634 lines
20 KiB
C
634 lines
20 KiB
C
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// Formatting library for C++ - legacy printf implementation
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//
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// Copyright (c) 2012 - 2016, Victor Zverovich
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// All rights reserved.
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//
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// For the license information refer to format.h.
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#ifndef FMT_PRINTF_H_
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#define FMT_PRINTF_H_
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#ifndef FMT_MODULE
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# include <algorithm> // std::max
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# include <limits> // std::numeric_limits
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#endif
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#include "format.h"
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FMT_BEGIN_NAMESPACE
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FMT_BEGIN_EXPORT
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template <typename T> struct printf_formatter {
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printf_formatter() = delete;
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};
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template <typename Char> class basic_printf_context {
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private:
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basic_appender<Char> out_;
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basic_format_args<basic_printf_context> args_;
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static_assert(std::is_same<Char, char>::value ||
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std::is_same<Char, wchar_t>::value,
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"Unsupported code unit type.");
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public:
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using char_type = Char;
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using parse_context_type = parse_context<Char>;
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template <typename T> using formatter_type = printf_formatter<T>;
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enum { builtin_types = 1 };
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/// Constructs a `printf_context` object. References to the arguments are
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/// stored in the context object so make sure they have appropriate lifetimes.
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basic_printf_context(basic_appender<Char> out,
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basic_format_args<basic_printf_context> args)
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: out_(out), args_(args) {}
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auto out() -> basic_appender<Char> { return out_; }
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void advance_to(basic_appender<Char>) {}
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auto locale() -> detail::locale_ref { return {}; }
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auto arg(int id) const -> basic_format_arg<basic_printf_context> {
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return args_.get(id);
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}
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};
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namespace detail {
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// Return the result via the out param to workaround gcc bug 77539.
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template <bool IS_CONSTEXPR, typename T, typename Ptr = const T*>
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FMT_CONSTEXPR auto find(Ptr first, Ptr last, T value, Ptr& out) -> bool {
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for (out = first; out != last; ++out) {
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if (*out == value) return true;
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}
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return false;
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}
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template <>
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inline auto find<false, char>(const char* first, const char* last, char value,
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const char*& out) -> bool {
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out =
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static_cast<const char*>(memchr(first, value, to_unsigned(last - first)));
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return out != nullptr;
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}
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// Checks if a value fits in int - used to avoid warnings about comparing
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// signed and unsigned integers.
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template <bool IsSigned> struct int_checker {
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template <typename T> static auto fits_in_int(T value) -> bool {
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unsigned max = to_unsigned(max_value<int>());
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return value <= max;
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}
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inline static auto fits_in_int(bool) -> bool { return true; }
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};
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template <> struct int_checker<true> {
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template <typename T> static auto fits_in_int(T value) -> bool {
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return value >= (std::numeric_limits<int>::min)() &&
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value <= max_value<int>();
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}
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inline static auto fits_in_int(int) -> bool { return true; }
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};
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struct printf_precision_handler {
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template <typename T, FMT_ENABLE_IF(std::is_integral<T>::value)>
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auto operator()(T value) -> int {
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if (!int_checker<std::numeric_limits<T>::is_signed>::fits_in_int(value))
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report_error("number is too big");
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return (std::max)(static_cast<int>(value), 0);
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}
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template <typename T, FMT_ENABLE_IF(!std::is_integral<T>::value)>
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auto operator()(T) -> int {
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report_error("precision is not integer");
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return 0;
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}
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};
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// An argument visitor that returns true iff arg is a zero integer.
