/* Formatting library for C++ Copyright (c) 2012 - 2016, Victor Zverovich All rights reserved. Redistribution and use in source and binary forms, with or without modification, are permitted provided that the following conditions are met: 1. Redistributions of source code must retain the above copyright notice, this list of conditions and the following disclaimer. 2. Redistributions in binary form must reproduce the above copyright notice, this list of conditions and the following disclaimer in the documentation and/or other materials provided with the distribution. THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. */ #ifndef FMT_FORMAT_H_ #define FMT_FORMAT_H_ #include #include #include #include #include #include #include #include #include #include #include #include #include #include #ifdef _SECURE_SCL # define FMT_SECURE_SCL _SECURE_SCL #else # define FMT_SECURE_SCL 0 #endif #if FMT_SECURE_SCL # include #endif #if !defined(FMT_HEADER_ONLY) && defined(_WIN32) # ifdef FMT_EXPORT # define FMT_API __declspec(dllexport) # elif defined(FMT_SHARED) # define FMT_API __declspec(dllimport) # endif #endif #ifndef FMT_API # define FMT_API #endif #ifdef __GNUC__ # define FMT_GCC_VERSION (__GNUC__ * 100 + __GNUC_MINOR__) # if FMT_GCC_VERSION >= 406 # pragma GCC diagnostic push // Disable the warning about declaration shadowing because it affects too // many valid cases. # pragma GCC diagnostic ignored "-Wshadow" // Disable the warning about implicit conversions that may change the sign of // an integer; silencing it otherwise would require many explicit casts. # pragma GCC diagnostic ignored "-Wsign-conversion" # endif #endif #ifdef __clang__ # define FMT_CLANG_VERSION (__clang_major__ * 100 + __clang_minor__) #endif #if defined(__INTEL_COMPILER) # define FMT_ICC_VERSION __INTEL_COMPILER #elif defined(__ICL) # define FMT_ICC_VERSION __ICL #endif #if defined(__clang__) && !defined(FMT_ICC_VERSION) # pragma clang diagnostic push # pragma clang diagnostic ignored "-Wdocumentation-unknown-command" # pragma clang diagnostic ignored "-Wgnu-string-literal-operator-template" # pragma clang diagnostic ignored "-Wpadded" #endif #ifdef __GNUC_LIBSTD__ # define FMT_GNUC_LIBSTD_VERSION (__GNUC_LIBSTD__ * 100 + __GNUC_LIBSTD_MINOR__) #endif #ifdef _MSC_VER # define FMT_MSC_VER _MSC_VER #else # define FMT_MSC_VER 0 #endif #ifdef __has_feature # define FMT_HAS_FEATURE(x) __has_feature(x) #else # define FMT_HAS_FEATURE(x) 0 #endif #ifdef __has_builtin # define FMT_HAS_BUILTIN(x) __has_builtin(x) #else # define FMT_HAS_BUILTIN(x) 0 #endif #ifdef __has_cpp_attribute # define FMT_HAS_CPP_ATTRIBUTE(x) __has_cpp_attribute(x) #else # define FMT_HAS_CPP_ATTRIBUTE(x) 0 #endif // Use the compiler's attribute noreturn. #if defined(__MINGW32__) || defined(__MINGW64__) # define FMT_NORETURN __attribute__((noreturn)) #elif FMT_HAS_CPP_ATTRIBUTE(noreturn) # define FMT_NORETURN [[noreturn]] #else # define FMT_NORETURN #endif // Check if exceptions are disabled. #if defined(__GNUC__) && !defined(__EXCEPTIONS) # define FMT_EXCEPTIONS 0 #endif #if FMT_MSC_VER && !_HAS_EXCEPTIONS # define FMT_EXCEPTIONS 0 #endif #ifndef FMT_EXCEPTIONS # define FMT_EXCEPTIONS 1 #endif // Define FMT_USE_NOEXCEPT to make fmt use noexcept (C++11 feature). #ifndef FMT_USE_NOEXCEPT # define FMT_USE_NOEXCEPT 0 #endif #ifndef FMT_NOEXCEPT # if FMT_EXCEPTIONS # if FMT_USE_NOEXCEPT || FMT_HAS_FEATURE(cxx_noexcept) || \ FMT_GCC_VERSION >= 408 || FMT_MSC_VER >= 1900 # define FMT_NOEXCEPT noexcept # else # define FMT_NOEXCEPT throw() # endif # else # define FMT_NOEXCEPT # endif #endif // A macro to disallow the copy construction and assignment. #define FMT_DISALLOW_COPY_AND_ASSIGN(TypeName) \ TypeName(const TypeName&) = delete; \ TypeName& operator=(const TypeName&) = delete #define FMT_DELETED_OR_UNDEFINED = delete #ifndef FMT_USE_USER_DEFINED_LITERALS // All compilers which support UDLs also support variadic templates. This // makes the fmt::literals implementation easier. However, an explicit check // for variadic templates is added here just in case. // For Intel's compiler both it and the system gcc/msc must support UDLs. # if (FMT_HAS_FEATURE(cxx_user_literals) || \ FMT_GCC_VERSION >= 407 || FMT_MSC_VER >= 1900) && \ (!defined(FMT_ICC_VERSION) || FMT_ICC_VERSION >= 1500) # define FMT_USE_USER_DEFINED_LITERALS 1 # else # define FMT_USE_USER_DEFINED_LITERALS 0 # endif #endif #if FMT_USE_USER_DEFINED_LITERALS && \ (FMT_GCC_VERSION >= 600 || FMT_CLANG_VERSION >= 304) # define FMT_UDL_TEMPLATE 1 #else # define FMT_UDL_TEMPLATE 0 #endif #ifndef FMT_ASSERT # define FMT_ASSERT(condition, message) assert((condition) && message) #endif #if FMT_GCC_VERSION >= 400 || FMT_HAS_BUILTIN(__builtin_clz) # define FMT_BUILTIN_CLZ(n) __builtin_clz(n) #endif #if FMT_GCC_VERSION >= 400 || FMT_HAS_BUILTIN(__builtin_clzll) # define FMT_BUILTIN_CLZLL(n) __builtin_clzll(n) #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) # include // _BitScanReverse, _BitScanReverse64 namespace fmt { namespace internal { # pragma intrinsic(_BitScanReverse) inline uint32_t clz(uint32_t x) { unsigned long r = 0; _BitScanReverse(&r, x); 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. # pragma warning(suppress: 6102) return 31 - r; } # define FMT_BUILTIN_CLZ(n) fmt::internal::clz(n) # ifdef _WIN64 # pragma intrinsic(_BitScanReverse64) # endif inline uint32_t clzll(uint64_t x) { unsigned long r = 0; # ifdef _WIN64 _BitScanReverse64(&r, x); # else // Scan the high 32 bits. if (_BitScanReverse(&r, static_cast(x >> 32))) return 63 - (r + 32); // Scan the low 32 bits. _BitScanReverse(&r, static_cast(x)); # endif 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. # pragma warning(suppress: 6102) return 63 - r; } # define FMT_BUILTIN_CLZLL(n) fmt::internal::clzll(n) } } #endif namespace fmt { namespace internal { struct dummy_int { int data[2]; operator int() const { return 0; } }; typedef std::numeric_limits fputil; // Dummy implementations of system functions such as signbit and ecvt called // if the latter are not available. inline dummy_int signbit(...) { return dummy_int(); } inline dummy_int _ecvt_s(...) { return dummy_int(); } inline dummy_int isinf(...) { return dummy_int(); } inline dummy_int _finite(...) { return dummy_int(); } inline dummy_int isnan(...) { return dummy_int(); } inline dummy_int _isnan(...) { return dummy_int(); } // A helper function to suppress bogus "conditional expression is constant" // warnings. template inline T const_check(T value) { return value; } } } // namespace fmt namespace std { // Standard permits specialization of std::numeric_limits. This specialization // is used to resolve ambiguity between isinf and std::isinf in glibc: // https://gcc.gnu.org/bugzilla/show_bug.cgi?id=48891 // and the same for isnan and signbit. template <> class numeric_limits : public std::numeric_limits { public: // Portable version of isinf. template static bool isinfinity(T x) { using namespace fmt::internal; // The resolution "priority" is: // isinf macro > std::isinf > ::isinf > fmt::internal::isinf if (const_check(sizeof(isinf(x)) == sizeof(bool) || sizeof(isinf(x)) == sizeof(int))) { return isinf(x) != 0; } return !