(syms_of_coding) <translation-table-for-input>: Modify doc string to
[bpt/emacs.git] / src / coding.c
1 /* Coding system handler (conversion, detection, etc).
2 Copyright (C) 2001, 2002, 2003, 2004, 2005,
3 2006, 2007, 2008, 2009 Free Software Foundation, Inc.
4 Copyright (C) 1995, 1996, 1997, 1998, 1999, 2000, 2001, 2002, 2003, 2004,
5 2005, 2006, 2007, 2008, 2009
6 National Institute of Advanced Industrial Science and Technology (AIST)
7 Registration Number H14PRO021
8 Copyright (C) 2003
9 National Institute of Advanced Industrial Science and Technology (AIST)
10 Registration Number H13PRO009
11
12 This file is part of GNU Emacs.
13
14 GNU Emacs is free software: you can redistribute it and/or modify
15 it under the terms of the GNU General Public License as published by
16 the Free Software Foundation, either version 3 of the License, or
17 (at your option) any later version.
18
19 GNU Emacs is distributed in the hope that it will be useful,
20 but WITHOUT ANY WARRANTY; without even the implied warranty of
21 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
22 GNU General Public License for more details.
23
24 You should have received a copy of the GNU General Public License
25 along with GNU Emacs. If not, see <http://www.gnu.org/licenses/>. */
26
27 /*** TABLE OF CONTENTS ***
28
29 0. General comments
30 1. Preamble
31 2. Emacs' internal format (emacs-utf-8) handlers
32 3. UTF-8 handlers
33 4. UTF-16 handlers
34 5. Charset-base coding systems handlers
35 6. emacs-mule (old Emacs' internal format) handlers
36 7. ISO2022 handlers
37 8. Shift-JIS and BIG5 handlers
38 9. CCL handlers
39 10. C library functions
40 11. Emacs Lisp library functions
41 12. Postamble
42
43 */
44
45 /*** 0. General comments ***
46
47
48 CODING SYSTEM
49
50 A coding system is an object for an encoding mechanism that contains
51 information about how to convert byte sequences to character
52 sequences and vice versa. When we say "decode", it means converting
53 a byte sequence of a specific coding system into a character
54 sequence that is represented by Emacs' internal coding system
55 `emacs-utf-8', and when we say "encode", it means converting a
56 character sequence of emacs-utf-8 to a byte sequence of a specific
57 coding system.
58
59 In Emacs Lisp, a coding system is represented by a Lisp symbol. In
60 C level, a coding system is represented by a vector of attributes
61 stored in the hash table Vcharset_hash_table. The conversion from
62 coding system symbol to attributes vector is done by looking up
63 Vcharset_hash_table by the symbol.
64
65 Coding systems are classified into the following types depending on
66 the encoding mechanism. Here's a brief description of the types.
67
68 o UTF-8
69
70 o UTF-16
71
72 o Charset-base coding system
73
74 A coding system defined by one or more (coded) character sets.
75 Decoding and encoding are done by a code converter defined for each
76 character set.
77
78 o Old Emacs internal format (emacs-mule)
79
80 The coding system adopted by old versions of Emacs (20 and 21).
81
82 o ISO2022-base coding system
83
84 The most famous coding system for multiple character sets. X's
85 Compound Text, various EUCs (Extended Unix Code), and coding systems
86 used in the Internet communication such as ISO-2022-JP are all
87 variants of ISO2022.
88
89 o SJIS (or Shift-JIS or MS-Kanji-Code)
90
91 A coding system to encode character sets: ASCII, JISX0201, and
92 JISX0208. Widely used for PC's in Japan. Details are described in
93 section 8.
94
95 o BIG5
96
97 A coding system to encode character sets: ASCII and Big5. Widely
98 used for Chinese (mainly in Taiwan and Hong Kong). Details are
99 described in section 8. In this file, when we write "big5" (all
100 lowercase), we mean the coding system, and when we write "Big5"
101 (capitalized), we mean the character set.
102
103 o CCL
104
105 If a user wants to decode/encode text encoded in a coding system
106 not listed above, he can supply a decoder and an encoder for it in
107 CCL (Code Conversion Language) programs. Emacs executes the CCL
108 program while decoding/encoding.
109
110 o Raw-text
111
112 A coding system for text containing raw eight-bit data. Emacs
113 treats each byte of source text as a character (except for
114 end-of-line conversion).
115
116 o No-conversion
117
118 Like raw text, but don't do end-of-line conversion.
119
120
121 END-OF-LINE FORMAT
122
123 How text end-of-line is encoded depends on operating system. For
124 instance, Unix's format is just one byte of LF (line-feed) code,
125 whereas DOS's format is two-byte sequence of `carriage-return' and
126 `line-feed' codes. MacOS's format is usually one byte of
127 `carriage-return'.
128
129 Since text character encoding and end-of-line encoding are
130 independent, any coding system described above can take any format
131 of end-of-line (except for no-conversion).
132
133 STRUCT CODING_SYSTEM
134
135 Before using a coding system for code conversion (i.e. decoding and
136 encoding), we setup a structure of type `struct coding_system'.
137 This structure keeps various information about a specific code
138 conversion (e.g. the location of source and destination data).
139
140 */
141
142 /* COMMON MACROS */
143
144
145 /*** GENERAL NOTES on `detect_coding_XXX ()' functions ***
146
147 These functions check if a byte sequence specified as a source in
148 CODING conforms to the format of XXX, and update the members of
149 DETECT_INFO.
150
151 Return 1 if the byte sequence conforms to XXX, otherwise return 0.
152
153 Below is the template of these functions. */
154
155 #if 0
156 static int
157 detect_coding_XXX (coding, detect_info)
158 struct coding_system *coding;
159 struct coding_detection_info *detect_info;
160 {
161 const unsigned char *src = coding->source;
162 const unsigned char *src_end = coding->source + coding->src_bytes;
163 int multibytep = coding->src_multibyte;
164 int consumed_chars = 0;
165 int found = 0;
166 ...;
167
168 while (1)
169 {
170 /* Get one byte from the source. If the souce is exausted, jump
171 to no_more_source:. */
172 ONE_MORE_BYTE (c);
173
174 if (! __C_conforms_to_XXX___ (c))
175 break;
176 if (! __C_strongly_suggests_XXX__ (c))
177 found = CATEGORY_MASK_XXX;
178 }
179 /* The byte sequence is invalid for XXX. */
180 detect_info->rejected |= CATEGORY_MASK_XXX;
181 return 0;
182
183 no_more_source:
184 /* The source exausted successfully. */
185 detect_info->found |= found;
186 return 1;
187 }
188 #endif
189
190 /*** GENERAL NOTES on `decode_coding_XXX ()' functions ***
191
192 These functions decode a byte sequence specified as a source by
193 CODING. The resulting multibyte text goes to a place pointed to by
194 CODING->charbuf, the length of which should not exceed
195 CODING->charbuf_size;
196
197 These functions set the information of original and decoded texts in
198 CODING->consumed, CODING->consumed_char, and CODING->charbuf_used.
199 They also set CODING->result to one of CODING_RESULT_XXX indicating
200 how the decoding is finished.
201
202 Below is the template of these functions. */
203
204 #if 0
205 static void
206 decode_coding_XXXX (coding)
207 struct coding_system *coding;
208 {
209 const unsigned char *src = coding->source + coding->consumed;
210 const unsigned char *src_end = coding->source + coding->src_bytes;
211 /* SRC_BASE remembers the start position in source in each loop.
212 The loop will be exited when there's not enough source code, or
213 when there's no room in CHARBUF for a decoded character. */
214 const unsigned char *src_base;
215 /* A buffer to produce decoded characters. */
216 int *charbuf = coding->charbuf + coding->charbuf_used;
217 int *charbuf_end = coding->charbuf + coding->charbuf_size;
218 int multibytep = coding->src_multibyte;
219
220 while (1)
221 {
222 src_base = src;
223 if (charbuf < charbuf_end)
224 /* No more room to produce a decoded character. */
225 break;
226 ONE_MORE_BYTE (c);
227 /* Decode it. */
228 }
229
230 no_more_source:
231 if (src_base < src_end
232 && coding->mode & CODING_MODE_LAST_BLOCK)
233 /* If the source ends by partial bytes to construct a character,
234 treat them as eight-bit raw data. */
235 while (src_base < src_end && charbuf < charbuf_end)
236 *charbuf++ = *src_base++;
237 /* Remember how many bytes and characters we consumed. If the
238 source is multibyte, the bytes and chars are not identical. */
239 coding->consumed = coding->consumed_char = src_base - coding->source;
240 /* Remember how many characters we produced. */
241 coding->charbuf_used = charbuf - coding->charbuf;
242 }
243 #endif
244
245 /*** GENERAL NOTES on `encode_coding_XXX ()' functions ***
246
247 These functions encode SRC_BYTES length text at SOURCE of Emacs'
248 internal multibyte format by CODING. The resulting byte sequence
249 goes to a place pointed to by DESTINATION, the length of which
250 should not exceed DST_BYTES.
251
252 These functions set the information of original and encoded texts in
253 the members produced, produced_char, consumed, and consumed_char of
254 the structure *CODING. They also set the member result to one of
255 CODING_RESULT_XXX indicating how the encoding finished.
256
257 DST_BYTES zero means that source area and destination area are
258 overlapped, which means that we can produce a encoded text until it
259 reaches at the head of not-yet-encoded source text.
260
261 Below is a template of these functions. */
262 #if 0
263 static void
264 encode_coding_XXX (coding)
265 struct coding_system *coding;
266 {
267 int multibytep = coding->dst_multibyte;
268 int *charbuf = coding->charbuf;
269 int *charbuf_end = charbuf->charbuf + coding->charbuf_used;
270 unsigned char *dst = coding->destination + coding->produced;
271 unsigned char *dst_end = coding->destination + coding->dst_bytes;
272 unsigned char *adjusted_dst_end = dst_end - _MAX_BYTES_PRODUCED_IN_LOOP_;
273 int produced_chars = 0;
274
275 for (; charbuf < charbuf_end && dst < adjusted_dst_end; charbuf++)
276 {
277 int c = *charbuf;
278 /* Encode C into DST, and increment DST. */
279 }
280 label_no_more_destination:
281 /* How many chars and bytes we produced. */
282 coding->produced_char += produced_chars;
283 coding->produced = dst - coding->destination;
284 }
285 #endif
286
287 \f
288 /*** 1. Preamble ***/
289
290 #include <config.h>
291 #include <stdio.h>
292
293 #include "lisp.h"
294 #include "buffer.h"
295 #include "character.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 Lisp_Object Qcoding_system, Qcoding_aliases, Qeol_type;
307 Lisp_Object Qunix, Qdos;
308 extern Lisp_Object Qmac; /* frame.c */
309 Lisp_Object Qbuffer_file_coding_system;
310 Lisp_Object Qpost_read_conversion, Qpre_write_conversion;
311 Lisp_Object Qdefault_char;
312 Lisp_Object Qno_conversion, Qundecided;
313 Lisp_Object Qcharset, Qiso_2022, Qutf_8, Qutf_16, Qshift_jis, Qbig5;
314 Lisp_Object Qbig, Qlittle;
315 Lisp_Object Qcoding_system_history;
316 Lisp_Object Qvalid_codes;
317 Lisp_Object QCcategory, QCmnemonic, QCdefault_char;
318 Lisp_Object QCdecode_translation_table, QCencode_translation_table;
319 Lisp_Object QCpost_read_conversion, QCpre_write_conversion;
320 Lisp_Object QCascii_compatible_p;
321
322 extern Lisp_Object Qinsert_file_contents, Qwrite_region;
323 Lisp_Object Qcall_process, Qcall_process_region;
324 Lisp_Object Qstart_process, Qopen_network_stream;
325 Lisp_Object Qtarget_idx;
326
327 Lisp_Object Qinsufficient_source, Qinconsistent_eol, Qinvalid_source;
328 Lisp_Object Qinterrupted, Qinsufficient_memory;
329
330 extern Lisp_Object Qcompletion_ignore_case;
331
332 /* If a symbol has this property, evaluate the value to define the
333 symbol as a coding system. */
334 static Lisp_Object Qcoding_system_define_form;
335
336 int coding_system_require_warning;
337
338 Lisp_Object Vselect_safe_coding_system_function;
339
340 /* Mnemonic string for each format of end-of-line. */
341 Lisp_Object eol_mnemonic_unix, eol_mnemonic_dos, eol_mnemonic_mac;
342 /* Mnemonic string to indicate format of end-of-line is not yet
343 decided. */
344 Lisp_Object eol_mnemonic_undecided;
345
346 /* Format of end-of-line decided by system. This is Qunix on
347 Unix and Mac, Qdos on DOS/Windows.
348 This has an effect only for external encoding (i.e. for output to
349 file and process), not for in-buffer or Lisp string encoding. */
350 static Lisp_Object system_eol_type;
351
352 #ifdef emacs
353
354 Lisp_Object Vcoding_system_list, Vcoding_system_alist;
355
356 Lisp_Object Qcoding_system_p, Qcoding_system_error;
357
358 /* Coding system emacs-mule and raw-text are for converting only
359 end-of-line format. */
360 Lisp_Object Qemacs_mule, Qraw_text;
361 Lisp_Object Qutf_8_emacs;
362
363 /* Coding-systems are handed between Emacs Lisp programs and C internal
364 routines by the following three variables. */
365 /* Coding-system for reading files and receiving data from process. */
366 Lisp_Object Vcoding_system_for_read;
367 /* Coding-system for writing files and sending data to process. */
368 Lisp_Object Vcoding_system_for_write;
369 /* Coding-system actually used in the latest I/O. */
370 Lisp_Object Vlast_coding_system_used;
371 /* Set to non-nil when an error is detected while code conversion. */
372 Lisp_Object Vlast_code_conversion_error;
373 /* A vector of length 256 which contains information about special
374 Latin codes (especially for dealing with Microsoft codes). */
375 Lisp_Object Vlatin_extra_code_table;
376
377 /* Flag to inhibit code conversion of end-of-line format. */
378 int inhibit_eol_conversion;
379
380 /* Flag to inhibit ISO2022 escape sequence detection. */
381 int inhibit_iso_escape_detection;
382
383 /* Flag to inhibit detection of binary files through null bytes. */
384 int inhibit_null_byte_detection;
385
386 /* Flag to make buffer-file-coding-system inherit from process-coding. */
387 int inherit_process_coding_system;
388
389 /* Coding system to be used to encode text for terminal display when
390 terminal coding system is nil. */
391 struct coding_system safe_terminal_coding;
392
393 Lisp_Object Vfile_coding_system_alist;
394 Lisp_Object Vprocess_coding_system_alist;
395 Lisp_Object Vnetwork_coding_system_alist;
396
397 Lisp_Object Vlocale_coding_system;
398
399 #endif /* emacs */
400
401 /* Flag to tell if we look up translation table on character code
402 conversion. */
403 Lisp_Object Venable_character_translation;
404 /* Standard translation table to look up on decoding (reading). */
405 Lisp_Object Vstandard_translation_table_for_decode;
406 /* Standard translation table to look up on encoding (writing). */
407 Lisp_Object Vstandard_translation_table_for_encode;
408
409 Lisp_Object Qtranslation_table;
410 Lisp_Object Qtranslation_table_id;
411 Lisp_Object Qtranslation_table_for_decode;
412 Lisp_Object Qtranslation_table_for_encode;
413
414 /* Alist of charsets vs revision number. */
415 static Lisp_Object Vcharset_revision_table;
416
417 /* Default coding systems used for process I/O. */
418 Lisp_Object Vdefault_process_coding_system;
419
420 /* Char table for translating Quail and self-inserting input. */
421 Lisp_Object Vtranslation_table_for_input;
422
423 /* Two special coding systems. */
424 Lisp_Object Vsjis_coding_system;
425 Lisp_Object Vbig5_coding_system;
426
427 /* ISO2022 section */
428
429 #define CODING_ISO_INITIAL(coding, reg) \
430 (XINT (AREF (AREF (CODING_ID_ATTRS ((coding)->id), \
431 coding_attr_iso_initial), \
432 reg)))
433
434
435 #define CODING_ISO_REQUEST(coding, charset_id) \
436 ((charset_id <= (coding)->max_charset_id \
437 ? (coding)->safe_charsets[charset_id] \
438 : -1))
439
440
441 #define CODING_ISO_FLAGS(coding) \
442 ((coding)->spec.iso_2022.flags)
443 #define CODING_ISO_DESIGNATION(coding, reg) \
444 ((coding)->spec.iso_2022.current_designation[reg])
445 #define CODING_ISO_INVOCATION(coding, plane) \
446 ((coding)->spec.iso_2022.current_invocation[plane])
447 #define CODING_ISO_SINGLE_SHIFTING(coding) \
448 ((coding)->spec.iso_2022.single_shifting)
449 #define CODING_ISO_BOL(coding) \
450 ((coding)->spec.iso_2022.bol)
451 #define CODING_ISO_INVOKED_CHARSET(coding, plane) \
452 CODING_ISO_DESIGNATION ((coding), CODING_ISO_INVOCATION ((coding), (plane)))
453
454 /* Control characters of ISO2022. */
455 /* code */ /* function */
456 #define ISO_CODE_LF 0x0A /* line-feed */
457 #define ISO_CODE_CR 0x0D /* carriage-return */
458 #define ISO_CODE_SO 0x0E /* shift-out */
459 #define ISO_CODE_SI 0x0F /* shift-in */
460 #define ISO_CODE_SS2_7 0x19 /* single-shift-2 for 7-bit code */
461 #define ISO_CODE_ESC 0x1B /* escape */
462 #define ISO_CODE_SS2 0x8E /* single-shift-2 */
463 #define ISO_CODE_SS3 0x8F /* single-shift-3 */
464 #define ISO_CODE_CSI 0x9B /* control-sequence-introducer */
465
466 /* All code (1-byte) of ISO2022 is classified into one of the
467 followings. */
468 enum iso_code_class_type
469 {
470 ISO_control_0, /* Control codes in the range
471 0x00..0x1F and 0x7F, except for the
472 following 5 codes. */
473 ISO_shift_out, /* ISO_CODE_SO (0x0E) */
474 ISO_shift_in, /* ISO_CODE_SI (0x0F) */
475 ISO_single_shift_2_7, /* ISO_CODE_SS2_7 (0x19) */
476 ISO_escape, /* ISO_CODE_SO (0x1B) */
477 ISO_control_1, /* Control codes in the range
478 0x80..0x9F, except for the
479 following 3 codes. */
480 ISO_single_shift_2, /* ISO_CODE_SS2 (0x8E) */
481 ISO_single_shift_3, /* ISO_CODE_SS3 (0x8F) */
482 ISO_control_sequence_introducer, /* ISO_CODE_CSI (0x9B) */
483 ISO_0x20_or_0x7F, /* Codes of the values 0x20 or 0x7F. */
484 ISO_graphic_plane_0, /* Graphic codes in the range 0x21..0x7E. */
485 ISO_0xA0_or_0xFF, /* Codes of the values 0xA0 or 0xFF. */
486 ISO_graphic_plane_1 /* Graphic codes in the range 0xA1..0xFE. */
487 };
488
489 /** The macros CODING_ISO_FLAG_XXX defines a flag bit of the
490 `iso-flags' attribute of an iso2022 coding system. */
491
492 /* If set, produce long-form designation sequence (e.g. ESC $ ( A)
493 instead of the correct short-form sequence (e.g. ESC $ A). */
494 #define CODING_ISO_FLAG_LONG_FORM 0x0001
495
496 /* If set, reset graphic planes and registers at end-of-line to the
497 initial state. */
498 #define CODING_ISO_FLAG_RESET_AT_EOL 0x0002
499
500 /* If set, reset graphic planes and registers before any control
501 characters to the initial state. */
502 #define CODING_ISO_FLAG_RESET_AT_CNTL 0x0004
503
504 /* If set, encode by 7-bit environment. */
505 #define CODING_ISO_FLAG_SEVEN_BITS 0x0008
506
507 /* If set, use locking-shift function. */
508 #define CODING_ISO_FLAG_LOCKING_SHIFT 0x0010
509
510 /* If set, use single-shift function. Overwrite
511 CODING_ISO_FLAG_LOCKING_SHIFT. */
512 #define CODING_ISO_FLAG_SINGLE_SHIFT 0x0020
513
514 /* If set, use designation escape sequence. */
515 #define CODING_ISO_FLAG_DESIGNATION 0x0040
516
517 /* If set, produce revision number sequence. */
518 #define CODING_ISO_FLAG_REVISION 0x0080
519
520 /* If set, produce ISO6429's direction specifying sequence. */
521 #define CODING_ISO_FLAG_DIRECTION 0x0100
522
523 /* If set, assume designation states are reset at beginning of line on
524 output. */
525 #define CODING_ISO_FLAG_INIT_AT_BOL 0x0200
526
527 /* If set, designation sequence should be placed at beginning of line
528 on output. */
529 #define CODING_ISO_FLAG_DESIGNATE_AT_BOL 0x0400
530
531 /* If set, do not encode unsafe charactes on output. */
532 #define CODING_ISO_FLAG_SAFE 0x0800
533
534 /* If set, extra latin codes (128..159) are accepted as a valid code
535 on input. */
536 #define CODING_ISO_FLAG_LATIN_EXTRA 0x1000
537
538 #define CODING_ISO_FLAG_COMPOSITION 0x2000
539
540 #define CODING_ISO_FLAG_EUC_TW_SHIFT 0x4000
541
542 #define CODING_ISO_FLAG_USE_ROMAN 0x8000
543
544 #define CODING_ISO_FLAG_USE_OLDJIS 0x10000
545
546 #define CODING_ISO_FLAG_FULL_SUPPORT 0x100000
547
548 /* A character to be produced on output if encoding of the original
549 character is prohibited by CODING_ISO_FLAG_SAFE. */
550 #define CODING_INHIBIT_CHARACTER_SUBSTITUTION '?'
551
552 /* UTF-8 section */
553 #define CODING_UTF_8_BOM(coding) \
554 ((coding)->spec.utf_8_bom)
555
556 /* UTF-16 section */
557 #define CODING_UTF_16_BOM(coding) \
558 ((coding)->spec.utf_16.bom)
559
560 #define CODING_UTF_16_ENDIAN(coding) \
561 ((coding)->spec.utf_16.endian)
562
563 #define CODING_UTF_16_SURROGATE(coding) \
564 ((coding)->spec.utf_16.surrogate)
565
566
567 /* CCL section */
568 #define CODING_CCL_DECODER(coding) \
569 AREF (CODING_ID_ATTRS ((coding)->id), coding_attr_ccl_decoder)
570 #define CODING_CCL_ENCODER(coding) \
571 AREF (CODING_ID_ATTRS ((coding)->id), coding_attr_ccl_encoder)
572 #define CODING_CCL_VALIDS(coding) \
573 (SDATA (AREF (CODING_ID_ATTRS ((coding)->id), coding_attr_ccl_valids)))
574
575 /* Index for each coding category in `coding_categories' */
576
577 enum coding_category
578 {
579 coding_category_iso_7,
580 coding_category_iso_7_tight,
581 coding_category_iso_8_1,
582 coding_category_iso_8_2,
583 coding_category_iso_7_else,
584 coding_category_iso_8_else,
585 coding_category_utf_8_auto,
586 coding_category_utf_8_nosig,
587 coding_category_utf_8_sig,
588 coding_category_utf_16_auto,
589 coding_category_utf_16_be,
590 coding_category_utf_16_le,
591 coding_category_utf_16_be_nosig,
592 coding_category_utf_16_le_nosig,
593 coding_category_charset,
594 coding_category_sjis,
595 coding_category_big5,
596 coding_category_ccl,
597 coding_category_emacs_mule,
598 /* All above are targets of code detection. */
599 coding_category_raw_text,
600 coding_category_undecided,
601 coding_category_max
602 };
603
604 /* Definitions of flag bits used in detect_coding_XXXX. */
605 #define CATEGORY_MASK_ISO_7 (1 << coding_category_iso_7)
606 #define CATEGORY_MASK_ISO_7_TIGHT (1 << coding_category_iso_7_tight)
607 #define CATEGORY_MASK_ISO_8_1 (1 << coding_category_iso_8_1)
608 #define CATEGORY_MASK_ISO_8_2 (1 << coding_category_iso_8_2)
609 #define CATEGORY_MASK_ISO_7_ELSE (1 << coding_category_iso_7_else)
610 #define CATEGORY_MASK_ISO_8_ELSE (1 << coding_category_iso_8_else)
611 #define CATEGORY_MASK_UTF_8_AUTO (1 << coding_category_utf_8_auto)
612 #define CATEGORY_MASK_UTF_8_NOSIG (1 << coding_category_utf_8_nosig)
613 #define CATEGORY_MASK_UTF_8_SIG (1 << coding_category_utf_8_sig)
614 #define CATEGORY_MASK_UTF_16_AUTO (1 << coding_category_utf_16_auto)
615 #define CATEGORY_MASK_UTF_16_BE (1 << coding_category_utf_16_be)
616 #define CATEGORY_MASK_UTF_16_LE (1 << coding_category_utf_16_le)
617 #define CATEGORY_MASK_UTF_16_BE_NOSIG (1 << coding_category_utf_16_be_nosig)
618 #define CATEGORY_MASK_UTF_16_LE_NOSIG (1 << coding_category_utf_16_le_nosig)
619 #define CATEGORY_MASK_CHARSET (1 << coding_category_charset)
620 #define CATEGORY_MASK_SJIS (1 << coding_category_sjis)
621 #define CATEGORY_MASK_BIG5 (1 << coding_category_big5)
622 #define CATEGORY_MASK_CCL (1 << coding_category_ccl)
623 #define CATEGORY_MASK_EMACS_MULE (1 << coding_category_emacs_mule)
624 #define CATEGORY_MASK_RAW_TEXT (1 << coding_category_raw_text)
625
626 /* This value is returned if detect_coding_mask () find nothing other
627 than ASCII characters. */
628 #define CATEGORY_MASK_ANY \
629 (CATEGORY_MASK_ISO_7 \
630 | CATEGORY_MASK_ISO_7_TIGHT \
631 | CATEGORY_MASK_ISO_8_1 \
632 | CATEGORY_MASK_ISO_8_2 \
633 | CATEGORY_MASK_ISO_7_ELSE \
634 | CATEGORY_MASK_ISO_8_ELSE \
635 | CATEGORY_MASK_UTF_8_AUTO \
636 | CATEGORY_MASK_UTF_8_NOSIG \
637 | CATEGORY_MASK_UTF_8_SIG \
638 | CATEGORY_MASK_UTF_16_AUTO \
639 | CATEGORY_MASK_UTF_16_BE \
640 | CATEGORY_MASK_UTF_16_LE \
641 | CATEGORY_MASK_UTF_16_BE_NOSIG \
642 | CATEGORY_MASK_UTF_16_LE_NOSIG \
643 | CATEGORY_MASK_CHARSET \
644 | CATEGORY_MASK_SJIS \
645 | CATEGORY_MASK_BIG5 \
646 | CATEGORY_MASK_CCL \
647 | CATEGORY_MASK_EMACS_MULE)
648
649
650 #define CATEGORY_MASK_ISO_7BIT \
651 (CATEGORY_MASK_ISO_7 | CATEGORY_MASK_ISO_7_TIGHT)
652
653 #define CATEGORY_MASK_ISO_8BIT \
654 (CATEGORY_MASK_ISO_8_1 | CATEGORY_MASK_ISO_8_2)
655
656 #define CATEGORY_MASK_ISO_ELSE \
657 (CATEGORY_MASK_ISO_7_ELSE | CATEGORY_MASK_ISO_8_ELSE)
658
659 #define CATEGORY_MASK_ISO_ESCAPE \
660 (CATEGORY_MASK_ISO_7 \
661 | CATEGORY_MASK_ISO_7_TIGHT \
662 | CATEGORY_MASK_ISO_7_ELSE \
663 | CATEGORY_MASK_ISO_8_ELSE)
664
665 #define CATEGORY_MASK_ISO \
666 ( CATEGORY_MASK_ISO_7BIT \
667 | CATEGORY_MASK_ISO_8BIT \
668 | CATEGORY_MASK_ISO_ELSE)
669
670 #define CATEGORY_MASK_UTF_16 \
671 (CATEGORY_MASK_UTF_16_AUTO \
672 | CATEGORY_MASK_UTF_16_BE \
673 | CATEGORY_MASK_UTF_16_LE \
674 | CATEGORY_MASK_UTF_16_BE_NOSIG \
675 | CATEGORY_MASK_UTF_16_LE_NOSIG)
676
677 #define CATEGORY_MASK_UTF_8 \
678 (CATEGORY_MASK_UTF_8_AUTO \
679 | CATEGORY_MASK_UTF_8_NOSIG \
680 | CATEGORY_MASK_UTF_8_SIG)
681
682 /* List of symbols `coding-category-xxx' ordered by priority. This
683 variable is exposed to Emacs Lisp. */
684 static Lisp_Object Vcoding_category_list;
685
686 /* Table of coding categories (Lisp symbols). This variable is for
687 internal use oly. */
688 static Lisp_Object Vcoding_category_table;
689
690 /* Table of coding-categories ordered by priority. */
691 static enum coding_category coding_priorities[coding_category_max];
692
693 /* Nth element is a coding context for the coding system bound to the
694 Nth coding category. */
695 static struct coding_system coding_categories[coding_category_max];
696
697 /*** Commonly used macros and functions ***/
698
699 #ifndef min
700 #define min(a, b) ((a) < (b) ? (a) : (b))
701 #endif
702 #ifndef max
703 #define max(a, b) ((a) > (b) ? (a) : (b))
704 #endif
705
706 #define CODING_GET_INFO(coding, attrs, charset_list) \
707 do { \
708 (attrs) = CODING_ID_ATTRS ((coding)->id); \
709 (charset_list) = CODING_ATTR_CHARSET_LIST (attrs); \
710 } while (0)
711
712
713 /* Safely get one byte from the source text pointed by SRC which ends
714 at SRC_END, and set C to that byte. If there are not enough bytes
715 in the source, it jumps to `no_more_source'. If multibytep is
716 nonzero, and a multibyte character is found at SRC, set C to the
717 negative value of the character code. The caller should declare
718 and set these variables appropriately in advance:
719 src, src_end, multibytep */
720
721 #define ONE_MORE_BYTE(c) \
722 do { \
723 if (src == src_end) \
724 { \
725 if (src_base < src) \
726 record_conversion_result \
727 (coding, CODING_RESULT_INSUFFICIENT_SRC); \
728 goto no_more_source; \
729 } \
730 c = *src++; \
731 if (multibytep && (c & 0x80)) \
732 { \
733 if ((c & 0xFE) == 0xC0) \
734 c = ((c & 1) << 6) | *src++; \
735 else \
736 { \
737 src--; \
738 c = - string_char (src, &src, NULL); \
739 record_conversion_result \
740 (coding, CODING_RESULT_INVALID_SRC); \
741 } \
742 } \
743 consumed_chars++; \
744 } while (0)
745
746 /* Safely get two bytes from the source text pointed by SRC which ends
747 at SRC_END, and set C1 and C2 to those bytes while skipping the
748 heading multibyte characters. If there are not enough bytes in the
749 source, it jumps to `no_more_source'. If multibytep is nonzero and
750 a multibyte character is found for C2, set C2 to the negative value
751 of the character code. The caller should declare and set these
752 variables appropriately in advance:
753 src, src_end, multibytep
754 It is intended that this macro is used in detect_coding_utf_16. */
755
756 #define TWO_MORE_BYTES(c1, c2) \
757 do { \
758 do { \
759 if (src == src_end) \
760 goto no_more_source; \
761 c1 = *src++; \
762 if (multibytep && (c1 & 0x80)) \
763 { \
764 if ((c1 & 0xFE) == 0xC0) \
765 c1 = ((c1 & 1) << 6) | *src++; \
766 else \
767 { \
768 src += BYTES_BY_CHAR_HEAD (c1) - 1; \
769 c1 = -1; \
770 } \
771 } \
772 } while (c1 < 0); \
773 if (src == src_end) \
774 goto no_more_source; \
775 c2 = *src++; \
776 if (multibytep && (c2 & 0x80)) \
777 { \
778 if ((c2 & 0xFE) == 0xC0) \
779 c2 = ((c2 & 1) << 6) | *src++; \
780 else \
781 c2 = -1; \
782 } \
783 } while (0)
784
785
786 #define ONE_MORE_BYTE_NO_CHECK(c) \
787 do { \
788 c = *src++; \
789 if (multibytep && (c & 0x80)) \
790 { \
791 if ((c & 0xFE) == 0xC0) \
792 c = ((c & 1) << 6) | *src++; \
793 else \
794 { \
795 src--; \
796 c = - string_char (src, &src, NULL); \
797 record_conversion_result \
798 (coding, CODING_RESULT_INVALID_SRC); \
799 } \
800 } \
801 consumed_chars++; \
802 } while (0)
803
804
805 /* Store a byte C in the place pointed by DST and increment DST to the
806 next free point, and increment PRODUCED_CHARS. The caller should
807 assure that C is 0..127, and declare and set the variable `dst'
808 appropriately in advance.
809 */
810
811
812 #define EMIT_ONE_ASCII_BYTE(c) \
813 do { \
814 produced_chars++; \
815 *dst++ = (c); \
816 } while (0)
817
818
819 /* Like EMIT_ONE_ASCII_BYTE byt store two bytes; C1 and C2. */
820
821 #define EMIT_TWO_ASCII_BYTES(c1, c2) \
822 do { \
823 produced_chars += 2; \
824 *dst++ = (c1), *dst++ = (c2); \
825 } while (0)
826
827
828 /* Store a byte C in the place pointed by DST and increment DST to the
829 next free point, and increment PRODUCED_CHARS. If MULTIBYTEP is
830 nonzero, store in an appropriate multibyte from. The caller should
831 declare and set the variables `dst' and `multibytep' appropriately
832 in advance. */
833
834 #define EMIT_ONE_BYTE(c) \
835 do { \
836 produced_chars++; \
837 if (multibytep) \
838 { \
839 int ch = (c); \
840 if (ch >= 0x80) \
841 ch = BYTE8_TO_CHAR (ch); \
842 CHAR_STRING_ADVANCE (ch, dst); \
843 } \
844 else \
845 *dst++ = (c); \
846 } while (0)
847
848
849 /* Like EMIT_ONE_BYTE, but emit two bytes; C1 and C2. */
850
851 #define EMIT_TWO_BYTES(c1, c2) \
852 do { \
853 produced_chars += 2; \
854 if (multibytep) \
855 { \
856 int ch; \
857 \
858 ch = (c1); \
859 if (ch >= 0x80) \
860 ch = BYTE8_TO_CHAR (ch); \
861 CHAR_STRING_ADVANCE (ch, dst); \
862 ch = (c2); \
863 if (ch >= 0x80) \
864 ch = BYTE8_TO_CHAR (ch); \
865 CHAR_STRING_ADVANCE (ch, dst); \
866 } \
867 else \
868 { \
869 *dst++ = (c1); \
870 *dst++ = (c2); \
871 } \
872 } while (0)
873
874
875 #define EMIT_THREE_BYTES(c1, c2, c3) \
876 do { \
877 EMIT_ONE_BYTE (c1); \
878 EMIT_TWO_BYTES (c2, c3); \
879 } while (0)
880
881
882 #define EMIT_FOUR_BYTES(c1, c2, c3, c4) \
883 do { \
884 EMIT_TWO_BYTES (c1, c2); \
885 EMIT_TWO_BYTES (c3, c4); \
886 } while (0)
887
888
889 /* Prototypes for static functions. */
890 static void record_conversion_result P_ ((struct coding_system *coding,
891 enum coding_result_code result));
892 static int detect_coding_utf_8 P_ ((struct coding_system *,
893 struct coding_detection_info *info));
894 static void decode_coding_utf_8 P_ ((struct coding_system *));
895 static int encode_coding_utf_8 P_ ((struct coding_system *));
896
897 static int detect_coding_utf_16 P_ ((struct coding_system *,
898 struct coding_detection_info *info));
899 static void decode_coding_utf_16 P_ ((struct coding_system *));
900 static int encode_coding_utf_16 P_ ((struct coding_system *));
901
902 static int detect_coding_iso_2022 P_ ((struct coding_system *,
903 struct coding_detection_info *info));
904 static void decode_coding_iso_2022 P_ ((struct coding_system *));
905 static int encode_coding_iso_2022 P_ ((struct coding_system *));
906
907 static int detect_coding_emacs_mule P_ ((struct coding_system *,
908 struct coding_detection_info *info));
909 static void decode_coding_emacs_mule P_ ((struct coding_system *));
910 static int encode_coding_emacs_mule P_ ((struct coding_system *));
911
912 static int detect_coding_sjis P_ ((struct coding_system *,
913 struct coding_detection_info *info));
914 static void decode_coding_sjis P_ ((struct coding_system *));
915 static int encode_coding_sjis P_ ((struct coding_system *));
916
917 static int detect_coding_big5 P_ ((struct coding_system *,
918 struct coding_detection_info *info));
919 static void decode_coding_big5 P_ ((struct coding_system *));
920 static int encode_coding_big5 P_ ((struct coding_system *));
921
922 static int detect_coding_ccl P_ ((struct coding_system *,
923 struct coding_detection_info *info));
924 static void decode_coding_ccl P_ ((struct coding_system *));
925 static int encode_coding_ccl P_ ((struct coding_system *));
926
927 static void decode_coding_raw_text P_ ((struct coding_system *));
928 static int encode_coding_raw_text P_ ((struct coding_system *));
929
930 static void coding_set_source P_ ((struct coding_system *));
931 static void coding_set_destination P_ ((struct coding_system *));
932 static void coding_alloc_by_realloc P_ ((struct coding_system *, EMACS_INT));
933 static void coding_alloc_by_making_gap P_ ((struct coding_system *,
934 EMACS_INT, EMACS_INT));
935 static unsigned char *alloc_destination P_ ((struct coding_system *,
936 EMACS_INT, unsigned char *));
937 static void setup_iso_safe_charsets P_ ((Lisp_Object));
938 static unsigned char *encode_designation_at_bol P_ ((struct coding_system *,
939 int *, int *,
940 unsigned char *));
941 static int detect_eol P_ ((const unsigned char *,
942 EMACS_INT, enum coding_category));
943 static Lisp_Object adjust_coding_eol_type P_ ((struct coding_system *, int));
944 static void decode_eol P_ ((struct coding_system *));
945 static Lisp_Object get_translation_table P_ ((Lisp_Object, int, int *));
946 static Lisp_Object get_translation P_ ((Lisp_Object, int *, int *,
947 int, int *, int *));
948 static int produce_chars P_ ((struct coding_system *, Lisp_Object, int));
949 static INLINE void produce_composition P_ ((struct coding_system *, int *,
950 EMACS_INT));
951 static INLINE void produce_charset P_ ((struct coding_system *, int *,
952 EMACS_INT));
953 static void produce_annotation P_ ((struct coding_system *, EMACS_INT));
954 static int decode_coding P_ ((struct coding_system *));
955 static INLINE int *handle_composition_annotation P_ ((EMACS_INT, EMACS_INT,
956 struct coding_system *,
957 int *, EMACS_INT *));
958 static INLINE int *handle_charset_annotation P_ ((EMACS_INT, EMACS_INT,
959 struct coding_system *,
960 int *, EMACS_INT *));
961 static void consume_chars P_ ((struct coding_system *, Lisp_Object, int));
962 static int encode_coding P_ ((struct coding_system *));
963 static Lisp_Object make_conversion_work_buffer P_ ((int));
964 static Lisp_Object code_conversion_restore P_ ((Lisp_Object));
965 static INLINE int char_encodable_p P_ ((int, Lisp_Object));
966 static Lisp_Object make_subsidiaries P_ ((Lisp_Object));
967
968 static void
969 record_conversion_result (struct coding_system *coding,
970 enum coding_result_code result)
971 {
972 coding->result = result;
973 switch (result)
974 {
975 case CODING_RESULT_INSUFFICIENT_SRC:
976 Vlast_code_conversion_error = Qinsufficient_source;
977 break;
978 case CODING_RESULT_INCONSISTENT_EOL:
979 Vlast_code_conversion_error = Qinconsistent_eol;
980 break;
981 case CODING_RESULT_INVALID_SRC:
982 Vlast_code_conversion_error = Qinvalid_source;
983 break;
984 case CODING_RESULT_INTERRUPT:
985 Vlast_code_conversion_error = Qinterrupted;
986 break;
987 case CODING_RESULT_INSUFFICIENT_MEM:
988 Vlast_code_conversion_error = Qinsufficient_memory;
989 break;
990 default:
991 Vlast_code_conversion_error = intern ("Unknown error");
992 }
993 }
994
995 #define CODING_DECODE_CHAR(coding, src, src_base, src_end, charset, code, c) \
996 do { \
997 charset_map_loaded = 0; \
998 c = DECODE_CHAR (charset, code); \
999 if (charset_map_loaded) \
1000 { \
1001 const unsigned char *orig = coding->source; \
1002 EMACS_INT offset; \
1003 \
1004 coding_set_source (coding); \
1005 offset = coding->source - orig; \
1006 src += offset; \
1007 src_base += offset; \
1008 src_end += offset; \
1009 } \
1010 } while (0)
1011
1012
1013 /* If there are at least BYTES length of room at dst, allocate memory
1014 for coding->destination and update dst and dst_end. We don't have
1015 to take care of coding->source which will be relocated. It is
1016 handled by calling coding_set_source in encode_coding. */
1017
1018 #define ASSURE_DESTINATION(bytes) \
1019 do { \
1020 if (dst + (bytes) >= dst_end) \
1021 { \
1022 int more_bytes = charbuf_end - charbuf + (bytes); \
1023 \
1024 dst = alloc_destination (coding, more_bytes, dst); \
1025 dst_end = coding->destination + coding->dst_bytes; \
1026 } \
1027 } while (0)
1028
1029
1030 /* Store multibyte form of the character C in P, and advance P to the
1031 end of the multibyte form. This is like CHAR_STRING_ADVANCE but it
1032 never calls MAYBE_UNIFY_CHAR. */
1033
1034 #define CHAR_STRING_ADVANCE_NO_UNIFY(c, p) \
1035 do { \
1036 if ((c) <= MAX_1_BYTE_CHAR) \
1037 *(p)++ = (c); \
1038 else if ((c) <= MAX_2_BYTE_CHAR) \
1039 *(p)++ = (0xC0 | ((c) >> 6)), \
1040 *(p)++ = (0x80 | ((c) & 0x3F)); \
1041 else if ((c) <= MAX_3_BYTE_CHAR) \
1042 *(p)++ = (0xE0 | ((c) >> 12)), \
1043 *(p)++ = (0x80 | (((c) >> 6) & 0x3F)), \
1044 *(p)++ = (0x80 | ((c) & 0x3F)); \
1045 else if ((c) <= MAX_4_BYTE_CHAR) \
1046 *(p)++ = (0xF0 | (c >> 18)), \
1047 *(p)++ = (0x80 | ((c >> 12) & 0x3F)), \
1048 *(p)++ = (0x80 | ((c >> 6) & 0x3F)), \
1049 *(p)++ = (0x80 | (c & 0x3F)); \
1050 else if ((c) <= MAX_5_BYTE_CHAR) \
1051 *(p)++ = 0xF8, \
1052 *(p)++ = (0x80 | ((c >> 18) & 0x0F)), \
1053 *(p)++ = (0x80 | ((c >> 12) & 0x3F)), \
1054 *(p)++ = (0x80 | ((c >> 6) & 0x3F)), \
1055 *(p)++ = (0x80 | (c & 0x3F)); \
1056 else \
1057 (p) += BYTE8_STRING ((c) - 0x3FFF80, p); \
1058 } while (0)
1059
1060
1061 /* Return the character code of character whose multibyte form is at
1062 P, and advance P to the end of the multibyte form. This is like
1063 STRING_CHAR_ADVANCE, but it never calls MAYBE_UNIFY_CHAR. */
1064
1065 #define STRING_CHAR_ADVANCE_NO_UNIFY(p) \
1066 (!((p)[0] & 0x80) \
1067 ? *(p)++ \
1068 : ! ((p)[0] & 0x20) \
1069 ? ((p) += 2, \
1070 ((((p)[-2] & 0x1F) << 6) \
1071 | ((p)[-1] & 0x3F) \
1072 | ((unsigned char) ((p)[-2]) < 0xC2 ? 0x3FFF80 : 0))) \
1073 : ! ((p)[0] & 0x10) \
1074 ? ((p) += 3, \
1075 ((((p)[-3] & 0x0F) << 12) \
1076 | (((p)[-2] & 0x3F) << 6) \
1077 | ((p)[-1] & 0x3F))) \
1078 : ! ((p)[0] & 0x08) \
1079 ? ((p) += 4, \
1080 ((((p)[-4] & 0xF) << 18) \
1081 | (((p)[-3] & 0x3F) << 12) \
1082 | (((p)[-2] & 0x3F) << 6) \
1083 | ((p)[-1] & 0x3F))) \
1084 : ((p) += 5, \
1085 ((((p)[-4] & 0x3F) << 18) \
1086 | (((p)[-3] & 0x3F) << 12) \
1087 | (((p)[-2] & 0x3F) << 6) \
1088 | ((p)[-1] & 0x3F))))
1089
1090
1091 static void
1092 coding_set_source (coding)
1093 struct coding_system *coding;
1094 {
1095 if (BUFFERP (coding->src_object))
1096 {
1097 struct buffer *buf = XBUFFER (coding->src_object);
1098
1099 if (coding->src_pos < 0)
1100 coding->source = BUF_GAP_END_ADDR (buf) + coding->src_pos_byte;
1101 else
1102 coding->source = BUF_BYTE_ADDRESS (buf, coding->src_pos_byte);
1103 }
1104 else if (STRINGP (coding->src_object))
1105 {
1106 coding->source = SDATA (coding->src_object) + coding->src_pos_byte;
1107 }
1108 else
1109 /* Otherwise, the source is C string and is never relocated
1110 automatically. Thus we don't have to update anything. */
1111 ;
1112 }
1113
1114 static void
1115 coding_set_destination (coding)
1116 struct coding_system *coding;
1117 {
1118 if (BUFFERP (coding->dst_object))
1119 {
1120 if (coding->src_pos < 0)
1121 {
1122 coding->destination = BEG_ADDR + coding->dst_pos_byte - BEG_BYTE;
1123 coding->dst_bytes = (GAP_END_ADDR
1124 - (coding->src_bytes - coding->consumed)
1125 - coding->destination);
1126 }
1127 else
1128 {
1129 /* We are sure that coding->dst_pos_byte is before the gap
1130 of the buffer. */
1131 coding->destination = (BUF_BEG_ADDR (XBUFFER (coding->dst_object))
1132 + coding->dst_pos_byte - BEG_BYTE);
1133 coding->dst_bytes = (BUF_GAP_END_ADDR (XBUFFER (coding->dst_object))
1134 - coding->destination);
1135 }
1136 }
1137 else
1138 /* Otherwise, the destination is C string and is never relocated
1139 automatically. Thus we don't have to update anything. */
1140 ;
1141 }
1142
1143
1144 static void
1145 coding_alloc_by_realloc (coding, bytes)
1146 struct coding_system *coding;
1147 EMACS_INT bytes;
1148 {
1149 coding->destination = (unsigned char *) xrealloc (coding->destination,
1150 coding->dst_bytes + bytes);
1151 coding->dst_bytes += bytes;
1152 }
1153
1154 static void
1155 coding_alloc_by_making_gap (coding, gap_head_used, bytes)
1156 struct coding_system *coding;
1157 EMACS_INT gap_head_used, bytes;
1158 {
1159 if (EQ (coding->src_object, coding->dst_object))
1160 {
1161 /* The gap may contain the produced data at the head and not-yet
1162 consumed data at the tail. To preserve those data, we at
1163 first make the gap size to zero, then increase the gap
1164 size. */
1165 EMACS_INT add = GAP_SIZE;
1166
1167 GPT += gap_head_used, GPT_BYTE += gap_head_used;
1168 GAP_SIZE = 0; ZV += add; Z += add; ZV_BYTE += add; Z_BYTE += add;
1169 make_gap (bytes);
1170 GAP_SIZE += add; ZV -= add; Z -= add; ZV_BYTE -= add; Z_BYTE -= add;
1171 GPT -= gap_head_used, GPT_BYTE -= gap_head_used;
1172 }
1173 else
1174 {
1175 Lisp_Object this_buffer;
1176
1177 this_buffer = Fcurrent_buffer ();
1178 set_buffer_internal (XBUFFER (coding->dst_object));
1179 make_gap (bytes);
1180 set_buffer_internal (XBUFFER (this_buffer));
1181 }
1182 }
1183
1184
1185 static unsigned char *
1186 alloc_destination (coding, nbytes, dst)
1187 struct coding_system *coding;
1188 EMACS_INT nbytes;
1189 unsigned char *dst;
1190 {
1191 EMACS_INT offset = dst - coding->destination;
1192
1193 if (BUFFERP (coding->dst_object))
1194 {
1195 struct buffer *buf = XBUFFER (coding->dst_object);
1196
1197 coding_alloc_by_making_gap (coding, dst - BUF_GPT_ADDR (buf), nbytes);
1198 }
1199 else
1200 coding_alloc_by_realloc (coding, nbytes);
1201 record_conversion_result (coding, CODING_RESULT_SUCCESS);
1202 coding_set_destination (coding);
1203 dst = coding->destination + offset;
1204 return dst;
1205 }
1206
1207 /** Macros for annotations. */
1208
1209 /* Maximum length of annotation data (sum of annotations for
1210 composition and charset). */
1211 #define MAX_ANNOTATION_LENGTH (4 + (MAX_COMPOSITION_COMPONENTS * 2) - 1 + 4)
1212
1213 /* An annotation data is stored in the array coding->charbuf in this
1214 format:
1215 [ -LENGTH ANNOTATION_MASK NCHARS ... ]
1216 LENGTH is the number of elements in the annotation.
1217 ANNOTATION_MASK is one of CODING_ANNOTATE_XXX_MASK.
1218 NCHARS is the number of characters in the text annotated.
1219
1220 The format of the following elements depend on ANNOTATION_MASK.
1221
1222 In the case of CODING_ANNOTATE_COMPOSITION_MASK, these elements
1223 follows:
1224 ... METHOD [ COMPOSITION-COMPONENTS ... ]
1225 METHOD is one of enum composition_method.
1226 Optionnal COMPOSITION-COMPONENTS are characters and composition
1227 rules.
1228
1229 In the case of CODING_ANNOTATE_CHARSET_MASK, one element CHARSET-ID
1230 follows. */
1231
1232 #define ADD_ANNOTATION_DATA(buf, len, mask, nchars) \
1233 do { \
1234 *(buf)++ = -(len); \
1235 *(buf)++ = (mask); \
1236 *(buf)++ = (nchars); \
1237 coding->annotated = 1; \
1238 } while (0);
1239
1240 #define ADD_COMPOSITION_DATA(buf, nchars, method) \
1241 do { \
1242 ADD_ANNOTATION_DATA (buf, 4, CODING_ANNOTATE_COMPOSITION_MASK, nchars); \
1243 *buf++ = method; \
1244 } while (0)
1245
1246
1247 #define ADD_CHARSET_DATA(buf, nchars, id) \
1248 do { \
1249 ADD_ANNOTATION_DATA (buf, 4, CODING_ANNOTATE_CHARSET_MASK, nchars); \
1250 *buf++ = id; \
1251 } while (0)
1252
1253 \f
1254 /*** 2. Emacs' internal format (emacs-utf-8) ***/
1255
1256
1257
1258 \f
1259 /*** 3. UTF-8 ***/
1260
1261 /* See the above "GENERAL NOTES on `detect_coding_XXX ()' functions".
