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Author SHA1 Message Date
Morph f2988ecabc service: acc: Stub acc:u0 '160'
- Used by Animal Crossing: New Horizons v2.0.0

Since the name is currently unknown, '160' is used as a placeholder.
2021-11-04 02:57:13 -04:00
Mai M 863e2e2b4f Merge pull request #7278 from Morph1984/svc-num-handles
svc: Correct WaitSynchronization num_handles param type
2021-11-03 06:59:07 -04:00
Morph b871388a31 svc: Correct WaitSynchronization num_handles param type
num_handles is a s32
2021-11-02 22:31:04 -04:00
bunnei 7ce29ea74e Merge pull request #7262 from FernandoS27/Buffalo-buffalo-Buffalo-buffalo-buffalo
ShaderCache: Order Phi Arguments from farthest away to nearest.
2021-11-02 16:34:03 -07:00
Mai M 43ba9db890 Merge pull request #7265 from Morph1984/gl-rasterizer-unused-include
gl_rasterizer: Remove unused includes
2021-11-02 18:43:31 -04:00
Mai M 3d1f2bb3aa Merge pull request #7268 from Morph1984/expected-resultval
common, result: Implement a subset of std::expected and use it in ResultVal
2021-11-02 18:41:57 -04:00
Morph cb09ea0f01 general: Remove MakeResult helpers
This is made obsolete by the presence of implicit constructors.
2021-11-02 17:23:19 -04:00
Morph 98b351758c hle/result: Amend ResultVal documentation
This amends the documentation slightly to reflect the updated interface.
2021-11-02 15:20:36 -04:00
Morph 52e52924bb hle/result: Reimplement ResultVal using Common::Expected
Common::Expected effectively provides the same functions as ResultVal, so we can implement it with this.
This can be replaced with std::expected with minimal effort should it be standardized in the C++ Standard Template Library.
2021-11-02 15:20:35 -04:00
Morph a41e9e93dd common: Implement a subset of P0323 (std::expected)
This implementation is based on and is a subset of the proposed implementation of std::expected
https://github.com/TartanLlama/expected/blob/master/include/tl/expected.hpp
2021-11-02 15:20:35 -04:00
bunnei b118fa8698 Merge pull request #7227 from vonchenplus/fix_memory_leak_v2
Fix memory leak v2
2021-11-01 20:11:30 -07:00
Fernando Sahmkow 2d4bbd83e6 Shader Cahe: Fix Phi Nodes on GLASM. 2021-11-02 00:59:25 +01:00
Fernando Sahmkow 194579bc4f ShaderCache: Fix Phi Nodes Type on OGL. 2021-11-01 22:26:17 +01:00
Morph d607ceacf4 gl_rasterizer: Remove unused includes
This removes unused includes, especially the core includes which were causing this file to be recompiled every time files included by those headers are modified.
2021-10-31 23:57:51 -04:00
Mai M f808a30f94 Merge pull request #7264 from zhaobot/tx-update-20211101021628
Update translations (2021-11-01)
2021-10-31 23:57:26 -04:00
The yuzu Community 02178137c9 Update translations (2021-11-01) 2021-11-01 02:16:50 +00:00
Fernando Sahmkow c50ad56bf5 ShaderCache: Order Phi Arguments from farthest away to nearest. 2021-10-31 19:34:15 +01:00
bunnei 99ba26460d Merge pull request #7246 from german77/userimage
profile_manager: Resize any image bigger than 256p
2021-10-31 04:07:34 -07:00
Fernando S 7aa0d97eed Merge pull request #7201 from ameerj/spirv-depth-sampling
emit_spirv_image: Fix depth image implicit lod sample in non-fragment stages
2021-10-30 16:45:58 +02:00
bunnei a3a353edf2 Merge pull request #6702 from lat9nq/disable-screensaver
yuzu_cmd, yuzu qt: Use SDL to disable the screen saver
2021-10-30 00:29:05 -07:00
bunnei 7c2c72a6d6 Merge pull request #7244 from Morph1984/application-lang-pt-br
file_sys/ns: Add Brazilian Portuguese to the list of ApplicationLanguage
2021-10-29 22:32:38 -07:00
lat9nq 604b6d1210 yuzu qt: Disable the screensaver with SDL2
Disables the screen saver when a game boots using SDL2 so that it works
on any supported platform.
2021-10-30 01:23:52 -04:00
bunnei 92159b210e Merge pull request #7240 from Morph1984/resultval-remove-cv
hle/result: Remove cv-qualifiers from Arg in MakeResult
2021-10-29 21:35:32 -07:00
german77 f503dbf071 profile_manager: Resize any image bigger than 256p 2021-10-29 17:56:51 -05:00
bunnei c1b199bd21 Merge pull request #7241 from Morph1984/resultval-move-assignment
hle/result: Add move assignment operator in ResultVal
2021-10-29 09:14:32 -07:00
bunnei 60e79d50f8 Merge pull request #7243 from lat9nq/nvdrv-warn
gl_device: Force GLASM on NVIDIA drivers 495-496
2021-10-28 17:57:53 -07:00
Mai M 06d097a18e Merge pull request #7245 from Morph1984/compile-opt-desc
CMakeLists: Document the /GT compile option
2021-10-28 20:45:50 -04:00
Morph 3f8d74dec1 CMakeLists: Document the /GT compile option 2021-10-28 20:43:46 -04:00
Morph cd49907248 Merge pull request #7007 from FernandoS27/intel-options
Build System: Build with JCC Erratum Mitigation
2021-10-28 20:40:13 -04:00
Morph baf599c1d3 file_sys: control_metadata: Add BrazilianPortuguese 2021-10-28 20:05:26 -04:00
Morph e4052a1dab ns: language: Add BrazilianPortuguese to ApplicationLanguage
It seems that Nintendo finally filled that last empty spot in ApplicationLanguage for a total of 16 supported languages.
2021-10-28 20:05:05 -04:00
Ameer J fac2e073a1 Merge pull request #7223 from Moonlacer/geometry_property_removal
per_game_ui: Geometry Property Removal and Minor Rewording to the Per Game UI
2021-10-28 19:39:00 -04:00
lat9nq 61121d1b22 gl_device: Force GLASM on NVIDIA drivers 495-496
GLSL shaders currently do not render correctly on the recent NVIDIA
drivers. This adds a check that forces assembly shaders for these
drivers since they seem unaffected and adds a warning informing of the
decision.

Developers can disable the check by enabling graphics debugging.
2021-10-28 19:38:49 -04:00
Morph 1ff9ad4e7c hle/result: Remove cv-qualifiers from Arg in MakeResult
This removes the const qualification for types when MakeResult(arg) is used in a const member function, allowing for automatic deduction and removing the need to manually specify the non-const type as the template argument.
2021-10-28 03:07:18 -04:00
Feng Chen dd29285e35 Fix dangling kernel objects when exiting 2021-10-27 09:06:30 +08:00
Feng Chen 052017e189 Revert PR7009 2021-10-27 09:06:30 +08:00
Feng Chen a8b0104923 Fix memory leak 2021-10-27 09:06:22 +08:00
Moonlacer 1665e2d2a6 Geometry property removal and rewording 2021-10-25 17:39:36 -05:00
ameerj 06894b0711 emit_spirv_image: Fix depth image implicit lod sample in compute
Ensures all drivers behave the same way in this case.
2021-10-17 17:09:11 -04:00
Fernando Sahmkow 13471ddf86 Build System: Build with JCC Erratum Mitigation 2021-09-15 21:32:44 +02:00
64 changed files with 12693 additions and 5493 deletions
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@@ -32,6 +32,7 @@ if (MSVC)
# /Zc:externConstexpr - Allow extern constexpr variables to have external linkage, like the standard mandates
# /Zc:inline - Let codegen omit inline functions in object files
# /Zc:throwingNew - Let codegen assume `operator new` (without std::nothrow) will never return null
# /GT - Supports fiber safety for data allocated using static thread-local storage
add_compile_options(
/MP
/Zi
@@ -44,6 +45,7 @@ if (MSVC)
/Zc:externConstexpr
/Zc:inline
/Zc:throwingNew
/GT
# External headers diagnostics
/experimental:external # Enables the external headers options. This option isn't required in Visual Studio 2019 version 16.10 and later
@@ -69,6 +71,10 @@ if (MSVC)
/we5038 # data member 'member1' will be initialized after data member 'member2'
)
if (ARCHITECTURE_x86_64)
add_compile_options(/QIntel-jcc-erratum)
endif()
# /GS- - No stack buffer overflow checks
add_compile_options("$<$<CONFIG:Release>:/GS->")
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@@ -55,6 +55,7 @@ add_library(common STATIC
dynamic_library.h
error.cpp
error.h
expected.h
fiber.cpp
fiber.h
fs/file.cpp
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@@ -0,0 +1,987 @@
// Copyright 2021 yuzu Emulator Project
// Licensed under GPLv2 or any later version
// Refer to the license.txt file included.
