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8 Commits

Author SHA1 Message Date
lizzie 1439a8041b fx 2026-05-19 07:53:59 +00:00
lizzie 6c3ea34293 fixup the stupid boost map 2026-05-19 07:08:37 +00:00
lizzie bca75e8c21 Trigger Build 2026-05-19 07:08:37 +00:00
lizzie 7572632afa fuckery2 2026-05-19 07:08:37 +00:00
lizzie 641a430463 no move constructor? 2026-05-19 07:08:36 +00:00
lizzie 60328b0bd9 [core/hle/service/nvdrv] fix Nvmap storage being pointer-unstable due to ankerl maps
Signed-off-by: lizzie <lizzie@eden-emu.dev>
2026-05-19 07:08:36 +00:00
lizzie e875a3196b [core/hle/services/sockets] allow 'valid' range from [16,255] for IPv4 (#3491)
Signed-off-by: lizzie <lizzie@eden-emu.dev>
Reviewed-on: https://git.eden-emu.dev/eden-emu/eden/pulls/3491
Reviewed-by: Maufeat <sahyno1996@gmail.com>
Reviewed-by: CamilleLaVey <camillelavey99@gmail.com>
2026-05-18 23:54:47 +02:00
lizzie 4eb082485d [video_core] fix odr violation in formatter for pixelFormat (#3504)
Signed-off-by: lizzie <lizzie@eden-emu.dev>
Reviewed-on: https://git.eden-emu.dev/eden-emu/eden/pulls/3504
Reviewed-by: crueter <crueter@eden-emu.dev>
Reviewed-by: CamilleLaVey <camillelavey99@gmail.com>
2026-05-18 23:54:07 +02:00
10 changed files with 139 additions and 197 deletions
+61 -106
View File
@@ -25,42 +25,33 @@ NvMap::Handle::Handle(u64 size_, Id id_)
flags.raw = 0;
}
NvResult NvMap::Handle::Alloc(Flags pFlags, u32 pAlign, u8 pKind, u64 pAddress,
NvCore::SessionId pSessionId) {
std::scoped_lock lock(mutex);
NvResult NvMap::Handle::Alloc(Flags pFlags, u32 pAlign, u8 pKind, u64 pAddress, NvCore::SessionId pSessionId) {
// Handles cannot be allocated twice
if (allocated) {
return NvResult::AccessDenied;
}
flags = pFlags;
kind = pKind;
align = pAlign < YUZU_PAGESIZE ? YUZU_PAGESIZE : pAlign;
session_id = pSessionId;
// This flag is only applicable for handles with an address passed
if (pAddress) {
flags.keep_uncached_after_free.Assign(0);
} else {
LOG_CRITICAL(Service_NVDRV,
"Mapping nvmap handles without a CPU side address is unimplemented!");
LOG_CRITICAL(Service_NVDRV, "Mapping nvmap handles without a CPU side address is unimplemented!");
}
size = Common::AlignUp(size, YUZU_PAGESIZE);
aligned_size = Common::AlignUp(size, align);
address = pAddress;
allocated = true;
return NvResult::Success;
}
NvResult NvMap::Handle::Duplicate(bool internal_session) {
std::scoped_lock lock(mutex);
// Unallocated handles cannot be duplicated as duplication requires memory accounting (in HOS)
if (!allocated) [[unlikely]] {
return NvResult::BadValue;
}
// If we internally use FromId the duplication tracking of handles won't work accurately due to
// us not implementing per-process handle refs.
