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Author SHA1 Message Date
Zangetsu38 bd8edee77f Some Change in Gui. 2016-02-15 14:39:52 +01:00
1648 changed files with 221632 additions and 286124 deletions
-31
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@@ -1,31 +0,0 @@
Standard: Cpp11
UseTab: ForIndentation
TabWidth: 1
IndentWidth: 1
AccessModifierOffset: -1
PointerAlignment: Left
NamespaceIndentation: All
ColumnLimit: 200
BreakBeforeBraces: Allman
BreakConstructorInitializersBeforeComma: true
BreakBeforeBinaryOperators: false
BreakBeforeTernaryOperators: false
AlwaysBreakTemplateDeclarations: true
AllowShortIfStatementsOnASingleLine: false
AllowShortBlocksOnASingleLine: false
AllowShortCaseLabelsOnASingleLine: true
AllowShortFunctionsOnASingleLine: false
AllowShortLoopsOnASingleLine: false
Cpp11BracedListStyle: true
IndentCaseLabels: false
SortIncludes: false
ReflowComments: true
AlignConsecutiveAssignments: true
AlignTrailingComments: true
AlignAfterOpenBracket: DontAlign
ConstructorInitializerAllOnOneLineOrOnePerLine: false
BinPackArguments: true
BinPackParameters: true
AlwaysBreakAfterReturnType: None
KeepEmptyLinesAtTheStartOfBlocks: true
IndentWrappedFunctionNames: false
-7
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@@ -1,7 +0,0 @@
root = true
[*.{h,cpp,hpp}]
charset = utf-8-bom
indent_style = tab
indent_size = 4
trim_trailing_whitespace = true
-20
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@@ -1,20 +0,0 @@
# Getting Started
Before getting started using the emulator, read the [Quickstart Guide](https://rpcs3.net/quickstart) and the [FAQ](https://rpcs3.net/faq). After reading those, if you need support, visit our [Forums](https://forums.rpcs3.net).
# Issue Reporting
**The GitHub Issue Tracker is not the place to ask for support or to submit [Game Compatibility](https://rpcs3.net/compatibility) reports.** Requests for support or incorrect reports will be closed. If you are not sure whether the issue you want to report is an actual issue that is not yet known, please use the forums to submit such report.
**Before reporting an issue:**
- Check if your system matches all the minimum requirements listed in the [Quickstart Guide](https://rpcs3.net/quickstart);
- Check if the issue is meaningful for the team (e.g. The Last of Us doesn't work is obvious and therefore useless);
- Search older issues/forum threads to see if your issue was already submitted.
- Use understandable English. It doesn't need to be perfect, but clear enough to understand your message.
- While reporting issues, don't forget to include details about your system (OS, CPU, GPU, etc.), as well as the RPCS3.log file.
Submitting your test results for Commercial Games must be done on our forums. Please read the [Game Compatibility](https://github.com/RPCS3/rpcs3/wiki/Game-Compatibility) wiki page before doing so.
# Contributing
Check the [Coding Style Guidelines](https://github.com/RPCS3/rpcs3/wiki/Coding-Style), [Roadmap](https://github.com/RPCS3/rpcs3/wiki/Roadmap) and [Developer Information](https://github.com/RPCS3/rpcs3/wiki/Developer-Information). If you have any questions, hit us up on our [Discord Server](https://discord.me/RPCS3) in the **#development** channel.
-2
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patreon: Nekotekina
custom: https://rpcs3.net/alipay
-24
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@@ -1,24 +0,0 @@
<!---
THIS IS NOT A SUPPORT FORUM, FOR SUPPORT GO TO:
https://forums.rpcs3.net
or our discord:
https://discord.me/RPCS3
PLEASE READ THE GUIDELINES BEFORE OPENING AN ISSUE:
https://github.com/RPCS3/rpcs3/blob/master/.github/CONTRIBUTING.md
====================================================
When submitting an issue, please check the following:
- You have read the above.
- You have provided the version (commit hash) of RPCS3 you are using.
- You have provided sufficient detail for the issue to be reproduced.
- You have provided system specs.
- Please also provide:
- For crashes, a backtrace.
- For graphical issues, comparison screenshots with real hardware.
Remember that the GitHub Issue Tracker is not the place to ask for support or to submit Game Compatibility reports. You must use our forums for that.
--->
+26 -40
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@@ -31,40 +31,48 @@
*.wav
/build
/bin
/lib
/tmp
/ipch
/rpcs3/Debug
/rpcs3/Release
/llvm_build
/Vulkan/Vulkan-build
/Vulkan/glslang-build
!/bin
/bin/*
# Themes
!/bin/GuiConfigs/
/bin/GuiConfigs/*.ini
/bin/GuiConfigs/*.ini.*
/bin/GuiConfigs/*.dat
/bin/GuiConfigs/*.dat.*
/wxWidgets/lib
/bin/rpcs3.ini
/bin/rpcs3.ipdb
/bin/rpcs3.iobj
/bin/FragmentProgram.txt
/bin/VertexProgram.txt
/bin/*.hlsl
/bin/BreakPoints.dat
/bin/textures
/bin/*.lib
/bin/*.exp
rpcs3/git-version.h
# Visual Studio Files
.vs/*
.vscode/*
*.ipch
*.vspx
*.psess
*.VC.*
*.vcxproj.user
enc_temp_folder/*
CMakeSettings.json
# Copyrighted files
/bin/data/
/bin/dev_flash/data/font
/bin/dev_flash/sys
/bin/dev_flash/vsh
# Ignore installed games except test homebrews
!/bin/dev_hdd0/game/
/bin/dev_hdd0/game/*
!/bin/dev_hdd0/game/TEST12345/
# Ignore other system generated files
bin/dev_hdd0/*.txt
x64/*
rpcs3/x64/*
rpcs3/git-version.h
rpcs3-tests/x64/*
# cmake
Makefile
@@ -75,25 +83,3 @@ CMakeCache.txt
# cotire
rpcs3/cotire/*
rpcs3/rpcs3_*_cotire.cmake
# kdevelop
*.kdev4
.kdev4/*
# Qt
moc_*.cpp
qrc_*.cpp
rpcs3_automoc.cpp
ui_*.h
rpcs3/rpcs3_autogen/*
# QtCreator
CMakeLists.txt.user
# CLion
/.idea/*
/cmake-build-*/
# macOS
.DS_Store
+18 -45
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@@ -1,54 +1,27 @@
[submodule "rpcs3-ffmpeg"]
path = 3rdparty/ffmpeg
url = https://github.com/hrydgard/ppsspp-ffmpeg
[submodule "wxWidgets"]
path = wxWidgets
url = https://github.com/wxWidgets/wxWidgets
ignore = dirty
[submodule "rpcs3-ffmpeg"]
path = ffmpeg
url = https://github.com/hrydgard/ppsspp-ffmpeg
[submodule "asmjit"]
path = asmjit
url = https://github.com/kobalicek/asmjit
ignore = dirty
[submodule "llvm"]
path = llvm
url = https://github.com/RPCS3/llvm
branch = release_60
ignore = dirty
url = https://github.com/llvm-mirror/llvm
branch = release_36
[submodule "minidx9"]
path = minidx9
url = https://github.com/hrydgard/minidx9.git
[submodule "rsx_program_decompiler"]
path = rsx_program_decompiler
url = https://github.com/RPCS3/rsx_program_decompiler
[submodule "GSL"]
path = 3rdparty/GSL
path = GSL
url = https://github.com/Microsoft/GSL.git
ignore = dirty
[submodule "Vulkan/glslang"]
path = Vulkan/glslang
url = https://github.com/KhronosGroup/glslang.git
ignore = dirty
[submodule "3rdparty/cereal"]
path = 3rdparty/cereal
url = https://github.com/USCiLab/cereal.git
ignore = dirty
[submodule "3rdparty/zlib"]
path = 3rdparty/zlib
url = https://github.com/madler/zlib
ignore = dirty
[submodule "3rdparty/hidapi"]
path = 3rdparty/hidapi
url = https://github.com/RPCS3/hidapi
branch = master
ignore = dirty
[submodule "3rdparty/pugixml"]
path = 3rdparty/pugixml
url = https://github.com/zeux/pugixml
ignore = dirty
[submodule "3rdparty/xxHash"]
path = 3rdparty/xxHash
url = https://github.com/Cyan4973/xxHash
ignore = dirty
[submodule "3rdparty/yaml-cpp"]
path = 3rdparty/yaml-cpp
url = https://github.com/jbeder/yaml-cpp.git
ignore = dirty
[submodule "3rdparty/libpng"]
path = 3rdparty/libpng
url = https://github.com/glennrp/libpng.git
ignore = dirty
[submodule "3rdparty/libusb"]
path = 3rdparty/libusb
url = https://github.com/RPCS3/libusb.git
ignore = dirty
[submodule "libpng"]
path = libpng
url = https://github.com/RPCS3/libpng
+2 -2
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@@ -1,3 +1,3 @@
{
"userBlacklist": ["AlexAltea", "tambry", "DHrpcs3"]
}
"userBlacklist": ["AlexAltea"]
}
+93 -30
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@@ -1,35 +1,98 @@
language: cpp
os:
- linux
- osx
osx_image: xcode6.4
compiler:
- clang
- gcc
env:
global:
- secure: "Vf+FY48nip9JppMnq11105NealdErSWsoUhHo63/V3V+LKfA9guenxCp93/qoSIdSGC/sJwb0yIIMGvkTT/rxDJNh6Z+BWUTb2E0WEIIQbvTJNOSUzoq7dfF1LT61XjVjByFzcbC2xjtaBowmcAYEs1jGUUuEjYVCMmD5lY8hUg="
# Which Travis environment to run Coverity on
- coverity_scan_run_condition='"$TRAVIS_OS_NAME" = linux -a "$CC" = gcc'
# Test mode is for testing if it's working with Coverity. Change to true if testing, to avoid reaching the quota.
- coverity_scan_script_test_mode=false
branches:
except:
- ppu_recompiler
matrix:
include:
# - os: linux
# env:
# - NAME="Linux build"
# - COMPILER="gcc"
# services: docker
# cache: ccache
# install: "docker pull rpcs3/rpcs3-travis-trusty:1.1"
# script: 'travis_wait docker run -v $(pwd):/rpcs3 -v "$HOME/.ccache":/root/.ccache --env-file .travis/travis.env rpcs3/rpcs3-travis-trusty:1.1 /bin/bash -ex /rpcs3/.travis/build-linux.bash'
- os: linux
env:
- NAME="Linux build"
- COMPILER="clang"
- DEPLOY_APPIMAGE="true"
services: docker
cache: ccache
install: "docker pull rpcs3/rpcs3-travis-trusty:1.1"
script: 'travis_wait docker run -v $(pwd):/rpcs3 -v "$HOME/.ccache":/root/.ccache --env-file .travis/travis.env rpcs3/rpcs3-travis-trusty:1.1 /bin/bash -ex /rpcs3/.travis/build-linux.bash'
- os: osx
osx_image: xcode10.2
addons:
homebrew:
packages:
- ccache
- glew
- ninja
- qt
script: "/bin/bash -ex .travis/build-mac.bash"
cache: ccache
exclude:
- os: osx
compiler: gcc
git:
depth: false # Unshallow clone to obtain proper GIT_VERSION
submodules: false
before_install:
# shutdown services on Travis, which may have a memory impact
- if [ "$TRAVIS_OS_NAME" = "linux" ]; then
sudo apt-get install libwxgtk3.0-dev;
sudo apt-add-repository -y ppa:libreoffice/ppa;
sudo apt-get update;
sudo apt-get install libglew-dev;
fi;
- if [ "$TRAVIS_OS_NAME" = "linux" ] && [ "$CXX" = "g++" ]; then
export CXX="g++-5" CC="gcc-5" CXXFLAGS="-Wno-format-security";
export GCC_COLORS='error=01;31:warning=01;35:note=01;36:caret=01;32:locus=01:quote=01';
elif [ "$TRAVIS_OS_NAME" = "linux" ]; then
export CXX="clang++-3.6" CC="clang-3.6";
fi;
# Add coverall for C++ so coverall.io could be triggered. Even it should be --coverage and gcov.
- if [ "$TRAVIS_OS_NAME" = "linux" ]; then
sudo pip install cpp-coveralls requests[security];
else
brew update; brew update;
brew install glew wxwidgets llvm36;
fi;
before_script:
- git submodule update --init asmjit ffmpeg rsx_program_decompiler GSL libpng
- mkdir build
- cd build
- if [ "$TRAVIS_OS_NAME" = "linux" ]; then cmake ..; else cmake .. -DLLVM_DIR=/usr/local/opt/llvm36/lib/llvm-3.6/share/llvm/cmake; fi
script:
# Add a command to show all the variables. May be useful for debugging Travis.
# - echo "--Shell Export Lists START--" ; export -p; echo "--Shell Export Lists STOP--";
# And to ensure the versions of toolchain
- echo "--CXX version?"; "$CXX" --version; echo "--CXX version confirmed";
- if [ "$COVERITY_SCAN_BRANCH" != 1 ]; then make -j 4; fi
addons:
apt:
sources:
- ubuntu-toolchain-r-test
- llvm-toolchain-precise-3.6
- kubuntu-backports
packages:
- cmake
- libopenal-dev
- freeglut3-dev
# - libglew-dev apt version is too old
- libc6-dev
- llvm-3.6
- llvm-3.6-dev
- libedit-dev
- g++-5
- gcc-5
- clang-3.6
- libstdc++-4.8-dev
- lib32stdc++6
- zlib1g-dev
coverity_scan:
project:
name: $TRAVIS_REPO_SLUG
description: "PS3 emulator/debugger"
notification_email: raul.tambre@gmail.com
build_command: "make -j 4"
branch_pattern: coverity_scan
after_success:
- if [ "$COVERITY_SCAN_BRANCH" != 1 ] && [ "$TRAVIS_OS_NAME" = linux ]; then coveralls --extension .c --extension .cpp --extension .h; fi
-35
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@@ -1,35 +0,0 @@
#!/bin/env bash -ex
shopt -s nocasematch
# Setup Qt variables
export QT_BASE_DIR=/opt/qt${QTVERMIN}
export PATH=$QT_BASE_DIR/bin:$PATH
export LD_LIBRARY_PATH=$QT_BASE_DIR/lib/x86_64-linux-gnu:$QT_BASE_DIR/lib
cd rpcs3
git submodule update --quiet --init asmjit 3rdparty/ffmpeg 3rdparty/pugixml 3rdparty/GSL 3rdparty/libpng 3rdparty/cereal 3rdparty/hidapi 3rdparty/xxHash 3rdparty/yaml-cpp 3rdparty/libusb Vulkan/glslang
# Download pre-compiled llvm libs
curl -sLO https://github.com/RPCS3/llvm/releases/download/continuous-linux-master/llvmlibs-linux.tar.gz
mkdir llvmlibs
tar -xzf ./llvmlibs-linux.tar.gz -C llvmlibs
mkdir build ; cd build
if [ $COMPILER = "gcc" ]; then
# These are set in the dockerfile
export CC=${GCC_BINARY}
export CXX=${GXX_BINARY}
else
export CC=${CLANG_BINARY}
export CXX=${CLANGXX_BINARY}
fi
cmake .. -DCMAKE_INSTALL_PREFIX=/usr -DBUILD_LLVM_SUBMODULE=OFF -DLLVM_DIR=llvmlibs/lib/cmake/llvm/ -DUSE_NATIVE_INSTRUCTIONS=OFF -G Ninja
ninja; build_status=$?;
cd ..
# If it compiled succesfully let's deploy
if [ $build_status -eq 0 ] && [ -n "$GITHUB_TOKEN" ] && [ "$TRAVIS_BRANCH" = "master" ] && [ "$TRAVIS_PULL_REQUEST" = false ]; then /bin/bash -ex .travis/deploy-linux.bash ; fi
-22
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@@ -1,22 +0,0 @@
export CCACHE_SLOPPINESS=pch_defines,time_macros
export CMAKE_PREFIX_PATH=/usr/local/opt/qt5/
export PATH="/usr/local/opt/ccache/libexec:$PATH"
# Setup vulkan and gfx-rs/portability
curl -sLO https://github.com/gfx-rs/portability/releases/download/latest/gfx-portability-macos-latest.zip
unzip -: gfx-portability-macos-latest.zip
curl -sLO https://github.com/KhronosGroup/Vulkan-Headers/archive/sdk-1.1.106.0.zip
unzip -: sdk-*.zip
mkdir vulkan-sdk
ln -s ${PWD}/Vulkan-Headers*/include vulkan-sdk/include
mkdir vulkan-sdk/lib
cp target/release/libportability.dylib vulkan-sdk/lib/libVulkan.dylib
# Let macdeployqt locate and install Vulkan library
install_name_tool -id ${PWD}/vulkan-sdk/lib/libVulkan.dylib vulkan-sdk/lib/libVulkan.dylib
export VULKAN_SDK=${PWD}/vulkan-sdk
git submodule update --quiet --init asmjit 3rdparty/ffmpeg 3rdparty/pugixml 3rdparty/GSL 3rdparty/libpng 3rdparty/cereal 3rdparty/hidapi 3rdparty/libusb 3rdparty/xxHash 3rdparty/yaml-cpp Vulkan/glslang
mkdir build; cd build
cmake .. -DWITH_LLVM=OFF -DUSE_NATIVE_INSTRUCTIONS=OFF -G Ninja
ninja
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@@ -1,53 +0,0 @@
#!/bin/env bash -ex
shopt -s nocasematch
cd build
if [ "$DEPLOY_APPIMAGE" = "true" ]; then
DESTDIR=appdir ninja install
curl -sLO "https://github.com/probonopd/linuxdeployqt/releases/download/continuous/linuxdeployqt-continuous-x86_64.AppImage"
chmod a+x linuxdeployqt*.AppImage
./linuxdeployqt*.AppImage --appimage-extract
./squashfs-root/AppRun ./appdir/usr/share/applications/*.desktop -bundle-non-qt-libs
ls ./appdir/usr/lib/
rm -r ./appdir/usr/share/doc
rm ./appdir/usr/lib/libxcb*
cp $(readlink -f /lib/x86_64-linux-gnu/libnsl.so.1) ./appdir/usr/lib/libnsl.so.1
export PATH=/rpcs3/build/squashfs-root/usr/bin/:${PATH}
# Embed newer libstdc++ for distros that don't come with it (ubuntu 14.04, 16.04)
mkdir -p appdir/usr/optional/ ; mkdir -p appdir/usr/optional/libstdc++/
cp /usr/lib/x86_64-linux-gnu/libstdc++.so.6 ./appdir/usr/optional/libstdc++/
rm ./appdir/AppRun
curl -sL https://github.com/RPCS3/AppImageKit-checkrt/releases/download/continuous2/AppRun-patched-x86_64 -o ./appdir/AppRun
chmod a+x ./appdir/AppRun
curl -sL https://github.com/RPCS3/AppImageKit-checkrt/releases/download/continuous2/exec-x86_64.so -o ./appdir/usr/optional/exec.so
# Compile checker binary for AppImageKit-checkrt
# This may need updating if you update the compiler or rpcs3 uses newer c++ features
# See https://github.com/gcc-mirror/gcc/blob/master/libstdc%2B%2B-v3/config/abi/pre/gnu.ver
# for which definitions correlate to which CXXABI version.
printf "#include <memory>\nint main(){std::make_exception_ptr(0);}" | $CXX -x c++ -o ./appdir/usr/optional/checker -
# Package it up and send it off
./squashfs-root/usr/bin/appimagetool /rpcs3/build/appdir
ls
COMM_TAG="$(git describe --tags $(git rev-list --tags --max-count=1))"
COMM_COUNT="$(git rev-list --count HEAD)"
curl -sLO https://github.com/hcorion/uploadtool/raw/master/upload.sh
mv ./RPCS3*.AppImage rpcs3-${COMM_TAG}-${COMM_COUNT}-${TRAVIS_COMMIT:0:8}_linux64.AppImage
FILESIZEMB=$(bc <<< "scale=6; $(stat -c %s ./rpcs3*.AppImage)/1000000")
SHA256SUM=($(sha256sum ./rpcs3*.AppImage))
unset TRAVIS_REPO_SLUG
REPO_SLUG=RPCS3/rpcs3-binaries-linux \
UPLOADTOOL_BODY="$SHA256SUM;${FILESIZEMB}MB"\
RELEASE_NAME=build-${TRAVIS_COMMIT}\
RELEASE_TITLE=${COMM_TAG}-${COMM_COUNT}\
REPO_COMMIT=d812f1254a1157c80fd402f94446310560f54e5f\
bash upload.sh rpcs3*.AppImage
fi
if [ "$DEPLOY_PPA" = "true" ]; then
export DEBFULLNAME="RPCS3 Build Bot"
fi
-9
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@@ -1,9 +0,0 @@
# Variables set by Travis CI
TRAVIS_PULL_REQUEST
TRAVIS_BRANCH
TRAVIS_COMMIT
# Variables for Travis build matrix
COMPILER
DEPLOY_APPIMAGE
# Private Travis CI variables
GITHUB_TOKEN
-378
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@@ -1,378 +0,0 @@
find_package(PkgConfig)
include(ExternalProject)
if(APPLE)
set(PLATFORM_ARCH "macosx/x86_64")
elseif(WIN32)
set(PLATFORM_ARCH "Windows/x86_64")
else()
set(PLATFORM_ARCH "linux/x86_64")
endif()
# Dummy target to use when lib isn't available
add_library(3rdparty_dummy_lib INTERFACE)
# ZLib
if (USE_SYSTEM_ZLIB)
find_package(ZLIB QUIET)
endif()
if (NOT ZLIB_FOUND)
message(STATUS "Using builtin ZLIB")
set(SKIP_INSTALL_ALL ON)
add_subdirectory(zlib EXCLUDE_FROM_ALL)
set(ZLIB_INCLUDE_DIR "${CMAKE_CURRENT_SOURCE_DIR}/zlib" "${CMAKE_CURRENT_BINARY_DIR}/zlib")
set(ZLIB_LIBRARY zlibstatic)
endif()
add_library(3rdparty_zlib INTERFACE)
target_link_libraries(3rdparty_zlib INTERFACE ${ZLIB_LIBRARY})
target_include_directories(3rdparty_zlib INTERFACE ${ZLIB_INCLUDE_DIR})
# libPNG
# Select the version of libpng to use, default is builtin
if (NOT USE_SYSTEM_LIBPNG)
# We use libpng's static library and don't need to build the shared library and run the tests
set(PNG_SHARED OFF CACHE BOOL "Build shared lib" FORCE)
set(PNG_TESTS OFF CACHE BOOL "Build libpng tests" FORCE)
set(PNG_BUILD_ZLIB ON CACHE BOOL "ZLIB is already build or package is found" FORCE)
set(SKIP_INSTALL_ALL ON)
add_subdirectory(libpng EXCLUDE_FROM_ALL)
set(LIBPNG_TARGET png_static)
target_include_directories(png_static INTERFACE "${libpng_BINARY_DIR}" "${libpng_SOURCE_DIR}")
else()
find_package(PNG REQUIRED)
add_library(3rdparty_system_libpng INTERFACE)
target_include_directories(3rdparty_system_libpng INTERFACE ${PNG_INCLUDE_DIR})
target_link_libraries(3rdparty_system_libpng INTERFACE ${PNG_LIBRARY})
target_compile_definitions(3rdparty_system_libpng INTERFACE ${PNG_DEFINITIONS})
set(LIBPNG_TARGET 3rdparty_system_libpng)
endif()
# pugixml
add_subdirectory(pugixml EXCLUDE_FROM_ALL)
# hidapi
add_library(3rdparty_hidapi INTERFACE)
target_include_directories(3rdparty_hidapi INTERFACE hidapi/hidapi)
if(APPLE)
add_subdirectory(hidapi/mac EXCLUDE_FROM_ALL)
target_include_directories(hidapi-mac PUBLIC hidapi/hidapi)
target_link_libraries(3rdparty_hidapi INTERFACE hidapi-mac "-framework CoreFoundation" "-framework IOKit")
elseif(CMAKE_SYSTEM MATCHES "Linux")
add_subdirectory(hidapi/linux EXCLUDE_FROM_ALL)
target_include_directories(hidapi-hidraw PUBLIC hidapi/hidapi)
target_link_libraries(3rdparty_hidapi INTERFACE hidapi-hidraw udev)
elseif(WIN32)
add_subdirectory(hidapi/windows EXCLUDE_FROM_ALL)
target_include_directories(hidapi-hid PUBLIC hidapi/hidapi)
target_link_libraries(3rdparty_hidapi INTERFACE hidapi-hid Shlwapi.lib)
else()
add_subdirectory(hidapi/libusb EXCLUDE_FROM_ALL)
target_include_directories(hidapi-libusb PUBLIC hidapi/hidapi)
target_link_libraries(3rdparty_hidapi INTERFACE hidapi-libusb usb)
endif()
# libusb
if(CMAKE_SYSTEM MATCHES "DragonFly|FreeBSD")
# Always use system libusb as reference implementation isn't supported
add_library(usb-1.0-static INTERFACE)
target_link_libraries(usb-1.0-static INTERFACE usb)
elseif(MSVC)
# Windows time.h defines timespec but doesn't add any flag for it, which makes libusb attempt to define it again
add_definitions(-DHAVE_STRUCT_TIMESPEC=1)
add_subdirectory(libusb EXCLUDE_FROM_ALL)
else()
add_subdirectory(libusb EXCLUDE_FROM_ALL)
endif()
# yaml-cpp
# We don't want to install yaml-cpp but its cmake file doesn't have option
# to disable it...
# So we just install it to a different directory
set(CMAKE_INSTALL_PREFIX_OLD ${CMAKE_INSTALL_PREFIX})
set(CMAKE_INSTALL_PREFIX ${CMAKE_BINARY_DIR}/yaml-cpp_install)
set(YAML_CPP_BUILD_TESTS OFF CACHE BOOL "Enable testing" FORCE)
set(YAML_CPP_BUILD_TOOLS OFF CACHE BOOL "Enable parse tools" FORCE)
set(YAML_CPP_BUILD_CONTRIB OFF CACHE BOOL "Enable contrib stuff in library" FORCE)
add_subdirectory(yaml-cpp EXCLUDE_FROM_ALL)
set(CMAKE_INSTALL_PREFIX ${CMAKE_INSTALL_PREFIX_OLD})
# xxHash
set(XXHASH_BUNDLED_MODE ON)
set(BUILD_SHARED_LIBS OFF CACHE BOOL "Make xxHash build static libs")
add_subdirectory(xxHash/cmake_unofficial EXCLUDE_FROM_ALL)
target_include_directories(xxhash INTERFACE xxHash)
# cereal
add_library(3rdparty_cereal INTERFACE)
target_include_directories(3rdparty_cereal INTERFACE cereal/include)
# OpenGL
# Prefer GLVND for OpenGL rather than legacy
set(OpenGL_GL_PREFERENCE GLVND)
find_package(OpenGL REQUIRED)
add_library(3rdparty_opengl INTERFACE)
target_include_directories(3rdparty_opengl INTERFACE GL)
if (WIN32)
if(NOT MSVC)
target_link_libraries(3rdparty_opengl INTERFACE ${OPENGL_LIBRARIES} opengl32.lib glu32.lib)
else()
target_link_libraries(3rdparty_opengl INTERFACE dxgi.lib d2d1.lib dwrite.lib)
endif()
else()
target_link_libraries(3rdparty_opengl INTERFACE ${OPENGL_LIBRARIES})
target_compile_definitions(3rdparty_opengl
INTERFACE
-DGL_GLEXT_PROTOTYPES
-DGLX_GLXEXT_PROTOTYPES)
endif()
# GSL
add_library(3rdparty_gsl INTERFACE)
target_include_directories(3rdparty_gsl INTERFACE GSL/include)
# stblib
add_library(3rdparty_stblib INTERFACE)
target_include_directories(3rdparty_stblib INTERFACE stblib)
# discord_rpc
add_library(3rdparty_discord-rpc INTERFACE)
# We don't want Discord Rich Presence on the BSDs and other OSes
if (USE_DISCORD_RPC AND (WIN32 OR CMAKE_SYSTEM MATCHES "Linux" OR APPLE))
if (WIN32 AND NOT MSVC)
ExternalProject_Add(discord-rpc
GIT_REPOSITORY https://github.com/discordapp/discord-rpc
BINARY_DIR ${CMAKE_CURRENT_BINARY_DIR}/discord-rpc
INSTALL_COMMAND ""
)
endif()
target_include_directories(3rdparty_discord-rpc INTERFACE discord-rpc/include)
target_compile_definitions(3rdparty_discord-rpc INTERFACE -DWITH_DISCORD_RPC)
set(DISCORD_RPC_LIB NOTFOUND)
if (WIN32)
if (NOT MSVC)
set(DISCORD_RPC_LIB ${CMAKE_CURRENT_BINARY_DIR}/discord-rpc/src/libdiscord-rpc.a)
else()
find_library(DISCORD_RPC_LIB discord-rpc PATHS discord-rpc/lib/ NO_DEFAULT_PATH)
endif()
elseif(CMAKE_SYSTEM MATCHES "Linux")
find_library(DISCORD_RPC_LIB discord-rpc-linux PATHS discord-rpc/lib/ NO_DEFAULT_PATH)
elseif(APPLE)
find_library(DISCORD_RPC_LIB discord-rpc-mac PATHS discord-rpc/lib/ NO_DEFAULT_PATH)
endif()
target_link_libraries(3rdparty_discord-rpc INTERFACE ${DISCORD_RPC_LIB})
if(APPLE)
target_link_libraries(3rdparty_discord-rpc INTERFACE "objc" "-framework Foundation" "-framework CoreServices")
endif()
endif()
# ALSA
set(ALSA_TARGET 3rdparty_dummy_lib)
if(USE_ALSA)
find_package(ALSA)
if(ALSA_FOUND)
add_library(3rdparty_alsa INTERFACE)
target_compile_definitions(3rdparty_alsa INTERFACE -DHAVE_ALSA)
target_include_directories(3rdparty_alsa SYSTEM INTERFACE ${ALSA_INCLUDE_DIRS})
target_link_libraries(3rdparty_alsa INTERFACE ${ALSA_LIBRARIES})
set(ALSA_TARGET 3rdparty_alsa)
endif()
endif()
# Pulse
set(PULSE_TARGET 3rdparty_dummy_lib)
if(USE_PULSE)
pkg_check_modules(PULSE libpulse-simple)
if(PULSE_FOUND)
add_library(3rdparty_pulse INTERFACE)
target_compile_definitions(3rdparty_pulse INTERFACE -DHAVE_PULSE)
target_include_directories(3rdparty_pulse SYSTEM
INTERFACE ${PULSE_INCLUDE_DIRS})
target_link_libraries(3rdparty_pulse INTERFACE ${PULSE_LDFLAGS})
set(PULSE_TARGET 3rdparty_pulse)
endif()
endif()
# libevdev
set(LIBEVDEV_TARGET 3rdparty_dummy_lib)
if(USE_LIBEVDEV)
pkg_check_modules(LIBEVDEV libevdev)
if(LIBEVDEV_FOUND)
add_library(3rdparty_libevdev INTERFACE)
target_compile_definitions(3rdparty_libevdev INTERFACE -DHAVE_LIBEVDEV)
target_include_directories(3rdparty_libevdev SYSTEM
INTERFACE ${LIBEVDEV_INCLUDE_DIRS})
target_link_libraries(3rdparty_libevdev INTERFACE ${LIBEVDEV_LDFLAGS})
set(LIBEVDEV_TARGET 3rdparty_libevdev)
endif()
endif()
# Vulkan
set(VULKAN_TARGET 3rdparty_dummy_lib)
if(USE_VULKAN)
find_package(Vulkan)
if(VULKAN_FOUND)
add_library(3rdparty_vulkan INTERFACE)
target_compile_definitions(3rdparty_vulkan INTERFACE -DHAVE_VULKAN)
target_link_libraries(3rdparty_vulkan INTERFACE SPIRV Vulkan::Vulkan)
if(UNIX AND NOT APPLE)
find_package(Wayland)
if (WAYLAND_FOUND)
target_include_directories(3rdparty_vulkan
INTERFACE ${WAYLAND_INCLUDE_DIR})
target_compile_definitions(3rdparty_vulkan
INTERFACE -DVK_USE_PLATFORM_WAYLAND_KHR)
endif()
endif()
set(VULKAN_TARGET 3rdparty_vulkan)
else()
message("WARNING! USE_VULKAN was enabled, but libvulkan was not found. RPCS3 will be compiled without Vulkan support.")
endif()
endif()
# OpenAL
if (MSVC)
find_path(OPENAL_INCLUDE_DIR al.h PATHS OpenAL/include)
find_library(OPENAL_LIBRARY OpenAL32 PATHS OpenAL/libs/Win64/)
else()
find_package(OpenAL REQUIRED)
endif()
add_library(3rdparty_openal INTERFACE)
target_include_directories(3rdparty_openal INTERFACE ${OPENAL_INCLUDE_DIR})
target_link_libraries(3rdparty_openal INTERFACE ${OPENAL_LIBRARY})
# FFMPEG
add_library(3rdparty_ffmpeg INTERFACE)
# Select the version of ffmpeg to use, default is builtin
if(USE_SYSTEM_FFMPEG)
message("-- RPCS3: using shared ffmpeg")
find_package(FFMPEG REQUIRED)
target_include_directories(3rdparty_ffmpeg INTERFACE ${FFMPEG_INCLUDE_DIR})
target_link_libraries(3rdparty_ffmpeg INTERFACE ${FFMPEG_LIBRARIES})
else()
set(FFMPEG_PLATFORM_DIR "ffmpeg/${PLATFORM_ARCH}")
if (NOT MSVC AND WIN32)
message("-- RPCS3: building ffmpeg submodule")
ExternalProject_Add(ffmpeg-mingw
DOWNLOAD_COMMAND ""
SOURCE_DIR ${CMAKE_CURRENT_SOURCE_DIR}/ffmpeg
BINARY_DIR ${CMAKE_CURRENT_BINARY_DIR}/ffmpeg
CONFIGURE_COMMAND ${CMAKE_CURRENT_SOURCE_DIR}/ffmpeg/configure --prefix=./Windows/x86_64 --arch=x86_64 --disable-avdevice --disable-programs --disable-avfilter --disable-postproc --disable-doc --disable-pthreads --enable-w32threads --disable-network --disable-everything --disable-encoders --disable-muxers --disable-hwaccels --disable-parsers --disable-protocols --enable-dxva2 --enable-static --disable-shared --enable-decoder=aac --enable-decoder=aac_latm --enable-decoder=atrac3 --enable-decoder=atrac3p --enable-decoder=mp3 --enable-decoder=pcm_s16le --enable-decoder=pcm_s8 --enable-decoder=h264 --enable-decoder=mpeg4 --enable-decoder=mpeg2video --enable-decoder=mjpeg --enable-decoder=mjpegb --enable-encoder=pcm_s16le --enable-encoder=ffv1 --enable-encoder=mpeg4 --enable-parser=h264 --enable-parser=mpeg4video --enable-parser=mpegaudio --enable-parser=mpegvideo --enable-parser=mjpeg --enable-parser=aac --enable-parser=aac_latm --enable-muxer=avi --enable-demuxer=h264 --enable-demuxer=m4v --enable-demuxer=mp3 --enable-demuxer=mpegvideo --enable-demuxer=mpegps --enable-demuxer=mjpeg --enable-demuxer=avi --enable-demuxer=aac --enable-demuxer=pmp --enable-demuxer=oma --enable-demuxer=pcm_s16le --enable-demuxer=pcm_s8 --enable-demuxer=wav --enable-hwaccel=h264_dxva2 --enable-indev=dshow --enable-protocol=file
BUILD_COMMAND make -j 4
INSTALL_COMMAND make install
)
set(FFMPEG_LIB_AVFORMAT "${CMAKE_CURRENT_BINARY_DIR}/ffmpeg/${PLATFORM_ARCH}/lib/libavformat.a")
set(FFMPEG_LIB_AVCODEC "${CMAKE_CURRENT_BINARY_DIR}/ffmpeg/${PLATFORM_ARCH}/lib/libavcodec.a")
set(FFMPEG_LIB_AVUTIL "${CMAKE_CURRENT_BINARY_DIR}/ffmpeg/${PLATFORM_ARCH}/lib/libavutil.a")
set(FFMPEG_LIB_SWSCALE "${CMAKE_CURRENT_BINARY_DIR}/ffmpeg/${PLATFORM_ARCH}/lib/libswscale.a")
else()
message("-- RPCS3: using builtin ffmpeg")
set(FFMPEG_LIB_DIR "${FFMPEG_PLATFORM_DIR}/lib")
find_library(FFMPEG_LIB_AVFORMAT avformat PATHS ${FFMPEG_LIB_DIR} NO_DEFAULT_PATH)
find_library(FFMPEG_LIB_AVCODEC avcodec PATHS ${FFMPEG_LIB_DIR} NO_DEFAULT_PATH)
find_library(FFMPEG_LIB_AVUTIL avutil PATHS ${FFMPEG_LIB_DIR} NO_DEFAULT_PATH)
find_library(FFMPEG_LIB_SWSCALE swscale PATHS ${FFMPEG_LIB_DIR} NO_DEFAULT_PATH)
endif()
target_include_directories(3rdparty_ffmpeg INTERFACE "${FFMPEG_PLATFORM_DIR}/include")
target_link_libraries(3rdparty_ffmpeg
INTERFACE
${FFMPEG_LIB_AVFORMAT}
${FFMPEG_LIB_AVCODEC}
${FFMPEG_LIB_AVUTIL}
${FFMPEG_LIB_SWSCALE})
endif()
# dx12
add_library(3rdparty_dx12 INTERFACE)
if (WIN32)
target_link_libraries(3rdparty_dx12 INTERFACE dxgi.lib d2d1.lib dwrite.lib)
endif()
# GLEW
add_library(3rdparty_glew INTERFACE)
if(NOT MSVC)
find_package(GLEW 1.13.0 REQUIRED)
target_link_libraries(3rdparty_glew INTERFACE GLEW::GLEW)
endif()
# LLVM
include(llvm.cmake)
# add nice ALIAS targets for ease of use
add_library(3rdparty::libusb ALIAS usb-1.0-static)
add_library(3rdparty::zlib ALIAS 3rdparty_zlib)
add_library(3rdparty::pugixml ALIAS pugixml)
add_library(3rdparty::yaml-cpp ALIAS yaml-cpp)
add_library(3rdparty::xxhash ALIAS xxhash)
add_library(3rdparty::hidapi ALIAS 3rdparty_hidapi)
add_library(3rdparty::libpng ALIAS ${LIBPNG_TARGET})
add_library(3rdparty::cereal ALIAS 3rdparty_cereal)
add_library(3rdparty::opengl ALIAS 3rdparty_opengl)
add_library(3rdparty::gsl ALIAS 3rdparty_gsl)
add_library(3rdparty::stblib ALIAS 3rdparty_stblib)
add_library(3rdparty::discord-rpc ALIAS 3rdparty_discord-rpc)
add_library(3rdparty::alsa ALIAS ${ALSA_TARGET})
add_library(3rdparty::pulse ALIAS ${PULSE_TARGET})
add_library(3rdparty::libevdev ALIAS ${LIBEVDEV_TARGET})
add_library(3rdparty::vulkan ALIAS ${VULKAN_TARGET})
add_library(3rdparty::openal ALIAS 3rdparty_openal)
add_library(3rdparty::ffmpeg ALIAS 3rdparty_ffmpeg)
add_library(3rdparty::dx12 ALIAS 3rdparty_dx12)
add_library(3rdparty::glew ALIAS 3rdparty_glew)
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-1
Submodule 3rdparty/GSL deleted from 1995e86d1a
-96
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EXPORTS
alBuffer3f
alBuffer3i
alBufferData
alBufferf
alBufferfv
alBufferi
alBufferiv
alDeleteBuffers
alDeleteSources
alDisable
alDistanceModel
alDopplerFactor
alDopplerVelocity
alEnable
alGenBuffers
alGenSources
alGetBoolean
alGetBooleanv
alGetBuffer3f
alGetBuffer3i
alGetBufferf
alGetBufferfv
alGetBufferi
alGetBufferiv
alGetDouble
alGetDoublev
alGetEnumValue
alGetError
alGetFloat
alGetFloatv
alGetInteger
alGetIntegerv
alGetListener3f
alGetListener3i
alGetListenerf
alGetListenerfv
alGetListeneri
alGetListeneriv
alGetProcAddress
alGetSource3f
alGetSource3i
alGetSourcef
alGetSourcefv
alGetSourcei
alGetSourceiv
alGetString
alIsBuffer
alIsEnabled
alIsExtensionPresent
alIsSource
alListener3f
alListener3i
alListenerf
alListenerfv
alListeneri
alListeneriv
alSource3f
alSource3i
alSourcePause
alSourcePausev
alSourcePlay
alSourcePlayv
alSourceQueueBuffers
alSourceRewind
alSourceRewindv
alSourceStop
alSourceStopv
alSourceUnqueueBuffers
alSourcef
alSourcefv
alSourcei
alSourceiv
alSpeedOfSound
alcCaptureCloseDevice
alcCaptureOpenDevice
alcCaptureSamples
alcCaptureStart
alcCaptureStop
alcCloseDevice
alcCreateContext
alcDestroyContext
alcGetContextsDevice
alcGetCurrentContext
alcGetEnumValue
alcGetError
alcGetIntegerv
alcGetProcAddress
alcGetString
alcGetThreadContext
alcIsExtensionPresent
alcMakeContextCurrent
alcOpenDevice
alcProcessContext
alcSetThreadContext
alcSuspendContext
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-1295
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-263
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@@ -1,263 +0,0 @@
/***************************************************************************
*
* Copyright (c) Microsoft Corporation. All rights reserved.
*
* File: audiodefs.h
* Content: Basic constants and data types for audio work.
*
* Remarks: This header file defines all of the audio format constants and
* structures required for XAudio2 and XACT work. Providing these
* in a single location avoids certain dependency problems in the
* legacy audio headers (mmreg.h, mmsystem.h, ksmedia.h).
*
* NOTE: Including the legacy headers after this one may cause a
* compilation error, because they define some of the same types
* defined here without preprocessor guards to avoid multiple
* definitions. If a source file needs one of the old headers,
* it must include it before including audiodefs.h.
*
***************************************************************************/
#ifndef __AUDIODEFS_INCLUDED__
#define __AUDIODEFS_INCLUDED__
#include <windef.h> // For WORD, DWORD, etc.
#pragma pack(push, 1) // Pack structures to 1-byte boundaries
/**************************************************************************
*
* WAVEFORMATEX: Base structure for many audio formats. Format-specific
* extensions can be defined for particular formats by using a non-zero
* cbSize value and adding extra fields to the end of this structure.
*
***************************************************************************/
#ifndef _WAVEFORMATEX_
#define _WAVEFORMATEX_
typedef struct tWAVEFORMATEX
{
WORD wFormatTag; // Integer identifier of the format
WORD nChannels; // Number of audio channels
DWORD nSamplesPerSec; // Audio sample rate
DWORD nAvgBytesPerSec; // Bytes per second (possibly approximate)
WORD nBlockAlign; // Size in bytes of a sample block (all channels)
WORD wBitsPerSample; // Size in bits of a single per-channel sample
WORD cbSize; // Bytes of extra data appended to this struct
} WAVEFORMATEX;
#endif
// Defining pointer types outside of the #if block to make sure they are
// defined even if mmreg.h or mmsystem.h is #included before this file
typedef WAVEFORMATEX *PWAVEFORMATEX, *NPWAVEFORMATEX, *LPWAVEFORMATEX;
typedef const WAVEFORMATEX *PCWAVEFORMATEX, *LPCWAVEFORMATEX;
/**************************************************************************
*
* WAVEFORMATEXTENSIBLE: Extended version of WAVEFORMATEX that should be
* used as a basis for all new audio formats. The format tag is replaced
* with a GUID, allowing new formats to be defined without registering a
* format tag with Microsoft. There are also new fields that can be used
* to specify the spatial positions for each channel and the bit packing
* used for wide samples (e.g. 24-bit PCM samples in 32-bit containers).
*
***************************************************************************/
#ifndef _WAVEFORMATEXTENSIBLE_
#define _WAVEFORMATEXTENSIBLE_
typedef struct
{
WAVEFORMATEX Format; // Base WAVEFORMATEX data
union
{
WORD wValidBitsPerSample; // Valid bits in each sample container
WORD wSamplesPerBlock; // Samples per block of audio data; valid
// if wBitsPerSample=0 (but rarely used).
WORD wReserved; // Zero if neither case above applies.
} Samples;
DWORD dwChannelMask; // Positions of the audio channels
GUID SubFormat; // Format identifier GUID
} WAVEFORMATEXTENSIBLE;
#endif
typedef WAVEFORMATEXTENSIBLE *PWAVEFORMATEXTENSIBLE, *LPWAVEFORMATEXTENSIBLE;
typedef const WAVEFORMATEXTENSIBLE *PCWAVEFORMATEXTENSIBLE, *LPCWAVEFORMATEXTENSIBLE;
/**************************************************************************
*
* Define the most common wave format tags used in WAVEFORMATEX formats.
*
***************************************************************************/
#ifndef WAVE_FORMAT_PCM // Pulse Code Modulation
// If WAVE_FORMAT_PCM is not defined, we need to define some legacy types
// for compatibility with the Windows mmreg.h / mmsystem.h header files.
// Old general format structure (information common to all formats)
typedef struct waveformat_tag
{
WORD wFormatTag;
WORD nChannels;
DWORD nSamplesPerSec;
DWORD nAvgBytesPerSec;
WORD nBlockAlign;
} WAVEFORMAT, *PWAVEFORMAT, NEAR *NPWAVEFORMAT, FAR *LPWAVEFORMAT;
// Specific format structure for PCM data
typedef struct pcmwaveformat_tag
{
WAVEFORMAT wf;
WORD wBitsPerSample;
} PCMWAVEFORMAT, *PPCMWAVEFORMAT, NEAR *NPPCMWAVEFORMAT, FAR *LPPCMWAVEFORMAT;
#define WAVE_FORMAT_PCM 0x0001
#endif
#ifndef WAVE_FORMAT_ADPCM // Microsoft Adaptive Differental PCM
// Replicate the Microsoft ADPCM type definitions from mmreg.h.
typedef struct adpcmcoef_tag
{
short iCoef1;
short iCoef2;
} ADPCMCOEFSET;
#pragma warning(push)
#pragma warning(disable:4200) // Disable zero-sized array warnings
typedef struct adpcmwaveformat_tag {
WAVEFORMATEX wfx;
WORD wSamplesPerBlock;
WORD wNumCoef;
ADPCMCOEFSET aCoef[]; // Always 7 coefficient pairs for MS ADPCM
} ADPCMWAVEFORMAT;
#pragma warning(pop)
#define WAVE_FORMAT_ADPCM 0x0002
#endif
// Other frequently used format tags
#ifndef WAVE_FORMAT_UNKNOWN
#define WAVE_FORMAT_UNKNOWN 0x0000 // Unknown or invalid format tag
#endif
#ifndef WAVE_FORMAT_IEEE_FLOAT
#define WAVE_FORMAT_IEEE_FLOAT 0x0003 // 32-bit floating-point
#endif
#ifndef WAVE_FORMAT_MPEGLAYER3
#define WAVE_FORMAT_MPEGLAYER3 0x0055 // ISO/MPEG Layer3
#endif
#ifndef WAVE_FORMAT_DOLBY_AC3_SPDIF
#define WAVE_FORMAT_DOLBY_AC3_SPDIF 0x0092 // Dolby Audio Codec 3 over S/PDIF
#endif
#ifndef WAVE_FORMAT_WMAUDIO2
#define WAVE_FORMAT_WMAUDIO2 0x0161 // Windows Media Audio
#endif
#ifndef WAVE_FORMAT_WMAUDIO3
#define WAVE_FORMAT_WMAUDIO3 0x0162 // Windows Media Audio Pro
#endif
#ifndef WAVE_FORMAT_WMASPDIF
#define WAVE_FORMAT_WMASPDIF 0x0164 // Windows Media Audio over S/PDIF
#endif
#ifndef WAVE_FORMAT_EXTENSIBLE
#define WAVE_FORMAT_EXTENSIBLE 0xFFFE // All WAVEFORMATEXTENSIBLE formats
#endif
/**************************************************************************
*
* Define the most common wave format GUIDs used in WAVEFORMATEXTENSIBLE
* formats. Note that including the Windows ksmedia.h header after this
* one will cause build problems; this cannot be avoided, since ksmedia.h
* defines these macros without preprocessor guards.
