libstdc++
format
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1// <format> Formatting -*- C++ -*-
2
3// Copyright The GNU Toolchain Authors.
4//
5// This file is part of the GNU ISO C++ Library. This library is free
6// software; you can redistribute it and/or modify it under the
7// terms of the GNU General Public License as published by the
8// Free Software Foundation; either version 3, or (at your option)
9// any later version.
10
11// This library is distributed in the hope that it will be useful,
12// but WITHOUT ANY WARRANTY; without even the implied warranty of
13// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14// GNU General Public License for more details.
15
16// Under Section 7 of GPL version 3, you are granted additional
17// permissions described in the GCC Runtime Library Exception, version
18// 3.1, as published by the Free Software Foundation.
19
20// You should have received a copy of the GNU General Public License and
21// a copy of the GCC Runtime Library Exception along with this program;
22// see the files COPYING3 and COPYING.RUNTIME respectively. If not, see
23// <http://www.gnu.org/licenses/>.
24
25/** @file include/format
26 * This is a Standard C++ Library header.
27 */
28
29#ifndef _GLIBCXX_FORMAT
30#define _GLIBCXX_FORMAT 1
31
32#ifdef _GLIBCXX_SYSHDR
33#pragma GCC system_header
34#endif
35
36#include <bits/requires_hosted.h> // for std::string
37
38#define __glibcxx_want_format
39#define __glibcxx_want_format_ranges
40#define __glibcxx_want_format_uchar
41#define __glibcxx_want_constexpr_exceptions
42#include <bits/version.h>
43
44#ifdef __cpp_lib_format // C++ >= 20 && HOSTED
45
46#include <array>
47#include <charconv>
48#include <concepts>
49#include <limits>
50#include <locale>
51#include <optional>
52#include <span>
53#include <string_view>
54#include <string>
55#include <bits/monostate.h>
56#include <bits/formatfwd.h>
57#include <bits/ranges_base.h> // input_range, range_reference_t
58#include <bits/ranges_util.h> // subrange
59#include <bits/ranges_algobase.h> // ranges::copy
60#include <bits/stl_iterator.h> // counted_iterator
61#include <bits/stl_pair.h> // __is_pair
62#include <bits/unicode.h> // __is_scalar_value, _Utf_view, etc.
63#include <bits/utility.h> // tuple_size_v
64#include <ext/numeric_traits.h> // __int_traits
65
66#if !__has_builtin(__builtin_toupper)
67# include <cctype>
68#endif
69
70#pragma GCC diagnostic push
71#pragma GCC diagnostic ignored "-Wpedantic" // __int128
72#pragma GCC diagnostic ignored "-Wc++23-extensions" // bf16
73
74namespace std _GLIBCXX_VISIBILITY(default)
75{
76_GLIBCXX_BEGIN_NAMESPACE_VERSION
77
78 // [format.fmt.string], class template basic_format_string
79 template<typename _CharT, typename... _Args> struct basic_format_string;
80
81/// @cond undocumented
82namespace __format
83{
84 // STATICALLY-WIDEN, see C++20 [time.general]
85 // It doesn't matter for format strings (which can only be char or wchar_t)
86 // but this returns the narrow string for anything that isn't wchar_t. This
87 // is done because const char* can be inserted into any ostream type, and
88 // will be widened at runtime if necessary.
89 template<typename _CharT>
90 consteval auto
91 _Widen(const char* __narrow, const wchar_t* __wide)
92 {
93 if constexpr (is_same_v<_CharT, wchar_t>)
94 return __wide;
95 else
96 return __narrow;
97 }
98#define _GLIBCXX_WIDEN_(C, S) ::std::__format::_Widen<C>(S, L##S)
99#define _GLIBCXX_WIDEN(S) _GLIBCXX_WIDEN_(_CharT, S)
100
101 // Size for stack located buffer
102 template<typename _CharT>
103 constexpr size_t __stackbuf_size = 32 * sizeof(void*) / sizeof(_CharT);
104
105 // Type-erased character sinks.
106 template<typename _CharT> class _Sink;
107 template<typename _CharT> class _Fixedbuf_sink;
108 template<typename _Out, typename _CharT> class _Padding_sink;
109 template<typename _Out, typename _CharT> class _Escaping_sink;
110
111 // Output iterator that writes to a type-erase character sink.
112 template<typename _CharT>
113 class _Sink_iter;
114
115 // Output iterator that ignores the characters
116 template<typename _CharT>
117 class _Drop_iter;
118
119 // An unspecified output iterator type used in the `formattable` concept.
120 template<typename _CharT>
121 struct _Iter_for
122 { using type = _Drop_iter<_CharT>; };
123
124 template<typename _CharT>
125 using __format_context = basic_format_context<_Sink_iter<_CharT>, _CharT>;
126
127 template<typename _CharT>
128 struct _Runtime_format_string
129 {
130 [[__gnu__::__always_inline__]]
131 _Runtime_format_string(basic_string_view<_CharT> __s) noexcept
132 : _M_str(__s) { }
133
134 _Runtime_format_string(const _Runtime_format_string&) = delete;
135 void operator=(const _Runtime_format_string&) = delete;
136
137 private:
138 basic_string_view<_CharT> _M_str;
139
140 template<typename, typename...> friend struct std::basic_format_string;
141 };
142
143} // namespace __format
144/// @endcond
145
146 using format_context = __format::__format_context<char>;
147#ifdef _GLIBCXX_USE_WCHAR_T
148 using wformat_context = __format::__format_context<wchar_t>;
149#endif
150
151 // [format.args], class template basic_format_args
152 template<typename _Context> class basic_format_args;
153 using format_args = basic_format_args<format_context>;
154#ifdef _GLIBCXX_USE_WCHAR_T
155 using wformat_args = basic_format_args<wformat_context>;
156#endif
157
158 // [format.arguments], arguments
159 // [format.arg], class template basic_format_arg
160 template<typename _Context>
161 class basic_format_arg;
162
163 /** A compile-time checked format string for the specified argument types.
164 *
165 * @since C++23 but available as an extension in C++20.
166 */
167 template<typename _CharT, typename... _Args>
168 struct basic_format_string
169 {
170 template<typename _Tp>
171 requires convertible_to<const _Tp&, basic_string_view<_CharT>>
172 consteval
173 basic_format_string(const _Tp& __s);
174
175 [[__gnu__::__always_inline__]]
176 basic_format_string(__format::_Runtime_format_string<_CharT> __s) noexcept
177 : _M_str(__s._M_str)
178 { }
179
180 [[__gnu__::__always_inline__]]
181 constexpr basic_string_view<_CharT>
182 get() const noexcept
183 { return _M_str; }
184
185 private:
186 basic_string_view<_CharT> _M_str;
187 };
188
189 template<typename... _Args>
190 using format_string = basic_format_string<char, type_identity_t<_Args>...>;
191
192#ifdef _GLIBCXX_USE_WCHAR_T
193 template<typename... _Args>
194 using wformat_string
195 = basic_format_string<wchar_t, type_identity_t<_Args>...>;
196#endif
197
198#if __cpp_lib_format >= 202311L // >= C++26
199 [[__gnu__::__always_inline__]]
200 inline __format::_Runtime_format_string<char>
201 runtime_format(string_view __fmt) noexcept
202 { return __fmt; }
203
204#ifdef _GLIBCXX_USE_WCHAR_T
205 [[__gnu__::__always_inline__]]
206 inline __format::_Runtime_format_string<wchar_t>
207 runtime_format(wstring_view __fmt) noexcept
208 { return __fmt; }
209#endif
210#endif // C++26
211
212 // [format.formatter], formatter
213
214 /// The primary template of std::formatter is disabled.
215 template<typename _Tp, typename _CharT>
216 struct formatter
217 {
218 formatter() = delete; // No std::formatter specialization for this type.
219 formatter(const formatter&) = delete;
220 formatter& operator=(const formatter&) = delete;
221 };
222
223#if __cpp_lib_constexpr_exceptions >= 202502L
224#define _GLIBCXX_CONSTEXPR_FORMAT_ERROR constexpr
225#else
226#define _GLIBCXX_CONSTEXPR_FORMAT_ERROR
227#endif
228
229 // [format.error], class format_error
230 class format_error : public runtime_error
231 {
232 public:
233 _GLIBCXX_CONSTEXPR_FORMAT_ERROR explicit format_error(const string& __what)
234 : runtime_error(__what) { }
235 _GLIBCXX_CONSTEXPR_FORMAT_ERROR explicit format_error(const char* __what)
236 : runtime_error(__what) { }
237 };
238
239 /// @cond undocumented
240 [[noreturn]]
241 inline void
242 __throw_format_error(const char* __what)
243 { _GLIBCXX_THROW_OR_ABORT(format_error(__what)); }
244
245#undef _GLIBCXX_CONSTEXPR_FORMAT_ERROR
246
247namespace __format
248{
249 // XXX use named functions for each constexpr error?
250
251 [[noreturn]]
252 inline void
253 __unmatched_left_brace_in_format_string()
254 { __throw_format_error("format error: unmatched '{' in format string"); }
255
256 [[noreturn]]
257 inline void
258 __unmatched_right_brace_in_format_string()
259 { __throw_format_error("format error: unmatched '}' in format string"); }
260
261 [[noreturn]]
262 inline void
263 __conflicting_indexing_in_format_string()
264 { __throw_format_error("format error: conflicting indexing style in format string"); }
265
266 [[noreturn]]
267 inline void
268 __invalid_arg_id_in_format_string()
269 { __throw_format_error("format error: invalid arg-id in format string"); }
270
271 [[noreturn]]
272 inline void
273 __failed_to_parse_format_spec()
274 { __throw_format_error("format error: failed to parse format-spec"); }
275
276 template<typename _CharT> class _Scanner;
277
278} // namespace __format
279 /// @endcond
280
281 // [format.parse.ctx], class template basic_format_parse_context
282 template<typename _CharT> class basic_format_parse_context;
283 using format_parse_context = basic_format_parse_context<char>;
284#ifdef _GLIBCXX_USE_WCHAR_T
285 using wformat_parse_context = basic_format_parse_context<wchar_t>;
286#endif
287
288 template<typename _CharT>
289 class basic_format_parse_context
290 {
291 public:
292 using char_type = _CharT;
293 using const_iterator = typename basic_string_view<_CharT>::const_iterator;
294 using iterator = const_iterator;
295
296 constexpr explicit
297 basic_format_parse_context(basic_string_view<_CharT> __fmt) noexcept
298 : _M_begin(__fmt.begin()), _M_end(__fmt.end())
299 { }
300
301 basic_format_parse_context(const basic_format_parse_context&) = delete;
302 void operator=(const basic_format_parse_context&) = delete;
303
304 constexpr const_iterator begin() const noexcept { return _M_begin; }
305 constexpr const_iterator end() const noexcept { return _M_end; }
306
307 constexpr void
308 advance_to(const_iterator __it) noexcept
309 { _M_begin = __it; }
310
311 constexpr size_t
312 next_arg_id()
313 {
314 if (_M_indexing == _Manual)
315 __format::__conflicting_indexing_in_format_string();
316 _M_indexing = _Auto;
317
318 // _GLIBCXX_RESOLVE_LIB_DEFECTS
319 // 3825. Missing compile-time argument id check in next_arg_id
320 if (std::is_constant_evaluated())
321 if (_M_next_arg_id == _M_num_args)
322 __format::__invalid_arg_id_in_format_string();
323 return _M_next_arg_id++;
324 }
325
326 constexpr void
327 check_arg_id(size_t __id)
328 {
329 if (_M_indexing == _Auto)
330 __format::__conflicting_indexing_in_format_string();
331 _M_indexing = _Manual;
332
333 if (std::is_constant_evaluated())
334 if (__id >= _M_num_args)
335 __format::__invalid_arg_id_in_format_string();
336 }
337
338#if __cpp_lib_format >= 202305L
339 template<typename... _Ts>
340 constexpr void
341 check_dynamic_spec(size_t __id) noexcept
342 {
343 static_assert(__valid_types_for_check_dynamic_spec<_Ts...>(),
344 "template arguments for check_dynamic_spec<Ts...>(id) "
345 "must be unique and must be one of the allowed types");
346 if consteval {
347 __check_dynamic_spec<_Ts...>(__id);
348 }
349 }
350
351 constexpr void
352 check_dynamic_spec_integral(size_t __id) noexcept
353 {
354 if consteval {
355 __check_dynamic_spec<int, unsigned, long long,
356 unsigned long long>(__id);
357 }
358 }
359
360 constexpr void
361 check_dynamic_spec_string(size_t __id) noexcept
362 {
363 if consteval {
364 __check_dynamic_spec<const _CharT*, basic_string_view<_CharT>>(__id);
365 }
366 }
367
368 private:
369 // True if _Tp occurs exactly once in _Ts.
370 template<typename _Tp, typename... _Ts>
371 static constexpr bool __once = (is_same_v<_Tp, _Ts> + ...) == 1;
372
373 template<typename... _Ts>
374 consteval bool
375 __valid_types_for_check_dynamic_spec()
376 {
377 // _GLIBCXX_RESOLVE_LIB_DEFECTS
378 // 4142. check_dynamic_spec should require at least one type
379 if constexpr (sizeof...(_Ts) == 0)
380 return false;
381 else
382 {
383 // The types in Ts... are unique. Each type in Ts... is one of
384 // bool, char_type, int, unsigned int, long long int,
385 // unsigned long long int, float, double, long double,
386 // const char_type*, basic_string_view<char_type>, or const void*.
387 unsigned __sum
388 = __once<bool, _Ts...>
389 + __once<char_type, _Ts...>
390 + __once<int, _Ts...>
391 + __once<unsigned int, _Ts...>
392 + __once<long long int, _Ts...>
393 + __once<unsigned long long int, _Ts...>
394 + __once<float, _Ts...>
395 + __once<double, _Ts...>
396 + __once<long double, _Ts...>
397 + __once<const char_type*, _Ts...>
398 + __once<basic_string_view<char_type>, _Ts...>
399 + __once<const void*, _Ts...>;
400 return __sum == sizeof...(_Ts);
401 }
402 }
403
404 template<typename... _Ts>
405 consteval void
406 __check_dynamic_spec(size_t __id) noexcept;
407
408 // This must not be constexpr.
409 static void __invalid_dynamic_spec(const char*);
410
411 friend __format::_Scanner<_CharT>;
412#endif
413
414 // This constructor should only be used by the implementation.
415 constexpr explicit
416 basic_format_parse_context(basic_string_view<_CharT> __fmt,
417 size_t __num_args) noexcept
418 : _M_begin(__fmt.begin()), _M_end(__fmt.end()), _M_num_args(__num_args)
419 { }
420
421 private:
422 iterator _M_begin;
423 iterator _M_end;
424 enum _Indexing { _Unknown, _Manual, _Auto };
425 _Indexing _M_indexing = _Unknown;
426 size_t _M_next_arg_id = 0;
427 size_t _M_num_args = 0;
428 };
429
430/// @cond undocumented
431 template<typename _Tp, template<typename...> class _Class>
432 constexpr bool __is_specialization_of = false;
433 template<template<typename...> class _Class, typename... _Args>
434 constexpr bool __is_specialization_of<_Class<_Args...>, _Class> = true;
435
436namespace __format
437{
438 // pre: first != last
439 template<typename _CharT>
440 constexpr pair<unsigned short, const _CharT*>
441 __parse_integer(const _CharT* __first, const _CharT* __last)
442 {
443 if (__first == __last)
444 __builtin_unreachable();
445
446 if constexpr (is_same_v<_CharT, char>)
447 {
448 const auto __start = __first;
449 unsigned short __val = 0;
450 // N.B. std::from_chars is not constexpr in C++20.
451 if (__detail::__from_chars_alnum<true>(__first, __last, __val, 10)
452 && __first != __start) [[likely]]
453 return {__val, __first};
454 }
455 else
456 {
457 constexpr int __n = 32;
458 char __buf[__n]{};
459 for (int __i = 0; __i < __n && (__first + __i) != __last; ++__i)
460 __buf[__i] = __first[__i];
461 auto [__v, __ptr] = __format::__parse_integer(__buf, __buf + __n);
462 if (__ptr) [[likely]]
463 return {__v, __first + (__ptr - __buf)};
464 }
465 return {0, nullptr};
466 }
467
468 template<typename _CharT>
469 constexpr pair<unsigned short, const _CharT*>
470 __parse_arg_id(const _CharT* __first, const _CharT* __last)
471 {
472 if (__first == __last)
473 __builtin_unreachable();
474
475 if (*__first == '0')
476 return {0, __first + 1}; // No leading zeros allowed, so '0...' == 0
477
478 if ('1' <= *__first && *__first <= '9')
479 {
480 const unsigned short __id = *__first - '0';
481 const auto __next = __first + 1;
482 // Optimize for most likely case of single digit arg-id.
483 if (__next == __last || !('0' <= *__next && *__next <= '9'))
484 return {__id, __next};
485 else
486 return __format::__parse_integer(__first, __last);
487 }
488 return {0, nullptr};
489 }
490
491 enum class _Pres_type : unsigned char {
492 _Pres_none = 0, // Default type (not valid for integer presentation types).
493 _Pres_s = 1, // For strings, bool, ranges
494 // Presentation types for integral types (including bool and charT).
495 _Pres_c = 2, _Pres_x, _Pres_X, _Pres_d, _Pres_o, _Pres_b, _Pres_B,
496 // Presentation types for floating-point types
497 _Pres_g = 1, _Pres_G, _Pres_a, _Pres_A, _Pres_e, _Pres_E, _Pres_f, _Pres_F,
498 // For pointers, the value are same as hexadecimal presentations for integers
499 _Pres_p = _Pres_x, _Pres_P = _Pres_X,
500 _Pres_max = 0xf,
501 };
502 using enum _Pres_type;
503
504 enum class _Sign : unsigned char {
505 _Sign_default,
506 _Sign_plus,
507 _Sign_minus, // XXX does this need to be distinct from _Sign_default?
508 _Sign_space,
509 };
510 using enum _Sign;
511
512 enum _WidthPrec : unsigned char {
513 _WP_none, // No width/prec specified.
514 _WP_value, // Fixed width/prec specified.
515 _WP_from_arg // Use a formatting argument for width/prec.
516 };
517 using enum _WidthPrec;
518
519 template<typename _Context>
520 size_t
521 __int_from_arg(const basic_format_arg<_Context>& __arg);
522
523 constexpr bool __is_digit(char __c)
524 { return std::__detail::__from_chars_alnum_to_val(__c) < 10; }
525
526 constexpr bool __is_xdigit(char __c)
527 { return std::__detail::__from_chars_alnum_to_val(__c) < 16; }
528
529 // Used to make _Spec a non-C++98 POD, so the tail-padding is used.
530 // https://itanium-cxx-abi.github.io/cxx-abi/abi.html#pod
531 struct _SpecBase
532 { };
533
534 template<typename _CharT>
535 struct _Spec : _SpecBase
536 {
537 unsigned short _M_width;
538 unsigned short _M_prec;
539 char32_t _M_fill = ' ';
540 _Align _M_align : 2;
541 _Sign _M_sign : 2;
542 unsigned _M_alt : 1;
543 unsigned _M_localized : 1;
544 unsigned _M_zero_fill : 1;
545 _WidthPrec _M_width_kind : 2;
546 _WidthPrec _M_prec_kind : 2;
547 unsigned _M_debug : 1;
548 _Pres_type _M_type : 4;
549 unsigned _M_reserved : 8;
550 // This class has 8 bits of tail padding, that can be used by
551 // derived classes.
552
553 using iterator = typename basic_string_view<_CharT>::iterator;
554
555 static constexpr _Align
556 _S_align(_CharT __c) noexcept
557 {
558 switch (__c)
559 {
560 case '<': return _Align_left;
561 case '>': return _Align_right;
562 case '^': return _Align_centre;
563 default: return _Align_default;
564 }
565 }
566
567 // pre: __first != __last
568 constexpr iterator
569 _M_parse_fill_and_align(iterator __first, iterator __last) noexcept
570 { return _M_parse_fill_and_align(__first, __last, "{"); }
571
572 // pre: __first != __last
573 constexpr iterator
574 _M_parse_fill_and_align(iterator __first, iterator __last, string_view __not_fill) noexcept
575 {
576 for (char __c : __not_fill)
577 if (*__first == static_cast<_CharT>(__c))
578 return __first;
579
580 using namespace __unicode;
581 if constexpr (__literal_encoding_is_unicode<_CharT>())
582 {
583 // Accept any UCS scalar value as fill character.
584 _Utf32_view<ranges::subrange<iterator>> __uv({__first, __last});
585 if (!__uv.empty())
586 {
587 auto __beg = __uv.begin();
588 char32_t __c = *__beg++;
589 if (__is_scalar_value(__c))
590 if (auto __next = __beg.base(); __next != __last)
591 if (_Align __align = _S_align(*__next); __align != _Align_default)
592 {
593 _M_fill = __c;
594 _M_align = __align;
595 return ++__next;
596 }
597 }
598 }
599 else if (__last - __first >= 2)
600 if (_Align __align = _S_align(__first[1]); __align != _Align_default)
601 {
602 _M_fill = *__first;
603 _M_align = __align;
604 return __first + 2;
605 }
606
607 if (_Align __align = _S_align(__first[0]); __align != _Align_default)
608 {
609 _M_fill = ' ';
610 _M_align = __align;
611 return __first + 1;
612 }
613 return __first;
614 }
615
616 static constexpr _Sign
617 _S_sign(_CharT __c) noexcept
618 {
619 switch (__c)
620 {
621 case '+': return _Sign_plus;
622 case '-': return _Sign_minus;
623 case ' ': return _Sign_space;
624 default: return _Sign_default;
625 }
626 }
627
628 // pre: __first != __last
629 constexpr iterator
630 _M_parse_sign(iterator __first, iterator) noexcept
631 {
632 if (_Sign __sign = _S_sign(*__first); __sign != _Sign_default)
633 {
634 _M_sign = __sign;
635 return __first + 1;
636 }
637 return __first;
638 }
639
640 // pre: *__first is valid
641 constexpr iterator
642 _M_parse_alternate_form(iterator __first, iterator) noexcept
643 {
644 if (*__first == '#')
645 {
646 _M_alt = true;
647 ++__first;
648 }
649 return __first;
650 }
651
652 // pre: __first != __last
653 constexpr iterator
654 _M_parse_zero_fill(iterator __first, iterator /* __last */) noexcept
655 {
656 if (*__first == '0')
657 {
658 _M_zero_fill = true;
659 ++__first;
660 }
661 return __first;
662 }
663
664 // pre: __first != __last
665 static constexpr iterator
666 _S_parse_width_or_precision(iterator __first, iterator __last,
667 unsigned short& __val, bool& __arg_id,
668 basic_format_parse_context<_CharT>& __pc)
669 {
670 if (__format::__is_digit(*__first))
671 {
672 auto [__v, __ptr] = __format::__parse_integer(__first, __last);
673 if (!__ptr)
674 __throw_format_error("format error: invalid width or precision "
675 "in format-spec");
676 __first = __ptr;
677 __val = __v;
678 }
679 else if (*__first == '{')
680 {
681 __arg_id = true;
682 ++__first;
683 if (__first == __last)
684 __format::__unmatched_left_brace_in_format_string();
685 if (*__first == '}')
686 __val = __pc.next_arg_id();
687 else
688 {
689 auto [__v, __ptr] = __format::__parse_arg_id(__first, __last);
690 if (__ptr == nullptr || __ptr == __last || *__ptr != '}')
691 __format::__invalid_arg_id_in_format_string();
692 __first = __ptr;
693 __pc.check_arg_id(__v);
694 __val = __v;
695 }
696#if __cpp_lib_format >= 202305L
697 __pc.check_dynamic_spec_integral(__val);
698#endif
699 ++__first; // past the '}'
700 }
701 return __first;
702 }
703
704 // pre: __first != __last
705 constexpr iterator
706 _M_parse_width(iterator __first, iterator __last,
707 basic_format_parse_context<_CharT>& __pc)
708 {
709 bool __arg_id = false;
710 if (*__first == '0')
711 __throw_format_error("format error: width must be non-zero in "
712 "format string");
713 auto __next = _S_parse_width_or_precision(__first, __last, _M_width,
714 __arg_id, __pc);
715 if (__next != __first)
716 _M_width_kind = __arg_id ? _WP_from_arg : _WP_value;
717 return __next;
718 }
719
720 // pre: __first != __last
721 constexpr iterator
722 _M_parse_precision(iterator __first, iterator __last,
723 basic_format_parse_context<_CharT>& __pc)
724 {
725 if (__first[0] != '.')
726 return __first;
727
728 iterator __next = ++__first;
729 bool __arg_id = false;
730 if (__next != __last)
731 __next = _S_parse_width_or_precision(__first, __last, _M_prec,
732 __arg_id, __pc);
733 if (__next == __first)
734 __throw_format_error("format error: missing precision after '.' in "
735 "format string");
736 _M_prec_kind = __arg_id ? _WP_from_arg : _WP_value;
737 return __next;
738 }
739
740 // pre: __first != __last
741 constexpr iterator
742 _M_parse_locale(iterator __first, iterator /* __last */) noexcept
743 {
744 if (*__first == 'L')
745 {
746 _M_localized = true;
747 ++__first;
748 }
749 return __first;
750 }
751
752 template<typename _Context>
753 size_t
754 _M_get_width(_Context& __ctx) const
755 {
756 size_t __width = 0;
757 if (_M_width_kind == _WP_value)
758 __width = _M_width;
759 else if (_M_width_kind == _WP_from_arg)
760 __width = __format::__int_from_arg(__ctx.arg(_M_width));
761 return __width;
762 }
763
764 template<typename _Context>
765 size_t
766 _M_get_precision(_Context& __ctx) const
767 {
768 size_t __prec = -1;
769 if (_M_prec_kind == _WP_value)
770 __prec = _M_prec;
771 else if (_M_prec_kind == _WP_from_arg)
772 __prec = __format::__int_from_arg(__ctx.arg(_M_prec));
773 return __prec;
774 }
775 };
776
777 template<typename _Int>
778 inline char*
779 __put_sign(_Int __i, _Sign __sign, char* __dest) noexcept
780 {
781 if (__i < 0)
782 *__dest = '-';
783 else if (__sign == _Sign_plus)
784 *__dest = '+';
785 else if (__sign == _Sign_space)
786 *__dest = ' ';
787 else
788 ++__dest;
789 return __dest;
790 }
791
792 // Write STR to OUT (and do so efficiently if OUT is a _Sink_iter).
793 template<typename _Out, typename _CharT>
794 requires output_iterator<_Out, const _CharT&>
795 inline _Out
796 __write(_Out __out, basic_string_view<_CharT> __str)
797 {
798 if constexpr (is_same_v<_Out, _Sink_iter<_CharT>>)
799 {
800 if (__str.size())
801 __out = __str;
802 }
803 else
804 for (_CharT __c : __str)
805 *__out++ = __c;
806 return __out;
807 }
808
809 // Write STR to OUT with NFILL copies of FILL_CHAR specified by ALIGN.
810 // pre: __align != _Align_default
811 template<typename _Out, typename _CharT>
812 _Out
813 __write_padded(_Out __out, basic_string_view<_CharT> __str,
814 _Align __align, size_t __nfill, char32_t __fill_char)
815 {
816 const size_t __buflen = 0x20;
817 _CharT __padding_chars[__buflen];
818 __padding_chars[0] = _CharT();
819 basic_string_view<_CharT> __padding{__padding_chars, __buflen};
820
821 auto __pad = [&__padding] (size_t __n, _Out& __o) {
822 if (__n == 0)
823 return;
824 while (__n > __padding.size())
825 {
826 __o = __format::__write(std::move(__o), __padding);
827 __n -= __padding.size();
828 }
829 if (__n != 0)
830 __o = __format::__write(std::move(__o), __padding.substr(0, __n));
831 };
832
833 size_t __l, __r, __max;
834 if (__align == _Align_centre)
835 {
836 __l = __nfill / 2;
837 __r = __l + (__nfill & 1);
838 __max = __r;
839 }
840 else if (__align == _Align_right)
841 {
842 __l = __nfill;
843 __r = 0;
844 __max = __l;
845 }
846 else
847 {
848 __l = 0;
849 __r = __nfill;
850 __max = __r;
851 }
852
853 using namespace __unicode;
854 if constexpr (__literal_encoding_is_unicode<_CharT>())
855 if (!__is_single_code_unit<_CharT>(__fill_char)) [[unlikely]]
856 {
857 // Encode fill char as multiple code units of type _CharT.
858 const char32_t __arr[1]{ __fill_char };
859 _Utf_view<_CharT, span<const char32_t, 1>> __v(__arr);
860 basic_string<_CharT> __padstr(__v.begin(), __v.end());
861 __padding = __padstr;
862 while (__l-- > 0)
863 __out = __format::__write(std::move(__out), __padding);
864 __out = __format::__write(std::move(__out), __str);
865 while (__r-- > 0)
866 __out = __format::__write(std::move(__out), __padding);
867 return __out;
868 }
869
870 if (__max < __buflen)
871 __padding.remove_suffix(__buflen - __max);
872 else
873 __max = __buflen;
874
875 char_traits<_CharT>::assign(__padding_chars, __max, __fill_char);
876 __pad(__l, __out);
877 __out = __format::__write(std::move(__out), __str);
878 __pad(__r, __out);
879
880 return __out;
881 }
882
883 // Write STR to OUT, with alignment and padding as determined by SPEC.