_finite(static_cast(x)); } // Portable version of isnan. template static bool isnotanumber(T x) { using namespace fmt::internal; if (const_check(sizeof(isnan(x)) == sizeof(bool) || sizeof(isnan(x)) == sizeof(int))) { return isnan(x) != 0; } return _isnan(static_cast(x)) != 0; } // Portable version of signbit. static bool isnegative(double x) { using namespace fmt::internal; if (const_check(sizeof(signbit(x)) == sizeof(int))) return signbit(x) != 0; if (x < 0) return true; if (!isnotanumber(x)) return false; int dec = 0, sign = 0; char buffer[2]; // The buffer size must be >= 2 or _ecvt_s will fail. _ecvt_s(buffer, sizeof(buffer), x, 0, &dec, &sign); return sign != 0; } }; } // namespace std namespace fmt { template class basic_writer; template class basic_arg; template class basic_context; typedef basic_context context; typedef basic_context wcontext; // A formatter for objects of type T. template struct formatter; /** \rst An implementation of ``std::basic_string_view`` for pre-C++17. It provides a subset of the API. \endrst */ template class basic_string_view { private: const Char *data_; std::size_t size_; public: using char_type = Char; using iterator = const Char *; constexpr basic_string_view() noexcept : data_(0), size_(0) {} /** Constructs a string reference object from a C string and a size. */ constexpr basic_string_view(const Char *s, std::size_t size) noexcept : data_(s), size_(size) {} /** \rst Constructs a string reference object from a C string computing the size with ``std::char_traits::length``. \endrst */ basic_string_view(const Char *s) : data_(s), size_(std::char_traits::length(s)) {} /** \rst Constructs a string reference from an ``std::string`` object. \endrst */ constexpr basic_string_view(const std::basic_string &s) noexcept : data_(s.c_str()), size_(s.size()) {} /** \rst Converts a string reference to an ``std::string`` object. \endrst */ std::basic_string to_string() const { return std::basic_string(data_, size_); } /** Returns a pointer to the string data. */ const Char *data() const { return data_; } /** Returns the string size. */ constexpr std::size_t size() const { return size_; } constexpr iterator begin() const { return data_; } constexpr iterator end() const { return data_ + size_; } constexpr void remove_prefix(size_t n) { data_ += n; size_ -= n; } // Lexicographically compare this string reference to other. int compare(basic_string_view other) const { std::size_t size = size_ < other.size_ ? size_ : other.size_; int result = std::char_traits::compare(data_, other.data_, size); if (result == 0) result = size_ == other.size_ ? 0 : (size_ < other.size_ ? -1 : 1); return result; } friend bool operator==(basic_string_view lhs, basic_string_view rhs) { return lhs.compare(rhs) == 0; } friend bool operator!=(basic_string_view lhs, basic_string_view rhs) { return lhs.compare(rhs) != 0; } friend bool operator<(basic_string_view lhs, basic_string_view rhs) { return lhs.compare(rhs) < 0; } friend bool operator<=(basic_string_view lhs, basic_string_view rhs) { return lhs.compare(rhs) <= 0; } friend bool operator>(basic_string_view lhs, basic_string_view rhs) { return lhs.compare(rhs) > 0; } friend bool operator>=(basic_string_view lhs, basic_string_view rhs) { return lhs.compare(rhs) >= 0; } }; typedef basic_string_view string_view; typedef basic_string_view wstring_view; /** A formatting error such as invalid format string. */ class 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() throw(); }; namespace internal { // Casts nonnegative integer to unsigned. template constexpr typename std::make_unsigned::type to_unsigned(Int value) { FMT_ASSERT(value >= 0, "negative value"); return static_cast::type>(value); } // The number of characters to store in the basic_memory_buffer object itself // to avoid dynamic memory allocation. enum { INLINE_BUFFER_SIZE = 500 }; #if FMT_SECURE_SCL // Use checked iterator to avoid warnings on MSVC. template inline stdext::checked_array_iterator make_ptr(T *ptr, std::size_t size) { return stdext::checked_array_iterator(ptr, size); } #else template inline T *make_ptr(T *ptr, std::size_t) { return ptr; } #endif #ifndef FMT_THROW # if FMT_EXCEPTIONS # define FMT_THROW(x) throw x # else # define FMT_THROW(x) assert(false) # endif #endif struct error_handler { constexpr error_handler() {} constexpr error_handler(const error_handler &) {} // This function is intentionally not constexpr to give a compile-time error. void on_error(const char *message) { FMT_THROW(format_error(message)); } }; } // namespace internal /** \rst A contiguous memory buffer with an optional growing ability. \endrst */ template class basic_buffer { private: FMT_DISALLOW_COPY_AND_ASSIGN(basic_buffer); T *ptr_; std::size_t size_; std::size_t capacity_; protected: basic_buffer() FMT_NOEXCEPT : ptr_(0), size_(0), capacity_(0) {} /** Sets the buffer data and capacity. */ void set(T* data, std::size_t capacity) FMT_NOEXCEPT { ptr_ = data; capacity_ = capacity; } /** \rst Increases the buffer capacity to hold at least *capacity* elements. \endrst */ virtual void grow(std::size_t capacity) = 0; public: virtual ~basic_buffer() {} /** Returns the size of this buffer. */ std::size_t size() const FMT_NOEXCEPT { return size_; } /** Returns the capacity of this buffer. */ std::size_t capacity() const FMT_NOEXCEPT { return capacity_; } /** Returns a pointer to the buffer data. */ T *data() FMT_NOEXCEPT { return ptr_; } /** Returns a pointer to the buffer data. */ const T *data() const FMT_NOEXCEPT { return ptr_; } /** Resizes the buffer. If T is a POD type new elements may not be initialized. */ void resize(std::size_t new_size) { reserve(new_size); size_ = new_size; } /** \rst Reserves space to store at least *capacity* elements. \endrst */ void reserve(std::size_t capacity) { if (capacity > capacity_) grow(capacity); } void push_back(const T &value) { reserve(size_ + 1); ptr_[size_++] = value; } /** Appends data to the end of the buffer. */ template void append(const U *begin, const U *end); T &operator[](std::size_t index) { return ptr_[index]; } const T &operator[](std::size_t index) const { return ptr_[index]; } virtual std::locale locale() const { return std::locale(); } }; typedef basic_buffer buffer; typedef basic_buffer wbuffer; template template void basic_buffer::append(const U *begin, const U *end) { std::size_t new_size = size_ + internal::to_unsigned(end - begin); reserve(new_size); std::uninitialized_copy(begin, end, internal::make_ptr(ptr_, capacity_) + size_); size_ = new_size; } template inline std::basic_string to_string(const