigs, perf jitdump productionization,
  PmuCounters, clang-perf/clang-handheld presets.
- pcsx2-libretro core (ENABLE_LIBRETRO, default OFF; rename pending).
- GS vertex-kick fast path (GV series): TBL-based packed parse,
  register-resident kick, scalar-outcode cull, fused draw-rect/FindMinMax.
- Null renderer, VK_KHR_display direct WSI, swapchain PresentStats.
- SPU2 NEON mixer vectorization, EE timer read clamp (NFL 2K5 hang),
  IOP ioman signed-compare fix, assorted UB fixes.

Kept from ARMSX2 in the both-touched files:
- iOS dual-map W^X and fastmem-unavailable resilience (Memory, HostSys,
  vtlb). The split data/code area model is retained; both areas now take
  fixed VA hints so cached VU JIT code stays deterministic on Linux.
- Android thread-affinity model, VMState shutdown early-outs, all
  platform frontends, branding, CI, RetroAchievements identity/policy.
- GSDeviceVK: ARMSX2's push-descriptor decision logic (Mali crash gate,
  proprietary-vs-turnip Adreno split) merged with yaps2's descriptor-pool
  exhaustion recovery (flush + render-pass restart instead of dropped
  binds). Vendor feature policy is the union: Mali fbfetch policy with
  MediaTek/G57/Xclipse gates from ARMSX2; Adreno stencil/ROV/
  test-and-sample-depth hang avoidance and no_ps2_z_quantization from
  yaps2.

Build-system notes:
- The Qt debugger is now gated behind ENABLE_QT_DEBUGGER (default off on
  arm64) so handheld builds drop the KDDockWidgets dependency.
- GSDeviceNone and remaining yaps2 GS code were ported to the newer
  upstream GSTexture Usage-flags API.

The replaced backend's interpreter-fallback glue (intExecuteOneInst,
AndroidEEOpHist) and the EEDiffVerify runtime differ are retained for
now; dead pieces will be removed in a follow-up commit.
2026-07-19 10:24:29 -07:00

503 lines
14 KiB
C++

// SPDX-FileCopyrightText: 2002-2026 PCSX2 Dev Team
// SPDX-License-Identifier: GPL-3.0+
#include "common/Assertions.h"
#include "common/BitUtils.h"
#include "common/Console.h"
#include "common/CrashHandler.h"
#include "common/Error.h"
#include "common/HostSys.h"
#include <cstdio>
#include <csignal>
#include <cerrno>
#include <cstdlib>
#include <cstring>
#include <fcntl.h>
#include <limits.h>
#include <mutex>
#include <sys/mman.h>
#include <unistd.h>
#ifdef __APPLE__
#include <libkern/OSCacheControl.h>
#include <TargetConditionals.h>
#endif
#ifndef __APPLE__
#include <ucontext.h>
#endif
#include "fmt/format.h"
#if defined(__ANDROID__)
#include <sys/syscall.h>
// bionic lacks shm_open until API 30; memfd_create is a libc wrapper only from
// API 30 too, but the raw syscall works from API 26 (our minSdk).