if (internal_session) {
@@ -68,16 +59,14 @@ NvResult NvMap::Handle::Duplicate(bool internal_session) {
} else {
dupes++;
}
return NvResult::Success;
}
NvMap::NvMap(Container& core_, Tegra::Host1x::Host1x& host1x_) : host1x{host1x_}, core{core_} {}
void NvMap::AddHandle(std::shared_ptr<Handle> handle_description) {
std::scoped_lock lock(handles_lock);
handles.emplace(handle_description->id, std::move(handle_description));
void NvMap::AddHandle(Handle&& handle_description) {
std::scoped_lock l(handles_lock);
handles.insert_or_assign(handle_description.id, std::move(handle_description));
}
void NvMap::UnmapHandle(Handle& handle_description) {
@@ -116,57 +105,48 @@ void NvMap::UnmapHandle(Handle& handle_description) {
bool NvMap::TryRemoveHandle(const Handle& handle_description) {
// No dupes left, we can remove from handle map
if (handle_description.dupes == 0 && handle_description.internal_dupes == 0) {
std::scoped_lock lock(handles_lock);
auto it{handles.find(handle_description.id)};
std::scoped_lock l(handles_lock);
auto it = handles.find(handle_description.id);
if (it != handles.end()) {
handles.erase(it);
}
return true;
} else {
return false;
}
}
NvResult NvMap::CreateHandle(u64 size, std::shared_ptr<NvMap::Handle>& result_out) {
if (!size) [[unlikely]] {
NvResult NvMap::CreateHandle(u64 size, Handle::Id& out_handle) {
if (!Common::AlignUp(size, YUZU_PAGESIZE)) {
return NvResult::BadValue;
}
u32 id{next_handle_id.fetch_add(HandleIdIncrement, std::memory_order_relaxed)};
auto handle_description{std::make_shared<Handle>(size, id)};
AddHandle(handle_description);
result_out = handle_description;
u32 id = next_handle_id.fetch_add(HandleIdIncrement, std::memory_order_relaxed);
AddHandle(Handle(size, id));
out_handle = id;
return NvResult::Success;
}
std::shared_ptr<NvMap::Handle> NvMap::GetHandle(Handle::Id handle) {
std::scoped_lock lock(handles_lock);
try {
return handles.at(handle);
} catch (std::out_of_range&) {
return nullptr;
}
std::optional<std::reference_wrapper<NvMap::Handle>> NvMap::GetHandle(Handle::Id handle) {
if (auto const it = handles.find(handle); it != handles.end())
return {it->second};
return std::nullopt;
}
DAddr NvMap::GetHandleAddress(Handle::Id handle) {
std::scoped_lock lock(handles_lock);
try {
return handles.at(handle)->d_address;
} catch (std::out_of_range&) {
return 0;
}
if (auto const it = handles.find(handle); it != handles.end())
return it->second.d_address;
return 0;
}
DAddr NvMap::PinHandle(NvMap::Handle::Id handle, bool low_area_pin) {
auto handle_description{GetHandle(handle)};
if (!handle_description) [[unlikely]] {
std::scoped_lock lock(handles_lock);
auto o = GetHandle(handle);
if (!o) [[unlikely]] {
return 0;
}
std::scoped_lock lock(handle_description->mutex);
auto handle_description = &o->get();
const auto map_low_area = [&] {
if (handle_description->pin_virt_address == 0) {
u32 address = host1x.Allocator().Allocate(u32(handle_description->aligned_size));
@@ -180,17 +160,15 @@ DAddr NvMap::PinHandle(NvMap::Handle::Id handle, bool low_area_pin) {
{
// Lock now to prevent our queue entry from being removed for allocation in-between the
// following check and erase
std::scoped_lock queueLock(unmap_queue_lock);
std::scoped_lock ql(unmap_queue_lock);
if (handle_description->unmap_queue_entry) {
unmap_queue.erase(*handle_description->unmap_queue_entry);
