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Author SHA1 Message Date
Carson Radtke 249146590e create 4.2.1 release 2025-12-08 11:17:57 -07:00
43 changed files with 406 additions and 2458 deletions
+1 -1
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@@ -31,4 +31,4 @@ AlignConsecutiveAssignments: false
AlignTrailingComments: true
SpaceAfterCStyleCast: true
WhitespaceSensitiveMacros: [GSL_SUPPRESS]
CommentPragmas: '^ NO-FORMAT:'
-84
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@@ -1,84 +0,0 @@
# GitHub Copilot Instructions for GSL (Guidelines Support Library)
## Project Overview
This repository contains the Guidelines Support Library (GSL), a Microsoft implementation of types and functions
suggested for use by the C++ Core Guidelines. It's a header-only C++ library with emphasis on safety,
correctness, and zero overhead.
## Coding Standards
### General
- Follow C++ Core Guidelines wherever possible
- Use meaningful type, function, and template parameter names
- Keep functions small and focused with clear preconditions/postconditions
- Include comments for complex code, but prefer self-documenting code
- Use the Expects() and Ensures() macros for contract verification
### Style Guidelines
- Use 4 spaces for indentation (not tabs)
- Maximum line length of 100 characters
- Follow GSL naming conventions (lowercase with underscores)
- Keep templates clean and readable with appropriate spacing
- Use C++14 features since this is the minimum standard supported
### Error Handling
- Use Expects() for preconditions and Ensures() for postconditions
- Design for fail-fast semantics (std::terminate) on contract violations
- Template constraints should use static_assert or SFINAE
- Don't throw exceptions from basic operations
### Testing
- Write thorough unit tests for every component using GTest
- Test for all edge cases and error conditions
- Ensure cross-platform compatibility in tests
- Maintain 100% code coverage for changed code
## Project-Specific Conventions
### Architecture
- All public types must be in the gsl namespace
- Design for zero overhead abstractions when possible
- Respect the distinction between Owners and Views
- Maintain backward compatibility with existing GSL code
### Version Control
- Link all PRs to related issues
- Use clear commit messages explaining what and why
- Follow the contribution guidelines documented in CONTRIBUTING.md
- PRs should include appropriate tests with 100% coverage for changed code
### Documentation
- Document all public APIs with clarity on preconditions and postconditions
- Keep header comments up-to-date
- Include examples for complex functionality in docs/headers.md
## Technology Stack
- C++14 (minimum) for core implementation
- CMake build system (3.14+)
- Google Test for unit testing
- Support for multiple compilers (MSVC, GCC, Clang)
## Security Considerations
- Bounds checking is a core principle - enforce it consistently
- Design for safety while minimizing overhead
- Ensure undefined behavior is explicitly detected where possible
## Performance Guidelines
- Optimize for both safety and performance
- Constexpr-enable functions wherever possible
- Avoid hidden allocations
- Use noexcept appropriately for move operations and other performance-critical functions
## Cross-Platform Support
- Code must work across:
- Windows (MSVC)
- Linux (GCC, Clang)
- macOS (AppleClang)
- Android and iOS where applicable
## Copilot Tasks
- You can find the CMake artifacts for C++20 in build-cxx20 and C++14 in build-cxx14.
- Before publishing a PR, verify the following:
- There are no compiler warnings or errors when building the test suite.
- The test suite passes on all supported platforms and compilers.
- The test suite passes for both C++14 and C++20.
+2 -2
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@@ -17,13 +17,13 @@ jobs:
run:
working-directory: build
steps:
- uses: actions/checkout@v6
- uses: actions/checkout@v4
- name: Create build directory
run: mkdir -p build
working-directory: .
- uses: actions/setup-java@v5
- uses: actions/setup-java@v4
with:
java-version: 8
distribution: zulu
-39
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@@ -1,39 +0,0 @@
name: Code Formatting
on:
push:
branches: [ main ]
pull_request:
branches: [ main ]
permissions:
contents: read
env:
CLANG_VERSION: "20"
jobs:
clang-format:
name: Run clang-format
runs-on: ubuntu-latest
steps:
- name: Checkout code
uses: actions/checkout@v4
# Install the exact clang-format binary
- name: Install clang-format
run: |
sudo apt install clang-format-${{ env.CLANG_VERSION }}
# Prints the version of clang-format being used
- name: Log clang-format version
run: clang-format-${{ env.CLANG_VERSION }} --version
# Runs clang-format over the repository codebase
- name: Check format
run: |
{
find include/gsl -type f
find tests -type f \( -name '*.cpp' -o -name '*.h' \)
} | xargs clang-format-${{ env.CLANG_VERSION }} --dry-run --Werror
+39 -16
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@@ -1,33 +1,56 @@
name: Composite CMake
inputs:
cmake_preset:
cmake_generator:
required: false
type: string
default: 'Unix Makefiles'
cmake_build_type:
required: true
type: string
extra_cmake_build_args:
default: ''
cmake_cxx_compiler:
required: false
type: string
gsl_cxx_standard:
required: true
type: number
extra_cmake_args:
required: false
type: string
default: ''
extra_cmake_configure_args:
build_cmd:
required: true
type: string
default: 'make'
test_cmd:
required: false
type: string
default: 'make test'
shell:
required: false
type: string
default: ''
extra_ctest_args:
required: false
type: string
default: ''
default: 'bash'
runs:
using: composite
steps:
- name: Create build directory
run: mkdir build
shell: ${{ inputs.shell }}
- name: Configure CMake
run: cmake --preset ${{ inputs.cmake_preset }} ${{ inputs.extra_cmake_configure_args }} -DCI_TESTING:BOOL=ON -DCMAKE_VERBOSE_MAKEFILE:BOOL=ON -Werror=dev
shell: ${{ env.RUNNER_OS == 'Windows' && 'pwsh' || 'bash' }}
working-directory: build
run: cmake -G "${{ inputs.cmake_generator }}" -DCMAKE_BUILD_TYPE=${{ inputs.cmake_build_type }} -DCMAKE_CXX_COMPILER=${{ inputs.cmake_cxx_compiler }} -DGSL_CXX_STANDARD=${{ inputs.gsl_cxx_standard }} -DCI_TESTING:BOOL=ON -DCMAKE_VERBOSE_MAKEFILE:BOOL=ON -Werror=dev ${{ inputs.extra_cmake_args }} ..
shell: ${{ inputs.shell }}
- name: Build (with preset)
run: cmake --build --preset ${{ inputs.cmake_preset }} ${{ inputs.extra_cmake_build_args }}
shell: ${{ env.RUNNER_OS == 'Windows' && 'pwsh' || 'bash' }}
- name: Build
working-directory: build
run: ${{ inputs.build_cmd }}
shell: ${{ inputs.shell }}
- name: Test (with preset)
run: ctest --preset ${{ inputs.cmake_preset }} ${{ inputs.extra_ctest_args }} --output-on-failure --no-compress-output
shell: ${{ env.RUNNER_OS == 'Windows' && 'pwsh' || 'bash' }}
- name: Test
working-directory: build
run: ${{ inputs.test_cmd }}
shell: ${{ inputs.shell }}
+1 -1
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@@ -13,7 +13,7 @@ jobs:
matrix:
os: [ ubuntu-latest, macos-latest ]
steps:
- uses: actions/checkout@v6
- uses: actions/checkout@v4
- uses: lukka/get-cmake@latest
with:
cmakeVersion: 3.14.0
+34 -25
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@@ -30,12 +30,14 @@ jobs:
cxx_version: 23
runs-on: ubuntu-latest
steps:
- uses: actions/checkout@v6
- uses: actions/checkout@v4
- name: Run CMake (configure, build, test)
uses: ./.github/workflows/cmake
with:
cmake_preset: gcc-${{ matrix.cxx_version }}-${{ matrix.build_type == 'Debug' && 'debug' || 'release' }}
cmake_build_type: ${{ matrix.build_type }}
cmake_cxx_compiler: g++-${{ matrix.gcc_version }}
gsl_cxx_standard: ${{ matrix.cxx_version }}
clang:
strategy:
@@ -51,22 +53,24 @@ jobs:
cxx_version: 23
runs-on: ubuntu-latest
steps:
- uses: actions/checkout@v6
- uses: actions/checkout@v4
- name: Run CMake (configure, build, test)
uses: ./.github/workflows/cmake
with:
cmake_preset: clang-${{ matrix.cxx_version }}-${{ matrix.build_type == 'Debug' && 'debug' || 'release' }}
cmake_build_type: ${{ matrix.build_type }}
cmake_cxx_compiler: clang++-${{ matrix.clang_version }}
gsl_cxx_standard: ${{ matrix.cxx_version }}
xcode:
strategy:
matrix:
xcode_version: [ '16.4' ]
xcode_version: [ '15.4' ]
build_type: [ Debug, Release ]
cxx_version: [ 14, 17, 20, 23 ]
runs-on: macos-latest
steps:
- uses: actions/checkout@v6
- uses: actions/checkout@v4
- name: select xcode version
run: sudo xcode-select -s /Applications/Xcode_${{ matrix.xcode_version }}.app
@@ -74,33 +78,38 @@ jobs:
- name: Run CMake (configure, build, test)
uses: ./.github/workflows/cmake
with:
cmake_preset: clang-${{ matrix.cxx_version }}-${{ matrix.build_type == 'Debug' && 'debug' || 'release' }}
extra_cmake_configure_args: '-DCMAKE_CXX_FLAGS="-isysroot \"$(xcode-select --print-path)/Platforms/MacOSX.platform/Developer/SDKs/MacOSX.sdk\""'
cmake_build_type: ${{ matrix.build_type }}
cmake_cxx_compiler: clang++
gsl_cxx_standard: ${{ matrix.cxx_version }}
msvc:
VisualStudio:
strategy:
matrix:
image: [ windows-2022, windows-2025 ]
generator: [ 'Visual Studio 16 2019', 'Visual Studio 17 2022' ]
image: [ windows-2019, windows-2022 ]
build_type: [ Debug, Release ]
toolset: [ 'msvc', 'ClangCL' ]
extra_args: [ '', '-T ClangCL' ]
cxx_version: [ 14, 17, 20, 23 ]
include:
# Regular MSVC builds use Ninja (from preset)
- toolset: 'msvc'
generator_override: ''
# ClangCL builds require Visual Studio generator
- toolset: 'ClangCL'
generator_override: '-G "Visual Studio 17 2022" -T ClangCL'
exclude:
- generator: 'Visual Studio 17 2022'
image: windows-2019
- generator: 'Visual Studio 16 2019'
image: windows-2022
- generator: 'Visual Studio 16 2019'
cxx_version: 23
runs-on: ${{ matrix.image }}
steps:
- uses: actions/checkout@v6
- uses: microsoft/setup-msbuild@v3
- uses: ilammy/msvc-dev-cmd@v1
- uses: actions/checkout@v4
- uses: microsoft/setup-msbuild@v2
- name: Run CMake (configure, build, test)
uses: ./.github/workflows/cmake
with:
cmake_preset: msvc-${{ matrix.cxx_version }}-${{ matrix.build_type == 'Debug' && 'debug' || 'release' }}
extra_cmake_configure_args: ${{ matrix.generator_override }}
extra_cmake_build_args: ${{ matrix.toolset == 'ClangCL' && format('--config {0}', matrix.build_type) || '' }}
extra_ctest_args: ${{ matrix.toolset == 'ClangCL' && format('-C {0}', matrix.build_type) || '' }}
cmake_generator: ${{ matrix.generator }}
cmake_build_type: ${{ matrix.build_type }}
gsl_cxx_standard: ${{ matrix.cxx_version }}
extra_cmake_args: ${{ matrix.extra_args }}
build_cmd: msbuild GSL.sln
test_cmd: ctest . --output-on-failure --no-compress-output
shell: pwsh
-21
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@@ -1,21 +0,0 @@
name: "Copilot Setup Steps"
on: workflow_dispatch
jobs:
copilot-setup-steps:
runs-on: ubuntu-latest
permissions:
contents: read
steps:
- name: Checkout code
uses: actions/checkout@v6
- name: Install Build Dependencies
run: sudo apt-get update && sudo apt-get install -y clang cmake make
- name: Configure CMake (C++14)
run: cmake --preset clang-14-debug
- name: Configure CMake (C++20)
run: cmake --preset clang-20-debug
+4 -5
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@@ -12,7 +12,7 @@ jobs:
run:
working-directory: build
steps:
- uses: actions/checkout@v6
- uses: actions/checkout@v4
- name: Create build directory
run: mkdir -p build
@@ -25,12 +25,11 @@ jobs:
-GXcode \
-DCMAKE_SYSTEM_NAME=iOS \
"-DCMAKE_OSX_ARCHITECTURES=arm64;x86_64" \
-DCMAKE_OSX_DEPLOYMENT_TARGET=12.0 \
-DCMAKE_OSX_DEPLOYMENT_TARGET=9 \
-DCMAKE_TRY_COMPILE_TARGET_TYPE=STATIC_LIBRARY \
"-DMACOSX_BUNDLE_GUI_IDENTIFIER=GSL.\$(EXECUTABLE_NAME)" \
-DMACOSX_BUNDLE_BUNDLE_VERSION=4.2.0 \
-DMACOSX_BUNDLE_SHORT_VERSION_STRING=4.2.0 \
-DCMAKE_CXX_FLAGS="-Wno-missing-include-dirs" \
-DMACOSX_BUNDLE_BUNDLE_VERSION=4.2.1 \
-DMACOSX_BUNDLE_SHORT_VERSION_STRING=4.2.1 \
..