// This is based on the proposed implementation of std::expected (P0323)
// https://github.com/TartanLlama/expected/blob/master/include/tl/expected.hpp
#pragma once
#include <type_traits>
#include <utility>
namespace Common {
template <typename T, typename E>
class Expected;
template <typename E>
class Unexpected {
public:
Unexpected() = delete;
constexpr explicit Unexpected(const E& e) : m_val{e} {}
constexpr explicit Unexpected(E&& e) : m_val{std::move(e)} {}
constexpr E& value() & {
return m_val;
}
constexpr const E& value() const& {
return m_val;
}
constexpr E&& value() && {
return std::move(m_val);
}
constexpr const E&& value() const&& {
return std::move(m_val);
}
private:
E m_val;
};
template <typename E>
constexpr auto operator<=>(const Unexpected<E>& lhs, const Unexpected<E>& rhs) {
return lhs.value() <=> rhs.value();
}
struct unexpect_t {
constexpr explicit unexpect_t() = default;
};
namespace detail {
struct no_init_t {
constexpr explicit no_init_t() = default;
};
/**
* This specialization is for when T is not trivially destructible,
* so the destructor must be called on destruction of `expected'
* Additionally, this requires E to be trivially destructible
*/
template <typename T, typename E, bool = std::is_trivially_destructible_v<T>>
requires std::is_trivially_destructible_v<E>
struct expected_storage_base {
constexpr expected_storage_base() : m_val{T{}}, m_has_val{true} {}
constexpr expected_storage_base(no_init_t) : m_has_val{false} {}
template <typename... Args, std::enable_if_t<std::is_constructible_v<T, Args&&...>>* = nullptr>
constexpr expected_storage_base(std::in_place_t, Args&&... args)
: m_val{std::forward<Args>(args)...}, m_has_val{true} {}
template <typename U, typename... Args,
std::enable_if_t<std::is_constructible_v<T, std::initializer_list<U>&, Args&&...>>* =
nullptr>
constexpr expected_storage_base(std::in_place_t, std::initializer_list<U> il, Args&&... args)
: m_val{il, std::forward<Args>(args)...}, m_has_val{true} {}
template <typename... Args, std::enable_if_t<std::is_constructible_v<E, Args&&...>>* = nullptr>
constexpr explicit expected_storage_base(unexpect_t, Args&&... args)
: m_unexpect{std::forward<Args>(args)...}, m_has_val{false} {}
template <typename U, typename... Args,
std::enable_if_t<std::is_constructible_v<E, std::initializer_list<U>&, Args&&...>>* =
nullptr>
constexpr explicit expected_storage_base(unexpect_t, std::initializer_list<U> il,
Args&&... args)
: m_unexpect{il, std::forward<Args>(args)...}, m_has_val{false} {}
~expected_storage_base() {
if (m_has_val) {
m_val.~T();
}
}
union {
T m_val;
Unexpected<E> m_unexpect;
};
bool m_has_val;
};
/**
* This specialization is for when T is trivially destructible,
* so the destructor of `expected` can be trivial
* Additionally, this requires E to be trivially destructible
*/
template <typename T, typename E>
requires std::is_trivially_destructible_v<E>
struct expected_storage_base<T, E, true> {
constexpr expected_storage_base() : m_val{T{}}, m_has_val{true} {}
constexpr expected_storage_base(no_init_t) : m_has_val{false} {}
template <typename... Args, std::enable_if_t<std::is_constructible_v<T, Args&&...>>* = nullptr>
constexpr expected_storage_base(std::in_place_t, Args&&... args)
: m_val{std::forward<Args>(args)...}, m_has_val{true} {}
template <typename U, typename... Args,
std::enable_if_t<std::is_constructible_v<T, std::initializer_list<U>&, Args&&...>>* =
nullptr>
constexpr expected_storage_base(std::in_place_t, std::initializer_list<U> il, Args&&... args)
: m_val{il, std::forward<Args>(args)...}, m_has_val{true} {}
template <typename... Args, std::enable_if_t<std::is_constructible_v<E, Args&&...>>* = nullptr>
constexpr explicit expected_storage_base(unexpect_t, Args&&... args)
: m_unexpect{std::forward<Args>(args)...}, m_has_val{false} {}
template <typename U, typename... Args,
std::enable_if_t<std::is_constructible_v<E, std::initializer_list<U>&, Args&&...>>* =
nullptr>
constexpr explicit expected_storage_base(unexpect_t, std::initializer_list<U> il,
Args&&... args)
: m_unexpect{il, std::forward<Args>(args)...}, m_has_val{false} {}
~expected_storage_base() = default;
union {
T m_val;
Unexpected<E> m_unexpect;
};
bool m_has_val;
};
template <typename T, typename E>
struct expected_operations_base : expected_storage_base<T, E> {
using expected_storage_base<T, E>::expected_storage_base;
template <typename... Args>
void construct(Args&&... args) noexcept {
new (std::addressof(this->m_val)) T{std::forward<Args>(args)...};
this->m_has_val = true;
}
template <typename Rhs>
void construct_with(Rhs&& rhs) noexcept {
new (std::addressof(this->m_val)) T{std::forward<Rhs>(rhs).get()};
this->m_has_val = true;
}
template <typename... Args>
void construct_error(Args&&... args) noexcept {
new (std::addressof(this->m_unexpect)) Unexpected<E>{std::forward<Args>(args)...};
this->m_has_val = false;
}
void assign(const expected_operations_base& rhs) noexcept {
if (!this->m_has_val && rhs.m_has_val) {
geterr().~Unexpected<E>();
construct(rhs.get());
} else {
assign_common(rhs);
}
}
void assign(expected_operations_base&& rhs) noexcept {
if (!this->m_has_val && rhs.m_has_val) {
geterr().~Unexpected<E>();
construct(std::move(rhs).get());
} else {
assign_common(rhs);
}
}
template <typename Rhs>
void assign_common(Rhs&& rhs) {
if (this->m_has_val) {
if (rhs.m_has_val) {
get() = std::forward<Rhs>(rhs).get();
} else {
destroy_val();
construct_error(std::forward<Rhs>(rhs).geterr());
}
} else {
if (!rhs.m_has_val) {
geterr() = std::forward<Rhs>(rhs).geterr();
}
}
}
bool has_value() const {
return this->m_has_val;
}
constexpr T& get() & {
return this->m_val;
}
constexpr const T& get() const& {
return this->m_val;
}
constexpr T&& get() && {
return std::move(this->m_val);
}
constexpr const T&& get() const&& {
return std::move(this->m_val);
}
constexpr Unexpected<E>& geterr() & {
return this->m_unexpect;
}
constexpr const Unexpected<E>& geterr() const& {
return this->m_unexpect;
}
constexpr Unexpected<E>&& geterr() && {
return std::move(this->m_unexpect);
}
constexpr const Unexpected<E>&& geterr() const&& {
return std::move(this->m_unexpect);
}
constexpr void destroy_val() {
get().~T();
}
};
/**
* This manages conditionally having a trivial copy constructor
* This specialization is for when T is trivially copy constructible
* Additionally, this requires E to be trivially copy constructible
*/
template <typename T, typename E, bool = std::is_trivially_copy_constructible_v<T>>
requires std::is_trivially_copy_constructible_v<E>
struct expected_copy_base : expected_operations_base<T, E> {
using expected_operations_base<T, E>::expected_operations_base;
};
/**
* This specialization is for when T is not trivially copy constructible
* Additionally, this requires E to be trivially copy constructible
*/
template <typename T, typename E>
requires std::is_trivially_copy_constructible_v<E>
struct expected_copy_base<T, E, false> : expected_operations_base<T, E> {
using expected_operations_base<T, E>::expected_operations_base;
expected_copy_base() = default;
expected_copy_base(const expected_copy_base& rhs)
: expected_operations_base<T, E>{no_init_t{}} {
if (rhs.has_value()) {
this->construct_with(rhs);
} else {
this->construct_error(rhs.geterr());
}
}
expected_copy_base(expected_copy_base&&) = default;
expected_copy_base& operator=(const expected_copy_base&) = default;
expected_copy_base& operator=(expected_copy_base&&) = default;
};
/**
* This manages conditionally having a trivial move constructor
* This specialization is for when T is trivially move constructible
* Additionally, this requires E to be trivially move constructible
*/
template <typename T, typename E, bool = std::is_trivially_move_constructible_v<T>>
requires std::is_trivially_move_constructible_v<E>
struct expected_move_base : expected_copy_base<T, E> {
using expected_copy_base<T, E>::expected_copy_base;
};
/**
* This specialization is for when T is not trivially move constructible
* Additionally, this requires E to be trivially move constructible
*/
template <typename T, typename E>
requires std::is_trivially_move_constructible_v<E>
struct expected_move_base<T, E, false> : expected_copy_base<T, E> {
using expected_copy_base<T, E>::expected_copy_base;
expected_move_base() = default;
expected_move_base(const expected_move_base&) = default;
expected_move_base(expected_move_base&& rhs) noexcept(std::is_nothrow_move_constructible_v<T>)
: expected_copy_base<T, E>{no_init_t{}} {
if (rhs.has_value()) {
this->construct_with(std::move(rhs));
} else {
this->construct_error(std::move(rhs.geterr()));
}
}
expected_move_base& operator=(const expected_move_base&) = default;
expected_move_base& operator=(expected_move_base&&) = default;
};
/**
* This manages conditionally having a trivial copy assignment operator
* This specialization is for when T is trivially copy assignable
* Additionally, this requires E to be trivially copy assignable
*/
template <typename T, typename E,
bool = std::conjunction_v<std::is_trivially_copy_assignable<T>,
std::is_trivially_copy_constructible<T>,
std::is_trivially_destructible<T>>>
requires std::conjunction_v<std::is_trivially_copy_assignable<E>,
std::is_trivially_copy_constructible<E>,
std::is_trivially_destructible<E>>
struct expected_copy_assign_base : expected_move_base<T, E> {
using expected_move_base<T, E>::expected_move_base;
};
/**
* This specialization is for when T is not trivially copy assignable
* Additionally, this requires E to be trivially copy assignable
*/
template <typename T, typename E>
requires std::conjunction_v<std::is_trivially_copy_assignable<E>,
std::is_trivially_copy_constructible<E>,
std::is_trivially_destructible<E>>
struct expected_copy_assign_base<T, E, false> : expected_move_base<T, E> {
using expected_move_base<T, E>::expected_move_base;
expected_copy_assign_base() = default;
expected_copy_assign_base(const expected_copy_assign_base&) = default;
expected_copy_assign_base(expected_copy_assign_base&&) = default;
expected_copy_assign_base& operator=(const expected_copy_assign_base& rhs) {
this->assign(rhs);
return *this;
}
expected_copy_assign_base& operator=(expected_copy_assign_base&&) = default;
};
/**
* This manages conditionally having a trivial move assignment operator
* This specialization is for when T is trivially move assignable
* Additionally, this requires E to be trivially move assignable
*/
template <typename T, typename E,
bool = std::conjunction_v<std::is_trivially_move_assignable<T>,
std::is_trivially_move_constructible<T>,
std::is_trivially_destructible<T>>>
requires std::conjunction_v<std::is_trivially_move_assignable<E>,
std::is_trivially_move_constructible<E>,
std::is_trivially_destructible<E>>
struct expected_move_assign_base : expected_copy_assign_base<T, E> {
using expected_copy_assign_base<T, E>::expected_copy_assign_base;
};
/**
* This specialization is for when T is not trivially move assignable
* Additionally, this requires E to be trivially move assignable
*/
template <typename T, typename E>
requires std::conjunction_v<std::is_trivially_move_assignable<E>,
std::is_trivially_move_constructible<E>,
std::is_trivially_destructible<E>>
struct expected_move_assign_base<T, E, false> : expected_copy_assign_base<T, E> {
using expected_copy_assign_base<T, E>::expected_copy_assign_base;
expected_move_assign_base() = default;
expected_move_assign_base(const expected_move_assign_base&) = default;
expected_move_assign_base(expected_move_assign_base&&) = default;
expected_move_assign_base& operator=(const expected_move_assign_base&) = default;
expected_move_assign_base& operator=(expected_move_assign_base&& rhs) noexcept(
std::conjunction_v<std::is_nothrow_move_constructible<T>,
std::is_nothrow_move_assignable<T>>) {
this->assign(std::move(rhs));
return *this;
}
};
/**
* expected_delete_ctor_base will conditionally delete copy and move constructors
* depending on whether T is copy/move constructible
* Additionally, this requires E to be copy/move constructible
*/
template <typename T, typename E, bool EnableCopy = std::is_copy_constructible_v<T>,
bool EnableMove = std::is_move_constructible_v<T>>
requires std::conjunction_v<std::is_copy_constructible<E>, std::is_move_constructible<E>>
struct expected_delete_ctor_base {
expected_delete_ctor_base() = default;
expected_delete_ctor_base(const expected_delete_ctor_base&) = default;
expected_delete_ctor_base(expected_delete_ctor_base&&) noexcept = default;
expected_delete_ctor_base& operator=(const expected_delete_ctor_base&) = default;
expected_delete_ctor_base& operator=(expected_delete_ctor_base&&) noexcept = default;
};
template <typename T, typename E>
requires std::conjunction_v<std::is_copy_constructible<E>, std::is_move_constructible<E>>
struct expected_delete_ctor_base<T, E, true, false> {
expected_delete_ctor_base() = default;
expected_delete_ctor_base(const expected_delete_ctor_base&) = default;
expected_delete_ctor_base(expected_delete_ctor_base&&) noexcept = delete;
expected_delete_ctor_base& operator=(const expected_delete_ctor_base&) = default;
expected_delete_ctor_base& operator=(expected_delete_ctor_base&&) noexcept = default;
};
template <typename T, typename E>
requires std::conjunction_v<std::is_copy_constructible<E>, std::is_move_constructible<E>>
struct expected_delete_ctor_base<T, E, false, true> {
expected_delete_ctor_base() = default;
expected_delete_ctor_base(const expected_delete_ctor_base&) = delete;
expected_delete_ctor_base(expected_delete_ctor_base&&) noexcept = default;
expected_delete_ctor_base& operator=(const expected_delete_ctor_base&) = default;
expected_delete_ctor_base& operator=(expected_delete_ctor_base&&) noexcept = default;
};
template <typename T, typename E>
requires std::conjunction_v<std::is_copy_constructible<E>, std::is_move_constructible<E>>
struct expected_delete_ctor_base<T, E, false, false> {
expected_delete_ctor_base() = default;
expected_delete_ctor_base(const expected_delete_ctor_base&) = delete;
expected_delete_ctor_base(expected_delete_ctor_base&&) noexcept = delete;
expected_delete_ctor_base& operator=(const expected_delete_ctor_base&) = default;
expected_delete_ctor_base& operator=(expected_delete_ctor_base&&) noexcept = default;
};
/**
* expected_delete_assign_base will conditionally delete copy and move assignment operators
* depending on whether T is copy/move constructible + assignable
* Additionally, this requires E to be copy/move constructible + assignable
*/
template <
typename T, typename E,
bool EnableCopy = std::conjunction_v<std::is_copy_constructible<T>, std::is_copy_assignable<T>>,
bool EnableMove = std::conjunction_v<std::is_move_constructible<T>, std::is_move_assignable<T>>>
requires std::conjunction_v<std::is_copy_constructible<E>, std::is_move_constructible<E>,
std::is_copy_assignable<E>, std::is_move_assignable<E>>
struct expected_delete_assign_base {
expected_delete_assign_base() = default;
expected_delete_assign_base(const expected_delete_assign_base&) = default;
expected_delete_assign_base(expected_delete_assign_base&&) noexcept = default;
expected_delete_assign_base& operator=(const expected_delete_assign_base&) = default;
expected_delete_assign_base& operator=(expected_delete_assign_base&&) noexcept = default;
};
template <typename T, typename E>
requires std::conjunction_v<std::is_copy_constructible<E>, std::is_move_constructible<E>,
std::is_copy_assignable<E>, std::is_move_assignable<E>>
struct expected_delete_assign_base<T, E, true, false> {
expected_delete_assign_base() = default;
expected_delete_assign_base(const expected_delete_assign_base&) = default;
expected_delete_assign_base(expected_delete_assign_base&&) noexcept = default;
expected_delete_assign_base& operator=(const expected_delete_assign_base&) = default;
expected_delete_assign_base& operator=(expected_delete_assign_base&&) noexcept = delete;
};
template <typename T, typename E>
requires std::conjunction_v<std::is_copy_constructible<E>, std::is_move_constructible<E>,
std::is_copy_assignable<E>, std::is_move_assignable<E>>
struct expected_delete_assign_base<T, E, false, true> {
expected_delete_assign_base() = default;
expected_delete_assign_base(const expected_delete_assign_base&) = default;
expected_delete_assign_base(expected_delete_assign_base&&) noexcept = default;
expected_delete_assign_base& operator=(const expected_delete_assign_base&) = delete;
expected_delete_assign_base& operator=(expected_delete_assign_base&&) noexcept = default;
};
template <typename T, typename E>
requires std::conjunction_v<std::is_copy_constructible<E>, std::is_move_constructible<E>,
std::is_copy_assignable<E>, std::is_move_assignable<E>>
struct expected_delete_assign_base<T, E, false, false> {
expected_delete_assign_base() = default;
expected_delete_assign_base(const expected_delete_assign_base&) = default;
expected_delete_assign_base(expected_delete_assign_base&&) noexcept = default;
expected_delete_assign_base& operator=(const expected_delete_assign_base&) = delete;
expected_delete_assign_base& operator=(expected_delete_assign_base&&) noexcept = delete;
};
/**
* This is needed to be able to construct the expected_default_ctor_base which follows,
* while still conditionally deleting the default constructor.