handle_description->unmap_queue_entry.reset();
if (low_area_pin) {
map_low_area();
handle_description->pins++;
return static_cast<DAddr>(handle_description->pin_virt_address);
return DAddr(handle_description->pin_virt_address);
}
handle_description->pins++;
return handle_description->d_address;
}
@@ -211,12 +189,11 @@ DAddr NvMap::PinHandle(NvMap::Handle::Id handle, bool low_area_pin) {
while ((address = smmu.Allocate(aligned_up)) == 0) {
// Free handles until the allocation succeeds
std::scoped_lock queueLock(unmap_queue_lock);
if (auto freeHandleDesc{unmap_queue.front()}) {
if (auto free_handle = handles.find(unmap_queue.front()); free_handle != handles.end()) {
// Handles in the unmap queue are guaranteed not to be pinned so don't bother
// checking if they are before unmapping
std::scoped_lock freeLock(freeHandleDesc->mutex);
if (handle_description->d_address)
UnmapHandle(*freeHandleDesc);
UnmapHandle(free_handle->second);
} else {
LOG_CRITICAL(Service_NVDRV, "Ran out of SMMU address space!");
}
@@ -234,51 +211,44 @@ DAddr NvMap::PinHandle(NvMap::Handle::Id handle, bool low_area_pin) {
handle_description->pins++;
if (low_area_pin) {
return static_cast<DAddr>(handle_description->pin_virt_address);
return DAddr(handle_description->pin_virt_address);
}
return handle_description->d_address;
}
void NvMap::UnpinHandle(Handle::Id handle) {
auto handle_description{GetHandle(handle)};
if (!handle_description) {
return;
}
std::scoped_lock lock(handle_description->mutex);
if (--handle_description->pins < 0) {
LOG_WARNING(Service_NVDRV, "Pin count imbalance detected!");
} else if (!handle_description->pins) {
std::scoped_lock queueLock(unmap_queue_lock);
// Add to the unmap queue allowing this handle's memory to be freed if needed
unmap_queue.push_back(handle_description);
handle_description->unmap_queue_entry = std::prev(unmap_queue.end());
std::scoped_lock lock(handles_lock);
if (auto o = GetHandle(handle); o) {
auto handle_description = &o->get();
if (--handle_description->pins < 0) {
LOG_WARNING(Service_NVDRV, "Pin count imbalance detected!");
} else if (!handle_description->pins) {
std::scoped_lock ql(unmap_queue_lock);
// Add to the unmap queue allowing this handle's memory to be freed if needed
unmap_queue.push_back(handle);
handle_description->unmap_queue_entry = std::prev(unmap_queue.end());
}
}
}
void NvMap::DuplicateHandle(Handle::Id handle, bool internal_session) {
auto handle_description{GetHandle(handle)};
if (!handle_description) {
std::scoped_lock lock(handles_lock);
auto o = GetHandle(handle);
if (!o) {
LOG_CRITICAL(Service_NVDRV, "Unregistered handle!");
return;
}
auto result = handle_description->Duplicate(internal_session);
auto result = o->get().Duplicate(internal_session);
if (result != NvResult::Success) {
LOG_CRITICAL(Service_NVDRV, "Could not duplicate handle!");
}
}
std::optional<NvMap::FreeInfo> NvMap::FreeHandle(Handle::Id handle, bool internal_session) {
std::weak_ptr<Handle> hWeak{GetHandle(handle)};
FreeInfo freeInfo;
// We use a weak ptr here so we can tell when the handle has been freed and report that back to
// guest
if (auto handle_description = hWeak.lock()) {
std::scoped_lock lock(handle_description->mutex);
// We use a weak ptr here so we can tell when the handle has been freed and report that back to guest
