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1 /* Coding system handler (conversion, detection, etc).
2 Copyright (C) 2001-2015 Free Software Foundation, Inc.
3 Copyright (C) 1995, 1996, 1997, 1998, 1999, 2000, 2001, 2002, 2003, 2004,
4 2005, 2006, 2007, 2008, 2009, 2010, 2011
5 National Institute of Advanced Industrial Science and Technology (AIST)
6 Registration Number H14PRO021
7 Copyright (C) 2003
8 National Institute of Advanced Industrial Science and Technology (AIST)
9 Registration Number H13PRO009
10
11 This file is part of GNU Emacs.
12
13 GNU Emacs is free software: you can redistribute it and/or modify
14 it under the terms of the GNU General Public License as published by
15 the Free Software Foundation, either version 3 of the License, or
16 (at your option) any later version.
17
18 GNU Emacs is distributed in the hope that it will be useful,
19 but WITHOUT ANY WARRANTY; without even the implied warranty of
20 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
21 GNU General Public License for more details.
22
23 You should have received a copy of the GNU General Public License
24 along with GNU Emacs. If not, see <http://www.gnu.org/licenses/>. */
25
26 /*** TABLE OF CONTENTS ***
27
28 0. General comments
29 1. Preamble
30 2. Emacs' internal format (emacs-utf-8) handlers
31 3. UTF-8 handlers
32 4. UTF-16 handlers
33 5. Charset-base coding systems handlers
34 6. emacs-mule (old Emacs' internal format) handlers
35 7. ISO2022 handlers
36 8. Shift-JIS and BIG5 handlers
37 9. CCL handlers
38 10. C library functions
39 11. Emacs Lisp library functions
40 12. Postamble
41
42 */
43
44 /*** 0. General comments ***
45
46
47 CODING SYSTEM
48
49 A coding system is an object for an encoding mechanism that contains
50 information about how to convert byte sequences to character
51 sequences and vice versa. When we say "decode", it means converting
52 a byte sequence of a specific coding system into a character
53 sequence that is represented by Emacs' internal coding system
54 `emacs-utf-8', and when we say "encode", it means converting a
55 character sequence of emacs-utf-8 to a byte sequence of a specific
56 coding system.
57
58 In Emacs Lisp, a coding system is represented by a Lisp symbol. On
59 the C level, a coding system is represented by a vector of attributes
60 stored in the hash table Vcharset_hash_table. The conversion from
61 coding system symbol to attributes vector is done by looking up
62 Vcharset_hash_table by the symbol.
63
64 Coding systems are classified into the following types depending on
65 the encoding mechanism. Here's a brief description of the types.
66
67 o UTF-8
68
69 o UTF-16
70
71 o Charset-base coding system
72
73 A coding system defined by one or more (coded) character sets.
74 Decoding and encoding are done by a code converter defined for each
75 character set.
76
77 o Old Emacs internal format (emacs-mule)
78
79 The coding system adopted by old versions of Emacs (20 and 21).
80
81 o ISO2022-base coding system
82
83 The most famous coding system for multiple character sets. X's
84 Compound Text, various EUCs (Extended Unix Code), and coding systems
85 used in the Internet communication such as ISO-2022-JP are all
86 variants of ISO2022.
87
88 o SJIS (or Shift-JIS or MS-Kanji-Code)
89
90 A coding system to encode character sets: ASCII, JISX0201, and
91 JISX0208. Widely used for PC's in Japan. Details are described in
92 section 8.
93
94 o BIG5
95
96 A coding system to encode character sets: ASCII and Big5. Widely
97 used for Chinese (mainly in Taiwan and Hong Kong). Details are
98 described in section 8. In this file, when we write "big5" (all
99 lowercase), we mean the coding system, and when we write "Big5"
100 (capitalized), we mean the character set.
101
102 o CCL
103
104 If a user wants to decode/encode text encoded in a coding system
105 not listed above, he can supply a decoder and an encoder for it in
106 CCL (Code Conversion Language) programs. Emacs executes the CCL
107 program while decoding/encoding.
108
109 o Raw-text
110
111 A coding system for text containing raw eight-bit data. Emacs
112 treats each byte of source text as a character (except for
113 end-of-line conversion).
114
115 o No-conversion
116
117 Like raw text, but don't do end-of-line conversion.
118
119
120 END-OF-LINE FORMAT
121
122 How text end-of-line is encoded depends on operating system. For
123 instance, Unix's format is just one byte of LF (line-feed) code,
124 whereas DOS's format is two-byte sequence of `carriage-return' and
125 `line-feed' codes. MacOS's format is usually one byte of
126 `carriage-return'.
127
128 Since text character encoding and end-of-line encoding are
129 independent, any coding system described above can take any format
130 of end-of-line (except for no-conversion).
131
132 STRUCT CODING_SYSTEM
133
134 Before using a coding system for code conversion (i.e. decoding and
135 encoding), we setup a structure of type `struct coding_system'.
136 This structure keeps various information about a specific code
137 conversion (e.g. the location of source and destination data).
138
139 */
140
141 /* COMMON MACROS */
142
143
144 /*** GENERAL NOTES on `detect_coding_XXX ()' functions ***
145
146 These functions check if a byte sequence specified as a source in
147 CODING conforms to the format of XXX, and update the members of
148 DETECT_INFO.
149
150 Return true if the byte sequence conforms to XXX.
151
152 Below is the template of these functions. */
153
154 #if 0
155 static bool
156 detect_coding_XXX (struct coding_system *coding,
157 struct coding_detection_info *detect_info)
158 {
159 const unsigned char *src = coding->source;
160 const unsigned char *src_end = coding->source + coding->src_bytes;
161 bool multibytep = coding->src_multibyte;
162 ptrdiff_t consumed_chars = 0;
163 int found = 0;
164 ...;
165
166 while (1)
167 {
168 /* Get one byte from the source. If the source is exhausted, jump
169 to no_more_source:. */
170 ONE_MORE_BYTE (c);
171
172 if (! __C_conforms_to_XXX___ (c))
173 break;
174 if (! __C_strongly_suggests_XXX__ (c))
175 found = CATEGORY_MASK_XXX;
176 }
177 /* The byte sequence is invalid for XXX. */
178 detect_info->rejected |= CATEGORY_MASK_XXX;
179 return 0;
180
181 no_more_source:
182 /* The source exhausted successfully. */
183 detect_info->found |= found;
184 return 1;
185 }
186 #endif
187
188 /*** GENERAL NOTES on `decode_coding_XXX ()' functions ***
189
190 These functions decode a byte sequence specified as a source by
191 CODING. The resulting multibyte text goes to a place pointed to by
192 CODING->charbuf, the length of which should not exceed
193 CODING->charbuf_size;
194
195 These functions set the information of original and decoded texts in
196 CODING->consumed, CODING->consumed_char, and CODING->charbuf_used.
197 They also set CODING->result to one of CODING_RESULT_XXX indicating
198 how the decoding is finished.
199
200 Below is the template of these functions. */
201
202 #if 0
203 static void
204 decode_coding_XXXX (struct coding_system *coding)
205 {
206 const unsigned char *src = coding->source + coding->consumed;
207 const unsigned char *src_end = coding->source + coding->src_bytes;
208 /* SRC_BASE remembers the start position in source in each loop.
209 The loop will be exited when there's not enough source code, or
210 when there's no room in CHARBUF for a decoded character. */
211 const unsigned char *src_base;
212 /* A buffer to produce decoded characters. */
213 int *charbuf = coding->charbuf + coding->charbuf_used;
214 int *charbuf_end = coding->charbuf + coding->charbuf_size;
215 bool multibytep = coding->src_multibyte;
216
217 while (1)
218 {
219 src_base = src;
220 if (charbuf < charbuf_end)
221 /* No more room to produce a decoded character. */
222 break;
223 ONE_MORE_BYTE (c);
224 /* Decode it. */
225 }
226
227 no_more_source:
228 if (src_base < src_end
229 && coding->mode & CODING_MODE_LAST_BLOCK)
230 /* If the source ends by partial bytes to construct a character,
231 treat them as eight-bit raw data. */
232 while (src_base < src_end && charbuf < charbuf_end)
233 *charbuf++ = *src_base++;
234 /* Remember how many bytes and characters we consumed. If the
235 source is multibyte, the bytes and chars are not identical. */
236 coding->consumed = coding->consumed_char = src_base - coding->source;
237 /* Remember how many characters we produced. */
238 coding->charbuf_used = charbuf - coding->charbuf;
239 }
240 #endif
241
242 /*** GENERAL NOTES on `encode_coding_XXX ()' functions ***
243
244 These functions encode SRC_BYTES length text at SOURCE of Emacs'
245 internal multibyte format by CODING. The resulting byte sequence
246 goes to a place pointed to by DESTINATION, the length of which
247 should not exceed DST_BYTES.
248
249 These functions set the information of original and encoded texts in
250 the members produced, produced_char, consumed, and consumed_char of
251 the structure *CODING. They also set the member result to one of
252 CODING_RESULT_XXX indicating how the encoding finished.
253
254 DST_BYTES zero means that source area and destination area are
255 overlapped, which means that we can produce a encoded text until it
256 reaches at the head of not-yet-encoded source text.
257
258 Below is a template of these functions. */
259 #if 0
260 static void
261 encode_coding_XXX (struct coding_system *coding)
262 {
263 bool multibytep = coding->dst_multibyte;
264 int *charbuf = coding->charbuf;
265 int *charbuf_end = charbuf->charbuf + coding->charbuf_used;
266 unsigned char *dst = coding->destination + coding->produced;
267 unsigned char *dst_end = coding->destination + coding->dst_bytes;
268 unsigned char *adjusted_dst_end = dst_end - _MAX_BYTES_PRODUCED_IN_LOOP_;
269 ptrdiff_t produced_chars = 0;
270
271 for (; charbuf < charbuf_end && dst < adjusted_dst_end; charbuf++)
272 {
273 int c = *charbuf;
274 /* Encode C into DST, and increment DST. */
275 }
276 label_no_more_destination:
277 /* How many chars and bytes we produced. */
278 coding->produced_char += produced_chars;
279 coding->produced = dst - coding->destination;
280 }
281 #endif
282
283 \f
284 /*** 1. Preamble ***/
285
286 #include <config.h>
287 #include <stdio.h>
288
289 #ifdef HAVE_WCHAR_H
290 #include <wchar.h>
291 #endif /* HAVE_WCHAR_H */
292
293 #include "lisp.h"
294 #include "character.h"
295 #include "buffer.h"
296 #include "charset.h"
297 #include "ccl.h"
298 #include "composite.h"
299 #include "coding.h"
300 #include "window.h"
301 #include "frame.h"
302 #include "termhooks.h"
303
304 Lisp_Object Vcoding_system_hash_table;
305
306 /* Format of end-of-line decided by system. This is Qunix on
307 Unix and Mac, Qdos on DOS/Windows.
308 This has an effect only for external encoding (i.e. for output to
309 file and process), not for in-buffer or Lisp string encoding. */
310 static Lisp_Object system_eol_type;
311
312 #ifdef emacs
313
314 /* Coding-systems are handed between Emacs Lisp programs and C internal
315 routines by the following three variables. */
316 /* Coding system to be used to encode text for terminal display when
317 terminal coding system is nil. */
318 struct coding_system safe_terminal_coding;
319
320 #endif /* emacs */
321
322 /* Two special coding systems. */
323 static Lisp_Object Vsjis_coding_system;
324 static Lisp_Object Vbig5_coding_system;
325
326 /* ISO2022 section */
327
328 #define CODING_ISO_INITIAL(coding, reg) \
329 (XINT (AREF (AREF (CODING_ID_ATTRS ((coding)->id), \
330 coding_attr_iso_initial), \
331 reg)))
332
333
334 #define CODING_ISO_REQUEST(coding, charset_id) \
335 (((charset_id) <= (coding)->max_charset_id \
336 ? ((coding)->safe_charsets[charset_id] != 255 \
337 ? (coding)->safe_charsets[charset_id] \
338 : -1) \
339 : -1))
340
341
342 #define CODING_ISO_FLAGS(coding) \
343 ((coding)->spec.iso_2022.flags)
344 #define CODING_ISO_DESIGNATION(coding, reg) \
345 ((coding)->spec.iso_2022.current_designation[reg])
346 #define CODING_ISO_INVOCATION(coding, plane) \
347 ((coding)->spec.iso_2022.current_invocation[plane])
348 #define CODING_ISO_SINGLE_SHIFTING(coding) \
349 ((coding)->spec.iso_2022.single_shifting)
350 #define CODING_ISO_BOL(coding) \
351 ((coding)->spec.iso_2022.bol)
352 #define CODING_ISO_INVOKED_CHARSET(coding, plane) \
353 (CODING_ISO_INVOCATION (coding, plane) < 0 ? -1 \
354 : CODING_ISO_DESIGNATION (coding, CODING_ISO_INVOCATION (coding, plane)))
355 #define CODING_ISO_CMP_STATUS(coding) \
356 (&(coding)->spec.iso_2022.cmp_status)
357 #define CODING_ISO_EXTSEGMENT_LEN(coding) \
358 ((coding)->spec.iso_2022.ctext_extended_segment_len)
359 #define CODING_ISO_EMBEDDED_UTF_8(coding) \
360 ((coding)->spec.iso_2022.embedded_utf_8)
361
362 /* Control characters of ISO2022. */
363 /* code */ /* function */
364 #define ISO_CODE_SO 0x0E /* shift-out */
365 #define ISO_CODE_SI 0x0F /* shift-in */
366 #define ISO_CODE_SS2_7 0x19 /* single-shift-2 for 7-bit code */
367 #define ISO_CODE_ESC 0x1B /* escape */
368 #define ISO_CODE_SS2 0x8E /* single-shift-2 */
369 #define ISO_CODE_SS3 0x8F /* single-shift-3 */
370 #define ISO_CODE_CSI 0x9B /* control-sequence-introducer */
371
372 /* All code (1-byte) of ISO2022 is classified into one of the
373 followings. */
374 enum iso_code_class_type
375 {
376 ISO_control_0, /* Control codes in the range
377 0x00..0x1F and 0x7F, except for the
378 following 5 codes. */
379 ISO_shift_out, /* ISO_CODE_SO (0x0E) */
380 ISO_shift_in, /* ISO_CODE_SI (0x0F) */
381 ISO_single_shift_2_7, /* ISO_CODE_SS2_7 (0x19) */
382 ISO_escape, /* ISO_CODE_ESC (0x1B) */
383 ISO_control_1, /* Control codes in the range
384 0x80..0x9F, except for the
385 following 3 codes. */
386 ISO_single_shift_2, /* ISO_CODE_SS2 (0x8E) */
387 ISO_single_shift_3, /* ISO_CODE_SS3 (0x8F) */
388 ISO_control_sequence_introducer, /* ISO_CODE_CSI (0x9B) */
389 ISO_0x20_or_0x7F, /* Codes of the values 0x20 or 0x7F. */
390 ISO_graphic_plane_0, /* Graphic codes in the range 0x21..0x7E. */
391 ISO_0xA0_or_0xFF, /* Codes of the values 0xA0 or 0xFF. */
392 ISO_graphic_plane_1 /* Graphic codes in the range 0xA1..0xFE. */
393 };
394
395 /** The macros CODING_ISO_FLAG_XXX defines a flag bit of the
396 `iso-flags' attribute of an iso2022 coding system. */
397
398 /* If set, produce long-form designation sequence (e.g. ESC $ ( A)
399 instead of the correct short-form sequence (e.g. ESC $ A). */
400 #define CODING_ISO_FLAG_LONG_FORM 0x0001
401
402 /* If set, reset graphic planes and registers at end-of-line to the
403 initial state. */
404 #define CODING_ISO_FLAG_RESET_AT_EOL 0x0002
405
406 /* If set, reset graphic planes and registers before any control
407 characters to the initial state. */
408 #define CODING_ISO_FLAG_RESET_AT_CNTL 0x0004
409
410 /* If set, encode by 7-bit environment. */
411 #define CODING_ISO_FLAG_SEVEN_BITS 0x0008
412
413 /* If set, use locking-shift function. */
414 #define CODING_ISO_FLAG_LOCKING_SHIFT 0x0010
415
416 /* If set, use single-shift function. Overwrite
417 CODING_ISO_FLAG_LOCKING_SHIFT. */
418 #define CODING_ISO_FLAG_SINGLE_SHIFT 0x0020
419
420 /* If set, use designation escape sequence. */
421 #define CODING_ISO_FLAG_DESIGNATION 0x0040
422
423 /* If set, produce revision number sequence. */
424 #define CODING_ISO_FLAG_REVISION 0x0080
425
426 /* If set, produce ISO6429's direction specifying sequence. */
427 #define CODING_ISO_FLAG_DIRECTION 0x0100
428
429 /* If set, assume designation states are reset at beginning of line on
430 output. */
431 #define CODING_ISO_FLAG_INIT_AT_BOL 0x0200
432
433 /* If set, designation sequence should be placed at beginning of line
434 on output. */
435 #define CODING_ISO_FLAG_DESIGNATE_AT_BOL 0x0400
436
437 /* If set, do not encode unsafe characters on output. */
438 #define CODING_ISO_FLAG_SAFE 0x0800
439
440 /* If set, extra latin codes (128..159) are accepted as a valid code
441 on input. */
442 #define CODING_ISO_FLAG_LATIN_EXTRA 0x1000
443
444 #define CODING_ISO_FLAG_COMPOSITION 0x2000
445
446 /* #define CODING_ISO_FLAG_EUC_TW_SHIFT 0x4000 */
447
448 #define CODING_ISO_FLAG_USE_ROMAN 0x8000
449
450 #define CODING_ISO_FLAG_USE_OLDJIS 0x10000
451
452 #define CODING_ISO_FLAG_LEVEL_4 0x20000
453
454 #define CODING_ISO_FLAG_FULL_SUPPORT 0x100000
455
456 /* A character to be produced on output if encoding of the original
457 character is prohibited by CODING_ISO_FLAG_SAFE. */
458 #define CODING_INHIBIT_CHARACTER_SUBSTITUTION '?'
459
460 /* UTF-8 section */
461 #define CODING_UTF_8_BOM(coding) \
462 ((coding)->spec.utf_8_bom)
463
464 /* UTF-16 section */
465 #define CODING_UTF_16_BOM(coding) \
466 ((coding)->spec.utf_16.bom)
467
468 #define CODING_UTF_16_ENDIAN(coding) \
469 ((coding)->spec.utf_16.endian)
470
471 #define CODING_UTF_16_SURROGATE(coding) \
472 ((coding)->spec.utf_16.surrogate)
473
474
475 /* CCL section */
476 #define CODING_CCL_DECODER(coding) \
477 AREF (CODING_ID_ATTRS ((coding)->id), coding_attr_ccl_decoder)
478 #define CODING_CCL_ENCODER(coding) \
479 AREF (CODING_ID_ATTRS ((coding)->id), coding_attr_ccl_encoder)
480 #define CODING_CCL_VALIDS(coding) \
481 (SDATA (AREF (CODING_ID_ATTRS ((coding)->id), coding_attr_ccl_valids)))
482
483 /* Index for each coding category in `coding_categories' */
484
485 enum coding_category
486 {
487 coding_category_iso_7,
488 coding_category_iso_7_tight,
489 coding_category_iso_8_1,
490 coding_category_iso_8_2,
491 coding_category_iso_7_else,
492 coding_category_iso_8_else,
493 coding_category_utf_8_auto,
494 coding_category_utf_8_nosig,
495 coding_category_utf_8_sig,
496 coding_category_utf_16_auto,
497 coding_category_utf_16_be,
498 coding_category_utf_16_le,
499 coding_category_utf_16_be_nosig,
500 coding_category_utf_16_le_nosig,
501 coding_category_charset,
502 coding_category_sjis,
503 coding_category_big5,
504 coding_category_ccl,
505 coding_category_emacs_mule,
506 /* All above are targets of code detection. */
507 coding_category_raw_text,
508 coding_category_undecided,
509 coding_category_max
510 };
511
512 /* Definitions of flag bits used in detect_coding_XXXX. */
513 #define CATEGORY_MASK_ISO_7 (1 << coding_category_iso_7)
514 #define CATEGORY_MASK_ISO_7_TIGHT (1 << coding_category_iso_7_tight)
515 #define CATEGORY_MASK_ISO_8_1 (1 << coding_category_iso_8_1)
516 #define CATEGORY_MASK_ISO_8_2 (1 << coding_category_iso_8_2)
517 #define CATEGORY_MASK_ISO_7_ELSE (1 << coding_category_iso_7_else)
518 #define CATEGORY_MASK_ISO_8_ELSE (1 << coding_category_iso_8_else)
519 #define CATEGORY_MASK_UTF_8_AUTO (1 << coding_category_utf_8_auto)
520 #define CATEGORY_MASK_UTF_8_NOSIG (1 << coding_category_utf_8_nosig)
521 #define CATEGORY_MASK_UTF_8_SIG (1 << coding_category_utf_8_sig)
522 #define CATEGORY_MASK_UTF_16_AUTO (1 << coding_category_utf_16_auto)
523 #define CATEGORY_MASK_UTF_16_BE (1 << coding_category_utf_16_be)
524 #define CATEGORY_MASK_UTF_16_LE (1 << coding_category_utf_16_le)
525 #define CATEGORY_MASK_UTF_16_BE_NOSIG (1 << coding_category_utf_16_be_nosig)
526 #define CATEGORY_MASK_UTF_16_LE_NOSIG (1 << coding_category_utf_16_le_nosig)
527 #define CATEGORY_MASK_CHARSET (1 << coding_category_charset)
528 #define CATEGORY_MASK_SJIS (1 << coding_category_sjis)
529 #define CATEGORY_MASK_BIG5 (1 << coding_category_big5)
530 #define CATEGORY_MASK_CCL (1 << coding_category_ccl)
531 #define CATEGORY_MASK_EMACS_MULE (1 << coding_category_emacs_mule)
532 #define CATEGORY_MASK_RAW_TEXT (1 << coding_category_raw_text)
533
534 /* This value is returned if detect_coding_mask () find nothing other
535 than ASCII characters. */
536 #define CATEGORY_MASK_ANY \
537 (CATEGORY_MASK_ISO_7 \
538 | CATEGORY_MASK_ISO_7_TIGHT \
539 | CATEGORY_MASK_ISO_8_1 \
540 | CATEGORY_MASK_ISO_8_2 \
541 | CATEGORY_MASK_ISO_7_ELSE \
542 | CATEGORY_MASK_ISO_8_ELSE \
543 | CATEGORY_MASK_UTF_8_AUTO \
544 | CATEGORY_MASK_UTF_8_NOSIG \
545 | CATEGORY_MASK_UTF_8_SIG \
546 | CATEGORY_MASK_UTF_16_AUTO \
547 | CATEGORY_MASK_UTF_16_BE \
548 | CATEGORY_MASK_UTF_16_LE \
549 | CATEGORY_MASK_UTF_16_BE_NOSIG \
550 | CATEGORY_MASK_UTF_16_LE_NOSIG \
551 | CATEGORY_MASK_CHARSET \
552 | CATEGORY_MASK_SJIS \
553 | CATEGORY_MASK_BIG5 \
554 | CATEGORY_MASK_CCL \
555 | CATEGORY_MASK_EMACS_MULE)
556
557
558 #define CATEGORY_MASK_ISO_7BIT \
559 (CATEGORY_MASK_ISO_7 | CATEGORY_MASK_ISO_7_TIGHT)
560
561 #define CATEGORY_MASK_ISO_8BIT \
562 (CATEGORY_MASK_ISO_8_1 | CATEGORY_MASK_ISO_8_2)
563
564 #define CATEGORY_MASK_ISO_ELSE \
565 (CATEGORY_MASK_ISO_7_ELSE | CATEGORY_MASK_ISO_8_ELSE)
566
567 #define CATEGORY_MASK_ISO_ESCAPE \
568 (CATEGORY_MASK_ISO_7 \
569 | CATEGORY_MASK_ISO_7_TIGHT \
570 | CATEGORY_MASK_ISO_7_ELSE \
571 | CATEGORY_MASK_ISO_8_ELSE)
572
573 #define CATEGORY_MASK_ISO \
574 ( CATEGORY_MASK_ISO_7BIT \
575 | CATEGORY_MASK_ISO_8BIT \
576 | CATEGORY_MASK_ISO_ELSE)
577
578 #define CATEGORY_MASK_UTF_16 \
579 (CATEGORY_MASK_UTF_16_AUTO \
580 | CATEGORY_MASK_UTF_16_BE \
581 | CATEGORY_MASK_UTF_16_LE \
582 | CATEGORY_MASK_UTF_16_BE_NOSIG \
583 | CATEGORY_MASK_UTF_16_LE_NOSIG)
584
585 #define CATEGORY_MASK_UTF_8 \
586 (CATEGORY_MASK_UTF_8_AUTO \
587 | CATEGORY_MASK_UTF_8_NOSIG \
588 | CATEGORY_MASK_UTF_8_SIG)
589
590 /* Table of coding categories (Lisp symbols). This variable is for
591 internal use only. */
592 static Lisp_Object Vcoding_category_table;
593
594 /* Table of coding-categories ordered by priority. */
595 static enum coding_category coding_priorities[coding_category_max];
596
597 /* Nth element is a coding context for the coding system bound to the
598 Nth coding category. */
599 static struct coding_system coding_categories[coding_category_max];
600
601 /* Encode a flag that can be nil, something else, or t as -1, 0, 1. */
602
603 static int
604 encode_inhibit_flag (Lisp_Object flag)
605 {
606 return NILP (flag) ? -1 : EQ (flag, Qt);
607 }
608
609 /* True if the value of ENCODED_FLAG says a flag should be treated as set.
610 1 means yes, -1 means no, 0 means ask the user variable VAR. */
611
612 static bool
613 inhibit_flag (int encoded_flag, bool var)
614 {
615 return 0 < encoded_flag + var;
616 }
617
618 #define CODING_GET_INFO(coding, attrs, charset_list) \
619 do { \
620 (attrs) = CODING_ID_ATTRS ((coding)->id); \
621 (charset_list) = CODING_ATTR_CHARSET_LIST (attrs); \
622 } while (0)
623
624 static void
625 CHECK_NATNUM_CAR (Lisp_Object x)
626 {
627 Lisp_Object tmp = XCAR (x);
628 CHECK_NATNUM (tmp);
629 XSETCAR (x, tmp);
630 }
631
632 static void
633 CHECK_NATNUM_CDR (Lisp_Object x)
634 {
635 Lisp_Object tmp = XCDR (x);
636 CHECK_NATNUM (tmp);
637 XSETCDR (x, tmp);
638 }
639
640 /* True if CODING's destination can be grown. */
641
642 static bool
643 growable_destination (struct coding_system *coding)
644 {
645 return STRINGP (coding->dst_object) || BUFFERP (coding->dst_object);
646 }
647
648
649 /* Safely get one byte from the source text pointed by SRC which ends
650 at SRC_END, and set C to that byte. If there are not enough bytes
651 in the source, it jumps to 'no_more_source'. If MULTIBYTEP,
652 and a multibyte character is found at SRC, set C to the
653 negative value of the character code. The caller should declare
654 and set these variables appropriately in advance:
655 src, src_end, multibytep */
656
657 #define ONE_MORE_BYTE(c) \
658 do { \
659 if (src == src_end) \
660 { \
661 if (src_base < src) \
662 record_conversion_result \
663 (coding, CODING_RESULT_INSUFFICIENT_SRC); \
664 goto no_more_source; \
665 } \
666 c = *src++; \
667 if (multibytep && (c & 0x80)) \
668 { \
669 if ((c & 0xFE) == 0xC0) \
670 c = ((c & 1) << 6) | *src++; \
671 else \
672 { \
673 src--; \
674 c = - string_char (src, &src, NULL); \
675 record_conversion_result \
676 (coding, CODING_RESULT_INVALID_SRC); \
677 } \
678 } \
679 consumed_chars++; \
680 } while (0)
681
682 /* Safely get two bytes from the source text pointed by SRC which ends
683 at SRC_END, and set C1 and C2 to those bytes while skipping the
684 heading multibyte characters. If there are not enough bytes in the
685 source, it jumps to 'no_more_source'. If MULTIBYTEP and
686 a multibyte character is found for C2, set C2 to the negative value
687 of the character code. The caller should declare and set these
688 variables appropriately in advance:
689 src, src_end, multibytep
690 It is intended that this macro is used in detect_coding_utf_16. */
691
692 #define TWO_MORE_BYTES(c1, c2) \
693 do { \
694 do { \
695 if (src == src_end) \
696 goto no_more_source; \
697 c1 = *src++; \
698 if (multibytep && (c1 & 0x80)) \
699 { \
700 if ((c1 & 0xFE) == 0xC0) \
701 c1 = ((c1 & 1) << 6) | *src++; \
702 else \
703 { \
704 src += BYTES_BY_CHAR_HEAD (c1) - 1; \
705 c1 = -1; \
706 } \
707 } \
708 } while (c1 < 0); \
709 if (src == src_end) \
710 goto no_more_source; \
711 c2 = *src++; \
712 if (multibytep && (c2 & 0x80)) \
713 { \
714 if ((c2 & 0xFE) == 0xC0) \
715 c2 = ((c2 & 1) << 6) | *src++; \
716 else \
717 c2 = -1; \
718 } \
719 } while (0)
720
721
722 /* Store a byte C in the place pointed by DST and increment DST to the
723 next free point, and increment PRODUCED_CHARS. The caller should
724 assure that C is 0..127, and declare and set the variable `dst'
725 appropriately in advance.
726 */
727
728
729 #define EMIT_ONE_ASCII_BYTE(c) \
730 do { \
731 produced_chars++; \
732 *dst++ = (c); \
733 } while (0)
734
735
736 /* Like EMIT_ONE_ASCII_BYTE but store two bytes; C1 and C2. */
737
738 #define EMIT_TWO_ASCII_BYTES(c1, c2) \
739 do { \
740 produced_chars += 2; \
741 *dst++ = (c1), *dst++ = (c2); \
742 } while (0)
743
744
745 /* Store a byte C in the place pointed by DST and increment DST to the
746 next free point, and increment PRODUCED_CHARS. If MULTIBYTEP,
747 store in an appropriate multibyte form. The caller should
748 declare and set the variables `dst' and `multibytep' appropriately
749 in advance. */
750
751 #define EMIT_ONE_BYTE(c) \
752 do { \
753 produced_chars++; \
754 if (multibytep) \
755 { \
756 unsigned ch = (c); \
757 if (ch >= 0x80) \
758 ch = BYTE8_TO_CHAR (ch); \
759 CHAR_STRING_ADVANCE (ch, dst); \
760 } \
761 else \
762 *dst++ = (c); \
763 } while (0)
764
765
766 /* Like EMIT_ONE_BYTE, but emit two bytes; C1 and C2. */
767
768 #define EMIT_TWO_BYTES(c1, c2) \
769 do { \
770 produced_chars += 2; \
771 if (multibytep) \
772 { \
773 unsigned ch; \
774 \
775 ch = (c1); \
776 if (ch >= 0x80) \
777 ch = BYTE8_TO_CHAR (ch); \
778 CHAR_STRING_ADVANCE (ch, dst); \
779 ch = (c2); \
780 if (ch >= 0x80) \
781 ch = BYTE8_TO_CHAR (ch); \
782 CHAR_STRING_ADVANCE (ch, dst); \
783 } \
784 else \
785 { \
786 *dst++ = (c1); \
787 *dst++ = (c2); \
788 } \
789 } while (0)
790
791
792 #define EMIT_THREE_BYTES(c1, c2, c3) \
793 do { \
794 EMIT_ONE_BYTE (c1); \
795 EMIT_TWO_BYTES (c2, c3); \
796 } while (0)
797
798
799 #define EMIT_FOUR_BYTES(c1, c2, c3, c4) \
800 do { \
801 EMIT_TWO_BYTES (c1, c2); \
802 EMIT_TWO_BYTES (c3, c4); \
803 } while (0)
804
805
806 static void
807 record_conversion_result (struct coding_system *coding,
808 enum coding_result_code result)
809 {
810 coding->result = result;
811 switch (result)
812 {
813 case CODING_RESULT_INSUFFICIENT_SRC:
814 Vlast_code_conversion_error = Qinsufficient_source;
815 break;
816 case CODING_RESULT_INVALID_SRC:
817 Vlast_code_conversion_error = Qinvalid_source;
818 break;
819 case CODING_RESULT_INTERRUPT:
820 Vlast_code_conversion_error = Qinterrupted;
821 break;
822 case CODING_RESULT_INSUFFICIENT_DST:
823 /* Don't record this error in Vlast_code_conversion_error
824 because it happens just temporarily and is resolved when the
825 whole conversion is finished. */
826 break;
827 case CODING_RESULT_SUCCESS:
828 break;
829 default:
830 Vlast_code_conversion_error = intern ("Unknown error");
831 }
832 }
833
834 /* These wrapper macros are used to preserve validity of pointers into
835 buffer text across calls to decode_char, encode_char, etc, which
836 could cause relocation of buffers if it loads a charset map,
837 because loading a charset map allocates large structures. */
838
839 #define CODING_DECODE_CHAR(coding, src, src_base, src_end, charset, code, c) \
840 do { \
841 ptrdiff_t offset; \
842 \
843 charset_map_loaded = 0; \
844 c = DECODE_CHAR (charset, code); \
845 if (charset_map_loaded \
846 && (offset = coding_change_source (coding))) \
847 { \
848 src += offset; \
849 src_base += offset; \
850 src_end += offset; \
851 } \
852 } while (0)
853
854 #define CODING_ENCODE_CHAR(coding, dst, dst_end, charset, c, code) \
855 do { \
856 ptrdiff_t offset; \
857 \
858 charset_map_loaded = 0; \
859 code = ENCODE_CHAR (charset, c); \
860 if (charset_map_loaded \
861 && (offset = coding_change_destination (coding))) \
862 { \
863 dst += offset; \
864 dst_end += offset; \
865 } \
866 } while (0)
867
868 #define CODING_CHAR_CHARSET(coding, dst, dst_end, c, charset_list, code_return, charset) \
869 do { \
870 ptrdiff_t offset; \
871 \
872 charset_map_loaded = 0; \
873 charset = char_charset (c, charset_list, code_return); \
874 if (charset_map_loaded \
875 && (offset = coding_change_destination (coding))) \
876 { \
877 dst += offset; \
878 dst_end += offset; \
879 } \
880 } while (0)
881
882 #define CODING_CHAR_CHARSET_P(coding, dst, dst_end, c, charset, result) \
883 do { \
884 ptrdiff_t offset; \
885 \
886 charset_map_loaded = 0; \
887 result = CHAR_CHARSET_P (c, charset); \
888 if (charset_map_loaded \
889 && (offset = coding_change_destination (coding))) \
890 { \
891 dst += offset; \
892 dst_end += offset; \
893 } \
894 } while (0)
895
896
897 /* If there are at least BYTES length of room at dst, allocate memory
898 for coding->destination and update dst and dst_end. We don't have
899 to take care of coding->source which will be relocated. It is
900 handled by calling coding_set_source in encode_coding. */
901
902 #define ASSURE_DESTINATION(bytes) \
903 do { \
904 if (dst + (bytes) >= dst_end) \
905 { \
906 ptrdiff_t more_bytes = charbuf_end - charbuf + (bytes); \
907 \
908 dst = alloc_destination (coding, more_bytes, dst); \
909 dst_end = coding->destination + coding->dst_bytes; \
910 } \
911 } while (0)
912
913
914 /* Store multibyte form of the character C in P, and advance P to the
915 end of the multibyte form. This used to be like CHAR_STRING_ADVANCE
916 without ever calling MAYBE_UNIFY_CHAR, but nowadays we don't call
917 MAYBE_UNIFY_CHAR in CHAR_STRING_ADVANCE. */
918
919 #define CHAR_STRING_ADVANCE_NO_UNIFY(c, p) CHAR_STRING_ADVANCE(c, p)
920
921 /* Return the character code of character whose multibyte form is at
922 P, and advance P to the end of the multibyte form. This used to be
923 like STRING_CHAR_ADVANCE without ever calling MAYBE_UNIFY_CHAR, but
924 nowadays STRING_CHAR_ADVANCE doesn't call MAYBE_UNIFY_CHAR. */
925
926 #define STRING_CHAR_ADVANCE_NO_UNIFY(p) STRING_CHAR_ADVANCE(p)
927
928 /* Set coding->source from coding->src_object. */
929
930 static void
931 coding_set_source (struct coding_system *coding)
932 {
933 if (BUFFERP (coding->src_object))
934 {
935 struct buffer *buf = XBUFFER (coding->src_object);
936
937 if (coding->src_pos < 0)
938 coding->source = BUF_GAP_END_ADDR (buf) + coding->src_pos_byte;
939 else
940 coding->source = BUF_BYTE_ADDRESS (buf, coding->src_pos_byte);
941 }
942 else if (STRINGP (coding->src_object))
943 {
944 coding->source = SDATA (coding->src_object) + coding->src_pos_byte;
945 }
946 else
947 {
948 /* Otherwise, the source is C string and is never relocated
949 automatically. Thus we don't have to update anything. */
950 }
951 }
952
953
954 /* Set coding->source from coding->src_object, and return how many
955 bytes coding->source was changed. */
956
957 static ptrdiff_t
958 coding_change_source (struct coding_system *coding)
959 {
960 const unsigned char *orig = coding->source;
961 coding_set_source (coding);
962 return coding->source - orig;
963 }
964
965
966 /* Set coding->destination from coding->dst_object. */
967
968 static void
969 coding_set_destination (struct coding_system *coding)
970 {
971 if (BUFFERP (coding->dst_object))
972 {
973 if (BUFFERP (coding->src_object) && coding->src_pos < 0)
974 {
975 coding->destination = BEG_ADDR + coding->dst_pos_byte - BEG_BYTE;
976 coding->dst_bytes = (GAP_END_ADDR
977 - (coding->src_bytes - coding->consumed)
978 - coding->destination);
979 }
980 else
981 {
982 /* We are sure that coding->dst_pos_byte is before the gap
983 of the buffer. */
984 coding->destination = (BUF_BEG_ADDR (XBUFFER (coding->dst_object))
985 + coding->dst_pos_byte - BEG_BYTE);
986 coding->dst_bytes = (BUF_GAP_END_ADDR (XBUFFER (coding->dst_object))
987 - coding->destination);
988 }
989 }
990 else
991 {
992 /* Otherwise, the destination is C string and is never relocated
993 automatically. Thus we don't have to update anything. */
994 }
995 }
996
997
998 /* Set coding->destination from coding->dst_object, and return how
999 many bytes coding->destination was changed. */
1000
1001 static ptrdiff_t
1002 coding_change_destination (struct coding_system *coding)
1003 {
1004 const unsigned char *orig = coding->destination;
1005 coding_set_destination (coding);
1006 return coding->destination - orig;
1007 }
1008
1009
1010 static void
1011 coding_alloc_by_realloc (struct coding_system *coding, ptrdiff_t bytes)
1012 {
1013 if (STRING_BYTES_BOUND - coding->dst_bytes < bytes)
1014 string_overflow ();
1015 coding->destination = xrealloc (coding->destination,
1016 coding->dst_bytes + bytes);
1017 coding->dst_bytes += bytes;
1018 }
1019
1020 static void
1021 coding_alloc_by_making_gap (struct coding_system *coding,
1022 ptrdiff_t gap_head_used, ptrdiff_t bytes)
1023 {
1024 if (EQ (coding->src_object, coding->dst_object))
1025 {
1026 /* The gap may contain the produced data at the head and not-yet
1027 consumed data at the tail. To preserve those data, we at
1028 first make the gap size to zero, then increase the gap
1029 size. */
1030 ptrdiff_t add = GAP_SIZE;
1031
1032 GPT += gap_head_used, GPT_BYTE += gap_head_used;
1033 GAP_SIZE = 0; ZV += add; Z += add; ZV_BYTE += add; Z_BYTE += add;
1034 make_gap (bytes);
1035 GAP_SIZE += add; ZV -= add; Z -= add; ZV_BYTE -= add; Z_BYTE -= add;
1036 GPT -= gap_head_used, GPT_BYTE -= gap_head_used;
1037 }
1038 else
1039 make_gap_1 (XBUFFER (coding->dst_object), bytes);
1040 }
1041
1042
1043 static unsigned char *
1044 alloc_destination (struct coding_system *coding, ptrdiff_t nbytes,
1045 unsigned char *dst)
1046 {
1047 ptrdiff_t offset = dst - coding->destination;
1048
1049 if (BUFFERP (coding->dst_object))
1050 {
1051 struct buffer *buf = XBUFFER (coding->dst_object);
1052
1053 coding_alloc_by_making_gap (coding, dst - BUF_GPT_ADDR (buf), nbytes);
1054 }
1055 else
1056 coding_alloc_by_realloc (coding, nbytes);
1057 coding_set_destination (coding);
1058 dst = coding->destination + offset;
1059 return dst;
1060 }
1061
1062 /** Macros for annotations. */
1063
1064 /* An annotation data is stored in the array coding->charbuf in this
1065 format:
1066 [ -LENGTH ANNOTATION_MASK NCHARS ... ]
1067 LENGTH is the number of elements in the annotation.
1068 ANNOTATION_MASK is one of CODING_ANNOTATE_XXX_MASK.
1069 NCHARS is the number of characters in the text annotated.
1070
1071 The format of the following elements depend on ANNOTATION_MASK.
1072
1073 In the case of CODING_ANNOTATE_COMPOSITION_MASK, these elements
1074 follows:
1075 ... NBYTES METHOD [ COMPOSITION-COMPONENTS ... ]
1076
1077 NBYTES is the number of bytes specified in the header part of
1078 old-style emacs-mule encoding, or 0 for the other kind of
1079 composition.
1080
1081 METHOD is one of enum composition_method.
1082
1083 Optional COMPOSITION-COMPONENTS are characters and composition
1084 rules.
1085
1086 In the case of CODING_ANNOTATE_CHARSET_MASK, one element CHARSET-ID
1087 follows.
1088
1089 If ANNOTATION_MASK is 0, this annotation is just a space holder to
1090 recover from an invalid annotation, and should be skipped by
1091 produce_annotation. */
1092
1093 /* Maximum length of the header of annotation data. */
1094 #define MAX_ANNOTATION_LENGTH 5
1095
1096 #define ADD_ANNOTATION_DATA(buf, len, mask, nchars) \
1097 do { \
1098 *(buf)++ = -(len); \
1099 *(buf)++ = (mask); \
1100 *(buf)++ = (nchars); \
1101 coding->annotated = 1; \
1102 } while (0);
1103
1104 #define ADD_COMPOSITION_DATA(buf, nchars, nbytes, method) \
1105 do { \
1106 ADD_ANNOTATION_DATA (buf, 5, CODING_ANNOTATE_COMPOSITION_MASK, nchars); \
1107 *buf++ = nbytes; \
1108 *buf++ = method; \
1109 } while (0)
1110
1111
1112 #define ADD_CHARSET_DATA(buf, nchars, id) \
1113 do { \
1114 ADD_ANNOTATION_DATA (buf, 4, CODING_ANNOTATE_CHARSET_MASK, nchars); \
1115 *buf++ = id; \
1116 } while (0)
1117
1118
1119 /* Bitmasks for coding->eol_seen. */
1120
1121 #define EOL_SEEN_NONE 0
1122 #define EOL_SEEN_LF 1
1123 #define EOL_SEEN_CR 2
1124 #define EOL_SEEN_CRLF 4
1125
1126 \f
1127 /*** 2. Emacs' internal format (emacs-utf-8) ***/
1128
1129
1130
1131 \f
1132 /*** 3. UTF-8 ***/
1133
1134 /* See the above "GENERAL NOTES on `detect_coding_XXX ()' functions".
1135 Return true if a text is encoded in UTF-8. */
1136
1137 #define UTF_8_1_OCTET_P(c) ((c) < 0x80)
1138 #define UTF_8_EXTRA_OCTET_P(c) (((c) & 0xC0) == 0x80)
1139 #define UTF_8_2_OCTET_LEADING_P(c) (((c) & 0xE0) == 0xC0)
1140 #define UTF_8_3_OCTET_LEADING_P(c) (((c) & 0xF0) == 0xE0)
1141 #define UTF_8_4_OCTET_LEADING_P(c) (((c) & 0xF8) == 0xF0)
1142 #define UTF_8_5_OCTET_LEADING_P(c) (((c) & 0xFC) == 0xF8)
1143
1144 #define UTF_8_BOM_1 0xEF
1145 #define UTF_8_BOM_2 0xBB
1146 #define UTF_8_BOM_3 0xBF
1147
1148 /* Unlike the other detect_coding_XXX, this function counts the number
1149 of characters and checks the EOL format. */
1150
1151 static bool
1152 detect_coding_utf_8 (struct coding_system *coding,
1153 struct coding_detection_info *detect_info)
1154 {
1155 const unsigned char *src = coding->source, *src_base;
1156 const unsigned char *src_end = coding->source + coding->src_bytes;
1157 bool multibytep = coding->src_multibyte;
1158 ptrdiff_t consumed_chars = 0;
1159 bool bom_found = 0;
1160 ptrdiff_t nchars = coding->head_ascii;
1161 int eol_seen = coding->eol_seen;
1162
1163 detect_info->checked |= CATEGORY_MASK_UTF_8;
1164 /* A coding system of this category is always ASCII compatible. */
1165 src += nchars;
1166
1167 if (src == coding->source /* BOM should be at the head. */
1168 && src + 3 < src_end /* BOM is 3-byte long. */
1169 && src[0] == UTF_8_BOM_1
1170 && src[1] == UTF_8_BOM_2
1171 && src[2] == UTF_8_BOM_3)
1172 {
1173 bom_found = 1;
1174 src += 3;
1175 nchars++;
1176 }
1177
1178 while (1)
1179 {
1180 int c, c1, c2, c3, c4;
1181
1182 src_base = src;
1183 ONE_MORE_BYTE (c);
1184 if (c < 0 || UTF_8_1_OCTET_P (c))
1185 {
1186 nchars++;
1187 if (c == '\r')
1188 {
1189 if (src < src_end && *src == '\n')
1190 {
1191 eol_seen |= EOL_SEEN_CRLF;
1192 src++;
1193 nchars++;
1194 }
1195 else
1196 eol_seen |= EOL_SEEN_CR;
1197 }
1198 else if (c == '\n')
1199 eol_seen |= EOL_SEEN_LF;
1200 continue;
1201 }
1202 ONE_MORE_BYTE (c1);
1203 if (c1 < 0 || ! UTF_8_EXTRA_OCTET_P (c1))
1204 break;
1205 if (UTF_8_2_OCTET_LEADING_P (c))
1206 {
1207 nchars++;
1208 continue;
1209 }
1210 ONE_MORE_BYTE (c2);
1211 if (c2 < 0 || ! UTF_8_EXTRA_OCTET_P (c2))
1212 break;
1213 if (UTF_8_3_OCTET_LEADING_P (c))
1214 {
1215 nchars++;
1216 continue;
1217 }
1218 ONE_MORE_BYTE (c3);
1219 if (c3 < 0 || ! UTF_8_EXTRA_OCTET_P (c3))
1220 break;
1221 if (UTF_8_4_OCTET_LEADING_P (c))
1222 {
1223 nchars++;
1224 continue;
1225 }
1226 ONE_MORE_BYTE (c4);
1227 if (c4 < 0 || ! UTF_8_EXTRA_OCTET_P (c4))
1228 break;
1229 if (UTF_8_5_OCTET_LEADING_P (c))
1230 {
1231 nchars++;
1232 continue;
1233 }
1234 break;
1235 }
1236 detect_info->rejected |= CATEGORY_MASK_UTF_8;
1237 return 0;
1238
1239 no_more_source:
1240 if (src_base < src && coding->mode & CODING_MODE_LAST_BLOCK)
1241 {
1242 detect_info->rejected |= CATEGORY_MASK_UTF_8;
1243 return 0;
1244 }
1245 if (bom_found)
1246 {
1247 /* The first character 0xFFFE doesn't necessarily mean a BOM. */
1248 detect_info->found |= CATEGORY_MASK_UTF_8_AUTO | CATEGORY_MASK_UTF_8_SIG | CATEGORY_MASK_UTF_8_NOSIG;
1249 }
1250 else
1251 {
1252 detect_info->rejected |= CATEGORY_MASK_UTF_8_SIG;
1253 if (nchars < src_end - coding->source)
1254 /* The found characters are less than source bytes, which
1255 means that we found a valid non-ASCII characters. */
1256 detect_info->found |= CATEGORY_MASK_UTF_8_AUTO | CATEGORY_MASK_UTF_8_NOSIG;
1257 }
1258 coding->detected_utf8_bytes = src_base - coding->source;
1259 coding->detected_utf8_chars = nchars;
1260 return 1;
1261 }
1262
1263
1264 static void
1265 decode_coding_utf_8 (struct coding_system *coding)
1266 {
1267 const unsigned char *src = coding->source + coding->consumed;
1268 const unsigned char *src_end = coding->source + coding->src_bytes;
1269 const unsigned char *src_base;
1270 int *charbuf = coding->charbuf + coding->charbuf_used;
1271 int *charbuf_end = coding->charbuf + coding->charbuf_size;
1272 ptrdiff_t consumed_chars = 0, consumed_chars_base = 0;
1273 bool multibytep = coding->src_multibyte;
1274 enum utf_bom_type bom = CODING_UTF_8_BOM (coding);
1275 bool eol_dos
1276 = !inhibit_eol_conversion && EQ (CODING_ID_EOL_TYPE (coding->id), Qdos);
1277 int byte_after_cr = -1;
1278
1279 if (bom != utf_without_bom)
1280 {
1281 int c1, c2, c3;
1282
1283 src_base = src;
1284 ONE_MORE_BYTE (c1);
1285 if (! UTF_8_3_OCTET_LEADING_P (c1))
1286 src = src_base;
1287 else
1288 {
1289 ONE_MORE_BYTE (c2);
1290 if (! UTF_8_EXTRA_OCTET_P (c2))
1291 src = src_base;
1292 else
1293 {
1294 ONE_MORE_BYTE (c3);
1295 if (! UTF_8_EXTRA_OCTET_P (c3))
1296 src = src_base;
1297 else
1298 {
1299 if ((c1 != UTF_8_BOM_1)
1300 || (c2 != UTF_8_BOM_2) || (c3 != UTF_8_BOM_3))
1301 src = src_base;
1302 else
1303 CODING_UTF_8_BOM (coding) = utf_without_bom;
1304 }
1305 }
1306 }
1307 }
1308 CODING_UTF_8_BOM (coding) = utf_without_bom;
1309
1310 while (1)
1311 {
1312 int c, c1, c2, c3, c4, c5;
1313
1314 src_base = src;
1315 consumed_chars_base = consumed_chars;
1316
1317 if (charbuf >= charbuf_end)
1318 {
1319 if (byte_after_cr >= 0)
1320 src_base--;
1321 break;
1322 }
1323
1324 /* In the simple case, rapidly handle ordinary characters */
1325 if (multibytep && ! eol_dos
1326 && charbuf < charbuf_end - 6 && src < src_end - 6)
1327 {
1328 while (charbuf < charbuf_end - 6 && src < src_end - 6)
1329 {
1330 c1 = *src;
1331 if (c1 & 0x80)
1332 break;
1333 src++;
1334 consumed_chars++;
1335 *charbuf++ = c1;
1336
1337 c1 = *src;
1338 if (c1 & 0x80)
1339 break;
1340 src++;
1341 consumed_chars++;
1342 *charbuf++ = c1;
1343
1344 c1 = *src;
1345 if (c1 & 0x80)
1346 break;
1347 src++;
1348 consumed_chars++;
1349 *charbuf++ = c1;
1350
1351 c1 = *src;
1352 if (c1 & 0x80)
1353 break;
1354 src++;
1355 consumed_chars++;
1356 *charbuf++ = c1;
1357 }
1358 /* If we handled at least one character, restart the main loop. */
1359 if (src != src_base)
1360 continue;
1361 }
1362
1363 if (byte_after_cr >= 0)
1364 c1 = byte_after_cr, byte_after_cr = -1;
1365 else
1366 ONE_MORE_BYTE (c1);
1367 if (c1 < 0)
1368 {
1369 c = - c1;
1370 }
1371 else if (UTF_8_1_OCTET_P (c1))
1372 {
1373 if (eol_dos && c1 == '\r')
1374 ONE_MORE_BYTE (byte_after_cr);
1375 c = c1;
1376 }
1377 else
1378 {
1379 ONE_MORE_BYTE (c2);
1380 if (c2 < 0 || ! UTF_8_EXTRA_OCTET_P (c2))
1381 goto invalid_code;
1382 if (UTF_8_2_OCTET_LEADING_P (c1))
1383 {
1384 c = ((c1 & 0x1F) << 6) | (c2 & 0x3F);
1385 /* Reject overlong sequences here and below. Encoders
1386 producing them are incorrect, they can be misleading,
1387 and they mess up read/write invariance. */
1388 if (c < 128)
1389 goto invalid_code;
1390 }
1391 else
1392 {
1393 ONE_MORE_BYTE (c3);
1394 if (c3 < 0 || ! UTF_8_EXTRA_OCTET_P (c3))
1395 goto invalid_code;
1396 if (UTF_8_3_OCTET_LEADING_P (c1))
1397 {
1398 c = (((c1 & 0xF) << 12)
1399 | ((c2 & 0x3F) << 6) | (c3 & 0x3F));
1400 if (c < 0x800
1401 || (c >= 0xd800 && c < 0xe000)) /* surrogates (invalid) */
1402 goto invalid_code;
1403 }
1404 else
1405 {
1406 ONE_MORE_BYTE (c4);
1407 if (c4 < 0 || ! UTF_8_EXTRA_OCTET_P (c4))
1408 goto invalid_code;
1409 if (UTF_8_4_OCTET_LEADING_P (c1))
1410 {
1411 c = (((c1 & 0x7) << 18) | ((c2 & 0x3F) << 12)
1412 | ((c3 & 0x3F) << 6) | (c4 & 0x3F));
1413 if (c < 0x10000)
1414 goto invalid_code;
1415 }
1416 else
1417 {
1418 ONE_MORE_BYTE (c5);
1419 if (c5 < 0 || ! UTF_8_EXTRA_OCTET_P (c5))
1420 goto invalid_code;
1421 if (UTF_8_5_OCTET_LEADING_P (c1))
1422 {
1423 c = (((c1 & 0x3) << 24) | ((c2 & 0x3F) << 18)
1424 | ((c3 & 0x3F) << 12) | ((c4 & 0x3F) << 6)
1425 | (c5 & 0x3F));
1426 if ((c > MAX_CHAR) || (c < 0x200000))
1427 goto invalid_code;
1428 }
1429 else
1430 goto invalid_code;
1431 }
1432 }
1433 }
1434 }
1435
1436 *charbuf++ = c;
1437 continue;
1438
1439 invalid_code:
1440 src = src_base;
1441 consumed_chars = consumed_chars_base;
1442 ONE_MORE_BYTE (c);
1443 *charbuf++ = ASCII_CHAR_P (c) ? c : BYTE8_TO_CHAR (c);
1444 }
1445
1446 no_more_source:
1447 coding->consumed_char += consumed_chars_base;
1448 coding->consumed = src_base - coding->source;
1449 coding->charbuf_used = charbuf - coding->charbuf;
1450 }
1451
1452
1453 static bool
1454 encode_coding_utf_8 (struct coding_system *coding)
1455 {
1456 bool multibytep = coding->dst_multibyte;
1457 int *charbuf = coding->charbuf;
1458 int *charbuf_end = charbuf + coding->charbuf_used;
1459 unsigned char *dst = coding->destination + coding->produced;
1460 unsigned char *dst_end = coding->destination + coding->dst_bytes;
1461 ptrdiff_t produced_chars = 0;
1462 int c;
1463
1464 if (CODING_UTF_8_BOM (coding) == utf_with_bom)
1465 {
1466 ASSURE_DESTINATION (3);
1467 EMIT_THREE_BYTES (UTF_8_BOM_1, UTF_8_BOM_2, UTF_8_BOM_3);
1468 CODING_UTF_8_BOM (coding) = utf_without_bom;
1469 }
1470
1471 if (multibytep)
1472 {
1473 int safe_room = MAX_MULTIBYTE_LENGTH * 2;
1474
1475 while (charbuf < charbuf_end)
1476 {
1477 unsigned char str[MAX_MULTIBYTE_LENGTH], *p, *pend = str;
1478
1479 ASSURE_DESTINATION (safe_room);
1480 c = *charbuf++;
1481 if (CHAR_BYTE8_P (c))
1482 {
1483 c = CHAR_TO_BYTE8 (c);
1484 EMIT_ONE_BYTE (c);
1485 }
1486 else
1487 {
1488 CHAR_STRING_ADVANCE_NO_UNIFY (c, pend);
1489 for (p = str; p < pend; p++)
1490 EMIT_ONE_BYTE (*p);
1491 }
1492 }
1493 }
1494 else
1495 {
1496 int safe_room = MAX_MULTIBYTE_LENGTH;
1497
1498 while (charbuf < charbuf_end)
1499 {
1500 ASSURE_DESTINATION (safe_room);
1501 c = *charbuf++;
1502 if (CHAR_BYTE8_P (c))
1503 *dst++ = CHAR_TO_BYTE8 (c);
1504 else
1505 CHAR_STRING_ADVANCE_NO_UNIFY (c, dst);
1506 }
1507 produced_chars = dst - (coding->destination + coding->produced);
1508 }
1509 record_conversion_result (coding, CODING_RESULT_SUCCESS);
1510 coding->produced_char += produced_chars;
1511 coding->produced = dst - coding->destination;
1512 return 0;
1513 }
1514
1515
1516 /* See the above "GENERAL NOTES on `detect_coding_XXX ()' functions".
