locale_facets.h: Tweaks for 80 column.
[gcc.git] / libstdc++-v3 / include / bits / locale_facets.tcc
1 // Locale support -*- C++ -*-
2
3 // Copyright (C) 1997, 1998, 1999, 2000, 2001, 2002, 2003, 2004
4 // Free Software Foundation, Inc.
5 //
6 // This file is part of the GNU ISO C++ Library. This library is free
7 // software; you can redistribute it and/or modify it under the
8 // terms of the GNU General Public License as published by the
9 // Free Software Foundation; either version 2, or (at your option)
10 // any later version.
11
12 // This library is distributed in the hope that it will be useful,
13 // but WITHOUT ANY WARRANTY; without even the implied warranty of
14 // MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 // GNU General Public License for more details.
16
17 // You should have received a copy of the GNU General Public License along
18 // with this library; see the file COPYING. If not, write to the Free
19 // Software Foundation, 59 Temple Place - Suite 330, Boston, MA 02111-1307,
20 // USA.
21
22 // As a special exception, you may use this file as part of a free software
23 // library without restriction. Specifically, if other files instantiate
24 // templates or use macros or inline functions from this file, or you compile
25 // this file and link it with other files to produce an executable, this
26 // file does not by itself cause the resulting executable to be covered by
27 // the GNU General Public License. This exception does not however
28 // invalidate any other reasons why the executable file might be covered by
29 // the GNU General Public License.
30
31 // Warning: this file is not meant for user inclusion. Use <locale>.
32
33 #ifndef _LOCALE_FACETS_TCC
34 #define _LOCALE_FACETS_TCC 1
35
36 #pragma GCC system_header
37
38 #include <limits> // For numeric_limits
39 #include <typeinfo> // For bad_cast.
40 #include <bits/streambuf_iterator.h>
41
42 namespace std
43 {
44 template<typename _Facet>
45 locale
46 locale::combine(const locale& __other) const
47 {
48 _Impl* __tmp = new _Impl(*_M_impl, 1);
49 try
50 {
51 __tmp->_M_replace_facet(__other._M_impl, &_Facet::id);
52 }
53 catch(...)
54 {
55 __tmp->_M_remove_reference();
56 __throw_exception_again;
57 }
58 return locale(__tmp);
59 }
60
61 template<typename _CharT, typename _Traits, typename _Alloc>
62 bool
63 locale::operator()(const basic_string<_CharT, _Traits, _Alloc>& __s1,
64 const basic_string<_CharT, _Traits, _Alloc>& __s2) const
65 {
66 typedef std::collate<_CharT> __collate_type;
67 const __collate_type& __collate = use_facet<__collate_type>(*this);
68 return (__collate.compare(__s1.data(), __s1.data() + __s1.length(),
69 __s2.data(), __s2.data() + __s2.length()) < 0);
70 }
71
72 /**
73 * @brief Test for the presence of a facet.
74 *
75 * has_facet tests the locale argument for the presence of the facet type
76 * provided as the template parameter. Facets derived from the facet
77 * parameter will also return true.
78 *
79 * @param Facet The facet type to test the presence of.
80 * @param locale The locale to test.
81 * @return true if locale contains a facet of type Facet, else false.
82 */
83 template<typename _Facet>
84 inline bool
85 has_facet(const locale& __loc) throw()
86 {
87 const size_t __i = _Facet::id._M_id();
88 const locale::facet** __facets = __loc._M_impl->_M_facets;
89 return (__i < __loc._M_impl->_M_facets_size && __facets[__i]);
90 }
91
92 /**
93 * @brief Return a facet.
94 *
95 * use_facet looks for and returns a reference to a facet of type Facet
96 * where Facet is the template parameter. If has_facet(locale) is true,
97 * there is a suitable facet to return. It throws std::bad_cast if the
98 * locale doesn't contain a facet of type Facet.
99 *
100 * @param Facet The facet type to access.
101 * @param locale The locale to use.
102 * @return Reference to facet of type Facet.
103 * @throw std::bad_cast if locale doesn't contain a facet of type Facet.
104 */
105 template<typename _Facet>
106 inline const _Facet&
107 use_facet(const locale& __loc)
108 {
109 const size_t __i = _Facet::id._M_id();
110 const locale::facet** __facets = __loc._M_impl->_M_facets;
111 if (!(__i < __loc._M_impl->_M_facets_size && __facets[__i]))
112 __throw_bad_cast();
113 return static_cast<const _Facet&>(*__facets[__i]);
114 }
115
116 // Routine to access a cache for the facet. If the cache didn't
117 // exist before, it gets constructed on the fly.
118 template<typename _Facet>
119 struct __use_cache
120 {
121 const _Facet*
122 operator() (const locale& __loc) const;
123 };
124
125 // Specializations.
126 template<typename _CharT>
127 struct __use_cache<__numpunct_cache<_CharT> >
128 {
129 const __numpunct_cache<_CharT>*
130 operator() (const locale& __loc) const
131 {
132 const size_t __i = numpunct<_CharT>::id._M_id();
133 const locale::facet** __caches = __loc._M_impl->_M_caches;
134 if (!__caches[__i])
135 {
136 __numpunct_cache<_CharT>* __tmp = NULL;
137 try
138 {
139 __tmp = new __numpunct_cache<_CharT>;
140 __tmp->_M_cache(__loc);
141 }
142 catch(...)
143 {
144 delete __tmp;
145 __throw_exception_again;
146 }
147 __loc._M_impl->_M_install_cache(__tmp, __i);
148 }
149 return static_cast<const __numpunct_cache<_CharT>*>(__caches[__i]);
150 }
151 };
152
153 template<typename _CharT, bool _Intl>
154 struct __use_cache<__moneypunct_cache<_CharT, _Intl> >
155 {
156 const __moneypunct_cache<_CharT, _Intl>*
157 operator() (const locale& __loc) const
158 {
159 const size_t __i = moneypunct<_CharT, _Intl>::id._M_id();
160 const locale::facet** __caches = __loc._M_impl->_M_caches;
161 if (!__caches[__i])
162 {
163 __moneypunct_cache<_CharT, _Intl>* __tmp = NULL;
164 try
165 {
166 __tmp = new __moneypunct_cache<_CharT, _Intl>;
167 __tmp->_M_cache(__loc);
168 }
169 catch(...)
170 {
171 delete __tmp;
172 __throw_exception_again;
173 }
174 __loc._M_impl->_M_install_cache(__tmp, __i);
175 }
176 return static_cast<
177 const __moneypunct_cache<_CharT, _Intl>*>(__caches[__i]);
178 }
179 };
180
181 template<typename _CharT>
182 void
183 __numpunct_cache<_CharT>::_M_cache(const locale& __loc)
184 {
185 _M_allocated = true;
186
187 const numpunct<_CharT>& __np = use_facet<numpunct<_CharT> >(__loc);
188
189 _M_grouping_size = __np.grouping().size();
190 char* __grouping = new char[_M_grouping_size];
191 __np.grouping().copy(__grouping, _M_grouping_size);
192 _M_grouping = __grouping;
193 _M_use_grouping = _M_grouping_size && __np.grouping()[0] != 0;
194
195 _M_truename_size = __np.truename().size();
196 _CharT* __truename = new _CharT[_M_truename_size];
197 __np.truename().copy(__truename, _M_truename_size);
198 _M_truename = __truename;
199
200 _M_falsename_size = __np.falsename().size();
201 _CharT* __falsename = new _CharT[_M_falsename_size];
202 __np.falsename().copy(__falsename, _M_falsename_size);
203 _M_falsename = __falsename;
204
205 _M_decimal_point = __np.decimal_point();
206 _M_thousands_sep = __np.thousands_sep();
207
208 const ctype<_CharT>& __ct = use_facet<ctype<_CharT> >(__loc);
209 __ct.widen(__num_base::_S_atoms_out,
210 __num_base::_S_atoms_out + __num_base::_S_oend, _M_atoms_out);
211 __ct.widen(__num_base::_S_atoms_in,
212 __num_base::_S_atoms_in + __num_base::_S_iend, _M_atoms_in);
213 }
214
215 template<typename _CharT, bool _Intl>
216 void
217 __moneypunct_cache<_CharT, _Intl>::_M_cache(const locale& __loc)
218 {
219 _M_allocated = true;
220
221 const moneypunct<_CharT, _Intl>& __mp =
222 use_facet<moneypunct<_CharT, _Intl> >(__loc);
223
224 _M_grouping_size = __mp.grouping().size();
225 char* __grouping = new char[_M_grouping_size];
226 __mp.grouping().copy(__grouping, _M_grouping_size);
227 _M_grouping = __grouping;
228 _M_use_grouping = _M_grouping_size && __mp.grouping()[0] != 0;
229
230 _M_decimal_point = __mp.decimal_point();
231 _M_thousands_sep = __mp.thousands_sep();
232 _M_frac_digits = __mp.frac_digits();
233
234 _M_curr_symbol_size = __mp.curr_symbol().size();
235 _CharT* __curr_symbol = new _CharT[_M_curr_symbol_size];
236 __mp.curr_symbol().copy(__curr_symbol, _M_curr_symbol_size);
237 _M_curr_symbol = __curr_symbol;
238
239 _M_positive_sign_size = __mp.positive_sign().size();
240 _CharT* __positive_sign = new _CharT[_M_positive_sign_size];
241 __mp.positive_sign().copy(__positive_sign, _M_positive_sign_size);
242 _M_positive_sign = __positive_sign;
243
244 _M_negative_sign_size = __mp.negative_sign().size();
245 _CharT* __negative_sign = new _CharT[_M_negative_sign_size];
246 __mp.negative_sign().copy(__negative_sign, _M_negative_sign_size);
247 _M_negative_sign = __negative_sign;
248
249 _M_pos_format = __mp.pos_format();
250 _M_neg_format = __mp.neg_format();
251
252 const ctype<_CharT>& __ct = use_facet<ctype<_CharT> >(__loc);
253 __ct.widen(money_base::_S_atoms,
254 money_base::_S_atoms + money_base::_S_end, _M_atoms);
255 }
256
257
258 // Used by both numeric and monetary facets.
259 // Check to make sure that the __grouping_tmp string constructed in
260 // money_get or num_get matches the canonical grouping for a given
261 // locale.
262 // __grouping_tmp is parsed L to R
263 // 1,222,444 == __grouping_tmp of "\1\3\3"
264 // __grouping is parsed R to L
265 // 1,222,444 == __grouping of "\3" == "\3\3\3"
266 static bool
267 __verify_grouping(const char* __grouping, size_t __grouping_size,
268 const string& __grouping_tmp);
269
270 template<typename _CharT, typename _InIter>
271 _InIter
272 num_get<_CharT, _InIter>::
273 _M_extract_float(_InIter __beg, _InIter __end, ios_base& __io,
274 ios_base::iostate& __err, string& __xtrc) const
275 {
276 typedef char_traits<_CharT> __traits_type;
277 typedef typename numpunct<_CharT>::__cache_type __cache_type;
278 __use_cache<__cache_type> __uc;
279 const locale& __loc = __io._M_getloc();
280 const __cache_type* __lc = __uc(__loc);
281 const _CharT* __lit = __lc->_M_atoms_in;
282
283 // True if a mantissa is found.
284 bool __found_mantissa = false;
285
286 // First check for sign.
287 if (__beg != __end)
288 {
289 const char_type __c = *__beg;
290 const bool __plus = __c == __lit[__num_base::_S_iplus];
291 if ((__plus || __c == __lit[__num_base::_S_iminus])
292 && !(__lc->_M_use_grouping && __c == __lc->_M_thousands_sep)
293 && !(__c == __lc->_M_decimal_point))
294 {
295 __xtrc += __plus ? '+' : '-';
296 ++__beg;
297 }
298 }
299
300 // Next, look for leading zeros.
301 while (__beg != __end)
302 {
303 const char_type __c = *__beg;
304 if (__lc->_M_use_grouping && __c == __lc->_M_thousands_sep
305 || __c == __lc->_M_decimal_point)
306 break;
307 else if (__c == __lit[__num_base::_S_izero])
308 {
309 if (!__found_mantissa)
310 {
311 __xtrc += '0';
312 __found_mantissa = true;
313 }
314 ++__beg;
315 }
316 else
317 break;
318 }
319
320 // Only need acceptable digits for floating point numbers.
321 bool __found_dec = false;
322 bool __found_sci = false;
323 string __found_grouping;
324 if (__lc->_M_use_grouping)
325 __found_grouping.reserve(32);
326 int __sep_pos = 0;
327 const char_type* __lit_zero = __lit + __num_base::_S_izero;
328 const char_type* __q;
329 while (__beg != __end)
330 {
331 // According to 22.2.2.1.2, p8-9, first look for thousands_sep
332 // and decimal_point.