std::scoped_lock lock(handles_lock);
if (auto o = GetHandle(handle); o) {
auto handle_description = &o->get();
if (internal_session) {
if (--handle_description->internal_dupes < 0)
LOG_WARNING(Service_NVDRV, "Internal duplicate count imbalance detected!");
@@ -288,25 +258,25 @@ std::optional<NvMap::FreeInfo> NvMap::FreeHandle(Handle::Id handle, bool interna
} else if (handle_description->dupes == 0) {
// Force unmap the handle
if (handle_description->d_address) {
std::scoped_lock queueLock(unmap_queue_lock);
std::scoped_lock ql(unmap_queue_lock);
UnmapHandle(*handle_description);
}
handle_description->pins = 0;
}
}
// Try to remove the shared ptr to the handle from the map, if nothing else is using the
// handle then it will now be freed when `handle_description` goes out of scope
if (TryRemoveHandle(*handle_description)) {
LOG_DEBUG(Service_NVDRV, "Removed nvmap handle: {}", handle);
} else {
LOG_DEBUG(Service_NVDRV,
"Tried to free nvmap handle: {} but didn't as it still has duplicates",
handle);
LOG_DEBUG(Service_NVDRV, "Tried to free nvmap handle: {} but didn't as it still has duplicates", handle);
}
freeInfo = {
// // If the handle hasn't been freed from memory, mark that
// if (!hWeak.expired()) {
// LOG_DEBUG(Service_NVDRV, "nvmap handle: {} wasn't freed as it is still in use", handle);
// freeInfo.can_unlock = false;
// }
return FreeInfo{
.address = handle_description->address,
.size = handle_description->size,
.was_uncached = handle_description->flags.map_uncached.Value() != 0,
@@ -315,30 +285,15 @@ std::optional<NvMap::FreeInfo> NvMap::FreeHandle(Handle::Id handle, bool interna
} else {
return std::nullopt;
}
// If the handle hasn't been freed from memory, mark that
if (!hWeak.expired()) {
LOG_DEBUG(Service_NVDRV, "nvmap handle: {} wasn't freed as it is still in use", handle);
freeInfo.can_unlock = false;
}
return freeInfo;
}
void NvMap::UnmapAllHandles(NvCore::SessionId session_id) {
auto handles_copy = [&] {
std::scoped_lock lk{handles_lock};
return handles;
}();
for (auto& [id, handle] : handles_copy) {
{
std::scoped_lock lk{handle->mutex};
if (handle->session_id.id != session_id.id || handle->dupes <= 0) {
continue;
}
std::scoped_lock lk{handles_lock};
for (auto it = handles.begin(); it != handles.end(); ++it) {
if (it->second.session_id.id != session_id.id || it->second.dupes <= 0) {
continue;
}
FreeHandle(id, false);
FreeHandle(it->first, false);
}
}
+30 -44
View File
@@ -12,6 +12,11 @@
#include <memory>
#include <mutex>
#include <optional>
#if BOOST_VERSION >= 109000
#include <boost/unordered/unordered_node_map.hpp>
#else
#include <unordered_map>
#endif
#include <ankerl/unordered_dense.h>
#include <assert.h>
@@ -31,54 +36,36 @@ class Host1x;
namespace Service::Nvidia::NvCore {
class Container;
/**
* @brief The nvmap core class holds the global state for nvmap and provides methods to manage
* handles
*/
/// @brief The nvmap core class holds the global state for nvmap and provides methods to manage handles
class NvMap {
public:
/**
* @brief A handle to a contiguous block of memory in an application's address space
*/
/// @brief A handle to a contiguous block of memory in an application's address space
struct Handle {
std::mutex mutex;
using Id = u32;
std::optional<typename std::list<Handle::Id>::iterator> unmap_queue_entry{};
