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/*
Formatting library for C++
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Copyright (c) 2012 - present, Victor Zverovich
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Permission is hereby granted, free of charge, to any person obtaining
a copy of this software and associated documentation files (the
"Software"), to deal in the Software without restriction, including
without limitation the rights to use, copy, modify, merge, publish,
distribute, sublicense, and/or sell copies of the Software, and to
permit persons to whom the Software is furnished to do so, subject to
the following conditions:
The above copyright notice and this permission notice shall be
included in all copies or substantial portions of the Software.
THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND,
EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND
NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS BE
LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION
OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION
WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE SOFTWARE.
--- Optional exception to the license ---
As an exception, if, as a result of your compiling your source code, portions
of this Software are embedded into a machine-executable object form of such
source code, you may redistribute such embedded portions in such object form
without including the above copyright and permission notices.
*/
#ifndef FMT_FORMAT_H_
#define FMT_FORMAT_H_
#include <cmath> // std::signbit
#include <cstdint> // uint32_t
#include <limits> // std::numeric_limits
#include <memory> // std::uninitialized_copy
#include <stdexcept> // std::runtime_error
#include <system_error> // std::system_error
#include <utility> // std::swap
#ifdef __cpp_lib_bit_cast
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# include <bit> // std::bitcast
#endif
#include "core.h"
#if FMT_GCC_VERSION
# define FMT_GCC_VISIBILITY_HIDDEN __attribute__((visibility("hidden")))
#else
# define FMT_GCC_VISIBILITY_HIDDEN
#endif
#ifdef __NVCC__
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# define FMT_CUDA_VERSION (__CUDACC_VER_MAJOR__ * 100 + __CUDACC_VER_MINOR__)
#else
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# define FMT_CUDA_VERSION 0
#endif
#ifdef __has_builtin
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# define FMT_HAS_BUILTIN(x) __has_builtin(x)
#else
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# define FMT_HAS_BUILTIN(x) 0
#endif
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#if FMT_GCC_VERSION || FMT_CLANG_VERSION
# define FMT_NOINLINE __attribute__((noinline))
#else
# define FMT_NOINLINE
#endif
#if FMT_MSC_VER
# define FMT_MSC_DEFAULT = default
#else
# define FMT_MSC_DEFAULT
#endif
#ifndef FMT_THROW
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# if FMT_EXCEPTIONS
# if FMT_MSC_VER || FMT_NVCC
FMT_BEGIN_NAMESPACE
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namespace detail {
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template <typename Exception> inline void do_throw(const Exception& x) {
// Silence unreachable code warnings in MSVC and NVCC because these
// are nearly impossible to fix in a generic code.
volatile bool b = true;
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if (b) throw x;
}
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} // namespace detail
FMT_END_NAMESPACE
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# define FMT_THROW(x) detail::do_throw(x)
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# else
# define FMT_THROW(x) throw x
# endif
# else
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# define FMT_THROW(x) \
do { \
FMT_ASSERT(false, (x).what()); \
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} while (false)
# endif
#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
#ifndef FMT_MAYBE_UNUSED
# if FMT_HAS_CPP17_ATTRIBUTE(maybe_unused)
# define FMT_MAYBE_UNUSED [[maybe_unused]]
# else
# define FMT_MAYBE_UNUSED
# endif
#endif
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// Workaround broken [[deprecated]] in the Intel, PGI and NVCC compilers.
#if FMT_ICC_VERSION || defined(__PGI) || FMT_NVCC
# define FMT_DEPRECATED_ALIAS
#else
# define FMT_DEPRECATED_ALIAS FMT_DEPRECATED
#endif
#ifndef FMT_USE_USER_DEFINED_LITERALS
// EDG based compilers (Intel, NVIDIA, Elbrus, etc), GCC and MSVC support UDLs.
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# if (FMT_HAS_FEATURE(cxx_user_literals) || FMT_GCC_VERSION >= 407 || \
FMT_MSC_VER >= 1900) && \
(!defined(__EDG_VERSION__) || __EDG_VERSION__ >= /* UDL feature */ 480)
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# define FMT_USE_USER_DEFINED_LITERALS 1
# else
# define FMT_USE_USER_DEFINED_LITERALS 0
# endif
#endif
Add FMT_REDUCE_INT_INSTANTIATIONS flag (#1781) * Remove <typename UInt> from int_writer Reduce code bloat by removing multiple instantiation of int_writer based on the <typename UInt> parameter. Rationale: - The only functions that gains a speedup by int size would be int_writer::on_dec()'s call to count_digits which uses CLZ. Thus to still take advantage of this speedup, we store the size of the int so we can use a switch statement to call the correct count_digits. - All other implementations of count_digits require some sort of looping that terminates when the value hits zero regardless of what sized int it is. Caveats: - There is a performance hit when dealing with and passing around 64-bit/128-bit values compared to 32-bit values on 32-bit platforms, and with 64-bit values on 64-bit systems. But this should not reduce the performance that dramatically. - There is also a performance hit for on_dec() due to the addition of a switch case. But, due to it size, this should reduce to a jump table. Resolves #1778 * Add FMT_USE_SMALLEST_INT flag When defined and set to zero, will use the largest available integer container for writing ints. The has the benefit of reducing instances the of int_writer class which will reduce the binary cost. * Rename flag to FMT_REDUCE_INT_INSTANTIATIONS Add comment above FMT_REDUCE_INT_INSTANTIATIONS definition describing why a developer would use it. * Move FMT_REDUCE_INT_INSTANTIATIONS to format.h Co-authored-by: Khalil Estell <kammce@google.com>
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// Defining FMT_REDUCE_INT_INSTANTIATIONS to 1, will reduce the number of
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// integer formatter template instantiations to just one by only using the
// largest integer type. This results in a reduction in binary size but will
// cause a decrease in integer formatting performance.
Add FMT_REDUCE_INT_INSTANTIATIONS flag (#1781) * Remove <typename UInt> from int_writer Reduce code bloat by removing multiple instantiation of int_writer based on the <typename UInt> parameter. Rationale: - The only functions that gains a speedup by int size would be int_writer::on_dec()'s call to count_digits which uses CLZ. Thus to still take advantage of this speedup, we store the size of the int so we can use a switch statement to call the correct count_digits. - All other implementations of count_digits require some sort of looping that terminates when the value hits zero regardless of what sized int it is. Caveats: - There is a performance hit when dealing with and passing around 64-bit/128-bit values compared to 32-bit values on 32-bit platforms, and with 64-bit values on 64-bit systems. But this should not reduce the performance that dramatically. - There is also a performance hit for on_dec() due to the addition of a switch case. But, due to it size, this should reduce to a jump table. Resolves #1778 * Add FMT_USE_SMALLEST_INT flag When defined and set to zero, will use the largest available integer container for writing ints. The has the benefit of reducing instances the of int_writer class which will reduce the binary cost. * Rename flag to FMT_REDUCE_INT_INSTANTIATIONS Add comment above FMT_REDUCE_INT_INSTANTIATIONS definition describing why a developer would use it. * Move FMT_REDUCE_INT_INSTANTIATIONS to format.h Co-authored-by: Khalil Estell <kammce@google.com>
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#if !defined(FMT_REDUCE_INT_INSTANTIATIONS)
# define FMT_REDUCE_INT_INSTANTIATIONS 0
#endif
// __builtin_clz is broken in clang with Microsoft CodeGen:
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// https://github.com/fmtlib/fmt/issues/519.
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#if !FMT_MSC_VER
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# if FMT_HAS_BUILTIN(__builtin_clz) || FMT_GCC_VERSION || FMT_ICC_VERSION
# define FMT_BUILTIN_CLZ(n) __builtin_clz(n)
# endif
# if FMT_HAS_BUILTIN(__builtin_clzll) || FMT_GCC_VERSION || FMT_ICC_VERSION
# define FMT_BUILTIN_CLZLL(n) __builtin_clzll(n)
# endif
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#endif
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// __builtin_ctz is broken in Intel Compiler Classic on Windows:
// https://github.com/fmtlib/fmt/issues/2510.
#ifndef __ICL
# if FMT_HAS_BUILTIN(__builtin_ctz) || FMT_GCC_VERSION || FMT_ICC_VERSION
# define FMT_BUILTIN_CTZ(n) __builtin_ctz(n)
# endif
# if FMT_HAS_BUILTIN(__builtin_ctzll) || FMT_GCC_VERSION || FMT_ICC_VERSION
# define FMT_BUILTIN_CTZLL(n) __builtin_ctzll(n)
# endif
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#endif
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#if FMT_MSC_VER
# include <intrin.h> // _BitScanReverse[64], _BitScanForward[64], _umul128
#endif
// Some compilers masquerade as both MSVC and GCC-likes or otherwise support
// __builtin_clz and __builtin_clzll, so only define FMT_BUILTIN_CLZ using the
// MSVC intrinsics if the clz and clzll builtins are not available.
#if FMT_MSC_VER && !defined(FMT_BUILTIN_CLZLL) && !defined(FMT_BUILTIN_CTZLL)
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FMT_BEGIN_NAMESPACE
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namespace detail {
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// Avoid Clang with Microsoft CodeGen's -Wunknown-pragmas warning.
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# if !defined(__clang__)
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# pragma intrinsic(_BitScanForward)
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# pragma intrinsic(_BitScanReverse)
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# if defined(_WIN64)
# pragma intrinsic(_BitScanForward64)
# pragma intrinsic(_BitScanReverse64)
# endif
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# endif
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inline auto clz(uint32_t x) -> int {
unsigned long r = 0;
_BitScanReverse(&r, x);
FMT_ASSERT(x != 0, "");
// Static analysis complains about using uninitialized data
// "r", but the only way that can happen is if "x" is 0,
// which the callers guarantee to not happen.
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FMT_MSC_WARNING(suppress : 6102)
return 31 ^ static_cast<int>(r);
}
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# define FMT_BUILTIN_CLZ(n) detail::clz(n)
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inline auto clzll(uint64_t x) -> int {
unsigned long r = 0;
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# ifdef _WIN64
_BitScanReverse64(&r, x);
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# else
// Scan the high 32 bits.
if (_BitScanReverse(&r, static_cast<uint32_t>(x >> 32))) return 63 ^ (r + 32);
// Scan the low 32 bits.
_BitScanReverse(&r, static_cast<uint32_t>(x));
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# endif
FMT_ASSERT(x != 0, "");
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FMT_MSC_WARNING(suppress : 6102) // Suppress a bogus static analysis warning.
return 63 ^ static_cast<int>(r);
}
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# define FMT_BUILTIN_CLZLL(n) detail::clzll(n)
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inline auto ctz(uint32_t x) -> int {
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unsigned long r = 0;
_BitScanForward(&r, x);
FMT_ASSERT(x != 0, "");
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FMT_MSC_WARNING(suppress : 6102) // Suppress a bogus static analysis warning.
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return static_cast<int>(r);
}
# define FMT_BUILTIN_CTZ(n) detail::ctz(n)
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inline auto ctzll(uint64_t x) -> int {
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unsigned long r = 0;
FMT_ASSERT(x != 0, "");
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FMT_MSC_WARNING(suppress : 6102) // Suppress a bogus static analysis warning.
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# ifdef _WIN64
_BitScanForward64(&r, x);
# else
// Scan the low 32 bits.
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if (_BitScanForward(&r, static_cast<uint32_t>(x))) return static_cast<int>(r);
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// Scan the high 32 bits.
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_BitScanForward(&r, static_cast<uint32_t>(x >> 32));
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r += 32;
# endif
return static_cast<int>(r);
}
# define FMT_BUILTIN_CTZLL(n) detail::ctzll(n)
} // namespace detail
FMT_END_NAMESPACE
#endif
#ifdef FMT_HEADER_ONLY
# define FMT_HEADER_ONLY_CONSTEXPR20 FMT_CONSTEXPR20
#else
# define FMT_HEADER_ONLY_CONSTEXPR20
#endif
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FMT_BEGIN_NAMESPACE
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namespace detail {
template <typename Streambuf> class formatbuf : public Streambuf {
private:
using char_type = typename Streambuf::char_type;
using streamsize = decltype(std::declval<Streambuf>().sputn(nullptr, 0));
using int_type = typename Streambuf::int_type;
using traits_type = typename Streambuf::traits_type;
buffer<char_type>& buffer_;
public:
explicit formatbuf(buffer<char_type>& buf) : buffer_(buf) {}
protected:
// The put area is always empty. This makes the implementation simpler and has
// the advantage that the streambuf and the buffer are always in sync and
// sputc never writes into uninitialized memory. A disadvantage is that each
// call to sputc always results in a (virtual) call to overflow. There is no
// disadvantage here for sputn since this always results in a call to xsputn.
auto overflow(int_type ch) -> int_type override {
if (!traits_type::eq_int_type(ch, traits_type::eof()))
buffer_.push_back(static_cast<char_type>(ch));
return ch;
}
auto xsputn(const char_type* s, streamsize count) -> streamsize override {
buffer_.append(s, s + count);
return count;
}
};
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// Implementation of std::bit_cast for pre-C++20.
template <typename To, typename From>
FMT_CONSTEXPR20 auto bit_cast(const From& from) -> To {
static_assert(sizeof(To) == sizeof(From), "size mismatch");
#ifdef __cpp_lib_bit_cast
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if (is_constant_evaluated()) return std::bit_cast<To>(from);
#endif
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auto to = To();
std::memcpy(&to, &from, sizeof(to));
return to;
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}
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inline auto is_big_endian() -> bool {
#ifdef _WIN32
return false;
#elif defined(__BIG_ENDIAN__)
return true;
#elif defined(__BYTE_ORDER__) && defined(__ORDER_BIG_ENDIAN__)
return __BYTE_ORDER__ == __ORDER_BIG_ENDIAN__;
#else
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struct bytes {
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char data[sizeof(int)];
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};
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return bit_cast<bytes>(1).data[0] == 0;
#endif
}
// A fallback implementation of uintptr_t for systems that lack it.
struct fallback_uintptr {
unsigned char value[sizeof(void*)];
fallback_uintptr() = default;
explicit fallback_uintptr(const void* p) {
*this = bit_cast<fallback_uintptr>(p);
if (const_check(is_big_endian())) {
for (size_t i = 0, j = sizeof(void*) - 1; i < j; ++i, --j)
std::swap(value[i], value[j]);
}
}
};
#ifdef UINTPTR_MAX
using uintptr_t = ::uintptr_t;
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inline auto to_uintptr(const void* p) -> uintptr_t {
return bit_cast<uintptr_t>(p);
}
#else
using uintptr_t = fallback_uintptr;
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inline auto to_uintptr(const void* p) -> fallback_uintptr {
return fallback_uintptr(p);
}
#endif
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// Returns the largest possible value for type T. Same as
// std::numeric_limits<T>::max() but shorter and not affected by the max macro.
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template <typename T> constexpr auto max_value() -> T {
return (std::numeric_limits<T>::max)();
}
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template <typename T> constexpr auto num_bits() -> int {
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return std::numeric_limits<T>::digits;
}
// std::numeric_limits<T>::digits may return 0 for 128-bit ints.
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template <> constexpr auto num_bits<int128_t>() -> int { return 128; }
template <> constexpr auto num_bits<uint128_t>() -> int { return 128; }
template <> constexpr auto num_bits<fallback_uintptr>() -> int {
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return static_cast<int>(sizeof(void*) *
std::numeric_limits<unsigned char>::digits);
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}
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FMT_INLINE void assume(bool condition) {
(void)condition;
#if FMT_HAS_BUILTIN(__builtin_assume)
__builtin_assume(condition);
#endif
}
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// An approximation of iterator_t for pre-C++20 systems.
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template <typename T>
using iterator_t = decltype(std::begin(std::declval<T&>()));
template <typename T> using sentinel_t = decltype(std::end(std::declval<T&>()));
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// A workaround for std::string not having mutable data() until C++17.
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template <typename Char>
inline auto get_data(std::basic_string<Char>& s) -> Char* {
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return &s[0];
}
template <typename Container>
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inline auto get_data(Container& c) -> typename Container::value_type* {
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return c.data();
}
#if defined(_SECURE_SCL) && _SECURE_SCL
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// Make a checked iterator to avoid MSVC warnings.
template <typename T> using checked_ptr = stdext::checked_array_iterator<T*>;
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template <typename T>
constexpr auto make_checked(T* p, size_t size) -> checked_ptr<T> {
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return {p, size};
}
#else
template <typename T> using checked_ptr = T*;
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template <typename T> constexpr auto make_checked(T* p, size_t) -> T* {
return p;
}
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#endif
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// Attempts to reserve space for n extra characters in the output range.
// Returns a pointer to the reserved range or a reference to it.
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template <typename Container, FMT_ENABLE_IF(is_contiguous<Container>::value)>
#if FMT_CLANG_VERSION >= 307 && !FMT_ICC_VERSION
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__attribute__((no_sanitize("undefined")))
#endif
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inline auto
reserve(std::back_insert_iterator<Container> it, size_t n)
-> checked_ptr<typename Container::value_type> {
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Container& c = get_container(it);
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size_t size = c.size();
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c.resize(size + n);
return make_checked(get_data(c) + size, n);
}
template <typename T>
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inline auto reserve(buffer_appender<T> it, size_t n) -> buffer_appender<T> {
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buffer<T>& buf = get_container(it);
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buf.try_reserve(buf.size() + n);
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return it;
}
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template <typename Iterator>
constexpr auto reserve(Iterator& it, size_t) -> Iterator& {
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return it;
}
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template <typename OutputIt>
using reserve_iterator =
remove_reference_t<decltype(reserve(std::declval<OutputIt&>(), 0))>;
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template <typename T, typename OutputIt>
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constexpr auto to_pointer(OutputIt, size_t) -> T* {
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return nullptr;
}
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template <typename T> auto to_pointer(buffer_appender<T> it, size_t n) -> T* {
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buffer<T>& buf = get_container(it);
auto size = buf.size();
if (buf.capacity() < size + n) return nullptr;
buf.try_resize(size + n);
return buf.data() + size;
}
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template <typename Container, FMT_ENABLE_IF(is_contiguous<Container>::value)>
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inline auto base_iterator(std::back_insert_iterator<Container>& it,
checked_ptr<typename Container::value_type>)
-> std::back_insert_iterator<Container> {
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return it;
}
template <typename Iterator>
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constexpr auto base_iterator(Iterator, Iterator it) -> Iterator {
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return it;
}
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// <algorithm> is spectacularly slow to compile in C++20 so use a simple fill_n
// instead (#1998).
template <typename OutputIt, typename Size, typename T>
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FMT_CONSTEXPR auto fill_n(OutputIt out, Size count, const T& value)
-> OutputIt {
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for (Size i = 0; i < count; ++i) *out++ = value;
return out;
}
template <typename T, typename Size>
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FMT_CONSTEXPR20 auto fill_n(T* out, Size count, char value) -> T* {
if (is_constant_evaluated()) {
return fill_n<T*, Size, T>(out, count, value);
}
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std::memset(out, value, to_unsigned(count));
return out + count;
}
#ifdef __cpp_char8_t
using char8_type = char8_t;
#else
enum char8_type : unsigned char {};
#endif
template <typename OutChar, typename InputIt, typename OutputIt>
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FMT_CONSTEXPR FMT_NOINLINE auto copy_str_noinline(InputIt begin, InputIt end,
OutputIt out) -> OutputIt {
return copy_str<OutChar>(begin, end, out);
}
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// A public domain branchless UTF-8 decoder by Christopher Wellons:
// https://github.com/skeeto/branchless-utf8
/* Decode the next character, c, from s, reporting errors in e.
