(main): Call init_coding.
[bpt/emacs.git] / src / coding.c
CommitLineData
4ed46869 1/* Coding system handler (conversion, detection, and etc).
4a2f9c6a 2 Copyright (C) 1995, 1997, 1998 Electrotechnical Laboratory, JAPAN.
203cb916 3 Licensed to the Free Software Foundation.
4ed46869 4
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5This file is part of GNU Emacs.
6
7GNU Emacs is free software; you can redistribute it and/or modify
8it under the terms of the GNU General Public License as published by
9the Free Software Foundation; either version 2, or (at your option)
10any later version.
4ed46869 11
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12GNU Emacs is distributed in the hope that it will be useful,
13but WITHOUT ANY WARRANTY; without even the implied warranty of
14MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15GNU General Public License for more details.
4ed46869 16
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17You should have received a copy of the GNU General Public License
18along with GNU Emacs; see the file COPYING. If not, write to
19the Free Software Foundation, Inc., 59 Temple Place - Suite 330,
20Boston, MA 02111-1307, USA. */
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21
22/*** TABLE OF CONTENTS ***
23
24 1. Preamble
0ef69138 25 2. Emacs' internal format (emacs-mule) handlers
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26 3. ISO2022 handlers
27 4. Shift-JIS and BIG5 handlers
28 5. End-of-line handlers
29 6. C library functions
30 7. Emacs Lisp library functions
31 8. Post-amble
32
33*/
34
35/*** GENERAL NOTE on CODING SYSTEM ***
36
37 Coding system is an encoding mechanism of one or more character
38 sets. Here's a list of coding systems which Emacs can handle. When
39 we say "decode", it means converting some other coding system to
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40 Emacs' internal format (emacs-internal), and when we say "encode",
41 it means converting the coding system emacs-mule to some other
42 coding system.
4ed46869 43
0ef69138 44 0. Emacs' internal format (emacs-mule)
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45
46 Emacs itself holds a multi-lingual character in a buffer and a string
f4dee582 47 in a special format. Details are described in section 2.
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48
49 1. ISO2022
50
51 The most famous coding system for multiple character sets. X's
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52 Compound Text, various EUCs (Extended Unix Code), and coding
53 systems used in Internet communication such as ISO-2022-JP are
54 all variants of ISO2022. Details are described in section 3.
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55
56 2. SJIS (or Shift-JIS or MS-Kanji-Code)
57
58 A coding system to encode character sets: ASCII, JISX0201, and
59 JISX0208. Widely used for PC's in Japan. Details are described in
f4dee582 60 section 4.
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61
62 3. BIG5
63
64 A coding system to encode character sets: ASCII and Big5. Widely
65 used by Chinese (mainly in Taiwan and Hong Kong). Details are
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66 described in section 4. In this file, when we write "BIG5"
67 (all uppercase), we mean the coding system, and when we write
68 "Big5" (capitalized), we mean the character set.
4ed46869 69
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70 4. Raw text
71
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72 A coding system for a text containing random 8-bit code. Emacs does
73 no code conversion on such a text except for end-of-line format.
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74
75 5. Other
4ed46869 76
f4dee582 77 If a user wants to read/write a text encoded in a coding system not
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78 listed above, he can supply a decoder and an encoder for it in CCL
79 (Code Conversion Language) programs. Emacs executes the CCL program
80 while reading/writing.
81
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82 Emacs represents a coding system by a Lisp symbol that has a property
83 `coding-system'. But, before actually using the coding system, the
4ed46869 84 information about it is set in a structure of type `struct
f4dee582 85 coding_system' for rapid processing. See section 6 for more details.
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86
87*/
88
89/*** GENERAL NOTES on END-OF-LINE FORMAT ***
90
91 How end-of-line of a text is encoded depends on a system. For
92 instance, Unix's format is just one byte of `line-feed' code,
f4dee582 93 whereas DOS's format is two-byte sequence of `carriage-return' and
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94 `line-feed' codes. MacOS's format is usually one byte of
95 `carriage-return'.
4ed46869 96
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97 Since text characters encoding and end-of-line encoding are
98 independent, any coding system described above can take
4ed46869 99 any format of end-of-line. So, Emacs has information of format of
f4dee582 100 end-of-line in each coding-system. See section 6 for more details.
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101
102*/
103
104/*** GENERAL NOTES on `detect_coding_XXX ()' functions ***
105
106 These functions check if a text between SRC and SRC_END is encoded
107 in the coding system category XXX. Each returns an integer value in
108 which appropriate flag bits for the category XXX is set. The flag
109 bits are defined in macros CODING_CATEGORY_MASK_XXX. Below is the
110 template of these functions. */
111#if 0
112int
0ef69138 113detect_coding_emacs_mule (src, src_end)
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114 unsigned char *src, *src_end;
115{
116 ...
117}
118#endif
119
120/*** GENERAL NOTES on `decode_coding_XXX ()' functions ***
121
122 These functions decode SRC_BYTES length text at SOURCE encoded in
0ef69138 123 CODING to Emacs' internal format (emacs-mule). The resulting text
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124 goes to a place pointed to by DESTINATION, the length of which
125 should not exceed DST_BYTES. These functions set the information of
126 original and decoded texts in the members produced, produced_char,
127 consumed, and consumed_char of the structure *CODING.
128
129 The return value is an integer (CODING_FINISH_XXX) indicating how
130 the decoding finished.
131
132 DST_BYTES zero means that source area and destination area are
133 overlapped, which means that we can produce a decoded text until it
134 reaches at the head of not-yet-decoded source text.
135
136 Below is a template of these functions. */
4ed46869 137#if 0
d46c5b12 138decode_coding_XXX (coding, source, destination, src_bytes, dst_bytes)
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139 struct coding_system *coding;
140 unsigned char *source, *destination;
141 int src_bytes, dst_bytes;
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142{
143 ...
144}
145#endif
146
147/*** GENERAL NOTES on `encode_coding_XXX ()' functions ***
148
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149 These functions encode SRC_BYTES length text at SOURCE of Emacs'
150 internal format (emacs-mule) to CODING. The resulting text goes to
f4dee582 151 a place pointed to by DESTINATION, the length of which should not
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152 exceed DST_BYTES. These functions set the information of
153 original and encoded texts in the members produced, produced_char,
154 consumed, and consumed_char of the structure *CODING.
155
156 The return value is an integer (CODING_FINISH_XXX) indicating how
157 the encoding finished.
158
159 DST_BYTES zero means that source area and destination area are
160 overlapped, which means that we can produce a decoded text until it
161 reaches at the head of not-yet-decoded source text.
162
163 Below is a template of these functions. */
4ed46869 164#if 0
d46c5b12 165encode_coding_XXX (coding, source, destination, src_bytes, dst_bytes)
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166 struct coding_system *coding;
167 unsigned char *source, *destination;
168 int src_bytes, dst_bytes;
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169{
170 ...
171}
172#endif
173
174/*** COMMONLY USED MACROS ***/
175
176/* The following three macros ONE_MORE_BYTE, TWO_MORE_BYTES, and
177 THREE_MORE_BYTES safely get one, two, and three bytes from the
178 source text respectively. If there are not enough bytes in the
179 source, they jump to `label_end_of_loop'. The caller should set
180 variables `src' and `src_end' to appropriate areas in advance. */
181
182#define ONE_MORE_BYTE(c1) \
183 do { \
184 if (src < src_end) \
185 c1 = *src++; \
186 else \
187 goto label_end_of_loop; \
188 } while (0)
189
190#define TWO_MORE_BYTES(c1, c2) \
191 do { \
192 if (src + 1 < src_end) \
193 c1 = *src++, c2 = *src++; \
194 else \
195 goto label_end_of_loop; \
196 } while (0)
197
198#define THREE_MORE_BYTES(c1, c2, c3) \
199 do { \
200 if (src + 2 < src_end) \
201 c1 = *src++, c2 = *src++, c3 = *src++; \
202 else \
203 goto label_end_of_loop; \
204 } while (0)
205
206/* The following three macros DECODE_CHARACTER_ASCII,
207 DECODE_CHARACTER_DIMENSION1, and DECODE_CHARACTER_DIMENSION2 put
208 the multi-byte form of a character of each class at the place
209 pointed by `dst'. The caller should set the variable `dst' to
210 point to an appropriate area and the variable `coding' to point to
211 the coding-system of the currently decoding text in advance. */
212
213/* Decode one ASCII character C. */
214
215#define DECODE_CHARACTER_ASCII(c) \
216 do { \
217 if (COMPOSING_P (coding->composing)) \
218 *dst++ = 0xA0, *dst++ = (c) | 0x80; \
219 else \
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220 { \
221 *dst++ = (c); \
222 coding->produced_char++; \
223 } \
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224 } while (0)
225
f4dee582 226/* Decode one DIMENSION1 character whose charset is CHARSET and whose
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227 position-code is C. */
228
229#define DECODE_CHARACTER_DIMENSION1(charset, c) \
230 do { \
231 unsigned char leading_code = CHARSET_LEADING_CODE_BASE (charset); \
232 if (COMPOSING_P (coding->composing)) \
233 *dst++ = leading_code + 0x20; \
234 else \
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235 { \
236 *dst++ = leading_code; \
237 coding->produced_char++; \
238 } \
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239 if (leading_code = CHARSET_LEADING_CODE_EXT (charset)) \
240 *dst++ = leading_code; \
241 *dst++ = (c) | 0x80; \
242 } while (0)
243
f4dee582 244/* Decode one DIMENSION2 character whose charset is CHARSET and whose
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245 position-codes are C1 and C2. */
246
247#define DECODE_CHARACTER_DIMENSION2(charset, c1, c2) \
248 do { \
249 DECODE_CHARACTER_DIMENSION1 (charset, c1); \
250 *dst++ = (c2) | 0x80; \
251 } while (0)
252
253\f
254/*** 1. Preamble ***/
255
256#include <stdio.h>
257
258#ifdef emacs
259
260#include <config.h>
261#include "lisp.h"
262#include "buffer.h"
263#include "charset.h"
264#include "ccl.h"
265#include "coding.h"
266#include "window.h"
267
268#else /* not emacs */
269
270#include "mulelib.h"
271
272#endif /* not emacs */
273
274Lisp_Object Qcoding_system, Qeol_type;
275Lisp_Object Qbuffer_file_coding_system;
276Lisp_Object Qpost_read_conversion, Qpre_write_conversion;
27901516 277Lisp_Object Qno_conversion, Qundecided;
bb0115a2 278Lisp_Object Qcoding_system_history;
70c22245 279Lisp_Object Qsafe_charsets;
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280
281extern Lisp_Object Qinsert_file_contents, Qwrite_region;
282Lisp_Object Qcall_process, Qcall_process_region, Qprocess_argument;
283Lisp_Object Qstart_process, Qopen_network_stream;
284Lisp_Object Qtarget_idx;
285
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286Lisp_Object Vselect_safe_coding_system_function;
287
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288/* Mnemonic character of each format of end-of-line. */
289int eol_mnemonic_unix, eol_mnemonic_dos, eol_mnemonic_mac;
290/* Mnemonic character to indicate format of end-of-line is not yet
291 decided. */
292int eol_mnemonic_undecided;
293
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294/* Format of end-of-line decided by system. This is CODING_EOL_LF on
295 Unix, CODING_EOL_CRLF on DOS/Windows, and CODING_EOL_CR on Mac. */
296int system_eol_type;
297
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298#ifdef emacs
299
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300Lisp_Object Vcoding_system_list, Vcoding_system_alist;
301
302Lisp_Object Qcoding_system_p, Qcoding_system_error;
4ed46869 303
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304/* Coding system emacs-mule and raw-text are for converting only
305 end-of-line format. */
306Lisp_Object Qemacs_mule, Qraw_text;
9ce27fde 307
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308/* Coding-systems are handed between Emacs Lisp programs and C internal
309 routines by the following three variables. */
310/* Coding-system for reading files and receiving data from process. */
311Lisp_Object Vcoding_system_for_read;
312/* Coding-system for writing files and sending data to process. */
313Lisp_Object Vcoding_system_for_write;
314/* Coding-system actually used in the latest I/O. */
315Lisp_Object Vlast_coding_system_used;
316
c4825358 317/* A vector of length 256 which contains information about special
94487c4e 318 Latin codes (especially for dealing with Microsoft codes). */
3f003981 319Lisp_Object Vlatin_extra_code_table;
c4825358 320
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321/* Flag to inhibit code conversion of end-of-line format. */
322int inhibit_eol_conversion;
323
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324/* Flag to make buffer-file-coding-system inherit from process-coding. */
325int inherit_process_coding_system;
326
c4825358 327/* Coding system to be used to encode text for terminal display. */
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328struct coding_system terminal_coding;
329
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330/* Coding system to be used to encode text for terminal display when
331 terminal coding system is nil. */
332struct coding_system safe_terminal_coding;
333
334/* Coding system of what is sent from terminal keyboard. */
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335struct coding_system keyboard_coding;
336
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337Lisp_Object Vfile_coding_system_alist;
338Lisp_Object Vprocess_coding_system_alist;
339Lisp_Object Vnetwork_coding_system_alist;
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340
341#endif /* emacs */
342
d46c5b12 343Lisp_Object Qcoding_category, Qcoding_category_index;
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344
345/* List of symbols `coding-category-xxx' ordered by priority. */
346Lisp_Object Vcoding_category_list;
347
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348/* Table of coding categories (Lisp symbols). */
349Lisp_Object Vcoding_category_table;
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350
351/* Table of names of symbol for each coding-category. */
352char *coding_category_name[CODING_CATEGORY_IDX_MAX] = {
0ef69138 353 "coding-category-emacs-mule",
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354 "coding-category-sjis",
355 "coding-category-iso-7",
d46c5b12 356 "coding-category-iso-7-tight",
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357 "coding-category-iso-8-1",
358 "coding-category-iso-8-2",
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359 "coding-category-iso-7-else",
360 "coding-category-iso-8-else",
4ed46869 361 "coding-category-big5",
27901516 362 "coding-category-raw-text",
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363 "coding-category-binary"
364};
365
66cfb530 366/* Table of pointers to coding systems corresponding to each coding
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367 categories. */
368struct coding_system *coding_system_table[CODING_CATEGORY_IDX_MAX];
369
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370/* Table of coding category masks. Nth element is a mask for a coding
371 cateogry of which priority is Nth. */
372static
373int coding_priorities[CODING_CATEGORY_IDX_MAX];
374
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375/* Flag to tell if we look up translation table on character code
376 conversion. */
84fbb8a0 377Lisp_Object Venable_character_translation;
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378/* Standard translation table to look up on decoding (reading). */
379Lisp_Object Vstandard_translation_table_for_decode;
380/* Standard translation table to look up on encoding (writing). */
381Lisp_Object Vstandard_translation_table_for_encode;
84fbb8a0 382
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383Lisp_Object Qtranslation_table;
384Lisp_Object Qtranslation_table_id;
385Lisp_Object Qtranslation_table_for_decode;
386Lisp_Object Qtranslation_table_for_encode;
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387
388/* Alist of charsets vs revision number. */
389Lisp_Object Vcharset_revision_alist;
390
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391/* Default coding systems used for process I/O. */
392Lisp_Object Vdefault_process_coding_system;
393
4ed46869 394\f
0ef69138 395/*** 2. Emacs internal format (emacs-mule) handlers ***/
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396
397/* Emacs' internal format for encoding multiple character sets is a
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398 kind of multi-byte encoding, i.e. characters are encoded by
399 variable-length sequences of one-byte codes. ASCII characters
400 and control characters (e.g. `tab', `newline') are represented by
401 one-byte sequences which are their ASCII codes, in the range 0x00
402 through 0x7F. The other characters are represented by a sequence
403 of `base leading-code', optional `extended leading-code', and one
404 or two `position-code's. The length of the sequence is determined
405 by the base leading-code. Leading-code takes the range 0x80
406 through 0x9F, whereas extended leading-code and position-code take
407 the range 0xA0 through 0xFF. See `charset.h' for more details
408 about leading-code and position-code.
409
410 There's one exception to this rule. Special leading-code
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411 `leading-code-composition' denotes that the following several
412 characters should be composed into one character. Leading-codes of
413 components (except for ASCII) are added 0x20. An ASCII character
414 component is represented by a 2-byte sequence of `0xA0' and
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415 `ASCII-code + 0x80'. See also the comments in `charset.h' for the
416 details of composite character. Hence, we can summarize the code
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417 range as follows:
418
419 --- CODE RANGE of Emacs' internal format ---
420 (character set) (range)
421 ASCII 0x00 .. 0x7F
422 ELSE (1st byte) 0x80 .. 0x9F
423 (rest bytes) 0xA0 .. 0xFF
424 ---------------------------------------------
425
426 */
427
428enum emacs_code_class_type emacs_code_class[256];
429
430/* Go to the next statement only if *SRC is accessible and the code is
431 greater than 0xA0. */
432#define CHECK_CODE_RANGE_A0_FF \
433 do { \
434 if (src >= src_end) \
435 goto label_end_of_switch; \
436 else if (*src++ < 0xA0) \
437 return 0; \
438 } while (0)
439
440/* See the above "GENERAL NOTES on `detect_coding_XXX ()' functions".
441 Check if a text is encoded in Emacs' internal format. If it is,
d46c5b12 442 return CODING_CATEGORY_MASK_EMACS_MULE, else return 0. */
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443
444int
0ef69138 445detect_coding_emacs_mule (src, src_end)
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446 unsigned char *src, *src_end;
447{
448 unsigned char c;
449 int composing = 0;
450
451 while (src < src_end)
452 {
453 c = *src++;
454
455 if (composing)
456 {
457 if (c < 0xA0)
458 composing = 0;
459 else
460 c -= 0x20;
461 }
462
463 switch (emacs_code_class[c])
464 {
465 case EMACS_ascii_code:
466 case EMACS_linefeed_code:
467 break;
468
469 case EMACS_control_code:
470 if (c == ISO_CODE_ESC || c == ISO_CODE_SI || c == ISO_CODE_SO)
471 return 0;
472 break;
473
474 case EMACS_invalid_code:
475 return 0;
476
477 case EMACS_leading_code_composition: /* c == 0x80 */
478 if (composing)
479 CHECK_CODE_RANGE_A0_FF;
480 else
481 composing = 1;
482 break;
483
484 case EMACS_leading_code_4:
485 CHECK_CODE_RANGE_A0_FF;
486 /* fall down to check it two more times ... */
487
488 case EMACS_leading_code_3:
489 CHECK_CODE_RANGE_A0_FF;
490 /* fall down to check it one more time ... */
491
492 case EMACS_leading_code_2:
493 CHECK_CODE_RANGE_A0_FF;
494 break;
495
496 default:
497 label_end_of_switch:
498 break;
499 }
500 }
0ef69138 501 return CODING_CATEGORY_MASK_EMACS_MULE;
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502}
503
504\f
505/*** 3. ISO2022 handlers ***/
506
507/* The following note describes the coding system ISO2022 briefly.
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508 Since the intention of this note is to help in understanding of
509 the programs in this file, some parts are NOT ACCURATE or OVERLY
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510 SIMPLIFIED. For the thorough understanding, please refer to the
511 original document of ISO2022.
512
513 ISO2022 provides many mechanisms to encode several character sets
f4dee582 514 in 7-bit and 8-bit environment. If one chooses 7-bite environment,
4ed46869 515 all text is encoded by codes of less than 128. This may make the
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516 encoded text a little bit longer, but the text gets more stability
517 to pass through several gateways (some of them strip off the MSB).
4ed46869 518
f4dee582 519 There are two kinds of character set: control character set and
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520 graphic character set. The former contains control characters such
521 as `newline' and `escape' to provide control functions (control
f4dee582 522 functions are provided also by escape sequences). The latter
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523 contains graphic characters such as ' A' and '-'. Emacs recognizes
524 two control character sets and many graphic character sets.
525
526 Graphic character sets are classified into one of the following
527 four classes, DIMENSION1_CHARS94, DIMENSION1_CHARS96,
528 DIMENSION2_CHARS94, DIMENSION2_CHARS96 according to the number of
529 bytes (DIMENSION) and the number of characters in one dimension
530 (CHARS) of the set. In addition, each character set is assigned an
531 identification tag (called "final character" and denoted as <F>
532 here after) which is unique in each class. <F> of each character
533 set is decided by ECMA(*) when it is registered in ISO. Code range
534 of <F> is 0x30..0x7F (0x30..0x3F are for private use only).
535
536 Note (*): ECMA = European Computer Manufacturers Association
537
538 Here are examples of graphic character set [NAME(<F>)]:
539 o DIMENSION1_CHARS94 -- ASCII('B'), right-half-of-JISX0201('I'), ...
540 o DIMENSION1_CHARS96 -- right-half-of-ISO8859-1('A'), ...
541 o DIMENSION2_CHARS94 -- GB2312('A'), JISX0208('B'), ...
542 o DIMENSION2_CHARS96 -- none for the moment
543
544 A code area (1byte=8bits) is divided into 4 areas, C0, GL, C1, and GR.
545 C0 [0x00..0x1F] -- control character plane 0
546 GL [0x20..0x7F] -- graphic character plane 0
547 C1 [0x80..0x9F] -- control character plane 1
548 GR [0xA0..0xFF] -- graphic character plane 1
549
550 A control character set is directly designated and invoked to C0 or
551 C1 by an escape sequence. The most common case is that ISO646's
552 control character set is designated/invoked to C0 and ISO6429's
553 control character set is designated/invoked to C1, and usually
554 these designations/invocations are omitted in a coded text. With
555 7-bit environment, only C0 can be used, and a control character for
556 C1 is encoded by an appropriate escape sequence to fit in the
557 environment. All control characters for C1 are defined the
558 corresponding escape sequences.
559
560 A graphic character set is at first designated to one of four
561 graphic registers (G0 through G3), then these graphic registers are
562 invoked to GL or GR. These designations and invocations can be
563 done independently. The most common case is that G0 is invoked to
564 GL, G1 is invoked to GR, and ASCII is designated to G0, and usually
565 these invocations and designations are omitted in a coded text.
566 With 7-bit environment, only GL can be used.
567
568 When a graphic character set of CHARS94 is invoked to GL, code 0x20
569 and 0x7F of GL area work as control characters SPACE and DEL
570 respectively, and code 0xA0 and 0xFF of GR area should not be used.
571
572 There are two ways of invocation: locking-shift and single-shift.
573 With locking-shift, the invocation lasts until the next different
574 invocation, whereas with single-shift, the invocation works only
575 for the following character and doesn't affect locking-shift.
576 Invocations are done by the following control characters or escape
577 sequences.
578
579 ----------------------------------------------------------------------
580 function control char escape sequence description
581 ----------------------------------------------------------------------
582 SI (shift-in) 0x0F none invoke G0 to GL
10bff6f1 583 SO (shift-out) 0x0E none invoke G1 to GL
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584 LS2 (locking-shift-2) none ESC 'n' invoke G2 into GL
585 LS3 (locking-shift-3) none ESC 'o' invoke G3 into GL
586 SS2 (single-shift-2) 0x8E ESC 'N' invoke G2 into GL
587 SS3 (single-shift-3) 0x8F ESC 'O' invoke G3 into GL
588 ----------------------------------------------------------------------
589 The first four are for locking-shift. Control characters for these
590 functions are defined by macros ISO_CODE_XXX in `coding.h'.
591
592 Designations are done by the following escape sequences.
593 ----------------------------------------------------------------------
594 escape sequence description
595 ----------------------------------------------------------------------
596 ESC '(' <F> designate DIMENSION1_CHARS94<F> to G0
597 ESC ')' <F> designate DIMENSION1_CHARS94<F> to G1
598 ESC '*' <F> designate DIMENSION1_CHARS94<F> to G2
599 ESC '+' <F> designate DIMENSION1_CHARS94<F> to G3
600 ESC ',' <F> designate DIMENSION1_CHARS96<F> to G0 (*)
601 ESC '-' <F> designate DIMENSION1_CHARS96<F> to G1
602 ESC '.' <F> designate DIMENSION1_CHARS96<F> to G2
603 ESC '/' <F> designate DIMENSION1_CHARS96<F> to G3
604 ESC '$' '(' <F> designate DIMENSION2_CHARS94<F> to G0 (**)
605 ESC '$' ')' <F> designate DIMENSION2_CHARS94<F> to G1
606 ESC '$' '*' <F> designate DIMENSION2_CHARS94<F> to G2
607 ESC '$' '+' <F> designate DIMENSION2_CHARS94<F> to G3
608 ESC '$' ',' <F> designate DIMENSION2_CHARS96<F> to G0 (*)
609 ESC '$' '-' <F> designate DIMENSION2_CHARS96<F> to G1
610 ESC '$' '.' <F> designate DIMENSION2_CHARS96<F> to G2
611 ESC '$' '/' <F> designate DIMENSION2_CHARS96<F> to G3
612 ----------------------------------------------------------------------
613
614 In this list, "DIMENSION1_CHARS94<F>" means a graphic character set
615 of dimension 1, chars 94, and final character <F>, and etc.
616
617 Note (*): Although these designations are not allowed in ISO2022,
618 Emacs accepts them on decoding, and produces them on encoding
619 CHARS96 character set in a coding system which is characterized as
620 7-bit environment, non-locking-shift, and non-single-shift.
621
622 Note (**): If <F> is '@', 'A', or 'B', the intermediate character
623 '(' can be omitted. We call this as "short-form" here after.
624
625 Now you may notice that there are a lot of ways for encoding the
f4dee582 626 same multilingual text in ISO2022. Actually, there exists many
4ed46869
KH
627 coding systems such as Compound Text (used in X's inter client
628 communication, ISO-2022-JP (used in Japanese Internet), ISO-2022-KR
629 (used in Korean Internet), EUC (Extended UNIX Code, used in Asian
630 localized platforms), and all of these are variants of ISO2022.
631
632 In addition to the above, Emacs handles two more kinds of escape
633 sequences: ISO6429's direction specification and Emacs' private
634 sequence for specifying character composition.
635
636 ISO6429's direction specification takes the following format:
637 o CSI ']' -- end of the current direction
638 o CSI '0' ']' -- end of the current direction
639 o CSI '1' ']' -- start of left-to-right text
640 o CSI '2' ']' -- start of right-to-left text
641 The control character CSI (0x9B: control sequence introducer) is
642 abbreviated to the escape sequence ESC '[' in 7-bit environment.
643
644 Character composition specification takes the following format:
645 o ESC '0' -- start character composition
646 o ESC '1' -- end character composition
647 Since these are not standard escape sequences of any ISO, the use
648 of them for these meaning is restricted to Emacs only. */
649
650enum iso_code_class_type iso_code_class[256];
651
704c5781
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652#define CHARSET_OK(idx, charset) \
653 (coding_system_table[idx]->safe_charsets[charset] \
654 || (CODING_SPEC_ISO_REQUESTED_DESIGNATION \
655 (coding_system_table[idx], charset) \
656 != CODING_SPEC_ISO_NO_REQUESTED_DESIGNATION))
d46c5b12
KH
657
658#define SHIFT_OUT_OK(idx) \
659 (CODING_SPEC_ISO_INITIAL_DESIGNATION (coding_system_table[idx], 1) >= 0)
660
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661/* See the above "GENERAL NOTES on `detect_coding_XXX ()' functions".