- name: Build
-32
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@@ -1,32 +0,0 @@
name: Shell script linter
on:
push:
branches: [ main ]
pull_request:
branches: [ main ]
permissions:
contents: read
jobs:
clang-format:
name: Run shfmt and shellcheck
runs-on: ubuntu-latest
steps:
- name: Checkout code
uses: actions/checkout@v4
# Install the needed binaries
- name: Install shfmt and shellcheck
run: |
sudo apt install shfmt shellcheck
- name: Check format
run: |
find scripts -type f -name '*.sh' -exec shfmt -l {} \;
- name: Run shellcheck
run: |
find scripts -type f -name '*.sh' -exec shellcheck {} \;
+1 -1
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@@ -1,5 +1,5 @@
CMakeFiles
build*/
build
tests/CMakeFiles
tests/Debug
*.opensdf
+1 -1
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@@ -1,6 +1,6 @@
cmake_minimum_required(VERSION 3.14...3.16)
project(GSL VERSION 4.2.0 LANGUAGES CXX)
project(GSL VERSION 4.2.1 LANGUAGES CXX)
add_library(GSL INTERFACE)
add_library(Microsoft.GSL::GSL ALIAS GSL)
-459
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@@ -1,459 +0,0 @@
{
"version": 3,
"configurePresets": [
{
"name": "base",
"hidden": true,
"binaryDir": "${sourceDir}/build/${presetName}",
"installDir": "${sourceDir}/install/${presetName}",
"generator": "Ninja",
"cacheVariables": {
"GSL_CXX_STANDARD": "14",
"GSL_TEST": "ON"
}
},
{
"name": "msvc-base",
"inherits": "base",
"hidden": true,
"condition": {
"type": "equals",
"lhs": "${hostSystemName}",
"rhs": "Windows"
},
"cacheVariables": {
"CMAKE_CXX_COMPILER": "cl"
}
},
{
"name": "gcc-base",
"inherits": "base",
"hidden": true,
"cacheVariables": {
"CMAKE_CXX_COMPILER": "g++",
"CMAKE_C_COMPILER": "gcc"
}
},
{
"name": "clang-base",
"inherits": "base",
"hidden": true,
"cacheVariables": {
"CMAKE_CXX_COMPILER": "clang++",
"CMAKE_C_COMPILER": "clang"
}
},
{
"name": "msvc-14-debug",
"displayName": "MSVC C++14 Debug",
"inherits": "msvc-base",
"cacheVariables": {
"CMAKE_BUILD_TYPE": "Debug",
"GSL_CXX_STANDARD": "14"
}
},
{
"name": "msvc-14-release",
"displayName": "MSVC C++14 Release",
"inherits": "msvc-base",
"cacheVariables": {
"CMAKE_BUILD_TYPE": "Release",
"GSL_CXX_STANDARD": "14"
}
},
{
"name": "msvc-17-debug",
"displayName": "MSVC C++17 Debug",
"inherits": "msvc-base",
"cacheVariables": {
"CMAKE_BUILD_TYPE": "Debug",
"GSL_CXX_STANDARD": "17"
}
},
{
"name": "msvc-17-release",
"displayName": "MSVC C++17 Release",
"inherits": "msvc-base",
"cacheVariables": {
"CMAKE_BUILD_TYPE": "Release",
"GSL_CXX_STANDARD": "17"
}
},
{
"name": "msvc-20-debug",
"displayName": "MSVC C++20 Debug",
"inherits": "msvc-base",
"cacheVariables": {
"CMAKE_BUILD_TYPE": "Debug",
"GSL_CXX_STANDARD": "20"
}
},
{
"name": "msvc-20-release",
"displayName": "MSVC C++20 Release",
"inherits": "msvc-base",
"cacheVariables": {
"CMAKE_BUILD_TYPE": "Release",
"GSL_CXX_STANDARD": "20"
}
},
{
"name": "msvc-23-debug",
"displayName": "MSVC C++23 Debug",
"inherits": "msvc-base",
"cacheVariables": {
"CMAKE_BUILD_TYPE": "Debug",
"GSL_CXX_STANDARD": "23"
}
},
{
"name": "msvc-23-release",
"displayName": "MSVC C++23 Release",
"inherits": "msvc-base",
"cacheVariables": {
"CMAKE_BUILD_TYPE": "Release",
"GSL_CXX_STANDARD": "23"
}
},
{
"name": "gcc-14-debug",
"displayName": "GCC C++14 Debug",
"inherits": "gcc-base",
"cacheVariables": {
"CMAKE_BUILD_TYPE": "Debug",
"GSL_CXX_STANDARD": "14"
}
},
{
"name": "gcc-14-release",
"displayName": "GCC C++14 Release",
"inherits": "gcc-base",
"cacheVariables": {
"CMAKE_BUILD_TYPE": "Release",
"GSL_CXX_STANDARD": "14"
}
},
{
"name": "gcc-17-debug",
"displayName": "GCC C++17 Debug",
"inherits": "gcc-base",
"cacheVariables": {
"CMAKE_BUILD_TYPE": "Debug",
"GSL_CXX_STANDARD": "17"
}
},
{
"name": "gcc-17-release",
"displayName": "GCC C++17 Release",
"inherits": "gcc-base",
"cacheVariables": {
"CMAKE_BUILD_TYPE": "Release",
"GSL_CXX_STANDARD": "17"
}
},
{
"name": "gcc-20-debug",
"displayName": "GCC C++20 Debug",
"inherits": "gcc-base",
"cacheVariables": {
"CMAKE_BUILD_TYPE": "Debug",
"GSL_CXX_STANDARD": "20"
}
},
{
"name": "gcc-20-release",
"displayName": "GCC C++20 Release",
"inherits": "gcc-base",
"cacheVariables": {
"CMAKE_BUILD_TYPE": "Release",
"GSL_CXX_STANDARD": "20"
}
},
{
"name": "gcc-23-debug",
"displayName": "GCC C++23 Debug",
"inherits": "gcc-base",
"cacheVariables": {
"CMAKE_BUILD_TYPE": "Debug",
"GSL_CXX_STANDARD": "23"
}
},
{
"name": "gcc-23-release",
"displayName": "GCC C++23 Release",
"inherits": "gcc-base",
"cacheVariables": {
"CMAKE_BUILD_TYPE": "Release",
"GSL_CXX_STANDARD": "23"
}
},
{
"name": "clang-14-debug",
"displayName": "Clang C++14 Debug",
"inherits": "clang-base",
"cacheVariables": {
"CMAKE_BUILD_TYPE": "Debug",
"GSL_CXX_STANDARD": "14"
}
},
{
"name": "clang-14-release",
"displayName": "Clang C++14 Release",
"inherits": "clang-base",
"cacheVariables": {
"CMAKE_BUILD_TYPE": "Release",
"GSL_CXX_STANDARD": "14"
}
},
{
"name": "clang-17-debug",
"displayName": "Clang C++17 Debug",
"inherits": "clang-base",
"cacheVariables": {
"CMAKE_BUILD_TYPE": "Debug",
"GSL_CXX_STANDARD": "17"
}
},
{
"name": "clang-17-release",
"displayName": "Clang C++17 Release",
"inherits": "clang-base",
"cacheVariables": {
"CMAKE_BUILD_TYPE": "Release",
"GSL_CXX_STANDARD": "17"
}
},
{
"name": "clang-20-debug",
"displayName": "Clang C++20 Debug",
"inherits": "clang-base",
"cacheVariables": {
"CMAKE_BUILD_TYPE": "Debug",
"GSL_CXX_STANDARD": "20"
}
},
{
"name": "clang-20-release",
"displayName": "Clang C++20 Release",
"inherits": "clang-base",
"cacheVariables": {
"CMAKE_BUILD_TYPE": "Release",
"GSL_CXX_STANDARD": "20"
}
},
{
"name": "clang-23-debug",
"displayName": "Clang C++23 Debug",
"inherits": "clang-base",
"cacheVariables": {
"CMAKE_BUILD_TYPE": "Debug",
"GSL_CXX_STANDARD": "23"
}
},
{
"name": "clang-23-release",
"displayName": "Clang C++23 Release",
"inherits": "clang-base",
"cacheVariables": {
"CMAKE_BUILD_TYPE": "Release",
"GSL_CXX_STANDARD": "23"
}
}
],
"buildPresets": [
{
"name": "msvc-14-debug",
"configurePreset": "msvc-14-debug"
},
{
"name": "msvc-14-release",
"configurePreset": "msvc-14-release"
},
{
"name": "msvc-17-debug",
"configurePreset": "msvc-17-debug"
},
{
"name": "msvc-17-release",
"configurePreset": "msvc-17-release"
},
{
"name": "msvc-20-debug",
"configurePreset": "msvc-20-debug"
},
{
"name": "msvc-20-release",
"configurePreset": "msvc-20-release"
},
{
"name": "msvc-23-debug",
"configurePreset": "msvc-23-debug"
},
{
"name": "msvc-23-release",
"configurePreset": "msvc-23-release"
},
{
"name": "gcc-14-debug",
"configurePreset": "gcc-14-debug"
},
{
"name": "gcc-14-release",
"configurePreset": "gcc-14-release"
},
{
"name": "gcc-17-debug",
"configurePreset": "gcc-17-debug"
},
{
"name": "gcc-17-release",
"configurePreset": "gcc-17-release"
},
{
"name": "gcc-20-debug",
"configurePreset": "gcc-20-debug"
},
{
"name": "gcc-20-release",
"configurePreset": "gcc-20-release"
},
{
"name": "gcc-23-debug",
"configurePreset": "gcc-23-debug"
},
{
"name": "gcc-23-release",
"configurePreset": "gcc-23-release"
},
{
"name": "clang-14-debug",
"configurePreset": "clang-14-debug"
},
{
"name": "clang-14-release",
"configurePreset": "clang-14-release"
},
{
"name": "clang-17-debug",
"configurePreset": "clang-17-debug"
},
{
"name": "clang-17-release",
"configurePreset": "clang-17-release"
},
{
"name": "clang-20-debug",
"configurePreset": "clang-20-debug"
},
{
"name": "clang-20-release",
"configurePreset": "clang-20-release"
},
{
"name": "clang-23-debug",
"configurePreset": "clang-23-debug"
},
{
"name": "clang-23-release",
"configurePreset": "clang-23-release"
}
],
"testPresets": [
{
"name": "msvc-14-debug",
"configurePreset": "msvc-14-debug"
},
{
"name": "msvc-14-release",
"configurePreset": "msvc-14-release"
},
{
"name": "msvc-17-debug",
"configurePreset": "msvc-17-debug"
},
{
"name": "msvc-17-release",
"configurePreset": "msvc-17-release"
},
{
"name": "msvc-20-debug",
"configurePreset": "msvc-20-debug"
},
{
"name": "msvc-20-release",
"configurePreset": "msvc-20-release"
},
{
"name": "msvc-23-debug",
"configurePreset": "msvc-23-debug"
},
{
"name": "msvc-23-release",
"configurePreset": "msvc-23-release"
},
{
"name": "gcc-14-debug",
"configurePreset": "gcc-14-debug"
},
{
"name": "gcc-14-release",
"configurePreset": "gcc-14-release"
},
{
"name": "gcc-17-debug",
"configurePreset": "gcc-17-debug"
},
{
"name": "gcc-17-release",
"configurePreset": "gcc-17-release"
},
{
"name": "gcc-20-debug",
"configurePreset": "gcc-20-debug"
},
{
"name": "gcc-20-release",
"configurePreset": "gcc-20-release"
},
{
"name": "gcc-23-debug",
"configurePreset": "gcc-23-debug"
},
{
"name": "gcc-23-release",
"configurePreset": "gcc-23-release"
},
{
"name": "clang-14-debug",
"configurePreset": "clang-14-debug"
},
{
"name": "clang-14-release",
"configurePreset": "clang-14-release"
},
{
"name": "clang-17-debug",
"configurePreset": "clang-17-debug"
},
{
"name": "clang-17-release",
"configurePreset": "clang-17-release"
},
{
"name": "clang-20-debug",
"configurePreset": "clang-20-debug"
},
{
"name": "clang-20-release",
"configurePreset": "clang-20-release"
},
{
"name": "clang-23-debug",
"configurePreset": "clang-23-debug"
},
{
"name": "clang-23-release",
"configurePreset": "clang-23-release"
}
]
}
+18
View File
@@ -0,0 +1,18 @@
{
"configurations": [
{
"name": "x64-Debug",
"generator": "Ninja",
"configurationType": "Debug",
"inheritEnvironments": [
"msvc_x64_x64"
],
"buildRoot": "${env.USERPROFILE}\\CMakeBuilds\\${workspaceHash}\\build\\${name}",
"installRoot": "${env.USERPROFILE}\\CMakeBuilds\\${workspaceHash}\\install\\${name}",
"cmakeCommandArgs": "-DGSL_CXX_STANDARD=17",
"buildCommandArgs": "-v",
"ctestCommandArgs": "",
"codeAnalysisRuleset": "CppCoreCheckRules.ruleset"
}
]
}
+3 -3
View File
@@ -41,7 +41,7 @@ span_p | &#x26
[cu32zstring](docs/headers.md#user-content-H-zstring) | ☑ | An alias to `basic_zstring` with dynamic extent and a char type of `const char32_t`
[**2. Owners**][cg-owners] | |
stack_array | ☐ | A stack-allocated array
dyn_array | ☑ | A heap-allocated array
dyn_array | ☐ | A heap-allocated array
[**3. Assertions**][cg-assertions] | |
[Expects](docs/headers.md#user-content-H-assert-expects) | ☑ | A precondition assertion; on failure it terminates
[Ensures](docs/headers.md#user-content-H-assert-ensures) | ☑ | A postcondition assertion; on failure it terminates
@@ -49,7 +49,7 @@ dyn_array | &#x26
move_owner | ☐ | A helper function that moves one `owner` to the other
[final_action](docs/headers.md#user-content-H-util-final_action) | ☑ | A RAII style class that invokes a functor on its destruction
[finally](docs/headers.md#user-content-H-util-finally) | ☑ | A helper function instantiating [final_action](docs/headers.md#user-content-H-util-final_action)
[GSL_SUPPRESS](docs/headers.md#user-content-H-assert-gsl_suppress) | ☑ | A macro that takes an argument and turns it into `[[gsl::suppress(x)]]` or `[[gsl::suppress("x")]]` depending on the compiler.
[GSL_SUPPRESS](docs/headers.md#user-content-H-assert-gsl_suppress) | ☑ | A macro that takes an argument and turns it into `[[gsl::suppress(x)]]` or `[[gsl::suppress("x")]]`
[[implicit]] | ☐ | A "marker" to put on single-argument constructors to explicitly make them non-explicit
[index](docs/headers.md#user-content-H-util-index) | ☑ | A type to use for all container and array indexing (currently an alias for `std::ptrdiff_t`)
[narrow](docs/headers.md#user-content-H-narrow-narrow) | ☑ | A checked version of `narrow_cast`; it can throw [narrowing_error](docs/headers.md#user-content-H-narrow-narrowing_error)
@@ -202,7 +202,7 @@ include(FetchContent)
FetchContent_Declare(GSL
GIT_REPOSITORY "https://github.com/microsoft/GSL"
GIT_TAG "v4.2.0"
GIT_TAG "v4.2.1"
GIT_SHALLOW ON
)
+30 -216
View File
@@ -2,14 +2,13 @@ The Guidelines Support Library (GSL) interface is very lightweight and exposed v
Types and functions are exported in the namespace `gsl`.
See [GSL: Guidelines support library](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#s-gsl)
See [GSL: Guidelines support library](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#S-gsl)
# <a name="H" />Headers
- [`<algorithms>`](#user-content-H-algorithms)
- [`<assert>`](#user-content-H-assert)
- [`<byte>`](#user-content-H-byte)
- [`<dyn_array>`](#user-content-H-dyn_array)
- [`<gsl>`](#user-content-H-gsl)
- [`<narrow>`](#user-content-H-narrow)
- [`<pointers>`](#user-content-H-pointers)
@@ -39,7 +38,7 @@ that the destination `span` is at least as large as the source `span`.
This header contains some macros used for contract checking and suppressing code analysis warnings.
See [GSL.assert: Assertions](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#ss-assertions)
See [GSL.assert: Assertions](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#SS-assertions)
- [`GSL_SUPPRESS`](#user-content-H-assert-gsl_suppress)
- [`Expects`](#user-content-H-assert-expects)
@@ -50,9 +49,9 @@ See [GSL.assert: Assertions](https://isocpp.github.io/CppCoreGuidelines/CppCoreG
This macro can be used to suppress a code analysis warning.
The core guidelines request tools that check for the rules to respect suppressing a rule by writing
`[[gsl::suppress("tag")]]` or `[[gsl::suppress("tag", justification: "message")]]`.
`[[gsl::suppress(tag)]]` or `[[gsl::suppress(tag, justification: "message")]]`.
Older versions of MSVC (VS 2022 and earlier) only understand `[[gsl::suppress(tag)]]` without the double quotes around `tag`.
Clang does not use exactly that syntax, but requires `tag` to be put in double quotes `[[gsl::suppress("tag")]]`.
For portable code you can use `GSL_SUPPRESS(tag)`.
@@ -87,7 +86,7 @@ If `GSL_USE_STD_BYTE` is not defined, then the header file will check if `std::b
If you do so, you might want to `#define GSL_USE_STD_BYTE 0` to a fixed value to be sure that both projects use exactly
the same type. Otherwise you might get linker errors.
See [SL.str.5: Use `std::byte` to refer to byte values that do not necessarily represent characters](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#rstr-byte)
See [SL.str.5: Use `std::byte` to refer to byte values that do not necessarily represent characters](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#Rstr-byte)
### Non-member functions
@@ -156,177 +155,6 @@ constexpr byte to_byte() noexcept;
Convert the given value `I` to a `byte`. The template requires `I` to be in the valid range 0..255 for a `gsl::byte`.
## <a name="H-dyn_array" />`<dyn_array>`
This header contains an owning dynamically allocated array type whose size is fixed at construction.
- [`gsl::dyn_array`](#user-content-H-dyn_array-dyn_array)
### <a name="H-dyn_array-dyn_array" />`gsl::dyn_array`
```cpp
template <typename T, typename Allocator = std::allocator<T>>
class dyn_array;
```
`gsl::dyn_array` owns a contiguous sequence of `T` objects allocated with `Allocator`.
The number of elements is established when the object is constructed and remains unchanged.
It provides bounds-checked element access and checked random-access iterators.
`gsl::dyn_array` is useful when the number of elements is known only at runtime, but the array should not grow or shrink through container operations.
#### Member Types
```cpp
using value_type = T;
using reference = T&;
using const_reference = const T&;
using iterator = details::dyn_array_iterator<T>;
using const_iterator = details::dyn_array_iterator<const T>;
using reverse_iterator = std::reverse_iterator<iterator>;
using const_reverse_iterator = std::reverse_iterator<const_iterator>;
using difference_type = std::ptrdiff_t;
using size_type = std::size_t;
using allocator_type = Allocator;
```
#### Member functions
##### Construct/Copy
```cpp
explicit constexpr dyn_array(const Allocator& alloc = {});
```
Constructs an empty `dyn_array`.
No elements are allocated and `data()` returns `nullptr`.
```cpp
constexpr explicit dyn_array(size_type count, const Allocator& alloc = {});
constexpr dyn_array(size_type count, const T& value, const Allocator& alloc = {});
```
Constructs a `dyn_array` with `count` elements using `alloc`.
The first overload default-constructs each element.
The second overload constructs each element as a copy of `value`.
```cpp
template <typename InputIt>
constexpr dyn_array(InputIt first, InputIt last, const Allocator& alloc = {});
```
Constructs a `dyn_array` by copying the elements in the range `[first, last)`.
```cpp
template <std::ranges::input_range InputRg>
constexpr dyn_array(std::from_range_t, InputRg&& rg, const Allocator& alloc = {});
```
Constructs a `dyn_array` by copying the elements in `rg`.
This overload is available when container ranges are supported.
```cpp
constexpr dyn_array(const dyn_array& other, const Allocator& alloc = {});
constexpr dyn_array(std::initializer_list<T> init, const Allocator& alloc = {});
```
Constructs a `dyn_array` by copying the elements from another `dyn_array` or from an initializer list.
```cpp
constexpr auto operator=(const dyn_array& other) -> dyn_array&;
constexpr dyn_array(dyn_array&&) = delete;
dyn_array& operator=(dyn_array&&) = delete;
```
Copy assignment, move assignment, and move construction are explicitly deleted.
##### Observers
```cpp
constexpr auto size() const;
constexpr auto empty() const;
constexpr auto max_size() const;
constexpr auto get_allocator() -> Allocator&;
```
Returns the number of elements, whether the array is empty, the maximum representable size, or the allocator used by the `dyn_array`.
##### Element access
```cpp
constexpr auto operator[](size_type pos) -> reference;
constexpr auto operator[](size_type pos) const -> const_reference;
```
Returns a reference to the element at the given index.
[`Expects`](#user-content-H-assert-expects) that `pos` is less than the `dyn_array`'s size.
```cpp
constexpr auto data();
constexpr auto data() const -> const T*;
```
Returns a pointer to the beginning of the contained data.
If the `dyn_array` is empty, this returns `nullptr`.
##### Iterators
```cpp
constexpr auto begin();
constexpr auto begin() const;
constexpr auto cbegin() const;
constexpr auto end();
constexpr auto end() const;
constexpr auto cend() const;
```
Returns an iterator to the first element or to one past the last element.
```cpp
constexpr auto rbegin();
constexpr auto rbegin() const;
constexpr auto crbegin() const;
constexpr auto rend();
constexpr auto rend() const;
constexpr auto crend() const;
```
Returns a reverse iterator to the first element of the reversed range or to one past the last element of the reversed range.
The iterators are random-access iterators and perform bounds checking; they can never be invalidated.
Dereferencing `end()`, moving before `begin()` or past `end()`, or comparing iterators from different arrays violates preconditions.
##### Comparisons
```cpp
constexpr auto operator==(const dyn_array& other) const;
constexpr auto operator!=(const dyn_array& other) const;
```
Compares two `dyn_array`s by size and element value.
