Remove conditional compilation on NO_PROMPT_IN_BUFFER.
[bpt/emacs.git] / src / editfns.c
1 /* Lisp functions pertaining to editing.
2 Copyright (C) 1985,86,87,89,93,94,95,96,97,98 Free Software Foundation, Inc.
3
4 This file is part of GNU Emacs.
5
6 GNU Emacs is free software; you can redistribute it and/or modify
7 it under the terms of the GNU General Public License as published by
8 the Free Software Foundation; either version 2, or (at your option)
9 any later version.
10
11 GNU Emacs is distributed in the hope that it will be useful,
12 but WITHOUT ANY WARRANTY; without even the implied warranty of
13 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 GNU General Public License for more details.
15
16 You should have received a copy of the GNU General Public License
17 along with GNU Emacs; see the file COPYING. If not, write to
18 the Free Software Foundation, Inc., 59 Temple Place - Suite 330,
19 Boston, MA 02111-1307, USA. */
20
21
22 #include <sys/types.h>
23
24 #include <config.h>
25
26 #ifdef VMS
27 #include "vms-pwd.h"
28 #else
29 #include <pwd.h>
30 #endif
31
32 #ifdef STDC_HEADERS
33 #include <stdlib.h>
34 #endif
35
36 #ifdef HAVE_UNISTD_H
37 #include <unistd.h>
38 #endif
39
40 #include "lisp.h"
41 #include "intervals.h"
42 #include "buffer.h"
43 #include "charset.h"
44 #include "window.h"
45
46 #include "systime.h"
47
48 #define min(a, b) ((a) < (b) ? (a) : (b))
49 #define max(a, b) ((a) > (b) ? (a) : (b))
50
51 #ifndef NULL
52 #define NULL 0
53 #endif
54
55 extern char **environ;
56 extern Lisp_Object make_time ();
57 extern void insert_from_buffer ();
58 static int tm_diff ();
59 static void update_buffer_properties ();
60 size_t emacs_strftime ();
61 void set_time_zone_rule ();
62
63 Lisp_Object Vbuffer_access_fontify_functions;
64 Lisp_Object Qbuffer_access_fontify_functions;
65 Lisp_Object Vbuffer_access_fontified_property;
66
67 Lisp_Object Fuser_full_name ();
68
69 /* Some static data, and a function to initialize it for each run */
70
71 Lisp_Object Vsystem_name;
72 Lisp_Object Vuser_real_login_name; /* login name of current user ID */
73 Lisp_Object Vuser_full_name; /* full name of current user */
74 Lisp_Object Vuser_login_name; /* user name from LOGNAME or USER */
75
76 void
77 init_editfns ()
78 {
79 char *user_name;
80 register unsigned char *p, *q, *r;
81 struct passwd *pw; /* password entry for the current user */
82 Lisp_Object tem;
83
84 /* Set up system_name even when dumping. */
85 init_system_name ();
86
87 #ifndef CANNOT_DUMP
88 /* Don't bother with this on initial start when just dumping out */
89 if (!initialized)
90 return;
91 #endif /* not CANNOT_DUMP */
92
93 pw = (struct passwd *) getpwuid (getuid ());
94 #ifdef MSDOS
95 /* We let the real user name default to "root" because that's quite
96 accurate on MSDOG and because it lets Emacs find the init file.
97 (The DVX libraries override the Djgpp libraries here.) */
98 Vuser_real_login_name = build_string (pw ? pw->pw_name : "root");
99 #else
100 Vuser_real_login_name = build_string (pw ? pw->pw_name : "unknown");
101 #endif
102
103 /* Get the effective user name, by consulting environment variables,
104 or the effective uid if those are unset. */
105 user_name = (char *) getenv ("LOGNAME");
106 if (!user_name)
107 #ifdef WINDOWSNT
108 user_name = (char *) getenv ("USERNAME"); /* it's USERNAME on NT */
109 #else /* WINDOWSNT */
110 user_name = (char *) getenv ("USER");
111 #endif /* WINDOWSNT */
112 if (!user_name)
113 {
114 pw = (struct passwd *) getpwuid (geteuid ());
115 user_name = (char *) (pw ? pw->pw_name : "unknown");
116 }
117 Vuser_login_name = build_string (user_name);
118
119 /* If the user name claimed in the environment vars differs from
120 the real uid, use the claimed name to find the full name. */
121 tem = Fstring_equal (Vuser_login_name, Vuser_real_login_name);
122 Vuser_full_name = Fuser_full_name (NILP (tem)? make_number (geteuid())
123 : Vuser_login_name);
124
125 p = (unsigned char *) getenv ("NAME");
126 if (p)
127 Vuser_full_name = build_string (p);
128 else if (NILP (Vuser_full_name))
129 Vuser_full_name = build_string ("unknown");
130 }
131 \f
132 DEFUN ("char-to-string", Fchar_to_string, Schar_to_string, 1, 1, 0,
133 "Convert arg CHAR to a string containing that character.")
134 (character)
135 Lisp_Object character;
136 {
137 int len;
138 unsigned char workbuf[4], *str;
139
140 CHECK_NUMBER (character, 0);
141
142 len = CHAR_STRING (XFASTINT (character), workbuf, str);
143 return make_string_from_bytes (str, 1, len);
144 }
145
146 DEFUN ("string-to-char", Fstring_to_char, Sstring_to_char, 1, 1, 0,
147 "Convert arg STRING to a character, the first character of that string.\n\
148 A multibyte character is handled correctly.")
149 (string)
150 register Lisp_Object string;
151 {
152 register Lisp_Object val;
153 register struct Lisp_String *p;
154 CHECK_STRING (string, 0);
155 p = XSTRING (string);
156 if (p->size)
157 {
158 if (STRING_MULTIBYTE (string))
159 XSETFASTINT (val, STRING_CHAR (p->data, STRING_BYTES (p)));
160 else
161 XSETFASTINT (val, p->data[0]);
162 }
163 else
164 XSETFASTINT (val, 0);
165 return val;
166 }
167 \f
168 static Lisp_Object
169 buildmark (charpos, bytepos)
170 int charpos, bytepos;
171 {
172 register Lisp_Object mark;
173 mark = Fmake_marker ();
174 set_marker_both (mark, Qnil, charpos, bytepos);
175 return mark;
176 }
177
178 DEFUN ("point", Fpoint, Spoint, 0, 0, 0,
179 "Return value of point, as an integer.\n\
180 Beginning of buffer is position (point-min)")
181 ()
182 {
183 Lisp_Object temp;
184 XSETFASTINT (temp, PT);
185 return temp;
186 }
187
188 DEFUN ("point-marker", Fpoint_marker, Spoint_marker, 0, 0, 0,
189 "Return value of point, as a marker object.")
190 ()
191 {
192 return buildmark (PT, PT_BYTE);
193 }
194
195 int
196 clip_to_bounds (lower, num, upper)
197 int lower, num, upper;
198 {
199 if (num < lower)
200 return lower;
201 else if (num > upper)
202 return upper;
203 else
204 return num;
205 }
206
207 DEFUN ("goto-char", Fgoto_char, Sgoto_char, 1, 1, "NGoto char: ",
208 "Set point to POSITION, a number or marker.\n\
209 Beginning of buffer is position (point-min), end is (point-max).\n\
210 If the position is in the middle of a multibyte form,\n\
211 the actual point is set at the head of the multibyte form\n\
212 except in the case that `enable-multibyte-characters' is nil.")
213 (position)
214 register Lisp_Object position;
215 {
216 int pos;
217 unsigned char *p;
218
219 if (MARKERP (position)
220 && current_buffer == XMARKER (position)->buffer)
221 {
222 pos = marker_position (position);
223 if (pos < BEGV)
224 SET_PT_BOTH (BEGV, BEGV_BYTE);
225 else if (pos > ZV)
226 SET_PT_BOTH (ZV, ZV_BYTE);
227 else
228 SET_PT_BOTH (pos, marker_byte_position (position));
229
230 return position;
231 }
232
233 CHECK_NUMBER_COERCE_MARKER (position, 0);
234
235 pos = clip_to_bounds (BEGV, XINT (position), ZV);
236 SET_PT (pos);
237 return position;
238 }
239
240 static Lisp_Object
241 region_limit (beginningp)
242 int beginningp;
243 {
244 extern Lisp_Object Vmark_even_if_inactive; /* Defined in callint.c. */
245 register Lisp_Object m;
246 if (!NILP (Vtransient_mark_mode) && NILP (Vmark_even_if_inactive)
247 && NILP (current_buffer->mark_active))
248 Fsignal (Qmark_inactive, Qnil);
249 m = Fmarker_position (current_buffer->mark);
250 if (NILP (m)) error ("There is no region now");
251 if ((PT < XFASTINT (m)) == beginningp)
252 return (make_number (PT));
253 else
254 return (m);
255 }
256
257 DEFUN ("region-beginning", Fregion_beginning, Sregion_beginning, 0, 0, 0,
258 "Return position of beginning of region, as an integer.")
259 ()
260 {
261 return (region_limit (1));
262 }
263
264 DEFUN ("region-end", Fregion_end, Sregion_end, 0, 0, 0,
265 "Return position of end of region, as an integer.")
266 ()
267 {
268 return (region_limit (0));
269 }
270
271 DEFUN ("mark-marker", Fmark_marker, Smark_marker, 0, 0, 0,
272 "Return this buffer's mark, as a marker object.\n\
273 Watch out! Moving this marker changes the mark position.\n\
274 If you set the marker not to point anywhere, the buffer will have no mark.")
275 ()
276 {
277 return current_buffer->mark;
278 }
279 \f
280 DEFUN ("line-beginning-position", Fline_beginning_position, Sline_beginning_position,
281 0, 1, 0,
282 "Return the character position of the first character on the current line.\n\
283 With argument N not nil or 1, move forward N - 1 lines first.\n\
284 If scan reaches end of buffer, return that position.\n\
285 This function does not move point.")
286 (n)
287 Lisp_Object n;
288 {
289 register int orig, orig_byte, end;
290
291 if (NILP (n))
292 XSETFASTINT (n, 1);
293 else
294 CHECK_NUMBER (n, 0);
295
296 orig = PT;
297 orig_byte = PT_BYTE;
298 Fforward_line (make_number (XINT (n) - 1));
299 end = PT;
300 SET_PT_BOTH (orig, orig_byte);
301
302 return make_number (end);
303 }
304
305 DEFUN ("line-end-position", Fline_end_position, Sline_end_position,
306 0, 1, 0,
307 "Return the character position of the last character on the current line.\n\
308 With argument N not nil or 1, move forward N - 1 lines first.\n\
309 If scan reaches end of buffer, return that position.\n\
310 This function does not move point.")
311 (n)
312 Lisp_Object n;
313 {
314 if (NILP (n))
315 XSETFASTINT (n, 1);
316 else
317 CHECK_NUMBER (n, 0);
318
319 return make_number (find_before_next_newline
320 (PT, 0, XINT (n) - (XINT (n) <= 0)));
321 }
322 \f
323 Lisp_Object
324 save_excursion_save ()
325 {
326 register int visible = (XBUFFER (XWINDOW (selected_window)->buffer)
327 == current_buffer);
328
329 return Fcons (Fpoint_marker (),
330 Fcons (Fcopy_marker (current_buffer->mark, Qnil),
331 Fcons (visible ? Qt : Qnil,
332 current_buffer->mark_active)));
333 }
334
335 Lisp_Object
336 save_excursion_restore (info)
337 Lisp_Object info;
338 {
339 Lisp_Object tem, tem1, omark, nmark;
340 struct gcpro gcpro1, gcpro2, gcpro3;
341
342 tem = Fmarker_buffer (Fcar (info));
343 /* If buffer being returned to is now deleted, avoid error */
344 /* Otherwise could get error here while unwinding to top level
345 and crash */
346 /* In that case, Fmarker_buffer returns nil now. */
347 if (NILP (tem))
348 return Qnil;
349
350 omark = nmark = Qnil;
351 GCPRO3 (info, omark, nmark);
352
353 Fset_buffer (tem);
354 tem = Fcar (info);
355 Fgoto_char (tem);
356 unchain_marker (tem);
357 tem = Fcar (Fcdr (info));
358 omark = Fmarker_position (current_buffer->mark);
359 Fset_marker (current_buffer->mark, tem, Fcurrent_buffer ());
360 nmark = Fmarker_position (tem);
361 unchain_marker (tem);
362 tem = Fcdr (Fcdr (info));
363 #if 0 /* We used to make the current buffer visible in the selected window
364 if that was true previously. That avoids some anomalies.
365 But it creates others, and it wasn't documented, and it is simpler
366 and cleaner never to alter the window/buffer connections. */
367 tem1 = Fcar (tem);
368 if (!NILP (tem1)
369 && current_buffer != XBUFFER (XWINDOW (selected_window)->buffer))
370 Fswitch_to_buffer (Fcurrent_buffer (), Qnil);
371 #endif /* 0 */
372
373 tem1 = current_buffer->mark_active;
374 current_buffer->mark_active = Fcdr (tem);
375 if (!NILP (Vrun_hooks))
376 {
377 /* If mark is active now, and either was not active
378 or was at a different place, run the activate hook. */
379 if (! NILP (current_buffer->mark_active))
380 {
381 if (! EQ (omark, nmark))
382 call1 (Vrun_hooks, intern ("activate-mark-hook"));
383 }
384 /* If mark has ceased to be active, run deactivate hook. */
385 else if (! NILP (tem1))
386 call1 (Vrun_hooks, intern ("deactivate-mark-hook"));
387 }
388 UNGCPRO;
389 return Qnil;
390 }
391
392 DEFUN ("save-excursion", Fsave_excursion, Ssave_excursion, 0, UNEVALLED, 0,
393 "Save point, mark, and current buffer; execute BODY; restore those things.\n\
394 Executes BODY just like `progn'.\n\
395 The values of point, mark and the current buffer are restored\n\
396 even in case of abnormal exit (throw or error).\n\
397 The state of activation of the mark is also restored.\n\
398 \n\
399 This construct does not save `deactivate-mark', and therefore\n\
400 functions that change the buffer will still cause deactivation\n\
401 of the mark at the end of the command. To prevent that, bind\n\
402 `deactivate-mark' with `let'.")
403 (args)
404 Lisp_Object args;
405 {
406 register Lisp_Object val;
407 int count = specpdl_ptr - specpdl;
408
409 record_unwind_protect (save_excursion_restore, save_excursion_save ());
410
411 val = Fprogn (args);
412 return unbind_to (count, val);
413 }
414
415 DEFUN ("save-current-buffer", Fsave_current_buffer, Ssave_current_buffer, 0, UNEVALLED, 0,
416 "Save the current buffer; execute BODY; restore the current buffer.\n\
417 Executes BODY just like `progn'.")
418 (args)
419 Lisp_Object args;
420 {
421 register Lisp_Object val;
422 int count = specpdl_ptr - specpdl;
423
424 record_unwind_protect (set_buffer_if_live, Fcurrent_buffer ());
425
426 val = Fprogn (args);
427 return unbind_to (count, val);
428 }
429 \f
430 DEFUN ("buffer-size", Fbufsize, Sbufsize, 0, 0, 0,
431 "Return the number of characters in the current buffer.")
432 ()
433 {
434 Lisp_Object temp;
435 XSETFASTINT (temp, Z - BEG);
436 return temp;
437 }
438
439 DEFUN ("point-min", Fpoint_min, Spoint_min, 0, 0, 0,
440 "Return the minimum permissible value of point in the current buffer.\n\
441 This is 1, unless narrowing (a buffer restriction) is in effect.")
442 ()
443 {
444 Lisp_Object temp;
445 XSETFASTINT (temp, BEGV);
446 return temp;
447 }
448
449 DEFUN ("point-min-marker", Fpoint_min_marker, Spoint_min_marker, 0, 0, 0,
450 "Return a marker to the minimum permissible value of point in this buffer.\n\
451 This is the beginning, unless narrowing (a buffer restriction) is in effect.")
452 ()
453 {
454 return buildmark (BEGV, BEGV_BYTE);
455 }
456
457 DEFUN ("point-max", Fpoint_max, Spoint_max, 0, 0, 0,
458 "Return the maximum permissible value of point in the current buffer.\n\
459 This is (1+ (buffer-size)), unless narrowing (a buffer restriction)\n\
460 is in effect, in which case it is less.")