662 Check if a text is encoded in ISO2022. If it is, returns an
663 integer in which appropriate flag bits any of:
664 CODING_CATEGORY_MASK_ISO_7
d46c5b12 665 CODING_CATEGORY_MASK_ISO_7_TIGHT
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666 CODING_CATEGORY_MASK_ISO_8_1
667 CODING_CATEGORY_MASK_ISO_8_2
7717c392
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668 CODING_CATEGORY_MASK_ISO_7_ELSE
669 CODING_CATEGORY_MASK_ISO_8_ELSE
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670 are set. If a code which should never appear in ISO2022 is found,
671 returns 0. */
672
673int
674detect_coding_iso2022 (src, src_end)
675 unsigned char *src, *src_end;
676{
d46c5b12
KH
677 int mask = CODING_CATEGORY_MASK_ISO;
678 int mask_found = 0;
679 int reg[4], shift_out = 0;
680 int c, c1, i, charset;
3f003981 681
d46c5b12 682 reg[0] = CHARSET_ASCII, reg[1] = reg[2] = reg[3] = -1;
3f003981 683 while (mask && src < src_end)
4ed46869
KH
684 {
685 c = *src++;
686 switch (c)
687 {
688 case ISO_CODE_ESC:
e0e989f6 689 if (src >= src_end)
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690 break;
691 c = *src++;
d46c5b12 692 if (c >= '(' && c <= '/')
4ed46869 693 {
bf9cdd4e
KH
694 /* Designation sequence for a charset of dimension 1. */
695 if (src >= src_end)
696 break;
d46c5b12
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697 c1 = *src++;
698 if (c1 < ' ' || c1 >= 0x80
699 || (charset = iso_charset_table[0][c >= ','][c1]) < 0)
700 /* Invalid designation sequence. Just ignore. */
701 break;
702 reg[(c - '(') % 4] = charset;
bf9cdd4e
KH
703 }
704 else if (c == '$')
705 {
706 /* Designation sequence for a charset of dimension 2. */
707 if (src >= src_end)
708 break;
709 c = *src++;
710 if (c >= '@' && c <= 'B')
711 /* Designation for JISX0208.1978, GB2312, or JISX0208. */
d46c5b12 712 reg[0] = charset = iso_charset_table[1][0][c];
bf9cdd4e 713 else if (c >= '(' && c <= '/')
bcf26d6a 714 {
bf9cdd4e
KH
715 if (src >= src_end)
716 break;
d46c5b12
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717 c1 = *src++;
718 if (c1 < ' ' || c1 >= 0x80
719 || (charset = iso_charset_table[1][c >= ','][c1]) < 0)
720 /* Invalid designation sequence. Just ignore. */
721 break;
722 reg[(c - '(') % 4] = charset;
bcf26d6a 723 }
bf9cdd4e 724 else
d46c5b12
KH
725 /* Invalid designation sequence. Just ignore. */
726 break;
727 }
728 else if (c == 'N' || c == 'n')
729 {
730 if (shift_out == 0
731 && (reg[1] >= 0
732 || SHIFT_OUT_OK (CODING_CATEGORY_IDX_ISO_7_ELSE)
733 || SHIFT_OUT_OK (CODING_CATEGORY_IDX_ISO_8_ELSE)))
734 {
735 /* Locking shift out. */
736 mask &= ~CODING_CATEGORY_MASK_ISO_7BIT;
737 mask_found |= CODING_CATEGORY_MASK_ISO_SHIFT;
738 shift_out = 1;
739 }
740 break;
741 }
742 else if (c == 'O' || c == 'o')
743 {
744 if (shift_out == 1)
745 {
746 /* Locking shift in. */
747 mask &= ~CODING_CATEGORY_MASK_ISO_7BIT;
748 mask_found |= CODING_CATEGORY_MASK_ISO_SHIFT;
749 shift_out = 0;
750 }
751 break;
4ed46869 752 }
bf9cdd4e 753 else if (c == '0' || c == '1' || c == '2')
d46c5b12
KH
754 /* Start/end composition. Just ignore. */
755 break;
bf9cdd4e 756 else
d46c5b12
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757 /* Invalid escape sequence. Just ignore. */
758 break;
759
760 /* We found a valid designation sequence for CHARSET. */
761 mask &= ~CODING_CATEGORY_MASK_ISO_8BIT;
762 if (CHARSET_OK (CODING_CATEGORY_IDX_ISO_7, charset))
763 mask_found |= CODING_CATEGORY_MASK_ISO_7;
764 else
765 mask &= ~CODING_CATEGORY_MASK_ISO_7;
766 if (CHARSET_OK (CODING_CATEGORY_IDX_ISO_7_TIGHT, charset))
767 mask_found |= CODING_CATEGORY_MASK_ISO_7_TIGHT;
768 else
769 mask &= ~CODING_CATEGORY_MASK_ISO_7_TIGHT;
770 if (! CHARSET_OK (CODING_CATEGORY_IDX_ISO_7_ELSE, charset))
771 mask &= ~CODING_CATEGORY_MASK_ISO_7_ELSE;
772 if (! CHARSET_OK (CODING_CATEGORY_IDX_ISO_8_ELSE, charset))
773 mask &= ~CODING_CATEGORY_MASK_ISO_8_ELSE;
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774 break;
775
4ed46869 776 case ISO_CODE_SO:
d46c5b12
KH
777 if (shift_out == 0
778 && (reg[1] >= 0
779 || SHIFT_OUT_OK (CODING_CATEGORY_IDX_ISO_7_ELSE)
780 || SHIFT_OUT_OK (CODING_CATEGORY_IDX_ISO_8_ELSE)))
781 {
782 /* Locking shift out. */
783 mask &= ~CODING_CATEGORY_MASK_ISO_7BIT;
784 mask_found |= CODING_CATEGORY_MASK_ISO_SHIFT;
785 }
e0e989f6
KH
786 break;
787
d46c5b12
KH
788 case ISO_CODE_SI:
789 if (shift_out == 1)
790 {
791 /* Locking shift in. */
792 mask &= ~CODING_CATEGORY_MASK_ISO_7BIT;
793 mask_found |= CODING_CATEGORY_MASK_ISO_SHIFT;
794 }
795 break;
796
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KH
797 case ISO_CODE_CSI:
798 case ISO_CODE_SS2:
799 case ISO_CODE_SS3:
3f003981
KH
800 {
801 int newmask = CODING_CATEGORY_MASK_ISO_8_ELSE;
802
70c22245
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803 if (c != ISO_CODE_CSI)
804 {
d46c5b12
KH
805 if (coding_system_table[CODING_CATEGORY_IDX_ISO_8_1]->flags
806 & CODING_FLAG_ISO_SINGLE_SHIFT)
70c22245 807 newmask |= CODING_CATEGORY_MASK_ISO_8_1;
d46c5b12
KH
808 if (coding_system_table[CODING_CATEGORY_IDX_ISO_8_2]->flags
809 & CODING_FLAG_ISO_SINGLE_SHIFT)
70c22245
KH
810 newmask |= CODING_CATEGORY_MASK_ISO_8_2;
811 }
3f003981
KH
812 if (VECTORP (Vlatin_extra_code_table)
813 && !NILP (XVECTOR (Vlatin_extra_code_table)->contents[c]))
814 {
d46c5b12
KH
815 if (coding_system_table[CODING_CATEGORY_IDX_ISO_8_1]->flags
816 & CODING_FLAG_ISO_LATIN_EXTRA)
3f003981 817 newmask |= CODING_CATEGORY_MASK_ISO_8_1;
d46c5b12
KH
818 if (coding_system_table[CODING_CATEGORY_IDX_ISO_8_2]->flags
819 & CODING_FLAG_ISO_LATIN_EXTRA)
3f003981
KH
820 newmask |= CODING_CATEGORY_MASK_ISO_8_2;
821 }
822 mask &= newmask;
d46c5b12 823 mask_found |= newmask;
3f003981
KH
824 }
825 break;
4ed46869
KH
826
827 default:
828 if (c < 0x80)
829 break;
830 else if (c < 0xA0)
c4825358 831 {
3f003981
KH
832 if (VECTORP (Vlatin_extra_code_table)
833 && !NILP (XVECTOR (Vlatin_extra_code_table)->contents[c]))
c4825358 834 {
3f003981
KH
835 int newmask = 0;
836
d46c5b12
KH
837 if (coding_system_table[CODING_CATEGORY_IDX_ISO_8_1]->flags
838 & CODING_FLAG_ISO_LATIN_EXTRA)
3f003981 839 newmask |= CODING_CATEGORY_MASK_ISO_8_1;
d46c5b12
KH
840 if (coding_system_table[CODING_CATEGORY_IDX_ISO_8_2]->flags
841 & CODING_FLAG_ISO_LATIN_EXTRA)
3f003981
KH
842 newmask |= CODING_CATEGORY_MASK_ISO_8_2;
843 mask &= newmask;
d46c5b12 844 mask_found |= newmask;
c4825358 845 }
3f003981
KH
846 else
847 return 0;
c4825358 848 }
4ed46869
KH
849 else
850 {
7717c392 851 unsigned char *src_begin = src;
4ed46869 852
d46c5b12 853 mask &= ~(CODING_CATEGORY_MASK_ISO_7BIT
7717c392 854 | CODING_CATEGORY_MASK_ISO_7_ELSE);
d46c5b12 855 mask_found |= CODING_CATEGORY_MASK_ISO_8_1;
e0e989f6 856 while (src < src_end && *src >= 0xA0)
7717c392
KH
857 src++;
858 if ((src - src_begin - 1) & 1 && src < src_end)
4ed46869 859 mask &= ~CODING_CATEGORY_MASK_ISO_8_2;
d46c5b12
KH
860 else
861 mask_found |= CODING_CATEGORY_MASK_ISO_8_2;
4ed46869
KH
862 }
863 break;
864 }
865 }
866
d46c5b12 867 return (mask & mask_found);
4ed46869
KH
868}
869
870/* Decode a character of which charset is CHARSET and the 1st position
bdd9fb48 871 code is C1. If dimension of CHARSET is 2, the 2nd position code is
4ed46869
KH
872 fetched from SRC and set to C2. If CHARSET is negative, it means
873 that we are decoding ill formed text, and what we can do is just to
874 read C1 as is. */
875
bdd9fb48
KH
876#define DECODE_ISO_CHARACTER(charset, c1) \
877 do { \
878 int c_alt, charset_alt = (charset); \
879 if (COMPOSING_HEAD_P (coding->composing)) \
880 { \
881 *dst++ = LEADING_CODE_COMPOSITION; \
882 if (COMPOSING_WITH_RULE_P (coding->composing)) \
883 /* To tell composition rules are embeded. */ \
884 *dst++ = 0xFF; \
885 coding->composing += 2; \
886 } \
85bbb134 887 if (charset_alt >= 0) \
bdd9fb48 888 { \
85bbb134 889 if (CHARSET_DIMENSION (charset_alt) == 2) \
70c22245
KH
890 { \
891 ONE_MORE_BYTE (c2); \
892 if (iso_code_class[(c2) & 0x7F] != ISO_0x20_or_0x7F \
893 && iso_code_class[(c2) & 0x7F] != ISO_graphic_plane_0) \
894 { \
895 src--; \
85bbb134 896 charset_alt = CHARSET_ASCII; \
70c22245
KH
897 } \
898 } \
84fbb8a0
KH
899 if (!NILP (translation_table) \
900 && ((c_alt = translate_char (translation_table, \
85bbb134 901 -1, charset_alt, c1, c2)) >= 0)) \
bdd9fb48
KH
902 SPLIT_CHAR (c_alt, charset_alt, c1, c2); \
903 } \
904 if (charset_alt == CHARSET_ASCII || charset_alt < 0) \
905 DECODE_CHARACTER_ASCII (c1); \
906 else if (CHARSET_DIMENSION (charset_alt) == 1) \
907 DECODE_CHARACTER_DIMENSION1 (charset_alt, c1); \
908 else \
909 DECODE_CHARACTER_DIMENSION2 (charset_alt, c1, c2); \
910 if (COMPOSING_WITH_RULE_P (coding->composing)) \
911 /* To tell a composition rule follows. */ \
912 coding->composing = COMPOSING_WITH_RULE_RULE; \
4ed46869
KH
913 } while (0)
914
915/* Set designation state into CODING. */
d46c5b12
KH
916#define DECODE_DESIGNATION(reg, dimension, chars, final_char) \
917 do { \
918 int charset = ISO_CHARSET_TABLE (make_number (dimension), \
919 make_number (chars), \
920 make_number (final_char)); \
921 if (charset >= 0 \
704c5781
KH
922 && (CODING_SPEC_ISO_REQUESTED_DESIGNATION (coding, charset) == reg \
923 || coding->safe_charsets[charset])) \
d46c5b12
KH
924 { \
925 if (coding->spec.iso2022.last_invalid_designation_register == 0 \
926 && reg == 0 \
927 && charset == CHARSET_ASCII) \
928 { \
929 /* We should insert this designation sequence as is so \
930 that it is surely written back to a file. */ \
931 coding->spec.iso2022.last_invalid_designation_register = -1; \
932 goto label_invalid_code; \
933 } \
934 coding->spec.iso2022.last_invalid_designation_register = -1; \
935 if ((coding->mode & CODING_MODE_DIRECTION) \
936 && CHARSET_REVERSE_CHARSET (charset) >= 0) \
937 charset = CHARSET_REVERSE_CHARSET (charset); \
938 CODING_SPEC_ISO_DESIGNATION (coding, reg) = charset; \
939 } \
940 else \
941 { \
942 coding->spec.iso2022.last_invalid_designation_register = reg; \
943 goto label_invalid_code; \
944 } \
4ed46869
KH
945 } while (0)
946
d46c5b12
KH
947/* Check if the current composing sequence contains only valid codes.
948 If the composing sequence doesn't end before SRC_END, return -1.
949 Else, if it contains only valid codes, return 0.
950 Else return the length of the composing sequence. */
951
84fbb8a0
KH
952int
953check_composing_code (coding, src, src_end)
d46c5b12
KH
954 struct coding_system *coding;
955 unsigned char *src, *src_end;
956{
957 unsigned char *src_start = src;
958 int invalid_code_found = 0;
959 int charset, c, c1, dim;
960
961 while (src < src_end)
962 {
963 if (*src++ != ISO_CODE_ESC) continue;
964 if (src >= src_end) break;
965 if ((c = *src++) == '1') /* end of compsition */
966 return (invalid_code_found ? src - src_start : 0);
967 if (src + 2 >= src_end) break;
968 if (!coding->flags & CODING_FLAG_ISO_DESIGNATION)
969 invalid_code_found = 1;
970 else
971 {
972 dim = 0;
973 if (c == '$')
974 {
975 dim = 1;
976 c = (*src >= '@' && *src <= 'B') ? '(' : *src++;
977 }
978 if (c >= '(' && c <= '/')
979 {
980 c1 = *src++;
981 if ((c1 < ' ' || c1 >= 0x80)
982 || (charset = iso_charset_table[dim][c >= ','][c1]) < 0
704c5781 983 || ! coding->safe_charsets[charset]
d46c5b12
KH
984 || (CODING_SPEC_ISO_REQUESTED_DESIGNATION (coding, charset)
985 == CODING_SPEC_ISO_NO_REQUESTED_DESIGNATION))
986 invalid_code_found = 1;
987 }
988 else
989 invalid_code_found = 1;
990 }
991 }
84fbb8a0
KH
992 return (invalid_code_found
993 ? src - src_start
994 : (coding->mode & CODING_MODE_LAST_BLOCK ? 0 : -1));
d46c5b12
KH
995}
996
4ed46869
KH
997/* See the above "GENERAL NOTES on `decode_coding_XXX ()' functions". */
998
999int
d46c5b12 1000decode_coding_iso2022 (coding, source, destination, src_bytes, dst_bytes)
4ed46869
KH
1001 struct coding_system *coding;
1002 unsigned char *source, *destination;
1003 int src_bytes, dst_bytes;
4ed46869
KH
1004{
1005 unsigned char *src = source;
1006 unsigned char *src_end = source + src_bytes;
1007 unsigned char *dst = destination;
1008 unsigned char *dst_end = destination + dst_bytes;
1009 /* Since the maximum bytes produced by each loop is 7, we subtract 6
1010 from DST_END to assure that overflow checking is necessary only
1011 at the head of loop. */
1012 unsigned char *adjusted_dst_end = dst_end - 6;
1013 int charset;
1014 /* Charsets invoked to graphic plane 0 and 1 respectively. */
1015 int charset0 = CODING_SPEC_ISO_PLANE_CHARSET (coding, 0);
1016 int charset1 = CODING_SPEC_ISO_PLANE_CHARSET (coding, 1);
84fbb8a0 1017 Lisp_Object translation_table
f967223b 1018 = coding->translation_table_for_decode;
d46c5b12 1019 int result = CODING_FINISH_NORMAL;
bdd9fb48 1020
84fbb8a0 1021 if (!NILP (Venable_character_translation) && NILP (translation_table))
f967223b 1022 translation_table = Vstandard_translation_table_for_decode;
4ed46869 1023
d46c5b12 1024 coding->produced_char = 0;
fb88bf2d 1025 coding->fake_multibyte = 0;
d46c5b12
KH
1026 while (src < src_end && (dst_bytes
1027 ? (dst < adjusted_dst_end)
1028 : (dst < src - 6)))
4ed46869
KH
1029 {
1030 /* SRC_BASE remembers the start position in source in each loop.
1031 The loop will be exited when there's not enough source text
1032 to analyze long escape sequence or 2-byte code (within macros
1033 ONE_MORE_BYTE or TWO_MORE_BYTES). In that case, SRC is reset
1034 to SRC_BASE before exiting. */
1035 unsigned char *src_base = src;
bdd9fb48 1036 int c1 = *src++, c2;
4ed46869
KH
1037
1038 switch (iso_code_class [c1])
1039 {
1040 case ISO_0x20_or_0x7F:
1041 if (!coding->composing
1042 && (charset0 < 0 || CHARSET_CHARS (charset0) == 94))
1043 {
1044 /* This is SPACE or DEL. */
1045 *dst++ = c1;
d46c5b12 1046 coding->produced_char++;
4ed46869
KH
1047 break;
1048 }
1049 /* This is a graphic character, we fall down ... */
1050
1051 case ISO_graphic_plane_0:
1052 if (coding->composing == COMPOSING_WITH_RULE_RULE)
1053 {
1054 /* This is a composition rule. */
1055 *dst++ = c1 | 0x80;
1056 coding->composing = COMPOSING_WITH_RULE_TAIL;
1057 }
1058 else
1059 DECODE_ISO_CHARACTER (charset0, c1);
1060 break;
1061
1062 case ISO_0xA0_or_0xFF:
d46c5b12
KH
1063 if (charset1 < 0 || CHARSET_CHARS (charset1) == 94
1064 || coding->flags & CODING_FLAG_ISO_SEVEN_BITS)
fb88bf2d 1065 goto label_invalid_code;
4ed46869
KH
1066 /* This is a graphic character, we fall down ... */
1067
1068 case ISO_graphic_plane_1:
d46c5b12 1069 if (coding->flags & CODING_FLAG_ISO_SEVEN_BITS)
fb88bf2d 1070 goto label_invalid_code;
d46c5b12
KH
1071 else
1072 DECODE_ISO_CHARACTER (charset1, c1);
4ed46869
KH
1073 break;
1074
1075 case ISO_control_code:
1076 /* All ISO2022 control characters in this class have the
1077 same representation in Emacs internal format. */
d46c5b12
KH
1078 if (c1 == '\n'
1079 && (coding->mode & CODING_MODE_INHIBIT_INCONSISTENT_EOL)
1080 && (coding->eol_type == CODING_EOL_CR
1081 || coding->eol_type == CODING_EOL_CRLF))
1082 {
1083 result = CODING_FINISH_INCONSISTENT_EOL;
1084 goto label_end_of_loop_2;
1085 }
4ed46869 1086 *dst++ = c1;
d46c5b12 1087 coding->produced_char++;
4ed46869
KH
1088 break;
1089
1090 case ISO_carriage_return:
1091 if (coding->eol_type == CODING_EOL_CR)
d46c5b12 1092 *dst++ = '\n';
4ed46869
KH
1093 else if (coding->eol_type == CODING_EOL_CRLF)
1094 {
1095 ONE_MORE_BYTE (c1);
1096 if (c1 == ISO_CODE_LF)
1097 *dst++ = '\n';
1098 else
1099 {
d46c5b12
KH
1100 if (coding->mode & CODING_MODE_INHIBIT_INCONSISTENT_EOL)
1101 {
1102 result = CODING_FINISH_INCONSISTENT_EOL;
1103 goto label_end_of_loop_2;
1104 }
4ed46869 1105 src--;
d46c5b12 1106 *dst++ = '\r';
4ed46869
KH
1107 }
1108 }
1109 else
d46c5b12
KH
1110 *dst++ = c1;
1111 coding->produced_char++;
4ed46869
KH
1112 break;
1113
1114 case ISO_shift_out:
d46c5b12
KH
1115 if (! (coding->flags & CODING_FLAG_ISO_LOCKING_SHIFT)
1116 || CODING_SPEC_ISO_DESIGNATION (coding, 1) < 0)
1117 goto label_invalid_code;
4ed46869
KH
1118 CODING_SPEC_ISO_INVOCATION (coding, 0) = 1;
1119 charset0 = CODING_SPEC_ISO_PLANE_CHARSET (coding, 0);
1120 break;
1121
1122 case ISO_shift_in:
d46c5b12
KH
1123 if (! (coding->flags & CODING_FLAG_ISO_LOCKING_SHIFT))
1124 goto label_invalid_code;
4ed46869
KH
1125 CODING_SPEC_ISO_INVOCATION (coding, 0) = 0;
1126 charset0 = CODING_SPEC_ISO_PLANE_CHARSET (coding, 0);
1127 break;
1128
1129 case ISO_single_shift_2_7:
1130 case ISO_single_shift_2:
d46c5b12
KH
1131 if (! (coding->flags & CODING_FLAG_ISO_SINGLE_SHIFT))
1132 goto label_invalid_code;
4ed46869
KH
1133 /* SS2 is handled as an escape sequence of ESC 'N' */
1134 c1 = 'N';
1135 goto label_escape_sequence;
1136
1137 case ISO_single_shift_3:
d46c5b12
KH
1138 if (! (coding->flags & CODING_FLAG_ISO_SINGLE_SHIFT))
1139 goto label_invalid_code;
4ed46869
KH
1140 /* SS2 is handled as an escape sequence of ESC 'O' */
1141 c1 = 'O';
1142 goto label_escape_sequence;
1143
1144 case ISO_control_sequence_introducer:
1145 /* CSI is handled as an escape sequence of ESC '[' ... */
1146 c1 = '[';
1147 goto label_escape_sequence;
1148
1149 case ISO_escape:
1150 ONE_MORE_BYTE (c1);
1151 label_escape_sequence:
1152 /* Escape sequences handled by Emacs are invocation,
1153 designation, direction specification, and character
1154 composition specification. */
1155 switch (c1)
1156 {
1157 case '&': /* revision of following character set */
1158 ONE_MORE_BYTE (c1);
1159 if (!(c1 >= '@' && c1 <= '~'))
d46c5b12 1160 goto label_invalid_code;
4ed46869
KH
1161 ONE_MORE_BYTE (c1);
1162 if (c1 != ISO_CODE_ESC)
d46c5b12 1163 goto label_invalid_code;
4ed46869
KH
1164 ONE_MORE_BYTE (c1);
1165 goto label_escape_sequence;
1166
1167 case '$': /* designation of 2-byte character set */
d46c5b12
KH
1168 if (! (coding->flags & CODING_FLAG_ISO_DESIGNATION))
1169 goto label_invalid_code;
4ed46869
KH
1170 ONE_MORE_BYTE (c1);
1171 if (c1 >= '@' && c1 <= 'B')
1172 { /* designation of JISX0208.1978, GB2312.1980,
1173 or JISX0208.1980 */
1174 DECODE_DESIGNATION (0, 2, 94, c1);
1175 }
1176 else if (c1 >= 0x28 && c1 <= 0x2B)
1177 { /* designation of DIMENSION2_CHARS94 character set */
1178 ONE_MORE_BYTE (c2);
1179 DECODE_DESIGNATION (c1 - 0x28, 2, 94, c2);
1180 }
1181 else if (c1 >= 0x2C && c1 <= 0x2F)
1182 { /* designation of DIMENSION2_CHARS96 character set */
1183 ONE_MORE_BYTE (c2);
1184 DECODE_DESIGNATION (c1 - 0x2C, 2, 96, c2);
1185 }
1186 else
d46c5b12 1187 goto label_invalid_code;
4ed46869
KH
1188 break;
1189
1190 case 'n': /* invocation of locking-shift-2 */
d46c5b12
KH
1191 if (! (coding->flags & CODING_FLAG_ISO_LOCKING_SHIFT)
1192 || CODING_SPEC_ISO_DESIGNATION (coding, 2) < 0)
1193 goto label_invalid_code;
4ed46869 1194 CODING_SPEC_ISO_INVOCATION (coding, 0) = 2;
e0e989f6 1195 charset0 = CODING_SPEC_ISO_PLANE_CHARSET (coding, 0);
4ed46869
KH
1196 break;
1197
1198 case 'o': /* invocation of locking-shift-3 */
d46c5b12
KH
1199 if (! (coding->flags & CODING_FLAG_ISO_LOCKING_SHIFT)
1200 || CODING_SPEC_ISO_DESIGNATION (coding, 3) < 0)
1201 goto label_invalid_code;
4ed46869 1202 CODING_SPEC_ISO_INVOCATION (coding, 0) = 3;
e0e989f6 1203 charset0 = CODING_SPEC_ISO_PLANE_CHARSET (coding, 0);
4ed46869
KH
1204 break;
1205
1206 case 'N': /* invocation of single-shift-2 */
d46c5b12
KH
1207 if (! (coding->flags & CODING_FLAG_ISO_SINGLE_SHIFT)
1208 || CODING_SPEC_ISO_DESIGNATION (coding, 2) < 0)
1209 goto label_invalid_code;
4ed46869
KH
1210 ONE_MORE_BYTE (c1);
1211 charset = CODING_SPEC_ISO_DESIGNATION (coding, 2);
1212 DECODE_ISO_CHARACTER (charset, c1);
1213 break;
1214
1215 case 'O': /* invocation of single-shift-3 */
d46c5b12
KH
1216 if (! (coding->flags & CODING_FLAG_ISO_SINGLE_SHIFT)
1217 || CODING_SPEC_ISO_DESIGNATION (coding, 3) < 0)
1218 goto label_invalid_code;
4ed46869
KH
1219 ONE_MORE_BYTE (c1);
1220 charset = CODING_SPEC_ISO_DESIGNATION (coding, 3);
1221 DECODE_ISO_CHARACTER (charset, c1);
1222 break;
1223
d46c5b12
KH
1224 case '0': case '2': /* start composing */
1225 /* Before processing composing, we must be sure that all
1226 characters being composed are supported by CODING.
1227 If not, we must give up composing and insert the
1228 bunch of codes for composing as is without decoding. */
1229 {
1230 int result1;
1231
1232 result1 = check_composing_code (coding, src, src_end);
1233 if (result1 == 0)
84fbb8a0
KH
1234 {
1235 coding->composing = (c1 == '0'
1236 ? COMPOSING_NO_RULE_HEAD
1237 : COMPOSING_WITH_RULE_HEAD);
1238 coding->produced_char++;
1239 }
d46c5b12
KH
1240 else if (result1 > 0)
1241 {
1242 if (result1 + 2 < (dst_bytes ? dst_end : src_base) - dst)
1243 {
1244 bcopy (src_base, dst, result1 + 2);
1245 src += result1;
1246 dst += result1 + 2;
1247 coding->produced_char += result1 + 2;
1248 }
1249 else
1250 {
1251 result = CODING_FINISH_INSUFFICIENT_DST;
1252 goto label_end_of_loop_2;
1253 }
1254 }
1255 else
1256 goto label_end_of_loop;
1257 }
4ed46869
KH
1258 break;
1259
1260 case '1': /* end composing */
1261 coding->composing = COMPOSING_NO;
4ed46869
KH
1262 break;
1263
1264 case '[': /* specification of direction */
d46c5b12
KH
1265 if (coding->flags & CODING_FLAG_ISO_NO_DIRECTION)
1266 goto label_invalid_code;
4ed46869 1267 /* For the moment, nested direction is not supported.
d46c5b12
KH
1268 So, `coding->mode & CODING_MODE_DIRECTION' zero means
1269 left-to-right, and nozero means right-to-left. */
4ed46869
KH
1270 ONE_MORE_BYTE (c1);
1271 switch (c1)
1272 {
1273 case ']': /* end of the current direction */
d46c5b12 1274 coding->mode &= ~CODING_MODE_DIRECTION;
4ed46869
KH
1275
1276 case '0': /* end of the current direction */
1277 case '1': /* start of left-to-right direction */
1278 ONE_MORE_BYTE (c1);
1279 if (c1 == ']')
d46c5b12 1280 coding->mode &= ~CODING_MODE_DIRECTION;
4ed46869 1281 else
d46c5b12 1282 goto label_invalid_code;
4ed46869
KH
1283 break;
1284
1285 case '2': /* start of right-to-left direction */
1286 ONE_MORE_BYTE (c1);
1287 if (c1 == ']')
d46c5b12 1288 coding->mode |= CODING_MODE_DIRECTION;
4ed46869 1289 else
d46c5b12 1290 goto label_invalid_code;
4ed46869
KH
1291 break;
1292
1293 default:
d46c5b12 1294 goto label_invalid_code;
4ed46869
KH
1295 }
1296 break;
1297
1298 default:
d46c5b12
KH
1299 if (! (coding->flags & CODING_FLAG_ISO_DESIGNATION))
1300 goto label_invalid_code;
4ed46869
KH
1301 if (c1 >= 0x28 && c1 <= 0x2B)
1302 { /* designation of DIMENSION1_CHARS94 character set */
1303 ONE_MORE_BYTE (c2);
1304 DECODE_DESIGNATION (c1 - 0x28, 1, 94, c2);
1305 }
1306 else if (c1 >= 0x2C && c1 <= 0x2F)
1307 { /* designation of DIMENSION1_CHARS96 character set */
1308 ONE_MORE_BYTE (c2);
1309 DECODE_DESIGNATION (c1 - 0x2C, 1, 96, c2);
1310 }
1311 else
1312 {
d46c5b12 1313 goto label_invalid_code;
4ed46869
KH
1314 }
1315 }
1316 /* We must update these variables now. */
1317 charset0 = CODING_SPEC_ISO_PLANE_CHARSET (coding, 0);
1318 charset1 = CODING_SPEC_ISO_PLANE_CHARSET (coding, 1);
1319 break;
1320
d46c5b12 1321 label_invalid_code:
d46c5b12
KH
1322 while (src_base < src)
1323 *dst++ = *src_base++;
fb88bf2d 1324 coding->fake_multibyte = 1;
4ed46869
KH
1325 }
1326 continue;
1327
1328 label_end_of_loop:
d46c5b12
KH
1329 result = CODING_FINISH_INSUFFICIENT_SRC;
1330 label_end_of_loop_2:
4ed46869
KH
1331 src = src_base;
1332 break;
1333 }
1334
fb88bf2d 1335 if (src < src_end)
4ed46869 1336 {
fb88bf2d
KH
1337 if (result == CODING_FINISH_NORMAL)
1338 result = CODING_FINISH_INSUFFICIENT_DST;
1339 else if (result != CODING_FINISH_INCONSISTENT_EOL
1340 && coding->mode & CODING_MODE_LAST_BLOCK)
1341 {
1342 /* This is the last block of the text to be decoded. We had
1343 better just flush out all remaining codes in the text
1344 although they are not valid characters. */
1345 src_bytes = src_end - src;
1346 if (dst_bytes && (dst_end - dst < src_bytes))
1347 src_bytes = dst_end - dst;
1348 bcopy (src, dst, src_bytes);
1349 dst += src_bytes;
1350 src += src_bytes;
1351 coding->fake_multibyte = 1;
1352 }
4ed46869 1353 }
fb88bf2d 1354
d46c5b12
KH
1355 coding->consumed = coding->consumed_char = src - source;
1356 coding->produced = dst - destination;
1357 return result;
4ed46869
KH
1358}
1359
f4dee582 1360/* ISO2022 encoding stuff. */
4ed46869
KH
1361
1362/*
f4dee582 1363 It is not enough to say just "ISO2022" on encoding, we have to
d46c5b12 1364 specify more details. In Emacs, each coding system of ISO2022
4ed46869
KH
1365 variant has the following specifications:
1366 1. Initial designation to G0 thru G3.
1367 2. Allows short-form designation?
1368 3. ASCII should be designated to G0 before control characters?
1369 4. ASCII should be designated to G0 at end of line?
1370 5. 7-bit environment or 8-bit environment?
1371 6. Use locking-shift?
1372 7. Use Single-shift?
1373 And the following two are only for Japanese:
1374 8. Use ASCII in place of JIS0201-1976-Roman?
1375 9. Use JISX0208-1983 in place of JISX0208-1978?
1376 These specifications are encoded in `coding->flags' as flag bits
1377 defined by macros CODING_FLAG_ISO_XXX. See `coding.h' for more
f4dee582 1378 details.