*
* Since this is a branchless decoder, four bytes will be read from the
* buffer regardless of the actual length of the next character. This
* means the buffer _must_ have at least three bytes of zero padding
* following the end of the data stream.
*
* Errors are reported in e, which will be non-zero if the parsed
* character was somehow invalid: invalid byte sequence, non-canonical
* encoding, or a surrogate half.
*
* The function returns a pointer to the next character. When an error
* occurs, this pointer will be a guess that depends on the particular
* error, but it will always advance at least one byte.
*/
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FMT_CONSTEXPR inline auto utf8_decode(const char* s, uint32_t* c, int* e)
-> const char* {
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constexpr const int masks[] = {0x00, 0x7f, 0x1f, 0x0f, 0x07};
constexpr const uint32_t mins[] = {4194304, 0, 128, 2048, 65536};
constexpr const int shiftc[] = {0, 18, 12, 6, 0};
constexpr const int shifte[] = {0, 6, 4, 2, 0};
int len = code_point_length(s);
const char* next = s + len;
// Assume a four-byte character and load four bytes. Unused bits are
// shifted out.
*c = uint32_t(s[0] & masks[len]) << 18;
*c |= uint32_t(s[1] & 0x3f) << 12;
*c |= uint32_t(s[2] & 0x3f) << 6;
*c |= uint32_t(s[3] & 0x3f) << 0;
*c >>= shiftc[len];
// Accumulate the various error conditions.
using uchar = unsigned char;
*e = (*c < mins[len]) << 6; // non-canonical encoding
*e |= ((*c >> 11) == 0x1b) << 7; // surrogate half?
*e |= (*c > 0x10FFFF) << 8; // out of range?
*e |= (uchar(s[1]) & 0xc0) >> 2;
*e |= (uchar(s[2]) & 0xc0) >> 4;
*e |= uchar(s[3]) >> 6;
*e ^= 0x2a; // top two bits of each tail byte correct?
*e >>= shifte[len];
return next;
}
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constexpr uint32_t invalid_code_point = ~uint32_t();
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// Invokes f(cp, sv) for every code point cp in s with sv being the string view
// corresponding to the code point. cp is invalid_code_point on error.
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template <typename F>
FMT_CONSTEXPR void for_each_codepoint(string_view s, F f) {
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auto decode = [f](const char* buf_ptr, const char* ptr) {
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auto cp = uint32_t();
auto error = 0;
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auto end = utf8_decode(buf_ptr, &cp, &error);
bool result = f(error ? invalid_code_point : cp,
string_view(ptr, to_unsigned(end - buf_ptr)));
return result ? end : nullptr;
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};
auto p = s.data();
const size_t block_size = 4; // utf8_decode always reads blocks of 4 chars.
if (s.size() >= block_size) {
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for (auto end = p + s.size() - block_size + 1; p < end;) {
p = decode(p, p);
if (!p) return;
}
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}
if (auto num_chars_left = s.data() + s.size() - p) {
char buf[2 * block_size - 1] = {};
copy_str<char>(p, p + num_chars_left, buf);
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const char* buf_ptr = buf;
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do {
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auto end = decode(buf_ptr, p);
if (!end) return;
p += end - buf_ptr;
buf_ptr = end;
} while (buf_ptr - buf < num_chars_left);
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}
}
template <typename Char>
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inline auto compute_width(basic_string_view<Char> s) -> size_t {
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return s.size();
}
// Computes approximate display width of a UTF-8 string.
FMT_CONSTEXPR inline size_t compute_width(string_view s) {
size_t num_code_points = 0;
// It is not a lambda for compatibility with C++14.
struct count_code_points {
size_t* count;
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FMT_CONSTEXPR auto operator()(uint32_t cp, string_view) const -> bool {
*count += detail::to_unsigned(
1 +
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(cp >= 0x1100 &&
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(cp <= 0x115f || // Hangul Jamo init. consonants
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cp == 0x2329 || // LEFT-POINTING ANGLE BRACKET
cp == 0x232a || // RIGHT-POINTING ANGLE BRACKET
// CJK ... Yi except IDEOGRAPHIC HALF FILL SPACE:
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(cp >= 0x2e80 && cp <= 0xa4cf && cp != 0x303f) ||
(cp >= 0xac00 && cp <= 0xd7a3) || // Hangul Syllables
(cp >= 0xf900 && cp <= 0xfaff) || // CJK Compatibility Ideographs
(cp >= 0xfe10 && cp <= 0xfe19) || // Vertical Forms
(cp >= 0xfe30 && cp <= 0xfe6f) || // CJK Compatibility Forms
(cp >= 0xff00 && cp <= 0xff60) || // Fullwidth Forms
(cp >= 0xffe0 && cp <= 0xffe6) || // Fullwidth Forms
(cp >= 0x20000 && cp <= 0x2fffd) || // CJK
(cp >= 0x30000 && cp <= 0x3fffd) ||
// Miscellaneous Symbols and Pictographs + Emoticons:
(cp >= 0x1f300 && cp <= 0x1f64f) ||
// Supplemental Symbols and Pictographs:
(cp >= 0x1f900 && cp <= 0x1f9ff))));
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return true;
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}
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};
for_each_codepoint(s, count_code_points{&num_code_points});
return num_code_points;
}
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inline auto compute_width(basic_string_view<char8_type> s) -> size_t {
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return compute_width(basic_string_view<char>(
reinterpret_cast<const char*>(s.data()), s.size()));
}
template <typename Char>
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inline auto code_point_index(basic_string_view<Char> s, size_t n) -> size_t {
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size_t size = s.size();
return n < size ? n : size;
}
// Calculates the index of the nth code point in a UTF-8 string.
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inline auto code_point_index(basic_string_view<char8_type> s, size_t n)
-> size_t {
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const char8_type* data = s.data();
size_t num_code_points = 0;
for (size_t i = 0, size = s.size(); i != size; ++i) {
if ((data[i] & 0xc0) != 0x80 && ++num_code_points > n) return i;
}
return s.size();
}
template <typename T, bool = std::is_floating_point<T>::value>
struct is_fast_float : bool_constant<std::numeric_limits<T>::is_iec559 &&
sizeof(T) <= sizeof(double)> {};
template <typename T> struct is_fast_float<T, false> : std::false_type {};
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#ifndef FMT_USE_FULL_CACHE_DRAGONBOX
# define FMT_USE_FULL_CACHE_DRAGONBOX 0
#endif
template <typename T>
template <typename U>
void buffer<T>::append(const U* begin, const U* end) {
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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;
std::uninitialized_copy_n(begin, count, make_checked(ptr_ + size_, count));
size_ += count;
begin += count;
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}
}
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template <typename T, typename Enable = void>
struct is_locale : std::false_type {};
template <typename T>
struct is_locale<T, void_t<decltype(T::classic())>> : std::true_type {};
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} // namespace detail
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FMT_MODULE_EXPORT_BEGIN
// The number of characters to store in the basic_memory_buffer object itself
// to avoid dynamic memory allocation.
enum { inline_buffer_size = 500 };
/**
\rst
A dynamically growing memory buffer for trivially copyable/constructible types
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with the first ``SIZE`` elements stored in the object itself.
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You can use the ``memory_buffer`` type alias for ``char`` instead.
**Example**::
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auto out = fmt::memory_buffer();
format_to(std::back_inserter(out), "The answer is {}.", 42);
This will append the following output to the ``out`` object:
.. code-block:: none
The answer is 42.
The output can be converted to an ``std::string`` with ``to_string(out)``.
\endrst
*/
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template <typename T, size_t SIZE = inline_buffer_size,
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typename Allocator = std::allocator<T>>
class basic_memory_buffer final : public detail::buffer<T> {
private:
T store_[SIZE];
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// Don't inherit from Allocator avoid generating type_info for it.
Allocator alloc_;
// Deallocate memory allocated by the buffer.
FMT_CONSTEXPR20 void deallocate() {
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T* data = this->data();
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if (data != store_) alloc_.deallocate(data, this->capacity());
}
protected:
FMT_CONSTEXPR20 void grow(size_t size) override;
public:
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using value_type = T;
using const_reference = const T&;
FMT_CONSTEXPR20 explicit basic_memory_buffer(
const Allocator& alloc = Allocator())
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: alloc_(alloc) {
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this->set(store_, SIZE);
if (detail::is_constant_evaluated()) {
detail::fill_n(store_, SIZE, T{});
}
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}
FMT_CONSTEXPR20 ~basic_memory_buffer() { deallocate(); }
private:
// Move data from other to this buffer.
FMT_CONSTEXPR20 void move(basic_memory_buffer& other) {
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alloc_ = std::move(other.alloc_);
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T* data = other.data();
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size_t size = other.size(), capacity = other.capacity();
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if (data == other.store_) {
this->set(store_, capacity);
if (detail::is_constant_evaluated()) {
detail::copy_str<T>(other.store_, other.store_ + size,
detail::make_checked(store_, capacity));
} else {
std::uninitialized_copy(other.store_, other.store_ + size,
detail::make_checked(store_, capacity));
}
} else {
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this->set(data, capacity);
// Set pointer to the inline array so that delete is not called
// when deallocating.
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other.set(other.store_, 0);
}
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this->resize(size);
}
public:
/**
\rst
Constructs a :class:`fmt::basic_memory_buffer` object moving the content
of the other object to it.
\endrst
*/
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FMT_CONSTEXPR20 basic_memory_buffer(basic_memory_buffer&& other) noexcept {
move(other);
}
/**
\rst
Moves the content of the other ``basic_memory_buffer`` object to this one.
\endrst
*/
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auto operator=(basic_memory_buffer&& other) noexcept -> basic_memory_buffer& {
FMT_ASSERT(this != &other, "");
deallocate();
move(other);
return *this;
}
// Returns a copy of the allocator associated with this buffer.
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auto get_allocator() const -> Allocator { return alloc_; }
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/**
Resizes the buffer to contain *count* elements. If T is a POD type new
elements may not be initialized.
*/
FMT_CONSTEXPR20 void resize(size_t count) { this->try_resize(count); }
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/** Increases the buffer capacity to *new_capacity*. */
void reserve(size_t new_capacity) { this->try_reserve(new_capacity); }
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// Directly append data into the buffer
using detail::buffer<T>::append;
template <typename ContiguousRange>
void append(const ContiguousRange& range) {
append(range.data(), range.data() + range.size());
}
};
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template <typename T, size_t SIZE, typename Allocator>
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FMT_CONSTEXPR20 void basic_memory_buffer<T, SIZE, Allocator>::grow(
size_t size) {
#ifdef FMT_FUZZ
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if (size > 5000) throw std::runtime_error("fuzz mode - won't grow that much");
add oss-fuzz support see https://github.com/google/oss-fuzz/pull/2381 the history of the fuzz branch is long and messy and is difficult to rebase on top of the current master. Squashed commit of the following: commit b9d6db50010e185d0af2590a35472e9334102248 Author: Paul Dreik <github@pauldreik.se> Date: Sat Jun 29 21:50:34 2019 +0200 update exception with a more accurate description commit f3fbaf60cc80c7f57fa95962dc0069b10c3d3e61 Author: Paul Dreik <github@pauldreik.se> Date: Sat Jun 29 21:34:55 2019 +0200 fix missing flags in reproduce build commit 40a17bec7a1ad724203577842a254ca9c42da388 Author: Paul Dreik <github@pauldreik.se> Date: Sat Jun 29 21:22:48 2019 +0200 move check for large precision values closer to where needed commit ef6e23e1f52d639c5aec1a1e713157cec380a8c3 Author: Paul Dreik <github@pauldreik.se> Date: Fri Jun 28 20:55:34 2019 +0200 simplify the fuzzer build script commit eadee6e0557be6df695e80f0f2717046a29846e0 Author: Paul Dreik <github@pauldreik.se> Date: Fri Jun 28 20:47:54 2019 +0200 minimize source code pollution commit 1ece6416438f199c164ee9aa89f42ad1f21a4985 Merge: f404079b 037b84f2 Author: Paul Dreik <github@pauldreik.se> Date: Fri Jun 28 20:22:52 2019 +0200 Merge remote-tracking branch 'upstream/master' into fuzz # Conflicts: # CMakeLists.txt commit f404079b4e00e51b0d5a4c9218cbe7afb350b777 Author: Paul Dreik <github@pauldreik.se> Date: Fri Jun 28 20:20:52 2019 +0200 make named_arg write into a string or a memory_buffer this makes the fuzzer consistent with the others. commit 545dbe136817eef9e734c32991a324874a51bb4a Author: Paul Dreik <github@pauldreik.se> Date: Thu Jun 20 06:34:17 2019 +0200 tidy up extra newlines, missing std:: etc. commit 2d816ef2b13fc2a46c0df76a91f7912bd7196087 Author: Paul Dreik <github@pauldreik.se> Date: Mon Jun 17 20:49:08 2019 +0200 update unit test to handle expected result following review comment commit a5b9a26808d0165acd2edc4c3baabf9bff40d8bd Author: Paul Dreik <github@pauldreik.se> Date: Mon Jun 17 20:40:06 2019 +0200 update build script to reflect changes after review commit 8411cb78984f76c74bca273c0bb18918e084e711 Author: Paul Dreik <github@pauldreik.se> Date: Mon Jun 17 20:39:39 2019 +0200 review comment: clarify what the .gitignore is for commit 18d9e7bb43d98568fe491e076106e4fa29070b33 Author: Paul Dreik <github@pauldreik.se> Date: Mon Jun 17 20:36:56 2019 +0200 review comment: don't touch root .gitignore commit 7683d7faa116a6e261da824ec6c1a6a75689841b Author: Paul Dreik <github@pauldreik.se> Date: Mon Jun 17 20:35:40 2019 +0200 review comment: condiionally include main.cpp commit be0bdaeb27b0c1914cc0b0fd85c2b3bcc6fd2245 Author: Paul Dreik <github@pauldreik.se> Date: Mon Jun 17 20:31:28 2019 +0200 review comment: drop commented out code not working on travis commit 013429812d7fb745eec146296623ea245c4848b4 Author: Paul Dreik <github@pauldreik.se> Date: Mon Jun 17 20:30:26 2019 +0200 review comment: renumber case labels the old ones were to be able to reuse the corpus, let's drop it commit f66fe7bead4a71978f21d9e47a8f3f9e4935fccd Author: Paul Dreik <github@pauldreik.se> Date: Mon Jun 17 20:06:47 2019 +0200 review comment: libfmt->fmt commit 4a4ddb654dd5b90646cd7e6ff45318c17b66dc9f Author: Paul Dreik <github@pauldreik.se> Date: Mon Jun 17 20:05:32 2019 +0200 reuse fmt_safe_duration_cast commit 0a1679411a8bd77c2ff34e1cd572307c92e12040 Author: Paul Dreik <github@pauldreik.se> Date: Mon Jun 17 20:02:48 2019 +0200 review comment: name convention, better name C was for "chrono duration" commit 63084cac00b798c636e0dc13207df46a5c4539f6 Author: Paul Dreik <github@pauldreik.se> Date: Mon Jun 17 20:00:50 2019 +0200 reuse earlier extract fmt_safe_... function commit b23388d4d7f919163ead9a9e9bdd50d14daf80b7 Author: Paul Dreik <github@pauldreik.se> Date: Mon Jun 17 19:58:55 2019 +0200 review comment: don't output inf.inf commit 6f861f1d89d2127bbe2446d176d59a354665cc15 Author: Paul Dreik <github@pauldreik.se> Date: Mon Jun 17 19:57:00 2019 +0200 review comment: extract function for invoking safe_duration_cast commit df19bc87ccff77d4bedf54fa3d3992f78ef699bd Author: Paul Dreik <github@pauldreik.se> Date: Mon Jun 17 19:47:30 2019 +0200 review comment: leftover garbage commit 84eea802efb1164c4f2a83b2e480a7c5bdf4e921 Author: Paul Dreik <github@pauldreik.se> Date: Mon Jun 17 19:45:22 2019 +0200 review comment: turn cmake option into macro for SAFE_DURATION_CAST decided to have it on by default commit c3a159498c2544a52662cd03d23d5a1d00537bba Author: Paul Dreik <github@pauldreik.se> Date: Mon Jun 17 19:40:14 2019 +0200 review comment: extra newline commit aa556875c5161d817c347ff984dad171c7a35df9 Author: Paul Dreik <github@pauldreik.se> Date: Mon Jun 17 19:38:49 2019 +0200 review comment: file name convention commit 4102d82c455324bda4ccd64072eab86b3f0ecebf Merge: 28add37d 4912cff6 Author: Paul Dreik <github@pauldreik.se> Date: Mon Jun 17 16:29:29 2019 +0200 Merge remote-tracking branch 'upstream/master' into fuzz commit 28add37df3944cbaa00f614e8063210a6d83c17c Author: Paul Dreik <github@pauldreik.se> Date: Fri Jun 14 21:44:06 2019 +0200 disable check to pass