*/
struct default_constructor_tag {
constexpr explicit default_constructor_tag() = default;
};
/**
* expected_default_ctor_base will ensure that expected
* has a deleted default constructor if T is not default constructible
* This specialization is for when T is default constructible
*/
template <typename T, typename E, bool Enable = std::is_default_constructible_v<T>>
struct expected_default_ctor_base {
constexpr expected_default_ctor_base() noexcept = default;
constexpr expected_default_ctor_base(expected_default_ctor_base const&) noexcept = default;
constexpr expected_default_ctor_base(expected_default_ctor_base&&) noexcept = default;
expected_default_ctor_base& operator=(expected_default_ctor_base const&) noexcept = default;
expected_default_ctor_base& operator=(expected_default_ctor_base&&) noexcept = default;
constexpr explicit expected_default_ctor_base(default_constructor_tag) {}
};
template <typename T, typename E>
struct expected_default_ctor_base<T, E, false> {
constexpr expected_default_ctor_base() noexcept = delete;
constexpr expected_default_ctor_base(expected_default_ctor_base const&) noexcept = default;
constexpr expected_default_ctor_base(expected_default_ctor_base&&) noexcept = default;
expected_default_ctor_base& operator=(expected_default_ctor_base const&) noexcept = default;
expected_default_ctor_base& operator=(expected_default_ctor_base&&) noexcept = default;
constexpr explicit expected_default_ctor_base(default_constructor_tag) {}
};
template <typename T, typename E, typename U>
using expected_enable_forward_value =
std::enable_if_t<std::is_constructible_v<T, U&&> &&
!std::is_same_v<std::remove_cvref_t<U>, std::in_place_t> &&
!std::is_same_v<Expected<T, E>, std::remove_cvref_t<U>> &&
!std::is_same_v<Unexpected<E>, std::remove_cvref_t<U>>>;
template <typename T, typename E, typename U, typename G, typename UR, typename GR>
using expected_enable_from_other = std::enable_if_t<
std::is_constructible_v<T, UR> && std::is_constructible_v<E, GR> &&
!std::is_constructible_v<T, Expected<U, G>&> && !std::is_constructible_v<T, Expected<U, G>&&> &&
!std::is_constructible_v<T, const Expected<U, G>&> &&
!std::is_constructible_v<T, const Expected<U, G>&&> &&
!std::is_convertible_v<Expected<U, G>&, T> && !std::is_convertible_v<Expected<U, G>&&, T> &&
!std::is_convertible_v<const Expected<U, G>&, T> &&
!std::is_convertible_v<const Expected<U, G>&&, T>>;
} // namespace detail
template <typename T, typename E>
class Expected : private detail::expected_move_assign_base<T, E>,
private detail::expected_delete_ctor_base<T, E>,
private detail::expected_delete_assign_base<T, E>,
private detail::expected_default_ctor_base<T, E> {
public:
using value_type = T;
using error_type = E;
using unexpected_type = Unexpected<E>;
constexpr Expected() = default;
constexpr Expected(const Expected&) = default;
constexpr Expected(Expected&&) = default;
Expected& operator=(const Expected&) = default;
Expected& operator=(Expected&&) = default;
template <typename... Args, std::enable_if_t<std::is_constructible_v<T, Args&&...>>* = nullptr>
constexpr Expected(std::in_place_t, Args&&... args)
: impl_base{std::in_place, std::forward<Args>(args)...},
ctor_base{detail::default_constructor_tag{}} {}
template <typename U, typename... Args,
std::enable_if_t<std::is_constructible_v<T, std::initializer_list<U>&, Args&&...>>* =
nullptr>
constexpr Expected(std::in_place_t, std::initializer_list<U> il, Args&&... args)
: impl_base{std::in_place, il, std::forward<Args>(args)...},
ctor_base{detail::default_constructor_tag{}} {}
template <typename G = E, std::enable_if_t<std::is_constructible_v<E, const G&>>* = nullptr,
std::enable_if_t<!std::is_convertible_v<const G&, E>>* = nullptr>
constexpr explicit Expected(const Unexpected<G>& e)
: impl_base{unexpect_t{}, e.value()}, ctor_base{detail::default_constructor_tag{}} {}
template <typename G = E, std::enable_if_t<std::is_constructible_v<E, const G&>>* = nullptr,
std::enable_if_t<std::is_convertible_v<const G&, E>>* = nullptr>
constexpr Expected(Unexpected<G> const& e)
: impl_base{unexpect_t{}, e.value()}, ctor_base{detail::default_constructor_tag{}} {}
template <typename G = E, std::enable_if_t<std::is_constructible_v<E, G&&>>* = nullptr,
std::enable_if_t<!std::is_convertible_v<G&&, E>>* = nullptr>
constexpr explicit Expected(Unexpected<G>&& e) noexcept(std::is_nothrow_constructible_v<E, G&&>)
: impl_base{unexpect_t{}, std::move(e.value())}, ctor_base{
detail::default_constructor_tag{}} {}
template <typename G = E, std::enable_if_t<std::is_constructible_v<E, G&&>>* = nullptr,
std::enable_if_t<std::is_convertible_v<G&&, E>>* = nullptr>
constexpr Expected(Unexpected<G>&& e) noexcept(std::is_nothrow_constructible_v<E, G&&>)
: impl_base{unexpect_t{}, std::move(e.value())}, ctor_base{
detail::default_constructor_tag{}} {}
template <typename... Args, std::enable_if_t<std::is_constructible_v<E, Args&&...>>* = nullptr>
constexpr explicit Expected(unexpect_t, Args&&... args)
: impl_base{unexpect_t{}, std::forward<Args>(args)...},
ctor_base{detail::default_constructor_tag{}} {}
template <typename U, typename... Args,
std::enable_if_t<std::is_constructible_v<E, std::initializer_list<U>&, Args&&...>>* =
nullptr>
constexpr explicit Expected(unexpect_t, std::initializer_list<U> il, Args&&... args)
: impl_base{unexpect_t{}, il, std::forward<Args>(args)...},
ctor_base{detail::default_constructor_tag{}} {}
template <typename U, typename G,
std::enable_if_t<!(std::is_convertible_v<U const&, T> &&
std::is_convertible_v<G const&, E>)>* = nullptr,
detail::expected_enable_from_other<T, E, U, G, const U&, const G&>* = nullptr>
constexpr explicit Expected(const Expected<U, G>& rhs)
: ctor_base{detail::default_constructor_tag{}} {
if (rhs.has_value()) {
this->construct(*rhs);
} else {
this->construct_error(rhs.error());
}
}
template <typename U, typename G,
std::enable_if_t<(std::is_convertible_v<U const&, T> &&
std::is_convertible_v<G const&, E>)>* = nullptr,
detail::expected_enable_from_other<T, E, U, G, const U&, const G&>* = nullptr>
constexpr Expected(const Expected<U, G>& rhs) : ctor_base{detail::default_constructor_tag{}} {
if (rhs.has_value()) {
this->construct(*rhs);
} else {
this->construct_error(rhs.error());
}
}
template <typename U, typename G,
std::enable_if_t<!(std::is_convertible_v<U&&, T> && std::is_convertible_v<G&&, E>)>* =
nullptr,
detail::expected_enable_from_other<T, E, U, G, U&&, G&&>* = nullptr>
constexpr explicit Expected(Expected<U, G>&& rhs)
: ctor_base{detail::default_constructor_tag{}} {
if (rhs.has_value()) {
this->construct(std::move(*rhs));
} else {
this->construct_error(std::move(rhs.error()));
}
}
template <typename U, typename G,
std::enable_if_t<(std::is_convertible_v<U&&, T> && std::is_convertible_v<G&&, E>)>* =
nullptr,
detail::expected_enable_from_other<T, E, U, G, U&&, G&&>* = nullptr>
constexpr Expected(Expected<U, G>&& rhs) : ctor_base{detail::default_constructor_tag{}} {
if (rhs.has_value()) {
this->construct(std::move(*rhs));
} else {
this->construct_error(std::move(rhs.error()));
}
}
template <typename U = T, std::enable_if_t<!std::is_convertible_v<U&&, T>>* = nullptr,
detail::expected_enable_forward_value<T, E, U>* = nullptr>
constexpr explicit Expected(U&& v) : Expected{std::in_place, std::forward<U>(v)} {}
template <typename U = T, std::enable_if_t<std::is_convertible_v<U&&, T>>* = nullptr,
detail::expected_enable_forward_value<T, E, U>* = nullptr>
constexpr Expected(U&& v) : Expected{std::in_place, std::forward<U>(v)} {}
template <typename U = T, typename G = T,
std::enable_if_t<std::is_nothrow_constructible_v<T, U&&>>* = nullptr,
std::enable_if_t<(
!std::is_same_v<Expected<T, E>, std::remove_cvref_t<U>> &&
!std::conjunction_v<std::is_scalar<T>, std::is_same<T, std::remove_cvref_t<U>>> &&
std::is_constructible_v<T, U> && std::is_assignable_v<G&, U> &&
std::is_nothrow_move_constructible_v<E>)>* = nullptr>
Expected& operator=(U&& v) {
if (has_value()) {
val() = std::forward<U>(v);
} else {
err().~Unexpected<E>();
new (valptr()) T{std::forward<U>(v)};
this->m_has_val = true;
}
return *this;
}
template <typename U = T, typename G = T,
std::enable_if_t<!std::is_nothrow_constructible_v<T, U&&>>* = nullptr,
std::enable_if_t<(
!std::is_same_v<Expected<T, E>, std::remove_cvref_t<U>> &&
!std::conjunction_v<std::is_scalar<T>, std::is_same<T, std::remove_cvref_t<U>>> &&
std::is_constructible_v<T, U> && std::is_assignable_v<G&, U> &&
std::is_nothrow_move_constructible_v<E>)>* = nullptr>
Expected& operator=(U&& v) {
if (has_value()) {
val() = std::forward<U>(v);
} else {
auto tmp = std::move(err());
err().~Unexpected<E>();
new (valptr()) T{std::forward<U>(v)};
this->m_has_val = true;
}
return *this;
}
template <typename G = E, std::enable_if_t<std::is_nothrow_copy_constructible_v<G> &&
std::is_assignable_v<G&, G>>* = nullptr>
Expected& operator=(const Unexpected<G>& rhs) {
if (!has_value()) {
err() = rhs;
} else {
this->destroy_val();
new (errptr()) Unexpected<E>{rhs};
this->m_has_val = false;
}
return *this;
}