4ed46869
KH
1379*/
1380
1381/* Produce codes (escape sequence) for designating CHARSET to graphic
1382 register REG. If <final-char> of CHARSET is '@', 'A', or 'B' and
1383 the coding system CODING allows, produce designation sequence of
1384 short-form. */
1385
1386#define ENCODE_DESIGNATION(charset, reg, coding) \
1387 do { \
1388 unsigned char final_char = CHARSET_ISO_FINAL_CHAR (charset); \
1389 char *intermediate_char_94 = "()*+"; \
1390 char *intermediate_char_96 = ",-./"; \
70c22245
KH
1391 int revision = CODING_SPEC_ISO_REVISION_NUMBER(coding, charset); \
1392 if (revision < 255) \
1393 { \
4ed46869
KH
1394 *dst++ = ISO_CODE_ESC; \
1395 *dst++ = '&'; \
70c22245 1396 *dst++ = '@' + revision; \
4ed46869
KH
1397 } \
1398 *dst++ = ISO_CODE_ESC; \
1399 if (CHARSET_DIMENSION (charset) == 1) \
1400 { \
1401 if (CHARSET_CHARS (charset) == 94) \
1402 *dst++ = (unsigned char) (intermediate_char_94[reg]); \
1403 else \
1404 *dst++ = (unsigned char) (intermediate_char_96[reg]); \
1405 } \
1406 else \
1407 { \
1408 *dst++ = '$'; \
1409 if (CHARSET_CHARS (charset) == 94) \
1410 { \
1411 if (! (coding->flags & CODING_FLAG_ISO_SHORT_FORM) \
1412 || reg != 0 \
1413 || final_char < '@' || final_char > 'B') \
1414 *dst++ = (unsigned char) (intermediate_char_94[reg]); \
1415 } \
1416 else \
1417 *dst++ = (unsigned char) (intermediate_char_96[reg]); \
1418 } \
1419 *dst++ = final_char; \
1420 CODING_SPEC_ISO_DESIGNATION (coding, reg) = charset; \
1421 } while (0)
1422
1423/* The following two macros produce codes (control character or escape
1424 sequence) for ISO2022 single-shift functions (single-shift-2 and
1425 single-shift-3). */
1426
1427#define ENCODE_SINGLE_SHIFT_2 \
1428 do { \
1429 if (coding->flags & CODING_FLAG_ISO_SEVEN_BITS) \
1430 *dst++ = ISO_CODE_ESC, *dst++ = 'N'; \
1431 else \
fb88bf2d
KH
1432 { \
1433 *dst++ = ISO_CODE_SS2; \
1434 coding->fake_multibyte = 1; \
1435 } \
4ed46869
KH
1436 CODING_SPEC_ISO_SINGLE_SHIFTING (coding) = 1; \
1437 } while (0)
1438
fb88bf2d
KH
1439#define ENCODE_SINGLE_SHIFT_3 \
1440 do { \
4ed46869 1441 if (coding->flags & CODING_FLAG_ISO_SEVEN_BITS) \
fb88bf2d
KH
1442 *dst++ = ISO_CODE_ESC, *dst++ = 'O'; \
1443 else \
1444 { \
1445 *dst++ = ISO_CODE_SS3; \
1446 coding->fake_multibyte = 1; \
1447 } \
4ed46869
KH
1448 CODING_SPEC_ISO_SINGLE_SHIFTING (coding) = 1; \
1449 } while (0)
1450
1451/* The following four macros produce codes (control character or
1452 escape sequence) for ISO2022 locking-shift functions (shift-in,
1453 shift-out, locking-shift-2, and locking-shift-3). */
1454
1455#define ENCODE_SHIFT_IN \
1456 do { \
1457 *dst++ = ISO_CODE_SI; \
1458 CODING_SPEC_ISO_INVOCATION (coding, 0) = 0; \
1459 } while (0)
1460
1461#define ENCODE_SHIFT_OUT \
1462 do { \
1463 *dst++ = ISO_CODE_SO; \
1464 CODING_SPEC_ISO_INVOCATION (coding, 0) = 1; \
1465 } while (0)
1466
1467#define ENCODE_LOCKING_SHIFT_2 \
1468 do { \
1469 *dst++ = ISO_CODE_ESC, *dst++ = 'n'; \
1470 CODING_SPEC_ISO_INVOCATION (coding, 0) = 2; \
1471 } while (0)
1472
1473#define ENCODE_LOCKING_SHIFT_3 \
1474 do { \
1475 *dst++ = ISO_CODE_ESC, *dst++ = 'o'; \
1476 CODING_SPEC_ISO_INVOCATION (coding, 0) = 3; \
1477 } while (0)
1478
f4dee582
RS
1479/* Produce codes for a DIMENSION1 character whose character set is
1480 CHARSET and whose position-code is C1. Designation and invocation
4ed46869
KH
1481 sequences are also produced in advance if necessary. */
1482
1483
6e85d753
KH
1484#define ENCODE_ISO_CHARACTER_DIMENSION1(charset, c1) \
1485 do { \
1486 if (CODING_SPEC_ISO_SINGLE_SHIFTING (coding)) \
1487 { \
1488 if (coding->flags & CODING_FLAG_ISO_SEVEN_BITS) \
1489 *dst++ = c1 & 0x7F; \
1490 else \
1491 *dst++ = c1 | 0x80; \
1492 CODING_SPEC_ISO_SINGLE_SHIFTING (coding) = 0; \
1493 break; \
1494 } \
1495 else if (charset == CODING_SPEC_ISO_PLANE_CHARSET (coding, 0)) \
1496 { \
1497 *dst++ = c1 & 0x7F; \
1498 break; \
1499 } \
1500 else if (charset == CODING_SPEC_ISO_PLANE_CHARSET (coding, 1)) \
1501 { \
1502 *dst++ = c1 | 0x80; \
1503 break; \
1504 } \
1505 else if (coding->flags & CODING_FLAG_ISO_SAFE \
70c22245 1506 && !coding->safe_charsets[charset]) \
6e85d753
KH
1507 { \
1508 /* We should not encode this character, instead produce one or \
1509 two `?'s. */ \
1510 *dst++ = CODING_INHIBIT_CHARACTER_SUBSTITUTION; \
1511 if (CHARSET_WIDTH (charset) == 2) \
1512 *dst++ = CODING_INHIBIT_CHARACTER_SUBSTITUTION; \
1513 break; \
1514 } \
1515 else \
1516 /* Since CHARSET is not yet invoked to any graphic planes, we \
1517 must invoke it, or, at first, designate it to some graphic \
1518 register. Then repeat the loop to actually produce the \
1519 character. */ \
1520 dst = encode_invocation_designation (charset, coding, dst); \
4ed46869
KH
1521 } while (1)
1522
f4dee582
RS
1523/* Produce codes for a DIMENSION2 character whose character set is
1524 CHARSET and whose position-codes are C1 and C2. Designation and
4ed46869
KH
1525 invocation codes are also produced in advance if necessary. */
1526
6e85d753
KH
1527#define ENCODE_ISO_CHARACTER_DIMENSION2(charset, c1, c2) \
1528 do { \
1529 if (CODING_SPEC_ISO_SINGLE_SHIFTING (coding)) \
1530 { \
1531 if (coding->flags & CODING_FLAG_ISO_SEVEN_BITS) \
1532 *dst++ = c1 & 0x7F, *dst++ = c2 & 0x7F; \
1533 else \
1534 *dst++ = c1 | 0x80, *dst++ = c2 | 0x80; \
1535 CODING_SPEC_ISO_SINGLE_SHIFTING (coding) = 0; \
1536 break; \
1537 } \
1538 else if (charset == CODING_SPEC_ISO_PLANE_CHARSET (coding, 0)) \
1539 { \
1540 *dst++ = c1 & 0x7F, *dst++= c2 & 0x7F; \
1541 break; \
1542 } \
1543 else if (charset == CODING_SPEC_ISO_PLANE_CHARSET (coding, 1)) \
1544 { \
1545 *dst++ = c1 | 0x80, *dst++= c2 | 0x80; \
1546 break; \
1547 } \
1548 else if (coding->flags & CODING_FLAG_ISO_SAFE \
70c22245 1549 && !coding->safe_charsets[charset]) \
6e85d753
KH
1550 { \
1551 /* We should not encode this character, instead produce one or \
1552 two `?'s. */ \
1553 *dst++ = CODING_INHIBIT_CHARACTER_SUBSTITUTION; \
1554 if (CHARSET_WIDTH (charset) == 2) \
1555 *dst++ = CODING_INHIBIT_CHARACTER_SUBSTITUTION; \
1556 break; \
1557 } \
1558 else \
1559 /* Since CHARSET is not yet invoked to any graphic planes, we \
1560 must invoke it, or, at first, designate it to some graphic \
1561 register. Then repeat the loop to actually produce the \
1562 character. */ \
1563 dst = encode_invocation_designation (charset, coding, dst); \
4ed46869
KH
1564 } while (1)
1565
84fbb8a0
KH
1566#define ENCODE_ISO_CHARACTER(charset, c1, c2) \
1567 do { \
1568 int c_alt, charset_alt; \
1569 if (!NILP (translation_table) \
1570 && ((c_alt = translate_char (translation_table, -1, \
1571 charset, c1, c2)) \
1572 >= 0)) \
1573 SPLIT_CHAR (c_alt, charset_alt, c1, c2); \
1574 else \
1575 charset_alt = charset; \
1576 if (CHARSET_DIMENSION (charset_alt) == 1) \
1577 { \
1578 if (charset == CHARSET_ASCII \
1579 && coding->flags & CODING_FLAG_ISO_USE_ROMAN) \
1580 charset_alt = charset_latin_jisx0201; \
1581 ENCODE_ISO_CHARACTER_DIMENSION1 (charset_alt, c1); \
1582 } \
1583 else \
1584 { \
1585 if (charset == charset_jisx0208 \
1586 && coding->flags & CODING_FLAG_ISO_USE_OLDJIS) \
1587 charset_alt = charset_jisx0208_1978; \
1588 ENCODE_ISO_CHARACTER_DIMENSION2 (charset_alt, c1, c2); \
1589 } \
1590 if (! COMPOSING_P (coding->composing)) \
1591 coding->consumed_char++; \
1592 } while (0)
bdd9fb48 1593
4ed46869
KH
1594/* Produce designation and invocation codes at a place pointed by DST
1595 to use CHARSET. The element `spec.iso2022' of *CODING is updated.
1596 Return new DST. */
1597
1598unsigned char *
1599encode_invocation_designation (charset, coding, dst)
1600 int charset;
1601 struct coding_system *coding;
1602 unsigned char *dst;
1603{
1604 int reg; /* graphic register number */
1605
1606 /* At first, check designations. */
1607 for (reg = 0; reg < 4; reg++)
1608 if (charset == CODING_SPEC_ISO_DESIGNATION (coding, reg))
1609 break;
1610
1611 if (reg >= 4)
1612 {
1613 /* CHARSET is not yet designated to any graphic registers. */
1614 /* At first check the requested designation. */
1615 reg = CODING_SPEC_ISO_REQUESTED_DESIGNATION (coding, charset);
1ba9e4ab
KH
1616 if (reg == CODING_SPEC_ISO_NO_REQUESTED_DESIGNATION)
1617 /* Since CHARSET requests no special designation, designate it
1618 to graphic register 0. */
4ed46869
KH
1619 reg = 0;
1620
1621 ENCODE_DESIGNATION (charset, reg, coding);
1622 }
1623
1624 if (CODING_SPEC_ISO_INVOCATION (coding, 0) != reg
1625 && CODING_SPEC_ISO_INVOCATION (coding, 1) != reg)
1626 {
1627 /* Since the graphic register REG is not invoked to any graphic
1628 planes, invoke it to graphic plane 0. */
1629 switch (reg)
1630 {
1631 case 0: /* graphic register 0 */
1632 ENCODE_SHIFT_IN;
1633 break;
1634
1635 case 1: /* graphic register 1 */
1636 ENCODE_SHIFT_OUT;
1637 break;
1638
1639 case 2: /* graphic register 2 */
1640 if (coding->flags & CODING_FLAG_ISO_SINGLE_SHIFT)
1641 ENCODE_SINGLE_SHIFT_2;
1642 else
1643 ENCODE_LOCKING_SHIFT_2;
1644 break;
1645
1646 case 3: /* graphic register 3 */
1647 if (coding->flags & CODING_FLAG_ISO_SINGLE_SHIFT)
1648 ENCODE_SINGLE_SHIFT_3;
1649 else
1650 ENCODE_LOCKING_SHIFT_3;
1651 break;
1652 }
1653 }
1654 return dst;
1655}
1656
1657/* The following two macros produce codes for indicating composition. */
1658#define ENCODE_COMPOSITION_NO_RULE_START *dst++ = ISO_CODE_ESC, *dst++ = '0'
1659#define ENCODE_COMPOSITION_WITH_RULE_START *dst++ = ISO_CODE_ESC, *dst++ = '2'
1660#define ENCODE_COMPOSITION_END *dst++ = ISO_CODE_ESC, *dst++ = '1'
1661
1662/* The following three macros produce codes for indicating direction
1663 of text. */
1664#define ENCODE_CONTROL_SEQUENCE_INTRODUCER \
1665 do { \
1666 if (coding->flags == CODING_FLAG_ISO_SEVEN_BITS) \
1667 *dst++ = ISO_CODE_ESC, *dst++ = '['; \
1668 else \
1669 *dst++ = ISO_CODE_CSI; \
1670 } while (0)
1671
1672#define ENCODE_DIRECTION_R2L \
1673 ENCODE_CONTROL_SEQUENCE_INTRODUCER, *dst++ = '2', *dst++ = ']'
1674
1675#define ENCODE_DIRECTION_L2R \
1676 ENCODE_CONTROL_SEQUENCE_INTRODUCER, *dst++ = '0', *dst++ = ']'
1677
1678/* Produce codes for designation and invocation to reset the graphic
1679 planes and registers to initial state. */
e0e989f6
KH
1680#define ENCODE_RESET_PLANE_AND_REGISTER \
1681 do { \
1682 int reg; \
1683 if (CODING_SPEC_ISO_INVOCATION (coding, 0) != 0) \
1684 ENCODE_SHIFT_IN; \
1685 for (reg = 0; reg < 4; reg++) \
1686 if (CODING_SPEC_ISO_INITIAL_DESIGNATION (coding, reg) >= 0 \
1687 && (CODING_SPEC_ISO_DESIGNATION (coding, reg) \
1688 != CODING_SPEC_ISO_INITIAL_DESIGNATION (coding, reg))) \
1689 ENCODE_DESIGNATION \
1690 (CODING_SPEC_ISO_INITIAL_DESIGNATION (coding, reg), reg, coding); \
4ed46869
KH
1691 } while (0)
1692
bdd9fb48 1693/* Produce designation sequences of charsets in the line started from
d46c5b12 1694 SRC to a place pointed by *DSTP, and update DSTP.
bdd9fb48
KH
1695
1696 If the current block ends before any end-of-line, we may fail to
d46c5b12
KH
1697 find all the necessary designations. */
1698
dfcf069d 1699void
bdd9fb48 1700encode_designation_at_bol (coding, table, src, src_end, dstp)
e0e989f6 1701 struct coding_system *coding;
bdd9fb48 1702 Lisp_Object table;
e0e989f6
KH
1703 unsigned char *src, *src_end, **dstp;
1704{
bdd9fb48
KH
1705 int charset, c, found = 0, reg;
1706 /* Table of charsets to be designated to each graphic register. */
1707 int r[4];
1708 unsigned char *dst = *dstp;
1709
1710 for (reg = 0; reg < 4; reg++)
1711 r[reg] = -1;
1712
1713 while (src < src_end && *src != '\n' && found < 4)
e0e989f6 1714 {
bdd9fb48
KH
1715 int bytes = BYTES_BY_CHAR_HEAD (*src);
1716
1717 if (NILP (table))
1718 charset = CHARSET_AT (src);
1719 else
e0e989f6 1720 {
35cb8686
RS
1721 int c_alt;
1722 unsigned char c1, c2;
bdd9fb48
KH
1723
1724 SPLIT_STRING(src, bytes, charset, c1, c2);
84fbb8a0 1725 if ((c_alt = translate_char (table, -1, charset, c1, c2)) >= 0)
bdd9fb48 1726 charset = CHAR_CHARSET (c_alt);
e0e989f6 1727 }
bdd9fb48 1728
e0e989f6 1729 reg = CODING_SPEC_ISO_REQUESTED_DESIGNATION (coding, charset);
d46c5b12 1730 if (reg != CODING_SPEC_ISO_NO_REQUESTED_DESIGNATION && r[reg] < 0)
bdd9fb48
KH
1731 {
1732 found++;
1733 r[reg] = charset;
1734 }
1735
1736 src += bytes;
1737 }
1738
1739 if (found)
1740 {
1741 for (reg = 0; reg < 4; reg++)
1742 if (r[reg] >= 0
1743 && CODING_SPEC_ISO_DESIGNATION (coding, reg) != r[reg])
1744 ENCODE_DESIGNATION (r[reg], reg, coding);
1745 *dstp = dst;
e0e989f6 1746 }
e0e989f6
KH
1747}
1748
4ed46869
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1749/* See the above "GENERAL NOTES on `encode_coding_XXX ()' functions". */
1750
1751int
d46c5b12 1752encode_coding_iso2022 (coding, source, destination, src_bytes, dst_bytes)
4ed46869
KH
1753 struct coding_system *coding;
1754 unsigned char *source, *destination;
1755 int src_bytes, dst_bytes;
4ed46869
KH
1756{
1757 unsigned char *src = source;
1758 unsigned char *src_end = source + src_bytes;
1759 unsigned char *dst = destination;
1760 unsigned char *dst_end = destination + dst_bytes;
e0e989f6 1761 /* Since the maximum bytes produced by each loop is 20, we subtract 19
4ed46869
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1762 from DST_END to assure overflow checking is necessary only at the
1763 head of loop. */
e0e989f6 1764 unsigned char *adjusted_dst_end = dst_end - 19;
84fbb8a0 1765 Lisp_Object translation_table
f967223b 1766 = coding->translation_table_for_encode;
d46c5b12 1767 int result = CODING_FINISH_NORMAL;
bdd9fb48 1768
84fbb8a0 1769 if (!NILP (Venable_character_translation) && NILP (translation_table))
f967223b 1770 translation_table = Vstandard_translation_table_for_encode;
4ed46869 1771
d46c5b12 1772 coding->consumed_char = 0;
fb88bf2d 1773 coding->fake_multibyte = 0;
d46c5b12
KH
1774 while (src < src_end && (dst_bytes
1775 ? (dst < adjusted_dst_end)
1776 : (dst < src - 19)))
4ed46869
KH
1777 {
1778 /* SRC_BASE remembers the start position in source in each loop.
1779 The loop will be exited when there's not enough source text
1780 to analyze multi-byte codes (within macros ONE_MORE_BYTE,
1781 TWO_MORE_BYTES, and THREE_MORE_BYTES). In that case, SRC is
1782 reset to SRC_BASE before exiting. */
1783 unsigned char *src_base = src;
bdd9fb48 1784 int charset, c1, c2, c3, c4;
4ed46869 1785
e0e989f6
KH
1786 if (coding->flags & CODING_FLAG_ISO_DESIGNATE_AT_BOL
1787 && CODING_SPEC_ISO_BOL (coding))
1788 {
bdd9fb48 1789 /* We have to produce designation sequences if any now. */
84fbb8a0 1790 encode_designation_at_bol (coding, translation_table,
bdd9fb48 1791 src, src_end, &dst);
e0e989f6
KH
1792 CODING_SPEC_ISO_BOL (coding) = 0;
1793 }
1794
1795 c1 = *src++;
4ed46869 1796 /* If we are seeing a component of a composite character, we are
d46c5b12
KH
1797 seeing a leading-code encoded irregularly for composition, or
1798 a composition rule if composing with rule. We must set C1 to
1799 a normal leading-code or an ASCII code. If we are not seeing
1800 a composite character, we must reset composition,
1801 designation, and invocation states. */
4ed46869
KH
1802 if (COMPOSING_P (coding->composing))
1803 {
1804 if (c1 < 0xA0)
1805 {
1806 /* We are not in a composite character any longer. */
1807 coding->composing = COMPOSING_NO;
d46c5b12 1808 ENCODE_RESET_PLANE_AND_REGISTER;
4ed46869
KH
1809 ENCODE_COMPOSITION_END;
1810 }
1811 else
1812 {
1813 if (coding->composing == COMPOSING_WITH_RULE_RULE)
1814 {
1815 *dst++ = c1 & 0x7F;
1816 coding->composing = COMPOSING_WITH_RULE_HEAD;
1817 continue;
1818 }
1819 else if (coding->composing == COMPOSING_WITH_RULE_HEAD)
1820 coding->composing = COMPOSING_WITH_RULE_RULE;
1821 if (c1 == 0xA0)
1822 {
1823 /* This is an ASCII component. */
1824 ONE_MORE_BYTE (c1);
1825 c1 &= 0x7F;
1826 }
1827 else
1828 /* This is a leading-code of non ASCII component. */
1829 c1 -= 0x20;
1830 }
1831 }
1832
1833 /* Now encode one character. C1 is a control character, an
1834 ASCII character, or a leading-code of multi-byte character. */
1835 switch (emacs_code_class[c1])
1836 {
1837 case EMACS_ascii_code:
bdd9fb48 1838 ENCODE_ISO_CHARACTER (CHARSET_ASCII, c1, /* dummy */ c2);
4ed46869
KH
1839 break;
1840
1841 case EMACS_control_code:
1842 if (coding->flags & CODING_FLAG_ISO_RESET_AT_CNTL)
e0e989f6 1843 ENCODE_RESET_PLANE_AND_REGISTER;
4ed46869 1844 *dst++ = c1;
d46c5b12 1845 coding->consumed_char++;
4ed46869
KH
1846 break;
1847
1848 case EMACS_carriage_return_code:
d46c5b12 1849 if (! (coding->mode & CODING_MODE_SELECTIVE_DISPLAY))
4ed46869
KH
1850 {
1851 if (coding->flags & CODING_FLAG_ISO_RESET_AT_CNTL)
e0e989f6 1852 ENCODE_RESET_PLANE_AND_REGISTER;
4ed46869 1853 *dst++ = c1;
d46c5b12 1854 coding->consumed_char++;
4ed46869
KH
1855 break;
1856 }
1857 /* fall down to treat '\r' as '\n' ... */
1858
1859 case EMACS_linefeed_code:
1860 if (coding->flags & CODING_FLAG_ISO_RESET_AT_EOL)
e0e989f6
KH
1861 ENCODE_RESET_PLANE_AND_REGISTER;
1862 if (coding->flags & CODING_FLAG_ISO_INIT_AT_BOL)
1863 bcopy (coding->spec.iso2022.initial_designation,
1864 coding->spec.iso2022.current_designation,
1865 sizeof coding->spec.iso2022.initial_designation);
4ed46869 1866 if (coding->eol_type == CODING_EOL_LF
0ef69138 1867 || coding->eol_type == CODING_EOL_UNDECIDED)
4ed46869
KH
1868 *dst++ = ISO_CODE_LF;
1869 else if (coding->eol_type == CODING_EOL_CRLF)
1870 *dst++ = ISO_CODE_CR, *dst++ = ISO_CODE_LF;
1871 else
1872 *dst++ = ISO_CODE_CR;
e0e989f6 1873 CODING_SPEC_ISO_BOL (coding) = 1;
d46c5b12 1874 coding->consumed_char++;
4ed46869
KH
1875 break;
1876
1877 case EMACS_leading_code_2:
1878 ONE_MORE_BYTE (c2);
19a8d9e0
KH
1879 if (c2 < 0xA0)
1880 {
1881 /* invalid sequence */
1882 *dst++ = c1;
38cf95df
RS
1883 src--;
1884 coding->consumed_char++;
19a8d9e0
KH
1885 }
1886 else
1887 ENCODE_ISO_CHARACTER (c1, c2, /* dummy */ c3);
4ed46869
KH
1888 break;
1889
1890 case EMACS_leading_code_3:
1891 TWO_MORE_BYTES (c2, c3);
19a8d9e0
KH
1892 if (c2 < 0xA0 || c3 < 0xA0)
1893 {
1894 /* invalid sequence */
1895 *dst++ = c1;
38cf95df
RS
1896 src -= 2;
1897 coding->consumed_char++;
19a8d9e0
KH
1898 }
1899 else if (c1 < LEADING_CODE_PRIVATE_11)
bdd9fb48 1900 ENCODE_ISO_CHARACTER (c1, c2, c3);
4ed46869 1901 else
bdd9fb48 1902 ENCODE_ISO_CHARACTER (c2, c3, /* dummy */ c4);
4ed46869
KH
1903 break;
1904
1905 case EMACS_leading_code_4:
1906 THREE_MORE_BYTES (c2, c3, c4);
19a8d9e0
KH
1907 if (c2 < 0xA0 || c3 < 0xA0 || c4 < 0xA0)
1908 {
1909 /* invalid sequence */
1910 *dst++ = c1;
38cf95df
RS
1911 src -= 3;
1912 coding->consumed_char++;
19a8d9e0
KH
1913 }
1914 else
1915 ENCODE_ISO_CHARACTER (c2, c3, c4);
4ed46869
KH
1916 break;
1917
1918 case EMACS_leading_code_composition:
19a8d9e0
KH
1919 ONE_MORE_BYTE (c2);
1920 if (c2 < 0xA0)
1921 {
1922 /* invalid sequence */
1923 *dst++ = c1;
38cf95df
RS
1924 src--;
1925 coding->consumed_char++;
19a8d9e0
KH
1926 }
1927 else if (c2 == 0xFF)
4ed46869 1928 {
d46c5b12 1929 ENCODE_RESET_PLANE_AND_REGISTER;
4ed46869
KH
1930 coding->composing = COMPOSING_WITH_RULE_HEAD;
1931 ENCODE_COMPOSITION_WITH_RULE_START;
d46c5b12 1932 coding->consumed_char++;
4ed46869
KH
1933 }
1934 else
1935 {
d46c5b12 1936 ENCODE_RESET_PLANE_AND_REGISTER;
4ed46869
KH
1937 /* Rewind one byte because it is a character code of
1938 composition elements. */
1939 src--;
1940 coding->composing = COMPOSING_NO_RULE_HEAD;
1941 ENCODE_COMPOSITION_NO_RULE_START;
d46c5b12 1942 coding->consumed_char++;
4ed46869
KH
1943 }
1944 break;
1945
1946 case EMACS_invalid_code:
1947 *dst++ = c1;
d46c5b12 1948 coding->consumed_char++;
4ed46869
KH
1949 break;
1950 }
1951 continue;
1952 label_end_of_loop:
d46c5b12
KH
1953 result = CODING_FINISH_INSUFFICIENT_SRC;
1954 src = src_base;
4ed46869
KH
1955 break;
1956 }
1957
49cb52b4
KH
1958 if (src < src_end && result == CODING_FINISH_NORMAL)
1959 result = CODING_FINISH_INSUFFICIENT_DST;
1960
1961 /* If this is the last block of the text to be encoded, we must
1962 reset graphic planes and registers to the initial state, and
1963 flush out the carryover if any. */
1964 if (coding->mode & CODING_MODE_LAST_BLOCK)
84fbb8a0
KH
1965 {
1966 ENCODE_RESET_PLANE_AND_REGISTER;
1967 if (COMPOSING_P (coding->composing))
1968 ENCODE_COMPOSITION_END;
1969 }
d46c5b12
KH
1970 coding->consumed = src - source;
1971 coding->produced = coding->produced_char = dst - destination;
1972 return result;
4ed46869
KH
1973}
1974
1975\f
1976/*** 4. SJIS and BIG5 handlers ***/
1977
f4dee582 1978/* Although SJIS and BIG5 are not ISO's coding system, they are used
4ed46869
KH
1979 quite widely. So, for the moment, Emacs supports them in the bare
1980 C code. But, in the future, they may be supported only by CCL. */
1981
1982/* SJIS is a coding system encoding three character sets: ASCII, right
1983 half of JISX0201-Kana, and JISX0208. An ASCII character is encoded
1984 as is. A character of charset katakana-jisx0201 is encoded by
1985 "position-code + 0x80". A character of charset japanese-jisx0208
1986 is encoded in 2-byte but two position-codes are divided and shifted
1987 so that it fit in the range below.
1988
1989 --- CODE RANGE of SJIS ---
1990 (character set) (range)
1991 ASCII 0x00 .. 0x7F
1992 KATAKANA-JISX0201 0xA0 .. 0xDF
54f78171 1993 JISX0208 (1st byte) 0x80 .. 0x9F and 0xE0 .. 0xEF
4ed46869
KH
1994 (2nd byte) 0x40 .. 0xFF
1995 -------------------------------
1996
1997*/
1998
1999/* BIG5 is a coding system encoding two character sets: ASCII and
2000 Big5. An ASCII character is encoded as is. Big5 is a two-byte
2001 character set and is encoded in two-byte.
2002
2003 --- CODE RANGE of BIG5 ---
2004 (character set) (range)
2005 ASCII 0x00 .. 0x7F
2006 Big5 (1st byte) 0xA1 .. 0xFE
2007 (2nd byte) 0x40 .. 0x7E and 0xA1 .. 0xFE
2008 --------------------------
2009
2010 Since the number of characters in Big5 is larger than maximum
2011 characters in Emacs' charset (96x96), it can't be handled as one
2012 charset. So, in Emacs, Big5 is divided into two: `charset-big5-1'
2013 and `charset-big5-2'. Both are DIMENSION2 and CHARS94. The former
2014 contains frequently used characters and the latter contains less
2015 frequently used characters. */
2016
2017/* Macros to decode or encode a character of Big5 in BIG5. B1 and B2
2018 are the 1st and 2nd position-codes of Big5 in BIG5 coding system.
2019 C1 and C2 are the 1st and 2nd position-codes of of Emacs' internal
2020 format. CHARSET is `charset_big5_1' or `charset_big5_2'. */
2021
2022/* Number of Big5 characters which have the same code in 1st byte. */
2023#define BIG5_SAME_ROW (0xFF - 0xA1 + 0x7F - 0x40)
2024
2025#define DECODE_BIG5(b1, b2, charset, c1, c2) \
2026 do { \
2027 unsigned int temp \
2028 = (b1 - 0xA1) * BIG5_SAME_ROW + b2 - (b2 < 0x7F ? 0x40 : 0x62); \
2029 if (b1 < 0xC9) \
2030 charset = charset_big5_1; \
2031 else \
2032 { \
2033 charset = charset_big5_2; \
2034 temp -= (0xC9 - 0xA1) * BIG5_SAME_ROW; \
2035 } \
2036 c1 = temp / (0xFF - 0xA1) + 0x21; \
2037 c2 = temp % (0xFF - 0xA1) + 0x21; \
2038 } while (0)
2039
2040#define ENCODE_BIG5(charset, c1, c2, b1, b2) \
2041 do { \
2042 unsigned int temp = (c1 - 0x21) * (0xFF - 0xA1) + (c2 - 0x21); \
2043 if (charset == charset_big5_2) \
2044 temp += BIG5_SAME_ROW * (0xC9 - 0xA1); \
2045 b1 = temp / BIG5_SAME_ROW + 0xA1; \
2046 b2 = temp % BIG5_SAME_ROW; \
2047 b2 += b2 < 0x3F ? 0x40 : 0x62; \
2048 } while (0)
2049
a5d301df
KH
2050#define DECODE_SJIS_BIG5_CHARACTER(charset, c1, c2) \
2051 do { \
2052 int c_alt, charset_alt = (charset); \
84fbb8a0
KH
2053 if (!NILP (translation_table) \
2054 && ((c_alt = translate_char (translation_table, \
2055 -1, (charset), c1, c2)) >= 0)) \
a5d301df
KH
2056 SPLIT_CHAR (c_alt, charset_alt, c1, c2); \
2057 if (charset_alt == CHARSET_ASCII || charset_alt < 0) \
2058 DECODE_CHARACTER_ASCII (c1); \
2059 else if (CHARSET_DIMENSION (charset_alt) == 1) \
2060 DECODE_CHARACTER_DIMENSION1 (charset_alt, c1); \
2061 else \
2062 DECODE_CHARACTER_DIMENSION2 (charset_alt, c1, c2); \
2063 } while (0)
2064
84fbb8a0
KH
2065#define ENCODE_SJIS_BIG5_CHARACTER(charset, c1, c2) \
2066 do { \
2067 int c_alt, charset_alt; \
2068 if (!NILP (translation_table) \
2069 && ((c_alt = translate_char (translation_table, -1, \
2070 charset, c1, c2)) \
2071 >= 0)) \
2072 SPLIT_CHAR (c_alt, charset_alt, c1, c2); \
2073 else \
2074 charset_alt = charset; \
2075 if (charset_alt == charset_ascii) \
2076 *dst++ = c1; \
2077 else if (CHARSET_DIMENSION (charset_alt) == 1) \
2078 { \
2079 if (sjis_p && charset_alt == charset_katakana_jisx0201) \
2080 *dst++ = c1; \
2081 else \
2082 { \
2083 *dst++ = charset_alt, *dst++ = c1; \
2084 coding->fake_multibyte = 1; \
2085 } \
2086 } \
2087 else \
2088 { \
2089 c1 &= 0x7F, c2 &= 0x7F; \
2090 if (sjis_p && charset_alt == charset_jisx0208) \
2091 { \
2092 unsigned char s1, s2; \
2093 \
2094 ENCODE_SJIS (c1, c2, s1, s2); \
2095 *dst++ = s1, *dst++ = s2; \
2096 coding->fake_multibyte = 1; \
2097 } \
2098 else if (!sjis_p \
2099 && (charset_alt == charset_big5_1 \
2100 || charset_alt == charset_big5_2)) \
2101 { \
2102 unsigned char b1, b2; \
2103 \
2104 ENCODE_BIG5 (charset_alt, c1, c2, b1, b2); \
2105 *dst++ = b1, *dst++ = b2; \
2106 } \
2107 else \
2108 { \
2109 *dst++ = charset_alt, *dst++ = c1, *dst++ = c2; \
2110 coding->fake_multibyte = 1; \
2111 } \
2112 } \
2113 coding->consumed_char++; \
a5d301df
KH
2114 } while (0);
2115
4ed46869
KH
2116/* See the above "GENERAL NOTES on `detect_coding_XXX ()' functions".
