(calc-kbd-report, calc-kbd-query): Don't bind `executing-kbd-macro'
[bpt/emacs.git] / src / coding.c
CommitLineData
4ed46869 1/* Coding system handler (conversion, detection, and etc).
ff955d90 2 Copyright (C) 1995, 1997, 1998, 2002 Electrotechnical Laboratory, JAPAN.
203cb916 3 Licensed to the Free Software Foundation.
70ad9fc4 4 Copyright (C) 2001 Free Software Foundation, Inc.
4ed46869 5
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6This file is part of GNU Emacs.
7
8GNU Emacs is free software; you can redistribute it and/or modify
9it under the terms of the GNU General Public License as published by
10the Free Software Foundation; either version 2, or (at your option)
11any later version.
4ed46869 12
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13GNU Emacs is distributed in the hope that it will be useful,
14but WITHOUT ANY WARRANTY; without even the implied warranty of
15MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16GNU General Public License for more details.
4ed46869 17
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18You should have received a copy of the GNU General Public License
19along with GNU Emacs; see the file COPYING. If not, write to
20the Free Software Foundation, Inc., 59 Temple Place - Suite 330,
21Boston, MA 02111-1307, USA. */
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22
23/*** TABLE OF CONTENTS ***
24
b73bfc1c 25 0. General comments
4ed46869 26 1. Preamble
0ef69138 27 2. Emacs' internal format (emacs-mule) handlers
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28 3. ISO2022 handlers
29 4. Shift-JIS and BIG5 handlers
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30 5. CCL handlers
31 6. End-of-line handlers
32 7. C library functions
33 8. Emacs Lisp library functions
34 9. Post-amble
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35
36*/
37
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38/*** 0. General comments ***/
39
40
cfb43547 41/*** GENERAL NOTE on CODING SYSTEMS ***
4ed46869 42
cfb43547 43 A coding system is an encoding mechanism for one or more character
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44 sets. Here's a list of coding systems which Emacs can handle. When
45 we say "decode", it means converting some other coding system to
cfb43547 46 Emacs' internal format (emacs-mule), and when we say "encode",
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47 it means converting the coding system emacs-mule to some other
48 coding system.
4ed46869 49
0ef69138 50 0. Emacs' internal format (emacs-mule)
4ed46869 51
cfb43547 52 Emacs itself holds a multi-lingual character in buffers and strings
f4dee582 53 in a special format. Details are described in section 2.
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54
55 1. ISO2022
56
57 The most famous coding system for multiple character sets. X's
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58 Compound Text, various EUCs (Extended Unix Code), and coding
59 systems used in Internet communication such as ISO-2022-JP are
60 all variants of ISO2022. Details are described in section 3.
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61
62 2. SJIS (or Shift-JIS or MS-Kanji-Code)
93dec019 63
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64 A coding system to encode character sets: ASCII, JISX0201, and
65 JISX0208. Widely used for PC's in Japan. Details are described in
f4dee582 66 section 4.
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67
68 3. BIG5
69
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70 A coding system to encode the character sets ASCII and Big5. Widely
71 used for Chinese (mainly in Taiwan and Hong Kong). Details are
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72 described in section 4. In this file, when we write "BIG5"
73 (all uppercase), we mean the coding system, and when we write
74 "Big5" (capitalized), we mean the character set.
4ed46869 75
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76 4. Raw text
77
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78 A coding system for text containing random 8-bit code. Emacs does
79 no code conversion on such text except for end-of-line format.
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80
81 5. Other
4ed46869 82
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83 If a user wants to read/write text encoded in a coding system not
84 listed above, he can supply a decoder and an encoder for it as CCL
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85 (Code Conversion Language) programs. Emacs executes the CCL program
86 while reading/writing.
87
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88 Emacs represents a coding system by a Lisp symbol that has a property
89 `coding-system'. But, before actually using the coding system, the
4ed46869 90 information about it is set in a structure of type `struct
f4dee582 91 coding_system' for rapid processing. See section 6 for more details.
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92
93*/
94
95/*** GENERAL NOTES on END-OF-LINE FORMAT ***
96
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97 How end-of-line of text is encoded depends on the operating system.
98 For instance, Unix's format is just one byte of `line-feed' code,
f4dee582 99 whereas DOS's format is two-byte sequence of `carriage-return' and
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100 `line-feed' codes. MacOS's format is usually one byte of
101 `carriage-return'.
4ed46869 102
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103 Since text character encoding and end-of-line encoding are
104 independent, any coding system described above can have any
105 end-of-line format. So Emacs has information about end-of-line
106 format in each coding-system. See section 6 for more details.
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107
108*/
109
110/*** GENERAL NOTES on `detect_coding_XXX ()' functions ***
111
112 These functions check if a text between SRC and SRC_END is encoded
113 in the coding system category XXX. Each returns an integer value in
cfb43547 114 which appropriate flag bits for the category XXX are set. The flag
4ed46869 115 bits are defined in macros CODING_CATEGORY_MASK_XXX. Below is the
cfb43547 116 template for these functions. If MULTIBYTEP is nonzero, 8-bit codes
0a28aafb 117 of the range 0x80..0x9F are in multibyte form. */
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118#if 0
119int
0a28aafb 120detect_coding_emacs_mule (src, src_end, multibytep)
4ed46869 121 unsigned char *src, *src_end;
0a28aafb 122 int multibytep;
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123{
124 ...
125}
126#endif
127
128/*** GENERAL NOTES on `decode_coding_XXX ()' functions ***
129
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130 These functions decode SRC_BYTES length of unibyte text at SOURCE
131 encoded in CODING to Emacs' internal format. The resulting
132 multibyte text goes to a place pointed to by DESTINATION, the length
133 of which should not exceed DST_BYTES.
d46c5b12 134
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135 These functions set the information about original and decoded texts
136 in the members `produced', `produced_char', `consumed', and
137 `consumed_char' of the structure *CODING. They also set the member
138 `result' to one of CODING_FINISH_XXX indicating how the decoding
139 finished.
d46c5b12 140
cfb43547 141 DST_BYTES zero means that the source area and destination area are
d46c5b12 142 overlapped, which means that we can produce a decoded text until it
cfb43547 143 reaches the head of the not-yet-decoded source text.
d46c5b12 144
cfb43547 145 Below is a template for these functions. */
4ed46869 146#if 0
b73bfc1c 147static void
d46c5b12 148decode_coding_XXX (coding, source, destination, src_bytes, dst_bytes)
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149 struct coding_system *coding;
150 unsigned char *source, *destination;
151 int src_bytes, dst_bytes;
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152{
153 ...
154}
155#endif
156
157/*** GENERAL NOTES on `encode_coding_XXX ()' functions ***
158
cfb43547 159 These functions encode SRC_BYTES length text at SOURCE from Emacs'
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160 internal multibyte format to CODING. The resulting unibyte text
161 goes to a place pointed to by DESTINATION, the length of which
162 should not exceed DST_BYTES.
d46c5b12 163
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164 These functions set the information about original and encoded texts
165 in the members `produced', `produced_char', `consumed', and
166 `consumed_char' of the structure *CODING. They also set the member
167 `result' to one of CODING_FINISH_XXX indicating how the encoding
168 finished.
d46c5b12 169
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170 DST_BYTES zero means that the source area and destination area are
171 overlapped, which means that we can produce encoded text until it
172 reaches at the head of the not-yet-encoded source text.
d46c5b12 173
cfb43547 174 Below is a template for these functions. */
4ed46869 175#if 0
b73bfc1c 176static void
d46c5b12 177encode_coding_XXX (coding, source, destination, src_bytes, dst_bytes)
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178 struct coding_system *coding;
179 unsigned char *source, *destination;
180 int src_bytes, dst_bytes;
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181{
182 ...
183}
184#endif
185
186/*** COMMONLY USED MACROS ***/
187
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188/* The following two macros ONE_MORE_BYTE and TWO_MORE_BYTES safely
189 get one, two, and three bytes from the source text respectively.
190 If there are not enough bytes in the source, they jump to
191 `label_end_of_loop'. The caller should set variables `coding',
192 `src' and `src_end' to appropriate pointer in advance. These
193 macros are called from decoding routines `decode_coding_XXX', thus
194 it is assumed that the source text is unibyte. */
4ed46869 195
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196#define ONE_MORE_BYTE(c1) \
197 do { \
198 if (src >= src_end) \
199 { \
200 coding->result = CODING_FINISH_INSUFFICIENT_SRC; \
201 goto label_end_of_loop; \
202 } \
203 c1 = *src++; \
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204 } while (0)
205
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206#define TWO_MORE_BYTES(c1, c2) \
207 do { \
208 if (src + 1 >= src_end) \
209 { \
210 coding->result = CODING_FINISH_INSUFFICIENT_SRC; \
211 goto label_end_of_loop; \
212 } \
213 c1 = *src++; \
214 c2 = *src++; \
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215 } while (0)
216
4ed46869 217
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218/* Like ONE_MORE_BYTE, but 8-bit bytes of data at SRC are in multibyte
219 form if MULTIBYTEP is nonzero. */
220
221#define ONE_MORE_BYTE_CHECK_MULTIBYTE(c1, multibytep) \
222 do { \
223 if (src >= src_end) \
224 { \
225 coding->result = CODING_FINISH_INSUFFICIENT_SRC; \
226 goto label_end_of_loop; \
227 } \
228 c1 = *src++; \
229 if (multibytep && c1 == LEADING_CODE_8_BIT_CONTROL) \
230 c1 = *src++ - 0x20; \
231 } while (0)
232
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233/* Set C to the next character at the source text pointed by `src'.
234 If there are not enough characters in the source, jump to
235 `label_end_of_loop'. The caller should set variables `coding'
236 `src', `src_end', and `translation_table' to appropriate pointers
237 in advance. This macro is used in encoding routines
238 `encode_coding_XXX', thus it assumes that the source text is in
239 multibyte form except for 8-bit characters. 8-bit characters are
240 in multibyte form if coding->src_multibyte is nonzero, else they
241 are represented by a single byte. */
4ed46869 242
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243#define ONE_MORE_CHAR(c) \
244 do { \
245 int len = src_end - src; \
246 int bytes; \
247 if (len <= 0) \
248 { \
249 coding->result = CODING_FINISH_INSUFFICIENT_SRC; \
250 goto label_end_of_loop; \
251 } \
252 if (coding->src_multibyte \
253 || UNIBYTE_STR_AS_MULTIBYTE_P (src, len, bytes)) \
254 c = STRING_CHAR_AND_LENGTH (src, len, bytes); \
255 else \
256 c = *src, bytes = 1; \
257 if (!NILP (translation_table)) \
39658efc 258 c = translate_char (translation_table, c, -1, 0, 0); \
b73bfc1c 259 src += bytes; \
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260 } while (0)
261
4ed46869 262
8ca3766a 263/* Produce a multibyte form of character C to `dst'. Jump to
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264 `label_end_of_loop' if there's not enough space at `dst'.
265
cfb43547 266 If we are now in the middle of a composition sequence, the decoded
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267 character may be ALTCHAR (for the current composition). In that
268 case, the character goes to coding->cmp_data->data instead of
269 `dst'.
270
271 This macro is used in decoding routines. */
272
273#define EMIT_CHAR(c) \
4ed46869 274 do { \
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275 if (! COMPOSING_P (coding) \
276 || coding->composing == COMPOSITION_RELATIVE \
277 || coding->composing == COMPOSITION_WITH_RULE) \
278 { \
279 int bytes = CHAR_BYTES (c); \
280 if ((dst + bytes) > (dst_bytes ? dst_end : src)) \
281 { \
282 coding->result = CODING_FINISH_INSUFFICIENT_DST; \
283 goto label_end_of_loop; \
284 } \
285 dst += CHAR_STRING (c, dst); \
286 coding->produced_char++; \
287 } \
ec6d2bb8 288 \
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289 if (COMPOSING_P (coding) \
290 && coding->composing != COMPOSITION_RELATIVE) \
291 { \
292 CODING_ADD_COMPOSITION_COMPONENT (coding, c); \
293 coding->composition_rule_follows \
294 = coding->composing != COMPOSITION_WITH_ALTCHARS; \
295 } \
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296 } while (0)
297
4ed46869 298
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299#define EMIT_ONE_BYTE(c) \
300 do { \
301 if (dst >= (dst_bytes ? dst_end : src)) \
302 { \
303 coding->result = CODING_FINISH_INSUFFICIENT_DST; \
304 goto label_end_of_loop; \
305 } \
306 *dst++ = c; \
307 } while (0)
308
309#define EMIT_TWO_BYTES(c1, c2) \
310 do { \
311 if (dst + 2 > (dst_bytes ? dst_end : src)) \
312 { \
313 coding->result = CODING_FINISH_INSUFFICIENT_DST; \
314 goto label_end_of_loop; \
315 } \
316 *dst++ = c1, *dst++ = c2; \
317 } while (0)
318
319#define EMIT_BYTES(from, to) \
320 do { \
321 if (dst + (to - from) > (dst_bytes ? dst_end : src)) \
322 { \
323 coding->result = CODING_FINISH_INSUFFICIENT_DST; \
324 goto label_end_of_loop; \
325 } \
326 while (from < to) \
327 *dst++ = *from++; \
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328 } while (0)
329
330\f
331/*** 1. Preamble ***/
332
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333#ifdef emacs
334#include <config.h>
335#endif
336
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337#include <stdio.h>
338
339#ifdef emacs
340
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341#include "lisp.h"
342#include "buffer.h"
343#include "charset.h"
ec6d2bb8 344#include "composite.h"
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345#include "ccl.h"
346#include "coding.h"
347#include "window.h"
348
349#else /* not emacs */
350
351#include "mulelib.h"
352
353#endif /* not emacs */
354
355Lisp_Object Qcoding_system, Qeol_type;
356Lisp_Object Qbuffer_file_coding_system;
357Lisp_Object Qpost_read_conversion, Qpre_write_conversion;
27901516 358Lisp_Object Qno_conversion, Qundecided;
bb0115a2 359Lisp_Object Qcoding_system_history;
05e6f5dc 360Lisp_Object Qsafe_chars;
1397dc18 361Lisp_Object Qvalid_codes;
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362
363extern Lisp_Object Qinsert_file_contents, Qwrite_region;
364Lisp_Object Qcall_process, Qcall_process_region, Qprocess_argument;
365Lisp_Object Qstart_process, Qopen_network_stream;
366Lisp_Object Qtarget_idx;
367
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368Lisp_Object Vselect_safe_coding_system_function;
369
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370/* Mnemonic string for each format of end-of-line. */
371Lisp_Object eol_mnemonic_unix, eol_mnemonic_dos, eol_mnemonic_mac;
372/* Mnemonic string to indicate format of end-of-line is not yet
4ed46869 373 decided. */
7722baf9 374Lisp_Object eol_mnemonic_undecided;
4ed46869 375
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376/* Format of end-of-line decided by system. This is CODING_EOL_LF on
377 Unix, CODING_EOL_CRLF on DOS/Windows, and CODING_EOL_CR on Mac. */
378int system_eol_type;
379
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380#ifdef emacs
381
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382Lisp_Object Vcoding_system_list, Vcoding_system_alist;
383
384Lisp_Object Qcoding_system_p, Qcoding_system_error;
4ed46869 385
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386/* Coding system emacs-mule and raw-text are for converting only
387 end-of-line format. */
388Lisp_Object Qemacs_mule, Qraw_text;
9ce27fde 389
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390/* Coding-systems are handed between Emacs Lisp programs and C internal
391 routines by the following three variables. */
392/* Coding-system for reading files and receiving data from process. */
393Lisp_Object Vcoding_system_for_read;
394/* Coding-system for writing files and sending data to process. */
395Lisp_Object Vcoding_system_for_write;
396/* Coding-system actually used in the latest I/O. */
397Lisp_Object Vlast_coding_system_used;
398
c4825358 399/* A vector of length 256 which contains information about special
94487c4e 400 Latin codes (especially for dealing with Microsoft codes). */
3f003981 401Lisp_Object Vlatin_extra_code_table;
c4825358 402
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403/* Flag to inhibit code conversion of end-of-line format. */
404int inhibit_eol_conversion;
405
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406/* Flag to inhibit ISO2022 escape sequence detection. */
407int inhibit_iso_escape_detection;
408
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409/* Flag to make buffer-file-coding-system inherit from process-coding. */
410int inherit_process_coding_system;
411
c4825358 412/* Coding system to be used to encode text for terminal display. */
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413struct coding_system terminal_coding;
414
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415/* Coding system to be used to encode text for terminal display when
416 terminal coding system is nil. */
417struct coding_system safe_terminal_coding;
418
419/* Coding system of what is sent from terminal keyboard. */
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420struct coding_system keyboard_coding;
421
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422/* Default coding system to be used to write a file. */
423struct coding_system default_buffer_file_coding;
424
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425Lisp_Object Vfile_coding_system_alist;
426Lisp_Object Vprocess_coding_system_alist;
427Lisp_Object Vnetwork_coding_system_alist;
4ed46869 428
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429Lisp_Object Vlocale_coding_system;
430
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431#endif /* emacs */
432
d46c5b12 433Lisp_Object Qcoding_category, Qcoding_category_index;
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434
435/* List of symbols `coding-category-xxx' ordered by priority. */
436Lisp_Object Vcoding_category_list;
437
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438/* Table of coding categories (Lisp symbols). */
439Lisp_Object Vcoding_category_table;
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440
441/* Table of names of symbol for each coding-category. */
442char *coding_category_name[CODING_CATEGORY_IDX_MAX] = {
0ef69138 443 "coding-category-emacs-mule",
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444 "coding-category-sjis",
445 "coding-category-iso-7",
d46c5b12 446 "coding-category-iso-7-tight",
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447 "coding-category-iso-8-1",
448 "coding-category-iso-8-2",
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449 "coding-category-iso-7-else",
450 "coding-category-iso-8-else",
89fa8b36 451 "coding-category-ccl",
4ed46869 452 "coding-category-big5",
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453 "coding-category-utf-8",
454 "coding-category-utf-16-be",
455 "coding-category-utf-16-le",
27901516 456 "coding-category-raw-text",
89fa8b36 457 "coding-category-binary"
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458};
459
66cfb530 460/* Table of pointers to coding systems corresponding to each coding
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461 categories. */
462struct coding_system *coding_system_table[CODING_CATEGORY_IDX_MAX];
463
66cfb530 464/* Table of coding category masks. Nth element is a mask for a coding
8ca3766a 465 category of which priority is Nth. */
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466static
467int coding_priorities[CODING_CATEGORY_IDX_MAX];
468
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469/* Flag to tell if we look up translation table on character code
470 conversion. */
84fbb8a0 471Lisp_Object Venable_character_translation;
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472/* Standard translation table to look up on decoding (reading). */
473Lisp_Object Vstandard_translation_table_for_decode;
474/* Standard translation table to look up on encoding (writing). */
475Lisp_Object Vstandard_translation_table_for_encode;
84fbb8a0 476
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477Lisp_Object Qtranslation_table;
478Lisp_Object Qtranslation_table_id;
479Lisp_Object Qtranslation_table_for_decode;
480Lisp_Object Qtranslation_table_for_encode;
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481
482/* Alist of charsets vs revision number. */
483Lisp_Object Vcharset_revision_alist;
484
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485/* Default coding systems used for process I/O. */
486Lisp_Object Vdefault_process_coding_system;
487
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488/* Global flag to tell that we can't call post-read-conversion and
489 pre-write-conversion functions. Usually the value is zero, but it
490 is set to 1 temporarily while such functions are running. This is
491 to avoid infinite recursive call. */
492static int inhibit_pre_post_conversion;
493
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494/* Char-table containing safe coding systems of each character. */
495Lisp_Object Vchar_coding_system_table;
496Lisp_Object Qchar_coding_system;
497
498/* Return `safe-chars' property of coding system CODING. Don't check
499 validity of CODING. */
500
501Lisp_Object
502coding_safe_chars (coding)
503 struct coding_system *coding;
504{
505 Lisp_Object coding_spec, plist, safe_chars;
93dec019 506
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507 coding_spec = Fget (coding->symbol, Qcoding_system);
508 plist = XVECTOR (coding_spec)->contents[3];
509 safe_chars = Fplist_get (XVECTOR (coding_spec)->contents[3], Qsafe_chars);
510 return (CHAR_TABLE_P (safe_chars) ? safe_chars : Qt);
511}
512
513#define CODING_SAFE_CHAR_P(safe_chars, c) \
514 (EQ (safe_chars, Qt) || !NILP (CHAR_TABLE_REF (safe_chars, c)))
515
4ed46869 516\f
0ef69138 517/*** 2. Emacs internal format (emacs-mule) handlers ***/
4ed46869 518
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519/* Emacs' internal format for representation of multiple character
520 sets is a kind of multi-byte encoding, i.e. characters are
521 represented by variable-length sequences of one-byte codes.
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522
523 ASCII characters and control characters (e.g. `tab', `newline') are
524 represented by one-byte sequences which are their ASCII codes, in
525 the range 0x00 through 0x7F.
526
527 8-bit characters of the range 0x80..0x9F are represented by
528 two-byte sequences of LEADING_CODE_8_BIT_CONTROL and (their 8-bit
529 code + 0x20).
530
531 8-bit characters of the range 0xA0..0xFF are represented by
532 one-byte sequences which are their 8-bit code.
533
534 The other characters are represented by a sequence of `base
535 leading-code', optional `extended leading-code', and one or two
536 `position-code's. The length of the sequence is determined by the
aa72b389 537 base leading-code. Leading-code takes the range 0x81 through 0x9D,
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538 whereas extended leading-code and position-code take the range 0xA0
539 through 0xFF. See `charset.h' for more details about leading-code
540 and position-code.
f4dee582 541
4ed46869 542 --- CODE RANGE of Emacs' internal format ---
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543 character set range
544 ------------- -----
545 ascii 0x00..0x7F
546 eight-bit-control LEADING_CODE_8_BIT_CONTROL + 0xA0..0xBF
547 eight-bit-graphic 0xA0..0xBF
aa72b389 548 ELSE 0x81..0x9D + [0xA0..0xFF]+
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549 ---------------------------------------------
550
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551 As this is the internal character representation, the format is
552 usually not used externally (i.e. in a file or in a data sent to a
553 process). But, it is possible to have a text externally in this
554 format (i.e. by encoding by the coding system `emacs-mule').
555
556 In that case, a sequence of one-byte codes has a slightly different
557 form.
558
ae5145c2 559 Firstly, all characters in eight-bit-control are represented by
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560 one-byte sequences which are their 8-bit code.
561
562 Next, character composition data are represented by the byte
563 sequence of the form: 0x80 METHOD BYTES CHARS COMPONENT ...,
564 where,
565 METHOD is 0xF0 plus one of composition method (enum
566 composition_method),
567
ae5145c2 568 BYTES is 0xA0 plus the byte length of these composition data,
aa72b389 569
ae5145c2 570 CHARS is 0xA0 plus the number of characters composed by these
aa72b389
KH
571 data,
572
8ca3766a 573 COMPONENTs are characters of multibyte form or composition
aa72b389
KH
574 rules encoded by two-byte of ASCII codes.
575
576 In addition, for backward compatibility, the following formats are
577 also recognized as composition data on decoding.
578
579 0x80 MSEQ ...
580 0x80 0xFF MSEQ RULE MSEQ RULE ... MSEQ
581
582 Here,
583 MSEQ is a multibyte form but in these special format:
584 ASCII: 0xA0 ASCII_CODE+0x80,
585 other: LEADING_CODE+0x20 FOLLOWING-BYTE ...,
586 RULE is a one byte code of the range 0xA0..0xF0 that
587 represents a composition rule.
4ed46869
KH
588 */
589
590enum emacs_code_class_type emacs_code_class[256];
591
4ed46869
KH
592/* See the above "GENERAL NOTES on `detect_coding_XXX ()' functions".
593 Check if a text is encoded in Emacs' internal format. If it is,
d46c5b12 594 return CODING_CATEGORY_MASK_EMACS_MULE, else return 0. */
4ed46869 595
0a28aafb
KH
596static int
597detect_coding_emacs_mule (src, src_end, multibytep)
b73bfc1c 598 unsigned char *src, *src_end;
0a28aafb 599 int multibytep;
4ed46869
KH
600{
601 unsigned char c;
602 int composing = 0;
b73bfc1c
KH
603 /* Dummy for ONE_MORE_BYTE. */
604 struct coding_system dummy_coding;
605 struct coding_system *coding = &dummy_coding;
4ed46869 606
b73bfc1c 607 while (1)
4ed46869 608 {
0a28aafb 609 ONE_MORE_BYTE_CHECK_MULTIBYTE (c, multibytep);
4ed46869
KH
610
611 if (composing)
612 {
613 if (c < 0xA0)
614 composing = 0;
b73bfc1c
KH
615 else if (c == 0xA0)
616 {
0a28aafb 617 ONE_MORE_BYTE_CHECK_MULTIBYTE (c, multibytep);
b73bfc1c
KH
618 c &= 0x7F;
619 }
4ed46869
KH
620 else
621 c -= 0x20;
622 }
623
b73bfc1c 624 if (c < 0x20)
4ed46869 625 {
4ed46869
KH
626 if (c == ISO_CODE_ESC || c == ISO_CODE_SI || c == ISO_CODE_SO)
627 return 0;
b73bfc1c
KH
628 }
629 else if (c >= 0x80 && c < 0xA0)
630 {
631 if (c == 0x80)
632 /* Old leading code for a composite character. */
633 composing = 1;
634 else
635 {
636 unsigned char *src_base = src - 1;
637 int bytes;
4ed46869 638
b73bfc1c
KH
639 if (!UNIBYTE_STR_AS_MULTIBYTE_P (src_base, src_end - src_base,
640 bytes))
641 return 0;
642 src = src_base + bytes;
643 }
644 }
645 }
646 label_end_of_loop:
647 return CODING_CATEGORY_MASK_EMACS_MULE;
648}
4ed46869 649
4ed46869 650
aa72b389
KH
651/* Record the starting position START and METHOD of one composition. */
652
653#define CODING_ADD_COMPOSITION_START(coding, start, method) \
654 do { \
655 struct composition_data *cmp_data = coding->cmp_data; \
656 int *data = cmp_data->data + cmp_data->used; \
657 coding->cmp_data_start = cmp_data->used; \
658 data[0] = -1; \
659 data[1] = cmp_data->char_offset + start; \
660 data[3] = (int) method; \
661 cmp_data->used += 4; \
662 } while (0)
663
664/* Record the ending position END of the current composition. */
665
666#define CODING_ADD_COMPOSITION_END(coding, end) \
667 do { \
668 struct composition_data *cmp_data = coding->cmp_data; \
669 int *data = cmp_data->data + coding->cmp_data_start; \
670 data[0] = cmp_data->used - coding->cmp_data_start; \
671 data[2] = cmp_data->char_offset + end; \
672 } while (0)
673
674/* Record one COMPONENT (alternate character or composition rule). */
675
676#define CODING_ADD_COMPOSITION_COMPONENT(coding, component) \
677 (coding->cmp_data->data[coding->cmp_data->used++] = component)
678
679
680/* Get one byte from a data pointed by SRC and increment SRC. If SRC
8ca3766a 681 is not less than SRC_END, return -1 without incrementing Src. */
aa72b389
KH
682
683#define SAFE_ONE_MORE_BYTE() (src >= src_end ? -1 : *src++)
684
685
686/* Decode a character represented as a component of composition
687 sequence of Emacs 20 style at SRC. Set C to that character, store
688 its multibyte form sequence at P, and set P to the end of that
689 sequence. If no valid character is found, set C to -1. */
690
691#define DECODE_EMACS_MULE_COMPOSITION_CHAR(c, p) \
692 do { \
693 int bytes; \
694 \
695 c = SAFE_ONE_MORE_BYTE (); \
696 if (c < 0) \
697 break; \
698 if (CHAR_HEAD_P (c)) \
699 c = -1; \
700 else if (c == 0xA0) \
701 { \
702 c = SAFE_ONE_MORE_BYTE (); \
703 if (c < 0xA0) \
704 c = -1; \
705 else \
706 { \
707 c -= 0xA0; \
708 *p++ = c; \
709 } \
710 } \
711 else if (BASE_LEADING_CODE_P (c - 0x20)) \
712 { \
713 unsigned char *p0 = p; \
714 \
715 c -= 0x20; \
716 *p++ = c; \
717 bytes = BYTES_BY_CHAR_HEAD (c); \
718 while (--bytes) \
719 { \
720 c = SAFE_ONE_MORE_BYTE (); \
721 if (c < 0) \
722 break; \
723 *p++ = c; \
724 } \
725 if (UNIBYTE_STR_AS_MULTIBYTE_P (p0, p - p0, bytes)) \
726 c = STRING_CHAR (p0, bytes); \
727 else \
728 c = -1; \
729 } \
730 else \
731 c = -1; \
732 } while (0)
733
734
735/* Decode a composition rule represented as a component of composition
736 sequence of Emacs 20 style at SRC. Set C to the rule. If not
737 valid rule is found, set C to -1. */
738
739#define DECODE_EMACS_MULE_COMPOSITION_RULE(c) \
740 do { \
741 c = SAFE_ONE_MORE_BYTE (); \
742 c -= 0xA0; \
743 if (c < 0 || c >= 81) \
744 c = -1; \
745 else \
746 { \
747 gref = c / 9, nref = c % 9; \
748 c = COMPOSITION_ENCODE_RULE (gref, nref); \
749 } \
750 } while (0)
751
752
753/* Decode composition sequence encoded by `emacs-mule' at the source
754 pointed by SRC. SRC_END is the end of source. Store information
755 of the composition in CODING->cmp_data.
756
757 For backward compatibility, decode also a composition sequence of
758 Emacs 20 style. In that case, the composition sequence contains
759 characters that should be extracted into a buffer or string. Store
760 those characters at *DESTINATION in multibyte form.
761
762 If we encounter an invalid byte sequence, return 0.
763 If we encounter an insufficient source or destination, or
764 insufficient space in CODING->cmp_data, return 1.
765 Otherwise, return consumed bytes in the source.
766
767*/
768static INLINE int
769decode_composition_emacs_mule (coding, src, src_end,
770 destination, dst_end, dst_bytes)
771 struct coding_system *coding;
772 unsigned char *src, *src_end, **destination, *dst_end;
773 int dst_bytes;
774{
775 unsigned char *dst = *destination;
776 int method, data_len, nchars;
777 unsigned char *src_base = src++;
8ca3766a 778 /* Store components of composition. */
aa72b389
KH
779 int component[COMPOSITION_DATA_MAX_BUNCH_LENGTH];
780 int ncomponent;
781 /* Store multibyte form of characters to be composed. This is for
782 Emacs 20 style composition sequence. */
783 unsigned char buf[MAX_COMPOSITION_COMPONENTS * MAX_MULTIBYTE_LENGTH];
784 unsigned char *bufp = buf;
785 int c, i, gref, nref;
786
787 if (coding->cmp_data->used + COMPOSITION_DATA_MAX_BUNCH_LENGTH
788 >= COMPOSITION_DATA_SIZE)
789 {
790 coding->result = CODING_FINISH_INSUFFICIENT_CMP;
791 return -1;
792 }
793
794 ONE_MORE_BYTE (c);
795 if (c - 0xF0 >= COMPOSITION_RELATIVE
796 && c - 0xF0 <= COMPOSITION_WITH_RULE_ALTCHARS)
797 {
798 int with_rule;
799
800 method = c - 0xF0;
801 with_rule = (method == COMPOSITION_WITH_RULE
802 || method == COMPOSITION_WITH_RULE_ALTCHARS);
803 ONE_MORE_BYTE (c);
804 data_len = c - 0xA0;
805 if (data_len < 4
806 || src_base + data_len > src_end)
807 return 0;
808 ONE_MORE_BYTE (c);
809 nchars = c - 0xA0;
810 if (c < 1)
811 return 0;
812 for (ncomponent = 0; src < src_base + data_len; ncomponent++)
813 {
b1887814
RS
814 /* If it is longer than this, it can't be valid. */
815 if (ncomponent >= COMPOSITION_DATA_MAX_BUNCH_LENGTH)
816 return 0;
817
aa72b389
KH
818 if (ncomponent % 2 && with_rule)
819 {
820 ONE_MORE_BYTE (gref);
821 gref -= 32;
822 ONE_MORE_BYTE (nref);
823 nref -= 32;
824 c = COMPOSITION_ENCODE_RULE (gref, nref);
825 }
826 else
827 {
828 int bytes;
829 if (UNIBYTE_STR_AS_MULTIBYTE_P (src, src_end - src, bytes))
830 c = STRING_CHAR (src, bytes);
831 else
832 c = *src, bytes = 1;
833 src += bytes;
834 }
835 component[ncomponent] = c;
836 }
837 }
838 else
839 {
840 /* This may be an old Emacs 20 style format. See the comment at
841 the section 2 of this file. */
842 while (src < src_end && !CHAR_HEAD_P (*src)) src++;
843 if (src == src_end
844 && !(coding->mode & CODING_MODE_LAST_BLOCK))
845 goto label_end_of_loop;
846
847 src_end = src;
848 src = src_base + 1;
849 if (c < 0xC0)
850 {
851 method = COMPOSITION_RELATIVE;
852 for (ncomponent = 0; ncomponent < MAX_COMPOSITION_COMPONENTS;)
853 {
854 DECODE_EMACS_MULE_COMPOSITION_CHAR (c, bufp);
855 if (c < 0)
856 break;
857 component[ncomponent++] = c;
858 }
859 if (ncomponent < 2)
860 return 0;
861 nchars = ncomponent;
862 }
863 else if (c == 0xFF)
864 {
865 method = COMPOSITION_WITH_RULE;
866 src++;
867 DECODE_EMACS_MULE_COMPOSITION_CHAR (c, bufp);
868 if (c < 0)
869 return 0;
870 component[0] = c;
871 for (ncomponent = 1;
872 ncomponent < MAX_COMPOSITION_COMPONENTS * 2 - 1;)
873 {
874 DECODE_EMACS_MULE_COMPOSITION_RULE (c);
875 if (c < 0)
876 break;
877 component[ncomponent++] = c;
878 DECODE_EMACS_MULE_COMPOSITION_CHAR (c, bufp);
879 if (c < 0)
880 break;
881 component[ncomponent++] = c;
882 }
883 if (ncomponent < 3)
884 return 0;
885 nchars = (ncomponent + 1) / 2;
886 }
887 else
888 return 0;
889 }
890
891 if (buf == bufp || dst + (bufp - buf) <= (dst_bytes ? dst_end : src))
892 {
893 CODING_ADD_COMPOSITION_START (coding, coding->produced_char, method);
894 for (i = 0; i < ncomponent; i++)
895 CODING_ADD_COMPOSITION_COMPONENT (coding, component[i]);
93dec019 896 CODING_ADD_COMPOSITION_END (coding, coding->produced_char + nchars);
aa72b389
KH
897 if (buf < bufp)
898 {
899 unsigned char *p = buf;
900 EMIT_BYTES (p, bufp);
901 *destination += bufp - buf;
902 coding->produced_char += nchars;
903 }
904 return (src - src_base);
905 }
906 label_end_of_loop:
907 return -1;
908}
909
b73bfc1c 910/* See the above "GENERAL NOTES on `decode_coding_XXX ()' functions". */
4ed46869 911
b73bfc1c
KH
912static void
913decode_coding_emacs_mule (coding, source, destination, src_bytes, dst_bytes)
914 struct coding_system *coding;
915 unsigned char *source, *destination;
916 int src_bytes, dst_bytes;
917{
918 unsigned char *src = source;
919 unsigned char *src_end = source + src_bytes;
920 unsigned char *dst = destination;
921 unsigned char *dst_end = destination + dst_bytes;
922 /* SRC_BASE remembers the start position in source in each loop.
923 The loop will be exited when there's not enough source code, or
924 when there's not enough destination area to produce a
925 character. */
926 unsigned char *src_base;
4ed46869 927
b73bfc1c 928 coding->produced_char = 0;
8a33cf7b 929 while ((src_base = src) < src_end)
b73bfc1c
KH
930 {
931 unsigned char tmp[MAX_MULTIBYTE_LENGTH], *p;
932 int bytes;
ec6d2bb8 933
4af310db
EZ
934 if (*src == '\r')
935 {
2bcdf662 936 int c = *src++;
4af310db 937
4af310db
EZ
938 if (coding->eol_type == CODING_EOL_CR)
939 c = '\n';
940 else if (coding->eol_type == CODING_EOL_CRLF)
941 {
942 ONE_MORE_BYTE (c);
943 if (c != '\n')
944 {
945 if (coding->mode & CODING_MODE_INHIBIT_INCONSISTENT_EOL)
946 {
947 coding->result = CODING_FINISH_INCONSISTENT_EOL;
948 goto label_end_of_loop;
949 }
950 src--;
951 c = '\r';
952 }
953 }
954 *dst++ = c;
955 coding->produced_char++;
956 continue;
957 }
958 else if (*src == '\n')
959 {
960 if ((coding->eol_type == CODING_EOL_CR
961 || coding->eol_type == CODING_EOL_CRLF)
962 && coding->mode & CODING_MODE_INHIBIT_INCONSISTENT_EOL)
963 {
964 coding->result = CODING_FINISH_INCONSISTENT_EOL;
965 goto label_end_of_loop;
966 }
967 *dst++ = *src++;
968 coding->produced_char++;
969 continue;
970 }
aa72b389
KH
971 else if (*src == 0x80)
972 {
973 /* Start of composition data. */
974 int consumed = decode_composition_emacs_mule (coding, src, src_end,
975 &dst, dst_end,
976 dst_bytes);
977 if (consumed < 0)
978 goto label_end_of_loop;
979 else if (consumed > 0)
980 {
981 src += consumed;
982 continue;
983 }
984 bytes = CHAR_STRING (*src, tmp);
985 p = tmp;
986 src++;
987 }
4af310db 988 else if (UNIBYTE_STR_AS_MULTIBYTE_P (src, src_end - src, bytes))
b73bfc1c
KH
989 {
990 p = src;
991 src += bytes;
992 }
993 else
994 {
995 bytes = CHAR_STRING (*src, tmp);
996 p = tmp;
997 src++;
998 }
999 if (dst + bytes >= (dst_bytes ? dst_end : src))
1000 {
1001 coding->result = CODING_FINISH_INSUFFICIENT_DST;
4ed46869
KH
1002 break;
1003 }
b73bfc1c
KH
1004 while (bytes--) *dst++ = *p++;
1005 coding->produced_char++;
4ed46869 1006 }
4af310db 1007 label_end_of_loop:
b73bfc1c
KH
1008 coding->consumed = coding->consumed_char = src_base - source;
1009 coding->produced = dst - destination;
4ed46869
KH
1010}
1011
b73bfc1c 1012
aa72b389
KH
1013/* Encode composition data stored at DATA into a special byte sequence
1014 starting by 0x80. Update CODING->cmp_data_start and maybe
1015 CODING->cmp_data for the next call. */
1016
1017#define ENCODE_COMPOSITION_EMACS_MULE(coding, data) \
1018 do { \
1019 unsigned char buf[1024], *p0 = buf, *p; \
1020 int len = data[0]; \
1021 int i; \
1022 \
1023 buf[0] = 0x80; \
1024 buf[1] = 0xF0 + data[3]; /* METHOD */ \
1025 buf[3] = 0xA0 + (data[2] - data[1]); /* COMPOSED-CHARS */ \
1026 p = buf + 4; \
1027 if (data[3] == COMPOSITION_WITH_RULE \
1028 || data[3] == COMPOSITION_WITH_RULE_ALTCHARS) \
1029 { \
1030 p += CHAR_STRING (data[4], p); \
1031 for (i = 5; i < len; i += 2) \
1032 { \
1033 int gref, nref; \
1034 COMPOSITION_DECODE_RULE (data[i], gref, nref); \
1035 *p++ = 0x20 + gref; \
1036 *p++ = 0x20 + nref; \
1037 p += CHAR_STRING (data[i + 1], p); \
1038 } \
1039 } \
1040 else \
1041 { \
1042 for (i = 4; i < len; i++) \
1043 p += CHAR_STRING (data[i], p); \
1044 } \
1045 buf[2] = 0xA0 + (p - buf); /* COMPONENTS-BYTES */ \
1046 \
1047 if (dst + (p - buf) + 4 > (dst_bytes ? dst_end : src)) \
1048 { \
1049 coding->result = CODING_FINISH_INSUFFICIENT_DST; \
1050 goto label_end_of_loop; \
1051 } \
1052 while (p0 < p) \
1053 *dst++ = *p0++; \
1054 coding->cmp_data_start += data[0]; \
1055 if (coding->cmp_data_start == coding->cmp_data->used \
1056 && coding->cmp_data->next) \
1057 { \
1058 coding->cmp_data = coding->cmp_data->next; \
1059 coding->cmp_data_start = 0; \
1060 } \
1061 } while (0)
93dec019 1062
aa72b389 1063
a4244313 1064static void encode_eol P_ ((struct coding_system *, const unsigned char *,
aa72b389
KH
1065 unsigned char *, int, int));
1066
1067static void
1068encode_coding_emacs_mule (coding, source, destination, src_bytes, dst_bytes)
1069 struct coding_system *coding;
1070 unsigned char *source, *destination;
1071 int src_bytes, dst_bytes;
1072{
1073 unsigned char *src = source;
1074 unsigned char *src_end = source + src_bytes;
1075 unsigned char *dst = destination;
1076 unsigned char *dst_end = destination + dst_bytes;
1077 unsigned char *src_base;
1078 int c;
1079 int char_offset;
1080 int *data;
1081
1082 Lisp_Object translation_table;
1083
1084 translation_table = Qnil;
1085
1086 /* Optimization for the case that there's no composition. */
1087 if (!coding->cmp_data || coding->cmp_data->used == 0)
1088 {
1089 encode_eol (coding, source, destination, src_bytes, dst_bytes);
1090 return;
1091 }
1092
1093 char_offset = coding->cmp_data->char_offset;
1094 data = coding->cmp_data->data + coding->cmp_data_start;
1095 while (1)
1096 {
1097 src_base = src;
1098
1099 /* If SRC starts a composition, encode the information about the
1100 composition in advance. */
1101 if (coding->cmp_data_start < coding->cmp_data->used
1102 && char_offset + coding->consumed_char == data[1])
1103 {
1104 ENCODE_COMPOSITION_EMACS_MULE (coding, data);
1105 char_offset = coding->cmp_data->char_offset;
1106 data = coding->cmp_data->data + coding->cmp_data_start;
1107 }
1108
1109 ONE_MORE_CHAR (c);
1110 if (c == '\n' && (coding->eol_type == CODING_EOL_CRLF
1111 || coding->eol_type == CODING_EOL_CR))
1112 {
1113 if (coding->eol_type == CODING_EOL_CRLF)
1114 EMIT_TWO_BYTES ('\r', c);
1115 else
1116 EMIT_ONE_BYTE ('\r');
1117 }
1118 else if (SINGLE_BYTE_CHAR_P (c))
1119 EMIT_ONE_BYTE (c);
1120 else
1121 EMIT_BYTES (src_base, src);
1122 coding->consumed_char++;
1123 }
1124 label_end_of_loop:
1125 coding->consumed = src_base - source;
1126 coding->produced = coding->produced_char = dst - destination;
1127 return;
1128}
b73bfc1c 1129
4ed46869
KH
1130\f
1131/*** 3. ISO2022 handlers ***/
1132
1133/* The following note describes the coding system ISO2022 briefly.