travis commit 4119378aedfd3e4063058e8f1f03c29d9f44d5e8 Author: Paul Dreik <github@pauldreik.se> Date: Fri Jun 14 21:32:39 2019 +0200 add missing include commit ba2efb82f20d6ecb5e49a8c6ced96a7febedc175 Author: Paul Dreik <github@pauldreik.se> Date: Fri Jun 14 21:04:41 2019 +0200 try working around build issue on travis commit 380671a2cb6e52f2b7d5eaad409d491baba5b7e6 Author: Paul Dreik <github@pauldreik.se> Date: Fri Jun 14 20:22:41 2019 +0200 write positive infinity without sign commit fd72b9adace17e00c46aae24e061bf14c3af6bb1 Author: Paul Dreik <github@pauldreik.se> Date: Fri Jun 14 20:20:50 2019 +0200 remove leftover from merge commit 1ae3128be2c53914e4c840d12e1b02c59758c378 Author: Paul Dreik <github@pauldreik.se> Date: Fri Jun 14 20:14:45 2019 +0200 format to buffer instead of string commit 1d83a561244c2fe81231d17e911c6eb24c87cac4 Author: Paul Dreik <github@pauldreik.se> Date: Fri Jun 14 19:50:19 2019 +0200 fix warnings commit a33b45a7bb5cf70eb3ef1cd95908282621195f1f Author: Paul Dreik <github@pauldreik.se> Date: Fri Jun 14 19:43:46 2019 +0200 refactor and fix warnings commit 02afb12dd5b05804a1a8b55e1b9fb7e3de593e84 Author: Paul Dreik <github@pauldreik.se> Date: Fri Jun 14 19:17:27 2019 +0200 use fixed size input commit 35f84c8cf20efb18a137efecd10dcdc6bcebf7b5 Author: Paul Dreik <github@pauldreik.se> Date: Fri Jun 14 19:07:43 2019 +0200 factor out main into a separate file commit a23b7a198ba739dd813897901855c98441e6f29b Author: Paul Dreik <github@pauldreik.se> Date: Fri Jun 14 18:56:40 2019 +0200 refactor commit 9a3f4cfb3bc32a304a1a49b8ff24fbc2f924266c Merge: 7842582a 12f46838 Author: Paul Dreik <github@pauldreik.se> Date: Fri Jun 14 18:20:03 2019 +0200 Merge remote-tracking branch 'upstream/master' into fuzz # Conflicts: # include/fmt/chrono.h commit 7842582a0089c24a5d44bbb2d156beb732bb7b58 Merge: 90cab5aa cbbee1b3 Author: Paul Dreik <github@pauldreik.se> Date: Thu Jun 13 10:41:34 2019 +0200 Merge remote-tracking branch 'upstream/master' into fuzz commit 90cab5aa023271a3a746cf9c60dd613b4546ca10 Merge: 8feb8a3f e5422db4 Author: Paul Dreik <github@pauldreik.se> Date: Wed Jun 12 18:49:08 2019 +0200 Merge remote-tracking branch 'upstream/master' into fuzz commit 8feb8a3fe20da043a8303e59b1580b4b2862cc57 Merge: e9fabac1 87fbc6f7 Author: Paul Dreik <github@pauldreik.se> Date: Tue Jun 11 19:18:35 2019 +0200 Merge remote-tracking branch 'upstream/master' into fuzz commit e9fabac1dd6d710fec1b30ca51dc953f57f2f9f5 Merge: eaff9316 e1a67b52 Author: Paul Dreik <github@pauldreik.se> Date: Mon Jun 10 22:38:36 2019 +0200 Merge remote-tracking branch 'upstream/master' into fuzz commit eaff93166402ff9a16a9ab0fab1081104f4f06b8 Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 22:29:01 2019 +0200 drop old crashes commit 7f861e481abb7367bd187c92fe202e25d36d0dd0 Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 21:47:30 2019 +0200 build fuzzers as part of the linux clang 6 build commit 42c339066dce148723f452d4a94487a6ac80637f Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 21:42:12 2019 +0200 travis has old libs commit 9264e3ac82582a941eba3501301dee1468175c08 Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 21:33:26 2019 +0200 more travis workarounds commit c6eed3adaf6cf65d440dd58c88a034f61c55114f Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 21:27:49 2019 +0200 travis workaround commit 5e230d6240841dbc67f0c08ace3a1c24defea54f Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 21:15:36 2019 +0200 fix constexpr issues commit cc5fc033479c769a8ac19115aef48020c532c943 Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 21:11:13 2019 +0200 add a fuzzer build commit 3997375296eca0d0455e0935ef3aed8b010ecf2d Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 20:53:04 2019 +0200 fix minor documentation errors commit 1572411261abd5c0756ff2998ab707f1131d4fdf Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 20:49:25 2019 +0200 polish the documentation commit 9e5274437cfc3e9c82131c14cf7f3a0abdb10025 Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 20:32:45 2019 +0200 remove unused headers commit 4b2492a5e037d3153de342ef7f2729b69e8f5dce Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 20:28:12 2019 +0200 clang format commit a0004ebb417bce5a24c15ea65a0f3741e45b8480 Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 20:27:02 2019 +0200 format also void* commit 820142ee2076ae17fea25857c41a1ecdca4a8521 Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 20:12:21 2019 +0200 improve two_args with lessons learnt from the others commit 7b8fd7f5123fccf78b600c69ca25d025582c095e Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 20:11:18 2019 +0200 improve function names commit 641bf36a7a061abf6a02d5e31f3adeb33b079f43 Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 20:07:29 2019 +0200 clang format commit 7975c0c3cbe19a7159336ad8fcb170fa6259b1cb Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 20:06:02 2019 +0200 apply lessons learned from chrono fuzzer on sprintf commit 972124c9f921f8ef786f99c294f556bb7dd9b9ee Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 19:55:49 2019 +0200 format to buffer instead of string commit 7b015c692364d1e087a59dfe83dda1b8f8fd2991 Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 19:50:25 2019 +0200 apply lessons learned from the chrono fuzzer at one_arg commit daa8ea95dd71704e367b760fa6605f5a7cac6890 Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 19:41:17 2019 +0200 renumber cases commit a667365d0e0f3eb0bc6d6f2cfee5e128a6574aee Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 19:38:06 2019 +0200 clang format commit e0e361b8a3594c43e131d661a28381613a186c2b Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 19:36:35 2019 +0200 disable fuzzing by default commit ccb4274ab246ee1fe3becb2b73432179a8a5fe6f Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 19:36:25 2019 +0200 refresh named_arg with lessons learnt from the chrono fuzzer commit 60da706d4ef35c18eb967bf4ba8d395ef05a9c61 Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 19:36:00 2019 +0200 fix build error commit e361bfc24246d7c7e91f5e45209eda2f22689d98 Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 19:00:11 2019 +0200 add comment about formatting to string vs. memory buffer commit 74c0ed062d34eae1786ca699886ad4f3bccc7fd1 Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 18:51:23 2019 +0200 try to use better names commit 4efea36f77020eecf3c7826f891417f94aedf6f4 Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 18:46:07 2019 +0200 fix clang build error commit 03cdd2e4631ad302dde3e1048671d3bb08956096 Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 18:44:21 2019 +0200 drop workarounds fixed upstream commit e936829ebbd97ed2e6f8c5f595b414c0982f2e4d Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 18:41:02 2019 +0200 move the fuzzers into the test/ subdirectory commit 2967765698259764c1f06966a7cdefbc5365e5f2 Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 18:30:03 2019 +0200 revert temporary tests handled upstream commit 749c5027b0eab3d90d8fbfb6e55ee313a7f7dfe4 Merge: dee69088 5d9100fa Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 17:49:00 2019 +0200 Merge remote-tracking branch 'upstream/master' into fuzz commit dee690881bd33bb77bee1d5ffce643e8bef84a33 Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 17:40:37 2019 +0200 keep documentation comment formatted properly commit 87d2c99487eef586ce54d432697f384cbe7a50e1 Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 17:36:12 2019 +0200 switch to fmt constexpr macros commit c23fa59139c425a3dfa2e5eeaeb3269c251c90d1 Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 17:30:22 2019 +0200 clang format commit 9e58207e9b24a8cc90c721277405b409dd61740d Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 17:27:03 2019 +0200 get rid of safe_duration_cast submodule replaced with an embedded miniature version commit a4d36eac46e5db45ded96f80f84986f4f76ea0ec Author: Paul Dreik <github@pauldreik.se> Date: Sun Jun 9 17:25:00 2019 +0200 add safe_duration_cast into fmt commit 7d5b0ecef37722c40952251c88d74a2552221d84 Author: Paul Dreik <github@pauldreik.se> Date: Sat Jun 8 22:39:33 2019 +0200 mark #1194 as fixed commit ee91514ecf7a8788f2081996db85eef50d7cd57b Merge: 60569117 4faadff0 Author: Paul Dreik <github@pauldreik.se> Date: Sat Jun 8 22:25:37 2019 +0200 Merge remote-tracking branch 'upstream/master' into fuzz commit 6056911784bc86e6caf56a61fd64142f113d531e Author: Paul Dreik <github@pauldreik.se> Date: Wed Jun 5 09:58:30 2019 +0200 format to small size buffer instead of string commit 9f006097255c239188840b589f6e39cbb4476481 Author: Paul Dreik <github@pauldreik.se> Date: Wed Jun 5 09:45:23 2019 +0200 switch to fmt::string_view and workaround reported bug commit 387de0d9440852fac974ff165b2555d54e2380da Author: Paul Dreik <github@pauldreik.se> Date: Wed Jun 5 06:26:15 2019 +0200 ignore build directories commit 55da271c5bb3c11a239c4e46570b6741803ce329 Merge: 3716491e c264e641 Author: Paul Dreik <github@pauldreik.se> Date: Wed Jun 5 06:12:36 2019 +0200 Merge remote-tracking branch 'upstream/master' into fuzz commit 3716491ec51c34a918834857c67300eea180ba02 Author: Paul Dreik <github@pauldreik.se> Date: Mon Jun 3 07:03:29 2019 +0200 fix UB in on_second commit 2740241b13b7417a4dae655f825ea5a551ffe7ba Merge: 1c258402 d54e64b3 Author: Paul Dreik <github@pauldreik.se> Date: Mon Jun 3 06:37:18 2019 +0200 Merge remote-tracking branch 'upstream/master' into fuzz # Conflicts: # include/fmt/chrono.h commit 1c258402a4bd03f390e0256fa9475cc5187d37f9 Merge: ca9596d1 f57227a1 Author: Paul Dreik <github@pauldreik.se> Date: Sat Jun 1 08:01:58 2019 +0200 Merge remote-tracking branch 'upstream/master' into fuzz commit ca9596d1c91b0315b407ce2c4b3e9e5ba1aeb640 Merge: 1c274cfd d07cc202 Author: Paul Dreik <github@pauldreik.se> Date: Thu May 30 19:42:33 2019 +0200 Merge remote-tracking branch 'upstream/master' into fuzz commit 1c274cfd4112138bfc59dd16f58022016128fe85 Author: Paul Dreik <github@pauldreik.se> Date: Thu May 30 08:12:10 2019 +0200 make it easier for the chrono fuzzer to explore using a fixed size makes the cases cross pollinate each other better. the execution speed is much higher as well commit f0d7cccdc70c98576b7129428c416e7c9e68a8aa Author: Paul Dreik <github@pauldreik.se> Date: Thu May 30 07:36:21 2019 +0200 add a build adapted for analysis of fuzzing performance commit 56f7cf3fa979de415174a10b18221727e3138b7b Author: Paul Dreik <github@pauldreik.se> Date: Thu May 30 06:25:10 2019 +0200 allow negative values again commit a77a5fc505bbeab1cfa36be16d40f7799689317a Author: Paul Dreik <github@pauldreik.se> Date: Thu May 30 05:45:55 2019 +0200 fix UB on signed int overflow in chrono_formatter constructor see https://github.com/fmtlib/fmt/issues/1179 commit b6a592720be520b58ed2f2d8668ffc6c8b71f0f7 Merge: 492a2046 30bce6c1 Author: Paul Dreik <github@pauldreik.se> Date: Thu May 30 05:26:30 2019 +0200 Merge remote-tracking branch 'upstream/master' into fuzz # Conflicts: # include/fmt/chrono.h commit 492a204623c3c4bbf04c9d47d69979d3a484959c Author: Paul Dreik <github@pauldreik.se> Date: Wed May 29 21:36:00 2019 +0200 fix bad assert commit 0ae68b03fbb0e80e292a01f529d5cd7e76349907 Author: Paul Dreik <github@pauldreik.se> Date: Wed May 29 21:35:49 2019 +0200 add unsigned types for chrono fuzzing commit 2753d7db76645e8847ff2110c5e98f5c8de4a6b9 Author: Paul Dreik <github@pauldreik.se> Date: Wed May 29 20:25:21 2019 +0200 use C++17 commit bc12742f098ec8b513985daedc57faa518203eb0 Author: Paul Dreik <github@pauldreik.se> Date: Wed May 29 19:44:59 2019 +0200 add symlink for safe_duration_cast commit 67201d2639b93736768e109d73b3e9ccc9401c48 Author: Paul Dreik <github@pauldreik.se> Date: Wed May 29 19:40:40 2019 +0200 turn on safe duration cast for the fuzzer builds commit 31a70080a63a5213594e4b4e6a33e7e315cf756e Author: Paul Dreik <github@pauldreik.se> Date: Wed May 29 19:32:52 2019 +0200 clang format commit 981e30c5782d04453ece1b31e887da4f29268370 Author: Paul Dreik <github@pauldreik.se> Date: Wed May 29 19:30:19 2019 +0200 reduce maximum allocation size commit 7ba51da81de7ecbc5498a22dc29de5b0648bcad2 Author: Paul Dreik <github@pauldreik.se> Date: Wed May 29 19:30:01 2019 +0200 make nan unit test pass commit 95b4b9c28a589c30727826dd4e1367bebfad5894 Author: Paul Dreik <github@pauldreik.se> Date: Wed May 29 18:39:08 2019 +0200 special case nan and inf commit 2673c965506e51d150c005340698a6e15d98aaba Author: Paul Dreik <github@pauldreik.se> Date: Wed May 29 16:40:11 2019 +0200 build a fast fuzzer, for making coverage fast commit db52b62612fd7ea3ceeaee05584fd8cb83e54a35 Author: Paul Dreik <github@pauldreik.se> Date: Wed May 29 16:39:48 2019 +0200 add safe duration cast as submodule commit c8a028faec5d91728472f5de01ea8b1766fb929d Author: Paul Dreik <github@pauldreik.se> Date: Wed May 29 16:00:26 2019 +0200 enable chrono fuzzing for non-negative values commit de3555cc573e561691858ca16586f8b45a3ae703 Author: Paul Dreik <github@pauldreik.se> Date: Wed May 29 13:06:35 2019 +0200 try start using safe duration cast commit 5c3245118c3debcb3f6f69c04c2c32d48449ee16 Author: Paul Dreik <github@pauldreik.se> Date: Wed May 29 09:59:34 2019 +0200 add failing test commit 3a565d3b091c29210e24042f86869fecafb70914 Author: Paul Dreik <github@pauldreik.se> Date: Wed May 29 09:59:09 2019 +0200 fix cmake option type (should be string, not bool) commit 61c67564207a13992b1c69d95614b2c4aec5df86 Merge: 63e7b9e3 bb254d14 Author: Paul Dreik <github@pauldreik.se> Date: Wed May 29 07:03:42 2019 +0200 Merge remote-tracking branch 'upstream/master' into fuzz commit 63e7b9e32c714c594d019ef463c9c40a3510a2f2 Merge: 7dd1d80f 5e7bdf1b Author: Paul Dreik <github@pauldreik.se> Date: Fri May 17 19:17:20 2019 +0200 Merge remote-tracking branch 'upstream/master' into fuzz commit 7dd1d80f3a32465d0fa13ce733bff8686a5b0bad Merge: 2c9aa5a3 2a9e8b52 Author: Paul Dreik <github@pauldreik.se> Date: Tue May 14 19:38:32 2019 +0200 Merge remote-tracking branch 'upstream/master' into fuzz commit 2c9aa5a31e64af25f8bb4afa8134258822532d3e Merge: 16a442c8 2c77562b Author: Paul Dreik <github@pauldreik.se> Date: Tue May 14 06:33:16 2019 +0200 Merge remote-tracking branch 'upstream/master' into fuzz commit 16a442c864dbdce70c22b4a859dba5e3b5edaf35 Merge: b1d70b61 f4dfd6e3 Author: Paul Dreik <github@pauldreik.se> Date: Sun May 12 15:24:31 2019 +0200 Merge remote-tracking branch 'upstream/master' into fuzz # Conflicts: # include/fmt/chrono.h commit b1d70b6144c7a61e580eb44ec7d1bdd2368f5531 Author: Paul Dreik <github@pauldreik.se> Date: Fri May 10 08:52:57 2019 +0200 prevent excessive time (found by oss-fuzz) the following triggered this: std::string message = fmt::format("\377{:.214718908}\377", fmt::arg("/\0", 0.f)); there are probably more places with calls to fill_n which could be checked commit 9a91093a6b20fd22afd6739f5dcba3b00f6f8eaf Merge: 7de0fdec e9bab6d0 Author: Paul Dreik <github@pauldreik.se> Date: Thu May 9 06:06:32 2019 +0200 Merge remote-tracking branch 'upstream/master' into fuzz # Conflicts: # include/fmt/chrono.h commit 7de0fdec38270f2d0302413904a5ef1b13d47177 Author: Paul Dreik <github@pauldreik.se> Date: Sun May 5 20:08:53 2019 +0200 clang format commit bb375e1ca10eb3cc2c6684bf698ad4738ab7eb10 Author: Paul Dreik <github@pauldreik.se> Date: Sun May 5 19:47:10 2019 +0200 seems to pass the unit test now (except for the nan stuff from victor) commit 786b4b7351bc8e305ad7e68d11ca6b542f66d456 Author: Paul Dreik <github@pauldreik.se> Date: Sun May 5 19:25:23 2019 +0200 add assert triggering data, and unit test commit 2790e480b81ec83d00315aa69407fe71b8c4c637 Merge: fa859a05 ca978b3d Author: Paul Dreik <github@pauldreik.se> Date: Sun May 5 18:42:51 2019 +0200 Merge remote-tracking branch 'upstream/master' into fuzz commit fa859a05c2c3abef263166f3a44cdbaa3122d642 Author: Paul Dreik <github@pauldreik.se> Date: Sun May 5 18:18:54 2019 +0200 add crash commit 1f6e341b1c4bc966a44c7a98b63f22bd65958d0b Author: Paul Dreik <github@pauldreik.se> Date: Sun May 5 18:18:27 2019 +0200 assert floating point is finite internally commit 50877748d08a0f4433af4f1213c5bc9021e76e7a Author: Paul Dreik <github@pauldreik.se> Date: Sun May 5 17:32:03 2019 +0200 invoke undefined behaviour inside chrono commit bac7ac4149f2d001f7b36236e1710484674d029b Author: Paul Dreik <github@pauldreik.se> Date: Sun May 5 17:31:35 2019 +0200 refactor the fuzzer build script commit b19c4cd84a0c8b6d4a7beb281ad881156173ce78 Author: Paul Dreik <github@pauldreik.se> Date: Sun May 5 16:25:11 2019 +0200 add one more crash commit 7607592e06ebaa189dc180441fa1863430e0938e Author: Paul Dreik <github@pauldreik.se> Date: Sun May 5 16:24:05 2019 +0200 add crashing input commit b059a98b27b40cd284e08a54493c25363d743557 Author: Paul Dreik <github@pauldreik.se> Date: Sun May 5 16:21:25 2019 +0200 trigger undefined behaviour with NaN durations commit 7cce33250282b397c00159e6809125f5fc1c0190 Author: Paul Dreik <github@pauldreik.se> Date: Sun May 5 16:20:51 2019 +0200 add asan only fuzzer commit 757319a4e30978d8661b3be8f75937266071b413 Merge: a574b21c c1d430e6 Author: Paul Dreik <github@pauldreik.se> Date: Sun May 5 06:34:59 2019 +0200 Merge remote-tracking branch 'upstream/master' into fuzz # Conflicts: # test/chrono-test.cc commit a574b21c840339abef5e4ad33612b6efac6ad54b Author: Paul Dreik <github@pauldreik.se> Date: Sat May 4 12:54:13 2019 +0200 disable chrono fuzzing for now it triggers integer overflow and is not trivial to solve. commit ff17322bceba53e0c2d9ebcf3756115ad148195e Merge: d6a59851 29c10fbf Author: Paul Dreik <github@pauldreik.se> Date: Sat May 4 07:29:39 2019 +0200 Merge remote-tracking branch 'upstream/master' into fuzz commit d6a598511c7dc0c208c2d688b2943b0d7c092029 Merge: 663b1592 4a4d72f9 