2117 Check if a text is encoded in SJIS. If it is, return
2118 CODING_CATEGORY_MASK_SJIS, else return 0. */
2119
2120int
2121detect_coding_sjis (src, src_end)
2122 unsigned char *src, *src_end;
2123{
2124 unsigned char c;
2125
2126 while (src < src_end)
2127 {
2128 c = *src++;
4ed46869
KH
2129 if ((c >= 0x80 && c < 0xA0) || c >= 0xE0)
2130 {
2131 if (src < src_end && *src++ < 0x40)
2132 return 0;
2133 }
2134 }
2135 return CODING_CATEGORY_MASK_SJIS;
2136}
2137
2138/* See the above "GENERAL NOTES on `detect_coding_XXX ()' functions".
2139 Check if a text is encoded in BIG5. If it is, return
2140 CODING_CATEGORY_MASK_BIG5, else return 0. */
2141
2142int
2143detect_coding_big5 (src, src_end)
2144 unsigned char *src, *src_end;
2145{
2146 unsigned char c;
2147
2148 while (src < src_end)
2149 {
2150 c = *src++;
4ed46869
KH
2151 if (c >= 0xA1)
2152 {
2153 if (src >= src_end)
2154 break;
2155 c = *src++;
2156 if (c < 0x40 || (c >= 0x7F && c <= 0xA0))
2157 return 0;
2158 }
2159 }
2160 return CODING_CATEGORY_MASK_BIG5;
2161}
2162
2163/* See the above "GENERAL NOTES on `decode_coding_XXX ()' functions".
2164 If SJIS_P is 1, decode SJIS text, else decode BIG5 test. */
2165
2166int
2167decode_coding_sjis_big5 (coding, source, destination,
d46c5b12 2168 src_bytes, dst_bytes, sjis_p)
4ed46869
KH
2169 struct coding_system *coding;
2170 unsigned char *source, *destination;
2171 int src_bytes, dst_bytes;
4ed46869
KH
2172 int sjis_p;
2173{
2174 unsigned char *src = source;
2175 unsigned char *src_end = source + src_bytes;
2176 unsigned char *dst = destination;
2177 unsigned char *dst_end = destination + dst_bytes;
2178 /* Since the maximum bytes produced by each loop is 4, we subtract 3
2179 from DST_END to assure overflow checking is necessary only at the
2180 head of loop. */
2181 unsigned char *adjusted_dst_end = dst_end - 3;
84fbb8a0 2182 Lisp_Object translation_table
f967223b 2183 = coding->translation_table_for_decode;
d46c5b12 2184 int result = CODING_FINISH_NORMAL;
a5d301df 2185
84fbb8a0 2186 if (!NILP (Venable_character_translation) && NILP (translation_table))
f967223b 2187 translation_table = Vstandard_translation_table_for_decode;
4ed46869 2188
d46c5b12 2189 coding->produced_char = 0;
fb88bf2d 2190 coding->fake_multibyte = 0;
d46c5b12
KH
2191 while (src < src_end && (dst_bytes
2192 ? (dst < adjusted_dst_end)
2193 : (dst < src - 3)))
4ed46869
KH
2194 {
2195 /* SRC_BASE remembers the start position in source in each loop.
2196 The loop will be exited when there's not enough source text
2197 to analyze two-byte character (within macro ONE_MORE_BYTE).
2198 In that case, SRC is reset to SRC_BASE before exiting. */
2199 unsigned char *src_base = src;
2200 unsigned char c1 = *src++, c2, c3, c4;
2201
d46c5b12 2202 if (c1 < 0x20)
4ed46869 2203 {
d46c5b12 2204 if (c1 == '\r')
4ed46869 2205 {
d46c5b12
KH
2206 if (coding->eol_type == CODING_EOL_CRLF)
2207 {
2208 ONE_MORE_BYTE (c2);
2209 if (c2 == '\n')
2210 *dst++ = c2;
2211 else if (coding->mode & CODING_MODE_INHIBIT_INCONSISTENT_EOL)
2212 {
2213 result = CODING_FINISH_INCONSISTENT_EOL;
2214 goto label_end_of_loop_2;
2215 }
2216 else
2217 /* To process C2 again, SRC is subtracted by 1. */
2218 *dst++ = c1, src--;
2219 }
2220 else if (coding->eol_type == CODING_EOL_CR)
2221 *dst++ = '\n';
4ed46869 2222 else
d46c5b12
KH
2223 *dst++ = c1;
2224 }
2225 else if (c1 == '\n'
2226 && (coding->mode & CODING_MODE_INHIBIT_INCONSISTENT_EOL)
2227 && (coding->eol_type == CODING_EOL_CR
2228 || coding->eol_type == CODING_EOL_CRLF))
2229 {
2230 result = CODING_FINISH_INCONSISTENT_EOL;
2231 goto label_end_of_loop_2;
4ed46869
KH
2232 }
2233 else
2234 *dst++ = c1;
d46c5b12 2235 coding->produced_char++;
4ed46869 2236 }
a5d301df
KH
2237 else if (c1 < 0x80)
2238 DECODE_SJIS_BIG5_CHARACTER (charset_ascii, c1, /* dummy */ c2);
54f78171 2239 else
4ed46869 2240 {
4ed46869
KH
2241 if (sjis_p)
2242 {
54f78171 2243 if (c1 < 0xA0 || (c1 >= 0xE0 && c1 < 0xF0))
fb88bf2d 2244 {
54f78171
KH
2245 /* SJIS -> JISX0208 */
2246 ONE_MORE_BYTE (c2);
2247 if (c2 >= 0x40)
2248 {
2249 DECODE_SJIS (c1, c2, c3, c4);
2250 DECODE_SJIS_BIG5_CHARACTER (charset_jisx0208, c3, c4);
2251 }
2252 else
2253 goto label_invalid_code_2;
fb88bf2d 2254 }
54f78171
KH
2255 else if (c1 < 0xE0)
2256 /* SJIS -> JISX0201-Kana */
2257 DECODE_SJIS_BIG5_CHARACTER (charset_katakana_jisx0201, c1,
2258 /* dummy */ c2);
fb88bf2d 2259 else
54f78171 2260 goto label_invalid_code_1;
4ed46869 2261 }
fb88bf2d 2262 else
fb88bf2d 2263 {
54f78171
KH
2264 /* BIG5 -> Big5 */
2265 if (c1 >= 0xA1 && c1 <= 0xFE)
fb88bf2d 2266 {
54f78171
KH
2267 ONE_MORE_BYTE (c2);
2268 if ((c2 >= 0x40 && c2 <= 0x7E) || (c2 >= 0xA1 && c2 <= 0xFE))
2269 {
2270 int charset;
4ed46869 2271
54f78171
KH
2272 DECODE_BIG5 (c1, c2, charset, c3, c4);
2273 DECODE_SJIS_BIG5_CHARACTER (charset, c3, c4);
2274 }
2275 else
2276 goto label_invalid_code_2;
fb88bf2d
KH
2277 }
2278 else
54f78171 2279 goto label_invalid_code_1;
4ed46869
KH
2280 }
2281 }
2282 continue;
2283
fb88bf2d
KH
2284 label_invalid_code_1:
2285 *dst++ = c1;
2286 coding->produced_char++;
2287 coding->fake_multibyte = 1;
2288 continue;
2289
2290 label_invalid_code_2:
2291 *dst++ = c1; *dst++= c2;
2292 coding->produced_char += 2;
2293 coding->fake_multibyte = 1;
2294 continue;
2295
4ed46869 2296 label_end_of_loop:
d46c5b12
KH
2297 result = CODING_FINISH_INSUFFICIENT_SRC;
2298 label_end_of_loop_2:
4ed46869
KH
2299 src = src_base;
2300 break;
2301 }
2302
fb88bf2d
KH
2303 if (src < src_end)
2304 {
2305 if (result == CODING_FINISH_NORMAL)
2306 result = CODING_FINISH_INSUFFICIENT_DST;
2307 else if (result != CODING_FINISH_INCONSISTENT_EOL
2308 && coding->mode & CODING_MODE_LAST_BLOCK)
2309 {
2310 src_bytes = src_end - src;
2311 if (dst_bytes && (dst_end - dst < src_bytes))
2312 src_bytes = dst_end - dst;
2313 bcopy (dst, src, src_bytes);
2314 src += src_bytes;
2315 dst += src_bytes;
2316 coding->fake_multibyte = 1;
2317 }
2318 }
d46c5b12
KH
2319
2320 coding->consumed = coding->consumed_char = src - source;
2321 coding->produced = dst - destination;
2322 return result;
4ed46869
KH
2323}
2324
2325/* See the above "GENERAL NOTES on `encode_coding_XXX ()' functions".
2326 This function can encode `charset_ascii', `charset_katakana_jisx0201',
2327 `charset_jisx0208', `charset_big5_1', and `charset_big5-2'. We are
2328 sure that all these charsets are registered as official charset
2329 (i.e. do not have extended leading-codes). Characters of other
2330 charsets are produced without any encoding. If SJIS_P is 1, encode
2331 SJIS text, else encode BIG5 text. */
2332
2333int
2334encode_coding_sjis_big5 (coding, source, destination,
d46c5b12 2335 src_bytes, dst_bytes, sjis_p)
4ed46869
KH
2336 struct coding_system *coding;
2337 unsigned char *source, *destination;
2338 int src_bytes, dst_bytes;
4ed46869
KH
2339 int sjis_p;
2340{
2341 unsigned char *src = source;
2342 unsigned char *src_end = source + src_bytes;
2343 unsigned char *dst = destination;
2344 unsigned char *dst_end = destination + dst_bytes;
2345 /* Since the maximum bytes produced by each loop is 2, we subtract 1
2346 from DST_END to assure overflow checking is necessary only at the
2347 head of loop. */
2348 unsigned char *adjusted_dst_end = dst_end - 1;
84fbb8a0 2349 Lisp_Object translation_table
f967223b 2350 = coding->translation_table_for_encode;
d46c5b12 2351 int result = CODING_FINISH_NORMAL;
a5d301df 2352
84fbb8a0 2353 if (!NILP (Venable_character_translation) && NILP (translation_table))
f967223b 2354 translation_table = Vstandard_translation_table_for_encode;
4ed46869 2355
d46c5b12 2356 coding->consumed_char = 0;
fb88bf2d 2357 coding->fake_multibyte = 0;
d46c5b12
KH
2358 while (src < src_end && (dst_bytes
2359 ? (dst < adjusted_dst_end)
2360 : (dst < src - 1)))
4ed46869
KH
2361 {
2362 /* SRC_BASE remembers the start position in source in each loop.
2363 The loop will be exited when there's not enough source text
2364 to analyze multi-byte codes (within macros ONE_MORE_BYTE and
2365 TWO_MORE_BYTES). In that case, SRC is reset to SRC_BASE
2366 before exiting. */
2367 unsigned char *src_base = src;
2368 unsigned char c1 = *src++, c2, c3, c4;
2369
2370 if (coding->composing)
2371 {
2372 if (c1 == 0xA0)
2373 {
2374 ONE_MORE_BYTE (c1);
2375 c1 &= 0x7F;
2376 }
2377 else if (c1 >= 0xA0)
2378 c1 -= 0x20;
2379 else
2380 coding->composing = 0;
2381 }
2382
2383 switch (emacs_code_class[c1])
2384 {
2385 case EMACS_ascii_code:
a5d301df
KH
2386 ENCODE_SJIS_BIG5_CHARACTER (charset_ascii, c1, /* dummy */ c2);
2387 break;
2388
4ed46869
KH
2389 case EMACS_control_code:
2390 *dst++ = c1;
d46c5b12 2391 coding->consumed_char++;
4ed46869
KH
2392 break;
2393
2394 case EMACS_carriage_return_code:
d46c5b12 2395 if (! (coding->mode & CODING_MODE_SELECTIVE_DISPLAY))
4ed46869
KH
2396 {
2397 *dst++ = c1;
d46c5b12 2398 coding->consumed_char++;
4ed46869
KH
2399 break;
2400 }
2401 /* fall down to treat '\r' as '\n' ... */
2402
2403 case EMACS_linefeed_code:
2404 if (coding->eol_type == CODING_EOL_LF
0ef69138 2405 || coding->eol_type == CODING_EOL_UNDECIDED)
4ed46869
KH
2406 *dst++ = '\n';
2407 else if (coding->eol_type == CODING_EOL_CRLF)
2408 *dst++ = '\r', *dst++ = '\n';
2409 else
2410 *dst++ = '\r';
d46c5b12 2411 coding->consumed_char++;
4ed46869
KH
2412 break;
2413
2414 case EMACS_leading_code_2:
2415 ONE_MORE_BYTE (c2);
a5d301df 2416 ENCODE_SJIS_BIG5_CHARACTER (c1, c2, /* dummy */ c3);
4ed46869
KH
2417 break;
2418
2419 case EMACS_leading_code_3:
2420 TWO_MORE_BYTES (c2, c3);
a5d301df 2421 ENCODE_SJIS_BIG5_CHARACTER (c1, c2, c3);
4ed46869
KH
2422 break;
2423
2424 case EMACS_leading_code_4:
2425 THREE_MORE_BYTES (c2, c3, c4);
a5d301df 2426 ENCODE_SJIS_BIG5_CHARACTER (c2, c3, c4);
4ed46869
KH
2427 break;
2428
2429 case EMACS_leading_code_composition:
2430 coding->composing = 1;
2431 break;
2432
2433 default: /* i.e. case EMACS_invalid_code: */
2434 *dst++ = c1;
d46c5b12 2435 coding->consumed_char++;
4ed46869
KH
2436 }
2437 continue;
2438
2439 label_end_of_loop:
d46c5b12
KH
2440 result = CODING_FINISH_INSUFFICIENT_SRC;
2441 src = src_base;
4ed46869
KH
2442 break;
2443 }
2444
d46c5b12
KH
2445 if (result == CODING_FINISH_NORMAL
2446 && src < src_end)
2447 result = CODING_FINISH_INSUFFICIENT_DST;
2448 coding->consumed = src - source;
2449 coding->produced = coding->produced_char = dst - destination;
2450 return result;
4ed46869
KH
2451}
2452
2453\f
2454/*** 5. End-of-line handlers ***/
2455
2456/* See the above "GENERAL NOTES on `decode_coding_XXX ()' functions".
2457 This function is called only when `coding->eol_type' is
2458 CODING_EOL_CRLF or CODING_EOL_CR. */
2459
dfcf069d 2460int
d46c5b12 2461decode_eol (coding, source, destination, src_bytes, dst_bytes)
4ed46869
KH
2462 struct coding_system *coding;
2463 unsigned char *source, *destination;
2464 int src_bytes, dst_bytes;
4ed46869
KH
2465{
2466 unsigned char *src = source;
2467 unsigned char *src_end = source + src_bytes;
2468 unsigned char *dst = destination;
2469 unsigned char *dst_end = destination + dst_bytes;
fb88bf2d 2470 unsigned char c;
d46c5b12
KH
2471 int result = CODING_FINISH_NORMAL;
2472
fb88bf2d
KH
2473 coding->fake_multibyte = 0;
2474
d46c5b12
KH
2475 if (src_bytes <= 0)
2476 return result;
4ed46869
KH
2477
2478 switch (coding->eol_type)
2479 {
2480 case CODING_EOL_CRLF:
2481 {
2482 /* Since the maximum bytes produced by each loop is 2, we
2483 subtract 1 from DST_END to assure overflow checking is
2484 necessary only at the head of loop. */
2485 unsigned char *adjusted_dst_end = dst_end - 1;
2486
d46c5b12
KH
2487 while (src < src_end && (dst_bytes
2488 ? (dst < adjusted_dst_end)
2489 : (dst < src - 1)))
4ed46869
KH
2490 {
2491 unsigned char *src_base = src;
fb88bf2d
KH
2492
2493 c = *src++;
4ed46869
KH
2494 if (c == '\r')
2495 {
2496 ONE_MORE_BYTE (c);
2497 if (c != '\n')
d46c5b12
KH
2498 {
2499 if (coding->mode & CODING_MODE_INHIBIT_INCONSISTENT_EOL)
2500 {
2501 result = CODING_FINISH_INCONSISTENT_EOL;
2502 goto label_end_of_loop_2;
2503 }
2504 *dst++ = '\r';
fb88bf2d
KH
2505 if (BASE_LEADING_CODE_P (c))
2506 coding->fake_multibyte = 1;
d46c5b12 2507 }
bfd99048 2508 *dst++ = c;
4ed46869 2509 }
d46c5b12
KH
2510 else if (c == '\n'
2511 && (coding->mode & CODING_MODE_INHIBIT_INCONSISTENT_EOL))
2512 {
2513 result = CODING_FINISH_INCONSISTENT_EOL;
2514 goto label_end_of_loop_2;
2515 }
4ed46869 2516 else
fb88bf2d
KH
2517 {
2518 *dst++ = c;
2519 if (BASE_LEADING_CODE_P (c))
2520 coding->fake_multibyte = 1;
2521 }
4ed46869
KH
2522 continue;
2523
2524 label_end_of_loop:
d46c5b12
KH
2525 result = CODING_FINISH_INSUFFICIENT_SRC;
2526 label_end_of_loop_2:
4ed46869
KH
2527 src = src_base;
2528 break;
2529 }
d46c5b12
KH
2530 if (result == CODING_FINISH_NORMAL
2531 && src < src_end)
2532 result = CODING_FINISH_INSUFFICIENT_DST;
4ed46869 2533 }
d46c5b12 2534 break;
4ed46869
KH
2535
2536 case CODING_EOL_CR:
d46c5b12
KH
2537 if (coding->mode & CODING_MODE_INHIBIT_INCONSISTENT_EOL)
2538 {
fb88bf2d
KH
2539 while (src < src_end)
2540 {
2541 if ((c = *src++) == '\n')
2542 break;
2543 if (BASE_LEADING_CODE_P (c))
2544 coding->fake_multibyte = 1;
2545 }
d46c5b12
KH
2546 if (*--src == '\n')
2547 {
2548 src_bytes = src - source;
2549 result = CODING_FINISH_INCONSISTENT_EOL;
2550 }
2551 }
2552 if (dst_bytes && src_bytes > dst_bytes)
2553 {
2554 result = CODING_FINISH_INSUFFICIENT_DST;
2555 src_bytes = dst_bytes;
2556 }
2557 if (dst_bytes)
2558 bcopy (source, destination, src_bytes);
2559 else
2560 safe_bcopy (source, destination, src_bytes);
2561 src = source + src_bytes;
2562 while (src_bytes--) if (*dst++ == '\r') dst[-1] = '\n';
4ed46869
KH
2563 break;
2564
2565 default: /* i.e. case: CODING_EOL_LF */
d46c5b12
KH
2566 if (dst_bytes && src_bytes > dst_bytes)
2567 {
2568 result = CODING_FINISH_INSUFFICIENT_DST;
2569 src_bytes = dst_bytes;
2570 }
2571 if (dst_bytes)
2572 bcopy (source, destination, src_bytes);
2573 else
2574 safe_bcopy (source, destination, src_bytes);
2575 src += src_bytes;
993824c9 2576 dst += src_bytes;
fb88bf2d 2577 coding->fake_multibyte = 1;
4ed46869
KH
2578 break;
2579 }
2580
d46c5b12
KH
2581 coding->consumed = coding->consumed_char = src - source;
2582 coding->produced = coding->produced_char = dst - destination;
2583 return result;
4ed46869
KH
2584}
2585
2586/* See "GENERAL NOTES about `encode_coding_XXX ()' functions". Encode
2587 format of end-of-line according to `coding->eol_type'. If
d46c5b12
KH
2588 `coding->mode & CODING_MODE_SELECTIVE_DISPLAY' is nonzero, code
2589 '\r' in source text also means end-of-line. */
4ed46869 2590
dfcf069d 2591int
d46c5b12 2592encode_eol (coding, source, destination, src_bytes, dst_bytes)
4ed46869
KH
2593 struct coding_system *coding;
2594 unsigned char *source, *destination;
2595 int src_bytes, dst_bytes;
4ed46869
KH
2596{
2597 unsigned char *src = source;
2598 unsigned char *dst = destination;
d46c5b12 2599 int result = CODING_FINISH_NORMAL;
4ed46869 2600
fb88bf2d
KH
2601 coding->fake_multibyte = 0;
2602
d46c5b12
KH
2603 if (coding->eol_type == CODING_EOL_CRLF)
2604 {
2605 unsigned char c;
2606 unsigned char *src_end = source + src_bytes;
2607 unsigned char *dst_end = destination + dst_bytes;
2608 /* Since the maximum bytes produced by each loop is 2, we
2609 subtract 1 from DST_END to assure overflow checking is
2610 necessary only at the head of loop. */
2611 unsigned char *adjusted_dst_end = dst_end - 1;
2612
2613 while (src < src_end && (dst_bytes
2614 ? (dst < adjusted_dst_end)
2615 : (dst < src - 1)))
2616 {
2617 c = *src++;
2618 if (c == '\n'
2619 || (c == '\r' && (coding->mode & CODING_MODE_SELECTIVE_DISPLAY)))
2620 *dst++ = '\r', *dst++ = '\n';
2621 else
fb88bf2d
KH
2622 {
2623 *dst++ = c;
2624 if (BASE_LEADING_CODE_P (c))
2625 coding->fake_multibyte = 1;
2626 }
d46c5b12
KH
2627 }
2628 if (src < src_end)
2629 result = CODING_FINISH_INSUFFICIENT_DST;
2630 }
2631 else
4ed46869 2632 {
fb88bf2d
KH
2633 unsigned char c;
2634
d46c5b12 2635 if (dst_bytes && src_bytes > dst_bytes)
4ed46869 2636 {
d46c5b12
KH
2637 src_bytes = dst_bytes;
2638 result = CODING_FINISH_INSUFFICIENT_DST;
2639 }
2640 if (dst_bytes)
2641 bcopy (source, destination, src_bytes);
2642 else
993824c9
RS
2643 safe_bcopy (source, destination, src_bytes);
2644 dst_bytes = src_bytes;
2645 if (coding->eol_type == CODING_EOL_CR)
d46c5b12
KH
2646 {
2647 while (src_bytes--)
fb88bf2d
KH
2648 {
2649 if ((c = *dst++) == '\n')
2650 dst[-1] = '\r';
2651 else if (BASE_LEADING_CODE_P (c))
993824c9 2652 coding->fake_multibyte = 1;
fb88bf2d 2653 }
d46c5b12 2654 }
fb88bf2d 2655 else
d46c5b12 2656 {
fb88bf2d
KH
2657 if (coding->mode & CODING_MODE_SELECTIVE_DISPLAY)
2658 {
2659 while (src_bytes--)
2660 if (*dst++ == '\r') dst[-1] = '\n';
2661 }
2662 coding->fake_multibyte = 1;
4ed46869 2663 }
fb88bf2d
KH
2664 src = source + dst_bytes;
2665 dst = destination + dst_bytes;
4ed46869
KH
2666 }
2667
d46c5b12
KH
2668 coding->consumed = coding->consumed_char = src - source;
2669 coding->produced = coding->produced_char = dst - destination;
2670 return result;
4ed46869
KH
2671}
2672
2673\f
2674/*** 6. C library functions ***/
2675
2676/* In Emacs Lisp, coding system is represented by a Lisp symbol which
2677 has a property `coding-system'. The value of this property is a
2678 vector of length 5 (called as coding-vector). Among elements of
2679 this vector, the first (element[0]) and the fifth (element[4])
2680 carry important information for decoding/encoding. Before
2681 decoding/encoding, this information should be set in fields of a
2682 structure of type `coding_system'.
2683
2684 A value of property `coding-system' can be a symbol of another
2685 subsidiary coding-system. In that case, Emacs gets coding-vector
2686 from that symbol.
2687
2688 `element[0]' contains information to be set in `coding->type'. The
2689 value and its meaning is as follows:
2690
0ef69138
KH
2691 0 -- coding_type_emacs_mule
2692 1 -- coding_type_sjis
2693 2 -- coding_type_iso2022
2694 3 -- coding_type_big5
2695 4 -- coding_type_ccl encoder/decoder written in CCL
2696 nil -- coding_type_no_conversion
2697 t -- coding_type_undecided (automatic conversion on decoding,
2698 no-conversion on encoding)
4ed46869
KH
2699
2700 `element[4]' contains information to be set in `coding->flags' and
2701 `coding->spec'. The meaning varies by `coding->type'.
2702
2703 If `coding->type' is `coding_type_iso2022', element[4] is a vector
2704 of length 32 (of which the first 13 sub-elements are used now).
2705 Meanings of these sub-elements are:
2706
2707 sub-element[N] where N is 0 through 3: to be set in `coding->spec.iso2022'
2708 If the value is an integer of valid charset, the charset is
2709 assumed to be designated to graphic register N initially.
2710
2711 If the value is minus, it is a minus value of charset which
2712 reserves graphic register N, which means that the charset is
2713 not designated initially but should be designated to graphic
2714 register N just before encoding a character in that charset.
2715
2716 If the value is nil, graphic register N is never used on
2717 encoding.
2718
2719 sub-element[N] where N is 4 through 11: to be set in `coding->flags'
2720 Each value takes t or nil. See the section ISO2022 of
2721 `coding.h' for more information.
2722
2723 If `coding->type' is `coding_type_big5', element[4] is t to denote
2724 BIG5-ETen or nil to denote BIG5-HKU.
2725
2726 If `coding->type' takes the other value, element[4] is ignored.
2727
2728 Emacs Lisp's coding system also carries information about format of
2729 end-of-line in a value of property `eol-type'. If the value is
2730 integer, 0 means CODING_EOL_LF, 1 means CODING_EOL_CRLF, and 2
2731 means CODING_EOL_CR. If it is not integer, it should be a vector
2732 of subsidiary coding systems of which property `eol-type' has one
2733 of above values.