1517 Return true if a text is encoded in one of UTF-16 based coding systems. */
1518
1519 #define UTF_16_HIGH_SURROGATE_P(val) \
1520 (((val) & 0xFC00) == 0xD800)
1521
1522 #define UTF_16_LOW_SURROGATE_P(val) \
1523 (((val) & 0xFC00) == 0xDC00)
1524
1525
1526 static bool
1527 detect_coding_utf_16 (struct coding_system *coding,
1528 struct coding_detection_info *detect_info)
1529 {
1530 const unsigned char *src = coding->source;
1531 const unsigned char *src_end = coding->source + coding->src_bytes;
1532 bool multibytep = coding->src_multibyte;
1533 int c1, c2;
1534
1535 detect_info->checked |= CATEGORY_MASK_UTF_16;
1536 if (coding->mode & CODING_MODE_LAST_BLOCK
1537 && (coding->src_chars & 1))
1538 {
1539 detect_info->rejected |= CATEGORY_MASK_UTF_16;
1540 return 0;
1541 }
1542
1543 TWO_MORE_BYTES (c1, c2);
1544 if ((c1 == 0xFF) && (c2 == 0xFE))
1545 {
1546 detect_info->found |= (CATEGORY_MASK_UTF_16_LE
1547 | CATEGORY_MASK_UTF_16_AUTO);
1548 detect_info->rejected |= (CATEGORY_MASK_UTF_16_BE
1549 | CATEGORY_MASK_UTF_16_BE_NOSIG
1550 | CATEGORY_MASK_UTF_16_LE_NOSIG);
1551 }
1552 else if ((c1 == 0xFE) && (c2 == 0xFF))
1553 {
1554 detect_info->found |= (CATEGORY_MASK_UTF_16_BE
1555 | CATEGORY_MASK_UTF_16_AUTO);
1556 detect_info->rejected |= (CATEGORY_MASK_UTF_16_LE
1557 | CATEGORY_MASK_UTF_16_BE_NOSIG
1558 | CATEGORY_MASK_UTF_16_LE_NOSIG);
1559 }
1560 else if (c2 < 0)
1561 {
1562 detect_info->rejected |= CATEGORY_MASK_UTF_16;
1563 return 0;
1564 }
1565 else
1566 {
1567 /* We check the dispersion of Eth and Oth bytes where E is even and
1568 O is odd. If both are high, we assume binary data.*/
1569 unsigned char e[256], o[256];
1570 unsigned e_num = 1, o_num = 1;
1571
1572 memset (e, 0, 256);
1573 memset (o, 0, 256);
1574 e[c1] = 1;
1575 o[c2] = 1;
1576
1577 detect_info->rejected |= (CATEGORY_MASK_UTF_16_AUTO
1578 |CATEGORY_MASK_UTF_16_BE
1579 | CATEGORY_MASK_UTF_16_LE);
1580
1581 while ((detect_info->rejected & CATEGORY_MASK_UTF_16)
1582 != CATEGORY_MASK_UTF_16)
1583 {
1584 TWO_MORE_BYTES (c1, c2);
1585 if (c2 < 0)
1586 break;
1587 if (! e[c1])
1588 {
1589 e[c1] = 1;
1590 e_num++;
1591 if (e_num >= 128)
1592 detect_info->rejected |= CATEGORY_MASK_UTF_16_BE_NOSIG;
1593 }
1594 if (! o[c2])
1595 {
1596 o[c2] = 1;
1597 o_num++;
1598 if (o_num >= 128)
1599 detect_info->rejected |= CATEGORY_MASK_UTF_16_LE_NOSIG;
1600 }
1601 }
1602 return 0;
1603 }
1604
1605 no_more_source:
1606 return 1;
1607 }
1608
1609 static void
1610 decode_coding_utf_16 (struct coding_system *coding)
1611 {
1612 const unsigned char *src = coding->source + coding->consumed;
1613 const unsigned char *src_end = coding->source + coding->src_bytes;
1614 const unsigned char *src_base;
1615 int *charbuf = coding->charbuf + coding->charbuf_used;
1616 /* We may produces at most 3 chars in one loop. */
1617 int *charbuf_end = coding->charbuf + coding->charbuf_size - 2;
1618 ptrdiff_t consumed_chars = 0, consumed_chars_base = 0;
1619 bool multibytep = coding->src_multibyte;
1620 enum utf_bom_type bom = CODING_UTF_16_BOM (coding);
1621 enum utf_16_endian_type endian = CODING_UTF_16_ENDIAN (coding);
1622 int surrogate = CODING_UTF_16_SURROGATE (coding);
1623 bool eol_dos
1624 = !inhibit_eol_conversion && EQ (CODING_ID_EOL_TYPE (coding->id), Qdos);
1625 int byte_after_cr1 = -1, byte_after_cr2 = -1;
1626
1627 if (bom == utf_with_bom)
1628 {
1629 int c, c1, c2;
1630
1631 src_base = src;
1632 ONE_MORE_BYTE (c1);
1633 ONE_MORE_BYTE (c2);
1634 c = (c1 << 8) | c2;
1635
1636 if (endian == utf_16_big_endian
1637 ? c != 0xFEFF : c != 0xFFFE)
1638 {
1639 /* The first two bytes are not BOM. Treat them as bytes
1640 for a normal character. */
1641 src = src_base;
1642 }
1643 CODING_UTF_16_BOM (coding) = utf_without_bom;
1644 }
1645 else if (bom == utf_detect_bom)
1646 {
1647 /* We have already tried to detect BOM and failed in
1648 detect_coding. */
1649 CODING_UTF_16_BOM (coding) = utf_without_bom;
1650 }
1651
1652 while (1)
1653 {
1654 int c, c1, c2;
1655
1656 src_base = src;
1657 consumed_chars_base = consumed_chars;
1658
1659 if (charbuf >= charbuf_end)
1660 {
1661 if (byte_after_cr1 >= 0)
1662 src_base -= 2;
1663 break;
1664 }
1665
1666 if (byte_after_cr1 >= 0)
1667 c1 = byte_after_cr1, byte_after_cr1 = -1;
1668 else
1669 ONE_MORE_BYTE (c1);
1670 if (c1 < 0)
1671 {
1672 *charbuf++ = -c1;
1673 continue;
1674 }
1675 if (byte_after_cr2 >= 0)
1676 c2 = byte_after_cr2, byte_after_cr2 = -1;
1677 else
1678 ONE_MORE_BYTE (c2);
1679 if (c2 < 0)
1680 {
1681 *charbuf++ = ASCII_CHAR_P (c1) ? c1 : BYTE8_TO_CHAR (c1);
1682 *charbuf++ = -c2;
1683 continue;
1684 }
1685 c = (endian == utf_16_big_endian
1686 ? ((c1 << 8) | c2) : ((c2 << 8) | c1));
1687
1688 if (surrogate)
1689 {
1690 if (! UTF_16_LOW_SURROGATE_P (c))
1691 {
1692 if (endian == utf_16_big_endian)
1693 c1 = surrogate >> 8, c2 = surrogate & 0xFF;
1694 else
1695 c1 = surrogate & 0xFF, c2 = surrogate >> 8;
1696 *charbuf++ = c1;
1697 *charbuf++ = c2;
1698 if (UTF_16_HIGH_SURROGATE_P (c))
1699 CODING_UTF_16_SURROGATE (coding) = surrogate = c;
1700 else
1701 *charbuf++ = c;
1702 }
1703 else
1704 {
1705 c = ((surrogate - 0xD800) << 10) | (c - 0xDC00);
1706 CODING_UTF_16_SURROGATE (coding) = surrogate = 0;
1707 *charbuf++ = 0x10000 + c;
1708 }
1709 }
1710 else
1711 {
1712 if (UTF_16_HIGH_SURROGATE_P (c))
1713 CODING_UTF_16_SURROGATE (coding) = surrogate = c;
1714 else
1715 {
1716 if (eol_dos && c == '\r')
1717 {
1718 ONE_MORE_BYTE (byte_after_cr1);
1719 ONE_MORE_BYTE (byte_after_cr2);
1720 }
1721 *charbuf++ = c;
1722 }
1723 }
1724 }
1725
1726 no_more_source:
1727 coding->consumed_char += consumed_chars_base;
1728 coding->consumed = src_base - coding->source;
1729 coding->charbuf_used = charbuf - coding->charbuf;
1730 }
1731
1732 static bool
1733 encode_coding_utf_16 (struct coding_system *coding)
1734 {
1735 bool multibytep = coding->dst_multibyte;
1736 int *charbuf = coding->charbuf;
1737 int *charbuf_end = charbuf + coding->charbuf_used;
1738 unsigned char *dst = coding->destination + coding->produced;
1739 unsigned char *dst_end = coding->destination + coding->dst_bytes;
1740 int safe_room = 8;
1741 enum utf_bom_type bom = CODING_UTF_16_BOM (coding);
1742 bool big_endian = CODING_UTF_16_ENDIAN (coding) == utf_16_big_endian;
1743 ptrdiff_t produced_chars = 0;
1744 int c;
1745
1746 if (bom != utf_without_bom)
1747 {
1748 ASSURE_DESTINATION (safe_room);
1749 if (big_endian)
1750 EMIT_TWO_BYTES (0xFE, 0xFF);
1751 else
1752 EMIT_TWO_BYTES (0xFF, 0xFE);
1753 CODING_UTF_16_BOM (coding) = utf_without_bom;
1754 }
1755
1756 while (charbuf < charbuf_end)
1757 {
1758 ASSURE_DESTINATION (safe_room);
1759 c = *charbuf++;
1760 if (c > MAX_UNICODE_CHAR)
1761 c = coding->default_char;
1762
1763 if (c < 0x10000)
1764 {
1765 if (big_endian)
1766 EMIT_TWO_BYTES (c >> 8, c & 0xFF);
1767 else
1768 EMIT_TWO_BYTES (c & 0xFF, c >> 8);
1769 }
1770 else
1771 {
1772 int c1, c2;
1773
1774 c -= 0x10000;
1775 c1 = (c >> 10) + 0xD800;
1776 c2 = (c & 0x3FF) + 0xDC00;
1777 if (big_endian)
1778 EMIT_FOUR_BYTES (c1 >> 8, c1 & 0xFF, c2 >> 8, c2 & 0xFF);
1779 else
1780 EMIT_FOUR_BYTES (c1 & 0xFF, c1 >> 8, c2 & 0xFF, c2 >> 8);
1781 }
1782 }
1783 record_conversion_result (coding, CODING_RESULT_SUCCESS);
1784 coding->produced = dst - coding->destination;
1785 coding->produced_char += produced_chars;
1786 return 0;
1787 }
1788
1789 \f
1790 /*** 6. Old Emacs' internal format (emacs-mule) ***/
1791
1792 /* Emacs' internal format for representation of multiple character
1793 sets is a kind of multi-byte encoding, i.e. characters are
1794 represented by variable-length sequences of one-byte codes.
1795
1796 ASCII characters and control characters (e.g. `tab', `newline') are
1797 represented by one-byte sequences which are their ASCII codes, in
1798 the range 0x00 through 0x7F.
1799
1800 8-bit characters of the range 0x80..0x9F are represented by
1801 two-byte sequences of LEADING_CODE_8_BIT_CONTROL and (their 8-bit
1802 code + 0x20).
1803
1804 8-bit characters of the range 0xA0..0xFF are represented by
1805 one-byte sequences which are their 8-bit code.
1806
1807 The other characters are represented by a sequence of `base
1808 leading-code', optional `extended leading-code', and one or two
1809 `position-code's. The length of the sequence is determined by the
1810 base leading-code. Leading-code takes the range 0x81 through 0x9D,
1811 whereas extended leading-code and position-code take the range 0xA0
1812 through 0xFF. See `charset.h' for more details about leading-code
1813 and position-code.
1814
1815 --- CODE RANGE of Emacs' internal format ---
1816 character set range
1817 ------------- -----
1818 ascii 0x00..0x7F
1819 eight-bit-control LEADING_CODE_8_BIT_CONTROL + 0xA0..0xBF
1820 eight-bit-graphic 0xA0..0xBF
1821 ELSE 0x81..0x9D + [0xA0..0xFF]+
1822 ---------------------------------------------
1823
1824 As this is the internal character representation, the format is
1825 usually not used externally (i.e. in a file or in a data sent to a
1826 process). But, it is possible to have a text externally in this
1827 format (i.e. by encoding by the coding system `emacs-mule').
1828
1829 In that case, a sequence of one-byte codes has a slightly different
1830 form.
1831
1832 At first, all characters in eight-bit-control are represented by
1833 one-byte sequences which are their 8-bit code.
1834
1835 Next, character composition data are represented by the byte
1836 sequence of the form: 0x80 METHOD BYTES CHARS COMPONENT ...,
1837 where,
1838 METHOD is 0xF2 plus one of composition method (enum
1839 composition_method),
1840
1841 BYTES is 0xA0 plus a byte length of this composition data,
1842
1843 CHARS is 0xA0 plus a number of characters composed by this
1844 data,
1845
1846 COMPONENTs are characters of multibyte form or composition
1847 rules encoded by two-byte of ASCII codes.
1848
1849 In addition, for backward compatibility, the following formats are
1850 also recognized as composition data on decoding.
1851
1852 0x80 MSEQ ...
1853 0x80 0xFF MSEQ RULE MSEQ RULE ... MSEQ
1854
1855 Here,
1856 MSEQ is a multibyte form but in these special format:
1857 ASCII: 0xA0 ASCII_CODE+0x80,
1858 other: LEADING_CODE+0x20 FOLLOWING-BYTE ...,
1859 RULE is a one byte code of the range 0xA0..0xF0 that
1860 represents a composition rule.
1861 */
1862
1863 char emacs_mule_bytes[256];
1864
1865
1866 /* See the above "GENERAL NOTES on `detect_coding_XXX ()' functions".
1867 Return true if a text is encoded in 'emacs-mule'. */
1868
1869 static bool
1870 detect_coding_emacs_mule (struct coding_system *coding,
1871 struct coding_detection_info *detect_info)
1872 {
1873 const unsigned char *src = coding->source, *src_base;
1874 const unsigned char *src_end = coding->source + coding->src_bytes;
1875 bool multibytep = coding->src_multibyte;
1876 ptrdiff_t consumed_chars = 0;
1877 int c;
1878 int found = 0;
1879
1880 detect_info->checked |= CATEGORY_MASK_EMACS_MULE;
1881 /* A coding system of this category is always ASCII compatible. */
1882 src += coding->head_ascii;
1883
1884 while (1)
1885 {
1886 src_base = src;
1887 ONE_MORE_BYTE (c);
1888 if (c < 0)
1889 continue;
1890 if (c == 0x80)
1891 {
1892 /* Perhaps the start of composite character. We simply skip
1893 it because analyzing it is too heavy for detecting. But,
1894 at least, we check that the composite character
1895 constitutes of more than 4 bytes. */
1896 const unsigned char *src_start;
1897
1898 repeat:
1899 src_start = src;
1900 do
1901 {
1902 ONE_MORE_BYTE (c);
1903 }
1904 while (c >= 0xA0);
1905
1906 if (src - src_start <= 4)
1907 break;
1908 found = CATEGORY_MASK_EMACS_MULE;
1909 if (c == 0x80)
1910 goto repeat;
1911 }
1912
1913 if (c < 0x80)
1914 {
1915 if (c < 0x20
1916 && (c == ISO_CODE_ESC || c == ISO_CODE_SI || c == ISO_CODE_SO))
1917 break;
1918 }
1919 else
1920 {
1921 int more_bytes = emacs_mule_bytes[c] - 1;
1922
1923 while (more_bytes > 0)
1924 {
1925 ONE_MORE_BYTE (c);
1926 if (c < 0xA0)
1927 {
1928 src--; /* Unread the last byte. */
1929 break;
1930 }
1931 more_bytes--;
1932 }
1933 if (more_bytes != 0)
1934 break;
1935 found = CATEGORY_MASK_EMACS_MULE;
1936 }
1937 }
1938 detect_info->rejected |= CATEGORY_MASK_EMACS_MULE;
1939 return 0;
1940
1941 no_more_source:
1942 if (src_base < src && coding->mode & CODING_MODE_LAST_BLOCK)
1943 {
1944 detect_info->rejected |= CATEGORY_MASK_EMACS_MULE;
1945 return 0;
1946 }
1947 detect_info->found |= found;
1948 return 1;
1949 }
1950
1951
1952 /* Parse emacs-mule multibyte sequence at SRC and return the decoded
1953 character. If CMP_STATUS indicates that we must expect MSEQ or
1954 RULE described above, decode it and return the negative value of
1955 the decoded character or rule. If an invalid byte is found, return
1956 -1. If SRC is too short, return -2. */
1957
1958 static int
1959 emacs_mule_char (struct coding_system *coding, const unsigned char *src,
1960 int *nbytes, int *nchars, int *id,
1961 struct composition_status *cmp_status)
1962 {
1963 const unsigned char *src_end = coding->source + coding->src_bytes;
1964 const unsigned char *src_base = src;
1965 bool multibytep = coding->src_multibyte;
1966 int charset_ID;
1967 unsigned code;
1968 int c;
1969 ptrdiff_t consumed_chars = 0;
1970 bool mseq_found = 0;
1971
1972 ONE_MORE_BYTE (c);
1973 if (c < 0)
1974 {
1975 c = -c;
1976 charset_ID = emacs_mule_charset[0];
1977 }
1978 else
1979 {
1980 if (c >= 0xA0)
1981 {
1982 if (cmp_status->state != COMPOSING_NO
1983 && cmp_status->old_form)
1984 {
1985 if (cmp_status->state == COMPOSING_CHAR)
1986 {
1987 if (c == 0xA0)
1988 {
1989 ONE_MORE_BYTE (c);
1990 c -= 0x80;
1991 if (c < 0)
1992 goto invalid_code;
1993 }
1994 else
1995 c -= 0x20;
1996 mseq_found = 1;
1997 }
1998 else
1999 {
2000 *nbytes = src - src_base;
2001 *nchars = consumed_chars;
2002 return -c;
2003 }
2004 }
2005 else
2006 goto invalid_code;
2007 }
2008
2009 switch (emacs_mule_bytes[c])
2010 {
2011 case 2:
2012 if ((charset_ID = emacs_mule_charset[c]) < 0)
2013 goto invalid_code;
2014 ONE_MORE_BYTE (c);
2015 if (c < 0xA0)
2016 goto invalid_code;
2017 code = c & 0x7F;
2018 break;
2019
2020 case 3:
2021 if (c == EMACS_MULE_LEADING_CODE_PRIVATE_11
2022 || c == EMACS_MULE_LEADING_CODE_PRIVATE_12)
2023 {
2024 ONE_MORE_BYTE (c);
2025 if (c < 0xA0 || (charset_ID = emacs_mule_charset[c]) < 0)
2026 goto invalid_code;
2027 ONE_MORE_BYTE (c);
2028 if (c < 0xA0)
2029 goto invalid_code;
2030 code = c & 0x7F;
2031 }
2032 else
2033 {
2034 if ((charset_ID = emacs_mule_charset[c]) < 0)
2035 goto invalid_code;
2036 ONE_MORE_BYTE (c);
2037 if (c < 0xA0)
2038 goto invalid_code;
2039 code = (c & 0x7F) << 8;
2040 ONE_MORE_BYTE (c);
2041 if (c < 0xA0)
2042 goto invalid_code;
2043 code |= c & 0x7F;
2044 }
2045 break;
2046
2047 case 4:
2048 ONE_MORE_BYTE (c);
2049 if (c < 0 || (charset_ID = emacs_mule_charset[c]) < 0)
2050 goto invalid_code;
2051 ONE_MORE_BYTE (c);
2052 if (c < 0xA0)
2053 goto invalid_code;
2054 code = (c & 0x7F) << 8;
2055 ONE_MORE_BYTE (c);
2056 if (c < 0xA0)
2057 goto invalid_code;
2058 code |= c & 0x7F;
2059 break;
2060
2061 case 1:
2062 code = c;
2063 charset_ID = ASCII_CHAR_P (code) ? charset_ascii : charset_eight_bit;
2064 break;
2065
2066 default:
2067 emacs_abort ();
2068 }
2069 CODING_DECODE_CHAR (coding, src, src_base, src_end,
2070 CHARSET_FROM_ID (charset_ID), code, c);
2071 if (c < 0)
2072 goto invalid_code;
2073 }
2074 *nbytes = src - src_base;
2075 *nchars = consumed_chars;
2076 if (id)
2077 *id = charset_ID;
2078 return (mseq_found ? -c : c);
2079
2080 no_more_source:
2081 return -2;
2082
2083 invalid_code:
2084 return -1;
2085 }
2086
2087
2088 /* See the above "GENERAL NOTES on `decode_coding_XXX ()' functions". */
2089
2090 /* Handle these composition sequence ('|': the end of header elements,
2091 BYTES and CHARS >= 0xA0):
2092
2093 (1) relative composition: 0x80 0xF2 BYTES CHARS | CHAR ...
2094 (2) altchar composition: 0x80 0xF4 BYTES CHARS | ALT ... ALT CHAR ...
2095 (3) alt&rule composition: 0x80 0xF5 BYTES CHARS | ALT RULE ... ALT CHAR ...
2096
2097 and these old form:
2098
2099 (4) relative composition: 0x80 | MSEQ ... MSEQ
2100 (5) rulebase composition: 0x80 0xFF | MSEQ MRULE ... MSEQ
2101
2102 When the starter 0x80 and the following header elements are found,
2103 this annotation header is produced.
2104
2105 [ -LENGTH(==-5) CODING_ANNOTATE_COMPOSITION_MASK NCHARS NBYTES METHOD ]
2106
2107 NCHARS is CHARS - 0xA0 for (1), (2), (3), and 0 for (4), (5).
2108 NBYTES is BYTES - 0xA0 for (1), (2), (3), and 0 for (4), (5).
2109
2110 Then, upon reading the following elements, these codes are produced
2111 until the composition end is found:
2112
2113 (1) CHAR ... CHAR
2114 (2) ALT ... ALT CHAR ... CHAR
2115 (3) ALT -2 DECODED-RULE ALT -2 DECODED-RULE ... ALT CHAR ... CHAR
2116 (4) CHAR ... CHAR
2117 (5) CHAR -2 DECODED-RULE CHAR -2 DECODED-RULE ... CHAR
2118
2119 When the composition end is found, LENGTH and NCHARS in the
2120 annotation header is updated as below:
2121
2122 (1) LENGTH: unchanged, NCHARS: unchanged
2123 (2) LENGTH: length of the whole sequence minus NCHARS, NCHARS: unchanged
2124 (3) LENGTH: length of the whole sequence minus NCHARS, NCHARS: unchanged
2125 (4) LENGTH: unchanged, NCHARS: number of CHARs
2126 (5) LENGTH: unchanged, NCHARS: number of CHARs
2127
2128 If an error is found while composing, the annotation header is
2129 changed to the original composition header (plus filler -1s) as
2130 below:
2131
2132 (1),(2),(3) [ 0x80 0xF2+METHOD BYTES CHARS -1 ]
2133 (5) [ 0x80 0xFF -1 -1- -1 ]
2134
2135 and the sequence [ -2 DECODED-RULE ] is changed to the original
2136 byte sequence as below:
2137 o the original byte sequence is B: [ B -1 ]
2138 o the original byte sequence is B1 B2: [ B1 B2 ]
2139
2140 Most of the routines are implemented by macros because many
2141 variables and labels in the caller decode_coding_emacs_mule must be
2142 accessible, and they are usually called just once (thus doesn't
2143 increase the size of compiled object). */
2144
2145 /* Decode a composition rule represented by C as a component of
2146 composition sequence of Emacs 20 style. Set RULE to the decoded
2147 rule. */
2148
2149 #define DECODE_EMACS_MULE_COMPOSITION_RULE_20(c, rule) \
2150 do { \
2151 int gref, nref; \
2152 \
2153 c -= 0xA0; \
2154 if (c < 0 || c >= 81) \
2155 goto invalid_code; \
2156 gref = c / 9, nref = c % 9; \
2157 if (gref == 4) gref = 10; \
2158 if (nref == 4) nref = 10; \
2159 rule = COMPOSITION_ENCODE_RULE (gref, nref); \
2160 } while (0)
2161
2162
2163 /* Decode a composition rule represented by C and the following byte
2164 at SRC as a component of composition sequence of Emacs 21 style.
2165 Set RULE to the decoded rule. */
2166
2167 #define DECODE_EMACS_MULE_COMPOSITION_RULE_21(c, rule) \
2168 do { \
2169 int gref, nref; \
2170 \
2171 gref = c - 0x20; \
2172 if (gref < 0 || gref >= 81) \
2173 goto invalid_code; \
2174 ONE_MORE_BYTE (c); \
2175 nref = c - 0x20; \
2176 if (nref < 0 || nref >= 81) \
2177 goto invalid_code; \
2178 rule = COMPOSITION_ENCODE_RULE (gref, nref); \
2179 } while (0)
2180
2181
2182 /* Start of Emacs 21 style format. The first three bytes at SRC are
2183 (METHOD - 0xF2), (BYTES - 0xA0), (CHARS - 0xA0), where BYTES is the
2184 byte length of this composition information, CHARS is the number of
2185 characters composed by this composition. */
2186
2187 #define DECODE_EMACS_MULE_21_COMPOSITION() \
2188 do { \
2189 enum composition_method method = c - 0xF2; \
2190 int nbytes, nchars; \
2191 \
2192 ONE_MORE_BYTE (c); \
2193 if (c < 0) \
2194 goto invalid_code; \
2195 nbytes = c - 0xA0; \
2196 if (nbytes < 3 || (method == COMPOSITION_RELATIVE && nbytes != 4)) \
2197 goto invalid_code; \
2198 ONE_MORE_BYTE (c); \
2199 nchars = c - 0xA0; \
2200 if (nchars <= 0 || nchars >= MAX_COMPOSITION_COMPONENTS) \
2201 goto invalid_code; \
2202 cmp_status->old_form = 0; \
2203 cmp_status->method = method; \
2204 if (method == COMPOSITION_RELATIVE) \
2205 cmp_status->state = COMPOSING_CHAR; \
2206 else \
2207 cmp_status->state = COMPOSING_COMPONENT_CHAR; \
2208 cmp_status->length = MAX_ANNOTATION_LENGTH; \
2209 cmp_status->nchars = nchars; \
2210 cmp_status->ncomps = nbytes - 4; \
2211 ADD_COMPOSITION_DATA (charbuf, nchars, nbytes, method); \
2212 } while (0)
2213
2214
2215 /* Start of Emacs 20 style format for relative composition. */
2216
2217 #define DECODE_EMACS_MULE_20_RELATIVE_COMPOSITION() \
2218 do { \
2219 cmp_status->old_form = 1; \
2220 cmp_status->method = COMPOSITION_RELATIVE; \
2221 cmp_status->state = COMPOSING_CHAR; \
2222 cmp_status->length = MAX_ANNOTATION_LENGTH; \
2223 cmp_status->nchars = cmp_status->ncomps = 0; \
2224 ADD_COMPOSITION_DATA (charbuf, 0, 0, cmp_status->method); \
2225 } while (0)
2226
2227
2228 /* Start of Emacs 20 style format for rule-base composition. */
2229
2230 #define DECODE_EMACS_MULE_20_RULEBASE_COMPOSITION() \
2231 do { \
2232 cmp_status->old_form = 1; \
2233 cmp_status->method = COMPOSITION_WITH_RULE; \
2234 cmp_status->state = COMPOSING_CHAR; \
2235 cmp_status->length = MAX_ANNOTATION_LENGTH; \
2236 cmp_status->nchars = cmp_status->ncomps = 0; \
2237 ADD_COMPOSITION_DATA (charbuf, 0, 0, cmp_status->method); \
2238 } while (0)
2239
2240
2241 #define DECODE_EMACS_MULE_COMPOSITION_START() \
2242 do { \
2243 const unsigned char *current_src = src; \
2244 \
2245 ONE_MORE_BYTE (c); \
2246 if (c < 0) \
2247 goto invalid_code; \
2248 if (c - 0xF2 >= COMPOSITION_RELATIVE \
2249 && c - 0xF2 <= COMPOSITION_WITH_RULE_ALTCHARS) \
2250 DECODE_EMACS_MULE_21_COMPOSITION (); \
2251 else if (c < 0xA0) \
2252 goto invalid_code; \
2253 else if (c < 0xC0) \
2254 { \
2255 DECODE_EMACS_MULE_20_RELATIVE_COMPOSITION (); \
2256 /* Re-read C as a composition component. */ \
2257 src = current_src; \
2258 } \
2259 else if (c == 0xFF) \
2260 DECODE_EMACS_MULE_20_RULEBASE_COMPOSITION (); \
2261 else \
2262 goto invalid_code; \
2263 } while (0)
2264
2265 #define EMACS_MULE_COMPOSITION_END() \
2266 do { \
2267 int idx = - cmp_status->length; \
2268 \
2269 if (cmp_status->old_form) \
2270 charbuf[idx + 2] = cmp_status->nchars; \
2271 else if (cmp_status->method > COMPOSITION_RELATIVE) \
2272 charbuf[idx] = charbuf[idx + 2] - cmp_status->length; \
2273 cmp_status->state = COMPOSING_NO; \
2274 } while (0)
2275
2276
2277 static int
2278 emacs_mule_finish_composition (int *charbuf,
2279 struct composition_status *cmp_status)
2280 {
2281 int idx = - cmp_status->length;
2282 int new_chars;
2283
2284 if (cmp_status->old_form && cmp_status->nchars > 0)
2285 {
2286 charbuf[idx + 2] = cmp_status->nchars;
2287 new_chars = 0;
2288 if (cmp_status->method == COMPOSITION_WITH_RULE
2289 && cmp_status->state == COMPOSING_CHAR)
2290 {
2291 /* The last rule was invalid. */
2292 int rule = charbuf[-1] + 0xA0;
2293
2294 charbuf[-2] = BYTE8_TO_CHAR (rule);
2295 charbuf[-1] = -1;
2296 new_chars = 1;
2297 }
2298 }
2299 else
2300 {
2301 charbuf[idx++] = BYTE8_TO_CHAR (0x80);
2302
2303 if (cmp_status->method == COMPOSITION_WITH_RULE)
2304 {
2305 charbuf[idx++] = BYTE8_TO_CHAR (0xFF);
2306 charbuf[idx++] = -3;
2307 charbuf[idx++] = 0;
2308 new_chars = 1;
2309 }
2310 else
2311 {
2312 int nchars = charbuf[idx + 1] + 0xA0;
2313 int nbytes = charbuf[idx + 2] + 0xA0;
2314
2315 charbuf[idx++] = BYTE8_TO_CHAR (0xF2 + cmp_status->method);
2316 charbuf[idx++] = BYTE8_TO_CHAR (nbytes);
2317 charbuf[idx++] = BYTE8_TO_CHAR (nchars);
2318 charbuf[idx++] = -1;
2319 new_chars = 4;
2320 }
2321 }
2322 cmp_status->state = COMPOSING_NO;
2323 return new_chars;
2324 }
2325
2326 #define EMACS_MULE_MAYBE_FINISH_COMPOSITION() \
2327 do { \
2328 if (cmp_status->state != COMPOSING_NO) \
2329 char_offset += emacs_mule_finish_composition (charbuf, cmp_status); \
2330 } while (0)
2331
2332
2333 static void
2334 decode_coding_emacs_mule (struct coding_system *coding)
2335 {
2336 const unsigned char *src = coding->source + coding->consumed;
2337 const unsigned char *src_end = coding->source + coding->src_bytes;
2338 const unsigned char *src_base;
2339 int *charbuf = coding->charbuf + coding->charbuf_used;
2340 /* We may produce two annotations (charset and composition) in one
2341 loop and one more charset annotation at the end. */
2342 int *charbuf_end
2343 = coding->charbuf + coding->charbuf_size - (MAX_ANNOTATION_LENGTH * 3)
2344 /* We can produce up to 2 characters in a loop. */
2345 - 1;
2346 ptrdiff_t consumed_chars = 0, consumed_chars_base;
2347 bool multibytep = coding->src_multibyte;
2348 ptrdiff_t char_offset = coding->produced_char;
2349 ptrdiff_t last_offset = char_offset;
2350 int last_id = charset_ascii;
2351 bool eol_dos
2352 = !inhibit_eol_conversion && EQ (CODING_ID_EOL_TYPE (coding->id), Qdos);
2353 int byte_after_cr = -1;
2354 struct composition_status *cmp_status = &coding->spec.emacs_mule.cmp_status;
2355
2356 if (cmp_status->state != COMPOSING_NO)
2357 {
2358 int i;
2359
2360 if (charbuf_end - charbuf < cmp_status->length)
2361 emacs_abort ();
2362 for (i = 0; i < cmp_status->length; i++)
2363 *charbuf++ = cmp_status->carryover[i];
2364 coding->annotated = 1;
2365 }
2366
2367 while (1)
2368 {
2369 int c, id IF_LINT (= 0);
2370
2371 src_base = src;
2372 consumed_chars_base = consumed_chars;
2373
2374 if (charbuf >= charbuf_end)
2375 {
2376 if (byte_after_cr >= 0)
2377 src_base--;
2378 break;
2379 }
2380
2381 if (byte_after_cr >= 0)
2382 c = byte_after_cr, byte_after_cr = -1;
2383 else
2384 ONE_MORE_BYTE (c);
2385
2386 if (c < 0 || c == 0x80)
2387 {
2388 EMACS_MULE_MAYBE_FINISH_COMPOSITION ();
2389 if (c < 0)
2390 {
2391 *charbuf++ = -c;
2392 char_offset++;
2393 }
2394 else
2395 DECODE_EMACS_MULE_COMPOSITION_START ();
2396 continue;
2397 }
2398
2399 if (c < 0x80)
2400 {
2401 if (eol_dos && c == '\r')
2402 ONE_MORE_BYTE (byte_after_cr);
2403 id = charset_ascii;
2404 if (cmp_status->state != COMPOSING_NO)
2405 {
2406 if (cmp_status->old_form)
2407 EMACS_MULE_MAYBE_FINISH_COMPOSITION ();
2408 else if (cmp_status->state >= COMPOSING_COMPONENT_CHAR)
2409 cmp_status->ncomps--;
2410 }
2411 }
2412 else
2413 {
2414 int nchars IF_LINT (= 0), nbytes IF_LINT (= 0);
2415 /* emacs_mule_char can load a charset map from a file, which
2416 allocates a large structure and might cause buffer text
2417 to be relocated as result. Thus, we need to remember the
2418 original pointer to buffer text, and fix up all related
2419 pointers after the call. */
2420 const unsigned char *orig = coding->source;
2421 ptrdiff_t offset;
2422
2423 c = emacs_mule_char (coding, src_base, &nbytes, &nchars, &id,
2424 cmp_status);
2425 offset = coding->source - orig;
2426 if (offset)
2427 {
2428 src += offset;
2429 src_base += offset;
2430 src_end += offset;
2431 }
2432 if (c < 0)
2433 {
2434 if (c == -1)
2435 goto invalid_code;
2436 if (c == -2)
2437 break;
2438 }
2439 src = src_base + nbytes;
2440 consumed_chars = consumed_chars_base + nchars;
2441 if (cmp_status->state >= COMPOSING_COMPONENT_CHAR)
2442 cmp_status->ncomps -= nchars;
2443 }
2444
2445 /* Now if C >= 0, we found a normally encoded character, if C <
2446 0, we found an old-style composition component character or
2447 rule. */
2448
2449 if (cmp_status->state == COMPOSING_NO)
2450 {
2451 if (last_id != id)
2452 {
2453 if (last_id != charset_ascii)
2454 ADD_CHARSET_DATA (charbuf, char_offset - last_offset,
2455 last_id);
2456 last_id = id;
2457 last_offset = char_offset;
2458 }
2459 *charbuf++ = c;
2460 char_offset++;
2461 }
2462 else if (cmp_status->state == COMPOSING_CHAR)
2463 {
2464 if (cmp_status->old_form)
2465 {
2466 if (c >= 0)
2467 {
2468 EMACS_MULE_MAYBE_FINISH_COMPOSITION ();
2469 *charbuf++ = c;
2470 char_offset++;
2471 }
2472 else
2473 {
2474 *charbuf++ = -c;
2475 cmp_status->nchars++;
2476 cmp_status->length++;
2477 if (cmp_status->nchars == MAX_COMPOSITION_COMPONENTS)
2478 EMACS_MULE_COMPOSITION_END ();
2479 else if (cmp_status->method == COMPOSITION_WITH_RULE)
2480 cmp_status->state = COMPOSING_RULE;
2481 }
2482 }
2483 else
2484 {
2485 *charbuf++ = c;
2486 cmp_status->length++;
2487 cmp_status->nchars--;
2488 if (cmp_status->nchars == 0)
2489 EMACS_MULE_COMPOSITION_END ();
2490 }
2491 }
2492 else if (cmp_status->state == COMPOSING_RULE)
2493 {
2494 int rule;
2495
2496 if (c >= 0)
2497 {
2498 EMACS_MULE_COMPOSITION_END ();
2499 *charbuf++ = c;
2500 char_offset++;
2501 }
2502 else
2503 {
2504 c = -c;
2505 DECODE_EMACS_MULE_COMPOSITION_RULE_20 (c, rule);
2506 if (rule < 0)
2507 goto invalid_code;
2508 *charbuf++ = -2;
2509 *charbuf++ = rule;
2510 cmp_status->length += 2;
2511 cmp_status->state = COMPOSING_CHAR;
2512 }
2513 }
2514 else if (cmp_status->state == COMPOSING_COMPONENT_CHAR)
2515 {
2516 *charbuf++ = c;
2517 cmp_status->length++;
2518 if (cmp_status->ncomps == 0)
2519 cmp_status->state = COMPOSING_CHAR;
2520 else if (cmp_status->ncomps > 0)
2521 {
2522 if (cmp_status->method == COMPOSITION_WITH_RULE_ALTCHARS)
2523 cmp_status->state = COMPOSING_COMPONENT_RULE;
2524 }
2525 else
2526 EMACS_MULE_MAYBE_FINISH_COMPOSITION ();
2527 }
2528 else /* COMPOSING_COMPONENT_RULE */
2529 {
2530 int rule;
2531
2532 DECODE_EMACS_MULE_COMPOSITION_RULE_21 (c, rule);
2533 if (rule < 0)
2534 goto invalid_code;
2535 *charbuf++ = -2;
2536 *charbuf++ = rule;
2537 cmp_status->length += 2;
2538 cmp_status->ncomps--;
2539 if (cmp_status->ncomps > 0)
2540 cmp_status->state = COMPOSING_COMPONENT_CHAR;
2541 else
2542 EMACS_MULE_MAYBE_FINISH_COMPOSITION ();
2543 }
2544 continue;
2545
2546 invalid_code:
2547 EMACS_MULE_MAYBE_FINISH_COMPOSITION ();
2548 src = src_base;
2549 consumed_chars = consumed_chars_base;
2550 ONE_MORE_BYTE (c);
2551 *charbuf++ = ASCII_CHAR_P (c) ? c : BYTE8_TO_CHAR (c);
2552 char_offset++;
2553 }
2554
2555 no_more_source:
2556 if (cmp_status->state != COMPOSING_NO)
2557 {
2558 if (coding->mode & CODING_MODE_LAST_BLOCK)
2559 EMACS_MULE_MAYBE_FINISH_COMPOSITION ();
2560 else
2561 {
2562 int i;
2563
2564 charbuf -= cmp_status->length;
2565 for (i = 0; i < cmp_status->length; i++)
2566 cmp_status->carryover[i] = charbuf[i];
2567 }
2568 }
2569 if (last_id != charset_ascii)
2570 ADD_CHARSET_DATA (charbuf, char_offset - last_offset, last_id);
2571 coding->consumed_char += consumed_chars_base;
2572 coding->consumed = src_base - coding->source;
2573 coding->charbuf_used = charbuf - coding->charbuf;
2574 }
2575
2576
2577 #define EMACS_MULE_LEADING_CODES(id, codes) \
2578 do { \
2579 if (id < 0xA0) \
2580 codes[0] = id, codes[1] = 0; \
2581 else if (id < 0xE0) \
2582 codes[0] = 0x9A, codes[1] = id; \
2583 else if (id < 0xF0) \
2584 codes[0] = 0x9B, codes[1] = id; \
2585 else if (id < 0xF5) \
2586 codes[0] = 0x9C, codes[1] = id; \
2587 else \
2588 codes[0] = 0x9D, codes[1] = id; \
2589 } while (0);
2590
2591
2592 static bool
2593 encode_coding_emacs_mule (struct coding_system *coding)
2594 {
2595 bool multibytep = coding->dst_multibyte;
2596 int *charbuf = coding->charbuf;
2597 int *charbuf_end = charbuf + coding->charbuf_used;
2598 unsigned char *dst = coding->destination + coding->produced;
2599 unsigned char *dst_end = coding->destination + coding->dst_bytes;
2600 int safe_room = 8;
2601 ptrdiff_t produced_chars = 0;
2602 Lisp_Object attrs, charset_list;
2603 int c;
2604 int preferred_charset_id = -1;
2605
2606 CODING_GET_INFO (coding, attrs, charset_list);
2607 if (! EQ (charset_list, Vemacs_mule_charset_list))
2608 {
2609 charset_list = Vemacs_mule_charset_list;
2610 ASET (attrs, coding_attr_charset_list, charset_list);
2611 }
2612
2613 while (charbuf < charbuf_end)
2614 {
2615 ASSURE_DESTINATION (safe_room);
2616 c = *charbuf++;
2617
2618 if (c < 0)
2619 {
2620 /* Handle an annotation. */
2621 switch (*charbuf)
2622 {
2623 case CODING_ANNOTATE_COMPOSITION_MASK:
2624 /* Not yet implemented. */
2625 break;
2626 case CODING_ANNOTATE_CHARSET_MASK:
2627 preferred_charset_id = charbuf[3];
2628 if (preferred_charset_id >= 0
2629 && NILP (Fmemq (make_number (preferred_charset_id),
2630 charset_list)))
2631 preferred_charset_id = -1;
2632 break;
2633 default:
2634 emacs_abort ();
2635 }
2636 charbuf += -c - 1;
2637 continue;
2638 }
2639
2640 if (ASCII_CHAR_P (c))
2641 EMIT_ONE_ASCII_BYTE (c);
2642 else if (CHAR_BYTE8_P (c))
2643 {
2644 c = CHAR_TO_BYTE8 (c);
2645 EMIT_ONE_BYTE (c);
2646 }
2647 else
2648 {
2649 struct charset *charset;
2650 unsigned code;
2651 int dimension;
2652 int emacs_mule_id;
2653 unsigned char leading_codes[2];
2654
2655 if (preferred_charset_id >= 0)
2656 {
2657 bool result;
2658
2659 charset = CHARSET_FROM_ID (preferred_charset_id);
2660 CODING_CHAR_CHARSET_P (coding, dst, dst_end, c, charset, result);
2661 if (result)
2662 code = ENCODE_CHAR (charset, c);
2663 else
2664 CODING_CHAR_CHARSET (coding, dst, dst_end, c, charset_list,
2665 &code, charset);
2666 }
2667 else
2668 CODING_CHAR_CHARSET (coding, dst, dst_end, c, charset_list,
2669 &code, charset);
2670 if (! charset)
2671 {
2672 c = coding->default_char;
2673 if (ASCII_CHAR_P (c))
2674 {
2675 EMIT_ONE_ASCII_BYTE (c);
2676 continue;
2677 }
2678 CODING_CHAR_CHARSET (coding, dst, dst_end, c, charset_list,
2679 &code, charset);
2680 }
2681 dimension = CHARSET_DIMENSION (charset);
2682 emacs_mule_id = CHARSET_EMACS_MULE_ID (charset);
2683 EMACS_MULE_LEADING_CODES (emacs_mule_id, leading_codes);
2684 EMIT_ONE_BYTE (leading_codes[0]);
2685 if (leading_codes[1])
2686 EMIT_ONE_BYTE (leading_codes[1]);
2687 if (dimension == 1)
2688 EMIT_ONE_BYTE (code | 0x80);
2689 else
2690 {
2691 code |= 0x8080;
2692 EMIT_ONE_BYTE (code >> 8);
2693 EMIT_ONE_BYTE (code & 0xFF);
2694 }
2695 }
2696 }
2697 record_conversion_result (coding, CODING_RESULT_SUCCESS);
2698 coding->produced_char += produced_chars;
2699 coding->produced = dst - coding->destination;
2700 return 0;
2701 }
2702
2703 \f
2704 /*** 7. ISO2022 handlers ***/
2705
2706 /* The following note describes the coding system ISO2022 briefly.
2707 Since the intention of this note is to help understand the
2708 functions in this file, some parts are NOT ACCURATE or are OVERLY
2709 SIMPLIFIED. For thorough understanding, please refer to the
2710 original document of ISO2022. This is equivalent to the standard
2711 ECMA-35, obtainable from <URL:http://www.ecma.ch/> (*).
2712
2713 ISO2022 provides many mechanisms to encode several character sets
2714 in 7-bit and 8-bit environments. For 7-bit environments, all text
2715 is encoded using bytes less than 128. This may make the encoded
2716 text a little bit longer, but the text passes more easily through
2717 several types of gateway, some of which strip off the MSB (Most
2718 Significant Bit).
2719
2720 There are two kinds of character sets: control character sets and
2721 graphic character sets. The former contain control characters such
2722 as `newline' and `escape' to provide control functions (control
2723 functions are also provided by escape sequences). The latter
2724 contain graphic characters such as 'A' and '-'. Emacs recognizes
2725 two control character sets and many graphic character sets.
2726
2727 Graphic character sets are classified into one of the following
2728 four classes, according to the number of bytes (DIMENSION) and
2729 number of characters in one dimension (CHARS) of the set:
2730 - DIMENSION1_CHARS94
2731 - DIMENSION1_CHARS96
2732 - DIMENSION2_CHARS94
2733 - DIMENSION2_CHARS96
2734
2735 In addition, each character set is assigned an identification tag,
2736 unique for each set, called the "final character" (denoted as <F>
2737 hereafter). The <F> of each character set is decided by ECMA(*)
2738 when it is registered in ISO. The code range of <F> is 0x30..0x7F
2739 (0x30..0x3F are for private use only).
2740
2741 Note (*): ECMA = European Computer Manufacturers Association
2742
2743 Here are examples of graphic character sets [NAME(<F>)]:
2744 o DIMENSION1_CHARS94 -- ASCII('B'), right-half-of-JISX0201('I'), ...
2745 o DIMENSION1_CHARS96 -- right-half-of-ISO8859-1('A'), ...
2746 o DIMENSION2_CHARS94 -- GB2312('A'), JISX0208('B'), ...
2747 o DIMENSION2_CHARS96 -- none for the moment
2748
2749 A code area (1 byte=8 bits) is divided into 4 areas, C0, GL, C1, and GR.
2750 C0 [0x00..0x1F] -- control character plane 0
2751 GL [0x20..0x7F] -- graphic character plane 0
2752 C1 [0x80..0x9F] -- control character plane 1
2753 GR [0xA0..0xFF] -- graphic character plane 1
2754
2755 A control character set is directly designated and invoked to C0 or
2756 C1 by an escape sequence. The most common case is that:
2757 - ISO646's control character set is designated/invoked to C0, and
2758 - ISO6429's control character set is designated/invoked to C1,
2759 and usually these designations/invocations are omitted in encoded
2760 text. In a 7-bit environment, only C0 can be used, and a control
2761 character for C1 is encoded by an appropriate escape sequence to
2762 fit into the environment. All control characters for C1 are
2763 defined to have corresponding escape sequences.
2764
2765 A graphic character set is at first designated to one of four
2766 graphic registers (G0 through G3), then these graphic registers are
2767 invoked to GL or GR. These designations and invocations can be
2768 done independently. The most common case is that G0 is invoked to
2769 GL, G1 is invoked to GR, and ASCII is designated to G0. Usually
2770 these invocations and designations are omitted in encoded text.
2771 In a 7-bit environment, only GL can be used.
2772
2773 When a graphic character set of CHARS94 is invoked to GL, codes
2774 0x20 and 0x7F of the GL area work as control characters SPACE and
2775 DEL respectively, and codes 0xA0 and 0xFF of the GR area should not
2776 be used.
2777
2778 There are two ways of invocation: locking-shift and single-shift.
2779 With locking-shift, the invocation lasts until the next different
2780 invocation, whereas with single-shift, the invocation affects the
2781 following character only and doesn't affect the locking-shift
2782 state. Invocations are done by the following control characters or
2783 escape sequences:
2784
2785 ----------------------------------------------------------------------
2786 abbrev function cntrl escape seq description
2787 ----------------------------------------------------------------------
2788 SI/LS0 (shift-in) 0x0F none invoke G0 into GL
2789 SO/LS1 (shift-out) 0x0E none invoke G1 into GL
2790 LS2 (locking-shift-2) none ESC 'n' invoke G2 into GL
2791 LS3 (locking-shift-3) none ESC 'o' invoke G3 into GL
2792 LS1R (locking-shift-1 right) none ESC '~' invoke G1 into GR (*)
2793 LS2R (locking-shift-2 right) none ESC '}' invoke G2 into GR (*)
2794 LS3R (locking-shift 3 right) none ESC '|' invoke G3 into GR (*)
2795 SS2 (single-shift-2) 0x8E ESC 'N' invoke G2 for one char
2796 SS3 (single-shift-3) 0x8F ESC 'O' invoke G3 for one char
2797 ----------------------------------------------------------------------
2798 (*) These are not used by any known coding system.
2799
2800 Control characters for these functions are defined by macros
2801 ISO_CODE_XXX in `coding.h'.
2802
2803 Designations are done by the following escape sequences:
2804 ----------------------------------------------------------------------
2805 escape sequence description
2806 ----------------------------------------------------------------------
2807 ESC '(' <F> designate DIMENSION1_CHARS94<F> to G0
2808 ESC ')' <F> designate DIMENSION1_CHARS94<F> to G1
2809 ESC '*' <F> designate DIMENSION1_CHARS94<F> to G2
2810 ESC '+' <F> designate DIMENSION1_CHARS94<F> to G3
2811 ESC ',' <F> designate DIMENSION1_CHARS96<F> to G0 (*)
2812 ESC '-' <F> designate DIMENSION1_CHARS96<F> to G1
2813 ESC '.' <F> designate DIMENSION1_CHARS96<F> to G2
2814 ESC '/' <F> designate DIMENSION1_CHARS96<F> to G3
2815 ESC '$' '(' <F> designate DIMENSION2_CHARS94<F> to G0 (**)
2816 ESC '$' ')' <F> designate DIMENSION2_CHARS94<F> to G1
2817 ESC '$' '*' <F> designate DIMENSION2_CHARS94<F> to G2
2818 ESC '$' '+' <F> designate DIMENSION2_CHARS94<F> to G3
2819 ESC '$' ',' <F> designate DIMENSION2_CHARS96<F> to G0 (*)
2820 ESC '$' '-' <F> designate DIMENSION2_CHARS96<F> to G1
2821 ESC '$' '.' <F> designate DIMENSION2_CHARS96<F> to G2
2822 ESC '$' '/' <F> designate DIMENSION2_CHARS96<F> to G3
2823 ----------------------------------------------------------------------
2824
2825 In this list, "DIMENSION1_CHARS94<F>" means a graphic character set
2826 of dimension 1, chars 94, and final character <F>, etc...
2827
2828 Note (*): Although these designations are not allowed in ISO2022,
2829 Emacs accepts them on decoding, and produces them on encoding
2830 CHARS96 character sets in a coding system which is characterized as
2831 7-bit environment, non-locking-shift, and non-single-shift.
2832
2833 Note (**): If <F> is '@', 'A', or 'B', the intermediate character
2834 '(' must be omitted. We refer to this as "short-form" hereafter.
2835
2836 Now you may notice that there are a lot of ways of encoding the
2837 same multilingual text in ISO2022. Actually, there exist many
2838 coding systems such as Compound Text (used in X11's inter client
2839 communication, ISO-2022-JP (used in Japanese Internet), ISO-2022-KR
2840 (used in Korean Internet), EUC (Extended UNIX Code, used in Asian
2841 localized platforms), and all of these are variants of ISO2022.
2842
2843 In addition to the above, Emacs handles two more kinds of escape
2844 sequences: ISO6429's direction specification and Emacs' private
2845 sequence for specifying character composition.
2846
2847 ISO6429's direction specification takes the following form:
2848 o CSI ']' -- end of the current direction
2849 o CSI '0' ']' -- end of the current direction
2850 o CSI '1' ']' -- start of left-to-right text
2851 o CSI '2' ']' -- start of right-to-left text
2852 The control character CSI (0x9B: control sequence introducer) is
2853 abbreviated to the escape sequence ESC '[' in a 7-bit environment.
2854
2855 Character composition specification takes the following form:
2856 o ESC '0' -- start relative composition
2857 o ESC '1' -- end composition
2858 o ESC '2' -- start rule-base composition (*)
2859 o ESC '3' -- start relative composition with alternate chars (**)
2860 o ESC '4' -- start rule-base composition with alternate chars (**)
2861 Since these are not standard escape sequences of any ISO standard,
2862 the use of them with these meanings is restricted to Emacs only.
2863
2864 (*) This form is used only in Emacs 20.7 and older versions,
2865 but newer versions can safely decode it.
2866 (**) This form is used only in Emacs 21.1 and newer versions,
2867 and older versions can't decode it.
2868
2869 Here's a list of example usages of these composition escape
2870 sequences (categorized by `enum composition_method').