39787efd 1134 Since the intention of this note is to help understand the
cfb43547 1135 functions in this file, some parts are NOT ACCURATE or are OVERLY
39787efd 1136 SIMPLIFIED. For thorough understanding, please refer to the
cfb43547
DL
1137 original document of ISO2022. This is equivalent to the standard
1138 ECMA-35, obtainable from <URL:http://www.ecma.ch/> (*).
4ed46869
KH
1139
1140 ISO2022 provides many mechanisms to encode several character sets
cfb43547 1141 in 7-bit and 8-bit environments. For 7-bit environments, all text
39787efd
KH
1142 is encoded using bytes less than 128. This may make the encoded
1143 text a little bit longer, but the text passes more easily through
cfb43547 1144 several types of gateway, some of which strip off the MSB (Most
8ca3766a 1145 Significant Bit).
b73bfc1c 1146
cfb43547
DL
1147 There are two kinds of character sets: control character sets and
1148 graphic character sets. The former contain control characters such
4ed46869 1149 as `newline' and `escape' to provide control functions (control
39787efd 1150 functions are also provided by escape sequences). The latter
cfb43547 1151 contain graphic characters such as 'A' and '-'. Emacs recognizes
4ed46869
KH
1152 two control character sets and many graphic character sets.
1153
1154 Graphic character sets are classified into one of the following
39787efd
KH
1155 four classes, according to the number of bytes (DIMENSION) and
1156 number of characters in one dimension (CHARS) of the set:
1157 - DIMENSION1_CHARS94
1158 - DIMENSION1_CHARS96
1159 - DIMENSION2_CHARS94
1160 - DIMENSION2_CHARS96
1161
1162 In addition, each character set is assigned an identification tag,
cfb43547 1163 unique for each set, called the "final character" (denoted as <F>
39787efd
KH
1164 hereafter). The <F> of each character set is decided by ECMA(*)
1165 when it is registered in ISO. The code range of <F> is 0x30..0x7F
1166 (0x30..0x3F are for private use only).
4ed46869
KH
1167
1168 Note (*): ECMA = European Computer Manufacturers Association
1169
cfb43547 1170 Here are examples of graphic character sets [NAME(<F>)]:
4ed46869
KH
1171 o DIMENSION1_CHARS94 -- ASCII('B'), right-half-of-JISX0201('I'), ...
1172 o DIMENSION1_CHARS96 -- right-half-of-ISO8859-1('A'), ...
1173 o DIMENSION2_CHARS94 -- GB2312('A'), JISX0208('B'), ...
1174 o DIMENSION2_CHARS96 -- none for the moment
1175
39787efd 1176 A code area (1 byte=8 bits) is divided into 4 areas, C0, GL, C1, and GR.
4ed46869
KH
1177 C0 [0x00..0x1F] -- control character plane 0
1178 GL [0x20..0x7F] -- graphic character plane 0
1179 C1 [0x80..0x9F] -- control character plane 1
1180 GR [0xA0..0xFF] -- graphic character plane 1
1181
1182 A control character set is directly designated and invoked to C0 or
39787efd
KH
1183 C1 by an escape sequence. The most common case is that:
1184 - ISO646's control character set is designated/invoked to C0, and
1185 - ISO6429's control character set is designated/invoked to C1,
1186 and usually these designations/invocations are omitted in encoded
1187 text. In a 7-bit environment, only C0 can be used, and a control
1188 character for C1 is encoded by an appropriate escape sequence to
1189 fit into the environment. All control characters for C1 are
1190 defined to have corresponding escape sequences.
4ed46869
KH
1191
1192 A graphic character set is at first designated to one of four
1193 graphic registers (G0 through G3), then these graphic registers are
1194 invoked to GL or GR. These designations and invocations can be
1195 done independently. The most common case is that G0 is invoked to
39787efd
KH
1196 GL, G1 is invoked to GR, and ASCII is designated to G0. Usually
1197 these invocations and designations are omitted in encoded text.
1198 In a 7-bit environment, only GL can be used.
4ed46869 1199
39787efd
KH
1200 When a graphic character set of CHARS94 is invoked to GL, codes
1201 0x20 and 0x7F of the GL area work as control characters SPACE and
1202 DEL respectively, and codes 0xA0 and 0xFF of the GR area should not
1203 be used.
4ed46869
KH
1204
1205 There are two ways of invocation: locking-shift and single-shift.
1206 With locking-shift, the invocation lasts until the next different
39787efd
KH
1207 invocation, whereas with single-shift, the invocation affects the
1208 following character only and doesn't affect the locking-shift
1209 state. Invocations are done by the following control characters or
1210 escape sequences:
4ed46869
KH
1211
1212 ----------------------------------------------------------------------
39787efd 1213 abbrev function cntrl escape seq description
4ed46869 1214 ----------------------------------------------------------------------
39787efd
KH
1215 SI/LS0 (shift-in) 0x0F none invoke G0 into GL
1216 SO/LS1 (shift-out) 0x0E none invoke G1 into GL
1217 LS2 (locking-shift-2) none ESC 'n' invoke G2 into GL
1218 LS3 (locking-shift-3) none ESC 'o' invoke G3 into GL
1219 LS1R (locking-shift-1 right) none ESC '~' invoke G1 into GR (*)
1220 LS2R (locking-shift-2 right) none ESC '}' invoke G2 into GR (*)
1221 LS3R (locking-shift 3 right) none ESC '|' invoke G3 into GR (*)
1222 SS2 (single-shift-2) 0x8E ESC 'N' invoke G2 for one char
1223 SS3 (single-shift-3) 0x8F ESC 'O' invoke G3 for one char
4ed46869 1224 ----------------------------------------------------------------------
39787efd
KH
1225 (*) These are not used by any known coding system.
1226
1227 Control characters for these functions are defined by macros
1228 ISO_CODE_XXX in `coding.h'.
4ed46869 1229
39787efd 1230 Designations are done by the following escape sequences:
4ed46869
KH
1231 ----------------------------------------------------------------------
1232 escape sequence description
1233 ----------------------------------------------------------------------
1234 ESC '(' <F> designate DIMENSION1_CHARS94<F> to G0
1235 ESC ')' <F> designate DIMENSION1_CHARS94<F> to G1
1236 ESC '*' <F> designate DIMENSION1_CHARS94<F> to G2
1237 ESC '+' <F> designate DIMENSION1_CHARS94<F> to G3
1238 ESC ',' <F> designate DIMENSION1_CHARS96<F> to G0 (*)
1239 ESC '-' <F> designate DIMENSION1_CHARS96<F> to G1
1240 ESC '.' <F> designate DIMENSION1_CHARS96<F> to G2
1241 ESC '/' <F> designate DIMENSION1_CHARS96<F> to G3
1242 ESC '$' '(' <F> designate DIMENSION2_CHARS94<F> to G0 (**)
1243 ESC '$' ')' <F> designate DIMENSION2_CHARS94<F> to G1
1244 ESC '$' '*' <F> designate DIMENSION2_CHARS94<F> to G2
1245 ESC '$' '+' <F> designate DIMENSION2_CHARS94<F> to G3
1246 ESC '$' ',' <F> designate DIMENSION2_CHARS96<F> to G0 (*)
1247 ESC '$' '-' <F> designate DIMENSION2_CHARS96<F> to G1
1248 ESC '$' '.' <F> designate DIMENSION2_CHARS96<F> to G2
1249 ESC '$' '/' <F> designate DIMENSION2_CHARS96<F> to G3
1250 ----------------------------------------------------------------------
1251
1252 In this list, "DIMENSION1_CHARS94<F>" means a graphic character set
39787efd 1253 of dimension 1, chars 94, and final character <F>, etc...
4ed46869
KH
1254
1255 Note (*): Although these designations are not allowed in ISO2022,
1256 Emacs accepts them on decoding, and produces them on encoding
39787efd 1257 CHARS96 character sets in a coding system which is characterized as
4ed46869
KH
1258 7-bit environment, non-locking-shift, and non-single-shift.
1259
1260 Note (**): If <F> is '@', 'A', or 'B', the intermediate character
39787efd 1261 '(' can be omitted. We refer to this as "short-form" hereafter.
4ed46869 1262
cfb43547 1263 Now you may notice that there are a lot of ways of encoding the
39787efd
KH
1264 same multilingual text in ISO2022. Actually, there exist many
1265 coding systems such as Compound Text (used in X11's inter client
8ca3766a
DL
1266 communication, ISO-2022-JP (used in Japanese Internet), ISO-2022-KR
1267 (used in Korean Internet), EUC (Extended UNIX Code, used in Asian
4ed46869
KH
1268 localized platforms), and all of these are variants of ISO2022.
1269
1270 In addition to the above, Emacs handles two more kinds of escape
1271 sequences: ISO6429's direction specification and Emacs' private
1272 sequence for specifying character composition.
1273
39787efd 1274 ISO6429's direction specification takes the following form:
4ed46869
KH
1275 o CSI ']' -- end of the current direction
1276 o CSI '0' ']' -- end of the current direction
1277 o CSI '1' ']' -- start of left-to-right text
1278 o CSI '2' ']' -- start of right-to-left text
1279 The control character CSI (0x9B: control sequence introducer) is
39787efd
KH
1280 abbreviated to the escape sequence ESC '[' in a 7-bit environment.
1281
1282 Character composition specification takes the following form:
ec6d2bb8
KH
1283 o ESC '0' -- start relative composition
1284 o ESC '1' -- end composition
1285 o ESC '2' -- start rule-base composition (*)
1286 o ESC '3' -- start relative composition with alternate chars (**)
1287 o ESC '4' -- start rule-base composition with alternate chars (**)
b73bfc1c 1288 Since these are not standard escape sequences of any ISO standard,
cfb43547 1289 the use of them with these meanings is restricted to Emacs only.
ec6d2bb8 1290
cfb43547 1291 (*) This form is used only in Emacs 20.5 and older versions,
b73bfc1c 1292 but the newer versions can safely decode it.
cfb43547 1293 (**) This form is used only in Emacs 21.1 and newer versions,
b73bfc1c 1294 and the older versions can't decode it.
ec6d2bb8 1295
cfb43547 1296 Here's a list of example usages of these composition escape
b73bfc1c 1297 sequences (categorized by `enum composition_method').
ec6d2bb8 1298
b73bfc1c 1299 COMPOSITION_RELATIVE:
ec6d2bb8 1300 ESC 0 CHAR [ CHAR ] ESC 1
8ca3766a 1301 COMPOSITION_WITH_RULE:
ec6d2bb8 1302 ESC 2 CHAR [ RULE CHAR ] ESC 1
b73bfc1c 1303 COMPOSITION_WITH_ALTCHARS:
ec6d2bb8 1304 ESC 3 ALTCHAR [ ALTCHAR ] ESC 0 CHAR [ CHAR ] ESC 1
b73bfc1c 1305 COMPOSITION_WITH_RULE_ALTCHARS:
ec6d2bb8 1306 ESC 4 ALTCHAR [ RULE ALTCHAR ] ESC 0 CHAR [ CHAR ] ESC 1 */
4ed46869
KH
1307
1308enum iso_code_class_type iso_code_class[256];
1309
05e6f5dc
KH
1310#define CHARSET_OK(idx, charset, c) \
1311 (coding_system_table[idx] \
1312 && (charset == CHARSET_ASCII \
1313 || (safe_chars = coding_safe_chars (coding_system_table[idx]), \
1314 CODING_SAFE_CHAR_P (safe_chars, c))) \
1315 && (CODING_SPEC_ISO_REQUESTED_DESIGNATION (coding_system_table[idx], \
1316 charset) \
1317 != CODING_SPEC_ISO_NO_REQUESTED_DESIGNATION))
d46c5b12
KH
1318
1319#define SHIFT_OUT_OK(idx) \
1320 (CODING_SPEC_ISO_INITIAL_DESIGNATION (coding_system_table[idx], 1) >= 0)
1321
4ed46869 1322/* See the above "GENERAL NOTES on `detect_coding_XXX ()' functions".
cfb43547 1323 Check if a text is encoded in ISO2022. If it is, return an
4ed46869
KH
1324 integer in which appropriate flag bits any of:
1325 CODING_CATEGORY_MASK_ISO_7
d46c5b12 1326 CODING_CATEGORY_MASK_ISO_7_TIGHT
4ed46869
KH
1327 CODING_CATEGORY_MASK_ISO_8_1
1328 CODING_CATEGORY_MASK_ISO_8_2
7717c392
KH
1329 CODING_CATEGORY_MASK_ISO_7_ELSE
1330 CODING_CATEGORY_MASK_ISO_8_ELSE
4ed46869
KH
1331 are set. If a code which should never appear in ISO2022 is found,
1332 returns 0. */
1333
0a28aafb
KH
1334static int
1335detect_coding_iso2022 (src, src_end, multibytep)
4ed46869 1336 unsigned char *src, *src_end;
0a28aafb 1337 int multibytep;
4ed46869 1338{
d46c5b12
KH
1339 int mask = CODING_CATEGORY_MASK_ISO;
1340 int mask_found = 0;
f46869e4 1341 int reg[4], shift_out = 0, single_shifting = 0;
da55a2b7 1342 int c, c1, charset;
b73bfc1c
KH
1343 /* Dummy for ONE_MORE_BYTE. */
1344 struct coding_system dummy_coding;
1345 struct coding_system *coding = &dummy_coding;
05e6f5dc 1346 Lisp_Object safe_chars;
3f003981 1347
d46c5b12 1348 reg[0] = CHARSET_ASCII, reg[1] = reg[2] = reg[3] = -1;
3f003981 1349 while (mask && src < src_end)
4ed46869 1350 {
0a28aafb 1351 ONE_MORE_BYTE_CHECK_MULTIBYTE (c, multibytep);
8d239c89 1352 retry:
4ed46869
KH
1353 switch (c)
1354 {
1355 case ISO_CODE_ESC:
74383408
KH
1356 if (inhibit_iso_escape_detection)
1357 break;
f46869e4 1358 single_shifting = 0;
0a28aafb 1359 ONE_MORE_BYTE_CHECK_MULTIBYTE (c, multibytep);
d46c5b12 1360 if (c >= '(' && c <= '/')
4ed46869 1361 {
bf9cdd4e 1362 /* Designation sequence for a charset of dimension 1. */
0a28aafb 1363 ONE_MORE_BYTE_CHECK_MULTIBYTE (c1, multibytep);
d46c5b12
KH
1364 if (c1 < ' ' || c1 >= 0x80
1365 || (charset = iso_charset_table[0][c >= ','][c1]) < 0)
1366 /* Invalid designation sequence. Just ignore. */
1367 break;
1368 reg[(c - '(') % 4] = charset;
bf9cdd4e
KH
1369 }
1370 else if (c == '$')
1371 {
1372 /* Designation sequence for a charset of dimension 2. */
0a28aafb 1373 ONE_MORE_BYTE_CHECK_MULTIBYTE (c, multibytep);
bf9cdd4e
KH
1374 if (c >= '@' && c <= 'B')
1375 /* Designation for JISX0208.1978, GB2312, or JISX0208. */
d46c5b12 1376 reg[0] = charset = iso_charset_table[1][0][c];
bf9cdd4e 1377 else if (c >= '(' && c <= '/')
bcf26d6a 1378 {
0a28aafb 1379 ONE_MORE_BYTE_CHECK_MULTIBYTE (c1, multibytep);
d46c5b12
KH
1380 if (c1 < ' ' || c1 >= 0x80
1381 || (charset = iso_charset_table[1][c >= ','][c1]) < 0)
1382 /* Invalid designation sequence. Just ignore. */
1383 break;
1384 reg[(c - '(') % 4] = charset;
bcf26d6a 1385 }
bf9cdd4e 1386 else
d46c5b12
KH
1387 /* Invalid designation sequence. Just ignore. */
1388 break;
1389 }
ae9ff118 1390 else if (c == 'N' || c == 'O')
d46c5b12 1391 {
ae9ff118
KH
1392 /* ESC <Fe> for SS2 or SS3. */
1393 mask &= CODING_CATEGORY_MASK_ISO_7_ELSE;
d46c5b12 1394 break;
4ed46869 1395 }
ec6d2bb8
KH
1396 else if (c >= '0' && c <= '4')
1397 {
1398 /* ESC <Fp> for start/end composition. */
1399 mask_found |= CODING_CATEGORY_MASK_ISO;
1400 break;
1401 }
bf9cdd4e 1402 else
d46c5b12
KH
1403 /* Invalid escape sequence. Just ignore. */
1404 break;
1405
1406 /* We found a valid designation sequence for CHARSET. */
1407 mask &= ~CODING_CATEGORY_MASK_ISO_8BIT;
05e6f5dc
KH
1408 c = MAKE_CHAR (charset, 0, 0);
1409 if (CHARSET_OK (CODING_CATEGORY_IDX_ISO_7, charset, c))
d46c5b12
KH
1410 mask_found |= CODING_CATEGORY_MASK_ISO_7;
1411 else
1412 mask &= ~CODING_CATEGORY_MASK_ISO_7;
05e6f5dc 1413 if (CHARSET_OK (CODING_CATEGORY_IDX_ISO_7_TIGHT, charset, c))
d46c5b12
KH
1414 mask_found |= CODING_CATEGORY_MASK_ISO_7_TIGHT;
1415 else
1416 mask &= ~CODING_CATEGORY_MASK_ISO_7_TIGHT;
05e6f5dc 1417 if (CHARSET_OK (CODING_CATEGORY_IDX_ISO_7_ELSE, charset, c))
ae9ff118
KH
1418 mask_found |= CODING_CATEGORY_MASK_ISO_7_ELSE;
1419 else
d46c5b12 1420 mask &= ~CODING_CATEGORY_MASK_ISO_7_ELSE;
05e6f5dc 1421 if (CHARSET_OK (CODING_CATEGORY_IDX_ISO_8_ELSE, charset, c))
ae9ff118
KH
1422 mask_found |= CODING_CATEGORY_MASK_ISO_8_ELSE;
1423 else
d46c5b12 1424 mask &= ~CODING_CATEGORY_MASK_ISO_8_ELSE;
4ed46869
KH
1425 break;
1426
4ed46869 1427 case ISO_CODE_SO:
74383408
KH
1428 if (inhibit_iso_escape_detection)
1429 break;
f46869e4 1430 single_shifting = 0;
d46c5b12
KH
1431 if (shift_out == 0
1432 && (reg[1] >= 0
1433 || SHIFT_OUT_OK (CODING_CATEGORY_IDX_ISO_7_ELSE)
1434 || SHIFT_OUT_OK (CODING_CATEGORY_IDX_ISO_8_ELSE)))
1435 {
1436 /* Locking shift out. */
1437 mask &= ~CODING_CATEGORY_MASK_ISO_7BIT;
1438 mask_found |= CODING_CATEGORY_MASK_ISO_SHIFT;
1439 }
e0e989f6 1440 break;
93dec019 1441
d46c5b12 1442 case ISO_CODE_SI:
74383408
KH
1443 if (inhibit_iso_escape_detection)
1444 break;
f46869e4 1445 single_shifting = 0;
d46c5b12
KH
1446 if (shift_out == 1)
1447 {
1448 /* Locking shift in. */
1449 mask &= ~CODING_CATEGORY_MASK_ISO_7BIT;
1450 mask_found |= CODING_CATEGORY_MASK_ISO_SHIFT;
1451 }
1452 break;
1453
4ed46869 1454 case ISO_CODE_CSI:
f46869e4 1455 single_shifting = 0;
4ed46869
KH
1456 case ISO_CODE_SS2:
1457 case ISO_CODE_SS3:
3f003981
KH
1458 {
1459 int newmask = CODING_CATEGORY_MASK_ISO_8_ELSE;
1460
74383408
KH
1461 if (inhibit_iso_escape_detection)
1462 break;
70c22245
KH
1463 if (c != ISO_CODE_CSI)
1464 {
d46c5b12
KH
1465 if (coding_system_table[CODING_CATEGORY_IDX_ISO_8_1]->flags
1466 & CODING_FLAG_ISO_SINGLE_SHIFT)
70c22245 1467 newmask |= CODING_CATEGORY_MASK_ISO_8_1;
d46c5b12
KH
1468 if (coding_system_table[CODING_CATEGORY_IDX_ISO_8_2]->flags
1469 & CODING_FLAG_ISO_SINGLE_SHIFT)
70c22245 1470 newmask |= CODING_CATEGORY_MASK_ISO_8_2;
f46869e4 1471 single_shifting = 1;
70c22245 1472 }
3f003981
KH
1473 if (VECTORP (Vlatin_extra_code_table)
1474 && !NILP (XVECTOR (Vlatin_extra_code_table)->contents[c]))
1475 {
d46c5b12
KH
1476 if (coding_system_table[CODING_CATEGORY_IDX_ISO_8_1]->flags
1477 & CODING_FLAG_ISO_LATIN_EXTRA)
3f003981 1478 newmask |= CODING_CATEGORY_MASK_ISO_8_1;
d46c5b12
KH
1479 if (coding_system_table[CODING_CATEGORY_IDX_ISO_8_2]->flags
1480 & CODING_FLAG_ISO_LATIN_EXTRA)
3f003981
KH
1481 newmask |= CODING_CATEGORY_MASK_ISO_8_2;
1482 }
1483 mask &= newmask;
d46c5b12 1484 mask_found |= newmask;
3f003981
KH
1485 }
1486 break;
4ed46869
KH
1487
1488 default:
1489 if (c < 0x80)
f46869e4
KH
1490 {
1491 single_shifting = 0;
1492 break;
1493 }
4ed46869 1494 else if (c < 0xA0)
c4825358 1495 {
f46869e4 1496 single_shifting = 0;
3f003981
KH
1497 if (VECTORP (Vlatin_extra_code_table)
1498 && !NILP (XVECTOR (Vlatin_extra_code_table)->contents[c]))
c4825358 1499 {
3f003981
KH
1500 int newmask = 0;
1501
d46c5b12
KH
1502 if (coding_system_table[CODING_CATEGORY_IDX_ISO_8_1]->flags
1503 & CODING_FLAG_ISO_LATIN_EXTRA)
3f003981 1504 newmask |= CODING_CATEGORY_MASK_ISO_8_1;
d46c5b12
KH
1505 if (coding_system_table[CODING_CATEGORY_IDX_ISO_8_2]->flags
1506 & CODING_FLAG_ISO_LATIN_EXTRA)
3f003981
KH
1507 newmask |= CODING_CATEGORY_MASK_ISO_8_2;
1508 mask &= newmask;
d46c5b12 1509 mask_found |= newmask;
c4825358 1510 }
3f003981
KH
1511 else
1512 return 0;
c4825358 1513 }
4ed46869
KH
1514 else
1515 {
d46c5b12 1516 mask &= ~(CODING_CATEGORY_MASK_ISO_7BIT
7717c392 1517 | CODING_CATEGORY_MASK_ISO_7_ELSE);
d46c5b12 1518 mask_found |= CODING_CATEGORY_MASK_ISO_8_1;
f46869e4
KH
1519 /* Check the length of succeeding codes of the range
1520 0xA0..0FF. If the byte length is odd, we exclude
1521 CODING_CATEGORY_MASK_ISO_8_2. We can check this only
1522 when we are not single shifting. */
b73bfc1c
KH
1523 if (!single_shifting
1524 && mask & CODING_CATEGORY_MASK_ISO_8_2)
f46869e4 1525 {
e17de821 1526 int i = 1;
8d239c89
KH
1527
1528 c = -1;
b73bfc1c
KH
1529 while (src < src_end)
1530 {
0a28aafb 1531 ONE_MORE_BYTE_CHECK_MULTIBYTE (c, multibytep);
b73bfc1c
KH
1532 if (c < 0xA0)
1533 break;
1534 i++;
1535 }
1536
1537 if (i & 1 && src < src_end)
f46869e4
KH
1538 mask &= ~CODING_CATEGORY_MASK_ISO_8_2;
1539 else
1540 mask_found |= CODING_CATEGORY_MASK_ISO_8_2;
8d239c89
KH
1541 if (c >= 0)
1542 /* This means that we have read one extra byte. */
1543 goto retry;
f46869e4 1544 }
4ed46869
KH
1545 }
1546 break;
1547 }
1548 }
b73bfc1c 1549 label_end_of_loop:
d46c5b12 1550 return (mask & mask_found);
4ed46869
KH
1551}
1552
b73bfc1c
KH
1553/* Decode a character of which charset is CHARSET, the 1st position
1554 code is C1, the 2nd position code is C2, and return the decoded
1555 character code. If the variable `translation_table' is non-nil,
1556 returned the translated code. */
ec6d2bb8 1557
b73bfc1c
KH
1558#define DECODE_ISO_CHARACTER(charset, c1, c2) \
1559 (NILP (translation_table) \
1560 ? MAKE_CHAR (charset, c1, c2) \
1561 : translate_char (translation_table, -1, charset, c1, c2))
4ed46869
KH
1562
1563/* Set designation state into CODING. */
d46c5b12
KH
1564#define DECODE_DESIGNATION(reg, dimension, chars, final_char) \
1565 do { \
05e6f5dc 1566 int charset, c; \
944bd420
KH
1567 \
1568 if (final_char < '0' || final_char >= 128) \
1569 goto label_invalid_code; \
1570 charset = ISO_CHARSET_TABLE (make_number (dimension), \
1571 make_number (chars), \
1572 make_number (final_char)); \
05e6f5dc 1573 c = MAKE_CHAR (charset, 0, 0); \
d46c5b12 1574 if (charset >= 0 \
704c5781 1575 && (CODING_SPEC_ISO_REQUESTED_DESIGNATION (coding, charset) == reg \
05e6f5dc 1576 || CODING_SAFE_CHAR_P (safe_chars, c))) \
d46c5b12
KH
1577 { \
1578 if (coding->spec.iso2022.last_invalid_designation_register == 0 \
1579 && reg == 0 \
1580 && charset == CHARSET_ASCII) \
1581 { \
1582 /* We should insert this designation sequence as is so \
1583 that it is surely written back to a file. */ \
1584 coding->spec.iso2022.last_invalid_designation_register = -1; \
1585 goto label_invalid_code; \
1586 } \
1587 coding->spec.iso2022.last_invalid_designation_register = -1; \
1588 if ((coding->mode & CODING_MODE_DIRECTION) \
1589 && CHARSET_REVERSE_CHARSET (charset) >= 0) \
1590 charset = CHARSET_REVERSE_CHARSET (charset); \
1591 CODING_SPEC_ISO_DESIGNATION (coding, reg) = charset; \
1592 } \
1593 else \
1594 { \
1595 coding->spec.iso2022.last_invalid_designation_register = reg; \
1596 goto label_invalid_code; \
1597 } \
4ed46869
KH
1598 } while (0)
1599
ec6d2bb8
KH
1600/* Allocate a memory block for storing information about compositions.
1601 The block is chained to the already allocated blocks. */
d46c5b12 1602
33fb63eb 1603void
ec6d2bb8 1604coding_allocate_composition_data (coding, char_offset)
d46c5b12 1605 struct coding_system *coding;
ec6d2bb8 1606 int char_offset;
d46c5b12 1607{
ec6d2bb8
KH
1608 struct composition_data *cmp_data
1609 = (struct composition_data *) xmalloc (sizeof *cmp_data);
1610
1611 cmp_data->char_offset = char_offset;
1612 cmp_data->used = 0;
1613 cmp_data->prev = coding->cmp_data;
1614 cmp_data->next = NULL;
1615 if (coding->cmp_data)
1616 coding->cmp_data->next = cmp_data;
1617 coding->cmp_data = cmp_data;
1618 coding->cmp_data_start = 0;
1619}
d46c5b12 1620
aa72b389
KH
1621/* Handle composition start sequence ESC 0, ESC 2, ESC 3, or ESC 4.
1622 ESC 0 : relative composition : ESC 0 CHAR ... ESC 1
1623 ESC 2 : rulebase composition : ESC 2 CHAR RULE CHAR RULE ... CHAR ESC 1
1624 ESC 3 : altchar composition : ESC 3 ALT ... ESC 0 CHAR ... ESC 1
1625 ESC 4 : alt&rule composition : ESC 4 ALT RULE .. ALT ESC 0 CHAR ... ESC 1
1626 */
ec6d2bb8 1627
33fb63eb
KH
1628#define DECODE_COMPOSITION_START(c1) \
1629 do { \
1630 if (coding->composing == COMPOSITION_DISABLED) \
1631 { \
1632 *dst++ = ISO_CODE_ESC; \
1633 *dst++ = c1 & 0x7f; \
1634 coding->produced_char += 2; \
1635 } \
1636 else if (!COMPOSING_P (coding)) \
1637 { \
1638 /* This is surely the start of a composition. We must be sure \
1639 that coding->cmp_data has enough space to store the \
1640 information about the composition. If not, terminate the \
1641 current decoding loop, allocate one more memory block for \
8ca3766a 1642 coding->cmp_data in the caller, then start the decoding \
33fb63eb
KH
1643 loop again. We can't allocate memory here directly because \
1644 it may cause buffer/string relocation. */ \
1645 if (!coding->cmp_data \
1646 || (coding->cmp_data->used + COMPOSITION_DATA_MAX_BUNCH_LENGTH \
1647 >= COMPOSITION_DATA_SIZE)) \
1648 { \
1649 coding->result = CODING_FINISH_INSUFFICIENT_CMP; \
1650 goto label_end_of_loop; \
1651 } \
1652 coding->composing = (c1 == '0' ? COMPOSITION_RELATIVE \
1653 : c1 == '2' ? COMPOSITION_WITH_RULE \
1654 : c1 == '3' ? COMPOSITION_WITH_ALTCHARS \
1655 : COMPOSITION_WITH_RULE_ALTCHARS); \
1656 CODING_ADD_COMPOSITION_START (coding, coding->produced_char, \
1657 coding->composing); \
1658 coding->composition_rule_follows = 0; \
1659 } \
1660 else \
1661 { \
1662 /* We are already handling a composition. If the method is \
1663 the following two, the codes following the current escape \
1664 sequence are actual characters stored in a buffer. */ \
1665 if (coding->composing == COMPOSITION_WITH_ALTCHARS \
1666 || coding->composing == COMPOSITION_WITH_RULE_ALTCHARS) \
1667 { \
1668 coding->composing = COMPOSITION_RELATIVE; \
1669 coding->composition_rule_follows = 0; \
1670 } \
1671 } \
ec6d2bb8
KH
1672 } while (0)
1673
8ca3766a 1674/* Handle composition end sequence ESC 1. */
ec6d2bb8
KH
1675
1676#define DECODE_COMPOSITION_END(c1) \
1677 do { \
93dec019 1678 if (! COMPOSING_P (coding)) \
ec6d2bb8
KH
1679 { \
1680 *dst++ = ISO_CODE_ESC; \
1681 *dst++ = c1; \
1682 coding->produced_char += 2; \
1683 } \
1684 else \
1685 { \
1686 CODING_ADD_COMPOSITION_END (coding, coding->produced_char); \
1687 coding->composing = COMPOSITION_NO; \
1688 } \
1689 } while (0)
1690
1691/* Decode a composition rule from the byte C1 (and maybe one more byte
1692 from SRC) and store one encoded composition rule in
1693 coding->cmp_data. */
1694
1695#define DECODE_COMPOSITION_RULE(c1) \
1696 do { \
1697 int rule = 0; \
1698 (c1) -= 32; \
1699 if (c1 < 81) /* old format (before ver.21) */ \
1700 { \
1701 int gref = (c1) / 9; \
1702 int nref = (c1) % 9; \
1703 if (gref == 4) gref = 10; \
1704 if (nref == 4) nref = 10; \
1705 rule = COMPOSITION_ENCODE_RULE (gref, nref); \
1706 } \
b73bfc1c 1707 else if (c1 < 93) /* new format (after ver.21) */ \
ec6d2bb8
KH
1708 { \
1709 ONE_MORE_BYTE (c2); \
1710 rule = COMPOSITION_ENCODE_RULE (c1 - 81, c2 - 32); \
1711 } \
1712 CODING_ADD_COMPOSITION_COMPONENT (coding, rule); \
1713 coding->composition_rule_follows = 0; \
1714 } while (0)
88993dfd 1715
d46c5b12 1716
4ed46869
KH
1717/* See the above "GENERAL NOTES on `decode_coding_XXX ()' functions". */
1718
b73bfc1c 1719static void
d46c5b12 1720decode_coding_iso2022 (coding, source, destination, src_bytes, dst_bytes)
4ed46869
KH
1721 struct coding_system *coding;
1722 unsigned char *source, *destination;
1723 int src_bytes, dst_bytes;
4ed46869
KH
1724{
1725 unsigned char *src = source;
1726 unsigned char *src_end = source + src_bytes;
1727 unsigned char *dst = destination;
1728 unsigned char *dst_end = destination + dst_bytes;
4ed46869
KH
1729 /* Charsets invoked to graphic plane 0 and 1 respectively. */
1730 int charset0 = CODING_SPEC_ISO_PLANE_CHARSET (coding, 0);
1731 int charset1 = CODING_SPEC_ISO_PLANE_CHARSET (coding, 1);
b73bfc1c
KH
1732 /* SRC_BASE remembers the start position in source in each loop.
1733 The loop will be exited when there's not enough source code
1734 (within macro ONE_MORE_BYTE), or when there's not enough
1735 destination area to produce a character (within macro
1736 EMIT_CHAR). */
1737 unsigned char *src_base;
1738 int c, charset;
1739 Lisp_Object translation_table;
05e6f5dc
KH
1740 Lisp_Object safe_chars;
1741
1742 safe_chars = coding_safe_chars (coding);
bdd9fb48 1743
b73bfc1c
KH
1744 if (NILP (Venable_character_translation))
1745 translation_table = Qnil;
1746 else
1747 {
1748 translation_table = coding->translation_table_for_decode;
1749 if (NILP (translation_table))
1750 translation_table = Vstandard_translation_table_for_decode;
1751 }
4ed46869 1752
b73bfc1c
KH
1753 coding->result = CODING_FINISH_NORMAL;
1754
1755 while (1)
4ed46869 1756 {
b73bfc1c
KH
1757 int c1, c2;
1758
1759 src_base = src;
1760 ONE_MORE_BYTE (c1);
4ed46869 1761
ec6d2bb8 1762 /* We produce no character or one character. */
4ed46869
KH
1763 switch (iso_code_class [c1])
1764 {
1765 case ISO_0x20_or_0x7F:
ec6d2bb8
KH
1766 if (COMPOSING_P (coding) && coding->composition_rule_follows)
1767 {
1768 DECODE_COMPOSITION_RULE (c1);
b73bfc1c 1769 continue;
ec6d2bb8
KH
1770 }
1771 if (charset0 < 0 || CHARSET_CHARS (charset0) == 94)
4ed46869
KH
1772 {
1773 /* This is SPACE or DEL. */
b73bfc1c 1774 charset = CHARSET_ASCII;
4ed46869
KH
1775 break;
1776 }
1777 /* This is a graphic character, we fall down ... */
1778
1779 case ISO_graphic_plane_0:
ec6d2bb8 1780 if (COMPOSING_P (coding) && coding->composition_rule_follows)
b73bfc1c
KH
1781 {
1782 DECODE_COMPOSITION_RULE (c1);
1783 continue;
1784 }
1785 charset = charset0;
4ed46869
KH
1786 break;
1787
1788 case ISO_0xA0_or_0xFF:
d46c5b12
KH
1789 if (charset1 < 0 || CHARSET_CHARS (charset1) == 94
1790 || coding->flags & CODING_FLAG_ISO_SEVEN_BITS)
fb88bf2d 1791 goto label_invalid_code;
4ed46869
KH
1792 /* This is a graphic character, we fall down ... */
1793
1794 case ISO_graphic_plane_1:
b73bfc1c 1795 if (charset1 < 0)
fb88bf2d 1796 goto label_invalid_code;
b73bfc1c 1797 charset = charset1;
4ed46869
KH
1798 break;
1799
b73bfc1c 1800 case ISO_control_0:
ec6d2bb8
KH
1801 if (COMPOSING_P (coding))
1802 DECODE_COMPOSITION_END ('1');
1803
4ed46869
KH
1804 /* All ISO2022 control characters in this class have the
1805 same representation in Emacs internal format. */
d46c5b12
KH
1806 if (c1 == '\n'
1807 && (coding->mode & CODING_MODE_INHIBIT_INCONSISTENT_EOL)
1808 && (coding->eol_type == CODING_EOL_CR
1809 || coding->eol_type == CODING_EOL_CRLF))
1810 {
b73bfc1c
KH
1811 coding->result = CODING_FINISH_INCONSISTENT_EOL;
1812 goto label_end_of_loop;
d46c5b12 1813 }
b73bfc1c 1814 charset = CHARSET_ASCII;
4ed46869
KH
1815 break;
1816
b73bfc1c
KH
1817 case ISO_control_1:
1818 if (COMPOSING_P (coding))
1819 DECODE_COMPOSITION_END ('1');
1820 goto label_invalid_code;
1821
4ed46869 1822 case ISO_carriage_return:
ec6d2bb8
KH
1823 if (COMPOSING_P (coding))
1824 DECODE_COMPOSITION_END ('1');
1825
4ed46869 1826 if (coding->eol_type == CODING_EOL_CR)
b73bfc1c 1827 c1 = '\n';
4ed46869
KH
1828 else if (coding->eol_type == CODING_EOL_CRLF)
1829 {
1830 ONE_MORE_BYTE (c1);
b73bfc1c 1831 if (c1 != ISO_CODE_LF)
4ed46869 1832 {
d46c5b12
KH
1833 if (coding->mode & CODING_MODE_INHIBIT_INCONSISTENT_EOL)
1834 {
b73bfc1c
KH
1835 coding->result = CODING_FINISH_INCONSISTENT_EOL;
1836 goto label_end_of_loop;
d46c5b12 1837 }
4ed46869 1838 src--;
b73bfc1c 1839 c1 = '\r';
4ed46869
KH
1840 }
1841 }
b73bfc1c 1842 charset = CHARSET_ASCII;
4ed46869
KH
1843 break;
1844
1845 case ISO_shift_out:
d46c5b12
KH
1846 if (! (coding->flags & CODING_FLAG_ISO_LOCKING_SHIFT)
1847 || CODING_SPEC_ISO_DESIGNATION (coding, 1) < 0)
1848 goto label_invalid_code;
4ed46869
KH
1849 CODING_SPEC_ISO_INVOCATION (coding, 0) = 1;
1850 charset0 = CODING_SPEC_ISO_PLANE_CHARSET (coding, 0);
b73bfc1c 1851 continue;
4ed46869
KH
1852
1853 case ISO_shift_in:
d46c5b12
KH
1854 if (! (coding->flags & CODING_FLAG_ISO_LOCKING_SHIFT))
1855 goto label_invalid_code;
4ed46869
KH
1856 CODING_SPEC_ISO_INVOCATION (coding, 0) = 0;
1857 charset0 = CODING_SPEC_ISO_PLANE_CHARSET (coding, 0);
b73bfc1c 1858 continue;
4ed46869
KH
1859
1860 case ISO_single_shift_2_7:
1861 case ISO_single_shift_2:
d46c5b12
KH
1862 if (! (coding->flags & CODING_FLAG_ISO_SINGLE_SHIFT))
1863 goto label_invalid_code;
4ed46869
KH
1864 /* SS2 is handled as an escape sequence of ESC 'N' */
1865 c1 = 'N';
1866 goto label_escape_sequence;
1867
1868 case ISO_single_shift_3:
d46c5b12
KH
1869 if (! (coding->flags & CODING_FLAG_ISO_SINGLE_SHIFT))
1870 goto label_invalid_code;
4ed46869
KH
1871 /* SS2 is handled as an escape sequence of ESC 'O' */
1872 c1 = 'O';
1873 goto label_escape_sequence;
1874
1875 case ISO_control_sequence_introducer:
1876 /* CSI is handled as an escape sequence of ESC '[' ... */
1877 c1 = '[';
1878 goto label_escape_sequence;
1879
1880 case ISO_escape:
1881 ONE_MORE_BYTE (c1);
1882 label_escape_sequence:
1883 /* Escape sequences handled by Emacs are invocation,
1884 designation, direction specification, and character
1885 composition specification. */
1886 switch (c1)
1887 {
1888 case '&': /* revision of following character set */
1889 ONE_MORE_BYTE (c1);
1890 if (!(c1 >= '@' && c1 <= '~'))
d46c5b12 1891 goto label_invalid_code;
4ed46869
KH
1892 ONE_MORE_BYTE (c1);
1893 if (c1 != ISO_CODE_ESC)
d46c5b12 1894 goto label_invalid_code;
4ed46869
KH
1895 ONE_MORE_BYTE (c1);
1896 goto label_escape_sequence;
1897
1898 case '$': /* designation of 2-byte character set */
d46c5b12
KH
1899 if (! (coding->flags & CODING_FLAG_ISO_DESIGNATION))
1900 goto label_invalid_code;
4ed46869
KH
1901 ONE_MORE_BYTE (c1);
1902 if (c1 >= '@' && c1 <= 'B')
1903 { /* designation of JISX0208.1978, GB2312.1980,
88993dfd 1904 or JISX0208.1980 */
4ed46869
KH
1905 DECODE_DESIGNATION (0, 2, 94, c1);
1906 }
1907 else if (c1 >= 0x28 && c1 <= 0x2B)
1908 { /* designation of DIMENSION2_CHARS94 character set */
1909 ONE_MORE_BYTE (c2);
1910 DECODE_DESIGNATION (c1 - 0x28, 2, 94, c2);
1911 }
1912 else if (c1 >= 0x2C && c1 <= 0x2F)
1913 { /* designation of DIMENSION2_CHARS96 character set */
1914 ONE_MORE_BYTE (c2);
1915 DECODE_DESIGNATION (c1 - 0x2C, 2, 96, c2);
1916 }
1917 else
d46c5b12 1918 goto label_invalid_code;
b73bfc1c
KH
1919 /* We must update these variables now. */
1920 charset0 = CODING_SPEC_ISO_PLANE_CHARSET (coding, 0);
1921 charset1 = CODING_SPEC_ISO_PLANE_CHARSET (coding, 1);
1922 continue;
4ed46869
KH
1923
1924 case 'n': /* invocation of locking-shift-2 */
d46c5b12
KH
1925 if (! (coding->flags & CODING_FLAG_ISO_LOCKING_SHIFT)
1926 || CODING_SPEC_ISO_DESIGNATION (coding, 2) < 0)
1927 goto label_invalid_code;
4ed46869 1928 CODING_SPEC_ISO_INVOCATION (coding, 0) = 2;
e0e989f6 1929 charset0 = CODING_SPEC_ISO_PLANE_CHARSET (coding, 0);
b73bfc1c 1930 continue;
4ed46869
KH
1931
1932 case 'o': /* invocation of locking-shift-3 */
d46c5b12
KH
1933 if (! (coding->flags & CODING_FLAG_ISO_LOCKING_SHIFT)
1934 || CODING_SPEC_ISO_DESIGNATION (coding, 3) < 0)
1935 goto label_invalid_code;
4ed46869 1936 CODING_SPEC_ISO_INVOCATION (coding, 0) = 3;
e0e989f6 1937 charset0 = CODING_SPEC_ISO_PLANE_CHARSET (coding, 0);
b73bfc1c 1938 continue;
4ed46869
KH
1939
1940 case 'N': /* invocation of single-shift-2 */
d46c5b12
KH
1941 if (! (coding->flags & CODING_FLAG_ISO_SINGLE_SHIFT)
1942 || CODING_SPEC_ISO_DESIGNATION (coding, 2) < 0)
1943 goto label_invalid_code;
4ed46869 1944 charset = CODING_SPEC_ISO_DESIGNATION (coding, 2);
b73bfc1c 1945 ONE_MORE_BYTE (c1);
e7046a18
KH
1946 if (c1 < 0x20 || (c1 >= 0x80 && c1 < 0xA0))
1947 goto label_invalid_code;
4ed46869
KH
1948 break;
1949
1950 case 'O': /* invocation of single-shift-3 */
d46c5b12
KH
1951 if (! (coding->flags & CODING_FLAG_ISO_SINGLE_SHIFT)
1952 || CODING_SPEC_ISO_DESIGNATION (coding, 3) < 0)
1953 goto label_invalid_code;
4ed46869 1954 charset = CODING_SPEC_ISO_DESIGNATION (coding, 3);
b73bfc1c 1955 ONE_MORE_BYTE (c1);
e7046a18
KH
1956 if (c1 < 0x20 || (c1 >= 0x80 && c1 < 0xA0))
1957 goto label_invalid_code;
4ed46869
KH
1958 break;
1959
ec6d2bb8
KH
1960 case '0': case '2': case '3': case '4': /* start composition */
1961 DECODE_COMPOSITION_START (c1);
b73bfc1c 1962 continue;
4ed46869 1963
ec6d2bb8
KH
1964 case '1': /* end composition */
1965 DECODE_COMPOSITION_END (c1);
b73bfc1c 1966 continue;
4ed46869
KH
1967
1968 case '[': /* specification of direction */
d46c5b12
KH
1969 if (coding->flags & CODING_FLAG_ISO_NO_DIRECTION)
1970 goto label_invalid_code;
4ed46869 1971 /* For the moment, nested direction is not supported.
d46c5b12 1972 So, `coding->mode & CODING_MODE_DIRECTION' zero means
8ca3766a 1973 left-to-right, and nonzero means right-to-left. */
4ed46869
KH
1974 ONE_MORE_BYTE (c1);
1975 switch (c1)
1976 {
1977 case ']': /* end of the current direction */
d46c5b12 1978 coding->mode &= ~CODING_MODE_DIRECTION;
4ed46869
KH
1979
1980 case '0': /* end of the current direction */
1981 case '1': /* start of left-to-right direction */
1982 ONE_MORE_BYTE (c1);
1983 if (c1 == ']')
d46c5b12 1984 coding->mode &= ~CODING_MODE_DIRECTION;
4ed46869 1985 else
d46c5b12 1986 goto label_invalid_code;
4ed46869
KH
1987 break;
1988
1989 case '2': /* start of right-to-left direction */
1990 ONE_MORE_BYTE (c1);
1991 if (c1 == ']')
d46c5b12 1992 coding->mode |= CODING_MODE_DIRECTION;
4ed46869 1993 else
d46c5b12 1994 goto label_invalid_code;
4ed46869
KH
1995 break;
1996
1997 default:
d46c5b12 1998 goto label_invalid_code;
4ed46869 1999 }
b73bfc1c 2000 continue;
4ed46869
KH
2001
2002 default:
d46c5b12
KH
2003 if (! (coding->flags & CODING_FLAG_ISO_DESIGNATION))
2004 goto label_invalid_code;
4ed46869
KH
2005 if (c1 >= 0x28 && c1 <= 0x2B)
2006 { /* designation of DIMENSION1_CHARS94 character set */
2007 ONE_MORE_BYTE (c2);
2008 DECODE_DESIGNATION (c1 - 0x28, 1, 94, c2);
2009 }
2010 else if (c1 >= 0x2C && c1 <= 0x2F)
2011 { /* designation of DIMENSION1_CHARS96 character set */
2012 ONE_MORE_BYTE (c2);
2013 DECODE_DESIGNATION (c1 - 0x2C, 1, 96, c2);
2014 }
2015 else
b73bfc1c
KH
2016 goto label_invalid_code;
2017 /* We must update these variables now. */
2018 charset0 = CODING_SPEC_ISO_PLANE_CHARSET (coding, 0);
2019 charset1 = CODING_SPEC_ISO_PLANE_CHARSET (coding, 1);
2020 continue;
4ed46869 2021 }
b73bfc1c 2022 }
4ed46869 2023
b73bfc1c
KH
2024 /* Now we know CHARSET and 1st position code C1 of a character.
