d: Merge upstream dmd, druntime 2bbf64907c, phobos b64bfbf91
[official-gcc.git] / libcpp / charset.cc
blob9a944d94360cadc636f1dadd55be766b117fffea
1 /* CPP Library - charsets
2 Copyright (C) 1998-2023 Free Software Foundation, Inc.
4 Broken out of c-lex.cc Apr 2003, adding valid C99 UCN ranges.
6 This program is free software; you can redistribute it and/or modify it
7 under the terms of the GNU General Public License as published by the
8 Free Software Foundation; either version 3, or (at your option) any
9 later version.
11 This program 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.
16 You should have received a copy of the GNU General Public License
17 along with this program; see the file COPYING3. If not see
18 <http://www.gnu.org/licenses/>. */
20 #include "config.h"
21 #include "system.h"
22 #include "cpplib.h"
23 #include "internal.h"
25 /* Character set handling for C-family languages.
27 Terminological note: In what follows, "charset" or "character set"
28 will be taken to mean both an abstract set of characters and an
29 encoding for that set.
31 The C99 standard discusses two character sets: source and execution.
32 The source character set is used for internal processing in translation
33 phases 1 through 4; the execution character set is used thereafter.
34 Both are required by 5.2.1.2p1 to be multibyte encodings, not wide
35 character encodings (see 3.7.2, 3.7.3 for the standardese meanings
36 of these terms). Furthermore, the "basic character set" (listed in
37 5.2.1p3) is to be encoded in each with values one byte wide, and is
38 to appear in the initial shift state.
40 It is not explicitly mentioned, but there is also a "wide execution
41 character set" used to encode wide character constants and wide
42 string literals; this is supposed to be the result of applying the
43 standard library function mbstowcs() to an equivalent narrow string
44 (6.4.5p5). However, the behavior of hexadecimal and octal
45 \-escapes is at odds with this; they are supposed to be translated
46 directly to wchar_t values (6.4.4.4p5,6).
48 The source character set is not necessarily the character set used
49 to encode physical source files on disk; translation phase 1 converts
50 from whatever that encoding is to the source character set.
52 The presence of universal character names in C99 (6.4.3 et seq.)
53 forces the source character set to be isomorphic to ISO 10646,
54 that is, Unicode. There is no such constraint on the execution
55 character set; note also that the conversion from source to
56 execution character set does not occur for identifiers (5.1.1.2p1#5).
58 For convenience of implementation, the source character set's
59 encoding of the basic character set should be identical to the
60 execution character set OF THE HOST SYSTEM's encoding of the basic
61 character set, and it should not be a state-dependent encoding.
63 cpplib uses UTF-8 or UTF-EBCDIC for the source character set,
64 depending on whether the host is based on ASCII or EBCDIC (see
65 respectively Unicode section 2.3/ISO10646 Amendment 2, and Unicode
66 Technical Report #16). With limited exceptions, it relies on the
67 system library's iconv() primitive to do charset conversion
68 (specified in SUSv2). */
70 #if !HAVE_ICONV
71 /* Make certain that the uses of iconv(), iconv_open(), iconv_close()
72 below, which are guarded only by if statements with compile-time
73 constant conditions, do not cause link errors. */
74 #define iconv_open(x, y) (errno = EINVAL, (iconv_t)-1)
75 #define iconv(a,b,c,d,e) (errno = EINVAL, (size_t)-1)
76 #define iconv_close(x) (void)0
77 #define ICONV_CONST
78 #endif
80 #if HOST_CHARSET == HOST_CHARSET_ASCII
81 #define SOURCE_CHARSET "UTF-8"
82 #define LAST_POSSIBLY_BASIC_SOURCE_CHAR 0x7e
83 #elif HOST_CHARSET == HOST_CHARSET_EBCDIC
84 #define SOURCE_CHARSET "UTF-EBCDIC"
85 #define LAST_POSSIBLY_BASIC_SOURCE_CHAR 0xFF
86 #else
87 #error "Unrecognized basic host character set"
88 #endif
90 #ifndef EILSEQ
91 #define EILSEQ EINVAL
92 #endif
94 /* This structure is used for a resizable string buffer throughout. */
95 /* Don't call it strbuf, as that conflicts with unistd.h on systems
96 such as DYNIX/ptx where unistd.h includes stropts.h. */
97 struct _cpp_strbuf
99 uchar *text;
100 size_t asize;
101 size_t len;
104 /* This is enough to hold any string that fits on a single 80-column
105 line, even if iconv quadruples its size (e.g. conversion from
106 ASCII to UTF-32) rounded up to a power of two. */
107 #define OUTBUF_BLOCK_SIZE 256
109 /* Conversions between UTF-8 and UTF-16/32 are implemented by custom
110 logic. This is because a depressing number of systems lack iconv,
111 or have have iconv libraries that do not do these conversions, so
112 we need a fallback implementation for them. To ensure the fallback
113 doesn't break due to neglect, it is used on all systems.
115 UTF-32 encoding is nice and simple: a four-byte binary number,
116 constrained to the range 00000000-7FFFFFFF to avoid questions of
117 signedness. We do have to cope with big- and little-endian
118 variants.
120 UTF-16 encoding uses two-byte binary numbers, again in big- and
121 little-endian variants, for all values in the 00000000-0000FFFF
122 range. Values in the 00010000-0010FFFF range are encoded as pairs
123 of two-byte numbers, called "surrogate pairs": given a number S in
124 this range, it is mapped to a pair (H, L) as follows:
126 H = (S - 0x10000) / 0x400 + 0xD800
127 L = (S - 0x10000) % 0x400 + 0xDC00
129 Two-byte values in the D800...DFFF range are ill-formed except as a
130 component of a surrogate pair. Even if the encoding within a
131 two-byte value is little-endian, the H member of the surrogate pair
132 comes first.
134 There is no way to encode values in the 00110000-7FFFFFFF range,
135 which is not currently a problem as there are no assigned code
136 points in that range; however, the author expects that it will
137 eventually become necessary to abandon UTF-16 due to this
138 limitation. Note also that, because of these pairs, UTF-16 does
139 not meet the requirements of the C standard for a wide character
140 encoding (see 3.7.3 and 6.4.4.4p11).
142 UTF-8 encoding looks like this:
144 value range encoded as
145 00000000-0000007F 0xxxxxxx
146 00000080-000007FF 110xxxxx 10xxxxxx
147 00000800-0000FFFF 1110xxxx 10xxxxxx 10xxxxxx
148 00010000-001FFFFF 11110xxx 10xxxxxx 10xxxxxx 10xxxxxx
149 00200000-03FFFFFF 111110xx 10xxxxxx 10xxxxxx 10xxxxxx 10xxxxxx
150 04000000-7FFFFFFF 1111110x 10xxxxxx 10xxxxxx 10xxxxxx 10xxxxxx 10xxxxxx
152 Values in the 0000D800 ... 0000DFFF range (surrogates) are invalid,
153 which means that three-byte sequences ED xx yy, with A0 <= xx <= BF,
154 never occur. Note also that any value that can be encoded by a
155 given row of the table can also be encoded by all successive rows,
156 but this is not done; only the shortest possible encoding for any
157 given value is valid. For instance, the character 07C0 could be
158 encoded as any of DF 80, E0 9F 80, F0 80 9F 80, F8 80 80 9F 80, or
159 FC 80 80 80 9F 80. Only the first is valid.
161 An implementation note: the transformation from UTF-16 to UTF-8, or
162 vice versa, is easiest done by using UTF-32 as an intermediary. */
164 /* Internal primitives which go from an UTF-8 byte stream to native-endian
165 UTF-32 in a cppchar_t, or vice versa; this avoids an extra marshal/unmarshal
166 operation in several places below. */
167 static inline int
168 one_utf8_to_cppchar (const uchar **inbufp, size_t *inbytesleftp,
169 cppchar_t *cp)
171 static const uchar masks[6] = { 0x7F, 0x1F, 0x0F, 0x07, 0x03, 0x01 };
172 static const uchar patns[6] = { 0x00, 0xC0, 0xE0, 0xF0, 0xF8, 0xFC };
174 cppchar_t c;
175 const uchar *inbuf = *inbufp;
176 size_t nbytes, i;
178 if (*inbytesleftp < 1)
179 return EINVAL;
181 c = *inbuf;
182 if (c < 0x80)
184 *cp = c;
185 *inbytesleftp -= 1;
186 *inbufp += 1;
187 return 0;
190 /* The number of leading 1-bits in the first byte indicates how many
191 bytes follow. */
192 for (nbytes = 2; nbytes < 7; nbytes++)
193 if ((c & ~masks[nbytes-1]) == patns[nbytes-1])
194 goto found;
195 return EILSEQ;
196 found:
198 if (*inbytesleftp < nbytes)
199 return EINVAL;
201 c = (c & masks[nbytes-1]);
202 inbuf++;
203 for (i = 1; i < nbytes; i++)
205 cppchar_t n = *inbuf++;
206 if ((n & 0xC0) != 0x80)
207 return EILSEQ;
208 c = ((c << 6) + (n & 0x3F));
211 /* Make sure the shortest possible encoding was used. */
212 if (c <= 0x7F && nbytes > 1) return EILSEQ;
213 if (c <= 0x7FF && nbytes > 2) return EILSEQ;
214 if (c <= 0xFFFF && nbytes > 3) return EILSEQ;
215 if (c <= 0x1FFFFF && nbytes > 4) return EILSEQ;
216 if (c <= 0x3FFFFFF && nbytes > 5) return EILSEQ;
218 /* Make sure the character is valid. */
219 if (c > 0x7FFFFFFF || (c >= 0xD800 && c <= 0xDFFF)) return EILSEQ;
221 *cp = c;
222 *inbufp = inbuf;
223 *inbytesleftp -= nbytes;
224 return 0;
227 static inline int
228 one_cppchar_to_utf8 (cppchar_t c, uchar **outbufp, size_t *outbytesleftp)
230 static const uchar masks[6] = { 0x00, 0xC0, 0xE0, 0xF0, 0xF8, 0xFC };
231 static const uchar limits[6] = { 0x80, 0xE0, 0xF0, 0xF8, 0xFC, 0xFE };
232 size_t nbytes;
233 uchar buf[6], *p = &buf[6];
234 uchar *outbuf = *outbufp;
236 nbytes = 1;
237 if (c < 0x80)
238 *--p = c;
239 else
243 *--p = ((c & 0x3F) | 0x80);
244 c >>= 6;
245 nbytes++;
247 while (c >= 0x3F || (c & limits[nbytes-1]));
248 *--p = (c | masks[nbytes-1]);
251 if (*outbytesleftp < nbytes)
252 return E2BIG;
254 while (p < &buf[6])
255 *outbuf++ = *p++;
256 *outbytesleftp -= nbytes;
257 *outbufp = outbuf;
258 return 0;
261 /* The following four functions transform one character between the two
262 encodings named in the function name. All have the signature
263 int (*)(iconv_t bigend, const uchar **inbufp, size_t *inbytesleftp,
264 uchar **outbufp, size_t *outbytesleftp)
266 BIGEND must have the value 0 or 1, coerced to (iconv_t); it is
267 interpreted as a boolean indicating whether big-endian or
268 little-endian encoding is to be used for the member of the pair
269 that is not UTF-8.
271 INBUFP, INBYTESLEFTP, OUTBUFP, OUTBYTESLEFTP work exactly as they
272 do for iconv.
274 The return value is either 0 for success, or an errno value for
275 failure, which may be E2BIG (need more space), EILSEQ (ill-formed
276 input sequence), ir EINVAL (incomplete input sequence). */
278 static inline int
279 one_utf8_to_utf32 (iconv_t bigend, const uchar **inbufp, size_t *inbytesleftp,
280 uchar **outbufp, size_t *outbytesleftp)
282 uchar *outbuf;
283 cppchar_t s = 0;
284 int rval;
286 /* Check for space first, since we know exactly how much we need. */
287 if (*outbytesleftp < 4)
288 return E2BIG;
290 rval = one_utf8_to_cppchar (inbufp, inbytesleftp, &s);
291 if (rval)
292 return rval;
294 outbuf = *outbufp;
295 outbuf[bigend ? 3 : 0] = (s & 0x000000FF);
296 outbuf[bigend ? 2 : 1] = (s & 0x0000FF00) >> 8;
297 outbuf[bigend ? 1 : 2] = (s & 0x00FF0000) >> 16;
298 outbuf[bigend ? 0 : 3] = (s & 0xFF000000) >> 24;
300 *outbufp += 4;
301 *outbytesleftp -= 4;
302 return 0;
305 static inline int
306 one_utf32_to_utf8 (iconv_t bigend, const uchar **inbufp, size_t *inbytesleftp,
307 uchar **outbufp, size_t *outbytesleftp)
309 cppchar_t s;
310 int rval;
311 const uchar *inbuf;
313 if (*inbytesleftp < 4)
314 return EINVAL;
316 inbuf = *inbufp;
318 s = inbuf[bigend ? 0 : 3] << 24;
319 s += inbuf[bigend ? 1 : 2] << 16;
320 s += inbuf[bigend ? 2 : 1] << 8;
321 s += inbuf[bigend ? 3 : 0];
323 if (s >= 0x7FFFFFFF || (s >= 0xD800 && s <= 0xDFFF))
324 return EILSEQ;
326 rval = one_cppchar_to_utf8 (s, outbufp, outbytesleftp);
327 if (rval)
328 return rval;
330 *inbufp += 4;
331 *inbytesleftp -= 4;
332 return 0;
335 static inline int
336 one_utf8_to_utf16 (iconv_t bigend, const uchar **inbufp, size_t *inbytesleftp,
337 uchar **outbufp, size_t *outbytesleftp)
339 int rval;
340 cppchar_t s = 0;
341 const uchar *save_inbuf = *inbufp;
342 size_t save_inbytesleft = *inbytesleftp;
343 uchar *outbuf = *outbufp;
345 rval = one_utf8_to_cppchar (inbufp, inbytesleftp, &s);
346 if (rval)
347 return rval;
349 if (s > 0x0010FFFF)
351 *inbufp = save_inbuf;
352 *inbytesleftp = save_inbytesleft;
353 return EILSEQ;
356 if (s <= 0xFFFF)
358 if (*outbytesleftp < 2)
360 *inbufp = save_inbuf;
361 *inbytesleftp = save_inbytesleft;
362 return E2BIG;
364 outbuf[bigend ? 1 : 0] = (s & 0x00FF);
365 outbuf[bigend ? 0 : 1] = (s & 0xFF00) >> 8;
367 *outbufp += 2;
368 *outbytesleftp -= 2;
369 return 0;
371 else
373 cppchar_t hi, lo;
375 if (*outbytesleftp < 4)
377 *inbufp = save_inbuf;
378 *inbytesleftp = save_inbytesleft;
379 return E2BIG;
382 hi = (s - 0x10000) / 0x400 + 0xD800;
383 lo = (s - 0x10000) % 0x400 + 0xDC00;
385 /* Even if we are little-endian, put the high surrogate first.
