// Formatting -*- C++ -*- // Copyright The GNU Toolchain Authors. // // This file is part of the GNU ISO C++ Library. This library is free // software; you can redistribute it and/or modify it under the // terms of the GNU General Public License as published by the // Free Software Foundation; either version 3, or (at your option) // any later version. // This library is distributed in the hope that it will be useful, // but WITHOUT ANY WARRANTY; without even the implied warranty of // MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the // GNU General Public License for more details. // Under Section 7 of GPL version 3, you are granted additional // permissions described in the GCC Runtime Library Exception, version // 3.1, as published by the Free Software Foundation. // You should have received a copy of the GNU General Public License and // a copy of the GCC Runtime Library Exception along with this program; // see the files COPYING3 and COPYING.RUNTIME respectively. If not, see // . /** @file include/bits/chrono_io.h * This is an internal header file, included by other library headers. * Do not attempt to use it directly. @headername{chrono} */ #ifndef _GLIBCXX_CHRONO_IO_H #define _GLIBCXX_CHRONO_IO_H 1 #ifdef _GLIBCXX_SYSHDR #pragma GCC system_header #endif #if __cplusplus >= 202002L #include // ostringstream #include #include // from_chars #include // __sso_string #include #include namespace std _GLIBCXX_VISIBILITY(default) { _GLIBCXX_BEGIN_NAMESPACE_VERSION namespace chrono { /// @addtogroup chrono /// @{ /// @cond undocumented namespace __detail { #define _GLIBCXX_WIDEN_(C, S) ::std::__format::_Widen(S, L##S) #define _GLIBCXX_WIDEN(S) _GLIBCXX_WIDEN_(_CharT, S) template constexpr basic_string_view<_CharT> __units_suffix() noexcept { // The standard say these are all narrow strings, which would need to // be widened at run-time when inserted into a wide stream. We use // STATICALLY-WIDEN to widen at compile-time. #define _GLIBCXX_UNITS_SUFFIX(period, suffix) \ if constexpr (is_same_v<_Period, period>) \ return _GLIBCXX_WIDEN(suffix); \ else _GLIBCXX_UNITS_SUFFIX(atto, "as") _GLIBCXX_UNITS_SUFFIX(femto, "fs") _GLIBCXX_UNITS_SUFFIX(pico, "ps") _GLIBCXX_UNITS_SUFFIX(nano, "ns") _GLIBCXX_UNITS_SUFFIX(milli, "ms") #if _GLIBCXX_USE_ALT_MICROSECONDS_SUFFIX // Deciding this at compile-time is wrong, maybe use nl_langinfo(CODESET) // to check runtime environment and return u8"\u00b5s", "\xb5s", or "us". _GLIBCXX_UNITS_SUFFIX(micro, "\u00b5s") #else _GLIBCXX_UNITS_SUFFIX(micro, "us") #endif _GLIBCXX_UNITS_SUFFIX(centi, "cs") _GLIBCXX_UNITS_SUFFIX(deci, "ds") _GLIBCXX_UNITS_SUFFIX(ratio<1>, "s") _GLIBCXX_UNITS_SUFFIX(deca, "das") _GLIBCXX_UNITS_SUFFIX(hecto, "hs") _GLIBCXX_UNITS_SUFFIX(kilo, "ks") _GLIBCXX_UNITS_SUFFIX(mega, "Ms") _GLIBCXX_UNITS_SUFFIX(giga, "Gs") _GLIBCXX_UNITS_SUFFIX(tera, "Ts") _GLIBCXX_UNITS_SUFFIX(tera, "Ts") _GLIBCXX_UNITS_SUFFIX(peta, "Ps") _GLIBCXX_UNITS_SUFFIX(exa, "Es") _GLIBCXX_UNITS_SUFFIX(ratio<60>, "min") _GLIBCXX_UNITS_SUFFIX(ratio<3600>, "h") _GLIBCXX_UNITS_SUFFIX(ratio<86400>, "d") #undef _GLIBCXX_UNITS_SUFFIX return {}; } template inline _Out __fmt_units_suffix(_Out __out) noexcept { if (auto __s = __detail::__units_suffix<_Period, _CharT>(); __s.size()) return __format::__write(std::move(__out), __s); else if constexpr (_Period::den == 1) return std::format_to(std::move(__out), _GLIBCXX_WIDEN("[{}]s"), (uintmax_t)_Period::num); else return std::format_to(std::move(__out), _GLIBCXX_WIDEN("[{}/{}]s"), (uintmax_t)_Period::num, (uintmax_t)_Period::den); } } // namespace __detail /// @endcond /** Write a `chrono::duration` to an ostream. * * @since C++20 */ template inline basic_ostream<_CharT, _Traits>& operator<<(std::basic_ostream<_CharT, _Traits>& __os, const duration<_Rep, _Period>& __d) { using _Out = ostreambuf_iterator<_CharT, _Traits>; using period = typename _Period::type; std::basic_ostringstream<_CharT, _Traits> __s; __s.flags(__os.flags()); __s.imbue(__os.getloc()); __s.precision(__os.precision()); // _GLIBCXX_RESOLVE_LIB_DEFECTS // 4118. How should duration formatters format custom rep types? __s << +__d.count(); __detail::__fmt_units_suffix(_Out(__s)); __os << std::move(__s).str(); return __os; } /// @cond undocumented namespace __detail { // An unspecified type returned by `chrono::local_time_format`. // This is called `local-time-format-t` in the standard. template struct __local_time_fmt { local_time<_Duration> _M_time; const string* _M_abbrev; const seconds* _M_offset_sec; }; // _GLIBCXX_RESOLVE_LIB_DEFECTS // 4124. Cannot format zoned_time with resolution coarser than seconds template using __local_time_fmt_for = __local_time_fmt>; } /// @endcond /** Return an object that asssociates timezone info with a local time. * * A `chrono::local_time` object has no timezone associated with it. This * function creates an object that allows formatting a `local_time` as * though it refers to a timezone with the given abbreviated name and * offset from UTC. * * @since C++20 */ template inline __detail::__local_time_fmt<_Duration> local_time_format(local_time<_Duration> __time, const string* __abbrev = nullptr, const seconds* __offset_sec = nullptr) { return {__time, __abbrev, __offset_sec}; } /// @} } // namespace chrono /// @cond undocumented namespace __format { [[noreturn,__gnu__::__always_inline__]] inline void __not_valid_for_duration() { __throw_format_error("format error: chrono-format-spec not valid for " "chrono::duration"); } [[noreturn,__gnu__::__always_inline__]] inline void __invalid_chrono_spec() { __throw_format_error("format error: chrono-format-spec not valid for " "argument type"); } // Represents the information provided by a chrono type. // e.g. month_weekday has month and weekday but no year or time of day, // hh_mm_ss has time of day but no date, sys_time is time_point+timezone. enum class _ChronoParts : unsigned short { _None = 0, _TotalSeconds = 1u, _Subseconds = 1u << 2, // time since epoch _EpochUnits = 1u << 3, _UnitSuffix = 1u << 4, _EpochSeconds = _EpochUnits | _TotalSeconds, // local (wall) time _LocalDays = 1u << 5, _LocalSeconds = _LocalDays | _TotalSeconds, _Year = 1u << 6, _Month = 1u << 7, _Day = 1u << 8, _Weekday = 1u << 9, _WeekdayIndex = 1u << 10, _DayOfYear = 1u << 11, _IndexedWeekday = _Weekday | _WeekdayIndex, _YearMonthDay = _Year | _Month | _Day, _Date = _LocalDays | _YearMonthDay | _IndexedWeekday | _DayOfYear, _HoursMinutesSeconds = 1u << 12, _TimeOfDay = _HoursMinutesSeconds | _Subseconds, _Time = _TimeOfDay | _TotalSeconds, _EpochTime = _Time | _EpochUnits | _UnitSuffix, _DateTime = _Date | _Time, _ZoneAbbrev = 1u << 13, _ZoneOffset = 1u << 14, _TimeZone = _ZoneAbbrev | _ZoneOffset, _ZonedDateTime = _DateTime | _TimeZone, }; [[__gnu__::__always_inline__]] constexpr _ChronoParts operator&(_ChronoParts __x, _ChronoParts __y) noexcept { return static_cast<_ChronoParts>((unsigned)__x & (unsigned)__y); } [[__gnu__::__always_inline__]] constexpr _ChronoParts& operator&=(_ChronoParts& __x, _ChronoParts __y) noexcept { return __x = __x & __y; } [[__gnu__::__always_inline__]] constexpr _ChronoParts operator|(_ChronoParts __x, _ChronoParts __y) noexcept { return static_cast<_ChronoParts>((unsigned short)__x | (unsigned short)__y); } [[__gnu__::__always_inline__]] constexpr _ChronoParts& operator|=(_ChronoParts& __x, _ChronoParts __y) noexcept { return __x = __x | __y; } // returns copy of x with all bits from y unset. [[__gnu__::__always_inline__]] constexpr _ChronoParts operator-(_ChronoParts __x, _ChronoParts __y) noexcept { return static_cast<_ChronoParts>((unsigned short)__x & ~(unsigned short)__y); } // unsets all bits of x that are set in y [[__gnu__::__always_inline__]] constexpr _ChronoParts& operator-=(_ChronoParts& __x, _ChronoParts __y) noexcept { return __x = __x - __y; } [[__gnu__::__always_inline__]] constexpr bool operator==(_ChronoParts __x, decltype(nullptr)) noexcept { return (unsigned short)__x == 0; } template struct _ChronoSpec : _Spec<_CharT> { // When _M_prec_kind is _WP_none, the _M_prec contains the default // value of fraction digits to be used for time '%S'. // Placed in tail-padding of __format::_Spec. // This indicates that a locale-dependent conversion specifier such as // %a is used in the chrono-specs. This is not the same as the // _Spec::_M_localized member which indicates that "L" was present // in the format-spec, e.g. "{:L%a}" is localized and locale-specific, // but "{:L}" is only localized and "{:%a}" is only locale-specific. unsigned _M_locale_specific : 1; // Indicates if parts that are checked for ok come directly from the // input, instead of being computed. unsigned _M_needs_ok_check : 1; // Indicates that duration should be treated as floating point. unsigned _M_floating_point_rep : 1; // Indicate that duration uses user-defined representation. unsigned _M_custom_rep : 1; unsigned _M_unused : 4; // Chrono parts required by format specs _ChronoParts _M_needed; basic_string_view<_CharT> _M_chrono_specs; [[__gnu__::__always_inline__]] constexpr bool _M_needs(_ChronoParts __parts) const { return (_M_needed & __parts) != 0; } }; template struct _ChronoFormats { using _String_view = basic_string_view<_CharT>; static consteval _String_view _S_ftz() noexcept { return _GLIBCXX_WIDEN("%F %T %Z"); } static consteval _String_view _S_ft() noexcept { return _S_ftz().substr(0, 5); } static consteval _String_view _S_f() noexcept { return _S_ftz().substr(0, 2); } static consteval _String_view _S_t() noexcept { return _S_ftz().substr(3, 2); } static consteval _String_view _S_ymd() noexcept { return _GLIBCXX_WIDEN("%Y/%b/%d"); } static consteval _String_view _S_ym() noexcept { return _S_ymd().substr(0, 5); } static consteval _String_view _S_md() noexcept { return _S_ymd().substr(3); } static consteval _String_view _S_y() noexcept { return _S_ymd().substr(0, 2); } static consteval _String_view _S_m() noexcept { return _S_ymd().substr(3, 2); } static consteval _String_view _S_d() noexcept { return _S_ymd().substr(6, 2); } static consteval _String_view _S_ymwi() noexcept // %\0 is extension for handling weekday index { return _String_view(_GLIBCXX_WIDEN("%Y/%b/%a[%\0]"), 12); } static consteval _String_view _S_mwi() noexcept { return _S_ymwi().substr(3); } static consteval _String_view _S_wi() noexcept { return _S_ymwi().substr(6); } static consteval _String_view _S_w() noexcept { return _S_ymwi().substr(6, 2); } static consteval _String_view _S_ymwl() noexcept { return _GLIBCXX_WIDEN("%Y/%b/%a[last]"); } static consteval _String_view _S_mwl() noexcept { return _S_ymwl().substr(3); } static consteval _String_view _S_wl() noexcept { return _S_ymwl().substr(6); } static consteval _String_view _S_yml() noexcept { return _GLIBCXX_WIDEN("%Y/%b/last"); } static consteval _String_view _S_ml() noexcept { return _S_yml().substr(3); } }; template struct _ChronoData { static constexpr unsigned _S_max_prec = 18; using _Attoseconds = chrono::duration<__UINT_LEAST64_TYPE__, atto>; using _FormatContext = basic_format_context<_Sink_iter<_CharT>, _CharT>; using _FormatArgs = basic_format_args<_FormatContext>; static inline auto _S_args = std::make_format_args<_FormatContext>(); _ChronoData() = default; _ChronoData(_ChronoData&&) = delete; // time since epoch chrono::seconds _M_eseconds; // n.b. due offset being seconds or coarser, local and epoch subseconds // has the same value _Attoseconds _M_subseconds; // _M_ereps.get(0) stores duration units // _M_ereps.get(1) stores subseconds units // _M_ereps.get(2) stores precision _FormatArgs _M_ereps = _S_args; basic_string_view<_CharT> _M_unit_suffix; // local (wall) time chrono::local_seconds _M_lseconds; chrono::local_days _M_ldays; chrono::year _M_year; chrono::month _M_month; chrono::day _M_day; chrono::weekday _M_weekday; unsigned char _M_weekday_index; chrono::days _M_day_of_year; bool _M_is_neg; chrono::hours _M_hours; chrono::minutes _M_minutes; chrono::seconds _M_seconds; chrono::seconds _M_zone_offset; basic_string_view<_CharT> _M_zone_abbrev; const char* _M_zone_cstr = ""; template [[__gnu__::__always_inline__]] _ChronoParts _M_fill_year_month(const _YearMonth& __ym, _ChronoParts __parts) { _M_year = __ym.year(); __parts -= _ChronoParts::_Year; _M_month = __ym.month(); __parts -= _ChronoParts::_Month; return __parts; } [[__gnu__::__always_inline__]] _ChronoParts _M_fill_day(chrono::day __d, _ChronoParts __parts) { _M_day = __d; __parts -= _ChronoParts::_Day; _M_weekday_index = ((unsigned)__d + 6u) / 7u; __parts -= _ChronoParts::_WeekdayIndex; return __parts; } [[__gnu__::__always_inline__]] _ChronoParts _M_fill_weekday(chrono::weekday_indexed __wi, _ChronoParts __parts) { _M_weekday = __wi.weekday(); __parts -= _ChronoParts::_Weekday; _M_weekday_index = __wi.index(); __parts -= _ChronoParts::_WeekdayIndex; return __parts; } // pre: _M_year is set [[__gnu__::__always_inline__]] _ChronoParts _M_fill_aux(chrono::local_days __ld, _ChronoParts __parts) { using namespace chrono; if ((__parts & _ChronoParts::_Weekday) != 0) _M_weekday = weekday(__ld); __parts -= _ChronoParts::_Weekday; if ((__parts & _ChronoParts::_DayOfYear) != 0) // See "Calculating Ordinal Dates" at // https://github.com/HowardHinnant/date/wiki/Examples-and-Recipes _M_day_of_year = __ld - local_days(_M_year/January/0); __parts -= _ChronoParts::_DayOfYear; return __parts; } // pre: _M_year is set [[__gnu__::__always_inline__]] _ChronoParts _M_fill_ldays(chrono::local_days __ld, _ChronoParts __parts) { _M_ldays = __ld; __parts -= _ChronoParts::_LocalDays; return _M_fill_aux(__ld, __parts); } void _M_fill_time(chrono::seconds __d) { chrono::hh_mm_ss __hms(__d); _M_hours = __hms.hours(); _M_minutes = __hms.minutes(); _M_seconds = __hms.seconds(); } void _M_fill_date_time(chrono::local_seconds __ls, _ChronoParts __parts) { _M_ldays = chrono::floor(__ls); __parts -= _ChronoParts::_LocalDays; if ((__parts & _ChronoParts::_HoursMinutesSeconds) != 0) _M_fill_time(_M_lseconds - _M_ldays); if ((__parts & _ChronoParts::_Date) != 0) { const chrono::year_month_day __ymd(_M_ldays); _M_fill_year_month(__ymd, __parts); _M_fill_day(__ymd.day(), __parts); _M_fill_aux(_M_ldays, __parts); } } void _M_fill_zone(const char* __abbrev, const wchar_t* __wabbrev) { if constexpr (is_same_v<_CharT, char>) _M_zone_abbrev = __abbrev; else _M_zone_abbrev = __wabbrev; _M_zone_cstr = __abbrev; } [[__gnu__::__always_inline__]] void _M_fill_utc_zone() { _M_fill_zone("UTC", L"UTC"); } }; // TODO rename this to chrono::__formatter? or chrono::__detail::__formatter? template struct __formatter_chrono { using __string_view = basic_string_view<_CharT>; using __string = basic_string<_CharT>; __formatter_chrono() = default; constexpr explicit __formatter_chrono(_ChronoSpec<_CharT> __spec) noexcept : _M_spec(__spec) { } constexpr typename basic_format_parse_context<_CharT>::iterator _M_parse(basic_format_parse_context<_CharT>& __pc, _ChronoParts __parts, const _ChronoSpec<_CharT>& __def) { auto __first = __pc.begin(); auto __last = __pc.end(); _ChronoSpec<_CharT> __spec = __def; auto __finalize = [this, &__spec, &__def] { using enum _ChronoParts; _ChronoParts __checked = __spec._M_debug ? _YearMonthDay|_IndexedWeekday : _Month|_Weekday; // n.b. for calendar types __def._M_needed contains only parts // copied from the input, remaining ones are computed, and thus ok __spec._M_needs_ok_check = __spec._M_needs(__def._M_needed & __checked); _M_spec = __spec; }; auto __finished = [&] { if (__first == __last || *__first == '}') { __finalize(); return true; } return false; }; if (__finished()) return __first; __first = __spec._M_parse_fill_and_align(__first, __last); if (__finished()) return __first; __first = __spec._M_parse_width(__first, __last, __pc); if (__finished()) return __first; if (*__first == '.') { if ((__parts & _ChronoParts::_EpochUnits) == 0 || !