333 const char_type __c = *__beg;
334 if (__lc->_M_use_grouping && __c == __lc->_M_thousands_sep)
335 {
336 if (!__found_dec && !__found_sci)
337 {
338 // NB: Thousands separator at the beginning of a string
339 // is a no-no, as is two consecutive thousands separators.
340 if (__sep_pos)
341 {
342 __found_grouping += static_cast<char>(__sep_pos);
343 __sep_pos = 0;
344 ++__beg;
345 }
346 else
347 {
348 __err |= ios_base::failbit;
349 break;
350 }
351 }
352 else
353 break;
354 }
355 else if (__c == __lc->_M_decimal_point)
356 {
357 if (!__found_dec && !__found_sci)
358 {
359 // If no grouping chars are seen, no grouping check
360 // is applied. Therefore __found_grouping is adjusted
361 // only if decimal_point comes after some thousands_sep.
362 if (__found_grouping.size())
363 __found_grouping += static_cast<char>(__sep_pos);
364 __xtrc += '.';
365 __found_dec = true;
366 ++__beg;
367 }
368 else
369 break;
370 }
371 else if (__q = __traits_type::find(__lit_zero, 10, __c))
372 {
373 __xtrc += __num_base::_S_atoms_in[__q - __lit];
374 __found_mantissa = true;
375 ++__sep_pos;
376 ++__beg;
377 }
378 else if ((__c == __lit[__num_base::_S_ie]
379 || __c == __lit[__num_base::_S_iE])
380 && __found_mantissa && !__found_sci)
381 {
382 // Scientific notation.
383 if (__found_grouping.size() && !__found_dec)
384 __found_grouping += static_cast<char>(__sep_pos);
385 __xtrc += 'e';
386 __found_sci = true;
387
388 // Remove optional plus or minus sign, if they exist.
389 if (++__beg != __end)
390 {
391 const bool __plus = *__beg == __lit[__num_base::_S_iplus];
392 if ((__plus || *__beg == __lit[__num_base::_S_iminus])
393 && !(__lc->_M_use_grouping
394 && *__beg == __lc->_M_thousands_sep)
395 && !(*__beg == __lc->_M_decimal_point))
396 {
397 __xtrc += __plus ? '+' : '-';
398 ++__beg;
399 }
400 }
401 }
402 else
403 // Not a valid input item.
404 break;
405 }
406
407 // Digit grouping is checked. If grouping and found_grouping don't
408 // match, then get very very upset, and set failbit.
409 if (__found_grouping.size())
410 {
411 // Add the ending grouping if a decimal or 'e'/'E' wasn't found.
412 if (!__found_dec && !__found_sci)
413 __found_grouping += static_cast<char>(__sep_pos);
414
415 if (!std::__verify_grouping(__lc->_M_grouping,
416 __lc->_M_grouping_size,
417 __found_grouping))
418 __err |= ios_base::failbit;
419 }
420
421 // Finish up.
422 if (__beg == __end)
423 __err |= ios_base::eofbit;
424 return __beg;
425 }
426
427 template<typename _CharT, typename _InIter>
428 template<typename _ValueT>
429 _InIter
430 num_get<_CharT, _InIter>::
431 _M_extract_int(_InIter __beg, _InIter __end, ios_base& __io,
432 ios_base::iostate& __err, _ValueT& __v) const
433 {
434 typedef char_traits<_CharT> __traits_type;
435 typedef typename numpunct<_CharT>::__cache_type __cache_type;
436 __use_cache<__cache_type> __uc;
437 const locale& __loc = __io._M_getloc();
438 const __cache_type* __lc = __uc(__loc);
439 const _CharT* __lit = __lc->_M_atoms_in;
440
441 // NB: Iff __basefield == 0, __base can change based on contents.
442 const ios_base::fmtflags __basefield = __io.flags()
443 & ios_base::basefield;
444 const bool __oct = __basefield == ios_base::oct;
445 int __base = __oct ? 8 : (__basefield == ios_base::hex ? 16 : 10);
446
447 // True if numeric digits are found.
448 bool __found_num = false;
449
450 // First check for sign.
451 bool __negative = false;
452 if (__beg != __end)
453 {
454 const char_type __c = *__beg;
455 if (numeric_limits<_ValueT>::is_signed)
456 __negative = __c == __lit[__num_base::_S_iminus];
457 if ((__negative || __c == __lit[__num_base::_S_iplus])
458 && !(__lc->_M_use_grouping && __c == __lc->_M_thousands_sep)
459 && !(__c == __lc->_M_decimal_point))
460 ++__beg;
461 }
462
463 // Next, look for leading zeros and check required digits
464 // for base formats.
465 while (__beg != __end)
466 {
467 const char_type __c = *__beg;
468 if (__lc->_M_use_grouping && __c == __lc->_M_thousands_sep
469 || __c == __lc->_M_decimal_point)
470 break;
471 else if (__c == __lit[__num_base::_S_izero]
472 && (!__found_num || __base == 10))
473 {
474 __found_num = true;
475 ++__beg;
476 }
477 else if (__found_num)
478 {
479 if (__c == __lit[__num_base::_S_ix]
480 || __c == __lit[__num_base::_S_iX])
481 {
482 if (__basefield == 0)
483 __base = 16;
484 if (__base == 16)
485 {
486 __found_num = false;
487 ++__beg;
488 }
489 }
490 else if (__basefield == 0)
491 __base = 8;
492 break;
493 }
494 else
495 break;
496 }
497
498 // At this point, base is determined. If not hex, only allow
499 // base digits as valid input.
500 const size_t __len = __base == 16 ? __num_base::_S_iend - __num_base::_S_izero : __base;
501
502 // Extract.
503 string __found_grouping;
504 if (__lc->_M_use_grouping)
505 __found_grouping.reserve(32);
506 int __sep_pos = 0;
507 bool __overflow = false;
508 _ValueT __result = 0;
509 const char_type* __lit_zero = __lit + __num_base::_S_izero;
510 const char_type* __q;
511 if (__negative)
512 {
513 const _ValueT __min = numeric_limits<_ValueT>::min() / __base;
514 for (; __beg != __end; ++__beg)
515 {
516 // According to 22.2.2.1.2, p8-9, first look for thousands_sep
517 // and decimal_point.
518 const char_type __c = *__beg;
519 if (__lc->_M_use_grouping && __c == __lc->_M_thousands_sep)
520 {
521 // NB: Thousands separator at the beginning of a string
522 // is a no-no, as is two consecutive thousands separators.
523 if (__sep_pos)
524 {
525 __found_grouping += static_cast<char>(__sep_pos);
526 __sep_pos = 0;
527 }
528 else
529 {
530 __err |= ios_base::failbit;
531 break;
532 }
533 }
534 else if (__c == __lc->_M_decimal_point)
535 break;
536 else if (__q = __traits_type::find(__lit_zero, __len, __c))
537 {
538 int __digit = __q - __lit_zero;
539 if (__digit > 15)
540 __digit -= 6;
541 if (__result < __min)
542 __overflow = true;
543 else
544 {
545 const _ValueT __new_result = __result * __base
546 - __digit;
547 __overflow |= __new_result > __result;
548 __result = __new_result;
549 ++__sep_pos;
550 __found_num = true;
551 }
552 }
553 else
554 // Not a valid input item.
555 break;
556 }
557 }
558 else
559 {
560 const _ValueT __max = numeric_limits<_ValueT>::max() / __base;
561 for (; __beg != __end; ++__beg)
562 {
563 const char_type __c = *__beg;
564 if (__lc->_M_use_grouping && __c == __lc->_M_thousands_sep)
565 {
566 if (__sep_pos)
567 {
568 __found_grouping += static_cast<char>(__sep_pos);
569 __sep_pos = 0;
570 }
571 else
572 {
573 __err |= ios_base::failbit;
574 break;
575 }
576 }
577 else if (__c == __lc->_M_decimal_point)
578 break;
579 else if (__q = __traits_type::find(__lit_zero, __len, __c))
580 {
581 int __digit = __q - __lit_zero;
582 if (__digit > 15)
583 __digit -= 6;
584 if (__result > __max)
585 __overflow = true;
586 else
587 {
588 const _ValueT __new_result = __result * __base
589 + __digit;
590 __overflow |= __new_result < __result;
591 __result = __new_result;
592 ++__sep_pos;
593 __found_num = true;
594 }
595 }
596 else
597 break;
598 }
599 }
600
601 // Digit grouping is checked. If grouping and found_grouping don't
602 // match, then get very very upset, and set failbit.
603 if (__found_grouping.size())
604 {
605 // Add the ending grouping.
606 __found_grouping += static_cast<char>(__sep_pos);
607
608 if (!std::__verify_grouping(__lc->_M_grouping,
609 __lc->_M_grouping_size,
610 __found_grouping))
611 __err |= ios_base::failbit;
612 }
613
614 if (!(__err & ios_base::failbit) && !__overflow
615 && __found_num)
616 __v = __result;
617 else
618 __err |= ios_base::failbit;
619
620 if (__beg == __end)
621 __err |= ios_base::eofbit;
622 return __beg;
623 }
624
625 // _GLIBCXX_RESOLVE_LIB_DEFECTS
626 // 17. Bad bool parsing
627 template<typename _CharT, typename _InIter>
628 _InIter
629 num_get<_CharT, _InIter>::
630 do_get(iter_type __beg, iter_type __end, ios_base& __io,
631 ios_base::iostate& __err, bool& __v) const
632 {
633 if (!(__io.flags() & ios_base::boolalpha))
634 {
635 // Parse bool values as long.
636 // NB: We can't just call do_get(long) here, as it might
637 // refer to a derived class.
638 long __l = -1;
639 __beg = _M_extract_int(__beg, __end, __io, __err, __l);
640 if (__l == 0 || __l == 1)
641 __v = __l;
642 else
643 __err |= ios_base::failbit;
644 }
645 else
646 {
647 // Parse bool values as alphanumeric.
648 typedef char_traits<_CharT> __traits_type;
649 typedef typename numpunct<_CharT>::__cache_type __cache_type;
650 __use_cache<__cache_type> __uc;
651 const locale& __loc = __io._M_getloc();
652 const __cache_type* __lc = __uc(__loc);
653
654 bool __testf = true;
655 bool __testt = true;
656 size_t __n;
657 for (__n = 0; __beg != __end; ++__n, ++__beg)
658 {
659 if (__testf)
660 if (__n < __lc->_M_falsename_size)
661 __testf = *__beg == __lc->_M_falsename[__n];
662 else
663 break;
664
665 if (__testt)
666 if (__n < __lc->_M_truename_size)
667 __testt = *__beg == __lc->_M_truename[__n];
668 else
669 break;
670
671 if (!__testf && !__testt)
672 break;
673 }
674 if (__testf && __n == __lc->_M_falsename_size)
675 __v = 0;
676 else if (__testt && __n == __lc->_M_truename_size)
677 __v = 1;
678 else
679 __err |= ios_base::failbit;
680
681 if (__beg == __end)
682 __err |= ios_base::eofbit;
683 }
684 return __beg;
685 }
686
687 template<typename _CharT, typename _InIter>
688 _InIter
689 num_get<_CharT, _InIter>::
690 do_get(iter_type __beg, iter_type __end, ios_base& __io,
691 ios_base::iostate& __err, long& __v) const
692 { return _M_extract_int(__beg, __end, __io, __err, __v); }
693
694 template<typename _CharT, typename _InIter>
695 _InIter
696 num_get<_CharT, _InIter>::
697 do_get(iter_type __beg, iter_type __end, ios_base& __io,
698 ios_base::iostate& __err, unsigned short& __v) const
699 { return _M_extract_int(__beg, __end, __io, __err, __v); }
700
701 template<typename _CharT, typename _InIter>
702 _InIter
703 num_get<_CharT, _InIter>::
704 do_get(iter_type __beg, iter_type __end, ios_base& __io,
705 ios_base::iostate& __err, unsigned int& __v) const
706 { return _M_extract_int(__beg, __end, __io, __err, __v); }
707
708 template<typename _CharT, typename _InIter>
709 _InIter
710 num_get<_CharT, _InIter>::
711 do_get(iter_type __beg, iter_type __end, ios_base& __io,
712 ios_base::iostate& __err, unsigned long& __v) const
713 { return _M_extract_int(__beg, __end, __io, __err, __v); }
714
715 #ifdef _GLIBCXX_USE_LONG_LONG
716 template<typename _CharT, typename _InIter>
717 _InIter
718 num_get<_CharT, _InIter>::
719 do_get(iter_type __beg, iter_type __end, ios_base& __io,
720 ios_base::iostate& __err, long long& __v) const
721 { return _M_extract_int(__beg, __end, __io, __err, __v); }
722
723 template<typename _CharT, typename _InIter>
724 _InIter
725 num_get<_CharT, _InIter>::
726 do_get(iter_type __beg, iter_type __end, ios_base& __io,
727 ios_base::iostate& __err, unsigned long long& __v) const
728 { return _M_extract_int(__beg, __end, __io, __err, __v); }
729 #endif
730
731 template<typename _CharT, typename _InIter>
732 _InIter
733 num_get<_CharT, _InIter>::
734 do_get(iter_type __beg, iter_type __end, ios_base& __io,
735 ios_base::iostate& __err, float& __v) const
736 {
737 string __xtrc;
738 __xtrc.reserve(32);
739 __beg = _M_extract_float(__beg, __end, __io, __err, __xtrc);
740 std::__convert_to_v(__xtrc.c_str(), __v, __err, _S_get_c_locale());
741 return __beg;
742 }
743
744 template<typename _CharT, typename _InIter>
745 _InIter
746 num_get<_CharT, _InIter>::
747 do_get(iter_type __beg, iter_type __end, ios_base& __io,
748 ios_base::iostate& __err, double& __v) const
749 {
750 string __xtrc;
751 __xtrc.reserve(32);
752 __beg = _M_extract_float(__beg, __end, __io, __err, __xtrc);
753 std::__convert_to_v(__xtrc.c_str(), __v, __err, _S_get_c_locale());
754 return __beg;
755 }
756
757 template<typename _CharT, typename _InIter>
758 _InIter
759 num_get<_CharT, _InIter>::
760 do_get(iter_type __beg, iter_type __end, ios_base& __io,
761 ios_base::iostate& __err, long double& __v) const
762 {
763 string __xtrc;
764 __xtrc.reserve(32);
765 __beg = _M_extract_float(__beg, __end, __io, __err, __xtrc);
766 std::__convert_to_v(__xtrc.c_str(), __v, __err, _S_get_c_locale());
767 return __beg;
768 }
769
770 template<typename _CharT, typename _InIter>
771 _InIter
772 num_get<_CharT, _InIter>::
773 do_get(iter_type __beg, iter_type __end, ios_base& __io,
774 ios_base::iostate& __err, void*& __v) const
775 {
776 // Prepare for hex formatted input.