884 // pre: __spec._M_align != _Align_default || __align != _Align_default
885 template<typename _CharT, typename _Out>
886 _Out
887 __write_padded_as_spec(basic_string_view<type_identity_t<_CharT>> __str,
888 size_t __estimated_width,
889 basic_format_context<_Out, _CharT>& __fc,
890 const _Spec<_CharT>& __spec,
891 _Align __align = _Align_left)
892 {
893 size_t __width = __spec._M_get_width(__fc);
894
895 if (__width <= __estimated_width)
896 return __format::__write(__fc.out(), __str);
897
898 const size_t __nfill = __width - __estimated_width;
899
900 if (__spec._M_align != _Align_default)
901 __align = __spec._M_align;
902
903 return __format::__write_padded(__fc.out(), __str, __align, __nfill,
904 __spec._M_fill);
905 }
906
907 template<typename _CharT>
908 size_t
909 __truncate(basic_string_view<_CharT>& __s, size_t __prec)
910 {
911 if constexpr (__unicode::__literal_encoding_is_unicode<_CharT>())
912 {
913 if (__prec != (size_t)-1)
914 return __unicode::__truncate(__s, __prec);
915 else
916 return __unicode::__field_width(__s);
917 }
918 else
919 {
920 __s = __s.substr(0, __prec);
921 return __s.size();
922 }
923 }
924
925 enum class _Term_char : unsigned char {
926 _Term_none,
927 _Term_quote,
928 _Term_apos,
929 };
930 using enum _Term_char;
931
932 template<typename _CharT>
933 struct _Escapes
934 {
935 using _Str_view = basic_string_view<_CharT>;
936
937 static consteval
938 _Str_view _S_all()
939 { return _GLIBCXX_WIDEN("\t\\t\n\\n\r\\r\\\\\\\"\\\"'\\'\\u\\x"); }
940
941 static consteval
942 _Str_view _S_tab()
943 { return _S_all().substr(0, 3); }
944
945 static consteval
946 _Str_view _S_newline()
947 { return _S_all().substr(3, 3); }
948
949 static consteval
950 _Str_view _S_return()
951 { return _S_all().substr(6, 3); }
952
953 static consteval
954 _Str_view _S_bslash()
955 { return _S_all().substr(9, 3); }
956
957 static consteval
958 _Str_view _S_quote()
959 { return _S_all().substr(12, 3); }
960
961 static consteval
962 _Str_view _S_apos()
963 { return _S_all().substr(15, 3); }
964
965 static consteval
966 _Str_view _S_u()
967 { return _S_all().substr(18, 2); }
968
969 static consteval
970 _Str_view _S_x()
971 { return _S_all().substr(20, 2); }
972
973 static constexpr
974 _Str_view _S_term(_Term_char __term)
975 {
976 switch (__term)
977 {
978 case _Term_none:
979 return _Str_view();
980 case _Term_quote:
981 return _S_quote().substr(0, 1);
982 case _Term_apos:
983 return _S_apos().substr(0, 1);
984 }
985 __builtin_unreachable();
986 }
987 };
988
989 template<typename _CharT>
990 struct _Separators
991 {
992 using _Str_view = basic_string_view<_CharT>;
993
994 static consteval
995 _Str_view _S_all()
996 { return _GLIBCXX_WIDEN("[]{}(), : "); }
997
998 static consteval
999 _Str_view _S_squares()
1000 { return _S_all().substr(0, 2); }
1001
1002 static consteval
1003 _Str_view _S_braces()
1004 { return _S_all().substr(2, 2); }
1005
1006 static consteval
1007 _Str_view _S_parens()
1008 { return _S_all().substr(4, 2); }
1009
1010 static consteval
1011 _Str_view _S_comma()
1012 { return _S_all().substr(6, 2); }
1013
1014 static consteval
1015 _Str_view _S_colon()
1016 { return _S_all().substr(8, 2); }
1017 };
1018
1019 template<typename _CharT>
1020 constexpr bool __should_escape_ascii(_CharT __c, _Term_char __term)
1021 {
1022 using _Esc = _Escapes<_CharT>;
1023 switch (__c)
1024 {
1025 case _Esc::_S_tab()[0]:
1026 case _Esc::_S_newline()[0]:
1027 case _Esc::_S_return()[0]:
1028 case _Esc::_S_bslash()[0]:
1029 return true;
1030 case _Esc::_S_quote()[0]:
1031 return __term == _Term_quote;
1032 case _Esc::_S_apos()[0]:
1033 return __term == _Term_apos;
1034 default:
1035 return (__c >= 0 && __c < 0x20) || __c == 0x7f;
1036 };
1037 }
1038
1039 // @pre __c <= 0x10FFFF
1040 constexpr bool __should_escape_unicode(char32_t __c, bool __prev_esc)
1041 {
1042 if (__unicode::__should_escape_category(__c))
1043 return __c != U' ';
1044 if (!__prev_esc)
1045 return false;
1046 return __unicode::__grapheme_cluster_break_property(__c)
1047 == __unicode::_Gcb_property::_Gcb_Extend;
1048 }
1049
1050 using uint_least32_t = __UINT_LEAST32_TYPE__;
1051 template<typename _Out, typename _CharT>
1052 _Out
1053 __write_escape_seq(_Out __out, uint_least32_t __val,
1054 basic_string_view<_CharT> __prefix)
1055 {
1056 using _Str_view = basic_string_view<_CharT>;
1057 constexpr size_t __max = 8;
1058 char __buf[__max];
1059 const string_view __narrow(
1060 __buf,
1061 std::__to_chars_i<uint_least32_t>(__buf, __buf + __max, __val, 16).ptr);
1062
1063 __out = __format::__write(__out, __prefix);
1064 *__out = _Separators<_CharT>::_S_braces()[0];
1065 ++__out;
1066 if constexpr (is_same_v<char, _CharT>)
1067 __out = __format::__write(__out, __narrow);
1068#ifdef _GLIBCXX_USE_WCHAR_T
1069 else
1070 {
1071 _CharT __wbuf[__max];
1072 const size_t __n = __narrow.size();
1073 std::__to_wstring_numeric(__narrow.data(), __n, __wbuf);
1074 __out = __format::__write(__out, _Str_view(__wbuf, __n));
1075 }
1076#endif
1077 *__out = _Separators<_CharT>::_S_braces()[1];
1078 return ++__out;
1079 }
1080
1081 template<typename _Out, typename _CharT>
1082 _Out
1083 __write_escape_seqs(_Out __out, basic_string_view<_CharT> __units)
1084 {
1085 using _UChar = make_unsigned_t<_CharT>;
1086 for (_CharT __c : __units)
1087 __out = __format::__write_escape_seq(
1088 __out, static_cast<_UChar>(__c), _Escapes<_CharT>::_S_x());
1089 return __out;
1090 }
1091
1092 template<typename _Out, typename _CharT>
1093 _Out
1094 __write_escaped_char(_Out __out, _CharT __c)
1095 {
1096 using _UChar = make_unsigned_t<_CharT>;
1097 using _Esc = _Escapes<_CharT>;
1098 switch (__c)
1099 {
1100 case _Esc::_S_tab()[0]:
1101 return __format::__write(__out, _Esc::_S_tab().substr(1, 2));
1102 case _Esc::_S_newline()[0]:
1103 return __format::__write(__out, _Esc::_S_newline().substr(1, 2));
1104 case _Esc::_S_return()[0]:
1105 return __format::__write(__out, _Esc::_S_return().substr(1, 2));
1106 case _Esc::_S_bslash()[0]:
1107 return __format::__write(__out, _Esc::_S_bslash().substr(1, 2));
1108 case _Esc::_S_quote()[0]:
1109 return __format::__write(__out, _Esc::_S_quote().substr(1, 2));
1110 case _Esc::_S_apos()[0]:
1111 return __format::__write(__out, _Esc::_S_apos().substr(1, 2));
1112 default:
1113 return __format::__write_escape_seq(
1114 __out, static_cast<_UChar>(__c), _Esc::_S_u());
1115 }
1116 }
1117
1118 template<typename _CharT, typename _Out>
1119 _Out
1120 __write_escaped_ascii(_Out __out,
1121 basic_string_view<_CharT> __str,
1122 _Term_char __term)
1123 {
1124 using _Str_view = basic_string_view<_CharT>;
1125 auto __first = __str.begin();
1126 auto const __last = __str.end();
1127 while (__first != __last)
1128 {
1129 auto __print = __first;
1130 // assume anything outside ASCII is printable
1131 while (__print != __last
1132 && !__format::__should_escape_ascii(*__print, __term))
1133 ++__print;
1134
1135 if (__print != __first)
1136 __out = __format::__write(__out, _Str_view(__first, __print));
1137
1138 if (__print == __last)
1139 return __out;
1140
1141 __first = __print;
1142 __out = __format::__write_escaped_char(__out, *__first);
1143 ++__first;
1144 }
1145 return __out;
1146 }
1147
1148 template<typename _CharT, typename _Out>
1149 _Out
1150 __write_escaped_unicode_part(_Out __out, basic_string_view<_CharT>& __str,
1151 bool& __prev_esc, _Term_char __term)
1152 {
1153 using _Str_view = basic_string_view<_CharT>;
1154 using _Esc = _Escapes<_CharT>;
1155
1156 static constexpr char32_t __replace = U'\uFFFD';
1157 static constexpr _Str_view __replace_rep = []
1158 {
1159 // N.B. "\uFFFD" is ill-formed if encoding is not unicode.
1160 if constexpr (is_same_v<char, _CharT>)
1161 return "\xEF\xBF\xBD";
1162 else
1163 return L"\xFFFD";
1164 }();
1165
1166 __unicode::_Utf_view<char32_t, _Str_view> __v(std::move(__str));
1167 __str = {};
1168
1169 auto __first = __v.begin();
1170 auto const __last = __v.end();
1171 while (__first != __last)
1172 {
1173 bool __esc_ascii = false;
1174 bool __esc_unicode = false;
1175 bool __esc_replace = false;
1176 auto __should_escape = [&](auto const& __it)
1177 {
1178 if (*__it <= 0x7f)
1179 return __esc_ascii
1180 = __format::__should_escape_ascii(*__it.base(), __term);
1181 if (__format::__should_escape_unicode(*__it, __prev_esc))
1182 return __esc_unicode = true;
1183 if (*__it == __replace)
1184 {
1185 _Str_view __units(__it.base(), __it._M_units());
1186 return __esc_replace = (__units != __replace_rep);
1187 }
1188 return false;
1189 };
1190
1191 auto __print = __first;
1192 while (__print != __last && !__should_escape(__print))
1193 {
1194 __prev_esc = false;
1195 ++__print;
1196 }
1197
1198 if (__print != __first)
1199 __out = __format::__write(__out, _Str_view(__first.base(), __print.base()));
1200
1201 if (__print == __last)
1202 return __out;
1203
1204 __first = __print;
1205 if (__esc_ascii)
1206 __out = __format::__write_escaped_char(__out, *__first.base());
1207 else if (__esc_unicode)
1208 __out = __format::__write_escape_seq(__out, *__first, _Esc::_S_u());
1209 // __esc_replace
1210 else if (_Str_view __units(__first.base(), __first._M_units());
1211 __units.end() != __last.base())
1212 __out = __format::__write_escape_seqs(__out, __units);
1213 else
1214 {
1215 __str = __units;
1216 return __out;
1217 }
1218
1219 __prev_esc = true;
1220 ++__first;
1221 }
1222
1223 return __out;
1224 }
1225
1226 template<typename _CharT, typename _Out>
1227 _Out
1228 __write_escaped_unicode(_Out __out, basic_string_view<_CharT> __str,
1229 _Term_char __term)
1230 {
1231 bool __prev_escape = true;
1232 __out = __format::__write_escaped_unicode_part(__out, __str,
1233 __prev_escape, __term);
1234 __out = __format::__write_escape_seqs(__out, __str);
1235 return __out;
1236 }
1237
1238 template<typename _CharT, typename _Out>
1239 _Out
1240 __write_escaped(_Out __out, basic_string_view<_CharT> __str, _Term_char __term)
1241 {
1242 __out = __format::__write(__out, _Escapes<_CharT>::_S_term(__term));
1243
1244 if constexpr (__unicode::__literal_encoding_is_unicode<_CharT>())
1245 __out = __format::__write_escaped_unicode(__out, __str, __term);
1246 else if constexpr (is_same_v<char, _CharT>
1247 && __unicode::__literal_encoding_is_extended_ascii())
1248 __out = __format::__write_escaped_ascii(__out, __str, __term);
1249 else
1250 // TODO Handle non-ascii extended encoding
1251 __out = __format::__write_escaped_ascii(__out, __str, __term);
1252
1253 return __format::__write(__out, _Escapes<_CharT>::_S_term(__term));
1254 }
1255
1256 // A lightweight optional<locale>.
1257 struct _Optional_locale
1258 {
1259 [[__gnu__::__always_inline__]]
1260 _Optional_locale() : _M_dummy(), _M_hasval(false) { }
1261
1262 _Optional_locale(const locale& __loc) noexcept
1263 : _M_loc(__loc), _M_hasval(true)
1264 { }
1265
1266 _Optional_locale(const _Optional_locale& __l) noexcept
1267 : _M_dummy(), _M_hasval(__l._M_hasval)
1268 {
1269 if (_M_hasval)
1270 std::construct_at(&_M_loc, __l._M_loc);
1271 }
1272
1273 _Optional_locale&
1274 operator=(const _Optional_locale& __l) noexcept
1275 {
1276 if (_M_hasval)
1277 {
1278 if (__l._M_hasval)
1279 _M_loc = __l._M_loc;
1280 else
1281 {
1282 _M_loc.~locale();
1283 _M_hasval = false;
1284 }
1285 }
1286 else if (__l._M_hasval)
1287 {
1288 std::construct_at(&_M_loc, __l._M_loc);
1289 _M_hasval = true;
1290 }
1291 return *this;
1292 }
1293
1294 ~_Optional_locale() { if (_M_hasval) _M_loc.~locale(); }
1295
1296 _Optional_locale&
1297 operator=(locale&& __loc) noexcept
1298 {
1299 if (_M_hasval)
1300 _M_loc = std::move(__loc);
1301 else
1302 {
1303 std::construct_at(&_M_loc, std::move(__loc));
1304 _M_hasval = true;
1305 }
1306 return *this;
1307 }
1308
1309 const locale&
1310 value() noexcept
1311 {
1312 if (!_M_hasval)
1313 {
1314 std::construct_at(&_M_loc);
1315 _M_hasval = true;
1316 }
1317 return _M_loc;
1318 }
1319
1320 bool has_value() const noexcept { return _M_hasval; }
1321
1322 union {
1323 char _M_dummy = '\0';
1324 std::locale _M_loc;
1325 };
1326 bool _M_hasval = false;
1327 };
1328
1329 template<__char _CharT>
1330 struct __formatter_str
1331 {
1332 __formatter_str() = default;
1333
1334 constexpr
1335 __formatter_str(_Spec<_CharT> __spec) noexcept
1336 : _M_spec(__spec)
1337 { }
1338
1339 constexpr typename basic_format_parse_context<_CharT>::iterator
1340 parse(basic_format_parse_context<_CharT>& __pc)
1341 {
1342 auto __first = __pc.begin();
1343 const auto __last = __pc.end();
1344 _Spec<_CharT> __spec{};
1345
1346 auto __finalize = [this, &__spec] {
1347 _M_spec = __spec;
1348 };
1349
1350 auto __finished = [&] {
1351 if (__first == __last || *__first == '}')
1352 {
1353 __finalize();
1354 return true;
1355 }
1356 return false;
1357 };
1358
1359 if (__finished())
1360 return __first;
1361
1362 __first = __spec._M_parse_fill_and_align(__first, __last);
1363 if (__finished())
1364 return __first;
1365
1366 __first = __spec._M_parse_width(__first, __last, __pc);
1367 if (__finished())
1368 return __first;
1369
1370 __first = __spec._M_parse_precision(__first, __last, __pc);
1371 if (__finished())
1372 return __first;
1373
1374 if (*__first == 's')
1375 {
1376 __spec._M_type = _Pres_s;
1377 ++__first;
1378 }
1379#if __glibcxx_format_ranges // C++ >= 23 && HOSTED
1380 else if (*__first == '?')
1381 {
1382 __spec._M_debug = true;
1383 ++__first;
1384 }
1385#endif
1386
1387 if (__finished())
1388 return __first;
1389
1390 __format::__failed_to_parse_format_spec();
1391 }
1392
1393 template<typename _Out>
1394 _Out
1395 format(basic_string_view<_CharT> __s,
1396 basic_format_context<_Out, _CharT>& __fc) const
1397 {
1398 if (_M_spec._M_debug)
1399 return _M_format_escaped(__s, __fc);
1400
1401 if (_M_spec._M_width_kind == _WP_none
1402 && _M_spec._M_prec_kind == _WP_none)
1403 return __format::__write(__fc.out(), __s);
1404
1405 const size_t __maxwidth = _M_spec._M_get_precision(__fc);
1406 const size_t __width = __format::__truncate(__s, __maxwidth);
1407 return __format::__write_padded_as_spec(__s, __width, __fc, _M_spec);
1408 }
1409
1410 template<typename _Out>
1411 _Out
1412 _M_format_escaped(basic_string_view<_CharT> __s,
1413 basic_format_context<_Out, _CharT>& __fc) const
1414 {
1415 const size_t __padwidth = _M_spec._M_get_width(__fc);
1416 if (__padwidth == 0 && _M_spec._M_prec_kind == _WP_none)
1417 return __format::__write_escaped(__fc.out(), __s, _Term_quote);
1418
1419 const size_t __maxwidth = _M_spec._M_get_precision(__fc);
1420 const size_t __width = __truncate(__s, __maxwidth);
1421 // N.B. Escaping only increases width
1422 if (__padwidth <= __width && _M_spec._M_prec_kind == _WP_none)
1423 return __format::__write_escaped(__fc.out(), __s, _Term_quote);
1424
1425 // N.B. [tab:format.type.string] defines '?' as
1426 // Copies the escaped string ([format.string.escaped]) to the output,
1427 // so precision seem to appy to escaped string.
1428 _Padding_sink<_Out, _CharT> __sink(__fc.out(), __padwidth, __maxwidth);
1429 __format::__write_escaped(__sink.out(), __s, _Term_quote);
1430 return __sink._M_finish(_M_spec._M_align, _M_spec._M_fill);
1431 }
1432
1433#if __glibcxx_format_ranges // C++ >= 23 && HOSTED
1434 template<ranges::input_range _Rg, typename _Out>
1435 requires same_as<remove_cvref_t<ranges::range_reference_t<_Rg>>, _CharT>
1436 _Out
1437 _M_format_range(_Rg&& __rg, basic_format_context<_Out, _CharT>& __fc) const
1438 {
1439 using _Range = remove_reference_t<_Rg>;
1440 using _String_view = basic_string_view<_CharT>;
1441 if constexpr (!is_lvalue_reference_v<_Rg>)
1442 return _M_format_range<_Range&>(__rg, __fc);
1443 else if constexpr (!is_const_v<_Range>
1444 && __simply_formattable_range<_Range, _CharT>)
1445 return _M_format_range<const _Range&>(__rg, __fc);
1446 else if constexpr (ranges::contiguous_range<_Rg>)
1447 {
1448 _String_view __str(ranges::data(__rg),
1449 size_t(ranges::distance(__rg)));
1450 return format(__str, __fc);
1451 }
1452 else
1453 {
1454 auto __handle_debug = [this, &__rg]<typename _NOut>(_NOut __nout)
1455 {
1456 if (!_M_spec._M_debug)
1457 return ranges::copy(__rg, std::move(__nout)).out;
1458
1459 _Escaping_sink<_NOut, _CharT>
1460 __sink(std::move(__nout), _Term_quote);
1461 ranges::copy(__rg, __sink.out());
1462 return __sink._M_finish();
1463 };
1464
1465 const size_t __padwidth = _M_spec._M_get_width(__fc);
1466 if (__padwidth == 0 && _M_spec._M_prec_kind == _WP_none)
1467 return __handle_debug(__fc.out());
1468
1469 _Padding_sink<_Out, _CharT>
1470 __sink(__fc.out(), __padwidth, _M_spec._M_get_precision(__fc));
1471 __handle_debug(__sink.out());
1472 return __sink._M_finish(_M_spec._M_align, _M_spec._M_fill);
1473 }
1474 }
1475
1476 constexpr void
1477 set_debug_format() noexcept
1478 { _M_spec._M_debug = true; }
1479#endif
1480
1481 private:
1482 _Spec<_CharT> _M_spec{};
1483 };
1484
1485 template<__char _CharT>
1486 struct __formatter_int
1487 {
1488 // If no presentation type is specified, meaning of "none" depends
1489 // whether we are formatting an integer or a char or a bool.
1490 static constexpr _Pres_type _AsInteger = _Pres_d;
1491 static constexpr _Pres_type _AsBool = _Pres_s;
1492 static constexpr _Pres_type _AsChar = _Pres_c;
1493
1494 __formatter_int() = default;
1495
1496 constexpr
1497 __formatter_int(_Spec<_CharT> __spec) noexcept
1498 : _M_spec(__spec)
1499 {
1500 if (_M_spec._M_type == _Pres_none)
1501 _M_spec._M_type = _Pres_d;
1502 }
1503
1504 constexpr typename basic_format_parse_context<_CharT>::iterator
1505 _M_do_parse(basic_format_parse_context<_CharT>& __pc, _Pres_type __type)
1506 {
1507 _Spec<_CharT> __spec{};
1508 __spec._M_type = __type;
1509
1510 const auto __last = __pc.end();
1511 auto __first = __pc.begin();
1512
1513 auto __finalize = [this, &__spec] {
1514 _M_spec = __spec;
1515 };
1516
1517 auto __finished = [&] {
1518 if (__first == __last || *__first == '}')
1519 {
1520 __finalize();
1521 return true;
1522 }
1523 return false;
1524 };
1525
1526 if (__finished())
1527 return __first;
1528
1529 __first = __spec._M_parse_fill_and_align(__first, __last);
1530 if (__finished())
1531 return __first;
1532
1533 __first = __spec._M_parse_sign(__first, __last);
1534 if (__finished())
1535 return __first;
1536
1537 __first = __spec._M_parse_alternate_form(__first, __last);
1538 if (__finished())
1539 return __first;
1540
1541 __first = __spec._M_parse_zero_fill(__first, __last);
1542 if (__finished())
1543 return __first;
1544
1545 __first = __spec._M_parse_width(__first, __last, __pc);
1546 if (__finished())
1547 return __first;
1548
1549 __first = __spec._M_parse_locale(__first, __last);
1550 if (__finished())
1551 return __first;
1552
1553 switch (*__first)
1554 {
1555 case 'b':
1556 __spec._M_type = _Pres_b;
1557 ++__first;
1558 break;
1559 case 'B':
1560 __spec._M_type = _Pres_B;
1561 ++__first;
1562 break;
1563 case 'c':
1564 // _GLIBCXX_RESOLVE_LIB_DEFECTS
1565 // 3586. format should not print bool with 'c'
1566 if (__type != _AsBool)
1567 {
1568 __spec._M_type = _Pres_c;
1569 ++__first;
1570 }
1571 break;
1572 case 'd':
1573 __spec._M_type = _Pres_d;
1574 ++__first;
1575 break;
1576 case 'o':
1577 __spec._M_type = _Pres_o;
1578 ++__first;
1579 break;
1580 case 'x':
1581 __spec._M_type = _Pres_x;
1582 ++__first;
1583 break;
1584 case 'X':
1585 __spec._M_type = _Pres_X;
1586 ++__first;
1587 break;
1588 case 's':
1589 if (__type == _AsBool)
1590 {
1591 __spec._M_type = _Pres_s; // same meaning as "none" for bool
1592 ++__first;
1593 }
1594 break;
1595#if __glibcxx_format_ranges // C++ >= 23 && HOSTED
1596 case '?':
1597 if (__type == _AsChar)
1598 {
1599 __spec._M_debug = true;
1600 ++__first;
1601 }
1602#endif
1603 break;
1604 }
1605
1606 if (__finished())
1607 return __first;
1608
1609 __format::__failed_to_parse_format_spec();
1610 }
1611
1612 template<typename _Tp>
1613 constexpr typename basic_format_parse_context<_CharT>::iterator
1614 _M_parse(basic_format_parse_context<_CharT>& __pc)
1615 {
1616 if constexpr (is_same_v<_Tp, bool>)
1617 {
1618 auto __end = _M_do_parse(__pc, _AsBool);
1619 if (_M_spec._M_type == _Pres_s)
1620 if (_M_spec._M_sign != _Sign_default || _M_spec._M_alt
1621 || _M_spec._M_zero_fill)
1622 __throw_format_error("format error: format-spec contains "
1623 "invalid formatting options for "
1624 "'bool'");
1625 return __end;
1626 }
1627 else if constexpr (__char<_Tp>)
1628 {
1629 auto __end = _M_do_parse(__pc, _AsChar);
1630 if (_M_spec._M_type == _Pres_c)
1631 if (_M_spec._M_sign != _Sign_default || _M_spec._M_alt
1632 || _M_spec._M_zero_fill
1633 /* XXX should be invalid? || _M_spec._M_localized */)
1634 __throw_format_error("format error: format-spec contains "
1635 "invalid formatting options for "
1636 "'charT'");
1637 return __end;
1638 }
1639 else
1640 return _M_do_parse(__pc, _AsInteger);
1641 }
1642
1643 template<typename _Int, typename _Out>
1644 typename basic_format_context<_Out, _CharT>::iterator
1645 format(_Int __i, basic_format_context<_Out, _CharT>& __fc) const
1646 {
1647 if (_M_spec._M_type == _Pres_c)
1648 return _M_format_character(_S_to_character(__i), __fc);
1649
1650 char __buf[sizeof(_Int) * __CHAR_BIT__ + 3];
1651 to_chars_result __res{};
1652
1653 string_view __base_prefix;
1654 make_unsigned_t<_Int> __u;
1655 if (__i < 0)
1656 __u = -static_cast<make_unsigned_t<_Int>>(__i);
1657 else
1658 __u = __i;
1659
1660 char* __start = __buf + 3;
1661 char* const __end = __buf + sizeof(__buf);
1662 char* const __start_digits = __start;
1663
1664 switch (_M_spec._M_type)
1665 {
1666 case _Pres_b:
1667 case _Pres_B:
1668 __base_prefix = _M_spec._M_type == _Pres_b ? "0b" : "0B";
1669 __res = to_chars(__start, __end, __u, 2);
1670 break;
1671#if 0
1672 case _Pres_c:
1673 return _M_format_character(_S_to_character(__i), __fc);
1674#endif
1675 case _Pres_none:
1676 // Should not reach here with _Pres_none for bool or charT, so:
1677 [[fallthrough]];
1678 case _Pres_d:
1679 __res = to_chars(__start, __end, __u, 10);
1680 break;
1681 case _Pres_o:
1682 if (__i != 0)
1683 __base_prefix = "0";
1684 __res = to_chars(__start, __end, __u, 8);
1685 break;
1686 case _Pres_x:
1687 case _Pres_X:
1688 __base_prefix = _M_spec._M_type == _Pres_x ? "0x" : "0X";
1689 __res = to_chars(__start, __end, __u, 16);
1690 if (_M_spec._M_type == _Pres_X)
1691 for (auto __p = __start; __p != __res.ptr; ++__p)
1692#if __has_builtin(__builtin_toupper)
1693 *__p = __builtin_toupper(*__p);
1694#else
1695 *__p = std::toupper(*__p);
1696#endif
1697 break;
1698 default:
1699 __builtin_unreachable();
1700 }
1701
1702 if (_M_spec._M_alt && __base_prefix.size())
1703 {
1704 __start -= __base_prefix.size();
1705 __builtin_memcpy(__start, __base_prefix.data(),
1706 __base_prefix.size());
1707 }
1708 __start = __format::__put_sign(__i, _M_spec._M_sign, __start - 1);
1709
1710 return _M_format_int(string_view(__start, __res.ptr - __start),
1711 __start_digits - __start, __fc);
1712 }
1713
1714 template<typename _Out>
1715 typename basic_format_context<_Out, _CharT>::iterator
1716 format(bool __i, basic_format_context<_Out, _CharT>& __fc) const
1717 {
1718 if (_M_spec._M_type == _Pres_c)
1719 return _M_format_character(static_cast<unsigned char>(__i), __fc);
1720 if (_M_spec._M_type != _Pres_s)
1721 return format(static_cast<unsigned char>(__i), __fc);
1722
1723 basic_string<_CharT> __s;
1724 size_t __est_width;
1725 if (_M_spec._M_localized) [[unlikely]]
1726 {
1727 auto& __np = std::use_facet<numpunct<_CharT>>(__fc.locale());
1728 __s = __i ? __np.truename() : __np.falsename();
1729 __est_width = __s.size(); // TODO Unicode-aware estimate
1730 }
1731 else
1732 {
1733 if constexpr (is_same_v<char, _CharT>)
1734 __s = __i ? "true" : "false";
1735 else
1736 __s = __i ? L"true" : L"false";
1737 __est_width = __s.size();
1738 }
1739
1740 return __format::__write_padded_as_spec(__s, __est_width, __fc,
1741 _M_spec);
1742 }
1743
1744 template<typename _Out>
1745 typename basic_format_context<_Out, _CharT>::iterator
1746 _M_format_character(_CharT __c,
1747 basic_format_context<_Out, _CharT>& __fc) const
1748 {
1749 basic_string_view<_CharT> __in(&__c, 1u);
1750 size_t __width = 1u;
1751 // N.B. single byte cannot encode character of width greater than 1
1752 if constexpr (sizeof(_CharT) > 1u &&
1753 __unicode::__literal_encoding_is_unicode<_CharT>())
1754 __width = __unicode::__field_width(__c);
1755
1756 if (!_M_spec._M_debug)
1757 return __format::__write_padded_as_spec(__in, __width,
1758 __fc, _M_spec);
1759
1760 __width += 2;
1761 if (_M_spec._M_get_width(__fc) <= __width)
1762 return __format::__write_escaped(__fc.out(), __in, _Term_apos);
1763
1764 _CharT __buf[12];
1765 _Fixedbuf_sink<_CharT> __sink(__buf);
1766 __format::__write_escaped(__sink.out(), __in, _Term_apos);
1767
1768 __in = __sink.view();
1769 if (__in[1] == _Escapes<_CharT>::_S_bslash()[0]) // escape sequence
1770 __width = __in.size();
1771 return __format::__write_padded_as_spec(__in, __width,
1772 __fc, _M_spec);
1773 }
1774
1775 template<typename _Int>
1776 static _CharT
1777 _S_to_character(_Int __i)
1778 {
1779 using _Traits = __gnu_cxx::__int_traits<_CharT>;
1780 if constexpr (is_signed_v<_Int> == is_signed_v<_CharT>)
1781 {
1782 if (_Traits::__min <= __i && __i <= _Traits::__max)
1783 return static_cast<_CharT>(__i);
1784 }
1785 else if constexpr (is_signed_v<_Int>)
1786 {
1787 if (__i >= 0 && make_unsigned_t<_Int>(__i) <= _Traits::__max)
1788 return static_cast<_CharT>(__i);
1789 }
1790 else if (__i <= make_unsigned_t<_CharT>(_Traits::__max))
1791 return static_cast<_CharT>(__i);
1792 __throw_format_error("format error: integer not representable as "
1793 "character");
1794 }
1795
1796 template<typename _Out>
1797 typename basic_format_context<_Out, _CharT>::iterator
1798 _M_format_int(string_view __narrow_str, size_t __prefix_len,
1799 basic_format_context<_Out, _CharT>& __fc) const
1800 {
1801 size_t __width = _M_spec._M_get_width(__fc);
1802
1803 basic_string_view<_CharT> __str;
1804 if constexpr (is_same_v<char, _CharT>)
1805 __str = __narrow_str;
1806#ifdef _GLIBCXX_USE_WCHAR_T
1807 else
1808 {
1809 size_t __n = __narrow_str.size();
1810 auto __p = (_CharT*)__builtin_alloca(__n * sizeof(_CharT));
1811 std::__to_wstring_numeric(__narrow_str.data(), __n, __p);
1812 __str = {__p, __n};
1813 }
1814#endif
1815
1816 if (_M_spec._M_localized)
1817 {
1818 const auto& __l = __fc.locale();
1819 if (__l.name() != "C")
1820 {
1821 auto& __np = use_facet<numpunct<_CharT>>(__l);
1822 string __grp = __np.grouping();
1823 if (!__grp.empty())
1824 {
1825 size_t __n = __str.size() - __prefix_len;
1826 auto __p = (_CharT*)__builtin_alloca(2 * __n
1827 * sizeof(_CharT)
1828 + __prefix_len);
1829 auto __s = __str.data();
1830 char_traits<_CharT>::copy(__p, __s, __prefix_len);
1831 __s += __prefix_len;
1832 auto __end = std::__add_grouping(__p + __prefix_len,
1833 __np.thousands_sep(),
1834 __grp.data(),
1835 __grp.size(),
1836 __s, __s + __n);
1837 __str = {__p, size_t(__end - __p)};
1838 }
1839 }
1840 }
1841
1842 if (__width <= __str.size())
1843 return __format::__write(__fc.out(), __str);
1844
1845 char32_t __fill_char = _M_spec._M_fill;
1846 _Align __align = _M_spec._M_align;
1847
1848 size_t __nfill = __width - __str.size();
1849 auto __out = __fc.out();
1850 if (__align == _Align_default)
1851 {
1852 __align = _Align_right;
1853 if (_M_spec._M_zero_fill)
1854 {
1855 __fill_char = _CharT('0');
1856 // Write sign and base prefix before zero filling.