__spec._M_floating_point_rep) __throw_format_error("format error: invalid precision for duration"); // Precision is allowed, but value is ignored. __first = _Spec<_CharT>()._M_parse_precision(__first, __last, __pc); // Still inditate that there was user supplied precision. __spec._M_prec_kind = _WP_value; if (__finished()) return __first; } __spec._M_localized = false; __first = __spec._M_parse_locale(__first, __last); if (__finished()) return __first; // Everything up to the end of the string or the first '}' is a // chrono-specs string. Check it is valid. { __string_view __str(__first, __last - __first); auto __end = __str.find('}'); if (__end != __str.npos) { __str.remove_suffix(__str.length() - __end); __last = __first + __end; } if (__str.find('{') != __str.npos) __throw_format_error("chrono format error: '{' in chrono-specs"); } // Parse chrono-specs in [first,last), checking each conversion-spec // against __parts (so fail for %Y if no year in parts). // Save range in __spec._M_chrono_specs. __spec._M_debug = false; __spec._M_locale_specific = false; __spec._M_needed = _ChronoParts::_None; __spec._M_chrono_specs = __string_view(); const auto __chrono_specs = __first++; // Skip leading '%' if (*__chrono_specs != '%') __throw_format_error("chrono format error: no '%' at start of " "chrono-specs"); _CharT __mod{}; bool __conv = true; while (__first != __last) { enum _Mods { _Mod_none, _Mod_E, _Mod_O, _Mod_E_O }; _Mods __allowed_mods = _Mod_none; _ChronoParts __needed = _ChronoParts::_None; bool __locale_specific = false; _CharT __c = *__first++; switch (__c) { using enum _ChronoParts; case 'a': case 'A': __needed = _Weekday; __locale_specific = true; break; case 'b': case 'h': case 'B': __needed = _Month; __locale_specific = true; break; case 'c': __needed = _Date|_HoursMinutesSeconds; __allowed_mods = _Mod_E; __locale_specific = true; break; case 'C': __needed = _Year; __allowed_mods = _Mod_E; break; case 'd': case 'e': __needed = _Day; __allowed_mods = _Mod_O; break; case 'D': case 'F': __needed = _YearMonthDay; break; case 'g': case 'G': case 'V': __needed = _LocalDays|_Year|_DayOfYear|_Weekday; break; case 'H': case 'I': __needed = _HoursMinutesSeconds; __allowed_mods = _Mod_O; break; case 'j': __needed = __parts & _DayOfYear; // If we do not know day-of-year then we must have a duration, // which is to be formatted as decimal number of days. if (__needed == _None) __needed = _HoursMinutesSeconds; break; case 'm': __needed = _Month; __allowed_mods = _Mod_O; break; case 'M': __needed = _HoursMinutesSeconds; __allowed_mods = _Mod_O; break; case 'p': case 'r': __locale_specific = true; [[fallthrough]]; case 'R': __needed = _HoursMinutesSeconds; break; case 'T': __needed = _TimeOfDay; break; case 'q': __needed = _UnitSuffix; break; case 'Q': __needed = _EpochUnits; break; case 'S': __needed = _TimeOfDay; __allowed_mods = _Mod_O; break; case 'u': case 'w': __needed = _Weekday; __allowed_mods = _Mod_O; break; case 'U': case 'W': __needed = _DayOfYear|_Weekday; __allowed_mods = _Mod_O; break; case 'x': __needed = _Date; __locale_specific = true; __allowed_mods = _Mod_E; break; case 'X': __needed = _HoursMinutesSeconds; __locale_specific = true; __allowed_mods = _Mod_E; break; case 'y': __needed = _Year; __allowed_mods = _Mod_E_O; break; case 'Y': __needed = _Year; __allowed_mods = _Mod_E; break; case 'z': __needed = _ZoneOffset; __allowed_mods = _Mod_E_O; break; case 'Z': __needed = _ZoneAbbrev; break; case 'n': case 't': case '%': break; case 'O': case 'E': if (__mod) [[unlikely]] { __allowed_mods = _Mod_none; break; } __mod = __c; continue; default: __throw_format_error("chrono format error: invalid specifier " "in chrono-specs"); } if ((__mod == 'E' && !(__allowed_mods & _Mod_E)) || (__mod == 'O' && !(__allowed_mods & _Mod_O))) __throw_format_error("chrono format error: invalid modifier " "in chrono-specs"); if (__mod && __c != 'z') __locale_specific = true; __mod = _CharT(); // localized formats do not include subseconds if (__locale_specific) __needed -= _ChronoParts::_Subseconds; if ((__parts & __needed) != __needed) __throw_format_error("chrono format error: format argument does " "not contain the information required by the " "chrono-specs"); __spec._M_needed |= __needed; __spec._M_locale_specific |= __locale_specific; // Scan for next '%', ignoring literal-chars before it. size_t __pos = __string_view(__first, __last - __first).find('%'); if (__pos == 0) ++__first; else { if (__pos == __string_view::npos) { __first = __last; __conv = false; } else __first += __pos + 1; } } // Check for a '%' conversion-spec without a type. if (__conv || __mod != _CharT()) __throw_format_error("chrono format error: unescaped '%' in " "chrono-specs"); __spec._M_chrono_specs = __string_view(__chrono_specs, __first - __chrono_specs); __finalize(); return __first; } // pre: !_M_spec._M_chrono_specs.empty() template typename _FormatContext::iterator _M_format(const _ChronoData<_CharT>& __t, _FormatContext& __fc) const { #if defined _GLIBCXX_USE_NL_LANGINFO_L && __CHAR_BIT__ == 8 // _GLIBCXX_RESOLVE_LIB_DEFECTS // 3565. Handling of encodings in localized formatting // of chrono types is underspecified if constexpr (is_same_v<_CharT, char>) if constexpr (__unicode::__literal_encoding_is_utf8()) if (_M_spec._M_localized && _M_spec._M_locale_specific) { extern locale __with_encoding_conversion(const locale&); // Allocate and cache the necessary state to convert strings // in the locale's encoding to UTF-8. locale __loc = __fc.locale(); if (__loc != locale::classic()) __fc._M_loc = __with_encoding_conversion(__loc); } #endif const size_t __padwidth = _M_spec._M_get_width(__fc); if (__padwidth == 0) return _M_format_to(__t, __fc.out(), __fc); using _Out = typename _FormatContext::iterator; _Padding_sink<_Out, _CharT> __sink(__fc.out(), __padwidth); _M_format_to(__t, __sink.out(), __fc); return __sink._M_finish(_M_spec._M_align, _M_spec._M_fill); } _ChronoSpec<_CharT> _M_spec; protected: static constexpr const _CharT* _S_chars = _GLIBCXX_WIDEN("0123456789.Lf:/ +-{}"); static constexpr _CharT _S_dot = _S_chars[10]; static constexpr _CharT _S_colon = _S_chars[13]; static constexpr _CharT _S_slash = _S_chars[14]; static constexpr _CharT _S_space = _S_chars[15]; static constexpr const _CharT* _S_fp_fmt = _S_chars + 11; static constexpr const _CharT* _S_plus_minus = _S_chars + 16; static constexpr const _CharT* _S_minus_empty_spec = _S_chars + 17; static constexpr const _CharT* _S_empty_spec = _S_chars + 18; [[__gnu__::__always_inline__]] static _Dynamic_format_string<_CharT> _S_empty_fs() { return _Dynamic_format_string<_CharT>(_S_empty_spec); } static constexpr const _CharT* _S_weekdays[] { _GLIBCXX_WIDEN("Sunday"), _GLIBCXX_WIDEN("Monday"), _GLIBCXX_WIDEN("Tuesday"), _GLIBCXX_WIDEN("Wednesday"), _GLIBCXX_WIDEN("Thursday"), _GLIBCXX_WIDEN("Friday"), _GLIBCXX_WIDEN("Saturday"), }; static constexpr const _CharT* _S_months[] { _GLIBCXX_WIDEN("January"), _GLIBCXX_WIDEN("February"), _GLIBCXX_WIDEN("March"), _GLIBCXX_WIDEN("April"), _GLIBCXX_WIDEN("May"), _GLIBCXX_WIDEN("June"), _GLIBCXX_WIDEN("July"), _GLIBCXX_WIDEN("August"), _GLIBCXX_WIDEN("September"), _GLIBCXX_WIDEN("October"), _GLIBCXX_WIDEN("November"), _GLIBCXX_WIDEN("December"), }; private: template _OutIter _M_write(_OutIter __out, [[maybe_unused]] const locale& __loc, __string_view __s) const { #if defined _GLIBCXX_USE_NL_LANGINFO_L && __CHAR_BIT__ == 8 __sso_string __buf; // _GLIBCXX_RESOLVE_LIB_DEFECTS // 3565. Handling of encodings in localized formatting // of chrono types is underspecified if constexpr (is_same_v<_CharT, char>) if constexpr (__unicode::__literal_encoding_is_utf8()) if (_M_spec._M_localized && _M_spec._M_locale_specific && __loc != locale::classic()) { extern string_view __locale_encoding_to_utf8(const locale&, string_view, void*); __s = __locale_encoding_to_utf8(__loc, __s, &__buf); } #endif return __format::__write(std::move(__out), __s); } [[__gnu__::__always_inline__]] static bool _S_localized_spec(_CharT __conv, _CharT __mod) { switch (__conv) { case 'a': case 'A': case 'b': case 'B': case 'c': case 'h': case 'p': case 'r': case 'x': case 'X': return true; case 'z': return false; default: return (bool)__mod; }; } // Use the formatting locale's std::time_put facet to produce // a locale-specific representation. template _Iter _M_locale_fmt(_Iter __out, const locale& __loc, const struct tm& __tm, char __fmt, char __mod) const { basic_ostringstream<_CharT> __os; __os.imbue(__loc); const auto& __tp = use_facet>(__loc); __tp.put(__os, __os, _S_space, &__tm, __fmt, __mod); if (__os) __out = _M_write(std::move(__out), __loc, __os.view()); return __out; } __string_view _M_check_ok(const _ChronoData<_CharT>& __t, _CharT& __conv) const { if (!_M_spec._M_debug) { switch (__conv) { case 'a': case 'A': if (!__t._M_weekday.ok()) [[unlikely]] __throw_format_error("format error: invalid weekday"); break; case 'b': case 'h': case 'B': if (!__t._M_month.ok()) [[unlikely]] __throw_format_error("format error: invalid month"); break; default: break; } return __string_view(); } switch (__conv) { // %\0 is extension for handling weekday index case '\0': if (__t._M_weekday_index < 1 || __t._M_weekday_index > 5) [[unlikely]] return _GLIBCXX_WIDEN("index"); break; case 'a': case 'A': if (!__t._M_weekday.ok()) [[unlikely]] { __conv = 'w'; // print as decimal number return _GLIBCXX_WIDEN("weekday"); } break; case 'b': case 'h': case 'B': if (!__t._M_month.ok()) [[unlikely]] { __conv = 'm'; // print as decimal number return _GLIBCXX_WIDEN("month"); } break; case 'd': case 'e': if (!__t._M_day.ok()) [[unlikely]] return _GLIBCXX_WIDEN("day"); break; case 'F': if (!(__t._M_year/__t._M_month/__t._M_day).ok()) [[unlikely]] return _GLIBCXX_WIDEN("date"); break; case 'Y': if (!__t._M_year.ok()) [[unlikely]] return _GLIBCXX_WIDEN("year"); break; default: break; } return __string_view(); } template _OutIter _M_format_to(const _ChronoData<_CharT>& __t, _OutIter __out, _FormatContext& __fc) const { auto __first = _M_spec._M_chrono_specs.begin(); const auto __last = _M_spec._M_chrono_specs.end(); auto __print_sign = [__is_neg = __t._M_is_neg, &__out] () mutable { if (__is_neg) { *__out++ = _S_plus_minus[1]; __is_neg = false; } return std::move(__out); }; struct tm __tm{}; bool __use_locale_fmt = false; if (_M_spec._M_localized && _M_spec._M_locale_specific) if (__fc.locale() != locale::classic()) { __use_locale_fmt = true; __tm.tm_year = (int)__t._M_year - 1900; __tm.tm_yday = __t._M_day_of_year.count(); __tm.tm_mon = (unsigned)__t._M_month - 1; __tm.tm_mday = (unsigned)__t._M_day; __tm.tm_wday = __t._M_weekday.c_encoding(); __tm.tm_hour = __t._M_hours.count(); __tm.tm_min = __t._M_minutes.count(); __tm.tm_sec = __t._M_seconds.count(); // Some locales use %Z in their %c format but we don't want strftime // to use the system's local time zone (from /etc/localtime or $TZ) // as the output for %Z. Setting tm_isdst to -1 says there is no // time zone info available for the time in __tm. __tm.tm_isdst = -1; #ifdef _GLIBCXX_USE_STRUCT_TM_TM_ZONE // POSIX.1-2024 adds tm.tm_zone which will be used for %Z. // BSD has had tm_zone since 1987 but as char* so cast away const. if (__t._M_zone_cstr) __tm.tm_zone = const_cast(__t._M_zone_cstr); #endif } // Characters to output for "%n", "%t" and "%%" specifiers. constexpr const _CharT* __literals = _GLIBCXX_WIDEN("\n\t%"); ++__first; // Skip leading '%' at start of chrono-specs. _CharT __mod{}; do { _CharT __c = *__first++; __string_view __invalid; if (_M_spec._M_needs_ok_check) __invalid = _M_check_ok(__t, __c); if (__invalid.empty() &&__use_locale_fmt && _S_localized_spec(__c, __mod)) [[unlikely]] __out = _M_locale_fmt(std::move(__out), __fc.locale(), __tm, __c, __mod); else switch (__c) { // %\0 is extension for handling weekday index case '\0': __out = _M_wi(__t._M_weekday_index, std::move(__out)); break; case 'a': case 'A': __out = _M_a_A(__t._M_weekday, std::move(__out), __c == 'A'); break; case 'b': case 'h': case 'B': __out = _M_b_B(__t._M_month, std::move(__out), __c == 'B'); break; case 'c': __out = _M_c(__t, std::move(__out)); break; case 'C': case 'y': case 'Y': __out = _M_C_y_Y(__t._M_year, std::move(__out), __c); break; case 'd': case 'e': __out = _M_d_e(__t._M_day, std::move(__out), __c); break; case 'D': case 'x': __out = _M_D_x(__t, std::move(__out)); break; case 'F': __out = _M_F(__t, std::move(__out)); break; case 'g': case 'G': case 'V': __out = _M_g_G_V(__t, std::move(__out), __c); break; case 'H': case 'I': __out = _M_H_I(__t._M_hours, __print_sign(), __c); break; case 'j': __out = _M_j(__t, __print_sign()); break; case 'm': __out = _M_m(__t._M_month, std::move(__out)); break; case 'M': __out = _M_M(__t._M_minutes, __print_sign()); break; case 'p': __out = _M_p(__t._M_hours, std::move(__out)); break; case 'q': __out = _M_q(__t._M_unit_suffix, std::move(__out)); break; case 'Q': __out = _M_Q(__t, __print_sign(), __fc); break; case 'r': __out = _M_r(__t, __print_sign()); break; case 'R': case 'X': __out = _M_R_X(__t, __print_sign(), __c != 'R'); break; case 'T': __out = _M_T(__t, __print_sign(), __fc); break; case 'S': __out = _M_S(__t, __print_sign(), __fc, __mod != 'O'); break; case 'u': case 'w': __out = _M_u_w(__t._M_weekday, std::move(__out), __c); break; case 'U': case 'W': __out = _M_U_W(__t, std::move(__out), __c); break; case 'z': __out = _M_z(__t._M_zone_offset, std::move(__out), (bool)__mod); break; case 'Z': __out = _M_Z(__t._M_zone_abbrev, std::move(__out)); break; case 'n': *__out++ = __literals[0]; break; case 't': *__out++ = __literals[1]; break; case '%': *__out++ = __literals[2]; break; case 'O': case 'E': __mod = __c; continue; case '}': __first = __last; break; } if (!__invalid.empty()) { constexpr __string_view __pref = _GLIBCXX_WIDEN(" is not a valid "); __out = __format::__write(std::move(__out), __pref); __out = __format::__write(std::move(__out), __invalid); } __mod = _CharT(); // Scan for next '%' and write out everything before it. __string_view __str(__first, __last - __first); size_t __pos = __str.find('%'); if (__pos == 0) ++__first; else { if (__pos == __str.npos) __first = __last; else { __str.remove_suffix(__str.length() - __pos); __first += __pos + 1; } __out = __format::__write(std::move(__out), __str); } } while (__first != __last); return std::move(__out); } template _OutIter _M_wi(unsigned __wi, _OutIter __out) const { // %\0 Extension to format weekday index, used only by empty format spec _CharT __buf[3]; __out = __format::__write(std::move(__out), _S_str_d1(__buf, __wi)); return std::move(__out); } template _OutIter _M_a_A(chrono::weekday __wd, _OutIter __out, bool __full) const { // %a Locale's abbreviated weekday name. // %A Locale's full weekday name. __string_view __str = _S_weekdays[__wd.c_encoding()]; if (!__full) __str = __str.substr(0, 3); return __format::__write(std::move(__out), __str); } template _OutIter _M_b_B(chrono::month __m, _OutIter __out, bool __full) const { // %b Locale's abbreviated month name. // %B Locale's full month name. __string_view __str = _S_months[(unsigned)__m - 1]; if (!__full) __str = __str.substr(0, 3); return __format::__write(std::move(__out), __str); } template _OutIter _M_c(const _ChronoData<_CharT>& __t, _OutIter __out) const { // %c Locale's date and time representation, for C-locale: %a %b %e %T %Y // %Ec Locale's alternate date and time representation, for C-locale same as above __out = _M_a_A(__t._M_weekday, std::move(__out), false); *__out = _S_space; __out = _M_b_B(__t._M_month, std::move(++__out), false); *__out = _S_space; __out = _M_d_e(__t._M_day, std::move(++__out), 'e'); *__out = _S_space; __out = _M_R_X(__t, std::move(++__out), true); *__out = _S_space; return _M_C_y_Y(__t._M_year, std::move(++__out), 'Y'); } template _OutIter _M_C_y_Y(chrono::year __y, _OutIter __out, _CharT __conv) const { // %C Year divided by 100 using floored division. // %EC Locale's alternative preresentation of the century (era name). // %y Last two decimal digits of the year. // %Oy Locale's alternative representation. // %Ey Locale's alternative representation of offset from %EC. // %Y Year as a decimal number. // %EY Locale's alternative full year representation. int __yi = (int)__y; const bool __is_neg = __yi < 0; // _GLIBCXX_RESOLVE_LIB_DEFECTS // 3831. Two-digit formatting of negative year is ambiguous __yi = __builtin_abs(__yi); int __ci = __yi / 100; // For floored division -123//100 is -2 and -100//100 is -1 if (__conv == 'C' && __is_neg && (__ci * 100) != __yi) [[unlikely]] ++__ci; if (__conv != 'y' && __ci >= 100) [[unlikely]] { using _FmtStr = _Dynamic_format_string<_CharT>; __string_view __fs = _S_minus_empty_spec + !__is_neg; __out = std::format_to(std::move(__out), _FmtStr(__fs), __conv == 'C' ? __ci : __yi); } else { _CharT __buf[5]; __buf[0] = _S_plus_minus[1]; __string_view __sv(__buf + 3, __buf + 3); if (__conv != 'y') { _S_fill_two_digits(__buf + 1, __ci); __sv = __string_view(__buf + !__is_neg, __buf + 3); } if (__conv != 'C') { _S_fill_two_digits(__buf + 3, __yi % 100); __sv = __string_view(__sv.data(), __buf + 5); } __out = __format::__write(std::move(__out), __sv); } return __out; } template _OutIter _M_D_x(const _ChronoData<_CharT>& __t, _OutIter __out) const { // %D Equivalent to %m/%d/%y // %x Locale's date rep, for C-locale: %m/%d/%y // %Ex Locale's alternative date representation, for C-locale same as above auto __di = (unsigned)__t._M_day; auto __mi = (unsigned)__t._M_month; auto __yi = __builtin_abs((int)__t._M_year) % 100; if (__mi >= 100 || __di >= 100) [[unlikely]] { using _FmtStr = _Dynamic_format_string<_CharT>; __string_view __fs = _GLIBCXX_WIDEN("{:02d}/{:02d}/{:02d}"); __out = std::format_to(std::move(__out), _FmtStr(__fs), __mi, __di, __yi); } else { _CharT __buf[8]; __buf[2] = _S_slash; __buf[5] = _S_slash; __string_view __sv(__buf, __buf + 8); _S_fill_two_digits(__buf, __mi); _S_fill_two_digits(__buf + 3, __di); _S_fill_two_digits(__buf + 6, __yi); __out = __format::__write(std::move(__out), __sv); } return std::move(__out); } template _OutIter _M_d_e(chrono::day __d, _OutIter __out, _CharT __conv) const { // %d The day of month as a decimal number. // %Od Locale's alternative representation. // %e Day of month as decimal number, padded with space. // %Oe Locale's alternative digits. unsigned __i = (unsigned)__d; _CharT __buf[3]; auto __sv = _S_str_d2(__buf, __i); if (__conv == _CharT('e') && __i < 10) { __buf[1] = __sv[1]; __buf[0] = _S_space; __sv = {__buf, 2}; } __out = __format::__write(std::move(__out), __sv); return std::move(__out); } template _OutIter _M_F(const _ChronoData<_CharT>& __t, _OutIter __out) const { auto __di = (unsigned)__t._M_day; auto __mi = (unsigned)__t._M_month; auto __yi = (int)__t._M_year; const bool __is_neg = __yi < 0; __yi = __builtin_abs(__yi); if (__yi >= 10000 || __mi >= 100 || __di >= 100) [[unlikely]] { using _FmtStr = _Dynamic_format_string<_CharT>; __string_view __fs = _GLIBCXX_WIDEN("-{:04d}-{:02d}-{:02d}") + !__is_neg; __out = std::format_to(std::move(__out), _FmtStr(__fs), __yi, __mi, __di); } else { _CharT __buf[11]; __buf[0] = _S_plus_minus[1]; __buf[5] = _S_plus_minus[1]; __buf[8] = _S_plus_minus[1]; __string_view __sv(__buf + !