u64 align{}; //!< The alignment to use when pinning the handle onto the SMMU
u64 size; //!< Page-aligned size of the memory the handle refers to
u64 aligned_size; //!< `align`-aligned size of the memory the handle refers to
u64 orig_size; //!< Original unaligned size of the memory this handle refers to
DAddr d_address{}; //!< The memory location in the device's AS that this handle corresponds to, this can also be in the nvdrv tmem
VAddr address{}; //!< The memory location in the guest's AS that this handle corresponds to, this can also be in the nvdrv tmem
s64 pins{};
s32 dupes{1}; //!< How many guest references there are to this handle
s32 internal_dupes{0}; //!< How many emulator-internal references there are to this handle
using Id = u32;
Id id; //!< A globally unique identifier for this handle
s64 pins{};
u32 pin_virt_address{};
std::optional<typename std::list<std::shared_ptr<Handle>>::iterator> unmap_queue_entry{};
union Flags {
u32 raw;
BitField<0, 1, u32> map_uncached; //!< If the handle should be mapped as uncached
BitField<2, 1, u32> keep_uncached_after_free; //!< Only applicable when the handle was
//!< allocated with a fixed address
BitField<4, 1, u32> _unk0_; //!< Passed to IOVMM for pins
BitField<2, 1, u32> keep_uncached_after_free; //!< Only applicable when the handle was allocated with a fixed address
BitField<4, 1, u32> _unk0_; //!< Passed to IOVMM for pins
} flags{};
static_assert(sizeof(Flags) == sizeof(u32));
VAddr address{}; //!< The memory location in the guest's AS that this handle corresponds to,
//!< this can also be in the nvdrv tmem
bool is_shared_mem_mapped{}; //!< If this nvmap has been mapped with the MapSharedMem IPC
//!< call
u8 kind{}; //!< Used for memory compression
bool allocated{}; //!< If the handle has been allocated with `Alloc`
bool in_heap{};
NvCore::SessionId session_id{};
DAddr d_address{}; //!< The memory location in the device's AS that this handle corresponds
//!< to, this can also be in the nvdrv tmem
u8 kind{}; //!< Used for memory compression
bool allocated : 1 = false; //!< If the handle has been allocated with `Alloc`
bool in_heap : 1 = false;
bool is_shared_mem_mapped : 1 = false; //!< If this nvmap has been mapped with the MapSharedMem IPC < call
Handle(u64 size, Id id);
@@ -123,9 +110,9 @@ public:
/**
* @brief Creates an unallocated handle of the given size
*/
[[nodiscard]] NvResult CreateHandle(u64 size, std::shared_ptr<NvMap::Handle>& result_out);
[[nodiscard]] NvResult CreateHandle(u64 size, Handle::Id& out_handle);
std::shared_ptr<Handle> GetHandle(Handle::Id handle);
std::optional<std::reference_wrapper<Handle>> GetHandle(Handle::Id handle);
DAddr GetHandleAddress(Handle::Id handle);
@@ -157,20 +144,21 @@ public:
void UnmapAllHandles(NvCore::SessionId session_id);
private:
std::list<std::shared_ptr<Handle>> unmap_queue{};
std::list<Handle::Id> unmap_queue{};
/// Main owning map of handles
#if BOOST_VERSION >= 109000
boost::unordered_node_map<Handle::Id, Handle> handles{};
#else
std::unordered_map<Handle::Id, Handle> handles{};
#endif
std::mutex unmap_queue_lock{}; //!< Protects access to `unmap_queue`
ankerl::unordered_dense::map<Handle::Id, std::shared_ptr<Handle>>
handles{}; //!< Main owning map of handles
std::mutex handles_lock; //!< Protects access to `handles`
static constexpr u32 HandleIdIncrement{
4}; //!< Each new handle ID is an increment of 4 from the previous