basic_buffer& buffer) { return std::basic_string(buffer.data(), buffer.size()); } /** \rst A dynamically growing memory buffer for trivially copyable/constructible types with the first SIZE elements stored in the object itself. You can use one of the following typedefs for common character types: +----------------+------------------------------+ | Type | Definition | +================+==============================+ | memory_buffer | basic_memory_buffer | +----------------+------------------------------+ | wmemory_buffer | basic_memory_buffer | +----------------+------------------------------+ **Example**:: memory_buffer out; format_to(out, "The answer is {}.", 42); This will write 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 */ template > class basic_memory_buffer : private Allocator, public basic_buffer { private: T store_[SIZE]; // Deallocate memory allocated by the buffer. void deallocate() { T* data = this->data(); if (data != store_) Allocator::deallocate(data, this->capacity()); } protected: void grow(std::size_t size); public: explicit basic_memory_buffer(const Allocator &alloc = Allocator()) : Allocator(alloc) { this->set(store_, SIZE); } ~basic_memory_buffer() { deallocate(); } private: // Move data from other to this buffer. void move(basic_memory_buffer &other) { Allocator &this_alloc = *this, &other_alloc = other; this_alloc = std::move(other_alloc); T* data = other.data(); std::size_t size = other.size(), capacity = other.capacity(); if (data == other.store_) { this->set(store_, capacity); std::uninitialized_copy(other.store_, other.store_ + size, internal::make_ptr(store_, capacity)); } else { this->set(data, capacity); // Set pointer to the inline array so that delete is not called // when deallocating. other.set(other.store_, 0); } this->resize(size); } public: /** \rst Constructs a :class:`fmt::basic_memory_buffer` object moving the content of the other object to it. \endrst */ basic_memory_buffer(basic_memory_buffer &&other) { move(other); } /** \rst Moves the content of the other ``basic_memory_buffer`` object to this one. \endrst */ basic_memory_buffer &operator=(basic_memory_buffer &&other) { assert(this != &other); deallocate(); move(other); return *this; } // Returns a copy of the allocator associated with this buffer. Allocator get_allocator() const { return *this; } }; template void basic_memory_buffer::grow(std::size_t size) { std::size_t old_capacity = this->capacity(); std::size_t new_capacity = old_capacity + old_capacity / 2; if (size > new_capacity) new_capacity = size; T *old_data = this->data(); T *new_data = this->allocate(new_capacity); // The following code doesn't throw, so the raw pointer above doesn't leak. std::uninitialized_copy(old_data, old_data + this->size(), internal::make_ptr(new_data, new_capacity)); 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. if (old_data != store_) Allocator::deallocate(old_data, old_capacity); } typedef basic_memory_buffer memory_buffer; typedef basic_memory_buffer wmemory_buffer; /** \rst A fixed-size memory buffer. For a dynamically growing buffer use :class:`fmt::basic_memory_buffer`. Trying to increase the buffer size past the initial capacity will throw ``std::runtime_error``. \endrst */ template class basic_fixed_buffer : public basic_buffer { public: /** \rst Constructs a :class:`fmt::basic_fixed_buffer` object for *array* of the given size. \endrst */ basic_fixed_buffer(Char *array, std::size_t size) { this->set(array, size); } /** \rst Constructs a :class:`fmt::basic_fixed_buffer` object for *array* of the size known at compile time. \endrst */ template explicit basic_fixed_buffer(Char (&array)[SIZE]) { this->set(array, SIZE); } protected: FMT_API void grow(std::size_t size); }; namespace internal { template class basic_char_traits { public: static Char cast(int value) { return static_cast(value); } }; template class char_traits; template <> class char_traits : public basic_char_traits { private: // Conversion from wchar_t to char is not allowed. static char convert(wchar_t); public: static char convert(char value) { return value; } // Formats a floating-point number. template FMT_API static int format_float(char *buffer, std::size_t size, const char *format, unsigned width, int precision, T value); }; template <> class char_traits : public basic_char_traits { public: static wchar_t convert(char value) { return value; } static wchar_t convert(wchar_t value) { return value; } template FMT_API static int format_float(wchar_t *buffer, std::size_t size, const wchar_t *format, unsigned width, int precision, T value); }; template class null_terminating_iterator; template constexpr const Char *pointer_from(null_terminating_iterator it); // An iterator that produces a null terminator on *end. This simplifies parsing // and allows comparing the performance of processing a null-terminated string // vs string_view. template class null_terminating_iterator { public: using difference_type = std::ptrdiff_t; using value_type = Char; using pointer = const Char*; using reference = const Char&; using iterator_category = std::random_access_iterator_tag; null_terminating_iterator() : ptr_(0), end_(0) {} constexpr null_terminating_iterator(const Char *ptr, const Char *end) : ptr_(ptr), end_(end) {} template constexpr explicit null_terminating_iterator(const Range &r) : ptr_(r.begin()), end_(r.end()) {} null_terminating_iterator &operator=(const Char *ptr) { assert(ptr <= end_); ptr_ = ptr; return *this; } constexpr Char operator*() const { return ptr_ != end_ ? *ptr_ : 0; } constexpr null_terminating_iterator operator++() { ++ptr_; return *this; } constexpr null_terminating_iterator operator++(int) { null_terminating_iterator result(*this); ++ptr_; return result; } constexpr null_terminating_iterator operator--() { --ptr_; return *this; } constexpr null_terminating_iterator operator+(difference_type n) { return null_terminating_iterator(ptr_ + n, end_); } constexpr null_terminating_iterator operator-(difference_type n) { return null_terminating_iterator(ptr_ - n, end_); } constexpr null_terminating_iterator operator+=(difference_type n) { ptr_ += n; return *this; } constexpr difference_type operator-(null_terminating_iterator other) const { return ptr_ - other.ptr_; } constexpr bool operator!