__is_neg, __buf + 11); _S_fill_two_digits(__buf + 1, __yi / 100); _S_fill_two_digits(__buf + 3, __yi % 100); _S_fill_two_digits(__buf + 6, __mi); _S_fill_two_digits(__buf + 9, __di); __out = __format::__write(std::move(__out), __sv); } return std::move(__out); } template _OutIter _M_g_G_V(const _ChronoData<_CharT>& __t, _OutIter __out, _CharT __conv) const { // %g last two decimal digits of the ISO week-based year. // %G ISO week-based year. // %V ISO week-based week number as a decimal number. // %OV Locale's alternative numeric rep. // ISO week-based year of __t is the year that contains the nearest // Thursday. The ISO week of __t is the number of weeks since // January 1 of that year. using namespace chrono; // Offset of the nearest Thursday: const days __offset = (__t._M_weekday - Monday) - days(3); // Nearest Thursday as local days: const local_days __ild = __t._M_ldays - __offset; // Day of year of nearest Thursday: days __idoy = __t._M_day_of_year - __offset; // Year of nearest Thursday: year __iyear; if (__idoy <= days(0)) __iyear = __t._M_year - years(1); else if (__idoy <= days(365)) __iyear = __t._M_year; else if (__idoy == days(366) && __t._M_year.is_leap()) __iyear = __t._M_year; else if (__idoy <= days(730)) __iyear = __t._M_year + years(1); else [[unlikely]] __iyear = year_month_day(__ild).year(); if (__conv != 'V') return _M_C_y_Y(__iyear, std::move(__out), "yY"[__conv == 'G']); if (__iyear != __t._M_year) __idoy = __ild - local_days(__iyear/January/0); const auto __wi = chrono::floor(__idoy - days(1)).count() + 1; return __format::__write(std::move(__out), _S_two_digits(__wi)); } template _OutIter _M_H_I(chrono::hours __h, _OutIter __out, _CharT __conv) const { // %H The hour (24-hour clock) as a decimal number. // %OH Locale's alternative representation. // %I The hour (12-hour clock) as a decimal number. // %OI Locale's alternative representation. int __i = __h.count(); if (__conv == _CharT('I')) { __i %= 12; if (__i == 0) __i = 12; } else if (__i >= 100) [[unlikely]] return std::format_to(std::move(__out), _S_empty_fs(), __i); return __format::__write(std::move(__out), _S_two_digits(__i)); } template _OutIter _M_j(const _ChronoData<_CharT>& __t, _OutIter __out) const { if (!_M_spec._M_needs(_ChronoParts::_DayOfYear)) { // Decimal number of days, without padding. auto __d = chrono::floor(__t._M_hours).count(); return std::format_to(std::move(__out), _S_empty_fs(), __d); } auto __d = __t._M_day_of_year.count(); if (__d >= 1000) [[unlikely]] return std::format_to(std::move(__out), _S_empty_fs(), __d); _CharT __buf[3]; return __format::__write(std::move(__out), _S_str_d3(__buf, __d)); } template _OutIter _M_m(chrono::month __m, _OutIter __out) const { // %m month as a decimal number. // %Om Locale's alternative representation. auto __i = (unsigned)__m; if (__i == 0 && _M_spec._M_debug) [[unlikely]] // 0 should not be padded to two digits return __format::__write(std::move(__out), _S_digit(0)); _CharT __buf[3]; return __format::__write(std::move(__out), _S_str_d2(__buf, __i)); } template _OutIter _M_M(chrono::minutes __m, _OutIter __out) const { // %M The minute as a decimal number. // %OM Locale's alternative representation. auto __i = __m.count(); return __format::__write(std::move(__out), _S_two_digits(__i)); } template _OutIter _M_p(chrono::hours __h, _OutIter __out) const { // %p The locale's equivalent of the AM/PM designations. _CharT __buf[2]; _S_fill_ampm(__buf, __h); return __format::__write(std::move(__out), __string_view(__buf, 2)); } template _OutIter _M_q(__string_view __us, _OutIter __out) const { // %q The duration's unit suffix return __format::__write(std::move(__out), __us); } template _OutIter _M_Q(const _ChronoData<_CharT>& __t, _OutIter __out, _FormatContext&) const { // %Q The duration's numeric value. return std::vformat_to(std::move(__out), _S_empty_spec, __t._M_ereps); } template _OutIter _M_r(const _ChronoData<_CharT>& __t, _OutIter __out) const { // %r Locale's 12-hour clock time, for C-locale: %I:%M:%S %p auto __hi = __t._M_hours.count() % 12; if (__hi == 0) __hi = 12; _CharT __buf[11]; __buf[2] = _S_colon; __buf[5] = _S_colon; __buf[8] = _S_space; _S_fill_two_digits(__buf, __hi); _S_fill_two_digits(__buf + 3, __t._M_minutes.count()); _S_fill_two_digits(__buf + 6, __t._M_seconds.count()); _S_fill_ampm(__buf + 9, __t._M_hours); return __format::__write(std::move(__out), __string_view(__buf, 11)); } template _OutIter _M_R_X(const _ChronoData<_CharT>& __t, _OutIter __out, bool __secs) const { // %R Equivalent to %H:%M // %X Locale's time rep, for C-locale: %H:%M:%S (without subseconds) // %EX Locale's alternative time representation, for C-locale same as above auto __hi = __t._M_hours.count(); _CharT __buf[8]; __buf[2] = _S_colon; __buf[5] = _S_colon; __string_view __sv(__buf, 8); if (__hi >= 100) [[unlikely]] { __out = std::format_to(std::move(__out), _S_empty_fs(), __hi); __sv.remove_prefix(2); } else _S_fill_two_digits(__buf, __hi); _S_fill_two_digits(__buf + 3, __t._M_minutes.count()); if (__secs) _S_fill_two_digits(__buf + 6, __t._M_seconds.count()); else __sv.remove_suffix(3); return __format::__write(std::move(__out), __sv); } template _OutIter _M_S(const _ChronoData<_CharT>& __t, _OutIter __out, _FormatContext& __ctx, bool __subs = true) const { // %S Seconds as a decimal number. // %OS The locale's alternative representation. auto __s = __t._M_seconds; __out = __format::__write(std::move(__out), _S_two_digits(__s.count())); if (__subs) __out = _M_subsecs(__t, std::move(__out), __ctx); return __out; } template _OutIter _M_subsecs(const _ChronoData<_CharT>& __t, _OutIter __out, _FormatContext& __ctx) const { unsigned __prec = _M_spec._M_prec_kind != _WP_none ? _M_spec._M_get_precision(__ctx) : _M_spec._M_prec; if (__prec == 0) return __out; _CharT __dot = _S_dot; if (_M_spec._M_localized) [[unlikely]] { auto __loc = __ctx.locale(); const auto& __np = use_facet>(__loc); __dot = __np.decimal_point(); } *__out = __dot; ++__out; if (_M_spec._M_floating_point_rep) { _Str_sink<_CharT> __sink; if (_M_spec._M_localized && _M_spec._M_custom_rep) [[unlikely]] std::vformat_to(__sink.out(), __ctx.locale(), _GLIBCXX_WIDEN("{1:0.{2}Lf}"), __t._M_ereps); else std::vformat_to(__sink.out(), _GLIBCXX_WIDEN("{1:0.{2}f}"), __t._M_ereps); auto __sv = __sink.view(); // Skip leading zero and dot __sv.remove_prefix(2); return __format::__write(std::move(__out), __sv); } constexpr unsigned __max_prec = _ChronoData<_CharT>::_S_max_prec; constexpr typename _ChronoData<_CharT>::_Attoseconds::rep __pow10t[] { 1u, 10u, 100u, 1000u, 10'000u, 100'000u, 1000'000u, 10'000'000u, 100'000'000u, 1000'000'000u, 10'000'000'000u, 100'000'000'000u, 1000'000'000'000u, 10'000'000'000'000u, 100'000'000'000'000u, 1000'000'000'000'000u, 10'000'000'000'000'000u, 100'000'000'000'000'000u, 1000'000'000'000'000'000u, }; auto __subs = __t._M_subseconds.count(); if (__prec < __max_prec) __subs /= __pow10t[__max_prec - __prec]; else if (__prec > __max_prec) __prec = __max_prec; using _FmtStr = _Dynamic_format_string<_CharT>; return std::format_to(__out, _FmtStr(_GLIBCXX_WIDEN("{0:0{1}}")), __subs, __prec); } // %t handled in _M_format template _OutIter _M_T(const _ChronoData<_CharT>& __t, _OutIter __out, _FormatContext& __ctx) const { // %T Equivalent to %H:%M:%S, with subseconds __out = _M_R_X(__t, std::move(__out), true); return _M_subsecs(__t, std::move(__out), __ctx); } template _OutIter _M_u_w(chrono::weekday __wd, _OutIter __out, _CharT __conv) const { // %u ISO weekday as a decimal number (1-7), where Monday is 1. // %Ou Locale's alternative numeric rep. // %w Weekday as a decimal number (0-6), where Sunday is 0. // %Ow Locale's alternative numeric rep. unsigned __wdi = __conv == 'u' ? __wd.iso_encoding() : __wd.c_encoding(); _CharT __buf[3]; return __format::__write(std::move(__out), _S_str_d1(__buf, __wdi)); } template _OutIter _M_U_W(const _ChronoData<_CharT>& __t, _OutIter __out, _CharT __conv) const { // %U Week number of the year as a decimal number, from first Sunday. // %OU Locale's alternative numeric rep. // %W Week number of the year as a decimal number, from first Monday. // %OW Locale's alternative numeric rep. using namespace chrono; const weekday __weekstart = __conv == 'U' ? Sunday : Monday; const days __offset = __t._M_weekday - __weekstart; auto __weeks = chrono::floor(__t._M_day_of_year - __offset - days(1)); return __format::__write(std::move(__out), _S_two_digits(__weeks.count() + 1)); } template _OutIter _M_z(chrono::seconds __ts, _OutIter __out, bool __mod = false) const { if (__ts == 0s) { __string_view __zero = __mod ? _GLIBCXX_WIDEN("+00:00") : _GLIBCXX_WIDEN("+0000"); return __format::__write(std::move(__out), __zero); } chrono::hh_mm_ss __hms(__ts); unsigned __mo = 3 + __mod; _CharT __buf[6]; __buf[0] = _S_plus_minus[__hms.is_negative()]; __buf[3] = _S_colon; _S_fill_two_digits(__buf + 1, __hms.hours().count()); _S_fill_two_digits(__buf + __mo, __hms.minutes().count()); __string_view __sv(__buf, __mo + 2); return __format::__write(std::move(__out), __sv); } template _OutIter _M_Z(__string_view __abbrev, _OutIter __out) const { return __format::__write(std::move(__out), __abbrev); } // %% handled in _M_format // A string view of single digit character, "0".."9". static basic_string_view<_CharT> _S_digit(int __n) noexcept { // Extra 9s avoid past-the-end read on bad input. return { _GLIBCXX_WIDEN("0123456789999999") + (__n & 0xf), 1 }; } // A string view of two digit characters, "00".."99". static basic_string_view<_CharT> _S_two_digits(int __n) noexcept { return { _GLIBCXX_WIDEN("0001020304050607080910111213141516171819" "2021222324252627282930313233343536373839" "4041424344454647484950515253545556575859" "6061626364656667686970717273747576777879" "8081828384858687888990919293949596979899" "9999999999999999999999999999999999999999" "9999999999999999") + 2 * (__n & 0x7f), 2 }; } // Fills __buf[0] and __buf[1] with 2 digit value of __n. [[__gnu__::__always_inline__]] static void _S_fill_two_digits(_CharT* __buf, unsigned __n) { auto __sv = _S_two_digits(__n); __buf[0] = __sv[0]; __buf[1] = __sv[1]; } // Fills __buf[0] and __buf[1] with "AM", "PM" depending on __h. [[__gnu__::__always_inline__]] static void _S_fill_ampm(_CharT* __buf, chrono::hours __h) { auto __hi = __h.count(); if (__hi >= 24) [[unlikely]] __hi %= 24; constexpr const _CharT* __apm = _GLIBCXX_WIDEN("APM"); __buf[0] = __apm[__hi >= 12]; __buf[1] = __apm[2]; } // Returns decimal representation of __n. // Returned string_view may point to __buf. [[__gnu__::__always_inline__]] static basic_string_view<_CharT> _S_str_d1(span<_CharT, 3> __buf, unsigned __n) { if (__n < 10) [[likely]] return _S_digit(__n); return _S_str_d2(__buf, __n); } // Returns decimal representation of __n, padded to 2 digits. // Returned string_view may point to __buf. [[__gnu__::__always_inline__]] static basic_string_view<_CharT> _S_str_d2(span<_CharT, 3> __buf, unsigned __n) { if (__n < 100) [[likely]] return _S_two_digits(__n); return _S_str_d3(__buf, __n); } // Returns decimal representation of __n, padded to 3 digits. // Returned string_view points to __buf. [[__gnu__::__always_inline__]] static basic_string_view<_CharT> _S_str_d3(span<_CharT, 3> __buf, unsigned __n) { _S_fill_two_digits(__buf.data(), __n / 10); __buf[2] = _S_chars[__n % 10]; return __string_view(__buf.data(), 3); } }; template struct __formatter_duration : private __formatter_chrono<_CharT> { template constexpr static auto _S_subseconds(const chrono::duration<_Rep, _Period>& __d) { if constexpr (chrono::treat_as_floating_point_v<_Rep>) return chrono::duration<_Rep>(__d); else if constexpr (_Period::den == 1) return chrono::seconds(0); else { using _Attoseconds = _ChronoData<_CharT>::_Attoseconds; using _CRep = common_type_t<_Rep, typename _Attoseconds::rep>; chrono::duration<_CRep, _Period> __subs(__d.count()); return chrono::duration_cast<_Attoseconds>(__subs); } } public: template static consteval _ChronoSpec<_CharT> _S_spec_for(_ChronoParts __parts) { using _Rep = typename _Duration::rep; using enum _ChronoParts; _ChronoSpec<_CharT> __res{}; __res._M_floating_point_rep = chrono::treat_as_floating_point_v<_Rep>; __res._M_custom_rep = !is_arithmetic_v<_Rep>; __res._M_prec = chrono::hh_mm_ss<_Duration>::fractional_width; if ((__parts & _TimeOfDay) != 0) __res._M_localized = __res._M_prec > 0 || __res._M_floating_point_rep; if ((__parts & _TimeOfDay) != 0) __res._M_needed |= _TimeOfDay; if ((__parts & _Date) != 0) __res._M_needed |= _YearMonthDay; if ((__parts & _ZoneAbbrev) != 0) __res._M_needed |= _ZoneAbbrev; switch (__parts) { case _ZonedDateTime: __res._M_chrono_specs = _ChronoFormats<_CharT>::_S_ftz(); break; case _DateTime: __res._M_chrono_specs = _ChronoFormats<_CharT>::_S_ft(); break; case _Date: __res._M_chrono_specs = _ChronoFormats<_CharT>::_S_f(); break; case _Time: __res._M_chrono_specs = _ChronoFormats<_CharT>::_S_t(); break; case _None: break; default: __builtin_unreachable(); } return __res; }; template static consteval _ChronoSpec<_CharT> _S_spec_for_tp() { using enum _ChronoParts; // streaming of local_time is defined in terms of sys_time constexpr bool __stream_insertable = requires (basic_ostream<_CharT>& __os, chrono::sys_time<_Duration> __t) { __os << __t; }; if constexpr (!__stream_insertable) return _S_spec_for<_Duration>(_None); else if constexpr (is_convertible_v<_Duration, chrono::days>) return _S_spec_for<_Duration>(_Date); else return _S_spec_for<_Duration>(_DateTime); } using __formatter_chrono<_CharT>::__formatter_chrono; using __formatter_chrono<_CharT>::_M_spec; template constexpr typename basic_format_parse_context<_CharT>::iterator _M_parse(basic_format_parse_context<_CharT>& __pc, _ChronoParts __parts, const _ChronoSpec<_CharT>& __def) { using _Rep = typename _Duration::rep; using enum _ChronoParts; auto __res = __formatter_chrono<_CharT>::_M_parse(__pc, __parts, __def); // n.b. durations do not contain date parts, and for time point all // date parts are computed, and they are always ok. _M_spec._M_needs_ok_check = false; // check for custom floating point durations, if digits of output // will contain subseconds, then formatters must support specifying // precision. if constexpr (!is_floating_point_v<_Rep>) if constexpr (chrono::treat_as_floating_point_v<_Rep>) if (_M_spec._M_needs(_Subseconds|_EpochUnits) || _M_spec._M_prec_kind != _WP_none || _M_spec._M_prec_value > 0) { constexpr const _CharT* __fs = _GLIBCXX_WIDEN("#02.5Lf"); basic_format_parse_context<_CharT> __npc(__fs); formatter<_Rep, _CharT> __fmtter; __fmtter.parse(__npc); } return __res; } // Return the formatting locale. template std::locale _M_locale(_FormatContext& __fc) const { if (!_M_spec._M_localized) return std::locale::classic(); else return __fc.locale(); } // Format duration for empty chrono-specs, e.g. "{}" (C++20 [time.format] p6). template typename _FormatContext::iterator _M_format_to_ostream(const chrono::duration<_Rep, _Period>& __d, bool __is_neg, _FormatContext& __fc) const { basic_ostringstream<_CharT> __os; __os.imbue(this->_M_locale(__fc)); if (__is_neg) [[unlikely]] __os << this->_S_plus_minus[1]; __os << __d; auto __str = std::move(__os).str(); return __format::__write_padded_as_spec(__str, __str.size(), __fc, _M_spec); } template typename _FormatContext::iterator _M_format_units(_ChronoData<_CharT>& __cd, const chrono::duration<_Rep1, _Period1>& __ed, const chrono::duration<_Rep2, _Period2>& __ss, _FormatContext& __fc) const { __format::_Str_sink<_CharT> __suffix_store; constexpr auto _S_unit_suffix = chrono::__detail::__units_suffix<_Period1, _CharT>(); if constexpr (!_S_unit_suffix.empty()) __cd._M_unit_suffix = _S_unit_suffix; else if (_M_spec._M_needs(_ChronoParts::_UnitSuffix)) { chrono::__detail:: __fmt_units_suffix<_Period1, _CharT>(__suffix_store.out()); __cd._M_unit_suffix = __suffix_store.view(); } const auto __prec = _M_spec._M_prec_kind != _WP_none ? _M_spec._M_get_precision(__fc) : _M_spec._M_prec; using _ErasedContext = typename _ChronoData<_CharT>::_FormatContext; // _GLIBCXX_RESOLVE_LIB_DEFECTS // 4118. How should duration formatters format custom rep? auto __ereps = +__ed.count(); if (!_M_spec._M_needs(_ChronoParts::_Subseconds)) { auto __ssreps = 0u; auto __args_store = std::make_format_args<_ErasedContext>(__ereps, __ssreps, __prec); __cd._M_ereps = __args_store; return this->_M_format(__cd, __fc); } using _Attoseconds = _ChronoData<_CharT>::_Attoseconds; auto __nss = _S_subseconds(__ss); __cd._M_subseconds = chrono::duration_cast<_Attoseconds>(__nss); auto __ssreps = __nss.count(); auto __args_store = std::make_format_args<_ErasedContext>(__ereps, __ssreps, __prec); __cd._M_ereps = __args_store; return this->_M_format(__cd, __fc); } // pre: __cd._M_lseconds and __cd._M_eseconds are set. template typename _FormatContext::iterator _M_format_time_point(_ChronoData<_CharT>& __cd, const chrono::duration<_Rep1, _Period1>& __ed, _FormatContext& __fc) const { auto __parts = _M_spec._M_needed - _ChronoParts::_TotalSeconds; if ((__parts & _ChronoParts::_DateTime) != 0) __cd._M_fill_date_time(__cd._M_lseconds, __parts); return _M_format_units(__cd, __ed, __ed - __cd._M_eseconds, __fc); } }; #if _GLIBCXX_USE_CXX11_ABI || ! _GLIBCXX_USE_DUAL_ABI template struct __formatter_chrono_info { constexpr typename basic_format_parse_context<_CharT>::iterator parse(basic_format_parse_context<_CharT>& __pc) { return _M_f._M_parse(__pc, _ChronoParts(), {}); } template typename basic_format_context<_Out, _CharT>::iterator format(const _Info& __i, basic_format_context<_Out, _CharT>& __fc) const { // n.b. only acceptable chrono-spec for info is one containing // only whitespaces and %%, that do not depend on formatted object. if (!