#### Deduction guides
```cpp
template <class InputIt,
class Alloc = std::allocator<typename std::iterator_traits<InputIt>::value_type>>
dyn_array(InputIt, InputIt,
Alloc = {}) -> dyn_array<typename std::iterator_traits<InputIt>::value_type, Alloc>;
template <std::ranges::input_range InputRg,
class Alloc = std::allocator<std::ranges::range_value_t<InputRg>>>
dyn_array(std::from_range_t, InputRg&&,
Alloc = {}) -> dyn_array<std::ranges::range_value_t<InputRg>, Alloc>;
```
The range deduction guide is available when container ranges are supported.
## <a name="H-gsl" />`<gsl>`
This header is a convenience header that includes all other [GSL headers](#user-content-H).
@@ -336,7 +164,7 @@ Since `<narrow>` requires exceptions, it will only be included if exceptions are
This header contains utility functions and classes, for narrowing casts, which require exceptions. The narrowing-related utilities that don't require exceptions are found inside [util](#user-content-H-util).
See [GSL.util: Utilities](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#ss-utilities)
See [GSL.util: Utilities](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#SS-utilities)
- [`gsl::narrowing_error`](#user-content-H-narrow-narrowing_error)
- [`gsl::narrow`](#user-content-H-narrow-narrow)
@@ -352,13 +180,13 @@ If the argument `x` cannot be represented in the target type `T`, then the funct
Note: compare [`gsl::narrow_cast`](#user-content-H-util-narrow_cast) in header [util](#user-content-H-util).
See [ES.46: Avoid lossy (narrowing, truncating) arithmetic conversions](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#res-narrowing) and [ES.49: If you must use a cast, use a named cast](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#res-casts-named)
See [ES.46: Avoid lossy (narrowing, truncating) arithmetic conversions](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#Res-narrowing) and [ES.49: If you must use a cast, use a named cast](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#Res-casts-named)
## <a name="H-pointers" />`<pointers>`
This header contains some pointer types.
See [GSL.view](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#ss-views)
See [GSL.view](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#SS-views)
- [`gsl::unique_ptr`](#user-content-H-pointers-unique_ptr)
- [`gsl::shared_ptr`](#user-content-H-pointers-shared_ptr)
@@ -370,13 +198,13 @@ See [GSL.view](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#ss-v
`gsl::unique_ptr` is an alias to `std::unique_ptr`.
See [GSL.owner: Ownership pointers](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#ss-ownership)
See [GSL.owner: Ownership pointers](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#SS-ownership)
### <a name="H-pointers-shared_ptr" />`gsl::shared_ptr`
`gsl::shared_ptr` is an alias to `std::shared_ptr`.
See [GSL.owner: Ownership pointers](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#ss-ownership)
See [GSL.owner: Ownership pointers](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#SS-ownership)
### <a name="H-pointers-owner" />`gsl::owner`
@@ -385,7 +213,7 @@ See [GSL.owner: Ownership pointers](https://isocpp.github.io/CppCoreGuidelines/C
A `gsl::owner<T>` is a typedef to `T`. It adds no runtime overhead whatsoever, as it is purely syntactic and does not add any runtime checks. Instead, it serves as an annotation for static analysis tools which check for memory safety, and as a code comprehension guide for human readers.
See Enforcement section of [C.31: All resources acquired by a class must be released by the classs destructor](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#rc-dtor-release).
See Enforcement section of [C.31: All resources acquired by a class must be released by the classs destructor](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#Rc-dtor-release).
### <a name="H-pointers-not_null" />`gsl::not_null`
@@ -394,7 +222,7 @@ See Enforcement section of [C.31: All resources acquired by a class must be rele
The checks for ensuring that the pointer is not null are done in the constructor. There is no overhead when retrieving or dereferencing the checked pointer.
When a nullptr check fails, `std::terminate` is called.
See [F.23: Use a `not_null<T>` to indicate that “null” is not a valid value](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#rf-nullptr)
See [F.23: Use a `not_null<T>` to indicate that “null” is not a valid value](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#Rf-nullptr)
#### Member Types
@@ -450,7 +278,7 @@ not_null& operator+=(std::ptrdiff_t) = delete;
not_null& operator-=(std::ptrdiff_t) = delete;
```
Explicitly deleted operators. Pointers point to single objects ([I.13: Do not pass an array as a single pointer](http://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#ri-array)), so don't allow these operators.
Explicitly deleted operators. Pointers point to single objects ([I.13: Do not pass an array as a single pointer](http://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#Ri-array)), so don't allow these operators.
##### Observers
@@ -472,7 +300,7 @@ Dereference the underlying pointer.
void operator[](std::ptrdiff_t) const = delete;
```
Array index operator is explicitly deleted. Pointers point to single objects ([I.13: Do not pass an array as a single pointer](http://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#ri-array)), so don't allow treating them as an array.
Array index operator is explicitly deleted. Pointers point to single objects ([I.13: Do not pass an array as a single pointer](http://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#Ri-array)), so don't allow treating them as an array.
```cpp
void swap(not_null<T>& other) { std::swap(ptr_, other.ptr_); }
@@ -547,7 +375,7 @@ template <class T>
not_null<T> operator+(std::ptrdiff_t, const not_null<T>&) = delete;
```
Addition and subtraction are explicitly deleted. Pointers point to single objects ([I.13: Do not pass an array as a single pointer](http://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#ri-array)), so don't allow these operators.
Addition and subtraction are explicitly deleted. Pointers point to single objects ([I.13: Do not pass an array as a single pointer](http://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#Ri-array)), so don't allow these operators.
##### STL integration
@@ -584,36 +412,22 @@ The `gsl::span` is based on the standardized version of `std::span` which was ad
deprecate `gsl::span` when `std::span` finished standardization, however that plan changed when the runtime bounds checking
was removed from `std::span`'s design.
The key differences between `gsl::span` and `std::span` are:
- `gsl::span` strictly enforces runtime bounds checking for all access operations
- Any violations of the bounds check results in termination of the program
- `gsl::span`'s iterators also perform bounds checking, unlike `std::span`'s iterators
The only difference between `gsl::span` and `std::span` is that `gsl::span` strictly enforces runtime bounds checking.
Any violations of the bounds check results in termination of the program.
Like `gsl::span`, `gsl::span`'s iterators also differ from `std::span`'s iterator in that all access operations are bounds checked.
#### Which version of span should I use?
The following table compares the different span implementations to help you choose which one is best for your project:
##### Use `gsl::span` if
| Feature/Version | `std::span` (C++20/23) | Hardened `std::span` (C++26) | `gsl::span` |
|-----------------|------------------------|------------------------------|-------------|
| **C++ Standard** | Requires C++20 or later | Requires C++26 or backported implementation | Works with C++14 or later |
| **Element Access** | No bounds checking | Bounds checking | Bounds checking |
| **Iterator Safety** | No bounds checking | Implementation-defined, may depend on vendor | Full bounds checking |
| **Error Behavior** | Undefined behavior on invalid access | Implementation-defined, may be configurable | Always calls [`std::terminate()`](https://en.cppreference.com/w/cpp/error/terminate) via [gsl::details::terminate()](https://github.com/microsoft/GSL/blob/main/include/gsl/assert#L111-L118) |
| **Performance** | Fastest (no checking) | Varies by implementation and configuration | May have performance impact from bounds checking |
- you want to guarantee bounds safety in your project.
- All data accessing operations use bounds checking to ensure you are only accessing valid memory.
- your project uses C++14 or C++17.
- `std::span` is not available as it was not introduced into the STL until C++20.
**Recommendations:**
##### Use `std::span` if
- **C++14 & C++17 projects**: Use `gsl::span` as `std::span` is not available.
- **C++20 & C++23 projects**:
- Use `gsl::span` if safety is your priority.
- Use `std::span` if performance is critical and you're confident in your index calculations.
- **C++26 projects**:
- Use `gsl::span` if you need guaranteed iterator safety across all platforms.
- Use hardened `std::span` if you want standard library compliance and acceptable safety.
**Implementation notes for hardened `std::span` in C++26:**
- For MSVC: See [Microsoft STL Hardening](https://github.com/microsoft/STL/wiki/STL-Hardening)
- For Clang/LLVM: See [libc++ Hardening](https://libcxx.llvm.org/Hardening.html)
- your project is C++20 and you need the performance offered by `std::span`.
#### Types
@@ -956,14 +770,14 @@ that a pointer points to a zero terminated C style string. This helps static cod
`u32zstring` is a zero terminated `char32_t` string.
`cu32zstring` is a const zero terminated `char32_t` string.
See [GSL.view](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#ss-views) and [SL.str.3: Use zstring or czstring to refer to a C-style, zero-terminated, sequence of characters](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#rstr-zstring).
See [GSL.view](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#SS-views) and [SL.str.3: Use zstring or czstring to refer to a C-style, zero-terminated, sequence of characters](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#Rstr-zstring).
## <a name="H-util" />`<util>`
This header contains utility functions and classes. This header works without exceptions being available. The parts that require
exceptions being available are in their own header file [narrow](#user-content-H-narrow).
See [GSL.util: Utilities](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#ss-utilities)
See [GSL.util: Utilities](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#SS-utilities)
- [`gsl::narrow_cast`](#user-content-H-util-narrow_cast)
- [`gsl::final_action`](#user-content-H-util-final_action)
@@ -979,7 +793,7 @@ An alias to `std::ptrdiff_t`. It serves as the index type for all container inde
Note: compare the throwing version [`gsl::narrow`](#user-content-H-narrow-narrow) in header [narrow](#user-content-H-narrow).
See [ES.46: Avoid lossy (narrowing, truncating) arithmetic conversions](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#res-narrowing) and [ES.49: If you must use a cast, use a named cast](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#res-casts-named)
See [ES.46: Avoid lossy (narrowing, truncating) arithmetic conversions](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#Res-narrowing) and [ES.49: If you must use a cast, use a named cast](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#Res-casts-named)
### <a name="H-util-final_action" />`gsl::final_action`
@@ -990,7 +804,7 @@ class final_action { ... };
`final_action` allows you to ensure something gets run at the end of a scope.
See [E.19: Use a final_action object to express cleanup if no suitable resource handle is available](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#re-finally)
See [E.19: Use a final_action object to express cleanup if no suitable resource handle is available](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#Re-finally)
#### Member functions
@@ -1030,7 +844,7 @@ The function `gsl::at` offers a safe way to access data with index bounds checki
Note: `gsl::at` supports indexes up to `PTRDIFF_MAX`.
See [ES.42: Keep use of pointers simple and straightforward](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#res-ptr)
See [ES.42: Keep use of pointers simple and straightforward](https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#Res-ptr)
```cpp
template <class T, std::size_t N>
-19
View File
@@ -1,19 +0,0 @@
> When bumping the version, you need to update the following files:
1. [ ] [CMakeLists.txt](../CMakeLists.txt) Bump `GSL_VERSION`
1. [ ] [README.md](../README.md) Bump `GIT_TAG`
1. [ ] [ios.yml](../.github/workflows/ios.yml) Bump `MACOSX_BUNDLE_BUNDLE_VERSION` and
`MACOSX_BUNDLE_SHORT_VERSION_STRING`
> After updating, you need to create a new GitHub release:
1. [ ] [Microsoft/GSL - Create Release](https://github.com/microsoft/GSL/releases/new)
Be sure to update the release notes accordingly and properly mention open-source
contributors.
> After a new release exists, update the `ms-gsl` vcpkg port:
1. [ ] [Microsoft/vcpkg - ms-gsl port](https://github.com/microsoft/vcpkg/tree/master/ports/ms-gsl)
Be sure to monitor the PR that updates the port for any feedback from vcpkg maintainers.
+3 -1
View File
@@ -48,7 +48,9 @@ void copy(span<SrcElementType, SrcExtent> src, span<DestElementType, DestExtent>
"Source range is longer than target range");
Expects(dest.size() >= src.size());
GSL_SUPPRESS(stl.1)
// clang-format off
GSL_SUPPRESS(stl.1) // NO-FORMAT: attribute
// clang-format on
std::copy_n(src.data(), src.size(), dest.data());
}
+7 -6
View File
@@ -47,14 +47,13 @@
//
#if defined(__clang__)
#define GSL_SUPPRESS(x) [[gsl::suppress(#x)]]
#elif defined(_MSC_VER) && _MSC_VER >= 1950
// Visual Studio versions after 2022 (_MSC_VER > 1944) support the justification message.
#define GSL_SUPPRESS(x) [[gsl::suppress(#x)]]
#elif defined(_MSC_VER) && !defined(__INTEL_COMPILER) && !defined(__NVCC__)
#else
#if defined(_MSC_VER) && !defined(__INTEL_COMPILER) && !defined(__NVCC__)
#define GSL_SUPPRESS(x) [[gsl::suppress(x)]]
#else
#define GSL_SUPPRESS(x)
#endif // defined(__clang__)
#endif // _MSC_VER
#endif // __clang__
#if defined(__clang__) || defined(__GNUC__)
#define GSL_LIKELY(x) __builtin_expect(!!(x), 1)
@@ -93,7 +92,9 @@ namespace details
typedef void(__cdecl* terminate_handler)();
GSL_SUPPRESS(f.6)
// clang-format off
GSL_SUPPRESS(f.6) // NO-FORMAT: attribute
// clang-format on
[[noreturn]] inline void __cdecl default_terminate_handler()
{
__fastfail(RANGE_CHECKS_FAILURE);
+16 -18
View File
@@ -82,13 +82,11 @@ namespace gsl
{
#if GSL_USE_STD_BYTE
namespace impl
{
// impl::byte is used by gsl::as_bytes so our own code does not trigger a deprecation warning as
// would be the case when we used gsl::byte. Users of GSL should only use gsl::byte, not
// gsl::impl::byte.
using byte = std::byte;
} // namespace impl
namespace impl {
// impl::byte is used by gsl::as_bytes so our own code does not trigger a deprecation warning as would be the case when we used gsl::byte.
// Users of GSL should only use gsl::byte, not gsl::impl::byte.
using byte = std::byte;
}
using byte GSL_DEPRECATED("Use std::byte instead.") = std::byte;
@@ -102,13 +100,11 @@ enum class byte_may_alias byte : unsigned char
{
};
namespace impl
{
// impl::byte is used by gsl::as_bytes so our own code does not trigger a deprecation warning as
// would be the case when we used gsl::byte. Users of GSL should only use gsl::byte, not
// gsl::impl::byte.
using byte = gsl::byte;
} // namespace impl
namespace impl {
// impl::byte is used by gsl::as_bytes so our own code does not trigger a deprecation warning as would be the case when we used gsl::byte.
// Users of GSL should only use gsl::byte, not gsl::impl::byte.
using byte = gsl::byte;
}
template <class IntegerType, std::enable_if_t<std::is_integral<IntegerType>::value, bool> = true>
constexpr byte& operator<<=(byte& b, IntegerType shift) noexcept
@@ -174,13 +170,15 @@ constexpr IntegerType to_integer(byte b) noexcept
#endif // GSL_USE_STD_BYTE
template <typename T>
// NOTE: need suppression since c++14 does not allow "return {t}"
// GSL_SUPPRESS(type.4) // NO-FORMAT: attribute // TODO: suppression does not work
constexpr gsl::impl::byte to_byte(T t) noexcept
{
static_assert(
std::is_same<T, unsigned char>::value,
"gsl::to_byte(t) must be provided an unsigned char, otherwise data loss may occur. "
"If you are calling to_byte with an integer constant use: gsl::to_byte<t>() version.");
static_assert(std::is_same<T, unsigned char>::value,
"gsl::to_byte(t) must be provided an unsigned char, otherwise data loss may occur. "
"If you are calling to_byte with an integer constant use: gsl::to_byte<t>() version.");
return gsl::impl::byte(t);
}
-439
View File
@@ -1,439 +0,0 @@
// -*- C++ -*-
///////////////////////////////////////////////////////////////////////////////
//
// Copyright (c) 2026 Microsoft Corporation. All rights reserved.
//
// This code is licensed under the MIT License (MIT).
//
// 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.
//
///////////////////////////////////////////////////////////////////////////////
#ifndef GSL_DYN_ARRAY_H
#define GSL_DYN_ARRAY_H
#include "./assert"
#include "./narrow"
#include "./util"
#include <algorithm>
#include <iterator>
#include <memory>
#include <type_traits>
#if defined(__cpp_lib_ranges) && (__cpp_lib_ranges >= 201911L)
#include <ranges>
#endif /* __cpp_lib_ranges >= 201911L */
namespace gsl
{
namespace details
{
template <typename T, typename Allocator = std::allocator<T>>
class dyn_array_base : public Allocator
{
using pointer = T*;
using size_type = std::size_t;
template <typename... Args>
GSL_CONSTEXPR_SINCE_CPP20 void construct(pointer ptr, Args&&... args)
{
std::allocator_traits<Allocator>::construct(static_cast<Allocator&>(*this), ptr,
std::forward<Args>(args)...);
}
GSL_CONSTEXPR_SINCE_CPP20 void destroy(pointer ptr)
{
std::allocator_traits<Allocator>::destroy(static_cast<Allocator&>(*this), ptr);
}
GSL_CONSTEXPR_SINCE_CPP20 void destroy_range(pointer first, pointer last)
{
for (; first != last; ++first) { destroy(first); }
}
GSL_CONSTEXPR_SINCE_CPP20 void rollback_construction(pointer first, pointer last)
{
destroy_range(first, last);
std::allocator_traits<Allocator>::deallocate(static_cast<Allocator&>(*this), _data,
_count);
_data = nullptr;
_count = 0;
}
protected:
constexpr auto data() const { return _data; }
constexpr auto count() const { return _count; }
GSL_CONSTEXPR_SINCE_CPP20 void resize(size_type count)
{
// This should only be called when constructing a non-forward iterator.
// It neither frees nor copies `_data`.
Expects(_data == nullptr && _count == 0);
if (count != 0)
{
_data = std::allocator_traits<Allocator>::allocate(static_cast<Allocator&>(*this),
count);
_count = count;
}
}
GSL_CONSTEXPR_SINCE_CPP20 void fill(pointer first, size_type count, const T& value)
{
pointer current = first;
try
{
for (size_type i = 0; i < count; ++i, ++current) { construct(current, value); }
} catch (...)