2734
2735*/
2736
2737/* Extract information for decoding/encoding from CODING_SYSTEM_SYMBOL
2738 and set it in CODING. If CODING_SYSTEM_SYMBOL is invalid, CODING
2739 is setup so that no conversion is necessary and return -1, else
2740 return 0. */
2741
2742int
e0e989f6
KH
2743setup_coding_system (coding_system, coding)
2744 Lisp_Object coding_system;
4ed46869
KH
2745 struct coding_system *coding;
2746{
d46c5b12 2747 Lisp_Object coding_spec, coding_type, eol_type, plist;
4608c386 2748 Lisp_Object val;
70c22245 2749 int i;
4ed46869 2750
d46c5b12 2751 /* Initialize some fields required for all kinds of coding systems. */
774324d6 2752 coding->symbol = coding_system;
d46c5b12
KH
2753 coding->common_flags = 0;
2754 coding->mode = 0;
2755 coding->heading_ascii = -1;
2756 coding->post_read_conversion = coding->pre_write_conversion = Qnil;
4608c386
KH
2757 coding_spec = Fget (coding_system, Qcoding_system);
2758 if (!VECTORP (coding_spec)
2759 || XVECTOR (coding_spec)->size != 5
2760 || !CONSP (XVECTOR (coding_spec)->contents[3]))
4ed46869 2761 goto label_invalid_coding_system;
4608c386 2762
d46c5b12
KH
2763 eol_type = inhibit_eol_conversion ? Qnil : Fget (coding_system, Qeol_type);
2764 if (VECTORP (eol_type))
2765 {
2766 coding->eol_type = CODING_EOL_UNDECIDED;
2767 coding->common_flags = CODING_REQUIRE_DETECTION_MASK;
2768 }
2769 else if (XFASTINT (eol_type) == 1)
2770 {
2771 coding->eol_type = CODING_EOL_CRLF;
2772 coding->common_flags
2773 = CODING_REQUIRE_DECODING_MASK | CODING_REQUIRE_ENCODING_MASK;
2774 }
2775 else if (XFASTINT (eol_type) == 2)
2776 {
2777 coding->eol_type = CODING_EOL_CR;
2778 coding->common_flags
2779 = CODING_REQUIRE_DECODING_MASK | CODING_REQUIRE_ENCODING_MASK;
2780 }
2781 else
2782 coding->eol_type = CODING_EOL_LF;
2783
2784 coding_type = XVECTOR (coding_spec)->contents[0];
2785 /* Try short cut. */
2786 if (SYMBOLP (coding_type))
2787 {
2788 if (EQ (coding_type, Qt))
2789 {
2790 coding->type = coding_type_undecided;
2791 coding->common_flags |= CODING_REQUIRE_DETECTION_MASK;
2792 }
2793 else
2794 coding->type = coding_type_no_conversion;
2795 return 0;
2796 }
2797
2798 /* Initialize remaining fields. */
2799 coding->composing = 0;
f967223b
KH
2800 coding->translation_table_for_decode = Qnil;
2801 coding->translation_table_for_encode = Qnil;
d46c5b12
KH
2802
2803 /* Get values of coding system properties:
2804 `post-read-conversion', `pre-write-conversion',
f967223b 2805 `translation-table-for-decode', `translation-table-for-encode'. */
4608c386
KH
2806 plist = XVECTOR (coding_spec)->contents[3];
2807 coding->post_read_conversion = Fplist_get (plist, Qpost_read_conversion);
2808 coding->pre_write_conversion = Fplist_get (plist, Qpre_write_conversion);
f967223b 2809 val = Fplist_get (plist, Qtranslation_table_for_decode);
4608c386 2810 if (SYMBOLP (val))
f967223b
KH
2811 val = Fget (val, Qtranslation_table_for_decode);
2812 coding->translation_table_for_decode = CHAR_TABLE_P (val) ? val : Qnil;
2813 val = Fplist_get (plist, Qtranslation_table_for_encode);
4608c386 2814 if (SYMBOLP (val))
f967223b
KH
2815 val = Fget (val, Qtranslation_table_for_encode);
2816 coding->translation_table_for_encode = CHAR_TABLE_P (val) ? val : Qnil;
d46c5b12
KH
2817 val = Fplist_get (plist, Qcoding_category);
2818 if (!NILP (val))
2819 {
2820 val = Fget (val, Qcoding_category_index);
2821 if (INTEGERP (val))
2822 coding->category_idx = XINT (val);
2823 else
2824 goto label_invalid_coding_system;
2825 }
2826 else
2827 goto label_invalid_coding_system;
4608c386 2828
70c22245
KH
2829 val = Fplist_get (plist, Qsafe_charsets);
2830 if (EQ (val, Qt))
2831 {
2832 for (i = 0; i <= MAX_CHARSET; i++)
2833 coding->safe_charsets[i] = 1;
2834 }
2835 else
2836 {
2837 bzero (coding->safe_charsets, MAX_CHARSET + 1);
2838 while (CONSP (val))
2839 {
2840 if ((i = get_charset_id (XCONS (val)->car)) >= 0)
2841 coding->safe_charsets[i] = 1;
2842 val = XCONS (val)->cdr;
2843 }
2844 }
2845
d46c5b12 2846 switch (XFASTINT (coding_type))
4ed46869
KH
2847 {
2848 case 0:
0ef69138 2849 coding->type = coding_type_emacs_mule;
c952af22
KH
2850 if (!NILP (coding->post_read_conversion))
2851 coding->common_flags |= CODING_REQUIRE_DECODING_MASK;
2852 if (!NILP (coding->pre_write_conversion))
2853 coding->common_flags |= CODING_REQUIRE_ENCODING_MASK;
4ed46869
KH
2854 break;
2855
2856 case 1:
2857 coding->type = coding_type_sjis;
c952af22
KH
2858 coding->common_flags
2859 |= CODING_REQUIRE_DECODING_MASK | CODING_REQUIRE_ENCODING_MASK;
4ed46869
KH
2860 break;
2861
2862 case 2:
2863 coding->type = coding_type_iso2022;
c952af22
KH
2864 coding->common_flags
2865 |= CODING_REQUIRE_DECODING_MASK | CODING_REQUIRE_ENCODING_MASK;
4ed46869 2866 {
70c22245 2867 Lisp_Object val, temp;
4ed46869 2868 Lisp_Object *flags;
d46c5b12 2869 int i, charset, reg_bits = 0;
4ed46869 2870
4608c386 2871 val = XVECTOR (coding_spec)->contents[4];
f44d27ce 2872
4ed46869
KH
2873 if (!VECTORP (val) || XVECTOR (val)->size != 32)
2874 goto label_invalid_coding_system;
2875
2876 flags = XVECTOR (val)->contents;
2877 coding->flags
2878 = ((NILP (flags[4]) ? 0 : CODING_FLAG_ISO_SHORT_FORM)
2879 | (NILP (flags[5]) ? 0 : CODING_FLAG_ISO_RESET_AT_EOL)
2880 | (NILP (flags[6]) ? 0 : CODING_FLAG_ISO_RESET_AT_CNTL)
2881 | (NILP (flags[7]) ? 0 : CODING_FLAG_ISO_SEVEN_BITS)
2882 | (NILP (flags[8]) ? 0 : CODING_FLAG_ISO_LOCKING_SHIFT)
2883 | (NILP (flags[9]) ? 0 : CODING_FLAG_ISO_SINGLE_SHIFT)
2884 | (NILP (flags[10]) ? 0 : CODING_FLAG_ISO_USE_ROMAN)
2885 | (NILP (flags[11]) ? 0 : CODING_FLAG_ISO_USE_OLDJIS)
e0e989f6
KH
2886 | (NILP (flags[12]) ? 0 : CODING_FLAG_ISO_NO_DIRECTION)
2887 | (NILP (flags[13]) ? 0 : CODING_FLAG_ISO_INIT_AT_BOL)
c4825358
KH
2888 | (NILP (flags[14]) ? 0 : CODING_FLAG_ISO_DESIGNATE_AT_BOL)
2889 | (NILP (flags[15]) ? 0 : CODING_FLAG_ISO_SAFE)
3f003981 2890 | (NILP (flags[16]) ? 0 : CODING_FLAG_ISO_LATIN_EXTRA)
c4825358 2891 );
4ed46869
KH
2892
2893 /* Invoke graphic register 0 to plane 0. */
2894 CODING_SPEC_ISO_INVOCATION (coding, 0) = 0;
2895 /* Invoke graphic register 1 to plane 1 if we can use full 8-bit. */
2896 CODING_SPEC_ISO_INVOCATION (coding, 1)
2897 = (coding->flags & CODING_FLAG_ISO_SEVEN_BITS ? -1 : 1);
2898 /* Not single shifting at first. */
6e85d753 2899 CODING_SPEC_ISO_SINGLE_SHIFTING (coding) = 0;
e0e989f6 2900 /* Beginning of buffer should also be regarded as bol. */
6e85d753 2901 CODING_SPEC_ISO_BOL (coding) = 1;
4ed46869 2902
70c22245
KH
2903 for (charset = 0; charset <= MAX_CHARSET; charset++)
2904 CODING_SPEC_ISO_REVISION_NUMBER (coding, charset) = 255;
2905 val = Vcharset_revision_alist;
2906 while (CONSP (val))
2907 {
2908 charset = get_charset_id (Fcar_safe (XCONS (val)->car));
2909 if (charset >= 0
2910 && (temp = Fcdr_safe (XCONS (val)->car), INTEGERP (temp))
2911 && (i = XINT (temp), (i >= 0 && (i + '@') < 128)))
2912 CODING_SPEC_ISO_REVISION_NUMBER (coding, charset) = i;
2913 val = XCONS (val)->cdr;
2914 }
2915
4ed46869
KH
2916 /* Checks FLAGS[REG] (REG = 0, 1, 2 3) and decide designations.
2917 FLAGS[REG] can be one of below:
2918 integer CHARSET: CHARSET occupies register I,
2919 t: designate nothing to REG initially, but can be used
2920 by any charsets,
2921 list of integer, nil, or t: designate the first
2922 element (if integer) to REG initially, the remaining
2923 elements (if integer) is designated to REG on request,
d46c5b12 2924 if an element is t, REG can be used by any charsets,
4ed46869 2925 nil: REG is never used. */
467e7675 2926 for (charset = 0; charset <= MAX_CHARSET; charset++)
1ba9e4ab
KH
2927 CODING_SPEC_ISO_REQUESTED_DESIGNATION (coding, charset)
2928 = CODING_SPEC_ISO_NO_REQUESTED_DESIGNATION;
4ed46869
KH
2929 for (i = 0; i < 4; i++)
2930 {
2931 if (INTEGERP (flags[i])
e0e989f6
KH
2932 && (charset = XINT (flags[i]), CHARSET_VALID_P (charset))
2933 || (charset = get_charset_id (flags[i])) >= 0)
4ed46869
KH
2934 {
2935 CODING_SPEC_ISO_INITIAL_DESIGNATION (coding, i) = charset;
2936 CODING_SPEC_ISO_REQUESTED_DESIGNATION (coding, charset) = i;
2937 }
2938 else if (EQ (flags[i], Qt))
2939 {
2940 CODING_SPEC_ISO_INITIAL_DESIGNATION (coding, i) = -1;
d46c5b12
KH
2941 reg_bits |= 1 << i;
2942 coding->flags |= CODING_FLAG_ISO_DESIGNATION;
4ed46869
KH
2943 }
2944 else if (CONSP (flags[i]))
2945 {
2946 Lisp_Object tail = flags[i];
2947
d46c5b12 2948 coding->flags |= CODING_FLAG_ISO_DESIGNATION;
4ed46869
KH
2949 if (INTEGERP (XCONS (tail)->car)
2950 && (charset = XINT (XCONS (tail)->car),
e0e989f6
KH
2951 CHARSET_VALID_P (charset))
2952 || (charset = get_charset_id (XCONS (tail)->car)) >= 0)
4ed46869
KH
2953 {
2954 CODING_SPEC_ISO_INITIAL_DESIGNATION (coding, i) = charset;
2955 CODING_SPEC_ISO_REQUESTED_DESIGNATION (coding, charset) =i;
2956 }
2957 else
2958 CODING_SPEC_ISO_INITIAL_DESIGNATION (coding, i) = -1;
2959 tail = XCONS (tail)->cdr;
2960 while (CONSP (tail))
2961 {
2962 if (INTEGERP (XCONS (tail)->car)
2963 && (charset = XINT (XCONS (tail)->car),
e0e989f6
KH
2964 CHARSET_VALID_P (charset))
2965 || (charset = get_charset_id (XCONS (tail)->car)) >= 0)
70c22245
KH
2966 CODING_SPEC_ISO_REQUESTED_DESIGNATION (coding, charset)
2967 = i;
4ed46869 2968 else if (EQ (XCONS (tail)->car, Qt))
d46c5b12 2969 reg_bits |= 1 << i;
4ed46869
KH
2970 tail = XCONS (tail)->cdr;
2971 }
2972 }
2973 else
2974 CODING_SPEC_ISO_INITIAL_DESIGNATION (coding, i) = -1;
2975
2976 CODING_SPEC_ISO_DESIGNATION (coding, i)
2977 = CODING_SPEC_ISO_INITIAL_DESIGNATION (coding, i);
2978 }
2979
d46c5b12 2980 if (reg_bits && ! (coding->flags & CODING_FLAG_ISO_LOCKING_SHIFT))
4ed46869
KH
2981 {
2982 /* REG 1 can be used only by locking shift in 7-bit env. */
2983 if (coding->flags & CODING_FLAG_ISO_SEVEN_BITS)
d46c5b12 2984 reg_bits &= ~2;
4ed46869
KH
2985 if (! (coding->flags & CODING_FLAG_ISO_SINGLE_SHIFT))
2986 /* Without any shifting, only REG 0 and 1 can be used. */
d46c5b12 2987 reg_bits &= 3;
4ed46869
KH
2988 }
2989
d46c5b12
KH
2990 if (reg_bits)
2991 for (charset = 0; charset <= MAX_CHARSET; charset++)
6e85d753 2992 {
d46c5b12
KH
2993 if (CHARSET_VALID_P (charset))
2994 {
2995 /* There exist some default graphic registers to be
2996 used CHARSET. */
2997
2998 /* We had better avoid designating a charset of
2999 CHARS96 to REG 0 as far as possible. */
3000 if (CHARSET_CHARS (charset) == 96)
3001 CODING_SPEC_ISO_REQUESTED_DESIGNATION (coding, charset)
3002 = (reg_bits & 2
3003 ? 1 : (reg_bits & 4 ? 2 : (reg_bits & 8 ? 3 : 0)));
3004 else
3005 CODING_SPEC_ISO_REQUESTED_DESIGNATION (coding, charset)
3006 = (reg_bits & 1
3007 ? 0 : (reg_bits & 2 ? 1 : (reg_bits & 4 ? 2 : 3)));
3008 }
6e85d753 3009 }
4ed46869 3010 }
c952af22 3011 coding->common_flags |= CODING_REQUIRE_FLUSHING_MASK;
d46c5b12 3012 coding->spec.iso2022.last_invalid_designation_register = -1;
4ed46869
KH
3013 break;
3014
3015 case 3:
3016 coding->type = coding_type_big5;
c952af22
KH
3017 coding->common_flags
3018 |= CODING_REQUIRE_DECODING_MASK | CODING_REQUIRE_ENCODING_MASK;
4ed46869 3019 coding->flags
4608c386 3020 = (NILP (XVECTOR (coding_spec)->contents[4])
4ed46869
KH
3021 ? CODING_FLAG_BIG5_HKU
3022 : CODING_FLAG_BIG5_ETEN);
3023 break;
3024
3025 case 4:
3026 coding->type = coding_type_ccl;
c952af22
KH
3027 coding->common_flags
3028 |= CODING_REQUIRE_DECODING_MASK | CODING_REQUIRE_ENCODING_MASK;
4ed46869 3029 {
4608c386 3030 Lisp_Object val = XVECTOR (coding_spec)->contents[4];
d21ca14d
KH
3031 Lisp_Object decoder, encoder;
3032
4ed46869 3033 if (CONSP (val)
d21ca14d
KH
3034 && SYMBOLP (XCONS (val)->car)
3035 && !NILP (decoder = Fget (XCONS (val)->car, Qccl_program_idx))
f82423d7 3036 && !NILP (decoder = Fcdr (Faref (Vccl_program_table, decoder)))
d21ca14d
KH
3037 && SYMBOLP (XCONS (val)->cdr)
3038 && !NILP (encoder = Fget (XCONS (val)->cdr, Qccl_program_idx))
f82423d7 3039 && !NILP (encoder = Fcdr (Faref (Vccl_program_table, encoder))))
4ed46869 3040 {
d21ca14d
KH
3041 setup_ccl_program (&(coding->spec.ccl.decoder), decoder);
3042 setup_ccl_program (&(coding->spec.ccl.encoder), encoder);
4ed46869
KH
3043 }
3044 else
3045 goto label_invalid_coding_system;
3046 }
c952af22 3047 coding->common_flags |= CODING_REQUIRE_FLUSHING_MASK;
4ed46869
KH
3048 break;
3049
27901516
KH
3050 case 5:
3051 coding->type = coding_type_raw_text;
3052 break;
3053
4ed46869 3054 default:
d46c5b12 3055 goto label_invalid_coding_system;
4ed46869
KH
3056 }
3057 return 0;
3058
3059 label_invalid_coding_system:
3060 coding->type = coding_type_no_conversion;
d46c5b12 3061 coding->category_idx = CODING_CATEGORY_IDX_BINARY;
c952af22 3062 coding->common_flags = 0;
dec137e5 3063 coding->eol_type = CODING_EOL_LF;
d46c5b12 3064 coding->pre_write_conversion = coding->post_read_conversion = Qnil;
4ed46869
KH
3065 return -1;
3066}
3067
54f78171
KH
3068/* Setup raw-text or one of its subsidiaries in the structure
3069 coding_system CODING according to the already setup value eol_type
3070 in CODING. CODING should be setup for some coding system in
3071 advance. */
3072
3073void
3074setup_raw_text_coding_system (coding)
3075 struct coding_system *coding;
3076{
3077 if (coding->type != coding_type_raw_text)
3078 {
3079 coding->symbol = Qraw_text;
3080 coding->type = coding_type_raw_text;
3081 if (coding->eol_type != CODING_EOL_UNDECIDED)
3082 {
3083 Lisp_Object subsidiaries = Fget (Qraw_text, Qeol_type);
3084
3085 if (VECTORP (subsidiaries)
3086 && XVECTOR (subsidiaries)->size == 3)
3087 coding->symbol
3088 = XVECTOR (subsidiaries)->contents[coding->eol_type];
3089 }
3090 }
3091 return;
3092}
3093
4ed46869
KH
3094/* Emacs has a mechanism to automatically detect a coding system if it
3095 is one of Emacs' internal format, ISO2022, SJIS, and BIG5. But,
3096 it's impossible to distinguish some coding systems accurately
3097 because they use the same range of codes. So, at first, coding
3098 systems are categorized into 7, those are:
3099
0ef69138 3100 o coding-category-emacs-mule
4ed46869
KH
3101
3102 The category for a coding system which has the same code range
3103 as Emacs' internal format. Assigned the coding-system (Lisp
0ef69138 3104 symbol) `emacs-mule' by default.
4ed46869
KH
3105
3106 o coding-category-sjis
3107
3108 The category for a coding system which has the same code range
3109 as SJIS. Assigned the coding-system (Lisp
7717c392 3110 symbol) `japanese-shift-jis' by default.
4ed46869
KH
3111
3112 o coding-category-iso-7
3113
3114 The category for a coding system which has the same code range
7717c392 3115 as ISO2022 of 7-bit environment. This doesn't use any locking
d46c5b12
KH
3116 shift and single shift functions. This can encode/decode all
3117 charsets. Assigned the coding-system (Lisp symbol)
3118 `iso-2022-7bit' by default.
3119
3120 o coding-category-iso-7-tight
3121
3122 Same as coding-category-iso-7 except that this can
3123 encode/decode only the specified charsets.
4ed46869
KH
3124
3125 o coding-category-iso-8-1
3126
3127 The category for a coding system which has the same code range
3128 as ISO2022 of 8-bit environment and graphic plane 1 used only
7717c392
KH
3129 for DIMENSION1 charset. This doesn't use any locking shift
3130 and single shift functions. Assigned the coding-system (Lisp
3131 symbol) `iso-latin-1' by default.
4ed46869
KH
3132
3133 o coding-category-iso-8-2
3134
3135 The category for a coding system which has the same code range
3136 as ISO2022 of 8-bit environment and graphic plane 1 used only
7717c392
KH
3137 for DIMENSION2 charset. This doesn't use any locking shift
3138 and single shift functions. Assigned the coding-system (Lisp
3139 symbol) `japanese-iso-8bit' by default.
4ed46869 3140
7717c392 3141 o coding-category-iso-7-else
4ed46869
KH
3142
3143 The category for a coding system which has the same code range
7717c392
KH
3144 as ISO2022 of 7-bit environemnt but uses locking shift or
3145 single shift functions. Assigned the coding-system (Lisp
3146 symbol) `iso-2022-7bit-lock' by default.
3147
3148 o coding-category-iso-8-else
3149
3150 The category for a coding system which has the same code range
3151 as ISO2022 of 8-bit environemnt but uses locking shift or
3152 single shift functions. Assigned the coding-system (Lisp
3153 symbol) `iso-2022-8bit-ss2' by default.
4ed46869
KH
3154
3155 o coding-category-big5
3156
3157 The category for a coding system which has the same code range
3158 as BIG5. Assigned the coding-system (Lisp symbol)
e0e989f6 3159 `cn-big5' by default.
4ed46869
KH
3160
3161 o coding-category-binary
3162
3163 The category for a coding system not categorized in any of the
3164 above. Assigned the coding-system (Lisp symbol)
e0e989f6 3165 `no-conversion' by default.
4ed46869
KH
3166
3167 Each of them is a Lisp symbol and the value is an actual
3168 `coding-system's (this is also a Lisp symbol) assigned by a user.
3169 What Emacs does actually is to detect a category of coding system.
3170 Then, it uses a `coding-system' assigned to it. If Emacs can't
3171 decide only one possible category, it selects a category of the
3172 highest priority. Priorities of categories are also specified by a
3173 user in a Lisp variable `coding-category-list'.
3174
3175*/
3176
66cfb530
KH
3177static
3178int ascii_skip_code[256];
3179
d46c5b12 3180/* Detect how a text of length SRC_BYTES pointed by SOURCE is encoded.
4ed46869
KH
3181 If it detects possible coding systems, return an integer in which
3182 appropriate flag bits are set. Flag bits are defined by macros
d46c5b12 3183 CODING_CATEGORY_MASK_XXX in `coding.h'.
4ed46869 3184
d46c5b12
KH
3185 How many ASCII characters are at the head is returned as *SKIP. */
3186
3187static int
3188detect_coding_mask (source, src_bytes, priorities, skip)
3189 unsigned char *source;
3190 int src_bytes, *priorities, *skip;
4ed46869
KH
3191{
3192 register unsigned char c;
d46c5b12 3193 unsigned char *src = source, *src_end = source + src_bytes;
66cfb530 3194 unsigned int mask;
d46c5b12 3195 int i;
4ed46869
KH
3196
3197 /* At first, skip all ASCII characters and control characters except
3198 for three ISO2022 specific control characters. */
66cfb530
KH
3199 ascii_skip_code[ISO_CODE_SO] = 0;
3200 ascii_skip_code[ISO_CODE_SI] = 0;
3201 ascii_skip_code[ISO_CODE_ESC] = 0;
3202
bcf26d6a 3203 label_loop_detect_coding:
66cfb530 3204 while (src < src_end && ascii_skip_code[*src]) src++;
d46c5b12 3205 *skip = src - source;
4ed46869
KH
3206
3207 if (src >= src_end)
3208 /* We found nothing other than ASCII. There's nothing to do. */
d46c5b12 3209 return 0;
4ed46869 3210
8a8147d6 3211 c = *src;
4ed46869
KH
3212 /* The text seems to be encoded in some multilingual coding system.
3213 Now, try to find in which coding system the text is encoded. */
3214 if (c < 0x80)
bcf26d6a
KH
3215 {
3216 /* i.e. (c == ISO_CODE_ESC || c == ISO_CODE_SI || c == ISO_CODE_SO) */
3217 /* C is an ISO2022 specific control code of C0. */
3218 mask = detect_coding_iso2022 (src, src_end);
1b2af4b0 3219 if (mask == 0)
d46c5b12
KH
3220 {
3221 /* No valid ISO2022 code follows C. Try again. */
3222 src++;
66cfb530
KH
3223 if (c == ISO_CODE_ESC)
3224 ascii_skip_code[ISO_CODE_ESC] = 1;
3225 else
3226 ascii_skip_code[ISO_CODE_SO] = ascii_skip_code[ISO_CODE_SI] = 1;
d46c5b12
KH
3227 goto label_loop_detect_coding;
3228 }
3229 if (priorities)
3230 goto label_return_highest_only;
bcf26d6a 3231 }
d46c5b12 3232 else
c4825358 3233 {
d46c5b12 3234 int try;
4ed46869 3235
d46c5b12
KH
3236 if (c < 0xA0)
3237 {
3238 /* C is the first byte of SJIS character code,
3239 or a leading-code of Emacs' internal format (emacs-mule). */
3240 try = CODING_CATEGORY_MASK_SJIS | CODING_CATEGORY_MASK_EMACS_MULE;
3241
3242 /* Or, if C is a special latin extra code,
3243 or is an ISO2022 specific control code of C1 (SS2 or SS3),
3244 or is an ISO2022 control-sequence-introducer (CSI),
3245 we should also consider the possibility of ISO2022 codings. */
3246 if ((VECTORP (Vlatin_extra_code_table)
3247 && !NILP (XVECTOR (Vlatin_extra_code_table)->contents[c]))
3248 || (c == ISO_CODE_SS2 || c == ISO_CODE_SS3)
3249 || (c == ISO_CODE_CSI
3250 && (src < src_end
3251 && (*src == ']'
3252 || ((*src == '0' || *src == '1' || *src == '2')
3253 && src + 1 < src_end
3254 && src[1] == ']')))))
3255 try |= (CODING_CATEGORY_MASK_ISO_8_ELSE
3256 | CODING_CATEGORY_MASK_ISO_8BIT);
3257 }
c4825358 3258 else
d46c5b12
KH
3259 /* C is a character of ISO2022 in graphic plane right,
3260 or a SJIS's 1-byte character code (i.e. JISX0201),
3261 or the first byte of BIG5's 2-byte code. */
3262 try = (CODING_CATEGORY_MASK_ISO_8_ELSE
3263 | CODING_CATEGORY_MASK_ISO_8BIT
3264 | CODING_CATEGORY_MASK_SJIS
3265 | CODING_CATEGORY_MASK_BIG5);
3266
3267 mask = 0;
3268 if (priorities)
3269 {
3270 for (i = 0; i < CODING_CATEGORY_IDX_MAX; i++)
3271 {
5ab13dd0 3272 if (priorities[i] & try & CODING_CATEGORY_MASK_ISO)
d46c5b12 3273 mask = detect_coding_iso2022 (src, src_end);
5ab13dd0 3274 else if (priorities[i] & try & CODING_CATEGORY_MASK_SJIS)
d46c5b12 3275 mask = detect_coding_sjis (src, src_end);
5ab13dd0 3276 else if (priorities[i] & try & CODING_CATEGORY_MASK_BIG5)
d46c5b12 3277 mask = detect_coding_big5 (src, src_end);
5ab13dd0 3278 else if (priorities[i] & try & CODING_CATEGORY_MASK_EMACS_MULE)
d46c5b12 3279 mask = detect_coding_emacs_mule (src, src_end);
5ab13dd0
RS
3280 else if (priorities[i] & CODING_CATEGORY_MASK_RAW_TEXT)
3281 mask = CODING_CATEGORY_MASK_RAW_TEXT;
3282 else if (priorities[i] & CODING_CATEGORY_MASK_BINARY)
3283 mask = CODING_CATEGORY_MASK_BINARY;
d46c5b12
KH
3284 if (mask)
3285 goto label_return_highest_only;
3286 }
3287 return CODING_CATEGORY_MASK_RAW_TEXT;
3288 }
3289 if (try & CODING_CATEGORY_MASK_ISO)
3290 mask |= detect_coding_iso2022 (src, src_end);
3291 if (try & CODING_CATEGORY_MASK_SJIS)
3292 mask |= detect_coding_sjis (src, src_end);
3293 if (try & CODING_CATEGORY_MASK_BIG5)
3294 mask |= detect_coding_big5 (src, src_end);
3295 if (try & CODING_CATEGORY_MASK_EMACS_MULE)
3296 mask |= detect_coding_emacs_mule (src, src_end);
c4825358 3297 }
5ab13dd0 3298 return (mask | CODING_CATEGORY_MASK_RAW_TEXT | CODING_CATEGORY_MASK_BINARY);
d46c5b12
KH
3299
3300 label_return_highest_only:
3301 for (i = 0; i < CODING_CATEGORY_IDX_MAX; i++)
3302 {
3303 if (mask & priorities[i])
3304 return priorities[i];
3305 }
3306 return CODING_CATEGORY_MASK_RAW_TEXT;
4ed46869
KH
3307}
3308
3309/* Detect how a text of length SRC_BYTES pointed by SRC is encoded.
3310 The information of the detected coding system is set in CODING. */
3311
3312void
3313detect_coding (coding, src, src_bytes)
3314 struct coding_system *coding;
3315 unsigned char *src;
3316 int src_bytes;
3317{
d46c5b12
KH
3318 unsigned int idx;
3319 int skip, mask, i;
27901516 3320 Lisp_Object val = Vcoding_category_list;
4ed46869 3321
66cfb530 3322 mask = detect_coding_mask (src, src_bytes, coding_priorities, &skip);
d46c5b12 3323 coding->heading_ascii = skip;
4ed46869 3324
d46c5b12
KH
3325 if (!mask) return;
3326
3327 /* We found a single coding system of the highest priority in MASK. */
3328 idx = 0;
3329 while (mask && ! (mask & 1)) mask >>= 1, idx++;
3330 if (! mask)
3331 idx = CODING_CATEGORY_IDX_RAW_TEXT;
4ed46869 3332
d46c5b12
KH
3333 val = XSYMBOL (XVECTOR (Vcoding_category_table)->contents[idx])->value;
3334
3335 if (coding->eol_type != CODING_EOL_UNDECIDED)
27901516 3336 {
d46c5b12
KH
3337 Lisp_Object tmp = Fget (val, Qeol_type);
3338
3339 if (VECTORP (tmp))
3340 val = XVECTOR (tmp)->contents[coding->eol_type];
4ed46869 3341 }
d46c5b12
KH
3342 setup_coding_system (val, coding);
3343 /* Set this again because setup_coding_system reset this member. */
3344 coding->heading_ascii = skip;