386 ??? Matches practice? */
387 outbuf[bigend ? 1 : 0] = (hi & 0x00FF);
388 outbuf[bigend ? 0 : 1] = (hi & 0xFF00) >> 8;
389 outbuf[bigend ? 3 : 2] = (lo & 0x00FF);
390 outbuf[bigend ? 2 : 3] = (lo & 0xFF00) >> 8;
392 *outbufp += 4;
393 *outbytesleftp -= 4;
394 return 0;
398 static inline int
399 one_utf16_to_utf8 (iconv_t bigend, const uchar **inbufp, size_t *inbytesleftp,
400 uchar **outbufp, size_t *outbytesleftp)
402 cppchar_t s;
403 const uchar *inbuf = *inbufp;
404 int rval;
406 if (*inbytesleftp < 2)
407 return EINVAL;
408 s = inbuf[bigend ? 0 : 1] << 8;
409 s += inbuf[bigend ? 1 : 0];
411 /* Low surrogate without immediately preceding high surrogate is invalid. */
412 if (s >= 0xDC00 && s <= 0xDFFF)
413 return EILSEQ;
414 /* High surrogate must have a following low surrogate. */
415 else if (s >= 0xD800 && s <= 0xDBFF)
417 cppchar_t hi = s, lo;
418 if (*inbytesleftp < 4)
419 return EINVAL;
421 lo = inbuf[bigend ? 2 : 3] << 8;
422 lo += inbuf[bigend ? 3 : 2];
424 if (lo < 0xDC00 || lo > 0xDFFF)
425 return EILSEQ;
427 s = (hi - 0xD800) * 0x400 + (lo - 0xDC00) + 0x10000;
430 rval = one_cppchar_to_utf8 (s, outbufp, outbytesleftp);
431 if (rval)
432 return rval;
434 /* Success - update the input pointers (one_cppchar_to_utf8 has done
435 the output pointers for us). */
436 if (s <= 0xFFFF)
438 *inbufp += 2;
439 *inbytesleftp -= 2;
441 else
443 *inbufp += 4;
444 *inbytesleftp -= 4;
446 return 0;
450 /* Special routine which just counts number of characters in the
451 string, what exactly is stored into the output doesn't matter
452 as long as it is one uchar per character. */
454 static inline int
455 one_count_chars (iconv_t, const uchar **inbufp, size_t *inbytesleftp,
456 uchar **outbufp, size_t *outbytesleftp)
458 cppchar_t s = 0;
459 int rval;
461 /* Check for space first, since we know exactly how much we need. */
462 if (*outbytesleftp < 1)
463 return E2BIG;
465 #if HOST_CHARSET == HOST_CHARSET_ASCII
466 rval = one_utf8_to_cppchar (inbufp, inbytesleftp, &s);
467 if (rval)
468 return rval;
469 #else
470 if (*inbytesleftp < 1)
471 return EINVAL;
472 static const uchar utf_ebcdic_map[256] = {
473 /* See table 4 in http://unicode.org/reports/tr16/tr16-7.2.html */
474 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
475 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
476 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
477 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
478 1, 9, 9, 9, 9, 9, 9, 9, 9, 9, 9, 1, 1, 1, 1, 1,
479 1, 9, 9, 9, 9, 9, 9, 9, 9, 9, 1, 1, 1, 1, 1, 1,
480 1, 1, 9, 9, 9, 9, 9, 9, 9, 9, 9, 1, 1, 1, 1, 1,
481 9, 9, 9, 9, 2, 2, 2, 2, 2, 1, 1, 1, 1, 1, 1, 1,
482 2, 1, 1, 1, 1, 1, 1, 1, 1, 1, 2, 2, 2, 2, 2, 2,
483 2, 1, 1, 1, 1, 1, 1, 1, 1, 1, 2, 2, 2, 2, 2, 2,
484 2, 1, 1, 1, 1, 1, 1, 1, 1, 1, 2, 2, 2, 1, 2, 2,
485 2, 2, 2, 2, 2, 2, 2, 3, 3, 3, 3, 3, 3, 1, 3, 3,
486 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 3, 3, 3, 3, 3, 3,
487 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 3, 3, 4, 4, 4, 4,
488 1, 4, 1, 1, 1, 1, 1, 1, 1, 1, 4, 4, 4, 5, 5, 5,
489 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 5, 6, 6, 7, 7, 0
491 rval = utf_ebcdic_map[**inbufp];
492 if (rval == 9)
493 return EILSEQ;
494 if (rval == 0)
495 rval = 1;
496 if (rval >= 2)
498 if (*inbytesleftp < rval)
499 return EINVAL;
500 for (int i = 1; i < rval; ++i)
501 if (utf_ebcdic_map[(*inbufp)[i]] != 9)
502 return EILSEQ;
504 *inbytesleftp -= rval;
505 *inbufp += rval;
506 #endif
508 **outbufp = ' ';
510 *outbufp += 1;
511 *outbytesleftp -= 1;
512 return 0;
516 /* Helper routine for the next few functions. The 'const' on
517 one_conversion means that we promise not to modify what function is
518 pointed to, which lets the inliner see through it. */
520 static inline bool
521 conversion_loop (int (*const one_conversion)(iconv_t, const uchar **, size_t *,
522 uchar **, size_t *),
523 iconv_t cd, const uchar *from, size_t flen, struct _cpp_strbuf *to)
525 const uchar *inbuf;
526 uchar *outbuf;
527 size_t inbytesleft, outbytesleft;
528 int rval;
530 inbuf = from;
531 inbytesleft = flen;
532 outbuf = to->text + to->len;
533 outbytesleft = to->asize - to->len;
535 for (;;)
538 rval = one_conversion (cd, &inbuf, &inbytesleft,
539 &outbuf, &outbytesleft);
540 while (inbytesleft && !rval);
542 if (__builtin_expect (inbytesleft == 0, 1))
544 to->len = to->asize - outbytesleft;
545 return true;
547 if (rval != E2BIG)
549 errno = rval;
550 return false;
553 outbytesleft += OUTBUF_BLOCK_SIZE;
554 to->asize += OUTBUF_BLOCK_SIZE;
555 to->text = XRESIZEVEC (uchar, to->text, to->asize);
556 outbuf = to->text + to->asize - outbytesleft;
561 /* These functions convert entire strings between character sets.
562 They all have the signature
564 bool (*)(iconv_t cd, const uchar *from, size_t flen, struct _cpp_strbuf *to);
566 The input string FROM is converted as specified by the function
567 name plus the iconv descriptor CD (which may be fake), and the
568 result appended to TO. On any error, false is returned, otherwise true. */
570 /* These four use the custom conversion code above. */
571 static bool
572 convert_utf8_utf16 (iconv_t cd, const uchar *from, size_t flen,
573 struct _cpp_strbuf *to)
575 return conversion_loop (one_utf8_to_utf16, cd, from, flen, to);
578 static bool
579 convert_utf8_utf32 (iconv_t cd, const uchar *from, size_t flen,
580 struct _cpp_strbuf *to)
582 return conversion_loop (one_utf8_to_utf32, cd, from, flen, to);
585 static bool
586 convert_utf16_utf8 (iconv_t cd, const uchar *from, size_t flen,
587 struct _cpp_strbuf *to)
589 return conversion_loop (one_utf16_to_utf8, cd, from, flen, to);
592 static bool
593 convert_utf32_utf8 (iconv_t cd, const uchar *from, size_t flen,
594 struct _cpp_strbuf *to)
596 return conversion_loop (one_utf32_to_utf8, cd, from, flen, to);
599 /* Magic conversion which just counts characters from input, so
600 only to->len is significant. */
601 static bool
602 convert_count_chars (iconv_t cd, const uchar *from,
603 size_t flen, struct _cpp_strbuf *to)
605 return conversion_loop (one_count_chars, cd, from, flen, to);
608 /* Identity conversion, used when we have no alternative. */
609 static bool
610 convert_no_conversion (iconv_t cd ATTRIBUTE_UNUSED,
611 const uchar *from, size_t flen, struct _cpp_strbuf *to)
613 if (to->len + flen > to->asize)
615 to->asize = to->len + flen;
616 to->asize += to->asize / 4;
617 to->text = XRESIZEVEC (uchar, to->text, to->asize);
619 memcpy (to->text + to->len, from, flen);
620 to->len += flen;
621 return true;
624 /* And this one uses the system iconv primitive. It's a little
625 different, since iconv's interface is a little different. */
626 #if HAVE_ICONV
628 #define CONVERT_ICONV_GROW_BUFFER \
629 do { \
630 outbytesleft += OUTBUF_BLOCK_SIZE; \
631 to->asize += OUTBUF_BLOCK_SIZE; \
632 to->text = XRESIZEVEC (uchar, to->text, to->asize); \
633 outbuf = (char *)to->text + to->asize - outbytesleft; \
634 } while (0)
636 static bool
637 convert_using_iconv (iconv_t cd, const uchar *from, size_t flen,
638 struct _cpp_strbuf *to)
640 ICONV_CONST char *inbuf;
641 char *outbuf;
642 size_t inbytesleft, outbytesleft;
644 /* Reset conversion descriptor and check that it is valid. */
645 if (iconv (cd, 0, 0, 0, 0) == (size_t)-1)
646 return false;
648 inbuf = (ICONV_CONST char *)from;
649 inbytesleft = flen;
650 outbuf = (char *)to->text + to->len;
651 outbytesleft = to->asize - to->len;
653 for (;;)
655 iconv (cd, &inbuf, &inbytesleft, &outbuf, &outbytesleft);
656 if (__builtin_expect (inbytesleft == 0, 1))
658 /* Close out any shift states, returning to the initial state. */
659 if (iconv (cd, 0, 0, &outbuf, &outbytesleft) == (size_t)-1)
661 if (errno != E2BIG)
662 return false;
664 CONVERT_ICONV_GROW_BUFFER;
665 if (iconv (cd, 0, 0, &outbuf, &outbytesleft) == (size_t)-1)
666 return false;
669 to->len = to->asize - outbytesleft;
670 return true;
672 if (errno != E2BIG)
673 return false;
675 CONVERT_ICONV_GROW_BUFFER;
678 #else
679 #define convert_using_iconv 0 /* prevent undefined symbol error below */
680 #endif
682 /* Arrange for the above custom conversion logic to be used automatically
683 when conversion between a suitable pair of character sets is requested. */
685 #define APPLY_CONVERSION(CONVERTER, FROM, FLEN, TO) \
686 CONVERTER.func (CONVERTER.cd, FROM, FLEN, TO)
688 struct cpp_conversion
690 const char *pair;
691 convert_f func;
692 iconv_t fake_cd;
694 static const struct cpp_conversion conversion_tab[] = {
695 { "UTF-8/UTF-32LE", convert_utf8_utf32, (iconv_t)0 },
696 { "UTF-8/UTF-32BE", convert_utf8_utf32, (iconv_t)1 },
697 { "UTF-8/UTF-16LE", convert_utf8_utf16, (iconv_t)0 },
698 { "UTF-8/UTF-16BE", convert_utf8_utf16, (iconv_t)1 },
699 { "UTF-32LE/UTF-8", convert_utf32_utf8, (iconv_t)0 },
700 { "UTF-32BE/UTF-8", convert_utf32_utf8, (iconv_t)1 },
701 { "UTF-16LE/UTF-8", convert_utf16_utf8, (iconv_t)0 },
702 { "UTF-16BE/UTF-8", convert_utf16_utf8, (iconv_t)1 },
705 /* Subroutine of cpp_init_iconv: initialize and return a
706 cset_converter structure for conversion from FROM to TO. If
707 iconv_open() fails, issue an error and return an identity
708 converter. Silently return an identity converter if FROM and TO
709 are identical.
711 PFILE is only used for generating diagnostics; setting it to NULL
712 suppresses diagnostics. */
714 static struct cset_converter
715 init_iconv_desc (cpp_reader *pfile, const char *to, const char *from)
717 struct cset_converter ret;
718 char *pair;
719 size_t i;
721 ret.to = to;
722 ret.from = from;
724 if (!strcasecmp (to, from))
726 ret.func = convert_no_conversion;
727 ret.cd = (iconv_t) -1;
728 ret.width = -1;
729 return ret;
732 pair = (char *) alloca(strlen(to) + strlen(from) + 2);
734 strcpy(pair, from);
735 strcat(pair, "/");
736 strcat(pair, to);
737 for (i = 0; i < ARRAY_SIZE (conversion_tab); i++)
738 if (!strcasecmp (pair, conversion_tab[i].pair))
740 ret.func = conversion_tab[i].func;
741 ret.cd = conversion_tab[i].fake_cd;
742 ret.width = -1;
743 return ret;
746 /* No custom converter - try iconv. */
747 if (HAVE_ICONV)
749 ret.func = convert_using_iconv;
750 ret.cd = iconv_open (to, from);
751 ret.width = -1;
753 if (ret.cd == (iconv_t) -1)
755 if (pfile)
757 if (errno == EINVAL)
758 cpp_error (pfile, CPP_DL_ERROR, /* FIXME should be DL_SORRY */
759 "conversion from %s to %s not supported by iconv",
760 from, to);
761 else
762 cpp_errno (pfile, CPP_DL_ERROR, "iconv_open");
764 ret.func = convert_no_conversion;
767 else
769 if (pfile)
771 cpp_error (pfile, CPP_DL_ERROR, /* FIXME: should be DL_SORRY */
772 "no iconv implementation, cannot convert from %s to %s",
773 from, to);
775 ret.func = convert_no_conversion;
776 ret.cd = (iconv_t) -1;
777 ret.width = -1;
780 return ret;
783 /* If charset conversion is requested, initialize iconv(3) descriptors
784 for conversion from the source character set to the execution
785 character sets. If iconv is not present in the C library, and
786 conversion is requested, issue an error. */
788 void
789 cpp_init_iconv (cpp_reader *pfile)
791 const char *ncset = CPP_OPTION (pfile, narrow_charset);
792 const char *wcset = CPP_OPTION (pfile, wide_charset);
793 const char *default_wcset;
795 bool be = CPP_OPTION (pfile, bytes_big_endian);
797 if (CPP_OPTION (pfile, wchar_precision) >= 32)
798 default_wcset = be ? "UTF-32BE" : "UTF-32LE";
799 else if (CPP_OPTION (pfile, wchar_precision) >= 16)
800 default_wcset = be ? "UTF-16BE" : "UTF-16LE";
801 else
802 /* This effectively means that wide strings are not supported,
803 so don't do any conversion at all. */
804 default_wcset = SOURCE_CHARSET;
806 if (!ncset)
807 ncset = SOURCE_CHARSET;
808 if (!wcset)
809 wcset = default_wcset;
811 pfile->narrow_cset_desc = init_iconv_desc (pfile, ncset, SOURCE_CHARSET);
812 pfile->narrow_cset_desc.width = CPP_OPTION (pfile, char_precision);
813 pfile->utf8_cset_desc = init_iconv_desc (pfile, "UTF-8", SOURCE_CHARSET);
814 pfile->utf8_cset_desc.width = CPP_OPTION (pfile, char_precision);
815 pfile->char16_cset_desc = init_iconv_desc (pfile,
816 be ? "UTF-16BE" : "UTF-16LE",
817 SOURCE_CHARSET);
818 pfile->char16_cset_desc.width = 16;
819 pfile->char32_cset_desc = init_iconv_desc (pfile,
820 be ? "UTF-32BE" : "UTF-32LE",
821 SOURCE_CHARSET);
822 pfile->char32_cset_desc.width = 32;
823 pfile->wide_cset_desc = init_iconv_desc (pfile, wcset, SOURCE_CHARSET);
824 pfile->wide_cset_desc.width = CPP_OPTION (pfile, wchar_precision);
827 /* Destroy iconv(3) descriptors set up by cpp_init_iconv, if necessary. */
828 void
829 _cpp_destroy_iconv (cpp_reader *pfile)
831 if (HAVE_ICONV)
833 if (pfile->narrow_cset_desc.func == convert_using_iconv)
834 iconv_close (pfile->narrow_cset_desc.cd);
835 if (pfile->utf8_cset_desc.func == convert_using_iconv)
836 iconv_close (pfile->utf8_cset_desc.cd);
837 if (pfile->char16_cset_desc.func == convert_using_iconv)
838 iconv_close (pfile->char16_cset_desc.cd);
839 if (pfile->char32_cset_desc.func == convert_using_iconv)
840 iconv_close (pfile->char32_cset_desc.cd);
841 if (pfile->wide_cset_desc.func == convert_using_iconv)
842 iconv_close (pfile->wide_cset_desc.cd);
846 /* Utility routine for use by a full compiler. C is a character taken
847 from the *basic* source character set, encoded in the host's
848 execution encoding. Convert it to (the target's) execution
849 encoding, and return that value.