=(null_terminating_iterator other) const { return ptr_ != other.ptr_; } bool operator>=(null_terminating_iterator other) const { return ptr_ >= other.ptr_; } friend constexpr const Char *pointer_from(null_terminating_iterator it); private: const Char *ptr_; const Char *end_; }; template constexpr const T *pointer_from(const T *p) { return p; } template constexpr const Char *pointer_from(null_terminating_iterator it) { return it.ptr_; } // Returns true if value is negative, false otherwise. // Same as (value < 0) but doesn't produce warnings if T is an unsigned type. template constexpr typename std::enable_if< std::numeric_limits::is_signed, bool>::type is_negative(T value) { return value < 0; } template constexpr typename std::enable_if< !std::numeric_limits::is_signed, bool>::type is_negative(T) { return false; } template struct int_traits { // Smallest of uint32_t and uint64_t that is large enough to represent // all values of T. typedef typename std::conditional< std::numeric_limits::digits <= 32, uint32_t, uint64_t>::type main_type; }; FMT_API FMT_NORETURN void report_unknown_type(char code, const char *type); // Static data is placed in this class template to allow header-only // configuration. template struct FMT_API basic_data { static const uint32_t POWERS_OF_10_32[]; static const uint64_t POWERS_OF_10_64[]; static const char DIGITS[]; }; #ifndef FMT_USE_EXTERN_TEMPLATES // Clang doesn't have a feature check for extern templates so we check // for variadic templates which were introduced in the same version. # define FMT_USE_EXTERN_TEMPLATES (__clang__) #endif #if FMT_USE_EXTERN_TEMPLATES && !defined(FMT_HEADER_ONLY) extern template struct basic_data; #endif typedef basic_data<> data; #ifdef FMT_BUILTIN_CLZLL // Returns the number of decimal digits in n. Leading zeros are not counted // except for n == 0 in which case count_digits returns 1. inline unsigned count_digits(uint64_t n) { // Based on http://graphics.stanford.edu/~seander/bithacks.html#IntegerLog10 // and the benchmark https://github.com/localvoid/cxx-benchmark-count-digits. int t = (64 - FMT_BUILTIN_CLZLL(n | 1)) * 1233 >> 12; return to_unsigned(t) - (n < data::POWERS_OF_10_64[t]) + 1; } #else // Fallback version of count_digits used when __builtin_clz is not available. inline unsigned count_digits(uint64_t n) { unsigned 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; } } #endif #ifdef FMT_BUILTIN_CLZ // Optional version of count_digits for better performance on 32-bit platforms. inline unsigned count_digits(uint32_t n) { int t = (32 - FMT_BUILTIN_CLZ(n | 1)) * 1233 >> 12; return to_unsigned(t) - (n < data::POWERS_OF_10_32[t]) + 1; } #endif // A functor that doesn't add a thousands separator. struct no_thousands_sep { template void operator()(Char *) {} }; // A functor that adds a thousands separator. template class add_thousands_sep { private: basic_string_view sep_; // Index of a decimal digit with the least significant digit having index 0. unsigned digit_index_; public: explicit add_thousands_sep(basic_string_view sep) : sep_(sep), digit_index_(0) {} void operator()(Char *&buffer) { if (++digit_index_ % 3 != 0) return; buffer -= sep_.size(); std::uninitialized_copy(sep_.data(), sep_.data() + sep_.size(), internal::make_ptr(buffer, sep_.size())); } }; // Formats a decimal unsigned integer value writing into buffer. // thousands_sep is a functor that is called after writing each char to // add a thousands separator if necessary. template inline void format_decimal(Char *buffer, UInt value, unsigned num_digits, ThousandsSep thousands_sep) { buffer += num_digits; 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. unsigned index = static_cast((value % 100) * 2); value /= 100; *--buffer = data::DIGITS[index + 1]; thousands_sep(buffer); *--buffer = data::DIGITS[index]; thousands_sep(buffer); } if (value < 10) { *--buffer = static_cast('0' + value); return; } unsigned index = static_cast(value * 2); *--buffer = data::DIGITS[index + 1]; thousands_sep(buffer); *--buffer = data::DIGITS[index]; } template inline void format_decimal(Char *buffer, UInt value, unsigned num_digits) { return format_decimal(buffer, value, num_digits, no_thousands_sep()); } #ifndef _WIN32 # define FMT_USE_WINDOWS_H 0 #elif !defined(FMT_USE_WINDOWS_H) # define FMT_USE_WINDOWS_H 1 #endif // Define FMT_USE_WINDOWS_H to 0 to disable use of windows.h. // All the functionality that relies on it will be disabled too. #if FMT_USE_WINDOWS_H // A converter from UTF-8 to UTF-16. // It is only provided for Windows since other systems support UTF-8 natively. class utf8_to_utf16 { private: wmemory_buffer buffer_; public: FMT_API explicit utf8_to_utf16(string_view s); operator wstring_view() const { return wstring_view(&buffer_[0], size()); } size_t size() const { return buffer_.size() - 1; } const wchar_t *c_str() const { return &buffer_[0]; } std::wstring str() const { return std::wstring(&buffer_[0], size()); } }; // A converter from UTF-16 to UTF-8. // It is only provided for Windows since other systems support UTF-8 natively. class utf16_to_utf8 { private: memory_buffer buffer_; public: utf16_to_utf8() {} FMT_API explicit utf16_to_utf8(wstring_view s); operator string_view() const { return string_view(&buffer_[0], size()); } size_t size() const { return buffer_.size() - 1; } const char *c_str() const { return &buffer_[0]; } std::string str() const { return std::string(&buffer_[0], size()); } // Performs conversion returning a system error code instead of // throwing exception on conversion error. This method may still throw // in case of memory allocation error. FMT_API int convert(wstring_view s); }; FMT_API void format_windows_error(fmt::buffer &out, int error_code, fmt::string_view message) FMT_NOEXCEPT; #endif template struct null {}; typedef char yes[1]; typedef char no[2]; yes &convert(unsigned long long); no &convert(...); template struct convert_to_int_impl { enum { value = ENABLE_CONVERSION }; }; template struct convert_to_int_impl2 { enum { value = false }; }; template struct convert_to_int_impl2 { enum { // Don't convert numeric types. value = convert_to_int_impl< T, !std::numeric_limits::is_specialized>::value }; }; template struct convert_to_int { enum { enable_conversion = sizeof(convert(std::declval())) == sizeof(yes) }; enum { value = convert_to_int_impl2::value }; }; #define FMT_DISABLE_CONVERSION_TO_INT(Type) \ template <> \ struct convert_to_int { enum { value = 0 }; } // Silence warnings about convering float to int. FMT_DISABLE_CONVERSION_TO_INT(float); FMT_DISABLE_CONVERSION_TO_INT(double); FMT_DISABLE_CONVERSION_TO_INT(long double); enum type { NONE, NAMED_ARG, // Integer types should go first, INT, UINT, LONG_LONG, ULONG_LONG, BOOL, CHAR, LAST_INTEGER_TYPE = CHAR, // followed by floating-point types. DOUBLE, LONG_DOUBLE, LAST_NUMERIC_TYPE = LONG_DOUBLE, CSTRING, STRING, POINTER, CUSTOM }; constexpr bool is_integral(type t) { FMT_ASSERT(t != internal::NAMED_ARG, "invalid argument type"); return t > internal::NONE && t <= internal::LAST_INTEGER_TYPE; } constexpr bool is_numeric(type t) { FMT_ASSERT(t != internal::NAMED_ARG, "invalid argument type"); return t > internal::NONE && t <= internal::LAST_NUMERIC_TYPE; } template struct string_value { const Char *value; std::size_t size; }; template struct custom_value { typedef void (*format_func)( basic_buffer &buffer, const void *arg, void *ctx); const void *value; format_func format; }; template struct named_arg; template struct