2871
2872 COMPOSITION_RELATIVE:
2873 ESC 0 CHAR [ CHAR ] ESC 1
2874 COMPOSITION_WITH_RULE:
2875 ESC 2 CHAR [ RULE CHAR ] ESC 1
2876 COMPOSITION_WITH_ALTCHARS:
2877 ESC 3 ALTCHAR [ ALTCHAR ] ESC 0 CHAR [ CHAR ] ESC 1
2878 COMPOSITION_WITH_RULE_ALTCHARS:
2879 ESC 4 ALTCHAR [ RULE ALTCHAR ] ESC 0 CHAR [ CHAR ] ESC 1 */
2880
2881 static enum iso_code_class_type iso_code_class[256];
2882
2883 #define SAFE_CHARSET_P(coding, id) \
2884 ((id) <= (coding)->max_charset_id \
2885 && (coding)->safe_charsets[id] != 255)
2886
2887 static void
2888 setup_iso_safe_charsets (Lisp_Object attrs)
2889 {
2890 Lisp_Object charset_list, safe_charsets;
2891 Lisp_Object request;
2892 Lisp_Object reg_usage;
2893 Lisp_Object tail;
2894 EMACS_INT reg94, reg96;
2895 int flags = XINT (AREF (attrs, coding_attr_iso_flags));
2896 int max_charset_id;
2897
2898 charset_list = CODING_ATTR_CHARSET_LIST (attrs);
2899 if ((flags & CODING_ISO_FLAG_FULL_SUPPORT)
2900 && ! EQ (charset_list, Viso_2022_charset_list))
2901 {
2902 charset_list = Viso_2022_charset_list;
2903 ASET (attrs, coding_attr_charset_list, charset_list);
2904 ASET (attrs, coding_attr_safe_charsets, Qnil);
2905 }
2906
2907 if (STRINGP (AREF (attrs, coding_attr_safe_charsets)))
2908 return;
2909
2910 max_charset_id = 0;
2911 for (tail = charset_list; CONSP (tail); tail = XCDR (tail))
2912 {
2913 int id = XINT (XCAR (tail));
2914 if (max_charset_id < id)
2915 max_charset_id = id;
2916 }
2917
2918 safe_charsets = make_uninit_string (max_charset_id + 1);
2919 memset (SDATA (safe_charsets), 255, max_charset_id + 1);
2920 request = AREF (attrs, coding_attr_iso_request);
2921 reg_usage = AREF (attrs, coding_attr_iso_usage);
2922 reg94 = XINT (XCAR (reg_usage));
2923 reg96 = XINT (XCDR (reg_usage));
2924
2925 for (tail = charset_list; CONSP (tail); tail = XCDR (tail))
2926 {
2927 Lisp_Object id;
2928 Lisp_Object reg;
2929 struct charset *charset;
2930
2931 id = XCAR (tail);
2932 charset = CHARSET_FROM_ID (XINT (id));
2933 reg = Fcdr (Fassq (id, request));
2934 if (! NILP (reg))
2935 SSET (safe_charsets, XINT (id), XINT (reg));
2936 else if (charset->iso_chars_96)
2937 {
2938 if (reg96 < 4)
2939 SSET (safe_charsets, XINT (id), reg96);
2940 }
2941 else
2942 {
2943 if (reg94 < 4)
2944 SSET (safe_charsets, XINT (id), reg94);
2945 }
2946 }
2947 ASET (attrs, coding_attr_safe_charsets, safe_charsets);
2948 }
2949
2950
2951 /* See the above "GENERAL NOTES on `detect_coding_XXX ()' functions".
2952 Return true if a text is encoded in one of ISO-2022 based coding
2953 systems. */
2954
2955 static bool
2956 detect_coding_iso_2022 (struct coding_system *coding,
2957 struct coding_detection_info *detect_info)
2958 {
2959 const unsigned char *src = coding->source, *src_base = src;
2960 const unsigned char *src_end = coding->source + coding->src_bytes;
2961 bool multibytep = coding->src_multibyte;
2962 bool single_shifting = 0;
2963 int id;
2964 int c, c1;
2965 ptrdiff_t consumed_chars = 0;
2966 int i;
2967 int rejected = 0;
2968 int found = 0;
2969 int composition_count = -1;
2970
2971 detect_info->checked |= CATEGORY_MASK_ISO;
2972
2973 for (i = coding_category_iso_7; i <= coding_category_iso_8_else; i++)
2974 {
2975 struct coding_system *this = &(coding_categories[i]);
2976 Lisp_Object attrs, val;
2977
2978 if (this->id < 0)
2979 continue;
2980 attrs = CODING_ID_ATTRS (this->id);
2981 if (CODING_ISO_FLAGS (this) & CODING_ISO_FLAG_FULL_SUPPORT
2982 && ! EQ (CODING_ATTR_CHARSET_LIST (attrs), Viso_2022_charset_list))
2983 setup_iso_safe_charsets (attrs);
2984 val = CODING_ATTR_SAFE_CHARSETS (attrs);
2985 this->max_charset_id = SCHARS (val) - 1;
2986 this->safe_charsets = SDATA (val);
2987 }
2988
2989 /* A coding system of this category is always ASCII compatible. */
2990 src += coding->head_ascii;
2991
2992 while (rejected != CATEGORY_MASK_ISO)
2993 {
2994 src_base = src;
2995 ONE_MORE_BYTE (c);
2996 switch (c)
2997 {
2998 case ISO_CODE_ESC:
2999 if (inhibit_iso_escape_detection)
3000 break;
3001 single_shifting = 0;
3002 ONE_MORE_BYTE (c);
3003 if (c == 'N' || c == 'O')
3004 {
3005 /* ESC <Fe> for SS2 or SS3. */
3006 single_shifting = 1;
3007 rejected |= CATEGORY_MASK_ISO_7BIT | CATEGORY_MASK_ISO_8BIT;
3008 }
3009 else if (c == '1')
3010 {
3011 /* End of composition. */
3012 if (composition_count < 0
3013 || composition_count > MAX_COMPOSITION_COMPONENTS)
3014 /* Invalid */
3015 break;
3016 composition_count = -1;
3017 found |= CATEGORY_MASK_ISO;
3018 }
3019 else if (c >= '0' && c <= '4')
3020 {
3021 /* ESC <Fp> for start/end composition. */
3022 composition_count = 0;
3023 }
3024 else
3025 {
3026 if (c >= '(' && c <= '/')
3027 {
3028 /* Designation sequence for a charset of dimension 1. */
3029 ONE_MORE_BYTE (c1);
3030 if (c1 < ' ' || c1 >= 0x80
3031 || (id = iso_charset_table[0][c >= ','][c1]) < 0)
3032 {
3033 /* Invalid designation sequence. Just ignore. */
3034 if (c1 >= 0x80)
3035 rejected |= (CATEGORY_MASK_ISO_7BIT
3036 | CATEGORY_MASK_ISO_7_ELSE);
3037 break;
3038 }
3039 }
3040 else if (c == '$')
3041 {
3042 /* Designation sequence for a charset of dimension 2. */
3043 ONE_MORE_BYTE (c);
3044 if (c >= '@' && c <= 'B')
3045 /* Designation for JISX0208.1978, GB2312, or JISX0208. */
3046 id = iso_charset_table[1][0][c];
3047 else if (c >= '(' && c <= '/')
3048 {
3049 ONE_MORE_BYTE (c1);
3050 if (c1 < ' ' || c1 >= 0x80
3051 || (id = iso_charset_table[1][c >= ','][c1]) < 0)
3052 {
3053 /* Invalid designation sequence. Just ignore. */
3054 if (c1 >= 0x80)
3055 rejected |= (CATEGORY_MASK_ISO_7BIT
3056 | CATEGORY_MASK_ISO_7_ELSE);
3057 break;
3058 }
3059 }
3060 else
3061 {
3062 /* Invalid designation sequence. Just ignore it. */
3063 if (c >= 0x80)
3064 rejected |= (CATEGORY_MASK_ISO_7BIT
3065 | CATEGORY_MASK_ISO_7_ELSE);
3066 break;
3067 }
3068 }
3069 else
3070 {
3071 /* Invalid escape sequence. Just ignore it. */
3072 if (c >= 0x80)
3073 rejected |= (CATEGORY_MASK_ISO_7BIT
3074 | CATEGORY_MASK_ISO_7_ELSE);
3075 break;
3076 }
3077
3078 /* We found a valid designation sequence for CHARSET. */
3079 rejected |= CATEGORY_MASK_ISO_8BIT;
3080 if (SAFE_CHARSET_P (&coding_categories[coding_category_iso_7],
3081 id))
3082 found |= CATEGORY_MASK_ISO_7;
3083 else
3084 rejected |= CATEGORY_MASK_ISO_7;
3085 if (SAFE_CHARSET_P (&coding_categories[coding_category_iso_7_tight],
3086 id))
3087 found |= CATEGORY_MASK_ISO_7_TIGHT;
3088 else
3089 rejected |= CATEGORY_MASK_ISO_7_TIGHT;
3090 if (SAFE_CHARSET_P (&coding_categories[coding_category_iso_7_else],
3091 id))
3092 found |= CATEGORY_MASK_ISO_7_ELSE;
3093 else
3094 rejected |= CATEGORY_MASK_ISO_7_ELSE;
3095 if (SAFE_CHARSET_P (&coding_categories[coding_category_iso_8_else],
3096 id))
3097 found |= CATEGORY_MASK_ISO_8_ELSE;
3098 else
3099 rejected |= CATEGORY_MASK_ISO_8_ELSE;
3100 }
3101 break;
3102
3103 case ISO_CODE_SO:
3104 case ISO_CODE_SI:
3105 /* Locking shift out/in. */
3106 if (inhibit_iso_escape_detection)
3107 break;
3108 single_shifting = 0;
3109 rejected |= CATEGORY_MASK_ISO_7BIT | CATEGORY_MASK_ISO_8BIT;
3110 break;
3111
3112 case ISO_CODE_CSI:
3113 /* Control sequence introducer. */
3114 single_shifting = 0;
3115 rejected |= CATEGORY_MASK_ISO_7BIT | CATEGORY_MASK_ISO_7_ELSE;
3116 found |= CATEGORY_MASK_ISO_8_ELSE;
3117 goto check_extra_latin;
3118
3119 case ISO_CODE_SS2:
3120 case ISO_CODE_SS3:
3121 /* Single shift. */
3122 if (inhibit_iso_escape_detection)
3123 break;
3124 single_shifting = 0;
3125 rejected |= CATEGORY_MASK_ISO_7BIT | CATEGORY_MASK_ISO_7_ELSE;
3126 if (CODING_ISO_FLAGS (&coding_categories[coding_category_iso_8_1])
3127 & CODING_ISO_FLAG_SINGLE_SHIFT)
3128 {
3129 found |= CATEGORY_MASK_ISO_8_1;
3130 single_shifting = 1;
3131 }
3132 if (CODING_ISO_FLAGS (&coding_categories[coding_category_iso_8_2])
3133 & CODING_ISO_FLAG_SINGLE_SHIFT)
3134 {
3135 found |= CATEGORY_MASK_ISO_8_2;
3136 single_shifting = 1;
3137 }
3138 if (single_shifting)
3139 break;
3140 goto check_extra_latin;
3141
3142 default:
3143 if (c < 0)
3144 continue;
3145 if (c < 0x80)
3146 {
3147 if (composition_count >= 0)
3148 composition_count++;
3149 single_shifting = 0;
3150 break;
3151 }
3152 rejected |= CATEGORY_MASK_ISO_7BIT | CATEGORY_MASK_ISO_7_ELSE;
3153 if (c >= 0xA0)
3154 {
3155 found |= CATEGORY_MASK_ISO_8_1;
3156 /* Check the length of succeeding codes of the range
3157 0xA0..0FF. If the byte length is even, we include
3158 CATEGORY_MASK_ISO_8_2 in `found'. We can check this
3159 only when we are not single shifting. */
3160 if (! single_shifting
3161 && ! (rejected & CATEGORY_MASK_ISO_8_2))
3162 {
3163 ptrdiff_t len = 1;
3164 while (src < src_end)
3165 {
3166 src_base = src;
3167 ONE_MORE_BYTE (c);
3168 if (c < 0xA0)
3169 {
3170 src = src_base;
3171 break;
3172 }
3173 len++;
3174 }
3175
3176 if (len & 1 && src < src_end)
3177 {
3178 rejected |= CATEGORY_MASK_ISO_8_2;
3179 if (composition_count >= 0)
3180 composition_count += len;
3181 }
3182 else
3183 {
3184 found |= CATEGORY_MASK_ISO_8_2;
3185 if (composition_count >= 0)
3186 composition_count += len / 2;
3187 }
3188 }
3189 break;
3190 }
3191 check_extra_latin:
3192 if (! VECTORP (Vlatin_extra_code_table)
3193 || NILP (AREF (Vlatin_extra_code_table, c)))
3194 {
3195 rejected = CATEGORY_MASK_ISO;
3196 break;
3197 }
3198 if (CODING_ISO_FLAGS (&coding_categories[coding_category_iso_8_1])
3199 & CODING_ISO_FLAG_LATIN_EXTRA)
3200 found |= CATEGORY_MASK_ISO_8_1;
3201 else
3202 rejected |= CATEGORY_MASK_ISO_8_1;
3203 rejected |= CATEGORY_MASK_ISO_8_2;
3204 break;
3205 }
3206 }
3207 detect_info->rejected |= CATEGORY_MASK_ISO;
3208 return 0;
3209
3210 no_more_source:
3211 detect_info->rejected |= rejected;
3212 detect_info->found |= (found & ~rejected);
3213 return 1;
3214 }
3215
3216
3217 /* Set designation state into CODING. Set CHARS_96 to -1 if the
3218 escape sequence should be kept. */
3219 #define DECODE_DESIGNATION(reg, dim, chars_96, final) \
3220 do { \
3221 int id, prev; \
3222 \
3223 if (final < '0' || final >= 128 \
3224 || ((id = ISO_CHARSET_TABLE (dim, chars_96, final)) < 0) \
3225 || !SAFE_CHARSET_P (coding, id)) \
3226 { \
3227 CODING_ISO_DESIGNATION (coding, reg) = -2; \
3228 chars_96 = -1; \
3229 break; \
3230 } \
3231 prev = CODING_ISO_DESIGNATION (coding, reg); \
3232 if (id == charset_jisx0201_roman) \
3233 { \
3234 if (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_USE_ROMAN) \
3235 id = charset_ascii; \
3236 } \
3237 else if (id == charset_jisx0208_1978) \
3238 { \
3239 if (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_USE_OLDJIS) \
3240 id = charset_jisx0208; \
3241 } \
3242 CODING_ISO_DESIGNATION (coding, reg) = id; \
3243 /* If there was an invalid designation to REG previously, and this \
3244 designation is ASCII to REG, we should keep this designation \
3245 sequence. */ \
3246 if (prev == -2 && id == charset_ascii) \
3247 chars_96 = -1; \
3248 } while (0)
3249
3250
3251 /* Handle these composition sequence (ALT: alternate char):
3252
3253 (1) relative composition: ESC 0 CHAR ... ESC 1
3254 (2) rulebase composition: ESC 2 CHAR RULE CHAR RULE ... CHAR ESC 1
3255 (3) altchar composition: ESC 3 ALT ... ALT ESC 0 CHAR ... ESC 1
3256 (4) alt&rule composition: ESC 4 ALT RULE ... ALT ESC 0 CHAR ... ESC 1
3257
3258 When the start sequence (ESC 0/2/3/4) is found, this annotation
3259 header is produced.
3260
3261 [ -LENGTH(==-5) CODING_ANNOTATE_COMPOSITION_MASK NCHARS(==0) 0 METHOD ]
3262
3263 Then, upon reading CHAR or RULE (one or two bytes), these codes are
3264 produced until the end sequence (ESC 1) is found:
3265
3266 (1) CHAR ... CHAR
3267 (2) CHAR -2 DECODED-RULE CHAR -2 DECODED-RULE ... CHAR
3268 (3) ALT ... ALT -1 -1 CHAR ... CHAR
3269 (4) ALT -2 DECODED-RULE ALT -2 DECODED-RULE ... ALT -1 -1 CHAR ... CHAR
3270
3271 When the end sequence (ESC 1) is found, LENGTH and NCHARS in the
3272 annotation header is updated as below:
3273
3274 (1) LENGTH: unchanged, NCHARS: number of CHARs
3275 (2) LENGTH: unchanged, NCHARS: number of CHARs
3276 (3) LENGTH: += number of ALTs + 2, NCHARS: number of CHARs
3277 (4) LENGTH: += number of ALTs * 3, NCHARS: number of CHARs
3278
3279 If an error is found while composing, the annotation header is
3280 changed to:
3281
3282 [ ESC '0'/'2'/'3'/'4' -2 0 ]
3283
3284 and the sequence [ -2 DECODED-RULE ] is changed to the original
3285 byte sequence as below:
3286 o the original byte sequence is B: [ B -1 ]
3287 o the original byte sequence is B1 B2: [ B1 B2 ]
3288 and the sequence [ -1 -1 ] is changed to the original byte
3289 sequence:
3290 [ ESC '0' ]
3291 */
3292
3293 /* Decode a composition rule C1 and maybe one more byte from the
3294 source, and set RULE to the encoded composition rule. If the rule
3295 is invalid, goto invalid_code. */
3296
3297 #define DECODE_COMPOSITION_RULE(rule) \
3298 do { \
3299 rule = c1 - 32; \
3300 if (rule < 0) \
3301 goto invalid_code; \
3302 if (rule < 81) /* old format (before ver.21) */ \
3303 { \
3304 int gref = (rule) / 9; \
3305 int nref = (rule) % 9; \
3306 if (gref == 4) gref = 10; \
3307 if (nref == 4) nref = 10; \
3308 rule = COMPOSITION_ENCODE_RULE (gref, nref); \
3309 } \
3310 else /* new format (after ver.21) */ \
3311 { \
3312 int b; \
3313 \
3314 ONE_MORE_BYTE (b); \
3315 if (! COMPOSITION_ENCODE_RULE_VALID (rule - 81, b - 32)) \
3316 goto invalid_code; \
3317 rule = COMPOSITION_ENCODE_RULE (rule - 81, b - 32); \
3318 rule += 0x100; /* Distinguish it from the old format. */ \
3319 } \
3320 } while (0)
3321
3322 #define ENCODE_COMPOSITION_RULE(rule) \
3323 do { \
3324 int gref = (rule % 0x100) / 12, nref = (rule % 0x100) % 12; \
3325 \
3326 if (rule < 0x100) /* old format */ \
3327 { \
3328 if (gref == 10) gref = 4; \
3329 if (nref == 10) nref = 4; \
3330 charbuf[idx] = 32 + gref * 9 + nref; \
3331 charbuf[idx + 1] = -1; \
3332 new_chars++; \
3333 } \
3334 else /* new format */ \
3335 { \
3336 charbuf[idx] = 32 + 81 + gref; \
3337 charbuf[idx + 1] = 32 + nref; \
3338 new_chars += 2; \
3339 } \
3340 } while (0)
3341
3342 /* Finish the current composition as invalid. */
3343
3344 static int
3345 finish_composition (int *charbuf, struct composition_status *cmp_status)
3346 {
3347 int idx = - cmp_status->length;
3348 int new_chars;
3349
3350 /* Recover the original ESC sequence */
3351 charbuf[idx++] = ISO_CODE_ESC;
3352 charbuf[idx++] = (cmp_status->method == COMPOSITION_RELATIVE ? '0'
3353 : cmp_status->method == COMPOSITION_WITH_RULE ? '2'
3354 : cmp_status->method == COMPOSITION_WITH_ALTCHARS ? '3'
3355 /* cmp_status->method == COMPOSITION_WITH_RULE_ALTCHARS */
3356 : '4');
3357 charbuf[idx++] = -2;
3358 charbuf[idx++] = 0;
3359 charbuf[idx++] = -1;
3360 new_chars = cmp_status->nchars;
3361 if (cmp_status->method >= COMPOSITION_WITH_RULE)
3362 for (; idx < 0; idx++)
3363 {
3364 int elt = charbuf[idx];
3365
3366 if (elt == -2)
3367 {
3368 ENCODE_COMPOSITION_RULE (charbuf[idx + 1]);
3369 idx++;
3370 }
3371 else if (elt == -1)
3372 {
3373 charbuf[idx++] = ISO_CODE_ESC;
3374 charbuf[idx] = '0';
3375 new_chars += 2;
3376 }
3377 }
3378 cmp_status->state = COMPOSING_NO;
3379 return new_chars;
3380 }
3381
3382 /* If characters are under composition, finish the composition. */
3383 #define MAYBE_FINISH_COMPOSITION() \
3384 do { \
3385 if (cmp_status->state != COMPOSING_NO) \
3386 char_offset += finish_composition (charbuf, cmp_status); \
3387 } while (0)
3388
3389 /* Handle composition start sequence ESC 0, ESC 2, ESC 3, or ESC 4.
3390
3391 ESC 0 : relative composition : ESC 0 CHAR ... ESC 1
3392 ESC 2 : rulebase composition : ESC 2 CHAR RULE CHAR RULE ... CHAR ESC 1
3393 ESC 3 : altchar composition : ESC 3 CHAR ... ESC 0 CHAR ... ESC 1
3394 ESC 4 : alt&rule composition : ESC 4 CHAR RULE ... CHAR ESC 0 CHAR ... ESC 1
3395
3396 Produce this annotation sequence now:
3397
3398 [ -LENGTH(==-4) CODING_ANNOTATE_COMPOSITION_MASK NCHARS(==0) METHOD ]
3399 */
3400
3401 #define DECODE_COMPOSITION_START(c1) \
3402 do { \
3403 if (c1 == '0' \
3404 && ((cmp_status->state == COMPOSING_COMPONENT_CHAR \
3405 && cmp_status->method == COMPOSITION_WITH_ALTCHARS) \
3406 || (cmp_status->state == COMPOSING_COMPONENT_RULE \
3407 && cmp_status->method == COMPOSITION_WITH_RULE_ALTCHARS))) \
3408 { \
3409 *charbuf++ = -1; \
3410 *charbuf++= -1; \
3411 cmp_status->state = COMPOSING_CHAR; \
3412 cmp_status->length += 2; \
3413 } \
3414 else \
3415 { \
3416 MAYBE_FINISH_COMPOSITION (); \
3417 cmp_status->method = (c1 == '0' ? COMPOSITION_RELATIVE \
3418 : c1 == '2' ? COMPOSITION_WITH_RULE \
3419 : c1 == '3' ? COMPOSITION_WITH_ALTCHARS \
3420 : COMPOSITION_WITH_RULE_ALTCHARS); \
3421 cmp_status->state \
3422 = (c1 <= '2' ? COMPOSING_CHAR : COMPOSING_COMPONENT_CHAR); \
3423 ADD_COMPOSITION_DATA (charbuf, 0, 0, cmp_status->method); \
3424 cmp_status->length = MAX_ANNOTATION_LENGTH; \
3425 cmp_status->nchars = cmp_status->ncomps = 0; \
3426 coding->annotated = 1; \
3427 } \
3428 } while (0)
3429
3430
3431 /* Handle composition end sequence ESC 1. */
3432
3433 #define DECODE_COMPOSITION_END() \
3434 do { \
3435 if (cmp_status->nchars == 0 \
3436 || ((cmp_status->state == COMPOSING_CHAR) \
3437 == (cmp_status->method == COMPOSITION_WITH_RULE))) \
3438 { \
3439 MAYBE_FINISH_COMPOSITION (); \
3440 goto invalid_code; \
3441 } \
3442 if (cmp_status->method == COMPOSITION_WITH_ALTCHARS) \
3443 charbuf[- cmp_status->length] -= cmp_status->ncomps + 2; \
3444 else if (cmp_status->method == COMPOSITION_WITH_RULE_ALTCHARS) \
3445 charbuf[- cmp_status->length] -= cmp_status->ncomps * 3; \
3446 charbuf[- cmp_status->length + 2] = cmp_status->nchars; \
3447 char_offset += cmp_status->nchars; \
3448 cmp_status->state = COMPOSING_NO; \
3449 } while (0)
3450
3451 /* Store a composition rule RULE in charbuf, and update cmp_status. */
3452
3453 #define STORE_COMPOSITION_RULE(rule) \
3454 do { \
3455 *charbuf++ = -2; \
3456 *charbuf++ = rule; \
3457 cmp_status->length += 2; \
3458 cmp_status->state--; \
3459 } while (0)
3460
3461 /* Store a composed char or a component char C in charbuf, and update
3462 cmp_status. */
3463
3464 #define STORE_COMPOSITION_CHAR(c) \
3465 do { \
3466 *charbuf++ = (c); \
3467 cmp_status->length++; \
3468 if (cmp_status->state == COMPOSING_CHAR) \
3469 cmp_status->nchars++; \
3470 else \
3471 cmp_status->ncomps++; \
3472 if (cmp_status->method == COMPOSITION_WITH_RULE \
3473 || (cmp_status->method == COMPOSITION_WITH_RULE_ALTCHARS \
3474 && cmp_status->state == COMPOSING_COMPONENT_CHAR)) \
3475 cmp_status->state++; \
3476 } while (0)
3477
3478
3479 /* See the above "GENERAL NOTES on `decode_coding_XXX ()' functions". */
3480
3481 static void
3482 decode_coding_iso_2022 (struct coding_system *coding)
3483 {
3484 const unsigned char *src = coding->source + coding->consumed;
3485 const unsigned char *src_end = coding->source + coding->src_bytes;
3486 const unsigned char *src_base;
3487 int *charbuf = coding->charbuf + coding->charbuf_used;
3488 /* We may produce two annotations (charset and composition) in one
3489 loop and one more charset annotation at the end. */
3490 int *charbuf_end
3491 = coding->charbuf + coding->charbuf_size - (MAX_ANNOTATION_LENGTH * 3);
3492 ptrdiff_t consumed_chars = 0, consumed_chars_base;
3493 bool multibytep = coding->src_multibyte;
3494 /* Charsets invoked to graphic plane 0 and 1 respectively. */
3495 int charset_id_0 = CODING_ISO_INVOKED_CHARSET (coding, 0);
3496 int charset_id_1 = CODING_ISO_INVOKED_CHARSET (coding, 1);
3497 int charset_id_2, charset_id_3;
3498 struct charset *charset;
3499 int c;
3500 struct composition_status *cmp_status = CODING_ISO_CMP_STATUS (coding);
3501 Lisp_Object attrs = CODING_ID_ATTRS (coding->id);
3502 ptrdiff_t char_offset = coding->produced_char;
3503 ptrdiff_t last_offset = char_offset;
3504 int last_id = charset_ascii;
3505 bool eol_dos
3506 = !inhibit_eol_conversion && EQ (CODING_ID_EOL_TYPE (coding->id), Qdos);
3507 int byte_after_cr = -1;
3508 int i;
3509
3510 setup_iso_safe_charsets (attrs);
3511 coding->safe_charsets = SDATA (CODING_ATTR_SAFE_CHARSETS (attrs));
3512
3513 if (cmp_status->state != COMPOSING_NO)
3514 {
3515 if (charbuf_end - charbuf < cmp_status->length)
3516 emacs_abort ();
3517 for (i = 0; i < cmp_status->length; i++)
3518 *charbuf++ = cmp_status->carryover[i];
3519 coding->annotated = 1;
3520 }
3521
3522 while (1)
3523 {
3524 int c1, c2, c3;
3525
3526 src_base = src;
3527 consumed_chars_base = consumed_chars;
3528
3529 if (charbuf >= charbuf_end)
3530 {
3531 if (byte_after_cr >= 0)
3532 src_base--;
3533 break;
3534 }
3535
3536 if (byte_after_cr >= 0)
3537 c1 = byte_after_cr, byte_after_cr = -1;
3538 else
3539 ONE_MORE_BYTE (c1);
3540 if (c1 < 0)
3541 goto invalid_code;
3542
3543 if (CODING_ISO_EXTSEGMENT_LEN (coding) > 0)
3544 {
3545 *charbuf++ = ASCII_CHAR_P (c1) ? c1 : BYTE8_TO_CHAR (c1);
3546 char_offset++;
3547 CODING_ISO_EXTSEGMENT_LEN (coding)--;
3548 continue;
3549 }
3550
3551 if (CODING_ISO_EMBEDDED_UTF_8 (coding))
3552 {
3553 if (c1 == ISO_CODE_ESC)
3554 {
3555 if (src + 1 >= src_end)
3556 goto no_more_source;
3557 *charbuf++ = ISO_CODE_ESC;
3558 char_offset++;
3559 if (src[0] == '%' && src[1] == '@')
3560 {
3561 src += 2;
3562 consumed_chars += 2;
3563 char_offset += 2;
3564 /* We are sure charbuf can contain two more chars. */
3565 *charbuf++ = '%';
3566 *charbuf++ = '@';
3567 CODING_ISO_EMBEDDED_UTF_8 (coding) = 0;
3568 }
3569 }
3570 else
3571 {
3572 *charbuf++ = ASCII_CHAR_P (c1) ? c1 : BYTE8_TO_CHAR (c1);
3573 char_offset++;
3574 }
3575 continue;
3576 }
3577
3578 if ((cmp_status->state == COMPOSING_RULE
3579 || cmp_status->state == COMPOSING_COMPONENT_RULE)
3580 && c1 != ISO_CODE_ESC)
3581 {
3582 int rule;
3583
3584 DECODE_COMPOSITION_RULE (rule);
3585 STORE_COMPOSITION_RULE (rule);
3586 continue;
3587 }
3588
3589 /* We produce at most one character. */
3590 switch (iso_code_class [c1])
3591 {
3592 case ISO_0x20_or_0x7F:
3593 if (charset_id_0 < 0
3594 || ! CHARSET_ISO_CHARS_96 (CHARSET_FROM_ID (charset_id_0)))
3595 /* This is SPACE or DEL. */
3596 charset = CHARSET_FROM_ID (charset_ascii);
3597 else
3598 charset = CHARSET_FROM_ID (charset_id_0);
3599 break;
3600
3601 case ISO_graphic_plane_0:
3602 if (charset_id_0 < 0)
3603 charset = CHARSET_FROM_ID (charset_ascii);
3604 else
3605 charset = CHARSET_FROM_ID (charset_id_0);
3606 break;
3607
3608 case ISO_0xA0_or_0xFF:
3609 if (charset_id_1 < 0
3610 || ! CHARSET_ISO_CHARS_96 (CHARSET_FROM_ID (charset_id_1))
3611 || CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_SEVEN_BITS)
3612 goto invalid_code;
3613 /* This is a graphic character, we fall down ... */
3614
3615 case ISO_graphic_plane_1:
3616 if (charset_id_1 < 0)
3617 goto invalid_code;
3618 charset = CHARSET_FROM_ID (charset_id_1);
3619 break;
3620
3621 case ISO_control_0:
3622 if (eol_dos && c1 == '\r')
3623 ONE_MORE_BYTE (byte_after_cr);
3624 MAYBE_FINISH_COMPOSITION ();
3625 charset = CHARSET_FROM_ID (charset_ascii);
3626 break;
3627
3628 case ISO_control_1:
3629 goto invalid_code;
3630
3631 case ISO_shift_out:
3632 if (! (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_LOCKING_SHIFT)
3633 || CODING_ISO_DESIGNATION (coding, 1) < 0)
3634 goto invalid_code;
3635 CODING_ISO_INVOCATION (coding, 0) = 1;
3636 charset_id_0 = CODING_ISO_INVOKED_CHARSET (coding, 0);
3637 continue;
3638
3639 case ISO_shift_in:
3640 if (! (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_LOCKING_SHIFT))
3641 goto invalid_code;
3642 CODING_ISO_INVOCATION (coding, 0) = 0;
3643 charset_id_0 = CODING_ISO_INVOKED_CHARSET (coding, 0);
3644 continue;
3645
3646 case ISO_single_shift_2_7:
3647 if (! (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_SEVEN_BITS))
3648 goto invalid_code;
3649 case ISO_single_shift_2:
3650 if (! (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_SINGLE_SHIFT))
3651 goto invalid_code;
3652 /* SS2 is handled as an escape sequence of ESC 'N' */
3653 c1 = 'N';
3654 goto label_escape_sequence;
3655
3656 case ISO_single_shift_3:
3657 if (! (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_SINGLE_SHIFT))
3658 goto invalid_code;
3659 /* SS2 is handled as an escape sequence of ESC 'O' */
3660 c1 = 'O';
3661 goto label_escape_sequence;
3662
3663 case ISO_control_sequence_introducer:
3664 /* CSI is handled as an escape sequence of ESC '[' ... */
3665 c1 = '[';
3666 goto label_escape_sequence;
3667
3668 case ISO_escape:
3669 ONE_MORE_BYTE (c1);
3670 label_escape_sequence:
3671 /* Escape sequences handled here are invocation,
3672 designation, direction specification, and character
3673 composition specification. */
3674 switch (c1)
3675 {
3676 case '&': /* revision of following character set */
3677 ONE_MORE_BYTE (c1);
3678 if (!(c1 >= '@' && c1 <= '~'))
3679 goto invalid_code;
3680 ONE_MORE_BYTE (c1);
3681 if (c1 != ISO_CODE_ESC)
3682 goto invalid_code;
3683 ONE_MORE_BYTE (c1);
3684 goto label_escape_sequence;
3685
3686 case '$': /* designation of 2-byte character set */
3687 if (! (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_DESIGNATION))
3688 goto invalid_code;
3689 {
3690 int reg, chars96;
3691
3692 ONE_MORE_BYTE (c1);
3693 if (c1 >= '@' && c1 <= 'B')
3694 { /* designation of JISX0208.1978, GB2312.1980,
3695 or JISX0208.1980 */
3696 reg = 0, chars96 = 0;
3697 }
3698 else if (c1 >= 0x28 && c1 <= 0x2B)
3699 { /* designation of DIMENSION2_CHARS94 character set */
3700 reg = c1 - 0x28, chars96 = 0;
3701 ONE_MORE_BYTE (c1);
3702 }
3703 else if (c1 >= 0x2C && c1 <= 0x2F)
3704 { /* designation of DIMENSION2_CHARS96 character set */
3705 reg = c1 - 0x2C, chars96 = 1;
3706 ONE_MORE_BYTE (c1);
3707 }
3708 else
3709 goto invalid_code;
3710 DECODE_DESIGNATION (reg, 2, chars96, c1);
3711 /* We must update these variables now. */
3712 if (reg == 0)
3713 charset_id_0 = CODING_ISO_INVOKED_CHARSET (coding, 0);
3714 else if (reg == 1)
3715 charset_id_1 = CODING_ISO_INVOKED_CHARSET (coding, 1);
3716 if (chars96 < 0)
3717 goto invalid_code;
3718 }
3719 continue;
3720
3721 case 'n': /* invocation of locking-shift-2 */
3722 if (! (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_LOCKING_SHIFT)
3723 || CODING_ISO_DESIGNATION (coding, 2) < 0)
3724 goto invalid_code;
3725 CODING_ISO_INVOCATION (coding, 0) = 2;
3726 charset_id_0 = CODING_ISO_INVOKED_CHARSET (coding, 0);
3727 continue;
3728
3729 case 'o': /* invocation of locking-shift-3 */
3730 if (! (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_LOCKING_SHIFT)
3731 || CODING_ISO_DESIGNATION (coding, 3) < 0)
3732 goto invalid_code;
3733 CODING_ISO_INVOCATION (coding, 0) = 3;
3734 charset_id_0 = CODING_ISO_INVOKED_CHARSET (coding, 0);
3735 continue;
3736
3737 case 'N': /* invocation of single-shift-2 */
3738 if (! (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_SINGLE_SHIFT)
3739 || CODING_ISO_DESIGNATION (coding, 2) < 0)
3740 goto invalid_code;
3741 charset_id_2 = CODING_ISO_DESIGNATION (coding, 2);
3742 if (charset_id_2 < 0)
3743 charset = CHARSET_FROM_ID (charset_ascii);
3744 else
3745 charset = CHARSET_FROM_ID (charset_id_2);
3746 ONE_MORE_BYTE (c1);
3747 if (c1 < 0x20 || (c1 >= 0x80 && c1 < 0xA0)
3748 || (! (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_SEVEN_BITS)
3749 && ((CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_LEVEL_4)
3750 ? c1 >= 0x80 : c1 < 0x80)))
3751 goto invalid_code;
3752 break;
3753
3754 case 'O': /* invocation of single-shift-3 */
3755 if (! (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_SINGLE_SHIFT)
3756 || CODING_ISO_DESIGNATION (coding, 3) < 0)
3757 goto invalid_code;
3758 charset_id_3 = CODING_ISO_DESIGNATION (coding, 3);
3759 if (charset_id_3 < 0)
3760 charset = CHARSET_FROM_ID (charset_ascii);
3761 else
3762 charset = CHARSET_FROM_ID (charset_id_3);
3763 ONE_MORE_BYTE (c1);
3764 if (c1 < 0x20 || (c1 >= 0x80 && c1 < 0xA0)
3765 || (! (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_SEVEN_BITS)
3766 && ((CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_LEVEL_4)
3767 ? c1 >= 0x80 : c1 < 0x80)))
3768 goto invalid_code;
3769 break;
3770
3771 case '0': case '2': case '3': case '4': /* start composition */
3772 if (! (coding->common_flags & CODING_ANNOTATE_COMPOSITION_MASK))
3773 goto invalid_code;
3774 if (last_id != charset_ascii)
3775 {
3776 ADD_CHARSET_DATA (charbuf, char_offset- last_offset, last_id);
3777 last_id = charset_ascii;
3778 last_offset = char_offset;
3779 }
3780 DECODE_COMPOSITION_START (c1);
3781 continue;
3782
3783 case '1': /* end composition */
3784 if (cmp_status->state == COMPOSING_NO)
3785 goto invalid_code;
3786 DECODE_COMPOSITION_END ();
3787 continue;
3788
3789 case '[': /* specification of direction */
3790 if (! (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_DIRECTION))
3791 goto invalid_code;
3792 /* For the moment, nested direction is not supported.
3793 So, `coding->mode & CODING_MODE_DIRECTION' zero means
3794 left-to-right, and nonzero means right-to-left. */
3795 ONE_MORE_BYTE (c1);
3796 switch (c1)
3797 {
3798 case ']': /* end of the current direction */
3799 coding->mode &= ~CODING_MODE_DIRECTION;
3800
3801 case '0': /* end of the current direction */
3802 case '1': /* start of left-to-right direction */
3803 ONE_MORE_BYTE (c1);
3804 if (c1 == ']')
3805 coding->mode &= ~CODING_MODE_DIRECTION;
3806 else
3807 goto invalid_code;
3808 break;
3809
3810 case '2': /* start of right-to-left direction */
3811 ONE_MORE_BYTE (c1);
3812 if (c1 == ']')
3813 coding->mode |= CODING_MODE_DIRECTION;
3814 else
3815 goto invalid_code;
3816 break;
3817
3818 default:
3819 goto invalid_code;
3820 }
3821 continue;
3822
3823 case '%':
3824 ONE_MORE_BYTE (c1);
3825 if (c1 == '/')
3826 {
3827 /* CTEXT extended segment:
3828 ESC % / [0-4] M L --ENCODING-NAME-- \002 --BYTES--
3829 We keep these bytes as is for the moment.
3830 They may be decoded by post-read-conversion. */
3831 int dim, M, L;
3832 int size;
3833
3834 ONE_MORE_BYTE (dim);
3835 if (dim < '0' || dim > '4')
3836 goto invalid_code;
3837 ONE_MORE_BYTE (M);
3838 if (M < 128)
3839 goto invalid_code;
3840 ONE_MORE_BYTE (L);
3841 if (L < 128)
3842 goto invalid_code;
3843 size = ((M - 128) * 128) + (L - 128);
3844 if (charbuf + 6 > charbuf_end)
3845 goto break_loop;
3846 *charbuf++ = ISO_CODE_ESC;
3847 *charbuf++ = '%';
3848 *charbuf++ = '/';
3849 *charbuf++ = dim;
3850 *charbuf++ = BYTE8_TO_CHAR (M);
3851 *charbuf++ = BYTE8_TO_CHAR (L);
3852 CODING_ISO_EXTSEGMENT_LEN (coding) = size;
3853 }
3854 else if (c1 == 'G')
3855 {
3856 /* XFree86 extension for embedding UTF-8 in CTEXT:
3857 ESC % G --UTF-8-BYTES-- ESC % @
3858 We keep these bytes as is for the moment.
3859 They may be decoded by post-read-conversion. */
3860 if (charbuf + 3 > charbuf_end)
3861 goto break_loop;
3862 *charbuf++ = ISO_CODE_ESC;
3863 *charbuf++ = '%';
3864 *charbuf++ = 'G';
3865 CODING_ISO_EMBEDDED_UTF_8 (coding) = 1;
3866 }
3867 else
3868 goto invalid_code;
3869 continue;
3870 break;
3871
3872 default:
3873 if (! (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_DESIGNATION))
3874 goto invalid_code;
3875 {
3876 int reg, chars96;
3877
3878 if (c1 >= 0x28 && c1 <= 0x2B)
3879 { /* designation of DIMENSION1_CHARS94 character set */
3880 reg = c1 - 0x28, chars96 = 0;
3881 ONE_MORE_BYTE (c1);
3882 }
3883 else if (c1 >= 0x2C && c1 <= 0x2F)
3884 { /* designation of DIMENSION1_CHARS96 character set */
3885 reg = c1 - 0x2C, chars96 = 1;
3886 ONE_MORE_BYTE (c1);
3887 }
3888 else
3889 goto invalid_code;
3890 DECODE_DESIGNATION (reg, 1, chars96, c1);
3891 /* We must update these variables now. */
3892 if (reg == 0)
3893 charset_id_0 = CODING_ISO_INVOKED_CHARSET (coding, 0);
3894 else if (reg == 1)
3895 charset_id_1 = CODING_ISO_INVOKED_CHARSET (coding, 1);
3896 if (chars96 < 0)
3897 goto invalid_code;
3898 }
3899 continue;
3900 }
3901 break;
3902
3903 default:
3904 emacs_abort ();
3905 }
3906
3907 if (cmp_status->state == COMPOSING_NO
3908 && charset->id != charset_ascii
3909 && last_id != charset->id)
3910 {
3911 if (last_id != charset_ascii)
3912 ADD_CHARSET_DATA (charbuf, char_offset - last_offset, last_id);
3913 last_id = charset->id;
3914 last_offset = char_offset;
3915 }
3916
3917 /* Now we know CHARSET and 1st position code C1 of a character.
3918 Produce a decoded character while getting 2nd and 3rd
3919 position codes C2, C3 if necessary. */
3920 if (CHARSET_DIMENSION (charset) > 1)
3921 {
3922 ONE_MORE_BYTE (c2);
3923 if (c2 < 0x20 || (c2 >= 0x80 && c2 < 0xA0)
3924 || ((c1 & 0x80) != (c2 & 0x80)))
3925 /* C2 is not in a valid range. */
3926 goto invalid_code;
3927 if (CHARSET_DIMENSION (charset) == 2)
3928 c1 = (c1 << 8) | c2;
3929 else
3930 {
3931 ONE_MORE_BYTE (c3);
3932 if (c3 < 0x20 || (c3 >= 0x80 && c3 < 0xA0)
3933 || ((c1 & 0x80) != (c3 & 0x80)))
3934 /* C3 is not in a valid range. */
3935 goto invalid_code;
3936 c1 = (c1 << 16) | (c2 << 8) | c2;
3937 }
3938 }
3939 c1 &= 0x7F7F7F;
3940 CODING_DECODE_CHAR (coding, src, src_base, src_end, charset, c1, c);
3941 if (c < 0)
3942 {
3943 MAYBE_FINISH_COMPOSITION ();
3944 for (; src_base < src; src_base++, char_offset++)
3945 {
3946 if (ASCII_CHAR_P (*src_base))
3947 *charbuf++ = *src_base;
3948 else
3949 *charbuf++ = BYTE8_TO_CHAR (*src_base);
3950 }
3951 }
3952 else if (cmp_status->state == COMPOSING_NO)
3953 {
3954 *charbuf++ = c;
3955 char_offset++;
3956 }
3957 else if ((cmp_status->state == COMPOSING_CHAR
3958 ? cmp_status->nchars
3959 : cmp_status->ncomps)
3960 >= MAX_COMPOSITION_COMPONENTS)
3961 {
3962 /* Too long composition. */
3963 MAYBE_FINISH_COMPOSITION ();
3964 *charbuf++ = c;
3965 char_offset++;
3966 }
3967 else
3968 STORE_COMPOSITION_CHAR (c);
3969 continue;
3970
3971 invalid_code:
3972 MAYBE_FINISH_COMPOSITION ();
3973 src = src_base;
3974 consumed_chars = consumed_chars_base;
3975 ONE_MORE_BYTE (c);
3976 *charbuf++ = c < 0 ? -c : ASCII_CHAR_P (c) ? c : BYTE8_TO_CHAR (c);
3977 char_offset++;
3978 /* Reset the invocation and designation status to the safest
3979 one; i.e. designate ASCII to the graphic register 0, and
3980 invoke that register to the graphic plane 0. This typically
3981 helps the case that an designation sequence for ASCII "ESC (
3982 B" is somehow broken (e.g. broken by a newline). */
3983 CODING_ISO_INVOCATION (coding, 0) = 0;
3984 CODING_ISO_DESIGNATION (coding, 0) = charset_ascii;
3985 charset_id_0 = charset_ascii;
3986 continue;
3987
3988 break_loop:
3989 break;
3990 }
3991
3992 no_more_source:
3993 if (cmp_status->state != COMPOSING_NO)
3994 {
3995 if (coding->mode & CODING_MODE_LAST_BLOCK)
3996 MAYBE_FINISH_COMPOSITION ();
3997 else
3998 {
3999 charbuf -= cmp_status->length;
4000 for (i = 0; i < cmp_status->length; i++)
4001 cmp_status->carryover[i] = charbuf[i];
4002 }
4003 }
4004 else if (last_id != charset_ascii)
4005 ADD_CHARSET_DATA (charbuf, char_offset - last_offset, last_id);
4006 coding->consumed_char += consumed_chars_base;
4007 coding->consumed = src_base - coding->source;
4008 coding->charbuf_used = charbuf - coding->charbuf;
4009 }
4010
4011
4012 /* ISO2022 encoding stuff. */
4013
4014 /*
4015 It is not enough to say just "ISO2022" on encoding, we have to
4016 specify more details. In Emacs, each coding system of ISO2022
4017 variant has the following specifications:
4018 1. Initial designation to G0 thru G3.
4019 2. Allows short-form designation?
4020 3. ASCII should be designated to G0 before control characters?
4021 4. ASCII should be designated to G0 at end of line?
4022 5. 7-bit environment or 8-bit environment?
4023 6. Use locking-shift?
4024 7. Use Single-shift?
4025 And the following two are only for Japanese:
4026 8. Use ASCII in place of JIS0201-1976-Roman?
4027 9. Use JISX0208-1983 in place of JISX0208-1978?
4028 These specifications are encoded in CODING_ISO_FLAGS (coding) as flag bits
4029 defined by macros CODING_ISO_FLAG_XXX. See `coding.h' for more
4030 details.
4031 */
4032
4033 /* Produce codes (escape sequence) for designating CHARSET to graphic
4034 register REG at DST, and increment DST. If <final-char> of CHARSET is
4035 '@', 'A', or 'B' and the coding system CODING allows, produce
4036 designation sequence of short-form. */
4037
4038 #define ENCODE_DESIGNATION(charset, reg, coding) \
4039 do { \
4040 unsigned char final_char = CHARSET_ISO_FINAL (charset); \
4041 const char *intermediate_char_94 = "()*+"; \
4042 const char *intermediate_char_96 = ",-./"; \
4043 int revision = -1; \
4044 \
4045 if (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_REVISION) \
4046 revision = CHARSET_ISO_REVISION (charset); \
4047 \
4048 if (revision >= 0) \
4049 { \
4050 EMIT_TWO_ASCII_BYTES (ISO_CODE_ESC, '&'); \
4051 EMIT_ONE_BYTE ('@' + revision); \
4052 } \
4053 EMIT_ONE_ASCII_BYTE (ISO_CODE_ESC); \
4054 if (CHARSET_DIMENSION (charset) == 1) \
4055 { \
4056 int b; \
4057 if (! CHARSET_ISO_CHARS_96 (charset)) \
4058 b = intermediate_char_94[reg]; \
4059 else \
4060 b = intermediate_char_96[reg]; \
4061 EMIT_ONE_ASCII_BYTE (b); \
4062 } \
4063 else \
4064 { \
4065 EMIT_ONE_ASCII_BYTE ('$'); \
4066 if (! CHARSET_ISO_CHARS_96 (charset)) \
4067 { \
4068 if (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_LONG_FORM \
4069 || reg != 0 \
4070 || final_char < '@' || final_char > 'B') \
4071 EMIT_ONE_ASCII_BYTE (intermediate_char_94[reg]); \
4072 } \
4073 else \
4074 EMIT_ONE_ASCII_BYTE (intermediate_char_96[reg]); \
4075 } \
4076 EMIT_ONE_ASCII_BYTE (final_char); \
4077 \
4078 CODING_ISO_DESIGNATION (coding, reg) = CHARSET_ID (charset); \
4079 } while (0)
4080
4081
4082 /* The following two macros produce codes (control character or escape
4083 sequence) for ISO2022 single-shift functions (single-shift-2 and
4084 single-shift-3). */
4085
4086 #define ENCODE_SINGLE_SHIFT_2 \
4087 do { \
4088 if (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_SEVEN_BITS) \
4089 EMIT_TWO_ASCII_BYTES (ISO_CODE_ESC, 'N'); \
4090 else \
4091 EMIT_ONE_BYTE (ISO_CODE_SS2); \
4092 CODING_ISO_SINGLE_SHIFTING (coding) = 1; \
4093 } while (0)
4094
4095
4096 #define ENCODE_SINGLE_SHIFT_3 \
4097 do { \
4098 if (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_SEVEN_BITS) \
4099 EMIT_TWO_ASCII_BYTES (ISO_CODE_ESC, 'O'); \
4100 else \
4101 EMIT_ONE_BYTE (ISO_CODE_SS3); \
4102 CODING_ISO_SINGLE_SHIFTING (coding) = 1; \
4103 } while (0)
4104
4105
4106 /* The following four macros produce codes (control character or
4107 escape sequence) for ISO2022 locking-shift functions (shift-in,
4108 shift-out, locking-shift-2, and locking-shift-3). */
4109
4110 #define ENCODE_SHIFT_IN \
4111 do { \
4112 EMIT_ONE_ASCII_BYTE (ISO_CODE_SI); \
4113 CODING_ISO_INVOCATION (coding, 0) = 0; \
4114 } while (0)
4115
4116
4117 #define ENCODE_SHIFT_OUT \
4118 do { \
4119 EMIT_ONE_ASCII_BYTE (ISO_CODE_SO); \
4120 CODING_ISO_INVOCATION (coding, 0) = 1; \
4121 } while (0)
4122
4123
4124 #define ENCODE_LOCKING_SHIFT_2 \
4125 do { \
4126 EMIT_TWO_ASCII_BYTES (ISO_CODE_ESC, 'n'); \
4127 CODING_ISO_INVOCATION (coding, 0) = 2; \
4128 } while (0)
4129
4130
4131 #define ENCODE_LOCKING_SHIFT_3 \
4132 do { \
4133 EMIT_TWO_ASCII_BYTES (ISO_CODE_ESC, 'n'); \
4134 CODING_ISO_INVOCATION (coding, 0) = 3; \
4135 } while (0)
4136
4137
4138 /* Produce codes for a DIMENSION1 character whose character set is
4139 CHARSET and whose position-code is C1. Designation and invocation
4140 sequences are also produced in advance if necessary. */
4141
4142 #define ENCODE_ISO_CHARACTER_DIMENSION1(charset, c1) \
4143 do { \
4144 int id = CHARSET_ID (charset); \
4145 \
4146 if ((CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_USE_ROMAN) \
4147 && id == charset_ascii) \
4148 { \
4149 id = charset_jisx0201_roman; \
4150 charset = CHARSET_FROM_ID (id); \
4151 } \
4152 \
4153 if (CODING_ISO_SINGLE_SHIFTING (coding)) \
4154 { \
4155 if (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_SEVEN_BITS) \
4156 EMIT_ONE_ASCII_BYTE (c1 & 0x7F); \
4157 else \
4158 EMIT_ONE_BYTE (c1 | 0x80); \
4159 CODING_ISO_SINGLE_SHIFTING (coding) = 0; \
4160 break; \
4161 } \
4162 else if (id == CODING_ISO_INVOKED_CHARSET (coding, 0)) \
4163 { \
4164 EMIT_ONE_ASCII_BYTE (c1 & 0x7F); \
4165 break; \
4166 } \
4167 else if (id == CODING_ISO_INVOKED_CHARSET (coding, 1)) \
4168 { \
4169 EMIT_ONE_BYTE (c1 | 0x80); \
4170 break; \
4171 } \
4172 else \
4173 /* Since CHARSET is not yet invoked to any graphic planes, we \
4174 must invoke it, or, at first, designate it to some graphic \
4175 register. Then repeat the loop to actually produce the \
4176 character. */ \
4177 dst = encode_invocation_designation (charset, coding, dst, \
4178 &produced_chars); \
4179 } while (1)
4180
4181
4182 /* Produce codes for a DIMENSION2 character whose character set is
4183 CHARSET and whose position-codes are C1 and C2. Designation and
4184 invocation codes are also produced in advance if necessary. */
4185
4186 #define ENCODE_ISO_CHARACTER_DIMENSION2(charset, c1, c2) \
4187 do { \
4188 int id = CHARSET_ID (charset); \
4189 \
4190 if ((CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_USE_OLDJIS) \
4191 && id == charset_jisx0208) \
4192 { \
4193 id = charset_jisx0208_1978; \
4194 charset = CHARSET_FROM_ID (id); \
4195 } \
4196 \
4197 if (CODING_ISO_SINGLE_SHIFTING (coding)) \
4198 { \
4199 if (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_SEVEN_BITS) \
4200 EMIT_TWO_ASCII_BYTES ((c1) & 0x7F, (c2) & 0x7F); \
4201 else \
4202 EMIT_TWO_BYTES ((c1) | 0x80, (c2) | 0x80); \
4203 CODING_ISO_SINGLE_SHIFTING (coding) = 0; \
4204 break; \
4205 } \
4206 else if (id == CODING_ISO_INVOKED_CHARSET (coding, 0)) \
4207 { \
4208 EMIT_TWO_ASCII_BYTES ((c1) & 0x7F, (c2) & 0x7F); \
4209 break; \
4210 } \
4211 else if (id == CODING_ISO_INVOKED_CHARSET (coding, 1)) \
4212 { \
4213 EMIT_TWO_BYTES ((c1) | 0x80, (c2) | 0x80); \
4214 break; \
4215 } \
4216 else \
4217 /* Since CHARSET is not yet invoked to any graphic planes, we \
4218 must invoke it, or, at first, designate it to some graphic \
4219 register. Then repeat the loop to actually produce the \
4220 character. */ \
4221 dst = encode_invocation_designation (charset, coding, dst, \
4222 &produced_chars); \
4223 } while (1)
4224
4225
4226 #define ENCODE_ISO_CHARACTER(charset, c) \
4227 do { \
4228 unsigned code; \
4229 CODING_ENCODE_CHAR (coding, dst, dst_end, (charset), (c), code); \
4230 \
4231 if (CHARSET_DIMENSION (charset) == 1) \
4232 ENCODE_ISO_CHARACTER_DIMENSION1 ((charset), code); \
4233 else \
4234 ENCODE_ISO_CHARACTER_DIMENSION2 ((charset), code >> 8, code & 0xFF); \
4235 } while (0)
4236
4237
4238 /* Produce designation and invocation codes at a place pointed by DST
4239 to use CHARSET. The element `spec.iso_2022' of *CODING is updated.