template <typename G = E, std::enable_if_t<std::is_nothrow_move_constructible_v<G> &&
std::is_move_assignable_v<G>>* = nullptr>
Expected& operator=(Unexpected<G>&& rhs) noexcept {
if (!has_value()) {
err() = std::move(rhs);
} else {
this->destroy_val();
new (errptr()) Unexpected<E>{std::move(rhs)};
this->m_has_val = false;
}
return *this;
}
template <typename... Args,
std::enable_if_t<std::is_nothrow_constructible_v<T, Args&&...>>* = nullptr>
void emplace(Args&&... args) {
if (has_value()) {
val() = T{std::forward<Args>(args)...};
} else {
err().~Unexpected<E>();
new (valptr()) T{std::forward<Args>(args)...};
this->m_has_val = true;
}
}
template <typename... Args,
std::enable_if_t<!std::is_nothrow_constructible_v<T, Args&&...>>* = nullptr>
void emplace(Args&&... args) {
if (has_value()) {
val() = T{std::forward<Args>(args)...};
} else {
auto tmp = std::move(err());
err().~Unexpected<E>();
new (valptr()) T{std::forward<Args>(args)...};
this->m_has_val = true;
}
}
template <typename U, typename... Args,
std::enable_if_t<std::is_nothrow_constructible_v<T, std::initializer_list<U>&,
Args&&...>>* = nullptr>
void emplace(std::initializer_list<U> il, Args&&... args) {
if (has_value()) {
T t{il, std::forward<Args>(args)...};
val() = std::move(t);
} else {
err().~Unexpected<E>();
new (valptr()) T{il, std::forward<Args>(args)...};
this->m_has_val = true;
}
}
template <typename U, typename... Args,
std::enable_if_t<!std::is_nothrow_constructible_v<T, std::initializer_list<U>&,
Args&&...>>* = nullptr>
void emplace(std::initializer_list<U> il, Args&&... args) {
if (has_value()) {
T t{il, std::forward<Args>(args)...};
val() = std::move(t);
} else {
auto tmp = std::move(err());
err().~Unexpected<E>();
new (valptr()) T{il, std::forward<Args>(args)...};
this->m_has_val = true;
}
}
constexpr T* operator->() {
return valptr();
}
constexpr const T* operator->() const {
return valptr();
}
template <typename U = T>
constexpr U& operator*() & {
return val();
}
template <typename U = T>
constexpr const U& operator*() const& {
return val();
}
template <typename U = T>
constexpr U&& operator*() && {
return std::move(val());
}
template <typename U = T>
constexpr const U&& operator*() const&& {
return std::move(val());
}
constexpr bool has_value() const noexcept {
return this->m_has_val;
}
constexpr explicit operator bool() const noexcept {
return this->m_has_val;
}
template <typename U = T>
constexpr U& value() & {
return val();
}
template <typename U = T>
constexpr const U& value() const& {
return val();
}
template <typename U = T>
constexpr U&& value() && {
return std::move(val());
}
template <typename U = T>
constexpr const U&& value() const&& {
return std::move(val());
}
constexpr E& error() & {
return err().value();
}
constexpr const E& error() const& {
return err().value();
}
constexpr E&& error() && {
return std::move(err().value());
}
constexpr const E&& error() const&& {
return std::move(err().value());
}
template <typename U>
constexpr T value_or(U&& v) const& {
static_assert(std::is_copy_constructible_v<T> && std::is_convertible_v<U&&, T>,
"T must be copy-constructible and convertible from U&&");
return bool(*this) ? **this : static_cast<T>(std::forward<U>(v));
}
template <typename U>
constexpr T value_or(U&& v) && {
static_assert(std::is_move_constructible_v<T> && std::is_convertible_v<U&&, T>,
"T must be move-constructible and convertible from U&&");
return bool(*this) ? std::move(**this) : static_cast<T>(std::forward<U>(v));
}
private:
static_assert(!std::is_reference_v<T>, "T must not be a reference");
static_assert(!std::is_same_v<T, std::remove_cv_t<std::in_place_t>>,
"T must not be std::in_place_t");
static_assert(!std::is_same_v<T, std::remove_cv_t<unexpect_t>>, "T must not be unexpect_t");
static_assert(!std::is_same_v<T, std::remove_cv_t<Unexpected<E>>>,
"T must not be Unexpected<E>");
static_assert(!std::is_reference_v<E>, "E must not be a reference");
T* valptr() {
return std::addressof(this->m_val);
}
const T* valptr() const {
return std::addressof(this->m_val);
}
Unexpected<E>* errptr() {
return std::addressof(this->m_unexpect);
}
const Unexpected<E>* errptr() const {
return std::addressof(this->m_unexpect);
}
template <typename U = T>
constexpr U& val() {
return this->m_val;
}
template <typename U = T>
constexpr const U& val() const {
return this->m_val;
}
constexpr Unexpected<E>& err() {
return this->m_unexpect;
}
constexpr const Unexpected<E>& err() const {
return this->m_unexpect;
}
using impl_base = detail::expected_move_assign_base<T, E>;
using ctor_base = detail::expected_default_ctor_base<T, E>;
};
template <typename T, typename E, typename U, typename F>
constexpr bool operator==(const Expected<T, E>& lhs, const Expected<U, F>& rhs) {
return (lhs.has_value() != rhs.has_value())
? false
: (!lhs.has_value() ? lhs.error() == rhs.error() : *lhs == *rhs);
}
template <typename T, typename E, typename U, typename F>
constexpr bool operator!=(const Expected<T, E>& lhs, const Expected<U, F>& rhs) {
return !operator==(lhs, rhs);
}
template <typename T, typename E, typename U>
constexpr bool operator==(const Expected<T, E>& x, const U& v) {
return x.has_value() ? *x == v : false;
}
template <typename T, typename E, typename U>
constexpr bool operator==(const U& v, const Expected<T, E>& x) {
return x.has_value() ? *x == v : false;
}
template <typename T, typename E, typename U>
constexpr bool operator!=(const Expected<T, E>& x, const U& v) {
return !operator==(x, v);
}
template <typename T, typename E, typename U>
constexpr bool operator!=(const U& v, const Expected<T, E>& x) {
return !operator==(v, x);
}
template <typename T, typename E>
constexpr bool operator==(const Expected<T, E>& x, const Unexpected<E>& e) {
return x.has_value() ? false : x.error() == e.value();
}
template <typename T, typename E>
constexpr bool operator==(const Unexpected<E>& e, const Expected<T, E>& x) {
return x.has_value() ? false : x.error() == e.value();
}
template <typename T, typename E>
constexpr bool operator!=(const Expected<T, E>& x, const Unexpected<E>& e) {
return !operator==(x, e);
}
template <typename T, typename E>
constexpr bool operator!=(const Unexpected<E>& e, const Expected<T, E>& x) {
return !operator==(e, x);
}
} // namespace Common
+3 -13
View File
@@ -83,12 +83,6 @@ FileSys::StorageId GetStorageIdForFrontendSlot(
}
}
void KProcessDeleter(Kernel::KProcess* process) {
process->Destroy();
}
using KProcessPtr = std::unique_ptr<Kernel::KProcess, decltype(&KProcessDeleter)>;
} // Anonymous namespace
FileSys::VirtualFile GetGameFileFromPath(const FileSys::VirtualFilesystem& vfs,
@@ -261,11 +255,10 @@ struct System::Impl {
}
telemetry_session->AddInitialInfo(*app_loader, fs_controller, *content_provider);
main_process = KProcessPtr{Kernel::KProcess::Create(system.Kernel()), KProcessDeleter};
ASSERT(Kernel::KProcess::Initialize(main_process.get(), system, "main",
auto main_process = Kernel::KProcess::Create(system.Kernel());
ASSERT(Kernel::KProcess::Initialize(main_process, system, "main",
Kernel::KProcess::ProcessType::Userland)
.IsSuccess());
main_process->Open();
const auto [load_result, load_parameters] = app_loader->Load(*main_process, system);
if (load_result != Loader::ResultStatus::Success) {
LOG_CRITICAL(Core, "Failed to load ROM (Error {})!", load_result);
@@ -275,7 +268,7 @@ struct System::Impl {
static_cast<u32>(SystemResultStatus::ErrorLoader) + static_cast<u32>(load_result));
}
AddGlueRegistrationForProcess(*app_loader, *main_process);
kernel.MakeCurrentProcess(main_process.get());
kernel.MakeCurrentProcess(main_process);
kernel.InitializeCores();
// Initialize cheat engine
@@ -340,8 +333,6 @@ struct System::Impl {
kernel.Shutdown();
memory.Reset();
applet_manager.ClearAll();
// TODO: The main process should be freed based on KAutoObject ref counting.
main_process.reset();
LOG_DEBUG(Core, "Shutdown OK");
}
@@ -403,7 +394,6 @@ struct System::Impl {
std::unique_ptr<Tegra::GPU> gpu_core;
std::unique_ptr<Hardware::InterruptManager> interrupt_manager;
std::unique_ptr<Core::DeviceMemory> device_memory;
KProcessPtr main_process{nullptr, KProcessDeleter};
Core::Memory::Memory memory;
CpuManager cpu_manager;
std::atomic_bool is_powered_on{};
+2 -1
View File
@@ -9,7 +9,7 @@
namespace FileSys {
const std::array<const char*, 15> LANGUAGE_NAMES{{
const std::array<const char*, 16> LANGUAGE_NAMES{{
"AmericanEnglish",
"BritishEnglish",
"Japanese",
@@ -25,6 +25,7 @@ const std::array<const char*, 15> LANGUAGE_NAMES{{
"Korean",
"Taiwanese",
"Chinese",
"BrazilianPortuguese",
}};
std::string LanguageEntry::GetApplicationName() const {
+2 -1
View File
@@ -88,11 +88,12 @@ enum class Language : u8 {
Korean = 12,
Taiwanese = 13,
Chinese = 14,
BrazilianPortuguese = 15,
Default = 255,
};
extern const std::array<const char*, 15> LANGUAGE_NAMES;
extern const std::array<const char*, 16> LANGUAGE_NAMES;
// A class representing the format used by NX metadata files, typically named Control.nacp.
// These store application name, dev name, title id, and other miscellaneous data.