777 typedef ios_base::fmtflags fmtflags;
778 const fmtflags __fmt = __io.flags();
779 __io.flags(__fmt & ~ios_base::basefield | ios_base::hex);
780
781 unsigned long __ul;
782 __beg = _M_extract_int(__beg, __end, __io, __err, __ul);
783
784 // Reset from hex formatted input.
785 __io.flags(__fmt);
786
787 if (!(__err & ios_base::failbit))
788 __v = reinterpret_cast<void*>(__ul);
789 else
790 __err |= ios_base::failbit;
791 return __beg;
792 }
793
794 // For use by integer and floating-point types after they have been
795 // converted into a char_type string.
796 template<typename _CharT, typename _OutIter>
797 void
798 num_put<_CharT, _OutIter>::
799 _M_pad(_CharT __fill, streamsize __w, ios_base& __io,
800 _CharT* __new, const _CharT* __cs, int& __len) const
801 {
802 // [22.2.2.2.2] Stage 3.
803 // If necessary, pad.
804 __pad<_CharT, char_traits<_CharT> >::_S_pad(__io, __fill, __new, __cs,
805 __w, __len, true);
806 __len = static_cast<int>(__w);
807 }
808
809 // Forwarding functions to peel signed from unsigned integer types.
810 template<typename _CharT>
811 inline int
812 __int_to_char(_CharT* __bufend, long __v, const _CharT* __lit,
813 ios_base::fmtflags __flags)
814 {
815 unsigned long __ul = static_cast<unsigned long>(__v);
816 bool __neg = false;
817 if (__v < 0)
818 {
819 __ul = -__ul;
820 __neg = true;
821 }
822 return __int_to_char(__bufend, __ul, __lit, __flags, __neg);
823 }
824
825 template<typename _CharT>
826 inline int
827 __int_to_char(_CharT* __bufend, unsigned long __v, const _CharT* __lit,
828 ios_base::fmtflags __flags)
829 { return __int_to_char(__bufend, __v, __lit, __flags, false); }
830
831 #ifdef _GLIBCXX_USE_LONG_LONG
832 template<typename _CharT>
833 inline int
834 __int_to_char(_CharT* __bufend, long long __v, const _CharT* __lit,
835 ios_base::fmtflags __flags)
836 {
837 unsigned long long __ull = static_cast<unsigned long long>(__v);
838 bool __neg = false;
839 if (__v < 0)
840 {
841 __ull = -__ull;
842 __neg = true;
843 }
844 return __int_to_char(__bufend, __ull, __lit, __flags, __neg);
845 }
846
847 template<typename _CharT>
848 inline int
849 __int_to_char(_CharT* __bufend, unsigned long long __v,
850 const _CharT* __lit, ios_base::fmtflags __flags)
851 { return __int_to_char(__bufend, __v, __lit, __flags, false); }
852 #endif
853
854 template<typename _CharT, typename _ValueT>
855 int
856 __int_to_char(_CharT* __bufend, _ValueT __v, const _CharT* __lit,
857 ios_base::fmtflags __flags, bool __neg)
858 {
859 // Don't write base if already 0.
860 const bool __showbase = (__flags & ios_base::showbase) && __v;
861 const ios_base::fmtflags __basefield = __flags & ios_base::basefield;
862 _CharT* __buf = __bufend - 1;
863
864 if (__builtin_expect(__basefield != ios_base::oct &&
865 __basefield != ios_base::hex, true))
866 {
867 // Decimal.
868 do
869 {
870 *__buf-- = __lit[(__v % 10) + __num_base::_S_odigits];
871 __v /= 10;
872 }
873 while (__v != 0);
874 if (__neg)
875 *__buf-- = __lit[__num_base::_S_ominus];
876 else if (__flags & ios_base::showpos)
877 *__buf-- = __lit[__num_base::_S_oplus];
878 }
879 else if (__basefield == ios_base::oct)
880 {
881 // Octal.
882 do
883 {
884 *__buf-- = __lit[(__v & 0x7) + __num_base::_S_odigits];
885 __v >>= 3;
886 }
887 while (__v != 0);
888 if (__showbase)
889 *__buf-- = __lit[__num_base::_S_odigits];
890 }
891 else
892 {
893 // Hex.
894 const bool __uppercase = __flags & ios_base::uppercase;
895 const int __case_offset = __uppercase ? __num_base::_S_oudigits
896 : __num_base::_S_odigits;
897 do
898 {
899 *__buf-- = __lit[(__v & 0xf) + __case_offset];
900 __v >>= 4;
901 }
902 while (__v != 0);
903 if (__showbase)
904 {
905 // 'x' or 'X'
906 *__buf-- = __lit[__num_base::_S_ox + __uppercase];
907 // '0'
908 *__buf-- = __lit[__num_base::_S_odigits];
909 }
910 }
911 return __bufend - __buf - 1;
912 }
913
914 template<typename _CharT, typename _OutIter>
915 void
916 num_put<_CharT, _OutIter>::
917 _M_group_int(const char* __grouping, size_t __grouping_size, _CharT __sep,
918 ios_base& __io, _CharT* __new, _CharT* __cs, int& __len) const
919 {
920 // By itself __add_grouping cannot deal correctly with __cs when
921 // ios::showbase is set and ios_base::oct || ios_base::hex.
922 // Therefore we take care "by hand" of the initial 0, 0x or 0X.
923 // However, remember that the latter do not occur if the number
924 // printed is '0' (__len == 1).
925 streamsize __off = 0;
926 const ios_base::fmtflags __basefield = __io.flags()
927 & ios_base::basefield;
928 if ((__io.flags() & ios_base::showbase) && __len > 1)
929 if (__basefield == ios_base::oct)
930 {
931 __off = 1;
932 __new[0] = __cs[0];
933 }
934 else if (__basefield == ios_base::hex)
935 {
936 __off = 2;
937 __new[0] = __cs[0];
938 __new[1] = __cs[1];
939 }
940 _CharT* __p;
941 __p = std::__add_grouping(__new + __off, __sep, __grouping,
942 __grouping_size, __cs + __off,
943 __cs + __len);
944 __len = __p - __new;
945 }
946
947 template<typename _CharT, typename _OutIter>
948 template<typename _ValueT>
949 _OutIter
950 num_put<_CharT, _OutIter>::
951 _M_insert_int(_OutIter __s, ios_base& __io, _CharT __fill,
952 _ValueT __v) const
953 {
954 typedef typename numpunct<_CharT>::__cache_type __cache_type;
955 __use_cache<__cache_type> __uc;
956 const locale& __loc = __io._M_getloc();
957 const __cache_type* __lc = __uc(__loc);
958 const _CharT* __lit = __lc->_M_atoms_out;
959
960 // Long enough to hold hex, dec, and octal representations.
961 const int __ilen = 4 * sizeof(_ValueT);
962 _CharT* __cs = static_cast<_CharT*>(__builtin_alloca(sizeof(_CharT)
963 * __ilen));
964
965 // [22.2.2.2.2] Stage 1, numeric conversion to character.
966 // Result is returned right-justified in the buffer.
967 int __len;
968 __len = __int_to_char(__cs + __ilen, __v, __lit, __io.flags());
969 __cs += __ilen - __len;
970
971 // Add grouping, if necessary.
972 if (__lc->_M_use_grouping)
973 {
974 // Grouping can add (almost) as many separators as the
975 // number of digits, but no more.
976 _CharT* __cs2 = static_cast<_CharT*>(__builtin_alloca(sizeof(_CharT)
977 * __len * 2));
978 _M_group_int(__lc->_M_grouping, __lc->_M_grouping_size,
979 __lc->_M_thousands_sep, __io, __cs2, __cs, __len);
980 __cs = __cs2;
981 }
982
983 // Pad.
984 const streamsize __w = __io.width();
985 if (__w > static_cast<streamsize>(__len))
986 {
987 _CharT* __cs3 = static_cast<_CharT*>(__builtin_alloca(sizeof(_CharT)
988 * __w));
989 _M_pad(__fill, __w, __io, __cs3, __cs, __len);
990 __cs = __cs3;
991 }
992 __io.width(0);
993
994 // [22.2.2.2.2] Stage 4.
995 // Write resulting, fully-formatted string to output iterator.
996 return std::__write(__s, __cs, __len);
997 }
998
999 template<typename _CharT, typename _OutIter>
1000 void
1001 num_put<_CharT, _OutIter>::
1002 _M_group_float(const char* __grouping, size_t __grouping_size,
1003 _CharT __sep, const _CharT* __p, _CharT* __new,
1004 _CharT* __cs, int& __len) const
1005 {
1006 // _GLIBCXX_RESOLVE_LIB_DEFECTS
1007 // 282. What types does numpunct grouping refer to?
1008 // Add grouping, if necessary.
1009 _CharT* __p2;
1010 const int __declen = __p ? __p - __cs : __len;
1011 __p2 = std::__add_grouping(__new, __sep, __grouping, __grouping_size,
1012 __cs, __cs + __declen);
1013
1014 // Tack on decimal part.
1015 int __newlen = __p2 - __new;
1016 if (__p)
1017 {
1018 char_traits<_CharT>::copy(__p2, __p, __len - __declen);
1019 __newlen += __len - __declen;
1020 }
1021 __len = __newlen;
1022 }
1023
1024 // The following code uses snprintf (or sprintf(), when
1025 // _GLIBCXX_USE_C99 is not defined) to convert floating point values
1026 // for insertion into a stream. An optimization would be to replace
1027 // them with code that works directly on a wide buffer and then use
1028 // __pad to do the padding. It would be good to replace them anyway
1029 // to gain back the efficiency that C++ provides by knowing up front
1030 // the type of the values to insert. Also, sprintf is dangerous
1031 // since may lead to accidental buffer overruns. This
1032 // implementation follows the C++ standard fairly directly as
1033 // outlined in 22.2.2.2 [lib.locale.num.put]
1034 template<typename _CharT, typename _OutIter>
1035 template<typename _ValueT>
1036 _OutIter
1037 num_put<_CharT, _OutIter>::
1038 _M_insert_float(_OutIter __s, ios_base& __io, _CharT __fill, char __mod,
1039 _ValueT __v) const
1040 {
1041 typedef typename numpunct<_CharT>::__cache_type __cache_type;
1042 __use_cache<__cache_type> __uc;
1043 const locale& __loc = __io._M_getloc();
1044 const __cache_type* __lc = __uc(__loc);
1045
1046 // Note: digits10 is rounded down: add 1 to ensure the maximum
1047 // available precision. Then, in general, one more 1 needs to
1048 // be added since, when the %{g,G} conversion specifiers are
1049 // chosen inside _S_format_float, the precision field is "the
1050 // maximum number of significant digits", *not* the "number of
1051 // digits to appear after the decimal point", as happens for
1052 // %{e,E,f,F} (C99, 7.19.6.1,4).
1053 const int __max_digits = numeric_limits<_ValueT>::digits10 + 2;
1054
1055 // Use default precision if out of range.