4240 Return new DST. */
4241
4242 static unsigned char *
4243 encode_invocation_designation (struct charset *charset,
4244 struct coding_system *coding,
4245 unsigned char *dst, ptrdiff_t *p_nchars)
4246 {
4247 bool multibytep = coding->dst_multibyte;
4248 ptrdiff_t produced_chars = *p_nchars;
4249 int reg; /* graphic register number */
4250 int id = CHARSET_ID (charset);
4251
4252 /* At first, check designations. */
4253 for (reg = 0; reg < 4; reg++)
4254 if (id == CODING_ISO_DESIGNATION (coding, reg))
4255 break;
4256
4257 if (reg >= 4)
4258 {
4259 /* CHARSET is not yet designated to any graphic registers. */
4260 /* At first check the requested designation. */
4261 reg = CODING_ISO_REQUEST (coding, id);
4262 if (reg < 0)
4263 /* Since CHARSET requests no special designation, designate it
4264 to graphic register 0. */
4265 reg = 0;
4266
4267 ENCODE_DESIGNATION (charset, reg, coding);
4268 }
4269
4270 if (CODING_ISO_INVOCATION (coding, 0) != reg
4271 && CODING_ISO_INVOCATION (coding, 1) != reg)
4272 {
4273 /* Since the graphic register REG is not invoked to any graphic
4274 planes, invoke it to graphic plane 0. */
4275 switch (reg)
4276 {
4277 case 0: /* graphic register 0 */
4278 ENCODE_SHIFT_IN;
4279 break;
4280
4281 case 1: /* graphic register 1 */
4282 ENCODE_SHIFT_OUT;
4283 break;
4284
4285 case 2: /* graphic register 2 */
4286 if (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_SINGLE_SHIFT)
4287 ENCODE_SINGLE_SHIFT_2;
4288 else
4289 ENCODE_LOCKING_SHIFT_2;
4290 break;
4291
4292 case 3: /* graphic register 3 */
4293 if (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_SINGLE_SHIFT)
4294 ENCODE_SINGLE_SHIFT_3;
4295 else
4296 ENCODE_LOCKING_SHIFT_3;
4297 break;
4298
4299 default:
4300 break;
4301 }
4302 }
4303
4304 *p_nchars = produced_chars;
4305 return dst;
4306 }
4307
4308
4309 /* Produce codes for designation and invocation to reset the graphic
4310 planes and registers to initial state. */
4311 #define ENCODE_RESET_PLANE_AND_REGISTER() \
4312 do { \
4313 int reg; \
4314 struct charset *charset; \
4315 \
4316 if (CODING_ISO_INVOCATION (coding, 0) != 0) \
4317 ENCODE_SHIFT_IN; \
4318 for (reg = 0; reg < 4; reg++) \
4319 if (CODING_ISO_INITIAL (coding, reg) >= 0 \
4320 && (CODING_ISO_DESIGNATION (coding, reg) \
4321 != CODING_ISO_INITIAL (coding, reg))) \
4322 { \
4323 charset = CHARSET_FROM_ID (CODING_ISO_INITIAL (coding, reg)); \
4324 ENCODE_DESIGNATION (charset, reg, coding); \
4325 } \
4326 } while (0)
4327
4328
4329 /* Produce designation sequences of charsets in the line started from
4330 CHARBUF to a place pointed by DST, and return the number of
4331 produced bytes. DST should not directly point a buffer text area
4332 which may be relocated by char_charset call.
4333
4334 If the current block ends before any end-of-line, we may fail to
4335 find all the necessary designations. */
4336
4337 static ptrdiff_t
4338 encode_designation_at_bol (struct coding_system *coding,
4339 int *charbuf, int *charbuf_end,
4340 unsigned char *dst)
4341 {
4342 unsigned char *orig = dst;
4343 struct charset *charset;
4344 /* Table of charsets to be designated to each graphic register. */
4345 int r[4];
4346 int c, found = 0, reg;
4347 ptrdiff_t produced_chars = 0;
4348 bool multibytep = coding->dst_multibyte;
4349 Lisp_Object attrs;
4350 Lisp_Object charset_list;
4351
4352 attrs = CODING_ID_ATTRS (coding->id);
4353 charset_list = CODING_ATTR_CHARSET_LIST (attrs);
4354 if (EQ (charset_list, Qiso_2022))
4355 charset_list = Viso_2022_charset_list;
4356
4357 for (reg = 0; reg < 4; reg++)
4358 r[reg] = -1;
4359
4360 while (charbuf < charbuf_end && found < 4)
4361 {
4362 int id;
4363
4364 c = *charbuf++;
4365 if (c == '\n')
4366 break;
4367 charset = char_charset (c, charset_list, NULL);
4368 id = CHARSET_ID (charset);
4369 reg = CODING_ISO_REQUEST (coding, id);
4370 if (reg >= 0 && r[reg] < 0)
4371 {
4372 found++;
4373 r[reg] = id;
4374 }
4375 }
4376
4377 if (found)
4378 {
4379 for (reg = 0; reg < 4; reg++)
4380 if (r[reg] >= 0
4381 && CODING_ISO_DESIGNATION (coding, reg) != r[reg])
4382 ENCODE_DESIGNATION (CHARSET_FROM_ID (r[reg]), reg, coding);
4383 }
4384
4385 return dst - orig;
4386 }
4387
4388 /* See the above "GENERAL NOTES on `encode_coding_XXX ()' functions". */
4389
4390 static bool
4391 encode_coding_iso_2022 (struct coding_system *coding)
4392 {
4393 bool multibytep = coding->dst_multibyte;
4394 int *charbuf = coding->charbuf;
4395 int *charbuf_end = charbuf + coding->charbuf_used;
4396 unsigned char *dst = coding->destination + coding->produced;
4397 unsigned char *dst_end = coding->destination + coding->dst_bytes;
4398 int safe_room = 16;
4399 bool bol_designation
4400 = (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_DESIGNATE_AT_BOL
4401 && CODING_ISO_BOL (coding));
4402 ptrdiff_t produced_chars = 0;
4403 Lisp_Object attrs, eol_type, charset_list;
4404 bool ascii_compatible;
4405 int c;
4406 int preferred_charset_id = -1;
4407
4408 CODING_GET_INFO (coding, attrs, charset_list);
4409 eol_type = inhibit_eol_conversion ? Qunix : CODING_ID_EOL_TYPE (coding->id);
4410 if (VECTORP (eol_type))
4411 eol_type = Qunix;
4412
4413 setup_iso_safe_charsets (attrs);
4414 /* Charset list may have been changed. */
4415 charset_list = CODING_ATTR_CHARSET_LIST (attrs);
4416 coding->safe_charsets = SDATA (CODING_ATTR_SAFE_CHARSETS (attrs));
4417
4418 ascii_compatible
4419 = (! NILP (CODING_ATTR_ASCII_COMPAT (attrs))
4420 && ! (CODING_ISO_FLAGS (coding) & (CODING_ISO_FLAG_DESIGNATION
4421 | CODING_ISO_FLAG_LOCKING_SHIFT)));
4422
4423 while (charbuf < charbuf_end)
4424 {
4425 ASSURE_DESTINATION (safe_room);
4426
4427 if (bol_designation)
4428 {
4429 /* We have to produce designation sequences if any now. */
4430 unsigned char desig_buf[16];
4431 ptrdiff_t nbytes;
4432 ptrdiff_t offset;
4433
4434 charset_map_loaded = 0;
4435 nbytes = encode_designation_at_bol (coding, charbuf, charbuf_end,
4436 desig_buf);
4437 if (charset_map_loaded
4438 && (offset = coding_change_destination (coding)))
4439 {
4440 dst += offset;
4441 dst_end += offset;
4442 }
4443 memcpy (dst, desig_buf, nbytes);
4444 dst += nbytes;
4445 /* We are sure that designation sequences are all ASCII bytes. */
4446 produced_chars += nbytes;
4447 bol_designation = 0;
4448 ASSURE_DESTINATION (safe_room);
4449 }
4450
4451 c = *charbuf++;
4452
4453 if (c < 0)
4454 {
4455 /* Handle an annotation. */
4456 switch (*charbuf)
4457 {
4458 case CODING_ANNOTATE_COMPOSITION_MASK:
4459 /* Not yet implemented. */
4460 break;
4461 case CODING_ANNOTATE_CHARSET_MASK:
4462 preferred_charset_id = charbuf[2];
4463 if (preferred_charset_id >= 0
4464 && NILP (Fmemq (make_number (preferred_charset_id),
4465 charset_list)))
4466 preferred_charset_id = -1;
4467 break;
4468 default:
4469 emacs_abort ();
4470 }
4471 charbuf += -c - 1;
4472 continue;
4473 }
4474
4475 /* Now encode the character C. */
4476 if (c < 0x20 || c == 0x7F)
4477 {
4478 if (c == '\n'
4479 || (c == '\r' && EQ (eol_type, Qmac)))
4480 {
4481 if (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_RESET_AT_EOL)
4482 ENCODE_RESET_PLANE_AND_REGISTER ();
4483 if (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_INIT_AT_BOL)
4484 {
4485 int i;
4486
4487 for (i = 0; i < 4; i++)
4488 CODING_ISO_DESIGNATION (coding, i)
4489 = CODING_ISO_INITIAL (coding, i);
4490 }
4491 bol_designation = ((CODING_ISO_FLAGS (coding)
4492 & CODING_ISO_FLAG_DESIGNATE_AT_BOL)
4493 != 0);
4494 }
4495 else if (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_RESET_AT_CNTL)
4496 ENCODE_RESET_PLANE_AND_REGISTER ();
4497 EMIT_ONE_ASCII_BYTE (c);
4498 }
4499 else if (ASCII_CHAR_P (c))
4500 {
4501 if (ascii_compatible)
4502 EMIT_ONE_ASCII_BYTE (c);
4503 else
4504 {
4505 struct charset *charset = CHARSET_FROM_ID (charset_ascii);
4506 ENCODE_ISO_CHARACTER (charset, c);
4507 }
4508 }
4509 else if (CHAR_BYTE8_P (c))
4510 {
4511 c = CHAR_TO_BYTE8 (c);
4512 EMIT_ONE_BYTE (c);
4513 }
4514 else
4515 {
4516 struct charset *charset;
4517
4518 if (preferred_charset_id >= 0)
4519 {
4520 bool result;
4521
4522 charset = CHARSET_FROM_ID (preferred_charset_id);
4523 CODING_CHAR_CHARSET_P (coding, dst, dst_end, c, charset, result);
4524 if (! result)
4525 CODING_CHAR_CHARSET (coding, dst, dst_end, c, charset_list,
4526 NULL, charset);
4527 }
4528 else
4529 CODING_CHAR_CHARSET (coding, dst, dst_end, c, charset_list,
4530 NULL, charset);
4531 if (!charset)
4532 {
4533 if (coding->mode & CODING_MODE_SAFE_ENCODING)
4534 {
4535 c = CODING_INHIBIT_CHARACTER_SUBSTITUTION;
4536 charset = CHARSET_FROM_ID (charset_ascii);
4537 }
4538 else
4539 {
4540 c = coding->default_char;
4541 CODING_CHAR_CHARSET (coding, dst, dst_end, c,
4542 charset_list, NULL, charset);
4543 }
4544 }
4545 ENCODE_ISO_CHARACTER (charset, c);
4546 }
4547 }
4548
4549 if (coding->mode & CODING_MODE_LAST_BLOCK
4550 && CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_RESET_AT_EOL)
4551 {
4552 ASSURE_DESTINATION (safe_room);
4553 ENCODE_RESET_PLANE_AND_REGISTER ();
4554 }
4555 record_conversion_result (coding, CODING_RESULT_SUCCESS);
4556 CODING_ISO_BOL (coding) = bol_designation;
4557 coding->produced_char += produced_chars;
4558 coding->produced = dst - coding->destination;
4559 return 0;
4560 }
4561
4562 \f
4563 /*** 8,9. SJIS and BIG5 handlers ***/
4564
4565 /* Although SJIS and BIG5 are not ISO's coding system, they are used
4566 quite widely. So, for the moment, Emacs supports them in the bare
4567 C code. But, in the future, they may be supported only by CCL. */
4568
4569 /* SJIS is a coding system encoding three character sets: ASCII, right
4570 half of JISX0201-Kana, and JISX0208. An ASCII character is encoded
4571 as is. A character of charset katakana-jisx0201 is encoded by
4572 "position-code + 0x80". A character of charset japanese-jisx0208
4573 is encoded in 2-byte but two position-codes are divided and shifted
4574 so that it fit in the range below.
4575
4576 --- CODE RANGE of SJIS ---
4577 (character set) (range)
4578 ASCII 0x00 .. 0x7F
4579 KATAKANA-JISX0201 0xA0 .. 0xDF
4580 JISX0208 (1st byte) 0x81 .. 0x9F and 0xE0 .. 0xEF
4581 (2nd byte) 0x40 .. 0x7E and 0x80 .. 0xFC
4582 -------------------------------
4583
4584 */
4585
4586 /* BIG5 is a coding system encoding two character sets: ASCII and
4587 Big5. An ASCII character is encoded as is. Big5 is a two-byte
4588 character set and is encoded in two-byte.
4589
4590 --- CODE RANGE of BIG5 ---
4591 (character set) (range)
4592 ASCII 0x00 .. 0x7F
4593 Big5 (1st byte) 0xA1 .. 0xFE
4594 (2nd byte) 0x40 .. 0x7E and 0xA1 .. 0xFE
4595 --------------------------
4596
4597 */
4598
4599 /* See the above "GENERAL NOTES on `detect_coding_XXX ()' functions".
4600 Return true if a text is encoded in SJIS. */
4601
4602 static bool
4603 detect_coding_sjis (struct coding_system *coding,
4604 struct coding_detection_info *detect_info)
4605 {
4606 const unsigned char *src = coding->source, *src_base;
4607 const unsigned char *src_end = coding->source + coding->src_bytes;
4608 bool multibytep = coding->src_multibyte;
4609 ptrdiff_t consumed_chars = 0;
4610 int found = 0;
4611 int c;
4612 Lisp_Object attrs, charset_list;
4613 int max_first_byte_of_2_byte_code;
4614
4615 CODING_GET_INFO (coding, attrs, charset_list);
4616 max_first_byte_of_2_byte_code
4617 = (XINT (Flength (charset_list)) > 3 ? 0xFC : 0xEF);
4618
4619 detect_info->checked |= CATEGORY_MASK_SJIS;
4620 /* A coding system of this category is always ASCII compatible. */
4621 src += coding->head_ascii;
4622
4623 while (1)
4624 {
4625 src_base = src;
4626 ONE_MORE_BYTE (c);
4627 if (c < 0x80)
4628 continue;
4629 if ((c >= 0x81 && c <= 0x9F)
4630 || (c >= 0xE0 && c <= max_first_byte_of_2_byte_code))
4631 {
4632 ONE_MORE_BYTE (c);
4633 if (c < 0x40 || c == 0x7F || c > 0xFC)
4634 break;
4635 found = CATEGORY_MASK_SJIS;
4636 }
4637 else if (c >= 0xA0 && c < 0xE0)
4638 found = CATEGORY_MASK_SJIS;
4639 else
4640 break;
4641 }
4642 detect_info->rejected |= CATEGORY_MASK_SJIS;
4643 return 0;
4644
4645 no_more_source:
4646 if (src_base < src && coding->mode & CODING_MODE_LAST_BLOCK)
4647 {
4648 detect_info->rejected |= CATEGORY_MASK_SJIS;
4649 return 0;
4650 }
4651 detect_info->found |= found;
4652 return 1;
4653 }
4654
4655 /* See the above "GENERAL NOTES on `detect_coding_XXX ()' functions".
4656 Return true if a text is encoded in BIG5. */
4657
4658 static bool
4659 detect_coding_big5 (struct coding_system *coding,
4660 struct coding_detection_info *detect_info)
4661 {
4662 const unsigned char *src = coding->source, *src_base;
4663 const unsigned char *src_end = coding->source + coding->src_bytes;
4664 bool multibytep = coding->src_multibyte;
4665 ptrdiff_t consumed_chars = 0;
4666 int found = 0;
4667 int c;
4668
4669 detect_info->checked |= CATEGORY_MASK_BIG5;
4670 /* A coding system of this category is always ASCII compatible. */
4671 src += coding->head_ascii;
4672
4673 while (1)
4674 {
4675 src_base = src;
4676 ONE_MORE_BYTE (c);
4677 if (c < 0x80)
4678 continue;
4679 if (c >= 0xA1)
4680 {
4681 ONE_MORE_BYTE (c);
4682 if (c < 0x40 || (c >= 0x7F && c <= 0xA0))
4683 return 0;
4684 found = CATEGORY_MASK_BIG5;
4685 }
4686 else
4687 break;
4688 }
4689 detect_info->rejected |= CATEGORY_MASK_BIG5;
4690 return 0;
4691
4692 no_more_source:
4693 if (src_base < src && coding->mode & CODING_MODE_LAST_BLOCK)
4694 {
4695 detect_info->rejected |= CATEGORY_MASK_BIG5;
4696 return 0;
4697 }
4698 detect_info->found |= found;
4699 return 1;
4700 }
4701
4702 /* See the above "GENERAL NOTES on `decode_coding_XXX ()' functions". */
4703
4704 static void
4705 decode_coding_sjis (struct coding_system *coding)
4706 {
4707 const unsigned char *src = coding->source + coding->consumed;
4708 const unsigned char *src_end = coding->source + coding->src_bytes;
4709 const unsigned char *src_base;
4710 int *charbuf = coding->charbuf + coding->charbuf_used;
4711 /* We may produce one charset annotation in one loop and one more at
4712 the end. */
4713 int *charbuf_end
4714 = coding->charbuf + coding->charbuf_size - (MAX_ANNOTATION_LENGTH * 2);
4715 ptrdiff_t consumed_chars = 0, consumed_chars_base;
4716 bool multibytep = coding->src_multibyte;
4717 struct charset *charset_roman, *charset_kanji, *charset_kana;
4718 struct charset *charset_kanji2;
4719 Lisp_Object attrs, charset_list, val;
4720 ptrdiff_t char_offset = coding->produced_char;
4721 ptrdiff_t last_offset = char_offset;
4722 int last_id = charset_ascii;
4723 bool eol_dos
4724 = !inhibit_eol_conversion && EQ (CODING_ID_EOL_TYPE (coding->id), Qdos);
4725 int byte_after_cr = -1;
4726
4727 CODING_GET_INFO (coding, attrs, charset_list);
4728
4729 val = charset_list;
4730 charset_roman = CHARSET_FROM_ID (XINT (XCAR (val))), val = XCDR (val);
4731 charset_kana = CHARSET_FROM_ID (XINT (XCAR (val))), val = XCDR (val);
4732 charset_kanji = CHARSET_FROM_ID (XINT (XCAR (val))), val = XCDR (val);
4733 charset_kanji2 = NILP (val) ? NULL : CHARSET_FROM_ID (XINT (XCAR (val)));
4734
4735 while (1)
4736 {
4737 int c, c1;
4738 struct charset *charset;
4739
4740 src_base = src;
4741 consumed_chars_base = consumed_chars;
4742
4743 if (charbuf >= charbuf_end)
4744 {
4745 if (byte_after_cr >= 0)
4746 src_base--;
4747 break;
4748 }
4749
4750 if (byte_after_cr >= 0)
4751 c = byte_after_cr, byte_after_cr = -1;
4752 else
4753 ONE_MORE_BYTE (c);
4754 if (c < 0)
4755 goto invalid_code;
4756 if (c < 0x80)
4757 {
4758 if (eol_dos && c == '\r')
4759 ONE_MORE_BYTE (byte_after_cr);
4760 charset = charset_roman;
4761 }
4762 else if (c == 0x80 || c == 0xA0)
4763 goto invalid_code;
4764 else if (c >= 0xA1 && c <= 0xDF)
4765 {
4766 /* SJIS -> JISX0201-Kana */
4767 c &= 0x7F;
4768 charset = charset_kana;
4769 }
4770 else if (c <= 0xEF)
4771 {
4772 /* SJIS -> JISX0208 */
4773 ONE_MORE_BYTE (c1);
4774 if (c1 < 0x40 || c1 == 0x7F || c1 > 0xFC)
4775 goto invalid_code;
4776 c = (c << 8) | c1;
4777 SJIS_TO_JIS (c);
4778 charset = charset_kanji;
4779 }
4780 else if (c <= 0xFC && charset_kanji2)
4781 {
4782 /* SJIS -> JISX0213-2 */
4783 ONE_MORE_BYTE (c1);
4784 if (c1 < 0x40 || c1 == 0x7F || c1 > 0xFC)
4785 goto invalid_code;
4786 c = (c << 8) | c1;
4787 SJIS_TO_JIS2 (c);
4788 charset = charset_kanji2;
4789 }
4790 else
4791 goto invalid_code;
4792 if (charset->id != charset_ascii
4793 && last_id != charset->id)
4794 {
4795 if (last_id != charset_ascii)
4796 ADD_CHARSET_DATA (charbuf, char_offset - last_offset, last_id);
4797 last_id = charset->id;
4798 last_offset = char_offset;
4799 }
4800 CODING_DECODE_CHAR (coding, src, src_base, src_end, charset, c, c);
4801 *charbuf++ = c;
4802 char_offset++;
4803 continue;
4804
4805 invalid_code:
4806 src = src_base;
4807 consumed_chars = consumed_chars_base;
4808 ONE_MORE_BYTE (c);
4809 *charbuf++ = c < 0 ? -c : BYTE8_TO_CHAR (c);
4810 char_offset++;
4811 }
4812
4813 no_more_source:
4814 if (last_id != charset_ascii)
4815 ADD_CHARSET_DATA (charbuf, char_offset - last_offset, last_id);
4816 coding->consumed_char += consumed_chars_base;
4817 coding->consumed = src_base - coding->source;
4818 coding->charbuf_used = charbuf - coding->charbuf;
4819 }
4820
4821 static void
4822 decode_coding_big5 (struct coding_system *coding)
4823 {
4824 const unsigned char *src = coding->source + coding->consumed;
4825 const unsigned char *src_end = coding->source + coding->src_bytes;
4826 const unsigned char *src_base;
4827 int *charbuf = coding->charbuf + coding->charbuf_used;
4828 /* We may produce one charset annotation in one loop and one more at
4829 the end. */
4830 int *charbuf_end
4831 = coding->charbuf + coding->charbuf_size - (MAX_ANNOTATION_LENGTH * 2);
4832 ptrdiff_t consumed_chars = 0, consumed_chars_base;
4833 bool multibytep = coding->src_multibyte;
4834 struct charset *charset_roman, *charset_big5;
4835 Lisp_Object attrs, charset_list, val;
4836 ptrdiff_t char_offset = coding->produced_char;
4837 ptrdiff_t last_offset = char_offset;
4838 int last_id = charset_ascii;
4839 bool eol_dos
4840 = !inhibit_eol_conversion && EQ (CODING_ID_EOL_TYPE (coding->id), Qdos);
4841 int byte_after_cr = -1;
4842
4843 CODING_GET_INFO (coding, attrs, charset_list);
4844 val = charset_list;
4845 charset_roman = CHARSET_FROM_ID (XINT (XCAR (val))), val = XCDR (val);
4846 charset_big5 = CHARSET_FROM_ID (XINT (XCAR (val)));
4847
4848 while (1)
4849 {
4850 int c, c1;
4851 struct charset *charset;
4852
4853 src_base = src;
4854 consumed_chars_base = consumed_chars;
4855
4856 if (charbuf >= charbuf_end)
4857 {
4858 if (byte_after_cr >= 0)
4859 src_base--;
4860 break;
4861 }
4862
4863 if (byte_after_cr >= 0)
4864 c = byte_after_cr, byte_after_cr = -1;
4865 else
4866 ONE_MORE_BYTE (c);
4867
4868 if (c < 0)
4869 goto invalid_code;
4870 if (c < 0x80)
4871 {
4872 if (eol_dos && c == '\r')
4873 ONE_MORE_BYTE (byte_after_cr);
4874 charset = charset_roman;
4875 }
4876 else
4877 {
4878 /* BIG5 -> Big5 */
4879 if (c < 0xA1 || c > 0xFE)
4880 goto invalid_code;
4881 ONE_MORE_BYTE (c1);
4882 if (c1 < 0x40 || (c1 > 0x7E && c1 < 0xA1) || c1 > 0xFE)
4883 goto invalid_code;
4884 c = c << 8 | c1;
4885 charset = charset_big5;
4886 }
4887 if (charset->id != charset_ascii
4888 && last_id != charset->id)
4889 {
4890 if (last_id != charset_ascii)
4891 ADD_CHARSET_DATA (charbuf, char_offset - last_offset, last_id);
4892 last_id = charset->id;
4893 last_offset = char_offset;
4894 }
4895 CODING_DECODE_CHAR (coding, src, src_base, src_end, charset, c, c);
4896 *charbuf++ = c;
4897 char_offset++;
4898 continue;
4899
4900 invalid_code:
4901 src = src_base;
4902 consumed_chars = consumed_chars_base;
4903 ONE_MORE_BYTE (c);
4904 *charbuf++ = c < 0 ? -c : BYTE8_TO_CHAR (c);
4905 char_offset++;
4906 }
4907
4908 no_more_source:
4909 if (last_id != charset_ascii)
4910 ADD_CHARSET_DATA (charbuf, char_offset - last_offset, last_id);
4911 coding->consumed_char += consumed_chars_base;
4912 coding->consumed = src_base - coding->source;
4913 coding->charbuf_used = charbuf - coding->charbuf;
4914 }
4915
4916 /* See the above "GENERAL NOTES on `encode_coding_XXX ()' functions".
4917 This function can encode charsets `ascii', `katakana-jisx0201',
4918 `japanese-jisx0208', `chinese-big5-1', and `chinese-big5-2'. We
4919 are sure that all these charsets are registered as official charset
4920 (i.e. do not have extended leading-codes). Characters of other
4921 charsets are produced without any encoding. */
4922
4923 static bool
4924 encode_coding_sjis (struct coding_system *coding)
4925 {
4926 bool multibytep = coding->dst_multibyte;
4927 int *charbuf = coding->charbuf;
4928 int *charbuf_end = charbuf + coding->charbuf_used;
4929 unsigned char *dst = coding->destination + coding->produced;
4930 unsigned char *dst_end = coding->destination + coding->dst_bytes;
4931 int safe_room = 4;
4932 ptrdiff_t produced_chars = 0;
4933 Lisp_Object attrs, charset_list, val;
4934 bool ascii_compatible;
4935 struct charset *charset_kanji, *charset_kana;
4936 struct charset *charset_kanji2;
4937 int c;
4938
4939 CODING_GET_INFO (coding, attrs, charset_list);
4940 val = XCDR (charset_list);
4941 charset_kana = CHARSET_FROM_ID (XINT (XCAR (val))), val = XCDR (val);
4942 charset_kanji = CHARSET_FROM_ID (XINT (XCAR (val))), val = XCDR (val);
4943 charset_kanji2 = NILP (val) ? NULL : CHARSET_FROM_ID (XINT (XCAR (val)));
4944
4945 ascii_compatible = ! NILP (CODING_ATTR_ASCII_COMPAT (attrs));
4946
4947 while (charbuf < charbuf_end)
4948 {
4949 ASSURE_DESTINATION (safe_room);
4950 c = *charbuf++;
4951 /* Now encode the character C. */
4952 if (ASCII_CHAR_P (c) && ascii_compatible)
4953 EMIT_ONE_ASCII_BYTE (c);
4954 else if (CHAR_BYTE8_P (c))
4955 {
4956 c = CHAR_TO_BYTE8 (c);
4957 EMIT_ONE_BYTE (c);
4958 }
4959 else
4960 {
4961 unsigned code;
4962 struct charset *charset;
4963 CODING_CHAR_CHARSET (coding, dst, dst_end, c, charset_list,
4964 &code, charset);
4965
4966 if (!charset)
4967 {
4968 if (coding->mode & CODING_MODE_SAFE_ENCODING)
4969 {
4970 code = CODING_INHIBIT_CHARACTER_SUBSTITUTION;
4971 charset = CHARSET_FROM_ID (charset_ascii);
4972 }
4973 else
4974 {
4975 c = coding->default_char;
4976 CODING_CHAR_CHARSET (coding, dst, dst_end, c,
4977 charset_list, &code, charset);
4978 }
4979 }
4980 if (code == CHARSET_INVALID_CODE (charset))
4981 emacs_abort ();
4982 if (charset == charset_kanji)
4983 {
4984 int c1, c2;
4985 JIS_TO_SJIS (code);
4986 c1 = code >> 8, c2 = code & 0xFF;
4987 EMIT_TWO_BYTES (c1, c2);
4988 }
4989 else if (charset == charset_kana)
4990 EMIT_ONE_BYTE (code | 0x80);
4991 else if (charset_kanji2 && charset == charset_kanji2)
4992 {
4993 int c1, c2;
4994
4995 c1 = code >> 8;
4996 if (c1 == 0x21 || (c1 >= 0x23 && c1 <= 0x25)
4997 || c1 == 0x28
4998 || (c1 >= 0x2C && c1 <= 0x2F) || c1 >= 0x6E)
4999 {
5000 JIS_TO_SJIS2 (code);
5001 c1 = code >> 8, c2 = code & 0xFF;
5002 EMIT_TWO_BYTES (c1, c2);
5003 }
5004 else
5005 EMIT_ONE_ASCII_BYTE (code & 0x7F);
5006 }
5007 else
5008 EMIT_ONE_ASCII_BYTE (code & 0x7F);
5009 }
5010 }
5011 record_conversion_result (coding, CODING_RESULT_SUCCESS);
5012 coding->produced_char += produced_chars;
5013 coding->produced = dst - coding->destination;
5014 return 0;
5015 }
5016
5017 static bool
5018 encode_coding_big5 (struct coding_system *coding)
5019 {
5020 bool multibytep = coding->dst_multibyte;
5021 int *charbuf = coding->charbuf;
5022 int *charbuf_end = charbuf + coding->charbuf_used;
5023 unsigned char *dst = coding->destination + coding->produced;
5024 unsigned char *dst_end = coding->destination + coding->dst_bytes;
5025 int safe_room = 4;
5026 ptrdiff_t produced_chars = 0;
5027 Lisp_Object attrs, charset_list, val;
5028 bool ascii_compatible;
5029 struct charset *charset_big5;
5030 int c;
5031
5032 CODING_GET_INFO (coding, attrs, charset_list);
5033 val = XCDR (charset_list);
5034 charset_big5 = CHARSET_FROM_ID (XINT (XCAR (val)));
5035 ascii_compatible = ! NILP (CODING_ATTR_ASCII_COMPAT (attrs));
5036
5037 while (charbuf < charbuf_end)
5038 {
5039 ASSURE_DESTINATION (safe_room);
5040 c = *charbuf++;
5041 /* Now encode the character C. */
5042 if (ASCII_CHAR_P (c) && ascii_compatible)
5043 EMIT_ONE_ASCII_BYTE (c);
5044 else if (CHAR_BYTE8_P (c))
5045 {
5046 c = CHAR_TO_BYTE8 (c);
5047 EMIT_ONE_BYTE (c);
5048 }
5049 else
5050 {
5051 unsigned code;
5052 struct charset *charset;
5053 CODING_CHAR_CHARSET (coding, dst, dst_end, c, charset_list,
5054 &code, charset);
5055
5056 if (! charset)
5057 {
5058 if (coding->mode & CODING_MODE_SAFE_ENCODING)
5059 {
5060 code = CODING_INHIBIT_CHARACTER_SUBSTITUTION;
5061 charset = CHARSET_FROM_ID (charset_ascii);
5062 }
5063 else
5064 {
5065 c = coding->default_char;
5066 CODING_CHAR_CHARSET (coding, dst, dst_end, c,
5067 charset_list, &code, charset);
5068 }
5069 }
5070 if (code == CHARSET_INVALID_CODE (charset))
5071 emacs_abort ();
5072 if (charset == charset_big5)
5073 {
5074 int c1, c2;
5075
5076 c1 = code >> 8, c2 = code & 0xFF;
5077 EMIT_TWO_BYTES (c1, c2);
5078 }
5079 else
5080 EMIT_ONE_ASCII_BYTE (code & 0x7F);
5081 }
5082 }
5083 record_conversion_result (coding, CODING_RESULT_SUCCESS);
5084 coding->produced_char += produced_chars;
5085 coding->produced = dst - coding->destination;
5086 return 0;
5087 }
5088
5089 \f
5090 /*** 10. CCL handlers ***/
5091
5092 /* See the above "GENERAL NOTES on `detect_coding_XXX ()' functions".
5093 Return true if a text is encoded in a coding system of which
5094 encoder/decoder are written in CCL program. */
5095
5096 static bool
5097 detect_coding_ccl (struct coding_system *coding,
5098 struct coding_detection_info *detect_info)
5099 {
5100 const unsigned char *src = coding->source, *src_base;
5101 const unsigned char *src_end = coding->source + coding->src_bytes;
5102 bool multibytep = coding->src_multibyte;
5103 ptrdiff_t consumed_chars = 0;
5104 int found = 0;
5105 unsigned char *valids;
5106 ptrdiff_t head_ascii = coding->head_ascii;
5107 Lisp_Object attrs;
5108
5109 detect_info->checked |= CATEGORY_MASK_CCL;
5110
5111 coding = &coding_categories[coding_category_ccl];
5112 valids = CODING_CCL_VALIDS (coding);
5113 attrs = CODING_ID_ATTRS (coding->id);
5114 if (! NILP (CODING_ATTR_ASCII_COMPAT (attrs)))
5115 src += head_ascii;
5116
5117 while (1)
5118 {
5119 int c;
5120
5121 src_base = src;
5122 ONE_MORE_BYTE (c);
5123 if (c < 0 || ! valids[c])
5124 break;
5125 if ((valids[c] > 1))
5126 found = CATEGORY_MASK_CCL;
5127 }
5128 detect_info->rejected |= CATEGORY_MASK_CCL;
5129 return 0;
5130
5131 no_more_source:
5132 detect_info->found |= found;
5133 return 1;
5134 }
5135
5136 static void
5137 decode_coding_ccl (struct coding_system *coding)
5138 {
5139 const unsigned char *src = coding->source + coding->consumed;
5140 const unsigned char *src_end = coding->source + coding->src_bytes;
5141 int *charbuf = coding->charbuf + coding->charbuf_used;
5142 int *charbuf_end = coding->charbuf + coding->charbuf_size;
5143 ptrdiff_t consumed_chars = 0;
5144 bool multibytep = coding->src_multibyte;
5145 struct ccl_program *ccl = &coding->spec.ccl->ccl;
5146 int source_charbuf[1024];
5147 int source_byteidx[1025];
5148 Lisp_Object attrs, charset_list;
5149
5150 CODING_GET_INFO (coding, attrs, charset_list);
5151
5152 while (1)
5153 {
5154 const unsigned char *p = src;
5155 ptrdiff_t offset;
5156 int i = 0;
5157
5158 if (multibytep)
5159 {
5160 while (i < 1024 && p < src_end)
5161 {
5162 source_byteidx[i] = p - src;
5163 source_charbuf[i++] = STRING_CHAR_ADVANCE (p);
5164 }
5165 source_byteidx[i] = p - src;
5166 }
5167 else
5168 while (i < 1024 && p < src_end)
5169 source_charbuf[i++] = *p++;
5170
5171 if (p == src_end && coding->mode & CODING_MODE_LAST_BLOCK)
5172 ccl->last_block = true;
5173 /* As ccl_driver calls DECODE_CHAR, buffer may be relocated. */
5174 charset_map_loaded = 0;
5175 ccl_driver (ccl, source_charbuf, charbuf, i, charbuf_end - charbuf,
5176 charset_list);
5177 if (charset_map_loaded
5178 && (offset = coding_change_source (coding)))
5179 {
5180 p += offset;
5181 src += offset;
5182 src_end += offset;
5183 }
5184 charbuf += ccl->produced;
5185 if (multibytep)
5186 src += source_byteidx[ccl->consumed];
5187 else
5188 src += ccl->consumed;
5189 consumed_chars += ccl->consumed;
5190 if (p == src_end || ccl->status != CCL_STAT_SUSPEND_BY_SRC)
5191 break;
5192 }
5193
5194 switch (ccl->status)
5195 {
5196 case CCL_STAT_SUSPEND_BY_SRC:
5197 record_conversion_result (coding, CODING_RESULT_INSUFFICIENT_SRC);
5198 break;
5199 case CCL_STAT_SUSPEND_BY_DST:
5200 record_conversion_result (coding, CODING_RESULT_INSUFFICIENT_DST);
5201 break;
5202 case CCL_STAT_QUIT:
5203 case CCL_STAT_INVALID_CMD:
5204 record_conversion_result (coding, CODING_RESULT_INTERRUPT);
5205 break;
5206 default:
5207 record_conversion_result (coding, CODING_RESULT_SUCCESS);
5208 break;
5209 }
5210 coding->consumed_char += consumed_chars;
5211 coding->consumed = src - coding->source;
5212 coding->charbuf_used = charbuf - coding->charbuf;
5213 }
5214
5215 static bool
5216 encode_coding_ccl (struct coding_system *coding)
5217 {
5218 struct ccl_program *ccl = &coding->spec.ccl->ccl;
5219 bool multibytep = coding->dst_multibyte;
5220 int *charbuf = coding->charbuf;
5221 int *charbuf_end = charbuf + coding->charbuf_used;
5222 unsigned char *dst = coding->destination + coding->produced;
5223 unsigned char *dst_end = coding->destination + coding->dst_bytes;
5224 int destination_charbuf[1024];
5225 ptrdiff_t produced_chars = 0;
5226 int i;
5227 Lisp_Object attrs, charset_list;
5228
5229 CODING_GET_INFO (coding, attrs, charset_list);
5230 if (coding->consumed_char == coding->src_chars
5231 && coding->mode & CODING_MODE_LAST_BLOCK)
5232 ccl->last_block = true;
5233
5234 do
5235 {
5236 ptrdiff_t offset;
5237
5238 /* As ccl_driver calls DECODE_CHAR, buffer may be relocated. */
5239 charset_map_loaded = 0;
5240 ccl_driver (ccl, charbuf, destination_charbuf,
5241 charbuf_end - charbuf, 1024, charset_list);
5242 if (charset_map_loaded
5243 && (offset = coding_change_destination (coding)))
5244 dst += offset;
5245 if (multibytep)
5246 {
5247 ASSURE_DESTINATION (ccl->produced * 2);
5248 for (i = 0; i < ccl->produced; i++)
5249 EMIT_ONE_BYTE (destination_charbuf[i] & 0xFF);
5250 }
5251 else
5252 {
5253 ASSURE_DESTINATION (ccl->produced);
5254 for (i = 0; i < ccl->produced; i++)
5255 *dst++ = destination_charbuf[i] & 0xFF;
5256 produced_chars += ccl->produced;
5257 }
5258 charbuf += ccl->consumed;
5259 if (ccl->status == CCL_STAT_QUIT
5260 || ccl->status == CCL_STAT_INVALID_CMD)
5261 break;
5262 }
5263 while (charbuf < charbuf_end);
5264
5265 switch (ccl->status)
5266 {
5267 case CCL_STAT_SUSPEND_BY_SRC:
5268 record_conversion_result (coding, CODING_RESULT_INSUFFICIENT_SRC);
5269 break;
5270 case CCL_STAT_SUSPEND_BY_DST:
5271 record_conversion_result (coding, CODING_RESULT_INSUFFICIENT_DST);
5272 break;
5273 case CCL_STAT_QUIT:
5274 case CCL_STAT_INVALID_CMD:
5275 record_conversion_result (coding, CODING_RESULT_INTERRUPT);
5276 break;
5277 default:
5278 record_conversion_result (coding, CODING_RESULT_SUCCESS);
5279 break;
5280 }
5281
5282 coding->produced_char += produced_chars;
5283 coding->produced = dst - coding->destination;
5284 return 0;
5285 }
5286
5287 \f
5288 /*** 10, 11. no-conversion handlers ***/
5289
5290 /* See the above "GENERAL NOTES on `decode_coding_XXX ()' functions". */
5291
5292 static void
5293 decode_coding_raw_text (struct coding_system *coding)
5294 {
5295 bool eol_dos
5296 = !inhibit_eol_conversion && EQ (CODING_ID_EOL_TYPE (coding->id), Qdos);
5297
5298 coding->chars_at_source = 1;
5299 coding->consumed_char = coding->src_chars;
5300 coding->consumed = coding->src_bytes;
5301 if (eol_dos && coding->source[coding->src_bytes - 1] == '\r')
5302 {
5303 coding->consumed_char--;
5304 coding->consumed--;
5305 record_conversion_result (coding, CODING_RESULT_INSUFFICIENT_SRC);
5306 }
5307 else
5308 record_conversion_result (coding, CODING_RESULT_SUCCESS);
5309 }
5310
5311 static bool
5312 encode_coding_raw_text (struct coding_system *coding)
5313 {
5314 bool multibytep = coding->dst_multibyte;
5315 int *charbuf = coding->charbuf;
5316 int *charbuf_end = coding->charbuf + coding->charbuf_used;
5317 unsigned char *dst = coding->destination + coding->produced;
5318 unsigned char *dst_end = coding->destination + coding->dst_bytes;
5319 ptrdiff_t produced_chars = 0;
5320 int c;
5321
5322 if (multibytep)
5323 {
5324 int safe_room = MAX_MULTIBYTE_LENGTH * 2;
5325
5326 if (coding->src_multibyte)
5327 while (charbuf < charbuf_end)
5328 {
5329 ASSURE_DESTINATION (safe_room);
5330 c = *charbuf++;
5331 if (ASCII_CHAR_P (c))
5332 EMIT_ONE_ASCII_BYTE (c);
5333 else if (CHAR_BYTE8_P (c))
5334 {
5335 c = CHAR_TO_BYTE8 (c);
5336 EMIT_ONE_BYTE (c);
5337 }
5338 else
5339 {
5340 unsigned char str[MAX_MULTIBYTE_LENGTH], *p0 = str, *p1 = str;
5341
5342 CHAR_STRING_ADVANCE (c, p1);
5343 do
5344 {
5345 EMIT_ONE_BYTE (*p0);
5346 p0++;
5347 }
5348 while (p0 < p1);
5349 }
5350 }
5351 else
5352 while (charbuf < charbuf_end)
5353 {
5354 ASSURE_DESTINATION (safe_room);
5355 c = *charbuf++;
5356 EMIT_ONE_BYTE (c);
5357 }
5358 }
5359 else
5360 {
5361 if (coding->src_multibyte)
5362 {
5363 int safe_room = MAX_MULTIBYTE_LENGTH;
5364
5365 while (charbuf < charbuf_end)
5366 {
5367 ASSURE_DESTINATION (safe_room);
5368 c = *charbuf++;
5369 if (ASCII_CHAR_P (c))
5370 *dst++ = c;
5371 else if (CHAR_BYTE8_P (c))
5372 *dst++ = CHAR_TO_BYTE8 (c);
5373 else
5374 CHAR_STRING_ADVANCE (c, dst);
5375 }
5376 }
5377 else
5378 {
5379 ASSURE_DESTINATION (charbuf_end - charbuf);
5380 while (charbuf < charbuf_end && dst < dst_end)
5381 *dst++ = *charbuf++;
5382 }
5383 produced_chars = dst - (coding->destination + coding->produced);
5384 }
5385 record_conversion_result (coding, CODING_RESULT_SUCCESS);
5386 coding->produced_char += produced_chars;
5387 coding->produced = dst - coding->destination;
5388 return 0;
5389 }
5390
5391 /* See the above "GENERAL NOTES on `detect_coding_XXX ()' functions".
5392 Return true if a text is encoded in a charset-based coding system. */
5393
5394 static bool
5395 detect_coding_charset (struct coding_system *coding,
5396 struct coding_detection_info *detect_info)
5397 {
5398 const unsigned char *src = coding->source, *src_base;
5399 const unsigned char *src_end = coding->source + coding->src_bytes;
5400 bool multibytep = coding->src_multibyte;
5401 ptrdiff_t consumed_chars = 0;
5402 Lisp_Object attrs, valids, name;
5403 int found = 0;
5404 ptrdiff_t head_ascii = coding->head_ascii;
5405 bool check_latin_extra = 0;
5406
5407 detect_info->checked |= CATEGORY_MASK_CHARSET;
5408
5409 coding = &coding_categories[coding_category_charset];
5410 attrs = CODING_ID_ATTRS (coding->id);
5411 valids = AREF (attrs, coding_attr_charset_valids);
5412 name = CODING_ID_NAME (coding->id);
5413 if (strncmp (SSDATA (SYMBOL_NAME (name)),
5414 "iso-8859-", sizeof ("iso-8859-") - 1) == 0
5415 || strncmp (SSDATA (SYMBOL_NAME (name)),
5416 "iso-latin-", sizeof ("iso-latin-") - 1) == 0)
5417 check_latin_extra = 1;
5418
5419 if (! NILP (CODING_ATTR_ASCII_COMPAT (attrs)))
5420 src += head_ascii;
5421
5422 while (1)
5423 {
5424 int c;
5425 Lisp_Object val;
5426 struct charset *charset;
5427 int dim, idx;
5428
5429 src_base = src;
5430 ONE_MORE_BYTE (c);
5431 if (c < 0)
5432 continue;
5433 val = AREF (valids, c);
5434 if (NILP (val))
5435 break;
5436 if (c >= 0x80)
5437 {
5438 if (c < 0xA0
5439 && check_latin_extra
5440 && (!VECTORP (Vlatin_extra_code_table)
5441 || NILP (AREF (Vlatin_extra_code_table, c))))
5442 break;
5443 found = CATEGORY_MASK_CHARSET;
5444 }
5445 if (INTEGERP (val))
5446 {
5447 charset = CHARSET_FROM_ID (XFASTINT (val));
5448 dim = CHARSET_DIMENSION (charset);
5449 for (idx = 1; idx < dim; idx++)
5450 {
5451 if (src == src_end)
5452 goto too_short;
5453 ONE_MORE_BYTE (c);
5454 if (c < charset->code_space[(dim - 1 - idx) * 4]
5455 || c > charset->code_space[(dim - 1 - idx) * 4 + 1])
5456 break;
5457 }
5458 if (idx < dim)
5459 break;
5460 }
5461 else
5462 {
5463 idx = 1;
5464 for (; CONSP (val); val = XCDR (val))
5465 {
5466 charset = CHARSET_FROM_ID (XFASTINT (XCAR (val)));
5467 dim = CHARSET_DIMENSION (charset);
5468 while (idx < dim)
5469 {
5470 if (src == src_end)
5471 goto too_short;
5472 ONE_MORE_BYTE (c);
5473 if (c < charset->code_space[(dim - 1 - idx) * 4]
5474 || c > charset->code_space[(dim - 1 - idx) * 4 + 1])
5475 break;
5476 idx++;
5477 }
5478 if (idx == dim)
5479 {
5480 val = Qnil;
5481 break;
5482 }
5483 }
5484 if (CONSP (val))
5485 break;
5486 }
5487 }
5488 too_short:
5489 detect_info->rejected |= CATEGORY_MASK_CHARSET;
5490 return 0;
5491
5492 no_more_source:
5493 detect_info->found |= found;
5494 return 1;
5495 }
5496
5497 static void
5498 decode_coding_charset (struct coding_system *coding)
5499 {
5500 const unsigned char *src = coding->source + coding->consumed;
5501 const unsigned char *src_end = coding->source + coding->src_bytes;
5502 const unsigned char *src_base;
5503 int *charbuf = coding->charbuf + coding->charbuf_used;
5504 /* We may produce one charset annotation in one loop and one more at
5505 the end. */
5506 int *charbuf_end
5507 = coding->charbuf + coding->charbuf_size - (MAX_ANNOTATION_LENGTH * 2);
5508 ptrdiff_t consumed_chars = 0, consumed_chars_base;
5509 bool multibytep = coding->src_multibyte;
5510 Lisp_Object attrs = CODING_ID_ATTRS (coding->id);
5511 Lisp_Object valids;
5512 ptrdiff_t char_offset = coding->produced_char;
5513 ptrdiff_t last_offset = char_offset;
5514 int last_id = charset_ascii;
5515 bool eol_dos
5516 = !inhibit_eol_conversion && EQ (CODING_ID_EOL_TYPE (coding->id), Qdos);
5517 int byte_after_cr = -1;
5518
5519 valids = AREF (attrs, coding_attr_charset_valids);
5520
5521 while (1)
5522 {
5523 int c;
5524 Lisp_Object val;
5525 struct charset *charset;
5526 int dim;
5527 int len = 1;
5528 unsigned code;
5529
5530 src_base = src;
5531 consumed_chars_base = consumed_chars;
5532
5533 if (charbuf >= charbuf_end)
5534 {
5535 if (byte_after_cr >= 0)
5536 src_base--;
5537 break;
5538 }
5539
5540 if (byte_after_cr >= 0)
5541 {
5542 c = byte_after_cr;
5543 byte_after_cr = -1;
5544 }
5545 else
5546 {
5547 ONE_MORE_BYTE (c);
5548 if (eol_dos && c == '\r')
5549 ONE_MORE_BYTE (byte_after_cr);
5550 }
5551 if (c < 0)
5552 goto invalid_code;
5553 code = c;
5554
5555 val = AREF (valids, c);
5556 if (! INTEGERP (val) && ! CONSP (val))
5557 goto invalid_code;
5558 if (INTEGERP (val))
5559 {
5560 charset = CHARSET_FROM_ID (XFASTINT (val));
5561 dim = CHARSET_DIMENSION (charset);
5562 while (len < dim)
5563 {
5564 ONE_MORE_BYTE (c);
5565 code = (code << 8) | c;
5566 len++;
5567 }
5568 CODING_DECODE_CHAR (coding, src, src_base, src_end,
5569 charset, code, c);
5570 }
5571 else
5572 {
5573 /* VAL is a list of charset IDs. It is assured that the
5574 list is sorted by charset dimensions (smaller one
5575 comes first). */
5576 while (CONSP (val))
5577 {
5578 charset = CHARSET_FROM_ID (XFASTINT (XCAR (val)));
5579 dim = CHARSET_DIMENSION (charset);
5580 while (len < dim)
5581 {
5582 ONE_MORE_BYTE (c);
5583 code = (code << 8) | c;
5584 len++;
5585 }
5586 CODING_DECODE_CHAR (coding, src, src_base,
5587 src_end, charset, code, c);
5588 if (c >= 0)
5589 break;
5590 val = XCDR (val);
5591 }
5592 }
5593 if (c < 0)
5594 goto invalid_code;
5595 if (charset->id != charset_ascii
5596 && last_id != charset->id)
5597 {
5598 if (last_id != charset_ascii)
5599 ADD_CHARSET_DATA (charbuf, char_offset - last_offset, last_id);
5600 last_id = charset->id;
5601 last_offset = char_offset;
5602 }
5603
5604 *charbuf++ = c;
5605 char_offset++;
5606 continue;
5607
5608 invalid_code:
5609 src = src_base;
5610 consumed_chars = consumed_chars_base;
5611 ONE_MORE_BYTE (c);
5612 *charbuf++ = c < 0 ? -c : ASCII_CHAR_P (c) ? c : BYTE8_TO_CHAR (c);
5613 char_offset++;
5614 }
5615
5616 no_more_source:
5617 if (last_id != charset_ascii)
5618 ADD_CHARSET_DATA (charbuf, char_offset - last_offset, last_id);
5619 coding->consumed_char += consumed_chars_base;
5620 coding->consumed = src_base - coding->source;
5621 coding->charbuf_used = charbuf - coding->charbuf;
5622 }
5623
5624 static bool
5625 encode_coding_charset (struct coding_system *coding)
5626 {
5627 bool multibytep = coding->dst_multibyte;
5628 int *charbuf = coding->charbuf;
5629 int *charbuf_end = charbuf + coding->charbuf_used;
5630 unsigned char *dst = coding->destination + coding->produced;
5631 unsigned char *dst_end = coding->destination + coding->dst_bytes;
5632 int safe_room = MAX_MULTIBYTE_LENGTH;
5633 ptrdiff_t produced_chars = 0;
5634 Lisp_Object attrs, charset_list;
5635 bool ascii_compatible;
5636 int c;
5637
5638 CODING_GET_INFO (coding, attrs, charset_list);
5639 ascii_compatible = ! NILP (CODING_ATTR_ASCII_COMPAT (attrs));
5640
5641 while (charbuf < charbuf_end)
5642 {
5643 struct charset *charset;
5644 unsigned code;
5645
5646 ASSURE_DESTINATION (safe_room);
5647 c = *charbuf++;
5648 if (ascii_compatible && ASCII_CHAR_P (c))
5649 EMIT_ONE_ASCII_BYTE (c);
5650 else if (CHAR_BYTE8_P (c))
5651 {
5652 c = CHAR_TO_BYTE8 (c);
5653 EMIT_ONE_BYTE (c);
5654 }
5655 else
5656 {
5657 CODING_CHAR_CHARSET (coding, dst, dst_end, c, charset_list,
5658 &code, charset);
5659
5660 if (charset)
5661 {
5662 if (CHARSET_DIMENSION (charset) == 1)
5663 EMIT_ONE_BYTE (code);
5664 else if (CHARSET_DIMENSION (charset) == 2)
5665 EMIT_TWO_BYTES (code >> 8, code & 0xFF);
5666 else if (CHARSET_DIMENSION (charset) == 3)
5667 EMIT_THREE_BYTES (code >> 16, (code >> 8) & 0xFF, code & 0xFF);
5668 else
5669 EMIT_FOUR_BYTES (code >> 24, (code >> 16) & 0xFF,
5670 (code >> 8) & 0xFF, code & 0xFF);
5671 }
5672 else
5673 {
5674 if (coding->mode & CODING_MODE_SAFE_ENCODING)
5675 c = CODING_INHIBIT_CHARACTER_SUBSTITUTION;
5676 else
5677 c = coding->default_char;
5678 EMIT_ONE_BYTE (c);
5679 }
5680 }
5681 }
5682
5683 record_conversion_result (coding, CODING_RESULT_SUCCESS);
5684 coding->produced_char += produced_chars;
5685 coding->produced = dst - coding->destination;
5686 return 0;
5687 }
5688
5689 \f
5690 /*** 7. C library functions ***/
5691
5692 /* Setup coding context CODING from information about CODING_SYSTEM.