461 ()
462 {
463 Lisp_Object temp;
464 XSETFASTINT (temp, ZV);
465 return temp;
466 }
467
468 DEFUN ("point-max-marker", Fpoint_max_marker, Spoint_max_marker, 0, 0, 0,
469 "Return a marker to the maximum permissible value of point in this buffer.\n\
470 This is (1+ (buffer-size)), unless narrowing (a buffer restriction)\n\
471 is in effect, in which case it is less.")
472 ()
473 {
474 return buildmark (ZV, ZV_BYTE);
475 }
476
477 DEFUN ("gap-position", Fgap_position, Sgap_position, 0, 0, 0,
478 "Return the position of the gap, in the current buffer.\n\
479 See also `gap-size'.")
480 ()
481 {
482 Lisp_Object temp;
483 XSETFASTINT (temp, GPT);
484 return temp;
485 }
486
487 DEFUN ("gap-size", Fgap_size, Sgap_size, 0, 0, 0,
488 "Return the size of the current buffer's gap.\n\
489 See also `gap-position'.")
490 ()
491 {
492 Lisp_Object temp;
493 XSETFASTINT (temp, GAP_SIZE);
494 return temp;
495 }
496
497 DEFUN ("position-bytes", Fposition_bytes, Sposition_bytes, 1, 1, 0,
498 "Return the byte position for character position POSITION.\n\
499 If POSITION is out of range, the value is nil.")
500 (position)
501 Lisp_Object position;
502 {
503 CHECK_NUMBER_COERCE_MARKER (position, 1);
504 if (XINT (position) < BEG || XINT (position) > Z)
505 return Qnil;
506 return make_number (CHAR_TO_BYTE (XINT (position)));
507 }
508
509 DEFUN ("byte-to-position", Fbyte_to_position, Sbyte_to_position, 1, 1, 0,
510 "Return the character position for byte position BYTEPOS.\n\
511 If BYTEPOS is out of range, the value is nil.")
512 (bytepos)
513 Lisp_Object bytepos;
514 {
515 CHECK_NUMBER (bytepos, 1);
516 if (XINT (bytepos) < BEG_BYTE || XINT (bytepos) > Z_BYTE)
517 return Qnil;
518 return make_number (BYTE_TO_CHAR (XINT (bytepos)));
519 }
520 \f
521 DEFUN ("following-char", Ffollowing_char, Sfollowing_char, 0, 0, 0,
522 "Return the character following point, as a number.\n\
523 At the end of the buffer or accessible region, return 0.\n\
524 If `enable-multibyte-characters' is nil or point is not\n\
525 at character boundary, multibyte form is ignored,\n\
526 and only one byte following point is returned as a character.")
527 ()
528 {
529 Lisp_Object temp;
530 if (PT >= ZV)
531 XSETFASTINT (temp, 0);
532 else
533 XSETFASTINT (temp, FETCH_CHAR (PT_BYTE));
534 return temp;
535 }
536
537 DEFUN ("preceding-char", Fprevious_char, Sprevious_char, 0, 0, 0,
538 "Return the character preceding point, as a number.\n\
539 At the beginning of the buffer or accessible region, return 0.\n\
540 If `enable-multibyte-characters' is nil or point is not\n\
541 at character boundary, multi-byte form is ignored,\n\
542 and only one byte preceding point is returned as a character.")
543 ()
544 {
545 Lisp_Object temp;
546 if (PT <= BEGV)
547 XSETFASTINT (temp, 0);
548 else if (!NILP (current_buffer->enable_multibyte_characters))
549 {
550 int pos = PT_BYTE;
551 DEC_POS (pos);
552 XSETFASTINT (temp, FETCH_CHAR (pos));
553 }
554 else
555 XSETFASTINT (temp, FETCH_BYTE (PT_BYTE - 1));
556 return temp;
557 }
558
559 DEFUN ("bobp", Fbobp, Sbobp, 0, 0, 0,
560 "Return t if point is at the beginning of the buffer.\n\
561 If the buffer is narrowed, this means the beginning of the narrowed part.")
562 ()
563 {
564 if (PT == BEGV)
565 return Qt;
566 return Qnil;
567 }
568
569 DEFUN ("eobp", Feobp, Seobp, 0, 0, 0,
570 "Return t if point is at the end of the buffer.\n\
571 If the buffer is narrowed, this means the end of the narrowed part.")
572 ()
573 {
574 if (PT == ZV)
575 return Qt;
576 return Qnil;
577 }
578
579 DEFUN ("bolp", Fbolp, Sbolp, 0, 0, 0,
580 "Return t if point is at the beginning of a line.")
581 ()
582 {
583 if (PT == BEGV || FETCH_BYTE (PT_BYTE - 1) == '\n')
584 return Qt;
585 return Qnil;
586 }
587
588 DEFUN ("eolp", Feolp, Seolp, 0, 0, 0,
589 "Return t if point is at the end of a line.\n\
590 `End of a line' includes point being at the end of the buffer.")
591 ()
592 {
593 if (PT == ZV || FETCH_BYTE (PT_BYTE) == '\n')
594 return Qt;
595 return Qnil;
596 }
597
598 DEFUN ("char-after", Fchar_after, Schar_after, 0, 1, 0,
599 "Return character in current buffer at position POS.\n\
600 POS is an integer or a buffer pointer.\n\
601 If POS is out of range, the value is nil.")
602 (pos)
603 Lisp_Object pos;
604 {
605 register int pos_byte;
606 register Lisp_Object val;
607
608 if (NILP (pos))
609 {
610 pos_byte = PT_BYTE;
611 XSETFASTINT (pos, PT);
612 }
613
614 if (MARKERP (pos))
615 {
616 pos_byte = marker_byte_position (pos);
617 if (pos_byte < BEGV_BYTE || pos_byte >= ZV_BYTE)
618 return Qnil;
619 }
620 else
621 {
622 CHECK_NUMBER_COERCE_MARKER (pos, 0);
623 if (XINT (pos) < BEGV || XINT (pos) >= ZV)
624 return Qnil;
625
626 pos_byte = CHAR_TO_BYTE (XINT (pos));
627 }
628
629 return make_number (FETCH_CHAR (pos_byte));
630 }
631
632 DEFUN ("char-before", Fchar_before, Schar_before, 0, 1, 0,
633 "Return character in current buffer preceding position POS.\n\
634 POS is an integer or a buffer pointer.\n\
635 If POS is out of range, the value is nil.")
636 (pos)
637 Lisp_Object pos;
638 {
639 register Lisp_Object val;
640 register int pos_byte;
641
642 if (NILP (pos))
643 {
644 pos_byte = PT_BYTE;
645 XSETFASTINT (pos, PT);
646 }
647
648 if (MARKERP (pos))
649 {
650 pos_byte = marker_byte_position (pos);
651
652 if (pos_byte <= BEGV_BYTE || pos_byte > ZV_BYTE)
653 return Qnil;
654 }
655 else
656 {
657 CHECK_NUMBER_COERCE_MARKER (pos, 0);
658
659 if (XINT (pos) <= BEGV || XINT (pos) > ZV)
660 return Qnil;
661
662 pos_byte = CHAR_TO_BYTE (XINT (pos));
663 }
664
665 if (!NILP (current_buffer->enable_multibyte_characters))
666 {
667 DEC_POS (pos_byte);
668 XSETFASTINT (val, FETCH_CHAR (pos_byte));
669 }
670 else
671 {
672 pos_byte--;
673 XSETFASTINT (val, FETCH_BYTE (pos_byte));
674 }
675 return val;
676 }
677 \f
678 DEFUN ("user-login-name", Fuser_login_name, Suser_login_name, 0, 1, 0,
679 "Return the name under which the user logged in, as a string.\n\
680 This is based on the effective uid, not the real uid.\n\
681 Also, if the environment variable LOGNAME or USER is set,\n\
682 that determines the value of this function.\n\n\
683 If optional argument UID is an integer, return the login name of the user\n\
684 with that uid, or nil if there is no such user.")
685 (uid)
686 Lisp_Object uid;
687 {
688 struct passwd *pw;
689
690 /* Set up the user name info if we didn't do it before.
691 (That can happen if Emacs is dumpable
692 but you decide to run `temacs -l loadup' and not dump. */
693 if (INTEGERP (Vuser_login_name))
694 init_editfns ();
695
696 if (NILP (uid))
697 return Vuser_login_name;
698
699 CHECK_NUMBER (uid, 0);
700 pw = (struct passwd *) getpwuid (XINT (uid));
701 return (pw ? build_string (pw->pw_name) : Qnil);
702 }
703
704 DEFUN ("user-real-login-name", Fuser_real_login_name, Suser_real_login_name,
705 0, 0, 0,
706 "Return the name of the user's real uid, as a string.\n\
707 This ignores the environment variables LOGNAME and USER, so it differs from\n\
708 `user-login-name' when running under `su'.")
709 ()
710 {
711 /* Set up the user name info if we didn't do it before.
712 (That can happen if Emacs is dumpable
713 but you decide to run `temacs -l loadup' and not dump. */
714 if (INTEGERP (Vuser_login_name))
715 init_editfns ();
716 return Vuser_real_login_name;
717 }
718
719 DEFUN ("user-uid", Fuser_uid, Suser_uid, 0, 0, 0,
720 "Return the effective uid of Emacs, as an integer.")
721 ()
722 {
723 return make_number (geteuid ());
724 }
725
726 DEFUN ("user-real-uid", Fuser_real_uid, Suser_real_uid, 0, 0, 0,
727 "Return the real uid of Emacs, as an integer.")
728 ()
729 {
730 return make_number (getuid ());
731 }
732
733 DEFUN ("user-full-name", Fuser_full_name, Suser_full_name, 0, 1, 0,
734 "Return the full name of the user logged in, as a string.\n\
735 If the full name corresponding to Emacs's userid is not known,\n\
736 return \"unknown\".\n\
737 \n\
738 If optional argument UID is an integer, return the full name of the user\n\
739 with that uid, or nil if there is no such user.\n\
740 If UID is a string, return the full name of the user with that login\n\
741 name, or nil if there is no such user.")
742 (uid)
743 Lisp_Object uid;
744 {
745 struct passwd *pw;
746 register unsigned char *p, *q;
747 extern char *index ();
748 Lisp_Object full;
749
750 if (NILP (uid))
751 return Vuser_full_name;
752 else if (NUMBERP (uid))
753 pw = (struct passwd *) getpwuid (XINT (uid));
754 else if (STRINGP (uid))
755 pw = (struct passwd *) getpwnam (XSTRING (uid)->data);
756 else
757 error ("Invalid UID specification");
758
759 if (!pw)
760 return Qnil;
761
762 p = (unsigned char *) USER_FULL_NAME;
763 /* Chop off everything after the first comma. */
764 q = (unsigned char *) index (p, ',');
765 full = make_string (p, q ? q - p : strlen (p));
766
767 #ifdef AMPERSAND_FULL_NAME
768 p = XSTRING (full)->data;
769 q = (unsigned char *) index (p, '&');
770 /* Substitute the login name for the &, upcasing the first character. */
771 if (q)
772 {
773 register unsigned char *r;
774 Lisp_Object login;
775
776 login = Fuser_login_name (make_number (pw->pw_uid));
777 r = (unsigned char *) alloca (strlen (p) + XSTRING (login)->size + 1);
778 bcopy (p, r, q - p);
779 r[q - p] = 0;
780 strcat (r, XSTRING (login)->data);
781 r[q - p] = UPCASE (r[q - p]);
782 strcat (r, q + 1);
783 full = build_string (r);
784 }
785 #endif /* AMPERSAND_FULL_NAME */
786
787 return full;
788 }
789
790 DEFUN ("system-name", Fsystem_name, Ssystem_name, 0, 0, 0,
791 "Return the name of the machine you are running on, as a string.")
792 ()
793 {
794 return Vsystem_name;
795 }
796
797 /* For the benefit of callers who don't want to include lisp.h */
798 char *
799 get_system_name ()
800 {
801 if (STRINGP (Vsystem_name))
802 return (char *) XSTRING (Vsystem_name)->data;
803 else
804 return "";
805 }
806
807 DEFUN ("emacs-pid", Femacs_pid, Semacs_pid, 0, 0, 0,
808 "Return the process ID of Emacs, as an integer.")
809 ()
810 {
811 return make_number (getpid ());
812 }
813
814 DEFUN ("current-time", Fcurrent_time, Scurrent_time, 0, 0, 0,
815 "Return the current time, as the number of seconds since 1970-01-01 00:00:00.\n\
816 The time is returned as a list of three integers. The first has the\n\
817 most significant 16 bits of the seconds, while the second has the\n\
818 least significant 16 bits. The third integer gives the microsecond\n\
819 count.\n\
820 \n\
821 The microsecond count is zero on systems that do not provide\n\
822 resolution finer than a second.")
823 ()
824 {
825 EMACS_TIME t;
826 Lisp_Object result[3];
827
828 EMACS_GET_TIME (t);
829 XSETINT (result[0], (EMACS_SECS (t) >> 16) & 0xffff);
830 XSETINT (result[1], (EMACS_SECS (t) >> 0) & 0xffff);
831 XSETINT (result[2], EMACS_USECS (t));
832
833 return Flist (3, result);
834 }
835 \f
836
837 static int
838 lisp_time_argument (specified_time, result)
839 Lisp_Object specified_time;
840 time_t *result;
841 {
842 if (NILP (specified_time))
843 return time (result) != -1;
844 else
845 {
846 Lisp_Object high, low;
847 high = Fcar (specified_time);
848 CHECK_NUMBER (high, 0);
849 low = Fcdr (specified_time);
850 if (CONSP (low))
851 low = Fcar (low);
852 CHECK_NUMBER (low, 0);
853 *result = (XINT (high) << 16) + (XINT (low) & 0xffff);
854 return *result >> 16 == XINT (high);
855 }
856 }
857
858 /* Write information into buffer S of size MAXSIZE, according to the
859 FORMAT of length FORMAT_LEN, using time information taken from *TP.
860 Return the number of bytes written, not including the terminating
861 '\0'. If S is NULL, nothing will be written anywhere; so to
862 determine how many bytes would be written, use NULL for S and
863 ((size_t) -1) for MAXSIZE.