851 Issues an internal error if C's representation in the narrow
852 execution character set fails to be a single-byte value (C99
853 5.2.1p3: "The representation of each member of the source and
854 execution character sets shall fit in a byte.") May also issue an
855 internal error if C fails to be a member of the basic source
856 character set (testing this exactly is too hard, especially when
857 the host character set is EBCDIC). */
858 cppchar_t
859 cpp_host_to_exec_charset (cpp_reader *pfile, cppchar_t c)
861 uchar sbuf[1];
862 struct _cpp_strbuf tbuf;
864 /* This test is merely an approximation, but it suffices to catch
865 the most important thing, which is that we don't get handed a
866 character outside the unibyte range of the host character set. */
867 if (c > LAST_POSSIBLY_BASIC_SOURCE_CHAR)
869 cpp_error (pfile, CPP_DL_ICE,
870 "character 0x%lx is not in the basic source character set\n",
871 (unsigned long)c);
872 return 0;
875 /* Being a character in the unibyte range of the host character set,
876 we can safely splat it into a one-byte buffer and trust that that
877 is a well-formed string. */
878 sbuf[0] = c;
880 /* This should never need to reallocate, but just in case... */
881 tbuf.asize = 1;
882 tbuf.text = XNEWVEC (uchar, tbuf.asize);
883 tbuf.len = 0;
885 if (!APPLY_CONVERSION (pfile->narrow_cset_desc, sbuf, 1, &tbuf))
887 cpp_errno (pfile, CPP_DL_ICE, "converting to execution character set");
888 return 0;
890 if (tbuf.len != 1)
892 cpp_error (pfile, CPP_DL_ICE,
893 "character 0x%lx is not unibyte in execution character set",
894 (unsigned long)c);
895 return 0;
897 c = tbuf.text[0];
898 free(tbuf.text);
899 return c;
904 /* cpp_substring_ranges's constructor. */
906 cpp_substring_ranges::cpp_substring_ranges () :
907 m_ranges (NULL),
908 m_num_ranges (0),
909 m_alloc_ranges (8)
911 m_ranges = XNEWVEC (source_range, m_alloc_ranges);
914 /* cpp_substring_ranges's destructor. */
916 cpp_substring_ranges::~cpp_substring_ranges ()
918 free (m_ranges);
921 /* Add RANGE to the vector of source_range information. */
923 void
924 cpp_substring_ranges::add_range (source_range range)
926 if (m_num_ranges >= m_alloc_ranges)
928 m_alloc_ranges *= 2;
929 m_ranges
930 = (source_range *)xrealloc (m_ranges,
931 sizeof (source_range) * m_alloc_ranges);
933 m_ranges[m_num_ranges++] = range;
936 /* Read NUM ranges from LOC_READER, adding them to the vector of source_range
937 information. */
939 void
940 cpp_substring_ranges::add_n_ranges (int num,
941 cpp_string_location_reader &loc_reader)
943 for (int i = 0; i < num; i++)
944 add_range (loc_reader.get_next ());
949 /* Utility routine that computes a mask of the form 0000...111... with
950 WIDTH 1-bits. */
951 static inline size_t
952 width_to_mask (size_t width)
954 width = MIN (width, BITS_PER_CPPCHAR_T);
955 if (width >= CHAR_BIT * sizeof (size_t))
956 return ~(size_t) 0;
957 else
958 return ((size_t) 1 << width) - 1;
961 /* A large table of unicode character information. */
962 enum {
963 /* Valid in a C99 identifier? */
964 C99 = 1,
965 /* Valid in a C99 identifier, but not as the first character? */
966 N99 = 2,
967 /* Valid in a C++ identifier? */
968 CXX = 4,
969 /* Valid in a C11/C++11 identifier? */
970 C11 = 8,
971 /* Valid in a C11/C++11 identifier, but not as the first character? */
972 N11 = 16,
973 /* Valid in a C++23 identifier? */
974 CXX23 = 32,
975 /* Valid in a C++23 identifier, but not as the first character? */
976 NXX23 = 64,
977 /* NFC representation is not valid in an identifier? */
978 CID = 128,
979 /* Might be valid NFC form? */
980 NFC = 256,
981 /* Might be valid NFKC form? */
982 NKC = 512,
983 /* Certain preceding characters might make it not valid NFC/NKFC form? */
984 CTX = 1024
987 struct ucnrange {
988 /* Bitmap of flags above. */
989 unsigned short flags;
990 /* Combining class of the character. */
991 unsigned char combine;
992 /* Last character in the range described by this entry. */
993 unsigned int end;
995 #include "ucnid.h"
997 /* ISO 10646 defines the UCS codespace as the range 0-0x10FFFF inclusive. */
998 #define UCS_LIMIT 0x10FFFF
1000 #include "uname2c.h"
1002 static const char hangul_syllables[][4] = {
1003 /* L */
1004 "G", "GG", "N", "D", "DD", "R", "M", "B", "BB", "S", "SS", "",
1005 "J", "JJ", "C", "K", "T", "P", "H",
1006 /* V */
1007 "A", "AE", "YA", "YAE", "EO", "E", "YEO", "YE", "O", "WA", "WAE",
1008 "OE", "YO", "U", "WEO", "WE", "WI", "YU", "EU", "YI", "I",
1009 /* T */
1010 "", "G", "GG", "GS", "N", "NJ", "NH", "D", "L", "LG", "LM", "LB",
1011 "LS", "LT", "LP", "LH", "M", "B", "BS", "S", "SS", "NG", "J", "C",
1012 "K", "T", "P", "H"
1015 static const short hangul_count[6] = { 19, 21, 28 };
1017 /* Used for Unicode loose matching rule UAX44-LM2 matching. */
1019 struct uname2c_data
1021 char *canon_name;
1022 char prev_char;
1025 /* Map NAME, a Unicode character name or correction/control/alternate
1026 alias, to a Unicode codepoint, or return (cppchar_t) -1 if
1027 not found. This uses a space optimized radix tree precomputed
1028 by the makeuname2c utility, with binary format documented in its
1029 source makeuname2c.cc. */
1031 static cppchar_t
1032 _cpp_uname2c (const char *name, size_t len, const unsigned char *n,
1033 struct uname2c_data *data)
1037 char k;
1038 const char *key;
1039 size_t key_len, len_adj;
1040 bool has_value = *n & 0x40;
1041 bool has_children, no_sibling = false;
1042 cppchar_t codepoint = -1;
1043 const unsigned char *child = NULL;
1044 int ret;
1046 if (*n & 0x80)
1048 k = ' ' + (*n++ & 0x3f);
1049 key = &k;
1050 key_len = 1;
1052 else
1054 key_len = *n++ & 0x3f;
1055 key = &uname2c_dict[*n++];
1056 key += (*n++ << 8);
1058 if (has_value)
1060 codepoint = *n + (n[1] << 8) + ((n[2] & 0x1f) << 16);
1061 has_children = n[2] & 0x80;
1062 no_sibling = n[2] & 0x40;
1063 n += 3;
1065 else
1066 has_children = true;
1067 if (has_children)
1069 unsigned int shift = 0;
1070 size_t child_off = 0;
1074 child_off |= (*n & 0x7f) << shift;
1075 shift += 7;
1077 while ((*n++ & 0x80) != 0);
1078 child = n + child_off;
1080 if (__builtin_expect (data == NULL, 1))
1082 ret = memcmp (name, key, len > key_len ? key_len : len);
1083 len_adj = key_len;
1085 else
1087 const char *p = name, *q = key;
1089 while (1)
1091 if ((size_t) (p - name) == len || (size_t) (q - key) == key_len)
1092 break;
1093 if (*q == ' ')
1095 ++q;
1096 continue;
1098 if (*q == '-')
1100 /* This is the hard case. Only medial hyphens
1101 should be removed, where medial means preceded
1102 and followed by alnum. */
1103 if (ISALNUM (q == key ? data->prev_char : q[-1]))
1105 if (q + 1 == key + key_len)
1107 /* We don't know what the next letter will be.
1108 It could be ISALNUM, then we are supposed
1109 to omit it, or it could be a space and then
1110 we should not omit it and need to compare it.
1111 Fortunately the only 3 names with hyphen
1112 followed by non-letter are
1113 U+0F0A TIBETAN MARK BKA- SHOG YIG MGO
1114 U+0FD0 TIBETAN MARK BKA- SHOG GI MGO RGYAN
1115 U+0FD0 TIBETAN MARK BSKA- SHOG GI MGO RGYAN
1116 Furthermore, prefixes of NR2 generated
1117 ranges all end with a hyphen, but the generated
1118 part is then followed by alpha-numeric.
1119 So, let's just assume that - at the end of
1120 key is always followed by alphanumeric and
1121 so should be omitted.
1122 makeuname2c.cc verifies that this is true. */
1123 ++q;
1124 continue;
1126 else if (ISALNUM (q[1]))
1128 ++q;
1129 continue;
1133 if (*p != *q)
1134 break;
1135 ++p;
1136 ++q;
1138 len_adj = p - name;
1139 /* If we don't consume the whole key, signal a mismatch,
1140 but always with ret = 1, so that we keep looking through
1141 siblings. */
1142 ret = q < key + key_len;
1144 if (ret < 0)
1145 return -1;
1146 else if (ret == 0)
1148 if (len < len_adj)
1149 return -1;
1150 else if (codepoint >= 0xd800
1151 && codepoint < 0xd800 + ARRAY_SIZE (uname2c_generated))
1153 name += len_adj;
1154 len -= len_adj;
1155 if (codepoint == 0xd800)
1157 /* NR1 - Hangul syllables. */
1158 size_t start = 0, end, i, j;
1159 int this_len, max_len;
1160 char winner[3];
1162 for (i = 0; i < 3; ++i)
1164 end = start + hangul_count[i];
1165 max_len = -1;
1166 winner[i] = -1;
1167 for (j = start; j < end; j++)
1169 this_len = strlen (hangul_syllables[j]);
1170 if (len >= (size_t) this_len
1171 && this_len > max_len
1172 && memcmp (name, hangul_syllables[j],
1173 this_len) == 0)
1175 max_len = this_len;
1176 winner[i] = j - start;
1179 if (max_len == -1)
1180 return -1;
1181 name += max_len;
1182 len -= max_len;
1183 start = end;
1185 if (__builtin_expect (data != NULL, 0))
1187 memcpy (data->canon_name, key, key_len);
1188 data->canon_name[key_len] = '\0';
1189 for (i = 0, start = 0; i < 3; ++i)
1191 strcat (data->canon_name,
1192 hangul_syllables[start + winner[i]]);
1193 start += hangul_count[i];
1196 return (0xac00 + 21 * 28 * winner[0]
1197 + 28 * winner[1] + winner[2]);
1199 else
1201 /* NR2 - prefix followed by hexadecimal codepoint. */
1202 const cppchar_t *p;
1203 size_t i;
1205 if (len < 4 || len > 5)
1206 return -1;
1207 p = uname2c_pairs + uname2c_generated[codepoint - 0xd800];
1208 codepoint = 0;
1209 for (i = 0; i < len; ++i)
1211 codepoint <<= 4;
1212 if (!ISXDIGIT (name[i]))
1213 return -1;
1214 codepoint += hex_value (name[i]);
1216 for (; *p; p += 2)
1217 if (codepoint < *p)
1218 return -1;
1219 else if (codepoint <= p[1])
1221 if (__builtin_expect (data != NULL, 0))
1223 memcpy (data->canon_name, key, key_len);
1224 memcpy (data->canon_name + key_len, name, len);
1225 data->canon_name[key_len + len] = '\0';
1227 return codepoint;
1229 return -1;
1232 else if (__builtin_expect (data != NULL, 0))
1234 if (len == len_adj)
1236 memcpy (data->canon_name, key, key_len);
1237 data->canon_name[key_len] = '\0';
1238 return codepoint;
1240 if (has_children)
1242 struct uname2c_data save = *data;
1243 memcpy (data->canon_name, key, key_len);
1244 data->canon_name += key_len;
1245 data->prev_char = key[key_len - 1];
1246 codepoint = _cpp_uname2c (name + len_adj, len - len_adj,
1247 child, data);
1248 if (codepoint != (cppchar_t) -1)
1249 return codepoint;
1250 *data = save;
1253 else if (len == len_adj)
1254 return codepoint;
1255 else if (!has_children)
1256 return -1;
1257 else
1259 name += len_adj;
1260 len -= len_adj;
1261 n = child;
1262 continue;
1265 if (no_sibling || (!has_value && *n == 0xff))
1266 break;
1268 while (1);
1269 return -1;
1272 /* Try to do a loose name lookup according to Unicode loose matching rule
1273 UAX44-LM2. First ignore medial hyphens, whitespace, underscore
1274 characters and convert to upper case. */
1276 static cppchar_t
1277 _cpp_uname2c_uax44_lm2 (const char *name, size_t len, char *canon_name)
1279 char name_after_uax44_lm2[uname2c_max_name_len];
1280 char *q = name_after_uax44_lm2;
1281 const char *p;
1283 for (p = name; p < name + len; p++)
1284 if (*p == '_' || *p == ' ')
1285 continue;
1286 else if (*p == '-' && p != name && ISALNUM (p[-1]) && ISALNUM (p[1]))
1287 continue;
1288 else if (q == name_after_uax44_lm2 + uname2c_max_name_len)
1289 return -1;
1290 else if (ISLOWER (*p))
1291 *q++ = TOUPPER (*p);
1292 else
1293 *q++ = *p;
1295 struct uname2c_data data;
1296 data.canon_name = canon_name;
1297 data.prev_char = ' ';
1298 /* Hangul Jungseong O- E after UAX44-LM2 should be HANGULJUNGSEONGO-E
1299 and so should match U+1180. */
1300 if (q - name_after_uax44_lm2 == sizeof ("HANGULJUNGSEONGO-E") - 1
1301 && memcmp (name_after_uax44_lm2, "HANGULJUNGSEONGO-E",
1302 sizeof ("HANGULJUNGSEONGO-E") - 1) == 0)
1304 name_after_uax44_lm2[sizeof ("HANGULJUNGSEONGO") - 1] = 'E';
1305 --q;
1307 cppchar_t result
1308 = _cpp_uname2c (name_after_uax44_lm2, q - name_after_uax44_lm2,
1309 uname2c_tree, &data);
1311 /* Unicode UAX44-LM2 exception:
1312 U+116C HANGUL JUNGSEONG OE
1313 U+1180 HANGUL JUNGSEONG O-E
1314 We remove all medial hyphens when we shouldn't remote the U+1180 one.
1315 The U+1180 entry sorts before U+116C lexicographilly, so we get U+1180
1316 in both cases. Thus, if result is U+1180, check if user's name doesn't
1317 have a hyphen there and adjust. */
1318 if (result == 0x1180)
1320 while (p[-1] == ' ' || p[-1] == '_')
1321 --p;
1322 gcc_assert (TOUPPER (p[-1]) == 'E');
1323 --p;
1324 while (p[-1] == ' ' || p[-1] == '_')
1325 --p;
1326 if (p[-1] != '-')
1328 result = 0x116c;
1329 memcpy (canon_name + sizeof ("HANGUL JUNGSEONG O") - 1, "E", 2);
1332 return result;
1336 /* Returns 1 if C is valid in an identifier, 2 if C is valid except at
1337 the start of an identifier, and 0 if C is not valid in an
1338 identifier. We assume C has already gone through the checks of
1339 _cpp_valid_ucn. Also update NST for C if returning nonzero. The
1340 algorithm is a simple binary search on the table defined in
1341 ucnid.h. */
1343 static int
1344 ucn_valid_in_identifier (cpp_reader *pfile, cppchar_t c,
1345 struct normalize_state *nst)
1347 int mn, mx, md;
1348 unsigned short valid_flags, invalid_start_flags;
1350 if (c > UCS_LIMIT)
1351 return 0;
1353 mn = 0;
1354 mx = ARRAY_SIZE (ucnranges) - 1;
1355 while (mx != mn)
1357 md = (mn + mx) / 2;
1358 if (c <= ucnranges[md].end)
1359 mx = md;
1360 else
1361 mn = md + 1;
1364 /* When -pedantic, we require the character to have been listed by
1365 the standard for the current language. Otherwise, we accept the
1366 union of the acceptable sets for all supported language versions. */
1367 valid_flags = C99 | CXX | C11 | CXX23;
1368 if (CPP_PEDANTIC (pfile))
1370 if (CPP_OPTION (pfile, xid_identifiers))
1371 valid_flags = CXX23;
1372 else if (CPP_OPTION (pfile, c11_identifiers))
1373 valid_flags = C11;
1374 else if (CPP_OPTION (pfile, c99))
1375 valid_flags = C99;
1377 if (! (ucnranges[mn].flags & valid_flags))
1378 return 0;
1380 /* Update NST. */
1381 if (ucnranges[mn].combine != 0 && ucnranges[mn].combine < nst->prev_class)
1382 nst->level = normalized_none;
1383 else if (ucnranges[mn].flags & CTX)
1385 bool safe;
1386 cppchar_t p = nst->previous;
1388 /* For Hangul, characters in the range AC00-D7A3 are NFC/NFKC,
1389 and are combined algorithmically from a sequence of the form
1390 1100-1112 1161-1175 11A8-11C2
1391 (if the third is not present, it is treated as 11A7, which is not
1392 really a valid character).
1393 Unfortunately, C99 allows (only) the NFC form, but C++ allows
1394 only the combining characters. */
1395 if (c >= 0x1161 && c <= 0x1175)
1396 safe = p < 0x1100 || p > 0x1112;
1397 else if (c >= 0x11A8 && c <= 0x11C2)
1398 safe = (p < 0xAC00 || p > 0xD7A3 || (p - 0xAC00) % 28 != 0);
1399 else
1400 safe = check_nfc (pfile, c, p);
1401 if (!safe)
1403 if ((c >= 0x1161 && c <= 0x1175) || (c >= 0x11A8 && c <= 0x11C2))
1404 nst->level = MAX (nst->level, normalized_identifier_C);
1405 else
1406 nst->level = normalized_none;
1409 else if (ucnranges[mn].flags & NKC)
1411 else if (ucnranges[mn].flags & NFC)
1412 nst->level = MAX (nst->level, normalized_C);
1413 else if (ucnranges[mn].flags & CID)
1414 nst->level = MAX (nst->level, normalized_identifier_C);
1415 else
1416 nst->level = normalized_none;
1417 if (ucnranges[mn].combine == 0)
1418 nst->previous = c;
1419 nst->prev_class = ucnranges[mn].combine;
1421 if (!CPP_PEDANTIC (pfile))
1423 /* If not -pedantic, accept as character that may
1424 begin an identifier a union of characters allowed
1425 at that position in each of the character sets. */
1426 if ((ucnranges[mn].flags & (C99 | N99)) == C99
1427 || (ucnranges[mn].flags & CXX) != 0
1428 || (ucnranges[mn].flags & (C11 | N11)) == C11
1429 || (ucnranges[mn].flags & (CXX23 | NXX23)) == CXX23)
1430 return 1;
1431 return 2;
1434 if (CPP_OPTION (pfile, xid_identifiers))
1435 invalid_start_flags = NXX23;
1436 else if (CPP_OPTION (pfile, c11_identifiers))
1437 invalid_start_flags = N11;
1438 else if (CPP_OPTION (pfile, c99))
1439 invalid_start_flags = N99;
1440 else
1441 invalid_start_flags = 0;
1443 /* In C99, UCN digits may not begin identifiers. In C11 and C++11,
1444 UCN combining characters may not begin identifiers. */
1445 if (ucnranges[mn].flags & invalid_start_flags)
1446 return 2;
1448 return 1;
1451 /* Increment char_range->m_finish by a single character. */
1453 static void
1454 extend_char_range (source_range *char_range,
1455 cpp_string_location_reader *loc_reader)
1457 if (loc_reader)
1459 gcc_assert (char_range);
1460 char_range->m_finish = loc_reader->get_next ().m_finish;
1464 /* [lex.charset]: The character designated by the universal character
1465 name \UNNNNNNNN is that character whose character short name in
1466 ISO/IEC 10646 is NNNNNNNN; the character designated by the
1467 universal character name \uNNNN is that character whose character
1468 short name in ISO/IEC 10646 is 0000NNNN. If the hexadecimal value
1469 for a universal character name corresponds to a surrogate code point
1470 (in the range 0xD800-0xDFFF, inclusive), the program is ill-formed.
1471 Additionally, if the hexadecimal value for a universal-character-name
1472 outside a character or string literal corresponds to a control character
1473 (in either of the ranges 0x00-0x1F or 0x7F-0x9F, both inclusive) or to a
1474 character in the basic source character set, the program is ill-formed.
1476 C99 6.4.3: A universal character name shall not specify a character
1477 whose short identifier is less than 00A0 other than 0024 ($), 0040 (@),
1478 or 0060 (`), nor one in the range D800 through DFFF inclusive.
1480 If the hexadecimal value is larger than the upper bound of the UCS
1481 codespace specified in ISO/IEC 10646, a pedantic warning is issued
1482 in all versions of C and in the C++20 or later versions of C++.
1484 *PSTR must be preceded by "\u" or "\U"; it is assumed that the
1485 buffer end is delimited by a non-hex digit. Returns false if the
1486 UCN has not been consumed, true otherwise.
1488 The value of the UCN, whether valid or invalid, is returned in *CP.
1489 Diagnostics are emitted for invalid values. PSTR is updated to point
1490 one beyond the UCN, or to the syntactically invalid character.
1492 IDENTIFIER_POS is 0 when not in an identifier, 1 for the start of
1493 an identifier, or 2 otherwise.
1495 If LOC_READER is non-NULL, then position information is
1496 read from *LOC_READER and CHAR_RANGE->m_finish is updated accordingly. */
1498 bool
1499 _cpp_valid_ucn (cpp_reader *pfile, const uchar **pstr,
1500 const uchar *limit, int identifier_pos,
1501 struct normalize_state *nst, cppchar_t *cp,
1502 source_range *char_range,
1503 cpp_string_location_reader *loc_reader)
1505 cppchar_t result, c;
1506 unsigned int length;
1507 const uchar *str = *pstr;
1508 const uchar *base = str - 2;
1509 bool delimited = false, named = false;
1511 if (!CPP_OPTION (pfile, cplusplus) && !CPP_OPTION (pfile, c99))
1512 cpp_error (pfile, CPP_DL_WARNING,
1513 "universal character names are only valid in C++ and C99");
1514 else if (CPP_OPTION (pfile, cpp_warn_c90_c99_compat) > 0
1515 && !CPP_OPTION (pfile, cplusplus))
1516 cpp_error (pfile, CPP_DL_WARNING,
1517 "C99's universal character names are incompatible with C90");
1518 else if (CPP_WTRADITIONAL (pfile) && identifier_pos == 0)
1519 cpp_warning (pfile, CPP_W_TRADITIONAL,
1520 "the meaning of '\\%c' is different in traditional C",
1521 (int) str[-1]);
1523 result = 0;
1524 if (str[-1] == 'u')
1526 length = 4;
1527 if (str < limit
1528 && *str == '{'
1529 && (!identifier_pos
1530 || CPP_OPTION (pfile, delimited_escape_seqs)
1531 || !CPP_OPTION (pfile, std)))
1533 str++;
1534 /* Magic value to indicate no digits seen. */
1535 length = 32;
1536 delimited = true;
1537 extend_char_range (char_range, loc_reader);
1540 else if (str[-1] == 'U')
1541 length = 8;
1542 else if (str[-1] == 'N')
1544 length = 4;
1545 if (identifier_pos
1546 && !CPP_OPTION (pfile, delimited_escape_seqs)
1547 && CPP_OPTION (pfile, std))
1549 *cp = 0;
1550 return false;
1552 if (str == limit || *str != '{')
1554 if (identifier_pos)
1556 *cp = 0;
1557 return false;
1559 cpp_error (pfile, CPP_DL_ERROR, "'\\N' not followed by '{'");
1561 else
1563 str++;
1564 named = true;
1565 extend_char_range (char_range, loc_reader);
1566 length = 0;
1567 const uchar *name = str;
1568 bool strict = true;
1572 if (str == limit)
1573 break;
1574 c = *str;
1575 if (!ISIDNUM (c) && c != ' ' && c != '-')
1576 break;
1577 if (ISLOWER (c) || c == '_')
1578 strict = false;
1579 str++;
1580 extend_char_range (char_range, loc_reader);
1582 while (1);
1584 if (str < limit && *str == '}')
1586 if (identifier_pos && name == str)
1588 cpp_warning (pfile, CPP_W_UNICODE,
1589 "empty named universal character escape "
1590 "sequence; treating it as separate tokens");
1591 *cp = 0;
1592 return false;
1594 if (name == str)
1595 cpp_error (pfile, CPP_DL_ERROR,
1596 "empty named universal character escape sequence");
1597 else if ((!identifier_pos || strict)
1598 && !CPP_OPTION (pfile, delimited_escape_seqs)
1599 && CPP_OPTION (pfile, cpp_pedantic))
1600 cpp_error (pfile, CPP_DL_PEDWARN,
1601 "named universal character escapes are only valid "
1602 "in C++23");
1603 if (name == str)
1604 result = 0x40;
1605 else
1607 /* If the name is longer than maximum length of a Unicode
1608 name, it can't be strictly valid. */
1609 if ((size_t) (str - name) > uname2c_max_name_len || !strict)
1610 result = -1;
1611 else
1612 result = _cpp_uname2c ((const char *) name, str - name,
1613 uname2c_tree, NULL);
1614 if (result == (cppchar_t) -1)
1616 bool ret = true;
1617 if (identifier_pos
1618 && (!CPP_OPTION (pfile, delimited_escape_seqs)
1619 || !strict))
1620 ret = cpp_warning (pfile, CPP_W_UNICODE,
1621 "\\N{%.*s} is not a valid "
1622 "universal character; treating it "
1623 "as separate tokens",
1624 (int) (str - name), name);
1625 else
1626 cpp_error (pfile, CPP_DL_ERROR,
1627 "\\N{%.*s} is not a valid universal "
1628 "character", (int) (str - name), name);
1630 /* Try to do a loose name lookup according to
1631 Unicode loose matching rule UAX44-LM2. */
1632 char canon_name[uname2c_max_name_len + 1];
1633 result = _cpp_uname2c_uax44_lm2 ((const char *) name,
1634 str - name, canon_name);
1635 if (result != (cppchar_t) -1 && ret)
1636 cpp_error (pfile, CPP_DL_NOTE,
1637 "did you mean \\N{%s}?", canon_name);
1638 else
1639 result = 0xC0;
1640 if (identifier_pos
1641 && (!CPP_OPTION (pfile, delimited_escape_seqs)
1642 || !strict))
1644 *cp = 0;
1645 return false;
1649 str++;
1650 extend_char_range (char_range, loc_reader);
1652 else if (identifier_pos)
1654 cpp_warning (pfile, CPP_W_UNICODE,
1655 "'\\N{' not terminated with '}' after %.*s; "
1656 "treating it as separate tokens",
1657 (int) (str - base), base);
1658 *cp = 0;
1659 return false;
1661 else
1663 cpp_error (pfile, CPP_DL_ERROR,
1664 "'\\N{' not terminated with '}' after %.*s",
1665 (int) (str - base), base);
1666 result = 1;
1670 else
1672 cpp_error (pfile, CPP_DL_ICE, "In _cpp_valid_ucn but not a UCN");
1673 length = 4;
1676 if (!named)
1679 if (str == limit)
1680 break;
1681 c = *str;
1682 if (!ISXDIGIT (c))
1683 break;
1684 str++;
1685 extend_char_range (char_range, loc_reader);
1686 if (delimited)
1688 if (!result)
1689 /* Accept arbitrary number of leading zeros.