1262 Check if a text is encoded in UTF-8. If it is, return 1, else
1263 return 0. */
1264
1265 #define UTF_8_1_OCTET_P(c) ((c) < 0x80)
1266 #define UTF_8_EXTRA_OCTET_P(c) (((c) & 0xC0) == 0x80)
1267 #define UTF_8_2_OCTET_LEADING_P(c) (((c) & 0xE0) == 0xC0)
1268 #define UTF_8_3_OCTET_LEADING_P(c) (((c) & 0xF0) == 0xE0)
1269 #define UTF_8_4_OCTET_LEADING_P(c) (((c) & 0xF8) == 0xF0)
1270 #define UTF_8_5_OCTET_LEADING_P(c) (((c) & 0xFC) == 0xF8)
1271
1272 #define UTF_BOM 0xFEFF
1273 #define UTF_8_BOM_1 0xEF
1274 #define UTF_8_BOM_2 0xBB
1275 #define UTF_8_BOM_3 0xBF
1276
1277 static int
1278 detect_coding_utf_8 (coding, detect_info)
1279 struct coding_system *coding;
1280 struct coding_detection_info *detect_info;
1281 {
1282 const unsigned char *src = coding->source, *src_base;
1283 const unsigned char *src_end = coding->source + coding->src_bytes;
1284 int multibytep = coding->src_multibyte;
1285 int consumed_chars = 0;
1286 int bom_found = 0;
1287 int found = 0;
1288
1289 detect_info->checked |= CATEGORY_MASK_UTF_8;
1290 /* A coding system of this category is always ASCII compatible. */
1291 src += coding->head_ascii;
1292
1293 while (1)
1294 {
1295 int c, c1, c2, c3, c4;
1296
1297 src_base = src;
1298 ONE_MORE_BYTE (c);
1299 if (c < 0 || UTF_8_1_OCTET_P (c))
1300 continue;
1301 ONE_MORE_BYTE (c1);
1302 if (c1 < 0 || ! UTF_8_EXTRA_OCTET_P (c1))
1303 break;
1304 if (UTF_8_2_OCTET_LEADING_P (c))
1305 {
1306 found = 1;
1307 continue;
1308 }
1309 ONE_MORE_BYTE (c2);
1310 if (c2 < 0 || ! UTF_8_EXTRA_OCTET_P (c2))
1311 break;
1312 if (UTF_8_3_OCTET_LEADING_P (c))
1313 {
1314 found = 1;
1315 if (src_base == coding->source
1316 && c == UTF_8_BOM_1 && c1 == UTF_8_BOM_2 && c2 == UTF_8_BOM_3)
1317 bom_found = 1;
1318 continue;
1319 }
1320 ONE_MORE_BYTE (c3);
1321 if (c3 < 0 || ! UTF_8_EXTRA_OCTET_P (c3))
1322 break;
1323 if (UTF_8_4_OCTET_LEADING_P (c))
1324 {
1325 found = 1;
1326 continue;
1327 }
1328 ONE_MORE_BYTE (c4);
1329 if (c4 < 0 || ! UTF_8_EXTRA_OCTET_P (c4))
1330 break;
1331 if (UTF_8_5_OCTET_LEADING_P (c))
1332 {
1333 found = 1;
1334 continue;
1335 }
1336 break;
1337 }
1338 detect_info->rejected |= CATEGORY_MASK_UTF_8;
1339 return 0;
1340
1341 no_more_source:
1342 if (src_base < src && coding->mode & CODING_MODE_LAST_BLOCK)
1343 {
1344 detect_info->rejected |= CATEGORY_MASK_UTF_8;
1345 return 0;
1346 }
1347 if (bom_found)
1348 {
1349 /* The first character 0xFFFE doesn't necessarily mean a BOM. */
1350 detect_info->found |= CATEGORY_MASK_UTF_8_SIG | CATEGORY_MASK_UTF_8_NOSIG;
1351 }
1352 else
1353 {
1354 detect_info->rejected |= CATEGORY_MASK_UTF_8_SIG;
1355 if (found)
1356 detect_info->found |= CATEGORY_MASK_UTF_8_NOSIG;
1357 }
1358 return 1;
1359 }
1360
1361
1362 static void
1363 decode_coding_utf_8 (coding)
1364 struct coding_system *coding;
1365 {
1366 const unsigned char *src = coding->source + coding->consumed;
1367 const unsigned char *src_end = coding->source + coding->src_bytes;
1368 const unsigned char *src_base;
1369 int *charbuf = coding->charbuf + coding->charbuf_used;
1370 int *charbuf_end = coding->charbuf + coding->charbuf_size;
1371 int consumed_chars = 0, consumed_chars_base = 0;
1372 int multibytep = coding->src_multibyte;
1373 enum utf_bom_type bom = CODING_UTF_8_BOM (coding);
1374 Lisp_Object attr, charset_list;
1375 int eol_crlf = EQ (CODING_ID_EOL_TYPE (coding->id), Qdos);
1376 int byte_after_cr = -1;
1377
1378 CODING_GET_INFO (coding, attr, charset_list);
1379
1380 if (bom != utf_without_bom)
1381 {
1382 int c1, c2, c3;
1383
1384 src_base = src;
1385 ONE_MORE_BYTE (c1);
1386 if (! UTF_8_3_OCTET_LEADING_P (c1))
1387 src = src_base;
1388 else
1389 {
1390 ONE_MORE_BYTE (c2);
1391 if (! UTF_8_EXTRA_OCTET_P (c2))
1392 src = src_base;
1393 else
1394 {
1395 ONE_MORE_BYTE (c3);
1396 if (! UTF_8_EXTRA_OCTET_P (c3))
1397 src = src_base;
1398 else
1399 {
1400 if ((c1 != UTF_8_BOM_1)
1401 || (c2 != UTF_8_BOM_2) || (c3 != UTF_8_BOM_3))
1402 src = src_base;
1403 else
1404 CODING_UTF_8_BOM (coding) = utf_without_bom;
1405 }
1406 }
1407 }
1408 }
1409 CODING_UTF_8_BOM (coding) = utf_without_bom;
1410
1411
1412
1413 while (1)
1414 {
1415 int c, c1, c2, c3, c4, c5;
1416
1417 src_base = src;
1418 consumed_chars_base = consumed_chars;
1419
1420 if (charbuf >= charbuf_end)
1421 {
1422 if (byte_after_cr >= 0)
1423 src_base--;
1424 break;
1425 }
1426
1427 if (byte_after_cr >= 0)
1428 c1 = byte_after_cr, byte_after_cr = -1;
1429 else
1430 ONE_MORE_BYTE (c1);
1431 if (c1 < 0)
1432 {
1433 c = - c1;
1434 }
1435 else if (UTF_8_1_OCTET_P(c1))
1436 {
1437 if (eol_crlf && c1 == '\r')
1438 ONE_MORE_BYTE (byte_after_cr);
1439 c = c1;
1440 }
1441 else
1442 {
1443 ONE_MORE_BYTE (c2);
1444 if (c2 < 0 || ! UTF_8_EXTRA_OCTET_P (c2))
1445 goto invalid_code;
1446 if (UTF_8_2_OCTET_LEADING_P (c1))
1447 {
1448 c = ((c1 & 0x1F) << 6) | (c2 & 0x3F);
1449 /* Reject overlong sequences here and below. Encoders
1450 producing them are incorrect, they can be misleading,
1451 and they mess up read/write invariance. */
1452 if (c < 128)
1453 goto invalid_code;
1454 }
1455 else
1456 {
1457 ONE_MORE_BYTE (c3);
1458 if (c3 < 0 || ! UTF_8_EXTRA_OCTET_P (c3))
1459 goto invalid_code;
1460 if (UTF_8_3_OCTET_LEADING_P (c1))
1461 {
1462 c = (((c1 & 0xF) << 12)
1463 | ((c2 & 0x3F) << 6) | (c3 & 0x3F));
1464 if (c < 0x800
1465 || (c >= 0xd800 && c < 0xe000)) /* surrogates (invalid) */
1466 goto invalid_code;
1467 }
1468 else
1469 {
1470 ONE_MORE_BYTE (c4);
1471 if (c4 < 0 || ! UTF_8_EXTRA_OCTET_P (c4))
1472 goto invalid_code;
1473 if (UTF_8_4_OCTET_LEADING_P (c1))
1474 {
1475 c = (((c1 & 0x7) << 18) | ((c2 & 0x3F) << 12)
1476 | ((c3 & 0x3F) << 6) | (c4 & 0x3F));
1477 if (c < 0x10000)
1478 goto invalid_code;
1479 }
1480 else
1481 {
1482 ONE_MORE_BYTE (c5);
1483 if (c5 < 0 || ! UTF_8_EXTRA_OCTET_P (c5))
1484 goto invalid_code;
1485 if (UTF_8_5_OCTET_LEADING_P (c1))
1486 {
1487 c = (((c1 & 0x3) << 24) | ((c2 & 0x3F) << 18)
1488 | ((c3 & 0x3F) << 12) | ((c4 & 0x3F) << 6)
1489 | (c5 & 0x3F));
1490 if ((c > MAX_CHAR) || (c < 0x200000))
1491 goto invalid_code;
1492 }
1493 else
1494 goto invalid_code;
1495 }
1496 }
1497 }
1498 }
1499
1500 *charbuf++ = c;
1501 continue;
1502
1503 invalid_code:
1504 src = src_base;
1505 consumed_chars = consumed_chars_base;
1506 ONE_MORE_BYTE (c);
1507 *charbuf++ = ASCII_BYTE_P (c) ? c : BYTE8_TO_CHAR (c);
1508 coding->errors++;
1509 }
1510
1511 no_more_source:
1512 coding->consumed_char += consumed_chars_base;
1513 coding->consumed = src_base - coding->source;
1514 coding->charbuf_used = charbuf - coding->charbuf;
1515 }
1516
1517
1518 static int
1519 encode_coding_utf_8 (coding)
1520 struct coding_system *coding;
1521 {
1522 int multibytep = coding->dst_multibyte;
1523 int *charbuf = coding->charbuf;
1524 int *charbuf_end = charbuf + coding->charbuf_used;
1525 unsigned char *dst = coding->destination + coding->produced;
1526 unsigned char *dst_end = coding->destination + coding->dst_bytes;
1527 int produced_chars = 0;
1528 int c;
1529
1530 if (CODING_UTF_8_BOM (coding) == utf_with_bom)
1531 {
1532 ASSURE_DESTINATION (3);
1533 EMIT_THREE_BYTES (UTF_8_BOM_1, UTF_8_BOM_2, UTF_8_BOM_3);
1534 CODING_UTF_8_BOM (coding) = utf_without_bom;
1535 }
1536
1537 if (multibytep)
1538 {
1539 int safe_room = MAX_MULTIBYTE_LENGTH * 2;
1540
1541 while (charbuf < charbuf_end)
1542 {
1543 unsigned char str[MAX_MULTIBYTE_LENGTH], *p, *pend = str;
1544
1545 ASSURE_DESTINATION (safe_room);
1546 c = *charbuf++;
1547 if (CHAR_BYTE8_P (c))
1548 {
1549 c = CHAR_TO_BYTE8 (c);
1550 EMIT_ONE_BYTE (c);
1551 }
1552 else
1553 {
1554 CHAR_STRING_ADVANCE_NO_UNIFY (c, pend);
1555 for (p = str; p < pend; p++)
1556 EMIT_ONE_BYTE (*p);
1557 }
1558 }
1559 }
1560 else
1561 {
1562 int safe_room = MAX_MULTIBYTE_LENGTH;
1563
1564 while (charbuf < charbuf_end)
1565 {
1566 ASSURE_DESTINATION (safe_room);
1567 c = *charbuf++;
1568 if (CHAR_BYTE8_P (c))
1569 *dst++ = CHAR_TO_BYTE8 (c);
1570 else
1571 CHAR_STRING_ADVANCE_NO_UNIFY (c, dst);
1572 produced_chars++;
1573 }
1574 }
1575 record_conversion_result (coding, CODING_RESULT_SUCCESS);
1576 coding->produced_char += produced_chars;
1577 coding->produced = dst - coding->destination;
1578 return 0;
1579 }
1580
1581
1582 /* See the above "GENERAL NOTES on `detect_coding_XXX ()' functions".
1583 Check if a text is encoded in one of UTF-16 based coding systems.
1584 If it is, return 1, else return 0. */
1585
1586 #define UTF_16_HIGH_SURROGATE_P(val) \
1587 (((val) & 0xFC00) == 0xD800)
1588
1589 #define UTF_16_LOW_SURROGATE_P(val) \
1590 (((val) & 0xFC00) == 0xDC00)
1591
1592 #define UTF_16_INVALID_P(val) \
1593 (((val) == 0xFFFE) \
1594 || ((val) == 0xFFFF) \
1595 || UTF_16_LOW_SURROGATE_P (val))
1596
1597
1598 static int
1599 detect_coding_utf_16 (coding, detect_info)
1600 struct coding_system *coding;
1601 struct coding_detection_info *detect_info;
1602 {
1603 const unsigned char *src = coding->source, *src_base = src;
1604 const unsigned char *src_end = coding->source + coding->src_bytes;
1605 int multibytep = coding->src_multibyte;
1606 int consumed_chars = 0;
1607 int c1, c2;
1608
1609 detect_info->checked |= CATEGORY_MASK_UTF_16;
1610 if (coding->mode & CODING_MODE_LAST_BLOCK
1611 && (coding->src_chars & 1))
1612 {
1613 detect_info->rejected |= CATEGORY_MASK_UTF_16;
1614 return 0;
1615 }
1616
1617 TWO_MORE_BYTES (c1, c2);
1618 if ((c1 == 0xFF) && (c2 == 0xFE))
1619 {
1620 detect_info->found |= (CATEGORY_MASK_UTF_16_LE
1621 | CATEGORY_MASK_UTF_16_AUTO);
1622 detect_info->rejected |= (CATEGORY_MASK_UTF_16_BE
1623 | CATEGORY_MASK_UTF_16_BE_NOSIG
1624 | CATEGORY_MASK_UTF_16_LE_NOSIG);
1625 }
1626 else if ((c1 == 0xFE) && (c2 == 0xFF))
1627 {
1628 detect_info->found |= (CATEGORY_MASK_UTF_16_BE
1629 | CATEGORY_MASK_UTF_16_AUTO);
1630 detect_info->rejected |= (CATEGORY_MASK_UTF_16_LE
1631 | CATEGORY_MASK_UTF_16_BE_NOSIG
1632 | CATEGORY_MASK_UTF_16_LE_NOSIG);
1633 }
1634 else if (c2 < 0)
1635 {
1636 detect_info->rejected |= CATEGORY_MASK_UTF_16;
1637 return 0;
1638 }
1639 else
1640 {
1641 /* We check the dispersion of Eth and Oth bytes where E is even and
1642 O is odd. If both are high, we assume binary data.*/
1643 unsigned char e[256], o[256];
1644 unsigned e_num = 1, o_num = 1;
1645
1646 memset (e, 0, 256);
1647 memset (o, 0, 256);
1648 e[c1] = 1;
1649 o[c2] = 1;
1650
1651 detect_info->rejected
1652 |= (CATEGORY_MASK_UTF_16_BE | CATEGORY_MASK_UTF_16_LE);
1653
1654 while (1)
1655 {
1656 TWO_MORE_BYTES (c1, c2);
1657 if (c2 < 0)
1658 break;
1659 if (! e[c1])
1660 {
1661 e[c1] = 1;
1662 e_num++;
1663 if (e_num >= 128)
1664 break;
1665 }
1666 if (! o[c2])
1667 {
1668 o[c1] = 1;
1669 o_num++;
1670 if (o_num >= 128)
1671 break;
1672 }
1673 }
1674 detect_info->rejected |= CATEGORY_MASK_UTF_16;
1675 return 0;
1676 }
1677
1678 no_more_source:
1679 return 1;
1680 }
1681
1682 static void
1683 decode_coding_utf_16 (coding)
1684 struct coding_system *coding;
1685 {
1686 const unsigned char *src = coding->source + coding->consumed;
1687 const unsigned char *src_end = coding->source + coding->src_bytes;
1688 const unsigned char *src_base;
1689 int *charbuf = coding->charbuf + coding->charbuf_used;
1690 int *charbuf_end = coding->charbuf + coding->charbuf_size;
1691 int consumed_chars = 0, consumed_chars_base = 0;
1692 int multibytep = coding->src_multibyte;
1693 enum utf_bom_type bom = CODING_UTF_16_BOM (coding);
1694 enum utf_16_endian_type endian = CODING_UTF_16_ENDIAN (coding);
1695 int surrogate = CODING_UTF_16_SURROGATE (coding);
1696 Lisp_Object attr, charset_list;
1697 int eol_crlf = EQ (CODING_ID_EOL_TYPE (coding->id), Qdos);
1698 int byte_after_cr1 = -1, byte_after_cr2 = -1;
1699
1700 CODING_GET_INFO (coding, attr, charset_list);
1701
1702 if (bom == utf_with_bom)
1703 {
1704 int c, c1, c2;
1705
1706 src_base = src;
1707 ONE_MORE_BYTE (c1);
1708 ONE_MORE_BYTE (c2);
1709 c = (c1 << 8) | c2;
1710
1711 if (endian == utf_16_big_endian
1712 ? c != 0xFEFF : c != 0xFFFE)
1713 {
1714 /* The first two bytes are not BOM. Treat them as bytes
1715 for a normal character. */
1716 src = src_base;
1717 coding->errors++;
1718 }
1719 CODING_UTF_16_BOM (coding) = utf_without_bom;
1720 }
1721 else if (bom == utf_detect_bom)
1722 {
1723 /* We have already tried to detect BOM and failed in
1724 detect_coding. */
1725 CODING_UTF_16_BOM (coding) = utf_without_bom;
1726 }
1727
1728 while (1)
1729 {
1730 int c, c1, c2;
1731
1732 src_base = src;
1733 consumed_chars_base = consumed_chars;
1734
1735 if (charbuf + 2 >= charbuf_end)
1736 {
1737 if (byte_after_cr1 >= 0)
1738 src_base -= 2;
1739 break;
1740 }
1741
1742 if (byte_after_cr1 >= 0)
1743 c1 = byte_after_cr1, byte_after_cr1 = -1;
1744 else
1745 ONE_MORE_BYTE (c1);
1746 if (c1 < 0)
1747 {
1748 *charbuf++ = -c1;
1749 continue;
1750 }
1751 if (byte_after_cr2 >= 0)
1752 c2 = byte_after_cr2, byte_after_cr2 = -1;
1753 else
1754 ONE_MORE_BYTE (c2);
1755 if (c2 < 0)
1756 {
1757 *charbuf++ = ASCII_BYTE_P (c1) ? c1 : BYTE8_TO_CHAR (c1);
1758 *charbuf++ = -c2;
1759 continue;
1760 }
1761 c = (endian == utf_16_big_endian
1762 ? ((c1 << 8) | c2) : ((c2 << 8) | c1));
1763
1764 if (surrogate)
1765 {
1766 if (! UTF_16_LOW_SURROGATE_P (c))
1767 {
1768 if (endian == utf_16_big_endian)
1769 c1 = surrogate >> 8, c2 = surrogate & 0xFF;
1770 else
1771 c1 = surrogate & 0xFF, c2 = surrogate >> 8;
1772 *charbuf++ = c1;
1773 *charbuf++ = c2;
1774 coding->errors++;
1775 if (UTF_16_HIGH_SURROGATE_P (c))
1776 CODING_UTF_16_SURROGATE (coding) = surrogate = c;
1777 else
1778 *charbuf++ = c;
1779 }
1780 else
1781 {
1782 c = ((surrogate - 0xD800) << 10) | (c - 0xDC00);
1783 CODING_UTF_16_SURROGATE (coding) = surrogate = 0;
1784 *charbuf++ = 0x10000 + c;
1785 }
1786 }
1787 else
1788 {
1789 if (UTF_16_HIGH_SURROGATE_P (c))
1790 CODING_UTF_16_SURROGATE (coding) = surrogate = c;
1791 else
1792 {
1793 if (eol_crlf && c == '\r')
1794 {
1795 ONE_MORE_BYTE (byte_after_cr1);
1796 ONE_MORE_BYTE (byte_after_cr2);
1797 }
1798 *charbuf++ = c;
1799 }
1800 }
1801 }
1802
1803 no_more_source:
1804 coding->consumed_char += consumed_chars_base;
1805 coding->consumed = src_base - coding->source;
1806 coding->charbuf_used = charbuf - coding->charbuf;
1807 }
1808
1809 static int
1810 encode_coding_utf_16 (coding)
1811 struct coding_system *coding;
1812 {
1813 int multibytep = coding->dst_multibyte;
1814 int *charbuf = coding->charbuf;
1815 int *charbuf_end = charbuf + coding->charbuf_used;
1816 unsigned char *dst = coding->destination + coding->produced;
1817 unsigned char *dst_end = coding->destination + coding->dst_bytes;
1818 int safe_room = 8;
1819 enum utf_bom_type bom = CODING_UTF_16_BOM (coding);
1820 int big_endian = CODING_UTF_16_ENDIAN (coding) == utf_16_big_endian;
1821 int produced_chars = 0;
1822 Lisp_Object attrs, charset_list;
1823 int c;
1824
1825 CODING_GET_INFO (coding, attrs, charset_list);
1826
1827 if (bom != utf_without_bom)
1828 {
1829 ASSURE_DESTINATION (safe_room);
1830 if (big_endian)
1831 EMIT_TWO_BYTES (0xFE, 0xFF);
1832 else
1833 EMIT_TWO_BYTES (0xFF, 0xFE);
1834 CODING_UTF_16_BOM (coding) = utf_without_bom;
1835 }
1836
1837 while (charbuf < charbuf_end)
1838 {
1839 ASSURE_DESTINATION (safe_room);
1840 c = *charbuf++;
1841 if (c >= MAX_UNICODE_CHAR)
1842 c = coding->default_char;
1843
1844 if (c < 0x10000)
1845 {
1846 if (big_endian)
1847 EMIT_TWO_BYTES (c >> 8, c & 0xFF);
1848 else
1849 EMIT_TWO_BYTES (c & 0xFF, c >> 8);
1850 }
1851 else
1852 {
1853 int c1, c2;
1854
1855 c -= 0x10000;
1856 c1 = (c >> 10) + 0xD800;
1857 c2 = (c & 0x3FF) + 0xDC00;
1858 if (big_endian)
1859 EMIT_FOUR_BYTES (c1 >> 8, c1 & 0xFF, c2 >> 8, c2 & 0xFF);
1860 else
1861 EMIT_FOUR_BYTES (c1 & 0xFF, c1 >> 8, c2 & 0xFF, c2 >> 8);
1862 }
1863 }
1864 record_conversion_result (coding, CODING_RESULT_SUCCESS);
1865 coding->produced = dst - coding->destination;
1866 coding->produced_char += produced_chars;
1867 return 0;
1868 }
1869
1870 \f
1871 /*** 6. Old Emacs' internal format (emacs-mule) ***/
1872
1873 /* Emacs' internal format for representation of multiple character
1874 sets is a kind of multi-byte encoding, i.e. characters are
1875 represented by variable-length sequences of one-byte codes.
1876
1877 ASCII characters and control characters (e.g. `tab', `newline') are
1878 represented by one-byte sequences which are their ASCII codes, in
1879 the range 0x00 through 0x7F.
1880
1881 8-bit characters of the range 0x80..0x9F are represented by
1882 two-byte sequences of LEADING_CODE_8_BIT_CONTROL and (their 8-bit
1883 code + 0x20).
1884
1885 8-bit characters of the range 0xA0..0xFF are represented by
1886 one-byte sequences which are their 8-bit code.
1887
1888 The other characters are represented by a sequence of `base
1889 leading-code', optional `extended leading-code', and one or two
1890 `position-code's. The length of the sequence is determined by the
1891 base leading-code. Leading-code takes the range 0x81 through 0x9D,
1892 whereas extended leading-code and position-code take the range 0xA0
1893 through 0xFF. See `charset.h' for more details about leading-code
1894 and position-code.
1895
1896 --- CODE RANGE of Emacs' internal format ---
1897 character set range
1898 ------------- -----
1899 ascii 0x00..0x7F
1900 eight-bit-control LEADING_CODE_8_BIT_CONTROL + 0xA0..0xBF
1901 eight-bit-graphic 0xA0..0xBF
1902 ELSE 0x81..0x9D + [0xA0..0xFF]+
1903 ---------------------------------------------
1904
1905 As this is the internal character representation, the format is
1906 usually not used externally (i.e. in a file or in a data sent to a
1907 process). But, it is possible to have a text externally in this
1908 format (i.e. by encoding by the coding system `emacs-mule').
1909
1910 In that case, a sequence of one-byte codes has a slightly different
1911 form.
1912
1913 At first, all characters in eight-bit-control are represented by
1914 one-byte sequences which are their 8-bit code.
1915
1916 Next, character composition data are represented by the byte
1917 sequence of the form: 0x80 METHOD BYTES CHARS COMPONENT ...,
1918 where,
1919 METHOD is 0xF0 plus one of composition method (enum
1920 composition_method),
1921
1922 BYTES is 0xA0 plus a byte length of this composition data,
1923
1924 CHARS is 0x20 plus a number of characters composed by this
1925 data,
1926
1927 COMPONENTs are characters of multibye form or composition
1928 rules encoded by two-byte of ASCII codes.
1929
1930 In addition, for backward compatibility, the following formats are
1931 also recognized as composition data on decoding.
1932
1933 0x80 MSEQ ...
1934 0x80 0xFF MSEQ RULE MSEQ RULE ... MSEQ
1935
1936 Here,
1937 MSEQ is a multibyte form but in these special format:
1938 ASCII: 0xA0 ASCII_CODE+0x80,
1939 other: LEADING_CODE+0x20 FOLLOWING-BYTE ...,
1940 RULE is a one byte code of the range 0xA0..0xF0 that
1941 represents a composition rule.
1942 */
1943
1944 char emacs_mule_bytes[256];
1945
1946 int
1947 emacs_mule_char (coding, src, nbytes, nchars, id)
1948 struct coding_system *coding;
1949 const unsigned char *src;
1950 int *nbytes, *nchars, *id;
1951 {
1952 const unsigned char *src_end = coding->source + coding->src_bytes;
1953 const unsigned char *src_base = src;
1954 int multibytep = coding->src_multibyte;
1955 struct charset *charset;
1956 unsigned code;
1957 int c;
1958 int consumed_chars = 0;
1959
1960 ONE_MORE_BYTE (c);
1961 if (c < 0)
1962 {
1963 c = -c;
1964 charset = emacs_mule_charset[0];
1965 }
1966 else
1967 {
1968 if (c >= 0xA0)
1969 {
1970 /* Old style component character of a composition. */
1971 if (c == 0xA0)
1972 {
1973 ONE_MORE_BYTE (c);
1974 c -= 0x80;
1975 }
1976 else
1977 c -= 0x20;
1978 }
1979
1980 switch (emacs_mule_bytes[c])
1981 {
1982 case 2:
1983 if (! (charset = emacs_mule_charset[c]))
1984 goto invalid_code;
1985 ONE_MORE_BYTE (c);
1986 if (c < 0xA0)
1987 goto invalid_code;
1988 code = c & 0x7F;
1989 break;
1990
1991 case 3:
1992 if (c == EMACS_MULE_LEADING_CODE_PRIVATE_11
1993 || c == EMACS_MULE_LEADING_CODE_PRIVATE_12)
1994 {
1995 ONE_MORE_BYTE (c);
1996 if (c < 0xA0 || ! (charset = emacs_mule_charset[c]))
1997 goto invalid_code;
1998 ONE_MORE_BYTE (c);
1999 if (c < 0xA0)
2000 goto invalid_code;
2001 code = c & 0x7F;
2002 }
2003 else
2004 {
2005 if (! (charset = emacs_mule_charset[c]))
2006 goto invalid_code;
2007 ONE_MORE_BYTE (c);
2008 if (c < 0xA0)
2009 goto invalid_code;
2010 code = (c & 0x7F) << 8;
2011 ONE_MORE_BYTE (c);
2012 if (c < 0xA0)
2013 goto invalid_code;
2014 code |= c & 0x7F;
2015 }
2016 break;
2017
2018 case 4:
2019 ONE_MORE_BYTE (c);
2020 if (c < 0 || ! (charset = emacs_mule_charset[c]))
2021 goto invalid_code;
2022 ONE_MORE_BYTE (c);
2023 if (c < 0xA0)
2024 goto invalid_code;
2025 code = (c & 0x7F) << 8;
2026 ONE_MORE_BYTE (c);
2027 if (c < 0xA0)
2028 goto invalid_code;
2029 code |= c & 0x7F;
2030 break;
2031
2032 case 1:
2033 code = c;
2034 charset = CHARSET_FROM_ID (ASCII_BYTE_P (code)
2035 ? charset_ascii : charset_eight_bit);
2036 break;
2037
2038 default:
2039 abort ();
2040 }
2041 c = DECODE_CHAR (charset, code);
2042 if (c < 0)
2043 goto invalid_code;
2044 }
2045 *nbytes = src - src_base;
2046 *nchars = consumed_chars;
2047 if (id)
2048 *id = charset->id;
2049 return c;
2050
2051 no_more_source:
2052 return -2;
2053
2054 invalid_code:
2055 return -1;
2056 }
2057
2058
2059 /* See the above "GENERAL NOTES on `detect_coding_XXX ()' functions".
2060 Check if a text is encoded in `emacs-mule'. If it is, return 1,
2061 else return 0. */
2062
2063 static int
2064 detect_coding_emacs_mule (coding, detect_info)
2065 struct coding_system *coding;
2066 struct coding_detection_info *detect_info;
2067 {
2068 const unsigned char *src = coding->source, *src_base;
2069 const unsigned char *src_end = coding->source + coding->src_bytes;
2070 int multibytep = coding->src_multibyte;
2071 int consumed_chars = 0;
2072 int c;
2073 int found = 0;
2074
2075 detect_info->checked |= CATEGORY_MASK_EMACS_MULE;
2076 /* A coding system of this category is always ASCII compatible. */
2077 src += coding->head_ascii;
2078
2079 while (1)
2080 {
2081 src_base = src;
2082 ONE_MORE_BYTE (c);
2083 if (c < 0)
2084 continue;
2085 if (c == 0x80)
2086 {
2087 /* Perhaps the start of composite character. We simple skip
2088 it because analyzing it is too heavy for detecting. But,
2089 at least, we check that the composite character
2090 constitutes of more than 4 bytes. */
2091 const unsigned char *src_base;
2092
2093 repeat:
2094 src_base = src;
2095 do
2096 {
2097 ONE_MORE_BYTE (c);
2098 }
2099 while (c >= 0xA0);
2100
2101 if (src - src_base <= 4)
2102 break;
2103 found = CATEGORY_MASK_EMACS_MULE;
2104 if (c == 0x80)
2105 goto repeat;
2106 }
2107
2108 if (c < 0x80)
2109 {
2110 if (c < 0x20
2111 && (c == ISO_CODE_ESC || c == ISO_CODE_SI || c == ISO_CODE_SO))
2112 break;
2113 }
2114 else
2115 {
2116 int more_bytes = emacs_mule_bytes[*src_base] - 1;
2117
2118 while (more_bytes > 0)
2119 {
2120 ONE_MORE_BYTE (c);
2121 if (c < 0xA0)
2122 {
2123 src--; /* Unread the last byte. */
2124 break;
2125 }
2126 more_bytes--;
2127 }
2128 if (more_bytes != 0)
2129 break;
2130 found = CATEGORY_MASK_EMACS_MULE;
2131 }
2132 }
2133 detect_info->rejected |= CATEGORY_MASK_EMACS_MULE;
2134 return 0;
2135
2136 no_more_source:
2137 if (src_base < src && coding->mode & CODING_MODE_LAST_BLOCK)
2138 {
2139 detect_info->rejected |= CATEGORY_MASK_EMACS_MULE;
2140 return 0;
2141 }
2142 detect_info->found |= found;
2143 return 1;
2144 }
2145
2146
2147 /* See the above "GENERAL NOTES on `decode_coding_XXX ()' functions". */
2148
2149 /* Decode a character represented as a component of composition
2150 sequence of Emacs 20/21 style at SRC. Set C to that character and
2151 update SRC to the head of next character (or an encoded composition
2152 rule). If SRC doesn't points a composition component, set C to -1.
2153 If SRC points an invalid byte sequence, global exit by a return
2154 value 0. */
2155
2156 #define DECODE_EMACS_MULE_COMPOSITION_CHAR(buf) \
2157 do \
2158 { \
2159 int c; \
2160 int nbytes, nchars; \
2161 \
2162 if (src == src_end) \
2163 break; \
2164 c = emacs_mule_char (coding, src, &nbytes, &nchars, NULL);\
2165 if (c < 0) \
2166 { \
2167 if (c == -2) \
2168 break; \
2169 goto invalid_code; \
2170 } \
2171 *buf++ = c; \
2172 src += nbytes; \
2173 consumed_chars += nchars; \
2174 } \
2175 while (0)
2176
2177
2178 /* Decode a composition rule represented as a component of composition
2179 sequence of Emacs 20 style at SRC. Store the decoded rule in *BUF,
2180 and increment BUF. If SRC points an invalid byte sequence, set C
2181 to -1. */
2182
2183 #define DECODE_EMACS_MULE_COMPOSITION_RULE_20(buf) \
2184 do { \
2185 int c, gref, nref; \
2186 \
2187 if (src >= src_end) \
2188 goto invalid_code; \
2189 ONE_MORE_BYTE_NO_CHECK (c); \
2190 c -= 0xA0; \
2191 if (c < 0 || c >= 81) \
2192 goto invalid_code; \
2193 \
2194 gref = c / 9, nref = c % 9; \
2195 *buf++ = COMPOSITION_ENCODE_RULE (gref, nref); \
2196 } while (0)
2197
2198
2199 /* Decode a composition rule represented as a component of composition
2200 sequence of Emacs 21 style at SRC. Store the decoded rule in *BUF,
2201 and increment BUF. If SRC points an invalid byte sequence, set C
2202 to -1. */
2203
2204 #define DECODE_EMACS_MULE_COMPOSITION_RULE_21(buf) \
2205 do { \
2206 int gref, nref; \
2207 \
2208 if (src + 1>= src_end) \
2209 goto invalid_code; \
2210 ONE_MORE_BYTE_NO_CHECK (gref); \
2211 gref -= 0x20; \
2212 ONE_MORE_BYTE_NO_CHECK (nref); \
2213 nref -= 0x20; \
2214 if (gref < 0 || gref >= 81 \
2215 || nref < 0 || nref >= 81) \
2216 goto invalid_code; \
2217 *buf++ = COMPOSITION_ENCODE_RULE (gref, nref); \
2218 } while (0)
2219
2220
2221 #define DECODE_EMACS_MULE_21_COMPOSITION(c) \
2222 do { \
2223 /* Emacs 21 style format. The first three bytes at SRC are \
2224 (METHOD - 0xF2), (BYTES - 0xA0), (CHARS - 0xA0), where BYTES is \
2225 the byte length of this composition information, CHARS is the \
2226 number of characters composed by this composition. */ \
2227 enum composition_method method = c - 0xF2; \
2228 int *charbuf_base = charbuf; \
2229 int consumed_chars_limit; \
2230 int nbytes, nchars; \
2231 \
2232 ONE_MORE_BYTE (c); \
2233 if (c < 0) \
2234 goto invalid_code; \
2235 nbytes = c - 0xA0; \
2236 if (nbytes < 3) \
2237 goto invalid_code; \
2238 ONE_MORE_BYTE (c); \
2239 if (c < 0) \
2240 goto invalid_code; \
2241 nchars = c - 0xA0; \
2242 ADD_COMPOSITION_DATA (charbuf, nchars, method); \
2243 consumed_chars_limit = consumed_chars_base + nbytes; \
2244 if (method != COMPOSITION_RELATIVE) \
2245 { \
2246 int i = 0; \
2247 while (consumed_chars < consumed_chars_limit) \
2248 { \
2249 if (i % 2 && method != COMPOSITION_WITH_ALTCHARS) \
2250 DECODE_EMACS_MULE_COMPOSITION_RULE_21 (charbuf); \
2251 else \
2252 DECODE_EMACS_MULE_COMPOSITION_CHAR (charbuf); \
2253 i++; \
2254 } \
2255 if (consumed_chars < consumed_chars_limit) \
2256 goto invalid_code; \
2257 charbuf_base[0] -= i; \
2258 } \
2259 } while (0)
2260
2261
2262 #define DECODE_EMACS_MULE_20_RELATIVE_COMPOSITION(c) \
2263 do { \
2264 /* Emacs 20 style format for relative composition. */ \
2265 /* Store multibyte form of characters to be composed. */ \
2266 enum composition_method method = COMPOSITION_RELATIVE; \
2267 int components[MAX_COMPOSITION_COMPONENTS * 2 - 1]; \
2268 int *buf = components; \
2269 int i, j; \
2270 \
2271 src = src_base; \
2272 ONE_MORE_BYTE (c); /* skip 0x80 */ \
2273 for (i = 0; *src >= 0xA0 && i < MAX_COMPOSITION_COMPONENTS; i++) \
2274 DECODE_EMACS_MULE_COMPOSITION_CHAR (buf); \
2275 if (i < 2) \
2276 goto invalid_code; \
2277 ADD_COMPOSITION_DATA (charbuf, i, method); \
2278 for (j = 0; j < i; j++) \
2279 *charbuf++ = components[j]; \
2280 } while (0)
2281
2282
2283 #define DECODE_EMACS_MULE_20_RULEBASE_COMPOSITION(c) \
2284 do { \
2285 /* Emacs 20 style format for rule-base composition. */ \
2286 /* Store multibyte form of characters to be composed. */ \
2287 enum composition_method method = COMPOSITION_WITH_RULE; \
2288 int *charbuf_base = charbuf; \
2289 int components[MAX_COMPOSITION_COMPONENTS * 2 - 1]; \
2290 int *buf = components; \
2291 int i, j; \
2292 \
2293 DECODE_EMACS_MULE_COMPOSITION_CHAR (buf); \
2294 for (i = 1; i < MAX_COMPOSITION_COMPONENTS; i++) \
2295 { \
2296 if (*src < 0xA0) \
2297 break; \
2298 DECODE_EMACS_MULE_COMPOSITION_RULE_20 (buf); \
2299 DECODE_EMACS_MULE_COMPOSITION_CHAR (buf); \
2300 } \
2301 if (i <= 1 || (buf - components) % 2 == 0) \
2302 goto invalid_code; \
2303 if (charbuf + i + (i / 2) + 1 >= charbuf_end) \
2304 goto no_more_source; \
2305 ADD_COMPOSITION_DATA (charbuf, i, method); \
2306 i = i * 2 - 1; \
2307 for (j = 0; j < i; j++) \
2308 *charbuf++ = components[j]; \
2309 charbuf_base[0] -= i; \
2310 for (j = 0; j < i; j += 2) \
2311 *charbuf++ = components[j]; \
2312 } while (0)
2313
2314
2315 static void
2316 decode_coding_emacs_mule (coding)
2317 struct coding_system *coding;
2318 {
2319 const unsigned char *src = coding->source + coding->consumed;
2320 const unsigned char *src_end = coding->source + coding->src_bytes;
2321 const unsigned char *src_base;
2322 int *charbuf = coding->charbuf + coding->charbuf_used;
2323 int *charbuf_end
2324 = coding->charbuf + coding->charbuf_size - MAX_ANNOTATION_LENGTH;
2325 int consumed_chars = 0, consumed_chars_base;
2326 int multibytep = coding->src_multibyte;
2327 Lisp_Object attrs, charset_list;
2328 int char_offset = coding->produced_char;
2329 int last_offset = char_offset;
2330 int last_id = charset_ascii;
2331 int eol_crlf = EQ (CODING_ID_EOL_TYPE (coding->id), Qdos);
2332 int byte_after_cr = -1;
2333
2334 CODING_GET_INFO (coding, attrs, charset_list);
2335
2336 while (1)
2337 {
2338 int c;
2339
2340 src_base = src;
2341 consumed_chars_base = consumed_chars;
2342
2343 if (charbuf >= charbuf_end)
2344 {
2345 if (byte_after_cr >= 0)
2346 src_base--;
2347 break;
2348 }
2349
2350 if (byte_after_cr >= 0)
2351 c = byte_after_cr, byte_after_cr = -1;
2352 else
2353 ONE_MORE_BYTE (c);
2354 if (c < 0)
2355 {
2356 *charbuf++ = -c;
2357 char_offset++;
2358 }
2359 else if (c < 0x80)
2360 {
2361 if (eol_crlf && c == '\r')
2362 ONE_MORE_BYTE (byte_after_cr);
2363 *charbuf++ = c;
2364 char_offset++;
2365 }
2366 else if (c == 0x80)
2367 {
2368 ONE_MORE_BYTE (c);
2369 if (c < 0)
2370 goto invalid_code;
2371 if (c - 0xF2 >= COMPOSITION_RELATIVE
2372 && c - 0xF2 <= COMPOSITION_WITH_RULE_ALTCHARS)
2373 DECODE_EMACS_MULE_21_COMPOSITION (c);
2374 else if (c < 0xC0)
2375 DECODE_EMACS_MULE_20_RELATIVE_COMPOSITION (c);
2376 else if (c == 0xFF)
2377 DECODE_EMACS_MULE_20_RULEBASE_COMPOSITION (c);
2378 else
2379 goto invalid_code;
2380 }
2381 else if (c < 0xA0 && emacs_mule_bytes[c] > 1)
2382 {
2383 int nbytes, nchars;
2384 int id;
2385
2386 src = src_base;
2387 consumed_chars = consumed_chars_base;
2388 c = emacs_mule_char (coding, src, &nbytes, &nchars, &id);
2389 if (c < 0)
2390 {
2391 if (c == -2)
2392 break;
2393 goto invalid_code;
2394 }
2395 if (last_id != id)
2396 {
2397 if (last_id != charset_ascii)
2398 ADD_CHARSET_DATA (charbuf, char_offset - last_offset, last_id);
2399 last_id = id;
2400 last_offset = char_offset;
2401 }
2402 *charbuf++ = c;
2403 src += nbytes;
2404 consumed_chars += nchars;
2405 char_offset++;
2406 }
2407 else
2408 goto invalid_code;
2409 continue;
2410
2411 invalid_code:
2412 src = src_base;
2413 consumed_chars = consumed_chars_base;
2414 ONE_MORE_BYTE (c);
2415 *charbuf++ = ASCII_BYTE_P (c) ? c : BYTE8_TO_CHAR (c);
2416 char_offset++;
2417 coding->errors++;
2418 }
2419
2420 no_more_source:
2421 if (last_id != charset_ascii)
2422 ADD_CHARSET_DATA (charbuf, char_offset - last_offset, last_id);
2423 coding->consumed_char += consumed_chars_base;
2424 coding->consumed = src_base - coding->source;
2425 coding->charbuf_used = charbuf - coding->charbuf;
2426 }
2427
2428
2429 #define EMACS_MULE_LEADING_CODES(id, codes) \
2430 do { \
2431 if (id < 0xA0) \
2432 codes[0] = id, codes[1] = 0; \
2433 else if (id < 0xE0) \
2434 codes[0] = 0x9A, codes[1] = id; \
2435 else if (id < 0xF0) \
2436 codes[0] = 0x9B, codes[1] = id; \
2437 else if (id < 0xF5) \
2438 codes[0] = 0x9C, codes[1] = id; \
2439 else \
2440 codes[0] = 0x9D, codes[1] = id; \
2441 } while (0);
2442
2443
2444 static int
2445 encode_coding_emacs_mule (coding)
2446 struct coding_system *coding;
2447 {
2448 int multibytep = coding->dst_multibyte;
2449 int *charbuf = coding->charbuf;
2450 int *charbuf_end = charbuf + coding->charbuf_used;
2451 unsigned char *dst = coding->destination + coding->produced;
2452 unsigned char *dst_end = coding->destination + coding->dst_bytes;
2453 int safe_room = 8;
2454 int produced_chars = 0;
2455 Lisp_Object attrs, charset_list;
2456 int c;
2457 int preferred_charset_id = -1;
2458
2459 CODING_GET_INFO (coding, attrs, charset_list);
2460 if (! EQ (charset_list, Vemacs_mule_charset_list))
2461 {
2462 CODING_ATTR_CHARSET_LIST (attrs)
2463 = charset_list = Vemacs_mule_charset_list;
2464 }
2465
2466 while (charbuf < charbuf_end)
2467 {
2468 ASSURE_DESTINATION (safe_room);
2469 c = *charbuf++;
2470
2471 if (c < 0)
2472 {
2473 /* Handle an annotation. */
2474 switch (*charbuf)
2475 {
2476 case CODING_ANNOTATE_COMPOSITION_MASK:
2477 /* Not yet implemented. */
2478 break;
2479 case CODING_ANNOTATE_CHARSET_MASK:
2480 preferred_charset_id = charbuf[3];
2481 if (preferred_charset_id >= 0
2482 && NILP (Fmemq (make_number (preferred_charset_id),
2483 charset_list)))
2484 preferred_charset_id = -1;
2485 break;
2486 default:
2487 abort ();
2488 }
2489 charbuf += -c - 1;
2490 continue;
2491 }
2492
2493 if (ASCII_CHAR_P (c))
2494 EMIT_ONE_ASCII_BYTE (c);
2495 else if (CHAR_BYTE8_P (c))
2496 {
2497 c = CHAR_TO_BYTE8 (c);
2498 EMIT_ONE_BYTE (c);
2499 }
2500 else
2501 {
2502 struct charset *charset;
2503 unsigned code;
2504 int dimension;
2505 int emacs_mule_id;
2506 unsigned char leading_codes[2];
2507
2508 if (preferred_charset_id >= 0)
2509 {
2510 charset = CHARSET_FROM_ID (preferred_charset_id);
2511 if (CHAR_CHARSET_P (c, charset))
2512 code = ENCODE_CHAR (charset, c);
2513 else
2514 charset = char_charset (c, charset_list, &code);
2515 }
2516 else
2517 charset = char_charset (c, charset_list, &code);
2518 if (! charset)
2519 {
2520 c = coding->default_char;
2521 if (ASCII_CHAR_P (c))
2522 {
2523 EMIT_ONE_ASCII_BYTE (c);
2524 continue;
2525 }
2526 charset = char_charset (c, charset_list, &code);
2527 }
2528 dimension = CHARSET_DIMENSION (charset);
2529 emacs_mule_id = CHARSET_EMACS_MULE_ID (charset);
2530 EMACS_MULE_LEADING_CODES (emacs_mule_id, leading_codes);
2531 EMIT_ONE_BYTE (leading_codes[0]);
2532 if (leading_codes[1])
2533 EMIT_ONE_BYTE (leading_codes[1]);
2534 if (dimension == 1)
2535 EMIT_ONE_BYTE (code | 0x80);
2536 else
2537 {
2538 code |= 0x8080;
2539 EMIT_ONE_BYTE (code >> 8);
2540 EMIT_ONE_BYTE (code & 0xFF);
2541 }
2542 }
2543 }
2544 record_conversion_result (coding, CODING_RESULT_SUCCESS);
2545 coding->produced_char += produced_chars;
2546 coding->produced = dst - coding->destination;
2547 return 0;
2548 }
2549
2550 \f
2551 /*** 7. ISO2022 handlers ***/
2552
2553 /* The following note describes the coding system ISO2022 briefly.
2554 Since the intention of this note is to help understand the
2555 functions in this file, some parts are NOT ACCURATE or are OVERLY
2556 SIMPLIFIED. For thorough understanding, please refer to the
2557 original document of ISO2022. This is equivalent to the standard
2558 ECMA-35, obtainable from <URL:http://www.ecma.ch/> (*).
2559
2560 ISO2022 provides many mechanisms to encode several character sets
2561 in 7-bit and 8-bit environments. For 7-bit environments, all text
2562 is encoded using bytes less than 128. This may make the encoded
2563 text a little bit longer, but the text passes more easily through
2564 several types of gateway, some of which strip off the MSB (Most
2565 Significant Bit).
2566
2567 There are two kinds of character sets: control character sets and
2568 graphic character sets. The former contain control characters such
2569 as `newline' and `escape' to provide control functions (control
2570 functions are also provided by escape sequences). The latter
2571 contain graphic characters such as 'A' and '-'. Emacs recognizes
2572 two control character sets and many graphic character sets.
2573
2574 Graphic character sets are classified into one of the following
2575 four classes, according to the number of bytes (DIMENSION) and
2576 number of characters in one dimension (CHARS) of the set:
2577 - DIMENSION1_CHARS94
2578 - DIMENSION1_CHARS96
2579 - DIMENSION2_CHARS94
2580 - DIMENSION2_CHARS96
2581
2582 In addition, each character set is assigned an identification tag,
2583 unique for each set, called the "final character" (denoted as <F>
2584 hereafter). The <F> of each character set is decided by ECMA(*)
2585 when it is registered in ISO. The code range of <F> is 0x30..0x7F
2586 (0x30..0x3F are for private use only).
2587
2588 Note (*): ECMA = European Computer Manufacturers Association
2589
2590 Here are examples of graphic character sets [NAME(<F>)]:
2591 o DIMENSION1_CHARS94 -- ASCII('B'), right-half-of-JISX0201('I'), ...
2592 o DIMENSION1_CHARS96 -- right-half-of-ISO8859-1('A'), ...
2593 o DIMENSION2_CHARS94 -- GB2312('A'), JISX0208('B'), ...
2594 o DIMENSION2_CHARS96 -- none for the moment
2595
2596 A code area (1 byte=8 bits) is divided into 4 areas, C0, GL, C1, and GR.
2597 C0 [0x00..0x1F] -- control character plane 0
2598 GL [0x20..0x7F] -- graphic character plane 0
2599 C1 [0x80..0x9F] -- control character plane 1
2600 GR [0xA0..0xFF] -- graphic character plane 1
2601
2602 A control character set is directly designated and invoked to C0 or
2603 C1 by an escape sequence. The most common case is that:
2604 - ISO646's control character set is designated/invoked to C0, and
2605 - ISO6429's control character set is designated/invoked to C1,
2606 and usually these designations/invocations are omitted in encoded
2607 text. In a 7-bit environment, only C0 can be used, and a control
2608 character for C1 is encoded by an appropriate escape sequence to
2609 fit into the environment. All control characters for C1 are
2610 defined to have corresponding escape sequences.
2611
2612 A graphic character set is at first designated to one of four
2613 graphic registers (G0 through G3), then these graphic registers are
2614 invoked to GL or GR. These designations and invocations can be
2615 done independently. The most common case is that G0 is invoked to
2616 GL, G1 is invoked to GR, and ASCII is designated to G0. Usually
2617 these invocations and designations are omitted in encoded text.
2618 In a 7-bit environment, only GL can be used.
2619
2620 When a graphic character set of CHARS94 is invoked to GL, codes
2621 0x20 and 0x7F of the GL area work as control characters SPACE and
2622 DEL respectively, and codes 0xA0 and 0xFF of the GR area should not
2623 be used.
2624
2625 There are two ways of invocation: locking-shift and single-shift.
2626 With locking-shift, the invocation lasts until the next different
2627 invocation, whereas with single-shift, the invocation affects the
2628 following character only and doesn't affect the locking-shift
2629 state. Invocations are done by the following control characters or
2630 escape sequences:
2631
2632 ----------------------------------------------------------------------
2633 abbrev function cntrl escape seq description
2634 ----------------------------------------------------------------------
2635 SI/LS0 (shift-in) 0x0F none invoke G0 into GL
2636 SO/LS1 (shift-out) 0x0E none invoke G1 into GL
2637 LS2 (locking-shift-2) none ESC 'n' invoke G2 into GL
2638 LS3 (locking-shift-3) none ESC 'o' invoke G3 into GL
2639 LS1R (locking-shift-1 right) none ESC '~' invoke G1 into GR (*)
2640 LS2R (locking-shift-2 right) none ESC '}' invoke G2 into GR (*)
2641 LS3R (locking-shift 3 right) none ESC '|' invoke G3 into GR (*)
2642 SS2 (single-shift-2) 0x8E ESC 'N' invoke G2 for one char
2643 SS3 (single-shift-3) 0x8F ESC 'O' invoke G3 for one char
2644 ----------------------------------------------------------------------
2645 (*) These are not used by any known coding system.