Author: Paul Dreik <github@pauldreik.se> Date: Wed May 1 20:44:16 2019 +0200 Merge remote-tracking branch 'upstream/master' into fuzz # Conflicts: # test/chrono-test.cc commit 663b159235f8ae5f58fe80bb02d49bfa392056b0 Author: Paul Dreik <github@pauldreik.se> Date: Sun Apr 28 22:36:07 2019 +0200 add crash case (triggers assertion) commit 082a5cb226142ea30b415d4231cea9425748741a Author: Paul Dreik <github@pauldreik.se> Date: Sun Apr 28 21:44:19 2019 +0200 add const commit b8d70919ea6be0d2e4c58ef82887496f55125ba9 Author: Paul Dreik <github@pauldreik.se> Date: Sun Apr 28 21:29:43 2019 +0200 provoke assertion fmt/include/fmt/core.h:246: typename std::make_unsigned<_Tp>::type fmt::v5::internal::to_unsigned(Int) [with Int = long int; typename std::make_unsigned<_Tp>::type = long unsigned int]: Assertion `(value >= 0) && "negative value"' failed. commit e1966013af4eb7febf047d4629cc6236a6aae0e3 Author: Paul Dreik <github@pauldreik.se> Date: Sun Apr 28 20:46:16 2019 +0200 add more crashes commit 1394ae3fe915319ce7dc63d6a9dc820a29c9539e Merge: 89338cad 4c721e3a Author: Paul Dreik <github@pauldreik.se> Date: Sun Apr 28 17:16:14 2019 +0200 Merge remote-tracking branch 'upstream/master' into fuzz commit 89338cad4eed9441644ec8c5f1687b511c829ea4 Author: Paul Dreik <github@pauldreik.se> Date: Sun Apr 28 09:40:32 2019 +0200 add notes on how to reproduce crashes commit 7dc3e4c7223617da274c4cccb9cf5459d0510e0b Author: Paul Dreik <github@pauldreik.se> Date: Sun Apr 28 09:28:20 2019 +0200 add crashes from chrono duration commit b62e8bc783134c2d15ebf0372c8a61b41624e6b1 Author: Paul Dreik <github@pauldreik.se> Date: Sun Apr 28 09:26:53 2019 +0200 rename fuzzer commit 7f4ab2b80d072fe3ad96e37e45f3fa807a85c99f Author: Paul Dreik <github@pauldreik.se> Date: Sun Apr 28 09:15:38 2019 +0200 clang format commit a6cc2a35a9799e88b9ed89e578b7aefd9b09ad09 Author: Paul Dreik <github@pauldreik.se> Date: Sun Apr 28 09:12:04 2019 +0200 add chrono duration fuzzer commit 682713c9a61d52b46e95fdb7d970a8733f77ce88 Merge: 8b934b37 8d8ea21c Author: Paul Dreik <github@pauldreik.se> Date: Sun Apr 28 08:07:56 2019 +0200 Merge remote-tracking branch 'upstream/master' into fuzz commit 8b934b37161d1389de603ced6560982507bb7ae5 Author: Paul Dreik <github@pauldreik.se> Date: Sat Apr 27 10:23:44 2019 +0200 clang format commit 793d97b9af33269f5628094f547f9771e968e3f2 Author: Paul Dreik <github@pauldreik.se> Date: Sat Apr 27 10:23:17 2019 +0200 tighten memory allocation commit e2301f2430b15c9817433206597ef82c990f49a0 Author: Paul Dreik <github@pauldreik.se> Date: Sat Apr 27 10:19:56 2019 +0200 clean up and set license (BSD 2-clause simplified, same as fmt) commit e64c3fb35719afa644dee1f9f17829cace6e17ff Author: Paul Dreik <github@pauldreik.se> Date: Sat Apr 27 10:04:23 2019 +0200 clean up and add afl commit ab46241206aaf46759fd3f292ee4a1088b652d15 Author: Paul Dreik <github@pauldreik.se> Date: Sat Apr 27 09:54:48 2019 +0200 drop c++17 requirement commit 20c01e1acf330c8a28192f55b16efeebddb72ab0 Author: Paul Dreik <github@pauldreik.se> Date: Sat Apr 27 09:25:19 2019 +0200 initial oss-fuzz compatible version commit 6cbd91a37cf36a1d0e994bb16cf44a12622f7dca Author: Paul Dreik <github@pauldreik.se> Date: Sat Apr 27 08:42:51 2019 +0200 initial commit of fuzzers from https://github.com/pauldreik/fuzzfmt commit eaddfb16d86ef1c259b737e2aab40145b0c956a6 Merge: e37d7db3 134904c8 Author: Paul Dreik <github@pauldreik.se> Date: Sat Apr 27 08:38:19 2019 +0200 Merge remote-tracking branch 'upstream/master' into fuzz commit e37d7db3b938c82f569d71e6bb00bd1bf8394db7 Merge: 99b2e08b bd516e34 Author: Paul Dreik <github@pauldreik.se> Date: Sun Apr 21 17:28:06 2019 +0200 Merge remote-tracking branch 'upstream/master' into fuzz commit 99b2e08b6bef25b793df5ef07621c9c4402587de Author: Paul Dreik <github@pauldreik.se> Date: Sun Apr 21 10:30:56 2019 +0200 stop high memory use when fuzzing
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#endif
const size_t max_size = std::allocator_traits<Allocator>::max_size(alloc_);
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size_t old_capacity = this->capacity();
size_t new_capacity = old_capacity + old_capacity / 2;
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if (size > new_capacity)
new_capacity = size;
else if (new_capacity > max_size)
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new_capacity = size > max_size ? size : max_size;
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T* old_data = this->data();
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T* new_data =
std::allocator_traits<Allocator>::allocate(alloc_, new_capacity);
// The following code doesn't throw, so the raw pointer above doesn't leak.
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std::uninitialized_copy(old_data, old_data + this->size(),
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detail::make_checked(new_data, new_capacity));
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this->set(new_data, new_capacity);
// deallocate must not throw according to the standard, but even if it does,
// the buffer already uses the new storage and will deallocate it in
// destructor.
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if (old_data != store_) alloc_.deallocate(old_data, old_capacity);
}
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using memory_buffer = basic_memory_buffer<char>;
template <typename T, size_t SIZE, typename Allocator>
struct is_contiguous<basic_memory_buffer<T, SIZE, Allocator>> : std::true_type {
};
namespace detail {
FMT_API void print(std::FILE*, string_view);
}
/** A formatting error such as invalid format string. */
FMT_CLASS_API
class FMT_API format_error : public std::runtime_error {
public:
explicit format_error(const char* message) : std::runtime_error(message) {}
explicit format_error(const std::string& message)
: std::runtime_error(message) {}
format_error(const format_error&) = default;
format_error& operator=(const format_error&) = default;
format_error(format_error&&) = default;
format_error& operator=(format_error&&) = default;
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~format_error() noexcept override FMT_MSC_DEFAULT;
};
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/**
\rst
Constructs a `~fmt::format_arg_store` object that contains references
to arguments and can be implicitly converted to `~fmt::format_args`.
If ``fmt`` is a compile-time string then `make_args_checked` checks
its validity at compile time.
\endrst
*/
template <typename... Args, typename S, typename Char = char_t<S>>
FMT_INLINE auto make_args_checked(const S& fmt,
const remove_reference_t<Args>&... args)
-> format_arg_store<buffer_context<Char>, remove_reference_t<Args>...> {
static_assert(
detail::count<(
std::is_base_of<detail::view, remove_reference_t<Args>>::value &&
std::is_reference<Args>::value)...>() == 0,
"passing views as lvalues is disallowed");
detail::check_format_string<Args...>(fmt);
return {args...};
}
// compile-time support
namespace detail_exported {
#if FMT_USE_NONTYPE_TEMPLATE_PARAMETERS
template <typename Char, size_t N> struct fixed_string {
constexpr fixed_string(const Char (&str)[N]) {
detail::copy_str<Char, const Char*, Char*>(static_cast<const Char*>(str),
str + N, data);
}
Char data[N]{};
};
#endif
// Converts a compile-time string to basic_string_view.
template <typename Char, size_t N>
constexpr auto compile_string_to_view(const Char (&s)[N])
-> basic_string_view<Char> {
// Remove trailing NUL character if needed. Won't be present if this is used
// with a raw character array (i.e. not defined as a string).
return {s, N - (std::char_traits<Char>::to_int_type(s[N - 1]) == 0 ? 1 : 0)};
}
template <typename Char>
constexpr auto compile_string_to_view(detail::std_string_view<Char> s)
-> basic_string_view<Char> {
return {s.data(), s.size()};
}
} // namespace detail_exported
FMT_BEGIN_DETAIL_NAMESPACE
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template <typename T> struct is_integral : std::is_integral<T> {};
template <> struct is_integral<int128_t> : std::true_type {};
template <> struct is_integral<uint128_t> : std::true_type {};
template <typename T>
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using is_signed =
std::integral_constant<bool, std::numeric_limits<T>::is_signed ||
std::is_same<T, int128_t>::value>;
// Returns true if value is negative, false otherwise.
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// Same as `value < 0` but doesn't produce warnings if T is an unsigned type.
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template <typename T, FMT_ENABLE_IF(is_signed<T>::value)>
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FMT_CONSTEXPR auto is_negative(T value) -> bool {
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return value < 0;
}
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template <typename T, FMT_ENABLE_IF(!is_signed<T>::value)>
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FMT_CONSTEXPR auto is_negative(T) -> bool {
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return false;
}
template <typename T, FMT_ENABLE_IF(std::is_floating_point<T>::value)>
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FMT_CONSTEXPR auto is_supported_floating_point(T) -> uint16_t {
return (std::is_same<T, float>::value && FMT_USE_FLOAT) ||
(std::is_same<T, double>::value && FMT_USE_DOUBLE) ||
(std::is_same<T, long double>::value && FMT_USE_LONG_DOUBLE);
}
// Smallest of uint32_t, uint64_t, uint128_t that is large enough to
// represent all values of an integral type T.
template <typename T>
using uint32_or_64_or_128_t =
conditional_t<num_bits<T>() <= 32 && !FMT_REDUCE_INT_INSTANTIATIONS,
uint32_t,
conditional_t<num_bits<T>() <= 64, uint64_t, uint128_t>>;
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template <typename T>
using uint64_or_128_t = conditional_t<num_bits<T>() <= 64, uint64_t, uint128_t>;
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#define FMT_POWERS_OF_10(factor) \
factor * 10, (factor)*100, (factor)*1000, (factor)*10000, (factor)*100000, \
(factor)*1000000, (factor)*10000000, (factor)*100000000, \
(factor)*1000000000
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// Converts value in the range [0, 100) to a string.
constexpr const char* digits2(size_t value) {
// GCC generates slightly better code when value is pointer-size.
return &"0001020304050607080910111213141516171819"
"2021222324252627282930313233343536373839"
"4041424344454647484950515253545556575859"
"6061626364656667686970717273747576777879"
"8081828384858687888990919293949596979899"[value * 2];
}
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// Sign is a template parameter to workaround a bug in gcc 4.8.
template <typename Char, typename Sign> constexpr Char sign(Sign s) {
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#if !FMT_GCC_VERSION || FMT_GCC_VERSION >= 604
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static_assert(std::is_same<Sign, sign_t>::value, "");
#endif
return static_cast<Char>("\0-+ "[s]);
}
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template <typename T> FMT_CONSTEXPR auto count_digits_fallback(T n) -> int {
int count = 1;
for (;;) {
// Integer division is slow so do it for a group of four digits instead
// of for every digit. The idea comes from the talk by Alexandrescu
// "Three Optimization Tips for C++". See speed-test for a comparison.
if (n < 10) return count;
if (n < 100) return count + 1;
if (n < 1000) return count + 2;
if (n < 10000) return count + 3;
n /= 10000u;
count += 4;
}
}
#if FMT_USE_INT128
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FMT_CONSTEXPR inline auto count_digits(uint128_t n) -> int {
return count_digits_fallback(n);
}
#endif
#ifdef FMT_BUILTIN_CLZLL
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// It is a separate function rather than a part of count_digits to workaround
// the lack of static constexpr in constexpr functions.
inline auto do_count_digits(uint64_t n) -> int {
// This has comparable performance to the version by Kendall Willets
// (https://github.com/fmtlib/format-benchmark/blob/master/digits10)
// but uses smaller tables.
// Maps bsr(n) to ceil(log10(pow(2, bsr(n) + 1) - 1)).
static constexpr uint8_t bsr2log10[] = {
1, 1, 1, 2, 2, 2, 3, 3, 3, 4, 4, 4, 4, 5, 5, 5,
6, 6, 6, 7, 7, 7, 7, 8, 8, 8, 9, 9, 9, 10, 10, 10,
10, 11, 11, 11, 12, 12, 12, 13, 13, 13, 13, 14, 14, 14, 15, 15,
15, 16, 16, 16, 16, 17, 17, 17, 18, 18, 18, 19, 19, 19, 19, 20};
auto t = bsr2log10[FMT_BUILTIN_CLZLL(n | 1) ^ 63];
static constexpr const uint64_t zero_or_powers_of_10[] = {
0, 0, FMT_POWERS_OF_10(1U), FMT_POWERS_OF_10(1000000000ULL),
10000000000000000000ULL};
return t - (n < zero_or_powers_of_10[t]);
}
#endif
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// Returns the number of decimal digits in n. Leading zeros are not counted
// except for n == 0 in which case count_digits returns 1.
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FMT_CONSTEXPR20 inline auto count_digits(uint64_t n) -> int {
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#ifdef FMT_BUILTIN_CLZLL
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if (!is_constant_evaluated()) {
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return do_count_digits(n);
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}
#endif
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return count_digits_fallback(n);
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}
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// Counts the number of digits in n. BITS = log2(radix).
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template <int BITS, typename UInt>
FMT_CONSTEXPR auto count_digits(UInt n) -> int {
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#ifdef FMT_BUILTIN_CLZ
if (num_bits<UInt>() == 32)
return (FMT_BUILTIN_CLZ(static_cast<uint32_t>(n) | 1) ^ 31) / BITS + 1;
#endif
// Lambda avoids unreachable code warnings from NVHPC.
return [](UInt m) {
int num_digits = 0;
do {
++num_digits;
} while ((m >>= BITS) != 0);
return num_digits;
}(n);
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}
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template <> auto count_digits<4>(detail::fallback_uintptr n) -> int;
#ifdef FMT_BUILTIN_CLZ
// It is a separate function rather than a part of count_digits to workaround
// the lack of static constexpr in constexpr functions.
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FMT_INLINE auto do_count_digits(uint32_t n) -> int {
// An optimization by Kendall Willets from https://bit.ly/3uOIQrB.
// This increments the upper 32 bits (log10(T) - 1) when >= T is added.
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# define FMT_INC(T) (((sizeof(# T) - 1ull) << 32) - T)
static constexpr uint64_t table[] = {
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FMT_INC(0), FMT_INC(0), FMT_INC(0), // 8
FMT_INC(10), FMT_INC(10), FMT_INC(10), // 64
FMT_INC(100), FMT_INC(100), FMT_INC(100), // 512
FMT_INC(1000), FMT_INC(1000), FMT_INC(1000), // 4096
FMT_INC(10000), FMT_INC(10000), FMT_INC(10000), // 32k
FMT_INC(100000), FMT_INC(100000), FMT_INC(100000), // 256k
FMT_INC(1000000), FMT_INC(1000000), FMT_INC(1000000), // 2048k
FMT_INC(10000000), FMT_INC(10000000), FMT_INC(10000000), // 16M
FMT_INC(100000000), FMT_INC(100000000), FMT_INC(100000000), // 128M
FMT_INC(1000000000), FMT_INC(1000000000), FMT_INC(1000000000), // 1024M
FMT_INC(1000000000), FMT_INC(1000000000) // 4B
};
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auto inc = table[FMT_BUILTIN_CLZ(n | 1) ^ 31];
return static_cast<int>((n + inc) >> 32);
}
#endif
// Optional version of count_digits for better performance on 32-bit platforms.
FMT_CONSTEXPR20 inline auto count_digits(uint32_t n) -> int {
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#ifdef FMT_BUILTIN_CLZ
if (!is_constant_evaluated()) {
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return do_count_digits(n);
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}
#endif
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return count_digits_fallback(n);
}
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template <typename Int> constexpr auto digits10() noexcept -> int {
return std::numeric_limits<Int>::digits10;
}
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template <> constexpr auto digits10<int128_t>() noexcept -> int { return 38; }
template <> constexpr auto digits10<uint128_t>() noexcept -> int { return 38; }
template <typename Char> struct thousands_sep_result {
std::string grouping;
Char thousands_sep;
};
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template <typename Char>
FMT_API auto thousands_sep_impl(locale_ref loc) -> thousands_sep_result<Char>;
template <typename Char>
inline auto thousands_sep(locale_ref loc) -> thousands_sep_result<Char> {
auto result = thousands_sep_impl<char>(loc);
return {result.grouping, Char(result.thousands_sep)};
}
template <>
inline auto thousands_sep(locale_ref loc) -> thousands_sep_result<wchar_t> {
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return thousands_sep_impl<wchar_t>(loc);
}
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template <typename Char>
FMT_API auto decimal_point_impl(locale_ref loc) -> Char;
template <typename Char> inline auto decimal_point(locale_ref loc) -> Char {
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return Char(decimal_point_impl<char>(loc));
}
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template <> inline auto decimal_point(locale_ref loc) -> wchar_t {
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return decimal_point_impl<wchar_t>(loc);
}
// Compares two characters for equality.