1690 16 is another magic value, smaller than 32 above
1691 and bigger than 8, so that upon encountering first
1692 non-zero digit we can count 8 digits and after that
1693 or in overflow bit and ensure length doesn't decrease
1694 to 0, as delimited escape sequence doesn't have upper
1695 bound on the number of hex digits. */
1696 length = 16;
1697 else if (length == 16 - 8)
1699 /* Make sure we detect overflows. */
1700 result |= 0x8000000;
1701 ++length;
1705 result = (result << 4) + hex_value (c);
1707 while (--length);
1709 if (delimited && str < limit && *str == '}')
1711 if (length == 32 && identifier_pos)
1713 cpp_warning (pfile, CPP_W_UNICODE,
1714 "empty delimited escape sequence; "
1715 "treating it as separate tokens");
1716 *cp = 0;
1717 return false;
1719 else if (length == 32)
1720 cpp_error (pfile, CPP_DL_ERROR,
1721 "empty delimited escape sequence");
1722 else if (!CPP_OPTION (pfile, delimited_escape_seqs)
1723 && CPP_OPTION (pfile, cpp_pedantic))
1724 cpp_error (pfile, CPP_DL_PEDWARN,
1725 "delimited escape sequences are only valid in C++23");
1726 str++;
1727 length = 0;
1728 delimited = false;
1729 extend_char_range (char_range, loc_reader);
1732 /* Partial UCNs are not valid in strings, but decompose into
1733 multiple tokens in identifiers, so we can't give a helpful
1734 error message in that case. */
1735 if (length && identifier_pos)
1737 if (delimited)
1738 cpp_warning (pfile, CPP_W_UNICODE,
1739 "'\\u{' not terminated with '}' after %.*s; "
1740 "treating it as separate tokens",
1741 (int) (str - base), base);
1742 *cp = 0;
1743 return false;
1746 *pstr = str;
1747 if (length)
1749 if (!delimited)
1750 cpp_error (pfile, CPP_DL_ERROR,
1751 "incomplete universal character name %.*s",
1752 (int) (str - base), base);
1753 else
1754 cpp_error (pfile, CPP_DL_ERROR,
1755 "'\\u{' not terminated with '}' after %.*s",
1756 (int) (str - base), base);
1757 result = 1;
1759 /* The C99 standard permits $, @ and ` to be specified as UCNs. We use
1760 hex escapes so that this also works with EBCDIC hosts.
1761 C++0x permits everything below 0xa0 within literals;
1762 ucn_valid_in_identifier will complain about identifiers. */
1763 else if ((result < 0xa0
1764 && !CPP_OPTION (pfile, cplusplus)
1765 && (result != 0x24 && result != 0x40 && result != 0x60))
1766 || (result & 0x80000000)
1767 || (result >= 0xD800 && result <= 0xDFFF))
1769 cpp_error (pfile, CPP_DL_ERROR,
1770 "%.*s is not a valid universal character",
1771 (int) (str - base), base);
1772 result = 1;
1774 else if (identifier_pos && result == 0x24
1775 && CPP_OPTION (pfile, dollars_in_ident))
1777 if (CPP_OPTION (pfile, warn_dollars) && !pfile->state.skipping)
1779 CPP_OPTION (pfile, warn_dollars) = 0;
1780 cpp_error (pfile, CPP_DL_PEDWARN, "'$' in identifier or number");
1782 NORMALIZE_STATE_UPDATE_IDNUM (nst, result);
1784 else if (identifier_pos)
1786 int validity = ucn_valid_in_identifier (pfile, result, nst);
1788 if (validity == 0)
1789 cpp_error (pfile, CPP_DL_ERROR,
1790 "universal character %.*s is not valid in an identifier",
1791 (int) (str - base), base);
1792 else if (validity == 2 && identifier_pos == 1)
1793 cpp_error (pfile, CPP_DL_ERROR,
1794 "universal character %.*s is not valid at the start of an identifier",
1795 (int) (str - base), base);
1797 else if (result > UCS_LIMIT
1798 && (!CPP_OPTION (pfile, cplusplus)
1799 || CPP_OPTION (pfile, lang) > CLK_CXX17))
1800 cpp_error (pfile, CPP_DL_PEDWARN,
1801 "%.*s is outside the UCS codespace",
1802 (int) (str - base), base);
1804 *cp = result;
1805 return true;
1808 /* Convert an UCN, pointed to by FROM, to UTF-8 encoding, then translate
1809 it to the execution character set and write the result into TBUF,
1810 if TBUF is non-NULL.
1811 An advanced pointer is returned. Issues all relevant diagnostics.
1812 If LOC_READER is non-NULL, then RANGES must be non-NULL and CHAR_RANGE
1813 contains the location of the character so far: location information
1814 is read from *LOC_READER, and *RANGES is updated accordingly. */
1815 static const uchar *
1816 convert_ucn (cpp_reader *pfile, const uchar *from, const uchar *limit,
1817 struct _cpp_strbuf *tbuf, struct cset_converter cvt,
1818 source_range char_range,
1819 cpp_string_location_reader *loc_reader,
1820 cpp_substring_ranges *ranges)
1822 cppchar_t ucn;
1823 uchar buf[6];
1824 uchar *bufp = buf;
1825 size_t bytesleft = 6;
1826 int rval;
1827 struct normalize_state nst = INITIAL_NORMALIZE_STATE;
1829 /* loc_reader and ranges must either be both NULL, or both be non-NULL. */
1830 gcc_assert ((loc_reader != NULL) == (ranges != NULL));
1832 from++; /* Skip u/U/N. */
1834 /* The u/U is part of the spelling of this character. */
1835 extend_char_range (&char_range, loc_reader);
1837 _cpp_valid_ucn (pfile, &from, limit, 0, &nst,
1838 &ucn, &char_range, loc_reader);
1840 rval = one_cppchar_to_utf8 (ucn, &bufp, &bytesleft);
1841 if (rval)
1843 errno = rval;
1844 cpp_errno (pfile, CPP_DL_ERROR,
1845 "converting UCN to source character set");
1847 else
1849 if (tbuf)
1850 if (!APPLY_CONVERSION (cvt, buf, 6 - bytesleft, tbuf))
1851 cpp_errno (pfile, CPP_DL_ERROR,
1852 "converting UCN to execution character set");
1854 if (loc_reader)
1856 int num_encoded_bytes = 6 - bytesleft;
1857 for (int i = 0; i < num_encoded_bytes; i++)
1858 ranges->add_range (char_range);
1862 return from;
1865 /* Performs a similar task as _cpp_valid_ucn, but parses UTF-8-encoded
1866 extended characters rather than UCNs. If the return value is TRUE, then a
1867 character was successfully decoded and stored in *CP; *PSTR has been
1868 updated to point one past the valid UTF-8 sequence. Diagnostics may have
1869 been emitted if the character parsed is not allowed in the current context.
1870 If the return value is FALSE, then *PSTR has not been modified and *CP may
1871 equal 0, to indicate that *PSTR does not form a valid UTF-8 sequence, or it
1872 may, when processing an identifier in C mode, equal a codepoint that was
1873 validly encoded but is not allowed to appear in an identifier. In either
1874 case, no diagnostic is emitted, and the return value of FALSE should cause
1875 a new token to be formed.
1877 _cpp_valid_utf8 can be called when lexing a potential identifier, or a
1878 CPP_OTHER token or for the purposes of -Winvalid-utf8 warning in string or
1879 character literals. NST is unused when not in a potential identifier.
1881 As in _cpp_valid_ucn, IDENTIFIER_POS is 0 when not in an identifier, 1 for
1882 the start of an identifier, or 2 otherwise. */
1884 extern bool
1885 _cpp_valid_utf8 (cpp_reader *pfile,
1886 const uchar **pstr,
1887 const uchar *limit,
1888 int identifier_pos,
1889 struct normalize_state *nst,
1890 cppchar_t *cp)
1892 const uchar *base = *pstr;
1893 size_t inbytesleft = limit - base;
1894 if (one_utf8_to_cppchar (pstr, &inbytesleft, cp))
1896 /* No diagnostic here as this byte will rather become a
1897 new token. */
1898 *cp = 0;
1899 return false;
1902 if (identifier_pos)
1904 switch (ucn_valid_in_identifier (pfile, *cp, nst))
1907 case 0:
1908 /* In C++, this is an error for invalid character in an identifier
1909 because logically, the UTF-8 was converted to a UCN during
1910 translation phase 1 (even though we don't physically do it that
1911 way). In C, this byte rather becomes grammatically a separate
1912 token. */
1914 if (CPP_OPTION (pfile, cplusplus))
1915 cpp_error (pfile, CPP_DL_ERROR,
1916 "extended character %.*s is not valid in an identifier",
1917 (int) (*pstr - base), base);
1918 else
1920 *pstr = base;
1921 return false;
1924 break;
1926 case 2:
1927 if (identifier_pos == 1)
1929 /* This is treated the same way in C++ or C99 -- lexed as an
1930 identifier which is then invalid because an identifier is
1931 not allowed to start with this character. */
1932 cpp_error (pfile, CPP_DL_ERROR,
1933 "extended character %.*s is not valid at the start of an identifier",
1934 (int) (*pstr - base), base);
1936 break;
1940 return true;
1943 /* Return true iff BUFFER of size NUM_BYTES is validly-encoded UTF-8. */
1945 extern bool
1946 cpp_valid_utf8_p (const char *buffer, size_t num_bytes)
1948 const uchar *iter = (const uchar *)buffer;
1949 size_t bytesleft = num_bytes;
1950 while (bytesleft > 0)
1952 /* one_utf8_to_cppchar implements 5-byte and 6 byte sequences as per
1953 RFC 2279, but this has been superceded by RFC 3629, which
1954 restricts UTF-8 to 1-byte through 4-byte sequences, and
1955 states "the octet values C0, C1, F5 to FF never appear".
1957 Reject such values. */
1958 if (*iter >= 0xf4)
1959 return false;
1961 cppchar_t cp;
1962 int err = one_utf8_to_cppchar (&iter, &bytesleft, &cp);
1963 if (err)
1964 return false;
1966 /* Additionally, Unicode declares that all codepoints above 0010FFFF are
1967 invalid because they cannot be represented in UTF-16.
1969 Reject such values.*/
1970 if (cp > UCS_LIMIT)
1971 return false;
1973 /* No problems encountered. */
1974 return true;
1977 /* Subroutine of convert_hex and convert_oct. N is the representation
1978 in the execution character set of a numeric escape; write it into the
1979 string buffer TBUF and update the end-of-string pointer therein. WIDE
1980 is true if it's a wide string that's being assembled in TBUF. This
1981 function issues no diagnostics and never fails. */
1982 static void
1983 emit_numeric_escape (cpp_reader *pfile, cppchar_t n,
1984 struct _cpp_strbuf *tbuf, struct cset_converter cvt)
1986 size_t width = cvt.width;
1988 if (width != CPP_OPTION (pfile, char_precision))
1990 /* We have to render this into the target byte order, which may not
1991 be our byte order. */
1992 bool bigend = CPP_OPTION (pfile, bytes_big_endian);
1993 size_t cwidth = CPP_OPTION (pfile, char_precision);
1994 size_t cmask = width_to_mask (cwidth);
1995 size_t nbwc = width / cwidth;
1996 size_t i;
1997 size_t off = tbuf->len;
1998 cppchar_t c;
2000 if (tbuf->len + nbwc > tbuf->asize)
2002 tbuf->asize += OUTBUF_BLOCK_SIZE;
2003 tbuf->text = XRESIZEVEC (uchar, tbuf->text, tbuf->asize);
2006 for (i = 0; i < nbwc; i++)
2008 c = n & cmask;
2009 n >>= cwidth;
2010 tbuf->text[off + (bigend ? nbwc - i - 1 : i)] = c;
2012 tbuf->len += nbwc;
2014 else
2016 /* Note: this code does not handle the case where the target
2017 and host have a different number of bits in a byte. */
2018 if (tbuf->len + 1 > tbuf->asize)
2020 tbuf->asize += OUTBUF_BLOCK_SIZE;
2021 tbuf->text = XRESIZEVEC (uchar, tbuf->text, tbuf->asize);
2023 tbuf->text[tbuf->len++] = n;
2027 /* Convert a hexadecimal escape, pointed to by FROM, to the execution
2028 character set and write it into the string buffer TBUF (if non-NULL).
2029 Returns an advanced pointer, and issues diagnostics as necessary.
2030 No character set translation occurs; this routine always produces the
2031 execution-set character with numeric value equal to the given hex
2032 number. You can, e.g. generate surrogate pairs this way.
2033 If LOC_READER is non-NULL, then RANGES must be non-NULL and CHAR_RANGE
2034 contains the location of the character so far: location information
2035 is read from *LOC_READER, and *RANGES is updated accordingly. */
2036 static const uchar *
2037 convert_hex (cpp_reader *pfile, const uchar *from, const uchar *limit,
2038 struct _cpp_strbuf *tbuf, struct cset_converter cvt,
2039 source_range char_range,
2040 cpp_string_location_reader *loc_reader,
2041 cpp_substring_ranges *ranges)
2043 cppchar_t c, n = 0, overflow = 0;
2044 int digits_found = 0;
2045 size_t width = cvt.width;
2046 size_t mask = width_to_mask (width);
2047 bool delimited = false;
2048 const uchar *base = from - 1;
2050 /* loc_reader and ranges must either be both NULL, or both be non-NULL. */
2051 gcc_assert ((loc_reader != NULL) == (ranges != NULL));
2053 if (CPP_WTRADITIONAL (pfile))
2054 cpp_warning (pfile, CPP_W_TRADITIONAL,
2055 "the meaning of '\\x' is different in traditional C");
2057 /* Skip 'x'. */
2058 from++;
2060 /* The 'x' is part of the spelling of this character. */
2061 extend_char_range (&char_range, loc_reader);
2063 if (from < limit && *from == '{')
2065 delimited = true;
2066 from++;
2067 extend_char_range (&char_range, loc_reader);
2070 while (from < limit)
2072 c = *from;
2073 if (! hex_p (c))
2074 break;
2075 from++;
2076 extend_char_range (&char_range, loc_reader);
2077 overflow |= n ^ (n << 4 >> 4);
2078 n = (n << 4) + hex_value (c);
2079 digits_found = 1;
2082 if (delimited && from < limit && *from == '}')
2084 from++;
2085 if (!digits_found)
2087 cpp_error (pfile, CPP_DL_ERROR,
2088 "empty delimited escape sequence");
2089 return from;
2091 else if (!CPP_OPTION (pfile, delimited_escape_seqs)
2092 && CPP_OPTION (pfile, cpp_pedantic))
2093 cpp_error (pfile, CPP_DL_PEDWARN,
2094 "delimited escape sequences are only valid in C++23");
2095 delimited = false;
2096 extend_char_range (&char_range, loc_reader);
2099 if (!digits_found)
2101 cpp_error (pfile, CPP_DL_ERROR,
2102 "\\x used with no following hex digits");
2103 return from;
2105 else if (delimited)
2107 cpp_error (pfile, CPP_DL_ERROR,
2108 "'\\x{' not terminated with '}' after %.*s",
2109 (int) (from - base), base);
2110 return from;
2113 if (overflow | (n != (n & mask)))
2115 cpp_error (pfile, CPP_DL_PEDWARN,
2116 "hex escape sequence out of range");
2117 n &= mask;
2120 if (tbuf)
2121 emit_numeric_escape (pfile, n, tbuf, cvt);
2122 if (ranges)
2123 ranges->add_range (char_range);
2125 return from;
2128 /* Convert an octal escape, pointed to by FROM, to the execution
2129 character set and write it into the string buffer TBUF. Returns an
2130 advanced pointer, and issues diagnostics as necessary.
2131 No character set translation occurs; this routine always produces the
2132 execution-set character with numeric value equal to the given octal
2133 number.