1857 if (__prefix_len != 0)
1858 {
1859 __out = __format::__write(std::move(__out),
1860 __str.substr(0, __prefix_len));
1861 __str.remove_prefix(__prefix_len);
1862 }
1863 }
1864 else
1865 __fill_char = _CharT(' ');
1866 }
1867 return __format::__write_padded(std::move(__out), __str,
1868 __align, __nfill, __fill_char);
1869 }
1870
1871 _Spec<_CharT> _M_spec{};
1872 };
1873
1874#ifdef __BFLT16_DIG__
1875 using __bflt16_t = decltype(0.0bf16);
1876#endif
1877
1878 // Decide how 128-bit floating-point types should be formatted (or not).
1879 // When supported, the typedef __format::__flt128_t is the type that format
1880 // arguments should be converted to before passing them to __formatter_fp.
1881 // Define the macro _GLIBCXX_FORMAT_F128 to say they're supported.
1882 // The __float128, _Float128 will be formatted by converting them to:
1883 // __ieee128 (same as __float128) when _GLIBCXX_FORMAT_F128=1,
1884 // long double when _GLIBCXX_FORMAT_F128=2,
1885 // _Float128 when _GLIBCXX_FORMAT_F128=3.
1886#undef _GLIBCXX_FORMAT_F128
1887
1888#ifdef _GLIBCXX_LONG_DOUBLE_ALT128_COMPAT
1889
1890 // Format 128-bit floating-point types using __ieee128.
1891 using __flt128_t = __ieee128;
1892# define _GLIBCXX_FORMAT_F128 1
1893
1894#ifdef __LONG_DOUBLE_IEEE128__
1895 // These overloads exist in the library, but are not declared.
1896 // Make them available as std::__format::to_chars.
1897 to_chars_result
1898 to_chars(char*, char*, __ibm128) noexcept
1899 __asm("_ZSt8to_charsPcS_e");
1900
1901 to_chars_result
1902 to_chars(char*, char*, __ibm128, chars_format) noexcept
1903 __asm("_ZSt8to_charsPcS_eSt12chars_format");
1904
1905 to_chars_result
1906 to_chars(char*, char*, __ibm128, chars_format, int) noexcept
1907 __asm("_ZSt8to_charsPcS_eSt12chars_formati");
1908#elif __cplusplus == 202002L
1909 to_chars_result
1910 to_chars(char*, char*, __ieee128) noexcept
1911 __asm("_ZSt8to_charsPcS_u9__ieee128");
1912
1913 to_chars_result
1914 to_chars(char*, char*, __ieee128, chars_format) noexcept
1915 __asm("_ZSt8to_charsPcS_u9__ieee128St12chars_format");
1916
1917 to_chars_result
1918 to_chars(char*, char*, __ieee128, chars_format, int) noexcept
1919 __asm("_ZSt8to_charsPcS_u9__ieee128St12chars_formati");
1920#endif
1921
1922#elif defined _GLIBCXX_LDOUBLE_IS_IEEE_BINARY128
1923
1924 // Format 128-bit floating-point types using long double.
1925 using __flt128_t = long double;
1926# define _GLIBCXX_FORMAT_F128 2
1927
1928#elif __FLT128_DIG__ && defined(_GLIBCXX_HAVE_FLOAT128_MATH)
1929
1930 // Format 128-bit floating-point types using _Float128.
1931 using __flt128_t = _Float128;
1932# define _GLIBCXX_FORMAT_F128 3
1933
1934# if __cplusplus == 202002L
1935 // These overloads exist in the library, but are not declared for C++20.
1936 // Make them available as std::__format::to_chars.
1937 to_chars_result
1938 to_chars(char*, char*, _Float128) noexcept
1939# if _GLIBCXX_INLINE_VERSION
1940 __asm("_ZNSt3__88to_charsEPcS0_DF128_");
1941# else
1942 __asm("_ZSt8to_charsPcS_DF128_");
1943# endif
1944
1945 to_chars_result
1946 to_chars(char*, char*, _Float128, chars_format) noexcept
1947# if _GLIBCXX_INLINE_VERSION
1948 __asm("_ZNSt3__88to_charsEPcS0_DF128_NS_12chars_formatE");
1949# else
1950 __asm("_ZSt8to_charsPcS_DF128_St12chars_format");
1951# endif
1952
1953 to_chars_result
1954 to_chars(char*, char*, _Float128, chars_format, int) noexcept
1955# if _GLIBCXX_INLINE_VERSION
1956 __asm("_ZNSt3__88to_charsEPcS0_DF128_NS_12chars_formatEi");
1957# else
1958 __asm("_ZSt8to_charsPcS_DF128_St12chars_formati");
1959# endif
1960# endif
1961#endif
1962
1963 using std::to_chars;
1964
1965 // We can format a floating-point type iff it is usable with to_chars.
1966 template<typename _Tp>
1967 concept __formattable_float
1968 = is_same_v<remove_cv_t<_Tp>, _Tp> && requires (_Tp __t, char* __p)
1969 { __format::to_chars(__p, __p, __t, chars_format::scientific, 6); };
1970
1971 template<__char _CharT>
1972 struct __formatter_fp
1973 {
1974 constexpr typename basic_format_parse_context<_CharT>::iterator
1975 parse(basic_format_parse_context<_CharT>& __pc)
1976 {
1977 _Spec<_CharT> __spec{};
1978 const auto __last = __pc.end();
1979 auto __first = __pc.begin();
1980
1981 auto __finalize = [this, &__spec] {
1982 _M_spec = __spec;
1983 };
1984
1985 auto __finished = [&] {
1986 if (__first == __last || *__first == '}')
1987 {
1988 __finalize();
1989 return true;
1990 }
1991 return false;
1992 };
1993
1994 if (__finished())
1995 return __first;
1996
1997 __first = __spec._M_parse_fill_and_align(__first, __last);
1998 if (__finished())
1999 return __first;
2000
2001 __first = __spec._M_parse_sign(__first, __last);
2002 if (__finished())
2003 return __first;
2004
2005 __first = __spec._M_parse_alternate_form(__first, __last);
2006 if (__finished())
2007 return __first;
2008
2009 __first = __spec._M_parse_zero_fill(__first, __last);
2010 if (__finished())
2011 return __first;
2012
2013 if (__first[0] != '.')
2014 {
2015 __first = __spec._M_parse_width(__first, __last, __pc);
2016 if (__finished())
2017 return __first;
2018 }
2019
2020 __first = __spec._M_parse_precision(__first, __last, __pc);
2021 if (__finished())
2022 return __first;
2023
2024 __first = __spec._M_parse_locale(__first, __last);
2025 if (__finished())
2026 return __first;
2027
2028 switch (*__first)
2029 {
2030 case 'a':
2031 __spec._M_type = _Pres_a;
2032 ++__first;
2033 break;
2034 case 'A':
2035 __spec._M_type = _Pres_A;
2036 ++__first;
2037 break;
2038 case 'e':
2039 __spec._M_type = _Pres_e;
2040 ++__first;
2041 break;
2042 case 'E':
2043 __spec._M_type = _Pres_E;
2044 ++__first;
2045 break;
2046 case 'f':
2047 __spec._M_type = _Pres_f;
2048 ++__first;
2049 break;
2050 case 'F':
2051 __spec._M_type = _Pres_F;
2052 ++__first;
2053 break;
2054 case 'g':
2055 __spec._M_type = _Pres_g;
2056 ++__first;
2057 break;
2058 case 'G':
2059 __spec._M_type = _Pres_G;
2060 ++__first;
2061 break;
2062 }
2063
2064 if (__finished())
2065 return __first;
2066
2067 __format::__failed_to_parse_format_spec();
2068 }
2069
2070 template<typename _Fp, typename _Out>
2071 typename basic_format_context<_Out, _CharT>::iterator
2072 format(_Fp __v, basic_format_context<_Out, _CharT>& __fc) const
2073 {
2074 std::string __dynbuf;
2075 char __buf[128];
2076 to_chars_result __res{};
2077
2078 size_t __prec = 6;
2079 bool __use_prec = _M_spec._M_prec_kind != _WP_none;
2080 if (__use_prec)
2081 __prec = _M_spec._M_get_precision(__fc);
2082
2083 char* __start = __buf + 1; // reserve space for sign
2084 char* __end = __buf + sizeof(__buf);
2085
2086 chars_format __fmt{};
2087 bool __upper = false;
2088 bool __trailing_zeros = false;
2089 char __expc = 'e';
2090
2091 switch (_M_spec._M_type)
2092 {
2093 case _Pres_A:
2094 __upper = true;
2095 __expc = 'P';
2096 [[fallthrough]];
2097 case _Pres_a:
2098 if (_M_spec._M_type != _Pres_A)
2099 __expc = 'p';
2100 __fmt = chars_format::hex;
2101 break;
2102 case _Pres_E:
2103 __upper = true;
2104 __expc = 'E';
2105 [[fallthrough]];
2106 case _Pres_e:
2107 __use_prec = true;
2108 __fmt = chars_format::scientific;
2109 break;
2110 case _Pres_F:
2111 __upper = true;
2112 [[fallthrough]];
2113 case _Pres_f:
2114 __use_prec = true;
2115 __fmt = chars_format::fixed;
2116 break;
2117 case _Pres_G:
2118 __upper = true;
2119 __expc = 'E';
2120 [[fallthrough]];
2121 case _Pres_g:
2122 __trailing_zeros = true;
2123 __use_prec = true;
2124 __fmt = chars_format::general;
2125 break;
2126 case _Pres_none:
2127 if (__use_prec)
2128 __fmt = chars_format::general;
2129 break;
2130 default:
2131 __builtin_unreachable();
2132 }
2133
2134 // Write value into buffer using std::to_chars.
2135 auto __to_chars = [&](char* __b, char* __e) {
2136 if (__use_prec)
2137 return __format::to_chars(__b, __e, __v, __fmt, __prec);
2138 else if (__fmt != chars_format{})
2139 return __format::to_chars(__b, __e, __v, __fmt);
2140 else
2141 return __format::to_chars(__b, __e, __v);
2142 };
2143
2144 // First try using stack buffer.
2145 __res = __to_chars(__start, __end);
2146
2147 if (__builtin_expect(__res.ec == errc::value_too_large, 0))
2148 {
2149 // If the buffer is too small it's probably because of a large
2150 // precision, or a very large value in fixed format.
2151 size_t __guess = 8 + __prec;
2152 if (__fmt == chars_format::fixed) // +ddd.prec
2153 {
2154 if constexpr (is_same_v<_Fp, float> || is_same_v<_Fp, double>
2155 || is_same_v<_Fp, long double>)
2156 {
2157 // The number of digits to the left of the decimal point
2158 // is floor(log10(max(abs(__v),1)))+1
2159 int __exp{};
2160 if constexpr (is_same_v<_Fp, float>)
2161 __builtin_frexpf(__v, &__exp);
2162 else if constexpr (is_same_v<_Fp, double>)
2163 __builtin_frexp(__v, &__exp);
2164 else if constexpr (is_same_v<_Fp, long double>)
2165 __builtin_frexpl(__v, &__exp);
2166 if (__exp > 0)
2167 __guess += 1U + __exp * 4004U / 13301U; // log10(2) approx.
2168 }
2169 else
2170 __guess += numeric_limits<_Fp>::max_exponent10;
2171 }
2172 if (__guess <= sizeof(__buf)) [[unlikely]]
2173 __guess = sizeof(__buf) * 2;
2174 __dynbuf.reserve(__guess);
2175
2176 do
2177 {
2178 // Mangling of this lambda, and thus resize_and_overwrite
2179 // instantiated with it, was fixed in ABI 18 (G++ 13). Since
2180 // <format> was new in G++ 13, and is experimental, that
2181 // isn't a problem.
2182 auto __overwrite = [&__to_chars, &__res] (char* __p, size_t __n)
2183 {
2184 __res = __to_chars(__p + 1, __p + __n - 1);
2185 return __res.ec == errc{} ? __res.ptr - __p : 0;
2186 };
2187
2188 __dynbuf.__resize_and_overwrite(__dynbuf.capacity() * 2,
2189 __overwrite);
2190 __start = __dynbuf.data() + 1; // reserve space for sign
2191 __end = __dynbuf.data() + __dynbuf.size();
2192 }
2193 while (__builtin_expect(__res.ec == errc::value_too_large, 0));
2194 }
2195
2196 // Use uppercase for 'A', 'E', and 'G' formats.
2197 if (__upper)
2198 {
2199 for (char* __p = __start; __p != __res.ptr; ++__p)
2200 *__p = std::toupper(*__p);
2201 }
2202
2203 bool __have_sign = true;
2204 // Add sign for non-negative values.
2205 if (!__builtin_signbit(__v))
2206 {
2207 if (_M_spec._M_sign == _Sign_plus)
2208 *--__start = '+';
2209 else if (_M_spec._M_sign == _Sign_space)
2210 *--__start = ' ';
2211 else
2212 __have_sign = false;
2213 }
2214
2215 string_view __narrow_str(__start, __res.ptr - __start);
2216
2217 // Use alternate form. Ensure decimal point is always present,
2218 // and add trailing zeros (up to precision) for g and G forms.
2219 if (_M_spec._M_alt && __builtin_isfinite(__v))
2220 {
2221 string_view __s = __narrow_str;
2222 size_t __sigfigs; // Number of significant figures.
2223 size_t __z = 0; // Number of trailing zeros to add.
2224 size_t __p; // Position of the exponent character (if any).
2225 size_t __d = __s.find('.'); // Position of decimal point.
2226 if (__d != __s.npos) // Found decimal point.
2227 {
2228 __p = __s.find(__expc, __d + 1);
2229 if (__p == __s.npos)
2230 __p = __s.size();
2231
2232 // If presentation type is g or G we might need to add zeros.
2233 if (__trailing_zeros)
2234 {
2235 // Find number of digits after first significant figure.
2236 if (__s[__have_sign] != '0')
2237 // A string like "D.D" or "-D.DDD"
2238 __sigfigs = __p - __have_sign - 1;
2239 else
2240 // A string like "0.D" or "-0.0DD".
2241 // Safe to assume there is a non-zero digit, because
2242 // otherwise there would be no decimal point.
2243 __sigfigs = __p - __s.find_first_not_of('0', __d + 1);
2244 }
2245 }
2246 else // No decimal point, we need to insert one.
2247 {
2248 __p = __s.find(__expc); // Find the exponent, if present.
2249 if (__p == __s.npos)
2250 __p = __s.size();
2251 __d = __p; // Position where '.' should be inserted.
2252 __sigfigs = __d - __have_sign;
2253 }
2254
2255 if (__trailing_zeros && __prec != 0)
2256 {
2257 // For g and G presentation types std::to_chars produces
2258 // no more than prec significant figures. Insert this many
2259 // zeros so the result has exactly prec significant figures.
2260 __z = __prec - __sigfigs;
2261 }
2262
2263 if (size_t __extras = int(__d == __p) + __z) // How many to add.
2264 {
2265 if (__dynbuf.empty() && __extras <= size_t(__end - __res.ptr))
2266 {
2267 // The stack buffer is large enough for the result.
2268 // Move exponent to make space for extra chars.
2269 __builtin_memmove(__start + __p + __extras,
2270 __start + __p,
2271 __s.size() - __p);
2272 if (__d == __p)
2273 __start[__p++] = '.';
2274 __builtin_memset(__start + __p, '0', __z);
2275 __narrow_str = {__s.data(), __s.size() + __extras};
2276 }
2277 else // Need to switch to the dynamic buffer.
2278 {
2279 __dynbuf.reserve(__s.size() + __extras);
2280 if (__dynbuf.empty())
2281 {
2282 __dynbuf = __s.substr(0, __p);
2283 if (__d == __p)
2284 __dynbuf += '.';
2285 if (__z)
2286 __dynbuf.append(__z, '0');
2287 __dynbuf.append(__s.substr(__p));
2288 }
2289 else
2290 {
2291 __dynbuf.insert(__p, __extras, '0');
2292 if (__d == __p)
2293 __dynbuf[__p] = '.';
2294 }
2295 __narrow_str = __dynbuf;
2296 }
2297 }
2298 }
2299
2300 basic_string<_CharT> __wstr;
2301 basic_string_view<_CharT> __str;
2302 if constexpr (is_same_v<_CharT, char>)
2303 __str = __narrow_str;
2304#ifdef _GLIBCXX_USE_WCHAR_T
2305 else
2306 {
2307 __wstr = std::__to_wstring_numeric(__narrow_str);
2308 __str = __wstr;
2309 }
2310#endif
2311
2312 if (_M_spec._M_localized && __builtin_isfinite(__v))
2313 {
2314 auto __s = _M_localize(__str, __expc, __fc.locale());
2315 if (!__s.empty())
2316 __str = __wstr = std::move(__s);
2317 }
2318
2319 size_t __width = _M_spec._M_get_width(__fc);
2320
2321 if (__width <= __str.size())
2322 return __format::__write(__fc.out(), __str);
2323
2324 char32_t __fill_char = _M_spec._M_fill;
2325 _Align __align = _M_spec._M_align;
2326
2327 size_t __nfill = __width - __str.size();
2328 auto __out = __fc.out();
2329 if (__align == _Align_default)
2330 {
2331 __align = _Align_right;
2332 if (_M_spec._M_zero_fill && __builtin_isfinite(__v))
2333 {
2334 __fill_char = _CharT('0');
2335 // Write sign before zero filling.
2336 if (!__format::__is_xdigit(__narrow_str[0]))
2337 {
2338 *__out++ = __str[0];
2339 __str.remove_prefix(1);
2340 }
2341 }
2342 else
2343 __fill_char = _CharT(' ');
2344 }
2345 return __format::__write_padded(std::move(__out), __str,
2346 __align, __nfill, __fill_char);
2347 }
2348
2349 // Locale-specific format.
2350 basic_string<_CharT>
2351 _M_localize(basic_string_view<_CharT> __str, char __expc,
2352 const locale& __loc) const
2353 {
2354 basic_string<_CharT> __lstr;
2355
2356 if (__loc == locale::classic())
2357 return __lstr; // Nothing to do.
2358
2359 const auto& __np = use_facet<numpunct<_CharT>>(__loc);
2360 const _CharT __point = __np.decimal_point();
2361 const string __grp = __np.grouping();
2362
2363 _CharT __dot, __exp;
2364 if constexpr (is_same_v<_CharT, char>)
2365 {
2366 __dot = '.';
2367 __exp = __expc;
2368 }
2369 else
2370 {
2371 __dot = L'.';
2372 switch (__expc)
2373 {
2374 case 'e':
2375 __exp = L'e';
2376 break;
2377 case 'E':
2378 __exp = L'E';
2379 break;
2380 case 'p':
2381 __exp = L'p';
2382 break;
2383 case 'P':
2384 __exp = L'P';
2385 break;
2386 default:
2387 __builtin_unreachable();
2388 }
2389 }
2390
2391 if (__grp.empty() && __point == __dot)
2392 return __lstr; // Locale uses '.' and no grouping.
2393
2394 size_t __d = __str.find(__dot); // Index of radix character (if any).
2395 size_t __e = min(__d, __str.find(__exp)); // First of radix or exponent
2396 if (__e == __str.npos)
2397 __e = __str.size();
2398 const size_t __r = __str.size() - __e; // Length of remainder.
2399 auto __overwrite = [&](_CharT* __p, size_t) {
2400 // Apply grouping to the digits before the radix or exponent.
2401 int __off = 0;
2402 if (auto __c = __str.front(); __c == '-' || __c == '+' || __c == ' ')
2403 {
2404 *__p = __c;
2405 __off = 1;
2406 }
2407 auto __end = std::__add_grouping(__p + __off, __np.thousands_sep(),
2408 __grp.data(), __grp.size(),
2409 __str.data() + __off,
2410 __str.data() + __e);
2411 if (__r) // If there's a fractional part or exponent
2412 {
2413 if (__d != __str.npos)
2414 {
2415 *__end = __point; // Add the locale's radix character.
2416 ++__end;
2417 ++__e;
2418 }
2419 const size_t __rlen = __str.size() - __e;
2420 // Append fractional digits and/or exponent:
2421 char_traits<_CharT>::copy(__end, __str.data() + __e, __rlen);
2422 __end += __rlen;
2423 }
2424 return (__end - __p);
2425 };
2426 __lstr.__resize_and_overwrite(__e * 2 + __r, __overwrite);
2427 return __lstr;
2428 }
2429
2430 _Spec<_CharT> _M_spec{};
2431 };
2432
2433 template<__format::__char _CharT>
2434 struct __formatter_ptr
2435 {
2436 __formatter_ptr() = default;
2437
2438 constexpr
2439 __formatter_ptr(_Spec<_CharT> __spec) noexcept
2440 : _M_spec(__spec)
2441 { _M_set_default(_Pres_p); }
2442
2443 constexpr typename basic_format_parse_context<_CharT>::iterator
2444 parse(basic_format_parse_context<_CharT>& __pc, _Pres_type __type = _Pres_p)
2445 {
2446 __format::_Spec<_CharT> __spec{};
2447 const auto __last = __pc.end();
2448 auto __first = __pc.begin();
2449
2450 auto __finalize = [this, &__spec, __type] {
2451 _M_spec = __spec;
2452 _M_set_default(__type);
2453 };
2454
2455 auto __finished = [&] {
2456 if (__first == __last || *__first == '}')
2457 {
2458 __finalize();
2459 return true;
2460 }
2461 return false;
2462 };
2463
2464 if (__finished())
2465 return __first;
2466
2467 __first = __spec._M_parse_fill_and_align(__first, __last);
2468 if (__finished())
2469 return __first;
2470
2471// _GLIBCXX_RESOLVE_LIB_DEFECTS
2472// P2510R3 Formatting pointers
2473#if __glibcxx_format >= 202304L
2474 __first = __spec._M_parse_zero_fill(__first, __last);
2475 if (__finished())
2476 return __first;
2477#endif
2478
2479 __first = __spec._M_parse_width(__first, __last, __pc);
2480 if (__finished())
2481 return __first;
2482
2483 if (*__first == 'p')
2484 {
2485 __spec._M_type = _Pres_p;
2486 _M_spec._M_alt = !_M_spec._M_alt;
2487 ++__first;
2488 }
2489#if __glibcxx_format >= 202304L
2490 else if (*__first == 'P')
2491 {
2492 __spec._M_type = _Pres_P;
2493 _M_spec._M_alt = !_M_spec._M_alt;
2494 ++__first;
2495 }
2496#endif
2497
2498 if (__finished())
2499 return __first;
2500
2501 __format::__failed_to_parse_format_spec();
2502 }
2503
2504 template<typename _Out>
2505 typename basic_format_context<_Out, _CharT>::iterator
2506 format(const void* __v, basic_format_context<_Out, _CharT>& __fc) const
2507 {
2508 auto __u = reinterpret_cast<__UINTPTR_TYPE__>(__v);
2509 char __buf[2 + sizeof(__v) * 2];
2510 auto [__ptr, __ec] = std::to_chars(__buf + 2, std::end(__buf),
2511 __u, 16);
2512 int __n = __ptr - __buf;
2513 __buf[0] = '0';
2514 __buf[1] = 'x';
2515#if __glibcxx_format >= 202304L
2516 if (_M_spec._M_type == __format::_Pres_P)
2517 {
2518 __buf[1] = 'X';
2519 for (auto __p = __buf + 2; __p != __ptr; ++__p)
2520#if __has_builtin(__builtin_toupper)
2521 *__p = __builtin_toupper(*__p);
2522#else
2523 *__p = std::toupper(*__p);
2524#endif
2525 }
2526#endif
2527
2528 basic_string_view<_CharT> __str;
2529 if constexpr (is_same_v<_CharT, char>)
2530 __str = string_view(__buf, __n);
2531#ifdef _GLIBCXX_USE_WCHAR_T
2532 else
2533 {
2534 auto __p = (_CharT*)__builtin_alloca(__n * sizeof(_CharT));
2535 std::__to_wstring_numeric(__buf, __n, __p);
2536 __str = wstring_view(__p, __n);
2537 }
2538#endif
2539
2540#if __glibcxx_format >= 202304L
2541 if (_M_spec._M_zero_fill)
2542 {
2543 size_t __width = _M_spec._M_get_width(__fc);
2544 if (__width <= __str.size())
2545 return __format::__write(__fc.out(), __str);
2546
2547 auto __out = __fc.out();
2548 // Write "0x" or "0X" prefix before zero-filling.