is_named_arg : std::false_type {}; template struct is_named_arg> : std::true_type {}; template constexpr type get_type() { return std::is_reference::value || std::is_array::value ? get_type::type>() : (is_named_arg::value ? NAMED_ARG : (convert_to_int::value ? INT : CUSTOM)); } template <> constexpr type get_type() { return BOOL; } template <> constexpr type get_type() { return INT; } template <> constexpr type get_type() { return UINT; } template <> constexpr type get_type() { return INT; } template <> constexpr type get_type() { return UINT; } template <> constexpr type get_type() { return sizeof(long) == sizeof(int) ? INT : LONG_LONG; } template <> constexpr type get_type() { return sizeof(unsigned long) == sizeof(unsigned) ? UINT : ULONG_LONG; } template <> constexpr type get_type() { return LONG_LONG; } template <> constexpr type get_type() { return ULONG_LONG; } template <> constexpr type get_type() { return DOUBLE; } template <> constexpr type get_type() { return DOUBLE; } template <> constexpr type get_type() { return LONG_DOUBLE; } template <> constexpr type get_type() { return INT; } template <> constexpr type get_type() { return UINT; } template <> constexpr type get_type() { return CHAR; } #if !defined(_MSC_VER) || defined(_NATIVE_WCHAR_T_DEFINED) template <> constexpr type get_type() { return CHAR; } #endif template <> constexpr type get_type() { return CSTRING; } template <> constexpr type get_type() { return CSTRING; } template <> constexpr type get_type() { return CSTRING; } template <> constexpr type get_type() { return CSTRING; } template <> constexpr type get_type() { return CSTRING; } template <> constexpr type get_type() { return CSTRING; } template <> constexpr type get_type() { return STRING; } template <> constexpr type get_type() { return STRING; } template <> constexpr type get_type() { return CSTRING; } template <> constexpr type get_type() { return CSTRING; } template <> constexpr type get_type() { return STRING; } template <> constexpr type get_type() { return STRING; } template <> constexpr type get_type() { return POINTER; } template <> constexpr type get_type() { return POINTER; } template <> constexpr type get_type() { return POINTER; } // Formatting of wide characters and strings into a narrow output is disallowed: // fmt::format("{}", L"test"); // error // To fix this, use a wide format string: // fmt::format(L"{}", L"test"); template inline void require_wchar() { static_assert( std::is_same::value, "formatting of wide characters into a narrow output is disallowed"); } template inline const T *as_const(T *p) { return p; } // A formatting argument value. template class value { public: using char_type = typename Context::char_type; union { int int_value; unsigned uint_value; long long long_long_value; unsigned long long ulong_long_value; double double_value; long double long_double_value; const void *pointer; string_value string; string_value sstring; string_value ustring; custom_value custom; }; constexpr value() : int_value(0) {} value(bool val) { set(int_value, val); } value(short val) { set(int_value, val); } value(unsigned short val) { set(uint_value, val); } constexpr value(int val) : int_value(val) {} value(unsigned val) { set(uint_value, val); } value(long val) { // To minimize the number of types we need to deal with, long is // translated either to int or to long long depending on its size. if (const_check(sizeof(val) == sizeof(int))) int_value = static_cast(val); else long_long_value = val; } value(unsigned long val) { if (const_check(sizeof(val) == sizeof(unsigned))) uint_value = static_cast(val); else ulong_long_value = val; } value(long long val) { set(long_long_value, val); } value(unsigned long long val) { set(ulong_long_value, val); } value(float val) { set(double_value, val); } value(double val) { set(double_value, val); } value(long double val) { set(long_double_value, val); } value(signed char val) { set(int_value, val); } value(unsigned char val) { set(uint_value, val); } value(char val) { set(int_value, val); } #if !defined(_MSC_VER) || defined(_NATIVE_WCHAR_T_DEFINED) value(wchar_t value) { require_wchar(); set(int_value, value); } #endif // Formatting of wide strings into a narrow buffer and multibyte strings // into a wide buffer is disallowed (https://github.com/fmtlib/fmt/pull/606). value(char_type *s) { set(string.value, s); } value(const char_type *s) { set(string.value, s); } value(signed char *s) { set_cstring(sstring.value, s); } value(const signed char *s) { set_cstring(sstring.value, s); } value(unsigned char *s) { set_cstring(ustring.value, s); } value(const unsigned char *s) { set_cstring(ustring.value, s); } value(basic_string_view s) { set_string(s); } value(const std::basic_string &s) { set_string(s); } // Formatting of arbitrary pointers is disallowed. If you want to output a // pointer cast it to "void *" or "const void *". In particular, this forbids // formatting of "[const] volatile char *" which is printed as bool by // iostreams. template value(const T *p) { static_assert(std::is_same::value, "formatting of non-void pointers is disallowed"); set(pointer, p); } template value(T *p) : value(as_const(p)) {} value(std::nullptr_t) { pointer = nullptr; } template value(const T &value, typename std::enable_if::value, int>::type = 0) { static_assert(get_type() == INT, "invalid type"); int_value = value; } template value(const T &value, typename std::enable_if::value, int>::type = 0) { static_assert(get_type() == CUSTOM, "invalid type"); custom.value = &value; custom.format = &format_custom_arg; } // Additional template param `Char` is needed here because get_type always // uses char. template value(const named_arg &value) { static_assert( get_type &>() == NAMED_ARG, "invalid type"); pointer = &value; } private: template constexpr void set(T &field, const U &value) { static_assert(get_type() == TYPE, "invalid type"); field = value; } template void set_string(const T &value) { static_assert(get_type() == STRING, "invalid type"); string.value = value.data(); string.size = value.size(); } template constexpr void set_cstring(T &field, const U *str) { static_assert(std::is_same::value, "incompatible string types"); set(field, str); } // Formats an argument of a custom type, such as a user-defined class. template static void format_custom_arg( basic_buffer &buffer, const void *arg, void *context) { Context &ctx = *static_cast(context); // Get the formatter type through the context to allow different contexts // have different extension points, e.g. `formatter` for `format` and // `printf_formatter` for `printf`. typename Context::template formatter_type f; auto &&parse_ctx = ctx.parse_context(); parse_ctx.advance_to(f.parse(parse_ctx)); f.format(buffer, *static_cast(arg), ctx); } }; template class arg_map; template constexpr basic_arg make_arg(const T &value); } // namespace internal