5693 If CODING_SYSTEM is nil, `no-conversion' is assumed. If
5694 CODING_SYSTEM is invalid, signal an error. */
5695
5696 void
5697 setup_coding_system (Lisp_Object coding_system, struct coding_system *coding)
5698 {
5699 Lisp_Object attrs;
5700 Lisp_Object eol_type;
5701 Lisp_Object coding_type;
5702 Lisp_Object val;
5703
5704 if (NILP (coding_system))
5705 coding_system = Qundecided;
5706
5707 CHECK_CODING_SYSTEM_GET_ID (coding_system, coding->id);
5708
5709 attrs = CODING_ID_ATTRS (coding->id);
5710 eol_type = inhibit_eol_conversion ? Qunix : CODING_ID_EOL_TYPE (coding->id);
5711
5712 coding->mode = 0;
5713 if (VECTORP (eol_type))
5714 coding->common_flags = (CODING_REQUIRE_DECODING_MASK
5715 | CODING_REQUIRE_DETECTION_MASK);
5716 else if (! EQ (eol_type, Qunix))
5717 coding->common_flags = (CODING_REQUIRE_DECODING_MASK
5718 | CODING_REQUIRE_ENCODING_MASK);
5719 else
5720 coding->common_flags = 0;
5721 if (! NILP (CODING_ATTR_POST_READ (attrs)))
5722 coding->common_flags |= CODING_REQUIRE_DECODING_MASK;
5723 if (! NILP (CODING_ATTR_PRE_WRITE (attrs)))
5724 coding->common_flags |= CODING_REQUIRE_ENCODING_MASK;
5725 if (! NILP (CODING_ATTR_FOR_UNIBYTE (attrs)))
5726 coding->common_flags |= CODING_FOR_UNIBYTE_MASK;
5727
5728 val = CODING_ATTR_SAFE_CHARSETS (attrs);
5729 coding->max_charset_id = SCHARS (val) - 1;
5730 coding->safe_charsets = SDATA (val);
5731 coding->default_char = XINT (CODING_ATTR_DEFAULT_CHAR (attrs));
5732 coding->carryover_bytes = 0;
5733 coding->raw_destination = 0;
5734
5735 coding_type = CODING_ATTR_TYPE (attrs);
5736 if (EQ (coding_type, Qundecided))
5737 {
5738 coding->detector = NULL;
5739 coding->decoder = decode_coding_raw_text;
5740 coding->encoder = encode_coding_raw_text;
5741 coding->common_flags |= CODING_REQUIRE_DETECTION_MASK;
5742 coding->spec.undecided.inhibit_nbd
5743 = (encode_inhibit_flag
5744 (AREF (attrs, coding_attr_undecided_inhibit_null_byte_detection)));
5745 coding->spec.undecided.inhibit_ied
5746 = (encode_inhibit_flag
5747 (AREF (attrs, coding_attr_undecided_inhibit_iso_escape_detection)));
5748 coding->spec.undecided.prefer_utf_8
5749 = ! NILP (AREF (attrs, coding_attr_undecided_prefer_utf_8));
5750 }
5751 else if (EQ (coding_type, Qiso_2022))
5752 {
5753 int i;
5754 int flags = XINT (AREF (attrs, coding_attr_iso_flags));
5755
5756 /* Invoke graphic register 0 to plane 0. */
5757 CODING_ISO_INVOCATION (coding, 0) = 0;
5758 /* Invoke graphic register 1 to plane 1 if we can use 8-bit. */
5759 CODING_ISO_INVOCATION (coding, 1)
5760 = (flags & CODING_ISO_FLAG_SEVEN_BITS ? -1 : 1);
5761 /* Setup the initial status of designation. */
5762 for (i = 0; i < 4; i++)
5763 CODING_ISO_DESIGNATION (coding, i) = CODING_ISO_INITIAL (coding, i);
5764 /* Not single shifting initially. */
5765 CODING_ISO_SINGLE_SHIFTING (coding) = 0;
5766 /* Beginning of buffer should also be regarded as bol. */
5767 CODING_ISO_BOL (coding) = 1;
5768 coding->detector = detect_coding_iso_2022;
5769 coding->decoder = decode_coding_iso_2022;
5770 coding->encoder = encode_coding_iso_2022;
5771 if (flags & CODING_ISO_FLAG_SAFE)
5772 coding->mode |= CODING_MODE_SAFE_ENCODING;
5773 coding->common_flags
5774 |= (CODING_REQUIRE_DECODING_MASK | CODING_REQUIRE_ENCODING_MASK
5775 | CODING_REQUIRE_FLUSHING_MASK);
5776 if (flags & CODING_ISO_FLAG_COMPOSITION)
5777 coding->common_flags |= CODING_ANNOTATE_COMPOSITION_MASK;
5778 if (flags & CODING_ISO_FLAG_DESIGNATION)
5779 coding->common_flags |= CODING_ANNOTATE_CHARSET_MASK;
5780 if (flags & CODING_ISO_FLAG_FULL_SUPPORT)
5781 {
5782 setup_iso_safe_charsets (attrs);
5783 val = CODING_ATTR_SAFE_CHARSETS (attrs);
5784 coding->max_charset_id = SCHARS (val) - 1;
5785 coding->safe_charsets = SDATA (val);
5786 }
5787 CODING_ISO_FLAGS (coding) = flags;
5788 CODING_ISO_CMP_STATUS (coding)->state = COMPOSING_NO;
5789 CODING_ISO_CMP_STATUS (coding)->method = COMPOSITION_NO;
5790 CODING_ISO_EXTSEGMENT_LEN (coding) = 0;
5791 CODING_ISO_EMBEDDED_UTF_8 (coding) = 0;
5792 }
5793 else if (EQ (coding_type, Qcharset))
5794 {
5795 coding->detector = detect_coding_charset;
5796 coding->decoder = decode_coding_charset;
5797 coding->encoder = encode_coding_charset;
5798 coding->common_flags
5799 |= (CODING_REQUIRE_DECODING_MASK | CODING_REQUIRE_ENCODING_MASK);
5800 }
5801 else if (EQ (coding_type, Qutf_8))
5802 {
5803 val = AREF (attrs, coding_attr_utf_bom);
5804 CODING_UTF_8_BOM (coding) = (CONSP (val) ? utf_detect_bom
5805 : EQ (val, Qt) ? utf_with_bom
5806 : utf_without_bom);
5807 coding->detector = detect_coding_utf_8;
5808 coding->decoder = decode_coding_utf_8;
5809 coding->encoder = encode_coding_utf_8;
5810 coding->common_flags
5811 |= (CODING_REQUIRE_DECODING_MASK | CODING_REQUIRE_ENCODING_MASK);
5812 if (CODING_UTF_8_BOM (coding) == utf_detect_bom)
5813 coding->common_flags |= CODING_REQUIRE_DETECTION_MASK;
5814 }
5815 else if (EQ (coding_type, Qutf_16))
5816 {
5817 val = AREF (attrs, coding_attr_utf_bom);
5818 CODING_UTF_16_BOM (coding) = (CONSP (val) ? utf_detect_bom
5819 : EQ (val, Qt) ? utf_with_bom
5820 : utf_without_bom);
5821 val = AREF (attrs, coding_attr_utf_16_endian);
5822 CODING_UTF_16_ENDIAN (coding) = (EQ (val, Qbig) ? utf_16_big_endian
5823 : utf_16_little_endian);
5824 CODING_UTF_16_SURROGATE (coding) = 0;
5825 coding->detector = detect_coding_utf_16;
5826 coding->decoder = decode_coding_utf_16;
5827 coding->encoder = encode_coding_utf_16;
5828 coding->common_flags
5829 |= (CODING_REQUIRE_DECODING_MASK | CODING_REQUIRE_ENCODING_MASK);
5830 if (CODING_UTF_16_BOM (coding) == utf_detect_bom)
5831 coding->common_flags |= CODING_REQUIRE_DETECTION_MASK;
5832 }
5833 else if (EQ (coding_type, Qccl))
5834 {
5835 coding->detector = detect_coding_ccl;
5836 coding->decoder = decode_coding_ccl;
5837 coding->encoder = encode_coding_ccl;
5838 coding->common_flags
5839 |= (CODING_REQUIRE_DECODING_MASK | CODING_REQUIRE_ENCODING_MASK
5840 | CODING_REQUIRE_FLUSHING_MASK);
5841 }
5842 else if (EQ (coding_type, Qemacs_mule))
5843 {
5844 coding->detector = detect_coding_emacs_mule;
5845 coding->decoder = decode_coding_emacs_mule;
5846 coding->encoder = encode_coding_emacs_mule;
5847 coding->common_flags
5848 |= (CODING_REQUIRE_DECODING_MASK | CODING_REQUIRE_ENCODING_MASK);
5849 if (! NILP (AREF (attrs, coding_attr_emacs_mule_full))
5850 && ! EQ (CODING_ATTR_CHARSET_LIST (attrs), Vemacs_mule_charset_list))
5851 {
5852 Lisp_Object tail, safe_charsets;
5853 int max_charset_id = 0;
5854
5855 for (tail = Vemacs_mule_charset_list; CONSP (tail);
5856 tail = XCDR (tail))
5857 if (max_charset_id < XFASTINT (XCAR (tail)))
5858 max_charset_id = XFASTINT (XCAR (tail));
5859 safe_charsets = make_uninit_string (max_charset_id + 1);
5860 memset (SDATA (safe_charsets), 255, max_charset_id + 1);
5861 for (tail = Vemacs_mule_charset_list; CONSP (tail);
5862 tail = XCDR (tail))
5863 SSET (safe_charsets, XFASTINT (XCAR (tail)), 0);
5864 coding->max_charset_id = max_charset_id;
5865 coding->safe_charsets = SDATA (safe_charsets);
5866 }
5867 coding->spec.emacs_mule.cmp_status.state = COMPOSING_NO;
5868 coding->spec.emacs_mule.cmp_status.method = COMPOSITION_NO;
5869 }
5870 else if (EQ (coding_type, Qshift_jis))
5871 {
5872 coding->detector = detect_coding_sjis;
5873 coding->decoder = decode_coding_sjis;
5874 coding->encoder = encode_coding_sjis;
5875 coding->common_flags
5876 |= (CODING_REQUIRE_DECODING_MASK | CODING_REQUIRE_ENCODING_MASK);
5877 }
5878 else if (EQ (coding_type, Qbig5))
5879 {
5880 coding->detector = detect_coding_big5;
5881 coding->decoder = decode_coding_big5;
5882 coding->encoder = encode_coding_big5;
5883 coding->common_flags
5884 |= (CODING_REQUIRE_DECODING_MASK | CODING_REQUIRE_ENCODING_MASK);
5885 }
5886 else /* EQ (coding_type, Qraw_text) */
5887 {
5888 coding->detector = NULL;
5889 coding->decoder = decode_coding_raw_text;
5890 coding->encoder = encode_coding_raw_text;
5891 if (! EQ (eol_type, Qunix))
5892 {
5893 coding->common_flags |= CODING_REQUIRE_DECODING_MASK;
5894 if (! VECTORP (eol_type))
5895 coding->common_flags |= CODING_REQUIRE_ENCODING_MASK;
5896 }
5897
5898 }
5899
5900 return;
5901 }
5902
5903 /* Return a list of charsets supported by CODING. */
5904
5905 Lisp_Object
5906 coding_charset_list (struct coding_system *coding)
5907 {
5908 Lisp_Object attrs, charset_list;
5909
5910 CODING_GET_INFO (coding, attrs, charset_list);
5911 if (EQ (CODING_ATTR_TYPE (attrs), Qiso_2022))
5912 {
5913 int flags = XINT (AREF (attrs, coding_attr_iso_flags));
5914
5915 if (flags & CODING_ISO_FLAG_FULL_SUPPORT)
5916 charset_list = Viso_2022_charset_list;
5917 }
5918 else if (EQ (CODING_ATTR_TYPE (attrs), Qemacs_mule))
5919 {
5920 charset_list = Vemacs_mule_charset_list;
5921 }
5922 return charset_list;
5923 }
5924
5925
5926 /* Return a list of charsets supported by CODING-SYSTEM. */
5927
5928 Lisp_Object
5929 coding_system_charset_list (Lisp_Object coding_system)
5930 {
5931 ptrdiff_t id;
5932 Lisp_Object attrs, charset_list;
5933
5934 CHECK_CODING_SYSTEM_GET_ID (coding_system, id);
5935 attrs = CODING_ID_ATTRS (id);
5936
5937 if (EQ (CODING_ATTR_TYPE (attrs), Qiso_2022))
5938 {
5939 int flags = XINT (AREF (attrs, coding_attr_iso_flags));
5940
5941 if (flags & CODING_ISO_FLAG_FULL_SUPPORT)
5942 charset_list = Viso_2022_charset_list;
5943 else
5944 charset_list = CODING_ATTR_CHARSET_LIST (attrs);
5945 }
5946 else if (EQ (CODING_ATTR_TYPE (attrs), Qemacs_mule))
5947 {
5948 charset_list = Vemacs_mule_charset_list;
5949 }
5950 else
5951 {
5952 charset_list = CODING_ATTR_CHARSET_LIST (attrs);
5953 }
5954 return charset_list;
5955 }
5956
5957
5958 /* Return raw-text or one of its subsidiaries that has the same
5959 eol_type as CODING-SYSTEM. */
5960
5961 Lisp_Object
5962 raw_text_coding_system (Lisp_Object coding_system)
5963 {
5964 Lisp_Object spec, attrs;
5965 Lisp_Object eol_type, raw_text_eol_type;
5966
5967 if (NILP (coding_system))
5968 return Qraw_text;
5969 spec = CODING_SYSTEM_SPEC (coding_system);
5970 attrs = AREF (spec, 0);
5971
5972 if (EQ (CODING_ATTR_TYPE (attrs), Qraw_text))
5973 return coding_system;
5974
5975 eol_type = AREF (spec, 2);
5976 if (VECTORP (eol_type))
5977 return Qraw_text;
5978 spec = CODING_SYSTEM_SPEC (Qraw_text);
5979 raw_text_eol_type = AREF (spec, 2);
5980 return (EQ (eol_type, Qunix) ? AREF (raw_text_eol_type, 0)
5981 : EQ (eol_type, Qdos) ? AREF (raw_text_eol_type, 1)
5982 : AREF (raw_text_eol_type, 2));
5983 }
5984
5985 /* Return true if CODING corresponds to raw-text coding-system. */
5986
5987 bool
5988 raw_text_coding_system_p (struct coding_system *coding)
5989 {
5990 return (coding->decoder == decode_coding_raw_text
5991 && coding->encoder == encode_coding_raw_text) ? true : false;
5992 }
5993
5994
5995 /* If CODING_SYSTEM doesn't specify end-of-line format, return one of
5996 the subsidiary that has the same eol-spec as PARENT (if it is not
5997 nil and specifies end-of-line format) or the system's setting
5998 (system_eol_type). */
5999
6000 Lisp_Object
6001 coding_inherit_eol_type (Lisp_Object coding_system, Lisp_Object parent)
6002 {
6003 Lisp_Object spec, eol_type;
6004
6005 if (NILP (coding_system))
6006 coding_system = Qraw_text;
6007 else
6008 CHECK_CODING_SYSTEM (coding_system);
6009 spec = CODING_SYSTEM_SPEC (coding_system);
6010 eol_type = AREF (spec, 2);
6011 if (VECTORP (eol_type))
6012 {
6013 Lisp_Object parent_eol_type;
6014
6015 if (! NILP (parent))
6016 {
6017 Lisp_Object parent_spec;
6018
6019 CHECK_CODING_SYSTEM (parent);
6020 parent_spec = CODING_SYSTEM_SPEC (parent);
6021 parent_eol_type = AREF (parent_spec, 2);
6022 if (VECTORP (parent_eol_type))
6023 parent_eol_type = system_eol_type;
6024 }
6025 else
6026 parent_eol_type = system_eol_type;
6027 if (EQ (parent_eol_type, Qunix))
6028 coding_system = AREF (eol_type, 0);
6029 else if (EQ (parent_eol_type, Qdos))
6030 coding_system = AREF (eol_type, 1);
6031 else if (EQ (parent_eol_type, Qmac))
6032 coding_system = AREF (eol_type, 2);
6033 }
6034 return coding_system;
6035 }
6036
6037
6038 /* Check if text-conversion and eol-conversion of CODING_SYSTEM are
6039 decided for writing to a process. If not, complement them, and
6040 return a new coding system. */
6041
6042 Lisp_Object
6043 complement_process_encoding_system (Lisp_Object coding_system)
6044 {
6045 Lisp_Object coding_base = Qnil, eol_base = Qnil;
6046 Lisp_Object spec, attrs;
6047 int i;
6048
6049 for (i = 0; i < 3; i++)
6050 {
6051 if (i == 1)
6052 coding_system = CDR_SAFE (Vdefault_process_coding_system);
6053 else if (i == 2)
6054 coding_system = preferred_coding_system ();
6055 spec = CODING_SYSTEM_SPEC (coding_system);
6056 if (NILP (spec))
6057 continue;
6058 attrs = AREF (spec, 0);
6059 if (NILP (coding_base) && ! EQ (CODING_ATTR_TYPE (attrs), Qundecided))
6060 coding_base = CODING_ATTR_BASE_NAME (attrs);
6061 if (NILP (eol_base) && ! VECTORP (AREF (spec, 2)))
6062 eol_base = coding_system;
6063 if (! NILP (coding_base) && ! NILP (eol_base))
6064 break;
6065 }
6066
6067 if (i > 0)
6068 /* The original CODING_SYSTEM didn't specify text-conversion or
6069 eol-conversion. Be sure that we return a fully complemented
6070 coding system. */
6071 coding_system = coding_inherit_eol_type (coding_base, eol_base);
6072 return coding_system;
6073 }
6074
6075
6076 /* Emacs has a mechanism to automatically detect a coding system if it
6077 is one of Emacs' internal format, ISO2022, SJIS, and BIG5. But,
6078 it's impossible to distinguish some coding systems accurately
6079 because they use the same range of codes. So, at first, coding
6080 systems are categorized into 7, those are:
6081
6082 o coding-category-emacs-mule
6083
6084 The category for a coding system which has the same code range
6085 as Emacs' internal format. Assigned the coding-system (Lisp
6086 symbol) `emacs-mule' by default.
6087
6088 o coding-category-sjis
6089
6090 The category for a coding system which has the same code range
6091 as SJIS. Assigned the coding-system (Lisp
6092 symbol) `japanese-shift-jis' by default.
6093
6094 o coding-category-iso-7
6095
6096 The category for a coding system which has the same code range
6097 as ISO2022 of 7-bit environment. This doesn't use any locking
6098 shift and single shift functions. This can encode/decode all
6099 charsets. Assigned the coding-system (Lisp symbol)
6100 `iso-2022-7bit' by default.
6101
6102 o coding-category-iso-7-tight
6103
6104 Same as coding-category-iso-7 except that this can
6105 encode/decode only the specified charsets.
6106
6107 o coding-category-iso-8-1
6108
6109 The category for a coding system which has the same code range
6110 as ISO2022 of 8-bit environment and graphic plane 1 used only
6111 for DIMENSION1 charset. This doesn't use any locking shift
6112 and single shift functions. Assigned the coding-system (Lisp
6113 symbol) `iso-latin-1' by default.
6114
6115 o coding-category-iso-8-2
6116
6117 The category for a coding system which has the same code range
6118 as ISO2022 of 8-bit environment and graphic plane 1 used only
6119 for DIMENSION2 charset. This doesn't use any locking shift
6120 and single shift functions. Assigned the coding-system (Lisp
6121 symbol) `japanese-iso-8bit' by default.
6122
6123 o coding-category-iso-7-else
6124
6125 The category for a coding system which has the same code range
6126 as ISO2022 of 7-bit environment but uses locking shift or
6127 single shift functions. Assigned the coding-system (Lisp
6128 symbol) `iso-2022-7bit-lock' by default.
6129
6130 o coding-category-iso-8-else
6131
6132 The category for a coding system which has the same code range
6133 as ISO2022 of 8-bit environment but uses locking shift or
6134 single shift functions. Assigned the coding-system (Lisp
6135 symbol) `iso-2022-8bit-ss2' by default.
6136
6137 o coding-category-big5
6138
6139 The category for a coding system which has the same code range
6140 as BIG5. Assigned the coding-system (Lisp symbol)
6141 `cn-big5' by default.
6142
6143 o coding-category-utf-8
6144
6145 The category for a coding system which has the same code range
6146 as UTF-8 (cf. RFC3629). Assigned the coding-system (Lisp
6147 symbol) `utf-8' by default.
6148
6149 o coding-category-utf-16-be
6150
6151 The category for a coding system in which a text has an
6152 Unicode signature (cf. Unicode Standard) in the order of BIG
6153 endian at the head. Assigned the coding-system (Lisp symbol)
6154 `utf-16-be' by default.
6155
6156 o coding-category-utf-16-le
6157
6158 The category for a coding system in which a text has an
6159 Unicode signature (cf. Unicode Standard) in the order of
6160 LITTLE endian at the head. Assigned the coding-system (Lisp
6161 symbol) `utf-16-le' by default.
6162
6163 o coding-category-ccl
6164
6165 The category for a coding system of which encoder/decoder is
6166 written in CCL programs. The default value is nil, i.e., no
6167 coding system is assigned.
6168
6169 o coding-category-binary
6170
6171 The category for a coding system not categorized in any of the
6172 above. Assigned the coding-system (Lisp symbol)
6173 `no-conversion' by default.
6174
6175 Each of them is a Lisp symbol and the value is an actual
6176 `coding-system's (this is also a Lisp symbol) assigned by a user.
6177 What Emacs does actually is to detect a category of coding system.
6178 Then, it uses a `coding-system' assigned to it. If Emacs can't
6179 decide only one possible category, it selects a category of the
6180 highest priority. Priorities of categories are also specified by a
6181 user in a Lisp variable `coding-category-list'.
6182
6183 */
6184
6185 static Lisp_Object adjust_coding_eol_type (struct coding_system *coding,
6186 int eol_seen);
6187
6188
6189 /* Return the number of ASCII characters at the head of the source.
6190 By side effects, set coding->head_ascii and update
6191 coding->eol_seen. The value of coding->eol_seen is "logical or" of
6192 EOL_SEEN_LF, EOL_SEEN_CR, and EOL_SEEN_CRLF, but the value is
6193 reliable only when all the source bytes are ASCII. */
6194
6195 static ptrdiff_t
6196 check_ascii (struct coding_system *coding)
6197 {
6198 const unsigned char *src, *end;
6199 Lisp_Object eol_type = CODING_ID_EOL_TYPE (coding->id);
6200 int eol_seen = coding->eol_seen;
6201
6202 coding_set_source (coding);
6203 src = coding->source;
6204 end = src + coding->src_bytes;
6205
6206 if (inhibit_eol_conversion
6207 || SYMBOLP (eol_type))
6208 {
6209 /* We don't have to check EOL format. */
6210 while (src < end && !( *src & 0x80))
6211 {
6212 if (*src++ == '\n')
6213 eol_seen |= EOL_SEEN_LF;
6214 }
6215 }
6216 else
6217 {
6218 end--; /* We look ahead one byte for "CR LF". */
6219 while (src < end)
6220 {
6221 int c = *src;
6222
6223 if (c & 0x80)
6224 break;
6225 src++;
6226 if (c == '\r')
6227 {
6228 if (*src == '\n')
6229 {
6230 eol_seen |= EOL_SEEN_CRLF;
6231 src++;
6232 }
6233 else
6234 eol_seen |= EOL_SEEN_CR;
6235 }
6236 else if (c == '\n')
6237 eol_seen |= EOL_SEEN_LF;
6238 }
6239 if (src == end)
6240 {
6241 int c = *src;
6242
6243 /* All bytes but the last one C are ASCII. */
6244 if (! (c & 0x80))
6245 {
6246 if (c == '\r')
6247 eol_seen |= EOL_SEEN_CR;
6248 else if (c == '\n')
6249 eol_seen |= EOL_SEEN_LF;
6250 src++;
6251 }
6252 }
6253 }
6254 coding->head_ascii = src - coding->source;
6255 coding->eol_seen = eol_seen;
6256 return (coding->head_ascii);
6257 }
6258
6259
6260 /* Return the number of characters at the source if all the bytes are
6261 valid UTF-8 (of Unicode range). Otherwise, return -1. By side
6262 effects, update coding->eol_seen. The value of coding->eol_seen is
6263 "logical or" of EOL_SEEN_LF, EOL_SEEN_CR, and EOL_SEEN_CRLF, but
6264 the value is reliable only when all the source bytes are valid
6265 UTF-8. */
6266
6267 static ptrdiff_t
6268 check_utf_8 (struct coding_system *coding)
6269 {
6270 const unsigned char *src, *end;
6271 int eol_seen;
6272 ptrdiff_t nchars = coding->head_ascii;
6273
6274 if (coding->head_ascii < 0)
6275 check_ascii (coding);
6276 else
6277 coding_set_source (coding);
6278 src = coding->source + coding->head_ascii;
6279 /* We look ahead one byte for CR LF. */
6280 end = coding->source + coding->src_bytes - 1;
6281 eol_seen = coding->eol_seen;
6282 while (src < end)
6283 {
6284 int c = *src;
6285
6286 if (UTF_8_1_OCTET_P (*src))
6287 {
6288 src++;
6289 if (c < 0x20)
6290 {
6291 if (c == '\r')
6292 {
6293 if (*src == '\n')
6294 {
6295 eol_seen |= EOL_SEEN_CRLF;
6296 src++;
6297 nchars++;
6298 }
6299 else
6300 eol_seen |= EOL_SEEN_CR;
6301 }
6302 else if (c == '\n')
6303 eol_seen |= EOL_SEEN_LF;
6304 }
6305 }
6306 else if (UTF_8_2_OCTET_LEADING_P (c))
6307 {
6308 if (c < 0xC2 /* overlong sequence */
6309 || src + 1 >= end
6310 || ! UTF_8_EXTRA_OCTET_P (src[1]))
6311 return -1;
6312 src += 2;
6313 }
6314 else if (UTF_8_3_OCTET_LEADING_P (c))
6315 {
6316 if (src + 2 >= end
6317 || ! (UTF_8_EXTRA_OCTET_P (src[1])
6318 && UTF_8_EXTRA_OCTET_P (src[2])))
6319 return -1;
6320 c = (((c & 0xF) << 12)
6321 | ((src[1] & 0x3F) << 6) | (src[2] & 0x3F));
6322 if (c < 0x800 /* overlong sequence */
6323 || (c >= 0xd800 && c < 0xe000)) /* surrogates (invalid) */
6324 return -1;
6325 src += 3;
6326 }
6327 else if (UTF_8_4_OCTET_LEADING_P (c))
6328 {
6329 if (src + 3 >= end
6330 || ! (UTF_8_EXTRA_OCTET_P (src[1])
6331 && UTF_8_EXTRA_OCTET_P (src[2])
6332 && UTF_8_EXTRA_OCTET_P (src[3])))
6333 return -1;
6334 c = (((c & 0x7) << 18) | ((src[1] & 0x3F) << 12)
6335 | ((src[2] & 0x3F) << 6) | (src[3] & 0x3F));
6336 if (c < 0x10000 /* overlong sequence */
6337 || c >= 0x110000) /* non-Unicode character */
6338 return -1;
6339 src += 4;
6340 }
6341 else
6342 return -1;
6343 nchars++;
6344 }
6345
6346 if (src == end)
6347 {
6348 if (! UTF_8_1_OCTET_P (*src))
6349 return -1;
6350 nchars++;
6351 if (*src == '\r')
6352 eol_seen |= EOL_SEEN_CR;
6353 else if (*src == '\n')
6354 eol_seen |= EOL_SEEN_LF;
6355 }
6356 coding->eol_seen = eol_seen;
6357 return nchars;
6358 }
6359
6360
6361 /* Detect how end-of-line of a text of length SRC_BYTES pointed by
6362 SOURCE is encoded. If CATEGORY is one of
6363 coding_category_utf_16_XXXX, assume that CR and LF are encoded by
6364 two-byte, else they are encoded by one-byte.
6365
6366 Return one of EOL_SEEN_XXX. */
6367
6368 #define MAX_EOL_CHECK_COUNT 3
6369
6370 static int
6371 detect_eol (const unsigned char *source, ptrdiff_t src_bytes,
6372 enum coding_category category)
6373 {
6374 const unsigned char *src = source, *src_end = src + src_bytes;
6375 unsigned char c;
6376 int total = 0;
6377 int eol_seen = EOL_SEEN_NONE;
6378
6379 if ((1 << category) & CATEGORY_MASK_UTF_16)
6380 {
6381 bool msb = category == (coding_category_utf_16_le
6382 | coding_category_utf_16_le_nosig);
6383 bool lsb = !msb;
6384
6385 while (src + 1 < src_end)
6386 {
6387 c = src[lsb];
6388 if (src[msb] == 0 && (c == '\n' || c == '\r'))
6389 {
6390 int this_eol;
6391
6392 if (c == '\n')
6393 this_eol = EOL_SEEN_LF;
6394 else if (src + 3 >= src_end
6395 || src[msb + 2] != 0
6396 || src[lsb + 2] != '\n')
6397 this_eol = EOL_SEEN_CR;
6398 else
6399 {
6400 this_eol = EOL_SEEN_CRLF;
6401 src += 2;
6402 }
6403
6404 if (eol_seen == EOL_SEEN_NONE)
6405 /* This is the first end-of-line. */
6406 eol_seen = this_eol;
6407 else if (eol_seen != this_eol)
6408 {
6409 /* The found type is different from what found before.
6410 Allow for stray ^M characters in DOS EOL files. */
6411 if ((eol_seen == EOL_SEEN_CR && this_eol == EOL_SEEN_CRLF)
6412 || (eol_seen == EOL_SEEN_CRLF
6413 && this_eol == EOL_SEEN_CR))
6414 eol_seen = EOL_SEEN_CRLF;
6415 else
6416 {
6417 eol_seen = EOL_SEEN_LF;
6418 break;
6419 }
6420 }
6421 if (++total == MAX_EOL_CHECK_COUNT)
6422 break;
6423 }
6424 src += 2;
6425 }
6426 }
6427 else
6428 while (src < src_end)
6429 {
6430 c = *src++;
6431 if (c == '\n' || c == '\r')
6432 {
6433 int this_eol;
6434
6435 if (c == '\n')
6436 this_eol = EOL_SEEN_LF;
6437 else if (src >= src_end || *src != '\n')
6438 this_eol = EOL_SEEN_CR;
6439 else
6440 this_eol = EOL_SEEN_CRLF, src++;
6441
6442 if (eol_seen == EOL_SEEN_NONE)
6443 /* This is the first end-of-line. */
6444 eol_seen = this_eol;
6445 else if (eol_seen != this_eol)
6446 {
6447 /* The found type is different from what found before.
6448 Allow for stray ^M characters in DOS EOL files. */
6449 if ((eol_seen == EOL_SEEN_CR && this_eol == EOL_SEEN_CRLF)
6450 || (eol_seen == EOL_SEEN_CRLF && this_eol == EOL_SEEN_CR))
6451 eol_seen = EOL_SEEN_CRLF;
6452 else
6453 {
6454 eol_seen = EOL_SEEN_LF;
6455 break;
6456 }
6457 }
6458 if (++total == MAX_EOL_CHECK_COUNT)
6459 break;
6460 }
6461 }
6462 return eol_seen;
6463 }
6464
6465
6466 static Lisp_Object
6467 adjust_coding_eol_type (struct coding_system *coding, int eol_seen)
6468 {
6469 Lisp_Object eol_type;
6470
6471 eol_type = CODING_ID_EOL_TYPE (coding->id);
6472 if (! VECTORP (eol_type))
6473 /* Already adjusted. */
6474 return eol_type;
6475 if (eol_seen & EOL_SEEN_LF)
6476 {
6477 coding->id = CODING_SYSTEM_ID (AREF (eol_type, 0));
6478 eol_type = Qunix;
6479 }
6480 else if (eol_seen & EOL_SEEN_CRLF)
6481 {
6482 coding->id = CODING_SYSTEM_ID (AREF (eol_type, 1));
6483 eol_type = Qdos;
6484 }
6485 else if (eol_seen & EOL_SEEN_CR)
6486 {
6487 coding->id = CODING_SYSTEM_ID (AREF (eol_type, 2));
6488 eol_type = Qmac;
6489 }
6490 return eol_type;
6491 }
6492
6493 /* Detect how a text specified in CODING is encoded. If a coding
6494 system is detected, update fields of CODING by the detected coding
6495 system. */
6496
6497 static void
6498 detect_coding (struct coding_system *coding)
6499 {
6500 const unsigned char *src, *src_end;
6501 unsigned int saved_mode = coding->mode;
6502 Lisp_Object found = Qnil;
6503 Lisp_Object eol_type = CODING_ID_EOL_TYPE (coding->id);
6504
6505 coding->consumed = coding->consumed_char = 0;
6506 coding->produced = coding->produced_char = 0;
6507 coding_set_source (coding);
6508
6509 src_end = coding->source + coding->src_bytes;
6510
6511 coding->eol_seen = EOL_SEEN_NONE;
6512 /* If we have not yet decided the text encoding type, detect it
6513 now. */
6514 if (EQ (CODING_ATTR_TYPE (CODING_ID_ATTRS (coding->id)), Qundecided))
6515 {
6516 int c, i;
6517 struct coding_detection_info detect_info;
6518 bool null_byte_found = 0, eight_bit_found = 0;
6519 bool inhibit_nbd = inhibit_flag (coding->spec.undecided.inhibit_nbd,
6520 inhibit_null_byte_detection);
6521 bool inhibit_ied = inhibit_flag (coding->spec.undecided.inhibit_ied,
6522 inhibit_iso_escape_detection);
6523 bool prefer_utf_8 = coding->spec.undecided.prefer_utf_8;
6524
6525 coding->head_ascii = 0;
6526 detect_info.checked = detect_info.found = detect_info.rejected = 0;
6527 for (src = coding->source; src < src_end; src++)
6528 {
6529 c = *src;
6530 if (c & 0x80)
6531 {
6532 eight_bit_found = 1;
6533 if (null_byte_found)
6534 break;
6535 }
6536 else if (c < 0x20)
6537 {
6538 if ((c == ISO_CODE_ESC || c == ISO_CODE_SI || c == ISO_CODE_SO)
6539 && ! inhibit_ied
6540 && ! detect_info.checked)
6541 {
6542 if (detect_coding_iso_2022 (coding, &detect_info))
6543 {
6544 /* We have scanned the whole data. */
6545 if (! (detect_info.rejected & CATEGORY_MASK_ISO_7_ELSE))
6546 {
6547 /* We didn't find an 8-bit code. We may
6548 have found a null-byte, but it's very
6549 rare that a binary file conforms to
6550 ISO-2022. */
6551 src = src_end;
6552 coding->head_ascii = src - coding->source;
6553 }
6554 detect_info.rejected |= ~CATEGORY_MASK_ISO_ESCAPE;
6555 break;
6556 }
6557 }
6558 else if (! c && !inhibit_nbd)
6559 {
6560 null_byte_found = 1;
6561 if (eight_bit_found)
6562 break;
6563 }
6564 else if (! disable_ascii_optimization
6565 && ! inhibit_eol_conversion)
6566 {
6567 if (c == '\r')
6568 {
6569 if (src < src_end && src[1] == '\n')
6570 {
6571 coding->eol_seen |= EOL_SEEN_CRLF;
6572 src++;
6573 if (! eight_bit_found)
6574 coding->head_ascii++;
6575 }
6576 else
6577 coding->eol_seen |= EOL_SEEN_CR;
6578 }
6579 else if (c == '\n')
6580 {
6581 coding->eol_seen |= EOL_SEEN_LF;
6582 }
6583 }
6584
6585 if (! eight_bit_found)
6586 coding->head_ascii++;
6587 }
6588 else if (! eight_bit_found)
6589 coding->head_ascii++;
6590 }
6591
6592 if (null_byte_found || eight_bit_found
6593 || coding->head_ascii < coding->src_bytes
6594 || detect_info.found)
6595 {
6596 enum coding_category category;
6597 struct coding_system *this;
6598
6599 if (coding->head_ascii == coding->src_bytes)
6600 /* As all bytes are 7-bit, we can ignore non-ISO-2022 codings. */
6601 for (i = 0; i < coding_category_raw_text; i++)
6602 {
6603 category = coding_priorities[i];
6604 this = coding_categories + category;
6605 if (detect_info.found & (1 << category))
6606 break;
6607 }
6608 else
6609 {
6610 if (null_byte_found)
6611 {
6612 detect_info.checked |= ~CATEGORY_MASK_UTF_16;
6613 detect_info.rejected |= ~CATEGORY_MASK_UTF_16;
6614 }
6615 else if (prefer_utf_8
6616 && detect_coding_utf_8 (coding, &detect_info))
6617 {
6618 detect_info.checked |= ~CATEGORY_MASK_UTF_8;
6619 detect_info.rejected |= ~CATEGORY_MASK_UTF_8;
6620 }
6621 for (i = 0; i < coding_category_raw_text; i++)
6622 {
6623 category = coding_priorities[i];
6624 this = coding_categories + category;
6625 /* Some of this->detector (e.g. detect_coding_sjis)
6626 require this information. */
6627 coding->id = this->id;
6628 if (this->id < 0)
6629 {
6630 /* No coding system of this category is defined. */
6631 detect_info.rejected |= (1 << category);
6632 }
6633 else if (category >= coding_category_raw_text)
6634 continue;
6635 else if (detect_info.checked & (1 << category))
6636 {
6637 if (detect_info.found & (1 << category))
6638 break;
6639 }
6640 else if ((*(this->detector)) (coding, &detect_info)
6641 && detect_info.found & (1 << category))
6642 break;
6643 }
6644 }
6645
6646 if (i < coding_category_raw_text)
6647 {
6648 if (category == coding_category_utf_8_auto)
6649 {
6650 Lisp_Object coding_systems;
6651
6652 coding_systems = AREF (CODING_ID_ATTRS (this->id),
6653 coding_attr_utf_bom);
6654 if (CONSP (coding_systems))
6655 {
6656 if (detect_info.found & CATEGORY_MASK_UTF_8_SIG)
6657 found = XCAR (coding_systems);
6658 else
6659 found = XCDR (coding_systems);
6660 }
6661 else
6662 found = CODING_ID_NAME (this->id);
6663 }
6664 else if (category == coding_category_utf_16_auto)
6665 {
6666 Lisp_Object coding_systems;
6667
6668 coding_systems = AREF (CODING_ID_ATTRS (this->id),
6669 coding_attr_utf_bom);
6670 if (CONSP (coding_systems))
6671 {
6672 if (detect_info.found & CATEGORY_MASK_UTF_16_LE)
6673 found = XCAR (coding_systems);
6674 else if (detect_info.found & CATEGORY_MASK_UTF_16_BE)
6675 found = XCDR (coding_systems);
6676 }
6677 else
6678 found = CODING_ID_NAME (this->id);
6679 }
6680 else
6681 found = CODING_ID_NAME (this->id);
6682 }
6683 else if (null_byte_found)
6684 found = Qno_conversion;
6685 else if ((detect_info.rejected & CATEGORY_MASK_ANY)
6686 == CATEGORY_MASK_ANY)
6687 found = Qraw_text;
6688 else if (detect_info.rejected)
6689 for (i = 0; i < coding_category_raw_text; i++)
6690 if (! (detect_info.rejected & (1 << coding_priorities[i])))
6691 {
6692 this = coding_categories + coding_priorities[i];
6693 found = CODING_ID_NAME (this->id);
6694 break;
6695 }
6696 }
6697 }
6698 else if (XINT (CODING_ATTR_CATEGORY (CODING_ID_ATTRS (coding->id)))
6699 == coding_category_utf_8_auto)
6700 {
6701 Lisp_Object coding_systems;
6702 struct coding_detection_info detect_info;
6703
6704 coding_systems
6705 = AREF (CODING_ID_ATTRS (coding->id), coding_attr_utf_bom);
6706 detect_info.found = detect_info.rejected = 0;
6707 if (check_ascii (coding) == coding->src_bytes)
6708 {
6709 if (CONSP (coding_systems))
6710 found = XCDR (coding_systems);
6711 }
6712 else
6713 {
6714 if (CONSP (coding_systems)
6715 && detect_coding_utf_8 (coding, &detect_info))
6716 {
6717 if (detect_info.found & CATEGORY_MASK_UTF_8_SIG)
6718 found = XCAR (coding_systems);
6719 else
6720 found = XCDR (coding_systems);
6721 }
6722 }
6723 }
6724 else if (XINT (CODING_ATTR_CATEGORY (CODING_ID_ATTRS (coding->id)))
6725 == coding_category_utf_16_auto)
6726 {
6727 Lisp_Object coding_systems;
6728 struct coding_detection_info detect_info;
6729
6730 coding_systems
6731 = AREF (CODING_ID_ATTRS (coding->id), coding_attr_utf_bom);
6732 detect_info.found = detect_info.rejected = 0;
6733 coding->head_ascii = 0;
6734 if (CONSP (coding_systems)
6735 && detect_coding_utf_16 (coding, &detect_info))
6736 {
6737 if (detect_info.found & CATEGORY_MASK_UTF_16_LE)
6738 found = XCAR (coding_systems);
6739 else if (detect_info.found & CATEGORY_MASK_UTF_16_BE)
6740 found = XCDR (coding_systems);
6741 }
6742 }
6743
6744 if (! NILP (found))
6745 {
6746 int specified_eol = (VECTORP (eol_type) ? EOL_SEEN_NONE
6747 : EQ (eol_type, Qdos) ? EOL_SEEN_CRLF
6748 : EQ (eol_type, Qmac) ? EOL_SEEN_CR
6749 : EOL_SEEN_LF);
6750
6751 setup_coding_system (found, coding);
6752 if (specified_eol != EOL_SEEN_NONE)
6753 adjust_coding_eol_type (coding, specified_eol);
6754 }
6755
6756 coding->mode = saved_mode;
6757 }
6758
6759
6760 static void
6761 decode_eol (struct coding_system *coding)
6762 {
6763 Lisp_Object eol_type;
6764 unsigned char *p, *pbeg, *pend;
6765
6766 eol_type = CODING_ID_EOL_TYPE (coding->id);
6767 if (EQ (eol_type, Qunix) || inhibit_eol_conversion)
6768 return;
6769
6770 if (NILP (coding->dst_object))
6771 pbeg = coding->destination;
6772 else
6773 pbeg = BYTE_POS_ADDR (coding->dst_pos_byte);
6774 pend = pbeg + coding->produced;
6775
6776 if (VECTORP (eol_type))
6777 {
6778 int eol_seen = EOL_SEEN_NONE;
6779
6780 for (p = pbeg; p < pend; p++)
6781 {
6782 if (*p == '\n')
6783 eol_seen |= EOL_SEEN_LF;
6784 else if (*p == '\r')
6785 {
6786 if (p + 1 < pend && *(p + 1) == '\n')
6787 {
6788 eol_seen |= EOL_SEEN_CRLF;
6789 p++;
6790 }
6791 else
6792 eol_seen |= EOL_SEEN_CR;
6793 }
6794 }
6795 /* Handle DOS-style EOLs in a file with stray ^M characters. */
6796 if ((eol_seen & EOL_SEEN_CRLF) != 0
6797 && (eol_seen & EOL_SEEN_CR) != 0
6798 && (eol_seen & EOL_SEEN_LF) == 0)
6799 eol_seen = EOL_SEEN_CRLF;
6800 else if (eol_seen != EOL_SEEN_NONE
6801 && eol_seen != EOL_SEEN_LF
6802 && eol_seen != EOL_SEEN_CRLF
6803 && eol_seen != EOL_SEEN_CR)
6804 eol_seen = EOL_SEEN_LF;
6805 if (eol_seen != EOL_SEEN_NONE)
6806 eol_type = adjust_coding_eol_type (coding, eol_seen);
6807 }
6808
6809 if (EQ (eol_type, Qmac))
6810 {
6811 for (p = pbeg; p < pend; p++)
6812 if (*p == '\r')
6813 *p = '\n';
6814 }
6815 else if (EQ (eol_type, Qdos))
6816 {
6817 ptrdiff_t n = 0;
6818
6819 if (NILP (coding->dst_object))
6820 {
6821 /* Start deleting '\r' from the tail to minimize the memory
6822 movement. */
6823 for (p = pend - 2; p >= pbeg; p--)
6824 if (*p == '\r')
6825 {
6826 memmove (p, p + 1, pend-- - p - 1);
6827 n++;
6828 }
6829 }
6830 else
6831 {
6832 ptrdiff_t pos_byte = coding->dst_pos_byte;
6833 ptrdiff_t pos = coding->dst_pos;
6834 ptrdiff_t pos_end = pos + coding->produced_char - 1;
6835
6836 while (pos < pos_end)
6837 {
6838 p = BYTE_POS_ADDR (pos_byte);
6839 if (*p == '\r' && p[1] == '\n')
6840 {
6841 del_range_2 (pos, pos_byte, pos + 1, pos_byte + 1, 0);
6842 n++;
6843 pos_end--;
6844 }
6845 pos++;
6846 if (coding->dst_multibyte)
6847 pos_byte += BYTES_BY_CHAR_HEAD (*p);
6848 else
6849 pos_byte++;
6850 }
6851 }
6852 coding->produced -= n;
6853 coding->produced_char -= n;
6854 }
6855 }
6856
6857
6858 /* MAX_LOOKUP's maximum value. MAX_LOOKUP is an int and so cannot
6859 exceed INT_MAX. Also, MAX_LOOKUP is multiplied by sizeof (int) for
6860 alloca, so it cannot exceed MAX_ALLOCA / sizeof (int). */
6861 enum { MAX_LOOKUP_MAX = min (INT_MAX, MAX_ALLOCA / sizeof (int)) };
6862
6863 /* Return a translation table (or list of them) from coding system
6864 attribute vector ATTRS for encoding (if ENCODEP) or decoding (if
6865 not ENCODEP). */
6866
6867 static Lisp_Object
6868 get_translation_table (Lisp_Object attrs, bool encodep, int *max_lookup)
6869 {
6870 Lisp_Object standard, translation_table;
6871 Lisp_Object val;
6872
6873 if (NILP (Venable_character_translation))
6874 {
6875 if (max_lookup)
6876 *max_lookup = 0;
6877 return Qnil;
6878 }
6879 if (encodep)
6880 translation_table = CODING_ATTR_ENCODE_TBL (attrs),
6881 standard = Vstandard_translation_table_for_encode;
6882 else
6883 translation_table = CODING_ATTR_DECODE_TBL (attrs),
6884 standard = Vstandard_translation_table_for_decode;
6885 if (NILP (translation_table))
6886 translation_table = standard;
6887 else
6888 {
6889 if (SYMBOLP (translation_table))
6890 translation_table = Fget (translation_table, Qtranslation_table);
6891 else if (CONSP (translation_table))
6892 {
6893 translation_table = Fcopy_sequence (translation_table);
6894 for (val = translation_table; CONSP (val); val = XCDR (val))
6895 if (SYMBOLP (XCAR (val)))
6896 XSETCAR (val, Fget (XCAR (val), Qtranslation_table));
6897 }
6898 if (CHAR_TABLE_P (standard))
6899 {
6900 if (CONSP (translation_table))
6901 translation_table = nconc2 (translation_table, list1 (standard));
6902 else
6903 translation_table = list2 (translation_table, standard);
6904 }
6905 }
6906
6907 if (max_lookup)
6908 {
6909 *max_lookup = 1;
6910 if (CHAR_TABLE_P (translation_table)
6911 && CHAR_TABLE_EXTRA_SLOTS (XCHAR_TABLE (translation_table)) > 1)
6912 {
6913 val = XCHAR_TABLE (translation_table)->extras[1];
6914 if (NATNUMP (val) && *max_lookup < XFASTINT (val))
6915 *max_lookup = min (XFASTINT (val), MAX_LOOKUP_MAX);
6916 }
6917 else if (CONSP (translation_table))
6918 {
6919 Lisp_Object tail;
6920
6921 for (tail = translation_table; CONSP (tail); tail = XCDR (tail))
6922 if (CHAR_TABLE_P (XCAR (tail))
6923 && CHAR_TABLE_EXTRA_SLOTS (XCHAR_TABLE (XCAR (tail))) > 1)
6924 {
6925 Lisp_Object tailval = XCHAR_TABLE (XCAR (tail))->extras[1];
6926 if (NATNUMP (tailval) && *max_lookup < XFASTINT (tailval))
6927 *max_lookup = min (XFASTINT (tailval), MAX_LOOKUP_MAX);
6928 }
6929 }
6930 }
6931 return translation_table;
6932 }
6933
6934 #define LOOKUP_TRANSLATION_TABLE(table, c, trans) \
6935 do { \
6936 trans = Qnil; \
6937 if (CHAR_TABLE_P (table)) \
6938 { \
6939 trans = CHAR_TABLE_REF (table, c); \
6940 if (CHARACTERP (trans)) \
6941 c = XFASTINT (trans), trans = Qnil; \
6942 } \
6943 else if (CONSP (table)) \
6944 { \
6945 Lisp_Object tail; \
6946 \
6947 for (tail = table; CONSP (tail); tail = XCDR (tail)) \
6948 if (CHAR_TABLE_P (XCAR (tail))) \
6949 { \
6950 trans = CHAR_TABLE_REF (XCAR (tail), c); \
6951 if (CHARACTERP (trans)) \
6952 c = XFASTINT (trans), trans = Qnil; \
6953 else if (! NILP (trans)) \
6954 break; \
6955 } \
6956 } \
6957 } while (0)
6958
6959
6960 /* Return a translation of character(s) at BUF according to TRANS.
6961 TRANS is TO-CHAR or ((FROM . TO) ...) where
6962 FROM = [FROM-CHAR ...], TO is TO-CHAR or [TO-CHAR ...].
6963 The return value is TO-CHAR or ([FROM-CHAR ...] . TO) if a
6964 translation is found, and Qnil if not found..
6965 If BUF is too short to lookup characters in FROM, return Qt. */
6966
6967 static Lisp_Object
6968 get_translation (Lisp_Object trans, int *buf, int *buf_end)
6969 {
6970
6971 if (INTEGERP (trans))
6972 return trans;
6973 for (; CONSP (trans); trans = XCDR (trans))
6974 {
6975 Lisp_Object val = XCAR (trans);
6976 Lisp_Object from = XCAR (val);
6977 ptrdiff_t len = ASIZE (from);
6978 ptrdiff_t i;
6979
6980 for (i = 0; i < len; i++)
6981 {
6982 if (buf + i == buf_end)
6983 return Qt;
6984 if (XINT (AREF (from, i)) != buf[i])
6985 break;
6986 }
6987 if (i == len)
6988 return val;
6989 }
6990 return Qnil;
6991 }
6992
6993
6994 static int
6995 produce_chars (struct coding_system *coding, Lisp_Object translation_table,
6996 bool last_block)
6997 {
6998 unsigned char *dst = coding->destination + coding->produced;
6999 unsigned char *dst_end = coding->destination + coding->dst_bytes;
7000 ptrdiff_t produced;
7001 ptrdiff_t produced_chars = 0;
7002 int carryover = 0;
7003
7004 if (! coding->chars_at_source)
7005 {
7006 /* Source characters are in coding->charbuf. */
7007 int *buf = coding->charbuf;
7008 int *buf_end = buf + coding->charbuf_used;
7009
7010 if (EQ (coding->src_object, coding->dst_object)
7011 && ! NILP (coding->dst_object))
7012 {
7013 eassert (growable_destination (coding));
7014 coding_set_source (coding);
7015 dst_end = ((unsigned char *) coding->source) + coding->consumed;
7016 }
7017
7018 while (buf < buf_end)
7019 {
7020 int c = *buf;
7021 ptrdiff_t i;
7022
7023 if (c >= 0)
7024 {
7025 ptrdiff_t from_nchars = 1, to_nchars = 1;
7026 Lisp_Object trans = Qnil;
7027
7028 LOOKUP_TRANSLATION_TABLE (translation_table, c, trans);
7029 if (! NILP (trans))
7030 {
7031 trans = get_translation (trans, buf, buf_end);
7032 if (INTEGERP (trans))
7033 c = XINT (trans);
7034 else if (CONSP (trans))
7035 {
7036 from_nchars = ASIZE (XCAR (trans));
7037 trans = XCDR (trans);
7038 if (INTEGERP (trans))
7039 c = XINT (trans);
7040 else
7041 {
7042 to_nchars = ASIZE (trans);
7043 c = XINT (AREF (trans, 0));
7044 }
7045 }
7046 else if (EQ (trans, Qt) && ! last_block)
7047 break;
7048 }
7049
7050 if ((dst_end - dst) / MAX_MULTIBYTE_LENGTH < to_nchars)
7051 {
7052 eassert (growable_destination (coding));
7053 if (((min (PTRDIFF_MAX, SIZE_MAX) - (buf_end - buf))
7054 / MAX_MULTIBYTE_LENGTH)
7055 < to_nchars)
7056 memory_full (SIZE_MAX);
7057 dst = alloc_destination (coding,
7058 buf_end - buf
7059 + MAX_MULTIBYTE_LENGTH * to_nchars,
7060 dst);
7061 if (EQ (coding->src_object, coding->dst_object))
7062 {
7063 coding_set_source (coding);
7064 dst_end = (((unsigned char *) coding->source)
7065 + coding->consumed);
7066 }
7067 else
7068 dst_end = coding->destination + coding->dst_bytes;
7069 }
7070
7071 for (i = 0; i < to_nchars; i++)
7072 {
7073 if (i > 0)
7074 c = XINT (AREF (trans, i));
7075 if (coding->dst_multibyte
7076 || ! CHAR_BYTE8_P (c))
7077 CHAR_STRING_ADVANCE_NO_UNIFY (c, dst);
7078 else
7079 *dst++ = CHAR_TO_BYTE8 (c);
7080 }
7081 produced_chars += to_nchars;
7082 buf += from_nchars;
7083 }
7084 else
7085 /* This is an annotation datum. (-C) is the length. */
7086 buf += -c;
7087 }
7088 carryover = buf_end - buf;
7089 }
7090 else
7091 {
7092 /* Source characters are at coding->source. */
7093 const unsigned char *src = coding->source;
7094 const unsigned char *src_end = src + coding->consumed;
7095
7096 if (EQ (coding->dst_object, coding->src_object))
7097 {
7098 eassert (growable_destination (coding));
7099 dst_end = (unsigned char *) src;
7100 }
7101 if (coding->src_multibyte != coding->dst_multibyte)
7102 {
7103 if (coding->src_multibyte)
7104 {
7105 bool multibytep = 1;
7106 ptrdiff_t consumed_chars = 0;
7107
7108 while (1)
7109 {
7110 const unsigned char *src_base = src;
7111 int c;
7112
7113 ONE_MORE_BYTE (c);
7114 if (dst == dst_end)
7115 {
7116 eassert (growable_destination (coding));
7117 if (EQ (coding->src_object, coding->dst_object))
7118 dst_end = (unsigned char *) src;
7119 if (dst == dst_end)
7120 {
7121 ptrdiff_t offset = src - coding->source;
7122
7123 dst = alloc_destination (coding, src_end - src + 1,
7124 dst);
7125 dst_end = coding->destination + coding->dst_bytes;
7126 coding_set_source (coding);
7127 src = coding->source + offset;
7128 src_end = coding->source + coding->consumed;
7129 if (EQ (coding->src_object, coding->dst_object))
7130 dst_end = (unsigned char *) src;
7131 }
7132 }
7133 *dst++ = c;
7134 produced_chars++;
7135 }
7136 no_more_source:
7137 ;
7138 }
7139 else
7140 while (src < src_end)
7141 {
7142 bool multibytep = 1;
7143 int c = *src++;
7144
7145 if (dst >= dst_end - 1)
7146 {
7147 eassert (growable_destination (coding));
7148 if (EQ (coding->src_object, coding->dst_object))
7149 dst_end = (unsigned char *) src;
7150 if (dst >= dst_end - 1)
7151 {
7152 ptrdiff_t offset = src - coding->source;
7153 ptrdiff_t more_bytes;
7154
7155 if (EQ (coding->src_object, coding->dst_object))
7156 more_bytes = ((src_end - src) / 2) + 2;
7157 else
7158 more_bytes = src_end - src + 2;
7159 dst = alloc_destination (coding, more_bytes, dst);
7160 dst_end = coding->destination + coding->dst_bytes;
7161 coding_set_source (coding);
7162 src = coding->source + offset;
7163 src_end = coding->source + coding->consumed;
7164 if (EQ (coding->src_object, coding->dst_object))
7165 dst_end = (unsigned char *) src;
7166 }
7167 }
7168 EMIT_ONE_BYTE (c);
7169 }
7170 }
7171 else
7172 {
7173 if (!EQ (coding->src_object, coding->dst_object))
7174 {
7175 ptrdiff_t require = coding->src_bytes - coding->dst_bytes;
7176
7177 if (require > 0)
7178 {
7179 ptrdiff_t offset = src - coding->source;
7180
7181 dst = alloc_destination (coding, require, dst);
7182 coding_set_source (coding);
7183 src = coding->source + offset;
7184 src_end = coding->source + coding->consumed;
7185 }
7186 }
7187 produced_chars = coding->consumed_char;
7188 while (src < src_end)
7189 *dst++ = *src++;
7190 }
7191 }
7192
7193 produced = dst - (coding->destination + coding->produced);
7194 if (BUFFERP (coding->dst_object) && produced_chars > 0)
7195 insert_from_gap (produced_chars, produced, 0);
7196 coding->produced += produced;
7197 coding->produced_char += produced_chars;
7198 return carryover;
7199 }
7200
7201 /* Compose text in CODING->object according to the annotation data at
7202 CHARBUF. CHARBUF is an array:
7203 [ -LENGTH ANNOTATION_MASK NCHARS NBYTES METHOD [ COMPONENTS... ] ]
7204 */
7205
7206 static void
7207 produce_composition (struct coding_system *coding, int *charbuf, ptrdiff_t pos)
7208 {
7209 int len;
7210 ptrdiff_t to;
7211 enum composition_method method;
7212 Lisp_Object components;
7213
7214 len = -charbuf[0] - MAX_ANNOTATION_LENGTH;
7215 to = pos + charbuf[2];
7216 method = (enum composition_method) (charbuf[4]);
7217
7218 if (method == COMPOSITION_RELATIVE)
7219 components = Qnil;
7220 else
7221 {
7222 Lisp_Object args[MAX_COMPOSITION_COMPONENTS * 2 - 1];
7223 int i, j;
7224
7225 if (method == COMPOSITION_WITH_RULE)
7226 len = charbuf[2] * 3 - 2;
7227 charbuf += MAX_ANNOTATION_LENGTH;
7228 /* charbuf = [ CHRA ... CHAR] or [ CHAR -2 RULE ... CHAR ] */
7229 for (i = j = 0; i < len && charbuf[i] != -1; i++, j++)
7230 {
7231 if (charbuf[i] >= 0)
7232 args[j] = make_number (charbuf[i]);
7233 else
7234 {
7235 i++;
7236 args[j] = make_number (charbuf[i] % 0x100);
7237 }
7238 }
7239 components = (i == j ? Fstring (j, args) : Fvector (j, args));
7240 }
7241 compose_text (pos, to, components, Qnil, coding->dst_object);
7242 }
7243
7244
7245 /* Put `charset' property on text in CODING->object according to
7246 the annotation data at CHARBUF. CHARBUF is an array:
7247 [ -LENGTH ANNOTATION_MASK NCHARS CHARSET-ID ]
7248 */
7249
7250 static void
7251 produce_charset (struct coding_system *coding, int *charbuf, ptrdiff_t pos)
7252 {
7253 ptrdiff_t from = pos - charbuf[2];
7254 struct charset *charset = CHARSET_FROM_ID (charbuf[3]);
7255
7256 Fput_text_property (make_number (from), make_number (pos),
7257 Qcharset, CHARSET_NAME (charset),
7258 coding->dst_object);
7259 }
7260
7261 #define MAX_CHARBUF_SIZE 0x4000
7262 /* How many units decoding functions expect in coding->charbuf at
7263 most. Currently, decode_coding_emacs_mule expects the following
7264 size, and that is the largest value. */
7265 #define MAX_CHARBUF_EXTRA_SIZE ((MAX_ANNOTATION_LENGTH * 3) + 1)
7266
7267 #define ALLOC_CONVERSION_WORK_AREA(coding, size) \
7268 do { \
7269 ptrdiff_t units = min ((size) + MAX_CHARBUF_EXTRA_SIZE, \
7270 MAX_CHARBUF_SIZE); \
7271 coding->charbuf = SAFE_ALLOCA (units * sizeof (int)); \
7272 coding->charbuf_size = units; \
7273 } while (0)
7274
7275 static void
7276 produce_annotation (struct coding_system *coding, ptrdiff_t pos)
7277 {
7278 int *charbuf = coding->charbuf;
7279 int *charbuf_end = charbuf + coding->charbuf_used;
7280
7281 if (NILP (coding->dst_object))
7282 return;
7283
7284 while (charbuf < charbuf_end)
7285 {
7286 if (*charbuf >= 0)
7287 pos++, charbuf++;
7288 else
7289 {
7290 int len = -*charbuf;
7291
7292 if (len > 2)
7293 switch (charbuf[1])
7294 {
7295 case CODING_ANNOTATE_COMPOSITION_MASK:
7296 produce_composition (coding, charbuf, pos);
7297 break;
7298 case CODING_ANNOTATE_CHARSET_MASK:
7299 produce_charset (coding, charbuf, pos);
7300 break;
7301 default:
7302 break;
7303 }
7304 charbuf += len;
7305 }
7306 }
7307 }
7308
7309 /* Decode the data at CODING->src_object into CODING->dst_object.