*
***************************************************************************/
#ifdef __cplusplus // uuid() and __uuidof() are only available in C++
#ifndef KSDATAFORMAT_SUBTYPE_PCM
struct __declspec(uuid("00000001-0000-0010-8000-00aa00389b71")) KSDATAFORMAT_SUBTYPE_PCM_STRUCT;
#define KSDATAFORMAT_SUBTYPE_PCM __uuidof(KSDATAFORMAT_SUBTYPE_PCM_STRUCT)
#endif
#ifndef KSDATAFORMAT_SUBTYPE_ADPCM
struct __declspec(uuid("00000002-0000-0010-8000-00aa00389b71")) KSDATAFORMAT_SUBTYPE_ADPCM_STRUCT;
#define KSDATAFORMAT_SUBTYPE_ADPCM __uuidof(KSDATAFORMAT_SUBTYPE_ADPCM_STRUCT)
#endif
#ifndef KSDATAFORMAT_SUBTYPE_IEEE_FLOAT
struct __declspec(uuid("00000003-0000-0010-8000-00aa00389b71")) KSDATAFORMAT_SUBTYPE_IEEE_FLOAT_STRUCT;
#define KSDATAFORMAT_SUBTYPE_IEEE_FLOAT __uuidof(KSDATAFORMAT_SUBTYPE_IEEE_FLOAT_STRUCT)
#endif
#endif
/**************************************************************************
*
* Speaker positions used in the WAVEFORMATEXTENSIBLE dwChannelMask field.
*
***************************************************************************/
#ifndef SPEAKER_FRONT_LEFT
#define SPEAKER_FRONT_LEFT 0x00000001
#define SPEAKER_FRONT_RIGHT 0x00000002
#define SPEAKER_FRONT_CENTER 0x00000004
#define SPEAKER_LOW_FREQUENCY 0x00000008
#define SPEAKER_BACK_LEFT 0x00000010
#define SPEAKER_BACK_RIGHT 0x00000020
#define SPEAKER_FRONT_LEFT_OF_CENTER 0x00000040
#define SPEAKER_FRONT_RIGHT_OF_CENTER 0x00000080
#define SPEAKER_BACK_CENTER 0x00000100
#define SPEAKER_SIDE_LEFT 0x00000200
#define SPEAKER_SIDE_RIGHT 0x00000400
#define SPEAKER_TOP_CENTER 0x00000800
#define SPEAKER_TOP_FRONT_LEFT 0x00001000
#define SPEAKER_TOP_FRONT_CENTER 0x00002000
#define SPEAKER_TOP_FRONT_RIGHT 0x00004000
#define SPEAKER_TOP_BACK_LEFT 0x00008000
#define SPEAKER_TOP_BACK_CENTER 0x00010000
#define SPEAKER_TOP_BACK_RIGHT 0x00020000
#define SPEAKER_RESERVED 0x7FFC0000
#define SPEAKER_ALL 0x80000000
#define _SPEAKER_POSITIONS_
#endif
#ifndef SPEAKER_STEREO
#define SPEAKER_MONO (SPEAKER_FRONT_CENTER)
#define SPEAKER_STEREO (SPEAKER_FRONT_LEFT | SPEAKER_FRONT_RIGHT)
#define SPEAKER_2POINT1 (SPEAKER_FRONT_LEFT | SPEAKER_FRONT_RIGHT | SPEAKER_LOW_FREQUENCY)
#define SPEAKER_SURROUND (SPEAKER_FRONT_LEFT | SPEAKER_FRONT_RIGHT | SPEAKER_FRONT_CENTER | SPEAKER_BACK_CENTER)
#define SPEAKER_QUAD (SPEAKER_FRONT_LEFT | SPEAKER_FRONT_RIGHT | SPEAKER_BACK_LEFT | SPEAKER_BACK_RIGHT)
#define SPEAKER_4POINT1 (SPEAKER_FRONT_LEFT | SPEAKER_FRONT_RIGHT | SPEAKER_LOW_FREQUENCY | SPEAKER_BACK_LEFT | SPEAKER_BACK_RIGHT)
#define SPEAKER_5POINT1 (SPEAKER_FRONT_LEFT | SPEAKER_FRONT_RIGHT | SPEAKER_FRONT_CENTER | SPEAKER_LOW_FREQUENCY | SPEAKER_BACK_LEFT | SPEAKER_BACK_RIGHT)
#define SPEAKER_7POINT1 (SPEAKER_FRONT_LEFT | SPEAKER_FRONT_RIGHT | SPEAKER_FRONT_CENTER | SPEAKER_LOW_FREQUENCY | SPEAKER_BACK_LEFT | SPEAKER_BACK_RIGHT | SPEAKER_FRONT_LEFT_OF_CENTER | SPEAKER_FRONT_RIGHT_OF_CENTER)
#define SPEAKER_5POINT1_SURROUND (SPEAKER_FRONT_LEFT | SPEAKER_FRONT_RIGHT | SPEAKER_FRONT_CENTER | SPEAKER_LOW_FREQUENCY | SPEAKER_SIDE_LEFT | SPEAKER_SIDE_RIGHT)
#define SPEAKER_7POINT1_SURROUND (SPEAKER_FRONT_LEFT | SPEAKER_FRONT_RIGHT | SPEAKER_FRONT_CENTER | SPEAKER_LOW_FREQUENCY | SPEAKER_BACK_LEFT | SPEAKER_BACK_RIGHT | SPEAKER_SIDE_LEFT | SPEAKER_SIDE_RIGHT)
#endif
#pragma pack(pop)
#endif // #ifndef __AUDIODEFS_INCLUDED__
-65
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@@ -1,65 +0,0 @@
// comdecl.h: Macros to facilitate COM interface and GUID declarations.
// Copyright (c) Microsoft Corporation. All rights reserved.
#ifndef _COMDECL_H_
#define _COMDECL_H_
#ifndef _XBOX
#include <basetyps.h> // For standard COM interface macros
#else
#pragma warning(push)
#pragma warning(disable:4061)
#include <xtl.h> // Required by xobjbase.h
#include <xobjbase.h> // Special definitions for Xbox build
#pragma warning(pop)
#endif
// The DEFINE_CLSID() and DEFINE_IID() macros defined below allow COM GUIDs to
// be declared and defined in such a way that clients can obtain the GUIDs using
// either the __uuidof() extension or the old-style CLSID_Foo / IID_IFoo names.
// If using the latter approach, the client can also choose whether to get the
// GUID definitions by defining the INITGUID preprocessor constant or by linking
// to a GUID library. This works in either C or C++.
#ifndef _MSC_VER
#define DEFINE_UUID(name, l, w1, w2, b1, b2, b3, b4, b5, b6, b7, b8) __CRT_UUID_DECL(name, 0x##l, 0x##w1, 0x##w2, 0x##b1, 0x##b2, 0x##b3, 0x##b4, 0x##b5, 0x##b6, 0x##b7, 0x##b8)
#define DEFINE_CLSID(className, l, w1, w2, b1, b2, b3, b4, b5, b6, b7, b8) class className; DEFINE_UUID(className, l, w1, w2, b1, b2, b3, b4, b5, b6, b7, b8)
#define DEFINE_IID(interfaceName, l, w1, w2, b1, b2, b3, b4, b5, b6, b7, b8) struct interfaceName; DEFINE_UUID(interfaceName, l, w1, w2, b1, b2, b3, b4, b5, b6, b7, b8)
#elif __cplusplus
#define DECLSPEC_UUID_WRAPPER(x) __declspec(uuid(#x))
#ifdef INITGUID
#define DEFINE_CLSID(className, l, w1, w2, b1, b2, b3, b4, b5, b6, b7, b8) \
class DECLSPEC_UUID_WRAPPER(l##-##w1##-##w2##-##b1##b2##-##b3##b4##b5##b6##b7##b8) className; \
EXTERN_C const GUID DECLSPEC_SELECTANY CLSID_##className = __uuidof(className)
#define DEFINE_IID(interfaceName, l, w1, w2, b1, b2, b3, b4, b5, b6, b7, b8) \
interface DECLSPEC_UUID_WRAPPER(l##-##w1##-##w2##-##b1##b2##-##b3##b4##b5##b6##b7##b8) interfaceName; \
EXTERN_C const GUID DECLSPEC_SELECTANY IID_##interfaceName = __uuidof(interfaceName)
#else // INITGUID
#define DEFINE_CLSID(className, l, w1, w2, b1, b2, b3, b4, b5, b6, b7, b8) \
class DECLSPEC_UUID_WRAPPER(l##-##w1##-##w2##-##b1##b2##-##b3##b4##b5##b6##b7##b8) className; \
EXTERN_C const GUID CLSID_##className
#define DEFINE_IID(interfaceName, l, w1, w2, b1, b2, b3, b4, b5, b6, b7, b8) \
interface DECLSPEC_UUID_WRAPPER(l##-##w1##-##w2##-##b1##b2##-##b3##b4##b5##b6##b7##b8) interfaceName; \
EXTERN_C const GUID IID_##interfaceName
#endif // INITGUID
#else // __cplusplus
#define DEFINE_CLSID(className, l, w1, w2, b1, b2, b3, b4, b5, b6, b7, b8) \
DEFINE_GUID(CLSID_##className, 0x##l, 0x##w1, 0x##w2, 0x##b1, 0x##b2, 0x##b3, 0x##b4, 0x##b5, 0x##b6, 0x##b7, 0x##b8)
#define DEFINE_IID(interfaceName, l, w1, w2, b1, b2, b3, b4, b5, b6, b7, b8) \
DEFINE_GUID(IID_##interfaceName, 0x##l, 0x##w1, 0x##w2, 0x##b1, 0x##b2, 0x##b3, 0x##b4, 0x##b5, 0x##b6, 0x##b7, 0x##b8)
#endif // __cplusplus
#endif // #ifndef _COMDECL_H_
-18
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@@ -1,18 +0,0 @@
/*==========================================================================;
*
*
* File: dxsdkver.h
* Content: DirectX SDK Version Include File
*
****************************************************************************/
#ifndef _DXSDKVER_H_
#define _DXSDKVER_H_
#define _DXSDK_PRODUCT_MAJOR 9
#define _DXSDK_PRODUCT_MINOR 29
#define _DXSDK_BUILD_MAJOR 1962
#define _DXSDK_BUILD_MINOR 0
#endif // _DXSDKVER_H_
-718
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@@ -1,718 +0,0 @@
/***************************************************************************
*
* Copyright (c) Microsoft Corporation. All rights reserved.
*
* File: xma2defs.h
* Content: Constants, data types and functions for XMA2 compressed audio.
*
***************************************************************************/
#ifndef __XMA2DEFS_INCLUDED__
#define __XMA2DEFS_INCLUDED__
#include <sal.h> // Markers for documenting API semantics
#include <winerror.h> // For S_OK, E_FAIL
#include <audiodefs.h> // Basic data types and constants for audio work
/***************************************************************************
* Overview
***************************************************************************/
// A typical XMA2 file contains these RIFF chunks:
//
// 'fmt' or 'XMA2' chunk (or both): A description of the XMA data's structure
// and characteristics (length, channels, sample rate, loops, block size, etc).
//
// 'seek' chunk: A seek table to help navigate the XMA data.
//
// 'data' chunk: The encoded XMA2 data.
//
// The encoded XMA2 data is structured as a set of BLOCKS, which contain PACKETS,
// which contain FRAMES, which contain SUBFRAMES (roughly speaking). The frames
// in a file may also be divided into several subsets, called STREAMS.
//
// FRAME: A variable-sized segment of XMA data that decodes to exactly 512 mono
// or stereo PCM samples. This is the smallest unit of XMA data that can
// be decoded in isolation. Frames are an arbitrary number of bits in
// length, and need not be byte-aligned. See "XMA frame structure" below.
//
// SUBFRAME: A region of bits in an XMA frame that decodes to 128 mono or stereo
// samples. The XMA decoder cannot decode a subframe in isolation; it needs
// a whole frame to work with. However, it can begin emitting the frame's
// decoded samples at any one of the four subframe boundaries. Subframes
// can be addressed for seeking and looping purposes.
//
// PACKET: A 2Kb region containing a 32-bit header and some XMA frames. Frames
// can (and usually do) span packets. A packet's header includes the offset
// in bits of the first frame that begins within that packet. All of the
// frames that begin in a given packet belong to the same "stream" (see the
// Multichannel Audio section below).
//
// STREAM: A set of packets within an XMA file that all contain data for the
// same mono or stereo component of a PCM file with more than two channels.
// The packets comprising a given stream may be interleaved with each other
// more or less arbitrarily; see Multichannel Audio.
//
// BLOCK: An array of XMA packets; or, to break it down differently, a series of
// consecutive XMA frames, padded at the end with reserved data. A block
// must contain at least one 2Kb packet per stream, and it can hold up to
// 4095 packets (8190Kb), but its size is typically in the 32Kb-128Kb range.
// (The size chosen involves a trade-off between memory use and efficiency
// of reading from permanent storage.)
//
// XMA frames do not span blocks, so a block is guaranteed to begin with a
// set of complete frames, one per stream. Also, a block in a multi-stream
// XMA2 file always contains the same number of samples for each stream;
// see Multichannel Audio.
//
// The 'data' chunk in an XMA2 file is an array of XMA2WAVEFORMAT.BlockCount XMA
// blocks, all the same size (as specified in XMA2WAVEFORMAT.BlockSizeInBytes)
// except for the last one, which may be shorter.
// MULTICHANNEL AUDIO: the XMA decoder can only decode raw XMA data into either
// mono or stereo PCM data. In order to encode a 6-channel file (say), the file
// must be deinterleaved into 3 stereo streams that are encoded independently,
// producing 3 encoded XMA data streams. Then the packets in these 3 streams
// are interleaved to produce a single XMA2 file, and some information is added
// to the file so that the original 6-channel audio can be reconstructed at
// decode time. This works using the concept of an XMA stream (see above).
//
// The frames for all the streams in an XMA file are interleaved in an arbitrary
// order. To locate a frame that belongs to a given stream in a given XMA block,
// you must examine the first few packets in the block. Here (and only here) the
// packets are guaranteed to be presented in stream order, so that all frames
// beginning in packet 0 belong to stream 0 (the first stereo pair), etc.
//
// (This means that when decoding multi-stream XMA files, only entire XMA blocks
// should be submitted to the decoder; otherwise it cannot know which frames
// belong to which stream.)
//
// Once you have one frame that belongs to a given stream, you can find the next
// one by looking at the frame's 'NextFrameOffsetBits' value (which is stored in
// its first 15 bits; see XMAFRAME below). The GetXmaFrameBitPosition function
// uses this technique.
// SEEKING IN XMA2 FILES: Here is some pseudocode to find the byte position and
// subframe in an XMA2 file which will contain sample S when decoded.
//
// 1. Traverse the seek table to find the XMA2 block containing sample S. The
// seek table is an array of big-endian DWORDs, one per block in the file.
// The Nth DWORD is the total number of PCM samples that would be obtained
// by decoding the entire XMA file up to the end of block N. Hence, the
// block we want is the first one whose seek table entry is greater than S.
// (See the GetXmaBlockContainingSample helper function.)
//
// 2. Calculate which frame F within the block found above contains sample S.
// Since each frame decodes to 512 samples, this is straightforward. The
// first frame in the block produces samples X to X + 512, where X is the
// seek table entry for the prior block. So F is (S - X) / 512.
//
// 3. Find the bit offset within the block where frame F starts. Since frames
// are variable-sized, this can only be done by traversing all the frames in
// the block until we reach frame F. (See GetXmaFrameBitPosition.)
//
// 4. Frame F has four 128-sample subframes. To find the subframe containing S,
// we can use the formula (S % 512) / 128.
//
// In the case of multi-stream XMA files, sample S is a multichannel sample with
// parts coming from several frames, one per stream. To find all these frames,
// steps 2-4 need to be repeated for each stream N, using the knowledge that the
// first packets in a block are presented in stream order. The frame traversal
// in step 3 must be started at the first frame in the Nth packet of the block,
// which will be the first frame for stream N. (And the packet header will tell
// you the first frame's start position within the packet.)
//
// Step 1 can be performed using the GetXmaBlockContainingSample function below,
// and steps 2-4 by calling GetXmaDecodePositionForSample once for each stream.
/***************************************************************************
* XMA constants
***************************************************************************/
// Size of the PCM samples produced by the XMA decoder
#define XMA_OUTPUT_SAMPLE_BYTES 2u
#define XMA_OUTPUT_SAMPLE_BITS (XMA_OUTPUT_SAMPLE_BYTES * 8u)
// Size of an XMA packet
#define XMA_BYTES_PER_PACKET 2048u
#define XMA_BITS_PER_PACKET (XMA_BYTES_PER_PACKET * 8u)
// Size of an XMA packet header
#define XMA_PACKET_HEADER_BYTES 4u
#define XMA_PACKET_HEADER_BITS (XMA_PACKET_HEADER_BYTES * 8u)
// Sample blocks in a decoded XMA frame
#define XMA_SAMPLES_PER_FRAME 512u
// Sample blocks in a decoded XMA subframe
#define XMA_SAMPLES_PER_SUBFRAME 128u
// Maximum encoded data that can be submitted to the XMA decoder at a time
#define XMA_READBUFFER_MAX_PACKETS 4095u
#define XMA_READBUFFER_MAX_BYTES (XMA_READBUFFER_MAX_PACKETS * XMA_BYTES_PER_PACKET)
// Maximum size allowed for the XMA decoder's output buffers
#define XMA_WRITEBUFFER_MAX_BYTES (31u * 256u)
// Required byte alignment of the XMA decoder's output buffers
#define XMA_WRITEBUFFER_BYTE_ALIGNMENT 256u
// Decode chunk sizes for the XMA_PLAYBACK_INIT.subframesToDecode field
#define XMA_MIN_SUBFRAMES_TO_DECODE 1u
#define XMA_MAX_SUBFRAMES_TO_DECODE 8u
#define XMA_OPTIMAL_SUBFRAMES_TO_DECODE 4u
// LoopCount<255 means finite repetitions; LoopCount=255 means infinite looping
#define XMA_MAX_LOOPCOUNT 254u
#define XMA_INFINITE_LOOP 255u
/***************************************************************************
* XMA format structures
***************************************************************************/
// The currently recommended way to express format information for XMA2 files
// is the XMA2WAVEFORMATEX structure. This structure is fully compliant with
// the WAVEFORMATEX standard and contains all the information needed to parse
// and manage XMA2 files in a compact way.
#define WAVE_FORMAT_XMA2 0x166
typedef struct XMA2WAVEFORMATEX
{
WAVEFORMATEX wfx;
// Meaning of the WAVEFORMATEX fields here:
// wFormatTag; // Audio format type; always WAVE_FORMAT_XMA2
// nChannels; // Channel count of the decoded audio
// nSamplesPerSec; // Sample rate of the decoded audio
// nAvgBytesPerSec; // Used internally by the XMA encoder
// nBlockAlign; // Decoded sample size; channels * wBitsPerSample / 8
// wBitsPerSample; // Bits per decoded mono sample; always 16 for XMA
// cbSize; // Size in bytes of the rest of this structure (34)
WORD NumStreams; // Number of audio streams (1 or 2 channels each)
DWORD ChannelMask; // Spatial positions of the channels in this file,
// stored as SPEAKER_xxx values (see audiodefs.h)
DWORD SamplesEncoded; // Total number of PCM samples the file decodes to
DWORD BytesPerBlock; // XMA block size (but the last one may be shorter)
DWORD PlayBegin; // First valid sample in the decoded audio
DWORD PlayLength; // Length of the valid part of the decoded audio
DWORD LoopBegin; // Beginning of the loop region in decoded sample terms
DWORD LoopLength; // Length of the loop region in decoded sample terms
BYTE LoopCount; // Number of loop repetitions; 255 = infinite
BYTE EncoderVersion; // Version of XMA encoder that generated the file
WORD BlockCount; // XMA blocks in file (and entries in its seek table)
} XMA2WAVEFORMATEX, *PXMA2WAVEFORMATEX;
// The legacy XMA format structures are described here for reference, but they
// should not be used in new content. XMAWAVEFORMAT was the structure used in
// XMA version 1 files. XMA2WAVEFORMAT was used in early XMA2 files; it is not
// placed in the usual 'fmt' RIFF chunk but in its own 'XMA2' chunk.
#ifndef WAVE_FORMAT_XMA
#define WAVE_FORMAT_XMA 0x0165
// Values used in the ChannelMask fields below. Similar to the SPEAKER_xxx
// values defined in audiodefs.h, but modified to fit in a single byte.
#ifndef XMA_SPEAKER_LEFT
#define XMA_SPEAKER_LEFT 0x01
#define XMA_SPEAKER_RIGHT 0x02
#define XMA_SPEAKER_CENTER 0x04
#define XMA_SPEAKER_LFE 0x08
#define XMA_SPEAKER_LEFT_SURROUND 0x10
#define XMA_SPEAKER_RIGHT_SURROUND 0x20
#define XMA_SPEAKER_LEFT_BACK 0x40
#define XMA_SPEAKER_RIGHT_BACK 0x80
#endif
// Used in XMAWAVEFORMAT for per-stream data
typedef struct XMASTREAMFORMAT
{
DWORD PsuedoBytesPerSec; // Used by the XMA encoder (typo preserved for legacy reasons)
DWORD SampleRate; // The stream's decoded sample rate (in XMA2 files,
// this is the same for all streams in the file).
DWORD LoopStart; // Bit offset of the frame containing the loop start
// point, relative to the beginning of the stream.
DWORD LoopEnd; // Bit offset of the frame containing the loop end.
BYTE SubframeData; // Two 4-bit numbers specifying the exact location of
// the loop points within the frames that contain them.
// SubframeEnd: Subframe of the loop end frame where
// the loop ends. Ranges from 0 to 3.
// SubframeSkip: Subframes to skip in the start frame to
// reach the loop. Ranges from 0 to 4.
BYTE Channels; // Number of channels in the stream (1 or 2)
WORD ChannelMask; // Spatial positions of the channels in the stream
} XMASTREAMFORMAT;
// Legacy XMA1 format structure
typedef struct XMAWAVEFORMAT
{
WORD FormatTag; // Audio format type (always WAVE_FORMAT_XMA)
WORD BitsPerSample; // Bit depth (currently required to be 16)
WORD EncodeOptions; // Options for XMA encoder/decoder
WORD LargestSkip; // Largest skip used in interleaving streams
WORD NumStreams; // Number of interleaved audio streams
BYTE LoopCount; // Number of loop repetitions; 255 = infinite
BYTE Version; // XMA encoder version that generated the file.
// Always 3 or higher for XMA2 files.
XMASTREAMFORMAT XmaStreams[1]; // Per-stream format information; the actual
// array length is in the NumStreams field.
} XMAWAVEFORMAT;
// Used in XMA2WAVEFORMAT for per-stream data
typedef struct XMA2STREAMFORMAT
{
BYTE Channels; // Number of channels in the stream (1 or 2)
BYTE RESERVED; // Reserved for future use
WORD ChannelMask; // Spatial positions of the channels in the stream
} XMA2STREAMFORMAT;
// Legacy XMA2 format structure (big-endian byte ordering)
typedef struct XMA2WAVEFORMAT
{
BYTE Version; // XMA encoder version that generated the file.
// Always 3 or higher for XMA2 files.
BYTE NumStreams; // Number of interleaved audio streams
BYTE RESERVED; // Reserved for future use
BYTE LoopCount; // Number of loop repetitions; 255 = infinite
DWORD LoopBegin; // Loop begin point, in samples
DWORD LoopEnd; // Loop end point, in samples
DWORD SampleRate; // The file's decoded sample rate
DWORD EncodeOptions; // Options for the XMA encoder/decoder
DWORD PsuedoBytesPerSec; // Used internally by the XMA encoder
DWORD BlockSizeInBytes; // Size in bytes of this file's XMA blocks (except
// possibly the last one). Always a multiple of
// 2Kb, since XMA blocks are arrays of 2Kb packets.
DWORD SamplesEncoded; // Total number of PCM samples encoded in this file
DWORD SamplesInSource; // Actual number of PCM samples in the source
// material used to generate this file
DWORD BlockCount; // Number of XMA blocks in this file (and hence
// also the number of entries in its seek table)
XMA2STREAMFORMAT Streams[1]; // Per-stream format information; the actual
// array length is in the NumStreams field.
} XMA2WAVEFORMAT;
#endif // #ifndef WAVE_FORMAT_XMA
/***************************************************************************
* XMA packet structure (in big-endian form)
***************************************************************************/
typedef struct XMA2PACKET
{
int FrameCount : 6; // Number of XMA frames that begin in this packet
int FrameOffsetInBits : 15; // Bit of XmaData where the first complete frame begins
int PacketMetaData : 3; // Metadata stored in the packet (always 1 for XMA2)
int PacketSkipCount : 8; // How many packets belonging to other streams must be
// skipped to find the next packet belonging to this one
BYTE XmaData[XMA_BYTES_PER_PACKET - sizeof(DWORD)]; // XMA encoded data
} XMA2PACKET;
// E.g. if the first DWORD of a packet is 0x30107902:
//
// 001100 000001000001111 001 00000010
// | | | |____ Skip 2 packets to find the next one for this stream
// | | |___________ XMA2 signature (always 001)
// | |_____________________ First frame starts 527 bits into packet
// |________________________________ Packet contains 12 frames
// Helper functions to extract the fields above from an XMA packet. (Note that
// the bitfields cannot be read directly on little-endian architectures such as
// the Intel x86, as they are laid out in big-endian form.)
__inline DWORD GetXmaPacketFrameCount(__in_bcount(1) const BYTE* pPacket)
{
return (DWORD)(pPacket[0] >> 2);
}
__inline DWORD GetXmaPacketFirstFrameOffsetInBits(__in_bcount(3) const BYTE* pPacket)
{
return ((DWORD)(pPacket[0] & 0x3) << 13) |
((DWORD)(pPacket[1]) << 5) |
((DWORD)(pPacket[2]) >> 3);
}
__inline DWORD GetXmaPacketMetadata(__in_bcount(3) const BYTE* pPacket)
{
return (DWORD)(pPacket[2] & 0x7);
}
__inline DWORD GetXmaPacketSkipCount(__in_bcount(4) const BYTE* pPacket)
{
return (DWORD)(pPacket[3]);
}
/***************************************************************************
* XMA frame structure
***************************************************************************/
// There is no way to represent the XMA frame as a C struct, since it is a
// variable-sized string of bits that need not be stored at a byte-aligned
// position in memory. This is the layout:
//
// XMAFRAME
// {
// LengthInBits: A 15-bit number representing the length of this frame.
// XmaData: Encoded XMA data; its size in bits is (LengthInBits - 15).
// }
// Size in bits of the frame's initial LengthInBits field
#define XMA_BITS_IN_FRAME_LENGTH_FIELD 15
// Special LengthInBits value that marks an invalid final frame
#define XMA_FINAL_FRAME_MARKER 0x7FFF
/***************************************************************************
* XMA helper functions
***************************************************************************/
// We define a local ASSERT macro to equal the global one if it exists.
// You can define XMA2DEFS_ASSERT in advance to override this default.
#ifndef XMA2DEFS_ASSERT
#ifdef ASSERT
#define XMA2DEFS_ASSERT ASSERT
#else
#define XMA2DEFS_ASSERT(a) /* No-op by default */
#endif
#endif
// GetXmaBlockContainingSample: Use a given seek table to find the XMA block
// containing a given decoded sample. Note that the seek table entries in an
// XMA file are stored in big-endian form and may need to be converted prior
// to calling this function.
__inline HRESULT GetXmaBlockContainingSample
(
DWORD nBlockCount, // Blocks in the file (= seek table entries)
__in_ecount(nBlockCount) const DWORD* pSeekTable, // Pointer to the seek table data
DWORD nDesiredSample, // Decoded sample to locate
__out DWORD* pnBlockContainingSample, // Index of the block containing the sample
__out DWORD* pnSampleOffsetWithinBlock // Position of the sample in this block
)
{
DWORD nPreviousTotalSamples = 0;
DWORD nBlock;
DWORD nTotalSamplesSoFar;
XMA2DEFS_ASSERT(pSeekTable);
XMA2DEFS_ASSERT(pnBlockContainingSample);
XMA2DEFS_ASSERT(pnSampleOffsetWithinBlock);
for (nBlock = 0; nBlock < nBlockCount; ++nBlock)
{
nTotalSamplesSoFar = pSeekTable[nBlock];
if (nTotalSamplesSoFar > nDesiredSample)
{
*pnBlockContainingSample = nBlock;
*pnSampleOffsetWithinBlock = nDesiredSample - nPreviousTotalSamples;
return S_OK;
}
nPreviousTotalSamples = nTotalSamplesSoFar;
}
return E_FAIL;
}
// GetXmaFrameLengthInBits: Reads a given frame's LengthInBits field.
__inline DWORD GetXmaFrameLengthInBits
(
__in_bcount(nBitPosition / 8 + 3)
__in const BYTE* pPacket, // Pointer to XMA packet[s] containing the frame
DWORD nBitPosition // Bit offset of the frame within this packet
)
{
DWORD nRegion;
DWORD nBytePosition = nBitPosition / 8;
DWORD nBitOffset = nBitPosition % 8;
if (nBitOffset < 2) // Only need to read 2 bytes (and might not be safe to read more)
{
nRegion = (DWORD)(pPacket[nBytePosition+0]) << 8 |
(DWORD)(pPacket[nBytePosition+1]);
return (nRegion >> (1 - nBitOffset)) & 0x7FFF; // Last 15 bits
}
else // Need to read 3 bytes
{
nRegion = (DWORD)(pPacket[nBytePosition+0]) << 16 |
(DWORD)(pPacket[nBytePosition+1]) << 8 |
(DWORD)(pPacket[nBytePosition+2]);
return (nRegion >> (9 - nBitOffset)) & 0x7FFF; // Last 15 bits
}
}
// GetXmaFrameBitPosition: Calculates the bit offset of a given frame within
// an XMA block or set of blocks. Returns 0 on failure.
__inline DWORD GetXmaFrameBitPosition
(
__in_bcount(nXmaDataBytes) const BYTE* pXmaData, // Pointer to XMA block[s]
DWORD nXmaDataBytes, // Size of pXmaData in bytes
DWORD nStreamIndex, // Stream within which to seek
DWORD nDesiredFrame // Frame sought
)
{
const BYTE* pCurrentPacket;
DWORD nPacketsExamined = 0;
DWORD nFrameCountSoFar = 0;
DWORD nFramesToSkip;
DWORD nFrameBitOffset;
XMA2DEFS_ASSERT(pXmaData);
XMA2DEFS_ASSERT(nXmaDataBytes % XMA_BYTES_PER_PACKET == 0);
// Get the first XMA packet belonging to the desired stream, relying on the
// fact that the first packets for each stream are in consecutive order at
// the beginning of an XMA block.
pCurrentPacket = pXmaData + nStreamIndex * XMA_BYTES_PER_PACKET;
for (;;)
{
// If we have exceeded the size of the XMA data, return failure
if (pCurrentPacket + XMA_BYTES_PER_PACKET > pXmaData + nXmaDataBytes)
{
return 0;
}
// If the current packet contains the frame we are looking for...
if (nFrameCountSoFar + GetXmaPacketFrameCount(pCurrentPacket) > nDesiredFrame)
{
// See how many frames in this packet we need to skip to get to it
XMA2DEFS_ASSERT(nDesiredFrame >= nFrameCountSoFar);
nFramesToSkip = nDesiredFrame - nFrameCountSoFar;
// Get the bit offset of the first frame in this packet
nFrameBitOffset = XMA_PACKET_HEADER_BITS + GetXmaPacketFirstFrameOffsetInBits(pCurrentPacket);
// Advance nFrameBitOffset to the frame of interest
while (nFramesToSkip--)
{
nFrameBitOffset += GetXmaFrameLengthInBits(pCurrentPacket, nFrameBitOffset);
}
// The bit offset to return is the number of bits from pXmaData to
// pCurrentPacket plus the bit offset of the frame of interest
return (DWORD)(pCurrentPacket - pXmaData) * 8 + nFrameBitOffset;
}
// If we haven't found the right packet yet, advance our counters
++nPacketsExamined;
nFrameCountSoFar += GetXmaPacketFrameCount(pCurrentPacket);
// And skip to the next packet belonging to the same stream
pCurrentPacket += XMA_BYTES_PER_PACKET * (GetXmaPacketSkipCount(pCurrentPacket) + 1);
}
}
// GetLastXmaFrameBitPosition: Calculates the bit offset of the last complete
// frame in an XMA block or set of blocks.
__inline DWORD GetLastXmaFrameBitPosition
(
__in_bcount(nXmaDataBytes) const BYTE* pXmaData, // Pointer to XMA block[s]
DWORD nXmaDataBytes, // Size of pXmaData in bytes
DWORD nStreamIndex // Stream within which to seek
)
{
const BYTE* pLastPacket;
DWORD nBytesToNextPacket;
DWORD nFrameBitOffset;
DWORD nFramesInLastPacket;
XMA2DEFS_ASSERT(pXmaData);
XMA2DEFS_ASSERT(nXmaDataBytes % XMA_BYTES_PER_PACKET == 0);
XMA2DEFS_ASSERT(nXmaDataBytes >= XMA_BYTES_PER_PACKET * (nStreamIndex + 1));
// Get the first XMA packet belonging to the desired stream, relying on the
// fact that the first packets for each stream are in consecutive order at
// the beginning of an XMA block.
pLastPacket = pXmaData + nStreamIndex * XMA_BYTES_PER_PACKET;
// Search for the last packet belonging to the desired stream
for (;;)
{
nBytesToNextPacket = XMA_BYTES_PER_PACKET * (GetXmaPacketSkipCount(pLastPacket) + 1);
XMA2DEFS_ASSERT(nBytesToNextPacket);
if (pLastPacket + nBytesToNextPacket + XMA_BYTES_PER_PACKET > pXmaData + nXmaDataBytes)
{
break; // The next packet would extend beyond the end of pXmaData
}
pLastPacket += nBytesToNextPacket;
}
// The last packet can sometimes have no seekable frames, in which case we
// have to use the previous one
if (GetXmaPacketFrameCount(pLastPacket) == 0)
{
pLastPacket -= nBytesToNextPacket;
}
// Found the last packet. Get the bit offset of its first frame.
nFrameBitOffset = XMA_PACKET_HEADER_BITS + GetXmaPacketFirstFrameOffsetInBits(pLastPacket);
// Traverse frames until we reach the last one
nFramesInLastPacket = GetXmaPacketFrameCount(pLastPacket);
while (--nFramesInLastPacket)
{
nFrameBitOffset += GetXmaFrameLengthInBits(pLastPacket, nFrameBitOffset);
}
// The bit offset to return is the number of bits from pXmaData to
// pLastPacket plus the offset of the last frame in this packet.
return (DWORD)(pLastPacket - pXmaData) * 8 + nFrameBitOffset;
}
// GetXmaDecodePositionForSample: Obtains the information needed to make the
// decoder generate audio starting at a given sample position relative to the
// beginning of the given XMA block: the bit offset of the appropriate frame,
// and the right subframe within that frame. This data can be passed directly
// to the XMAPlaybackSetDecodePosition function.
__inline HRESULT GetXmaDecodePositionForSample
(
__in_bcount(nXmaDataBytes) const BYTE* pXmaData, // Pointer to XMA block[s]
DWORD nXmaDataBytes, // Size of pXmaData in bytes
DWORD nStreamIndex, // Stream within which to seek
DWORD nDesiredSample, // Sample sought
__out DWORD* pnBitOffset, // Returns the bit offset within pXmaData of
// the frame containing the sample sought
__out DWORD* pnSubFrame // Returns the subframe containing the sample
)
{
DWORD nDesiredFrame = nDesiredSample / XMA_SAMPLES_PER_FRAME;
DWORD nSubFrame = (nDesiredSample % XMA_SAMPLES_PER_FRAME) / XMA_SAMPLES_PER_SUBFRAME;
DWORD nBitOffset = GetXmaFrameBitPosition(pXmaData, nXmaDataBytes, nStreamIndex, nDesiredFrame);
XMA2DEFS_ASSERT(pnBitOffset);
XMA2DEFS_ASSERT(pnSubFrame);
if (nBitOffset)
{
*pnBitOffset = nBitOffset;
*pnSubFrame = nSubFrame;
return S_OK;
}
else
{
return E_FAIL;
}
}
// GetXmaSampleRate: Obtains the legal XMA sample rate (24, 32, 44.1 or 48Khz)
// corresponding to a generic sample rate.
__inline DWORD GetXmaSampleRate(DWORD dwGeneralRate)
{
DWORD dwXmaRate = 48000; // Default XMA rate for all rates above 44100Hz
if (dwGeneralRate <= 24000) dwXmaRate = 24000;
else if (dwGeneralRate <= 32000) dwXmaRate = 32000;
else if (dwGeneralRate <= 44100) dwXmaRate = 44100;
return dwXmaRate;
}
// Functions to convert between WAVEFORMATEXTENSIBLE channel masks (combinations
// of the SPEAKER_xxx flags defined in audiodefs.h) and XMA channel masks (which
// are limited to eight possible speaker positions: left, right, center, low
// frequency, side left, side right, back left and back right).
__inline DWORD GetStandardChannelMaskFromXmaMask(BYTE bXmaMask)
{
DWORD dwStandardMask = 0;
if (bXmaMask & XMA_SPEAKER_LEFT) dwStandardMask |= SPEAKER_FRONT_LEFT;
if (bXmaMask & XMA_SPEAKER_RIGHT) dwStandardMask |= SPEAKER_FRONT_RIGHT;
if (bXmaMask & XMA_SPEAKER_CENTER) dwStandardMask |= SPEAKER_FRONT_CENTER;
if (bXmaMask & XMA_SPEAKER_LFE) dwStandardMask |= SPEAKER_LOW_FREQUENCY;
if (bXmaMask & XMA_SPEAKER_LEFT_SURROUND) dwStandardMask |= SPEAKER_SIDE_LEFT;
if (bXmaMask & XMA_SPEAKER_RIGHT_SURROUND) dwStandardMask |= SPEAKER_SIDE_RIGHT;
if (bXmaMask & XMA_SPEAKER_LEFT_BACK) dwStandardMask |= SPEAKER_BACK_LEFT;
if (bXmaMask & XMA_SPEAKER_RIGHT_BACK) dwStandardMask |= SPEAKER_BACK_RIGHT;
return dwStandardMask;
}
__inline BYTE GetXmaChannelMaskFromStandardMask(DWORD dwStandardMask)
{
BYTE bXmaMask = 0;
if (dwStandardMask & SPEAKER_FRONT_LEFT) bXmaMask |= XMA_SPEAKER_LEFT;
if (dwStandardMask & SPEAKER_FRONT_RIGHT) bXmaMask |= XMA_SPEAKER_RIGHT;
if (dwStandardMask & SPEAKER_FRONT_CENTER) bXmaMask |= XMA_SPEAKER_CENTER;
if (dwStandardMask & SPEAKER_LOW_FREQUENCY) bXmaMask |= XMA_SPEAKER_LFE;
if (dwStandardMask & SPEAKER_SIDE_LEFT) bXmaMask |= XMA_SPEAKER_LEFT_SURROUND;
if (dwStandardMask & SPEAKER_SIDE_RIGHT) bXmaMask |= XMA_SPEAKER_RIGHT_SURROUND;
if (dwStandardMask & SPEAKER_BACK_LEFT) bXmaMask |= XMA_SPEAKER_LEFT_BACK;
if (dwStandardMask & SPEAKER_BACK_RIGHT) bXmaMask |= XMA_SPEAKER_RIGHT_BACK;
return bXmaMask;
}
// LocalizeXma2Format: Modifies a XMA2WAVEFORMATEX structure in place to comply
// with the current platform's byte-ordering rules (little- or big-endian).
__inline HRESULT LocalizeXma2Format(__inout XMA2WAVEFORMATEX* pXma2Format)
{
#define XMASWAP2BYTES(n) ((WORD)(((n) >> 8) | (((n) & 0xff) << 8)))
#define XMASWAP4BYTES(n) ((DWORD)((n) >> 24 | (n) << 24 | ((n) & 0xff00) << 8 | ((n) & 0xff0000) >> 8))
if (pXma2Format->wfx.wFormatTag == WAVE_FORMAT_XMA2)
{
return S_OK;
}
else if (XMASWAP2BYTES(pXma2Format->wfx.wFormatTag) == WAVE_FORMAT_XMA2)
{
pXma2Format->wfx.wFormatTag = XMASWAP2BYTES(pXma2Format->wfx.wFormatTag);
pXma2Format->wfx.nChannels = XMASWAP2BYTES(pXma2Format->wfx.nChannels);
pXma2Format->wfx.nSamplesPerSec = XMASWAP4BYTES(pXma2Format->wfx.nSamplesPerSec);
pXma2Format->wfx.nAvgBytesPerSec = XMASWAP4BYTES(pXma2Format->wfx.nAvgBytesPerSec);
pXma2Format->wfx.nBlockAlign = XMASWAP2BYTES(pXma2Format->wfx.nBlockAlign);
pXma2Format->wfx.wBitsPerSample = XMASWAP2BYTES(pXma2Format->wfx.wBitsPerSample);
pXma2Format->wfx.cbSize = XMASWAP2BYTES(pXma2Format->wfx.cbSize);
pXma2Format->NumStreams = XMASWAP2BYTES(pXma2Format->NumStreams);
pXma2Format->ChannelMask = XMASWAP4BYTES(pXma2Format->ChannelMask);
pXma2Format->SamplesEncoded = XMASWAP4BYTES(pXma2Format->SamplesEncoded);
pXma2Format->BytesPerBlock = XMASWAP4BYTES(pXma2Format->BytesPerBlock);
pXma2Format->PlayBegin = XMASWAP4BYTES(pXma2Format->PlayBegin);
pXma2Format->PlayLength = XMASWAP4BYTES(pXma2Format->PlayLength);
pXma2Format->LoopBegin = XMASWAP4BYTES(pXma2Format->LoopBegin);
pXma2Format->LoopLength = XMASWAP4BYTES(pXma2Format->LoopLength);
pXma2Format->BlockCount = XMASWAP2BYTES(pXma2Format->BlockCount);
return S_OK;
}
else
{
return E_FAIL; // Not a recognizable XMA2 format
}
#undef XMASWAP2BYTES
#undef XMASWAP4BYTES
}
#endif // #ifndef __XMA2DEFS_INCLUDED__
-1
Submodule 3rdparty/cereal deleted from 42a45b6e15
-26
View File
@@ -1,26 +0,0 @@
#pragma once
#if defined(DISCORD_DYNAMIC_LIB)
# if defined(_WIN32)
# if defined(DISCORD_BUILDING_SDK)
# define DISCORD_EXPORT __declspec(dllexport)
# else
# define DISCORD_EXPORT __declspec(dllimport)
# endif
# else
# define DISCORD_EXPORT __attribute__((visibility("default")))
# endif
#else
# define DISCORD_EXPORT
#endif
#ifdef __cplusplus
extern "C" {
#endif
DISCORD_EXPORT void Discord_Register(const char* applicationId, const char* command);
DISCORD_EXPORT void Discord_RegisterSteamGame(const char* applicationId, const char* steamId);
#ifdef __cplusplus
}
#endif
-87
View File
@@ -1,87 +0,0 @@
#pragma once
#include <stdint.h>
// clang-format off
#if defined(DISCORD_DYNAMIC_LIB)
# if defined(_WIN32)
# if defined(DISCORD_BUILDING_SDK)
# define DISCORD_EXPORT __declspec(dllexport)
# else
# define DISCORD_EXPORT __declspec(dllimport)
# endif
# else
# define DISCORD_EXPORT __attribute__((visibility("default")))
# endif
#else
# define DISCORD_EXPORT
#endif
// clang-format on
#ifdef __cplusplus
extern "C" {
#endif
typedef struct DiscordRichPresence {
const char* state; /* max 128 bytes */
const char* details; /* max 128 bytes */
int64_t startTimestamp;
int64_t endTimestamp;
const char* largeImageKey; /* max 32 bytes */
const char* largeImageText; /* max 128 bytes */
const char* smallImageKey; /* max 32 bytes */
const char* smallImageText; /* max 128 bytes */
const char* partyId; /* max 128 bytes */
int partySize;
int partyMax;
const char* matchSecret; /* max 128 bytes */
const char* joinSecret; /* max 128 bytes */
const char* spectateSecret; /* max 128 bytes */
int8_t instance;
} DiscordRichPresence;
typedef struct DiscordJoinRequest {
const char* userId;
const char* username;
const char* discriminator;
const char* avatar;
} DiscordJoinRequest;
typedef struct DiscordEventHandlers {
void (*ready)(void);
void (*disconnected)(int errorCode, const char* message);
void (*errored)(int errorCode, const char* message);
void (*joinGame)(const char* joinSecret);
void (*spectateGame)(const char* spectateSecret);
void (*joinRequest)(const DiscordJoinRequest* request);
} DiscordEventHandlers;
#define DISCORD_REPLY_NO 0
#define DISCORD_REPLY_YES 1
#define DISCORD_REPLY_IGNORE 2
DISCORD_EXPORT void Discord_Initialize(const char* applicationId,
DiscordEventHandlers* handlers,
int autoRegister,
const char* optionalSteamId);
DISCORD_EXPORT void Discord_Shutdown(void);
/* checks for incoming messages, dispatches callbacks */
DISCORD_EXPORT void Discord_RunCallbacks(void);
/* If you disable the lib starting its own io thread, you'll need to call this from your own */
#ifdef DISCORD_DISABLE_IO_THREAD
DISCORD_EXPORT void Discord_UpdateConnection(void);
#endif
DISCORD_EXPORT void Discord_UpdatePresence(const DiscordRichPresence* presence);
DISCORD_EXPORT void Discord_ClearPresence(void);
DISCORD_EXPORT void Discord_Respond(const char* userid, /* DISCORD_REPLY_ */ int reply);
DISCORD_EXPORT void Discord_UpdateHandlers(DiscordEventHandlers* handlers);
#ifdef __cplusplus
} /* extern "C" */
#endif
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-1
Submodule 3rdparty/ffmpeg deleted from 7b7ae7b067
-1
Submodule 3rdparty/hidapi deleted from 9220f5e77c
-105
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@@ -1,105 +0,0 @@
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-27
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@@ -1,27 +0,0 @@
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<ClCompile Include="hidapi\windows\hid.c">
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-1
Submodule 3rdparty/libpng deleted from eddf902320
-142
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@@ -1,142 +0,0 @@
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<RootNamespace>libpng</RootNamespace>
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-1
Submodule 3rdparty/libusb deleted from 7cfa00e9d7
-90
View File
@@ -1,90 +0,0 @@
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<ClInclude Include="libusb\libusb\os\poll_windows.h" />
<ClInclude Include="libusb\libusb\os\threads_windows.h" />
<ClInclude Include="libusb\libusb\version.h" />
<ClInclude Include="libusb\libusb\version_nano.h" />
<ClInclude Include="libusb\libusb\os\windows_common.h" />
<ClInclude Include="libusb\libusb\os\windows_nt_common.h" />
<ClInclude Include="libusb\libusb\os\windows_nt_shared_types.h" />
<ClInclude Include="libusb\libusb\os\windows_usbdk.h" />
<ClInclude Include="libusb\libusb\os\windows_winusb.h" />
</ItemGroup>
<Import Project="$(VCTargetsPath)\Microsoft.Cpp.targets" />
<ImportGroup Label="ExtensionTargets">
</ImportGroup>
</Project>
-65
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@@ -1,65 +0,0 @@
if(WITH_LLVM)
if(BUILD_LLVM_SUBMODULE)
message(STATUS "LLVM will be built from the submodule.")
set(LLVM_TARGETS_TO_BUILD "X86" CACHE INTERNAL "")
option(LLVM_BUILD_RUNTIME OFF)
option(LLVM_BUILD_TOOLS OFF)
option(LLVM_INCLUDE_DOCS OFF)
option(LLVM_INCLUDE_EXAMPLES OFF)
option(LLVM_INCLUDE_TESTS OFF)
option(LLVM_INCLUDE_TOOLS OFF)
option(LLVM_INCLUDE_UTILS OFF)
option(WITH_POLLY OFF)
option(LLVM_ENABLE_CXX1Z TRUE)
set(CXX_FLAGS_OLD ${CMAKE_CXX_FLAGS})
if (MSVC)
set(CMAKE_CXX_FLAGS "${CMAKE_CXX_FLAGS} /D _SILENCE_ALL_CXX17_DEPRECATION_WARNINGS")
endif()
# LLVM needs to be built out-of-tree
add_subdirectory(${CMAKE_SOURCE_DIR}/llvm ${CMAKE_CURRENT_BINARY_DIR}/llvm_build EXCLUDE_FROM_ALL)
set(LLVM_DIR "${CMAKE_CURRENT_BINARY_DIR}/llvm_build/lib/cmake/llvm/")
set(CMAKE_CXX_FLAGS ${CXX_FLAGS_OLD})
# now tries to find LLVM again
find_package(LLVM 9.0 CONFIG)
if(NOT LLVM_FOUND)
message(FATAL_ERROR "Couldn't build LLVM from the submodule. You might need to run `git submodule update --init`")
endif()
else()
message(STATUS "Using prebuilt LLVM")
if (LLVM_DIR AND NOT IS_ABSOLUTE "${LLVM_DIR}")
# change relative LLVM_DIR to be relative to the source dir
set(LLVM_DIR ${CMAKE_SOURCE_DIR}/${LLVM_DIR})
endif()
find_package(LLVM 9.0 CONFIG)
if (NOT LLVM_FOUND)
if (LLVM_VERSION AND LLVM_VERSION_MAJOR LESS 9)
message(FATAL_ERROR "Found LLVM version ${LLVM_VERSION}. Required version 9.0. \
Enable BUILD_LLVM_SUBMODULE option to build LLVM from included as a git submodule.")
endif()
message(FATAL_ERROR "Can't find LLVM libraries from the CMAKE_PREFIX_PATH path or LLVM_DIR. \
Enable BUILD_LLVM_SUBMODULE option to build LLVM from included as a git submodule.")
endif()
endif()
set(LLVM_LIBS LLVMMCJIT LLVMX86CodeGen LLVMX86AsmParser)
add_library(3rdparty_llvm INTERFACE)
target_link_libraries(3rdparty_llvm INTERFACE ${LLVM_LIBS})
target_include_directories(3rdparty_llvm INTERFACE ${LLVM_INCLUDE_DIRS})
target_compile_definitions(3rdparty_llvm INTERFACE ${LLVM_DEFINITIONS} -DLLVM_AVAILABLE)
add_library(3rdparty::llvm ALIAS 3rdparty_llvm)
else()
add_library(3rdparty::llvm ALIAS 3rdparty_dummy_lib)
endif()
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-64
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@@ -1,64 +0,0 @@
<?xml version="1.0" encoding="utf-8"?>
<Project DefaultTargets="Build" ToolsVersion="15.0" xmlns="http://schemas.microsoft.com/developer/msbuild/2003">
<ItemGroup Label="ProjectConfigurations">
<ProjectConfiguration Include="Release|x64">
<Configuration>Release</Configuration>
<Platform>x64</Platform>
</ProjectConfiguration>
</ItemGroup>
<PropertyGroup Label="Globals">
<ProjectGuid>{EB33566E-DA7F-4D28-9077-88C0B7C77E35}</ProjectGuid>
<RootNamespace>pnglibconf</RootNamespace>
</PropertyGroup>
<Import Project="..\common_default.props" />
<Import Project="$(VCTargetsPath)\Microsoft.Cpp.Default.props" />
<Import Project="..\common_default_macros.props" />
<PropertyGroup Condition="'$(Configuration)|$(Platform)'=='Release|x64'" Label="Configuration">
<ConfigurationType>Application</ConfigurationType>
<UseDebugLibraries>false</UseDebugLibraries>
<WholeProgramOptimization>true</WholeProgramOptimization>
<CharacterSet>MultiByte</CharacterSet>
</PropertyGroup>
<Import Project="$(SolutionDir)\3rdparty\zlib.props" />
<Import Project="$(VCTargetsPath)\Microsoft.Cpp.props" />
<ImportGroup Label="ExtensionSettings">
</ImportGroup>
<ImportGroup Label="PropertySheets" Condition="'$(Configuration)|$(Platform)'=='Release|x64'">
<Import Project="$(UserRootDir)\Microsoft.Cpp.$(Platform).user.props" Condition="exists('$(UserRootDir)\Microsoft.Cpp.$(Platform).user.props')" Label="LocalAppDataPlatform" />
</ImportGroup>
<PropertyGroup Label="UserMacros" />
<PropertyGroup Condition="'$(Configuration)|$(Platform)'=='Release|x64'">
<CustomBuildBeforeTargets>Build</CustomBuildBeforeTargets>
<IntDir>$(SolutionDir)tmp\$(ProjectName)-$(Configuration)-$(Platform)\</IntDir>
</PropertyGroup>
<ItemDefinitionGroup Condition="'$(Configuration)|$(Platform)'=='Release|x64'">
<ClCompile>
<WarningLevel>$(WarningLevel)</WarningLevel>
<Optimization>MaxSpeed</Optimization>
<FunctionLevelLinking>true</FunctionLevelLinking>
<IntrinsicFunctions>true</IntrinsicFunctions>
</ClCompile>
<Link>
<GenerateDebugInformation>true</GenerateDebugInformation>
<EnableCOMDATFolding>true</EnableCOMDATFolding>
<OptimizeReferences>true</OptimizeReferences>
</Link>
<CustomBuildStep>
<Command>copy .\libpng\scripts\pnglibconf.h.prebuilt .\libpng\pnglibconf.h</Command>
</CustomBuildStep>
<CustomBuildStep>
<Message>Generating pnglibconf.h</Message>
</CustomBuildStep>
<CustomBuildStep>
<Outputs>.\libpng\pnglibconf.h</Outputs>
</CustomBuildStep>
<CustomBuildStep>
<Inputs>.\libpng\scripts\pnglibconf.h.prebuilt</Inputs>
</CustomBuildStep>
</ItemDefinitionGroup>
<ItemGroup>
</ItemGroup>
<Import Project="$(VCTargetsPath)\Microsoft.Cpp.targets" />
<ImportGroup Label="ExtensionTargets">
</ImportGroup>
</Project>
-1
Submodule 3rdparty/pugixml deleted from 8bf806c035
-49
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@@ -1,49 +0,0 @@
add_library(3rdparty_qt5 INTERFACE)
find_package(Qt5 5.10 CONFIG COMPONENTS Widgets Network Qml)
if(WIN32)
find_package(Qt5 5.10 COMPONENTS WinExtras REQUIRED)
target_link_libraries(3rdparty_qt5 INTERFACE Qt5::Widgets Qt5::WinExtras Qt5::Network Qt5::Qml)
else()
find_package(Qt5 5.10 COMPONENTS DBus Gui)
if(Qt5DBus_FOUND)
target_link_libraries(3rdparty_qt5 INTERFACE Qt5::Widgets Qt5::DBus Qt5::Network Qt5::Qml)
target_compile_definitions(3rdparty_qt5 INTERFACE -DHAVE_QTDBUS)
else()
target_link_libraries(3rdparty_qt5 INTERFACE Qt5::Widgets Qt5::Network Qt5::Qml)
endif()
target_include_directories(3rdparty_qt5 INTERFACE ${Qt5Gui_PRIVATE_INCLUDE_DIRS})
endif()
if(NOT Qt5Widgets_FOUND)
if(Qt5Widgets_VERSION VERSION_LESS 5.10.0)
message("Minimum supported Qt5 version is 5.10.0! You have version ${Qt5Widgets_VERSION} installed, please upgrade!")
if(CMAKE_SYSTEM MATCHES "Linux")
message(FATAL_ERROR "Most distros do not provide an up-to-date version of Qt.
