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base.h
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// Formatting library for C++ - the base API for char/UTF-8
//
// Copyright (c) 2012 - present, Victor Zverovich
// All rights reserved.
//
// For the license information refer to format.h.
#ifndef FMT_BASE_H_
#define FMT_BASE_H_
#if defined(FMT_IMPORT_STD) && !defined(FMT_MODULE)
# define FMT_MODULE
#endif
#ifndef FMT_MODULE
# include <limits.h> // CHAR_BIT
# include <stdio.h> // FILE
# include <string.h> // strlen
// <cstddef> is also included transitively from <type_traits>.
# include <cstddef> // std::byte
# include <type_traits> // std::enable_if
#endif
// The fmt library version in the form major * 10000 + minor * 100 + patch.
#define FMT_VERSION 110002
#define FMT_HEADER_ONLY
// Detect compiler versions.
#if defined(__clang__) && !defined(__ibmxl__)
# define FMT_CLANG_VERSION (__clang_major__ * 100 + __clang_minor__)
#else
# define FMT_CLANG_VERSION 0
#endif
#if defined(__GNUC__) && !defined(__clang__) && !defined(__INTEL_COMPILER)
# define FMT_GCC_VERSION (__GNUC__ * 100 + __GNUC_MINOR__)
#else
# define FMT_GCC_VERSION 0
#endif
#if defined(__ICL)
# define FMT_ICC_VERSION __ICL
#elif defined(__INTEL_COMPILER)
# define FMT_ICC_VERSION __INTEL_COMPILER
#else
# define FMT_ICC_VERSION 0
#endif
#if defined(_MSC_VER)
# define FMT_MSC_VERSION _MSC_VER
#else
# define FMT_MSC_VERSION 0
#endif
// Detect standard library versions.
#ifdef _GLIBCXX_RELEASE
# define FMT_GLIBCXX_RELEASE _GLIBCXX_RELEASE
#else
# define FMT_GLIBCXX_RELEASE 0
#endif
#ifdef _LIBCPP_VERSION
# define FMT_LIBCPP_VERSION _LIBCPP_VERSION
#else
# define FMT_LIBCPP_VERSION 0
#endif
#ifdef _MSVC_LANG
# define FMT_CPLUSPLUS _MSVC_LANG
#else
# define FMT_CPLUSPLUS __cplusplus
#endif
// Detect __has_*.
#ifdef __has_feature
# define FMT_HAS_FEATURE(x) __has_feature(x)
#else
# define FMT_HAS_FEATURE(x) 0
#endif
#ifdef __has_include
# define FMT_HAS_INCLUDE(x) __has_include(x)
#else
# define FMT_HAS_INCLUDE(x) 0
#endif
#ifdef __has_cpp_attribute
# define FMT_HAS_CPP_ATTRIBUTE(x) __has_cpp_attribute(x)
#else
# define FMT_HAS_CPP_ATTRIBUTE(x) 0
#endif
#define FMT_HAS_CPP14_ATTRIBUTE(attribute) \
(FMT_CPLUSPLUS >= 201402L && FMT_HAS_CPP_ATTRIBUTE(attribute))
#define FMT_HAS_CPP17_ATTRIBUTE(attribute) \
(FMT_CPLUSPLUS >= 201703L && FMT_HAS_CPP_ATTRIBUTE(attribute))
// Detect C++14 relaxed constexpr.
#ifdef FMT_USE_CONSTEXPR
// Use the provided definition.
#elif FMT_GCC_VERSION >= 600 && FMT_CPLUSPLUS >= 201402L
// GCC only allows throw in constexpr since version 6:
// https://gcc.gnu.org/bugzilla/show_bug.cgi?id=67371.
# define FMT_USE_CONSTEXPR 1
#elif FMT_ICC_VERSION
# define FMT_USE_CONSTEXPR 0 // https://github.com/fmtlib/fmt/issues/1628
#elif FMT_HAS_FEATURE(cxx_relaxed_constexpr) || FMT_MSC_VERSION >= 1912
# define FMT_USE_CONSTEXPR 1
#else
# define FMT_USE_CONSTEXPR 0
#endif
#if FMT_USE_CONSTEXPR
# define FMT_CONSTEXPR constexpr
#else
# define FMT_CONSTEXPR
#endif
// Detect consteval, C++20 constexpr extensions and std::is_constant_evaluated.