{
rollback_construction(first, current);
throw;
}
}
template <typename InputIt>
GSL_CONSTEXPR_SINCE_CPP20 void copy(InputIt first, InputIt last, pointer output)
{
pointer current = output;
try
{
for (; first != last; ++first, ++current) { construct(current, *first); }
} catch (...)
{
rollback_construction(output, current);
throw;
}
}
GSL_CONSTEXPR_SINCE_CPP20 void default_construct(pointer first, size_type count)
{
pointer current = first;
try
{
for (size_type i = 0; i < count; ++i, ++current) { construct(current); }
} catch (...)
{
rollback_construction(first, current);
throw;
}
}
private:
pointer _data;
size_type _count;
public:
constexpr dyn_array_base(const Allocator& alloc)
: Allocator{alloc}, _data{nullptr}, _count{0}
{
Ensures((_count == 0 && _data == nullptr) || (_count > 0 && _data != nullptr));
}
constexpr dyn_array_base(size_type count, const Allocator& alloc)
: Allocator{alloc}
, _data{count == 0 ? nullptr
: std::allocator_traits<Allocator>::allocate(
static_cast<Allocator&>(*this), count)}
, _count{count}
{
Ensures((_count == 0 && _data == nullptr) || (_count > 0 && _data != nullptr));
}
GSL_CONSTEXPR_SINCE_CPP20 ~dyn_array_base()
{
if (_data)
{
if (!std::is_trivially_destructible<T>::value)
{
destroy_range(_data, _data + _count);
}
std::allocator_traits<Allocator>::deallocate(static_cast<Allocator&>(*this), _data,
_count);
}
}
};
template <typename T>
class dyn_array_iterator
{
using size_type = std::size_t;
public:
using difference_type = std::ptrdiff_t;
using value_type = T;
using pointer = T*;
using reference = T&;
using const_reference = const T&;
using iterator_category = std::random_access_iterator_tag;
#if defined(__cpp_lib_ranges) && (__cpp_lib_ranges >= 201911L)
constexpr dyn_array_iterator() = default;
#endif /* __cpp_lib_ranges >= 201911L */
constexpr dyn_array_iterator(pointer ptr, size_type pos, size_type end_pos)
: _ptr{ptr}, _pos{pos}, _end_pos{end_pos}
{
Ensures((_ptr != nullptr && _end_pos > 0) || (_ptr == nullptr && _end_pos == 0));
Ensures(_pos <= _end_pos);
}
#if defined(_MSC_VER) && defined(__cpp_lib_ranges) && (__cpp_lib_ranges >= 201911L)
constexpr operator pointer() const { return _ptr + gsl::narrow<size_type>(_pos); }
#endif /* defined(_MSC_VER) && __cpp_lib_ranges >= 201911L */
constexpr auto operator==(const dyn_array_iterator& other) const
{
Expects(_ptr == other._ptr);
Expects(_end_pos == other._end_pos);
return _pos == other._pos;
}
constexpr auto operator!=(const dyn_array_iterator& other) const
{
return !(*this == other);
}
constexpr auto operator*() const -> reference
{
Expects(_ptr != nullptr);
Expects(_pos < _end_pos);
return _ptr[_pos];
}
constexpr auto operator++() -> dyn_array_iterator&
{
Expects(_pos < _end_pos);
++_pos;
return *this;
}
constexpr auto operator++(int)
{
auto rv = *this;
++(*this);
return rv;
}
constexpr auto operator--() -> dyn_array_iterator&
{
Expects(_pos > 0);
--_pos;
return *this;
}
constexpr auto operator--(int)
{
auto rv = *this;
--(*this);
return rv;
}
constexpr auto operator+=(difference_type diff) -> dyn_array_iterator&
{
auto new_pos = gsl::narrow<difference_type>(_pos) + diff;
Expects(new_pos >= 0);
Expects(new_pos <= gsl::narrow<difference_type>(_end_pos));
_pos = gsl::narrow<size_type>(new_pos);
return *this;
}
constexpr auto operator-=(difference_type diff) -> dyn_array_iterator&
{
auto new_pos = gsl::narrow<difference_type>(_pos) - diff;
Expects(new_pos >= 0);
Expects(new_pos <= gsl::narrow<difference_type>(_end_pos));
_pos = gsl::narrow<size_type>(new_pos);
return *this;
}
constexpr auto operator+(difference_type diff) const
{
auto new_pos = gsl::narrow<difference_type>(_pos) + diff;
return dyn_array_iterator{_ptr, gsl::narrow<size_type>(new_pos), _end_pos};
}
constexpr auto operator-(difference_type diff) const { return *this + (-diff); }
constexpr auto operator-(const dyn_array_iterator& other) const
{
Expects(_ptr == other._ptr);
Expects(_end_pos == other._end_pos);
return gsl::narrow<difference_type>(_pos) - gsl::narrow<difference_type>(other._pos);
}
constexpr auto operator[](size_type pos) -> reference
{
Expects(_pos + pos < _end_pos);
return _ptr[_pos + pos];
}
constexpr auto operator[](size_type pos) const -> const_reference
{
return const_cast<dyn_array_iterator&>(*this).operator[](pos);
}
private:
pointer _ptr{};
size_type _pos{};
size_type _end_pos{};
};
} // namespace details
template <typename T, typename Allocator = std::allocator<T>>
class dyn_array : private details::dyn_array_base<T, Allocator>
{
using base = details::dyn_array_base<T, Allocator>;
using pointer = T*;
public:
using value_type = T;
using reference = T&;
using const_reference = const T&;
using iterator = details::dyn_array_iterator<T>;
using const_iterator = details::dyn_array_iterator<const T>;
using reverse_iterator = std::reverse_iterator<iterator>;
using const_reverse_iterator = std::reverse_iterator<const_iterator>;
using difference_type = std::ptrdiff_t;
using size_type = std::size_t;
using allocator_type = Allocator;
explicit constexpr dyn_array(const Allocator& alloc = {}) : base{alloc} {}
constexpr dyn_array(size_type count, const T& value, const Allocator& alloc = {})
: base{count, alloc}
{
base::fill(data(), size(), value);
}
template <typename InputIt,
std::enable_if_t<details::is_fwd_iterator<InputIt>::value, bool> = true>
constexpr dyn_array(InputIt first, InputIt last, const Allocator& alloc = {})
: base{gsl::narrow<size_type>(std::distance(first, last)), alloc}
{
base::copy(first, last, data());
}
template <typename InputIt, std::enable_if_t<!details::is_fwd_iterator<InputIt>::value &&
details::is_iterator<InputIt>::value,
bool> = true>
constexpr dyn_array(InputIt first, InputIt last, const Allocator& alloc = {}) : dyn_array{alloc}
{
std::vector<T> tmp(first, last);
base::resize(tmp.size());
base::copy(std::begin(tmp), std::end(tmp), data());
}
#if defined(__cpp_lib_containers_ranges) && (__cpp_lib_containers_ranges >= 202202L)
template <typename InputRg>
requires(std::ranges::input_range<InputRg>)
constexpr dyn_array(std::from_range_t, InputRg&& rg, const Allocator& alloc = {})
: base{gsl::narrow<size_type>(std::size(rg)), alloc}
{
base::copy(std::ranges::begin(rg), std::ranges::end(rg), data());
}
#endif /* __cpp_lib_containers_ranges >= 202202L */
constexpr explicit dyn_array(size_type count, const Allocator& alloc = {}) : base{count, alloc}
{
base::default_construct(data(), size());
}
constexpr dyn_array(const dyn_array& other, const Allocator& alloc = {})
: dyn_array(other.begin(), other.end(), alloc)
{}
constexpr dyn_array(std::initializer_list<T> init, const Allocator& alloc = {})
: dyn_array(init.begin(), init.end(), alloc)
{}
constexpr dyn_array(dyn_array&&) = delete;
dyn_array& operator=(dyn_array&&) = delete;
constexpr auto operator==(const dyn_array& other) const
{
return size() == other.size() && std::equal(begin(), end(), other.begin(), other.end());
}
constexpr auto operator!=(const dyn_array& other) const { return !(*this == other); }
constexpr auto size() const { return base::count(); }
constexpr auto empty() const { return size() == 0; }
constexpr auto max_size() const { return static_cast<size_type>(-1); }
constexpr auto get_allocator() -> Allocator& { return *this; }
constexpr auto operator[](size_type pos) -> reference
{
Expects(pos < size());
return data()[pos];
}
constexpr auto operator[](size_type pos) const -> const_reference
{
return const_cast<dyn_array&>(*this)[pos];
}
constexpr auto data() { return base::data(); }
constexpr auto data() const -> const T* { return const_cast<dyn_array&>(*this).data(); }
constexpr auto begin() { return iterator{data(), 0, size()}; }
constexpr auto begin() const { return const_iterator{data(), 0, size()}; }
constexpr auto cbegin() const { return begin(); }
constexpr auto rbegin() { return reverse_iterator{end()}; }
constexpr auto rbegin() const { return const_reverse_iterator{end()}; }
constexpr auto crbegin() const { return rbegin(); }
#ifdef _MSC_VER
constexpr auto _Unchecked_begin() { return data(); }
constexpr auto _Unchecked_begin() const -> const T*
{
return const_cast<dyn_array&>(*this)._Unchecked_begin();
}
#endif /* _MSC_VER */
constexpr auto end() { return iterator{data(), size(), size()}; }
constexpr auto end() const { return const_iterator{data(), size(), size()}; }
constexpr auto cend() const { return end(); }
constexpr auto rend() { return reverse_iterator{begin()}; }
constexpr auto rend() const { return const_reverse_iterator{begin()}; }
constexpr auto crend() const { return rend(); }
#ifdef _MSC_VER
constexpr auto _Unchecked_end() { return data() + size(); }
constexpr auto _Unchecked_end() const -> const T*
{
return const_cast<dyn_array&>(*this)._Unchecked_end();
}
#endif /* _MSC_VER */
};
#if defined(__cpp_deduction_guides) && (__cpp_deduction_guides >= 201703L)
template <class InputIt,
class Alloc = std::allocator<typename std::iterator_traits<InputIt>::value_type>>
dyn_array(InputIt, InputIt, Alloc = {})
-> dyn_array<typename std::iterator_traits<InputIt>::value_type, Alloc>;
#if defined(__cpp_lib_containers_ranges) && (__cpp_lib_containers_ranges >= 202202L)
template <std::ranges::input_range InputRg,
class Alloc = std::allocator<std::ranges::range_value_t<InputRg>>>
dyn_array(std::from_range_t, InputRg&&, Alloc = {})
-> dyn_array<std::ranges::range_value_t<InputRg>, Alloc>;
#endif /* __cpp_lib_containers_ranges >= 202202L */
#endif /* __cpp_deduction_guides >= 201703L */
} // namespace gsl
#endif /* defined(GSL_DYN_ARRAY_H) */
+7 -7
View File
@@ -18,13 +18,13 @@
#define GSL_GSL_H
// IWYU pragma: begin_exports
#include "./algorithm" // copy
#include "./assert" // Ensures/Expects
#include "./byte" // byte
#include "./pointers" // owner, not_null
#include "./span" // span
#include "./util" // finally()/narrow_cast()...
#include "./zstring" // zstring
#include "./algorithm" // copy
#include "./assert" // Ensures/Expects
#include "./byte" // byte
#include "./pointers" // owner, not_null
#include "./span" // span
#include "./zstring" // zstring
#include "./util" // finally()/narrow_cast()...
#ifdef __cpp_exceptions
#include "./narrow" // narrow()
+26 -20
View File
@@ -16,8 +16,8 @@
#ifndef GSL_NARROW_H
#define GSL_NARROW_H
#include "./assert" // for GSL_SUPPRESS
#include "./util" // for narrow_cast
#include "./assert" // for GSL_SUPPRESS
#include "./util" // for narrow_cast
#include <exception> // for std::exception
namespace gsl
{
@@ -28,28 +28,28 @@ struct narrowing_error : public std::exception
// narrow() : a checked version of narrow_cast() that throws if the cast changed the value
template <class T, class U, typename std::enable_if<std::is_arithmetic<T>::value>::type* = nullptr>
GSL_SUPPRESS(type.1)
GSL_SUPPRESS(es.46) // The warning suggests that a floating->unsigned conversion can occur
// in the static_cast below, and that gsl::narrow should be used instead.
// Suppress this warning, since gsl::narrow is defined in terms of
// static_cast
// clang-format off
GSL_SUPPRESS(type.1) // NO-FORMAT: attribute
GSL_SUPPRESS(es.46) // NO-FORMAT: attribute // The warning suggests that a floating->unsigned conversion can occur
// in the static_cast below, and that gsl::narrow should be used instead.
// Suppress this warning, since gsl::narrow is defined in terms of
// static_cast
// clang-format on
constexpr T narrow(U u)
{
constexpr const bool is_different_signedness =
(std::is_signed<T>::value != std::is_signed<U>::value);
GSL_SUPPRESS(es.103) // don't overflow
GSL_SUPPRESS(es.104) // don't underflow
GSL_SUPPRESS(p.2) // don't rely on undefined behavior
const T t = narrow_cast<T>(
u); // While this is technically undefined behavior in some cases (i.e., if the source value
// is of floating-point type and cannot fit into the destination integral type), the
// resultant behavior is benign on the platforms that we target (i.e., no hardware trap
// representations are hit).
GSL_SUPPRESS(es.103) // NO-FORMAT: attribute // don't overflow
GSL_SUPPRESS(es.104) // NO-FORMAT: attribute // don't underflow
GSL_SUPPRESS(p.2) // NO-FORMAT: attribute // don't rely on undefined behavior
const T t = narrow_cast<T>(u); // While this is technically undefined behavior in some cases (i.e., if the source value is of floating-point type
// and cannot fit into the destination integral type), the resultant behavior is benign on the platforms
// that we target (i.e., no hardware trap representations are hit).
#if defined(__clang__) || defined(__GNUC__)
#pragma GCC diagnostic push
#pragma GCC diagnostic ignored "-Wfloat-equal"
#pragma GCC diagnostic push
#pragma GCC diagnostic ignored "-Wfloat-equal"
#endif
// Note: NaN will always throw, since NaN != NaN
if (static_cast<U>(t) != u || (is_different_signedness && ((t < T{}) != (u < U{}))))
@@ -57,18 +57,24 @@ GSL_SUPPRESS(type.1)
throw narrowing_error{};
}
#if defined(__clang__) || defined(__GNUC__)
#pragma GCC diagnostic pop
#pragma GCC diagnostic pop
#endif
return t;
}
template <class T, class U, typename std::enable_if<!std::is_arithmetic<T>::value>::type* = nullptr>
GSL_SUPPRESS(type.1) constexpr T narrow(U u)
// clang-format off
GSL_SUPPRESS(type.1) // NO-FORMAT: attribute
// clang-format on
constexpr T narrow(U u)
{
const T t = narrow_cast<T>(u);
if (static_cast<U>(t) != u) { throw narrowing_error{}; }
if (static_cast<U>(t) != u)
{
throw narrowing_error{};
}
return t;
}
+47 -68
View File
@@ -1,4 +1,3 @@
// -*- C++ -*-
///////////////////////////////////////////////////////////////////////////////
//
// Copyright (c) 2015 Microsoft Corporation. All rights reserved.
@@ -19,13 +18,13 @@
#define GSL_POINTERS_H
#include "./assert" // for Ensures, Expects
#include "./util" // for GSL_DEPRECATED
#include "./util" // for GSL_DEPRECATED
#include <cstddef> // for ptrdiff_t, nullptr_t, size_t
#include <functional> // for less, greater
#include <memory> // for shared_ptr, unique_ptr, hash
#include <type_traits> // for enable_if_t, is_convertible, is_assignable
#include <utility> // for declval, forward
#include <cstddef> // for ptrdiff_t, nullptr_t, size_t
#include <functional> // for less, greater
#include <memory> // for shared_ptr, unique_ptr, hash
#include <type_traits> // for enable_if_t, is_convertible, is_assignable
#include <utility> // for declval, forward
#if !defined(GSL_NO_IOSTREAMS)
#include <iosfwd> // for ostream
@@ -49,16 +48,15 @@ namespace details
{
};
// Resolves to the more efficient of `const T` or `const T&`, in the context of returning a
// const-qualified value of type T.
// Resolves to the more efficient of `const T` or `const T&`, in the context of returning a const-qualified value
// of type T.
//
// Copied from cppfront's implementation of the CppCoreGuidelines F.16
// (https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#rf-in)
template <typename T>
using value_or_reference_return_t =
std::conditional_t<sizeof(T) <= 2 * sizeof(void*) &&
std::is_trivially_copy_constructible<T>::value,
const T, const T&>;
// Copied from cppfront's implementation of the CppCoreGuidelines F.16 (https://isocpp.github.io/CppCoreGuidelines/CppCoreGuidelines#Rf-in)
template<typename T>
using value_or_reference_return_t = std::conditional_t<
sizeof(T) < 2*sizeof(void*) && std::is_trivially_copy_constructible<T>::value,
const T,
const T&>;
} // namespace details
@@ -74,10 +72,9 @@ using unique_ptr GSL_DEPRECATED("Use std::unique_ptr instead") = std::unique_ptr
//
// owner
//
// `gsl::owner<T>` is designed as a safety mechanism for code that must deal directly with raw
// pointers that own memory. Ideally such code should be restricted to the implementation of
// low-level abstractions. `gsl::owner` can also be used as a stepping point in converting legacy
// code to use more modern RAII constructs, such as smart pointers.
// `gsl::owner<T>` is designed as a safety mechanism for code that must deal directly with raw pointers that own memory.
// Ideally such code should be restricted to the implementation of low-level abstractions. `gsl::owner` can also be used
// as a stepping point in converting legacy code to use more modern RAII constructs, such as smart pointers.