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template <typename Char> auto equal2(const Char* lhs, const char* rhs) -> bool {
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return lhs[0] == Char(rhs[0]) && lhs[1] == Char(rhs[1]);
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}
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inline auto equal2(const char* lhs, const char* rhs) -> bool {
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return memcmp(lhs, rhs, 2) == 0;
}
// Copies two characters from src to dst.
template <typename Char>
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FMT_CONSTEXPR20 FMT_INLINE void copy2(Char* dst, const char* src) {
if (!is_constant_evaluated() && sizeof(Char) == sizeof(char)) {
memcpy(dst, src, 2);
return;
}
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*dst++ = static_cast<Char>(*src++);
*dst = static_cast<Char>(*src);
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}
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template <typename Iterator> struct format_decimal_result {
Iterator begin;
Iterator end;
};
// Formats a decimal unsigned integer value writing into out pointing to a
// buffer of specified size. The caller must ensure that the buffer is large
// enough.
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template <typename Char, typename UInt>
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FMT_CONSTEXPR20 auto format_decimal(Char* out, UInt value, int size)
-> format_decimal_result<Char*> {
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FMT_ASSERT(size >= count_digits(value), "invalid digit count");
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out += size;
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Char* end = out;
while (value >= 100) {
// Integer division is slow so do it for a group of two digits instead
// of for every digit. The idea comes from the talk by Alexandrescu
// "Three Optimization Tips for C++". See speed-test for a comparison.
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out -= 2;
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copy2(out, digits2(static_cast<size_t>(value % 100)));
value /= 100;
}
if (value < 10) {
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*--out = static_cast<Char>('0' + value);
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return {out, end};
}
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out -= 2;
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copy2(out, digits2(static_cast<size_t>(value)));
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return {out, end};
}
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template <typename Char, typename UInt, typename Iterator,
FMT_ENABLE_IF(!std::is_pointer<remove_cvref_t<Iterator>>::value)>
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inline auto format_decimal(Iterator out, UInt value, int size)
-> format_decimal_result<Iterator> {
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// Buffer is large enough to hold all digits (digits10 + 1).
Char buffer[digits10<UInt>() + 1];
auto end = format_decimal(buffer, value, size).end;
return {out, detail::copy_str_noinline<Char>(buffer, end, out)};
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}
template <unsigned BASE_BITS, typename Char, typename UInt>
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FMT_CONSTEXPR auto format_uint(Char* buffer, UInt value, int num_digits,
bool upper = false) -> Char* {
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buffer += num_digits;
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Char* end = buffer;
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do {
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const char* digits = upper ? "0123456789ABCDEF" : "0123456789abcdef";
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unsigned digit = (value & ((1 << BASE_BITS) - 1));
*--buffer = static_cast<Char>(BASE_BITS < 4 ? static_cast<char>('0' + digit)
: digits[digit]);
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} while ((value >>= BASE_BITS) != 0);
return end;
}
template <unsigned BASE_BITS, typename Char>
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auto format_uint(Char* buffer, detail::fallback_uintptr n, int num_digits,
bool = false) -> Char* {
auto char_digits = std::numeric_limits<unsigned char>::digits / 4;
int start = (num_digits + char_digits - 1) / char_digits - 1;
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if (int start_digits = num_digits % char_digits) {
unsigned value = n.value[start--];
buffer = format_uint<BASE_BITS>(buffer, value, start_digits);
}
for (; start >= 0; --start) {
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unsigned value = n.value[start];
buffer += char_digits;
auto p = buffer;
for (int i = 0; i < char_digits; ++i) {
unsigned digit = (value & ((1 << BASE_BITS) - 1));
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*--p = static_cast<Char>("0123456789abcdef"[digit]);
value >>= BASE_BITS;
}
}
return buffer;
}
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template <unsigned BASE_BITS, typename Char, typename It, typename UInt>
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inline auto format_uint(It out, UInt value, int num_digits, bool upper = false)
-> It {
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if (auto ptr = to_pointer<Char>(out, to_unsigned(num_digits))) {
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format_uint<BASE_BITS>(ptr, value, num_digits, upper);
return out;
}
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// Buffer should be large enough to hold all digits (digits / BASE_BITS + 1).
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char buffer[num_bits<UInt>() / BASE_BITS + 1];
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format_uint<BASE_BITS>(buffer, value, num_digits, upper);
return detail::copy_str_noinline<Char>(buffer, buffer + num_digits, out);
}
// A converter from UTF-8 to UTF-16.
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class utf8_to_utf16 {
private:
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basic_memory_buffer<wchar_t> buffer_;
public:
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FMT_API explicit utf8_to_utf16(string_view s);
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operator basic_string_view<wchar_t>() const { return {&buffer_[0], size()}; }
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auto size() const -> size_t { return buffer_.size() - 1; }
auto c_str() const -> const wchar_t* { return &buffer_[0]; }
auto str() const -> std::wstring { return {&buffer_[0], size()}; }
};
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namespace dragonbox {
// Type-specific information that Dragonbox uses.
template <class T> struct float_info;
template <> struct float_info<float> {
using carrier_uint = uint32_t;
static const int significand_bits = 23;
static const int exponent_bits = 8;
static const int min_exponent = -126;
static const int max_exponent = 127;
static const int exponent_bias = -127;
static const int decimal_digits = 9;
static const int kappa = 1;
static const int big_divisor = 100;
static const int small_divisor = 10;
static const int min_k = -31;
static const int max_k = 46;
static const int cache_bits = 64;
static const int divisibility_check_by_5_threshold = 39;
static const int case_fc_pm_half_lower_threshold = -1;
static const int case_shorter_interval_left_endpoint_lower_threshold = 2;
static const int case_shorter_interval_left_endpoint_upper_threshold = 3;
static const int shorter_interval_tie_lower_threshold = -35;
static const int shorter_interval_tie_upper_threshold = -35;
static const int max_trailing_zeros = 7;
};
template <> struct float_info<double> {
using carrier_uint = uint64_t;
static const int significand_bits = 52;
static const int exponent_bits = 11;
static const int min_exponent = -1022;
static const int max_exponent = 1023;
static const int exponent_bias = -1023;
static const int decimal_digits = 17;
static const int kappa = 2;
static const int big_divisor = 1000;
static const int small_divisor = 100;
static const int min_k = -292;
static const int max_k = 326;
static const int cache_bits = 128;
static const int divisibility_check_by_5_threshold = 86;
static const int case_fc_pm_half_lower_threshold = -2;
static const int case_shorter_interval_left_endpoint_lower_threshold = 2;
static const int case_shorter_interval_left_endpoint_upper_threshold = 3;
static const int shorter_interval_tie_lower_threshold = -77;
static const int shorter_interval_tie_upper_threshold = -77;
static const int max_trailing_zeros = 16;
};
template <typename T> struct decimal_fp {
using significand_type = typename float_info<T>::carrier_uint;
significand_type significand;
int exponent;
};
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template <typename T> FMT_API auto to_decimal(T x) noexcept -> decimal_fp<T>;
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} // namespace dragonbox
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template <typename T>
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constexpr auto exponent_mask() ->
typename dragonbox::float_info<T>::carrier_uint {
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using uint = typename dragonbox::float_info<T>::carrier_uint;
return ((uint(1) << dragonbox::float_info<T>::exponent_bits) - 1)
<< dragonbox::float_info<T>::significand_bits;
}
// Writes the exponent exp in the form "[+-]d{2,3}" to buffer.
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template <typename Char, typename It>
FMT_CONSTEXPR auto write_exponent(int exp, It it) -> It {
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FMT_ASSERT(-10000 < exp && exp < 10000, "exponent out of range");
if (exp < 0) {
*it++ = static_cast<Char>('-');
exp = -exp;
} else {
*it++ = static_cast<Char>('+');
}
if (exp >= 100) {
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const char* top = digits2(to_unsigned(exp / 100));
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if (exp >= 1000) *it++ = static_cast<Char>(top[0]);
*it++ = static_cast<Char>(top[1]);
exp %= 100;
}
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const char* d = digits2(to_unsigned(exp));
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*it++ = static_cast<Char>(d[0]);
*it++ = static_cast<Char>(d[1]);
return it;
}
template <typename T>
FMT_HEADER_ONLY_CONSTEXPR20 auto format_float(T value, int precision,
float_specs specs,
buffer<char>& buf) -> int;
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// Formats a floating-point number with snprintf.
template <typename T>
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auto snprintf_float(T value, int precision, float_specs specs,
buffer<char>& buf) -> int;
template <typename T> constexpr auto promote_float(T value) -> T {
return value;
}
constexpr auto promote_float(float value) -> double {
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return static_cast<double>(value);
}
template <typename OutputIt, typename Char>
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FMT_NOINLINE FMT_CONSTEXPR auto fill(OutputIt it, size_t n,
const fill_t<Char>& fill) -> OutputIt {
auto fill_size = fill.size();
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if (fill_size == 1) return detail::fill_n(it, n, fill[0]);
auto data = fill.data();
for (size_t i = 0; i < n; ++i)
it = copy_str<Char>(data, data + fill_size, it);
return it;
}
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// Writes the output of f, padded according to format specifications in specs.
// size: output size in code units.
// width: output display width in (terminal) column positions.
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template <align::type align = align::left, typename OutputIt, typename Char,
typename F>
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FMT_CONSTEXPR auto write_padded(OutputIt out,
const basic_format_specs<Char>& specs,
size_t size, size_t width, F&& f) -> OutputIt {
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static_assert(align == align::left || align == align::right, "");
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unsigned spec_width = to_unsigned(specs.width);
size_t padding = spec_width > width ? spec_width - width : 0;
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// Shifts are encoded as string literals because static constexpr is not
// supported in constexpr functions.
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auto* shifts = align == align::left ? "\x1f\x1f\x00\x01" : "\x00\x1f\x00\x01";
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size_t left_padding = padding >> shifts[specs.align];
size_t right_padding = padding - left_padding;
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auto it = reserve(out, size + padding * specs.fill.size());
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if (left_padding != 0) it = fill(it, left_padding, specs.fill);
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it = f(it);
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if (right_padding != 0) it = fill(it, right_padding, specs.fill);
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return base_iterator(out, it);
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}
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template <align::type align = align::left, typename OutputIt, typename Char,
typename F>
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constexpr auto write_padded(OutputIt out, const basic_format_specs<Char>& specs,
size_t size, F&& f) -> OutputIt {
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return write_padded<align>(out, specs, size, size, f);
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}
template <align::type align = align::left, typename Char, typename OutputIt>
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FMT_CONSTEXPR auto write_bytes(OutputIt out, string_view bytes,
const basic_format_specs<Char>& specs)
-> OutputIt {
return write_padded<align>(
out, specs, bytes.size(), [bytes](reserve_iterator<OutputIt> it) {
const char* data = bytes.data();
return copy_str<Char>(data, data + bytes.size(), it);
});
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}
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template <typename Char, typename OutputIt, typename UIntPtr>
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auto write_ptr(OutputIt out, UIntPtr value,
const basic_format_specs<Char>* specs) -> OutputIt {
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int num_digits = count_digits<4>(value);
auto size = to_unsigned(num_digits) + size_t(2);
auto write = [=](reserve_iterator<OutputIt> it) {
*it++ = static_cast<Char>('0');
*it++ = static_cast<Char>('x');
return format_uint<4, Char>(it, value, num_digits);
};
return specs ? write_padded<align::right>(out, *specs, size, write)
: base_iterator(out, write(reserve(out, size)));
}
template <typename Char, typename OutputIt>
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FMT_CONSTEXPR auto write_char(OutputIt out, Char value,
const basic_format_specs<Char>& specs)
-> OutputIt {
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return write_padded(out, specs, 1, [=](reserve_iterator<OutputIt> it) {
*it++ = value;
return it;
});
}
template <typename Char, typename OutputIt>
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FMT_CONSTEXPR auto write(OutputIt out, Char value,
const basic_format_specs<Char>& specs,
locale_ref loc = {}) -> OutputIt {
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return check_char_specs(specs)
? write_char(out, value, specs)
: write(out, static_cast<int>(value), specs, loc);
}
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// Data for write_int that doesn't depend on output iterator type. It is used to
// avoid template code bloat.
template <typename Char> struct write_int_data {
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size_t size;
size_t padding;
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FMT_CONSTEXPR write_int_data(int num_digits, unsigned prefix,
const basic_format_specs<Char>& specs)
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: size((prefix >> 24) + to_unsigned(num_digits)), padding(0) {
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if (specs.align == align::numeric) {
auto width = to_unsigned(specs.width);
if (width > size) {
padding = width - size;
size = width;
}
} else if (specs.precision > num_digits) {
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size = (prefix >> 24) + to_unsigned(specs.precision);
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padding = to_unsigned(specs.precision - num_digits);
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}
}
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};
// Writes an integer in the format
// <left-padding><prefix><numeric-padding><digits><right-padding>
// where <digits> are written by write_digits(it).
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// prefix contains chars in three lower bytes and the size in the fourth byte.
template <typename OutputIt, typename Char, typename W>
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FMT_CONSTEXPR FMT_INLINE auto write_int(OutputIt out, int num_digits,
unsigned prefix,
const basic_format_specs<Char>& specs,
W write_digits) -> OutputIt {
// Slightly faster check for specs.width == 0 && specs.precision == -1.
if ((specs.width | (specs.precision + 1)) == 0) {
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auto it = reserve(out, to_unsigned(num_digits) + (prefix >> 24));
if (prefix != 0) {
for (unsigned p = prefix & 0xffffff; p != 0; p >>= 8)
*it++ = static_cast<Char>(p & 0xff);
}
return base_iterator(out, write_digits(it));
}
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auto data = write_int_data<Char>(num_digits, prefix, specs);
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return write_padded<align::right>(
out, specs, data.size, [=](reserve_iterator<OutputIt> it) {
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for (unsigned p = prefix & 0xffffff; p != 0; p >>= 8)
*it++ = static_cast<Char>(p & 0xff);
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it = detail::fill_n(it, data.padding, static_cast<Char>('0'));
return write_digits(it);
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});
}
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template <typename Char> class digit_grouping {
private:
thousands_sep_result<Char> sep_;
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struct next_state {
std::string::const_iterator group;
int pos;
};
next_state initial_state() const { return {sep_.grouping.begin(), 0}; }
// Returns the next digit group separator position.
int next(next_state& state) const {
if (!sep_.thousands_sep) return max_value<int>();
if (state.group == sep_.grouping.end())
return state.pos += sep_.grouping.back();
if (*state.group <= 0 || *state.group == max_value<char>())
return max_value<int>();
state.pos += *state.group++;
return state.pos;
}
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public:
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explicit digit_grouping(locale_ref loc, bool localized = true) {
if (localized)
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sep_ = thousands_sep<Char>(loc);
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else
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sep_.thousands_sep = Char();
}
explicit digit_grouping(thousands_sep_result<Char> sep) : sep_(sep) {}
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Char separator() const { return sep_.thousands_sep; }
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int count_separators(int num_digits) const {
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int count = 0;
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auto state = initial_state();
while (num_digits > next(state)) ++count;
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return count;
}
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// Applies grouping to digits and write the output to out.
template <typename Out, typename C>
Out apply(Out out, basic_string_view<C> digits) const {
auto num_digits = static_cast<int>(digits.size());
auto separators = basic_memory_buffer<int>();
separators.push_back(0);
auto state = initial_state();
while (int i = next(state)) {
if (i >= num_digits) break;
separators.push_back(i);
}
for (int i = 0, sep_index = static_cast<int>(separators.size() - 1);
i < num_digits; ++i) {
if (num_digits - i == separators[sep_index]) {
*out++ = separator();
--sep_index;
}
*out++ = static_cast<Char>(digits[to_unsigned(i)]);
}
return out;
}
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};
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template <typename OutputIt, typename UInt, typename Char>
auto write_int_localized(OutputIt out, UInt value, unsigned prefix,
const basic_format_specs<Char>& specs,
const digit_grouping<Char>& grouping) -> OutputIt {
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static_assert(std::is_same<uint64_or_128_t<UInt>, UInt>::value, "");
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int num_digits = count_digits(value);
char digits[40];
format_decimal(digits, value, num_digits);
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unsigned size = to_unsigned((prefix != 0 ? 1 : 0) + num_digits +
grouping.count_separators(num_digits));
return write_padded<align::right>(
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out, specs, size, size, [&](reserve_iterator<OutputIt> it) {
if (prefix != 0) *it++ = static_cast<Char>(prefix);
return grouping.apply(it, string_view(digits, to_unsigned(num_digits)));
});
}
template <typename OutputIt, typename UInt, typename Char>
auto write_int_localized(OutputIt& out, UInt value, unsigned prefix,
const basic_format_specs<Char>& specs, locale_ref loc)
-> bool {
auto grouping = digit_grouping<Char>(loc);
out = write_int_localized(out, value, prefix, specs, grouping);
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return true;
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}
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FMT_CONSTEXPR inline void prefix_append(unsigned& prefix, unsigned value) {
prefix |= prefix != 0 ? value << 8 : value;
prefix += (1u + (value > 0xff ? 1 : 0)) << 24;
}
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template <typename UInt> struct write_int_arg {
UInt abs_value;
unsigned prefix;
};
template <typename T>
FMT_CONSTEXPR auto make_write_int_arg(T value, sign_t sign)
-> write_int_arg<uint32_or_64_or_128_t<T>> {
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auto prefix = 0u;
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auto abs_value = static_cast<uint32_or_64_or_128_t<T>>(value);
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if (is_negative(value)) {
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prefix = 0x01000000 | '-';
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abs_value = 0 - abs_value;
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} else {
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constexpr const unsigned prefixes[4] = {0, 0, 0x1000000u | '+',
0x1000000u | ' '};
prefix = prefixes[sign];
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}
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return {abs_value, prefix};
}
template <typename Char, typename OutputIt, typename T>
FMT_CONSTEXPR FMT_INLINE auto write_int(OutputIt out, write_int_arg<T> arg,
const basic_format_specs<Char>& specs,
locale_ref loc) -> OutputIt {
static_assert(std::is_same<T, uint32_or_64_or_128_t<T>>::value, "");
auto abs_value = arg.abs_value;
auto prefix = arg.prefix;
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switch (specs.type) {
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case presentation_type::none:
case presentation_type::dec: {
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if (specs.localized &&
write_int_localized(out, static_cast<uint64_or_128_t<T>>(abs_value),
prefix, specs, loc)) {
return out;
}
auto num_digits = count_digits(abs_value);
return write_int(
out, num_digits, prefix, specs, [=](reserve_iterator<OutputIt> it) {
return format_decimal<Char>(it, abs_value, num_digits).end;
});
}
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case presentation_type::hex_lower:
case presentation_type::hex_upper: {
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bool upper = specs.type == presentation_type::hex_upper;
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if (specs.alt)
prefix_append(prefix, unsigned(upper ? 'X' : 'x') << 8 | '0');
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int num_digits = count_digits<4>(abs_value);
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return write_int(
out, num_digits, prefix, specs, [=](reserve_iterator<OutputIt> it) {
return format_uint<4, Char>(it, abs_value, num_digits, upper);
});
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}
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case presentation_type::bin_lower:
case presentation_type::bin_upper: {
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bool upper = specs.type == presentation_type::bin_upper;
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if (specs.alt)
prefix_append(prefix, unsigned(upper ? 'B' : 'b') << 8 | '0');
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int num_digits = count_digits<1>(abs_value);
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return write_int(out, num_digits, prefix, specs,
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[=](reserve_iterator<OutputIt> it) {
return format_uint<1, Char>(it, abs_value, num_digits);
});
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}
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case presentation_type::oct: {
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int num_digits = count_digits<3>(abs_value);
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// Octal prefix '0' is counted as a digit, so only add it if precision
// is not greater than the number of digits.
if (specs.alt && specs.precision <= num_digits && abs_value != 0)
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prefix_append(prefix, '0');
return write_int(out, num_digits, prefix, specs,
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[=](reserve_iterator<OutputIt> it) {
return format_uint<3, Char>(it, abs_value, num_digits);
});
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}
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case presentation_type::chr:
return write_char(out, static_cast<Char>(abs_value), specs);
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default:
throw_format_error("invalid type specifier");
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}
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return out;
}
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template <typename Char, typename OutputIt, typename T>
FMT_CONSTEXPR FMT_NOINLINE auto write_int_noinline(
OutputIt out, write_int_arg<T> arg, const basic_format_specs<Char>& specs,
locale_ref loc) -> OutputIt {
return write_int(out, arg, specs, loc);
}
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template <typename Char, typename OutputIt, typename T,
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FMT_ENABLE_IF(is_integral<T>::value &&
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!std::is_same<T, bool>::value &&
std::is_same<OutputIt, buffer_appender<Char>>::value)>
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FMT_CONSTEXPR FMT_INLINE auto write(OutputIt out, T value,
const basic_format_specs<Char>& specs,
locale_ref loc) -> OutputIt {
return write_int_noinline(out, make_write_int_arg(value, specs.sign), specs,
loc);
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}
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// An inlined version of write used in format string compilation.