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struct is_zero_int {
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template <typename T, FMT_ENABLE_IF(std::is_integral<T>::value)>
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auto operator()(T value) -> bool {
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return value == 0;
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}
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template <typename T, FMT_ENABLE_IF(!std::is_integral<T>::value)>
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auto operator()(T) -> bool {
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return false;
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}
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};
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template <typename T> struct make_unsigned_or_bool : std::make_unsigned<T> {};
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template <> struct make_unsigned_or_bool<bool> {
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using type = bool;
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};
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template <typename T, typename Context> class arg_converter {
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private:
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using char_type = typename Context::char_type;
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basic_format_arg<Context>& arg_;
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char_type type_;
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public:
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arg_converter(basic_format_arg<Context>& arg, char_type type)
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: arg_(arg), type_(type) {}
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void operator()(bool value) {
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if (type_ != 's') operator()<bool>(value);
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}
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template <typename U, FMT_ENABLE_IF(std::is_integral<U>::value)>
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void operator()(U value) {
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bool is_signed = type_ == 'd' || type_ == 'i';
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using target_type = conditional_t<std::is_same<T, void>::value, U, T>;
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if (const_check(sizeof(target_type) <= sizeof(int))) {
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// Extra casts are used to silence warnings.
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using unsigned_type = typename make_unsigned_or_bool<target_type>::type;
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if (is_signed)
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arg_ = static_cast<int>(static_cast<target_type>(value));
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else
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arg_ = static_cast<unsigned>(static_cast<unsigned_type>(value));
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} else {
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// glibc's printf doesn't sign extend arguments of smaller types:
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// std::printf("%lld", -42); // prints "4294967254"
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// but we don't have to do the same because it's a UB.
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if (is_signed)
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arg_ = static_cast<long long>(value);
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else
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arg_ = static_cast<typename make_unsigned_or_bool<U>::type>(value);
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}
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}
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template <typename U, FMT_ENABLE_IF(!std::is_integral<U>::value)>
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void operator()(U) {} // No conversion needed for non-integral types.
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};
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// Converts an integer argument to T for printf, if T is an integral type.
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// If T is void, the argument is converted to corresponding signed or unsigned
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// type depending on the type specifier: 'd' and 'i' - signed, other -
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// unsigned).
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template <typename T, typename Context, typename Char>
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void convert_arg(basic_format_arg<Context>& arg, Char type) {
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arg.visit(arg_converter<T, Context>(arg, type));
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}
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// Converts an integer argument to char for printf.
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template <typename Context> class char_converter {
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private:
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basic_format_arg<Context>& arg_;
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public:
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explicit char_converter(basic_format_arg<Context>& arg) : arg_(arg) {}
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template <typename T, FMT_ENABLE_IF(std::is_integral<T>::value)>
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void operator()(T value) {
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arg_ = static_cast<typename Context::char_type>(value);
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}
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template <typename T, FMT_ENABLE_IF(!std::is_integral<T>::value)>
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void operator()(T) {} // No conversion needed for non-integral types.
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};
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// An argument visitor that return a pointer to a C string if argument is a
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// string or null otherwise.
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template <typename Char> struct get_cstring {
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template <typename T> auto operator()(T) -> const Char* { return nullptr; }
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auto operator()(const Char* s) -> const Char* { return s; }
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};
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// Checks if an argument is a valid printf width specifier and sets
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// left alignment if it is negative.
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class printf_width_handler {
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private:
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format_specs& specs_;
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public:
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inline explicit printf_width_handler(format_specs& specs) : specs_(specs) {}
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template <typename T, FMT_ENABLE_IF(std::is_integral<T>::value)>
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auto operator()(T value) -> unsigned {
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auto width = static_cast<uint32_or_64_or_128_t<T>>(value);
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if (detail::is_negative(value)) {
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specs_.set_align(align::left);
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width = 0 - width;
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}
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unsigned int_max = to_unsigned(max_value<int>());
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if (width > int_max) report_error("number is too big");
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return static_cast<unsigned>(width);
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}
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template <typename T, FMT_ENABLE_IF(!std::is_integral<T>::value)>
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auto operator()(T) -> unsigned {
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report_error("width is not integer");
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return 0;
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}
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};
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// Workaround for a bug with the XL compiler when initializing
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// printf_arg_formatter's base class.
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template <typename Char>
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auto make_arg_formatter(basic_appender<Char> iter, format_specs& s)
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-> arg_formatter<Char> {
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return {iter, s, locale_ref()};
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}
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// The `printf` argument formatter.