#if !defined(__cpp_lib_is_constant_evaluated)
# define FMT_USE_CONSTEVAL 0
#elif FMT_CPLUSPLUS < 201709L
# define FMT_USE_CONSTEVAL 0
#elif FMT_GLIBCXX_RELEASE && FMT_GLIBCXX_RELEASE < 10
# define FMT_USE_CONSTEVAL 0
#elif FMT_LIBCPP_VERSION && FMT_LIBCPP_VERSION < 10000
# define FMT_USE_CONSTEVAL 0
#elif defined(__apple_build_version__) && __apple_build_version__ < 14000029L
# define FMT_USE_CONSTEVAL 0 // consteval is broken in Apple clang < 14.
#elif FMT_MSC_VERSION && FMT_MSC_VERSION < 1929
# define FMT_USE_CONSTEVAL 0 // consteval is broken in MSVC VS2019 < 16.10.
#elif defined(__cpp_consteval)
# define FMT_USE_CONSTEVAL 1
#elif FMT_GCC_VERSION >= 1002 || FMT_CLANG_VERSION >= 1101
# define FMT_USE_CONSTEVAL 1
#else
# define FMT_USE_CONSTEVAL 0
#endif
#if FMT_USE_CONSTEVAL
# define FMT_CONSTEVAL consteval
# define FMT_CONSTEXPR20 constexpr
#else
# define FMT_CONSTEVAL
# define FMT_CONSTEXPR20
#endif
#if defined(FMT_USE_NONTYPE_TEMPLATE_ARGS)
// Use the provided definition.
#elif defined(__NVCOMPILER)
# define FMT_USE_NONTYPE_TEMPLATE_ARGS 0
#elif FMT_GCC_VERSION >= 903 && FMT_CPLUSPLUS >= 201709L
# define FMT_USE_NONTYPE_TEMPLATE_ARGS 1
#elif defined(__cpp_nontype_template_args) && \
__cpp_nontype_template_args >= 201911L
# define FMT_USE_NONTYPE_TEMPLATE_ARGS 1
#elif FMT_CLANG_VERSION >= 1200 && FMT_CPLUSPLUS >= 202002L
# define FMT_USE_NONTYPE_TEMPLATE_ARGS 1
#else
# define FMT_USE_NONTYPE_TEMPLATE_ARGS 0
#endif
#ifdef FMT_USE_CONCEPTS
// Use the provided definition.
#elif defined(__cpp_concepts)
# define FMT_USE_CONCEPTS 1
#else
# define FMT_USE_CONCEPTS 0
#endif
// Check if exceptions are disabled.
#ifdef FMT_EXCEPTIONS
// Use the provided definition.
#elif defined(__GNUC__) && !defined(__EXCEPTIONS)
# define FMT_EXCEPTIONS 0
#elif FMT_MSC_VERSION && !_HAS_EXCEPTIONS
# define FMT_EXCEPTIONS 0
#else
# define FMT_EXCEPTIONS 1
#endif
#if FMT_EXCEPTIONS
# define FMT_TRY try
# define FMT_CATCH(x) catch (x)
#else
# define FMT_TRY if (true)
# define FMT_CATCH(x) if (false)
#endif
#if FMT_HAS_CPP17_ATTRIBUTE(fallthrough)
# define FMT_FALLTHROUGH [[fallthrough]]
#elif defined(__clang__)
# define FMT_FALLTHROUGH [[clang::fallthrough]]
#elif FMT_GCC_VERSION >= 700 && \
(!defined(__EDG_VERSION__) || __EDG_VERSION__ >= 520)
# define FMT_FALLTHROUGH [[gnu::fallthrough]]
#else
# define FMT_FALLTHROUGH
#endif
// Disable [[noreturn]] on MSVC/NVCC because of bogus unreachable code warnings.
#if FMT_HAS_CPP_ATTRIBUTE(noreturn) && !FMT_MSC_VERSION && !defined(__NVCC__)
# define FMT_NORETURN [[noreturn]]
#else
# define FMT_NORETURN
#endif
#ifndef FMT_NODISCARD
# if FMT_HAS_CPP17_ATTRIBUTE(nodiscard)
# define FMT_NODISCARD [[nodiscard]]
# else
# define FMT_NODISCARD
# endif
#endif
#ifdef FMT_DEPRECATED
// Use the provided definition.
#elif FMT_HAS_CPP14_ATTRIBUTE(deprecated)
# define FMT_DEPRECATED [[deprecated]]
#else
# define FMT_DEPRECATED /* deprecated */
#endif
#ifdef FMT_INLINE
// Use the provided definition.
#elif FMT_GCC_VERSION || FMT_CLANG_VERSION
# define FMT_ALWAYS_INLINE inline __attribute__((always_inline))
#else
# define FMT_ALWAYS_INLINE inline
#endif
// A version of FMT_INLINE to prevent code bloat in debug mode.