static int memfd_create_wrapper(const char* name, unsigned int flags)
{
return static_cast<int>(syscall(__NR_memfd_create, name, flags));
}
#endif
#if defined(__FreeBSD__)
#include "cpuinfo.h"
#endif
static __ri uint LinuxProt(const PageProtectionMode& mode)
{
u32 lnxmode = 0;
if (mode.CanWrite())
lnxmode |= PROT_WRITE;
if (mode.CanRead())
lnxmode |= PROT_READ;
if (mode.CanExecute())
lnxmode |= PROT_EXEC | PROT_READ;
return lnxmode;
}
void HostSys::MemProtect(void* baseaddr, size_t size, const PageProtectionMode& mode)
{
pxAssertMsg((size & (__pagesize - 1)) == 0, "Size is page aligned");
const u32 lnxmode = LinuxProt(mode);
const int result = mprotect(baseaddr, size, lnxmode);
if (result != 0)
pxFail("mprotect() failed");
}
std::string HostSys::GetFileMappingName(const char* prefix)
{
const unsigned pid = static_cast<unsigned>(getpid());
#if defined(__FreeBSD__)
// FreeBSD's shm_open(3) requires name to be absolute
return fmt::format("/tmp/{}_{}", prefix, pid);
#else
return fmt::format("{}_{}", prefix, pid);
#endif
}
#if defined(__APPLE__) && TARGET_OS_IPHONE && !TARGET_OS_SIMULATOR
static int CreateIOSFileBackedSharedMemory(const char* name, size_t size, int shm_errno)
{
const char* tmpdir = std::getenv("TMPDIR");
if (!tmpdir || tmpdir[0] == '\0')
tmpdir = "/tmp";
for (int attempt = 0; attempt < 16; attempt++)
{
char path[PATH_MAX];
const int written = std::snprintf(path, sizeof(path), "%s/armsx2_%s_%u_%d.mem",
tmpdir, name, static_cast<unsigned>(getpid()), attempt);
if (written <= 0 || static_cast<size_t>(written) >= sizeof(path))
break;
const int fd = open(path, O_RDWR | O_CREAT | O_EXCL, 0600);
if (fd < 0)
{
if (errno == EEXIST)
continue;
std::fprintf(stderr,
"@@IOS_SHM_FILE_FALLBACK_FAIL@@ shm_open_errno=%d open_errno=%d path=\"%s\" size=%zu\n",
shm_errno, errno, path, size);
return -1;
}
if (fcntl(fd, F_SETFD, FD_CLOEXEC) != 0)
std::fprintf(stderr, "@@IOS_SHM_CLOEXEC_FAIL@@ errno=%d fd=%d\n", errno, fd);
if (ftruncate(fd, static_cast<off_t>(size)) < 0)
{
const int truncate_errno = errno;
unlink(path);
close(fd);
std::fprintf(stderr,
"@@IOS_SHM_FILE_FALLBACK_FAIL@@ shm_open_errno=%d ftruncate_errno=%d path=\"%s\" size=%zu\n",
shm_errno, truncate_errno, path, size);
return -1;
}
const int unlink_errno = (unlink(path) != 0) ? errno : 0;
std::fprintf(stderr,
"@@IOS_SHM_FILE_FALLBACK@@ shm_open_errno=%d fd=%d size=%zu path=\"%s\" unlink_errno=%d\n",
shm_errno, fd, size, path, unlink_errno);
return fd;
}
std::fprintf(stderr,
"@@IOS_SHM_FILE_FALLBACK_FAIL@@ shm_open_errno=%d reason=path_exhausted size=%zu\n",
shm_errno, size);
return -1;
}
#endif
void* HostSys::CreateSharedMemory(const char* name, size_t size)
{
#if defined(__ANDROID__)
// Android: memfd_create available since API 26 (our minSdk), no shm_open until API 30.