struct monostate {}; template class basic_args; // A formatting argument. It is a trivially copyable/constructible type to // allow storage in basic_memory_buffer. template class basic_arg { private: internal::value value_; internal::type type_; template friend constexpr basic_arg internal::make_arg(const T &value); template friend constexpr typename std::result_of::type visit(Visitor &&vis, basic_arg arg); friend class basic_args; friend class internal::arg_map; public: constexpr basic_arg() : type_(internal::NONE) {} explicit operator bool() const noexcept { return type_ != internal::NONE; } internal::type type() const { return type_; } bool is_integral() const { return internal::is_integral(type_); } bool is_numeric() const { return internal::is_numeric(type_); } bool is_pointer() const { return type_ == internal::POINTER; } }; /** \rst Visits an argument dispatching to the appropriate visit method based on the argument type. For example, if the argument type is ``double`` then ``vis(value)`` will be called with the value of type ``double``. \endrst */ template constexpr typename std::result_of::type visit(Visitor &&vis, basic_arg arg) { typedef typename Context::char_type Char; switch (arg.type_) { case internal::NONE: return vis(monostate()); case internal::NAMED_ARG: FMT_ASSERT(false, "invalid argument type"); break; case internal::INT: return vis(arg.value_.int_value); case internal::UINT: return vis(arg.value_.uint_value); case internal::LONG_LONG: return vis(arg.value_.long_long_value); case internal::ULONG_LONG: return vis(arg.value_.ulong_long_value); case internal::BOOL: return vis(arg.value_.int_value != 0); case internal::CHAR: return vis(static_cast(arg.value_.int_value)); case internal::DOUBLE: return vis(arg.value_.double_value); case internal::LONG_DOUBLE: return vis(arg.value_.long_double_value); case internal::CSTRING: return vis(arg.value_.string.value); case internal::STRING: return vis(basic_string_view( arg.value_.string.value, arg.value_.string.size)); case internal::POINTER: return vis(arg.value_.pointer); case internal::CUSTOM: return vis(arg.value_.custom); } return typename std::result_of::type(); } namespace internal { template constexpr basic_arg make_arg(const T &value) { basic_arg arg; arg.type_ = get_type(); arg.value_ = value; return arg; } #if FMT_GCC_VERSION >= 407 # define FMT_UNUSED __attribute__((unused)) #else # define FMT_UNUSED #endif template struct named_arg : basic_arg { typedef typename Context::char_type Char; basic_string_view name; template named_arg(basic_string_view argname, const T &value) : basic_arg(make_arg(value)), name(argname) {} }; template constexpr uint64_t get_types() { return get_type() | (get_types() << 4); } template <> constexpr uint64_t get_types() { return 0; } // Maximum number of arguments with packed types. enum { MAX_PACKED_ARGS = 15 }; template inline typename std::enable_if>::type make_arg(const T& value) { return value; } template inline typename std::enable_if>::type make_arg(const T& value) { return make_arg(value); } } // namespace internal template class arg_store { private: static const size_t NUM_ARGS = sizeof...(Args); // Packed is a macro on MinGW so use IS_PACKED instead. static const bool IS_PACKED = NUM_ARGS < internal::MAX_PACKED_ARGS; typedef typename Context::char_type char_type; typedef typename std::conditional, basic_arg>::type value_type; // If the arguments are not packed, add one more element to mark the end. typedef std::array Array; Array data_; public: static const uint64_t TYPES = IS_PACKED ? internal::get_types() : -static_cast(NUM_ARGS); arg_store(const Args &... args) : data_(Array{{internal::make_arg(args)...}}) {} const value_type *data() const { return data_.data(); } }; template inline arg_store make_args(const Args & ... args) { return arg_store(args...); } template inline arg_store make_args(const Args & ... args) { return arg_store(args...); } /** Formatting arguments. */ template class basic_args { public: typedef unsigned size_type; typedef basic_arg format_arg; private: // To reduce compiled code size per formatting function call, types of first // MAX_PACKED_ARGS arguments are passed in the types_ field. uint64_t types_; union { // If the number of arguments is less than MAX_PACKED_ARGS, the argument // values are stored in values_, otherwise they are stored in args_. // This is done to reduce compiled code size as storing larger objects // may require more code (at least on x86-64) even if the same amount of // data is actually copied to stack. It saves ~10% on the bloat test. const internal::value *values_; const format_arg *args_; }; typename internal::type type(unsigned index) const { unsigned shift = index * 4; uint64_t mask = 0xf; return static_cast( (types_ & (mask << shift)) >> shift); } friend class internal::arg_map; void set_data(const internal::value *values) { values_ = values; } void set_data(const format_arg *args) { args_ = args; } format_arg get(size_type index) const { int64_t signed_types = static_cast(types_); if (signed_types < 0) { uint64_t num_args = -signed_types; return index < num_args ? args_[index] : format_arg(); } format_arg arg; if (index > internal::MAX_PACKED_ARGS) return arg; arg.type_ = type(index); if (arg.type_ == internal::NONE) return arg; internal::value &val = arg.value_; val = values_[index]; return arg; } public: basic_args() : types_(0) {} template basic_args(const arg_store &store) : types_(store.TYPES) { set_data(store.data()); } /** Returns the argument at specified index. */ format_arg operator[](size_type index) const { format_arg arg = get(index); return arg.type_ == internal::NAMED_ARG ? *static_cast(arg.value_.pointer) : arg; } }; typedef basic_args args; typedef basic_args wargs; enum alignment { ALIGN_DEFAULT, ALIGN_LEFT, ALIGN_RIGHT, ALIGN_CENTER, ALIGN_NUMERIC }; // Flags. enum { SIGN_FLAG = 1, PLUS_FLAG = 2, MINUS_FLAG = 4, HASH_FLAG = 8, CHAR_FLAG = 0x10 // Argument has char type - used in error reporting. }; enum format_spec_tag {fill_tag, align_tag, width_tag, type_tag}; // Format specifier. template class format_spec { private: T value_; public: typedef T value_type; explicit format_spec(T value) : value_(value) {} T value() const { return value_; } }; // template // using fill_spec = format_spec; template class fill_spec : public format_spec { public: explicit fill_spec(Char value) : format_spec(value) {} }; typedef format_spec width_spec; typedef format_spec type_spec; // An empty format specifier. struct empty_spec {}; // An alignment specifier. struct align_spec : empty_spec { unsigned width_; // Fill is always wchar_t and cast to char if necessary to avoid having // two specialization of AlignSpec and its subclasses. wchar_t fill_; alignment align_; constexpr align_spec( unsigned width, wchar_t fill, alignment align = ALIGN_DEFAULT) : width_(width), fill_(fill), align_(align) {} constexpr