+4 -6
View File
@@ -39,13 +39,12 @@ void RomFSFactory::SetPackedUpdate(VirtualFile update_raw_file) {
ResultVal<VirtualFile> RomFSFactory::OpenCurrentProcess(u64 current_process_title_id) const {
if (!updatable) {
return MakeResult<VirtualFile>(file);
return file;
}
const PatchManager patch_manager{current_process_title_id, filesystem_controller,
content_provider};
return MakeResult<VirtualFile>(
patch_manager.PatchRomFS(file, ivfc_offset, ContentRecordType::Program, update_raw));
return patch_manager.PatchRomFS(file, ivfc_offset, ContentRecordType::Program, update_raw);
}
ResultVal<VirtualFile> RomFSFactory::OpenPatchedRomFS(u64 title_id, ContentRecordType type) const {
@@ -58,8 +57,7 @@ ResultVal<VirtualFile> RomFSFactory::OpenPatchedRomFS(u64 title_id, ContentRecor
const PatchManager patch_manager{title_id, filesystem_controller, content_provider};
return MakeResult<VirtualFile>(
patch_manager.PatchRomFS(nca->GetRomFS(), nca->GetBaseIVFCOffset(), type));
return patch_manager.PatchRomFS(nca->GetRomFS(), nca->GetBaseIVFCOffset(), type);
}
ResultVal<VirtualFile> RomFSFactory::OpenPatchedRomFSWithProgramIndex(
@@ -83,7 +81,7 @@ ResultVal<VirtualFile> RomFSFactory::Open(u64 title_id, StorageId storage,
return ResultUnknown;
}
return MakeResult<VirtualFile>(romfs);
return romfs;
}
std::shared_ptr<NCA> RomFSFactory::GetEntry(u64 title_id, StorageId storage,
+2 -2
View File
@@ -94,7 +94,7 @@ ResultVal<VirtualDir> SaveDataFactory::Create(SaveDataSpaceId space,
return ResultUnknown;
}
return MakeResult<VirtualDir>(std::move(out));
return out;
}
ResultVal<VirtualDir> SaveDataFactory::Open(SaveDataSpaceId space,
@@ -115,7 +115,7 @@ ResultVal<VirtualDir> SaveDataFactory::Open(SaveDataSpaceId space,
return ResultUnknown;
}
return MakeResult<VirtualDir>(std::move(out));
return out;
}
VirtualDir SaveDataFactory::GetSaveDataSpaceDirectory(SaveDataSpaceId space) const {
+1 -1
View File
@@ -25,7 +25,7 @@ SDMCFactory::SDMCFactory(VirtualDir sd_dir_, VirtualDir sd_mod_dir_)
SDMCFactory::~SDMCFactory() = default;
ResultVal<VirtualDir> SDMCFactory::Open() const {
return MakeResult<VirtualDir>(sd_dir);
return sd_dir;
}
VirtualDir SDMCFactory::GetSDMCModificationLoadRoot(u64 title_id) const {
+1
View File
@@ -56,6 +56,7 @@ bool KHandleTable::Remove(Handle handle) {
}
// Close the object.
kernel.UnregisterInUseObject(obj);
obj->Close();
return true;
}
+2 -2
View File
@@ -859,7 +859,7 @@ ResultVal<VAddr> KPageTable::SetHeapSize(std::size_t size) {
current_heap_addr = heap_region_start + size;
}
return MakeResult<VAddr>(heap_region_start);
return heap_region_start;
}
ResultVal<VAddr> KPageTable::AllocateAndMapMemory(std::size_t needed_num_pages, std::size_t align,
@@ -893,7 +893,7 @@ ResultVal<VAddr> KPageTable::AllocateAndMapMemory(std::size_t needed_num_pages,
block_manager->Update(addr, needed_num_pages, state, perm);
return MakeResult<VAddr>(addr);
return addr;
}
ResultCode KPageTable::LockForDeviceAddressSpace(VAddr addr, std::size_t size) {
+6 -5
View File
@@ -434,11 +434,6 @@ void KProcess::PrepareForTermination() {
}
void KProcess::Finalize() {
// Release memory to the resource limit.
if (resource_limit != nullptr) {
resource_limit->Close();
}
// Finalize the handle table and close any open handles.
handle_table.Finalize();
@@ -460,6 +455,12 @@ void KProcess::Finalize() {
}
}
// Release memory to the resource limit.
if (resource_limit != nullptr) {
resource_limit->Close();
resource_limit = nullptr;
}
// Perform inherited finalization.
KAutoObjectWithSlabHeapAndContainer<KProcess, KSynchronizationObject>::Finalize();
}
+30 -6
View File
@@ -91,12 +91,6 @@ struct KernelCore::Impl {
}
void Shutdown() {
// Shutdown all processes.
if (current_process) {
current_process->Finalize();
current_process->Close();
current_process = nullptr;
}
process_list.clear();
// Close all open server ports.
@@ -170,6 +164,24 @@ struct KernelCore::Impl {
// Next host thead ID to use, 0-3 IDs represent core threads, >3 represent others
next_host_thread_id = Core::Hardware::NUM_CPU_CORES;
// Close kernel objects that were not freed on shutdown
{
std::lock_guard lk(registered_in_use_objects_lock);
if (registered_in_use_objects.size()) {
for (auto& object : registered_in_use_objects) {
object->Close();
}
registered_in_use_objects.clear();
}
}
// Shutdown all processes.
if (current_process) {
current_process->Finalize();
current_process->Close();
current_process = nullptr;
}
// Track kernel objects that were not freed on shutdown
{
std::lock_guard lk(registered_objects_lock);
@@ -714,9 +726,11 @@ struct KernelCore::Impl {
std::unordered_set<KServerPort*> server_ports;
std::unordered_set<KServerSession*> server_sessions;
std::unordered_set<KAutoObject*> registered_objects;
std::unordered_set<KAutoObject*> registered_in_use_objects;
std::mutex server_ports_lock;
std::mutex server_sessions_lock;
std::mutex registered_objects_lock;
std::mutex registered_in_use_objects_lock;
std::unique_ptr<Core::ExclusiveMonitor> exclusive_monitor;
std::vector<Kernel::PhysicalCore> cores;
@@ -928,6 +942,16 @@ void KernelCore::UnregisterKernelObject(KAutoObject* object) {
impl->registered_objects.erase(object);
}
void KernelCore::RegisterInUseObject(KAutoObject* object) {
std::lock_guard lk(impl->registered_in_use_objects_lock);
impl->registered_in_use_objects.insert(object);
}
void KernelCore::UnregisterInUseObject(KAutoObject* object) {
std::lock_guard lk(impl->registered_in_use_objects_lock);
impl->registered_in_use_objects.erase(object);
}
bool KernelCore::IsValidNamedPort(NamedPortTable::const_iterator port) const {
return port != impl->named_ports.cend();
}
+8
View File
@@ -204,6 +204,14 @@ public:
/// destroyed during the current emulation session.
void UnregisterKernelObject(KAutoObject* object);
/// Registers kernel objects with guest in use state, this is purely for close
/// after emulation has been shutdown.
void RegisterInUseObject(KAutoObject* object);
/// Unregisters a kernel object previously registered with RegisterInUseObject when it was
/// destroyed during the current emulation session.
void UnregisterInUseObject(KAutoObject* object);
/// Determines whether or not the given port is a valid named port.
bool IsValidNamedPort(NamedPortTable::const_iterator port) const;
+8 -2
View File
@@ -409,7 +409,7 @@ static ResultCode GetProcessId32(Core::System& system, u32* out_process_id_low,
/// Wait for the given handles to synchronize, timeout after the specified nanoseconds
static ResultCode WaitSynchronization(Core::System& system, s32* index, VAddr handles_address,
u64 num_handles, s64 nano_seconds) {
s32 num_handles, s64 nano_seconds) {
LOG_TRACE(Kernel_SVC, "called handles_address=0x{:X}, num_handles={}, nano_seconds={}",
handles_address, num_handles, nano_seconds);
@@ -427,11 +427,15 @@ static ResultCode WaitSynchronization(Core::System& system, s32* index, VAddr ha
R_UNLESS(handle_table.GetMultipleObjects<KSynchronizationObject>(objs.data(), handles,
num_handles),
ResultInvalidHandle);
for (const auto& obj : objs) {
kernel.RegisterInUseObject(obj);
}
}
// Ensure handles are closed when we're done.
SCOPE_EXIT({
for (u64 i = 0; i < num_handles; ++i) {
for (s32 i = 0; i < num_handles; ++i) {
kernel.UnregisterInUseObject(objs[i]);
objs[i]->Close();
}
});
@@ -1561,6 +1565,7 @@ static ResultCode StartThread(Core::System& system, Handle thread_handle) {
// If we succeeded, persist a reference to the thread.
thread->Open();
system.Kernel().RegisterInUseObject(thread.GetPointerUnsafe());
return ResultSuccess;
}
@@ -1576,6 +1581,7 @@ static void ExitThread(Core::System& system) {
auto* const current_thread = system.Kernel().CurrentScheduler()->GetCurrentThread();
system.GlobalSchedulerContext().RemoveThread(current_thread);
current_thread->Exit();
system.Kernel().UnregisterInUseObject(current_thread);
}
static void ExitThread32(Core::System& system) {
+2 -2
View File
@@ -248,10 +248,10 @@ void SvcWrap64(Core::System& system) {
}
// Used by WaitSynchronization
template <ResultCode func(Core::System&, s32*, u64, u64, s64)>
template <ResultCode func(Core::System&, s32*, u64, s32, s64)>
void SvcWrap64(Core::System& system) {
s32 param_1 = 0;
const u32 retval = func(system, &param_1, Param(system, 1), static_cast<u32>(Param(system, 2)),
const u32 retval = func(system, &param_1, Param(system, 1), static_cast<s32>(Param(system, 2)),
static_cast<s64>(Param(system, 3)))
.raw;
+90 -164
View File
@@ -4,11 +4,10 @@
#pragma once
#include <new>
#include <utility>
#include "common/assert.h"
#include "common/bit_field.h"
#include "common/common_types.h"
#include "common/expected.h"
// All the constants in this file come from http://switchbrew.org/index.php?title=Error_codes
@@ -155,204 +154,131 @@ constexpr ResultCode ResultSuccess(0);
constexpr ResultCode ResultUnknown(UINT32_MAX);
/**
* This is an optional value type. It holds a `ResultCode` and, if that code is a success code,
* also holds a result of type `T`. If the code is an error code then trying to access the inner
* value fails, thus ensuring that the ResultCode of functions is always checked properly before
* their return value is used. It is similar in concept to the `std::optional` type
* (http://en.cppreference.com/w/cpp/experimental/optional) originally proposed for inclusion in
* C++14, or the `Result` type in Rust (http://doc.rust-lang.org/std/result/index.html).
* This is an optional value type. It holds a `ResultCode` and, if that code is ResultSuccess, it
* also holds a result of type `T`. If the code is an error code (not ResultSuccess), then trying
* to access the inner value with operator* is undefined behavior and will assert with Unwrap().
* Users of this class must be cognizant to check the status of the ResultVal with operator bool(),
* Code(), Succeeded() or Failed() prior to accessing the inner value.
*
* An example of how it could be used:
* \code
* ResultVal<int> Frobnicate(float strength) {
* if (strength < 0.f || strength > 1.0f) {
* // Can't frobnicate too weakly or too strongly
* return ResultCode(ErrorDescription::OutOfRange, ErrorModule::Common,
* ErrorSummary::InvalidArgument, ErrorLevel::Permanent);
* return ResultCode{ErrorModule::Common, 1};
* } else {
* // Frobnicated! Give caller a cookie
* return MakeResult<int>(42);
* return 42;
* }
* }
* \endcode
*
* \code
* ResultVal<int> frob_result = Frobnicate(0.75f);
* auto frob_result = Frobnicate(0.75f);
* if (frob_result) {
* // Frobbed ok
* printf("My cookie is %d\n", *frob_result);
* } else {
* printf("Guess I overdid it. :( Error code: %ux\n", frob_result.code().hex);
* printf("Guess I overdid it. :( Error code: %ux\n", frob_result.Code().raw);
* }
* \endcode
*/
template <typename T>
class ResultVal {
public:
/// Constructs an empty `ResultVal` with the given error code. The code must not be a success
/// code.