7310 CODING->src_object is a buffer, a string, or nil.
7311 CODING->dst_object is a buffer.
7312
7313 If CODING->src_object is a buffer, it must be the current buffer.
7314 In this case, if CODING->src_pos is positive, it is a position of
7315 the source text in the buffer, otherwise, the source text is in the
7316 gap area of the buffer, and CODING->src_pos specifies the offset of
7317 the text from GPT (which must be the same as PT). If this is the
7318 same buffer as CODING->dst_object, CODING->src_pos must be
7319 negative.
7320
7321 If CODING->src_object is a string, CODING->src_pos is an index to
7322 that string.
7323
7324 If CODING->src_object is nil, CODING->source must already point to
7325 the non-relocatable memory area. In this case, CODING->src_pos is
7326 an offset from CODING->source.
7327
7328 The decoded data is inserted at the current point of the buffer
7329 CODING->dst_object.
7330 */
7331
7332 static void
7333 decode_coding (struct coding_system *coding)
7334 {
7335 Lisp_Object attrs;
7336 Lisp_Object undo_list;
7337 Lisp_Object translation_table;
7338 struct ccl_spec cclspec;
7339 int carryover;
7340 int i;
7341
7342 USE_SAFE_ALLOCA;
7343
7344 if (BUFFERP (coding->src_object)
7345 && coding->src_pos > 0
7346 && coding->src_pos < GPT
7347 && coding->src_pos + coding->src_chars > GPT)
7348 move_gap_both (coding->src_pos, coding->src_pos_byte);
7349
7350 undo_list = Qt;
7351 if (BUFFERP (coding->dst_object))
7352 {
7353 set_buffer_internal (XBUFFER (coding->dst_object));
7354 if (GPT != PT)
7355 move_gap_both (PT, PT_BYTE);
7356
7357 /* We must disable undo_list in order to record the whole insert
7358 transaction via record_insert at the end. But doing so also
7359 disables the recording of the first change to the undo_list.
7360 Therefore we check for first change here and record it via
7361 record_first_change if needed. */
7362 if (MODIFF <= SAVE_MODIFF)
7363 record_first_change ();
7364
7365 undo_list = BVAR (current_buffer, undo_list);
7366 bset_undo_list (current_buffer, Qt);
7367 }
7368
7369 coding->consumed = coding->consumed_char = 0;
7370 coding->produced = coding->produced_char = 0;
7371 coding->chars_at_source = 0;
7372 record_conversion_result (coding, CODING_RESULT_SUCCESS);
7373
7374 ALLOC_CONVERSION_WORK_AREA (coding, coding->src_bytes);
7375
7376 attrs = CODING_ID_ATTRS (coding->id);
7377 translation_table = get_translation_table (attrs, 0, NULL);
7378
7379 carryover = 0;
7380 if (coding->decoder == decode_coding_ccl)
7381 {
7382 coding->spec.ccl = &cclspec;
7383 setup_ccl_program (&cclspec.ccl, CODING_CCL_DECODER (coding));
7384 }
7385 do
7386 {
7387 ptrdiff_t pos = coding->dst_pos + coding->produced_char;
7388
7389 coding_set_source (coding);
7390 coding->annotated = 0;
7391 coding->charbuf_used = carryover;
7392 (*(coding->decoder)) (coding);
7393 coding_set_destination (coding);
7394 carryover = produce_chars (coding, translation_table, 0);
7395 if (coding->annotated)
7396 produce_annotation (coding, pos);
7397 for (i = 0; i < carryover; i++)
7398 coding->charbuf[i]
7399 = coding->charbuf[coding->charbuf_used - carryover + i];
7400 }
7401 while (coding->result == CODING_RESULT_INSUFFICIENT_DST
7402 || (coding->consumed < coding->src_bytes
7403 && (coding->result == CODING_RESULT_SUCCESS
7404 || coding->result == CODING_RESULT_INVALID_SRC)));
7405
7406 if (carryover > 0)
7407 {
7408 coding_set_destination (coding);
7409 coding->charbuf_used = carryover;
7410 produce_chars (coding, translation_table, 1);
7411 }
7412
7413 coding->carryover_bytes = 0;
7414 if (coding->consumed < coding->src_bytes)
7415 {
7416 ptrdiff_t nbytes = coding->src_bytes - coding->consumed;
7417 const unsigned char *src;
7418
7419 coding_set_source (coding);
7420 coding_set_destination (coding);
7421 src = coding->source + coding->consumed;
7422
7423 if (coding->mode & CODING_MODE_LAST_BLOCK)
7424 {
7425 /* Flush out unprocessed data as binary chars. We are sure
7426 that the number of data is less than the size of
7427 coding->charbuf. */
7428 coding->charbuf_used = 0;
7429 coding->chars_at_source = 0;
7430
7431 while (nbytes-- > 0)
7432 {
7433 int c = *src++;
7434
7435 if (c & 0x80)
7436 c = BYTE8_TO_CHAR (c);
7437 coding->charbuf[coding->charbuf_used++] = c;
7438 }
7439 produce_chars (coding, Qnil, 1);
7440 }
7441 else
7442 {
7443 /* Record unprocessed bytes in coding->carryover. We are
7444 sure that the number of data is less than the size of
7445 coding->carryover. */
7446 unsigned char *p = coding->carryover;
7447
7448 if (nbytes > sizeof coding->carryover)
7449 nbytes = sizeof coding->carryover;
7450 coding->carryover_bytes = nbytes;
7451 while (nbytes-- > 0)
7452 *p++ = *src++;
7453 }
7454 coding->consumed = coding->src_bytes;
7455 }
7456
7457 if (! EQ (CODING_ID_EOL_TYPE (coding->id), Qunix)
7458 && !inhibit_eol_conversion)
7459 decode_eol (coding);
7460 if (BUFFERP (coding->dst_object))
7461 {
7462 bset_undo_list (current_buffer, undo_list);
7463 record_insert (coding->dst_pos, coding->produced_char);
7464 }
7465
7466 SAFE_FREE ();
7467 }
7468
7469
7470 /* Extract an annotation datum from a composition starting at POS and
7471 ending before LIMIT of CODING->src_object (buffer or string), store
7472 the data in BUF, set *STOP to a starting position of the next
7473 composition (if any) or to LIMIT, and return the address of the
7474 next element of BUF.
7475
7476 If such an annotation is not found, set *STOP to a starting
7477 position of a composition after POS (if any) or to LIMIT, and
7478 return BUF. */
7479
7480 static int *
7481 handle_composition_annotation (ptrdiff_t pos, ptrdiff_t limit,
7482 struct coding_system *coding, int *buf,
7483 ptrdiff_t *stop)
7484 {
7485 ptrdiff_t start, end;
7486 Lisp_Object prop;
7487
7488 if (! find_composition (pos, limit, &start, &end, &prop, coding->src_object)
7489 || end > limit)
7490 *stop = limit;
7491 else if (start > pos)
7492 *stop = start;
7493 else
7494 {
7495 if (start == pos)
7496 {
7497 /* We found a composition. Store the corresponding
7498 annotation data in BUF. */
7499 int *head = buf;
7500 enum composition_method method = composition_method (prop);
7501 int nchars = COMPOSITION_LENGTH (prop);
7502
7503 ADD_COMPOSITION_DATA (buf, nchars, 0, method);
7504 if (method != COMPOSITION_RELATIVE)
7505 {
7506 Lisp_Object components;
7507 ptrdiff_t i, len, i_byte;
7508
7509 components = COMPOSITION_COMPONENTS (prop);
7510 if (VECTORP (components))
7511 {
7512 len = ASIZE (components);
7513 for (i = 0; i < len; i++)
7514 *buf++ = XINT (AREF (components, i));
7515 }
7516 else if (STRINGP (components))
7517 {
7518 len = SCHARS (components);
7519 i = i_byte = 0;
7520 while (i < len)
7521 {
7522 FETCH_STRING_CHAR_ADVANCE (*buf, components, i, i_byte);
7523 buf++;
7524 }
7525 }
7526 else if (INTEGERP (components))
7527 {
7528 len = 1;
7529 *buf++ = XINT (components);
7530 }
7531 else if (CONSP (components))
7532 {
7533 for (len = 0; CONSP (components);
7534 len++, components = XCDR (components))
7535 *buf++ = XINT (XCAR (components));
7536 }
7537 else
7538 emacs_abort ();
7539 *head -= len;
7540 }
7541 }
7542
7543 if (find_composition (end, limit, &start, &end, &prop,
7544 coding->src_object)
7545 && end <= limit)
7546 *stop = start;
7547 else
7548 *stop = limit;
7549 }
7550 return buf;
7551 }
7552
7553
7554 /* Extract an annotation datum from a text property `charset' at POS of
7555 CODING->src_object (buffer of string), store the data in BUF, set
7556 *STOP to the position where the value of `charset' property changes
7557 (limiting by LIMIT), and return the address of the next element of
7558 BUF.
7559
7560 If the property value is nil, set *STOP to the position where the
7561 property value is non-nil (limiting by LIMIT), and return BUF. */
7562
7563 static int *
7564 handle_charset_annotation (ptrdiff_t pos, ptrdiff_t limit,
7565 struct coding_system *coding, int *buf,
7566 ptrdiff_t *stop)
7567 {
7568 Lisp_Object val, next;
7569 int id;
7570
7571 val = Fget_text_property (make_number (pos), Qcharset, coding->src_object);
7572 if (! NILP (val) && CHARSETP (val))
7573 id = XINT (CHARSET_SYMBOL_ID (val));
7574 else
7575 id = -1;
7576 ADD_CHARSET_DATA (buf, 0, id);
7577 next = Fnext_single_property_change (make_number (pos), Qcharset,
7578 coding->src_object,
7579 make_number (limit));
7580 *stop = XINT (next);
7581 return buf;
7582 }
7583
7584
7585 static void
7586 consume_chars (struct coding_system *coding, Lisp_Object translation_table,
7587 int max_lookup)
7588 {
7589 int *buf = coding->charbuf;
7590 int *buf_end = coding->charbuf + coding->charbuf_size;
7591 const unsigned char *src = coding->source + coding->consumed;
7592 const unsigned char *src_end = coding->source + coding->src_bytes;
7593 ptrdiff_t pos = coding->src_pos + coding->consumed_char;
7594 ptrdiff_t end_pos = coding->src_pos + coding->src_chars;
7595 bool multibytep = coding->src_multibyte;
7596 Lisp_Object eol_type;
7597 int c;
7598 ptrdiff_t stop, stop_composition, stop_charset;
7599 int *lookup_buf = NULL;
7600
7601 if (! NILP (translation_table))
7602 lookup_buf = alloca (sizeof (int) * max_lookup);
7603
7604 eol_type = inhibit_eol_conversion ? Qunix : CODING_ID_EOL_TYPE (coding->id);
7605 if (VECTORP (eol_type))
7606 eol_type = Qunix;
7607
7608 /* Note: composition handling is not yet implemented. */
7609 coding->common_flags &= ~CODING_ANNOTATE_COMPOSITION_MASK;
7610
7611 if (NILP (coding->src_object))
7612 stop = stop_composition = stop_charset = end_pos;
7613 else
7614 {
7615 if (coding->common_flags & CODING_ANNOTATE_COMPOSITION_MASK)
7616 stop = stop_composition = pos;
7617 else
7618 stop = stop_composition = end_pos;
7619 if (coding->common_flags & CODING_ANNOTATE_CHARSET_MASK)
7620 stop = stop_charset = pos;
7621 else
7622 stop_charset = end_pos;
7623 }
7624
7625 /* Compensate for CRLF and conversion. */
7626 buf_end -= 1 + MAX_ANNOTATION_LENGTH;
7627 while (buf < buf_end)
7628 {
7629 Lisp_Object trans;
7630
7631 if (pos == stop)
7632 {
7633 if (pos == end_pos)
7634 break;
7635 if (pos == stop_composition)
7636 buf = handle_composition_annotation (pos, end_pos, coding,
7637 buf, &stop_composition);
7638 if (pos == stop_charset)
7639 buf = handle_charset_annotation (pos, end_pos, coding,
7640 buf, &stop_charset);
7641 stop = (stop_composition < stop_charset
7642 ? stop_composition : stop_charset);
7643 }
7644
7645 if (! multibytep)
7646 {
7647 int bytes;
7648
7649 if (coding->encoder == encode_coding_raw_text
7650 || coding->encoder == encode_coding_ccl)
7651 c = *src++, pos++;
7652 else if ((bytes = MULTIBYTE_LENGTH (src, src_end)) > 0)
7653 c = STRING_CHAR_ADVANCE_NO_UNIFY (src), pos += bytes;
7654 else
7655 c = BYTE8_TO_CHAR (*src), src++, pos++;
7656 }
7657 else
7658 c = STRING_CHAR_ADVANCE_NO_UNIFY (src), pos++;
7659 if ((c == '\r') && (coding->mode & CODING_MODE_SELECTIVE_DISPLAY))
7660 c = '\n';
7661 if (! EQ (eol_type, Qunix))
7662 {
7663 if (c == '\n')
7664 {
7665 if (EQ (eol_type, Qdos))
7666 *buf++ = '\r';
7667 else
7668 c = '\r';
7669 }
7670 }
7671
7672 trans = Qnil;
7673 LOOKUP_TRANSLATION_TABLE (translation_table, c, trans);
7674 if (NILP (trans))
7675 *buf++ = c;
7676 else
7677 {
7678 ptrdiff_t from_nchars = 1, to_nchars = 1;
7679 int *lookup_buf_end;
7680 const unsigned char *p = src;
7681 int i;
7682
7683 lookup_buf[0] = c;
7684 for (i = 1; i < max_lookup && p < src_end; i++)
7685 lookup_buf[i] = STRING_CHAR_ADVANCE (p);
7686 lookup_buf_end = lookup_buf + i;
7687 trans = get_translation (trans, lookup_buf, lookup_buf_end);
7688 if (INTEGERP (trans))
7689 c = XINT (trans);
7690 else if (CONSP (trans))
7691 {
7692 from_nchars = ASIZE (XCAR (trans));
7693 trans = XCDR (trans);
7694 if (INTEGERP (trans))
7695 c = XINT (trans);
7696 else
7697 {
7698 to_nchars = ASIZE (trans);
7699 if (buf_end - buf < to_nchars)
7700 break;
7701 c = XINT (AREF (trans, 0));
7702 }
7703 }
7704 else
7705 break;
7706 *buf++ = c;
7707 for (i = 1; i < to_nchars; i++)
7708 *buf++ = XINT (AREF (trans, i));
7709 for (i = 1; i < from_nchars; i++, pos++)
7710 src += MULTIBYTE_LENGTH_NO_CHECK (src);
7711 }
7712 }
7713
7714 coding->consumed = src - coding->source;
7715 coding->consumed_char = pos - coding->src_pos;
7716 coding->charbuf_used = buf - coding->charbuf;
7717 coding->chars_at_source = 0;
7718 }
7719
7720
7721 /* Encode the text at CODING->src_object into CODING->dst_object.
7722 CODING->src_object is a buffer or a string.
7723 CODING->dst_object is a buffer or nil.
7724
7725 If CODING->src_object is a buffer, it must be the current buffer.
7726 In this case, if CODING->src_pos is positive, it is a position of
7727 the source text in the buffer, otherwise. the source text is in the
7728 gap area of the buffer, and coding->src_pos specifies the offset of
7729 the text from GPT (which must be the same as PT). If this is the
7730 same buffer as CODING->dst_object, CODING->src_pos must be
7731 negative and CODING should not have `pre-write-conversion'.
7732
7733 If CODING->src_object is a string, CODING should not have
7734 `pre-write-conversion'.
7735
7736 If CODING->dst_object is a buffer, the encoded data is inserted at
7737 the current point of that buffer.
7738
7739 If CODING->dst_object is nil, the encoded data is placed at the
7740 memory area specified by CODING->destination. */
7741
7742 static void
7743 encode_coding (struct coding_system *coding)
7744 {
7745 Lisp_Object attrs;
7746 Lisp_Object translation_table;
7747 int max_lookup;
7748 struct ccl_spec cclspec;
7749
7750 USE_SAFE_ALLOCA;
7751
7752 attrs = CODING_ID_ATTRS (coding->id);
7753 if (coding->encoder == encode_coding_raw_text)
7754 translation_table = Qnil, max_lookup = 0;
7755 else
7756 translation_table = get_translation_table (attrs, 1, &max_lookup);
7757
7758 if (BUFFERP (coding->dst_object))
7759 {
7760 set_buffer_internal (XBUFFER (coding->dst_object));
7761 coding->dst_multibyte
7762 = ! NILP (BVAR (current_buffer, enable_multibyte_characters));
7763 }
7764
7765 coding->consumed = coding->consumed_char = 0;
7766 coding->produced = coding->produced_char = 0;
7767 record_conversion_result (coding, CODING_RESULT_SUCCESS);
7768
7769 ALLOC_CONVERSION_WORK_AREA (coding, coding->src_chars);
7770
7771 if (coding->encoder == encode_coding_ccl)
7772 {
7773 coding->spec.ccl = &cclspec;
7774 setup_ccl_program (&cclspec.ccl, CODING_CCL_ENCODER (coding));
7775 }
7776 do {
7777 coding_set_source (coding);
7778 consume_chars (coding, translation_table, max_lookup);
7779 coding_set_destination (coding);
7780 (*(coding->encoder)) (coding);
7781 } while (coding->consumed_char < coding->src_chars);
7782
7783 if (BUFFERP (coding->dst_object) && coding->produced_char > 0)
7784 insert_from_gap (coding->produced_char, coding->produced, 0);
7785
7786 SAFE_FREE ();
7787 }
7788
7789
7790 /* Name (or base name) of work buffer for code conversion. */
7791 static Lisp_Object Vcode_conversion_workbuf_name;
7792
7793 /* A working buffer used by the top level conversion. Once it is
7794 created, it is never destroyed. It has the name
7795 Vcode_conversion_workbuf_name. The other working buffers are
7796 destroyed after the use is finished, and their names are modified
7797 versions of Vcode_conversion_workbuf_name. */
7798 static Lisp_Object Vcode_conversion_reused_workbuf;
7799
7800 /* True iff Vcode_conversion_reused_workbuf is already in use. */
7801 static bool reused_workbuf_in_use;
7802
7803
7804 /* Return a working buffer of code conversion. MULTIBYTE specifies the
7805 multibyteness of returning buffer. */
7806
7807 static Lisp_Object
7808 make_conversion_work_buffer (bool multibyte)
7809 {
7810 Lisp_Object name, workbuf;
7811 struct buffer *current;
7812
7813 if (reused_workbuf_in_use)
7814 {
7815 name = Fgenerate_new_buffer_name (Vcode_conversion_workbuf_name, Qnil);
7816 workbuf = Fget_buffer_create (name);
7817 }
7818 else
7819 {
7820 reused_workbuf_in_use = 1;
7821 if (NILP (Fbuffer_live_p (Vcode_conversion_reused_workbuf)))
7822 Vcode_conversion_reused_workbuf
7823 = Fget_buffer_create (Vcode_conversion_workbuf_name);
7824 workbuf = Vcode_conversion_reused_workbuf;
7825 }
7826 current = current_buffer;
7827 set_buffer_internal (XBUFFER (workbuf));
7828 /* We can't allow modification hooks to run in the work buffer. For
7829 instance, directory_files_internal assumes that file decoding
7830 doesn't compile new regexps. */
7831 Fset (Fmake_local_variable (Qinhibit_modification_hooks), Qt);
7832 Ferase_buffer ();
7833 bset_undo_list (current_buffer, Qt);
7834 bset_enable_multibyte_characters (current_buffer, multibyte ? Qt : Qnil);
7835 set_buffer_internal (current);
7836 return workbuf;
7837 }
7838
7839
7840 static void
7841 code_conversion_restore (Lisp_Object arg)
7842 {
7843 Lisp_Object current, workbuf;
7844
7845 current = XCAR (arg);
7846 workbuf = XCDR (arg);
7847 if (! NILP (workbuf))
7848 {
7849 if (EQ (workbuf, Vcode_conversion_reused_workbuf))
7850 reused_workbuf_in_use = 0;
7851 else
7852 Fkill_buffer (workbuf);
7853 }
7854 set_buffer_internal (XBUFFER (current));
7855 }
7856
7857 Lisp_Object
7858 code_conversion_save (bool with_work_buf, bool multibyte)
7859 {
7860 Lisp_Object workbuf = Qnil;
7861
7862 if (with_work_buf)
7863 workbuf = make_conversion_work_buffer (multibyte);
7864 record_unwind_protect (code_conversion_restore,
7865 Fcons (Fcurrent_buffer (), workbuf));
7866 return workbuf;
7867 }
7868
7869 void
7870 decode_coding_gap (struct coding_system *coding,
7871 ptrdiff_t chars, ptrdiff_t bytes)
7872 {
7873 ptrdiff_t count = SPECPDL_INDEX ();
7874 Lisp_Object attrs;
7875
7876 coding->src_object = Fcurrent_buffer ();
7877 coding->src_chars = chars;
7878 coding->src_bytes = bytes;
7879 coding->src_pos = -chars;
7880 coding->src_pos_byte = -bytes;
7881 coding->src_multibyte = chars < bytes;
7882 coding->dst_object = coding->src_object;
7883 coding->dst_pos = PT;
7884 coding->dst_pos_byte = PT_BYTE;
7885 coding->dst_multibyte = ! NILP (BVAR (current_buffer, enable_multibyte_characters));
7886
7887 coding->head_ascii = -1;
7888 coding->detected_utf8_bytes = coding->detected_utf8_chars = -1;
7889 coding->eol_seen = EOL_SEEN_NONE;
7890 if (CODING_REQUIRE_DETECTION (coding))
7891 detect_coding (coding);
7892 attrs = CODING_ID_ATTRS (coding->id);
7893 if (! disable_ascii_optimization
7894 && ! coding->src_multibyte
7895 && ! NILP (CODING_ATTR_ASCII_COMPAT (attrs))
7896 && NILP (CODING_ATTR_POST_READ (attrs))
7897 && NILP (get_translation_table (attrs, 0, NULL)))
7898 {
7899 chars = coding->head_ascii;
7900 if (chars < 0)
7901 chars = check_ascii (coding);
7902 if (chars != bytes)
7903 {
7904 /* There exists a non-ASCII byte. */
7905 if (EQ (CODING_ATTR_TYPE (attrs), Qutf_8)
7906 && coding->detected_utf8_bytes == coding->src_bytes)
7907 {
7908 if (coding->detected_utf8_chars >= 0)
7909 chars = coding->detected_utf8_chars;
7910 else
7911 chars = check_utf_8 (coding);
7912 if (CODING_UTF_8_BOM (coding) != utf_without_bom
7913 && coding->head_ascii == 0
7914 && coding->source[0] == UTF_8_BOM_1
7915 && coding->source[1] == UTF_8_BOM_2
7916 && coding->source[2] == UTF_8_BOM_3)
7917 {
7918 chars--;
7919 bytes -= 3;
7920 coding->src_bytes -= 3;
7921 }
7922 }
7923 else
7924 chars = -1;
7925 }
7926 if (chars >= 0)
7927 {
7928 Lisp_Object eol_type;
7929
7930 eol_type = CODING_ID_EOL_TYPE (coding->id);
7931 if (VECTORP (eol_type))
7932 {
7933 if (coding->eol_seen != EOL_SEEN_NONE)
7934 eol_type = adjust_coding_eol_type (coding, coding->eol_seen);
7935 }
7936 if (EQ (eol_type, Qmac))
7937 {
7938 unsigned char *src_end = GAP_END_ADDR;
7939 unsigned char *src = src_end - coding->src_bytes;
7940
7941 while (src < src_end)
7942 {
7943 if (*src++ == '\r')
7944 src[-1] = '\n';
7945 }
7946 }
7947 else if (EQ (eol_type, Qdos))
7948 {
7949 unsigned char *src = GAP_END_ADDR;
7950 unsigned char *src_beg = src - coding->src_bytes;
7951 unsigned char *dst = src;
7952 ptrdiff_t diff;
7953
7954 while (src_beg < src)
7955 {
7956 *--dst = *--src;
7957 if (*src == '\n' && src > src_beg && src[-1] == '\r')
7958 src--;
7959 }
7960 diff = dst - src;
7961 bytes -= diff;
7962 chars -= diff;
7963 }
7964 coding->produced = bytes;
7965 coding->produced_char = chars;
7966 insert_from_gap (chars, bytes, 1);
7967 return;
7968 }
7969 }
7970 code_conversion_save (0, 0);
7971
7972 coding->mode |= CODING_MODE_LAST_BLOCK;
7973 current_buffer->text->inhibit_shrinking = 1;
7974 decode_coding (coding);
7975 current_buffer->text->inhibit_shrinking = 0;
7976
7977 if (! NILP (CODING_ATTR_POST_READ (attrs)))
7978 {
7979 ptrdiff_t prev_Z = Z, prev_Z_BYTE = Z_BYTE;
7980 Lisp_Object val;
7981
7982 TEMP_SET_PT_BOTH (coding->dst_pos, coding->dst_pos_byte);
7983 val = call1 (CODING_ATTR_POST_READ (attrs),
7984 make_number (coding->produced_char));
7985 CHECK_NATNUM (val);
7986 coding->produced_char += Z - prev_Z;
7987 coding->produced += Z_BYTE - prev_Z_BYTE;
7988 }
7989
7990 unbind_to (count, Qnil);
7991 }
7992
7993
7994 /* Decode the text in the range FROM/FROM_BYTE and TO/TO_BYTE in
7995 SRC_OBJECT into DST_OBJECT by coding context CODING.
7996
7997 SRC_OBJECT is a buffer, a string, or Qnil.
7998
7999 If it is a buffer, the text is at point of the buffer. FROM and TO
8000 are positions in the buffer.
8001
8002 If it is a string, the text is at the beginning of the string.
8003 FROM and TO are indices to the string.
8004
8005 If it is nil, the text is at coding->source. FROM and TO are
8006 indices to coding->source.
8007
8008 DST_OBJECT is a buffer, Qt, or Qnil.
8009
8010 If it is a buffer, the decoded text is inserted at point of the
8011 buffer. If the buffer is the same as SRC_OBJECT, the source text
8012 is deleted.
8013
8014 If it is Qt, a string is made from the decoded text, and
8015 set in CODING->dst_object.
8016
8017 If it is Qnil, the decoded text is stored at CODING->destination.
8018 The caller must allocate CODING->dst_bytes bytes at
8019 CODING->destination by xmalloc. If the decoded text is longer than
8020 CODING->dst_bytes, CODING->destination is relocated by xrealloc.
8021 */
8022
8023 void
8024 decode_coding_object (struct coding_system *coding,
8025 Lisp_Object src_object,
8026 ptrdiff_t from, ptrdiff_t from_byte,
8027 ptrdiff_t to, ptrdiff_t to_byte,
8028 Lisp_Object dst_object)
8029 {
8030 ptrdiff_t count = SPECPDL_INDEX ();
8031 unsigned char *destination IF_LINT (= NULL);
8032 ptrdiff_t dst_bytes IF_LINT (= 0);
8033 ptrdiff_t chars = to - from;
8034 ptrdiff_t bytes = to_byte - from_byte;
8035 Lisp_Object attrs;
8036 ptrdiff_t saved_pt = -1, saved_pt_byte IF_LINT (= 0);
8037 bool need_marker_adjustment = 0;
8038 Lisp_Object old_deactivate_mark;
8039
8040 old_deactivate_mark = Vdeactivate_mark;
8041
8042 if (NILP (dst_object))
8043 {
8044 destination = coding->destination;
8045 dst_bytes = coding->dst_bytes;
8046 }
8047
8048 coding->src_object = src_object;
8049 coding->src_chars = chars;
8050 coding->src_bytes = bytes;
8051 coding->src_multibyte = chars < bytes;
8052
8053 if (STRINGP (src_object))
8054 {
8055 coding->src_pos = from;
8056 coding->src_pos_byte = from_byte;
8057 }
8058 else if (BUFFERP (src_object))
8059 {
8060 set_buffer_internal (XBUFFER (src_object));
8061 if (from != GPT)
8062 move_gap_both (from, from_byte);
8063 if (EQ (src_object, dst_object))
8064 {
8065 struct Lisp_Marker *tail;
8066
8067 for (tail = BUF_MARKERS (current_buffer); tail; tail = tail->next)
8068 {
8069 tail->need_adjustment
8070 = tail->charpos == (tail->insertion_type ? from : to);
8071 need_marker_adjustment |= tail->need_adjustment;
8072 }
8073 saved_pt = PT, saved_pt_byte = PT_BYTE;
8074 TEMP_SET_PT_BOTH (from, from_byte);
8075 current_buffer->text->inhibit_shrinking = 1;
8076 del_range_both (from, from_byte, to, to_byte, 1);
8077 coding->src_pos = -chars;
8078 coding->src_pos_byte = -bytes;
8079 }
8080 else
8081 {
8082 coding->src_pos = from;
8083 coding->src_pos_byte = from_byte;
8084 }
8085 }
8086
8087 if (CODING_REQUIRE_DETECTION (coding))
8088 detect_coding (coding);
8089 attrs = CODING_ID_ATTRS (coding->id);
8090
8091 if (EQ (dst_object, Qt)
8092 || (! NILP (CODING_ATTR_POST_READ (attrs))
8093 && NILP (dst_object)))
8094 {
8095 coding->dst_multibyte = !CODING_FOR_UNIBYTE (coding);
8096 coding->dst_object = code_conversion_save (1, coding->dst_multibyte);
8097 coding->dst_pos = BEG;
8098 coding->dst_pos_byte = BEG_BYTE;
8099 }
8100 else if (BUFFERP (dst_object))
8101 {
8102 code_conversion_save (0, 0);
8103 coding->dst_object = dst_object;
8104 coding->dst_pos = BUF_PT (XBUFFER (dst_object));
8105 coding->dst_pos_byte = BUF_PT_BYTE (XBUFFER (dst_object));
8106 coding->dst_multibyte
8107 = ! NILP (BVAR (XBUFFER (dst_object), enable_multibyte_characters));
8108 }
8109 else
8110 {
8111 code_conversion_save (0, 0);
8112 coding->dst_object = Qnil;
8113 /* Most callers presume this will return a multibyte result, and they
8114 won't use `binary' or `raw-text' anyway, so let's not worry about
8115 CODING_FOR_UNIBYTE. */
8116 coding->dst_multibyte = 1;
8117 }
8118
8119 decode_coding (coding);
8120
8121 if (BUFFERP (coding->dst_object))
8122 set_buffer_internal (XBUFFER (coding->dst_object));
8123
8124 if (! NILP (CODING_ATTR_POST_READ (attrs)))
8125 {
8126 ptrdiff_t prev_Z = Z, prev_Z_BYTE = Z_BYTE;
8127 Lisp_Object val;
8128
8129 TEMP_SET_PT_BOTH (coding->dst_pos, coding->dst_pos_byte);
8130 val = safe_call1 (CODING_ATTR_POST_READ (attrs),
8131 make_number (coding->produced_char));
8132 CHECK_NATNUM (val);
8133 coding->produced_char += Z - prev_Z;
8134 coding->produced += Z_BYTE - prev_Z_BYTE;
8135 }
8136
8137 if (EQ (dst_object, Qt))
8138 {
8139 coding->dst_object = Fbuffer_string ();
8140 }
8141 else if (NILP (dst_object) && BUFFERP (coding->dst_object))
8142 {
8143 set_buffer_internal (XBUFFER (coding->dst_object));
8144 if (dst_bytes < coding->produced)
8145 {
8146 eassert (coding->produced > 0);
8147 destination = xrealloc (destination, coding->produced);
8148 if (BEGV < GPT && GPT < BEGV + coding->produced_char)
8149 move_gap_both (BEGV, BEGV_BYTE);
8150 memcpy (destination, BEGV_ADDR, coding->produced);
8151 coding->destination = destination;
8152 }
8153 }
8154
8155 if (saved_pt >= 0)
8156 {
8157 /* This is the case of:
8158 (BUFFERP (src_object) && EQ (src_object, dst_object))
8159 As we have moved PT while replacing the original buffer
8160 contents, we must recover it now. */
8161 set_buffer_internal (XBUFFER (src_object));
8162 current_buffer->text->inhibit_shrinking = 0;
8163 if (saved_pt < from)
8164 TEMP_SET_PT_BOTH (saved_pt, saved_pt_byte);
8165 else if (saved_pt < from + chars)
8166 TEMP_SET_PT_BOTH (from, from_byte);
8167 else if (! NILP (BVAR (current_buffer, enable_multibyte_characters)))
8168 TEMP_SET_PT_BOTH (saved_pt + (coding->produced_char - chars),
8169 saved_pt_byte + (coding->produced - bytes));
8170 else
8171 TEMP_SET_PT_BOTH (saved_pt + (coding->produced - bytes),
8172 saved_pt_byte + (coding->produced - bytes));
8173
8174 if (need_marker_adjustment)
8175 {
8176 struct Lisp_Marker *tail;
8177
8178 for (tail = BUF_MARKERS (current_buffer); tail; tail = tail->next)
8179 if (tail->need_adjustment)
8180 {
8181 tail->need_adjustment = 0;
8182 if (tail->insertion_type)
8183 {
8184 tail->bytepos = from_byte;
8185 tail->charpos = from;
8186 }
8187 else
8188 {
8189 tail->bytepos = from_byte + coding->produced;
8190 tail->charpos
8191 = (NILP (BVAR (current_buffer, enable_multibyte_characters))
8192 ? tail->bytepos : from + coding->produced_char);
8193 }
8194 }
8195 }
8196 }
8197
8198 Vdeactivate_mark = old_deactivate_mark;
8199 unbind_to (count, coding->dst_object);
8200 }
8201
8202
8203 void
8204 encode_coding_object (struct coding_system *coding,
8205 Lisp_Object src_object,
8206 ptrdiff_t from, ptrdiff_t from_byte,
8207 ptrdiff_t to, ptrdiff_t to_byte,
8208 Lisp_Object dst_object)
8209 {
8210 ptrdiff_t count = SPECPDL_INDEX ();
8211 ptrdiff_t chars = to - from;
8212 ptrdiff_t bytes = to_byte - from_byte;
8213 Lisp_Object attrs;
8214 ptrdiff_t saved_pt = -1, saved_pt_byte IF_LINT (= 0);
8215 bool need_marker_adjustment = 0;
8216 bool kill_src_buffer = 0;
8217 Lisp_Object old_deactivate_mark;
8218
8219 old_deactivate_mark = Vdeactivate_mark;
8220
8221 coding->src_object = src_object;
8222 coding->src_chars = chars;
8223 coding->src_bytes = bytes;
8224 coding->src_multibyte = chars < bytes;
8225
8226 attrs = CODING_ID_ATTRS (coding->id);
8227
8228 if (EQ (src_object, dst_object))
8229 {
8230 struct Lisp_Marker *tail;
8231
8232 for (tail = BUF_MARKERS (current_buffer); tail; tail = tail->next)
8233 {
8234 tail->need_adjustment
8235 = tail->charpos == (tail->insertion_type ? from : to);
8236 need_marker_adjustment |= tail->need_adjustment;
8237 }
8238 }
8239
8240 if (! NILP (CODING_ATTR_PRE_WRITE (attrs)))
8241 {
8242 coding->src_object = code_conversion_save (1, coding->src_multibyte);
8243 set_buffer_internal (XBUFFER (coding->src_object));
8244 if (STRINGP (src_object))
8245 insert_from_string (src_object, from, from_byte, chars, bytes, 0);
8246 else if (BUFFERP (src_object))
8247 insert_from_buffer (XBUFFER (src_object), from, chars, 0);
8248 else
8249 insert_1_both ((char *) coding->source + from, chars, bytes, 0, 0, 0);
8250
8251 if (EQ (src_object, dst_object))
8252 {
8253 set_buffer_internal (XBUFFER (src_object));
8254 saved_pt = PT, saved_pt_byte = PT_BYTE;
8255 del_range_both (from, from_byte, to, to_byte, 1);
8256 set_buffer_internal (XBUFFER (coding->src_object));
8257 }
8258
8259 safe_call2 (CODING_ATTR_PRE_WRITE (attrs),
8260 make_number (BEG), make_number (Z));
8261 if (XBUFFER (coding->src_object) != current_buffer)
8262 kill_src_buffer = 1;
8263 coding->src_object = Fcurrent_buffer ();
8264 if (BEG != GPT)
8265 move_gap_both (BEG, BEG_BYTE);
8266 coding->src_chars = Z - BEG;
8267 coding->src_bytes = Z_BYTE - BEG_BYTE;
8268 coding->src_pos = BEG;
8269 coding->src_pos_byte = BEG_BYTE;
8270 coding->src_multibyte = Z < Z_BYTE;
8271 }
8272 else if (STRINGP (src_object))
8273 {
8274 code_conversion_save (0, 0);
8275 coding->src_pos = from;
8276 coding->src_pos_byte = from_byte;
8277 }
8278 else if (BUFFERP (src_object))
8279 {
8280 code_conversion_save (0, 0);
8281 set_buffer_internal (XBUFFER (src_object));
8282 if (EQ (src_object, dst_object))
8283 {
8284 saved_pt = PT, saved_pt_byte = PT_BYTE;
8285 coding->src_object = del_range_1 (from, to, 1, 1);
8286 coding->src_pos = 0;
8287 coding->src_pos_byte = 0;
8288 }
8289 else
8290 {
8291 if (from < GPT && to >= GPT)
8292 move_gap_both (from, from_byte);
8293 coding->src_pos = from;
8294 coding->src_pos_byte = from_byte;
8295 }
8296 }
8297 else
8298 {
8299 code_conversion_save (0, 0);
8300 coding->src_pos = from;
8301 coding->src_pos_byte = from_byte;
8302 }
8303
8304 if (BUFFERP (dst_object))
8305 {
8306 coding->dst_object = dst_object;
8307 if (EQ (src_object, dst_object))
8308 {
8309 coding->dst_pos = from;
8310 coding->dst_pos_byte = from_byte;
8311 }
8312 else
8313 {
8314 struct buffer *current = current_buffer;
8315
8316 set_buffer_temp (XBUFFER (dst_object));
8317 coding->dst_pos = PT;
8318 coding->dst_pos_byte = PT_BYTE;
8319 move_gap_both (coding->dst_pos, coding->dst_pos_byte);
8320 set_buffer_temp (current);
8321 }
8322 coding->dst_multibyte
8323 = ! NILP (BVAR (XBUFFER (dst_object), enable_multibyte_characters));
8324 }
8325 else if (EQ (dst_object, Qt))
8326 {
8327 ptrdiff_t dst_bytes = max (1, coding->src_chars);
8328 coding->dst_object = Qnil;
8329 coding->destination = xmalloc (dst_bytes);
8330 coding->dst_bytes = dst_bytes;
8331 coding->dst_multibyte = 0;
8332 }
8333 else
8334 {
8335 coding->dst_object = Qnil;
8336 coding->dst_multibyte = 0;
8337 }
8338
8339 encode_coding (coding);
8340
8341 if (EQ (dst_object, Qt))
8342 {
8343 if (BUFFERP (coding->dst_object))
8344 coding->dst_object = Fbuffer_string ();
8345 else if (coding->raw_destination)
8346 /* This is used to avoid creating huge Lisp string.
8347 NOTE: caller who sets `raw_destination' is also
8348 responsible for freeing `destination' buffer. */
8349 coding->dst_object = Qnil;
8350 else
8351 {
8352 coding->dst_object
8353 = make_unibyte_string ((char *) coding->destination,
8354 coding->produced);
8355 xfree (coding->destination);
8356 }
8357 }
8358
8359 if (saved_pt >= 0)
8360 {
8361 /* This is the case of:
8362 (BUFFERP (src_object) && EQ (src_object, dst_object))
8363 As we have moved PT while replacing the original buffer
8364 contents, we must recover it now. */
8365 set_buffer_internal (XBUFFER (src_object));
8366 if (saved_pt < from)
8367 TEMP_SET_PT_BOTH (saved_pt, saved_pt_byte);
8368 else if (saved_pt < from + chars)
8369 TEMP_SET_PT_BOTH (from, from_byte);
8370 else if (! NILP (BVAR (current_buffer, enable_multibyte_characters)))
8371 TEMP_SET_PT_BOTH (saved_pt + (coding->produced_char - chars),
8372 saved_pt_byte + (coding->produced - bytes));
8373 else
8374 TEMP_SET_PT_BOTH (saved_pt + (coding->produced - bytes),
8375 saved_pt_byte + (coding->produced - bytes));
8376
8377 if (need_marker_adjustment)
8378 {
8379 struct Lisp_Marker *tail;
8380
8381 for (tail = BUF_MARKERS (current_buffer); tail; tail = tail->next)
8382 if (tail->need_adjustment)
8383 {
8384 tail->need_adjustment = 0;
8385 if (tail->insertion_type)
8386 {
8387 tail->bytepos = from_byte;
8388 tail->charpos = from;
8389 }
8390 else
8391 {
8392 tail->bytepos = from_byte + coding->produced;
8393 tail->charpos
8394 = (NILP (BVAR (current_buffer, enable_multibyte_characters))
8395 ? tail->bytepos : from + coding->produced_char);
8396 }
8397 }
8398 }
8399 }
8400
8401 if (kill_src_buffer)
8402 Fkill_buffer (coding->src_object);
8403
8404 Vdeactivate_mark = old_deactivate_mark;
8405 unbind_to (count, Qnil);
8406 }
8407
8408
8409 Lisp_Object
8410 preferred_coding_system (void)
8411 {
8412 int id = coding_categories[coding_priorities[0]].id;
8413
8414 return CODING_ID_NAME (id);
8415 }
8416
8417 #if defined (WINDOWSNT) || defined (CYGWIN)
8418
8419 Lisp_Object
8420 from_unicode (Lisp_Object str)
8421 {
8422 CHECK_STRING (str);
8423 if (!STRING_MULTIBYTE (str) &&
8424 SBYTES (str) & 1)
8425 {
8426 str = Fsubstring (str, make_number (0), make_number (-1));
8427 }
8428
8429 return code_convert_string_norecord (str, Qutf_16le, 0);
8430 }
8431
8432 Lisp_Object
8433 from_unicode_buffer (const wchar_t *wstr)
8434 {
8435 return from_unicode (
8436 make_unibyte_string (
8437 (char *) wstr,
8438 /* we get one of the two final 0 bytes for free. */
8439 1 + sizeof (wchar_t) * wcslen (wstr)));
8440 }
8441
8442 wchar_t *
8443 to_unicode (Lisp_Object str, Lisp_Object *buf)
8444 {
8445 *buf = code_convert_string_norecord (str, Qutf_16le, 1);
8446 /* We need to make another copy (in addition to the one made by
8447 code_convert_string_norecord) to ensure that the final string is
8448 _doubly_ zero terminated --- that is, that the string is
8449 terminated by two zero bytes and one utf-16le null character.
8450 Because strings are already terminated with a single zero byte,
8451 we just add one additional zero. */
8452 str = make_uninit_string (SBYTES (*buf) + 1);
8453 memcpy (SDATA (str), SDATA (*buf), SBYTES (*buf));
8454 SDATA (str) [SBYTES (*buf)] = '\0';
8455 *buf = str;
8456 return WCSDATA (*buf);
8457 }
8458
8459 #endif /* WINDOWSNT || CYGWIN */
8460
8461 \f
8462 #ifdef emacs
8463 /*** 8. Emacs Lisp library functions ***/
8464
8465 DEFUN ("coding-system-p", Fcoding_system_p, Scoding_system_p, 1, 1, 0,
8466 doc: /* Return t if OBJECT is nil or a coding-system.
8467 See the documentation of `define-coding-system' for information
8468 about coding-system objects. */)
8469 (Lisp_Object object)
8470 {
8471 if (NILP (object)
8472 || CODING_SYSTEM_ID (object) >= 0)
8473 return Qt;
8474 if (! SYMBOLP (object)
8475 || NILP (Fget (object, Qcoding_system_define_form)))
8476 return Qnil;
8477 return Qt;
8478 }
8479
8480 DEFUN ("read-non-nil-coding-system", Fread_non_nil_coding_system,
8481 Sread_non_nil_coding_system, 1, 1, 0,
8482 doc: /* Read a coding system from the minibuffer, prompting with string PROMPT. */)
8483 (Lisp_Object prompt)
8484 {
8485 Lisp_Object val;
8486 do
8487 {
8488 val = Fcompleting_read (prompt, Vcoding_system_alist, Qnil,
8489 Qt, Qnil, Qcoding_system_history, Qnil, Qnil);
8490 }
8491 while (SCHARS (val) == 0);
8492 return (Fintern (val, Qnil));
8493 }
8494
8495 DEFUN ("read-coding-system", Fread_coding_system, Sread_coding_system, 1, 2, 0,
8496 doc: /* Read a coding system from the minibuffer, prompting with string PROMPT.
8497 If the user enters null input, return second argument DEFAULT-CODING-SYSTEM.
8498 Ignores case when completing coding systems (all Emacs coding systems
8499 are lower-case). */)
8500 (Lisp_Object prompt, Lisp_Object default_coding_system)
8501 {
8502 Lisp_Object val;
8503 ptrdiff_t count = SPECPDL_INDEX ();
8504
8505 if (SYMBOLP (default_coding_system))
8506 default_coding_system = SYMBOL_NAME (default_coding_system);
8507 specbind (Qcompletion_ignore_case, Qt);
8508 val = Fcompleting_read (prompt, Vcoding_system_alist, Qnil,
8509 Qt, Qnil, Qcoding_system_history,
8510 default_coding_system, Qnil);
8511 unbind_to (count, Qnil);
8512 return (SCHARS (val) == 0 ? Qnil : Fintern (val, Qnil));
8513 }
8514
8515 DEFUN ("check-coding-system", Fcheck_coding_system, Scheck_coding_system,
8516 1, 1, 0,
8517 doc: /* Check validity of CODING-SYSTEM.
8518 If valid, return CODING-SYSTEM, else signal a `coding-system-error' error.
8519 It is valid if it is nil or a symbol defined as a coding system by the
8520 function `define-coding-system'. */)
8521 (Lisp_Object coding_system)
8522 {
8523 Lisp_Object define_form;
8524
8525 define_form = Fget (coding_system, Qcoding_system_define_form);
8526 if (! NILP (define_form))
8527 {
8528 Fput (coding_system, Qcoding_system_define_form, Qnil);
8529 safe_eval (define_form);
8530 }
8531 if (!NILP (Fcoding_system_p (coding_system)))
8532 return coding_system;
8533 xsignal1 (Qcoding_system_error, coding_system);
8534 }
8535
8536 \f
8537 /* Detect how the bytes at SRC of length SRC_BYTES are encoded. If
8538 HIGHEST, return the coding system of the highest
8539 priority among the detected coding systems. Otherwise return a
8540 list of detected coding systems sorted by their priorities. If
8541 MULTIBYTEP, it is assumed that the bytes are in correct
8542 multibyte form but contains only ASCII and eight-bit chars.
8543 Otherwise, the bytes are raw bytes.
8544
8545 CODING-SYSTEM controls the detection as below:
8546
8547 If it is nil, detect both text-format and eol-format. If the
8548 text-format part of CODING-SYSTEM is already specified
8549 (e.g. `iso-latin-1'), detect only eol-format. If the eol-format
8550 part of CODING-SYSTEM is already specified (e.g. `undecided-unix'),
8551 detect only text-format. */
8552
8553 Lisp_Object
8554 detect_coding_system (const unsigned char *src,
8555 ptrdiff_t src_chars, ptrdiff_t src_bytes,
8556 bool highest, bool multibytep,
8557 Lisp_Object coding_system)
8558 {
8559 const unsigned char *src_end = src + src_bytes;
8560 Lisp_Object attrs, eol_type;
8561 Lisp_Object val = Qnil;
8562 struct coding_system coding;
8563 ptrdiff_t id;
8564 struct coding_detection_info detect_info;
8565 enum coding_category base_category;
8566 bool null_byte_found = 0, eight_bit_found = 0;
8567
8568 if (NILP (coding_system))
8569 coding_system = Qundecided;
8570 setup_coding_system (coding_system, &coding);
8571 attrs = CODING_ID_ATTRS (coding.id);
8572 eol_type = CODING_ID_EOL_TYPE (coding.id);
8573 coding_system = CODING_ATTR_BASE_NAME (attrs);
8574
8575 coding.source = src;
8576 coding.src_chars = src_chars;
8577 coding.src_bytes = src_bytes;
8578 coding.src_multibyte = multibytep;
8579 coding.consumed = 0;
8580 coding.mode |= CODING_MODE_LAST_BLOCK;
8581 coding.head_ascii = 0;
8582
8583 detect_info.checked = detect_info.found = detect_info.rejected = 0;
8584
8585 /* At first, detect text-format if necessary. */
8586 base_category = XINT (CODING_ATTR_CATEGORY (attrs));
8587 if (base_category == coding_category_undecided)
8588 {
8589 enum coding_category category IF_LINT (= 0);
8590 struct coding_system *this IF_LINT (= NULL);
8591 int c, i;
8592 bool inhibit_nbd = inhibit_flag (coding.spec.undecided.inhibit_nbd,
8593 inhibit_null_byte_detection);
8594 bool inhibit_ied = inhibit_flag (coding.spec.undecided.inhibit_ied,
8595 inhibit_iso_escape_detection);
8596 bool prefer_utf_8 = coding.spec.undecided.prefer_utf_8;
8597
8598 /* Skip all ASCII bytes except for a few ISO2022 controls. */
8599 for (; src < src_end; src++)
8600 {
8601 c = *src;
8602 if (c & 0x80)
8603 {
8604 eight_bit_found = 1;
8605 if (null_byte_found)
8606 break;
8607 }
8608 else if (c < 0x20)
8609 {
8610 if ((c == ISO_CODE_ESC || c == ISO_CODE_SI || c == ISO_CODE_SO)
8611 && ! inhibit_ied
8612 && ! detect_info.checked)
8613 {
8614 if (detect_coding_iso_2022 (&coding, &detect_info))
8615 {
8616 /* We have scanned the whole data. */
8617 if (! (detect_info.rejected & CATEGORY_MASK_ISO_7_ELSE))
8618 {
8619 /* We didn't find an 8-bit code. We may
8620 have found a null-byte, but it's very
8621 rare that a binary file confirm to
8622 ISO-2022. */
8623 src = src_end;
8624 coding.head_ascii = src - coding.source;
8625 }
8626 detect_info.rejected |= ~CATEGORY_MASK_ISO_ESCAPE;
8627 break;
8628 }
8629 }
8630 else if (! c && !inhibit_nbd)
8631 {
8632 null_byte_found = 1;
8633 if (eight_bit_found)
8634 break;
8635 }
8636 if (! eight_bit_found)
8637 coding.head_ascii++;
8638 }
8639 else if (! eight_bit_found)
8640 coding.head_ascii++;
8641 }
8642
8643 if (null_byte_found || eight_bit_found
8644 || coding.head_ascii < coding.src_bytes
8645 || detect_info.found)
8646 {
8647 if (coding.head_ascii == coding.src_bytes)
8648 /* As all bytes are 7-bit, we can ignore non-ISO-2022 codings. */
8649 for (i = 0; i < coding_category_raw_text; i++)
8650 {
8651 category = coding_priorities[i];
8652 this = coding_categories + category;
8653 if (detect_info.found & (1 << category))
8654 break;
8655 }
8656 else
8657 {
8658 if (null_byte_found)
8659 {
8660 detect_info.checked |= ~CATEGORY_MASK_UTF_16;
8661 detect_info.rejected |= ~CATEGORY_MASK_UTF_16;
8662 }
8663 else if (prefer_utf_8
8664 && detect_coding_utf_8 (&coding, &detect_info))
8665 {
8666 detect_info.checked |= ~CATEGORY_MASK_UTF_8;
8667 detect_info.rejected |= ~CATEGORY_MASK_UTF_8;
8668 }
8669 for (i = 0; i < coding_category_raw_text; i++)
8670 {
8671 category = coding_priorities[i];
8672 this = coding_categories + category;
8673
8674 if (this->id < 0)
8675 {
8676 /* No coding system of this category is defined. */
8677 detect_info.rejected |= (1 << category);
8678 }
8679 else if (category >= coding_category_raw_text)
8680 continue;
8681 else if (detect_info.checked & (1 << category))
8682 {
8683 if (highest
8684 && (detect_info.found & (1 << category)))
8685 break;
8686 }
8687 else if ((*(this->detector)) (&coding, &detect_info)
8688 && highest
8689 && (detect_info.found & (1 << category)))
8690 {
8691 if (category == coding_category_utf_16_auto)
8692 {
8693 if (detect_info.found & CATEGORY_MASK_UTF_16_LE)
8694 category = coding_category_utf_16_le;
8695 else
8696 category = coding_category_utf_16_be;
8697 }
8698 break;
8699 }
8700 }
8701 }
8702 }
8703
8704 if ((detect_info.rejected & CATEGORY_MASK_ANY) == CATEGORY_MASK_ANY
8705 || null_byte_found)
8706 {
8707 detect_info.found = CATEGORY_MASK_RAW_TEXT;
8708 id = CODING_SYSTEM_ID (Qno_conversion);
8709 val = list1 (make_number (id));
8710 }
8711 else if (! detect_info.rejected && ! detect_info.found)
8712 {
8713 detect_info.found = CATEGORY_MASK_ANY;
8714 id = coding_categories[coding_category_undecided].id;
8715 val = list1 (make_number (id));
8716 }
8717 else if (highest)
8718 {
8719 if (detect_info.found)
8720 {
8721 detect_info.found = 1 << category;
8722 val = list1 (make_number (this->id));
8723 }
8724 else
8725 for (i = 0; i < coding_category_raw_text; i++)
8726 if (! (detect_info.rejected & (1 << coding_priorities[i])))
8727 {
8728 detect_info.found = 1 << coding_priorities[i];
8729 id = coding_categories[coding_priorities[i]].id;
8730 val = list1 (make_number (id));
8731 break;
8732 }
8733 }
8734 else
8735 {
8736 int mask = detect_info.rejected | detect_info.found;
8737 int found = 0;
8738
8739 for (i = coding_category_raw_text - 1; i >= 0; i--)
8740 {
8741 category = coding_priorities[i];
8742 if (! (mask & (1 << category)))
8743 {
8744 found |= 1 << category;
8745 id = coding_categories[category].id;
8746 if (id >= 0)
8747 val = list1 (make_number (id));
8748 }
8749 }
8750 for (i = coding_category_raw_text - 1; i >= 0; i--)
8751 {
8752 category = coding_priorities[i];
8753 if (detect_info.found & (1 << category))
8754 {
8755 id = coding_categories[category].id;
8756 val = Fcons (make_number (id), val);
8757 }
8758 }
8759 detect_info.found |= found;
8760 }
8761 }
8762 else if (base_category == coding_category_utf_8_auto)
8763 {
8764 if (detect_coding_utf_8 (&coding, &detect_info))
8765 {
8766 struct coding_system *this;
8767
8768 if (detect_info.found & CATEGORY_MASK_UTF_8_SIG)
8769 this = coding_categories + coding_category_utf_8_sig;
8770 else
8771 this = coding_categories + coding_category_utf_8_nosig;
8772 val = list1 (make_number (this->id));
8773 }
8774 }
8775 else if (base_category == coding_category_utf_16_auto)
8776 {
8777 if (detect_coding_utf_16 (&coding, &detect_info))
8778 {
8779 struct coding_system *this;
8780
8781 if (detect_info.found & CATEGORY_MASK_UTF_16_LE)
8782 this = coding_categories + coding_category_utf_16_le;
8783 else if (detect_info.found & CATEGORY_MASK_UTF_16_BE)
8784 this = coding_categories + coding_category_utf_16_be;
8785 else if (detect_info.rejected & CATEGORY_MASK_UTF_16_LE_NOSIG)
8786 this = coding_categories + coding_category_utf_16_be_nosig;
8787 else
8788 this = coding_categories + coding_category_utf_16_le_nosig;
8789 val = list1 (make_number (this->id));
8790 }
8791 }
8792 else
8793 {
8794 detect_info.found = 1 << XINT (CODING_ATTR_CATEGORY (attrs));
8795 val = list1 (make_number (coding.id));
8796 }
8797
8798 /* Then, detect eol-format if necessary. */
8799 {
8800 int normal_eol = -1, utf_16_be_eol = -1, utf_16_le_eol = -1;
8801 Lisp_Object tail;
8802
8803 if (VECTORP (eol_type))
8804 {
8805 if (detect_info.found & ~CATEGORY_MASK_UTF_16)
8806 {
8807 if (null_byte_found)
8808 normal_eol = EOL_SEEN_LF;
8809 else
8810 normal_eol = detect_eol (coding.source, src_bytes,
8811 coding_category_raw_text);
8812 }
8813 if (detect_info.found & (CATEGORY_MASK_UTF_16_BE
8814 | CATEGORY_MASK_UTF_16_BE_NOSIG))
8815 utf_16_be_eol = detect_eol (coding.source, src_bytes,
8816 coding_category_utf_16_be);
8817 if (detect_info.found & (CATEGORY_MASK_UTF_16_LE
8818 | CATEGORY_MASK_UTF_16_LE_NOSIG))
8819 utf_16_le_eol = detect_eol (coding.source, src_bytes,
8820 coding_category_utf_16_le);
8821 }
8822 else
8823 {
8824 if (EQ (eol_type, Qunix))
8825 normal_eol = utf_16_be_eol = utf_16_le_eol = EOL_SEEN_LF;
8826 else if (EQ (eol_type, Qdos))
8827 normal_eol = utf_16_be_eol = utf_16_le_eol = EOL_SEEN_CRLF;
8828 else
8829 normal_eol = utf_16_be_eol = utf_16_le_eol = EOL_SEEN_CR;
8830 }
8831
8832 for (tail = val; CONSP (tail); tail = XCDR (tail))
8833 {
8834 enum coding_category category;
8835 int this_eol;
8836
8837 id = XINT (XCAR (tail));
8838 attrs = CODING_ID_ATTRS (id);
8839 category = XINT (CODING_ATTR_CATEGORY (attrs));
8840 eol_type = CODING_ID_EOL_TYPE (id);
8841 if (VECTORP (eol_type))
8842 {
8843 if (category == coding_category_utf_16_be
8844 || category == coding_category_utf_16_be_nosig)
8845 this_eol = utf_16_be_eol;
8846 else if (category == coding_category_utf_16_le
8847 || category == coding_category_utf_16_le_nosig)
8848 this_eol = utf_16_le_eol;
8849 else
8850 this_eol = normal_eol;
8851
8852 if (this_eol == EOL_SEEN_LF)
8853 XSETCAR (tail, AREF (eol_type, 0));
8854 else if (this_eol == EOL_SEEN_CRLF)
8855 XSETCAR (tail, AREF (eol_type, 1));
8856 else if (this_eol == EOL_SEEN_CR)
8857 XSETCAR (tail, AREF (eol_type, 2));
8858 else
8859 XSETCAR (tail, CODING_ID_NAME (id));
8860 }
8861 else
8862 XSETCAR (tail, CODING_ID_NAME (id));
8863 }
8864 }
8865
8866 return (highest ? (CONSP (val) ? XCAR (val) : Qnil) : val);
8867 }
8868
8869
8870 DEFUN ("detect-coding-region", Fdetect_coding_region, Sdetect_coding_region,
8871 2, 3, 0,
8872 doc: /* Detect coding system of the text in the region between START and END.