If you're on Ubuntu or Linux Mint, there are PPAs you can use to install one of the latest qt5 versions.
https://launchpad.net/~beineri/+archive/ubuntu/opt-qt-5.11.0-bionic
https://launchpad.net/~beineri/+archive/ubuntu/opt-qt-5.11.0-xenial
https://launchpad.net/~beineri/+archive/ubuntu/opt-qt-5.10.1-trusty
just make sure to run
source /opt/qt511/bin/qt511-env.sh
respective
source /opt/qt510/bin/qt510-env.sh
before re-running cmake")
elseif(WIN32)
message(FATAL_ERROR "You can download the latest version of Qt5 here: https://www.qt.io/download-open-source/")
else()
message(FATAL_ERROR "Look online for instructions on installing an up-to-date Qt5 on ${CMAKE_SYSTEM}.")
endif()
endif()
message("CMake was unable to find Qt5!")
if(WIN32)
message(FATAL_ERROR "Make sure the QTDIR env variable has been set properly. (for example C:\\Qt\\5.11.1\\msvc2017_64\\)")
elseif(CMAKE_SYSTEM MATCHES "Linux")
message(FATAL_ERROR "Make sure to install your distro's qt5 package!")
else()
message(FATAL_ERROR "You need to have Qt5 installed, look online for instructions on installing Qt5 on ${CMAKE_SYSTEM}.")
endif()
endif()
add_library(3rdparty::qt5 ALIAS 3rdparty_qt5)
-7547
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-4882
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-1
Submodule 3rdparty/xxHash deleted from 7cc9639699
-59
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@@ -1,59 +0,0 @@
<?xml version="1.0" encoding="utf-8"?>
<Project DefaultTargets="Build" ToolsVersion="15.0" xmlns="http://schemas.microsoft.com/developer/msbuild/2003">
<ItemGroup Label="ProjectConfigurations">
<ProjectConfiguration Include="Debug|x64">
<Configuration>Debug</Configuration>
<Platform>x64</Platform>
</ProjectConfiguration>
<ProjectConfiguration Include="Release|x64">
<Configuration>Release</Configuration>
<Platform>x64</Platform>
</ProjectConfiguration>
</ItemGroup>
<PropertyGroup Label="Globals">
<ProjectGuid>{939FE206-1182-ABC3-1234-FEAB88E98404}</ProjectGuid>
</PropertyGroup>
<Import Project="..\common_default.props" />
<Import Project="$(VCTargetsPath)\Microsoft.Cpp.Default.props" />
<Import Project="..\common_default_macros.props" />
<PropertyGroup Label="Configuration">
<ConfigurationType>StaticLibrary</ConfigurationType>
<CharacterSet>Unicode</CharacterSet>
</PropertyGroup>
<PropertyGroup Condition="'$(Configuration)'=='Debug'" Label="Configuration">
<UseDebugLibraries>true</UseDebugLibraries>
</PropertyGroup>
<PropertyGroup Condition="'$(Configuration)'=='Release'" Label="Configuration">
<UseDebugLibraries>false</UseDebugLibraries>
</PropertyGroup>
<Import Project="$(VCTargetsPath)\Microsoft.Cpp.props" />
<ImportGroup Label="ExtensionSettings">
</ImportGroup>
<ImportGroup Label="PropertySheets">
<Import Project="$(UserRootDir)\Microsoft.Cpp.$(Platform).user.props" Condition="exists('$(UserRootDir)\Microsoft.Cpp.$(Platform).user.props')" Label="LocalAppDataPlatform" />
<Import Project="..\rpcs3_default.props" />
</ImportGroup>
<ImportGroup Label="PropertySheets" Condition="'$(Configuration)|$(Platform)'=='Debug|x64'">
<Import Project="..\rpcs3_debug.props" />
</ImportGroup>
<ImportGroup Label="PropertySheets" Condition="'$(Configuration)|$(Platform)'=='Release|x64'">
<Import Project="..\rpcs3_release.props" />
</ImportGroup>
<PropertyGroup Label="UserMacros" />
<PropertyGroup />
<ItemDefinitionGroup>
</ItemDefinitionGroup>
<ItemGroup>
<ClCompile Include="xxHash/xxhash.c" />
</ItemGroup>
<ItemGroup>
<Text Include="LICENSE" />
<Text Include="CMakeLists.txt" />
</ItemGroup>
<ItemGroup>
<ClInclude Include="xxHash/xxhash.h" />
</ItemGroup>
<Import Project="$(VCTargetsPath)\Microsoft.Cpp.targets" />
<ImportGroup Label="ExtensionTargets">
</ImportGroup>
</Project>
Submodule 3rdparty/yaml-cpp deleted from eca9cfd648
-100
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@@ -1,100 +0,0 @@
<?xml version="1.0" encoding="utf-8"?>
<Project DefaultTargets="Build" ToolsVersion="14.0" xmlns="http://schemas.microsoft.com/developer/msbuild/2003">
<ItemGroup Label="ProjectConfigurations">
<ProjectConfiguration Include="Debug|x64">
<Configuration>Debug</Configuration>
<Platform>x64</Platform>
</ProjectConfiguration>
<ProjectConfiguration Include="Release|x64">
<Configuration>Release</Configuration>
<Platform>x64</Platform>
</ProjectConfiguration>
</ItemGroup>
<PropertyGroup Label="Globals">
<ProjectGuid>{FDC361C5-7734-493B-8CFB-037308B35122}</ProjectGuid>
<RootNamespace>yamlcpp</RootNamespace>
</PropertyGroup>
<Import Project="..\common_default.props" />
<Import Project="$(VCTargetsPath)\Microsoft.Cpp.Default.props" />
<Import Project="..\common_default_macros.props" />
<PropertyGroup Label="Configuration">
<ConfigurationType>StaticLibrary</ConfigurationType>
<CharacterSet>Unicode</CharacterSet>
</PropertyGroup>
<Import Project="$(VCTargetsPath)\Microsoft.Cpp.props" />
<ImportGroup Label="ExtensionSettings">
</ImportGroup>
<ImportGroup Label="Shared">
</ImportGroup>
<ImportGroup Label="PropertySheets">
<Import Project="$(UserRootDir)\Microsoft.Cpp.$(Platform).user.props" Condition="exists('$(UserRootDir)\Microsoft.Cpp.$(Platform).user.props')" Label="LocalAppDataPlatform" />
<Import Project="..\rpcs3_default.props" />
</ImportGroup>
<ImportGroup Label="PropertySheets" Condition="'$(Configuration)|$(Platform)'=='Debug|x64'">
<Import Project="..\rpcs3_debug.props" />
</ImportGroup>
<ImportGroup Label="PropertySheets" Condition="'$(Configuration)|$(Platform)'=='Release|x64'">
<Import Project="..\rpcs3_release.props" />
</ImportGroup>
<PropertyGroup Label="UserMacros" />
<ItemGroup>
<ClCompile Include="yaml-cpp\src\binary.cpp">
</ClCompile>
<ClCompile Include="yaml-cpp\src\convert.cpp">
</ClCompile>
<ClCompile Include="yaml-cpp\src\directives.cpp">
</ClCompile>
<ClCompile Include="yaml-cpp\src\emit.cpp">
</ClCompile>
<ClCompile Include="yaml-cpp\src\emitfromevents.cpp">
</ClCompile>
<ClCompile Include="yaml-cpp\src\emitter.cpp">
</ClCompile>
<ClCompile Include="yaml-cpp\src\emitterstate.cpp">
</ClCompile>
<ClCompile Include="yaml-cpp\src\emitterutils.cpp">
</ClCompile>
<ClCompile Include="yaml-cpp\src\exceptions.cpp" />
<ClCompile Include="yaml-cpp\src\exp.cpp">
</ClCompile>
<ClCompile Include="yaml-cpp\src\memory.cpp">
</ClCompile>
<ClCompile Include="yaml-cpp\src\node.cpp">
</ClCompile>
<ClCompile Include="yaml-cpp\src\nodebuilder.cpp">
</ClCompile>
<ClCompile Include="yaml-cpp\src\nodeevents.cpp">
</ClCompile>
<ClCompile Include="yaml-cpp\src\node_data.cpp">
</ClCompile>
<ClCompile Include="yaml-cpp\src\null.cpp">
</ClCompile>
<ClCompile Include="yaml-cpp\src\ostream_wrapper.cpp">
</ClCompile>
<ClCompile Include="yaml-cpp\src\parse.cpp">
</ClCompile>
<ClCompile Include="yaml-cpp\src\parser.cpp">
</ClCompile>
<ClCompile Include="yaml-cpp\src\regex_yaml.cpp">
</ClCompile>
<ClCompile Include="yaml-cpp\src\scanner.cpp">
</ClCompile>
<ClCompile Include="yaml-cpp\src\scanscalar.cpp">
</ClCompile>
<ClCompile Include="yaml-cpp\src\scantag.cpp">
</ClCompile>
<ClCompile Include="yaml-cpp\src\scantoken.cpp">
</ClCompile>
<ClCompile Include="yaml-cpp\src\simplekey.cpp">
</ClCompile>
<ClCompile Include="yaml-cpp\src\singledocparser.cpp">
</ClCompile>
<ClCompile Include="yaml-cpp\src\stream.cpp">
</ClCompile>
<ClCompile Include="yaml-cpp\src\tag.cpp">
</ClCompile>
</ItemGroup>
<Import Project="$(VCTargetsPath)\Microsoft.Cpp.targets" />
<ImportGroup Label="ExtensionTargets">
</ImportGroup>
</Project>
-95
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@@ -1,95 +0,0 @@
<?xml version="1.0" encoding="utf-8"?>
<Project ToolsVersion="4.0" xmlns="http://schemas.microsoft.com/developer/msbuild/2003">
<ItemGroup>
<Filter Include="Source Files">
<UniqueIdentifier>{4FC737F1-C7A5-4376-A066-2A32D752A2FF}</UniqueIdentifier>
<Extensions>cpp;c;cc;cxx;def;odl;idl;hpj;bat;asm;asmx</Extensions>
</Filter>
</ItemGroup>
<ItemGroup>
<ClCompile Include="yaml-cpp\src\binary.cpp">
<Filter>Source Files</Filter>
</ClCompile>
<ClCompile Include="yaml-cpp\src\convert.cpp">
<Filter>Source Files</Filter>
</ClCompile>
<ClCompile Include="yaml-cpp\src\directives.cpp">
<Filter>Source Files</Filter>
</ClCompile>
<ClCompile Include="yaml-cpp\src\emit.cpp">
<Filter>Source Files</Filter>
</ClCompile>
<ClCompile Include="yaml-cpp\src\emitfromevents.cpp">
<Filter>Source Files</Filter>
</ClCompile>
<ClCompile Include="yaml-cpp\src\emitter.cpp">
<Filter>Source Files</Filter>
</ClCompile>
<ClCompile Include="yaml-cpp\src\emitterstate.cpp">
<Filter>Source Files</Filter>
</ClCompile>
<ClCompile Include="yaml-cpp\src\emitterutils.cpp">
<Filter>Source Files</Filter>
</ClCompile>
<ClCompile Include="yaml-cpp\src\exp.cpp">
<Filter>Source Files</Filter>
</ClCompile>
<ClCompile Include="yaml-cpp\src\memory.cpp">
<Filter>Source Files</Filter>
</ClCompile>
<ClCompile Include="yaml-cpp\src\node.cpp">
<Filter>Source Files</Filter>
</ClCompile>
<ClCompile Include="yaml-cpp\src\nodebuilder.cpp">
<Filter>Source Files</Filter>
</ClCompile>
<ClCompile Include="yaml-cpp\src\nodeevents.cpp">
<Filter>Source Files</Filter>
</ClCompile>
<ClCompile Include="yaml-cpp\src\node_data.cpp">
<Filter>Source Files</Filter>
</ClCompile>
<ClCompile Include="yaml-cpp\src\null.cpp">
<Filter>Source Files</Filter>
</ClCompile>
<ClCompile Include="yaml-cpp\src\ostream_wrapper.cpp">
<Filter>Source Files</Filter>
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<ClCompile Include="yaml-cpp\src\parse.cpp">
<Filter>Source Files</Filter>
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<ClCompile Include="yaml-cpp\src\parser.cpp">
<Filter>Source Files</Filter>
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<ClCompile Include="yaml-cpp\src\regex_yaml.cpp">
<Filter>Source Files</Filter>
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<ClCompile Include="yaml-cpp\src\scanner.cpp">
<Filter>Source Files</Filter>
</ClCompile>
<ClCompile Include="yaml-cpp\src\scanscalar.cpp">
<Filter>Source Files</Filter>
</ClCompile>
<ClCompile Include="yaml-cpp\src\scantag.cpp">
<Filter>Source Files</Filter>
</ClCompile>
<ClCompile Include="yaml-cpp\src\scantoken.cpp">
<Filter>Source Files</Filter>
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<ClCompile Include="yaml-cpp\src\simplekey.cpp">
<Filter>Source Files</Filter>
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<ClCompile Include="yaml-cpp\src\singledocparser.cpp">
<Filter>Source Files</Filter>
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<ClCompile Include="yaml-cpp\src\stream.cpp">
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<ClCompile Include="yaml-cpp\src\tag.cpp">
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-1
Submodule 3rdparty/zlib deleted from cacf7f1d4e
-105
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@@ -1,105 +0,0 @@
<?xml version="1.0" encoding="utf-8"?>
<Project DefaultTargets="Build" ToolsVersion="15.0" xmlns="http://schemas.microsoft.com/developer/msbuild/2003">
<ItemGroup Label="ProjectConfigurations">
<ProjectConfiguration Include="Debug|x64">
<Configuration>Debug</Configuration>
<Platform>x64</Platform>
</ProjectConfiguration>
<ProjectConfiguration Include="Release|x64">
<Configuration>Release</Configuration>
<Platform>x64</Platform>
</ProjectConfiguration>
</ItemGroup>
<ItemGroup>
<ClCompile Include="$(ZLibSrcDir)\adler32.c" />
<ClCompile Include="$(ZLibSrcDir)\compress.c" />
<ClCompile Include="$(ZLibSrcDir)\crc32.c" />
<ClCompile Include="$(ZLibSrcDir)\deflate.c" />
<ClCompile Include="$(ZLibSrcDir)\infback.c" />
<ClCompile Include="$(ZLibSrcDir)\inffast.c" />
<ClCompile Include="$(ZLibSrcDir)\inflate.c" />
<ClCompile Include="$(ZLibSrcDir)\inftrees.c" />
<ClCompile Include="$(ZLibSrcDir)\trees.c" />
<ClCompile Include="$(ZLibSrcDir)\uncompr.c" />
<ClCompile Include="$(ZLibSrcDir)\zutil.c" />
</ItemGroup>
<PropertyGroup Label="Globals">
<ProjectGuid>{60F89955-91C6-3A36-8000-13C592FEC2DF}</ProjectGuid>
<Keyword>Win32Proj</Keyword>
<RootNamespace>zlib</RootNamespace>
</PropertyGroup>
<Import Project="$(SolutionDir)\3rdparty\zlib.props" />
<Import Project="..\common_default.props" />
<Import Project="$(VCTargetsPath)\Microsoft.Cpp.Default.props" />
<Import Project="..\common_default_macros.props" />
<PropertyGroup Condition="'$(Configuration)|$(Platform)'=='Debug|x64'" Label="Configuration">
<ConfigurationType>StaticLibrary</ConfigurationType>
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<PropertyGroup Condition="'$(Configuration)|$(Platform)'=='Release|x64'" Label="Configuration">
<ConfigurationType>StaticLibrary</ConfigurationType>
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<Import Project="$(VCTargetsPath)\Microsoft.Cpp.props" />
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<ImportGroup Condition="'$(Configuration)|$(Platform)'=='Debug|x64'" Label="PropertySheets">
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<Import Project="$(UserRootDir)\Microsoft.Cpp.$(Platform).user.props" Condition="exists('$(UserRootDir)\Microsoft.Cpp.$(Platform).user.props')" Label="LocalAppDataPlatform" />
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<PropertyGroup Condition="'$(Configuration)|$(Platform)'=='Debug|x64'">
<LinkIncremental>true</LinkIncremental>
<OutDir>$(SolutionDir)lib\$(Configuration)-$(Platform)\</OutDir>
<IntDir>$(SolutionDir)tmp\$(ProjectName)-$(Configuration)-$(Platform)\</IntDir>
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<PropertyGroup Condition="'$(Configuration)|$(Platform)'=='Release|x64'">
<LinkIncremental>true</LinkIncremental>
<OutDir>$(SolutionDir)lib\$(Configuration)-$(Platform)\</OutDir>
<IntDir>$(SolutionDir)tmp\$(ProjectName)-$(Configuration)-$(Platform)\</IntDir>
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<ItemDefinitionGroup Condition="'$(Configuration)|$(Platform)'=='Debug|x64'">
<ClCompile>
<PreprocessorDefinitions>WIN32;_DEBUG;_WINDOWS;%(PreprocessorDefinitions)</PreprocessorDefinitions>
<WarningLevel>$(WarningLevel)</WarningLevel>
<DebugInformationFormat>ProgramDatabase</DebugInformationFormat>
<Optimization>Disabled</Optimization>
<BrowseInformation>true</BrowseInformation>
<FunctionLevelLinking>true</FunctionLevelLinking>
<DisableSpecificWarnings>$(DisableSpecificWarnings);4127;4131;4242;4244</DisableSpecificWarnings>
<TreatWarningAsError>$(TreatWarningAsError)</TreatWarningAsError>
<RuntimeLibrary>MultiThreadedDebugDLL</RuntimeLibrary>
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<Link>
<GenerateDebugInformation>true</GenerateDebugInformation>
<SubSystem>Windows</SubSystem>
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<WarningLevel>$(WarningLevel)</WarningLevel>
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<Optimization>Full</Optimization>
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<WholeProgramOptimization>true</WholeProgramOptimization>
<BufferSecurityCheck>false</BufferSecurityCheck>
<BrowseInformation>true</BrowseInformation>
<FunctionLevelLinking>true</FunctionLevelLinking>
<DisableSpecificWarnings>$(DisableSpecificWarnings);4127;4131;4242;4244</DisableSpecificWarnings>
<TreatWarningAsError>$(TreatWarningAsError)</TreatWarningAsError>
<PreprocessorDefinitions>WIN32;NDEBUG;_WINDOWS;%(PreprocessorDefinitions)</PreprocessorDefinitions>
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<Link>
<GenerateDebugInformation>true</GenerateDebugInformation>
<SubSystem>Windows</SubSystem>
<EnableCOMDATFolding>true</EnableCOMDATFolding>
<OptimizeReferences>true</OptimizeReferences>
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<Lib>
<LinkTimeCodeGeneration>true</LinkTimeCodeGeneration>
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<Import Project="$(VCTargetsPath)\Microsoft.Cpp.targets" />
<ImportGroup Label="ExtensionTargets">
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</Project>
-116
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# Building
Only Windows and Linux are officially supported for building. However, various other platforms are capable of building RPCS3.
Other instructions may be found [here](https://wiki.rpcs3.net/index.php?title=Building).
## Setup your environment
### Windows 7 or later
* [CMake 3.8.2+](https://www.cmake.org/download/) (add to PATH)
* [Python 3.3+](https://www.python.org/downloads/) (add to PATH)
* [Qt 5.10+](https://www.qt.io/download-qt-installer) (Avoid 5.11.1, due to a bug)
* [Visual Studio 2017](https://visualstudio.microsoft.com/vs/older-downloads/)
* [Vulkan SDK 1.1.97.0+](https://vulkan.lunarg.com/sdk/home) (See "Install the SDK" [here](https://vulkan.lunarg.com/doc/sdk/latest/windows/getting_started.html))
**Either add the** `QTDIR` **environment variable, e.g.** `<QtInstallFolder>\5.10.0\msvc2017_64\` **, or use the [Visual Studio Qt Plugin](https://marketplace.visualstudio.com/items?itemName=TheQtCompany.QtVisualStudioTools-19123)**
### Linux
These are the essentials tools to build RPCS3 on Linux. Some of them can be installed through your favorite package manager.
* Clang 5.0+ or GCC 8.1+
* [CMake 3.8.2+](https://www.cmake.org/download/)
* [Qt 5.10+](https://www.qt.io/download-qt-installer) (Avoid 5.11.1, due to a bug)
* [Vulkan SDK 1.1.97.0+](https://vulkan.lunarg.com/sdk/home) (See "Install the SDK" [here](https://vulkan.lunarg.com/doc/sdk/latest/linux/getting_started.html))
**If you have an NVIDIA GPU, you may need to install the libglvnd package.**
#### Arch Linux
sudo pacman -S glew openal cmake vulkan-validation-layers qt5-base qt5-declarative
#### Debian & Ubuntu
sudo apt-get install cmake build-essential libasound2-dev libpulse-dev libopenal-dev libglew-dev zlib1g-dev libedit-dev libvulkan-dev libudev-dev git qt5-default libevdev-dev qtdeclarative5-dev qtbase5-private-dev
##### GCC 8.x installation
If the `gcc-8` package is not available on your system, use the following command
```
sudo add-apt-repository ppa:ubuntu-toolchain-r/test
```
Then
```
sudo apt-get update
sudo apt-get install gcc-8 g++-8
```
You can either use `update-alternatives` to setup `gcc-8`/`g++-8` as your default compilers or prefix any `cmake` command by `CXX=g++-8 CC=gcc-8 ` to use it.
##### Vulkan SDK
For Ubuntu systems, it is strongly recommended to use the PPA from [LunarG](https://packages.lunarg.com/) which will provide a compatible Vulkan SDK to compile RPCS3. If your Vulkan SDK is older, it can lead to compilation errors.
Ubuntu 18.04 (Bionic Beaver)
```
wget -qO - http://packages.lunarg.com/lunarg-signing-key-pub.asc | sudo apt-key add -
sudo wget -qO /etc/apt/sources.list.d/lunarg-vulkan-1.1.106-bionic.list http://packages.lunarg.com/vulkan/1.1.106/lunarg-vulkan-1.1.106-bionic.list
sudo apt update
sudo apt install vulkan-sdk
```
Ubuntu 16.04 (Xenial Xerus)
```
wget -qO - http://packages.lunarg.com/lunarg-signing-key-pub.asc | sudo apt-key add -
sudo wget -qO /etc/apt/sources.list.d/lunarg-vulkan-1.1.106-xenial.list http://packages.lunarg.com/vulkan/1.1.106/lunarg-vulkan-1.1.106-xenial.list
sudo apt update
sudo apt install vulkan-sdk
```
#### Fedora
sudo dnf install alsa-lib-devel cmake glew glew-devel libatomic libevdev-devel libudev-devel openal-devel qt5-devel vulkan-devel
#### OpenSUSE
sudo zypper install git cmake libasound2 libpulse-devel openal-soft-devel glew-devel zlib-devel libedit-devel vulkan-devel libudev-devel libqt5-qtbase-devel libevdev-devel
## Setup the project
Clone and initialize the repository
```
git clone https://github.com/RPCS3/rpcs3.git
cd rpcs3
git submodule update --init
```
### Windows
#### Configuring the Qt plugin (if used)
1) Go to the Qt5 menu and edit Qt5 options.
2) Add the path to your Qt installation with compiler e.g. `<QtInstallFolder>\5.10.0\msvc2017_64`.
3) While selecting the rpcs3qt project, go to Qt5->Project Setting and select the version you added.
#### Building the projects
Open `rpcs3.sln`. The recommended build configuration is `Release - LLVM` for all purposes.
You may want to download precompiled [LLVM libs](https://github.com/RPCS3/llvm/releases/download/continuous-master/llvmlibs.7z) and extract to root rpcs3 folder (which contains `rpcs3.sln`), as well as download and extract [additional libs](https://drive.google.com/uc?export=download&id=1A2eOMmCO714i0U7J0qI4aEMKnuWl8l_R) to `lib\%CONFIGURATION%-x64\` to speed up compilation time (unoptimised/debug libs are currently not available precompiled).
If you're not using precompiled libs, build the projects in *__BUILD_BEFORE* folder: right-click on every project > *Build*.
`Build > Build Solution`
### Linux
While still in the project root:
1) `cd .. && mkdir rpcs3_build && cd rpcs3_build`
2) `cmake ../rpcs3/ && make` or `CXX=g++-8 CC=gcc-8 cmake ../rpcs3/ && make` to force these compilers
3) Run RPCS3 with `./bin/rpcs3`
When using GDB, configure it to ignore SIGSEGV signal (`handle SIGSEGV nostop noprint`).
If desired, use the various build options in [CMakeLists](https://github.com/RPCS3/rpcs3/blob/master/CMakeLists.txt).
+8 -74
View File
@@ -1,89 +1,23 @@
cmake_minimum_required(VERSION 3.8.2)
cmake_minimum_required(VERSION 2.8.12)
project(rpcs3)
if(CMAKE_COMPILER_IS_GNUCXX)
if(CMAKE_CXX_COMPILER_VERSION VERSION_LESS 8)
message(FATAL_ERROR "RPCS3 requires at least gcc-8.")
endif()
elseif(${CMAKE_CXX_COMPILER_ID} MATCHES "Clang")
if(CMAKE_CXX_COMPILER_VERSION VERSION_LESS 5.0)
message(FATAL_ERROR "RPCS3 requires at least clang-5.0.")
endif()
endif()
option(WITH_GDB "WITH_GDB" OFF)
option(USE_NATIVE_INSTRUCTIONS "USE_NATIVE_INSTRUCTIONS makes rpcs3 compile with -march=native, which is useful for local builds, but not good for packages." ON)
option(WITH_LLVM "Enable usage of LLVM library" ON)
option(BUILD_LLVM_SUBMODULE "Build LLVM from git submodule" ON)
option(USE_ALSA "ALSA audio backend" ON)
option(USE_PULSE "PulseAudio audio backend" ON)
option(USE_LIBEVDEV "libevdev-based joystick support" ON)
option(USE_DISCORD_RPC "Discord rich presence integration" ON)
option(USE_SYSTEM_ZLIB "Prefer system ZLIB instead of the builtin one" ON)
option(USE_VULKAN "Vulkan render backend" ON)
set(CMAKE_MODULE_PATH "${CMAKE_CURRENT_LIST_DIR}/rpcs3/cmake_modules")
set(CMAKE_CXX_STANDARD 17)
include(CheckCXXCompilerFlag)
if (WITH_GDB)
add_definitions(-DWITH_GDB_DEBUGGER)
endif()
set(ASMJIT_STATIC TRUE)
if (NOT CMAKE_BUILD_TYPE)
message(STATUS "No build type selected, default to Release")
set(CMAKE_BUILD_TYPE "Release")
endif()
if(NOT CMAKE_BUILD_TYPE STREQUAL "Debug")
add_definitions(-DNDEBUG)
endif()
if(NOT CMAKE_SIZEOF_VOID_P EQUAL 8)
message( FATAL_ERROR "RPCS3 can only be compiled on 64-bit platforms." )
endif()
find_program(CCACHE_FOUND ccache)
if (CCACHE_FOUND)
set_property(GLOBAL PROPERTY RULE_LAUNCH_COMPILE ccache)
set_property(GLOBAL PROPERTY RULE_LAUNCH_LINK ccache)
endif()
if(WIN32)
add_definitions(-DUNICODE)
add_definitions(-D_WIN32_WINNT=0x0602)
endif()
if(APPLE)
include_directories(/opt/local/include)
link_directories(/opt/local/lib)
endif()
# Warnings are silenced for 3rdparty code
set(CMAKE_CXX_FLAGS -w)
set(CMAKE_C_FLAGS -w)
set(LLVM_ENABLE_WARNINGS OFF CACHE BOOL "")
if(MSVC)
add_compile_options(/wd4530) # C++ exception handler used, but unwind semantics are not enabled
endif()
add_subdirectory(Vulkan EXCLUDE_FROM_ALL)
add_subdirectory(asmjitsrc EXCLUDE_FROM_ALL)
add_subdirectory(3rdparty)
unset(CMAKE_CXX_FLAGS)
unset(CMAKE_C_FLAGS)
if (NOT WIN32)
add_compile_options(-pthread)
endif()
# We use libpng's static library and don't need to build the shared library and run the tests
set(PNG_SHARED OFF CACHE BOOL "Build shared lib." FORCE)
set(PNG_TESTS OFF CACHE BOOL "Build tests." FORCE)
add_subdirectory( asmjit )
add_subdirectory( libpng )
# TODO: do real installation, including copying directory structure
set(CMAKE_RUNTIME_OUTPUT_DIRECTORY_RELEASE "${PROJECT_BINARY_DIR}/bin")
set(CMAKE_RUNTIME_OUTPUT_DIRECTORY_DEBUG "${PROJECT_BINARY_DIR}/bin")
set(CMAKE_RUNTIME_OUTPUT_DIRECTORY_RELWITHDEBINFO "${PROJECT_BINARY_DIR}/bin")
add_subdirectory(rpcs3)
add_subdirectory( rpcs3 )
File diff suppressed because it is too large Load Diff
Submodule
+1
Submodule GSL added at fc5fce4f4f
@@ -13,8 +13,8 @@
*
* You should have received a copy of the GNU Library General Public
* License along with this library; if not, write to the
* Free Software Foundation, Inc.,
* 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA.
* Free Software Foundation, Inc., 59 Temple Place - Suite 330,
* Boston, MA 02111-1307, USA.
* Or go to http://www.gnu.org/copyleft/lgpl.html
*/
@@ -97,31 +97,6 @@ extern "C" {
#ifndef AL_EXT_MCFORMATS
#define AL_EXT_MCFORMATS 1
/* Provides support for surround sound buffer formats with 8, 16, and 32-bit
* samples.
*
* QUAD8: Unsigned 8-bit, Quadraphonic (Front Left, Front Right, Rear Left,
* Rear Right).
* QUAD16: Signed 16-bit, Quadraphonic.
* QUAD32: 32-bit float, Quadraphonic.
* REAR8: Unsigned 8-bit, Rear Stereo (Rear Left, Rear Right).
* REAR16: Signed 16-bit, Rear Stereo.
* REAR32: 32-bit float, Rear Stereo.
* 51CHN8: Unsigned 8-bit, 5.1 Surround (Front Left, Front Right, Front Center,
* LFE, Side Left, Side Right). Note that some audio systems may label
* 5.1's Side channels as Rear or Surround; they are equivalent for the
* purposes of this extension.
* 51CHN16: Signed 16-bit, 5.1 Surround.
* 51CHN32: 32-bit float, 5.1 Surround.
* 61CHN8: Unsigned 8-bit, 6.1 Surround (Front Left, Front Right, Front Center,
* LFE, Rear Center, Side Left, Side Right).
* 61CHN16: Signed 16-bit, 6.1 Surround.
* 61CHN32: 32-bit float, 6.1 Surround.
* 71CHN8: Unsigned 8-bit, 7.1 Surround (Front Left, Front Right, Front Center,
* LFE, Rear Left, Rear Right, Side Left, Side Right).
* 71CHN16: Signed 16-bit, 7.1 Surround.
* 71CHN32: 32-bit float, 7.1 Surround.
*/
#define AL_FORMAT_QUAD8 0x1204
#define AL_FORMAT_QUAD16 0x1205
#define AL_FORMAT_QUAD32 0x1206
@@ -418,97 +393,6 @@ ALC_API void ALC_APIENTRY alcDeviceResumeSOFT(ALCdevice *device);
#endif
#endif
#ifndef AL_EXT_BFORMAT
#define AL_EXT_BFORMAT 1
/* Provides support for B-Format ambisonic buffers (first-order, FuMa scaling
* and layout).
*
* BFORMAT2D_8: Unsigned 8-bit, 3-channel non-periphonic (WXY).
* BFORMAT2D_16: Signed 16-bit, 3-channel non-periphonic (WXY).
* BFORMAT2D_FLOAT32: 32-bit float, 3-channel non-periphonic (WXY).
* BFORMAT3D_8: Unsigned 8-bit, 4-channel periphonic (WXYZ).
* BFORMAT3D_16: Signed 16-bit, 4-channel periphonic (WXYZ).
* BFORMAT3D_FLOAT32: 32-bit float, 4-channel periphonic (WXYZ).
*/
#define AL_FORMAT_BFORMAT2D_8 0x20021
#define AL_FORMAT_BFORMAT2D_16 0x20022
#define AL_FORMAT_BFORMAT2D_FLOAT32 0x20023
#define AL_FORMAT_BFORMAT3D_8 0x20031
#define AL_FORMAT_BFORMAT3D_16 0x20032
#define AL_FORMAT_BFORMAT3D_FLOAT32 0x20033
#endif
#ifndef AL_EXT_MULAW_BFORMAT
#define AL_EXT_MULAW_BFORMAT 1
#define AL_FORMAT_BFORMAT2D_MULAW 0x10031
#define AL_FORMAT_BFORMAT3D_MULAW 0x10032
#endif
#ifndef ALC_SOFT_HRTF
#define ALC_SOFT_HRTF 1
#define ALC_HRTF_SOFT 0x1992
#define ALC_DONT_CARE_SOFT 0x0002
#define ALC_HRTF_STATUS_SOFT 0x1993
#define ALC_HRTF_DISABLED_SOFT 0x0000
#define ALC_HRTF_ENABLED_SOFT 0x0001
#define ALC_HRTF_DENIED_SOFT 0x0002
#define ALC_HRTF_REQUIRED_SOFT 0x0003
#define ALC_HRTF_HEADPHONES_DETECTED_SOFT 0x0004
#define ALC_HRTF_UNSUPPORTED_FORMAT_SOFT 0x0005
#define ALC_NUM_HRTF_SPECIFIERS_SOFT 0x1994
#define ALC_HRTF_SPECIFIER_SOFT 0x1995
#define ALC_HRTF_ID_SOFT 0x1996
typedef const ALCchar* (ALC_APIENTRY*LPALCGETSTRINGISOFT)(ALCdevice *device, ALCenum paramName, ALCsizei index);
typedef ALCboolean (ALC_APIENTRY*LPALCRESETDEVICESOFT)(ALCdevice *device, const ALCint *attribs);
#ifdef AL_ALEXT_PROTOTYPES
ALC_API const ALCchar* ALC_APIENTRY alcGetStringiSOFT(ALCdevice *device, ALCenum paramName, ALCsizei index);
ALC_API ALCboolean ALC_APIENTRY alcResetDeviceSOFT(ALCdevice *device, const ALCint *attribs);
#endif
#endif
#ifndef AL_SOFT_gain_clamp_ex
#define AL_SOFT_gain_clamp_ex 1
#define AL_GAIN_LIMIT_SOFT 0x200E
#endif
#ifndef AL_SOFT_source_resampler
#define AL_SOFT_source_resampler
#define AL_NUM_RESAMPLERS_SOFT 0x1210
#define AL_DEFAULT_RESAMPLER_SOFT 0x1211
#define AL_SOURCE_RESAMPLER_SOFT 0x1212
#define AL_RESAMPLER_NAME_SOFT 0x1213
typedef const ALchar* (AL_APIENTRY*LPALGETSTRINGISOFT)(ALenum pname, ALsizei index);
#ifdef AL_ALEXT_PROTOTYPES
AL_API const ALchar* AL_APIENTRY alGetStringiSOFT(ALenum pname, ALsizei index);
#endif
#endif
#ifndef AL_SOFT_source_spatialize
#define AL_SOFT_source_spatialize
#define AL_SOURCE_SPATIALIZE_SOFT 0x1214
#define AL_AUTO_SOFT 0x0002
#endif
#ifndef ALC_SOFT_output_limiter
#define ALC_SOFT_output_limiter
#define ALC_OUTPUT_LIMITER_SOFT 0x199A
#endif
#ifndef ALC_SOFT_device_clock
#define ALC_SOFT_device_clock 1
typedef int64_t ALCint64SOFT;
typedef uint64_t ALCuint64SOFT;
#define ALC_DEVICE_CLOCK_SOFT 0x1600
#define ALC_DEVICE_LATENCY_SOFT 0x1601
#define ALC_DEVICE_CLOCK_LATENCY_SOFT 0x1602
#define AL_SAMPLE_OFFSET_CLOCK_SOFT 0x1202
#define AL_SEC_OFFSET_CLOCK_SOFT 0x1203
typedef void (ALC_APIENTRY*LPALCGETINTEGER64VSOFT)(ALCdevice *device, ALCenum pname, ALsizei size, ALCint64SOFT *values);
#ifdef AL_ALEXT_PROTOTYPES
ALC_API void ALC_APIENTRY alcGetInteger64vSOFT(ALCdevice *device, ALCenum pname, ALsizei size, ALCint64SOFT *values);
#endif
#endif
#ifdef __cplusplus
}
#endif
@@ -345,7 +345,7 @@ typedef struct {
/* Driving Presets */
#define EFX_REVERB_PRESET_DRIVING_COMMENTATOR \
{ 1.0000f, 0.0000f, 0.3162f, 0.5623f, 0.5012f, 2.4200f, 0.8800f, 0.6800f, 0.1995f, 0.0930f, { 0.0000f, 0.0000f, 0.0000f }, 0.2512f, 0.0170f, { 0.0000f, 0.0000f, 0.0000f }, 0.2500f, 1.0000f, 0.2500f, 0.0000f, 0.9886f, 5000.0000f, 250.0000f, 0.0000f, 0x1 }
{ 1.0000f, 0.0000f, 3.1623f, 0.5623f, 0.5012f, 2.4200f, 0.8800f, 0.6800f, 0.1995f, 0.0930f, { 0.0000f, 0.0000f, 0.0000f }, 0.2512f, 0.0170f, { 0.0000f, 0.0000f, 0.0000f }, 0.2500f, 1.0000f, 0.2500f, 0.0000f, 0.9886f, 5000.0000f, 250.0000f, 0.0000f, 0x1 }
#define EFX_REVERB_PRESET_DRIVING_PITGARAGE \
{ 0.4287f, 0.5900f, 0.3162f, 0.7079f, 0.5623f, 1.7200f, 0.9300f, 0.8700f, 0.5623f, 0.0000f, { 0.0000f, 0.0000f, 0.0000f }, 1.2589f, 0.0160f, { 0.0000f, 0.0000f, 0.0000f }, 0.2500f, 0.1100f, 0.2500f, 0.0000f, 0.9943f, 5000.0000f, 250.0000f, 0.0000f, 0x0 }
+187
View File
@@ -0,0 +1,187 @@
EXPORTS
alAuxiliaryEffectSlotf
alAuxiliaryEffectSlotfv
alAuxiliaryEffectSloti
alAuxiliaryEffectSlotiv
alBuffer3f
alBuffer3i
alBufferData
alBufferSamplesSOFT
alBufferSubDataSOFT
alBufferSubSamplesSOFT
alBufferf
alBufferfv
alBufferi
alBufferiv
alDeferUpdatesSOFT
alDeleteAuxiliaryEffectSlots
alDeleteBuffers
alDeleteEffects
alDeleteFilters
alDeleteFontsoundsSOFT
alDeletePresetsSOFT
alDeleteSoundfontsSOFT
alDeleteSources
alDisable
alDistanceModel
alDopplerFactor
alDopplerVelocity
alEffectf
alEffectfv
alEffecti
alEffectiv
alEnable
alFilterf
alFilterfv
alFilteri
alFilteriv
alFontsound2iSOFT
alFontsoundModulatoriSOFT
alFontsoundiSOFT
alFontsoundivSOFT
alGenAuxiliaryEffectSlots
alGenBuffers
alGenEffects
alGenFilters
alGenFontsoundsSOFT
alGenPresetsSOFT
alGenSoundfontsSOFT
alGenSources
alGetAuxiliaryEffectSlotf
alGetAuxiliaryEffectSlotfv
alGetAuxiliaryEffectSloti
alGetAuxiliaryEffectSlotiv
alGetBoolean
alGetBooleanv
alGetBuffer3f
alGetBuffer3i
alGetBufferSamplesSOFT
alGetBufferf
alGetBufferfv
alGetBufferi
alGetBufferiv
alGetDouble
alGetDoublev
alGetEffectf
alGetEffectfv
alGetEffecti
alGetEffectiv
alGetEnumValue
alGetError
alGetFilterf
alGetFilterfv
alGetFilteri
alGetFilteriv
alGetFloat
alGetFloatv
alGetFontsoundModulatorivSOFT
alGetFontsoundivSOFT
alGetInteger
alGetInteger64SOFT
alGetInteger64vSOFT
alGetIntegerv
alGetListener3f
alGetListener3i
alGetListenerf
alGetListenerfv
alGetListeneri
alGetListeneriv
alGetPresetivSOFT
alGetProcAddress
alGetSoundfontivSOFT
alGetSource3dSOFT
alGetSource3f
alGetSource3i
alGetSource3i64SOFT
alGetSourcedSOFT
alGetSourcedvSOFT
alGetSourcef
alGetSourcefv
alGetSourcei
alGetSourcei64SOFT
alGetSourcei64vSOFT
alGetSourceiv
alGetString
alIsAuxiliaryEffectSlot
alIsBuffer
alIsBufferFormatSupportedSOFT
alIsEffect
alIsEnabled
alIsExtensionPresent
alIsFilter
alIsFontsoundSOFT
alIsPresetSOFT
alIsSoundfontSOFT
alIsSource
alListener3f
alListener3i
alListenerf
alListenerfv
alListeneri
alListeneriv
alLoadSoundfontSOFT
alMidiEventSOFT
alMidiGainSOFT
alMidiPauseSOFT
alMidiPlaySOFT
alMidiResetSOFT
alMidiSoundfontSOFT
alMidiSoundfontvSOFT
alMidiStopSOFT
alMidiSysExSOFT
alPresetFontsoundsSOFT
alPresetiSOFT
alPresetivSOFT
alProcessUpdatesSOFT
alSoundfontPresetsSOFT
alSource3dSOFT
alSource3f
alSource3i
alSource3i64SOFT
alSourcePause
alSourcePausev
alSourcePlay
alSourcePlayv
alSourceQueueBuffers
alSourceRewind
alSourceRewindv
alSourceStop
alSourceStopv
alSourceUnqueueBuffers
alSourcedSOFT
alSourcedvSOFT
alSourcef
alSourcefv
alSourcei
alSourcei64SOFT
alSourcei64vSOFT
alSourceiv
alSpeedOfSound
alcCaptureCloseDevice
alcCaptureOpenDevice
alcCaptureSamples
alcCaptureStart
alcCaptureStop
alcCloseDevice
alcCreateContext
alcDestroyContext
alcDevicePauseSOFT
alcDeviceResumeSOFT
alcGetContextsDevice
alcGetCurrentContext
alcGetEnumValue
alcGetError
alcGetInteger64vSOFT
alcGetIntegerv
alcGetProcAddress
alcGetString
alcGetThreadContext
alcIsExtensionPresent
alcIsRenderFormatSupportedSOFT
alcLoopbackOpenDeviceSOFT
alcMakeContextCurrent
alcOpenDevice
alcProcessContext
alcRenderSamplesSOFT
alcSetThreadContext
alcSuspendContext
Binary file not shown.
+31 -20
View File
@@ -3,37 +3,48 @@ RPCS3
[![Build Status](https://travis-ci.org/RPCS3/rpcs3.svg?branch=master)](https://travis-ci.org/RPCS3/rpcs3)
[![Build status](https://ci.appveyor.com/api/projects/status/411c4clmiohtx7eo/branch/master?svg=true)](https://ci.appveyor.com/project/rpcs3/rpcs3/branch/master)
[![Coverity Status](https://img.shields.io/coverity/scan/3960.svg)](https://scan.coverity.com/projects/3960)
[![Coverage Status](https://coveralls.io/repos/RPCS3/rpcs3/badge.svg)](https://coveralls.io/r/RPCS3/rpcs3)
The world's first free and open-source PlayStation 3 emulator/debugger, written in C++ for Windows and Linux.