#ifdef NDEBUG
# define FMT_INLINE FMT_ALWAYS_INLINE
#else
# define FMT_INLINE inline
#endif
#if FMT_GCC_VERSION || FMT_CLANG_VERSION
# define FMT_VISIBILITY(value) __attribute__((visibility(value)))
#else
# define FMT_VISIBILITY(value)
#endif
#ifndef FMT_GCC_PRAGMA
// Workaround a _Pragma bug https://gcc.gnu.org/bugzilla/show_bug.cgi?id=59884
// and an nvhpc warning: https://github.com/fmtlib/fmt/pull/2582.
# if FMT_GCC_VERSION >= 504 && !defined(__NVCOMPILER)
# define FMT_GCC_PRAGMA(arg) _Pragma(arg)
# else
# define FMT_GCC_PRAGMA(arg)
# endif
#endif
// GCC < 5 requires this-> in decltype.
#if FMT_GCC_VERSION && FMT_GCC_VERSION < 500
# define FMT_DECLTYPE_THIS this->
#else
# define FMT_DECLTYPE_THIS
#endif
#if FMT_MSC_VERSION
# define FMT_MSC_WARNING(...) __pragma(warning(__VA_ARGS__))
# define FMT_UNCHECKED_ITERATOR(It) \
using _Unchecked_type = It // Mark iterator as checked.
#else
# define FMT_MSC_WARNING(...)
# define FMT_UNCHECKED_ITERATOR(It) using unchecked_type = It
#endif
#ifndef FMT_BEGIN_NAMESPACE
# define FMT_BEGIN_NAMESPACE \
namespace fmt { \
inline namespace v11 {
# define FMT_END_NAMESPACE \
} \
}
#endif
#ifndef FMT_EXPORT
# define FMT_EXPORT
# define FMT_BEGIN_EXPORT
# define FMT_END_EXPORT
#endif
#if !defined(FMT_HEADER_ONLY) && defined(_WIN32)
# if defined(FMT_LIB_EXPORT)
# define FMT_API __declspec(dllexport)
# elif defined(FMT_SHARED)
# define FMT_API __declspec(dllimport)
# endif
#elif defined(FMT_LIB_EXPORT) || defined(FMT_SHARED)
# define FMT_API FMT_VISIBILITY("default")
#endif
#ifndef FMT_API
# define FMT_API
#endif
#ifndef FMT_UNICODE
# define FMT_UNICODE 1
#endif
// Check if rtti is available.
#ifndef FMT_USE_RTTI
// __RTTI is for EDG compilers. _CPPRTTI is for MSVC.
# if defined(__GXX_RTTI) || FMT_HAS_FEATURE(cxx_rtti) || defined(_CPPRTTI) || \
defined(__INTEL_RTTI__) || defined(__RTTI)
# define FMT_USE_RTTI 1
# else
# define FMT_USE_RTTI 0
# endif
#endif
#define FMT_FWD(...) static_cast<decltype(__VA_ARGS__)&&>(__VA_ARGS__)
// Enable minimal optimizations for more compact code in debug mode.
FMT_GCC_PRAGMA("GCC push_options")
#if !defined(__OPTIMIZE__) && !defined(__CUDACC__)
FMT_GCC_PRAGMA("GCC optimize(\"Og\")")
#endif
FMT_BEGIN_NAMESPACE
// Implementations of enable_if_t and other metafunctions for older systems.
template <bool B, typename T = void>
using enable_if_t = typename std::enable_if<B, T>::type;
template <bool B, typename T, typename F>
using conditional_t = typename std::conditional<B, T, F>::type;
template <bool B> using bool_constant = std::integral_constant<bool, B>;
template <typename T>
using remove_reference_t = typename std::remove_reference<T>::type;
template <typename T>
using remove_const_t = typename std::remove_const<T>::type;
template <typename T>
using remove_cvref_t = typename std::remove_cv<remove_reference_t<T>>::type;
template <typename T> struct type_identity {
using type = T;
};
template <typename T> using type_identity_t = typename type_identity<T>::type;
template <typename T>
using make_unsigned_t = typename std::make_unsigned<T>::type;
template <typename T>
using underlying_t = typename std::underlying_type<T>::type;
#if FMT_GCC_VERSION && FMT_GCC_VERSION < 500
// A workaround for gcc 4.8 to make void_t work in a SFINAE context.
template <typename...> struct void_t_impl {
using type = void;
};
template <typename... T> using void_t = typename void_t_impl<T...>::type;
#else
template <typename...> using void_t = void;
#endif
struct monostate {
constexpr monostate() {}
};
// An enable_if helper to be used in template parameters which results in much
// shorter symbols: https://godbolt.org/z/sWw4vP. Extra parentheses are needed
// to workaround a bug in MSVC 2019 (see #1140 and #1186).