//
// T must be a pointer type
// - disallow construction from any type other than pointer type
@@ -108,23 +105,19 @@ public:
using element_type = T;
template <typename U, typename = std::enable_if_t<std::is_convertible<U, T>::value>>
constexpr not_null(U&& u) noexcept(std::is_nothrow_move_constructible<T>::value)
: ptr_(std::forward<U>(u))
constexpr not_null(U&& u) noexcept(std::is_nothrow_move_constructible<T>::value) : ptr_(std::forward<U>(u))
{
Expects(ptr_ != nullptr);
}
template <typename = std::enable_if_t<!std::is_same<std::nullptr_t, T>::value>>
constexpr not_null(T u) noexcept(std::is_nothrow_move_constructible<T>::value)
: ptr_(std::move(u))
constexpr not_null(T u) noexcept(std::is_nothrow_move_constructible<T>::value) : ptr_(std::move(u))
{
Expects(ptr_ != nullptr);
}
template <typename U, typename = std::enable_if_t<std::is_convertible<U, T>::value>>
constexpr not_null(const not_null<U>& other) noexcept(
std::is_nothrow_move_constructible<T>::value)
: not_null(other.get())
constexpr not_null(const not_null<U>& other) noexcept(std::is_nothrow_move_constructible<T>::value) : not_null(other.get())
{}
not_null(const not_null& other) = default;
@@ -152,16 +145,14 @@ public:
not_null& operator-=(std::ptrdiff_t) = delete;
void operator[](std::ptrdiff_t) const = delete;
void swap(not_null<T>& other) noexcept { std::swap(ptr_, other.ptr_); }
void swap(not_null<T>& other) { std::swap(ptr_, other.ptr_); }
private:
T ptr_;
};
template <typename T, std::enable_if_t<std::is_move_assignable<T>::value &&
std::is_move_constructible<T>::value,
bool> = true>
void swap(not_null<T>& a, not_null<T>& b) noexcept
template <typename T, std::enable_if_t<std::is_move_assignable<T>::value && std::is_move_constructible<T>::value, bool> = true>
void swap(not_null<T>& a, not_null<T>& b)
{
a.swap(b);
}
@@ -182,50 +173,48 @@ std::ostream& operator<<(std::ostream& os, const not_null<T>& val)
#endif // !defined(GSL_NO_IOSTREAMS)
template <class T, class U>
constexpr auto operator==(const not_null<T>& lhs,
const not_null<U>& rhs) noexcept(noexcept(lhs.get() == rhs.get()))
auto operator==(const not_null<T>& lhs,
const not_null<U>& rhs) noexcept(noexcept(lhs.get() == rhs.get()))
-> decltype(lhs.get() == rhs.get())
{
return lhs.get() == rhs.get();
}
template <class T, class U>
constexpr auto operator!=(const not_null<T>& lhs,
const not_null<U>& rhs) noexcept(noexcept(lhs.get() != rhs.get()))
auto operator!=(const not_null<T>& lhs,
const not_null<U>& rhs) noexcept(noexcept(lhs.get() != rhs.get()))
-> decltype(lhs.get() != rhs.get())
{
return lhs.get() != rhs.get();
}
template <class T, class U>
constexpr auto operator<(const not_null<T>& lhs, const not_null<U>& rhs) noexcept(
noexcept(std::less<>{}(lhs.get(), rhs.get()))) -> decltype(std::less<>{}(lhs.get(), rhs.get()))
auto operator<(const not_null<T>& lhs,
const not_null<U>& rhs) noexcept(noexcept(std::less<>{}(lhs.get(), rhs.get())))
-> decltype(std::less<>{}(lhs.get(), rhs.get()))
{
return std::less<>{}(lhs.get(), rhs.get());
}
template <class T, class U>
constexpr auto
operator<=(const not_null<T>& lhs,
const not_null<U>& rhs) noexcept(noexcept(std::less_equal<>{}(lhs.get(), rhs.get())))
auto operator<=(const not_null<T>& lhs,
const not_null<U>& rhs) noexcept(noexcept(std::less_equal<>{}(lhs.get(), rhs.get())))
-> decltype(std::less_equal<>{}(lhs.get(), rhs.get()))
{
return std::less_equal<>{}(lhs.get(), rhs.get());
}
template <class T, class U>
constexpr auto
operator>(const not_null<T>& lhs,
const not_null<U>& rhs) noexcept(noexcept(std::greater<>{}(lhs.get(), rhs.get())))
auto operator>(const not_null<T>& lhs,
const not_null<U>& rhs) noexcept(noexcept(std::greater<>{}(lhs.get(), rhs.get())))
-> decltype(std::greater<>{}(lhs.get(), rhs.get()))
{
return std::greater<>{}(lhs.get(), rhs.get());
}
template <class T, class U>
constexpr auto
operator>=(const not_null<T>& lhs,
const not_null<U>& rhs) noexcept(noexcept(std::greater_equal<>{}(lhs.get(), rhs.get())))
auto operator>=(const not_null<T>& lhs,
const not_null<U>& rhs) noexcept(noexcept(std::greater_equal<>{}(lhs.get(), rhs.get())))
-> decltype(std::greater_equal<>{}(lhs.get(), rhs.get()))
{
return std::greater_equal<>{}(lhs.get(), rhs.get());
@@ -241,13 +230,11 @@ not_null<T> operator+(const not_null<T>&, std::ptrdiff_t) = delete;
template <class T>
not_null<T> operator+(std::ptrdiff_t, const not_null<T>&) = delete;
// T is conceptually a pointer so we don't have to worry about it being a reference and violating
// std::hash requirements
template <class T, class U = typename T::element_type,
bool = std::is_default_constructible<std::hash<U>>::value>
template <class T, class U = decltype(std::declval<const T&>().get()), bool = std::is_default_constructible<std::hash<U>>::value>
struct not_null_hash
{
std::size_t operator()(const T& value) const noexcept { return std::hash<U>{}(value.get()); }
std::size_t operator()(const T& value) const { return std::hash<U>{}(value.get()); }
};
template <class T, class U>
@@ -294,32 +281,24 @@ class strict_not_null : public not_null<T>
{
public:
template <typename U, typename = std::enable_if_t<std::is_convertible<U, T>::value>>
constexpr explicit strict_not_null(U&& u) noexcept(std::is_nothrow_move_constructible<T>::value)
: not_null<T>(std::forward<U>(u))
constexpr explicit strict_not_null(U&& u) noexcept(std::is_nothrow_move_constructible<T>::value) : not_null<T>(std::forward<U>(u))
{}
template <typename = std::enable_if_t<!std::is_same<std::nullptr_t, T>::value>>
constexpr explicit strict_not_null(T u) noexcept(std::is_nothrow_move_constructible<T>::value)
: not_null<T>(std::move(u))
constexpr explicit strict_not_null(T u) noexcept(std::is_nothrow_move_constructible<T>::value) : not_null<T>(std::move(u))
{}
template <typename U, typename = std::enable_if_t<std::is_convertible<U, T>::value>>
constexpr strict_not_null(const not_null<U>& other) noexcept(
std::is_nothrow_move_constructible<T>::value)
: not_null<T>(other)
constexpr strict_not_null(const not_null<U>& other) noexcept(std::is_nothrow_move_constructible<T>::value) : not_null<T>(other)
{}
template <typename U, typename = std::enable_if_t<std::is_convertible<U, T>::value>>
constexpr strict_not_null(const strict_not_null<U>& other) noexcept(
std::is_nothrow_move_constructible<T>::value)
: not_null<T>(other)
constexpr strict_not_null(const strict_not_null<U>& other) noexcept(std::is_nothrow_move_constructible<T>::value) : not_null<T>(other)
{}
// To avoid invalidating the "not null" invariant, the contained pointer is actually copied
// instead of moved. If it is a custom pointer, its constructor could in theory throw
// exceptions.
strict_not_null(strict_not_null&& other) noexcept(
std::is_nothrow_copy_constructible<T>::value) = default;
// instead of moved. If it is a custom pointer, its constructor could in theory throw exceptions.
strict_not_null(strict_not_null&& other) noexcept(std::is_nothrow_copy_constructible<T>::value) = default;
strict_not_null(const strict_not_null& other) = default;
strict_not_null& operator=(const strict_not_null& other) = default;
strict_not_null& operator=(const not_null<T>& other)
@@ -358,7 +337,7 @@ auto make_strict_not_null(T&& t) noexcept
return strict_not_null<std::remove_cv_t<std::remove_reference_t<T>>>{std::forward<T>(t)};
}
#if defined(__cpp_deduction_guides) && (__cpp_deduction_guides >= 201703L)
#if (defined(__cpp_deduction_guides) && (__cpp_deduction_guides >= 201611L))
// deduction guides to prevent the ctad-maybe-unsupported warning
template <class T>
@@ -366,7 +345,7 @@ not_null(T) -> not_null<T>;
template <class T>
strict_not_null(T) -> strict_not_null<T>;
#endif // defined(__cpp_deduction_guides) && (__cpp_deduction_guides >= 201703L)
#endif // ( defined(__cpp_deduction_guides) && (__cpp_deduction_guides >= 201611L) )
} // namespace gsl
+48 -28
View File
@@ -1,4 +1,3 @@
// -*- C++ -*-
///////////////////////////////////////////////////////////////////////////////
//
// Copyright (c) 2015 Microsoft Corporation. All rights reserved.
@@ -164,7 +163,9 @@ namespace details
constexpr span_iterator& operator++() noexcept
{
Expects(current_ != end_);
GSL_SUPPRESS(bounds.1)
// clang-format off
GSL_SUPPRESS(bounds.1) // NO-FORMAT: attribute
// clang-format on
++current_;
return *this;
}
@@ -195,7 +196,9 @@ namespace details
if (n != 0) Expects(begin_ && current_ && end_);
if (n > 0) Expects(end_ - current_ >= n);
if (n < 0) Expects(current_ - begin_ >= -n);
GSL_SUPPRESS(bounds.1)
// clang-format off
GSL_SUPPRESS(bounds.1) // NO-FORMAT: attribute
// clang-format on
current_ += n;
return *this;
}
@@ -218,7 +221,7 @@ namespace details
if (n != 0) Expects(begin_ && current_ && end_);
if (n > 0) Expects(current_ - begin_ >= n);
if (n < 0) Expects(end_ - current_ >= -n);
GSL_SUPPRESS(bounds.1)
GSL_SUPPRESS(bounds .1)
current_ -= n;
return *this;
}
@@ -312,7 +315,9 @@ namespace details
if (n < 0) Expects(current_ - begin_ >= -n);
}
GSL_SUPPRESS(bounds.1)
// clang-format off
GSL_SUPPRESS(bounds.1) // NO-FORMAT: attribute
// clang-format on
constexpr pointer _Unwrapped() const noexcept
{ // after seeking *this to a high water mark, or using one of the
// _Verify_xxx functions above, unwrap this span_iterator to a raw
@@ -327,7 +332,9 @@ namespace details
#else
static constexpr bool _Unwrap_when_unverified = false;
#endif
GSL_SUPPRESS(con.3) // TODO: false positive
// clang-format off
GSL_SUPPRESS(con.3) // NO-FORMAT: attribute // TODO: false positive
// clang-format on
constexpr void _Seek_to(const pointer p) noexcept
{ // adjust the position of *this to previously verified location p
// after _Unwrapped
@@ -342,8 +349,7 @@ namespace details
template <typename Ptr>
friend struct std::pointer_traits;
};
} // namespace details
} // namespace gsl
}} // namespace gsl::details
namespace std
{
@@ -358,10 +364,7 @@ struct pointer_traits<::gsl::details::span_iterator<Type>>
};
} // namespace std
namespace gsl
{
namespace details
{
namespace gsl { namespace details {
template <std::size_t Ext>
class extent_type
{
@@ -586,7 +589,10 @@ public:
}
template <std::size_t Count>
GSL_SUPPRESS(bounds.1) constexpr span<element_type, Count> last() const noexcept
// clang-format off
GSL_SUPPRESS(bounds.1) // NO-FORMAT: attribute
// clang-format on
constexpr span<element_type, Count> last() const noexcept
{
static_assert(Extent == dynamic_extent || Count <= Extent,
"last() cannot extract more elements from a span than it contains.");
@@ -595,7 +601,10 @@ public:
}
template <std::size_t Offset, std::size_t Count = dynamic_extent>
GSL_SUPPRESS(bounds.1) constexpr auto subspan() const noexcept ->
// clang-format off
GSL_SUPPRESS(bounds.1) // NO-FORMAT: attribute
// clang-format on
constexpr auto subspan() const noexcept ->
typename details::calculate_subspan_type<ElementType, Extent, Offset, Count>::type
{
static_assert(Extent == dynamic_extent || (Extent >= Offset && (Count == dynamic_extent ||
@@ -633,7 +642,9 @@ public:
constexpr bool empty() const noexcept { return size() == 0; }
// [span.elem], span element access
GSL_SUPPRESS(bounds.1)
// clang-format off
GSL_SUPPRESS(bounds.1) // NO-FORMAT: attribute
// clang-format on
constexpr reference operator[](size_type idx) const noexcept
{
Expects(idx < size());
@@ -658,14 +669,18 @@ public:
constexpr iterator begin() const noexcept
{
const auto data = storage_.data();
GSL_SUPPRESS(bounds.1)
// clang-format off
GSL_SUPPRESS(bounds.1) // NO-FORMAT: attribute
// clang-format on
return {data, data + size(), data};
}
constexpr iterator end() const noexcept
{
const auto data = storage_.data();
GSL_SUPPRESS(bounds.1)
// clang-format off
GSL_SUPPRESS(bounds.1) // NO-FORMAT: attribute
// clang-format on
const auto endData = data + storage_.size();
return {data, endData, endData};
}
@@ -678,7 +693,9 @@ public:
constexpr pointer _Unchecked_begin() const noexcept { return data(); }
constexpr pointer _Unchecked_end() const noexcept
{
GSL_SUPPRESS(bounds.1)
// clang-format off
GSL_SUPPRESS(bounds.1) // NO-FORMAT: attribute
// clang-format on
return data() + size();
}
#endif // _MSC_VER
@@ -735,7 +752,9 @@ private:
return tmp.subspan(offset, count);
}
GSL_SUPPRESS(bounds.1)
// clang-format off
GSL_SUPPRESS(bounds.1) // NO-FORMAT: attribute
// clang-format on
constexpr span<element_type, dynamic_extent>
make_subspan(size_type offset, size_type count, subspan_selector<dynamic_extent>) const noexcept
{
@@ -748,7 +767,7 @@ private:
}
};
#if defined(__cpp_deduction_guides) && (__cpp_deduction_guides >= 201703L)
#if (defined(__cpp_deduction_guides) && (__cpp_deduction_guides >= 201611L))
// Deduction Guides
template <class Type, std::size_t Extent>
@@ -768,14 +787,12 @@ template <class Container,
class Element = std::remove_pointer_t<decltype(std::declval<const Container&>().data())>>
span(const Container&) -> span<Element>;
#endif // defined(__cpp_deduction_guides) && (__cpp_deduction_guides >= 201703L)
#endif // ( defined(__cpp_deduction_guides) && (__cpp_deduction_guides >= 201611L) )
#if defined(GSL_USE_STATIC_CONSTEXPR_WORKAROUND)
#if defined(__clang__) && defined(_MSC_VER) && defined(__cplusplus) && (__cplusplus < 201703L)
#pragma clang diagnostic push
#pragma clang diagnostic ignored \
"-Wdeprecated" // Bug in clang-cl.exe which raises a C++17 -Wdeprecated warning about this
// static constexpr workaround in C++14 mode.
#pragma clang diagnostic ignored "-Wdeprecated" // Bug in clang-cl.exe which raises a C++17 -Wdeprecated warning about this static constexpr workaround in C++14 mode.
#endif // defined(__clang__) && defined(_MSC_VER) && defined(__cplusplus) && (__cplusplus < 201703L)
template <class ElementType, std::size_t Extent>
constexpr const typename span<ElementType, Extent>::size_type span<ElementType, Extent>::extent;
@@ -810,10 +827,11 @@ template <class ElementType, std::size_t Extent>
span<const gsl::impl::byte, details::calculate_byte_size<ElementType, Extent>::value>
as_bytes(span<ElementType, Extent> s) noexcept
{
using type =
span<const gsl::impl::byte, details::calculate_byte_size<ElementType, Extent>::value>;
using type = span<const gsl::impl::byte, details::calculate_byte_size<ElementType, Extent>::value>;
GSL_SUPPRESS(type.1)
// clang-format off
GSL_SUPPRESS(type.1) // NO-FORMAT: attribute
// clang-format on
return type{reinterpret_cast<const gsl::impl::byte*>(s.data()), s.size_bytes()};
}
@@ -824,7 +842,9 @@ as_writable_bytes(span<ElementType, Extent> s) noexcept
{
using type = span<gsl::impl::byte, details::calculate_byte_size<ElementType, Extent>::value>;
GSL_SUPPRESS(type.1)
// clang-format off
GSL_SUPPRESS(type.1) // NO-FORMAT: attribute
// clang-format on
return type{reinterpret_cast<gsl::impl::byte*>(s.data()), s.size_bytes()};
}
+1 -1
View File
@@ -149,7 +149,7 @@ constexpr ElementType& at(span<ElementType, Extent> s, index i)
template <class ElementType, std::size_t Extent>
constexpr std::ptrdiff_t ssize(const span<ElementType, Extent>& s) noexcept
{
return gsl::narrow_cast<std::ptrdiff_t>(s.size());
return static_cast<std::ptrdiff_t>(s.size());
}
// [span.iter] Free functions for begin/end functions
+29 -61
View File
@@ -1,4 +1,3 @@
// -*- C++ -*-
///////////////////////////////////////////////////////////////////////////////
//
// Copyright (c) 2015 Microsoft Corporation. All rights reserved.