2646
2647 Control characters for these functions are defined by macros
2648 ISO_CODE_XXX in `coding.h'.
2649
2650 Designations are done by the following escape sequences:
2651 ----------------------------------------------------------------------
2652 escape sequence description
2653 ----------------------------------------------------------------------
2654 ESC '(' <F> designate DIMENSION1_CHARS94<F> to G0
2655 ESC ')' <F> designate DIMENSION1_CHARS94<F> to G1
2656 ESC '*' <F> designate DIMENSION1_CHARS94<F> to G2
2657 ESC '+' <F> designate DIMENSION1_CHARS94<F> to G3
2658 ESC ',' <F> designate DIMENSION1_CHARS96<F> to G0 (*)
2659 ESC '-' <F> designate DIMENSION1_CHARS96<F> to G1
2660 ESC '.' <F> designate DIMENSION1_CHARS96<F> to G2
2661 ESC '/' <F> designate DIMENSION1_CHARS96<F> to G3
2662 ESC '$' '(' <F> designate DIMENSION2_CHARS94<F> to G0 (**)
2663 ESC '$' ')' <F> designate DIMENSION2_CHARS94<F> to G1
2664 ESC '$' '*' <F> designate DIMENSION2_CHARS94<F> to G2
2665 ESC '$' '+' <F> designate DIMENSION2_CHARS94<F> to G3
2666 ESC '$' ',' <F> designate DIMENSION2_CHARS96<F> to G0 (*)
2667 ESC '$' '-' <F> designate DIMENSION2_CHARS96<F> to G1
2668 ESC '$' '.' <F> designate DIMENSION2_CHARS96<F> to G2
2669 ESC '$' '/' <F> designate DIMENSION2_CHARS96<F> to G3
2670 ----------------------------------------------------------------------
2671
2672 In this list, "DIMENSION1_CHARS94<F>" means a graphic character set
2673 of dimension 1, chars 94, and final character <F>, etc...
2674
2675 Note (*): Although these designations are not allowed in ISO2022,
2676 Emacs accepts them on decoding, and produces them on encoding
2677 CHARS96 character sets in a coding system which is characterized as
2678 7-bit environment, non-locking-shift, and non-single-shift.
2679
2680 Note (**): If <F> is '@', 'A', or 'B', the intermediate character
2681 '(' must be omitted. We refer to this as "short-form" hereafter.
2682
2683 Now you may notice that there are a lot of ways of encoding the
2684 same multilingual text in ISO2022. Actually, there exist many
2685 coding systems such as Compound Text (used in X11's inter client
2686 communication, ISO-2022-JP (used in Japanese Internet), ISO-2022-KR
2687 (used in Korean Internet), EUC (Extended UNIX Code, used in Asian
2688 localized platforms), and all of these are variants of ISO2022.
2689
2690 In addition to the above, Emacs handles two more kinds of escape
2691 sequences: ISO6429's direction specification and Emacs' private
2692 sequence for specifying character composition.
2693
2694 ISO6429's direction specification takes the following form:
2695 o CSI ']' -- end of the current direction
2696 o CSI '0' ']' -- end of the current direction
2697 o CSI '1' ']' -- start of left-to-right text
2698 o CSI '2' ']' -- start of right-to-left text
2699 The control character CSI (0x9B: control sequence introducer) is
2700 abbreviated to the escape sequence ESC '[' in a 7-bit environment.
2701
2702 Character composition specification takes the following form:
2703 o ESC '0' -- start relative composition
2704 o ESC '1' -- end composition
2705 o ESC '2' -- start rule-base composition (*)
2706 o ESC '3' -- start relative composition with alternate chars (**)
2707 o ESC '4' -- start rule-base composition with alternate chars (**)
2708 Since these are not standard escape sequences of any ISO standard,
2709 the use of them with these meanings is restricted to Emacs only.
2710
2711 (*) This form is used only in Emacs 20.7 and older versions,
2712 but newer versions can safely decode it.
2713 (**) This form is used only in Emacs 21.1 and newer versions,
2714 and older versions can't decode it.
2715
2716 Here's a list of example usages of these composition escape
2717 sequences (categorized by `enum composition_method').
2718
2719 COMPOSITION_RELATIVE:
2720 ESC 0 CHAR [ CHAR ] ESC 1
2721 COMPOSITION_WITH_RULE:
2722 ESC 2 CHAR [ RULE CHAR ] ESC 1
2723 COMPOSITION_WITH_ALTCHARS:
2724 ESC 3 ALTCHAR [ ALTCHAR ] ESC 0 CHAR [ CHAR ] ESC 1
2725 COMPOSITION_WITH_RULE_ALTCHARS:
2726 ESC 4 ALTCHAR [ RULE ALTCHAR ] ESC 0 CHAR [ CHAR ] ESC 1 */
2727
2728 enum iso_code_class_type iso_code_class[256];
2729
2730 #define SAFE_CHARSET_P(coding, id) \
2731 ((id) <= (coding)->max_charset_id \
2732 && (coding)->safe_charsets[id] >= 0)
2733
2734
2735 #define SHIFT_OUT_OK(category) \
2736 (CODING_ISO_INITIAL (&coding_categories[category], 1) >= 0)
2737
2738 static void
2739 setup_iso_safe_charsets (attrs)
2740 Lisp_Object attrs;
2741 {
2742 Lisp_Object charset_list, safe_charsets;
2743 Lisp_Object request;
2744 Lisp_Object reg_usage;
2745 Lisp_Object tail;
2746 int reg94, reg96;
2747 int flags = XINT (AREF (attrs, coding_attr_iso_flags));
2748 int max_charset_id;
2749
2750 charset_list = CODING_ATTR_CHARSET_LIST (attrs);
2751 if ((flags & CODING_ISO_FLAG_FULL_SUPPORT)
2752 && ! EQ (charset_list, Viso_2022_charset_list))
2753 {
2754 CODING_ATTR_CHARSET_LIST (attrs)
2755 = charset_list = Viso_2022_charset_list;
2756 ASET (attrs, coding_attr_safe_charsets, Qnil);
2757 }
2758
2759 if (STRINGP (AREF (attrs, coding_attr_safe_charsets)))
2760 return;
2761
2762 max_charset_id = 0;
2763 for (tail = charset_list; CONSP (tail); tail = XCDR (tail))
2764 {
2765 int id = XINT (XCAR (tail));
2766 if (max_charset_id < id)
2767 max_charset_id = id;
2768 }
2769
2770 safe_charsets = Fmake_string (make_number (max_charset_id + 1),
2771 make_number (255));
2772 request = AREF (attrs, coding_attr_iso_request);
2773 reg_usage = AREF (attrs, coding_attr_iso_usage);
2774 reg94 = XINT (XCAR (reg_usage));
2775 reg96 = XINT (XCDR (reg_usage));
2776
2777 for (tail = charset_list; CONSP (tail); tail = XCDR (tail))
2778 {
2779 Lisp_Object id;
2780 Lisp_Object reg;
2781 struct charset *charset;
2782
2783 id = XCAR (tail);
2784 charset = CHARSET_FROM_ID (XINT (id));
2785 reg = Fcdr (Fassq (id, request));
2786 if (! NILP (reg))
2787 SSET (safe_charsets, XINT (id), XINT (reg));
2788 else if (charset->iso_chars_96)
2789 {
2790 if (reg96 < 4)
2791 SSET (safe_charsets, XINT (id), reg96);
2792 }
2793 else
2794 {
2795 if (reg94 < 4)
2796 SSET (safe_charsets, XINT (id), reg94);
2797 }
2798 }
2799 ASET (attrs, coding_attr_safe_charsets, safe_charsets);
2800 }
2801
2802
2803 /* See the above "GENERAL NOTES on `detect_coding_XXX ()' functions".
2804 Check if a text is encoded in one of ISO-2022 based codig systems.
2805 If it is, return 1, else return 0. */
2806
2807 static int
2808 detect_coding_iso_2022 (coding, detect_info)
2809 struct coding_system *coding;
2810 struct coding_detection_info *detect_info;
2811 {
2812 const unsigned char *src = coding->source, *src_base = src;
2813 const unsigned char *src_end = coding->source + coding->src_bytes;
2814 int multibytep = coding->src_multibyte;
2815 int single_shifting = 0;
2816 int id;
2817 int c, c1;
2818 int consumed_chars = 0;
2819 int i;
2820 int rejected = 0;
2821 int found = 0;
2822 int composition_count = -1;
2823
2824 detect_info->checked |= CATEGORY_MASK_ISO;
2825
2826 for (i = coding_category_iso_7; i <= coding_category_iso_8_else; i++)
2827 {
2828 struct coding_system *this = &(coding_categories[i]);
2829 Lisp_Object attrs, val;
2830
2831 if (this->id < 0)
2832 continue;
2833 attrs = CODING_ID_ATTRS (this->id);
2834 if (CODING_ISO_FLAGS (this) & CODING_ISO_FLAG_FULL_SUPPORT
2835 && ! EQ (CODING_ATTR_SAFE_CHARSETS (attrs), Viso_2022_charset_list))
2836 setup_iso_safe_charsets (attrs);
2837 val = CODING_ATTR_SAFE_CHARSETS (attrs);
2838 this->max_charset_id = SCHARS (val) - 1;
2839 this->safe_charsets = (char *) SDATA (val);
2840 }
2841
2842 /* A coding system of this category is always ASCII compatible. */
2843 src += coding->head_ascii;
2844
2845 while (rejected != CATEGORY_MASK_ISO)
2846 {
2847 src_base = src;
2848 ONE_MORE_BYTE (c);
2849 switch (c)
2850 {
2851 case ISO_CODE_ESC:
2852 if (inhibit_iso_escape_detection)
2853 break;
2854 single_shifting = 0;
2855 ONE_MORE_BYTE (c);
2856 if (c >= '(' && c <= '/')
2857 {
2858 /* Designation sequence for a charset of dimension 1. */
2859 ONE_MORE_BYTE (c1);
2860 if (c1 < ' ' || c1 >= 0x80
2861 || (id = iso_charset_table[0][c >= ','][c1]) < 0)
2862 /* Invalid designation sequence. Just ignore. */
2863 break;
2864 }
2865 else if (c == '$')
2866 {
2867 /* Designation sequence for a charset of dimension 2. */
2868 ONE_MORE_BYTE (c);
2869 if (c >= '@' && c <= 'B')
2870 /* Designation for JISX0208.1978, GB2312, or JISX0208. */
2871 id = iso_charset_table[1][0][c];
2872 else if (c >= '(' && c <= '/')
2873 {
2874 ONE_MORE_BYTE (c1);
2875 if (c1 < ' ' || c1 >= 0x80
2876 || (id = iso_charset_table[1][c >= ','][c1]) < 0)
2877 /* Invalid designation sequence. Just ignore. */
2878 break;
2879 }
2880 else
2881 /* Invalid designation sequence. Just ignore it. */
2882 break;
2883 }
2884 else if (c == 'N' || c == 'O')
2885 {
2886 /* ESC <Fe> for SS2 or SS3. */
2887 single_shifting = 1;
2888 rejected |= CATEGORY_MASK_ISO_7BIT | CATEGORY_MASK_ISO_8BIT;
2889 break;
2890 }
2891 else if (c == '1')
2892 {
2893 /* End of composition. */
2894 if (composition_count < 0
2895 || composition_count > MAX_COMPOSITION_COMPONENTS)
2896 /* Invalid */
2897 break;
2898 composition_count = -1;
2899 found |= CATEGORY_MASK_ISO;
2900 }
2901 else if (c >= '0' && c <= '4')
2902 {
2903 /* ESC <Fp> for start/end composition. */
2904 composition_count = 0;
2905 break;
2906 }
2907 else
2908 {
2909 /* Invalid escape sequence. Just ignore it. */
2910 break;
2911 }
2912
2913 /* We found a valid designation sequence for CHARSET. */
2914 rejected |= CATEGORY_MASK_ISO_8BIT;
2915 if (SAFE_CHARSET_P (&coding_categories[coding_category_iso_7],
2916 id))
2917 found |= CATEGORY_MASK_ISO_7;
2918 else
2919 rejected |= CATEGORY_MASK_ISO_7;
2920 if (SAFE_CHARSET_P (&coding_categories[coding_category_iso_7_tight],
2921 id))
2922 found |= CATEGORY_MASK_ISO_7_TIGHT;
2923 else
2924 rejected |= CATEGORY_MASK_ISO_7_TIGHT;
2925 if (SAFE_CHARSET_P (&coding_categories[coding_category_iso_7_else],
2926 id))
2927 found |= CATEGORY_MASK_ISO_7_ELSE;
2928 else
2929 rejected |= CATEGORY_MASK_ISO_7_ELSE;
2930 if (SAFE_CHARSET_P (&coding_categories[coding_category_iso_8_else],
2931 id))
2932 found |= CATEGORY_MASK_ISO_8_ELSE;
2933 else
2934 rejected |= CATEGORY_MASK_ISO_8_ELSE;
2935 break;
2936
2937 case ISO_CODE_SO:
2938 case ISO_CODE_SI:
2939 /* Locking shift out/in. */
2940 if (inhibit_iso_escape_detection)
2941 break;
2942 single_shifting = 0;
2943 rejected |= CATEGORY_MASK_ISO_7BIT | CATEGORY_MASK_ISO_8BIT;
2944 break;
2945
2946 case ISO_CODE_CSI:
2947 /* Control sequence introducer. */
2948 single_shifting = 0;
2949 rejected |= CATEGORY_MASK_ISO_7BIT | CATEGORY_MASK_ISO_7_ELSE;
2950 found |= CATEGORY_MASK_ISO_8_ELSE;
2951 goto check_extra_latin;
2952
2953 case ISO_CODE_SS2:
2954 case ISO_CODE_SS3:
2955 /* Single shift. */
2956 if (inhibit_iso_escape_detection)
2957 break;
2958 single_shifting = 0;
2959 rejected |= CATEGORY_MASK_ISO_7BIT;
2960 if (CODING_ISO_FLAGS (&coding_categories[coding_category_iso_8_1])
2961 & CODING_ISO_FLAG_SINGLE_SHIFT)
2962 found |= CATEGORY_MASK_ISO_8_1, single_shifting = 1;
2963 if (CODING_ISO_FLAGS (&coding_categories[coding_category_iso_8_2])
2964 & CODING_ISO_FLAG_SINGLE_SHIFT)
2965 found |= CATEGORY_MASK_ISO_8_2, single_shifting = 1;
2966 if (single_shifting)
2967 break;
2968 goto check_extra_latin;
2969
2970 default:
2971 if (c < 0)
2972 continue;
2973 if (c < 0x80)
2974 {
2975 if (composition_count >= 0)
2976 composition_count++;
2977 single_shifting = 0;
2978 break;
2979 }
2980 if (c >= 0xA0)
2981 {
2982 rejected |= CATEGORY_MASK_ISO_7BIT | CATEGORY_MASK_ISO_7_ELSE;
2983 found |= CATEGORY_MASK_ISO_8_1;
2984 /* Check the length of succeeding codes of the range
2985 0xA0..0FF. If the byte length is even, we include
2986 CATEGORY_MASK_ISO_8_2 in `found'. We can check this
2987 only when we are not single shifting. */
2988 if (! single_shifting
2989 && ! (rejected & CATEGORY_MASK_ISO_8_2))
2990 {
2991 int i = 1;
2992 while (src < src_end)
2993 {
2994 ONE_MORE_BYTE (c);
2995 if (c < 0xA0)
2996 break;
2997 i++;
2998 }
2999
3000 if (i & 1 && src < src_end)
3001 {
3002 rejected |= CATEGORY_MASK_ISO_8_2;
3003 if (composition_count >= 0)
3004 composition_count += i;
3005 }
3006 else
3007 {
3008 found |= CATEGORY_MASK_ISO_8_2;
3009 if (composition_count >= 0)
3010 composition_count += i / 2;
3011 }
3012 }
3013 break;
3014 }
3015 check_extra_latin:
3016 single_shifting = 0;
3017 if (! VECTORP (Vlatin_extra_code_table)
3018 || NILP (XVECTOR (Vlatin_extra_code_table)->contents[c]))
3019 {
3020 rejected = CATEGORY_MASK_ISO;
3021 break;
3022 }
3023 if (CODING_ISO_FLAGS (&coding_categories[coding_category_iso_8_1])
3024 & CODING_ISO_FLAG_LATIN_EXTRA)
3025 found |= CATEGORY_MASK_ISO_8_1;
3026 else
3027 rejected |= CATEGORY_MASK_ISO_8_1;
3028 rejected |= CATEGORY_MASK_ISO_8_2;
3029 }
3030 }
3031 detect_info->rejected |= CATEGORY_MASK_ISO;
3032 return 0;
3033
3034 no_more_source:
3035 detect_info->rejected |= rejected;
3036 detect_info->found |= (found & ~rejected);
3037 return 1;
3038 }
3039
3040
3041 /* Set designation state into CODING. Set CHARS_96 to -1 if the
3042 escape sequence should be kept. */
3043 #define DECODE_DESIGNATION(reg, dim, chars_96, final) \
3044 do { \
3045 int id, prev; \
3046 \
3047 if (final < '0' || final >= 128 \
3048 || ((id = ISO_CHARSET_TABLE (dim, chars_96, final)) < 0) \
3049 || !SAFE_CHARSET_P (coding, id)) \
3050 { \
3051 CODING_ISO_DESIGNATION (coding, reg) = -2; \
3052 chars_96 = -1; \
3053 break; \
3054 } \
3055 prev = CODING_ISO_DESIGNATION (coding, reg); \
3056 if (id == charset_jisx0201_roman) \
3057 { \
3058 if (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_USE_ROMAN) \
3059 id = charset_ascii; \
3060 } \
3061 else if (id == charset_jisx0208_1978) \
3062 { \
3063 if (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_USE_OLDJIS) \
3064 id = charset_jisx0208; \
3065 } \
3066 CODING_ISO_DESIGNATION (coding, reg) = id; \
3067 /* If there was an invalid designation to REG previously, and this \
3068 designation is ASCII to REG, we should keep this designation \
3069 sequence. */ \
3070 if (prev == -2 && id == charset_ascii) \
3071 chars_96 = -1; \
3072 } while (0)
3073
3074
3075 #define MAYBE_FINISH_COMPOSITION() \
3076 do { \
3077 int i; \
3078 if (composition_state == COMPOSING_NO) \
3079 break; \
3080 /* It is assured that we have enough room for producing \
3081 characters stored in the table `components'. */ \
3082 if (charbuf + component_idx > charbuf_end) \
3083 goto no_more_source; \
3084 composition_state = COMPOSING_NO; \
3085 if (method == COMPOSITION_RELATIVE \
3086 || method == COMPOSITION_WITH_ALTCHARS) \
3087 { \
3088 for (i = 0; i < component_idx; i++) \
3089 *charbuf++ = components[i]; \
3090 char_offset += component_idx; \
3091 } \
3092 else \
3093 { \
3094 for (i = 0; i < component_idx; i += 2) \
3095 *charbuf++ = components[i]; \
3096 char_offset += (component_idx / 2) + 1; \
3097 } \
3098 } while (0)
3099
3100
3101 /* Handle composition start sequence ESC 0, ESC 2, ESC 3, or ESC 4.
3102 ESC 0 : relative composition : ESC 0 CHAR ... ESC 1
3103 ESC 2 : rulebase composition : ESC 2 CHAR RULE CHAR RULE ... CHAR ESC 1
3104 ESC 3 : altchar composition : ESC 3 CHAR ... ESC 0 CHAR ... ESC 1
3105 ESC 4 : alt&rule composition : ESC 4 CHAR RULE ... CHAR ESC 0 CHAR ... ESC 1
3106 */
3107
3108 #define DECODE_COMPOSITION_START(c1) \
3109 do { \
3110 if (c1 == '0' \
3111 && composition_state == COMPOSING_COMPONENT_RULE) \
3112 { \
3113 component_len = component_idx; \
3114 composition_state = COMPOSING_CHAR; \
3115 } \
3116 else \
3117 { \
3118 const unsigned char *p; \
3119 \
3120 MAYBE_FINISH_COMPOSITION (); \
3121 if (charbuf + MAX_COMPOSITION_COMPONENTS > charbuf_end) \
3122 goto no_more_source; \
3123 for (p = src; p < src_end - 1; p++) \
3124 if (*p == ISO_CODE_ESC && p[1] == '1') \
3125 break; \
3126 if (p == src_end - 1) \
3127 { \
3128 if (coding->mode & CODING_MODE_LAST_BLOCK) \
3129 goto invalid_code; \
3130 /* The current composition doesn't end in the current \
3131 source. */ \
3132 record_conversion_result \
3133 (coding, CODING_RESULT_INSUFFICIENT_SRC); \
3134 goto no_more_source; \
3135 } \
3136 \
3137 /* This is surely the start of a composition. */ \
3138 method = (c1 == '0' ? COMPOSITION_RELATIVE \
3139 : c1 == '2' ? COMPOSITION_WITH_RULE \
3140 : c1 == '3' ? COMPOSITION_WITH_ALTCHARS \
3141 : COMPOSITION_WITH_RULE_ALTCHARS); \
3142 composition_state = (c1 <= '2' ? COMPOSING_CHAR \
3143 : COMPOSING_COMPONENT_CHAR); \
3144 component_idx = component_len = 0; \
3145 } \
3146 } while (0)
3147
3148
3149 /* Handle compositoin end sequence ESC 1. */
3150
3151 #define DECODE_COMPOSITION_END() \
3152 do { \
3153 int nchars = (component_len > 0 ? component_idx - component_len \
3154 : method == COMPOSITION_RELATIVE ? component_idx \
3155 : (component_idx + 1) / 2); \
3156 int i; \
3157 int *saved_charbuf = charbuf; \
3158 \
3159 ADD_COMPOSITION_DATA (charbuf, nchars, method); \
3160 if (method != COMPOSITION_RELATIVE) \
3161 { \
3162 if (component_len == 0) \
3163 for (i = 0; i < component_idx; i++) \
3164 *charbuf++ = components[i]; \
3165 else \
3166 for (i = 0; i < component_len; i++) \
3167 *charbuf++ = components[i]; \
3168 *saved_charbuf = saved_charbuf - charbuf; \
3169 } \
3170 if (method == COMPOSITION_WITH_RULE) \
3171 for (i = 0; i < component_idx; i += 2, char_offset++) \
3172 *charbuf++ = components[i]; \
3173 else \
3174 for (i = component_len; i < component_idx; i++, char_offset++) \
3175 *charbuf++ = components[i]; \
3176 coding->annotated = 1; \
3177 composition_state = COMPOSING_NO; \
3178 } while (0)
3179
3180
3181 /* Decode a composition rule from the byte C1 (and maybe one more byte
3182 from SRC) and store one encoded composition rule in
3183 coding->cmp_data. */
3184
3185 #define DECODE_COMPOSITION_RULE(c1) \
3186 do { \
3187 (c1) -= 32; \
3188 if (c1 < 81) /* old format (before ver.21) */ \
3189 { \
3190 int gref = (c1) / 9; \
3191 int nref = (c1) % 9; \
3192 if (gref == 4) gref = 10; \
3193 if (nref == 4) nref = 10; \
3194 c1 = COMPOSITION_ENCODE_RULE (gref, nref); \
3195 } \
3196 else if (c1 < 93) /* new format (after ver.21) */ \
3197 { \
3198 ONE_MORE_BYTE (c2); \
3199 c1 = COMPOSITION_ENCODE_RULE (c1 - 81, c2 - 32); \
3200 } \
3201 else \
3202 c1 = 0; \
3203 } while (0)
3204
3205
3206 /* See the above "GENERAL NOTES on `decode_coding_XXX ()' functions". */
3207
3208 static void
3209 decode_coding_iso_2022 (coding)
3210 struct coding_system *coding;
3211 {
3212 const unsigned char *src = coding->source + coding->consumed;
3213 const unsigned char *src_end = coding->source + coding->src_bytes;
3214 const unsigned char *src_base;
3215 int *charbuf = coding->charbuf + coding->charbuf_used;
3216 int *charbuf_end
3217 = coding->charbuf + coding->charbuf_size - 4 - MAX_ANNOTATION_LENGTH;
3218 int consumed_chars = 0, consumed_chars_base;
3219 int multibytep = coding->src_multibyte;
3220 /* Charsets invoked to graphic plane 0 and 1 respectively. */
3221 int charset_id_0 = CODING_ISO_INVOKED_CHARSET (coding, 0);
3222 int charset_id_1 = CODING_ISO_INVOKED_CHARSET (coding, 1);
3223 int charset_id_2, charset_id_3;
3224 struct charset *charset;
3225 int c;
3226 /* For handling composition sequence. */
3227 #define COMPOSING_NO 0
3228 #define COMPOSING_CHAR 1
3229 #define COMPOSING_RULE 2
3230 #define COMPOSING_COMPONENT_CHAR 3
3231 #define COMPOSING_COMPONENT_RULE 4
3232
3233 int composition_state = COMPOSING_NO;
3234 enum composition_method method;
3235 int components[MAX_COMPOSITION_COMPONENTS * 2 + 1];
3236 int component_idx;
3237 int component_len;
3238 Lisp_Object attrs, charset_list;
3239 int char_offset = coding->produced_char;
3240 int last_offset = char_offset;
3241 int last_id = charset_ascii;
3242 int eol_crlf = EQ (CODING_ID_EOL_TYPE (coding->id), Qdos);
3243 int byte_after_cr = -1;
3244
3245 CODING_GET_INFO (coding, attrs, charset_list);
3246 setup_iso_safe_charsets (attrs);
3247 /* Charset list may have been changed. */
3248 charset_list = CODING_ATTR_CHARSET_LIST (attrs);
3249 coding->safe_charsets = (char *) SDATA (CODING_ATTR_SAFE_CHARSETS(attrs));
3250
3251 while (1)
3252 {
3253 int c1, c2;
3254
3255 src_base = src;
3256 consumed_chars_base = consumed_chars;
3257
3258 if (charbuf >= charbuf_end)
3259 {
3260 if (byte_after_cr >= 0)
3261 src_base--;
3262 break;
3263 }
3264
3265 if (byte_after_cr >= 0)
3266 c1 = byte_after_cr, byte_after_cr = -1;
3267 else
3268 ONE_MORE_BYTE (c1);
3269 if (c1 < 0)
3270 goto invalid_code;
3271
3272 /* We produce at most one character. */
3273 switch (iso_code_class [c1])
3274 {
3275 case ISO_0x20_or_0x7F:
3276 if (composition_state != COMPOSING_NO)
3277 {
3278 if (composition_state == COMPOSING_RULE
3279 || composition_state == COMPOSING_COMPONENT_RULE)
3280 {
3281 if (component_idx < MAX_COMPOSITION_COMPONENTS * 2 + 1)
3282 {
3283 DECODE_COMPOSITION_RULE (c1);
3284 components[component_idx++] = c1;
3285 composition_state--;
3286 continue;
3287 }
3288 /* Too long composition. */
3289 MAYBE_FINISH_COMPOSITION ();
3290 }
3291 }
3292 if (charset_id_0 < 0
3293 || ! CHARSET_ISO_CHARS_96 (CHARSET_FROM_ID (charset_id_0)))
3294 /* This is SPACE or DEL. */
3295 charset = CHARSET_FROM_ID (charset_ascii);
3296 else
3297 charset = CHARSET_FROM_ID (charset_id_0);
3298 break;
3299
3300 case ISO_graphic_plane_0:
3301 if (composition_state != COMPOSING_NO)
3302 {
3303 if (composition_state == COMPOSING_RULE
3304 || composition_state == COMPOSING_COMPONENT_RULE)
3305 {
3306 if (component_idx < MAX_COMPOSITION_COMPONENTS * 2 + 1)
3307 {
3308 DECODE_COMPOSITION_RULE (c1);
3309 components[component_idx++] = c1;
3310 composition_state--;
3311 continue;
3312 }
3313 MAYBE_FINISH_COMPOSITION ();
3314 }
3315 }
3316 if (charset_id_0 < 0)
3317 charset = CHARSET_FROM_ID (charset_ascii);
3318 else
3319 charset = CHARSET_FROM_ID (charset_id_0);
3320 break;
3321
3322 case ISO_0xA0_or_0xFF:
3323 if (charset_id_1 < 0
3324 || ! CHARSET_ISO_CHARS_96 (CHARSET_FROM_ID (charset_id_1))
3325 || CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_SEVEN_BITS)
3326 goto invalid_code;
3327 /* This is a graphic character, we fall down ... */
3328
3329 case ISO_graphic_plane_1:
3330 if (charset_id_1 < 0)
3331 goto invalid_code;
3332 charset = CHARSET_FROM_ID (charset_id_1);
3333 break;
3334
3335 case ISO_control_0:
3336 if (eol_crlf && c1 == '\r')
3337 ONE_MORE_BYTE (byte_after_cr);
3338 MAYBE_FINISH_COMPOSITION ();
3339 charset = CHARSET_FROM_ID (charset_ascii);
3340 break;
3341
3342 case ISO_control_1:
3343 MAYBE_FINISH_COMPOSITION ();
3344 goto invalid_code;
3345
3346 case ISO_shift_out:
3347 if (! (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_LOCKING_SHIFT)
3348 || CODING_ISO_DESIGNATION (coding, 1) < 0)
3349 goto invalid_code;
3350 CODING_ISO_INVOCATION (coding, 0) = 1;
3351 charset_id_0 = CODING_ISO_INVOKED_CHARSET (coding, 0);
3352 continue;
3353
3354 case ISO_shift_in:
3355 if (! (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_LOCKING_SHIFT))
3356 goto invalid_code;
3357 CODING_ISO_INVOCATION (coding, 0) = 0;
3358 charset_id_0 = CODING_ISO_INVOKED_CHARSET (coding, 0);
3359 continue;
3360
3361 case ISO_single_shift_2_7:
3362 case ISO_single_shift_2:
3363 if (! (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_SINGLE_SHIFT))
3364 goto invalid_code;
3365 /* SS2 is handled as an escape sequence of ESC 'N' */
3366 c1 = 'N';
3367 goto label_escape_sequence;
3368
3369 case ISO_single_shift_3:
3370 if (! (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_SINGLE_SHIFT))
3371 goto invalid_code;
3372 /* SS2 is handled as an escape sequence of ESC 'O' */
3373 c1 = 'O';
3374 goto label_escape_sequence;
3375
3376 case ISO_control_sequence_introducer:
3377 /* CSI is handled as an escape sequence of ESC '[' ... */
3378 c1 = '[';
3379 goto label_escape_sequence;
3380
3381 case ISO_escape:
3382 ONE_MORE_BYTE (c1);
3383 label_escape_sequence:
3384 /* Escape sequences handled here are invocation,
3385 designation, direction specification, and character
3386 composition specification. */
3387 switch (c1)
3388 {
3389 case '&': /* revision of following character set */
3390 ONE_MORE_BYTE (c1);
3391 if (!(c1 >= '@' && c1 <= '~'))
3392 goto invalid_code;
3393 ONE_MORE_BYTE (c1);
3394 if (c1 != ISO_CODE_ESC)
3395 goto invalid_code;
3396 ONE_MORE_BYTE (c1);
3397 goto label_escape_sequence;
3398
3399 case '$': /* designation of 2-byte character set */
3400 if (! (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_DESIGNATION))
3401 goto invalid_code;
3402 {
3403 int reg, chars96;
3404
3405 ONE_MORE_BYTE (c1);
3406 if (c1 >= '@' && c1 <= 'B')
3407 { /* designation of JISX0208.1978, GB2312.1980,
3408 or JISX0208.1980 */
3409 reg = 0, chars96 = 0;
3410 }
3411 else if (c1 >= 0x28 && c1 <= 0x2B)
3412 { /* designation of DIMENSION2_CHARS94 character set */
3413 reg = c1 - 0x28, chars96 = 0;
3414 ONE_MORE_BYTE (c1);
3415 }
3416 else if (c1 >= 0x2C && c1 <= 0x2F)
3417 { /* designation of DIMENSION2_CHARS96 character set */
3418 reg = c1 - 0x2C, chars96 = 1;
3419 ONE_MORE_BYTE (c1);
3420 }
3421 else
3422 goto invalid_code;
3423 DECODE_DESIGNATION (reg, 2, chars96, c1);
3424 /* We must update these variables now. */
3425 if (reg == 0)
3426 charset_id_0 = CODING_ISO_INVOKED_CHARSET (coding, 0);
3427 else if (reg == 1)
3428 charset_id_1 = CODING_ISO_INVOKED_CHARSET (coding, 1);
3429 if (chars96 < 0)
3430 goto invalid_code;
3431 }
3432 continue;
3433
3434 case 'n': /* invocation of locking-shift-2 */
3435 if (! (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_LOCKING_SHIFT)
3436 || CODING_ISO_DESIGNATION (coding, 2) < 0)
3437 goto invalid_code;
3438 CODING_ISO_INVOCATION (coding, 0) = 2;
3439 charset_id_0 = CODING_ISO_INVOKED_CHARSET (coding, 0);
3440 continue;
3441
3442 case 'o': /* invocation of locking-shift-3 */
3443 if (! (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_LOCKING_SHIFT)
3444 || CODING_ISO_DESIGNATION (coding, 3) < 0)
3445 goto invalid_code;
3446 CODING_ISO_INVOCATION (coding, 0) = 3;
3447 charset_id_0 = CODING_ISO_INVOKED_CHARSET (coding, 0);
3448 continue;
3449
3450 case 'N': /* invocation of single-shift-2 */
3451 if (! (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_SINGLE_SHIFT)
3452 || CODING_ISO_DESIGNATION (coding, 2) < 0)
3453 goto invalid_code;
3454 charset_id_2 = CODING_ISO_DESIGNATION (coding, 2);
3455 if (charset_id_2 < 0)
3456 charset = CHARSET_FROM_ID (charset_ascii);
3457 else
3458 charset = CHARSET_FROM_ID (charset_id_2);
3459 ONE_MORE_BYTE (c1);
3460 if (c1 < 0x20 || (c1 >= 0x80 && c1 < 0xA0))
3461 goto invalid_code;
3462 break;
3463
3464 case 'O': /* invocation of single-shift-3 */
3465 if (! (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_SINGLE_SHIFT)
3466 || CODING_ISO_DESIGNATION (coding, 3) < 0)
3467 goto invalid_code;
3468 charset_id_3 = CODING_ISO_DESIGNATION (coding, 3);
3469 if (charset_id_3 < 0)
3470 charset = CHARSET_FROM_ID (charset_ascii);
3471 else
3472 charset = CHARSET_FROM_ID (charset_id_3);
3473 ONE_MORE_BYTE (c1);
3474 if (c1 < 0x20 || (c1 >= 0x80 && c1 < 0xA0))
3475 goto invalid_code;
3476 break;
3477
3478 case '0': case '2': case '3': case '4': /* start composition */
3479 if (! (coding->common_flags & CODING_ANNOTATE_COMPOSITION_MASK))
3480 goto invalid_code;
3481 DECODE_COMPOSITION_START (c1);
3482 continue;
3483
3484 case '1': /* end composition */
3485 if (composition_state == COMPOSING_NO)
3486 goto invalid_code;
3487 DECODE_COMPOSITION_END ();
3488 continue;
3489
3490 case '[': /* specification of direction */
3491 if (! CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_DIRECTION)
3492 goto invalid_code;
3493 /* For the moment, nested direction is not supported.
3494 So, `coding->mode & CODING_MODE_DIRECTION' zero means
3495 left-to-right, and nozero means right-to-left. */
3496 ONE_MORE_BYTE (c1);
3497 switch (c1)
3498 {
3499 case ']': /* end of the current direction */
3500 coding->mode &= ~CODING_MODE_DIRECTION;
3501
3502 case '0': /* end of the current direction */
3503 case '1': /* start of left-to-right direction */
3504 ONE_MORE_BYTE (c1);
3505 if (c1 == ']')
3506 coding->mode &= ~CODING_MODE_DIRECTION;
3507 else
3508 goto invalid_code;
3509 break;
3510
3511 case '2': /* start of right-to-left direction */
3512 ONE_MORE_BYTE (c1);
3513 if (c1 == ']')
3514 coding->mode |= CODING_MODE_DIRECTION;
3515 else
3516 goto invalid_code;
3517 break;
3518
3519 default:
3520 goto invalid_code;
3521 }
3522 continue;
3523
3524 case '%':
3525 ONE_MORE_BYTE (c1);
3526 if (c1 == '/')
3527 {
3528 /* CTEXT extended segment:
3529 ESC % / [0-4] M L --ENCODING-NAME-- \002 --BYTES--
3530 We keep these bytes as is for the moment.
3531 They may be decoded by post-read-conversion. */
3532 int dim, M, L;
3533 int size;
3534
3535 ONE_MORE_BYTE (dim);
3536 ONE_MORE_BYTE (M);
3537 ONE_MORE_BYTE (L);
3538 size = ((M - 128) * 128) + (L - 128);
3539 if (charbuf + 8 + size > charbuf_end)
3540 goto break_loop;
3541 *charbuf++ = ISO_CODE_ESC;
3542 *charbuf++ = '%';
3543 *charbuf++ = '/';
3544 *charbuf++ = dim;
3545 *charbuf++ = BYTE8_TO_CHAR (M);
3546 *charbuf++ = BYTE8_TO_CHAR (L);
3547 while (size-- > 0)
3548 {
3549 ONE_MORE_BYTE (c1);
3550 *charbuf++ = ASCII_BYTE_P (c1) ? c1 : BYTE8_TO_CHAR (c1);
3551 }
3552 }
3553 else if (c1 == 'G')
3554 {
3555 /* XFree86 extension for embedding UTF-8 in CTEXT:
3556 ESC % G --UTF-8-BYTES-- ESC % @
3557 We keep these bytes as is for the moment.
3558 They may be decoded by post-read-conversion. */
3559 int *p = charbuf;
3560
3561 if (p + 6 > charbuf_end)
3562 goto break_loop;
3563 *p++ = ISO_CODE_ESC;
3564 *p++ = '%';
3565 *p++ = 'G';
3566 while (p < charbuf_end)
3567 {
3568 ONE_MORE_BYTE (c1);
3569 if (c1 == ISO_CODE_ESC
3570 && src + 1 < src_end
3571 && src[0] == '%'
3572 && src[1] == '@')
3573 {
3574 src += 2;
3575 break;
3576 }
3577 *p++ = ASCII_BYTE_P (c1) ? c1 : BYTE8_TO_CHAR (c1);
3578 }
3579 if (p + 3 > charbuf_end)
3580 goto break_loop;
3581 *p++ = ISO_CODE_ESC;
3582 *p++ = '%';
3583 *p++ = '@';
3584 charbuf = p;
3585 }
3586 else
3587 goto invalid_code;
3588 continue;
3589 break;
3590
3591 default:
3592 if (! (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_DESIGNATION))
3593 goto invalid_code;
3594 {
3595 int reg, chars96;
3596
3597 if (c1 >= 0x28 && c1 <= 0x2B)
3598 { /* designation of DIMENSION1_CHARS94 character set */
3599 reg = c1 - 0x28, chars96 = 0;
3600 ONE_MORE_BYTE (c1);
3601 }
3602 else if (c1 >= 0x2C && c1 <= 0x2F)
3603 { /* designation of DIMENSION1_CHARS96 character set */
3604 reg = c1 - 0x2C, chars96 = 1;
3605 ONE_MORE_BYTE (c1);
3606 }
3607 else
3608 goto invalid_code;
3609 DECODE_DESIGNATION (reg, 1, chars96, c1);
3610 /* We must update these variables now. */
3611 if (reg == 0)
3612 charset_id_0 = CODING_ISO_INVOKED_CHARSET (coding, 0);
3613 else if (reg == 1)
3614 charset_id_1 = CODING_ISO_INVOKED_CHARSET (coding, 1);
3615 if (chars96 < 0)
3616 goto invalid_code;
3617 }
3618 continue;
3619 }
3620 }
3621
3622 if (charset->id != charset_ascii
3623 && last_id != charset->id)
3624 {
3625 if (last_id != charset_ascii)
3626 ADD_CHARSET_DATA (charbuf, char_offset - last_offset, last_id);
3627 last_id = charset->id;
3628 last_offset = char_offset;
3629 }
3630
3631 /* Now we know CHARSET and 1st position code C1 of a character.
3632 Produce a decoded character while getting 2nd position code
3633 C2 if necessary. */
3634 c1 &= 0x7F;
3635 if (CHARSET_DIMENSION (charset) > 1)
3636 {
3637 ONE_MORE_BYTE (c2);
3638 if (c2 < 0x20 || (c2 >= 0x80 && c2 < 0xA0))
3639 /* C2 is not in a valid range. */
3640 goto invalid_code;
3641 c1 = (c1 << 8) | (c2 & 0x7F);
3642 if (CHARSET_DIMENSION (charset) > 2)
3643 {
3644 ONE_MORE_BYTE (c2);
3645 if (c2 < 0x20 || (c2 >= 0x80 && c2 < 0xA0))
3646 /* C2 is not in a valid range. */
3647 goto invalid_code;
3648 c1 = (c1 << 8) | (c2 & 0x7F);
3649 }
3650 }
3651
3652 CODING_DECODE_CHAR (coding, src, src_base, src_end, charset, c1, c);
3653 if (c < 0)
3654 {
3655 MAYBE_FINISH_COMPOSITION ();
3656 for (; src_base < src; src_base++, char_offset++)
3657 {
3658 if (ASCII_BYTE_P (*src_base))
3659 *charbuf++ = *src_base;
3660 else
3661 *charbuf++ = BYTE8_TO_CHAR (*src_base);
3662 }
3663 }
3664 else if (composition_state == COMPOSING_NO)
3665 {
3666 *charbuf++ = c;
3667 char_offset++;
3668 }
3669 else
3670 {
3671 if (component_idx < MAX_COMPOSITION_COMPONENTS * 2 + 1)
3672 {
3673 components[component_idx++] = c;
3674 if (method == COMPOSITION_WITH_RULE
3675 || (method == COMPOSITION_WITH_RULE_ALTCHARS
3676 && composition_state == COMPOSING_COMPONENT_CHAR))
3677 composition_state++;
3678 }
3679 else
3680 {
3681 MAYBE_FINISH_COMPOSITION ();
3682 *charbuf++ = c;
3683 char_offset++;
3684 }
3685 }
3686 continue;
3687
3688 invalid_code:
3689 MAYBE_FINISH_COMPOSITION ();
3690 src = src_base;
3691 consumed_chars = consumed_chars_base;
3692 ONE_MORE_BYTE (c);
3693 *charbuf++ = c < 0 ? -c : ASCII_BYTE_P (c) ? c : BYTE8_TO_CHAR (c);
3694 char_offset++;
3695 coding->errors++;
3696 continue;
3697
3698 break_loop:
3699 break;
3700 }
3701
3702 no_more_source:
3703 if (last_id != charset_ascii)
3704 ADD_CHARSET_DATA (charbuf, char_offset - last_offset, last_id);
3705 coding->consumed_char += consumed_chars_base;
3706 coding->consumed = src_base - coding->source;
3707 coding->charbuf_used = charbuf - coding->charbuf;
3708 }
3709
3710
3711 /* ISO2022 encoding stuff. */
3712
3713 /*
3714 It is not enough to say just "ISO2022" on encoding, we have to
3715 specify more details. In Emacs, each coding system of ISO2022
3716 variant has the following specifications:
3717 1. Initial designation to G0 thru G3.
3718 2. Allows short-form designation?
3719 3. ASCII should be designated to G0 before control characters?
3720 4. ASCII should be designated to G0 at end of line?
3721 5. 7-bit environment or 8-bit environment?
3722 6. Use locking-shift?
3723 7. Use Single-shift?
3724 And the following two are only for Japanese:
3725 8. Use ASCII in place of JIS0201-1976-Roman?
3726 9. Use JISX0208-1983 in place of JISX0208-1978?
3727 These specifications are encoded in CODING_ISO_FLAGS (coding) as flag bits
3728 defined by macros CODING_ISO_FLAG_XXX. See `coding.h' for more
3729 details.
3730 */
3731
3732 /* Produce codes (escape sequence) for designating CHARSET to graphic
3733 register REG at DST, and increment DST. If <final-char> of CHARSET is
3734 '@', 'A', or 'B' and the coding system CODING allows, produce
3735 designation sequence of short-form. */
3736
3737 #define ENCODE_DESIGNATION(charset, reg, coding) \
3738 do { \
3739 unsigned char final_char = CHARSET_ISO_FINAL (charset); \
3740 char *intermediate_char_94 = "()*+"; \
3741 char *intermediate_char_96 = ",-./"; \
3742 int revision = -1; \
3743 int c; \
3744 \
3745 if (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_REVISION) \
3746 revision = CHARSET_ISO_REVISION (charset); \
3747 \
3748 if (revision >= 0) \
3749 { \
3750 EMIT_TWO_ASCII_BYTES (ISO_CODE_ESC, '&'); \
3751 EMIT_ONE_BYTE ('@' + revision); \
3752 } \
3753 EMIT_ONE_ASCII_BYTE (ISO_CODE_ESC); \
3754 if (CHARSET_DIMENSION (charset) == 1) \
3755 { \
3756 if (! CHARSET_ISO_CHARS_96 (charset)) \
3757 c = intermediate_char_94[reg]; \
3758 else \
3759 c = intermediate_char_96[reg]; \
3760 EMIT_ONE_ASCII_BYTE (c); \
3761 } \
3762 else \
3763 { \
3764 EMIT_ONE_ASCII_BYTE ('$'); \
3765 if (! CHARSET_ISO_CHARS_96 (charset)) \
3766 { \
3767 if (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_LONG_FORM \
3768 || reg != 0 \
3769 || final_char < '@' || final_char > 'B') \
3770 EMIT_ONE_ASCII_BYTE (intermediate_char_94[reg]); \
3771 } \
3772 else \
3773 EMIT_ONE_ASCII_BYTE (intermediate_char_96[reg]); \
3774 } \
3775 EMIT_ONE_ASCII_BYTE (final_char); \
3776 \
3777 CODING_ISO_DESIGNATION (coding, reg) = CHARSET_ID (charset); \
3778 } while (0)
3779
3780
3781 /* The following two macros produce codes (control character or escape
3782 sequence) for ISO2022 single-shift functions (single-shift-2 and
3783 single-shift-3). */
3784
3785 #define ENCODE_SINGLE_SHIFT_2 \
3786 do { \
3787 if (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_SEVEN_BITS) \
3788 EMIT_TWO_ASCII_BYTES (ISO_CODE_ESC, 'N'); \
3789 else \
3790 EMIT_ONE_BYTE (ISO_CODE_SS2); \
3791 CODING_ISO_SINGLE_SHIFTING (coding) = 1; \
3792 } while (0)
3793
3794
3795 #define ENCODE_SINGLE_SHIFT_3 \
3796 do { \
3797 if (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_SEVEN_BITS) \
3798 EMIT_TWO_ASCII_BYTES (ISO_CODE_ESC, 'O'); \
3799 else \
3800 EMIT_ONE_BYTE (ISO_CODE_SS3); \
3801 CODING_ISO_SINGLE_SHIFTING (coding) = 1; \
3802 } while (0)
3803
3804
3805 /* The following four macros produce codes (control character or
3806 escape sequence) for ISO2022 locking-shift functions (shift-in,
3807 shift-out, locking-shift-2, and locking-shift-3). */
3808
3809 #define ENCODE_SHIFT_IN \
3810 do { \
3811 EMIT_ONE_ASCII_BYTE (ISO_CODE_SI); \
3812 CODING_ISO_INVOCATION (coding, 0) = 0; \
3813 } while (0)
3814
3815
3816 #define ENCODE_SHIFT_OUT \
3817 do { \
3818 EMIT_ONE_ASCII_BYTE (ISO_CODE_SO); \
3819 CODING_ISO_INVOCATION (coding, 0) = 1; \
3820 } while (0)
3821
3822
3823 #define ENCODE_LOCKING_SHIFT_2 \
3824 do { \
3825 EMIT_TWO_ASCII_BYTES (ISO_CODE_ESC, 'n'); \
3826 CODING_ISO_INVOCATION (coding, 0) = 2; \
3827 } while (0)
3828
3829
3830 #define ENCODE_LOCKING_SHIFT_3 \
3831 do { \
3832 EMIT_TWO_ASCII_BYTES (ISO_CODE_ESC, 'n'); \
3833 CODING_ISO_INVOCATION (coding, 0) = 3; \
3834 } while (0)
3835
3836
3837 /* Produce codes for a DIMENSION1 character whose character set is
3838 CHARSET and whose position-code is C1. Designation and invocation
3839 sequences are also produced in advance if necessary. */
3840
3841 #define ENCODE_ISO_CHARACTER_DIMENSION1(charset, c1) \
3842 do { \
3843 int id = CHARSET_ID (charset); \
3844 \
3845 if ((CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_USE_ROMAN) \
3846 && id == charset_ascii) \
3847 { \
3848 id = charset_jisx0201_roman; \
3849 charset = CHARSET_FROM_ID (id); \
3850 } \
3851 \
3852 if (CODING_ISO_SINGLE_SHIFTING (coding)) \
3853 { \
3854 if (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_SEVEN_BITS) \
3855 EMIT_ONE_ASCII_BYTE (c1 & 0x7F); \
3856 else \
3857 EMIT_ONE_BYTE (c1 | 0x80); \
3858 CODING_ISO_SINGLE_SHIFTING (coding) = 0; \
3859 break; \
3860 } \
3861 else if (id == CODING_ISO_INVOKED_CHARSET (coding, 0)) \
3862 { \
3863 EMIT_ONE_ASCII_BYTE (c1 & 0x7F); \
3864 break; \
3865 } \
3866 else if (id == CODING_ISO_INVOKED_CHARSET (coding, 1)) \
3867 { \
3868 EMIT_ONE_BYTE (c1 | 0x80); \
3869 break; \
3870 } \
3871 else \
3872 /* Since CHARSET is not yet invoked to any graphic planes, we \
3873 must invoke it, or, at first, designate it to some graphic \
3874 register. Then repeat the loop to actually produce the \
3875 character. */ \
3876 dst = encode_invocation_designation (charset, coding, dst, \
3877 &produced_chars); \
3878 } while (1)
3879
3880
3881 /* Produce codes for a DIMENSION2 character whose character set is
3882 CHARSET and whose position-codes are C1 and C2. Designation and
3883 invocation codes are also produced in advance if necessary. */
3884
3885 #define ENCODE_ISO_CHARACTER_DIMENSION2(charset, c1, c2) \
3886 do { \
3887 int id = CHARSET_ID (charset); \
3888 \
3889 if ((CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_USE_OLDJIS) \
3890 && id == charset_jisx0208) \
3891 { \
3892 id = charset_jisx0208_1978; \
3893 charset = CHARSET_FROM_ID (id); \
3894 } \
3895 \
3896 if (CODING_ISO_SINGLE_SHIFTING (coding)) \
3897 { \
3898 if (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_SEVEN_BITS) \
3899 EMIT_TWO_ASCII_BYTES ((c1) & 0x7F, (c2) & 0x7F); \
3900 else \
3901 EMIT_TWO_BYTES ((c1) | 0x80, (c2) | 0x80); \
3902 CODING_ISO_SINGLE_SHIFTING (coding) = 0; \
3903 break; \
3904 } \
3905 else if (id == CODING_ISO_INVOKED_CHARSET (coding, 0)) \
3906 { \
3907 EMIT_TWO_ASCII_BYTES ((c1) & 0x7F, (c2) & 0x7F); \
3908 break; \
3909 } \
3910 else if (id == CODING_ISO_INVOKED_CHARSET (coding, 1)) \
3911 { \
3912 EMIT_TWO_BYTES ((c1) | 0x80, (c2) | 0x80); \
3913 break; \
3914 } \
3915 else \
3916 /* Since CHARSET is not yet invoked to any graphic planes, we \
3917 must invoke it, or, at first, designate it to some graphic \
3918 register. Then repeat the loop to actually produce the \
3919 character. */ \
3920 dst = encode_invocation_designation (charset, coding, dst, \
3921 &produced_chars); \
3922 } while (1)
3923
3924
3925 #define ENCODE_ISO_CHARACTER(charset, c) \
3926 do { \
3927 int code = ENCODE_CHAR ((charset),(c)); \
3928 \
3929 if (CHARSET_DIMENSION (charset) == 1) \
3930 ENCODE_ISO_CHARACTER_DIMENSION1 ((charset), code); \
3931 else \
3932 ENCODE_ISO_CHARACTER_DIMENSION2 ((charset), code >> 8, code & 0xFF); \
3933 } while (0)
3934
3935
3936 /* Produce designation and invocation codes at a place pointed by DST
3937 to use CHARSET. The element `spec.iso_2022' of *CODING is updated.