#ifdef FMT_DOC
# define FMT_ENABLE_IF(...)
#else
# define FMT_ENABLE_IF(...) fmt::enable_if_t<(__VA_ARGS__), int> = 0
#endif
// This is defined in base.h instead of format.h to avoid injecting in std.
// It is a template to avoid undesirable implicit conversions to std::byte.
#ifdef __cpp_lib_byte
template <typename T, FMT_ENABLE_IF(std::is_same<T, std::byte>::value)>
inline auto format_as(T b) -> unsigned char {
return static_cast<unsigned char>(b);
}
#endif
namespace detail {
// Suppresses "unused variable" warnings with the method described in
// https://herbsutter.com/2009/10/18/mailbag-shutting-up-compiler-warnings/.
// (void)var does not work on many Intel compilers.
template <typename... T> FMT_CONSTEXPR void ignore_unused(const T&...) {}
constexpr auto is_constant_evaluated(bool default_value = false) noexcept
-> bool {
// Workaround for incompatibility between libstdc++ consteval-based
// std::is_constant_evaluated() implementation and clang-14:
// https://github.com/fmtlib/fmt/issues/3247.
#if FMT_CPLUSPLUS >= 202002L && FMT_GLIBCXX_RELEASE >= 12 && \
(FMT_CLANG_VERSION >= 1400 && FMT_CLANG_VERSION < 1500)
ignore_unused(default_value);
return __builtin_is_constant_evaluated();
#elif defined(__cpp_lib_is_constant_evaluated)
ignore_unused(default_value);
return std::is_constant_evaluated();
#else
return default_value;
#endif
}
// Suppresses "conditional expression is constant" warnings.
template <typename T> constexpr auto const_check(T value) -> T { return value; }
FMT_NORETURN FMT_API void assert_fail(const char* file, int line,
const char* message);
#if defined(FMT_ASSERT)
// Use the provided definition.
#elif defined(NDEBUG)
// FMT_ASSERT is not empty to avoid -Wempty-body.
# define FMT_ASSERT(condition, message) \
fmt::detail::ignore_unused((condition), (message))
#else
# define FMT_ASSERT(condition, message) \
((condition) /* void() fails with -Winvalid-constexpr on clang 4.0.1 */ \
? (void)0 \
: fmt::detail::assert_fail(__FILE__, __LINE__, (message)))
#endif
#ifdef FMT_USE_INT128
// Do nothing.
#elif defined(__SIZEOF_INT128__) && !defined(__NVCC__) && \
!(FMT_CLANG_VERSION && FMT_MSC_VERSION)
# define FMT_USE_INT128 1
using int128_opt = __int128_t; // An optional native 128-bit integer.
using uint128_opt = __uint128_t;
template <typename T> inline auto convert_for_visit(T value) -> T {
return value;
}
#else
# define FMT_USE_INT128 0
#endif
#if !FMT_USE_INT128
enum class int128_opt {};
enum class uint128_opt {};
// Reduce template instantiations.
template <typename T> auto convert_for_visit(T) -> monostate { return {}; }
#endif
// Casts a nonnegative integer to unsigned.
template <typename Int>
FMT_CONSTEXPR auto to_unsigned(Int value) -> make_unsigned_t<Int> {
FMT_ASSERT(std::is_unsigned<Int>::value || value >= 0, "negative value");
return static_cast<make_unsigned_t<Int>>(value);
}
// A heuristic to detect std::string and std::[experimental::]string_view.
// It is mainly used to avoid dependency on <[experimental/]string_view>.
template <typename T, typename Enable = void>
struct is_std_string_like : std::false_type {};
template <typename T>
struct is_std_string_like<T, void_t<decltype(std::declval<T>().find_first_of(
typename T::value_type(), 0))>>
: std::is_convertible<decltype(std::declval<T>().data()),
const typename T::value_type*> {};
// Returns true iff the literal encoding is UTF-8.
constexpr auto is_utf8_enabled() -> bool {
// Avoid an MSVC sign extension bug: https://github.com/fmtlib/fmt/pull/2297.