@@ -20,10 +19,10 @@
#include "./assert" // for Expects
#include <array>
#include <cstddef> // for ptrdiff_t, size_t
#include <initializer_list> // for initializer_list
#include <iterator> // for iterator_traits
#include <limits> // for numeric_limits
#include <initializer_list> // for initializer_list
#include <type_traits> // for is_signed, integral_constant
#include <utility> // for exchange, forward
@@ -87,13 +86,6 @@
#define GSL_DEPRECATED(msg)
#endif // !defined(GSL_DEPRECATED)
#if __cplusplus >= 202002L
#define GSL_CONSTEXPR_SINCE_CPP20 constexpr
#else // ^^^ since C++20 /// before C++20 vvv
#define GSL_BEFORE_CPP20
#define GSL_CONSTEXPR_SINCE_CPP20
#endif // __cplusplus >= 202002L
namespace gsl
{
//
@@ -103,55 +95,23 @@ namespace gsl
// index type for all container indexes/subscripts/sizes
using index = std::ptrdiff_t;
namespace details
{
template <typename...>
using void_t = void;
template <typename T, typename = void>
struct is_iterator : std::false_type
{
};
template <typename T>
struct is_iterator<T, void_t<typename std::iterator_traits<T>::value_type>> : std::true_type
{
};
template <typename T, typename = void>
struct is_fwd_iterator : std::false_type
{
};
template <typename T>
struct is_fwd_iterator<T, void_t<typename std::iterator_traits<T>::iterator_category>>
: std::integral_constant<
bool, std::is_base_of<std::forward_iterator_tag,
typename std::iterator_traits<T>::iterator_category>::value>
{
};
} // namespace details
// final_action allows you to ensure something gets run at the end of a scope
template <class F>
class final_action
{
public:
explicit final_action(const F& ff) noexcept : f{ff} {}
explicit final_action(F&& ff) noexcept : f{std::move(ff)} {}
explicit final_action(const F& ff) noexcept : f{ff} { }
explicit final_action(F&& ff) noexcept : f{std::move(ff)} { }
~final_action() noexcept
{
if (invoke) f();
}
~final_action() noexcept { if (invoke) f(); }
final_action(final_action&& other) noexcept
: f(std::move(other.f)), invoke(std::exchange(other.invoke, false))
{}
{ }
final_action(const final_action&) = delete;
final_action(const final_action&) = delete;
void operator=(const final_action&) = delete;
void operator=(final_action&&) = delete;
void operator=(final_action&&) = delete;
private:
F f;
@@ -167,7 +127,10 @@ GSL_NODISCARD auto finally(F&& f) noexcept
// narrow_cast(): a searchable way to do narrowing casts of values
template <class T, class U>
GSL_SUPPRESS(type.1) constexpr T narrow_cast(U&& u) noexcept
// clang-format off
GSL_SUPPRESS(type.1) // NO-FORMAT: attribute
// clang-format on
constexpr T narrow_cast(U&& u) noexcept
{
return static_cast<T>(std::forward<U>(u));
}
@@ -176,17 +139,23 @@ GSL_SUPPRESS(type.1) constexpr T narrow_cast(U&& u) noexcept
// at() - Bounds-checked way of accessing builtin arrays, std::array, std::vector
//
template <class T, std::size_t N>
GSL_SUPPRESS(bounds.4) GSL_SUPPRESS(bounds.2) constexpr T& at(T (&arr)[N], const index i)
// clang-format off
GSL_SUPPRESS(bounds.4) // NO-FORMAT: attribute
GSL_SUPPRESS(bounds.2) // NO-FORMAT: attribute
// clang-format on
constexpr T& at(T (&arr)[N], const index i)
{
static_assert(N <= static_cast<std::size_t>((std::numeric_limits<std::ptrdiff_t>::max)()),
"We only support arrays up to PTRDIFF_MAX bytes.");
static_assert(N <= static_cast<std::size_t>((std::numeric_limits<std::ptrdiff_t>::max)()), "We only support arrays up to PTRDIFF_MAX bytes.");
Expects(i >= 0 && i < narrow_cast<index>(N));
return arr[narrow_cast<std::size_t>(i)];
}
template <class Cont>
GSL_SUPPRESS(bounds.4) GSL_SUPPRESS(bounds.2) constexpr auto at(Cont& cont, const index i)
-> decltype(cont[cont.size()])
// clang-format off
GSL_SUPPRESS(bounds.4) // NO-FORMAT: attribute
GSL_SUPPRESS(bounds.2) // NO-FORMAT: attribute
// clang-format on
constexpr auto at(Cont& cont, const index i) -> decltype(cont[cont.size()])
{
Expects(i >= 0 && i < narrow_cast<index>(cont.size()));
using size_type = decltype(cont.size());
@@ -194,18 +163,17 @@ GSL_SUPPRESS(bounds.4) GSL_SUPPRESS(bounds.2) constexpr auto at(Cont& cont, cons
}
template <class T>
GSL_SUPPRESS(bounds.1) constexpr T at(const std::initializer_list<T> cont, const index i)
// clang-format off
GSL_SUPPRESS(bounds.1) // NO-FORMAT: attribute
// clang-format on
constexpr T at(const std::initializer_list<T> cont, const index i)
{
Expects(i >= 0 && i < narrow_cast<index>(cont.size()));
return *(cont.begin() + i);
}
template <class T, std::enable_if_t<std::is_move_assignable<T>::value &&
std::is_move_constructible<T>::value>>
void swap(T& a, T& b)
{
std::swap(a, b);
}
template <class T, std::enable_if_t<std::is_move_assignable<T>::value && std::is_move_constructible<T>::value>>
void swap(T& a, T& b) { std::swap(a, b); }
#if defined(__cpp_lib_span) && __cpp_lib_span >= 202002L
template <class T, std::size_t extent = std::dynamic_extent>
+1 -1
View File
@@ -19,7 +19,7 @@
#include "./span_ext" // for dynamic_extent
#include <cstddef> // for size_t, nullptr_t
#include <cstddef> // for size_t, nullptr_t
namespace gsl
{
-13
View File
@@ -1,13 +0,0 @@
@echo off
setlocal enabledelayedexpansion
"%VCINSTALLDIR%Tools\Llvm\bin\clang-format" -version
if %errorlevel% neq 0 (
echo [ERROR] clang-format not found, script should be called from a visual studio developer command prompt.
exit /b %errorlevel%
)
for %%f in (include\gsl\* tests\*.h tests\*.cpp) do (
echo formatting %%f
"%VCINSTALLDIR%Tools\Llvm\bin\clang-format" -i --assume-filename x.cpp "%%f"
)
-18
View File
@@ -1,18 +0,0 @@
#!/bin/bash
set -euo pipefail
cf=clang-format-$(grep -i 'CLANG_VERSION:' .github/workflows/clang-format.yml | sed -E 's/.*"([^"]+)".*/\1/')
readonly cf
if ! "${cf}" -version; then
echo "[ERROR] clang-format not found. Please install it using: sudo apt install ${cf}"
exit 1
fi
{
find include/gsl -type f
find tests -type f \( -name '*.cpp' -o -name '*.h' \)
} | xargs "${cf}" -i --assume-filename=x.cpp --verbose
find scripts -type f -name '*.sh' -print -exec shfmt -w {} \;
+18 -14
View File
@@ -151,7 +151,6 @@ else()
-Wno-unknown-attributes
-Wno-used-but-marked-unused # GTest EXPECT_DEATH
-Wno-weak-vtables
-Wno-poison-system-directories
$<$<EQUAL:${GSL_CXX_STANDARD},14>: # no support for [[maybe_unused]]
-Wno-unused-member-function
-Wno-unused-variable
@@ -200,22 +199,28 @@ target_include_directories(gsl_tests_config SYSTEM INTERFACE
googletest/googletest/include
)
# Individually build and register each test source (except no_exception_ensure_tests.cpp)
# no_exception_ensure_tests.cpp is built separately with exceptions disabled
file(GLOB GSL_TEST_SOURCES CONFIGURE_DEPENDS "${CMAKE_CURRENT_SOURCE_DIR}/*.cpp")
list(FILTER GSL_TEST_SOURCES EXCLUDE REGEX "no_exception_ensure_tests\\.cpp$")
add_executable(gsl_tests
algorithm_tests.cpp
assertion_tests.cpp
at_tests.cpp
byte_tests.cpp
notnull_tests.cpp
owner_tests.cpp
pointers_tests.cpp
span_compatibility_tests.cpp
span_ext_tests.cpp
span_tests.cpp
strict_notnull_tests.cpp
utils_tests.cpp
)
foreach(src IN LISTS GSL_TEST_SOURCES)
get_filename_component(test_name "${src}" NAME_WE)
add_executable(${test_name} ${src})
target_link_libraries(${test_name}
target_link_libraries(gsl_tests
Microsoft.GSL::GSL
gsl_tests_config
${GTestMain_LIBRARIES}
)
add_test(NAME ${test_name} COMMAND ${test_name})
set_target_properties(${test_name} PROPERTIES FOLDER "tests")
endforeach()
)
add_test(gsl_tests gsl_tests)
# No exception tests
@@ -281,7 +286,6 @@ else()
-Wno-missing-prototypes
-Wno-unknown-attributes
-Wno-weak-vtables
-Wno-poison-system-directories
>
$<$<CXX_COMPILER_ID:GNU>:
-Wdouble-promotion # float implicit to double
+2 -2
View File
@@ -32,7 +32,7 @@
TEST(at_tests, static_array)
{
int a[4] = {1, 2, 3, 4};
const int (&c_a)[4] = a;
const int(&c_a)[4] = a;
for (int i = 0; i < 4; ++i)
{
@@ -152,7 +152,7 @@ TEST(at_tests, std_span)
static constexpr bool test_constexpr()
{
int a1[4] = {1, 2, 3, 4};
const int (&c_a1)[4] = a1;
const int(&c_a1)[4] = a1;
std::array<int, 4> a2 = {1, 2, 3, 4};
const std::array<int, 4>& c_a2 = a2;
+2 -2
View File
@@ -171,8 +171,8 @@ static_assert(!RShiftAssignCompilesFor<float>, "!RShiftAssignCompilesFor<float>"
template <typename U, typename = void>
static constexpr bool ToIntegerCompilesFor = false;
template <typename U>
static constexpr bool ToIntegerCompilesFor<U, void_t<decltype(gsl::to_integer<U>(gsl::byte{}))>> =
true;
static constexpr bool
ToIntegerCompilesFor<U, void_t<decltype(gsl::to_integer<U>(gsl::byte{}))>> = true;
static_assert(!ToIntegerCompilesFor<float>, "!ToIntegerCompilesFor<float>");
} // namespace
-75
View File
@@ -1,75 +0,0 @@
///////////////////////////////////////////////////////////////////////////////
//
// Copyright (c) 2025 Microsoft Corporation. All rights reserved.
//
// This code is licensed under the MIT License (MIT).
//
// 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 <gsl/pointers> // for not_null
#include <gtest/gtest.h>
#include <type_traits> // for declval
using namespace gsl;
namespace
{
constexpr bool comparison_test(const int* ptr1, const int* ptr2)
{
const not_null<const int*> p1(ptr1);
const not_null<const int*> p1_same(ptr1);
const not_null<const int*> p2(ptr2);
// Testing operator==
const bool eq_result = (p1 == p1_same); // Should be true
const bool neq_result = (p1 != p2); // Should be true
// Testing operator<= and operator>=
const bool le_result = (p1 <= p1_same); // Should be true
const bool ge_result = (p1 >= p1_same); // Should be true
// The exact comparison results will depend on pointer ordering,
// but we can verify that the basic equality checks work as expected
return eq_result && neq_result && le_result && ge_result;
}
constexpr bool workaround_test(const int* ptr1, const int* ptr2)
{
const not_null<const int*> p1(ptr1);
const not_null<const int*> p1_same(ptr1);
const not_null<const int*> p2(ptr2);
// Using .get() to compare
const bool eq_result = (p1.get() == p1_same.get()); // Should be true
const bool neq_result = (p1.get() != p2.get()); // Should be true
return eq_result && neq_result;
}
} // namespace
constexpr int test_value1 = 1;
constexpr int test_value2 = 2;
static_assert(comparison_test(&test_value1, &test_value2),
"not_null comparison operators should be constexpr");
static_assert(workaround_test(&test_value1, &test_value2),
"not_null .get() comparison workaround should work");
TEST(notnull_constexpr_tests, TestNotNullConstexprComparison)
{
// This test simply verifies that the constexpr functions compile and run
// If we got here, it means the constexpr comparison operators are working
static const int value1 = 1;
static const int value2 = 2;
EXPECT_TRUE(comparison_test(&value1, &value2));
EXPECT_TRUE(workaround_test(&value1, &value2));
}
-684
View File
@@ -1,684 +0,0 @@
#include <gtest/gtest.h>
#include "deathTestCommon.h"
#include "gsl/dyn_array"
#include <cstdlib>
#include <exception>
#include <gsl/dyn_array>
#include <gsl/util>
#include <iostream>
#include <sstream>
#include <type_traits>
// Despite using <algorithm> and <ranges> utilities in this test, they
// are not being included directly by this file as a test to ensure
// transitive inclusion via <gsl/dyn_array>.