2025 Produce a multibyte sequence for that character while getting
2026 2nd position code C2 if necessary. */
2027 if (CHARSET_DIMENSION (charset) == 2)
2028 {
2029 ONE_MORE_BYTE (c2);
2030 if (c1 < 0x80 ? c2 < 0x20 || c2 >= 0x80 : c2 < 0xA0)
2031 /* C2 is not in a valid range. */
2032 goto label_invalid_code;
4ed46869 2033 }
b73bfc1c
KH
2034 c = DECODE_ISO_CHARACTER (charset, c1, c2);
2035 EMIT_CHAR (c);
4ed46869
KH
2036 continue;
2037
b73bfc1c
KH
2038 label_invalid_code:
2039 coding->errors++;
2040 if (COMPOSING_P (coding))
2041 DECODE_COMPOSITION_END ('1');
4ed46869 2042 src = src_base;
b73bfc1c
KH
2043 c = *src++;
2044 EMIT_CHAR (c);
4ed46869 2045 }
fb88bf2d 2046
b73bfc1c
KH
2047 label_end_of_loop:
2048 coding->consumed = coding->consumed_char = src_base - source;
d46c5b12 2049 coding->produced = dst - destination;
b73bfc1c 2050 return;
4ed46869
KH
2051}
2052
b73bfc1c 2053
f4dee582 2054/* ISO2022 encoding stuff. */
4ed46869
KH
2055
2056/*
f4dee582 2057 It is not enough to say just "ISO2022" on encoding, we have to
cfb43547 2058 specify more details. In Emacs, each ISO2022 coding system
4ed46869 2059 variant has the following specifications:
8ca3766a 2060 1. Initial designation to G0 through G3.
4ed46869
KH
2061 2. Allows short-form designation?
2062 3. ASCII should be designated to G0 before control characters?
2063 4. ASCII should be designated to G0 at end of line?
2064 5. 7-bit environment or 8-bit environment?
2065 6. Use locking-shift?
2066 7. Use Single-shift?
2067 And the following two are only for Japanese:
2068 8. Use ASCII in place of JIS0201-1976-Roman?
2069 9. Use JISX0208-1983 in place of JISX0208-1978?
2070 These specifications are encoded in `coding->flags' as flag bits
2071 defined by macros CODING_FLAG_ISO_XXX. See `coding.h' for more
f4dee582 2072 details.
4ed46869
KH
2073*/
2074
2075/* Produce codes (escape sequence) for designating CHARSET to graphic
b73bfc1c
KH
2076 register REG at DST, and increment DST. If <final-char> of CHARSET is
2077 '@', 'A', or 'B' and the coding system CODING allows, produce
2078 designation sequence of short-form. */
4ed46869
KH
2079
2080#define ENCODE_DESIGNATION(charset, reg, coding) \
2081 do { \
2082 unsigned char final_char = CHARSET_ISO_FINAL_CHAR (charset); \
2083 char *intermediate_char_94 = "()*+"; \
2084 char *intermediate_char_96 = ",-./"; \
70c22245 2085 int revision = CODING_SPEC_ISO_REVISION_NUMBER(coding, charset); \
b73bfc1c 2086 \
70c22245
KH
2087 if (revision < 255) \
2088 { \
4ed46869
KH
2089 *dst++ = ISO_CODE_ESC; \
2090 *dst++ = '&'; \
70c22245 2091 *dst++ = '@' + revision; \
4ed46869 2092 } \
b73bfc1c 2093 *dst++ = ISO_CODE_ESC; \
4ed46869
KH
2094 if (CHARSET_DIMENSION (charset) == 1) \
2095 { \
2096 if (CHARSET_CHARS (charset) == 94) \
2097 *dst++ = (unsigned char) (intermediate_char_94[reg]); \
2098 else \
2099 *dst++ = (unsigned char) (intermediate_char_96[reg]); \
2100 } \
2101 else \
2102 { \
2103 *dst++ = '$'; \
2104 if (CHARSET_CHARS (charset) == 94) \
2105 { \
b73bfc1c
KH
2106 if (! (coding->flags & CODING_FLAG_ISO_SHORT_FORM) \
2107 || reg != 0 \
2108 || final_char < '@' || final_char > 'B') \
4ed46869
KH
2109 *dst++ = (unsigned char) (intermediate_char_94[reg]); \
2110 } \
2111 else \
b73bfc1c 2112 *dst++ = (unsigned char) (intermediate_char_96[reg]); \
4ed46869 2113 } \
b73bfc1c 2114 *dst++ = final_char; \
4ed46869
KH
2115 CODING_SPEC_ISO_DESIGNATION (coding, reg) = charset; \
2116 } while (0)
2117
2118/* The following two macros produce codes (control character or escape
2119 sequence) for ISO2022 single-shift functions (single-shift-2 and
2120 single-shift-3). */
2121
2122#define ENCODE_SINGLE_SHIFT_2 \
2123 do { \
2124 if (coding->flags & CODING_FLAG_ISO_SEVEN_BITS) \
2125 *dst++ = ISO_CODE_ESC, *dst++ = 'N'; \
2126 else \
b73bfc1c 2127 *dst++ = ISO_CODE_SS2; \
4ed46869
KH
2128 CODING_SPEC_ISO_SINGLE_SHIFTING (coding) = 1; \
2129 } while (0)
2130
fb88bf2d
KH
2131#define ENCODE_SINGLE_SHIFT_3 \
2132 do { \
4ed46869 2133 if (coding->flags & CODING_FLAG_ISO_SEVEN_BITS) \
fb88bf2d
KH
2134 *dst++ = ISO_CODE_ESC, *dst++ = 'O'; \
2135 else \
b73bfc1c 2136 *dst++ = ISO_CODE_SS3; \
4ed46869
KH
2137 CODING_SPEC_ISO_SINGLE_SHIFTING (coding) = 1; \
2138 } while (0)
2139
2140/* The following four macros produce codes (control character or
2141 escape sequence) for ISO2022 locking-shift functions (shift-in,
2142 shift-out, locking-shift-2, and locking-shift-3). */
2143
b73bfc1c
KH
2144#define ENCODE_SHIFT_IN \
2145 do { \
2146 *dst++ = ISO_CODE_SI; \
4ed46869
KH
2147 CODING_SPEC_ISO_INVOCATION (coding, 0) = 0; \
2148 } while (0)
2149
b73bfc1c
KH
2150#define ENCODE_SHIFT_OUT \
2151 do { \
2152 *dst++ = ISO_CODE_SO; \
4ed46869
KH
2153 CODING_SPEC_ISO_INVOCATION (coding, 0) = 1; \
2154 } while (0)
2155
2156#define ENCODE_LOCKING_SHIFT_2 \
2157 do { \
2158 *dst++ = ISO_CODE_ESC, *dst++ = 'n'; \
2159 CODING_SPEC_ISO_INVOCATION (coding, 0) = 2; \
2160 } while (0)
2161
b73bfc1c
KH
2162#define ENCODE_LOCKING_SHIFT_3 \
2163 do { \
2164 *dst++ = ISO_CODE_ESC, *dst++ = 'o'; \
4ed46869
KH
2165 CODING_SPEC_ISO_INVOCATION (coding, 0) = 3; \
2166 } while (0)
2167
f4dee582
RS
2168/* Produce codes for a DIMENSION1 character whose character set is
2169 CHARSET and whose position-code is C1. Designation and invocation
4ed46869
KH
2170 sequences are also produced in advance if necessary. */
2171
6e85d753
KH
2172#define ENCODE_ISO_CHARACTER_DIMENSION1(charset, c1) \
2173 do { \
2174 if (CODING_SPEC_ISO_SINGLE_SHIFTING (coding)) \
2175 { \
2176 if (coding->flags & CODING_FLAG_ISO_SEVEN_BITS) \
2177 *dst++ = c1 & 0x7F; \
2178 else \
2179 *dst++ = c1 | 0x80; \
2180 CODING_SPEC_ISO_SINGLE_SHIFTING (coding) = 0; \
2181 break; \
2182 } \
2183 else if (charset == CODING_SPEC_ISO_PLANE_CHARSET (coding, 0)) \
2184 { \
2185 *dst++ = c1 & 0x7F; \
2186 break; \
2187 } \
2188 else if (charset == CODING_SPEC_ISO_PLANE_CHARSET (coding, 1)) \
2189 { \
2190 *dst++ = c1 | 0x80; \
2191 break; \
2192 } \
6e85d753
KH
2193 else \
2194 /* Since CHARSET is not yet invoked to any graphic planes, we \
2195 must invoke it, or, at first, designate it to some graphic \
2196 register. Then repeat the loop to actually produce the \
2197 character. */ \
2198 dst = encode_invocation_designation (charset, coding, dst); \
4ed46869
KH
2199 } while (1)
2200
f4dee582
RS
2201/* Produce codes for a DIMENSION2 character whose character set is
2202 CHARSET and whose position-codes are C1 and C2. Designation and
4ed46869
KH
2203 invocation codes are also produced in advance if necessary. */
2204
6e85d753
KH
2205#define ENCODE_ISO_CHARACTER_DIMENSION2(charset, c1, c2) \
2206 do { \
2207 if (CODING_SPEC_ISO_SINGLE_SHIFTING (coding)) \
2208 { \
2209 if (coding->flags & CODING_FLAG_ISO_SEVEN_BITS) \
2210 *dst++ = c1 & 0x7F, *dst++ = c2 & 0x7F; \
2211 else \
2212 *dst++ = c1 | 0x80, *dst++ = c2 | 0x80; \
2213 CODING_SPEC_ISO_SINGLE_SHIFTING (coding) = 0; \
2214 break; \
2215 } \
2216 else if (charset == CODING_SPEC_ISO_PLANE_CHARSET (coding, 0)) \
2217 { \
2218 *dst++ = c1 & 0x7F, *dst++= c2 & 0x7F; \
2219 break; \
2220 } \
2221 else if (charset == CODING_SPEC_ISO_PLANE_CHARSET (coding, 1)) \
2222 { \
2223 *dst++ = c1 | 0x80, *dst++= c2 | 0x80; \
2224 break; \
2225 } \
6e85d753
KH
2226 else \
2227 /* Since CHARSET is not yet invoked to any graphic planes, we \
2228 must invoke it, or, at first, designate it to some graphic \
2229 register. Then repeat the loop to actually produce the \
2230 character. */ \
2231 dst = encode_invocation_designation (charset, coding, dst); \
4ed46869
KH
2232 } while (1)
2233
05e6f5dc
KH
2234#define ENCODE_ISO_CHARACTER(c) \
2235 do { \
2236 int charset, c1, c2; \
2237 \
2238 SPLIT_CHAR (c, charset, c1, c2); \
2239 if (CHARSET_DEFINED_P (charset)) \
2240 { \
2241 if (CHARSET_DIMENSION (charset) == 1) \
2242 { \
2243 if (charset == CHARSET_ASCII \
2244 && coding->flags & CODING_FLAG_ISO_USE_ROMAN) \
2245 charset = charset_latin_jisx0201; \
2246 ENCODE_ISO_CHARACTER_DIMENSION1 (charset, c1); \
2247 } \
2248 else \
2249 { \
2250 if (charset == charset_jisx0208 \
2251 && coding->flags & CODING_FLAG_ISO_USE_OLDJIS) \
2252 charset = charset_jisx0208_1978; \
2253 ENCODE_ISO_CHARACTER_DIMENSION2 (charset, c1, c2); \
2254 } \
2255 } \
2256 else \
2257 { \
2258 *dst++ = c1; \
2259 if (c2 >= 0) \
2260 *dst++ = c2; \
2261 } \
2262 } while (0)
2263
2264
2265/* Instead of encoding character C, produce one or two `?'s. */
2266
2267#define ENCODE_UNSAFE_CHARACTER(c) \
6f551029 2268 do { \
05e6f5dc
KH
2269 ENCODE_ISO_CHARACTER (CODING_INHIBIT_CHARACTER_SUBSTITUTION); \
2270 if (CHARSET_WIDTH (CHAR_CHARSET (c)) > 1) \
2271 ENCODE_ISO_CHARACTER (CODING_INHIBIT_CHARACTER_SUBSTITUTION); \
84fbb8a0 2272 } while (0)
bdd9fb48 2273
05e6f5dc 2274
4ed46869
KH
2275/* Produce designation and invocation codes at a place pointed by DST
2276 to use CHARSET. The element `spec.iso2022' of *CODING is updated.
2277 Return new DST. */
2278
2279unsigned char *
2280encode_invocation_designation (charset, coding, dst)
2281 int charset;
2282 struct coding_system *coding;
2283 unsigned char *dst;
2284{
2285 int reg; /* graphic register number */
2286
2287 /* At first, check designations. */
2288 for (reg = 0; reg < 4; reg++)
2289 if (charset == CODING_SPEC_ISO_DESIGNATION (coding, reg))
2290 break;
2291
2292 if (reg >= 4)
2293 {
2294 /* CHARSET is not yet designated to any graphic registers. */
2295 /* At first check the requested designation. */
2296 reg = CODING_SPEC_ISO_REQUESTED_DESIGNATION (coding, charset);
1ba9e4ab
KH
2297 if (reg == CODING_SPEC_ISO_NO_REQUESTED_DESIGNATION)
2298 /* Since CHARSET requests no special designation, designate it
2299 to graphic register 0. */
4ed46869
KH
2300 reg = 0;
2301
2302 ENCODE_DESIGNATION (charset, reg, coding);
2303 }
2304
2305 if (CODING_SPEC_ISO_INVOCATION (coding, 0) != reg
2306 && CODING_SPEC_ISO_INVOCATION (coding, 1) != reg)
2307 {
2308 /* Since the graphic register REG is not invoked to any graphic
2309 planes, invoke it to graphic plane 0. */
2310 switch (reg)
2311 {
2312 case 0: /* graphic register 0 */
2313 ENCODE_SHIFT_IN;
2314 break;
2315
2316 case 1: /* graphic register 1 */
2317 ENCODE_SHIFT_OUT;
2318 break;
2319
2320 case 2: /* graphic register 2 */
2321 if (coding->flags & CODING_FLAG_ISO_SINGLE_SHIFT)
2322 ENCODE_SINGLE_SHIFT_2;
2323 else
2324 ENCODE_LOCKING_SHIFT_2;
2325 break;
2326
2327 case 3: /* graphic register 3 */
2328 if (coding->flags & CODING_FLAG_ISO_SINGLE_SHIFT)
2329 ENCODE_SINGLE_SHIFT_3;
2330 else
2331 ENCODE_LOCKING_SHIFT_3;
2332 break;
2333 }
2334 }
b73bfc1c 2335
4ed46869
KH
2336 return dst;
2337}
2338
ec6d2bb8
KH
2339/* Produce 2-byte codes for encoded composition rule RULE. */
2340
2341#define ENCODE_COMPOSITION_RULE(rule) \
2342 do { \
2343 int gref, nref; \
2344 COMPOSITION_DECODE_RULE (rule, gref, nref); \
2345 *dst++ = 32 + 81 + gref; \
2346 *dst++ = 32 + nref; \
2347 } while (0)
2348
2349/* Produce codes for indicating the start of a composition sequence
2350 (ESC 0, ESC 3, or ESC 4). DATA points to an array of integers
2351 which specify information about the composition. See the comment
2352 in coding.h for the format of DATA. */
2353
2354#define ENCODE_COMPOSITION_START(coding, data) \
2355 do { \
2356 coding->composing = data[3]; \
2357 *dst++ = ISO_CODE_ESC; \
2358 if (coding->composing == COMPOSITION_RELATIVE) \
2359 *dst++ = '0'; \
2360 else \
2361 { \
2362 *dst++ = (coding->composing == COMPOSITION_WITH_ALTCHARS \
2363 ? '3' : '4'); \
2364 coding->cmp_data_index = coding->cmp_data_start + 4; \
2365 coding->composition_rule_follows = 0; \
2366 } \
2367 } while (0)
2368
2369/* Produce codes for indicating the end of the current composition. */
2370
2371#define ENCODE_COMPOSITION_END(coding, data) \
2372 do { \
2373 *dst++ = ISO_CODE_ESC; \
2374 *dst++ = '1'; \
2375 coding->cmp_data_start += data[0]; \
2376 coding->composing = COMPOSITION_NO; \
2377 if (coding->cmp_data_start == coding->cmp_data->used \
2378 && coding->cmp_data->next) \
2379 { \
2380 coding->cmp_data = coding->cmp_data->next; \
2381 coding->cmp_data_start = 0; \
2382 } \
2383 } while (0)
2384
2385/* Produce composition start sequence ESC 0. Here, this sequence
2386 doesn't mean the start of a new composition but means that we have
2387 just produced components (alternate chars and composition rules) of
2388 the composition and the actual text follows in SRC. */
2389
2390#define ENCODE_COMPOSITION_FAKE_START(coding) \
2391 do { \
2392 *dst++ = ISO_CODE_ESC; \
2393 *dst++ = '0'; \
2394 coding->composing = COMPOSITION_RELATIVE; \
2395 } while (0)
4ed46869
KH
2396
2397/* The following three macros produce codes for indicating direction
2398 of text. */
b73bfc1c
KH
2399#define ENCODE_CONTROL_SEQUENCE_INTRODUCER \
2400 do { \
4ed46869 2401 if (coding->flags == CODING_FLAG_ISO_SEVEN_BITS) \
b73bfc1c
KH
2402 *dst++ = ISO_CODE_ESC, *dst++ = '['; \
2403 else \
2404 *dst++ = ISO_CODE_CSI; \
4ed46869
KH
2405 } while (0)
2406
2407#define ENCODE_DIRECTION_R2L \
b73bfc1c 2408 ENCODE_CONTROL_SEQUENCE_INTRODUCER (dst), *dst++ = '2', *dst++ = ']'
4ed46869
KH
2409
2410#define ENCODE_DIRECTION_L2R \
b73bfc1c 2411 ENCODE_CONTROL_SEQUENCE_INTRODUCER (dst), *dst++ = '0', *dst++ = ']'
4ed46869
KH
2412
2413/* Produce codes for designation and invocation to reset the graphic
2414 planes and registers to initial state. */
e0e989f6
KH
2415#define ENCODE_RESET_PLANE_AND_REGISTER \
2416 do { \
2417 int reg; \
2418 if (CODING_SPEC_ISO_INVOCATION (coding, 0) != 0) \
2419 ENCODE_SHIFT_IN; \
2420 for (reg = 0; reg < 4; reg++) \
2421 if (CODING_SPEC_ISO_INITIAL_DESIGNATION (coding, reg) >= 0 \
2422 && (CODING_SPEC_ISO_DESIGNATION (coding, reg) \
2423 != CODING_SPEC_ISO_INITIAL_DESIGNATION (coding, reg))) \
2424 ENCODE_DESIGNATION \
2425 (CODING_SPEC_ISO_INITIAL_DESIGNATION (coding, reg), reg, coding); \
4ed46869
KH
2426 } while (0)
2427
bdd9fb48 2428/* Produce designation sequences of charsets in the line started from
b73bfc1c 2429 SRC to a place pointed by DST, and return updated DST.
bdd9fb48
KH
2430
2431 If the current block ends before any end-of-line, we may fail to
d46c5b12
KH
2432 find all the necessary designations. */
2433
b73bfc1c
KH
2434static unsigned char *
2435encode_designation_at_bol (coding, translation_table, src, src_end, dst)
e0e989f6 2436 struct coding_system *coding;
b73bfc1c
KH
2437 Lisp_Object translation_table;
2438 unsigned char *src, *src_end, *dst;
e0e989f6 2439{
bdd9fb48
KH
2440 int charset, c, found = 0, reg;
2441 /* Table of charsets to be designated to each graphic register. */
2442 int r[4];
bdd9fb48
KH
2443
2444 for (reg = 0; reg < 4; reg++)
2445 r[reg] = -1;
2446
b73bfc1c 2447 while (found < 4)
e0e989f6 2448 {
b73bfc1c
KH
2449 ONE_MORE_CHAR (c);
2450 if (c == '\n')
2451 break;
93dec019 2452
b73bfc1c 2453 charset = CHAR_CHARSET (c);
e0e989f6 2454 reg = CODING_SPEC_ISO_REQUESTED_DESIGNATION (coding, charset);
d46c5b12 2455 if (reg != CODING_SPEC_ISO_NO_REQUESTED_DESIGNATION && r[reg] < 0)
bdd9fb48
KH
2456 {
2457 found++;
2458 r[reg] = charset;
2459 }
bdd9fb48
KH
2460 }
2461
b73bfc1c 2462 label_end_of_loop:
bdd9fb48
KH
2463 if (found)
2464 {
2465 for (reg = 0; reg < 4; reg++)
2466 if (r[reg] >= 0
2467 && CODING_SPEC_ISO_DESIGNATION (coding, reg) != r[reg])
2468 ENCODE_DESIGNATION (r[reg], reg, coding);
e0e989f6 2469 }
b73bfc1c
KH
2470
2471 return dst;
e0e989f6
KH
2472}
2473
4ed46869
KH
2474/* See the above "GENERAL NOTES on `encode_coding_XXX ()' functions". */
2475
b73bfc1c 2476static void
d46c5b12 2477encode_coding_iso2022 (coding, source, destination, src_bytes, dst_bytes)
4ed46869
KH
2478 struct coding_system *coding;
2479 unsigned char *source, *destination;
2480 int src_bytes, dst_bytes;
4ed46869
KH
2481{
2482 unsigned char *src = source;
2483 unsigned char *src_end = source + src_bytes;
2484 unsigned char *dst = destination;
2485 unsigned char *dst_end = destination + dst_bytes;
b73bfc1c 2486 /* Since the maximum bytes produced by each loop is 20, we subtract 19
4ed46869
KH
2487 from DST_END to assure overflow checking is necessary only at the
2488 head of loop. */
b73bfc1c
KH
2489 unsigned char *adjusted_dst_end = dst_end - 19;
2490 /* SRC_BASE remembers the start position in source in each loop.
2491 The loop will be exited when there's not enough source text to
2492 analyze multi-byte codes (within macro ONE_MORE_CHAR), or when
2493 there's not enough destination area to produce encoded codes
2494 (within macro EMIT_BYTES). */
2495 unsigned char *src_base;
2496 int c;
2497 Lisp_Object translation_table;
05e6f5dc
KH
2498 Lisp_Object safe_chars;
2499
2500 safe_chars = coding_safe_chars (coding);
bdd9fb48 2501
b73bfc1c
KH
2502 if (NILP (Venable_character_translation))
2503 translation_table = Qnil;
2504 else
2505 {
2506 translation_table = coding->translation_table_for_encode;
2507 if (NILP (translation_table))
2508 translation_table = Vstandard_translation_table_for_encode;
2509 }
4ed46869 2510
d46c5b12 2511 coding->consumed_char = 0;
b73bfc1c
KH
2512 coding->errors = 0;
2513 while (1)
4ed46869 2514 {
b73bfc1c
KH
2515 src_base = src;
2516
2517 if (dst >= (dst_bytes ? adjusted_dst_end : (src - 19)))
2518 {
2519 coding->result = CODING_FINISH_INSUFFICIENT_DST;
2520 break;
2521 }
4ed46869 2522
e0e989f6
KH
2523 if (coding->flags & CODING_FLAG_ISO_DESIGNATE_AT_BOL
2524 && CODING_SPEC_ISO_BOL (coding))
2525 {
bdd9fb48 2526 /* We have to produce designation sequences if any now. */
b73bfc1c
KH
2527 dst = encode_designation_at_bol (coding, translation_table,
2528 src, src_end, dst);
e0e989f6
KH
2529 CODING_SPEC_ISO_BOL (coding) = 0;
2530 }
2531
ec6d2bb8
KH
2532 /* Check composition start and end. */
2533 if (coding->composing != COMPOSITION_DISABLED
2534 && coding->cmp_data_start < coding->cmp_data->used)
4ed46869 2535 {
ec6d2bb8
KH
2536 struct composition_data *cmp_data = coding->cmp_data;
2537 int *data = cmp_data->data + coding->cmp_data_start;
2538 int this_pos = cmp_data->char_offset + coding->consumed_char;
2539
2540 if (coding->composing == COMPOSITION_RELATIVE)
4ed46869 2541 {
ec6d2bb8
KH
2542 if (this_pos == data[2])
2543 {
2544 ENCODE_COMPOSITION_END (coding, data);
2545 cmp_data = coding->cmp_data;
2546 data = cmp_data->data + coding->cmp_data_start;
2547 }
4ed46869 2548 }
ec6d2bb8 2549 else if (COMPOSING_P (coding))
4ed46869 2550 {
ec6d2bb8
KH
2551 /* COMPOSITION_WITH_ALTCHARS or COMPOSITION_WITH_RULE_ALTCHAR */
2552 if (coding->cmp_data_index == coding->cmp_data_start + data[0])
2553 /* We have consumed components of the composition.
8ca3766a 2554 What follows in SRC is the composition's base
ec6d2bb8
KH
2555 text. */
2556 ENCODE_COMPOSITION_FAKE_START (coding);
2557 else
4ed46869 2558 {
ec6d2bb8
KH
2559 int c = cmp_data->data[coding->cmp_data_index++];
2560 if (coding->composition_rule_follows)
2561 {
2562 ENCODE_COMPOSITION_RULE (c);
2563 coding->composition_rule_follows = 0;
2564 }
2565 else
2566 {
05e6f5dc
KH
2567 if (coding->flags & CODING_FLAG_ISO_SAFE
2568 && ! CODING_SAFE_CHAR_P (safe_chars, c))
2569 ENCODE_UNSAFE_CHARACTER (c);
2570 else
2571 ENCODE_ISO_CHARACTER (c);
ec6d2bb8
KH
2572 if (coding->composing == COMPOSITION_WITH_RULE_ALTCHARS)
2573 coding->composition_rule_follows = 1;
2574 }
4ed46869
KH
2575 continue;
2576 }
ec6d2bb8
KH
2577 }
2578 if (!COMPOSING_P (coding))
2579 {
2580 if (this_pos == data[1])
4ed46869 2581 {
ec6d2bb8
KH
2582 ENCODE_COMPOSITION_START (coding, data);
2583 continue;
4ed46869 2584 }
4ed46869
KH
2585 }
2586 }
ec6d2bb8 2587
b73bfc1c 2588 ONE_MORE_CHAR (c);
4ed46869 2589
b73bfc1c
KH
2590 /* Now encode the character C. */
2591 if (c < 0x20 || c == 0x7F)
2592 {
2593 if (c == '\r')
19a8d9e0 2594 {
b73bfc1c
KH
2595 if (! (coding->mode & CODING_MODE_SELECTIVE_DISPLAY))
2596 {
2597 if (coding->flags & CODING_FLAG_ISO_RESET_AT_CNTL)
2598 ENCODE_RESET_PLANE_AND_REGISTER;
2599 *dst++ = c;
2600 continue;
2601 }
2602 /* fall down to treat '\r' as '\n' ... */
2603 c = '\n';
19a8d9e0 2604 }
b73bfc1c 2605 if (c == '\n')
19a8d9e0 2606 {
b73bfc1c
KH
2607 if (coding->flags & CODING_FLAG_ISO_RESET_AT_EOL)
2608 ENCODE_RESET_PLANE_AND_REGISTER;
2609 if (coding->flags & CODING_FLAG_ISO_INIT_AT_BOL)
2610 bcopy (coding->spec.iso2022.initial_designation,
2611 coding->spec.iso2022.current_designation,
2612 sizeof coding->spec.iso2022.initial_designation);
2613 if (coding->eol_type == CODING_EOL_LF
2614 || coding->eol_type == CODING_EOL_UNDECIDED)
2615 *dst++ = ISO_CODE_LF;
2616 else if (coding->eol_type == CODING_EOL_CRLF)
2617 *dst++ = ISO_CODE_CR, *dst++ = ISO_CODE_LF;
2618 else
2619 *dst++ = ISO_CODE_CR;
2620 CODING_SPEC_ISO_BOL (coding) = 1;
19a8d9e0 2621 }
93dec019 2622 else
19a8d9e0 2623 {
b73bfc1c
KH
2624 if (coding->flags & CODING_FLAG_ISO_RESET_AT_CNTL)
2625 ENCODE_RESET_PLANE_AND_REGISTER;
2626 *dst++ = c;
19a8d9e0 2627 }
4ed46869 2628 }
b73bfc1c 2629 else if (ASCII_BYTE_P (c))
05e6f5dc 2630 ENCODE_ISO_CHARACTER (c);
b73bfc1c 2631 else if (SINGLE_BYTE_CHAR_P (c))
88993dfd 2632 {
b73bfc1c
KH
2633 *dst++ = c;
2634 coding->errors++;
88993dfd 2635 }
05e6f5dc
KH
2636 else if (coding->flags & CODING_FLAG_ISO_SAFE
2637 && ! CODING_SAFE_CHAR_P (safe_chars, c))
2638 ENCODE_UNSAFE_CHARACTER (c);
b73bfc1c 2639 else
05e6f5dc 2640 ENCODE_ISO_CHARACTER (c);
b73bfc1c
KH
2641
2642 coding->consumed_char++;
84fbb8a0 2643 }
b73bfc1c
KH
2644
2645 label_end_of_loop:
2646 coding->consumed = src_base - source;
d46c5b12 2647 coding->produced = coding->produced_char = dst - destination;
4ed46869
KH
2648}
2649
2650\f
2651/*** 4. SJIS and BIG5 handlers ***/
2652
cfb43547 2653/* Although SJIS and BIG5 are not ISO coding systems, they are used
4ed46869
KH
2654 quite widely. So, for the moment, Emacs supports them in the bare
2655 C code. But, in the future, they may be supported only by CCL. */
2656
2657/* SJIS is a coding system encoding three character sets: ASCII, right
2658 half of JISX0201-Kana, and JISX0208. An ASCII character is encoded
2659 as is. A character of charset katakana-jisx0201 is encoded by
2660 "position-code + 0x80". A character of charset japanese-jisx0208
2661 is encoded in 2-byte but two position-codes are divided and shifted
cfb43547 2662 so that it fits in the range below.
4ed46869
KH
2663
2664 --- CODE RANGE of SJIS ---
2665 (character set) (range)
2666 ASCII 0x00 .. 0x7F
682169fe 2667 KATAKANA-JISX0201 0xA1 .. 0xDF
c28a9453 2668 JISX0208 (1st byte) 0x81 .. 0x9F and 0xE0 .. 0xEF
d14d03ac 2669 (2nd byte) 0x40 .. 0x7E and 0x80 .. 0xFC
4ed46869
KH
2670 -------------------------------
2671
2672*/
2673
2674/* BIG5 is a coding system encoding two character sets: ASCII and
2675 Big5. An ASCII character is encoded as is. Big5 is a two-byte
cfb43547 2676 character set and is encoded in two bytes.
4ed46869
KH
2677
2678 --- CODE RANGE of BIG5 ---
2679 (character set) (range)
2680 ASCII 0x00 .. 0x7F
2681 Big5 (1st byte) 0xA1 .. 0xFE
2682 (2nd byte) 0x40 .. 0x7E and 0xA1 .. 0xFE
2683 --------------------------
2684
2685 Since the number of characters in Big5 is larger than maximum
2686 characters in Emacs' charset (96x96), it can't be handled as one
2687 charset. So, in Emacs, Big5 is divided into two: `charset-big5-1'
2688 and `charset-big5-2'. Both are DIMENSION2 and CHARS94. The former
2689 contains frequently used characters and the latter contains less
2690 frequently used characters. */
2691
2692/* Macros to decode or encode a character of Big5 in BIG5. B1 and B2
2693 are the 1st and 2nd position-codes of Big5 in BIG5 coding system.
f458a8e0 2694 C1 and C2 are the 1st and 2nd position-codes of Emacs' internal
4ed46869
KH
2695 format. CHARSET is `charset_big5_1' or `charset_big5_2'. */
2696
2697/* Number of Big5 characters which have the same code in 1st byte. */
2698#define BIG5_SAME_ROW (0xFF - 0xA1 + 0x7F - 0x40)
2699
2700#define DECODE_BIG5(b1, b2, charset, c1, c2) \
2701 do { \
2702 unsigned int temp \
2703 = (b1 - 0xA1) * BIG5_SAME_ROW + b2 - (b2 < 0x7F ? 0x40 : 0x62); \
2704 if (b1 < 0xC9) \
2705 charset = charset_big5_1; \
2706 else \
2707 { \
2708 charset = charset_big5_2; \
2709 temp -= (0xC9 - 0xA1) * BIG5_SAME_ROW; \
2710 } \
2711 c1 = temp / (0xFF - 0xA1) + 0x21; \
2712 c2 = temp % (0xFF - 0xA1) + 0x21; \
2713 } while (0)
2714
2715#define ENCODE_BIG5(charset, c1, c2, b1, b2) \
2716 do { \
2717 unsigned int temp = (c1 - 0x21) * (0xFF - 0xA1) + (c2 - 0x21); \
2718 if (charset == charset_big5_2) \
2719 temp += BIG5_SAME_ROW * (0xC9 - 0xA1); \
2720 b1 = temp / BIG5_SAME_ROW + 0xA1; \
2721 b2 = temp % BIG5_SAME_ROW; \
2722 b2 += b2 < 0x3F ? 0x40 : 0x62; \
2723 } while (0)
2724
2725/* See the above "GENERAL NOTES on `detect_coding_XXX ()' functions".
2726 Check if a text is encoded in SJIS. If it is, return
2727 CODING_CATEGORY_MASK_SJIS, else return 0. */
2728
0a28aafb
KH
2729static int
2730detect_coding_sjis (src, src_end, multibytep)
4ed46869 2731 unsigned char *src, *src_end;
0a28aafb 2732 int multibytep;
4ed46869 2733{
b73bfc1c
KH
2734 int c;
2735 /* Dummy for ONE_MORE_BYTE. */
2736 struct coding_system dummy_coding;
2737 struct coding_system *coding = &dummy_coding;
4ed46869 2738
b73bfc1c 2739 while (1)
4ed46869 2740 {
0a28aafb 2741 ONE_MORE_BYTE_CHECK_MULTIBYTE (c, multibytep);
682169fe
KH
2742 if (c < 0x80)
2743 continue;
2744 if (c == 0x80 || c == 0xA0 || c > 0xEF)
2745 return 0;
2746 if (c <= 0x9F || c >= 0xE0)
4ed46869 2747 {
682169fe
KH
2748 ONE_MORE_BYTE_CHECK_MULTIBYTE (c, multibytep);
2749 if (c < 0x40 || c == 0x7F || c > 0xFC)
4ed46869
KH
2750 return 0;
2751 }
2752 }
b73bfc1c 2753 label_end_of_loop:
4ed46869
KH
2754 return CODING_CATEGORY_MASK_SJIS;
2755}
2756
2757/* See the above "GENERAL NOTES on `detect_coding_XXX ()' functions".
2758 Check if a text is encoded in BIG5. If it is, return
2759 CODING_CATEGORY_MASK_BIG5, else return 0. */
2760
0a28aafb
KH
2761static int
2762detect_coding_big5 (src, src_end, multibytep)
4ed46869 2763 unsigned char *src, *src_end;
0a28aafb 2764 int multibytep;
4ed46869 2765{
b73bfc1c
KH
2766 int c;
2767 /* Dummy for ONE_MORE_BYTE. */
2768 struct coding_system dummy_coding;
2769 struct coding_system *coding = &dummy_coding;
4ed46869 2770
b73bfc1c 2771 while (1)
4ed46869 2772 {
0a28aafb 2773 ONE_MORE_BYTE_CHECK_MULTIBYTE (c, multibytep);
682169fe
KH
2774 if (c < 0x80)
2775 continue;
2776 if (c < 0xA1 || c > 0xFE)
2777 return 0;
2778 ONE_MORE_BYTE_CHECK_MULTIBYTE (c, multibytep);
2779 if (c < 0x40 || (c > 0x7F && c < 0xA1) || c > 0xFE)
2780 return 0;
4ed46869 2781 }
b73bfc1c 2782 label_end_of_loop:
4ed46869
KH
2783 return CODING_CATEGORY_MASK_BIG5;
2784}
2785
fa42c37f
KH
2786/* See the above "GENERAL NOTES on `detect_coding_XXX ()' functions".
2787 Check if a text is encoded in UTF-8. If it is, return
2788 CODING_CATEGORY_MASK_UTF_8, else return 0. */
2789
2790#define UTF_8_1_OCTET_P(c) ((c) < 0x80)
2791#define UTF_8_EXTRA_OCTET_P(c) (((c) & 0xC0) == 0x80)
2792#define UTF_8_2_OCTET_LEADING_P(c) (((c) & 0xE0) == 0xC0)
2793#define UTF_8_3_OCTET_LEADING_P(c) (((c) & 0xF0) == 0xE0)
2794#define UTF_8_4_OCTET_LEADING_P(c) (((c) & 0xF8) == 0xF0)
2795#define UTF_8_5_OCTET_LEADING_P(c) (((c) & 0xFC) == 0xF8)
2796#define UTF_8_6_OCTET_LEADING_P(c) (((c) & 0xFE) == 0xFC)
2797
0a28aafb
KH
2798static int
2799detect_coding_utf_8 (src, src_end, multibytep)
fa42c37f 2800 unsigned char *src, *src_end;
0a28aafb 2801 int multibytep;
fa42c37f
KH
2802{
2803 unsigned char c;
2804 int seq_maybe_bytes;
b73bfc1c
KH
2805 /* Dummy for ONE_MORE_BYTE. */
2806 struct coding_system dummy_coding;
2807 struct coding_system *coding = &dummy_coding;
fa42c37f 2808
b73bfc1c 2809 while (1)
fa42c37f 2810 {
0a28aafb 2811 ONE_MORE_BYTE_CHECK_MULTIBYTE (c, multibytep);
fa42c37f
KH
2812 if (UTF_8_1_OCTET_P (c))
2813 continue;
2814 else if (UTF_8_2_OCTET_LEADING_P (c))
2815 seq_maybe_bytes = 1;
2816 else if (UTF_8_3_OCTET_LEADING_P (c))
2817 seq_maybe_bytes = 2;
2818 else if (UTF_8_4_OCTET_LEADING_P (c))
2819 seq_maybe_bytes = 3;
2820 else if (UTF_8_5_OCTET_LEADING_P (c))
2821 seq_maybe_bytes = 4;
2822 else if (UTF_8_6_OCTET_LEADING_P (c))
2823 seq_maybe_bytes = 5;
2824 else
2825 return 0;
2826
2827 do
2828 {
0a28aafb 2829 ONE_MORE_BYTE_CHECK_MULTIBYTE (c, multibytep);
fa42c37f
KH
2830 if (!UTF_8_EXTRA_OCTET_P (c))
2831 return 0;
2832 seq_maybe_bytes--;
2833 }
2834 while (seq_maybe_bytes > 0);
2835 }
2836
b73bfc1c 2837 label_end_of_loop:
fa42c37f
KH
2838 return CODING_CATEGORY_MASK_UTF_8;
2839}
2840
2841/* See the above "GENERAL NOTES on `detect_coding_XXX ()' functions".
2842 Check if a text is encoded in UTF-16 Big Endian (endian == 1) or
2843 Little Endian (otherwise). If it is, return
2844 CODING_CATEGORY_MASK_UTF_16_BE or CODING_CATEGORY_MASK_UTF_16_LE,
2845 else return 0. */
2846
2847#define UTF_16_INVALID_P(val) \
2848 (((val) == 0xFFFE) \
2849 || ((val) == 0xFFFF))
2850
2851#define UTF_16_HIGH_SURROGATE_P(val) \
2852 (((val) & 0xD800) == 0xD800)
2853
2854#define UTF_16_LOW_SURROGATE_P(val) \
2855 (((val) & 0xDC00) == 0xDC00)
2856
0a28aafb
KH
2857static int
2858detect_coding_utf_16 (src, src_end, multibytep)
fa42c37f 2859 unsigned char *src, *src_end;
0a28aafb 2860 int multibytep;
fa42c37f 2861{
b73bfc1c
KH
2862 unsigned char c1, c2;
2863 /* Dummy for TWO_MORE_BYTES. */
2864 struct coding_system dummy_coding;
2865 struct coding_system *coding = &dummy_coding;
fa42c37f 2866
0a28aafb
KH
2867 ONE_MORE_BYTE_CHECK_MULTIBYTE (c1, multibytep);
2868 ONE_MORE_BYTE_CHECK_MULTIBYTE (c2, multibytep);
b73bfc1c
KH
2869
2870 if ((c1 == 0xFF) && (c2 == 0xFE))
fa42c37f 2871 return CODING_CATEGORY_MASK_UTF_16_LE;
b73bfc1c 2872 else if ((c1 == 0xFE) && (c2 == 0xFF))
fa42c37f
KH
2873 return CODING_CATEGORY_MASK_UTF_16_BE;
2874
b73bfc1c 2875 label_end_of_loop:
fa42c37f
KH
2876 return 0;
2877}
2878
4ed46869
KH
2879/* See the above "GENERAL NOTES on `decode_coding_XXX ()' functions".