2549 __out = __format::__write(std::move(__out), __str.substr(0, 2));
2550 __str.remove_prefix(2);
2551 size_t __nfill = __width - __n;
2552 return __format::__write_padded(std::move(__out), __str,
2553 __format::_Align_right,
2554 __nfill, _CharT('0'));
2555 }
2556#endif
2557
2558 return __format::__write_padded_as_spec(__str, __n, __fc, _M_spec,
2559 __format::_Align_right);
2560 }
2561
2562 private:
2563 [[__gnu__::__always_inline__]]
2564 constexpr void
2565 _M_set_default(_Pres_type __type)
2566 {
2567 if (_M_spec._M_type == _Pres_none && __type != _Pres_none)
2568 {
2569 _M_spec._M_type = __type;
2570 _M_spec._M_alt = !_M_spec._M_alt;
2571 }
2572 }
2573
2574 __format::_Spec<_CharT> _M_spec{};
2575 };
2576
2577} // namespace __format
2578/// @endcond
2579
2580 /// Format a character.
2581 template<__format::__char _CharT>
2582 struct formatter<_CharT, _CharT>
2583 {
2584 formatter() = default;
2585
2586 constexpr typename basic_format_parse_context<_CharT>::iterator
2587 parse(basic_format_parse_context<_CharT>& __pc)
2588 {
2589 return _M_f.template _M_parse<_CharT>(__pc);
2590 }
2591
2592 template<typename _Out>
2593 typename basic_format_context<_Out, _CharT>::iterator
2594 format(_CharT __u, basic_format_context<_Out, _CharT>& __fc) const
2595 {
2596 if (_M_f._M_spec._M_type == __format::_Pres_c)
2597 return _M_f._M_format_character(__u, __fc);
2598 else
2599 return _M_f.format(static_cast<make_unsigned_t<_CharT>>(__u), __fc);
2600 }
2601
2602#if __glibcxx_format_ranges // C++ >= 23 && HOSTED
2603 constexpr void
2604 set_debug_format() noexcept
2605 { _M_f._M_spec._M_debug = true; }
2606#endif
2607
2608 private:
2609 __format::__formatter_int<_CharT> _M_f;
2610 };
2611
2612#if __glibcxx_print >= 202403L
2613 template<__format::__char _CharT>
2614 constexpr bool enable_nonlocking_formatter_optimization<_CharT> = true;
2615#endif
2616
2617#ifdef _GLIBCXX_USE_WCHAR_T
2618 /// Format a char value for wide character output.
2619 template<>
2620 struct formatter<char, wchar_t>
2621 {
2622 formatter() = default;
2623
2624 constexpr typename basic_format_parse_context<wchar_t>::iterator
2625 parse(basic_format_parse_context<wchar_t>& __pc)
2626 {
2627 return _M_f._M_parse<char>(__pc);
2628 }
2629
2630 template<typename _Out>
2631 typename basic_format_context<_Out, wchar_t>::iterator
2632 format(char __u, basic_format_context<_Out, wchar_t>& __fc) const
2633 {
2634 if (_M_f._M_spec._M_type == __format::_Pres_c)
2635 return _M_f._M_format_character(__u, __fc);
2636 else
2637 return _M_f.format(static_cast<unsigned char>(__u), __fc);
2638 }
2639
2640#if __glibcxx_format_ranges // C++ >= 23 && HOSTED
2641 constexpr void
2642 set_debug_format() noexcept
2643 { _M_f._M_spec._M_debug = true; }
2644#endif
2645
2646 private:
2647 __format::__formatter_int<wchar_t> _M_f;
2648 };
2649#endif // USE_WCHAR_T
2650
2651 /** Format a string.
2652 * @{
2653 */
2654 template<__format::__char _CharT>
2655 struct formatter<_CharT*, _CharT>
2656 {
2657 formatter() = default;
2658
2659 [[__gnu__::__always_inline__]]
2660 constexpr typename basic_format_parse_context<_CharT>::iterator
2661 parse(basic_format_parse_context<_CharT>& __pc)
2662 { return _M_f.parse(__pc); }
2663
2664 template<typename _Out>
2665 [[__gnu__::__nonnull__]]
2666 typename basic_format_context<_Out, _CharT>::iterator
2667 format(_CharT* __u, basic_format_context<_Out, _CharT>& __fc) const
2668 { return _M_f.format(__u, __fc); }
2669
2670#if __glibcxx_format_ranges // C++ >= 23 && HOSTED
2671 constexpr void set_debug_format() noexcept { _M_f.set_debug_format(); }
2672#endif
2673
2674 private:
2675 __format::__formatter_str<_CharT> _M_f;
2676 };
2677
2678#if __glibcxx_print >= 202403L
2679 template<__format::__char _CharT>
2680 constexpr bool enable_nonlocking_formatter_optimization<_CharT*> = true;
2681#endif
2682
2683 template<__format::__char _CharT>
2684 struct formatter<const _CharT*, _CharT>
2685 {
2686 formatter() = default;
2687
2688 [[__gnu__::__always_inline__]]
2689 constexpr typename basic_format_parse_context<_CharT>::iterator
2690 parse(basic_format_parse_context<_CharT>& __pc)
2691 { return _M_f.parse(__pc); }
2692
2693 template<typename _Out>
2694 [[__gnu__::__nonnull__]]
2695 typename basic_format_context<_Out, _CharT>::iterator
2696 format(const _CharT* __u,
2697 basic_format_context<_Out, _CharT>& __fc) const
2698 { return _M_f.format(__u, __fc); }
2699
2700#if __glibcxx_format_ranges // C++ >= 23 && HOSTED
2701 constexpr void set_debug_format() noexcept { _M_f.set_debug_format(); }
2702#endif
2703
2704 private:
2705 __format::__formatter_str<_CharT> _M_f;
2706 };
2707
2708#if __glibcxx_print >= 202403L
2709 template<__format::__char _CharT>
2710 constexpr bool
2711 enable_nonlocking_formatter_optimization<const _CharT*> = true;
2712#endif
2713
2714 template<__format::__char _CharT, size_t _Nm>
2715 struct formatter<_CharT[_Nm], _CharT>
2716 {
2717 formatter() = default;
2718
2719 [[__gnu__::__always_inline__]]
2720 constexpr typename basic_format_parse_context<_CharT>::iterator
2721 parse(basic_format_parse_context<_CharT>& __pc)
2722 { return _M_f.parse(__pc); }
2723
2724 template<typename _Out>
2725 typename basic_format_context<_Out, _CharT>::iterator
2726 format(const _CharT (&__u)[_Nm],
2727 basic_format_context<_Out, _CharT>& __fc) const
2728 { return _M_f.format({__u, _Nm}, __fc); }
2729
2730#if __glibcxx_format_ranges // C++ >= 23 && HOSTED
2731 constexpr void set_debug_format() noexcept { _M_f.set_debug_format(); }
2732#endif
2733
2734 private:
2735 __format::__formatter_str<_CharT> _M_f;
2736 };
2737
2738#if __glibcxx_print >= 202403L
2739 template<__format::__char _CharT, size_t _Nm>
2740 constexpr bool enable_nonlocking_formatter_optimization<_CharT[_Nm]> = true;
2741#endif
2742
2743 template<typename _Traits, typename _Alloc>
2744 struct formatter<basic_string<char, _Traits, _Alloc>, char>
2745 {
2746 formatter() = default;
2747
2748 [[__gnu__::__always_inline__]]
2749 constexpr typename basic_format_parse_context<char>::iterator
2750 parse(basic_format_parse_context<char>& __pc)
2751 { return _M_f.parse(__pc); }
2752
2753 template<typename _Out>
2754 typename basic_format_context<_Out, char>::iterator
2755 format(const basic_string<char, _Traits, _Alloc>& __u,
2756 basic_format_context<_Out, char>& __fc) const
2757 { return _M_f.format(__u, __fc); }
2758
2759#if __glibcxx_format_ranges // C++ >= 23 && HOSTED
2760 constexpr void set_debug_format() noexcept { _M_f.set_debug_format(); }
2761#endif
2762
2763 private:
2764 __format::__formatter_str<char> _M_f;
2765 };
2766
2767#if __glibcxx_print >= 202403L
2768 template<typename _Tr, typename _Alloc>
2769 constexpr bool
2770 enable_nonlocking_formatter_optimization<basic_string<char, _Tr, _Alloc>>
2771 = true;
2772#endif
2773
2774#ifdef _GLIBCXX_USE_WCHAR_T
2775 template<typename _Traits, typename _Alloc>
2776 struct formatter<basic_string<wchar_t, _Traits, _Alloc>, wchar_t>
2777 {
2778 formatter() = default;
2779
2780 [[__gnu__::__always_inline__]]
2781 constexpr typename basic_format_parse_context<wchar_t>::iterator
2782 parse(basic_format_parse_context<wchar_t>& __pc)
2783 { return _M_f.parse(__pc); }
2784
2785 template<typename _Out>
2786 typename basic_format_context<_Out, wchar_t>::iterator
2787 format(const basic_string<wchar_t, _Traits, _Alloc>& __u,
2788 basic_format_context<_Out, wchar_t>& __fc) const
2789 { return _M_f.format(__u, __fc); }
2790
2791#if __glibcxx_format_ranges // C++ >= 23 && HOSTED
2792 constexpr void set_debug_format() noexcept { _M_f.set_debug_format(); }
2793#endif
2794
2795 private:
2796 __format::__formatter_str<wchar_t> _M_f;
2797 };
2798
2799#if __glibcxx_print >= 202403L
2800 template<typename _Tr, typename _Alloc>
2801 constexpr bool
2802 enable_nonlocking_formatter_optimization<basic_string<wchar_t, _Tr, _Alloc>>
2803 = true;
2804#endif
2805
2806#endif // USE_WCHAR_T
2807
2808 template<typename _Traits>
2809 struct formatter<basic_string_view<char, _Traits>, char>
2810 {
2811 formatter() = default;
2812
2813 [[__gnu__::__always_inline__]]
2814 constexpr typename basic_format_parse_context<char>::iterator
2815 parse(basic_format_parse_context<char>& __pc)
2816 { return _M_f.parse(__pc); }
2817
2818 template<typename _Out>
2819 typename basic_format_context<_Out, char>::iterator
2820 format(basic_string_view<char, _Traits> __u,
2821 basic_format_context<_Out, char>& __fc) const
2822 { return _M_f.format(__u, __fc); }
2823
2824#if __glibcxx_format_ranges // C++ >= 23 && HOSTED
2825 constexpr void set_debug_format() noexcept { _M_f.set_debug_format(); }
2826#endif
2827
2828 private:
2829 __format::__formatter_str<char> _M_f;
2830 };
2831
2832#if __glibcxx_print >= 202403L
2833 template<typename _Tr>
2834 constexpr bool
2835 enable_nonlocking_formatter_optimization<basic_string_view<char, _Tr>>
2836 = true;
2837#endif
2838
2839#ifdef _GLIBCXX_USE_WCHAR_T
2840 template<typename _Traits>
2841 struct formatter<basic_string_view<wchar_t, _Traits>, wchar_t>
2842 {
2843 formatter() = default;
2844
2845 [[__gnu__::__always_inline__]]
2846 constexpr typename basic_format_parse_context<wchar_t>::iterator
2847 parse(basic_format_parse_context<wchar_t>& __pc)
2848 { return _M_f.parse(__pc); }
2849
2850 template<typename _Out>
2851 typename basic_format_context<_Out, wchar_t>::iterator
2852 format(basic_string_view<wchar_t, _Traits> __u,
2853 basic_format_context<_Out, wchar_t>& __fc) const
2854 { return _M_f.format(__u, __fc); }
2855
2856#if __glibcxx_format_ranges // C++ >= 23 && HOSTED
2857 constexpr void set_debug_format() noexcept { _M_f.set_debug_format(); }
2858#endif
2859
2860 private:
2861 __format::__formatter_str<wchar_t> _M_f;
2862 };
2863
2864#if __glibcxx_print >= 202403L
2865 template<typename _Tr>
2866 constexpr bool
2867 enable_nonlocking_formatter_optimization<basic_string_view<wchar_t, _Tr>>
2868 = true;
2869#endif
2870#endif // USE_WCHAR_T
2871 /// @}
2872
2873/// @cond undocumented
2874namespace __format
2875{
2876 // each cv-unqualified arithmetic type ArithmeticT other than
2877 // char, wchar_t, char8_t, char16_t, or char32_t
2878 template<typename _Tp>
2879 constexpr bool __is_formattable_integer = __is_integer<_Tp>::__value;
2880
2881#if defined __SIZEOF_INT128__
2882 template<> inline constexpr bool __is_formattable_integer<__int128> = true;
2883 template<> inline constexpr bool __is_formattable_integer<unsigned __int128>
2884 = true;
2885#endif
2886
2887 template<> inline constexpr bool __is_formattable_integer<char> = false;
2888 template<> inline constexpr bool __is_formattable_integer<wchar_t> = false;
2889#ifdef _GLIBCXX_USE_CHAR8_T
2890 template<> inline constexpr bool __is_formattable_integer<char8_t> = false;
2891#endif
2892 template<> inline constexpr bool __is_formattable_integer<char16_t> = false;
2893 template<> inline constexpr bool __is_formattable_integer<char32_t> = false;
2894
2895 template<typename _Tp>
2896 concept __formattable_integer = __is_formattable_integer<_Tp>;
2897}
2898/// @endcond
2899
2900 /// Format an integer.
2901 template<__format::__formattable_integer _Tp, __format::__char _CharT>
2902 struct formatter<_Tp, _CharT>
2903 {
2904 formatter() = default;
2905
2906 [[__gnu__::__always_inline__]]
2907 constexpr typename basic_format_parse_context<_CharT>::iterator
2908 parse(basic_format_parse_context<_CharT>& __pc)
2909 {
2910 return _M_f.template _M_parse<_Tp>(__pc);
2911 }
2912
2913 template<typename _Out>
2914 typename basic_format_context<_Out, _CharT>::iterator
2915 format(_Tp __u, basic_format_context<_Out, _CharT>& __fc) const
2916 { return _M_f.format(__u, __fc); }
2917
2918 private:
2919 __format::__formatter_int<_CharT> _M_f;
2920 };
2921
2922#if __glibcxx_print >= 202403L
2923 template<__format::__formattable_integer _Tp>
2924 constexpr bool
2925 enable_nonlocking_formatter_optimization<_Tp> = true;
2926#endif
2927
2928#if defined __glibcxx_to_chars
2929 /// Format a floating-point value.
2930 template<__format::__formattable_float _Tp, __format::__char _CharT>
2931 struct formatter<_Tp, _CharT>
2932 {
2933 formatter() = default;
2934
2935 [[__gnu__::__always_inline__]]
2936 constexpr typename basic_format_parse_context<_CharT>::iterator
2937 parse(basic_format_parse_context<_CharT>& __pc)
2938 { return _M_f.parse(__pc); }
2939
2940 template<typename _Out>
2941 typename basic_format_context<_Out, _CharT>::iterator
2942 format(_Tp __u, basic_format_context<_Out, _CharT>& __fc) const
2943 { return _M_f.format(__u, __fc); }
2944
2945 private:
2946 __format::__formatter_fp<_CharT> _M_f;
2947 };
2948
2949#if __glibcxx_print >= 202403L
2950 template<__format::__formattable_float _Tp>
2951 constexpr bool
2952 enable_nonlocking_formatter_optimization<_Tp> = true;
2953#endif
2954
2955#if __LDBL_MANT_DIG__ == __DBL_MANT_DIG__
2956 // Reuse __formatter_fp<C>::format<double, Out> for long double.
2957 template<__format::__char _CharT>
2958 struct formatter<long double, _CharT>
2959 {
2960 formatter() = default;
2961
2962 [[__gnu__::__always_inline__]]
2963 constexpr typename basic_format_parse_context<_CharT>::iterator
2964 parse(basic_format_parse_context<_CharT>& __pc)
2965 { return _M_f.parse(__pc); }
2966
2967 template<typename _Out>
2968 typename basic_format_context<_Out, _CharT>::iterator
2969 format(long double __u, basic_format_context<_Out, _CharT>& __fc) const
2970 { return _M_f.format((double)__u, __fc); }
2971
2972 private:
2973 __format::__formatter_fp<_CharT> _M_f;
2974 };
2975#endif
2976
2977#if defined(__STDCPP_FLOAT16_T__) && defined(_GLIBCXX_FLOAT_IS_IEEE_BINARY32)
2978 // Reuse __formatter_fp<C>::format<float, Out> for _Float16.
2979 template<__format::__char _CharT>
2980 struct formatter<_Float16, _CharT>
2981 {
2982 formatter() = default;
2983
2984 [[__gnu__::__always_inline__]]
2985 constexpr typename basic_format_parse_context<_CharT>::iterator
2986 parse(basic_format_parse_context<_CharT>& __pc)
2987 { return _M_f.parse(__pc); }
2988
2989 template<typename _Out>
2990 typename basic_format_context<_Out, _CharT>::iterator
2991 format(_Float16 __u, basic_format_context<_Out, _CharT>& __fc) const
2992 { return _M_f.format((float)__u, __fc); }
2993
2994 private:
2995 __format::__formatter_fp<_CharT> _M_f;
2996 };
2997#endif
2998
2999#if defined(__FLT32_DIG__) && defined(_GLIBCXX_FLOAT_IS_IEEE_BINARY32)
3000 // Reuse __formatter_fp<C>::format<float, Out> for _Float32.
3001 template<__format::__char _CharT>
3002 struct formatter<_Float32, _CharT>
3003 {
3004 formatter() = default;
3005
3006 [[__gnu__::__always_inline__]]
3007 constexpr typename basic_format_parse_context<_CharT>::iterator
3008 parse(basic_format_parse_context<_CharT>& __pc)
3009 { return _M_f.parse(__pc); }
3010
3011 template<typename _Out>
3012 typename basic_format_context<_Out, _CharT>::iterator
3013 format(_Float32 __u, basic_format_context<_Out, _CharT>& __fc) const
3014 { return _M_f.format((float)__u, __fc); }
3015
3016 private:
3017 __format::__formatter_fp<_CharT> _M_f;
3018 };
3019#endif
3020
3021#if defined(__FLT64_DIG__) && defined(_GLIBCXX_DOUBLE_IS_IEEE_BINARY64)
3022 // Reuse __formatter_fp<C>::format<double, Out> for _Float64.
3023 template<__format::__char _CharT>
3024 struct formatter<_Float64, _CharT>
3025 {
3026 formatter() = default;
3027
3028 [[__gnu__::__always_inline__]]
3029 constexpr typename basic_format_parse_context<_CharT>::iterator
3030 parse(basic_format_parse_context<_CharT>& __pc)
3031 { return _M_f.parse(__pc); }
3032
3033 template<typename _Out>
3034 typename basic_format_context<_Out, _CharT>::iterator
3035 format(_Float64 __u, basic_format_context<_Out, _CharT>& __fc) const
3036 { return _M_f.format((double)__u, __fc); }
3037
3038 private:
3039 __format::__formatter_fp<_CharT> _M_f;
3040 };
3041#endif
3042
3043#if defined(__FLT128_DIG__) && _GLIBCXX_FORMAT_F128
3044 // Use __formatter_fp<C>::format<__format::__flt128_t, Out> for _Float128.
3045 template<__format::__char _CharT>
3046 struct formatter<_Float128, _CharT>
3047 {
3048 formatter() = default;
3049
3050 [[__gnu__::__always_inline__]]
3051 constexpr typename basic_format_parse_context<_CharT>::iterator
3052 parse(basic_format_parse_context<_CharT>& __pc)
3053 { return _M_f.parse(__pc); }
3054
3055 template<typename _Out>
3056 typename basic_format_context<_Out, _CharT>::iterator
3057 format(_Float128 __u, basic_format_context<_Out, _CharT>& __fc) const
3058 { return _M_f.format((__format::__flt128_t)__u, __fc); }
3059
3060 private:
3061 __format::__formatter_fp<_CharT> _M_f;
3062 };
3063#endif
3064
3065#if defined(__SIZEOF_FLOAT128__) && _GLIBCXX_FORMAT_F128 == 2
3066 // Use __formatter_fp<C>::format<__format::__flt128_t, Out> for __float128,
3067 // when long double is not 128bit IEEE type.
3068 template<__format::__char _CharT>
3069 struct formatter<__float128, _CharT>
3070 {
3071 formatter() = default;
3072
3073 [[__gnu__::__always_inline__]]
3074 constexpr typename basic_format_parse_context<_CharT>::iterator
3075 parse(basic_format_parse_context<_CharT>& __pc)
3076 { return _M_f.parse(__pc); }
3077
3078 template<typename _Out>
3079 typename basic_format_context<_Out, _CharT>::iterator
3080 format(__float128 __u, basic_format_context<_Out, _CharT>& __fc) const
3081 { return _M_f.format((__format::__flt128_t)__u, __fc); }
3082
3083 private:
3084 __format::__formatter_fp<_CharT> _M_f;
3085 };
3086#endif
3087
3088#if defined(__STDCPP_BFLOAT16_T__) && defined(_GLIBCXX_FLOAT_IS_IEEE_BINARY32)
3089 // Reuse __formatter_fp<C>::format<float, Out> for bfloat16_t.
3090 template<__format::__char _CharT>
3091 struct formatter<__format::__bflt16_t, _CharT>
3092 {
3093 formatter() = default;
3094
3095 [[__gnu__::__always_inline__]]
3096 constexpr typename basic_format_parse_context<_CharT>::iterator
3097 parse(basic_format_parse_context<_CharT>& __pc)
3098 { return _M_f.parse(__pc); }
3099
3100 template<typename _Out>
3101 typename basic_format_context<_Out, _CharT>::iterator
3102 format(__gnu_cxx::__bfloat16_t __u,
3103 basic_format_context<_Out, _CharT>& __fc) const
3104 { return _M_f.format((float)__u, __fc); }
3105
3106 private:
3107 __format::__formatter_fp<_CharT> _M_f;
3108 };
3109#endif
3110#endif // __cpp_lib_to_chars
3111
3112 /** Format a pointer.
3113 * @{
3114 */
3115 template<__format::__char _CharT>
3116 struct formatter<const void*, _CharT>
3117 {
3118 formatter() = default;
3119
3120 constexpr typename basic_format_parse_context<_CharT>::iterator
3121 parse(basic_format_parse_context<_CharT>& __pc)
3122 { return _M_f.parse(__pc); }
3123
3124 template<typename _Out>
3125 typename basic_format_context<_Out, _CharT>::iterator
3126 format(const void* __v, basic_format_context<_Out, _CharT>& __fc) const
3127 { return _M_f.format(__v, __fc); }
3128
3129 private:
3130 __format::__formatter_ptr<_CharT> _M_f;
3131 };
3132
3133#if __glibcxx_print >= 202403L
3134 template<>
3135 inline constexpr bool
3136 enable_nonlocking_formatter_optimization<const void*> = true;
3137#endif
3138
3139 template<__format::__char _CharT>
3140 struct formatter<void*, _CharT>
3141 {
3142 formatter() = default;
3143
3144 [[__gnu__::__always_inline__]]
3145 constexpr typename basic_format_parse_context<_CharT>::iterator
3146 parse(basic_format_parse_context<_CharT>& __pc)
3147 { return _M_f.parse(__pc); }
3148
3149 template<typename _Out>
3150 typename basic_format_context<_Out, _CharT>::iterator
3151 format(void* __v, basic_format_context<_Out, _CharT>& __fc) const
3152 { return _M_f.format(__v, __fc); }
3153
3154 private:
3155 __format::__formatter_ptr<_CharT> _M_f;
3156 };
3157
3158#if __glibcxx_print >= 202403l
3159 template<>
3160 inline constexpr bool
3161 enable_nonlocking_formatter_optimization<void*> = true;
3162#endif
3163
3164 template<__format::__char _CharT>
3165 struct formatter<nullptr_t, _CharT>
3166 {
3167 formatter() = default;
3168
3169 [[__gnu__::__always_inline__]]
3170 constexpr typename basic_format_parse_context<_CharT>::iterator
3171 parse(basic_format_parse_context<_CharT>& __pc)
3172 { return _M_f.parse(__pc); }
3173
3174 template<typename _Out>
3175 typename basic_format_context<_Out, _CharT>::iterator
3176 format(nullptr_t, basic_format_context<_Out, _CharT>& __fc) const
3177 { return _M_f.format(nullptr, __fc); }
3178
3179 private:
3180 __format::__formatter_ptr<_CharT> _M_f;
3181 };
3182 /// @}
3183
3184#if __glibcxx_print >= 202403L
3185 template<>
3186 inline constexpr bool
3187 enable_nonlocking_formatter_optimization<nullptr_t> = true;
3188#endif
3189
3190#if defined _GLIBCXX_USE_WCHAR_T && __glibcxx_format_ranges
3191 // _GLIBCXX_RESOLVE_LIB_DEFECTS
3192 // 3944. Formatters converting sequences of char to sequences of wchar_t
3193
3194 struct __formatter_disabled
3195 {
3196 __formatter_disabled() = delete; // Cannot format char sequence to wchar_t
3197 __formatter_disabled(const __formatter_disabled&) = delete;
3198 __formatter_disabled& operator=(const __formatter_disabled&) = delete;
3199 };
3200
3201 template<>
3202 struct formatter<char*, wchar_t>
3203 : private __formatter_disabled { };
3204 template<>
3205 struct formatter<const char*, wchar_t>
3206 : private __formatter_disabled { };
3207 template<size_t _Nm>
3208 struct formatter<char[_Nm], wchar_t>
3209 : private __formatter_disabled { };
3210 template<class _Traits, class _Allocator>
3211 struct formatter<basic_string<char, _Traits, _Allocator>, wchar_t>
3212 : private __formatter_disabled { };
3213 template<class _Traits>
3214 struct formatter<basic_string_view<char, _Traits>, wchar_t>
3215 : private __formatter_disabled { };
3216#endif
3217
3218 /// An iterator after the last character written, and the number of
3219 /// characters that would have been written.
3220 template<typename _Out>
3221 struct format_to_n_result
3222 {
3223 _Out out;
3224 iter_difference_t<_Out> size;
3225 };
3226
3227_GLIBCXX_BEGIN_NAMESPACE_CONTAINER
3228template<typename, typename> class vector;
3229_GLIBCXX_END_NAMESPACE_CONTAINER
3230
3231/// @cond undocumented
3232namespace __format
3233{
3234 template<typename _CharT>
3235 class _Drop_iter
3236 {
3237 public:
3238 using iterator_category = output_iterator_tag;
3239 using value_type = void;
3240 using difference_type = ptrdiff_t;
3241 using pointer = void;
3242 using reference = void;
3243
3244 _Drop_iter() = default;
3245 _Drop_iter(const _Drop_iter&) = default;
3246 _Drop_iter& operator=(const _Drop_iter&) = default;
3247
3248 [[__gnu__::__always_inline__]]
3249 constexpr _Drop_iter&
3250 operator=(_CharT __c)
3251 { return *this; }
3252
3253 [[__gnu__::__always_inline__]]
3254 constexpr _Drop_iter&
3255 operator=(basic_string_view<_CharT> __s)
3256 { return *this; }
3257
3258 [[__gnu__::__always_inline__]]
3259 constexpr _Drop_iter&
3260 operator*() { return *this; }
3261
3262 [[__gnu__::__always_inline__]]
3263 constexpr _Drop_iter&
3264 operator++() { return *this; }
3265
3266 [[__gnu__::__always_inline__]]
3267 constexpr _Drop_iter
3268 operator++(int) { return *this; }
3269 };
3270
3271 template<typename _CharT>
3272 class _Sink_iter
3273 {
3274 _Sink<_CharT>* _M_sink = nullptr;
3275
3276 public:
3277 using iterator_category = output_iterator_tag;
3278 using value_type = void;
3279 using difference_type = ptrdiff_t;
3280 using pointer = void;
3281 using reference = void;
3282
3283 _Sink_iter() = default;
3284 _Sink_iter(const _Sink_iter&) = default;
3285 _Sink_iter& operator=(const _Sink_iter&) = default;
3286
3287 [[__gnu__::__always_inline__]]
3288 explicit constexpr
3289 _Sink_iter(_Sink<_CharT>& __sink) : _M_sink(std::addressof(__sink)) { }
3290
3291 [[__gnu__::__always_inline__]]
3292 constexpr _Sink_iter&
3293 operator=(_CharT __c)
3294 {
3295 _M_sink->_M_write(__c);
3296 return *this;
3297 }
3298
3299 [[__gnu__::__always_inline__]]
3300 constexpr _Sink_iter&
3301 operator=(basic_string_view<_CharT> __s)
3302 {
3303 _M_sink->_M_write(__s);
3304 return *this;
3305 }
3306
3307 [[__gnu__::__always_inline__]]
3308 constexpr _Sink_iter&
3309 operator*() { return *this; }
3310
3311 [[__gnu__::__always_inline__]]
3312 constexpr _Sink_iter&
3313 operator++() { return *this; }
3314
3315 [[__gnu__::__always_inline__]]
3316 constexpr _Sink_iter
3317 operator++(int) { return *this; }
3318
3319 auto
3320 _M_reserve(size_t __n) const
3321 { return _M_sink->_M_reserve(__n); }
3322
3323 bool
3324 _M_discarding() const
3325 { return _M_sink->_M_discarding(); }
3326 };
3327
3328 // Abstract base class for type-erased character sinks.