ResultVal(ResultCode error_code = ResultUnknown) : result_code(error_code) {
ASSERT(error_code.IsError());
}
constexpr ResultVal() : expected{} {}
/**
* Similar to the non-member function `MakeResult`, with the exception that you can manually
* specify the success code. `success_code` must not be an error code.
*/
template <typename... Args>
[[nodiscard]] static ResultVal WithCode(ResultCode success_code, Args&&... args) {
ResultVal<T> result;
result.emplace(success_code, std::forward<Args>(args)...);
return result;
}
constexpr ResultVal(ResultCode code) : expected{Common::Unexpected(code)} {}
ResultVal(const ResultVal& o) noexcept : result_code(o.result_code) {
if (!o.empty()) {
new (&object) T(o.object);
}
}
ResultVal(ResultVal&& o) noexcept : result_code(o.result_code) {
if (!o.empty()) {
new (&object) T(std::move(o.object));
}
}
~ResultVal() {
if (!empty()) {
object.~T();
}
}
ResultVal& operator=(const ResultVal& o) noexcept {
if (this == &o) {
return *this;
}
if (!empty()) {
if (!o.empty()) {
object = o.object;
} else {
object.~T();
}
} else {
if (!o.empty()) {
new (&object) T(o.object);
}
}
result_code = o.result_code;
return *this;
}
ResultVal& operator=(ResultVal&& o) noexcept {
if (this == &o) {
return *this;
}
if (!empty()) {
if (!o.empty()) {
object = std::move(o.object);
} else {
object.~T();
}
} else {
if (!o.empty()) {
new (&object) T(std::move(o.object));
}
}
result_code = o.result_code;
return *this;
}
/**
* Replaces the current result with a new constructed result value in-place. The code must not
* be an error code.
*/
template <typename... Args>
void emplace(ResultCode success_code, Args&&... args) {
ASSERT(success_code.IsSuccess());
if (!empty()) {
object.~T();
}
new (&object) T(std::forward<Args>(args)...);
result_code = success_code;
}
/// Returns true if the `ResultVal` contains an error code and no value.
[[nodiscard]] bool empty() const {
return result_code.IsError();
}
/// Returns true if the `ResultVal` contains a return value.
[[nodiscard]] bool Succeeded() const {
return result_code.IsSuccess();
}
/// Returns true if the `ResultVal` contains an error code and no value.
[[nodiscard]] bool Failed() const {
return empty();
}
[[nodiscard]] ResultCode Code() const {
return result_code;
}
[[nodiscard]] const T& operator*() const {
return object;
}
[[nodiscard]] T& operator*() {
return object;
}
[[nodiscard]] const T* operator->() const {
return &object;
}
[[nodiscard]] T* operator->() {
return &object;
}
/// Returns the value contained in this `ResultVal`, or the supplied default if it is missing.
template <typename U>
[[nodiscard]] T ValueOr(U&& value) const {
return !empty() ? object : std::move(value);
constexpr ResultVal(U&& val) : expected{std::forward<U>(val)} {}
template <typename... Args>
constexpr ResultVal(Args&&... args) : expected{std::in_place, std::forward<Args>(args)...} {}
~ResultVal() = default;
constexpr ResultVal(const ResultVal&) = default;
constexpr ResultVal(ResultVal&&) = default;
ResultVal& operator=(const ResultVal&) = default;
ResultVal& operator=(ResultVal&&) = default;
[[nodiscard]] constexpr explicit operator bool() const noexcept {
return expected.has_value();
}
/// Asserts that the result succeeded and returns a reference to it.
[[nodiscard]] T& Unwrap() & {
ASSERT_MSG(Succeeded(), "Tried to Unwrap empty ResultVal");
return **this;
[[nodiscard]] constexpr ResultCode Code() const {
return expected.has_value() ? ResultSuccess : expected.error();
}
[[nodiscard]] T&& Unwrap() && {
[[nodiscard]] constexpr bool Succeeded() const {
return expected.has_value();
}
[[nodiscard]] constexpr bool Failed() const {
return !expected.has_value();
}
[[nodiscard]] constexpr T* operator->() {
return std::addressof(expected.value());
}
[[nodiscard]] constexpr const T* operator->() const {
return std::addressof(expected.value());
}
[[nodiscard]] constexpr T& operator*() & {
return *expected;
}
[[nodiscard]] constexpr const T& operator*() const& {
return *expected;
}
[[nodiscard]] constexpr T&& operator*() && {
return *expected;
}
[[nodiscard]] constexpr const T&& operator*() const&& {
return *expected;
}
[[nodiscard]] constexpr T& Unwrap() & {
ASSERT_MSG(Succeeded(), "Tried to Unwrap empty ResultVal");
return std::move(**this);
return expected.value();
}
[[nodiscard]] constexpr const T& Unwrap() const& {
ASSERT_MSG(Succeeded(), "Tried to Unwrap empty ResultVal");
return expected.value();
}
[[nodiscard]] constexpr T&& Unwrap() && {
ASSERT_MSG(Succeeded(), "Tried to Unwrap empty ResultVal");
return std::move(expected.value());
}
[[nodiscard]] constexpr const T&& Unwrap() const&& {
ASSERT_MSG(Succeeded(), "Tried to Unwrap empty ResultVal");
return std::move(expected.value());
}
template <typename U>
[[nodiscard]] constexpr T ValueOr(U&& v) const& {
return expected.value_or(v);
}
template <typename U>
[[nodiscard]] constexpr T ValueOr(U&& v) && {
return expected.value_or(v);
}
private:
// A union is used to allocate the storage for the value, while allowing us to construct and
// destruct it at will.
union {
T object;
};
ResultCode result_code;
// TODO: Replace this with std::expected once it is standardized in the STL.
Common::Expected<T, ResultCode> expected;
};
/**
* This function is a helper used to construct `ResultVal`s. It receives the arguments to construct
* `T` with and creates a success `ResultVal` contained the constructed value.
*/
template <typename T, typename... Args>
[[nodiscard]] ResultVal<T> MakeResult(Args&&... args) {
return ResultVal<T>::WithCode(ResultSuccess, std::forward<Args>(args)...);
}
/**
* Deducible overload of MakeResult, allowing the template parameter to be ommited if you're just
* copy or move constructing.
*/
template <typename Arg>
[[nodiscard]] ResultVal<std::remove_reference_t<Arg>> MakeResult(Arg&& arg) {
return ResultVal<std::remove_reference_t<Arg>>::WithCode(ResultSuccess, std::forward<Arg>(arg));
}
/**
* Check for the success of `source` (which must evaluate to a ResultVal). If it succeeds, unwraps
* the contained value and assigns it to `target`, which can be either an l-value expression or a
+7
View File
@@ -826,6 +826,13 @@ void Module::Interface::IsUserAccountSwitchLocked(Kernel::HLERequestContext& ctx
rb.Push(is_locked);
}
void Module::Interface::Unknown160(Kernel::HLERequestContext& ctx) {
LOG_WARNING(Service_ACC, "(STUBBED) called");
IPC::ResponseBuilder rb{ctx, 2};
rb.Push(ResultSuccess);
}
void Module::Interface::GetProfileEditor(Kernel::HLERequestContext& ctx) {
IPC::RequestParser rp{ctx};
Common::UUID user_id = rp.PopRaw<Common::UUID>();
+1
View File
@@ -33,6 +33,7 @@ public:
void IsUserRegistrationRequestPermitted(Kernel::HLERequestContext& ctx);
void TrySelectUserWithoutInteraction(Kernel::HLERequestContext& ctx);
void IsUserAccountSwitchLocked(Kernel::HLERequestContext& ctx);
void Unknown160(Kernel::HLERequestContext& ctx);
void GetProfileEditor(Kernel::HLERequestContext& ctx);
void ListQualifiedUsers(Kernel::HLERequestContext& ctx);
void LoadOpenContext(Kernel::HLERequestContext& ctx);
+1
View File
@@ -34,6 +34,7 @@ ACC_U0::ACC_U0(std::shared_ptr<Module> module_, std::shared_ptr<ProfileManager>
{140, &ACC_U0::InitializeApplicationInfoRestricted, "InitializeApplicationInfoRestricted"}, // 6.0.0+
{141, &ACC_U0::ListQualifiedUsers, "ListQualifiedUsers"}, // 6.0.0+
{150, &ACC_U0::IsUserAccountSwitchLocked, "IsUserAccountSwitchLocked"}, // 6.0.0+
{160, &ACC_U0::Unknown160, "Unknown160"},
};
// clang-format on
+10 -11
View File
@@ -226,11 +226,10 @@ ResultVal<FileSys::VirtualFile> VfsDirectoryServiceWrapper::OpenFile(const std::
}
if (mode == FileSys::Mode::Append) {
return MakeResult<FileSys::VirtualFile>(
std::make_shared<FileSys::OffsetVfsFile>(file, 0, file->GetSize()));
return std::make_shared<FileSys::OffsetVfsFile>(file, 0, file->GetSize());
}
return MakeResult<FileSys::VirtualFile>(file);
return file;
}
ResultVal<FileSys::VirtualDir> VfsDirectoryServiceWrapper::OpenDirectory(const std::string& path_) {
@@ -240,7 +239,7 @@ ResultVal<FileSys::VirtualDir> VfsDirectoryServiceWrapper::OpenDirectory(const s
// TODO(DarkLordZach): Find a better error code for this
return FileSys::ERROR_PATH_NOT_FOUND;
}
return MakeResult(dir);
return dir;
}
ResultVal<FileSys::EntryType> VfsDirectoryServiceWrapper::GetEntryType(
@@ -252,12 +251,12 @@ ResultVal<FileSys::EntryType> VfsDirectoryServiceWrapper::GetEntryType(
auto filename = Common::FS::GetFilename(path);
// TODO(Subv): Some games use the '/' path, find out what this means.