const int fd = memfd_create_wrapper(name, 0);
if (fd < 0)
{
std::fprintf(stderr, "memfd_create failed: %d\n", errno);
return nullptr;
}
#else
const int fd = shm_open(name, O_CREAT | O_EXCL | O_RDWR, 0600);
if (fd < 0)
{
const int shm_errno = errno;
#if defined(__APPLE__) && TARGET_OS_IPHONE && !TARGET_OS_SIMULATOR
const int file_fd = CreateIOSFileBackedSharedMemory(name, size, shm_errno);
if (file_fd >= 0)
return reinterpret_cast<void*>(static_cast<intptr_t>(file_fd));
#endif
std::fprintf(stderr, "shm_open failed: %d\n", shm_errno);
return nullptr;
}
// we're not going to be opening this mapping in other processes, so remove the file
shm_unlink(name);
#endif
// ensure it's the correct size
if (ftruncate(fd, static_cast<off_t>(size)) < 0)
{
std::fprintf(stderr, "ftruncate(%zu) failed: %d\n", size, errno);
return nullptr;
}
return reinterpret_cast<void*>(static_cast<intptr_t>(fd));
}
void HostSys::DestroySharedMemory(void* ptr)
{
close(static_cast<int>(reinterpret_cast<intptr_t>(ptr)));
}
#ifndef __APPLE__
size_t HostSys::GetRuntimePageSize()
{
int res = sysconf(_SC_PAGESIZE);
return (res > 0) ? static_cast<size_t>(res) : 0;
}
size_t HostSys::GetRuntimeCacheLineSize()
{
#if defined(__FreeBSD__)
if (!cpuinfo_initialize())
return 0;
u32 max_line_size = 0;
for (u32 i = 0; i < cpuinfo_get_processors_count(); i++)
{
const u32 l1i = cpuinfo_get_processor(i)->cache.l1i->line_size;
const u32 l1d = cpuinfo_get_processor(i)->cache.l1d->line_size;
const u32 res = std::max<u32>(l1i, l1d);
max_line_size = std::max<u32>(max_line_size, res);
}
return static_cast<size_t>(max_line_size);
#else
int l1i = sysconf(_SC_LEVEL1_DCACHE_LINESIZE);
int l1d = sysconf(_SC_LEVEL1_ICACHE_LINESIZE);
int res = (l1i > l1d) ? l1i : l1d;
for (int index = 0; index < 16; index++)
{
char buf[128];
snprintf(buf, sizeof(buf), "/sys/devices/system/cpu/cpu0/cache/index%d/coherency_line_size", index);
std::FILE* fp = std::fopen(buf, "rb");
if (!fp)
break;
std::fread(buf, sizeof(buf), 1, fp);
std::fclose(fp);
int val = std::atoi(buf);
res = (val > res) ? val : res;
}
return (res > 0) ? static_cast<size_t>(res) : 0;
#endif
}
#endif
SharedMemoryMappingArea::SharedMemoryMappingArea(u8* base_ptr, size_t size, size_t num_pages)
: m_base_ptr(base_ptr)
, m_size(size)
, m_num_pages(num_pages)
{
}
SharedMemoryMappingArea::~SharedMemoryMappingArea()
{
pxAssertRel(m_num_mappings == 0, "No mappings left");
if (munmap(m_base_ptr, m_size) != 0)
pxFailRel("Failed to release shared memory area");
}
std::unique_ptr<SharedMemoryMappingArea> SharedMemoryMappingArea::Create(size_t size, bool jit, uptr fixed_base_hint)
{
pxAssertRel(Common::IsAlignedPow2(size, __pagesize), "Size is page aligned");
uint flags = MAP_ANONYMOUS | MAP_PRIVATE;
uint prot = PROT_NONE;
#ifdef __APPLE__
if (jit) {
flags |= MAP_JIT;
#if TARGET_OS_IPHONE && !TARGET_OS_SIMULATOR
// iOS rejects PROT_NONE MAP_JIT reservations on the LiveContainer/JIT path.
// Code memory must be born as an actual JIT mapping; callers can mprotect it
// afterward, but we never fall back to a non-MAP_JIT executable region.
prot = PROT_READ | PROT_WRITE | PROT_EXEC;
#endif
}
#endif
void* alloc = MAP_FAILED;
// Deterministic VA placement for the on-disk VU program cache: when a
// fixed base hint is given, try it (plus 256MB-stride fallback slots) with a
// hint-and-verify mmap (no MAP_FIXED, so we never clobber an existing
// mapping). If none of the slots land exactly, fall through to kernel
// placement — the program cache records the arena base and simply misses on
// a mismatch, so this trades determinism for booting, never correctness.