1056 streamsize __prec = __io.precision();
1057 if (__prec > static_cast<streamsize>(__max_digits))
1058 __prec = static_cast<streamsize>(__max_digits);
1059 else if (__prec < static_cast<streamsize>(0))
1060 __prec = static_cast<streamsize>(6);
1061
1062 // [22.2.2.2.2] Stage 1, numeric conversion to character.
1063 int __len;
1064 // Long enough for the max format spec.
1065 char __fbuf[16];
1066
1067 #ifdef _GLIBCXX_USE_C99
1068 // First try a buffer perhaps big enough (for sure sufficient
1069 // for non-ios_base::fixed outputs)
1070 int __cs_size = __max_digits * 3;
1071 char* __cs = static_cast<char*>(__builtin_alloca(__cs_size));
1072
1073 __num_base::_S_format_float(__io, __fbuf, __mod);
1074 __len = std::__convert_from_v(__cs, __cs_size, __fbuf, __v,
1075 _S_get_c_locale(), __prec);
1076
1077 // If the buffer was not large enough, try again with the correct size.
1078 if (__len >= __cs_size)
1079 {
1080 __cs_size = __len + 1;
1081 __cs = static_cast<char*>(__builtin_alloca(__cs_size));
1082 __len = std::__convert_from_v(__cs, __cs_size, __fbuf, __v,
1083 _S_get_c_locale(), __prec);
1084 }
1085 #else
1086 // Consider the possibility of long ios_base::fixed outputs
1087 const bool __fixed = __io.flags() & ios_base::fixed;
1088 const int __max_exp = numeric_limits<_ValueT>::max_exponent10;
1089
1090 // The size of the output string is computed as follows.
1091 // ios_base::fixed outputs may need up to __max_exp+1 chars
1092 // for the integer part + up to __max_digits chars for the
1093 // fractional part + 3 chars for sign, decimal point, '\0'. On
1094 // the other hand, for non-fixed outputs __max_digits*3 chars
1095 // are largely sufficient.
1096 const int __cs_size = __fixed ? __max_exp + __max_digits + 4
1097 : __max_digits * 3;
1098 char* __cs = static_cast<char*>(__builtin_alloca(__cs_size));
1099
1100 __num_base::_S_format_float(__io, __fbuf, __mod);
1101 __len = std::__convert_from_v(__cs, 0, __fbuf, __v,
1102 _S_get_c_locale(), __prec);
1103 #endif
1104
1105 // [22.2.2.2.2] Stage 2, convert to char_type, using correct
1106 // numpunct.decimal_point() values for '.' and adding grouping.
1107 const ctype<_CharT>& __ctype = use_facet<ctype<_CharT> >(__loc);
1108
1109 _CharT* __ws = static_cast<_CharT*>(__builtin_alloca(sizeof(_CharT)
1110 * __len));
1111 __ctype.widen(__cs, __cs + __len, __ws);
1112
1113 // Replace decimal point.
1114 const _CharT __cdec = __ctype.widen('.');
1115 const _CharT __dec = __lc->_M_decimal_point;
1116 const _CharT* __p;
1117 if (__p = char_traits<_CharT>::find(__ws, __len, __cdec))
1118 __ws[__p - __ws] = __dec;
1119
1120 // Add grouping, if necessary.
1121 if (__lc->_M_use_grouping)
1122 {
1123 // Grouping can add (almost) as many separators as the
1124 // number of digits, but no more.
1125 _CharT* __ws2 = static_cast<_CharT*>(__builtin_alloca(sizeof(_CharT)
1126 * __len * 2));
1127 _M_group_float(__lc->_M_grouping, __lc->_M_grouping_size,
1128 __lc->_M_thousands_sep, __p, __ws2, __ws, __len);
1129 __ws = __ws2;
1130 }
1131
1132 // Pad.
1133 const streamsize __w = __io.width();
1134 if (__w > static_cast<streamsize>(__len))
1135 {
1136 _CharT* __ws3 = static_cast<_CharT*>(__builtin_alloca(sizeof(_CharT)
1137 * __w));
1138 _M_pad(__fill, __w, __io, __ws3, __ws, __len);
1139 __ws = __ws3;
1140 }
1141 __io.width(0);
1142
1143 // [22.2.2.2.2] Stage 4.
1144 // Write resulting, fully-formatted string to output iterator.
1145 return std::__write(__s, __ws, __len);
1146 }
1147
1148 template<typename _CharT, typename _OutIter>
1149 _OutIter
1150 num_put<_CharT, _OutIter>::
1151 do_put(iter_type __s, ios_base& __io, char_type __fill, bool __v) const
1152 {
1153 const ios_base::fmtflags __flags = __io.flags();
1154 if ((__flags & ios_base::boolalpha) == 0)
1155 {
1156 unsigned long __uv = __v;
1157 __s = _M_insert_int(__s, __io, __fill, __uv);
1158 }
1159 else
1160 {
1161 typedef typename numpunct<_CharT>::__cache_type __cache_type;
1162 __use_cache<__cache_type> __uc;
1163 const locale& __loc = __io._M_getloc();
1164 const __cache_type* __lc = __uc(__loc);
1165
1166 const _CharT* __name = __v ? __lc->_M_truename
1167 : __lc->_M_falsename;
1168 int __len = __v ? __lc->_M_truename_size
1169 : __lc->_M_falsename_size;
1170
1171 const streamsize __w = __io.width();
1172 if (__w > static_cast<streamsize>(__len))
1173 {
1174 _CharT* __cs
1175 = static_cast<_CharT*>(__builtin_alloca(sizeof(_CharT)
1176 * __w));
1177 _M_pad(__fill, __w, __io, __cs, __name, __len);
1178 __name = __cs;
1179 }
1180 __io.width(0);
1181 __s = std::__write(__s, __name, __len);
1182 }
1183 return __s;
1184 }
1185
1186 template<typename _CharT, typename _OutIter>
1187 _OutIter
1188 num_put<_CharT, _OutIter>::
1189 do_put(iter_type __s, ios_base& __io, char_type __fill, long __v) const
1190 { return _M_insert_int(__s, __io, __fill, __v); }
1191
1192 template<typename _CharT, typename _OutIter>
1193 _OutIter
1194 num_put<_CharT, _OutIter>::
1195 do_put(iter_type __s, ios_base& __io, char_type __fill,
1196 unsigned long __v) const
1197 { return _M_insert_int(__s, __io, __fill, __v); }
1198
1199 #ifdef _GLIBCXX_USE_LONG_LONG
1200 template<typename _CharT, typename _OutIter>
1201 _OutIter
1202 num_put<_CharT, _OutIter>::
1203 do_put(iter_type __s, ios_base& __b, char_type __fill, long long __v) const
1204 { return _M_insert_int(__s, __b, __fill, __v); }
1205
1206 template<typename _CharT, typename _OutIter>
1207 _OutIter
1208 num_put<_CharT, _OutIter>::
1209 do_put(iter_type __s, ios_base& __io, char_type __fill,
1210 unsigned long long __v) const
1211 { return _M_insert_int(__s, __io, __fill, __v); }
1212 #endif
1213
1214 template<typename _CharT, typename _OutIter>
1215 _OutIter
1216 num_put<_CharT, _OutIter>::
1217 do_put(iter_type __s, ios_base& __io, char_type __fill, double __v) const
1218 { return _M_insert_float(__s, __io, __fill, char(), __v); }
1219
1220 template<typename _CharT, typename _OutIter>
1221 _OutIter
1222 num_put<_CharT, _OutIter>::
1223 do_put(iter_type __s, ios_base& __io, char_type __fill,
1224 long double __v) const
1225 { return _M_insert_float(__s, __io, __fill, 'L', __v); }
1226
1227 template<typename _CharT, typename _OutIter>
1228 _OutIter
1229 num_put<_CharT, _OutIter>::
1230 do_put(iter_type __s, ios_base& __io, char_type __fill,
1231 const void* __v) const
1232 {
1233 const ios_base::fmtflags __flags = __io.flags();
1234 const ios_base::fmtflags __fmt = ~(ios_base::showpos
1235 | ios_base::basefield
1236 | ios_base::uppercase
1237 | ios_base::internal);
1238 __io.flags(__flags & __fmt | (ios_base::hex | ios_base::showbase));
1239
1240 __s = _M_insert_int(__s, __io, __fill,
1241 reinterpret_cast<unsigned long>(__v));
1242 __io.flags(__flags);
1243 return __s;
1244 }
1245
1246 template<typename _CharT, typename _InIter>
1247 template<bool _Intl>
1248 _InIter
1249 money_get<_CharT, _InIter>::
1250 _M_extract(iter_type __beg, iter_type __end, ios_base& __io,
1251 ios_base::iostate& __err, string& __units) const
1252 {
1253 typedef char_traits<_CharT> __traits_type;
1254 typedef typename string_type::size_type size_type;
1255 typedef money_base::part part;
1256 typedef moneypunct<_CharT, _Intl> __moneypunct_type;
1257 typedef typename __moneypunct_type::__cache_type __cache_type;
1258
1259 const locale& __loc = __io._M_getloc();
1260 const ctype<_CharT>& __ctype = use_facet<ctype<_CharT> >(__loc);
1261
1262 __use_cache<__cache_type> __uc;
1263 const __cache_type* __lc = __uc(__loc);
1264 const char_type* __lit = __lc->_M_atoms;
1265
1266 // Deduced sign.
1267 bool __negative = false;
1268 // Sign size.
1269 size_type __sign_size = 0;
1270 // True if sign is mandatory.
1271 const bool __mandatory_sign = (__lc->_M_positive_sign_size
1272 && __lc->_M_negative_sign_size);
1273 // String of grouping info from thousands_sep plucked from __units.
1274 string __grouping_tmp;
1275 if (__lc->_M_use_grouping)
1276 __grouping_tmp.reserve(32);
1277 // Last position before the decimal point.
1278 int __last_pos = 0;
1279 // Separator positions, then, possibly, fractional digits.
1280 int __n = 0;
1281 // If input iterator is in a valid state.
1282 bool __testvalid = true;
1283 // Flag marking when a decimal point is found.
1284 bool __testdecfound = false;
1285
1286 // The tentative returned string is stored here.
1287 string __res;
1288 __res.reserve(32);
1289
1290 const char_type* __lit_zero = __lit + money_base::_S_zero;
1291 const char_type* __q;
1292 const money_base::pattern __p = __lc->_M_neg_format;
1293 for (int __i = 0; __i < 4 && __testvalid; ++__i)
1294 {
1295 const part __which = static_cast<part>(__p.field[__i]);
1296 switch (__which)
1297 {
1298 case money_base::symbol:
1299 // According to 22.2.6.1.2, p2, symbol is required
1300 // if (__io.flags() & ios_base::showbase), otherwise
1301 // is optional and consumed only if other characters
1302 // are needed to complete the format.
1303 if (__io.flags() & ios_base::showbase || __sign_size > 1
1304 || __i == 0
1305 || (__i == 1 && (__mandatory_sign
1306 || (static_cast<part>(__p.field[0])
1307 == money_base::sign)
1308 || (static_cast<part>(__p.field[2])
1309 == money_base::space)))
1310 || (__i == 2 && ((static_cast<part>(__p.field[3])
1311 == money_base::value)
1312 || __mandatory_sign
1313 && (static_cast<part>(__p.field[3])
1314 == money_base::sign))))
1315 {
1316 const size_type __len = __lc->_M_curr_symbol_size;
1317 size_type __j = 0;
1318 for (; __beg != __end && __j < __len
1319 && *__beg == __lc->_M_curr_symbol[__j];
1320 ++__beg, ++__j);
1321 if (__j != __len
1322 && (__j || __io.flags() & ios_base::showbase))
1323 __testvalid = false;
1324 }
1325 break;
1326 case money_base::sign:
1327 // Sign might not exist, or be more than one character long.
1328 if (__lc->_M_positive_sign_size && __beg != __end
1329 && *__beg == __lc->_M_positive_sign[0])
1330 {
1331 __sign_size = __lc->_M_positive_sign_size;
1332 ++__beg;
1333 }
1334 else if (__lc->_M_negative_sign_size && __beg != __end
1335 && *__beg == __lc->_M_negative_sign[0])
1336 {
1337 __negative = true;
1338 __sign_size = __lc->_M_negative_sign_size;
1339 ++__beg;
1340 }
1341 else if (__lc->_M_positive_sign_size
1342 && !__lc->_M_negative_sign_size)
1343 // "... if no sign is detected, the result is given the sign
1344 // that corresponds to the source of the empty string"
1345 __negative = true;
1346 else if (__mandatory_sign)
1347 __testvalid = false;
1348 break;
1349 case money_base::value:
1350 // Extract digits, remove and stash away the
1351 // grouping of found thousands separators.