static_assert(sizeof(gsl::dyn_array<int>) == 2 * sizeof(void*),
"gsl::dyn_array (with the default allocator) should be 16 bytes");
#if defined(__cpp_lib_concepts) && (__cpp_lib_concepts >= 202002L)
static_assert(std::input_iterator<gsl::dyn_array<int>::iterator>,
"gsl::dyn_array should expose a valid input_iterator");
#endif /* __cpp_lib_concepts >= 202002L */
#if defined(__cpp_lib_ranges) && (__cpp_lib_ranges >= 201911L)
static_assert(std::ranges::input_range<gsl::dyn_array<int>>,
"gsl::dyn_array should be a valid input range");
#endif /* __cpp_lib_ranges >= 201911L */
TEST(dyn_array_tests, default_ctor)
{
gsl::dyn_array<char> diamondbacks;
EXPECT_TRUE(diamondbacks.empty());
EXPECT_EQ(diamondbacks.size(), 0);
EXPECT_EQ(diamondbacks.data(), nullptr);
}
TEST(dyn_array_tests, count_ctor)
{
gsl::dyn_array<char> athletics(10);
EXPECT_FALSE(athletics.empty());
EXPECT_EQ(athletics.size(), 10);
EXPECT_NE(athletics.data(), nullptr);
gsl::dyn_array<char> braves(0);
EXPECT_TRUE(braves.empty());
EXPECT_EQ(braves.size(), 0);
EXPECT_EQ(braves.data(), nullptr);
EXPECT_TRUE(std::all_of(braves.begin(), braves.end(), [](char c) { return c == char{}; }));
}
TEST(dyn_array_tests, count_value_ctor)
{
gsl::dyn_array<char> orioles(10, 'c');
EXPECT_FALSE(orioles.empty());
EXPECT_EQ(orioles.size(), 10);
EXPECT_NE(orioles.data(), nullptr);
EXPECT_TRUE(std::all_of(orioles.begin(), orioles.end(), [](char c) { return c == 'c'; }));
gsl::dyn_array<int> redsox(10, 42);
EXPECT_FALSE(redsox.empty());
EXPECT_EQ(redsox.size(), 10);
EXPECT_NE(redsox.data(), nullptr);
EXPECT_TRUE(std::all_of(redsox.begin(), redsox.end(), [](int i) { return i == 42; }));
}
TEST(dyn_array_tests, inputit_ctor)
{
std::vector<char> cubs(10, 'c');
gsl::dyn_array<char> whitesox(cubs.begin(), cubs.end());
EXPECT_FALSE(whitesox.empty());
EXPECT_EQ(whitesox.size(), cubs.size());
EXPECT_NE(whitesox.data(), nullptr);
EXPECT_TRUE(std::all_of(whitesox.begin(), whitesox.end(), [](char c) { return c == 'c'; }));
}
TEST(dyn_array_tests, copy_ctor)
{
gsl::dyn_array<char> reds(10, 'c');
gsl::dyn_array<char> guardians(reds);
EXPECT_FALSE(guardians.empty());
EXPECT_EQ(guardians.size(), reds.size());
EXPECT_NE(guardians.data(), nullptr);
EXPECT_TRUE(std::all_of(guardians.begin(), guardians.end(), [](char c) { return c == 'c'; }));
}
TEST(dyn_array_tests, access_operator)
{
gsl::dyn_array<char> rockies(10, 'c');
using ST = typename decltype(rockies)::size_type;
for (int i = 0; i < gsl::narrow<int>(rockies.size()); i++)
EXPECT_EQ(rockies[gsl::narrow<ST>(i)], 'c');
for (int i = 0; i < gsl::narrow<int>(rockies.size()); i++) rockies[gsl::narrow<ST>(i)] = 'r';
for (int i = 0; i < gsl::narrow<int>(rockies.size()); i++)
EXPECT_EQ(rockies[gsl::narrow<ST>(i)], 'r');
gsl::dyn_array<int> tigers(10);
for (int i = 0; i < gsl::narrow<int>(tigers.size()); i++) tigers[gsl::narrow<ST>(i)] = i;
for (int i = 0; i < gsl::narrow<int>(tigers.size()); i++)
EXPECT_EQ(tigers[gsl::narrow<ST>(i)], i);
}
TEST(dyn_array_tests, iterators)
{
gsl::dyn_array<char> astros(10, 'c');
for (auto it = astros.begin(); it != astros.end(); it++) EXPECT_EQ(*it, 'c');
for (auto it = astros.begin(); it != astros.end(); it++) *it = 'r';
for (auto it = astros.begin(); it != astros.end(); it++) EXPECT_EQ(*it, 'r');
EXPECT_TRUE(std::all_of(astros.begin(), astros.end(), [](char c) { return c == 'r'; }));
gsl::dyn_array<char> royals(10, 'c');
for (auto it = royals.begin(); it != royals.end(); ++it) EXPECT_EQ(*it, 'c');
for (auto it = royals.begin(); it != royals.end(); ++it) *it = 'r';
for (auto it = royals.begin(); it != royals.end(); ++it) EXPECT_EQ(*it, 'r');
EXPECT_TRUE(std::all_of(royals.begin(), royals.end(), [](char c) { return c == 'r'; }));
}
TEST(dyn_array_tests, range_for)
{
gsl::dyn_array<char> angels(10, 'c');
for (auto x : angels) EXPECT_EQ(x, 'c');
for (auto& x : angels) x = 'r';
for (auto x : angels) EXPECT_EQ(x, 'r');
EXPECT_TRUE(std::all_of(angels.begin(), angels.end(), [](char c) { return c == 'r'; }));
}
TEST(dyn_array_tests, use_std_algorithms)
{
gsl::dyn_array<char> dodgers(26);
std::generate(dodgers.begin(), dodgers.end(), [i = 0]() mutable { return 'a' + i++; });
char ch = 'a';
for (auto x : dodgers) EXPECT_EQ(x, ch++);
EXPECT_EQ(std::find(dodgers.begin(), dodgers.end(), 'a'), dodgers.begin());
{
auto it = std::find(dodgers.begin(), dodgers.end(), 'c');
EXPECT_EQ(std::distance(dodgers.begin(), it), 'c' - 'a');
EXPECT_EQ(std::distance(it, dodgers.begin()), 'a' - 'c');
}
{
auto it = std::lower_bound(dodgers.begin(), dodgers.end(), 'j');
EXPECT_EQ(*it, 'j');
EXPECT_EQ(std::distance(dodgers.begin(), it), 'j' - 'a');
EXPECT_EQ(std::distance(it, dodgers.begin()), 'a' - 'j');
}
EXPECT_EQ(dodgers.begin(), std::begin(dodgers));
EXPECT_EQ(dodgers.end(), std::end(dodgers));
}
#if defined(__cpp_lib_constexpr_dynamic_alloc) && (__cpp_lib_constexpr_dynamic_alloc >= 201907L)
constexpr auto default_constructed_count_dyn_array_is_constexpr()
{
gsl::dyn_array<int> values(3);
return values.size() == 3 && values[0] == 0 && values[1] == 0 && values[2] == 0;
}
TEST(dyn_array_tests, constexprness)
{
constexpr gsl::dyn_array<char> marlins;
static_assert(marlins == marlins);
static_assert(marlins.empty());
static_assert(marlins.size() == 0);
static_assert(marlins.data() == nullptr);
static_assert(marlins.begin() == marlins.end());
static_assert(std::distance(marlins.begin(), marlins.end()) == 0);
static_assert(default_constructed_count_dyn_array_is_constexpr());
}
#endif /* __cpp_lib_constexpr_dynamic_alloc >= 201907L */
#if defined(__cpp_lib_ranges) && (__cpp_lib_ranges >= 201911L)
TEST(dyn_array_tests, ranges)
{
gsl::dyn_array<char> brewers(26);
std::ranges::generate(brewers, [c = 'a']() mutable { return c++; });
char ch = 'a';
for (auto x : brewers) EXPECT_EQ(x, ch++);
EXPECT_EQ(std::ranges::find(brewers, 'a'), std::ranges::begin(brewers));
{
auto it = std::ranges::find(brewers, 'c');
EXPECT_EQ(std::ranges::distance(std::ranges::begin(brewers), it), 'c' - 'a');
EXPECT_EQ(std::ranges::distance(it, std::ranges::begin(brewers)), 'a' - 'c');
}
#if defined(__cpp_lib_containers_ranges) && (__cpp_lib_containers_ranges >= 202202L)
std::vector<char> twins(10, 'c');
gsl::dyn_array<char> mets(std::from_range, twins);
EXPECT_EQ(twins.size(), mets.size());
EXPECT_TRUE(std::ranges::all_of(mets, [](char c) { return c == 'c'; }));
#endif /* __cpp_lib_containers_ranges >= 202202L */
}
#endif /* __cpp_lib_ranges >= 201911L */
#if defined(__cpp_lib_constexpr_dynamic_alloc) && (__cpp_lib_constexpr_dynamic_alloc >= 201907L)
template <typename T, unsigned N>
struct ConstexprAllocator
{
using value_type = T;
T buf[N]{};
std::size_t sz{};
constexpr ConstexprAllocator() = default;
template <typename U>
constexpr ConstexprAllocator(const ConstexprAllocator<U, N>&) noexcept : buf{}, sz{}
{}
template <typename U>
struct rebind
{
using other = ConstexprAllocator<U, N>;
};
constexpr auto allocate(std::size_t n) -> value_type*
{
auto addr = &buf[sz];
sz += n;
return addr;
}
constexpr void deallocate(value_type*, std::size_t) noexcept {}
};
template <typename T1, unsigned N1, typename T2, unsigned N2>
constexpr auto operator==(const ConstexprAllocator<T1, N1>& lhs,
const ConstexprAllocator<T2, N2>& rhs) noexcept
{
return std::addressof(lhs) == std::addressof(rhs);
}
template <typename T1, unsigned N1, typename T2, unsigned N2>
constexpr auto operator!=(const ConstexprAllocator<T1, N1>& lhs,
const ConstexprAllocator<T2, N2>& rhs) noexcept
{
return !(lhs == rhs);
}
#endif /* __cpp_lib_constexpr_dynamic_alloc >= 201907L */
template <typename T>
static int AllocCounter = 0;
template <typename T>
static int DeallocCounter = 0;
struct LifetimeCounter
{
static int alive_count;
int value{};
explicit LifetimeCounter(int v = 0) : value(v) { ++alive_count; }
LifetimeCounter(const LifetimeCounter& other) : value(other.value) { ++alive_count; }
~LifetimeCounter() { --alive_count; }
};
int LifetimeCounter::alive_count = 0;
struct DefaultConstructionCounter
{
static int default_constructor_count;
static int copy_constructor_count;
int value{};
DefaultConstructionCounter() { ++default_constructor_count; }
DefaultConstructionCounter(const DefaultConstructionCounter& other) : value(other.value)
{
++copy_constructor_count;
}
static void reset()
{
default_constructor_count = 0;
copy_constructor_count = 0;
}
};
int DefaultConstructionCounter::default_constructor_count = 0;
int DefaultConstructionCounter::copy_constructor_count = 0;
struct DefaultOnlyElement
{
DefaultOnlyElement() = default;
DefaultOnlyElement(const DefaultOnlyElement&) = delete;
DefaultOnlyElement& operator=(const DefaultOnlyElement&) = delete;
DefaultOnlyElement(DefaultOnlyElement&&) = delete;
DefaultOnlyElement& operator=(DefaultOnlyElement&&) = delete;
};
struct ThrowOnCopy
{
static int alive_count;
static int copy_count;
static int throw_on_copy_index;
int value{};
explicit ThrowOnCopy(int v = 0) : value(v) { ++alive_count; }
ThrowOnCopy(const ThrowOnCopy& other) : value(other.value)
{
if (copy_count == throw_on_copy_index)
{
++copy_count;
throw 42;
}
++copy_count;
++alive_count;
}
~ThrowOnCopy() { --alive_count; }
};
int ThrowOnCopy::alive_count = 0;
int ThrowOnCopy::copy_count = 0;
int ThrowOnCopy::throw_on_copy_index = -1;
template <typename T>
class Newocator
{
public:
using value_type = T;
Newocator() = default;
template <typename U>
Newocator(const Newocator<U>&) noexcept
{}
static void init()
{
AllocCounter<Newocator<T>> = 0;
DeallocCounter<Newocator<T>> = 0;
}
static void check() { EXPECT_EQ(AllocCounter<Newocator<T>>, DeallocCounter<Newocator<T>>); }
auto allocate(std::size_t n) -> value_type*
{
AllocCounter<Newocator<T>> ++;
return static_cast<value_type*>(::operator new(n * sizeof(value_type)));
}
void deallocate(value_type* p, std::size_t) noexcept
{
DeallocCounter<Newocator<T>> ++;
::operator delete(p);
}
template <typename U>
struct rebind
{
using other = Newocator<U>;
};
};
template <typename T, typename U>
constexpr auto operator==(const Newocator<T>&, const Newocator<U>&) noexcept
{
return true;
}
template <typename T, typename U>
constexpr auto operator!=(const Newocator<T>& lhs, const Newocator<U>& rhs) noexcept
{
return !(lhs == rhs);
}
template <typename T>
class OwnershipTrackingAllocator
{
public:
using value_type = T;
OwnershipTrackingAllocator() noexcept : owner_id(next_owner_id()) { ++next_owner_id(); }
explicit OwnershipTrackingAllocator(int owner) noexcept : owner_id(owner) {}
template <typename U>
OwnershipTrackingAllocator(const OwnershipTrackingAllocator<U>& other) noexcept
: owner_id(other.owner())
{}
auto allocate(std::size_t count) -> value_type*
{
static_assert(alignof(value_type) <= alignof(int),
"test allocator only supports types with int-or-smaller alignment");
auto raw =
static_cast<unsigned char*>(::operator new(sizeof(int) + count * sizeof(value_type)));
*reinterpret_cast<int*>(raw) = owner_id;
++allocation_count();
return reinterpret_cast<value_type*>(raw + sizeof(int));
}
void deallocate(value_type* pointer, std::size_t) noexcept
{
auto raw = reinterpret_cast<unsigned char*>(pointer) - sizeof(int);
if (*reinterpret_cast<int*>(raw) != owner_id) { ++mismatched_deallocation_count(); }
++deallocation_count();
::operator delete(raw);
}
auto owner() const noexcept { return owner_id; }
static void reset()
{
next_owner_id() = 1;
allocation_count() = 0;
deallocation_count() = 0;
mismatched_deallocation_count() = 0;
}
static auto mismatched_deallocations() { return mismatched_deallocation_count(); }
private:
int owner_id;
static auto next_owner_id() -> int&
{
static int value = 1;
return value;
}
static auto allocation_count() -> int&
{
static int value = 0;
return value;
}
static auto deallocation_count() -> int&
{
static int value = 0;
return value;
}
static auto mismatched_deallocation_count() -> int&
{
static int value = 0;
return value;
}
};
template <typename T, typename U>
constexpr auto operator==(const OwnershipTrackingAllocator<T>& lhs,
const OwnershipTrackingAllocator<U>& rhs) noexcept
{
return lhs.owner() == rhs.owner();
}
template <typename T, typename U>
constexpr auto operator!=(const OwnershipTrackingAllocator<T>& lhs,
const OwnershipTrackingAllocator<U>& rhs) noexcept
{
return !(lhs == rhs);
}
TEST(dyn_array_tests, custom_allocator_models_allocator)
{
using traits = std::allocator_traits<Newocator<char>>;
using ptr = traits::pointer;
static_assert(std::is_same<traits::value_type, char>::value, "allocator trait type mismatch");
static_assert(std::is_same<ptr, char*>::value, "allocator trait type mismatch");
Newocator<char> alloc;
auto p = traits::allocate(alloc, 1);
traits::deallocate(alloc, p, 1);
#if defined(__cpp_lib_constexpr_dynamic_alloc) && (__cpp_lib_constexpr_dynamic_alloc >= 201907L)
using constexpr_traits = std::allocator_traits<ConstexprAllocator<char, 10>>;
static_assert(std::is_same<constexpr_traits::value_type, char>::value,
"allocator trait type mismatch");
#endif /* __cpp_lib_constexpr_dynamic_alloc >= 201907L */
}
TEST(dyn_array_tests, custom_allocator)
{
#if defined(__cpp_lib_constexpr_dynamic_alloc) && (__cpp_lib_constexpr_dynamic_alloc >= 201907L)
static constexpr gsl::dyn_array<char, ConstexprAllocator<char, 10>> mets(10, 'c');
static_assert(mets.size() == 10);
static_assert(mets[0] == 'c');
static_assert(std::all_of(std::begin(mets), std::end(mets), [](char c) { return c == 'c'; }));
#endif /* __cpp_lib_constexpr_dynamic_alloc >= 201907L */
Newocator<char>::init();
{
gsl::dyn_array<char, Newocator<char>> yankees(10, 'c');
EXPECT_EQ(yankees.size(), 10);
EXPECT_TRUE(
std::all_of(std::begin(yankees), std::end(yankees), [](char c) { return c == 'c'; }));
yankees[0] = 'a';
yankees[1] = 'b';
EXPECT_EQ(yankees[0], 'a');
EXPECT_EQ(yankees[1], 'b');
EXPECT_EQ(yankees[2], 'c');
yankees.get_allocator().deallocate(yankees.get_allocator().allocate(1), 1);
}
Newocator<char>::check();
}
TEST(dyn_array_tests, non_trivial_elements_are_destroyed)
{
LifetimeCounter::alive_count = 0;
{
gsl::dyn_array<LifetimeCounter> values(5, LifetimeCounter{7});
EXPECT_EQ(values.size(), 5);
EXPECT_EQ(LifetimeCounter::alive_count, 5);
}
EXPECT_EQ(LifetimeCounter::alive_count, 0);
}
TEST(dyn_array_tests, count_constructor_default_constructs_each_element)
{
DefaultConstructionCounter::reset();
{
gsl::dyn_array<DefaultConstructionCounter> values(4);
EXPECT_EQ(values.size(), 4);
}
EXPECT_EQ(DefaultConstructionCounter::default_constructor_count, 4);
EXPECT_EQ(DefaultConstructionCounter::copy_constructor_count, 0);
}
#ifdef GSL_DYN_ARRAY_COMPILE_FAILURE_TESTS
TEST(dyn_array_compile_failure_tests, count_constructor_accepts_default_constructible_only_elements)
{
gsl::dyn_array<DefaultOnlyElement> values(4);
EXPECT_EQ(values.size(), 4);
}
#endif /* GSL_DYN_ARRAY_COMPILE_FAILURE_TESTS */
TEST(dyn_array_tests, failed_element_construction_rolls_back)
{
ThrowOnCopy::alive_count = 0;
ThrowOnCopy::copy_count = 0;
ThrowOnCopy::throw_on_copy_index = 2;
EXPECT_THROW((gsl::dyn_array<ThrowOnCopy>(5, ThrowOnCopy{1})), int);
EXPECT_EQ(ThrowOnCopy::alive_count, 0);
ThrowOnCopy::throw_on_copy_index = -1;
}
TEST(dyn_array_tests, init_list)
{
gsl::dyn_array<char> phillies = {'a', 'b', 'c'};
EXPECT_EQ(phillies.size(), 3);
EXPECT_EQ(phillies[0], 'a');
EXPECT_EQ(phillies[1], 'b');
EXPECT_EQ(phillies[2], 'c');
}
TEST(dyn_array_tests, const_operations)
{
const gsl::dyn_array<char> pirates{'a', 'b', 'c', 'd'};
EXPECT_EQ(pirates.size(), 4);
EXPECT_EQ(pirates[0], 'a');
}
TEST(dyn_array_tests, reverse_iterator)
{
const gsl::dyn_array<char> padres{'a', 'b', 'c'};
auto it = std::rbegin(padres);
EXPECT_EQ(*it++, 'c');
EXPECT_EQ(*it++, 'b');
EXPECT_EQ(*it++, 'a');
}
TEST(dyn_array_tests, random_access_iterator_arithmetic)
{
gsl::dyn_array<char> bluejays{'a', 'b', 'c', 'd'};
auto first = bluejays.begin();
auto third = first + 2;
EXPECT_EQ(*third, 'c');
EXPECT_EQ(third - first, 2);
EXPECT_EQ(*(third - 1), 'b');
EXPECT_EQ(*std::prev(third), 'b');