3938 Return new DST. */
3939
3940 unsigned char *
3941 encode_invocation_designation (charset, coding, dst, p_nchars)
3942 struct charset *charset;
3943 struct coding_system *coding;
3944 unsigned char *dst;
3945 int *p_nchars;
3946 {
3947 int multibytep = coding->dst_multibyte;
3948 int produced_chars = *p_nchars;
3949 int reg; /* graphic register number */
3950 int id = CHARSET_ID (charset);
3951
3952 /* At first, check designations. */
3953 for (reg = 0; reg < 4; reg++)
3954 if (id == CODING_ISO_DESIGNATION (coding, reg))
3955 break;
3956
3957 if (reg >= 4)
3958 {
3959 /* CHARSET is not yet designated to any graphic registers. */
3960 /* At first check the requested designation. */
3961 reg = CODING_ISO_REQUEST (coding, id);
3962 if (reg < 0)
3963 /* Since CHARSET requests no special designation, designate it
3964 to graphic register 0. */
3965 reg = 0;
3966
3967 ENCODE_DESIGNATION (charset, reg, coding);
3968 }
3969
3970 if (CODING_ISO_INVOCATION (coding, 0) != reg
3971 && CODING_ISO_INVOCATION (coding, 1) != reg)
3972 {
3973 /* Since the graphic register REG is not invoked to any graphic
3974 planes, invoke it to graphic plane 0. */
3975 switch (reg)
3976 {
3977 case 0: /* graphic register 0 */
3978 ENCODE_SHIFT_IN;
3979 break;
3980
3981 case 1: /* graphic register 1 */
3982 ENCODE_SHIFT_OUT;
3983 break;
3984
3985 case 2: /* graphic register 2 */
3986 if (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_SINGLE_SHIFT)
3987 ENCODE_SINGLE_SHIFT_2;
3988 else
3989 ENCODE_LOCKING_SHIFT_2;
3990 break;
3991
3992 case 3: /* graphic register 3 */
3993 if (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_SINGLE_SHIFT)
3994 ENCODE_SINGLE_SHIFT_3;
3995 else
3996 ENCODE_LOCKING_SHIFT_3;
3997 break;
3998 }
3999 }
4000
4001 *p_nchars = produced_chars;
4002 return dst;
4003 }
4004
4005 /* The following three macros produce codes for indicating direction
4006 of text. */
4007 #define ENCODE_CONTROL_SEQUENCE_INTRODUCER \
4008 do { \
4009 if (CODING_ISO_FLAGS (coding) == CODING_ISO_FLAG_SEVEN_BITS) \
4010 EMIT_TWO_ASCII_BYTES (ISO_CODE_ESC, '['); \
4011 else \
4012 EMIT_ONE_BYTE (ISO_CODE_CSI); \
4013 } while (0)
4014
4015
4016 #define ENCODE_DIRECTION_R2L() \
4017 do { \
4018 ENCODE_CONTROL_SEQUENCE_INTRODUCER (dst); \
4019 EMIT_TWO_ASCII_BYTES ('2', ']'); \
4020 } while (0)
4021
4022
4023 #define ENCODE_DIRECTION_L2R() \
4024 do { \
4025 ENCODE_CONTROL_SEQUENCE_INTRODUCER (dst); \
4026 EMIT_TWO_ASCII_BYTES ('0', ']'); \
4027 } while (0)
4028
4029
4030 /* Produce codes for designation and invocation to reset the graphic
4031 planes and registers to initial state. */
4032 #define ENCODE_RESET_PLANE_AND_REGISTER() \
4033 do { \
4034 int reg; \
4035 struct charset *charset; \
4036 \
4037 if (CODING_ISO_INVOCATION (coding, 0) != 0) \
4038 ENCODE_SHIFT_IN; \
4039 for (reg = 0; reg < 4; reg++) \
4040 if (CODING_ISO_INITIAL (coding, reg) >= 0 \
4041 && (CODING_ISO_DESIGNATION (coding, reg) \
4042 != CODING_ISO_INITIAL (coding, reg))) \
4043 { \
4044 charset = CHARSET_FROM_ID (CODING_ISO_INITIAL (coding, reg)); \
4045 ENCODE_DESIGNATION (charset, reg, coding); \
4046 } \
4047 } while (0)
4048
4049
4050 /* Produce designation sequences of charsets in the line started from
4051 SRC to a place pointed by DST, and return updated DST.
4052
4053 If the current block ends before any end-of-line, we may fail to
4054 find all the necessary designations. */
4055
4056 static unsigned char *
4057 encode_designation_at_bol (coding, charbuf, charbuf_end, dst)
4058 struct coding_system *coding;
4059 int *charbuf, *charbuf_end;
4060 unsigned char *dst;
4061 {
4062 struct charset *charset;
4063 /* Table of charsets to be designated to each graphic register. */
4064 int r[4];
4065 int c, found = 0, reg;
4066 int produced_chars = 0;
4067 int multibytep = coding->dst_multibyte;
4068 Lisp_Object attrs;
4069 Lisp_Object charset_list;
4070
4071 attrs = CODING_ID_ATTRS (coding->id);
4072 charset_list = CODING_ATTR_CHARSET_LIST (attrs);
4073 if (EQ (charset_list, Qiso_2022))
4074 charset_list = Viso_2022_charset_list;
4075
4076 for (reg = 0; reg < 4; reg++)
4077 r[reg] = -1;
4078
4079 while (found < 4)
4080 {
4081 int id;
4082
4083 c = *charbuf++;
4084 if (c == '\n')
4085 break;
4086 charset = char_charset (c, charset_list, NULL);
4087 id = CHARSET_ID (charset);
4088 reg = CODING_ISO_REQUEST (coding, id);
4089 if (reg >= 0 && r[reg] < 0)
4090 {
4091 found++;
4092 r[reg] = id;
4093 }
4094 }
4095
4096 if (found)
4097 {
4098 for (reg = 0; reg < 4; reg++)
4099 if (r[reg] >= 0
4100 && CODING_ISO_DESIGNATION (coding, reg) != r[reg])
4101 ENCODE_DESIGNATION (CHARSET_FROM_ID (r[reg]), reg, coding);
4102 }
4103
4104 return dst;
4105 }
4106
4107 /* See the above "GENERAL NOTES on `encode_coding_XXX ()' functions". */
4108
4109 static int
4110 encode_coding_iso_2022 (coding)
4111 struct coding_system *coding;
4112 {
4113 int multibytep = coding->dst_multibyte;
4114 int *charbuf = coding->charbuf;
4115 int *charbuf_end = charbuf + coding->charbuf_used;
4116 unsigned char *dst = coding->destination + coding->produced;
4117 unsigned char *dst_end = coding->destination + coding->dst_bytes;
4118 int safe_room = 16;
4119 int bol_designation
4120 = (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_DESIGNATE_AT_BOL
4121 && CODING_ISO_BOL (coding));
4122 int produced_chars = 0;
4123 Lisp_Object attrs, eol_type, charset_list;
4124 int ascii_compatible;
4125 int c;
4126 int preferred_charset_id = -1;
4127
4128 CODING_GET_INFO (coding, attrs, charset_list);
4129 eol_type = CODING_ID_EOL_TYPE (coding->id);
4130 if (VECTORP (eol_type))
4131 eol_type = Qunix;
4132
4133 setup_iso_safe_charsets (attrs);
4134 /* Charset list may have been changed. */
4135 charset_list = CODING_ATTR_CHARSET_LIST (attrs);
4136 coding->safe_charsets = (char *) SDATA (CODING_ATTR_SAFE_CHARSETS(attrs));
4137
4138 ascii_compatible = ! NILP (CODING_ATTR_ASCII_COMPAT (attrs));
4139
4140 while (charbuf < charbuf_end)
4141 {
4142 ASSURE_DESTINATION (safe_room);
4143
4144 if (bol_designation)
4145 {
4146 unsigned char *dst_prev = dst;
4147
4148 /* We have to produce designation sequences if any now. */
4149 dst = encode_designation_at_bol (coding, charbuf, charbuf_end, dst);
4150 bol_designation = 0;
4151 /* We are sure that designation sequences are all ASCII bytes. */
4152 produced_chars += dst - dst_prev;
4153 }
4154
4155 c = *charbuf++;
4156
4157 if (c < 0)
4158 {
4159 /* Handle an annotation. */
4160 switch (*charbuf)
4161 {
4162 case CODING_ANNOTATE_COMPOSITION_MASK:
4163 /* Not yet implemented. */
4164 break;
4165 case CODING_ANNOTATE_CHARSET_MASK:
4166 preferred_charset_id = charbuf[2];
4167 if (preferred_charset_id >= 0
4168 && NILP (Fmemq (make_number (preferred_charset_id),
4169 charset_list)))
4170 preferred_charset_id = -1;
4171 break;
4172 default:
4173 abort ();
4174 }
4175 charbuf += -c - 1;
4176 continue;
4177 }
4178
4179 /* Now encode the character C. */
4180 if (c < 0x20 || c == 0x7F)
4181 {
4182 if (c == '\n'
4183 || (c == '\r' && EQ (eol_type, Qmac)))
4184 {
4185 if (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_RESET_AT_EOL)
4186 ENCODE_RESET_PLANE_AND_REGISTER ();
4187 if (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_INIT_AT_BOL)
4188 {
4189 int i;
4190
4191 for (i = 0; i < 4; i++)
4192 CODING_ISO_DESIGNATION (coding, i)
4193 = CODING_ISO_INITIAL (coding, i);
4194 }
4195 bol_designation
4196 = CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_DESIGNATE_AT_BOL;
4197 }
4198 else if (CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_RESET_AT_CNTL)
4199 ENCODE_RESET_PLANE_AND_REGISTER ();
4200 EMIT_ONE_ASCII_BYTE (c);
4201 }
4202 else if (ASCII_CHAR_P (c))
4203 {
4204 if (ascii_compatible)
4205 EMIT_ONE_ASCII_BYTE (c);
4206 else
4207 {
4208 struct charset *charset = CHARSET_FROM_ID (charset_ascii);
4209 ENCODE_ISO_CHARACTER (charset, c);
4210 }
4211 }
4212 else if (CHAR_BYTE8_P (c))
4213 {
4214 c = CHAR_TO_BYTE8 (c);
4215 EMIT_ONE_BYTE (c);
4216 }
4217 else
4218 {
4219 struct charset *charset;
4220
4221 if (preferred_charset_id >= 0)
4222 {
4223 charset = CHARSET_FROM_ID (preferred_charset_id);
4224 if (! CHAR_CHARSET_P (c, charset))
4225 charset = char_charset (c, charset_list, NULL);
4226 }
4227 else
4228 charset = char_charset (c, charset_list, NULL);
4229 if (!charset)
4230 {
4231 if (coding->mode & CODING_MODE_SAFE_ENCODING)
4232 {
4233 c = CODING_INHIBIT_CHARACTER_SUBSTITUTION;
4234 charset = CHARSET_FROM_ID (charset_ascii);
4235 }
4236 else
4237 {
4238 c = coding->default_char;
4239 charset = char_charset (c, charset_list, NULL);
4240 }
4241 }
4242 ENCODE_ISO_CHARACTER (charset, c);
4243 }
4244 }
4245
4246 if (coding->mode & CODING_MODE_LAST_BLOCK
4247 && CODING_ISO_FLAGS (coding) & CODING_ISO_FLAG_RESET_AT_EOL)
4248 {
4249 ASSURE_DESTINATION (safe_room);
4250 ENCODE_RESET_PLANE_AND_REGISTER ();
4251 }
4252 record_conversion_result (coding, CODING_RESULT_SUCCESS);
4253 CODING_ISO_BOL (coding) = bol_designation;
4254 coding->produced_char += produced_chars;
4255 coding->produced = dst - coding->destination;
4256 return 0;
4257 }
4258
4259 \f
4260 /*** 8,9. SJIS and BIG5 handlers ***/
4261
4262 /* Although SJIS and BIG5 are not ISO's coding system, they are used
4263 quite widely. So, for the moment, Emacs supports them in the bare
4264 C code. But, in the future, they may be supported only by CCL. */
4265
4266 /* SJIS is a coding system encoding three character sets: ASCII, right
4267 half of JISX0201-Kana, and JISX0208. An ASCII character is encoded
4268 as is. A character of charset katakana-jisx0201 is encoded by
4269 "position-code + 0x80". A character of charset japanese-jisx0208
4270 is encoded in 2-byte but two position-codes are divided and shifted
4271 so that it fit in the range below.
4272
4273 --- CODE RANGE of SJIS ---
4274 (character set) (range)
4275 ASCII 0x00 .. 0x7F
4276 KATAKANA-JISX0201 0xA0 .. 0xDF
4277 JISX0208 (1st byte) 0x81 .. 0x9F and 0xE0 .. 0xEF
4278 (2nd byte) 0x40 .. 0x7E and 0x80 .. 0xFC
4279 -------------------------------
4280
4281 */
4282
4283 /* BIG5 is a coding system encoding two character sets: ASCII and
4284 Big5. An ASCII character is encoded as is. Big5 is a two-byte
4285 character set and is encoded in two-byte.
4286
4287 --- CODE RANGE of BIG5 ---
4288 (character set) (range)
4289 ASCII 0x00 .. 0x7F
4290 Big5 (1st byte) 0xA1 .. 0xFE
4291 (2nd byte) 0x40 .. 0x7E and 0xA1 .. 0xFE
4292 --------------------------
4293
4294 */
4295
4296 /* See the above "GENERAL NOTES on `detect_coding_XXX ()' functions".
4297 Check if a text is encoded in SJIS. If it is, return
4298 CATEGORY_MASK_SJIS, else return 0. */
4299
4300 static int
4301 detect_coding_sjis (coding, detect_info)
4302 struct coding_system *coding;
4303 struct coding_detection_info *detect_info;
4304 {
4305 const unsigned char *src = coding->source, *src_base;
4306 const unsigned char *src_end = coding->source + coding->src_bytes;
4307 int multibytep = coding->src_multibyte;
4308 int consumed_chars = 0;
4309 int found = 0;
4310 int c;
4311
4312 detect_info->checked |= CATEGORY_MASK_SJIS;
4313 /* A coding system of this category is always ASCII compatible. */
4314 src += coding->head_ascii;
4315
4316 while (1)
4317 {
4318 src_base = src;
4319 ONE_MORE_BYTE (c);
4320 if (c < 0x80)
4321 continue;
4322 if ((c >= 0x81 && c <= 0x9F) || (c >= 0xE0 && c <= 0xEF))
4323 {
4324 ONE_MORE_BYTE (c);
4325 if (c < 0x40 || c == 0x7F || c > 0xFC)
4326 break;
4327 found = CATEGORY_MASK_SJIS;
4328 }
4329 else if (c >= 0xA0 && c < 0xE0)
4330 found = CATEGORY_MASK_SJIS;
4331 else
4332 break;
4333 }
4334 detect_info->rejected |= CATEGORY_MASK_SJIS;
4335 return 0;
4336
4337 no_more_source:
4338 if (src_base < src && coding->mode & CODING_MODE_LAST_BLOCK)
4339 {
4340 detect_info->rejected |= CATEGORY_MASK_SJIS;
4341 return 0;
4342 }
4343 detect_info->found |= found;
4344 return 1;
4345 }
4346
4347 /* See the above "GENERAL NOTES on `detect_coding_XXX ()' functions".
4348 Check if a text is encoded in BIG5. If it is, return
4349 CATEGORY_MASK_BIG5, else return 0. */
4350
4351 static int
4352 detect_coding_big5 (coding, detect_info)
4353 struct coding_system *coding;
4354 struct coding_detection_info *detect_info;
4355 {
4356 const unsigned char *src = coding->source, *src_base;
4357 const unsigned char *src_end = coding->source + coding->src_bytes;
4358 int multibytep = coding->src_multibyte;
4359 int consumed_chars = 0;
4360 int found = 0;
4361 int c;
4362
4363 detect_info->checked |= CATEGORY_MASK_BIG5;
4364 /* A coding system of this category is always ASCII compatible. */
4365 src += coding->head_ascii;
4366
4367 while (1)
4368 {
4369 src_base = src;
4370 ONE_MORE_BYTE (c);
4371 if (c < 0x80)
4372 continue;
4373 if (c >= 0xA1)
4374 {
4375 ONE_MORE_BYTE (c);
4376 if (c < 0x40 || (c >= 0x7F && c <= 0xA0))
4377 return 0;
4378 found = CATEGORY_MASK_BIG5;
4379 }
4380 else
4381 break;
4382 }
4383 detect_info->rejected |= CATEGORY_MASK_BIG5;
4384 return 0;
4385
4386 no_more_source:
4387 if (src_base < src && coding->mode & CODING_MODE_LAST_BLOCK)
4388 {
4389 detect_info->rejected |= CATEGORY_MASK_BIG5;
4390 return 0;
4391 }
4392 detect_info->found |= found;
4393 return 1;
4394 }
4395
4396 /* See the above "GENERAL NOTES on `decode_coding_XXX ()' functions".
4397 If SJIS_P is 1, decode SJIS text, else decode BIG5 test. */
4398
4399 static void
4400 decode_coding_sjis (coding)
4401 struct coding_system *coding;
4402 {
4403 const unsigned char *src = coding->source + coding->consumed;
4404 const unsigned char *src_end = coding->source + coding->src_bytes;
4405 const unsigned char *src_base;
4406 int *charbuf = coding->charbuf + coding->charbuf_used;
4407 int *charbuf_end
4408 = coding->charbuf + coding->charbuf_size - MAX_ANNOTATION_LENGTH;
4409 int consumed_chars = 0, consumed_chars_base;
4410 int multibytep = coding->src_multibyte;
4411 struct charset *charset_roman, *charset_kanji, *charset_kana;
4412 struct charset *charset_kanji2;
4413 Lisp_Object attrs, charset_list, val;
4414 int char_offset = coding->produced_char;
4415 int last_offset = char_offset;
4416 int last_id = charset_ascii;
4417 int eol_crlf = EQ (CODING_ID_EOL_TYPE (coding->id), Qdos);
4418 int byte_after_cr = -1;
4419
4420 CODING_GET_INFO (coding, attrs, charset_list);
4421
4422 val = charset_list;
4423 charset_roman = CHARSET_FROM_ID (XINT (XCAR (val))), val = XCDR (val);
4424 charset_kana = CHARSET_FROM_ID (XINT (XCAR (val))), val = XCDR (val);
4425 charset_kanji = CHARSET_FROM_ID (XINT (XCAR (val))), val = XCDR (val);
4426 charset_kanji2 = NILP (val) ? NULL : CHARSET_FROM_ID (XINT (XCAR (val)));
4427
4428 while (1)
4429 {
4430 int c, c1;
4431 struct charset *charset;
4432
4433 src_base = src;
4434 consumed_chars_base = consumed_chars;
4435
4436 if (charbuf >= charbuf_end)
4437 {
4438 if (byte_after_cr >= 0)
4439 src_base--;
4440 break;
4441 }
4442
4443 if (byte_after_cr >= 0)
4444 c = byte_after_cr, byte_after_cr = -1;
4445 else
4446 ONE_MORE_BYTE (c);
4447 if (c < 0)
4448 goto invalid_code;
4449 if (c < 0x80)
4450 {
4451 if (eol_crlf && c == '\r')
4452 ONE_MORE_BYTE (byte_after_cr);
4453 charset = charset_roman;
4454 }
4455 else if (c == 0x80 || c == 0xA0)
4456 goto invalid_code;
4457 else if (c >= 0xA1 && c <= 0xDF)
4458 {
4459 /* SJIS -> JISX0201-Kana */
4460 c &= 0x7F;
4461 charset = charset_kana;
4462 }
4463 else if (c <= 0xEF)
4464 {
4465 /* SJIS -> JISX0208 */
4466 ONE_MORE_BYTE (c1);
4467 if (c1 < 0x40 || c1 == 0x7F || c1 > 0xFC)
4468 goto invalid_code;
4469 c = (c << 8) | c1;
4470 SJIS_TO_JIS (c);
4471 charset = charset_kanji;
4472 }
4473 else if (c <= 0xFC && charset_kanji2)
4474 {
4475 /* SJIS -> JISX0213-2 */
4476 ONE_MORE_BYTE (c1);
4477 if (c1 < 0x40 || c1 == 0x7F || c1 > 0xFC)
4478 goto invalid_code;
4479 c = (c << 8) | c1;
4480 SJIS_TO_JIS2 (c);
4481 charset = charset_kanji2;
4482 }
4483 else
4484 goto invalid_code;
4485 if (charset->id != charset_ascii
4486 && last_id != charset->id)
4487 {
4488 if (last_id != charset_ascii)
4489 ADD_CHARSET_DATA (charbuf, char_offset - last_offset, last_id);
4490 last_id = charset->id;
4491 last_offset = char_offset;
4492 }
4493 CODING_DECODE_CHAR (coding, src, src_base, src_end, charset, c, c);
4494 *charbuf++ = c;
4495 char_offset++;
4496 continue;
4497
4498 invalid_code:
4499 src = src_base;
4500 consumed_chars = consumed_chars_base;
4501 ONE_MORE_BYTE (c);
4502 *charbuf++ = c < 0 ? -c : BYTE8_TO_CHAR (c);
4503 char_offset++;
4504 coding->errors++;
4505 }
4506
4507 no_more_source:
4508 if (last_id != charset_ascii)
4509 ADD_CHARSET_DATA (charbuf, char_offset - last_offset, last_id);
4510 coding->consumed_char += consumed_chars_base;
4511 coding->consumed = src_base - coding->source;
4512 coding->charbuf_used = charbuf - coding->charbuf;
4513 }
4514
4515 static void
4516 decode_coding_big5 (coding)
4517 struct coding_system *coding;
4518 {
4519 const unsigned char *src = coding->source + coding->consumed;
4520 const unsigned char *src_end = coding->source + coding->src_bytes;
4521 const unsigned char *src_base;
4522 int *charbuf = coding->charbuf + coding->charbuf_used;
4523 int *charbuf_end
4524 = coding->charbuf + coding->charbuf_size - MAX_ANNOTATION_LENGTH;
4525 int consumed_chars = 0, consumed_chars_base;
4526 int multibytep = coding->src_multibyte;
4527 struct charset *charset_roman, *charset_big5;
4528 Lisp_Object attrs, charset_list, val;
4529 int char_offset = coding->produced_char;
4530 int last_offset = char_offset;
4531 int last_id = charset_ascii;
4532 int eol_crlf = EQ (CODING_ID_EOL_TYPE (coding->id), Qdos);
4533 int byte_after_cr = -1;
4534
4535 CODING_GET_INFO (coding, attrs, charset_list);
4536 val = charset_list;
4537 charset_roman = CHARSET_FROM_ID (XINT (XCAR (val))), val = XCDR (val);
4538 charset_big5 = CHARSET_FROM_ID (XINT (XCAR (val)));
4539
4540 while (1)
4541 {
4542 int c, c1;
4543 struct charset *charset;
4544
4545 src_base = src;
4546 consumed_chars_base = consumed_chars;
4547
4548 if (charbuf >= charbuf_end)
4549 {
4550 if (byte_after_cr >= 0)
4551 src_base--;
4552 break;
4553 }
4554
4555 if (byte_after_cr >= 0)
4556 c = byte_after_cr, byte_after_cr = -1;
4557 else
4558 ONE_MORE_BYTE (c);
4559
4560 if (c < 0)
4561 goto invalid_code;
4562 if (c < 0x80)
4563 {
4564 if (eol_crlf && c == '\r')
4565 ONE_MORE_BYTE (byte_after_cr);
4566 charset = charset_roman;
4567 }
4568 else
4569 {
4570 /* BIG5 -> Big5 */
4571 if (c < 0xA1 || c > 0xFE)
4572 goto invalid_code;
4573 ONE_MORE_BYTE (c1);
4574 if (c1 < 0x40 || (c1 > 0x7E && c1 < 0xA1) || c1 > 0xFE)
4575 goto invalid_code;
4576 c = c << 8 | c1;
4577 charset = charset_big5;
4578 }
4579 if (charset->id != charset_ascii
4580 && last_id != charset->id)
4581 {
4582 if (last_id != charset_ascii)
4583 ADD_CHARSET_DATA (charbuf, char_offset - last_offset, last_id);
4584 last_id = charset->id;
4585 last_offset = char_offset;
4586 }
4587 CODING_DECODE_CHAR (coding, src, src_base, src_end, charset, c, c);
4588 *charbuf++ = c;
4589 char_offset++;
4590 continue;
4591
4592 invalid_code:
4593 src = src_base;
4594 consumed_chars = consumed_chars_base;
4595 ONE_MORE_BYTE (c);
4596 *charbuf++ = c < 0 ? -c : BYTE8_TO_CHAR (c);
4597 char_offset++;
4598 coding->errors++;
4599 }
4600
4601 no_more_source:
4602 if (last_id != charset_ascii)
4603 ADD_CHARSET_DATA (charbuf, char_offset - last_offset, last_id);
4604 coding->consumed_char += consumed_chars_base;
4605 coding->consumed = src_base - coding->source;
4606 coding->charbuf_used = charbuf - coding->charbuf;
4607 }
4608
4609 /* See the above "GENERAL NOTES on `encode_coding_XXX ()' functions".
4610 This function can encode charsets `ascii', `katakana-jisx0201',
4611 `japanese-jisx0208', `chinese-big5-1', and `chinese-big5-2'. We
4612 are sure that all these charsets are registered as official charset
4613 (i.e. do not have extended leading-codes). Characters of other
4614 charsets are produced without any encoding. If SJIS_P is 1, encode
4615 SJIS text, else encode BIG5 text. */
4616
4617 static int
4618 encode_coding_sjis (coding)
4619 struct coding_system *coding;
4620 {
4621 int multibytep = coding->dst_multibyte;
4622 int *charbuf = coding->charbuf;
4623 int *charbuf_end = charbuf + coding->charbuf_used;
4624 unsigned char *dst = coding->destination + coding->produced;
4625 unsigned char *dst_end = coding->destination + coding->dst_bytes;
4626 int safe_room = 4;
4627 int produced_chars = 0;
4628 Lisp_Object attrs, charset_list, val;
4629 int ascii_compatible;
4630 struct charset *charset_roman, *charset_kanji, *charset_kana;
4631 struct charset *charset_kanji2;
4632 int c;
4633
4634 CODING_GET_INFO (coding, attrs, charset_list);
4635 val = charset_list;
4636 charset_roman = CHARSET_FROM_ID (XINT (XCAR (val))), val = XCDR (val);
4637 charset_kana = CHARSET_FROM_ID (XINT (XCAR (val))), val = XCDR (val);
4638 charset_kanji = CHARSET_FROM_ID (XINT (XCAR (val))), val = XCDR (val);
4639 charset_kanji2 = NILP (val) ? NULL : CHARSET_FROM_ID (XINT (XCAR (val)));
4640
4641 ascii_compatible = ! NILP (CODING_ATTR_ASCII_COMPAT (attrs));
4642
4643 while (charbuf < charbuf_end)
4644 {
4645 ASSURE_DESTINATION (safe_room);
4646 c = *charbuf++;
4647 /* Now encode the character C. */
4648 if (ASCII_CHAR_P (c) && ascii_compatible)
4649 EMIT_ONE_ASCII_BYTE (c);
4650 else if (CHAR_BYTE8_P (c))
4651 {
4652 c = CHAR_TO_BYTE8 (c);
4653 EMIT_ONE_BYTE (c);
4654 }
4655 else
4656 {
4657 unsigned code;
4658 struct charset *charset = char_charset (c, charset_list, &code);
4659
4660 if (!charset)
4661 {
4662 if (coding->mode & CODING_MODE_SAFE_ENCODING)
4663 {
4664 code = CODING_INHIBIT_CHARACTER_SUBSTITUTION;
4665 charset = CHARSET_FROM_ID (charset_ascii);
4666 }
4667 else
4668 {
4669 c = coding->default_char;
4670 charset = char_charset (c, charset_list, &code);
4671 }
4672 }
4673 if (code == CHARSET_INVALID_CODE (charset))
4674 abort ();
4675 if (charset == charset_kanji)
4676 {
4677 int c1, c2;
4678 JIS_TO_SJIS (code);
4679 c1 = code >> 8, c2 = code & 0xFF;
4680 EMIT_TWO_BYTES (c1, c2);
4681 }
4682 else if (charset == charset_kana)
4683 EMIT_ONE_BYTE (code | 0x80);
4684 else if (charset_kanji2 && charset == charset_kanji2)
4685 {
4686 int c1, c2;
4687
4688 c1 = code >> 8;
4689 if (c1 == 0x21 || (c1 >= 0x23 && c1 < 0x25)
4690 || (c1 >= 0x2C && c1 <= 0x2F) || c1 >= 0x6E)
4691 {
4692 JIS_TO_SJIS2 (code);
4693 c1 = code >> 8, c2 = code & 0xFF;
4694 EMIT_TWO_BYTES (c1, c2);
4695 }
4696 else
4697 EMIT_ONE_ASCII_BYTE (code & 0x7F);
4698 }
4699 else
4700 EMIT_ONE_ASCII_BYTE (code & 0x7F);
4701 }
4702 }
4703 record_conversion_result (coding, CODING_RESULT_SUCCESS);
4704 coding->produced_char += produced_chars;
4705 coding->produced = dst - coding->destination;
4706 return 0;
4707 }
4708
4709 static int
4710 encode_coding_big5 (coding)
4711 struct coding_system *coding;
4712 {
4713 int multibytep = coding->dst_multibyte;
4714 int *charbuf = coding->charbuf;
4715 int *charbuf_end = charbuf + coding->charbuf_used;
4716 unsigned char *dst = coding->destination + coding->produced;
4717 unsigned char *dst_end = coding->destination + coding->dst_bytes;
4718 int safe_room = 4;
4719 int produced_chars = 0;
4720 Lisp_Object attrs, charset_list, val;
4721 int ascii_compatible;
4722 struct charset *charset_roman, *charset_big5;
4723 int c;
4724
4725 CODING_GET_INFO (coding, attrs, charset_list);
4726 val = charset_list;
4727 charset_roman = CHARSET_FROM_ID (XINT (XCAR (val))), val = XCDR (val);
4728 charset_big5 = CHARSET_FROM_ID (XINT (XCAR (val)));
4729 ascii_compatible = ! NILP (CODING_ATTR_ASCII_COMPAT (attrs));
4730
4731 while (charbuf < charbuf_end)
4732 {
4733 ASSURE_DESTINATION (safe_room);
4734 c = *charbuf++;
4735 /* Now encode the character C. */
4736 if (ASCII_CHAR_P (c) && ascii_compatible)
4737 EMIT_ONE_ASCII_BYTE (c);
4738 else if (CHAR_BYTE8_P (c))
4739 {
4740 c = CHAR_TO_BYTE8 (c);
4741 EMIT_ONE_BYTE (c);
4742 }
4743 else
4744 {
4745 unsigned code;
4746 struct charset *charset = char_charset (c, charset_list, &code);
4747
4748 if (! charset)
4749 {
4750 if (coding->mode & CODING_MODE_SAFE_ENCODING)
4751 {
4752 code = CODING_INHIBIT_CHARACTER_SUBSTITUTION;
4753 charset = CHARSET_FROM_ID (charset_ascii);
4754 }
4755 else
4756 {
4757 c = coding->default_char;
4758 charset = char_charset (c, charset_list, &code);
4759 }
4760 }
4761 if (code == CHARSET_INVALID_CODE (charset))
4762 abort ();
4763 if (charset == charset_big5)
4764 {
4765 int c1, c2;
4766
4767 c1 = code >> 8, c2 = code & 0xFF;
4768 EMIT_TWO_BYTES (c1, c2);
4769 }
4770 else
4771 EMIT_ONE_ASCII_BYTE (code & 0x7F);
4772 }
4773 }
4774 record_conversion_result (coding, CODING_RESULT_SUCCESS);
4775 coding->produced_char += produced_chars;
4776 coding->produced = dst - coding->destination;
4777 return 0;
4778 }
4779
4780 \f
4781 /*** 10. CCL handlers ***/
4782
4783 /* See the above "GENERAL NOTES on `detect_coding_XXX ()' functions".
4784 Check if a text is encoded in a coding system of which
4785 encoder/decoder are written in CCL program. If it is, return
4786 CATEGORY_MASK_CCL, else return 0. */
4787
4788 static int
4789 detect_coding_ccl (coding, detect_info)
4790 struct coding_system *coding;
4791 struct coding_detection_info *detect_info;
4792 {
4793 const unsigned char *src = coding->source, *src_base;
4794 const unsigned char *src_end = coding->source + coding->src_bytes;
4795 int multibytep = coding->src_multibyte;
4796 int consumed_chars = 0;
4797 int found = 0;
4798 unsigned char *valids;
4799 int head_ascii = coding->head_ascii;
4800 Lisp_Object attrs;
4801
4802 detect_info->checked |= CATEGORY_MASK_CCL;
4803
4804 coding = &coding_categories[coding_category_ccl];
4805 valids = CODING_CCL_VALIDS (coding);
4806 attrs = CODING_ID_ATTRS (coding->id);
4807 if (! NILP (CODING_ATTR_ASCII_COMPAT (attrs)))
4808 src += head_ascii;
4809
4810 while (1)
4811 {
4812 int c;
4813
4814 src_base = src;
4815 ONE_MORE_BYTE (c);
4816 if (c < 0 || ! valids[c])
4817 break;
4818 if ((valids[c] > 1))
4819 found = CATEGORY_MASK_CCL;
4820 }
4821 detect_info->rejected |= CATEGORY_MASK_CCL;
4822 return 0;
4823
4824 no_more_source:
4825 detect_info->found |= found;
4826 return 1;
4827 }
4828
4829 static void
4830 decode_coding_ccl (coding)
4831 struct coding_system *coding;
4832 {
4833 const unsigned char *src = coding->source + coding->consumed;
4834 const unsigned char *src_end = coding->source + coding->src_bytes;
4835 int *charbuf = coding->charbuf + coding->charbuf_used;
4836 int *charbuf_end = coding->charbuf + coding->charbuf_size;
4837 int consumed_chars = 0;
4838 int multibytep = coding->src_multibyte;
4839 struct ccl_program ccl;
4840 int source_charbuf[1024];
4841 int source_byteidx[1024];
4842 Lisp_Object attrs, charset_list;
4843
4844 CODING_GET_INFO (coding, attrs, charset_list);
4845 setup_ccl_program (&ccl, CODING_CCL_DECODER (coding));
4846
4847 while (src < src_end)
4848 {
4849 const unsigned char *p = src;
4850 int *source, *source_end;
4851 int i = 0;
4852
4853 if (multibytep)
4854 while (i < 1024 && p < src_end)
4855 {
4856 source_byteidx[i] = p - src;
4857 source_charbuf[i++] = STRING_CHAR_ADVANCE (p);
4858 }
4859 else
4860 while (i < 1024 && p < src_end)
4861 source_charbuf[i++] = *p++;
4862
4863 if (p == src_end && coding->mode & CODING_MODE_LAST_BLOCK)
4864 ccl.last_block = 1;
4865
4866 source = source_charbuf;
4867 source_end = source + i;
4868 while (source < source_end)
4869 {
4870 ccl_driver (&ccl, source, charbuf,
4871 source_end - source, charbuf_end - charbuf,
4872 charset_list);
4873 source += ccl.consumed;
4874 charbuf += ccl.produced;
4875 if (ccl.status != CCL_STAT_SUSPEND_BY_DST)
4876 break;
4877 }
4878 if (source < source_end)
4879 src += source_byteidx[source - source_charbuf];
4880 else
4881 src = p;
4882 consumed_chars += source - source_charbuf;
4883
4884 if (ccl.status != CCL_STAT_SUSPEND_BY_SRC
4885 && ccl.status != CODING_RESULT_INSUFFICIENT_SRC)
4886 break;
4887 }
4888
4889 switch (ccl.status)
4890 {
4891 case CCL_STAT_SUSPEND_BY_SRC:
4892 record_conversion_result (coding, CODING_RESULT_INSUFFICIENT_SRC);
4893 break;
4894 case CCL_STAT_SUSPEND_BY_DST:
4895 break;
4896 case CCL_STAT_QUIT:
4897 case CCL_STAT_INVALID_CMD:
4898 record_conversion_result (coding, CODING_RESULT_INTERRUPT);
4899 break;
4900 default:
4901 record_conversion_result (coding, CODING_RESULT_SUCCESS);
4902 break;
4903 }
4904 coding->consumed_char += consumed_chars;
4905 coding->consumed = src - coding->source;
4906 coding->charbuf_used = charbuf - coding->charbuf;
4907 }
4908
4909 static int
4910 encode_coding_ccl (coding)
4911 struct coding_system *coding;
4912 {
4913 struct ccl_program ccl;
4914 int multibytep = coding->dst_multibyte;
4915 int *charbuf = coding->charbuf;
4916 int *charbuf_end = charbuf + coding->charbuf_used;
4917 unsigned char *dst = coding->destination + coding->produced;
4918 unsigned char *dst_end = coding->destination + coding->dst_bytes;
4919 int destination_charbuf[1024];
4920 int i, produced_chars = 0;
4921 Lisp_Object attrs, charset_list;
4922
4923 CODING_GET_INFO (coding, attrs, charset_list);
4924 setup_ccl_program (&ccl, CODING_CCL_ENCODER (coding));
4925
4926 ccl.last_block = coding->mode & CODING_MODE_LAST_BLOCK;
4927 ccl.dst_multibyte = coding->dst_multibyte;
4928
4929 while (charbuf < charbuf_end)
4930 {
4931 ccl_driver (&ccl, charbuf, destination_charbuf,
4932 charbuf_end - charbuf, 1024, charset_list);
4933 if (multibytep)
4934 {
4935 ASSURE_DESTINATION (ccl.produced * 2);
4936 for (i = 0; i < ccl.produced; i++)
4937 EMIT_ONE_BYTE (destination_charbuf[i] & 0xFF);
4938 }
4939 else
4940 {
4941 ASSURE_DESTINATION (ccl.produced);
4942 for (i = 0; i < ccl.produced; i++)
4943 *dst++ = destination_charbuf[i] & 0xFF;
4944 produced_chars += ccl.produced;
4945 }
4946 charbuf += ccl.consumed;
4947 if (ccl.status == CCL_STAT_QUIT
4948 || ccl.status == CCL_STAT_INVALID_CMD)
4949 break;
4950 }
4951
4952 switch (ccl.status)
4953 {
4954 case CCL_STAT_SUSPEND_BY_SRC:
4955 record_conversion_result (coding, CODING_RESULT_INSUFFICIENT_SRC);
4956 break;
4957 case CCL_STAT_SUSPEND_BY_DST:
4958 record_conversion_result (coding, CODING_RESULT_INSUFFICIENT_DST);
4959 break;
4960 case CCL_STAT_QUIT:
4961 case CCL_STAT_INVALID_CMD:
4962 record_conversion_result (coding, CODING_RESULT_INTERRUPT);
4963 break;
4964 default:
4965 record_conversion_result (coding, CODING_RESULT_SUCCESS);
4966 break;
4967 }
4968
4969 coding->produced_char += produced_chars;
4970 coding->produced = dst - coding->destination;
4971 return 0;
4972 }
4973
4974
4975 \f
4976 /*** 10, 11. no-conversion handlers ***/
4977
4978 /* See the above "GENERAL NOTES on `decode_coding_XXX ()' functions". */
4979
4980 static void
4981 decode_coding_raw_text (coding)
4982 struct coding_system *coding;
4983 {
4984 int eol_crlf = EQ (CODING_ID_EOL_TYPE (coding->id), Qdos);
4985
4986 coding->chars_at_source = 1;
4987 coding->consumed_char = coding->src_chars;
4988 coding->consumed = coding->src_bytes;
4989 if (eol_crlf && coding->source[coding->src_bytes - 1] == '\r')
4990 {
4991 coding->consumed_char--;
4992 coding->consumed--;
4993 record_conversion_result (coding, CODING_RESULT_INSUFFICIENT_SRC);
4994 }
4995 else
4996 record_conversion_result (coding, CODING_RESULT_SUCCESS);
4997 }
4998
4999 static int
5000 encode_coding_raw_text (coding)
5001 struct coding_system *coding;
5002 {
5003 int multibytep = coding->dst_multibyte;
5004 int *charbuf = coding->charbuf;
5005 int *charbuf_end = coding->charbuf + coding->charbuf_used;
5006 unsigned char *dst = coding->destination + coding->produced;
5007 unsigned char *dst_end = coding->destination + coding->dst_bytes;
5008 int produced_chars = 0;
5009 int c;
5010
5011 if (multibytep)
5012 {
5013 int safe_room = MAX_MULTIBYTE_LENGTH * 2;
5014
5015 if (coding->src_multibyte)
5016 while (charbuf < charbuf_end)
5017 {
5018 ASSURE_DESTINATION (safe_room);
5019 c = *charbuf++;
5020 if (ASCII_CHAR_P (c))
5021 EMIT_ONE_ASCII_BYTE (c);
5022 else if (CHAR_BYTE8_P (c))
5023 {
5024 c = CHAR_TO_BYTE8 (c);
5025 EMIT_ONE_BYTE (c);
5026 }
5027 else
5028 {
5029 unsigned char str[MAX_MULTIBYTE_LENGTH], *p0 = str, *p1 = str;
5030
5031 CHAR_STRING_ADVANCE (c, p1);
5032 while (p0 < p1)
5033 {
5034 EMIT_ONE_BYTE (*p0);
5035 p0++;
5036 }
5037 }
5038 }
5039 else
5040 while (charbuf < charbuf_end)
5041 {
5042 ASSURE_DESTINATION (safe_room);
5043 c = *charbuf++;
5044 EMIT_ONE_BYTE (c);
5045 }
5046 }
5047 else
5048 {
5049 if (coding->src_multibyte)
5050 {
5051 int safe_room = MAX_MULTIBYTE_LENGTH;
5052
5053 while (charbuf < charbuf_end)
5054 {
5055 ASSURE_DESTINATION (safe_room);
5056 c = *charbuf++;
5057 if (ASCII_CHAR_P (c))
5058 *dst++ = c;
5059 else if (CHAR_BYTE8_P (c))
5060 *dst++ = CHAR_TO_BYTE8 (c);
5061 else
5062 CHAR_STRING_ADVANCE (c, dst);
5063 }
5064 }
5065 else
5066 {
5067 ASSURE_DESTINATION (charbuf_end - charbuf);
5068 while (charbuf < charbuf_end && dst < dst_end)
5069 *dst++ = *charbuf++;
5070 }
5071 produced_chars = dst - (coding->destination + coding->produced);
5072 }
5073 record_conversion_result (coding, CODING_RESULT_SUCCESS);
5074 coding->produced_char += produced_chars;
5075 coding->produced = dst - coding->destination;
5076 return 0;
5077 }
5078
5079 /* See the above "GENERAL NOTES on `detect_coding_XXX ()' functions".
5080 Check if a text is encoded in a charset-based coding system. If it
5081 is, return 1, else return 0. */
5082
5083 static int
5084 detect_coding_charset (coding, detect_info)
5085 struct coding_system *coding;
5086 struct coding_detection_info *detect_info;
5087 {
5088 const unsigned char *src = coding->source, *src_base;
5089 const unsigned char *src_end = coding->source + coding->src_bytes;
5090 int multibytep = coding->src_multibyte;
5091 int consumed_chars = 0;
5092 Lisp_Object attrs, valids, name;
5093 int found = 0;
5094 int head_ascii = coding->head_ascii;
5095 int check_latin_extra = 0;
5096
5097 detect_info->checked |= CATEGORY_MASK_CHARSET;
5098
5099 coding = &coding_categories[coding_category_charset];
5100 attrs = CODING_ID_ATTRS (coding->id);
5101 valids = AREF (attrs, coding_attr_charset_valids);
5102 name = CODING_ID_NAME (coding->id);
5103 if (VECTORP (Vlatin_extra_code_table)
5104 && strcmp ((char *) SDATA (SYMBOL_NAME (name)), "iso-8859-"))
5105 check_latin_extra = 1;
5106 if (! NILP (CODING_ATTR_ASCII_COMPAT (attrs)))
5107 src += head_ascii;
5108
5109 while (1)
5110 {
5111 int c;
5112 Lisp_Object val;
5113 struct charset *charset;
5114 int dim, idx;
5115
5116 src_base = src;
5117 ONE_MORE_BYTE (c);
5118 if (c < 0)
5119 continue;
5120 val = AREF (valids, c);
5121 if (NILP (val))
5122 break;
5123 if (c >= 0x80)
5124 {
5125 if (c < 0xA0
5126 && check_latin_extra
5127 && NILP (XVECTOR (Vlatin_extra_code_table)->contents[c]))
5128 break;
5129 found = CATEGORY_MASK_CHARSET;
5130 }
5131 if (INTEGERP (val))
5132 {
5133 charset = CHARSET_FROM_ID (XFASTINT (val));
5134 dim = CHARSET_DIMENSION (charset);
5135 for (idx = 1; idx < dim; idx++)
5136 {
5137 if (src == src_end)
5138 goto too_short;
5139 ONE_MORE_BYTE (c);
5140 if (c < charset->code_space[(dim - 1 - idx) * 2]
5141 || c > charset->code_space[(dim - 1 - idx) * 2 + 1])
5142 break;
5143 }
5144 if (idx < dim)
5145 break;
5146 }
5147 else
5148 {
5149 idx = 1;
5150 for (; CONSP (val); val = XCDR (val))
5151 {
5152 charset = CHARSET_FROM_ID (XFASTINT (XCAR (val)));
5153 dim = CHARSET_DIMENSION (charset);
5154 while (idx < dim)
5155 {
5156 if (src == src_end)
5157 goto too_short;
5158 ONE_MORE_BYTE (c);
5159 if (c < charset->code_space[(dim - 1 - idx) * 4]
5160 || c > charset->code_space[(dim - 1 - idx) * 4 + 1])
5161 break;
5162 idx++;
5163 }
5164 if (idx == dim)
5165 {
5166 val = Qnil;
5167 break;
5168 }
5169 }
5170 if (CONSP (val))
5171 break;
5172 }
5173 }
5174 too_short:
5175 detect_info->rejected |= CATEGORY_MASK_CHARSET;
5176 return 0;
5177
5178 no_more_source:
5179 detect_info->found |= found;
5180 return 1;
5181 }
5182
5183 static void
5184 decode_coding_charset (coding)
5185 struct coding_system *coding;
5186 {
5187 const unsigned char *src = coding->source + coding->consumed;
5188 const unsigned char *src_end = coding->source + coding->src_bytes;
5189 const unsigned char *src_base;
5190 int *charbuf = coding->charbuf + coding->charbuf_used;
5191 int *charbuf_end
5192 = coding->charbuf + coding->charbuf_size - MAX_ANNOTATION_LENGTH;
5193 int consumed_chars = 0, consumed_chars_base;
5194 int multibytep = coding->src_multibyte;
5195 Lisp_Object attrs, charset_list, valids;
5196 int char_offset = coding->produced_char;
5197 int last_offset = char_offset;
5198 int last_id = charset_ascii;
5199 int eol_crlf = EQ (CODING_ID_EOL_TYPE (coding->id), Qdos);
5200 int byte_after_cr = -1;
5201
5202 CODING_GET_INFO (coding, attrs, charset_list);
5203 valids = AREF (attrs, coding_attr_charset_valids);
5204
5205 while (1)
5206 {
5207 int c;
5208 Lisp_Object val;
5209 struct charset *charset;
5210 int dim;
5211 int len = 1;
5212 unsigned code;
5213
5214 src_base = src;
5215 consumed_chars_base = consumed_chars;
5216
5217 if (charbuf >= charbuf_end)
5218 {
5219 if (byte_after_cr >= 0)
5220 src_base--;
5221 break;
5222 }
5223
5224 if (byte_after_cr >= 0)
5225 {
5226 c = byte_after_cr;
5227 byte_after_cr = -1;
5228 }
5229 else
5230 {
5231 ONE_MORE_BYTE (c);
5232 if (eol_crlf && c == '\r')
5233 ONE_MORE_BYTE (byte_after_cr);
5234 }
5235 if (c < 0)
5236 goto invalid_code;
5237 code = c;
5238
5239 val = AREF (valids, c);
5240 if (! INTEGERP (val) && ! CONSP (val))
5241 goto invalid_code;
5242 if (INTEGERP (val))
5243 {
5244 charset = CHARSET_FROM_ID (XFASTINT (val));
5245 dim = CHARSET_DIMENSION (charset);
5246 while (len < dim)
5247 {
5248 ONE_MORE_BYTE (c);
5249 code = (code << 8) | c;
5250 len++;
5251 }
5252 CODING_DECODE_CHAR (coding, src, src_base, src_end,
5253 charset, code, c);
5254 }
5255 else
5256 {
5257 /* VAL is a list of charset IDs. It is assured that the
5258 list is sorted by charset dimensions (smaller one
5259 comes first). */
5260 while (CONSP (val))
5261 {
5262 charset = CHARSET_FROM_ID (XFASTINT (XCAR (val)));
5263 dim = CHARSET_DIMENSION (charset);
5264 while (len < dim)
5265 {
5266 ONE_MORE_BYTE (c);
5267 code = (code << 8) | c;
5268 len++;
5269 }
5270 CODING_DECODE_CHAR (coding, src, src_base,
5271 src_end, charset, code, c);
5272 if (c >= 0)
5273 break;
5274 val = XCDR (val);
5275 }
5276 }
5277 if (c < 0)
5278 goto invalid_code;
5279 if (charset->id != charset_ascii
5280 && last_id != charset->id)
5281 {
5282 if (last_id != charset_ascii)
5283 ADD_CHARSET_DATA (charbuf, char_offset - last_offset, last_id);
5284 last_id = charset->id;
5285 last_offset = char_offset;
5286 }
5287
5288 *charbuf++ = c;
5289 char_offset++;
5290 continue;
5291
5292 invalid_code:
5293 src = src_base;
5294 consumed_chars = consumed_chars_base;
5295 ONE_MORE_BYTE (c);
5296 *charbuf++ = c < 0 ? -c : ASCII_BYTE_P (c) ? c : BYTE8_TO_CHAR (c);
5297 char_offset++;
5298 coding->errors++;
5299 }
5300
5301 no_more_source:
5302 if (last_id != charset_ascii)
5303 ADD_CHARSET_DATA (charbuf, char_offset - last_offset, last_id);
5304 coding->consumed_char += consumed_chars_base;
5305 coding->consumed = src_base - coding->source;
5306 coding->charbuf_used = charbuf - coding->charbuf;
5307 }
5308
5309 static int
5310 encode_coding_charset (coding)
5311 struct coding_system *coding;
5312 {
5313 int multibytep = coding->dst_multibyte;
5314 int *charbuf = coding->charbuf;
5315 int *charbuf_end = charbuf + coding->charbuf_used;
5316 unsigned char *dst = coding->destination + coding->produced;
5317 unsigned char *dst_end = coding->destination + coding->dst_bytes;
5318 int safe_room = MAX_MULTIBYTE_LENGTH;
5319 int produced_chars = 0;
5320 Lisp_Object attrs, charset_list;
5321 int ascii_compatible;
5322 int c;
5323
5324 CODING_GET_INFO (coding, attrs, charset_list);
5325 ascii_compatible = ! NILP (CODING_ATTR_ASCII_COMPAT (attrs));
5326
5327 while (charbuf < charbuf_end)
5328 {
5329 struct charset *charset;
5330 unsigned code;
5331
5332 ASSURE_DESTINATION (safe_room);
5333 c = *charbuf++;
5334 if (ascii_compatible && ASCII_CHAR_P (c))
5335 EMIT_ONE_ASCII_BYTE (c);
5336 else if (CHAR_BYTE8_P (c))
5337 {
5338 c = CHAR_TO_BYTE8 (c);
5339 EMIT_ONE_BYTE (c);
5340 }
5341 else
5342 {
5343 charset = char_charset (c, charset_list, &code);
5344 if (charset)
5345 {
5346 if (CHARSET_DIMENSION (charset) == 1)
5347 EMIT_ONE_BYTE (code);
5348 else if (CHARSET_DIMENSION (charset) == 2)
5349 EMIT_TWO_BYTES (code >> 8, code & 0xFF);
5350 else if (CHARSET_DIMENSION (charset) == 3)
5351 EMIT_THREE_BYTES (code >> 16, (code >> 8) & 0xFF, code & 0xFF);
5352 else
5353 EMIT_FOUR_BYTES (code >> 24, (code >> 16) & 0xFF,
5354 (code >> 8) & 0xFF, code & 0xFF);
5355 }
5356 else
5357 {
5358 if (coding->mode & CODING_MODE_SAFE_ENCODING)
5359 c = CODING_INHIBIT_CHARACTER_SUBSTITUTION;
5360 else
5361 c = coding->default_char;
5362 EMIT_ONE_BYTE (c);
5363 }
5364 }
5365 }
5366
5367 record_conversion_result (coding, CODING_RESULT_SUCCESS);
5368 coding->produced_char += produced_chars;
5369 coding->produced = dst - coding->destination;
5370 return 0;
5371 }
5372
5373 \f
5374 /*** 7. C library functions ***/
5375
5376 /* Setup coding context CODING from information about CODING_SYSTEM.