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template <typename Char>
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class printf_arg_formatter : public arg_formatter<Char> {
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private:
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using base = arg_formatter<Char>;
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using context_type = basic_printf_context<Char>;
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context_type& context_;
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void write_null_pointer(bool is_string = false) {
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auto s = this->specs;
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s.set_type(presentation_type::none);
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write_bytes<Char>(this->out, is_string ? "(null)" : "(nil)", s);
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}
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template <typename T> void write(T value) {
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detail::write<Char>(this->out, value, this->specs, this->locale);
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}
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public:
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printf_arg_formatter(basic_appender<Char> iter, format_specs& s,
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context_type& ctx)
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: base(make_arg_formatter(iter, s)), context_(ctx) {}
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void operator()(monostate value) { write(value); }
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template <typename T, FMT_ENABLE_IF(detail::is_integral<T>::value)>
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void operator()(T value) {
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// MSVC2013 fails to compile separate overloads for bool and Char so use
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// std::is_same instead.
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if (!std::is_same<T, Char>::value) {
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write(value);
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return;
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}
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format_specs s = this->specs;
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if (s.type() != presentation_type::none &&
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s.type() != presentation_type::chr) {
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return (*this)(static_cast<int>(value));
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}
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s.set_sign(sign::none);
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s.clear_alt();
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s.set_fill(' '); // Ignore '0' flag for char types.
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// align::numeric needs to be overwritten here since the '0' flag is
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// ignored for non-numeric types
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if (s.align() == align::none || s.align() == align::numeric)
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s.set_align(align::right);
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detail::write<Char>(this->out, static_cast<Char>(value), s);
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}
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template <typename T, FMT_ENABLE_IF(std::is_floating_point<T>::value)>
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void operator()(T value) {
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write(value);
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}
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void operator()(const char* value) {
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if (value)
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write(value);
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else
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write_null_pointer(this->specs.type() != presentation_type::pointer);
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}
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void operator()(const wchar_t* value) {
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if (value)
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write(value);
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else
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write_null_pointer(this->specs.type() != presentation_type::pointer);
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}
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void operator()(basic_string_view<Char> value) { write(value); }
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void operator()(const void* value) {
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if (value)
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write(value);
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else
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write_null_pointer();
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}
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void operator()(typename basic_format_arg<context_type>::handle handle) {
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auto parse_ctx = parse_context<Char>({});
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handle.format(parse_ctx, context_);
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}
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};
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template <typename Char>
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void parse_flags(format_specs& specs, const Char*& it, const Char* end) {
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for (; it != end; ++it) {
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switch (*it) {
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case '-': specs.set_align(align::left); break;
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case '+': specs.set_sign(sign::plus); break;
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case '0': specs.set_fill('0'); break;
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case ' ':
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if (specs.sign() != sign::plus) specs.set_sign(sign::space);
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break;
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case '#': specs.set_alt(); break;
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default: return;
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}
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}
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}
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template <typename Char, typename GetArg>
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auto parse_header(const Char*& it, const Char* end, format_specs& specs,
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GetArg get_arg) -> int {
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int arg_index = -1;
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Char c = *it;
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if (c >= '0' && c <= '9') {
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// Parse an argument index (if followed by '$') or a width possibly
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// preceded with '0' flag(s).
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int value = parse_nonnegative_int(it, end, -1);
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if (it != end && *it == '$') { // value is an argument index
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++it;
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arg_index = value != -1 ? value : max_value<int>();
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} else {
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if (c == '0') specs.set_fill('0');
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if (value != 0) {
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// Nonzero value means that we parsed width and don't need to
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// parse it or flags again, so return now.
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if (value == -1) report_error("number is too big");
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specs.width = value;
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return arg_index;
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}
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}
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}
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parse_flags(specs, it, end);
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// Parse width.