unsigned width() const { return width_; } constexpr wchar_t fill() const { return fill_; } constexpr alignment align() const { return align_; } int precision() const { return -1; } }; // Format specifiers. template class basic_format_specs : public align_spec { private: template typename std::enable_if::value || std::is_same::value, void>::type set(fill_spec fill) { fill_ = fill.value(); } void set(width_spec width) { width_ = width.value(); } void set(type_spec type) { type_ = type.value(); } template void set(Spec spec, Specs... tail) { set(spec); set(tail...); } public: unsigned flags_; int precision_; Char type_; constexpr basic_format_specs( unsigned width = 0, char type = 0, wchar_t fill = ' ') : align_spec(width, fill), flags_(0), precision_(-1), type_(type) {} template explicit basic_format_specs(FormatSpecs... specs) : align_spec(0, ' '), flags_(0), precision_(-1), type_(0){ set(specs...); } constexpr bool flag(unsigned f) const { return (flags_ & f) != 0; } constexpr int precision() const { return precision_; } constexpr Char type() const { return type_; } }; typedef basic_format_specs format_specs; // Parsing context consisting of a format string range being parsed and an // argument counter for automatic indexing. template class basic_parse_context : private ErrorHandler { private: basic_string_view format_str_; int next_arg_index_; protected: constexpr bool check_no_auto_index() { if (next_arg_index_ > 0) { on_error("cannot switch from automatic to manual argument indexing"); return false; } next_arg_index_ = -1; return true; } public: using char_type = Char; using iterator = typename basic_string_view::iterator; explicit constexpr basic_parse_context( basic_string_view format_str, ErrorHandler eh = ErrorHandler()) : ErrorHandler(eh), format_str_(format_str), next_arg_index_(0) {} // Returns an iterator to the beginning of the format string range being // parsed. constexpr iterator begin() const { return format_str_.begin(); } // Returns an iterator past the end of the format string range being parsed. constexpr iterator end() const { return format_str_.end(); } // Advances the begin iterator to ``it``. constexpr void advance_to(iterator it) { format_str_.remove_prefix(it - begin()); } // Returns the next argument index. constexpr unsigned next_arg_index() { if (next_arg_index_ >= 0) return internal::to_unsigned(next_arg_index_++); on_error("cannot switch from manual to automatic argument indexing"); return 0; } constexpr void check_arg_id(unsigned) { check_no_auto_index(); } void check_arg_id(basic_string_view) {} constexpr void on_error(const char *message) { ErrorHandler::on_error(message); } constexpr ErrorHandler error_handler() const { return *this; } }; using parse_context = basic_parse_context; using wparse_context = basic_parse_context; namespace internal { template constexpr void handle_int_type_spec(char spec, Handler &&handler) { switch (spec) { case 0: case 'd': handler.on_dec(); break; case 'x': case 'X': handler.on_hex(); break; case 'b': case 'B': handler.on_bin(); break; case 'o': handler.on_oct(); break; case 'n': handler.on_num(); break; default: handler.on_error(); } } template constexpr void handle_float_type_spec(char spec, Handler &&handler) { switch (spec) { case 0: case 'g': case 'G': handler.on_general(); break; case 'e': case 'E': handler.on_exp(); break; case 'f': case 'F': handler.on_fixed(); break; case 'a': case 'A': handler.on_hex(); break; default: handler.on_error(); break; } } template class int_type_checker : private ErrorHandler { public: constexpr int_type_checker(ErrorHandler eh) : ErrorHandler(eh) {} constexpr void on_dec() {} constexpr void on_hex() {} constexpr void on_bin() {} constexpr void on_oct() {} constexpr void on_num() {} constexpr void on_error() { ErrorHandler::on_error("invalid type specifier"); } }; template class float_type_checker : private ErrorHandler { public: constexpr float_type_checker(ErrorHandler eh) : ErrorHandler(eh) {} constexpr void on_general() {} constexpr void on_exp() {} constexpr void on_fixed() {} constexpr void on_hex() {} constexpr void on_error() { ErrorHandler::on_error("invalid type specifier"); } }; template class arg_map { private: typedef typename Context::char_type Char; typedef std::vector< std::pair, basic_arg > > MapType; typedef typename MapType::value_type Pair; MapType map_; public: void init(const basic_args &args); const basic_arg *find(const fmt::basic_string_view &name) const { // The list is unsorted, so just return the first matching name. for (typename MapType::const_iterator it = map_.begin(), end = map_.end(); it != end; ++it) { if (it->first == name) return &it->second; } return 0; } }; template void arg_map::init(const basic_args &args) { if (!map_.empty()) return; typedef internal::named_arg NamedArg; const NamedArg *named_arg = 0; bool use_values = args.type(MAX_PACKED_ARGS - 1) == internal::NONE; if (use_values) { for (unsigned i = 0;/*nothing*/; ++i) { internal::type arg_type = args.type(i); switch (arg_type) { case internal::NONE: return; case internal::NAMED_ARG: named_arg = static_cast(args.values_[i].pointer); map_.push_back(Pair(named_arg->name, *named_arg)); break; default: /*nothing*/; } } return; } for (unsigned i = 0; i != MAX_PACKED_ARGS; ++i) { internal::type arg_type = args.type(i); if (arg_type == internal::NAMED_ARG) { named_arg = static_cast(args.args_[i].value_.pointer); map_.push_back(Pair(named_arg->name, *named_arg)); } } for (unsigned i = MAX_PACKED_ARGS; ; ++i) { switch (args.args_[i].type_) { case internal::NONE: return; case internal::NAMED_ARG: named_arg = static_cast(args.args_[i].value_.pointer); map_.push_back(Pair(named_arg->name, *named_arg)); break; default: /*nothing*/; } } } template class arg_formatter_base { public: typedef basic_format_specs format_specs; private: basic_writer writer_; format_specs &spec_; FMT_DISALLOW_COPY_AND_ASSIGN(arg_formatter_base); void write_pointer(const void *p) { spec_.flags_ = HASH_FLAG; spec_.type_ = 'x'; writer_.write_int(reinterpret_cast(p), spec_); } protected: basic_writer &writer() { return writer_; } format_specs &spec() { return spec_; } void write(bool value) { writer_.write_str(string_view(value ? "true" : "false"), spec_); } void write(const Char *value) { writer_.write_str(basic_string_view( value, value != 0 ? std::char_traits::length(value) : 0), spec_); } public: typedef Char char_type; arg_formatter_base(basic_buffer &b, format_specs &s) : writer_(b), spec_(s) {} void operator()(monostate) { FMT_ASSERT(false, "invalid argument type"); } template typename std::enable_if::value>::type operator()(T value) { writer_.write_int(value, spec_); } template typename std::enable_if::value>::type operator()(T value) { writer_.write_double(value, spec_); } void operator()(bool value) { if (spec_.type_) return (*this)(value ? 