static constexpr u32 HandleIdIncrement{4}; //!< Each new handle ID is an increment of 4 from the previous
std::atomic<u32> next_handle_id{HandleIdIncrement};
Tegra::Host1x::Host1x& host1x;
Container& core;
void AddHandle(std::shared_ptr<Handle> handle);
void AddHandle(Handle&& handle);
/**
* @brief Unmaps and frees the SMMU memory region a handle is mapped to
@@ -184,7 +172,5 @@ private:
* @return If the handle was removed from the map
*/
bool TryRemoveHandle(const Handle& handle_description);
Container& core;
};
} // namespace Service::Nvidia::NvCore
@@ -329,10 +329,11 @@ NvResult nvhost_as_gpu::MapBufferEx(IoctlMapBufferEx& params) {
}
}
auto handle{nvmap.GetHandle(params.handle)};
if (!handle) {
auto o = nvmap.GetHandle(params.handle);
if (!o) {
return NvResult::BadValue;
}
auto handle = &o->get();
DAddr device_address = DAddr(nvmap.PinHandle(params.handle, false) + params.buffer_offset);
u64 size{params.mapping_size ? params.mapping_size : handle->orig_size};
@@ -103,17 +103,13 @@ NvResult nvhost_nvdec_common::Submit(IoctlSubmit& params, std::span<u8> data, De
for (std::size_t i = 0; i < syncpt_increments.size(); i++) {
const SyncptIncr& syncpt_incr = syncpt_increments[i];
fence_thresholds[i] =
syncpoint_manager.IncrementSyncpointMaxExt(syncpt_incr.id, syncpt_incr.increments);
fence_thresholds[i] = syncpoint_manager.IncrementSyncpointMaxExt(syncpt_incr.id, syncpt_incr.increments);
}
for (const auto& cmd_buffer : command_buffers) {
const auto object = nvmap.GetHandle(cmd_buffer.memory_id);
ASSERT_OR_EXECUTE(object, return NvResult::InvalidState;);
Core::Memory::CpuGuestMemory<Tegra::ChCommandHeader,
Core::Memory::GuestMemoryFlags::SafeRead>
cmdlist(session->process->GetMemory(), object->address + cmd_buffer.offset,
cmd_buffer.word_count);
Core::Memory::CpuGuestMemory<Tegra::ChCommandHeader, Core::Memory::GuestMemoryFlags::SafeRead> cmdlist(session->process->GetMemory(), object->get().address + cmd_buffer.offset, cmd_buffer.word_count);
host1x.PushEntries(fd, std::move(cmdlist));
}
+23 -25
View File
@@ -83,17 +83,14 @@ void nvmap::OnClose(DeviceFD fd) {
NvResult nvmap::IocCreate(IocCreateParams& params) {
LOG_DEBUG(Service_NVDRV, "called, size=0x{:08X}", params.size);
std::shared_ptr<NvCore::NvMap::Handle> handle_description{};
auto result =
file.CreateHandle(Common::AlignUp(params.size, YUZU_PAGESIZE), handle_description);
NvCore::NvMap::Handle handle_description(0, 0);
// Orig size is the unaligned size, set the handle to that
auto result = file.CreateHandle(params.size, params.handle);
if (result != NvResult::Success) {
LOG_CRITICAL(Service_NVDRV, "Failed to create Object");
return result;
}
handle_description->orig_size = params.size; // Orig size is the unaligned size
params.handle = handle_description->id;
LOG_DEBUG(Service_NVDRV, "handle: {}, size: {:#X}", handle_description->id, params.size);
LOG_DEBUG(Service_NVDRV, "handle: {}, size: {:#X}", params.handle, params.size);
return NvResult::Success;
}
@@ -115,30 +112,27 @@ NvResult nvmap::IocAlloc(IocAllocParams& params, DeviceFD fd) {
params.align = YUZU_PAGESIZE;
}
auto handle_description{file.GetHandle(params.handle)};
if (!handle_description) {
std::scoped_lock lock(file.handles_lock);
auto o = file.GetHandle(params.handle);
if (!o) {