3329 // All formatting and output is done via this type's iterator,
3330 // to reduce the number of different template instantiations.
3331 template<typename _CharT>
3332 class _Sink
3333 {
3334 friend class _Sink_iter<_CharT>;
3335
3336 span<_CharT> _M_span;
3337 typename span<_CharT>::iterator _M_next;
3338
3339 // Called when the span is full, to make more space available.
3340 // Precondition: _M_next != _M_span.begin()
3341 // Postcondition: _M_next != _M_span.end()
3342 // TODO: remove the precondition? could make overflow handle it.
3343 virtual void _M_overflow() = 0;
3344
3345 protected:
3346 // Precondition: __span.size() != 0
3347 [[__gnu__::__always_inline__]]
3348 explicit constexpr
3349 _Sink(span<_CharT> __span) noexcept
3350 : _M_span(__span), _M_next(__span.begin())
3351 { }
3352
3353 // The portion of the span that has been written to.
3354 [[__gnu__::__always_inline__]]
3355 span<_CharT>
3356 _M_used() const noexcept
3357 { return _M_span.first(_M_next - _M_span.begin()); }
3358
3359 // The portion of the span that has not been written to.
3360 [[__gnu__::__always_inline__]]
3361 constexpr span<_CharT>
3362 _M_unused() const noexcept
3363 { return _M_span.subspan(_M_next - _M_span.begin()); }
3364
3365 // Use the start of the span as the next write position.
3366 [[__gnu__::__always_inline__]]
3367 constexpr void
3368 _M_rewind() noexcept
3369 { _M_next = _M_span.begin(); }
3370
3371 // Replace the current output range.
3372 void
3373 _M_reset(span<_CharT> __s, size_t __pos = 0) noexcept
3374 {
3375 _M_span = __s;
3376 _M_next = __s.begin() + __pos;
3377 }
3378
3379 // Called by the iterator for *it++ = c
3380 constexpr void
3381 _M_write(_CharT __c)
3382 {
3383 *_M_next++ = __c;
3384 if (_M_next - _M_span.begin() == std::ssize(_M_span)) [[unlikely]]
3385 _M_overflow();
3386 }
3387
3388 constexpr void
3389 _M_write(basic_string_view<_CharT> __s)
3390 {
3391 span __to = _M_unused();
3392 while (__to.size() <= __s.size())
3393 {
3394 __s.copy(__to.data(), __to.size());
3395 _M_next += __to.size();
3396 __s.remove_prefix(__to.size());
3397 _M_overflow();
3398 __to = _M_unused();
3399 }
3400 if (__s.size())
3401 {
3402 __s.copy(__to.data(), __s.size());
3403 _M_next += __s.size();
3404 }
3405 }
3406
3407 // A successful _Reservation can be used to directly write
3408 // up to N characters to the sink to avoid unwanted buffering.
3409 struct _Reservation
3410 {
3411 // True if the reservation was successful, false otherwise.
3412 explicit operator bool() const noexcept { return _M_sink; }
3413 // A pointer to write directly to the sink.
3414 _CharT* get() const noexcept { return _M_sink->_M_next.operator->(); }
3415 // Add n to the _M_next iterator for the sink.
3416 void _M_bump(size_t __n) { _M_sink->_M_bump(__n); }
3417 _Sink* _M_sink;
3418 };
3419
3420 // Attempt to reserve space to write n characters to the sink.
3421 // If anything is written to the reservation then there must be a call
3422 // to _M_bump(N2) before any call to another member function of *this,
3423 // where N2 is the number of characters written.
3424 virtual _Reservation
3425 _M_reserve(size_t __n)
3426 {
3427 if (__n <= _M_unused().size())
3428 return { this };
3429
3430 if (__n <= _M_span.size()) // Cannot meet the request.
3431 {
3432 _M_overflow(); // Make more space available.
3433 if (__n <= _M_unused().size())
3434 return { this };
3435 }
3436 return { nullptr };
3437 }
3438
3439 // Update the next output position after writing directly to the sink.
3440 // pre: no calls to _M_write or _M_overflow since _M_reserve.
3441 virtual void
3442 _M_bump(size_t __n)
3443 { _M_next += __n; }
3444
3445 // Returns true if the _Sink is discarding incoming characters.
3446 virtual bool
3447 _M_discarding() const
3448 { return false; }
3449
3450 public:
3451 _Sink(const _Sink&) = delete;
3452 _Sink& operator=(const _Sink&) = delete;
3453
3454 [[__gnu__::__always_inline__]]
3455 constexpr _Sink_iter<_CharT>
3456 out() noexcept
3457 { return _Sink_iter<_CharT>(*this); }
3458 };
3459
3460
3461 template<typename _CharT>
3462 class _Fixedbuf_sink final : public _Sink<_CharT>
3463 {
3464 void
3465 _M_overflow() override
3466 {
3467 __glibcxx_assert(false);
3468 this->_M_rewind();
3469 }
3470
3471 public:
3472 [[__gnu__::__always_inline__]]
3473 constexpr explicit
3474 _Fixedbuf_sink(span<_CharT> __buf)
3475 : _Sink<_CharT>(__buf)
3476 { }
3477
3478 constexpr basic_string_view<_CharT>
3479 view() const
3480 {
3481 auto __s = this->_M_used();
3482 return basic_string_view<_CharT>(__s.data(), __s.size());
3483 }
3484 };
3485
3486 // A sink with an internal buffer. This is used to implement concrete sinks.
3487 template<typename _CharT>
3488 class _Buf_sink : public _Sink<_CharT>
3489 {
3490 protected:
3491 _CharT _M_buf[__stackbuf_size<_CharT>];
3492
3493 [[__gnu__::__always_inline__]]
3494 constexpr
3495 _Buf_sink() noexcept
3496 : _Sink<_CharT>(_M_buf)
3497 { }
3498 };
3499
3500 using _GLIBCXX_STD_C::vector;
3501
3502 // A sink that fills a sequence (e.g. std::string, std::vector, std::deque).
3503 // Writes to a buffer then appends that to the sequence when it fills up.
3504 template<typename _Seq>
3505 class _Seq_sink : public _Buf_sink<typename _Seq::value_type>
3506 {
3507 using _CharT = typename _Seq::value_type;
3508
3509 _Seq _M_seq;
3510 protected:
3511 // Transfer buffer contents to the sequence, so buffer can be refilled.
3512 void
3513 _M_overflow() override
3514 {
3515 auto __s = this->_M_used();
3516 if (__s.empty()) [[unlikely]]
3517 return; // Nothing in the buffer to transfer to _M_seq.
3518
3519 // If _M_reserve was called then _M_bump must have been called too.
3520 _GLIBCXX_DEBUG_ASSERT(__s.data() != _M_seq.data());
3521
3522 if constexpr (__is_specialization_of<_Seq, basic_string>)
3523 _M_seq.append(__s.data(), __s.size());
3524 else
3525 _M_seq.insert(_M_seq.end(), __s.begin(), __s.end());
3526
3527 // Make the whole of _M_buf available for the next write:
3528 this->_M_rewind();
3529 }
3530
3531 typename _Sink<_CharT>::_Reservation
3532 _M_reserve(size_t __n) override
3533 {
3534 // We might already have n characters available in this->_M_unused(),
3535 // but the whole point of this function is to be an optimization for
3536 // the std::format("{}", x) case. We want to avoid writing to _M_buf
3537 // and then copying that into a basic_string if possible, so this
3538 // function prefers to create space directly in _M_seq rather than
3539 // using _M_buf.
3540
3541 if constexpr (__is_specialization_of<_Seq, basic_string>
3542 || __is_specialization_of<_Seq, vector>)
3543 {
3544 // Flush the buffer to _M_seq first (should not be needed).
3545 if (this->_M_used().size()) [[unlikely]]
3546 _Seq_sink::_M_overflow();
3547
3548 // Expand _M_seq to make __n new characters available:
3549 const auto __sz = _M_seq.size();
3550 if constexpr (is_same_v<string, _Seq> || is_same_v<wstring, _Seq>)
3551 _M_seq.__resize_and_overwrite(__sz + __n,
3552 [](auto, auto __n2) {
3553 return __n2;
3554 });
3555 else
3556 _M_seq.resize(__sz + __n);
3557
3558 // Set _M_used() to be a span over the original part of _M_seq
3559 // and _M_unused() to be the extra capacity we just created:
3560 this->_M_reset(_M_seq, __sz);
3561 return { this };
3562 }
3563 else // Try to use the base class' buffer.
3564 return _Sink<_CharT>::_M_reserve(__n);
3565 }
3566
3567 void
3568 _M_bump(size_t __n) override
3569 {
3570 if constexpr (__is_specialization_of<_Seq, basic_string>
3571 || __is_specialization_of<_Seq, vector>)
3572 {
3573 auto __s = this->_M_used();
3574 _GLIBCXX_DEBUG_ASSERT(__s.data() == _M_seq.data());
3575 // Truncate the sequence to the part that was actually written to:
3576 _M_seq.resize(__s.size() + __n);
3577 // Switch back to using buffer:
3578 this->_M_reset(this->_M_buf);
3579 }
3580 }
3581
3582 void _M_trim(span<const _CharT> __s)
3583 requires __is_specialization_of<_Seq, basic_string>
3584 {
3585 _GLIBCXX_DEBUG_ASSERT(__s.data() == this->_M_buf
3586 || __s.data() == _M_seq.data());
3587 if (__s.data() == _M_seq.data())
3588 _M_seq.resize(__s.size());
3589 else
3590 this->_M_reset(this->_M_buf, __s.size());
3591 }
3592
3593 public:
3594 // TODO: for SSO string, use SSO buffer as initial span, then switch
3595 // to _M_buf if it overflows? Or even do that for all unused capacity?
3596
3597 [[__gnu__::__always_inline__]]
3598 _Seq_sink() noexcept(is_nothrow_default_constructible_v<_Seq>)
3599 { }
3600
3601 _Seq_sink(_Seq&& __s) noexcept(is_nothrow_move_constructible_v<_Seq>)
3602 : _M_seq(std::move(__s))
3603 { }
3604
3605 using _Sink<_CharT>::out;
3606
3607 _Seq
3608 get() &&
3609 {
3610 if (this->_M_used().size() != 0)
3611 _Seq_sink::_M_overflow();
3612 return std::move(_M_seq);
3613 }
3614
3615 // A writable span that views everything written to the sink.
3616 // Will be either a view over _M_seq or the used part of _M_buf.
3617 span<_CharT>
3618 _M_span()
3619 {
3620 auto __s = this->_M_used();
3621 if (_M_seq.size())
3622 {
3623 if (__s.size() != 0)
3624 _Seq_sink::_M_overflow();
3625 return _M_seq;
3626 }
3627 return __s;
3628 }
3629
3630 basic_string_view<_CharT>
3631 view()
3632 {
3633 auto __span = _M_span();
3634 return basic_string_view<_CharT>(__span.data(), __span.size());
3635 }
3636 };
3637
3638 template<typename _CharT, typename _Alloc = allocator<_CharT>>
3639 using _Str_sink
3640 = _Seq_sink<basic_string<_CharT, char_traits<_CharT>, _Alloc>>;
3641
3642 // template<typename _CharT, typename _Alloc = allocator<_CharT>>
3643 // using _Vec_sink = _Seq_sink<vector<_CharTthis-> sink that writes to an output iterator.
3644 // Writes to a fixed-size buffer and then flushes to the output iterator
3645 // when the buffer fills up.
3646 template<typename _CharT, typename _OutIter>
3647 class _Iter_sink : public _Buf_sink<_CharT>
3648 {
3649 _OutIter _M_out;
3650 iter_difference_t<_OutIter> _M_max;
3651
3652 protected:
3653 size_t _M_count = 0;
3654
3655 void
3656 _M_overflow() override
3657 {
3658 auto __s = this->_M_used();
3659 if (_M_max < 0) // No maximum.
3660 _M_out = ranges::copy(__s, std::move(_M_out)).out;
3661 else if (_M_count < static_cast<size_t>(_M_max))
3662 {
3663 auto __max = _M_max - _M_count;
3664 span<_CharT> __first;
3665 if (__max < __s.size())
3666 __first = __s.first(static_cast<size_t>(__max));
3667 else
3668 __first = __s;
3669 _M_out = ranges::copy(__first, std::move(_M_out)).out;
3670 }
3671 this->_M_rewind();
3672 _M_count += __s.size();
3673 }
3674
3675 bool
3676 _M_discarding() const override
3677 {
3678 // format_to_n return total number of characters, that would be written,
3679 // see C++20 [format.functions] p20
3680 return false;
3681 }
3682
3683 public:
3684 [[__gnu__::__always_inline__]]
3685 explicit
3686 _Iter_sink(_OutIter __out, iter_difference_t<_OutIter> __max = -1)
3687 : _M_out(std::move(__out)), _M_max(__max)
3688 { }
3689
3690 using _Sink<_CharT>::out;
3691
3692 format_to_n_result<_OutIter>
3693 _M_finish() &&
3694 {
3695 if (this->_M_used().size() != 0)
3696 _Iter_sink::_M_overflow();
3697 iter_difference_t<_OutIter> __count(_M_count);
3698 return { std::move(_M_out), __count };
3699 }
3700 };
3701
3702 // Partial specialization for contiguous iterators.
3703 // No buffer is used, characters are written straight to the iterator.
3704 // We do not know the size of the output range, so the span size just grows
3705 // as needed. The end of the span might be an invalid pointer outside the
3706 // valid range, but we never actually call _M_span.end(). This class does
3707 // not introduce any invalid pointer arithmetic or overflows that would not
3708 // have happened anyway.
3709 template<typename _CharT, contiguous_iterator _OutIter>
3710 requires same_as<iter_value_t<_OutIter>, _CharT>
3711 class _Iter_sink<_CharT, _OutIter> : public _Sink<_CharT>
3712 {
3713 _OutIter _M_first;
3714 iter_difference_t<_OutIter> _M_max = -1;
3715 protected:
3716 size_t _M_count = 0;
3717 private:
3718 _CharT _M_buf[64]; // Write here after outputting _M_max characters.
3719
3720 protected:
3721 void
3722 _M_overflow() override
3723 {
3724 if (this->_M_unused().size() != 0)
3725 return; // No need to switch to internal buffer yet.
3726
3727 auto __s = this->_M_used();
3728
3729 if (_M_max >= 0)
3730 {
3731 _M_count += __s.size();
3732 // Span was already sized for the maximum character count,
3733 // if it overflows then any further output must go to the
3734 // internal buffer, to be discarded.
3735 this->_M_reset(this->_M_buf);
3736 }
3737 else
3738 {
3739 // No maximum character count. Just extend the span to allow
3740 // writing more characters to it.
3741 this->_M_reset({__s.data(), __s.size() + 1024}, __s.size());
3742 }
3743 }
3744
3745 bool
3746 _M_discarding() const override
3747 {
3748 // format_to_n return total number of characters, that would be written,
3749 // see C++20 [format.functions] p20
3750 return false;
3751 }
3752
3753 typename _Sink<_CharT>::_Reservation
3754 _M_reserve(size_t __n) final
3755 {
3756 auto __avail = this->_M_unused();
3757 if (__n > __avail.size())
3758 {
3759 if (_M_max >= 0)
3760 return {}; // cannot grow
3761
3762 auto __s = this->_M_used();
3763 this->_M_reset({__s.data(), __s.size() + __n}, __s.size());
3764 }
3765 return { this };
3766 }
3767
3768 private:
3769 static span<_CharT>
3770 _S_make_span(_CharT* __ptr, iter_difference_t<_OutIter> __n,
3771 span<_CharT> __buf) noexcept
3772 {
3773 if (__n == 0)
3774 return __buf; // Only write to the internal buffer.
3775
3776 if (__n > 0)
3777 {
3778 if constexpr (!is_integral_v<iter_difference_t<_OutIter>>
3779 || sizeof(__n) > sizeof(size_t))
3780 {
3781 // __int128 or __detail::__max_diff_type
3782 auto __m = iter_difference_t<_OutIter>((size_t)-1);
3783 if (__n > __m)
3784 __n = __m;
3785 }
3786 return {__ptr, (size_t)__n};
3787 }
3788
3789#if __has_builtin(__builtin_dynamic_object_size)
3790 if (size_t __bytes = __builtin_dynamic_object_size(__ptr, 2))
3791 return {__ptr, __bytes / sizeof(_CharT)};
3792#endif
3793 // Avoid forming a pointer to a different memory page.
3794 const auto __off = reinterpret_cast<__UINTPTR_TYPE__>(__ptr) % 1024;
3795 __n = (1024 - __off) / sizeof(_CharT);
3796 if (__n > 0) [[likely]]
3797 return {__ptr, static_cast<size_t>(__n)};
3798 else // Misaligned/packed buffer of wchar_t?
3799 return {__ptr, 1};
3800 }
3801
3802 public:
3803 explicit
3804 _Iter_sink(_OutIter __out, iter_difference_t<_OutIter> __n = -1) noexcept
3805 : _Sink<_CharT>(_S_make_span(std::to_address(__out), __n, _M_buf)),
3806 _M_first(__out), _M_max(__n)
3807 { }
3808
3809 format_to_n_result<_OutIter>
3810 _M_finish() &&
3811 {
3812 auto __s = this->_M_used();
3813 if (__s.data() == _M_buf)
3814 {
3815 // Switched to internal buffer, so must have written _M_max.
3816 iter_difference_t<_OutIter> __count(_M_count + __s.size());
3817 return { _M_first + _M_max, __count };
3818 }
3819 else // Not using internal buffer yet
3820 {
3821 iter_difference_t<_OutIter> __count(__s.size());
3822 return { _M_first + __count, __count };
3823 }
3824 }
3825 };
3826
3827 // A sink for handling the padded outputs (_M_padwidth) or truncated
3828 // (_M_maxwidth). The handling is done by writting to buffer (_Str_strink)
3829 // until sufficient number of characters is written. After that if sequence
3830 // is longer than _M_padwidth it's written to _M_out, and further writes are
3831 // either:
3832 // * buffered and forwarded to _M_out, if below _M_maxwidth,
3833 // * ignored otherwise
3834 // If field width of written sequence is no greater than _M_padwidth, the
3835 // sequence is written during _M_finish call.
3836 template<typename _Out, typename _CharT>
3837 class _Padding_sink : public _Str_sink<_CharT>
3838 {
3839 size_t _M_padwidth;
3840 size_t _M_maxwidth;
3841 _Out _M_out;
3842 size_t _M_printwidth;
3843
3844 [[__gnu__::__always_inline__]]
3845 bool
3846 _M_ignoring() const
3847 { return _M_printwidth >= _M_maxwidth; }
3848
3849 [[__gnu__::__always_inline__]]
3850 bool
3851 _M_buffering() const
3852 {
3853 if (_M_printwidth < _M_padwidth)
3854 return true;
3855 if (_M_maxwidth != (size_t)-1)
3856 return _M_printwidth < _M_maxwidth;
3857 return false;
3858 }
3859
3860 void
3861 _M_sync_discarding()
3862 {
3863 if constexpr (is_same_v<_Out, _Sink_iter<_CharT>>)
3864 if (_M_out._M_discarding())
3865 _M_maxwidth = _M_printwidth;
3866 }
3867
3868 void
3869 _M_flush()
3870 {
3871 span<_CharT> __new = this->_M_used();
3872 basic_string_view<_CharT> __str(__new.data(), __new.size());
3873 _M_out = __format::__write(std::move(_M_out), __str);
3874 _M_sync_discarding();
3875 this->_M_rewind();
3876 }
3877
3878 bool
3879 _M_force_update()
3880 {
3881 auto __str = this->view();
3882 // Compute actual field width, possibly truncated.
3883 _M_printwidth = __format::__truncate(__str, _M_maxwidth);
3884 if (_M_ignoring())
3885 this->_M_trim(__str);
3886 if (_M_buffering())
3887 return true;
3888
3889 // We have more characters than padidng, no padding is needed,
3890 // write direclty to _M_out.
3891 if (_M_printwidth >= _M_padwidth)
3892 {
3893 _M_out = __format::__write(std::move(_M_out), __str);
3894 _M_sync_discarding();
3895 }
3896 // We reached _M_maxwidth that is smaller than _M_padwidth.
3897 // Store the prefix sequence in _M_seq, and free _M_buf.
3898 else
3899 _Str_sink<_CharT>::_M_overflow();
3900
3901 // Use internal buffer for writes to _M_out.
3902 this->_M_reset(this->_M_buf);
3903 return false;
3904 }
3905
3906 bool
3907 _M_update(size_t __new)
3908 {
3909 _M_printwidth += __new;
3910 // Compute estimated width, to see if is not reduced.
3911 if (_M_printwidth >= _M_padwidth || _M_printwidth >= _M_maxwidth)
3912 return _M_force_update();
3913 return true;
3914 }
3915
3916 void
3917 _M_overflow() override
3918 {
3919 // Ignore characters in buffer, and override it.
3920 if (_M_ignoring())
3921 this->_M_rewind();
3922 // Write buffer to _M_out, and override it.
3923 else if (!_M_buffering())
3924 _M_flush();
3925 // Update written count, and if input still should be buffered,
3926 // flush the to _M_seq.
3927 else if (_M_update(this->_M_used().size()))
3928 _Str_sink<_CharT>::_M_overflow();
3929 }
3930
3931 bool
3932 _M_discarding() const override
3933 { return _M_ignoring(); }
3934
3935 typename _Sink<_CharT>::_Reservation
3936 _M_reserve(size_t __n) override
3937 {
3938 // Ignore characters in buffer, if any.
3939 if (_M_ignoring())
3940 this->_M_rewind();
3941 else if constexpr (is_same_v<_Out, _Sink_iter<_CharT>>)
3942 if (!_M_buffering())
3943 {
3944 // Write pending characters if any
3945 if (!this->_M_used().empty())
3946 _M_flush();
3947 // Try to reserve from _M_out sink.
3948 if (auto __reserved = _M_out._M_reserve(__n))
3949 return __reserved;
3950 }
3951 return _Sink<_CharT>::_M_reserve(__n);
3952 }
3953
3954 void
3955 _M_bump(size_t __n) override
3956 {
3957 // Ignore the written characters.
3958 if (_M_ignoring())
3959 return;
3960 // If reservation was made directy sink associated _M_out,
3961 // _M_bump will be called on that sink.
3962 _Sink<_CharT>::_M_bump(__n);
3963 if (_M_buffering())
3964 _M_update(__n);
3965 }
3966
3967 public:
3968 [[__gnu__::__always_inline__]]
3969 explicit
3970 _Padding_sink(_Out __out, size_t __padwidth, size_t __maxwidth)
3971 : _M_padwidth(__padwidth), _M_maxwidth(__maxwidth),
3972 _M_out(std::move(__out)), _M_printwidth(0)
3973 { _M_sync_discarding(); }
3974
3975 [[__gnu__::__always_inline__]]
3976 explicit
3977 _Padding_sink(_Out __out, size_t __padwidth)
3978 : _Padding_sink(std::move(__out), __padwidth, (size_t)-1)
3979 { }
3980
3981 _Out
3982 _M_finish(_Align __align, char32_t __fill_char)
3983 {
3984 // Handle any characters in the buffer.
3985 if (auto __rem = this->_M_used().size())
3986 {
3987 if (_M_ignoring())
3988 this->_M_rewind();
3989 else if (!_M_buffering())
3990 _M_flush();
3991 else
3992 _M_update(__rem);
3993 }
3994
3995 if (!_M_buffering() || !_M_force_update())
3996 // Characters were already written to _M_out.
3997 if (_M_printwidth >= _M_padwidth)
3998 return std::move(_M_out);
3999
4000 const auto __str = this->view();
4001 if (_M_printwidth >= _M_padwidth)
4002 return __format::__write(std::move(_M_out), __str);
4003
4004 const size_t __nfill = _M_padwidth - _M_printwidth;
4005 return __format::__write_padded(std::move(_M_out), __str,
4006 __align, __nfill, __fill_char);
4007 }
4008 };
4009
4010 template<typename _Out, typename _CharT>
4011 class _Escaping_sink : public _Buf_sink<_CharT>
4012 {
4013 using _Esc = _Escapes<_CharT>;
4014
4015 _Out _M_out;
4016 _Term_char _M_term : 2;
4017 unsigned _M_prev_escape : 1;
4018 unsigned _M_out_discards : 1;
4019
4020 void
4021 _M_sync_discarding()
4022 {
4023 if constexpr (is_same_v<_Out, _Sink_iter<_CharT>>)
4024 _M_out_discards = _M_out._M_discarding();
4025 }
4026
4027 void
4028 _M_write()
4029 {
4030 span<_CharT> __bytes = this->_M_used();
4031 basic_string_view<_CharT> __str(__bytes.data(), __bytes.size());
4032
4033 size_t __rem = 0;
4034 if constexpr (__unicode::__literal_encoding_is_unicode<_CharT>())
4035 {
4036 bool __prev_escape = _M_prev_escape;
4037 _M_out = __format::__write_escaped_unicode_part(
4038 std::move(_M_out), __str, __prev_escape, _M_term);
4039 _M_prev_escape = __prev_escape;
4040
4041 __rem = __str.size();
4042 if (__rem > 0 && __str.data() != this->_M_buf) [[unlikely]]
4043 ranges::move(__str, this->_M_buf);
4044 }
4045 else
4046 _M_out = __format::__write_escaped_ascii(
4047 std::move(_M_out), __str, _M_term);
4048
4049 this->_M_reset(this->_M_buf, __rem);
4050 _M_sync_discarding();
4051 }
4052
4053 void
4054 _M_overflow() override
4055 {
4056 if (_M_out_discards)
4057 this->_M_rewind();
4058 else
4059 _M_write();
4060 }
4061
4062 bool
4063 _M_discarding() const override
4064 { return _M_out_discards; }
4065
4066 public:
4067 [[__gnu__::__always_inline__]]
4068 explicit
4069 _Escaping_sink(_Out __out, _Term_char __term)
4070 : _M_out(std::move(__out)), _M_term(__term),
4071 _M_prev_escape(true), _M_out_discards(false)
4072 {
4073 _M_out = __format::__write(std::move(_M_out), _Esc::_S_term(_M_term));
4074 _M_sync_discarding();
4075 }
4076
4077 _Out
4078 _M_finish()
4079 {
4080 if (_M_out_discards)
4081 return std::move(_M_out);
4082
4083 if (!this->_M_used().empty())
4084 {
4085 _M_write();
4086 if constexpr (__unicode::__literal_encoding_is_unicode<_CharT>())
4087 if (auto __rem = this->_M_used(); !__rem.empty())
4088 {
4089 basic_string_view<_CharT> __str(__rem.data(), __rem.size());
4090 _M_out = __format::__write_escape_seqs(std::move(_M_out), __str);
4091 }
4092 }
4093 return __format::__write(std::move(_M_out), _Esc::_S_term(_M_term));
4094 }
4095 };
4096
4097 enum class _Arg_t : unsigned char {
4098 _Arg_none, _Arg_bool, _Arg_c, _Arg_i, _Arg_u, _Arg_ll, _Arg_ull,
4099 _Arg_flt, _Arg_dbl, _Arg_ldbl, _Arg_str, _Arg_sv, _Arg_ptr, _Arg_handle,
4100 _Arg_i128, _Arg_u128, _Arg_float128,
4101 _Arg_bf16, _Arg_f16, _Arg_f32, _Arg_f64,
4102 _Arg_max_,
4103
4104#ifdef _GLIBCXX_LONG_DOUBLE_ALT128_COMPAT
4105 _Arg_ibm128 = _Arg_ldbl,
4106 _Arg_ieee128 = _Arg_float128,
4107#endif
4108 };
4109 using enum _Arg_t;
4110
4111 template<typename _Context>
4112 struct _Arg_value
4113 {
4114 using _CharT = typename _Context::char_type;
4115
4116 class handle
4117 {
4118 using _CharT = typename _Context::char_type;
4119 using _Func = void(*)(basic_format_parse_context<_CharT>&,
4120 _Context&, const void*);
4121
4122 // Format as const if possible, to reduce instantiations.
4123 template<typename _Tp>
4124 using __maybe_const_t
4125 = __conditional_t<__formattable_with<const _Tp, _Context>,
4126 const _Tp, _Tp>;
4127
4128 template<typename _Tq>
4129 static void
4130 _S_format(basic_format_parse_context<_CharT>& __parse_ctx,
4131 _Context& __format_ctx, const void* __ptr)
4132 {
4133 using _Td = remove_const_t<_Tq>;
4134 typename _Context::template formatter_type<_Td> __f;
4135 __parse_ctx.advance_to(__f.parse(__parse_ctx));
4136 _Tq& __val = *const_cast<_Tq*>(static_cast<const _Td*>(__ptr));
4137 __format_ctx.advance_to(__f.format(__val, __format_ctx));
4138 }
4139
4140 template<typename _Tp>
4141 requires (!is_same_v<remove_cv_t<_Tp>, handle>)
4142 explicit
4143 handle(_Tp& __val) noexcept
4144 : _M_ptr(__builtin_addressof(__val))
4145 , _M_func(&_S_format<__maybe_const_t<_Tp>>)
4146 { }
4147
4148 friend class basic_format_arg<_Context>;
4149
4150 public:
4151 handle(const handle&) = default;
4152 handle& operator=(const handle&) = default;
4153
4154 [[__gnu__::__always_inline__]]
4155 void
4156 format(basic_format_parse_context<_CharT>& __pc, _Context& __fc) const
4157 { _M_func(__pc, __fc, this->_M_ptr); }
4158
4159 private:
4160 const void* _M_ptr;
4161 _Func _M_func;
4162 };
4163
4164 union
4165 {
4166 monostate _M_none;
4167 bool _M_bool;
4168 _CharT _M_c;
4169 int _M_i;
4170 unsigned _M_u;
4171 long long _M_ll;
4172 unsigned long long _M_ull;
4173 float _M_flt;
4174 double _M_dbl;
4175#ifndef _GLIBCXX_LONG_DOUBLE_ALT128_COMPAT // No long double if it's ambiguous.