2880 If SJIS_P is 1, decode SJIS text, else decode BIG5 test. */
2881
b73bfc1c 2882static void
4ed46869 2883decode_coding_sjis_big5 (coding, source, destination,
d46c5b12 2884 src_bytes, dst_bytes, sjis_p)
4ed46869
KH
2885 struct coding_system *coding;
2886 unsigned char *source, *destination;
2887 int src_bytes, dst_bytes;
4ed46869
KH
2888 int sjis_p;
2889{
2890 unsigned char *src = source;
2891 unsigned char *src_end = source + src_bytes;
2892 unsigned char *dst = destination;
2893 unsigned char *dst_end = destination + dst_bytes;
b73bfc1c
KH
2894 /* SRC_BASE remembers the start position in source in each loop.
2895 The loop will be exited when there's not enough source code
2896 (within macro ONE_MORE_BYTE), or when there's not enough
2897 destination area to produce a character (within macro
2898 EMIT_CHAR). */
2899 unsigned char *src_base;
2900 Lisp_Object translation_table;
a5d301df 2901
b73bfc1c
KH
2902 if (NILP (Venable_character_translation))
2903 translation_table = Qnil;
2904 else
2905 {
2906 translation_table = coding->translation_table_for_decode;
2907 if (NILP (translation_table))
2908 translation_table = Vstandard_translation_table_for_decode;
2909 }
4ed46869 2910
d46c5b12 2911 coding->produced_char = 0;
b73bfc1c 2912 while (1)
4ed46869 2913 {
b73bfc1c
KH
2914 int c, charset, c1, c2;
2915
2916 src_base = src;
2917 ONE_MORE_BYTE (c1);
2918
2919 if (c1 < 0x80)
4ed46869 2920 {
b73bfc1c
KH
2921 charset = CHARSET_ASCII;
2922 if (c1 < 0x20)
4ed46869 2923 {
b73bfc1c 2924 if (c1 == '\r')
d46c5b12 2925 {
b73bfc1c 2926 if (coding->eol_type == CODING_EOL_CRLF)
d46c5b12 2927 {
b73bfc1c
KH
2928 ONE_MORE_BYTE (c2);
2929 if (c2 == '\n')
2930 c1 = c2;
2931 else if (coding->mode
2932 & CODING_MODE_INHIBIT_INCONSISTENT_EOL)
2933 {
2934 coding->result = CODING_FINISH_INCONSISTENT_EOL;
2935 goto label_end_of_loop;
2936 }
2937 else
2938 /* To process C2 again, SRC is subtracted by 1. */
2939 src--;
d46c5b12 2940 }
b73bfc1c
KH
2941 else if (coding->eol_type == CODING_EOL_CR)
2942 c1 = '\n';
2943 }
2944 else if (c1 == '\n'
2945 && (coding->mode & CODING_MODE_INHIBIT_INCONSISTENT_EOL)
2946 && (coding->eol_type == CODING_EOL_CR
2947 || coding->eol_type == CODING_EOL_CRLF))
2948 {
2949 coding->result = CODING_FINISH_INCONSISTENT_EOL;
2950 goto label_end_of_loop;
d46c5b12 2951 }
4ed46869 2952 }
4ed46869 2953 }
54f78171 2954 else
b73bfc1c 2955 {
4ed46869
KH
2956 if (sjis_p)
2957 {
682169fe 2958 if (c1 == 0x80 || c1 == 0xA0 || c1 > 0xEF)
b73bfc1c 2959 goto label_invalid_code;
682169fe 2960 if (c1 <= 0x9F || c1 >= 0xE0)
fb88bf2d 2961 {
54f78171
KH
2962 /* SJIS -> JISX0208 */
2963 ONE_MORE_BYTE (c2);
b73bfc1c
KH
2964 if (c2 < 0x40 || c2 == 0x7F || c2 > 0xFC)
2965 goto label_invalid_code;
2966 DECODE_SJIS (c1, c2, c1, c2);
2967 charset = charset_jisx0208;
5e34de15 2968 }
fb88bf2d 2969 else
b73bfc1c
KH
2970 /* SJIS -> JISX0201-Kana */
2971 charset = charset_katakana_jisx0201;
4ed46869 2972 }
fb88bf2d 2973 else
fb88bf2d 2974 {
54f78171 2975 /* BIG5 -> Big5 */
682169fe 2976 if (c1 < 0xA0 || c1 > 0xFE)
b73bfc1c
KH
2977 goto label_invalid_code;
2978 ONE_MORE_BYTE (c2);
2979 if (c2 < 0x40 || (c2 > 0x7E && c2 < 0xA1) || c2 > 0xFE)
2980 goto label_invalid_code;
2981 DECODE_BIG5 (c1, c2, charset, c1, c2);
4ed46869
KH
2982 }
2983 }
4ed46869 2984
b73bfc1c
KH
2985 c = DECODE_ISO_CHARACTER (charset, c1, c2);
2986 EMIT_CHAR (c);
fb88bf2d
KH
2987 continue;
2988
b73bfc1c
KH
2989 label_invalid_code:
2990 coding->errors++;
4ed46869 2991 src = src_base;
b73bfc1c
KH
2992 c = *src++;
2993 EMIT_CHAR (c);
fb88bf2d 2994 }
d46c5b12 2995
b73bfc1c
KH
2996 label_end_of_loop:
2997 coding->consumed = coding->consumed_char = src_base - source;
d46c5b12 2998 coding->produced = dst - destination;
b73bfc1c 2999 return;
4ed46869
KH
3000}
3001
3002/* See the above "GENERAL NOTES on `encode_coding_XXX ()' functions".
b73bfc1c
KH
3003 This function can encode charsets `ascii', `katakana-jisx0201',
3004 `japanese-jisx0208', `chinese-big5-1', and `chinese-big5-2'. We
3005 are sure that all these charsets are registered as official charset
4ed46869
KH
3006 (i.e. do not have extended leading-codes). Characters of other
3007 charsets are produced without any encoding. If SJIS_P is 1, encode
3008 SJIS text, else encode BIG5 text. */
3009
b73bfc1c 3010static void
4ed46869 3011encode_coding_sjis_big5 (coding, source, destination,
d46c5b12 3012 src_bytes, dst_bytes, sjis_p)
4ed46869
KH
3013 struct coding_system *coding;
3014 unsigned char *source, *destination;
3015 int src_bytes, dst_bytes;
4ed46869
KH
3016 int sjis_p;
3017{
3018 unsigned char *src = source;
3019 unsigned char *src_end = source + src_bytes;
3020 unsigned char *dst = destination;
3021 unsigned char *dst_end = destination + dst_bytes;
b73bfc1c
KH
3022 /* SRC_BASE remembers the start position in source in each loop.
3023 The loop will be exited when there's not enough source text to
3024 analyze multi-byte codes (within macro ONE_MORE_CHAR), or when
3025 there's not enough destination area to produce encoded codes
3026 (within macro EMIT_BYTES). */
3027 unsigned char *src_base;
3028 Lisp_Object translation_table;
4ed46869 3029
b73bfc1c
KH
3030 if (NILP (Venable_character_translation))
3031 translation_table = Qnil;
3032 else
4ed46869 3033 {
39658efc 3034 translation_table = coding->translation_table_for_encode;
b73bfc1c 3035 if (NILP (translation_table))
39658efc 3036 translation_table = Vstandard_translation_table_for_encode;
b73bfc1c 3037 }
a5d301df 3038
b73bfc1c
KH
3039 while (1)
3040 {
3041 int c, charset, c1, c2;
4ed46869 3042
b73bfc1c
KH
3043 src_base = src;
3044 ONE_MORE_CHAR (c);
93dec019 3045
b73bfc1c
KH
3046 /* Now encode the character C. */
3047 if (SINGLE_BYTE_CHAR_P (c))
3048 {
3049 switch (c)
4ed46869 3050 {
b73bfc1c 3051 case '\r':
7371fe0a 3052 if (!(coding->mode & CODING_MODE_SELECTIVE_DISPLAY))
b73bfc1c
KH
3053 {
3054 EMIT_ONE_BYTE (c);
3055 break;
3056 }
3057 c = '\n';
3058 case '\n':
3059 if (coding->eol_type == CODING_EOL_CRLF)
3060 {
3061 EMIT_TWO_BYTES ('\r', c);
3062 break;
3063 }
3064 else if (coding->eol_type == CODING_EOL_CR)
3065 c = '\r';
3066 default:
3067 EMIT_ONE_BYTE (c);
3068 }
3069 }
3070 else
3071 {
3072 SPLIT_CHAR (c, charset, c1, c2);
3073 if (sjis_p)
3074 {
3075 if (charset == charset_jisx0208
3076 || charset == charset_jisx0208_1978)
3077 {
3078 ENCODE_SJIS (c1, c2, c1, c2);
3079 EMIT_TWO_BYTES (c1, c2);
3080 }
39658efc
KH
3081 else if (charset == charset_katakana_jisx0201)
3082 EMIT_ONE_BYTE (c1 | 0x80);
fc53a214
KH
3083 else if (charset == charset_latin_jisx0201)
3084 EMIT_ONE_BYTE (c1);
b73bfc1c
KH
3085 else
3086 /* There's no way other than producing the internal
3087 codes as is. */
3088 EMIT_BYTES (src_base, src);
4ed46869 3089 }
4ed46869 3090 else
b73bfc1c
KH
3091 {
3092 if (charset == charset_big5_1 || charset == charset_big5_2)
3093 {
3094 ENCODE_BIG5 (charset, c1, c2, c1, c2);
3095 EMIT_TWO_BYTES (c1, c2);
3096 }
3097 else
3098 /* There's no way other than producing the internal
3099 codes as is. */
3100 EMIT_BYTES (src_base, src);
3101 }
4ed46869 3102 }
b73bfc1c 3103 coding->consumed_char++;
4ed46869
KH
3104 }
3105
b73bfc1c
KH
3106 label_end_of_loop:
3107 coding->consumed = src_base - source;
d46c5b12 3108 coding->produced = coding->produced_char = dst - destination;
4ed46869
KH
3109}
3110
3111\f
1397dc18
KH
3112/*** 5. CCL handlers ***/
3113
3114/* See the above "GENERAL NOTES on `detect_coding_XXX ()' functions".
3115 Check if a text is encoded in a coding system of which
3116 encoder/decoder are written in CCL program. If it is, return
3117 CODING_CATEGORY_MASK_CCL, else return 0. */
3118
0a28aafb
KH
3119static int
3120detect_coding_ccl (src, src_end, multibytep)
1397dc18 3121 unsigned char *src, *src_end;
0a28aafb 3122 int multibytep;
1397dc18
KH
3123{
3124 unsigned char *valid;
b73bfc1c
KH
3125 int c;
3126 /* Dummy for ONE_MORE_BYTE. */
3127 struct coding_system dummy_coding;
3128 struct coding_system *coding = &dummy_coding;
1397dc18
KH
3129
3130 /* No coding system is assigned to coding-category-ccl. */
3131 if (!coding_system_table[CODING_CATEGORY_IDX_CCL])
3132 return 0;
3133
3134 valid = coding_system_table[CODING_CATEGORY_IDX_CCL]->spec.ccl.valid_codes;
b73bfc1c 3135 while (1)
1397dc18 3136 {
0a28aafb 3137 ONE_MORE_BYTE_CHECK_MULTIBYTE (c, multibytep);
b73bfc1c
KH
3138 if (! valid[c])
3139 return 0;
1397dc18 3140 }
b73bfc1c 3141 label_end_of_loop:
1397dc18
KH
3142 return CODING_CATEGORY_MASK_CCL;
3143}
3144
3145\f
3146/*** 6. End-of-line handlers ***/
4ed46869 3147
b73bfc1c 3148/* See the above "GENERAL NOTES on `decode_coding_XXX ()' functions". */
4ed46869 3149
b73bfc1c 3150static void
d46c5b12 3151decode_eol (coding, source, destination, src_bytes, dst_bytes)
4ed46869
KH
3152 struct coding_system *coding;
3153 unsigned char *source, *destination;
3154 int src_bytes, dst_bytes;
4ed46869
KH
3155{
3156 unsigned char *src = source;
4ed46869 3157 unsigned char *dst = destination;
b73bfc1c
KH
3158 unsigned char *src_end = src + src_bytes;
3159 unsigned char *dst_end = dst + dst_bytes;
3160 Lisp_Object translation_table;
3161 /* SRC_BASE remembers the start position in source in each loop.
3162 The loop will be exited when there's not enough source code
3163 (within macro ONE_MORE_BYTE), or when there's not enough
3164 destination area to produce a character (within macro
3165 EMIT_CHAR). */
3166 unsigned char *src_base;
3167 int c;
3168
3169 translation_table = Qnil;
4ed46869
KH
3170 switch (coding->eol_type)
3171 {
3172 case CODING_EOL_CRLF:
b73bfc1c 3173 while (1)
d46c5b12 3174 {
b73bfc1c
KH
3175 src_base = src;
3176 ONE_MORE_BYTE (c);
3177 if (c == '\r')
fb88bf2d 3178 {
b73bfc1c
KH
3179 ONE_MORE_BYTE (c);
3180 if (c != '\n')
3181 {
3182 if (coding->mode & CODING_MODE_INHIBIT_INCONSISTENT_EOL)
3183 {
3184 coding->result = CODING_FINISH_INCONSISTENT_EOL;
3185 goto label_end_of_loop;
3186 }
3187 src--;
3188 c = '\r';
3189 }
fb88bf2d 3190 }
b73bfc1c
KH
3191 else if (c == '\n'
3192 && (coding->mode & CODING_MODE_INHIBIT_INCONSISTENT_EOL))
d46c5b12 3193 {
b73bfc1c
KH
3194 coding->result = CODING_FINISH_INCONSISTENT_EOL;
3195 goto label_end_of_loop;
d46c5b12 3196 }
b73bfc1c 3197 EMIT_CHAR (c);
d46c5b12 3198 }
b73bfc1c
KH
3199 break;
3200
3201 case CODING_EOL_CR:
3202 while (1)
d46c5b12 3203 {
b73bfc1c
KH
3204 src_base = src;
3205 ONE_MORE_BYTE (c);
3206 if (c == '\n')
3207 {
3208 if (coding->mode & CODING_MODE_INHIBIT_INCONSISTENT_EOL)
3209 {
3210 coding->result = CODING_FINISH_INCONSISTENT_EOL;
3211 goto label_end_of_loop;
3212 }
3213 }
3214 else if (c == '\r')
3215 c = '\n';
3216 EMIT_CHAR (c);
d46c5b12 3217 }
4ed46869
KH
3218 break;
3219
b73bfc1c
KH
3220 default: /* no need for EOL handling */
3221 while (1)
d46c5b12 3222 {
b73bfc1c
KH
3223 src_base = src;
3224 ONE_MORE_BYTE (c);
3225 EMIT_CHAR (c);
d46c5b12 3226 }
4ed46869
KH
3227 }
3228
b73bfc1c
KH
3229 label_end_of_loop:
3230 coding->consumed = coding->consumed_char = src_base - source;
3231 coding->produced = dst - destination;
3232 return;
4ed46869
KH
3233}
3234
3235/* See "GENERAL NOTES about `encode_coding_XXX ()' functions". Encode
b73bfc1c 3236 format of end-of-line according to `coding->eol_type'. It also
8ca3766a 3237 convert multibyte form 8-bit characters to unibyte if
b73bfc1c
KH
3238 CODING->src_multibyte is nonzero. If `coding->mode &
3239 CODING_MODE_SELECTIVE_DISPLAY' is nonzero, code '\r' in source text
3240 also means end-of-line. */
4ed46869 3241
b73bfc1c 3242static void
d46c5b12 3243encode_eol (coding, source, destination, src_bytes, dst_bytes)
4ed46869 3244 struct coding_system *coding;
a4244313
KR
3245 const unsigned char *source;
3246 unsigned char *destination;
4ed46869 3247 int src_bytes, dst_bytes;
4ed46869 3248{
a4244313 3249 const unsigned char *src = source;
4ed46869 3250 unsigned char *dst = destination;
a4244313 3251 const unsigned char *src_end = src + src_bytes;
b73bfc1c
KH
3252 unsigned char *dst_end = dst + dst_bytes;
3253 Lisp_Object translation_table;
3254 /* SRC_BASE remembers the start position in source in each loop.
3255 The loop will be exited when there's not enough source text to
3256 analyze multi-byte codes (within macro ONE_MORE_CHAR), or when
3257 there's not enough destination area to produce encoded codes
3258 (within macro EMIT_BYTES). */
a4244313
KR
3259 const unsigned char *src_base;
3260 unsigned char *tmp;
b73bfc1c
KH
3261 int c;
3262 int selective_display = coding->mode & CODING_MODE_SELECTIVE_DISPLAY;
3263
3264 translation_table = Qnil;
3265 if (coding->src_multibyte
3266 && *(src_end - 1) == LEADING_CODE_8_BIT_CONTROL)
3267 {
3268 src_end--;
3269 src_bytes--;
3270 coding->result = CODING_FINISH_INSUFFICIENT_SRC;
3271 }
fb88bf2d 3272
d46c5b12
KH
3273 if (coding->eol_type == CODING_EOL_CRLF)
3274 {
b73bfc1c 3275 while (src < src_end)
d46c5b12 3276 {
b73bfc1c 3277 src_base = src;
d46c5b12 3278 c = *src++;
b73bfc1c
KH
3279 if (c >= 0x20)
3280 EMIT_ONE_BYTE (c);
3281 else if (c == '\n' || (c == '\r' && selective_display))
3282 EMIT_TWO_BYTES ('\r', '\n');
d46c5b12 3283 else
b73bfc1c 3284 EMIT_ONE_BYTE (c);
d46c5b12 3285 }
ff2b1ea9 3286 src_base = src;
b73bfc1c 3287 label_end_of_loop:
005f0d35 3288 ;
d46c5b12
KH
3289 }
3290 else
4ed46869 3291 {
78a629d2 3292 if (!dst_bytes || src_bytes <= dst_bytes)
4ed46869 3293 {
b73bfc1c
KH
3294 safe_bcopy (src, dst, src_bytes);
3295 src_base = src_end;
3296 dst += src_bytes;
d46c5b12 3297 }
d46c5b12 3298 else
b73bfc1c
KH
3299 {
3300 if (coding->src_multibyte
3301 && *(src + dst_bytes - 1) == LEADING_CODE_8_BIT_CONTROL)
3302 dst_bytes--;
3303 safe_bcopy (src, dst, dst_bytes);
3304 src_base = src + dst_bytes;
3305 dst = destination + dst_bytes;
3306 coding->result = CODING_FINISH_INSUFFICIENT_DST;
3307 }
993824c9 3308 if (coding->eol_type == CODING_EOL_CR)
d46c5b12 3309 {
a4244313
KR
3310 for (tmp = destination; tmp < dst; tmp++)
3311 if (*tmp == '\n') *tmp = '\r';
d46c5b12 3312 }
b73bfc1c 3313 else if (selective_display)
d46c5b12 3314 {
a4244313
KR
3315 for (tmp = destination; tmp < dst; tmp++)
3316 if (*tmp == '\r') *tmp = '\n';
4ed46869 3317 }
4ed46869 3318 }
b73bfc1c
KH
3319 if (coding->src_multibyte)
3320 dst = destination + str_as_unibyte (destination, dst - destination);
4ed46869 3321
b73bfc1c
KH
3322 coding->consumed = src_base - source;
3323 coding->produced = dst - destination;
78a629d2 3324 coding->produced_char = coding->produced;
4ed46869
KH
3325}
3326
3327\f
1397dc18 3328/*** 7. C library functions ***/
4ed46869 3329
cfb43547 3330/* In Emacs Lisp, a coding system is represented by a Lisp symbol which
4ed46869 3331 has a property `coding-system'. The value of this property is a
cfb43547 3332 vector of length 5 (called the coding-vector). Among elements of
4ed46869
KH
3333 this vector, the first (element[0]) and the fifth (element[4])
3334 carry important information for decoding/encoding. Before
3335 decoding/encoding, this information should be set in fields of a
3336 structure of type `coding_system'.
3337
cfb43547 3338 The value of the property `coding-system' can be a symbol of another
4ed46869
KH
3339 subsidiary coding-system. In that case, Emacs gets coding-vector
3340 from that symbol.
3341
3342 `element[0]' contains information to be set in `coding->type'. The
3343 value and its meaning is as follows:
3344
0ef69138
KH
3345 0 -- coding_type_emacs_mule
3346 1 -- coding_type_sjis
3347 2 -- coding_type_iso2022
3348 3 -- coding_type_big5
3349 4 -- coding_type_ccl encoder/decoder written in CCL
3350 nil -- coding_type_no_conversion
3351 t -- coding_type_undecided (automatic conversion on decoding,
3352 no-conversion on encoding)
4ed46869
KH
3353
3354 `element[4]' contains information to be set in `coding->flags' and
3355 `coding->spec'. The meaning varies by `coding->type'.
3356
3357 If `coding->type' is `coding_type_iso2022', element[4] is a vector
3358 of length 32 (of which the first 13 sub-elements are used now).
3359 Meanings of these sub-elements are:
3360
3361 sub-element[N] where N is 0 through 3: to be set in `coding->spec.iso2022'
3362 If the value is an integer of valid charset, the charset is
3363 assumed to be designated to graphic register N initially.
3364
3365 If the value is minus, it is a minus value of charset which
3366 reserves graphic register N, which means that the charset is
3367 not designated initially but should be designated to graphic
3368 register N just before encoding a character in that charset.
3369
3370 If the value is nil, graphic register N is never used on
3371 encoding.
93dec019 3372
4ed46869
KH
3373 sub-element[N] where N is 4 through 11: to be set in `coding->flags'
3374 Each value takes t or nil. See the section ISO2022 of
3375 `coding.h' for more information.
3376
3377 If `coding->type' is `coding_type_big5', element[4] is t to denote
3378 BIG5-ETen or nil to denote BIG5-HKU.
3379
3380 If `coding->type' takes the other value, element[4] is ignored.
3381
cfb43547 3382 Emacs Lisp's coding systems also carry information about format of
4ed46869
KH
3383 end-of-line in a value of property `eol-type'. If the value is
3384 integer, 0 means CODING_EOL_LF, 1 means CODING_EOL_CRLF, and 2
3385 means CODING_EOL_CR. If it is not integer, it should be a vector
3386 of subsidiary coding systems of which property `eol-type' has one
cfb43547 3387 of the above values.
4ed46869
KH
3388
3389*/
3390
3391/* Extract information for decoding/encoding from CODING_SYSTEM_SYMBOL
3392 and set it in CODING. If CODING_SYSTEM_SYMBOL is invalid, CODING
3393 is setup so that no conversion is necessary and return -1, else
3394 return 0. */
3395
3396int
e0e989f6
KH
3397setup_coding_system (coding_system, coding)
3398 Lisp_Object coding_system;
4ed46869
KH
3399 struct coding_system *coding;
3400{
d46c5b12 3401 Lisp_Object coding_spec, coding_type, eol_type, plist;
4608c386 3402 Lisp_Object val;
4ed46869 3403
c07c8e12
KH
3404 /* At first, zero clear all members. */
3405 bzero (coding, sizeof (struct coding_system));
3406
d46c5b12 3407 /* Initialize some fields required for all kinds of coding systems. */
774324d6 3408 coding->symbol = coding_system;
d46c5b12
KH
3409 coding->heading_ascii = -1;
3410 coding->post_read_conversion = coding->pre_write_conversion = Qnil;
ec6d2bb8
KH
3411 coding->composing = COMPOSITION_DISABLED;
3412 coding->cmp_data = NULL;
1f5dbf34
KH
3413
3414 if (NILP (coding_system))
3415 goto label_invalid_coding_system;
3416
4608c386 3417 coding_spec = Fget (coding_system, Qcoding_system);
1f5dbf34 3418
4608c386
KH
3419 if (!VECTORP (coding_spec)
3420 || XVECTOR (coding_spec)->size != 5
3421 || !CONSP (XVECTOR (coding_spec)->contents[3]))
4ed46869 3422 goto label_invalid_coding_system;
4608c386 3423
d46c5b12
KH
3424 eol_type = inhibit_eol_conversion ? Qnil : Fget (coding_system, Qeol_type);
3425 if (VECTORP (eol_type))
3426 {
3427 coding->eol_type = CODING_EOL_UNDECIDED;
3428 coding->common_flags = CODING_REQUIRE_DETECTION_MASK;
3429 }
3430 else if (XFASTINT (eol_type) == 1)
3431 {
3432 coding->eol_type = CODING_EOL_CRLF;
3433 coding->common_flags
3434 = CODING_REQUIRE_DECODING_MASK | CODING_REQUIRE_ENCODING_MASK;
3435 }
3436 else if (XFASTINT (eol_type) == 2)
3437 {
3438 coding->eol_type = CODING_EOL_CR;
3439 coding->common_flags
3440 = CODING_REQUIRE_DECODING_MASK | CODING_REQUIRE_ENCODING_MASK;
3441 }
3442 else
3443 coding->eol_type = CODING_EOL_LF;
3444
3445 coding_type = XVECTOR (coding_spec)->contents[0];
3446 /* Try short cut. */
3447 if (SYMBOLP (coding_type))
3448 {
3449 if (EQ (coding_type, Qt))
3450 {
3451 coding->type = coding_type_undecided;
3452 coding->common_flags |= CODING_REQUIRE_DETECTION_MASK;
3453 }
3454 else
3455 coding->type = coding_type_no_conversion;
9b96232f
KH
3456 /* Initialize this member. Any thing other than
3457 CODING_CATEGORY_IDX_UTF_16_BE and
3458 CODING_CATEGORY_IDX_UTF_16_LE are ok because they have
3459 special treatment in detect_eol. */
3460 coding->category_idx = CODING_CATEGORY_IDX_EMACS_MULE;
3461
d46c5b12
KH
3462 return 0;
3463 }
3464
d46c5b12
KH
3465 /* Get values of coding system properties:
3466 `post-read-conversion', `pre-write-conversion',
f967223b 3467 `translation-table-for-decode', `translation-table-for-encode'. */
4608c386 3468 plist = XVECTOR (coding_spec)->contents[3];
b843d1ae 3469 /* Pre & post conversion functions should be disabled if
8ca3766a 3470 inhibit_eol_conversion is nonzero. This is the case that a code
b843d1ae
KH
3471 conversion function is called while those functions are running. */
3472 if (! inhibit_pre_post_conversion)
3473 {
3474 coding->post_read_conversion = Fplist_get (plist, Qpost_read_conversion);
3475 coding->pre_write_conversion = Fplist_get (plist, Qpre_write_conversion);
3476 }
f967223b 3477 val = Fplist_get (plist, Qtranslation_table_for_decode);
4608c386 3478 if (SYMBOLP (val))
f967223b
KH
3479 val = Fget (val, Qtranslation_table_for_decode);
3480 coding->translation_table_for_decode = CHAR_TABLE_P (val) ? val : Qnil;
3481 val = Fplist_get (plist, Qtranslation_table_for_encode);
4608c386 3482 if (SYMBOLP (val))
f967223b
KH
3483 val = Fget (val, Qtranslation_table_for_encode);
3484 coding->translation_table_for_encode = CHAR_TABLE_P (val) ? val : Qnil;
d46c5b12
KH
3485 val = Fplist_get (plist, Qcoding_category);
3486 if (!NILP (val))
3487 {
3488 val = Fget (val, Qcoding_category_index);
3489 if (INTEGERP (val))
3490 coding->category_idx = XINT (val);
3491 else
3492 goto label_invalid_coding_system;
3493 }
3494 else
3495 goto label_invalid_coding_system;
93dec019 3496
ec6d2bb8
KH
3497 /* If the coding system has non-nil `composition' property, enable
3498 composition handling. */
3499 val = Fplist_get (plist, Qcomposition);
3500 if (!NILP (val))
3501 coding->composing = COMPOSITION_NO;
3502
d46c5b12 3503 switch (XFASTINT (coding_type))
4ed46869
KH
3504 {
3505 case 0:
0ef69138 3506 coding->type = coding_type_emacs_mule;
aa72b389
KH
3507 coding->common_flags
3508 |= CODING_REQUIRE_DECODING_MASK | CODING_REQUIRE_ENCODING_MASK;
3509 coding->composing = COMPOSITION_NO;
c952af22
KH
3510 if (!NILP (coding->post_read_conversion))
3511 coding->common_flags |= CODING_REQUIRE_DECODING_MASK;
3512 if (!NILP (coding->pre_write_conversion))
3513 coding->common_flags |= CODING_REQUIRE_ENCODING_MASK;
4ed46869
KH
3514 break;
3515
3516 case 1:
3517 coding->type = coding_type_sjis;
c952af22
KH
3518 coding->common_flags
3519 |= CODING_REQUIRE_DECODING_MASK | CODING_REQUIRE_ENCODING_MASK;
4ed46869
KH
3520 break;
3521
3522 case 2:
3523 coding->type = coding_type_iso2022;
c952af22
KH
3524 coding->common_flags
3525 |= CODING_REQUIRE_DECODING_MASK | CODING_REQUIRE_ENCODING_MASK;
4ed46869 3526 {
70c22245 3527 Lisp_Object val, temp;
4ed46869 3528 Lisp_Object *flags;
d46c5b12 3529 int i, charset, reg_bits = 0;
4ed46869 3530
4608c386 3531 val = XVECTOR (coding_spec)->contents[4];
f44d27ce 3532
4ed46869
KH
3533 if (!VECTORP (val) || XVECTOR (val)->size != 32)
3534 goto label_invalid_coding_system;
3535
3536 flags = XVECTOR (val)->contents;
3537 coding->flags
3538 = ((NILP (flags[4]) ? 0 : CODING_FLAG_ISO_SHORT_FORM)
3539 | (NILP (flags[5]) ? 0 : CODING_FLAG_ISO_RESET_AT_EOL)
3540 | (NILP (flags[6]) ? 0 : CODING_FLAG_ISO_RESET_AT_CNTL)
3541 | (NILP (flags[7]) ? 0 : CODING_FLAG_ISO_SEVEN_BITS)
3542 | (NILP (flags[8]) ? 0 : CODING_FLAG_ISO_LOCKING_SHIFT)
3543 | (NILP (flags[9]) ? 0 : CODING_FLAG_ISO_SINGLE_SHIFT)
3544 | (NILP (flags[10]) ? 0 : CODING_FLAG_ISO_USE_ROMAN)
3545 | (NILP (flags[11]) ? 0 : CODING_FLAG_ISO_USE_OLDJIS)
e0e989f6
KH
3546 | (NILP (flags[12]) ? 0 : CODING_FLAG_ISO_NO_DIRECTION)
3547 | (NILP (flags[13]) ? 0 : CODING_FLAG_ISO_INIT_AT_BOL)
c4825358
KH
3548 | (NILP (flags[14]) ? 0 : CODING_FLAG_ISO_DESIGNATE_AT_BOL)
3549 | (NILP (flags[15]) ? 0 : CODING_FLAG_ISO_SAFE)
3f003981 3550 | (NILP (flags[16]) ? 0 : CODING_FLAG_ISO_LATIN_EXTRA)
c4825358 3551 );
4ed46869
KH
3552
3553 /* Invoke graphic register 0 to plane 0. */
3554 CODING_SPEC_ISO_INVOCATION (coding, 0) = 0;
3555 /* Invoke graphic register 1 to plane 1 if we can use full 8-bit. */
3556 CODING_SPEC_ISO_INVOCATION (coding, 1)
3557 = (coding->flags & CODING_FLAG_ISO_SEVEN_BITS ? -1 : 1);
3558 /* Not single shifting at first. */
6e85d753 3559 CODING_SPEC_ISO_SINGLE_SHIFTING (coding) = 0;
e0e989f6 3560 /* Beginning of buffer should also be regarded as bol. */
6e85d753 3561 CODING_SPEC_ISO_BOL (coding) = 1;
4ed46869 3562
70c22245
KH
3563 for (charset = 0; charset <= MAX_CHARSET; charset++)
3564 CODING_SPEC_ISO_REVISION_NUMBER (coding, charset) = 255;
3565 val = Vcharset_revision_alist;
3566 while (CONSP (val))
3567 {
03699b14 3568 charset = get_charset_id (Fcar_safe (XCAR (val)));
70c22245 3569 if (charset >= 0
03699b14 3570 && (temp = Fcdr_safe (XCAR (val)), INTEGERP (temp))
70c22245
KH
3571 && (i = XINT (temp), (i >= 0 && (i + '@') < 128)))
3572 CODING_SPEC_ISO_REVISION_NUMBER (coding, charset) = i;
03699b14 3573 val = XCDR (val);
70c22245
KH
3574 }
3575
4ed46869
KH
3576 /* Checks FLAGS[REG] (REG = 0, 1, 2 3) and decide designations.
3577 FLAGS[REG] can be one of below:
3578 integer CHARSET: CHARSET occupies register I,
3579 t: designate nothing to REG initially, but can be used
3580 by any charsets,
3581 list of integer, nil, or t: designate the first
3582 element (if integer) to REG initially, the remaining
3583 elements (if integer) is designated to REG on request,
d46c5b12 3584 if an element is t, REG can be used by any charsets,
4ed46869 3585 nil: REG is never used. */
467e7675 3586 for (charset = 0; charset <= MAX_CHARSET; charset++)
1ba9e4ab
KH
3587 CODING_SPEC_ISO_REQUESTED_DESIGNATION (coding, charset)
3588 = CODING_SPEC_ISO_NO_REQUESTED_DESIGNATION;
4ed46869
KH
3589 for (i = 0; i < 4; i++)
3590 {
87323294
PJ
3591 if ((INTEGERP (flags[i])
3592 && (charset = XINT (flags[i]), CHARSET_VALID_P (charset)))
e0e989f6 3593 || (charset = get_charset_id (flags[i])) >= 0)
4ed46869
KH
3594 {
3595 CODING_SPEC_ISO_INITIAL_DESIGNATION (coding, i) = charset;
3596 CODING_SPEC_ISO_REQUESTED_DESIGNATION (coding, charset) = i;
3597 }
3598 else if (EQ (flags[i], Qt))
3599 {
3600 CODING_SPEC_ISO_INITIAL_DESIGNATION (coding, i) = -1;
d46c5b12
KH
3601 reg_bits |= 1 << i;
3602 coding->flags |= CODING_FLAG_ISO_DESIGNATION;
4ed46869
KH
3603 }
3604 else if (CONSP (flags[i]))
3605 {
84d60297
RS
3606 Lisp_Object tail;
3607 tail = flags[i];
4ed46869 3608
d46c5b12 3609 coding->flags |= CODING_FLAG_ISO_DESIGNATION;
87323294
PJ
3610 if ((INTEGERP (XCAR (tail))
3611 && (charset = XINT (XCAR (tail)),
3612 CHARSET_VALID_P (charset)))
03699b14 3613 || (charset = get_charset_id (XCAR (tail))) >= 0)
4ed46869
KH
3614 {
3615 CODING_SPEC_ISO_INITIAL_DESIGNATION (coding, i) = charset;
3616 CODING_SPEC_ISO_REQUESTED_DESIGNATION (coding, charset) =i;
3617 }
3618 else
3619 CODING_SPEC_ISO_INITIAL_DESIGNATION (coding, i) = -1;
03699b14 3620 tail = XCDR (tail);
4ed46869
KH
3621 while (CONSP (tail))
3622 {
87323294
PJ
3623 if ((INTEGERP (XCAR (tail))
3624 && (charset = XINT (XCAR (tail)),
3625 CHARSET_VALID_P (charset)))
03699b14 3626 || (charset = get_charset_id (XCAR (tail))) >= 0)
70c22245
KH
3627 CODING_SPEC_ISO_REQUESTED_DESIGNATION (coding, charset)
3628 = i;
03699b14 3629 else if (EQ (XCAR (tail), Qt))
d46c5b12 3630 reg_bits |= 1 << i;
03699b14 3631 tail = XCDR (tail);
4ed46869
KH
3632 }
3633 }
3634 else
3635 CODING_SPEC_ISO_INITIAL_DESIGNATION (coding, i) = -1;
93dec019 3636
4ed46869
KH
3637 CODING_SPEC_ISO_DESIGNATION (coding, i)
3638 = CODING_SPEC_ISO_INITIAL_DESIGNATION (coding, i);
3639 }
3640
d46c5b12 3641 if (reg_bits && ! (coding->flags & CODING_FLAG_ISO_LOCKING_SHIFT))
4ed46869
KH
3642 {
3643 /* REG 1 can be used only by locking shift in 7-bit env. */
3644 if (coding->flags & CODING_FLAG_ISO_SEVEN_BITS)
d46c5b12 3645 reg_bits &= ~2;
4ed46869
KH
3646 if (! (coding->flags & CODING_FLAG_ISO_SINGLE_SHIFT))
3647 /* Without any shifting, only REG 0 and 1 can be used. */
d46c5b12 3648 reg_bits &= 3;
4ed46869
KH
3649 }
3650
d46c5b12
KH
3651 if (reg_bits)
3652 for (charset = 0; charset <= MAX_CHARSET; charset++)
6e85d753 3653 {
928a85c1 3654 if (CHARSET_DEFINED_P (charset)
96148065
KH
3655 && (CODING_SPEC_ISO_REQUESTED_DESIGNATION (coding, charset)
3656 == CODING_SPEC_ISO_NO_REQUESTED_DESIGNATION))
d46c5b12
KH
3657 {
3658 /* There exist some default graphic registers to be
96148065 3659 used by CHARSET. */
d46c5b12
KH
3660
3661 /* We had better avoid designating a charset of
3662 CHARS96 to REG 0 as far as possible. */
3663 if (CHARSET_CHARS (charset) == 96)
3664 CODING_SPEC_ISO_REQUESTED_DESIGNATION (coding, charset)
3665 = (reg_bits & 2
3666 ? 1 : (reg_bits & 4 ? 2 : (reg_bits & 8 ? 3 : 0)));
3667 else
3668 CODING_SPEC_ISO_REQUESTED_DESIGNATION (coding, charset)
3669 = (reg_bits & 1
3670 ? 0 : (reg_bits & 2 ? 1 : (reg_bits & 4 ? 2 : 3)));
3671 }
6e85d753 3672 }
4ed46869 3673 }
c952af22 3674 coding->common_flags |= CODING_REQUIRE_FLUSHING_MASK;
d46c5b12 3675 coding->spec.iso2022.last_invalid_designation_register = -1;
4ed46869
KH
3676 break;
3677
3678 case 3:
3679 coding->type = coding_type_big5;
c952af22
KH
3680 coding->common_flags
3681 |= CODING_REQUIRE_DECODING_MASK | CODING_REQUIRE_ENCODING_MASK;
4ed46869 3682 coding->flags
4608c386 3683 = (NILP (XVECTOR (coding_spec)->contents[4])
4ed46869
KH
3684 ? CODING_FLAG_BIG5_HKU
3685 : CODING_FLAG_BIG5_ETEN);
3686 break;
3687
3688 case 4:
3689 coding->type = coding_type_ccl;
c952af22
KH
3690 coding->common_flags
3691 |= CODING_REQUIRE_DECODING_MASK | CODING_REQUIRE_ENCODING_MASK;
4ed46869 3692 {
84d60297 3693 val = XVECTOR (coding_spec)->contents[4];
ef4ced28
KH
3694 if (! CONSP (val)
3695 || setup_ccl_program (&(coding->spec.ccl.decoder),
03699b14 3696 XCAR (val)) < 0
ef4ced28 3697 || setup_ccl_program (&(coding->spec.ccl.encoder),
03699b14 3698 XCDR (val)) < 0)
4ed46869 3699 goto label_invalid_coding_system;
1397dc18
KH
3700
3701 bzero (coding->spec.ccl.valid_codes, 256);
3702 val = Fplist_get (plist, Qvalid_codes);
3703 if (CONSP (val))
3704 {
3705 Lisp_Object this;
3706
03699b14 3707 for (; CONSP (val); val = XCDR (val))
1397dc18 3708 {
03699b14 3709 this = XCAR (val);
1397dc18
KH
3710 if (INTEGERP (this)
3711 && XINT (this) >= 0 && XINT (this) < 256)
3712 coding->spec.ccl.valid_codes[XINT (this)] = 1;
3713 else if (CONSP (this)
03699b14
KR
3714 && INTEGERP (XCAR (this))
3715 && INTEGERP (XCDR (this)))
1397dc18 3716 {
03699b14
KR
3717 int start = XINT (XCAR (this));
3718 int end = XINT (XCDR (this));
1397dc18
KH
3719
3720 if (start >= 0 && start <= end && end < 256)
e133c8fa 3721 while (start <= end)
1397dc18
KH
3722 coding->spec.ccl.valid_codes[start++] = 1;
3723 }
3724 }
3725 }
4ed46869 3726 }
c952af22 3727 coding->common_flags |= CODING_REQUIRE_FLUSHING_MASK;
aaaf0b1e 3728 coding->spec.ccl.cr_carryover = 0;
1c3478b0 3729 coding->spec.ccl.eight_bit_carryover[0] = 0;
4ed46869
KH
3730 break;
3731
27901516
KH
3732 case 5:
3733 coding->type = coding_type_raw_text;
3734 break;
3735
4ed46869 3736 default:
d46c5b12 3737 goto label_invalid_coding_system;
4ed46869
KH
3738 }
3739 return 0;
3740
3741 label_invalid_coding_system:
3742 coding->type = coding_type_no_conversion;
d46c5b12 3743 coding->category_idx = CODING_CATEGORY_IDX_BINARY;
c952af22 3744 coding->common_flags = 0;
dec137e5 3745 coding->eol_type = CODING_EOL_LF;
d46c5b12 3746 coding->pre_write_conversion = coding->post_read_conversion = Qnil;
4ed46869
KH
3747 return -1;
3748}
3749
ec6d2bb8
KH
3750/* Free memory blocks allocated for storing composition information. */
3751
3752void
3753coding_free_composition_data (coding)
3754 struct coding_system *coding;
3755{
3756 struct composition_data *cmp_data = coding->cmp_data, *next;
3757
3758 if (!cmp_data)
3759 return;
3760 /* Memory blocks are chained. At first, rewind to the first, then,
3761 free blocks one by one. */
3762 while (cmp_data->prev)
3763 cmp_data = cmp_data->prev;
3764 while (cmp_data)
3765 {
3766 next = cmp_data->next;
3767 xfree (cmp_data);
3768 cmp_data = next;
3769 }
3770 coding->cmp_data = NULL;
3771}
3772
3773/* Set `char_offset' member of all memory blocks pointed by
3774 coding->cmp_data to POS. */
3775
3776void
3777coding_adjust_composition_offset (coding, pos)
3778 struct coding_system *coding;
3779 int pos;
3780{
3781 struct composition_data *cmp_data;
3782
3783 for (cmp_data = coding->cmp_data; cmp_data; cmp_data = cmp_data->next)
3784 cmp_data->char_offset = pos;
3785}
3786
54f78171
KH
3787/* Setup raw-text or one of its subsidiaries in the structure
3788 coding_system CODING according to the already setup value eol_type
3789 in CODING. CODING should be setup for some coding system in
3790 advance. */
3791
3792void
3793setup_raw_text_coding_system (coding)
3794 struct coding_system *coding;
3795{
3796 if (coding->type != coding_type_raw_text)
3797 {
3798 coding->symbol = Qraw_text;
3799 coding->type = coding_type_raw_text;
3800 if (coding->eol_type != CODING_EOL_UNDECIDED)
3801 {
84d60297
RS
3802 Lisp_Object subsidiaries;
3803 subsidiaries = Fget (Qraw_text, Qeol_type);
54f78171
KH
3804
3805 if (VECTORP (subsidiaries)
3806 && XVECTOR (subsidiaries)->size == 3)
3807 coding->symbol
3808 = XVECTOR (subsidiaries)->contents[coding->eol_type];
3809 }
716e0b0a 3810 setup_coding_system (coding->symbol, coding);
54f78171
KH
3811 }
3812 return;
3813}
3814
4ed46869
KH
3815/* Emacs has a mechanism to automatically detect a coding system if it
3816 is one of Emacs' internal format, ISO2022, SJIS, and BIG5. But,
3817 it's impossible to distinguish some coding systems accurately
3818 because they use the same range of codes. So, at first, coding
3819 systems are categorized into 7, those are:
3820
0ef69138 3821 o coding-category-emacs-mule
4ed46869
KH
3822
3823 The category for a coding system which has the same code range
3824 as Emacs' internal format. Assigned the coding-system (Lisp
0ef69138 3825 symbol) `emacs-mule' by default.