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if (it != end) {
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if (*it >= '0' && *it <= '9') {
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specs.width = parse_nonnegative_int(it, end, -1);
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if (specs.width == -1) report_error("number is too big");
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} else if (*it == '*') {
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++it;
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specs.width = static_cast<int>(
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get_arg(-1).visit(detail::printf_width_handler(specs)));
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}
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}
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return arg_index;
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}
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inline auto parse_printf_presentation_type(char c, type t, bool& upper)
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-> presentation_type {
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using pt = presentation_type;
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constexpr auto integral_set = sint_set | uint_set | bool_set | char_set;
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switch (c) {
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case 'd': return in(t, integral_set) ? pt::dec : pt::none;
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case 'o': return in(t, integral_set) ? pt::oct : pt::none;
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case 'X': upper = true; FMT_FALLTHROUGH;
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case 'x': return in(t, integral_set) ? pt::hex : pt::none;
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case 'E': upper = true; FMT_FALLTHROUGH;
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case 'e': return in(t, float_set) ? pt::exp : pt::none;
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case 'F': upper = true; FMT_FALLTHROUGH;
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case 'f': return in(t, float_set) ? pt::fixed : pt::none;
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case 'G': upper = true; FMT_FALLTHROUGH;
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case 'g': return in(t, float_set) ? pt::general : pt::none;
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case 'A': upper = true; FMT_FALLTHROUGH;
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case 'a': return in(t, float_set) ? pt::hexfloat : pt::none;
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case 'c': return in(t, integral_set) ? pt::chr : pt::none;
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case 's': return in(t, string_set | cstring_set) ? pt::string : pt::none;
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case 'p': return in(t, pointer_set | cstring_set) ? pt::pointer : pt::none;
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default: return pt::none;
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}
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}
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template <typename Char, typename Context>
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void vprintf(buffer<Char>& buf, basic_string_view<Char> format,
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basic_format_args<Context> args) {
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using iterator = basic_appender<Char>;
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auto out = iterator(buf);
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auto context = basic_printf_context<Char>(out, args);
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auto parse_ctx = parse_context<Char>(format);
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// Returns the argument with specified index or, if arg_index is -1, the next
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// argument.
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auto get_arg = [&](int arg_index) {
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if (arg_index < 0)
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arg_index = parse_ctx.next_arg_id();
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else
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parse_ctx.check_arg_id(--arg_index);
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return detail::get_arg(context, arg_index);
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};
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||
|
|
||
|
const Char* start = parse_ctx.begin();
|
||
|
const Char* end = parse_ctx.end();
|
||
|
auto it = start;
|
||
|
while (it != end) {
|
||
|
if (!find<false, Char>(it, end, '%', it)) {
|
||
|
it = end; // find leaves it == nullptr if it doesn't find '%'.
|
||
|
break;
|
||
|
}
|
||
|
Char c = *it++;
|
||
|
if (it != end && *it == c) {
|
||
|
write(out, basic_string_view<Char>(start, to_unsigned(it - start)));
|
||
|
start = ++it;
|
||
|
continue;
|
||
|
}
|
||
|
write(out, basic_string_view<Char>(start, to_unsigned(it - 1 - start)));
|
||
|
|
||
|
auto specs = format_specs();
|
||
|
specs.set_align(align::right);
|
||
|
|
||
|
// Parse argument index, flags and width.
|
||
|
int arg_index = parse_header(it, end, specs, get_arg);
|
||
|
if (arg_index == 0) report_error("argument not found");
|
||
|
|
||
|
// Parse precision.
|
||
|
if (it != end && *it == '.') {
|
||
|
++it;
|
||
|
c = it != end ? *it : 0;
|
||
|
if ('0' <= c && c <= '9') {
|
||
|
specs.precision = parse_nonnegative_int(it, end, 0);
|
||
|
} else if (c == '*') {
|
||
|
++it;
|
||
|
specs.precision =
|
||
|
static_cast<int>(get_arg(-1).visit(printf_precision_handler()));
|
||
|
} else {
|
||
|
specs.precision = 0;
|
||
|
}
|
||
|
}
|
||
|
|
||
|
auto arg = get_arg(arg_index);
|
||
|
// For d, i, o, u, x, and X conversion specifiers, if a precision is
|
||
|
// specified, the '0' flag is ignored
|
||
|
if (specs.precision >= 0 && is_integral_type(arg.type())) {
|
||
|
// Ignore '0' for non-numeric types or if '-' present.