4176 long double _M_ldbl;
4177#else
4178 __ibm128 _M_ibm128;
4179 __ieee128 _M_ieee128;
4180#endif
4181#ifdef __SIZEOF_FLOAT128__
4182 __float128 _M_float128;
4183#endif
4184 const _CharT* _M_str;
4185 basic_string_view<_CharT> _M_sv;
4186 const void* _M_ptr;
4187 handle _M_handle;
4188#ifdef __SIZEOF_INT128__
4189 __int128 _M_i128;
4190 unsigned __int128 _M_u128;
4191#endif
4192#ifdef __BFLT16_DIG__
4193 __bflt16_t _M_bf16;
4194#endif
4195#ifdef __FLT16_DIG__
4196 _Float16 _M_f16;
4197#endif
4198#ifdef __FLT32_DIG__
4199 _Float32 _M_f32;
4200#endif
4201#ifdef __FLT64_DIG__
4202 _Float64 _M_f64;
4203#endif
4204 };
4205
4206 [[__gnu__::__always_inline__]]
4207 _Arg_value() : _M_none() { }
4208
4209#if 0
4210 template<typename _Tp>
4211 _Arg_value(in_place_type_t<_Tp>, _Tp __val)
4212 { _S_get<_Tp>() = __val; }
4213#endif
4214
4215 // Returns reference to the _Arg_value member with the type _Tp.
4216 // Value of second argument (if provided), is assigned to that member.
4217 template<typename _Tp, typename _Self, typename... _Value>
4218 [[__gnu__::__always_inline__]]
4219 static auto&
4220 _S_access(_Self& __u, _Value... __value) noexcept
4221 {
4222 static_assert(sizeof...(_Value) <= 1);
4223 if constexpr (is_same_v<_Tp, bool>)
4224 return (__u._M_bool = ... = __value);
4225 else if constexpr (is_same_v<_Tp, _CharT>)
4226 return (__u._M_c = ... = __value);
4227 else if constexpr (is_same_v<_Tp, int>)
4228 return (__u._M_i = ... = __value);
4229 else if constexpr (is_same_v<_Tp, unsigned>)
4230 return (__u._M_u = ... = __value);
4231 else if constexpr (is_same_v<_Tp, long long>)
4232 return (__u._M_ll = ... = __value);
4233 else if constexpr (is_same_v<_Tp, unsigned long long>)
4234 return (__u._M_ull = ... = __value);
4235 else if constexpr (is_same_v<_Tp, float>)
4236 return (__u._M_flt = ... = __value);
4237 else if constexpr (is_same_v<_Tp, double>)
4238 return (__u._M_dbl = ... = __value);
4239#ifndef _GLIBCXX_LONG_DOUBLE_ALT128_COMPAT
4240 else if constexpr (is_same_v<_Tp, long double>)
4241 return (__u._M_ldbl = ... = __value);
4242#else
4243 else if constexpr (is_same_v<_Tp, __ibm128>)
4244 return (__u._M_ibm128 = ... = __value);
4245 else if constexpr (is_same_v<_Tp, __ieee128>)
4246 return (__u._M_ieee128 = ... = __value);
4247#endif
4248#ifdef __SIZEOF_FLOAT128__
4249 else if constexpr (is_same_v<_Tp, __float128>)
4250 return (__u._M_float128 = ... = __value);
4251#endif
4252 else if constexpr (is_same_v<_Tp, const _CharT*>)
4253 return (__u._M_str = ... = __value);
4254 else if constexpr (is_same_v<_Tp, basic_string_view<_CharT>>)
4255 return (__u._M_sv = ... = __value);
4256 else if constexpr (is_same_v<_Tp, const void*>)
4257 return (__u._M_ptr = ... = __value);
4258#ifdef __SIZEOF_INT128__
4259 else if constexpr (is_same_v<_Tp, __int128>)
4260 return (__u._M_i128 = ... = __value);
4261 else if constexpr (is_same_v<_Tp, unsigned __int128>)
4262 return (__u._M_u128 = ... = __value);
4263#endif
4264#ifdef __BFLT16_DIG__
4265 else if constexpr (is_same_v<_Tp, __bflt16_t>)
4266 return (__u._M_bf16 = ... = __value);
4267#endif
4268#ifdef __FLT16_DIG__
4269 else if constexpr (is_same_v<_Tp, _Float16>)
4270 return (__u._M_f16 = ... = __value);
4271#endif
4272#ifdef __FLT32_DIG__
4273 else if constexpr (is_same_v<_Tp, _Float32>)
4274 return (__u._M_f32 = ... = __value);
4275#endif
4276#ifdef __FLT64_DIG__
4277 else if constexpr (is_same_v<_Tp, _Float64>)
4278 return (__u._M_f64 = ... = __value);
4279#endif
4280 else if constexpr (is_same_v<_Tp, handle>)
4281 return __u._M_handle;
4282 // Otherwise, ill-formed.
4283 }
4284
4285 template<typename _Tp>
4286 [[__gnu__::__always_inline__]]
4287 auto&
4288 _M_get() noexcept
4289 { return _S_access<_Tp>(*this); }
4290
4291 template<typename _Tp>
4292 [[__gnu__::__always_inline__]]
4293 const auto&
4294 _M_get() const noexcept
4295 { return _S_access<_Tp>(*this); }
4296
4297 template<typename _Tp>
4298 [[__gnu__::__always_inline__]]
4299 void
4300 _M_set(_Tp __v) noexcept
4301 {
4302 // Explicitly construct types without trivial default constructor.
4303 if constexpr (is_same_v<_Tp, basic_string_view<_CharT>>)
4304 std::construct_at(&_M_sv, __v);
4305 else if constexpr (is_same_v<_Tp, handle>)
4306 std::construct_at(&_M_handle, __v);
4307 else
4308 // Builtin types are trivially default constructible, and assignment
4309 // changes active member per N5032 [class.union.general] p5.
4310 _S_access<_Tp>(*this, __v);
4311 }
4312 };
4313
4314 // [format.arg.store], class template format-arg-store
4315 template<typename _Context, typename... _Args>
4316 class _Arg_store;
4317
4318 template<typename _Visitor, typename _Ctx>
4319 decltype(auto) __visit_format_arg(_Visitor&&, basic_format_arg<_Ctx>);
4320
4321 template<typename _Ch, typename _Tp>
4322 consteval _Arg_t
4323 __to_arg_t_enum() noexcept;
4324} // namespace __format
4325/// @endcond
4326
4327 template<typename _Context>
4328 class basic_format_arg
4329 {
4330 using _CharT = typename _Context::char_type;
4331
4332 public:
4333 using handle = __format::_Arg_value<_Context>::handle;
4334
4335 [[__gnu__::__always_inline__]]
4336 basic_format_arg() noexcept : _M_type(__format::_Arg_none) { }
4337
4338 [[nodiscard,__gnu__::__always_inline__]]
4339 explicit operator bool() const noexcept
4340 { return _M_type != __format::_Arg_none; }
4341
4342#if __cpp_lib_format >= 202306L // >= C++26
4343 template<typename _Visitor>
4344 decltype(auto)
4345 visit(this basic_format_arg __arg, _Visitor&& __vis)
4346 { return __arg._M_visit_user(std::forward<_Visitor>(__vis), __arg._M_type); }
4347
4348 template<typename _Res, typename _Visitor>
4349 _Res
4350 visit(this basic_format_arg __arg, _Visitor&& __vis)
4351 { return __arg._M_visit_user(std::forward<_Visitor>(__vis), __arg._M_type); }
4352#endif
4353
4354 private:
4355 template<typename _Ctx>
4356 friend class basic_format_args;
4357
4358 template<typename _Ctx, typename... _Args>
4359 friend class __format::_Arg_store;
4360
4361 static_assert(is_trivially_copyable_v<__format::_Arg_value<_Context>>);
4362
4363 __format::_Arg_value<_Context> _M_val;
4364 __format::_Arg_t _M_type;
4365
4366 // Transform incoming argument type to the type stored in _Arg_value.
4367 // e.g. short -> int, std::string -> std::string_view,
4368 // char[3] -> const char*.
4369 template<typename _Tp>
4370 static consteval auto
4371 _S_to_arg_type()
4372 {
4373 using _Td = remove_const_t<_Tp>;
4374 if constexpr (is_same_v<_Td, bool>)
4375 return type_identity<bool>();
4376 else if constexpr (is_same_v<_Td, _CharT>)
4377 return type_identity<_CharT>();
4378 else if constexpr (is_same_v<_Td, char> && is_same_v<_CharT, wchar_t>)
4379 return type_identity<_CharT>();
4380#ifdef __SIZEOF_INT128__ // Check before signed/unsigned integer
4381 else if constexpr (is_same_v<_Td, __int128>)
4382 return type_identity<__int128>();
4383 else if constexpr (is_same_v<_Td, unsigned __int128>)
4384 return type_identity<unsigned __int128>();
4385#endif
4386 else if constexpr (__is_signed_integer<_Td>::value)
4387 {
4388 if constexpr (sizeof(_Td) <= sizeof(int))
4389 return type_identity<int>();
4390 else if constexpr (sizeof(_Td) <= sizeof(long long))
4391 return type_identity<long long>();
4392 }
4393 else if constexpr (__is_unsigned_integer<_Td>::value)
4394 {
4395 if constexpr (sizeof(_Td) <= sizeof(unsigned))
4396 return type_identity<unsigned>();
4397 else if constexpr (sizeof(_Td) <= sizeof(unsigned long long))
4398 return type_identity<unsigned long long>();
4399 }
4400 else if constexpr (is_same_v<_Td, float>)
4401 return type_identity<float>();
4402 else if constexpr (is_same_v<_Td, double>)
4403 return type_identity<double>();
4404#ifndef _GLIBCXX_LONG_DOUBLE_ALT128_COMPAT
4405 else if constexpr (is_same_v<_Td, long double>)
4406 return type_identity<long double>();
4407#else
4408 else if constexpr (is_same_v<_Td, __ibm128>)
4409 return type_identity<__ibm128>();
4410 else if constexpr (is_same_v<_Td, __ieee128>)
4411 return type_identity<__ieee128>();
4412#endif
4413#if defined(__SIZEOF_FLOAT128__) && _GLIBCXX_FORMAT_F128
4414 else if constexpr (is_same_v<_Td, __float128>)
4415 return type_identity<__float128>();
4416#endif
4417#if defined(__STDCPP_BFLOAT16_T__) && defined(_GLIBCXX_FLOAT_IS_IEEE_BINARY32)
4418 else if constexpr (is_same_v<_Td, __format::__bflt16_t>)
4419 return type_identity<__format::__bflt16_t>();
4420#endif
4421#if defined(__STDCPP_FLOAT16_T__) && defined(_GLIBCXX_FLOAT_IS_IEEE_BINARY32)
4422 else if constexpr (is_same_v<_Td, _Float16>)
4423 return type_identity<_Float16>();
4424#endif
4425#if defined(__FLT32_DIG__) && defined(_GLIBCXX_FLOAT_IS_IEEE_BINARY32)
4426 else if constexpr (is_same_v<_Td, _Float32>)
4427 return type_identity<_Float32>();
4428#endif
4429#if defined(__FLT64_DIG__) && defined(_GLIBCXX_DOUBLE_IS_IEEE_BINARY64)
4430 else if constexpr (is_same_v<_Td, _Float64>)
4431 return type_identity<_Float64>();
4432#endif
4433 else if constexpr (__is_specialization_of<_Td, basic_string_view>
4434 || __is_specialization_of<_Td, basic_string>)
4435 {
4436 if constexpr (is_same_v<typename _Td::value_type, _CharT>)
4437 return type_identity<basic_string_view<_CharT>>();
4438 else
4439 return type_identity<handle>();
4440 }
4441 else if constexpr (is_same_v<decay_t<_Td>, const _CharT*>)
4442 return type_identity<const _CharT*>();
4443 else if constexpr (is_same_v<decay_t<_Td>, _CharT*>)
4444 return type_identity<const _CharT*>();
4445 else if constexpr (is_void_v<remove_pointer_t<_Td>>)
4446 return type_identity<const void*>();
4447 else if constexpr (is_same_v<_Td, nullptr_t>)
4448 return type_identity<const void*>();
4449 else
4450 return type_identity<handle>();
4451 }
4452
4453 // Transform a formattable type to the appropriate storage type.
4454 template<typename _Tp>
4455 using _Normalize = typename decltype(_S_to_arg_type<_Tp>())::type;
4456
4457 // Get the _Arg_t value corresponding to a normalized type.
4458 template<typename _Tp>
4459 static consteval __format::_Arg_t
4460 _S_to_enum()
4461 {
4462 using namespace __format;
4463 if constexpr (is_same_v<_Tp, bool>)
4464 return _Arg_bool;
4465 else if constexpr (is_same_v<_Tp, _CharT>)
4466 return _Arg_c;
4467 else if constexpr (is_same_v<_Tp, int>)
4468 return _Arg_i;
4469 else if constexpr (is_same_v<_Tp, unsigned>)
4470 return _Arg_u;
4471 else if constexpr (is_same_v<_Tp, long long>)
4472 return _Arg_ll;
4473 else if constexpr (is_same_v<_Tp, unsigned long long>)
4474 return _Arg_ull;
4475 else if constexpr (is_same_v<_Tp, float>)
4476 return _Arg_flt;
4477 else if constexpr (is_same_v<_Tp, double>)
4478 return _Arg_dbl;
4479#ifndef _GLIBCXX_LONG_DOUBLE_ALT128_COMPAT
4480 else if constexpr (is_same_v<_Tp, long double>)
4481 return _Arg_ldbl;
4482#else
4483 // Don't use _Arg_ldbl for this target, it's ambiguous.
4484 else if constexpr (is_same_v<_Tp, __ibm128>)
4485 return _Arg_ibm128;
4486 else if constexpr (is_same_v<_Tp, __ieee128>)
4487 return _Arg_ieee128;
4488#endif
4489#if defined(__SIZEOF_FLOAT128__) && _GLIBCXX_FORMAT_F128
4490 else if constexpr (is_same_v<_Tp, __float128>)
4491 return _Arg_float128;
4492#endif
4493#if defined(__STDCPP_BFLOAT16_T__) && defined(_GLIBCXX_FLOAT_IS_IEEE_BINARY32)
4494 else if constexpr (is_same_v<_Tp, __format::__bflt16_t>)
4495 return _Arg_bf16;
4496#endif
4497#if defined(__STDCPP_FLOAT16_T__) && defined(_GLIBCXX_FLOAT_IS_IEEE_BINARY32)
4498 else if constexpr (is_same_v<_Tp, _Float16>)
4499 return _Arg_f16;
4500#endif
4501#if defined(__FLT32_DIG__) && defined(_GLIBCXX_FLOAT_IS_IEEE_BINARY32)
4502 else if constexpr (is_same_v<_Tp, _Float32>)
4503 return _Arg_f32;
4504#endif
4505#if defined(__FLT64_DIG__) && defined(_GLIBCXX_DOUBLE_IS_IEEE_BINARY64)
4506 else if constexpr (is_same_v<_Tp, _Float64>)
4507 return _Arg_f64;
4508#endif
4509 else if constexpr (is_same_v<_Tp, const _CharT*>)
4510 return _Arg_str;
4511 else if constexpr (is_same_v<_Tp, basic_string_view<_CharT>>)
4512 return _Arg_sv;
4513 else if constexpr (is_same_v<_Tp, const void*>)
4514 return _Arg_ptr;
4515#ifdef __SIZEOF_INT128__
4516 else if constexpr (is_same_v<_Tp, __int128>)
4517 return _Arg_i128;
4518 else if constexpr (is_same_v<_Tp, unsigned __int128>)
4519 return _Arg_u128;
4520#endif
4521 else if constexpr (is_same_v<_Tp, handle>)
4522 return _Arg_handle;
4523 }
4524
4525 template<typename _Tp>
4526 void
4527 _M_set(_Tp __v) noexcept
4528 {
4529 _M_type = _S_to_enum<_Tp>();
4530 _M_val._M_set(__v);
4531 }
4532
4533 template<typename _Tp>
4534 requires __format::__formattable_with<_Tp, _Context>
4535 explicit
4536 basic_format_arg(_Tp& __v) noexcept
4537 {
4538 using _Td = _Normalize<_Tp>;
4539 if constexpr (is_same_v<_Td, basic_string_view<_CharT>>)
4540 _M_set(_Td{__v.data(), __v.size()});
4541 else if constexpr (is_same_v<remove_const_t<_Tp>, char>
4542 && is_same_v<_CharT, wchar_t>)
4543 _M_set(static_cast<_Td>(static_cast<unsigned char>(__v)));
4544 else
4545 _M_set(static_cast<_Td>(__v));
4546 }
4547
4548 template<typename _Ctx, typename... _Argz>
4549 friend auto
4550 make_format_args(_Argz&...) noexcept;
4551
4552 template<typename _Visitor, typename _Ctx>
4553 friend decltype(auto)
4554 visit_format_arg(_Visitor&& __vis, basic_format_arg<_Ctx>);
4555
4556 template<typename _Visitor, typename _Ctx>
4557 friend decltype(auto)
4558 __format::__visit_format_arg(_Visitor&&, basic_format_arg<_Ctx>);
4559
4560 template<typename _Ch, typename _Tp>
4561 friend consteval __format::_Arg_t
4562 __format::__to_arg_t_enum() noexcept;
4563
4564 template<typename _Visitor>
4565 decltype(auto)
4566 _M_visit(_Visitor&& __vis, __format::_Arg_t __type)
4567 {
4568 using namespace __format;
4569 switch (__type)
4570 {
4571 case _Arg_none:
4572 return std::forward<_Visitor>(__vis)(_M_val._M_none);
4573 case _Arg_bool:
4574 return std::forward<_Visitor>(__vis)(_M_val._M_bool);
4575 case _Arg_c:
4576 return std::forward<_Visitor>(__vis)(_M_val._M_c);
4577 case _Arg_i:
4578 return std::forward<_Visitor>(__vis)(_M_val._M_i);
4579 case _Arg_u:
4580 return std::forward<_Visitor>(__vis)(_M_val._M_u);
4581 case _Arg_ll:
4582 return std::forward<_Visitor>(__vis)(_M_val._M_ll);
4583 case _Arg_ull:
4584 return std::forward<_Visitor>(__vis)(_M_val._M_ull);
4585#if __glibcxx_to_chars // FIXME: need to be able to format these types!
4586 case _Arg_flt:
4587 return std::forward<_Visitor>(__vis)(_M_val._M_flt);
4588 case _Arg_dbl:
4589 return std::forward<_Visitor>(__vis)(_M_val._M_dbl);
4590#ifndef _GLIBCXX_LONG_DOUBLE_ALT128_COMPAT
4591 case _Arg_ldbl:
4592 return std::forward<_Visitor>(__vis)(_M_val._M_ldbl);
4593#if defined(__SIZEOF_FLOAT128__) && _GLIBCXX_FORMAT_F128
4594 case _Arg_float128:
4595 return std::forward<_Visitor>(__vis)(_M_val._M_float128);
4596#endif
4597#else
4598 case _Arg_ibm128:
4599 return std::forward<_Visitor>(__vis)(_M_val._M_ibm128);
4600 case _Arg_ieee128:
4601 return std::forward<_Visitor>(__vis)(_M_val._M_ieee128);
4602#endif
4603#if defined(__STDCPP_BFLOAT16_T__) && defined(_GLIBCXX_FLOAT_IS_IEEE_BINARY32)
4604 case _Arg_bf16:
4605 return std::forward<_Visitor>(__vis)(_M_val._M_bf16);
4606#endif
4607#if defined(__STDCPP_FLOAT16_T__) && defined(_GLIBCXX_FLOAT_IS_IEEE_BINARY32)
4608 case _Arg_f16:
4609 return std::forward<_Visitor>(__vis)(_M_val._M_f16);
4610#endif
4611#if defined(__FLT32_DIG__) && defined(_GLIBCXX_FLOAT_IS_IEEE_BINARY32)
4612 case _Arg_f32:
4613 return std::forward<_Visitor>(__vis)(_M_val._M_f32);
4614#endif
4615#if defined(__FLT64_DIG__) && defined(_GLIBCXX_DOUBLE_IS_IEEE_BINARY64)
4616 case _Arg_f64:
4617 return std::forward<_Visitor>(__vis)(_M_val._M_f64);
4618#endif
4619#endif // __glibcxx_to_chars
4620 case _Arg_str:
4621 return std::forward<_Visitor>(__vis)(_M_val._M_str);
4622 case _Arg_sv:
4623 return std::forward<_Visitor>(__vis)(_M_val._M_sv);
4624 case _Arg_ptr:
4625 return std::forward<_Visitor>(__vis)(_M_val._M_ptr);
4626 case _Arg_handle:
4627 return std::forward<_Visitor>(__vis)(_M_val._M_handle);
4628#ifdef __SIZEOF_INT128__
4629 case _Arg_i128:
4630 return std::forward<_Visitor>(__vis)(_M_val._M_i128);
4631 case _Arg_u128:
4632 return std::forward<_Visitor>(__vis)(_M_val._M_u128);
4633#endif
4634 default:
4635 __builtin_unreachable();
4636 }
4637 }
4638
4639 template<typename _Visitor>
4640 decltype(auto)
4641 _M_visit_user(_Visitor&& __vis, __format::_Arg_t __type)
4642 {
4643 return _M_visit([&__vis]<typename _Tp>(_Tp& __val) -> decltype(auto)
4644 {
4645 constexpr bool __user_facing = __is_one_of<_Tp,
4646 monostate, bool, _CharT,
4647 int, unsigned int, long long int, unsigned long long int,
4648 float, double, long double,
4649 const _CharT*, basic_string_view<_CharT>,
4650 const void*, handle>::value;
4651 if constexpr (__user_facing)
4652 return std::forward<_Visitor>(__vis)(__val);
4653 else
4654 {
4655 handle __h(__val);
4656 return std::forward<_Visitor>(__vis)(__h);
4657 }
4658 }, __type);
4659 }
4660 };
4661
4662 template<typename _Visitor, typename _Context>
4663 _GLIBCXX26_DEPRECATED_SUGGEST("std::basic_format_arg::visit")
4664 inline decltype(auto)
4665 visit_format_arg(_Visitor&& __vis, basic_format_arg<_Context> __arg)
4666 {
4667 return __arg._M_visit_user(std::forward<_Visitor>(__vis), __arg._M_type);
4668 }
4669
4670/// @cond undocumented
4671namespace __format
4672{
4673 template<typename _Visitor, typename _Ctx>
4674 inline decltype(auto)
4675 __visit_format_arg(_Visitor&& __vis, basic_format_arg<_Ctx> __arg)
4676 {
4677 return __arg._M_visit(std::forward<_Visitor>(__vis), __arg._M_type);
4678 }
4679
4680 struct _WidthPrecVisitor
4681 {
4682 template<typename _Tp>
4683 size_t
4684 operator()(_Tp& __arg) const
4685 {
4686 if constexpr (is_same_v<_Tp, monostate>)
4687 __format::__invalid_arg_id_in_format_string();
4688 // _GLIBCXX_RESOLVE_LIB_DEFECTS
4689 // 3720. Restrict the valid types of arg-id for width and precision
4690 // 3721. Allow an arg-id with a value of zero for width
4691 else if constexpr (sizeof(_Tp) <= sizeof(long long))
4692 {
4693 // _GLIBCXX_RESOLVE_LIB_DEFECTS
4694 // 3720. Restrict the valid types of arg-id for width and precision
4695 if constexpr (__is_unsigned_integer<_Tp>::value)
4696 return __arg;
4697 else if constexpr (__is_signed_integer<_Tp>::value)
4698 if (__arg >= 0)
4699 return __arg;
4700 }
4701 __throw_format_error("format error: argument used for width or "
4702 "precision must be a non-negative integer");
4703 }
4704 };
4705
4706#pragma GCC diagnostic push
4707#pragma GCC diagnostic ignored "-Wdeprecated-declarations"
4708 template<typename _Context>
4709 inline size_t
4710 __int_from_arg(const basic_format_arg<_Context>& __arg)
4711 { return __format::__visit_format_arg(_WidthPrecVisitor(), __arg); }
4712
4713 // Pack _Arg_t enum values into a single 60-bit integer.
4714 template<int _Bits, size_t _Nm>
4715 constexpr auto
4716 __pack_arg_types(const array<_Arg_t, _Nm>& __types)
4717 {
4718 __UINT64_TYPE__ __packed_types = 0;
4719 for (auto __i = __types.rbegin(); __i != __types.rend(); ++__i)
4720 __packed_types = (__packed_types << _Bits) | (unsigned)*__i;
4721 return __packed_types;
4722 }
4723} // namespace __format
4724/// @endcond
4725
4726 template<typename _Context>
4727 class basic_format_args
4728 {
4729 static constexpr int _S_packed_type_bits = 5; // _Arg_t values [0,20]
4730 static constexpr int _S_packed_type_mask = 0b11111;
4731 static constexpr int _S_max_packed_args = 12;
4732
4733 static_assert( (unsigned)__format::_Arg_max_ <= (1u << _S_packed_type_bits) );
4734
4735 template<typename... _Args>
4736 using _Store = __format::_Arg_store<_Context, _Args...>;
4737
4738 template<typename _Ctx, typename... _Args>
4739 friend class __format::_Arg_store;
4740
4741 using uint64_t = __UINT64_TYPE__;
4742 using _Format_arg = basic_format_arg<_Context>;
4743 using _Format_arg_val = __format::_Arg_value<_Context>;
4744
4745 // If args are packed then the number of args is in _M_packed_size and
4746 // the packed types are in _M_unpacked_size, accessed via _M_type(i).
4747 // If args are not packed then the number of args is in _M_unpacked_size
4748 // and _M_packed_size is zero.
4749 uint64_t _M_packed_size : 4;
4750 uint64_t _M_unpacked_size : 60;
4751
4752 union {
4753 const _Format_arg_val* _M_values; // Active when _M_packed_size != 0
4754 const _Format_arg* _M_args; // Active when _M_packed_size == 0
4755 };
4756
4757 size_t
4758 _M_size() const noexcept
4759 { return _M_packed_size ? _M_packed_size : _M_unpacked_size; }
4760
4761 typename __format::_Arg_t
4762 _M_type(size_t __i) const noexcept
4763 {
4764 uint64_t __t = _M_unpacked_size >> (__i * _S_packed_type_bits);
4765 return static_cast<__format::_Arg_t>(__t & _S_packed_type_mask);
4766 }
4767
4768 template<typename _Ctx, typename... _Args>
4769 friend auto
4770 make_format_args(_Args&...) noexcept;
4771
4772 // An array of _Arg_t enums corresponding to _Args...
4773 template<typename... _Args>
4774 static consteval array<__format::_Arg_t, sizeof...(_Args)>
4775 _S_types_to_pack()
4776 { return {_Format_arg::template _S_to_enum<_Args>()...}; }
4777
4778 public:
4779 template<typename... _Args>
4780 basic_format_args(const _Store<_Args...>& __store) noexcept;
4781
4782 [[nodiscard,__gnu__::__always_inline__]]
4783 basic_format_arg<_Context>
4784 get(size_t __i) const noexcept
4785 {
4786 basic_format_arg<_Context> __arg;
4787 if (__i < _M_packed_size)
4788 {
4789 __arg._M_type = _M_type(__i);
4790 __arg._M_val = _M_values[__i];
4791 }
4792 else if (_M_packed_size == 0 && __i < _M_unpacked_size)
4793 __arg = _M_args[__i];
4794 return __arg;
4795 }
4796 };
4797
4798 // _GLIBCXX_RESOLVE_LIB_DEFECTS
4799 // 3810. CTAD for std::basic_format_args
4800 template<typename _Context, typename... _Args>
4801 basic_format_args(__format::_Arg_store<_Context, _Args...>)
4802 -> basic_format_args<_Context>;
4803
4804 template<typename _Context, typename... _Args>
4805 auto
4806 make_format_args(_Args&... __fmt_args) noexcept;
4807
4808 // An array of type-erased formatting arguments.
4809 template<typename _Context, typename... _Args>
4810 class __format::_Arg_store
4811 {
4812 friend std::basic_format_args<_Context>;
4813
4814 template<typename _Ctx, typename... _Argz>
4815 friend auto std::
4816#if _GLIBCXX_INLINE_VERSION
4817 __8:: // Needed for PR c++/59256
4818#endif
4819 make_format_args(_Argz&...) noexcept;
4820
4821 // For a sufficiently small number of arguments we only store values.