864
865 This function behaves like emacs_strftime, except it allows null
866 bytes in FORMAT. */
867 static size_t
868 emacs_memftime (s, maxsize, format, format_len, tp)
869 char *s;
870 size_t maxsize;
871 const char *format;
872 size_t format_len;
873 const struct tm *tp;
874 {
875 size_t total = 0;
876
877 /* Loop through all the null-terminated strings in the format
878 argument. Normally there's just one null-terminated string, but
879 there can be arbitrarily many, concatenated together, if the
880 format contains '\0' bytes. emacs_strftime stops at the first
881 '\0' byte so we must invoke it separately for each such string. */
882 for (;;)
883 {
884 size_t len;
885 size_t result;
886
887 if (s)
888 s[0] = '\1';
889
890 result = emacs_strftime (s, maxsize, format, tp);
891
892 if (s)
893 {
894 if (result == 0 && s[0] != '\0')
895 return 0;
896 s += result + 1;
897 }
898
899 maxsize -= result + 1;
900 total += result;
901 len = strlen (format);
902 if (len == format_len)
903 return total;
904 total++;
905 format += len + 1;
906 format_len -= len + 1;
907 }
908 }
909
910 /*
911 DEFUN ("format-time-string", Fformat_time_string, Sformat_time_string, 1, 3, 0,
912 "Use FORMAT-STRING to format the time TIME, or now if omitted.\n\
913 TIME is specified as (HIGH LOW . IGNORED) or (HIGH . LOW), as returned by\n\
914 `current-time' or `file-attributes'.\n\
915 The third, optional, argument UNIVERSAL, if non-nil, means describe TIME\n\
916 as Universal Time; nil means describe TIME in the local time zone.\n\
917 The value is a copy of FORMAT-STRING, but with certain constructs replaced\n\
918 by text that describes the specified date and time in TIME:\n\
919 \n\
920 %Y is the year, %y within the century, %C the century.\n\
921 %G is the year corresponding to the ISO week, %g within the century.\n\
922 %m is the numeric month.\n\
923 %b and %h are the locale's abbreviated month name, %B the full name.\n\
924 %d is the day of the month, zero-padded, %e is blank-padded.\n\
925 %u is the numeric day of week from 1 (Monday) to 7, %w from 0 (Sunday) to 6.\n\
926 %a is the locale's abbreviated name of the day of week, %A the full name.\n\
927 %U is the week number starting on Sunday, %W starting on Monday,\n\
928 %V according to ISO 8601.\n\
929 %j is the day of the year.\n\
930 \n\
931 %H is the hour on a 24-hour clock, %I is on a 12-hour clock, %k is like %H\n\
932 only blank-padded, %l is like %I blank-padded.\n\
933 %p is the locale's equivalent of either AM or PM.\n\
934 %M is the minute.\n\
935 %S is the second.\n\
936 %Z is the time zone name, %z is the numeric form.\n\
937 %s is the number of seconds since 1970-01-01 00:00:00 +0000.\n\
938 \n\
939 %c is the locale's date and time format.\n\
940 %x is the locale's \"preferred\" date format.\n\
941 %D is like \"%m/%d/%y\".\n\
942 \n\
943 %R is like \"%H:%M\", %T is like \"%H:%M:%S\", %r is like \"%I:%M:%S %p\".\n\
944 %X is the locale's \"preferred\" time format.\n\
945 \n\
946 Finally, %n is a newline, %t is a tab, %% is a literal %.\n\
947 \n\
948 Certain flags and modifiers are available with some format controls.\n\
949 The flags are `_' and `-'. For certain characters X, %_X is like %X,\n\
950 but padded with blanks; %-X is like %X, but without padding.\n\
951 %NX (where N stands for an integer) is like %X,\n\
952 but takes up at least N (a number) positions.\n\
953 The modifiers are `E' and `O'. For certain characters X,\n\
954 %EX is a locale's alternative version of %X;\n\
955 %OX is like %X, but uses the locale's number symbols.\n\
956 \n\
957 For example, to produce full ISO 8601 format, use \"%Y-%m-%dT%T%z\".")
958 (format_string, time, universal)
959 */
960
961 DEFUN ("format-time-string", Fformat_time_string, Sformat_time_string, 1, 3, 0,
962 0 /* See immediately above */)
963 (format_string, time, universal)
964 Lisp_Object format_string, time, universal;
965 {
966 time_t value;
967 int size;
968 struct tm *tm;
969
970 CHECK_STRING (format_string, 1);
971
972 if (! lisp_time_argument (time, &value))
973 error ("Invalid time specification");
974
975 /* This is probably enough. */
976 size = STRING_BYTES (XSTRING (format_string)) * 6 + 50;
977
978 tm = NILP (universal) ? localtime (&value) : gmtime (&value);
979 if (! tm)
980 error ("Specified time is not representable");
981
982 while (1)
983 {
984 char *buf = (char *) alloca (size + 1);
985 int result;
986
987 buf[0] = '\1';
988 result = emacs_memftime (buf, size, XSTRING (format_string)->data,
989 STRING_BYTES (XSTRING (format_string)),
990 tm);
991 if ((result > 0 && result < size) || (result == 0 && buf[0] == '\0'))
992 return make_string (buf, result);
993
994 /* If buffer was too small, make it bigger and try again. */
995 result = emacs_memftime (NULL, (size_t) -1,
996 XSTRING (format_string)->data,
997 STRING_BYTES (XSTRING (format_string)),
998 tm);
999 size = result + 1;
1000 }
1001 }
1002
1003 DEFUN ("decode-time", Fdecode_time, Sdecode_time, 0, 1, 0,
1004 "Decode a time value as (SEC MINUTE HOUR DAY MONTH YEAR DOW DST ZONE).\n\
1005 The optional SPECIFIED-TIME should be a list of (HIGH LOW . IGNORED)\n\
1006 or (HIGH . LOW), as from `current-time' and `file-attributes', or `nil'\n\
1007 to use the current time. The list has the following nine members:\n\
1008 SEC is an integer between 0 and 60; SEC is 60 for a leap second, which\n\
1009 only some operating systems support. MINUTE is an integer between 0 and 59.\n\
1010 HOUR is an integer between 0 and 23. DAY is an integer between 1 and 31.\n\
1011 MONTH is an integer between 1 and 12. YEAR is an integer indicating the\n\
1012 four-digit year. DOW is the day of week, an integer between 0 and 6, where\n\
1013 0 is Sunday. DST is t if daylight savings time is effect, otherwise nil.\n\
1014 ZONE is an integer indicating the number of seconds east of Greenwich.\n\
1015 \(Note that Common Lisp has different meanings for DOW and ZONE.)")
1016 (specified_time)
1017 Lisp_Object specified_time;
1018 {
1019 time_t time_spec;
1020 struct tm save_tm;
1021 struct tm *decoded_time;
1022 Lisp_Object list_args[9];
1023
1024 if (! lisp_time_argument (specified_time, &time_spec))
1025 error ("Invalid time specification");
1026
1027 decoded_time = localtime (&time_spec);
1028 if (! decoded_time)
1029 error ("Specified time is not representable");
1030 XSETFASTINT (list_args[0], decoded_time->tm_sec);
1031 XSETFASTINT (list_args[1], decoded_time->tm_min);
1032 XSETFASTINT (list_args[2], decoded_time->tm_hour);
1033 XSETFASTINT (list_args[3], decoded_time->tm_mday);
1034 XSETFASTINT (list_args[4], decoded_time->tm_mon + 1);
1035 XSETINT (list_args[5], decoded_time->tm_year + 1900);
1036 XSETFASTINT (list_args[6], decoded_time->tm_wday);
1037 list_args[7] = (decoded_time->tm_isdst)? Qt : Qnil;
1038
1039 /* Make a copy, in case gmtime modifies the struct. */
1040 save_tm = *decoded_time;
1041 decoded_time = gmtime (&time_spec);
1042 if (decoded_time == 0)
1043 list_args[8] = Qnil;
1044 else
1045 XSETINT (list_args[8], tm_diff (&save_tm, decoded_time));
1046 return Flist (9, list_args);
1047 }
1048
1049 DEFUN ("encode-time", Fencode_time, Sencode_time, 6, MANY, 0,
1050 "Convert SECOND, MINUTE, HOUR, DAY, MONTH, YEAR and ZONE to internal time.\n\
1051 This is the reverse operation of `decode-time', which see.\n\
1052 ZONE defaults to the current time zone rule. This can\n\
1053 be a string or t (as from `set-time-zone-rule'), or it can be a list\n\
1054 \(as from `current-time-zone') or an integer (as from `decode-time')\n\
1055 applied without consideration for daylight savings time.\n\
1056 \n\
1057 You can pass more than 7 arguments; then the first six arguments\n\
1058 are used as SECOND through YEAR, and the *last* argument is used as ZONE.\n\
1059 The intervening arguments are ignored.\n\
1060 This feature lets (apply 'encode-time (decode-time ...)) work.\n\
1061 \n\
1062 Out-of-range values for SEC, MINUTE, HOUR, DAY, or MONTH are allowed;\n\
1063 for example, a DAY of 0 means the day preceding the given month.\n\
1064 Year numbers less than 100 are treated just like other year numbers.\n\
1065 If you want them to stand for years in this century, you must do that yourself.")
1066 (nargs, args)
1067 int nargs;
1068 register Lisp_Object *args;
1069 {
1070 time_t time;
1071 struct tm tm;
1072 Lisp_Object zone = (nargs > 6 ? args[nargs - 1] : Qnil);
1073
1074 CHECK_NUMBER (args[0], 0); /* second */
1075 CHECK_NUMBER (args[1], 1); /* minute */
1076 CHECK_NUMBER (args[2], 2); /* hour */
1077 CHECK_NUMBER (args[3], 3); /* day */
1078 CHECK_NUMBER (args[4], 4); /* month */
1079 CHECK_NUMBER (args[5], 5); /* year */
1080
1081 tm.tm_sec = XINT (args[0]);
1082 tm.tm_min = XINT (args[1]);
1083 tm.tm_hour = XINT (args[2]);
1084 tm.tm_mday = XINT (args[3]);
1085 tm.tm_mon = XINT (args[4]) - 1;
1086 tm.tm_year = XINT (args[5]) - 1900;
1087 tm.tm_isdst = -1;
1088
1089 if (CONSP (zone))
1090 zone = Fcar (zone);
1091 if (NILP (zone))
1092 time = mktime (&tm);
1093 else
1094 {
1095 char tzbuf[100];
1096 char *tzstring;
1097 char **oldenv = environ, **newenv;
1098
1099 if (EQ (zone, Qt))
1100 tzstring = "UTC0";
1101 else if (STRINGP (zone))
1102 tzstring = (char *) XSTRING (zone)->data;
1103 else if (INTEGERP (zone))
1104 {
1105 int abszone = abs (XINT (zone));
1106 sprintf (tzbuf, "XXX%s%d:%02d:%02d", "-" + (XINT (zone) < 0),
1107 abszone / (60*60), (abszone/60) % 60, abszone % 60);
1108 tzstring = tzbuf;
1109 }
1110 else
1111 error ("Invalid time zone specification");
1112
1113 /* Set TZ before calling mktime; merely adjusting mktime's returned
1114 value doesn't suffice, since that would mishandle leap seconds. */
1115 set_time_zone_rule (tzstring);
1116
1117 time = mktime (&tm);
1118
1119 /* Restore TZ to previous value. */
1120 newenv = environ;
1121 environ = oldenv;
1122 xfree (newenv);
1123 #ifdef LOCALTIME_CACHE
1124 tzset ();
1125 #endif
1126 }
1127
1128 if (time == (time_t) -1)
1129 error ("Specified time is not representable");
1130
1131 return make_time (time);
1132 }
1133
1134 DEFUN ("current-time-string", Fcurrent_time_string, Scurrent_time_string, 0, 1, 0,
1135 "Return the current time, as a human-readable string.\n\
1136 Programs can use this function to decode a time,\n\
1137 since the number of columns in each field is fixed.\n\
1138 The format is `Sun Sep 16 01:03:52 1973'.\n\
1139 However, see also the functions `decode-time' and `format-time-string'\n\
1140 which provide a much more powerful and general facility.\n\
1141 \n\
1142 If an argument is given, it specifies a time to format\n\
1143 instead of the current time. The argument should have the form:\n\
1144 (HIGH . LOW)\n\
1145 or the form:\n\
1146 (HIGH LOW . IGNORED).\n\
1147 Thus, you can use times obtained from `current-time'\n\
1148 and from `file-attributes'.")
1149 (specified_time)
1150 Lisp_Object specified_time;
1151 {
1152 time_t value;
1153 char buf[30];
1154 register char *tem;
1155
1156 if (! lisp_time_argument (specified_time, &value))
1157 value = -1;
1158 tem = (char *) ctime (&value);
1159
1160 strncpy (buf, tem, 24);
1161 buf[24] = 0;
1162
1163 return build_string (buf);
1164 }
1165
1166 #define TM_YEAR_BASE 1900
1167
1168 /* Yield A - B, measured in seconds.
1169 This function is copied from the GNU C Library. */
1170 static int
1171 tm_diff (a, b)
1172 struct tm *a, *b;
1173 {
1174 /* Compute intervening leap days correctly even if year is negative.
1175 Take care to avoid int overflow in leap day calculations,
1176 but it's OK to assume that A and B are close to each other. */
1177 int a4 = (a->tm_year >> 2) + (TM_YEAR_BASE >> 2) - ! (a->tm_year & 3);
1178 int b4 = (b->tm_year >> 2) + (TM_YEAR_BASE >> 2) - ! (b->tm_year & 3);
1179 int a100 = a4 / 25 - (a4 % 25 < 0);
1180 int b100 = b4 / 25 - (b4 % 25 < 0);
1181 int a400 = a100 >> 2;
1182 int b400 = b100 >> 2;
1183 int intervening_leap_days = (a4 - b4) - (a100 - b100) + (a400 - b400);
1184 int years = a->tm_year - b->tm_year;
1185 int days = (365 * years + intervening_leap_days
1186 + (a->tm_yday - b->tm_yday));
1187 return (60 * (60 * (24 * days + (a->tm_hour - b->tm_hour))
1188 + (a->tm_min - b->tm_min))
1189 + (a->tm_sec - b->tm_sec));
1190 }
1191
1192 DEFUN ("current-time-zone", Fcurrent_time_zone, Scurrent_time_zone, 0, 1, 0,
1193 "Return the offset and name for the local time zone.\n\
1194 This returns a list of the form (OFFSET NAME).\n\
1195 OFFSET is an integer number of seconds ahead of UTC (east of Greenwich).\n\
1196 A negative value means west of Greenwich.\n\
1197 NAME is a string giving the name of the time zone.\n\
1198 If an argument is given, it specifies when the time zone offset is determined\n\
1199 instead of using the current time. The argument should have the form:\n\
1200 (HIGH . LOW)\n\
1201 or the form:\n\
1202 (HIGH LOW . IGNORED).\n\
1203 Thus, you can use times obtained from `current-time'\n\
1204 and from `file-attributes'.\n\
1205 \n\
1206 Some operating systems cannot provide all this information to Emacs;\n\
1207 in this case, `current-time-zone' returns a list containing nil for\n\
1208 the data it can't find.")
1209 (specified_time)
1210 Lisp_Object specified_time;
1211 {
1212 time_t value;
1213 struct tm *t;
1214 struct tm gmt;
1215
1216 if (lisp_time_argument (specified_time, &value)
1217 && (t = gmtime (&value)) != 0
1218 && (gmt = *t, t = localtime (&value)) != 0)
1219 {
1220 int offset = tm_diff (t, &gmt);
1221 char *s = 0;
1222 char buf[6];
1223 #ifdef HAVE_TM_ZONE
1224 if (t->tm_zone)
1225 s = (char *)t->tm_zone;
1226 #else /* not HAVE_TM_ZONE */
1227 #ifdef HAVE_TZNAME
1228 if (t->tm_isdst == 0 || t->tm_isdst == 1)
1229 s = tzname[t->tm_isdst];
1230 #endif
1231 #endif /* not HAVE_TM_ZONE */
1232 if (!s)
1233 {
1234 /* No local time zone name is available; use "+-NNNN" instead. */
1235 int am = (offset < 0 ? -offset : offset) / 60;
1236 sprintf (buf, "%c%02d%02d", (offset < 0 ? '-' : '+'), am/60, am%60);
1237 s = buf;
1238 }
1239 return Fcons (make_number (offset), Fcons (build_string (s), Qnil));
1240 }
1241 else
1242 return Fmake_list (make_number (2), Qnil);
1243 }
1244
1245 /* This holds the value of `environ' produced by the previous
1246 call to Fset_time_zone_rule, or 0 if Fset_time_zone_rule
1247 has never been called. */
1248 static char **environbuf;
1249
1250 DEFUN ("set-time-zone-rule", Fset_time_zone_rule, Sset_time_zone_rule, 1, 1, 0,
1251 "Set the local time zone using TZ, a string specifying a time zone rule.\n\
1252 If TZ is nil, use implementation-defined default time zone information.\n\
1253 If TZ is t, use Universal Time.")
1254 (tz)
1255 Lisp_Object tz;
1256 {
1257 char *tzstring;
1258
1259 if (NILP (tz))
1260 tzstring = 0;
1261 else if (EQ (tz, Qt))
1262 tzstring = "UTC0";
1263 else
1264 {
1265 CHECK_STRING (tz, 0);
1266 tzstring = (char *) XSTRING (tz)->data;
1267 }
1268
1269 set_time_zone_rule (tzstring);
1270 if (environbuf)
1271 free (environbuf);
1272 environbuf = environ;
1273
1274 return Qnil;
1275 }
1276
1277 #ifdef LOCALTIME_CACHE
1278
1279 /* These two values are known to load tz files in buggy implementations,
1280 i.e. Solaris 1 executables running under either Solaris 1 or Solaris 2.
1281 Their values shouldn't matter in non-buggy implementations.
1282 We don't use string literals for these strings,
1283 since if a string in the environment is in readonly
1284 storage, it runs afoul of bugs in SVR4 and Solaris 2.3.
1285 See Sun bugs 1113095 and 1114114, ``Timezone routines
1286 improperly modify environment''. */
1287
1288 static char set_time_zone_rule_tz1[] = "TZ=GMT+0";
1289 static char set_time_zone_rule_tz2[] = "TZ=GMT+1";
1290
1291 #endif
1292
1293 /* Set the local time zone rule to TZSTRING.