if (fixed_base_hint != 0)
{
for (int slot = 0; slot <= 10; slot++)
{
void* const want = reinterpret_cast<void*>(fixed_base_hint + (static_cast<uptr>(slot) << 28));
void* const got = mmap(want, size, prot, flags, -1, 0);
if (got == MAP_FAILED)
continue;
if (got == want)
{
alloc = got;
break;
}
munmap(got, size);
}
}
if (alloc == MAP_FAILED)
alloc = mmap(nullptr, size, prot, flags, -1, 0);
if (alloc == MAP_FAILED)
{
const int err = errno;
std::fprintf(stderr,
"@@HOST_MMAP_FAIL@@ op=reserve size=%zu jit=%d flags=0x%x prot=0x%x err=%d message=\"%s\"\n",
size, jit ? 1 : 0, flags, prot, err, std::strerror(err));
return nullptr;
}
return std::unique_ptr<SharedMemoryMappingArea>(new SharedMemoryMappingArea(static_cast<u8*>(alloc), size, size / __pagesize));
}
u8* SharedMemoryMappingArea::Map(void* file_handle, size_t file_offset, void* map_base, size_t map_size, const PageProtectionMode& mode)
{
pxAssert(static_cast<u8*>(map_base) >= m_base_ptr && static_cast<u8*>(map_base) < (m_base_ptr + m_size));
const uint lnxmode = LinuxProt(mode);
if (file_handle)
{
const int fd = static_cast<int>(reinterpret_cast<intptr_t>(file_handle));
// MAP_FIXED is okay here, since we've reserved the entire region, and *want* to overwrite the mapping.
void* const ptr = mmap(map_base, map_size, lnxmode, MAP_SHARED | MAP_FIXED, fd, static_cast<off_t>(file_offset));
if (ptr == MAP_FAILED)
{
const int err = errno;
std::fprintf(stderr,
"@@HOST_MMAP_FAIL@@ op=map_shared base=%p size=%zu prot=0x%x err=%d message=\"%s\"\n",
map_base, map_size, lnxmode, err, std::strerror(err));
return nullptr;
}
}
else
{
// macOS doesn't seem to allow MAP_JIT with MAP_FIXED
// So we do the MAP_JIT in the allocation, and just mprotect here
// Note that this will only work the first time for a given region
if (mprotect(map_base, map_size, lnxmode) < 0)
{
const int err = errno;
std::fprintf(stderr,
"@@HOST_MMAP_FAIL@@ op=mprotect base=%p size=%zu prot=0x%x err=%d message=\"%s\"\n",
map_base, map_size, lnxmode, err, std::strerror(err));
return nullptr;
}
}
m_num_mappings++;
return static_cast<u8*>(map_base);
}
bool SharedMemoryMappingArea::Unmap(void* map_base, size_t map_size, bool is_file)
{
pxAssert(static_cast<u8*>(map_base) >= m_base_ptr && static_cast<u8*>(map_base) < (m_base_ptr + m_size));
if (mmap(map_base, map_size, PROT_NONE, MAP_PRIVATE | MAP_ANONYMOUS | MAP_FIXED, -1, 0) == MAP_FAILED)
return false;
m_num_mappings--;
return true;
}
#ifdef ARCH_ARM64
void HostSys::FlushInstructionCache(void* address, u32 size)
{
#ifdef __APPLE__
sys_icache_invalidate(address, size);
#else
__builtin___clear_cache(reinterpret_cast<char*>(address), reinterpret_cast<char*>(address) + size);
#endif
}
#endif
#ifndef __APPLE__ // These are done in DarwinMisc
namespace PageFaultHandler
{
static std::recursive_mutex s_exception_handler_mutex;
static bool s_in_exception_handler = false;
static bool s_installed = false;
} // namespace PageFaultHandler
#ifdef ARCH_ARM64
[[maybe_unused]] static bool IsStoreInstruction(const void* ptr)
{
u32 bits;
std::memcpy(&bits, ptr, sizeof(bits));
// Based on vixl's disassembler Instruction::IsStore().