2134 If LOC_READER is non-NULL, then RANGES must be non-NULL and CHAR_RANGE
2135 contains the location of the character so far: location information
2136 is read from *LOC_READER, and *RANGES is updated accordingly. */
2137 static const uchar *
2138 convert_oct (cpp_reader *pfile, const uchar *from, const uchar *limit,
2139 struct _cpp_strbuf *tbuf, struct cset_converter cvt,
2140 source_range char_range,
2141 cpp_string_location_reader *loc_reader,
2142 cpp_substring_ranges *ranges)
2144 size_t count = 0;
2145 cppchar_t c, n = 0, overflow = 0;
2146 size_t width = cvt.width;
2147 size_t mask = width_to_mask (width);
2148 bool delimited = false;
2149 const uchar *base = from - 1;
2151 /* loc_reader and ranges must either be both NULL, or both be non-NULL. */
2152 gcc_assert ((loc_reader != NULL) == (ranges != NULL));
2154 if (from < limit && *from == 'o')
2156 from++;
2157 extend_char_range (&char_range, loc_reader);
2158 if (from == limit || *from != '{')
2159 cpp_error (pfile, CPP_DL_ERROR, "'\\o' not followed by '{'");
2160 else
2162 from++;
2163 extend_char_range (&char_range, loc_reader);
2164 delimited = true;
2168 while (from < limit && count++ < 3)
2170 c = *from;
2171 if (c < '0' || c > '7')
2172 break;
2173 from++;
2174 extend_char_range (&char_range, loc_reader);
2175 if (delimited)
2177 count = 2;
2178 overflow |= n ^ (n << 3 >> 3);
2180 n = (n << 3) + c - '0';
2183 if (delimited)
2185 if (from < limit && *from == '}')
2187 from++;
2188 if (count == 1)
2190 cpp_error (pfile, CPP_DL_ERROR,
2191 "empty delimited escape sequence");
2192 return from;
2194 else if (!CPP_OPTION (pfile, delimited_escape_seqs)
2195 && CPP_OPTION (pfile, cpp_pedantic))
2196 cpp_error (pfile, CPP_DL_PEDWARN,
2197 "delimited escape sequences are only valid in C++23");
2198 extend_char_range (&char_range, loc_reader);
2200 else
2202 cpp_error (pfile, CPP_DL_ERROR,
2203 "'\\o{' not terminated with '}' after %.*s",
2204 (int) (from - base), base);
2205 return from;
2209 if (overflow | (n != (n & mask)))
2211 cpp_error (pfile, CPP_DL_PEDWARN,
2212 "octal escape sequence out of range");
2213 n &= mask;
2216 if (tbuf)
2217 emit_numeric_escape (pfile, n, tbuf, cvt);
2218 if (ranges)
2219 ranges->add_range (char_range);
2221 return from;
2224 /* Convert an escape sequence (pointed to by FROM) to its value on
2225 the target, and to the execution character set. Do not scan past
2226 LIMIT. Write the converted value into TBUF, if TBUF is non-NULL.
2227 Returns an advanced pointer. Handles all relevant diagnostics.
2228 If LOC_READER is non-NULL, then RANGES must be non-NULL: location
2229 information is read from *LOC_READER, and *RANGES is updated
2230 accordingly. */
2231 static const uchar *
2232 convert_escape (cpp_reader *pfile, const uchar *from, const uchar *limit,
2233 struct _cpp_strbuf *tbuf, struct cset_converter cvt,
2234 cpp_string_location_reader *loc_reader,
2235 cpp_substring_ranges *ranges, bool uneval)
2237 /* Values of \a \b \e \f \n \r \t \v respectively. */
2238 #if HOST_CHARSET == HOST_CHARSET_ASCII
2239 static const uchar charconsts[] = { 7, 8, 27, 12, 10, 13, 9, 11 };
2240 #elif HOST_CHARSET == HOST_CHARSET_EBCDIC
2241 static const uchar charconsts[] = { 47, 22, 39, 12, 21, 13, 5, 11 };
2242 #else
2243 #error "unknown host character set"
2244 #endif
2246 uchar c;
2248 /* Record the location of the backslash. */
2249 source_range char_range;
2250 if (loc_reader)
2251 char_range = loc_reader->get_next ();
2253 c = *from;
2254 switch (c)
2256 /* UCNs, hex escapes, and octal escapes are processed separately. */
2257 case 'u': case 'U': case 'N':
2258 return convert_ucn (pfile, from, limit, tbuf, cvt,
2259 char_range, loc_reader, ranges);
2261 case 'x':
2262 if (uneval && CPP_PEDANTIC (pfile))
2263 cpp_error (pfile, CPP_DL_PEDWARN,
2264 "numeric escape sequence in unevaluated string: "
2265 "'\\%c'", (int) c);
2266 return convert_hex (pfile, from, limit, tbuf, cvt,
2267 char_range, loc_reader, ranges);
2269 case '0': case '1': case '2': case '3':
2270 case '4': case '5': case '6': case '7':
2271 case 'o':
2272 if (uneval && CPP_PEDANTIC (pfile))
2273 cpp_error (pfile, CPP_DL_PEDWARN,
2274 "numeric escape sequence in unevaluated string: "
2275 "'\\%c'", (int) c);
2276 return convert_oct (pfile, from, limit, tbuf, cvt,
2277 char_range, loc_reader, ranges);
2279 /* Various letter escapes. Get the appropriate host-charset
2280 value into C. */
2281 case '\\': case '\'': case '"': case '?': break;
2283 case '(': case '{': case '[': case '%':
2284 /* '\(', etc, can be used at the beginning of a line in a long
2285 string split onto multiple lines with \-newline, to prevent
2286 Emacs or other text editors from getting confused. '\%' can
2287 be used to prevent SCCS from mangling printf format strings. */
2288 if (CPP_PEDANTIC (pfile))
2289 goto unknown;
2290 break;
2292 case 'b': c = charconsts[1]; break;
2293 case 'f': c = charconsts[3]; break;
2294 case 'n': c = charconsts[4]; break;
2295 case 'r': c = charconsts[5]; break;
2296 case 't': c = charconsts[6]; break;
2297 case 'v': c = charconsts[7]; break;
2299 case 'a':
2300 if (CPP_WTRADITIONAL (pfile))
2301 cpp_warning (pfile, CPP_W_TRADITIONAL,
2302 "the meaning of '\\a' is different in traditional C");
2303 c = charconsts[0];
2304 break;
2306 case 'e': case 'E':
2307 if (CPP_PEDANTIC (pfile))
2308 cpp_error (pfile, CPP_DL_PEDWARN,
2309 "non-ISO-standard escape sequence, '\\%c'", (int) c);
2310 c = charconsts[2];
2311 break;
2313 default:
2314 unknown:
2315 if (ISGRAPH (c))
2316 cpp_error (pfile, CPP_DL_PEDWARN,
2317 "unknown escape sequence: '\\%c'", (int) c);
2318 else
2320 encoding_rich_location rich_loc (pfile);
2322 /* diagnostic.cc does not support "%03o". When it does, this
2323 code can use %03o directly in the diagnostic again. */
2324 char buf[32];
2325 sprintf(buf, "%03o", (int) c);
2326 cpp_error_at (pfile, CPP_DL_PEDWARN, &rich_loc,
2327 "unknown escape sequence: '\\%s'", buf);
2331 if (tbuf)
2332 /* Now convert what we have to the execution character set. */
2333 if (!APPLY_CONVERSION (cvt, &c, 1, tbuf))
2334 cpp_errno (pfile, CPP_DL_ERROR,
2335 "converting escape sequence to execution character set");
2337 if (loc_reader)
2339 char_range.m_finish = loc_reader->get_next ().m_finish;
2340 ranges->add_range (char_range);
2343 return from + 1;
2346 /* TYPE is a token type. The return value is the conversion needed to
2347 convert from source to execution character set for the given type. */
2348 static struct cset_converter
2349 converter_for_type (cpp_reader *pfile, enum cpp_ttype type)
2351 switch (type)
2353 default:
2354 return pfile->narrow_cset_desc;
2355 case CPP_UTF8CHAR:
2356 case CPP_UTF8STRING:
2357 return pfile->utf8_cset_desc;
2358 case CPP_CHAR16:
2359 case CPP_STRING16:
2360 return pfile->char16_cset_desc;
2361 case CPP_CHAR32:
2362 case CPP_STRING32:
2363 return pfile->char32_cset_desc;
2364 case CPP_WCHAR:
2365 case CPP_WSTRING:
2366 return pfile->wide_cset_desc;
2370 /* FROM is an array of cpp_string structures of length COUNT. These
2371 are to be converted from the source to the execution character set,
2372 escape sequences translated, and finally all are to be
2373 concatenated. WIDE indicates whether or not to produce a wide
2374 string. If TO is non-NULL, the result is written into TO.
2375 If LOC_READERS and OUT are non-NULL, then location information
2376 is read from LOC_READERS (which must be an array of length COUNT),
2377 and location information is written to *RANGES.
2379 Returns true for success, false for failure. */
2381 static bool
2382 cpp_interpret_string_1 (cpp_reader *pfile, const cpp_string *from, size_t count,
2383 cpp_string *to, enum cpp_ttype type,
2384 cpp_string_location_reader *loc_readers,
2385 cpp_substring_ranges *out)
2387 struct _cpp_strbuf tbuf;
2388 const uchar *p, *base, *limit;
2389 size_t i;
2390 struct cset_converter cvt = converter_for_type (pfile, type);
2392 /* loc_readers and out must either be both NULL, or both be non-NULL. */
2393 gcc_assert ((loc_readers != NULL) == (out != NULL));
2395 if (to)
2397 tbuf.asize = MAX (OUTBUF_BLOCK_SIZE, from->len);
2398 tbuf.text = XNEWVEC (uchar, tbuf.asize);
2399 tbuf.len = 0;
2402 cpp_string_location_reader *loc_reader = NULL;
2403 for (i = 0; i < count; i++)
2405 if (loc_readers)
2406 loc_reader = &loc_readers[i];
2408 p = from[i].text;
2409 if (*p == 'u')
2411 p++;
2412 if (loc_reader)
2413 loc_reader->get_next ();
2414 if (*p == '8')
2416 p++;
2417 if (loc_reader)
2418 loc_reader->get_next ();
2421 else if (*p == 'L' || *p == 'U') p++;
2422 if (*p == 'R')
2424 const uchar *prefix;
2426 /* Skip over 'R"'. */
2427 p += 2;
2428 if (loc_reader)
2430 loc_reader->get_next ();
2431 loc_reader->get_next ();
2433 prefix = p;
2434 while (*p != '(')
2436 p++;
2437 if (loc_reader)
2438 loc_reader->get_next ();
2440 p++;
2441 if (loc_reader)
2442 loc_reader->get_next ();
2443 limit = from[i].text + from[i].len;
2444 if (limit >= p + (p - prefix) + 1)
2445 limit -= (p - prefix) + 1;
2447 /* Raw strings are all normal characters; these can be fed
2448 directly to convert_cset. */
2449 if (to)
2450 if (!APPLY_CONVERSION (cvt, p, limit - p, &tbuf))
2451 goto fail;
2453 if (loc_reader)
2455 /* If generating source ranges, assume we have a 1:1
2456 correspondence between bytes in the source encoding and bytes
2457 in the execution encoding (e.g. if we have a UTF-8 to UTF-8
2458 conversion), so that this run of bytes in the source file
2459 corresponds to a run of bytes in the execution string.
2460 This requirement is guaranteed by an early-reject in
2461 cpp_interpret_string_ranges. */
2462 gcc_assert (cvt.func == convert_no_conversion);
2463 out->add_n_ranges (limit - p, *loc_reader);
2466 continue;
2469 /* If we don't now have a leading quote, something has gone wrong.
2470 This can occur if cpp_interpret_string_ranges is handling a
2471 stringified macro argument, but should not be possible otherwise. */
2472 if (*p != '"' && *p != '\'')
2474 gcc_assert (out != NULL);
2475 cpp_error (pfile, CPP_DL_ERROR, "missing open quote");
2476 if (to)
2477 free (tbuf.text);
2478 return false;
2481 /* Skip leading quote. */
2482 p++;
2483 if (loc_reader)
2484 loc_reader->get_next ();
2486 limit = from[i].text + from[i].len - 1; /* Skip trailing quote. */
2488 for (;;)
2490 base = p;
2491 while (p < limit && *p != '\\')
2492 p++;
2493 if (p > base)
2495 /* We have a run of normal characters; these can be fed
2496 directly to convert_cset. */
2497 if (to)
2498 if (!APPLY_CONVERSION (cvt, base, p - base, &tbuf))
2499 goto fail;
2500 /* Similar to above: assumes we have a 1:1 correspondence
2501 between bytes in the source encoding and bytes in the
2502 execution encoding. */
2503 if (loc_reader)
2505 gcc_assert (cvt.func == convert_no_conversion);
2506 out->add_n_ranges (p - base, *loc_reader);
2509 if (p >= limit)
2510 break;
2512 struct _cpp_strbuf *tbuf_ptr = to ? &tbuf : NULL;
2513 p = convert_escape (pfile, p + 1, limit, tbuf_ptr, cvt,
2514 loc_reader, out, type == CPP_UNEVAL_STRING);
2518 if (to)
2520 /* NUL-terminate the 'to' buffer and translate it to a cpp_string
2521 structure. */
2522 emit_numeric_escape (pfile, 0, &tbuf, cvt);
2523 tbuf.text = XRESIZEVEC (uchar, tbuf.text, tbuf.len);
2524 to->text = tbuf.text;
2525 to->len = tbuf.len;
2527 /* Use the location of the trailing quote as the location of the
2528 NUL-terminator. */
2529 if (loc_reader)
2531 source_range range = loc_reader->get_next ();
2532 out->add_range (range);
2535 return true;
2537 fail:
2538 cpp_errno (pfile, CPP_DL_ERROR, "converting to execution character set");
2539 if (to)
2540 free (tbuf.text);
2541 return false;
2544 /* FROM is an array of cpp_string structures of length COUNT. These
2545 are to be converted from the source to the execution character set,
2546 escape sequences translated, and finally all are to be
2547 concatenated. WIDE indicates whether or not to produce a wide
2548 string. The result is written into TO. Returns true for success,
2549 false for failure. */
2550 bool
2551 cpp_interpret_string (cpp_reader *pfile, const cpp_string *from, size_t count,
2552 cpp_string *to, enum cpp_ttype type)
2554 return cpp_interpret_string_1 (pfile, from, count, to, type, NULL, NULL);
2557 /* A "do nothing" diagnostic-handling callback for use by
2558 cpp_interpret_string_ranges, so that it can temporarily suppress
2559 diagnostic-handling. */
2561 static bool
2562 noop_diagnostic_cb (cpp_reader *, enum cpp_diagnostic_level,
2563 enum cpp_warning_reason, rich_location *,
2564 const char *, va_list *)
2566 /* no-op. */
2567 return true;
2570 /* This function mimics the behavior of cpp_interpret_string, but
2571 rather than generating a string in the execution character set,
2572 *OUT is written to with the source code ranges of the characters
2573 in such a string.
2574 FROM and LOC_READERS should both be arrays of length COUNT.
2575 Returns NULL for success, or an error message for failure. */
2577 const char *
2578 cpp_interpret_string_ranges (cpp_reader *pfile, const cpp_string *from,
2579 cpp_string_location_reader *loc_readers,
2580 size_t count,
2581 cpp_substring_ranges *out,
2582 enum cpp_ttype type)
2584 /* There are a couple of cases in the range-handling in
2585 cpp_interpret_string_1 that rely on there being a 1:1 correspondence
2586 between bytes in the source encoding and bytes in the execution
2587 encoding, so that each byte in the execution string can correspond
2588 to the location of a byte in the source string.