1294 This allocates memory into `environ', which it is the caller's
1295 responsibility to free. */
1296 void
1297 set_time_zone_rule (tzstring)
1298 char *tzstring;
1299 {
1300 int envptrs;
1301 char **from, **to, **newenv;
1302
1303 /* Make the ENVIRON vector longer with room for TZSTRING. */
1304 for (from = environ; *from; from++)
1305 continue;
1306 envptrs = from - environ + 2;
1307 newenv = to = (char **) xmalloc (envptrs * sizeof (char *)
1308 + (tzstring ? strlen (tzstring) + 4 : 0));
1309
1310 /* Add TZSTRING to the end of environ, as a value for TZ. */
1311 if (tzstring)
1312 {
1313 char *t = (char *) (to + envptrs);
1314 strcpy (t, "TZ=");
1315 strcat (t, tzstring);
1316 *to++ = t;
1317 }
1318
1319 /* Copy the old environ vector elements into NEWENV,
1320 but don't copy the TZ variable.
1321 So we have only one definition of TZ, which came from TZSTRING. */
1322 for (from = environ; *from; from++)
1323 if (strncmp (*from, "TZ=", 3) != 0)
1324 *to++ = *from;
1325 *to = 0;
1326
1327 environ = newenv;
1328
1329 /* If we do have a TZSTRING, NEWENV points to the vector slot where
1330 the TZ variable is stored. If we do not have a TZSTRING,
1331 TO points to the vector slot which has the terminating null. */
1332
1333 #ifdef LOCALTIME_CACHE
1334 {
1335 /* In SunOS 4.1.3_U1 and 4.1.4, if TZ has a value like
1336 "US/Pacific" that loads a tz file, then changes to a value like
1337 "XXX0" that does not load a tz file, and then changes back to
1338 its original value, the last change is (incorrectly) ignored.
1339 Also, if TZ changes twice in succession to values that do
1340 not load a tz file, tzset can dump core (see Sun bug#1225179).
1341 The following code works around these bugs. */
1342
1343 if (tzstring)
1344 {
1345 /* Temporarily set TZ to a value that loads a tz file
1346 and that differs from tzstring. */
1347 char *tz = *newenv;
1348 *newenv = (strcmp (tzstring, set_time_zone_rule_tz1 + 3) == 0
1349 ? set_time_zone_rule_tz2 : set_time_zone_rule_tz1);
1350 tzset ();
1351 *newenv = tz;
1352 }
1353 else
1354 {
1355 /* The implied tzstring is unknown, so temporarily set TZ to
1356 two different values that each load a tz file. */
1357 *to = set_time_zone_rule_tz1;
1358 to[1] = 0;
1359 tzset ();
1360 *to = set_time_zone_rule_tz2;
1361 tzset ();
1362 *to = 0;
1363 }
1364
1365 /* Now TZ has the desired value, and tzset can be invoked safely. */
1366 }
1367
1368 tzset ();
1369 #endif
1370 }
1371 \f
1372 /* Insert NARGS Lisp objects in the array ARGS by calling INSERT_FUNC
1373 (if a type of object is Lisp_Int) or INSERT_FROM_STRING_FUNC (if a
1374 type of object is Lisp_String). INHERIT is passed to
1375 INSERT_FROM_STRING_FUNC as the last argument. */
1376
1377 void
1378 general_insert_function (insert_func, insert_from_string_func,
1379 inherit, nargs, args)
1380 void (*insert_func) P_ ((unsigned char *, int));
1381 void (*insert_from_string_func) P_ ((Lisp_Object, int, int, int, int, int));
1382 int inherit, nargs;
1383 register Lisp_Object *args;
1384 {
1385 register int argnum;
1386 register Lisp_Object val;
1387
1388 for (argnum = 0; argnum < nargs; argnum++)
1389 {
1390 val = args[argnum];
1391 retry:
1392 if (INTEGERP (val))
1393 {
1394 unsigned char workbuf[4], *str;
1395 int len;
1396
1397 if (!NILP (current_buffer->enable_multibyte_characters))
1398 len = CHAR_STRING (XFASTINT (val), workbuf, str);
1399 else
1400 {
1401 workbuf[0] = (SINGLE_BYTE_CHAR_P (XINT (val))
1402 ? XINT (val)
1403 : multibyte_char_to_unibyte (XINT (val), Qnil));
1404 str = workbuf;
1405 len = 1;
1406 }
1407 (*insert_func) (str, len);
1408 }
1409 else if (STRINGP (val))
1410 {
1411 (*insert_from_string_func) (val, 0, 0,
1412 XSTRING (val)->size,
1413 STRING_BYTES (XSTRING (val)),
1414 inherit);
1415 }
1416 else
1417 {
1418 val = wrong_type_argument (Qchar_or_string_p, val);
1419 goto retry;
1420 }
1421 }
1422 }
1423
1424 void
1425 insert1 (arg)
1426 Lisp_Object arg;
1427 {
1428 Finsert (1, &arg);
1429 }
1430
1431
1432 /* Callers passing one argument to Finsert need not gcpro the
1433 argument "array", since the only element of the array will
1434 not be used after calling insert or insert_from_string, so
1435 we don't care if it gets trashed. */
1436
1437 DEFUN ("insert", Finsert, Sinsert, 0, MANY, 0,
1438 "Insert the arguments, either strings or characters, at point.\n\
1439 Point and before-insertion markers move forward to end up\n\
1440 after the inserted text.\n\
1441 Any other markers at the point of insertion remain before the text.\n\
1442 \n\
1443 If the current buffer is multibyte, unibyte strings are converted\n\
1444 to multibyte for insertion (see `unibyte-char-to-multibyte').\n\
1445 If the current buffer is unibyte, multibyte strings are converted\n\
1446 to unibyte for insertion.")
1447 (nargs, args)
1448 int nargs;
1449 register Lisp_Object *args;
1450 {
1451 general_insert_function (insert, insert_from_string, 0, nargs, args);
1452 return Qnil;
1453 }
1454
1455 DEFUN ("insert-and-inherit", Finsert_and_inherit, Sinsert_and_inherit,
1456 0, MANY, 0,
1457 "Insert the arguments at point, inheriting properties from adjoining text.\n\
1458 Point and before-insertion markers move forward to end up\n\
1459 after the inserted text.\n\
1460 Any other markers at the point of insertion remain before the text.\n\
1461 \n\
1462 If the current buffer is multibyte, unibyte strings are converted\n\
1463 to multibyte for insertion (see `unibyte-char-to-multibyte').\n\
1464 If the current buffer is unibyte, multibyte strings are converted\n\
1465 to unibyte for insertion.")
1466 (nargs, args)
1467 int nargs;
1468 register Lisp_Object *args;
1469 {
1470 general_insert_function (insert_and_inherit, insert_from_string, 1,
1471 nargs, args);
1472 return Qnil;
1473 }
1474
1475 DEFUN ("insert-before-markers", Finsert_before_markers, Sinsert_before_markers, 0, MANY, 0,
1476 "Insert strings or characters at point, relocating markers after the text.\n\
1477 Point and markers move forward to end up after the inserted text.\n\
1478 \n\
1479 If the current buffer is multibyte, unibyte strings are converted\n\
1480 to multibyte for insertion (see `unibyte-char-to-multibyte').\n\
1481 If the current buffer is unibyte, multibyte strings are converted\n\
1482 to unibyte for insertion.")
1483 (nargs, args)
1484 int nargs;
1485 register Lisp_Object *args;
1486 {
1487 general_insert_function (insert_before_markers,
1488 insert_from_string_before_markers, 0,
1489 nargs, args);
1490 return Qnil;
1491 }
1492
1493 DEFUN ("insert-before-markers-and-inherit", Finsert_and_inherit_before_markers,
1494 Sinsert_and_inherit_before_markers, 0, MANY, 0,
1495 "Insert text at point, relocating markers and inheriting properties.\n\
1496 Point and markers move forward to end up after the inserted text.\n\
1497 \n\
1498 If the current buffer is multibyte, unibyte strings are converted\n\
1499 to multibyte for insertion (see `unibyte-char-to-multibyte').\n\
1500 If the current buffer is unibyte, multibyte strings are converted\n\
1501 to unibyte for insertion.")
1502 (nargs, args)
1503 int nargs;
1504 register Lisp_Object *args;
1505 {
1506 general_insert_function (insert_before_markers_and_inherit,
1507 insert_from_string_before_markers, 1,
1508 nargs, args);
1509 return Qnil;
1510 }
1511 \f
1512 DEFUN ("insert-char", Finsert_char, Sinsert_char, 2, 3, 0,
1513 "Insert COUNT (second arg) copies of CHARACTER (first arg).\n\
1514 Both arguments are required.\n\
1515 Point, and before-insertion markers, are relocated as in the function `insert'.\n\
1516 The optional third arg INHERIT, if non-nil, says to inherit text properties\n\
1517 from adjoining text, if those properties are sticky.")
1518 (character, count, inherit)
1519 Lisp_Object character, count, inherit;
1520 {
1521 register unsigned char *string;
1522 register int strlen;
1523 register int i, n;
1524 int len;
1525 unsigned char workbuf[4], *str;
1526
1527 CHECK_NUMBER (character, 0);
1528 CHECK_NUMBER (count, 1);
1529
1530 if (!NILP (current_buffer->enable_multibyte_characters))
1531 len = CHAR_STRING (XFASTINT (character), workbuf, str);
1532 else
1533 workbuf[0] = XFASTINT (character), str = workbuf, len = 1;
1534 n = XINT (count) * len;
1535 if (n <= 0)
1536 return Qnil;
1537 strlen = min (n, 256 * len);
1538 string = (unsigned char *) alloca (strlen);
1539 for (i = 0; i < strlen; i++)
1540 string[i] = str[i % len];
1541 while (n >= strlen)
1542 {
1543 QUIT;
1544 if (!NILP (inherit))
1545 insert_and_inherit (string, strlen);
1546 else
1547 insert (string, strlen);
1548 n -= strlen;
1549 }
1550 if (n > 0)
1551 {
1552 if (!NILP (inherit))
1553 insert_and_inherit (string, n);
1554 else
1555 insert (string, n);
1556 }
1557 return Qnil;
1558 }
1559
1560 \f
1561 /* Making strings from buffer contents. */
1562
1563 /* Return a Lisp_String containing the text of the current buffer from
1564 START to END. If text properties are in use and the current buffer
1565 has properties in the range specified, the resulting string will also
1566 have them, if PROPS is nonzero.
1567
1568 We don't want to use plain old make_string here, because it calls
1569 make_uninit_string, which can cause the buffer arena to be
1570 compacted. make_string has no way of knowing that the data has
1571 been moved, and thus copies the wrong data into the string. This
1572 doesn't effect most of the other users of make_string, so it should
1573 be left as is. But we should use this function when conjuring
1574 buffer substrings. */
1575
1576 Lisp_Object
1577 make_buffer_string (start, end, props)
1578 int start, end;
1579 int props;
1580 {
1581 int start_byte = CHAR_TO_BYTE (start);
1582 int end_byte = CHAR_TO_BYTE (end);
1583
1584 return make_buffer_string_both (start, start_byte, end, end_byte, props);
1585 }
1586
1587 /* Return a Lisp_String containing the text of the current buffer from
1588 START / START_BYTE to END / END_BYTE.
1589
1590 If text properties are in use and the current buffer
1591 has properties in the range specified, the resulting string will also
1592 have them, if PROPS is nonzero.
1593
1594 We don't want to use plain old make_string here, because it calls
1595 make_uninit_string, which can cause the buffer arena to be
1596 compacted. make_string has no way of knowing that the data has
1597 been moved, and thus copies the wrong data into the string. This
1598 doesn't effect most of the other users of make_string, so it should
1599 be left as is. But we should use this function when conjuring
1600 buffer substrings. */
1601
1602 Lisp_Object
1603 make_buffer_string_both (start, start_byte, end, end_byte, props)
1604 int start, start_byte, end, end_byte;
1605 int props;
1606 {
1607 Lisp_Object result, tem, tem1;
1608
1609 if (INTEGERP (current_buffer->minibuffer_prompt_length))
1610 {
1611 int len = XFASTINT (current_buffer->minibuffer_prompt_length);
1612 start = min (end, max (len, start));
1613 start_byte = CHAR_TO_BYTE (start);
1614 }
1615
1616 if (start < GPT && GPT < end)
1617 move_gap (start);
1618
1619 if (! NILP (current_buffer->enable_multibyte_characters))
1620 result = make_uninit_multibyte_string (end - start, end_byte - start_byte);
1621 else
1622 result = make_uninit_string (end - start);
1623 bcopy (BYTE_POS_ADDR (start_byte), XSTRING (result)->data,
1624 end_byte - start_byte);
1625
1626 /* If desired, update and copy the text properties. */
1627 #ifdef USE_TEXT_PROPERTIES
1628 if (props)
1629 {
1630 update_buffer_properties (start, end);
1631
1632 tem = Fnext_property_change (make_number (start), Qnil, make_number (end));
1633 tem1 = Ftext_properties_at (make_number (start), Qnil);
1634
1635 if (XINT (tem) != end || !NILP (tem1))
1636 copy_intervals_to_string (result, current_buffer, start,
1637 end - start);
1638 }
1639 #endif
1640
1641 return result;
1642 }
1643
1644 /* Call Vbuffer_access_fontify_functions for the range START ... END
1645 in the current buffer, if necessary. */
1646
1647 static void
1648 update_buffer_properties (start, end)
1649 int start, end;
1650 {
1651 #ifdef USE_TEXT_PROPERTIES
1652 /* If this buffer has some access functions,
1653 call them, specifying the range of the buffer being accessed. */
1654 if (!NILP (Vbuffer_access_fontify_functions))
1655 {
1656 Lisp_Object args[3];
1657 Lisp_Object tem;
1658
1659 args[0] = Qbuffer_access_fontify_functions;
1660 XSETINT (args[1], start);
1661 XSETINT (args[2], end);
1662
1663 /* But don't call them if we can tell that the work
1664 has already been done. */
1665 if (!NILP (Vbuffer_access_fontified_property))
1666 {
1667 tem = Ftext_property_any (args[1], args[2],
1668 Vbuffer_access_fontified_property,
1669 Qnil, Qnil);
1670 if (! NILP (tem))
1671 Frun_hook_with_args (3, args);
1672 }
1673 else
1674 Frun_hook_with_args (3, args);
1675 }
1676 #endif
1677 }
1678
1679 DEFUN ("buffer-substring", Fbuffer_substring, Sbuffer_substring, 2, 2, 0,
1680 "Return the contents of part of the current buffer as a string.\n\
1681 The two arguments START and END are character positions;\n\
1682 they can be in either order.\n\
1683 The string returned is multibyte if the buffer is multibyte.")
1684 (start, end)
1685 Lisp_Object start, end;
1686 {
1687 register int b, e;
1688
1689 validate_region (&start, &end);
1690 b = XINT (start);
1691 e = XINT (end);
1692
1693 return make_buffer_string (b, e, 1);
1694 }
1695
1696 DEFUN ("buffer-substring-no-properties", Fbuffer_substring_no_properties,
1697 Sbuffer_substring_no_properties, 2, 2, 0,
1698 "Return the characters of part of the buffer, without the text properties.\n\
1699 The two arguments START and END are character positions;\n\
1700 they can be in either order.")
1701 (start, end)
1702 Lisp_Object start, end;
1703 {
1704 register int b, e;
1705
1706 validate_region (&start, &end);
1707 b = XINT (start);
1708 e = XINT (end);
1709
1710 return make_buffer_string (b, e, 0);
1711 }
1712
1713 DEFUN ("buffer-string", Fbuffer_string, Sbuffer_string, 0, 0, 0,
1714 "Return the contents of the current buffer as a string.\n\
1715 If narrowing is in effect, this function returns only the visible part\n\
1716 of the buffer.")