_M_f._M_spec._M_chrono_specs.empty()) [[unlikely]] return _M_f._M_format(_ChronoData<_CharT>{}, __fc); const size_t __padwidth = _M_f._M_spec._M_get_width(__fc); if (__padwidth == 0) return _M_format_to(__fc.out(), __i); _Padding_sink<_Out, _CharT> __sink(__fc.out(), __padwidth); _M_format_to(__sink.out(), __i); return __sink._M_finish(_M_f._M_spec._M_align, _M_f._M_spec._M_fill); } private: template _Out _M_format_to(_Out __out, const chrono::sys_info& __si) const { using _FmtStr = _Dynamic_format_string<_CharT>; // n.b. only decimal separator is locale dependent for specifiers // used below, as sys_info uses seconds and minutes duration, the // output is locale-independent. constexpr auto* __fs = _GLIBCXX_WIDEN("[{0:%F %T},{1:%F %T},{2:%T},{3:%Q%q},{0:%Z}]"); const chrono::local_seconds __lb(__si.begin.time_since_epoch()); return std::format_to(std::move(__out), _FmtStr(__fs), chrono::local_time_format(__lb, &__si.abbrev), __si.end, __si.offset, __si.save); } template _Out _M_format_to(_Out __out, const chrono::local_info& __li) const { *__out = _Separators<_CharT>::_S_squares()[0]; ++__out; if (__li.result == chrono::local_info::unique) __out = _M_format_to(std::move(__out), __li.first); else { basic_string_view<_CharT> __sv; if (__li.result == chrono::local_info::nonexistent) __sv =_GLIBCXX_WIDEN("nonexistent"); else __sv = _GLIBCXX_WIDEN("ambiguous"); __out = __format::__write(std::move(__out), __sv); __sv = _GLIBCXX_WIDEN(" local time between "); __out = __format::__write(std::move(__out), __sv); __out = _M_format_to(std::move(__out), __li.first); __sv = _GLIBCXX_WIDEN(" and "); __out = __format::__write(std::move(__out), __sv); __out = _M_format_to(std::move(__out), __li.second); } *__out = _Separators<_CharT>::_S_squares()[1]; ++__out; return std::move(__out); } __formatter_chrono<_CharT> _M_f; }; #endif } // namespace __format /// @endcond template requires __format::__formattable_impl<_Rep, _CharT> struct formatter, _CharT> { constexpr typename basic_format_parse_context<_CharT>::iterator parse(basic_format_parse_context<_CharT>& __pc) { using enum __format::_ChronoParts; return _M_f.template _M_parse<_Duration>(__pc, _EpochTime, __defSpec); } template typename basic_format_context<_Out, _CharT>::iterator format(const chrono::duration<_Rep, _Period>& __d, basic_format_context<_Out, _CharT>& __fc) const { if constexpr (numeric_limits<_Rep>::is_signed) if (__d < __d.zero()) [[unlikely]] { if constexpr (is_integral_v<_Rep>) { // -d is undefined for the most negative integer. // Convert duration to corresponding unsigned rep. using _URep = make_unsigned_t<_Rep>; auto __ucnt = -static_cast<_URep>(__d.count()); auto __ud = chrono::duration<_URep, _Period>(__ucnt); return _M_format(__ud, true, __fc); } else return _M_format(-__d, true, __fc); } return _M_format(__d, false, __fc); } private: using _Duration = chrono::duration<_Rep, _Period>; static constexpr __format::_ChronoSpec<_CharT> __defSpec = [] { using enum __format::_ChronoParts; auto __res = __format::__formatter_duration<_CharT>:: template _S_spec_for<_Duration>(_None); __res._M_localized = !is_integral_v<_Rep>; // n.b. for integral format output is the same as ostream output if constexpr (is_integral_v<_Rep>) { __res._M_needed = _EpochUnits|_UnitSuffix; __res._M_chrono_specs = _GLIBCXX_WIDEN("%Q%q"); } return __res; }(); template typename basic_format_context<_Out, _CharT>::iterator _M_format(const chrono::duration<_Rep2, _Period>& __d, bool __is_neg, basic_format_context<_Out, _CharT>& __fc) const { using namespace chrono; using enum __format::_ChronoParts; if constexpr (!is_integral_v<_Rep>) if (_M_f._M_spec._M_chrono_specs.empty()) return _M_f._M_format_to_ostream(__d, __is_neg, __fc); __format::_ChronoData<_CharT> __cd; __cd._M_is_neg = __is_neg; auto __ts = chrono::floor(__d); __cd._M_eseconds = __ts; if (_M_f._M_spec._M_needs(_HoursMinutesSeconds)) __cd._M_fill_time(__ts); return _M_f._M_format_units(__cd, __d, __d - __ts, __fc); } __format::__formatter_duration<_CharT> _M_f{__defSpec}; }; #if __glibcxx_print >= 202406L // _GLIBCXX_RESOLVE_LIB_DEFECTS // 4400. enable_nonlocking_formatter_optimization for durations with custom rep template constexpr bool enable_nonlocking_formatter_optimization> = is_arithmetic_v<_Rep>; #endif template<__format::__char _CharT> struct formatter { constexpr typename basic_format_parse_context<_CharT>::iterator parse(basic_format_parse_context<_CharT>& __pc) { using enum __format::_ChronoParts; return _M_f._M_parse(__pc, _Day|_WeekdayIndex, __defSpec); } template typename basic_format_context<_Out, _CharT>::iterator format(const chrono::day& __t, basic_format_context<_Out, _CharT>& __fc) const { __format::_ChronoData<_CharT> __cd{}; __cd._M_fill_day(__t, __defSpec._M_needed); return _M_f._M_format(__cd, __fc); } private: static constexpr __format::_ChronoSpec<_CharT> __defSpec = [] { using __format::_ChronoFormats; using enum __format::_ChronoParts; __format::_ChronoSpec<_CharT> __res{}; __res._M_debug = true; __res._M_needed = _Day; __res._M_chrono_specs = _ChronoFormats<_CharT>::_S_d(); return __res; }(); __format::__formatter_chrono<_CharT> _M_f{__defSpec}; }; #if __glibcxx_print >= 202406L template<> inline constexpr bool enable_nonlocking_formatter_optimization = true; #endif template<__format::__char _CharT> struct formatter { constexpr typename basic_format_parse_context<_CharT>::iterator parse(basic_format_parse_context<_CharT>& __pc) { using enum __format::_ChronoParts; return _M_f._M_parse(__pc, _Month, __defSpec); } template typename basic_format_context<_Out, _CharT>::iterator format(const chrono::month& __t, basic_format_context<_Out, _CharT>& __fc) const { __format::_ChronoData<_CharT> __cd{}; __cd._M_month = __t; return _M_f._M_format(__cd, __fc); } private: static constexpr __format::_ChronoSpec<_CharT> __defSpec = [] { using __format::_ChronoFormats; using enum __format::_ChronoParts; __format::_ChronoSpec<_CharT> __res{}; __res._M_debug = true; __res._M_localized = true; __res._M_locale_specific = true; __res._M_needed = _Month; __res._M_chrono_specs = _ChronoFormats<_CharT>::_S_m(); return __res; }(); __format::__formatter_chrono<_CharT> _M_f{__defSpec}; }; #if __glibcxx_print >= 202406L template<> inline constexpr bool enable_nonlocking_formatter_optimization = true; #endif template<__format::__char _CharT> struct formatter { constexpr typename basic_format_parse_context<_CharT>::iterator parse(basic_format_parse_context<_CharT>& __pc) { using enum __format::_ChronoParts; return _M_f._M_parse(__pc, _Year, __defSpec); } template typename basic_format_context<_Out, _CharT>::iterator format(const chrono::year& __t, basic_format_context<_Out, _CharT>& __fc) const { __format::_ChronoData<_CharT> __cd{}; __cd._M_year = __t; return _M_f._M_format(__cd, __fc); } private: static constexpr __format::_ChronoSpec<_CharT> __defSpec = [] { using __format::_ChronoFormats; using enum __format::_ChronoParts; __format::_ChronoSpec<_CharT> __res{}; __res._M_debug = true; __res._M_needed = _Year; __res._M_chrono_specs = _ChronoFormats<_CharT>::_S_y(); return __res; }(); __format::__formatter_chrono<_CharT> _M_f{__defSpec}; }; #if __glibcxx_print >= 202406L template<> inline constexpr bool enable_nonlocking_formatter_optimization = true; #endif template<__format::__char _CharT> struct formatter { constexpr typename basic_format_parse_context<_CharT>::iterator parse(basic_format_parse_context<_CharT>& __pc) { using enum __format::_ChronoParts; return _M_f._M_parse(__pc, _Weekday, __defSpec); } template typename basic_format_context<_Out, _CharT>::iterator format(const chrono::weekday& __t, basic_format_context<_Out, _CharT>& __fc) const { __format::_ChronoData<_CharT> __cd{}; __cd._M_weekday = __t; return _M_f._M_format(__cd, __fc); } private: static constexpr __format::_ChronoSpec<_CharT> __defSpec = [] { using __format::_ChronoFormats; using enum __format::_ChronoParts; __format::_ChronoSpec<_CharT> __res{}; __res._M_debug = true; __res._M_localized = true; __res._M_locale_specific = true; __res._M_needed = _Weekday; __res._M_chrono_specs = _ChronoFormats<_CharT>::_S_w(); return __res; }(); __format::__formatter_chrono<_CharT> _M_f{__defSpec}; }; #if __glibcxx_print >= 202406L template<> inline constexpr bool enable_nonlocking_formatter_optimization = true; #endif template<__format::__char _CharT> struct formatter { constexpr typename basic_format_parse_context<_CharT>::iterator parse(basic_format_parse_context<_CharT>& __pc) { using enum __format::_ChronoParts; return _M_f._M_parse(__pc, _IndexedWeekday, __defSpec); } template typename basic_format_context<_Out, _CharT>::iterator format(const chrono::weekday_indexed& __t, basic_format_context<_Out, _CharT>& __fc) const { __format::_ChronoData<_CharT> __cd{}; __cd._M_fill_weekday(__t, __defSpec._M_needed); return _M_f._M_format(__cd, __fc); } private: static constexpr __format::_ChronoSpec<_CharT> __defSpec = [] { using __format::_ChronoFormats; using enum __format::_ChronoParts; __format::_ChronoSpec<_CharT> __res{}; __res._M_debug = true; __res._M_localized = true; __res._M_locale_specific = true; __res._M_needed = _IndexedWeekday; __res._M_chrono_specs = _ChronoFormats<_CharT>::_S_wi(); return __res; }(); __format::__formatter_chrono<_CharT> _M_f{__defSpec}; }; #if __glibcxx_print >= 202406L template<> inline constexpr bool enable_nonlocking_formatter_optimization = true; #endif template<__format::__char _CharT> struct formatter { constexpr typename basic_format_parse_context<_CharT>::iterator parse(basic_format_parse_context<_CharT>& __pc) { using enum __format::_ChronoParts; return _M_f._M_parse(__pc, _Weekday, __defSpec); } template typename basic_format_context<_Out, _CharT>::iterator format(const chrono::weekday_last& __t, basic_format_context<_Out, _CharT>& __fc) const { __format::_ChronoData<_CharT> __cd{}; __cd._M_weekday = __t.weekday(); return _M_f._M_format(__cd, __fc); } private: static constexpr __format::_ChronoSpec<_CharT> __defSpec = [] { using __format::_ChronoFormats; using enum __format::_ChronoParts; __format::_ChronoSpec<_CharT> __res{}; __res._M_debug = true; __res._M_localized = true; __res._M_locale_specific = true; __res._M_needed = _Weekday; __res._M_chrono_specs = _ChronoFormats<_CharT>::_S_wl(); return __res; }(); __format::__formatter_chrono<_CharT> _M_f{__defSpec}; }; #if __glibcxx_print >= 202406L template<> inline constexpr bool enable_nonlocking_formatter_optimization = true; #endif template<__format::__char _CharT> struct formatter { constexpr typename basic_format_parse_context<_CharT>::iterator parse(basic_format_parse_context<_CharT>& __pc) { using enum __format::_ChronoParts; return _M_f._M_parse(__pc, _Month|_Day|_WeekdayIndex, __defSpec); } template typename basic_format_context<_Out, _CharT>::iterator format(const chrono::month_day& __t, basic_format_context<_Out, _CharT>& __fc) const { __format::_ChronoData<_CharT> __cd{}; __cd._M_month = __t.month(); __cd._M_fill_day(__t.day(), __defSpec._M_needed); return _M_f._M_format(__cd, __fc); } private: static constexpr __format::_ChronoSpec<_CharT> __defSpec = [] { using __format::_ChronoFormats; using enum __format::_ChronoParts; __format::_ChronoSpec<_CharT> __res{}; __res._M_debug = true; __res._M_localized = true; __res._M_locale_specific = true; __res._M_needed = _Month|_Day; __res._M_chrono_specs = _ChronoFormats<_CharT>::_S_md(); return __res; }(); __format::__formatter_chrono<_CharT> _M_f{__defSpec}; }; #if __glibcxx_print >= 202406L template<> inline constexpr bool enable_nonlocking_formatter_optimization = true; #endif template<__format::__char _CharT> struct formatter { constexpr typename basic_format_parse_context<_CharT>::iterator parse(basic_format_parse_context<_CharT>& __pc) { using enum __format::_ChronoParts; return _M_f._M_parse(__pc, _Month, __defSpec); } template typename basic_format_context<_Out, _CharT>::iterator format(const chrono::month_day_last& __t, basic_format_context<_Out, _CharT>& __fc) const { __format::_ChronoData<_CharT> __cd{}; __cd._M_month = __t.month(); return _M_f._M_format(__cd, __fc); } private: static constexpr __format::_ChronoSpec<_CharT> __defSpec = [] { using __format::_ChronoFormats; using enum __format::_ChronoParts; __format::_ChronoSpec<_CharT> __res{}; __res._M_debug = true; __res._M_localized = true; __res._M_locale_specific = true; __res._M_needed = _Month; __res._M_chrono_specs = _ChronoFormats<_CharT>::_S_ml(); return __res; }(); __format::__formatter_chrono<_CharT> _M_f{__defSpec}; }; #if __glibcxx_print >= 202406L template<> inline constexpr bool enable_nonlocking_formatter_optimization = true; #endif template<__format::__char _CharT> struct formatter { constexpr typename basic_format_parse_context<_CharT>::iterator parse(basic_format_parse_context<_CharT>& __pc) { using enum __format::_ChronoParts; return _M_f._M_parse(__pc, _Month|_IndexedWeekday, __defSpec); } template typename basic_format_context<_Out, _CharT>::iterator format(const chrono::month_weekday& __t, basic_format_context<_Out, _CharT>& __fc) const { __format::_ChronoData<_CharT> __cd{}; __cd._M_month = __t.month(); __cd._M_fill_weekday(__t.weekday_indexed(), __defSpec._M_needed); return _M_f._M_format(__cd, __fc); } private: static constexpr __format::_ChronoSpec<_CharT> __defSpec = [] { using __format::_ChronoFormats; using enum __format::_ChronoParts; __format::_ChronoSpec<_CharT> __res{}; __res._M_debug = true; __res._M_localized = true; __res._M_locale_specific = true; __res._M_needed = _Month|_IndexedWeekday; __res._M_chrono_specs = _ChronoFormats<_CharT>::_S_mwi(); return __res; }(); __format::__formatter_chrono<_CharT> _M_f{__defSpec}; }; #if __glibcxx_print >= 202406L template<> inline constexpr bool enable_nonlocking_formatter_optimization = true; #endif template<__format::__char _CharT> struct formatter { constexpr typename basic_format_parse_context<_CharT>::iterator parse(basic_format_parse_context<_CharT>& __pc) { using enum __format::_ChronoParts; return _M_f._M_parse(__pc, _Month|_Weekday, __defSpec); } template typename basic_format_context<_Out, _CharT>::iterator format(const chrono::month_weekday_last& __t, basic_format_context<_Out, _CharT>& __fc) const { __format::_ChronoData<_CharT> __cd{}; __cd._M_month = __t.month(); __cd._M_weekday = __t.weekday_last().weekday(); return _M_f._M_format(__cd, __fc); } private: static constexpr __format::_ChronoSpec<_CharT> __defSpec = [] { using __format::_ChronoFormats; using enum __format::_ChronoParts; __format::_ChronoSpec<_CharT> __res{}; __res._M_debug = true; __res._M_localized = true; __res._M_locale_specific = true; __res._M_needed = _Month|_Weekday; __res._M_chrono_specs = _ChronoFormats<_CharT>::_S_mwl(); return __res; }(); __format::__formatter_chrono<_CharT> _M_f{__defSpec}; }; #if __glibcxx_print >= 202406L template<> inline constexpr bool enable_nonlocking_formatter_optimization = true; #endif template<__format::__char _CharT> struct formatter { constexpr typename basic_format_parse_context<_CharT>::iterator parse(basic_format_parse_context<_CharT>& __pc) { using enum __format::_ChronoParts; return _M_f._M_parse(__pc, _Year|_Month, __defSpec); } template typename basic_format_context<_Out, _CharT>::iterator format(const chrono::year_month& __t, basic_format_context<_Out, _CharT>& __fc) const { __format::_ChronoData<_CharT> __cd{}; __cd._M_fill_year_month(__t, __defSpec._M_needed); return _M_f._M_format(__cd, __fc); } private: static constexpr __format::_ChronoSpec<_CharT> __defSpec = [] { using __format::_ChronoFormats; using enum __format::_ChronoParts; __format::_ChronoSpec<_CharT> __res{}; __res._M_debug = true; __res._M_localized = true; __res._M_locale_specific = true; __res._M_needed = _Year|_Month; __res._M_chrono_specs = _ChronoFormats<_CharT>::_S_ym(); return __res; }(); __format::__formatter_chrono<_CharT> _M_f{__defSpec}; }; #if __glibcxx_print >= 202406L template<> inline constexpr bool enable_nonlocking_formatter_optimization = true; #endif template<__format::__char _CharT> struct formatter { constexpr typename basic_format_parse_context<_CharT>::iterator parse(basic_format_parse_context<_CharT>& __pc) { using enum __format::_ChronoParts; return _M_f._M_parse(__pc, _Date, __defSpec); } template typename basic_format_context<_Out, _CharT>::iterator format(const chrono::year_month_day& __t, basic_format_context<_Out, _CharT>& __fc) const { __format::_ChronoData<_CharT> __cd{}; auto __parts = _M_f._M_spec._M_needed; __parts = __cd._M_fill_year_month(__t, __parts); __parts = __cd._M_fill_day(__t.day(), __parts); if (__parts == 0) return _M_f._M_format(__cd, __fc); __cd._M_fill_ldays(chrono::local_days(__t), __parts); return _M_f._M_format(__cd, __fc); } private: static constexpr __format::_ChronoSpec<_CharT> __defSpec = [] { using __format::_ChronoFormats; using enum __format::_ChronoParts; __format::_ChronoSpec<_CharT> __res{}; __res._M_debug = true; __res._M_needed = _YearMonthDay; __res._M_chrono_specs = _ChronoFormats<_CharT>::_S_f(); return __res; }(); __format::__formatter_chrono<_CharT> _M_f{__defSpec}; }; #if __glibcxx_print >= 202406L template<> inline constexpr bool enable_nonlocking_formatter_optimization = true; #endif template<__format::__char _CharT> struct formatter { constexpr typename basic_format_parse_context<_CharT>::iterator parse(basic_format_parse_context<_CharT>& __pc) { using enum __format::_ChronoParts; return _M_f._M_parse(__pc, _Date, __defSpec); } template typename basic_format_context<_Out, _CharT>::iterator format(const chrono::year_month_day_last& __t, basic_format_context<_Out, _CharT>& __fc) const { using enum __format::_ChronoParts; __format::_ChronoData<_CharT> __cd{}; auto __parts = _M_f._M_spec._M_needed; __parts = __cd._M_fill_year_month(__t, __parts); if (_M_f._M_spec._M_needs(_Day|_WeekdayIndex)) __parts = __cd._M_fill_day(__t.day(), __parts); if (__parts == 0) return _M_f._M_format(__cd, __fc); __cd._M_fill_ldays(chrono::local_days(__t), __parts); return _M_f._M_format(__cd, __fc); } private: static constexpr __format::_ChronoSpec<_CharT> __defSpec = [] { using __format::_ChronoFormats; using enum __format::_ChronoParts; __format::_ChronoSpec<_CharT> __res{}; __res._M_debug = true; __res._M_localized = true; __res._M_locale_specific = true; __res._M_needed = _Year|_Month; __res._M_chrono_specs = _ChronoFormats<_CharT>::_S_yml(); return __res; }(); __format::__formatter_chrono<_CharT> _M_f{__defSpec}; }; #if __glibcxx_print >= 202406L template<> inline constexpr bool enable_nonlocking_formatter_optimization = true; #endif template<__format::__char _CharT> struct formatter { constexpr typename basic_format_parse_context<_CharT>::iterator parse(basic_format_parse_context<_CharT>& __pc) { using enum __format::_ChronoParts; return _M_f._M_parse(__pc, _Date, __defSpec); } template typename basic_format_context<_Out, _CharT>::iterator format(const chrono::year_month_weekday& __t, basic_format_context<_Out, _CharT>& __fc) const { __format::_ChronoData<_CharT> __cd{}; auto __parts = _M_f._M_spec._M_needed; __parts = __cd._M_fill_year_month(__t, __parts); __parts = __cd._M_fill_weekday(__t.weekday_indexed(), __parts); if (__t.index() == 0) [[unlikely]] // n.b. day cannot be negative, so any 0th weekday uses // value-initialized (0) day of month __parts -= __format::_ChronoParts::_Day; if (__parts == 0) return _M_f._M_format(__cd, __fc); chrono::local_days __ld(__t); __parts = __cd._M_fill_ldays(__ld, __parts); if (__parts == 0) return _M_f._M_format(__cd, __fc); auto __dom = __ld - chrono::local_days(__t.year()/__t.month()/0); // n.b. weekday index is supplied by input, do not override it __cd._M_day = chrono::day(__dom.count()); return _M_f._M_format(__cd, __fc); } private: static constexpr __format::_ChronoSpec<_CharT> __defSpec = [] { using __format::_ChronoFormats; using enum __format::_ChronoParts; __format::_ChronoSpec<_CharT> __res{}; __res._M_debug = true; __res._M_localized = true; __res._M_locale_specific = true; __res._M_needed = _Year|_Month|_IndexedWeekday; __res._M_chrono_specs = _ChronoFormats<_CharT>::_S_ymwi(); return __res; }(); __format::__formatter_chrono<_CharT> _M_f{__defSpec}; }; #if __glibcxx_print >= 202406L template<> inline constexpr bool enable_nonlocking_formatter_optimization = true; #endif template<__format::__char _CharT> struct formatter { constexpr typename basic_format_parse_context<_CharT>::iterator parse(basic_format_parse_context<_CharT>& __pc) { using enum __format::_ChronoParts; return _M_f._M_parse(__pc, _Date, __defSpec); } template typename basic_format_context<_Out, _CharT>::iterator format(const chrono::year_month_weekday_last& __t, basic_format_context<_Out, _CharT>& __fc) const { __format::_ChronoData<_CharT> __cd{}; auto __parts = _M_f._M_spec._M_needed; __parts = __cd._M_fill_year_month(__t, __parts); __cd._M_weekday = __t.weekday_last().weekday(); __parts -= __format::_ChronoParts::_Weekday; if (__parts == 0) return _M_f._M_format(__cd, __fc); chrono::local_days __ld(__t); __parts = __cd._M_fill_ldays(__ld, __parts); if (__parts == 0) return _M_f._M_format(__cd, __fc); auto __dom = __ld - chrono::local_days(__t.year()/__t.month()/0); __cd._M_fill_day(chrono::day(__dom.count()), __parts); return _M_f._M_format(__cd, __fc); } private: static constexpr __format::_ChronoSpec<_CharT> __defSpec = [] { using __format::_ChronoFormats; using enum __format::_ChronoParts; __format::_ChronoSpec<_CharT> __res{}; __res._M_debug = true; __res._M_localized = true; __res._M_locale_specific = true; __res._M_needed = _Year|_Month|_Weekday; __res._M_chrono_specs = _ChronoFormats<_CharT>::_S_ymwl(); return __res; }(); __format::__formatter_chrono<_CharT> _M_f{__defSpec}; }; #if __glibcxx_print >= 202406L template<> inline constexpr bool enable_nonlocking_formatter_optimization = true; #endif template struct formatter>, _CharT> { constexpr typename basic_format_parse_context<_CharT>::iterator parse(basic_format_parse_context<_CharT>& __pc) { using enum __format::_ChronoParts; return _M_f.template _M_parse<_Precision>(__pc, _Time, __defSpec); } template typename basic_format_context<_Out, _CharT>::iterator format(const chrono::hh_mm_ss>& __t, basic_format_context<_Out, _CharT>& __fc) const { using enum __format::_ChronoParts; __format::_ChronoData<_CharT> __cd; __cd._M_is_neg = __t.is_negative(); __cd._M_hours = __t.hours(); __cd._M_minutes = __t.minutes(); __cd._M_seconds = __t.seconds(); _Precision __d(0); // n.b. computing total duration or total seconds may overflow, // do not compute them if not requested. if (_M_f._M_spec._M_needs(_EpochUnits)) __d = __t.to_duration(); if (_M_f._M_spec._M_needs(_TotalSeconds)) __cd._M_eseconds = __cd._M_hours + __cd._M_minutes + __cd._M_seconds; return _M_f._M_format_units(__cd, __d, __t.subseconds(), __fc); } private: using _Precision = typename chrono::hh_mm_ss>::precision; static constexpr __format::_ChronoSpec<_CharT> __defSpec = __format::__formatter_duration<_CharT>:: template _S_spec_for<_Precision>(__format::_ChronoParts::_Time); __format::__formatter_duration<_CharT> _M_f{__defSpec}; }; #if __glibcxx_print >= 202406L // _GLIBCXX_RESOLVE_LIB_DEFECTS // 4400. enable_nonlocking_formatter_optimization for durations with custom rep template constexpr bool enable_nonlocking_formatter_optimization> = enable_nonlocking_formatter_optimization<_Duration>; #endif #if _GLIBCXX_USE_CXX11_ABI || ! _GLIBCXX_USE_DUAL_ABI template<__format::__char _CharT> struct formatter { constexpr typename basic_format_parse_context<_CharT>::iterator parse(basic_format_parse_context<_CharT>& __pc) { return _M_f.parse(__pc); } template typename basic_format_context<_Out, _CharT>::iterator format(const chrono::sys_info& __i, basic_format_context<_Out, _CharT>& __fc) const { return _M_f.format(__i, __fc); } private: __format::__formatter_chrono_info<_CharT> _M_f; }; #if __glibcxx_print >= 202406L template<> inline constexpr bool enable_nonlocking_formatter_optimization = true; #endif template<__format::__char _CharT> struct formatter { constexpr typename basic_format_parse_context<_CharT>::iterator parse(basic_format_parse_context<_CharT>& __pc) { return _M_f.parse(__pc); } template typename basic_format_context<_Out, _CharT>::iterator format(const chrono::local_info& __i, basic_format_context<_Out, _CharT>& __fc) const { return _M_f.format(__i, __fc); } private: __format::__formatter_chrono_info<_CharT> _M_f; }; #if __glibcxx_print >= 202406L template<> inline constexpr bool enable_nonlocking_formatter_optimization = true; #endif #endif template struct formatter, _CharT> { constexpr typename basic_format_parse_context<_CharT>::iterator parse(basic_format_parse_context<_CharT>& __pc) { using enum __format::_ChronoParts; auto __res = _M_f.template _M_parse<_Duration>(__pc, _ZonedDateTime, __defSpec); if constexpr (__defSpec._M_chrono_specs.empty()) if (_M_f._M_spec._M_chrono_specs.empty()) __format::__invalid_chrono_spec(); // chrono-specs can't be empty return __res; } template typename basic_format_context<_Out, _CharT>::iterator format(const chrono::sys_time<_Duration>& __t, basic_format_context<_Out, _CharT>& __fc) const { __format::_ChronoData<_CharT> __cd{}; __cd._M_fill_utc_zone(); _Duration __ed = __t.time_since_epoch(); __cd._M_eseconds = chrono::floor(__ed); __cd._M_lseconds = chrono::local_seconds(__cd._M_eseconds); return _M_f._M_format_time_point(__cd, __ed, __fc); } private: static constexpr __format::_ChronoSpec<_CharT> __defSpec = __format::__formatter_duration<_CharT>::template _S_spec_for_tp<_Duration>(); __format::__formatter_duration<_CharT> _M_f{__defSpec}; }; #if __glibcxx_print >= 202406L // _GLIBCXX_RESOLVE_LIB_DEFECTS // 4400. enable_nonlocking_formatter_optimization for durations with custom rep template constexpr bool enable_nonlocking_formatter_optimization> = enable_nonlocking_formatter_optimization<_Duration>; #endif template struct formatter, _CharT> { constexpr typename basic_format_parse_context<_CharT>::iterator parse(basic_format_parse_context<_CharT>& __pc) { using enum __format::_ChronoParts; return _M_f.template _M_parse<_Duration>(__pc, _ZonedDateTime, __defSpec); } template typename basic_format_context<_Out, _CharT>::iterator format(const chrono::utc_time<_Duration>& __t, basic_format_context<_Out, _CharT>& __fc) const { using __format::_ChronoParts; using namespace chrono; __format::_ChronoData<_CharT> __cd{}; __cd._M_fill_utc_zone(); _Duration __ed = __t.time_since_epoch(); __cd._M_eseconds = chrono::floor(__ed); // Adjust by removing leap seconds to get equivalent sys_time. // We can't just use clock_cast because we want to know if the time // falls within a leap second insertion, and format seconds as "60". const auto __li = chrono::get_leap_second_info(__t); __cd._M_lseconds = local_seconds(__cd._M_eseconds - __li.elapsed); auto __parts = _M_f._M_spec._M_needed - _ChronoParts::_TotalSeconds; if ((__parts & _ChronoParts::_DateTime) != 0) { __cd._M_fill_date_time(__cd._M_lseconds, __parts); __cd._M_seconds += seconds(__li.is_leap_second); } return _M_f._M_format_units(__cd, __ed, __ed - __cd._M_eseconds, __fc); } private: static constexpr __format::_ChronoSpec<_CharT> __defSpec = __format::__formatter_duration<_CharT>:: template _S_spec_for<_Duration>(__format::_ChronoParts::_DateTime); __format::__formatter_duration<_CharT> _M_f{__defSpec}; }; #if __glibcxx_print >= 202406L // _GLIBCXX_RESOLVE_LIB_DEFECTS // 4400. enable_nonlocking_formatter_optimization for durations with custom rep template constexpr bool enable_nonlocking_formatter_optimization> = enable_nonlocking_formatter_optimization<_Duration>; #endif template struct formatter, _CharT> { constexpr typename basic_format_parse_context<_CharT>::iterator parse(basic_format_parse_context<_CharT>& __pc) { using enum __format::_ChronoParts; return _M_f.template _M_parse<_Duration>(__pc, _ZonedDateTime, __defSpec); } template typename basic_format_context<_Out, _CharT>::iterator format(const chrono::tai_time<_Duration>& __t, basic_format_context<_Out, _CharT>& __fc) const { using namespace chrono; __format::_ChronoData<_CharT> __cd{}; __cd._M_fill_zone("TAI", L"TAI"); _Duration __ed = __t.time_since_epoch(); __cd._M_eseconds = chrono::floor(__ed); // Offset is 1970y/January/1 - 1958y/January/1 constexpr chrono::days __tai_offset = chrono::days(4383); __cd._M_lseconds = local_seconds(__cd._M_eseconds - __tai_offset); return _M_f._M_format_time_point(__cd, __ed, __fc); } private: static constexpr __format::_ChronoSpec<_CharT> __defSpec = __format::__formatter_duration<_CharT>:: template _S_spec_for<_Duration>(__format::_ChronoParts::_DateTime); __format::__formatter_duration<_CharT> _M_f{__defSpec}; }; #if __glibcxx_print >= 202406L // _GLIBCXX_RESOLVE_LIB_DEFECTS // 4400. enable_nonlocking_formatter_optimization for durations with custom rep template constexpr bool enable_nonlocking_formatter_optimization> = enable_nonlocking_formatter_optimization<_Duration>; #endif template struct formatter, _CharT> { constexpr typename basic_format_parse_context<_CharT>::iterator parse(basic_format_parse_context<_CharT>& __pc) { using enum __format::_ChronoParts; return _M_f.template _M_parse<_Duration>(__pc, _ZonedDateTime, __defSpec); } template typename basic_format_context<_Out, _CharT>::iterator format(const chrono::gps_time<_Duration>& __t, basic_format_context<_Out, _CharT>& __fc) const { using namespace chrono; __format::_ChronoData<_CharT> __cd{}; __cd._M_fill_zone("GPS", L"GPS"); _Duration __ed = __t.time_since_epoch(); __cd._M_eseconds = chrono::floor(__ed); // Offset is 1980y/January/Sunday[1] - 1970y/January/1 constexpr chrono::days __gps_offset = chrono::days(3657); __cd._M_lseconds = local_seconds(__cd._M_eseconds + __gps_offset); return _M_f._M_format_time_point(__cd, __ed, __fc); } private: static constexpr __format::_ChronoSpec<_CharT> __defSpec = __format::__formatter_duration<_CharT>:: template _S_spec_for<_Duration>(__format::_ChronoParts::_DateTime); __format::__formatter_duration<_CharT> _M_f{__defSpec}; }; #if __glibcxx_print >= 202406L // _GLIBCXX_RESOLVE_LIB_DEFECTS // 4400. enable_nonlocking_formatter_optimization for durations with custom rep template constexpr bool enable_nonlocking_formatter_optimization> = enable_nonlocking_formatter_optimization<_Duration>; #endif template struct formatter, _CharT> { constexpr typename basic_format_parse_context<_CharT>::iterator parse(basic_format_parse_context<_CharT>& __pc) { using enum __format::_ChronoParts; return _M_f.template _M_parse<_Duration>(__pc, _ZonedDateTime, __defSpec); } template typename basic_format_context<_Out, _CharT>::iterator format(const chrono::file_time<_Duration>& __t, basic_format_context<_Out, _CharT>& __fc) const { using namespace chrono; __format::_ChronoData<_CharT> __cd{}; __cd._M_fill_utc_zone(); _Duration __ed = __t.time_since_epoch(); __cd._M_eseconds = chrono::floor(__ed); auto __st = chrono::clock_cast(__t); __cd._M_lseconds = local_seconds(chrono::floor(__st.time_since_epoch())); return _M_f._M_format_time_point(__cd, __ed, __fc); } private: static constexpr __format::_ChronoSpec<_CharT> __defSpec = __format::__formatter_duration<_CharT>:: template _S_spec_for<_Duration>(__format::_ChronoParts::_DateTime); __format::__formatter_duration<_CharT> _M_f{__defSpec}; }; #if __glibcxx_print >= 202406L // _GLIBCXX_RESOLVE_LIB_DEFECTS // 4400. enable_nonlocking_formatter_optimization for durations with custom rep template constexpr bool enable_nonlocking_formatter_optimization> = enable_nonlocking_formatter_optimization<_Duration>; #endif template struct formatter, _CharT> { constexpr typename basic_format_parse_context<_CharT>::iterator parse(basic_format_parse_context<_CharT>& __pc) { using enum __format::_ChronoParts; auto __res = _M_f.template _M_parse<_Duration>(__pc, _DateTime, __defSpec); if constexpr (__defSpec._M_chrono_specs.empty()) if (_M_f._M_spec._M_chrono_specs.empty()) __format::__invalid_chrono_spec(); // chrono-specs can't be empty return __res; } template typename basic_format_context<_Out, _CharT>::iterator format(const chrono::local_time<_Duration>& __lt, basic_format_context<_Out, _CharT>& __fc) const { __format::_ChronoData<_CharT> __cd{}; _Duration __ed = __lt.time_since_epoch(); __cd._M_lseconds = chrono::floor(__lt); __cd._M_eseconds = __cd._M_lseconds.time_since_epoch(); return _M_f._M_format_time_point(__cd, __ed, __fc); } private: static constexpr __format::_ChronoSpec<_CharT> __defSpec = __format::__formatter_duration<_CharT>::template _S_spec_for_tp<_Duration>(); __format::__formatter_duration<_CharT> _M_f{__defSpec}; }; #if __glibcxx_print >= 202406L // _GLIBCXX_RESOLVE_LIB_DEFECTS // 4400. enable_nonlocking_formatter_optimization for durations with custom rep template constexpr bool enable_nonlocking_formatter_optimization> = enable_nonlocking_formatter_optimization<_Duration>; #endif template struct formatter, _CharT> { constexpr typename basic_format_parse_context<_CharT>::iterator parse(basic_format_parse_context<_CharT>& __pc) { using enum __format::_ChronoParts; return _M_f.template _M_parse<_Duration>(__pc, _ZonedDateTime, __defSpec); } template typename basic_format_context<_Out, _CharT>::iterator format(const chrono::__detail::__local_time_fmt<_Duration>& __zt, basic_format_context<_Out, _CharT>& __fc) const { using enum __format::_ChronoParts; __format::_ChronoData<_CharT> __cd{}; if (_M_f._M_spec._M_needs(_ZoneOffset)) { if (!__zt._M_offset_sec) std::__throw_format_error("format error: no timezone available for %z"); __cd._M_zone_offset = *__zt._M_offset_sec; } basic_string<_CharT> __zone_store; if (_M_f._M_spec._M_needs(_ZoneAbbrev)) { if (!