if (filename.empty())
return MakeResult(FileSys::EntryType::Directory);
return FileSys::EntryType::Directory;
if (dir->GetFile(filename) != nullptr)
return MakeResult(FileSys::EntryType::File);
return FileSys::EntryType::File;
if (dir->GetSubdirectory(filename) != nullptr)
return MakeResult(FileSys::EntryType::Directory);
return FileSys::EntryType::Directory;
return FileSys::ERROR_PATH_NOT_FOUND;
}
@@ -270,7 +269,7 @@ ResultVal<FileSys::FileTimeStampRaw> VfsDirectoryServiceWrapper::GetFileTimeStam
if (GetEntryType(path).Failed()) {
return FileSys::ERROR_PATH_NOT_FOUND;
}
return MakeResult(dir->GetFileTimeStamp(Common::FS::GetFilename(path)));
return dir->GetFileTimeStamp(Common::FS::GetFilename(path));
}
FileSystemController::FileSystemController(Core::System& system_) : system{system_} {}
@@ -395,7 +394,7 @@ ResultVal<FileSys::VirtualDir> FileSystemController::OpenSaveDataSpace(
return FileSys::ERROR_ENTITY_NOT_FOUND;
}
return MakeResult(save_data_factory->GetSaveDataSpaceDirectory(space));
return save_data_factory->GetSaveDataSpaceDirectory(space);
}
ResultVal<FileSys::VirtualDir> FileSystemController::OpenSDMC() const {
@@ -421,7 +420,7 @@ ResultVal<FileSys::VirtualDir> FileSystemController::OpenBISPartition(
return FileSys::ERROR_INVALID_ARGUMENT;
}
return MakeResult<FileSys::VirtualDir>(std::move(part));
return part;
}
ResultVal<FileSys::VirtualFile> FileSystemController::OpenBISPartitionStorage(
@@ -437,7 +436,7 @@ ResultVal<FileSys::VirtualFile> FileSystemController::OpenBISPartitionStorage(
return FileSys::ERROR_INVALID_ARGUMENT;
}
return MakeResult<FileSys::VirtualFile>(std::move(part));
return part;
}
u64 FileSystemController::GetFreeSpaceSize(FileSys::StorageId id) const {
+2 -2
View File
@@ -26,7 +26,7 @@ ResultVal<ApplicationLaunchProperty> ARPManager::GetLaunchProperty(u64 title_id)
return ERR_NOT_REGISTERED;
}
return MakeResult<ApplicationLaunchProperty>(iter->second.launch);
return iter->second.launch;
}
ResultVal<std::vector<u8>> ARPManager::GetControlProperty(u64 title_id) const {
@@ -39,7 +39,7 @@ ResultVal<std::vector<u8>> ARPManager::GetControlProperty(u64 title_id) const {
return ERR_NOT_REGISTERED;
}
return MakeResult<std::vector<u8>>(iter->second.control);
return iter->second.control;
}
ResultCode ARPManager::Register(u64 title_id, ApplicationLaunchProperty launch,
+2 -2
View File
@@ -335,7 +335,7 @@ public:
CASCADE_CODE(result);
if (ValidateRegionForMap(page_table, addr, size)) {
return MakeResult<VAddr>(addr);
return addr;
}
}
@@ -371,7 +371,7 @@ public:
}
if (ValidateRegionForMap(page_table, addr, size)) {
return MakeResult<VAddr>(addr);
return addr;
}
}
+2 -2
View File
@@ -443,14 +443,14 @@ ResultVal<std::vector<MiiInfoElement>> MiiManager::GetDefault(SourceFlag source_
std::vector<MiiInfoElement> result;
if ((source_flag & SourceFlag::Default) == SourceFlag::None) {
return MakeResult(std::move(result));
return result;
}
for (std::size_t index = BaseMiiCount; index < DefaultMiiCount; index++) {
result.emplace_back(BuildDefault(index), Source::Default);
}
return MakeResult(std::move(result));
return result;
}
ResultCode MiiManager::GetIndex([[maybe_unused]] const MiiInfo& info, u32& index) {
+25 -1
View File
@@ -277,6 +277,25 @@ constexpr ApplicationLanguagePriorityList priority_list_simplified_chinese = {{
ApplicationLanguage::Korean,
}};
constexpr ApplicationLanguagePriorityList priority_list_brazilian_portuguese = {{
ApplicationLanguage::BrazilianPortuguese,
ApplicationLanguage::Portuguese,
ApplicationLanguage::LatinAmericanSpanish,
ApplicationLanguage::AmericanEnglish,
ApplicationLanguage::BritishEnglish,
ApplicationLanguage::Japanese,
ApplicationLanguage::French,
ApplicationLanguage::German,
ApplicationLanguage::Spanish,
ApplicationLanguage::Italian,
ApplicationLanguage::Dutch,
ApplicationLanguage::CanadianFrench,
ApplicationLanguage::Russian,
ApplicationLanguage::Korean,
ApplicationLanguage::SimplifiedChinese,
ApplicationLanguage::TraditionalChinese,
}};
const ApplicationLanguagePriorityList* GetApplicationLanguagePriorityList(
const ApplicationLanguage lang) {
switch (lang) {
@@ -310,6 +329,8 @@ const ApplicationLanguagePriorityList* GetApplicationLanguagePriorityList(
return &priority_list_traditional_chinese;
case ApplicationLanguage::SimplifiedChinese:
return &priority_list_simplified_chinese;
case ApplicationLanguage::BrazilianPortuguese:
return &priority_list_brazilian_portuguese;
default:
return nullptr;
}
@@ -339,7 +360,6 @@ std::optional<ApplicationLanguage> ConvertToApplicationLanguage(
case Set::LanguageCode::FR_CA:
return ApplicationLanguage::CanadianFrench;
case Set::LanguageCode::PT:
case Set::LanguageCode::PT_BR:
return ApplicationLanguage::Portuguese;
case Set::LanguageCode::RU:
return ApplicationLanguage::Russian;
@@ -351,6 +371,8 @@ std::optional<ApplicationLanguage> ConvertToApplicationLanguage(
case Set::LanguageCode::ZH_CN:
case Set::LanguageCode::ZH_HANS:
return ApplicationLanguage::SimplifiedChinese;
case Set::LanguageCode::PT_BR:
return ApplicationLanguage::BrazilianPortuguese;
default:
return std::nullopt;
}
@@ -388,6 +410,8 @@ std::optional<Set::LanguageCode> ConvertToLanguageCode(const ApplicationLanguage
return Set::LanguageCode::ZH_HANT;
case ApplicationLanguage::SimplifiedChinese:
return Set::LanguageCode::ZH_HANS;
case ApplicationLanguage::BrazilianPortuguese:
return Set::LanguageCode::PT_BR;
default:
return std::nullopt;
}
+1
View File
@@ -30,6 +30,7 @@ enum class ApplicationLanguage : u8 {
Korean,
TraditionalChinese,
SimplifiedChinese,
BrazilianPortuguese,
Count
};
using ApplicationLanguagePriorityList =
+2 -2
View File
@@ -414,7 +414,7 @@ ResultVal<u8> IApplicationManagerInterface::GetApplicationDesiredLanguage(
for (const auto lang : *priority_list) {
const auto supported_flag = GetSupportedLanguageFlag(lang);
if (supported_languages == 0 || (supported_languages & supported_flag) == supported_flag) {
return MakeResult(static_cast<u8>(lang));
return static_cast<u8>(lang);
}
}
@@ -448,7 +448,7 @@ ResultVal<u64> IApplicationManagerInterface::ConvertApplicationLanguageToLanguag
return ERR_APPLICATION_LANGUAGE_NOT_FOUND;
}
return MakeResult(static_cast<u64>(*language_code));
return static_cast<u64>(*language_code);
}
IApplicationVersionInterface::IApplicationVersionInterface(Core::System& system_)
+2 -2
View File
@@ -87,7 +87,7 @@ ResultVal<Kernel::KPort*> ServiceManager::GetServicePort(const std::string& name
auto handler = it->second;
port->GetServerPort().SetSessionHandler(std::move(handler));
return MakeResult(port);
return port;
}
/**
@@ -165,7 +165,7 @@ ResultVal<Kernel::KClientSession*> SM::GetServiceImpl(Kernel::HLERequestContext&
LOG_DEBUG(Service_SM, "called service={} -> session={}", name, session->GetId());
return MakeResult(session);
return session;
}
void SM::RegisterService(Kernel::HLERequestContext& ctx) {
+13 -13
View File
@@ -120,40 +120,40 @@ ResultVal<u64> Module::Interface::GetConfigImpl(ConfigItem config_item) const {
return ResultSecureMonitorNotImplemented;
case ConfigItem::ExosphereApiVersion:
// Get information about the current exosphere version.
return MakeResult((u64{HLE::ApiVersion::ATMOSPHERE_RELEASE_VERSION_MAJOR} << 56) |
(u64{HLE::ApiVersion::ATMOSPHERE_RELEASE_VERSION_MINOR} << 48) |
(u64{HLE::ApiVersion::ATMOSPHERE_RELEASE_VERSION_MICRO} << 40) |
(static_cast<u64>(HLE::ApiVersion::GetTargetFirmware())));
return (u64{HLE::ApiVersion::ATMOSPHERE_RELEASE_VERSION_MAJOR} << 56) |
(u64{HLE::ApiVersion::ATMOSPHERE_RELEASE_VERSION_MINOR} << 48) |
(u64{HLE::ApiVersion::ATMOSPHERE_RELEASE_VERSION_MICRO} << 40) |
(static_cast<u64>(HLE::ApiVersion::GetTargetFirmware()));
case ConfigItem::ExosphereNeedsReboot:
// We are executing, so we aren't in the process of rebooting.
return MakeResult(u64{0});
return u64{0};
case ConfigItem::ExosphereNeedsShutdown:
// We are executing, so we aren't in the process of shutting down.
return MakeResult(u64{0});
return u64{0};
case ConfigItem::ExosphereGitCommitHash:
// Get information about the current exosphere git commit hash.
return MakeResult(u64{0});
return u64{0};
case ConfigItem::ExosphereHasRcmBugPatch:
// Get information about whether this unit has the RCM bug patched.
return MakeResult(u64{0});
return u64{0};
case ConfigItem::ExosphereBlankProdInfo:
// Get whether this unit should simulate a "blanked" PRODINFO.
return MakeResult(u64{0});
return u64{0};
case ConfigItem::ExosphereAllowCalWrites:
// Get whether this unit should allow writing to the calibration partition.
return MakeResult(u64{0});
return u64{0};
case ConfigItem::ExosphereEmummcType:
// Get what kind of emummc this unit has active.
return MakeResult(u64{0});
return u64{0};
case ConfigItem::ExospherePayloadAddress:
// Gets the physical address of the reboot payload buffer, if one exists.
return ResultSecureMonitorNotInitialized;
case ConfigItem::ExosphereLogConfiguration:
// Get the log configuration.
return MakeResult(u64{0});
return u64{0};
case ConfigItem::ExosphereForceEnableUsb30:
// Get whether usb 3.0 should be force-enabled.
return MakeResult(u64{0});
return u64{0};
default:
return ResultSecureMonitorInvalidArgument;
}
+5 -5
View File
@@ -1284,15 +1284,15 @@ private:
static ResultVal<ConvertedScaleMode> ConvertScalingModeImpl(NintendoScaleMode mode) {
switch (mode) {
case NintendoScaleMode::None:
return MakeResult(ConvertedScaleMode::None);
return ConvertedScaleMode::None;
case NintendoScaleMode::Freeze:
return MakeResult(ConvertedScaleMode::Freeze);
return ConvertedScaleMode::Freeze;
case NintendoScaleMode::ScaleToWindow:
return MakeResult(ConvertedScaleMode::ScaleToWindow);
return ConvertedScaleMode::ScaleToWindow;
case NintendoScaleMode::ScaleAndCrop:
return MakeResult(ConvertedScaleMode::ScaleAndCrop);
return ConvertedScaleMode::ScaleAndCrop;
case NintendoScaleMode::PreserveAspectRatio:
return MakeResult(ConvertedScaleMode::PreserveAspectRatio);
return ConvertedScaleMode::PreserveAspectRatio;
default:
LOG_ERROR(Service_VI, "Invalid scaling mode specified, mode={}", mode);
return ERR_OPERATION_FAILED;
@@ -18,7 +18,7 @@ namespace Shader::Backend::GLASM {
#define NotImplemented() throw NotImplementedException("GLASM instruction {}", __LINE__)
static void DefinePhi(EmitContext& ctx, IR::Inst& phi) {
switch (phi.Arg(0).Type()) {
switch (phi.Type()) {
case IR::Type::U1:
case IR::Type::U32:
case IR::Type::F32:
@@ -68,7 +68,7 @@ void EmitPhi(EmitContext& ctx, IR::Inst& phi) {
}
if (!phi.Definition<Id>().is_valid) {
// The phi node wasn't forward defined
ctx.var_alloc.PhiDefine(phi, phi.Arg(0).Type());
ctx.var_alloc.PhiDefine(phi, phi.Type());
}
}
@@ -80,7 +80,7 @@ void EmitReference(EmitContext& ctx, const IR::Value& value) {
void EmitPhiMove(EmitContext& ctx, const IR::Value& phi_value, const IR::Value& value) {
IR::Inst& phi{*phi_value.InstRecursive()};
const auto phi_type{phi.Arg(0).Type()};
const auto phi_type{phi.Type()};
if (!phi.Definition<Id>().is_valid) {
// The phi node wasn't forward defined
ctx.var_alloc.PhiDefine(phi, phi_type);
@@ -355,11 +355,22 @@ Id EmitImageSampleExplicitLod(EmitContext& ctx, IR::Inst* inst, const IR::Value&
Id EmitImageSampleDrefImplicitLod(EmitContext& ctx, IR::Inst* inst, const IR::Value& index,
Id coords, Id dref, Id bias_lc, const IR::Value& offset) {
const auto info{inst->Flags<IR::TextureInstInfo>()};
const ImageOperands operands(ctx, info.has_bias != 0, false, info.has_lod_clamp != 0, bias_lc,
offset);
return Emit(&EmitContext::OpImageSparseSampleDrefImplicitLod,
&EmitContext::OpImageSampleDrefImplicitLod, ctx, inst, ctx.F32[1],
Texture(ctx, info, index), coords, dref, operands.MaskOptional(), operands.Span());
if (ctx.stage == Stage::Fragment) {
const ImageOperands operands(ctx, info.has_bias != 0, false, info.has_lod_clamp != 0,
bias_lc, offset);
return Emit(&EmitContext::OpImageSparseSampleDrefImplicitLod,
&EmitContext::OpImageSampleDrefImplicitLod, ctx, inst, ctx.F32[1],
Texture(ctx, info, index), coords, dref, operands.MaskOptional(),
operands.Span());
} else {
// Implicit lods in compute behave on hardware as if sampling from LOD 0.