4822 // basic_format_args can get the types from the _Args pack.
4823 static constexpr bool _S_values_only
4824 = sizeof...(_Args) <= basic_format_args<_Context>::_S_max_packed_args;
4825
4826 using _Element_t
4827 = __conditional_t<_S_values_only,
4828 __format::_Arg_value<_Context>,
4829 basic_format_arg<_Context>>;
4830
4831 _Element_t _M_args[sizeof...(_Args)];
4832
4833 template<typename _Tp>
4834 static _Element_t
4835 _S_make_elt(_Tp& __v)
4836 {
4837 using _Tq = remove_const_t<_Tp>;
4838 using _CharT = typename _Context::char_type;
4839 static_assert(is_default_constructible_v<formatter<_Tq, _CharT>>,
4840 "std::formatter must be specialized for the type "
4841 "of each format arg");
4842 using __format::__formattable_with;
4843 if constexpr (is_const_v<_Tp>)
4844 if constexpr (!__formattable_with<_Tp, _Context>)
4845 if constexpr (__formattable_with<_Tq, _Context>)
4846 static_assert(__formattable_with<_Tp, _Context>,
4847 "format arg must be non-const because its "
4848 "std::formatter specialization has a "
4849 "non-const reference parameter");
4850 basic_format_arg<_Context> __arg(__v);
4851 if constexpr (_S_values_only)
4852 return __arg._M_val;
4853 else
4854 return __arg;
4855 }
4856
4857 template<typename... _Tp>
4858 requires (sizeof...(_Tp) == sizeof...(_Args))
4859 [[__gnu__::__always_inline__]]
4860 _Arg_store(_Tp&... __a) noexcept
4861 : _M_args{_S_make_elt(__a)...}
4862 { }
4863 };
4864
4865 template<typename _Context>
4866 class __format::_Arg_store<_Context>
4867 { };
4868
4869 template<typename _Context>
4870 template<typename... _Args>
4871 inline
4872 basic_format_args<_Context>::
4873 basic_format_args(const _Store<_Args...>& __store) noexcept
4874 {
4875 if constexpr (sizeof...(_Args) == 0)
4876 {
4877 _M_packed_size = 0;
4878 _M_unpacked_size = 0;
4879 _M_args = nullptr;
4880 }
4881 else if constexpr (sizeof...(_Args) <= _S_max_packed_args)
4882 {
4883 // The number of packed arguments:
4884 _M_packed_size = sizeof...(_Args);
4885 // The packed type enums:
4886 _M_unpacked_size
4887 = __format::__pack_arg_types<_S_packed_type_bits>(_S_types_to_pack<_Args...>());
4888 // The _Arg_value objects.
4889 _M_values = __store._M_args;
4890 }
4891 else
4892 {
4893 // No packed arguments:
4894 _M_packed_size = 0;
4895 // The number of unpacked arguments:
4896 _M_unpacked_size = sizeof...(_Args);
4897 // The basic_format_arg objects:
4898 _M_args = __store._M_args;
4899 }
4900 }
4901
4902 /// Capture formatting arguments for use by `std::vformat`.
4903 template<typename _Context = format_context, typename... _Args>
4904 [[nodiscard,__gnu__::__always_inline__]]
4905 inline auto
4906 make_format_args(_Args&... __fmt_args) noexcept
4907 {
4908 using _Fmt_arg = basic_format_arg<_Context>;
4909 using _Store = __format::_Arg_store<_Context, typename _Fmt_arg::template
4910 _Normalize<_Args>...>;
4911 return _Store(__fmt_args...);
4912 }
4913
4914#ifdef _GLIBCXX_USE_WCHAR_T
4915 /// Capture formatting arguments for use by `std::vformat` (for wide output).
4916 template<typename... _Args>
4917 [[nodiscard,__gnu__::__always_inline__]]
4918 inline auto
4919 make_wformat_args(_Args&... __args) noexcept
4920 { return std::make_format_args<wformat_context>(__args...); }
4921#endif
4922
4923/// @cond undocumented
4924namespace __format
4925{
4926 template<typename _Out, typename _CharT, typename _Context>
4927 _Out
4928 __do_vformat_to(_Out, basic_string_view<_CharT>,
4929 const basic_format_args<_Context>&,
4930 const locale* = nullptr);
4931
4932 template<typename _CharT> struct __formatter_chrono;
4933
4934} // namespace __format
4935/// @endcond
4936
4937 /** Context for std::format and similar functions.
4938 *
4939 * A formatting context contains an output iterator and locale to use
4940 * for the formatting operations. Most programs will never need to use
4941 * this class template explicitly. For typical uses of `std::format` the
4942 * library will use the specializations `std::format_context` (for `char`)
4943 * and `std::wformat_context` (for `wchar_t`).
4944 *
4945 * You are not allowed to define partial or explicit specializations of
4946 * this class template.
4947 *
4948 * @since C++20
4949 */
4950 template<typename _Out, typename _CharT>
4951 class basic_format_context
4952 {
4953 static_assert( output_iterator<_Out, const _CharT&> );
4954
4955 basic_format_args<basic_format_context> _M_args;
4956 _Out _M_out;
4957 __format::_Optional_locale _M_loc;
4958
4959 basic_format_context(basic_format_args<basic_format_context> __args,
4960 _Out __out)
4961 : _M_args(__args), _M_out(std::move(__out))
4962 { }
4963
4964 basic_format_context(basic_format_args<basic_format_context> __args,
4965 _Out __out, const std::locale& __loc)
4966 : _M_args(__args), _M_out(std::move(__out)), _M_loc(__loc)
4967 { }
4968
4969 // _GLIBCXX_RESOLVE_LIB_DEFECTS
4970 // 4061. Should std::basic_format_context be
4971 // default-constructible/copyable/movable?
4972 basic_format_context(const basic_format_context&) = delete;
4973 basic_format_context& operator=(const basic_format_context&) = delete;
4974
4975 template<typename _Out2, typename _CharT2, typename _Context2>
4976 friend _Out2
4977 __format::__do_vformat_to(_Out2, basic_string_view<_CharT2>,
4978 const basic_format_args<_Context2>&,
4979 const locale*);
4980
4981 friend __format::__formatter_chrono<_CharT>;
4982
4983 public:
4984 ~basic_format_context() = default;
4985
4986 using iterator = _Out;
4987 using char_type = _CharT;
4988 template<typename _Tp>
4989 using formatter_type = formatter<_Tp, _CharT>;
4990
4991 [[nodiscard]]
4992 basic_format_arg<basic_format_context>
4993 arg(size_t __id) const noexcept
4994 { return _M_args.get(__id); }
4995
4996 [[nodiscard]]
4997 std::locale locale() { return _M_loc.value(); }
4998
4999 [[nodiscard]]
5000 iterator out() { return std::move(_M_out); }
5001
5002 void advance_to(iterator __it) { _M_out = std::move(__it); }
5003 };
5004
5005
5006/// @cond undocumented
5007namespace __format
5008{
5009 // Abstract base class defining an interface for scanning format strings.
5010 // Scan the characters in a format string, dividing it up into strings of
5011 // ordinary characters, escape sequences, and replacement fields.
5012 // Call virtual functions for derived classes to parse format-specifiers
5013 // or write formatted output.
5014 template<typename _CharT>
5015 struct _Scanner
5016 {
5017 using iterator = typename basic_format_parse_context<_CharT>::iterator;
5018
5019 struct _Parse_context : basic_format_parse_context<_CharT>
5020 {
5021 using basic_format_parse_context<_CharT>::basic_format_parse_context;
5022 const _Arg_t* _M_types = nullptr;
5023 } _M_pc;
5024
5025 constexpr explicit
5026 _Scanner(basic_string_view<_CharT> __str, size_t __nargs = (size_t)-1)
5027 : _M_pc(__str, __nargs)
5028 { }
5029
5030 constexpr iterator begin() const noexcept { return _M_pc.begin(); }
5031 constexpr iterator end() const noexcept { return _M_pc.end(); }
5032
5033 constexpr void
5034 _M_scan()
5035 {
5036 basic_string_view<_CharT> __fmt = _M_fmt_str();
5037
5038 if (__fmt.size() == 2 && __fmt[0] == '{' && __fmt[1] == '}')
5039 {
5040 _M_pc.advance_to(begin() + 1);
5041 _M_format_arg(_M_pc.next_arg_id());
5042 return;
5043 }
5044
5045 size_t __lbr = __fmt.find('{');
5046 size_t __rbr = __fmt.find('}');
5047
5048 while (__fmt.size())
5049 {
5050 auto __cmp = __lbr <=> __rbr;
5051 if (__cmp == 0)
5052 {
5053 _M_on_chars(end());
5054 _M_pc.advance_to(end());
5055 return;
5056 }
5057 else if (__cmp < 0)
5058 {
5059 if (__lbr + 1 == __fmt.size()
5060 || (__rbr == __fmt.npos && __fmt[__lbr + 1] != '{'))
5061 __format::__unmatched_left_brace_in_format_string();
5062 const bool __is_escape = __fmt[__lbr + 1] == '{';
5063 iterator __last = begin() + __lbr + int(__is_escape);
5064 _M_on_chars(__last);
5065 _M_pc.advance_to(__last + 1);
5066 __fmt = _M_fmt_str();
5067 if (__is_escape)
5068 {
5069 if (__rbr != __fmt.npos)
5070 __rbr -= __lbr + 2;
5071 __lbr = __fmt.find('{');
5072 }
5073 else
5074 {
5075 _M_on_replacement_field();
5076 __fmt = _M_fmt_str();
5077 __lbr = __fmt.find('{');
5078 __rbr = __fmt.find('}');
5079 }
5080 }
5081 else
5082 {
5083 if (++__rbr == __fmt.size() || __fmt[__rbr] != '}')
5084 __format::__unmatched_right_brace_in_format_string();
5085 iterator __last = begin() + __rbr;
5086 _M_on_chars(__last);
5087 _M_pc.advance_to(__last + 1);
5088 __fmt = _M_fmt_str();
5089 if (__lbr != __fmt.npos)
5090 __lbr -= __rbr + 1;
5091 __rbr = __fmt.find('}');
5092 }
5093 }
5094 }
5095
5096 constexpr basic_string_view<_CharT>
5097 _M_fmt_str() const noexcept
5098 { return {begin(), end()}; }
5099
5100 constexpr virtual void _M_on_chars(iterator) { }
5101
5102 constexpr void _M_on_replacement_field()
5103 {
5104 auto __next = begin();
5105
5106 size_t __id;
5107 if (*__next == '}')
5108 __id = _M_pc.next_arg_id();
5109 else if (*__next == ':')
5110 {
5111 __id = _M_pc.next_arg_id();
5112 _M_pc.advance_to(++__next);
5113 }
5114 else
5115 {
5116 auto [__i, __ptr] = __format::__parse_arg_id(begin(), end());
5117 if (!__ptr || !(*__ptr == '}' || *__ptr == ':'))
5118 __format::__invalid_arg_id_in_format_string();
5119 _M_pc.check_arg_id(__id = __i);
5120 if (*__ptr == ':')
5121 {
5122 _M_pc.advance_to(++__ptr);
5123 }
5124 else
5125 _M_pc.advance_to(__ptr);
5126 }
5127 _M_format_arg(__id);
5128 if (begin() == end() || *begin() != '}')
5129 __format::__unmatched_left_brace_in_format_string();
5130 _M_pc.advance_to(begin() + 1); // Move past '}'
5131 }
5132
5133 constexpr virtual void _M_format_arg(size_t __id) = 0;
5134 };
5135
5136 // Process a format string and format the arguments in the context.
5137 template<typename _Out, typename _CharT>
5138 class _Formatting_scanner : public _Scanner<_CharT>
5139 {
5140 public:
5141 _Formatting_scanner(basic_format_context<_Out, _CharT>& __fc,
5142 basic_string_view<_CharT> __str)
5143 : _Scanner<_CharT>(__str), _M_fc(__fc)
5144 { }
5145
5146 private:
5147 basic_format_context<_Out, _CharT>& _M_fc;
5148
5149 using iterator = typename _Scanner<_CharT>::iterator;
5150
5151 constexpr void
5152 _M_on_chars(iterator __last) override
5153 {
5154 basic_string_view<_CharT> __str(this->begin(), __last);
5155 _M_fc.advance_to(__format::__write(_M_fc.out(), __str));
5156 }
5157
5158 constexpr void
5159 _M_format_arg(size_t __id) override
5160 {
5161 using _Context = basic_format_context<_Out, _CharT>;
5162 using handle = typename basic_format_arg<_Context>::handle;
5163
5164 __format::__visit_format_arg([this](auto& __arg) {
5165 using _Type = remove_reference_t<decltype(__arg)>;
5166 using _Formatter = typename _Context::template formatter_type<_Type>;
5167 if constexpr (is_same_v<_Type, monostate>)
5168 __format::__invalid_arg_id_in_format_string();
5169 else if constexpr (is_same_v<_Type, handle>)
5170 __arg.format(this->_M_pc, this->_M_fc);
5171 else if constexpr (is_default_constructible_v<_Formatter>)
5172 {
5173 _Formatter __f;
5174 this->_M_pc.advance_to(__f.parse(this->_M_pc));
5175 this->_M_fc.advance_to(__f.format(__arg, this->_M_fc));
5176 }
5177 else
5178 static_assert(__format::__formattable_with<_Type, _Context>);
5179 }, _M_fc.arg(__id));
5180 }
5181 };
5182
5183 template<typename _CharT, typename _Tp>
5184 consteval _Arg_t
5185 __to_arg_t_enum() noexcept
5186 {
5187 using _Context = __format::__format_context<_CharT>;
5188 using _Fmt_arg = basic_format_arg<_Context>;
5189 using _NormalizedTp = typename _Fmt_arg::template _Normalize<_Tp>;
5190 return _Fmt_arg::template _S_to_enum<_NormalizedTp>();
5191 }
5192
5193 // Validate a format string for Args.
5194 template<typename _CharT, typename... _Args>
5195 class _Checking_scanner : public _Scanner<_CharT>
5196 {
5197 static_assert(
5198 (is_default_constructible_v<formatter<_Args, _CharT>> && ...),
5199 "std::formatter must be specialized for each type being formatted");
5200
5201 public:
5202 consteval
5203 _Checking_scanner(basic_string_view<_CharT> __str)
5204 : _Scanner<_CharT>(__str, sizeof...(_Args))
5205 {
5206#if __cpp_lib_format >= 202305L
5207 this->_M_pc._M_types = _M_types.data();
5208#endif
5209 }
5210
5211 private:
5212 constexpr void
5213 _M_format_arg(size_t __id) override
5214 {
5215 if constexpr (sizeof...(_Args) != 0)
5216 {
5217 if (__id < sizeof...(_Args))
5218 {
5219 _M_parse_format_spec<_Args...>(__id);
5220 return;
5221 }
5222 }
5223 __builtin_unreachable();
5224 }
5225
5226 template<typename _Tp, typename... _OtherArgs>
5227 constexpr void
5228 _M_parse_format_spec(size_t __id)
5229 {
5230 if (__id == 0)
5231 {
5232 formatter<_Tp, _CharT> __f;
5233 this->_M_pc.advance_to(__f.parse(this->_M_pc));
5234 }
5235 else if constexpr (sizeof...(_OtherArgs) != 0)
5236 _M_parse_format_spec<_OtherArgs...>(__id - 1);
5237 else
5238 __builtin_unreachable();
5239 }
5240
5241#if __cpp_lib_format >= 202305L
5242 array<_Arg_t, sizeof...(_Args)>
5243 _M_types{ { __format::__to_arg_t_enum<_CharT, _Args>()... } };
5244#endif
5245 };
5246
5247 template<typename _Out, typename _CharT, typename _Context>
5248 inline _Out
5249 __do_vformat_to(_Out __out, basic_string_view<_CharT> __fmt,
5250 const basic_format_args<_Context>& __args,
5251 const locale* __loc)
5252 {
5253 _Iter_sink<_CharT, _Out> __sink(std::move(__out));
5254 _Sink_iter<_CharT> __sink_out;
5255
5256 if constexpr (is_same_v<_Out, _Sink_iter<_CharT>>)
5257 __sink_out = __out; // Already a sink iterator, safe to use post-move.
5258 else
5259 __sink_out = __sink.out();
5260
5261 if constexpr (is_same_v<_CharT, char>)
5262 // Fast path for "{}" format strings and simple format arg types.
5263 if (__fmt.size() == 2 && __fmt[0] == '{' && __fmt[1] == '}')
5264 {
5265 bool __done = false;
5266 __format::__visit_format_arg([&](auto& __arg) {
5267 using _Tp = remove_cvref_t<decltype(__arg)>;
5268 if constexpr (is_same_v<_Tp, bool>)
5269 {
5270 size_t __len = 4 + !__arg;
5271 const char* __chars[] = { "false", "true" };
5272 if (auto __res = __sink_out._M_reserve(__len))
5273 {
5274 __builtin_memcpy(__res.get(), __chars[__arg], __len);
5275 __res._M_bump(__len);
5276 __done = true;
5277 }
5278 }
5279 else if constexpr (is_same_v<_Tp, char>)
5280 {
5281 if (auto __res = __sink_out._M_reserve(1))
5282 {
5283 *__res.get() = __arg;
5284 __res._M_bump(1);
5285 __done = true;
5286 }
5287 }
5288 else if constexpr (is_integral_v<_Tp>)
5289 {
5290 make_unsigned_t<_Tp> __uval;
5291 const bool __neg = __arg < 0;
5292 if (__neg)
5293 __uval = make_unsigned_t<_Tp>(~__arg) + 1u;
5294 else
5295 __uval = __arg;
5296 const auto __n = __detail::__to_chars_len(__uval);
5297 if (auto __res = __sink_out._M_reserve(__n + __neg))
5298 {
5299 auto __ptr = __res.get();
5300 *__ptr = '-';
5301 __detail::__to_chars_10_impl(__ptr + (int)__neg, __n,
5302 __uval);
5303 __res._M_bump(__n + __neg);
5304 __done = true;
5305 }
5306 }
5307 else if constexpr (is_convertible_v<_Tp, string_view>)
5308 {
5309 string_view __sv = __arg;
5310 if (auto __res = __sink_out._M_reserve(__sv.size()))
5311 {
5312 __builtin_memcpy(__res.get(), __sv.data(), __sv.size());
5313 __res._M_bump(__sv.size());
5314 __done = true;
5315 }
5316 }
5317 }, __args.get(0));
5318
5319 if (__done)
5320 {
5321 if constexpr (is_same_v<_Out, _Sink_iter<_CharT>>)
5322 return __sink_out;
5323 else
5324 return std::move(__sink)._M_finish().out;
5325 }
5326 }
5327
5328 auto __ctx = __loc == nullptr
5329 ? _Context(__args, __sink_out)
5330 : _Context(__args, __sink_out, *__loc);
5331 _Formatting_scanner<_Sink_iter<_CharT>, _CharT> __scanner(__ctx, __fmt);
5332 __scanner._M_scan();
5333
5334 if constexpr (is_same_v<_Out, _Sink_iter<_CharT>>)
5335 return __ctx.out();
5336 else
5337 return std::move(__sink)._M_finish().out;
5338 }
5339#pragma GCC diagnostic pop
5340
5341} // namespace __format
5342/// @endcond
5343
5344#if __cpp_lib_format >= 202305L // >= C++26
5345 /// @cond undocumented
5346 // Common implementation of check_dynamic_spec{,_string,_integral}
5347 template<typename _CharT>
5348 template<typename... _Ts>
5349 consteval void
5350 basic_format_parse_context<_CharT>::
5351 __check_dynamic_spec(size_t __id) noexcept
5352 {
5353 if (__id >= _M_num_args)
5354 __format::__invalid_arg_id_in_format_string();
5355 if constexpr (sizeof...(_Ts) != 0)
5356 {
5357 using _Parse_ctx = __format::_Scanner<_CharT>::_Parse_context;
5358 auto __arg = static_cast<_Parse_ctx*>(this)->_M_types[__id];
5359 __format::_Arg_t __types[] = {
5360 __format::__to_arg_t_enum<_CharT, _Ts>()...
5361 };
5362 for (auto __t : __types)
5363 if (__arg == __t)
5364 return;
5365 }
5366 __invalid_dynamic_spec("arg(id) type does not match");
5367 }
5368 /// @endcond
5369#endif
5370
5371 template<typename _CharT, typename... _Args>
5372 template<typename _Tp>
5373 requires convertible_to<const _Tp&, basic_string_view<_CharT>>
5374 consteval
5375 basic_format_string<_CharT, _Args...>::
5376 basic_format_string(const _Tp& __s)
5377 : _M_str(__s)
5378 {
5379 __format::_Checking_scanner<_CharT, remove_cvref_t<_Args>...>
5380 __scanner(_M_str);
5381 __scanner._M_scan();
5382 }
5383
5384 // [format.functions], formatting functions
5385
5386 template<typename _Out> requires output_iterator<_Out, const char&>
5387 [[__gnu__::__always_inline__]]
5388 inline _Out
5389 vformat_to(_Out __out, string_view __fmt, format_args __args)
5390 { return __format::__do_vformat_to(std::move(__out), __fmt, __args); }
5391
5392#ifdef _GLIBCXX_USE_WCHAR_T
5393 template<typename _Out> requires output_iterator<_Out, const wchar_t&>
5394 [[__gnu__::__always_inline__]]
5395 inline _Out
5396 vformat_to(_Out __out, wstring_view __fmt, wformat_args __args)
5397 { return __format::__do_vformat_to(std::move(__out), __fmt, __args); }
5398#endif
5399
5400 template<typename _Out> requires output_iterator<_Out, const char&>
5401 [[__gnu__::__always_inline__]]
5402 inline _Out
5403 vformat_to(_Out __out, const locale& __loc, string_view __fmt,
5404 format_args __args)
5405 {
5406 return __format::__do_vformat_to(std::move(__out), __fmt, __args, &__loc);
5407 }
5408
5409#ifdef _GLIBCXX_USE_WCHAR_T
5410 template<typename _Out> requires output_iterator<_Out, const wchar_t&>
5411 [[__gnu__::__always_inline__]]
5412 inline _Out
5413 vformat_to(_Out __out, const locale& __loc, wstring_view __fmt,
5414 wformat_args __args)
5415 {
5416 return __format::__do_vformat_to(std::move(__out), __fmt, __args, &__loc);
5417 }
5418#endif
5419
5420 [[nodiscard]]
5421 inline string
5422 vformat(string_view __fmt, format_args __args)
5423 {
5424 __format::_Str_sink<char> __buf;
5425 std::vformat_to(__buf.out(), __fmt, __args);
5426 return std::move(__buf).get();
5427 }
5428
5429#ifdef _GLIBCXX_USE_WCHAR_T
5430 [[nodiscard]]
5431 inline wstring
5432 vformat(wstring_view __fmt, wformat_args __args)
5433 {
5434 __format::_Str_sink<wchar_t> __buf;
5435 std::vformat_to(__buf.out(), __fmt, __args);
5436 return std::move(__buf).get();
5437 }
5438#endif
5439
5440 [[nodiscard]]
5441 inline string
5442 vformat(const locale& __loc, string_view __fmt, format_args __args)
5443 {
5444 __format::_Str_sink<char> __buf;
5445 std::vformat_to(__buf.out(), __loc, __fmt, __args);
5446 return std::move(__buf).get();
5447 }
5448
5449#ifdef _GLIBCXX_USE_WCHAR_T
5450 [[nodiscard]]
5451 inline wstring
5452 vformat(const locale& __loc, wstring_view __fmt, wformat_args __args)
5453 {
5454 __format::_Str_sink<wchar_t> __buf;
5455 std::vformat_to(__buf.out(), __loc, __fmt, __args);
5456 return std::move(__buf).get();
5457 }
5458#endif
5459
5460 template<typename... _Args>
5461 [[nodiscard]]
5462 inline string
5463 format(format_string<_Args...> __fmt, _Args&&... __args)
5464 { return std::vformat(__fmt.get(), std::make_format_args(__args...)); }
5465
5466#ifdef _GLIBCXX_USE_WCHAR_T
5467 template<typename... _Args>
5468 [[nodiscard]]
5469 inline wstring
5470 format(wformat_string<_Args...> __fmt, _Args&&... __args)
5471 { return std::vformat(__fmt.get(), std::make_wformat_args(__args...)); }
5472#endif
5473
5474 template<typename... _Args>
5475 [[nodiscard]]
5476 inline string
5477 format(const locale& __loc, format_string<_Args...> __fmt,
5478 _Args&&... __args)
5479 {
5480 return std::vformat(__loc, __fmt.get(),
5481 std::make_format_args(__args...));
5482 }
5483
5484#ifdef _GLIBCXX_USE_WCHAR_T
5485 template<typename... _Args>
5486 [[nodiscard]]
5487 inline wstring
5488 format(const locale& __loc, wformat_string<_Args...> __fmt,
5489 _Args&&... __args)
5490 {
5491 return std::vformat(__loc, __fmt.get(),
5492 std::make_wformat_args(__args...));
5493 }
5494#endif
5495
5496 template<typename _Out, typename... _Args>
5497 requires output_iterator<_Out, const char&>
5498 inline _Out
5499 format_to(_Out __out, format_string<_Args...> __fmt, _Args&&... __args)
5500 {
5501 return std::vformat_to(std::move(__out), __fmt.get(),
5502 std::make_format_args(__args...));
5503 }
5504
5505#ifdef _GLIBCXX_USE_WCHAR_T
5506 template<typename _Out, typename... _Args>
5507 requires output_iterator<_Out, const wchar_t&>
5508 inline _Out
5509 format_to(_Out __out, wformat_string<_Args...> __fmt, _Args&&... __args)
5510 {
5511 return std::vformat_to(std::move(__out), __fmt.get(),
5512 std::make_wformat_args(__args...));
5513 }
5514#endif
5515
5516 template<typename _Out, typename... _Args>
5517 requires output_iterator<_Out, const char&>
5518 inline _Out
5519 format_to(_Out __out, const locale& __loc, format_string<_Args...> __fmt,
5520 _Args&&... __args)
5521 {
5522 return std::vformat_to(std::move(__out), __loc, __fmt.get(),
5523 std::make_format_args(__args...));
5524 }
5525
5526#ifdef _GLIBCXX_USE_WCHAR_T
5527 template<typename _Out, typename... _Args>
5528 requires output_iterator<_Out, const wchar_t&>
5529 inline _Out
5530 format_to(_Out __out, const locale& __loc, wformat_string<_Args...> __fmt,
5531 _Args&&... __args)
5532 {
5533 return std::vformat_to(std::move(__out), __loc, __fmt.get(),
5534 std::make_wformat_args(__args...));
5535 }
5536#endif
5537
5538 template<typename _Out, typename... _Args>
5539 requires output_iterator<_Out, const char&>
5540 inline format_to_n_result<_Out>
5541 format_to_n(_Out __out, iter_difference_t<_Out> __n,
5542 format_string<_Args...> __fmt, _Args&&... __args)
5543 {
5544 __format::_Iter_sink<char, _Out> __sink(std::move(__out), __n);
5545 std::vformat_to(__sink.out(), __fmt.get(),
5546 std::make_format_args(__args...));
5547 return std::move(__sink)._M_finish();
5548 }
5549
5550#ifdef _GLIBCXX_USE_WCHAR_T
5551 template<typename _Out, typename... _Args>
5552 requires output_iterator<_Out, const wchar_t&>
5553 inline format_to_n_result<_Out>
5554 format_to_n(_Out __out, iter_difference_t<_Out> __n,
5555 wformat_string<_Args...> __fmt, _Args&&... __args)
5556 {
5557 __format::_Iter_sink<wchar_t, _Out> __sink(std::move(__out), __n);
5558 std::vformat_to(__sink.out(), __fmt.get(),
5559 std::make_wformat_args(__args...));
5560 return std::move(__sink)._M_finish();
5561 }
5562#endif
5563
5564 template<typename _Out, typename... _Args>
5565 requires output_iterator<_Out, const char&>
5566 inline format_to_n_result<_Out>
5567 format_to_n(_Out __out, iter_difference_t<_Out> __n, const locale& __loc,
5568 format_string<_Args...> __fmt, _Args&&... __args)
5569 {
5570 __format::_Iter_sink<char, _Out> __sink(std::move(__out), __n);
5571 std::vformat_to(__sink.out(), __loc, __fmt.get(),
5572 std::make_format_args(__args...));
5573 return std::move(__sink)._M_finish();
5574 }
5575
5576#ifdef _GLIBCXX_USE_WCHAR_T
5577 template<typename _Out, typename... _Args>
5578 requires output_iterator<_Out, const wchar_t&>
5579 inline format_to_n_result<_Out>
5580 format_to_n(_Out __out, iter_difference_t<_Out> __n, const locale& __loc,
5581 wformat_string<_Args...> __fmt, _Args&&... __args)
5582 {
5583 __format::_Iter_sink<wchar_t, _Out> __sink(std::move(__out), __n);
5584 std::vformat_to(__sink.out(), __loc, __fmt.get(),
5585 std::make_wformat_args(__args...));
5586 return std::move(__sink)._M_finish();
5587 }
5588#endif
5589
5590/// @cond undocumented
5591namespace __format
5592{
5593#if 1
5594 template<typename _CharT>
5595 class _Counting_sink final : public _Iter_sink<_CharT, _CharT*>
5596 {
5597 public:
5598 _Counting_sink() : _Iter_sink<_CharT, _CharT*>(nullptr, 0) { }
5599
5600 [[__gnu__::__always_inline__]]
5601 size_t
5602 count() const
5603 { return this->_M_count + this->_M_used().size(); }
5604 };
5605#else
5606 template<typename _CharT>
5607 class _Counting_sink : public _Buf_sink<_CharT>
5608 {
5609 size_t _M_count = 0;
5610
5611 void
5612 _M_overflow() override
5613 {
5614 if (!std::is_constant_evaluated())
5615 _M_count += this->_M_used().size();
5616 this->_M_rewind();
5617 }
5618
5619 public:
5620 _Counting_sink() = default;
5621
5622 [[__gnu__::__always_inline__]]
5623 size_t
5624 count() noexcept
5625 {
5626 _Counting_sink::_M_overflow();
5627 return _M_count;
5628 }
5629 };
5630#endif
5631} // namespace __format
5632/// @endcond
5633
5634 template<typename... _Args>
5635 [[nodiscard]]
5636 inline size_t
5637 formatted_size(format_string<_Args...> __fmt, _Args&&... __args)
5638 {
5639 __format::_Counting_sink<char> __buf;
5640 std::vformat_to(__buf.out(), __fmt.get(),
5641 std::make_format_args(__args...));
5642 return __buf.count();
5643 }
5644
5645#ifdef _GLIBCXX_USE_WCHAR_T
5646 template<typename... _Args>
5647 [[nodiscard]]
5648 inline size_t
5649 formatted_size(wformat_string<_Args...> __fmt, _Args&&... __args)
5650 {
5651 __format::_Counting_sink<wchar_t> __buf;
5652 std::vformat_to(__buf.out(), __fmt.get(),
5653 std::make_wformat_args(__args...));
5654 return __buf.count();
5655 }
5656#endif
5657
5658 template<typename... _Args>
5659 [[nodiscard]]
5660 inline size_t
5661 formatted_size(const locale& __loc, format_string<_Args...> __fmt,
5662 _Args&&... __args)
5663 {
5664 __format::_Counting_sink<char> __buf;
5665 std::vformat_to(__buf.out(), __loc, __fmt.get(),
5666 std::make_format_args(__args...));
5667 return __buf.count();
5668 }
5669
5670#ifdef _GLIBCXX_USE_WCHAR_T
5671 template<typename... _Args>
5672 [[nodiscard]]
5673 inline size_t
5674 formatted_size(const locale& __loc, wformat_string<_Args...> __fmt,
5675 _Args&&... __args)
5676 {
5677 __format::_Counting_sink<wchar_t> __buf;
5678 std::vformat_to(__buf.out(), __loc, __fmt.get(),
5679 std::make_wformat_args(__args...));
5680 return __buf.count();
5681 }
5682#endif
5683
5684#if __glibcxx_format_ranges // C++ >= 23 && HOSTED
5685 /// @cond undocumented
5686 template<typename _Tp>
5687 consteval range_format
5688 __fmt_kind()
5689 {
5690 using _Ref = ranges::range_reference_t<_Tp>;
5691 if constexpr (is_same_v<remove_cvref_t<_Ref>, _Tp>)
5692 return range_format::disabled;
5693 else if constexpr (requires { typename _Tp::key_type; })
5694 {
5695 if constexpr (requires { typename _Tp::mapped_type; })
5696 {
5697 using _Up = remove_cvref_t<_Ref>;
5698 if constexpr (__is_pair<_Up>)
5699 return range_format::map;
5700 else if constexpr (__is_specialization_of<_Up, tuple>)
5701 if constexpr (tuple_size_v<_Up> == 2)
5702 return range_format::map;
5703 }
5704 return range_format::set;
5705 }
5706 else
5707 return range_format::sequence;
5708 }
5709 /// @endcond
5710
5711 /// A constant determining how a range should be formatted.