4ed46869
KH
3826
3827 o coding-category-sjis
3828
3829 The category for a coding system which has the same code range
3830 as SJIS. Assigned the coding-system (Lisp
7717c392 3831 symbol) `japanese-shift-jis' by default.
4ed46869
KH
3832
3833 o coding-category-iso-7
3834
3835 The category for a coding system which has the same code range
7717c392 3836 as ISO2022 of 7-bit environment. This doesn't use any locking
d46c5b12
KH
3837 shift and single shift functions. This can encode/decode all
3838 charsets. Assigned the coding-system (Lisp symbol)
3839 `iso-2022-7bit' by default.
3840
3841 o coding-category-iso-7-tight
3842
3843 Same as coding-category-iso-7 except that this can
3844 encode/decode only the specified charsets.
4ed46869
KH
3845
3846 o coding-category-iso-8-1
3847
3848 The category for a coding system which has the same code range
3849 as ISO2022 of 8-bit environment and graphic plane 1 used only
7717c392
KH
3850 for DIMENSION1 charset. This doesn't use any locking shift
3851 and single shift functions. Assigned the coding-system (Lisp
3852 symbol) `iso-latin-1' by default.
4ed46869
KH
3853
3854 o coding-category-iso-8-2
3855
3856 The category for a coding system which has the same code range
3857 as ISO2022 of 8-bit environment and graphic plane 1 used only
7717c392
KH
3858 for DIMENSION2 charset. This doesn't use any locking shift
3859 and single shift functions. Assigned the coding-system (Lisp
3860 symbol) `japanese-iso-8bit' by default.
4ed46869 3861
7717c392 3862 o coding-category-iso-7-else
4ed46869
KH
3863
3864 The category for a coding system which has the same code range
8ca3766a 3865 as ISO2022 of 7-bit environment but uses locking shift or
7717c392
KH
3866 single shift functions. Assigned the coding-system (Lisp
3867 symbol) `iso-2022-7bit-lock' by default.
3868
3869 o coding-category-iso-8-else
3870
3871 The category for a coding system which has the same code range
8ca3766a 3872 as ISO2022 of 8-bit environment but uses locking shift or
7717c392
KH
3873 single shift functions. Assigned the coding-system (Lisp
3874 symbol) `iso-2022-8bit-ss2' by default.
4ed46869
KH
3875
3876 o coding-category-big5
3877
3878 The category for a coding system which has the same code range
3879 as BIG5. Assigned the coding-system (Lisp symbol)
e0e989f6 3880 `cn-big5' by default.
4ed46869 3881
fa42c37f
KH
3882 o coding-category-utf-8
3883
3884 The category for a coding system which has the same code range
3885 as UTF-8 (cf. RFC2279). Assigned the coding-system (Lisp
3886 symbol) `utf-8' by default.
3887
3888 o coding-category-utf-16-be
3889
3890 The category for a coding system in which a text has an
3891 Unicode signature (cf. Unicode Standard) in the order of BIG
3892 endian at the head. Assigned the coding-system (Lisp symbol)
3893 `utf-16-be' by default.
3894
3895 o coding-category-utf-16-le
3896
3897 The category for a coding system in which a text has an
3898 Unicode signature (cf. Unicode Standard) in the order of
3899 LITTLE endian at the head. Assigned the coding-system (Lisp
3900 symbol) `utf-16-le' by default.
3901
1397dc18
KH
3902 o coding-category-ccl
3903
3904 The category for a coding system of which encoder/decoder is
3905 written in CCL programs. The default value is nil, i.e., no
3906 coding system is assigned.
3907
4ed46869
KH
3908 o coding-category-binary
3909
3910 The category for a coding system not categorized in any of the
3911 above. Assigned the coding-system (Lisp symbol)
e0e989f6 3912 `no-conversion' by default.
4ed46869
KH
3913
3914 Each of them is a Lisp symbol and the value is an actual
cfb43547 3915 `coding-system' (this is also a Lisp symbol) assigned by a user.
4ed46869
KH
3916 What Emacs does actually is to detect a category of coding system.
3917 Then, it uses a `coding-system' assigned to it. If Emacs can't
cfb43547 3918 decide a single possible category, it selects a category of the
4ed46869
KH
3919 highest priority. Priorities of categories are also specified by a
3920 user in a Lisp variable `coding-category-list'.
3921
3922*/
3923
66cfb530
KH
3924static
3925int ascii_skip_code[256];
3926
d46c5b12 3927/* Detect how a text of length SRC_BYTES pointed by SOURCE is encoded.
4ed46869
KH
3928 If it detects possible coding systems, return an integer in which
3929 appropriate flag bits are set. Flag bits are defined by macros
fa42c37f
KH
3930 CODING_CATEGORY_MASK_XXX in `coding.h'. If PRIORITIES is non-NULL,
3931 it should point the table `coding_priorities'. In that case, only
3932 the flag bit for a coding system of the highest priority is set in
0a28aafb
KH
3933 the returned value. If MULTIBYTEP is nonzero, 8-bit codes of the
3934 range 0x80..0x9F are in multibyte form.
4ed46869 3935
d46c5b12
KH
3936 How many ASCII characters are at the head is returned as *SKIP. */
3937
3938static int
0a28aafb 3939detect_coding_mask (source, src_bytes, priorities, skip, multibytep)
d46c5b12
KH
3940 unsigned char *source;
3941 int src_bytes, *priorities, *skip;
0a28aafb 3942 int multibytep;
4ed46869
KH
3943{
3944 register unsigned char c;
d46c5b12 3945 unsigned char *src = source, *src_end = source + src_bytes;
fa42c37f 3946 unsigned int mask, utf16_examined_p, iso2022_examined_p;
da55a2b7 3947 int i;
4ed46869
KH
3948
3949 /* At first, skip all ASCII characters and control characters except
3950 for three ISO2022 specific control characters. */
66cfb530
KH
3951 ascii_skip_code[ISO_CODE_SO] = 0;
3952 ascii_skip_code[ISO_CODE_SI] = 0;
3953 ascii_skip_code[ISO_CODE_ESC] = 0;
3954
bcf26d6a 3955 label_loop_detect_coding:
66cfb530 3956 while (src < src_end && ascii_skip_code[*src]) src++;
d46c5b12 3957 *skip = src - source;
4ed46869
KH
3958
3959 if (src >= src_end)
3960 /* We found nothing other than ASCII. There's nothing to do. */
d46c5b12 3961 return 0;
4ed46869 3962
8a8147d6 3963 c = *src;
4ed46869
KH
3964 /* The text seems to be encoded in some multilingual coding system.
3965 Now, try to find in which coding system the text is encoded. */
3966 if (c < 0x80)
bcf26d6a
KH
3967 {
3968 /* i.e. (c == ISO_CODE_ESC || c == ISO_CODE_SI || c == ISO_CODE_SO) */
3969 /* C is an ISO2022 specific control code of C0. */
0a28aafb 3970 mask = detect_coding_iso2022 (src, src_end, multibytep);
1b2af4b0 3971 if (mask == 0)
d46c5b12
KH
3972 {
3973 /* No valid ISO2022 code follows C. Try again. */
3974 src++;
66cfb530
KH
3975 if (c == ISO_CODE_ESC)
3976 ascii_skip_code[ISO_CODE_ESC] = 1;
3977 else
3978 ascii_skip_code[ISO_CODE_SO] = ascii_skip_code[ISO_CODE_SI] = 1;
d46c5b12
KH
3979 goto label_loop_detect_coding;
3980 }
3981 if (priorities)
fa42c37f
KH
3982 {
3983 for (i = 0; i < CODING_CATEGORY_IDX_MAX; i++)
3984 {
3985 if (mask & priorities[i])
3986 return priorities[i];
3987 }
3988 return CODING_CATEGORY_MASK_RAW_TEXT;
3989 }
bcf26d6a 3990 }
d46c5b12 3991 else
c4825358 3992 {
d46c5b12 3993 int try;
4ed46869 3994
0a28aafb 3995 if (multibytep && c == LEADING_CODE_8_BIT_CONTROL)
67091e59 3996 c = src[1] - 0x20;
0a28aafb 3997
d46c5b12
KH
3998 if (c < 0xA0)
3999 {
4000 /* C is the first byte of SJIS character code,
fa42c37f
KH
4001 or a leading-code of Emacs' internal format (emacs-mule),
4002 or the first byte of UTF-16. */
4003 try = (CODING_CATEGORY_MASK_SJIS
4004 | CODING_CATEGORY_MASK_EMACS_MULE
4005 | CODING_CATEGORY_MASK_UTF_16_BE
4006 | CODING_CATEGORY_MASK_UTF_16_LE);
d46c5b12
KH
4007
4008 /* Or, if C is a special latin extra code,
93dec019 4009 or is an ISO2022 specific control code of C1 (SS2 or SS3),
d46c5b12
KH
4010 or is an ISO2022 control-sequence-introducer (CSI),
4011 we should also consider the possibility of ISO2022 codings. */
4012 if ((VECTORP (Vlatin_extra_code_table)
4013 && !NILP (XVECTOR (Vlatin_extra_code_table)->contents[c]))
4014 || (c == ISO_CODE_SS2 || c == ISO_CODE_SS3)
4015 || (c == ISO_CODE_CSI
4016 && (src < src_end
4017 && (*src == ']'
4018 || ((*src == '0' || *src == '1' || *src == '2')
4019 && src + 1 < src_end
4020 && src[1] == ']')))))
4021 try |= (CODING_CATEGORY_MASK_ISO_8_ELSE
4022 | CODING_CATEGORY_MASK_ISO_8BIT);
4023 }
c4825358 4024 else
d46c5b12
KH
4025 /* C is a character of ISO2022 in graphic plane right,
4026 or a SJIS's 1-byte character code (i.e. JISX0201),
fa42c37f
KH
4027 or the first byte of BIG5's 2-byte code,
4028 or the first byte of UTF-8/16. */
d46c5b12
KH
4029 try = (CODING_CATEGORY_MASK_ISO_8_ELSE
4030 | CODING_CATEGORY_MASK_ISO_8BIT
4031 | CODING_CATEGORY_MASK_SJIS
fa42c37f
KH
4032 | CODING_CATEGORY_MASK_BIG5
4033 | CODING_CATEGORY_MASK_UTF_8
4034 | CODING_CATEGORY_MASK_UTF_16_BE
4035 | CODING_CATEGORY_MASK_UTF_16_LE);
d46c5b12 4036
1397dc18
KH
4037 /* Or, we may have to consider the possibility of CCL. */
4038 if (coding_system_table[CODING_CATEGORY_IDX_CCL]
4039 && (coding_system_table[CODING_CATEGORY_IDX_CCL]
4040 ->spec.ccl.valid_codes)[c])
4041 try |= CODING_CATEGORY_MASK_CCL;
4042
d46c5b12 4043 mask = 0;
fa42c37f 4044 utf16_examined_p = iso2022_examined_p = 0;
d46c5b12
KH
4045 if (priorities)
4046 {
4047 for (i = 0; i < CODING_CATEGORY_IDX_MAX; i++)
4048 {
fa42c37f
KH
4049 if (!iso2022_examined_p
4050 && (priorities[i] & try & CODING_CATEGORY_MASK_ISO))
4051 {
0192762c 4052 mask |= detect_coding_iso2022 (src, src_end, multibytep);
fa42c37f
KH
4053 iso2022_examined_p = 1;
4054 }
5ab13dd0 4055 else if (priorities[i] & try & CODING_CATEGORY_MASK_SJIS)
0a28aafb 4056 mask |= detect_coding_sjis (src, src_end, multibytep);
fa42c37f 4057 else if (priorities[i] & try & CODING_CATEGORY_MASK_UTF_8)
0a28aafb 4058 mask |= detect_coding_utf_8 (src, src_end, multibytep);
fa42c37f
KH
4059 else if (!utf16_examined_p
4060 && (priorities[i] & try &
4061 CODING_CATEGORY_MASK_UTF_16_BE_LE))
4062 {
0a28aafb 4063 mask |= detect_coding_utf_16 (src, src_end, multibytep);
fa42c37f
KH
4064 utf16_examined_p = 1;
4065 }
5ab13dd0 4066 else if (priorities[i] & try & CODING_CATEGORY_MASK_BIG5)
0a28aafb 4067 mask |= detect_coding_big5 (src, src_end, multibytep);
5ab13dd0 4068 else if (priorities[i] & try & CODING_CATEGORY_MASK_EMACS_MULE)
0a28aafb 4069 mask |= detect_coding_emacs_mule (src, src_end, multibytep);
89fa8b36 4070 else if (priorities[i] & try & CODING_CATEGORY_MASK_CCL)
0a28aafb 4071 mask |= detect_coding_ccl (src, src_end, multibytep);
5ab13dd0 4072 else if (priorities[i] & CODING_CATEGORY_MASK_RAW_TEXT)
fa42c37f 4073 mask |= CODING_CATEGORY_MASK_RAW_TEXT;
5ab13dd0 4074 else if (priorities[i] & CODING_CATEGORY_MASK_BINARY)
fa42c37f
KH
4075 mask |= CODING_CATEGORY_MASK_BINARY;
4076 if (mask & priorities[i])
4077 return priorities[i];
d46c5b12
KH
4078 }
4079 return CODING_CATEGORY_MASK_RAW_TEXT;
4080 }
4081 if (try & CODING_CATEGORY_MASK_ISO)
0a28aafb 4082 mask |= detect_coding_iso2022 (src, src_end, multibytep);
d46c5b12 4083 if (try & CODING_CATEGORY_MASK_SJIS)
0a28aafb 4084 mask |= detect_coding_sjis (src, src_end, multibytep);
d46c5b12 4085 if (try & CODING_CATEGORY_MASK_BIG5)
0a28aafb 4086 mask |= detect_coding_big5 (src, src_end, multibytep);
fa42c37f 4087 if (try & CODING_CATEGORY_MASK_UTF_8)
0a28aafb 4088 mask |= detect_coding_utf_8 (src, src_end, multibytep);
fa42c37f 4089 if (try & CODING_CATEGORY_MASK_UTF_16_BE_LE)
0a28aafb 4090 mask |= detect_coding_utf_16 (src, src_end, multibytep);
d46c5b12 4091 if (try & CODING_CATEGORY_MASK_EMACS_MULE)
0a28aafb 4092 mask |= detect_coding_emacs_mule (src, src_end, multibytep);
1397dc18 4093 if (try & CODING_CATEGORY_MASK_CCL)
0a28aafb 4094 mask |= detect_coding_ccl (src, src_end, multibytep);
c4825358 4095 }
5ab13dd0 4096 return (mask | CODING_CATEGORY_MASK_RAW_TEXT | CODING_CATEGORY_MASK_BINARY);
4ed46869
KH
4097}
4098
4099/* Detect how a text of length SRC_BYTES pointed by SRC is encoded.
4100 The information of the detected coding system is set in CODING. */
4101
4102void
4103detect_coding (coding, src, src_bytes)
4104 struct coding_system *coding;
a4244313 4105 const unsigned char *src;
4ed46869
KH
4106 int src_bytes;
4107{
d46c5b12 4108 unsigned int idx;
da55a2b7 4109 int skip, mask;
84d60297 4110 Lisp_Object val;
4ed46869 4111
84d60297 4112 val = Vcoding_category_list;
64c1e55f
KH
4113 mask = detect_coding_mask (src, src_bytes, coding_priorities, &skip,
4114 coding->src_multibyte);
d46c5b12 4115 coding->heading_ascii = skip;
4ed46869 4116
d46c5b12
KH
4117 if (!mask) return;
4118
4119 /* We found a single coding system of the highest priority in MASK. */
4120 idx = 0;
4121 while (mask && ! (mask & 1)) mask >>= 1, idx++;
4122 if (! mask)
4123 idx = CODING_CATEGORY_IDX_RAW_TEXT;
4ed46869 4124
f5c1dd0d 4125 val = SYMBOL_VALUE (XVECTOR (Vcoding_category_table)->contents[idx]);
d46c5b12
KH
4126
4127 if (coding->eol_type != CODING_EOL_UNDECIDED)
27901516 4128 {
84d60297 4129 Lisp_Object tmp;
d46c5b12 4130
84d60297 4131 tmp = Fget (val, Qeol_type);
d46c5b12
KH
4132 if (VECTORP (tmp))
4133 val = XVECTOR (tmp)->contents[coding->eol_type];
4ed46869 4134 }
b73bfc1c
KH
4135
4136 /* Setup this new coding system while preserving some slots. */
4137 {
4138 int src_multibyte = coding->src_multibyte;
4139 int dst_multibyte = coding->dst_multibyte;
4140
4141 setup_coding_system (val, coding);
4142 coding->src_multibyte = src_multibyte;
4143 coding->dst_multibyte = dst_multibyte;
4144 coding->heading_ascii = skip;
4145 }
4ed46869
KH
4146}
4147
d46c5b12
KH
4148/* Detect how end-of-line of a text of length SRC_BYTES pointed by
4149 SOURCE is encoded. Return one of CODING_EOL_LF, CODING_EOL_CRLF,
4150 CODING_EOL_CR, and CODING_EOL_UNDECIDED.
4151
4152 How many non-eol characters are at the head is returned as *SKIP. */
4ed46869 4153
bc4bc72a
RS
4154#define MAX_EOL_CHECK_COUNT 3
4155
d46c5b12
KH
4156static int
4157detect_eol_type (source, src_bytes, skip)
4158 unsigned char *source;
4159 int src_bytes, *skip;
4ed46869 4160{
d46c5b12 4161 unsigned char *src = source, *src_end = src + src_bytes;
4ed46869 4162 unsigned char c;
bc4bc72a
RS
4163 int total = 0; /* How many end-of-lines are found so far. */
4164 int eol_type = CODING_EOL_UNDECIDED;
4165 int this_eol_type;
4ed46869 4166
d46c5b12
KH
4167 *skip = 0;
4168
bc4bc72a 4169 while (src < src_end && total < MAX_EOL_CHECK_COUNT)
4ed46869
KH
4170 {
4171 c = *src++;
bc4bc72a 4172 if (c == '\n' || c == '\r')
4ed46869 4173 {
d46c5b12
KH
4174 if (*skip == 0)
4175 *skip = src - 1 - source;
bc4bc72a
RS
4176 total++;
4177 if (c == '\n')
4178 this_eol_type = CODING_EOL_LF;
4179 else if (src >= src_end || *src != '\n')
4180 this_eol_type = CODING_EOL_CR;
4ed46869 4181 else
bc4bc72a
RS
4182 this_eol_type = CODING_EOL_CRLF, src++;
4183
4184 if (eol_type == CODING_EOL_UNDECIDED)
4185 /* This is the first end-of-line. */
4186 eol_type = this_eol_type;
4187 else if (eol_type != this_eol_type)
d46c5b12
KH
4188 {
4189 /* The found type is different from what found before. */
4190 eol_type = CODING_EOL_INCONSISTENT;
4191 break;
4192 }
4ed46869
KH
4193 }
4194 }
bc4bc72a 4195
d46c5b12
KH
4196 if (*skip == 0)
4197 *skip = src_end - source;
85a02ca4 4198 return eol_type;
4ed46869
KH
4199}
4200
fa42c37f
KH
4201/* Like detect_eol_type, but detect EOL type in 2-octet
4202 big-endian/little-endian format for coding systems utf-16-be and
4203 utf-16-le. */
4204
4205static int
4206detect_eol_type_in_2_octet_form (source, src_bytes, skip, big_endian_p)
4207 unsigned char *source;
cfb43547 4208 int src_bytes, *skip, big_endian_p;
fa42c37f
KH
4209{
4210 unsigned char *src = source, *src_end = src + src_bytes;
4211 unsigned int c1, c2;
4212 int total = 0; /* How many end-of-lines are found so far. */
4213 int eol_type = CODING_EOL_UNDECIDED;
4214 int this_eol_type;
4215 int msb, lsb;
4216
4217 if (big_endian_p)
4218 msb = 0, lsb = 1;
4219 else
4220 msb = 1, lsb = 0;
4221
4222 *skip = 0;
4223
4224 while ((src + 1) < src_end && total < MAX_EOL_CHECK_COUNT)
4225 {
4226 c1 = (src[msb] << 8) | (src[lsb]);
4227 src += 2;
4228
4229 if (c1 == '\n' || c1 == '\r')
4230 {
4231 if (*skip == 0)
4232 *skip = src - 2 - source;
4233 total++;
4234 if (c1 == '\n')
4235 {
4236 this_eol_type = CODING_EOL_LF;
4237 }
4238 else
4239 {
4240 if ((src + 1) >= src_end)
4241 {
4242 this_eol_type = CODING_EOL_CR;
4243 }
4244 else
4245 {
4246 c2 = (src[msb] << 8) | (src[lsb]);
4247 if (c2 == '\n')
4248 this_eol_type = CODING_EOL_CRLF, src += 2;
4249 else
4250 this_eol_type = CODING_EOL_CR;
4251 }
4252 }
4253
4254 if (eol_type == CODING_EOL_UNDECIDED)
4255 /* This is the first end-of-line. */
4256 eol_type = this_eol_type;
4257 else if (eol_type != this_eol_type)
4258 {
4259 /* The found type is different from what found before. */
4260 eol_type = CODING_EOL_INCONSISTENT;
4261 break;
4262 }
4263 }
4264 }
4265
4266 if (*skip == 0)
4267 *skip = src_end - source;
4268 return eol_type;
4269}
4270
4ed46869
KH
4271/* Detect how end-of-line of a text of length SRC_BYTES pointed by SRC
4272 is encoded. If it detects an appropriate format of end-of-line, it
4273 sets the information in *CODING. */
4274
4275void
4276detect_eol (coding, src, src_bytes)
4277 struct coding_system *coding;
a4244313 4278 const unsigned char *src;
4ed46869
KH
4279 int src_bytes;
4280{
4608c386 4281 Lisp_Object val;
d46c5b12 4282 int skip;
fa42c37f
KH
4283 int eol_type;
4284
4285 switch (coding->category_idx)
4286 {
4287 case CODING_CATEGORY_IDX_UTF_16_BE:
4288 eol_type = detect_eol_type_in_2_octet_form (src, src_bytes, &skip, 1);
4289 break;
4290 case CODING_CATEGORY_IDX_UTF_16_LE:
4291 eol_type = detect_eol_type_in_2_octet_form (src, src_bytes, &skip, 0);
4292 break;
4293 default:
4294 eol_type = detect_eol_type (src, src_bytes, &skip);
4295 break;
4296 }
d46c5b12
KH
4297
4298 if (coding->heading_ascii > skip)
4299 coding->heading_ascii = skip;
4300 else
4301 skip = coding->heading_ascii;
4ed46869 4302
0ef69138 4303 if (eol_type == CODING_EOL_UNDECIDED)
4ed46869 4304 return;
27901516
KH
4305 if (eol_type == CODING_EOL_INCONSISTENT)
4306 {
4307#if 0
4308 /* This code is suppressed until we find a better way to
992f23f2 4309 distinguish raw text file and binary file. */
27901516
KH
4310
4311 /* If we have already detected that the coding is raw-text, the
4312 coding should actually be no-conversion. */
4313 if (coding->type == coding_type_raw_text)
4314 {
4315 setup_coding_system (Qno_conversion, coding);
4316 return;
4317 }
4318 /* Else, let's decode only text code anyway. */
4319#endif /* 0 */
1b2af4b0 4320 eol_type = CODING_EOL_LF;
27901516
KH
4321 }
4322
4608c386 4323 val = Fget (coding->symbol, Qeol_type);
4ed46869 4324 if (VECTORP (val) && XVECTOR (val)->size == 3)
d46c5b12 4325 {
b73bfc1c
KH
4326 int src_multibyte = coding->src_multibyte;
4327 int dst_multibyte = coding->dst_multibyte;
1cd6b64c 4328 struct composition_data *cmp_data = coding->cmp_data;
b73bfc1c 4329
d46c5b12 4330 setup_coding_system (XVECTOR (val)->contents[eol_type], coding);
b73bfc1c
KH
4331 coding->src_multibyte = src_multibyte;
4332 coding->dst_multibyte = dst_multibyte;
d46c5b12 4333 coding->heading_ascii = skip;
1cd6b64c 4334 coding->cmp_data = cmp_data;
d46c5b12
KH
4335 }
4336}
4337
4338#define CONVERSION_BUFFER_EXTRA_ROOM 256
4339
b73bfc1c
KH
4340#define DECODING_BUFFER_MAG(coding) \
4341 (coding->type == coding_type_iso2022 \
4342 ? 3 \
4343 : (coding->type == coding_type_ccl \
4344 ? coding->spec.ccl.decoder.buf_magnification \
4345 : 2))
d46c5b12
KH
4346
4347/* Return maximum size (bytes) of a buffer enough for decoding
4348 SRC_BYTES of text encoded in CODING. */
4349
4350int
4351decoding_buffer_size (coding, src_bytes)
4352 struct coding_system *coding;
4353 int src_bytes;
4354{
4355 return (src_bytes * DECODING_BUFFER_MAG (coding)
4356 + CONVERSION_BUFFER_EXTRA_ROOM);
4357}
4358
4359/* Return maximum size (bytes) of a buffer enough for encoding
4360 SRC_BYTES of text to CODING. */
4361
4362int
4363encoding_buffer_size (coding, src_bytes)
4364 struct coding_system *coding;
4365 int src_bytes;
4366{
4367 int magnification;
4368
4369 if (coding->type == coding_type_ccl)
4370 magnification = coding->spec.ccl.encoder.buf_magnification;
b73bfc1c 4371 else if (CODING_REQUIRE_ENCODING (coding))
d46c5b12 4372 magnification = 3;
b73bfc1c
KH
4373 else
4374 magnification = 1;
d46c5b12
KH
4375
4376 return (src_bytes * magnification + CONVERSION_BUFFER_EXTRA_ROOM);
4377}
4378
73be902c
KH
4379/* Working buffer for code conversion. */
4380struct conversion_buffer
4381{
4382 int size; /* size of data. */
4383 int on_stack; /* 1 if allocated by alloca. */
4384 unsigned char *data;
4385};
d46c5b12 4386
73be902c
KH
4387/* Don't use alloca for allocating memory space larger than this, lest
4388 we overflow their stack. */
4389#define MAX_ALLOCA 16*1024
d46c5b12 4390
73be902c
KH
4391/* Allocate LEN bytes of memory for BUF (struct conversion_buffer). */
4392#define allocate_conversion_buffer(buf, len) \
4393 do { \
4394 if (len < MAX_ALLOCA) \
4395 { \
4396 buf.data = (unsigned char *) alloca (len); \
4397 buf.on_stack = 1; \
4398 } \
4399 else \
4400 { \
4401 buf.data = (unsigned char *) xmalloc (len); \
4402 buf.on_stack = 0; \
4403 } \
4404 buf.size = len; \
4405 } while (0)
d46c5b12 4406
73be902c
KH
4407/* Double the allocated memory for *BUF. */
4408static void
4409extend_conversion_buffer (buf)
4410 struct conversion_buffer *buf;
d46c5b12 4411{
73be902c 4412 if (buf->on_stack)
d46c5b12 4413 {
73be902c
KH
4414 unsigned char *save = buf->data;
4415 buf->data = (unsigned char *) xmalloc (buf->size * 2);
4416 bcopy (save, buf->data, buf->size);
4417 buf->on_stack = 0;
d46c5b12 4418 }
73be902c
KH
4419 else
4420 {
4421 buf->data = (unsigned char *) xrealloc (buf->data, buf->size * 2);
4422 }
4423 buf->size *= 2;
4424}
4425
4426/* Free the allocated memory for BUF if it is not on stack. */
4427static void
4428free_conversion_buffer (buf)
4429 struct conversion_buffer *buf;
4430{
4431 if (!buf->on_stack)
4432 xfree (buf->data);
d46c5b12
KH
4433}
4434
4435int
4436ccl_coding_driver (coding, source, destination, src_bytes, dst_bytes, encodep)
4437 struct coding_system *coding;
4438 unsigned char *source, *destination;
4439 int src_bytes, dst_bytes, encodep;
4440{
4441 struct ccl_program *ccl
4442 = encodep ? &coding->spec.ccl.encoder : &coding->spec.ccl.decoder;
1c3478b0 4443 unsigned char *dst = destination;
d46c5b12 4444
bd64290d 4445 ccl->suppress_error = coding->suppress_error;
ae9ff118 4446 ccl->last_block = coding->mode & CODING_MODE_LAST_BLOCK;
aaaf0b1e 4447 if (encodep)
80e0ca99
KH
4448 {
4449 /* On encoding, EOL format is converted within ccl_driver. For
4450 that, setup proper information in the structure CCL. */
4451 ccl->eol_type = coding->eol_type;
4452 if (ccl->eol_type ==CODING_EOL_UNDECIDED)
4453 ccl->eol_type = CODING_EOL_LF;
4454 ccl->cr_consumed = coding->spec.ccl.cr_carryover;
4455 }
7272d75c 4456 ccl->multibyte = coding->src_multibyte;
1c3478b0
KH
4457 if (coding->spec.ccl.eight_bit_carryover[0] != 0)
4458 {
4459 /* Move carryover bytes to DESTINATION. */
4460 unsigned char *p = coding->spec.ccl.eight_bit_carryover;
4461 while (*p)
4462 *dst++ = *p++;
4463 coding->spec.ccl.eight_bit_carryover[0] = 0;
4464 if (dst_bytes)
4465 dst_bytes -= dst - destination;
4466 }
4467
4468 coding->produced = (ccl_driver (ccl, source, dst, src_bytes, dst_bytes,
4469 &(coding->consumed))
4470 + dst - destination);
4471
b73bfc1c 4472 if (encodep)
80e0ca99
KH
4473 {
4474 coding->produced_char = coding->produced;
4475 coding->spec.ccl.cr_carryover = ccl->cr_consumed;
4476 }
ade8d05e
KH
4477 else if (!ccl->eight_bit_control)
4478 {
4479 /* The produced bytes forms a valid multibyte sequence. */
4480 coding->produced_char
4481 = multibyte_chars_in_text (destination, coding->produced);
4482 coding->spec.ccl.eight_bit_carryover[0] = 0;
4483 }
b73bfc1c
KH
4484 else
4485 {
1c3478b0
KH
4486 /* On decoding, the destination should always multibyte. But,
4487 CCL program might have been generated an invalid multibyte
4488 sequence. Here we make such a sequence valid as
4489 multibyte. */
b73bfc1c
KH
4490 int bytes
4491 = dst_bytes ? dst_bytes : source + coding->consumed - destination;
1c3478b0
KH
4492
4493 if ((coding->consumed < src_bytes
4494 || !ccl->last_block)
4495 && coding->produced >= 1
4496 && destination[coding->produced - 1] >= 0x80)
4497 {
4498 /* We should not convert the tailing 8-bit codes to
4499 multibyte form even if they doesn't form a valid
4500 multibyte sequence. They may form a valid sequence in
4501 the next call. */
4502 int carryover = 0;
4503
4504 if (destination[coding->produced - 1] < 0xA0)
4505 carryover = 1;
4506 else if (coding->produced >= 2)
4507 {
4508 if (destination[coding->produced - 2] >= 0x80)
4509 {
4510 if (destination[coding->produced - 2] < 0xA0)
4511 carryover = 2;
4512 else if (coding->produced >= 3
4513 && destination[coding->produced - 3] >= 0x80
4514 && destination[coding->produced - 3] < 0xA0)
4515 carryover = 3;
4516 }
4517 }
4518 if (carryover > 0)
4519 {
4520 BCOPY_SHORT (destination + coding->produced - carryover,
4521 coding->spec.ccl.eight_bit_carryover,
4522 carryover);
4523 coding->spec.ccl.eight_bit_carryover[carryover] = 0;
4524 coding->produced -= carryover;
4525 }
4526 }
b73bfc1c
KH
4527 coding->produced = str_as_multibyte (destination, bytes,
4528 coding->produced,
4529 &(coding->produced_char));
4530 }
69f76525 4531
d46c5b12
KH
4532 switch (ccl->status)
4533 {
4534 case CCL_STAT_SUSPEND_BY_SRC:
73be902c 4535 coding->result = CODING_FINISH_INSUFFICIENT_SRC;
d46c5b12
KH
4536 break;
4537 case CCL_STAT_SUSPEND_BY_DST:
73be902c 4538 coding->result = CODING_FINISH_INSUFFICIENT_DST;
d46c5b12 4539 break;
9864ebce
KH
4540 case CCL_STAT_QUIT:
4541 case CCL_STAT_INVALID_CMD:
73be902c 4542 coding->result = CODING_FINISH_INTERRUPT;
9864ebce 4543 break;
d46c5b12 4544 default:
73be902c 4545 coding->result = CODING_FINISH_NORMAL;
d46c5b12
KH
4546 break;
4547 }
73be902c 4548 return coding->result;
4ed46869
KH
4549}
4550
aaaf0b1e
KH
4551/* Decode EOL format of the text at PTR of BYTES length destructively
4552 according to CODING->eol_type. This is called after the CCL
4553 program produced a decoded text at PTR. If we do CRLF->LF
4554 conversion, update CODING->produced and CODING->produced_char. */
4555
4556static void
4557decode_eol_post_ccl (coding, ptr, bytes)
4558 struct coding_system *coding;
4559 unsigned char *ptr;
4560 int bytes;
4561{
4562 Lisp_Object val, saved_coding_symbol;
4563 unsigned char *pend = ptr + bytes;
4564 int dummy;
4565
4566 /* Remember the current coding system symbol. We set it back when
4567 an inconsistent EOL is found so that `last-coding-system-used' is
4568 set to the coding system that doesn't specify EOL conversion. */
4569 saved_coding_symbol = coding->symbol;
4570
4571 coding->spec.ccl.cr_carryover = 0;
4572 if (coding->eol_type == CODING_EOL_UNDECIDED)
4573 {
4574 /* Here, to avoid the call of setup_coding_system, we directly
4575 call detect_eol_type. */
4576 coding->eol_type = detect_eol_type (ptr, bytes, &dummy);
74b01b80
EZ
4577 if (coding->eol_type == CODING_EOL_INCONSISTENT)
4578 coding->eol_type = CODING_EOL_LF;
4579 if (coding->eol_type != CODING_EOL_UNDECIDED)
4580 {
4581 val = Fget (coding->symbol, Qeol_type);
4582 if (VECTORP (val) && XVECTOR (val)->size == 3)
4583 coding->symbol = XVECTOR (val)->contents[coding->eol_type];
4584 }
aaaf0b1e
KH
4585 coding->mode |= CODING_MODE_INHIBIT_INCONSISTENT_EOL;
4586 }
4587
74b01b80
EZ
4588 if (coding->eol_type == CODING_EOL_LF
4589 || coding->eol_type == CODING_EOL_UNDECIDED)
aaaf0b1e
KH
4590 {
4591 /* We have nothing to do. */
4592 ptr = pend;
4593 }
4594 else if (coding->eol_type == CODING_EOL_CRLF)
4595 {
4596 unsigned char *pstart = ptr, *p = ptr;
4597
4598 if (! (coding->mode & CODING_MODE_LAST_BLOCK)
4599 && *(pend - 1) == '\r')
4600 {
4601 /* If the last character is CR, we can't handle it here
4602 because LF will be in the not-yet-decoded source text.
9861e777 4603 Record that the CR is not yet processed. */
aaaf0b1e
KH
4604 coding->spec.ccl.cr_carryover = 1;
4605 coding->produced--;
4606 coding->produced_char--;
4607 pend--;
4608 }
4609 while (ptr < pend)
4610 {
4611 if (*ptr == '\r')
4612 {
4613 if (ptr + 1 < pend && *(ptr + 1) == '\n')
4614 {
4615 *p++ = '\n';
4616 ptr += 2;
4617 }
4618 else
4619 {
4620 if (coding->mode & CODING_MODE_INHIBIT_INCONSISTENT_EOL)
4621 goto undo_eol_conversion;
4622 *p++ = *ptr++;
4623 }
4624 }
4625 else if (*ptr == '\n'
4626 && coding->mode & CODING_MODE_INHIBIT_INCONSISTENT_EOL)
4627 goto undo_eol_conversion;
4628 else
4629 *p++ = *ptr++;
4630 continue;
4631
4632 undo_eol_conversion:
4633 /* We have faced with inconsistent EOL format at PTR.
4634 Convert all LFs before PTR back to CRLFs. */
4635 for (p--, ptr--; p >= pstart; p--)
4636 {
4637 if (*p == '\n')
4638 *ptr-- = '\n', *ptr-- = '\r';
4639 else
4640 *ptr-- = *p;
4641 }
4642 /* If carryover is recorded, cancel it because we don't
4643 convert CRLF anymore. */
4644 if (coding->spec.ccl.cr_carryover)
4645 {
4646 coding->spec.ccl.cr_carryover = 0;
4647 coding->produced++;
4648 coding->produced_char++;
4649 pend++;
4650 }
4651 p = ptr = pend;
4652 coding->eol_type = CODING_EOL_LF;
4653 coding->symbol = saved_coding_symbol;
4654 }
4655 if (p < pend)
4656 {
4657 /* As each two-byte sequence CRLF was converted to LF, (PEND
4658 - P) is the number of deleted characters. */
4659 coding->produced -= pend - p;
4660 coding->produced_char -= pend - p;
4661 }
4662 }
4663 else /* i.e. coding->eol_type == CODING_EOL_CR */
4664 {
4665 unsigned char *p = ptr;
4666
4667 for (; ptr < pend; ptr++)
4668 {
4669 if (*ptr == '\r')
4670 *ptr = '\n';
4671 else if (*ptr == '\n'
4672 && coding->mode & CODING_MODE_INHIBIT_INCONSISTENT_EOL)
4673 {
4674 for (; p < ptr; p++)
4675 {
4676 if (*p == '\n')
4677 *p = '\r';
4678 }
4679 ptr = pend;
4680 coding->eol_type = CODING_EOL_LF;
4681 coding->symbol = saved_coding_symbol;
4682 }
4683 }
4684 }
4685}
4686
4ed46869
KH
4687/* See "GENERAL NOTES about `decode_coding_XXX ()' functions". Before
4688 decoding, it may detect coding system and format of end-of-line if
b73bfc1c
KH
4689 those are not yet decided. The source should be unibyte, the
4690 result is multibyte if CODING->dst_multibyte is nonzero, else
4691 unibyte. */
4ed46869
KH
4692
4693int
d46c5b12 4694decode_coding (coding, source, destination, src_bytes, dst_bytes)
4ed46869 4695 struct coding_system *coding;
a4244313
KR
4696 const unsigned char *source;
4697 unsigned char *destination;
4ed46869 4698 int src_bytes, dst_bytes;
4ed46869 4699{
9861e777
EZ
4700 int extra = 0;
4701
0ef69138 4702 if (coding->type == coding_type_undecided)
4ed46869
KH
4703 detect_coding (coding, source, src_bytes);
4704
aaaf0b1e
KH
4705 if (coding->eol_type == CODING_EOL_UNDECIDED
4706 && coding->type != coding_type_ccl)
8844fa83
KH
4707 {
4708 detect_eol (coding, source, src_bytes);
4709 /* We had better recover the original eol format if we
8ca3766a 4710 encounter an inconsistent eol format while decoding. */
8844fa83
KH
4711 coding->mode |= CODING_MODE_INHIBIT_INCONSISTENT_EOL;
4712 }
4ed46869 4713
b73bfc1c
KH
4714 coding->produced = coding->produced_char = 0;
4715 coding->consumed = coding->consumed_char = 0;
4716 coding->errors = 0;
4717 coding->result = CODING_FINISH_NORMAL;
4718
4ed46869
KH
4719 switch (coding->type)
4720 {
4ed46869 4721 case coding_type_sjis:
b73bfc1c
KH
4722 decode_coding_sjis_big5 (coding, source, destination,
4723 src_bytes, dst_bytes, 1);
4ed46869
KH
4724 break;
4725
4726 case coding_type_iso2022:
b73bfc1c
KH
4727 decode_coding_iso2022 (coding, source, destination,
4728 src_bytes, dst_bytes);
4ed46869
KH
4729 break;
4730
4731 case coding_type_big5:
b73bfc1c
KH
4732 decode_coding_sjis_big5 (coding, source, destination,
4733 src_bytes, dst_bytes, 0);
4734 break;
4735
4736 case coding_type_emacs_mule:
4737 decode_coding_emacs_mule (coding, source, destination,
4738 src_bytes, dst_bytes);
4ed46869
KH
4739 break;
4740
4741 case coding_type_ccl:
aaaf0b1e
KH
4742 if (coding->spec.ccl.cr_carryover)
4743 {
9861e777
EZ
4744 /* Put the CR which was not processed by the previous call
4745 of decode_eol_post_ccl in DESTINATION. It will be
4746 decoded together with the following LF by the call to
4747 decode_eol_post_ccl below. */
aaaf0b1e
KH
4748 *destination = '\r';
4749 coding->produced++;
4750 coding->produced_char++;
4751 dst_bytes--;
9861e777 4752 extra = coding->spec.ccl.cr_carryover;
aaaf0b1e 4753 }
9861e777 4754 ccl_coding_driver (coding, source, destination + extra,
b73bfc1c 4755 src_bytes, dst_bytes, 0);
aaaf0b1e 4756 if (coding->eol_type != CODING_EOL_LF)
9861e777
EZ
4757 {
4758 coding->produced += extra;
4759 coding->produced_char += extra;
4760 decode_eol_post_ccl (coding, destination, coding->produced);
4761 }
d46c5b12
KH
4762 break;
4763
b73bfc1c
KH
4764 default:
4765 decode_eol (coding, source, destination, src_bytes, dst_bytes);
4766 }
4767
4768 if (coding->result == CODING_FINISH_INSUFFICIENT_SRC
e7c9eef9 4769 && coding->mode & CODING_MODE_LAST_BLOCK
b73bfc1c
KH
4770 && coding->consumed == src_bytes)
4771 coding->result = CODING_FINISH_NORMAL;
4772
4773 if (coding->mode & CODING_MODE_LAST_BLOCK
4774 && coding->result == CODING_FINISH_INSUFFICIENT_SRC)
4775 {
a4244313 4776 const unsigned char *src = source + coding->consumed;
b73bfc1c
KH
4777 unsigned char *dst = destination + coding->produced;
4778
4779 src_bytes -= coding->consumed;
bb10be8b 4780 coding->errors++;
b73bfc1c
KH
4781 if (COMPOSING_P (coding))
4782 DECODE_COMPOSITION_END ('1');
4783 while (src_bytes--)
d46c5b12 4784 {
b73bfc1c
KH
4785 int c = *src++;
4786 dst += CHAR_STRING (c, dst);
4787 coding->produced_char++;
d46c5b12 4788 }
b73bfc1c
KH
4789 coding->consumed = coding->consumed_char = src - source;
4790 coding->produced = dst - destination;
73be902c 4791 coding->result = CODING_FINISH_NORMAL;
4ed46869
KH
4792 }
4793
b73bfc1c
KH
4794 if (!coding->dst_multibyte)
4795 {
4796 coding->produced = str_as_unibyte (destination, coding->produced);
4797 coding->produced_char = coding->produced;
4798 }
4ed46869 4799
b73bfc1c
KH
4800 return coding->result;
4801}
52d41803 4802
b73bfc1c
KH
4803/* See "GENERAL NOTES about `encode_coding_XXX ()' functions". The
4804 multibyteness of the source is CODING->src_multibyte, the
4805 multibyteness of the result is always unibyte. */
4ed46869
KH
4806
4807int
d46c5b12 4808encode_coding (coding, source, destination, src_bytes, dst_bytes)
4ed46869 4809 struct coding_system *coding;
a4244313
KR
4810 const unsigned char *source;
4811 unsigned char *destination;
4ed46869 4812 int src_bytes, dst_bytes;
4ed46869 4813{
b73bfc1c
KH
4814 coding->produced = coding->produced_char = 0;
4815 coding->consumed = coding->consumed_char = 0;
4816 coding->errors = 0;
4817 coding->result = CODING_FINISH_NORMAL;
4ed46869 4818
d46c5b12
KH
4819 switch (coding->type)
4820 {
4ed46869 4821 case coding_type_sjis:
b73bfc1c
KH
4822 encode_coding_sjis_big5 (coding, source, destination,
4823 src_bytes, dst_bytes, 1);
4ed46869
KH
4824 break;
4825
4826 case coding_type_iso2022:
b73bfc1c
KH
4827 encode_coding_iso2022 (coding, source, destination,
4828 src_bytes, dst_bytes);
4ed46869
KH
4829 break;
4830
4831 case coding_type_big5:
b73bfc1c
KH
4832 encode_coding_sjis_big5 (coding, source, destination,
4833 src_bytes, dst_bytes, 0);
4834 break;
4835
4836 case coding_type_emacs_mule:
4837 encode_coding_emacs_mule (coding, source, destination,
4838 src_bytes, dst_bytes);
4ed46869
KH
4839 break;
4840
4841 case coding_type_ccl:
b73bfc1c
KH
4842 ccl_coding_driver (coding, source, destination,
4843 src_bytes, dst_bytes, 1);
d46c5b12
KH
4844 break;
4845
b73bfc1c
KH
4846 default:
4847 encode_eol (coding, source, destination, src_bytes, dst_bytes);
4848 }
4849
73be902c
KH
4850 if (coding->mode & CODING_MODE_LAST_BLOCK
4851 && coding->result == CODING_FINISH_INSUFFICIENT_SRC)
b73bfc1c 4852 {
a4244313 4853 const unsigned char *src = source + coding->consumed;
b73bfc1c
KH
4854 unsigned char *dst = destination + coding->produced;
4855
4856 if (coding->type == coding_type_iso2022)
4857 ENCODE_RESET_PLANE_AND_REGISTER;
4858 if (COMPOSING_P (coding))
4859 *dst++ = ISO_CODE_ESC, *dst++ = '1';
4860 if (coding->consumed < src_bytes)
d46c5b12 4861 {
b73bfc1c
KH
4862 int len = src_bytes - coding->consumed;
4863
fabf4a91 4864 BCOPY_SHORT (src, dst, len);
b73bfc1c
KH
4865 if (coding->src_multibyte)
4866 len = str_as_unibyte (dst, len);
4867 dst += len;
4868 coding->consumed = src_bytes;
d46c5b12 4869 }
b73bfc1c 4870 coding->produced = coding->produced_char = dst - destination;
73be902c 4871 coding->result = CODING_FINISH_NORMAL;
4ed46869
KH
4872 }
4873
bb10be8b
KH
4874 if (coding->result == CODING_FINISH_INSUFFICIENT_SRC
4875 && coding->consumed == src_bytes)
4876 coding->result = CODING_FINISH_NORMAL;
4877
b73bfc1c 4878 return coding->result;
4ed46869
KH
4879}
4880
fb88bf2d
KH
4881/* Scan text in the region between *BEG and *END (byte positions),
4882 skip characters which we don't have to decode by coding system
4883 CODING at the head and tail, then set *BEG and *END to the region
4884 of the text we actually have to convert. The caller should move
b73bfc1c
KH
4885 the gap out of the region in advance if the region is from a
4886 buffer.