__zt._M_abbrev) std::__throw_format_error("format error: no timezone available for %Z"); __cd._M_zone_cstr = __zt._M_abbrev->data(); if constexpr (is_same_v<_CharT, char>) __cd._M_zone_abbrev = *__zt._M_abbrev; else { // TODO: use resize_for_override __zone_store.resize(__zt._M_abbrev->size()); auto& __ct = use_facet>(_M_f._M_locale(__fc)); __ct.widen(__zt._M_abbrev->data(), __zt._M_abbrev->data() + __zt._M_abbrev->size(), __zone_store.data()); __cd._M_zone_abbrev = __zone_store; } } _Duration __ed = __zt._M_time.time_since_epoch(); __cd._M_lseconds = chrono::floor(__zt._M_time); __cd._M_eseconds = __cd._M_lseconds.time_since_epoch(); return _M_f._M_format_time_point(__cd, __ed, __fc); } private: static constexpr __format::_ChronoSpec<_CharT> __defSpec = __format::__formatter_duration<_CharT>:: template _S_spec_for<_Duration>(__format::_ChronoParts::_ZonedDateTime); __format::__formatter_duration<_CharT> _M_f{__defSpec}; }; #if __glibcxx_print >= 202406L // _GLIBCXX_RESOLVE_LIB_DEFECTS // 4400. enable_nonlocking_formatter_optimization for durations with custom rep template constexpr bool enable_nonlocking_formatter_optimization< chrono::__detail::__local_time_fmt<_Duration>> = enable_nonlocking_formatter_optimization<_Duration>; #endif #if _GLIBCXX_USE_CXX11_ABI || ! _GLIBCXX_USE_DUAL_ABI template struct formatter, _CharT> : formatter, _CharT> { template typename basic_format_context<_Out, _CharT>::iterator format(const chrono::zoned_time<_Duration, _TimeZonePtr>& __tp, basic_format_context<_Out, _CharT>& __fc) const { using _Ltf = chrono::__detail::__local_time_fmt_for<_Duration>; using _Base = formatter<_Ltf, _CharT>; const chrono::sys_info __info = __tp.get_info(); const auto __lf = chrono::local_time_format(__tp.get_local_time(), &__info.abbrev, &__info.offset); return _Base::format(__lf, __fc); } }; #if __glibcxx_print >= 202406L // _GLIBCXX_RESOLVE_LIB_DEFECTS // 4400. enable_nonlocking_formatter_optimization for durations with custom rep template constexpr bool enable_nonlocking_formatter_optimization< chrono::zoned_time<_Duration, const chrono::time_zone*>> = enable_nonlocking_formatter_optimization<_Duration>; #endif #endif namespace chrono { /// @addtogroup chrono /// @{ /// @cond undocumented namespace __detail { template struct _Parser { static_assert(is_same_v, _Duration>); explicit _Parser(__format::_ChronoParts __need) : _M_need(__need) { } _Parser(_Parser&&) = delete; void operator=(_Parser&&) = delete; _Duration _M_time{}; // since midnight sys_days _M_sys_days{}; year_month_day _M_ymd{}; weekday _M_wd{}; __format::_ChronoParts _M_need; unsigned _M_is_leap_second : 1 {}; unsigned _M_reserved : 15 {}; template basic_istream<_CharT, _Traits>& operator()(basic_istream<_CharT, _Traits>& __is, const _CharT* __fmt, basic_string<_CharT, _Traits, _Alloc>* __abbrev = nullptr, minutes* __offset = nullptr); private: // Read an unsigned integer from the stream and return it. // Extract no more than __n digits. Set failbit if an integer isn't read. template static int_least32_t _S_read_unsigned(basic_istream<_CharT, _Traits>& __is, ios_base::iostate& __err, int __n) { int_least32_t __val = _S_try_read_digit(__is, __err); if (__val == -1) [[unlikely]] __err |= ios_base::failbit; else { int __n1 = (std::min)(__n, 9); // Cannot overflow __val unless we read more than 9 digits for (int __i = 1; __i < __n1; ++__i) if (auto __dig = _S_try_read_digit(__is, __err); __dig != -1) { __val *= 10; __val += __dig; } while (__n1++ < __n) [[unlikely]] if (auto __dig = _S_try_read_digit(__is, __err); __dig != -1) { if (__builtin_mul_overflow(__val, 10, &__val) || __builtin_add_overflow(__val, __dig, &__val)) { __err |= ios_base::failbit; return -1; } } } return __val; } // Read an unsigned integer from the stream and return it. // Extract no more than __n digits. Set failbit if an integer isn't read. template static int_least32_t _S_read_signed(basic_istream<_CharT, _Traits>& __is, ios_base::iostate& __err, int __n) { auto __sign = __is.peek(); if (__sign == '-' || __sign == '+') (void) __is.get(); int_least32_t __val = _S_read_unsigned(__is, __err, __n); if (__err & ios_base::failbit) { if (__sign == '-') [[unlikely]] __val *= -1; } return __val; } // Read a digit from the stream and return it, or return -1. // If no digit is read eofbit will be set (but not failbit). template static int_least32_t _S_try_read_digit(basic_istream<_CharT, _Traits>& __is, ios_base::iostate& __err) { int_least32_t __val = -1; auto __i = __is.peek(); if (!_Traits::eq_int_type(__i, _Traits::eof())) [[likely]] { _CharT __c = _Traits::to_char_type(__i); if (_CharT('0') <= __c && __c <= _CharT('9')) [[likely]] { (void) __is.get(); __val = __c - _CharT('0'); } } else __err |= ios_base::eofbit; return __val; } // Read the specified character and return true. // If the character is not found, set failbit and return false. template static bool _S_read_chr(basic_istream<_CharT, _Traits>& __is, ios_base::iostate& __err, _CharT __c) { auto __i = __is.peek(); if (_Traits::eq_int_type(__i, _Traits::eof())) __err |= ios_base::eofbit; else if (_Traits::to_char_type(__i) == __c) [[likely]] { (void) __is.get(); return true; } __err |= ios_base::failbit; return false; } }; template using _Parser_t = _Parser>; template consteval bool __use_floor() { if constexpr (_Duration::period::den == 1) { switch (_Duration::period::num) { case minutes::period::num: case hours::period::num: case days::period::num: case weeks::period::num: case years::period::num: return true; } } return false; } // A "do the right thing" rounding function for duration and time_point // values extracted by from_stream. When treat_as_floating_point is true // we don't want to do anything, just a straightforward conversion. // When the destination type has a period of minutes, hours, days, weeks, // or years, we use chrono::floor to truncate towards negative infinity. // This ensures that an extracted timestamp such as 2024-09-05 13:00:00 // will produce 2024-09-05 when rounded to days, rather than rounding up // to 2024-09-06 (a different day). // Otherwise, use chrono::round to get the nearest value representable // in the destination type. template constexpr auto __round(const _Tp& __t) { if constexpr (__is_duration_v<_Tp>) { if constexpr (treat_as_floating_point_v) return chrono::duration_cast<_ToDur>(__t); else if constexpr (__detail::__use_floor<_ToDur>()) return chrono::floor<_ToDur>(__t); else return chrono::round<_ToDur>(__t); } else { static_assert(__is_time_point_v<_Tp>); using _Tpt = time_point; return _Tpt(__detail::__round<_ToDur>(__t.time_since_epoch())); } } } // namespace __detail /// @endcond template> inline basic_istream<_CharT, _Traits>& from_stream(basic_istream<_CharT, _Traits>& __is, const _CharT* __fmt, duration<_Rep, _Period>& __d, basic_string<_CharT, _Traits, _Alloc>* __abbrev = nullptr, minutes* __offset = nullptr) { auto __need = __format::_ChronoParts::_TimeOfDay; __detail::_Parser_t> __p(__need); if (__p(__is, __fmt, __abbrev, __offset)) __d = __detail::__round>(__p._M_time); return __is; } template inline basic_ostream<_CharT, _Traits>& operator<<(basic_ostream<_CharT, _Traits>& __os, const day& __d) { using _Ctx = __format::__format_context<_CharT>; using _Str = basic_string_view<_CharT>; _Str __s = _GLIBCXX_WIDEN("{:02d} is not a valid day"); if (__d.ok()) __s = __s.substr(0, 6); auto __u = (unsigned)__d; __os << std::vformat(__s, make_format_args<_Ctx>(__u)); return __os; } template> inline basic_istream<_CharT, _Traits>& from_stream(basic_istream<_CharT, _Traits>& __is, const _CharT* __fmt, day& __d, basic_string<_CharT, _Traits, _Alloc>* __abbrev = nullptr, minutes* __offset = nullptr) { __detail::_Parser<> __p(__format::_ChronoParts::_Day); if (__p(__is, __fmt, __abbrev, __offset)) __d = __p._M_ymd.day(); return __is; } template inline basic_ostream<_CharT, _Traits>& operator<<(basic_ostream<_CharT, _Traits>& __os, const month& __m) { using _Ctx = __format::__format_context<_CharT>; using _Str = basic_string_view<_CharT>; _Str __s = _GLIBCXX_WIDEN("{:L%b}{} is not a valid month"); if (__m.ok()) __os << std::vformat(__os.getloc(), __s.substr(0, 6), make_format_args<_Ctx>(__m)); else { auto __u = (unsigned)__m; __os << std::vformat(__s.substr(6), make_format_args<_Ctx>(__u)); } return __os; } template> inline basic_istream<_CharT, _Traits>& from_stream(basic_istream<_CharT, _Traits>& __is, const _CharT* __fmt, month& __m, basic_string<_CharT, _Traits, _Alloc>* __abbrev = nullptr, minutes* __offset = nullptr) { __detail::_Parser<> __p(__format::_ChronoParts::_Month); if (__p(__is, __fmt, __abbrev, __offset)) __m = __p._M_ymd.month(); return __is; } template inline basic_ostream<_CharT, _Traits>& operator<<(basic_ostream<_CharT, _Traits>& __os, const year& __y) { using _Ctx = __format::__format_context<_CharT>; using _Str = basic_string_view<_CharT>; _Str __s = _GLIBCXX_WIDEN("-{:04d} is not a valid year"); if (__y.ok()) __s = __s.substr(0, 7); int __i = (int)__y; if (__i >= 0) [[likely]] __s.remove_prefix(1); else __i = -__i; __os << std::vformat(__s, make_format_args<_Ctx>(__i)); return __os; } template> inline basic_istream<_CharT, _Traits>& from_stream(basic_istream<_CharT, _Traits>& __is, const _CharT* __fmt, year& __y, basic_string<_CharT, _Traits, _Alloc>* __abbrev = nullptr, minutes* __offset = nullptr) { __detail::_Parser<> __p(__format::_ChronoParts::_Year); if (__p(__is, __fmt, __abbrev, __offset)) __y = __p._M_ymd.year(); return __is; } template inline basic_ostream<_CharT, _Traits>& operator<<(basic_ostream<_CharT, _Traits>& __os, const weekday& __wd) { using _Ctx = __format::__format_context<_CharT>; using _Str = basic_string_view<_CharT>; _Str __s = _GLIBCXX_WIDEN("{:L%a}{} is not a valid weekday"); if (__wd.ok()) __os << std::vformat(__os.getloc(), __s.substr(0, 6), make_format_args<_Ctx>(__wd)); else { auto __c = __wd.c_encoding(); __os << std::vformat(__s.substr(6), make_format_args<_Ctx>(__c)); } return __os; } template> inline basic_istream<_CharT, _Traits>& from_stream(basic_istream<_CharT, _Traits>& __is, const _CharT* __fmt, weekday& __wd, basic_string<_CharT, _Traits, _Alloc>* __abbrev = nullptr, minutes* __offset = nullptr) { __detail::_Parser<> __p(__format::_ChronoParts::_Weekday); if (__p(__is, __fmt, __abbrev, __offset)) __wd = __p._M_wd; return __is; } template inline basic_ostream<_CharT, _Traits>& operator<<(basic_ostream<_CharT, _Traits>& __os, const weekday_indexed& __wdi) { // The standard says to format wdi.weekday() and wdi.index() using // either "{:L}[{}]" or "{:L}[{} is not a valid index]". The {:L} spec // means to format the weekday using ostringstream, so just do that. basic_stringstream<_CharT> __os2; __os2.imbue(__os.getloc()); __os2 << __wdi.weekday(); const auto __i = __wdi.index(); basic_string_view<_CharT> __s = _GLIBCXX_WIDEN("[ is not a valid index]"); __os2 << __s[0]; __os2 << std::format(_GLIBCXX_WIDEN("{}"), __i); if (__i >= 1 && __i <= 5) __os2 << __s.back(); else __os2 << __s.substr(1); __os << __os2.view(); return __os; } template inline basic_ostream<_CharT, _Traits>& operator<<(basic_ostream<_CharT, _Traits>& __os, const weekday_last& __wdl) { // As above, just write straight to a stringstream, as if by "{:L}[last]" basic_stringstream<_CharT> __os2; __os2.imbue(__os.getloc()); __os2 << __wdl.weekday() << _GLIBCXX_WIDEN("[last]"); __os << __os2.view(); return __os; } template inline basic_ostream<_CharT, _Traits>& operator<<(basic_ostream<_CharT, _Traits>& __os, const month_day& __md) { // As above, just write straight to a stringstream, as if by "{:L}/{}" basic_stringstream<_CharT> __os2; __os2.imbue(__os.getloc()); __os2 << __md.month(); if constexpr (is_same_v<_CharT, char>) __os2 << '/'; else __os2 << L'/'; __os2 << __md.day(); __os << __os2.view(); return __os; } template> inline basic_istream<_CharT, _Traits>& from_stream(basic_istream<_CharT, _Traits>& __is, const _CharT* __fmt, month_day& __md, basic_string<_CharT, _Traits, _Alloc>* __abbrev = nullptr, minutes* __offset = nullptr) { using __format::_ChronoParts; auto __need = _ChronoParts::_Month | _ChronoParts::_Day; __detail::_Parser<> __p(__need); if (__p(__is, __fmt, __abbrev, __offset)) __md = month_day(__p._M_ymd.month(), __p._M_ymd.day()); return __is; } template inline basic_ostream<_CharT, _Traits>& operator<<(basic_ostream<_CharT, _Traits>& __os, const month_day_last& __mdl) { // As above, just write straight to a stringstream, as if by "{:L}/last" basic_stringstream<_CharT> __os2; __os2.imbue(__os.getloc()); __os2 << __mdl.month() << _GLIBCXX_WIDEN("/last"); __os << __os2.view(); return __os; } template inline basic_ostream<_CharT, _Traits>& operator<<(basic_ostream<_CharT, _Traits>& __os, const month_weekday& __mwd) { // As above, just write straight to a stringstream, as if by "{:L}/{:L}" basic_stringstream<_CharT> __os2; __os2.imbue(__os.getloc()); __os2 << __mwd.month(); if constexpr (is_same_v<_CharT, char>) __os2 << '/'; else __os2 << L'/'; __os2 << __mwd.weekday_indexed(); __os << __os2.view(); return __os; } template inline basic_ostream<_CharT, _Traits>& operator<<(basic_ostream<_CharT, _Traits>& __os, const month_weekday_last& __mwdl) { // As above, just write straight to a stringstream, as if by "{:L}/{:L}" basic_stringstream<_CharT> __os2; __os2.imbue(__os.getloc()); __os2 << __mwdl.month(); if constexpr (is_same_v<_CharT, char>) __os2 << '/'; else __os2 << L'/'; __os2 << __mwdl.weekday_last(); __os << __os2.view(); return __os; } template inline basic_ostream<_CharT, _Traits>& operator<<(basic_ostream<_CharT, _Traits>& __os, const year_month& __ym) { // As above, just write straight to a stringstream, as if by "{}/{:L}" basic_stringstream<_CharT> __os2; __os2.imbue(__os.getloc()); __os2 << __ym.year(); if constexpr (is_same_v<_CharT, char>) __os2 << '/'; else __os2 << L'/'; __os2 << __ym.month(); __os << __os2.view(); return __os; } template> inline basic_istream<_CharT, _Traits>& from_stream(basic_istream<_CharT, _Traits>& __is, const _CharT* __fmt, year_month& __ym, basic_string<_CharT, _Traits, _Alloc>* __abbrev = nullptr, minutes* __offset = nullptr) { using __format::_ChronoParts; auto __need = _ChronoParts::_Year | _ChronoParts::_Month; __detail::_Parser<> __p(__need); if (__p(__is, __fmt, __abbrev, __offset)) __ym = year_month(__p._M_ymd.year(), __p._M_ymd.month()); return __is; } template inline basic_ostream<_CharT, _Traits>& operator<<(basic_ostream<_CharT, _Traits>& __os, const year_month_day& __ymd) { using _Ctx = __format::__format_context<_CharT>; using _Str = basic_string_view<_CharT>; _Str __s = _GLIBCXX_WIDEN("{:%F} is not a valid date"); __os << std::vformat(__ymd.ok() ? __s.substr(0, 5) : __s, make_format_args<_Ctx>(__ymd)); return __os; } template> inline basic_istream<_CharT, _Traits>& from_stream(basic_istream<_CharT, _Traits>& __is, const _CharT* __fmt, year_month_day& __ymd, basic_string<_CharT, _Traits, _Alloc>* __abbrev = nullptr, minutes* __offset = nullptr) { using __format::_ChronoParts; auto __need = _ChronoParts::_Year | _ChronoParts::_Month | _ChronoParts::_Day; __detail::_Parser<> __p(__need); if (__p(__is, __fmt, __abbrev, __offset)) __ymd = __p._M_ymd; return __is; } template inline basic_ostream<_CharT, _Traits>& operator<<(basic_ostream<_CharT, _Traits>& __os, const year_month_day_last& __ymdl) { // As above, just write straight to a stringstream, as if by "{}/{:L}" basic_stringstream<_CharT> __os2; __os2.imbue(__os.getloc()); __os2 << __ymdl.year(); if constexpr (is_same_v<_CharT, char>) __os2 << '/'; else __os2 << L'/'; __os2 << __ymdl.month_day_last(); __os << __os2.view(); return __os; } template inline basic_ostream<_CharT, _Traits>& operator<<(basic_ostream<_CharT, _Traits>& __os, const year_month_weekday& __ymwd) { // As above, just write straight to a stringstream, as if by // "{}/{:L}/{:L}" basic_stringstream<_CharT> __os2; __os2.imbue(__os.getloc()); _CharT __slash; if constexpr (is_same_v<_CharT, char>) __slash = '/'; else __slash = L'/'; __os2 << __ymwd.year() << __slash << __ymwd.month() << __slash << __ymwd.weekday_indexed(); __os << __os2.view(); return __os; } template inline basic_ostream<_CharT, _Traits>& operator<<(basic_ostream<_CharT, _Traits>& __os, const year_month_weekday_last& __ymwdl) { // As above, just write straight to a stringstream, as if by // "{}/{:L}/{:L}" basic_stringstream<_CharT> __os2; __os2.imbue(__os.getloc()); _CharT __slash; if constexpr (is_same_v<_CharT, char>) __slash = '/'; else __slash = L'/'; __os2 << __ymwdl.year() << __slash << __ymwdl.month() << __slash << __ymwdl.weekday_last(); __os << __os2.view(); return __os; } template inline basic_ostream<_CharT, _Traits>& operator<<(basic_ostream<_CharT, _Traits>& __os, const hh_mm_ss<_Duration>& __hms) { return __os << format(__os.getloc(), _GLIBCXX_WIDEN("{:L%T}"), __hms); } #if _GLIBCXX_USE_CXX11_ABI || ! _GLIBCXX_USE_DUAL_ABI /// Writes a sys_info object to an ostream in an unspecified format. template basic_ostream<_CharT, _Traits>& operator<<(basic_ostream<_CharT, _Traits>& __os, const sys_info& __i) { return __os << std::format(__os.getloc(), _GLIBCXX_WIDEN("{}"), __i); } /// Writes a local_info object to an ostream in an unspecified format. template basic_ostream<_CharT, _Traits>& operator<<(basic_ostream<_CharT, _Traits>& __os, const local_info& __li) { __os << __format::_Separators<_CharT>::_S_squares()[0]; if (__li.result == local_info::unique) __os << __li.first; else { if (__li.result == local_info::nonexistent) __os << _GLIBCXX_WIDEN("nonexistent"); else __os << _GLIBCXX_WIDEN("ambiguous"); __os << _GLIBCXX_WIDEN(" local time between ") << __li.first; __os << _GLIBCXX_WIDEN(" and ") << __li.second; } __os << __format::_Separators<_CharT>::_S_squares()[1]; return __os; } template inline basic_ostream<_CharT, _Traits>& operator<<(basic_ostream<_CharT, _Traits>& __os, const zoned_time<_Duration, _TimeZonePtr>& __t) { __os << format(__os.getloc(), _GLIBCXX_WIDEN("{:L%F %T %Z}"), __t); return __os; } #endif template requires (!treat_as_floating_point_v) && ratio_less_v inline basic_ostream<_CharT, _Traits>& operator<<(basic_ostream<_CharT, _Traits>& __os, const sys_time<_Duration>& __tp) { __os << std::format(__os.getloc(), _GLIBCXX_WIDEN("{:L%F %T}"), __tp); return __os; } template inline basic_ostream<_CharT, _Traits>& operator<<(basic_ostream<_CharT, _Traits>& __os, const sys_days& __dp) { __os << year_month_day{__dp}; return __os; } template> basic_istream<_CharT, _Traits>& from_stream(basic_istream<_CharT, _Traits>& __is, const _CharT* __fmt, sys_time<_Duration>& __tp, basic_string<_CharT, _Traits, _Alloc>* __abbrev = nullptr, minutes* __offset = nullptr) { minutes __off{}; if (!__offset) __offset = &__off; using __format::_ChronoParts; auto __need = _ChronoParts::_Year | _ChronoParts::_Month | _ChronoParts::_Day | _ChronoParts::_TimeOfDay; __detail::_Parser_t<_Duration> __p(__need); if (__p(__is, __fmt, __abbrev, __offset)) { if (__p._M_is_leap_second) __is.setstate(ios_base::failbit); else { auto __st = __p._M_sys_days + __p._M_time - *__offset; __tp = __detail::__round<_Duration>(__st); } } return __is; } template inline basic_ostream<_CharT, _Traits>& operator<<(basic_ostream<_CharT, _Traits>& __os, const utc_time<_Duration>& __t) { __os << std::format(__os.getloc(), _GLIBCXX_WIDEN("{:L%F %T}"), __t); return __os; } template> inline basic_istream<_CharT, _Traits>& from_stream(basic_istream<_CharT, _Traits>& __is, const _CharT* __fmt, utc_time<_Duration>& __tp, basic_string<_CharT, _Traits, _Alloc>* __abbrev = nullptr, minutes* __offset = nullptr) { minutes __off{}; if (!