5377 If CODING_SYSTEM is nil, `no-conversion' is assumed. If
5378 CODING_SYSTEM is invalid, signal an error. */
5379
5380 void
5381 setup_coding_system (coding_system, coding)
5382 Lisp_Object coding_system;
5383 struct coding_system *coding;
5384 {
5385 Lisp_Object attrs;
5386 Lisp_Object eol_type;
5387 Lisp_Object coding_type;
5388 Lisp_Object val;
5389
5390 if (NILP (coding_system))
5391 coding_system = Qundecided;
5392
5393 CHECK_CODING_SYSTEM_GET_ID (coding_system, coding->id);
5394
5395 attrs = CODING_ID_ATTRS (coding->id);
5396 eol_type = CODING_ID_EOL_TYPE (coding->id);
5397
5398 coding->mode = 0;
5399 coding->head_ascii = -1;
5400 if (VECTORP (eol_type))
5401 coding->common_flags = (CODING_REQUIRE_DECODING_MASK
5402 | CODING_REQUIRE_DETECTION_MASK);
5403 else if (! EQ (eol_type, Qunix))
5404 coding->common_flags = (CODING_REQUIRE_DECODING_MASK
5405 | CODING_REQUIRE_ENCODING_MASK);
5406 else
5407 coding->common_flags = 0;
5408 if (! NILP (CODING_ATTR_POST_READ (attrs)))
5409 coding->common_flags |= CODING_REQUIRE_DECODING_MASK;
5410 if (! NILP (CODING_ATTR_PRE_WRITE (attrs)))
5411 coding->common_flags |= CODING_REQUIRE_ENCODING_MASK;
5412 if (! NILP (CODING_ATTR_FOR_UNIBYTE (attrs)))
5413 coding->common_flags |= CODING_FOR_UNIBYTE_MASK;
5414
5415 val = CODING_ATTR_SAFE_CHARSETS (attrs);
5416 coding->max_charset_id = SCHARS (val) - 1;
5417 coding->safe_charsets = (char *) SDATA (val);
5418 coding->default_char = XINT (CODING_ATTR_DEFAULT_CHAR (attrs));
5419
5420 coding_type = CODING_ATTR_TYPE (attrs);
5421 if (EQ (coding_type, Qundecided))
5422 {
5423 coding->detector = NULL;
5424 coding->decoder = decode_coding_raw_text;
5425 coding->encoder = encode_coding_raw_text;
5426 coding->common_flags |= CODING_REQUIRE_DETECTION_MASK;
5427 }
5428 else if (EQ (coding_type, Qiso_2022))
5429 {
5430 int i;
5431 int flags = XINT (AREF (attrs, coding_attr_iso_flags));
5432
5433 /* Invoke graphic register 0 to plane 0. */
5434 CODING_ISO_INVOCATION (coding, 0) = 0;
5435 /* Invoke graphic register 1 to plane 1 if we can use 8-bit. */
5436 CODING_ISO_INVOCATION (coding, 1)
5437 = (flags & CODING_ISO_FLAG_SEVEN_BITS ? -1 : 1);
5438 /* Setup the initial status of designation. */
5439 for (i = 0; i < 4; i++)
5440 CODING_ISO_DESIGNATION (coding, i) = CODING_ISO_INITIAL (coding, i);
5441 /* Not single shifting initially. */
5442 CODING_ISO_SINGLE_SHIFTING (coding) = 0;
5443 /* Beginning of buffer should also be regarded as bol. */
5444 CODING_ISO_BOL (coding) = 1;
5445 coding->detector = detect_coding_iso_2022;
5446 coding->decoder = decode_coding_iso_2022;
5447 coding->encoder = encode_coding_iso_2022;
5448 if (flags & CODING_ISO_FLAG_SAFE)
5449 coding->mode |= CODING_MODE_SAFE_ENCODING;
5450 coding->common_flags
5451 |= (CODING_REQUIRE_DECODING_MASK | CODING_REQUIRE_ENCODING_MASK
5452 | CODING_REQUIRE_FLUSHING_MASK);
5453 if (flags & CODING_ISO_FLAG_COMPOSITION)
5454 coding->common_flags |= CODING_ANNOTATE_COMPOSITION_MASK;
5455 if (flags & CODING_ISO_FLAG_DESIGNATION)
5456 coding->common_flags |= CODING_ANNOTATE_CHARSET_MASK;
5457 if (flags & CODING_ISO_FLAG_FULL_SUPPORT)
5458 {
5459 setup_iso_safe_charsets (attrs);
5460 val = CODING_ATTR_SAFE_CHARSETS (attrs);
5461 coding->max_charset_id = SCHARS (val) - 1;
5462 coding->safe_charsets = (char *) SDATA (val);
5463 }
5464 CODING_ISO_FLAGS (coding) = flags;
5465 }
5466 else if (EQ (coding_type, Qcharset))
5467 {
5468 coding->detector = detect_coding_charset;
5469 coding->decoder = decode_coding_charset;
5470 coding->encoder = encode_coding_charset;
5471 coding->common_flags
5472 |= (CODING_REQUIRE_DECODING_MASK | CODING_REQUIRE_ENCODING_MASK);
5473 }
5474 else if (EQ (coding_type, Qutf_8))
5475 {
5476 val = AREF (attrs, coding_attr_utf_bom);
5477 CODING_UTF_8_BOM (coding) = (CONSP (val) ? utf_detect_bom
5478 : EQ (val, Qt) ? utf_with_bom
5479 : utf_without_bom);
5480 coding->detector = detect_coding_utf_8;
5481 coding->decoder = decode_coding_utf_8;
5482 coding->encoder = encode_coding_utf_8;
5483 coding->common_flags
5484 |= (CODING_REQUIRE_DECODING_MASK | CODING_REQUIRE_ENCODING_MASK);
5485 if (CODING_UTF_8_BOM (coding) == utf_detect_bom)
5486 coding->common_flags |= CODING_REQUIRE_DETECTION_MASK;
5487 }
5488 else if (EQ (coding_type, Qutf_16))
5489 {
5490 val = AREF (attrs, coding_attr_utf_bom);
5491 CODING_UTF_16_BOM (coding) = (CONSP (val) ? utf_detect_bom
5492 : EQ (val, Qt) ? utf_with_bom
5493 : utf_without_bom);
5494 val = AREF (attrs, coding_attr_utf_16_endian);
5495 CODING_UTF_16_ENDIAN (coding) = (EQ (val, Qbig) ? utf_16_big_endian
5496 : utf_16_little_endian);
5497 CODING_UTF_16_SURROGATE (coding) = 0;
5498 coding->detector = detect_coding_utf_16;
5499 coding->decoder = decode_coding_utf_16;
5500 coding->encoder = encode_coding_utf_16;
5501 coding->common_flags
5502 |= (CODING_REQUIRE_DECODING_MASK | CODING_REQUIRE_ENCODING_MASK);
5503 if (CODING_UTF_16_BOM (coding) == utf_detect_bom)
5504 coding->common_flags |= CODING_REQUIRE_DETECTION_MASK;
5505 }
5506 else if (EQ (coding_type, Qccl))
5507 {
5508 coding->detector = detect_coding_ccl;
5509 coding->decoder = decode_coding_ccl;
5510 coding->encoder = encode_coding_ccl;
5511 coding->common_flags
5512 |= (CODING_REQUIRE_DECODING_MASK | CODING_REQUIRE_ENCODING_MASK
5513 | CODING_REQUIRE_FLUSHING_MASK);
5514 }
5515 else if (EQ (coding_type, Qemacs_mule))
5516 {
5517 coding->detector = detect_coding_emacs_mule;
5518 coding->decoder = decode_coding_emacs_mule;
5519 coding->encoder = encode_coding_emacs_mule;
5520 coding->common_flags
5521 |= (CODING_REQUIRE_DECODING_MASK | CODING_REQUIRE_ENCODING_MASK);
5522 if (! NILP (AREF (attrs, coding_attr_emacs_mule_full))
5523 && ! EQ (CODING_ATTR_CHARSET_LIST (attrs), Vemacs_mule_charset_list))
5524 {
5525 Lisp_Object tail, safe_charsets;
5526 int max_charset_id = 0;
5527
5528 for (tail = Vemacs_mule_charset_list; CONSP (tail);
5529 tail = XCDR (tail))
5530 if (max_charset_id < XFASTINT (XCAR (tail)))
5531 max_charset_id = XFASTINT (XCAR (tail));
5532 safe_charsets = Fmake_string (make_number (max_charset_id + 1),
5533 make_number (255));
5534 for (tail = Vemacs_mule_charset_list; CONSP (tail);
5535 tail = XCDR (tail))
5536 SSET (safe_charsets, XFASTINT (XCAR (tail)), 0);
5537 coding->max_charset_id = max_charset_id;
5538 coding->safe_charsets = (char *) SDATA (safe_charsets);
5539 }
5540 }
5541 else if (EQ (coding_type, Qshift_jis))
5542 {
5543 coding->detector = detect_coding_sjis;
5544 coding->decoder = decode_coding_sjis;
5545 coding->encoder = encode_coding_sjis;
5546 coding->common_flags
5547 |= (CODING_REQUIRE_DECODING_MASK | CODING_REQUIRE_ENCODING_MASK);
5548 }
5549 else if (EQ (coding_type, Qbig5))
5550 {
5551 coding->detector = detect_coding_big5;
5552 coding->decoder = decode_coding_big5;
5553 coding->encoder = encode_coding_big5;
5554 coding->common_flags
5555 |= (CODING_REQUIRE_DECODING_MASK | CODING_REQUIRE_ENCODING_MASK);
5556 }
5557 else /* EQ (coding_type, Qraw_text) */
5558 {
5559 coding->detector = NULL;
5560 coding->decoder = decode_coding_raw_text;
5561 coding->encoder = encode_coding_raw_text;
5562 if (! EQ (eol_type, Qunix))
5563 {
5564 coding->common_flags |= CODING_REQUIRE_DECODING_MASK;
5565 if (! VECTORP (eol_type))
5566 coding->common_flags |= CODING_REQUIRE_ENCODING_MASK;
5567 }
5568
5569 }
5570
5571 return;
5572 }
5573
5574 /* Return a list of charsets supported by CODING. */
5575
5576 Lisp_Object
5577 coding_charset_list (coding)
5578 struct coding_system *coding;
5579 {
5580 Lisp_Object attrs, charset_list;
5581
5582 CODING_GET_INFO (coding, attrs, charset_list);
5583 if (EQ (CODING_ATTR_TYPE (attrs), Qiso_2022))
5584 {
5585 int flags = XINT (AREF (attrs, coding_attr_iso_flags));
5586
5587 if (flags & CODING_ISO_FLAG_FULL_SUPPORT)
5588 charset_list = Viso_2022_charset_list;
5589 }
5590 else if (EQ (CODING_ATTR_TYPE (attrs), Qemacs_mule))
5591 {
5592 charset_list = Vemacs_mule_charset_list;
5593 }
5594 return charset_list;
5595 }
5596
5597
5598 /* Return a list of charsets supported by CODING-SYSTEM. */
5599
5600 Lisp_Object
5601 coding_system_charset_list (coding_system)
5602 Lisp_Object coding_system;
5603 {
5604 int id;
5605 Lisp_Object attrs, charset_list;
5606
5607 CHECK_CODING_SYSTEM_GET_ID (coding_system, id);
5608 attrs = CODING_ID_ATTRS (id);
5609
5610 if (EQ (CODING_ATTR_TYPE (attrs), Qiso_2022))
5611 {
5612 int flags = XINT (AREF (attrs, coding_attr_iso_flags));
5613
5614 if (flags & CODING_ISO_FLAG_FULL_SUPPORT)
5615 charset_list = Viso_2022_charset_list;
5616 else
5617 charset_list = CODING_ATTR_CHARSET_LIST (attrs);
5618 }
5619 else if (EQ (CODING_ATTR_TYPE (attrs), Qemacs_mule))
5620 {
5621 charset_list = Vemacs_mule_charset_list;
5622 }
5623 else
5624 {
5625 charset_list = CODING_ATTR_CHARSET_LIST (attrs);
5626 }
5627 return charset_list;
5628 }
5629
5630
5631 /* Return raw-text or one of its subsidiaries that has the same
5632 eol_type as CODING-SYSTEM. */
5633
5634 Lisp_Object
5635 raw_text_coding_system (coding_system)
5636 Lisp_Object coding_system;
5637 {
5638 Lisp_Object spec, attrs;
5639 Lisp_Object eol_type, raw_text_eol_type;
5640
5641 if (NILP (coding_system))
5642 return Qraw_text;
5643 spec = CODING_SYSTEM_SPEC (coding_system);
5644 attrs = AREF (spec, 0);
5645
5646 if (EQ (CODING_ATTR_TYPE (attrs), Qraw_text))
5647 return coding_system;
5648
5649 eol_type = AREF (spec, 2);
5650 if (VECTORP (eol_type))
5651 return Qraw_text;
5652 spec = CODING_SYSTEM_SPEC (Qraw_text);
5653 raw_text_eol_type = AREF (spec, 2);
5654 return (EQ (eol_type, Qunix) ? AREF (raw_text_eol_type, 0)
5655 : EQ (eol_type, Qdos) ? AREF (raw_text_eol_type, 1)
5656 : AREF (raw_text_eol_type, 2));
5657 }
5658
5659
5660 /* If CODING_SYSTEM doesn't specify end-of-line format but PARENT
5661 does, return one of the subsidiary that has the same eol-spec as
5662 PARENT. Otherwise, return CODING_SYSTEM. If PARENT is nil,
5663 inherit end-of-line format from the system's setting
5664 (system_eol_type). */
5665
5666 Lisp_Object
5667 coding_inherit_eol_type (coding_system, parent)
5668 Lisp_Object coding_system, parent;
5669 {
5670 Lisp_Object spec, eol_type;
5671
5672 if (NILP (coding_system))
5673 coding_system = Qraw_text;
5674 spec = CODING_SYSTEM_SPEC (coding_system);
5675 eol_type = AREF (spec, 2);
5676 if (VECTORP (eol_type))
5677 {
5678 Lisp_Object parent_eol_type;
5679
5680 if (! NILP (parent))
5681 {
5682 Lisp_Object parent_spec;
5683
5684 parent_spec = CODING_SYSTEM_SPEC (parent);
5685 parent_eol_type = AREF (parent_spec, 2);
5686 }
5687 else
5688 parent_eol_type = system_eol_type;
5689 if (EQ (parent_eol_type, Qunix))
5690 coding_system = AREF (eol_type, 0);
5691 else if (EQ (parent_eol_type, Qdos))
5692 coding_system = AREF (eol_type, 1);
5693 else if (EQ (parent_eol_type, Qmac))
5694 coding_system = AREF (eol_type, 2);
5695 }
5696 return coding_system;
5697 }
5698
5699 /* Emacs has a mechanism to automatically detect a coding system if it
5700 is one of Emacs' internal format, ISO2022, SJIS, and BIG5. But,
5701 it's impossible to distinguish some coding systems accurately
5702 because they use the same range of codes. So, at first, coding
5703 systems are categorized into 7, those are:
5704
5705 o coding-category-emacs-mule
5706
5707 The category for a coding system which has the same code range
5708 as Emacs' internal format. Assigned the coding-system (Lisp
5709 symbol) `emacs-mule' by default.
5710
5711 o coding-category-sjis
5712
5713 The category for a coding system which has the same code range
5714 as SJIS. Assigned the coding-system (Lisp
5715 symbol) `japanese-shift-jis' by default.
5716
5717 o coding-category-iso-7
5718
5719 The category for a coding system which has the same code range
5720 as ISO2022 of 7-bit environment. This doesn't use any locking
5721 shift and single shift functions. This can encode/decode all
5722 charsets. Assigned the coding-system (Lisp symbol)
5723 `iso-2022-7bit' by default.
5724
5725 o coding-category-iso-7-tight
5726
5727 Same as coding-category-iso-7 except that this can
5728 encode/decode only the specified charsets.
5729
5730 o coding-category-iso-8-1
5731
5732 The category for a coding system which has the same code range
5733 as ISO2022 of 8-bit environment and graphic plane 1 used only
5734 for DIMENSION1 charset. This doesn't use any locking shift
5735 and single shift functions. Assigned the coding-system (Lisp
5736 symbol) `iso-latin-1' by default.
5737
5738 o coding-category-iso-8-2
5739
5740 The category for a coding system which has the same code range
5741 as ISO2022 of 8-bit environment and graphic plane 1 used only
5742 for DIMENSION2 charset. This doesn't use any locking shift
5743 and single shift functions. Assigned the coding-system (Lisp
5744 symbol) `japanese-iso-8bit' by default.
5745
5746 o coding-category-iso-7-else
5747
5748 The category for a coding system which has the same code range
5749 as ISO2022 of 7-bit environemnt but uses locking shift or
5750 single shift functions. Assigned the coding-system (Lisp
5751 symbol) `iso-2022-7bit-lock' by default.
5752
5753 o coding-category-iso-8-else
5754
5755 The category for a coding system which has the same code range
5756 as ISO2022 of 8-bit environemnt but uses locking shift or
5757 single shift functions. Assigned the coding-system (Lisp
5758 symbol) `iso-2022-8bit-ss2' by default.
5759
5760 o coding-category-big5
5761
5762 The category for a coding system which has the same code range
5763 as BIG5. Assigned the coding-system (Lisp symbol)
5764 `cn-big5' by default.
5765
5766 o coding-category-utf-8
5767
5768 The category for a coding system which has the same code range
5769 as UTF-8 (cf. RFC3629). Assigned the coding-system (Lisp
5770 symbol) `utf-8' by default.
5771
5772 o coding-category-utf-16-be
5773
5774 The category for a coding system in which a text has an
5775 Unicode signature (cf. Unicode Standard) in the order of BIG
5776 endian at the head. Assigned the coding-system (Lisp symbol)
5777 `utf-16-be' by default.
5778
5779 o coding-category-utf-16-le
5780
5781 The category for a coding system in which a text has an
5782 Unicode signature (cf. Unicode Standard) in the order of
5783 LITTLE endian at the head. Assigned the coding-system (Lisp
5784 symbol) `utf-16-le' by default.
5785
5786 o coding-category-ccl
5787
5788 The category for a coding system of which encoder/decoder is
5789 written in CCL programs. The default value is nil, i.e., no
5790 coding system is assigned.
5791
5792 o coding-category-binary
5793
5794 The category for a coding system not categorized in any of the
5795 above. Assigned the coding-system (Lisp symbol)
5796 `no-conversion' by default.
5797
5798 Each of them is a Lisp symbol and the value is an actual
5799 `coding-system's (this is also a Lisp symbol) assigned by a user.
5800 What Emacs does actually is to detect a category of coding system.
5801 Then, it uses a `coding-system' assigned to it. If Emacs can't
5802 decide only one possible category, it selects a category of the
5803 highest priority. Priorities of categories are also specified by a
5804 user in a Lisp variable `coding-category-list'.
5805
5806 */
5807
5808 #define EOL_SEEN_NONE 0
5809 #define EOL_SEEN_LF 1
5810 #define EOL_SEEN_CR 2
5811 #define EOL_SEEN_CRLF 4
5812
5813 /* Detect how end-of-line of a text of length SRC_BYTES pointed by
5814 SOURCE is encoded. If CATEGORY is one of
5815 coding_category_utf_16_XXXX, assume that CR and LF are encoded by
5816 two-byte, else they are encoded by one-byte.
5817
5818 Return one of EOL_SEEN_XXX. */
5819
5820 #define MAX_EOL_CHECK_COUNT 3
5821
5822 static int
5823 detect_eol (source, src_bytes, category)
5824 const unsigned char *source;
5825 EMACS_INT src_bytes;
5826 enum coding_category category;
5827 {
5828 const unsigned char *src = source, *src_end = src + src_bytes;
5829 unsigned char c;
5830 int total = 0;
5831 int eol_seen = EOL_SEEN_NONE;
5832
5833 if ((1 << category) & CATEGORY_MASK_UTF_16)
5834 {
5835 int msb, lsb;
5836
5837 msb = category == (coding_category_utf_16_le
5838 | coding_category_utf_16_le_nosig);
5839 lsb = 1 - msb;
5840
5841 while (src + 1 < src_end)
5842 {
5843 c = src[lsb];
5844 if (src[msb] == 0 && (c == '\n' || c == '\r'))
5845 {
5846 int this_eol;
5847
5848 if (c == '\n')
5849 this_eol = EOL_SEEN_LF;
5850 else if (src + 3 >= src_end
5851 || src[msb + 2] != 0
5852 || src[lsb + 2] != '\n')
5853 this_eol = EOL_SEEN_CR;
5854 else
5855 {
5856 this_eol = EOL_SEEN_CRLF;
5857 src += 2;
5858 }
5859
5860 if (eol_seen == EOL_SEEN_NONE)
5861 /* This is the first end-of-line. */
5862 eol_seen = this_eol;
5863 else if (eol_seen != this_eol)
5864 {
5865 /* The found type is different from what found before.
5866 Allow for stray ^M characters in DOS EOL files. */
5867 if (eol_seen == EOL_SEEN_CR && this_eol == EOL_SEEN_CRLF
5868 || eol_seen == EOL_SEEN_CRLF && this_eol == EOL_SEEN_CR)
5869 eol_seen = EOL_SEEN_CRLF;
5870 else
5871 {
5872 eol_seen = EOL_SEEN_LF;
5873 break;
5874 }
5875 }
5876 if (++total == MAX_EOL_CHECK_COUNT)
5877 break;
5878 }
5879 src += 2;
5880 }
5881 }
5882 else
5883 {
5884 while (src < src_end)
5885 {
5886 c = *src++;
5887 if (c == '\n' || c == '\r')
5888 {
5889 int this_eol;
5890
5891 if (c == '\n')
5892 this_eol = EOL_SEEN_LF;
5893 else if (src >= src_end || *src != '\n')
5894 this_eol = EOL_SEEN_CR;
5895 else
5896 this_eol = EOL_SEEN_CRLF, src++;
5897
5898 if (eol_seen == EOL_SEEN_NONE)
5899 /* This is the first end-of-line. */
5900 eol_seen = this_eol;
5901 else if (eol_seen != this_eol)
5902 {
5903 /* The found type is different from what found before.
5904 Allow for stray ^M characters in DOS EOL files. */
5905 if (eol_seen == EOL_SEEN_CR && this_eol == EOL_SEEN_CRLF
5906 || eol_seen == EOL_SEEN_CRLF && this_eol == EOL_SEEN_CR)
5907 eol_seen = EOL_SEEN_CRLF;
5908 else
5909 {
5910 eol_seen = EOL_SEEN_LF;
5911 break;
5912 }
5913 }
5914 if (++total == MAX_EOL_CHECK_COUNT)
5915 break;
5916 }
5917 }
5918 }
5919 return eol_seen;
5920 }
5921
5922
5923 static Lisp_Object
5924 adjust_coding_eol_type (coding, eol_seen)
5925 struct coding_system *coding;
5926 int eol_seen;
5927 {
5928 Lisp_Object eol_type;
5929
5930 eol_type = CODING_ID_EOL_TYPE (coding->id);
5931 if (eol_seen & EOL_SEEN_LF)
5932 {
5933 coding->id = CODING_SYSTEM_ID (AREF (eol_type, 0));
5934 eol_type = Qunix;
5935 }
5936 else if (eol_seen & EOL_SEEN_CRLF)
5937 {
5938 coding->id = CODING_SYSTEM_ID (AREF (eol_type, 1));
5939 eol_type = Qdos;
5940 }
5941 else if (eol_seen & EOL_SEEN_CR)
5942 {
5943 coding->id = CODING_SYSTEM_ID (AREF (eol_type, 2));
5944 eol_type = Qmac;
5945 }
5946 return eol_type;
5947 }
5948
5949 /* Detect how a text specified in CODING is encoded. If a coding
5950 system is detected, update fields of CODING by the detected coding
5951 system. */
5952
5953 void
5954 detect_coding (coding)
5955 struct coding_system *coding;
5956 {
5957 const unsigned char *src, *src_end;
5958
5959 coding->consumed = coding->consumed_char = 0;
5960 coding->produced = coding->produced_char = 0;
5961 coding_set_source (coding);
5962
5963 src_end = coding->source + coding->src_bytes;
5964 coding->head_ascii = 0;
5965
5966 /* If we have not yet decided the text encoding type, detect it
5967 now. */
5968 if (EQ (CODING_ATTR_TYPE (CODING_ID_ATTRS (coding->id)), Qundecided))
5969 {
5970 int c, i;
5971 struct coding_detection_info detect_info;
5972 int null_byte_found = 0, eight_bit_found = 0;
5973
5974 detect_info.checked = detect_info.found = detect_info.rejected = 0;
5975 for (src = coding->source; src < src_end; src++)
5976 {
5977 c = *src;
5978 if (c & 0x80)
5979 {
5980 eight_bit_found = 1;
5981 if (null_byte_found)
5982 break;
5983 }
5984 else if (c < 0x20)
5985 {
5986 if ((c == ISO_CODE_ESC || c == ISO_CODE_SI || c == ISO_CODE_SO)
5987 && ! inhibit_iso_escape_detection
5988 && ! detect_info.checked)
5989 {
5990 if (detect_coding_iso_2022 (coding, &detect_info))
5991 {
5992 /* We have scanned the whole data. */
5993 if (! (detect_info.rejected & CATEGORY_MASK_ISO_7_ELSE))
5994 {
5995 /* We didn't find an 8-bit code. We may
5996 have found a null-byte, but it's very
5997 rare that a binary file confirm to
5998 ISO-2022. */
5999 src = src_end;
6000 coding->head_ascii = src - coding->source;
6001 }
6002 detect_info.rejected |= ~CATEGORY_MASK_ISO_ESCAPE;
6003 break;
6004 }
6005 }
6006 else if (! c && !inhibit_null_byte_detection)
6007 {
6008 null_byte_found = 1;
6009 if (eight_bit_found)
6010 break;
6011 }
6012 if (! eight_bit_found)
6013 coding->head_ascii++;
6014 }
6015 else if (! eight_bit_found)
6016 coding->head_ascii++;
6017 }
6018
6019 if (null_byte_found || eight_bit_found
6020 || coding->head_ascii < coding->src_bytes
6021 || detect_info.found)
6022 {
6023 enum coding_category category;
6024 struct coding_system *this;
6025
6026 if (coding->head_ascii == coding->src_bytes)
6027 /* As all bytes are 7-bit, we can ignore non-ISO-2022 codings. */
6028 for (i = 0; i < coding_category_raw_text; i++)
6029 {
6030 category = coding_priorities[i];
6031 this = coding_categories + category;
6032 if (detect_info.found & (1 << category))
6033 break;
6034 }
6035 else
6036 {
6037 if (null_byte_found)
6038 {
6039 detect_info.checked |= ~CATEGORY_MASK_UTF_16;
6040 detect_info.rejected |= ~CATEGORY_MASK_UTF_16;
6041 }
6042 for (i = 0; i < coding_category_raw_text; i++)
6043 {
6044 category = coding_priorities[i];
6045 this = coding_categories + category;
6046 if (this->id < 0)
6047 {
6048 /* No coding system of this category is defined. */
6049 detect_info.rejected |= (1 << category);
6050 }
6051 else if (category >= coding_category_raw_text)
6052 continue;
6053 else if (detect_info.checked & (1 << category))
6054 {
6055 if (detect_info.found & (1 << category))
6056 break;
6057 }
6058 else if ((*(this->detector)) (coding, &detect_info)
6059 && detect_info.found & (1 << category))
6060 {
6061 if (category == coding_category_utf_16_auto)
6062 {
6063 if (detect_info.found & CATEGORY_MASK_UTF_16_LE)
6064 category = coding_category_utf_16_le;
6065 else
6066 category = coding_category_utf_16_be;
6067 }
6068 break;
6069 }
6070 }
6071 }
6072
6073 if (i < coding_category_raw_text)
6074 setup_coding_system (CODING_ID_NAME (this->id), coding);
6075 else if (null_byte_found)
6076 setup_coding_system (Qno_conversion, coding);
6077 else if ((detect_info.rejected & CATEGORY_MASK_ANY)
6078 == CATEGORY_MASK_ANY)
6079 setup_coding_system (Qraw_text, coding);
6080 else if (detect_info.rejected)
6081 for (i = 0; i < coding_category_raw_text; i++)
6082 if (! (detect_info.rejected & (1 << coding_priorities[i])))
6083 {
6084 this = coding_categories + coding_priorities[i];
6085 setup_coding_system (CODING_ID_NAME (this->id), coding);
6086 break;
6087 }
6088 }
6089 }
6090 else if (XINT (CODING_ATTR_CATEGORY (CODING_ID_ATTRS (coding->id)))
6091 == coding_category_utf_8_auto)
6092 {
6093 Lisp_Object coding_systems;
6094 struct coding_detection_info detect_info;
6095
6096 coding_systems
6097 = AREF (CODING_ID_ATTRS (coding->id), coding_attr_utf_bom);
6098 detect_info.found = detect_info.rejected = 0;
6099 coding->head_ascii = 0;
6100 if (CONSP (coding_systems)
6101 && detect_coding_utf_8 (coding, &detect_info))
6102 {
6103 if (detect_info.found & CATEGORY_MASK_UTF_8_SIG)
6104 setup_coding_system (XCAR (coding_systems), coding);
6105 else
6106 setup_coding_system (XCDR (coding_systems), coding);
6107 }
6108 }
6109 else if (XINT (CODING_ATTR_CATEGORY (CODING_ID_ATTRS (coding->id)))
6110 == coding_category_utf_16_auto)
6111 {
6112 Lisp_Object coding_systems;
6113 struct coding_detection_info detect_info;
6114
6115 coding_systems
6116 = AREF (CODING_ID_ATTRS (coding->id), coding_attr_utf_bom);
6117 detect_info.found = detect_info.rejected = 0;
6118 coding->head_ascii = 0;
6119 if (CONSP (coding_systems)
6120 && detect_coding_utf_16 (coding, &detect_info))
6121 {
6122 if (detect_info.found & CATEGORY_MASK_UTF_16_LE)
6123 setup_coding_system (XCAR (coding_systems), coding);
6124 else if (detect_info.found & CATEGORY_MASK_UTF_16_BE)
6125 setup_coding_system (XCDR (coding_systems), coding);
6126 }
6127 }
6128 }
6129
6130
6131 static void
6132 decode_eol (coding)
6133 struct coding_system *coding;
6134 {
6135 Lisp_Object eol_type;
6136 unsigned char *p, *pbeg, *pend;
6137
6138 eol_type = CODING_ID_EOL_TYPE (coding->id);
6139 if (EQ (eol_type, Qunix))
6140 return;
6141
6142 if (NILP (coding->dst_object))
6143 pbeg = coding->destination;
6144 else
6145 pbeg = BYTE_POS_ADDR (coding->dst_pos_byte);
6146 pend = pbeg + coding->produced;
6147
6148 if (VECTORP (eol_type))
6149 {
6150 int eol_seen = EOL_SEEN_NONE;
6151
6152 for (p = pbeg; p < pend; p++)
6153 {
6154 if (*p == '\n')
6155 eol_seen |= EOL_SEEN_LF;
6156 else if (*p == '\r')
6157 {
6158 if (p + 1 < pend && *(p + 1) == '\n')
6159 {
6160 eol_seen |= EOL_SEEN_CRLF;
6161 p++;
6162 }
6163 else
6164 eol_seen |= EOL_SEEN_CR;
6165 }
6166 }
6167 /* Handle DOS-style EOLs in a file with stray ^M characters. */
6168 if ((eol_seen & EOL_SEEN_CRLF) != 0
6169 && (eol_seen & EOL_SEEN_CR) != 0
6170 && (eol_seen & EOL_SEEN_LF) == 0)
6171 eol_seen = EOL_SEEN_CRLF;
6172 else if (eol_seen != EOL_SEEN_NONE
6173 && eol_seen != EOL_SEEN_LF
6174 && eol_seen != EOL_SEEN_CRLF
6175 && eol_seen != EOL_SEEN_CR)
6176 eol_seen = EOL_SEEN_LF;
6177 if (eol_seen != EOL_SEEN_NONE)
6178 eol_type = adjust_coding_eol_type (coding, eol_seen);
6179 }
6180
6181 if (EQ (eol_type, Qmac))
6182 {
6183 for (p = pbeg; p < pend; p++)
6184 if (*p == '\r')
6185 *p = '\n';
6186 }
6187 else if (EQ (eol_type, Qdos))
6188 {
6189 int n = 0;
6190
6191 if (NILP (coding->dst_object))
6192 {
6193 /* Start deleting '\r' from the tail to minimize the memory
6194 movement. */
6195 for (p = pend - 2; p >= pbeg; p--)
6196 if (*p == '\r')
6197 {
6198 safe_bcopy ((char *) (p + 1), (char *) p, pend-- - p - 1);
6199 n++;
6200 }
6201 }
6202 else
6203 {
6204 int pos_byte = coding->dst_pos_byte;
6205 int pos = coding->dst_pos;
6206 int pos_end = pos + coding->produced_char - 1;
6207
6208 while (pos < pos_end)
6209 {
6210 p = BYTE_POS_ADDR (pos_byte);
6211 if (*p == '\r' && p[1] == '\n')
6212 {
6213 del_range_2 (pos, pos_byte, pos + 1, pos_byte + 1, 0);
6214 n++;
6215 pos_end--;
6216 }
6217 pos++;
6218 if (coding->dst_multibyte)
6219 pos_byte += BYTES_BY_CHAR_HEAD (*p);
6220 else
6221 pos_byte++;
6222 }
6223 }
6224 coding->produced -= n;
6225 coding->produced_char -= n;
6226 }
6227 }
6228
6229
6230 /* Return a translation table (or list of them) from coding system
6231 attribute vector ATTRS for encoding (ENCODEP is nonzero) or
6232 decoding (ENCODEP is zero). */
6233
6234 static Lisp_Object
6235 get_translation_table (attrs, encodep, max_lookup)
6236 Lisp_Object attrs;
6237 int encodep, *max_lookup;
6238 {
6239 Lisp_Object standard, translation_table;
6240 Lisp_Object val;
6241
6242 if (encodep)
6243 translation_table = CODING_ATTR_ENCODE_TBL (attrs),
6244 standard = Vstandard_translation_table_for_encode;
6245 else
6246 translation_table = CODING_ATTR_DECODE_TBL (attrs),
6247 standard = Vstandard_translation_table_for_decode;
6248 if (NILP (translation_table))
6249 translation_table = standard;
6250 else
6251 {
6252 if (SYMBOLP (translation_table))
6253 translation_table = Fget (translation_table, Qtranslation_table);
6254 else if (CONSP (translation_table))
6255 {
6256 translation_table = Fcopy_sequence (translation_table);
6257 for (val = translation_table; CONSP (val); val = XCDR (val))
6258 if (SYMBOLP (XCAR (val)))
6259 XSETCAR (val, Fget (XCAR (val), Qtranslation_table));
6260 }
6261 if (CHAR_TABLE_P (standard))
6262 {
6263 if (CONSP (translation_table))
6264 translation_table = nconc2 (translation_table,
6265 Fcons (standard, Qnil));
6266 else
6267 translation_table = Fcons (translation_table,
6268 Fcons (standard, Qnil));
6269 }
6270 }
6271
6272 if (max_lookup)
6273 {
6274 *max_lookup = 1;
6275 if (CHAR_TABLE_P (translation_table)
6276 && CHAR_TABLE_EXTRA_SLOTS (XCHAR_TABLE (translation_table)) > 1)
6277 {
6278 val = XCHAR_TABLE (translation_table)->extras[1];
6279 if (NATNUMP (val) && *max_lookup < XFASTINT (val))
6280 *max_lookup = XFASTINT (val);
6281 }
6282 else if (CONSP (translation_table))
6283 {
6284 Lisp_Object tail, val;
6285
6286 for (tail = translation_table; CONSP (tail); tail = XCDR (tail))
6287 if (CHAR_TABLE_P (XCAR (tail))
6288 && CHAR_TABLE_EXTRA_SLOTS (XCHAR_TABLE (XCAR (tail))) > 1)
6289 {
6290 val = XCHAR_TABLE (XCAR (tail))->extras[1];
6291 if (NATNUMP (val) && *max_lookup < XFASTINT (val))
6292 *max_lookup = XFASTINT (val);
6293 }
6294 }
6295 }
6296 return translation_table;
6297 }
6298
6299 #define LOOKUP_TRANSLATION_TABLE(table, c, trans) \
6300 do { \
6301 trans = Qnil; \
6302 if (CHAR_TABLE_P (table)) \
6303 { \
6304 trans = CHAR_TABLE_REF (table, c); \
6305 if (CHARACTERP (trans)) \
6306 c = XFASTINT (trans), trans = Qnil; \
6307 } \
6308 else if (CONSP (table)) \
6309 { \
6310 Lisp_Object tail; \
6311 \
6312 for (tail = table; CONSP (tail); tail = XCDR (tail)) \
6313 if (CHAR_TABLE_P (XCAR (tail))) \
6314 { \
6315 trans = CHAR_TABLE_REF (XCAR (tail), c); \
6316 if (CHARACTERP (trans)) \
6317 c = XFASTINT (trans), trans = Qnil; \
6318 else if (! NILP (trans)) \
6319 break; \
6320 } \
6321 } \
6322 } while (0)
6323
6324
6325 static Lisp_Object
6326 get_translation (val, buf, buf_end, last_block, from_nchars, to_nchars)
6327 Lisp_Object val;
6328 int *buf, *buf_end;
6329 int last_block;
6330 int *from_nchars, *to_nchars;
6331 {
6332 /* VAL is TO or (([FROM-CHAR ...] . TO) ...) where TO is TO-CHAR or
6333 [TO-CHAR ...]. */
6334 if (CONSP (val))
6335 {
6336 Lisp_Object from, tail;
6337 int i, len;
6338
6339 for (tail = val; CONSP (tail); tail = XCDR (tail))
6340 {
6341 val = XCAR (tail);
6342 from = XCAR (val);
6343 len = ASIZE (from);
6344 for (i = 0; i < len; i++)
6345 {
6346 if (buf + i == buf_end)
6347 {
6348 if (! last_block)
6349 return Qt;
6350 break;
6351 }
6352 if (XINT (AREF (from, i)) != buf[i])
6353 break;
6354 }
6355 if (i == len)
6356 {
6357 val = XCDR (val);
6358 *from_nchars = len;
6359 break;
6360 }
6361 }
6362 if (! CONSP (tail))
6363 return Qnil;
6364 }
6365 if (VECTORP (val))
6366 *buf = XINT (AREF (val, 0)), *to_nchars = ASIZE (val);
6367 else
6368 *buf = XINT (val);
6369 return val;
6370 }
6371
6372
6373 static int
6374 produce_chars (coding, translation_table, last_block)
6375 struct coding_system *coding;
6376 Lisp_Object translation_table;
6377 int last_block;
6378 {
6379 unsigned char *dst = coding->destination + coding->produced;
6380 unsigned char *dst_end = coding->destination + coding->dst_bytes;
6381 EMACS_INT produced;
6382 EMACS_INT produced_chars = 0;
6383 int carryover = 0;
6384
6385 if (! coding->chars_at_source)
6386 {
6387 /* Source characters are in coding->charbuf. */
6388 int *buf = coding->charbuf;
6389 int *buf_end = buf + coding->charbuf_used;
6390
6391 if (EQ (coding->src_object, coding->dst_object))
6392 {
6393 coding_set_source (coding);
6394 dst_end = ((unsigned char *) coding->source) + coding->consumed;
6395 }
6396
6397 while (buf < buf_end)
6398 {
6399 int c = *buf, i;
6400
6401 if (c >= 0)
6402 {
6403 int from_nchars = 1, to_nchars = 1;
6404 Lisp_Object trans = Qnil;
6405
6406 LOOKUP_TRANSLATION_TABLE (translation_table, c, trans);
6407 if (! NILP (trans))
6408 {
6409 trans = get_translation (trans, buf, buf_end, last_block,
6410 &from_nchars, &to_nchars);
6411 if (EQ (trans, Qt))
6412 break;
6413 c = *buf;
6414 }
6415
6416 if (dst + MAX_MULTIBYTE_LENGTH * to_nchars > dst_end)
6417 {
6418 dst = alloc_destination (coding,
6419 buf_end - buf
6420 + MAX_MULTIBYTE_LENGTH * to_nchars,
6421 dst);
6422 if (EQ (coding->src_object, coding->dst_object))
6423 {
6424 coding_set_source (coding);
6425 dst_end = ((unsigned char *) coding->source) + coding->consumed;
6426 }
6427 else
6428 dst_end = coding->destination + coding->dst_bytes;
6429 }
6430
6431 for (i = 0; i < to_nchars; i++)
6432 {
6433 if (i > 0)
6434 c = XINT (AREF (trans, i));
6435 if (coding->dst_multibyte
6436 || ! CHAR_BYTE8_P (c))
6437 CHAR_STRING_ADVANCE_NO_UNIFY (c, dst);
6438 else
6439 *dst++ = CHAR_TO_BYTE8 (c);
6440 }
6441 produced_chars += to_nchars;
6442 *buf++ = to_nchars;
6443 while (--from_nchars > 0)
6444 *buf++ = 0;
6445 }
6446 else
6447 /* This is an annotation datum. (-C) is the length. */
6448 buf += -c;
6449 }
6450 carryover = buf_end - buf;
6451 }
6452 else
6453 {
6454 /* Source characters are at coding->source. */
6455 const unsigned char *src = coding->source;
6456 const unsigned char *src_end = src + coding->consumed;
6457
6458 if (EQ (coding->dst_object, coding->src_object))
6459 dst_end = (unsigned char *) src;
6460 if (coding->src_multibyte != coding->dst_multibyte)
6461 {
6462 if (coding->src_multibyte)
6463 {
6464 int multibytep = 1;
6465 EMACS_INT consumed_chars = 0;
6466
6467 while (1)
6468 {
6469 const unsigned char *src_base = src;
6470 int c;
6471
6472 ONE_MORE_BYTE (c);
6473 if (dst == dst_end)
6474 {
6475 if (EQ (coding->src_object, coding->dst_object))
6476 dst_end = (unsigned char *) src;
6477 if (dst == dst_end)
6478 {
6479 EMACS_INT offset = src - coding->source;
6480
6481 dst = alloc_destination (coding, src_end - src + 1,
6482 dst);
6483 dst_end = coding->destination + coding->dst_bytes;
6484 coding_set_source (coding);
6485 src = coding->source + offset;
6486 src_end = coding->source + coding->src_bytes;
6487 if (EQ (coding->src_object, coding->dst_object))
6488 dst_end = (unsigned char *) src;
6489 }
6490 }
6491 *dst++ = c;
6492 produced_chars++;
6493 }
6494 no_more_source:
6495 ;
6496 }
6497 else
6498 while (src < src_end)
6499 {
6500 int multibytep = 1;
6501 int c = *src++;
6502
6503 if (dst >= dst_end - 1)
6504 {
6505 if (EQ (coding->src_object, coding->dst_object))
6506 dst_end = (unsigned char *) src;
6507 if (dst >= dst_end - 1)
6508 {
6509 EMACS_INT offset = src - coding->source;
6510 EMACS_INT more_bytes;
6511
6512 if (EQ (coding->src_object, coding->dst_object))
6513 more_bytes = ((src_end - src) / 2) + 2;
6514 else
6515 more_bytes = src_end - src + 2;
6516 dst = alloc_destination (coding, more_bytes, dst);
6517 dst_end = coding->destination + coding->dst_bytes;
6518 coding_set_source (coding);
6519 src = coding->source + offset;
6520 src_end = coding->source + coding->src_bytes;
6521 if (EQ (coding->src_object, coding->dst_object))
6522 dst_end = (unsigned char *) src;
6523 }
6524 }
6525 EMIT_ONE_BYTE (c);
6526 }
6527 }
6528 else
6529 {
6530 if (!EQ (coding->src_object, coding->dst_object))
6531 {
6532 EMACS_INT require = coding->src_bytes - coding->dst_bytes;
6533
6534 if (require > 0)
6535 {
6536 EMACS_INT offset = src - coding->source;
6537
6538 dst = alloc_destination (coding, require, dst);
6539 coding_set_source (coding);
6540 src = coding->source + offset;
6541 src_end = coding->source + coding->src_bytes;
6542 }
6543 }
6544 produced_chars = coding->consumed_char;
6545 while (src < src_end)
6546 *dst++ = *src++;
6547 }
6548 }
6549
6550 produced = dst - (coding->destination + coding->produced);
6551 if (BUFFERP (coding->dst_object) && produced_chars > 0)
6552 insert_from_gap (produced_chars, produced);
6553 coding->produced += produced;
6554 coding->produced_char += produced_chars;
6555 return carryover;
6556 }
6557
6558 /* Compose text in CODING->object according to the annotation data at
6559 CHARBUF. CHARBUF is an array:
6560 [ -LENGTH ANNOTATION_MASK FROM TO METHOD COMP_LEN [ COMPONENTS... ] ]
6561 */
6562
6563 static INLINE void
6564 produce_composition (coding, charbuf, pos)
6565 struct coding_system *coding;
6566 int *charbuf;
6567 EMACS_INT pos;
6568 {
6569 int len;
6570 EMACS_INT to;
6571 enum composition_method method;
6572 Lisp_Object components;
6573
6574 len = -charbuf[0];
6575 to = pos + charbuf[2];
6576 if (to <= pos)
6577 return;
6578 method = (enum composition_method) (charbuf[3]);
6579
6580 if (method == COMPOSITION_RELATIVE)
6581 components = Qnil;
6582 else if (method >= COMPOSITION_WITH_RULE
6583 && method <= COMPOSITION_WITH_RULE_ALTCHARS)
6584 {
6585 Lisp_Object args[MAX_COMPOSITION_COMPONENTS * 2 - 1];
6586 int i;
6587
6588 len -= 4;
6589 charbuf += 4;
6590 for (i = 0; i < len; i++)
6591 {
6592 args[i] = make_number (charbuf[i]);
6593 if (charbuf[i] < 0)
6594 return;
6595 }
6596 components = (method == COMPOSITION_WITH_ALTCHARS
6597 ? Fstring (len, args) : Fvector (len, args));
6598 }
6599 else
6600 return;
6601 compose_text (pos, to, components, Qnil, coding->dst_object);
6602 }
6603
6604
6605 /* Put `charset' property on text in CODING->object according to
6606 the annotation data at CHARBUF. CHARBUF is an array:
6607 [ -LENGTH ANNOTATION_MASK NCHARS CHARSET-ID ]
6608 */
6609
6610 static INLINE void
6611 produce_charset (coding, charbuf, pos)
6612 struct coding_system *coding;
6613 int *charbuf;
6614 EMACS_INT pos;
6615 {
6616 EMACS_INT from = pos - charbuf[2];
6617 struct charset *charset = CHARSET_FROM_ID (charbuf[3]);
6618
6619 Fput_text_property (make_number (from), make_number (pos),
6620 Qcharset, CHARSET_NAME (charset),
6621 coding->dst_object);
6622 }
6623
6624
6625 #define CHARBUF_SIZE 0x4000
6626
6627 #define ALLOC_CONVERSION_WORK_AREA(coding) \
6628 do { \
6629 int size = CHARBUF_SIZE;; \
6630 \
6631 coding->charbuf = NULL; \
6632 while (size > 1024) \
6633 { \
6634 coding->charbuf = (int *) alloca (sizeof (int) * size); \
6635 if (coding->charbuf) \
6636 break; \
6637 size >>= 1; \
6638 } \
6639 if (! coding->charbuf) \
6640 { \
6641 record_conversion_result (coding, CODING_RESULT_INSUFFICIENT_MEM); \
6642 return coding->result; \
6643 } \
6644 coding->charbuf_size = size; \
6645 } while (0)
6646
6647
6648 static void
6649 produce_annotation (coding, pos)
6650 struct coding_system *coding;
6651 EMACS_INT pos;
6652 {
6653 int *charbuf = coding->charbuf;
6654 int *charbuf_end = charbuf + coding->charbuf_used;
6655
6656 if (NILP (coding->dst_object))
6657 return;
6658
6659 while (charbuf < charbuf_end)
6660 {
6661 if (*charbuf >= 0)
6662 pos += *charbuf++;
6663 else
6664 {
6665 int len = -*charbuf;
6666 switch (charbuf[1])
6667 {
6668 case CODING_ANNOTATE_COMPOSITION_MASK:
6669 produce_composition (coding, charbuf, pos);
6670 break;
6671 case CODING_ANNOTATE_CHARSET_MASK:
6672 produce_charset (coding, charbuf, pos);
6673 break;
6674 default:
6675 abort ();
6676 }
6677 charbuf += len;
6678 }
6679 }
6680 }
6681
6682 /* Decode the data at CODING->src_object into CODING->dst_object.
6683 CODING->src_object is a buffer, a string, or nil.
6684 CODING->dst_object is a buffer.
6685
6686 If CODING->src_object is a buffer, it must be the current buffer.
6687 In this case, if CODING->src_pos is positive, it is a position of
6688 the source text in the buffer, otherwise, the source text is in the
6689 gap area of the buffer, and CODING->src_pos specifies the offset of
6690 the text from GPT (which must be the same as PT). If this is the
6691 same buffer as CODING->dst_object, CODING->src_pos must be
6692 negative.
6693
6694 If CODING->src_object is a string, CODING->src_pos is an index to
6695 that string.