// if (Mask(LoadStoreAnyFMask) != LoadStoreAnyFixed)
if ((bits & 0x0a000000) != 0x08000000)
return false;
// if (Mask(LoadStorePairAnyFMask) == LoadStorePairAnyFixed)
if ((bits & 0x3a000000) == 0x28000000)
{
// return Mask(LoadStorePairLBit) == 0
return (bits & (1 << 22)) == 0;
}
switch (bits & 0xC4C00000)
{
case 0x00000000: // STRB_w
case 0x40000000: // STRH_w
case 0x80000000: // STR_w
case 0xC0000000: // STR_x
case 0x04000000: // STR_b
case 0x44000000: // STR_h
case 0x84000000: // STR_s
case 0xC4000000: // STR_d
case 0x04800000: // STR_q
return true;
default:
return false;
}
}
#endif // ARCH_ARM64
namespace PageFaultHandler
{
static void SignalHandler(int sig, siginfo_t* info, void* ctx);
} // namespace PageFaultHandler
void PageFaultHandler::SignalHandler(int sig, siginfo_t* info, void* ctx)
{
#if defined(__linux__)
void* const exception_address = reinterpret_cast<void*>(info->si_addr);
#if defined(ARCH_X86)
void* const exception_pc = reinterpret_cast<void*>(static_cast<ucontext_t*>(ctx)->uc_mcontext.gregs[REG_RIP]);
const bool is_write = (static_cast<ucontext_t*>(ctx)->uc_mcontext.gregs[REG_ERR] & 2) != 0;
#elif defined(ARCH_ARM64)
void* const exception_pc = reinterpret_cast<void*>(static_cast<ucontext_t*>(ctx)->uc_mcontext.pc);
const bool is_write = IsStoreInstruction(exception_pc);
#endif
#elif defined(__FreeBSD__)
#if defined(ARCH_X86)
void* const exception_address = reinterpret_cast<void*>(static_cast<ucontext_t*>(ctx)->uc_mcontext.mc_addr);
void* const exception_pc = reinterpret_cast<void*>(static_cast<ucontext_t*>(ctx)->uc_mcontext.mc_rip);
const bool is_write = (static_cast<ucontext_t*>(ctx)->uc_mcontext.mc_err & 2) != 0;
#elif defined(ARCH_ARM64)
void* const exception_address = reinterpret_cast<void*>(static_cast<ucontext_t*>(ctx)->uc_mcontext->__es.__far);
void* const exception_pc = reinterpret_cast<void*>(static_cast<ucontext_t*>(ctx)->uc_mcontext->__ss.__pc);
const bool is_write = IsStoreInstruction(exception_pc);
#endif
#endif
// Executing the handler concurrently from multiple threads wouldn't go down well.
s_exception_handler_mutex.lock();
// Prevent recursive exception filtering.
HandlerResult result = HandlerResult::ExecuteNextHandler;
if (!s_in_exception_handler)
{
s_in_exception_handler = true;
result = HandlePageFault(exception_pc, exception_address, is_write);
s_in_exception_handler = false;
}
s_exception_handler_mutex.unlock();
// Resumes execution right where we left off (re-executes instruction that caused the SIGSEGV).
if (result == HandlerResult::ContinueExecution)
return;
// We couldn't handle it. Pass it off to the crash dumper.
CrashHandler::CrashSignalHandler(sig, info, ctx);
}
bool PageFaultHandler::Install(Error* error)
{
std::unique_lock lock(s_exception_handler_mutex);
// Android keeps one process across game launches, so the VM lifecycle can call
// Install() more than once. Make it idempotent instead of tripping the release
// assert below (which aborts the CPU thread on the second game boot).
if (s_installed)
return true;
pxAssertRel(!s_installed, "Page fault handler has already been installed.");
struct sigaction sa;
sigemptyset(&sa.sa_mask);
sa.sa_flags = SA_SIGINFO | SA_NODEFER;
sa.sa_sigaction = SignalHandler;
if (sigaction(SIGSEGV, &sa, nullptr) != 0)
{
Error::SetErrno(error, "sigaction() for SIGSEGV failed: ", errno);
return false;
}
#ifdef ARCH_ARM64
// We can get SIGBUS on ARM64.
if (sigaction(SIGBUS, &sa, nullptr) != 0)
{
Error::SetErrno(error, "sigaction() for SIGBUS failed: ", errno);
return false;
}
#endif
s_installed = true;
return true;
}
bool PageFaultHandler::InstallSecondaryThread() { return true; }
#endif // __APPLE__