__offset) __offset = &__off; using __format::_ChronoParts; auto __need = _ChronoParts::_Year | _ChronoParts::_Month | _ChronoParts::_Day | _ChronoParts::_TimeOfDay; __detail::_Parser_t<_Duration> __p(__need); if (__p(__is, __fmt, __abbrev, __offset)) { // Converting to utc_time before adding _M_time is necessary for // "23:59:60" to correctly produce a time within a leap second. auto __ut = utc_clock::from_sys(__p._M_sys_days) + __p._M_time - *__offset; __tp = __detail::__round<_Duration>(__ut); } return __is; } template inline basic_ostream<_CharT, _Traits>& operator<<(basic_ostream<_CharT, _Traits>& __os, const tai_time<_Duration>& __t) { __os << std::format(__os.getloc(), _GLIBCXX_WIDEN("{:L%F %T}"), __t); return __os; } template> inline basic_istream<_CharT, _Traits>& from_stream(basic_istream<_CharT, _Traits>& __is, const _CharT* __fmt, tai_time<_Duration>& __tp, basic_string<_CharT, _Traits, _Alloc>* __abbrev = nullptr, minutes* __offset = nullptr) { minutes __off{}; if (!__offset) __offset = &__off; using __format::_ChronoParts; auto __need = _ChronoParts::_Year | _ChronoParts::_Month | _ChronoParts::_Day | _ChronoParts::_TimeOfDay; __detail::_Parser_t<_Duration> __p(__need); if (__p(__is, __fmt, __abbrev, __offset)) { if (__p._M_is_leap_second) __is.setstate(ios_base::failbit); else { constexpr sys_days __epoch(-days(4383)); // 1958y/1/1 auto __d = __p._M_sys_days - __epoch + __p._M_time - *__offset; tai_time> __tt(__d); __tp = __detail::__round<_Duration>(__tt); } } return __is; } template inline basic_ostream<_CharT, _Traits>& operator<<(basic_ostream<_CharT, _Traits>& __os, const gps_time<_Duration>& __t) { __os << std::format(__os.getloc(), _GLIBCXX_WIDEN("{:L%F %T}"), __t); return __os; } template> inline basic_istream<_CharT, _Traits>& from_stream(basic_istream<_CharT, _Traits>& __is, const _CharT* __fmt, gps_time<_Duration>& __tp, basic_string<_CharT, _Traits, _Alloc>* __abbrev = nullptr, minutes* __offset = nullptr) { minutes __off{}; if (!__offset) __offset = &__off; using __format::_ChronoParts; auto __need = _ChronoParts::_YearMonthDay | _ChronoParts::_TimeOfDay; __detail::_Parser_t<_Duration> __p(__need); if (__p(__is, __fmt, __abbrev, __offset)) { if (__p._M_is_leap_second) __is.setstate(ios_base::failbit); else { constexpr sys_days __epoch(days(3657)); // 1980y/1/Sunday[1] auto __d = __p._M_sys_days - __epoch + __p._M_time - *__offset; gps_time> __gt(__d); __tp = __detail::__round<_Duration>(__gt); } } return __is; } template inline basic_ostream<_CharT, _Traits>& operator<<(basic_ostream<_CharT, _Traits>& __os, const file_time<_Duration>& __t) { __os << std::format(__os.getloc(), _GLIBCXX_WIDEN("{:L%F %T}"), __t); return __os; } template> inline basic_istream<_CharT, _Traits>& from_stream(basic_istream<_CharT, _Traits>& __is, const _CharT* __fmt, file_time<_Duration>& __tp, basic_string<_CharT, _Traits, _Alloc>* __abbrev = nullptr, minutes* __offset = nullptr) { sys_time<_Duration> __st; if (chrono::from_stream(__is, __fmt, __st, __abbrev, __offset)) __tp = __detail::__round<_Duration>(file_clock::from_sys(__st)); return __is; } template inline basic_ostream<_CharT, _Traits>& operator<<(basic_ostream<_CharT, _Traits>& __os, const local_time<_Duration>& __lt) // _GLIBCXX_RESOLVE_LIB_DEFECTS // 4257. Stream insertion for chrono::local_time should be constrained requires requires(const sys_time<_Duration>& __st) { __os << __st; } { __os << sys_time<_Duration>{__lt.time_since_epoch()}; return __os; } template> basic_istream<_CharT, _Traits>& from_stream(basic_istream<_CharT, _Traits>& __is, const _CharT* __fmt, local_time<_Duration>& __tp, basic_string<_CharT, _Traits, _Alloc>* __abbrev = nullptr, minutes* __offset = nullptr) { using __format::_ChronoParts; auto __need = _ChronoParts::_YearMonthDay | _ChronoParts::_TimeOfDay; __detail::_Parser_t<_Duration> __p(__need); if (__p(__is, __fmt, __abbrev, __offset)) { days __d = __p._M_sys_days.time_since_epoch(); auto __t = local_days(__d) + __p._M_time; // ignore offset __tp = __detail::__round<_Duration>(__t); } return __is; } // [time.parse] parsing namespace __detail { // _GLIBCXX_RESOLVE_LIB_DEFECTS // 3956. chrono::parse uses from_stream as a customization point void from_stream() = delete; template, typename... _OptArgs> concept __parsable = requires (basic_istream<_CharT, _Traits>& __is, const _CharT* __fmt, _Parsable& __tp, _OptArgs*... __args) { from_stream(__is, __fmt, __tp, __args...); }; template, typename _Alloc = allocator<_CharT>> struct _Parse { private: using __string_type = basic_string<_CharT, _Traits, _Alloc>; public: _Parse(const _CharT* __fmt, _Parsable& __tp, basic_string<_CharT, _Traits, _Alloc>* __abbrev = nullptr, minutes* __offset = nullptr) : _M_fmt(__fmt), _M_tp(std::__addressof(__tp)), _M_abbrev(__abbrev), _M_offset(__offset) { } _Parse(_Parse&&) = delete; _Parse& operator=(_Parse&&) = delete; private: using __stream_type = basic_istream<_CharT, _Traits>; const _CharT* const _M_fmt; _Parsable* const _M_tp; __string_type* const _M_abbrev; minutes* const _M_offset; friend __stream_type& operator>>(__stream_type& __is, _Parse&& __p) { if (__p._M_offset) from_stream(__is, __p._M_fmt, *__p._M_tp, __p._M_abbrev, __p._M_offset); else if (__p._M_abbrev) from_stream(__is, __p._M_fmt, *__p._M_tp, __p._M_abbrev); else from_stream(__is, __p._M_fmt, *__p._M_tp); return __is; } friend void operator>>(__stream_type&, _Parse&) = delete; friend void operator>>(__stream_type&, const _Parse&) = delete; }; } // namespace __detail template _Parsable> [[nodiscard, __gnu__::__access__(__read_only__, 1)]] inline auto parse(const _CharT* __fmt, _Parsable& __tp) { return __detail::_Parse<_Parsable, _CharT>(__fmt, __tp); } template _Parsable> [[nodiscard]] inline auto parse(const basic_string<_CharT, _Traits, _Alloc>& __fmt, _Parsable& __tp) { return __detail::_Parse<_Parsable, _CharT, _Traits>(__fmt.c_str(), __tp); } template, __detail::__parsable<_CharT, _Traits, _StrT> _Parsable> [[nodiscard, __gnu__::__access__(__read_only__, 1)]] inline auto parse(const _CharT* __fmt, _Parsable& __tp, basic_string<_CharT, _Traits, _Alloc>& __abbrev) { auto __pa = std::__addressof(__abbrev); return __detail::_Parse<_Parsable, _CharT, _Traits, _Alloc>(__fmt, __tp, __pa); } template, __detail::__parsable<_CharT, _Traits, _StrT> _Parsable> [[nodiscard]] inline auto parse(const basic_string<_CharT, _Traits, _Alloc>& __fmt, _Parsable& __tp, basic_string<_CharT, _Traits, _Alloc>& __abbrev) { auto __pa = std::__addressof(__abbrev); return __detail::_Parse<_Parsable, _CharT, _Traits, _Alloc>(__fmt.c_str(), __tp, __pa); } template, typename _StrT = basic_string<_CharT, _Traits>, __detail::__parsable<_CharT, _Traits, _StrT, minutes> _Parsable> [[nodiscard, __gnu__::__access__(__read_only__, 1)]] inline auto parse(const _CharT* __fmt, _Parsable& __tp, minutes& __offset) { return __detail::_Parse<_Parsable, _CharT>(__fmt, __tp, nullptr, &__offset); } template, __detail::__parsable<_CharT, _Traits, _StrT, minutes> _Parsable> [[nodiscard]] inline auto parse(const basic_string<_CharT, _Traits, _Alloc>& __fmt, _Parsable& __tp, minutes& __offset) { return __detail::_Parse<_Parsable, _CharT, _Traits, _Alloc>(__fmt.c_str(), __tp, nullptr, &__offset); } template, __detail::__parsable<_CharT, _Traits, _StrT, minutes> _Parsable> [[nodiscard, __gnu__::__access__(__read_only__, 1)]] inline auto parse(const _CharT* __fmt, _Parsable& __tp, basic_string<_CharT, _Traits, _Alloc>& __abbrev, minutes& __offset) { auto __pa = std::__addressof(__abbrev); return __detail::_Parse<_Parsable, _CharT, _Traits, _Alloc>(__fmt, __tp, __pa, &__offset); } template, __detail::__parsable<_CharT, _Traits, _StrT, minutes> _Parsable> [[nodiscard]] inline auto parse(const basic_string<_CharT, _Traits, _Alloc>& __fmt, _Parsable& __tp, basic_string<_CharT, _Traits, _Alloc>& __abbrev, minutes& __offset) { auto __pa = std::__addressof(__abbrev); return __detail::_Parse<_Parsable, _CharT, _Traits, _Alloc>(__fmt.c_str(), __tp, __pa, &__offset); } /// @cond undocumented template template basic_istream<_CharT, _Traits>& __detail::_Parser<_Duration>:: operator()(basic_istream<_CharT, _Traits>& __is, const _CharT* __fmt, basic_string<_CharT, _Traits, _Alloc>* __abbrev, minutes* __offset) { using sentry = typename basic_istream<_CharT, _Traits>::sentry; ios_base::iostate __err = ios_base::goodbit; if (sentry __cerb(__is, true); __cerb) { locale __loc = __is.getloc(); auto& __tmget = std::use_facet>(__loc); auto& __tmpunct = std::use_facet>(__loc); // RAII type to save and restore stream state. struct _Stream_state { explicit _Stream_state(basic_istream<_CharT, _Traits>& __i) : _M_is(__i), _M_flags(__i.flags(ios_base::skipws | ios_base::dec)), _M_w(__i.width(0)) { } ~_Stream_state() { _M_is.flags(_M_flags); _M_is.width(_M_w); } _Stream_state(_Stream_state&&) = delete; basic_istream<_CharT, _Traits>& _M_is; ios_base::fmtflags _M_flags; streamsize _M_w; }; auto __is_failed = [](ios_base::iostate __e) { return static_cast(__e & ios_base::failbit); }; // Read an unsigned integer from the stream and return it. // Extract no more than __n digits. Set __err on error. auto __read_unsigned = [&] (int __n) { return _S_read_unsigned(__is, __err, __n); }; // Read a signed integer from the stream and return it. // Extract no more than __n digits. Set __err on error. auto __read_signed = [&] (int __n) { return _S_read_signed(__is, __err, __n); }; // Read an expected character from the stream. auto __read_chr = [&__is, &__err] (_CharT __c) { return _S_read_chr(__is, __err, __c); }; using __format::_ChronoParts; _ChronoParts __parts{}; const year __bad_y = --year::min(); // SHRT_MIN const month __bad_mon(255); const day __bad_day(255); const weekday __bad_wday(255); const hours __bad_h(-1); const minutes __bad_min(-9999); const seconds __bad_sec(-1); year __y = __bad_y, __yy = __bad_y; // %Y, %yy year __iso_y = __bad_y, __iso_yy = __bad_y; // %G, %g month __m = __bad_mon; // %m day __d = __bad_day; // %d weekday __wday = __bad_wday; // %a %A %u %w hours __h = __bad_h, __h12 = __bad_h; // %H, %I minutes __min = __bad_min; // %M _Duration __s = __bad_sec; // %S int __ampm = 0; // %p int __iso_wk = -1, __sunday_wk = -1, __monday_wk = -1; // %V, %U, %W int __century = -1; // %C int __dayofyear = -1; // %j (for non-duration) minutes __tz_offset = __bad_min; basic_string<_CharT, _Traits> __tz_abbr; if ((_M_need & _ChronoParts::_TimeOfDay) != 0 && (_M_need & _ChronoParts::_Year) != 0) { // For time_points assume "00:00:00" is implicitly present, // so we don't fail to parse if it's not (PR libstdc++/114240). // We will still fail to parse if there's no year+month+day. __h = hours(0); __parts = _ChronoParts::_TimeOfDay; } // bool __is_neg = false; // TODO: how is this handled for parsing? _CharT __mod{}; // One of 'E' or 'O' or nul. unsigned __num = 0; // Non-zero for N modifier. bool __is_flag = false; // True if we're processing a % flag. constexpr bool __is_floating = treat_as_floating_point_v; // If an out-of-range value is extracted (e.g. 61min for %M), // do not set failbit immediately because we might not need it // (e.g. parsing chrono::year doesn't care about invalid %M values). // Instead set the variable back to its initial 'bad' state, // and also set related variables corresponding to the same field // (e.g. a bad %M value for __min should also reset __h and __s). // If a valid value is needed later the bad value will cause failure. // For some fields we don't know the correct range when parsing and // we have to be liberal in what we accept, e.g. we allow 366 for // day-of-year because that's valid in leap years, and we allow 31 // for day-of-month. If those values are needed to determine the // result then we can do a correct range check at the end when we // know the how many days the relevant year or month actually has. while (*__fmt) { _CharT __c = *__fmt++; if (!__is_flag) { if (__c == '%') __is_flag = true; // This is the start of a flag. else if (std::isspace(__c, __loc)) std::ws(__is); // Match zero or more whitespace characters. else if (!__read_chr(__c)) [[unlikely]] break; // Failed to match the expected character. continue; // Process next character in the format string. } // Now processing a flag. switch (__c) { case 'a': // Locale's weekday name case 'A': // (full or abbreviated, matched case-insensitively). if (__mod || __num) [[unlikely]] __err = ios_base::failbit; else { struct tm __tm{}; __tmget.get(__is, {}, __is, __err, &__tm, __fmt - 2, __fmt); if (!__is_failed(__err)) __wday = weekday(__tm.tm_wday); } __parts |= _ChronoParts::_Weekday; break; case 'b': // Locale's month name case 'h': // (full or abbreviated, matched case-insensitively). case 'B': if (__mod || __num) [[unlikely]] __err = ios_base::failbit; else { // strptime behaves differently for %b and %B, // but chrono::parse says they're equivalent. // Luckily libstdc++ std::time_get works as needed. struct tm __tm{}; __tmget.get(__is, {}, __is, __err, &__tm, __fmt - 2, __fmt); if (!__is_failed(__err)) __m = month(__tm.tm_mon + 1); } __parts |= _ChronoParts::_Month; break; case 'c': // Locale's date and time representation. if (__mod == 'O' || __num) [[unlikely]] __err |= ios_base::failbit; else { struct tm __tm{}; __tmget.get(__is, {}, __is, __err, &__tm, __fmt - 2 - (__mod == 'E'), __fmt); if (!__is_failed(__err)) { __y = year(__tm.tm_year + 1900); __m = month(__tm.tm_mon + 1); __d = day(__tm.tm_mday); __h = hours(__tm.tm_hour); __min = minutes(__tm.tm_min); __s = seconds(__tm.tm_sec); } } __parts |= _ChronoParts::_DateTime; break; case 'C': // Century if (!__mod) [[likely]] { auto __v = __read_signed(__num ? __num : 2); if (!__is_failed(__err)) { int __cmin = (int)year::min() / 100; int __cmax = (int)year::max() / 100; if (__cmin <= __v && __v <= __cmax) __century = __v * 100; else __century = -2; // This prevents guessing century. } } else if (__mod == 'E') { struct tm __tm{}; __tmget.get(__is, {}, __is, __err, &__tm, __fmt - 3, __fmt); if (!__is_failed(__err)) __century = __tm.tm_year; } else [[unlikely]] __err |= ios_base::failbit; // N.B. don't set this here: __parts |= _ChronoParts::_Year; break; case 'd': // Day of month (1-31) case 'e': if (!__mod) [[likely]] { auto __v = __read_unsigned(__num ? __num : 2); if (!__is_failed(__err)) __d = day(__v); } else if (__mod == 'O') { struct tm __tm{}; __tmget.get(__is, {}, __is, __err, &__tm, __fmt - 3, __fmt); if (!__is_failed(__err)) __d = day(__tm.tm_mday); } else [[unlikely]] __err |= ios_base::failbit; __parts |= _ChronoParts::_Day; break; case 'D': // %m/%d/%y if (__mod || __num) [[unlikely]] __err |= ios_base::failbit; else { auto __month = __read_unsigned(2); // %m __read_chr('/'); auto __day = __read_unsigned(2); // %d __read_chr('/'); auto __year = __read_unsigned(2); // %y if (__is_failed(__err)) break; __y = year(__year + 1900 + 100 * int(__year < 69)); __m = month(__month); __d = day(__day); if (!year_month_day(__y, __m, __d).ok()) { __y = __yy = __iso_y = __iso_yy = __bad_y; __m = __bad_mon; __d = __bad_day; break; } } __parts |= _ChronoParts::_Date; break; case 'F': // %Y-%m-%d - any N modifier only applies to %Y. if (__mod) [[unlikely]] __err |= ios_base::failbit; else { auto __year = __read_signed(__num ? __num : 4); // %Y __read_chr('-'); auto __month = __read_unsigned(2); // %m __read_chr('-'); auto __day = __read_unsigned(2); // %d if (__is_failed(__err)) break; __y = year(__year); __m = month(__month); __d = day(__day); if (!year_month_day(__y, __m, __d).ok()) { __y = __yy = __iso_y = __iso_yy = __bad_y; __m = __bad_mon; __d = __bad_day; break; } } __parts |= _ChronoParts::_Date; break; case 'g': // Last two digits of ISO week-based year. if (__mod) [[unlikely]] __err |= ios_base::failbit; else { auto __val = __read_unsigned(__num ? __num : 2); if (__val >= 0 && __val <= 99) { __iso_yy = year(__val); if (__century == -1) // No %C has been parsed yet. __century = 2000; } else __iso_yy = __iso_y = __y = __yy = __bad_y; } __parts |= _ChronoParts::_Year; break; case 'G': // ISO week-based year. if (__mod) [[unlikely]] __err |= ios_base::failbit; else __iso_y = year(__read_unsigned(__num ? __num : 4)); __parts |= _ChronoParts::_Year; break; case 'H': // 24-hour (00-23) case 'I': // 12-hour (1-12) if (__mod == 'E') [[unlikely]] __err |= ios_base::failbit; else if (__mod == 'O') { #if 0 struct tm __tm{}; __tm.tm_ampm = 1; __tmget.get(__is, {}, __is, __err, &__tm, __fmt - 3, __fmt); if (!__is_failed(__err)) { if (__c == 'I') { __h12 = hours(__tm.tm_hour); __h = __bad_h; } else __h = hours(__tm.tm_hour); } #else // XXX %OI seems to be unimplementable. __err |= ios_base::failbit; #endif } else { auto __val = __read_unsigned(__num ? __num : 2); if (__c == 'I' && __val >= 1 && __val <= 12) { __h12 = hours(__val); __h = __bad_h; } else if (__c == 'H' && __val >= 0 && __val <= 23) { __h = hours(__val); __h12 = __bad_h; } else { if ((_M_need & _ChronoParts::_TimeOfDay) != 0) __err |= ios_base::failbit; break; } } __parts |= _ChronoParts::_TimeOfDay; break; case 'j': // For duration, count of days, otherwise day of year if (__mod) [[unlikely]] __err |= ios_base::failbit; else if (_M_need == _ChronoParts::_TimeOfDay) // duration { auto __val = __read_signed(__num ? __num : 3); if (!