4ed46869
KH
3345}
3346
d46c5b12
KH
3347/* Detect how end-of-line of a text of length SRC_BYTES pointed by
3348 SOURCE is encoded. Return one of CODING_EOL_LF, CODING_EOL_CRLF,
3349 CODING_EOL_CR, and CODING_EOL_UNDECIDED.
3350
3351 How many non-eol characters are at the head is returned as *SKIP. */
4ed46869 3352
bc4bc72a
RS
3353#define MAX_EOL_CHECK_COUNT 3
3354
d46c5b12
KH
3355static int
3356detect_eol_type (source, src_bytes, skip)
3357 unsigned char *source;
3358 int src_bytes, *skip;
4ed46869 3359{
d46c5b12 3360 unsigned char *src = source, *src_end = src + src_bytes;
4ed46869 3361 unsigned char c;
bc4bc72a
RS
3362 int total = 0; /* How many end-of-lines are found so far. */
3363 int eol_type = CODING_EOL_UNDECIDED;
3364 int this_eol_type;
4ed46869 3365
d46c5b12
KH
3366 *skip = 0;
3367
bc4bc72a 3368 while (src < src_end && total < MAX_EOL_CHECK_COUNT)
4ed46869
KH
3369 {
3370 c = *src++;
bc4bc72a 3371 if (c == '\n' || c == '\r')
4ed46869 3372 {
d46c5b12
KH
3373 if (*skip == 0)
3374 *skip = src - 1 - source;
bc4bc72a
RS
3375 total++;
3376 if (c == '\n')
3377 this_eol_type = CODING_EOL_LF;
3378 else if (src >= src_end || *src != '\n')
3379 this_eol_type = CODING_EOL_CR;
4ed46869 3380 else
bc4bc72a
RS
3381 this_eol_type = CODING_EOL_CRLF, src++;
3382
3383 if (eol_type == CODING_EOL_UNDECIDED)
3384 /* This is the first end-of-line. */
3385 eol_type = this_eol_type;
3386 else if (eol_type != this_eol_type)
d46c5b12
KH
3387 {
3388 /* The found type is different from what found before. */
3389 eol_type = CODING_EOL_INCONSISTENT;
3390 break;
3391 }
4ed46869
KH
3392 }
3393 }
bc4bc72a 3394
d46c5b12
KH
3395 if (*skip == 0)
3396 *skip = src_end - source;
85a02ca4 3397 return eol_type;
4ed46869
KH
3398}
3399
3400/* Detect how end-of-line of a text of length SRC_BYTES pointed by SRC
3401 is encoded. If it detects an appropriate format of end-of-line, it
3402 sets the information in *CODING. */
3403
3404void
3405detect_eol (coding, src, src_bytes)
3406 struct coding_system *coding;
3407 unsigned char *src;
3408 int src_bytes;
3409{
4608c386 3410 Lisp_Object val;
d46c5b12
KH
3411 int skip;
3412 int eol_type = detect_eol_type (src, src_bytes, &skip);
3413
3414 if (coding->heading_ascii > skip)
3415 coding->heading_ascii = skip;
3416 else
3417 skip = coding->heading_ascii;
4ed46869 3418
0ef69138 3419 if (eol_type == CODING_EOL_UNDECIDED)
4ed46869 3420 return;
27901516
KH
3421 if (eol_type == CODING_EOL_INCONSISTENT)
3422 {
3423#if 0
3424 /* This code is suppressed until we find a better way to
992f23f2 3425 distinguish raw text file and binary file. */
27901516
KH
3426
3427 /* If we have already detected that the coding is raw-text, the
3428 coding should actually be no-conversion. */
3429 if (coding->type == coding_type_raw_text)
3430 {
3431 setup_coding_system (Qno_conversion, coding);
3432 return;
3433 }
3434 /* Else, let's decode only text code anyway. */
3435#endif /* 0 */
1b2af4b0 3436 eol_type = CODING_EOL_LF;
27901516
KH
3437 }
3438
4608c386 3439 val = Fget (coding->symbol, Qeol_type);
4ed46869 3440 if (VECTORP (val) && XVECTOR (val)->size == 3)
d46c5b12
KH
3441 {
3442 setup_coding_system (XVECTOR (val)->contents[eol_type], coding);
3443 coding->heading_ascii = skip;
3444 }
3445}
3446
3447#define CONVERSION_BUFFER_EXTRA_ROOM 256
3448
3449#define DECODING_BUFFER_MAG(coding) \
3450 (coding->type == coding_type_iso2022 \
3451 ? 3 \
3452 : ((coding->type == coding_type_sjis || coding->type == coding_type_big5) \
3453 ? 2 \
3454 : (coding->type == coding_type_raw_text \
3455 ? 1 \
3456 : (coding->type == coding_type_ccl \
3457 ? coding->spec.ccl.decoder.buf_magnification \
3458 : 2))))
3459
3460/* Return maximum size (bytes) of a buffer enough for decoding
3461 SRC_BYTES of text encoded in CODING. */
3462
3463int
3464decoding_buffer_size (coding, src_bytes)
3465 struct coding_system *coding;
3466 int src_bytes;
3467{
3468 return (src_bytes * DECODING_BUFFER_MAG (coding)
3469 + CONVERSION_BUFFER_EXTRA_ROOM);
3470}
3471
3472/* Return maximum size (bytes) of a buffer enough for encoding
3473 SRC_BYTES of text to CODING. */
3474
3475int
3476encoding_buffer_size (coding, src_bytes)
3477 struct coding_system *coding;
3478 int src_bytes;
3479{
3480 int magnification;
3481
3482 if (coding->type == coding_type_ccl)
3483 magnification = coding->spec.ccl.encoder.buf_magnification;
3484 else
3485 magnification = 3;
3486
3487 return (src_bytes * magnification + CONVERSION_BUFFER_EXTRA_ROOM);
3488}
3489
3490#ifndef MINIMUM_CONVERSION_BUFFER_SIZE
3491#define MINIMUM_CONVERSION_BUFFER_SIZE 1024
3492#endif
3493
3494char *conversion_buffer;
3495int conversion_buffer_size;
3496
3497/* Return a pointer to a SIZE bytes of buffer to be used for encoding
3498 or decoding. Sufficient memory is allocated automatically. If we
3499 run out of memory, return NULL. */
3500
3501char *
3502get_conversion_buffer (size)
3503 int size;
3504{
3505 if (size > conversion_buffer_size)
3506 {
3507 char *buf;
3508 int real_size = conversion_buffer_size * 2;
3509
3510 while (real_size < size) real_size *= 2;
3511 buf = (char *) xmalloc (real_size);
3512 xfree (conversion_buffer);
3513 conversion_buffer = buf;
3514 conversion_buffer_size = real_size;
3515 }
3516 return conversion_buffer;
3517}
3518
3519int
3520ccl_coding_driver (coding, source, destination, src_bytes, dst_bytes, encodep)
3521 struct coding_system *coding;
3522 unsigned char *source, *destination;
3523 int src_bytes, dst_bytes, encodep;
3524{
3525 struct ccl_program *ccl
3526 = encodep ? &coding->spec.ccl.encoder : &coding->spec.ccl.decoder;
3527 int result;
3528
3529 coding->produced = ccl_driver (ccl, source, destination,
3530 src_bytes, dst_bytes, &(coding->consumed));
3531 if (encodep)
3532 {
3533 coding->produced_char = coding->produced;
3534 coding->consumed_char
3535 = multibyte_chars_in_text (source, coding->consumed);
3536 }
3537 else
3538 {
3539 coding->produced_char
3540 = multibyte_chars_in_text (destination, coding->produced);
3541 coding->consumed_char = coding->consumed;
3542 }
3543 switch (ccl->status)
3544 {
3545 case CCL_STAT_SUSPEND_BY_SRC:
3546 result = CODING_FINISH_INSUFFICIENT_SRC;
3547 break;
3548 case CCL_STAT_SUSPEND_BY_DST:
3549 result = CODING_FINISH_INSUFFICIENT_DST;
3550 break;
3551 default:
3552 result = CODING_FINISH_NORMAL;
3553 break;
3554 }
3555 return result;
4ed46869
KH
3556}
3557
3558/* See "GENERAL NOTES about `decode_coding_XXX ()' functions". Before
3559 decoding, it may detect coding system and format of end-of-line if
3560 those are not yet decided. */
3561
3562int
d46c5b12 3563decode_coding (coding, source, destination, src_bytes, dst_bytes)
4ed46869
KH
3564 struct coding_system *coding;
3565 unsigned char *source, *destination;
3566 int src_bytes, dst_bytes;
4ed46869 3567{
d46c5b12 3568 int result;
4ed46869
KH
3569
3570 if (src_bytes <= 0)
3571 {
d46c5b12
KH
3572 coding->produced = coding->produced_char = 0;
3573 coding->consumed = coding->consumed_char = 0;
fb88bf2d 3574 coding->fake_multibyte = 0;
d46c5b12 3575 return CODING_FINISH_NORMAL;
4ed46869
KH
3576 }
3577
0ef69138 3578 if (coding->type == coding_type_undecided)
4ed46869
KH
3579 detect_coding (coding, source, src_bytes);
3580
0ef69138 3581 if (coding->eol_type == CODING_EOL_UNDECIDED)
4ed46869
KH
3582 detect_eol (coding, source, src_bytes);
3583
4ed46869
KH
3584 switch (coding->type)
3585 {
0ef69138
KH
3586 case coding_type_emacs_mule:
3587 case coding_type_undecided:
27901516 3588 case coding_type_raw_text:
4ed46869 3589 if (coding->eol_type == CODING_EOL_LF
0ef69138 3590 || coding->eol_type == CODING_EOL_UNDECIDED)
4ed46869 3591 goto label_no_conversion;
d46c5b12 3592 result = decode_eol (coding, source, destination, src_bytes, dst_bytes);
4ed46869
KH
3593 break;
3594
3595 case coding_type_sjis:
d46c5b12
KH
3596 result = decode_coding_sjis_big5 (coding, source, destination,
3597 src_bytes, dst_bytes, 1);
4ed46869
KH
3598 break;
3599
3600 case coding_type_iso2022:
d46c5b12
KH
3601 result = decode_coding_iso2022 (coding, source, destination,
3602 src_bytes, dst_bytes);
4ed46869
KH
3603 break;
3604
3605 case coding_type_big5:
d46c5b12
KH
3606 result = decode_coding_sjis_big5 (coding, source, destination,
3607 src_bytes, dst_bytes, 0);
4ed46869
KH
3608 break;
3609
3610 case coding_type_ccl:
d46c5b12
KH
3611 result = ccl_coding_driver (coding, source, destination,
3612 src_bytes, dst_bytes, 0);
3613 break;
3614
3615 default: /* i.e. case coding_type_no_conversion: */
3616 label_no_conversion:
3617 if (dst_bytes && src_bytes > dst_bytes)
3618 {
3619 coding->produced = dst_bytes;
3620 result = CODING_FINISH_INSUFFICIENT_DST;
3621 }
3622 else
3623 {
3624 coding->produced = src_bytes;
3625 result = CODING_FINISH_NORMAL;
3626 }
3627 if (dst_bytes)
3628 bcopy (source, destination, coding->produced);
3629 else
3630 safe_bcopy (source, destination, coding->produced);
fb88bf2d 3631 coding->fake_multibyte = 1;
d46c5b12
KH
3632 coding->consumed
3633 = coding->consumed_char = coding->produced_char = coding->produced;
4ed46869
KH
3634 break;
3635 }
3636
d46c5b12 3637 return result;
4ed46869
KH
3638}
3639
3640/* See "GENERAL NOTES about `encode_coding_XXX ()' functions". */
3641
3642int
d46c5b12 3643encode_coding (coding, source, destination, src_bytes, dst_bytes)
4ed46869
KH
3644 struct coding_system *coding;
3645 unsigned char *source, *destination;
3646 int src_bytes, dst_bytes;
4ed46869 3647{
d46c5b12 3648 int result;
4ed46869 3649
d46c5b12 3650 if (src_bytes <= 0)
4ed46869 3651 {
d46c5b12
KH
3652 coding->produced = coding->produced_char = 0;
3653 coding->consumed = coding->consumed_char = 0;
fb88bf2d 3654 coding->fake_multibyte = 0;
d46c5b12
KH
3655 return CODING_FINISH_NORMAL;
3656 }
4ed46869 3657
d46c5b12
KH
3658 switch (coding->type)
3659 {
0ef69138
KH
3660 case coding_type_emacs_mule:
3661 case coding_type_undecided:
27901516 3662 case coding_type_raw_text:
4ed46869 3663 if (coding->eol_type == CODING_EOL_LF
0ef69138 3664 || coding->eol_type == CODING_EOL_UNDECIDED)
4ed46869 3665 goto label_no_conversion;
d46c5b12 3666 result = encode_eol (coding, source, destination, src_bytes, dst_bytes);
4ed46869
KH
3667 break;
3668
3669 case coding_type_sjis:
d46c5b12
KH
3670 result = encode_coding_sjis_big5 (coding, source, destination,
3671 src_bytes, dst_bytes, 1);
4ed46869
KH
3672 break;
3673
3674 case coding_type_iso2022:
d46c5b12
KH
3675 result = encode_coding_iso2022 (coding, source, destination,
3676 src_bytes, dst_bytes);
4ed46869
KH
3677 break;
3678
3679 case coding_type_big5:
d46c5b12
KH
3680 result = encode_coding_sjis_big5 (coding, source, destination,
3681 src_bytes, dst_bytes, 0);
4ed46869
KH
3682 break;
3683
3684 case coding_type_ccl:
d46c5b12
KH
3685 result = ccl_coding_driver (coding, source, destination,
3686 src_bytes, dst_bytes, 1);
3687 break;
3688
3689 default: /* i.e. case coding_type_no_conversion: */
3690 label_no_conversion:
3691 if (dst_bytes && src_bytes > dst_bytes)
3692 {
3693 coding->produced = dst_bytes;
3694 result = CODING_FINISH_INSUFFICIENT_DST;
3695 }
3696 else
3697 {
3698 coding->produced = src_bytes;
3699 result = CODING_FINISH_NORMAL;
3700 }
3701 if (dst_bytes)
3702 bcopy (source, destination, coding->produced);
3703 else
3704 safe_bcopy (source, destination, coding->produced);
3705 if (coding->mode & CODING_MODE_SELECTIVE_DISPLAY)
3706 {
3707 unsigned char *p = destination, *pend = p + coding->produced;
3708 while (p < pend)
3709 if (*p++ == '\015') p[-1] = '\n';
3710 }
fb88bf2d 3711 coding->fake_multibyte = 1;
d46c5b12
KH
3712 coding->consumed
3713 = coding->consumed_char = coding->produced_char = coding->produced;
4ed46869
KH
3714 break;
3715 }
3716
d46c5b12 3717 return result;
4ed46869
KH
3718}
3719
fb88bf2d
KH
3720/* Scan text in the region between *BEG and *END (byte positions),
3721 skip characters which we don't have to decode by coding system
3722 CODING at the head and tail, then set *BEG and *END to the region
3723 of the text we actually have to convert. The caller should move
3724 the gap out of the region in advance.
4ed46869 3725
d46c5b12
KH
3726 If STR is not NULL, *BEG and *END are indices into STR. */
3727
3728static void
3729shrink_decoding_region (beg, end, coding, str)
3730 int *beg, *end;
3731 struct coding_system *coding;
3732 unsigned char *str;
3733{
fb88bf2d 3734 unsigned char *begp_orig, *begp, *endp_orig, *endp, c;
d46c5b12
KH
3735 int eol_conversion;
3736
3737 if (coding->type == coding_type_ccl
3738 || coding->type == coding_type_undecided
3739 || !NILP (coding->post_read_conversion))
3740 {
3741 /* We can't skip any data. */
3742 return;
3743 }
3744 else if (coding->type == coding_type_no_conversion)
3745 {
fb88bf2d
KH
3746 /* We need no conversion, but don't have to skip any data here.
3747 Decoding routine handles them effectively anyway. */
d46c5b12
KH
3748 return;
3749 }
3750
aa60dea6
KH
3751 eol_conversion = (coding->eol_type != CODING_EOL_LF);
3752
3753 if ((! eol_conversion) && (coding->heading_ascii >= 0))
d46c5b12
KH
3754 /* Detection routine has already found how much we can skip at the
3755 head. */
3756 *beg += coding->heading_ascii;
3757
3758 if (str)
3759 {
3760 begp_orig = begp = str + *beg;
3761 endp_orig = endp = str + *end;
3762 }
3763 else
3764 {
fb88bf2d 3765 begp_orig = begp = BYTE_POS_ADDR (*beg);
d46c5b12
KH
3766 endp_orig = endp = begp + *end - *beg;
3767 }
3768
d46c5b12
KH
3769 switch (coding->type)
3770 {
3771 case coding_type_emacs_mule:
3772 case coding_type_raw_text:
3773 if (eol_conversion)
3774 {
3775 if (coding->heading_ascii < 0)
fb88bf2d 3776 while (begp < endp && *begp != '\r' && *begp < 0x80) begp++;
ee59c65f 3777 while (begp < endp && endp[-1] != '\r' && endp[-1] < 0x80)
fb88bf2d 3778 endp--;
ee59c65f
RS
3779 /* Do not consider LF as ascii if preceded by CR, since that
3780 confuses eol decoding. */
3781 if (begp < endp && endp < endp_orig && endp[-1] == '\r' && endp[0] == '\n')
3782 endp++;
d46c5b12
KH
3783 }
3784 else
3785 begp = endp;
3786 break;
3787
3788 case coding_type_sjis:
3789 case coding_type_big5:
3790 /* We can skip all ASCII characters at the head. */
3791 if (coding->heading_ascii < 0)
3792 {
3793 if (eol_conversion)
de9d083c 3794 while (begp < endp && *begp < 0x80 && *begp != '\r') begp++;
d46c5b12
KH
3795 else
3796 while (begp < endp && *begp < 0x80) begp++;
3797 }
3798 /* We can skip all ASCII characters at the tail except for the
3799 second byte of SJIS or BIG5 code. */
3800 if (eol_conversion)
de9d083c 3801 while (begp < endp && endp[-1] < 0x80 && endp[-1] != '\r') endp--;
d46c5b12
KH
3802 else
3803 while (begp < endp && endp[-1] < 0x80) endp--;
ee59c65f
RS
3804 /* Do not consider LF as ascii if preceded by CR, since that
3805 confuses eol decoding. */
3806 if (begp < endp && endp < endp_orig && endp[-1] == '\r' && endp[0] == '\n')
3807 endp++;
d46c5b12
KH
3808 if (begp < endp && endp < endp_orig && endp[-1] >= 0x80)
3809 endp++;
3810 break;
3811
3812 default: /* i.e. case coding_type_iso2022: */
3813 if (coding->heading_ascii < 0)
3814 {
d46c5b12
KH
3815 /* We can skip all ASCII characters at the head except for a
3816 few control codes. */
3817 while (begp < endp && (c = *begp) < 0x80
3818 && c != ISO_CODE_CR && c != ISO_CODE_SO
3819 && c != ISO_CODE_SI && c != ISO_CODE_ESC
3820 && (!eol_conversion || c != ISO_CODE_LF))
3821 begp++;
3822 }
3823 switch (coding->category_idx)
3824 {
3825 case CODING_CATEGORY_IDX_ISO_8_1:
3826 case CODING_CATEGORY_IDX_ISO_8_2:
3827 /* We can skip all ASCII characters at the tail. */
3828 if (eol_conversion)
de9d083c 3829 while (begp < endp && (c = endp[-1]) < 0x80 && c != '\r') endp--;
d46c5b12
KH
3830 else
3831 while (begp < endp && endp[-1] < 0x80) endp--;
ee59c65f
RS
3832 /* Do not consider LF as ascii if preceded by CR, since that
3833 confuses eol decoding. */
3834 if (begp < endp && endp < endp_orig && endp[-1] == '\r' && endp[0] == '\n')
3835 endp++;
d46c5b12
KH
3836 break;
3837
3838 case CODING_CATEGORY_IDX_ISO_7:
3839 case CODING_CATEGORY_IDX_ISO_7_TIGHT:
3840 /* We can skip all charactes at the tail except for ESC and
3841 the following 2-byte at the tail. */
3842 if (eol_conversion)
fb88bf2d 3843 while (begp < endp
de9d083c 3844 && (c = endp[-1]) < 0x80 && c != ISO_CODE_ESC && c != '\r')
d46c5b12
KH
3845 endp--;
3846 else
fb88bf2d
KH
3847 while (begp < endp
3848 && (c = endp[-1]) < 0x80 && c != ISO_CODE_ESC)
d46c5b12 3849 endp--;
ee59c65f
RS
3850 /* Do not consider LF as ascii if preceded by CR, since that
3851 confuses eol decoding. */
3852 if (begp < endp && endp < endp_orig && endp[-1] == '\r' && endp[0] == '\n')
3853 endp++;
d46c5b12
KH
3854 if (begp < endp && endp[-1] == ISO_CODE_ESC)
3855 {
3856 if (endp + 1 < endp_orig && end[0] == '(' && end[1] == 'B')
3857 /* This is an ASCII designation sequence. We can
3858 surely skip the tail. */
3859 endp += 2;
3860 else
3861 /* Hmmm, we can't skip the tail. */
3862 endp = endp_orig;
3863 }
3864 }
3865 }
3866 *beg += begp - begp_orig;
3867 *end += endp - endp_orig;
3868 return;
3869}
3870
3871/* Like shrink_decoding_region but for encoding. */
3872
3873static void
3874shrink_encoding_region (beg, end, coding, str)
3875 int *beg, *end;
3876 struct coding_system *coding;
3877 unsigned char *str;
3878{
3879 unsigned char *begp_orig, *begp, *endp_orig, *endp;
3880 int eol_conversion;
3881
3882 if (coding->type == coding_type_ccl)
3883 /* We can't skip any data. */
3884 return;
3885 else if (coding->type == coding_type_no_conversion)
3886 {
3887 /* We need no conversion. */
3888 *beg = *end;
3889 return;
3890 }
3891
3892 if (str)
3893 {
3894 begp_orig = begp = str + *beg;
3895 endp_orig = endp = str + *end;
3896 }
3897 else
3898 {
fb88bf2d 3899 begp_orig = begp = BYTE_POS_ADDR (*beg);
d46c5b12
KH
3900 endp_orig = endp = begp + *end - *beg;
3901 }
3902
3903 eol_conversion = (coding->eol_type == CODING_EOL_CR
3904 || coding->eol_type == CODING_EOL_CRLF);
3905
3906 /* Here, we don't have to check coding->pre_write_conversion because
3907 the caller is expected to have handled it already. */
3908 switch (coding->type)
3909 {
3910 case coding_type_undecided:
3911 case coding_type_emacs_mule:
3912 case coding_type_raw_text:
3913 if (eol_conversion)
3914 {
3915 while (begp < endp && *begp != '\n') begp++;
3916 while (begp < endp && endp[-1] != '\n') endp--;
3917 }
3918 else
3919 begp = endp;
3920 break;
3921
3922 case coding_type_iso2022:
3923 if (coding->flags & CODING_FLAG_ISO_DESIGNATE_AT_BOL)
3924 {
3925 unsigned char *bol = begp;
3926 while (begp < endp && *begp < 0x80)
3927 {
3928 begp++;
3929 if (begp[-1] == '\n')
3930 bol = begp;
3931 }
3932 begp = bol;
3933 goto label_skip_tail;
3934 }
3935 /* fall down ... */
3936
3937 default:
3938 /* We can skip all ASCII characters at the head and tail. */
3939 if (eol_conversion)
3940 while (begp < endp && *begp < 0x80 && *begp != '\n') begp++;
3941 else
3942 while (begp < endp && *begp < 0x80) begp++;
3943 label_skip_tail:
3944 if (eol_conversion)
3945 while (begp < endp && endp[-1] < 0x80 && endp[-1] != '\n') endp--;
3946 else
3947 while (begp < endp && *(endp - 1) < 0x80) endp--;
3948 break;
3949 }
3950
3951 *beg += begp - begp_orig;
3952 *end += endp - endp_orig;
3953 return;
3954}
3955
3956/* Decode (if ENCODEP is zero) or encode (if ENCODEP is nonzero) the
fb88bf2d
KH
3957 text from FROM to TO (byte positions are FROM_BYTE and TO_BYTE) by
3958 coding system CODING, and return the status code of code conversion
3959 (currently, this value has no meaning).
3960
3961 How many characters (and bytes) are converted to how many
3962 characters (and bytes) are recorded in members of the structure
3963 CODING.
d46c5b12 3964
6e44253b 3965 If REPLACE is nonzero, we do various things as if the original text
d46c5b12 3966 is deleted and a new text is inserted. See the comments in
6e44253b 3967 replace_range (insdel.c) to know what we are doing. */
4ed46869
KH
3968
3969int
6e44253b
KH
3970code_convert_region (from, from_byte, to, to_byte, coding, encodep, replace)
3971 int from, from_byte, to, to_byte, encodep, replace;
4ed46869 3972 struct coding_system *coding;
4ed46869 3973{
fb88bf2d
KH
3974 int len = to - from, len_byte = to_byte - from_byte;
3975 int require, inserted, inserted_byte;
12410ef1 3976 int head_skip, tail_skip, total_skip;
d46c5b12 3977 Lisp_Object saved_coding_symbol = Qnil;
fb88bf2d
KH
3978 int multibyte = !NILP (current_buffer->enable_multibyte_characters);
3979 int first = 1;
3980 int fake_multibyte = 0;
3981 unsigned char *src, *dst;
12410ef1 3982 Lisp_Object deletion = Qnil;
d46c5b12 3983
83fa074f
KH
3984 if (from < PT && PT < to)
3985 SET_PT_BOTH (from, from_byte);
3986
6e44253b 3987 if (replace)
d46c5b12 3988 {
fb88bf2d
KH
3989 int saved_from = from;
3990
d46c5b12 3991 prepare_to_modify_buffer (from, to, &from);
fb88bf2d
KH
3992 if (saved_from != from)
3993 {
3994 to = from + len;
3995 if (multibyte)
3996 from_byte = CHAR_TO_BYTE (from), to_byte = CHAR_TO_BYTE (to);
3997 else
3998 from_byte = from, to_byte = to;
3999 len_byte = to_byte - from_byte;
4000 }
d46c5b12 4001 }
d46c5b12
KH
4002
4003 if (! encodep && CODING_REQUIRE_DETECTION (coding))
4004 {
12410ef1 4005 /* We must detect encoding of text and eol format. */
d46c5b12
KH
4006
4007 if (from < GPT && to > GPT)
4008 move_gap_both (from, from_byte);
4009 if (coding->type == coding_type_undecided)
4010 {
fb88bf2d 4011 detect_coding (coding, BYTE_POS_ADDR (from_byte), len_byte);
d46c5b12 4012 if (coding->type == coding_type_undecided)
12410ef1
KH
4013 /* It seems that the text contains only ASCII, but we
4014 should not left it undecided because the deeper
4015 decoding routine (decode_coding) tries to detect the
4016 encodings again in vain. */
d46c5b12
KH
4017 coding->type = coding_type_emacs_mule;
4018 }
4019 if (coding->eol_type == CODING_EOL_UNDECIDED)
4020 {
4021 saved_coding_symbol = coding->symbol;
4022 detect_eol (coding, BYTE_POS_ADDR (from_byte), len_byte);
4023 if (coding->eol_type == CODING_EOL_UNDECIDED)
4024 coding->eol_type = CODING_EOL_LF;
4025 /* We had better recover the original eol format if we
4026 encounter an inconsitent eol format while decoding. */
4027 coding->mode |= CODING_MODE_INHIBIT_INCONSISTENT_EOL;
4028 }
4029 }
4030
fb88bf2d
KH
4031 coding->consumed_char = len, coding->consumed = len_byte;
4032
d46c5b12
KH
4033 if (encodep
4034 ? ! CODING_REQUIRE_ENCODING (coding)
4035 : ! CODING_REQUIRE_DECODING (coding))
fb88bf2d
KH
4036 {
4037 coding->produced = len_byte;
12410ef1
KH
4038 if (multibyte
4039 && ! replace
4040 /* See the comment of the member heading_ascii in coding.h. */
4041 && coding->heading_ascii < len_byte)
fb88bf2d 4042 {
6e44253b
KH
4043 /* We still may have to combine byte at the head and the
4044 tail of the text in the region. */
12410ef1 4045 if (from < GPT && GPT < to)
6e44253b 4046 move_gap_both (to, to_byte);
12410ef1
KH
4047 len = multibyte_chars_in_text (BYTE_POS_ADDR (from_byte), len_byte);
4048 adjust_after_insert (from, from_byte, to, to_byte, len);
4049 coding->produced_char = len;
fb88bf2d
KH
4050 }
4051 else
68e3a8f1
AS
4052 {
4053 if (!replace)
4054 adjust_after_insert (from, from_byte, to, to_byte, len_byte);
4055 coding->produced_char = len_byte;
4056 }
fb88bf2d
KH
4057 return 0;
4058 }
d46c5b12
KH
4059
4060 /* Now we convert the text. */
4061
4062 /* For encoding, we must process pre-write-conversion in advance. */
4063 if (encodep
d46c5b12
KH
4064 && ! NILP (coding->pre_write_conversion)
4065 && SYMBOLP (coding->pre_write_conversion)
4066 && ! NILP (Ffboundp (coding->pre_write_conversion)))
4067 {
2b4f9037
KH
4068 /* The function in pre-write-conversion may put a new text in a
4069 new buffer. */
d46c5b12
KH
4070 struct buffer *prev = current_buffer, *new;
4071
b39f748c
AS
4072 call2 (coding->pre_write_conversion,
4073 make_number (from), make_number (to));
d46c5b12
KH
4074 if (current_buffer != prev)
4075 {
4076 len = ZV - BEGV;
4077 new = current_buffer;
4078 set_buffer_internal_1 (prev);
ddbc19ff 4079 del_range_2 (from, from_byte, to, to_byte);
d46c5b12
KH
4080 insert_from_buffer (new, BEG, len, 0);
4081 to = from + len;
fb88bf2d 4082 to_byte = multibyte ? CHAR_TO_BYTE (to) : to;
d46c5b12
KH
4083 len_byte = to_byte - from_byte;
4084 }
4085 }
4086
12410ef1
KH
4087 if (replace)
4088 deletion = make_buffer_string_both (from, from_byte, to, to_byte, 1);
4089
d46c5b12 4090 /* Try to skip the heading and tailing ASCIIs. */
12410ef1
KH
4091 {
4092 int from_byte_orig = from_byte, to_byte_orig = to_byte;
4093
4094 if (from < GPT && GPT < to)
4095 move_gap_both (from, from_byte);
4096 if (encodep)
4097 shrink_encoding_region (&from_byte, &to_byte, coding, NULL);
4098 else
4099 shrink_decoding_region (&from_byte, &to_byte, coding, NULL);
4100 if (from_byte == to_byte)
4101 {
4102 coding->produced = len_byte;
4103 coding->produced_char = multibyte ? len : len_byte;
4104 if (!replace)
4105 /* We must record and adjust for this new text now. */
4106 adjust_after_insert (from, from_byte_orig, to, to_byte_orig, len);
4107 return 0;
4108 }
fb88bf2d 4109
12410ef1
KH
4110 head_skip = from_byte - from_byte_orig;
4111 tail_skip = to_byte_orig - to_byte;
4112 total_skip = head_skip + tail_skip;
4113 from += head_skip;
4114 to -= tail_skip;
4115 len -= total_skip; len_byte -= total_skip;
4116 }
d46c5b12 4117
fb88bf2d
KH
4118 /* For converion, we must put the gap before the text in addition to
4119 making the gap larger for efficient decoding. The required gap
4120 size starts from 2000 which is the magic number used in make_gap.