4ed46869 4887
d46c5b12
KH
4888 If STR is not NULL, *BEG and *END are indices into STR. */
4889
4890static void
4891shrink_decoding_region (beg, end, coding, str)
4892 int *beg, *end;
4893 struct coding_system *coding;
4894 unsigned char *str;
4895{
fb88bf2d 4896 unsigned char *begp_orig, *begp, *endp_orig, *endp, c;
d46c5b12 4897 int eol_conversion;
88993dfd 4898 Lisp_Object translation_table;
d46c5b12
KH
4899
4900 if (coding->type == coding_type_ccl
4901 || coding->type == coding_type_undecided
b73bfc1c
KH
4902 || coding->eol_type != CODING_EOL_LF
4903 || !NILP (coding->post_read_conversion)
4904 || coding->composing != COMPOSITION_DISABLED)
d46c5b12
KH
4905 {
4906 /* We can't skip any data. */
4907 return;
4908 }
b73bfc1c
KH
4909 if (coding->type == coding_type_no_conversion
4910 || coding->type == coding_type_raw_text
4911 || coding->type == coding_type_emacs_mule)
d46c5b12 4912 {
fb88bf2d
KH
4913 /* We need no conversion, but don't have to skip any data here.
4914 Decoding routine handles them effectively anyway. */
d46c5b12
KH
4915 return;
4916 }
4917
88993dfd
KH
4918 translation_table = coding->translation_table_for_decode;
4919 if (NILP (translation_table) && !NILP (Venable_character_translation))
4920 translation_table = Vstandard_translation_table_for_decode;
4921 if (CHAR_TABLE_P (translation_table))
4922 {
4923 int i;
4924 for (i = 0; i < 128; i++)
4925 if (!NILP (CHAR_TABLE_REF (translation_table, i)))
4926 break;
4927 if (i < 128)
fa46990e 4928 /* Some ASCII character should be translated. We give up
88993dfd
KH
4929 shrinking. */
4930 return;
4931 }
4932
b73bfc1c 4933 if (coding->heading_ascii >= 0)
d46c5b12
KH
4934 /* Detection routine has already found how much we can skip at the
4935 head. */
4936 *beg += coding->heading_ascii;
4937
4938 if (str)
4939 {
4940 begp_orig = begp = str + *beg;
4941 endp_orig = endp = str + *end;
4942 }
4943 else
4944 {
fb88bf2d 4945 begp_orig = begp = BYTE_POS_ADDR (*beg);
d46c5b12
KH
4946 endp_orig = endp = begp + *end - *beg;
4947 }
4948
fa46990e
DL
4949 eol_conversion = (coding->eol_type == CODING_EOL_CR
4950 || coding->eol_type == CODING_EOL_CRLF);
4951
d46c5b12
KH
4952 switch (coding->type)
4953 {
d46c5b12
KH
4954 case coding_type_sjis:
4955 case coding_type_big5:
4956 /* We can skip all ASCII characters at the head. */
4957 if (coding->heading_ascii < 0)
4958 {
4959 if (eol_conversion)
de9d083c 4960 while (begp < endp && *begp < 0x80 && *begp != '\r') begp++;
d46c5b12
KH
4961 else
4962 while (begp < endp && *begp < 0x80) begp++;
4963 }
4964 /* We can skip all ASCII characters at the tail except for the
4965 second byte of SJIS or BIG5 code. */
4966 if (eol_conversion)
de9d083c 4967 while (begp < endp && endp[-1] < 0x80 && endp[-1] != '\r') endp--;
d46c5b12
KH
4968 else
4969 while (begp < endp && endp[-1] < 0x80) endp--;
ee59c65f
RS
4970 /* Do not consider LF as ascii if preceded by CR, since that
4971 confuses eol decoding. */
4972 if (begp < endp && endp < endp_orig && endp[-1] == '\r' && endp[0] == '\n')
4973 endp++;
d46c5b12
KH
4974 if (begp < endp && endp < endp_orig && endp[-1] >= 0x80)
4975 endp++;
4976 break;
4977
b73bfc1c 4978 case coding_type_iso2022:
622fece5
KH
4979 if (CODING_SPEC_ISO_INITIAL_DESIGNATION (coding, 0) != CHARSET_ASCII)
4980 /* We can't skip any data. */
4981 break;
d46c5b12
KH
4982 if (coding->heading_ascii < 0)
4983 {
d46c5b12
KH
4984 /* We can skip all ASCII characters at the head except for a
4985 few control codes. */
4986 while (begp < endp && (c = *begp) < 0x80
4987 && c != ISO_CODE_CR && c != ISO_CODE_SO
4988 && c != ISO_CODE_SI && c != ISO_CODE_ESC
4989 && (!eol_conversion || c != ISO_CODE_LF))
4990 begp++;
4991 }
4992 switch (coding->category_idx)
4993 {
4994 case CODING_CATEGORY_IDX_ISO_8_1:
4995 case CODING_CATEGORY_IDX_ISO_8_2:
4996 /* We can skip all ASCII characters at the tail. */
4997 if (eol_conversion)
de9d083c 4998 while (begp < endp && (c = endp[-1]) < 0x80 && c != '\r') endp--;
d46c5b12
KH
4999 else
5000 while (begp < endp && endp[-1] < 0x80) endp--;
ee59c65f
RS
5001 /* Do not consider LF as ascii if preceded by CR, since that
5002 confuses eol decoding. */
5003 if (begp < endp && endp < endp_orig && endp[-1] == '\r' && endp[0] == '\n')
5004 endp++;
d46c5b12
KH
5005 break;
5006
5007 case CODING_CATEGORY_IDX_ISO_7:
5008 case CODING_CATEGORY_IDX_ISO_7_TIGHT:
de79a6a5 5009 {
8ca3766a 5010 /* We can skip all characters at the tail except for 8-bit
de79a6a5
KH
5011 codes and ESC and the following 2-byte at the tail. */
5012 unsigned char *eight_bit = NULL;
5013
5014 if (eol_conversion)
5015 while (begp < endp
5016 && (c = endp[-1]) != ISO_CODE_ESC && c != '\r')
5017 {
5018 if (!eight_bit && c & 0x80) eight_bit = endp;
5019 endp--;
5020 }
5021 else
5022 while (begp < endp
5023 && (c = endp[-1]) != ISO_CODE_ESC)
5024 {
5025 if (!eight_bit && c & 0x80) eight_bit = endp;
5026 endp--;
5027 }
5028 /* Do not consider LF as ascii if preceded by CR, since that
5029 confuses eol decoding. */
5030 if (begp < endp && endp < endp_orig
5031 && endp[-1] == '\r' && endp[0] == '\n')
5032 endp++;
5033 if (begp < endp && endp[-1] == ISO_CODE_ESC)
5034 {
5035 if (endp + 1 < endp_orig && end[0] == '(' && end[1] == 'B')
5036 /* This is an ASCII designation sequence. We can
5037 surely skip the tail. But, if we have
5038 encountered an 8-bit code, skip only the codes
5039 after that. */
5040 endp = eight_bit ? eight_bit : endp + 2;
5041 else
5042 /* Hmmm, we can't skip the tail. */
5043 endp = endp_orig;
5044 }
5045 else if (eight_bit)
5046 endp = eight_bit;
5047 }
d46c5b12 5048 }
b73bfc1c
KH
5049 break;
5050
5051 default:
5052 abort ();
d46c5b12
KH
5053 }
5054 *beg += begp - begp_orig;
5055 *end += endp - endp_orig;
5056 return;
5057}
5058
5059/* Like shrink_decoding_region but for encoding. */
5060
5061static void
5062shrink_encoding_region (beg, end, coding, str)
5063 int *beg, *end;
5064 struct coding_system *coding;
5065 unsigned char *str;
5066{
5067 unsigned char *begp_orig, *begp, *endp_orig, *endp;
5068 int eol_conversion;
88993dfd 5069 Lisp_Object translation_table;
d46c5b12 5070
b73bfc1c
KH
5071 if (coding->type == coding_type_ccl
5072 || coding->eol_type == CODING_EOL_CRLF
5073 || coding->eol_type == CODING_EOL_CR
87323294 5074 || (coding->cmp_data && coding->cmp_data->used > 0))
d46c5b12 5075 {
b73bfc1c
KH
5076 /* We can't skip any data. */
5077 return;
5078 }
5079 if (coding->type == coding_type_no_conversion
5080 || coding->type == coding_type_raw_text
5081 || coding->type == coding_type_emacs_mule
5082 || coding->type == coding_type_undecided)
5083 {
5084 /* We need no conversion, but don't have to skip any data here.
5085 Encoding routine handles them effectively anyway. */
d46c5b12
KH
5086 return;
5087 }
5088
88993dfd
KH
5089 translation_table = coding->translation_table_for_encode;
5090 if (NILP (translation_table) && !NILP (Venable_character_translation))
5091 translation_table = Vstandard_translation_table_for_encode;
5092 if (CHAR_TABLE_P (translation_table))
5093 {
5094 int i;
5095 for (i = 0; i < 128; i++)
5096 if (!NILP (CHAR_TABLE_REF (translation_table, i)))
5097 break;
5098 if (i < 128)
8ca3766a 5099 /* Some ASCII character should be translated. We give up
88993dfd
KH
5100 shrinking. */
5101 return;
5102 }
5103
d46c5b12
KH
5104 if (str)
5105 {
5106 begp_orig = begp = str + *beg;
5107 endp_orig = endp = str + *end;
5108 }
5109 else
5110 {
fb88bf2d 5111 begp_orig = begp = BYTE_POS_ADDR (*beg);
d46c5b12
KH
5112 endp_orig = endp = begp + *end - *beg;
5113 }
5114
5115 eol_conversion = (coding->eol_type == CODING_EOL_CR
5116 || coding->eol_type == CODING_EOL_CRLF);
5117
5118 /* Here, we don't have to check coding->pre_write_conversion because
5119 the caller is expected to have handled it already. */
5120 switch (coding->type)
5121 {
d46c5b12 5122 case coding_type_iso2022:
622fece5
KH
5123 if (CODING_SPEC_ISO_INITIAL_DESIGNATION (coding, 0) != CHARSET_ASCII)
5124 /* We can't skip any data. */
5125 break;
d46c5b12
KH
5126 if (coding->flags & CODING_FLAG_ISO_DESIGNATE_AT_BOL)
5127 {
93dec019 5128 unsigned char *bol = begp;
d46c5b12
KH
5129 while (begp < endp && *begp < 0x80)
5130 {
5131 begp++;
5132 if (begp[-1] == '\n')
5133 bol = begp;
5134 }
5135 begp = bol;
5136 goto label_skip_tail;
5137 }
5138 /* fall down ... */
5139
b73bfc1c
KH
5140 case coding_type_sjis:
5141 case coding_type_big5:
d46c5b12
KH
5142 /* We can skip all ASCII characters at the head and tail. */
5143 if (eol_conversion)
5144 while (begp < endp && *begp < 0x80 && *begp != '\n') begp++;
5145 else
5146 while (begp < endp && *begp < 0x80) begp++;
5147 label_skip_tail:
5148 if (eol_conversion)
5149 while (begp < endp && endp[-1] < 0x80 && endp[-1] != '\n') endp--;
5150 else
5151 while (begp < endp && *(endp - 1) < 0x80) endp--;
5152 break;
b73bfc1c
KH
5153
5154 default:
5155 abort ();
d46c5b12
KH
5156 }
5157
5158 *beg += begp - begp_orig;
5159 *end += endp - endp_orig;
5160 return;
5161}
5162
88993dfd
KH
5163/* As shrinking conversion region requires some overhead, we don't try
5164 shrinking if the length of conversion region is less than this
5165 value. */
5166static int shrink_conversion_region_threshhold = 1024;
5167
5168#define SHRINK_CONVERSION_REGION(beg, end, coding, str, encodep) \
5169 do { \
5170 if (*(end) - *(beg) > shrink_conversion_region_threshhold) \
5171 { \
5172 if (encodep) shrink_encoding_region (beg, end, coding, str); \
5173 else shrink_decoding_region (beg, end, coding, str); \
5174 } \
5175 } while (0)
5176
b843d1ae
KH
5177static Lisp_Object
5178code_convert_region_unwind (dummy)
5179 Lisp_Object dummy;
5180{
5181 inhibit_pre_post_conversion = 0;
5182 return Qnil;
5183}
5184
ec6d2bb8
KH
5185/* Store information about all compositions in the range FROM and TO
5186 of OBJ in memory blocks pointed by CODING->cmp_data. OBJ is a
5187 buffer or a string, defaults to the current buffer. */
5188
5189void
5190coding_save_composition (coding, from, to, obj)
5191 struct coding_system *coding;
5192 int from, to;
5193 Lisp_Object obj;
5194{
5195 Lisp_Object prop;
5196 int start, end;
5197
91bee881
KH
5198 if (coding->composing == COMPOSITION_DISABLED)
5199 return;
5200 if (!coding->cmp_data)
5201 coding_allocate_composition_data (coding, from);
ec6d2bb8
KH
5202 if (!find_composition (from, to, &start, &end, &prop, obj)
5203 || end > to)
5204 return;
5205 if (start < from
5206 && (!find_composition (end, to, &start, &end, &prop, obj)
5207 || end > to))
5208 return;
5209 coding->composing = COMPOSITION_NO;
ec6d2bb8
KH
5210 do
5211 {
5212 if (COMPOSITION_VALID_P (start, end, prop))
5213 {
5214 enum composition_method method = COMPOSITION_METHOD (prop);
5215 if (coding->cmp_data->used + COMPOSITION_DATA_MAX_BUNCH_LENGTH
5216 >= COMPOSITION_DATA_SIZE)
5217 coding_allocate_composition_data (coding, from);
5218 /* For relative composition, we remember start and end
5219 positions, for the other compositions, we also remember
5220 components. */
5221 CODING_ADD_COMPOSITION_START (coding, start - from, method);
5222 if (method != COMPOSITION_RELATIVE)
5223 {
5224 /* We must store a*/
5225 Lisp_Object val, ch;
5226
5227 val = COMPOSITION_COMPONENTS (prop);
5228 if (CONSP (val))
5229 while (CONSP (val))
5230 {
5231 ch = XCAR (val), val = XCDR (val);
5232 CODING_ADD_COMPOSITION_COMPONENT (coding, XINT (ch));
5233 }
5234 else if (VECTORP (val) || STRINGP (val))
5235 {
5236 int len = (VECTORP (val)
d5db4077 5237 ? XVECTOR (val)->size : SCHARS (val));
ec6d2bb8
KH
5238 int i;
5239 for (i = 0; i < len; i++)
5240 {
5241 ch = (STRINGP (val)
5242 ? Faref (val, make_number (i))
5243 : XVECTOR (val)->contents[i]);
5244 CODING_ADD_COMPOSITION_COMPONENT (coding, XINT (ch));
5245 }
5246 }
5247 else /* INTEGERP (val) */
5248 CODING_ADD_COMPOSITION_COMPONENT (coding, XINT (val));
5249 }
5250 CODING_ADD_COMPOSITION_END (coding, end - from);
5251 }
5252 start = end;
5253 }
5254 while (start < to
5255 && find_composition (start, to, &start, &end, &prop, obj)
5256 && end <= to);
5257
5258 /* Make coding->cmp_data point to the first memory block. */
5259 while (coding->cmp_data->prev)
5260 coding->cmp_data = coding->cmp_data->prev;
5261 coding->cmp_data_start = 0;
5262}
5263
5264/* Reflect the saved information about compositions to OBJ.
8ca3766a 5265 CODING->cmp_data points to a memory block for the information. OBJ
ec6d2bb8
KH
5266 is a buffer or a string, defaults to the current buffer. */
5267
33fb63eb 5268void
ec6d2bb8
KH
5269coding_restore_composition (coding, obj)
5270 struct coding_system *coding;
5271 Lisp_Object obj;
5272{
5273 struct composition_data *cmp_data = coding->cmp_data;
5274
5275 if (!cmp_data)
5276 return;
5277
5278 while (cmp_data->prev)
5279 cmp_data = cmp_data->prev;
5280
5281 while (cmp_data)
5282 {
5283 int i;
5284
78108bcd
KH
5285 for (i = 0; i < cmp_data->used && cmp_data->data[i] > 0;
5286 i += cmp_data->data[i])
ec6d2bb8
KH
5287 {
5288 int *data = cmp_data->data + i;
5289 enum composition_method method = (enum composition_method) data[3];
5290 Lisp_Object components;
5291
5292 if (method == COMPOSITION_RELATIVE)
5293 components = Qnil;
5294 else
5295 {
5296 int len = data[0] - 4, j;
5297 Lisp_Object args[MAX_COMPOSITION_COMPONENTS * 2 - 1];
5298
5299 for (j = 0; j < len; j++)
5300 args[j] = make_number (data[4 + j]);
5301 components = (method == COMPOSITION_WITH_ALTCHARS
5302 ? Fstring (len, args) : Fvector (len, args));
5303 }
5304 compose_text (data[1], data[2], components, Qnil, obj);
5305 }
5306 cmp_data = cmp_data->next;
5307 }
5308}
5309
d46c5b12 5310/* Decode (if ENCODEP is zero) or encode (if ENCODEP is nonzero) the
fb88bf2d
KH
5311 text from FROM to TO (byte positions are FROM_BYTE and TO_BYTE) by
5312 coding system CODING, and return the status code of code conversion
5313 (currently, this value has no meaning).
5314
5315 How many characters (and bytes) are converted to how many
5316 characters (and bytes) are recorded in members of the structure
5317 CODING.
d46c5b12 5318
6e44253b 5319 If REPLACE is nonzero, we do various things as if the original text
d46c5b12 5320 is deleted and a new text is inserted. See the comments in
b73bfc1c
KH
5321 replace_range (insdel.c) to know what we are doing.
5322
5323 If REPLACE is zero, it is assumed that the source text is unibyte.
8ca3766a 5324 Otherwise, it is assumed that the source text is multibyte. */
4ed46869
KH
5325
5326int
6e44253b
KH
5327code_convert_region (from, from_byte, to, to_byte, coding, encodep, replace)
5328 int from, from_byte, to, to_byte, encodep, replace;
4ed46869 5329 struct coding_system *coding;
4ed46869 5330{
fb88bf2d 5331 int len = to - from, len_byte = to_byte - from_byte;
72d1a715 5332 int nchars_del = 0, nbytes_del = 0;
fb88bf2d 5333 int require, inserted, inserted_byte;
4b39528c 5334 int head_skip, tail_skip, total_skip = 0;
84d60297 5335 Lisp_Object saved_coding_symbol;
fb88bf2d 5336 int first = 1;
fb88bf2d 5337 unsigned char *src, *dst;
84d60297 5338 Lisp_Object deletion;
e133c8fa 5339 int orig_point = PT, orig_len = len;
6abb9bd9 5340 int prev_Z;
b73bfc1c
KH
5341 int multibyte_p = !NILP (current_buffer->enable_multibyte_characters);
5342
84d60297 5343 deletion = Qnil;
8844fa83 5344 saved_coding_symbol = coding->symbol;
d46c5b12 5345
83fa074f 5346 if (from < PT && PT < to)
e133c8fa
KH
5347 {
5348 TEMP_SET_PT_BOTH (from, from_byte);
5349 orig_point = from;
5350 }
83fa074f 5351
6e44253b 5352 if (replace)
d46c5b12 5353 {
fb88bf2d 5354 int saved_from = from;
e077cc80 5355 int saved_inhibit_modification_hooks;
fb88bf2d 5356
d46c5b12 5357 prepare_to_modify_buffer (from, to, &from);
fb88bf2d
KH
5358 if (saved_from != from)
5359 {
5360 to = from + len;
b73bfc1c 5361 from_byte = CHAR_TO_BYTE (from), to_byte = CHAR_TO_BYTE (to);
fb88bf2d
KH
5362 len_byte = to_byte - from_byte;
5363 }
e077cc80
KH
5364
5365 /* The code conversion routine can not preserve text properties
5366 for now. So, we must remove all text properties in the
5367 region. Here, we must suppress all modification hooks. */
5368 saved_inhibit_modification_hooks = inhibit_modification_hooks;
5369 inhibit_modification_hooks = 1;
5370 Fset_text_properties (make_number (from), make_number (to), Qnil, Qnil);
5371 inhibit_modification_hooks = saved_inhibit_modification_hooks;
d46c5b12 5372 }
d46c5b12
KH
5373
5374 if (! encodep && CODING_REQUIRE_DETECTION (coding))
5375 {
12410ef1 5376 /* We must detect encoding of text and eol format. */
d46c5b12
KH
5377
5378 if (from < GPT && to > GPT)
5379 move_gap_both (from, from_byte);
5380 if (coding->type == coding_type_undecided)
5381 {
fb88bf2d 5382 detect_coding (coding, BYTE_POS_ADDR (from_byte), len_byte);
d46c5b12 5383 if (coding->type == coding_type_undecided)
62b3ef1d
KH
5384 {
5385 /* It seems that the text contains only ASCII, but we
d9aef30f 5386 should not leave it undecided because the deeper
62b3ef1d
KH
5387 decoding routine (decode_coding) tries to detect the
5388 encodings again in vain. */
5389 coding->type = coding_type_emacs_mule;
5390 coding->category_idx = CODING_CATEGORY_IDX_EMACS_MULE;
d280ccb6
KH
5391 /* As emacs-mule decoder will handle composition, we
5392 need this setting to allocate coding->cmp_data
5393 later. */
5394 coding->composing = COMPOSITION_NO;
62b3ef1d 5395 }
d46c5b12 5396 }
aaaf0b1e
KH
5397 if (coding->eol_type == CODING_EOL_UNDECIDED
5398 && coding->type != coding_type_ccl)
d46c5b12 5399 {
d46c5b12
KH
5400 detect_eol (coding, BYTE_POS_ADDR (from_byte), len_byte);
5401 if (coding->eol_type == CODING_EOL_UNDECIDED)
5402 coding->eol_type = CODING_EOL_LF;
5403 /* We had better recover the original eol format if we
8ca3766a 5404 encounter an inconsistent eol format while decoding. */
d46c5b12
KH
5405 coding->mode |= CODING_MODE_INHIBIT_INCONSISTENT_EOL;
5406 }
5407 }
5408
d46c5b12
KH
5409 /* Now we convert the text. */
5410
5411 /* For encoding, we must process pre-write-conversion in advance. */
b73bfc1c
KH
5412 if (! inhibit_pre_post_conversion
5413 && encodep
d46c5b12
KH
5414 && SYMBOLP (coding->pre_write_conversion)
5415 && ! NILP (Ffboundp (coding->pre_write_conversion)))
5416 {
2b4f9037
KH
5417 /* The function in pre-write-conversion may put a new text in a
5418 new buffer. */
0007bdd0
KH
5419 struct buffer *prev = current_buffer;
5420 Lisp_Object new;
d46c5b12 5421
b843d1ae
KH
5422 record_unwind_protect (code_convert_region_unwind, Qnil);
5423 /* We should not call any more pre-write/post-read-conversion
5424 functions while this pre-write-conversion is running. */
5425 inhibit_pre_post_conversion = 1;
b39f748c
AS
5426 call2 (coding->pre_write_conversion,
5427 make_number (from), make_number (to));
b843d1ae
KH
5428 inhibit_pre_post_conversion = 0;
5429 /* Discard the unwind protect. */
5430 specpdl_ptr--;
5431
d46c5b12
KH
5432 if (current_buffer != prev)
5433 {
5434 len = ZV - BEGV;
0007bdd0 5435 new = Fcurrent_buffer ();
d46c5b12 5436 set_buffer_internal_1 (prev);
7dae4502 5437 del_range_2 (from, from_byte, to, to_byte, 0);
e133c8fa 5438 TEMP_SET_PT_BOTH (from, from_byte);
0007bdd0
KH
5439 insert_from_buffer (XBUFFER (new), 1, len, 0);
5440 Fkill_buffer (new);
e133c8fa
KH
5441 if (orig_point >= to)
5442 orig_point += len - orig_len;
5443 else if (orig_point > from)
5444 orig_point = from;
5445 orig_len = len;
d46c5b12 5446 to = from + len;
b73bfc1c
KH
5447 from_byte = CHAR_TO_BYTE (from);
5448 to_byte = CHAR_TO_BYTE (to);
d46c5b12 5449 len_byte = to_byte - from_byte;
e133c8fa 5450 TEMP_SET_PT_BOTH (from, from_byte);
d46c5b12
KH
5451 }
5452 }
5453
12410ef1 5454 if (replace)
72d1a715
RS
5455 {
5456 if (! EQ (current_buffer->undo_list, Qt))
5457 deletion = make_buffer_string_both (from, from_byte, to, to_byte, 1);
5458 else
5459 {
5460 nchars_del = to - from;
5461 nbytes_del = to_byte - from_byte;
5462 }
5463 }
12410ef1 5464
ec6d2bb8
KH
5465 if (coding->composing != COMPOSITION_DISABLED)
5466 {
5467 if (encodep)
5468 coding_save_composition (coding, from, to, Fcurrent_buffer ());
5469 else
5470 coding_allocate_composition_data (coding, from);
5471 }
fb88bf2d 5472
b73bfc1c 5473 /* Try to skip the heading and tailing ASCIIs. */
4956c225
KH
5474 if (coding->type != coding_type_ccl)
5475 {
5476 int from_byte_orig = from_byte, to_byte_orig = to_byte;
ec6d2bb8 5477
4956c225
KH
5478 if (from < GPT && GPT < to)
5479 move_gap_both (from, from_byte);
5480 SHRINK_CONVERSION_REGION (&from_byte, &to_byte, coding, NULL, encodep);
5481 if (from_byte == to_byte
5482 && (encodep || NILP (coding->post_read_conversion))
5483 && ! CODING_REQUIRE_FLUSHING (coding))
5484 {
5485 coding->produced = len_byte;
5486 coding->produced_char = len;
5487 if (!replace)
5488 /* We must record and adjust for this new text now. */
5489 adjust_after_insert (from, from_byte_orig, to, to_byte_orig, len);
5490 return 0;
5491 }
5492
5493 head_skip = from_byte - from_byte_orig;
5494 tail_skip = to_byte_orig - to_byte;
5495 total_skip = head_skip + tail_skip;
5496 from += head_skip;
5497 to -= tail_skip;
5498 len -= total_skip; len_byte -= total_skip;
5499 }
d46c5b12 5500
8ca3766a 5501 /* For conversion, we must put the gap before the text in addition to
fb88bf2d
KH
5502 making the gap larger for efficient decoding. The required gap
5503 size starts from 2000 which is the magic number used in make_gap.
5504 But, after one batch of conversion, it will be incremented if we
5505 find that it is not enough . */
d46c5b12
KH
5506 require = 2000;
5507
5508 if (GAP_SIZE < require)
5509 make_gap (require - GAP_SIZE);
5510 move_gap_both (from, from_byte);
5511
d46c5b12 5512 inserted = inserted_byte = 0;
fb88bf2d
KH
5513
5514 GAP_SIZE += len_byte;
5515 ZV -= len;
5516 Z -= len;
5517 ZV_BYTE -= len_byte;
5518 Z_BYTE -= len_byte;
5519
d9f9a1bc
GM
5520 if (GPT - BEG < BEG_UNCHANGED)
5521 BEG_UNCHANGED = GPT - BEG;
5522 if (Z - GPT < END_UNCHANGED)
5523 END_UNCHANGED = Z - GPT;
f2558efd 5524
b73bfc1c
KH
5525 if (!encodep && coding->src_multibyte)
5526 {
5527 /* Decoding routines expects that the source text is unibyte.
5528 We must convert 8-bit characters of multibyte form to
5529 unibyte. */
5530 int len_byte_orig = len_byte;
5531 len_byte = str_as_unibyte (GAP_END_ADDR - len_byte, len_byte);
5532 if (len_byte < len_byte_orig)
5533 safe_bcopy (GAP_END_ADDR - len_byte_orig, GAP_END_ADDR - len_byte,
5534 len_byte);
5535 coding->src_multibyte = 0;
5536 }
5537
d46c5b12
KH
5538 for (;;)
5539 {
fb88bf2d 5540 int result;
d46c5b12 5541
ec6d2bb8 5542 /* The buffer memory is now:
b73bfc1c
KH
5543 +--------+converted-text+---------+-------original-text-------+---+
5544 |<-from->|<--inserted-->|---------|<--------len_byte--------->|---|
5545 |<---------------------- GAP ----------------------->| */
ec6d2bb8
KH
5546 src = GAP_END_ADDR - len_byte;
5547 dst = GPT_ADDR + inserted_byte;
5548
d46c5b12 5549 if (encodep)
fb88bf2d 5550 result = encode_coding (coding, src, dst, len_byte, 0);
d46c5b12 5551 else
0e79d667
RS
5552 {
5553 if (coding->composing != COMPOSITION_DISABLED)
5554 coding->cmp_data->char_offset = from + inserted;
5555 result = decode_coding (coding, src, dst, len_byte, 0);
5556 }
ec6d2bb8
KH
5557
5558 /* The buffer memory is now:
b73bfc1c
KH
5559 +--------+-------converted-text----+--+------original-text----+---+
5560 |<-from->|<-inserted->|<-produced->|--|<-(len_byte-consumed)->|---|
5561 |<---------------------- GAP ----------------------->| */
ec6d2bb8 5562
d46c5b12
KH
5563 inserted += coding->produced_char;
5564 inserted_byte += coding->produced;
d46c5b12 5565 len_byte -= coding->consumed;
ec6d2bb8
KH
5566
5567 if (result == CODING_FINISH_INSUFFICIENT_CMP)
5568 {
5569 coding_allocate_composition_data (coding, from + inserted);
5570 continue;
5571 }
5572
fb88bf2d 5573 src += coding->consumed;
3636f7a3 5574 dst += coding->produced;
d46c5b12 5575
9864ebce
KH
5576 if (result == CODING_FINISH_NORMAL)
5577 {
5578 src += len_byte;
5579 break;
5580 }
d46c5b12
KH
5581 if (! encodep && result == CODING_FINISH_INCONSISTENT_EOL)
5582 {
fb88bf2d 5583 unsigned char *pend = dst, *p = pend - inserted_byte;
38edf7d4 5584 Lisp_Object eol_type;
d46c5b12
KH
5585
5586 /* Encode LFs back to the original eol format (CR or CRLF). */
5587 if (coding->eol_type == CODING_EOL_CR)
5588 {
5589 while (p < pend) if (*p++ == '\n') p[-1] = '\r';
5590 }
5591 else
5592 {
d46c5b12
KH
5593 int count = 0;
5594
fb88bf2d
KH
5595 while (p < pend) if (*p++ == '\n') count++;
5596 if (src - dst < count)
d46c5b12 5597 {
38edf7d4 5598 /* We don't have sufficient room for encoding LFs
fb88bf2d
KH
5599 back to CRLF. We must record converted and
5600 not-yet-converted text back to the buffer
5601 content, enlarge the gap, then record them out of
5602 the buffer contents again. */
5603 int add = len_byte + inserted_byte;
5604
5605 GAP_SIZE -= add;
5606 ZV += add; Z += add; ZV_BYTE += add; Z_BYTE += add;
5607 GPT += inserted_byte; GPT_BYTE += inserted_byte;
5608 make_gap (count - GAP_SIZE);
5609 GAP_SIZE += add;
5610 ZV -= add; Z -= add; ZV_BYTE -= add; Z_BYTE -= add;
5611 GPT -= inserted_byte; GPT_BYTE -= inserted_byte;
5612 /* Don't forget to update SRC, DST, and PEND. */
5613 src = GAP_END_ADDR - len_byte;
5614 dst = GPT_ADDR + inserted_byte;
5615 pend = dst;
d46c5b12 5616 }
d46c5b12
KH
5617 inserted += count;
5618 inserted_byte += count;
fb88bf2d
KH
5619 coding->produced += count;
5620 p = dst = pend + count;
5621 while (count)
5622 {
5623 *--p = *--pend;
5624 if (*p == '\n') count--, *--p = '\r';
5625 }
d46c5b12
KH
5626 }
5627
5628 /* Suppress eol-format conversion in the further conversion. */
5629 coding->eol_type = CODING_EOL_LF;
5630
38edf7d4
KH
5631 /* Set the coding system symbol to that for Unix-like EOL. */
5632 eol_type = Fget (saved_coding_symbol, Qeol_type);
5633 if (VECTORP (eol_type)
5634 && XVECTOR (eol_type)->size == 3
5635 && SYMBOLP (XVECTOR (eol_type)->contents[CODING_EOL_LF]))
5636 coding->symbol = XVECTOR (eol_type)->contents[CODING_EOL_LF];
5637 else
5638 coding->symbol = saved_coding_symbol;
93dec019 5639
fb88bf2d 5640 continue;
d46c5b12
KH
5641 }
5642 if (len_byte <= 0)
944bd420
KH
5643 {
5644 if (coding->type != coding_type_ccl
5645 || coding->mode & CODING_MODE_LAST_BLOCK)
5646 break;
5647 coding->mode |= CODING_MODE_LAST_BLOCK;
5648 continue;
5649 }
d46c5b12
KH
5650 if (result == CODING_FINISH_INSUFFICIENT_SRC)
5651 {
5652 /* The source text ends in invalid codes. Let's just
5653 make them valid buffer contents, and finish conversion. */
70ad9fc4
GM
5654 if (multibyte_p)
5655 {
5656 unsigned char *start = dst;
93dec019 5657
70ad9fc4
GM
5658 inserted += len_byte;
5659 while (len_byte--)
5660 {
5661 int c = *src++;
5662 dst += CHAR_STRING (c, dst);
5663 }
5664
5665 inserted_byte += dst - start;
5666 }
5667 else
5668 {
5669 inserted += len_byte;
5670 inserted_byte += len_byte;
5671 while (len_byte--)
5672 *dst++ = *src++;
5673 }
d46c5b12
KH
5674 break;
5675 }
9864ebce
KH
5676 if (result == CODING_FINISH_INTERRUPT)
5677 {
5678 /* The conversion procedure was interrupted by a user. */
9864ebce
KH
5679 break;
5680 }
5681 /* Now RESULT == CODING_FINISH_INSUFFICIENT_DST */
5682 if (coding->consumed < 1)
5683 {
5684 /* It's quite strange to require more memory without
5685 consuming any bytes. Perhaps CCL program bug. */
9864ebce
KH
5686 break;
5687 }
fb88bf2d
KH
5688 if (first)
5689 {
5690 /* We have just done the first batch of conversion which was
8ca3766a 5691 stopped because of insufficient gap. Let's reconsider the
fb88bf2d
KH
5692 required gap size (i.e. SRT - DST) now.