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template <typename Char, typename OutputIt, typename T,
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FMT_ENABLE_IF(is_integral<T>::value &&
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!std::is_same<T, bool>::value &&
!std::is_same<OutputIt, buffer_appender<Char>>::value)>
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FMT_CONSTEXPR FMT_INLINE auto write(OutputIt out, T value,
const basic_format_specs<Char>& specs,
locale_ref loc) -> OutputIt {
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return write_int(out, make_write_int_arg(value, specs.sign), specs, loc);
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}
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template <typename Char, typename OutputIt>
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FMT_CONSTEXPR auto write(OutputIt out, basic_string_view<Char> s,
const basic_format_specs<Char>& specs) -> OutputIt {
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auto data = s.data();
auto size = s.size();
if (specs.precision >= 0 && to_unsigned(specs.precision) < size)
size = code_point_index(s, to_unsigned(specs.precision));
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auto width =
specs.width != 0 ? compute_width(basic_string_view<Char>(data, size)) : 0;
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return write_padded(out, specs, size, width,
[=](reserve_iterator<OutputIt> it) {
return copy_str<Char>(data, data + size, it);
});
}
template <typename Char, typename OutputIt>
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FMT_CONSTEXPR auto write(OutputIt out,
basic_string_view<type_identity_t<Char>> s,
const basic_format_specs<Char>& specs, locale_ref)
-> OutputIt {
check_string_type_spec(specs.type);
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return write(out, s, specs);
}
template <typename Char, typename OutputIt>
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FMT_CONSTEXPR auto write(OutputIt out, const Char* s,
const basic_format_specs<Char>& specs, locale_ref)
-> OutputIt {
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return check_cstring_type_spec(specs.type)
? write(out, basic_string_view<Char>(s), specs, {})
: write_ptr<Char>(out, to_uintptr(s), &specs);
}
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template <typename Char, typename OutputIt>
FMT_CONSTEXPR20 auto write_nonfinite(OutputIt out, bool isinf,
basic_format_specs<Char> specs,
const float_specs& fspecs) -> OutputIt {
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auto str =
isinf ? (fspecs.upper ? "INF" : "inf") : (fspecs.upper ? "NAN" : "nan");
constexpr size_t str_size = 3;
auto sign = fspecs.sign;
auto size = str_size + (sign ? 1 : 0);
// Replace '0'-padding with space for non-finite values.
const bool is_zero_fill =
specs.fill.size() == 1 && *specs.fill.data() == static_cast<Char>('0');
if (is_zero_fill) specs.fill[0] = static_cast<Char>(' ');
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return write_padded(out, specs, size, [=](reserve_iterator<OutputIt> it) {
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if (sign) *it++ = detail::sign<Char>(sign);
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return copy_str<Char>(str, str + str_size, it);
});
}
// A decimal floating-point number significand * pow(10, exp).
struct big_decimal_fp {
const char* significand;
int significand_size;
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int exponent;
};
constexpr auto get_significand_size(const big_decimal_fp& fp) -> int {
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return fp.significand_size;
}
template <typename T>
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inline auto get_significand_size(const dragonbox::decimal_fp<T>& fp) -> int {
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return count_digits(fp.significand);
}
template <typename Char, typename OutputIt>
constexpr auto write_significand(OutputIt out, const char* significand,
int significand_size) -> OutputIt {
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return copy_str<Char>(significand, significand + significand_size, out);
}
template <typename Char, typename OutputIt, typename UInt>
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inline auto write_significand(OutputIt out, UInt significand,
int significand_size) -> OutputIt {
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return format_decimal<Char>(out, significand, significand_size).end;
}
template <typename Char, typename OutputIt, typename T, typename Grouping>
FMT_CONSTEXPR20 auto write_significand(OutputIt out, T significand,
int significand_size, int exponent,
const Grouping& grouping) -> OutputIt {
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if (!grouping.separator()) {
out = write_significand<Char>(out, significand, significand_size);
return detail::fill_n(out, exponent, static_cast<Char>('0'));
}
auto buffer = memory_buffer();
write_significand<char>(appender(buffer), significand, significand_size);
detail::fill_n(appender(buffer), exponent, '0');
return grouping.apply(out, string_view(buffer.data(), buffer.size()));
}
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template <typename Char, typename UInt,
FMT_ENABLE_IF(std::is_integral<UInt>::value)>
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inline auto write_significand(Char* out, UInt significand, int significand_size,
int integral_size, Char decimal_point) -> Char* {
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if (!decimal_point)
return format_decimal(out, significand, significand_size).end;
out += significand_size + 1;
Char* end = out;
int floating_size = significand_size - integral_size;
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for (int i = floating_size / 2; i > 0; --i) {
out -= 2;
copy2(out, digits2(significand % 100));
significand /= 100;
}
if (floating_size % 2 != 0) {
*--out = static_cast<Char>('0' + significand % 10);
significand /= 10;
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}
*--out = decimal_point;
format_decimal(out - integral_size, significand, integral_size);
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return end;
}
template <typename OutputIt, typename UInt, typename Char,
FMT_ENABLE_IF(!std::is_pointer<remove_cvref_t<OutputIt>>::value)>
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inline auto write_significand(OutputIt out, UInt significand,
int significand_size, int integral_size,
Char decimal_point) -> OutputIt {
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// Buffer is large enough to hold digits (digits10 + 1) and a decimal point.
Char buffer[digits10<UInt>() + 2];
auto end = write_significand(buffer, significand, significand_size,
integral_size, decimal_point);
return detail::copy_str_noinline<Char>(buffer, end, out);
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}
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template <typename OutputIt, typename Char>
FMT_CONSTEXPR auto write_significand(OutputIt out, const char* significand,
int significand_size, int integral_size,
Char decimal_point) -> OutputIt {
out = detail::copy_str_noinline<Char>(significand,
significand + integral_size, out);
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if (!decimal_point) return out;
*out++ = decimal_point;
return detail::copy_str_noinline<Char>(significand + integral_size,
significand + significand_size, out);
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}
template <typename OutputIt, typename Char, typename T, typename Grouping>
FMT_CONSTEXPR20 auto write_significand(OutputIt out, T significand,
int significand_size, int integral_size,
Char decimal_point,
const Grouping& grouping) -> OutputIt {
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if (!grouping.separator()) {
return write_significand(out, significand, significand_size, integral_size,
decimal_point);
}
auto buffer = basic_memory_buffer<Char>();
write_significand(buffer_appender<Char>(buffer), significand,
significand_size, integral_size, decimal_point);
grouping.apply(
out, basic_string_view<Char>(buffer.data(), to_unsigned(integral_size)));
return detail::copy_str_noinline<Char>(buffer.data() + integral_size,
buffer.end(), out);
}
template <typename OutputIt, typename DecimalFP, typename Char,
typename Grouping = digit_grouping<Char>>
FMT_CONSTEXPR20 auto do_write_float(OutputIt out, const DecimalFP& fp,
const basic_format_specs<Char>& specs,
float_specs fspecs, locale_ref loc)
-> OutputIt {
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auto significand = fp.significand;
int significand_size = get_significand_size(fp);
constexpr Char zero = static_cast<Char>('0');
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auto sign = fspecs.sign;
size_t size = to_unsigned(significand_size) + (sign ? 1 : 0);
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using iterator = reserve_iterator<OutputIt>;
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Char decimal_point =
fspecs.locale ? detail::decimal_point<Char>(loc) : static_cast<Char>('.');
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int output_exp = fp.exponent + significand_size - 1;
auto use_exp_format = [=]() {
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if (fspecs.format == float_format::exp) return true;
if (fspecs.format != float_format::general) return false;
// Use the fixed notation if the exponent is in [exp_lower, exp_upper),
// e.g. 0.0001 instead of 1e-04. Otherwise use the exponent notation.
const int exp_lower = -4, exp_upper = 16;
return output_exp < exp_lower ||
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output_exp >= (fspecs.precision > 0 ? fspecs.precision : exp_upper);
};
if (use_exp_format()) {
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int num_zeros = 0;
if (fspecs.showpoint) {
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num_zeros = fspecs.precision - significand_size;
if (num_zeros < 0) num_zeros = 0;
size += to_unsigned(num_zeros);
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} else if (significand_size == 1) {
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decimal_point = Char();
}
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auto abs_output_exp = output_exp >= 0 ? output_exp : -output_exp;
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int exp_digits = 2;
if (abs_output_exp >= 100) exp_digits = abs_output_exp >= 1000 ? 4 : 3;
size += to_unsigned((decimal_point ? 1 : 0) + 2 + exp_digits);
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char exp_char = fspecs.upper ? 'E' : 'e';
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auto write = [=](iterator it) {
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if (sign) *it++ = detail::sign<Char>(sign);
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// Insert a decimal point after the first digit and add an exponent.
it = write_significand(it, significand, significand_size, 1,
decimal_point);
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if (num_zeros > 0) it = detail::fill_n(it, num_zeros, zero);
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*it++ = static_cast<Char>(exp_char);
return write_exponent<Char>(output_exp, it);
};
return specs.width > 0 ? write_padded<align::right>(out, specs, size, write)
: base_iterator(out, write(reserve(out, size)));
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}
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int exp = fp.exponent + significand_size;
if (fp.exponent >= 0) {
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// 1234e5 -> 123400000[.0+]
size += to_unsigned(fp.exponent);
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int num_zeros = fspecs.precision - exp;
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#ifdef FMT_FUZZ
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if (num_zeros > 5000)
throw std::runtime_error("fuzz mode - avoiding excessive cpu use");
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#endif
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if (fspecs.showpoint) {
if (num_zeros <= 0 && fspecs.format != float_format::fixed) num_zeros = 1;
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if (num_zeros > 0) size += to_unsigned(num_zeros) + 1;
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}
auto grouping = Grouping(loc, fspecs.locale);
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size += to_unsigned(grouping.count_separators(significand_size));
return write_padded<align::right>(out, specs, size, [&](iterator it) {
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if (sign) *it++ = detail::sign<Char>(sign);
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it = write_significand<Char>(it, significand, significand_size,
fp.exponent, grouping);
if (!fspecs.showpoint) return it;
*it++ = decimal_point;
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return num_zeros > 0 ? detail::fill_n(it, num_zeros, zero) : it;
});
} else if (exp > 0) {
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// 1234e-2 -> 12.34[0+]
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int num_zeros = fspecs.showpoint ? fspecs.precision - significand_size : 0;
size += 1 + to_unsigned(num_zeros > 0 ? num_zeros : 0);
auto grouping = Grouping(loc, fspecs.locale);
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size += to_unsigned(grouping.count_separators(significand_size));
return write_padded<align::right>(out, specs, size, [&](iterator it) {
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if (sign) *it++ = detail::sign<Char>(sign);
it = write_significand(it, significand, significand_size, exp,
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decimal_point, grouping);
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return num_zeros > 0 ? detail::fill_n(it, num_zeros, zero) : it;
});
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}
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// 1234e-6 -> 0.001234
int num_zeros = -exp;
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if (significand_size == 0 && fspecs.precision >= 0 &&
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fspecs.precision < num_zeros) {
num_zeros = fspecs.precision;
}
bool pointy = num_zeros != 0 || significand_size != 0 || fspecs.showpoint;
size += 1 + (pointy ? 1 : 0) + to_unsigned(num_zeros);
return write_padded<align::right>(out, specs, size, [&](iterator it) {
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if (sign) *it++ = detail::sign<Char>(sign);
*it++ = zero;
if (!pointy) return it;
*it++ = decimal_point;
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it = detail::fill_n(it, num_zeros, zero);
return write_significand<Char>(it, significand, significand_size);
});
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}
template <typename Char> class fallback_digit_grouping {
public:
constexpr fallback_digit_grouping(locale_ref, bool) {}
constexpr Char separator() const { return Char(); }
constexpr int count_separators(int) const { return 0; }
template <typename Out, typename C>
constexpr Out apply(Out out, basic_string_view<C>) const {
return out;
}
};
template <typename OutputIt, typename DecimalFP, typename Char>
FMT_CONSTEXPR20 auto write_float(OutputIt out, const DecimalFP& fp,
const basic_format_specs<Char>& specs,
float_specs fspecs, locale_ref loc)
-> OutputIt {
if (is_constant_evaluated()) {
return do_write_float<OutputIt, DecimalFP, Char,
fallback_digit_grouping<Char>>(out, fp, specs, fspecs,
loc);
} else {
return do_write_float(out, fp, specs, fspecs, loc);
}
}
template <typename T, FMT_ENABLE_IF(std::is_floating_point<T>::value)>
FMT_CONSTEXPR20 bool isinf(T value) {
if (is_constant_evaluated()) {
#if defined(__cpp_if_constexpr)
if constexpr (std::numeric_limits<double>::is_iec559) {
auto bits = detail::bit_cast<uint64_t>(static_cast<double>(value));
constexpr auto significand_bits =
dragonbox::float_info<double>::significand_bits;
return (bits & exponent_mask<double>()) &&
!(bits & ((uint64_t(1) << significand_bits) - 1));
}
#endif
}
return std::isinf(value);
}
template <typename T, FMT_ENABLE_IF(std::is_floating_point<T>::value)>
FMT_CONSTEXPR20 bool isfinite(T value) {
if (is_constant_evaluated()) {
#if defined(__cpp_if_constexpr)
if constexpr (std::numeric_limits<double>::is_iec559) {
auto bits = detail::bit_cast<uint64_t>(static_cast<double>(value));
return (bits & exponent_mask<double>()) != exponent_mask<double>();
}
#endif
}
return std::isfinite(value);
}
template <typename T, FMT_ENABLE_IF(std::is_floating_point<T>::value)>
FMT_INLINE FMT_CONSTEXPR bool signbit(T value) {
if (is_constant_evaluated()) {
#ifdef __cpp_if_constexpr
if constexpr (std::numeric_limits<double>::is_iec559) {
auto bits = detail::bit_cast<uint64_t>(static_cast<double>(value));
return (bits & (uint64_t(1) << (num_bits<uint64_t>() - 1))) != 0;
}
#endif
}
return std::signbit(value);
}
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template <typename Char, typename OutputIt, typename T,
FMT_ENABLE_IF(std::is_floating_point<T>::value)>
FMT_CONSTEXPR20 auto write(OutputIt out, T value,
basic_format_specs<Char> specs, locale_ref loc = {})
-> OutputIt {
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if (const_check(!is_supported_floating_point(value))) return out;
float_specs fspecs = parse_float_type_spec(specs);
fspecs.sign = specs.sign;
if (detail::signbit(value)) { // value < 0 is false for NaN so use signbit.