using uchar = unsigned char;
return sizeof("\u00A7") == 3 && uchar("\u00A7"[0]) == 0xC2 &&
uchar("\u00A7"[1]) == 0xA7;
}
constexpr auto use_utf8() -> bool {
return !FMT_MSC_VERSION || is_utf8_enabled();
}
static_assert(!FMT_UNICODE || use_utf8(),
"Unicode support requires compiling with /utf-8");
template <typename Char> FMT_CONSTEXPR auto length(const Char* s) -> size_t {
size_t len = 0;
while (*s++) ++len;
return len;
}
template <typename Char>
FMT_CONSTEXPR auto compare(const Char* s1, const Char* s2, std::size_t n)
-> int {
if (!is_constant_evaluated() && sizeof(Char) == 1) return memcmp(s1, s2, n);
for (; n != 0; ++s1, ++s2, --n) {
if (*s1 < *s2) return -1;
if (*s1 > *s2) return 1;
}
return 0;
}
namespace adl {
using namespace std;
template <typename Container>
auto invoke_back_inserter()
-> decltype(back_inserter(std::declval<Container&>()));
} // namespace adl
template <typename It, typename Enable = std::true_type>
struct is_back_insert_iterator : std::false_type {};
template <typename It>
struct is_back_insert_iterator<
It, bool_constant<std::is_same<
decltype(adl::invoke_back_inserter<typename It::container_type>()),
It>::value>> : std::true_type {};
// Extracts a reference to the container from *insert_iterator.
template <typename OutputIt>
inline auto get_container(OutputIt it) -> typename OutputIt::container_type& {
struct accessor : OutputIt {
accessor(OutputIt base) : OutputIt(base) {}
using OutputIt::container;
};
return *accessor(it).container;
}
} // namespace detail
// Checks whether T is a container with contiguous storage.
template <typename T> struct is_contiguous : std::false_type {};
/**
* An implementation of `std::basic_string_view` for pre-C++17. It provides a
* subset of the API. `fmt::basic_string_view` is used for format strings even
* if `std::basic_string_view` is available to prevent issues when a library is
* compiled with a different `-std` option than the client code (which is not
* recommended).
*/
FMT_EXPORT
template <typename Char> class basic_string_view {
private:
const Char* data_;
size_t size_;
public:
using value_type = Char;
using iterator = const Char*;
constexpr basic_string_view() noexcept : data_(nullptr), size_(0) {}
/// Constructs a string reference object from a C string and a size.
constexpr basic_string_view(const Char* s, size_t count) noexcept
: data_(s), size_(count) {}
constexpr basic_string_view(std::nullptr_t) = delete;
/// Constructs a string reference object from a C string.
FMT_CONSTEXPR20
basic_string_view(const Char* s)
: data_(s),
size_(detail::const_check(std::is_same<Char, char>::value &&
!detail::is_constant_evaluated(false))
? strlen(reinterpret_cast<const char*>(s))
: detail::length(s)) {}
/// Constructs a string reference from a `std::basic_string` or a
/// `std::basic_string_view` object.
template <typename S,
FMT_ENABLE_IF(detail::is_std_string_like<S>::value&& std::is_same<
typename S::value_type, Char>::value)>
FMT_CONSTEXPR basic_string_view(const S& s) noexcept
: data_(s.data()), size_(s.size()) {}
/// Returns a pointer to the string data.
constexpr auto data() const noexcept -> const Char* { return data_; }
/// Returns the string size.
constexpr auto size() const noexcept -> size_t { return size_; }
constexpr auto begin() const noexcept -> iterator { return data_; }
constexpr auto end() const noexcept -> iterator { return data_ + size_; }
constexpr auto operator[](size_t pos) const noexcept -> const Char& {
return data_[pos];
}
FMT_CONSTEXPR void remove_prefix(size_t n) noexcept {
data_ += n;
size_ -= n;
}
FMT_CONSTEXPR auto starts_with(basic_string_view<Char> sv) const noexcept
-> bool {
return size_ >= sv.size_ && detail::compare(data_, sv.data_, sv.size_) == 0;
}
FMT_CONSTEXPR auto starts_with(Char c) const noexcept -> bool {
return size_ >= 1 && *data_ == c;
}
FMT_CONSTEXPR auto starts_with(const Char* s) const -> bool {
return starts_with(basic_string_view<Char>(s));
}
// Lexicographically compare this string reference to other.