5693
5694 We have converted ORIG bytes (== coding->consumed) into
5695 NEW bytes (coding->produced). To convert the remaining
5696 LEN bytes, we may need REQUIRE bytes of gap, where:
5697 REQUIRE + LEN_BYTE = LEN_BYTE * (NEW / ORIG)
5698 REQUIRE = LEN_BYTE * (NEW - ORIG) / ORIG
5699 Here, we are sure that NEW >= ORIG. */
6e44253b
KH
5700 float ratio = coding->produced - coding->consumed;
5701 ratio /= coding->consumed;
5702 require = len_byte * ratio;
fb88bf2d
KH
5703 first = 0;
5704 }
5705 if ((src - dst) < (require + 2000))
5706 {
5707 /* See the comment above the previous call of make_gap. */
5708 int add = len_byte + inserted_byte;
5709
5710 GAP_SIZE -= add;
5711 ZV += add; Z += add; ZV_BYTE += add; Z_BYTE += add;
5712 GPT += inserted_byte; GPT_BYTE += inserted_byte;
5713 make_gap (require + 2000);
5714 GAP_SIZE += add;
5715 ZV -= add; Z -= add; ZV_BYTE -= add; Z_BYTE -= add;
5716 GPT -= inserted_byte; GPT_BYTE -= inserted_byte;
fb88bf2d 5717 }
d46c5b12 5718 }
fb88bf2d
KH
5719 if (src - dst > 0) *dst = 0; /* Put an anchor. */
5720
b73bfc1c
KH
5721 if (encodep && coding->dst_multibyte)
5722 {
5723 /* The output is unibyte. We must convert 8-bit characters to
5724 multibyte form. */
5725 if (inserted_byte * 2 > GAP_SIZE)
5726 {
5727 GAP_SIZE -= inserted_byte;
5728 ZV += inserted_byte; Z += inserted_byte;
5729 ZV_BYTE += inserted_byte; Z_BYTE += inserted_byte;
5730 GPT += inserted_byte; GPT_BYTE += inserted_byte;
5731 make_gap (inserted_byte - GAP_SIZE);
5732 GAP_SIZE += inserted_byte;
5733 ZV -= inserted_byte; Z -= inserted_byte;
5734 ZV_BYTE -= inserted_byte; Z_BYTE -= inserted_byte;
5735 GPT -= inserted_byte; GPT_BYTE -= inserted_byte;
5736 }
5737 inserted_byte = str_to_multibyte (GPT_ADDR, GAP_SIZE, inserted_byte);
5738 }
7553d0e1 5739
93dec019 5740 /* If we shrank the conversion area, adjust it now. */
12410ef1
KH
5741 if (total_skip > 0)
5742 {
5743 if (tail_skip > 0)
5744 safe_bcopy (GAP_END_ADDR, GPT_ADDR + inserted_byte, tail_skip);
5745 inserted += total_skip; inserted_byte += total_skip;
5746 GAP_SIZE += total_skip;
5747 GPT -= head_skip; GPT_BYTE -= head_skip;
5748 ZV -= total_skip; ZV_BYTE -= total_skip;
5749 Z -= total_skip; Z_BYTE -= total_skip;
5750 from -= head_skip; from_byte -= head_skip;
5751 to += tail_skip; to_byte += tail_skip;
5752 }
5753
6abb9bd9 5754 prev_Z = Z;
72d1a715
RS
5755 if (! EQ (current_buffer->undo_list, Qt))
5756 adjust_after_replace (from, from_byte, deletion, inserted, inserted_byte);
5757 else
5758 adjust_after_replace_noundo (from, from_byte, nchars_del, nbytes_del,
5759 inserted, inserted_byte);
6abb9bd9 5760 inserted = Z - prev_Z;
4ed46869 5761
ec6d2bb8
KH
5762 if (!encodep && coding->cmp_data && coding->cmp_data->used)
5763 coding_restore_composition (coding, Fcurrent_buffer ());
5764 coding_free_composition_data (coding);
5765
b73bfc1c
KH
5766 if (! inhibit_pre_post_conversion
5767 && ! encodep && ! NILP (coding->post_read_conversion))
d46c5b12 5768 {
2b4f9037 5769 Lisp_Object val;
4ed46869 5770
e133c8fa
KH
5771 if (from != PT)
5772 TEMP_SET_PT_BOTH (from, from_byte);
6abb9bd9 5773 prev_Z = Z;
b843d1ae
KH
5774 record_unwind_protect (code_convert_region_unwind, Qnil);
5775 /* We should not call any more pre-write/post-read-conversion
5776 functions while this post-read-conversion is running. */
5777 inhibit_pre_post_conversion = 1;
2b4f9037 5778 val = call1 (coding->post_read_conversion, make_number (inserted));
b843d1ae
KH
5779 inhibit_pre_post_conversion = 0;
5780 /* Discard the unwind protect. */
5781 specpdl_ptr--;
b7826503 5782 CHECK_NUMBER (val);
944bd420 5783 inserted += Z - prev_Z;
e133c8fa
KH
5784 }
5785
5786 if (orig_point >= from)
5787 {
5788 if (orig_point >= from + orig_len)
5789 orig_point += inserted - orig_len;
5790 else
5791 orig_point = from;
5792 TEMP_SET_PT (orig_point);
d46c5b12 5793 }
4ed46869 5794
ec6d2bb8
KH
5795 if (replace)
5796 {
5797 signal_after_change (from, to - from, inserted);
e19539f1 5798 update_compositions (from, from + inserted, CHECK_BORDER);
ec6d2bb8 5799 }
2b4f9037 5800
fb88bf2d 5801 {
12410ef1
KH
5802 coding->consumed = to_byte - from_byte;
5803 coding->consumed_char = to - from;
5804 coding->produced = inserted_byte;
5805 coding->produced_char = inserted;
fb88bf2d 5806 }
7553d0e1 5807
fb88bf2d 5808 return 0;
d46c5b12
KH
5809}
5810
5811Lisp_Object
b73bfc1c
KH
5812run_pre_post_conversion_on_str (str, coding, encodep)
5813 Lisp_Object str;
5814 struct coding_system *coding;
5815 int encodep;
5816{
aed13378 5817 int count = SPECPDL_INDEX ();
cf3b32fc 5818 struct gcpro gcpro1, gcpro2;
b73bfc1c 5819 int multibyte = STRING_MULTIBYTE (str);
3fd9494b
RS
5820 Lisp_Object buffer;
5821 struct buffer *buf;
cf3b32fc 5822 Lisp_Object old_deactivate_mark;
b73bfc1c
KH
5823
5824 record_unwind_protect (Fset_buffer, Fcurrent_buffer ());
5825 record_unwind_protect (code_convert_region_unwind, Qnil);
cf3b32fc
RS
5826 /* It is not crucial to specbind this. */
5827 old_deactivate_mark = Vdeactivate_mark;
5828 GCPRO2 (str, old_deactivate_mark);
3fd9494b
RS
5829
5830 buffer = Fget_buffer_create (build_string (" *code-converting-work*"));
5831 buf = XBUFFER (buffer);
5832
5833 buf->directory = current_buffer->directory;
5834 buf->read_only = Qnil;
5835 buf->filename = Qnil;
5836 buf->undo_list = Qt;
5837 buf->overlays_before = Qnil;
5838 buf->overlays_after = Qnil;
5839
5840 set_buffer_internal (buf);
b73bfc1c
KH
5841 /* We must insert the contents of STR as is without
5842 unibyte<->multibyte conversion. For that, we adjust the
5843 multibyteness of the working buffer to that of STR. */
5844 Ferase_buffer ();
3fd9494b
RS
5845 buf->enable_multibyte_characters = multibyte ? Qt : Qnil;
5846
b73bfc1c 5847 insert_from_string (str, 0, 0,
d5db4077 5848 SCHARS (str), SBYTES (str), 0);
b73bfc1c
KH
5849 UNGCPRO;
5850 inhibit_pre_post_conversion = 1;
5851 if (encodep)
5852 call2 (coding->pre_write_conversion, make_number (BEG), make_number (Z));
5853 else
6bac5b12
KH
5854 {
5855 TEMP_SET_PT_BOTH (BEG, BEG_BYTE);
5856 call1 (coding->post_read_conversion, make_number (Z - BEG));
5857 }
b73bfc1c 5858 inhibit_pre_post_conversion = 0;
cf3b32fc 5859 Vdeactivate_mark = old_deactivate_mark;
78108bcd 5860 str = make_buffer_string (BEG, Z, 1);
b73bfc1c
KH
5861 return unbind_to (count, str);
5862}
5863
5864Lisp_Object
5865decode_coding_string (str, coding, nocopy)
d46c5b12 5866 Lisp_Object str;
4ed46869 5867 struct coding_system *coding;
b73bfc1c 5868 int nocopy;
4ed46869 5869{
d46c5b12 5870 int len;
73be902c 5871 struct conversion_buffer buf;
da55a2b7 5872 int from, to_byte;
84d60297 5873 Lisp_Object saved_coding_symbol;
d46c5b12 5874 int result;
78108bcd 5875 int require_decoding;
73be902c
KH
5876 int shrinked_bytes = 0;
5877 Lisp_Object newstr;
2391eaa4 5878 int consumed, consumed_char, produced, produced_char;
4ed46869 5879
b73bfc1c 5880 from = 0;
d5db4077 5881 to_byte = SBYTES (str);
4ed46869 5882
8844fa83 5883 saved_coding_symbol = coding->symbol;
764ca8da
KH
5884 coding->src_multibyte = STRING_MULTIBYTE (str);
5885 coding->dst_multibyte = 1;
b73bfc1c 5886 if (CODING_REQUIRE_DETECTION (coding))
d46c5b12
KH
5887 {
5888 /* See the comments in code_convert_region. */
5889 if (coding->type == coding_type_undecided)
5890 {
d5db4077 5891 detect_coding (coding, SDATA (str), to_byte);
d46c5b12 5892 if (coding->type == coding_type_undecided)
d280ccb6
KH
5893 {
5894 coding->type = coding_type_emacs_mule;
5895 coding->category_idx = CODING_CATEGORY_IDX_EMACS_MULE;
5896 /* As emacs-mule decoder will handle composition, we
5897 need this setting to allocate coding->cmp_data
5898 later. */
5899 coding->composing = COMPOSITION_NO;
5900 }
d46c5b12 5901 }
aaaf0b1e
KH
5902 if (coding->eol_type == CODING_EOL_UNDECIDED
5903 && coding->type != coding_type_ccl)
d46c5b12
KH
5904 {
5905 saved_coding_symbol = coding->symbol;
d5db4077 5906 detect_eol (coding, SDATA (str), to_byte);
d46c5b12
KH
5907 if (coding->eol_type == CODING_EOL_UNDECIDED)
5908 coding->eol_type = CODING_EOL_LF;
5909 /* We had better recover the original eol format if we
8ca3766a 5910 encounter an inconsistent eol format while decoding. */
d46c5b12
KH
5911 coding->mode |= CODING_MODE_INHIBIT_INCONSISTENT_EOL;
5912 }
5913 }
4ed46869 5914
764ca8da
KH
5915 if (coding->type == coding_type_no_conversion
5916 || coding->type == coding_type_raw_text)
5917 coding->dst_multibyte = 0;
5918
78108bcd 5919 require_decoding = CODING_REQUIRE_DECODING (coding);
ec6d2bb8 5920
b73bfc1c 5921 if (STRING_MULTIBYTE (str))
d46c5b12 5922 {
b73bfc1c
KH
5923 /* Decoding routines expect the source text to be unibyte. */
5924 str = Fstring_as_unibyte (str);
d5db4077 5925 to_byte = SBYTES (str);
b73bfc1c 5926 nocopy = 1;
764ca8da 5927 coding->src_multibyte = 0;
b73bfc1c 5928 }
ec6d2bb8 5929
b73bfc1c 5930 /* Try to skip the heading and tailing ASCIIs. */
78108bcd 5931 if (require_decoding && coding->type != coding_type_ccl)
4956c225 5932 {
d5db4077 5933 SHRINK_CONVERSION_REGION (&from, &to_byte, coding, SDATA (str),
4956c225
KH
5934 0);
5935 if (from == to_byte)
78108bcd 5936 require_decoding = 0;
d5db4077 5937 shrinked_bytes = from + (SBYTES (str) - to_byte);
4956c225 5938 }
b73bfc1c 5939
78108bcd
KH
5940 if (!require_decoding)
5941 {
d5db4077
KR
5942 coding->consumed = SBYTES (str);
5943 coding->consumed_char = SCHARS (str);
78108bcd
KH
5944 if (coding->dst_multibyte)
5945 {
5946 str = Fstring_as_multibyte (str);
5947 nocopy = 1;
5948 }
d5db4077
KR
5949 coding->produced = SBYTES (str);
5950 coding->produced_char = SCHARS (str);
78108bcd
KH
5951 return (nocopy ? str : Fcopy_sequence (str));
5952 }
5953
5954 if (coding->composing != COMPOSITION_DISABLED)
5955 coding_allocate_composition_data (coding, from);
b73bfc1c 5956 len = decoding_buffer_size (coding, to_byte - from);
73be902c 5957 allocate_conversion_buffer (buf, len);
4ed46869 5958
2391eaa4 5959 consumed = consumed_char = produced = produced_char = 0;
73be902c 5960 while (1)
4ed46869 5961 {
d5db4077 5962 result = decode_coding (coding, SDATA (str) + from + consumed,
73be902c
KH
5963 buf.data + produced, to_byte - from - consumed,
5964 buf.size - produced);
5965 consumed += coding->consumed;
2391eaa4 5966 consumed_char += coding->consumed_char;
73be902c
KH
5967 produced += coding->produced;
5968 produced_char += coding->produced_char;
2391eaa4
KH
5969 if (result == CODING_FINISH_NORMAL
5970 || (result == CODING_FINISH_INSUFFICIENT_SRC
5971 && coding->consumed == 0))
73be902c
KH
5972 break;
5973 if (result == CODING_FINISH_INSUFFICIENT_CMP)
5974 coding_allocate_composition_data (coding, from + produced_char);
5975 else if (result == CODING_FINISH_INSUFFICIENT_DST)
5976 extend_conversion_buffer (&buf);
5977 else if (result == CODING_FINISH_INCONSISTENT_EOL)
5978 {
8844fa83
KH
5979 Lisp_Object eol_type;
5980
73be902c
KH
5981 /* Recover the original EOL format. */
5982 if (coding->eol_type == CODING_EOL_CR)
5983 {
5984 unsigned char *p;
5985 for (p = buf.data; p < buf.data + produced; p++)
5986 if (*p == '\n') *p = '\r';
5987 }
5988 else if (coding->eol_type == CODING_EOL_CRLF)
5989 {
5990 int num_eol = 0;
5991 unsigned char *p0, *p1;
5992 for (p0 = buf.data, p1 = p0 + produced; p0 < p1; p0++)
5993 if (*p0 == '\n') num_eol++;
5994 if (produced + num_eol >= buf.size)
5995 extend_conversion_buffer (&buf);
5996 for (p0 = buf.data + produced, p1 = p0 + num_eol; p0 > buf.data;)
5997 {
5998 *--p1 = *--p0;
5999 if (*p0 == '\n') *--p1 = '\r';
6000 }
6001 produced += num_eol;
6002 produced_char += num_eol;
93dec019 6003 }
8844fa83 6004 /* Suppress eol-format conversion in the further conversion. */
73be902c 6005 coding->eol_type = CODING_EOL_LF;
8844fa83
KH
6006
6007 /* Set the coding system symbol to that for Unix-like EOL. */
6008 eol_type = Fget (saved_coding_symbol, Qeol_type);
6009 if (VECTORP (eol_type)
6010 && XVECTOR (eol_type)->size == 3
6011 && SYMBOLP (XVECTOR (eol_type)->contents[CODING_EOL_LF]))
6012 coding->symbol = XVECTOR (eol_type)->contents[CODING_EOL_LF];
6013 else
6014 coding->symbol = saved_coding_symbol;
6015
6016
73be902c 6017 }
4ed46869 6018 }
d46c5b12 6019
2391eaa4
KH
6020 coding->consumed = consumed;
6021 coding->consumed_char = consumed_char;
6022 coding->produced = produced;
6023 coding->produced_char = produced_char;
6024
78108bcd 6025 if (coding->dst_multibyte)
73be902c
KH
6026 newstr = make_uninit_multibyte_string (produced_char + shrinked_bytes,
6027 produced + shrinked_bytes);
78108bcd 6028 else
73be902c
KH
6029 newstr = make_uninit_string (produced + shrinked_bytes);
6030 if (from > 0)
a4244313
KR
6031 STRING_COPYIN (newstr, 0, SDATA (str), from);
6032 STRING_COPYIN (newstr, from, buf.data, produced);
73be902c 6033 if (shrinked_bytes > from)
a4244313
KR
6034 STRING_COPYIN (newstr, from + produced,
6035 SDATA (str) + to_byte,
6036 shrinked_bytes - from);
73be902c 6037 free_conversion_buffer (&buf);
b73bfc1c
KH
6038
6039 if (coding->cmp_data && coding->cmp_data->used)
73be902c 6040 coding_restore_composition (coding, newstr);
b73bfc1c
KH
6041 coding_free_composition_data (coding);
6042
6043 if (SYMBOLP (coding->post_read_conversion)
6044 && !NILP (Ffboundp (coding->post_read_conversion)))
73be902c 6045 newstr = run_pre_post_conversion_on_str (newstr, coding, 0);
b73bfc1c 6046
73be902c 6047 return newstr;
b73bfc1c
KH
6048}
6049
6050Lisp_Object
6051encode_coding_string (str, coding, nocopy)
6052 Lisp_Object str;
6053 struct coding_system *coding;
6054 int nocopy;
6055{
6056 int len;
73be902c 6057 struct conversion_buffer buf;
b73bfc1c 6058 int from, to, to_byte;
b73bfc1c 6059 int result;
73be902c
KH
6060 int shrinked_bytes = 0;
6061 Lisp_Object newstr;
2391eaa4 6062 int consumed, consumed_char, produced, produced_char;
b73bfc1c
KH
6063
6064 if (SYMBOLP (coding->pre_write_conversion)
6065 && !NILP (Ffboundp (coding->pre_write_conversion)))
6bac5b12 6066 str = run_pre_post_conversion_on_str (str, coding, 1);
b73bfc1c
KH
6067
6068 from = 0;
d5db4077
KR
6069 to = SCHARS (str);
6070 to_byte = SBYTES (str);
b73bfc1c 6071
e2c06b17
KH
6072 /* Encoding routines determine the multibyteness of the source text
6073 by coding->src_multibyte. */
6074 coding->src_multibyte = STRING_MULTIBYTE (str);
6075 coding->dst_multibyte = 0;
b73bfc1c 6076 if (! CODING_REQUIRE_ENCODING (coding))
826bfb8b 6077 {
d5db4077
KR
6078 coding->consumed = SBYTES (str);
6079 coding->consumed_char = SCHARS (str);
b73bfc1c
KH
6080 if (STRING_MULTIBYTE (str))
6081 {
6082 str = Fstring_as_unibyte (str);
6083 nocopy = 1;
6084 }
d5db4077
KR
6085 coding->produced = SBYTES (str);
6086 coding->produced_char = SCHARS (str);
b73bfc1c 6087 return (nocopy ? str : Fcopy_sequence (str));
826bfb8b
KH
6088 }
6089
b73bfc1c
KH
6090 if (coding->composing != COMPOSITION_DISABLED)
6091 coding_save_composition (coding, from, to, str);
ec6d2bb8 6092
b73bfc1c 6093 /* Try to skip the heading and tailing ASCIIs. */
4956c225
KH
6094 if (coding->type != coding_type_ccl)
6095 {
d5db4077 6096 SHRINK_CONVERSION_REGION (&from, &to_byte, coding, SDATA (str),
4956c225
KH
6097 1);
6098 if (from == to_byte)
6099 return (nocopy ? str : Fcopy_sequence (str));
d5db4077 6100 shrinked_bytes = from + (SBYTES (str) - to_byte);
4956c225 6101 }
b73bfc1c
KH
6102
6103 len = encoding_buffer_size (coding, to_byte - from);
73be902c
KH
6104 allocate_conversion_buffer (buf, len);
6105
2391eaa4 6106 consumed = consumed_char = produced = produced_char = 0;
73be902c
KH
6107 while (1)
6108 {
d5db4077 6109 result = encode_coding (coding, SDATA (str) + from + consumed,
73be902c
KH
6110 buf.data + produced, to_byte - from - consumed,
6111 buf.size - produced);
6112 consumed += coding->consumed;
2391eaa4 6113 consumed_char += coding->consumed_char;
13004bef 6114 produced += coding->produced;
2391eaa4
KH
6115 produced_char += coding->produced_char;
6116 if (result == CODING_FINISH_NORMAL
6117 || (result == CODING_FINISH_INSUFFICIENT_SRC
6118 && coding->consumed == 0))
73be902c
KH
6119 break;
6120 /* Now result should be CODING_FINISH_INSUFFICIENT_DST. */
6121 extend_conversion_buffer (&buf);
6122 }
6123
2391eaa4
KH
6124 coding->consumed = consumed;
6125 coding->consumed_char = consumed_char;
6126 coding->produced = produced;
6127 coding->produced_char = produced_char;
6128
73be902c 6129 newstr = make_uninit_string (produced + shrinked_bytes);
b73bfc1c 6130 if (from > 0)
a4244313
KR
6131 STRING_COPYIN (newstr, 0, SDATA (str), from);
6132 STRING_COPYIN (newstr, from, buf.data, produced);
73be902c 6133 if (shrinked_bytes > from)
a4244313
KR
6134 STRING_COPYIN (newstr, from + produced,
6135 SDATA (str) + to_byte,
6136 shrinked_bytes - from);
73be902c
KH
6137
6138 free_conversion_buffer (&buf);
ec6d2bb8 6139 coding_free_composition_data (coding);
b73bfc1c 6140
73be902c 6141 return newstr;
4ed46869
KH
6142}
6143
6144\f
6145#ifdef emacs
1397dc18 6146/*** 8. Emacs Lisp library functions ***/
4ed46869 6147
4ed46869 6148DEFUN ("coding-system-p", Fcoding_system_p, Scoding_system_p, 1, 1, 0,
48b0f3ae
PJ
6149 doc: /* Return t if OBJECT is nil or a coding-system.
6150See the documentation of `make-coding-system' for information
6151about coding-system objects. */)
6152 (obj)
4ed46869
KH
6153 Lisp_Object obj;
6154{
4608c386
KH
6155 if (NILP (obj))
6156 return Qt;
6157 if (!SYMBOLP (obj))
6158 return Qnil;
6159 /* Get coding-spec vector for OBJ. */
6160 obj = Fget (obj, Qcoding_system);
6161 return ((VECTORP (obj) && XVECTOR (obj)->size == 5)
6162 ? Qt : Qnil);
4ed46869
KH
6163}
6164
9d991de8
RS
6165DEFUN ("read-non-nil-coding-system", Fread_non_nil_coding_system,
6166 Sread_non_nil_coding_system, 1, 1, 0,
48b0f3ae
PJ
6167 doc: /* Read a coding system from the minibuffer, prompting with string PROMPT. */)
6168 (prompt)
4ed46869
KH
6169 Lisp_Object prompt;
6170{
e0e989f6 6171 Lisp_Object val;
9d991de8
RS
6172 do
6173 {
4608c386
KH
6174 val = Fcompleting_read (prompt, Vcoding_system_alist, Qnil,
6175 Qt, Qnil, Qcoding_system_history, Qnil, Qnil);
9d991de8 6176 }
d5db4077 6177 while (SCHARS (val) == 0);
e0e989f6 6178 return (Fintern (val, Qnil));
4ed46869
KH
6179}
6180
9b787f3e 6181DEFUN ("read-coding-system", Fread_coding_system, Sread_coding_system, 1, 2, 0,
48b0f3ae
PJ
6182 doc: /* Read a coding system from the minibuffer, prompting with string PROMPT.
6183If the user enters null input, return second argument DEFAULT-CODING-SYSTEM. */)
6184 (prompt, default_coding_system)
9b787f3e 6185 Lisp_Object prompt, default_coding_system;
4ed46869 6186{
f44d27ce 6187 Lisp_Object val;
9b787f3e 6188 if (SYMBOLP (default_coding_system))
57d25e6f 6189 default_coding_system = SYMBOL_NAME (default_coding_system);
4608c386 6190 val = Fcompleting_read (prompt, Vcoding_system_alist, Qnil,
9b787f3e
RS
6191 Qt, Qnil, Qcoding_system_history,
6192 default_coding_system, Qnil);
d5db4077 6193 return (SCHARS (val) == 0 ? Qnil : Fintern (val, Qnil));
4ed46869
KH
6194}
6195
6196DEFUN ("check-coding-system", Fcheck_coding_system, Scheck_coding_system,
6197 1, 1, 0,
48b0f3ae
PJ
6198 doc: /* Check validity of CODING-SYSTEM.
6199If valid, return CODING-SYSTEM, else signal a `coding-system-error' error.
6200It is valid if it is a symbol with a non-nil `coding-system' property.
6201The value of property should be a vector of length 5. */)
6202 (coding_system)
4ed46869
KH
6203 Lisp_Object coding_system;
6204{
b7826503 6205 CHECK_SYMBOL (coding_system);
4ed46869
KH
6206 if (!NILP (Fcoding_system_p (coding_system)))
6207 return coding_system;
6208 while (1)
02ba4723 6209 Fsignal (Qcoding_system_error, Fcons (coding_system, Qnil));
4ed46869 6210}
3a73fa5d 6211\f
d46c5b12 6212Lisp_Object
0a28aafb 6213detect_coding_system (src, src_bytes, highest, multibytep)
a4244313 6214 const unsigned char *src;
d46c5b12 6215 int src_bytes, highest;
0a28aafb 6216 int multibytep;
4ed46869
KH
6217{
6218 int coding_mask, eol_type;
d46c5b12
KH
6219 Lisp_Object val, tmp;
6220 int dummy;
4ed46869 6221
0a28aafb 6222 coding_mask = detect_coding_mask (src, src_bytes, NULL, &dummy, multibytep);
d46c5b12
KH
6223 eol_type = detect_eol_type (src, src_bytes, &dummy);
6224 if (eol_type == CODING_EOL_INCONSISTENT)
25b02698 6225 eol_type = CODING_EOL_UNDECIDED;
4ed46869 6226
d46c5b12 6227 if (!coding_mask)
4ed46869 6228 {
27901516 6229 val = Qundecided;
d46c5b12 6230 if (eol_type != CODING_EOL_UNDECIDED)
4ed46869 6231 {
f44d27ce
RS
6232 Lisp_Object val2;
6233 val2 = Fget (Qundecided, Qeol_type);
4ed46869
KH
6234 if (VECTORP (val2))
6235 val = XVECTOR (val2)->contents[eol_type];
6236 }
80e803b4 6237 return (highest ? val : Fcons (val, Qnil));
4ed46869 6238 }
4ed46869 6239
d46c5b12
KH
6240 /* At first, gather possible coding systems in VAL. */
6241 val = Qnil;
fa42c37f 6242 for (tmp = Vcoding_category_list; CONSP (tmp); tmp = XCDR (tmp))
4ed46869 6243 {
fa42c37f
KH
6244 Lisp_Object category_val, category_index;
6245
6246 category_index = Fget (XCAR (tmp), Qcoding_category_index);
6247 category_val = Fsymbol_value (XCAR (tmp));
6248 if (!NILP (category_val)
6249 && NATNUMP (category_index)
6250 && (coding_mask & (1 << XFASTINT (category_index))))
4ed46869 6251 {
fa42c37f 6252 val = Fcons (category_val, val);
d46c5b12
KH
6253 if (highest)
6254 break;
4ed46869
KH
6255 }
6256 }
d46c5b12
KH
6257 if (!highest)
6258 val = Fnreverse (val);
4ed46869 6259
65059037 6260 /* Then, replace the elements with subsidiary coding systems. */
fa42c37f 6261 for (tmp = val; CONSP (tmp); tmp = XCDR (tmp))
4ed46869 6262 {
65059037
RS
6263 if (eol_type != CODING_EOL_UNDECIDED
6264 && eol_type != CODING_EOL_INCONSISTENT)
4ed46869 6265 {
d46c5b12 6266 Lisp_Object eol;
03699b14 6267 eol = Fget (XCAR (tmp), Qeol_type);
d46c5b12 6268 if (VECTORP (eol))
f3fbd155 6269 XSETCAR (tmp, XVECTOR (eol)->contents[eol_type]);
4ed46869
KH
6270 }
6271 }
03699b14 6272 return (highest ? XCAR (val) : val);
93dec019 6273}
4ed46869 6274
d46c5b12
KH
6275DEFUN ("detect-coding-region", Fdetect_coding_region, Sdetect_coding_region,
6276 2, 3, 0,
48b0f3ae
PJ
6277 doc: /* Detect coding system of the text in the region between START and END.
6278Return a list of possible coding systems ordered by priority.
6279
6280If only ASCII characters are found, it returns a list of single element
6281`undecided' or its subsidiary coding system according to a detected
6282end-of-line format.
6283
6284If optional argument HIGHEST is non-nil, return the coding system of
6285highest priority. */)
6286 (start, end, highest)
d46c5b12
KH
6287 Lisp_Object start, end, highest;
6288{
6289 int from, to;
6290 int from_byte, to_byte;
682169fe 6291 int include_anchor_byte = 0;
6289dd10 6292
b7826503
PJ
6293 CHECK_NUMBER_COERCE_MARKER (start);
6294 CHECK_NUMBER_COERCE_MARKER (end);
4ed46869 6295
d46c5b12
KH
6296 validate_region (&start, &end);
6297 from = XINT (start), to = XINT (end);
6298 from_byte = CHAR_TO_BYTE (from);
6299 to_byte = CHAR_TO_BYTE (to);
6289dd10 6300
d46c5b12
KH
6301 if (from < GPT && to >= GPT)
6302 move_gap_both (to, to_byte);
c210f766
KH
6303 /* If we an anchor byte `\0' follows the region, we include it in
6304 the detecting source. Then code detectors can handle the tailing
6305 byte sequence more accurately.
6306
6307 Fix me: This is not an perfect solution. It is better that we
6308 add one more argument, say LAST_BLOCK, to all detect_coding_XXX.
6309 */
682169fe
KH
6310 if (to == Z || (to == GPT && GAP_SIZE > 0))
6311 include_anchor_byte = 1;
d46c5b12 6312 return detect_coding_system (BYTE_POS_ADDR (from_byte),
682169fe 6313 to_byte - from_byte + include_anchor_byte,
0a28aafb
KH
6314 !NILP (highest),
6315 !NILP (current_buffer
6316 ->enable_multibyte_characters));
d46c5b12 6317}
6289dd10 6318
d46c5b12
KH
6319DEFUN ("detect-coding-string", Fdetect_coding_string, Sdetect_coding_string,
6320 1, 2, 0,
48b0f3ae
PJ
6321 doc: /* Detect coding system of the text in STRING.
6322Return a list of possible coding systems ordered by priority.
6323
6324If only ASCII characters are found, it returns a list of single element
6325`undecided' or its subsidiary coding system according to a detected
6326end-of-line format.
6327
6328If optional argument HIGHEST is non-nil, return the coding system of
6329highest priority. */)
6330 (string, highest)
d46c5b12
KH
6331 Lisp_Object string, highest;
6332{
b7826503 6333 CHECK_STRING (string);
4ed46869 6334
d5db4077 6335 return detect_coding_system (SDATA (string),
682169fe
KH
6336 /* "+ 1" is to include the anchor byte
6337 `\0'. With this, code detectors can
c210f766
KH
6338 handle the tailing bytes more
6339 accurately. */
d5db4077 6340 SBYTES (string) + 1,
0a28aafb
KH
6341 !NILP (highest),
6342 STRING_MULTIBYTE (string));
4ed46869
KH
6343}
6344
05e6f5dc
KH
6345/* Return an intersection of lists L1 and L2. */
6346
6347static Lisp_Object
6348intersection (l1, l2)
6349 Lisp_Object l1, l2;
6350{
eef762fc 6351 Lisp_Object val = Fcons (Qnil, Qnil), tail;
05e6f5dc 6352
eef762fc 6353 for (tail = val; CONSP (l1); l1 = XCDR (l1))
05e6f5dc
KH
6354 {
6355 if (!NILP (Fmemq (XCAR (l1), l2)))
eef762fc
AS
6356 {
6357 XSETCDR (tail, Fcons (XCAR (l1), Qnil));
6358 tail = XCDR (tail);
6359 }
05e6f5dc 6360 }
eef762fc 6361 return XCDR (val);
05e6f5dc
KH
6362}
6363
6364
6365/* Subroutine for Fsafe_coding_systems_region_internal.
6366
6367 Return a list of coding systems that safely encode the multibyte
6368 text between P and PEND. SAFE_CODINGS, if non-nil, is a list of
6369 possible coding systems. If it is nil, it means that we have not
6370 yet found any coding systems.
6371
6372 WORK_TABLE is a copy of the char-table Vchar_coding_system_table. An
6373 element of WORK_TABLE is set to t once the element is looked up.
6374
6375 If a non-ASCII single byte char is found, set
6376 *single_byte_char_found to 1. */
6377
6378static Lisp_Object
6379find_safe_codings (p, pend, safe_codings, work_table, single_byte_char_found)
6380 unsigned char *p, *pend;
6381 Lisp_Object safe_codings, work_table;
6382 int *single_byte_char_found;
6383{
6384 int c, len, idx;
6385 Lisp_Object val;
6386
6387 while (p < pend)
6388 {
6389 c = STRING_CHAR_AND_LENGTH (p, pend - p, len);
6390 p += len;
6391 if (ASCII_BYTE_P (c))
6392 /* We can ignore ASCII characters here. */
6393 continue;
6394 if (SINGLE_BYTE_CHAR_P (c))
6395 *single_byte_char_found = 1;
6396 if (NILP (safe_codings))
6397 continue;
6398 /* Check the safe coding systems for C. */
6399 val = char_table_ref_and_index (work_table, c, &idx);
6400 if (EQ (val, Qt))
6401 /* This element was already checked. Ignore it. */
6402 continue;
6403 /* Remember that we checked this element. */
975f250a 6404 CHAR_TABLE_SET (work_table, make_number (idx), Qt);
05e6f5dc
KH
6405
6406 /* If there are some safe coding systems for C and we have
6407 already found the other set of coding systems for the
6408 different characters, get the intersection of them. */
6409 if (!EQ (safe_codings, Qt) && !NILP (val))
6410 val = intersection (safe_codings, val);
6411 safe_codings = val;
6412 }
6413 return safe_codings;
6414}
6415
6416
6417/* Return a list of coding systems that safely encode the text between
6418 START and END. If the text contains only ASCII or is unibyte,
6419 return t. */
6420
6421DEFUN ("find-coding-systems-region-internal",
6422 Ffind_coding_systems_region_internal,
6423 Sfind_coding_systems_region_internal, 2, 2, 0,
48b0f3ae
PJ
6424 doc: /* Internal use only. */)
6425 (start, end)
05e6f5dc
KH
6426 Lisp_Object start, end;
6427{
6428 Lisp_Object work_table, safe_codings;
6429 int non_ascii_p = 0;
6430 int single_byte_char_found = 0;
a90f2c35 6431 const unsigned char *p1, *p1end, *p2, *p2end, *p;
05e6f5dc
KH
6432
6433 if (STRINGP (start))
6434 {
6435 if (!STRING_MULTIBYTE (start))
6436 return Qt;
d5db4077 6437 p1 = SDATA (start), p1end = p1 + SBYTES (start);
05e6f5dc 6438 p2 = p2end = p1end;
d5db4077 6439 if (SCHARS (start) != SBYTES (start))
05e6f5dc
KH
6440 non_ascii_p = 1;
6441 }
6442 else
6443 {
6444 int from, to, stop;
6445
b7826503
PJ
6446 CHECK_NUMBER_COERCE_MARKER (start);
6447 CHECK_NUMBER_COERCE_MARKER (end);
05e6f5dc
KH
6448 if (XINT (start) < BEG || XINT (end) > Z || XINT (start) > XINT (end))
6449 args_out_of_range (start, end);
6450 if (NILP (current_buffer->enable_multibyte_characters))
6451 return Qt;
6452 from = CHAR_TO_BYTE (XINT (start));
6453 to = CHAR_TO_BYTE (XINT (end));
6454 stop = from < GPT_BYTE && GPT_BYTE < to ? GPT_BYTE : to;
6455 p1 = BYTE_POS_ADDR (from), p1end = p1 + (stop - from);
6456 if (stop == to)
6457 p2 = p2end = p1end;
6458 else
6459 p2 = BYTE_POS_ADDR (stop), p2end = p2 + (to - stop);
6460 if (XINT (end) - XINT (start) != to - from)
6461 non_ascii_p = 1;
6462 }
6463
6464 if (!non_ascii_p)
6465 {
6466 /* We are sure that the text contains no multibyte character.
6467 Check if it contains eight-bit-graphic. */
6468 p = p1;
6469 for (p = p1; p < p1end && ASCII_BYTE_P (*p); p++);
6470 if (p == p1end)
6471 {
93dec019 6472 for (p = p2; p < p2end && ASCII_BYTE_P (*p); p++);
05e6f5dc
KH
6473 if (p == p2end)
6474 return Qt;
6475 }
6476 }
6477
6478 /* The text contains non-ASCII characters. */
6479 work_table = Fcopy_sequence (Vchar_coding_system_table);
6480 safe_codings = find_safe_codings (p1, p1end, Qt, work_table,
6481 &single_byte_char_found);
6482 if (p2 < p2end)
6483 safe_codings = find_safe_codings (p2, p2end, safe_codings, work_table,
6484 &single_byte_char_found);
6485
176c92e6
SM
6486 if (EQ (safe_codings, Qt))
6487 ; /* Nothing to be done. */
6488 else if (!single_byte_char_found)
05e6f5dc
KH
6489 {
6490 /* Append generic coding systems. */
6491 Lisp_Object args[2];
6492 args[0] = safe_codings;
6493 args[1] = Fchar_table_extra_slot (Vchar_coding_system_table,
6494 make_number (0));
975f250a 6495 safe_codings = Fappend (2, args);
05e6f5dc
KH
6496 }
6497 else
109a5acb
KH
6498 safe_codings = Fcons (Qraw_text,
6499 Fcons (Qemacs_mule,
6500 Fcons (Qno_conversion, safe_codings)));
05e6f5dc
KH
6501 return safe_codings;
6502}
6503
6504
068a9dbd
KH
6505/* Search from position POS for such characters that are unencodable
6506 accoding to SAFE_CHARS, and return a list of their positions. P
6507 points where in the memory the character at POS exists. Limit the
6508 search at PEND or when Nth unencodable characters are found.
6509
6510 If SAFE_CHARS is a char table, an element for an unencodable
6511 character is nil.
6512
6513 If SAFE_CHARS is nil, all non-ASCII characters are unencodable.
6514
6515 Otherwise, SAFE_CHARS is t, and only eight-bit-contrl and
6516 eight-bit-graphic characters are unencodable. */
6517
6518static Lisp_Object
6519unencodable_char_position (safe_chars, pos, p, pend, n)
6520 Lisp_Object safe_chars;
6521 int pos;
6522 unsigned char *p, *pend;
6523 int n;
6524{
6525 Lisp_Object pos_list;
6526
6527 pos_list = Qnil;
6528 while (p < pend)
6529 {
6530 int len;
6531 int c = STRING_CHAR_AND_LENGTH (p, MAX_MULTIBYTE_LENGTH, len);
6532
6533 if (c >= 128
6534 && (CHAR_TABLE_P (safe_chars)
6535 ? NILP (CHAR_TABLE_REF (safe_chars, c))
6536 : (NILP (safe_chars) || c < 256)))
6537 {
6538 pos_list = Fcons (make_number (pos), pos_list);
6539 if (--n <= 0)
6540 break;
6541 }
6542 pos++;
6543 p += len;
6544 }
6545 return Fnreverse (pos_list);
6546}
6547
6548
6549DEFUN ("unencodable-char-position", Funencodable_char_position,
6550 Sunencodable_char_position, 3, 5, 0,
6551 doc: /*
6552Return position of first un-encodable character in a region.
6553START and END specfiy the region and CODING-SYSTEM specifies the
6554encoding to check. Return nil if CODING-SYSTEM does encode the region.
6555
6556If optional 4th argument COUNT is non-nil, it specifies at most how
6557many un-encodable characters to search. In this case, the value is a
6558list of positions.
6559
6560If optional 5th argument STRING is non-nil, it is a string to search
6561for un-encodable characters. In that case, START and END are indexes
6562to the string. */)
6563 (start, end, coding_system, count, string)
6564 Lisp_Object start, end, coding_system, count, string;
6565{
6566 int n;
6567 Lisp_Object safe_chars;
6568 struct coding_system coding;
6569 Lisp_Object positions;
6570 int from, to;
6571 unsigned char *p, *pend;
6572
6573 if (NILP (string))
6574 {
6575 validate_region (&start, &end);
6576 from = XINT (start);
6577 to = XINT (end);
6578 if (NILP (current_buffer->enable_multibyte_characters))
6579 return Qnil;
6580 p = CHAR_POS_ADDR (from);
6581 pend = CHAR_POS_ADDR (to);
6582 }
6583 else
6584 {
6585 CHECK_STRING (string);
6586 CHECK_NATNUM (start);
6587 CHECK_NATNUM (end);
6588 from = XINT (start);
6589 to = XINT (end);
6590 if (from > to
6591 || to > SCHARS (string))
6592 args_out_of_range_3 (string, start, end);
6593 if (! STRING_MULTIBYTE (string))
6594 return Qnil;
6595 p = SDATA (string) + string_char_to_byte (string, from);
6596 pend = SDATA (string) + string_char_to_byte (string, to);
6597 }
6598
6599 setup_coding_system (Fcheck_coding_system (coding_system), &coding);
6600
6601 if (NILP (count))
6602 n = 1;
6603 else
6604 {
6605 CHECK_NATNUM (count);
6606 n = XINT (count);
6607 }
6608
6609 if (coding.type == coding_type_no_conversion
6610 || coding.type == coding_type_raw_text)
6611 return Qnil;
6612
6613 if (coding.type == coding_type_undecided)
6614 safe_chars = Qnil;
6615 else
6616 safe_chars = coding_safe_chars (&coding);
6617
6618 if (STRINGP (string)
6619 || from >= GPT || to <= GPT)
6620 positions = unencodable_char_position (safe_chars, from, p, pend, n);
6621 else
6622 {
6623 Lisp_Object args[2];
6624
6625 args[0] = unencodable_char_position (safe_chars, from, p, GPT_ADDR, n);
96d2e64d 6626 n -= XINT (Flength (args[0]));
068a9dbd
KH
6627 if (n <= 0)
6628 positions = args[0];
6629 else
6630 {
6631 args[1] = unencodable_char_position (safe_chars, GPT, GAP_END_ADDR,
6632 pend, n);
6633 positions = Fappend (2, args);
6634 }
6635 }
6636
6637 return (NILP (count) ? Fcar (positions) : positions);
6638}
6639
6640
4031e2bf
KH
6641Lisp_Object
6642code_convert_region1 (start, end, coding_system, encodep)
d46c5b12 6643 Lisp_Object start, end, coding_system;
4031e2bf 6644 int encodep;
3a73fa5d
RS
6645{
6646 struct coding_system coding;
da55a2b7 6647 int from, to;
3a73fa5d 6648
b7826503
PJ
6649 CHECK_NUMBER_COERCE_MARKER (start);
6650 CHECK_NUMBER_COERCE_MARKER (end);
6651 CHECK_SYMBOL (coding_system);
3a73fa5d 6652
d46c5b12
KH
6653 validate_region (&start, &end);
6654 from = XFASTINT (start);
6655 to = XFASTINT (end);
6656
3a73fa5d 6657 if (NILP (coding_system))
d46c5b12
KH
6658 return make_number (to - from);
6659
3a73fa5d 6660 if (setup_coding_system (Fcheck_coding_system (coding_system), &coding) < 0)
d5db4077 6661 error ("Invalid coding system: %s", SDATA (SYMBOL_NAME (coding_system)));
3a73fa5d 6662
d46c5b12 6663 coding.mode |= CODING_MODE_LAST_BLOCK;
b73bfc1c
KH
6664 coding.src_multibyte = coding.dst_multibyte
6665 = !NILP (current_buffer->enable_multibyte_characters);
fb88bf2d
KH
6666 code_convert_region (from, CHAR_TO_BYTE (from), to, CHAR_TO_BYTE (to),
6667 &coding, encodep, 1);
f072a3e8 6668 Vlast_coding_system_used = coding.symbol;
fb88bf2d 6669 return make_number (coding.produced_char);
4031e2bf
KH
6670}
6671
6672DEFUN ("decode-coding-region", Fdecode_coding_region, Sdecode_coding_region,
6673 3, 3, "r\nzCoding system: ",
48b0f3ae
PJ
6674 doc: /* Decode the current region from the specified coding system.
6675When called from a program, takes three arguments:
6676START, END, and CODING-SYSTEM. START and END are buffer positions.
6677This function sets `last-coding-system-used' to the precise coding system
6678used (which may be different from CODING-SYSTEM if CODING-SYSTEM is
6679not fully specified.)
6680It returns the length of the decoded text. */)
6681 (start, end, coding_system)
4031e2bf
KH
6682 Lisp_Object start, end, coding_system;
6683{
6684 return code_convert_region1 (start, end, coding_system, 0);
3a73fa5d
RS
6685}
6686
6687DEFUN ("encode-coding-region", Fencode_coding_region, Sencode_coding_region,
6688 3, 3, "r\nzCoding system: ",
48b0f3ae
PJ
6689 doc: /* Encode the current region into the specified coding system.
6690When called from a program, takes three arguments:
6691START, END, and CODING-SYSTEM. START and END are buffer positions.
6692This function sets `last-coding-system-used' to the precise coding system
6693used (which may be different from CODING-SYSTEM if CODING-SYSTEM is
6694not fully specified.)
6695It returns the length of the encoded text. */)
6696 (start, end, coding_system)
d46c5b12 6697 Lisp_Object start, end, coding_system;
3a73fa5d 6698{
4031e2bf
KH
6699 return code_convert_region1 (start, end, coding_system, 1);
6700}
3a73fa5d 6701
4031e2bf
KH
6702Lisp_Object
6703code_convert_string1 (string, coding_system, nocopy, encodep)
6704 Lisp_Object string, coding_system, nocopy;
6705 int encodep;
6706{
6707 struct coding_system coding;
3a73fa5d 6708
b7826503
PJ
6709 CHECK_STRING (string);
6710 CHECK_SYMBOL (coding_system);
4ed46869 6711
d46c5b12 6712 if (NILP (coding_system))
4031e2bf 6713 return (NILP (nocopy) ? Fcopy_sequence (string) : string);
4ed46869 6714
d46c5b12 6715 if (setup_coding_system (Fcheck_coding_system (coding_system), &coding) < 0)
d5db4077 6716 error ("Invalid coding system: %s", SDATA (SYMBOL_NAME (coding_system)));
5f1cd180 6717
d46c5b12 6718 coding.mode |= CODING_MODE_LAST_BLOCK;
b73bfc1c
KH
6719 string = (encodep
6720 ? encode_coding_string (string, &coding, !NILP (nocopy))
6721 : decode_coding_string (string, &coding, !NILP (nocopy)));
f072a3e8 6722 Vlast_coding_system_used = coding.symbol;
ec6d2bb8
KH
6723
6724 return string;
4ed46869
KH
6725}
6726
4ed46869 6727DEFUN ("decode-coding-string", Fdecode_coding_string, Sdecode_coding_string,
e0e989f6 6728 2, 3, 0,
48b0f3ae
PJ
6729 doc: /* Decode STRING which is encoded in CODING-SYSTEM, and return the result.
6730Optional arg NOCOPY non-nil means it is OK to return STRING itself
6731if the decoding operation is trivial.
6732This function sets `last-coding-system-used' to the precise coding system
6733used (which may be different from CODING-SYSTEM if CODING-SYSTEM is
6734not fully specified.) */)
6735 (string, coding_system, nocopy)
e0e989f6 6736 Lisp_Object string, coding_system, nocopy;
4ed46869 6737{
f072a3e8 6738 return code_convert_string1 (string, coding_system, nocopy, 0);
4ed46869
KH
6739}
6740
6741DEFUN ("encode-coding-string", Fencode_coding_string, Sencode_coding_string,
e0e989f6 6742 2, 3, 0,
48b0f3ae
PJ
6743 doc: /* Encode STRING to CODING-SYSTEM, and return the result.
6744Optional arg NOCOPY non-nil means it is OK to return STRING itself
6745if the encoding operation is trivial.