4121 But, after one batch of conversion, it will be incremented if we
4122 find that it is not enough . */
d46c5b12
KH
4123 require = 2000;
4124
4125 if (GAP_SIZE < require)
4126 make_gap (require - GAP_SIZE);
4127 move_gap_both (from, from_byte);
4128
d46c5b12
KH
4129 if (GPT - BEG < beg_unchanged)
4130 beg_unchanged = GPT - BEG;
4131 if (Z - GPT < end_unchanged)
4132 end_unchanged = Z - GPT;
4133
4134 inserted = inserted_byte = 0;
fb88bf2d
KH
4135 src = GAP_END_ADDR, dst = GPT_ADDR;
4136
4137 GAP_SIZE += len_byte;
4138 ZV -= len;
4139 Z -= len;
4140 ZV_BYTE -= len_byte;
4141 Z_BYTE -= len_byte;
4142
d46c5b12
KH
4143 for (;;)
4144 {
fb88bf2d 4145 int result;
d46c5b12
KH
4146
4147 /* The buffer memory is changed from:
fb88bf2d
KH
4148 +--------+converted-text+---------+-------original-text------+---+
4149 |<-from->|<--inserted-->|---------|<-----------len---------->|---|
4150 |<------------------- GAP_SIZE -------------------->| */
d46c5b12 4151 if (encodep)
fb88bf2d 4152 result = encode_coding (coding, src, dst, len_byte, 0);
d46c5b12 4153 else
fb88bf2d 4154 result = decode_coding (coding, src, dst, len_byte, 0);
d46c5b12
KH
4155 /* to:
4156 +--------+-------converted-text--------+--+---original-text--+---+
fb88bf2d
KH
4157 |<-from->|<--inserted-->|<--produced-->|--|<-(len-consumed)->|---|
4158 |<------------------- GAP_SIZE -------------------->| */
4159 if (coding->fake_multibyte)
4160 fake_multibyte = 1;
d46c5b12 4161
fb88bf2d
KH
4162 if (!encodep && !multibyte)
4163 coding->produced_char = coding->produced;
d46c5b12
KH
4164 inserted += coding->produced_char;
4165 inserted_byte += coding->produced;
d46c5b12 4166 len_byte -= coding->consumed;
fb88bf2d
KH
4167 src += coding->consumed;
4168 dst += inserted_byte;
d46c5b12
KH
4169
4170 if (! encodep && result == CODING_FINISH_INCONSISTENT_EOL)
4171 {
fb88bf2d 4172 unsigned char *pend = dst, *p = pend - inserted_byte;
d46c5b12
KH
4173
4174 /* Encode LFs back to the original eol format (CR or CRLF). */
4175 if (coding->eol_type == CODING_EOL_CR)
4176 {
4177 while (p < pend) if (*p++ == '\n') p[-1] = '\r';
4178 }
4179 else
4180 {
d46c5b12
KH
4181 int count = 0;
4182
fb88bf2d
KH
4183 while (p < pend) if (*p++ == '\n') count++;
4184 if (src - dst < count)
d46c5b12 4185 {
fb88bf2d
KH
4186 /* We don't have sufficient room for putting LFs
4187 back to CRLF. We must record converted and
4188 not-yet-converted text back to the buffer
4189 content, enlarge the gap, then record them out of
4190 the buffer contents again. */
4191 int add = len_byte + inserted_byte;
4192
4193 GAP_SIZE -= add;
4194 ZV += add; Z += add; ZV_BYTE += add; Z_BYTE += add;
4195 GPT += inserted_byte; GPT_BYTE += inserted_byte;
4196 make_gap (count - GAP_SIZE);
4197 GAP_SIZE += add;
4198 ZV -= add; Z -= add; ZV_BYTE -= add; Z_BYTE -= add;
4199 GPT -= inserted_byte; GPT_BYTE -= inserted_byte;
4200 /* Don't forget to update SRC, DST, and PEND. */
4201 src = GAP_END_ADDR - len_byte;
4202 dst = GPT_ADDR + inserted_byte;
4203 pend = dst;
d46c5b12 4204 }
d46c5b12
KH
4205 inserted += count;
4206 inserted_byte += count;
fb88bf2d
KH
4207 coding->produced += count;
4208 p = dst = pend + count;
4209 while (count)
4210 {
4211 *--p = *--pend;
4212 if (*p == '\n') count--, *--p = '\r';
4213 }
d46c5b12
KH
4214 }
4215
4216 /* Suppress eol-format conversion in the further conversion. */
4217 coding->eol_type = CODING_EOL_LF;
4218
4219 /* Restore the original symbol. */
4220 coding->symbol = saved_coding_symbol;
fb88bf2d
KH
4221
4222 continue;
d46c5b12
KH
4223 }
4224 if (len_byte <= 0)
4225 break;
4226 if (result == CODING_FINISH_INSUFFICIENT_SRC)
4227 {
4228 /* The source text ends in invalid codes. Let's just
4229 make them valid buffer contents, and finish conversion. */
fb88bf2d 4230 inserted += len_byte;
d46c5b12 4231 inserted_byte += len_byte;
fb88bf2d 4232 while (len_byte--)
ee59c65f 4233 *dst++ = *src++;
fb88bf2d 4234 fake_multibyte = 1;
d46c5b12
KH
4235 break;
4236 }
fb88bf2d
KH
4237 if (first)
4238 {
4239 /* We have just done the first batch of conversion which was
4240 stoped because of insufficient gap. Let's reconsider the
4241 required gap size (i.e. SRT - DST) now.
4242
4243 We have converted ORIG bytes (== coding->consumed) into
4244 NEW bytes (coding->produced). To convert the remaining
4245 LEN bytes, we may need REQUIRE bytes of gap, where:
4246 REQUIRE + LEN_BYTE = LEN_BYTE * (NEW / ORIG)
4247 REQUIRE = LEN_BYTE * (NEW - ORIG) / ORIG
4248 Here, we are sure that NEW >= ORIG. */
6e44253b
KH
4249 float ratio = coding->produced - coding->consumed;
4250 ratio /= coding->consumed;
4251 require = len_byte * ratio;
fb88bf2d
KH
4252 first = 0;
4253 }
4254 if ((src - dst) < (require + 2000))
4255 {
4256 /* See the comment above the previous call of make_gap. */
4257 int add = len_byte + inserted_byte;
4258
4259 GAP_SIZE -= add;
4260 ZV += add; Z += add; ZV_BYTE += add; Z_BYTE += add;
4261 GPT += inserted_byte; GPT_BYTE += inserted_byte;
4262 make_gap (require + 2000);
4263 GAP_SIZE += add;
4264 ZV -= add; Z -= add; ZV_BYTE -= add; Z_BYTE -= add;
4265 GPT -= inserted_byte; GPT_BYTE -= inserted_byte;
4266 /* Don't forget to update SRC, DST. */
4267 src = GAP_END_ADDR - len_byte;
4268 dst = GPT_ADDR + inserted_byte;
4269 }
d46c5b12 4270 }
fb88bf2d
KH
4271 if (src - dst > 0) *dst = 0; /* Put an anchor. */
4272
2b4f9037 4273 if (multibyte
12410ef1
KH
4274 && (fake_multibyte
4275 || !encodep && (to - from) != (to_byte - from_byte)))
2b4f9037 4276 inserted = multibyte_chars_in_text (GPT_ADDR, inserted_byte);
7553d0e1 4277
12410ef1
KH
4278 /* If we have shrinked the conversion area, adjust it now. */
4279 if (total_skip > 0)
4280 {
4281 if (tail_skip > 0)
4282 safe_bcopy (GAP_END_ADDR, GPT_ADDR + inserted_byte, tail_skip);
4283 inserted += total_skip; inserted_byte += total_skip;
4284 GAP_SIZE += total_skip;
4285 GPT -= head_skip; GPT_BYTE -= head_skip;
4286 ZV -= total_skip; ZV_BYTE -= total_skip;
4287 Z -= total_skip; Z_BYTE -= total_skip;
4288 from -= head_skip; from_byte -= head_skip;
4289 to += tail_skip; to_byte += tail_skip;
4290 }
4291
4292 adjust_after_replace (from, from_byte, deletion, inserted, inserted_byte);
4ed46869 4293
2b4f9037 4294 if (! encodep && ! NILP (coding->post_read_conversion))
d46c5b12 4295 {
2b4f9037
KH
4296 Lisp_Object val;
4297 int orig_inserted = inserted, pos = PT;
4ed46869 4298
2b4f9037
KH
4299 if (from != pos)
4300 temp_set_point_both (current_buffer, from, from_byte);
4301 val = call1 (coding->post_read_conversion, make_number (inserted));
4302 if (! NILP (val))
d46c5b12 4303 {
2b4f9037
KH
4304 CHECK_NUMBER (val, 0);
4305 inserted = XFASTINT (val);
d46c5b12 4306 }
2b4f9037
KH
4307 if (pos >= from + orig_inserted)
4308 temp_set_point (current_buffer, pos + (inserted - orig_inserted));
d46c5b12 4309 }
4ed46869 4310
2b4f9037
KH
4311 signal_after_change (from, to - from, inserted);
4312
fb88bf2d 4313 {
12410ef1
KH
4314 coding->consumed = to_byte - from_byte;
4315 coding->consumed_char = to - from;
4316 coding->produced = inserted_byte;
4317 coding->produced_char = inserted;
fb88bf2d 4318 }
7553d0e1 4319
fb88bf2d 4320 return 0;
d46c5b12
KH
4321}
4322
4323Lisp_Object
4324code_convert_string (str, coding, encodep, nocopy)
4325 Lisp_Object str;
4ed46869 4326 struct coding_system *coding;
d46c5b12 4327 int encodep, nocopy;
4ed46869 4328{
d46c5b12
KH
4329 int len;
4330 char *buf;
fc932ac6
RS
4331 int from = 0, to = XSTRING (str)->size;
4332 int to_byte = STRING_BYTES (XSTRING (str));
d46c5b12
KH
4333 struct gcpro gcpro1;
4334 Lisp_Object saved_coding_symbol = Qnil;
4335 int result;
4ed46869 4336
d46c5b12
KH
4337 if (encodep && !NILP (coding->pre_write_conversion)
4338 || !encodep && !NILP (coding->post_read_conversion))
4339 {
4340 /* Since we have to call Lisp functions which assume target text
4341 is in a buffer, after setting a temporary buffer, call
4342 code_convert_region. */
4343 int count = specpdl_ptr - specpdl;
4344 struct buffer *prev = current_buffer;
4345
4346 record_unwind_protect (Fset_buffer, Fcurrent_buffer ());
4347 temp_output_buffer_setup (" *code-converting-work*");
4348 set_buffer_internal (XBUFFER (Vstandard_output));
4349 if (encodep)
4350 insert_from_string (str, 0, 0, to, to_byte, 0);
4351 else
4352 {
4353 /* We must insert the contents of STR as is without
4354 unibyte<->multibyte conversion. */
4355 current_buffer->enable_multibyte_characters = Qnil;
4356 insert_from_string (str, 0, 0, to_byte, to_byte, 0);
4357 current_buffer->enable_multibyte_characters = Qt;
4358 }
fb88bf2d 4359 code_convert_region (BEGV, BEGV_BYTE, ZV, ZV_BYTE, coding, encodep, 1);
d46c5b12
KH
4360 if (encodep)
4361 /* We must return the buffer contents as unibyte string. */
4362 current_buffer->enable_multibyte_characters = Qnil;
4363 str = make_buffer_string (BEGV, ZV, 0);
4364 set_buffer_internal (prev);
4365 return unbind_to (count, str);
4366 }
4ed46869 4367
d46c5b12
KH
4368 if (! encodep && CODING_REQUIRE_DETECTION (coding))
4369 {
4370 /* See the comments in code_convert_region. */
4371 if (coding->type == coding_type_undecided)
4372 {
4373 detect_coding (coding, XSTRING (str)->data, to_byte);
4374 if (coding->type == coding_type_undecided)
4375 coding->type = coding_type_emacs_mule;
4376 }
4377 if (coding->eol_type == CODING_EOL_UNDECIDED)
4378 {
4379 saved_coding_symbol = coding->symbol;
4380 detect_eol (coding, XSTRING (str)->data, to_byte);
4381 if (coding->eol_type == CODING_EOL_UNDECIDED)
4382 coding->eol_type = CODING_EOL_LF;
4383 /* We had better recover the original eol format if we
4384 encounter an inconsitent eol format while decoding. */
4385 coding->mode |= CODING_MODE_INHIBIT_INCONSISTENT_EOL;
4386 }
4387 }
4ed46869 4388
d46c5b12
KH
4389 if (encodep
4390 ? ! CODING_REQUIRE_ENCODING (coding)
4391 : ! CODING_REQUIRE_DECODING (coding))
4392 from = to_byte;
4393 else
4394 {
4395 /* Try to skip the heading and tailing ASCIIs. */
4396 if (encodep)
4397 shrink_encoding_region (&from, &to_byte, coding, XSTRING (str)->data);
4398 else
4399 shrink_decoding_region (&from, &to_byte, coding, XSTRING (str)->data);
4400 }
4401 if (from == to_byte)
4402 return (nocopy ? str : Fcopy_sequence (str));
4ed46869 4403
d46c5b12
KH
4404 if (encodep)
4405 len = encoding_buffer_size (coding, to_byte - from);
4406 else
4407 len = decoding_buffer_size (coding, to_byte - from);
fc932ac6 4408 len += from + STRING_BYTES (XSTRING (str)) - to_byte;
d46c5b12
KH
4409 GCPRO1 (str);
4410 buf = get_conversion_buffer (len);
4411 UNGCPRO;
4ed46869 4412
d46c5b12
KH
4413 if (from > 0)
4414 bcopy (XSTRING (str)->data, buf, from);
4415 result = (encodep
4416 ? encode_coding (coding, XSTRING (str)->data + from,
4417 buf + from, to_byte - from, len)
4418 : decode_coding (coding, XSTRING (str)->data + from,
f30cc612 4419 buf + from, to_byte - from, len));
d46c5b12 4420 if (! encodep && result == CODING_FINISH_INCONSISTENT_EOL)
4ed46869 4421 {
d46c5b12
KH
4422 /* We simple try to decode the whole string again but without
4423 eol-conversion this time. */
4424 coding->eol_type = CODING_EOL_LF;
4425 coding->symbol = saved_coding_symbol;
4426 return code_convert_string (str, coding, encodep, nocopy);
4ed46869 4427 }
d46c5b12
KH
4428
4429 bcopy (XSTRING (str)->data + to_byte, buf + from + coding->produced,
fc932ac6 4430 STRING_BYTES (XSTRING (str)) - to_byte);
d46c5b12 4431
fc932ac6 4432 len = from + STRING_BYTES (XSTRING (str)) - to_byte;
d46c5b12
KH
4433 if (encodep)
4434 str = make_unibyte_string (buf, len + coding->produced);
4435 else
826bfb8b
KH
4436 {
4437 int chars= (coding->fake_multibyte
4438 ? multibyte_chars_in_text (buf + from, coding->produced)
4439 : coding->produced_char);
4440 str = make_multibyte_string (buf, len + chars, len + coding->produced);
4441 }
4442
d46c5b12 4443 return str;
4ed46869
KH
4444}
4445
4446\f
4447#ifdef emacs
4448/*** 7. Emacs Lisp library functions ***/
4449
4ed46869
KH
4450DEFUN ("coding-system-p", Fcoding_system_p, Scoding_system_p, 1, 1, 0,
4451 "Return t if OBJECT is nil or a coding-system.\n\
3a73fa5d
RS
4452See the documentation of `make-coding-system' for information\n\
4453about coding-system objects.")
4ed46869
KH
4454 (obj)
4455 Lisp_Object obj;
4456{
4608c386
KH
4457 if (NILP (obj))
4458 return Qt;
4459 if (!SYMBOLP (obj))
4460 return Qnil;
4461 /* Get coding-spec vector for OBJ. */
4462 obj = Fget (obj, Qcoding_system);
4463 return ((VECTORP (obj) && XVECTOR (obj)->size == 5)
4464 ? Qt : Qnil);
4ed46869
KH
4465}
4466
9d991de8
RS
4467DEFUN ("read-non-nil-coding-system", Fread_non_nil_coding_system,
4468 Sread_non_nil_coding_system, 1, 1, 0,
e0e989f6 4469 "Read a coding system from the minibuffer, prompting with string PROMPT.")
4ed46869
KH
4470 (prompt)
4471 Lisp_Object prompt;
4472{
e0e989f6 4473 Lisp_Object val;
9d991de8
RS
4474 do
4475 {
4608c386
KH
4476 val = Fcompleting_read (prompt, Vcoding_system_alist, Qnil,
4477 Qt, Qnil, Qcoding_system_history, Qnil, Qnil);
9d991de8
RS
4478 }
4479 while (XSTRING (val)->size == 0);
e0e989f6 4480 return (Fintern (val, Qnil));
4ed46869
KH
4481}
4482
9b787f3e
RS
4483DEFUN ("read-coding-system", Fread_coding_system, Sread_coding_system, 1, 2, 0,
4484 "Read a coding system from the minibuffer, prompting with string PROMPT.\n\
4485If the user enters null input, return second argument DEFAULT-CODING-SYSTEM.")
4486 (prompt, default_coding_system)
4487 Lisp_Object prompt, default_coding_system;
4ed46869 4488{
f44d27ce 4489 Lisp_Object val;
9b787f3e
RS
4490 if (SYMBOLP (default_coding_system))
4491 XSETSTRING (default_coding_system, XSYMBOL (default_coding_system)->name);
4608c386 4492 val = Fcompleting_read (prompt, Vcoding_system_alist, Qnil,
9b787f3e
RS
4493 Qt, Qnil, Qcoding_system_history,
4494 default_coding_system, Qnil);
e0e989f6 4495 return (XSTRING (val)->size == 0 ? Qnil : Fintern (val, Qnil));
4ed46869
KH
4496}
4497
4498DEFUN ("check-coding-system", Fcheck_coding_system, Scheck_coding_system,
4499 1, 1, 0,
4500 "Check validity of CODING-SYSTEM.\n\
3a73fa5d
RS
4501If valid, return CODING-SYSTEM, else signal a `coding-system-error' error.\n\
4502It is valid if it is a symbol with a non-nil `coding-system' property.\n\
4ed46869
KH
4503The value of property should be a vector of length 5.")
4504 (coding_system)
4505 Lisp_Object coding_system;
4506{
4507 CHECK_SYMBOL (coding_system, 0);
4508 if (!NILP (Fcoding_system_p (coding_system)))
4509 return coding_system;
4510 while (1)
02ba4723 4511 Fsignal (Qcoding_system_error, Fcons (coding_system, Qnil));
4ed46869 4512}
3a73fa5d 4513\f
d46c5b12
KH
4514Lisp_Object
4515detect_coding_system (src, src_bytes, highest)
4516 unsigned char *src;
4517 int src_bytes, highest;
4ed46869
KH
4518{
4519 int coding_mask, eol_type;
d46c5b12
KH
4520 Lisp_Object val, tmp;
4521 int dummy;
4ed46869 4522
d46c5b12
KH
4523 coding_mask = detect_coding_mask (src, src_bytes, NULL, &dummy);
4524 eol_type = detect_eol_type (src, src_bytes, &dummy);
4525 if (eol_type == CODING_EOL_INCONSISTENT)
4526 eol_type == CODING_EOL_UNDECIDED;
4ed46869 4527
d46c5b12 4528 if (!coding_mask)
4ed46869 4529 {
27901516 4530 val = Qundecided;
d46c5b12 4531 if (eol_type != CODING_EOL_UNDECIDED)
4ed46869 4532 {
f44d27ce
RS
4533 Lisp_Object val2;
4534 val2 = Fget (Qundecided, Qeol_type);
4ed46869
KH
4535 if (VECTORP (val2))
4536 val = XVECTOR (val2)->contents[eol_type];
4537 }
80e803b4 4538 return (highest ? val : Fcons (val, Qnil));
4ed46869 4539 }
4ed46869 4540
d46c5b12
KH
4541 /* At first, gather possible coding systems in VAL. */
4542 val = Qnil;
4543 for (tmp = Vcoding_category_list; !NILP (tmp); tmp = XCONS (tmp)->cdr)
4ed46869 4544 {
d46c5b12
KH
4545 int idx
4546 = XFASTINT (Fget (XCONS (tmp)->car, Qcoding_category_index));
4547 if (coding_mask & (1 << idx))
4ed46869 4548 {
d46c5b12
KH
4549 val = Fcons (Fsymbol_value (XCONS (tmp)->car), val);
4550 if (highest)
4551 break;
4ed46869
KH
4552 }
4553 }
d46c5b12
KH
4554 if (!highest)
4555 val = Fnreverse (val);
4ed46869 4556
65059037 4557 /* Then, replace the elements with subsidiary coding systems. */
d46c5b12 4558 for (tmp = val; !NILP (tmp); tmp = XCONS (tmp)->cdr)
4ed46869 4559 {
65059037
RS
4560 if (eol_type != CODING_EOL_UNDECIDED
4561 && eol_type != CODING_EOL_INCONSISTENT)
4ed46869 4562 {
d46c5b12
KH
4563 Lisp_Object eol;
4564 eol = Fget (XCONS (tmp)->car, Qeol_type);
4565 if (VECTORP (eol))
4566 XCONS (tmp)->car = XVECTOR (eol)->contents[eol_type];
4ed46869
KH
4567 }
4568 }
d46c5b12
KH
4569 return (highest ? XCONS (val)->car : val);
4570}
4ed46869 4571
d46c5b12
KH
4572DEFUN ("detect-coding-region", Fdetect_coding_region, Sdetect_coding_region,
4573 2, 3, 0,
4574 "Detect coding system of the text in the region between START and END.\n\
4575Return a list of possible coding systems ordered by priority.\n\
4576\n\
80e803b4
KH
4577If only ASCII characters are found, it returns a list of single element\n\
4578`undecided' or its subsidiary coding system according to a detected\n\
4579end-of-line format.\n\
d46c5b12
KH
4580\n\
4581If optional argument HIGHEST is non-nil, return the coding system of\n\
4582highest priority.")
4583 (start, end, highest)
4584 Lisp_Object start, end, highest;
4585{
4586 int from, to;
4587 int from_byte, to_byte;
6289dd10 4588
d46c5b12
KH
4589 CHECK_NUMBER_COERCE_MARKER (start, 0);
4590 CHECK_NUMBER_COERCE_MARKER (end, 1);
4ed46869 4591
d46c5b12
KH
4592 validate_region (&start, &end);
4593 from = XINT (start), to = XINT (end);
4594 from_byte = CHAR_TO_BYTE (from);
4595 to_byte = CHAR_TO_BYTE (to);
6289dd10 4596
d46c5b12
KH
4597 if (from < GPT && to >= GPT)
4598 move_gap_both (to, to_byte);
4ed46869 4599
d46c5b12
KH
4600 return detect_coding_system (BYTE_POS_ADDR (from_byte),
4601 to_byte - from_byte,
4602 !NILP (highest));
4603}
6289dd10 4604
d46c5b12
KH
4605DEFUN ("detect-coding-string", Fdetect_coding_string, Sdetect_coding_string,
4606 1, 2, 0,
4607 "Detect coding system of the text in STRING.\n\
4608Return a list of possible coding systems ordered by priority.\n\
4609\n\
80e803b4
KH
4610If only ASCII characters are found, it returns a list of single element\n\
4611`undecided' or its subsidiary coding system according to a detected\n\
4612end-of-line format.\n\
d46c5b12
KH
4613\n\
4614If optional argument HIGHEST is non-nil, return the coding system of\n\
4615highest priority.")
4616 (string, highest)
4617 Lisp_Object string, highest;
4618{
4619 CHECK_STRING (string, 0);
4ed46869 4620
d46c5b12 4621 return detect_coding_system (XSTRING (string)->data,
fc932ac6 4622 STRING_BYTES (XSTRING (string)),
d46c5b12 4623 !NILP (highest));
4ed46869
KH
4624}
4625
4031e2bf
KH
4626Lisp_Object
4627code_convert_region1 (start, end, coding_system, encodep)
d46c5b12 4628 Lisp_Object start, end, coding_system;
4031e2bf 4629 int encodep;
3a73fa5d
RS
4630{
4631 struct coding_system coding;
4031e2bf 4632 int from, to, len;
3a73fa5d 4633
d46c5b12
KH
4634 CHECK_NUMBER_COERCE_MARKER (start, 0);
4635 CHECK_NUMBER_COERCE_MARKER (end, 1);
3a73fa5d
RS
4636 CHECK_SYMBOL (coding_system, 2);
4637
d46c5b12
KH
4638 validate_region (&start, &end);
4639 from = XFASTINT (start);
4640 to = XFASTINT (end);
4641
3a73fa5d 4642 if (NILP (coding_system))
d46c5b12
KH
4643 return make_number (to - from);
4644
3a73fa5d 4645 if (setup_coding_system (Fcheck_coding_system (coding_system), &coding) < 0)
d46c5b12 4646 error ("Invalid coding system: %s", XSYMBOL (coding_system)->name->data);
3a73fa5d 4647
d46c5b12 4648 coding.mode |= CODING_MODE_LAST_BLOCK;
fb88bf2d
KH
4649 code_convert_region (from, CHAR_TO_BYTE (from), to, CHAR_TO_BYTE (to),
4650 &coding, encodep, 1);
f072a3e8 4651 Vlast_coding_system_used = coding.symbol;
fb88bf2d 4652 return make_number (coding.produced_char);
4031e2bf
KH
4653}
4654
4655DEFUN ("decode-coding-region", Fdecode_coding_region, Sdecode_coding_region,
4656 3, 3, "r\nzCoding system: ",
4657 "Decode the current region by specified coding system.\n\
4658When called from a program, takes three arguments:\n\
4659START, END, and CODING-SYSTEM. START and END are buffer positions.\n\
f072a3e8
RS
4660This function sets `last-coding-system-used' to the precise coding system\n\
4661used (which may be different from CODING-SYSTEM if CODING-SYSTEM is\n\
4662not fully specified.)\n\
4663It returns the length of the decoded text.")
4031e2bf
KH
4664 (start, end, coding_system)
4665 Lisp_Object start, end, coding_system;
4666{
4667 return code_convert_region1 (start, end, coding_system, 0);
3a73fa5d
RS
4668}
4669
4670DEFUN ("encode-coding-region", Fencode_coding_region, Sencode_coding_region,
4671 3, 3, "r\nzCoding system: ",
d46c5b12 4672 "Encode the current region by specified coding system.\n\
3a73fa5d 4673When called from a program, takes three arguments:\n\
d46c5b12 4674START, END, and CODING-SYSTEM. START and END are buffer positions.\n\
f072a3e8
RS
4675This function sets `last-coding-system-used' to the precise coding system\n\
4676used (which may be different from CODING-SYSTEM if CODING-SYSTEM is\n\
4677not fully specified.)\n\
4678It returns the length of the encoded text.")
d46c5b12
KH
4679 (start, end, coding_system)
4680 Lisp_Object start, end, coding_system;
3a73fa5d 4681{
4031e2bf
KH
4682 return code_convert_region1 (start, end, coding_system, 1);
4683}
3a73fa5d 4684
4031e2bf
KH
4685Lisp_Object
4686code_convert_string1 (string, coding_system, nocopy, encodep)
4687 Lisp_Object string, coding_system, nocopy;
4688 int encodep;
4689{
4690 struct coding_system coding;
3a73fa5d 4691
4031e2bf
KH
4692 CHECK_STRING (string, 0);
4693 CHECK_SYMBOL (coding_system, 1);
4ed46869 4694
d46c5b12 4695 if (NILP (coding_system))
4031e2bf 4696 return (NILP (nocopy) ? Fcopy_sequence (string) : string);
4ed46869 4697
d46c5b12
KH
4698 if (setup_coding_system (Fcheck_coding_system (coding_system), &coding) < 0)
4699 error ("Invalid coding system: %s", XSYMBOL (coding_system)->name->data);
5f1cd180 4700
d46c5b12 4701 coding.mode |= CODING_MODE_LAST_BLOCK;
f072a3e8 4702 Vlast_coding_system_used = coding.symbol;
4031e2bf 4703 return code_convert_string (string, &coding, encodep, !NILP (nocopy));
4ed46869
KH
4704}
4705
4ed46869 4706DEFUN ("decode-coding-string", Fdecode_coding_string, Sdecode_coding_string,
e0e989f6
KH
4707 2, 3, 0,
4708 "Decode STRING which is encoded in CODING-SYSTEM, and return the result.\n\
fe487a71 4709Optional arg NOCOPY non-nil means it is ok to return STRING itself\n\
f072a3e8
RS
4710if the decoding operation is trivial.\n\
4711This function sets `last-coding-system-used' to the precise coding system\n\
4712used (which may be different from CODING-SYSTEM if CODING-SYSTEM is\n\
4713not fully specified.)")
e0e989f6
KH
4714 (string, coding_system, nocopy)
4715 Lisp_Object string, coding_system, nocopy;
4ed46869 4716{
f072a3e8 4717 return code_convert_string1 (string, coding_system, nocopy, 0);
4ed46869
KH
4718}
4719
4720DEFUN ("encode-coding-string", Fencode_coding_string, Sencode_coding_string,
e0e989f6
KH
4721 2, 3, 0,
4722 "Encode STRING to CODING-SYSTEM, and return the result.\n\
fe487a71 4723Optional arg NOCOPY non-nil means it is ok to return STRING itself\n\
f072a3e8
RS
4724if the encoding operation is trivial.\n\
4725This function sets `last-coding-system-used' to the precise coding system\n\
4726used (which may be different from CODING-SYSTEM if CODING-SYSTEM is\n\
4727not fully specified.)")
e0e989f6
KH
4728 (string, coding_system, nocopy)
4729 Lisp_Object string, coding_system, nocopy;
4ed46869 4730{
f072a3e8 4731 return code_convert_string1 (string, coding_system, nocopy, 1);
4ed46869 4732}
4031e2bf 4733
ecec61c1
KH
4734/* Encode or decode STRING according to CODING_SYSTEM.
4735 Do not set Vlast_coding_system_used. */
4736
4737Lisp_Object
4738code_convert_string_norecord (string, coding_system, encodep)
4739 Lisp_Object string, coding_system;
4740 int encodep;
4741{
4742 struct coding_system coding;
4743
4744 CHECK_STRING (string, 0);
4745 CHECK_SYMBOL (coding_system, 1);
4746
4747 if (NILP (coding_system))
4748 return string;
4749
4750 if (setup_coding_system (Fcheck_coding_system (coding_system), &coding) < 0)
4751 error ("Invalid coding system: %s", XSYMBOL (coding_system)->name->data);
4752
4753 coding.mode |= CODING_MODE_LAST_BLOCK;
4754 return code_convert_string (string, &coding, encodep, Qt);
4755}
3a73fa5d 4756\f
4ed46869 4757DEFUN ("decode-sjis-char", Fdecode_sjis_char, Sdecode_sjis_char, 1, 1, 0,
e0e989f6 4758 "Decode a JISX0208 character of shift-jis encoding.\n\
4ed46869
KH
4759CODE is the character code in SJIS.\n\
4760Return the corresponding character.")
4761 (code)
4762 Lisp_Object code;
4763{
4764 unsigned char c1, c2, s1, s2;
4765 Lisp_Object val;
4766
4767 CHECK_NUMBER (code, 0);
4768 s1 = (XFASTINT (code)) >> 8, s2 = (XFASTINT (code)) & 0xFF;
4769 DECODE_SJIS (s1, s2, c1, c2);
4770 XSETFASTINT (val, MAKE_NON_ASCII_CHAR (charset_jisx0208, c1, c2));
4771 return val;
4772}
4773
4774DEFUN ("encode-sjis-char", Fencode_sjis_char, Sencode_sjis_char, 1, 1, 0,
d46c5b12 4775 "Encode a JISX0208 character CHAR to SJIS coding system.\n\
4ed46869
KH
4776Return the corresponding character code in SJIS.")
4777 (ch)
4778 Lisp_Object ch;
4779{
bcf26d6a 4780 int charset, c1, c2, s1, s2;
4ed46869
KH
4781 Lisp_Object val;
4782
4783 CHECK_NUMBER (ch, 0);
4784 SPLIT_CHAR (XFASTINT (ch), charset, c1, c2);
4785 if (charset == charset_jisx0208)
4786 {
4787 ENCODE_SJIS (c1, c2, s1, s2);
bcf26d6a 4788 XSETFASTINT (val, (s1 << 8) | s2);
4ed46869
KH
4789 }
4790 else
4791 XSETFASTINT (val, 0);
4792 return val;
4793}
4794
4795DEFUN ("decode-big5-char", Fdecode_big5_char, Sdecode_big5_char, 1, 1, 0,
d46c5b12 4796 "Decode a Big5 character CODE of BIG5 coding system.\n\
4ed46869
KH
4797CODE is the character code in BIG5.\n\
4798Return the corresponding character.")
4799 (code)
4800 Lisp_Object code;
4801{
4802 int charset;
4803 unsigned char b1, b2, c1, c2;
4804 Lisp_Object val;
4805
4806 CHECK_NUMBER (code, 0);
4807 b1 = (XFASTINT (code)) >> 8, b2 = (XFASTINT (code)) & 0xFF;
4808 DECODE_BIG5 (b1, b2, charset, c1, c2);
4809 XSETFASTINT (val, MAKE_NON_ASCII_CHAR (charset, c1, c2));
4810 return val;
4811}
4812
4813DEFUN ("encode-big5-char", Fencode_big5_char, Sencode_big5_char, 1, 1, 0,
d46c5b12 4814 "Encode the Big5 character CHAR to BIG5 coding system.\n\
4ed46869
KH
4815Return the corresponding character code in Big5.")