FMT_CONSTEXPR auto compare(basic_string_view other) const -> int {
size_t str_size = size_ < other.size_ ? size_ : other.size_;
int result = detail::compare(data_, other.data_, str_size);
if (result == 0)
result = size_ == other.size_ ? 0 : (size_ < other.size_ ? -1 : 1);
return result;
}
FMT_CONSTEXPR friend auto operator==(basic_string_view lhs,
basic_string_view rhs) -> bool {
return lhs.compare(rhs) == 0;
}
friend auto operator!=(basic_string_view lhs, basic_string_view rhs) -> bool {
return lhs.compare(rhs) != 0;
}
friend auto operator<(basic_string_view lhs, basic_string_view rhs) -> bool {
return lhs.compare(rhs) < 0;
}
friend auto operator<=(basic_string_view lhs, basic_string_view rhs) -> bool {
return lhs.compare(rhs) <= 0;
}
friend auto operator>(basic_string_view lhs, basic_string_view rhs) -> bool {
return lhs.compare(rhs) > 0;
}
friend auto operator>=(basic_string_view lhs, basic_string_view rhs) -> bool {
return lhs.compare(rhs) >= 0;
}
};
FMT_EXPORT
using string_view = basic_string_view<char>;
/// Specifies if `T` is a character type. Can be specialized by users.
FMT_EXPORT
template <typename T> struct is_char : std::false_type {};
template <> struct is_char<char> : std::true_type {};
namespace detail {
// Constructs fmt::basic_string_view<Char> from types implicitly convertible
// to it, deducing Char. Explicitly convertible types such as the ones returned
// from FMT_STRING are intentionally excluded.
template <typename Char, FMT_ENABLE_IF(is_char<Char>::value)>
constexpr auto to_string_view(const Char* s) -> basic_string_view<Char> {
return s;
}
template <typename T, FMT_ENABLE_IF(is_std_string_like<T>::value)>
constexpr auto to_string_view(const T& s)
-> basic_string_view<typename T::value_type> {
return s;
}
template <typename Char>
constexpr auto to_string_view(basic_string_view<Char> s)
-> basic_string_view<Char> {
return s;
}
template <typename T, typename Enable = void>
struct has_to_string_view : std::false_type {};
// detail:: is intentional since to_string_view is not an extension point.
template <typename T>
struct has_to_string_view<
T, void_t<decltype(detail::to_string_view(std::declval<T>()))>>
: std::true_type {};
template <typename Char, Char... C> struct string_literal {
static constexpr Char value[sizeof...(C)] = {C...};
constexpr operator basic_string_view<Char>() const {
return {value, sizeof...(C)};
}
};
#if FMT_CPLUSPLUS < 201703L
template <typename Char, Char... C>
constexpr Char string_literal<Char, C...>::value[sizeof...(C)];
#endif
enum class type {
none_type,
// Integer types should go first,
int_type,
uint_type,
long_long_type,
ulong_long_type,
int128_type,
uint128_type,
bool_type,
char_type,
last_integer_type = char_type,
// followed by floating-point types.
float_type,
double_type,
long_double_type,
last_numeric_type = long_double_type,
cstring_type,
string_type,
pointer_type,
custom_type
};
// Maps core type T to the corresponding type enum constant.
template <typename T, typename Char>
struct type_constant : std::integral_constant<type, type::custom_type> {};
#define FMT_TYPE_CONSTANT(Type, constant) \
template <typename Char> \
struct type_constant<Type, Char> \
: std::integral_constant<type, type::constant> {}
FMT_TYPE_CONSTANT(int, int_type);
FMT_TYPE_CONSTANT(unsigned, uint_type);
FMT_TYPE_CONSTANT(long long, long_long_type);
FMT_TYPE_CONSTANT(unsigned long long, ulong_long_type);
FMT_TYPE_CONSTANT(int128_opt, int128_type);
FMT_TYPE_CONSTANT(uint128_opt, uint128_type);
FMT_TYPE_CONSTANT(bool, bool_type);
FMT_TYPE_CONSTANT(Char, char_type);
FMT_TYPE_CONSTANT(float, float_type);
FMT_TYPE_CONSTANT(double, double_type);
FMT_TYPE_CONSTANT(long double, long_double_type);
FMT_TYPE_CONSTANT(const Char*, cstring_type);
FMT_TYPE_CONSTANT(basic_string_view<Char>, string_type);
FMT_TYPE_CONSTANT(const void*, pointer_type);
constexpr auto is_integral_type(type t) -> bool {
return t > type::none_type && t <= type::last_integer_type;
}
constexpr auto is_arithmetic_type(type t) -> bool {
return t > type::none_type && t <= type::last_numeric_type;
}
constexpr auto set(type rhs) -> int { return 1 << static_cast<int>(rhs); }
constexpr auto in(type t, int set) -> bool {
return ((set >> static_cast<int>(t)) & 1) != 0;
}
// Bitsets of types.
enum {
sint_set =
set(type::int_type) | set(type::long_long_type) | set(type::int128_type),
uint_set = set(type::uint_type) | set(type::ulong_long_type) |
set(type::uint128_type),
bool_set = set(type::bool_type),
char_set = set(type::char_type),
float_set = set(type::float_type) | set(type::double_type) |
set(type::long_double_type),
string_set = set(type::string_type),
cstring_set = set(type::cstring_type),
pointer_set = set(type::pointer_type)
};
} // namespace detail
/// Reports a format error at compile time or, via a `format_error` exception,
/// at runtime.