__is_failed(__err)) { __h = days(__val); // __h will get added to _M_time __parts |= _ChronoParts::_TimeOfDay; } } else { __dayofyear = __read_unsigned(__num ? __num : 3); // N.B. do not alter __parts here, done after loop. // No need for range checking here either. } break; case 'm': // Month (1-12) if (__mod == 'E') [[unlikely]] __err |= ios_base::failbit; else if (__mod == 'O') { struct tm __tm{}; __tmget.get(__is, {}, __is, __err, &__tm, __fmt - 2, __fmt); if (!__is_failed(__err)) __m = month(__tm.tm_mon + 1); } else { auto __val = __read_unsigned(__num ? __num : 2); if (__val >= 1 && __val <= 12) __m = month(__val); else __m = __bad_mon; } __parts |= _ChronoParts::_Month; break; case 'M': // Minutes if (__mod == 'E') [[unlikely]] __err |= ios_base::failbit; else if (__mod == 'O') { struct tm __tm{}; __tmget.get(__is, {}, __is, __err, &__tm, __fmt - 2, __fmt); if (!__is_failed(__err)) __min = minutes(__tm.tm_min); } else { auto __val = __read_unsigned(__num ? __num : 2); if (0 <= __val && __val < 60) __min = minutes(__val); else { if ((_M_need & _ChronoParts::_TimeOfDay) != 0) __err |= ios_base::failbit; break; } } __parts |= _ChronoParts::_TimeOfDay; break; case 'p': // Locale's AM/PM designation for 12-hour clock. if (__mod || __num) __err |= ios_base::failbit; else { // Can't use std::time_get here as it can't parse %p // in isolation without %I. This might be faster anyway. const _CharT* __ampms[2]; __tmpunct._M_am_pm(__ampms); int __n = 0, __which = 3; while (__which != 0) { auto __i = __is.peek(); if (_Traits::eq_int_type(__i, _Traits::eof())) { __err |= ios_base::eofbit | ios_base::failbit; break; } __i = std::toupper(_Traits::to_char_type(__i), __loc); if (__which & 1) { if (__i != std::toupper(__ampms[0][__n], __loc)) __which ^= 1; else if (__ampms[0][__n + 1] == _CharT()) { __which = 1; (void) __is.get(); break; } } if (__which & 2) { if (__i != std::toupper(__ampms[1][__n], __loc)) __which ^= 2; else if (__ampms[1][__n + 1] == _CharT()) { __which = 2; (void) __is.get(); break; } } if (__which) (void) __is.get(); ++__n; } if (__which == 0 || __which == 3) __err |= ios_base::failbit; else __ampm = __which; } break; case 'r': // Locale's 12-hour time. if (__mod || __num) __err |= ios_base::failbit; else { struct tm __tm{}; __tmget.get(__is, {}, __is, __err, &__tm, __fmt - 2, __fmt); if (!__is_failed(__err)) { __h = hours(__tm.tm_hour); __min = minutes(__tm.tm_min); __s = seconds(__tm.tm_sec); } } __parts |= _ChronoParts::_TimeOfDay; break; case 'R': // %H:%M case 'T': // %H:%M:%S if (__mod || __num) [[unlikely]] { __err |= ios_base::failbit; break; } else { auto __val = __read_unsigned(2); if (__val == -1 || __val > 23) [[unlikely]] { if ((_M_need & _ChronoParts::_TimeOfDay) != 0) __err |= ios_base::failbit; break; } if (!__read_chr(':')) [[unlikely]] break; __h = hours(__val); __val = __read_unsigned(2); if (__val == -1 || __val > 60) [[unlikely]] { if ((_M_need & _ChronoParts::_TimeOfDay) != 0) __err |= ios_base::failbit; break; } __min = minutes(__val); if (__c == 'R') { __parts |= _ChronoParts::_TimeOfDay; break; } else if (!__read_chr(':')) [[unlikely]] break; } [[fallthrough]]; case 'S': // Seconds if (__mod == 'E') [[unlikely]] __err |= ios_base::failbit; else if (__mod == 'O') { struct tm __tm{}; __tmget.get(__is, {}, __is, __err, &__tm, __fmt - 3, __fmt); if (!__is_failed(__err)) __s = seconds(__tm.tm_sec); } else if constexpr (_Duration::period::den == 1 && !__is_floating) { auto __val = __read_unsigned(__num ? __num : 2); if (0 <= __val && __val <= 59) [[likely]] __s = seconds(__val); else { if ((_M_need & _ChronoParts::_TimeOfDay) != 0) __err |= ios_base::failbit; break; } } else // Read fractional seconds { stringstream __buf; auto __digit = _S_try_read_digit(__is, __err); if (__digit != -1) { __buf.put('0' + __digit); __digit = _S_try_read_digit(__is, __err); if (__digit != -1) __buf.put('0' + __digit); } auto __i = __is.peek(); if (_Traits::eq_int_type(__i, _Traits::eof())) __err |= ios_base::eofbit; else { _CharT __dp = '.'; if (__loc != locale::classic()) { auto& __np = use_facet>(__loc); __dp = __np.decimal_point(); } _CharT __c = _Traits::to_char_type(__i); if (__c == __dp) { (void) __is.get(); __buf.put('.'); int __prec = hh_mm_ss<_Duration>::fractional_width; do { __digit = _S_try_read_digit(__is, __err); if (__digit != -1) __buf.put('0' + __digit); else break; } while (--__prec); } } if (!__is_failed(__err)) [[likely]] { long double __val{}; #if __cpp_lib_to_chars string __str = std::move(__buf).str(); auto __first = __str.data(); auto __last = __first + __str.size(); using enum chars_format; auto [ptr, ec] = std::from_chars(__first, __last, __val, fixed); if ((bool)ec || ptr != __last) [[unlikely]] __err |= ios_base::failbit; else #else if (__buf >> __val) #endif { duration __fs(__val); if constexpr (__is_floating) __s = __fs; else __s = chrono::round<_Duration>(__fs); } } } __parts |= _ChronoParts::_TimeOfDay; break; case 'u': // ISO weekday (1-7) case 'w': // Weekday (0-6) if (__mod == 'E') [[unlikely]] __err |= ios_base::failbit; else if (__mod == 'O') { if (__c == 'w') { struct tm __tm{}; __tmget.get(__is, {}, __is, __err, &__tm, __fmt - 3, __fmt); if (!__is_failed(__err)) __wday = weekday(__tm.tm_wday); } else __err |= ios_base::failbit; } else { const int __lo = __c == 'u' ? 1 : 0; const int __hi = __lo + 6; auto __val = __read_unsigned(__num ? __num : 1); if (__lo <= __val && __val <= __hi) __wday = weekday(__val); else { __wday = __bad_wday; break; } } __parts |= _ChronoParts::_Weekday; break; case 'U': // Week number of the year (from first Sunday). case 'V': // ISO week-based week number. case 'W': // Week number of the year (from first Monday). if (__mod == 'E') [[unlikely]] __err |= ios_base::failbit; else if (__mod == 'O') { if (__c == 'V') [[unlikely]] __err |= ios_base::failbit; else { // TODO nl_langinfo_l(ALT_DIGITS) ? // Not implementable using std::time_get. } } else { const int __lo = __c == 'V' ? 1 : 0; const int __hi = 53; auto __val = __read_unsigned(__num ? __num : 2); if (__lo <= __val && __val <= __hi) { switch (__c) { case 'U': __sunday_wk = __val; break; case 'V': __iso_wk = __val; break; case 'W': __monday_wk = __val; break; } } else __iso_wk = __sunday_wk = __monday_wk = -1; } // N.B. do not alter __parts here, done after loop. break; case 'x': // Locale's date representation. if (__mod == 'O' || __num) [[unlikely]] __err |= ios_base::failbit; else { struct tm __tm{}; __tmget.get(__is, {}, __is, __err, &__tm, __fmt - 2 - (__mod == 'E'), __fmt); if (!__is_failed(__err)) { __y = year(__tm.tm_year + 1900); __m = month(__tm.tm_mon + 1); __d = day(__tm.tm_mday); } } __parts |= _ChronoParts::_Date; break; case 'X': // Locale's time representation. if (__mod == 'O' || __num) [[unlikely]] __err |= ios_base::failbit; else { struct tm __tm{}; __tmget.get(__is, {}, __is, __err, &__tm, __fmt - 2 - (__mod == 'E'), __fmt); if (!__is_failed(__err)) { __h = hours(__tm.tm_hour); __min = minutes(__tm.tm_min); __s = seconds(__tm.tm_sec); } } __parts |= _ChronoParts::_TimeOfDay; break; case 'y': // Last two digits of year. if (__mod) [[unlikely]] { struct tm __tm{}; __tmget.get(__is, {}, __is, __err, &__tm, __fmt - 3, __fmt); if (!__is_failed(__err)) { int __cent = __tm.tm_year < 2000 ? 1900 : 2000; __yy = year(__tm.tm_year - __cent); if (__century == -1) // No %C has been parsed yet. __century = __cent; } } else { auto __val = __read_unsigned(__num ? __num : 2); if (__val >= 0 && __val <= 99) { __yy = year(__val); if (__century == -1) // No %C has been parsed yet. __century = __val < 69 ? 2000 : 1900; } else __y = __yy = __iso_yy = __iso_y = __bad_y; } __parts |= _ChronoParts::_Year; break; case 'Y': // Year if (__mod == 'O') [[unlikely]] __err |= ios_base::failbit; else if (__mod == 'E') { struct tm __tm{}; __tmget.get(__is, {}, __is, __err, &__tm, __fmt - 3, __fmt); if (!__is_failed(__err)) __y = year(__tm.tm_year); } else { auto __val = __read_unsigned(__num ? __num : 4); if (!__is_failed(__err)) __y = year(__val); } __parts |= _ChronoParts::_Year; break; case 'z': if (__num) [[unlikely]] __err |= ios_base::failbit; else { // For %Ez and %Oz read [+|-][h]h[:mm]. // For %z read [+|-]hh[mm]. auto __i = __is.peek(); if (_Traits::eq_int_type(__i, _Traits::eof())) { __err |= ios_base::eofbit | ios_base::failbit; break; } _CharT __ic = _Traits::to_char_type(__i); const bool __neg = __ic == _CharT('-'); if (__ic == _CharT('-') || __ic == _CharT('+')) (void) __is.get(); int_least32_t __hh; if (__mod) { // Read h[h] __hh = __read_unsigned(2); } else { // Read hh __hh = 10 * _S_try_read_digit(__is, __err); __hh += _S_try_read_digit(__is, __err); } if (__is_failed(__err)) break; __i = __is.peek(); if (_Traits::eq_int_type(__i, _Traits::eof())) { __err |= ios_base::eofbit; __tz_offset = minutes(__hh * (__neg ? -60 : 60)); break; } __ic = _Traits::to_char_type(__i); bool __read_mm = false; if (__mod) { if (__ic == _GLIBCXX_WIDEN(":")[0]) { // Read [:mm] part. (void) __is.get(); __read_mm = true; } } else if (_CharT('0') <= __ic && __ic <= _CharT('9')) { // Read [mm] part. __read_mm = true; } int_least32_t __mm = 0; if (__read_mm) { __mm = 10 * _S_try_read_digit(__is, __err); __mm += _S_try_read_digit(__is, __err); } if (!__is_failed(__err)) { auto __z = __hh * 60 + __mm; __tz_offset = minutes(__neg ? -__z : __z); } } break; case 'Z': if (__mod || __num) [[unlikely]] __err |= ios_base::failbit; else { basic_string_view<_CharT> __x = _GLIBCXX_WIDEN("_/-+"); __tz_abbr.clear(); while (true) { auto __i = __is.peek(); if (!_Traits::eq_int_type(__i, _Traits::eof())) { _CharT __a = _Traits::to_char_type(__i); if (std::isalnum(__a, __loc) || __x.find(__a) != __x.npos) { __tz_abbr.push_back(__a); (void) __is.get(); continue; } } else __err |= ios_base::eofbit; break; } if (__tz_abbr.empty()) __err |= ios_base::failbit; } break; case 'n': // Exactly one whitespace character. if (__mod || __num) [[unlikely]] __err |= ios_base::failbit; else { _CharT __i = __is.peek(); if (_Traits::eq_int_type(__i, _Traits::eof())) __err |= ios_base::eofbit | ios_base::failbit; else if (std::isspace(_Traits::to_char_type(__i), __loc)) (void) __is.get(); else __err |= ios_base::failbit; } break; case 't': // Zero or one whitespace characters. if (__mod || __num) [[unlikely]] __err |= ios_base::failbit; else { _CharT __i = __is.peek(); if (_Traits::eq_int_type(__i, _Traits::eof())) __err |= ios_base::eofbit; else if (std::isspace(_Traits::to_char_type(__i), __loc)) (void) __is.get(); } break; case '%': // A % character. if (__mod || __num) [[unlikely]] __err |= ios_base::failbit; else __read_chr('%'); break; case 'O': // Modifiers case 'E': if (__mod || __num) [[unlikely]] { __err |= ios_base::failbit; break; } __mod = __c; continue; default: if (_CharT('1') <= __c && __c <= _CharT('9')) { if (!__mod) [[likely]] { // %Nx - extract positive decimal integer N auto __end = __fmt + _Traits::length(__fmt); auto [__v, __ptr] = __format::__parse_integer(__fmt - 1, __end); if (__ptr) [[likely]] { __num = __v; __fmt = __ptr; continue; } } } __err |= ios_base::failbit; } if (__is_failed(__err)) [[unlikely]] break; __is_flag = false; __num = 0; __mod = _CharT(); } if (__century >= 0) { if (__yy != __bad_y && __y == __bad_y) __y = years(__century) + __yy; // Use %y instead of %Y if (__iso_yy != __bad_y && __iso_y == __bad_y) __iso_y = years(__century) + __iso_yy; // Use %g instead of %G } bool __can_use_doy = false; bool __can_use_iso_wk = false; bool __can_use_sun_wk = false; bool __can_use_mon_wk = false; // A year + day-of-year can be converted to a full date. if (__y != __bad_y && __dayofyear >= 0) { __can_use_doy = true; __parts |= _ChronoParts::_Date; } else if (__y != __bad_y && __wday != __bad_wday && __sunday_wk >= 0) { __can_use_sun_wk = true; __parts |= _ChronoParts::_Date; } else if (__y != __bad_y && __wday != __bad_wday && __monday_wk >= 0) { __can_use_mon_wk = true; __parts |= _ChronoParts::_Date; } else if (__iso_y != __bad_y && __wday != __bad_wday && __iso_wk > 0) { // An ISO week date can be converted to a full date. __can_use_iso_wk = true; __parts |= _ChronoParts::_Date; } if (__is_failed(__err)) [[unlikely]] ; // Don't bother doing any more work. else if (__is_flag) [[unlikely]] // incomplete format flag __err |= ios_base::failbit; else if ((_M_need & __parts) == _M_need) [[likely]] { // We try to avoid calculating _M_sys_days and _M_ymd unless // necessary, because converting sys_days to year_month_day // (or vice versa) requires non-trivial calculations. // If we have y/m/d values then use them to populate _M_ymd // and only convert it to _M_sys_days if the caller needs that. // But if we don't have y/m/d and need to calculate the date // from the day-of-year or a week+weekday then we set _M_sys_days // and only convert it to _M_ymd if the caller needs that. // We do more error checking here, but only for the fields that // we actually need to use. For example, we will not diagnose // an invalid dayofyear==366 for non-leap years unless actually // using __dayofyear. This should mean we never produce invalid // results, but it means not all invalid inputs are diagnosed, // e.g. "2023-01-01 366" >> "%F %j" ignores the invalid 366. // We also do not diagnose inconsistent values for the same // field, e.g. "2021 2022 2023" >> "%C%y %Y %Y" just uses 2023. // Whether the caller wants _M_wd. // The _Weekday bit is only set for chrono::weekday. const bool __need_wday = (_M_need & _ChronoParts::_Weekday) != 0; // Whether the caller wants _M_sys_days and _M_time. // Only true for durations and time_points. const bool __need_time = (_M_need & _ChronoParts::_TimeOfDay) != 0; if (__need_wday && __wday != __bad_wday) _M_wd = __wday; // Caller only wants a weekday and we have one. else if ((_M_need & _ChronoParts::_Date) != 0) // subsumes __need_wday { // Whether the caller wants _M_ymd. // True for chrono::year etc., false for time_points. const bool __need_ymd = !__need_wday && !__need_time; if (((_M_need & _ChronoParts::_Year) != 0 && __y == __bad_y) || ((_M_need & _ChronoParts::_Month) != 0 && __m == __bad_mon) || ((_M_need & _ChronoParts::_Day) != 0 && __d == __bad_day)) { // Missing at least one of y/m/d so calculate sys_days // from the other data we have available. if (__can_use_doy) { if ((0 < __dayofyear && __dayofyear <= 365) || (__dayofyear == 366 && __y.is_leap())) [[likely]] { _M_sys_days = sys_days(__y/January/1) + days(__dayofyear - 1); if (__need_ymd) _M_ymd = year_month_day(_M_sys_days); } else __err |= ios_base::failbit; } else if (__can_use_iso_wk) { // Calculate y/m/d from ISO week date. if (__iso_wk == 53) { // A year has 53 weeks iff Jan 1st is a Thursday // or Jan 1 is a Wednesday and it's a leap year. const sys_days __jan4(__iso_y/January/4); weekday __wd1(__jan4 - days(3)); if (__wd1 != Thursday) if (__wd1 != Wednesday || !__iso_y.is_leap()) __err |= ios_base::failbit; } if (!__is_failed(__err)) [[likely]] { // First Thursday is always in week one: sys_days __w(Thursday[1]/January/__iso_y); // First day of week-based year: __w -= Thursday - Monday; __w += days(weeks(__iso_wk - 1)); __w += __wday - Monday; _M_sys_days = __w; if (__need_ymd) _M_ymd = year_month_day(_M_sys_days); } } else if (__can_use_sun_wk) { // Calculate y/m/d from week number + weekday. sys_days __wk1(__y/January/Sunday[1]); _M_sys_days = __wk1 + weeks(__sunday_wk - 1) + days(__wday.c_encoding()); _M_ymd = year_month_day(_M_sys_days); if (_M_ymd.year() != __y) [[unlikely]] __err |= ios_base::failbit; } else if (__can_use_mon_wk) { // Calculate y/m/d from week number + weekday. sys_days __wk1(__y/January/Monday[1]); _M_sys_days = __wk1 + weeks(__monday_wk - 1) + days(__wday.c_encoding() - 1); _M_ymd = year_month_day(_M_sys_days); if (_M_ymd.year() != __y) [[unlikely]] __err |= ios_base::failbit; } else // Should not be able to get here. __err |= ios_base::failbit; } else { // We know that all fields the caller needs are present, // but check that their values are in range. // Make unwanted fields valid so that _M_ymd.ok() is true. if ((_M_need & _ChronoParts::_Year) != 0) { if (!__y.ok()) [[unlikely]] __err |= ios_base::failbit; } else if (__y == __bad_y) __y = 1972y; // Leap year so that Feb 29 is valid. if ((_M_need & _ChronoParts::_Month) != 0) { if (!__m.ok()) [[unlikely]] __err |= ios_base::failbit; } else if (__m == __bad_mon) __m = January; if ((_M_need & _ChronoParts::_Day) != 0) { if (__d < day(1) || __d > (__y/__m/last).day()) __err |= ios_base::failbit; } else if (__d == __bad_day) __d = 1d; if (year_month_day __ymd(__y, __m, __d); __ymd.ok()) { _M_ymd = __ymd; if (__need_wday || __need_time) _M_sys_days = sys_days(_M_ymd); } else [[unlikely]] __err |= ios_base::failbit; } if (__need_wday) _M_wd = weekday(_M_sys_days); } // Need to set _M_time for both durations and time_points. if (__need_time) { if (__h == __bad_h && __h12 != __bad_h) { if (__ampm == 1) __h = __h12 == hours(12) ? hours(0) : __h12; else if (__ampm == 2) __h = __h12 == hours(12) ? __h12 : __h12 + hours(12); else [[unlikely]] __err |= ios_base::failbit; } auto __t = _M_time.zero(); bool __ok = false; if (__h != __bad_h) { __ok = true; __t += __h; } if (__min != __bad_min) { __ok = true; __t += __min; } if (__s != __bad_sec) { __ok = true; __t += __s; _M_is_leap_second = __s >= seconds(60); } if (__ok) _M_time = __t; else __err |= ios_base::failbit; } if (!__is_failed(__err)) [[likely]] { if (__offset && __tz_offset != __bad_min) *__offset = __tz_offset; if (__abbrev && !__tz_abbr.empty()) *__abbrev = std::move(__tz_abbr); } } else __err |= ios_base::failbit; } if (__err) __is.setstate(__err); return __is; } /// @endcond #undef _GLIBCXX_WIDEN /// @} group chrono } // namespace chrono _GLIBCXX_END_NAMESPACE_VERSION } // namespace std #endif // C++20 #endif //_GLIBCXX_CHRONO_IO_H