An open-source PlayStation 3 emulator/debugger written in C++.
You can find some basic information on our [**website**](https://rpcs3.net/). Game info is being populated on the [**Wiki**](https://wiki.rpcs3.net/).
For discussion about this emulator, PS3 emulation, and game compatibility reports, please visit our [**forums**](https://forums.rpcs3.net) and our [**Discord server**](https://discord.me/RPCS3).
You can find some basic information in the [FAQ](https://github.com/RPCS3/rpcs3/wiki/FAQ). For discussion about this emulator and PS3 emulation please visit the [official forums](http://www.emunewz.net/forum/forumdisplay.php?fid=162).
[**Support Lead Developers Nekotekina and kd-11 on Patreon**](https://www.patreon.com/Nekotekina)
## Contributing
### Development
If you want to help the project but do not code, the best way to help out is to test games and make bug reports. See:
* [Quickstart](https://rpcs3.net/quickstart)
If you want to contribute please take a took at the [Coding Style](https://github.com/RPCS3/rpcs3/wiki/Coding-Style), [Roadmap](https://github.com/RPCS3/rpcs3/wiki/Roadmap) and [Developer Information](https://github.com/RPCS3/rpcs3/wiki/Developer-Information) pages. You should as well contact any of the developers in the forum in order to know about the current situation of the emulator.
If you want to contribute as a developer, please take a look at the following pages:
* [Coding Style](https://github.com/RPCS3/rpcs3/wiki/Coding-Style)
* [Developer Information](https://github.com/RPCS3/rpcs3/wiki/Developer-Information)
* [Roadmap](https://rpcs3.net/roadmap)
### Dependencies
You should also contact any of the developers in the forums or in the Discord server to learn more about the current state of the emulator.
__Windows__
* [Visual Studio 2015](https://www.visualstudio.com/en-us/downloads/download-visual-studio-vs.aspx)
* [Visual C++ Redistributable Packages for Visual Studio 2015](http://www.microsoft.com/en-us/download/details.aspx?id=48145)
* [Cmake 3.1.0+](http://www.cmake.org/download/) (optional, required only for LLVM build; add to PATH)
* [Python](https://www.python.org/downloads/) (optional, required only for LLVM build; add to PATH)
## Building
__Linux__
* GCC 5.1+ or Clang 3.5.0+
* Debian & Ubuntu: `sudo apt-get install libopenal-dev libwxgtk3.0-dev build-essential libglew-dev`
* Arch: `sudo pacman -S glew openal wxgtk cmake llvm`
See [BUILDING.md](BUILDING.md) for more information about how to setup an environment to build RPCS3.
__Mac OSX__
* Xcode 6+ (tested with Xcode 6.4)
* Install with Homebrew: `brew install glew wxwidgets` (add `llvm36` to that list if you want to build with ppu jit)
* Remove '-framework QuickTime' from '_ldflags' in /usr/local/bin/wx-config
## Running
Check our friendly [quickstart](https://rpcs3.net/quickstart) guide to make sure your computer meets the minimum system requirements to run RPCS3.
### Building
Don't forget to have your graphics driver up to date and to install the [Visual C++ Redistributable Packages for Visual Studio 2017](https://go.microsoft.com/fwlink/?LinkId=746572) if you are a Windows user.
To initialize the repository don't forget to execute `git submodule update --init` to pull the wxWidgets source.
* __Windows__:
Open the *.SLN* file, and press *Build* > *Clean Solution*, then *Build Solution*. *Rebuild* may not work correctly.
* __Linux & Mac OSX__:
If you want to build with LLVM, then LLVM 3.6.2 is required.
`cd rpcs3 && cmake CMakeLists.txt && make && cd ../` then run with `cd bin && ./rpcs3`.
If you are on OSX and want to build with llvm don't forget to add `-DLLVM_DIR=/usr/local/opt/llvm36/lib/llvm-3.6/share/llvm/cmake` (or wherever llvm brew was installed) to cmake invocation.
When using GDB, configure it to ignore SIGSEGV signal (`handle SIGSEGV nostop noprint`).
## License
Most files are licensed under the terms of GNU GPLv2 License; see LICENSE file for details. Some files may be licensed differently; check appropriate file headers for details.
### Support
* [Donate by PayPal](https://www.paypal.com/cgi-bin/webscr?cmd=_s-xclick&hosted_button_id=MPJ3S9XQXCE3G)
+696
View File
@@ -0,0 +1,696 @@
#pragma once
#if defined(__GNUG__)
template<typename T, typename T2> inline std::enable_if_t<IS_INTEGRAL(T), T> sync_val_compare_and_swap(volatile T* dest, T2 comp, T2 exch)
{
return __sync_val_compare_and_swap(dest, comp, exch);
}
template<typename T, typename T2> inline std::enable_if_t<IS_INTEGRAL(T), bool> sync_bool_compare_and_swap(volatile T* dest, T2 comp, T2 exch)
{
return __sync_bool_compare_and_swap(dest, comp, exch);
}
template<typename T, typename T2> inline std::enable_if_t<IS_INTEGRAL(T), T> sync_lock_test_and_set(volatile T* dest, T2 value)
{
return __sync_lock_test_and_set(dest, value);
}
template<typename T, typename T2> inline std::enable_if_t<IS_INTEGRAL(T), T> sync_fetch_and_add(volatile T* dest, T2 value)
{
return __sync_fetch_and_add(dest, value);
}
template<typename T, typename T2> inline std::enable_if_t<IS_INTEGRAL(T), T> sync_fetch_and_sub(volatile T* dest, T2 value)
{
return __sync_fetch_and_sub(dest, value);
}
template<typename T, typename T2> inline std::enable_if_t<IS_INTEGRAL(T), T> sync_fetch_and_or(volatile T* dest, T2 value)
{
return __sync_fetch_and_or(dest, value);
}
template<typename T, typename T2> inline std::enable_if_t<IS_INTEGRAL(T), T> sync_fetch_and_and(volatile T* dest, T2 value)
{
return __sync_fetch_and_and(dest, value);
}
template<typename T, typename T2> inline std::enable_if_t<IS_INTEGRAL(T), T> sync_fetch_and_xor(volatile T* dest, T2 value)
{
return __sync_fetch_and_xor(dest, value);
}
#elif defined(_MSC_VER)
// atomic compare and swap functions
inline u8 sync_val_compare_and_swap(volatile u8* dest, u8 comp, u8 exch)
{
return _InterlockedCompareExchange8((volatile char*)dest, exch, comp);
}
inline u16 sync_val_compare_and_swap(volatile u16* dest, u16 comp, u16 exch)
{
return _InterlockedCompareExchange16((volatile short*)dest, exch, comp);
}
inline u32 sync_val_compare_and_swap(volatile u32* dest, u32 comp, u32 exch)
{
return _InterlockedCompareExchange((volatile long*)dest, exch, comp);
}
inline u64 sync_val_compare_and_swap(volatile u64* dest, u64 comp, u64 exch)
{
return _InterlockedCompareExchange64((volatile long long*)dest, exch, comp);
}
inline u128 sync_val_compare_and_swap(volatile u128* dest, u128 comp, u128 exch)
{
_InterlockedCompareExchange128((volatile long long*)dest, exch.hi, exch.lo, (long long*)&comp);
return comp;
}
inline bool sync_bool_compare_and_swap(volatile u8* dest, u8 comp, u8 exch)
{
return (u8)_InterlockedCompareExchange8((volatile char*)dest, exch, comp) == comp;
}
inline bool sync_bool_compare_and_swap(volatile u16* dest, u16 comp, u16 exch)
{
return (u16)_InterlockedCompareExchange16((volatile short*)dest, exch, comp) == comp;
}
inline bool sync_bool_compare_and_swap(volatile u32* dest, u32 comp, u32 exch)
{
return (u32)_InterlockedCompareExchange((volatile long*)dest, exch, comp) == comp;
}
inline bool sync_bool_compare_and_swap(volatile u64* dest, u64 comp, u64 exch)
{
return (u64)_InterlockedCompareExchange64((volatile long long*)dest, exch, comp) == comp;
}
inline bool sync_bool_compare_and_swap(volatile u128* dest, u128 comp, u128 exch)
{
return _InterlockedCompareExchange128((volatile long long*)dest, exch.hi, exch.lo, (long long*)&comp) != 0;
}
// atomic exchange functions
inline u8 sync_lock_test_and_set(volatile u8* dest, u8 value)
{
return _InterlockedExchange8((volatile char*)dest, value);
}
inline u16 sync_lock_test_and_set(volatile u16* dest, u16 value)
{
return _InterlockedExchange16((volatile short*)dest, value);
}
inline u32 sync_lock_test_and_set(volatile u32* dest, u32 value)
{
return _InterlockedExchange((volatile long*)dest, value);
}
inline u64 sync_lock_test_and_set(volatile u64* dest, u64 value)
{
return _InterlockedExchange64((volatile long long*)dest, value);
}
inline u128 sync_lock_test_and_set(volatile u128* dest, u128 value)
{
while (true)
{
u128 old;
old.lo = dest->lo;
old.hi = dest->hi;
if (sync_bool_compare_and_swap(dest, old, value)) return old;
}
}
// atomic add functions
inline u8 sync_fetch_and_add(volatile u8* dest, u8 value)
{
return _InterlockedExchangeAdd8((volatile char*)dest, value);
}
inline u16 sync_fetch_and_add(volatile u16* dest, u16 value)
{
return _InterlockedExchangeAdd16((volatile short*)dest, value);
}
inline u32 sync_fetch_and_add(volatile u32* dest, u32 value)
{
return _InterlockedExchangeAdd((volatile long*)dest, value);
}
inline u64 sync_fetch_and_add(volatile u64* dest, u64 value)
{
return _InterlockedExchangeAdd64((volatile long long*)dest, value);
}
inline u128 sync_fetch_and_add(volatile u128* dest, u128 value)
{
while (true)
{
u128 old;
old.lo = dest->lo;
old.hi = dest->hi;
if (sync_bool_compare_and_swap(dest, old, old + value)) return old;
}
}
// atomic sub functions
inline u8 sync_fetch_and_sub(volatile u8* dest, u8 value)
{
return _InterlockedExchangeAdd8((volatile char*)dest, -(char)value);
}
inline u16 sync_fetch_and_sub(volatile u16* dest, u16 value)
{
return _InterlockedExchangeAdd16((volatile short*)dest, -(short)value);
}
inline u32 sync_fetch_and_sub(volatile u32* dest, u32 value)
{
return _InterlockedExchangeAdd((volatile long*)dest, -(long)value);
}
inline u64 sync_fetch_and_sub(volatile u64* dest, u64 value)
{
return _InterlockedExchangeAdd64((volatile long long*)dest, -(long long)value);
}
inline u128 sync_fetch_and_sub(volatile u128* dest, u128 value)
{
while (true)
{
u128 old;
old.lo = dest->lo;
old.hi = dest->hi;
if (sync_bool_compare_and_swap(dest, old, old - value)) return old;
}
}
// atomic `bitwise or` functions
inline u8 sync_fetch_and_or(volatile u8* dest, u8 value)
{
return _InterlockedOr8((volatile char*)dest, value);
}
inline u16 sync_fetch_and_or(volatile u16* dest, u16 value)
{
return _InterlockedOr16((volatile short*)dest, value);
}
inline u32 sync_fetch_and_or(volatile u32* dest, u32 value)
{
return _InterlockedOr((volatile long*)dest, value);
}
inline u64 sync_fetch_and_or(volatile u64* dest, u64 value)
{
return _InterlockedOr64((volatile long long*)dest, value);
}
inline u128 sync_fetch_and_or(volatile u128* dest, u128 value)
{
while (true)
{
u128 old;
old.lo = dest->lo;
old.hi = dest->hi;
if (sync_bool_compare_and_swap(dest, old, old | value)) return old;
}
}
// atomic `bitwise and` functions
inline u8 sync_fetch_and_and(volatile u8* dest, u8 value)
{
return _InterlockedAnd8((volatile char*)dest, value);
}
inline u16 sync_fetch_and_and(volatile u16* dest, u16 value)
{
return _InterlockedAnd16((volatile short*)dest, value);
}
inline u32 sync_fetch_and_and(volatile u32* dest, u32 value)
{
return _InterlockedAnd((volatile long*)dest, value);
}
inline u64 sync_fetch_and_and(volatile u64* dest, u64 value)
{
return _InterlockedAnd64((volatile long long*)dest, value);
}
inline u128 sync_fetch_and_and(volatile u128* dest, u128 value)
{
while (true)
{
u128 old;
old.lo = dest->lo;
old.hi = dest->hi;
if (sync_bool_compare_and_swap(dest, old, old & value)) return old;
}
}
// atomic `bitwise xor` functions
inline u8 sync_fetch_and_xor(volatile u8* dest, u8 value)
{
return _InterlockedXor8((volatile char*)dest, value);
}
inline u16 sync_fetch_and_xor(volatile u16* dest, u16 value)
{
return _InterlockedXor16((volatile short*)dest, value);
}
inline u32 sync_fetch_and_xor(volatile u32* dest, u32 value)
{
return _InterlockedXor((volatile long*)dest, value);
}
inline u64 sync_fetch_and_xor(volatile u64* dest, u64 value)
{
return _InterlockedXor64((volatile long long*)dest, value);
}
inline u128 sync_fetch_and_xor(volatile u128* dest, u128 value)
{
while (true)
{
u128 old;
old.lo = dest->lo;
old.hi = dest->hi;
if (sync_bool_compare_and_swap(dest, old, old ^ value)) return old;
}
}
#endif /* _MSC_VER */
template<typename T, std::size_t Size = sizeof(T)> struct atomic_storage
{
static_assert(!Size, "Invalid atomic type");
};
template<typename T> struct atomic_storage<T, 1>
{
using type = u8;
};
template<typename T> struct atomic_storage<T, 2>
{
using type = u16;
};
template<typename T> struct atomic_storage<T, 4>
{
using type = u32;
};
template<typename T> struct atomic_storage<T, 8>
{
using type = u64;
};
template<typename T> struct atomic_storage<T, 16>
{
using type = u128;
};
template<typename T> using atomic_storage_t = typename atomic_storage<T>::type;
// atomic result wrapper; implements special behaviour for void result type
template<typename T, typename RT, typename VT> struct atomic_op_result_t
{
RT result;
template<typename... Args> atomic_op_result_t(T func, VT& var, Args&&... args)
: result(std::move(func(var, std::forward<Args>(args)...)))
{
}
RT move()
{
return std::move(result);
}
};
// void specialization: result is the initial value of the first arg
template<typename T, typename VT> struct atomic_op_result_t<T, void, VT>
{
VT result;
template<typename... Args> atomic_op_result_t(T func, VT& var, Args&&... args)
: result(var)
{
func(var, std::forward<Args>(args)...);
}
VT move()
{
return std::move(result);
}
};
// member function specialization
template<typename CT, typename... FArgs, typename RT, typename VT> struct atomic_op_result_t<RT(CT::*)(FArgs...), RT, VT>
{
RT result;
template<typename... Args> atomic_op_result_t(RT(CT::*func)(FArgs...), VT& var, Args&&... args)
: result(std::move((var.*func)(std::forward<Args>(args)...)))
{
}
RT move()
{
return std::move(result);
}
};
// member function void specialization
template<typename CT, typename... FArgs, typename VT> struct atomic_op_result_t<void(CT::*)(FArgs...), void, VT>
{
VT result;
template<typename... Args> atomic_op_result_t(void(CT::*func)(FArgs...), VT& var, Args&&... args)
: result(var)
{
(var.*func)(std::forward<Args>(args)...);
}
VT move()
{
return std::move(result);
}
};
// Atomic type with lock-free and standard layout guarantees (and appropriate limitations)
template<typename T> class atomic_t
{
using type = std::remove_cv_t<T>;
using stype = atomic_storage_t<type>;
using storage = atomic_storage<type>;
static_assert(alignof(type) <= alignof(stype), "atomic_t<> error: unexpected alignment");
stype m_data;
template<typename T2> static inline void write_relaxed(volatile T2& data, const T2& value)
{
data = value;
}
static inline void write_relaxed(volatile u128& data, const u128& value)
{
sync_lock_test_and_set(&data, value);
}
template<typename T2> static inline T2 read_relaxed(const volatile T2& data)
{
return data;
}
static inline u128 read_relaxed(const volatile u128& value)
{
return sync_val_compare_and_swap(const_cast<volatile u128*>(&value), u128{0}, u128{0});
}
public:
static inline const stype to_subtype(const type& value)
{
return reinterpret_cast<const stype&>(value);
}
static inline const type from_subtype(const stype value)
{
return reinterpret_cast<const type&>(value);
}
atomic_t() = default;
atomic_t(const atomic_t&) = delete;
atomic_t(type value)
: m_data(to_subtype(value))
{
}
atomic_t& operator =(const atomic_t&) = delete;
atomic_t& operator =(type value)
{
return write_relaxed(m_data, to_subtype(value)), *this;
}
operator type() const volatile
{
return from_subtype(read_relaxed(m_data));
}
// Unsafe direct access
stype* raw_data()
{
return reinterpret_cast<stype*>(&m_data);
}
// Unsafe direct access
type& raw()
{
return reinterpret_cast<type&>(m_data);
}
// Atomically compare data with cmp, replace with exch if equal, return previous data value anyway
type compare_and_swap(const type& cmp, const type& exch) volatile
{
return from_subtype(sync_val_compare_and_swap(&m_data, to_subtype(cmp), to_subtype(exch)));
}
// Atomically compare data with cmp, replace with exch if equal, return true if data was replaced
bool compare_and_swap_test(const type& cmp, const type& exch) volatile
{
return sync_bool_compare_and_swap(&m_data, to_subtype(cmp), to_subtype(exch));
}
// Atomically replace data with exch, return previous data value
type exchange(const type& exch) volatile
{
return from_subtype(sync_lock_test_and_set(&m_data, to_subtype(exch)));
}
// Atomically read data, possibly without memory barrier (not for 128 bit)
type load() const volatile
{
return from_subtype(read_relaxed(m_data));
}
// Atomically write data, possibly without memory barrier (not for 128 bit)
void store(const type& value) volatile
{
write_relaxed(m_data, to_subtype(value));
}
// Perform an atomic operation on data (func is either pointer to member function or callable object with a T& first arg);
// Returns the result of the callable object call or previous (old) value of the atomic variable if the return type is void
template<typename F, typename... Args, typename RT = std::result_of_t<F(T&, Args...)>> auto atomic_op(F func, Args&&... args) volatile -> decltype(atomic_op_result_t<F, RT, T>::result)
{
while (true)
{
// Read the old value from memory
const stype old = read_relaxed(m_data);
// Copy the old value
stype _new = old;
// Call atomic op for the local copy of the old value and save the return value of the function
atomic_op_result_t<F, RT, T> result(func, reinterpret_cast<type&>(_new), args...);
// Atomically compare value with `old`, replace with `_new` and return on success
if (sync_bool_compare_and_swap(&m_data, old, _new)) return result.move();
}
}
// Atomic bitwise OR, returns previous data
type _or(const type& right) volatile
{
return from_subtype(sync_fetch_and_or(&m_data, to_subtype(right)));
}
// Atomic bitwise AND, returns previous data
type _and(const type& right) volatile
{
return from_subtype(sync_fetch_and_and(&m_data, to_subtype(right)));
}
// Atomic bitwise AND NOT (inverts right argument), returns previous data
type _and_not(const type& right) volatile
{
return from_subtype(sync_fetch_and_and(&m_data, ~to_subtype(right)));
}
// Atomic bitwise XOR, returns previous data
type _xor(const type& right) volatile
{
return from_subtype(sync_fetch_and_xor(&m_data, to_subtype(right)));
}
type operator |=(const type& right) volatile
{
return from_subtype(sync_fetch_and_or(&m_data, to_subtype(right)) | to_subtype(right));
}
type operator &=(const type& right) volatile
{
return from_subtype(sync_fetch_and_and(&m_data, to_subtype(right)) & to_subtype(right));
}
type operator ^=(const type& right) volatile
{
return from_subtype(sync_fetch_and_xor(&m_data, to_subtype(right)) ^ to_subtype(right));
}
};
template<typename T> inline std::enable_if_t<IS_INTEGRAL(T), T> operator ++(atomic_t<T>& left)
{
return left.from_subtype(sync_fetch_and_add(left.raw_data(), 1) + 1);
}
template<typename T> inline std::enable_if_t<IS_INTEGRAL(T), T> operator --(atomic_t<T>& left)
{
return left.from_subtype(sync_fetch_and_sub(left.raw_data(), 1) - 1);
}
template<typename T> inline std::enable_if_t<IS_INTEGRAL(T), T> operator ++(atomic_t<T>& left, int)
{
return left.from_subtype(sync_fetch_and_add(left.raw_data(), 1));
}
template<typename T> inline std::enable_if_t<IS_INTEGRAL(T), T> operator --(atomic_t<T>& left, int)
{
return left.from_subtype(sync_fetch_and_sub(left.raw_data(), 1));
}
template<typename T, typename T2> inline std::enable_if_t<IS_INTEGRAL(T) && std::is_convertible<T2, T>::value, T> operator +=(atomic_t<T>& left, const T2& right)
{
return left.from_subtype(sync_fetch_and_add(left.raw_data(), right) + right);
}
template<typename T, typename T2> inline std::enable_if_t<IS_INTEGRAL(T) && std::is_convertible<T2, T>::value, T> operator -=(atomic_t<T>& left, const T2& right)
{
return left.from_subtype(sync_fetch_and_sub(left.raw_data(), right) - right);
}
template<typename T> inline std::enable_if_t<IS_INTEGRAL(T), nse_t<T>> operator ++(atomic_t<nse_t<T>>& left)
{
return left.from_subtype(sync_fetch_and_add(left.raw_data(), 1) + 1);
}
template<typename T> inline std::enable_if_t<IS_INTEGRAL(T), nse_t<T>> operator --(atomic_t<nse_t<T>>& left)
{
return left.from_subtype(sync_fetch_and_sub(left.raw_data(), 1) - 1);
}
template<typename T> inline std::enable_if_t<IS_INTEGRAL(T), nse_t<T>> operator ++(atomic_t<nse_t<T>>& left, int)
{
return left.from_subtype(sync_fetch_and_add(left.raw_data(), 1));
}
template<typename T> inline std::enable_if_t<IS_INTEGRAL(T), nse_t<T>> operator --(atomic_t<nse_t<T>>& left, int)
{
return left.from_subtype(sync_fetch_and_sub(left.raw_data(), 1));
}
template<typename T, typename T2> inline std::enable_if_t<IS_INTEGRAL(T) && std::is_convertible<T2, T>::value, nse_t<T>> operator +=(atomic_t<nse_t<T>>& left, const T2& right)
{
return left.from_subtype(sync_fetch_and_add(left.raw_data(), right) + right);
}
template<typename T, typename T2> inline std::enable_if_t<IS_INTEGRAL(T) && std::is_convertible<T2, T>::value, nse_t<T>> operator -=(atomic_t<nse_t<T>>& left, const T2& right)
{
return left.from_subtype(sync_fetch_and_sub(left.raw_data(), right) - right);
}
template<typename T> inline std::enable_if_t<IS_INTEGRAL(T), se_t<T>> operator ++(atomic_t<se_t<T>>& left)
{
return left.atomic_op([](se_t<T>& value) -> se_t<T>
{
return ++value;
});
}
template<typename T> inline std::enable_if_t<IS_INTEGRAL(T), se_t<T>> operator --(atomic_t<se_t<T>>& left)
{
return left.atomic_op([](se_t<T>& value) -> se_t<T>
{
return --value;
});
}
template<typename T> inline std::enable_if_t<IS_INTEGRAL(T), se_t<T>> operator ++(atomic_t<se_t<T>>& left, int)
{
return left.atomic_op([](se_t<T>& value) -> se_t<T>
{
return value++;
});
}
template<typename T> inline std::enable_if_t<IS_INTEGRAL(T), se_t<T>> operator --(atomic_t<se_t<T>>& left, int)
{
return left.atomic_op([](se_t<T>& value) -> se_t<T>
{
return value--;
});
}
template<typename T, typename T2> inline std::enable_if_t<IS_INTEGRAL(T) && std::is_convertible<T2, T>::value, se_t<T>> operator +=(atomic_t<se_t<T>>& left, const T2& right)
{
return left.atomic_op([&](se_t<T>& value) -> se_t<T>
{
return value += right;
});
}
template<typename T, typename T2> inline std::enable_if_t<IS_INTEGRAL(T) && std::is_convertible<T2, T>::value, se_t<T>> operator -=(atomic_t<se_t<T>>& left, const T2& right)
{
return left.atomic_op([&](se_t<T>& value) -> se_t<T>
{
return value -= right;
});
}
// Atomic BE Type (for PS3 virtual memory)
template<typename T> using atomic_be_t = atomic_t<be_t<T>>;
// Atomic LE Type (for PSV virtual memory)
template<typename T> using atomic_le_t = atomic_t<le_t<T>>;
// Algorithm for std::atomic; similar to atomic_t::atomic_op()
template<typename T, typename F, typename... Args, typename RT = std::result_of_t<F(T&, Args...)>> auto atomic_op(std::atomic<T>& var, F func, Args&&... args) -> decltype(atomic_op_result_t<F, RT, T>::result)
{
auto old = var.load();
while (true)
{
auto _new = old;
atomic_op_result_t<F, RT, T> result(func, _new, args...);
if (var.compare_exchange_strong(old, _new)) return result.move();
}
}
-151
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@@ -1,151 +0,0 @@
#pragma once
#include "util/atomic.hpp"
#include <memory>
#include <cstddef>
// Unfinished. Only std::default_delete will work as expected.
template<typename T, typename D>
class atomic_ptr_base : D
{
protected:
atomic_t<T*> m_ptr;
constexpr atomic_ptr_base(T* ptr)
: m_ptr(ptr)
{
}
public:
~atomic_ptr_base()
{
if (m_ptr)
{
(*this)(m_ptr.load());
}
}
D& get_deleter()
{
return *this;
}
const D& get_deleter() const
{
return *this;
}
};
// Simple atomic pointer with unique ownership. Draft, unfinished.
template<typename T, typename D = std::default_delete<T>>
class atomic_ptr final : atomic_ptr_base<T, D>
{
using base = atomic_ptr_base<T, D>;
static_assert(sizeof(T*) == sizeof(base), "atomic_ptr<> error: invalid deleter (empty class expected)");
public:
constexpr atomic_ptr()
: base(nullptr)
{
}
constexpr atomic_ptr(std::nullptr_t)
: base(nullptr)
{
}
explicit atomic_ptr(T* ptr)
: base(ptr)
{
}
template<typename T2, typename = std::enable_if_t<std::is_convertible<T2, T>::value>>
atomic_ptr(std::unique_ptr<T2, D>&& ptr)
: base(ptr.release())
{
}
atomic_ptr& operator =(std::nullptr_t)
{
if (T* old = base::m_ptr.exchange(nullptr))
{
this->get_deleter()(old);
}
return *this;
}
template<typename T2, typename = std::enable_if_t<std::is_convertible<T2, T>::value>>
atomic_ptr& operator =(std::unique_ptr<T2, D>&& ptr)
{
if (T* old = base::m_ptr.exchange(ptr.release()))
{
this->get_deleter()(old);
}
return *this;
}
void swap(std::unique_ptr<T, D>& ptr)
{
ptr.reset(base::m_ptr.exchange(ptr.release()));
}
std::add_lvalue_reference_t<T> operator *() const
{
return *base::m_ptr;
}
T* operator ->() const
{
return base::m_ptr;
}
T* get() const
{
return base::m_ptr;
}
explicit operator bool() const
{
return base::m_ptr != nullptr;
}
T* release() const
{
return base::m_ptr.exchange(0);
}
void reset(T* ptr = nullptr)
{
if (T* old = base::m_ptr.exchange(ptr))
{
this->get_deleter()(old);
}
}
// Steal the pointer from `ptr`, convert old value to unique_ptr
std::unique_ptr<T, D> exchange(std::unique_ptr<T, D>&& ptr)
{
return std::unique_ptr<T, D>(base::m_ptr.exchange(ptr.release()));
}
// If pointer is null, steal it from `ptr`
bool test_and_swap(std::unique_ptr<T, D>&& ptr)
{
if (base::m_ptr.compare_and_swap_test(nullptr, ptr.get()))
{
ptr.release();
return true;
}
return false;
}
};
template<typename T, typename D>
class atomic_ptr<T[], D> final : atomic_ptr_base<T[], D>
{
// TODO
};
+123
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@@ -0,0 +1,123 @@
#include "stdafx.h"
#include "AutoPause.h"
#include "Utilities/Log.h"
#include "Utilities/File.h"
#include "Emu/System.h"
#include "Emu/state.h"
using namespace Debug;
std::unique_ptr<AutoPause> g_autopause;
AutoPause& AutoPause::getInstance(void)
{
if (!g_autopause)
{
g_autopause.reset(new AutoPause);
}
return *g_autopause;
}
//Still use binary format. Default Setting should be "disable all auto pause".
AutoPause::AutoPause(void)
{
m_pause_function.reserve(16);
m_pause_syscall.reserve(16);
initialized = false;
//Reload(false, false);
Reload();
}
//Notice: I would not allow to write the binary to file in this command.
AutoPause::~AutoPause(void)
{
initialized = false;
m_pause_function.clear();
m_pause_syscall.clear();
m_pause_function_enable = false;
m_pause_syscall_enable = false;
}
//Load Auto Pause Configuration from file "pause.bin"
//This would be able to create in a GUI window.
void AutoPause::Reload(void)
{
if (fs::is_file(fs::get_config_dir() + "pause.bin"))
{
m_pause_function.clear();
m_pause_function.reserve(16);
m_pause_syscall.clear();
m_pause_syscall.reserve(16);
fs::file list(fs::get_config_dir() + "pause.bin");
//System calls ID and Function calls ID are all u32 iirc.
u32 num;
size_t fmax = list.size();
size_t fcur = 0;
list.seek(0);
while (fcur <= fmax - sizeof(u32))
{
list.read(&num, sizeof(u32));
fcur += sizeof(u32);
if (num == 0xFFFFFFFF) break;
if (num < 1024)
{
//Less than 1024 - be regarded as a system call.
//emplace_back may not cause reductant move/copy operation.
m_pause_syscall.emplace_back(num);
LOG_WARNING(HLE, "Auto Pause: Find System Call ID 0x%x", num);
}
else
{
m_pause_function.emplace_back(num);
LOG_WARNING(HLE, "Auto Pause: Find Function Call ID 0x%x", num);
}
}
}
m_pause_syscall_enable = rpcs3::config.misc.debug.auto_pause_syscall.value();
m_pause_function_enable = rpcs3::config.misc.debug.auto_pause_func_call.value();
initialized = true;
}
void AutoPause::TryPause(u32 code)
{
if (code < 1024)
{
//Would first check Enable setting. Then the list length.
if ((!m_pause_syscall_enable)
|| (m_pause_syscall.size() <= 0))
{
return;
}
for (u32 i = 0; i < m_pause_syscall.size(); ++i)
{
if (code == m_pause_syscall[i])
{
Emu.Pause();
LOG_ERROR(HLE, "Auto Pause Triggered: System call 0x%x", code); // Used Error
}
}
}
else
{
//Well similiar.. Seperate the list caused by possible setting difference.
if ((!m_pause_function_enable)
|| (m_pause_function.size() <= 0))
{
return;
}
for (u32 i = 0; i < m_pause_function.size(); ++i)
{
if (code == m_pause_function[i])
{
Emu.Pause();
LOG_ERROR(HLE, "Auto Pause Triggered: Function call 0x%x", code); // Used Error
}
}
}
}
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#pragma once
//Regarded as a Debugger Enchantment
namespace Debug {
//To store the pause function/call id, and let those pause there.
//Would be with a GUI to configure those.
struct AutoPause
{
std::vector<u32> m_pause_syscall;
std::vector<u32> m_pause_function;
bool initialized;
bool m_pause_syscall_enable;
bool m_pause_function_enable;
AutoPause();
~AutoPause();
public:
static AutoPause& getInstance(void);
void Reload(void);
void TryPause(u32 code);
};
}
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+53 -197
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@@ -1,284 +1,140 @@
#pragma once
#include "types.h"
#include <limits>
template<typename T, uint N>
struct bf_base
// BitField access helper class (N bits from I position), intended to be put in union
template<typename T, u32 I, u32 N> class bf_t
{
using type = T;
using vtype = simple_t<type>;
using utype = typename std::make_unsigned<vtype>::type;
// Checks
static_assert(I < sizeof(T) * 8, "bf_t<> error: I out of bounds");
static_assert(N < sizeof(T) * 8, "bf_t<> error: N out of bounds");
static_assert(I + N <= sizeof(T) * 8, "bf_t<> error: values out of bounds");
// Datatype bitsize
static constexpr uint bitmax = sizeof(T) * 8; static_assert(N - 1 < bitmax, "bf_base<> error: N out of bounds");
// Field bitsize
static constexpr uint bitsize = N;
// Underlying data type
using type = typename std::remove_cv<T>::type;
// All ones mask
static constexpr utype mask1 = std::numeric_limits<utype>::max();
// Underlying value type (native endianness)
using vtype = typename to_ne<type>::type;
// Value mask
static constexpr utype vmask = mask1 >> (bitmax - bitsize);
// Mask of size N
constexpr static vtype s_mask = (static_cast<vtype>(1) << N) - 1;
protected:
// Underlying data member
type m_data;
};
// Bitfield accessor (N bits from I position, 0 is LSB)
template<typename T, uint I, uint N>
struct bf_t : bf_base<T, N>
{
using type = typename bf_t::type;
using vtype = typename bf_t::vtype;
using utype = typename bf_t::utype;
// Conversion operator helper (uses SFINAE)
template<typename T2, typename = void> struct converter {};
// Field offset
static constexpr uint bitpos = I; static_assert(bitpos + N <= bf_t::bitmax, "bf_t<> error: I out of bounds");
// Get bitmask of size N, at I pos
static constexpr utype data_mask()
{
return static_cast<utype>(static_cast<utype>(bf_t::mask1 >> (bf_t::bitmax - bf_t::bitsize)) << bitpos);
}
// Bitfield extraction helper
template<typename T2, typename = void>
struct extract_impl
{
static_assert(!sizeof(T2), "bf_t<> error: Invalid type");
};
template<typename T2>
struct extract_impl<T2, std::enable_if_t<std::is_unsigned<T2>::value>>
template<typename T2> struct converter<T2, std::enable_if_t<std::is_unsigned<T2>::value>>
{
// Load unsigned value
static constexpr T2 extract(const T& data)
static inline T2 convert(const type& data)
{
return static_cast<T2>((static_cast<utype>(data) >> bitpos) & bf_t::vmask);
return (data >> I) & s_mask;
}
};
template<typename T2>
struct extract_impl<T2, std::enable_if_t<std::is_signed<T2>::value>>
template<typename T2> struct converter<T2, std::enable_if_t<std::is_signed<T2>::value>>
{
// Load signed value (sign-extended)
static constexpr T2 extract(const T& data)
static inline T2 convert(const type& data)
{
return static_cast<T2>(static_cast<vtype>(static_cast<utype>(data) << (bf_t::bitmax - bitpos - N)) >> (bf_t::bitmax - N));
return data << (sizeof(T) * 8 - I - N) >> (sizeof(T) * 8 - N);
}
};
// Bitfield extraction
static constexpr vtype extract(const T& data)
public:
// Assignment operator (store bitfield value)
bf_t& operator =(vtype value)
{
return extract_impl<vtype>::extract(data);
m_data = (m_data & ~(s_mask << I)) | (value & s_mask) << I;
return *this;
}
// Bitfield insertion
static constexpr vtype insert(vtype value)
// Conversion operator (load bitfield value)
operator vtype() const
{
return static_cast<vtype>((value & bf_t::vmask) << bitpos);
return converter<vtype>::convert(m_data);
}
// Load bitfield value
constexpr operator vtype() const
// Get raw data with mask applied
type unshifted() const
{
return extract(this->m_data);
return (m_data & (s_mask << I));
}
// Load raw data with mask applied
constexpr T unshifted() const
{
return static_cast<T>(this->m_data & data_mask());
}
// Optimized bool conversion (must be removed if inappropriate)
explicit constexpr operator bool() const
// Optimized bool conversion
explicit operator bool() const
{
return unshifted() != 0;
}
// Store bitfield value
bf_t& operator =(vtype value)
{
this->m_data = static_cast<vtype>((this->m_data & ~data_mask()) | insert(value));
return *this;
}
// Postfix increment operator
vtype operator ++(int)
{
utype result = *this;
*this = static_cast<vtype>(result + 1);
vtype result = *this;
*this = result + 1;
return result;
}
// Prefix increment operator
bf_t& operator ++()
{
return *this = *this + 1;
}
// Postfix decrement operator
vtype operator --(int)
{
utype result = *this;
*this = static_cast<vtype>(result - 1);
vtype result = *this;
*this = result - 1;
return result;
}
// Prefix decrement operator
bf_t& operator --()
{
return *this = *this - 1;
}
// Addition assignment operator
bf_t& operator +=(vtype right)
{
return *this = *this + right;
}
// Subtraction assignment operator
bf_t& operator -=(vtype right)
{
return *this = *this - right;
}
// Multiplication assignment operator
bf_t& operator *=(vtype right)
{
return *this = *this * right;
}
// Bitwise AND assignment operator
bf_t& operator &=(vtype right)
{
this->m_data &= static_cast<vtype>((static_cast<utype>(right) & bf_t::vmask) << bitpos);
m_data &= (right & s_mask) << I;
return *this;
}
// Bitwise OR assignment operator
bf_t& operator |=(vtype right)
{
this->m_data |= static_cast<vtype>((static_cast<utype>(right) & bf_t::vmask) << bitpos);
m_data |= (right & s_mask) << I;
return *this;
}
// Bitwise XOR assignment operator
bf_t& operator ^=(vtype right)
{
this->m_data ^= static_cast<vtype>((static_cast<utype>(right) & bf_t::vmask) << bitpos);
m_data ^= (right & s_mask) << I;
return *this;
}
};
// Field pack (concatenated from left to right)
template<typename F = void, typename... Fields>
struct cf_t : bf_base<typename F::type, F::bitsize + cf_t<Fields...>::bitsize>
{
using type = typename cf_t::type;
using vtype = typename cf_t::vtype;
using utype = typename cf_t::utype;
template<typename T, u32 I, u32 N> using bf_be_t = bf_t<be_t<T>, I, N>;
// Get disjunction of all "data" masks of concatenated values
static constexpr vtype data_mask()
{
return static_cast<vtype>(F::data_mask() | cf_t<Fields...>::data_mask());
}
// Extract all bitfields and concatenate
static constexpr vtype extract(const type& data)
{
return static_cast<vtype>(static_cast<utype>(F::extract(data)) << cf_t<Fields...>::bitsize | cf_t<Fields...>::extract(data));
}
// Split bitfields and insert them
static constexpr vtype insert(vtype value)
{
return static_cast<vtype>(F::insert(value >> cf_t<Fields...>::bitsize) | cf_t<Fields...>::insert(value));
}
// Load value
constexpr operator vtype() const
{
return extract(this->m_data);
}
// Store value
cf_t& operator =(vtype value)
{
this->m_data = (this->m_data & ~data_mask()) | insert(value);
return *this;
}
};
// Empty field pack (recursion terminator)
template<>
struct cf_t<void>
{
static constexpr uint bitsize = 0;
static constexpr uint data_mask()
{
return 0;
}
template<typename T>
static constexpr auto extract(const T& data) -> decltype(+T())
{
return 0;
}
template<typename T>
static constexpr T insert(T value)
{
return 0;
}
};
// Fixed field (provides constant values in field pack)
template<typename T, T V, uint N>
struct ff_t : bf_base<T, N>
{
using type = typename ff_t::type;
using vtype = typename ff_t::vtype;
// Return constant value
static constexpr vtype extract(const type& data)
{
static_assert((V & ff_t::vmask) == V, "ff_t<> error: V out of bounds");
return V;
}
// Get value
operator vtype() const
{
return V;
}
};
template<typename T, uint I, uint N>
struct fmt_unveil<bf_t<T, I, N>, void>
{
using type = typename fmt_unveil<simple_t<T>>::type;
static inline auto get(const bf_t<T, I, N>& bf)
{
return fmt_unveil<type>::get(bf);
}
};
template<typename F, typename... Fields>
struct fmt_unveil<cf_t<F, Fields...>, void>
{
using type = typename fmt_unveil<simple_t<typename F::type>>::type;
static inline auto get(const cf_t<F, Fields...>& cf)
{
return fmt_unveil<type>::get(cf);
}
};
template<typename T, T V, uint N>
struct fmt_unveil<ff_t<T, V, N>, void>
{
using type = typename fmt_unveil<simple_t<T>>::type;
static inline auto get(const ff_t<T, V, N>& ff)
{
return fmt_unveil<type>::get(ff);
}
};
template<typename T, u32 I, u32 N> using bf_le_t = bf_t<le_t<T>, I, N>;
-243
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@@ -1,243 +0,0 @@
#pragma once
#include <Utilities/types.h>
#ifdef _WIN32
#include "windows.h"
#include "tlhelp32.h"
#else
#include "stdlib.h"
#include "sys/times.h"
#include "sys/types.h"
#include "unistd.h"
#endif
#ifdef __APPLE__
# include <mach/mach_init.h>
# include <mach/task.h>
# include <mach/vm_map.h>
#endif
#ifdef __linux__
# include <dirent.h>
#endif
#if defined(__DragonFly__) || defined(__FreeBSD__) || defined(__NetBSD__) || defined(__OpenBSD__)
# include <sys/sysctl.h>
# if defined(__DragonFly__) || defined(__FreeBSD__)
# include <sys/user.h>
# endif
# if defined(__NetBSD__)
# undef KERN_PROC
# define KERN_PROC KERN_PROC2
# define kinfo_proc kinfo_proc2
# endif
# if defined(__DragonFly__)
# define KP_NLWP(kp) (kp.kp_nthreads)
# elif defined(__FreeBSD__)
# define KP_NLWP(kp) (kp.ki_numthreads)
# elif defined(__NetBSD__)
# define KP_NLWP(kp) (kp.p_nlwps)
# endif
#endif
class CPUStats
{
#ifdef _WIN32
HANDLE m_self;
using time_type = ULARGE_INTEGER;
#else
using time_type = clock_t;
#endif
private:
s32 m_num_processors;
time_type m_last_cpu, m_sys_cpu, m_usr_cpu;
public:
CPUStats()
{
#ifdef _WIN32
SYSTEM_INFO sysInfo;
FILETIME ftime, fsys, fuser;
GetSystemInfo(&sysInfo);
m_num_processors = sysInfo.dwNumberOfProcessors;
GetSystemTimeAsFileTime(&ftime);
memcpy(&m_last_cpu, &ftime, sizeof(FILETIME));
m_self = GetCurrentProcess();
GetProcessTimes(m_self, &ftime, &ftime, &fsys, &fuser);
memcpy(&m_sys_cpu, &fsys, sizeof(FILETIME));
memcpy(&m_usr_cpu, &fuser, sizeof(FILETIME));
#else
struct tms timeSample;
m_last_cpu = times(&timeSample);
m_sys_cpu = timeSample.tms_stime;
m_usr_cpu = timeSample.tms_utime;
m_num_processors = sysconf(_SC_NPROCESSORS_ONLN);
#endif
}
double get_usage()
{
#ifdef _WIN32
FILETIME ftime, fsys, fusr;
ULARGE_INTEGER now, sys, usr;
GetSystemTimeAsFileTime(&ftime);
memcpy(&now, &ftime, sizeof(FILETIME));
GetProcessTimes(m_self, &ftime, &ftime, &fsys, &fusr);
memcpy(&sys, &fsys, sizeof(FILETIME));
memcpy(&usr, &fusr, sizeof(FILETIME));
double percent = double(sys.QuadPart - m_sys_cpu.QuadPart) + (usr.QuadPart - m_usr_cpu.QuadPart);
percent /= (now.QuadPart - m_last_cpu.QuadPart);
percent /= m_num_processors;
m_last_cpu = now;
m_usr_cpu = usr;
m_sys_cpu = sys;
return std::clamp(percent * 100, 0.0, 100.0);
#else
struct tms timeSample;
clock_t now;
double percent;
now = times(&timeSample);
if (now <= m_last_cpu || timeSample.tms_stime < m_sys_cpu || timeSample.tms_utime < m_usr_cpu)
{
// Overflow detection. Just skip this value.
percent = -1.0;
}
else
{
percent = (timeSample.tms_stime - m_sys_cpu) + (timeSample.tms_utime - m_usr_cpu);
percent /= (now - m_last_cpu);
percent /= m_num_processors;
percent *= 100;
}
m_last_cpu = now;
m_sys_cpu = timeSample.tms_stime;
m_usr_cpu = timeSample.tms_utime;
return percent;
#endif
}
static u32 get_thread_count()
{
#ifdef _WIN32
// first determine the id of the current process
DWORD const id = GetCurrentProcessId();
// then get a process list snapshot.
HANDLE const snapshot = CreateToolhelp32Snapshot(TH32CS_SNAPALL, 0);
// initialize the process entry structure.
PROCESSENTRY32 entry = {0};
entry.dwSize = sizeof(entry);
// get the first process info.
BOOL ret = true;
ret = Process32First(snapshot, &entry);
while (ret && entry.th32ProcessID != id)
{
ret = Process32Next(snapshot, &entry);
}
CloseHandle(snapshot);
return ret ? entry.cntThreads : 0;
#elif defined(__APPLE__)
const task_t task = mach_task_self();
mach_msg_type_number_t thread_count;
thread_act_array_t thread_list;
if (task_threads(task, &thread_list, &thread_count) != KERN_SUCCESS)
{
return 0;
}
vm_deallocate(task, reinterpret_cast<vm_address_t>(thread_list),
sizeof(thread_t) * thread_count);
return static_cast<u32>(thread_count);
#elif defined(__DragonFly__) || defined(__FreeBSD__) || defined(__NetBSD__)
int mib[] = {
CTL_KERN,
KERN_PROC,
KERN_PROC_PID,
getpid(),
#if defined(__NetBSD__)
sizeof(struct kinfo_proc),
1,
#endif
};
u_int miblen = std::size(mib);
struct kinfo_proc info;
size_t size = sizeof(info);
if (sysctl(mib, miblen, &info, &size, NULL, 0))
{
return 0;
}
return KP_NLWP(info);
#elif defined(__OpenBSD__)
int mib[] = {
CTL_KERN,
KERN_PROC,
KERN_PROC_PID | KERN_PROC_SHOW_THREADS,
getpid(),
sizeof(struct kinfo_proc),
0,
};
u_int miblen = std::size(mib);
// get number of structs
size_t size;
if (sysctl(mib, miblen, NULL, &size, NULL, 0))
{
return 0;
}
mib[5] = size / mib[4];
// populate array of structs
struct kinfo_proc info[mib[5]];
if (sysctl(mib, miblen, &info, &size, NULL, 0))
{
return 0;
}
// exclude empty members
u32 thread_count{0};
for (int i = 0; i < size / mib[4]; i++)
{
if (info[i].p_tid != -1)
++thread_count;
}
return thread_count;
#elif defined(__linux__)
u32 thread_count{0};
DIR* proc_dir = opendir("/proc/self/task");
if (proc_dir)
{
// proc available, iterate through tasks and count them
struct dirent* entry;
while ((entry = readdir(proc_dir)) != NULL)
{
if (entry->d_name[0] == '.')
continue;
++thread_count;
}
closedir(proc_dir);
}
return thread_count;
#else
// unimplemented
return 0;
#endif
}
};
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-341
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@@ -1,341 +0,0 @@
#include "stdafx.h"
#include "Config.h"
#include "yaml-cpp/yaml.h"
#include <typeinfo>
namespace cfg
{
_base::_base(type _type)
: m_type(_type)
{
if (_type != type::node)
{
fmt::throw_exception<std::logic_error>("Invalid root node" HERE);
}
}
_base::_base(type _type, node* owner, const std::string& name)
: m_type(_type)
{
for (const auto& pair : owner->m_nodes)
{
if (pair.first == name)
{
fmt::throw_exception<std::logic_error>("Node already exists: %s" HERE, name);
}
}
owner->m_nodes.emplace_back(name, this);
}
bool _base::from_string(const std::string&)
{
fmt::throw_exception<std::logic_error>("from_string() purecall" HERE);
}
bool _base::from_list(std::vector<std::string>&&)
{
fmt::throw_exception<std::logic_error>("from_list() purecall" HERE);
}
// Emit YAML
static void encode(YAML::Emitter& out, const class _base& rhs);
// Incrementally load config entries from YAML::Node.