|
||
|
specs.set_fill(' ');
|
||
|
}
|
||
|
if (specs.precision >= 0 && arg.type() == type::cstring_type) {
|
||
|
auto str = arg.visit(get_cstring<Char>());
|
||
|
auto str_end = str + specs.precision;
|
||
|
auto nul = std::find(str, str_end, Char());
|
||
|
auto sv = basic_string_view<Char>(
|
||
|
str, to_unsigned(nul != str_end ? nul - str : specs.precision));
|
||
|
arg = sv;
|
||
|
}
|
||
|
if (specs.alt() && arg.visit(is_zero_int())) specs.clear_alt();
|
||
|
if (specs.fill_unit<Char>() == '0') {
|
||
|
if (is_arithmetic_type(arg.type()) && specs.align() != align::left) {
|
||
|
specs.set_align(align::numeric);
|
||
|
} else {
|
||
|
// Ignore '0' flag for non-numeric types or if '-' flag is also present.
|
||
|
specs.set_fill(' ');
|
||
|
}
|
||
|
}
|
||
|
|
||
|
// Parse length and convert the argument to the required type.
|
||
|
c = it != end ? *it++ : 0;
|
||
|
Char t = it != end ? *it : 0;
|
||
|
switch (c) {
|
||
|
case 'h':
|
||
|
if (t == 'h') {
|
||
|
++it;
|
||
|
t = it != end ? *it : 0;
|
||
|
convert_arg<signed char>(arg, t);
|
||
|
} else {
|
||
|
convert_arg<short>(arg, t);
|
||
|
}
|
||
|
break;
|
||
|
case 'l':
|
||
|
if (t == 'l') {
|
||
|
++it;
|
||
|
t = it != end ? *it : 0;
|
||
|
convert_arg<long long>(arg, t);
|
||
|
} else {
|
||
|
convert_arg<long>(arg, t);
|
||
|
}
|
||
|
break;
|
||
|
case 'j': convert_arg<intmax_t>(arg, t); break;
|
||
|
case 'z': convert_arg<size_t>(arg, t); break;
|
||
|
case 't': convert_arg<std::ptrdiff_t>(arg, t); break;
|
||
|
case 'L':
|
||
|
// printf produces garbage when 'L' is omitted for long double, no
|
||
|
// need to do the same.
|
||
|
break;
|
||
|
default: --it; convert_arg<void>(arg, c);
|
||
|
}
|
||
|
|
||
|
// Parse type.
|
||
|
if (it == end) report_error("invalid format string");
|
||
|
char type = static_cast<char>(*it++);
|
||
|
if (is_integral_type(arg.type())) {
|
||
|
// Normalize type.
|
||
|
switch (type) {
|
||
|
case 'i':
|
||
|
case 'u': type = 'd'; break;
|
||
|
case 'c':
|
||
|
arg.visit(char_converter<basic_printf_context<Char>>(arg));
|
||
|
break;
|
||
|
}
|
||
|
}
|
||
|
bool upper = false;
|
||
|
specs.set_type(parse_printf_presentation_type(type, arg.type(), upper));
|
||
|
if (specs.type() == presentation_type::none)
|
||
|
report_error("invalid format specifier");
|
||
|
if (upper) specs.set_upper();
|
||
|
|
||
|
start = it;
|
||
|
|
||
|
// Format argument.
|
||
|
arg.visit(printf_arg_formatter<Char>(out, specs, context));
|
||
|
}
|
||
|
write(out, basic_string_view<Char>(start, to_unsigned(it - start)));
|
||
|
}
|
||
|
} // namespace detail
|
||
|
|
||
|
using printf_context = basic_printf_context<char>;
|
||
|
using wprintf_context = basic_printf_context<wchar_t>;
|
||
|
|
||
|
using printf_args = basic_format_args<printf_context>;
|
||
|
using wprintf_args = basic_format_args<wprintf_context>;
|
||
|
|
||
|
/// Constructs an `format_arg_store` object that contains references to
|
||
|
/// arguments and can be implicitly converted to `printf_args`.