// This function is intentionally not constexpr to give a compile-time error.
FMT_NORETURN FMT_API void report_error(const char* message);
FMT_DEPRECATED FMT_NORETURN inline void throw_format_error(
const char* message) {
report_error(message);
}
/// String's character (code unit) type.
template <typename S,
typename V = decltype(detail::to_string_view(std::declval<S>()))>
using char_t = typename V::value_type;
/**
* Parsing context consisting of a format string range being parsed and an
* argument counter for automatic indexing.
* You can use the `format_parse_context` type alias for `char` instead.
*/
FMT_EXPORT
template <typename Char> class basic_format_parse_context {
private:
basic_string_view<Char> format_str_;
int next_arg_id_;
FMT_CONSTEXPR void do_check_arg_id(int id);
public:
using char_type = Char;
using iterator = const Char*;
explicit constexpr basic_format_parse_context(
basic_string_view<Char> format_str, int next_arg_id = 0)
: format_str_(format_str), next_arg_id_(next_arg_id) {}
/// Returns an iterator to the beginning of the format string range being
/// parsed.
constexpr auto begin() const noexcept -> iterator {
return format_str_.begin();
}
/// Returns an iterator past the end of the format string range being parsed.
constexpr auto end() const noexcept -> iterator { return format_str_.end(); }
/// Advances the begin iterator to `it`.
FMT_CONSTEXPR void advance_to(iterator it) {
format_str_.remove_prefix(detail::to_unsigned(it - begin()));
}
/// Reports an error if using the manual argument indexing; otherwise returns
/// the next argument index and switches to the automatic indexing.
FMT_CONSTEXPR auto next_arg_id() -> int {
if (next_arg_id_ < 0) {
report_error("cannot switch from manual to automatic argument indexing");
return 0;
}
int id = next_arg_id_++;
do_check_arg_id(id);
return id;
}
/// Reports an error if using the automatic argument indexing; otherwise
/// switches to the manual indexing.
FMT_CONSTEXPR void check_arg_id(int id) {
if (next_arg_id_ > 0) {
report_error("cannot switch from automatic to manual argument indexing");
return;
}
next_arg_id_ = -1;
do_check_arg_id(id);
}
FMT_CONSTEXPR void check_arg_id(basic_string_view<Char>) {
next_arg_id_ = -1;
}
FMT_CONSTEXPR void check_dynamic_spec(int arg_id);
};
FMT_EXPORT
using format_parse_context = basic_format_parse_context<char>;
namespace detail {
// A parse context with extra data used only in compile-time checks.
template <typename Char>
class compile_parse_context : public basic_format_parse_context<Char> {
private:
int num_args_;
const type* types_;
using base = basic_format_parse_context<Char>;
public:
explicit FMT_CONSTEXPR compile_parse_context(
basic_string_view<Char> format_str, int num_args, const type* types,
int next_arg_id = 0)
: base(format_str, next_arg_id), num_args_(num_args), types_(types) {}
constexpr auto num_args() const -> int { return num_args_; }
constexpr auto arg_type(int id) const -> type { return types_[id]; }
FMT_CONSTEXPR auto next_arg_id() -> int {
int id = base::next_arg_id();
if (id >= num_args_) report_error("argument not found");
return id;
}
FMT_CONSTEXPR void check_arg_id(int id) {
base::check_arg_id(id);
if (id >= num_args_) report_error("argument not found");
}
using base::check_arg_id;
FMT_CONSTEXPR void check_dynamic_spec(int arg_id) {
detail::ignore_unused(arg_id);
if (arg_id < num_args_ && types_ && !is_integral_type(types_[arg_id]))
report_error("width/precision is not integer");
}
};
/// A contiguous memory buffer with an optional growing ability. It is an
/// internal class and shouldn't be used directly, only via `memory_buffer`.
template <typename T> class buffer {
private:
T* ptr_;
size_t size_;
size_t capacity_;
using grow_fun = void (*)(buffer& buf, size_t capacity);
grow_fun grow_;
protected:
// Don't initialize ptr_ since it is not accessed to save a few cycles.