// The config value is preserved if the corresponding YAML node doesn't exist.
static void decode(const YAML::Node& data, class _base& rhs);
}
std::vector<std::string> cfg::make_int_range(s64 min, s64 max)
{
return {std::to_string(min), std::to_string(max)};
}
bool cfg::try_to_int64(s64* out, const std::string& value, s64 min, s64 max)
{
// TODO: this could be rewritten without exceptions (but it should be as safe as possible and provide logs)
s64 result;
std::size_t pos;
try
{
result = std::stoll(value, &pos, 0 /* Auto-detect numeric base */);
}
catch (const std::exception& e)
{
if (out) LOG_ERROR(GENERAL, "cfg::try_to_int('%s'): exception: %s", value, e.what());
return false;
}
if (pos != value.size())
{
if (out) LOG_ERROR(GENERAL, "cfg::try_to_int('%s'): unexpected characters (pos=%zu)", value, pos);
return false;
}
if (result < min || result > max)
{
if (out) LOG_ERROR(GENERAL, "cfg::try_to_int('%s'): out of bounds (%lld..%lld)", value, min, max);
return false;
}
if (out) *out = result;
return true;
}
bool cfg::try_to_enum_value(u64* out, decltype(&fmt_class_string<int>::format) func, const std::string& value)
{
u64 max = -1;
for (u64 i = 0;; i++)
{
std::string var;
func(var, i);
if (var == value)
{
if (out) *out = i;
return true;
}
std::string hex;
fmt_class_string<u64>::format(hex, i);
if (var == hex)
{
break;
}
max = i;
}
try
{
std::size_t pos;
const auto val = std::stoull(value, &pos, 0);
if (pos != value.size())
{
if (out) LOG_ERROR(GENERAL, "cfg::try_to_enum_value('%s'): unexpected characters (pos=%zu)", value, pos);
return false;
}
if (val > max)
{
if (out) LOG_ERROR(GENERAL, "cfg::try_to_enum_value('%s'): out of bounds(0..%u)", value, max);
return false;
}
if (out) *out = val;
return true;
}
catch (const std::exception& e)
{
if (out) LOG_ERROR(GENERAL, "cfg::try_to_enum_value('%s'): invalid enum value: %s", value, e.what());
return false;
}
}
std::vector<std::string> cfg::try_to_enum_list(decltype(&fmt_class_string<int>::format) func)
{
std::vector<std::string> result;
for (u64 i = 0;; i++)
{
std::string var;
func(var, i);
std::string hex;
fmt_class_string<u64>::format(hex, i);
if (var == hex)
{
break;
}
result.emplace_back(std::move(var));
}
return result;
}
void cfg::encode(YAML::Emitter& out, const cfg::_base& rhs)
{
switch (rhs.get_type())
{
case type::node:
{
out << YAML::BeginMap;
for (const auto& np : static_cast<const node&>(rhs).get_nodes())
{
out << YAML::Key << np.first;
out << YAML::Value;
encode(out, *np.second);
}
out << YAML::EndMap;
return;
}
case type::set:
{
out << YAML::BeginSeq;
for (const auto& str : static_cast<const set_entry&>(rhs).get_set())
{
out << str;
}
out << YAML::EndSeq;
return;
}
case type::log:
{
out << YAML::BeginMap;
for (const auto& np : static_cast<const log_entry&>(rhs).get_map())
{
if (np.second == logs::level::notice) continue;
out << YAML::Key << np.first;
out << YAML::Value << fmt::format("%s", np.second);
}
out << YAML::EndMap;
return;
}
default:
{
out << rhs.to_string();
return;
}
}
}
void cfg::decode(const YAML::Node& data, cfg::_base& rhs)
{
switch (rhs.get_type())
{
case type::node:
{
if (data.IsScalar() || data.IsSequence())
{
return; // ???
}
for (const auto& pair : data)
{
if (!pair.first.IsScalar()) continue;
// Find the key among existing nodes
for (const auto& _pair : static_cast<node&>(rhs).get_nodes())
{
if (_pair.first == pair.first.Scalar())
{
decode(pair.second, *_pair.second);
}
}
}
break;
}
case type::set:
{
std::vector<std::string> values;
if (YAML::convert<decltype(values)>::decode(data, values))
{
rhs.from_list(std::move(values));
}
break;
}
case type::log:
{
if (data.IsScalar() || data.IsSequence())
{
return; // ???
}
std::map<std::string, logs::level> values;
for (const auto& pair : data)
{
if (!pair.first.IsScalar() || !pair.second.IsScalar()) continue;
u64 value;
if (cfg::try_to_enum_value(&value, &fmt_class_string<logs::level>::format, pair.second.Scalar()))
{
values.emplace(pair.first.Scalar(), static_cast<logs::level>(static_cast<int>(value)));
}
}
static_cast<log_entry&>(rhs).set_map(std::move(values));
break;
}
default:
{
std::string value;
if (YAML::convert<std::string>::decode(data, value))
{
rhs.from_string(value);
}
break; // ???
}
}
}
std::string cfg::node::to_string() const
{
YAML::Emitter out;
cfg::encode(out, *this);
return {out.c_str(), out.size()};
}
bool cfg::node::from_string(const std::string& value) try
{
cfg::decode(YAML::Load(value), *this);
return true;
}
catch (const std::exception& e)
{
LOG_FATAL(GENERAL, "%s thrown: %s", typeid(e).name(), e.what());
return false;
}
void cfg::node::from_default()
{
for (auto& node : m_nodes)
{
node.second->from_default();
}
}
void cfg::_bool::from_default()
{
m_value = def;
}
void cfg::string::from_default()
{
m_value = def;
}
void cfg::set_entry::from_default()
{
m_set = {};
}
void cfg::log_entry::set_map(std::map<std::string, logs::level>&& map)
{
logs::reset();
for (auto&& pair : (m_map = std::move(map)))
{
logs::set_level(pair.first, pair.second);
}
}
void cfg::log_entry::from_default()
{
set_map({});
}
-398
View File
@@ -1,398 +0,0 @@
#pragma once
#include "Utilities/types.h"
#include "Utilities/StrFmt.h"
#include "Utilities/Log.h"
#include <utility>
#include <string>
#include <vector>
#include <set>
#include <map>
namespace cfg
{
// Format min and max values
std::vector<std::string> make_int_range(s64 min, s64 max);
// Convert string to signed integer
bool try_to_int64(s64* out, const std::string& value, s64 min, s64 max);
// Internal hack
bool try_to_enum_value(u64* out, decltype(&fmt_class_string<int>::format) func, const std::string&);
// Internal hack
std::vector<std::string> try_to_enum_list(decltype(&fmt_class_string<int>::format) func);
// Config tree entry type.
enum class type : uint
{
node = 0, // cfg::node type
_bool, // cfg::_bool type
_enum, // cfg::_enum type
_int, // cfg::_int type
string, // cfg::string type
set, // cfg::set_entry type
log,
};
// Config tree entry abstract base class
class _base
{
const type m_type;
protected:
// Ownerless entry constructor
_base(type _type);
// Owned entry constructor
_base(type _type, class node* owner, const std::string& name);
public:
_base(const _base&) = delete;
_base& operator=(const _base&) = delete;
// Get type
type get_type() const { return m_type; }
// Reset defaults
virtual void from_default() = 0;
// Convert to string (optional)
virtual std::string to_string() const
{
return{};
}
// Try to convert from string (optional)
virtual bool from_string(const std::string&);
// Get string list (optional)
virtual std::vector<std::string> to_list() const
{
return{};
}
// Set multiple values. Implementation-specific, optional.
virtual bool from_list(std::vector<std::string>&&);
};
// Config tree node which contains another nodes
class node : public _base
{
std::vector<std::pair<std::string, _base*>> m_nodes;
friend class _base;
public:
// Root node constructor
node()
: _base(type::node)
{
}
// Registered node constructor
node(node* owner, const std::string& name)
: _base(type::node, owner, name)
{
}
// Get child nodes
const auto& get_nodes() const
{
return m_nodes;
}
// Serialize node
std::string to_string() const override;
// Deserialize node
bool from_string(const std::string& value) override;
// Set default values
void from_default() override;
};
class _bool final : public _base
{
bool m_value;
public:
bool def;
_bool(node* owner, const std::string& name, bool def = false)
: _base(type::_bool, owner, name)
, m_value(def)
, def(def)
{
}
explicit operator bool() const
{
return m_value;
}
const bool& get() const
{
return m_value;
}
void from_default() override;
std::string to_string() const override
{
return m_value ? "true" : "false";
}
bool from_string(const std::string& value) override
{
if (value == "false")
m_value = false;
else if (value == "true")
m_value = true;
else
return false;
return true;
}
void set(const bool& value)
{
m_value = value;
}
};
// Value node with fixed set of possible values, each maps to an enum value of type T.
template <typename T>
class _enum final : public _base
{
T m_value;
public:
const T def;
_enum(node* owner, const std::string& name, T value = {})
: _base(type::_enum, owner, name)
, m_value(value)
, def(value)
{
}
operator T() const
{
return m_value;
}
const T& get() const
{
return m_value;
}
void from_default() override
{
m_value = def;
}
std::string to_string() const override
{
std::string result;
fmt_class_string<T>::format(result, fmt_unveil<T>::get(m_value));
return result; // TODO: ???
}
bool from_string(const std::string& value) override
{
u64 result;
if (try_to_enum_value(&result, &fmt_class_string<T>::format, value))
{
// No narrowing check, it's hard to do right there
m_value = static_cast<T>(static_cast<std::underlying_type_t<T>>(result));
return true;
}
return false;
}
std::vector<std::string> to_list() const override
{
return try_to_enum_list(&fmt_class_string<T>::format);
}
};
// Signed 32/64-bit integer entry with custom Min/Max range.
template <s64 Min, s64 Max>
class _int final : public _base
{
static_assert(Min < Max, "Invalid cfg::_int range");
// Prefer 32 bit type if possible
using int_type = std::conditional_t<Min >= INT32_MIN && Max <= INT32_MAX, s32, s64>;
int_type m_value;
public:
int_type def;
// Expose range
static const s64 max = Max;
static const s64 min = Min;
_int(node* owner, const std::string& name, int_type def = std::min<int_type>(Max, std::max<int_type>(Min, 0)))
: _base(type::_int, owner, name)
, m_value(def)
, def(def)
{
}
operator int_type() const
{
return m_value;
}
const int_type& get() const
{
return m_value;
}
void from_default() override
{
m_value = def;
}
std::string to_string() const override
{
return std::to_string(m_value);
}
bool from_string(const std::string& value) override
{
s64 result;
if (try_to_int64(&result, value, Min, Max))
{
m_value = static_cast<int_type>(result);
return true;
}
return false;
}
void set(const s64& value)
{
m_value = static_cast<int_type>(value);
}
std::vector<std::string> to_list() const override
{
return make_int_range(Min, Max);
}
};
// Alias for 32 bit int
using int32 = _int<INT32_MIN, INT32_MAX>;
// Alias for 64 bit int
using int64 = _int<INT64_MIN, INT64_MAX>;
// Simple string entry with mutex
class string final : public _base
{
std::string m_value;
public:
std::string def;
string(node* owner, const std::string& name, const std::string& def = {})
: _base(type::string, owner, name)
, m_value(def)
, def(def)
{
}
operator std::string() const
{
return m_value;
}
const std::string& get() const
{
return m_value;
}
std::size_t size() const
{
return m_value.size();
}
void from_default() override;
std::string to_string() const override
{
return m_value;
}
bool from_string(const std::string& value) override
{
m_value = value;
return true;
}
};
// Simple set entry with mutex (TODO: template for various types)
class set_entry final : public _base
{
std::set<std::string> m_set;
public:
// Default value is empty list in current implementation
set_entry(node* owner, const std::string& name)
: _base(type::set, owner, name)
{
}
const std::set<std::string>& get_set() const
{
return m_set;
}
void set_set(std::set<std::string>&& set)
{
m_set = std::move(set);
}
void from_default() override;
std::vector<std::string> to_list() const override
{
return{ m_set.begin(), m_set.end() };
}
bool from_list(std::vector<std::string>&& list) override
{
m_set = { std::make_move_iterator(list.begin()), std::make_move_iterator(list.end()) };
return true;
}
};
class log_entry final : public _base
{
std::map<std::string, logs::level> m_map;
public:
log_entry(node* owner, const std::string& name)
: _base(type::log, owner, name)
{
}
const std::map<std::string, logs::level>& get_map() const
{
return m_map;
}
void set_map(std::map<std::string, logs::level>&& map);
void from_default() override;
};
}
+661 -1362
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File diff suppressed because it is too large Load Diff
+204 -415
View File
@@ -1,60 +1,29 @@
#pragma once
#include "types.h"
#include "bit_set.h"
namespace fom // file open mode
{
enum open_mode : u32
{
read = 1 << 0, // enable reading
write = 1 << 1, // enable writing
append = 1 << 2, // enable appending (always write to the end of file)
create = 1 << 3, // create file if it doesn't exist
trunc = 1 << 4, // clear opened file if it's not empty
excl = 1 << 5, // failure if the file already exists (used with `create`)
#include <memory>
#include <string>
#include <vector>
#include <algorithm>
rewrite = write | create | trunc,
};
};
namespace fs
{
#ifdef _WIN32
using native_handle = void*;
#else
using native_handle = int;
#endif
// File open mode flags
enum class open_mode : u32
{
read,
write,
append,
create,
trunc,
excl,
lock,
unread,
__bitset_enum_max
};
constexpr auto read = +open_mode::read; // Enable reading
constexpr auto write = +open_mode::write; // Enable writing
constexpr auto append = +open_mode::append; // Always append to the end of the file
constexpr auto create = +open_mode::create; // Create file if it doesn't exist
constexpr auto trunc = +open_mode::trunc; // Clear opened file if it's not empty
constexpr auto excl = +open_mode::excl; // Failure if the file already exists (used with `create`)
constexpr auto lock = +open_mode::lock; // Prevent opening the file more than once
constexpr auto unread = +open_mode::unread; // Aggressively prevent reading the opened file (do not use)
constexpr auto rewrite = open_mode::write + open_mode::create + open_mode::trunc;
// File seek mode
enum class seek_mode : u32
enum seek_mode : u32 // file seek mode
{
seek_set,
seek_cur,
seek_end,
};
constexpr auto seek_set = seek_mode::seek_set; // From beginning
constexpr auto seek_cur = seek_mode::seek_cur; // From current position
constexpr auto seek_end = seek_mode::seek_end; // From end
// File attributes (TODO)
struct stat_t
{
bool is_directory;
@@ -65,78 +34,7 @@ namespace fs
s64 ctime;
};
// Helper, layout is equal to iovec struct
struct iovec_clone
{
const void* iov_base;
std::size_t iov_len;
};
// File handle base
struct file_base
{
virtual ~file_base();
virtual stat_t stat();
virtual void sync();
virtual bool trunc(u64 length) = 0;
virtual u64 read(void* buffer, u64 size) = 0;
virtual u64 write(const void* buffer, u64 size) = 0;
virtual u64 seek(s64 offset, seek_mode whence) = 0;
virtual u64 size() = 0;
virtual native_handle get_handle();
virtual u64 write_gather(const iovec_clone* buffers, u64 buf_count);
};
// Directory entry (TODO)
struct dir_entry : stat_t
{
std::string name;
};
// Directory handle base
struct dir_base
{
virtual ~dir_base();
virtual bool read(dir_entry&) = 0;
virtual void rewind() = 0;
};
// Device information
struct device_stat
{
u64 block_size;
u64 total_size;
u64 total_free; // Total size of free space
u64 avail_free; // Free space available to unprivileged user
};
// Virtual device
struct device_base
{
virtual ~device_base();
virtual bool stat(const std::string& path, stat_t& info) = 0;
virtual bool statfs(const std::string& path, device_stat& info) = 0;
virtual bool remove_dir(const std::string& path) = 0;
virtual bool create_dir(const std::string& path) = 0;
virtual bool rename(const std::string& from, const std::string& to) = 0;
virtual bool remove(const std::string& path) = 0;
virtual bool trunc(const std::string& path, u64 length) = 0;
virtual bool utime(const std::string& path, s64 atime, s64 mtime) = 0;
virtual std::unique_ptr<file_base> open(const std::string& path, bs_t<open_mode> mode) = 0;
virtual std::unique_ptr<dir_base> open_dir(const std::string& path) = 0;
};
// Get virtual device for specified path (nullptr for real path)
std::shared_ptr<device_base> get_virtual_device(const std::string& path);
// Set virtual device with specified name (nullptr for deletion)
std::shared_ptr<device_base> set_virtual_device(const std::string& root_name, const std::shared_ptr<device_base>&);
// Try to get parent directory (returns empty string on failure)
// Get parent directory for the path (returns empty string on failure)
std::string get_parent_dir(const std::string& path);
// Get file information
@@ -151,9 +49,6 @@ namespace fs
// Check whether the directory exists and is NOT a file
bool is_dir(const std::string& path);
// Get filesystem information
bool statfs(const std::string& path, device_stat& info);
// Delete empty directory
bool remove_dir(const std::string& path);
@@ -164,7 +59,7 @@ namespace fs
bool create_path(const std::string& path);
// Rename (move) file or directory
bool rename(const std::string& from, const std::string& to, bool overwrite);
bool rename(const std::string& from, const std::string& to);
// Copy file contents
bool copy_file(const std::string& from, const std::string& to, bool overwrite);
@@ -175,116 +70,79 @@ namespace fs
// Change file size (possibly appending zeros)
bool truncate_file(const std::string& path, u64 length);
// Set file access/modification time
bool utime(const std::string& path, s64 atime, s64 mtime);
class file final
{
std::unique_ptr<file_base> m_file;
using handle_type = std::intptr_t;
[[noreturn]] void xnull() const;
[[noreturn]] void xfail() const;
constexpr static handle_type null = -1;
handle_type m_fd = null;
friend class file_read_map;
friend class file_write_map;
public:
// Default constructor
file() = default;
// Open file with specified mode
explicit file(const std::string& path, bs_t<open_mode> mode = ::fs::read);
// Open memory for read
explicit file(const void* ptr, std::size_t size);
// Open file with specified args (forward to constructor)
template <typename... Args>
bool open(Args&&... args)
explicit file(const std::string& path, u32 mode = fom::read)
{
*this = fs::file(std::forward<Args>(args)...);
return m_file.operator bool();
open(path, mode);
}
file(file&& other)
: m_fd(other.m_fd)
{
other.m_fd = null;
}
file& operator =(file&& right)
{
std::swap(m_fd, right.m_fd);
return *this;
}
~file();
// Check whether the handle is valid (opened file)
bool is_opened() const
{
return m_fd != null;
}
// Check whether the handle is valid (opened file)
explicit operator bool() const
{
return m_file.operator bool();
return is_opened();
}
// Close the file explicitly
void close()
{
m_file.reset();
}
void reset(std::unique_ptr<file_base>&& ptr)
{
m_file = std::move(ptr);
}
std::unique_ptr<file_base> release()
{
return std::move(m_file);
}
// Open specified file with specified mode
bool open(const std::string& path, u32 mode = fom::read);
// Change file size (possibly appending zero bytes)
bool trunc(u64 length) const
{
if (!m_file) xnull();
return m_file->trunc(length);
}
bool trunc(u64 size) const;
// Get file information
stat_t stat() const
{
if (!m_file) xnull();
return m_file->stat();
}
bool stat(stat_t& info) const;
// Sync file buffers
void sync() const
{
if (!m_file) xnull();
return m_file->sync();
}
// Close the file explicitly (destructor automatically closes the file)
void close();
// Read the data from the file and return the amount of data written in buffer
u64 read(void* buffer, u64 count) const
{
if (!m_file) xnull();
return m_file->read(buffer, count);
}
u64 read(void* buffer, u64 count) const;
// Write the data to the file and return the amount of data actually written
u64 write(const void* buffer, u64 count) const
{
if (!m_file) xnull();
return m_file->write(buffer, count);
}
u64 write(const void* buffer, u64 count) const;
// Change current position, returns resulting position
u64 seek(s64 offset, seek_mode whence = seek_set) const
{
if (!m_file) xnull();
return m_file->seek(offset, whence);
}
// Move file pointer
u64 seek(s64 offset, seek_mode whence = seek_set) const;
// Get file size
u64 size() const
{
if (!m_file) xnull();
return m_file->size();
}
// Get current position
u64 pos() const
{
if (!m_file) xnull();
return m_file->seek(0, seek_cur);
}
u64 size() const;
// Write std::string unconditionally
const file& write(const std::string& str) const
{
if (write(str.data(), str.size()) != str.size()) xfail();
CHECK_ASSERTION(write(str.data(), str.size()) == str.size());
return *this;
}
@@ -292,7 +150,7 @@ namespace fs
template<typename T>
std::enable_if_t<std::is_pod<T>::value && !std::is_pointer<T>::value, const file&> write(const T& data) const
{
if (write(std::addressof(data), sizeof(T)) != sizeof(T)) xfail();
CHECK_ASSERTION(write(std::addressof(data), sizeof(T)) == sizeof(T));
return *this;
}
@@ -300,7 +158,7 @@ namespace fs
template<typename T>
std::enable_if_t<std::is_pod<T>::value && !std::is_pointer<T>::value, const file&> write(const std::vector<T>& vec) const
{
if (write(vec.data(), vec.size() * sizeof(T)) != vec.size() * sizeof(T)) xfail();
CHECK_ASSERTION(write(vec.data(), vec.size() * sizeof(T)) == vec.size() * sizeof(T));
return *this;
}
@@ -310,13 +168,6 @@ namespace fs
return read(&str[0], str.size()) == str.size();
}
// Read std::string
bool read(std::string& str, std::size_t size) const
{
str.resize(size);
return read(&str[0], size) == size;
}
// Read POD, sizeof(T) is used
template<typename T>
std::enable_if_t<std::is_pod<T>::value && !std::is_pointer<T>::value, bool> read(T& data) const
@@ -331,20 +182,12 @@ namespace fs
return read(vec.data(), sizeof(T) * vec.size()) == sizeof(T) * vec.size();
}
// Read POD std::vector
template<typename T>
std::enable_if_t<std::is_pod<T>::value && !std::is_pointer<T>::value, bool> read(std::vector<T>& vec, std::size_t size) const
{
vec.resize(size);
return read(vec.data(), sizeof(T) * size) == sizeof(T) * size;
}
// Read POD (experimental)
template<typename T>
std::enable_if_t<std::is_pod<T>::value && !std::is_pointer<T>::value, T> read() const
{
T result;
if (!read(result)) xfail();
CHECK_ASSERTION(read(result));
return result;
}
@@ -353,7 +196,7 @@ namespace fs
{
std::string result;
result.resize(size());
if (seek(0), !read(result)) xfail();
CHECK_ASSERTION(seek(0) != -1 && read(result));
return result;
}
@@ -363,84 +206,164 @@ namespace fs
{
std::vector<T> result;
result.resize(size() / sizeof(T));
if (seek(0), !read(result)) xfail();
CHECK_ASSERTION(seek(0) != -1 && read(result));
return result;
}
};
// Get native handle if available
native_handle get_handle() const;
// TODO
class file_read_map final
{
char* m_ptr = nullptr;
u64 m_size;
// Gathered write
u64 write_gather(const iovec_clone* buffers, u64 buf_count) const
public:
file_read_map() = default;
file_read_map(file_read_map&& right)
: m_ptr(right.m_ptr)
, m_size(right.m_size)
{
if (!m_file) xnull();
return m_file->write_gather(buffers, buf_count);
right.m_ptr = 0;
}
#ifdef _WIN32
// Windows-specific function
bool set_delete(bool autodelete = true) const;
#endif
file_read_map& operator =(file_read_map&& right)
{
std::swap(m_ptr, right.m_ptr);
std::swap(m_size, right.m_size);
return *this;
}
file_read_map(const file& f)
{
reset(f);
}
~file_read_map()
{
reset();
}
// Open file mapping
void reset(const file& f);
// Close file mapping
void reset();
// Get pointer
operator const char*() const
{
return m_ptr;
}
};
// TODO
class file_write_map final
{
char* m_ptr = nullptr;
u64 m_size;
public:
file_write_map() = default;
file_write_map(file_write_map&& right)
: m_ptr(right.m_ptr)
, m_size(right.m_size)
{
right.m_ptr = 0;
}
file_write_map& operator =(file_write_map&& right)
{
std::swap(m_ptr, right.m_ptr);
std::swap(m_size, right.m_size);
return *this;
}
file_write_map(const file& f)
{
reset(f);
}
~file_write_map()
{
reset();
}
// Open file mapping
void reset(const file& f);
// Close file mapping
void reset();
// Get pointer
operator char*() const
{
return m_ptr;
}
};
class dir final
{
std::unique_ptr<dir_base> m_dir;
[[noreturn]] void xnull() const;
std::unique_ptr<char[]> m_path;
std::intptr_t m_dd; // handle (aux)
public:
dir() = default;
// Open dir handle
explicit dir(const std::string& path)
explicit dir(const std::string& dirname)
{
open(path);
open(dirname);
}
// Open specified directory
bool open(const std::string& path);
dir(dir&& other)
: m_dd(other.m_dd)
, m_path(std::move(other.m_path))
{
}
dir& operator =(dir&& right)
{
std::swap(m_dd, right.m_dd);
std::swap(m_path, right.m_path);
return *this;
}
~dir();
// Check whether the handle is valid (opened directory)
bool is_opened() const
{
return m_path.operator bool();
}
// Check whether the handle is valid (opened directory)
explicit operator bool() const
{
return m_dir.operator bool();
return is_opened();
}
// Close the directory explicitly
void close()
{
m_dir.reset();
}
// Open specified directory
bool open(const std::string& dirname);
// Close the directory explicitly (destructor automatically closes the directory)
void close();
void reset(std::unique_ptr<dir_base>&& ptr)
{
m_dir = std::move(ptr);
}
// Get next directory entry (UTF-8 name and file stat)
bool read(std::string& name, stat_t& info);
std::unique_ptr<dir_base> release()
{
return std::move(m_dir);
}
bool first(std::string& name, stat_t& info);
// Get next directory entry
bool read(dir_entry& out) const
struct entry
{
if (!m_dir) xnull();
return m_dir->read(out);
}
// Reset to the beginning
void rewind() const
{
if (!m_dir) xnull();
return m_dir->rewind();
}
std::string name;
stat_t info;
};
class iterator
{
const dir* m_parent;
dir_entry m_entry;
entry m_entry;
dir* m_parent;
public:
enum class mode
@@ -449,7 +372,7 @@ namespace fs
from_current
};
iterator(const dir* parent, mode mode_ = mode::from_first)
iterator(dir* parent, mode mode_ = mode::from_first)
: m_parent(parent)
{
if (!m_parent)
@@ -459,23 +382,27 @@ namespace fs
if (mode_ == mode::from_first)
{
m_parent->rewind();
m_parent->first(m_entry.name, m_entry.info);
}
else
{
m_parent->read(m_entry.name, m_entry.info);
}
if (!m_parent->read(m_entry))
if (m_entry.name.empty())
{
m_parent = nullptr;
}
}
dir_entry& operator *()
entry& operator *()
{
return m_entry;
}
iterator& operator++()
{
*this = {m_parent, mode::from_current};
*this = { m_parent, mode::from_current };
return *this;
}
@@ -485,158 +412,20 @@ namespace fs
}
};
iterator begin() const
iterator begin()
{
return {m_dir ? this : nullptr};
return{ this };
}
iterator end() const
iterator end()
{
return {nullptr};
return{ nullptr };
}
};
// Get configuration directory
const std::string& get_config_dir();
// Get common cache directory
const std::string& get_cache_dir();
// Delete directory and all its contents recursively
bool remove_all(const std::string& path, bool remove_root = true);
// Get size of all files recursively
u64 get_dir_size(const std::string& path);
enum class error : uint
{
ok = 0,
inval,
noent,
exist,
acces,
notempty,
};
// Error code returned
extern thread_local error g_tls_error;
template <typename T>
struct container_stream final : file_base
{
// T can be a reference, but this is not recommended
using value_type = typename std::remove_reference_t<T>::value_type;
T obj;
u64 pos;
container_stream(T&& obj)
: obj(std::forward<T>(obj))
, pos(0)
{
}
~container_stream() override
{
}
bool trunc(u64 length) override
{
obj.resize(length);
return true;
}
u64 read(void* buffer, u64 size) override
{
const u64 end = obj.size();
if (pos < end)
{
// Get readable size
if (const u64 max = std::min<u64>(size, end - pos))
{
std::copy(obj.cbegin() + pos, obj.cbegin() + pos + max, static_cast<value_type*>(buffer));
pos = pos + max;
return max;
}
}
return 0;
}
u64 write(const void* buffer, u64 size) override
{
const u64 old_size = obj.size();
if (old_size + size < old_size)
{
fmt::raw_error("fs::container_stream<>::write(): overflow");
}
if (pos > old_size)
{
// Fill gap if necessary (default-initialized)
obj.resize(pos);
}
const auto src = static_cast<const value_type*>(buffer);
// Overwrite existing part
const u64 overlap = std::min<u64>(obj.size() - pos, size);
std::copy(src, src + overlap, obj.begin() + pos);
// Append new data
obj.insert(obj.end(), src + overlap, src + size);
pos += size;
return size;
}
u64 seek(s64 offset, seek_mode whence) override
{
const s64 new_pos =
whence == fs::seek_set ? offset :
whence == fs::seek_cur ? offset + pos :
whence == fs::seek_end ? offset + size() :
(fmt::raw_error("fs::container_stream<>::seek(): invalid whence"), 0);
if (new_pos < 0)
{
fs::g_tls_error = fs::error::inval;
return -1;
}
pos = new_pos;
return pos;
}
u64 size() override
{
return obj.size();
}
};
template <typename T>
file make_stream(T&& container = T{})
{
file result;
result.reset(std::make_unique<container_stream<T>>(std::forward<T>(container)));
return result;
}
template <typename... Args>
bool write_file(const std::string& path, bs_t<fs::open_mode> mode, const Args&... args)
{
if (fs::file f{path, mode})
{
// Write args sequentially
(f.write(args), ...);
return true;
}
return false;
}
file make_gather(std::vector<file>);
// Get executable directory
const std::string& get_executable_dir();
}
-853
View File
@@ -1,853 +0,0 @@
#include "stdafx.h"
#ifdef WITH_GDB_DEBUGGER
#include "GDBDebugServer.h"
#include "Log.h"
#include <algorithm>
#include "Emu/Memory/vm.h"
#include "Emu/System.h"
#include "Emu/IdManager.h"
#include "Emu/CPU/CPUThread.h"
#include "Emu/Cell/PPUThread.h"
#include "Emu/Cell/RawSPUThread.h"
#include "Emu/Cell/SPUThread.h"
#ifndef _WIN32
#include "fcntl.h"
#endif
extern void ppu_set_breakpoint(u32 addr);
extern void ppu_remove_breakpoint(u32 addr);
LOG_CHANNEL(gdbDebugServer);
int sock_init(void)
{
#ifdef _WIN32
WSADATA wsa_data;
return WSAStartup(MAKEWORD(1, 1), &wsa_data);
#else
return 0;
#endif
}
int sock_quit(void)
{
#ifdef _WIN32
return WSACleanup();
#else
return 0;
#endif
}
#ifndef _WIN32
int closesocket(socket_t s) {
return close(s);
}
const int SOCKET_ERROR = -1;
const socket_t INVALID_SOCKET = -1;
#define sscanf_s sscanf
#define HEX_U32 "x"
#define HEX_U64 "lx"
#else
#define HEX_U32 "lx"
#define HEX_U64 "llx"
#endif
bool check_errno_again() {
#ifdef _WIN32
int err = GetLastError();
return (err == WSAEWOULDBLOCK);
#else
int err = errno;
return (err == EAGAIN) || (err == EWOULDBLOCK);
#endif
}
std::string u32_to_hex(u32 i) {
return fmt::format("%" HEX_U32, i);
}
std::string u64_to_padded_hex(u64 value) {
return fmt::format("%.16" HEX_U64, value);
}
std::string u32_to_padded_hex(u32 value) {
return fmt::format("%.8" HEX_U32, value);
}
u8 hex_to_u8(std::string val) {
u8 result;
sscanf_s(val.c_str(), "%02hhX", &result);
return result;
}
u32 hex_to_u32(std::string val) {
u32 result;
sscanf_s(val.c_str(), "%" HEX_U32, &result);
return result;
}
u64 hex_to_u64(std::string val) {
u64 result;
sscanf_s(val.c_str(), "%" HEX_U64, &result);
return result;
}
void GDBDebugServer::start_server()
{
server_socket = socket(AF_INET, SOCK_STREAM, 0);
if (server_socket == INVALID_SOCKET) {
gdbDebugServer.error("Error creating server socket");
return;
}
#ifdef WIN32
{
int mode = 1;
ioctlsocket(server_socket, FIONBIO, (u_long FAR *)&mode);
}
#else
fcntl(server_socket, F_SETFL, fcntl(server_socket, F_GETFL) | O_NONBLOCK);
#endif
int err;
sockaddr_in server_saddr;
server_saddr.sin_family = AF_INET;
int port = g_cfg.misc.gdb_server_port;
server_saddr.sin_port = htons(port);
server_saddr.sin_addr.s_addr = htonl(INADDR_ANY);
err = bind(server_socket, (struct sockaddr *) &server_saddr, sizeof(server_saddr));
if (err == SOCKET_ERROR) {
gdbDebugServer.error("Error binding to port %d", port);
return;
}
err = listen(server_socket, 1);
if (err == SOCKET_ERROR) {
gdbDebugServer.error("Error listening on port %d", port);
return;
}
gdbDebugServer.success("GDB Debug Server listening on port %d", port);
}
int GDBDebugServer::read(void * buf, int cnt)
{
while (!stop) {
int result = recv(client_socket, reinterpret_cast<char*>(buf), cnt, 0);
if (result == SOCKET_ERROR) {
if (check_errno_again()) {
thread_ctrl::wait_for(50);
continue;
}
gdbDebugServer.error("Error during socket read");
fmt::throw_exception("Error during socket read" HERE);
}
return result;
}
return 0;
}
char GDBDebugServer::read_char()
{
char result;
int cnt = read(&result, 1);
if (!cnt) {
fmt::throw_exception("Tried to read char, but no data was available" HERE);
}
return result;
}
u8 GDBDebugServer::read_hexbyte()
{
std::string s = "";
s += read_char();
s += read_char();
return hex_to_u8(s);
}
void GDBDebugServer::try_read_cmd(gdb_cmd & out_cmd)
{
char c = read_char();
//interrupt
if (UNLIKELY(c == 0x03)) {
out_cmd.cmd = '\x03';
out_cmd.data = "";
out_cmd.checksum = 0;
return;
}
if (UNLIKELY(c != '$')) {
//gdb starts conversation with + for some reason
if (c == '+') {
c = read_char();
}
if (c != '$') {
fmt::throw_exception("Expected start of packet character '$', got '%c' instead" HERE, c);
}
}
//clear packet data
out_cmd.cmd = "";
out_cmd.data = "";
out_cmd.checksum = 0;
bool cmd_part = true;
u8 checksum = 0;
while(true) {
c = read_char();
if (c == '#') {
break;
}
checksum = (checksum + reinterpret_cast<u8&>(c)) % 256;
//escaped char
if (c == '}') {
c = read_char() ^ 0x20;
checksum = (checksum + reinterpret_cast<u8&>(c)) % 256;
}
//cmd-data splitters
if (cmd_part && ((c == ':') || (c == '.') || (c == ';'))) {
cmd_part = false;
}
if (cmd_part) {
out_cmd.cmd += c;
//only q and v commands can have multi-char command
if ((out_cmd.cmd.length() == 1) && (c != 'q') && (c != 'v')) {
cmd_part = false;
}
} else {
out_cmd.data += c;
}
}
out_cmd.checksum = read_hexbyte();
if (out_cmd.checksum != checksum) {
throw wrong_checksum_exception("Wrong checksum for packet" HERE);
}
}
bool GDBDebugServer::read_cmd(gdb_cmd & out_cmd)
{
while (true) {
try {
try_read_cmd(out_cmd);
ack(true);
return true;
}
catch (wrong_checksum_exception) {
ack(false);
}
catch (std::runtime_error e) {
gdbDebugServer.error(e.what());
return false;
}
}
}
void GDBDebugServer::send(const char * buf, int cnt)
{
gdbDebugServer.trace("Sending %s (%d bytes)", buf, cnt);
while (!stop) {
int res = ::send(client_socket, buf, cnt, 0);
if (res == SOCKET_ERROR) {
if (check_errno_again()) {
thread_ctrl::wait_for(50);
continue;
}
gdbDebugServer.error("Failed sending %d bytes", cnt);
return;
}
return;
}
}
void GDBDebugServer::send_char(char c)
{
send(&c, 1);
}
void GDBDebugServer::ack(bool accepted)
{
send_char(accepted ? '+' : '-');
}
void GDBDebugServer::send_cmd(const std::string & cmd)
{
u8 checksum = 0;
std::string buf;
buf.reserve(cmd.length() + 4);
buf += "$";
for (int i = 0; i < cmd.length(); ++i) {
checksum = (checksum + append_encoded_char(cmd[i], buf)) % 256;
}
buf += "#";
buf += to_hexbyte(checksum);
send(buf.c_str(), static_cast<int>(buf.length()));
}
bool GDBDebugServer::send_cmd_ack(const std::string & cmd)
{
while (true) {
send_cmd(cmd);
char c = read_char();
if (LIKELY(c == '+')) {
return true;
}
if (UNLIKELY(c != '-')) {
gdbDebugServer.error("Wrong acknowledge character received %c", c);
return false;
}
gdbDebugServer.warning("Client rejected our cmd");
}
}
u8 GDBDebugServer::append_encoded_char(char c, std::string & str)
{
u8 checksum = 0;
if (UNLIKELY((c == '#') || (c == '$') || (c == '}'))) {
str += '}';
c ^= 0x20;
checksum = '}';
}
checksum = (checksum + reinterpret_cast<u8&>(c)) % 256;
str += c;
return checksum;
}
std::string GDBDebugServer::to_hexbyte(u8 i)
{
std::string result = "00";
u8 i1 = i & 0xF;
u8 i2 = i >> 4;
result[0] = i2 > 9 ? 'a' + i2 - 10 : '0' + i2;
result[1] = i1 > 9 ? 'a' + i1 - 10 : '0' + i1;
return result;
}
bool GDBDebugServer::select_thread(u64 id)
{
//in case we have none at all
selected_thread.reset();
const auto on_select = [&](u32, cpu_thread& cpu)
{
return (id == ALL_THREADS) || (id == ANY_THREAD) || (cpu.id == id);
};
if (auto ppu = idm::select<ppu_thread>(on_select)) {
selected_thread = ppu.ptr;
return true;
}
gdbDebugServer.warning("Unable to select thread! Is the emulator running?");
return false;
}
std::string GDBDebugServer::get_reg(std::shared_ptr<ppu_thread> thread, u32 rid)
{
std::string result;
//ids from gdb/features/rs6000/powerpc-64.c
//pc
switch (rid) {
case 64:
return u64_to_padded_hex(thread->cia);
//msr?
case 65:
return std::string(16, 'x');
case 66:
return u32_to_padded_hex(thread->cr.pack());
case 67:
return u64_to_padded_hex(thread->lr);
case 68:
return u64_to_padded_hex(thread->ctr);
//xer
case 69:
return std::string(8, 'x');
//fpscr
case 70:
return std::string(8, 'x');
default:
if (rid > 70) return "";
return (rid > 31)
? u64_to_padded_hex(std::bit_cast<u64>(thread->fpr[rid - 32])) //fpr
: u64_to_padded_hex(thread->gpr[rid]); //gpr
}
}
bool GDBDebugServer::set_reg(std::shared_ptr<ppu_thread> thread, u32 rid, std::string value)
{
switch (rid) {
case 64:
thread->cia = static_cast<u32>(hex_to_u64(value));
return true;
//msr?