1352 for (; __beg != __end; ++__beg)
1353 if (__q = __traits_type::find(__lit_zero, 10, *__beg))
1354 {
1355 __res += money_base::_S_atoms[__q - __lit];
1356 ++__n;
1357 }
1358 else if (*__beg == __lc->_M_decimal_point && !__testdecfound)
1359 {
1360 __last_pos = __n;
1361 __n = 0;
1362 __testdecfound = true;
1363 }
1364 else if (__lc->_M_use_grouping
1365 && *__beg == __lc->_M_thousands_sep
1366 && !__testdecfound)
1367 {
1368 if (__n)
1369 {
1370 // Mark position for later analysis.
1371 __grouping_tmp += static_cast<char>(__n);
1372 __n = 0;
1373 }
1374 else
1375 {
1376 __testvalid = false;
1377 break;
1378 }
1379 }
1380 else
1381 break;
1382 if (__res.empty())
1383 __testvalid = false;
1384 break;
1385 case money_base::space:
1386 // At least one space is required.
1387 if (__beg != __end && __ctype.is(ctype_base::space, *__beg))
1388 ++__beg;
1389 else
1390 __testvalid = false;
1391 case money_base::none:
1392 // Only if not at the end of the pattern.
1393 if (__i != 3)
1394 for (; __beg != __end
1395 && __ctype.is(ctype_base::space, *__beg); ++__beg);
1396 break;
1397 }
1398 }
1399
1400 // Need to get the rest of the sign characters, if they exist.
1401 if (__sign_size > 1 && __testvalid)
1402 {
1403 const char_type* __sign = __negative ? __lc->_M_negative_sign
1404 : __lc->_M_positive_sign;
1405 size_type __i = 1;
1406 for (; __beg != __end && __i < __sign_size
1407 && *__beg == __sign[__i]; ++__beg, ++__i);
1408
1409 if (__i != __sign_size)
1410 __testvalid = false;
1411 }
1412
1413 if (__testvalid)
1414 {
1415 // Strip leading zeros.
1416 if (__res.size() > 1)
1417 {
1418 const size_type __first = __res.find_first_not_of('0');
1419 const bool __only_zeros = __first == string::npos;
1420 if (__first)
1421 __res.erase(0, __only_zeros ? __res.size() - 1 : __first);
1422 }
1423
1424 // 22.2.6.1.2, p4
1425 if (__negative && __res[0] != '0')
1426 __res.insert(__res.begin(), '-');
1427
1428 // Test for grouping fidelity.
1429 if (__grouping_tmp.size())
1430 {
1431 // Add the ending grouping.
1432 __grouping_tmp += static_cast<char>(__testdecfound ? __last_pos
1433 : __n);
1434 if (!std::__verify_grouping(__lc->_M_grouping,
1435 __lc->_M_grouping_size,
1436 __grouping_tmp))
1437 __testvalid = false;
1438 }
1439
1440 // Iff not enough digits were supplied after the decimal-point.
1441 if (__testdecfound && __lc->_M_frac_digits > 0
1442 && __n != __lc->_M_frac_digits)
1443 __testvalid = false;
1444 }
1445
1446 // Iff no more characters are available.
1447 if (__beg == __end)
1448 __err |= ios_base::eofbit;
1449
1450 // Iff valid sequence is not recognized.
1451 if (!__testvalid)
1452 __err |= ios_base::failbit;
1453 else
1454 __units.swap(__res);
1455
1456 return __beg;
1457 }
1458
1459 template<typename _CharT, typename _InIter>
1460 _InIter
1461 money_get<_CharT, _InIter>::
1462 do_get(iter_type __beg, iter_type __end, bool __intl, ios_base& __io,
1463 ios_base::iostate& __err, long double& __units) const
1464 {
1465 string __str;
1466 if (__intl)
1467 __beg = _M_extract<true>(__beg, __end, __io, __err, __str);
1468 else
1469 __beg = _M_extract<false>(__beg, __end, __io, __err, __str);
1470 std::__convert_to_v(__str.c_str(), __units, __err, _S_get_c_locale());
1471 return __beg;
1472 }
1473
1474 template<typename _CharT, typename _InIter>
1475 _InIter
1476 money_get<_CharT, _InIter>::
1477 do_get(iter_type __beg, iter_type __end, bool __intl, ios_base& __io,
1478 ios_base::iostate& __err, string_type& __units) const
1479 {
1480 typedef typename string::size_type size_type;
1481
1482 const locale& __loc = __io._M_getloc();
1483 const ctype<_CharT>& __ctype = use_facet<ctype<_CharT> >(__loc);
1484
1485 string __str;
1486 const iter_type __ret = __intl ? _M_extract<true>(__beg, __end, __io,
1487 __err, __str)
1488 : _M_extract<false>(__beg, __end, __io,
1489 __err, __str);
1490 const size_type __len = __str.size();
1491 if (__len)
1492 {
1493 _CharT* __ws = static_cast<_CharT*>(__builtin_alloca(sizeof(_CharT)
1494 * __len));
1495 __ctype.widen(__str.data(), __str.data() + __len, __ws);
1496 __units.assign(__ws, __len);
1497 }
1498
1499 return __ret;
1500 }
1501
1502 template<typename _CharT, typename _OutIter>
1503 template<bool _Intl>
1504 _OutIter
1505 money_put<_CharT, _OutIter>::
1506 _M_insert(iter_type __s, ios_base& __io, char_type __fill,
1507 const string_type& __digits) const
1508 {
1509 typedef typename string_type::size_type size_type;
1510 typedef money_base::part part;
1511 typedef moneypunct<_CharT, _Intl> __moneypunct_type;
1512 typedef typename __moneypunct_type::__cache_type __cache_type;
1513
1514 const locale& __loc = __io._M_getloc();
1515 const ctype<_CharT>& __ctype = use_facet<ctype<_CharT> >(__loc);
1516
1517 __use_cache<__cache_type> __uc;
1518 const __cache_type* __lc = __uc(__loc);
1519 const char_type* __lit = __lc->_M_atoms;
1520
1521 // Determine if negative or positive formats are to be used, and
1522 // discard leading negative_sign if it is present.
1523 const char_type* __beg = __digits.data();
1524
1525 money_base::pattern __p;
1526 const char_type* __sign;
1527 size_type __sign_size;
1528 if (*__beg != __lit[money_base::_S_minus])
1529 {
1530 __p = __lc->_M_pos_format;
1531 __sign = __lc->_M_positive_sign;
1532 __sign_size = __lc->_M_positive_sign_size;
1533 }
1534 else
1535 {
1536 __p = __lc->_M_neg_format;
1537 __sign = __lc->_M_negative_sign;
1538 __sign_size = __lc->_M_negative_sign_size;
1539 if (__digits.size())
1540 ++__beg;
1541 }
1542
1543 // Look for valid numbers in the ctype facet within input digits.
1544 size_type __len = __ctype.scan_not(ctype_base::digit, __beg,
1545 __beg + __digits.size()) - __beg;
1546 if (__len)
1547 {
1548 // Assume valid input, and attempt to format.
1549 // Break down input numbers into base components, as follows:
1550 // final_value = grouped units + (decimal point) + (digits)
1551 string_type __value;
1552 __value.reserve(2 * __len);
1553
1554 // Add thousands separators to non-decimal digits, per
1555 // grouping rules.
1556 int __paddec = __len - __lc->_M_frac_digits;
1557 if (__paddec > 0)
1558 {
1559 if (__lc->_M_frac_digits < 0)
1560 __paddec = __len;
1561 if (__lc->_M_grouping_size)
1562 {
1563 _CharT* __ws =
1564 static_cast<_CharT*>(__builtin_alloca(sizeof(_CharT)
1565 * 2 * __len));
1566 _CharT* __ws_end =
1567 std::__add_grouping(__ws, __lc->_M_thousands_sep,
1568 __lc->_M_grouping,
1569 __lc->_M_grouping_size,
1570 __beg, __beg + __paddec);
1571 __value.assign(__ws, __ws_end - __ws);
1572 }
1573 else
1574 __value.assign(__beg, __paddec);
1575 }
1576
1577 // Deal with decimal point, decimal digits.
1578 if (__lc->_M_frac_digits > 0)
1579 {
1580 __value += __lc->_M_decimal_point;
1581 if (__paddec >= 0)
1582 __value.append(__beg + __paddec, __lc->_M_frac_digits);
1583 else
1584 {
1585 // Have to pad zeros in the decimal position.
1586 __value.append(-__paddec, __lit[money_base::_S_zero]);
1587 __value.append(__beg, __len);
1588 }
1589 }
1590
1591 // Calculate length of resulting string.
1592 const ios_base::fmtflags __f = __io.flags()
1593 & ios_base::adjustfield;
1594 __len = __value.size() + __sign_size;
1595 __len += ((__io.flags() & ios_base::showbase)
1596 ? __lc->_M_curr_symbol_size : 0);
1597
1598 string_type __res;
1599 __res.reserve(2 * __len);
1600
1601 const size_type __width = static_cast<size_type>(__io.width());
1602 const bool __testipad = (__f == ios_base::internal
1603 && __len < __width);
1604 // Fit formatted digits into the required pattern.
1605 for (int __i = 0; __i < 4; ++__i)
1606 {
1607 const part __which = static_cast<part>(__p.field[__i]);
1608 switch (__which)
1609 {
1610 case money_base::symbol:
1611 if (__io.flags() & ios_base::showbase)
1612 __res.append(__lc->_M_curr_symbol,
1613 __lc->_M_curr_symbol_size);
1614 break;
1615 case money_base::sign:
1616 // Sign might not exist, or be more than one
1617 // charater long. In that case, add in the rest
1618 // below.
1619 if (__sign_size)
1620 __res += __sign[0];
1621 break;
1622 case money_base::value:
1623 __res += __value;
1624 break;
1625 case money_base::space:
1626 // At least one space is required, but if internal
1627 // formatting is required, an arbitrary number of
1628 // fill spaces will be necessary.
1629 if (__testipad)
1630 __res.append(__width - __len, __fill);
1631 else
1632 __res += __fill;
1633 break;
1634 case money_base::none:
1635 if (__testipad)
1636 __res.append(__width - __len, __fill);
1637 break;
1638 }
1639 }
1640
1641 // Special case of multi-part sign parts.
1642 if (__sign_size > 1)
1643 __res.append(__sign + 1, __sign_size - 1);
1644
1645 // Pad, if still necessary.
1646 __len = __res.size();
1647 if (__width > __len)
1648 {
1649 if (__f == ios_base::left)
1650 // After.
1651 __res.append(__width - __len, __fill);
1652 else
1653 // Before.
1654 __res.insert(0, __width - __len, __fill);
1655 __len = __width;
1656 }
1657
1658 // Write resulting, fully-formatted string to output iterator.
1659 __s = std::__write(__s, __res.data(), __len);
1660 }
1661 __io.width(0);
1662 return __s;
1663 }
1664
1665 template<typename _CharT, typename _OutIter>
1666 _OutIter
1667 money_put<_CharT, _OutIter>::
1668 do_put(iter_type __s, bool __intl, ios_base& __io, char_type __fill,
1669 long double __units) const
1670 {
1671 const locale __loc = __io.getloc();
1672 const ctype<_CharT>& __ctype = use_facet<ctype<_CharT> >(__loc);
1673 #ifdef _GLIBCXX_USE_C99
1674 // First try a buffer perhaps big enough.
1675 int __cs_size = 64;
1676 char* __cs = static_cast<char*>(__builtin_alloca(__cs_size));
1677 // _GLIBCXX_RESOLVE_LIB_DEFECTS
1678 // 328. Bad sprintf format modifier in money_put<>::do_put()
1679 int __len = std::__convert_from_v(__cs, __cs_size, "%.0Lf", __units,
1680 _S_get_c_locale());
1681 // If the buffer was not large enough, try again with the correct size.
1682 if (__len >= __cs_size)
1683 {
1684 __cs_size = __len + 1;
1685 __cs = static_cast<char*>(__builtin_alloca(__cs_size));
1686 __len = std::__convert_from_v(__cs, __cs_size, "%.0Lf", __units,
1687 _S_get_c_locale());
1688 }
1689 #else
1690 // max_exponent10 + 1 for the integer part, + 2 for sign and '\0'.
1691 const int __cs_size = numeric_limits<long double>::max_exponent10 + 3;
1692 char* __cs = static_cast<char*>(__builtin_alloca(__cs_size));
1693 int __len = std::__convert_from_v(__cs, 0, "%.0Lf", __units,
1694 _S_get_c_locale());
1695 #endif
1696 _CharT* __ws = static_cast<_CharT*>(__builtin_alloca(sizeof(_CharT)
1697 * __cs_size));
1698 __ctype.widen(__cs, __cs + __len, __ws);
1699 const string_type __digits(__ws, __len);
1700 return __intl ? _M_insert<true>(__s, __io, __fill, __digits)
1701 : _M_insert<false>(__s, __io, __fill, __digits);
1702 }
1703
1704 template<typename _CharT, typename _OutIter>
1705 _OutIter
1706 money_put<_CharT, _OutIter>::
1707 do_put(iter_type __s, bool __intl, ios_base& __io, char_type __fill,
1708 const string_type& __digits) const
1709 { return __intl ? _M_insert<true>(__s, __io, __fill, __digits)
1710 : _M_insert<false>(__s, __io, __fill, __digits); }
1711
1712
1713 // NB: Not especially useful. Without an ios_base object or some
1714 // kind of locale reference, we are left clawing at the air where
1715 // the side of the mountain used to be...