8873 Return a list of possible coding systems ordered by priority.
8874 The coding systems to try and their priorities follows what
8875 the function `coding-system-priority-list' (which see) returns.
8876
8877 If only ASCII characters are found (except for such ISO-2022 control
8878 characters as ESC), it returns a list of single element `undecided'
8879 or its subsidiary coding system according to a detected end-of-line
8880 format.
8881
8882 If optional argument HIGHEST is non-nil, return the coding system of
8883 highest priority. */)
8884 (Lisp_Object start, Lisp_Object end, Lisp_Object highest)
8885 {
8886 ptrdiff_t from, to;
8887 ptrdiff_t from_byte, to_byte;
8888
8889 validate_region (&start, &end);
8890 from = XINT (start), to = XINT (end);
8891 from_byte = CHAR_TO_BYTE (from);
8892 to_byte = CHAR_TO_BYTE (to);
8893
8894 if (from < GPT && to >= GPT)
8895 move_gap_both (to, to_byte);
8896
8897 return detect_coding_system (BYTE_POS_ADDR (from_byte),
8898 to - from, to_byte - from_byte,
8899 !NILP (highest),
8900 !NILP (BVAR (current_buffer
8901 , enable_multibyte_characters)),
8902 Qnil);
8903 }
8904
8905 DEFUN ("detect-coding-string", Fdetect_coding_string, Sdetect_coding_string,
8906 1, 2, 0,
8907 doc: /* Detect coding system of the text in STRING.
8908 Return a list of possible coding systems ordered by priority.
8909 The coding systems to try and their priorities follows what
8910 the function `coding-system-priority-list' (which see) returns.
8911
8912 If only ASCII characters are found (except for such ISO-2022 control
8913 characters as ESC), it returns a list of single element `undecided'
8914 or its subsidiary coding system according to a detected end-of-line
8915 format.
8916
8917 If optional argument HIGHEST is non-nil, return the coding system of
8918 highest priority. */)
8919 (Lisp_Object string, Lisp_Object highest)
8920 {
8921 CHECK_STRING (string);
8922
8923 return detect_coding_system (SDATA (string),
8924 SCHARS (string), SBYTES (string),
8925 !NILP (highest), STRING_MULTIBYTE (string),
8926 Qnil);
8927 }
8928
8929
8930 static bool
8931 char_encodable_p (int c, Lisp_Object attrs)
8932 {
8933 Lisp_Object tail;
8934 struct charset *charset;
8935 Lisp_Object translation_table;
8936
8937 translation_table = CODING_ATTR_TRANS_TBL (attrs);
8938 if (! NILP (translation_table))
8939 c = translate_char (translation_table, c);
8940 for (tail = CODING_ATTR_CHARSET_LIST (attrs);
8941 CONSP (tail); tail = XCDR (tail))
8942 {
8943 charset = CHARSET_FROM_ID (XINT (XCAR (tail)));
8944 if (CHAR_CHARSET_P (c, charset))
8945 break;
8946 }
8947 return (! NILP (tail));
8948 }
8949
8950
8951 /* Return a list of coding systems that safely encode the text between
8952 START and END. If EXCLUDE is non-nil, it is a list of coding
8953 systems not to check. The returned list doesn't contain any such
8954 coding systems. In any case, if the text contains only ASCII or is
8955 unibyte, return t. */
8956
8957 DEFUN ("find-coding-systems-region-internal",
8958 Ffind_coding_systems_region_internal,
8959 Sfind_coding_systems_region_internal, 2, 3, 0,
8960 doc: /* Internal use only. */)
8961 (Lisp_Object start, Lisp_Object end, Lisp_Object exclude)
8962 {
8963 Lisp_Object coding_attrs_list, safe_codings;
8964 ptrdiff_t start_byte, end_byte;
8965 const unsigned char *p, *pbeg, *pend;
8966 int c;
8967 Lisp_Object tail, elt, work_table;
8968
8969 if (STRINGP (start))
8970 {
8971 if (!STRING_MULTIBYTE (start)
8972 || SCHARS (start) == SBYTES (start))
8973 return Qt;
8974 start_byte = 0;
8975 end_byte = SBYTES (start);
8976 }
8977 else
8978 {
8979 CHECK_NUMBER_COERCE_MARKER (start);
8980 CHECK_NUMBER_COERCE_MARKER (end);
8981 if (XINT (start) < BEG || XINT (end) > Z || XINT (start) > XINT (end))
8982 args_out_of_range (start, end);
8983 if (NILP (BVAR (current_buffer, enable_multibyte_characters)))
8984 return Qt;
8985 start_byte = CHAR_TO_BYTE (XINT (start));
8986 end_byte = CHAR_TO_BYTE (XINT (end));
8987 if (XINT (end) - XINT (start) == end_byte - start_byte)
8988 return Qt;
8989
8990 if (XINT (start) < GPT && XINT (end) > GPT)
8991 {
8992 if ((GPT - XINT (start)) < (XINT (end) - GPT))
8993 move_gap_both (XINT (start), start_byte);
8994 else
8995 move_gap_both (XINT (end), end_byte);
8996 }
8997 }
8998
8999 coding_attrs_list = Qnil;
9000 for (tail = Vcoding_system_list; CONSP (tail); tail = XCDR (tail))
9001 if (NILP (exclude)
9002 || NILP (Fmemq (XCAR (tail), exclude)))
9003 {
9004 Lisp_Object attrs;
9005
9006 attrs = AREF (CODING_SYSTEM_SPEC (XCAR (tail)), 0);
9007 if (EQ (XCAR (tail), CODING_ATTR_BASE_NAME (attrs)))
9008 {
9009 ASET (attrs, coding_attr_trans_tbl,
9010 get_translation_table (attrs, 1, NULL));
9011 coding_attrs_list = Fcons (attrs, coding_attrs_list);
9012 }
9013 }
9014
9015 if (STRINGP (start))
9016 p = pbeg = SDATA (start);
9017 else
9018 p = pbeg = BYTE_POS_ADDR (start_byte);
9019 pend = p + (end_byte - start_byte);
9020
9021 while (p < pend && ASCII_CHAR_P (*p)) p++;
9022 while (p < pend && ASCII_CHAR_P (*(pend - 1))) pend--;
9023
9024 work_table = Fmake_char_table (Qnil, Qnil);
9025 while (p < pend)
9026 {
9027 if (ASCII_CHAR_P (*p))
9028 p++;
9029 else
9030 {
9031 c = STRING_CHAR_ADVANCE (p);
9032 if (!NILP (char_table_ref (work_table, c)))
9033 /* This character was already checked. Ignore it. */
9034 continue;
9035
9036 charset_map_loaded = 0;
9037 for (tail = coding_attrs_list; CONSP (tail);)
9038 {
9039 elt = XCAR (tail);
9040 if (NILP (elt))
9041 tail = XCDR (tail);
9042 else if (char_encodable_p (c, elt))
9043 tail = XCDR (tail);
9044 else if (CONSP (XCDR (tail)))
9045 {
9046 XSETCAR (tail, XCAR (XCDR (tail)));
9047 XSETCDR (tail, XCDR (XCDR (tail)));
9048 }
9049 else
9050 {
9051 XSETCAR (tail, Qnil);
9052 tail = XCDR (tail);
9053 }
9054 }
9055 if (charset_map_loaded)
9056 {
9057 ptrdiff_t p_offset = p - pbeg, pend_offset = pend - pbeg;
9058
9059 if (STRINGP (start))
9060 pbeg = SDATA (start);
9061 else
9062 pbeg = BYTE_POS_ADDR (start_byte);
9063 p = pbeg + p_offset;
9064 pend = pbeg + pend_offset;
9065 }
9066 char_table_set (work_table, c, Qt);
9067 }
9068 }
9069
9070 safe_codings = list2 (Qraw_text, Qno_conversion);
9071 for (tail = coding_attrs_list; CONSP (tail); tail = XCDR (tail))
9072 if (! NILP (XCAR (tail)))
9073 safe_codings = Fcons (CODING_ATTR_BASE_NAME (XCAR (tail)), safe_codings);
9074
9075 return safe_codings;
9076 }
9077
9078
9079 DEFUN ("unencodable-char-position", Funencodable_char_position,
9080 Sunencodable_char_position, 3, 5, 0,
9081 doc: /* Return position of first un-encodable character in a region.
9082 START and END specify the region and CODING-SYSTEM specifies the
9083 encoding to check. Return nil if CODING-SYSTEM does encode the region.
9084
9085 If optional 4th argument COUNT is non-nil, it specifies at most how
9086 many un-encodable characters to search. In this case, the value is a
9087 list of positions.
9088
9089 If optional 5th argument STRING is non-nil, it is a string to search
9090 for un-encodable characters. In that case, START and END are indexes
9091 to the string and treated as in `substring'. */)
9092 (Lisp_Object start, Lisp_Object end, Lisp_Object coding_system,
9093 Lisp_Object count, Lisp_Object string)
9094 {
9095 EMACS_INT n;
9096 struct coding_system coding;
9097 Lisp_Object attrs, charset_list, translation_table;
9098 Lisp_Object positions;
9099 ptrdiff_t from, to;
9100 const unsigned char *p, *stop, *pend;
9101 bool ascii_compatible;
9102
9103 setup_coding_system (Fcheck_coding_system (coding_system), &coding);
9104 attrs = CODING_ID_ATTRS (coding.id);
9105 if (EQ (CODING_ATTR_TYPE (attrs), Qraw_text))
9106 return Qnil;
9107 ascii_compatible = ! NILP (CODING_ATTR_ASCII_COMPAT (attrs));
9108 charset_list = CODING_ATTR_CHARSET_LIST (attrs);
9109 translation_table = get_translation_table (attrs, 1, NULL);
9110
9111 if (NILP (string))
9112 {
9113 validate_region (&start, &end);
9114 from = XINT (start);
9115 to = XINT (end);
9116 if (NILP (BVAR (current_buffer, enable_multibyte_characters))
9117 || (ascii_compatible
9118 && (to - from) == (CHAR_TO_BYTE (to) - (CHAR_TO_BYTE (from)))))
9119 return Qnil;
9120 p = CHAR_POS_ADDR (from);
9121 pend = CHAR_POS_ADDR (to);
9122 if (from < GPT && to >= GPT)
9123 stop = GPT_ADDR;
9124 else
9125 stop = pend;
9126 }
9127 else
9128 {
9129 CHECK_STRING (string);
9130 validate_subarray (string, start, end, SCHARS (string), &from, &to);
9131 if (! STRING_MULTIBYTE (string))
9132 return Qnil;
9133 p = SDATA (string) + string_char_to_byte (string, from);
9134 stop = pend = SDATA (string) + string_char_to_byte (string, to);
9135 if (ascii_compatible && (to - from) == (pend - p))
9136 return Qnil;
9137 }
9138
9139 if (NILP (count))
9140 n = 1;
9141 else
9142 {
9143 CHECK_NATNUM (count);
9144 n = XINT (count);
9145 }
9146
9147 positions = Qnil;
9148 charset_map_loaded = 0;
9149 while (1)
9150 {
9151 int c;
9152
9153 if (ascii_compatible)
9154 while (p < stop && ASCII_CHAR_P (*p))
9155 p++, from++;
9156 if (p >= stop)
9157 {
9158 if (p >= pend)
9159 break;
9160 stop = pend;
9161 p = GAP_END_ADDR;
9162 }
9163
9164 c = STRING_CHAR_ADVANCE (p);
9165 if (! (ASCII_CHAR_P (c) && ascii_compatible)
9166 && ! char_charset (translate_char (translation_table, c),
9167 charset_list, NULL))
9168 {
9169 positions = Fcons (make_number (from), positions);
9170 n--;
9171 if (n == 0)
9172 break;
9173 }
9174
9175 from++;
9176 if (charset_map_loaded && NILP (string))
9177 {
9178 p = CHAR_POS_ADDR (from);
9179 pend = CHAR_POS_ADDR (to);
9180 if (from < GPT && to >= GPT)
9181 stop = GPT_ADDR;
9182 else
9183 stop = pend;
9184 charset_map_loaded = 0;
9185 }
9186 }
9187
9188 return (NILP (count) ? Fcar (positions) : Fnreverse (positions));
9189 }
9190
9191
9192 DEFUN ("check-coding-systems-region", Fcheck_coding_systems_region,
9193 Scheck_coding_systems_region, 3, 3, 0,
9194 doc: /* Check if the region is encodable by coding systems.
9195
9196 START and END are buffer positions specifying the region.
9197 CODING-SYSTEM-LIST is a list of coding systems to check.
9198
9199 The value is an alist ((CODING-SYSTEM POS0 POS1 ...) ...), where
9200 CODING-SYSTEM is a member of CODING-SYSTEM-LIST and can't encode the
9201 whole region, POS0, POS1, ... are buffer positions where non-encodable
9202 characters are found.
9203
9204 If all coding systems in CODING-SYSTEM-LIST can encode the region, the
9205 value is nil.
9206
9207 START may be a string. In that case, check if the string is
9208 encodable, and the value contains indices to the string instead of
9209 buffer positions. END is ignored.
9210
9211 If the current buffer (or START if it is a string) is unibyte, the value
9212 is nil. */)
9213 (Lisp_Object start, Lisp_Object end, Lisp_Object coding_system_list)
9214 {
9215 Lisp_Object list;
9216 ptrdiff_t start_byte, end_byte;
9217 ptrdiff_t pos;
9218 const unsigned char *p, *pbeg, *pend;
9219 int c;
9220 Lisp_Object tail, elt, attrs;
9221
9222 if (STRINGP (start))
9223 {
9224 if (!STRING_MULTIBYTE (start)
9225 || SCHARS (start) == SBYTES (start))
9226 return Qnil;
9227 start_byte = 0;
9228 end_byte = SBYTES (start);
9229 pos = 0;
9230 }
9231 else
9232 {
9233 CHECK_NUMBER_COERCE_MARKER (start);
9234 CHECK_NUMBER_COERCE_MARKER (end);
9235 if (XINT (start) < BEG || XINT (end) > Z || XINT (start) > XINT (end))
9236 args_out_of_range (start, end);
9237 if (NILP (BVAR (current_buffer, enable_multibyte_characters)))
9238 return Qnil;
9239 start_byte = CHAR_TO_BYTE (XINT (start));
9240 end_byte = CHAR_TO_BYTE (XINT (end));
9241 if (XINT (end) - XINT (start) == end_byte - start_byte)
9242 return Qnil;
9243
9244 if (XINT (start) < GPT && XINT (end) > GPT)
9245 {
9246 if ((GPT - XINT (start)) < (XINT (end) - GPT))
9247 move_gap_both (XINT (start), start_byte);
9248 else
9249 move_gap_both (XINT (end), end_byte);
9250 }
9251 pos = XINT (start);
9252 }
9253
9254 list = Qnil;
9255 for (tail = coding_system_list; CONSP (tail); tail = XCDR (tail))
9256 {
9257 elt = XCAR (tail);
9258 attrs = AREF (CODING_SYSTEM_SPEC (elt), 0);
9259 ASET (attrs, coding_attr_trans_tbl,
9260 get_translation_table (attrs, 1, NULL));
9261 list = Fcons (list2 (elt, attrs), list);
9262 }
9263
9264 if (STRINGP (start))
9265 p = pbeg = SDATA (start);
9266 else
9267 p = pbeg = BYTE_POS_ADDR (start_byte);
9268 pend = p + (end_byte - start_byte);
9269
9270 while (p < pend && ASCII_CHAR_P (*p)) p++, pos++;
9271 while (p < pend && ASCII_CHAR_P (*(pend - 1))) pend--;
9272
9273 while (p < pend)
9274 {
9275 if (ASCII_CHAR_P (*p))
9276 p++;
9277 else
9278 {
9279 c = STRING_CHAR_ADVANCE (p);
9280
9281 charset_map_loaded = 0;
9282 for (tail = list; CONSP (tail); tail = XCDR (tail))
9283 {
9284 elt = XCDR (XCAR (tail));
9285 if (! char_encodable_p (c, XCAR (elt)))
9286 XSETCDR (elt, Fcons (make_number (pos), XCDR (elt)));
9287 }
9288 if (charset_map_loaded)
9289 {
9290 ptrdiff_t p_offset = p - pbeg, pend_offset = pend - pbeg;
9291
9292 if (STRINGP (start))
9293 pbeg = SDATA (start);
9294 else
9295 pbeg = BYTE_POS_ADDR (start_byte);
9296 p = pbeg + p_offset;
9297 pend = pbeg + pend_offset;
9298 }
9299 }
9300 pos++;
9301 }
9302
9303 tail = list;
9304 list = Qnil;
9305 for (; CONSP (tail); tail = XCDR (tail))
9306 {
9307 elt = XCAR (tail);
9308 if (CONSP (XCDR (XCDR (elt))))
9309 list = Fcons (Fcons (XCAR (elt), Fnreverse (XCDR (XCDR (elt)))),
9310 list);
9311 }
9312
9313 return list;
9314 }
9315
9316
9317 static Lisp_Object
9318 code_convert_region (Lisp_Object start, Lisp_Object end,
9319 Lisp_Object coding_system, Lisp_Object dst_object,
9320 bool encodep, bool norecord)
9321 {
9322 struct coding_system coding;
9323 ptrdiff_t from, from_byte, to, to_byte;
9324 Lisp_Object src_object;
9325
9326 if (NILP (coding_system))
9327 coding_system = Qno_conversion;
9328 else
9329 CHECK_CODING_SYSTEM (coding_system);
9330 src_object = Fcurrent_buffer ();
9331 if (NILP (dst_object))
9332 dst_object = src_object;
9333 else if (! EQ (dst_object, Qt))
9334 CHECK_BUFFER (dst_object);
9335
9336 validate_region (&start, &end);
9337 from = XFASTINT (start);
9338 from_byte = CHAR_TO_BYTE (from);
9339 to = XFASTINT (end);
9340 to_byte = CHAR_TO_BYTE (to);
9341
9342 setup_coding_system (coding_system, &coding);
9343 coding.mode |= CODING_MODE_LAST_BLOCK;
9344
9345 if (BUFFERP (dst_object) && !EQ (dst_object, src_object))
9346 {
9347 struct buffer *buf = XBUFFER (dst_object);
9348 ptrdiff_t buf_pt = BUF_PT (buf);
9349
9350 invalidate_buffer_caches (buf, buf_pt, buf_pt);
9351 }
9352
9353 if (encodep)
9354 encode_coding_object (&coding, src_object, from, from_byte, to, to_byte,
9355 dst_object);
9356 else
9357 decode_coding_object (&coding, src_object, from, from_byte, to, to_byte,
9358 dst_object);
9359 if (! norecord)
9360 Vlast_coding_system_used = CODING_ID_NAME (coding.id);
9361
9362 return (BUFFERP (dst_object)
9363 ? make_number (coding.produced_char)
9364 : coding.dst_object);
9365 }
9366
9367
9368 DEFUN ("decode-coding-region", Fdecode_coding_region, Sdecode_coding_region,
9369 3, 4, "r\nzCoding system: ",
9370 doc: /* Decode the current region from the specified coding system.
9371 When called from a program, takes four arguments:
9372 START, END, CODING-SYSTEM, and DESTINATION.
9373 START and END are buffer positions.
9374
9375 Optional 4th arguments DESTINATION specifies where the decoded text goes.
9376 If nil, the region between START and END is replaced by the decoded text.
9377 If buffer, the decoded text is inserted in that buffer after point (point
9378 does not move).
9379 In those cases, the length of the decoded text is returned.
9380 If DESTINATION is t, the decoded text is returned.
9381
9382 This function sets `last-coding-system-used' to the precise coding system
9383 used (which may be different from CODING-SYSTEM if CODING-SYSTEM is
9384 not fully specified.) */)
9385 (Lisp_Object start, Lisp_Object end, Lisp_Object coding_system, Lisp_Object destination)
9386 {
9387 return code_convert_region (start, end, coding_system, destination, 0, 0);
9388 }
9389
9390 DEFUN ("encode-coding-region", Fencode_coding_region, Sencode_coding_region,
9391 3, 4, "r\nzCoding system: ",
9392 doc: /* Encode the current region by specified coding system.
9393 When called from a program, takes four arguments:
9394 START, END, CODING-SYSTEM and DESTINATION.
9395 START and END are buffer positions.
9396
9397 Optional 4th arguments DESTINATION specifies where the encoded text goes.
9398 If nil, the region between START and END is replace by the encoded text.
9399 If buffer, the encoded text is inserted in that buffer after point (point
9400 does not move).
9401 In those cases, the length of the encoded text is returned.
9402 If DESTINATION is t, the encoded text is returned.
9403
9404 This function sets `last-coding-system-used' to the precise coding system
9405 used (which may be different from CODING-SYSTEM if CODING-SYSTEM is
9406 not fully specified.) */)
9407 (Lisp_Object start, Lisp_Object end, Lisp_Object coding_system, Lisp_Object destination)
9408 {
9409 return code_convert_region (start, end, coding_system, destination, 1, 0);
9410 }
9411
9412 Lisp_Object
9413 code_convert_string (Lisp_Object string, Lisp_Object coding_system,
9414 Lisp_Object dst_object, bool encodep, bool nocopy,
9415 bool norecord)
9416 {
9417 struct coding_system coding;
9418 ptrdiff_t chars, bytes;
9419
9420 CHECK_STRING (string);
9421 if (NILP (coding_system))
9422 {
9423 if (! norecord)
9424 Vlast_coding_system_used = Qno_conversion;
9425 if (NILP (dst_object))
9426 return (nocopy ? Fcopy_sequence (string) : string);
9427 }
9428
9429 if (NILP (coding_system))
9430 coding_system = Qno_conversion;
9431 else
9432 CHECK_CODING_SYSTEM (coding_system);
9433 if (NILP (dst_object))
9434 dst_object = Qt;
9435 else if (! EQ (dst_object, Qt))
9436 CHECK_BUFFER (dst_object);
9437
9438 setup_coding_system (coding_system, &coding);
9439 coding.mode |= CODING_MODE_LAST_BLOCK;
9440 chars = SCHARS (string);
9441 bytes = SBYTES (string);
9442
9443 if (BUFFERP (dst_object))
9444 {
9445 struct buffer *buf = XBUFFER (dst_object);
9446 ptrdiff_t buf_pt = BUF_PT (buf);
9447
9448 invalidate_buffer_caches (buf, buf_pt, buf_pt);
9449 }
9450
9451 if (encodep)
9452 encode_coding_object (&coding, string, 0, 0, chars, bytes, dst_object);
9453 else
9454 decode_coding_object (&coding, string, 0, 0, chars, bytes, dst_object);
9455 if (! norecord)
9456 Vlast_coding_system_used = CODING_ID_NAME (coding.id);
9457
9458 return (BUFFERP (dst_object)
9459 ? make_number (coding.produced_char)
9460 : coding.dst_object);
9461 }
9462
9463
9464 /* Encode or decode STRING according to CODING_SYSTEM.
9465 Do not set Vlast_coding_system_used.
9466
9467 This function is called only from macros DECODE_FILE and
9468 ENCODE_FILE, thus we ignore character composition. */
9469
9470 Lisp_Object
9471 code_convert_string_norecord (Lisp_Object string, Lisp_Object coding_system,
9472 bool encodep)
9473 {
9474 return code_convert_string (string, coding_system, Qt, encodep, 0, 1);
9475 }
9476
9477 /* Encode or decode a file name, to or from a unibyte string suitable
9478 for passing to C library functions. */
9479 Lisp_Object
9480 decode_file_name (Lisp_Object fname)
9481 {
9482 #ifdef WINDOWSNT
9483 /* The w32 build pretends to use UTF-8 for file-name encoding, and
9484 converts the file names either to UTF-16LE or to the system ANSI
9485 codepage internally, depending on the underlying OS; see w32.c. */
9486 if (! NILP (Fcoding_system_p (Qutf_8)))
9487 return code_convert_string_norecord (fname, Qutf_8, 0);
9488 return fname;
9489 #else /* !WINDOWSNT */
9490 if (! NILP (Vfile_name_coding_system))
9491 return code_convert_string_norecord (fname, Vfile_name_coding_system, 0);
9492 else if (! NILP (Vdefault_file_name_coding_system))
9493 return code_convert_string_norecord (fname,
9494 Vdefault_file_name_coding_system, 0);
9495 else
9496 return fname;
9497 #endif
9498 }
9499
9500 Lisp_Object
9501 encode_file_name (Lisp_Object fname)
9502 {
9503 /* This is especially important during bootstrap and dumping, when
9504 file-name encoding is not yet known, and therefore any non-ASCII
9505 file names are unibyte strings, and could only be thrashed if we
9506 try to encode them. */
9507 if (!STRING_MULTIBYTE (fname))
9508 return fname;
9509 #ifdef WINDOWSNT
9510 /* The w32 build pretends to use UTF-8 for file-name encoding, and
9511 converts the file names either to UTF-16LE or to the system ANSI
9512 codepage internally, depending on the underlying OS; see w32.c. */
9513 if (! NILP (Fcoding_system_p (Qutf_8)))
9514 return code_convert_string_norecord (fname, Qutf_8, 1);
9515 return fname;
9516 #else /* !WINDOWSNT */
9517 if (! NILP (Vfile_name_coding_system))
9518 return code_convert_string_norecord (fname, Vfile_name_coding_system, 1);
9519 else if (! NILP (Vdefault_file_name_coding_system))
9520 return code_convert_string_norecord (fname,
9521 Vdefault_file_name_coding_system, 1);
9522 else
9523 return fname;
9524 #endif
9525 }
9526
9527 DEFUN ("decode-coding-string", Fdecode_coding_string, Sdecode_coding_string,
9528 2, 4, 0,
9529 doc: /* Decode STRING which is encoded in CODING-SYSTEM, and return the result.
9530
9531 Optional third arg NOCOPY non-nil means it is OK to return STRING itself
9532 if the decoding operation is trivial.
9533
9534 Optional fourth arg BUFFER non-nil means that the decoded text is
9535 inserted in that buffer after point (point does not move). In this
9536 case, the return value is the length of the decoded text.
9537
9538 This function sets `last-coding-system-used' to the precise coding system
9539 used (which may be different from CODING-SYSTEM if CODING-SYSTEM is
9540 not fully specified.) */)
9541 (Lisp_Object string, Lisp_Object coding_system, Lisp_Object nocopy, Lisp_Object buffer)
9542 {
9543 return code_convert_string (string, coding_system, buffer,
9544 0, ! NILP (nocopy), 0);
9545 }
9546
9547 DEFUN ("encode-coding-string", Fencode_coding_string, Sencode_coding_string,
9548 2, 4, 0,
9549 doc: /* Encode STRING to CODING-SYSTEM, and return the result.
9550
9551 Optional third arg NOCOPY non-nil means it is OK to return STRING
9552 itself if the encoding operation is trivial.
9553
9554 Optional fourth arg BUFFER non-nil means that the encoded text is
9555 inserted in that buffer after point (point does not move). In this
9556 case, the return value is the length of the encoded text.
9557
9558 This function sets `last-coding-system-used' to the precise coding system
9559 used (which may be different from CODING-SYSTEM if CODING-SYSTEM is
9560 not fully specified.) */)
9561 (Lisp_Object string, Lisp_Object coding_system, Lisp_Object nocopy, Lisp_Object buffer)
9562 {
9563 return code_convert_string (string, coding_system, buffer,
9564 1, ! NILP (nocopy), 0);
9565 }
9566
9567 \f
9568 DEFUN ("decode-sjis-char", Fdecode_sjis_char, Sdecode_sjis_char, 1, 1, 0,
9569 doc: /* Decode a Japanese character which has CODE in shift_jis encoding.
9570 Return the corresponding character. */)
9571 (Lisp_Object code)
9572 {
9573 Lisp_Object spec, attrs, val;
9574 struct charset *charset_roman, *charset_kanji, *charset_kana, *charset;
9575 EMACS_INT ch;
9576 int c;
9577
9578 CHECK_NATNUM (code);
9579 ch = XFASTINT (code);
9580 CHECK_CODING_SYSTEM_GET_SPEC (Vsjis_coding_system, spec);
9581 attrs = AREF (spec, 0);
9582
9583 if (ASCII_CHAR_P (ch)
9584 && ! NILP (CODING_ATTR_ASCII_COMPAT (attrs)))
9585 return code;
9586
9587 val = CODING_ATTR_CHARSET_LIST (attrs);
9588 charset_roman = CHARSET_FROM_ID (XINT (XCAR (val))), val = XCDR (val);
9589 charset_kana = CHARSET_FROM_ID (XINT (XCAR (val))), val = XCDR (val);
9590 charset_kanji = CHARSET_FROM_ID (XINT (XCAR (val)));
9591
9592 if (ch <= 0x7F)
9593 {
9594 c = ch;
9595 charset = charset_roman;
9596 }
9597 else if (ch >= 0xA0 && ch < 0xDF)
9598 {
9599 c = ch - 0x80;
9600 charset = charset_kana;
9601 }
9602 else
9603 {
9604 EMACS_INT c1 = ch >> 8;
9605 int c2 = ch & 0xFF;
9606
9607 if (c1 < 0x81 || (c1 > 0x9F && c1 < 0xE0) || c1 > 0xEF
9608 || c2 < 0x40 || c2 == 0x7F || c2 > 0xFC)
9609 error ("Invalid code: %"pI"d", ch);
9610 c = ch;
9611 SJIS_TO_JIS (c);
9612 charset = charset_kanji;
9613 }
9614 c = DECODE_CHAR (charset, c);
9615 if (c < 0)
9616 error ("Invalid code: %"pI"d", ch);
9617 return make_number (c);
9618 }
9619
9620
9621 DEFUN ("encode-sjis-char", Fencode_sjis_char, Sencode_sjis_char, 1, 1, 0,
9622 doc: /* Encode a Japanese character CH to shift_jis encoding.
9623 Return the corresponding code in SJIS. */)
9624 (Lisp_Object ch)
9625 {
9626 Lisp_Object spec, attrs, charset_list;
9627 int c;
9628 struct charset *charset;
9629 unsigned code;
9630
9631 CHECK_CHARACTER (ch);
9632 c = XFASTINT (ch);
9633 CHECK_CODING_SYSTEM_GET_SPEC (Vsjis_coding_system, spec);
9634 attrs = AREF (spec, 0);
9635
9636 if (ASCII_CHAR_P (c)
9637 && ! NILP (CODING_ATTR_ASCII_COMPAT (attrs)))
9638 return ch;
9639
9640 charset_list = CODING_ATTR_CHARSET_LIST (attrs);
9641 charset = char_charset (c, charset_list, &code);
9642 if (code == CHARSET_INVALID_CODE (charset))
9643 error ("Can't encode by shift_jis encoding: %c", c);
9644 JIS_TO_SJIS (code);
9645
9646 return make_number (code);
9647 }
9648
9649 DEFUN ("decode-big5-char", Fdecode_big5_char, Sdecode_big5_char, 1, 1, 0,
9650 doc: /* Decode a Big5 character which has CODE in BIG5 coding system.
9651 Return the corresponding character. */)
9652 (Lisp_Object code)
9653 {
9654 Lisp_Object spec, attrs, val;
9655 struct charset *charset_roman, *charset_big5, *charset;
9656 EMACS_INT ch;
9657 int c;
9658
9659 CHECK_NATNUM (code);
9660 ch = XFASTINT (code);
9661 CHECK_CODING_SYSTEM_GET_SPEC (Vbig5_coding_system, spec);
9662 attrs = AREF (spec, 0);
9663
9664 if (ASCII_CHAR_P (ch)
9665 && ! NILP (CODING_ATTR_ASCII_COMPAT (attrs)))
9666 return code;
9667
9668 val = CODING_ATTR_CHARSET_LIST (attrs);
9669 charset_roman = CHARSET_FROM_ID (XINT (XCAR (val))), val = XCDR (val);
9670 charset_big5 = CHARSET_FROM_ID (XINT (XCAR (val)));
9671
9672 if (ch <= 0x7F)
9673 {
9674 c = ch;
9675 charset = charset_roman;
9676 }
9677 else
9678 {
9679 EMACS_INT b1 = ch >> 8;
9680 int b2 = ch & 0x7F;
9681 if (b1 < 0xA1 || b1 > 0xFE
9682 || b2 < 0x40 || (b2 > 0x7E && b2 < 0xA1) || b2 > 0xFE)
9683 error ("Invalid code: %"pI"d", ch);
9684 c = ch;
9685 charset = charset_big5;
9686 }
9687 c = DECODE_CHAR (charset, c);
9688 if (c < 0)
9689 error ("Invalid code: %"pI"d", ch);
9690 return make_number (c);
9691 }
9692
9693 DEFUN ("encode-big5-char", Fencode_big5_char, Sencode_big5_char, 1, 1, 0,
9694 doc: /* Encode the Big5 character CH to BIG5 coding system.
9695 Return the corresponding character code in Big5. */)
9696 (Lisp_Object ch)
9697 {
9698 Lisp_Object spec, attrs, charset_list;
9699 struct charset *charset;
9700 int c;
9701 unsigned code;
9702
9703 CHECK_CHARACTER (ch);
9704 c = XFASTINT (ch);
9705 CHECK_CODING_SYSTEM_GET_SPEC (Vbig5_coding_system, spec);
9706 attrs = AREF (spec, 0);
9707 if (ASCII_CHAR_P (c)
9708 && ! NILP (CODING_ATTR_ASCII_COMPAT (attrs)))
9709 return ch;
9710
9711 charset_list = CODING_ATTR_CHARSET_LIST (attrs);
9712 charset = char_charset (c, charset_list, &code);
9713 if (code == CHARSET_INVALID_CODE (charset))
9714 error ("Can't encode by Big5 encoding: %c", c);
9715
9716 return make_number (code);
9717 }
9718
9719 \f
9720 DEFUN ("set-terminal-coding-system-internal", Fset_terminal_coding_system_internal,
9721 Sset_terminal_coding_system_internal, 1, 2, 0,
9722 doc: /* Internal use only. */)
9723 (Lisp_Object coding_system, Lisp_Object terminal)
9724 {
9725 struct terminal *term = decode_live_terminal (terminal);
9726 struct coding_system *terminal_coding = TERMINAL_TERMINAL_CODING (term);
9727 CHECK_SYMBOL (coding_system);
9728 setup_coding_system (Fcheck_coding_system (coding_system), terminal_coding);
9729 /* We had better not send unsafe characters to terminal. */
9730 terminal_coding->mode |= CODING_MODE_SAFE_ENCODING;
9731 /* Character composition should be disabled. */
9732 terminal_coding->common_flags &= ~CODING_ANNOTATE_COMPOSITION_MASK;
9733 terminal_coding->src_multibyte = 1;
9734 terminal_coding->dst_multibyte = 0;
9735 tset_charset_list
9736 (term, (terminal_coding->common_flags & CODING_REQUIRE_ENCODING_MASK
9737 ? coding_charset_list (terminal_coding)
9738 : list1 (make_number (charset_ascii))));
9739 return Qnil;
9740 }
9741
9742 DEFUN ("set-safe-terminal-coding-system-internal",
9743 Fset_safe_terminal_coding_system_internal,
9744 Sset_safe_terminal_coding_system_internal, 1, 1, 0,
9745 doc: /* Internal use only. */)
9746 (Lisp_Object coding_system)
9747 {
9748 CHECK_SYMBOL (coding_system);
9749 setup_coding_system (Fcheck_coding_system (coding_system),
9750 &safe_terminal_coding);
9751 /* Character composition should be disabled. */
9752 safe_terminal_coding.common_flags &= ~CODING_ANNOTATE_COMPOSITION_MASK;
9753 safe_terminal_coding.src_multibyte = 1;
9754 safe_terminal_coding.dst_multibyte = 0;
9755 return Qnil;
9756 }
9757
9758 DEFUN ("terminal-coding-system", Fterminal_coding_system,
9759 Sterminal_coding_system, 0, 1, 0,
9760 doc: /* Return coding system specified for terminal output on the given terminal.
9761 TERMINAL may be a terminal object, a frame, or nil for the selected
9762 frame's terminal device. */)
9763 (Lisp_Object terminal)
9764 {
9765 struct coding_system *terminal_coding
9766 = TERMINAL_TERMINAL_CODING (decode_live_terminal (terminal));
9767 Lisp_Object coding_system = CODING_ID_NAME (terminal_coding->id);
9768
9769 /* For backward compatibility, return nil if it is `undecided'. */
9770 return (! EQ (coding_system, Qundecided) ? coding_system : Qnil);
9771 }
9772
9773 DEFUN ("set-keyboard-coding-system-internal", Fset_keyboard_coding_system_internal,
9774 Sset_keyboard_coding_system_internal, 1, 2, 0,
9775 doc: /* Internal use only. */)
9776 (Lisp_Object coding_system, Lisp_Object terminal)
9777 {
9778 struct terminal *t = decode_live_terminal (terminal);
9779 CHECK_SYMBOL (coding_system);
9780 if (NILP (coding_system))
9781 coding_system = Qno_conversion;
9782 else
9783 Fcheck_coding_system (coding_system);
9784 setup_coding_system (coding_system, TERMINAL_KEYBOARD_CODING (t));
9785 /* Character composition should be disabled. */
9786 TERMINAL_KEYBOARD_CODING (t)->common_flags
9787 &= ~CODING_ANNOTATE_COMPOSITION_MASK;
9788 return Qnil;
9789 }
9790
9791 DEFUN ("keyboard-coding-system",
9792 Fkeyboard_coding_system, Skeyboard_coding_system, 0, 1, 0,
9793 doc: /* Return coding system specified for decoding keyboard input. */)
9794 (Lisp_Object terminal)
9795 {
9796 return CODING_ID_NAME (TERMINAL_KEYBOARD_CODING
9797 (decode_live_terminal (terminal))->id);
9798 }
9799
9800 \f
9801 DEFUN ("find-operation-coding-system", Ffind_operation_coding_system,
9802 Sfind_operation_coding_system, 1, MANY, 0,
9803 doc: /* Choose a coding system for an operation based on the target name.
9804 The value names a pair of coding systems: (DECODING-SYSTEM . ENCODING-SYSTEM).
9805 DECODING-SYSTEM is the coding system to use for decoding
9806 (in case OPERATION does decoding), and ENCODING-SYSTEM is the coding system
9807 for encoding (in case OPERATION does encoding).
9808
9809 The first argument OPERATION specifies an I/O primitive:
9810 For file I/O, `insert-file-contents' or `write-region'.
9811 For process I/O, `call-process', `call-process-region', or `start-process'.
9812 For network I/O, `open-network-stream'.
9813
9814 The remaining arguments should be the same arguments that were passed
9815 to the primitive. Depending on which primitive, one of those arguments
9816 is selected as the TARGET. For example, if OPERATION does file I/O,
9817 whichever argument specifies the file name is TARGET.
9818
9819 TARGET has a meaning which depends on OPERATION:
9820 For file I/O, TARGET is a file name (except for the special case below).
9821 For process I/O, TARGET is a process name.
9822 For network I/O, TARGET is a service name or a port number.
9823
9824 This function looks up what is specified for TARGET in
9825 `file-coding-system-alist', `process-coding-system-alist',
9826 or `network-coding-system-alist' depending on OPERATION.
9827 They may specify a coding system, a cons of coding systems,
9828 or a function symbol to call.
9829 In the last case, we call the function with one argument,
9830 which is a list of all the arguments given to this function.
9831 If the function can't decide a coding system, it can return
9832 `undecided' so that the normal code-detection is performed.
9833
9834 If OPERATION is `insert-file-contents', the argument corresponding to
9835 TARGET may be a cons (FILENAME . BUFFER). In that case, FILENAME is a
9836 file name to look up, and BUFFER is a buffer that contains the file's
9837 contents (not yet decoded). If `file-coding-system-alist' specifies a
9838 function to call for FILENAME, that function should examine the
9839 contents of BUFFER instead of reading the file.
9840
9841 usage: (find-operation-coding-system OPERATION ARGUMENTS...) */)
9842 (ptrdiff_t nargs, Lisp_Object *args)
9843 {
9844 Lisp_Object operation, target_idx, target, val;
9845 register Lisp_Object chain;
9846
9847 if (nargs < 2)
9848 error ("Too few arguments");
9849 operation = args[0];
9850 if (!SYMBOLP (operation)
9851 || (target_idx = Fget (operation, Qtarget_idx), !NATNUMP (target_idx)))
9852 error ("Invalid first argument");
9853 if (nargs <= 1 + XFASTINT (target_idx))
9854 error ("Too few arguments for operation `%s'",
9855 SDATA (SYMBOL_NAME (operation)));
9856 target = args[XFASTINT (target_idx) + 1];
9857 if (!(STRINGP (target)
9858 || (EQ (operation, Qinsert_file_contents) && CONSP (target)
9859 && STRINGP (XCAR (target)) && BUFFERP (XCDR (target)))
9860 || (EQ (operation, Qopen_network_stream) && INTEGERP (target))))
9861 error ("Invalid argument %"pI"d of operation `%s'",
9862 XFASTINT (target_idx) + 1, SDATA (SYMBOL_NAME (operation)));
9863 if (CONSP (target))
9864 target = XCAR (target);
9865
9866 chain = ((EQ (operation, Qinsert_file_contents)
9867 || EQ (operation, Qwrite_region))
9868 ? Vfile_coding_system_alist
9869 : (EQ (operation, Qopen_network_stream)
9870 ? Vnetwork_coding_system_alist
9871 : Vprocess_coding_system_alist));
9872 if (NILP (chain))
9873 return Qnil;
9874
9875 for (; CONSP (chain); chain = XCDR (chain))
9876 {
9877 Lisp_Object elt;
9878
9879 elt = XCAR (chain);
9880 if (CONSP (elt)
9881 && ((STRINGP (target)
9882 && STRINGP (XCAR (elt))
9883 && fast_string_match (XCAR (elt), target) >= 0)
9884 || (INTEGERP (target) && EQ (target, XCAR (elt)))))
9885 {
9886 val = XCDR (elt);
9887 /* Here, if VAL is both a valid coding system and a valid
9888 function symbol, we return VAL as a coding system. */
9889 if (CONSP (val))
9890 return val;
9891 if (! SYMBOLP (val))
9892 return Qnil;
9893 if (! NILP (Fcoding_system_p (val)))
9894 return Fcons (val, val);
9895 if (! NILP (Ffboundp (val)))
9896 {
9897 /* We use call1 rather than safe_call1
9898 so as to get bug reports about functions called here
9899 which don't handle the current interface. */
9900 val = call1 (val, Flist (nargs, args));
9901 if (CONSP (val))
9902 return val;
9903 if (SYMBOLP (val) && ! NILP (Fcoding_system_p (val)))
9904 return Fcons (val, val);
9905 }
9906 return Qnil;
9907 }
9908 }
9909 return Qnil;
9910 }
9911
9912 DEFUN ("set-coding-system-priority", Fset_coding_system_priority,
9913 Sset_coding_system_priority, 0, MANY, 0,
9914 doc: /* Assign higher priority to the coding systems given as arguments.
9915 If multiple coding systems belong to the same category,
9916 all but the first one are ignored.
9917
9918 usage: (set-coding-system-priority &rest coding-systems) */)
9919 (ptrdiff_t nargs, Lisp_Object *args)
9920 {
9921 ptrdiff_t i, j;
9922 bool changed[coding_category_max];
9923 enum coding_category priorities[coding_category_max];
9924
9925 memset (changed, 0, sizeof changed);
9926
9927 for (i = j = 0; i < nargs; i++)
9928 {
9929 enum coding_category category;
9930 Lisp_Object spec, attrs;
9931
9932 CHECK_CODING_SYSTEM_GET_SPEC (args[i], spec);
9933 attrs = AREF (spec, 0);
9934 category = XINT (CODING_ATTR_CATEGORY (attrs));
9935 if (changed[category])
9936 /* Ignore this coding system because a coding system of the
9937 same category already had a higher priority. */
9938 continue;
9939 changed[category] = 1;
9940 priorities[j++] = category;
9941 if (coding_categories[category].id >= 0
9942 && ! EQ (args[i], CODING_ID_NAME (coding_categories[category].id)))
9943 setup_coding_system (args[i], &coding_categories[category]);
9944 Fset (AREF (Vcoding_category_table, category), args[i]);
9945 }
9946
9947 /* Now we have decided top J priorities. Reflect the order of the
9948 original priorities to the remaining priorities. */
9949
9950 for (i = j, j = 0; i < coding_category_max; i++, j++)
9951 {
9952 while (j < coding_category_max
9953 && changed[coding_priorities[j]])
9954 j++;
9955 if (j == coding_category_max)
9956 emacs_abort ();
9957 priorities[i] = coding_priorities[j];
9958 }
9959
9960 memcpy (coding_priorities, priorities, sizeof priorities);
9961
9962 /* Update `coding-category-list'. */
9963 Vcoding_category_list = Qnil;
9964 for (i = coding_category_max; i-- > 0; )
9965 Vcoding_category_list
9966 = Fcons (AREF (Vcoding_category_table, priorities[i]),
9967 Vcoding_category_list);
9968
9969 return Qnil;
9970 }
9971
9972 DEFUN ("coding-system-priority-list", Fcoding_system_priority_list,
9973 Scoding_system_priority_list, 0, 1, 0,
9974 doc: /* Return a list of coding systems ordered by their priorities.
9975 The list contains a subset of coding systems; i.e. coding systems
9976 assigned to each coding category (see `coding-category-list').
9977
9978 HIGHESTP non-nil means just return the highest priority one. */)
9979 (Lisp_Object highestp)
9980 {
9981 int i;
9982 Lisp_Object val;
9983
9984 for (i = 0, val = Qnil; i < coding_category_max; i++)
9985 {
9986 enum coding_category category = coding_priorities[i];
9987 int id = coding_categories[category].id;
9988 Lisp_Object attrs;
9989
9990 if (id < 0)
9991 continue;
9992 attrs = CODING_ID_ATTRS (id);
9993 if (! NILP (highestp))
9994 return CODING_ATTR_BASE_NAME (attrs);
9995 val = Fcons (CODING_ATTR_BASE_NAME (attrs), val);
9996 }
9997 return Fnreverse (val);
9998 }
9999
10000 static const char *const suffixes[] = { "-unix", "-dos", "-mac" };
10001
10002 static Lisp_Object
10003 make_subsidiaries (Lisp_Object base)
10004 {
10005 Lisp_Object subsidiaries;
10006 ptrdiff_t base_name_len = SBYTES (SYMBOL_NAME (base));
10007 USE_SAFE_ALLOCA;
10008 char *buf = SAFE_ALLOCA (base_name_len + 6);
10009 int i;
10010
10011 memcpy (buf, SDATA (SYMBOL_NAME (base)), base_name_len);
10012 subsidiaries = make_uninit_vector (3);
10013 for (i = 0; i < 3; i++)
10014 {
10015 strcpy (buf + base_name_len, suffixes[i]);
10016 ASET (subsidiaries, i, intern (buf));
10017 }
10018 SAFE_FREE ();
10019 return subsidiaries;
10020 }
10021
10022
10023 DEFUN ("define-coding-system-internal", Fdefine_coding_system_internal,
10024 Sdefine_coding_system_internal, coding_arg_max, MANY, 0,
10025 doc: /* For internal use only.
10026 usage: (define-coding-system-internal ...) */)
10027 (ptrdiff_t nargs, Lisp_Object *args)
10028 {
10029 Lisp_Object name;
10030 Lisp_Object spec_vec; /* [ ATTRS ALIASE EOL_TYPE ] */
10031 Lisp_Object attrs; /* Vector of attributes. */
10032 Lisp_Object eol_type;
10033 Lisp_Object aliases;
10034 Lisp_Object coding_type, charset_list, safe_charsets;
10035 enum coding_category category;
10036 Lisp_Object tail, val;
10037 int max_charset_id = 0;
10038 int i;
10039
10040 if (nargs < coding_arg_max)
10041 goto short_args;
10042
10043 attrs = Fmake_vector (make_number (coding_attr_last_index), Qnil);
10044
10045 name = args[coding_arg_name];
10046 CHECK_SYMBOL (name);
10047 ASET (attrs, coding_attr_base_name, name);
10048
10049 val = args[coding_arg_mnemonic];
10050 if (! STRINGP (val))
10051 CHECK_CHARACTER (val);
10052 ASET (attrs, coding_attr_mnemonic, val);
10053
10054 coding_type = args[coding_arg_coding_type];
10055 CHECK_SYMBOL (coding_type);
10056 ASET (attrs, coding_attr_type, coding_type);
10057
10058 charset_list = args[coding_arg_charset_list];
10059 if (SYMBOLP (charset_list))
10060 {
10061 if (EQ (charset_list, Qiso_2022))
10062 {
10063 if (! EQ (coding_type, Qiso_2022))
10064 error ("Invalid charset-list");
10065 charset_list = Viso_2022_charset_list;
10066 }
10067 else if (EQ (charset_list, Qemacs_mule))
10068 {
10069 if (! EQ (coding_type, Qemacs_mule))
10070 error ("Invalid charset-list");
10071 charset_list = Vemacs_mule_charset_list;
10072 }
10073 for (tail = charset_list; CONSP (tail); tail = XCDR (tail))
10074 {
10075 if (! RANGED_INTEGERP (0, XCAR (tail), INT_MAX - 1))
10076 error ("Invalid charset-list");
10077 if (max_charset_id < XFASTINT (XCAR (tail)))
10078 max_charset_id = XFASTINT (XCAR (tail));
10079 }
10080 }
10081 else
10082 {
10083 charset_list = Fcopy_sequence (charset_list);
10084 for (tail = charset_list; CONSP (tail); tail = XCDR (tail))
10085 {
10086 struct charset *charset;
10087
10088 val = XCAR (tail);
10089 CHECK_CHARSET_GET_CHARSET (val, charset);
10090 if (EQ (coding_type, Qiso_2022)
10091 ? CHARSET_ISO_FINAL (charset) < 0
10092 : EQ (coding_type, Qemacs_mule)
10093 ? CHARSET_EMACS_MULE_ID (charset) < 0
10094 : 0)
10095 error ("Can't handle charset `%s'",
10096 SDATA (SYMBOL_NAME (CHARSET_NAME (charset))));
10097
10098 XSETCAR (tail, make_number (charset->id));
10099 if (max_charset_id < charset->id)
10100 max_charset_id = charset->id;
10101 }
10102 }
10103 ASET (attrs, coding_attr_charset_list, charset_list);
10104
10105 safe_charsets = make_uninit_string (max_charset_id + 1);
10106 memset (SDATA (safe_charsets), 255, max_charset_id + 1);
10107 for (tail = charset_list; CONSP (tail); tail = XCDR (tail))
10108 SSET (safe_charsets, XFASTINT (XCAR (tail)), 0);
10109 ASET (attrs, coding_attr_safe_charsets, safe_charsets);
10110
10111 ASET (attrs, coding_attr_ascii_compat, args[coding_arg_ascii_compatible_p]);
10112
10113 val = args[coding_arg_decode_translation_table];
10114 if (! CHAR_TABLE_P (val) && ! CONSP (val))
10115 CHECK_SYMBOL (val);
10116 ASET (attrs, coding_attr_decode_tbl, val);
10117
10118 val = args[coding_arg_encode_translation_table];
10119 if (! CHAR_TABLE_P (val) && ! CONSP (val))
10120 CHECK_SYMBOL (val);
10121 ASET (attrs, coding_attr_encode_tbl, val);
10122
10123 val = args[coding_arg_post_read_conversion];
10124 CHECK_SYMBOL (val);
10125 ASET (attrs, coding_attr_post_read, val);
10126
10127 val = args[coding_arg_pre_write_conversion];
10128 CHECK_SYMBOL (val);
10129 ASET (attrs, coding_attr_pre_write, val);
10130
10131 val = args[coding_arg_default_char];
10132 if (NILP (val))
10133 ASET (attrs, coding_attr_default_char, make_number (' '));
10134 else
10135 {
10136 CHECK_CHARACTER (val);
10137 ASET (attrs, coding_attr_default_char, val);
10138 }
10139
10140 val = args[coding_arg_for_unibyte];
10141 ASET (attrs, coding_attr_for_unibyte, NILP (val) ? Qnil : Qt);
10142
10143 val = args[coding_arg_plist];
10144 CHECK_LIST (val);
10145 ASET (attrs, coding_attr_plist, val);
10146
10147 if (EQ (coding_type, Qcharset))
10148 {
10149 /* Generate a lisp vector of 256 elements. Each element is nil,
10150 integer, or a list of charset IDs.