LOG_CRITICAL(Service_NVDRV, "Object does not exist, handle={:08X}", params.handle);
return NvResult::BadValue;
}
auto handle_description = &o->get();
if (handle_description->allocated) {
LOG_CRITICAL(Service_NVDRV, "Object is already allocated, handle={:08X}", params.handle);
return NvResult::InsufficientMemory;
}
const auto result = handle_description->Alloc(params.flags, params.align, params.kind,
params.address, sessions[fd]);
const auto result = handle_description->Alloc(params.flags, params.align, params.kind, params.address, sessions[fd]);
if (result != NvResult::Success) {
LOG_CRITICAL(Service_NVDRV, "Object failed to allocate, handle={:08X}", params.handle);
return result;
}
bool is_out_io{};
auto process = container.GetSession(sessions[fd])->process;
ASSERT(process->GetPageTable()
.LockForMapDeviceAddressSpace(&is_out_io, handle_description->address,
handle_description->size,
Kernel::KMemoryPermission::None, true, false)
.IsSuccess());
ASSERT(process->GetPageTable().LockForMapDeviceAddressSpace(&is_out_io, handle_description->address, handle_description->size, Kernel::KMemoryPermission::None, true, false).IsSuccess());
return result;
}
@@ -151,13 +145,13 @@ NvResult nvmap::IocGetId(IocGetIdParams& params) {
return NvResult::BadValue;
}
auto handle_description{file.GetHandle(params.handle)};
if (!handle_description) {
std::scoped_lock lock(file.handles_lock);
auto o = file.GetHandle(params.handle);
if (!o) {
LOG_CRITICAL(Service_NVDRV, "Error!");
return NvResult::AccessDenied; // This will always return EPERM irrespective of if the
// handle exists or not
return NvResult::AccessDenied; // This will always return EPERM irrespective of if the handle exists or not
}
auto handle_description = &o->get();
params.id = handle_description->id;
return NvResult::Success;
}
@@ -174,12 +168,14 @@ NvResult nvmap::IocFromId(IocFromIdParams& params) {
return NvResult::BadValue;
}
auto handle_description{file.GetHandle(params.id)};
if (!handle_description) {
std::scoped_lock lock(file.handles_lock);
auto o = file.GetHandle(params.id);
if (!o) {
LOG_CRITICAL(Service_NVDRV, "Unregistered handle!");
return NvResult::BadValue;
}
auto handle_description = &o->get();
auto result = handle_description->Duplicate(false);
if (result != NvResult::Success) {
LOG_CRITICAL(Service_NVDRV, "Could not duplicate handle!");
@@ -199,12 +195,14 @@ NvResult nvmap::IocParam(IocParamParams& params) {
return NvResult::BadValue;
}
auto handle_description{file.GetHandle(params.handle)};
if (!handle_description) {
std::scoped_lock lock(file.handles_lock);
auto o = file.GetHandle(params.handle);
if (!o) {
LOG_CRITICAL(Service_NVDRV, "Not registered handle!");
return NvResult::BadValue;
}
auto handle_description = &o->get();
switch (params.param) {
case HandleParameterType::Size:
params.result = static_cast<u32_le>(handle_description->orig_size);
+4 -4
View File
@@ -629,7 +629,7 @@ Errno BSD::BindImpl(s32 fd, std::span<const u8> addr) {
if (!IsFileDescriptorValid(fd)) {
return Errno::BADF;
}
ASSERT(addr.size() == sizeof(SockAddrIn));
ASSERT(addr.size() >= 16);
auto addr_in = GetValue<SockAddrIn>(addr);
return Translate(file_descriptors[fd]->socket->Bind(Translate(addr_in)));
@@ -640,7 +640,7 @@ Errno BSD::ConnectImpl(s32 fd, std::span<const u8> addr) {
return Errno::BADF;
}
UNIMPLEMENTED_IF(addr.size() != sizeof(SockAddrIn));
ASSERT(addr.size() >= 16);