1716 template<typename _CharT, typename _InIter>
1717 time_base::dateorder
1718 time_get<_CharT, _InIter>::do_date_order() const
1719 { return time_base::no_order; }
1720
1721 // Recursively expand a strftime format string and parse it. Starts w/ %x
1722 // and %X from do_get_time() and do_get_date(), which translate to a more
1723 // specific string, which may contain yet more strings. I.e. %x => %r =>
1724 // %H:%M:%S => extracted characters.
1725 template<typename _CharT, typename _InIter>
1726 _InIter
1727 time_get<_CharT, _InIter>::
1728 _M_extract_via_format(iter_type __beg, iter_type __end, ios_base& __io,
1729 ios_base::iostate& __err, tm* __tm,
1730 const _CharT* __format) const
1731 {
1732 const locale& __loc = __io._M_getloc();
1733 const __timepunct<_CharT>& __tp = use_facet<__timepunct<_CharT> >(__loc);
1734 const ctype<_CharT>& __ctype = use_facet<ctype<_CharT> >(__loc);
1735 const size_t __len = char_traits<_CharT>::length(__format);
1736
1737 for (size_t __i = 0; __beg != __end && __i < __len && !__err; ++__i)
1738 {
1739 if (__ctype.narrow(__format[__i], 0) == '%')
1740 {
1741 // Verify valid formatting code, attempt to extract.
1742 char __c = __ctype.narrow(__format[++__i], 0);
1743 int __mem = 0;
1744 if (__c == 'E' || __c == 'O')
1745 __c = __ctype.narrow(__format[++__i], 0);
1746 switch (__c)
1747 {
1748 const char* __cs;
1749 _CharT __wcs[10];
1750 case 'a':
1751 // Abbreviated weekday name [tm_wday]
1752 const char_type* __days1[7];
1753 __tp._M_days_abbreviated(__days1);
1754 __beg = _M_extract_name(__beg, __end, __tm->tm_wday, __days1,
1755 7, __io, __err);
1756 break;
1757 case 'A':
1758 // Weekday name [tm_wday].
1759 const char_type* __days2[7];
1760 __tp._M_days(__days2);
1761 __beg = _M_extract_name(__beg, __end, __tm->tm_wday, __days2,
1762 7, __io, __err);
1763 break;
1764 case 'h':
1765 case 'b':
1766 // Abbreviated month name [tm_mon]
1767 const char_type* __months1[12];
1768 __tp._M_months_abbreviated(__months1);
1769 __beg = _M_extract_name(__beg, __end, __tm->tm_mon,
1770 __months1, 12, __io, __err);
1771 break;
1772 case 'B':
1773 // Month name [tm_mon].
1774 const char_type* __months2[12];
1775 __tp._M_months(__months2);
1776 __beg = _M_extract_name(__beg, __end, __tm->tm_mon,
1777 __months2, 12, __io, __err);
1778 break;
1779 case 'c':
1780 // Default time and date representation.
1781 const char_type* __dt[2];
1782 __tp._M_date_time_formats(__dt);
1783 __beg = _M_extract_via_format(__beg, __end, __io, __err,
1784 __tm, __dt[0]);
1785 break;
1786 case 'd':
1787 // Day [01, 31]. [tm_mday]
1788 __beg = _M_extract_num(__beg, __end, __tm->tm_mday, 1, 31, 2,
1789 __io, __err);
1790 break;
1791 case 'e':
1792 // Day [1, 31], with single digits preceded by
1793 // space. [tm_mday]
1794 if (__ctype.is(ctype_base::space, *__beg))
1795 __beg = _M_extract_num(++__beg, __end, __tm->tm_mday, 1, 9,
1796 1, __io, __err);
1797 else
1798 __beg = _M_extract_num(__beg, __end, __tm->tm_mday, 10, 31,
1799 2, __io, __err);
1800 break;
1801 case 'D':
1802 // Equivalent to %m/%d/%y.[tm_mon, tm_mday, tm_year]
1803 __cs = "%m/%d/%y";
1804 __ctype.widen(__cs, __cs + 9, __wcs);
1805 __beg = _M_extract_via_format(__beg, __end, __io, __err,
1806 __tm, __wcs);
1807 break;
1808 case 'H':
1809 // Hour [00, 23]. [tm_hour]
1810 __beg = _M_extract_num(__beg, __end, __tm->tm_hour, 0, 23, 2,
1811 __io, __err);
1812 break;
1813 case 'I':
1814 // Hour [01, 12]. [tm_hour]
1815 __beg = _M_extract_num(__beg, __end, __tm->tm_hour, 1, 12, 2,
1816 __io, __err);
1817 break;
1818 case 'm':
1819 // Month [01, 12]. [tm_mon]
1820 __beg = _M_extract_num(__beg, __end, __mem, 1, 12, 2,
1821 __io, __err);
1822 if (!__err)
1823 __tm->tm_mon = __mem - 1;
1824 break;
1825 case 'M':
1826 // Minute [00, 59]. [tm_min]
1827 __beg = _M_extract_num(__beg, __end, __tm->tm_min, 0, 59, 2,
1828 __io, __err);
1829 break;
1830 case 'n':
1831 if (__ctype.narrow(*__beg, 0) == '\n')
1832 ++__beg;
1833 else
1834 __err |= ios_base::failbit;
1835 break;
1836 case 'R':
1837 // Equivalent to (%H:%M).
1838 __cs = "%H:%M";
1839 __ctype.widen(__cs, __cs + 6, __wcs);
1840 __beg = _M_extract_via_format(__beg, __end, __io, __err,
1841 __tm, __wcs);
1842 break;
1843 case 'S':
1844 // Seconds.
1845 __beg = _M_extract_num(__beg, __end, __tm->tm_sec, 0, 59, 2,
1846 __io, __err);
1847 break;
1848 case 't':
1849 if (__ctype.narrow(*__beg, 0) == '\t')
1850 ++__beg;
1851 else
1852 __err |= ios_base::failbit;
1853 break;
1854 case 'T':
1855 // Equivalent to (%H:%M:%S).
1856 __cs = "%H:%M:%S";
1857 __ctype.widen(__cs, __cs + 9, __wcs);
1858 __beg = _M_extract_via_format(__beg, __end, __io, __err,
1859 __tm, __wcs);
1860 break;
1861 case 'x':
1862 // Locale's date.
1863 const char_type* __dates[2];
1864 __tp._M_date_formats(__dates);
1865 __beg = _M_extract_via_format(__beg, __end, __io, __err,
1866 __tm, __dates[0]);
1867 break;
1868 case 'X':
1869 // Locale's time.
1870 const char_type* __times[2];
1871 __tp._M_time_formats(__times);
1872 __beg = _M_extract_via_format(__beg, __end, __io, __err,
1873 __tm, __times[0]);
1874 break;
1875 case 'y':
1876 case 'C': // C99
1877 // Two digit year. [tm_year]
1878 __beg = _M_extract_num(__beg, __end, __tm->tm_year, 0, 99, 2,
1879 __io, __err);
1880 break;
1881 case 'Y':
1882 // Year [1900). [tm_year]
1883 __beg = _M_extract_num(__beg, __end, __mem, 0, 9999, 4,
1884 __io, __err);
1885 if (!__err)
1886 __tm->tm_year = __mem - 1900;
1887 break;
1888 case 'Z':
1889 // Timezone info.
1890 if (__ctype.is(ctype_base::upper, *__beg))
1891 {
1892 int __tmp;
1893 __beg = _M_extract_name(__beg, __end, __tmp,
1894 __timepunct_cache<_CharT>::_S_timezones,
1895 14, __io, __err);
1896
1897 // GMT requires special effort.
1898 if (__beg != __end && !__err && __tmp == 0
1899 && (*__beg == __ctype.widen('-')
1900 || *__beg == __ctype.widen('+')))
1901 {
1902 __beg = _M_extract_num(__beg, __end, __tmp, 0, 23, 2,
1903 __io, __err);
1904 __beg = _M_extract_num(__beg, __end, __tmp, 0, 59, 2,
1905 __io, __err);
1906 }
1907 }
1908 else
1909 __err |= ios_base::failbit;
1910 break;
1911 default:
1912 // Not recognized.
1913 __err |= ios_base::failbit;
1914 }
1915 }
1916 else
1917 {
1918 // Verify format and input match, extract and discard.
1919 if (__format[__i] == *__beg)
1920 ++__beg;
1921 else
1922 __err |= ios_base::failbit;
1923 }
1924 }
1925 return __beg;
1926 }
1927
1928 template<typename _CharT, typename _InIter>
1929 _InIter
1930 time_get<_CharT, _InIter>::
1931 _M_extract_num(iter_type __beg, iter_type __end, int& __member,
1932 int __min, int __max, size_t __len,
1933 ios_base& __io, ios_base::iostate& __err) const
1934 {
1935 const locale& __loc = __io._M_getloc();
1936 const ctype<_CharT>& __ctype = use_facet<ctype<_CharT> >(__loc);
1937
1938 // As-is works for __len = 1, 2, 4, the values actually used.
1939 int __mult = __len == 2 ? 10 : (__len == 4 ? 1000 : 1);
1940
1941 ++__min;
1942 size_t __i = 0;
1943 int __value = 0;
1944 for (; __beg != __end && __i < __len; ++__beg, ++__i)
1945 {
1946 const char __c = __ctype.narrow(*__beg, '*');
1947 if (__c >= '0' && __c <= '9')
1948 {
1949 __value = __value * 10 + (__c - '0');
1950 const int __valuec = __value * __mult;
1951 if (__valuec > __max || __valuec + __mult < __min)
1952 break;
1953 __mult /= 10;
1954 }
1955 else
1956 break;
1957 }
1958 if (__i == __len)
1959 __member = __value;
1960 else
1961 __err |= ios_base::failbit;
1962 return __beg;
1963 }
1964
1965 // Assumptions:
1966 // All elements in __names are unique.
1967 template<typename _CharT, typename _InIter>
1968 _InIter
1969 time_get<_CharT, _InIter>::
1970 _M_extract_name(iter_type __beg, iter_type __end, int& __member,
1971 const _CharT** __names, size_t __indexlen,
1972 ios_base& __io, ios_base::iostate& __err) const
1973 {
1974 typedef char_traits<_CharT> __traits_type;
1975 const locale& __loc = __io._M_getloc();
1976 const ctype<_CharT>& __ctype = use_facet<ctype<_CharT> >(__loc);
1977
1978 int* __matches = static_cast<int*>(__builtin_alloca(sizeof(int)
1979 * __indexlen));
1980 size_t __nmatches = 0;
1981 size_t __pos = 0;
1982 bool __testvalid = true;
1983 const char_type* __name;
1984
1985 // Look for initial matches.
1986 // NB: Some of the locale data is in the form of all lowercase
1987 // names, and some is in the form of initially-capitalized
1988 // names. Look for both.
1989 if (__beg != __end)
1990 {
1991 const char_type __c = *__beg;
1992 for (size_t __i1 = 0; __i1 < __indexlen; ++__i1)
1993 if (__c == __names[__i1][0]
1994 || __c == __ctype.toupper(__names[__i1][0]))
1995 __matches[__nmatches++] = __i1;
1996 }
1997
1998 while (__nmatches > 1)
1999 {
2000 // Find smallest matching string.
2001 size_t __minlen = 10;
2002 for (size_t __i2 = 0; __i2 < __nmatches; ++__i2)
2003 __minlen = std::min(__minlen,
2004 __traits_type::length(__names[__matches[__i2]]));
2005 ++__beg;
2006 if (__pos < __minlen && __beg != __end)
2007 {
2008 ++__pos;
2009 for (size_t __i3 = 0; __i3 < __nmatches; ++__i3)
2010 {
2011 __name = __names[__matches[__i3]];
2012 if (__name[__pos] != *__beg)
2013 __matches[__i3] = __matches[--__nmatches];
2014 }
2015 }
2016 else
2017 break;
2018 }
2019
2020 if (__nmatches == 1)
2021 {
2022 // If there was only one match, the first compare is redundant.
2023 if (__pos == 0)
2024 {
2025 ++__pos;
2026 ++__beg;
2027 }
2028
2029 // Make sure found name is completely extracted.