5712 template<ranges::input_range _Rg> requires same_as<_Rg, remove_cvref_t<_Rg>>
5713 constexpr range_format format_kind<_Rg> = __fmt_kind<_Rg>();
5714
5715/// @cond undocumented
5716namespace __format
5717{
5718 template<typename _CharT, typename _Out, typename _Callback>
5719 typename basic_format_context<_Out, _CharT>::iterator
5720 __format_padded(basic_format_context<_Out, _CharT>& __fc,
5721 const _Spec<_CharT>& __spec,
5722 _Callback&& __call)
5723 {
5724 if constexpr (is_same_v<_Out, _Drop_iter<_CharT>>)
5725 return __fc.out();
5726 else
5727 {
5728 // This is required to implement formatting with padding,
5729 // as we need to format to temporary buffer, using the same iterator.
5730 static_assert(is_same_v<_Out, _Sink_iter<_CharT>>);
5731
5732 const size_t __padwidth = __spec._M_get_width(__fc);
5733 if (__padwidth == 0)
5734 return __call(__fc);
5735
5736 struct _Restore_out
5737 {
5738 _Restore_out(basic_format_context<_Sink_iter<_CharT>, _CharT>& __fc)
5739 : _M_ctx(std::addressof(__fc)), _M_out(__fc.out())
5740 { }
5741
5742 void
5743 _M_disarm()
5744 { _M_ctx = nullptr; }
5745
5746 ~_Restore_out()
5747 {
5748 if (_M_ctx)
5749 _M_ctx->advance_to(_M_out);
5750 }
5751
5752 private:
5753 basic_format_context<_Sink_iter<_CharT>, _CharT>* _M_ctx;
5754 _Sink_iter<_CharT> _M_out;
5755 };
5756
5757 _Restore_out __restore(__fc);
5758 _Padding_sink<_Sink_iter<_CharT>, _CharT> __sink(__fc.out(), __padwidth);
5759 __fc.advance_to(__sink.out());
5760 __call(__fc);
5761 __fc.advance_to(__sink._M_finish(__spec._M_align, __spec._M_fill));
5762 __restore._M_disarm();
5763 return __fc.out();
5764 }
5765 }
5766
5767 template<size_t _Pos, typename _Tp, typename _CharT>
5768 struct __indexed_formatter_storage
5769 {
5770 constexpr void
5771 _M_parse()
5772 {
5773 basic_format_parse_context<_CharT> __pc({});
5774 if (_M_formatter.parse(__pc) != __pc.end())
5775 __format::__failed_to_parse_format_spec();
5776 }
5777
5778 template<typename _Out>
5779 void
5780 _M_format(__maybe_const<_Tp, _CharT>& __elem,
5781 basic_format_context<_Out, _CharT>& __fc,
5782 basic_string_view<_CharT> __sep) const
5783 {
5784 if constexpr (_Pos != 0)
5785 __fc.advance_to(__format::__write(__fc.out(), __sep));
5786 __fc.advance_to(_M_formatter.format(__elem, __fc));
5787 }
5788
5789 [[__gnu__::__always_inline__]]
5790 constexpr void
5791 set_debug_format()
5792 {
5793 if constexpr (__has_debug_format<formatter<_Tp, _CharT>>)
5794 _M_formatter.set_debug_format();
5795 }
5796
5797 private:
5798 formatter<_Tp, _CharT> _M_formatter;
5799 };
5800
5801 template<typename _CharT, typename... _Tps>
5802 class __tuple_formatter
5803 {
5804 using _String_view = basic_string_view<_CharT>;
5805 using _Seps = __format::_Separators<_CharT>;
5806
5807 public:
5808 constexpr void
5809 set_separator(basic_string_view<_CharT> __sep) noexcept
5810 { _M_sep = __sep; }
5811
5812 constexpr void
5813 set_brackets(basic_string_view<_CharT> __open,
5814 basic_string_view<_CharT> __close) noexcept
5815 {
5816 _M_open = __open;
5817 _M_close = __close;
5818 }
5819
5820 // We deviate from standard, that declares this as template accepting
5821 // unconstrained ParseContext type, which seems unimplementable.
5822 constexpr typename basic_format_parse_context<_CharT>::iterator
5823 parse(basic_format_parse_context<_CharT>& __pc)
5824 {
5825 auto __first = __pc.begin();
5826 const auto __last = __pc.end();
5827 __format::_Spec<_CharT> __spec{};
5828
5829 auto __finished = [&]
5830 {
5831 if (__first != __last && *__first != '}')
5832 return false;
5833
5834 _M_spec = __spec;
5835 _M_felems._M_parse();
5836 _M_felems.set_debug_format();
5837 return true;
5838 };
5839
5840 if (__finished())
5841 return __first;
5842
5843 __first = __spec._M_parse_fill_and_align(__first, __last, "{:");
5844 if (__finished())
5845 return __first;
5846
5847 __first = __spec._M_parse_width(__first, __last, __pc);
5848 if (__finished())
5849 return __first;
5850
5851 if (*__first == 'n')
5852 {
5853 ++__first;
5854 _M_open = _M_close = _String_view();
5855 }
5856 else if (*__first == 'm')
5857 {
5858 ++__first;
5859 if constexpr (sizeof...(_Tps) == 2)
5860 {
5861 _M_sep = _Seps::_S_colon();
5862 _M_open = _M_close = _String_view();
5863 }
5864 else
5865 __throw_format_error("format error: 'm' specifier requires range"
5866 " of pair or tuple of two elements");
5867 }
5868
5869 if (__finished())
5870 return __first;
5871
5872 __format::__failed_to_parse_format_spec();
5873 }
5874
5875 protected:
5876 template<typename _Tuple, typename _Out, size_t... _Ids>
5877 typename basic_format_context<_Out, _CharT>::iterator
5878 _M_format(_Tuple& __tuple, index_sequence<_Ids...>,
5879 basic_format_context<_Out, _CharT>& __fc) const
5880 { return _M_format_elems(std::get<_Ids>(__tuple)..., __fc); }
5881
5882 template<typename _Out>
5883 typename basic_format_context<_Out, _CharT>::iterator
5884 _M_format_elems(__maybe_const<_Tps, _CharT>&... __elems,
5885 basic_format_context<_Out, _CharT>& __fc) const
5886 {
5887 return __format::__format_padded(
5888 __fc, _M_spec,
5889 [this, &__elems...](basic_format_context<_Out, _CharT>& __nfc)
5890 {
5891 __nfc.advance_to(__format::__write(__nfc.out(), _M_open));
5892 _M_felems._M_format(__elems..., __nfc, _M_sep);
5893 return __format::__write(__nfc.out(), _M_close);
5894 });
5895 }
5896
5897 private:
5898 template<size_t... _Ids>
5899 struct __formatters_storage
5900 : __indexed_formatter_storage<_Ids, _Tps, _CharT>...
5901 {
5902 template<size_t _Id, typename _Up>
5903 using _Base = __indexed_formatter_storage<_Id, _Up, _CharT>;
5904
5905 constexpr void
5906 _M_parse()
5907 {
5908 (_Base<_Ids, _Tps>::_M_parse(), ...);
5909 }
5910
5911 template<typename _Out>
5912 void
5913 _M_format(__maybe_const<_Tps, _CharT>&... __elems,
5914 basic_format_context<_Out, _CharT>& __fc,
5915 _String_view __sep) const
5916 {
5917 (_Base<_Ids, _Tps>::_M_format(__elems, __fc, __sep), ...);
5918 }
5919
5920 constexpr void
5921 set_debug_format()
5922 {
5923 (_Base<_Ids, _Tps>::set_debug_format(), ...);
5924 }
5925 };
5926
5927 template<size_t... _Ids>
5928 static auto
5929 _S_create_storage(index_sequence<_Ids...>)
5930 -> __formatters_storage<_Ids...>;
5931 using _Formatters
5932 = decltype(_S_create_storage(index_sequence_for<_Tps...>()));
5933
5934 _Spec<_CharT> _M_spec{};
5935 _String_view _M_open = _Seps::_S_parens().substr(0, 1);
5936 _String_view _M_close = _Seps::_S_parens().substr(1, 1);
5937 _String_view _M_sep = _Seps::_S_comma();
5938 _Formatters _M_felems;
5939 };
5940
5941 template<typename _Tp>
5942 concept __is_map_formattable
5943 = __is_pair<_Tp> || (__is_tuple_v<_Tp> && tuple_size_v<_Tp> == 2);
5944
5945} // namespace __format
5946/// @endcond
5947
5948 // [format.tuple] Tuple formatter
5949 template<__format::__char _CharT, formattable<_CharT> _Fp,
5950 formattable<_CharT> _Sp>
5951 struct formatter<pair<_Fp, _Sp>, _CharT>
5952 : __format::__tuple_formatter<_CharT, remove_cvref_t<_Fp>,
5953 remove_cvref_t<_Sp>>
5954 {
5955 private:
5956 using __maybe_const_pair
5957 = __conditional_t<formattable<const _Fp, _CharT>
5958 && formattable<const _Sp, _CharT>,
5959 const pair<_Fp, _Sp>, pair<_Fp, _Sp>>;
5960 public:
5961 // We deviate from standard, that declares this as template accepting
5962 // unconstrained FormatContext type, which seems unimplementable.
5963 template<typename _Out>
5964 typename basic_format_context<_Out, _CharT>::iterator
5965 format(__maybe_const_pair& __p,
5966 basic_format_context<_Out, _CharT>& __fc) const
5967 { return this->_M_format_elems(__p.first, __p.second, __fc); }
5968 };
5969
5970#if __glibcxx_print >= 202406L
5971 // _GLIBCXX_RESOLVE_LIB_DEFECTS
5972 // 4399. enable_nonlocking_formatter_optimization for pair and tuple needs remove_cvref_t
5973 template<typename _Fp, typename _Sp>
5974 constexpr bool enable_nonlocking_formatter_optimization<pair<_Fp, _Sp>>
5975 = enable_nonlocking_formatter_optimization<remove_cvref_t<_Fp>>
5976 && enable_nonlocking_formatter_optimization<remove_cvref_t<_Sp>>;
5977#endif
5978
5979 template<__format::__char _CharT, formattable<_CharT>... _Tps>
5980 struct formatter<tuple<_Tps...>, _CharT>
5981 : __format::__tuple_formatter<_CharT, remove_cvref_t<_Tps>...>
5982 {
5983 private:
5984 using __maybe_const_tuple
5985 = __conditional_t<(formattable<const _Tps, _CharT> && ...),
5986 const tuple<_Tps...>, tuple<_Tps...>>;
5987 public:
5988 // We deviate from standard, that declares this as template accepting
5989 // unconstrained FormatContext type, which seems unimplementable.
5990 template<typename _Out>
5991 typename basic_format_context<_Out, _CharT>::iterator
5992 format(__maybe_const_tuple& __t,
5993 basic_format_context<_Out, _CharT>& __fc) const
5994 { return this->_M_format(__t, index_sequence_for<_Tps...>(), __fc); }
5995 };
5996
5997#if __glibcxx_print >= 202406L
5998 // _GLIBCXX_RESOLVE_LIB_DEFECTS
5999 // 4399. enable_nonlocking_formatter_optimization for pair and tuple needs remove_cvref_t
6000 template<typename... _Tps>
6001 constexpr bool enable_nonlocking_formatter_optimization<tuple<_Tps...>>
6002 = (enable_nonlocking_formatter_optimization<remove_cvref_t<_Tps>> && ...);
6003#endif
6004
6005 // [format.range.formatter], class template range_formatter
6006 template<typename _Tp, __format::__char _CharT>
6007 requires same_as<remove_cvref_t<_Tp>, _Tp> && formattable<_Tp, _CharT>
6008 class range_formatter
6009 {
6010 using _String_view = basic_string_view<_CharT>;
6011 using _Seps = __format::_Separators<_CharT>;
6012
6013 public:
6014 constexpr void
6015 set_separator(basic_string_view<_CharT> __sep) noexcept
6016 { _M_sep = __sep; }
6017
6018 constexpr void
6019 set_brackets(basic_string_view<_CharT> __open,
6020 basic_string_view<_CharT> __close) noexcept
6021 {
6022 _M_open = __open;
6023 _M_close = __close;
6024 }
6025
6026 constexpr formatter<_Tp, _CharT>&
6027 underlying() noexcept
6028 { return _M_fval; }
6029
6030 constexpr const formatter<_Tp, _CharT>&
6031 underlying() const noexcept
6032 { return _M_fval; }
6033
6034 // We deviate from standard, that declares this as template accepting
6035 // unconstrained ParseContext type, which seems unimplementable.
6036 constexpr typename basic_format_parse_context<_CharT>::iterator
6037 parse(basic_format_parse_context<_CharT>& __pc)
6038 {
6039 auto __first = __pc.begin();
6040 const auto __last = __pc.end();
6041 __format::_Spec<_CharT> __spec{};
6042 bool __no_brace = false;
6043
6044 auto __finished = [&]
6045 { return __first == __last || *__first == '}'; };
6046
6047 auto __finalize = [&]
6048 {
6049 _M_spec = __spec;
6050 return __first;
6051 };
6052
6053 auto __parse_val = [&](_String_view __nfs = _String_view())
6054 {
6055 basic_format_parse_context<_CharT> __npc(__nfs);
6056 if (_M_fval.parse(__npc) != __npc.end())
6057 __format::__failed_to_parse_format_spec();
6058 if constexpr (__format::__has_debug_format<formatter<_Tp, _CharT>>)
6059 _M_fval.set_debug_format();
6060 return __finalize();
6061 };
6062
6063 if (__finished())
6064 return __parse_val();
6065
6066 __first = __spec._M_parse_fill_and_align(__first, __last, "{:");
6067 if (__finished())
6068 return __parse_val();
6069
6070 __first = __spec._M_parse_width(__first, __last, __pc);
6071 if (__finished())
6072 return __parse_val();
6073
6074 if (*__first == '?')
6075 {
6076 ++__first;
6077 __spec._M_debug = true;
6078 if (__finished() || *__first != 's')
6079 __throw_format_error("format error: '?' is allowed only in"
6080 " combination with 's'");
6081 }
6082
6083 if (*__first == 's')
6084 {
6085 ++__first;
6086 if constexpr (same_as<_Tp, _CharT>)
6087 {
6088 __spec._M_type = __format::_Pres_s;
6089 if (__finished())
6090 return __finalize();
6091 __throw_format_error("format error: element format specifier"
6092 " cannot be provided when 's' specifier is used");
6093 }
6094 else
6095 __throw_format_error("format error: 's' specifier requires"
6096 " range of character types");
6097 }
6098
6099 if (__finished())
6100 return __parse_val();
6101
6102 if (*__first == 'n')
6103 {
6104 ++__first;
6105 _M_open = _M_close = _String_view();
6106 __no_brace = true;
6107 }
6108
6109 if (__finished())
6110 return __parse_val();
6111
6112 if (*__first == 'm')
6113 {
6114 _String_view __m(__first, 1);
6115 ++__first;
6116 if constexpr (__format::__is_map_formattable<_Tp>)
6117 {
6118 _M_sep = _Seps::_S_comma();
6119 if (!__no_brace)
6120 {
6121 _M_open = _Seps::_S_braces().substr(0, 1);
6122 _M_close = _Seps::_S_braces().substr(1, 1);
6123 }
6124 if (__finished())
6125 return __parse_val(__m);
6126 __throw_format_error("format error: element format specifier"
6127 " cannot be provided when 'm' specifier is used");
6128 }
6129 else
6130 __throw_format_error("format error: 'm' specifier requires"
6131 " range of pairs or tuples of two elements");
6132 }
6133
6134 if (__finished())
6135 return __parse_val();
6136
6137 if (*__first == ':')
6138 {
6139 __pc.advance_to(++__first);
6140 __first = _M_fval.parse(__pc);
6141 }
6142
6143 if (__finished())
6144 return __finalize();
6145
6146 __format::__failed_to_parse_format_spec();
6147 }
6148
6149 // We deviate from standard, that declares this as template accepting
6150 // unconstrained FormatContext type, which seems unimplementable.
6151 template<ranges::input_range _Rg, typename _Out>
6152 requires formattable<ranges::range_reference_t<_Rg>, _CharT> &&
6153 same_as<remove_cvref_t<ranges::range_reference_t<_Rg>>, _Tp>
6154 typename basic_format_context<_Out, _CharT>::iterator
6155 format(_Rg&& __rg, basic_format_context<_Out, _CharT>& __fc) const
6156 {
6157 using _Range = remove_reference_t<_Rg>;
6158 if constexpr (__format::__simply_formattable_range<_Range, _CharT>)
6159 return _M_format<const _Range>(__rg, __fc);
6160 else
6161 return _M_format(__rg, __fc);
6162 }
6163
6164 private:
6165 template<ranges::input_range _Rg, typename _Out>
6166 typename basic_format_context<_Out, _CharT>::iterator
6167 _M_format(_Rg& __rg, basic_format_context<_Out, _CharT>& __fc) const
6168 {
6169 if constexpr (same_as<_Tp, _CharT>)
6170 if (_M_spec._M_type == __format::_Pres_s)
6171 {
6172 __format::__formatter_str __fstr(_M_spec);
6173 return __fstr._M_format_range(__rg, __fc);
6174 }
6175 return __format::__format_padded(
6176 __fc, _M_spec,
6177 [this, &__rg](basic_format_context<_Out, _CharT>& __nfc)
6178 { return _M_format_elems(__rg, __nfc); });
6179 }
6180
6181
6182 template<ranges::input_range _Rg, typename _Out>
6183 typename basic_format_context<_Out, _CharT>::iterator
6184 _M_format_elems(_Rg& __rg,
6185 basic_format_context<_Out, _CharT>& __fc) const
6186 {
6187 auto __out = __format::__write(__fc.out(), _M_open);
6188
6189 auto __first = ranges::begin(__rg);
6190 auto const __last = ranges::end(__rg);
6191 if (__first == __last)
6192 return __format::__write(__out, _M_close);
6193
6194 __fc.advance_to(__out);
6195 __out = _M_fval.format(*__first, __fc);
6196 for (++__first; __first != __last; ++__first)
6197 {
6198 __out = __format::__write(__out, _M_sep);
6199 __fc.advance_to(__out);
6200 __out = _M_fval.format(*__first, __fc);
6201 }
6202
6203 return __format::__write(__out, _M_close);
6204 }
6205
6206 __format::_Spec<_CharT> _M_spec{};
6207 _String_view _M_open = _Seps::_S_squares().substr(0, 1);
6208 _String_view _M_close = _Seps::_S_squares().substr(1, 1);
6209 _String_view _M_sep = _Seps::_S_comma();
6210 formatter<_Tp, _CharT> _M_fval;
6211 };
6212
6213 // In standard this is shown as inheriting from specialization of
6214 // exposition only specialization for range-default-formatter for
6215 // each range_format. We opt for simpler implementation.
6216 // [format.range.fmtmap], [format.range.fmtset], [format.range.fmtstr],
6217 // specializations for maps, sets, and strings
6218 template<ranges::input_range _Rg, __format::__char _CharT>
6219 requires (format_kind<_Rg> != range_format::disabled)
6220 && formattable<ranges::range_reference_t<_Rg>, _CharT>
6221 struct formatter<_Rg, _CharT>
6222 {
6223 private:
6224 static const bool _S_range_format_is_string =
6225 (format_kind<_Rg> == range_format::string)
6226 || (format_kind<_Rg> == range_format::debug_string);
6227 using _Vt = remove_cvref_t<
6228 ranges::range_reference_t<
6229 __format::__maybe_const_range<_Rg, _CharT>>>;
6230
6231 static consteval bool _S_is_correct()
6232 {
6233 if constexpr (_S_range_format_is_string)
6234 static_assert(same_as<_Vt, _CharT>);
6235 return true;
6236 }
6237
6238 static_assert(_S_is_correct());
6239
6240 public:
6241 constexpr formatter() noexcept
6242 {
6243 using _Seps = __format::_Separators<_CharT>;
6244 if constexpr (format_kind<_Rg> == range_format::map)
6245 {
6246 static_assert(__format::__is_map_formattable<_Vt>);
6247 _M_under.set_brackets(_Seps::_S_braces().substr(0, 1),
6248 _Seps::_S_braces().substr(1, 1));
6249 _M_under.underlying().set_brackets({}, {});
6250 _M_under.underlying().set_separator(_Seps::_S_colon());
6251 }
6252 else if constexpr (format_kind<_Rg> == range_format::set)
6253 _M_under.set_brackets(_Seps::_S_braces().substr(0, 1),
6254 _Seps::_S_braces().substr(1, 1));
6255 }
6256
6257 constexpr void
6258 set_separator(basic_string_view<_CharT> __sep) noexcept
6259 requires (format_kind<_Rg> == range_format::sequence)
6260 { _M_under.set_separator(__sep); }
6261
6262 constexpr void
6263 set_brackets(basic_string_view<_CharT> __open,
6264 basic_string_view<_CharT> __close) noexcept
6265 requires (format_kind<_Rg> == range_format::sequence)
6266 { _M_under.set_brackets(__open, __close); }
6267
6268 // We deviate from standard, that declares this as template accepting
6269 // unconstrained ParseContext type, which seems unimplementable.
6270 constexpr typename basic_format_parse_context<_CharT>::iterator
6271 parse(basic_format_parse_context<_CharT>& __pc)
6272 {
6273 auto __res = _M_under.parse(__pc);
6274 if constexpr (format_kind<_Rg> == range_format::debug_string)
6275 _M_under.set_debug_format();
6276 return __res;
6277 }
6278
6279 // We deviate from standard, that declares this as template accepting
6280 // unconstrained FormatContext type, which seems unimplementable.
6281 template<typename _Out>
6282 typename basic_format_context<_Out, _CharT>::iterator
6283 format(__format::__maybe_const_range<_Rg, _CharT>& __rg,
6284 basic_format_context<_Out, _CharT>& __fc) const
6285 {
6286 if constexpr (_S_range_format_is_string)
6287 return _M_under._M_format_range(__rg, __fc);
6288 else
6289 return _M_under.format(__rg, __fc);
6290 }
6291
6292 private:
6293 using _Formatter_under
6294 = __conditional_t<_S_range_format_is_string,
6295 __format::__formatter_str<_CharT>,
6296 range_formatter<_Vt, _CharT>>;
6297 _Formatter_under _M_under;
6298 };
6299
6300#if __glibcxx_print >= 202406L
6301 template<ranges::input_range _Rg>
6302 requires (format_kind<_Rg> != range_format::disabled)
6303 constexpr bool enable_nonlocking_formatter_optimization<_Rg> = false;
6304#endif
6305
6306#endif // C++23 formatting ranges
6307#undef _GLIBCXX_WIDEN
6308
6309_GLIBCXX_END_NAMESPACE_VERSION
6310} // namespace std
6311#endif // __cpp_lib_format
6312#pragma GCC diagnostic pop
6313#endif // _GLIBCXX_FORMAT
constexpr complex< _Tp > operator*(const complex< _Tp > &__x, const complex< _Tp > &__y)
Return new complex value x times y.
Definition complex:434
_Tp arg(const complex< _Tp > &)
Return phase angle of z.
Definition complex:995
typename remove_reference< _Tp >::type remove_reference_t
Alias template for remove_reference.
Definition type_traits:1886
pair(_T1, _T2) -> pair< _T1, _T2 >
Two pairs are equal iff their members are equal.
constexpr _Tp * addressof(_Tp &__r) noexcept
Returns the actual address of the object or function referenced by r, even in the presence of an over...
Definition move.h:176
constexpr std::remove_reference< _Tp >::type && move(_Tp &&__t) noexcept
Convert a value to an rvalue.
Definition move.h:138
constexpr _Tp && forward(typename std::remove_reference< _Tp >::type &__t) noexcept
Forward an lvalue.
Definition move.h:72
_Tp * end(valarray< _Tp > &__va) noexcept
Return an iterator pointing to one past the last element of the valarray.
Definition valarray:1251
const _Facet & use_facet(const locale &__loc)
Return a facet.
basic_string< char > string
A string of char.
Definition stringfwd.h:79
ISO C++ entities toplevel namespace is std.
chars_format
floating-point format for primitive numerical conversion
Definition charconv:631
_CharT toupper(_CharT __c, const locale &__loc)
Convenience interface to ctype.toupper(__c).
__numeric_traits_integer< _Tp > __int_traits
Convenience alias for __numeric_traits<integer-type>.
A non-owning reference to a string.
Definition string_view:113
Managing sequences of characters and character-like objects.
constexpr size_type size() const noexcept
Returns the number of characters in the string, not including any null-termination.
constexpr void reserve(size_type __res_arg)
Attempt to preallocate enough memory for specified number of characters.
constexpr const _CharT * data() const noexcept
Return const pointer to contents.
constexpr basic_string substr(size_type __pos=0, size_type __n=npos) const
Get a substring.
constexpr void __resize_and_overwrite(size_type __n, _Operation __op)
Non-standard version of resize_and_overwrite for C++11 and above.
constexpr basic_string & append(const basic_string &__str)
Append a string to this string.
constexpr iterator insert(const_iterator __p, size_type __n, _CharT __c)
Insert multiple characters.
constexpr size_type capacity() const noexcept
constexpr bool empty() const noexcept
One of two subclasses of exception.
A standard container which offers fixed time access to individual elements in any order.
Definition stl_vector.h:461