auto addr_in = GetValue<SockAddrIn>(addr);
const Errno result = Translate(file_descriptors[fd]->socket->Connect(Translate(addr_in)));
@@ -874,7 +874,7 @@ std::pair<s32, Errno> BSD::RecvFromImpl(s32 fd, u32 flags, std::vector<u8>& mess
if (ret < 0) {
addr.clear();
} else {
ASSERT(addr.size() == sizeof(SockAddrIn));
ASSERT(addr.size() >= 16);
const SockAddrIn result = Translate(addr_in);
PutValue(addr, result);
}
@@ -899,7 +899,7 @@ std::pair<s32, Errno> BSD::SendToImpl(s32 fd, u32 flags, std::span<const u8> mes
Network::SockAddrIn addr_in;
Network::SockAddrIn* p_addr_in = nullptr;
if (!addr.empty()) {
ASSERT(addr.size() == sizeof(SockAddrIn));
ASSERT(addr.size() >= 16);
auto guest_addr_in = GetValue<SockAddrIn>(addr);
addr_in = Translate(guest_addr_in);
p_addr_in = &addr_in;
+1 -1
View File
@@ -238,7 +238,7 @@ static std::vector<u8> SerializeAddrInfo(const std::vector<Network::AddrInfo>& v
Append<u32_be>(data, static_cast<u32>(Translate(addrinfo.family))); // ai_family
Append<u32_be>(data, static_cast<u32>(Translate(addrinfo.socket_type))); // ai_socktype
Append<u32_be>(data, static_cast<u32>(Translate(addrinfo.protocol))); // ai_protocol
Append<u32_be>(data, sizeof(SockAddrIn)); // ai_addrlen
Append<u32_be>(data, 16); // ai_addrlen
// ^ *not* sizeof(SerializedSockAddrIn), not that it matters since they're the same size
// ai_addr:
+2 -1
View File
@@ -110,8 +110,9 @@ struct SockAddrIn {
u8 family;
u16 portno;
std::array<u8, 4> ip;
std::array<u8, 8> zeroes;
std::array<u8, 248> zeroes;
};
static_assert(sizeof(SockAddrIn) == 0x100);
enum class PollEvents : u16 {
// Using Pascal case because IN is a macro on Windows.
@@ -265,13 +265,9 @@ PollEvents Translate(Network::PollEvents flags) {
}
Network::SockAddrIn Translate(SockAddrIn value) {
if (value.len != 0 && value.len != sizeof(value) && value.len != 6) {
LOG_WARNING(Service, "Unexpected SockAddrIn len={}, expected 0, {}, or 6",
value.len, sizeof(value));
}
// All lengths are valid, from [0 upto 256]
return {
.family = Translate(static_cast<Domain>(value.family)),
.family = Translate(Domain(value.family)),
.ip = value.ip,
.portno = static_cast<u16>(value.portno >> 8 | value.portno << 8),
};
@@ -279,7 +275,7 @@ Network::SockAddrIn Translate(SockAddrIn value) {
SockAddrIn Translate(Network::SockAddrIn value) {
return {
.len = sizeof(SockAddrIn),
.len = 16,
.family = static_cast<u8>(Translate(value.family)),
.portno = static_cast<u16>(value.portno >> 8 | value.portno << 8),
.ip = value.ip,
+10 -1
View File
@@ -5,6 +5,8 @@
#pragma once
#undef PIXEL_FORMAT_LIST
#include <climits>
#include <utility>
#include "common/assert.h"
@@ -128,7 +130,7 @@ namespace VideoCore::Surface {
PIXEL_FORMAT_ELEM(S8_UINT_D24_UNORM, 1, 1, 32) \
PIXEL_FORMAT_ELEM(D32_FLOAT_S8_UINT, 1, 1, 64)
enum class PixelFormat {
enum class PixelFormat : u32 {
#define PIXEL_FORMAT_ELEM(name, ...) name,
PIXEL_FORMAT_LIST
#undef PIXEL_FORMAT_ELEM
@@ -192,6 +194,13 @@ constexpr u32 BytesPerBlock(PixelFormat pixel_format) {
return BitsPerBlock(pixel_format) / CHAR_BIT;
}
}
#include "video_core/gpu.h"
#include "video_core/textures/texture.h"
namespace VideoCore::Surface {
SurfaceTarget SurfaceTargetFromTextureType(Tegra::Texture::TextureType texture_type);
bool SurfaceTargetIsLayered(SurfaceTarget target);
bool SurfaceTargetIsArray(SurfaceTarget target);