2030 __name = __names[__matches[0]];
2031 const size_t __len = __traits_type::length(__name);
2032 while (__pos < __len && __beg != __end && __name[__pos] == *__beg)
2033 ++__beg, ++__pos;
2034
2035 if (__len == __pos)
2036 __member = __matches[0];
2037 else
2038 __testvalid = false;
2039 }
2040 else
2041 __testvalid = false;
2042 if (!__testvalid)
2043 __err |= ios_base::failbit;
2044 return __beg;
2045 }
2046
2047 template<typename _CharT, typename _InIter>
2048 _InIter
2049 time_get<_CharT, _InIter>::
2050 do_get_time(iter_type __beg, iter_type __end, ios_base& __io,
2051 ios_base::iostate& __err, tm* __tm) const
2052 {
2053 _CharT __wcs[3];
2054 const char* __cs = "%X";
2055 const locale& __loc = __io._M_getloc();
2056 ctype<_CharT> const& __ctype = use_facet<ctype<_CharT> >(__loc);
2057 __ctype.widen(__cs, __cs + 3, __wcs);
2058 __beg = _M_extract_via_format(__beg, __end, __io, __err, __tm, __wcs);
2059 if (__beg == __end)
2060 __err |= ios_base::eofbit;
2061 return __beg;
2062 }
2063
2064 template<typename _CharT, typename _InIter>
2065 _InIter
2066 time_get<_CharT, _InIter>::
2067 do_get_date(iter_type __beg, iter_type __end, ios_base& __io,
2068 ios_base::iostate& __err, tm* __tm) const
2069 {
2070 _CharT __wcs[3];
2071 const char* __cs = "%x";
2072 const locale& __loc = __io._M_getloc();
2073 ctype<_CharT> const& __ctype = use_facet<ctype<_CharT> >(__loc);
2074 __ctype.widen(__cs, __cs + 3, __wcs);
2075 __beg = _M_extract_via_format(__beg, __end, __io, __err, __tm, __wcs);
2076 if (__beg == __end)
2077 __err |= ios_base::eofbit;
2078 return __beg;
2079 }
2080
2081 template<typename _CharT, typename _InIter>
2082 _InIter
2083 time_get<_CharT, _InIter>::
2084 do_get_weekday(iter_type __beg, iter_type __end, ios_base& __io,
2085 ios_base::iostate& __err, tm* __tm) const
2086 {
2087 typedef char_traits<_CharT> __traits_type;
2088 const locale& __loc = __io._M_getloc();
2089 const __timepunct<_CharT>& __tp = use_facet<__timepunct<_CharT> >(__loc);
2090 const ctype<_CharT>& __ctype = use_facet<ctype<_CharT> >(__loc);
2091 const char_type* __days[7];
2092 __tp._M_days_abbreviated(__days);
2093 int __tmpwday;
2094 __beg = _M_extract_name(__beg, __end, __tmpwday, __days, 7, __io, __err);
2095
2096 // Check to see if non-abbreviated name exists, and extract.
2097 // NB: Assumes both _M_days and _M_days_abbreviated organized in
2098 // exact same order, first to last, such that the resulting
2099 // __days array with the same index points to a day, and that
2100 // day's abbreviated form.
2101 // NB: Also assumes that an abbreviated name is a subset of the name.
2102 if (!__err)
2103 {
2104 size_t __pos = __traits_type::length(__days[__tmpwday]);
2105 __tp._M_days(__days);
2106 const char_type* __name = __days[__tmpwday];
2107 if (__name[__pos] == *__beg)
2108 {
2109 // Extract the rest of it.
2110 const size_t __len = __traits_type::length(__name);
2111 while (__pos < __len && __beg != __end
2112 && __name[__pos] == *__beg)
2113 ++__beg, ++__pos;
2114 if (__len != __pos)
2115 __err |= ios_base::failbit;
2116 }
2117 if (!__err)
2118 __tm->tm_wday = __tmpwday;
2119 }
2120 if (__beg == __end)
2121 __err |= ios_base::eofbit;
2122 return __beg;
2123 }
2124
2125 template<typename _CharT, typename _InIter>
2126 _InIter
2127 time_get<_CharT, _InIter>::
2128 do_get_monthname(iter_type __beg, iter_type __end,
2129 ios_base& __io, ios_base::iostate& __err, tm* __tm) const
2130 {
2131 typedef char_traits<_CharT> __traits_type;
2132 const locale& __loc = __io._M_getloc();
2133 const __timepunct<_CharT>& __tp = use_facet<__timepunct<_CharT> >(__loc);
2134 const ctype<_CharT>& __ctype = use_facet<ctype<_CharT> >(__loc);
2135 const char_type* __months[12];
2136 __tp._M_months_abbreviated(__months);
2137 int __tmpmon;
2138 __beg = _M_extract_name(__beg, __end, __tmpmon, __months, 12,
2139 __io, __err);
2140
2141 // Check to see if non-abbreviated name exists, and extract.
2142 // NB: Assumes both _M_months and _M_months_abbreviated organized in
2143 // exact same order, first to last, such that the resulting
2144 // __months array with the same index points to a month, and that
2145 // month's abbreviated form.
2146 // NB: Also assumes that an abbreviated name is a subset of the name.
2147 if (!__err)
2148 {
2149 size_t __pos = __traits_type::length(__months[__tmpmon]);
2150 __tp._M_months(__months);
2151 const char_type* __name = __months[__tmpmon];
2152 if (__name[__pos] == *__beg)
2153 {
2154 // Extract the rest of it.
2155 const size_t __len = __traits_type::length(__name);
2156 while (__pos < __len && __beg != __end
2157 && __name[__pos] == *__beg)
2158 ++__beg, ++__pos;
2159 if (__len != __pos)
2160 __err |= ios_base::failbit;
2161 }
2162 if (!__err)
2163 __tm->tm_mon = __tmpmon;
2164 }
2165
2166 if (__beg == __end)
2167 __err |= ios_base::eofbit;
2168 return __beg;
2169 }
2170
2171 template<typename _CharT, typename _InIter>
2172 _InIter
2173 time_get<_CharT, _InIter>::
2174 do_get_year(iter_type __beg, iter_type __end, ios_base& __io,
2175 ios_base::iostate& __err, tm* __tm) const
2176 {
2177 const locale& __loc = __io._M_getloc();
2178 const ctype<_CharT>& __ctype = use_facet<ctype<_CharT> >(__loc);
2179
2180 size_t __i = 0;
2181 int __value = 0;
2182 for (; __beg != __end && __i < 4; ++__beg, ++__i)
2183 {
2184 const char __c = __ctype.narrow(*__beg, '*');
2185 if (__c >= '0' && __c <= '9')
2186 __value = __value * 10 + (__c - '0');
2187 else
2188 break;
2189 }
2190 if (__i == 2 || __i == 4)
2191 __tm->tm_year = __i == 2 ? __value : __value - 1900;
2192 else
2193 __err |= ios_base::failbit;
2194 if (__beg == __end)
2195 __err |= ios_base::eofbit;
2196 return __beg;
2197 }
2198
2199 template<typename _CharT, typename _OutIter>
2200 _OutIter
2201 time_put<_CharT, _OutIter>::
2202 put(iter_type __s, ios_base& __io, char_type __fill, const tm* __tm,
2203 const _CharT* __beg, const _CharT* __end) const
2204 {
2205 const locale& __loc = __io._M_getloc();
2206 ctype<_CharT> const& __ctype = use_facet<ctype<_CharT> >(__loc);
2207 for (; __beg != __end; ++__beg)
2208 if (__ctype.narrow(*__beg, 0) != '%')
2209 {
2210 *__s = *__beg;
2211 ++__s;
2212 }
2213 else if (++__beg != __end)
2214 {
2215 char __format;
2216 char __mod = 0;
2217 const char __c = __ctype.narrow(*__beg, 0);
2218 if (__c != 'E' && __c != 'O')
2219 __format = __c;
2220 else if (++__beg != __end)
2221 {
2222 __mod = __c;
2223 __format = __ctype.narrow(*__beg, 0);
2224 }
2225 else
2226 break;
2227 __s = this->do_put(__s, __io, __fill, __tm, __format, __mod);
2228 }
2229 else
2230 break;
2231 return __s;
2232 }
2233
2234 template<typename _CharT, typename _OutIter>
2235 _OutIter
2236 time_put<_CharT, _OutIter>::
2237 do_put(iter_type __s, ios_base& __io, char_type, const tm* __tm,
2238 char __format, char __mod) const
2239 {
2240 const locale& __loc = __io._M_getloc();
2241 ctype<_CharT> const& __ctype = use_facet<ctype<_CharT> >(__loc);
2242 __timepunct<_CharT> const& __tp = use_facet<__timepunct<_CharT> >(__loc);
2243
2244 // NB: This size is arbitrary. Should this be a data member,
2245 // initialized at construction?
2246 const size_t __maxlen = 64;
2247 char_type* __res =
2248 static_cast<char_type*>(__builtin_alloca(sizeof(char_type) * __maxlen));
2249
2250 // NB: In IEE 1003.1-200x, and perhaps other locale models, it
2251 // is possible that the format character will be longer than one
2252 // character. Possibilities include 'E' or 'O' followed by a
2253 // format character: if __mod is not the default argument, assume
2254 // it's a valid modifier.
2255 char_type __fmt[4];
2256 __fmt[0] = __ctype.widen('%');
2257 if (!__mod)
2258 {
2259 __fmt[1] = __format;
2260 __fmt[2] = char_type();
2261 }
2262 else
2263 {
2264 __fmt[1] = __mod;
2265 __fmt[2] = __format;
2266 __fmt[3] = char_type();
2267 }
2268
2269 __tp._M_put(__res, __maxlen, __fmt, __tm);
2270
2271 // Write resulting, fully-formatted string to output iterator.
2272 return std::__write(__s, __res, char_traits<char_type>::length(__res));
2273 }
2274
2275
2276 // Generic version does nothing.
2277 template<typename _CharT>
2278 int
2279 collate<_CharT>::_M_compare(const _CharT*, const _CharT*) const
2280 { return 0; }
2281
2282 // Generic version does nothing.
2283 template<typename _CharT>
2284 size_t
2285 collate<_CharT>::_M_transform(_CharT*, const _CharT*, size_t) const
2286 { return 0; }
2287
2288 template<typename _CharT>
2289 int
2290 collate<_CharT>::
2291 do_compare(const _CharT* __lo1, const _CharT* __hi1,
2292 const _CharT* __lo2, const _CharT* __hi2) const
2293 {
2294 // strcoll assumes zero-terminated strings so we make a copy
2295 // and then put a zero at the end.
2296 const string_type __one(__lo1, __hi1);
2297 const string_type __two(__lo2, __hi2);
2298
2299 const _CharT* __p = __one.c_str();
2300 const _CharT* __pend = __one.data() + __one.length();
2301 const _CharT* __q = __two.c_str();
2302 const _CharT* __qend = __two.data() + __two.length();
2303
2304 // strcoll stops when it sees a nul character so we break
2305 // the strings into zero-terminated substrings and pass those
2306 // to strcoll.
2307 for (;;)
2308 {
2309 const int __res = _M_compare(__p, __q);
2310 if (__res)
2311 return __res;
2312
2313 __p += char_traits<_CharT>::length(__p);
2314 __q += char_traits<_CharT>::length(__q);
2315 if (__p == __pend && __q == __qend)
2316 return 0;
2317 else if (__p == __pend)
2318 return -1;
2319 else if (__q == __qend)
2320 return 1;
2321
2322 __p++;
2323 __q++;
2324 }
2325 }
2326
2327 template<typename _CharT>
2328 typename collate<_CharT>::string_type
2329 collate<_CharT>::
2330 do_transform(const _CharT* __lo, const _CharT* __hi) const
2331 {
2332 // strxfrm assumes zero-terminated strings so we make a copy
2333 string_type __str(__lo, __hi);
2334
2335 const _CharT* __p = __str.c_str();
2336 const _CharT* __pend = __str.data() + __str.length();
2337
2338 size_t __len = (__hi - __lo) * 2;
2339
2340 string_type __ret;
2341
2342 // strxfrm stops when it sees a nul character so we break
2343 // the string into zero-terminated substrings and pass those
2344 // to strxfrm.
2345 for (;;)
2346 {
2347 // First try a buffer perhaps big enough.
2348 _CharT* __c =
2349 static_cast<_CharT*>(__builtin_alloca(sizeof(_CharT) * __len));
2350 size_t __res = _M_transform(__c, __p, __len);
2351 // If the buffer was not large enough, try again with the
2352 // correct size.