10151
10152 If Nth element is nil, the byte code N is invalid in this
10153 coding system.
10154
10155 If Nth element is a number NUM, N is the first byte of a
10156 charset whose ID is NUM.
10157
10158 If Nth element is a list of charset IDs, N is the first byte
10159 of one of them. The list is sorted by dimensions of the
10160 charsets. A charset of smaller dimension comes first. */
10161 val = Fmake_vector (make_number (256), Qnil);
10162
10163 for (tail = charset_list; CONSP (tail); tail = XCDR (tail))
10164 {
10165 struct charset *charset = CHARSET_FROM_ID (XFASTINT (XCAR (tail)));
10166 int dim = CHARSET_DIMENSION (charset);
10167 int idx = (dim - 1) * 4;
10168
10169 if (CHARSET_ASCII_COMPATIBLE_P (charset))
10170 ASET (attrs, coding_attr_ascii_compat, Qt);
10171
10172 for (i = charset->code_space[idx];
10173 i <= charset->code_space[idx + 1]; i++)
10174 {
10175 Lisp_Object tmp, tmp2;
10176 int dim2;
10177
10178 tmp = AREF (val, i);
10179 if (NILP (tmp))
10180 tmp = XCAR (tail);
10181 else if (NUMBERP (tmp))
10182 {
10183 dim2 = CHARSET_DIMENSION (CHARSET_FROM_ID (XFASTINT (tmp)));
10184 if (dim < dim2)
10185 tmp = list2 (XCAR (tail), tmp);
10186 else
10187 tmp = list2 (tmp, XCAR (tail));
10188 }
10189 else
10190 {
10191 for (tmp2 = tmp; CONSP (tmp2); tmp2 = XCDR (tmp2))
10192 {
10193 dim2 = CHARSET_DIMENSION (CHARSET_FROM_ID (XFASTINT (XCAR (tmp2))));
10194 if (dim < dim2)
10195 break;
10196 }
10197 if (NILP (tmp2))
10198 tmp = nconc2 (tmp, list1 (XCAR (tail)));
10199 else
10200 {
10201 XSETCDR (tmp2, Fcons (XCAR (tmp2), XCDR (tmp2)));
10202 XSETCAR (tmp2, XCAR (tail));
10203 }
10204 }
10205 ASET (val, i, tmp);
10206 }
10207 }
10208 ASET (attrs, coding_attr_charset_valids, val);
10209 category = coding_category_charset;
10210 }
10211 else if (EQ (coding_type, Qccl))
10212 {
10213 Lisp_Object valids;
10214
10215 if (nargs < coding_arg_ccl_max)
10216 goto short_args;
10217
10218 val = args[coding_arg_ccl_decoder];
10219 CHECK_CCL_PROGRAM (val);
10220 if (VECTORP (val))
10221 val = Fcopy_sequence (val);
10222 ASET (attrs, coding_attr_ccl_decoder, val);
10223
10224 val = args[coding_arg_ccl_encoder];
10225 CHECK_CCL_PROGRAM (val);
10226 if (VECTORP (val))
10227 val = Fcopy_sequence (val);
10228 ASET (attrs, coding_attr_ccl_encoder, val);
10229
10230 val = args[coding_arg_ccl_valids];
10231 valids = Fmake_string (make_number (256), make_number (0));
10232 for (tail = val; CONSP (tail); tail = XCDR (tail))
10233 {
10234 int from, to;
10235
10236 val = XCAR (tail);
10237 if (INTEGERP (val))
10238 {
10239 if (! (0 <= XINT (val) && XINT (val) <= 255))
10240 args_out_of_range_3 (val, make_number (0), make_number (255));
10241 from = to = XINT (val);
10242 }
10243 else
10244 {
10245 CHECK_CONS (val);
10246 CHECK_NATNUM_CAR (val);
10247 CHECK_NUMBER_CDR (val);
10248 if (XINT (XCAR (val)) > 255)
10249 args_out_of_range_3 (XCAR (val),
10250 make_number (0), make_number (255));
10251 from = XINT (XCAR (val));
10252 if (! (from <= XINT (XCDR (val)) && XINT (XCDR (val)) <= 255))
10253 args_out_of_range_3 (XCDR (val),
10254 XCAR (val), make_number (255));
10255 to = XINT (XCDR (val));
10256 }
10257 for (i = from; i <= to; i++)
10258 SSET (valids, i, 1);
10259 }
10260 ASET (attrs, coding_attr_ccl_valids, valids);
10261
10262 category = coding_category_ccl;
10263 }
10264 else if (EQ (coding_type, Qutf_16))
10265 {
10266 Lisp_Object bom, endian;
10267
10268 ASET (attrs, coding_attr_ascii_compat, Qnil);
10269
10270 if (nargs < coding_arg_utf16_max)
10271 goto short_args;
10272
10273 bom = args[coding_arg_utf16_bom];
10274 if (! NILP (bom) && ! EQ (bom, Qt))
10275 {
10276 CHECK_CONS (bom);
10277 val = XCAR (bom);
10278 CHECK_CODING_SYSTEM (val);
10279 val = XCDR (bom);
10280 CHECK_CODING_SYSTEM (val);
10281 }
10282 ASET (attrs, coding_attr_utf_bom, bom);
10283
10284 endian = args[coding_arg_utf16_endian];
10285 CHECK_SYMBOL (endian);
10286 if (NILP (endian))
10287 endian = Qbig;
10288 else if (! EQ (endian, Qbig) && ! EQ (endian, Qlittle))
10289 error ("Invalid endian: %s", SDATA (SYMBOL_NAME (endian)));
10290 ASET (attrs, coding_attr_utf_16_endian, endian);
10291
10292 category = (CONSP (bom)
10293 ? coding_category_utf_16_auto
10294 : NILP (bom)
10295 ? (EQ (endian, Qbig)
10296 ? coding_category_utf_16_be_nosig
10297 : coding_category_utf_16_le_nosig)
10298 : (EQ (endian, Qbig)
10299 ? coding_category_utf_16_be
10300 : coding_category_utf_16_le));
10301 }
10302 else if (EQ (coding_type, Qiso_2022))
10303 {
10304 Lisp_Object initial, reg_usage, request, flags;
10305
10306 if (nargs < coding_arg_iso2022_max)
10307 goto short_args;
10308
10309 initial = Fcopy_sequence (args[coding_arg_iso2022_initial]);
10310 CHECK_VECTOR (initial);
10311 for (i = 0; i < 4; i++)
10312 {
10313 val = AREF (initial, i);
10314 if (! NILP (val))
10315 {
10316 struct charset *charset;
10317
10318 CHECK_CHARSET_GET_CHARSET (val, charset);
10319 ASET (initial, i, make_number (CHARSET_ID (charset)));
10320 if (i == 0 && CHARSET_ASCII_COMPATIBLE_P (charset))
10321 ASET (attrs, coding_attr_ascii_compat, Qt);
10322 }
10323 else
10324 ASET (initial, i, make_number (-1));
10325 }
10326
10327 reg_usage = args[coding_arg_iso2022_reg_usage];
10328 CHECK_CONS (reg_usage);
10329 CHECK_NUMBER_CAR (reg_usage);
10330 CHECK_NUMBER_CDR (reg_usage);
10331
10332 request = Fcopy_sequence (args[coding_arg_iso2022_request]);
10333 for (tail = request; CONSP (tail); tail = XCDR (tail))
10334 {
10335 int id;
10336 Lisp_Object tmp1;
10337
10338 val = XCAR (tail);
10339 CHECK_CONS (val);
10340 tmp1 = XCAR (val);
10341 CHECK_CHARSET_GET_ID (tmp1, id);
10342 CHECK_NATNUM_CDR (val);
10343 if (XINT (XCDR (val)) >= 4)
10344 error ("Invalid graphic register number: %"pI"d", XINT (XCDR (val)));
10345 XSETCAR (val, make_number (id));
10346 }
10347
10348 flags = args[coding_arg_iso2022_flags];
10349 CHECK_NATNUM (flags);
10350 i = XINT (flags) & INT_MAX;
10351 if (EQ (args[coding_arg_charset_list], Qiso_2022))
10352 i |= CODING_ISO_FLAG_FULL_SUPPORT;
10353 flags = make_number (i);
10354
10355 ASET (attrs, coding_attr_iso_initial, initial);
10356 ASET (attrs, coding_attr_iso_usage, reg_usage);
10357 ASET (attrs, coding_attr_iso_request, request);
10358 ASET (attrs, coding_attr_iso_flags, flags);
10359 setup_iso_safe_charsets (attrs);
10360
10361 if (i & CODING_ISO_FLAG_SEVEN_BITS)
10362 category = ((i & (CODING_ISO_FLAG_LOCKING_SHIFT
10363 | CODING_ISO_FLAG_SINGLE_SHIFT))
10364 ? coding_category_iso_7_else
10365 : EQ (args[coding_arg_charset_list], Qiso_2022)
10366 ? coding_category_iso_7
10367 : coding_category_iso_7_tight);
10368 else
10369 {
10370 int id = XINT (AREF (initial, 1));
10371
10372 category = (((i & CODING_ISO_FLAG_LOCKING_SHIFT)
10373 || EQ (args[coding_arg_charset_list], Qiso_2022)
10374 || id < 0)
10375 ? coding_category_iso_8_else
10376 : (CHARSET_DIMENSION (CHARSET_FROM_ID (id)) == 1)
10377 ? coding_category_iso_8_1
10378 : coding_category_iso_8_2);
10379 }
10380 if (category != coding_category_iso_8_1
10381 && category != coding_category_iso_8_2)
10382 ASET (attrs, coding_attr_ascii_compat, Qnil);
10383 }
10384 else if (EQ (coding_type, Qemacs_mule))
10385 {
10386 if (EQ (args[coding_arg_charset_list], Qemacs_mule))
10387 ASET (attrs, coding_attr_emacs_mule_full, Qt);
10388 ASET (attrs, coding_attr_ascii_compat, Qt);
10389 category = coding_category_emacs_mule;
10390 }
10391 else if (EQ (coding_type, Qshift_jis))
10392 {
10393
10394 struct charset *charset;
10395
10396 if (XINT (Flength (charset_list)) != 3
10397 && XINT (Flength (charset_list)) != 4)
10398 error ("There should be three or four charsets");
10399
10400 charset = CHARSET_FROM_ID (XINT (XCAR (charset_list)));
10401 if (CHARSET_DIMENSION (charset) != 1)
10402 error ("Dimension of charset %s is not one",
10403 SDATA (SYMBOL_NAME (CHARSET_NAME (charset))));
10404 if (CHARSET_ASCII_COMPATIBLE_P (charset))
10405 ASET (attrs, coding_attr_ascii_compat, Qt);
10406
10407 charset_list = XCDR (charset_list);
10408 charset = CHARSET_FROM_ID (XINT (XCAR (charset_list)));
10409 if (CHARSET_DIMENSION (charset) != 1)
10410 error ("Dimension of charset %s is not one",
10411 SDATA (SYMBOL_NAME (CHARSET_NAME (charset))));
10412
10413 charset_list = XCDR (charset_list);
10414 charset = CHARSET_FROM_ID (XINT (XCAR (charset_list)));
10415 if (CHARSET_DIMENSION (charset) != 2)
10416 error ("Dimension of charset %s is not two",
10417 SDATA (SYMBOL_NAME (CHARSET_NAME (charset))));
10418
10419 charset_list = XCDR (charset_list);
10420 if (! NILP (charset_list))
10421 {
10422 charset = CHARSET_FROM_ID (XINT (XCAR (charset_list)));
10423 if (CHARSET_DIMENSION (charset) != 2)
10424 error ("Dimension of charset %s is not two",
10425 SDATA (SYMBOL_NAME (CHARSET_NAME (charset))));
10426 }
10427
10428 category = coding_category_sjis;
10429 Vsjis_coding_system = name;
10430 }
10431 else if (EQ (coding_type, Qbig5))
10432 {
10433 struct charset *charset;
10434
10435 if (XINT (Flength (charset_list)) != 2)
10436 error ("There should be just two charsets");
10437
10438 charset = CHARSET_FROM_ID (XINT (XCAR (charset_list)));
10439 if (CHARSET_DIMENSION (charset) != 1)
10440 error ("Dimension of charset %s is not one",
10441 SDATA (SYMBOL_NAME (CHARSET_NAME (charset))));
10442 if (CHARSET_ASCII_COMPATIBLE_P (charset))
10443 ASET (attrs, coding_attr_ascii_compat, Qt);
10444
10445 charset_list = XCDR (charset_list);
10446 charset = CHARSET_FROM_ID (XINT (XCAR (charset_list)));
10447 if (CHARSET_DIMENSION (charset) != 2)
10448 error ("Dimension of charset %s is not two",
10449 SDATA (SYMBOL_NAME (CHARSET_NAME (charset))));
10450
10451 category = coding_category_big5;
10452 Vbig5_coding_system = name;
10453 }
10454 else if (EQ (coding_type, Qraw_text))
10455 {
10456 category = coding_category_raw_text;
10457 ASET (attrs, coding_attr_ascii_compat, Qt);
10458 }
10459 else if (EQ (coding_type, Qutf_8))
10460 {
10461 Lisp_Object bom;
10462
10463 if (nargs < coding_arg_utf8_max)
10464 goto short_args;
10465
10466 bom = args[coding_arg_utf8_bom];
10467 if (! NILP (bom) && ! EQ (bom, Qt))
10468 {
10469 CHECK_CONS (bom);
10470 val = XCAR (bom);
10471 CHECK_CODING_SYSTEM (val);
10472 val = XCDR (bom);
10473 CHECK_CODING_SYSTEM (val);
10474 }
10475 ASET (attrs, coding_attr_utf_bom, bom);
10476 if (NILP (bom))
10477 ASET (attrs, coding_attr_ascii_compat, Qt);
10478
10479 category = (CONSP (bom) ? coding_category_utf_8_auto
10480 : NILP (bom) ? coding_category_utf_8_nosig
10481 : coding_category_utf_8_sig);
10482 }
10483 else if (EQ (coding_type, Qundecided))
10484 {
10485 if (nargs < coding_arg_undecided_max)
10486 goto short_args;
10487 ASET (attrs, coding_attr_undecided_inhibit_null_byte_detection,
10488 args[coding_arg_undecided_inhibit_null_byte_detection]);
10489 ASET (attrs, coding_attr_undecided_inhibit_iso_escape_detection,
10490 args[coding_arg_undecided_inhibit_iso_escape_detection]);
10491 ASET (attrs, coding_attr_undecided_prefer_utf_8,
10492 args[coding_arg_undecided_prefer_utf_8]);
10493 category = coding_category_undecided;
10494 }
10495 else
10496 error ("Invalid coding system type: %s",
10497 SDATA (SYMBOL_NAME (coding_type)));
10498
10499 ASET (attrs, coding_attr_category, make_number (category));
10500 ASET (attrs, coding_attr_plist,
10501 Fcons (QCcategory,
10502 Fcons (AREF (Vcoding_category_table, category),
10503 CODING_ATTR_PLIST (attrs))));
10504 ASET (attrs, coding_attr_plist,
10505 Fcons (QCascii_compatible_p,
10506 Fcons (CODING_ATTR_ASCII_COMPAT (attrs),
10507 CODING_ATTR_PLIST (attrs))));
10508
10509 eol_type = args[coding_arg_eol_type];
10510 if (! NILP (eol_type)
10511 && ! EQ (eol_type, Qunix)
10512 && ! EQ (eol_type, Qdos)
10513 && ! EQ (eol_type, Qmac))
10514 error ("Invalid eol-type");
10515
10516 aliases = list1 (name);
10517
10518 if (NILP (eol_type))
10519 {
10520 eol_type = make_subsidiaries (name);
10521 for (i = 0; i < 3; i++)
10522 {
10523 Lisp_Object this_spec, this_name, this_aliases, this_eol_type;
10524
10525 this_name = AREF (eol_type, i);
10526 this_aliases = list1 (this_name);
10527 this_eol_type = (i == 0 ? Qunix : i == 1 ? Qdos : Qmac);
10528 this_spec = make_uninit_vector (3);
10529 ASET (this_spec, 0, attrs);
10530 ASET (this_spec, 1, this_aliases);
10531 ASET (this_spec, 2, this_eol_type);
10532 Fputhash (this_name, this_spec, Vcoding_system_hash_table);
10533 Vcoding_system_list = Fcons (this_name, Vcoding_system_list);
10534 val = Fassoc (Fsymbol_name (this_name), Vcoding_system_alist);
10535 if (NILP (val))
10536 Vcoding_system_alist
10537 = Fcons (Fcons (Fsymbol_name (this_name), Qnil),
10538 Vcoding_system_alist);
10539 }
10540 }
10541
10542 spec_vec = make_uninit_vector (3);
10543 ASET (spec_vec, 0, attrs);
10544 ASET (spec_vec, 1, aliases);
10545 ASET (spec_vec, 2, eol_type);
10546
10547 Fputhash (name, spec_vec, Vcoding_system_hash_table);
10548 Vcoding_system_list = Fcons (name, Vcoding_system_list);
10549 val = Fassoc (Fsymbol_name (name), Vcoding_system_alist);
10550 if (NILP (val))
10551 Vcoding_system_alist = Fcons (Fcons (Fsymbol_name (name), Qnil),
10552 Vcoding_system_alist);
10553
10554 {
10555 int id = coding_categories[category].id;
10556
10557 if (id < 0 || EQ (name, CODING_ID_NAME (id)))
10558 setup_coding_system (name, &coding_categories[category]);
10559 }
10560
10561 return Qnil;
10562
10563 short_args:
10564 return Fsignal (Qwrong_number_of_arguments,
10565 Fcons (intern ("define-coding-system-internal"),
10566 make_number (nargs)));
10567 }
10568
10569
10570 DEFUN ("coding-system-put", Fcoding_system_put, Scoding_system_put,
10571 3, 3, 0,
10572 doc: /* Change value in CODING-SYSTEM's property list PROP to VAL. */)
10573 (Lisp_Object coding_system, Lisp_Object prop, Lisp_Object val)
10574 {
10575 Lisp_Object spec, attrs;
10576
10577 CHECK_CODING_SYSTEM_GET_SPEC (coding_system, spec);
10578 attrs = AREF (spec, 0);
10579 if (EQ (prop, QCmnemonic))
10580 {
10581 if (! STRINGP (val))
10582 CHECK_CHARACTER (val);
10583 ASET (attrs, coding_attr_mnemonic, val);
10584 }
10585 else if (EQ (prop, QCdefault_char))
10586 {
10587 if (NILP (val))
10588 val = make_number (' ');
10589 else
10590 CHECK_CHARACTER (val);
10591 ASET (attrs, coding_attr_default_char, val);
10592 }
10593 else if (EQ (prop, QCdecode_translation_table))
10594 {
10595 if (! CHAR_TABLE_P (val) && ! CONSP (val))
10596 CHECK_SYMBOL (val);
10597 ASET (attrs, coding_attr_decode_tbl, val);
10598 }
10599 else if (EQ (prop, QCencode_translation_table))
10600 {
10601 if (! CHAR_TABLE_P (val) && ! CONSP (val))
10602 CHECK_SYMBOL (val);
10603 ASET (attrs, coding_attr_encode_tbl, val);
10604 }
10605 else if (EQ (prop, QCpost_read_conversion))
10606 {
10607 CHECK_SYMBOL (val);
10608 ASET (attrs, coding_attr_post_read, val);
10609 }
10610 else if (EQ (prop, QCpre_write_conversion))
10611 {
10612 CHECK_SYMBOL (val);
10613 ASET (attrs, coding_attr_pre_write, val);
10614 }
10615 else if (EQ (prop, QCascii_compatible_p))
10616 {
10617 ASET (attrs, coding_attr_ascii_compat, val);
10618 }
10619
10620 ASET (attrs, coding_attr_plist,
10621 Fplist_put (CODING_ATTR_PLIST (attrs), prop, val));
10622 return val;
10623 }
10624
10625
10626 DEFUN ("define-coding-system-alias", Fdefine_coding_system_alias,
10627 Sdefine_coding_system_alias, 2, 2, 0,
10628 doc: /* Define ALIAS as an alias for CODING-SYSTEM. */)
10629 (Lisp_Object alias, Lisp_Object coding_system)
10630 {
10631 Lisp_Object spec, aliases, eol_type, val;
10632
10633 CHECK_SYMBOL (alias);
10634 CHECK_CODING_SYSTEM_GET_SPEC (coding_system, spec);
10635 aliases = AREF (spec, 1);
10636 /* ALIASES should be a list of length more than zero, and the first
10637 element is a base coding system. Append ALIAS at the tail of the
10638 list. */
10639 while (!NILP (XCDR (aliases)))
10640 aliases = XCDR (aliases);
10641 XSETCDR (aliases, list1 (alias));
10642
10643 eol_type = AREF (spec, 2);
10644 if (VECTORP (eol_type))
10645 {
10646 Lisp_Object subsidiaries;
10647 int i;
10648
10649 subsidiaries = make_subsidiaries (alias);
10650 for (i = 0; i < 3; i++)
10651 Fdefine_coding_system_alias (AREF (subsidiaries, i),
10652 AREF (eol_type, i));
10653 }
10654
10655 Fputhash (alias, spec, Vcoding_system_hash_table);
10656 Vcoding_system_list = Fcons (alias, Vcoding_system_list);
10657 val = Fassoc (Fsymbol_name (alias), Vcoding_system_alist);
10658 if (NILP (val))
10659 Vcoding_system_alist = Fcons (Fcons (Fsymbol_name (alias), Qnil),
10660 Vcoding_system_alist);
10661
10662 return Qnil;
10663 }
10664
10665 DEFUN ("coding-system-base", Fcoding_system_base, Scoding_system_base,
10666 1, 1, 0,
10667 doc: /* Return the base of CODING-SYSTEM.
10668 Any alias or subsidiary coding system is not a base coding system. */)
10669 (Lisp_Object coding_system)
10670 {
10671 Lisp_Object spec, attrs;
10672
10673 if (NILP (coding_system))
10674 return (Qno_conversion);
10675 CHECK_CODING_SYSTEM_GET_SPEC (coding_system, spec);
10676 attrs = AREF (spec, 0);
10677 return CODING_ATTR_BASE_NAME (attrs);
10678 }
10679
10680 DEFUN ("coding-system-plist", Fcoding_system_plist, Scoding_system_plist,
10681 1, 1, 0,
10682 doc: /* Return the property list of CODING-SYSTEM. */)
10683 (Lisp_Object coding_system)
10684 {
10685 Lisp_Object spec, attrs;
10686
10687 if (NILP (coding_system))
10688 coding_system = Qno_conversion;
10689 CHECK_CODING_SYSTEM_GET_SPEC (coding_system, spec);
10690 attrs = AREF (spec, 0);
10691 return CODING_ATTR_PLIST (attrs);
10692 }
10693
10694
10695 DEFUN ("coding-system-aliases", Fcoding_system_aliases, Scoding_system_aliases,
10696 1, 1, 0,
10697 doc: /* Return the list of aliases of CODING-SYSTEM. */)
10698 (Lisp_Object coding_system)
10699 {
10700 Lisp_Object spec;
10701
10702 if (NILP (coding_system))
10703 coding_system = Qno_conversion;
10704 CHECK_CODING_SYSTEM_GET_SPEC (coding_system, spec);
10705 return AREF (spec, 1);
10706 }
10707
10708 DEFUN ("coding-system-eol-type", Fcoding_system_eol_type,
10709 Scoding_system_eol_type, 1, 1, 0,
10710 doc: /* Return eol-type of CODING-SYSTEM.
10711 An eol-type is an integer 0, 1, 2, or a vector of coding systems.
10712
10713 Integer values 0, 1, and 2 indicate a format of end-of-line; LF, CRLF,
10714 and CR respectively.
10715
10716 A vector value indicates that a format of end-of-line should be
10717 detected automatically. Nth element of the vector is the subsidiary
10718 coding system whose eol-type is N. */)
10719 (Lisp_Object coding_system)
10720 {
10721 Lisp_Object spec, eol_type;
10722 int n;
10723
10724 if (NILP (coding_system))
10725 coding_system = Qno_conversion;
10726 if (! CODING_SYSTEM_P (coding_system))
10727 return Qnil;
10728 spec = CODING_SYSTEM_SPEC (coding_system);
10729 eol_type = AREF (spec, 2);
10730 if (VECTORP (eol_type))
10731 return Fcopy_sequence (eol_type);
10732 n = EQ (eol_type, Qunix) ? 0 : EQ (eol_type, Qdos) ? 1 : 2;
10733 return make_number (n);
10734 }
10735
10736 #endif /* emacs */
10737
10738 \f
10739 /*** 9. Post-amble ***/
10740
10741 void
10742 init_coding_once (void)
10743 {
10744 int i;
10745
10746 for (i = 0; i < coding_category_max; i++)
10747 {
10748 coding_categories[i].id = -1;
10749 coding_priorities[i] = i;
10750 }
10751
10752 /* ISO2022 specific initialize routine. */
10753 for (i = 0; i < 0x20; i++)
10754 iso_code_class[i] = ISO_control_0;
10755 for (i = 0x21; i < 0x7F; i++)
10756 iso_code_class[i] = ISO_graphic_plane_0;
10757 for (i = 0x80; i < 0xA0; i++)
10758 iso_code_class[i] = ISO_control_1;
10759 for (i = 0xA1; i < 0xFF; i++)
10760 iso_code_class[i] = ISO_graphic_plane_1;
10761 iso_code_class[0x20] = iso_code_class[0x7F] = ISO_0x20_or_0x7F;
10762 iso_code_class[0xA0] = iso_code_class[0xFF] = ISO_0xA0_or_0xFF;
10763 iso_code_class[ISO_CODE_SO] = ISO_shift_out;
10764 iso_code_class[ISO_CODE_SI] = ISO_shift_in;
10765 iso_code_class[ISO_CODE_SS2_7] = ISO_single_shift_2_7;
10766 iso_code_class[ISO_CODE_ESC] = ISO_escape;
10767 iso_code_class[ISO_CODE_SS2] = ISO_single_shift_2;
10768 iso_code_class[ISO_CODE_SS3] = ISO_single_shift_3;
10769 iso_code_class[ISO_CODE_CSI] = ISO_control_sequence_introducer;
10770
10771 for (i = 0; i < 256; i++)
10772 {
10773 emacs_mule_bytes[i] = 1;
10774 }
10775 emacs_mule_bytes[EMACS_MULE_LEADING_CODE_PRIVATE_11] = 3;
10776 emacs_mule_bytes[EMACS_MULE_LEADING_CODE_PRIVATE_12] = 3;
10777 emacs_mule_bytes[EMACS_MULE_LEADING_CODE_PRIVATE_21] = 4;
10778 emacs_mule_bytes[EMACS_MULE_LEADING_CODE_PRIVATE_22] = 4;
10779 }
10780
10781 #ifdef emacs
10782
10783 void
10784 syms_of_coding (void)
10785 {
10786 staticpro (&Vcoding_system_hash_table);
10787 Vcoding_system_hash_table = CALLN (Fmake_hash_table, QCtest, Qeq);
10788
10789 staticpro (&Vsjis_coding_system);
10790 Vsjis_coding_system = Qnil;
10791
10792 staticpro (&Vbig5_coding_system);
10793 Vbig5_coding_system = Qnil;
10794
10795 staticpro (&Vcode_conversion_reused_workbuf);
10796 Vcode_conversion_reused_workbuf = Qnil;
10797
10798 staticpro (&Vcode_conversion_workbuf_name);
10799 Vcode_conversion_workbuf_name = build_pure_c_string (" *code-conversion-work*");
10800
10801 reused_workbuf_in_use = 0;
10802
10803 DEFSYM (Qcharset, "charset");
10804 DEFSYM (Qtarget_idx, "target-idx");
10805 DEFSYM (Qcoding_system_history, "coding-system-history");
10806 Fset (Qcoding_system_history, Qnil);
10807
10808 /* Target FILENAME is the first argument. */
10809 Fput (Qinsert_file_contents, Qtarget_idx, make_number (0));
10810 /* Target FILENAME is the third argument. */
10811 Fput (Qwrite_region, Qtarget_idx, make_number (2));
10812
10813 DEFSYM (Qcall_process, "call-process");
10814 /* Target PROGRAM is the first argument. */
10815 Fput (Qcall_process, Qtarget_idx, make_number (0));
10816
10817 DEFSYM (Qcall_process_region, "call-process-region");
10818 /* Target PROGRAM is the third argument. */
10819 Fput (Qcall_process_region, Qtarget_idx, make_number (2));
10820
10821 DEFSYM (Qstart_process, "start-process");
10822 /* Target PROGRAM is the third argument. */
10823 Fput (Qstart_process, Qtarget_idx, make_number (2));
10824
10825 DEFSYM (Qopen_network_stream, "open-network-stream");
10826 /* Target SERVICE is the fourth argument. */
10827 Fput (Qopen_network_stream, Qtarget_idx, make_number (3));
10828
10829 DEFSYM (Qunix, "unix");
10830 DEFSYM (Qdos, "dos");
10831 DEFSYM (Qmac, "mac");
10832
10833 DEFSYM (Qbuffer_file_coding_system, "buffer-file-coding-system");
10834 DEFSYM (Qundecided, "undecided");
10835 DEFSYM (Qno_conversion, "no-conversion");
10836 DEFSYM (Qraw_text, "raw-text");
10837
10838 DEFSYM (Qiso_2022, "iso-2022");
10839
10840 DEFSYM (Qutf_8, "utf-8");
10841 DEFSYM (Qutf_8_emacs, "utf-8-emacs");
10842
10843 #if defined (WINDOWSNT) || defined (CYGWIN)
10844 /* No, not utf-16-le: that one has a BOM. */
10845 DEFSYM (Qutf_16le, "utf-16le");
10846 #endif
10847
10848 DEFSYM (Qutf_16, "utf-16");
10849 DEFSYM (Qbig, "big");
10850 DEFSYM (Qlittle, "little");
10851
10852 DEFSYM (Qshift_jis, "shift-jis");
10853 DEFSYM (Qbig5, "big5");
10854
10855 DEFSYM (Qcoding_system_p, "coding-system-p");
10856
10857 /* Error signaled when there's a problem with detecting a coding system. */
10858 DEFSYM (Qcoding_system_error, "coding-system-error");
10859 Fput (Qcoding_system_error, Qerror_conditions,
10860 listn (CONSTYPE_PURE, 2, Qcoding_system_error, Qerror));
10861 Fput (Qcoding_system_error, Qerror_message,
10862 build_pure_c_string ("Invalid coding system"));
10863
10864 DEFSYM (Qtranslation_table, "translation-table");
10865 Fput (Qtranslation_table, Qchar_table_extra_slots, make_number (2));
10866 DEFSYM (Qtranslation_table_id, "translation-table-id");
10867
10868 /* Coding system emacs-mule and raw-text are for converting only
10869 end-of-line format. */
10870 DEFSYM (Qemacs_mule, "emacs-mule");
10871
10872 DEFSYM (QCcategory, ":category");
10873 DEFSYM (QCmnemonic, ":mnemonic");
10874 DEFSYM (QCdefault_char, ":default-char");
10875 DEFSYM (QCdecode_translation_table, ":decode-translation-table");
10876 DEFSYM (QCencode_translation_table, ":encode-translation-table");
10877 DEFSYM (QCpost_read_conversion, ":post-read-conversion");
10878 DEFSYM (QCpre_write_conversion, ":pre-write-conversion");
10879 DEFSYM (QCascii_compatible_p, ":ascii-compatible-p");
10880
10881 Vcoding_category_table
10882 = Fmake_vector (make_number (coding_category_max), Qnil);
10883 staticpro (&Vcoding_category_table);
10884 /* Followings are target of code detection. */
10885 ASET (Vcoding_category_table, coding_category_iso_7,
10886 intern_c_string ("coding-category-iso-7"));
10887 ASET (Vcoding_category_table, coding_category_iso_7_tight,
10888 intern_c_string ("coding-category-iso-7-tight"));
10889 ASET (Vcoding_category_table, coding_category_iso_8_1,
10890 intern_c_string ("coding-category-iso-8-1"));
10891 ASET (Vcoding_category_table, coding_category_iso_8_2,
10892 intern_c_string ("coding-category-iso-8-2"));
10893 ASET (Vcoding_category_table, coding_category_iso_7_else,
10894 intern_c_string ("coding-category-iso-7-else"));
10895 ASET (Vcoding_category_table, coding_category_iso_8_else,
10896 intern_c_string ("coding-category-iso-8-else"));
10897 ASET (Vcoding_category_table, coding_category_utf_8_auto,
10898 intern_c_string ("coding-category-utf-8-auto"));
10899 ASET (Vcoding_category_table, coding_category_utf_8_nosig,
10900 intern_c_string ("coding-category-utf-8"));
10901 ASET (Vcoding_category_table, coding_category_utf_8_sig,
10902 intern_c_string ("coding-category-utf-8-sig"));
10903 ASET (Vcoding_category_table, coding_category_utf_16_be,
10904 intern_c_string ("coding-category-utf-16-be"));
10905 ASET (Vcoding_category_table, coding_category_utf_16_auto,
10906 intern_c_string ("coding-category-utf-16-auto"));
10907 ASET (Vcoding_category_table, coding_category_utf_16_le,
10908 intern_c_string ("coding-category-utf-16-le"));
10909 ASET (Vcoding_category_table, coding_category_utf_16_be_nosig,
10910 intern_c_string ("coding-category-utf-16-be-nosig"));
10911 ASET (Vcoding_category_table, coding_category_utf_16_le_nosig,
10912 intern_c_string ("coding-category-utf-16-le-nosig"));
10913 ASET (Vcoding_category_table, coding_category_charset,
10914 intern_c_string ("coding-category-charset"));
10915 ASET (Vcoding_category_table, coding_category_sjis,
10916 intern_c_string ("coding-category-sjis"));
10917 ASET (Vcoding_category_table, coding_category_big5,
10918 intern_c_string ("coding-category-big5"));
10919 ASET (Vcoding_category_table, coding_category_ccl,
10920 intern_c_string ("coding-category-ccl"));
10921 ASET (Vcoding_category_table, coding_category_emacs_mule,
10922 intern_c_string ("coding-category-emacs-mule"));
10923 /* Followings are NOT target of code detection. */
10924 ASET (Vcoding_category_table, coding_category_raw_text,
10925 intern_c_string ("coding-category-raw-text"));
10926 ASET (Vcoding_category_table, coding_category_undecided,
10927 intern_c_string ("coding-category-undecided"));
10928
10929 DEFSYM (Qinsufficient_source, "insufficient-source");
10930 DEFSYM (Qinvalid_source, "invalid-source");
10931 DEFSYM (Qinterrupted, "interrupted");
10932
10933 /* If a symbol has this property, evaluate the value to define the
10934 symbol as a coding system. */
10935 DEFSYM (Qcoding_system_define_form, "coding-system-define-form");
10936
10937 defsubr (&Scoding_system_p);
10938 defsubr (&Sread_coding_system);
10939 defsubr (&Sread_non_nil_coding_system);
10940 defsubr (&Scheck_coding_system);
10941 defsubr (&Sdetect_coding_region);
10942 defsubr (&Sdetect_coding_string);
10943 defsubr (&Sfind_coding_systems_region_internal);
10944 defsubr (&Sunencodable_char_position);
10945 defsubr (&Scheck_coding_systems_region);
10946 defsubr (&Sdecode_coding_region);
10947 defsubr (&Sencode_coding_region);
10948 defsubr (&Sdecode_coding_string);
10949 defsubr (&Sencode_coding_string);
10950 defsubr (&Sdecode_sjis_char);
10951 defsubr (&Sencode_sjis_char);
10952 defsubr (&Sdecode_big5_char);
10953 defsubr (&Sencode_big5_char);
10954 defsubr (&Sset_terminal_coding_system_internal);
10955 defsubr (&Sset_safe_terminal_coding_system_internal);
10956 defsubr (&Sterminal_coding_system);
10957 defsubr (&Sset_keyboard_coding_system_internal);
10958 defsubr (&Skeyboard_coding_system);
10959 defsubr (&Sfind_operation_coding_system);
10960 defsubr (&Sset_coding_system_priority);
10961 defsubr (&Sdefine_coding_system_internal);
10962 defsubr (&Sdefine_coding_system_alias);
10963 defsubr (&Scoding_system_put);
10964 defsubr (&Scoding_system_base);
10965 defsubr (&Scoding_system_plist);
10966 defsubr (&Scoding_system_aliases);
10967 defsubr (&Scoding_system_eol_type);
10968 defsubr (&Scoding_system_priority_list);
10969
10970 DEFVAR_LISP ("coding-system-list", Vcoding_system_list,
10971 doc: /* List of coding systems.
10972
10973 Do not alter the value of this variable manually. This variable should be
10974 updated by the functions `define-coding-system' and
10975 `define-coding-system-alias'. */);
10976 Vcoding_system_list = Qnil;
10977
10978 DEFVAR_LISP ("coding-system-alist", Vcoding_system_alist,
10979 doc: /* Alist of coding system names.
10980 Each element is one element list of coding system name.
10981 This variable is given to `completing-read' as COLLECTION argument.
10982
10983 Do not alter the value of this variable manually. This variable should be
10984 updated by the functions `make-coding-system' and
10985 `define-coding-system-alias'. */);
10986 Vcoding_system_alist = Qnil;
10987
10988 DEFVAR_LISP ("coding-category-list", Vcoding_category_list,
10989 doc: /* List of coding-categories (symbols) ordered by priority.
10990
10991 On detecting a coding system, Emacs tries code detection algorithms
10992 associated with each coding-category one by one in this order. When
10993 one algorithm agrees with a byte sequence of source text, the coding
10994 system bound to the corresponding coding-category is selected.
10995
10996 Don't modify this variable directly, but use `set-coding-system-priority'. */);
10997 {
10998 int i;
10999
11000 Vcoding_category_list = Qnil;
11001 for (i = coding_category_max - 1; i >= 0; i--)
11002 Vcoding_category_list
11003 = Fcons (AREF (Vcoding_category_table, i),
11004 Vcoding_category_list);
11005 }
11006
11007 DEFVAR_LISP ("coding-system-for-read", Vcoding_system_for_read,
11008 doc: /* Specify the coding system for read operations.
11009 It is useful to bind this variable with `let', but do not set it globally.
11010 If the value is a coding system, it is used for decoding on read operation.
11011 If not, an appropriate element is used from one of the coding system alists.
11012 There are three such tables: `file-coding-system-alist',
11013 `process-coding-system-alist', and `network-coding-system-alist'. */);
11014 Vcoding_system_for_read = Qnil;
11015
11016 DEFVAR_LISP ("coding-system-for-write", Vcoding_system_for_write,
11017 doc: /* Specify the coding system for write operations.
11018 Programs bind this variable with `let', but you should not set it globally.
11019 If the value is a coding system, it is used for encoding of output,
11020 when writing it to a file and when sending it to a file or subprocess.
11021
11022 If this does not specify a coding system, an appropriate element
11023 is used from one of the coding system alists.
11024 There are three such tables: `file-coding-system-alist',
11025 `process-coding-system-alist', and `network-coding-system-alist'.
11026 For output to files, if the above procedure does not specify a coding system,
11027 the value of `buffer-file-coding-system' is used. */);
11028 Vcoding_system_for_write = Qnil;
11029
11030 DEFVAR_LISP ("last-coding-system-used", Vlast_coding_system_used,
11031 doc: /*
11032 Coding system used in the latest file or process I/O. */);
11033 Vlast_coding_system_used = Qnil;
11034
11035 DEFVAR_LISP ("last-code-conversion-error", Vlast_code_conversion_error,
11036 doc: /*
11037 Error status of the last code conversion.
11038
11039 When an error was detected in the last code conversion, this variable
11040 is set to one of the following symbols.
11041 `insufficient-source'
11042 `inconsistent-eol'
11043 `invalid-source'
11044 `interrupted'
11045 `insufficient-memory'
11046 When no error was detected, the value doesn't change. So, to check
11047 the error status of a code conversion by this variable, you must
11048 explicitly set this variable to nil before performing code
11049 conversion. */);
11050 Vlast_code_conversion_error = Qnil;
11051
11052 DEFVAR_BOOL ("inhibit-eol-conversion", inhibit_eol_conversion,
11053 doc: /*
11054 Non-nil means always inhibit code conversion of end-of-line format.
11055 See info node `Coding Systems' and info node `Text and Binary' concerning
11056 such conversion. */);
11057 inhibit_eol_conversion = 0;
11058
11059 DEFVAR_BOOL ("inherit-process-coding-system", inherit_process_coding_system,
11060 doc: /*
11061 Non-nil means process buffer inherits coding system of process output.
11062 Bind it to t if the process output is to be treated as if it were a file
11063 read from some filesystem. */);
11064 inherit_process_coding_system = 0;
11065
11066 DEFVAR_LISP ("file-coding-system-alist", Vfile_coding_system_alist,
11067 doc: /*
11068 Alist to decide a coding system to use for a file I/O operation.
11069 The format is ((PATTERN . VAL) ...),
11070 where PATTERN is a regular expression matching a file name,
11071 VAL is a coding system, a cons of coding systems, or a function symbol.
11072 If VAL is a coding system, it is used for both decoding and encoding
11073 the file contents.
11074 If VAL is a cons of coding systems, the car part is used for decoding,
11075 and the cdr part is used for encoding.
11076 If VAL is a function symbol, the function must return a coding system
11077 or a cons of coding systems which are used as above. The function is
11078 called with an argument that is a list of the arguments with which
11079 `find-operation-coding-system' was called. If the function can't decide
11080 a coding system, it can return `undecided' so that the normal
11081 code-detection is performed.
11082
11083 See also the function `find-operation-coding-system'
11084 and the variable `auto-coding-alist'. */);
11085 Vfile_coding_system_alist = Qnil;
11086
11087 DEFVAR_LISP ("process-coding-system-alist", Vprocess_coding_system_alist,
11088 doc: /*
11089 Alist to decide a coding system to use for a process I/O operation.
11090 The format is ((PATTERN . VAL) ...),
11091 where PATTERN is a regular expression matching a program name,
11092 VAL is a coding system, a cons of coding systems, or a function symbol.
11093 If VAL is a coding system, it is used for both decoding what received
11094 from the program and encoding what sent to the program.
11095 If VAL is a cons of coding systems, the car part is used for decoding,
11096 and the cdr part is used for encoding.
11097 If VAL is a function symbol, the function must return a coding system
11098 or a cons of coding systems which are used as above.
11099
11100 See also the function `find-operation-coding-system'. */);
11101 Vprocess_coding_system_alist = Qnil;
11102
11103 DEFVAR_LISP ("network-coding-system-alist", Vnetwork_coding_system_alist,
11104 doc: /*
11105 Alist to decide a coding system to use for a network I/O operation.
11106 The format is ((PATTERN . VAL) ...),
11107 where PATTERN is a regular expression matching a network service name
11108 or is a port number to connect to,
11109 VAL is a coding system, a cons of coding systems, or a function symbol.
11110 If VAL is a coding system, it is used for both decoding what received
11111 from the network stream and encoding what sent to the network stream.
11112 If VAL is a cons of coding systems, the car part is used for decoding,
11113 and the cdr part is used for encoding.
11114 If VAL is a function symbol, the function must return a coding system
11115 or a cons of coding systems which are used as above.
11116
11117 See also the function `find-operation-coding-system'. */);
11118 Vnetwork_coding_system_alist = Qnil;
11119
11120 DEFVAR_LISP ("locale-coding-system", Vlocale_coding_system,
11121 doc: /* Coding system to use with system messages.
11122 Also used for decoding keyboard input on X Window system, and for
11123 encoding standard output and error streams. */);
11124 Vlocale_coding_system = Qnil;
11125
11126 /* The eol mnemonics are reset in startup.el system-dependently. */
11127 DEFVAR_LISP ("eol-mnemonic-unix", eol_mnemonic_unix,
11128 doc: /*
11129 String displayed in mode line for UNIX-like (LF) end-of-line format. */);
11130 eol_mnemonic_unix = build_pure_c_string (":");
11131
11132 DEFVAR_LISP ("eol-mnemonic-dos", eol_mnemonic_dos,
11133 doc: /*
11134 String displayed in mode line for DOS-like (CRLF) end-of-line format. */);
11135 eol_mnemonic_dos = build_pure_c_string ("\\");
11136
11137 DEFVAR_LISP ("eol-mnemonic-mac", eol_mnemonic_mac,
11138 doc: /*
11139 String displayed in mode line for MAC-like (CR) end-of-line format. */);
11140 eol_mnemonic_mac = build_pure_c_string ("/");
11141
11142 DEFVAR_LISP ("eol-mnemonic-undecided", eol_mnemonic_undecided,
11143 doc: /*
11144 String displayed in mode line when end-of-line format is not yet determined. */);
11145 eol_mnemonic_undecided = build_pure_c_string (":");
11146
11147 DEFVAR_LISP ("enable-character-translation", Venable_character_translation,
11148 doc: /*
11149 Non-nil enables character translation while encoding and decoding. */);
11150 Venable_character_translation = Qt;
11151
11152 DEFVAR_LISP ("standard-translation-table-for-decode",
11153 Vstandard_translation_table_for_decode,
11154 doc: /* Table for translating characters while decoding. */);
11155 Vstandard_translation_table_for_decode = Qnil;
11156
11157 DEFVAR_LISP ("standard-translation-table-for-encode",
11158 Vstandard_translation_table_for_encode,
11159 doc: /* Table for translating characters while encoding. */);
11160 Vstandard_translation_table_for_encode = Qnil;
11161
11162 DEFVAR_LISP ("charset-revision-table", Vcharset_revision_table,
11163 doc: /* Alist of charsets vs revision numbers.
11164 While encoding, if a charset (car part of an element) is found,
11165 designate it with the escape sequence identifying revision (cdr part
11166 of the element). */);
11167 Vcharset_revision_table = Qnil;
11168
11169 DEFVAR_LISP ("default-process-coding-system",
11170 Vdefault_process_coding_system,
11171 doc: /* Cons of coding systems used for process I/O by default.
11172 The car part is used for decoding a process output,
11173 the cdr part is used for encoding a text to be sent to a process. */);
11174 Vdefault_process_coding_system = Qnil;
11175
11176 DEFVAR_LISP ("latin-extra-code-table", Vlatin_extra_code_table,
11177 doc: /*
11178 Table of extra Latin codes in the range 128..159 (inclusive).
11179 This is a vector of length 256.
11180 If Nth element is non-nil, the existence of code N in a file
11181 (or output of subprocess) doesn't prevent it to be detected as
11182 a coding system of ISO 2022 variant which has a flag
11183 `accept-latin-extra-code' t (e.g. iso-latin-1) on reading a file
11184 or reading output of a subprocess.
11185 Only 128th through 159th elements have a meaning. */);
11186 Vlatin_extra_code_table = Fmake_vector (make_number (256), Qnil);
11187
11188 DEFVAR_LISP ("select-safe-coding-system-function",
11189 Vselect_safe_coding_system_function,
11190 doc: /*
11191 Function to call to select safe coding system for encoding a text.
11192
11193 If set, this function is called to force a user to select a proper
11194 coding system which can encode the text in the case that a default
11195 coding system used in each operation can't encode the text. The
11196 function should take care that the buffer is not modified while
11197 the coding system is being selected.
11198
11199 The default value is `select-safe-coding-system' (which see). */);
11200 Vselect_safe_coding_system_function = Qnil;
11201
11202 DEFVAR_BOOL ("coding-system-require-warning",
11203 coding_system_require_warning,
11204 doc: /* Internal use only.
11205 If non-nil, on writing a file, `select-safe-coding-system-function' is
11206 called even if `coding-system-for-write' is non-nil. The command
11207 `universal-coding-system-argument' binds this variable to t temporarily. */);
11208 coding_system_require_warning = 0;
11209
11210
11211 DEFVAR_BOOL ("inhibit-iso-escape-detection",
11212 inhibit_iso_escape_detection,
11213 doc: /*
11214 If non-nil, Emacs ignores ISO-2022 escape sequences during code detection.
11215
11216 When Emacs reads text, it tries to detect how the text is encoded.
11217 This code detection is sensitive to escape sequences. If Emacs sees
11218 a valid ISO-2022 escape sequence, it assumes the text is encoded in one
11219 of the ISO2022 encodings, and decodes text by the corresponding coding
11220 system (e.g. `iso-2022-7bit').
11221
11222 However, there may be a case that you want to read escape sequences in
11223 a file as is. In such a case, you can set this variable to non-nil.
11224 Then the code detection will ignore any escape sequences, and no text is
11225 detected as encoded in some ISO-2022 encoding. The result is that all
11226 escape sequences become visible in a buffer.
11227
11228 The default value is nil, and it is strongly recommended not to change
11229 it. That is because many Emacs Lisp source files that contain
11230 non-ASCII characters are encoded by the coding system `iso-2022-7bit'
11231 in Emacs's distribution, and they won't be decoded correctly on
11232 reading if you suppress escape sequence detection.
11233
11234 The other way to read escape sequences in a file without decoding is
11235 to explicitly specify some coding system that doesn't use ISO-2022
11236 escape sequence (e.g., `latin-1') on reading by \\[universal-coding-system-argument]. */);
11237 inhibit_iso_escape_detection = 0;
11238
11239 DEFVAR_BOOL ("inhibit-null-byte-detection",
11240 inhibit_null_byte_detection,
11241 doc: /* If non-nil, Emacs ignores null bytes on code detection.
11242 By default, Emacs treats it as binary data, and does not attempt to
11243 decode it. The effect is as if you specified `no-conversion' for
11244 reading that text.
11245
11246 Set this to non-nil when a regular text happens to include null bytes.
11247 Examples are Index nodes of Info files and null-byte delimited output
11248 from GNU Find and GNU Grep. Emacs will then ignore the null bytes and
11249 decode text as usual. */);
11250 inhibit_null_byte_detection = 0;
11251
11252 DEFVAR_BOOL ("disable-ascii-optimization", disable_ascii_optimization,
11253 doc: /* If non-nil, Emacs does not optimize code decoder for ASCII files.
11254 Internal use only. Remove after the experimental optimizer becomes stable. */);
11255 disable_ascii_optimization = 0;
11256
11257 DEFVAR_LISP ("translation-table-for-input", Vtranslation_table_for_input,
11258 doc: /* Char table for translating self-inserting characters.
11259 This is applied to the result of input methods, not their input.
11260 See also `keyboard-translate-table'.
11261
11262 Use of this variable for character code unification was rendered
11263 obsolete in Emacs 23.1 and later, since Unicode is now the basis of
11264 internal character representation. */);
11265 Vtranslation_table_for_input = Qnil;
11266
11267 Lisp_Object args[coding_arg_undecided_max];
11268 memclear (args, sizeof args);
11269
11270 Lisp_Object plist[] =
11271 {
11272 QCname,
11273 args[coding_arg_name] = Qno_conversion,
11274 QCmnemonic,
11275 args[coding_arg_mnemonic] = make_number ('='),
11276 intern_c_string (":coding-type"),
11277 args[coding_arg_coding_type] = Qraw_text,
11278 QCascii_compatible_p,
11279 args[coding_arg_ascii_compatible_p] = Qt,
11280 QCdefault_char,
11281 args[coding_arg_default_char] = make_number (0),
11282 intern_c_string (":for-unibyte"),
11283 args[coding_arg_for_unibyte] = Qt,
11284 intern_c_string (":docstring"),
11285 (build_pure_c_string
11286 ("Do no conversion.\n"
11287 "\n"
11288 "When you visit a file with this coding, the file is read into a\n"
11289 "unibyte buffer as is, thus each byte of a file is treated as a\n"
11290 "character.")),
11291 intern_c_string (":eol-type"),
11292 args[coding_arg_eol_type] = Qunix,
11293 };
11294 args[coding_arg_plist] = CALLMANY (Flist, plist);
11295 Fdefine_coding_system_internal (coding_arg_max, args);
11296
11297 plist[1] = args[coding_arg_name] = Qundecided;
11298 plist[3] = args[coding_arg_mnemonic] = make_number ('-');
11299 plist[5] = args[coding_arg_coding_type] = Qundecided;
11300 /* This is already set.
11301 plist[7] = args[coding_arg_ascii_compatible_p] = Qt; */
11302 plist[8] = intern_c_string (":charset-list");
11303 plist[9] = args[coding_arg_charset_list] = Fcons (Qascii, Qnil);
11304 plist[11] = args[coding_arg_for_unibyte] = Qnil;
11305 plist[13] = build_pure_c_string ("No conversion on encoding, "
11306 "automatic conversion on decoding.");
11307 plist[15] = args[coding_arg_eol_type] = Qnil;
11308 args[coding_arg_plist] = CALLMANY (Flist, plist);
11309 args[coding_arg_undecided_inhibit_null_byte_detection] = make_number (0);
11310 args[coding_arg_undecided_inhibit_iso_escape_detection] = make_number (0);
11311 Fdefine_coding_system_internal (coding_arg_undecided_max, args);
11312
11313 setup_coding_system (Qno_conversion, &safe_terminal_coding);
11314
11315 for (int i = 0; i < coding_category_max; i++)
11316 Fset (AREF (Vcoding_category_table, i), Qno_conversion);
11317
11318 #if defined (DOS_NT)
11319 system_eol_type = Qdos;
11320 #else
11321 system_eol_type = Qunix;
11322 #endif
11323 staticpro (&system_eol_type);
11324 }
11325
11326 char *
11327 emacs_strerror (int error_number)
11328 {
11329 char *str;
11330
11331 synchronize_system_messages_locale ();
11332 str = strerror (error_number);
11333
11334 if (! NILP (Vlocale_coding_system))
11335 {
11336 Lisp_Object dec = code_convert_string_norecord (build_string (str),
11337 Vlocale_coding_system,
11338 0);
11339 str = SSDATA (dec);
11340 }
11341
11342 return str;
11343 }
11344
11345 #endif /* emacs */