6696
6697 If CODING->src_object is nil, CODING->source must already point to
6698 the non-relocatable memory area. In this case, CODING->src_pos is
6699 an offset from CODING->source.
6700
6701 The decoded data is inserted at the current point of the buffer
6702 CODING->dst_object.
6703 */
6704
6705 static int
6706 decode_coding (coding)
6707 struct coding_system *coding;
6708 {
6709 Lisp_Object attrs;
6710 Lisp_Object undo_list;
6711 Lisp_Object translation_table;
6712 int carryover;
6713 int i;
6714
6715 if (BUFFERP (coding->src_object)
6716 && coding->src_pos > 0
6717 && coding->src_pos < GPT
6718 && coding->src_pos + coding->src_chars > GPT)
6719 move_gap_both (coding->src_pos, coding->src_pos_byte);
6720
6721 undo_list = Qt;
6722 if (BUFFERP (coding->dst_object))
6723 {
6724 if (current_buffer != XBUFFER (coding->dst_object))
6725 set_buffer_internal (XBUFFER (coding->dst_object));
6726 if (GPT != PT)
6727 move_gap_both (PT, PT_BYTE);
6728 undo_list = current_buffer->undo_list;
6729 current_buffer->undo_list = Qt;
6730 }
6731
6732 coding->consumed = coding->consumed_char = 0;
6733 coding->produced = coding->produced_char = 0;
6734 coding->chars_at_source = 0;
6735 record_conversion_result (coding, CODING_RESULT_SUCCESS);
6736 coding->errors = 0;
6737
6738 ALLOC_CONVERSION_WORK_AREA (coding);
6739
6740 attrs = CODING_ID_ATTRS (coding->id);
6741 translation_table = get_translation_table (attrs, 0, NULL);
6742
6743 carryover = 0;
6744 do
6745 {
6746 EMACS_INT pos = coding->dst_pos + coding->produced_char;
6747
6748 coding_set_source (coding);
6749 coding->annotated = 0;
6750 coding->charbuf_used = carryover;
6751 (*(coding->decoder)) (coding);
6752 coding_set_destination (coding);
6753 carryover = produce_chars (coding, translation_table, 0);
6754 if (coding->annotated)
6755 produce_annotation (coding, pos);
6756 for (i = 0; i < carryover; i++)
6757 coding->charbuf[i]
6758 = coding->charbuf[coding->charbuf_used - carryover + i];
6759 }
6760 while (coding->consumed < coding->src_bytes
6761 && (coding->result == CODING_RESULT_SUCCESS
6762 || coding->result == CODING_RESULT_INVALID_SRC));
6763
6764 if (carryover > 0)
6765 {
6766 coding_set_destination (coding);
6767 coding->charbuf_used = carryover;
6768 produce_chars (coding, translation_table, 1);
6769 }
6770
6771 coding->carryover_bytes = 0;
6772 if (coding->consumed < coding->src_bytes)
6773 {
6774 int nbytes = coding->src_bytes - coding->consumed;
6775 const unsigned char *src;
6776
6777 coding_set_source (coding);
6778 coding_set_destination (coding);
6779 src = coding->source + coding->consumed;
6780
6781 if (coding->mode & CODING_MODE_LAST_BLOCK)
6782 {
6783 /* Flush out unprocessed data as binary chars. We are sure
6784 that the number of data is less than the size of
6785 coding->charbuf. */
6786 coding->charbuf_used = 0;
6787 coding->chars_at_source = 0;
6788
6789 while (nbytes-- > 0)
6790 {
6791 int c = *src++;
6792
6793 if (c & 0x80)
6794 c = BYTE8_TO_CHAR (c);
6795 coding->charbuf[coding->charbuf_used++] = c;
6796 }
6797 produce_chars (coding, Qnil, 1);
6798 }
6799 else
6800 {
6801 /* Record unprocessed bytes in coding->carryover. We are
6802 sure that the number of data is less than the size of
6803 coding->carryover. */
6804 unsigned char *p = coding->carryover;
6805
6806 coding->carryover_bytes = nbytes;
6807 while (nbytes-- > 0)
6808 *p++ = *src++;
6809 }
6810 coding->consumed = coding->src_bytes;
6811 }
6812
6813 if (! EQ (CODING_ID_EOL_TYPE (coding->id), Qunix))
6814 decode_eol (coding);
6815 if (BUFFERP (coding->dst_object))
6816 {
6817 current_buffer->undo_list = undo_list;
6818 record_insert (coding->dst_pos, coding->produced_char);
6819 }
6820 return coding->result;
6821 }
6822
6823
6824 /* Extract an annotation datum from a composition starting at POS and
6825 ending before LIMIT of CODING->src_object (buffer or string), store
6826 the data in BUF, set *STOP to a starting position of the next
6827 composition (if any) or to LIMIT, and return the address of the
6828 next element of BUF.
6829
6830 If such an annotation is not found, set *STOP to a starting
6831 position of a composition after POS (if any) or to LIMIT, and
6832 return BUF. */
6833
6834 static INLINE int *
6835 handle_composition_annotation (pos, limit, coding, buf, stop)
6836 EMACS_INT pos, limit;
6837 struct coding_system *coding;
6838 int *buf;
6839 EMACS_INT *stop;
6840 {
6841 EMACS_INT start, end;
6842 Lisp_Object prop;
6843
6844 if (! find_composition (pos, limit, &start, &end, &prop, coding->src_object)
6845 || end > limit)
6846 *stop = limit;
6847 else if (start > pos)
6848 *stop = start;
6849 else
6850 {
6851 if (start == pos)
6852 {
6853 /* We found a composition. Store the corresponding
6854 annotation data in BUF. */
6855 int *head = buf;
6856 enum composition_method method = COMPOSITION_METHOD (prop);
6857 int nchars = COMPOSITION_LENGTH (prop);
6858
6859 ADD_COMPOSITION_DATA (buf, nchars, method);
6860 if (method != COMPOSITION_RELATIVE)
6861 {
6862 Lisp_Object components;
6863 int len, i, i_byte;
6864
6865 components = COMPOSITION_COMPONENTS (prop);
6866 if (VECTORP (components))
6867 {
6868 len = XVECTOR (components)->size;
6869 for (i = 0; i < len; i++)
6870 *buf++ = XINT (AREF (components, i));
6871 }
6872 else if (STRINGP (components))
6873 {
6874 len = SCHARS (components);
6875 i = i_byte = 0;
6876 while (i < len)
6877 {
6878 FETCH_STRING_CHAR_ADVANCE (*buf, components, i, i_byte);
6879 buf++;
6880 }
6881 }
6882 else if (INTEGERP (components))
6883 {
6884 len = 1;
6885 *buf++ = XINT (components);
6886 }
6887 else if (CONSP (components))
6888 {
6889 for (len = 0; CONSP (components);
6890 len++, components = XCDR (components))
6891 *buf++ = XINT (XCAR (components));
6892 }
6893 else
6894 abort ();
6895 *head -= len;
6896 }
6897 }
6898
6899 if (find_composition (end, limit, &start, &end, &prop,
6900 coding->src_object)
6901 && end <= limit)
6902 *stop = start;
6903 else
6904 *stop = limit;
6905 }
6906 return buf;
6907 }
6908
6909
6910 /* Extract an annotation datum from a text property `charset' at POS of
6911 CODING->src_object (buffer of string), store the data in BUF, set
6912 *STOP to the position where the value of `charset' property changes
6913 (limiting by LIMIT), and return the address of the next element of
6914 BUF.
6915
6916 If the property value is nil, set *STOP to the position where the
6917 property value is non-nil (limiting by LIMIT), and return BUF. */
6918
6919 static INLINE int *
6920 handle_charset_annotation (pos, limit, coding, buf, stop)
6921 EMACS_INT pos, limit;
6922 struct coding_system *coding;
6923 int *buf;
6924 EMACS_INT *stop;
6925 {
6926 Lisp_Object val, next;
6927 int id;
6928
6929 val = Fget_text_property (make_number (pos), Qcharset, coding->src_object);
6930 if (! NILP (val) && CHARSETP (val))
6931 id = XINT (CHARSET_SYMBOL_ID (val));
6932 else
6933 id = -1;
6934 ADD_CHARSET_DATA (buf, 0, id);
6935 next = Fnext_single_property_change (make_number (pos), Qcharset,
6936 coding->src_object,
6937 make_number (limit));
6938 *stop = XINT (next);
6939 return buf;
6940 }
6941
6942
6943 static void
6944 consume_chars (coding, translation_table, max_lookup)
6945 struct coding_system *coding;
6946 Lisp_Object translation_table;
6947 int max_lookup;
6948 {
6949 int *buf = coding->charbuf;
6950 int *buf_end = coding->charbuf + coding->charbuf_size;
6951 const unsigned char *src = coding->source + coding->consumed;
6952 const unsigned char *src_end = coding->source + coding->src_bytes;
6953 EMACS_INT pos = coding->src_pos + coding->consumed_char;
6954 EMACS_INT end_pos = coding->src_pos + coding->src_chars;
6955 int multibytep = coding->src_multibyte;
6956 Lisp_Object eol_type;
6957 int c;
6958 EMACS_INT stop, stop_composition, stop_charset;
6959 int *lookup_buf = NULL;
6960
6961 if (! NILP (translation_table))
6962 lookup_buf = alloca (sizeof (int) * max_lookup);
6963
6964 eol_type = CODING_ID_EOL_TYPE (coding->id);
6965 if (VECTORP (eol_type))
6966 eol_type = Qunix;
6967
6968 /* Note: composition handling is not yet implemented. */
6969 coding->common_flags &= ~CODING_ANNOTATE_COMPOSITION_MASK;
6970
6971 if (NILP (coding->src_object))
6972 stop = stop_composition = stop_charset = end_pos;
6973 else
6974 {
6975 if (coding->common_flags & CODING_ANNOTATE_COMPOSITION_MASK)
6976 stop = stop_composition = pos;
6977 else
6978 stop = stop_composition = end_pos;
6979 if (coding->common_flags & CODING_ANNOTATE_CHARSET_MASK)
6980 stop = stop_charset = pos;
6981 else
6982 stop_charset = end_pos;
6983 }
6984
6985 /* Compensate for CRLF and conversion. */
6986 buf_end -= 1 + MAX_ANNOTATION_LENGTH;
6987 while (buf < buf_end)
6988 {
6989 Lisp_Object trans;
6990
6991 if (pos == stop)
6992 {
6993 if (pos == end_pos)
6994 break;
6995 if (pos == stop_composition)
6996 buf = handle_composition_annotation (pos, end_pos, coding,
6997 buf, &stop_composition);
6998 if (pos == stop_charset)
6999 buf = handle_charset_annotation (pos, end_pos, coding,
7000 buf, &stop_charset);
7001 stop = (stop_composition < stop_charset
7002 ? stop_composition : stop_charset);
7003 }
7004
7005 if (! multibytep)
7006 {
7007 EMACS_INT bytes;
7008
7009 if (coding->encoder == encode_coding_raw_text)
7010 c = *src++, pos++;
7011 else if ((bytes = MULTIBYTE_LENGTH (src, src_end)) > 0)
7012 c = STRING_CHAR_ADVANCE_NO_UNIFY (src), pos += bytes;
7013 else
7014 c = BYTE8_TO_CHAR (*src), src++, pos++;
7015 }
7016 else
7017 c = STRING_CHAR_ADVANCE_NO_UNIFY (src), pos++;
7018 if ((c == '\r') && (coding->mode & CODING_MODE_SELECTIVE_DISPLAY))
7019 c = '\n';
7020 if (! EQ (eol_type, Qunix))
7021 {
7022 if (c == '\n')
7023 {
7024 if (EQ (eol_type, Qdos))
7025 *buf++ = '\r';
7026 else
7027 c = '\r';
7028 }
7029 }
7030
7031 trans = Qnil;
7032 LOOKUP_TRANSLATION_TABLE (translation_table, c, trans);
7033 if (NILP (trans))
7034 *buf++ = c;
7035 else
7036 {
7037 int from_nchars = 1, to_nchars = 1;
7038 int *lookup_buf_end;
7039 const unsigned char *p = src;
7040 int i;
7041
7042 lookup_buf[0] = c;
7043 for (i = 1; i < max_lookup && p < src_end; i++)
7044 lookup_buf[i] = STRING_CHAR_ADVANCE (p);
7045 lookup_buf_end = lookup_buf + i;
7046 trans = get_translation (trans, lookup_buf, lookup_buf_end, 1,
7047 &from_nchars, &to_nchars);
7048 if (EQ (trans, Qt)
7049 || buf + to_nchars > buf_end)
7050 break;
7051 *buf++ = *lookup_buf;
7052 for (i = 1; i < to_nchars; i++)
7053 *buf++ = XINT (AREF (trans, i));
7054 for (i = 1; i < from_nchars; i++, pos++)
7055 src += MULTIBYTE_LENGTH_NO_CHECK (src);
7056 }
7057 }
7058
7059 coding->consumed = src - coding->source;
7060 coding->consumed_char = pos - coding->src_pos;
7061 coding->charbuf_used = buf - coding->charbuf;
7062 coding->chars_at_source = 0;
7063 }
7064
7065
7066 /* Encode the text at CODING->src_object into CODING->dst_object.
7067 CODING->src_object is a buffer or a string.
7068 CODING->dst_object is a buffer or nil.
7069
7070 If CODING->src_object is a buffer, it must be the current buffer.
7071 In this case, if CODING->src_pos is positive, it is a position of
7072 the source text in the buffer, otherwise. the source text is in the
7073 gap area of the buffer, and coding->src_pos specifies the offset of
7074 the text from GPT (which must be the same as PT). If this is the
7075 same buffer as CODING->dst_object, CODING->src_pos must be
7076 negative and CODING should not have `pre-write-conversion'.
7077
7078 If CODING->src_object is a string, CODING should not have
7079 `pre-write-conversion'.
7080
7081 If CODING->dst_object is a buffer, the encoded data is inserted at
7082 the current point of that buffer.
7083
7084 If CODING->dst_object is nil, the encoded data is placed at the
7085 memory area specified by CODING->destination. */
7086
7087 static int
7088 encode_coding (coding)
7089 struct coding_system *coding;
7090 {
7091 Lisp_Object attrs;
7092 Lisp_Object translation_table;
7093 int max_lookup;
7094
7095 attrs = CODING_ID_ATTRS (coding->id);
7096 if (coding->encoder == encode_coding_raw_text)
7097 translation_table = Qnil, max_lookup = 0;
7098 else
7099 translation_table = get_translation_table (attrs, 1, &max_lookup);
7100
7101 if (BUFFERP (coding->dst_object))
7102 {
7103 set_buffer_internal (XBUFFER (coding->dst_object));
7104 coding->dst_multibyte
7105 = ! NILP (current_buffer->enable_multibyte_characters);
7106 }
7107
7108 coding->consumed = coding->consumed_char = 0;
7109 coding->produced = coding->produced_char = 0;
7110 record_conversion_result (coding, CODING_RESULT_SUCCESS);
7111 coding->errors = 0;
7112
7113 ALLOC_CONVERSION_WORK_AREA (coding);
7114
7115 do {
7116 coding_set_source (coding);
7117 consume_chars (coding, translation_table, max_lookup);
7118 coding_set_destination (coding);
7119 (*(coding->encoder)) (coding);
7120 } while (coding->consumed_char < coding->src_chars);
7121
7122 if (BUFFERP (coding->dst_object) && coding->produced_char > 0)
7123 insert_from_gap (coding->produced_char, coding->produced);
7124
7125 return (coding->result);
7126 }
7127
7128
7129 /* Name (or base name) of work buffer for code conversion. */
7130 static Lisp_Object Vcode_conversion_workbuf_name;
7131
7132 /* A working buffer used by the top level conversion. Once it is
7133 created, it is never destroyed. It has the name
7134 Vcode_conversion_workbuf_name. The other working buffers are
7135 destroyed after the use is finished, and their names are modified
7136 versions of Vcode_conversion_workbuf_name. */
7137 static Lisp_Object Vcode_conversion_reused_workbuf;
7138
7139 /* 1 iff Vcode_conversion_reused_workbuf is already in use. */
7140 static int reused_workbuf_in_use;
7141
7142
7143 /* Return a working buffer of code convesion. MULTIBYTE specifies the
7144 multibyteness of returning buffer. */
7145
7146 static Lisp_Object
7147 make_conversion_work_buffer (multibyte)
7148 int multibyte;
7149 {
7150 Lisp_Object name, workbuf;
7151 struct buffer *current;
7152
7153 if (reused_workbuf_in_use++)
7154 {
7155 name = Fgenerate_new_buffer_name (Vcode_conversion_workbuf_name, Qnil);
7156 workbuf = Fget_buffer_create (name);
7157 }
7158 else
7159 {
7160 if (NILP (Fbuffer_live_p (Vcode_conversion_reused_workbuf)))
7161 Vcode_conversion_reused_workbuf
7162 = Fget_buffer_create (Vcode_conversion_workbuf_name);
7163 workbuf = Vcode_conversion_reused_workbuf;
7164 }
7165 current = current_buffer;
7166 set_buffer_internal (XBUFFER (workbuf));
7167 /* We can't allow modification hooks to run in the work buffer. For
7168 instance, directory_files_internal assumes that file decoding
7169 doesn't compile new regexps. */
7170 Fset (Fmake_local_variable (Qinhibit_modification_hooks), Qt);
7171 Ferase_buffer ();
7172 current_buffer->undo_list = Qt;
7173 current_buffer->enable_multibyte_characters = multibyte ? Qt : Qnil;
7174 set_buffer_internal (current);
7175 return workbuf;
7176 }
7177
7178
7179 static Lisp_Object
7180 code_conversion_restore (arg)
7181 Lisp_Object arg;
7182 {
7183 Lisp_Object current, workbuf;
7184 struct gcpro gcpro1;
7185
7186 GCPRO1 (arg);
7187 current = XCAR (arg);
7188 workbuf = XCDR (arg);
7189 if (! NILP (workbuf))
7190 {
7191 if (EQ (workbuf, Vcode_conversion_reused_workbuf))
7192 reused_workbuf_in_use = 0;
7193 else if (! NILP (Fbuffer_live_p (workbuf)))
7194 Fkill_buffer (workbuf);
7195 }
7196 set_buffer_internal (XBUFFER (current));
7197 UNGCPRO;
7198 return Qnil;
7199 }
7200
7201 Lisp_Object
7202 code_conversion_save (with_work_buf, multibyte)
7203 int with_work_buf, multibyte;
7204 {
7205 Lisp_Object workbuf = Qnil;
7206
7207 if (with_work_buf)
7208 workbuf = make_conversion_work_buffer (multibyte);
7209 record_unwind_protect (code_conversion_restore,
7210 Fcons (Fcurrent_buffer (), workbuf));
7211 return workbuf;
7212 }
7213
7214 int
7215 decode_coding_gap (coding, chars, bytes)
7216 struct coding_system *coding;
7217 EMACS_INT chars, bytes;
7218 {
7219 int count = specpdl_ptr - specpdl;
7220 Lisp_Object attrs;
7221
7222 code_conversion_save (0, 0);
7223
7224 coding->src_object = Fcurrent_buffer ();
7225 coding->src_chars = chars;
7226 coding->src_bytes = bytes;
7227 coding->src_pos = -chars;
7228 coding->src_pos_byte = -bytes;
7229 coding->src_multibyte = chars < bytes;
7230 coding->dst_object = coding->src_object;
7231 coding->dst_pos = PT;
7232 coding->dst_pos_byte = PT_BYTE;
7233 coding->dst_multibyte = ! NILP (current_buffer->enable_multibyte_characters);
7234
7235 if (CODING_REQUIRE_DETECTION (coding))
7236 detect_coding (coding);
7237
7238 coding->mode |= CODING_MODE_LAST_BLOCK;
7239 current_buffer->text->inhibit_shrinking = 1;
7240 decode_coding (coding);
7241 current_buffer->text->inhibit_shrinking = 0;
7242
7243 attrs = CODING_ID_ATTRS (coding->id);
7244 if (! NILP (CODING_ATTR_POST_READ (attrs)))
7245 {
7246 EMACS_INT prev_Z = Z, prev_Z_BYTE = Z_BYTE;
7247 Lisp_Object val;
7248
7249 TEMP_SET_PT_BOTH (coding->dst_pos, coding->dst_pos_byte);
7250 val = call1 (CODING_ATTR_POST_READ (attrs),
7251 make_number (coding->produced_char));
7252 CHECK_NATNUM (val);
7253 coding->produced_char += Z - prev_Z;
7254 coding->produced += Z_BYTE - prev_Z_BYTE;
7255 }
7256
7257 unbind_to (count, Qnil);
7258 return coding->result;
7259 }
7260
7261 int
7262 encode_coding_gap (coding, chars, bytes)
7263 struct coding_system *coding;
7264 EMACS_INT chars, bytes;
7265 {
7266 int count = specpdl_ptr - specpdl;
7267
7268 code_conversion_save (0, 0);
7269
7270 coding->src_object = Fcurrent_buffer ();
7271 coding->src_chars = chars;
7272 coding->src_bytes = bytes;
7273 coding->src_pos = -chars;
7274 coding->src_pos_byte = -bytes;
7275 coding->src_multibyte = chars < bytes;
7276 coding->dst_object = coding->src_object;
7277 coding->dst_pos = PT;
7278 coding->dst_pos_byte = PT_BYTE;
7279
7280 encode_coding (coding);
7281
7282 unbind_to (count, Qnil);
7283 return coding->result;
7284 }
7285
7286
7287 /* Decode the text in the range FROM/FROM_BYTE and TO/TO_BYTE in
7288 SRC_OBJECT into DST_OBJECT by coding context CODING.
7289
7290 SRC_OBJECT is a buffer, a string, or Qnil.
7291
7292 If it is a buffer, the text is at point of the buffer. FROM and TO
7293 are positions in the buffer.
7294
7295 If it is a string, the text is at the beginning of the string.
7296 FROM and TO are indices to the string.
7297
7298 If it is nil, the text is at coding->source. FROM and TO are
7299 indices to coding->source.
7300
7301 DST_OBJECT is a buffer, Qt, or Qnil.
7302
7303 If it is a buffer, the decoded text is inserted at point of the
7304 buffer. If the buffer is the same as SRC_OBJECT, the source text
7305 is deleted.
7306
7307 If it is Qt, a string is made from the decoded text, and
7308 set in CODING->dst_object.
7309
7310 If it is Qnil, the decoded text is stored at CODING->destination.
7311 The caller must allocate CODING->dst_bytes bytes at
7312 CODING->destination by xmalloc. If the decoded text is longer than
7313 CODING->dst_bytes, CODING->destination is relocated by xrealloc.
7314 */
7315
7316 void
7317 decode_coding_object (coding, src_object, from, from_byte, to, to_byte,
7318 dst_object)
7319 struct coding_system *coding;
7320 Lisp_Object src_object;
7321 EMACS_INT from, from_byte, to, to_byte;
7322 Lisp_Object dst_object;
7323 {
7324 int count = specpdl_ptr - specpdl;
7325 unsigned char *destination;
7326 EMACS_INT dst_bytes;
7327 EMACS_INT chars = to - from;
7328 EMACS_INT bytes = to_byte - from_byte;
7329 Lisp_Object attrs;
7330 int saved_pt = -1, saved_pt_byte;
7331 int need_marker_adjustment = 0;
7332 Lisp_Object old_deactivate_mark;
7333
7334 old_deactivate_mark = Vdeactivate_mark;
7335
7336 if (NILP (dst_object))
7337 {
7338 destination = coding->destination;
7339 dst_bytes = coding->dst_bytes;
7340 }
7341
7342 coding->src_object = src_object;
7343 coding->src_chars = chars;
7344 coding->src_bytes = bytes;
7345 coding->src_multibyte = chars < bytes;
7346
7347 if (STRINGP (src_object))
7348 {
7349 coding->src_pos = from;
7350 coding->src_pos_byte = from_byte;
7351 }
7352 else if (BUFFERP (src_object))
7353 {
7354 set_buffer_internal (XBUFFER (src_object));
7355 if (from != GPT)
7356 move_gap_both (from, from_byte);
7357 if (EQ (src_object, dst_object))
7358 {
7359 struct Lisp_Marker *tail;
7360
7361 for (tail = BUF_MARKERS (current_buffer); tail; tail = tail->next)
7362 {
7363 tail->need_adjustment
7364 = tail->charpos == (tail->insertion_type ? from : to);
7365 need_marker_adjustment |= tail->need_adjustment;
7366 }
7367 saved_pt = PT, saved_pt_byte = PT_BYTE;
7368 TEMP_SET_PT_BOTH (from, from_byte);
7369 current_buffer->text->inhibit_shrinking = 1;
7370 del_range_both (from, from_byte, to, to_byte, 1);
7371 coding->src_pos = -chars;
7372 coding->src_pos_byte = -bytes;
7373 }
7374 else
7375 {
7376 coding->src_pos = from;
7377 coding->src_pos_byte = from_byte;
7378 }
7379 }
7380
7381 if (CODING_REQUIRE_DETECTION (coding))
7382 detect_coding (coding);
7383 attrs = CODING_ID_ATTRS (coding->id);
7384
7385 if (EQ (dst_object, Qt)
7386 || (! NILP (CODING_ATTR_POST_READ (attrs))
7387 && NILP (dst_object)))
7388 {
7389 coding->dst_multibyte = !CODING_FOR_UNIBYTE (coding);
7390 coding->dst_object = code_conversion_save (1, coding->dst_multibyte);
7391 coding->dst_pos = BEG;
7392 coding->dst_pos_byte = BEG_BYTE;
7393 }
7394 else if (BUFFERP (dst_object))
7395 {
7396 code_conversion_save (0, 0);
7397 coding->dst_object = dst_object;
7398 coding->dst_pos = BUF_PT (XBUFFER (dst_object));
7399 coding->dst_pos_byte = BUF_PT_BYTE (XBUFFER (dst_object));
7400 coding->dst_multibyte
7401 = ! NILP (XBUFFER (dst_object)->enable_multibyte_characters);
7402 }
7403 else
7404 {
7405 code_conversion_save (0, 0);
7406 coding->dst_object = Qnil;
7407 /* Most callers presume this will return a multibyte result, and they
7408 won't use `binary' or `raw-text' anyway, so let's not worry about
7409 CODING_FOR_UNIBYTE. */
7410 coding->dst_multibyte = 1;
7411 }
7412
7413 decode_coding (coding);
7414
7415 if (BUFFERP (coding->dst_object))
7416 set_buffer_internal (XBUFFER (coding->dst_object));
7417
7418 if (! NILP (CODING_ATTR_POST_READ (attrs)))
7419 {
7420 struct gcpro gcpro1, gcpro2, gcpro3, gcpro4, gcpro5;
7421 EMACS_INT prev_Z = Z, prev_Z_BYTE = Z_BYTE;
7422 Lisp_Object val;
7423
7424 TEMP_SET_PT_BOTH (coding->dst_pos, coding->dst_pos_byte);
7425 GCPRO5 (coding->src_object, coding->dst_object, src_object, dst_object,
7426 old_deactivate_mark);
7427 val = safe_call1 (CODING_ATTR_POST_READ (attrs),
7428 make_number (coding->produced_char));
7429 UNGCPRO;
7430 CHECK_NATNUM (val);
7431 coding->produced_char += Z - prev_Z;
7432 coding->produced += Z_BYTE - prev_Z_BYTE;
7433 }
7434
7435 if (EQ (dst_object, Qt))
7436 {
7437 coding->dst_object = Fbuffer_string ();
7438 }
7439 else if (NILP (dst_object) && BUFFERP (coding->dst_object))
7440 {
7441 set_buffer_internal (XBUFFER (coding->dst_object));
7442 if (dst_bytes < coding->produced)
7443 {
7444 destination = xrealloc (destination, coding->produced);
7445 if (! destination)
7446 {
7447 record_conversion_result (coding,
7448 CODING_RESULT_INSUFFICIENT_DST);
7449 unbind_to (count, Qnil);
7450 return;
7451 }
7452 if (BEGV < GPT && GPT < BEGV + coding->produced_char)
7453 move_gap_both (BEGV, BEGV_BYTE);
7454 bcopy (BEGV_ADDR, destination, coding->produced);
7455 coding->destination = destination;
7456 }
7457 }
7458
7459 if (saved_pt >= 0)
7460 {
7461 /* This is the case of:
7462 (BUFFERP (src_object) && EQ (src_object, dst_object))
7463 As we have moved PT while replacing the original buffer
7464 contents, we must recover it now. */
7465 set_buffer_internal (XBUFFER (src_object));
7466 current_buffer->text->inhibit_shrinking = 0;
7467 if (saved_pt < from)
7468 TEMP_SET_PT_BOTH (saved_pt, saved_pt_byte);
7469 else if (saved_pt < from + chars)
7470 TEMP_SET_PT_BOTH (from, from_byte);
7471 else if (! NILP (current_buffer->enable_multibyte_characters))
7472 TEMP_SET_PT_BOTH (saved_pt + (coding->produced_char - chars),
7473 saved_pt_byte + (coding->produced - bytes));
7474 else
7475 TEMP_SET_PT_BOTH (saved_pt + (coding->produced - bytes),
7476 saved_pt_byte + (coding->produced - bytes));
7477
7478 if (need_marker_adjustment)
7479 {
7480 struct Lisp_Marker *tail;
7481
7482 for (tail = BUF_MARKERS (current_buffer); tail; tail = tail->next)
7483 if (tail->need_adjustment)
7484 {
7485 tail->need_adjustment = 0;
7486 if (tail->insertion_type)
7487 {
7488 tail->bytepos = from_byte;
7489 tail->charpos = from;
7490 }
7491 else
7492 {
7493 tail->bytepos = from_byte + coding->produced;
7494 tail->charpos
7495 = (NILP (current_buffer->enable_multibyte_characters)
7496 ? tail->bytepos : from + coding->produced_char);
7497 }
7498 }
7499 }
7500 }
7501
7502 Vdeactivate_mark = old_deactivate_mark;
7503 unbind_to (count, coding->dst_object);
7504 }
7505
7506
7507 void
7508 encode_coding_object (coding, src_object, from, from_byte, to, to_byte,
7509 dst_object)
7510 struct coding_system *coding;
7511 Lisp_Object src_object;
7512 EMACS_INT from, from_byte, to, to_byte;
7513 Lisp_Object dst_object;
7514 {
7515 int count = specpdl_ptr - specpdl;
7516 EMACS_INT chars = to - from;
7517 EMACS_INT bytes = to_byte - from_byte;
7518 Lisp_Object attrs;
7519 int saved_pt = -1, saved_pt_byte;
7520 int need_marker_adjustment = 0;
7521 int kill_src_buffer = 0;
7522 Lisp_Object old_deactivate_mark;
7523
7524 old_deactivate_mark = Vdeactivate_mark;
7525
7526 coding->src_object = src_object;
7527 coding->src_chars = chars;
7528 coding->src_bytes = bytes;
7529 coding->src_multibyte = chars < bytes;
7530
7531 attrs = CODING_ID_ATTRS (coding->id);
7532
7533 if (EQ (src_object, dst_object))
7534 {
7535 struct Lisp_Marker *tail;
7536
7537 for (tail = BUF_MARKERS (current_buffer); tail; tail = tail->next)
7538 {
7539 tail->need_adjustment
7540 = tail->charpos == (tail->insertion_type ? from : to);
7541 need_marker_adjustment |= tail->need_adjustment;
7542 }
7543 }
7544
7545 if (! NILP (CODING_ATTR_PRE_WRITE (attrs)))
7546 {
7547 coding->src_object = code_conversion_save (1, coding->src_multibyte);
7548 set_buffer_internal (XBUFFER (coding->src_object));
7549 if (STRINGP (src_object))
7550 insert_from_string (src_object, from, from_byte, chars, bytes, 0);
7551 else if (BUFFERP (src_object))
7552 insert_from_buffer (XBUFFER (src_object), from, chars, 0);
7553 else
7554 insert_1_both (coding->source + from, chars, bytes, 0, 0, 0);
7555
7556 if (EQ (src_object, dst_object))
7557 {
7558 set_buffer_internal (XBUFFER (src_object));
7559 saved_pt = PT, saved_pt_byte = PT_BYTE;
7560 del_range_both (from, from_byte, to, to_byte, 1);
7561 set_buffer_internal (XBUFFER (coding->src_object));
7562 }
7563
7564 {
7565 Lisp_Object args[3];
7566 struct gcpro gcpro1, gcpro2, gcpro3, gcpro4, gcpro5;
7567
7568 GCPRO5 (coding->src_object, coding->dst_object, src_object, dst_object,
7569 old_deactivate_mark);
7570 args[0] = CODING_ATTR_PRE_WRITE (attrs);
7571 args[1] = make_number (BEG);
7572 args[2] = make_number (Z);
7573 safe_call (3, args);
7574 UNGCPRO;
7575 }
7576 if (XBUFFER (coding->src_object) != current_buffer)
7577 kill_src_buffer = 1;
7578 coding->src_object = Fcurrent_buffer ();
7579 if (BEG != GPT)
7580 move_gap_both (BEG, BEG_BYTE);
7581 coding->src_chars = Z - BEG;
7582 coding->src_bytes = Z_BYTE - BEG_BYTE;
7583 coding->src_pos = BEG;
7584 coding->src_pos_byte = BEG_BYTE;
7585 coding->src_multibyte = Z < Z_BYTE;
7586 }
7587 else if (STRINGP (src_object))
7588 {
7589 code_conversion_save (0, 0);
7590 coding->src_pos = from;
7591 coding->src_pos_byte = from_byte;
7592 }
7593 else if (BUFFERP (src_object))
7594 {
7595 code_conversion_save (0, 0);
7596 set_buffer_internal (XBUFFER (src_object));
7597 if (EQ (src_object, dst_object))
7598 {
7599 saved_pt = PT, saved_pt_byte = PT_BYTE;
7600 coding->src_object = del_range_1 (from, to, 1, 1);
7601 coding->src_pos = 0;
7602 coding->src_pos_byte = 0;
7603 }
7604 else
7605 {
7606 if (from < GPT && to >= GPT)
7607 move_gap_both (from, from_byte);
7608 coding->src_pos = from;
7609 coding->src_pos_byte = from_byte;
7610 }
7611 }
7612 else
7613 code_conversion_save (0, 0);
7614
7615 if (BUFFERP (dst_object))
7616 {
7617 coding->dst_object = dst_object;
7618 if (EQ (src_object, dst_object))
7619 {
7620 coding->dst_pos = from;
7621 coding->dst_pos_byte = from_byte;
7622 }
7623 else
7624 {
7625 struct buffer *current = current_buffer;
7626
7627 set_buffer_temp (XBUFFER (dst_object));
7628 coding->dst_pos = PT;
7629 coding->dst_pos_byte = PT_BYTE;
7630 move_gap_both (coding->dst_pos, coding->dst_pos_byte);
7631 set_buffer_temp (current);
7632 }
7633 coding->dst_multibyte
7634 = ! NILP (XBUFFER (dst_object)->enable_multibyte_characters);
7635 }
7636 else if (EQ (dst_object, Qt))
7637 {
7638 coding->dst_object = Qnil;
7639 coding->dst_bytes = coding->src_chars;
7640 if (coding->dst_bytes == 0)
7641 coding->dst_bytes = 1;
7642 coding->destination = (unsigned char *) xmalloc (coding->dst_bytes);
7643 coding->dst_multibyte = 0;
7644 }
7645 else
7646 {
7647 coding->dst_object = Qnil;
7648 coding->dst_multibyte = 0;
7649 }
7650
7651 encode_coding (coding);
7652
7653 if (EQ (dst_object, Qt))
7654 {
7655 if (BUFFERP (coding->dst_object))
7656 coding->dst_object = Fbuffer_string ();
7657 else
7658 {
7659 coding->dst_object
7660 = make_unibyte_string ((char *) coding->destination,
7661 coding->produced);
7662 xfree (coding->destination);
7663 }
7664 }
7665
7666 if (saved_pt >= 0)
7667 {
7668 /* This is the case of:
7669 (BUFFERP (src_object) && EQ (src_object, dst_object))
7670 As we have moved PT while replacing the original buffer
7671 contents, we must recover it now. */
7672 set_buffer_internal (XBUFFER (src_object));
7673 if (saved_pt < from)
7674 TEMP_SET_PT_BOTH (saved_pt, saved_pt_byte);
7675 else if (saved_pt < from + chars)
7676 TEMP_SET_PT_BOTH (from, from_byte);
7677 else if (! NILP (current_buffer->enable_multibyte_characters))
7678 TEMP_SET_PT_BOTH (saved_pt + (coding->produced_char - chars),
7679 saved_pt_byte + (coding->produced - bytes));
7680 else
7681 TEMP_SET_PT_BOTH (saved_pt + (coding->produced - bytes),
7682 saved_pt_byte + (coding->produced - bytes));
7683
7684 if (need_marker_adjustment)
7685 {
7686 struct Lisp_Marker *tail;
7687
7688 for (tail = BUF_MARKERS (current_buffer); tail; tail = tail->next)
7689 if (tail->need_adjustment)
7690 {
7691 tail->need_adjustment = 0;
7692 if (tail->insertion_type)
7693 {
7694 tail->bytepos = from_byte;
7695 tail->charpos = from;
7696 }
7697 else
7698 {
7699 tail->bytepos = from_byte + coding->produced;
7700 tail->charpos
7701 = (NILP (current_buffer->enable_multibyte_characters)
7702 ? tail->bytepos : from + coding->produced_char);
7703 }
7704 }
7705 }
7706 }
7707
7708 if (kill_src_buffer)
7709 Fkill_buffer (coding->src_object);
7710
7711 Vdeactivate_mark = old_deactivate_mark;
7712 unbind_to (count, Qnil);
7713 }
7714
7715
7716 Lisp_Object
7717 preferred_coding_system ()
7718 {
7719 int id = coding_categories[coding_priorities[0]].id;
7720
7721 return CODING_ID_NAME (id);
7722 }
7723
7724 \f
7725 #ifdef emacs
7726 /*** 8. Emacs Lisp library functions ***/
7727
7728 DEFUN ("coding-system-p", Fcoding_system_p, Scoding_system_p, 1, 1, 0,
7729 doc: /* Return t if OBJECT is nil or a coding-system.
7730 See the documentation of `define-coding-system' for information
7731 about coding-system objects. */)
7732 (object)
7733 Lisp_Object object;
7734 {
7735 if (NILP (object)
7736 || CODING_SYSTEM_ID (object) >= 0)
7737 return Qt;
7738 if (! SYMBOLP (object)
7739 || NILP (Fget (object, Qcoding_system_define_form)))
7740 return Qnil;
7741 return Qt;
7742 }
7743
7744 DEFUN ("read-non-nil-coding-system", Fread_non_nil_coding_system,
7745 Sread_non_nil_coding_system, 1, 1, 0,
7746 doc: /* Read a coding system from the minibuffer, prompting with string PROMPT. */)
7747 (prompt)
7748 Lisp_Object prompt;
7749 {
7750 Lisp_Object val;
7751 do
7752 {
7753 val = Fcompleting_read (prompt, Vcoding_system_alist, Qnil,
7754 Qt, Qnil, Qcoding_system_history, Qnil, Qnil);
7755 }
7756 while (SCHARS (val) == 0);
7757 return (Fintern (val, Qnil));
7758 }
7759
7760 DEFUN ("read-coding-system", Fread_coding_system, Sread_coding_system, 1, 2, 0,
7761 doc: /* Read a coding system from the minibuffer, prompting with string PROMPT.
7762 If the user enters null input, return second argument DEFAULT-CODING-SYSTEM.
7763 Ignores case when completing coding systems (all Emacs coding systems
7764 are lower-case). */)
7765 (prompt, default_coding_system)
7766 Lisp_Object prompt, default_coding_system;
7767 {
7768 Lisp_Object val;
7769 int count = SPECPDL_INDEX ();
7770
7771 if (SYMBOLP (default_coding_system))
7772 default_coding_system = SYMBOL_NAME (default_coding_system);
7773 specbind (Qcompletion_ignore_case, Qt);
7774 val = Fcompleting_read (prompt, Vcoding_system_alist, Qnil,
7775 Qt, Qnil, Qcoding_system_history,
7776 default_coding_system, Qnil);
7777 unbind_to (count, Qnil);
7778 return (SCHARS (val) == 0 ? Qnil : Fintern (val, Qnil));
7779 }
7780
7781 DEFUN ("check-coding-system", Fcheck_coding_system, Scheck_coding_system,
7782 1, 1, 0,
7783 doc: /* Check validity of CODING-SYSTEM.
7784 If valid, return CODING-SYSTEM, else signal a `coding-system-error' error.
7785 It is valid if it is nil or a symbol defined as a coding system by the
7786 function `define-coding-system'. */)
7787 (coding_system)
7788 Lisp_Object coding_system;
7789 {
7790 Lisp_Object define_form;
7791
7792 define_form = Fget (coding_system, Qcoding_system_define_form);
7793 if (! NILP (define_form))
7794 {
7795 Fput (coding_system, Qcoding_system_define_form, Qnil);
7796 safe_eval (define_form);
7797 }
7798 if (!NILP (Fcoding_system_p (coding_system)))
7799 return coding_system;
7800 xsignal1 (Qcoding_system_error, coding_system);
7801 }
7802
7803 \f
7804 /* Detect how the bytes at SRC of length SRC_BYTES are encoded. If
7805 HIGHEST is nonzero, return the coding system of the highest
7806 priority among the detected coding systems. Otherwize return a
7807 list of detected coding systems sorted by their priorities. If
7808 MULTIBYTEP is nonzero, it is assumed that the bytes are in correct
7809 multibyte form but contains only ASCII and eight-bit chars.
7810 Otherwise, the bytes are raw bytes.
7811
7812 CODING-SYSTEM controls the detection as below:
7813
7814 If it is nil, detect both text-format and eol-format. If the
7815 text-format part of CODING-SYSTEM is already specified
7816 (e.g. `iso-latin-1'), detect only eol-format. If the eol-format
7817 part of CODING-SYSTEM is already specified (e.g. `undecided-unix'),
7818 detect only text-format. */
7819
7820 Lisp_Object
7821 detect_coding_system (src, src_chars, src_bytes, highest, multibytep,
7822 coding_system)
7823 const unsigned char *src;
7824 EMACS_INT src_chars, src_bytes;
7825 int highest;
7826 int multibytep;
7827 Lisp_Object coding_system;
7828 {
7829 const unsigned char *src_end = src + src_bytes;
7830 Lisp_Object attrs, eol_type;
7831 Lisp_Object val = Qnil;
7832 struct coding_system coding;
7833 int id;
7834 struct coding_detection_info detect_info;
7835 enum coding_category base_category;
7836 int null_byte_found = 0, eight_bit_found = 0;
7837
7838 if (NILP (coding_system))
7839 coding_system = Qundecided;
7840 setup_coding_system (coding_system, &coding);
7841 attrs = CODING_ID_ATTRS (coding.id);
7842 eol_type = CODING_ID_EOL_TYPE (coding.id);
7843 coding_system = CODING_ATTR_BASE_NAME (attrs);
7844
7845 coding.source = src;
7846 coding.src_chars = src_chars;
7847 coding.src_bytes = src_bytes;
7848 coding.src_multibyte = multibytep;
7849 coding.consumed = 0;
7850 coding.mode |= CODING_MODE_LAST_BLOCK;
7851 coding.head_ascii = 0;
7852
7853 detect_info.checked = detect_info.found = detect_info.rejected = 0;
7854
7855 /* At first, detect text-format if necessary. */
7856 base_category = XINT (CODING_ATTR_CATEGORY (attrs));
7857 if (base_category == coding_category_undecided)
7858 {
7859 enum coding_category category;
7860 struct coding_system *this;
7861 int c, i;
7862
7863 /* Skip all ASCII bytes except for a few ISO2022 controls. */
7864 for (; src < src_end; src++)
7865 {
7866 c = *src;
7867 if (c & 0x80)
7868 {
7869 eight_bit_found = 1;
7870 if (null_byte_found)
7871 break;
7872 }
7873 else if (c < 0x20)
7874 {
7875 if ((c == ISO_CODE_ESC || c == ISO_CODE_SI || c == ISO_CODE_SO)
7876 && ! inhibit_iso_escape_detection
7877 && ! detect_info.checked)
7878 {
7879 if (detect_coding_iso_2022 (&coding, &detect_info))
7880 {
7881 /* We have scanned the whole data. */
7882 if (! (detect_info.rejected & CATEGORY_MASK_ISO_7_ELSE))
7883 {
7884 /* We didn't find an 8-bit code. We may
7885 have found a null-byte, but it's very
7886 rare that a binary file confirm to
7887 ISO-2022. */
7888 src = src_end;
7889 coding.head_ascii = src - coding.source;
7890 }
7891 detect_info.rejected |= ~CATEGORY_MASK_ISO_ESCAPE;
7892 break;
7893 }
7894 }
7895 else if (! c && !inhibit_null_byte_detection)
7896 {
7897 null_byte_found = 1;
7898 if (eight_bit_found)
7899 break;
7900 }
7901 if (! eight_bit_found)
7902 coding.head_ascii++;
7903 }
7904 else if (! eight_bit_found)
7905 coding.head_ascii++;
7906 }
7907
7908 if (null_byte_found || eight_bit_found
7909 || coding.head_ascii < coding.src_bytes
7910 || detect_info.found)
7911 {
7912 if (coding.head_ascii == coding.src_bytes)
7913 /* As all bytes are 7-bit, we can ignore non-ISO-2022 codings. */
7914 for (i = 0; i < coding_category_raw_text; i++)
7915 {
7916 category = coding_priorities[i];
7917 this = coding_categories + category;
7918 if (detect_info.found & (1 << category))
7919 break;
7920 }
7921 else
7922 {
7923 if (null_byte_found)
7924 {
7925 detect_info.checked |= ~CATEGORY_MASK_UTF_16;
7926 detect_info.rejected |= ~CATEGORY_MASK_UTF_16;
7927 }
7928 for (i = 0; i < coding_category_raw_text; i++)
7929 {
7930 category = coding_priorities[i];
7931 this = coding_categories + category;
7932
7933 if (this->id < 0)
7934 {
7935 /* No coding system of this category is defined. */
7936 detect_info.rejected |= (1 << category);
7937 }
7938 else if (category >= coding_category_raw_text)
7939 continue;
7940 else if (detect_info.checked & (1 << category))
7941 {
7942 if (highest
7943 && (detect_info.found & (1 << category)))
7944 break;
7945 }
7946 else if ((*(this->detector)) (&coding, &detect_info)
7947 && highest
7948 && (detect_info.found & (1 << category)))
7949 {
7950 if (category == coding_category_utf_16_auto)
7951 {
7952 if (detect_info.found & CATEGORY_MASK_UTF_16_LE)
7953 category = coding_category_utf_16_le;
7954 else
7955 category = coding_category_utf_16_be;
7956 }
7957 break;
7958 }
7959 }
7960 }
7961 }
7962
7963 if ((detect_info.rejected & CATEGORY_MASK_ANY) == CATEGORY_MASK_ANY
7964 || null_byte_found)
7965 {
7966 detect_info.found = CATEGORY_MASK_RAW_TEXT;
7967 id = CODING_SYSTEM_ID (Qno_conversion);
7968 val = Fcons (make_number (id), Qnil);
7969 }
7970 else if (! detect_info.rejected && ! detect_info.found)
7971 {
7972 detect_info.found = CATEGORY_MASK_ANY;
7973 id = coding_categories[coding_category_undecided].id;
7974 val = Fcons (make_number (id), Qnil);
7975 }
7976 else if (highest)
7977 {
7978 if (detect_info.found)
7979 {
7980 detect_info.found = 1 << category;
7981 val = Fcons (make_number (this->id), Qnil);
7982 }
7983 else
7984 for (i = 0; i < coding_category_raw_text; i++)
7985 if (! (detect_info.rejected & (1 << coding_priorities[i])))
7986 {
7987 detect_info.found = 1 << coding_priorities[i];
7988 id = coding_categories[coding_priorities[i]].id;
7989 val = Fcons (make_number (id), Qnil);
7990 break;
7991 }
7992 }
7993 else
7994 {
7995 int mask = detect_info.rejected | detect_info.found;
7996 int found = 0;
7997
7998 for (i = coding_category_raw_text - 1; i >= 0; i--)
7999 {
8000 category = coding_priorities[i];
8001 if (! (mask & (1 << category)))
8002 {
8003 found |= 1 << category;
8004 id = coding_categories[category].id;
8005 if (id >= 0)
8006 val = Fcons (make_number (id), val);
8007 }
8008 }
8009 for (i = coding_category_raw_text - 1; i >= 0; i--)
8010 {
8011 category = coding_priorities[i];
8012 if (detect_info.found & (1 << category))
8013 {
8014 id = coding_categories[category].id;
8015 val = Fcons (make_number (id), val);
8016 }
8017 }
8018 detect_info.found |= found;
8019 }
8020 }
8021 else if (base_category == coding_category_utf_8_auto)
8022 {
8023 if (detect_coding_utf_8 (&coding, &detect_info))
8024 {
8025 struct coding_system *this;
8026
8027 if (detect_info.found & CATEGORY_MASK_UTF_8_SIG)
8028 this = coding_categories + coding_category_utf_8_sig;
8029 else
8030 this = coding_categories + coding_category_utf_8_nosig;
8031 val = Fcons (make_number (this->id), Qnil);
8032 }
8033 }
8034 else if (base_category == coding_category_utf_16_auto)
8035 {
8036 if (detect_coding_utf_16 (&coding, &detect_info))
8037 {
8038 struct coding_system *this;
8039
8040 if (detect_info.found & CATEGORY_MASK_UTF_16_LE)
8041 this = coding_categories + coding_category_utf_16_le;
8042 else if (detect_info.found & CATEGORY_MASK_UTF_16_BE)
8043 this = coding_categories + coding_category_utf_16_be;
8044 else if (detect_info.rejected & CATEGORY_MASK_UTF_16_LE_NOSIG)
8045 this = coding_categories + coding_category_utf_16_be_nosig;
8046 else
8047 this = coding_categories + coding_category_utf_16_le_nosig;
8048 val = Fcons (make_number (this->id), Qnil);
8049 }
8050 }
8051 else
8052 {
8053 detect_info.found = 1 << XINT (CODING_ATTR_CATEGORY (attrs));
8054 val = Fcons (make_number (coding.id), Qnil);
8055 }
8056
8057 /* Then, detect eol-format if necessary. */
8058 {
8059 int normal_eol = -1, utf_16_be_eol = -1, utf_16_le_eol = -1;
8060 Lisp_Object tail;
8061
8062 if (VECTORP (eol_type))
8063 {
8064 if (detect_info.found & ~CATEGORY_MASK_UTF_16)
8065 {
8066 if (null_byte_found)
8067 normal_eol = EOL_SEEN_LF;
8068 else
8069 normal_eol = detect_eol (coding.source, src_bytes,
8070 coding_category_raw_text);
8071 }
8072 if (detect_info.found & (CATEGORY_MASK_UTF_16_BE
8073 | CATEGORY_MASK_UTF_16_BE_NOSIG))
8074 utf_16_be_eol = detect_eol (coding.source, src_bytes,
8075 coding_category_utf_16_be);
8076 if (detect_info.found & (CATEGORY_MASK_UTF_16_LE
8077 | CATEGORY_MASK_UTF_16_LE_NOSIG))
8078 utf_16_le_eol = detect_eol (coding.source, src_bytes,
8079 coding_category_utf_16_le);
8080 }
8081 else
8082 {
8083 if (EQ (eol_type, Qunix))
8084 normal_eol = utf_16_be_eol = utf_16_le_eol = EOL_SEEN_LF;
8085 else if (EQ (eol_type, Qdos))
8086 normal_eol = utf_16_be_eol = utf_16_le_eol = EOL_SEEN_CRLF;
8087 else
8088 normal_eol = utf_16_be_eol = utf_16_le_eol = EOL_SEEN_CR;
8089 }
8090
8091 for (tail = val; CONSP (tail); tail = XCDR (tail))
8092 {
8093 enum coding_category category;
8094 int this_eol;
8095
8096 id = XINT (XCAR (tail));
8097 attrs = CODING_ID_ATTRS (id);
8098 category = XINT (CODING_ATTR_CATEGORY (attrs));
8099 eol_type = CODING_ID_EOL_TYPE (id);
8100 if (VECTORP (eol_type))
8101 {
8102 if (category == coding_category_utf_16_be
8103 || category == coding_category_utf_16_be_nosig)
8104 this_eol = utf_16_be_eol;
8105 else if (category == coding_category_utf_16_le
8106 || category == coding_category_utf_16_le_nosig)
8107 this_eol = utf_16_le_eol;
8108 else
8109 this_eol = normal_eol;
8110
8111 if (this_eol == EOL_SEEN_LF)
8112 XSETCAR (tail, AREF (eol_type, 0));
8113 else if (this_eol == EOL_SEEN_CRLF)
8114 XSETCAR (tail, AREF (eol_type, 1));
8115 else if (this_eol == EOL_SEEN_CR)
8116 XSETCAR (tail, AREF (eol_type, 2));
8117 else
8118 XSETCAR (tail, CODING_ID_NAME (id));
8119 }
8120 else
8121 XSETCAR (tail, CODING_ID_NAME (id));
8122 }
8123 }
8124
8125 return (highest ? (CONSP (val) ? XCAR (val) : Qnil) : val);
8126 }
8127
8128
8129 DEFUN ("detect-coding-region", Fdetect_coding_region, Sdetect_coding_region,
8130 2, 3, 0,
8131 doc: /* Detect coding system of the text in the region between START and END.