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fspecs.sign = sign::minus;
value = -value;
} else if (fspecs.sign == sign::minus) {
fspecs.sign = sign::none;
}
if (!detail::isfinite(value))
return write_nonfinite(out, detail::isinf(value), specs, fspecs);
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if (specs.align == align::numeric && fspecs.sign) {
auto it = reserve(out, 1);
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*it++ = detail::sign<Char>(fspecs.sign);
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out = base_iterator(out, it);
fspecs.sign = sign::none;
if (specs.width != 0) --specs.width;
}
memory_buffer buffer;
if (fspecs.format == float_format::hex) {
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if (fspecs.sign) buffer.push_back(detail::sign<char>(fspecs.sign));
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snprintf_float(promote_float(value), specs.precision, fspecs, buffer);
return write_bytes<align::right>(out, {buffer.data(), buffer.size()},
specs);
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}
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int precision = specs.precision >= 0 || specs.type == presentation_type::none
? specs.precision
: 6;
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if (fspecs.format == float_format::exp) {
if (precision == max_value<int>())
throw_format_error("number is too big");
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else
++precision;
}
if (const_check(std::is_same<T, float>())) fspecs.binary32 = true;
if (!is_fast_float<T>()) fspecs.fallback = true;
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int exp = format_float(promote_float(value), precision, fspecs, buffer);
fspecs.precision = precision;
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auto fp = big_decimal_fp{buffer.data(), static_cast<int>(buffer.size()), exp};
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return write_float(out, fp, specs, fspecs, loc);
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}
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template <typename Char, typename OutputIt, typename T,
FMT_ENABLE_IF(is_fast_float<T>::value)>
FMT_CONSTEXPR20 auto write(OutputIt out, T value) -> OutputIt {
if (is_constant_evaluated()) {
return write(out, value, basic_format_specs<Char>());
}
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if (const_check(!is_supported_floating_point(value))) return out;
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using floaty = conditional_t<std::is_same<T, long double>::value, double, T>;
using uint = typename dragonbox::float_info<floaty>::carrier_uint;
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auto bits = bit_cast<uint>(value);
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auto fspecs = float_specs();
if (detail::signbit(value)) {
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fspecs.sign = sign::minus;
value = -value;
}
constexpr auto specs = basic_format_specs<Char>();
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uint mask = exponent_mask<floaty>();
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if ((bits & mask) == mask)
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return write_nonfinite(out, std::isinf(value), specs, fspecs);
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auto dec = dragonbox::to_decimal(static_cast<floaty>(value));
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return write_float(out, dec, specs, fspecs, {});
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}
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template <typename Char, typename OutputIt, typename T,
FMT_ENABLE_IF(std::is_floating_point<T>::value &&
!is_fast_float<T>::value)>
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inline auto write(OutputIt out, T value) -> OutputIt {
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return write(out, value, basic_format_specs<Char>());
}
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template <typename Char, typename OutputIt>
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auto write(OutputIt out, monostate, basic_format_specs<Char> = {},
locale_ref = {}) -> OutputIt {
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FMT_ASSERT(false, "");
return out;
}
template <typename Char, typename OutputIt>
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FMT_CONSTEXPR auto write(OutputIt out, basic_string_view<Char> value)
-> OutputIt {
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auto it = reserve(out, value.size());
it = copy_str_noinline<Char>(value.begin(), value.end(), it);
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return base_iterator(out, it);
}
template <typename Char, typename OutputIt, typename T,
FMT_ENABLE_IF(is_string<T>::value)>
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constexpr auto write(OutputIt out, const T& value) -> OutputIt {
return write<Char>(out, to_string_view(value));
}
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template <typename Char, typename OutputIt, typename T,
FMT_ENABLE_IF(is_integral<T>::value &&
!std::is_same<T, bool>::value &&
!std::is_same<T, Char>::value)>
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FMT_CONSTEXPR auto write(OutputIt out, T value) -> OutputIt {
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auto abs_value = static_cast<uint32_or_64_or_128_t<T>>(value);
bool negative = is_negative(value);
// Don't do -abs_value since it trips unsigned-integer-overflow sanitizer.
if (negative) abs_value = ~abs_value + 1;
int num_digits = count_digits(abs_value);
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auto size = (negative ? 1 : 0) + static_cast<size_t>(num_digits);
auto it = reserve(out, size);
if (auto ptr = to_pointer<Char>(it, size)) {
if (negative) *ptr++ = static_cast<Char>('-');
format_decimal<Char>(ptr, abs_value, num_digits);
return out;
}
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if (negative) *it++ = static_cast<Char>('-');
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it = format_decimal<Char>(it, abs_value, num_digits).end;
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return base_iterator(out, it);
}
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// FMT_ENABLE_IF() condition separated to workaround an MSVC bug.
template <
typename Char, typename OutputIt, typename T,
bool check =
std::is_enum<T>::value && !std::is_same<T, Char>::value &&
mapped_type_constant<T, basic_format_context<OutputIt, Char>>::value !=
type::custom_type,
FMT_ENABLE_IF(check)>
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FMT_CONSTEXPR auto write(OutputIt out, T value) -> OutputIt {
return write<Char>(
out, static_cast<typename std::underlying_type<T>::type>(value));
}
template <typename Char, typename OutputIt, typename T,
FMT_ENABLE_IF(std::is_same<T, bool>::value)>
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FMT_CONSTEXPR auto write(OutputIt out, T value,
const basic_format_specs<Char>& specs = {},
locale_ref = {}) -> OutputIt {
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return specs.type != presentation_type::none &&
specs.type != presentation_type::string
? write(out, value ? 1 : 0, specs, {})
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: write_bytes(out, value ? "true" : "false", specs);
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}
template <typename Char, typename OutputIt>
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FMT_CONSTEXPR auto write(OutputIt out, Char value) -> OutputIt {
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auto it = reserve(out, 1);
*it++ = value;
return base_iterator(out, it);
}
template <typename Char, typename OutputIt>
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FMT_CONSTEXPR_CHAR_TRAITS auto write(OutputIt out, const Char* value)
-> OutputIt {
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if (!value) {
throw_format_error("string pointer is null");
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} else {
out = write(out, basic_string_view<Char>(value));
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}
return out;
}
template <typename Char, typename OutputIt, typename T,
FMT_ENABLE_IF(std::is_same<T, void>::value)>
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auto write(OutputIt out, const T* value,
const basic_format_specs<Char>& specs = {}, locale_ref = {})
-> OutputIt {
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check_pointer_type_spec(specs.type, error_handler());
return write_ptr<Char>(out, to_uintptr(value), &specs);
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}
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// A write overload that handles implicit conversions.
template <typename Char, typename OutputIt, typename T,
typename Context = basic_format_context<OutputIt, Char>>
FMT_CONSTEXPR auto write(OutputIt out, const T& value) -> enable_if_t<
std::is_class<T>::value && !is_string<T>::value &&
!std::is_same<T, Char>::value &&
!std::is_same<const T&,
decltype(arg_mapper<Context>().map(value))>::value,
OutputIt> {
return write<Char>(out, arg_mapper<Context>().map(value));
}
template <typename Char, typename OutputIt, typename T,
typename Context = basic_format_context<OutputIt, Char>>
FMT_CONSTEXPR auto write(OutputIt out, const T& value)
-> enable_if_t<mapped_type_constant<T, Context>::value == type::custom_type,
OutputIt> {
using formatter_type =
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conditional_t<has_formatter<T, Context>::value,
typename Context::template formatter_type<T>,
fallback_formatter<T, Char>>;
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auto ctx = Context(out, {}, {});
return formatter_type().format(value, ctx);
}
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// An argument visitor that formats the argument and writes it via the output
// iterator. It's a class and not a generic lambda for compatibility with C++11.
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template <typename Char> struct default_arg_formatter {
using iterator = buffer_appender<Char>;
using context = buffer_context<Char>;
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iterator out;
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basic_format_args<context> args;
locale_ref loc;
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template <typename T> auto operator()(T value) -> iterator {
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return write<Char>(out, value);
}
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auto operator()(typename basic_format_arg<context>::handle h) -> iterator {
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basic_format_parse_context<Char> parse_ctx({});
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context format_ctx(out, args, loc);
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h.format(parse_ctx, format_ctx);
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return format_ctx.out();
}
};
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template <typename Char> struct arg_formatter {
using iterator = buffer_appender<Char>;
using context = buffer_context<Char>;
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iterator out;
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const basic_format_specs<Char>& specs;
locale_ref locale;
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template <typename T>
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FMT_CONSTEXPR FMT_INLINE auto operator()(T value) -> iterator {
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return detail::write(out, value, specs, locale);
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}
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auto operator()(typename basic_format_arg<context>::handle) -> iterator {
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// User-defined types are handled separately because they require access
// to the parse context.
return out;
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}
};
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template <typename Char> struct custom_formatter {
basic_format_parse_context<Char>& parse_ctx;
buffer_context<Char>& ctx;
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void operator()(
typename basic_format_arg<buffer_context<Char>>::handle h) const {
h.format(parse_ctx, ctx);
}
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template <typename T> void operator()(T) const {}
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};
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template <typename T>
using is_integer =
bool_constant<is_integral<T>::value && !std::is_same<T, bool>::value &&
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!std::is_same<T, char>::value &&
!std::is_same<T, wchar_t>::value>;
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template <typename ErrorHandler> class width_checker {
public:
explicit FMT_CONSTEXPR width_checker(ErrorHandler& eh) : handler_(eh) {}
template <typename T, FMT_ENABLE_IF(is_integer<T>::value)>
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FMT_CONSTEXPR auto operator()(T value) -> unsigned long long {
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if (is_negative(value)) handler_.on_error("negative width");
return static_cast<unsigned long long>(value);
}
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template <typename T, FMT_ENABLE_IF(!is_integer<T>::value)>
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FMT_CONSTEXPR auto operator()(T) -> unsigned long long {
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handler_.on_error("width is not integer");
return 0;
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}
private:
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ErrorHandler& handler_;
};
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template <typename ErrorHandler> class precision_checker {
public:
explicit FMT_CONSTEXPR precision_checker(ErrorHandler& eh) : handler_(eh) {}
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template <typename T, FMT_ENABLE_IF(is_integer<T>::value)>
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FMT_CONSTEXPR auto operator()(T value) -> unsigned long long {
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if (is_negative(value)) handler_.on_error("negative precision");
return static_cast<unsigned long long>(value);
}
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template <typename T, FMT_ENABLE_IF(!is_integer<T>::value)>
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FMT_CONSTEXPR auto operator()(T) -> unsigned long long {
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handler_.on_error("precision is not integer");
return 0;
}
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private:
ErrorHandler& handler_;
};
template <template <typename> class Handler, typename FormatArg,
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typename ErrorHandler>
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FMT_CONSTEXPR auto get_dynamic_spec(FormatArg arg, ErrorHandler eh) -> int {
unsigned long long value = visit_format_arg(Handler<ErrorHandler>(eh), arg);
if (value > to_unsigned(max_value<int>())) eh.on_error("number is too big");
return static_cast<int>(value);
}
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template <typename Context, typename ID>
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FMT_CONSTEXPR auto get_arg(Context& ctx, ID id) ->
typename Context::format_arg {
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auto arg = ctx.arg(id);
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if (!arg) ctx.on_error("argument not found");
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return arg;
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}
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// The standard format specifier handler with checking.
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template <typename Char> class specs_handler : public specs_setter<Char> {
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private:
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basic_format_parse_context<Char>& parse_context_;
buffer_context<Char>& context_;
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// This is only needed for compatibility with gcc 4.4.
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using format_arg = basic_format_arg<buffer_context<Char>>;
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FMT_CONSTEXPR auto get_arg(auto_id) -> format_arg {
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return detail::get_arg(context_, parse_context_.next_arg_id());
}
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FMT_CONSTEXPR auto get_arg(int arg_id) -> format_arg {
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parse_context_.check_arg_id(arg_id);
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return detail::get_arg(context_, arg_id);
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}
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FMT_CONSTEXPR auto get_arg(basic_string_view<Char> arg_id) -> format_arg {
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parse_context_.check_arg_id(arg_id);
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return detail::get_arg(context_, arg_id);
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}
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public:
FMT_CONSTEXPR specs_handler(basic_format_specs<Char>& specs,
basic_format_parse_context<Char>& parse_ctx,
buffer_context<Char>& ctx)
: specs_setter<Char>(specs), parse_context_(parse_ctx), context_(ctx) {}
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template <typename Id> FMT_CONSTEXPR void on_dynamic_width(Id arg_id) {
this->specs_.width = get_dynamic_spec<width_checker>(
get_arg(arg_id), context_.error_handler());
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}
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template <typename Id> FMT_CONSTEXPR void on_dynamic_precision(Id arg_id) {
this->specs_.precision = get_dynamic_spec<precision_checker>(
get_arg(arg_id), context_.error_handler());
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}
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void on_error(const char* message) { context_.on_error(message); }
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};
template <template <typename> class Handler, typename Context>
FMT_CONSTEXPR void handle_dynamic_spec(int& value,
arg_ref<typename Context::char_type> ref,
Context& ctx) {
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switch (ref.kind) {
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case arg_id_kind::none:
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break;
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case arg_id_kind::index:
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value = detail::get_dynamic_spec<Handler>(ctx.arg(ref.val.index),
ctx.error_handler());
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break;
case arg_id_kind::name:
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value = detail::get_dynamic_spec<Handler>(ctx.arg(ref.val.name),
ctx.error_handler());
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break;
}
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}
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#define FMT_STRING_IMPL(s, base, explicit) \
[] { \
/* Use the hidden visibility as a workaround for a GCC bug (#1973). */ \
/* Use a macro-like name to avoid shadowing warnings. */ \
struct FMT_GCC_VISIBILITY_HIDDEN FMT_COMPILE_STRING : base { \
using char_type = fmt::remove_cvref_t<decltype(s[0])>; \
FMT_MAYBE_UNUSED FMT_CONSTEXPR explicit \
operator fmt::basic_string_view<char_type>() const { \
return fmt::detail_exported::compile_string_to_view<char_type>(s); \
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} \
}; \
return FMT_COMPILE_STRING(); \
}()
/**
\rst
Constructs a compile-time format string from a string literal *s*.
**Example**::
// A compile-time error because 'd' is an invalid specifier for strings.
std::string s = fmt::format(FMT_STRING("{:d}"), "foo");
\endrst
*/
#define FMT_STRING(s) FMT_STRING_IMPL(s, fmt::compile_string, )
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#if FMT_USE_USER_DEFINED_LITERALS
template <typename Char> struct udl_formatter {
basic_string_view<Char> str;
template <typename... T>
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auto operator()(T&&... args) const -> std::basic_string<Char> {
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return vformat(str, fmt::make_args_checked<T...>(str, args...));
}
};
# if FMT_USE_NONTYPE_TEMPLATE_PARAMETERS
template <typename T, typename Char, size_t N,
fmt::detail_exported::fixed_string<Char, N> Str>
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struct statically_named_arg : view {
static constexpr auto name = Str.data;
const T& value;
statically_named_arg(const T& v) : value(v) {}
};
template <typename T, typename Char, size_t N,
fmt::detail_exported::fixed_string<Char, N> Str>
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struct is_named_arg<statically_named_arg<T, Char, N, Str>> : std::true_type {};
template <typename T, typename Char, size_t N,
fmt::detail_exported::fixed_string<Char, N> Str>
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struct is_statically_named_arg<statically_named_arg<T, Char, N, Str>>
: std::true_type {};
template <typename Char, size_t N,
fmt::detail_exported::fixed_string<Char, N> Str>
struct udl_arg {
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template <typename T> auto operator=(T&& value) const {
return statically_named_arg<T, Char, N, Str>(std::forward<T>(value));
}
};
# else
template <typename Char> struct udl_arg {
const Char* str;
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template <typename T> auto operator=(T&& value) const -> named_arg<Char, T> {
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return {str, std::forward<T>(value)};
}
};
# endif
#endif // FMT_USE_USER_DEFINED_LITERALS
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template <typename Locale, typename Char>
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auto vformat(const Locale& loc, basic_string_view<Char> format_str,
basic_format_args<buffer_context<type_identity_t<Char>>> args)
-> std::basic_string<Char> {
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basic_memory_buffer<Char> buffer;
detail::vformat_to(buffer, format_str, args, detail::locale_ref(loc));
return {buffer.data(), buffer.size()};
}
using format_func = void (*)(detail::buffer<char>&, int, const char*);
FMT_API void format_error_code(buffer<char>& out, int error_code,
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string_view message) noexcept;
FMT_API void report_error(format_func func, int error_code,
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const char* message) noexcept;
FMT_END_DETAIL_NAMESPACE
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FMT_API auto vsystem_error(int error_code, string_view format_str,
format_args args) -> std::system_error;
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/**
\rst
Constructs :class:`std::system_error` with a message formatted with
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``fmt::format(fmt, args...)``.
*error_code* is a system error code as given by ``errno``.
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**Example**::
// This throws std::system_error with the description
// cannot open file 'madeup': No such file or directory
// or similar (system message may vary).
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const char* filename = "madeup";
std::FILE* file = std::fopen(filename, "r");
if (!file)
throw fmt::system_error(errno, "cannot open file '{}'", filename);
\endrst
*/
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template <typename... T>
auto system_error(int error_code, format_string<T...> fmt, T&&... args)
-> std::system_error {
return vsystem_error(error_code, fmt, fmt::make_format_args(args...));
}
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/**
\rst
Formats an error message for an error returned by an operating system or a
language runtime, for example a file opening error, and writes it to *out*.
The format is the same as the one used by ``std::system_error(ec, message)``
where ``ec`` is ``std::error_code(error_code, std::generic_category()})``.
It is implementation-defined but normally looks like:
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.. parsed-literal::
*<message>*: *<system-message>*
where *<message>* is the passed message and *<system-message>* is the system
message corresponding to the error code.
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*error_code* is a system error code as given by ``errno``.
\endrst
*/
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FMT_API void format_system_error(detail::buffer<char>& out, int error_code,
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const char* message) noexcept;
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// Reports a system error without throwing an exception.
// Can be used to report errors from destructors.
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FMT_API void report_system_error(int error_code, const char* message) noexcept;
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/** Fast integer formatter. */
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class format_int {
private:
// Buffer should be large enough to hold all digits (digits10 + 1),
// a sign and a null character.
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enum { buffer_size = std::numeric_limits<unsigned long long>::digits10 + 3 };
mutable char buffer_[buffer_size];
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char* str_;
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template <typename UInt> auto format_unsigned(UInt value) -> char* {
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auto n = static_cast<detail::uint32_or_64_or_128_t<UInt>>(value);
return detail::format_decimal(buffer_, n, buffer_size - 1).begin;
}
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template <typename Int> auto format_signed(Int value) -> char* {
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auto abs_value = static_cast<detail::uint32_or_64_or_128_t<Int>>(value);
bool negative = value < 0;
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if (negative) abs_value = 0 - abs_value;
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auto begin = format_unsigned(abs_value);
if (negative) *--begin = '-';
return begin;
}
public:
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explicit format_int(int value) : str_(format_signed(value)) {}
explicit format_int(long value) : str_(format_signed(value)) {}
explicit format_int(long long value) : str_(format_signed(value)) {}
explicit format_int(unsigned value) : str_(format_unsigned(value)) {}
explicit format_int(unsigned long value) : str_(format_unsigned(value)) {}
explicit format_int(unsigned long long value)
: str_(format_unsigned(value)) {}
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/** Returns the number of characters written to the output buffer. */
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auto size() const -> size_t {
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return detail::to_unsigned(buffer_ - str_ + buffer_size - 1);
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}
/**
Returns a pointer to the output buffer content. No terminating null
character is appended.
*/
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auto data() const -> const char* { return str_; }
/**
Returns a pointer to the output buffer content with terminating null
character appended.
*/
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auto c_str() const -> const char* {
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buffer_[buffer_size - 1] = '\0';
return str_;
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}
/**
\rst
Returns the content of the output buffer as an ``std::string``.