1 : 0); write(value); } void operator()(Char value) { if (spec_.type_ && spec_.type_ != 'c') { spec_.flags_ |= CHAR_FLAG; writer_.write_int(value, spec_); return; } if (spec_.align_ == ALIGN_NUMERIC || spec_.flags_ != 0) FMT_THROW(format_error("invalid format specifier for char")); typedef typename basic_writer::pointer_type pointer_type; Char fill = internal::char_traits::cast(spec_.fill()); pointer_type out = pointer_type(); const unsigned CHAR_WIDTH = 1; if (spec_.width_ > CHAR_WIDTH) { out = writer_.grow_buffer(spec_.width_); if (spec_.align_ == ALIGN_RIGHT) { std::uninitialized_fill_n(out, spec_.width_ - CHAR_WIDTH, fill); out += spec_.width_ - CHAR_WIDTH; } else if (spec_.align_ == ALIGN_CENTER) { out = writer_.fill_padding(out, spec_.width_, internal::const_check(CHAR_WIDTH), fill); } else { std::uninitialized_fill_n(out + CHAR_WIDTH, spec_.width_ - CHAR_WIDTH, fill); } } else { out = writer_.grow_buffer(CHAR_WIDTH); } *out = internal::char_traits::cast(value); } void operator()(const Char *value) { if (spec_.type_ == 'p') return write_pointer(value); write(value); } void operator()(basic_string_view value) { writer_.write_str(value, spec_); } void operator()(const void *value) { if (spec_.type_ && spec_.type_ != 'p') report_unknown_type(spec_.type_, "pointer"); write_pointer(value); } }; template class context_base : public basic_parse_context{ private: basic_args args_; protected: typedef basic_arg format_arg; context_base(basic_string_view format_str, basic_args args) : basic_parse_context(format_str), args_(args) {} ~context_base() {} basic_args args() const { return args_; } // Returns the argument with specified index. format_arg do_get_arg(unsigned arg_index) { format_arg arg = args_[arg_index]; if (!arg) this->on_error("argument index out of range"); return arg; } // Checks if manual indexing is used and returns the argument with // specified index. format_arg get_arg(unsigned arg_index) { return this->check_no_auto_index() ? this->do_get_arg(arg_index) : format_arg(); } public: basic_parse_context &parse_context() { return *this; } }; struct format_string {}; template constexpr bool is_name_start(Char c) { return ('a' <= c && c <= 'z') || ('A' <= c && c <= 'Z') || '_' == c; } // Parses the input as an unsigned integer. This function assumes that the // first character is a digit and presence of a non-digit character at the end. // it: an iterator pointing to the beginning of the input range. template constexpr unsigned parse_nonnegative_int(Iterator &it, ErrorHandler &&eh) { assert('0' <= *it && *it <= '9'); unsigned value = 0; // Convert to unsigned to prevent a warning. unsigned max_int = (std::numeric_limits::max)(); unsigned big = max_int / 10; do { // Check for overflow. if (value > big) { value = max_int + 1; break; } value = value * 10 + (*it - '0'); // Workaround for MSVC "setup_exception stack overflow" error: auto next = it; ++next; it = next; } while ('0' <= *it && *it <= '9'); if (value > max_int) eh.on_error("number is too big"); return value; } template class custom_formatter { private: basic_buffer &buffer_; Context &ctx_; public: custom_formatter(basic_buffer &buffer, Context &ctx) : buffer_(buffer), ctx_(ctx) {} bool operator()(internal::custom_value custom) { custom.format(buffer_, custom.value, &ctx_); return true; } template bool operator()(T) { return false; } }; template struct is_integer { enum { value = std::is_integral::value && !std::is_same::value && !std::is_same::value && !std::is_same::value }; }; template class width_checker { public: explicit constexpr width_checker(ErrorHandler &eh) : handler_(eh) {} template constexpr typename std::enable_if< is_integer::value, unsigned long long>::type operator()(T value) { if (is_negative(value)) handler_.on_error("negative width"); return value; } template constexpr typename std::enable_if< !is_integer::value, unsigned long long>::type operator()(T) { handler_.on_error("width is not integer"); return 0; } private: ErrorHandler &handler_; }; template class precision_checker { public: explicit constexpr precision_checker(ErrorHandler &eh) : handler_(eh) {} template constexpr typename std::enable_if< is_integer::value, unsigned long long>::type operator()(T value) { if (is_negative(value)) handler_.on_error("negative precision"); return value; } template constexpr typename std::enable_if< !is_integer::value, unsigned long long>::type operator()(T) { handler_.on_error("precision is not integer"); return 0; } private: ErrorHandler &handler_; }; // A format specifier handler that sets fields in basic_format_specs. template class specs_setter { public: explicit constexpr specs_setter(basic_format_specs &specs): specs_(specs) {} constexpr specs_setter(const specs_setter &other) : specs_(other.specs_) {} constexpr void on_align(alignment align) { specs_.align_ = align; } constexpr void on_fill(Char fill) { specs_.fill_ = fill; } constexpr void on_plus() { specs_.flags_ |= SIGN_FLAG | PLUS_FLAG; } constexpr void on_minus() { specs_.flags_ |= MINUS_FLAG; } constexpr void on_space() { specs_.flags_ |= SIGN_FLAG; } constexpr void on_hash() { specs_.flags_ |= HASH_FLAG; } constexpr void on_zero() { specs_.align_ = ALIGN_NUMERIC; specs_.fill_ = '0'; } constexpr void on_width(unsigned width) { specs_.width_ = width; } constexpr void on_precision(unsigned precision) { specs_.precision_ = precision; } constexpr void end_precision() {} constexpr void on_type(Char type) { specs_.type_ = type; } protected: basic_format_specs &specs_; }; // A format specifier handler that checks if specifiers are consistent with the // argument type. template class specs_checker : public Handler { public: constexpr specs_checker(const Handler& handler, internal::type arg_type) : Handler(handler), arg_type_(arg_type) {} constexpr specs_checker(const specs_checker &other) : Handler(other), arg_type_(other.arg_type_) {} constexpr void on_align(alignment align) { if (align == ALIGN_NUMERIC) require_numeric_argument(); Handler::on_align(align); } constexpr void on_plus() { check_sign(); Handler::on_plus(); } constexpr void on_minus() { check_sign(); Handler::on_minus(); } constexpr void on_space() { check_sign(); Handler::on_space(); } constexpr void on_hash() { require_numeric_argument(); Handler::on_hash(); } constexpr void on_zero() { require_numeric_argument(); Handler::on_zero(); } constexpr void end_precision() { if (is_integral(arg_type_) || arg_type_ == POINTER) this->on_error("precision not allowed for this argument type"); } private: constexpr void require_numeric_argument() { if (!is_numeric(arg_type_)) this->on_error("format specifier requires numeric argument"); } constexpr void check_sign() { require_numeric_argument(); if (is_integral(arg_type_) && arg_type_ != INT && arg_type_ != LONG_LONG && arg_type_ != CHAR) { this->on_error("format specifier requires signed argument"); } } internal::type arg_type_; }; template