8132 Return a list of possible coding systems ordered by priority.
8133
8134 If only ASCII characters are found (except for such ISO-2022 control
8135 characters as ESC), it returns a list of single element `undecided'
8136 or its subsidiary coding system according to a detected end-of-line
8137 format.
8138
8139 If optional argument HIGHEST is non-nil, return the coding system of
8140 highest priority. */)
8141 (start, end, highest)
8142 Lisp_Object start, end, highest;
8143 {
8144 int from, to;
8145 int from_byte, to_byte;
8146
8147 CHECK_NUMBER_COERCE_MARKER (start);
8148 CHECK_NUMBER_COERCE_MARKER (end);
8149
8150 validate_region (&start, &end);
8151 from = XINT (start), to = XINT (end);
8152 from_byte = CHAR_TO_BYTE (from);
8153 to_byte = CHAR_TO_BYTE (to);
8154
8155 if (from < GPT && to >= GPT)
8156 move_gap_both (to, to_byte);
8157
8158 return detect_coding_system (BYTE_POS_ADDR (from_byte),
8159 to - from, to_byte - from_byte,
8160 !NILP (highest),
8161 !NILP (current_buffer
8162 ->enable_multibyte_characters),
8163 Qnil);
8164 }
8165
8166 DEFUN ("detect-coding-string", Fdetect_coding_string, Sdetect_coding_string,
8167 1, 2, 0,
8168 doc: /* Detect coding system of the text in STRING.
8169 Return a list of possible coding systems ordered by priority.
8170
8171 If only ASCII characters are found (except for such ISO-2022 control
8172 characters as ESC), it returns a list of single element `undecided'
8173 or its subsidiary coding system according to a detected end-of-line
8174 format.
8175
8176 If optional argument HIGHEST is non-nil, return the coding system of
8177 highest priority. */)
8178 (string, highest)
8179 Lisp_Object string, highest;
8180 {
8181 CHECK_STRING (string);
8182
8183 return detect_coding_system (SDATA (string),
8184 SCHARS (string), SBYTES (string),
8185 !NILP (highest), STRING_MULTIBYTE (string),
8186 Qnil);
8187 }
8188
8189
8190 static INLINE int
8191 char_encodable_p (c, attrs)
8192 int c;
8193 Lisp_Object attrs;
8194 {
8195 Lisp_Object tail;
8196 struct charset *charset;
8197 Lisp_Object translation_table;
8198
8199 translation_table = CODING_ATTR_TRANS_TBL (attrs);
8200 if (! NILP (translation_table))
8201 c = translate_char (translation_table, c);
8202 for (tail = CODING_ATTR_CHARSET_LIST (attrs);
8203 CONSP (tail); tail = XCDR (tail))
8204 {
8205 charset = CHARSET_FROM_ID (XINT (XCAR (tail)));
8206 if (CHAR_CHARSET_P (c, charset))
8207 break;
8208 }
8209 return (! NILP (tail));
8210 }
8211
8212
8213 /* Return a list of coding systems that safely encode the text between
8214 START and END. If EXCLUDE is non-nil, it is a list of coding
8215 systems not to check. The returned list doesn't contain any such
8216 coding systems. In any case, if the text contains only ASCII or is
8217 unibyte, return t. */
8218
8219 DEFUN ("find-coding-systems-region-internal",
8220 Ffind_coding_systems_region_internal,
8221 Sfind_coding_systems_region_internal, 2, 3, 0,
8222 doc: /* Internal use only. */)
8223 (start, end, exclude)
8224 Lisp_Object start, end, exclude;
8225 {
8226 Lisp_Object coding_attrs_list, safe_codings;
8227 EMACS_INT start_byte, end_byte;
8228 const unsigned char *p, *pbeg, *pend;
8229 int c;
8230 Lisp_Object tail, elt;
8231
8232 if (STRINGP (start))
8233 {
8234 if (!STRING_MULTIBYTE (start)
8235 || SCHARS (start) == SBYTES (start))
8236 return Qt;
8237 start_byte = 0;
8238 end_byte = SBYTES (start);
8239 }
8240 else
8241 {
8242 CHECK_NUMBER_COERCE_MARKER (start);
8243 CHECK_NUMBER_COERCE_MARKER (end);
8244 if (XINT (start) < BEG || XINT (end) > Z || XINT (start) > XINT (end))
8245 args_out_of_range (start, end);
8246 if (NILP (current_buffer->enable_multibyte_characters))
8247 return Qt;
8248 start_byte = CHAR_TO_BYTE (XINT (start));
8249 end_byte = CHAR_TO_BYTE (XINT (end));
8250 if (XINT (end) - XINT (start) == end_byte - start_byte)
8251 return Qt;
8252
8253 if (XINT (start) < GPT && XINT (end) > GPT)
8254 {
8255 if ((GPT - XINT (start)) < (XINT (end) - GPT))
8256 move_gap_both (XINT (start), start_byte);
8257 else
8258 move_gap_both (XINT (end), end_byte);
8259 }
8260 }
8261
8262 coding_attrs_list = Qnil;
8263 for (tail = Vcoding_system_list; CONSP (tail); tail = XCDR (tail))
8264 if (NILP (exclude)
8265 || NILP (Fmemq (XCAR (tail), exclude)))
8266 {
8267 Lisp_Object attrs;
8268
8269 attrs = AREF (CODING_SYSTEM_SPEC (XCAR (tail)), 0);
8270 if (EQ (XCAR (tail), CODING_ATTR_BASE_NAME (attrs))
8271 && ! EQ (CODING_ATTR_TYPE (attrs), Qundecided))
8272 {
8273 ASET (attrs, coding_attr_trans_tbl,
8274 get_translation_table (attrs, 1, NULL));
8275 coding_attrs_list = Fcons (attrs, coding_attrs_list);
8276 }
8277 }
8278
8279 if (STRINGP (start))
8280 p = pbeg = SDATA (start);
8281 else
8282 p = pbeg = BYTE_POS_ADDR (start_byte);
8283 pend = p + (end_byte - start_byte);
8284
8285 while (p < pend && ASCII_BYTE_P (*p)) p++;
8286 while (p < pend && ASCII_BYTE_P (*(pend - 1))) pend--;
8287
8288 while (p < pend)
8289 {
8290 if (ASCII_BYTE_P (*p))
8291 p++;
8292 else
8293 {
8294 c = STRING_CHAR_ADVANCE (p);
8295
8296 charset_map_loaded = 0;
8297 for (tail = coding_attrs_list; CONSP (tail);)
8298 {
8299 elt = XCAR (tail);
8300 if (NILP (elt))
8301 tail = XCDR (tail);
8302 else if (char_encodable_p (c, elt))
8303 tail = XCDR (tail);
8304 else if (CONSP (XCDR (tail)))
8305 {
8306 XSETCAR (tail, XCAR (XCDR (tail)));
8307 XSETCDR (tail, XCDR (XCDR (tail)));
8308 }
8309 else
8310 {
8311 XSETCAR (tail, Qnil);
8312 tail = XCDR (tail);
8313 }
8314 }
8315 if (charset_map_loaded)
8316 {
8317 EMACS_INT p_offset = p - pbeg, pend_offset = pend - pbeg;
8318
8319 if (STRINGP (start))
8320 pbeg = SDATA (start);
8321 else
8322 pbeg = BYTE_POS_ADDR (start_byte);
8323 p = pbeg + p_offset;
8324 pend = pbeg + pend_offset;
8325 }
8326 }
8327 }
8328
8329 safe_codings = list2 (Qraw_text, Qno_conversion);
8330 for (tail = coding_attrs_list; CONSP (tail); tail = XCDR (tail))
8331 if (! NILP (XCAR (tail)))
8332 safe_codings = Fcons (CODING_ATTR_BASE_NAME (XCAR (tail)), safe_codings);
8333
8334 return safe_codings;
8335 }
8336
8337
8338 DEFUN ("unencodable-char-position", Funencodable_char_position,
8339 Sunencodable_char_position, 3, 5, 0,
8340 doc: /*
8341 Return position of first un-encodable character in a region.
8342 START and END specify the region and CODING-SYSTEM specifies the
8343 encoding to check. Return nil if CODING-SYSTEM does encode the region.
8344
8345 If optional 4th argument COUNT is non-nil, it specifies at most how
8346 many un-encodable characters to search. In this case, the value is a
8347 list of positions.
8348
8349 If optional 5th argument STRING is non-nil, it is a string to search
8350 for un-encodable characters. In that case, START and END are indexes
8351 to the string. */)
8352 (start, end, coding_system, count, string)
8353 Lisp_Object start, end, coding_system, count, string;
8354 {
8355 int n;
8356 struct coding_system coding;
8357 Lisp_Object attrs, charset_list, translation_table;
8358 Lisp_Object positions;
8359 int from, to;
8360 const unsigned char *p, *stop, *pend;
8361 int ascii_compatible;
8362
8363 setup_coding_system (Fcheck_coding_system (coding_system), &coding);
8364 attrs = CODING_ID_ATTRS (coding.id);
8365 if (EQ (CODING_ATTR_TYPE (attrs), Qraw_text))
8366 return Qnil;
8367 ascii_compatible = ! NILP (CODING_ATTR_ASCII_COMPAT (attrs));
8368 charset_list = CODING_ATTR_CHARSET_LIST (attrs);
8369 translation_table = get_translation_table (attrs, 1, NULL);
8370
8371 if (NILP (string))
8372 {
8373 validate_region (&start, &end);
8374 from = XINT (start);
8375 to = XINT (end);
8376 if (NILP (current_buffer->enable_multibyte_characters)
8377 || (ascii_compatible
8378 && (to - from) == (CHAR_TO_BYTE (to) - (CHAR_TO_BYTE (from)))))
8379 return Qnil;
8380 p = CHAR_POS_ADDR (from);
8381 pend = CHAR_POS_ADDR (to);
8382 if (from < GPT && to >= GPT)
8383 stop = GPT_ADDR;
8384 else
8385 stop = pend;
8386 }
8387 else
8388 {
8389 CHECK_STRING (string);
8390 CHECK_NATNUM (start);
8391 CHECK_NATNUM (end);
8392 from = XINT (start);
8393 to = XINT (end);
8394 if (from > to
8395 || to > SCHARS (string))
8396 args_out_of_range_3 (string, start, end);
8397 if (! STRING_MULTIBYTE (string))
8398 return Qnil;
8399 p = SDATA (string) + string_char_to_byte (string, from);
8400 stop = pend = SDATA (string) + string_char_to_byte (string, to);
8401 if (ascii_compatible && (to - from) == (pend - p))
8402 return Qnil;
8403 }
8404
8405 if (NILP (count))
8406 n = 1;
8407 else
8408 {
8409 CHECK_NATNUM (count);
8410 n = XINT (count);
8411 }
8412
8413 positions = Qnil;
8414 while (1)
8415 {
8416 int c;
8417
8418 if (ascii_compatible)
8419 while (p < stop && ASCII_BYTE_P (*p))
8420 p++, from++;
8421 if (p >= stop)
8422 {
8423 if (p >= pend)
8424 break;
8425 stop = pend;
8426 p = GAP_END_ADDR;
8427 }
8428
8429 c = STRING_CHAR_ADVANCE (p);
8430 if (! (ASCII_CHAR_P (c) && ascii_compatible)
8431 && ! char_charset (translate_char (translation_table, c),
8432 charset_list, NULL))
8433 {
8434 positions = Fcons (make_number (from), positions);
8435 n--;
8436 if (n == 0)
8437 break;
8438 }
8439
8440 from++;
8441 }
8442
8443 return (NILP (count) ? Fcar (positions) : Fnreverse (positions));
8444 }
8445
8446
8447 DEFUN ("check-coding-systems-region", Fcheck_coding_systems_region,
8448 Scheck_coding_systems_region, 3, 3, 0,
8449 doc: /* Check if the region is encodable by coding systems.
8450
8451 START and END are buffer positions specifying the region.
8452 CODING-SYSTEM-LIST is a list of coding systems to check.
8453
8454 The value is an alist ((CODING-SYSTEM POS0 POS1 ...) ...), where
8455 CODING-SYSTEM is a member of CODING-SYSTEM-LIST and can't encode the
8456 whole region, POS0, POS1, ... are buffer positions where non-encodable
8457 characters are found.
8458
8459 If all coding systems in CODING-SYSTEM-LIST can encode the region, the
8460 value is nil.
8461
8462 START may be a string. In that case, check if the string is
8463 encodable, and the value contains indices to the string instead of
8464 buffer positions. END is ignored. */)
8465 (start, end, coding_system_list)
8466 Lisp_Object start, end, coding_system_list;
8467 {
8468 Lisp_Object list;
8469 EMACS_INT start_byte, end_byte;
8470 int pos;
8471 const unsigned char *p, *pbeg, *pend;
8472 int c;
8473 Lisp_Object tail, elt, attrs;
8474
8475 if (STRINGP (start))
8476 {
8477 if (!STRING_MULTIBYTE (start)
8478 && SCHARS (start) != SBYTES (start))
8479 return Qnil;
8480 start_byte = 0;
8481 end_byte = SBYTES (start);
8482 pos = 0;
8483 }
8484 else
8485 {
8486 CHECK_NUMBER_COERCE_MARKER (start);
8487 CHECK_NUMBER_COERCE_MARKER (end);
8488 if (XINT (start) < BEG || XINT (end) > Z || XINT (start) > XINT (end))
8489 args_out_of_range (start, end);
8490 if (NILP (current_buffer->enable_multibyte_characters))
8491 return Qnil;
8492 start_byte = CHAR_TO_BYTE (XINT (start));
8493 end_byte = CHAR_TO_BYTE (XINT (end));
8494 if (XINT (end) - XINT (start) == end_byte - start_byte)
8495 return Qt;
8496
8497 if (XINT (start) < GPT && XINT (end) > GPT)
8498 {
8499 if ((GPT - XINT (start)) < (XINT (end) - GPT))
8500 move_gap_both (XINT (start), start_byte);
8501 else
8502 move_gap_both (XINT (end), end_byte);
8503 }
8504 pos = XINT (start);
8505 }
8506
8507 list = Qnil;
8508 for (tail = coding_system_list; CONSP (tail); tail = XCDR (tail))
8509 {
8510 elt = XCAR (tail);
8511 attrs = AREF (CODING_SYSTEM_SPEC (elt), 0);
8512 ASET (attrs, coding_attr_trans_tbl,
8513 get_translation_table (attrs, 1, NULL));
8514 list = Fcons (Fcons (elt, Fcons (attrs, Qnil)), list);
8515 }
8516
8517 if (STRINGP (start))
8518 p = pbeg = SDATA (start);
8519 else
8520 p = pbeg = BYTE_POS_ADDR (start_byte);
8521 pend = p + (end_byte - start_byte);
8522
8523 while (p < pend && ASCII_BYTE_P (*p)) p++, pos++;
8524 while (p < pend && ASCII_BYTE_P (*(pend - 1))) pend--;
8525
8526 while (p < pend)
8527 {
8528 if (ASCII_BYTE_P (*p))
8529 p++;
8530 else
8531 {
8532 c = STRING_CHAR_ADVANCE (p);
8533
8534 charset_map_loaded = 0;
8535 for (tail = list; CONSP (tail); tail = XCDR (tail))
8536 {
8537 elt = XCDR (XCAR (tail));
8538 if (! char_encodable_p (c, XCAR (elt)))
8539 XSETCDR (elt, Fcons (make_number (pos), XCDR (elt)));
8540 }
8541 if (charset_map_loaded)
8542 {
8543 EMACS_INT p_offset = p - pbeg, pend_offset = pend - pbeg;
8544
8545 if (STRINGP (start))
8546 pbeg = SDATA (start);
8547 else
8548 pbeg = BYTE_POS_ADDR (start_byte);
8549 p = pbeg + p_offset;
8550 pend = pbeg + pend_offset;
8551 }
8552 }
8553 pos++;
8554 }
8555
8556 tail = list;
8557 list = Qnil;
8558 for (; CONSP (tail); tail = XCDR (tail))
8559 {
8560 elt = XCAR (tail);
8561 if (CONSP (XCDR (XCDR (elt))))
8562 list = Fcons (Fcons (XCAR (elt), Fnreverse (XCDR (XCDR (elt)))),
8563 list);
8564 }
8565
8566 return list;
8567 }
8568
8569
8570 Lisp_Object
8571 code_convert_region (start, end, coding_system, dst_object, encodep, norecord)
8572 Lisp_Object start, end, coding_system, dst_object;
8573 int encodep, norecord;
8574 {
8575 struct coding_system coding;
8576 EMACS_INT from, from_byte, to, to_byte;
8577 Lisp_Object src_object;
8578
8579 CHECK_NUMBER_COERCE_MARKER (start);
8580 CHECK_NUMBER_COERCE_MARKER (end);
8581 if (NILP (coding_system))
8582 coding_system = Qno_conversion;
8583 else
8584 CHECK_CODING_SYSTEM (coding_system);
8585 src_object = Fcurrent_buffer ();
8586 if (NILP (dst_object))
8587 dst_object = src_object;
8588 else if (! EQ (dst_object, Qt))
8589 CHECK_BUFFER (dst_object);
8590
8591 validate_region (&start, &end);
8592 from = XFASTINT (start);
8593 from_byte = CHAR_TO_BYTE (from);
8594 to = XFASTINT (end);
8595 to_byte = CHAR_TO_BYTE (to);
8596
8597 setup_coding_system (coding_system, &coding);
8598 coding.mode |= CODING_MODE_LAST_BLOCK;
8599
8600 if (encodep)
8601 encode_coding_object (&coding, src_object, from, from_byte, to, to_byte,
8602 dst_object);
8603 else
8604 decode_coding_object (&coding, src_object, from, from_byte, to, to_byte,
8605 dst_object);
8606 if (! norecord)
8607 Vlast_coding_system_used = CODING_ID_NAME (coding.id);
8608
8609 return (BUFFERP (dst_object)
8610 ? make_number (coding.produced_char)
8611 : coding.dst_object);
8612 }
8613
8614
8615 DEFUN ("decode-coding-region", Fdecode_coding_region, Sdecode_coding_region,
8616 3, 4, "r\nzCoding system: ",
8617 doc: /* Decode the current region from the specified coding system.
8618 When called from a program, takes four arguments:
8619 START, END, CODING-SYSTEM, and DESTINATION.
8620 START and END are buffer positions.
8621
8622 Optional 4th arguments DESTINATION specifies where the decoded text goes.
8623 If nil, the region between START and END is replaced by the decoded text.
8624 If buffer, the decoded text is inserted in that buffer after point (point
8625 does not move).
8626 In those cases, the length of the decoded text is returned.
8627 If DESTINATION is t, the decoded text is returned.
8628
8629 This function sets `last-coding-system-used' to the precise coding system
8630 used (which may be different from CODING-SYSTEM if CODING-SYSTEM is
8631 not fully specified.) */)
8632 (start, end, coding_system, destination)
8633 Lisp_Object start, end, coding_system, destination;
8634 {
8635 return code_convert_region (start, end, coding_system, destination, 0, 0);
8636 }
8637
8638 DEFUN ("encode-coding-region", Fencode_coding_region, Sencode_coding_region,
8639 3, 4, "r\nzCoding system: ",
8640 doc: /* Encode the current region by specified coding system.
8641 When called from a program, takes four arguments:
8642 START, END, CODING-SYSTEM and DESTINATION.
8643 START and END are buffer positions.
8644
8645 Optional 4th arguments DESTINATION specifies where the encoded text goes.
8646 If nil, the region between START and END is replace by the encoded text.
8647 If buffer, the encoded text is inserted in that buffer after point (point
8648 does not move).
8649 In those cases, the length of the encoded text is returned.
8650 If DESTINATION is t, the encoded text is returned.
8651
8652 This function sets `last-coding-system-used' to the precise coding system
8653 used (which may be different from CODING-SYSTEM if CODING-SYSTEM is
8654 not fully specified.) */)
8655 (start, end, coding_system, destination)
8656 Lisp_Object start, end, coding_system, destination;
8657 {
8658 return code_convert_region (start, end, coding_system, destination, 1, 0);
8659 }
8660
8661 Lisp_Object
8662 code_convert_string (string, coding_system, dst_object,
8663 encodep, nocopy, norecord)
8664 Lisp_Object string, coding_system, dst_object;
8665 int encodep, nocopy, norecord;
8666 {
8667 struct coding_system coding;
8668 EMACS_INT chars, bytes;
8669
8670 CHECK_STRING (string);
8671 if (NILP (coding_system))
8672 {
8673 if (! norecord)
8674 Vlast_coding_system_used = Qno_conversion;
8675 if (NILP (dst_object))
8676 return (nocopy ? Fcopy_sequence (string) : string);
8677 }
8678
8679 if (NILP (coding_system))
8680 coding_system = Qno_conversion;
8681 else
8682 CHECK_CODING_SYSTEM (coding_system);
8683 if (NILP (dst_object))
8684 dst_object = Qt;
8685 else if (! EQ (dst_object, Qt))
8686 CHECK_BUFFER (dst_object);
8687
8688 setup_coding_system (coding_system, &coding);
8689 coding.mode |= CODING_MODE_LAST_BLOCK;
8690 chars = SCHARS (string);
8691 bytes = SBYTES (string);
8692 if (encodep)
8693 encode_coding_object (&coding, string, 0, 0, chars, bytes, dst_object);
8694 else
8695 decode_coding_object (&coding, string, 0, 0, chars, bytes, dst_object);
8696 if (! norecord)
8697 Vlast_coding_system_used = CODING_ID_NAME (coding.id);
8698
8699 return (BUFFERP (dst_object)
8700 ? make_number (coding.produced_char)
8701 : coding.dst_object);
8702 }
8703
8704
8705 /* Encode or decode STRING according to CODING_SYSTEM.
8706 Do not set Vlast_coding_system_used.
8707
8708 This function is called only from macros DECODE_FILE and
8709 ENCODE_FILE, thus we ignore character composition. */
8710
8711 Lisp_Object
8712 code_convert_string_norecord (string, coding_system, encodep)
8713 Lisp_Object string, coding_system;
8714 int encodep;
8715 {
8716 return code_convert_string (string, coding_system, Qt, encodep, 0, 1);
8717 }
8718
8719
8720 DEFUN ("decode-coding-string", Fdecode_coding_string, Sdecode_coding_string,
8721 2, 4, 0,
8722 doc: /* Decode STRING which is encoded in CODING-SYSTEM, and return the result.
8723
8724 Optional third arg NOCOPY non-nil means it is OK to return STRING itself
8725 if the decoding operation is trivial.
8726
8727 Optional fourth arg BUFFER non-nil means that the decoded text is
8728 inserted in that buffer after point (point does not move). In this
8729 case, the return value is the length of the decoded text.
8730
8731 This function sets `last-coding-system-used' to the precise coding system
8732 used (which may be different from CODING-SYSTEM if CODING-SYSTEM is
8733 not fully specified.) */)
8734 (string, coding_system, nocopy, buffer)
8735 Lisp_Object string, coding_system, nocopy, buffer;
8736 {
8737 return code_convert_string (string, coding_system, buffer,
8738 0, ! NILP (nocopy), 0);
8739 }
8740
8741 DEFUN ("encode-coding-string", Fencode_coding_string, Sencode_coding_string,
8742 2, 4, 0,
8743 doc: /* Encode STRING to CODING-SYSTEM, and return the result.
8744
8745 Optional third arg NOCOPY non-nil means it is OK to return STRING
8746 itself if the encoding operation is trivial.
8747
8748 Optional fourth arg BUFFER non-nil means that the encoded text is
8749 inserted in that buffer after point (point does not move). In this
8750 case, the return value is the length of the encoded text.
8751
8752 This function sets `last-coding-system-used' to the precise coding system
8753 used (which may be different from CODING-SYSTEM if CODING-SYSTEM is
8754 not fully specified.) */)
8755 (string, coding_system, nocopy, buffer)
8756 Lisp_Object string, coding_system, nocopy, buffer;
8757 {
8758 return code_convert_string (string, coding_system, buffer,
8759 1, ! NILP (nocopy), 1);
8760 }
8761
8762 \f
8763 DEFUN ("decode-sjis-char", Fdecode_sjis_char, Sdecode_sjis_char, 1, 1, 0,
8764 doc: /* Decode a Japanese character which has CODE in shift_jis encoding.
8765 Return the corresponding character. */)
8766 (code)
8767 Lisp_Object code;
8768 {
8769 Lisp_Object spec, attrs, val;
8770 struct charset *charset_roman, *charset_kanji, *charset_kana, *charset;
8771 int c;
8772
8773 CHECK_NATNUM (code);
8774 c = XFASTINT (code);
8775 CHECK_CODING_SYSTEM_GET_SPEC (Vsjis_coding_system, spec);
8776 attrs = AREF (spec, 0);
8777
8778 if (ASCII_BYTE_P (c)
8779 && ! NILP (CODING_ATTR_ASCII_COMPAT (attrs)))
8780 return code;
8781
8782 val = CODING_ATTR_CHARSET_LIST (attrs);
8783 charset_roman = CHARSET_FROM_ID (XINT (XCAR (val))), val = XCDR (val);
8784 charset_kana = CHARSET_FROM_ID (XINT (XCAR (val))), val = XCDR (val);
8785 charset_kanji = CHARSET_FROM_ID (XINT (XCAR (val)));
8786
8787 if (c <= 0x7F)
8788 charset = charset_roman;
8789 else if (c >= 0xA0 && c < 0xDF)
8790 {
8791 charset = charset_kana;
8792 c -= 0x80;
8793 }
8794 else
8795 {
8796 int s1 = c >> 8, s2 = c & 0xFF;
8797
8798 if (s1 < 0x81 || (s1 > 0x9F && s1 < 0xE0) || s1 > 0xEF
8799 || s2 < 0x40 || s2 == 0x7F || s2 > 0xFC)
8800 error ("Invalid code: %d", code);
8801 SJIS_TO_JIS (c);
8802 charset = charset_kanji;
8803 }
8804 c = DECODE_CHAR (charset, c);
8805 if (c < 0)
8806 error ("Invalid code: %d", code);
8807 return make_number (c);
8808 }
8809
8810
8811 DEFUN ("encode-sjis-char", Fencode_sjis_char, Sencode_sjis_char, 1, 1, 0,
8812 doc: /* Encode a Japanese character CH to shift_jis encoding.
8813 Return the corresponding code in SJIS. */)
8814 (ch)
8815 Lisp_Object ch;
8816 {
8817 Lisp_Object spec, attrs, charset_list;
8818 int c;
8819 struct charset *charset;
8820 unsigned code;
8821
8822 CHECK_CHARACTER (ch);
8823 c = XFASTINT (ch);
8824 CHECK_CODING_SYSTEM_GET_SPEC (Vsjis_coding_system, spec);
8825 attrs = AREF (spec, 0);
8826
8827 if (ASCII_CHAR_P (c)
8828 && ! NILP (CODING_ATTR_ASCII_COMPAT (attrs)))
8829 return ch;
8830
8831 charset_list = CODING_ATTR_CHARSET_LIST (attrs);
8832 charset = char_charset (c, charset_list, &code);
8833 if (code == CHARSET_INVALID_CODE (charset))
8834 error ("Can't encode by shift_jis encoding: %d", c);
8835 JIS_TO_SJIS (code);
8836
8837 return make_number (code);
8838 }
8839
8840 DEFUN ("decode-big5-char", Fdecode_big5_char, Sdecode_big5_char, 1, 1, 0,
8841 doc: /* Decode a Big5 character which has CODE in BIG5 coding system.
8842 Return the corresponding character. */)
8843 (code)
8844 Lisp_Object code;
8845 {
8846 Lisp_Object spec, attrs, val;
8847 struct charset *charset_roman, *charset_big5, *charset;
8848 int c;
8849
8850 CHECK_NATNUM (code);
8851 c = XFASTINT (code);
8852 CHECK_CODING_SYSTEM_GET_SPEC (Vbig5_coding_system, spec);
8853 attrs = AREF (spec, 0);
8854
8855 if (ASCII_BYTE_P (c)
8856 && ! NILP (CODING_ATTR_ASCII_COMPAT (attrs)))
8857 return code;
8858
8859 val = CODING_ATTR_CHARSET_LIST (attrs);
8860 charset_roman = CHARSET_FROM_ID (XINT (XCAR (val))), val = XCDR (val);
8861 charset_big5 = CHARSET_FROM_ID (XINT (XCAR (val)));
8862
8863 if (c <= 0x7F)
8864 charset = charset_roman;
8865 else
8866 {
8867 int b1 = c >> 8, b2 = c & 0x7F;
8868 if (b1 < 0xA1 || b1 > 0xFE
8869 || b2 < 0x40 || (b2 > 0x7E && b2 < 0xA1) || b2 > 0xFE)
8870 error ("Invalid code: %d", code);
8871 charset = charset_big5;
8872 }
8873 c = DECODE_CHAR (charset, (unsigned )c);
8874 if (c < 0)
8875 error ("Invalid code: %d", code);
8876 return make_number (c);
8877 }
8878
8879 DEFUN ("encode-big5-char", Fencode_big5_char, Sencode_big5_char, 1, 1, 0,
8880 doc: /* Encode the Big5 character CH to BIG5 coding system.
8881 Return the corresponding character code in Big5. */)
8882 (ch)
8883 Lisp_Object ch;
8884 {
8885 Lisp_Object spec, attrs, charset_list;
8886 struct charset *charset;
8887 int c;
8888 unsigned code;
8889
8890 CHECK_CHARACTER (ch);
8891 c = XFASTINT (ch);
8892 CHECK_CODING_SYSTEM_GET_SPEC (Vbig5_coding_system, spec);
8893 attrs = AREF (spec, 0);
8894 if (ASCII_CHAR_P (c)
8895 && ! NILP (CODING_ATTR_ASCII_COMPAT (attrs)))
8896 return ch;
8897
8898 charset_list = CODING_ATTR_CHARSET_LIST (attrs);
8899 charset = char_charset (c, charset_list, &code);
8900 if (code == CHARSET_INVALID_CODE (charset))
8901 error ("Can't encode by Big5 encoding: %d", c);
8902
8903 return make_number (code);
8904 }
8905
8906 \f
8907 DEFUN ("set-terminal-coding-system-internal", Fset_terminal_coding_system_internal,
8908 Sset_terminal_coding_system_internal, 1, 2, 0,
8909 doc: /* Internal use only. */)
8910 (coding_system, terminal)
8911 Lisp_Object coding_system;
8912 Lisp_Object terminal;
8913 {
8914 struct coding_system *terminal_coding = TERMINAL_TERMINAL_CODING (get_terminal (terminal, 1));
8915 CHECK_SYMBOL (coding_system);
8916 setup_coding_system (Fcheck_coding_system (coding_system), terminal_coding);
8917 /* We had better not send unsafe characters to terminal. */
8918 terminal_coding->mode |= CODING_MODE_SAFE_ENCODING;
8919 /* Characer composition should be disabled. */
8920 terminal_coding->common_flags &= ~CODING_ANNOTATE_COMPOSITION_MASK;
8921 terminal_coding->src_multibyte = 1;
8922 terminal_coding->dst_multibyte = 0;
8923 return Qnil;
8924 }
8925
8926 DEFUN ("set-safe-terminal-coding-system-internal",
8927 Fset_safe_terminal_coding_system_internal,
8928 Sset_safe_terminal_coding_system_internal, 1, 1, 0,
8929 doc: /* Internal use only. */)
8930 (coding_system)
8931 Lisp_Object coding_system;
8932 {
8933 CHECK_SYMBOL (coding_system);
8934 setup_coding_system (Fcheck_coding_system (coding_system),
8935 &safe_terminal_coding);
8936 /* Characer composition should be disabled. */
8937 safe_terminal_coding.common_flags &= ~CODING_ANNOTATE_COMPOSITION_MASK;
8938 safe_terminal_coding.src_multibyte = 1;
8939 safe_terminal_coding.dst_multibyte = 0;
8940 return Qnil;
8941 }
8942
8943 DEFUN ("terminal-coding-system", Fterminal_coding_system,
8944 Sterminal_coding_system, 0, 1, 0,
8945 doc: /* Return coding system specified for terminal output on the given terminal.
8946 TERMINAL may be a terminal id, a frame, or nil for the selected
8947 frame's terminal device. */)
8948 (terminal)
8949 Lisp_Object terminal;
8950 {
8951 struct coding_system *terminal_coding
8952 = TERMINAL_TERMINAL_CODING (get_terminal (terminal, 1));
8953 Lisp_Object coding_system = CODING_ID_NAME (terminal_coding->id);
8954
8955 /* For backward compatibility, return nil if it is `undecided'. */
8956 return (! EQ (coding_system, Qundecided) ? coding_system : Qnil);
8957 }
8958
8959 DEFUN ("set-keyboard-coding-system-internal", Fset_keyboard_coding_system_internal,
8960 Sset_keyboard_coding_system_internal, 1, 2, 0,
8961 doc: /* Internal use only. */)
8962 (coding_system, terminal)
8963 Lisp_Object coding_system;
8964 Lisp_Object terminal;
8965 {
8966 struct terminal *t = get_terminal (terminal, 1);
8967 CHECK_SYMBOL (coding_system);
8968 setup_coding_system (Fcheck_coding_system (coding_system),
8969 TERMINAL_KEYBOARD_CODING (t));
8970 /* Characer composition should be disabled. */
8971 TERMINAL_KEYBOARD_CODING (t)->common_flags
8972 &= ~CODING_ANNOTATE_COMPOSITION_MASK;
8973 return Qnil;
8974 }
8975
8976 DEFUN ("keyboard-coding-system",
8977 Fkeyboard_coding_system, Skeyboard_coding_system, 0, 1, 0,
8978 doc: /* Return coding system specified for decoding keyboard input. */)
8979 (terminal)
8980 Lisp_Object terminal;
8981 {
8982 return CODING_ID_NAME (TERMINAL_KEYBOARD_CODING
8983 (get_terminal (terminal, 1))->id);
8984 }
8985
8986 \f
8987 DEFUN ("find-operation-coding-system", Ffind_operation_coding_system,
8988 Sfind_operation_coding_system, 1, MANY, 0,
8989 doc: /* Choose a coding system for an operation based on the target name.
8990 The value names a pair of coding systems: (DECODING-SYSTEM . ENCODING-SYSTEM).
8991 DECODING-SYSTEM is the coding system to use for decoding
8992 \(in case OPERATION does decoding), and ENCODING-SYSTEM is the coding system
8993 for encoding (in case OPERATION does encoding).
8994
8995 The first argument OPERATION specifies an I/O primitive:
8996 For file I/O, `insert-file-contents' or `write-region'.
8997 For process I/O, `call-process', `call-process-region', or `start-process'.
8998 For network I/O, `open-network-stream'.
8999
9000 The remaining arguments should be the same arguments that were passed
9001 to the primitive. Depending on which primitive, one of those arguments
9002 is selected as the TARGET. For example, if OPERATION does file I/O,
9003 whichever argument specifies the file name is TARGET.
9004
9005 TARGET has a meaning which depends on OPERATION:
9006 For file I/O, TARGET is a file name (except for the special case below).
9007 For process I/O, TARGET is a process name.
9008 For network I/O, TARGET is a service name or a port number.
9009
9010 This function looks up what is specified for TARGET in
9011 `file-coding-system-alist', `process-coding-system-alist',
9012 or `network-coding-system-alist' depending on OPERATION.
9013 They may specify a coding system, a cons of coding systems,
9014 or a function symbol to call.
9015 In the last case, we call the function with one argument,
9016 which is a list of all the arguments given to this function.
9017 If the function can't decide a coding system, it can return
9018 `undecided' so that the normal code-detection is performed.
9019
9020 If OPERATION is `insert-file-contents', the argument corresponding to
9021 TARGET may be a cons (FILENAME . BUFFER). In that case, FILENAME is a
9022 file name to look up, and BUFFER is a buffer that contains the file's
9023 contents (not yet decoded). If `file-coding-system-alist' specifies a
9024 function to call for FILENAME, that function should examine the
9025 contents of BUFFER instead of reading the file.
9026
9027 usage: (find-operation-coding-system OPERATION ARGUMENTS...) */)
9028 (nargs, args)
9029 int nargs;
9030 Lisp_Object *args;
9031 {
9032 Lisp_Object operation, target_idx, target, val;
9033 register Lisp_Object chain;
9034
9035 if (nargs < 2)
9036 error ("Too few arguments");
9037 operation = args[0];
9038 if (!SYMBOLP (operation)
9039 || !INTEGERP (target_idx = Fget (operation, Qtarget_idx)))
9040 error ("Invalid first argument");
9041 if (nargs < 1 + XINT (target_idx))
9042 error ("Too few arguments for operation: %s",
9043 SDATA (SYMBOL_NAME (operation)));
9044 target = args[XINT (target_idx) + 1];
9045 if (!(STRINGP (target)
9046 || (EQ (operation, Qinsert_file_contents) && CONSP (target)
9047 && STRINGP (XCAR (target)) && BUFFERP (XCDR (target)))
9048 || (EQ (operation, Qopen_network_stream) && INTEGERP (target))))
9049 error ("Invalid %dth argument", XINT (target_idx) + 1);
9050 if (CONSP (target))
9051 target = XCAR (target);
9052
9053 chain = ((EQ (operation, Qinsert_file_contents)
9054 || EQ (operation, Qwrite_region))
9055 ? Vfile_coding_system_alist
9056 : (EQ (operation, Qopen_network_stream)
9057 ? Vnetwork_coding_system_alist
9058 : Vprocess_coding_system_alist));
9059 if (NILP (chain))
9060 return Qnil;
9061
9062 for (; CONSP (chain); chain = XCDR (chain))
9063 {
9064 Lisp_Object elt;
9065
9066 elt = XCAR (chain);
9067 if (CONSP (elt)
9068 && ((STRINGP (target)
9069 && STRINGP (XCAR (elt))
9070 && fast_string_match (XCAR (elt), target) >= 0)
9071 || (INTEGERP (target) && EQ (target, XCAR (elt)))))
9072 {
9073 val = XCDR (elt);
9074 /* Here, if VAL is both a valid coding system and a valid
9075 function symbol, we return VAL as a coding system. */
9076 if (CONSP (val))
9077 return val;
9078 if (! SYMBOLP (val))
9079 return Qnil;
9080 if (! NILP (Fcoding_system_p (val)))
9081 return Fcons (val, val);
9082 if (! NILP (Ffboundp (val)))
9083 {
9084 /* We use call1 rather than safe_call1
9085 so as to get bug reports about functions called here
9086 which don't handle the current interface. */
9087 val = call1 (val, Flist (nargs, args));
9088 if (CONSP (val))
9089 return val;
9090 if (SYMBOLP (val) && ! NILP (Fcoding_system_p (val)))
9091 return Fcons (val, val);
9092 }
9093 return Qnil;
9094 }
9095 }
9096 return Qnil;
9097 }
9098
9099 DEFUN ("set-coding-system-priority", Fset_coding_system_priority,
9100 Sset_coding_system_priority, 0, MANY, 0,
9101 doc: /* Assign higher priority to the coding systems given as arguments.
9102 If multiple coding systems belong to the same category,
9103 all but the first one are ignored.
9104
9105 usage: (set-coding-system-priority &rest coding-systems) */)
9106 (nargs, args)
9107 int nargs;
9108 Lisp_Object *args;
9109 {
9110 int i, j;
9111 int changed[coding_category_max];
9112 enum coding_category priorities[coding_category_max];
9113
9114 bzero (changed, sizeof changed);
9115
9116 for (i = j = 0; i < nargs; i++)
9117 {
9118 enum coding_category category;
9119 Lisp_Object spec, attrs;
9120
9121 CHECK_CODING_SYSTEM_GET_SPEC (args[i], spec);
9122 attrs = AREF (spec, 0);
9123 category = XINT (CODING_ATTR_CATEGORY (attrs));
9124 if (changed[category])
9125 /* Ignore this coding system because a coding system of the
9126 same category already had a higher priority. */
9127 continue;
9128 changed[category] = 1;
9129 priorities[j++] = category;
9130 if (coding_categories[category].id >= 0
9131 && ! EQ (args[i], CODING_ID_NAME (coding_categories[category].id)))
9132 setup_coding_system (args[i], &coding_categories[category]);
9133 Fset (AREF (Vcoding_category_table, category), args[i]);
9134 }
9135
9136 /* Now we have decided top J priorities. Reflect the order of the
9137 original priorities to the remaining priorities. */
9138
9139 for (i = j, j = 0; i < coding_category_max; i++, j++)
9140 {
9141 while (j < coding_category_max
9142 && changed[coding_priorities[j]])
9143 j++;
9144 if (j == coding_category_max)
9145 abort ();
9146 priorities[i] = coding_priorities[j];
9147 }
9148
9149 bcopy (priorities, coding_priorities, sizeof priorities);
9150
9151 /* Update `coding-category-list'. */
9152 Vcoding_category_list = Qnil;
9153 for (i = coding_category_max - 1; i >= 0; i--)
9154 Vcoding_category_list
9155 = Fcons (AREF (Vcoding_category_table, priorities[i]),
9156 Vcoding_category_list);
9157
9158 return Qnil;
9159 }
9160
9161 DEFUN ("coding-system-priority-list", Fcoding_system_priority_list,
9162 Scoding_system_priority_list, 0, 1, 0,
9163 doc: /* Return a list of coding systems ordered by their priorities.
9164 HIGHESTP non-nil means just return the highest priority one. */)
9165 (highestp)
9166 Lisp_Object highestp;
9167 {
9168 int i;
9169 Lisp_Object val;
9170
9171 for (i = 0, val = Qnil; i < coding_category_max; i++)
9172 {
9173 enum coding_category category = coding_priorities[i];
9174 int id = coding_categories[category].id;
9175 Lisp_Object attrs;
9176
9177 if (id < 0)
9178 continue;
9179 attrs = CODING_ID_ATTRS (id);
9180 if (! NILP (highestp))
9181 return CODING_ATTR_BASE_NAME (attrs);
9182 val = Fcons (CODING_ATTR_BASE_NAME (attrs), val);
9183 }
9184 return Fnreverse (val);
9185 }
9186
9187 static char *suffixes[] = { "-unix", "-dos", "-mac" };
9188
9189 static Lisp_Object
9190 make_subsidiaries (base)
9191 Lisp_Object base;
9192 {
9193 Lisp_Object subsidiaries;
9194 int base_name_len = SBYTES (SYMBOL_NAME (base));
9195 char *buf = (char *) alloca (base_name_len + 6);
9196 int i;
9197
9198 bcopy (SDATA (SYMBOL_NAME (base)), buf, base_name_len);
9199 subsidiaries = Fmake_vector (make_number (3), Qnil);
9200 for (i = 0; i < 3; i++)
9201 {
9202 bcopy (suffixes[i], buf + base_name_len, strlen (suffixes[i]) + 1);
9203 ASET (subsidiaries, i, intern (buf));
9204 }
9205 return subsidiaries;
9206 }
9207
9208
9209 DEFUN ("define-coding-system-internal", Fdefine_coding_system_internal,
9210 Sdefine_coding_system_internal, coding_arg_max, MANY, 0,
9211 doc: /* For internal use only.
9212 usage: (define-coding-system-internal ...) */)
9213 (nargs, args)
9214 int nargs;
9215 Lisp_Object *args;
9216 {
9217 Lisp_Object name;
9218 Lisp_Object spec_vec; /* [ ATTRS ALIASE EOL_TYPE ] */
9219 Lisp_Object attrs; /* Vector of attributes. */
9220 Lisp_Object eol_type;
9221 Lisp_Object aliases;
9222 Lisp_Object coding_type, charset_list, safe_charsets;
9223 enum coding_category category;
9224 Lisp_Object tail, val;
9225 int max_charset_id = 0;
9226 int i;
9227
9228 if (nargs < coding_arg_max)
9229 goto short_args;
9230
9231 attrs = Fmake_vector (make_number (coding_attr_last_index), Qnil);
9232
9233 name = args[coding_arg_name];
9234 CHECK_SYMBOL (name);
9235 CODING_ATTR_BASE_NAME (attrs) = name;
9236
9237 val = args[coding_arg_mnemonic];
9238 if (! STRINGP (val))
9239 CHECK_CHARACTER (val);
9240 CODING_ATTR_MNEMONIC (attrs) = val;
9241
9242 coding_type = args[coding_arg_coding_type];
9243 CHECK_SYMBOL (coding_type);
9244 CODING_ATTR_TYPE (attrs) = coding_type;
9245
9246 charset_list = args[coding_arg_charset_list];
9247 if (SYMBOLP (charset_list))
9248 {
9249 if (EQ (charset_list, Qiso_2022))
9250 {
9251 if (! EQ (coding_type, Qiso_2022))
9252 error ("Invalid charset-list");
9253 charset_list = Viso_2022_charset_list;
9254 }
9255 else if (EQ (charset_list, Qemacs_mule))
9256 {
9257 if (! EQ (coding_type, Qemacs_mule))
9258 error ("Invalid charset-list");
9259 charset_list = Vemacs_mule_charset_list;
9260 }
9261 for (tail = charset_list; CONSP (tail); tail = XCDR (tail))
9262 if (max_charset_id < XFASTINT (XCAR (tail)))
9263 max_charset_id = XFASTINT (XCAR (tail));
9264 }
9265 else
9266 {
9267 charset_list = Fcopy_sequence (charset_list);
9268 for (tail = charset_list; CONSP (tail); tail = XCDR (tail))
9269 {
9270 struct charset *charset;
9271
9272 val = XCAR (tail);
9273 CHECK_CHARSET_GET_CHARSET (val, charset);
9274 if (EQ (coding_type, Qiso_2022)
9275 ? CHARSET_ISO_FINAL (charset) < 0
9276 : EQ (coding_type, Qemacs_mule)
9277 ? CHARSET_EMACS_MULE_ID (charset) < 0
9278 : 0)
9279 error ("Can't handle charset `%s'",
9280 SDATA (SYMBOL_NAME (CHARSET_NAME (charset))));
9281
9282 XSETCAR (tail, make_number (charset->id));
9283 if (max_charset_id < charset->id)
9284 max_charset_id = charset->id;
9285 }
9286 }
9287 CODING_ATTR_CHARSET_LIST (attrs) = charset_list;
9288
9289 safe_charsets = Fmake_string (make_number (max_charset_id + 1),
9290 make_number (255));
9291 for (tail = charset_list; CONSP (tail); tail = XCDR (tail))
9292 SSET (safe_charsets, XFASTINT (XCAR (tail)), 0);
9293 CODING_ATTR_SAFE_CHARSETS (attrs) = safe_charsets;
9294
9295 CODING_ATTR_ASCII_COMPAT (attrs) = args[coding_arg_ascii_compatible_p];
9296
9297 val = args[coding_arg_decode_translation_table];
9298 if (! CHAR_TABLE_P (val) && ! CONSP (val))
9299 CHECK_SYMBOL (val);
9300 CODING_ATTR_DECODE_TBL (attrs) = val;
9301
9302 val = args[coding_arg_encode_translation_table];
9303 if (! CHAR_TABLE_P (val) && ! CONSP (val))
9304 CHECK_SYMBOL (val);
9305 CODING_ATTR_ENCODE_TBL (attrs) = val;
9306
9307 val = args[coding_arg_post_read_conversion];
9308 CHECK_SYMBOL (val);
9309 CODING_ATTR_POST_READ (attrs) = val;
9310
9311 val = args[coding_arg_pre_write_conversion];
9312 CHECK_SYMBOL (val);
9313 CODING_ATTR_PRE_WRITE (attrs) = val;
9314
9315 val = args[coding_arg_default_char];
9316 if (NILP (val))
9317 CODING_ATTR_DEFAULT_CHAR (attrs) = make_number (' ');
9318 else
9319 {
9320 CHECK_CHARACTER (val);
9321 CODING_ATTR_DEFAULT_CHAR (attrs) = val;
9322 }
9323
9324 val = args[coding_arg_for_unibyte];
9325 CODING_ATTR_FOR_UNIBYTE (attrs) = NILP (val) ? Qnil : Qt;
9326
9327 val = args[coding_arg_plist];
9328 CHECK_LIST (val);
9329 CODING_ATTR_PLIST (attrs) = val;
9330
9331 if (EQ (coding_type, Qcharset))
9332 {
9333 /* Generate a lisp vector of 256 elements. Each element is nil,
9334 integer, or a list of charset IDs.
9335
9336 If Nth element is nil, the byte code N is invalid in this
9337 coding system.
9338
9339 If Nth element is a number NUM, N is the first byte of a
9340 charset whose ID is NUM.