\endrst
*/
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auto str() const -> std::string { return std::string(str_, size()); }
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};
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template <typename T, typename Char>
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template <typename FormatContext>
FMT_CONSTEXPR FMT_INLINE auto
formatter<T, Char,
enable_if_t<detail::type_constant<T, Char>::value !=
detail::type::custom_type>>::format(const T& val,
FormatContext& ctx)
const -> decltype(ctx.out()) {
if (specs_.width_ref.kind != detail::arg_id_kind::none ||
specs_.precision_ref.kind != detail::arg_id_kind::none) {
auto specs = specs_;
detail::handle_dynamic_spec<detail::width_checker>(specs.width,
specs.width_ref, ctx);
detail::handle_dynamic_spec<detail::precision_checker>(
specs.precision, specs.precision_ref, ctx);
return detail::write<Char>(ctx.out(), val, specs, ctx.locale());
}
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return detail::write<Char>(ctx.out(), val, specs_, ctx.locale());
}
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#define FMT_FORMAT_AS(Type, Base) \
template <typename Char> \
struct formatter<Type, Char> : formatter<Base, Char> { \
template <typename FormatContext> \
auto format(Type const& val, FormatContext& ctx) const \
-> decltype(ctx.out()) { \
return formatter<Base, Char>::format(static_cast<Base>(val), ctx); \
} \
}
FMT_FORMAT_AS(signed char, int);
FMT_FORMAT_AS(unsigned char, unsigned);
FMT_FORMAT_AS(short, int);
FMT_FORMAT_AS(unsigned short, unsigned);
FMT_FORMAT_AS(long, long long);
FMT_FORMAT_AS(unsigned long, unsigned long long);
FMT_FORMAT_AS(Char*, const Char*);
FMT_FORMAT_AS(std::basic_string<Char>, basic_string_view<Char>);
FMT_FORMAT_AS(std::nullptr_t, const void*);
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FMT_FORMAT_AS(detail::byte, unsigned char);
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FMT_FORMAT_AS(detail::std_string_view<Char>, basic_string_view<Char>);
template <typename Char>
struct formatter<void*, Char> : formatter<const void*, Char> {
template <typename FormatContext>
auto format(void* val, FormatContext& ctx) const -> decltype(ctx.out()) {
return formatter<const void*, Char>::format(val, ctx);
}
};
template <typename Char, size_t N>
struct formatter<Char[N], Char> : formatter<basic_string_view<Char>, Char> {
template <typename FormatContext>
FMT_CONSTEXPR auto format(const Char* val, FormatContext& ctx) const
-> decltype(ctx.out()) {
return formatter<basic_string_view<Char>, Char>::format(val, ctx);
}
};
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// A formatter for types known only at run time such as variant alternatives.
//
// Usage:
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// using variant = std::variant<int, std::string>;
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// template <>
// struct formatter<variant>: dynamic_formatter<> {
// auto format(const variant& v, format_context& ctx) {
// return visit([&](const auto& val) {
// return dynamic_formatter<>::format(val, ctx);
// }, v);
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// }
// };
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template <typename Char = char> class dynamic_formatter {
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private:
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detail::dynamic_format_specs<Char> specs_;
const Char* format_str_;
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struct null_handler : detail::error_handler {
void on_align(align_t) {}
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void on_sign(sign_t) {}
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void on_hash() {}
};
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template <typename Context> void handle_specs(Context& ctx) {
detail::handle_dynamic_spec<detail::width_checker>(specs_.width,
specs_.width_ref, ctx);
detail::handle_dynamic_spec<detail::precision_checker>(
specs_.precision, specs_.precision_ref, ctx);
}
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public:
template <typename ParseContext>
FMT_CONSTEXPR auto parse(ParseContext& ctx) -> decltype(ctx.begin()) {
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format_str_ = ctx.begin();
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// Checks are deferred to formatting time when the argument type is known.
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detail::dynamic_specs_handler<ParseContext> handler(specs_, ctx);
return detail::parse_format_specs(ctx.begin(), ctx.end(), handler);
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}
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template <typename T, typename FormatContext>
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auto format(const T& val, FormatContext& ctx) -> decltype(ctx.out()) {
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handle_specs(ctx);
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detail::specs_checker<null_handler> checker(
null_handler(), detail::mapped_type_constant<T, FormatContext>::value);
checker.on_align(specs_.align);
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if (specs_.sign != sign::none) checker.on_sign(specs_.sign);
if (specs_.alt) checker.on_hash();
if (specs_.precision >= 0) checker.end_precision();
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return detail::write<Char>(ctx.out(), val, specs_, ctx.locale());
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}
};
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/**
\rst
Converts ``p`` to ``const void*`` for pointer formatting.
**Example**::
auto s = fmt::format("{}", fmt::ptr(p));
\endrst
*/
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template <typename T> auto ptr(T p) -> const void* {
static_assert(std::is_pointer<T>::value, "");
return detail::bit_cast<const void*>(p);
}
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template <typename T> auto ptr(const std::unique_ptr<T>& p) -> const void* {
return p.get();
}
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template <typename T> auto ptr(const std::shared_ptr<T>& p) -> const void* {
return p.get();
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}
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class bytes {
private:
string_view data_;
friend struct formatter<bytes>;
public:
explicit bytes(string_view data) : data_(data) {}
};
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template <> struct formatter<bytes> {
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private:
detail::dynamic_format_specs<char> specs_;
public:
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template <typename ParseContext>
FMT_CONSTEXPR auto parse(ParseContext& ctx) -> decltype(ctx.begin()) {
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using handler_type = detail::dynamic_specs_handler<ParseContext>;
detail::specs_checker<handler_type> handler(handler_type(specs_, ctx),
detail::type::string_type);
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auto it = parse_format_specs(ctx.begin(), ctx.end(), handler);
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detail::check_string_type_spec(specs_.type, ctx.error_handler());
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return it;
}
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template <typename FormatContext>
auto format(bytes b, FormatContext& ctx) -> decltype(ctx.out()) {
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detail::handle_dynamic_spec<detail::width_checker>(specs_.width,
specs_.width_ref, ctx);
detail::handle_dynamic_spec<detail::precision_checker>(
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specs_.precision, specs_.precision_ref, ctx);
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return detail::write_bytes(ctx.out(), b.data_, specs_);
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}
};
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// group_digits_view is not derived from view because it copies the argument.
template <typename T> struct group_digits_view { T value; };
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/**
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\rst
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Returns a view that formats an integer value using ',' as a locale-independent
thousands separator.
**Example**::
fmt::print("{}", fmt::group_digits(12345));
// Output: "12,345"
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\endrst
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*/
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template <typename T> auto group_digits(T value) -> group_digits_view<T> {
return {value};
}
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template <typename T> struct formatter<group_digits_view<T>> : formatter<T> {
private:
detail::dynamic_format_specs<char> specs_;
public:
template <typename ParseContext>
FMT_CONSTEXPR auto parse(ParseContext& ctx) -> decltype(ctx.begin()) {
using handler_type = detail::dynamic_specs_handler<ParseContext>;
detail::specs_checker<handler_type> handler(handler_type(specs_, ctx),
detail::type::int_type);
auto it = parse_format_specs(ctx.begin(), ctx.end(), handler);
detail::check_string_type_spec(specs_.type, ctx.error_handler());
return it;
}
template <typename FormatContext>
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auto format(group_digits_view<T> t, FormatContext& ctx)
-> decltype(ctx.out()) {
detail::handle_dynamic_spec<detail::width_checker>(specs_.width,
specs_.width_ref, ctx);
detail::handle_dynamic_spec<detail::precision_checker>(
specs_.precision, specs_.precision_ref, ctx);
return detail::write_int_localized(
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ctx.out(), static_cast<detail::uint64_or_128_t<T>>(t.value), 0, specs_,
detail::digit_grouping<char>({"\3", ','}));
}
};
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template <typename It, typename Sentinel, typename Char = char>
struct join_view : detail::view {
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It begin;
Sentinel end;
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basic_string_view<Char> sep;
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join_view(It b, Sentinel e, basic_string_view<Char> s)
: begin(b), end(e), sep(s) {}
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};
template <typename It, typename Sentinel, typename Char>
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using arg_join FMT_DEPRECATED_ALIAS = join_view<It, Sentinel, Char>;
template <typename It, typename Sentinel, typename Char>
struct formatter<join_view<It, Sentinel, Char>, Char> {
private:
using value_type =
#ifdef __cpp_lib_ranges
std::iter_value_t<It>;
#else
typename std::iterator_traits<It>::value_type;
#endif
using context = buffer_context<Char>;
using mapper = detail::arg_mapper<context>;
template <typename T, FMT_ENABLE_IF(has_formatter<T, context>::value)>
static auto map(const T& value) -> const T& {
return value;
}
template <typename T, FMT_ENABLE_IF(!has_formatter<T, context>::value)>
static auto map(const T& value) -> decltype(mapper().map(value)) {
return mapper().map(value);
}
using formatter_type =
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conditional_t<is_formattable<value_type, Char>::value,
formatter<remove_cvref_t<decltype(map(
std::declval<const value_type&>()))>,
Char>,
detail::fallback_formatter<value_type, Char>>;
formatter_type value_formatter_;
public:
template <typename ParseContext>
FMT_CONSTEXPR auto parse(ParseContext& ctx) -> decltype(ctx.begin()) {
return value_formatter_.parse(ctx);
}
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template <typename FormatContext>
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auto format(const join_view<It, Sentinel, Char>& value,
FormatContext& ctx) const -> decltype(ctx.out()) {
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auto it = value.begin;
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auto out = ctx.out();
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if (it != value.end) {
out = value_formatter_.format(map(*it), ctx);
++it;
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while (it != value.end) {
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out = detail::copy_str<Char>(value.sep.begin(), value.sep.end(), out);
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ctx.advance_to(out);
out = value_formatter_.format(map(*it), ctx);
++it;
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}
}
return out;
}
};
/**
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Returns a view that formats the iterator range `[begin, end)` with elements
separated by `sep`.
*/
template <typename It, typename Sentinel>
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auto join(It begin, Sentinel end, string_view sep) -> join_view<It, Sentinel> {
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return {begin, end, sep};
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}
/**
\rst
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Returns a view that formats `range` with elements separated by `sep`.
**Example**::
std::vector<int> v = {1, 2, 3};
fmt::print("{}", fmt::join(v, ", "));
// Output: "1, 2, 3"
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``fmt::join`` applies passed format specifiers to the range elements::
fmt::print("{:02}", fmt::join(v, ", "));
// Output: "01, 02, 03"
\endrst
*/
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template <typename Range>
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auto join(Range&& range, string_view sep)
-> join_view<detail::iterator_t<Range>, detail::sentinel_t<Range>> {
return join(std::begin(range), std::end(range), sep);
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}
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/**
\rst
Converts *value* to ``std::string`` using the default format for type *T*.
**Example**::
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#include <fmt/format.h>
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std::string answer = fmt::to_string(42);
\endrst
*/
template <typename T, FMT_ENABLE_IF(!std::is_integral<T>::value)>
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inline auto to_string(const T& value) -> std::string {
auto result = std::string();
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detail::write<char>(std::back_inserter(result), value);
return result;
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}
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template <typename T, FMT_ENABLE_IF(std::is_integral<T>::value)>
FMT_NODISCARD inline auto to_string(T value) -> std::string {
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// The buffer should be large enough to store the number including the sign
// or "false" for bool.
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constexpr int max_size = detail::digits10<T>() + 2;
char buffer[max_size > 5 ? static_cast<unsigned>(max_size) : 5];
char* begin = buffer;
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return std::string(begin, detail::write<char>(begin, value));
}
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template <typename Char, size_t SIZE>
FMT_NODISCARD auto to_string(const basic_memory_buffer<Char, SIZE>& buf)
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-> std::basic_string<Char> {
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auto size = buf.size();
detail::assume(size < std::basic_string<Char>().max_size());
return std::basic_string<Char>(buf.data(), size);
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}
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FMT_BEGIN_DETAIL_NAMESPACE
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template <typename Char>
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void vformat_to(
buffer<Char>& buf, basic_string_view<Char> fmt,
basic_format_args<FMT_BUFFER_CONTEXT(type_identity_t<Char>)> args,
locale_ref loc) {
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// workaround for msvc bug regarding name-lookup in module
// link names into function scope
using detail::arg_formatter;
using detail::buffer_appender;
using detail::custom_formatter;
using detail::default_arg_formatter;
using detail::get_arg;
using detail::locale_ref;
using detail::parse_format_specs;
using detail::specs_checker;
using detail::specs_handler;
using detail::to_unsigned;
using detail::type;
using detail::write;
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auto out = buffer_appender<Char>(buf);
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if (fmt.size() == 2 && equal2(fmt.data(), "{}")) {
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auto arg = args.get(0);
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if (!arg) error_handler().on_error("argument not found");
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visit_format_arg(default_arg_formatter<Char>{out, args, loc}, arg);
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return;
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}
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struct format_handler : error_handler {
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basic_format_parse_context<Char> parse_context;
buffer_context<Char> context;
format_handler(buffer_appender<Char> out, basic_string_view<Char> str,
basic_format_args<buffer_context<Char>> args, locale_ref loc)
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: parse_context(str), context(out, args, loc) {}
void on_text(const Char* begin, const Char* end) {
auto text = basic_string_view<Char>(begin, to_unsigned(end - begin));
context.advance_to(write<Char>(context.out(), text));
}
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FMT_CONSTEXPR auto on_arg_id() -> int {
return parse_context.next_arg_id();
}
FMT_CONSTEXPR auto on_arg_id(int id) -> int {
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return parse_context.check_arg_id(id), id;
}
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FMT_CONSTEXPR auto on_arg_id(basic_string_view<Char> id) -> int {
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int arg_id = context.arg_id(id);
if (arg_id < 0) on_error("argument not found");
return arg_id;
}
FMT_INLINE void on_replacement_field(int id, const Char*) {
auto arg = get_arg(context, id);
context.advance_to(visit_format_arg(
default_arg_formatter<Char>{context.out(), context.args(),
context.locale()},
arg));
}
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auto on_format_specs(int id, const Char* begin, const Char* end)
-> const Char* {
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auto arg = get_arg(context, id);
if (arg.type() == type::custom_type) {
parse_context.advance_to(parse_context.begin() +
(begin - &*parse_context.begin()));
visit_format_arg(custom_formatter<Char>{parse_context, context}, arg);
return parse_context.begin();
}
auto specs = basic_format_specs<Char>();
specs_checker<specs_handler<Char>> handler(
specs_handler<Char>(specs, parse_context, context), arg.type());
begin = parse_format_specs(begin, end, handler);
if (begin == end || *begin != '}')
on_error("missing '}' in format string");
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auto f = arg_formatter<Char>{context.out(), specs, context.locale()};
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context.advance_to(visit_format_arg(f, arg));
return begin;
}
};
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detail::parse_format_string<false>(fmt, format_handler(out, fmt, args, loc));
}
#ifndef FMT_HEADER_ONLY
extern template FMT_API auto thousands_sep_impl<char>(locale_ref)
-> thousands_sep_result<char>;
extern template FMT_API auto thousands_sep_impl<wchar_t>(locale_ref)
-> thousands_sep_result<wchar_t>;
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extern template FMT_API auto decimal_point_impl(locale_ref) -> char;
extern template FMT_API auto decimal_point_impl(locale_ref) -> wchar_t;
extern template auto format_float<double>(double value, int precision,
float_specs specs, buffer<char>& buf)
-> int;
extern template auto format_float<long double>(long double value, int precision,
float_specs specs,
buffer<char>& buf) -> int;
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void snprintf_float(float, int, float_specs, buffer<char>&) = delete;
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extern template auto snprintf_float<double>(double value, int precision,
float_specs specs,
buffer<char>& buf) -> int;
extern template auto snprintf_float<long double>(long double value,
int precision,
float_specs specs,
buffer<char>& buf) -> int;
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#endif // FMT_HEADER_ONLY
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FMT_END_DETAIL_NAMESPACE
#if FMT_USE_USER_DEFINED_LITERALS
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inline namespace literals {
/**
\rst
User-defined literal equivalent of :func:`fmt::arg`.
**Example**::
using namespace fmt::literals;
fmt::print("Elapsed time: {s:.2f} seconds", "s"_a=1.23);
\endrst
*/
# if FMT_USE_NONTYPE_TEMPLATE_PARAMETERS
template <detail_exported::fixed_string Str>
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constexpr auto operator""_a()
-> detail::udl_arg<remove_cvref_t<decltype(Str.data[0])>,
sizeof(Str.data) / sizeof(decltype(Str.data[0])), Str> {
return {};
}
# else
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constexpr auto operator"" _a(const char* s, size_t) -> detail::udl_arg<char> {
return {s};
}
# endif
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// DEPRECATED!
// User-defined literal equivalent of fmt::format.
FMT_DEPRECATED constexpr auto operator"" _format(const char* s, size_t n)
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-> detail::udl_formatter<char> {
return {{s, n}};
}
} // namespace literals
#endif // FMT_USE_USER_DEFINED_LITERALS
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template <typename Locale, FMT_ENABLE_IF(detail::is_locale<Locale>::value)>
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inline auto vformat(const Locale& loc, string_view fmt, format_args args)
-> std::string {
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return detail::vformat(loc, fmt, args);
}
template <typename Locale, typename... T,
FMT_ENABLE_IF(detail::is_locale<Locale>::value)>
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inline auto format(const Locale& loc, format_string<T...> fmt, T&&... args)
-> std::string {
return vformat(loc, string_view(fmt), fmt::make_format_args(args...));
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}
template <typename... T, size_t SIZE, typename Allocator>
FMT_DEPRECATED auto format_to(basic_memory_buffer<char, SIZE, Allocator>& buf,
format_string<T...> fmt, T&&... args)
-> appender {
detail::vformat_to(buf, string_view(fmt), fmt::make_format_args(args...));
return appender(buf);
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}
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template <typename OutputIt, typename Locale,
FMT_ENABLE_IF(detail::is_output_iterator<OutputIt, char>::value&&
detail::is_locale<Locale>::value)>
auto vformat_to(OutputIt out, const Locale& loc, string_view fmt,
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format_args args) -> OutputIt {
using detail::get_buffer;
auto&& buf = get_buffer<char>(out);
detail::vformat_to(buf, fmt, args, detail::locale_ref(loc));
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return detail::get_iterator(buf);
}
template <typename OutputIt, typename Locale, typename... T,
FMT_ENABLE_IF(detail::is_output_iterator<OutputIt, char>::value&&
detail::is_locale<Locale>::value)>
FMT_INLINE auto format_to(OutputIt out, const Locale& loc,
format_string<T...> fmt, T&&... args) -> OutputIt {
return vformat_to(out, loc, fmt, fmt::make_format_args(args...));
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}
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FMT_MODULE_EXPORT_END
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FMT_END_NAMESPACE
#ifdef FMT_DEPRECATED_INCLUDE_XCHAR
# include "xchar.h"
#endif
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#ifdef FMT_HEADER_ONLY
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# define FMT_FUNC inline
# include "format-inl.h"
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#else
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# define FMT_FUNC
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#endif
#endif // FMT_FORMAT_H_