2590 This holds for the typical case of a UTF-8 to UTF-8 conversion.
2591 Enforce this requirement by only attempting to track substring
2592 locations if we have source encoding == execution encoding.
2594 This is a stronger condition than we need, since we could e.g.
2595 have ASCII to EBCDIC (with 1 byte per character before and after),
2596 but it seems to be a reasonable restriction. */
2597 struct cset_converter cvt = converter_for_type (pfile, type);
2598 if (cvt.func != convert_no_conversion)
2599 return "execution character set != source character set";
2601 /* For on-demand strings we have already lexed the strings, so there
2602 should be no diagnostics. However, if we have bogus source location
2603 data (or stringified macro arguments), the attempt to lex the
2604 strings could fail with an diagnostic. Temporarily install an
2605 diagnostic-handler to catch the diagnostic, so that it can lead to this call
2606 failing, rather than being emitted as a user-visible diagnostic.
2607 If an diagnostic does occur, we should see it via the return value of
2608 cpp_interpret_string_1. */
2609 bool (*saved_diagnostic_handler) (cpp_reader *, enum cpp_diagnostic_level,
2610 enum cpp_warning_reason, rich_location *,
2611 const char *, va_list *)
2612 ATTRIBUTE_FPTR_PRINTF(5,0);
2614 saved_diagnostic_handler = pfile->cb.diagnostic;
2615 pfile->cb.diagnostic = noop_diagnostic_cb;
2617 bool result = cpp_interpret_string_1 (pfile, from, count, NULL, type,
2618 loc_readers, out);
2620 /* Restore the saved diagnostic-handler. */
2621 pfile->cb.diagnostic = saved_diagnostic_handler;
2623 if (!result)
2624 return "cpp_interpret_string_1 failed";
2626 /* Success. */
2627 return NULL;
2630 /* Subroutine of do_line and do_linemarker. Convert escape sequences
2631 in a string, but do not perform character set conversion. */
2632 bool
2633 cpp_interpret_string_notranslate (cpp_reader *pfile, const cpp_string *from,
2634 size_t count, cpp_string *to,
2635 enum cpp_ttype type)
2637 struct cset_converter save_narrow_cset_desc = pfile->narrow_cset_desc;
2638 bool retval;
2640 pfile->narrow_cset_desc.func = convert_no_conversion;
2641 pfile->narrow_cset_desc.cd = (iconv_t) -1;
2642 pfile->narrow_cset_desc.width = CPP_OPTION (pfile, char_precision);
2644 retval = cpp_interpret_string (pfile, from, count, to,
2645 type == CPP_UNEVAL_STRING
2646 ? CPP_UNEVAL_STRING : CPP_STRING);
2648 pfile->narrow_cset_desc = save_narrow_cset_desc;
2649 return retval;
2653 /* Return number of source characters in STR. */
2654 static unsigned
2655 count_source_chars (cpp_reader *pfile, cpp_string str, cpp_ttype type)
2657 cpp_string str2 = { 0, 0 };
2658 bool (*saved_diagnostic_handler) (cpp_reader *, enum cpp_diagnostic_level,
2659 enum cpp_warning_reason, rich_location *,
2660 const char *, va_list *)
2661 ATTRIBUTE_FPTR_PRINTF(5,0);
2662 saved_diagnostic_handler = pfile->cb.diagnostic;
2663 pfile->cb.diagnostic = noop_diagnostic_cb;
2664 convert_f save_func = pfile->narrow_cset_desc.func;
2665 pfile->narrow_cset_desc.func = convert_count_chars;
2666 bool ret = cpp_interpret_string (pfile, &str, 1, &str2, type);
2667 pfile->narrow_cset_desc.func = save_func;
2668 pfile->cb.diagnostic = saved_diagnostic_handler;
2669 if (ret)
2671 if (str2.text != str.text)
2672 free ((void *)str2.text);
2673 return str2.len;
2675 else
2676 return 0;
2679 /* Subroutine of cpp_interpret_charconst which performs the conversion
2680 to a number, for narrow strings. STR is the string structure returned
2681 by cpp_interpret_string. PCHARS_SEEN and UNSIGNEDP are as for
2682 cpp_interpret_charconst. TOKEN is the token. */
2683 static cppchar_t
2684 narrow_str_to_charconst (cpp_reader *pfile, cpp_string str,
2685 unsigned int *pchars_seen, int *unsignedp,
2686 const cpp_token *token)
2688 enum cpp_ttype type = token->type;
2689 size_t width = CPP_OPTION (pfile, char_precision);
2690 size_t max_chars = CPP_OPTION (pfile, int_precision) / width;
2691 size_t mask = width_to_mask (width);
2692 size_t i;
2693 cppchar_t result, c;
2694 bool unsigned_p;
2695 bool diagnosed = false;
2697 /* The value of a multi-character character constant, or a
2698 single-character character constant whose representation in the
2699 execution character set is more than one byte long, is
2700 implementation defined. This implementation defines it to be the
2701 number formed by interpreting the byte sequence in memory as a
2702 big-endian binary number. If overflow occurs, the high bytes are
2703 lost, and a warning is issued.
2705 We don't want to process the NUL terminator handed back by
2706 cpp_interpret_string. */
2707 result = 0;
2708 for (i = 0; i < str.len - 1; i++)
2710 c = str.text[i] & mask;
2711 if (width < BITS_PER_CPPCHAR_T)
2712 result = (result << width) | c;
2713 else
2714 result = c;
2717 if (type == CPP_UTF8CHAR)
2718 max_chars = 1;
2719 else if (i > 1 && CPP_OPTION (pfile, cplusplus) && CPP_PEDANTIC (pfile))
2721 /* C++ as a DR since
2722 P1854R4 - Making non-encodable string literals ill-formed
2723 makes multi-character narrow character literals if any of the
2724 characters in the literal isn't encodable in char/unsigned char
2725 ill-formed. We need to count the number of c-chars and compare
2726 that to str.len. */
2727 unsigned src_chars = count_source_chars (pfile, token->val.str, type);
2729 if (src_chars)
2731 if (str.len > src_chars)
2733 if (src_chars <= 2)
2734 diagnosed
2735 = cpp_error (pfile, CPP_DL_PEDWARN,
2736 "character not encodable in a single execution "
2737 "character code unit");
2738 else
2739 diagnosed
2740 = cpp_error (pfile, CPP_DL_PEDWARN,
2741 "at least one character in a multi-character "
2742 "literal not encodable in a single execution "
2743 "character code unit");
2744 if (diagnosed && i > max_chars)
2745 i = max_chars;
2749 if (diagnosed)
2750 /* Already diagnosed above. */;
2751 else if (i > max_chars)
2753 unsigned src_chars
2754 = count_source_chars (pfile, token->val.str,
2755 type == CPP_UTF8CHAR ? CPP_CHAR : type);
2757 if (type != CPP_UTF8CHAR)
2758 cpp_error (pfile, CPP_DL_WARNING,
2759 "multi-character literal with %ld characters exceeds "
2760 "'int' size of %ld bytes", (long) i, (long) max_chars);
2761 else if (src_chars > 2)
2762 cpp_error (pfile, CPP_DL_ERROR,
2763 "multi-character literal cannot have an encoding prefix");
2764 else
2765 cpp_error (pfile, CPP_DL_ERROR,
2766 "character not encodable in a single code unit");
2767 i = max_chars;
2769 else if (i > 1 && CPP_OPTION (pfile, warn_multichar))
2770 cpp_warning (pfile, CPP_W_MULTICHAR, "multi-character character constant");
2772 /* Multichar constants are of type int and therefore signed. */
2773 if (i > 1)
2774 unsigned_p = 0;
2775 else if (type == CPP_UTF8CHAR)
2776 unsigned_p = CPP_OPTION (pfile, unsigned_utf8char);
2777 else
2778 unsigned_p = CPP_OPTION (pfile, unsigned_char);
2780 /* Truncate the constant to its natural width, and simultaneously
2781 sign- or zero-extend to the full width of cppchar_t.
2782 For single-character constants, the value is WIDTH bits wide.
2783 For multi-character constants, the value is INT_PRECISION bits wide. */
2784 if (i > 1)
2785 width = CPP_OPTION (pfile, int_precision);
2786 if (width < BITS_PER_CPPCHAR_T)
2788 mask = ((cppchar_t) 1 << width) - 1;
2789 if (unsigned_p || !(result & (1 << (width - 1))))
2790 result &= mask;
2791 else
2792 result |= ~mask;
2794 *pchars_seen = i;
2795 *unsignedp = unsigned_p;
2796 return result;
2799 /* Subroutine of cpp_interpret_charconst which performs the conversion
2800 to a number, for wide strings. STR is the string structure returned
2801 by cpp_interpret_string. PCHARS_SEEN and UNSIGNEDP are as for
2802 cpp_interpret_charconst. TOKEN is the token. */
2803 static cppchar_t
2804 wide_str_to_charconst (cpp_reader *pfile, cpp_string str,
2805 unsigned int *pchars_seen, int *unsignedp,
2806 const cpp_token *token)
2808 enum cpp_ttype type = token->type;
2809 bool bigend = CPP_OPTION (pfile, bytes_big_endian);
2810 size_t width = converter_for_type (pfile, type).width;
2811 size_t cwidth = CPP_OPTION (pfile, char_precision);
2812 size_t mask = width_to_mask (width);
2813 size_t cmask = width_to_mask (cwidth);
2814 size_t nbwc = width / cwidth;
2815 size_t off, i;
2816 cppchar_t result = 0, c;
2818 if (str.len <= nbwc)
2820 /* Error recovery, if no errors have been diagnosed previously,
2821 there should be at least two wide characters. Empty literals
2822 are diagnosed earlier and we can get just the zero terminator
2823 only if there were errors diagnosed during conversion. */
2824 *pchars_seen = 0;
2825 *unsignedp = 0;
2826 return 0;
2829 /* This is finicky because the string is in the target's byte order,
2830 which may not be our byte order. Only the last character, ignoring
2831 the NUL terminator, is relevant. */
2832 off = str.len - (nbwc * 2);
2833 result = 0;
2834 for (i = 0; i < nbwc; i++)
2836 c = bigend ? str.text[off + i] : str.text[off + nbwc - i - 1];
2837 result = (result << cwidth) | (c & cmask);
2840 /* Wide character constants have type wchar_t, and a single
2841 character exactly fills a wchar_t, so a multi-character wide
2842 character constant is guaranteed to overflow. */
2843 if (str.len > nbwc * 2)
2845 cpp_diagnostic_level level = CPP_DL_WARNING;
2846 unsigned src_chars
2847 = count_source_chars (pfile, token->val.str, CPP_CHAR);
2849 if (CPP_OPTION (pfile, cplusplus)
2850 && (type == CPP_CHAR16
2851 || type == CPP_CHAR32
2852 /* In C++23 this is error even for L'ab'. */
2853 || (type == CPP_WCHAR
2854 && CPP_OPTION (pfile, size_t_literals))))
2855 level = CPP_DL_ERROR;
2856 if (src_chars > 2)
2857 cpp_error (pfile, level,
2858 "multi-character literal cannot have an encoding prefix");
2859 else
2860 cpp_error (pfile, level,
2861 "character not encodable in a single code unit");
2864 /* Truncate the constant to its natural width, and simultaneously
2865 sign- or zero-extend to the full width of cppchar_t. */
2866 if (width < BITS_PER_CPPCHAR_T)
2868 if (type == CPP_CHAR16 || type == CPP_CHAR32
2869 || CPP_OPTION (pfile, unsigned_wchar)
2870 || !(result & (1 << (width - 1))))
2871 result &= mask;
2872 else
2873 result |= ~mask;
2876 if (type == CPP_CHAR16 || type == CPP_CHAR32
2877 || CPP_OPTION (pfile, unsigned_wchar))
2878 *unsignedp = 1;
2879 else
2880 *unsignedp = 0;
2882 *pchars_seen = 1;
2883 return result;
2886 /* Interpret a (possibly wide) character constant in TOKEN.
2887 PCHARS_SEEN points to a variable that is filled in with the number
2888 of characters seen, and UNSIGNEDP to a variable that indicates
2889 whether the result has signed type. */
2890 cppchar_t
2891 cpp_interpret_charconst (cpp_reader *pfile, const cpp_token *token,
2892 unsigned int *pchars_seen, int *unsignedp)
2894 cpp_string str = { 0, 0 };
2895 bool wide = (token->type != CPP_CHAR && token->type != CPP_UTF8CHAR);
2896 int u8 = 2 * int(token->type == CPP_UTF8CHAR);
2897 cppchar_t result;
2899 /* An empty constant will appear as L'', u'', U'', u8'', or '' */
2900 if (token->val.str.len == (size_t) (2 + wide + u8))
2902 cpp_error (pfile, CPP_DL_ERROR, "empty character constant");
2903 *pchars_seen = 0;
2904 *unsignedp = 0;
2905 return 0;
2907 else if (!cpp_interpret_string (pfile, &token->val.str, 1, &str,
2908 token->type))
2910 *pchars_seen = 0;
2911 *unsignedp = 0;
2912 return 0;
2915 if (wide)
2916 result = wide_str_to_charconst (pfile, str, pchars_seen, unsignedp,
2917 token);
2918 else
2919 result = narrow_str_to_charconst (pfile, str, pchars_seen, unsignedp,
2920 token);
2922 if (str.text != token->val.str.text)
2923 free ((void *)str.text);
2925 return result;
2928 /* Convert an identifier denoted by ID and LEN, which might contain
2929 UCN escapes or UTF-8 multibyte chars, to the source character set,
2930 either UTF-8 or UTF-EBCDIC. Assumes that the identifier is actually
2931 a valid identifier. */
2932 cpp_hashnode *
2933 _cpp_interpret_identifier (cpp_reader *pfile, const uchar *id, size_t len)
2935 /* It turns out that a UCN escape always turns into fewer characters
2936 than the escape itself, so we can allocate a temporary in advance. */
2937 uchar * buf = (uchar *) alloca (len + 1);
2938 uchar * bufp = buf;
2939 size_t idp;
2941 for (idp = 0; idp < len; idp++)
2942 if (id[idp] != '\\')
2943 *bufp++ = id[idp];
2944 else
2946 unsigned length = id[idp + 1] == 'u' ? 4 : 8;
2947 cppchar_t value = 0;
2948 size_t bufleft = len - (bufp - buf);
2949 int rval;
2950 bool delimited = false;
2952 idp += 2;
2953 if (id[idp - 1] == 'N' && id[idp] == '{')
2955 idp++;
2956 const uchar *name = &id[idp];
2957 while (idp < len
2958 && (ISIDNUM (id[idp]) || id[idp] == ' ' || id[idp] == '-'))
2959 idp++;
2960 if (id[idp] == '}')
2962 value = _cpp_uname2c ((const char *) name, &id[idp] - name,
2963 uname2c_tree, NULL);
2964 if (value == (cppchar_t) -1)
2965 value = 1;
2967 else
2968 idp--;
2970 else
2972 if (length == 4 && id[idp] == '{')
2974 delimited = true;
2975 idp++;
2977 while (length && idp < len && ISXDIGIT (id[idp]))
2979 value = (value << 4) + hex_value (id[idp]);
2980 idp++;
2981 if (!delimited)
2982 length--;
2984 if (!delimited || id[idp] != '}')
2985 idp--;
2988 /* Special case for EBCDIC: if the identifier contains
2989 a '$' specified using a UCN, translate it to EBCDIC. */
2990 if (value == 0x24)
2992 *bufp++ = '$';
2993 continue;
2996 rval = one_cppchar_to_utf8 (value, &bufp, &bufleft);
2997 if (rval)
2999 errno = rval;
3000 cpp_errno (pfile, CPP_DL_ERROR,
3001 "converting UCN to source character set");
3002 break;
3006 return CPP_HASHNODE (ht_lookup (pfile->hash_table,
3007 buf, bufp - buf, HT_ALLOC));
3011 /* Utility to strip a UTF-8 byte order marking from the beginning
3012 of a buffer. Returns the number of bytes to skip, which currently
3013 will be either 0 or 3. */
3015 cpp_check_utf8_bom (const char *data, size_t data_length)
3018 #if HOST_CHARSET == HOST_CHARSET_ASCII
3019 const unsigned char *udata = (const unsigned char *) data;
3020 if (data_length >= 3 && udata[0] == 0xef && udata[1] == 0xbb
3021 && udata[2] == 0xbf)
3022 return 3;
3023 #endif
3025 return 0;
3029 /* Convert an input buffer (containing the complete contents of one
3030 source file) from INPUT_CHARSET to the source character set. INPUT
3031 points to the input buffer, SIZE is its allocated size, and LEN is
3032 the length of the meaningful data within the buffer. The
3033 translated buffer is returned, *ST_SIZE is set to the length of
3034 the meaningful data within the translated buffer, and *BUFFER_START
3035 is set to the start of the returned buffer. *BUFFER_START may
3036 differ from the return value in the case of a BOM or other ignored
3037 marker information.