case 65:
return true;
case 66:
thread->cr.unpack(hex_to_u32(value));
return true;
case 67:
thread->lr = hex_to_u64(value);
return true;
case 68:
thread->ctr = hex_to_u64(value);
return true;
//xer
case 69:
return true;
//fpscr
case 70:
return true;
default:
if (rid > 70) return false;
if (rid > 31) {
u64 val = hex_to_u64(value);
thread->fpr[rid - 32] = std::bit_cast<f64>(val);
} else {
thread->gpr[rid] = hex_to_u64(value);
}
return true;
}
}
u32 GDBDebugServer::get_reg_size(std::shared_ptr<ppu_thread> thread, u32 rid)
{
switch (rid) {
case 66:
case 69:
case 70:
return 4;
default:
if (rid > 70) {
return 0;
}
return 8;
}
}
bool GDBDebugServer::send_reason()
{
return send_cmd_ack("S05");
}
void GDBDebugServer::wait_with_interrupts() {
char c;
while (!paused) {
int result = recv(client_socket, &c, 1, 0);
if (result == SOCKET_ERROR) {
if (check_errno_again()) {
thread_ctrl::wait_for(50);
continue;
}
gdbDebugServer.error("Error during socket read");
fmt::throw_exception("Error during socket read" HERE);
} else if (c == 0x03) {
paused = true;
}
}
}
bool GDBDebugServer::cmd_extended_mode(gdb_cmd & cmd)
{
return send_cmd_ack("OK");
}
bool GDBDebugServer::cmd_reason(gdb_cmd & cmd)
{
return send_reason();
}
bool GDBDebugServer::cmd_supported(gdb_cmd & cmd)
{
return send_cmd_ack("PacketSize=1200");
}
bool GDBDebugServer::cmd_thread_info(gdb_cmd & cmd)
{
std::string result = "";
const auto on_select = [&](u32, cpu_thread& cpu)
{
if (result.length()) {
result += ",";
}
result += u64_to_padded_hex(static_cast<u64>(cpu.id));
};
idm::select<ppu_thread>(on_select);
//idm::select<RawSPUThread>(on_select);
//idm::select<SPUThread>(on_select);
//todo: this may exceed max command length
result = "m" + result + "l";
return send_cmd_ack(result);;
}
bool GDBDebugServer::cmd_current_thread(gdb_cmd & cmd)
{
return send_cmd_ack(selected_thread.expired() ? "" : ("QC" + u64_to_padded_hex(selected_thread.lock()->id)));
}
bool GDBDebugServer::cmd_read_register(gdb_cmd & cmd)
{
if (!select_thread(general_ops_thread_id)) {
return send_cmd_ack("E02");
}
auto th = selected_thread.lock();
if (th->id_type() == 1) {
auto ppu = std::static_pointer_cast<ppu_thread>(th);
u32 rid = hex_to_u32(cmd.data);
std::string result = get_reg(ppu, rid);
if (!result.length()) {
gdbDebugServer.warning("Wrong register id %d", rid);
return send_cmd_ack("E01");
}
return send_cmd_ack(result);
}
gdbDebugServer.warning("Unimplemented thread type %d", th->id_type());
return send_cmd_ack("");
}
bool GDBDebugServer::cmd_write_register(gdb_cmd & cmd)
{
if (!select_thread(general_ops_thread_id)) {
return send_cmd_ack("E02");
}
auto th = selected_thread.lock();
if (th->id_type() == 1) {
auto ppu = std::static_pointer_cast<ppu_thread>(th);
size_t eq_pos = cmd.data.find('=');
if (eq_pos == std::string::npos) {
gdbDebugServer.warning("Wrong write_register cmd data %s", cmd.data.c_str());
return send_cmd_ack("E02");
}
u32 rid = hex_to_u32(cmd.data.substr(0, eq_pos));
std::string value = cmd.data.substr(eq_pos + 1);
if (!set_reg(ppu, rid, value)) {
gdbDebugServer.warning("Wrong register id %d", rid);
return send_cmd_ack("E01");
}
return send_cmd_ack("OK");
}
gdbDebugServer.warning("Unimplemented thread type %d", th->id_type());
return send_cmd_ack("");
}
bool GDBDebugServer::cmd_read_memory(gdb_cmd & cmd)
{
size_t s = cmd.data.find(',');
u32 addr = hex_to_u32(cmd.data.substr(0, s));
u32 len = hex_to_u32(cmd.data.substr(s + 1));
std::string result;
result.reserve(len * 2);
for (u32 i = 0; i < len; ++i) {
if (vm::check_addr(addr)) {
result += to_hexbyte(vm::read8(addr + i));
} else {
break;
//result += "xx";
}
}
if (len && !result.length()) {
//nothing read
return send_cmd_ack("E01");
}
return send_cmd_ack(result);
}
bool GDBDebugServer::cmd_write_memory(gdb_cmd & cmd)
{
size_t s = cmd.data.find(',');
size_t s2 = cmd.data.find(':');
if ((s == std::string::npos) || (s2 == std::string::npos)) {
gdbDebugServer.warning("Malformed write memory request received: %s", cmd.data.c_str());
return send_cmd_ack("E01");
}
u32 addr = hex_to_u32(cmd.data.substr(0, s));
u32 len = hex_to_u32(cmd.data.substr(s + 1, s2 - s - 1));
const char* data_ptr = (cmd.data.c_str()) + s2 + 1;
for (u32 i = 0; i < len; ++i) {
if (vm::check_addr(addr + i, 1, vm::page_writable)) {
u8 val;
int res = sscanf_s(data_ptr, "%02hhX", &val);
if (!res) {
gdbDebugServer.warning("Couldn't read u8 from string %s", data_ptr);
return send_cmd_ack("E02");
}
data_ptr += 2;
vm::write8(addr + i, val);
} else {
return send_cmd_ack("E03");
}
}
return send_cmd_ack("OK");
}
bool GDBDebugServer::cmd_read_all_registers(gdb_cmd & cmd)
{
std::string result;
select_thread(general_ops_thread_id);
auto th = selected_thread.lock();
if (th->id_type() == 1) {
auto ppu = std::static_pointer_cast<ppu_thread>(th);
//68 64-bit registers, and 3 32-bit
result.reserve(68*16 + 3*8);
for (int i = 0; i < 71; ++i) {
result += get_reg(ppu, i);
}
return send_cmd_ack(result);
}
gdbDebugServer.warning("Unimplemented thread type %d", th->id_type());
return send_cmd_ack("");
}
bool GDBDebugServer::cmd_write_all_registers(gdb_cmd & cmd)
{
select_thread(general_ops_thread_id);
auto th = selected_thread.lock();
if (th->id_type() == 1) {
auto ppu = std::static_pointer_cast<ppu_thread>(th);
int ptr = 0;
for (int i = 0; i < 71; ++i) {
int sz = get_reg_size(ppu, i);
set_reg(ppu, i, cmd.data.substr(ptr, sz * 2));
ptr += sz * 2;
}
return send_cmd_ack("OK");
}
gdbDebugServer.warning("Unimplemented thread type %d", th->id_type());
return send_cmd_ack("E01");
}
bool GDBDebugServer::cmd_set_thread_ops(gdb_cmd & cmd)
{
char type = cmd.data[0];
std::string thread = cmd.data.substr(1);
u64 id = thread == "-1" ? ALL_THREADS : hex_to_u64(thread);
if (type == 'c') {
continue_ops_thread_id = id;
} else {
general_ops_thread_id = id;
}
if (select_thread(id)) {
return send_cmd_ack("OK");
}
gdbDebugServer.warning("Client asked to use thread %llx for %s, but no matching thread was found", id, type == 'c' ? "continue ops" : "general ops");
return send_cmd_ack("E01");
}
bool GDBDebugServer::cmd_attached_to_what(gdb_cmd & cmd)
{
//creating processes from client is not available yet
return send_cmd_ack("1");
}
bool GDBDebugServer::cmd_kill(gdb_cmd & cmd)
{
Emu.Stop();
return true;
}
bool GDBDebugServer::cmd_continue_support(gdb_cmd & cmd)
{
return send_cmd_ack("vCont;c;s;C;S");
}
bool GDBDebugServer::cmd_vcont(gdb_cmd & cmd)
{
//todo: handle multiple actions and thread ids
this->from_breakpoint = false;
if (cmd.data[1] == 'c' || cmd.data[1] == 's') {
select_thread(continue_ops_thread_id);
auto ppu = std::static_pointer_cast<ppu_thread>(selected_thread.lock());
paused = false;
if (cmd.data[1] == 's') {
ppu->state += cpu_flag::dbg_step;
}
ppu->state -= cpu_flag::dbg_pause;
//special case if app didn't start yet (only loaded)
if (!Emu.IsPaused() && !Emu.IsRunning()) {
Emu.Run();
}
if (Emu.IsPaused()) {
Emu.Resume();
} else {
ppu->notify();
}
wait_with_interrupts();
//we are in all-stop mode
Emu.Pause();
select_thread(pausedBy);
// we have to remove dbg_pause from thread that paused execution, otherwise
// it will be paused forever (Emu.Resume only removes dbg_global_pause)
ppu = std::static_pointer_cast<ppu_thread>(selected_thread.lock());
ppu->state -= cpu_flag::dbg_pause;
return send_reason();
}
return send_cmd_ack("");
}
static const u32 INVALID_PTR = 0xffffffff;
bool GDBDebugServer::cmd_set_breakpoint(gdb_cmd & cmd)
{
char type = cmd.data[0];
//software breakpoint
if (type == '0') {
u32 addr = INVALID_PTR;
if (cmd.data.find(';') != std::string::npos) {
gdbDebugServer.warning("Received request to set breakpoint with condition, but they are not supported");
return send_cmd_ack("E01");
}
sscanf_s(cmd.data.c_str(), "0,%x", &addr);
if (addr == INVALID_PTR) {
gdbDebugServer.warning("Can't parse breakpoint request, data: %s", cmd.data.c_str());
return send_cmd_ack("E02");
}
ppu_set_breakpoint(addr);
return send_cmd_ack("OK");
}
//other breakpoint types are not supported
return send_cmd_ack("");
}
bool GDBDebugServer::cmd_remove_breakpoint(gdb_cmd & cmd)
{
char type = cmd.data[0];
//software breakpoint
if (type == '0') {
u32 addr = INVALID_PTR;
sscanf_s(cmd.data.c_str(), "0,%x", &addr);
if (addr == INVALID_PTR) {
gdbDebugServer.warning("Can't parse breakpoint remove request, data: %s", cmd.data.c_str());
return send_cmd_ack("E01");
}
ppu_remove_breakpoint(addr);
return send_cmd_ack("OK");
}
//other breakpoint types are not supported
return send_cmd_ack("");
}
#define PROCESS_CMD(cmds,handler) if (cmd.cmd == cmds) { if (!handler(cmd)) break; else continue; }
void GDBDebugServer::on_task()
{
sock_init();
start_server();
while (!stop) {
sockaddr_in client;
socklen_t client_len = sizeof(client);
client_socket = accept(server_socket, (struct sockaddr *) &client, &client_len);
if (client_socket == INVALID_SOCKET) {
if (check_errno_again()) {
thread_ctrl::wait_for(50);
continue;
}
gdbDebugServer.error("Could not establish new connection\n");
return;
}
//stop immediately
if (Emu.IsRunning()) {
Emu.Pause();
}
try {
char hostbuf[32];
inet_ntop(client.sin_family, reinterpret_cast<void*>(&client.sin_addr), hostbuf, 32);
gdbDebugServer.success("Got connection to GDB debug server from %s:%d", hostbuf, client.sin_port);
gdb_cmd cmd;
while (!stop) {
if (!read_cmd(cmd)) {
break;
}
gdbDebugServer.trace("Command %s with data %s received", cmd.cmd.c_str(), cmd.data.c_str());
PROCESS_CMD("!", cmd_extended_mode);
PROCESS_CMD("?", cmd_reason);
PROCESS_CMD("qSupported", cmd_supported);
PROCESS_CMD("qfThreadInfo", cmd_thread_info);
PROCESS_CMD("qC", cmd_current_thread);
PROCESS_CMD("p", cmd_read_register);
PROCESS_CMD("P", cmd_write_register);
PROCESS_CMD("m", cmd_read_memory);
PROCESS_CMD("M", cmd_write_memory);
PROCESS_CMD("g", cmd_read_all_registers);
PROCESS_CMD("G", cmd_write_all_registers);
PROCESS_CMD("H", cmd_set_thread_ops);
PROCESS_CMD("qAttached", cmd_attached_to_what);
PROCESS_CMD("k", cmd_kill);
PROCESS_CMD("vCont?", cmd_continue_support);
PROCESS_CMD("vCont", cmd_vcont);
PROCESS_CMD("z", cmd_remove_breakpoint);
PROCESS_CMD("Z", cmd_set_breakpoint);
gdbDebugServer.trace("Unsupported command received %s", cmd.cmd.c_str());
if (!send_cmd_ack("")) {
break;
}
}
}
catch (std::runtime_error& e)
{
if (client_socket) {
closesocket(client_socket);
client_socket = 0;
}
gdbDebugServer.error(e.what());
}
}
}
#undef PROCESS_CMD
void GDBDebugServer::on_exit()
{
if (server_socket) {
closesocket(server_socket);
}
if (client_socket) {
closesocket(client_socket);
}
sock_quit();
}
std::string GDBDebugServer::get_name() const
{
return "GDBDebugger";
}
void GDBDebugServer::on_stop()
{
this->stop = true;
//just in case we are waiting for breakpoint
this->notify();
old_thread::on_stop();
}
void GDBDebugServer::pause_from(cpu_thread* t) {
if (paused) {
return;
}
paused = true;
pausedBy = t->id;
notify();
}
u32 g_gdb_debugger_id = 0;
#ifndef _WIN32
#undef sscanf_s
#endif
#undef HEX_U32
#undef HEX_U64
#endif
-127
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@@ -1,127 +0,0 @@
#pragma once
#ifdef WITH_GDB_DEBUGGER
#include "Thread.h"
#include <Emu/IdManager.h>
#include "Emu/CPU/CPUThread.h"
#include "Emu/Cell/PPUThread.h"
#ifdef _WIN32
#include <winsock2.h>
#include <WS2tcpip.h>
#else
#include <errno.h>
#include <sys/types.h>
#include <sys/socket.h>
#include <netinet/in.h>
#include <netinet/tcp.h>
#include <arpa/inet.h>
#include <unistd.h>
#endif
#ifdef _WIN32
using socket_t = SOCKET;
#else
using socket_t = int;
#endif
typedef struct gdb_cmd {
std::string cmd;
std::string data;
u8 checksum;
} gdb_cmd;
class wrong_checksum_exception : public std::runtime_error {
public:
wrong_checksum_exception(char const* const message) : runtime_error(message) {}
};
const u64 ALL_THREADS = 0xffffffffffffffff;
const u64 ANY_THREAD = 0;
class GDBDebugServer
{
socket_t server_socket;
socket_t client_socket;
std::weak_ptr<cpu_thread> selected_thread;
u64 continue_ops_thread_id = ANY_THREAD;
u64 general_ops_thread_id = ANY_THREAD;
//initialize server socket and start listening
void start_server();
//read at most cnt bytes to buf, returns number of bytes actually read
int read(void* buf, int cnt);
//reads one character
char read_char();
//reads pairs of hex characters and returns their integer value
u8 read_hexbyte();
//tries to read command, throws exceptions if anything goes wrong
void try_read_cmd(gdb_cmd& out_cmd);
//reads commands until receiveing one with valid checksum
//in case of other exception (i.e. wrong first char of command)
//it will log exception text and return false
//in that case best for caller would be to stop reading, because
//chance of getting correct command is low
bool read_cmd(gdb_cmd& out_cmd);
//send cnt bytes from buf to client
void send(const char* buf, int cnt);
//send character to client
void send_char(char c);
//acknowledge packet, either as accepted or declined
void ack(bool accepted);
//sends command body cmd to client
void send_cmd(const std::string & cmd);
//sends command to client until receives positive acknowledgement
//returns false in case some error happened, and command wasn't sent
bool send_cmd_ack(const std::string & cmd);
//appends encoded char c to string str, and returns checksum. encoded byte can occupy 2 bytes
static u8 append_encoded_char(char c, std::string& str);
//convert u8 to 2 byte hexademical representation
static std::string to_hexbyte(u8 i);
//choose thread, support ALL_THREADS and ANY_THREAD values, returns true if some thread was selected
bool select_thread(u64 id);
//returns register value as hex string by register id (in gdb), in case of wrong id returns empty string
static std::string get_reg(std::shared_ptr<ppu_thread> thread, u32 rid);
//sets register value to hex string by register id (in gdb), in case of wrong id returns false
static bool set_reg(std::shared_ptr<ppu_thread> thread, u32 rid, std::string value);
//returns size of register with id rid in bytes, zero if invalid rid is provided
static u32 get_reg_size(std::shared_ptr<ppu_thread> thread, u32 rid);
//send reason of stop, returns false if sending response failed
bool send_reason();
void wait_with_interrupts();
//commands
bool cmd_extended_mode(gdb_cmd& cmd);
bool cmd_reason(gdb_cmd& cmd);
bool cmd_supported(gdb_cmd& cmd);
bool cmd_thread_info(gdb_cmd& cmd);
bool cmd_current_thread(gdb_cmd& cmd);
bool cmd_read_register(gdb_cmd& cmd);
bool cmd_write_register(gdb_cmd& cmd);
bool cmd_read_memory(gdb_cmd& cmd);
bool cmd_write_memory(gdb_cmd& cmd);
bool cmd_read_all_registers(gdb_cmd& cmd);
bool cmd_write_all_registers(gdb_cmd& cmd);
bool cmd_set_thread_ops(gdb_cmd& cmd);
bool cmd_attached_to_what(gdb_cmd& cmd);
bool cmd_kill(gdb_cmd& cmd);
bool cmd_continue_support(gdb_cmd& cmd);
bool cmd_vcont(gdb_cmd& cmd);
bool cmd_set_breakpoint(gdb_cmd& cmd);
bool cmd_remove_breakpoint(gdb_cmd& cmd);
public:
bool from_breakpoint = true;
bool stop = false;
bool paused = false;
u64 pausedBy;
void operator()();
void pause_from(cpu_thread* t);
};
extern u32 g_gdb_debugger_id;
#endif
+51
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@@ -0,0 +1,51 @@
#include "GNU.h"
#ifdef __APPLE__
#include <sys/types.h>
#include <sys/_types/_timespec.h>
#include <mach/mach.h>
#include <mach/clock.h>
#include <mach/mach_time.h>
#undef CPU_STATE_MAX
#define MT_NANO (+1.0E-9)
#define MT_GIGA UINT64_C(1000000000)
// TODO create a list of timers,
static double mt_timebase = 0.0;
static uint64_t mt_timestart = 0;
// TODO be more careful in a multithreaded environement
int clock_gettime(clockid_t clk_id, struct timespec *tp)
{
kern_return_t retval = KERN_SUCCESS;
if( clk_id == TIMER_ABSTIME)
{
if (!mt_timestart) { // only one timer, initilized on the first call to the TIMER
mach_timebase_info_data_t tb = { 0 };
mach_timebase_info(&tb);
mt_timebase = tb.numer;
mt_timebase /= tb.denom;
mt_timestart = mach_absolute_time();
}
double diff = (mach_absolute_time() - mt_timestart) * mt_timebase;
tp->tv_sec = diff * MT_NANO;
tp->tv_nsec = diff - (tp->tv_sec * MT_GIGA);
}
else // other clk_ids are mapped to the coresponding mach clock_service
{
clock_serv_t cclock;
mach_timespec_t mts;
host_get_clock_service(mach_host_self(), clk_id, &cclock);
retval = clock_get_time(cclock, &mts);
mach_port_deallocate(mach_task_self(), cclock);
tp->tv_sec = mts.tv_sec;
tp->tv_nsec = mts.tv_nsec;
}
return retval;
}
#endif /* __APPLE__ */
+292
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@@ -0,0 +1,292 @@
#pragma once
#include <emmintrin.h>
#if defined(_MSC_VER) && _MSC_VER <= 1800
#define thread_local __declspec(thread)
#elif __APPLE__
#define thread_local __thread
#endif
#if defined(_MSC_VER)
#define never_inline __declspec(noinline)
#else
#define never_inline __attribute__((noinline))
#endif
#if defined(_MSC_VER)
#define safe_buffers __declspec(safebuffers)
#else
#define safe_buffers
#endif
#if defined(_MSC_VER)
#define force_inline __forceinline
#else
#define force_inline __attribute__((always_inline))
#endif
#if defined(_MSC_VER) && _MSC_VER <= 1800
#define alignas(x) _CRT_ALIGN(x)
#endif
#if defined(__GNUG__)
#include <stdlib.h>
#include <cstdint>
#define _fpclass(x) std::fpclassify(x)
#define INFINITE 0xFFFFFFFF
#ifdef __APPLE__
// XXX only supports a single timer
#define TIMER_ABSTIME -1
/* The opengroup spec isn't clear on the mapping from REALTIME to CALENDAR
being appropriate or not.
http://pubs.opengroup.org/onlinepubs/009695299/basedefs/time.h.html */
#define CLOCK_REALTIME 1 // #define CALENDAR_CLOCK 1 from mach/clock_types.h
#define CLOCK_MONOTONIC 0 // #define SYSTEM_CLOCK 0
typedef int clockid_t;
/* the mach kernel uses struct mach_timespec, so struct timespec
is loaded from <sys/_types/_timespec.h> for compatability */
// struct timespec { time_t tv_sec; long tv_nsec; };
int clock_gettime(clockid_t clk_id, struct timespec *tp);
#endif /* __APPLE__ */
#endif /* __GNUG__ */
#if defined(_MSC_VER)
// Unsigned 128-bit integer implementation
struct alignas(16) u128
{
std::uint64_t lo, hi;
u128() = default;
u128(const u128&) = default;
u128(std::uint64_t l)
: lo(l)
, hi(0)
{
}
u128 operator +(const u128& r) const
{
u128 value;
_addcarry_u64(_addcarry_u64(0, r.lo, lo, &value.lo), r.hi, hi, &value.hi);
return value;
}
friend u128 operator +(const u128& l, std::uint64_t r)
{
u128 value;
_addcarry_u64(_addcarry_u64(0, r, l.lo, &value.lo), l.hi, 0, &value.hi);
return value;
}
friend u128 operator +(std::uint64_t l, const u128& r)
{
u128 value;
_addcarry_u64(_addcarry_u64(0, r.lo, l, &value.lo), 0, r.hi, &value.hi);
return value;
}
u128 operator -(const u128& r) const
{
u128 value;
_subborrow_u64(_subborrow_u64(0, r.lo, lo, &value.lo), r.hi, hi, &value.hi);
return value;
}
friend u128 operator -(const u128& l, std::uint64_t r)
{
u128 value;
_subborrow_u64(_subborrow_u64(0, r, l.lo, &value.lo), 0, l.hi, &value.hi);
return value;
}
friend u128 operator -(std::uint64_t l, const u128& r)
{
u128 value;
_subborrow_u64(_subborrow_u64(0, r.lo, l, &value.lo), r.hi, 0, &value.hi);
return value;
}
u128 operator +() const
{
return *this;
}
u128 operator -() const
{
u128 value;
_subborrow_u64(_subborrow_u64(0, lo, 0, &value.lo), hi, 0, &value.hi);
return value;
}
u128& operator ++()
{
_addcarry_u64(_addcarry_u64(0, 1, lo, &lo), 0, hi, &hi);
return *this;
}
u128 operator ++(int)
{
u128 value = *this;
_addcarry_u64(_addcarry_u64(0, 1, lo, &lo), 0, hi, &hi);
return value;
}
u128& operator --()
{
_subborrow_u64(_subborrow_u64(0, 1, lo, &lo), 0, hi, &hi);
return *this;
}
u128 operator --(int)
{
u128 value = *this;
_subborrow_u64(_subborrow_u64(0, 1, lo, &lo), 0, hi, &hi);
return value;
}
u128 operator ~() const
{
u128 value;
value.lo = ~lo;
value.hi = ~hi;
return value;
}
u128 operator &(const u128& r) const
{
u128 value;
value.lo = lo & r.lo;
value.hi = hi & r.hi;
return value;
}
u128 operator |(const u128& r) const
{
u128 value;
value.lo = lo | r.lo;
value.hi = hi | r.hi;
return value;
}
u128 operator ^(const u128& r) const
{
u128 value;
value.lo = lo ^ r.lo;
value.hi = hi ^ r.hi;
return value;
}
u128& operator +=(const u128& r)
{
_addcarry_u64(_addcarry_u64(0, r.lo, lo, &lo), r.hi, hi, &hi);
return *this;
}
u128& operator +=(uint64_t r)
{
_addcarry_u64(_addcarry_u64(0, r, lo, &lo), 0, hi, &hi);
return *this;
}
u128& operator &=(const u128& r)
{
lo &= r.lo;
hi &= r.hi;
return *this;
}
u128& operator |=(const u128& r)
{
lo |= r.lo;
hi |= r.hi;
return *this;
}
u128& operator ^=(const u128& r)
{
lo ^= r.lo;
hi ^= r.hi;
return *this;
}
};
#endif
inline std::uint32_t cntlz32(std::uint32_t arg)
{
#if defined(_MSC_VER)
unsigned long res;
return _BitScanReverse(&res, arg) ? res ^ 31 : 32;
#else
return arg ? __builtin_clzll(arg) - 32 : 32;
#endif
}
inline std::uint64_t cntlz64(std::uint64_t arg)
{
#if defined(_MSC_VER)
unsigned long res;
return _BitScanReverse64(&res, arg) ? res ^ 63 : 64;
#else
return arg ? __builtin_clzll(arg) : 64;
#endif
}
// compare 16 packed unsigned bytes (greater than)
inline __m128i sse_cmpgt_epu8(__m128i A, __m128i B)
{
// (A xor 0x80) > (B xor 0x80)
const auto sign = _mm_set1_epi32(0x80808080);
return _mm_cmpgt_epi8(_mm_xor_si128(A, sign), _mm_xor_si128(B, sign));
}
inline __m128i sse_cmpgt_epu16(__m128i A, __m128i B)
{
const auto sign = _mm_set1_epi32(0x80008000);
return _mm_cmpgt_epi16(_mm_xor_si128(A, sign), _mm_xor_si128(B, sign));
}
inline __m128i sse_cmpgt_epu32(__m128i A, __m128i B)
{
const auto sign = _mm_set1_epi32(0x80000000);
return _mm_cmpgt_epi32(_mm_xor_si128(A, sign), _mm_xor_si128(B, sign));
}
inline __m128 sse_exp2_ps(__m128 A)
{
const auto x0 = _mm_max_ps(_mm_min_ps(A, _mm_set1_ps(127.4999961f)), _mm_set1_ps(-127.4999961f));
const auto x1 = _mm_add_ps(x0, _mm_set1_ps(0.5f));
const auto x2 = _mm_sub_epi32(_mm_cvtps_epi32(x1), _mm_and_si128(_mm_castps_si128(_mm_cmpnlt_ps(_mm_setzero_ps(), x1)), _mm_set1_epi32(1)));
const auto x3 = _mm_sub_ps(x0, _mm_cvtepi32_ps(x2));
const auto x4 = _mm_mul_ps(x3, x3);
const auto x5 = _mm_mul_ps(x3, _mm_add_ps(_mm_mul_ps(_mm_add_ps(_mm_mul_ps(x4, _mm_set1_ps(0.023093347705f)), _mm_set1_ps(20.20206567f)), x4), _mm_set1_ps(1513.906801f)));
const auto x6 = _mm_mul_ps(x5, _mm_rcp_ps(_mm_sub_ps(_mm_add_ps(_mm_mul_ps(_mm_set1_ps(233.1842117f), x4), _mm_set1_ps(4368.211667f)), x5)));
return _mm_mul_ps(_mm_add_ps(_mm_add_ps(x6, x6), _mm_set1_ps(1.0f)), _mm_castsi128_ps(_mm_slli_epi32(_mm_add_epi32(x2, _mm_set1_epi32(127)), 23)));
}
inline __m128 sse_log2_ps(__m128 A)
{
const auto _1 = _mm_set1_ps(1.0f);
const auto _c = _mm_set1_ps(1.442695040f);
const auto x0 = _mm_max_ps(A, _mm_castsi128_ps(_mm_set1_epi32(0x00800000)));
const auto x1 = _mm_or_ps(_mm_and_ps(x0, _mm_castsi128_ps(_mm_set1_epi32(0x807fffff))), _1);
const auto x2 = _mm_rcp_ps(_mm_add_ps(x1, _1));
const auto x3 = _mm_mul_ps(_mm_sub_ps(x1, _1), x2);
const auto x4 = _mm_add_ps(x3, x3);
const auto x5 = _mm_mul_ps(x4, x4);
const auto x6 = _mm_add_ps(_mm_mul_ps(_mm_add_ps(_mm_mul_ps(_mm_set1_ps(-0.7895802789f), x5), _mm_set1_ps(16.38666457f)), x5), _mm_set1_ps(-64.1409953f));
const auto x7 = _mm_rcp_ps(_mm_add_ps(_mm_mul_ps(_mm_add_ps(_mm_mul_ps(_mm_set1_ps(-35.67227983f), x5), _mm_set1_ps(312.0937664f)), x5), _mm_set1_ps(-769.6919436f)));
const auto x8 = _mm_cvtepi32_ps(_mm_sub_epi32(_mm_srli_epi32(_mm_castps_si128(x0), 23), _mm_set1_epi32(127)));
return _mm_add_ps(_mm_mul_ps(_mm_mul_ps(_mm_mul_ps(_mm_mul_ps(x5, x6), x7), x4), _c), _mm_add_ps(_mm_mul_ps(x4, _c), x8));
}
-10
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@@ -1,10 +0,0 @@
#pragma once
#define GSL_THROW_ON_CONTRACT_VIOLATION
#pragma push_macro("new")
#undef new
#include <gsl/gsl>
#pragma pop_macro("new")
#undef Expects
#undef Ensures
-2
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@@ -1,7 +1,5 @@
#pragma once
#include <type_traits>
template<typename T1, typename T2> struct range_t
{
T1 _min; // first value
-839
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@@ -1,839 +0,0 @@
#include "types.h"
#include "JIT.h"
#include "StrFmt.h"
#include "File.h"
#include "Log.h"
#include "mutex.h"
#include "sysinfo.h"
#include "VirtualMemory.h"
#include <immintrin.h>
// Memory manager mutex
shared_mutex s_mutex2;
#ifdef __linux__
#define CAN_OVERCOMMIT
#endif
static u8* get_jit_memory()
{
// Reserve 2G memory (magic static)
static void* const s_memory2 = []() -> void*
{
void* ptr = utils::memory_reserve(0x80000000);
#ifdef CAN_OVERCOMMIT
utils::memory_commit(ptr, 0x80000000);
utils::memory_protect(ptr, 0x40000000, utils::protection::wx);
#endif
return ptr;
}();
return static_cast<u8*>(s_memory2);
}
// Allocation counters (1G code, 1G data subranges)
static atomic_t<u64> s_code_pos{0}, s_data_pos{0};
// Snapshot of code generated before main()
static std::vector<u8> s_code_init, s_data_init;
template <atomic_t<u64>& Ctr, uint Off, utils::protection Prot>
static u8* add_jit_memory(std::size_t size, uint align)
{
// Select subrange
u8* pointer = get_jit_memory() + Off;
if (UNLIKELY(!size && !align))
{
// Return subrange info
return pointer;
}
#ifndef CAN_OVERCOMMIT
std::lock_guard lock(s_mutex2);
#endif
u64 olda, newa;
// Simple allocation by incrementing pointer to the next free data
const u64 pos = Ctr.atomic_op([&](u64& ctr) -> u64
{
const u64 _pos = ::align(ctr, align);
const u64 _new = ::align(_pos + size, align);
if (UNLIKELY(_new > 0x40000000))
{
// Sorry, we failed, and further attempts should fail too.
ctr = 0x40000000;
return -1;
}
// Check the necessity to commit more memory
olda = ::align(ctr, 0x10000);
newa = ::align(_new, 0x10000);
ctr = _new;
return _pos;
});
if (UNLIKELY(pos == -1))
{
LOG_WARNING(GENERAL, "JIT: Out of memory (size=0x%x, align=0x%x, off=0x%x)", size, align, Off);
return nullptr;
}
if (UNLIKELY(olda != newa))
{
#ifdef CAN_OVERCOMMIT
// TODO: possibly madvise
#else
// Commit more memory
utils::memory_commit(pointer + olda, newa - olda, Prot);
#endif
}
return pointer + pos;
}
jit_runtime::jit_runtime()
: HostRuntime()
{
}
jit_runtime::~jit_runtime()
{
}
asmjit::Error jit_runtime::_add(void** dst, asmjit::CodeHolder* code) noexcept
{
std::size_t codeSize = code->getCodeSize();
if (UNLIKELY(!codeSize))
{
*dst = nullptr;
return asmjit::kErrorNoCodeGenerated;
}
void* p = jit_runtime::alloc(codeSize, 16);
if (UNLIKELY(!p))
{
*dst = nullptr;
return asmjit::kErrorNoVirtualMemory;
}
std::size_t relocSize = code->relocate(p);
if (UNLIKELY(!relocSize))
{
*dst = nullptr;
return asmjit::kErrorInvalidState;
}
flush(p, relocSize);
*dst = p;
return asmjit::kErrorOk;
}
asmjit::Error jit_runtime::_release(void* ptr) noexcept
{
return asmjit::kErrorOk;
}
u8* jit_runtime::alloc(std::size_t size, uint align, bool exec) noexcept
{
if (exec)
{
return add_jit_memory<s_code_pos, 0x0, utils::protection::wx>(size, align);
}
else
{
return add_jit_memory<s_data_pos, 0x40000000, utils::protection::rw>(size, align);
}
}
void jit_runtime::initialize()
{
if (!s_code_init.empty() || !s_data_init.empty())
{
return;
}
// Create code/data snapshot
s_code_init.resize(s_code_pos);
std::memcpy(s_code_init.data(), alloc(0, 0, true), s_code_pos);
s_data_init.resize(s_data_pos);
std::memcpy(s_data_init.data(), alloc(0, 0, false), s_data_pos);
}
void jit_runtime::finalize() noexcept
{
// Reset JIT memory
#ifdef CAN_OVERCOMMIT
utils::memory_reset(get_jit_memory(), 0x80000000);
utils::memory_protect(get_jit_memory(), 0x40000000, utils::protection::wx);
#else
utils::memory_decommit(get_jit_memory(), 0x80000000);
#endif
s_code_pos = 0;
s_data_pos = 0;
// Restore code/data snapshot
std::memcpy(alloc(s_code_init.size(), 1, true), s_code_init.data(), s_code_init.size());
std::memcpy(alloc(s_data_init.size(), 1, false), s_data_init.data(), s_data_init.size());
}
asmjit::JitRuntime& asmjit::get_global_runtime()
{
// Magic static
static asmjit::JitRuntime g_rt;
return g_rt;
}
void asmjit::build_transaction_enter(asmjit::X86Assembler& c, asmjit::Label fallback, const asmjit::X86Gp& ctr, uint less_than)
{
Label fall = c.newLabel();
Label begin = c.newLabel();
c.jmp(begin);
c.bind(fall);
if (less_than < 65)
{
c.add(ctr, 1);
c.test(x86::eax, _XABORT_RETRY);
c.jz(fallback);
}
else
{
// Count an attempt without RETRY flag as 65 normal attempts and continue
c.not_(x86::eax);
c.and_(x86::eax, _XABORT_RETRY);
c.shl(x86::eax, 5);
c.add(x86::eax, 1); // eax = RETRY ? 1 : 65
c.add(ctr, x86::rax);
}
c.cmp(ctr, less_than);
c.jae(fallback);
c.align(kAlignCode, 16);
c.bind(begin);
c.xbegin(fall);
}
void asmjit::build_transaction_abort(asmjit::X86Assembler& c, unsigned char code)
{
c.db(0xc6);
c.db(0xf8);
c.db(code);
}
#ifdef LLVM_AVAILABLE
#include <unordered_map>
#include <map>
#include <unordered_set>
#include <set>
#include <array>
#include <deque>
#ifdef _MSC_VER
#pragma warning(push, 0)
#endif
#include "llvm/Support/TargetSelect.h"
#include "llvm/Support/FormattedStream.h"
#include "llvm/ExecutionEngine/ExecutionEngine.h"
#include "llvm/ExecutionEngine/RTDyldMemoryManager.h"
#include "llvm/ExecutionEngine/JITEventListener.h"
#include "llvm/ExecutionEngine/ObjectCache.h"
#ifdef _MSC_VER
#pragma warning(pop)
#endif
#ifdef _WIN32
#include <Windows.h>
#else
#include <sys/mman.h>
#endif
// Memory manager mutex
shared_mutex s_mutex;
// Size of virtual memory area reserved: 512 MB
static const u64 s_memory_size = 0x20000000;
// Try to reserve a portion of virtual memory in the first 2 GB address space beforehand, if possible.
static void* const s_memory = []() -> void*
{
llvm::InitializeNativeTarget();
llvm::InitializeNativeTargetAsmPrinter();
llvm::InitializeNativeTargetAsmParser();
LLVMLinkInMCJIT();
#ifdef MAP_32BIT
auto ptr = ::mmap(nullptr, s_memory_size, PROT_NONE, MAP_ANON | MAP_PRIVATE | MAP_32BIT, -1, 0);
if (ptr != MAP_FAILED)
return ptr;
#else
for (u64 addr = 0x10000000; addr <= 0x80000000 - s_memory_size; addr += 0x1000000)
{
if (auto ptr = utils::memory_reserve(s_memory_size, (void*)addr))
{
return ptr;
}
}
#endif
return utils::memory_reserve(s_memory_size);
}();
static void* s_next = s_memory;
#ifdef _WIN32
static std::deque<std::vector<RUNTIME_FUNCTION>> s_unwater;
static std::vector<std::vector<RUNTIME_FUNCTION>> s_unwind; // .pdata
#else
static std::deque<std::pair<u8*, std::size_t>> s_unfire;
#endif
// Reset memory manager
extern void jit_finalize()
{
#ifdef _WIN32
for (auto&& unwind : s_unwind)
{
if (!RtlDeleteFunctionTable(unwind.data()))
{
LOG_FATAL(GENERAL, "RtlDeleteFunctionTable() failed! Error %u", GetLastError());
}
}
s_unwind.clear();
#else
for (auto&& t : s_unfire)
{
llvm::RTDyldMemoryManager::deregisterEHFramesInProcess(t.first, t.second);
}
s_unfire.clear();
#endif
utils::memory_decommit(s_memory, s_memory_size);
s_next = s_memory;
}
// Helper class
struct MemoryManager : llvm::RTDyldMemoryManager
{
std::unordered_map<std::string, u64>& m_link;
std::array<u8, 16>* m_tramps{};
u8* m_code_addr{}; // TODO
MemoryManager(std::unordered_map<std::string, u64>& table)
: m_link(table)
{
}
[[noreturn]] static void null()
{
fmt::throw_exception("Null function" HERE);
}
llvm::JITSymbol findSymbol(const std::string& name) override
{
auto& addr = m_link[name];
// Find function address
if (!addr)
{
addr = RTDyldMemoryManager::getSymbolAddress(name);
if (addr)
{
LOG_WARNING(GENERAL, "LLVM: Symbol requested: %s -> 0x%016llx", name, addr);
}
else
{
LOG_ERROR(GENERAL, "LLVM: Linkage failed: %s", name);
addr = (u64)null;
}
}
// Verify address for small code model
if ((u64)s_memory > 0x80000000 - s_memory_size ? (u64)addr - (u64)s_memory >= s_memory_size : addr >= 0x80000000)
{
// Lock memory manager
std::lock_guard lock(s_mutex);
// Allocate memory for trampolines
if (!m_tramps)
{
m_tramps = reinterpret_cast<decltype(m_tramps)>(s_next);
utils::memory_commit(s_next, 4096, utils::protection::wx);
s_next = (u8*)((u64)s_next + 4096);
}
// Create a trampoline
auto& data = *m_tramps++;
data[0x0] = 0xff; // JMP [rip+2]
data[0x1] = 0x25;
data[0x2] = 0x02;
data[0x3] = 0x00;
data[0x4] = 0x00;
data[0x5] = 0x00;
data[0x6] = 0x48; // MOV rax, imm64 (not executed)
data[0x7] = 0xb8;
std::memcpy(data.data() + 8, &addr, 8);
addr = (u64)&data;
// Reset pointer (memory page exhausted)
if (((u64)m_tramps % 4096) == 0)
{
m_tramps = nullptr;
}
}
return {addr, llvm::JITSymbolFlags::Exported};
}
u8* allocateCodeSection(std::uintptr_t size, uint align, uint sec_id, llvm::StringRef sec_name) override
{
// Lock memory manager
std::lock_guard lock(s_mutex);
// Simple allocation
const u64 next = ::align((u64)s_next + size, 4096);
if (next > (u64)s_memory + s_memory_size)
{
LOG_FATAL(GENERAL, "LLVM: Out of memory (size=0x%llx, aligned 0x%x)", size, align);
return nullptr;
}
utils::memory_commit(s_next, size, utils::protection::wx);
m_code_addr = (u8*)s_next;
LOG_NOTICE(GENERAL, "LLVM: Code section %u '%s' allocated -> %p (size=0x%llx, aligned 0x%x)", sec_id, sec_name.data(), s_next, size, align);
return (u8*)std::exchange(s_next, (void*)next);
}
u8* allocateDataSection(std::uintptr_t size, uint align, uint sec_id, llvm::StringRef sec_name, bool is_ro) override
{
// Lock memory manager
std::lock_guard lock(s_mutex);
// Simple allocation
const u64 next = ::align((u64)s_next + size, 4096);
if (next > (u64)s_memory + s_memory_size)
{
LOG_FATAL(GENERAL, "LLVM: Out of memory (size=0x%llx, aligned 0x%x)", size, align);
return nullptr;
}
if (!is_ro)
{
}
utils::memory_commit(s_next, size);
LOG_NOTICE(GENERAL, "LLVM: Data section %u '%s' allocated -> %p (size=0x%llx, aligned 0x%x, %s)", sec_id, sec_name.data(), s_next, size, align, is_ro ? "ro" : "rw");
return (u8*)std::exchange(s_next, (void*)next);
}
bool finalizeMemory(std::string* = nullptr) override
{
// Lock memory manager
std::lock_guard lock(s_mutex);
// TODO: make only read-only sections read-only
//#ifdef _WIN32
// DWORD op;
// VirtualProtect(s_memory, (u64)m_next - (u64)s_memory, PAGE_READONLY, &op);
// VirtualProtect(s_code_addr, s_code_size, PAGE_EXECUTE_READ, &op);
//#else
// ::mprotect(s_memory, (u64)m_next - (u64)s_memory, PROT_READ);
// ::mprotect(s_code_addr, s_code_size, PROT_READ | PROT_EXEC);
//#endif
return false;
}
void registerEHFrames(u8* addr, u64 load_addr, std::size_t size) override
{
#ifdef _WIN32
// Lock memory manager
std::lock_guard lock(s_mutex);
// Use s_memory as a BASE, compute the difference
const u64 unwind_diff = (u64)addr - (u64)s_memory;
// Fix RUNTIME_FUNCTION records (.pdata section)
auto pdata = std::move(s_unwater.front());
s_unwater.pop_front();
for (auto& rf : pdata)
{
rf.UnwindData += static_cast<DWORD>(unwind_diff);
}
// Register .xdata UNWIND_INFO structs
if (!RtlAddFunctionTable(pdata.data(), (DWORD)pdata.size(), (u64)s_memory))
{
LOG_ERROR(GENERAL, "RtlAddFunctionTable() failed! Error %u", GetLastError());
}
else
{
s_unwind.emplace_back(std::move(pdata));
}
#else
s_unfire.push_front(std::make_pair(addr, size));
#endif
return RTDyldMemoryManager::registerEHFramesInProcess(addr, size);
}
void deregisterEHFrames() override
{
}
};
// Simple memory manager
struct MemoryManager2 : llvm::RTDyldMemoryManager
{
MemoryManager2() = default;
~MemoryManager2() override
{
}
u8* allocateCodeSection(std::uintptr_t size, uint align, uint sec_id, llvm::StringRef sec_name) override
{
return jit_runtime::alloc(size, align, true);
}
u8* allocateDataSection(std::uintptr_t size, uint align, uint sec_id, llvm::StringRef sec_name, bool is_ro) override
{
return jit_runtime::alloc(size, align, false);
}
bool finalizeMemory(std::string* = nullptr) override
{
return false;
}
void registerEHFrames(u8* addr, u64 load_addr, std::size_t size) override
{
#ifndef _WIN32
RTDyldMemoryManager::registerEHFramesInProcess(addr, size);
s_unfire.push_front(std::make_pair(addr, size));
#endif
}
void deregisterEHFrames() override
{
}
};
// Simple memory manager. I promise there will be no MemoryManager4.
struct MemoryManager3 : llvm::RTDyldMemoryManager
{
std::vector<std::pair<u8*, std::size_t>> allocs;
MemoryManager3() = default;
~MemoryManager3() override
{
for (auto& a : allocs)
{
utils::memory_release(a.first, a.second);
}
}
u8* allocateCodeSection(std::uintptr_t size, uint align, uint sec_id, llvm::StringRef sec_name) override
{
u8* r = static_cast<u8*>(utils::memory_reserve(size));
utils::memory_commit(r, size, utils::protection::wx);
allocs.emplace_back(r, size);
return r;
}
u8* allocateDataSection(std::uintptr_t size, uint align, uint sec_id, llvm::StringRef sec_name, bool is_ro) override
{
u8* r = static_cast<u8*>(utils::memory_reserve(size));
utils::memory_commit(r, size);
allocs.emplace_back(r, size);
return r;
}
bool finalizeMemory(std::string* = nullptr) override
{
return false;
}
void registerEHFrames(u8* addr, u64 load_addr, std::size_t size) override
{
}
void deregisterEHFrames() override
{
}
};
// Helper class
struct EventListener : llvm::JITEventListener
{
MemoryManager& m_mem;
EventListener(MemoryManager& mem)
: m_mem(mem)
{
}
void notifyObjectLoaded(ObjectKey K, const llvm::object::ObjectFile& obj, const llvm::RuntimeDyld::LoadedObjectInfo& inf) override
{
#ifdef _WIN32
for (auto it = obj.section_begin(), end = obj.section_end(); it != end; ++it)
{
llvm::StringRef name;
it->getName(name);
if (name == ".pdata")
{
llvm::StringRef data;
it->getContents(data);
std::vector<RUNTIME_FUNCTION> rfs(data.size() / sizeof(RUNTIME_FUNCTION));
auto offsets = reinterpret_cast<DWORD*>(rfs.data());
// Initialize .pdata section using relocation info
for (auto ri = it->relocation_begin(), end = it->relocation_end(); ri != end; ++ri)
{
if (ri->getType() == 3 /*R_X86_64_GOT32*/)
{
const u64 value = *reinterpret_cast<const DWORD*>(data.data() + ri->getOffset());
offsets[ri->getOffset() / sizeof(DWORD)] = static_cast<DWORD>(value + ri->getSymbol()->getAddress().get());
}
}
// Lock memory manager
std::lock_guard lock(s_mutex);
// Use s_memory as a BASE, compute the difference
const u64 code_diff = (u64)m_mem.m_code_addr - (u64)s_memory;
// Fix RUNTIME_FUNCTION records (.pdata section)
for (auto& rf : rfs)
{
rf.BeginAddress += static_cast<DWORD>(code_diff);
rf.EndAddress += static_cast<DWORD>(code_diff);
}
s_unwater.emplace_back(std::move(rfs));
}
}
#endif
}
};
// Helper class
class ObjectCache final : public llvm::ObjectCache
{
const std::string& m_path;
public:
ObjectCache(const std::string& path)
: m_path(path)
{
}
~ObjectCache() override = default;
void notifyObjectCompiled(const llvm::Module* module, llvm::MemoryBufferRef obj) override
{
std::string name = m_path;
name.append(module->getName());
fs::file(name, fs::rewrite).write(obj.getBufferStart(), obj.getBufferSize());
LOG_NOTICE(GENERAL, "LLVM: Created module: %s", module->getName().data());
}
static std::unique_ptr<llvm::MemoryBuffer> load(const std::string& path)
{
if (fs::file cached{path, fs::read})
{
auto buf = llvm::WritableMemoryBuffer::getNewUninitMemBuffer(cached.size());
cached.read(buf->getBufferStart(), buf->getBufferSize());
return buf;
}
return nullptr;
}
std::unique_ptr<llvm::MemoryBuffer> getObject(const llvm::Module* module) override
{
std::string path = m_path;
path.append(module->getName());
if (auto buf = load(path))
{
LOG_NOTICE(GENERAL, "LLVM: Loaded module: %s", module->getName().data());
return buf;
}
return nullptr;
}
};
std::string jit_compiler::cpu(const std::string& _cpu)
{
std::string m_cpu = _cpu;
if (m_cpu.empty())
{
m_cpu = llvm::sys::getHostCPUName();
if (m_cpu == "sandybridge" ||
m_cpu == "ivybridge" ||
m_cpu == "haswell" ||
m_cpu == "broadwell" ||
m_cpu == "skylake" ||
m_cpu == "skylake-avx512" ||
m_cpu == "cascadelake" ||
m_cpu == "cannonlake" ||
m_cpu == "icelake" ||
m_cpu == "icelake-client" ||
m_cpu == "icelake-server")
{
// Downgrade if AVX is not supported by some chips
if (!utils::has_avx())
{
m_cpu = "nehalem";
}
}
if (m_cpu == "skylake-avx512" ||
m_cpu == "cascadelake" ||
m_cpu == "cannonlake" ||
m_cpu == "icelake" ||
m_cpu == "icelake-client" ||
m_cpu == "icelake-server")
{
// Downgrade if AVX-512 is disabled or not supported
if (!utils::has_512())
{
m_cpu = "skylake";
}
}
}
return m_cpu;
}
jit_compiler::jit_compiler(const std::unordered_map<std::string, u64>& _link, const std::string& _cpu, u32 flags)
: m_link(_link)
, m_cpu(cpu(_cpu))
{
std::string result;
if (m_link.empty())
{
std::unique_ptr<llvm::RTDyldMemoryManager> mem;
if (flags & 0x1)
{
mem = std::make_unique<MemoryManager3>();
}
else
{
mem = std::make_unique<MemoryManager2>();
}
// Auxiliary JIT (does not use custom memory manager, only writes the objects)
m_engine.reset(llvm::EngineBuilder(std::make_unique<llvm::Module>("null_", m_context))
.setErrorStr(&result)
.setEngineKind(llvm::EngineKind::JIT)
.setMCJITMemoryManager(std::move(mem))
.setOptLevel(llvm::CodeGenOpt::Aggressive)
.setCodeModel(flags & 0x2 ? llvm::CodeModel::Large : llvm::CodeModel::Small)
.setMCPU(m_cpu)
.create());
}
else
{
// Primary JIT
auto mem = std::make_unique<MemoryManager>(m_link);
m_jit_el = std::make_unique<EventListener>(*mem);
m_engine.reset(llvm::EngineBuilder(std::make_unique<llvm::Module>("null", m_context))
.setErrorStr(&result)
.setEngineKind(llvm::EngineKind::JIT)
.setMCJITMemoryManager(std::move(mem))
.setOptLevel(llvm::CodeGenOpt::Aggressive)
.setCodeModel(flags & 0x2 ? llvm::CodeModel::Large : llvm::CodeModel::Small)
.setMCPU(m_cpu)
.create());
if (m_engine)
{
m_engine->RegisterJITEventListener(m_jit_el.get());
}
}
if (!m_engine)
{
fmt::throw_exception("LLVM: Failed to create ExecutionEngine: %s", result);
}
}
jit_compiler::~jit_compiler()
{
}
void jit_compiler::add(std::unique_ptr<llvm::Module> module, const std::string& path)
{
ObjectCache cache{path};
m_engine->setObjectCache(&cache);
const auto ptr = module.get();
m_engine->addModule(std::move(module));
m_engine->generateCodeForModule(ptr);
m_engine->setObjectCache(nullptr);
for (auto& func : ptr->functions())
{
// Delete IR to lower memory consumption
func.deleteBody();
}
}
void jit_compiler::add(std::unique_ptr<llvm::Module> module)
{
const auto ptr = module.get();
m_engine->addModule(std::move(module));
m_engine->generateCodeForModule(ptr);
for (auto& func : ptr->functions())
{
// Delete IR to lower memory consumption
func.deleteBody();
}
}
void jit_compiler::add(const std::string& path)
{
m_engine->addObjectFile(std::move(llvm::object::ObjectFile::createObjectFile(*ObjectCache::load(path)).get()));
}
void jit_compiler::fin()
{
m_engine->finalizeObject();
}
u64 jit_compiler::get(const std::string& name)
{
return m_engine->getGlobalValueAddress(name);
}
#endif
-170
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@@ -1,170 +0,0 @@
#pragma once
#define ASMJIT_EMBED
#define ASMJIT_DEBUG
#include <asmjit/asmjit.h>
#include <array>
#include <functional>
enum class jit_class
{
ppu_code,
ppu_data,
spu_code,
spu_data,
};
// ASMJIT runtime for emitting code in a single 2G region
struct jit_runtime final : asmjit::HostRuntime
{
jit_runtime();
~jit_runtime() override;
// Allocate executable memory
asmjit::Error _add(void** dst, asmjit::CodeHolder* code) noexcept override;
// Do nothing (deallocation is delayed)
asmjit::Error _release(void* p) noexcept override;
// Allocate memory
static u8* alloc(std::size_t size, uint align, bool exec = true) noexcept;
// Should be called at least once after global initialization
static void initialize();
// Deallocate all memory
static void finalize() noexcept;
};
namespace asmjit
{
// Should only be used to build global functions
asmjit::JitRuntime& get_global_runtime();
// Emit xbegin and adjacent loop, return label at xbegin
void build_transaction_enter(X86Assembler& c, Label fallback, const X86Gp& ctr, uint less_than);
// Emit xabort
void build_transaction_abort(X86Assembler& c, unsigned char code);
}
// Build runtime function with asmjit::X86Assembler
template <typename FT, typename F>
FT build_function_asm(F&& builder)
{
using namespace asmjit;
auto& rt = get_global_runtime();
CodeHolder code;
code.init(rt.getCodeInfo());
code._globalHints = asmjit::CodeEmitter::kHintOptimizedAlign;
std::array<X86Gp, 4> args;
#ifdef _WIN32
args[0] = x86::rcx;
args[1] = x86::rdx;
args[2] = x86::r8;
args[3] = x86::r9;
#else
args[0] = x86::rdi;
args[1] = x86::rsi;
args[2] = x86::rdx;
args[3] = x86::rcx;
#endif
X86Assembler compiler(&code);
builder(std::ref(compiler), args);
FT result;
if (rt.add(&result, &code))
{
return nullptr;
}
return result;
}
#ifdef LLVM_AVAILABLE
#include <memory>
#include <string>
#include <string_view>
#include <unordered_map>
#include "types.h"
#include "mutex.h"
#include "restore_new.h"
#ifdef _MSC_VER
#pragma warning(push, 0)
#endif
#include "llvm/IR/LLVMContext.h"
#include "llvm/IR/Module.h"
#include "llvm/ExecutionEngine/ExecutionEngine.h"
#ifdef _MSC_VER
#pragma warning(pop)
#endif
#include "define_new_memleakdetect.h"
// Temporary compiler interface
class jit_compiler final
{
// Local LLVM context
llvm::LLVMContext m_context;
// JIT Event Listener
std::unique_ptr<struct EventListener> m_jit_el;
// Execution instance
std::unique_ptr<llvm::ExecutionEngine> m_engine;
// Link table
std::unordered_map<std::string, u64> m_link;
// Arch
std::string m_cpu;
public:
jit_compiler(const std::unordered_map<std::string, u64>& _link, const std::string& _cpu, u32 flags = 0);
~jit_compiler();
// Get LLVM context
auto& get_context()
{
return m_context;
}
auto& get_engine() const
{
return *m_engine;
}
// Add module (path to obj cache dir)
void add(std::unique_ptr<llvm::Module> module, const std::string& path);
// Add module (not cached)
void add(std::unique_ptr<llvm::Module> module);
// Add object (path to obj file)
void add(const std::string& path);
// Finalize
void fin();
// Get compiled function address
u64 get(const std::string& name);
// Get CPU info
static std::string cpu(const std::string& _cpu);
// Check JIT purpose
bool is_primary() const
{
return !m_link.empty();
}
};
#endif
-265
View File
@@ -1,265 +0,0 @@
/*
* Lightweight URL & URI parser (RFC 1738, RFC 3986)
* https://github.com/corporateshark/LUrlParser
*
* The MIT License (MIT)
*
* Copyright (C) 2015 Sergey Kosarevsky (sk@linderdaum.com)
*
* Permission is hereby granted, free of charge, to any person obtaining a copy
* of this software and associated documentation files (the "Software"), to deal
* in the Software without restriction, including without limitation the rights
* to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
* copies of the Software, and to permit persons to whom the Software is
* furnished to do so, subject to the following conditions:
*
* The above copyright notice and this permission notice shall be included in all
* copies or substantial portions of the Software.
*
* THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
* IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
* FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
* AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
* LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
* OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
* SOFTWARE.