2353 if (__res >= __len)
2354 {
2355 __len = __res + 1;
2356 __c = static_cast<_CharT*>(__builtin_alloca(sizeof(_CharT)
2357 * __len));
2358 __res = _M_transform(__c, __p, __res + 1);
2359 }
2360
2361 __ret.append(__c, __res);
2362 __p += char_traits<_CharT>::length(__p);
2363 if (__p == __pend)
2364 return __ret;
2365
2366 __p++;
2367 __ret.push_back(_CharT());
2368 }
2369 }
2370
2371 template<typename _CharT>
2372 long
2373 collate<_CharT>::
2374 do_hash(const _CharT* __lo, const _CharT* __hi) const
2375 {
2376 unsigned long __val = 0;
2377 for (; __lo < __hi; ++__lo)
2378 __val = *__lo + ((__val << 7) |
2379 (__val >> (numeric_limits<unsigned long>::digits - 7)));
2380 return static_cast<long>(__val);
2381 }
2382
2383 // Construct correctly padded string, as per 22.2.2.2.2
2384 // Assumes
2385 // __newlen > __oldlen
2386 // __news is allocated for __newlen size
2387 // Used by both num_put and ostream inserters: if __num,
2388 // internal-adjusted objects are padded according to the rules below
2389 // concerning 0[xX] and +-, otherwise, exactly as right-adjusted
2390 // ones are.
2391
2392 // NB: Of the two parameters, _CharT can be deduced from the
2393 // function arguments. The other (_Traits) has to be explicitly specified.
2394 template<typename _CharT, typename _Traits>
2395 void
2396 __pad<_CharT, _Traits>::_S_pad(ios_base& __io, _CharT __fill,
2397 _CharT* __news, const _CharT* __olds,
2398 const streamsize __newlen,
2399 const streamsize __oldlen, const bool __num)
2400 {
2401 const size_t __plen = static_cast<size_t>(__newlen - __oldlen);
2402 const ios_base::fmtflags __adjust = __io.flags() & ios_base::adjustfield;
2403
2404 // Padding last.
2405 if (__adjust == ios_base::left)
2406 {
2407 _Traits::copy(__news, const_cast<_CharT*>(__olds), __oldlen);
2408 _Traits::assign(__news + __oldlen, __plen, __fill);
2409 return;
2410 }
2411
2412 size_t __mod = 0;
2413 if (__adjust == ios_base::internal && __num)
2414 {
2415 // Pad after the sign, if there is one.
2416 // Pad after 0[xX], if there is one.
2417 // Who came up with these rules, anyway? Jeeze.
2418 const locale& __loc = __io._M_getloc();
2419 const ctype<_CharT>& __ctype = use_facet<ctype<_CharT> >(__loc);
2420
2421 const bool __testsign = (__ctype.widen('-') == __olds[0]
2422 || __ctype.widen('+') == __olds[0]);
2423 const bool __testhex = (__ctype.widen('0') == __olds[0]
2424 && __oldlen > 1
2425 && (__ctype.widen('x') == __olds[1]
2426 || __ctype.widen('X') == __olds[1]));
2427 if (__testhex)
2428 {
2429 __news[0] = __olds[0];
2430 __news[1] = __olds[1];
2431 __mod = 2;
2432 __news += 2;
2433 }
2434 else if (__testsign)
2435 {
2436 __news[0] = __olds[0];
2437 __mod = 1;
2438 ++__news;
2439 }
2440 // else Padding first.
2441 }
2442 _Traits::assign(__news, __plen, __fill);
2443 _Traits::copy(__news + __plen, const_cast<_CharT*>(__olds + __mod),
2444 __oldlen - __mod);
2445 }
2446
2447 bool
2448 __verify_grouping(const char* __grouping, size_t __grouping_size,
2449 const string& __grouping_tmp)
2450 {
2451 const size_t __n = __grouping_tmp.size() - 1;
2452 const size_t __min = std::min(__n, __grouping_size - 1);
2453 size_t __i = __n;
2454 bool __test = true;
2455
2456 // Parsed number groupings have to match the
2457 // numpunct::grouping string exactly, starting at the
2458 // right-most point of the parsed sequence of elements ...
2459 for (size_t __j = 0; __j < __min && __test; --__i, ++__j)
2460 __test = __grouping_tmp[__i] == __grouping[__j];
2461 for (; __i && __test; --__i)
2462 __test = __grouping_tmp[__i] == __grouping[__min];
2463 // ... but the last parsed grouping can be <= numpunct
2464 // grouping.
2465 __test &= __grouping_tmp[0] <= __grouping[__min];
2466 return __test;
2467 }
2468
2469 template<typename _CharT>
2470 _CharT*
2471 __add_grouping(_CharT* __s, _CharT __sep,
2472 const char* __gbeg, size_t __gsize,
2473 const _CharT* __first, const _CharT* __last)
2474 {
2475 if (__last - __first > *__gbeg)
2476 {
2477 const bool __bump = __gsize != 1;
2478 __s = std::__add_grouping(__s, __sep, __gbeg + __bump,
2479 __gsize - __bump, __first,
2480 __last - *__gbeg);
2481 __first = __last - *__gbeg;
2482 *__s++ = __sep;
2483 }
2484 do
2485 *__s++ = *__first++;
2486 while (__first != __last);
2487 return __s;
2488 }
2489
2490 // Inhibit implicit instantiations for required instantiations,
2491 // which are defined via explicit instantiations elsewhere.
2492 // NB: This syntax is a GNU extension.
2493 #if _GLIBCXX_EXTERN_TEMPLATE
2494 extern template class moneypunct<char, false>;
2495 extern template class moneypunct<char, true>;
2496 extern template class moneypunct_byname<char, false>;
2497 extern template class moneypunct_byname<char, true>;
2498 extern template class money_get<char>;
2499 extern template class money_put<char>;
2500 extern template class numpunct<char>;
2501 extern template class numpunct_byname<char>;
2502 extern template class num_get<char>;
2503 extern template class num_put<char>;
2504 extern template class __timepunct<char>;
2505 extern template class time_put<char>;
2506 extern template class time_put_byname<char>;
2507 extern template class time_get<char>;
2508 extern template class time_get_byname<char>;
2509 extern template class messages<char>;
2510 extern template class messages_byname<char>;
2511 extern template class ctype_byname<char>;
2512 extern template class codecvt_byname<char, char, mbstate_t>;
2513 extern template class collate<char>;
2514 extern template class collate_byname<char>;
2515
2516 extern template
2517 const codecvt<char, char, mbstate_t>&
2518 use_facet<codecvt<char, char, mbstate_t> >(const locale&);
2519
2520 extern template
2521 const collate<char>&
2522 use_facet<collate<char> >(const locale&);
2523
2524 extern template
2525 const numpunct<char>&
2526 use_facet<numpunct<char> >(const locale&);
2527
2528 extern template
2529 const num_put<char>&
2530 use_facet<num_put<char> >(const locale&);
2531
2532 extern template
2533 const num_get<char>&
2534 use_facet<num_get<char> >(const locale&);
2535
2536 extern template
2537 const moneypunct<char, true>&
2538 use_facet<moneypunct<char, true> >(const locale&);
2539
2540 extern template
2541 const moneypunct<char, false>&
2542 use_facet<moneypunct<char, false> >(const locale&);
2543
2544 extern template
2545 const money_put<char>&
2546 use_facet<money_put<char> >(const locale&);
2547
2548 extern template
2549 const money_get<char>&
2550 use_facet<money_get<char> >(const locale&);
2551
2552 extern template
2553 const __timepunct<char>&
2554 use_facet<__timepunct<char> >(const locale&);
2555
2556 extern template
2557 const time_put<char>&
2558 use_facet<time_put<char> >(const locale&);
2559
2560 extern template
2561 const time_get<char>&
2562 use_facet<time_get<char> >(const locale&);
2563
2564 extern template
2565 const messages<char>&
2566 use_facet<messages<char> >(const locale&);
2567
2568 extern template
2569 bool
2570 has_facet<ctype<char> >(const locale&);
2571
2572 extern template
2573 bool
2574 has_facet<codecvt<char, char, mbstate_t> >(const locale&);
2575
2576 extern template
2577 bool
2578 has_facet<collate<char> >(const locale&);
2579
2580 extern template
2581 bool
2582 has_facet<numpunct<char> >(const locale&);
2583
2584 extern template
2585 bool
2586 has_facet<num_put<char> >(const locale&);
2587
2588 extern template
2589 bool
2590 has_facet<num_get<char> >(const locale&);
2591
2592 extern template
2593 bool
2594 has_facet<moneypunct<char> >(const locale&);
2595
2596 extern template
2597 bool
2598 has_facet<money_put<char> >(const locale&);
2599
2600 extern template
2601 bool
2602 has_facet<money_get<char> >(const locale&);
2603
2604 extern template
2605 bool
2606 has_facet<__timepunct<char> >(const locale&);
2607
2608 extern template
2609 bool
2610 has_facet<time_put<char> >(const locale&);
2611
2612 extern template
2613 bool
2614 has_facet<time_get<char> >(const locale&);
2615
2616 extern template
2617 bool
2618 has_facet<messages<char> >(const locale&);
2619
2620 #ifdef _GLIBCXX_USE_WCHAR_T
2621 extern template class moneypunct<wchar_t, false>;
2622 extern template class moneypunct<wchar_t, true>;
2623 extern template class moneypunct_byname<wchar_t, false>;
2624 extern template class moneypunct_byname<wchar_t, true>;
2625 extern template class money_get<wchar_t>;
2626 extern template class money_put<wchar_t>;
2627 extern template class numpunct<wchar_t>;
2628 extern template class numpunct_byname<wchar_t>;
2629 extern template class num_get<wchar_t>;
2630 extern template class num_put<wchar_t>;
2631 extern template class __timepunct<wchar_t>;
2632 extern template class time_put<wchar_t>;
2633 extern template class time_put_byname<wchar_t>;
2634 extern template class time_get<wchar_t>;
2635 extern template class time_get_byname<wchar_t>;
2636 extern template class messages<wchar_t>;
2637 extern template class messages_byname<wchar_t>;
2638 extern template class ctype_byname<wchar_t>;
2639 extern template class codecvt_byname<wchar_t, char, mbstate_t>;
2640 extern template class collate<wchar_t>;
2641 extern template class collate_byname<wchar_t>;
2642
2643 extern template
2644 const codecvt<wchar_t, char, mbstate_t>&
2645 use_facet<codecvt<wchar_t, char, mbstate_t> >(locale const&);
2646
2647 extern template
2648 const collate<wchar_t>&
2649 use_facet<collate<wchar_t> >(const locale&);
2650
2651 extern template
2652 const numpunct<wchar_t>&
2653 use_facet<numpunct<wchar_t> >(const locale&);
2654
2655 extern template
2656 const num_put<wchar_t>&
2657 use_facet<num_put<wchar_t> >(const locale&);
2658
2659 extern template
2660 const num_get<wchar_t>&
2661 use_facet<num_get<wchar_t> >(const locale&);
2662
2663 extern template
2664 const moneypunct<wchar_t, true>&
2665 use_facet<moneypunct<wchar_t, true> >(const locale&);
2666
2667 extern template
2668 const moneypunct<wchar_t, false>&
2669 use_facet<moneypunct<wchar_t, false> >(const locale&);
2670
2671 extern template
2672 const money_put<wchar_t>&
2673 use_facet<money_put<wchar_t> >(const locale&);
2674
2675 extern template
2676 const money_get<wchar_t>&
2677 use_facet<money_get<wchar_t> >(const locale&);
2678
2679 extern template
2680 const __timepunct<wchar_t>&
2681 use_facet<__timepunct<wchar_t> >(const locale&);
2682
2683 extern template
2684 const time_put<wchar_t>&
2685 use_facet<time_put<wchar_t> >(const locale&);
2686
2687 extern template
2688 const time_get<wchar_t>&
2689 use_facet<time_get<wchar_t> >(const locale&);
2690
2691 extern template
2692 const messages<wchar_t>&
2693 use_facet<messages<wchar_t> >(const locale&);
2694
2695 extern template
2696 bool
2697 has_facet<ctype<wchar_t> >(const locale&);
2698
2699 extern template
2700 bool
2701 has_facet<codecvt<wchar_t, char, mbstate_t> >(const locale&);
2702
2703 extern template
2704 bool
2705 has_facet<collate<wchar_t> >(const locale&);
2706
2707 extern template
2708 bool
2709 has_facet<numpunct<wchar_t> >(const locale&);
2710
2711 extern template
2712 bool
2713 has_facet<num_put<wchar_t> >(const locale&);
2714
2715 extern template
2716 bool
2717 has_facet<num_get<wchar_t> >(const locale&);
2718
2719 extern template
2720 bool
2721 has_facet<moneypunct<wchar_t> >(const locale&);
2722
2723 extern template
2724 bool
2725 has_facet<money_put<wchar_t> >(const locale&);
2726
2727 extern template
2728 bool
2729 has_facet<money_get<wchar_t> >(const locale&);
2730
2731 extern template
2732 bool
2733 has_facet<__timepunct<wchar_t> >(const locale&);
2734
2735 extern template
2736 bool
2737 has_facet<time_put<wchar_t> >(const locale&);
2738
2739 extern template
2740 bool
2741 has_facet<time_get<wchar_t> >(const locale&);
2742
2743 extern template
2744 bool
2745 has_facet<messages<wchar_t> >(const locale&);
2746 #endif
2747 #endif
2748 } // namespace std
2749
2750 #endif