9341
9342 If Nth element is a list of charset IDs, N is the first byte
9343 of one of them. The list is sorted by dimensions of the
9344 charsets. A charset of smaller dimension comes firtst. */
9345 val = Fmake_vector (make_number (256), Qnil);
9346
9347 for (tail = charset_list; CONSP (tail); tail = XCDR (tail))
9348 {
9349 struct charset *charset = CHARSET_FROM_ID (XFASTINT (XCAR (tail)));
9350 int dim = CHARSET_DIMENSION (charset);
9351 int idx = (dim - 1) * 4;
9352
9353 if (CHARSET_ASCII_COMPATIBLE_P (charset))
9354 CODING_ATTR_ASCII_COMPAT (attrs) = Qt;
9355
9356 for (i = charset->code_space[idx];
9357 i <= charset->code_space[idx + 1]; i++)
9358 {
9359 Lisp_Object tmp, tmp2;
9360 int dim2;
9361
9362 tmp = AREF (val, i);
9363 if (NILP (tmp))
9364 tmp = XCAR (tail);
9365 else if (NUMBERP (tmp))
9366 {
9367 dim2 = CHARSET_DIMENSION (CHARSET_FROM_ID (XFASTINT (tmp)));
9368 if (dim < dim2)
9369 tmp = Fcons (XCAR (tail), Fcons (tmp, Qnil));
9370 else
9371 tmp = Fcons (tmp, Fcons (XCAR (tail), Qnil));
9372 }
9373 else
9374 {
9375 for (tmp2 = tmp; CONSP (tmp2); tmp2 = XCDR (tmp2))
9376 {
9377 dim2 = CHARSET_DIMENSION (CHARSET_FROM_ID (XFASTINT (XCAR (tmp2))));
9378 if (dim < dim2)
9379 break;
9380 }
9381 if (NILP (tmp2))
9382 tmp = nconc2 (tmp, Fcons (XCAR (tail), Qnil));
9383 else
9384 {
9385 XSETCDR (tmp2, Fcons (XCAR (tmp2), XCDR (tmp2)));
9386 XSETCAR (tmp2, XCAR (tail));
9387 }
9388 }
9389 ASET (val, i, tmp);
9390 }
9391 }
9392 ASET (attrs, coding_attr_charset_valids, val);
9393 category = coding_category_charset;
9394 }
9395 else if (EQ (coding_type, Qccl))
9396 {
9397 Lisp_Object valids;
9398
9399 if (nargs < coding_arg_ccl_max)
9400 goto short_args;
9401
9402 val = args[coding_arg_ccl_decoder];
9403 CHECK_CCL_PROGRAM (val);
9404 if (VECTORP (val))
9405 val = Fcopy_sequence (val);
9406 ASET (attrs, coding_attr_ccl_decoder, val);
9407
9408 val = args[coding_arg_ccl_encoder];
9409 CHECK_CCL_PROGRAM (val);
9410 if (VECTORP (val))
9411 val = Fcopy_sequence (val);
9412 ASET (attrs, coding_attr_ccl_encoder, val);
9413
9414 val = args[coding_arg_ccl_valids];
9415 valids = Fmake_string (make_number (256), make_number (0));
9416 for (tail = val; !NILP (tail); tail = Fcdr (tail))
9417 {
9418 int from, to;
9419
9420 val = Fcar (tail);
9421 if (INTEGERP (val))
9422 {
9423 from = to = XINT (val);
9424 if (from < 0 || from > 255)
9425 args_out_of_range_3 (val, make_number (0), make_number (255));
9426 }
9427 else
9428 {
9429 CHECK_CONS (val);
9430 CHECK_NATNUM_CAR (val);
9431 CHECK_NATNUM_CDR (val);
9432 from = XINT (XCAR (val));
9433 if (from > 255)
9434 args_out_of_range_3 (XCAR (val),
9435 make_number (0), make_number (255));
9436 to = XINT (XCDR (val));
9437 if (to < from || to > 255)
9438 args_out_of_range_3 (XCDR (val),
9439 XCAR (val), make_number (255));
9440 }
9441 for (i = from; i <= to; i++)
9442 SSET (valids, i, 1);
9443 }
9444 ASET (attrs, coding_attr_ccl_valids, valids);
9445
9446 category = coding_category_ccl;
9447 }
9448 else if (EQ (coding_type, Qutf_16))
9449 {
9450 Lisp_Object bom, endian;
9451
9452 CODING_ATTR_ASCII_COMPAT (attrs) = Qnil;
9453
9454 if (nargs < coding_arg_utf16_max)
9455 goto short_args;
9456
9457 bom = args[coding_arg_utf16_bom];
9458 if (! NILP (bom) && ! EQ (bom, Qt))
9459 {
9460 CHECK_CONS (bom);
9461 val = XCAR (bom);
9462 CHECK_CODING_SYSTEM (val);
9463 val = XCDR (bom);
9464 CHECK_CODING_SYSTEM (val);
9465 }
9466 ASET (attrs, coding_attr_utf_bom, bom);
9467
9468 endian = args[coding_arg_utf16_endian];
9469 CHECK_SYMBOL (endian);
9470 if (NILP (endian))
9471 endian = Qbig;
9472 else if (! EQ (endian, Qbig) && ! EQ (endian, Qlittle))
9473 error ("Invalid endian: %s", SDATA (SYMBOL_NAME (endian)));
9474 ASET (attrs, coding_attr_utf_16_endian, endian);
9475
9476 category = (CONSP (bom)
9477 ? coding_category_utf_16_auto
9478 : NILP (bom)
9479 ? (EQ (endian, Qbig)
9480 ? coding_category_utf_16_be_nosig
9481 : coding_category_utf_16_le_nosig)
9482 : (EQ (endian, Qbig)
9483 ? coding_category_utf_16_be
9484 : coding_category_utf_16_le));
9485 }
9486 else if (EQ (coding_type, Qiso_2022))
9487 {
9488 Lisp_Object initial, reg_usage, request, flags;
9489 int i;
9490
9491 if (nargs < coding_arg_iso2022_max)
9492 goto short_args;
9493
9494 initial = Fcopy_sequence (args[coding_arg_iso2022_initial]);
9495 CHECK_VECTOR (initial);
9496 for (i = 0; i < 4; i++)
9497 {
9498 val = Faref (initial, make_number (i));
9499 if (! NILP (val))
9500 {
9501 struct charset *charset;
9502
9503 CHECK_CHARSET_GET_CHARSET (val, charset);
9504 ASET (initial, i, make_number (CHARSET_ID (charset)));
9505 if (i == 0 && CHARSET_ASCII_COMPATIBLE_P (charset))
9506 CODING_ATTR_ASCII_COMPAT (attrs) = Qt;
9507 }
9508 else
9509 ASET (initial, i, make_number (-1));
9510 }
9511
9512 reg_usage = args[coding_arg_iso2022_reg_usage];
9513 CHECK_CONS (reg_usage);
9514 CHECK_NUMBER_CAR (reg_usage);
9515 CHECK_NUMBER_CDR (reg_usage);
9516
9517 request = Fcopy_sequence (args[coding_arg_iso2022_request]);
9518 for (tail = request; ! NILP (tail); tail = Fcdr (tail))
9519 {
9520 int id;
9521 Lisp_Object tmp;
9522
9523 val = Fcar (tail);
9524 CHECK_CONS (val);
9525 tmp = XCAR (val);
9526 CHECK_CHARSET_GET_ID (tmp, id);
9527 CHECK_NATNUM_CDR (val);
9528 if (XINT (XCDR (val)) >= 4)
9529 error ("Invalid graphic register number: %d", XINT (XCDR (val)));
9530 XSETCAR (val, make_number (id));
9531 }
9532
9533 flags = args[coding_arg_iso2022_flags];
9534 CHECK_NATNUM (flags);
9535 i = XINT (flags);
9536 if (EQ (args[coding_arg_charset_list], Qiso_2022))
9537 flags = make_number (i | CODING_ISO_FLAG_FULL_SUPPORT);
9538
9539 ASET (attrs, coding_attr_iso_initial, initial);
9540 ASET (attrs, coding_attr_iso_usage, reg_usage);
9541 ASET (attrs, coding_attr_iso_request, request);
9542 ASET (attrs, coding_attr_iso_flags, flags);
9543 setup_iso_safe_charsets (attrs);
9544
9545 if (i & CODING_ISO_FLAG_SEVEN_BITS)
9546 category = ((i & (CODING_ISO_FLAG_LOCKING_SHIFT
9547 | CODING_ISO_FLAG_SINGLE_SHIFT))
9548 ? coding_category_iso_7_else
9549 : EQ (args[coding_arg_charset_list], Qiso_2022)
9550 ? coding_category_iso_7
9551 : coding_category_iso_7_tight);
9552 else
9553 {
9554 int id = XINT (AREF (initial, 1));
9555
9556 category = (((i & CODING_ISO_FLAG_LOCKING_SHIFT)
9557 || EQ (args[coding_arg_charset_list], Qiso_2022)
9558 || id < 0)
9559 ? coding_category_iso_8_else
9560 : (CHARSET_DIMENSION (CHARSET_FROM_ID (id)) == 1)
9561 ? coding_category_iso_8_1
9562 : coding_category_iso_8_2);
9563 }
9564 if (category != coding_category_iso_8_1
9565 && category != coding_category_iso_8_2)
9566 CODING_ATTR_ASCII_COMPAT (attrs) = Qnil;
9567 }
9568 else if (EQ (coding_type, Qemacs_mule))
9569 {
9570 if (EQ (args[coding_arg_charset_list], Qemacs_mule))
9571 ASET (attrs, coding_attr_emacs_mule_full, Qt);
9572 CODING_ATTR_ASCII_COMPAT (attrs) = Qt;
9573 category = coding_category_emacs_mule;
9574 }
9575 else if (EQ (coding_type, Qshift_jis))
9576 {
9577
9578 struct charset *charset;
9579
9580 if (XINT (Flength (charset_list)) != 3
9581 && XINT (Flength (charset_list)) != 4)
9582 error ("There should be three or four charsets");
9583
9584 charset = CHARSET_FROM_ID (XINT (XCAR (charset_list)));
9585 if (CHARSET_DIMENSION (charset) != 1)
9586 error ("Dimension of charset %s is not one",
9587 SDATA (SYMBOL_NAME (CHARSET_NAME (charset))));
9588 if (CHARSET_ASCII_COMPATIBLE_P (charset))
9589 CODING_ATTR_ASCII_COMPAT (attrs) = Qt;
9590
9591 charset_list = XCDR (charset_list);
9592 charset = CHARSET_FROM_ID (XINT (XCAR (charset_list)));
9593 if (CHARSET_DIMENSION (charset) != 1)
9594 error ("Dimension of charset %s is not one",
9595 SDATA (SYMBOL_NAME (CHARSET_NAME (charset))));
9596
9597 charset_list = XCDR (charset_list);
9598 charset = CHARSET_FROM_ID (XINT (XCAR (charset_list)));
9599 if (CHARSET_DIMENSION (charset) != 2)
9600 error ("Dimension of charset %s is not two",
9601 SDATA (SYMBOL_NAME (CHARSET_NAME (charset))));
9602
9603 charset_list = XCDR (charset_list);
9604 if (! NILP (charset_list))
9605 {
9606 charset = CHARSET_FROM_ID (XINT (XCAR (charset_list)));
9607 if (CHARSET_DIMENSION (charset) != 2)
9608 error ("Dimension of charset %s is not two",
9609 SDATA (SYMBOL_NAME (CHARSET_NAME (charset))));
9610 }
9611
9612 category = coding_category_sjis;
9613 Vsjis_coding_system = name;
9614 }
9615 else if (EQ (coding_type, Qbig5))
9616 {
9617 struct charset *charset;
9618
9619 if (XINT (Flength (charset_list)) != 2)
9620 error ("There should be just two charsets");
9621
9622 charset = CHARSET_FROM_ID (XINT (XCAR (charset_list)));
9623 if (CHARSET_DIMENSION (charset) != 1)
9624 error ("Dimension of charset %s is not one",
9625 SDATA (SYMBOL_NAME (CHARSET_NAME (charset))));
9626 if (CHARSET_ASCII_COMPATIBLE_P (charset))
9627 CODING_ATTR_ASCII_COMPAT (attrs) = Qt;
9628
9629 charset_list = XCDR (charset_list);
9630 charset = CHARSET_FROM_ID (XINT (XCAR (charset_list)));
9631 if (CHARSET_DIMENSION (charset) != 2)
9632 error ("Dimension of charset %s is not two",
9633 SDATA (SYMBOL_NAME (CHARSET_NAME (charset))));
9634
9635 category = coding_category_big5;
9636 Vbig5_coding_system = name;
9637 }
9638 else if (EQ (coding_type, Qraw_text))
9639 {
9640 category = coding_category_raw_text;
9641 CODING_ATTR_ASCII_COMPAT (attrs) = Qt;
9642 }
9643 else if (EQ (coding_type, Qutf_8))
9644 {
9645 Lisp_Object bom;
9646
9647 CODING_ATTR_ASCII_COMPAT (attrs) = Qt;
9648
9649 if (nargs < coding_arg_utf8_max)
9650 goto short_args;
9651
9652 bom = args[coding_arg_utf8_bom];
9653 if (! NILP (bom) && ! EQ (bom, Qt))
9654 {
9655 CHECK_CONS (bom);
9656 val = XCAR (bom);
9657 CHECK_CODING_SYSTEM (val);
9658 val = XCDR (bom);
9659 CHECK_CODING_SYSTEM (val);
9660 }
9661 ASET (attrs, coding_attr_utf_bom, bom);
9662
9663 category = (CONSP (bom) ? coding_category_utf_8_auto
9664 : NILP (bom) ? coding_category_utf_8_nosig
9665 : coding_category_utf_8_sig);
9666 }
9667 else if (EQ (coding_type, Qundecided))
9668 category = coding_category_undecided;
9669 else
9670 error ("Invalid coding system type: %s",
9671 SDATA (SYMBOL_NAME (coding_type)));
9672
9673 CODING_ATTR_CATEGORY (attrs) = make_number (category);
9674 CODING_ATTR_PLIST (attrs)
9675 = Fcons (QCcategory, Fcons (AREF (Vcoding_category_table, category),
9676 CODING_ATTR_PLIST (attrs)));
9677 CODING_ATTR_PLIST (attrs)
9678 = Fcons (QCascii_compatible_p,
9679 Fcons (CODING_ATTR_ASCII_COMPAT (attrs),
9680 CODING_ATTR_PLIST (attrs)));
9681
9682 eol_type = args[coding_arg_eol_type];
9683 if (! NILP (eol_type)
9684 && ! EQ (eol_type, Qunix)
9685 && ! EQ (eol_type, Qdos)
9686 && ! EQ (eol_type, Qmac))
9687 error ("Invalid eol-type");
9688
9689 aliases = Fcons (name, Qnil);
9690
9691 if (NILP (eol_type))
9692 {
9693 eol_type = make_subsidiaries (name);
9694 for (i = 0; i < 3; i++)
9695 {
9696 Lisp_Object this_spec, this_name, this_aliases, this_eol_type;
9697
9698 this_name = AREF (eol_type, i);
9699 this_aliases = Fcons (this_name, Qnil);
9700 this_eol_type = (i == 0 ? Qunix : i == 1 ? Qdos : Qmac);
9701 this_spec = Fmake_vector (make_number (3), attrs);
9702 ASET (this_spec, 1, this_aliases);
9703 ASET (this_spec, 2, this_eol_type);
9704 Fputhash (this_name, this_spec, Vcoding_system_hash_table);
9705 Vcoding_system_list = Fcons (this_name, Vcoding_system_list);
9706 val = Fassoc (Fsymbol_name (this_name), Vcoding_system_alist);
9707 if (NILP (val))
9708 Vcoding_system_alist
9709 = Fcons (Fcons (Fsymbol_name (this_name), Qnil),
9710 Vcoding_system_alist);
9711 }
9712 }
9713
9714 spec_vec = Fmake_vector (make_number (3), attrs);
9715 ASET (spec_vec, 1, aliases);
9716 ASET (spec_vec, 2, eol_type);
9717
9718 Fputhash (name, spec_vec, Vcoding_system_hash_table);
9719 Vcoding_system_list = Fcons (name, Vcoding_system_list);
9720 val = Fassoc (Fsymbol_name (name), Vcoding_system_alist);
9721 if (NILP (val))
9722 Vcoding_system_alist = Fcons (Fcons (Fsymbol_name (name), Qnil),
9723 Vcoding_system_alist);
9724
9725 {
9726 int id = coding_categories[category].id;
9727
9728 if (id < 0 || EQ (name, CODING_ID_NAME (id)))
9729 setup_coding_system (name, &coding_categories[category]);
9730 }
9731
9732 return Qnil;
9733
9734 short_args:
9735 return Fsignal (Qwrong_number_of_arguments,
9736 Fcons (intern ("define-coding-system-internal"),
9737 make_number (nargs)));
9738 }
9739
9740
9741 DEFUN ("coding-system-put", Fcoding_system_put, Scoding_system_put,
9742 3, 3, 0,
9743 doc: /* Change value in CODING-SYSTEM's property list PROP to VAL. */)
9744 (coding_system, prop, val)
9745 Lisp_Object coding_system, prop, val;
9746 {
9747 Lisp_Object spec, attrs;
9748
9749 CHECK_CODING_SYSTEM_GET_SPEC (coding_system, spec);
9750 attrs = AREF (spec, 0);
9751 if (EQ (prop, QCmnemonic))
9752 {
9753 if (! STRINGP (val))
9754 CHECK_CHARACTER (val);
9755 CODING_ATTR_MNEMONIC (attrs) = val;
9756 }
9757 else if (EQ (prop, QCdefault_char))
9758 {
9759 if (NILP (val))
9760 val = make_number (' ');
9761 else
9762 CHECK_CHARACTER (val);
9763 CODING_ATTR_DEFAULT_CHAR (attrs) = val;
9764 }
9765 else if (EQ (prop, QCdecode_translation_table))
9766 {
9767 if (! CHAR_TABLE_P (val) && ! CONSP (val))
9768 CHECK_SYMBOL (val);
9769 CODING_ATTR_DECODE_TBL (attrs) = val;
9770 }
9771 else if (EQ (prop, QCencode_translation_table))
9772 {
9773 if (! CHAR_TABLE_P (val) && ! CONSP (val))
9774 CHECK_SYMBOL (val);
9775 CODING_ATTR_ENCODE_TBL (attrs) = val;
9776 }
9777 else if (EQ (prop, QCpost_read_conversion))
9778 {
9779 CHECK_SYMBOL (val);
9780 CODING_ATTR_POST_READ (attrs) = val;
9781 }
9782 else if (EQ (prop, QCpre_write_conversion))
9783 {
9784 CHECK_SYMBOL (val);
9785 CODING_ATTR_PRE_WRITE (attrs) = val;
9786 }
9787 else if (EQ (prop, QCascii_compatible_p))
9788 {
9789 CODING_ATTR_ASCII_COMPAT (attrs) = val;
9790 }
9791
9792 CODING_ATTR_PLIST (attrs)
9793 = Fplist_put (CODING_ATTR_PLIST (attrs), prop, val);
9794 return val;
9795 }
9796
9797
9798 DEFUN ("define-coding-system-alias", Fdefine_coding_system_alias,
9799 Sdefine_coding_system_alias, 2, 2, 0,
9800 doc: /* Define ALIAS as an alias for CODING-SYSTEM. */)
9801 (alias, coding_system)
9802 Lisp_Object alias, coding_system;
9803 {
9804 Lisp_Object spec, aliases, eol_type, val;
9805
9806 CHECK_SYMBOL (alias);
9807 CHECK_CODING_SYSTEM_GET_SPEC (coding_system, spec);
9808 aliases = AREF (spec, 1);
9809 /* ALIASES should be a list of length more than zero, and the first
9810 element is a base coding system. Append ALIAS at the tail of the
9811 list. */
9812 while (!NILP (XCDR (aliases)))
9813 aliases = XCDR (aliases);
9814 XSETCDR (aliases, Fcons (alias, Qnil));
9815
9816 eol_type = AREF (spec, 2);
9817 if (VECTORP (eol_type))
9818 {
9819 Lisp_Object subsidiaries;
9820 int i;
9821
9822 subsidiaries = make_subsidiaries (alias);
9823 for (i = 0; i < 3; i++)
9824 Fdefine_coding_system_alias (AREF (subsidiaries, i),
9825 AREF (eol_type, i));
9826 }
9827
9828 Fputhash (alias, spec, Vcoding_system_hash_table);
9829 Vcoding_system_list = Fcons (alias, Vcoding_system_list);
9830 val = Fassoc (Fsymbol_name (alias), Vcoding_system_alist);
9831 if (NILP (val))
9832 Vcoding_system_alist = Fcons (Fcons (Fsymbol_name (alias), Qnil),
9833 Vcoding_system_alist);
9834
9835 return Qnil;
9836 }
9837
9838 DEFUN ("coding-system-base", Fcoding_system_base, Scoding_system_base,
9839 1, 1, 0,
9840 doc: /* Return the base of CODING-SYSTEM.
9841 Any alias or subsidiary coding system is not a base coding system. */)
9842 (coding_system)
9843 Lisp_Object coding_system;
9844 {
9845 Lisp_Object spec, attrs;
9846
9847 if (NILP (coding_system))
9848 return (Qno_conversion);
9849 CHECK_CODING_SYSTEM_GET_SPEC (coding_system, spec);
9850 attrs = AREF (spec, 0);
9851 return CODING_ATTR_BASE_NAME (attrs);
9852 }
9853
9854 DEFUN ("coding-system-plist", Fcoding_system_plist, Scoding_system_plist,
9855 1, 1, 0,
9856 doc: "Return the property list of CODING-SYSTEM.")
9857 (coding_system)
9858 Lisp_Object coding_system;
9859 {
9860 Lisp_Object spec, attrs;
9861
9862 if (NILP (coding_system))
9863 coding_system = Qno_conversion;
9864 CHECK_CODING_SYSTEM_GET_SPEC (coding_system, spec);
9865 attrs = AREF (spec, 0);
9866 return CODING_ATTR_PLIST (attrs);
9867 }
9868
9869
9870 DEFUN ("coding-system-aliases", Fcoding_system_aliases, Scoding_system_aliases,
9871 1, 1, 0,
9872 doc: /* Return the list of aliases of CODING-SYSTEM. */)
9873 (coding_system)
9874 Lisp_Object coding_system;
9875 {
9876 Lisp_Object spec;
9877
9878 if (NILP (coding_system))
9879 coding_system = Qno_conversion;
9880 CHECK_CODING_SYSTEM_GET_SPEC (coding_system, spec);
9881 return AREF (spec, 1);
9882 }
9883
9884 DEFUN ("coding-system-eol-type", Fcoding_system_eol_type,
9885 Scoding_system_eol_type, 1, 1, 0,
9886 doc: /* Return eol-type of CODING-SYSTEM.
9887 An eol-type is an integer 0, 1, 2, or a vector of coding systems.
9888
9889 Integer values 0, 1, and 2 indicate a format of end-of-line; LF, CRLF,
9890 and CR respectively.
9891
9892 A vector value indicates that a format of end-of-line should be
9893 detected automatically. Nth element of the vector is the subsidiary
9894 coding system whose eol-type is N. */)
9895 (coding_system)
9896 Lisp_Object coding_system;
9897 {
9898 Lisp_Object spec, eol_type;
9899 int n;
9900
9901 if (NILP (coding_system))
9902 coding_system = Qno_conversion;
9903 if (! CODING_SYSTEM_P (coding_system))
9904 return Qnil;
9905 spec = CODING_SYSTEM_SPEC (coding_system);
9906 eol_type = AREF (spec, 2);
9907 if (VECTORP (eol_type))
9908 return Fcopy_sequence (eol_type);
9909 n = EQ (eol_type, Qunix) ? 0 : EQ (eol_type, Qdos) ? 1 : 2;
9910 return make_number (n);
9911 }
9912
9913 #endif /* emacs */
9914
9915 \f
9916 /*** 9. Post-amble ***/
9917
9918 void
9919 init_coding_once ()
9920 {
9921 int i;
9922
9923 for (i = 0; i < coding_category_max; i++)
9924 {
9925 coding_categories[i].id = -1;
9926 coding_priorities[i] = i;
9927 }
9928
9929 /* ISO2022 specific initialize routine. */
9930 for (i = 0; i < 0x20; i++)
9931 iso_code_class[i] = ISO_control_0;
9932 for (i = 0x21; i < 0x7F; i++)
9933 iso_code_class[i] = ISO_graphic_plane_0;
9934 for (i = 0x80; i < 0xA0; i++)
9935 iso_code_class[i] = ISO_control_1;
9936 for (i = 0xA1; i < 0xFF; i++)
9937 iso_code_class[i] = ISO_graphic_plane_1;
9938 iso_code_class[0x20] = iso_code_class[0x7F] = ISO_0x20_or_0x7F;
9939 iso_code_class[0xA0] = iso_code_class[0xFF] = ISO_0xA0_or_0xFF;
9940 iso_code_class[ISO_CODE_SO] = ISO_shift_out;
9941 iso_code_class[ISO_CODE_SI] = ISO_shift_in;
9942 iso_code_class[ISO_CODE_SS2_7] = ISO_single_shift_2_7;
9943 iso_code_class[ISO_CODE_ESC] = ISO_escape;
9944 iso_code_class[ISO_CODE_SS2] = ISO_single_shift_2;
9945 iso_code_class[ISO_CODE_SS3] = ISO_single_shift_3;
9946 iso_code_class[ISO_CODE_CSI] = ISO_control_sequence_introducer;
9947
9948 for (i = 0; i < 256; i++)
9949 {
9950 emacs_mule_bytes[i] = 1;
9951 }
9952 emacs_mule_bytes[EMACS_MULE_LEADING_CODE_PRIVATE_11] = 3;
9953 emacs_mule_bytes[EMACS_MULE_LEADING_CODE_PRIVATE_12] = 3;
9954 emacs_mule_bytes[EMACS_MULE_LEADING_CODE_PRIVATE_21] = 4;
9955 emacs_mule_bytes[EMACS_MULE_LEADING_CODE_PRIVATE_22] = 4;
9956 }
9957
9958 #ifdef emacs
9959
9960 void
9961 syms_of_coding ()
9962 {
9963 staticpro (&Vcoding_system_hash_table);
9964 {
9965 Lisp_Object args[2];
9966 args[0] = QCtest;
9967 args[1] = Qeq;
9968 Vcoding_system_hash_table = Fmake_hash_table (2, args);
9969 }
9970
9971 staticpro (&Vsjis_coding_system);
9972 Vsjis_coding_system = Qnil;
9973
9974 staticpro (&Vbig5_coding_system);
9975 Vbig5_coding_system = Qnil;
9976
9977 staticpro (&Vcode_conversion_reused_workbuf);
9978 Vcode_conversion_reused_workbuf = Qnil;
9979
9980 staticpro (&Vcode_conversion_workbuf_name);
9981 Vcode_conversion_workbuf_name = build_string (" *code-conversion-work*");
9982
9983 reused_workbuf_in_use = 0;
9984
9985 DEFSYM (Qcharset, "charset");
9986 DEFSYM (Qtarget_idx, "target-idx");
9987 DEFSYM (Qcoding_system_history, "coding-system-history");
9988 Fset (Qcoding_system_history, Qnil);
9989
9990 /* Target FILENAME is the first argument. */
9991 Fput (Qinsert_file_contents, Qtarget_idx, make_number (0));
9992 /* Target FILENAME is the third argument. */
9993 Fput (Qwrite_region, Qtarget_idx, make_number (2));
9994
9995 DEFSYM (Qcall_process, "call-process");
9996 /* Target PROGRAM is the first argument. */
9997 Fput (Qcall_process, Qtarget_idx, make_number (0));
9998
9999 DEFSYM (Qcall_process_region, "call-process-region");
10000 /* Target PROGRAM is the third argument. */
10001 Fput (Qcall_process_region, Qtarget_idx, make_number (2));
10002
10003 DEFSYM (Qstart_process, "start-process");
10004 /* Target PROGRAM is the third argument. */
10005 Fput (Qstart_process, Qtarget_idx, make_number (2));
10006
10007 DEFSYM (Qopen_network_stream, "open-network-stream");
10008 /* Target SERVICE is the fourth argument. */
10009 Fput (Qopen_network_stream, Qtarget_idx, make_number (3));
10010
10011 DEFSYM (Qcoding_system, "coding-system");
10012 DEFSYM (Qcoding_aliases, "coding-aliases");
10013
10014 DEFSYM (Qeol_type, "eol-type");
10015 DEFSYM (Qunix, "unix");
10016 DEFSYM (Qdos, "dos");
10017
10018 DEFSYM (Qbuffer_file_coding_system, "buffer-file-coding-system");
10019 DEFSYM (Qpost_read_conversion, "post-read-conversion");
10020 DEFSYM (Qpre_write_conversion, "pre-write-conversion");
10021 DEFSYM (Qdefault_char, "default-char");
10022 DEFSYM (Qundecided, "undecided");
10023 DEFSYM (Qno_conversion, "no-conversion");
10024 DEFSYM (Qraw_text, "raw-text");
10025
10026 DEFSYM (Qiso_2022, "iso-2022");
10027
10028 DEFSYM (Qutf_8, "utf-8");
10029 DEFSYM (Qutf_8_emacs, "utf-8-emacs");
10030
10031 DEFSYM (Qutf_16, "utf-16");
10032 DEFSYM (Qbig, "big");
10033 DEFSYM (Qlittle, "little");
10034
10035 DEFSYM (Qshift_jis, "shift-jis");
10036 DEFSYM (Qbig5, "big5");
10037
10038 DEFSYM (Qcoding_system_p, "coding-system-p");
10039
10040 DEFSYM (Qcoding_system_error, "coding-system-error");
10041 Fput (Qcoding_system_error, Qerror_conditions,
10042 Fcons (Qcoding_system_error, Fcons (Qerror, Qnil)));
10043 Fput (Qcoding_system_error, Qerror_message,
10044 build_string ("Invalid coding system"));
10045
10046 /* Intern this now in case it isn't already done.
10047 Setting this variable twice is harmless.
10048 But don't staticpro it here--that is done in alloc.c. */
10049 Qchar_table_extra_slots = intern ("char-table-extra-slots");
10050
10051 DEFSYM (Qtranslation_table, "translation-table");
10052 Fput (Qtranslation_table, Qchar_table_extra_slots, make_number (2));
10053 DEFSYM (Qtranslation_table_id, "translation-table-id");
10054 DEFSYM (Qtranslation_table_for_decode, "translation-table-for-decode");
10055 DEFSYM (Qtranslation_table_for_encode, "translation-table-for-encode");
10056
10057 DEFSYM (Qvalid_codes, "valid-codes");
10058
10059 DEFSYM (Qemacs_mule, "emacs-mule");
10060
10061 DEFSYM (QCcategory, ":category");
10062 DEFSYM (QCmnemonic, ":mnemonic");
10063 DEFSYM (QCdefault_char, ":default-char");
10064 DEFSYM (QCdecode_translation_table, ":decode-translation-table");
10065 DEFSYM (QCencode_translation_table, ":encode-translation-table");
10066 DEFSYM (QCpost_read_conversion, ":post-read-conversion");
10067 DEFSYM (QCpre_write_conversion, ":pre-write-conversion");
10068 DEFSYM (QCascii_compatible_p, ":ascii-compatible-p");
10069
10070 Vcoding_category_table
10071 = Fmake_vector (make_number (coding_category_max), Qnil);
10072 staticpro (&Vcoding_category_table);
10073 /* Followings are target of code detection. */
10074 ASET (Vcoding_category_table, coding_category_iso_7,
10075 intern ("coding-category-iso-7"));
10076 ASET (Vcoding_category_table, coding_category_iso_7_tight,
10077 intern ("coding-category-iso-7-tight"));
10078 ASET (Vcoding_category_table, coding_category_iso_8_1,
10079 intern ("coding-category-iso-8-1"));
10080 ASET (Vcoding_category_table, coding_category_iso_8_2,
10081 intern ("coding-category-iso-8-2"));
10082 ASET (Vcoding_category_table, coding_category_iso_7_else,
10083 intern ("coding-category-iso-7-else"));
10084 ASET (Vcoding_category_table, coding_category_iso_8_else,
10085 intern ("coding-category-iso-8-else"));
10086 ASET (Vcoding_category_table, coding_category_utf_8_auto,
10087 intern ("coding-category-utf-8-auto"));
10088 ASET (Vcoding_category_table, coding_category_utf_8_nosig,
10089 intern ("coding-category-utf-8"));
10090 ASET (Vcoding_category_table, coding_category_utf_8_sig,
10091 intern ("coding-category-utf-8-sig"));
10092 ASET (Vcoding_category_table, coding_category_utf_16_be,
10093 intern ("coding-category-utf-16-be"));
10094 ASET (Vcoding_category_table, coding_category_utf_16_auto,
10095 intern ("coding-category-utf-16-auto"));
10096 ASET (Vcoding_category_table, coding_category_utf_16_le,
10097 intern ("coding-category-utf-16-le"));
10098 ASET (Vcoding_category_table, coding_category_utf_16_be_nosig,
10099 intern ("coding-category-utf-16-be-nosig"));
10100 ASET (Vcoding_category_table, coding_category_utf_16_le_nosig,
10101 intern ("coding-category-utf-16-le-nosig"));
10102 ASET (Vcoding_category_table, coding_category_charset,
10103 intern ("coding-category-charset"));
10104 ASET (Vcoding_category_table, coding_category_sjis,
10105 intern ("coding-category-sjis"));
10106 ASET (Vcoding_category_table, coding_category_big5,
10107 intern ("coding-category-big5"));
10108 ASET (Vcoding_category_table, coding_category_ccl,
10109 intern ("coding-category-ccl"));
10110 ASET (Vcoding_category_table, coding_category_emacs_mule,
10111 intern ("coding-category-emacs-mule"));
10112 /* Followings are NOT target of code detection. */
10113 ASET (Vcoding_category_table, coding_category_raw_text,
10114 intern ("coding-category-raw-text"));
10115 ASET (Vcoding_category_table, coding_category_undecided,
10116 intern ("coding-category-undecided"));
10117
10118 DEFSYM (Qinsufficient_source, "insufficient-source");
10119 DEFSYM (Qinconsistent_eol, "inconsistent-eol");
10120 DEFSYM (Qinvalid_source, "invalid-source");
10121 DEFSYM (Qinterrupted, "interrupted");
10122 DEFSYM (Qinsufficient_memory, "insufficient-memory");
10123 DEFSYM (Qcoding_system_define_form, "coding-system-define-form");
10124
10125 defsubr (&Scoding_system_p);
10126 defsubr (&Sread_coding_system);
10127 defsubr (&Sread_non_nil_coding_system);
10128 defsubr (&Scheck_coding_system);
10129 defsubr (&Sdetect_coding_region);
10130 defsubr (&Sdetect_coding_string);
10131 defsubr (&Sfind_coding_systems_region_internal);
10132 defsubr (&Sunencodable_char_position);
10133 defsubr (&Scheck_coding_systems_region);
10134 defsubr (&Sdecode_coding_region);
10135 defsubr (&Sencode_coding_region);
10136 defsubr (&Sdecode_coding_string);
10137 defsubr (&Sencode_coding_string);
10138 defsubr (&Sdecode_sjis_char);
10139 defsubr (&Sencode_sjis_char);
10140 defsubr (&Sdecode_big5_char);
10141 defsubr (&Sencode_big5_char);
10142 defsubr (&Sset_terminal_coding_system_internal);
10143 defsubr (&Sset_safe_terminal_coding_system_internal);
10144 defsubr (&Sterminal_coding_system);
10145 defsubr (&Sset_keyboard_coding_system_internal);
10146 defsubr (&Skeyboard_coding_system);
10147 defsubr (&Sfind_operation_coding_system);
10148 defsubr (&Sset_coding_system_priority);
10149 defsubr (&Sdefine_coding_system_internal);
10150 defsubr (&Sdefine_coding_system_alias);
10151 defsubr (&Scoding_system_put);
10152 defsubr (&Scoding_system_base);
10153 defsubr (&Scoding_system_plist);
10154 defsubr (&Scoding_system_aliases);
10155 defsubr (&Scoding_system_eol_type);
10156 defsubr (&Scoding_system_priority_list);
10157
10158 DEFVAR_LISP ("coding-system-list", &Vcoding_system_list,
10159 doc: /* List of coding systems.
10160
10161 Do not alter the value of this variable manually. This variable should be
10162 updated by the functions `define-coding-system' and
10163 `define-coding-system-alias'. */);
10164 Vcoding_system_list = Qnil;
10165
10166 DEFVAR_LISP ("coding-system-alist", &Vcoding_system_alist,
10167 doc: /* Alist of coding system names.
10168 Each element is one element list of coding system name.
10169 This variable is given to `completing-read' as COLLECTION argument.
10170
10171 Do not alter the value of this variable manually. This variable should be
10172 updated by the functions `make-coding-system' and
10173 `define-coding-system-alias'. */);
10174 Vcoding_system_alist = Qnil;
10175
10176 DEFVAR_LISP ("coding-category-list", &Vcoding_category_list,
10177 doc: /* List of coding-categories (symbols) ordered by priority.
10178
10179 On detecting a coding system, Emacs tries code detection algorithms
10180 associated with each coding-category one by one in this order. When
10181 one algorithm agrees with a byte sequence of source text, the coding
10182 system bound to the corresponding coding-category is selected.
10183
10184 Don't modify this variable directly, but use `set-coding-priority'. */);
10185 {
10186 int i;
10187
10188 Vcoding_category_list = Qnil;
10189 for (i = coding_category_max - 1; i >= 0; i--)
10190 Vcoding_category_list
10191 = Fcons (XVECTOR (Vcoding_category_table)->contents[i],
10192 Vcoding_category_list);
10193 }
10194
10195 DEFVAR_LISP ("coding-system-for-read", &Vcoding_system_for_read,
10196 doc: /* Specify the coding system for read operations.
10197 It is useful to bind this variable with `let', but do not set it globally.
10198 If the value is a coding system, it is used for decoding on read operation.
10199 If not, an appropriate element is used from one of the coding system alists.
10200 There are three such tables: `file-coding-system-alist',
10201 `process-coding-system-alist', and `network-coding-system-alist'. */);
10202 Vcoding_system_for_read = Qnil;
10203
10204 DEFVAR_LISP ("coding-system-for-write", &Vcoding_system_for_write,
10205 doc: /* Specify the coding system for write operations.
10206 Programs bind this variable with `let', but you should not set it globally.
10207 If the value is a coding system, it is used for encoding of output,
10208 when writing it to a file and when sending it to a file or subprocess.
10209
10210 If this does not specify a coding system, an appropriate element
10211 is used from one of the coding system alists.
10212 There are three such tables: `file-coding-system-alist',
10213 `process-coding-system-alist', and `network-coding-system-alist'.
10214 For output to files, if the above procedure does not specify a coding system,
10215 the value of `buffer-file-coding-system' is used. */);
10216 Vcoding_system_for_write = Qnil;
10217
10218 DEFVAR_LISP ("last-coding-system-used", &Vlast_coding_system_used,
10219 doc: /*
10220 Coding system used in the latest file or process I/O. */);
10221 Vlast_coding_system_used = Qnil;
10222
10223 DEFVAR_LISP ("last-code-conversion-error", &Vlast_code_conversion_error,
10224 doc: /*
10225 Error status of the last code conversion.
10226
10227 When an error was detected in the last code conversion, this variable
10228 is set to one of the following symbols.
10229 `insufficient-source'
10230 `inconsistent-eol'
10231 `invalid-source'
10232 `interrupted'
10233 `insufficient-memory'
10234 When no error was detected, the value doesn't change. So, to check
10235 the error status of a code conversion by this variable, you must
10236 explicitly set this variable to nil before performing code
10237 conversion. */);
10238 Vlast_code_conversion_error = Qnil;
10239
10240 DEFVAR_BOOL ("inhibit-eol-conversion", &inhibit_eol_conversion,
10241 doc: /*
10242 *Non-nil means always inhibit code conversion of end-of-line format.
10243 See info node `Coding Systems' and info node `Text and Binary' concerning
10244 such conversion. */);
10245 inhibit_eol_conversion = 0;
10246
10247 DEFVAR_BOOL ("inherit-process-coding-system", &inherit_process_coding_system,
10248 doc: /*
10249 Non-nil means process buffer inherits coding system of process output.
10250 Bind it to t if the process output is to be treated as if it were a file
10251 read from some filesystem. */);
10252 inherit_process_coding_system = 0;
10253
10254 DEFVAR_LISP ("file-coding-system-alist", &Vfile_coding_system_alist,
10255 doc: /*
10256 Alist to decide a coding system to use for a file I/O operation.
10257 The format is ((PATTERN . VAL) ...),
10258 where PATTERN is a regular expression matching a file name,
10259 VAL is a coding system, a cons of coding systems, or a function symbol.
10260 If VAL is a coding system, it is used for both decoding and encoding
10261 the file contents.
10262 If VAL is a cons of coding systems, the car part is used for decoding,
10263 and the cdr part is used for encoding.
10264 If VAL is a function symbol, the function must return a coding system
10265 or a cons of coding systems which are used as above. The function is
10266 called with an argument that is a list of the arguments with which
10267 `find-operation-coding-system' was called. If the function can't decide
10268 a coding system, it can return `undecided' so that the normal
10269 code-detection is performed.
10270
10271 See also the function `find-operation-coding-system'
10272 and the variable `auto-coding-alist'. */);
10273 Vfile_coding_system_alist = Qnil;
10274
10275 DEFVAR_LISP ("process-coding-system-alist", &Vprocess_coding_system_alist,
10276 doc: /*
10277 Alist to decide a coding system to use for a process I/O operation.
10278 The format is ((PATTERN . VAL) ...),
10279 where PATTERN is a regular expression matching a program name,
10280 VAL is a coding system, a cons of coding systems, or a function symbol.
10281 If VAL is a coding system, it is used for both decoding what received
10282 from the program and encoding what sent to the program.
10283 If VAL is a cons of coding systems, the car part is used for decoding,
10284 and the cdr part is used for encoding.
10285 If VAL is a function symbol, the function must return a coding system
10286 or a cons of coding systems which are used as above.
10287
10288 See also the function `find-operation-coding-system'. */);
10289 Vprocess_coding_system_alist = Qnil;
10290
10291 DEFVAR_LISP ("network-coding-system-alist", &Vnetwork_coding_system_alist,
10292 doc: /*
10293 Alist to decide a coding system to use for a network I/O operation.
10294 The format is ((PATTERN . VAL) ...),
10295 where PATTERN is a regular expression matching a network service name
10296 or is a port number to connect to,
10297 VAL is a coding system, a cons of coding systems, or a function symbol.
10298 If VAL is a coding system, it is used for both decoding what received
10299 from the network stream and encoding what sent to the network stream.
10300 If VAL is a cons of coding systems, the car part is used for decoding,
10301 and the cdr part is used for encoding.
10302 If VAL is a function symbol, the function must return a coding system
10303 or a cons of coding systems which are used as above.
10304
10305 See also the function `find-operation-coding-system'. */);
10306 Vnetwork_coding_system_alist = Qnil;
10307
10308 DEFVAR_LISP ("locale-coding-system", &Vlocale_coding_system,
10309 doc: /* Coding system to use with system messages.
10310 Also used for decoding keyboard input on X Window system. */);
10311 Vlocale_coding_system = Qnil;
10312
10313 /* The eol mnemonics are reset in startup.el system-dependently. */
10314 DEFVAR_LISP ("eol-mnemonic-unix", &eol_mnemonic_unix,
10315 doc: /*
10316 *String displayed in mode line for UNIX-like (LF) end-of-line format. */);
10317 eol_mnemonic_unix = build_string (":");
10318
10319 DEFVAR_LISP ("eol-mnemonic-dos", &eol_mnemonic_dos,
10320 doc: /*
10321 *String displayed in mode line for DOS-like (CRLF) end-of-line format. */);
10322 eol_mnemonic_dos = build_string ("\\");
10323
10324 DEFVAR_LISP ("eol-mnemonic-mac", &eol_mnemonic_mac,
10325 doc: /*
10326 *String displayed in mode line for MAC-like (CR) end-of-line format. */);
10327 eol_mnemonic_mac = build_string ("/");
10328
10329 DEFVAR_LISP ("eol-mnemonic-undecided", &eol_mnemonic_undecided,
10330 doc: /*
10331 *String displayed in mode line when end-of-line format is not yet determined. */);
10332 eol_mnemonic_undecided = build_string (":");
10333
10334 DEFVAR_LISP ("enable-character-translation", &Venable_character_translation,
10335 doc: /*
10336 *Non-nil enables character translation while encoding and decoding. */);
10337 Venable_character_translation = Qt;
10338
10339 DEFVAR_LISP ("standard-translation-table-for-decode",
10340 &Vstandard_translation_table_for_decode,
10341 doc: /* Table for translating characters while decoding. */);
10342 Vstandard_translation_table_for_decode = Qnil;
10343
10344 DEFVAR_LISP ("standard-translation-table-for-encode",
10345 &Vstandard_translation_table_for_encode,
10346 doc: /* Table for translating characters while encoding. */);
10347 Vstandard_translation_table_for_encode = Qnil;
10348
10349 DEFVAR_LISP ("charset-revision-table", &Vcharset_revision_table,
10350 doc: /* Alist of charsets vs revision numbers.
10351 While encoding, if a charset (car part of an element) is found,
10352 designate it with the escape sequence identifying revision (cdr part
10353 of the element). */);
10354 Vcharset_revision_table = Qnil;
10355
10356 DEFVAR_LISP ("default-process-coding-system",
10357 &Vdefault_process_coding_system,
10358 doc: /* Cons of coding systems used for process I/O by default.
10359 The car part is used for decoding a process output,
10360 the cdr part is used for encoding a text to be sent to a process. */);
10361 Vdefault_process_coding_system = Qnil;
10362
10363 DEFVAR_LISP ("latin-extra-code-table", &Vlatin_extra_code_table,
10364 doc: /*
10365 Table of extra Latin codes in the range 128..159 (inclusive).
10366 This is a vector of length 256.
10367 If Nth element is non-nil, the existence of code N in a file
10368 \(or output of subprocess) doesn't prevent it to be detected as
10369 a coding system of ISO 2022 variant which has a flag
10370 `accept-latin-extra-code' t (e.g. iso-latin-1) on reading a file
10371 or reading output of a subprocess.
10372 Only 128th through 159th elements have a meaning. */);
10373 Vlatin_extra_code_table = Fmake_vector (make_number (256), Qnil);
10374
10375 DEFVAR_LISP ("select-safe-coding-system-function",
10376 &Vselect_safe_coding_system_function,
10377 doc: /*
10378 Function to call to select safe coding system for encoding a text.
10379
10380 If set, this function is called to force a user to select a proper
10381 coding system which can encode the text in the case that a default
10382 coding system used in each operation can't encode the text. The
10383 function should take care that the buffer is not modified while
10384 the coding system is being selected.
10385
10386 The default value is `select-safe-coding-system' (which see). */);
10387 Vselect_safe_coding_system_function = Qnil;
10388
10389 DEFVAR_BOOL ("coding-system-require-warning",
10390 &coding_system_require_warning,
10391 doc: /* Internal use only.
10392 If non-nil, on writing a file, `select-safe-coding-system-function' is
10393 called even if `coding-system-for-write' is non-nil. The command
10394 `universal-coding-system-argument' binds this variable to t temporarily. */);
10395 coding_system_require_warning = 0;
10396
10397
10398 DEFVAR_BOOL ("inhibit-iso-escape-detection",
10399 &inhibit_iso_escape_detection,
10400 doc: /*
10401 If non-nil, Emacs ignores ISO-2022 escape sequences during code detection.
10402
10403 When Emacs reads text, it tries to detect how the text is encoded.
10404 This code detection is sensitive to escape sequences. If Emacs sees
10405 a valid ISO-2022 escape sequence, it assumes the text is encoded in one
10406 of the ISO2022 encodings, and decodes text by the corresponding coding
10407 system (e.g. `iso-2022-7bit').
10408
10409 However, there may be a case that you want to read escape sequences in
10410 a file as is. In such a case, you can set this variable to non-nil.
10411 Then the code detection will ignore any escape sequences, and no text is
10412 detected as encoded in some ISO-2022 encoding. The result is that all
10413 escape sequences become visible in a buffer.
10414
10415 The default value is nil, and it is strongly recommended not to change
10416 it. That is because many Emacs Lisp source files that contain
10417 non-ASCII characters are encoded by the coding system `iso-2022-7bit'
10418 in Emacs's distribution, and they won't be decoded correctly on
10419 reading if you suppress escape sequence detection.
10420
10421 The other way to read escape sequences in a file without decoding is
10422 to explicitly specify some coding system that doesn't use ISO-2022
10423 escape sequence (e.g `latin-1') on reading by \\[universal-coding-system-argument]. */);
10424 inhibit_iso_escape_detection = 0;
10425
10426 DEFVAR_BOOL ("inhibit-null-byte-detection",
10427 &inhibit_null_byte_detection,
10428 doc: /* If non-nil, Emacs ignores null bytes on code detection.
10429 By default, Emacs treats it as binary data, and does not attempt to
10430 decode it. The effect is as if you specified `no-conversion' for
10431 reading that text.
10432
10433 Set this to non-nil when a regular text happens to include null bytes.
10434 Examples are Index nodes of Info files and null-byte delimited output
10435 from GNU Find and GNU Grep. Emacs will then ignore the null bytes and
10436 decode text as usual. */);
10437 inhibit_null_byte_detection = 0;
10438
10439 DEFVAR_LISP ("translation-table-for-input", &Vtranslation_table_for_input,
10440 doc: /* Char table for translating self-inserting characters.
10441 This is applied to the result of input methods, not their input.
10442 See also `keyboard-translate-table'.
10443
10444 Use of this variable for character code unification was rendered
10445 obsolete in Emacs 23.1 and later, since Unicode is now the basis of
10446 internal character representation. */);
10447 Vtranslation_table_for_input = Qnil;
10448
10449 {
10450 Lisp_Object args[coding_arg_max];
10451 Lisp_Object plist[16];
10452 int i;
10453
10454 for (i = 0; i < coding_arg_max; i++)
10455 args[i] = Qnil;
10456
10457 plist[0] = intern (":name");
10458 plist[1] = args[coding_arg_name] = Qno_conversion;
10459 plist[2] = intern (":mnemonic");
10460 plist[3] = args[coding_arg_mnemonic] = make_number ('=');
10461 plist[4] = intern (":coding-type");
10462 plist[5] = args[coding_arg_coding_type] = Qraw_text;
10463 plist[6] = intern (":ascii-compatible-p");
10464 plist[7] = args[coding_arg_ascii_compatible_p] = Qt;
10465 plist[8] = intern (":default-char");
10466 plist[9] = args[coding_arg_default_char] = make_number (0);
10467 plist[10] = intern (":for-unibyte");
10468 plist[11] = args[coding_arg_for_unibyte] = Qt;
10469 plist[12] = intern (":docstring");
10470 plist[13] = build_string ("Do no conversion.\n\
10471 \n\
10472 When you visit a file with this coding, the file is read into a\n\
10473 unibyte buffer as is, thus each byte of a file is treated as a\n\
10474 character.");
10475 plist[14] = intern (":eol-type");
10476 plist[15] = args[coding_arg_eol_type] = Qunix;
10477 args[coding_arg_plist] = Flist (16, plist);
10478 Fdefine_coding_system_internal (coding_arg_max, args);
10479
10480 plist[1] = args[coding_arg_name] = Qundecided;
10481 plist[3] = args[coding_arg_mnemonic] = make_number ('-');
10482 plist[5] = args[coding_arg_coding_type] = Qundecided;
10483 /* This is already set.
10484 plist[7] = args[coding_arg_ascii_compatible_p] = Qt; */
10485 plist[8] = intern (":charset-list");
10486 plist[9] = args[coding_arg_charset_list] = Fcons (Qascii, Qnil);
10487 plist[11] = args[coding_arg_for_unibyte] = Qnil;
10488 plist[13] = build_string ("No conversion on encoding, automatic conversion on decoding.");
10489 plist[15] = args[coding_arg_eol_type] = Qnil;
10490 args[coding_arg_plist] = Flist (16, plist);
10491 Fdefine_coding_system_internal (coding_arg_max, args);
10492 }
10493
10494 setup_coding_system (Qno_conversion, &safe_terminal_coding);
10495
10496 {
10497 int i;
10498
10499 for (i = 0; i < coding_category_max; i++)
10500 Fset (AREF (Vcoding_category_table, i), Qno_conversion);
10501 }
10502 #if defined (MSDOS) || defined (WINDOWSNT)
10503 system_eol_type = Qdos;
10504 #else
10505 system_eol_type = Qunix;
10506 #endif
10507 staticpro (&system_eol_type);
10508 }
10509
10510 char *
10511 emacs_strerror (error_number)
10512 int error_number;
10513 {
10514 char *str;
10515
10516 synchronize_system_messages_locale ();
10517 str = strerror (error_number);
10518
10519 if (! NILP (Vlocale_coding_system))
10520 {
10521 Lisp_Object dec = code_convert_string_norecord (build_string (str),
10522 Vlocale_coding_system,
10523 0);
10524 str = (char *) SDATA (dec);
10525 }
10526
10527 return str;
10528 }
10529
10530 #endif /* emacs */
10531
10532 /* arch-tag: 3a3a2b01-5ff6-4071-9afe-f5b808d9229d
10533 (do not change this comment) */