*/
#include "LUrlParser.h"
#include <algorithm>
#include <cstring>
#include <stdlib.h>
// check if the scheme name is valid
static bool IsSchemeValid( const std::string& SchemeName )
{
for ( auto c : SchemeName )
{
if ( !isalpha( c ) && c != '+' && c != '-' && c != '.' ) return false;
}
return true;
}
bool LUrlParser::clParseURL::GetPort( int* OutPort ) const
{
if ( !IsValid() ) { return false; }
int Port = atoi( m_Port.c_str() );
if ( Port <= 0 || Port > 65535 ) { return false; }
if ( OutPort ) { *OutPort = Port; }
return true;
}
// based on RFC 1738 and RFC 3986
LUrlParser::clParseURL LUrlParser::clParseURL::ParseURL( const std::string& URL )
{
LUrlParser::clParseURL Result;
const char* CurrentString = URL.c_str();
/*
* <scheme>:<scheme-specific-part>
* <scheme> := [a-z\+\-\.]+
* For resiliency, programs interpreting URLs should treat upper case letters as equivalent to lower case in scheme names
*/
// try to read scheme
{
const char* LocalString = strchr( CurrentString, ':' );
if ( !LocalString )
{
return clParseURL( LUrlParserError_NoUrlCharacter );
}
// save the scheme name
Result.m_Scheme = std::string( CurrentString, LocalString - CurrentString );
if ( !IsSchemeValid( Result.m_Scheme ) )
{
return clParseURL( LUrlParserError_InvalidSchemeName );
}
// scheme should be lowercase
std::transform( Result.m_Scheme.begin(), Result.m_Scheme.end(), Result.m_Scheme.begin(), ::tolower );
// skip ':'
CurrentString = LocalString+1;
}
/*
* //<user>:<password>@<host>:<port>/<url-path>
* any ":", "@" and "/" must be normalized
*/
// skip "//"
if ( *CurrentString++ != '/' ) return clParseURL( LUrlParserError_NoDoubleSlash );
if ( *CurrentString++ != '/' ) return clParseURL( LUrlParserError_NoDoubleSlash );
// check if the user name and password are specified
bool bHasUserName = false;
const char* LocalString = CurrentString;
while ( *LocalString )
{
if ( *LocalString == '@' )
{
// user name and password are specified
bHasUserName = true;
break;
}
else if ( *LocalString == '/' )
{
// end of <host>:<port> specification
bHasUserName = false;
break;
}
LocalString++;
}
// user name and password
LocalString = CurrentString;
if ( bHasUserName )
{
// read user name
while ( *LocalString && *LocalString != ':' && *LocalString != '@' ) LocalString++;
Result.m_UserName = std::string( CurrentString, LocalString - CurrentString );
// proceed with the current pointer
CurrentString = LocalString;
if ( *CurrentString == ':' )
{
// skip ':'
CurrentString++;
// read password
LocalString = CurrentString;
while ( *LocalString && *LocalString != '@' ) LocalString++;
Result.m_Password = std::string( CurrentString, LocalString - CurrentString );
CurrentString = LocalString;
}
// skip '@'
if ( *CurrentString != '@' )
{
return clParseURL( LUrlParserError_NoAtSign );
}
CurrentString++;
}
bool bHasBracket = ( *CurrentString == '[' );
// go ahead, read the host name
LocalString = CurrentString;
while ( *LocalString )
{
if ( bHasBracket && *LocalString == ']' )
{
// end of IPv6 address
LocalString++;
break;
}
else if ( !bHasBracket && ( *LocalString == ':' || *LocalString == '/' ) )
{
// port number is specified
break;
}
LocalString++;
}
Result.m_Host = std::string( CurrentString, LocalString - CurrentString );
CurrentString = LocalString;
// is port number specified?
if ( *CurrentString == ':' )
{
CurrentString++;
// read port number
LocalString = CurrentString;
while ( *LocalString && *LocalString != '/' ) LocalString++;
Result.m_Port = std::string( CurrentString, LocalString - CurrentString );
CurrentString = LocalString;
}
// end of string
if ( !*CurrentString )
{
Result.m_ErrorCode = LUrlParserError_Ok;
return Result;
}
// skip '/'
if ( *CurrentString != '/' )
{
return clParseURL( LUrlParserError_NoSlash );
}
CurrentString++;
// parse the path
LocalString = CurrentString;
while ( *LocalString && *LocalString != '#' && *LocalString != '?' ) LocalString++;
Result.m_Path = std::string( CurrentString, LocalString - CurrentString );
CurrentString = LocalString;
// check for query
if ( *CurrentString == '?' )
{
// skip '?'
CurrentString++;
// read query
LocalString = CurrentString;
while ( *LocalString && *LocalString != '#' ) LocalString++;
Result.m_Query = std::string( CurrentString, LocalString - CurrentString );
CurrentString = LocalString;
}
// check for fragment
if ( *CurrentString == '#' )
{
// skip '#'
CurrentString++;
// read fragment
LocalString = CurrentString;
while ( *LocalString ) LocalString++;
Result.m_Fragment = std::string( CurrentString, LocalString - CurrentString );
CurrentString = LocalString;
}
Result.m_ErrorCode = LUrlParserError_Ok;
return Result;
}
-78
View File
@@ -1,78 +0,0 @@
/*
* Lightweight URL & URI parser (RFC 1738, RFC 3986)
* https://github.com/corporateshark/LUrlParser
*
* The MIT License (MIT)
*
* Copyright (C) 2015 Sergey Kosarevsky (sk@linderdaum.com)
*
* Permission is hereby granted, free of charge, to any person obtaining a copy
* of this software and associated documentation files (the "Software"), to deal
* in the Software without restriction, including without limitation the rights
* to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
* copies of the Software, and to permit persons to whom the Software is
* furnished to do so, subject to the following conditions:
*
* The above copyright notice and this permission notice shall be included in all
* copies or substantial portions of the Software.
*
* THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
* IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
* FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
* AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
* LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
* OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
* SOFTWARE.
*/
#pragma once
#include <string>
namespace LUrlParser
{
enum LUrlParserError
{
LUrlParserError_Ok = 0,
LUrlParserError_Uninitialized = 1,
LUrlParserError_NoUrlCharacter = 2,
LUrlParserError_InvalidSchemeName = 3,
LUrlParserError_NoDoubleSlash = 4,
LUrlParserError_NoAtSign = 5,
LUrlParserError_UnexpectedEndOfLine = 6,
LUrlParserError_NoSlash = 7,
};
class clParseURL
{
public:
LUrlParserError m_ErrorCode;
std::string m_Scheme;
std::string m_Host;
std::string m_Port;
std::string m_Path;
std::string m_Query;
std::string m_Fragment;
std::string m_UserName;
std::string m_Password;
clParseURL()
: m_ErrorCode( LUrlParserError_Uninitialized )
{}
/// return 'true' if the parsing was successful
bool IsValid() const { return m_ErrorCode == LUrlParserError_Ok; }
/// helper to convert the port number to int, return 'true' if the port is valid (within the 0..65535 range)
bool GetPort( int* OutPort ) const;
/// parse the URL
static clParseURL ParseURL( const std::string& URL );
private:
explicit clParseURL( LUrlParserError ErrorCode )
: m_ErrorCode( ErrorCode )
{}
};
} // namespace LUrlParser
+97 -611
View File
@@ -1,664 +1,150 @@
#include "Log.h"
#include "stdafx.h"
#include "Thread.h"
#include "File.h"
#include "StrFmt.h"
#include "sema.h"
#include "Utilities/sysinfo.h"
#include "Utilities/Thread.h"
#include "rpcs3_version.h"
#include <cstring>
#include <cstdarg>
#include <string>
#include <unordered_map>
#include <thread>
#include <chrono>
#include <cstring>
using namespace std::literals::chrono_literals;
#include "Log.h"
#ifdef _WIN32
#define NOMINMAX
#include <Windows.h>
#else
#include <sys/mman.h>
#include <sys/stat.h>
#endif
#include <zlib.h>
static std::string empty_string()
namespace _log
{
return {};
logger& get_logger()
{
// Use magic static for global logger instance
static logger instance;
return instance;
}
file_listener g_log_file(_PRGNAME_ ".log");
file_writer g_tty_file("TTY.log");
channel GENERAL("", level::notice);
channel LOADER("LDR", level::notice);
channel MEMORY("MEM", level::notice);
channel RSX("RSX", level::notice);
channel HLE("HLE", level::notice);
channel PPU("PPU", level::notice);
channel SPU("SPU", level::notice);
channel ARMv7("ARMv7");
}
// Thread-specific log prefix provider
thread_local std::string(*g_tls_log_prefix)() = &empty_string;
template<>
void fmt_class_string<logs::level>::format(std::string& out, u64 arg)
_log::listener::listener()
{
format_enum(out, arg, [](auto lev)
{
switch (lev)
{
case logs::level::always: return "Nothing";
case logs::level::fatal: return "Fatal";
case logs::level::error: return "Error";
case logs::level::todo: return "TODO";
case logs::level::success: return "Success";
case logs::level::warning: return "Warning";
case logs::level::notice: return "Notice";
case logs::level::trace: return "Trace";
case logs::level::_uninit: return unknown;
}
return unknown;
});
// Register self
get_logger().add_listener(this);
}
namespace logs
_log::listener::~listener()
{
// Memory-mapped buffer size
constexpr u64 s_log_size = 32 * 1024 * 1024;
// Unregister self
get_logger().remove_listener(this);
}
class file_writer
_log::channel::channel(const std::string& name, _log::level init_level)
: name{ name }
, enabled{ init_level }
{
// TODO: register config property "name" associated with "enabled" member
}
void _log::logger::add_listener(_log::listener* listener)
{
std::lock_guard<shared_mutex> lock(m_mutex);
m_listeners.emplace(listener);
}
void _log::logger::remove_listener(_log::listener* listener)
{
std::lock_guard<shared_mutex> lock(m_mutex);
m_listeners.erase(listener);
}
void _log::logger::broadcast(const _log::channel& ch, _log::level sev, const std::string& text) const
{
reader_lock lock(m_mutex);
for (auto listener : m_listeners)
{
fs::file m_file;
std::string m_name;
std::thread m_writer;
fs::file m_fout;
fs::file m_fout2;
u64 m_max_size;
#ifdef _WIN32
::HANDLE m_fmap;
#endif
uchar* m_fptr{};
z_stream m_zs{};
shared_mutex m_m;
alignas(128) atomic_t<u64> m_buf{0}; // MSB (40 bit): push begin, LSB (24 bis): push size
alignas(128) atomic_t<u64> m_out{0}; // Amount of bytes written to file
uchar m_zout[65536];
// Write buffered logs immediately
bool flush(u64 bufv);
public:
file_writer(const std::string& name);
virtual ~file_writer();
// Append raw data
void log(logs::level sev, const char* text, std::size_t size);
};
struct channel_info
{
channel* pointer = nullptr;
level enabled = level::notice;
void set_level(level value)
{
enabled = value;
if (pointer)
{
pointer->enabled = value;
}
}
};
struct stored_message
{
message m;
u64 stamp;
std::string prefix;
std::string text;
};
struct file_listener : public file_writer, public listener
{
file_listener(const std::string& name);
virtual ~file_listener() = default;
// Encode level, current thread name, channel name and write log message
virtual void log(u64 stamp, const message& msg, const std::string& prefix, const std::string& text) override;
// Channel registry
std::unordered_map<std::string, channel_info> channels;
// Messages for delayed listener initialization
std::vector<stored_message> messages;
};
static file_listener* get_logger()
{
// Use magic static
static file_listener logger("RPCS3");
return &logger;
}
static u64 get_stamp()
{
static struct time_initializer
{
#ifdef _WIN32
LARGE_INTEGER freq;
LARGE_INTEGER start;
time_initializer()
{
QueryPerformanceFrequency(&freq);
QueryPerformanceCounter(&start);
}
#else
std::chrono::steady_clock::time_point start = std::chrono::steady_clock::now();
#endif
u64 get() const
{
#ifdef _WIN32
LARGE_INTEGER now;
QueryPerformanceCounter(&now);
const LONGLONG diff = now.QuadPart - start.QuadPart;
return diff / freq.QuadPart * 1'000'000 + diff % freq.QuadPart * 1'000'000 / freq.QuadPart;
#else
return std::chrono::duration_cast<std::chrono::microseconds>(std::chrono::steady_clock::now() - start).count();
#endif
}
} timebase{};
return timebase.get();
}
channel GENERAL("");
channel LOADER("LDR");
channel MEMORY("MEM");
channel RSX("RSX");
channel HLE("HLE");
channel PPU("PPU");
channel SPU("SPU");
// Channel registry mutex
shared_mutex g_mutex;
// Must be set to true in main()
atomic_t<bool> g_init{false};
void reset()
{
std::lock_guard lock(g_mutex);
for (auto&& pair : get_logger()->channels)
{
pair.second.set_level(level::notice);
}
}
void set_level(const std::string& ch_name, level value)
{
std::lock_guard lock(g_mutex);
get_logger()->channels[ch_name].set_level(value);
}
// Must be called in main() to stop accumulating messages in g_messages
void set_init()
{
if (!g_init)
{
std::lock_guard lock(g_mutex);
get_logger()->messages.clear();
g_init = true;
}
listener->log(ch, sev, text);
}
}
logs::listener::~listener()
void _log::broadcast(const _log::channel& ch, _log::level sev, const std::string& text)
{
get_logger().broadcast(ch, sev, text);
}
void logs::listener::add(logs::listener* _new)
_log::file_writer::file_writer(const std::string& name)
{
// Get first (main) listener
listener* lis = get_logger();
std::lock_guard lock(g_mutex);
// Install new listener at the end of linked list
while (lis->m_next || !lis->m_next.compare_and_swap_test(nullptr, _new))
{
lis = lis->m_next;
}
// Send initial messages
for (const auto& msg : get_logger()->messages)
{
_new->log(msg.stamp, msg.m, msg.prefix, msg.text);
}
}
void logs::message::broadcast(const char* fmt, const fmt_type_info* sup, ...) const
{
// Get timestamp
const u64 stamp = get_stamp();
// Register channel
if (ch->enabled == level::_uninit)
{
std::lock_guard lock(g_mutex);
auto& info = get_logger()->channels[ch->name];
if (info.pointer && info.pointer != ch)
{
fmt::throw_exception("logs::channel repetition: %s", ch->name);
}
else if (!info.pointer)
{
info.pointer = ch;
ch->enabled = info.enabled;
// Check level again
if (info.enabled < sev)
{
return;
}
}
}
// Get text, extract va_args
thread_local std::string text;
thread_local std::vector<u64> args;
std::size_t args_count = 0;
for (auto v = sup; v->fmt_string; v++)
args_count++;
text.clear();
args.resize(args_count);
va_list c_args;
va_start(c_args, sup);
for (u64& arg : args)
arg = va_arg(c_args, u64);
va_end(c_args);
fmt::raw_append(text, fmt, sup, args.data());
std::string prefix = g_tls_log_prefix();
// Get first (main) listener
listener* lis = get_logger();
if (!g_init)
{
std::lock_guard lock(g_mutex);
if (!g_init)
{
while (lis)
{
lis->log(stamp, *this, prefix, text);
lis = lis->m_next;
}
// Store message additionally
get_logger()->messages.emplace_back(stored_message{*this, stamp, std::move(prefix), text});
}
}
// Send message to all listeners
while (lis)
{
lis->log(stamp, *this, prefix, text);
lis = lis->m_next;
}
}
[[noreturn]] extern void catch_all_exceptions();
logs::file_writer::file_writer(const std::string& name)
: m_name(name)
{
const std::string log_name = fs::get_cache_dir() + name + ".log";
const std::string buf_name = fs::get_cache_dir() + name + ".buf";
try
{
if (!m_file.open(buf_name, fs::read + fs::rewrite + fs::lock))
if (!m_file.open(fs::get_config_dir() + name, fom::rewrite | fom::append))
{
if (fs::g_tls_error == fs::error::acces)
{
if (fs::exists(buf_name))
{
fmt::throw_exception("Another instance of %s is running. Close it or kill its process, if necessary.", name);
}
else
{
fmt::throw_exception("Cannot create %s.log (access denied)."
throw EXCEPTION("Can't create log file %s (error %d)", name, errno);
}
}
catch (const fmt::exception& e)
{
#ifdef _WIN32
"\nNote that %s cannot be installed in Program Files or similar directory with limited permissions."
MessageBoxA(0, e.what(), "_log::file_writer() failed", MB_ICONERROR);
#else
"\nPlease, check %s permissions in '~/.config/'."
#endif
, name, name);
}
}
fmt::throw_exception("Cannot create %s.log (error %s)", name, fs::g_tls_error);
}
// Check free space
fs::device_stat stats{};
if (!fs::statfs(fs::get_cache_dir(), stats) || stats.avail_free < s_log_size * 8)
{
fmt::throw_exception("Not enough free space (%f KB)", stats.avail_free / 1000000.);
}
// Limit log size to ~25% of free space
m_max_size = stats.avail_free / 4;
// Initialize memory mapped file
#ifdef _WIN32
m_fmap = CreateFileMappingW(m_file.get_handle(), 0, PAGE_READWRITE, s_log_size >> 32, s_log_size & 0xffffffff, 0);
m_fptr = m_fmap ? (uchar*)MapViewOfFile(m_fmap, FILE_MAP_WRITE, 0, 0, 0) : nullptr;
#else
m_file.trunc(s_log_size);
m_fptr = (uchar*)::mmap(0, s_log_size, PROT_READ | PROT_WRITE, MAP_SHARED, m_file.get_handle(), 0);
#endif
verify(name.c_str()), m_fptr;
// Rotate backups (TODO)
fs::remove_file(fs::get_cache_dir() + name + "1.log.gz");
fs::create_dir(fs::get_cache_dir() + "old_logs");
fs::rename(fs::get_cache_dir() + m_name + ".log.gz", fs::get_cache_dir() + "old_logs/" + m_name + ".log.gz", true);
// Actual log file (allowed to fail)
m_fout.open(log_name, fs::rewrite);
// Compressed log, make it inaccessible (foolproof)
if (!m_fout2.open(log_name + ".gz", fs::rewrite + fs::unread) || deflateInit2(&m_zs, 9, Z_DEFLATED, 16 + 15, 9, Z_DEFAULT_STRATEGY) != Z_OK)
{
m_fout2.close();
}
#ifdef _WIN32
// Autodelete compressed log file
m_fout2.set_delete();
std::printf("_log::file_writer() failed: %s\n", e.what());
#endif
}
catch (const std::exception& e)
{
std::thread([text = std::string{e.what()}]{ report_fatal_error(text); }).detach();
return;
}
catch (...)
{
std::thread([]{ report_fatal_error("Unknown error" HERE); }).detach();
return;
}
m_writer = std::thread([this]()
{
thread_ctrl::set_native_priority(-1);
while (true)
{
const u64 bufv = m_buf;
if (bufv & 0xffffff)
{
// Wait if threads are writing logs
std::this_thread::yield();
continue;
}
if (!flush(bufv))
{
if (m_out == -1)
{
break;
}
std::this_thread::sleep_for(10ms);
}
}
});
}
logs::file_writer::~file_writer()
void _log::file_writer::log(const std::string& text)
{
if (!m_fptr)
{
return;
}
// Stop writer thread
while (m_out << 24 < m_buf)
{
std::this_thread::yield();
}
m_out = -1;
m_writer.join();
if (m_fout2)
{
m_zs.avail_in = 0;
m_zs.next_in = nullptr;
do
{
m_zs.avail_out = sizeof(m_zout);
m_zs.next_out = m_zout;
if (deflate(&m_zs, Z_FINISH) == Z_STREAM_ERROR || m_fout2.write(m_zout, sizeof(m_zout) - m_zs.avail_out) != sizeof(m_zout) - m_zs.avail_out)
{
break;
}
}
while (m_zs.avail_out == 0);
deflateEnd(&m_zs);
}
#ifdef _WIN32
// Cancel compressed log file autodeletion
m_fout2.set_delete(false);
UnmapViewOfFile(m_fptr);
CloseHandle(m_fmap);
#else
// Restore compressed log file permissions
::fchmod(m_fout2.get_handle(), S_IRUSR | S_IWUSR | S_IRGRP | S_IROTH);
::munmap(m_fptr, s_log_size);
#endif
m_file.write(text);
}
bool logs::file_writer::flush(u64 bufv)
std::size_t _log::file_writer::size() const
{
std::lock_guard lock(m_m);
const u64 st = +m_out;
const u64 end = std::min<u64>((st + s_log_size) & ~(s_log_size - 1), bufv >> 24);
if (end > st)
{
// Avoid writing too big fragments
const u64 size = std::min<u64>(end - st, sizeof(m_zout) / 2);
// Write uncompressed
if (m_fout && st < m_max_size && m_fout.write(m_fptr + st % s_log_size, size) != size)
{
m_fout.close();
}
// Write compressed
if (m_fout2 && st < m_max_size)
{
m_zs.avail_in = size;
m_zs.next_in = m_fptr + st % s_log_size;
do
{
m_zs.avail_out = sizeof(m_zout);
m_zs.next_out = m_zout;
if (deflate(&m_zs, Z_NO_FLUSH) == Z_STREAM_ERROR || m_fout2.write(m_zout, sizeof(m_zout) - m_zs.avail_out) != sizeof(m_zout) - m_zs.avail_out)
{
deflateEnd(&m_zs);
m_fout2.close();
break;
}
}
while (m_zs.avail_out == 0);
}
m_out += size;
return true;
}
return false;
return m_file.seek(0, fs::seek_cur);
}
void logs::file_writer::log(logs::level sev, const char* text, std::size_t size)
void _log::file_listener::log(const _log::channel& ch, _log::level sev, const std::string& text)
{
if (!m_fptr)
{
return;
}
// TODO: write bigger fragment directly in blocking manner
while (size && size <= 0xffffff)
{
u64 bufv;
const auto pos = m_buf.atomic_op([&](u64& v) -> uchar*
{
const u64 v1 = v >> 24;
const u64 v2 = v & 0xffffff;
if (UNLIKELY(v2 + size > 0xffffff || v1 + v2 + size >= m_out + s_log_size))
{
bufv = v;
return nullptr;
}
v += size;
return m_fptr + (v1 + v2) % s_log_size;
});
if (UNLIKELY(!pos))
{
if ((bufv & 0xffffff) + size > 0xffffff || bufv & 0xffffff)
{
// Concurrency limit reached
std::this_thread::yield();
}
else
{
// Queue is full, need to write out
flush(bufv);
}
continue;
}
if (pos + size > m_fptr + s_log_size)
{
const auto frag = m_fptr + s_log_size - pos;
std::memcpy(pos, text, frag);
std::memcpy(m_fptr, text + frag, size - frag);
}
else
{
std::memcpy(pos, text, size);
}
m_buf += (u64{size} << 24) - size;
break;
}
}
logs::file_listener::file_listener(const std::string& name)
: file_writer(name)
, listener()
{
// Write UTF-8 BOM
file_writer::log(logs::level::always, "\xEF\xBB\xBF", 3);
const std::string firmware_version = utils::get_firmware_version();
const std::string firmware_string = firmware_version.empty() ? "" : (" | Firmware version: " + firmware_version);
// Write initial message
stored_message ver;
ver.m.ch = nullptr;
ver.m.sev = level::always;
ver.stamp = 0;
ver.text = fmt::format("RPCS3 v%s | %s%s\n%s", rpcs3::version.to_string(), rpcs3::get_branch(), firmware_string, utils::get_system_info());
file_writer::log(logs::level::always, ver.text.data(), ver.text.size());
file_writer::log(logs::level::always, "\n", 1);
messages.emplace_back(std::move(ver));
// Write OS version
stored_message os;
os.m.ch = nullptr;
os.m.sev = level::notice;
os.stamp = 0;
os.text = utils::get_OS_version();
file_writer::log(logs::level::notice, os.text.data(), os.text.size());
file_writer::log(logs::level::notice, "\n", 1);
messages.emplace_back(std::move(os));
}
void logs::file_listener::log(u64 stamp, const logs::message& msg, const std::string& prefix, const std::string& _text)
{
thread_local std::string text;
std::string msg; msg.reserve(text.size() + 200);
// Used character: U+00B7 (Middle Dot)
switch (msg.sev)
switch (sev)
{
case level::always: text = u8"·A "; break;
case level::fatal: text = u8"·F "; break;
case level::error: text = u8"·E "; break;
case level::todo: text = u8"·U "; break;
case level::success: text = u8"·S "; break;
case level::warning: text = u8"·W "; break;
case level::notice: text = u8"·! "; break;
case level::trace: text = u8"·T "; break;
case level::_uninit: text = u8"· "; break;
case level::always: msg = u8"·A "; break;
case level::fatal: msg = u8"·F "; break;
case level::error: msg = u8"·E "; break;
case level::todo: msg = u8"·U "; break;
case level::success: msg = u8"·S "; break;
case level::warning: msg = u8"·W "; break;
case level::notice: msg = u8"·! "; break;
case level::trace: msg = u8"·T "; break;
}
// Print µs timestamp
const u64 hours = stamp / 3600'000'000;
const u64 mins = (stamp % 3600'000'000) / 60'000'000;
const u64 secs = (stamp % 60'000'000) / 1'000'000;
const u64 frac = (stamp % 1'000'000);
fmt::append(text, "%u:%02u:%02u.%06u ", hours, mins, secs, frac);
// TODO: print time?
if (!prefix.empty())
if (auto t = thread_ctrl::get_current())
{
text += "{";
text += prefix;
text += "} ";
msg += '{';
msg += t->get_name();
msg += "} ";
}
if (msg.ch && '\0' != *msg.ch->name)
if (ch.name.size())
{
text += msg.ch->name;
text += msg.sev == level::todo ? " TODO: " : ": ";
msg += ch.name;
msg += sev == level::todo ? " TODO: " : ": ";
}
else if (msg.sev == level::todo)
else if (sev == level::todo)
{
text += "TODO: ";
msg += "TODO: ";
}
msg += text;
msg += '\n';
text += _text;
text += '\n';
file_writer::log(msg.sev, text.data(), text.size());
file_writer::log(msg);
}
+96 -64
View File
@@ -1,85 +1,79 @@
#pragma once
#include "types.h"
#include "util/atomic.hpp"
#include "StrFmt.h"
#include <climits>
#include "SharedMutex.h"
namespace logs
namespace _log
{
enum class level : uint
{
always, // Highest log severity (unused, cannot be disabled)
always, // highest level (unused, cannot be disabled)
fatal,
error,
todo,
success,
warning,
notice,
trace, // Lowest severity (usually disabled)
_uninit = UINT_MAX, // Special value for delayed initialization
trace, // lowest level (usually disabled)
};
struct channel;
struct listener;
// Message information
struct message
// Log manager
class logger final
{
channel* ch;
level sev;
mutable shared_mutex m_mutex;
private:
// Send log message to global logger instance
void broadcast(const char*, const fmt_type_info*, ...) const;
friend struct channel;
};
class listener
{
// Next listener (linked list)
atomic_t<listener*> m_next{};
friend struct message;
std::set<listener*> m_listeners;
public:
constexpr listener() = default;
// Register listener
void add_listener(listener* listener);
virtual ~listener();
// Unregister listener
void remove_listener(listener* listener);
// Process log message
virtual void log(u64 stamp, const message& msg, const std::string& prefix, const std::string& text) = 0;
// Add new listener
static void add(listener*);
// Send log message to all listeners
void broadcast(const channel& ch, level sev, const std::string& text) const;
};
// Send log message to global logger instance
void broadcast(const channel& ch, level sev, const std::string& text);
// Log channel (source)
struct channel
{
// Channel prefix (added to every log message)
const char* const name;
// Channel prefix (also used for identification)
const std::string name;
// The lowest logging level enabled for this channel (used for early filtering)
atomic_t<level> enabled;
std::atomic<level> enabled;
// Constant initialization: channel name
constexpr channel(const char* name)
: name(name)
, enabled(level::_uninit)
// Initialization (max level enabled by default)
channel(const std::string& name, level = level::trace);
virtual ~channel() = default;
// Log without formatting
force_inline void log(level sev, const std::string& text) const
{
if (sev <= enabled)
broadcast(*this, sev, text);
}
// Log with formatting
template<typename... Args>
force_inline safe_buffers void format(level sev, const char* fmt, const Args&... args) const
{
if (sev <= enabled)
broadcast(*this, sev, fmt::format(fmt, fmt::do_unveil(args)...));
}
#define GEN_LOG_METHOD(_sev)\
const message msg_##_sev{this, level::_sev};\
template <typename... Args>\
void _sev(const char* fmt, const Args&... args)\
template<typename... Args>\
force_inline void _sev(const char* fmt, const Args&... args)\
{\
if (UNLIKELY(level::_sev <= enabled))\
{\
static constexpr fmt_type_info type_list[sizeof...(Args) + 1]{fmt_type_info::make<fmt_unveil_t<Args>>()...};\
msg_##_sev.broadcast(fmt, type_list, u64{fmt_unveil<Args>::get(args)}...);\
}\
return format<Args...>(level::_sev, fmt, args...);\
}
GEN_LOG_METHOD(fatal)
@@ -93,7 +87,52 @@ namespace logs
#undef GEN_LOG_METHOD
};
/* Small set of predefined channels */
// Log listener (destination)
struct listener
{
listener();
virtual ~listener();
virtual void log(const channel& ch, level sev, const std::string& text) = 0;
};
class file_writer
{
// Could be memory-mapped file
fs::file m_file;
public:
file_writer(const std::string& name);
virtual ~file_writer() = default;
// Append raw data
void log(const std::string& text);
// Get current file size (may be used by secondary readers)
std::size_t size() const;
};
struct file_listener : public file_writer, public listener
{
file_listener(const std::string& name)
: file_writer(name)
, listener()
{
}
// Encode level, current thread name, channel name and write log message
virtual void log(const channel& ch, level sev, const std::string& text) override;
};
// Global variable for RPCS3.log
extern file_listener g_log_file;
// Global variable for TTY.log
extern file_writer g_tty_file;
// Small set of predefined channels:
extern channel GENERAL;
extern channel LOADER;
@@ -102,22 +141,15 @@ namespace logs
extern channel HLE;
extern channel PPU;
extern channel SPU;
// Log level control: set all channels to level::notice
void reset();
// Log level control: register channel if necessary, set channel level
void set_level(const std::string&, level);
extern channel ARMv7;
}
#define LOG_CHANNEL(ch, ...) ::logs::channel ch(#ch, ##__VA_ARGS__)
// Legacy:
#define LOG_SUCCESS(ch, fmt, ...) logs::ch.success("" fmt, ##__VA_ARGS__)
#define LOG_NOTICE(ch, fmt, ...) logs::ch.notice ("" fmt, ##__VA_ARGS__)
#define LOG_WARNING(ch, fmt, ...) logs::ch.warning("" fmt, ##__VA_ARGS__)
#define LOG_ERROR(ch, fmt, ...) logs::ch.error ("" fmt, ##__VA_ARGS__)
#define LOG_TODO(ch, fmt, ...) logs::ch.todo ("" fmt, ##__VA_ARGS__)
#define LOG_TRACE(ch, fmt, ...) logs::ch.trace ("" fmt, ##__VA_ARGS__)
#define LOG_FATAL(ch, fmt, ...) logs::ch.fatal ("" fmt, ##__VA_ARGS__)
#define LOG_SUCCESS(ch, fmt, ...) _log::ch.success(fmt, ##__VA_ARGS__)
#define LOG_NOTICE(ch, fmt, ...) _log::ch.notice (fmt, ##__VA_ARGS__)
#define LOG_WARNING(ch, fmt, ...) _log::ch.warning(fmt, ##__VA_ARGS__)
#define LOG_ERROR(ch, fmt, ...) _log::ch.error (fmt, ##__VA_ARGS__)
#define LOG_TODO(ch, fmt, ...) _log::ch.todo (fmt, ##__VA_ARGS__)
#define LOG_TRACE(ch, fmt, ...) _log::ch.trace (fmt, ##__VA_ARGS__)
#define LOG_FATAL(ch, fmt, ...) _log::ch.fatal (fmt, ##__VA_ARGS__)
+98
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@@ -0,0 +1,98 @@
#pragma once
class MTProgressDialog : public wxDialog
{
wxGauge** m_gauge;
wxStaticText** m_msg;
wxArrayLong m_maximum;
const u8 m_cores;
static const uint layout = 16;
static const uint maxdial = 65536;
wxArrayInt m_lastupdate;
public:
MTProgressDialog(wxWindow* parent, const wxSize& size, const wxString& title,
const wxString& msg, const wxArrayLong& maximum, const u8 cores)
: wxDialog(parent, wxID_ANY, title, wxDefaultPosition)
, m_maximum(maximum)
, m_cores(cores)
{
wxBoxSizer* sizer = new wxBoxSizer(wxVERTICAL);
m_gauge = new wxGauge*[m_cores];
m_msg = new wxStaticText*[m_cores];
m_lastupdate.SetCount(cores);
for(uint i=0; i<m_cores; ++i)
{
m_lastupdate[i] = -1;
m_msg[i] = new wxStaticText(this, wxID_ANY, msg);
sizer->Add(m_msg[i], 0, wxLEFT | wxTOP, layout);
m_gauge[i] = new wxGauge(this, wxID_ANY, maxdial,
wxDefaultPosition, wxDefaultSize,
wxGA_HORIZONTAL );
sizer->Add(m_gauge[i], 0, wxLEFT | wxRIGHT | wxTOP | wxEXPAND, layout);
m_gauge[i]->SetValue(0);
sizer->AddSpacer(5);
}
SetSizerAndFit(sizer);
if(size != wxDefaultSize)
{
SetSize(size);
}
else
{
wxSize ws;
ws.x = 400;
ws.y = GetSize().y + 8;
SetSize(ws);
}
m_maximum.SetCount(m_cores);
Show();
}
force_inline void Update(const u8 thread_id, const u64 value, const wxString& msg)
{
if(thread_id > m_cores) return;
const int curupdate = (int)(((double)value/(double)m_maximum[thread_id])*1000);
if(curupdate == m_lastupdate[thread_id]) return;
m_lastupdate[thread_id] = curupdate;
m_msg[thread_id]->SetLabel(msg);
if(value >= (u32)m_maximum[thread_id]) return;
m_gauge[thread_id]->SetValue(((double)value / (double)m_maximum[thread_id]) * maxdial);
}
const u32 GetMaxValue(const uint thread_id) const
{
if(thread_id > m_cores) return 0;
return m_maximum[thread_id];
}
void SetMaxFor(const uint thread_id, const u64 val)
{
if(thread_id > m_cores) return;
m_maximum[thread_id] = val;
m_lastupdate[thread_id] = 0;
}
virtual void Close(bool force = false)
{
m_lastupdate.Empty();
m_maximum.Empty();
wxDialog::Close(force);
}
};
+120
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@@ -0,0 +1,120 @@
#include "stdafx.h"
#include "Utilities/Semaphore.h"
bool semaphore_t::try_wait()
{
// check m_value without interlocked op
if (m_var.load().value == 0)
{
return false;
}
// try to decrement m_value atomically
const auto old = m_var.atomic_op([](sync_var_t& var)
{
if (var.value)
{
var.value--;
}
});
// recheck atomic result
if (old.value == 0)
{
return false;
}
return true;
}
bool semaphore_t::try_post()
{
// check m_value without interlocked op
if (m_var.load().value >= max_value)
{
return false;
}
// try to increment m_value atomically
const auto old = m_var.atomic_op([&](sync_var_t& var)
{
if (var.value < max_value)
{
var.value++;
}
});
// recheck atomic result
if (old.value >= max_value)
{
return false;
}
if (old.waiters)
{
// notify waiting thread
std::lock_guard<std::mutex> lock(m_mutex);
m_cv.notify_one();
}
return true;
}
void semaphore_t::wait()
{
if (m_var.atomic_op([](sync_var_t& var) -> bool
{
if (var.value)
{
var.value--;
return true;
}
else
{
//var.waiters++;
return false;
}
}))
{
return;
}
std::unique_lock<std::mutex> lock(m_mutex);
m_var.atomic_op([](sync_var_t& var)
{
var.waiters++;
});
while (!m_var.atomic_op([](sync_var_t& var) -> bool
{
if (var.value)
{
var.value--;
var.waiters--;
return true;
}
else
{
return false;
}
}))
{
m_cv.wait(lock);
}
}
bool semaphore_t::post_and_wait()
{
// TODO: merge these functions? Probably has a race condition.
if (try_wait()) return false;
try_post();
wait();
return true;
}
+37
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@@ -0,0 +1,37 @@
#pragma once
class semaphore_t
{
// semaphore mutex
std::mutex m_mutex;
// semaphore condition variable
std::condition_variable m_cv;
struct sync_var_t
{
u32 value; // current semaphore value
u32 waiters; // current amount of waiters
};
// current semaphore value
atomic_t<sync_var_t> m_var;
public:
// max semaphore value
const u32 max_value;
semaphore_t(u32 max_value = 1, u32 value = 0)
: m_var(sync_var_t{ value, 0 })
, max_value(max_value)
{
}
bool try_wait();
bool try_post();
void wait();
bool post_and_wait();
};
+103
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@@ -0,0 +1,103 @@
#include "stdafx.h"
#include "SharedMutex.h"
void shared_mutex::impl_lock_shared(u32 old_value)
{
// Throw if reader count breaks the "second" limit (it should be impossible)
CHECK_ASSERTION((old_value & SM_READER_COUNT) != SM_READER_COUNT);
std::unique_lock<std::mutex> lock(m_mutex);
// Notify non-zero reader queue size
m_ctrl |= SM_READER_QUEUE;
// Compensate incorrectly increased reader count
if ((--m_ctrl & SM_READER_COUNT) == 0 && m_wq_size)
{
// Notify current exclusive owner (condition passed)
m_ocv.notify_one();
}
CHECK_ASSERTION(++m_rq_size);
// Obtain the reader lock
while (!atomic_op(m_ctrl, op_lock_shared))
{
m_rcv.wait(lock);
}
CHECK_ASSERTION(m_rq_size--);
if (m_rq_size == 0)
{
m_ctrl &= ~SM_READER_QUEUE;
}
}
void shared_mutex::impl_unlock_shared(u32 new_value)
{
// Throw if reader count was zero
CHECK_ASSERTION((new_value & SM_READER_COUNT) != SM_READER_COUNT);
// Mutex cannot be unlocked before notification because m_ctrl has been changed outside
std::lock_guard<std::mutex> lock(m_mutex);
if (m_wq_size && (new_value & SM_READER_COUNT) == 0)
{
// Notify current exclusive owner that the latest reader is gone
m_ocv.notify_one();
}
else if (m_rq_size)
{
m_rcv.notify_one();
}
}
void shared_mutex::impl_lock_excl(u32 value)
{
std::unique_lock<std::mutex> lock(m_mutex);
// Notify non-zero writer queue size
m_ctrl |= SM_WRITER_QUEUE;
CHECK_ASSERTION(++m_wq_size);
// Obtain the writer lock
while (!atomic_op(m_ctrl, op_lock_excl))
{
m_wcv.wait(lock);
}
// Wait for remaining readers
while ((m_ctrl & SM_READER_COUNT) != 0)
{
m_ocv.wait(lock);
}
CHECK_ASSERTION(m_wq_size--);
if (m_wq_size == 0)
{
m_ctrl &= ~SM_WRITER_QUEUE;
}
}
void shared_mutex::impl_unlock_excl(u32 value)
{
// Throw if was not locked exclusively
CHECK_ASSERTION(value & SM_WRITER_LOCK);
// Mutex cannot be unlocked before notification because m_ctrl has been changed outside
std::lock_guard<std::mutex> lock(m_mutex);
if (m_wq_size)
{
// Notify next exclusive owner
m_wcv.notify_one();
}
else if (m_rq_size)
{
// Notify all readers
m_rcv.notify_all();
}
}
+136
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@@ -0,0 +1,136 @@
#pragma once
//! An attempt to create effective implementation of "shared mutex", lock-free in optimistic case.
//! All locking and unlocking may be done by single LOCK XADD or LOCK CMPXCHG instructions.
//! MSVC implementation of std::shared_timed_mutex seems suboptimal.
//! std::shared_mutex is not available until C++17.
class shared_mutex final
{
enum : u32
{
SM_WRITER_LOCK = 1u << 31, // Exclusive lock flag, must be MSB
SM_WRITER_QUEUE = 1u << 30, // Flag set if m_wq_size != 0
SM_READER_QUEUE = 1u << 29, // Flag set if m_rq_size != 0
SM_READER_COUNT = SM_READER_QUEUE - 1, // Valid reader count bit mask
SM_READER_MAX = 1u << 24, // Max reader count
};
std::atomic<u32> m_ctrl{}; // Control atomic variable: reader count | SM_* flags
std::thread::id m_owner{}; // Current exclusive owner (TODO: implement only for debug mode?)
std::mutex m_mutex;
u32 m_rq_size{}; // Reader queue size (threads waiting on m_rcv)
u32 m_wq_size{}; // Writer queue size (threads waiting on m_wcv+m_ocv)
std::condition_variable m_rcv; // Reader queue
std::condition_variable m_wcv; // Writer queue
std::condition_variable m_ocv; // For current exclusive owner
static bool op_lock_shared(u32& ctrl)
{
// Check writer flags and reader limit
return (ctrl & ~SM_READER_QUEUE) < SM_READER_MAX ? ctrl++, true : false;
}
static bool op_lock_excl(u32& ctrl)
{
// Test and set writer lock
return (ctrl & SM_WRITER_LOCK) == 0 ? ctrl |= SM_WRITER_LOCK, true : false;
}
void impl_lock_shared(u32 old_ctrl);
void impl_unlock_shared(u32 new_ctrl);
void impl_lock_excl(u32 ctrl);
void impl_unlock_excl(u32 ctrl);
public:
shared_mutex() = default;
// Lock in shared mode
void lock_shared()
{
const u32 old_ctrl = m_ctrl++;
// Check flags and reader limit
if (old_ctrl >= SM_READER_MAX)
{
impl_lock_shared(old_ctrl);
}
}
// Try to lock in shared mode
bool try_lock_shared()
{
return atomic_op(m_ctrl, [](u32& ctrl)
{
// Check flags and reader limit
return ctrl < SM_READER_MAX ? ctrl++, true : false;
});
}
// Unlock in shared mode
void unlock_shared()
{
const u32 new_ctrl = --m_ctrl;
// Check if notification required
if (new_ctrl >= SM_READER_MAX)
{
impl_unlock_shared(new_ctrl);
}
}
// Lock exclusively
void lock()
{
u32 value = 0;
if (!m_ctrl.compare_exchange_strong(value, SM_WRITER_LOCK))
{
impl_lock_excl(value);
}
}
// Try to lock exclusively
bool try_lock()
{
u32 value = 0;
return m_ctrl.compare_exchange_strong(value, SM_WRITER_LOCK);
}
// Unlock exclusively
void unlock()
{
const u32 value = m_ctrl.fetch_add(SM_WRITER_LOCK);
// Check if notification required
if (value != SM_WRITER_LOCK)
{
impl_unlock_excl(value);
}
}
};
//! Simplified shared (reader) lock implementation, similar to std::lock_guard.
//! std::shared_lock may be used instead if necessary.