|
||
|
template <typename Char = char, typename... T>
|
||
|
inline auto make_printf_args(T&... args)
|
||
|
-> decltype(fmt::make_format_args<basic_printf_context<Char>>(args...)) {
|
||
|
return fmt::make_format_args<basic_printf_context<Char>>(args...);
|
||
|
}
|
||
|
|
||
|
template <typename Char> struct vprintf_args {
|
||
|
using type = basic_format_args<basic_printf_context<Char>>;
|
||
|
};
|
||
|
|
||
|
template <typename Char>
|
||
|
inline auto vsprintf(basic_string_view<Char> fmt,
|
||
|
typename vprintf_args<Char>::type args)
|
||
|
-> std::basic_string<Char> {
|
||
|
auto buf = basic_memory_buffer<Char>();
|
||
|
detail::vprintf(buf, fmt, args);
|
||
|
return {buf.data(), buf.size()};
|
||
|
}
|
||
|
|
||
|
/**
|
||
|
* Formats `args` according to specifications in `fmt` and returns the result
|
||
|
* as as string.
|
||
|
*
|
||
|
* **Example**:
|
||
|
*
|
||
|
* std::string message = fmt::sprintf("The answer is %d", 42);
|
||
|
*/
|
||
|
template <typename S, typename... T, typename Char = detail::char_t<S>>
|
||
|
inline auto sprintf(const S& fmt, const T&... args) -> std::basic_string<Char> {
|
||
|
return vsprintf(detail::to_string_view(fmt),
|
||
|
fmt::make_format_args<basic_printf_context<Char>>(args...));
|
||
|
}
|
||
|
|
||
|
template <typename Char>
|
||
|
inline auto vfprintf(std::FILE* f, basic_string_view<Char> fmt,
|
||
|
typename vprintf_args<Char>::type args) -> int {
|
||
|
auto buf = basic_memory_buffer<Char>();
|
||
|
detail::vprintf(buf, fmt, args);
|
||
|
size_t size = buf.size();
|
||
|
return std::fwrite(buf.data(), sizeof(Char), size, f) < size
|
||
|
? -1
|
||
|
: static_cast<int>(size);
|
||
|
}
|
||
|
|
||
|
/**
|
||
|
* Formats `args` according to specifications in `fmt` and writes the output
|
||
|
* to `f`.
|
||
|
*
|
||
|
* **Example**:
|
||
|
*
|
||
|
* fmt::fprintf(stderr, "Don't %s!", "panic");
|
||
|
*/
|
||
|
template <typename S, typename... T, typename Char = detail::char_t<S>>
|
||
|
inline auto fprintf(std::FILE* f, const S& fmt, const T&... args) -> int {
|
||
|
return vfprintf(f, detail::to_string_view(fmt),
|
||
|
make_printf_args<Char>(args...));
|
||
|
}
|
||
|
|
||
|
template <typename Char>
|
||
|
FMT_DEPRECATED inline auto vprintf(basic_string_view<Char> fmt,
|
||
|
typename vprintf_args<Char>::type args)
|
||
|
-> int {
|
||
|
return vfprintf(stdout, fmt, args);
|
||
|
}
|
||
|
|
||
|
/**
|
||
|
* Formats `args` according to specifications in `fmt` and writes the output
|
||
|
* to `stdout`.
|
||
|
*
|
||
|
* **Example**:
|
||
|
*
|
||
|
* fmt::printf("Elapsed time: %.2f seconds", 1.23);
|
||
|
*/
|
||
|
template <typename... T>
|
||
|
inline auto printf(string_view fmt, const T&... args) -> int {
|
||
|
return vfprintf(stdout, fmt, make_printf_args(args...));
|
||
|
}
|
||
|
template <typename... T>
|
||
|
FMT_DEPRECATED inline auto printf(basic_string_view<wchar_t> fmt,
|
||
|
const T&... args) -> int {
|
||
|
return vfprintf(stdout, fmt, make_printf_args<wchar_t>(args...));
|
||
|
}
|
||
|
|
||
|
FMT_END_EXPORT
|
||
|
FMT_END_NAMESPACE
|
||
|
|
||
|
#endif // FMT_PRINTF_H_
|