1717 ()
1718 {
1719 return make_buffer_string (BEGV, ZV, 1);
1720 }
1721
1722 DEFUN ("insert-buffer-substring", Finsert_buffer_substring, Sinsert_buffer_substring,
1723 1, 3, 0,
1724 "Insert before point a substring of the contents of buffer BUFFER.\n\
1725 BUFFER may be a buffer or a buffer name.\n\
1726 Arguments START and END are character numbers specifying the substring.\n\
1727 They default to the beginning and the end of BUFFER.")
1728 (buf, start, end)
1729 Lisp_Object buf, start, end;
1730 {
1731 register int b, e, temp;
1732 register struct buffer *bp, *obuf;
1733 Lisp_Object buffer;
1734
1735 buffer = Fget_buffer (buf);
1736 if (NILP (buffer))
1737 nsberror (buf);
1738 bp = XBUFFER (buffer);
1739 if (NILP (bp->name))
1740 error ("Selecting deleted buffer");
1741
1742 if (NILP (start))
1743 b = BUF_BEGV (bp);
1744 else
1745 {
1746 CHECK_NUMBER_COERCE_MARKER (start, 0);
1747 b = XINT (start);
1748 }
1749 if (NILP (end))
1750 e = BUF_ZV (bp);
1751 else
1752 {
1753 CHECK_NUMBER_COERCE_MARKER (end, 1);
1754 e = XINT (end);
1755 }
1756
1757 if (b > e)
1758 temp = b, b = e, e = temp;
1759
1760 if (!(BUF_BEGV (bp) <= b && e <= BUF_ZV (bp)))
1761 args_out_of_range (start, end);
1762
1763 obuf = current_buffer;
1764 set_buffer_internal_1 (bp);
1765 update_buffer_properties (b, e);
1766 set_buffer_internal_1 (obuf);
1767
1768 insert_from_buffer (bp, b, e - b, 0);
1769 return Qnil;
1770 }
1771
1772 DEFUN ("compare-buffer-substrings", Fcompare_buffer_substrings, Scompare_buffer_substrings,
1773 6, 6, 0,
1774 "Compare two substrings of two buffers; return result as number.\n\
1775 the value is -N if first string is less after N-1 chars,\n\
1776 +N if first string is greater after N-1 chars, or 0 if strings match.\n\
1777 Each substring is represented as three arguments: BUFFER, START and END.\n\
1778 That makes six args in all, three for each substring.\n\n\
1779 The value of `case-fold-search' in the current buffer\n\
1780 determines whether case is significant or ignored.")
1781 (buffer1, start1, end1, buffer2, start2, end2)
1782 Lisp_Object buffer1, start1, end1, buffer2, start2, end2;
1783 {
1784 register int begp1, endp1, begp2, endp2, temp;
1785 register struct buffer *bp1, *bp2;
1786 register Lisp_Object *trt
1787 = (!NILP (current_buffer->case_fold_search)
1788 ? XCHAR_TABLE (current_buffer->case_canon_table)->contents : 0);
1789 int chars = 0;
1790 int i1, i2, i1_byte, i2_byte;
1791
1792 /* Find the first buffer and its substring. */
1793
1794 if (NILP (buffer1))
1795 bp1 = current_buffer;
1796 else
1797 {
1798 Lisp_Object buf1;
1799 buf1 = Fget_buffer (buffer1);
1800 if (NILP (buf1))
1801 nsberror (buffer1);
1802 bp1 = XBUFFER (buf1);
1803 if (NILP (bp1->name))
1804 error ("Selecting deleted buffer");
1805 }
1806
1807 if (NILP (start1))
1808 begp1 = BUF_BEGV (bp1);
1809 else
1810 {
1811 CHECK_NUMBER_COERCE_MARKER (start1, 1);
1812 begp1 = XINT (start1);
1813 }
1814 if (NILP (end1))
1815 endp1 = BUF_ZV (bp1);
1816 else
1817 {
1818 CHECK_NUMBER_COERCE_MARKER (end1, 2);
1819 endp1 = XINT (end1);
1820 }
1821
1822 if (begp1 > endp1)
1823 temp = begp1, begp1 = endp1, endp1 = temp;
1824
1825 if (!(BUF_BEGV (bp1) <= begp1
1826 && begp1 <= endp1
1827 && endp1 <= BUF_ZV (bp1)))
1828 args_out_of_range (start1, end1);
1829
1830 /* Likewise for second substring. */
1831
1832 if (NILP (buffer2))
1833 bp2 = current_buffer;
1834 else
1835 {
1836 Lisp_Object buf2;
1837 buf2 = Fget_buffer (buffer2);
1838 if (NILP (buf2))
1839 nsberror (buffer2);
1840 bp2 = XBUFFER (buf2);
1841 if (NILP (bp2->name))
1842 error ("Selecting deleted buffer");
1843 }
1844
1845 if (NILP (start2))
1846 begp2 = BUF_BEGV (bp2);
1847 else
1848 {
1849 CHECK_NUMBER_COERCE_MARKER (start2, 4);
1850 begp2 = XINT (start2);
1851 }
1852 if (NILP (end2))
1853 endp2 = BUF_ZV (bp2);
1854 else
1855 {
1856 CHECK_NUMBER_COERCE_MARKER (end2, 5);
1857 endp2 = XINT (end2);
1858 }
1859
1860 if (begp2 > endp2)
1861 temp = begp2, begp2 = endp2, endp2 = temp;
1862
1863 if (!(BUF_BEGV (bp2) <= begp2
1864 && begp2 <= endp2
1865 && endp2 <= BUF_ZV (bp2)))
1866 args_out_of_range (start2, end2);
1867
1868 i1 = begp1;
1869 i2 = begp2;
1870 i1_byte = buf_charpos_to_bytepos (bp1, i1);
1871 i2_byte = buf_charpos_to_bytepos (bp2, i2);
1872
1873 while (i1 < endp1 && i2 < endp2)
1874 {
1875 /* When we find a mismatch, we must compare the
1876 characters, not just the bytes. */
1877 int c1, c2;
1878
1879 if (! NILP (bp1->enable_multibyte_characters))
1880 {
1881 c1 = BUF_FETCH_MULTIBYTE_CHAR (bp1, i1_byte);
1882 BUF_INC_POS (bp1, i1_byte);
1883 i1++;
1884 }
1885 else
1886 {
1887 c1 = BUF_FETCH_BYTE (bp1, i1);
1888 c1 = unibyte_char_to_multibyte (c1);
1889 i1++;
1890 }
1891
1892 if (! NILP (bp2->enable_multibyte_characters))
1893 {
1894 c2 = BUF_FETCH_MULTIBYTE_CHAR (bp2, i2_byte);
1895 BUF_INC_POS (bp2, i2_byte);
1896 i2++;
1897 }
1898 else
1899 {
1900 c2 = BUF_FETCH_BYTE (bp2, i2);
1901 c2 = unibyte_char_to_multibyte (c2);
1902 i2++;
1903 }
1904
1905 if (trt)
1906 {
1907 c1 = XINT (trt[c1]);
1908 c2 = XINT (trt[c2]);
1909 }
1910 if (c1 < c2)
1911 return make_number (- 1 - chars);
1912 if (c1 > c2)
1913 return make_number (chars + 1);
1914
1915 chars++;
1916 }
1917
1918 /* The strings match as far as they go.
1919 If one is shorter, that one is less. */
1920 if (chars < endp1 - begp1)
1921 return make_number (chars + 1);
1922 else if (chars < endp2 - begp2)
1923 return make_number (- chars - 1);
1924
1925 /* Same length too => they are equal. */
1926 return make_number (0);
1927 }
1928 \f
1929 static Lisp_Object
1930 subst_char_in_region_unwind (arg)
1931 Lisp_Object arg;
1932 {
1933 return current_buffer->undo_list = arg;
1934 }
1935
1936 static Lisp_Object
1937 subst_char_in_region_unwind_1 (arg)
1938 Lisp_Object arg;
1939 {
1940 return current_buffer->filename = arg;
1941 }
1942
1943 DEFUN ("subst-char-in-region", Fsubst_char_in_region,
1944 Ssubst_char_in_region, 4, 5, 0,
1945 "From START to END, replace FROMCHAR with TOCHAR each time it occurs.\n\
1946 If optional arg NOUNDO is non-nil, don't record this change for undo\n\
1947 and don't mark the buffer as really changed.\n\
1948 Both characters must have the same length of multi-byte form.")
1949 (start, end, fromchar, tochar, noundo)
1950 Lisp_Object start, end, fromchar, tochar, noundo;
1951 {
1952 register int pos, pos_byte, stop, i, len, end_byte;
1953 int changed = 0;
1954 unsigned char fromwork[4], *fromstr, towork[4], *tostr, *p;
1955 int count = specpdl_ptr - specpdl;
1956 int maybe_byte_combining = 0;
1957
1958 validate_region (&start, &end);
1959 CHECK_NUMBER (fromchar, 2);
1960 CHECK_NUMBER (tochar, 3);
1961
1962 if (! NILP (current_buffer->enable_multibyte_characters))
1963 {
1964 len = CHAR_STRING (XFASTINT (fromchar), fromwork, fromstr);
1965 if (CHAR_STRING (XFASTINT (tochar), towork, tostr) != len)
1966 error ("Characters in subst-char-in-region have different byte-lengths");
1967 if (len == 1)
1968 /* If *TOSTR is in the range 0x80..0x9F, it may be combined
1969 with the after bytes. If it is in the range 0xA0..0xFF, it
1970 may be combined with the before bytes. */
1971 maybe_byte_combining = !ASCII_BYTE_P (*tostr);
1972 }
1973 else
1974 {
1975 len = 1;
1976 fromwork[0] = XFASTINT (fromchar), fromstr = fromwork;
1977 towork[0] = XFASTINT (tochar), tostr = towork;
1978 }
1979
1980 pos = XINT (start);
1981 pos_byte = CHAR_TO_BYTE (pos);
1982 stop = CHAR_TO_BYTE (XINT (end));
1983 end_byte = stop;
1984
1985 /* If we don't want undo, turn off putting stuff on the list.
1986 That's faster than getting rid of things,
1987 and it prevents even the entry for a first change.
1988 Also inhibit locking the file. */
1989 if (!NILP (noundo))
1990 {
1991 record_unwind_protect (subst_char_in_region_unwind,
1992 current_buffer->undo_list);
1993 current_buffer->undo_list = Qt;
1994 /* Don't do file-locking. */
1995 record_unwind_protect (subst_char_in_region_unwind_1,
1996 current_buffer->filename);
1997 current_buffer->filename = Qnil;
1998 }
1999
2000 if (pos_byte < GPT_BYTE)
2001 stop = min (stop, GPT_BYTE);
2002 while (1)
2003 {
2004 int pos_byte_next = pos_byte;
2005
2006 if (pos_byte >= stop)
2007 {
2008 if (pos_byte >= end_byte) break;
2009 stop = end_byte;
2010 }
2011 p = BYTE_POS_ADDR (pos_byte);
2012 INC_POS (pos_byte_next);
2013 if (pos_byte_next - pos_byte == len
2014 && p[0] == fromstr[0]
2015 && (len == 1
2016 || (p[1] == fromstr[1]
2017 && (len == 2 || (p[2] == fromstr[2]
2018 && (len == 3 || p[3] == fromstr[3]))))))
2019 {
2020 if (! changed)
2021 {
2022 modify_region (current_buffer, XINT (start), XINT (end));
2023
2024 if (! NILP (noundo))
2025 {
2026 if (MODIFF - 1 == SAVE_MODIFF)
2027 SAVE_MODIFF++;
2028 if (MODIFF - 1 == current_buffer->auto_save_modified)
2029 current_buffer->auto_save_modified++;
2030 }
2031
2032 changed = 1;
2033 }
2034
2035 /* Take care of the case where the new character
2036 combines with neighboring bytes. */
2037 if (maybe_byte_combining
2038 && (CHAR_HEAD_P (*tostr)
2039 ? ! CHAR_HEAD_P (FETCH_BYTE (pos_byte + 1))
2040 : (pos_byte > BEG_BYTE
2041 && ! ASCII_BYTE_P (FETCH_BYTE (pos_byte - 1)))))
2042 {
2043 Lisp_Object tem, string;
2044
2045 struct gcpro gcpro1;
2046
2047 tem = current_buffer->undo_list;
2048 GCPRO1 (tem);
2049
2050 /* Make a multibyte string containing this single-byte
2051 character. */
2052 string = make_multibyte_string (tostr, 1, 1);
2053 /* replace_range is less efficient, because it moves the gap,
2054 but it handles combining correctly. */
2055 replace_range (pos, pos + 1, string,
2056 0, 0, 1);
2057 pos_byte_next = CHAR_TO_BYTE (pos);
2058 if (pos_byte_next > pos_byte)
2059 /* Before combining happened. We should not increment
2060 POS. So, to cancel the later increment of POS,
2061 decrease it now. */
2062 pos--;
2063 else
2064 INC_POS (pos_byte_next);
2065
2066 if (! NILP (noundo))
2067 current_buffer->undo_list = tem;
2068
2069 UNGCPRO;
2070 }
2071 else
2072 {
2073 if (NILP (noundo))
2074 record_change (pos, 1);
2075 for (i = 0; i < len; i++) *p++ = tostr[i];
2076 }
2077 }
2078 pos_byte = pos_byte_next;
2079 pos++;
2080 }
2081
2082 if (changed)
2083 signal_after_change (XINT (start),
2084 XINT (end) - XINT (start), XINT (end) - XINT (start));
2085
2086 unbind_to (count, Qnil);
2087 return Qnil;
2088 }
2089
2090 DEFUN ("translate-region", Ftranslate_region, Stranslate_region, 3, 3, 0,
2091 "From START to END, translate characters according to TABLE.\n\
2092 TABLE is a string; the Nth character in it is the mapping\n\
2093 for the character with code N.\n\
2094 This function does not alter multibyte characters.\n\
2095 It returns the number of characters changed.")
2096 (start, end, table)
2097 Lisp_Object start;
2098 Lisp_Object end;
2099 register Lisp_Object table;
2100 {
2101 register int pos_byte, stop; /* Limits of the region. */
2102 register unsigned char *tt; /* Trans table. */
2103 register int nc; /* New character. */
2104 int cnt; /* Number of changes made. */
2105 int size; /* Size of translate table. */
2106 int pos;
2107
2108 validate_region (&start, &end);
2109 CHECK_STRING (table, 2);
2110
2111 size = STRING_BYTES (XSTRING (table));
2112 tt = XSTRING (table)->data;
2113
2114 pos_byte = CHAR_TO_BYTE (XINT (start));
2115 stop = CHAR_TO_BYTE (XINT (end));
2116 modify_region (current_buffer, XINT (start), XINT (end));
2117 pos = XINT (start);
2118
2119 cnt = 0;
2120 for (; pos_byte < stop; )
2121 {
2122 register unsigned char *p = BYTE_POS_ADDR (pos_byte);
2123 int len;
2124 int oc;
2125 int pos_byte_next;
2126
2127 oc = STRING_CHAR_AND_LENGTH (p, stop - pos_byte, len);
2128 pos_byte_next = pos_byte + len;
2129 if (oc < size && len == 1)
2130 {
2131 nc = tt[oc];
2132 if (nc != oc)
2133 {
2134 /* Take care of the case where the new character
2135 combines with neighboring bytes. */
2136 if (!ASCII_BYTE_P (nc)
2137 && (CHAR_HEAD_P (nc)
2138 ? ! CHAR_HEAD_P (FETCH_BYTE (pos_byte + 1))
2139 : (pos_byte > BEG_BYTE
2140 && ! ASCII_BYTE_P (FETCH_BYTE (pos_byte - 1)))))
2141 {
2142 Lisp_Object string;
2143
2144 string = make_multibyte_string (tt + oc, 1, 1);
2145 /* This is less efficient, because it moves the gap,
2146 but it handles combining correctly. */
2147 replace_range (pos, pos + 1, string,
2148 1, 0, 1);
2149 pos_byte_next = CHAR_TO_BYTE (pos);
2150 if (pos_byte_next > pos_byte)
2151 /* Before combining happened. We should not
2152 increment POS. So, to cancel the later
2153 increment of POS, we decrease it now. */
2154 pos--;
2155 else
2156 INC_POS (pos_byte_next);
2157 }
2158 else
2159 {
2160 record_change (pos, 1);
2161 *p = nc;
2162 signal_after_change (pos, 1, 1);
2163 }
2164 ++cnt;
2165 }
2166 }
2167 pos_byte = pos_byte_next;
2168 pos++;
2169 }
2170
2171 return make_number (cnt);
2172 }
2173
2174 DEFUN ("delete-region", Fdelete_region, Sdelete_region, 2, 2, "r",
2175 "Delete the text between point and mark.\n\
2176 When called from a program, expects two arguments,\n\
2177 positions (integers or markers) specifying the stretch to be deleted.")