// This check is to ensure all drivers behave this way.
const Id lod{ctx.Const(0.0f)};
const ImageOperands operands(ctx, false, true, false, lod, offset);
return Emit(&EmitContext::OpImageSparseSampleDrefExplicitLod,
&EmitContext::OpImageSampleDrefExplicitLod, ctx, inst, ctx.F32[1],
Texture(ctx, info, index), coords, dref, operands.Mask(), operands.Span());
}
}
Id EmitImageSampleDrefExplicitLod(EmitContext& ctx, IR::Inst* inst, const IR::Value& index,
@@ -152,6 +152,17 @@ public:
return instructions.crend();
}
// Set the order of the block, it can be set pre order, the user decides
void SetOrder(u32 new_order) {
order = new_order;
}
// Get the order of the block.
// The higher, the closer is the block to the end.
[[nodiscard]] u32 GetOrder() const {
return order;
}
private:
/// Memory pool for instruction list
ObjectPool<Inst>* inst_pool;
@@ -171,6 +182,9 @@ private:
/// Intrusively stored host definition of this block.
u32 definition{};
/// Order of the block.
u32 order{};
};
using BlockList = std::vector<Block*>;
@@ -6,6 +6,7 @@
#include <memory>
#include "shader_recompiler/exception.h"
#include "shader_recompiler/frontend/ir/basic_block.h"
#include "shader_recompiler/frontend/ir/type.h"
#include "shader_recompiler/frontend/ir/value.h"
@@ -253,6 +254,10 @@ Inst* Inst::GetAssociatedPseudoOperation(IR::Opcode opcode) {
}
IR::Type Inst::Type() const {
if (op == IR::Opcode::Phi) {
// The type of a phi node is stored in its flags
return Flags<IR::Type>();
}
return TypeOf(op);
}
@@ -291,6 +296,16 @@ void Inst::AddPhiOperand(Block* predecessor, const Value& value) {
phi_args.emplace_back(predecessor, value);
}
void Inst::OrderPhiArgs() {
if (op != Opcode::Phi) {
throw LogicError("{} is not a Phi instruction", op);
}
std::sort(phi_args.begin(), phi_args.end(),
[](const std::pair<Block*, Value>& a, const std::pair<Block*, Value>& b) {
return a.first->GetOrder() < b.first->GetOrder();
});
}
void Inst::Invalidate() {
ClearArgs();
ReplaceOpcode(Opcode::Void);
@@ -182,6 +182,9 @@ public:
/// Add phi operand to a phi instruction.
void AddPhiOperand(Block* predecessor, const Value& value);
/// Orders the Phi arguments from farthest away to nearest.
void OrderPhiArgs();
void Invalidate();
void ClearArgs();
@@ -27,9 +27,11 @@ IR::BlockList GenerateBlocks(const IR::AbstractSyntaxList& syntax_list) {
}
IR::BlockList blocks;
blocks.reserve(num_syntax_blocks);
u32 order_index{};
for (const auto& node : syntax_list) {
if (node.type == IR::AbstractSyntaxNode::Type::Block) {
blocks.push_back(node.data.block);
blocks.back()->SetOrder(order_index++);
}
}
return blocks;
@@ -14,6 +14,7 @@
// https://link.springer.com/chapter/10.1007/978-3-642-37051-9_6
//
#include <deque>
#include <span>
#include <variant>
#include <vector>
@@ -370,6 +371,26 @@ void VisitBlock(Pass& pass, IR::Block* block) {
}
pass.SealBlock(block);
}
IR::Type GetConcreteType(IR::Inst* inst) {
std::deque<IR::Inst*> queue;
queue.push_back(inst);
while (!queue.empty()) {
IR::Inst* current = queue.front();
queue.pop_front();
const size_t num_args{current->NumArgs()};
for (size_t i = 0; i < num_args; ++i) {
const auto set_type = current->Arg(i).Type();
if (set_type != IR::Type::Opaque) {
return set_type;
}
if (!current->Arg(i).IsImmediate()) {
queue.push_back(current->Arg(i).Inst());
}
}
}
return IR::Type::Opaque;
}
} // Anonymous namespace
void SsaRewritePass(IR::Program& program) {
@@ -378,6 +399,16 @@ void SsaRewritePass(IR::Program& program) {
for (auto block = program.post_order_blocks.rbegin(); block != end; ++block) {
VisitBlock(pass, *block);
}
for (auto block = program.post_order_blocks.rbegin(); block != end; ++block) {
for (IR::Inst& inst : (*block)->Instructions()) {
if (inst.GetOpcode() == IR::Opcode::Phi) {
if (inst.Type() == IR::Type::Opaque) {
inst.SetFlags(GetConcreteType(&inst));
}
inst.OrderPhiArgs();
}
}
}
}
} // namespace Shader::Optimization
@@ -181,6 +181,21 @@ Device::Device() {
LOG_ERROR(Render_OpenGL, "Assembly shaders enabled but not supported");
shader_backend = Settings::ShaderBackend::GLSL;
}
if (shader_backend == Settings::ShaderBackend::GLSL && is_nvidia &&
!Settings::values.renderer_debug) {
const std::string_view driver_version = version.substr(13);
const int version_major =
std::atoi(driver_version.substr(0, driver_version.find(".")).data());
if (version_major >= 495) {
LOG_WARNING(Render_OpenGL, "NVIDIA drivers 495 and later causes significant problems "
"with yuzu. Forcing GLASM as a mitigation.");
shader_backend = Settings::ShaderBackend::GLASM;
use_assembly_shaders = true;
}
}
// Blocks AMD and Intel OpenGL drivers on Windows from using asynchronous shader compilation.
use_asynchronous_shaders = Settings::values.use_asynchronous_shaders.GetValue() &&
!(is_amd || (is_intel && !is_linux));
@@ -10,16 +10,14 @@
#include <string_view>
#include <tuple>
#include <utility>
#include <glad/glad.h>
#include "common/alignment.h"
#include "common/assert.h"
#include "common/logging/log.h"
#include "common/math_util.h"
#include "common/microprofile.h"
#include "common/scope_exit.h"
#include "common/settings.h"
#include "core/core.h"
#include "core/hle/kernel/k_process.h"
#include "core/memory.h"
#include "video_core/engines/kepler_compute.h"
#include "video_core/engines/maxwell_3d.h"
+5
View File
@@ -299,6 +299,11 @@ if (YUZU_USE_BUNDLED_QT)
copy_yuzu_Qt5_deps(yuzu)
endif()
if (ENABLE_SDL2)
target_link_libraries(yuzu PRIVATE SDL2)
target_compile_definitions(yuzu PRIVATE HAVE_SDL2)
endif()
if (MSVC)
include(CopyYuzuSDLDeps)
include(CopyYuzuFFmpegDeps)
@@ -66,7 +66,7 @@ ConfigurePerGame::ConfigurePerGame(QWidget* parent, u64 title_id, const std::str
ui->tabWidget->addTab(system_tab.get(), tr("System"));
ui->tabWidget->addTab(cpu_tab.get(), tr("CPU"));
ui->tabWidget->addTab(graphics_tab.get(), tr("Graphics"));
ui->tabWidget->addTab(graphics_advanced_tab.get(), tr("GraphicsAdvanced"));
ui->tabWidget->addTab(graphics_advanced_tab.get(), tr("Adv. Graphics"));
ui->tabWidget->addTab(audio_tab.get(), tr("Audio"));
setFocusPolicy(Qt::ClickFocus);
@@ -2,14 +2,6 @@
<ui version="4.0">
<class>ConfigurePerGame</class>
<widget class="QDialog" name="ConfigurePerGame">
<property name="geometry">
<rect>
<x>0</x>
<y>0</y>
<width>900</width>
<height>630</height>
</rect>
</property>
<property name="minimumSize">
<size>
<width>900</width>
@@ -306,6 +306,17 @@ void ConfigureProfileManager::SetUserImage() {
return;
}
// Some games crash when the profile image is too big. Resize any image bigger than 256x256
QImage image(image_path);
if (image.width() > 256 || image.height() > 256) {
image = image.scaled(256, 256, Qt::KeepAspectRatio);
if (!image.save(image_path)) {
QMessageBox::warning(this, tr("Error resizing user image"),
tr("Unable to resize image"));
return;
}
}
const auto username = GetAccountUsername(*profile_manager, *uuid);
item_model->setItem(index, 0,
new QStandardItem{GetIcon(*uuid), FormatUserEntryText(username, *uuid)});
+18 -1
View File
@@ -66,6 +66,10 @@ static FileSys::VirtualFile VfsDirectoryCreateFileWrapper(const FileSys::Virtual
#include <QUrl>
#include <QtConcurrent/QtConcurrent>
#ifdef HAVE_SDL2
#include <SDL.h> // For SDL ScreenSaver functions
#endif
#include <fmt/format.h>
#include "common/detached_tasks.h"
#include "common/fs/fs.h"
@@ -287,6 +291,14 @@ GMainWindow::GMainWindow()
ui->action_Fullscreen->setChecked(false);
#if defined(HAVE_SDL2) && !defined(_WIN32)
SDL_InitSubSystem(SDL_INIT_VIDEO);
// SDL disables the screen saver by default, and setting the hint
// SDL_HINT_VIDEO_ALLOW_SCREENSAVER doesn't seem to work, so we just enable the screen saver
// for now.
SDL_EnableScreenSaver();
#endif
QStringList args = QApplication::arguments();
if (args.size() < 2) {
@@ -357,8 +369,9 @@ GMainWindow::GMainWindow()
GMainWindow::~GMainWindow() {
// will get automatically deleted otherwise
if (render_window->parent() == nullptr)
if (render_window->parent() == nullptr) {
delete render_window;
}
}
void GMainWindow::RegisterMetaTypes() {
@@ -1223,12 +1236,16 @@ void GMainWindow::OnDisplayTitleBars(bool show) {
void GMainWindow::PreventOSSleep() {
#ifdef _WIN32
SetThreadExecutionState(ES_CONTINUOUS | ES_SYSTEM_REQUIRED | ES_DISPLAY_REQUIRED);
#elif defined(HAVE_SDL2)
SDL_DisableScreenSaver();
#endif
}
void GMainWindow::AllowOSSleep() {
#ifdef _WIN32
SetThreadExecutionState(ES_CONTINUOUS);
#elif defined(HAVE_SDL2)
SDL_EnableScreenSaver();
#endif
}