}
TEST(dyn_array_tests, random_access_iterator_arithmetic_accepts_negative_offsets)
{
gsl::dyn_array<char> bluejays{'a', 'b', 'c', 'd'};
auto third = bluejays.begin() + 2;
char previous{};
char next{};
EXPECT_NO_THROW(previous = *(third + -1));
EXPECT_EQ(previous, 'b');
EXPECT_NO_THROW(next = *(third - -1));
EXPECT_EQ(next, 'd');
}
TEST(dyn_array_tests, input_iterator_constructor)
{
std::istringstream stream{"n a t s"};
std::istream_iterator<char> first{stream};
const std::istream_iterator<char> last{};
gsl::dyn_array<char> nationals(first, last);
ASSERT_EQ(nationals.size(), 4);
EXPECT_EQ(nationals[0], 'n');
EXPECT_EQ(nationals[1], 'a');
EXPECT_EQ(nationals[2], 't');
EXPECT_EQ(nationals[3], 's');
}
TEST(dyn_array_tests, contract_violations)
{
const auto terminateHandler = std::set_terminate([] {
std::cerr << "Expected Death. dyn_array_contract_violations";
std::abort();
});
const auto expected = GetExpectedDeathString(terminateHandler);
gsl::dyn_array<char> values(3, 'v');
gsl::dyn_array<char> other(3, 'o');
EXPECT_DEATH(values[values.size()], expected);
EXPECT_DEATH((void) *values.end(), expected);
EXPECT_DEATH(++values.end(), expected);
EXPECT_DEATH(--values.begin(), expected);
EXPECT_DEATH((void) (values.begin() == other.begin()), expected);
}
#ifdef _MSC_VER
TEST(dyn_array_tests, unchecked_iterators)
{
gsl::dyn_array<char> values;
const gsl::dyn_array<char> const_values(3, 'v');
EXPECT_TRUE((std::is_same<decltype(const_values._Unchecked_begin()), const char*>::value));
EXPECT_TRUE((std::is_same<decltype(const_values._Unchecked_end()), const char*>::value));
std::size_t count = 0;
for (const auto value : const_values)
{
EXPECT_EQ(value, 'v');
++count;
}
EXPECT_EQ(count, const_values.size());
EXPECT_EQ(values._Unchecked_begin(), nullptr);
EXPECT_EQ(values._Unchecked_end(), nullptr);
}
#endif /* _MSC_VER */
TEST(DynArrayTests, TypeConsistency)
{
static_assert(std::is_same<gsl::dyn_array<int>::value_type, int>::value, "Value type mismatch");
static_assert(std::is_same<gsl::dyn_array<int>::reference, int&>::value,
"Reference type mismatch");
static_assert(std::is_same<gsl::dyn_array<int>::const_reference, const int&>::value,
"Const reference type mismatch");
static_assert(std::is_same<gsl::dyn_array<int>::iterator::value_type, int>::value,
"Iterator value type mismatch");
static_assert(std::is_same<gsl::dyn_array<int>::iterator::reference, int&>::value,
"Iterator reference type mismatch");
static_assert(std::is_same<gsl::dyn_array<int>::iterator::const_reference, const int&>::value,
"Iterator const reference type mismatch");
static_assert(std::is_same<gsl::dyn_array<int>::size_type, std::size_t>::value,
"Size type mismatch");
static_assert(std::is_same<gsl::dyn_array<int>::difference_type, std::ptrdiff_t>::value,
"Difference type mismatch");
}
#if defined(__cpp_deduction_guides) && (__cpp_deduction_guides >= 201703L)
TEST(dyn_array_tests, deduction_guides)
{
std::vector<char> giants{10};
#if defined(__cpp_lib_containers_ranges) && (__cpp_lib_containers_ranges >= 202202L)
gsl::dyn_array mariners(std::from_range, giants);
#endif /* __cpp_lib_containers_ranges >= 202202L */
gsl::dyn_array cardinals(std::begin(giants), std::end(giants));
}
#endif /* __cpp_deduction_guides >= 201703L */
+24 -22
View File
@@ -69,7 +69,9 @@ struct CustomPtr
template <typename T, typename U>
std::string operator==(CustomPtr<T> const& lhs, CustomPtr<U> const& rhs)
{
GSL_SUPPRESS(type.1)
// clang-format off
GSL_SUPPRESS(type.1) // NO-FORMAT: attribute
// clang-format on
return reinterpret_cast<const void*>(lhs.p_) == reinterpret_cast<const void*>(rhs.p_) ? "true"
: "false";
}
@@ -77,7 +79,9 @@ std::string operator==(CustomPtr<T> const& lhs, CustomPtr<U> const& rhs)
template <typename T, typename U>
std::string operator!=(CustomPtr<T> const& lhs, CustomPtr<U> const& rhs)
{
GSL_SUPPRESS(type.1)
// clang-format off
GSL_SUPPRESS(type.1) // NO-FORMAT: attribute
// clang-format on
return reinterpret_cast<const void*>(lhs.p_) != reinterpret_cast<const void*>(rhs.p_) ? "true"
: "false";
}
@@ -85,7 +89,9 @@ std::string operator!=(CustomPtr<T> const& lhs, CustomPtr<U> const& rhs)
template <typename T, typename U>
std::string operator<(CustomPtr<T> const& lhs, CustomPtr<U> const& rhs)
{
GSL_SUPPRESS(type.1)
// clang-format off
GSL_SUPPRESS(type.1) // NO-FORMAT: attribute
// clang-format on
return reinterpret_cast<const void*>(lhs.p_) < reinterpret_cast<const void*>(rhs.p_) ? "true"
: "false";
}
@@ -93,7 +99,9 @@ std::string operator<(CustomPtr<T> const& lhs, CustomPtr<U> const& rhs)
template <typename T, typename U>
std::string operator>(CustomPtr<T> const& lhs, CustomPtr<U> const& rhs)
{
GSL_SUPPRESS(type.1)
// clang-format off
GSL_SUPPRESS(type.1) // NO-FORMAT: attribute
// clang-format on
return reinterpret_cast<const void*>(lhs.p_) > reinterpret_cast<const void*>(rhs.p_) ? "true"
: "false";
}
@@ -101,7 +109,9 @@ std::string operator>(CustomPtr<T> const& lhs, CustomPtr<U> const& rhs)
template <typename T, typename U>
std::string operator<=(CustomPtr<T> const& lhs, CustomPtr<U> const& rhs)
{
GSL_SUPPRESS(type.1)
// clang-format off
GSL_SUPPRESS(type.1) // NO-FORMAT: attribute
// clang-format on
return reinterpret_cast<const void*>(lhs.p_) <= reinterpret_cast<const void*>(rhs.p_) ? "true"
: "false";
}
@@ -109,7 +119,9 @@ std::string operator<=(CustomPtr<T> const& lhs, CustomPtr<U> const& rhs)
template <typename T, typename U>
std::string operator>=(CustomPtr<T> const& lhs, CustomPtr<U> const& rhs)
{
GSL_SUPPRESS(type.1)
// clang-format off
GSL_SUPPRESS(type.1) // NO-FORMAT: attribute
// clang-format on
return reinterpret_cast<const void*>(lhs.p_) >= reinterpret_cast<const void*>(rhs.p_) ? "true"
: "false";
}
@@ -125,9 +137,13 @@ struct NonCopyableNonMovable
namespace
{
GSL_SUPPRESS(f.4)
// clang-format off
GSL_SUPPRESS(f .4) // NO-FORMAT: attribute
// clang-format on
bool helper(not_null<int*> p) { return *p == 12; }
GSL_SUPPRESS(f.4)
// clang-format off
GSL_SUPPRESS(f .4) // NO-FORMAT: attribute
// clang-format on
bool helper_const(not_null<const int*> p) { return *p == 12; }
int* return_pointer() { return nullptr; }
@@ -719,18 +735,4 @@ TEST(notnull_tests, TestStdHash)
EXPECT_FALSE(hash_nn(nn) == hash_intptr(&y));
EXPECT_FALSE(hash_nn(nn) == hash_intptr(nullptr));
}
{
auto x = std::make_shared<int>(42);
auto y = std::make_shared<int>(99);
not_null<std::shared_ptr<int>> nn{x};
const not_null<std::shared_ptr<int>> cnn{x};
std::hash<not_null<std::shared_ptr<int>>> hash_nn;
std::hash<std::shared_ptr<int>> hash_sharedptr;
EXPECT_TRUE(hash_nn(nn) == hash_sharedptr(x));
EXPECT_FALSE(hash_nn(nn) == hash_sharedptr(y));
EXPECT_TRUE(hash_nn(cnn) == hash_sharedptr(x));
}
}
+3 -2
View File
@@ -21,7 +21,7 @@
using namespace gsl;
GSL_SUPPRESS(f.23)
GSL_SUPPRESS(f .23) // NO-FORMAT: attribute
void f(int* i) { *i += 1; }
TEST(owner_tests, basic_test)
@@ -43,7 +43,8 @@ using void_t = void;
template <typename U, typename = void>
static constexpr bool OwnerCompilesFor = false;
template <typename U>
static constexpr bool OwnerCompilesFor<U, void_t<decltype(gsl::owner<U>{})>> = true;
static constexpr bool OwnerCompilesFor<U, void_t<decltype(gsl::owner<U>{})>> =
true;
static_assert(OwnerCompilesFor<int*>, "OwnerCompilesFor<int*>");
static_assert(!OwnerCompilesFor<int>, "!OwnerCompilesFor<int>");
static_assert(!OwnerCompilesFor<std::shared_ptr<int>>, "!OwnerCompilesFor<std::shared_ptr<int>>");
-22
View File
@@ -2,7 +2,6 @@
#include <gsl/pointers>
#include <functional>
#include <memory>
#include <type_traits>
#include <utility>
@@ -44,9 +43,6 @@ TEST(pointers_test, swap)
gsl::not_null<std::unique_ptr<int>> a(std::make_unique<int>(0));
gsl::not_null<std::unique_ptr<int>> b(std::make_unique<int>(1));
static_assert(noexcept(gsl::swap(a, b)),
"not null unique_ptr should be noexcept-swappable");
EXPECT_TRUE(*a == 0);
EXPECT_TRUE(*b == 1);
@@ -66,9 +62,6 @@ TEST(pointers_test, swap)
gsl::strict_not_null<std::unique_ptr<int>> a{std::make_unique<int>(0)};
gsl::strict_not_null<std::unique_ptr<int>> b{std::make_unique<int>(1)};
static_assert(noexcept(gsl::swap(a, b)),
"strict not null unique_ptr should be noexcept-swappable");
EXPECT_TRUE(*a == 0);
EXPECT_TRUE(*b == 1);
@@ -101,19 +94,4 @@ TEST(pointers_test, member_types)
"check member type: element_type");
}
TEST(pointers_test, hash_noexcept_compiles)
{
{
using Key = gsl::not_null<std::shared_ptr<int>>;
static_assert(noexcept(std::hash<Key>{}(std::declval<Key>())),
"gsl::not_null hash operator must be noexcept");
}
{
using Key = gsl::strict_not_null<std::shared_ptr<int>>;
static_assert(noexcept(std::hash<Key>{}(std::declval<Key>())),
"gsl::strict_not_null hash operator must be noexcept");
}
}
} // namespace
+4 -4
View File
@@ -61,10 +61,10 @@ void ArrayConvertibilityCheck()
static_assert(std::is_same<decltype(gsl::span{stl_nullptr}), gsl::span<T*, 3>>::value,
"std::is_same< decltype(span{stl_nullptr}), span<T*, 3>>::value");
static_assert(std::is_same<decltype(gsl::span{std::as_const(stl_nullptr)}),
gsl::span<T* const, 3>>::value,
"std::is_same< decltype(span{std::as_const(stl_nullptr)}), span<T* const, "
"3>>::value");
static_assert(
std::is_same<decltype(gsl::span{std::as_const(stl_nullptr)}), gsl::span<T* const, 3>>::value,
"std::is_same< decltype(span{std::as_const(stl_nullptr)}), span<T* const, "
"3>>::value");
}
#endif
}
+1 -1
View File
@@ -114,7 +114,7 @@ TEST(span_ext_test, make_span_from_array_constructor)
TEST(span_ext_test, make_span_from_dynamic_array_constructor)
{
double (*arr)[3][4] = new double[100][3][4];
double(*arr)[3][4] = new double[100][3][4];
{
auto s = make_span(&arr[0][0][0], 10);
+13 -15
View File
@@ -32,14 +32,14 @@
#include <vector> // for vector
// the string_view include and macro are used in the deduction guide verification
#if defined(__cpp_deduction_guides) && (__cpp_deduction_guides >= 201703L)
#if (defined(__cpp_deduction_guides) && (__cpp_deduction_guides >= 201611L))
#ifdef __has_include
#if __has_include(<string_view>)
#include <string_view>
#define HAS_STRING_VIEW
#endif // __has_include(<string_view>)
#endif // __has_include
#endif // defined(__cpp_deduction_guides) && (__cpp_deduction_guides >= 201703L)
#endif // (defined(__cpp_deduction_guides) && (__cpp_deduction_guides >= 201611L))
#if defined(__cplusplus) && __cplusplus >= 202002L
#include <span>
#endif // __cplusplus >= 202002L
@@ -257,9 +257,7 @@ TEST(span_test, from_pointer_pointer_construction)
EXPECT_TRUE(s.data() == &arr[0]);
}
// this test succeeds on all platforms, gsl::span is more relaxed than std::span where this
// would be UB
//{
//{ // this test succeeds on all platforms, gsl::span is more relaxed than std::span where this would be UB
// auto workaround_macro = [&]() { span<int> s{&arr[1], &arr[0]}; };
// EXPECT_DEATH(workaround_macro(), expected);
//}
@@ -344,7 +342,7 @@ TEST(span_test, from_array_constructor)
TEST(span_test, from_dynamic_array_constructor)
{
double (*arr)[3][4] = new double[100][3][4];
double(*arr)[3][4] = new double[100][3][4];
{
span<double> s(&arr[0][0][0], 10);
@@ -414,8 +412,8 @@ TEST(span_test, from_std_array_constructor)
static_assert(!CtorCompilesFor<span<int, 5>, std::array<int, 4>&>,
"!CtorCompilesFor<span<int, 5>, std::array<int, 4>&>");
#if !defined(_MSC_VER) || (__cplusplus >= 201703L)
// Fails on MSVC. TODO: report a feedback bug.
#if !defined(_MSC_VER) || (_MSC_VER > 1943) || (__cplusplus >= 201703L)
// Fails on "Visual Studio 16 2019/Visual Studio 17 2022, windows-2019/2022, Debug/Release, 14".
static_assert(!ConversionCompilesFor<span<int>, std::array<int, 4>>,
"!ConversionCompilesFor<span<int>, std::array<int, 4>>");
#endif
@@ -531,8 +529,8 @@ TEST(span_test, from_container_constructor)
EXPECT_TRUE(cs.data() == cstr.data());
}
#if !defined(_MSC_VER) || (__cplusplus >= 201703L)
// Fails on MSVC. TODO: report a feedback bug.
#if !defined(_MSC_VER) || (_MSC_VER > 1943) || (__cplusplus >= 201703L)
// Fails on "Visual Studio 16 2019/Visual Studio 17 2022, windows-2019/2022, Debug/Release, 14".
static_assert(!ConversionCompilesFor<span<int>, std::vector<int>>,
"!ConversionCompilesFor<span<int>, std::vector<int>>");
#endif // !defined(_MSC_VER) || (_MSC_VER > 1942) || (__cplusplus >= 201703L)
@@ -1211,7 +1209,7 @@ TEST(span_test, default_constructible)
TEST(span_test, std_container_ctad)
{
#if defined(__cpp_deduction_guides) && (__cpp_deduction_guides >= 201703L)
#if (defined(__cpp_deduction_guides) && (__cpp_deduction_guides >= 201611L))
// this test is just to verify that these compile
{
std::vector<int> v{1, 2, 3, 4};
@@ -1230,7 +1228,7 @@ TEST(span_test, std_container_ctad)
static_assert(std::is_same<decltype(sp), gsl::span<const char>>::value);
}
#endif
#endif // defined(__cpp_deduction_guides) && (__cpp_deduction_guides >= 201703L)
#endif
}
TEST(span_test, front_back)
@@ -1296,13 +1294,13 @@ TEST(span_test, conversions)
{
int arr[5] = {1, 2, 3, 4, 5};
#if defined(__cpp_deduction_guides) && (__cpp_deduction_guides >= 201703L)
#if defined(__cpp_deduction_guides) && (__cpp_deduction_guides >= 201611L)
span s = arr;
span cs = s;
#else // ^^^ deduction guides /// no deduction guides vvv
#else
span<int, 5> s = arr;
span<int, 5> cs = s;
#endif // defined(__cpp_deduction_guides) && (__cpp_deduction_guides >= 201703L)
#endif
EXPECT_TRUE(cs.size() == s.size());
EXPECT_TRUE(cs.data() == s.data());
+17 -6
View File
@@ -41,16 +41,24 @@ struct RefCounted
namespace
{
GSL_SUPPRESS(f.4)
// clang-format off
GSL_SUPPRESS(f.4) // NO-FORMAT: attribute
// clang-format on
bool helper(not_null<int*> p) { return *p == 12; }
GSL_SUPPRESS(f.4)
// clang-format off
GSL_SUPPRESS(f.4) // NO-FORMAT: attribute
// clang-format on
bool helper_const(not_null<const int*> p) { return *p == 12; }
GSL_SUPPRESS(f.4)
// clang-format off
GSL_SUPPRESS(f.4) // NO-FORMAT: attribute
// clang-format on
bool strict_helper(strict_not_null<int*> p) { return *p == 12; }
GSL_SUPPRESS(f.4)
// clang-format off
GSL_SUPPRESS(f.4) // NO-FORMAT: attribute
// clang-format on
bool strict_helper_const(strict_not_null<const int*> p) { return *p == 12; }
int* return_pointer() { return nullptr; }
@@ -187,6 +195,7 @@ template <typename U>
static constexpr bool
StrictHelperCompilesFor<U, void_t<decltype(strict_helper(std::declval<U>()))>> = true;
template <typename U, typename = void>
static constexpr bool StrictHelperConstCompilesFor = false;
template <typename U>
@@ -194,6 +203,7 @@ static constexpr bool
StrictHelperConstCompilesFor<U, void_t<decltype(strict_helper_const(std::declval<U>()))>> =
true;
template <typename U, typename = void>
static constexpr bool HelperCompilesFor = false;
template <typename U>
@@ -209,12 +219,13 @@ TEST(strict_notnull_tests, TestStrictNotNull)
strict_not_null<int*> snn = &x;
#endif
static_assert(!StrictHelperCompilesFor<int*>, "!StrictHelperCompilesFor<int*>");
static_assert(!StrictHelperConstCompilesFor<int*>, "!StrictHelperCompilesFor<int*>");
static_assert(!StrictHelperConstCompilesFor<int*>,
"!StrictHelperCompilesFor<int*>");
const strict_not_null<int*> snn1{&x};
static_assert(StrictHelperCompilesFor<const strict_not_null<int*>>,
"StrictHelperCompilesFor<const strict_not_null<int*>>");
"StrictHelperCompilesFor<const strict_not_null<int*>>");
helper(snn1);
helper_const(snn1);
+3 -3
View File
@@ -16,7 +16,7 @@
#include <gtest/gtest.h>
#include <algorithm> // for move
#include <algorithm> // for move
#include <complex>
#include <cstddef> // for std::ptrdiff_t
#include <cstdint> // for uint32_t, int32_t
@@ -156,8 +156,8 @@ TEST(utils_tests, narrow)
n = -42;
EXPECT_THROW(narrow<unsigned>(n), narrowing_error);
EXPECT_TRUE(narrow<std::complex<float>>(std::complex<double>(4, 2)) ==
std::complex<float>(4, 2));
EXPECT_TRUE(
narrow<std::complex<float>>(std::complex<double>(4, 2)) == std::complex<float>(4, 2));
EXPECT_THROW(narrow<std::complex<float>>(std::complex<double>(4.2)), narrowing_error);
EXPECT_TRUE(narrow<int>(float(1)) == 1);