4816 (ch)
4817 Lisp_Object ch;
4818{
bcf26d6a 4819 int charset, c1, c2, b1, b2;
4ed46869
KH
4820 Lisp_Object val;
4821
4822 CHECK_NUMBER (ch, 0);
4823 SPLIT_CHAR (XFASTINT (ch), charset, c1, c2);
4824 if (charset == charset_big5_1 || charset == charset_big5_2)
4825 {
4826 ENCODE_BIG5 (charset, c1, c2, b1, b2);
bcf26d6a 4827 XSETFASTINT (val, (b1 << 8) | b2);
4ed46869
KH
4828 }
4829 else
4830 XSETFASTINT (val, 0);
4831 return val;
4832}
3a73fa5d 4833\f
1ba9e4ab
KH
4834DEFUN ("set-terminal-coding-system-internal",
4835 Fset_terminal_coding_system_internal,
4836 Sset_terminal_coding_system_internal, 1, 1, 0, "")
4ed46869
KH
4837 (coding_system)
4838 Lisp_Object coding_system;
4839{
4840 CHECK_SYMBOL (coding_system, 0);
4841 setup_coding_system (Fcheck_coding_system (coding_system), &terminal_coding);
70c22245 4842 /* We had better not send unsafe characters to terminal. */
6e85d753
KH
4843 terminal_coding.flags |= CODING_FLAG_ISO_SAFE;
4844
4ed46869
KH
4845 return Qnil;
4846}
4847
c4825358
KH
4848DEFUN ("set-safe-terminal-coding-system-internal",
4849 Fset_safe_terminal_coding_system_internal,
4850 Sset_safe_terminal_coding_system_internal, 1, 1, 0, "")
4851 (coding_system)
4852 Lisp_Object coding_system;
4853{
4854 CHECK_SYMBOL (coding_system, 0);
4855 setup_coding_system (Fcheck_coding_system (coding_system),
4856 &safe_terminal_coding);
4857 return Qnil;
4858}
4859
4ed46869
KH
4860DEFUN ("terminal-coding-system",
4861 Fterminal_coding_system, Sterminal_coding_system, 0, 0, 0,
3a73fa5d 4862 "Return coding system specified for terminal output.")
4ed46869
KH
4863 ()
4864{
4865 return terminal_coding.symbol;
4866}
4867
1ba9e4ab
KH
4868DEFUN ("set-keyboard-coding-system-internal",
4869 Fset_keyboard_coding_system_internal,
4870 Sset_keyboard_coding_system_internal, 1, 1, 0, "")
4ed46869
KH
4871 (coding_system)
4872 Lisp_Object coding_system;
4873{
4874 CHECK_SYMBOL (coding_system, 0);
4875 setup_coding_system (Fcheck_coding_system (coding_system), &keyboard_coding);
4876 return Qnil;
4877}
4878
4879DEFUN ("keyboard-coding-system",
4880 Fkeyboard_coding_system, Skeyboard_coding_system, 0, 0, 0,
3a73fa5d 4881 "Return coding system specified for decoding keyboard input.")
4ed46869
KH
4882 ()
4883{
4884 return keyboard_coding.symbol;
4885}
4886
4887\f
a5d301df
KH
4888DEFUN ("find-operation-coding-system", Ffind_operation_coding_system,
4889 Sfind_operation_coding_system, 1, MANY, 0,
4890 "Choose a coding system for an operation based on the target name.\n\
9ce27fde
KH
4891The value names a pair of coding systems: (DECODING-SYSTEM ENCODING-SYSTEM).\n\
4892DECODING-SYSTEM is the coding system to use for decoding\n\
4893\(in case OPERATION does decoding), and ENCODING-SYSTEM is the coding system\n\
4894for encoding (in case OPERATION does encoding).\n\
ccdb79f5
RS
4895\n\
4896The first argument OPERATION specifies an I/O primitive:\n\
4897 For file I/O, `insert-file-contents' or `write-region'.\n\
4898 For process I/O, `call-process', `call-process-region', or `start-process'.\n\
4899 For network I/O, `open-network-stream'.\n\
4900\n\
4901The remaining arguments should be the same arguments that were passed\n\
4902to the primitive. Depending on which primitive, one of those arguments\n\
4903is selected as the TARGET. For example, if OPERATION does file I/O,\n\
4904whichever argument specifies the file name is TARGET.\n\
4905\n\
4906TARGET has a meaning which depends on OPERATION:\n\
4ed46869
KH
4907 For file I/O, TARGET is a file name.\n\
4908 For process I/O, TARGET is a process name.\n\
4909 For network I/O, TARGET is a service name or a port number\n\
4910\n\
02ba4723
KH
4911This function looks up what specified for TARGET in,\n\
4912`file-coding-system-alist', `process-coding-system-alist',\n\
4913or `network-coding-system-alist' depending on OPERATION.\n\
4914They may specify a coding system, a cons of coding systems,\n\
4915or a function symbol to call.\n\
4916In the last case, we call the function with one argument,\n\
9ce27fde 4917which is a list of all the arguments given to this function.")
4ed46869
KH
4918 (nargs, args)
4919 int nargs;
4920 Lisp_Object *args;
4921{
4922 Lisp_Object operation, target_idx, target, val;
4923 register Lisp_Object chain;
4924
4925 if (nargs < 2)
4926 error ("Too few arguments");
4927 operation = args[0];
4928 if (!SYMBOLP (operation)
4929 || !INTEGERP (target_idx = Fget (operation, Qtarget_idx)))
4930 error ("Invalid first arguement");
4931 if (nargs < 1 + XINT (target_idx))
4932 error ("Too few arguments for operation: %s",
4933 XSYMBOL (operation)->name->data);
4934 target = args[XINT (target_idx) + 1];
4935 if (!(STRINGP (target)
4936 || (EQ (operation, Qopen_network_stream) && INTEGERP (target))))
4937 error ("Invalid %dth argument", XINT (target_idx) + 1);
4938
2e34157c
RS
4939 chain = ((EQ (operation, Qinsert_file_contents)
4940 || EQ (operation, Qwrite_region))
02ba4723 4941 ? Vfile_coding_system_alist
2e34157c 4942 : (EQ (operation, Qopen_network_stream)
02ba4723
KH
4943 ? Vnetwork_coding_system_alist
4944 : Vprocess_coding_system_alist));
4ed46869
KH
4945 if (NILP (chain))
4946 return Qnil;
4947
02ba4723 4948 for (; CONSP (chain); chain = XCONS (chain)->cdr)
4ed46869 4949 {
f44d27ce
RS
4950 Lisp_Object elt;
4951 elt = XCONS (chain)->car;
4ed46869
KH
4952
4953 if (CONSP (elt)
4954 && ((STRINGP (target)
4955 && STRINGP (XCONS (elt)->car)
4956 && fast_string_match (XCONS (elt)->car, target) >= 0)
4957 || (INTEGERP (target) && EQ (target, XCONS (elt)->car))))
02ba4723
KH
4958 {
4959 val = XCONS (elt)->cdr;
b19fd4c5
KH
4960 /* Here, if VAL is both a valid coding system and a valid
4961 function symbol, we return VAL as a coding system. */
02ba4723
KH
4962 if (CONSP (val))
4963 return val;
4964 if (! SYMBOLP (val))
4965 return Qnil;
4966 if (! NILP (Fcoding_system_p (val)))
4967 return Fcons (val, val);
b19fd4c5
KH
4968 if (! NILP (Ffboundp (val)))
4969 {
4970 val = call1 (val, Flist (nargs, args));
4971 if (CONSP (val))
4972 return val;
4973 if (SYMBOLP (val) && ! NILP (Fcoding_system_p (val)))
4974 return Fcons (val, val);
4975 }
02ba4723
KH
4976 return Qnil;
4977 }
4ed46869
KH
4978 }
4979 return Qnil;
4980}
4981
d46c5b12
KH
4982DEFUN ("update-iso-coding-systems", Fupdate_iso_coding_systems,
4983 Supdate_iso_coding_systems, 0, 0, 0,
4984 "Update internal database for ISO2022 based coding systems.\n\
4985When values of the following coding categories are changed, you must\n\
4986call this function:\n\
4987 coding-category-iso-7, coding-category-iso-7-tight,\n\
4988 coding-category-iso-8-1, coding-category-iso-8-2,\n\
4989 coding-category-iso-7-else, coding-category-iso-8-else")
4990 ()
4991{
4992 int i;
4993
4994 for (i = CODING_CATEGORY_IDX_ISO_7; i <= CODING_CATEGORY_IDX_ISO_8_ELSE;
4995 i++)
4996 {
4997 if (! coding_system_table[i])
4998 coding_system_table[i]
4999 = (struct coding_system *) xmalloc (sizeof (struct coding_system));
5000 setup_coding_system
5001 (XSYMBOL (XVECTOR (Vcoding_category_table)->contents[i])->value,
5002 coding_system_table[i]);
5003 }
5004 return Qnil;
5005}
5006
66cfb530
KH
5007DEFUN ("set-coding-priority-internal", Fset_coding_priority_internal,
5008 Sset_coding_priority_internal, 0, 0, 0,
5009 "Update internal database for the current value of `coding-category-list'.\n\
5010This function is internal use only.")
5011 ()
5012{
5013 int i = 0, idx;
5014 Lisp_Object val = Vcoding_category_list;
5015
5016 while (CONSP (val) && i < CODING_CATEGORY_IDX_MAX)
5017 {
5018 if (! SYMBOLP (XCONS (val)->car))
5019 break;
5020 idx = XFASTINT (Fget (XCONS (val)->car, Qcoding_category_index));
5021 if (idx >= CODING_CATEGORY_IDX_MAX)
5022 break;
5023 coding_priorities[i++] = (1 << idx);
5024 val = XCONS (val)->cdr;
5025 }
5026 /* If coding-category-list is valid and contains all coding
5027 categories, `i' should be CODING_CATEGORY_IDX_MAX now. If not,
5028 the following code saves Emacs from craching. */
5029 while (i < CODING_CATEGORY_IDX_MAX)
5030 coding_priorities[i++] = CODING_CATEGORY_MASK_RAW_TEXT;
5031
5032 return Qnil;
5033}
5034
4ed46869
KH
5035#endif /* emacs */
5036
5037\f
5038/*** 8. Post-amble ***/
5039
dfcf069d 5040void
4ed46869
KH
5041init_coding_once ()
5042{
5043 int i;
5044
0ef69138 5045 /* Emacs' internal format specific initialize routine. */
4ed46869
KH
5046 for (i = 0; i <= 0x20; i++)
5047 emacs_code_class[i] = EMACS_control_code;
5048 emacs_code_class[0x0A] = EMACS_linefeed_code;
5049 emacs_code_class[0x0D] = EMACS_carriage_return_code;
5050 for (i = 0x21 ; i < 0x7F; i++)
5051 emacs_code_class[i] = EMACS_ascii_code;
5052 emacs_code_class[0x7F] = EMACS_control_code;
5053 emacs_code_class[0x80] = EMACS_leading_code_composition;
5054 for (i = 0x81; i < 0xFF; i++)
5055 emacs_code_class[i] = EMACS_invalid_code;
5056 emacs_code_class[LEADING_CODE_PRIVATE_11] = EMACS_leading_code_3;
5057 emacs_code_class[LEADING_CODE_PRIVATE_12] = EMACS_leading_code_3;
5058 emacs_code_class[LEADING_CODE_PRIVATE_21] = EMACS_leading_code_4;
5059 emacs_code_class[LEADING_CODE_PRIVATE_22] = EMACS_leading_code_4;
5060
5061 /* ISO2022 specific initialize routine. */
5062 for (i = 0; i < 0x20; i++)
5063 iso_code_class[i] = ISO_control_code;
5064 for (i = 0x21; i < 0x7F; i++)
5065 iso_code_class[i] = ISO_graphic_plane_0;
5066 for (i = 0x80; i < 0xA0; i++)
5067 iso_code_class[i] = ISO_control_code;
5068 for (i = 0xA1; i < 0xFF; i++)
5069 iso_code_class[i] = ISO_graphic_plane_1;
5070 iso_code_class[0x20] = iso_code_class[0x7F] = ISO_0x20_or_0x7F;
5071 iso_code_class[0xA0] = iso_code_class[0xFF] = ISO_0xA0_or_0xFF;
5072 iso_code_class[ISO_CODE_CR] = ISO_carriage_return;
5073 iso_code_class[ISO_CODE_SO] = ISO_shift_out;
5074 iso_code_class[ISO_CODE_SI] = ISO_shift_in;
5075 iso_code_class[ISO_CODE_SS2_7] = ISO_single_shift_2_7;
5076 iso_code_class[ISO_CODE_ESC] = ISO_escape;
5077 iso_code_class[ISO_CODE_SS2] = ISO_single_shift_2;
5078 iso_code_class[ISO_CODE_SS3] = ISO_single_shift_3;
5079 iso_code_class[ISO_CODE_CSI] = ISO_control_sequence_introducer;
5080
e0e989f6
KH
5081 conversion_buffer_size = MINIMUM_CONVERSION_BUFFER_SIZE;
5082 conversion_buffer = (char *) xmalloc (MINIMUM_CONVERSION_BUFFER_SIZE);
5083
5084 setup_coding_system (Qnil, &keyboard_coding);
5085 setup_coding_system (Qnil, &terminal_coding);
c4825358 5086 setup_coding_system (Qnil, &safe_terminal_coding);
9ce27fde 5087
d46c5b12
KH
5088 bzero (coding_system_table, sizeof coding_system_table);
5089
66cfb530
KH
5090 bzero (ascii_skip_code, sizeof ascii_skip_code);
5091 for (i = 0; i < 128; i++)
5092 ascii_skip_code[i] = 1;
5093
9ce27fde
KH
5094#if defined (MSDOS) || defined (WINDOWSNT)
5095 system_eol_type = CODING_EOL_CRLF;
5096#else
5097 system_eol_type = CODING_EOL_LF;
5098#endif
e0e989f6
KH
5099}
5100
5101#ifdef emacs
5102
dfcf069d 5103void
e0e989f6
KH
5104syms_of_coding ()
5105{
5106 Qtarget_idx = intern ("target-idx");
5107 staticpro (&Qtarget_idx);
5108
bb0115a2
RS
5109 Qcoding_system_history = intern ("coding-system-history");
5110 staticpro (&Qcoding_system_history);
5111 Fset (Qcoding_system_history, Qnil);
5112
9ce27fde 5113 /* Target FILENAME is the first argument. */
e0e989f6 5114 Fput (Qinsert_file_contents, Qtarget_idx, make_number (0));
9ce27fde 5115 /* Target FILENAME is the third argument. */
e0e989f6
KH
5116 Fput (Qwrite_region, Qtarget_idx, make_number (2));
5117
5118 Qcall_process = intern ("call-process");
5119 staticpro (&Qcall_process);
9ce27fde 5120 /* Target PROGRAM is the first argument. */
e0e989f6
KH
5121 Fput (Qcall_process, Qtarget_idx, make_number (0));
5122
5123 Qcall_process_region = intern ("call-process-region");
5124 staticpro (&Qcall_process_region);
9ce27fde 5125 /* Target PROGRAM is the third argument. */
e0e989f6
KH
5126 Fput (Qcall_process_region, Qtarget_idx, make_number (2));
5127
5128 Qstart_process = intern ("start-process");
5129 staticpro (&Qstart_process);
9ce27fde 5130 /* Target PROGRAM is the third argument. */
e0e989f6
KH
5131 Fput (Qstart_process, Qtarget_idx, make_number (2));
5132
5133 Qopen_network_stream = intern ("open-network-stream");
5134 staticpro (&Qopen_network_stream);
9ce27fde 5135 /* Target SERVICE is the fourth argument. */
e0e989f6
KH
5136 Fput (Qopen_network_stream, Qtarget_idx, make_number (3));
5137
4ed46869
KH
5138 Qcoding_system = intern ("coding-system");
5139 staticpro (&Qcoding_system);
5140
5141 Qeol_type = intern ("eol-type");
5142 staticpro (&Qeol_type);
5143
5144 Qbuffer_file_coding_system = intern ("buffer-file-coding-system");
5145 staticpro (&Qbuffer_file_coding_system);
5146
5147 Qpost_read_conversion = intern ("post-read-conversion");
5148 staticpro (&Qpost_read_conversion);
5149
5150 Qpre_write_conversion = intern ("pre-write-conversion");
5151 staticpro (&Qpre_write_conversion);
5152
27901516
KH
5153 Qno_conversion = intern ("no-conversion");
5154 staticpro (&Qno_conversion);
5155
5156 Qundecided = intern ("undecided");
5157 staticpro (&Qundecided);
5158
4ed46869
KH
5159 Qcoding_system_p = intern ("coding-system-p");
5160 staticpro (&Qcoding_system_p);
5161
5162 Qcoding_system_error = intern ("coding-system-error");
5163 staticpro (&Qcoding_system_error);
5164
5165 Fput (Qcoding_system_error, Qerror_conditions,
5166 Fcons (Qcoding_system_error, Fcons (Qerror, Qnil)));
5167 Fput (Qcoding_system_error, Qerror_message,
9ce27fde 5168 build_string ("Invalid coding system"));
4ed46869 5169
d46c5b12
KH
5170 Qcoding_category = intern ("coding-category");
5171 staticpro (&Qcoding_category);
4ed46869
KH
5172 Qcoding_category_index = intern ("coding-category-index");
5173 staticpro (&Qcoding_category_index);
5174
d46c5b12
KH
5175 Vcoding_category_table
5176 = Fmake_vector (make_number (CODING_CATEGORY_IDX_MAX), Qnil);
5177 staticpro (&Vcoding_category_table);
4ed46869
KH
5178 {
5179 int i;
5180 for (i = 0; i < CODING_CATEGORY_IDX_MAX; i++)
5181 {
d46c5b12
KH
5182 XVECTOR (Vcoding_category_table)->contents[i]
5183 = intern (coding_category_name[i]);
5184 Fput (XVECTOR (Vcoding_category_table)->contents[i],
5185 Qcoding_category_index, make_number (i));
4ed46869
KH
5186 }
5187 }
5188
f967223b
KH
5189 Qtranslation_table = intern ("translation-table");
5190 staticpro (&Qtranslation_table);
5191 Fput (Qtranslation_table, Qchar_table_extra_slots, make_number (0));
bdd9fb48 5192
f967223b
KH
5193 Qtranslation_table_id = intern ("translation-table-id");
5194 staticpro (&Qtranslation_table_id);
84fbb8a0 5195
f967223b
KH
5196 Qtranslation_table_for_decode = intern ("translation-table-for-decode");
5197 staticpro (&Qtranslation_table_for_decode);
a5d301df 5198
f967223b
KH
5199 Qtranslation_table_for_encode = intern ("translation-table-for-encode");
5200 staticpro (&Qtranslation_table_for_encode);
a5d301df 5201
70c22245
KH
5202 Qsafe_charsets = intern ("safe-charsets");
5203 staticpro (&Qsafe_charsets);
5204
9ce27fde
KH
5205 Qemacs_mule = intern ("emacs-mule");
5206 staticpro (&Qemacs_mule);
5207
d46c5b12
KH
5208 Qraw_text = intern ("raw-text");
5209 staticpro (&Qraw_text);
5210
4ed46869
KH
5211 defsubr (&Scoding_system_p);
5212 defsubr (&Sread_coding_system);
5213 defsubr (&Sread_non_nil_coding_system);
5214 defsubr (&Scheck_coding_system);
5215 defsubr (&Sdetect_coding_region);
d46c5b12 5216 defsubr (&Sdetect_coding_string);
4ed46869
KH
5217 defsubr (&Sdecode_coding_region);
5218 defsubr (&Sencode_coding_region);
5219 defsubr (&Sdecode_coding_string);
5220 defsubr (&Sencode_coding_string);
5221 defsubr (&Sdecode_sjis_char);
5222 defsubr (&Sencode_sjis_char);
5223 defsubr (&Sdecode_big5_char);
5224 defsubr (&Sencode_big5_char);
1ba9e4ab 5225 defsubr (&Sset_terminal_coding_system_internal);
c4825358 5226 defsubr (&Sset_safe_terminal_coding_system_internal);
4ed46869 5227 defsubr (&Sterminal_coding_system);
1ba9e4ab 5228 defsubr (&Sset_keyboard_coding_system_internal);
4ed46869 5229 defsubr (&Skeyboard_coding_system);
a5d301df 5230 defsubr (&Sfind_operation_coding_system);
d46c5b12 5231 defsubr (&Supdate_iso_coding_systems);
66cfb530 5232 defsubr (&Sset_coding_priority_internal);
4ed46869 5233
4608c386
KH
5234 DEFVAR_LISP ("coding-system-list", &Vcoding_system_list,
5235 "List of coding systems.\n\
5236\n\
5237Do not alter the value of this variable manually. This variable should be\n\
5238updated by the functions `make-coding-system' and\n\
5239`define-coding-system-alias'.");
5240 Vcoding_system_list = Qnil;
5241
5242 DEFVAR_LISP ("coding-system-alist", &Vcoding_system_alist,
5243 "Alist of coding system names.\n\
5244Each element is one element list of coding system name.\n\
5245This variable is given to `completing-read' as TABLE argument.\n\
5246\n\
5247Do not alter the value of this variable manually. This variable should be\n\
5248updated by the functions `make-coding-system' and\n\
5249`define-coding-system-alias'.");
5250 Vcoding_system_alist = Qnil;
5251
4ed46869
KH
5252 DEFVAR_LISP ("coding-category-list", &Vcoding_category_list,
5253 "List of coding-categories (symbols) ordered by priority.");
5254 {
5255 int i;
5256
5257 Vcoding_category_list = Qnil;
5258 for (i = CODING_CATEGORY_IDX_MAX - 1; i >= 0; i--)
5259 Vcoding_category_list
d46c5b12
KH
5260 = Fcons (XVECTOR (Vcoding_category_table)->contents[i],
5261 Vcoding_category_list);
4ed46869
KH
5262 }
5263
5264 DEFVAR_LISP ("coding-system-for-read", &Vcoding_system_for_read,
10bff6f1 5265 "Specify the coding system for read operations.\n\
2ebb362d 5266It is useful to bind this variable with `let', but do not set it globally.\n\
4ed46869 5267If the value is a coding system, it is used for decoding on read operation.\n\
a67a9c66 5268If not, an appropriate element is used from one of the coding system alists:\n\
10bff6f1 5269There are three such tables, `file-coding-system-alist',\n\
a67a9c66 5270`process-coding-system-alist', and `network-coding-system-alist'.");
4ed46869
KH
5271 Vcoding_system_for_read = Qnil;
5272
5273 DEFVAR_LISP ("coding-system-for-write", &Vcoding_system_for_write,
10bff6f1 5274 "Specify the coding system for write operations.\n\
2ebb362d 5275It is useful to bind this variable with `let', but do not set it globally.\n\
4ed46869 5276If the value is a coding system, it is used for encoding on write operation.\n\
a67a9c66 5277If not, an appropriate element is used from one of the coding system alists:\n\
10bff6f1 5278There are three such tables, `file-coding-system-alist',\n\
a67a9c66 5279`process-coding-system-alist', and `network-coding-system-alist'.");
4ed46869
KH
5280 Vcoding_system_for_write = Qnil;
5281
5282 DEFVAR_LISP ("last-coding-system-used", &Vlast_coding_system_used,
a67a9c66 5283 "Coding system used in the latest file or process I/O.");
4ed46869
KH
5284 Vlast_coding_system_used = Qnil;
5285
9ce27fde
KH
5286 DEFVAR_BOOL ("inhibit-eol-conversion", &inhibit_eol_conversion,
5287 "*Non-nil inhibit code conversion of end-of-line format in any cases.");
5288 inhibit_eol_conversion = 0;
5289
ed29121d
EZ
5290 DEFVAR_BOOL ("inherit-process-coding-system", &inherit_process_coding_system,
5291 "Non-nil means process buffer inherits coding system of process output.\n\
5292Bind it to t if the process output is to be treated as if it were a file\n\
5293read from some filesystem.");
5294 inherit_process_coding_system = 0;
5295
02ba4723
KH
5296 DEFVAR_LISP ("file-coding-system-alist", &Vfile_coding_system_alist,
5297 "Alist to decide a coding system to use for a file I/O operation.\n\
5298The format is ((PATTERN . VAL) ...),\n\
5299where PATTERN is a regular expression matching a file name,\n\
5300VAL is a coding system, a cons of coding systems, or a function symbol.\n\
5301If VAL is a coding system, it is used for both decoding and encoding\n\
5302the file contents.\n\
5303If VAL is a cons of coding systems, the car part is used for decoding,\n\
5304and the cdr part is used for encoding.\n\
5305If VAL is a function symbol, the function must return a coding system\n\
5306or a cons of coding systems which are used as above.\n\
e0e989f6 5307\n\
9ce27fde 5308See also the function `find-operation-coding-system'.");
02ba4723
KH
5309 Vfile_coding_system_alist = Qnil;
5310
5311 DEFVAR_LISP ("process-coding-system-alist", &Vprocess_coding_system_alist,
5312 "Alist to decide a coding system to use for a process I/O operation.\n\
5313The format is ((PATTERN . VAL) ...),\n\
5314where PATTERN is a regular expression matching a program name,\n\
5315VAL is a coding system, a cons of coding systems, or a function symbol.\n\
5316If VAL is a coding system, it is used for both decoding what received\n\
5317from the program and encoding what sent to the program.\n\
5318If VAL is a cons of coding systems, the car part is used for decoding,\n\
5319and the cdr part is used for encoding.\n\
5320If VAL is a function symbol, the function must return a coding system\n\
5321or a cons of coding systems which are used as above.\n\
4ed46869 5322\n\
9ce27fde 5323See also the function `find-operation-coding-system'.");
02ba4723
KH
5324 Vprocess_coding_system_alist = Qnil;
5325
5326 DEFVAR_LISP ("network-coding-system-alist", &Vnetwork_coding_system_alist,
5327 "Alist to decide a coding system to use for a network I/O operation.\n\
5328The format is ((PATTERN . VAL) ...),\n\
5329where PATTERN is a regular expression matching a network service name\n\
5330or is a port number to connect to,\n\
5331VAL is a coding system, a cons of coding systems, or a function symbol.\n\
5332If VAL is a coding system, it is used for both decoding what received\n\
5333from the network stream and encoding what sent to the network stream.\n\
5334If VAL is a cons of coding systems, the car part is used for decoding,\n\
5335and the cdr part is used for encoding.\n\
5336If VAL is a function symbol, the function must return a coding system\n\
5337or a cons of coding systems which are used as above.\n\
4ed46869 5338\n\
9ce27fde 5339See also the function `find-operation-coding-system'.");
02ba4723 5340 Vnetwork_coding_system_alist = Qnil;
4ed46869
KH
5341
5342 DEFVAR_INT ("eol-mnemonic-unix", &eol_mnemonic_unix,
5343 "Mnemonic character indicating UNIX-like end-of-line format (i.e. LF) .");
458822a0 5344 eol_mnemonic_unix = ':';
4ed46869
KH
5345
5346 DEFVAR_INT ("eol-mnemonic-dos", &eol_mnemonic_dos,
5347 "Mnemonic character indicating DOS-like end-of-line format (i.e. CRLF).");
458822a0 5348 eol_mnemonic_dos = '\\';
4ed46869
KH
5349
5350 DEFVAR_INT ("eol-mnemonic-mac", &eol_mnemonic_mac,
5351 "Mnemonic character indicating MAC-like end-of-line format (i.e. CR).");
458822a0 5352 eol_mnemonic_mac = '/';
4ed46869
KH
5353
5354 DEFVAR_INT ("eol-mnemonic-undecided", &eol_mnemonic_undecided,
5355 "Mnemonic character indicating end-of-line format is not yet decided.");
458822a0 5356 eol_mnemonic_undecided = ':';
4ed46869 5357
84fbb8a0 5358 DEFVAR_LISP ("enable-character-translation", &Venable_character_translation,
f967223b 5359 "*Non-nil enables character translation while encoding and decoding.");
84fbb8a0 5360 Venable_character_translation = Qt;
bdd9fb48 5361
f967223b
KH
5362 DEFVAR_LISP ("standard-translation-table-for-decode",
5363 &Vstandard_translation_table_for_decode,
84fbb8a0 5364 "Table for translating characters while decoding.");
f967223b 5365 Vstandard_translation_table_for_decode = Qnil;
bdd9fb48 5366
f967223b
KH
5367 DEFVAR_LISP ("standard-translation-table-for-encode",
5368 &Vstandard_translation_table_for_encode,
84fbb8a0 5369 "Table for translationg characters while encoding.");
f967223b 5370 Vstandard_translation_table_for_encode = Qnil;
4ed46869
KH
5371
5372 DEFVAR_LISP ("charset-revision-table", &Vcharset_revision_alist,
5373 "Alist of charsets vs revision numbers.\n\
5374While encoding, if a charset (car part of an element) is found,\n\
5375designate it with the escape sequence identifing revision (cdr part of the element).");
5376 Vcharset_revision_alist = Qnil;
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5377
5378 DEFVAR_LISP ("default-process-coding-system",
5379 &Vdefault_process_coding_system,
5380 "Cons of coding systems used for process I/O by default.\n\
5381The car part is used for decoding a process output,\n\
5382the cdr part is used for encoding a text to be sent to a process.");
5383 Vdefault_process_coding_system = Qnil;
c4825358 5384
3f003981
KH
5385 DEFVAR_LISP ("latin-extra-code-table", &Vlatin_extra_code_table,
5386 "Table of extra Latin codes in the range 128..159 (inclusive).\n\
c4825358
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5387This is a vector of length 256.\n\
5388If Nth element is non-nil, the existence of code N in a file\n\
bb0115a2 5389\(or output of subprocess) doesn't prevent it to be detected as\n\
3f003981
KH
5390a coding system of ISO 2022 variant which has a flag\n\
5391`accept-latin-extra-code' t (e.g. iso-latin-1) on reading a file\n\
c4825358
KH
5392or reading output of a subprocess.\n\
5393Only 128th through 159th elements has a meaning.");
3f003981 5394 Vlatin_extra_code_table = Fmake_vector (make_number (256), Qnil);
d46c5b12
KH
5395
5396 DEFVAR_LISP ("select-safe-coding-system-function",
5397 &Vselect_safe_coding_system_function,
5398 "Function to call to select safe coding system for encoding a text.\n\
5399\n\
5400If set, this function is called to force a user to select a proper\n\
5401coding system which can encode the text in the case that a default\n\
5402coding system used in each operation can't encode the text.\n\
5403\n\
5404The default value is `select-safe-codign-system' (which see).");
5405 Vselect_safe_coding_system_function = Qnil;
5406
4ed46869
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5407}
5408
5409#endif /* emacs */