6746This function sets `last-coding-system-used' to the precise coding system
6747used (which may be different from CODING-SYSTEM if CODING-SYSTEM is
6748not fully specified.) */)
6749 (string, coding_system, nocopy)
e0e989f6 6750 Lisp_Object string, coding_system, nocopy;
4ed46869 6751{
f072a3e8 6752 return code_convert_string1 (string, coding_system, nocopy, 1);
4ed46869 6753}
4031e2bf 6754
ecec61c1 6755/* Encode or decode STRING according to CODING_SYSTEM.
ec6d2bb8
KH
6756 Do not set Vlast_coding_system_used.
6757
6758 This function is called only from macros DECODE_FILE and
6759 ENCODE_FILE, thus we ignore character composition. */
ecec61c1
KH
6760
6761Lisp_Object
6762code_convert_string_norecord (string, coding_system, encodep)
6763 Lisp_Object string, coding_system;
6764 int encodep;
6765{
6766 struct coding_system coding;
6767
b7826503
PJ
6768 CHECK_STRING (string);
6769 CHECK_SYMBOL (coding_system);
ecec61c1
KH
6770
6771 if (NILP (coding_system))
6772 return string;
6773
6774 if (setup_coding_system (Fcheck_coding_system (coding_system), &coding) < 0)
d5db4077 6775 error ("Invalid coding system: %s", SDATA (SYMBOL_NAME (coding_system)));
ecec61c1 6776
ec6d2bb8 6777 coding.composing = COMPOSITION_DISABLED;
ecec61c1 6778 coding.mode |= CODING_MODE_LAST_BLOCK;
b73bfc1c
KH
6779 return (encodep
6780 ? encode_coding_string (string, &coding, 1)
6781 : decode_coding_string (string, &coding, 1));
ecec61c1 6782}
3a73fa5d 6783\f
4ed46869 6784DEFUN ("decode-sjis-char", Fdecode_sjis_char, Sdecode_sjis_char, 1, 1, 0,
48b0f3ae
PJ
6785 doc: /* Decode a Japanese character which has CODE in shift_jis encoding.
6786Return the corresponding character. */)
6787 (code)
4ed46869
KH
6788 Lisp_Object code;
6789{
6790 unsigned char c1, c2, s1, s2;
6791 Lisp_Object val;
6792
b7826503 6793 CHECK_NUMBER (code);
4ed46869 6794 s1 = (XFASTINT (code)) >> 8, s2 = (XFASTINT (code)) & 0xFF;
55ab7be3
KH
6795 if (s1 == 0)
6796 {
c28a9453
KH
6797 if (s2 < 0x80)
6798 XSETFASTINT (val, s2);
6799 else if (s2 >= 0xA0 || s2 <= 0xDF)
b73bfc1c 6800 XSETFASTINT (val, MAKE_CHAR (charset_katakana_jisx0201, s2, 0));
c28a9453 6801 else
9da8350f 6802 error ("Invalid Shift JIS code: %x", XFASTINT (code));
55ab7be3
KH
6803 }
6804 else
6805 {
87323294 6806 if ((s1 < 0x80 || (s1 > 0x9F && s1 < 0xE0) || s1 > 0xEF)
55ab7be3 6807 || (s2 < 0x40 || s2 == 0x7F || s2 > 0xFC))
9da8350f 6808 error ("Invalid Shift JIS code: %x", XFASTINT (code));
55ab7be3 6809 DECODE_SJIS (s1, s2, c1, c2);
b73bfc1c 6810 XSETFASTINT (val, MAKE_CHAR (charset_jisx0208, c1, c2));
55ab7be3 6811 }
4ed46869
KH
6812 return val;
6813}
6814
6815DEFUN ("encode-sjis-char", Fencode_sjis_char, Sencode_sjis_char, 1, 1, 0,
48b0f3ae
PJ
6816 doc: /* Encode a Japanese character CHAR to shift_jis encoding.
6817Return the corresponding code in SJIS. */)
6818 (ch)
4ed46869
KH
6819 Lisp_Object ch;
6820{
bcf26d6a 6821 int charset, c1, c2, s1, s2;
4ed46869
KH
6822 Lisp_Object val;
6823
b7826503 6824 CHECK_NUMBER (ch);
4ed46869 6825 SPLIT_CHAR (XFASTINT (ch), charset, c1, c2);
c28a9453
KH
6826 if (charset == CHARSET_ASCII)
6827 {
6828 val = ch;
6829 }
6830 else if (charset == charset_jisx0208
6831 && c1 > 0x20 && c1 < 0x7F && c2 > 0x20 && c2 < 0x7F)
4ed46869
KH
6832 {
6833 ENCODE_SJIS (c1, c2, s1, s2);
bcf26d6a 6834 XSETFASTINT (val, (s1 << 8) | s2);
4ed46869 6835 }
55ab7be3
KH
6836 else if (charset == charset_katakana_jisx0201
6837 && c1 > 0x20 && c2 < 0xE0)
6838 {
6839 XSETFASTINT (val, c1 | 0x80);
6840 }
4ed46869 6841 else
55ab7be3 6842 error ("Can't encode to shift_jis: %d", XFASTINT (ch));
4ed46869
KH
6843 return val;
6844}
6845
6846DEFUN ("decode-big5-char", Fdecode_big5_char, Sdecode_big5_char, 1, 1, 0,
48b0f3ae
PJ
6847 doc: /* Decode a Big5 character which has CODE in BIG5 coding system.
6848Return the corresponding character. */)
6849 (code)
4ed46869
KH
6850 Lisp_Object code;
6851{
6852 int charset;
6853 unsigned char b1, b2, c1, c2;
6854 Lisp_Object val;
6855
b7826503 6856 CHECK_NUMBER (code);
4ed46869 6857 b1 = (XFASTINT (code)) >> 8, b2 = (XFASTINT (code)) & 0xFF;
c28a9453
KH
6858 if (b1 == 0)
6859 {
6860 if (b2 >= 0x80)
9da8350f 6861 error ("Invalid BIG5 code: %x", XFASTINT (code));
c28a9453
KH
6862 val = code;
6863 }
6864 else
6865 {
6866 if ((b1 < 0xA1 || b1 > 0xFE)
6867 || (b2 < 0x40 || (b2 > 0x7E && b2 < 0xA1) || b2 > 0xFE))
9da8350f 6868 error ("Invalid BIG5 code: %x", XFASTINT (code));
c28a9453 6869 DECODE_BIG5 (b1, b2, charset, c1, c2);
b73bfc1c 6870 XSETFASTINT (val, MAKE_CHAR (charset, c1, c2));
c28a9453 6871 }
4ed46869
KH
6872 return val;
6873}
6874
6875DEFUN ("encode-big5-char", Fencode_big5_char, Sencode_big5_char, 1, 1, 0,
48b0f3ae
PJ
6876 doc: /* Encode the Big5 character CHAR to BIG5 coding system.
6877Return the corresponding character code in Big5. */)
6878 (ch)
4ed46869
KH
6879 Lisp_Object ch;
6880{
bcf26d6a 6881 int charset, c1, c2, b1, b2;
4ed46869
KH
6882 Lisp_Object val;
6883
b7826503 6884 CHECK_NUMBER (ch);
4ed46869 6885 SPLIT_CHAR (XFASTINT (ch), charset, c1, c2);
c28a9453
KH
6886 if (charset == CHARSET_ASCII)
6887 {
6888 val = ch;
6889 }
6890 else if ((charset == charset_big5_1
6891 && (XFASTINT (ch) >= 0x250a1 && XFASTINT (ch) <= 0x271ec))
6892 || (charset == charset_big5_2
6893 && XFASTINT (ch) >= 0x290a1 && XFASTINT (ch) <= 0x2bdb2))
4ed46869
KH
6894 {
6895 ENCODE_BIG5 (charset, c1, c2, b1, b2);
bcf26d6a 6896 XSETFASTINT (val, (b1 << 8) | b2);
4ed46869
KH
6897 }
6898 else
c28a9453 6899 error ("Can't encode to Big5: %d", XFASTINT (ch));
4ed46869
KH
6900 return val;
6901}
3a73fa5d 6902\f
1ba9e4ab
KH
6903DEFUN ("set-terminal-coding-system-internal",
6904 Fset_terminal_coding_system_internal,
48b0f3ae
PJ
6905 Sset_terminal_coding_system_internal, 1, 1, 0,
6906 doc: /* Internal use only. */)
6907 (coding_system)
4ed46869
KH
6908 Lisp_Object coding_system;
6909{
b7826503 6910 CHECK_SYMBOL (coding_system);
4ed46869 6911 setup_coding_system (Fcheck_coding_system (coding_system), &terminal_coding);
70c22245 6912 /* We had better not send unsafe characters to terminal. */
6e85d753 6913 terminal_coding.flags |= CODING_FLAG_ISO_SAFE;
8ca3766a 6914 /* Character composition should be disabled. */
ec6d2bb8 6915 terminal_coding.composing = COMPOSITION_DISABLED;
bd64290d
KH
6916 /* Error notification should be suppressed. */
6917 terminal_coding.suppress_error = 1;
b73bfc1c
KH
6918 terminal_coding.src_multibyte = 1;
6919 terminal_coding.dst_multibyte = 0;
4ed46869
KH
6920 return Qnil;
6921}
6922
c4825358
KH
6923DEFUN ("set-safe-terminal-coding-system-internal",
6924 Fset_safe_terminal_coding_system_internal,
48b0f3ae 6925 Sset_safe_terminal_coding_system_internal, 1, 1, 0,
ddb67bdc 6926 doc: /* Internal use only. */)
48b0f3ae 6927 (coding_system)
c4825358
KH
6928 Lisp_Object coding_system;
6929{
b7826503 6930 CHECK_SYMBOL (coding_system);
c4825358
KH
6931 setup_coding_system (Fcheck_coding_system (coding_system),
6932 &safe_terminal_coding);
8ca3766a 6933 /* Character composition should be disabled. */
ec6d2bb8 6934 safe_terminal_coding.composing = COMPOSITION_DISABLED;
bd64290d
KH
6935 /* Error notification should be suppressed. */
6936 terminal_coding.suppress_error = 1;
b73bfc1c
KH
6937 safe_terminal_coding.src_multibyte = 1;
6938 safe_terminal_coding.dst_multibyte = 0;
c4825358
KH
6939 return Qnil;
6940}
6941
4ed46869
KH
6942DEFUN ("terminal-coding-system",
6943 Fterminal_coding_system, Sterminal_coding_system, 0, 0, 0,
48b0f3ae
PJ
6944 doc: /* Return coding system specified for terminal output. */)
6945 ()
4ed46869
KH
6946{
6947 return terminal_coding.symbol;
6948}
6949
1ba9e4ab
KH
6950DEFUN ("set-keyboard-coding-system-internal",
6951 Fset_keyboard_coding_system_internal,
48b0f3ae
PJ
6952 Sset_keyboard_coding_system_internal, 1, 1, 0,
6953 doc: /* Internal use only. */)
6954 (coding_system)
4ed46869
KH
6955 Lisp_Object coding_system;
6956{
b7826503 6957 CHECK_SYMBOL (coding_system);
4ed46869 6958 setup_coding_system (Fcheck_coding_system (coding_system), &keyboard_coding);
8ca3766a 6959 /* Character composition should be disabled. */
ec6d2bb8 6960 keyboard_coding.composing = COMPOSITION_DISABLED;
4ed46869
KH
6961 return Qnil;
6962}
6963
6964DEFUN ("keyboard-coding-system",
6965 Fkeyboard_coding_system, Skeyboard_coding_system, 0, 0, 0,
48b0f3ae
PJ
6966 doc: /* Return coding system specified for decoding keyboard input. */)
6967 ()
4ed46869
KH
6968{
6969 return keyboard_coding.symbol;
6970}
6971
6972\f
a5d301df
KH
6973DEFUN ("find-operation-coding-system", Ffind_operation_coding_system,
6974 Sfind_operation_coding_system, 1, MANY, 0,
48b0f3ae
PJ
6975 doc: /* Choose a coding system for an operation based on the target name.
6976The value names a pair of coding systems: (DECODING-SYSTEM . ENCODING-SYSTEM).
6977DECODING-SYSTEM is the coding system to use for decoding
6978\(in case OPERATION does decoding), and ENCODING-SYSTEM is the coding system
6979for encoding (in case OPERATION does encoding).
6980
6981The first argument OPERATION specifies an I/O primitive:
6982 For file I/O, `insert-file-contents' or `write-region'.
6983 For process I/O, `call-process', `call-process-region', or `start-process'.
6984 For network I/O, `open-network-stream'.
6985
6986The remaining arguments should be the same arguments that were passed
6987to the primitive. Depending on which primitive, one of those arguments
6988is selected as the TARGET. For example, if OPERATION does file I/O,
6989whichever argument specifies the file name is TARGET.
6990
6991TARGET has a meaning which depends on OPERATION:
6992 For file I/O, TARGET is a file name.
6993 For process I/O, TARGET is a process name.
6994 For network I/O, TARGET is a service name or a port number
6995
6996This function looks up what specified for TARGET in,
6997`file-coding-system-alist', `process-coding-system-alist',
6998or `network-coding-system-alist' depending on OPERATION.
6999They may specify a coding system, a cons of coding systems,
7000or a function symbol to call.
7001In the last case, we call the function with one argument,
7002which is a list of all the arguments given to this function.
7003
7004usage: (find-operation-coding-system OPERATION ARGUMENTS ...) */)
7005 (nargs, args)
4ed46869
KH
7006 int nargs;
7007 Lisp_Object *args;
7008{
7009 Lisp_Object operation, target_idx, target, val;
7010 register Lisp_Object chain;
7011
7012 if (nargs < 2)
7013 error ("Too few arguments");
7014 operation = args[0];
7015 if (!SYMBOLP (operation)
7016 || !INTEGERP (target_idx = Fget (operation, Qtarget_idx)))
8ca3766a 7017 error ("Invalid first argument");
4ed46869
KH
7018 if (nargs < 1 + XINT (target_idx))
7019 error ("Too few arguments for operation: %s",
d5db4077 7020 SDATA (SYMBOL_NAME (operation)));
7f787cfd
KH
7021 /* For write-region, if the 6th argument (i.e. VISIT, the 5th
7022 argument to write-region) is string, it must be treated as a
7023 target file name. */
7024 if (EQ (operation, Qwrite_region)
7025 && nargs > 5
7026 && STRINGP (args[5]))
d90ed3b4 7027 target_idx = make_number (4);
4ed46869
KH
7028 target = args[XINT (target_idx) + 1];
7029 if (!(STRINGP (target)
7030 || (EQ (operation, Qopen_network_stream) && INTEGERP (target))))
8ca3766a 7031 error ("Invalid argument %d", XINT (target_idx) + 1);
4ed46869 7032
2e34157c
RS
7033 chain = ((EQ (operation, Qinsert_file_contents)
7034 || EQ (operation, Qwrite_region))
02ba4723 7035 ? Vfile_coding_system_alist
2e34157c 7036 : (EQ (operation, Qopen_network_stream)
02ba4723
KH
7037 ? Vnetwork_coding_system_alist
7038 : Vprocess_coding_system_alist));
4ed46869
KH
7039 if (NILP (chain))
7040 return Qnil;
7041
03699b14 7042 for (; CONSP (chain); chain = XCDR (chain))
4ed46869 7043 {
f44d27ce 7044 Lisp_Object elt;
03699b14 7045 elt = XCAR (chain);
4ed46869
KH
7046
7047 if (CONSP (elt)
7048 && ((STRINGP (target)
03699b14
KR
7049 && STRINGP (XCAR (elt))
7050 && fast_string_match (XCAR (elt), target) >= 0)
7051 || (INTEGERP (target) && EQ (target, XCAR (elt)))))
02ba4723 7052 {
03699b14 7053 val = XCDR (elt);
b19fd4c5
KH
7054 /* Here, if VAL is both a valid coding system and a valid
7055 function symbol, we return VAL as a coding system. */
02ba4723
KH
7056 if (CONSP (val))
7057 return val;
7058 if (! SYMBOLP (val))
7059 return Qnil;
7060 if (! NILP (Fcoding_system_p (val)))
7061 return Fcons (val, val);
b19fd4c5
KH
7062 if (! NILP (Ffboundp (val)))
7063 {
7064 val = call1 (val, Flist (nargs, args));
7065 if (CONSP (val))
7066 return val;
7067 if (SYMBOLP (val) && ! NILP (Fcoding_system_p (val)))
7068 return Fcons (val, val);
7069 }
02ba4723
KH
7070 return Qnil;
7071 }
4ed46869
KH
7072 }
7073 return Qnil;
7074}
7075
1397dc18
KH
7076DEFUN ("update-coding-systems-internal", Fupdate_coding_systems_internal,
7077 Supdate_coding_systems_internal, 0, 0, 0,
48b0f3ae
PJ
7078 doc: /* Update internal database for ISO2022 and CCL based coding systems.
7079When values of any coding categories are changed, you must
7080call this function. */)
7081 ()
d46c5b12
KH
7082{
7083 int i;
7084
fa42c37f 7085 for (i = CODING_CATEGORY_IDX_EMACS_MULE; i < CODING_CATEGORY_IDX_MAX; i++)
d46c5b12 7086 {
1397dc18
KH
7087 Lisp_Object val;
7088
f5c1dd0d 7089 val = SYMBOL_VALUE (XVECTOR (Vcoding_category_table)->contents[i]);
1397dc18
KH
7090 if (!NILP (val))
7091 {
7092 if (! coding_system_table[i])
7093 coding_system_table[i] = ((struct coding_system *)
7094 xmalloc (sizeof (struct coding_system)));
7095 setup_coding_system (val, coding_system_table[i]);
7096 }
7097 else if (coding_system_table[i])
7098 {
7099 xfree (coding_system_table[i]);
7100 coding_system_table[i] = NULL;
7101 }
d46c5b12 7102 }
1397dc18 7103
d46c5b12
KH
7104 return Qnil;
7105}
7106
66cfb530
KH
7107DEFUN ("set-coding-priority-internal", Fset_coding_priority_internal,
7108 Sset_coding_priority_internal, 0, 0, 0,
48b0f3ae
PJ
7109 doc: /* Update internal database for the current value of `coding-category-list'.
7110This function is internal use only. */)
7111 ()
66cfb530
KH
7112{
7113 int i = 0, idx;
84d60297
RS
7114 Lisp_Object val;
7115
7116 val = Vcoding_category_list;
66cfb530
KH
7117
7118 while (CONSP (val) && i < CODING_CATEGORY_IDX_MAX)
7119 {
03699b14 7120 if (! SYMBOLP (XCAR (val)))
66cfb530 7121 break;
03699b14 7122 idx = XFASTINT (Fget (XCAR (val), Qcoding_category_index));
66cfb530
KH
7123 if (idx >= CODING_CATEGORY_IDX_MAX)
7124 break;
7125 coding_priorities[i++] = (1 << idx);
03699b14 7126 val = XCDR (val);
66cfb530
KH
7127 }
7128 /* If coding-category-list is valid and contains all coding
7129 categories, `i' should be CODING_CATEGORY_IDX_MAX now. If not,
fa42c37f 7130 the following code saves Emacs from crashing. */
66cfb530
KH
7131 while (i < CODING_CATEGORY_IDX_MAX)
7132 coding_priorities[i++] = CODING_CATEGORY_MASK_RAW_TEXT;
7133
7134 return Qnil;
7135}
7136
4ed46869
KH
7137#endif /* emacs */
7138
7139\f
1397dc18 7140/*** 9. Post-amble ***/
4ed46869 7141
dfcf069d 7142void
4ed46869
KH
7143init_coding_once ()
7144{
7145 int i;
7146
93dec019 7147 /* Emacs' internal format specific initialize routine. */
4ed46869
KH
7148 for (i = 0; i <= 0x20; i++)
7149 emacs_code_class[i] = EMACS_control_code;
7150 emacs_code_class[0x0A] = EMACS_linefeed_code;
7151 emacs_code_class[0x0D] = EMACS_carriage_return_code;
7152 for (i = 0x21 ; i < 0x7F; i++)
7153 emacs_code_class[i] = EMACS_ascii_code;
7154 emacs_code_class[0x7F] = EMACS_control_code;
ec6d2bb8 7155 for (i = 0x80; i < 0xFF; i++)
4ed46869
KH
7156 emacs_code_class[i] = EMACS_invalid_code;
7157 emacs_code_class[LEADING_CODE_PRIVATE_11] = EMACS_leading_code_3;
7158 emacs_code_class[LEADING_CODE_PRIVATE_12] = EMACS_leading_code_3;
7159 emacs_code_class[LEADING_CODE_PRIVATE_21] = EMACS_leading_code_4;
7160 emacs_code_class[LEADING_CODE_PRIVATE_22] = EMACS_leading_code_4;
7161
7162 /* ISO2022 specific initialize routine. */
7163 for (i = 0; i < 0x20; i++)
b73bfc1c 7164 iso_code_class[i] = ISO_control_0;
4ed46869
KH
7165 for (i = 0x21; i < 0x7F; i++)
7166 iso_code_class[i] = ISO_graphic_plane_0;
7167 for (i = 0x80; i < 0xA0; i++)
b73bfc1c 7168 iso_code_class[i] = ISO_control_1;
4ed46869
KH
7169 for (i = 0xA1; i < 0xFF; i++)
7170 iso_code_class[i] = ISO_graphic_plane_1;
7171 iso_code_class[0x20] = iso_code_class[0x7F] = ISO_0x20_or_0x7F;
7172 iso_code_class[0xA0] = iso_code_class[0xFF] = ISO_0xA0_or_0xFF;
7173 iso_code_class[ISO_CODE_CR] = ISO_carriage_return;
7174 iso_code_class[ISO_CODE_SO] = ISO_shift_out;
7175 iso_code_class[ISO_CODE_SI] = ISO_shift_in;
7176 iso_code_class[ISO_CODE_SS2_7] = ISO_single_shift_2_7;
7177 iso_code_class[ISO_CODE_ESC] = ISO_escape;
7178 iso_code_class[ISO_CODE_SS2] = ISO_single_shift_2;
7179 iso_code_class[ISO_CODE_SS3] = ISO_single_shift_3;
7180 iso_code_class[ISO_CODE_CSI] = ISO_control_sequence_introducer;
7181
e0e989f6
KH
7182 setup_coding_system (Qnil, &keyboard_coding);
7183 setup_coding_system (Qnil, &terminal_coding);
c4825358 7184 setup_coding_system (Qnil, &safe_terminal_coding);
6bc51348 7185 setup_coding_system (Qnil, &default_buffer_file_coding);
9ce27fde 7186
d46c5b12
KH
7187 bzero (coding_system_table, sizeof coding_system_table);
7188
66cfb530
KH
7189 bzero (ascii_skip_code, sizeof ascii_skip_code);
7190 for (i = 0; i < 128; i++)
7191 ascii_skip_code[i] = 1;
7192
9ce27fde
KH
7193#if defined (MSDOS) || defined (WINDOWSNT)
7194 system_eol_type = CODING_EOL_CRLF;
7195#else
7196 system_eol_type = CODING_EOL_LF;
7197#endif
b843d1ae
KH
7198
7199 inhibit_pre_post_conversion = 0;
e0e989f6
KH
7200}
7201
7202#ifdef emacs
7203
dfcf069d 7204void
e0e989f6
KH
7205syms_of_coding ()
7206{
7207 Qtarget_idx = intern ("target-idx");
7208 staticpro (&Qtarget_idx);
7209
bb0115a2
RS
7210 Qcoding_system_history = intern ("coding-system-history");
7211 staticpro (&Qcoding_system_history);
7212 Fset (Qcoding_system_history, Qnil);
7213
9ce27fde 7214 /* Target FILENAME is the first argument. */
e0e989f6 7215 Fput (Qinsert_file_contents, Qtarget_idx, make_number (0));
9ce27fde 7216 /* Target FILENAME is the third argument. */
e0e989f6
KH
7217 Fput (Qwrite_region, Qtarget_idx, make_number (2));
7218
7219 Qcall_process = intern ("call-process");
7220 staticpro (&Qcall_process);
9ce27fde 7221 /* Target PROGRAM is the first argument. */
e0e989f6
KH
7222 Fput (Qcall_process, Qtarget_idx, make_number (0));
7223
7224 Qcall_process_region = intern ("call-process-region");
7225 staticpro (&Qcall_process_region);
9ce27fde 7226 /* Target PROGRAM is the third argument. */
e0e989f6
KH
7227 Fput (Qcall_process_region, Qtarget_idx, make_number (2));
7228
7229 Qstart_process = intern ("start-process");
7230 staticpro (&Qstart_process);
9ce27fde 7231 /* Target PROGRAM is the third argument. */
e0e989f6
KH
7232 Fput (Qstart_process, Qtarget_idx, make_number (2));
7233
7234 Qopen_network_stream = intern ("open-network-stream");
7235 staticpro (&Qopen_network_stream);
9ce27fde 7236 /* Target SERVICE is the fourth argument. */
e0e989f6
KH
7237 Fput (Qopen_network_stream, Qtarget_idx, make_number (3));
7238
4ed46869
KH
7239 Qcoding_system = intern ("coding-system");
7240 staticpro (&Qcoding_system);
7241
7242 Qeol_type = intern ("eol-type");
7243 staticpro (&Qeol_type);
7244
7245 Qbuffer_file_coding_system = intern ("buffer-file-coding-system");
7246 staticpro (&Qbuffer_file_coding_system);
7247
7248 Qpost_read_conversion = intern ("post-read-conversion");
7249 staticpro (&Qpost_read_conversion);
7250
7251 Qpre_write_conversion = intern ("pre-write-conversion");
7252 staticpro (&Qpre_write_conversion);
7253
27901516
KH
7254 Qno_conversion = intern ("no-conversion");
7255 staticpro (&Qno_conversion);
7256
7257 Qundecided = intern ("undecided");
7258 staticpro (&Qundecided);
7259
4ed46869
KH
7260 Qcoding_system_p = intern ("coding-system-p");
7261 staticpro (&Qcoding_system_p);
7262
7263 Qcoding_system_error = intern ("coding-system-error");
7264 staticpro (&Qcoding_system_error);
7265
7266 Fput (Qcoding_system_error, Qerror_conditions,
7267 Fcons (Qcoding_system_error, Fcons (Qerror, Qnil)));
7268 Fput (Qcoding_system_error, Qerror_message,
9ce27fde 7269 build_string ("Invalid coding system"));
4ed46869 7270
d46c5b12
KH
7271 Qcoding_category = intern ("coding-category");
7272 staticpro (&Qcoding_category);
4ed46869
KH
7273 Qcoding_category_index = intern ("coding-category-index");
7274 staticpro (&Qcoding_category_index);
7275
d46c5b12
KH
7276 Vcoding_category_table
7277 = Fmake_vector (make_number (CODING_CATEGORY_IDX_MAX), Qnil);
7278 staticpro (&Vcoding_category_table);
4ed46869
KH
7279 {
7280 int i;
7281 for (i = 0; i < CODING_CATEGORY_IDX_MAX; i++)
7282 {
d46c5b12
KH
7283 XVECTOR (Vcoding_category_table)->contents[i]
7284 = intern (coding_category_name[i]);
7285 Fput (XVECTOR (Vcoding_category_table)->contents[i],
7286 Qcoding_category_index, make_number (i));
4ed46869
KH
7287 }
7288 }
7289
f967223b
KH
7290 Qtranslation_table = intern ("translation-table");
7291 staticpro (&Qtranslation_table);
1397dc18 7292 Fput (Qtranslation_table, Qchar_table_extra_slots, make_number (1));
bdd9fb48 7293
f967223b
KH
7294 Qtranslation_table_id = intern ("translation-table-id");
7295 staticpro (&Qtranslation_table_id);
84fbb8a0 7296
f967223b
KH
7297 Qtranslation_table_for_decode = intern ("translation-table-for-decode");
7298 staticpro (&Qtranslation_table_for_decode);
a5d301df 7299
f967223b
KH
7300 Qtranslation_table_for_encode = intern ("translation-table-for-encode");
7301 staticpro (&Qtranslation_table_for_encode);
a5d301df 7302
05e6f5dc
KH
7303 Qsafe_chars = intern ("safe-chars");
7304 staticpro (&Qsafe_chars);
7305
7306 Qchar_coding_system = intern ("char-coding-system");
7307 staticpro (&Qchar_coding_system);
7308
7309 /* Intern this now in case it isn't already done.
7310 Setting this variable twice is harmless.
7311 But don't staticpro it here--that is done in alloc.c. */
7312 Qchar_table_extra_slots = intern ("char-table-extra-slots");
7313 Fput (Qsafe_chars, Qchar_table_extra_slots, make_number (0));
0192762c 7314 Fput (Qchar_coding_system, Qchar_table_extra_slots, make_number (2));
70c22245 7315
1397dc18
KH
7316 Qvalid_codes = intern ("valid-codes");
7317 staticpro (&Qvalid_codes);
7318
9ce27fde
KH
7319 Qemacs_mule = intern ("emacs-mule");
7320 staticpro (&Qemacs_mule);
7321
d46c5b12
KH
7322 Qraw_text = intern ("raw-text");
7323 staticpro (&Qraw_text);
7324
4ed46869
KH
7325 defsubr (&Scoding_system_p);
7326 defsubr (&Sread_coding_system);
7327 defsubr (&Sread_non_nil_coding_system);
7328 defsubr (&Scheck_coding_system);
7329 defsubr (&Sdetect_coding_region);
d46c5b12 7330 defsubr (&Sdetect_coding_string);
05e6f5dc 7331 defsubr (&Sfind_coding_systems_region_internal);
068a9dbd 7332 defsubr (&Sunencodable_char_position);
4ed46869
KH
7333 defsubr (&Sdecode_coding_region);
7334 defsubr (&Sencode_coding_region);
7335 defsubr (&Sdecode_coding_string);
7336 defsubr (&Sencode_coding_string);
7337 defsubr (&Sdecode_sjis_char);
7338 defsubr (&Sencode_sjis_char);
7339 defsubr (&Sdecode_big5_char);
7340 defsubr (&Sencode_big5_char);
1ba9e4ab 7341 defsubr (&Sset_terminal_coding_system_internal);
c4825358 7342 defsubr (&Sset_safe_terminal_coding_system_internal);
4ed46869 7343 defsubr (&Sterminal_coding_system);
1ba9e4ab 7344 defsubr (&Sset_keyboard_coding_system_internal);
4ed46869 7345 defsubr (&Skeyboard_coding_system);
a5d301df 7346 defsubr (&Sfind_operation_coding_system);
1397dc18 7347 defsubr (&Supdate_coding_systems_internal);
66cfb530 7348 defsubr (&Sset_coding_priority_internal);
4ed46869 7349
4608c386 7350 DEFVAR_LISP ("coding-system-list", &Vcoding_system_list,
48b0f3ae
PJ
7351 doc: /* List of coding systems.
7352
7353Do not alter the value of this variable manually. This variable should be
7354updated by the functions `make-coding-system' and
7355`define-coding-system-alias'. */);
4608c386
KH
7356 Vcoding_system_list = Qnil;
7357
7358 DEFVAR_LISP ("coding-system-alist", &Vcoding_system_alist,
48b0f3ae
PJ
7359 doc: /* Alist of coding system names.
7360Each element is one element list of coding system name.
7361This variable is given to `completing-read' as TABLE argument.
7362
7363Do not alter the value of this variable manually. This variable should be
7364updated by the functions `make-coding-system' and
7365`define-coding-system-alias'. */);
4608c386
KH
7366 Vcoding_system_alist = Qnil;
7367
4ed46869 7368 DEFVAR_LISP ("coding-category-list", &Vcoding_category_list,
48b0f3ae
PJ
7369 doc: /* List of coding-categories (symbols) ordered by priority.
7370
7371On detecting a coding system, Emacs tries code detection algorithms
7372associated with each coding-category one by one in this order. When
7373one algorithm agrees with a byte sequence of source text, the coding
7374system bound to the corresponding coding-category is selected. */);
4ed46869
KH
7375 {
7376 int i;
7377
7378 Vcoding_category_list = Qnil;
7379 for (i = CODING_CATEGORY_IDX_MAX - 1; i >= 0; i--)
7380 Vcoding_category_list
d46c5b12
KH
7381 = Fcons (XVECTOR (Vcoding_category_table)->contents[i],
7382 Vcoding_category_list);
4ed46869
KH
7383 }
7384
7385 DEFVAR_LISP ("coding-system-for-read", &Vcoding_system_for_read,
48b0f3ae
PJ
7386 doc: /* Specify the coding system for read operations.
7387It is useful to bind this variable with `let', but do not set it globally.
7388If the value is a coding system, it is used for decoding on read operation.
7389If not, an appropriate element is used from one of the coding system alists:
7390There are three such tables, `file-coding-system-alist',
7391`process-coding-system-alist', and `network-coding-system-alist'. */);
4ed46869
KH
7392 Vcoding_system_for_read = Qnil;
7393
7394 DEFVAR_LISP ("coding-system-for-write", &Vcoding_system_for_write,
48b0f3ae
PJ
7395 doc: /* Specify the coding system for write operations.
7396Programs bind this variable with `let', but you should not set it globally.
7397If the value is a coding system, it is used for encoding of output,
7398when writing it to a file and when sending it to a file or subprocess.
7399
7400If this does not specify a coding system, an appropriate element
7401is used from one of the coding system alists:
7402There are three such tables, `file-coding-system-alist',
7403`process-coding-system-alist', and `network-coding-system-alist'.
7404For output to files, if the above procedure does not specify a coding system,
7405the value of `buffer-file-coding-system' is used. */);
4ed46869
KH
7406 Vcoding_system_for_write = Qnil;
7407
7408 DEFVAR_LISP ("last-coding-system-used", &Vlast_coding_system_used,
48b0f3ae 7409 doc: /* Coding system used in the latest file or process I/O. */);
4ed46869
KH
7410 Vlast_coding_system_used = Qnil;
7411
9ce27fde 7412 DEFVAR_BOOL ("inhibit-eol-conversion", &inhibit_eol_conversion,
48b0f3ae
PJ
7413 doc: /* *Non-nil means always inhibit code conversion of end-of-line format.
7414See info node `Coding Systems' and info node `Text and Binary' concerning
7415such conversion. */);
9ce27fde
KH
7416 inhibit_eol_conversion = 0;
7417
ed29121d 7418 DEFVAR_BOOL ("inherit-process-coding-system", &inherit_process_coding_system,
48b0f3ae
PJ
7419 doc: /* Non-nil means process buffer inherits coding system of process output.
7420Bind it to t if the process output is to be treated as if it were a file
7421read from some filesystem. */);
ed29121d
EZ
7422 inherit_process_coding_system = 0;
7423
02ba4723 7424 DEFVAR_LISP ("file-coding-system-alist", &Vfile_coding_system_alist,
48b0f3ae
PJ
7425 doc: /* Alist to decide a coding system to use for a file I/O operation.
7426The format is ((PATTERN . VAL) ...),
7427where PATTERN is a regular expression matching a file name,
7428VAL is a coding system, a cons of coding systems, or a function symbol.
7429If VAL is a coding system, it is used for both decoding and encoding
7430the file contents.
7431If VAL is a cons of coding systems, the car part is used for decoding,
7432and the cdr part is used for encoding.
7433If VAL is a function symbol, the function must return a coding system
0192762c 7434or a cons of coding systems which are used as above. The function gets
ff955d90 7435the arguments with which `find-operation-coding-system' was called.
48b0f3ae
PJ
7436
7437See also the function `find-operation-coding-system'
7438and the variable `auto-coding-alist'. */);
02ba4723
KH
7439 Vfile_coding_system_alist = Qnil;
7440
7441 DEFVAR_LISP ("process-coding-system-alist", &Vprocess_coding_system_alist,
48b0f3ae
PJ
7442 doc: /* Alist to decide a coding system to use for a process I/O operation.
7443The format is ((PATTERN . VAL) ...),
7444where PATTERN is a regular expression matching a program name,
7445VAL is a coding system, a cons of coding systems, or a function symbol.
7446If VAL is a coding system, it is used for both decoding what received
7447from the program and encoding what sent to the program.
7448If VAL is a cons of coding systems, the car part is used for decoding,
7449and the cdr part is used for encoding.
7450If VAL is a function symbol, the function must return a coding system
7451or a cons of coding systems which are used as above.
7452
7453See also the function `find-operation-coding-system'. */);
02ba4723
KH
7454 Vprocess_coding_system_alist = Qnil;
7455
7456 DEFVAR_LISP ("network-coding-system-alist", &Vnetwork_coding_system_alist,
48b0f3ae
PJ
7457 doc: /* Alist to decide a coding system to use for a network I/O operation.
7458The format is ((PATTERN . VAL) ...),
7459where PATTERN is a regular expression matching a network service name
7460or is a port number to connect to,
7461VAL is a coding system, a cons of coding systems, or a function symbol.
7462If VAL is a coding system, it is used for both decoding what received
7463from the network stream and encoding what sent to the network stream.
7464If VAL is a cons of coding systems, the car part is used for decoding,
7465and the cdr part is used for encoding.
7466If VAL is a function symbol, the function must return a coding system
7467or a cons of coding systems which are used as above.
7468
7469See also the function `find-operation-coding-system'. */);
02ba4723 7470 Vnetwork_coding_system_alist = Qnil;
4ed46869 7471
68c45bf0 7472 DEFVAR_LISP ("locale-coding-system", &Vlocale_coding_system,
75205970
RS
7473 doc: /* Coding system to use with system messages.
7474Also used for decoding keyboard input on X Window system. */);
68c45bf0
PE
7475 Vlocale_coding_system = Qnil;
7476
005f0d35 7477 /* The eol mnemonics are reset in startup.el system-dependently. */
7722baf9 7478 DEFVAR_LISP ("eol-mnemonic-unix", &eol_mnemonic_unix,
48b0f3ae 7479 doc: /* *String displayed in mode line for UNIX-like (LF) end-of-line format. */);
7722baf9 7480 eol_mnemonic_unix = build_string (":");
4ed46869 7481
7722baf9 7482 DEFVAR_LISP ("eol-mnemonic-dos", &eol_mnemonic_dos,
48b0f3ae 7483 doc: /* *String displayed in mode line for DOS-like (CRLF) end-of-line format. */);
7722baf9 7484 eol_mnemonic_dos = build_string ("\\");
4ed46869 7485
7722baf9 7486 DEFVAR_LISP ("eol-mnemonic-mac", &eol_mnemonic_mac,
48b0f3ae 7487 doc: /* *String displayed in mode line for MAC-like (CR) end-of-line format. */);
7722baf9 7488 eol_mnemonic_mac = build_string ("/");
4ed46869 7489
7722baf9 7490 DEFVAR_LISP ("eol-mnemonic-undecided", &eol_mnemonic_undecided,
48b0f3ae 7491 doc: /* *String displayed in mode line when end-of-line format is not yet determined. */);
7722baf9 7492 eol_mnemonic_undecided = build_string (":");
4ed46869 7493
84fbb8a0 7494 DEFVAR_LISP ("enable-character-translation", &Venable_character_translation,
48b0f3ae 7495 doc: /* *Non-nil enables character translation while encoding and decoding. */);
84fbb8a0 7496 Venable_character_translation = Qt;
bdd9fb48 7497
f967223b 7498 DEFVAR_LISP ("standard-translation-table-for-decode",
48b0f3ae
PJ
7499 &Vstandard_translation_table_for_decode,
7500 doc: /* Table for translating characters while decoding. */);
f967223b 7501 Vstandard_translation_table_for_decode = Qnil;
bdd9fb48 7502
f967223b 7503 DEFVAR_LISP ("standard-translation-table-for-encode",
48b0f3ae
PJ
7504 &Vstandard_translation_table_for_encode,
7505 doc: /* Table for translating characters while encoding. */);
f967223b 7506 Vstandard_translation_table_for_encode = Qnil;
4ed46869
KH
7507
7508 DEFVAR_LISP ("charset-revision-table", &Vcharset_revision_alist,
48b0f3ae
PJ
7509 doc: /* Alist of charsets vs revision numbers.
7510While encoding, if a charset (car part of an element) is found,
7511designate it with the escape sequence identifying revision (cdr part of the element). */);
4ed46869 7512 Vcharset_revision_alist = Qnil;
02ba4723
KH
7513
7514 DEFVAR_LISP ("default-process-coding-system",
7515 &Vdefault_process_coding_system,
48b0f3ae
PJ
7516 doc: /* Cons of coding systems used for process I/O by default.
7517The car part is used for decoding a process output,
7518the cdr part is used for encoding a text to be sent to a process. */);
02ba4723 7519 Vdefault_process_coding_system = Qnil;
c4825358 7520
3f003981 7521 DEFVAR_LISP ("latin-extra-code-table", &Vlatin_extra_code_table,
48b0f3ae
PJ
7522 doc: /* Table of extra Latin codes in the range 128..159 (inclusive).
7523This is a vector of length 256.
7524If Nth element is non-nil, the existence of code N in a file
7525\(or output of subprocess) doesn't prevent it to be detected as
7526a coding system of ISO 2022 variant which has a flag
7527`accept-latin-extra-code' t (e.g. iso-latin-1) on reading a file
7528or reading output of a subprocess.
7529Only 128th through 159th elements has a meaning. */);
3f003981 7530 Vlatin_extra_code_table = Fmake_vector (make_number (256), Qnil);
d46c5b12
KH
7531
7532 DEFVAR_LISP ("select-safe-coding-system-function",
7533 &Vselect_safe_coding_system_function,
48b0f3ae
PJ
7534 doc: /* Function to call to select safe coding system for encoding a text.
7535
7536If set, this function is called to force a user to select a proper
7537coding system which can encode the text in the case that a default
7538coding system used in each operation can't encode the text.
7539
7540The default value is `select-safe-coding-system' (which see). */);
d46c5b12
KH
7541 Vselect_safe_coding_system_function = Qnil;
7542
05e6f5dc 7543 DEFVAR_LISP ("char-coding-system-table", &Vchar_coding_system_table,
48b0f3ae
PJ
7544 doc: /* Char-table containing safe coding systems of each characters.
7545Each element doesn't include such generic coding systems that can
5f90b4fb 7546encode any characters. They are in the first extra slot. */);
05e6f5dc
KH
7547 Vchar_coding_system_table = Fmake_char_table (Qchar_coding_system, Qnil);
7548
22ab2303 7549 DEFVAR_BOOL ("inhibit-iso-escape-detection",
74383408 7550 &inhibit_iso_escape_detection,
48b0f3ae
PJ
7551 doc: /* If non-nil, Emacs ignores ISO2022's escape sequence on code detection.
7552
7553By default, on reading a file, Emacs tries to detect how the text is
7554encoded. This code detection is sensitive to escape sequences. If
7555the sequence is valid as ISO2022, the code is determined as one of
7556the ISO2022 encodings, and the file is decoded by the corresponding
7557coding system (e.g. `iso-2022-7bit').
7558
7559However, there may be a case that you want to read escape sequences in
7560a file as is. In such a case, you can set this variable to non-nil.
7561Then, as the code detection ignores any escape sequences, no file is
7562detected as encoded in some ISO2022 encoding. The result is that all
7563escape sequences become visible in a buffer.
7564
7565The default value is nil, and it is strongly recommended not to change
7566it. That is because many Emacs Lisp source files that contain
7567non-ASCII characters are encoded by the coding system `iso-2022-7bit'
7568in Emacs's distribution, and they won't be decoded correctly on
7569reading if you suppress escape sequence detection.
7570
7571The other way to read escape sequences in a file without decoding is
7572to explicitly specify some coding system that doesn't use ISO2022's
7573escape sequence (e.g `latin-1') on reading by \\[universal-coding-system-argument]. */);
74383408 7574 inhibit_iso_escape_detection = 0;
4ed46869
KH
7575}
7576
68c45bf0
PE
7577char *
7578emacs_strerror (error_number)
7579 int error_number;
7580{
7581 char *str;
7582
ca9c0567 7583 synchronize_system_messages_locale ();
68c45bf0
PE
7584 str = strerror (error_number);
7585
7586 if (! NILP (Vlocale_coding_system))
7587 {
7588 Lisp_Object dec = code_convert_string_norecord (build_string (str),
7589 Vlocale_coding_system,
7590 0);
d5db4077 7591 str = (char *) SDATA (dec);
68c45bf0
PE
7592 }
7593
7594 return str;
7595}
7596
4ed46869 7597#endif /* emacs */
c2f94ebc 7598