2178 (start, end)
2179 Lisp_Object start, end;
2180 {
2181 validate_region (&start, &end);
2182 del_range (XINT (start), XINT (end));
2183 return Qnil;
2184 }
2185 \f
2186 DEFUN ("widen", Fwiden, Swiden, 0, 0, "",
2187 "Remove restrictions (narrowing) from current buffer.\n\
2188 This allows the buffer's full text to be seen and edited.")
2189 ()
2190 {
2191 if (BEG != BEGV || Z != ZV)
2192 current_buffer->clip_changed = 1;
2193 BEGV = BEG;
2194 BEGV_BYTE = BEG_BYTE;
2195 SET_BUF_ZV_BOTH (current_buffer, Z, Z_BYTE);
2196 /* Changing the buffer bounds invalidates any recorded current column. */
2197 invalidate_current_column ();
2198 return Qnil;
2199 }
2200
2201 DEFUN ("narrow-to-region", Fnarrow_to_region, Snarrow_to_region, 2, 2, "r",
2202 "Restrict editing in this buffer to the current region.\n\
2203 The rest of the text becomes temporarily invisible and untouchable\n\
2204 but is not deleted; if you save the buffer in a file, the invisible\n\
2205 text is included in the file. \\[widen] makes all visible again.\n\
2206 See also `save-restriction'.\n\
2207 \n\
2208 When calling from a program, pass two arguments; positions (integers\n\
2209 or markers) bounding the text that should remain visible.")
2210 (start, end)
2211 register Lisp_Object start, end;
2212 {
2213 CHECK_NUMBER_COERCE_MARKER (start, 0);
2214 CHECK_NUMBER_COERCE_MARKER (end, 1);
2215
2216 if (XINT (start) > XINT (end))
2217 {
2218 Lisp_Object tem;
2219 tem = start; start = end; end = tem;
2220 }
2221
2222 if (!(BEG <= XINT (start) && XINT (start) <= XINT (end) && XINT (end) <= Z))
2223 args_out_of_range (start, end);
2224
2225 if (BEGV != XFASTINT (start) || ZV != XFASTINT (end))
2226 current_buffer->clip_changed = 1;
2227
2228 SET_BUF_BEGV (current_buffer, XFASTINT (start));
2229 SET_BUF_ZV (current_buffer, XFASTINT (end));
2230 if (PT < XFASTINT (start))
2231 SET_PT (XFASTINT (start));
2232 if (PT > XFASTINT (end))
2233 SET_PT (XFASTINT (end));
2234 /* Changing the buffer bounds invalidates any recorded current column. */
2235 invalidate_current_column ();
2236 return Qnil;
2237 }
2238
2239 Lisp_Object
2240 save_restriction_save ()
2241 {
2242 register Lisp_Object bottom, top;
2243 /* Note: I tried using markers here, but it does not win
2244 because insertion at the end of the saved region
2245 does not advance mh and is considered "outside" the saved region. */
2246 XSETFASTINT (bottom, BEGV - BEG);
2247 XSETFASTINT (top, Z - ZV);
2248
2249 return Fcons (Fcurrent_buffer (), Fcons (bottom, top));
2250 }
2251
2252 Lisp_Object
2253 save_restriction_restore (data)
2254 Lisp_Object data;
2255 {
2256 register struct buffer *buf;
2257 register int newhead, newtail;
2258 register Lisp_Object tem;
2259 int obegv, ozv;
2260
2261 buf = XBUFFER (XCONS (data)->car);
2262
2263 data = XCONS (data)->cdr;
2264
2265 tem = XCONS (data)->car;
2266 newhead = XINT (tem);
2267 tem = XCONS (data)->cdr;
2268 newtail = XINT (tem);
2269 if (newhead + newtail > BUF_Z (buf) - BUF_BEG (buf))
2270 {
2271 newhead = 0;
2272 newtail = 0;
2273 }
2274
2275 obegv = BUF_BEGV (buf);
2276 ozv = BUF_ZV (buf);
2277
2278 SET_BUF_BEGV (buf, BUF_BEG (buf) + newhead);
2279 SET_BUF_ZV (buf, BUF_Z (buf) - newtail);
2280
2281 if (obegv != BUF_BEGV (buf) || ozv != BUF_ZV (buf))
2282 current_buffer->clip_changed = 1;
2283
2284 /* If point is outside the new visible range, move it inside. */
2285 SET_BUF_PT_BOTH (buf,
2286 clip_to_bounds (BUF_BEGV (buf), BUF_PT (buf), BUF_ZV (buf)),
2287 clip_to_bounds (BUF_BEGV_BYTE (buf), BUF_PT_BYTE (buf),
2288 BUF_ZV_BYTE (buf)));
2289
2290 return Qnil;
2291 }
2292
2293 DEFUN ("save-restriction", Fsave_restriction, Ssave_restriction, 0, UNEVALLED, 0,
2294 "Execute BODY, saving and restoring current buffer's restrictions.\n\
2295 The buffer's restrictions make parts of the beginning and end invisible.\n\
2296 \(They are set up with `narrow-to-region' and eliminated with `widen'.)\n\
2297 This special form, `save-restriction', saves the current buffer's restrictions\n\
2298 when it is entered, and restores them when it is exited.\n\
2299 So any `narrow-to-region' within BODY lasts only until the end of the form.\n\
2300 The old restrictions settings are restored\n\
2301 even in case of abnormal exit (throw or error).\n\
2302 \n\
2303 The value returned is the value of the last form in BODY.\n\
2304 \n\
2305 `save-restriction' can get confused if, within the BODY, you widen\n\
2306 and then make changes outside the area within the saved restrictions.\n\
2307 See Info node `(elisp)Narrowing' for details and an appropriate technique.\n\
2308 \n\
2309 Note: if you are using both `save-excursion' and `save-restriction',\n\
2310 use `save-excursion' outermost:\n\
2311 (save-excursion (save-restriction ...))")
2312 (body)
2313 Lisp_Object body;
2314 {
2315 register Lisp_Object val;
2316 int count = specpdl_ptr - specpdl;
2317
2318 record_unwind_protect (save_restriction_restore, save_restriction_save ());
2319 val = Fprogn (body);
2320 return unbind_to (count, val);
2321 }
2322 \f
2323 /* Buffer for the most recent text displayed by Fmessage. */
2324 static char *message_text;
2325
2326 /* Allocated length of that buffer. */
2327 static int message_length;
2328
2329 DEFUN ("message", Fmessage, Smessage, 1, MANY, 0,
2330 "Print a one-line message at the bottom of the screen.\n\
2331 The first argument is a format control string, and the rest are data\n\
2332 to be formatted under control of the string. See `format' for details.\n\
2333 \n\
2334 If the first argument is nil, clear any existing message; let the\n\
2335 minibuffer contents show.")
2336 (nargs, args)
2337 int nargs;
2338 Lisp_Object *args;
2339 {
2340 if (NILP (args[0]))
2341 {
2342 message (0);
2343 return Qnil;
2344 }
2345 else
2346 {
2347 register Lisp_Object val;
2348 val = Fformat (nargs, args);
2349 message3 (val, STRING_BYTES (XSTRING (val)), STRING_MULTIBYTE (val));
2350 return val;
2351 }
2352 }
2353
2354 DEFUN ("message-box", Fmessage_box, Smessage_box, 1, MANY, 0,
2355 "Display a message, in a dialog box if possible.\n\
2356 If a dialog box is not available, use the echo area.\n\
2357 The first argument is a format control string, and the rest are data\n\
2358 to be formatted under control of the string. See `format' for details.\n\
2359 \n\
2360 If the first argument is nil, clear any existing message; let the\n\
2361 minibuffer contents show.")
2362 (nargs, args)
2363 int nargs;
2364 Lisp_Object *args;
2365 {
2366 if (NILP (args[0]))
2367 {
2368 message (0);
2369 return Qnil;
2370 }
2371 else
2372 {
2373 register Lisp_Object val;
2374 val = Fformat (nargs, args);
2375 #ifdef HAVE_MENUS
2376 {
2377 Lisp_Object pane, menu, obj;
2378 struct gcpro gcpro1;
2379 pane = Fcons (Fcons (build_string ("OK"), Qt), Qnil);
2380 GCPRO1 (pane);
2381 menu = Fcons (val, pane);
2382 obj = Fx_popup_dialog (Qt, menu);
2383 UNGCPRO;
2384 return val;
2385 }
2386 #else /* not HAVE_MENUS */
2387 /* Copy the data so that it won't move when we GC. */
2388 if (! message_text)
2389 {
2390 message_text = (char *)xmalloc (80);
2391 message_length = 80;
2392 }
2393 if (STRING_BYTES (XSTRING (val)) > message_length)
2394 {
2395 message_length = STRING_BYTES (XSTRING (val));
2396 message_text = (char *)xrealloc (message_text, message_length);
2397 }
2398 bcopy (XSTRING (val)->data, message_text, STRING_BYTES (XSTRING (val)));
2399 message2 (message_text, STRING_BYTES (XSTRING (val)),
2400 STRING_MULTIBYTE (val));
2401 return val;
2402 #endif /* not HAVE_MENUS */
2403 }
2404 }
2405 #ifdef HAVE_MENUS
2406 extern Lisp_Object last_nonmenu_event;
2407 #endif
2408
2409 DEFUN ("message-or-box", Fmessage_or_box, Smessage_or_box, 1, MANY, 0,
2410 "Display a message in a dialog box or in the echo area.\n\
2411 If this command was invoked with the mouse, use a dialog box.\n\
2412 Otherwise, use the echo area.\n\
2413 The first argument is a format control string, and the rest are data\n\
2414 to be formatted under control of the string. See `format' for details.\n\
2415 \n\
2416 If the first argument is nil, clear any existing message; let the\n\
2417 minibuffer contents show.")
2418 (nargs, args)
2419 int nargs;
2420 Lisp_Object *args;
2421 {
2422 #ifdef HAVE_MENUS
2423 if (NILP (last_nonmenu_event) || CONSP (last_nonmenu_event))
2424 return Fmessage_box (nargs, args);
2425 #endif
2426 return Fmessage (nargs, args);
2427 }
2428
2429 DEFUN ("current-message", Fcurrent_message, Scurrent_message, 0, 0, 0,
2430 "Return the string currently displayed in the echo area, or nil if none.")
2431 ()
2432 {
2433 return current_message ();
2434 }
2435
2436 /* Number of bytes that STRING will occupy when put into the result.
2437 MULTIBYTE is nonzero if the result should be multibyte. */
2438
2439 #define CONVERTED_BYTE_SIZE(MULTIBYTE, STRING) \
2440 (((MULTIBYTE) && ! STRING_MULTIBYTE (STRING)) \
2441 ? count_size_as_multibyte (XSTRING (STRING)->data, \
2442 STRING_BYTES (XSTRING (STRING))) \
2443 : STRING_BYTES (XSTRING (STRING)))
2444
2445 DEFUN ("format", Fformat, Sformat, 1, MANY, 0,
2446 "Format a string out of a control-string and arguments.\n\
2447 The first argument is a control string.\n\
2448 The other arguments are substituted into it to make the result, a string.\n\
2449 It may contain %-sequences meaning to substitute the next argument.\n\
2450 %s means print a string argument. Actually, prints any object, with `princ'.\n\
2451 %d means print as number in decimal (%o octal, %x hex).\n\
2452 %e means print a number in exponential notation.\n\
2453 %f means print a number in decimal-point notation.\n\
2454 %g means print a number in exponential notation\n\
2455 or decimal-point notation, whichever uses fewer characters.\n\
2456 %c means print a number as a single character.\n\
2457 %S means print any object as an s-expression (using `prin1').\n\
2458 The argument used for %d, %o, %x, %e, %f, %g or %c must be a number.\n\
2459 Use %% to put a single % into the output.")
2460 (nargs, args)
2461 int nargs;
2462 register Lisp_Object *args;
2463 {
2464 register int n; /* The number of the next arg to substitute */
2465 register int total; /* An estimate of the final length */
2466 char *buf, *p;
2467 register unsigned char *format, *end;
2468 int length, nchars;
2469 /* Nonzero if the output should be a multibyte string,
2470 which is true if any of the inputs is one. */
2471 int multibyte = 0;
2472 /* When we make a multibyte string, we must pay attention to the
2473 byte combining problem, i.e., a byte may be combined with a
2474 multibyte charcter of the previous string. This flag tells if we
2475 must consider such a situation or not. */
2476 int maybe_combine_byte;
2477 unsigned char *this_format;
2478 int longest_format;
2479 Lisp_Object val;
2480 struct info
2481 {
2482 int start, end;
2483 } *info = 0;
2484
2485 extern char *index ();
2486
2487 /* It should not be necessary to GCPRO ARGS, because
2488 the caller in the interpreter should take care of that. */
2489
2490 /* Try to determine whether the result should be multibyte.
2491 This is not always right; sometimes the result needs to be multibyte
2492 because of an object that we will pass through prin1,
2493 and in that case, we won't know it here. */
2494 for (n = 0; n < nargs; n++)
2495 if (STRINGP (args[n]) && STRING_MULTIBYTE (args[n]))
2496 multibyte = 1;
2497
2498 CHECK_STRING (args[0], 0);
2499
2500 /* If we start out planning a unibyte result,
2501 and later find it has to be multibyte, we jump back to retry. */
2502 retry:
2503
2504 format = XSTRING (args[0])->data;
2505 end = format + STRING_BYTES (XSTRING (args[0]));
2506 longest_format = 0;
2507
2508 /* Make room in result for all the non-%-codes in the control string. */
2509 total = 5 + CONVERTED_BYTE_SIZE (multibyte, args[0]);
2510
2511 /* Add to TOTAL enough space to hold the converted arguments. */
2512
2513 n = 0;
2514 while (format != end)
2515 if (*format++ == '%')
2516 {
2517 int minlen, thissize = 0;
2518 unsigned char *this_format_start = format - 1;
2519
2520 /* Process a numeric arg and skip it. */
2521 minlen = atoi (format);
2522 if (minlen < 0)
2523 minlen = - minlen;
2524
2525 while ((*format >= '0' && *format <= '9')
2526 || *format == '-' || *format == ' ' || *format == '.')
2527 format++;
2528
2529 if (format - this_format_start + 1 > longest_format)
2530 longest_format = format - this_format_start + 1;
2531
2532 if (format == end)
2533 error ("Format string ends in middle of format specifier");
2534 if (*format == '%')
2535 format++;
2536 else if (++n >= nargs)
2537 error ("Not enough arguments for format string");
2538 else if (*format == 'S')
2539 {
2540 /* For `S', prin1 the argument and then treat like a string. */
2541 register Lisp_Object tem;
2542 tem = Fprin1_to_string (args[n], Qnil);
2543 if (STRING_MULTIBYTE (tem) && ! multibyte)
2544 {
2545 multibyte = 1;
2546 goto retry;
2547 }
2548 args[n] = tem;
2549 goto string;
2550 }
2551 else if (SYMBOLP (args[n]))
2552 {
2553 XSETSTRING (args[n], XSYMBOL (args[n])->name);
2554 if (STRING_MULTIBYTE (args[n]) && ! multibyte)
2555 {
2556 multibyte = 1;
2557 goto retry;
2558 }
2559 goto string;
2560 }
2561 else if (STRINGP (args[n]))
2562 {
2563 string:
2564 if (*format != 's' && *format != 'S')
2565 error ("Format specifier doesn't match argument type");
2566 thissize = CONVERTED_BYTE_SIZE (multibyte, args[n]);
2567 }
2568 /* Would get MPV otherwise, since Lisp_Int's `point' to low memory. */
2569 else if (INTEGERP (args[n]) && *format != 's')
2570 {
2571 #ifdef LISP_FLOAT_TYPE
2572 /* The following loop assumes the Lisp type indicates
2573 the proper way to pass the argument.
2574 So make sure we have a flonum if the argument should
2575 be a double. */
2576 if (*format == 'e' || *format == 'f' || *format == 'g')
2577 args[n] = Ffloat (args[n]);
2578 else
2579 #endif
2580 if (*format != 'd' && *format != 'o' && *format != 'x'
2581 && *format != 'i' && *format != 'X' && *format != 'c')
2582 error ("Invalid format operation %%%c", *format);
2583
2584 thissize = 30;
2585 if (*format == 'c'
2586 && (! SINGLE_BYTE_CHAR_P (XINT (args[n]))
2587 || XINT (args[n]) == 0))
2588 {
2589 if (! multibyte)
2590 {
2591 multibyte = 1;
2592 goto retry;
2593 }
2594 args[n] = Fchar_to_string (args[n]);
2595 thissize = STRING_BYTES (XSTRING (args[n]));
2596 }
2597 }
2598 #ifdef LISP_FLOAT_TYPE
2599 else if (FLOATP (args[n]) && *format != 's')
2600 {
2601 if (! (*format == 'e' || *format == 'f' || *format == 'g'))
2602 args[n] = Ftruncate (args[n], Qnil);
2603 thissize = 200;
2604 }
2605 #endif
2606 else
2607 {
2608 /* Anything but a string, convert to a string using princ. */
2609 register Lisp_Object tem;
2610 tem = Fprin1_to_string (args[n], Qt);
2611 if (STRING_MULTIBYTE (tem) & ! multibyte)
2612 {
2613 multibyte = 1;
2614 goto retry;
2615 }
2616 args[n] = tem;
2617 goto string;
2618 }
2619
2620 if (thissize < minlen)
2621 thissize = minlen;
2622
2623 total += thissize + 4;
2624 }
2625
2626 /* Now we can no longer jump to retry.