class reader_lock final
{
shared_mutex& m_mutex;
public:
reader_lock(const reader_lock&) = delete;
reader_lock(shared_mutex& mutex)
: m_mutex(mutex)
{
m_mutex.lock_shared();
}
~reader_lock()
{
m_mutex.unlock_shared();
}
};
+55
View File
@@ -0,0 +1,55 @@
#include "stdafx.h"
#include "Emu/CPU/CPUThread.h"
#include "SleepQueue.h"
void sleep_queue_entry_t::add_entry()
{
m_queue.emplace_back(std::static_pointer_cast<CPUThread>(m_thread.shared_from_this()));
}
void sleep_queue_entry_t::remove_entry()
{
for (auto it = m_queue.begin(); it != m_queue.end(); it++)
{
if (it->get() == &m_thread)
{
m_queue.erase(it);
return;
}
}
}
bool sleep_queue_entry_t::find() const
{
for (auto it = m_queue.begin(); it != m_queue.end(); it++)
{
if (it->get() == &m_thread)
{
return true;
}
}
return false;
}
sleep_queue_entry_t::sleep_queue_entry_t(sleep_entry_t& cpu, sleep_queue_t& queue)
: m_thread(cpu)
, m_queue(queue)
{
add_entry();
cpu.sleep();
}
sleep_queue_entry_t::sleep_queue_entry_t(sleep_entry_t& cpu, sleep_queue_t& queue, const defer_sleep_t&)
: m_thread(cpu)
, m_queue(queue)
{
cpu.sleep();
}
sleep_queue_entry_t::~sleep_queue_entry_t()
{
remove_entry();
m_thread.awake();
}
+45
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@@ -0,0 +1,45 @@
#pragma once
using sleep_entry_t = class CPUThread;
using sleep_queue_t = std::deque<std::shared_ptr<sleep_entry_t>>;
static struct defer_sleep_t {} const defer_sleep{};
// automatic object handling a thread entry in the sleep queue
class sleep_queue_entry_t final
{
sleep_entry_t& m_thread;
sleep_queue_t& m_queue;
void add_entry();
void remove_entry();
bool find() const;
public:
// add specified thread to the sleep queue
sleep_queue_entry_t(sleep_entry_t& entry, sleep_queue_t& queue);
// don't add specified thread to the sleep queue
sleep_queue_entry_t(sleep_entry_t& entry, sleep_queue_t& queue, const defer_sleep_t&);
// removes specified thread from the sleep queue if added
~sleep_queue_entry_t();
// add thread to the sleep queue
void enter()
{
add_entry();
}
// remove thread from the sleep queue
void leave()
{
remove_entry();
}
// check whether the thread exists in the sleep queue
explicit operator bool() const
{
return find();
}
};
+175 -346
View File
@@ -1,355 +1,85 @@
#include "StrFmt.h"
#include "BEType.h"
#include "StrUtil.h"
#include "cfmt.h"
#include "stdafx.h"
#pragma warning(push)
#pragma message("TODO: remove wx dependency: <wx/string.h>")
#pragma warning(disable : 4996)
#include <wx/string.h>
#pragma warning(pop)
#include <algorithm>
#include <string_view>
#ifdef _WIN32
#include <Windows.h>
#else
#include <errno.h>
#endif
template <>
void fmt_class_string<std::pair<const fmt_type_info*, u64>>::format(std::string& out, u64 arg)
std::string v128::to_hex() const
{
// Dynamic format arg
const auto& pair = get_object(arg);
return fmt::format("%016llx%016llx", _u64[1], _u64[0]);
}
if (pair.first)
std::string v128::to_xyzw() const
{
return fmt::format("x: %g y: %g z: %g w: %g", _f[3], _f[2], _f[1], _f[0]);
}
std::string fmt::to_hex(u64 value, u64 count)
{
if (count - 1 >= 16)
{
pair.first->fmt_string(out, pair.second);
}
}
template <>
void fmt_class_string<fmt::base57>::format(std::string& out, u64 arg)
{
const auto& _arg = get_object(arg);
if (_arg.data && _arg.size)
{
// Precomputed tail sizes if input data is not multiple of 8
static constexpr u8 s_tail[8] = {0, 2, 3, 5, 6, 7, 9, 10};
// Get full output size
const std::size_t out_size = _arg.size / 8 * 11 + s_tail[_arg.size % 8];
out.resize(out.size() + out_size);
const auto ptr = &out.front() + (out.size() - out_size);
// Each 8 bytes of input data produce 11 bytes of base57 output
for (std::size_t i = 0, p = 0; i < _arg.size; i += 8, p += 11)
{
// Load up to 8 bytes
be_t<u64> be_value;
if (_arg.size - i < sizeof(be_value))
{
std::memset(&be_value, 0, sizeof(be_value));
std::memcpy(&be_value, _arg.data + i, _arg.size - i);
}
else
{
std::memcpy(&be_value, _arg.data + i, sizeof(be_value));
}
u64 value = be_value;
for (int j = 10; j >= 0; j--)
{
if (p + j < out_size)
{
ptr[p + j] = "0123456789ACEFGHJKLMNPQRSTUVWXYZabcdefghijkmnopqrstuvwxyz"[value % 57];
}
value /= 57;
}
}
}
}
void fmt_class_string<const void*>::format(std::string& out, u64 arg)
{
fmt::append(out, "%p", arg);
}
void fmt_class_string<const char*>::format(std::string& out, u64 arg)
{
if (arg)
{
out += reinterpret_cast<const char*>(arg);
}
else
{
out += "(NULLSTR)";
}
}
template <>
void fmt_class_string<std::string>::format(std::string& out, u64 arg)
{
out += get_object(arg);
}
template <>
void fmt_class_string<std::string_view>::format(std::string& out, u64 arg)
{
out += get_object(arg);
}
template <>
void fmt_class_string<std::vector<char>>::format(std::string& out, u64 arg)
{
const std::vector<char>& obj = get_object(arg);
out.append(obj.cbegin(), obj.cend());
}
template <>
void fmt_class_string<char>::format(std::string& out, u64 arg)
{
fmt::append(out, "%#hhx", static_cast<char>(arg));
}
template <>
void fmt_class_string<uchar>::format(std::string& out, u64 arg)
{
fmt::append(out, "%#hhx", static_cast<uchar>(arg));
}
template <>
void fmt_class_string<schar>::format(std::string& out, u64 arg)
{
fmt::append(out, "%#hhx", static_cast<schar>(arg));
}
template <>
void fmt_class_string<short>::format(std::string& out, u64 arg)
{
fmt::append(out, "%#hx", static_cast<short>(arg));
}
template <>
void fmt_class_string<ushort>::format(std::string& out, u64 arg)
{
fmt::append(out, "%#hx", static_cast<ushort>(arg));
}
template <>
void fmt_class_string<int>::format(std::string& out, u64 arg)
{
fmt::append(out, "%#x", static_cast<int>(arg));
}
template <>
void fmt_class_string<uint>::format(std::string& out, u64 arg)
{
fmt::append(out, "%#x", static_cast<uint>(arg));
}
template <>
void fmt_class_string<long>::format(std::string& out, u64 arg)
{
fmt::append(out, "%#lx", static_cast<long>(arg));
}
template <>
void fmt_class_string<ulong>::format(std::string& out, u64 arg)
{
fmt::append(out, "%#lx", static_cast<ulong>(arg));
}
template <>
void fmt_class_string<llong>::format(std::string& out, u64 arg)
{
fmt::append(out, "%#llx", static_cast<llong>(arg));
}
template <>
void fmt_class_string<ullong>::format(std::string& out, u64 arg)
{
fmt::append(out, "%#llx", static_cast<ullong>(arg));
}
template <>
void fmt_class_string<float>::format(std::string& out, u64 arg)
{
fmt::append(out, "%gf", static_cast<float>(std::bit_cast<f64>(arg)));
}
template <>
void fmt_class_string<double>::format(std::string& out, u64 arg)
{
fmt::append(out, "%g", std::bit_cast<f64>(arg));
}
template <>
void fmt_class_string<bool>::format(std::string& out, u64 arg)
{
out += arg ? "true" : "false";
}
template <>
void fmt_class_string<v128>::format(std::string& out, u64 arg)
{
const v128& vec = get_object(arg);
fmt::append(out, "0x%016llx%016llx", vec._u64[1], vec._u64[0]);
}
namespace fmt
{
void raw_error(const char* msg)
{
throw std::runtime_error{msg};
throw EXCEPTION("Invalid count: 0x%llx", count);
}
void raw_verify_error(const char* msg, const fmt_type_info* sup, u64 arg)
count = std::max<u64>(count, 16 - cntlz64(value) / 4);
char res[16] = {};
for (size_t i = count - 1; ~i; i--, value /= 16)
{
std::string out{"Verification failed"};
// Print error code (may be irrelevant)
#ifdef _WIN32
if (DWORD error = GetLastError())
{
fmt::append(out, " (e=%#x)", error);
}
#else
if (int error = errno)
{
fmt::append(out, " (e=%d)", error);
}
#endif
if (sup)
{
out += " (";
sup->fmt_string(out, arg); // Print value
out += ")";
}
if (msg)
{
out += ": ";
out += msg;
}
throw std::runtime_error{out};
res[i] = "0123456789abcdef"[value % 16];
}
void raw_narrow_error(const char* msg, const fmt_type_info* sup, u64 arg)
{
std::string out{"Narrow error"};
if (sup)
{
out += " (";
sup->fmt_string(out, arg); // Print value
out += ")";
}
if (msg)
{
out += ": ";
out += msg;
}
throw std::range_error{out};
}
// Hidden template
template <typename T>
void raw_throw_exception(const char* fmt, const fmt_type_info* sup, const u64* args)
{
std::string out;
raw_append(out, fmt, sup, args);
throw T{out};
}
// Explicit instantiations (not exhaustive)
template void raw_throw_exception<std::runtime_error>(const char*, const fmt_type_info*, const u64*);
template void raw_throw_exception<std::logic_error>(const char*, const fmt_type_info*, const u64*);
template void raw_throw_exception<std::domain_error>(const char*, const fmt_type_info*, const u64*);
template void raw_throw_exception<std::invalid_argument>(const char*, const fmt_type_info*, const u64*);
template void raw_throw_exception<std::out_of_range>(const char*, const fmt_type_info*, const u64*);
template void raw_throw_exception<std::range_error>(const char*, const fmt_type_info*, const u64*);
template void raw_throw_exception<std::overflow_error>(const char*, const fmt_type_info*, const u64*);
template void raw_throw_exception<std::underflow_error>(const char*, const fmt_type_info*, const u64*);
struct cfmt_src;
return std::string(res, count);
}
// Temporary implementation
struct fmt::cfmt_src
std::string fmt::to_udec(u64 value)
{
const fmt_type_info* sup;
const u64* args;
char res[20] = {};
size_t first = sizeof(res);
bool test(std::size_t index) const
if (!value)
{
if (!sup[index].fmt_string)
{
return false;
}
return true;
res[--first] = '0';
}
template <typename T>
T get(std::size_t index) const
for (; value; value /= 10)
{
return *reinterpret_cast<const T*>(reinterpret_cast<const u8*>(args + index));
res[--first] = '0' + (value % 10);
}
void skip(std::size_t extra)
{
sup += extra + 1;
args += extra + 1;
}
std::size_t fmt_string(std::string& out, std::size_t extra) const
{
const std::size_t start = out.size();
sup[extra].fmt_string(out, args[extra]);
return out.size() - start;
}
// Returns type size (0 if unknown, pointer, unsigned, assumed max)
std::size_t type(std::size_t extra) const
{
// Hack: use known function pointers to determine type
#define TYPE(type) \
if (sup[extra].fmt_string == &fmt_class_string<type>::format) return sizeof(type);
TYPE(int);
TYPE(llong);
TYPE(schar);
TYPE(short);
if (std::is_signed<char>::value) TYPE(char);
TYPE(long);
#undef TYPE
return 0;
}
static constexpr std::size_t size_char = 1;
static constexpr std::size_t size_short = 2;
static constexpr std::size_t size_int = 0;
static constexpr std::size_t size_long = sizeof(ulong);
static constexpr std::size_t size_llong = sizeof(ullong);
static constexpr std::size_t size_size = sizeof(std::size_t);
static constexpr std::size_t size_max = sizeof(std::uintmax_t);
static constexpr std::size_t size_diff = sizeof(std::ptrdiff_t);
};
void fmt::raw_append(std::string& out, const char* fmt, const fmt_type_info* sup, const u64* args) noexcept
{
cfmt_append(out, fmt, cfmt_src{sup, args});
return std::string(&res[first], sizeof(res) - first);
}
std::string fmt::to_sdec(s64 svalue)
{
const bool sign = svalue < 0;
u64 value = sign ? -svalue : svalue;
char res[20] = {};
size_t first = sizeof(res);
if (!value)
{
res[--first] = '0';
}
for (; value; value /= 10)
{
res[--first] = '0' + (value % 10);
}
if (sign)
{
res[--first] = '-';
}
return std::string(&res[first], sizeof(res) - first);
}
//extern const std::string fmt::placeholder = "???";
std::string fmt::replace_first(const std::string& src, const std::string& from, const std::string& to)
{
auto pos = src.find(from);
@@ -362,7 +92,7 @@ std::string fmt::replace_first(const std::string& src, const std::string& from,
return (pos ? src.substr(0, pos) + to : to) + std::string(src.c_str() + pos + from.length());
}
std::string fmt::replace_all(const std::string& src, const std::string& from, const std::string& to)
std::string fmt::replace_all(const std::string &src, const std::string& from, const std::string& to)
{
std::string target = src;
for (auto pos = target.find(from); pos != std::string::npos; pos = target.find(from, pos + 1))
@@ -374,6 +104,83 @@ std::string fmt::replace_all(const std::string& src, const std::string& from, co
return target;
}
//TODO: move this wx Stuff somewhere else
//convert a wxString to a std::string encoded in utf8
//CAUTION, only use this to interface with wxWidgets classes
std::string fmt::ToUTF8(const wxString& right)
{
auto ret = std::string(((const char *)right.utf8_str()));
return ret;
}
//convert a std::string encoded in utf8 to a wxString
//CAUTION, only use this to interface with wxWidgets classes
wxString fmt::FromUTF8(const std::string& right)
{
auto ret = wxString::FromUTF8(right.c_str());
return ret;
}
//TODO: remove this after every snippet that uses it is gone
//WARNING: not fully compatible with CmpNoCase from wxString
int fmt::CmpNoCase(const std::string& a, const std::string& b)
{
if (a.length() != b.length())
{
return -1;
}
else
{
return std::equal(a.begin(),
a.end(),
b.begin(),
[](const char& a, const char& b){return ::tolower(a) == ::tolower(b); })
? 0 : -1;
}
}
//TODO: remove this after every snippet that uses it is gone
//WARNING: not fully compatible with CmpNoCase from wxString
void fmt::Replace(std::string &str, const std::string &searchterm, const std::string& replaceterm)
{
size_t cursor = 0;
do
{
cursor = str.find(searchterm, cursor);
if (cursor != std::string::npos)
{
str.replace(cursor, searchterm.size(), replaceterm);
cursor += replaceterm.size();
}
else
{
break;
}
} while (true);
}
std::vector<std::string> fmt::rSplit(const std::string& source, const std::string& delim)
{
std::vector<std::string> ret;
size_t cursor = 0;
do
{
size_t prevcurs = cursor;
cursor = source.find(delim, cursor);
if (cursor != std::string::npos)
{
ret.push_back(source.substr(prevcurs,cursor-prevcurs));
cursor += delim.size();
}
else
{
ret.push_back(source.substr(prevcurs));
break;
}
} while (true);
return ret;
}
std::vector<std::string> fmt::split(const std::string& source, std::initializer_list<std::string> separators, bool is_skip_empty)
{
std::vector<std::string> result;
@@ -382,7 +189,7 @@ std::vector<std::string> fmt::split(const std::string& source, std::initializer_
for (size_t cursor_end = 0; cursor_end < source.length(); ++cursor_end)
{
for (auto& separator : separators)
for (auto &separator : separators)
{
if (strncmp(source.c_str() + cursor_end, separator.c_str(), separator.length()) == 0)
{
@@ -391,7 +198,7 @@ std::vector<std::string> fmt::split(const std::string& source, std::initializer_
result.push_back(candidate);
cursor_begin = cursor_end + separator.length();
cursor_end = cursor_begin - 1;
cursor_end = cursor_begin - 1;
break;
}
}
@@ -410,28 +217,50 @@ std::string fmt::trim(const std::string& source, const std::string& values)
std::size_t begin = source.find_first_not_of(values);
if (begin == source.npos)
return {};
return{};
return source.substr(begin, source.find_last_not_of(values) + 1);
}
std::string fmt::to_upper(const std::string& string)
std::string fmt::tolower(std::string source)
{
std::string result;
result.resize(string.size());
std::transform(string.begin(), string.end(), result.begin(), ::toupper);
return result;
std::transform(source.begin(), source.end(), source.begin(), ::tolower);
return source;
}
std::string fmt::to_lower(const std::string& string)
std::string fmt::toupper(std::string source)
{
std::string result;
result.resize(string.size());
std::transform(string.begin(), string.end(), result.begin(), ::tolower);
return result;
std::transform(source.begin(), source.end(), source.begin(), ::toupper);
return source;
}
bool fmt::match(const std::string& source, const std::string& mask)
std::string fmt::escape(std::string source)
{
const std::pair<std::string, std::string> escape_list[] =
{
{ "\\", "\\\\" },
{ "\a", "\\a" },
{ "\b", "\\b" },
{ "\f", "\\f" },
{ "\n", "\\n\n" },
{ "\r", "\\r" },
{ "\t", "\\t" },
{ "\v", "\\v" },
};
source = fmt::replace_all(source, escape_list);
for (char c = 0; c < 32; c++)
{
if (c != '\n') source = fmt::replace_all(source, std::string(1, c), fmt::format("\\x%02X", c));
}
return source;
}
bool fmt::match(const std::string &source, const std::string &mask)
{
std::size_t source_position = 0, mask_position = 0;
+312 -257
View File
@@ -1,304 +1,359 @@
#pragma once
#include "types.h"
class wxString;
#include <exception>
#include <stdexcept>
#include <string>
#if defined(_MSC_VER) && _MSC_VER <= 1800
#define snprintf _snprintf
#endif
namespace fmt
{
template <typename... Args>
static std::string format(const char*, const Args&...);
}
//struct empty_t{};
template <typename T, typename>
struct fmt_unveil
{
static_assert(sizeof(T) > 0, "fmt_unveil<> error: incomplete type");
//extern const std::string placeholder;
using type = T;
static inline u64 get(const T& arg)
template <typename T>
std::string AfterLast(const std::string& source, T searchstr)
{
return reinterpret_cast<std::uintptr_t>(&arg);
size_t search_pos = source.rfind(searchstr);
search_pos = search_pos == std::string::npos ? 0 : search_pos;
return source.substr(search_pos);
}
// Temporary value container (can possibly be created by other fmt_unveil<> specializations)
struct u64_wrapper
template <typename T>
std::string BeforeLast(const std::string& source, T searchstr)
{
T arg;
size_t search_pos = source.rfind(searchstr);
search_pos = search_pos == std::string::npos ? 0 : search_pos;
return source.substr(0, search_pos);
}
// Allow implicit conversion
operator u64() const
template <typename T>
std::string AfterFirst(const std::string& source, T searchstr)
{
size_t search_pos = source.find(searchstr);
search_pos = search_pos == std::string::npos ? 0 : search_pos;
return source.substr(search_pos);
}
template <typename T>
std::string BeforeFirst(const std::string& source, T searchstr)
{
size_t search_pos = source.find(searchstr);
search_pos = search_pos == std::string::npos ? 0 : search_pos;
return source.substr(0, search_pos);
}
// write `fmt` from `pos` to the first occurence of `fmt::placeholder` to
// the stream `os`. Then write `arg` to to the stream. If there's no
// `fmt::placeholder` after `pos` everything in `fmt` after pos is written
// to `os`. Then `arg` is written to `os` after appending a space character
//template<typename T>
//empty_t write(const std::string &fmt, std::ostream &os, std::string::size_type &pos, T &&arg)
//{
// std::string::size_type ins = fmt.find(placeholder, pos);
// if (ins == std::string::npos)
// {
// os.write(fmt.data() + pos, fmt.size() - pos);
// os << ' ' << arg;
// pos = fmt.size();
// }
// else
// {
// os.write(fmt.data() + pos, ins - pos);
// os << arg;
// pos = ins + placeholder.size();
// }
// return{};
//}
// typesafe version of a sprintf-like function. Returns the printed to
// string. To mark positions where the arguments are supposed to be
// inserted use `fmt::placeholder`. If there's not enough placeholders
// the rest of the arguments are appended at the end, seperated by spaces
//template<typename ... Args>
//std::string SFormat(const std::string &fmt, Args&& ... parameters)
//{
// std::ostringstream os;
// std::string::size_type pos = 0;
// std::initializer_list<empty_t> { write(fmt, os, pos, parameters)... };
// if (!fmt.empty())
// {
// os.write(fmt.data() + pos, fmt.size() - pos);
// }
// std::string result = os.str();
// return result;
//}
std::string replace_first(const std::string& src, const std::string& from, const std::string& to);
std::string replace_all(const std::string &src, const std::string& from, const std::string& to);
template<size_t list_size>
std::string replace_all(std::string src, const std::pair<std::string, std::string>(&list)[list_size])
{
for (size_t pos = 0; pos < src.length(); ++pos)
{
return reinterpret_cast<std::uintptr_t>(&arg);
}
};
// This overload resolution takes the precedence
static inline u64_wrapper get(T&& arg)
{
return u64_wrapper{std::move(arg)};
}
};
template <typename T>
struct fmt_unveil<T, std::enable_if_t<std::is_integral<T>::value && sizeof(T) <= 8 && alignof(T) <= 8>>
{
using type = T;
static inline u64 get(T arg)
{
return static_cast<T>(arg);
}
};
template <typename T>
struct fmt_unveil<T, std::enable_if_t<std::is_floating_point<T>::value && sizeof(T) <= 8 && alignof(T) <= 8>>
{
using type = T;
// Convert FP to f64 and reinterpret as u64
static inline u64 get(const f64& arg)
{
return std::bit_cast<u64>(arg);
}
};
template <>
struct fmt_unveil<f16, void>
{
using type = f16;
static inline u64 get(const f16& arg)
{
return fmt_unveil<f64>::get(arg.operator float());
}
};
template <typename T>
struct fmt_unveil<T, std::enable_if_t<std::is_enum<T>::value>>
{
using type = T;
static inline u64 get(T arg)
{
return static_cast<std::underlying_type_t<T>>(arg);
}
};
template <typename T>
struct fmt_unveil<T*, void>
{
using type = std::add_const_t<T>*;
static inline u64 get(type arg)
{
return reinterpret_cast<std::uintptr_t>(arg);
}
};
template <typename T, std::size_t N>
struct fmt_unveil<T[N], void>
{
using type = std::add_const_t<T>*;
static inline u64 get(type arg)
{
return reinterpret_cast<std::uintptr_t>(arg);
}
};
template <>
struct fmt_unveil<b8, void>
{
using type = bool;
static inline u64 get(const b8& value)
{
return fmt_unveil<bool>::get(value);
}
};
// String type format provider, also type classifier (format() called if an argument is formatted as "%s")
template <typename T, typename = void>
struct fmt_class_string
{
// Formatting function (must be explicitly specialized)
static void format(std::string& out, u64 arg);
// Helper typedef (visible in format())
using type = T;
// Helper function (converts arg to object reference)
static SAFE_BUFFERS FORCE_INLINE const T& get_object(u64 arg)
{
return *reinterpret_cast<const T*>(static_cast<std::uintptr_t>(arg));
}
// Enum -> string function type
using convert_t = const char*(*)(T value);
// Helper function (safely converts arg to enum value)
static SAFE_BUFFERS FORCE_INLINE void format_enum(std::string& out, u64 arg, convert_t convert)
{
const auto value = static_cast<std::underlying_type_t<T>>(arg);
// Check narrowing
if (static_cast<u64>(value) == arg)
{
if (const char* str = convert(static_cast<T>(value)))
for (size_t i = 0; i < list_size; ++i)
{
out += str;
return;
}
}
const size_t comp_length = list[i].first.length();
// Fallback to underlying type formatting
fmt_class_string<std::underlying_type_t<T>>::format(out, static_cast<u64>(value));
}
if (src.length() - pos < comp_length)
continue;
// Helper function (bitset formatting)
static SAFE_BUFFERS FORCE_INLINE void format_bitset(std::string& out, u64 arg, const char* prefix, const char* delim, const char* suffix, void (*fmt)(std::string&, u64))
{
// Start from raw value
fmt_class_string<u64>::format(out, arg);
out += prefix;
for (u64 i = 0; i < 63; i++)
{
const u64 mask = 1ull << i;
if (arg & mask)
{
fmt(out, i);
if (arg >> (i + 1))
if (src.substr(pos, comp_length) == list[i].first)
{
out += delim;
src = (pos ? src.substr(0, pos) + list[i].second : list[i].second) + src.substr(pos + comp_length);
pos += list[i].second.length() - 1;
break;
}
}
}
if (arg & (1ull << 63))
{
fmt(out, 63);
}
out += suffix;
return src;
}
// Helper constant (may be used in format_enum as lambda return value)
static constexpr const char* unknown = nullptr;
};
template <>
struct fmt_class_string<const void*, void>
{
static void format(std::string& out, u64 arg);
};
template <typename T>
struct fmt_class_string<T*, void> : fmt_class_string<const void*, void>
{
// Classify all pointers as const void*
};
template <>
struct fmt_class_string<const char*, void>
{
static void format(std::string& out, u64 arg);
};
template <>
struct fmt_class_string<char*, void> : fmt_class_string<const char*>
{
// Classify char* as const char*
};
struct fmt_type_info
{
decltype(&fmt_class_string<int>::format) fmt_string;
template <typename T>
static constexpr fmt_type_info make()
template<size_t list_size>
std::string replace_all(std::string src, const std::pair<std::string, std::function<std::string()>>(&list)[list_size])
{
return fmt_type_info
for (size_t pos = 0; pos < src.length(); ++pos)
{
&fmt_class_string<T>::format,
};
}
};
for (size_t i = 0; i < list_size; ++i)
{
const size_t comp_length = list[i].first.length();
// Argument array type (each element generated via fmt_unveil<>)
template <typename... Args>
using fmt_args_t = const u64(&&)[sizeof...(Args) + 1];
if (src.length() - pos < comp_length)
continue;
namespace fmt
{
// Base-57 format helper
struct base57
{
const uchar* data;
std::size_t size;
template <typename T>
base57(const T& arg)
: data(reinterpret_cast<const uchar*>(&arg))
, size(sizeof(T))
{
if (src.substr(pos, comp_length) == list[i].first)
{
src = (pos ? src.substr(0, pos) + list[i].second() : list[i].second()) + src.substr(pos + comp_length);
pos += list[i].second().length() - 1;
break;
}
}
}
base57(const uchar* data, std::size_t size)
: data(data)
, size(size)
return src;
}
std::string to_hex(u64 value, u64 count = 1);
std::string to_udec(u64 value);
std::string to_sdec(s64 value);
template<typename T, bool is_enum = std::is_enum<T>::value> struct unveil
{
using result_type = T;
force_inline static result_type get_value(const T& arg)
{
return arg;
}
};
template <typename... Args>
SAFE_BUFFERS FORCE_INLINE const fmt_type_info* get_type_info()
template<> struct unveil<const char*, false>
{
// Constantly initialized null-terminated list of type-specific information
static constexpr fmt_type_info result[sizeof...(Args) + 1]{fmt_type_info::make<fmt_unveil_t<Args>>()...};
using result_type = const char* const;
return result;
force_inline static result_type get_value(const char* const& arg)
{
return arg;
}
};
template<std::size_t N> struct unveil<char[N], false>
{
using result_type = const char* const;
force_inline static result_type get_value(const char(&arg)[N])
{
return arg;
}
};
template<> struct unveil<std::string, false>
{
using result_type = const char*;
force_inline static result_type get_value(const std::string& arg)
{
return arg.c_str();
}
};
template<typename T> struct unveil<T, true>
{
using result_type = std::underlying_type_t<T>;
force_inline static result_type get_value(const T& arg)
{
return static_cast<result_type>(arg);
}
};
template<typename T, bool Se> struct unveil<se_t<T, Se>, false>
{
using result_type = typename unveil<T>::result_type;
force_inline static result_type get_value(const se_t<T, Se>& arg)
{
return unveil<T>::get_value(arg);
}
};
template<typename T>
force_inline typename unveil<T>::result_type do_unveil(const T& arg)
{
return unveil<T>::get_value(arg);
}
template <typename... Args>
constexpr const fmt_type_info type_info_v[sizeof...(Args) + 1]{fmt_type_info::make<fmt_unveil_t<Args>>()...};
// Internal formatting function
void raw_append(std::string& out, const char*, const fmt_type_info*, const u64*) noexcept;
// Formatting function
template <typename... Args>
SAFE_BUFFERS FORCE_INLINE void append(std::string& out, const char* fmt, const Args&... args)
// Formatting function with special functionality:
//
// std::string is forced to .c_str()
// be_t<> is forced to .value() (fmt::do_unveil reverts byte order automatically)
//
// External specializations for fmt::do_unveil (can be found in another headers):
// vm::ptr, vm::bptr, ... (fmt::do_unveil) (vm_ptr.h) (with appropriate address type, using .addr() can be avoided)
// vm::ref, vm::bref, ... (fmt::do_unveil) (vm_ref.h)
//
template<typename... Args>
safe_buffers std::string format(const char* fmt, const Args&... args)
{
static constexpr fmt_type_info type_list[sizeof...(Args) + 1]{fmt_type_info::make<fmt_unveil_t<Args>>()...};
raw_append(out, fmt, type_list, fmt_args_t<Args...>{fmt_unveil<Args>::get(args)...});
// fixed stack buffer for the first attempt
std::array<char, 4096> fixed_buf;
// possibly dynamically allocated buffer for the second attempt
std::unique_ptr<char[]> buf;
// pointer to the current buffer
char* buf_addr = fixed_buf.data();
for (std::size_t buf_size = fixed_buf.size();;)
{
#ifndef _MSC_VER
#pragma GCC diagnostic push
#pragma GCC diagnostic ignored "-Wformat-security"
#endif
const std::size_t len = std::snprintf(buf_addr, buf_size, fmt, do_unveil(args)...);
#ifndef _MSC_VER
#pragma GCC diagnostic pop
#endif
if (len > INT_MAX)
{
throw std::runtime_error("std::snprintf() failed");
}
if (len < buf_size)
{
return{ buf_addr, len };
}
buf.reset(buf_addr = new char[buf_size = len + 1]);
}
}
// Formatting function
template <typename... Args>
SAFE_BUFFERS FORCE_INLINE std::string format(const char* fmt, const Args&... args)
struct exception : public std::exception
{
std::unique_ptr<char[]> message;
template<typename... Args> never_inline safe_buffers exception(const char* file, int line, const char* func, const char* text, Args... args) noexcept
{
const std::string data = format(text, args...) + format("\n(in file %s:%d, in function %s)", file, line, func);
message.reset(new char[data.size() + 1]);
std::memcpy(message.get(), data.c_str(), data.size() + 1);
}
exception(const exception& other) noexcept
{
const std::size_t size = std::strlen(other.message.get());
message.reset(new char[size + 1]);
std::memcpy(message.get(), other.message.get(), size + 1);
}
virtual const char* what() const noexcept override
{
return message.get();
}
};
//convert a wxString to a std::string encoded in utf8
//CAUTION, only use this to interface with wxWidgets classes
std::string ToUTF8(const wxString& right);
//convert a std::string encoded in utf8 to a wxString
//CAUTION, only use this to interface with wxWidgets classes
wxString FromUTF8(const std::string& right);
//TODO: remove this after every snippet that uses it is gone
//WARNING: not fully compatible with CmpNoCase from wxString
int CmpNoCase(const std::string& a, const std::string& b);
//TODO: remove this after every snippet that uses it is gone
//WARNING: not fully compatible with Replace from wxString
void Replace(std::string &str, const std::string &searchterm, const std::string& replaceterm);
std::vector<std::string> rSplit(const std::string& source, const std::string& delim);
std::vector<std::string> split(const std::string& source, std::initializer_list<std::string> separators, bool is_skip_empty = true);
std::string trim(const std::string& source, const std::string& values = " \t");
template<typename T>
std::string merge(const T& source, const std::string& separator)
{
if (!source.size())
{
return{};
}
std::string result;
append<Args...>(result, fmt, args...);
auto it = source.begin();
auto end = source.end();
for (--end; it != end; ++it)
{
result += *it + separator;
}
return result + source.back();
}
template<typename T>
std::string merge(std::initializer_list<T> sources, const std::string& separator)
{
if (!sources.size())
{
return{};
}
std::string result;
bool first = true;
for (auto &v : sources)
{
if (first)
{
result = fmt::merge(v, separator);
first = false;
}
else
{
result += separator + fmt::merge(v, separator);
}
}
return result;
}
// Internal exception message formatting template, must be explicitly specialized or instantiated in cpp to minimize code bloat
template <typename T>
[[noreturn]] void raw_throw_exception(const char*, const fmt_type_info*, const u64*);
// Throw exception with formatting
template <typename T = std::runtime_error, typename... Args>
[[noreturn]] SAFE_BUFFERS FORCE_INLINE void throw_exception(const char* fmt, const Args&... args)
{
static constexpr fmt_type_info type_list[sizeof...(Args) + 1]{fmt_type_info::make<fmt_unveil_t<Args>>()...};
raw_throw_exception<T>(fmt, type_list, fmt_args_t<Args...>{fmt_unveil<Args>::get(args)...});
}
std::string tolower(std::string source);
std::string toupper(std::string source);
std::string escape(std::string source);
bool match(const std::string &source, const std::string &mask);
}
-141
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@@ -1,141 +0,0 @@
#pragma once
#include <cstdlib>
#include <cstring>
#include <string>
#include <vector>
#include <functional>
#include <string_view>
// Copy null-terminated string from std::string to char array with truncation
template <std::size_t N>
inline void strcpy_trunc(char (&dst)[N], const std::string& src)
{
const std::size_t count = src.size() >= N ? N - 1 : src.size();
std::memcpy(dst, src.c_str(), count);
dst[count] = '\0';
}
// Copy null-terminated string from char array to another char array with truncation
template <std::size_t N, std::size_t N2>
inline void strcpy_trunc(char (&dst)[N], const char (&src)[N2])
{
const std::size_t count = N2 >= N ? N - 1 : N2;
std::memcpy(dst, src, count);
dst[count] = '\0';
}
template <std::size_t N>
inline bool ends_with(const std::string& src, const char (&end)[N])
{
return src.size() >= N - 1 && src.compare(src.size() - (N - 1), N - 1, end, N - 1) == 0;
}
namespace fmt
{
std::string replace_first(const std::string& src, const std::string& from, const std::string& to);
std::string replace_all(const std::string& src, const std::string& from, const std::string& to);
template <size_t list_size>
std::string replace_all(std::string src, const std::pair<std::string, std::string> (&list)[list_size])
{
for (size_t pos = 0; pos < src.length(); ++pos)
{
for (size_t i = 0; i < list_size; ++i)
{
const size_t comp_length = list[i].first.length();
if (src.length() - pos < comp_length)
continue;
if (src.substr(pos, comp_length) == list[i].first)
{
src = (pos ? src.substr(0, pos) + list[i].second : list[i].second) + src.substr(pos + comp_length);
pos += list[i].second.length() - 1;
break;
}
}
}
return src;
}
template <size_t list_size>
std::string replace_all(std::string src, const std::pair<std::string, std::function<std::string()>> (&list)[list_size])
{
for (size_t pos = 0; pos < src.length(); ++pos)
{
for (size_t i = 0; i < list_size; ++i)
{
const size_t comp_length = list[i].first.length();
if (src.length() - pos < comp_length)
continue;
if (src.substr(pos, comp_length) == list[i].first)
{
src = (pos ? src.substr(0, pos) + list[i].second() : list[i].second()) + src.substr(pos + comp_length);
pos += list[i].second().length() - 1;
break;
}
}
}
return src;
}
std::vector<std::string> split(const std::string& source, std::initializer_list<std::string> separators, bool is_skip_empty = true);
std::string trim(const std::string& source, const std::string& values = " \t");
template <typename T>
std::string merge(const T& source, const std::string& separator)
{
if (!source.size())
{
return {};
}
std::string result;
auto it = source.begin();
auto end = source.end();
for (--end; it != end; ++it)
{
result += std::string{*it} + separator;
}
return result + std::string{source.back()};
}
template <typename T>
std::string merge(std::initializer_list<T> sources, const std::string& separator)
{
if (!sources.size())
{
return {};
}
std::string result;
bool first = true;
for (auto& v : sources)
{
if (first)
{
result = fmt::merge(v, separator);
first = false;
}
else
{
result += separator + fmt::merge(v, separator);
}
}
return result;
}
std::string to_upper(const std::string& string);
std::string to_lower(const std::string& string);
bool match(const std::string& source, const std::string& mask);
}
+415 -1247
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+472 -392
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@@ -1,430 +1,510 @@
#pragma once
#include "types.h"
#include "util/atomic.hpp"
#include <string>
#include <memory>
#include <string_view>
#include "mutex.h"
#include "cond.h"
#include "lockless.h"
// Report error and call std::abort(), defined in main.cpp
[[noreturn]] void report_fatal_error(const std::string&);
// Will report exception and call std::abort() if put in catch(...)
[[noreturn]] void catch_all_exceptions();
// Hardware core layout
enum class native_core_arrangement : u32
{
undefined,
generic,
intel_ht,
amd_ccx
};
enum class thread_class : u32
{
general,
rsx,
spu,
ppu
};
enum class thread_state
{
created, // Initial state
detached, // The thread has been detached to destroy its own named_thread object (can be dangerously misused)
aborting, // The thread has been joined in the destructor or explicitly aborted (mutually exclusive with detached)
finished // Final state, always set at the end of thread execution
};
template <class Context>
class named_thread;
template <typename T>
struct result_storage
{
alignas(T) std::byte data[sizeof(T)];
static constexpr bool empty = false;
using type = T;
T* get()
{
return reinterpret_cast<T*>(&data);
}
const T* get() const
{
return reinterpret_cast<const T*>(&data);
}
void destroy() noexcept
{
get()->~T();
}
};
template <>
struct result_storage<void>
{
static constexpr bool empty = true;
using type = void;
};
template <class Context, typename... Args>
using result_storage_t = result_storage<std::invoke_result_t<Context, Args...>>;
// Detect on_abort() method (should return void)
template <typename T, typename = void>
struct thread_on_abort : std::bool_constant<false> {};
template <typename T>
struct thread_on_abort<T, decltype(std::declval<named_thread<T>&>().on_abort())> : std::bool_constant<true> {};
// Detect on_cleanup() static member function (should return void) (in C++20 can use destroying delete instead)
template <typename T, typename = void>
struct thread_on_cleanup : std::bool_constant<false> {};
template <typename T>
struct thread_on_cleanup<T, decltype(named_thread<T>::on_cleanup(std::declval<named_thread<T>*>()))> : std::bool_constant<true> {};
// Thread base class
class thread_base
{
// Native thread entry point function type
#ifdef _WIN32
using native_entry = uint(__stdcall*)(void* arg);
#else
using native_entry = void*(*)(void* arg);
#endif
// Thread handle (platform-specific)
atomic_t<std::uintptr_t> m_thread{0};
// Thread mutex
mutable shared_mutex m_mutex;
// Thread condition variable
cond_variable m_cond;
// Thread flags
atomic_t<u32> m_signal{0};
// Thread joining condition variable
mutable cond_variable m_jcv;
// Thread state
atomic_t<thread_state> m_state = thread_state::created;
// Thread name
lf_value<std::string> m_name;
//
atomic_t<u64> m_cycles = 0;
// Start thread
void start(native_entry);
// Called at the thread start
void initialize();
// Called at the thread end, returns true if needs destruction
bool finalize(int) noexcept;
// Cleanup after possibly deleting the thread instance
static void finalize() noexcept;
friend class thread_ctrl;
template <class Context>
friend class named_thread;
protected:
thread_base(std::string_view name);
~thread_base();
public:
// Get CPU cycles since last time this function was called. First call returns 0.
u64 get_cycles();
// Wait for the thread (it does NOT change thread state, and can be called from multiple threads)
void join() const;
// Notify the thread
void notify();
};
// Collection of global function for current thread
// Thread control class
class thread_ctrl final
{
// Current thread
static thread_local thread_base* g_tls_this_thread;
static thread_local thread_ctrl* g_tls_this_thread;
// Target cpu core layout
static atomic_t<native_core_arrangement> g_native_core_layout;
// Name getter
std::function<std::string()> m_name;
// Internal waiting function, may throw. Infinite value is -1.
static bool _wait_for(u64 usec);
// Thread handle (be careful)
std::thread m_thread;
friend class thread_base;
// Thread result
std::future<void> m_future;
// Functions scheduled at thread exit
std::deque<std::function<void()>> m_atexit;
// Called at the thread start
static void initialize();
// Called at the thread end
static void finalize() noexcept;
public:
// Get current thread name
static std::string_view get_name()
template<typename T>
thread_ctrl(T&& name)
: m_name(std::forward<T>(name))
{
return g_tls_this_thread->m_name.get();
}
// Disable copy/move constructors and operators
thread_ctrl(const thread_ctrl&) = delete;
~thread_ctrl();
// Get thread name
template <typename T>
static std::string_view get_name(const named_thread<T>& thread)
{
return static_cast<const thread_base&>(thread).m_name.get();
}
std::string get_name() const;
// Set current thread name (not recommended)
static void set_name(std::string_view name)
// Get future result (may throw)
void join()
{
g_tls_this_thread->m_name.assign(name);
}
// Set thread name (not recommended)
template <typename T>
static void set_name(named_thread<T>& thread, std::string_view name)
{
static_cast<thread_base&>(thread).m_name.assign(name);
}
template <typename T>
static u64 get_cycles(named_thread<T>& thread)
{
return static_cast<thread_base&>(thread).get_cycles();
}
template <typename T>
static void notify(named_thread<T>& thread)
{
static_cast<thread_base&>(thread).notify();
}
// Read current state
static inline thread_state state()
{
return g_tls_this_thread->m_state;
}
// Wait once with timeout. May spuriously return false.
static inline bool wait_for(u64 usec)
{
return _wait_for(usec);
}
// Wait.
static inline void wait()
{
_wait_for(-1);
}
// Wait until pred().
template <typename F, typename RT = std::invoke_result_t<F>>
static inline RT wait(F&& pred)
{
while (true)
{
if (RT result = pred())
{
return result;
}
_wait_for(-1);
}
return m_future.get();
}
// Get current thread (may be nullptr)
static thread_base* get_current()
static const thread_ctrl* get_current()
{
return g_tls_this_thread;
}
// Detect layout
static void detect_cpu_layout();
// Returns a core affinity mask. Set whether to generate the high priority set or not
static u64 get_affinity_mask(thread_class group);
// Sets the native thread priority
static void set_native_priority(int priority);
// Sets the preferred affinity mask for this thread
static void set_thread_affinity_mask(u64 mask);
// Spawn a detached named thread
template <typename F>
static void spawn(std::string_view name, F&& func)
// Register function at thread exit (for the current thread)
template<typename T>
static inline void at_exit(T&& func)
{
new named_thread<F>(thread_state::detached, name, std::forward<F>(func));
CHECK_ASSERTION(g_tls_this_thread);
g_tls_this_thread->m_atexit.emplace_front(std::forward<T>(func));
}
// Named thread factory
template<typename N, typename F>
static inline std::shared_ptr<thread_ctrl> spawn(N&& name, F&& func)
{
auto ctrl = std::make_shared<thread_ctrl>(std::forward<N>(name));
std::promise<void> promise;
ctrl->m_future = promise.get_future();
ctrl->m_thread = std::thread([ctrl, task = std::forward<F>(func)](std::promise<void> promise)
{
g_tls_this_thread = ctrl.get();
try
{
initialize();
task();
finalize();
promise.set_value();
}
catch (...)
{
finalize();
promise.set_exception(std::current_exception());
}
}, std::move(promise));
return ctrl;
}
};
// Derived from the callable object Context, possibly a lambda
template <class Context>
class named_thread final : public Context, result_storage_t<Context>, thread_base
class named_thread_t : public std::enable_shared_from_this<named_thread_t>
{
using result = result_storage_t<Context>;
using thread = thread_base;
// Type-erased thread entry point
#ifdef _WIN32
static inline uint __stdcall entry_point(void* arg) try
#else
static inline void* entry_point(void* arg) try
#endif
{
const auto _this = static_cast<named_thread*>(static_cast<thread*>(arg));
// Perform self-cleanup if necessary
if (_this->entry_point())
{
// Call on_cleanup() static member function if it's available
if constexpr (thread_on_cleanup<Context>())
{
Context::on_cleanup(_this);
}
else
{
delete _this;
}
}
thread::finalize();
return 0;
}
catch (...)
{
catch_all_exceptions();
}
bool entry_point()
{
thread::initialize();
if constexpr (result::empty)
{
// No result
Context::operator()();
}
else
{
// Construct the result using placement new (copy elision should happen)
new (result::get()) typename result::type(Context::operator()());
}
return thread::finalize(0);
}
// Detached thread constructor
named_thread(thread_state s, std::string_view name, Context&& f)
: Context(std::forward<Context>(f))
, thread(name)
{
thread::m_state.raw() = s;
thread::start(&named_thread::entry_point);
}
friend class thread_ctrl;
// Pointer to managed resource (shared with actual thread)
std::shared_ptr<thread_ctrl> m_thread;
public:
// Normal forwarding constructor
template <typename... Args, typename = std::enable_if_t<std::is_constructible_v<Context, Args&&...>>>
named_thread(std::string_view name, Args&&... args)
: Context(std::forward<Args>(args)...)
, thread(name)
// Thread condition variable for external use (this thread waits on it, other threads may notify)
std::condition_variable cv;
// Thread mutex for external use (can be used with `cv`)
std::mutex mutex;
protected:
// Thread task (called in the thread)
virtual void on_task() = 0;
// Thread finalization (called after on_task)
virtual void on_exit() {}
// ID initialization (called through id_aux_initialize)
virtual void on_id_aux_initialize() { start(); }
// ID finalization (called through id_aux_finalize)
virtual void on_id_aux_finalize() { join(); }
public:
named_thread_t() = default;
virtual ~named_thread_t() = default;
// Deleted copy/move constructors + copy/move operators
named_thread_t(const named_thread_t&) = delete;
// Get thread name
virtual std::string get_name() const;
// Start thread (cannot be called from the constructor: should throw bad_weak_ptr in such case)
void start();
// Join thread (get future result)
void join();
// Check whether the thread is not in "empty state"
bool is_started() const { return m_thread.operator bool(); }
// Compare with the current thread
bool is_current() const { CHECK_ASSERTION(m_thread); return thread_ctrl::get_current() == m_thread.get(); }
// Get thread_ctrl
const thread_ctrl* get_thread_ctrl() const { return m_thread.get(); }
friend void id_aux_initialize(named_thread_t* ptr) { ptr->on_id_aux_initialize(); }
friend void id_aux_finalize(named_thread_t* ptr) { ptr->on_id_aux_finalize(); }
};
// Wrapper for named thread, joins automatically in the destructor, can only be used in function scope
class scope_thread_t final
{
std::shared_ptr<thread_ctrl> m_thread;
public:
template<typename N, typename F>
scope_thread_t(N&& name, F&& func)
: m_thread(thread_ctrl::spawn(std::forward<N>(name), std::forward<F>(func)))
{
thread::start(&named_thread::entry_point);
}
// Lambda constructor, also the implicit deduction guide candidate
named_thread(std::string_view name, Context&& f)
: Context(std::forward<Context>(f))
, thread(name)
// Deleted copy/move constructors + copy/move operators
scope_thread_t(const scope_thread_t&) = delete;
// Destructor with exceptions allowed
~scope_thread_t() noexcept(false)
{
thread::start(&named_thread::entry_point);
}
named_thread(const named_thread&) = delete;
named_thread& operator=(const named_thread&) = delete;
// Wait for the completion and access result (if not void)
[[nodiscard]] decltype(auto) operator()()
{
thread::join();
if constexpr (!result::empty)
{
return *result::get();
}
}
// Wait for the completion and access result (if not void)
[[nodiscard]] decltype(auto) operator()() const
{
thread::join();
if constexpr (!result::empty)
{
return *result::get();
}
}
// Access thread state
operator thread_state() const
{
return thread::m_state.load();
}
// Try to abort/detach
named_thread& operator=(thread_state s)
{
if (s != thread_state::aborting && s != thread_state::detached)
{
ASSUME(0);
}
if (thread::m_state.compare_and_swap_test(thread_state::created, s))
{
if (s == thread_state::aborting)
{
// Call on_abort() method if it's available
if constexpr (thread_on_abort<Context>())
{
Context::on_abort();
}
}
thread::notify();
}
return *this;
}
// Context type doesn't need virtual destructor
~named_thread()
{
*this = thread_state::aborting;
thread::join();
if constexpr (!result::empty)
{
result::destroy();
}
m_thread->join();
}
};
extern const std::function<bool()> SQUEUE_ALWAYS_EXIT;
extern const std::function<bool()> SQUEUE_NEVER_EXIT;
bool squeue_test_exit();
template<typename T, u32 sq_size = 256>
class squeue_t
{
struct squeue_sync_var_t
{
struct
{
u32 position : 31;
u32 pop_lock : 1;
};
struct
{
u32 count : 31;
u32 push_lock : 1;
};
};
atomic_t<squeue_sync_var_t> m_sync;
mutable std::mutex m_rcv_mutex;
mutable std::mutex m_wcv_mutex;
mutable std::condition_variable m_rcv;
mutable std::condition_variable m_wcv;
T m_data[sq_size];
enum squeue_sync_var_result : u32
{
SQSVR_OK = 0,
SQSVR_LOCKED = 1,
SQSVR_FAILED = 2,
};
public:
squeue_t()
: m_sync(squeue_sync_var_t{})
{
}
u32 get_max_size() const
{
return sq_size;
}
bool is_full() const
{
return m_sync.load().count == sq_size;
}
bool push(const T& data, const std::function<bool()>& test_exit)
{
u32 pos = 0;
while (u32 res = m_sync.atomic_op([&pos](squeue_sync_var_t& sync) -> u32
{
assert(sync.count <= sq_size);
assert(sync.position < sq_size);
if (sync.push_lock)
{
return SQSVR_LOCKED;
}
if (sync.count == sq_size)
{
return SQSVR_FAILED;
}
sync.push_lock = 1;
pos = sync.position + sync.count;
return SQSVR_OK;
}))
{
if (res == SQSVR_FAILED && (test_exit() || squeue_test_exit()))
{
return false;
}
std::unique_lock<std::mutex> wcv_lock(m_wcv_mutex);
m_wcv.wait_for(wcv_lock, std::chrono::milliseconds(1));
}
m_data[pos >= sq_size ? pos - sq_size : pos] = data;
m_sync.atomic_op([](squeue_sync_var_t& sync)
{
assert(sync.count <= sq_size);
assert(sync.position < sq_size);
assert(sync.push_lock);
sync.push_lock = 0;
sync.count++;
});
m_rcv.notify_one();
m_wcv.notify_one();
return true;
}
bool push(const T& data, const volatile bool* do_exit)
{
return push(data, [do_exit](){ return do_exit && *do_exit; });
}
force_inline bool push(const T& data)
{
return push(data, SQUEUE_NEVER_EXIT);
}
force_inline bool try_push(const T& data)
{
return push(data, SQUEUE_ALWAYS_EXIT);
}
bool pop(T& data, const std::function<bool()>& test_exit)
{
u32 pos = 0;
while (u32 res = m_sync.atomic_op([&pos](squeue_sync_var_t& sync) -> u32
{
assert(sync.count <= sq_size);
assert(sync.position < sq_size);
if (!sync.count)
{
return SQSVR_FAILED;
}
if (sync.pop_lock)
{
return SQSVR_LOCKED;
}
sync.pop_lock = 1;
pos = sync.position;
return SQSVR_OK;
}))
{
if (res == SQSVR_FAILED && (test_exit() || squeue_test_exit()))
{
return false;
}
std::unique_lock<std::mutex> rcv_lock(m_rcv_mutex);
m_rcv.wait_for(rcv_lock, std::chrono::milliseconds(1));
}
data = m_data[pos];
m_sync.atomic_op([](squeue_sync_var_t& sync)
{
assert(sync.count <= sq_size);
assert(sync.position < sq_size);
assert(sync.pop_lock);
sync.pop_lock = 0;
sync.position++;
sync.count--;
if (sync.position == sq_size)
{
sync.position = 0;
}
});
m_rcv.notify_one();
m_wcv.notify_one();
return true;
}
bool pop(T& data, const volatile bool* do_exit)
{
return pop(data, [do_exit](){ return do_exit && *do_exit; });
}
force_inline bool pop(T& data)
{
return pop(data, SQUEUE_NEVER_EXIT);
}
force_inline bool try_pop(T& data)
{
return pop(data, SQUEUE_ALWAYS_EXIT);
}
bool peek(T& data, u32 start_pos, const std::function<bool()>& test_exit)
{
assert(start_pos < sq_size);
u32 pos = 0;
while (u32 res = m_sync.atomic_op([&pos, start_pos](squeue_sync_var_t& sync) -> u32
{
assert(sync.count <= sq_size);
assert(sync.position < sq_size);
if (sync.count <= start_pos)
{
return SQSVR_FAILED;
}
if (sync.pop_lock)
{
return SQSVR_LOCKED;
}
sync.pop_lock = 1;
pos = sync.position + start_pos;
return SQSVR_OK;
}))
{
if (res == SQSVR_FAILED && (test_exit() || squeue_test_exit()))
{
return false;
}
std::unique_lock<std::mutex> rcv_lock(m_rcv_mutex);
m_rcv.wait_for(rcv_lock, std::chrono::milliseconds(1));
}
data = m_data[pos >= sq_size ? pos - sq_size : pos];
m_sync.atomic_op([](squeue_sync_var_t& sync)
{
assert(sync.count <= sq_size);
assert(sync.position < sq_size);
assert(sync.pop_lock);
sync.pop_lock = 0;
});
m_rcv.notify_one();
return true;
}
bool peek(T& data, u32 start_pos, const volatile bool* do_exit)
{
return peek(data, start_pos, [do_exit](){ return do_exit && *do_exit; });
}
force_inline bool peek(T& data, u32 start_pos = 0)
{
return peek(data, start_pos, SQUEUE_NEVER_EXIT);
}
force_inline bool try_peek(T& data, u32 start_pos = 0)
{
return peek(data, start_pos, SQUEUE_ALWAYS_EXIT);
}
class squeue_data_t
{
T* const m_data;
const u32 m_pos;
const u32 m_count;
squeue_data_t(T* data, u32 pos, u32 count)
: m_data(data)
, m_pos(pos)
, m_count(count)
{
}
public:
T& operator [] (u32 index)
{
assert(index < m_count);
index += m_pos;
index = index < sq_size ? index : index - sq_size;
return m_data[index];
}
};
void process(void(*proc)(squeue_data_t data))
{
u32 pos, count;
while (m_sync.atomic_op([&pos, &count](squeue_sync_var_t& sync) -> u32
{
assert(sync.count <= sq_size);
assert(sync.position < sq_size);
if (sync.pop_lock || sync.push_lock)
{
return SQSVR_LOCKED;
}
pos = sync.position;
count = sync.count;
sync.pop_lock = 1;
sync.push_lock = 1;
return SQSVR_OK;
}))
{
std::unique_lock<std::mutex> rcv_lock(m_rcv_mutex);
m_rcv.wait_for(rcv_lock, std::chrono::milliseconds(1));
}
proc(squeue_data_t(m_data, pos, count));
m_sync.atomic_op([](squeue_sync_var_t& sync)
{
assert(sync.count <= sq_size);
assert(sync.position < sq_size);
assert(sync.pop_lock && sync.push_lock);
sync.pop_lock = 0;
sync.push_lock = 0;
});
m_wcv.notify_one();
m_rcv.notify_one();
}
void clear()
{
while (m_sync.atomic_op([](squeue_sync_var_t& sync) -> u32
{
assert(sync.count <= sq_size);
assert(sync.position < sq_size);
if (sync.pop_lock || sync.push_lock)
{
return SQSVR_LOCKED;
}
sync.pop_lock = 1;
sync.push_lock = 1;
return SQSVR_OK;
}))
{
std::unique_lock<std::mutex> rcv_lock(m_rcv_mutex);
m_rcv.wait_for(rcv_lock, std::chrono::milliseconds(1));
}
m_sync.exchange({});
m_wcv.notify_one();
m_rcv.notify_one();
}
};

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