FMT_MSC_WARNING(suppress : 26495)
FMT_CONSTEXPR20 buffer(grow_fun grow, size_t sz) noexcept
: size_(sz), capacity_(sz), grow_(grow) {}
constexpr buffer(grow_fun grow, T* p = nullptr, size_t sz = 0,
size_t cap = 0) noexcept
: ptr_(p), size_(sz), capacity_(cap), grow_(grow) {}
FMT_CONSTEXPR20 ~buffer() = default;
buffer(buffer&&) = default;
/// Sets the buffer data and capacity.
FMT_CONSTEXPR void set(T* buf_data, size_t buf_capacity) noexcept {
ptr_ = buf_data;
capacity_ = buf_capacity;
}
public:
using value_type = T;
using const_reference = const T&;
buffer(const buffer&) = delete;
void operator=(const buffer&) = delete;
auto begin() noexcept -> T* { return ptr_; }
auto end() noexcept -> T* { return ptr_ + size_; }
auto begin() const noexcept -> const T* { return ptr_; }
auto end() const noexcept -> const T* { return ptr_ + size_; }
/// Returns the size of this buffer.
constexpr auto size() const noexcept -> size_t { return size_; }
/// Returns the capacity of this buffer.
constexpr auto capacity() const noexcept -> size_t { return capacity_; }
/// Returns a pointer to the buffer data (not null-terminated).
FMT_CONSTEXPR auto data() noexcept -> T* { return ptr_; }
FMT_CONSTEXPR auto data() const noexcept -> const T* { return ptr_; }
/// Clears this buffer.
void clear() { size_ = 0; }
// Tries resizing the buffer to contain `count` elements. If T is a POD type
// the new elements may not be initialized.
FMT_CONSTEXPR void try_resize(size_t count) {
try_reserve(count);
size_ = count <= capacity_ ? count : capacity_;
}
// Tries increasing the buffer capacity to `new_capacity`. It can increase the
// capacity by a smaller amount than requested but guarantees there is space
// for at least one additional element either by increasing the capacity or by
// flushing the buffer if it is full.
FMT_CONSTEXPR void try_reserve(size_t new_capacity) {
if (new_capacity > capacity_) grow_(*this, new_capacity);
}
FMT_CONSTEXPR void push_back(const T& value) {
try_reserve(size_ + 1);
ptr_[size_++] = value;
}
/// Appends data to the end of the buffer.
template <typename U> void append(const U* begin, const U* end) {
while (begin != end) {
auto count = to_unsigned(end - begin);
try_reserve(size_ + count);
auto free_cap = capacity_ - size_;
if (free_cap < count) count = free_cap;
// A loop is faster than memcpy on small sizes.
T* out = ptr_ + size_;
for (size_t i = 0; i < count; ++i) out[i] = begin[i];
size_ += count;
begin += count;
}
}
template <typename Idx> FMT_CONSTEXPR auto operator[](Idx index) -> T& {
return ptr_[index];
}
template <typename Idx>
FMT_CONSTEXPR auto operator[](Idx index) const -> const T& {
return ptr_[index];
}
};
struct buffer_traits {
explicit buffer_traits(size_t) {}
auto count() const -> size_t { return 0; }
auto limit(size_t size) -> size_t { return size; }
};
class fixed_buffer_traits {
private:
size_t count_ = 0;
size_t limit_;
public:
explicit fixed_buffer_traits(size_t limit) : limit_(limit) {}
auto count() const -> size_t { return count_; }
auto limit(size_t size) -> size_t {
size_t n = limit_ > count_ ? limit_ - count_ : 0;
count_ += size;
return size < n ? size : n;
}
};
// A buffer that writes to an output iterator when flushed.
template <typename OutputIt, typename T, typename Traits = buffer_traits>
class iterator_buffer : public Traits, public buffer<T> {
private:
OutputIt out_;
enum { buffer_size = 256 };
T data_[buffer_size];
static FMT_CONSTEXPR void grow(buffer<T>& buf, size_t) {
if (buf.size() == buffer_size) static_cast<iterator_buffer&>(buf).flush();
}
void flush() {
auto size = this->size();
this->clear();
const T* begin = data_;
const T* end = begin + this->limit(size);
while (begin != end) *out_++ = *begin++;
}
public:
explicit iterator_buffer(OutputIt out, size_t n = buffer_size)
: Traits(n), buffer<T>(grow, data_, 0, buffer_size), out_(out) {}
iterator_buffer(iterator_buffer&& other) noexcept
: Traits(other),
buffer<T>(grow, data_, 0, buffer_size),
out_(other.out_) {}
~iterator_buffer() {
// Don't crash if flush fails during unwinding.