3039 INPUT is expected to have been allocated with xmalloc. This
3040 function will either set *BUFFER_START to INPUT, or free it and set
3041 *BUFFER_START to a pointer to another xmalloc-allocated block of
3042 memory.
3044 PFILE is only used to generate diagnostics; setting it to NULL suppresses
3045 diagnostics, and causes a return of NULL if there was any error instead. */
3047 uchar *
3048 _cpp_convert_input (cpp_reader *pfile, const char *input_charset,
3049 uchar *input, size_t size, size_t len,
3050 const unsigned char **buffer_start, off_t *st_size)
3052 struct cset_converter input_cset;
3053 struct _cpp_strbuf to;
3054 unsigned char *buffer;
3056 input_cset = init_iconv_desc (pfile, SOURCE_CHARSET, input_charset);
3057 if (input_cset.func == convert_no_conversion)
3059 to.text = input;
3060 to.asize = size;
3061 to.len = len;
3063 else
3065 to.asize = MAX (65536, len);
3066 to.text = XNEWVEC (uchar, to.asize);
3067 to.len = 0;
3069 const bool ok = APPLY_CONVERSION (input_cset, input, len, &to);
3070 free (input);
3072 /* Clean up the mess. */
3073 if (input_cset.func == convert_using_iconv)
3074 iconv_close (input_cset.cd);
3076 /* Handle conversion failure. */
3077 if (!ok)
3079 if (!pfile)
3081 XDELETEVEC (to.text);
3082 *buffer_start = NULL;
3083 *st_size = 0;
3084 return NULL;
3086 cpp_error (pfile, CPP_DL_ERROR, "failure to convert %s to %s",
3087 input_charset, SOURCE_CHARSET);
3091 /* Resize buffer if we allocated substantially too much, or if we
3092 haven't enough space for the \n-terminator or following
3093 15 bytes of padding (used to quiet warnings from valgrind or
3094 Address Sanitizer, when the optimized lexer accesses aligned
3095 16-byte memory chunks, including the bytes after the malloced,
3096 area, and stops lexing on '\n'). */
3097 if (to.len + 4096 < to.asize || to.len + 16 > to.asize)
3098 to.text = XRESIZEVEC (uchar, to.text, to.len + 16);
3100 memset (to.text + to.len, '\0', 16);
3102 /* If the file is using old-school Mac line endings (\r only),
3103 terminate with another \r, not an \n, so that we do not mistake
3104 the \r\n sequence for a single DOS line ending and erroneously
3105 issue the "No newline at end of file" diagnostic. */
3106 if (to.len && to.text[to.len - 1] == '\r')
3107 to.text[to.len] = '\r';
3108 else
3109 to.text[to.len] = '\n';
3111 buffer = to.text;
3112 *st_size = to.len;
3114 /* Ignore a UTF-8 BOM if we see one and the source charset is UTF-8. Note
3115 that glib'c UTF-8 iconv() provider (as of glibc 2.7) does not ignore a
3116 BOM -- however, even if it did, we would still need this code due
3117 to the 'convert_no_conversion' case. */
3118 const int bom_len = cpp_check_utf8_bom ((const char *) to.text, to.len);
3119 *st_size -= bom_len;
3120 buffer += bom_len;
3122 *buffer_start = to.text;
3123 return buffer;
3126 /* Decide on the default encoding to assume for input files. */
3127 const char *
3128 _cpp_default_encoding (void)
3130 const char *current_encoding = NULL;
3132 /* We disable this because the default codeset is 7-bit ASCII on
3133 most platforms, and this causes conversion failures on every
3134 file in GCC that happens to have one of the upper 128 characters
3135 in it -- most likely, as part of the name of a contributor.
3136 We should definitely recognize in-band markers of file encoding,
3137 like:
3138 - the appropriate Unicode byte-order mark (FE FF) to recognize
3139 UTF16 and UCS4 (in both big-endian and little-endian flavors)
3140 and UTF8
3141 - a "#i", "#d", "/ *", "//", " #p" or "#p" (for #pragma) to
3142 distinguish ASCII and EBCDIC.
3143 - now we can parse something like "#pragma GCC encoding <xyz>
3144 on the first line, or even Emacs/VIM's mode line tags (there's
3145 a problem here in that VIM uses the last line, and Emacs has
3146 its more elaborate "local variables" convention).
3147 - investigate whether Java has another common convention, which
3148 would be friendly to support.
3149 (Zack Weinberg and Paolo Bonzini, May 20th 2004) */
3150 #if defined (HAVE_LOCALE_H) && defined (HAVE_LANGINFO_CODESET) && 0
3151 setlocale (LC_CTYPE, "");
3152 current_encoding = nl_langinfo (CODESET);
3153 #endif
3154 if (current_encoding == NULL || *current_encoding == '\0')
3155 current_encoding = SOURCE_CHARSET;
3157 return current_encoding;
3160 /* Check if the configured input charset requires no conversion, other than
3161 possibly stripping a UTF-8 BOM. */
3162 bool cpp_input_conversion_is_trivial (const char *input_charset)
3164 return !strcasecmp (input_charset, SOURCE_CHARSET);
3167 /* Implementation of class cpp_string_location_reader. */
3169 /* Constructor for cpp_string_location_reader. */
3171 cpp_string_location_reader::
3172 cpp_string_location_reader (location_t src_loc,
3173 line_maps *line_table)
3175 src_loc = get_range_from_loc (line_table, src_loc).m_start;
3177 /* SRC_LOC might be a macro location. It only makes sense to do
3178 column-by-column calculations on ordinary maps, so get the
3179 corresponding location in an ordinary map. */
3180 m_loc
3181 = linemap_resolve_location (line_table, src_loc,
3182 LRK_SPELLING_LOCATION, NULL);
3184 const line_map_ordinary *map
3185 = linemap_check_ordinary (linemap_lookup (line_table, m_loc));
3186 m_offset_per_column = (1 << map->m_range_bits);
3189 /* Get the range of the next source byte. */
3191 source_range
3192 cpp_string_location_reader::get_next ()
3194 source_range result;
3195 result.m_start = m_loc;
3196 result.m_finish = m_loc;
3197 if (m_loc <= LINE_MAP_MAX_LOCATION_WITH_COLS)
3198 m_loc += m_offset_per_column;
3199 return result;
3202 cpp_display_width_computation::
3203 cpp_display_width_computation (const char *data, int data_length,
3204 const cpp_char_column_policy &policy) :
3205 m_begin (data),
3206 m_next (m_begin),
3207 m_bytes_left (data_length),
3208 m_policy (policy),
3209 m_display_cols (0)
3211 gcc_assert (policy.m_tabstop > 0);
3212 gcc_assert (policy.m_width_cb);
3216 /* The main implementation function for class cpp_display_width_computation.
3217 m_next points on entry to the start of the UTF-8 encoding of the next
3218 character, and is updated to point just after the last byte of the encoding.
3219 m_bytes_left contains on entry the remaining size of the buffer into which
3220 m_next points, and this is also updated accordingly. If m_next does not
3221 point to a valid UTF-8-encoded sequence, then it will be treated as a single
3222 byte with display width 1. m_cur_display_col is the current display column,
3223 relative to which tab stops should be expanded. Returns the display width of
3224 the codepoint just processed.
3225 If OUT is non-NULL, it is populated. */
3228 cpp_display_width_computation::process_next_codepoint (cpp_decoded_char *out)
3230 cppchar_t c;
3231 int next_width;
3233 if (out)
3234 out->m_start_byte = m_next;
3236 if (*m_next == '\t')
3238 ++m_next;
3239 --m_bytes_left;
3240 next_width = m_policy.m_tabstop - (m_display_cols % m_policy.m_tabstop);
3241 if (out)
3243 out->m_ch = '\t';
3244 out->m_valid_ch = true;
3247 else if (one_utf8_to_cppchar ((const uchar **) &m_next, &m_bytes_left, &c)
3248 != 0)
3250 /* Input is not convertible to UTF-8. This could be fine, e.g. in a
3251 string literal, so don't complain. Just treat it as if it has a width
3252 of one. */
3253 ++m_next;
3254 --m_bytes_left;
3255 next_width = m_policy.m_undecoded_byte_width;
3256 if (out)
3257 out->m_valid_ch = false;
3259 else
3261 /* one_utf8_to_cppchar() has updated m_next and m_bytes_left for us. */
3262 next_width = m_policy.m_width_cb (c);
3263 if (out)
3265 out->m_ch = c;
3266 out->m_valid_ch = true;
3270 if (out)
3271 out->m_next_byte = m_next;
3273 m_display_cols += next_width;
3274 return next_width;
3277 /* Utility to advance the byte stream by the minimum amount needed to consume
3278 N display columns. Returns the number of display columns that were
3279 actually skipped. This could be less than N, if there was not enough data,
3280 or more than N, if the last character to be skipped had a sufficiently large
3281 display width. */
3283 cpp_display_width_computation::advance_display_cols (int n)
3285 const int start = m_display_cols;
3286 const int target = start + n;
3287 while (m_display_cols < target && !done ())
3288 process_next_codepoint (NULL);
3289 return m_display_cols - start;
3292 /* For the string of length DATA_LENGTH bytes that begins at DATA, compute
3293 how many display columns are occupied by the first COLUMN bytes. COLUMN
3294 may exceed DATA_LENGTH, in which case the phantom bytes at the end are
3295 treated as if they have display width 1. Tabs are expanded to the next tab
3296 stop, relative to the start of DATA, and non-printable-ASCII characters
3297 will be escaped as per POLICY. */
3300 cpp_byte_column_to_display_column (const char *data, int data_length,
3301 int column,
3302 const cpp_char_column_policy &policy)
3304 const int offset = MAX (0, column - data_length);
3305 cpp_display_width_computation dw (data, column - offset, policy);
3306 while (!dw.done ())
3307 dw.process_next_codepoint (NULL);
3308 return dw.display_cols_processed () + offset;
3311 /* For the string of length DATA_LENGTH bytes that begins at DATA, compute
3312 the least number of bytes that will result in at least DISPLAY_COL display
3313 columns. The return value may exceed DATA_LENGTH if the entire string does
3314 not occupy enough display columns. Non-printable-ASCII characters
3315 will be escaped as per POLICY. */
3318 cpp_display_column_to_byte_column (const char *data, int data_length,
3319 int display_col,
3320 const cpp_char_column_policy &policy)
3322 cpp_display_width_computation dw (data, data_length, policy);
3323 const int avail_display = dw.advance_display_cols (display_col);
3324 return dw.bytes_processed () + MAX (0, display_col - avail_display);
3327 template <typename PropertyType>
3328 PropertyType
3329 get_cppchar_property (cppchar_t c,
3330 const cppchar_t *range_ends,
3331 const PropertyType *range_values,
3332 size_t num_ranges,
3333 PropertyType default_value)
3335 if (__builtin_expect (c <= range_ends[0], true))
3336 return range_values[0];
3338 /* Binary search the tables. */
3339 int begin = 1;
3340 static const int end = num_ranges;
3341 int len = end - begin;
3344 int half = len/2;
3345 int middle = begin + half;
3346 if (c > range_ends[middle])
3348 begin = middle + 1;
3349 len -= half + 1;
3351 else
3352 len = half;
3353 } while (len);
3355 if (__builtin_expect (begin != end, true))
3356 return range_values[begin];
3358 return default_value;
3361 /* Our own version of wcwidth(). We don't use the actual wcwidth() in glibc,
3362 because that will inspect the user's locale, and in particular in an ASCII
3363 locale, it will not return anything useful for extended characters. But GCC
3364 in other respects (see e.g. _cpp_default_encoding()) behaves as if
3365 everything is UTF-8. We also make some tweaks that are useful for the way
3366 GCC needs to use this data, e.g. tabs and other control characters should be
3367 treated as having width 1. The lookup tables are generated from
3368 contrib/unicode/gen_wcwidth.py and were made by simply calling glibc
3369 wcwidth() on all codepoints, then applying the small tweaks. These tables
3370 are not highly optimized, but for the present purpose of outputting
3371 diagnostics, they are sufficient. */
3373 #include "generated_cpp_wcwidth.h"
3376 cpp_wcwidth (cppchar_t c)
3378 const size_t num_ranges
3379 = sizeof wcwidth_range_ends / sizeof (*wcwidth_range_ends);
3380 return get_cppchar_property<unsigned char > (c,
3381 &wcwidth_range_ends[0],
3382 &wcwidth_widths[0],
3383 num_ranges,
3387 #include "combining-chars.inc"
3389 bool
3390 cpp_is_combining_char (cppchar_t c)
3392 const size_t num_ranges
3393 = sizeof combining_range_ends / sizeof (*combining_range_ends);
3394 return get_cppchar_property<bool> (c,
3395 &combining_range_ends[0],
3396 &is_combining[0],
3397 num_ranges,
3398 false);
3401 #include "printable-chars.inc"
3403 bool
3404 cpp_is_printable_char (cppchar_t c)
3406 const size_t num_ranges
3407 = sizeof printable_range_ends / sizeof (*printable_range_ends);
3408 return get_cppchar_property<bool> (c,
3409 &printable_range_ends[0],
3410 &is_printable[0],
3411 num_ranges,
3412 false);