2627 TOTAL and LONGEST_FORMAT are known for certain. */
2628
2629 this_format = (unsigned char *) alloca (longest_format + 1);
2630
2631 /* Allocate the space for the result.
2632 Note that TOTAL is an overestimate. */
2633 if (total < 1000)
2634 buf = (char *) alloca (total + 1);
2635 else
2636 buf = (char *) xmalloc (total + 1);
2637
2638 p = buf;
2639 nchars = 0;
2640 n = 0;
2641
2642 /* Scan the format and store result in BUF. */
2643 format = XSTRING (args[0])->data;
2644 maybe_combine_byte = 0;
2645 while (format != end)
2646 {
2647 if (*format == '%')
2648 {
2649 int minlen;
2650 int negative = 0;
2651 unsigned char *this_format_start = format;
2652
2653 format++;
2654
2655 /* Process a numeric arg and skip it. */
2656 minlen = atoi (format);
2657 if (minlen < 0)
2658 minlen = - minlen, negative = 1;
2659
2660 while ((*format >= '0' && *format <= '9')
2661 || *format == '-' || *format == ' ' || *format == '.')
2662 format++;
2663
2664 if (*format++ == '%')
2665 {
2666 *p++ = '%';
2667 nchars++;
2668 continue;
2669 }
2670
2671 ++n;
2672
2673 if (STRINGP (args[n]))
2674 {
2675 int padding, nbytes;
2676 int width = strwidth (XSTRING (args[n])->data,
2677 STRING_BYTES (XSTRING (args[n])));
2678 int start = nchars;
2679
2680 /* If spec requires it, pad on right with spaces. */
2681 padding = minlen - width;
2682 if (! negative)
2683 while (padding-- > 0)
2684 {
2685 *p++ = ' ';
2686 nchars++;
2687 }
2688
2689 if (p > buf
2690 && multibyte
2691 && !ASCII_BYTE_P (*((unsigned char *) p - 1))
2692 && STRING_MULTIBYTE (args[n])
2693 && !CHAR_HEAD_P (XSTRING (args[n])->data[0]))
2694 maybe_combine_byte = 1;
2695 nbytes = copy_text (XSTRING (args[n])->data, p,
2696 STRING_BYTES (XSTRING (args[n])),
2697 STRING_MULTIBYTE (args[n]), multibyte);
2698 p += nbytes;
2699 nchars += XSTRING (args[n])->size;
2700
2701 if (negative)
2702 while (padding-- > 0)
2703 {
2704 *p++ = ' ';
2705 nchars++;
2706 }
2707
2708 /* If this argument has text properties, record where
2709 in the result string it appears. */
2710 if (XSTRING (args[n])->intervals)
2711 {
2712 if (!info)
2713 {
2714 int nbytes = nargs * sizeof *info;
2715 info = (struct info *) alloca (nbytes);
2716 bzero (info, nbytes);
2717 }
2718
2719 info[n].start = start;
2720 info[n].end = nchars;
2721 }
2722 }
2723 else if (INTEGERP (args[n]) || FLOATP (args[n]))
2724 {
2725 int this_nchars;
2726
2727 bcopy (this_format_start, this_format,
2728 format - this_format_start);
2729 this_format[format - this_format_start] = 0;
2730
2731 if (INTEGERP (args[n]))
2732 sprintf (p, this_format, XINT (args[n]));
2733 else
2734 sprintf (p, this_format, XFLOAT (args[n])->data);
2735
2736 if (p > buf
2737 && multibyte
2738 && !ASCII_BYTE_P (*((unsigned char *) p - 1))
2739 && !CHAR_HEAD_P (*((unsigned char *) p)))
2740 maybe_combine_byte = 1;
2741 this_nchars = strlen (p);
2742 p += this_nchars;
2743 nchars += this_nchars;
2744 }
2745 }
2746 else if (STRING_MULTIBYTE (args[0]))
2747 {
2748 /* Copy a whole multibyte character. */
2749 if (p > buf
2750 && multibyte
2751 && !ASCII_BYTE_P (*((unsigned char *) p - 1))
2752 && !CHAR_HEAD_P (*format))
2753 maybe_combine_byte = 1;
2754 *p++ = *format++;
2755 while (! CHAR_HEAD_P (*format)) *p++ = *format++;
2756 nchars++;
2757 }
2758 else if (multibyte)
2759 {
2760 /* Convert a single-byte character to multibyte. */
2761 int len = copy_text (format, p, 1, 0, 1);
2762
2763 p += len;
2764 format++;
2765 nchars++;
2766 }
2767 else
2768 *p++ = *format++, nchars++;
2769 }
2770
2771 if (maybe_combine_byte)
2772 nchars = multibyte_chars_in_text (buf, p - buf);
2773 val = make_specified_string (buf, nchars, p - buf, multibyte);
2774
2775 /* If we allocated BUF with malloc, free it too. */
2776 if (total >= 1000)
2777 xfree (buf);
2778
2779 /* If the format string has text properties, or any of the string
2780 arguments has text properties, set up text properties of the
2781 result string. */
2782
2783 if (XSTRING (args[0])->intervals || info)
2784 {
2785 Lisp_Object len, new_len, props;
2786 struct gcpro gcpro1;
2787
2788 /* Add text properties from the format string. */
2789 len = make_number (XSTRING (args[0])->size);
2790 props = text_property_list (args[0], make_number (0), len, Qnil);
2791 GCPRO1 (props);
2792
2793 if (CONSP (props))
2794 {
2795 new_len = make_number (XSTRING (val)->size);
2796 extend_property_ranges (props, len, new_len);
2797 add_text_properties_from_list (val, props, make_number (0));
2798 }
2799
2800 /* Add text properties from arguments. */
2801 if (info)
2802 for (n = 1; n < nargs; ++n)
2803 if (info[n].end)
2804 {
2805 len = make_number (XSTRING (args[n])->size);
2806 new_len = make_number (info[n].end - info[n].start);
2807 props = text_property_list (args[n], make_number (0), len, Qnil);
2808 extend_property_ranges (props, len, new_len);
2809 add_text_properties_from_list (val, props,
2810 make_number (info[n].start));
2811 }
2812
2813 UNGCPRO;
2814 }
2815
2816 return val;
2817 }
2818
2819 /* VARARGS 1 */
2820 Lisp_Object
2821 #ifdef NO_ARG_ARRAY
2822 format1 (string1, arg0, arg1, arg2, arg3, arg4)
2823 EMACS_INT arg0, arg1, arg2, arg3, arg4;
2824 #else
2825 format1 (string1)
2826 #endif
2827 char *string1;
2828 {
2829 char buf[100];
2830 #ifdef NO_ARG_ARRAY
2831 EMACS_INT args[5];
2832 args[0] = arg0;
2833 args[1] = arg1;
2834 args[2] = arg2;
2835 args[3] = arg3;
2836 args[4] = arg4;
2837 doprnt (buf, sizeof buf, string1, (char *)0, 5, (char **) args);
2838 #else
2839 doprnt (buf, sizeof buf, string1, (char *)0, 5, &string1 + 1);
2840 #endif
2841 return build_string (buf);
2842 }
2843 \f
2844 DEFUN ("char-equal", Fchar_equal, Schar_equal, 2, 2, 0,
2845 "Return t if two characters match, optionally ignoring case.\n\
2846 Both arguments must be characters (i.e. integers).\n\
2847 Case is ignored if `case-fold-search' is non-nil in the current buffer.")
2848 (c1, c2)
2849 register Lisp_Object c1, c2;
2850 {
2851 int i1, i2;
2852 CHECK_NUMBER (c1, 0);
2853 CHECK_NUMBER (c2, 1);
2854
2855 if (XINT (c1) == XINT (c2))
2856 return Qt;
2857 if (NILP (current_buffer->case_fold_search))
2858 return Qnil;
2859
2860 /* Do these in separate statements,
2861 then compare the variables.
2862 because of the way DOWNCASE uses temp variables. */
2863 i1 = DOWNCASE (XFASTINT (c1));
2864 i2 = DOWNCASE (XFASTINT (c2));
2865 return (i1 == i2 ? Qt : Qnil);
2866 }
2867 \f
2868 /* Transpose the markers in two regions of the current buffer, and
2869 adjust the ones between them if necessary (i.e.: if the regions
2870 differ in size).
2871
2872 START1, END1 are the character positions of the first region.
2873 START1_BYTE, END1_BYTE are the byte positions.
2874 START2, END2 are the character positions of the second region.
2875 START2_BYTE, END2_BYTE are the byte positions.
2876
2877 Traverses the entire marker list of the buffer to do so, adding an
2878 appropriate amount to some, subtracting from some, and leaving the
2879 rest untouched. Most of this is copied from adjust_markers in insdel.c.
2880
2881 It's the caller's job to ensure that START1 <= END1 <= START2 <= END2. */
2882
2883 void
2884 transpose_markers (start1, end1, start2, end2,
2885 start1_byte, end1_byte, start2_byte, end2_byte)
2886 register int start1, end1, start2, end2;
2887 register int start1_byte, end1_byte, start2_byte, end2_byte;
2888 {
2889 register int amt1, amt1_byte, amt2, amt2_byte, diff, diff_byte, mpos;
2890 register Lisp_Object marker;
2891
2892 /* Update point as if it were a marker. */
2893 if (PT < start1)
2894 ;
2895 else if (PT < end1)
2896 TEMP_SET_PT_BOTH (PT + (end2 - end1),
2897 PT_BYTE + (end2_byte - end1_byte));
2898 else if (PT < start2)
2899 TEMP_SET_PT_BOTH (PT + (end2 - start2) - (end1 - start1),
2900 (PT_BYTE + (end2_byte - start2_byte)
2901 - (end1_byte - start1_byte)));
2902 else if (PT < end2)
2903 TEMP_SET_PT_BOTH (PT - (start2 - start1),
2904 PT_BYTE - (start2_byte - start1_byte));
2905
2906 /* We used to adjust the endpoints here to account for the gap, but that
2907 isn't good enough. Even if we assume the caller has tried to move the
2908 gap out of our way, it might still be at start1 exactly, for example;
2909 and that places it `inside' the interval, for our purposes. The amount
2910 of adjustment is nontrivial if there's a `denormalized' marker whose
2911 position is between GPT and GPT + GAP_SIZE, so it's simpler to leave
2912 the dirty work to Fmarker_position, below. */
2913
2914 /* The difference between the region's lengths */
2915 diff = (end2 - start2) - (end1 - start1);
2916 diff_byte = (end2_byte - start2_byte) - (end1_byte - start1_byte);
2917
2918 /* For shifting each marker in a region by the length of the other
2919 region plus the distance between the regions. */
2920 amt1 = (end2 - start2) + (start2 - end1);
2921 amt2 = (end1 - start1) + (start2 - end1);
2922 amt1_byte = (end2_byte - start2_byte) + (start2_byte - end1_byte);
2923 amt2_byte = (end1_byte - start1_byte) + (start2_byte - end1_byte);
2924
2925 for (marker = BUF_MARKERS (current_buffer); !NILP (marker);
2926 marker = XMARKER (marker)->chain)
2927 {
2928 mpos = marker_byte_position (marker);
2929 if (mpos >= start1_byte && mpos < end2_byte)
2930 {
2931 if (mpos < end1_byte)
2932 mpos += amt1_byte;
2933 else if (mpos < start2_byte)
2934 mpos += diff_byte;
2935 else
2936 mpos -= amt2_byte;
2937 XMARKER (marker)->bytepos = mpos;
2938 }
2939 mpos = XMARKER (marker)->charpos;
2940 if (mpos >= start1 && mpos < end2)
2941 {
2942 if (mpos < end1)
2943 mpos += amt1;
2944 else if (mpos < start2)
2945 mpos += diff;
2946 else
2947 mpos -= amt2;
2948 }
2949 XMARKER (marker)->charpos = mpos;
2950 }
2951 }
2952
2953 DEFUN ("transpose-regions", Ftranspose_regions, Stranspose_regions, 4, 5, 0,
2954 "Transpose region START1 to END1 with START2 to END2.\n\
2955 The regions may not be overlapping, because the size of the buffer is\n\
2956 never changed in a transposition.\n\
2957 \n\
2958 Optional fifth arg LEAVE_MARKERS, if non-nil, means don't update\n\
2959 any markers that happen to be located in the regions.\n\
2960 \n\
2961 Transposing beyond buffer boundaries is an error.")
2962 (startr1, endr1, startr2, endr2, leave_markers)
2963 Lisp_Object startr1, endr1, startr2, endr2, leave_markers;
2964 {
2965 register int start1, end1, start2, end2;
2966 int start1_byte, start2_byte, len1_byte, len2_byte;
2967 int gap, len1, len_mid, len2;
2968 unsigned char *start1_addr, *start2_addr, *temp;
2969 int combined_before_bytes_1, combined_after_bytes_1;
2970 int combined_before_bytes_2, combined_after_bytes_2;
2971 struct gcpro gcpro1, gcpro2;
2972
2973 #ifdef USE_TEXT_PROPERTIES
2974 INTERVAL cur_intv, tmp_interval1, tmp_interval_mid, tmp_interval2;
2975 cur_intv = BUF_INTERVALS (current_buffer);
2976 #endif /* USE_TEXT_PROPERTIES */
2977
2978 validate_region (&startr1, &endr1);
2979 validate_region (&startr2, &endr2);
2980
2981 start1 = XFASTINT (startr1);
2982 end1 = XFASTINT (endr1);
2983 start2 = XFASTINT (startr2);
2984 end2 = XFASTINT (endr2);
2985 gap = GPT;
2986
2987 /* Swap the regions if they're reversed. */
2988 if (start2 < end1)
2989 {
2990 register int glumph = start1;
2991 start1 = start2;
2992 start2 = glumph;
2993 glumph = end1;
2994 end1 = end2;
2995 end2 = glumph;
2996 }
2997
2998 len1 = end1 - start1;
2999 len2 = end2 - start2;
3000
3001 if (start2 < end1)
3002 error ("Transposed regions overlap");
3003 else if (start1 == end1 || start2 == end2)
3004 error ("Transposed region has length 0");
3005
3006 /* The possibilities are:
3007 1. Adjacent (contiguous) regions, or separate but equal regions
3008 (no, really equal, in this case!), or
3009 2. Separate regions of unequal size.
3010
3011 The worst case is usually No. 2. It means that (aside from
3012 potential need for getting the gap out of the way), there also
3013 needs to be a shifting of the text between the two regions. So
3014 if they are spread far apart, we are that much slower... sigh. */
3015
3016 /* It must be pointed out that the really studly thing to do would
3017 be not to move the gap at all, but to leave it in place and work
3018 around it if necessary. This would be extremely efficient,
3019 especially considering that people are likely to do
3020 transpositions near where they are working interactively, which
3021 is exactly where the gap would be found. However, such code
3022 would be much harder to write and to read. So, if you are
3023 reading this comment and are feeling squirrely, by all means have
3024 a go! I just didn't feel like doing it, so I will simply move
3025 the gap the minimum distance to get it out of the way, and then
3026 deal with an unbroken array. */
3027
3028 /* Make sure the gap won't interfere, by moving it out of the text
3029 we will operate on. */
3030 if (start1 < gap && gap < end2)
3031 {
3032 if (gap - start1 < end2 - gap)
3033 move_gap (start1);
3034 else
3035 move_gap (end2);
3036 }
3037
3038 start1_byte = CHAR_TO_BYTE (start1);
3039 start2_byte = CHAR_TO_BYTE (start2);
3040 len1_byte = CHAR_TO_BYTE (end1) - start1_byte;
3041 len2_byte = CHAR_TO_BYTE (end2) - start2_byte;
3042
3043 if (end1 == start2)
3044 {
3045 combined_before_bytes_2
3046 = count_combining_before (BYTE_POS_ADDR (start2_byte),
3047 len2_byte, start1, start1_byte);
3048 combined_before_bytes_1
3049 = count_combining_before (BYTE_POS_ADDR (start1_byte),
3050 len1_byte, end2, start2_byte + len2_byte);
3051 combined_after_bytes_1
3052 = count_combining_after (BYTE_POS_ADDR (start1_byte),
3053 len1_byte, end2, start2_byte + len2_byte);
3054 combined_after_bytes_2 = 0;
3055 }
3056 else
3057 {
3058 combined_before_bytes_2
3059 = count_combining_before (BYTE_POS_ADDR (start2_byte),
3060 len2_byte, start1, start1_byte);
3061 combined_before_bytes_1
3062 = count_combining_before (BYTE_POS_ADDR (start1_byte),
3063 len1_byte, start2, start2_byte);
3064 combined_after_bytes_2
3065 = count_combining_after (BYTE_POS_ADDR (start2_byte),
3066 len2_byte, end1, start1_byte + len1_byte);
3067 combined_after_bytes_1
3068 = count_combining_after (BYTE_POS_ADDR (start1_byte),
3069 len1_byte, end2, start2_byte + len2_byte);
3070 }
3071
3072 /* If any combining is going to happen, do this the stupid way,
3073 because replace handles combining properly. */
3074 if (combined_before_bytes_1 || combined_before_bytes_2
3075 || combined_after_bytes_1 || combined_after_bytes_2)
3076 {
3077 Lisp_Object text1, text2;
3078
3079 text1 = text2 = Qnil;
3080 GCPRO2 (text1, text2);
3081
3082 text1 = make_buffer_string_both (start1, start1_byte,
3083 end1, start1_byte + len1_byte, 1);
3084 text2 = make_buffer_string_both (start2, start2_byte,
3085 end2, start2_byte + len2_byte, 1);
3086
3087 transpose_markers (start1, end1, start2, end2,
3088 start1_byte, start1_byte + len1_byte,
3089 start2_byte, start2_byte + len2_byte);
3090
3091 replace_range (start2, end2, text1, 1, 0, 0);
3092 replace_range (start1, end1, text2, 1, 0, 0);
3093
3094 UNGCPRO;
3095 return Qnil;
3096 }
3097
3098 /* Hmmm... how about checking to see if the gap is large
3099 enough to use as the temporary storage? That would avoid an
3100 allocation... interesting. Later, don't fool with it now. */
3101
3102 /* Working without memmove, for portability (sigh), so must be
3103 careful of overlapping subsections of the array... */
3104
3105 if (end1 == start2) /* adjacent regions */
3106 {
3107 modify_region (current_buffer, start1, end2);
3108 record_change (start1, len1 + len2);
3109
3110 #ifdef USE_TEXT_PROPERTIES
3111 tmp_interval1 = copy_intervals (cur_intv, start1, len1);
3112 tmp_interval2 = copy_intervals (cur_intv, start2, len2);
3113 Fset_text_properties (make_number (start1), make_number (end2),
3114 Qnil, Qnil);
3115 #endif /* USE_TEXT_PROPERTIES */
3116
3117 /* First region smaller than second. */
3118 if (len1_byte < len2_byte)
3119 {
3120 /* We use alloca only if it is small,
3121 because we want to avoid stack overflow. */
3122 if (len2_byte > 20000)
3123 temp = (unsigned char *) xmalloc (len2_byte);
3124 else
3125 temp = (unsigned char *) alloca (len2_byte);
3126
3127 /* Don't precompute these addresses. We have to compute them
3128 at the last minute, because the relocating allocator might
3129 have moved the buffer around during the xmalloc. */
3130 start1_addr = BYTE_POS_ADDR (start1_byte);
3131 start2_addr = BYTE_POS_ADDR (start2_byte);
3132
3133 bcopy (start2_addr, temp, len2_byte);
3134 bcopy (start1_addr, start1_addr + len2_byte, len1_byte);
3135 bcopy (temp, start1_addr, len2_byte);
3136 if (len2_byte > 20000)
3137 free (temp);
3138 }
3139 else
3140 /* First region not smaller than second. */
3141 {
3142 if (len1_byte > 20000)
3143 temp = (unsigned char *) xmalloc (len1_byte);
3144 else
3145 temp = (unsigned char *) alloca (len1_byte);
3146 start1_addr = BYTE_POS_ADDR (start1_byte);
3147 start2_addr = BYTE_POS_ADDR (start2_byte);
3148 bcopy (start1_addr, temp, len1_byte);
3149 bcopy (start2_addr, start1_addr, len2_byte);
3150 bcopy (temp, start1_addr + len2_byte, len1_byte);
3151 if (len1_byte > 20000)
3152 free (temp);
3153 }
3154 #ifdef USE_TEXT_PROPERTIES
3155 graft_intervals_into_buffer (tmp_interval1, start1 + len2,
3156 len1, current_buffer, 0);
3157 graft_intervals_into_buffer (tmp_interval2, start1,
3158 len2, current_buffer, 0);
3159 #endif /* USE_TEXT_PROPERTIES */
3160 }
3161 /* Non-adjacent regions, because end1 != start2, bleagh... */
3162 else
3163 {
3164 len_mid = start2_byte - (start1_byte + len1_byte);
3165
3166 if (len1_byte == len2_byte)
3167 /* Regions are same size, though, how nice. */
3168 {
3169 modify_region (current_buffer, start1, end1);
3170 modify_region (current_buffer, start2, end2);
3171 record_change (start1, len1);
3172 record_change (start2, len2);
3173 #ifdef USE_TEXT_PROPERTIES
3174 tmp_interval1 = copy_intervals (cur_intv, start1, len1);
3175 tmp_interval2 = copy_intervals (cur_intv, start2, len2);
3176 Fset_text_properties (make_number (start1), make_number (end1),
3177 Qnil, Qnil);
3178 Fset_text_properties (make_number (start2), make_number (end2),
3179 Qnil, Qnil);
3180 #endif /* USE_TEXT_PROPERTIES */
3181
3182 if (len1_byte > 20000)
3183 temp = (unsigned char *) xmalloc (len1_byte);
3184 else
3185 temp = (unsigned char *) alloca (len1_byte);
3186 start1_addr = BYTE_POS_ADDR (start1_byte);
3187 start2_addr = BYTE_POS_ADDR (start2_byte);
3188 bcopy (start1_addr, temp, len1_byte);
3189 bcopy (start2_addr, start1_addr, len2_byte);
3190 bcopy (temp, start2_addr, len1_byte);
3191 if (len1_byte > 20000)
3192 free (temp);
3193 #ifdef USE_TEXT_PROPERTIES
3194 graft_intervals_into_buffer (tmp_interval1, start2,
3195 len1, current_buffer, 0);
3196 graft_intervals_into_buffer (tmp_interval2, start1,
3197 len2, current_buffer, 0);
3198 #endif /* USE_TEXT_PROPERTIES */
3199 }
3200
3201 else if (len1_byte < len2_byte) /* Second region larger than first */
3202 /* Non-adjacent & unequal size, area between must also be shifted. */
3203 {
3204 modify_region (current_buffer, start1, end2);
3205 record_change (start1, (end2 - start1));
3206 #ifdef USE_TEXT_PROPERTIES
3207 tmp_interval1 = copy_intervals (cur_intv, start1, len1);
3208 tmp_interval_mid = copy_intervals (cur_intv, end1, len_mid);
3209 tmp_interval2 = copy_intervals (cur_intv, start2, len2);
3210 Fset_text_properties (make_number (start1), make_number (end2),
3211 Qnil, Qnil);
3212 #endif /* USE_TEXT_PROPERTIES */
3213
3214 /* holds region 2 */
3215 if (len2_byte > 20000)
3216 temp = (unsigned char *) xmalloc (len2_byte);
3217 else
3218 temp = (unsigned char *) alloca (len2_byte);
3219 start1_addr = BYTE_POS_ADDR (start1_byte);
3220 start2_addr = BYTE_POS_ADDR (start2_byte);
3221 bcopy (start2_addr, temp, len2_byte);
3222 bcopy (start1_addr, start1_addr + len_mid + len2_byte, len1_byte);
3223 safe_bcopy (start1_addr + len1_byte, start1_addr + len2_byte, len_mid);
3224 bcopy (temp, start1_addr, len2_byte);
3225 if (len2_byte > 20000)
3226 free (temp);
3227 #ifdef USE_TEXT_PROPERTIES
3228 graft_intervals_into_buffer (tmp_interval1, end2 - len1,
3229 len1, current_buffer, 0);
3230 graft_intervals_into_buffer (tmp_interval_mid, start1 + len2,
3231 len_mid, current_buffer, 0);
3232 graft_intervals_into_buffer (tmp_interval2, start1,
3233 len2, current_buffer, 0);
3234 #endif /* USE_TEXT_PROPERTIES */
3235 }
3236 else
3237 /* Second region smaller than first. */
3238 {
3239 record_change (start1, (end2 - start1));
3240 modify_region (current_buffer, start1, end2);
3241
3242 #ifdef USE_TEXT_PROPERTIES
3243 tmp_interval1 = copy_intervals (cur_intv, start1, len1);
3244 tmp_interval_mid = copy_intervals (cur_intv, end1, len_mid);
3245 tmp_interval2 = copy_intervals (cur_intv, start2, len2);
3246 Fset_text_properties (make_number (start1), make_number (end2),
3247 Qnil, Qnil);
3248 #endif /* USE_TEXT_PROPERTIES */
3249
3250 /* holds region 1 */
3251 if (len1_byte > 20000)
3252 temp = (unsigned char *) xmalloc (len1_byte);
3253 else
3254 temp = (unsigned char *) alloca (len1_byte);
3255 start1_addr = BYTE_POS_ADDR (start1_byte);
3256 start2_addr = BYTE_POS_ADDR (start2_byte);
3257 bcopy (start1_addr, temp, len1_byte);
3258 bcopy (start2_addr, start1_addr, len2_byte);
3259 bcopy (start1_addr + len1_byte, start1_addr + len2_byte, len_mid);
3260 bcopy (temp, start1_addr + len2_byte + len_mid, len1_byte);
3261 if (len1_byte > 20000)
3262 free (temp);
3263 #ifdef USE_TEXT_PROPERTIES
3264 graft_intervals_into_buffer (tmp_interval1, end2 - len1,
3265 len1, current_buffer, 0);
3266 graft_intervals_into_buffer (tmp_interval_mid, start1 + len2,
3267 len_mid, current_buffer, 0);
3268 graft_intervals_into_buffer (tmp_interval2, start1,
3269 len2, current_buffer, 0);
3270 #endif /* USE_TEXT_PROPERTIES */
3271 }
3272 }
3273
3274 /* When doing multiple transpositions, it might be nice
3275 to optimize this. Perhaps the markers in any one buffer
3276 should be organized in some sorted data tree. */
3277 if (NILP (leave_markers))
3278 {
3279 transpose_markers (start1, end1, start2, end2,
3280 start1_byte, start1_byte + len1_byte,
3281 start2_byte, start2_byte + len2_byte);
3282 fix_overlays_in_range (start1, end2);
3283 }
3284
3285 return Qnil;
3286 }
3287
3288 \f
3289 void
3290 syms_of_editfns ()
3291 {
3292 environbuf = 0;
3293
3294 Qbuffer_access_fontify_functions
3295 = intern ("buffer-access-fontify-functions");
3296 staticpro (&Qbuffer_access_fontify_functions);
3297
3298 DEFVAR_LISP ("buffer-access-fontify-functions",
3299 &Vbuffer_access_fontify_functions,
3300 "List of functions called by `buffer-substring' to fontify if necessary.\n\
3301 Each function is called with two arguments which specify the range\n\
3302 of the buffer being accessed.");
3303 Vbuffer_access_fontify_functions = Qnil;
3304
3305 {
3306 Lisp_Object obuf;
3307 extern Lisp_Object Vprin1_to_string_buffer;
3308 obuf = Fcurrent_buffer ();
3309 /* Do this here, because init_buffer_once is too early--it won't work. */
3310 Fset_buffer (Vprin1_to_string_buffer);
3311 /* Make sure buffer-access-fontify-functions is nil in this buffer. */
3312 Fset (Fmake_local_variable (intern ("buffer-access-fontify-functions")),
3313 Qnil);
3314 Fset_buffer (obuf);
3315 }
3316
3317 DEFVAR_LISP ("buffer-access-fontified-property",
3318 &Vbuffer_access_fontified_property,
3319 "Property which (if non-nil) indicates text has been fontified.\n\
3320 `buffer-substring' need not call the `buffer-access-fontify-functions'\n\
3321 functions if all the text being accessed has this property.");
3322 Vbuffer_access_fontified_property = Qnil;
3323
3324 DEFVAR_LISP ("system-name", &Vsystem_name,
3325 "The name of the machine Emacs is running on.");
3326
3327 DEFVAR_LISP ("user-full-name", &Vuser_full_name,
3328 "The full name of the user logged in.");
3329
3330 DEFVAR_LISP ("user-login-name", &Vuser_login_name,
3331 "The user's name, taken from environment variables if possible.");
3332
3333 DEFVAR_LISP ("user-real-login-name", &Vuser_real_login_name,
3334 "The user's name, based upon the real uid only.");
3335
3336 defsubr (&Schar_equal);
3337 defsubr (&Sgoto_char);
3338 defsubr (&Sstring_to_char);
3339 defsubr (&Schar_to_string);
3340 defsubr (&Sbuffer_substring);
3341 defsubr (&Sbuffer_substring_no_properties);
3342 defsubr (&Sbuffer_string);
3343
3344 defsubr (&Spoint_marker);
3345 defsubr (&Smark_marker);
3346 defsubr (&Spoint);
3347 defsubr (&Sregion_beginning);
3348 defsubr (&Sregion_end);
3349
3350 defsubr (&Sline_beginning_position);
3351 defsubr (&Sline_end_position);
3352
3353 /* defsubr (&Smark); */
3354 /* defsubr (&Sset_mark); */
3355 defsubr (&Ssave_excursion);
3356 defsubr (&Ssave_current_buffer);
3357
3358 defsubr (&Sbufsize);
3359 defsubr (&Spoint_max);
3360 defsubr (&Spoint_min);
3361 defsubr (&Spoint_min_marker);
3362 defsubr (&Spoint_max_marker);
3363 defsubr (&Sgap_position);
3364 defsubr (&Sgap_size);
3365 defsubr (&Sposition_bytes);
3366 defsubr (&Sbyte_to_position);
3367
3368 defsubr (&Sbobp);
3369 defsubr (&Seobp);
3370 defsubr (&Sbolp);
3371 defsubr (&Seolp);
3372 defsubr (&Sfollowing_char);
3373 defsubr (&Sprevious_char);
3374 defsubr (&Schar_after);
3375 defsubr (&Schar_before);
3376 defsubr (&Sinsert);
3377 defsubr (&Sinsert_before_markers);
3378 defsubr (&Sinsert_and_inherit);
3379 defsubr (&Sinsert_and_inherit_before_markers);
3380 defsubr (&Sinsert_char);
3381
3382 defsubr (&Suser_login_name);
3383 defsubr (&Suser_real_login_name);
3384 defsubr (&Suser_uid);
3385 defsubr (&Suser_real_uid);
3386 defsubr (&Suser_full_name);
3387 defsubr (&Semacs_pid);
3388 defsubr (&Scurrent_time);
3389 defsubr (&Sformat_time_string);
3390 defsubr (&Sdecode_time);
3391 defsubr (&Sencode_time);
3392 defsubr (&Scurrent_time_string);
3393 defsubr (&Scurrent_time_zone);
3394 defsubr (&Sset_time_zone_rule);
3395 defsubr (&Ssystem_name);
3396 defsubr (&Smessage);
3397 defsubr (&Smessage_box);
3398 defsubr (&Smessage_or_box);
3399 defsubr (&Scurrent_message);
3400 defsubr (&Sformat);
3401
3402 defsubr (&Sinsert_buffer_substring);
3403 defsubr (&Scompare_buffer_substrings);
3404 defsubr (&Ssubst_char_in_region);
3405 defsubr (&Stranslate_region);
3406 defsubr (&Sdelete_region);
3407 defsubr (&Swiden);
3408 defsubr (&Snarrow_to_region);
3409 defsubr (&Ssave_restriction);
3410 defsubr (&Stranspose_regions);
3411 }