Merge changes from emacs-23
[bpt/emacs.git] / src / keymap.c
1 /* Manipulation of keymaps
2 Copyright (C) 1985-1988, 1993-1995, 1998-2011 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 3 of the License, or
9 (at your option) 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. If not, see <http://www.gnu.org/licenses/>. */
18
19 /* Old BUGS:
20 - [M-C-a] != [?\M-\C-a]
21 - [M-f2] != [?\e f2].
22 - (define-key map [menu-bar foo] <bla>) does not always place <bla>
23 at the head of the menu (if `foo' was already bound earlier and
24 then unbound, for example).
25 TODO:
26 - allow many more Meta -> ESC mappings (like Hyper -> C-e for Emacspeak)
27 - Think about the various defaulting that's currently hard-coded in
28 keyboard.c (uppercase->lowercase, char->charset, button-events, ...)
29 and make it more generic. Maybe we should allow mappings of the
30 form (PREDICATE . BINDING) as generalization of the default binding,
31 tho probably a cleaner way to attack this is to allow functional
32 keymaps (i.e. keymaps that are implemented as functions that implement
33 a few different methods like `lookup', `map', ...).
34 - Make [a] equivalent to [?a].
35 BEWARE:
36 - map-keymap should work meaningfully even if entries are added/removed
37 to the keymap while iterating through it:
38 start - removed <= visited <= start + added
39 */
40
41 #include <config.h>
42 #include <stdio.h>
43 #include <setjmp.h>
44 #include "lisp.h"
45 #include "commands.h"
46 #include "buffer.h"
47 #include "character.h"
48 #include "charset.h"
49 #include "keyboard.h"
50 #include "frame.h"
51 #include "termhooks.h"
52 #include "blockinput.h"
53 #include "puresize.h"
54 #include "intervals.h"
55 #include "keymap.h"
56 #include "window.h"
57
58 /* Actually allocate storage for these variables */
59
60 Lisp_Object current_global_map; /* Current global keymap */
61
62 Lisp_Object global_map; /* default global key bindings */
63
64 Lisp_Object meta_map; /* The keymap used for globally bound
65 ESC-prefixed default commands */
66
67 Lisp_Object control_x_map; /* The keymap used for globally bound
68 C-x-prefixed default commands */
69
70 /* The keymap used by the minibuf for local
71 bindings when spaces are allowed in the
72 minibuf */
73
74 /* The keymap used by the minibuf for local
75 bindings when spaces are not encouraged
76 in the minibuf */
77
78 /* keymap used for minibuffers when doing completion */
79 /* keymap used for minibuffers when doing completion and require a match */
80 static Lisp_Object Qkeymapp, Qnon_ascii;
81 Lisp_Object Qkeymap, Qmenu_item, Qremap;
82 static Lisp_Object QCadvertised_binding;
83
84 /* Alist of elements like (DEL . "\d"). */
85 static Lisp_Object exclude_keys;
86
87 /* Pre-allocated 2-element vector for Fcommand_remapping to use. */
88 static Lisp_Object command_remapping_vector;
89
90 /* Hash table used to cache a reverse-map to speed up calls to where-is. */
91 static Lisp_Object where_is_cache;
92 /* Which keymaps are reverse-stored in the cache. */
93 static Lisp_Object where_is_cache_keymaps;
94
95 static Lisp_Object Flookup_key (Lisp_Object, Lisp_Object, Lisp_Object);
96 static Lisp_Object store_in_keymap (Lisp_Object, Lisp_Object, Lisp_Object);
97
98 static Lisp_Object define_as_prefix (Lisp_Object, Lisp_Object);
99 static void describe_command (Lisp_Object, Lisp_Object);
100 static void describe_translation (Lisp_Object, Lisp_Object);
101 static void describe_map (Lisp_Object, Lisp_Object,
102 void (*) (Lisp_Object, Lisp_Object),
103 int, Lisp_Object, Lisp_Object*, int, int);
104 static void describe_vector (Lisp_Object, Lisp_Object, Lisp_Object,
105 void (*) (Lisp_Object, Lisp_Object), int,
106 Lisp_Object, Lisp_Object, int, int);
107 static void silly_event_symbol_error (Lisp_Object);
108 static Lisp_Object get_keyelt (Lisp_Object, int);
109 \f
110 /* Keymap object support - constructors and predicates. */
111
112 DEFUN ("make-keymap", Fmake_keymap, Smake_keymap, 0, 1, 0,
113 doc: /* Construct and return a new keymap, of the form (keymap CHARTABLE . ALIST).
114 CHARTABLE is a char-table that holds the bindings for all characters
115 without modifiers. All entries in it are initially nil, meaning
116 "command undefined". ALIST is an assoc-list which holds bindings for
117 function keys, mouse events, and any other things that appear in the
118 input stream. Initially, ALIST is nil.
119
120 The optional arg STRING supplies a menu name for the keymap
121 in case you use it as a menu with `x-popup-menu'. */)
122 (Lisp_Object string)
123 {
124 Lisp_Object tail;
125 if (!NILP (string))
126 tail = Fcons (string, Qnil);
127 else
128 tail = Qnil;
129 return Fcons (Qkeymap,
130 Fcons (Fmake_char_table (Qkeymap, Qnil), tail));
131 }
132
133 DEFUN ("make-sparse-keymap", Fmake_sparse_keymap, Smake_sparse_keymap, 0, 1, 0,
134 doc: /* Construct and return a new sparse keymap.
135 Its car is `keymap' and its cdr is an alist of (CHAR . DEFINITION),
136 which binds the character CHAR to DEFINITION, or (SYMBOL . DEFINITION),
137 which binds the function key or mouse event SYMBOL to DEFINITION.
138 Initially the alist is nil.
139
140 The optional arg STRING supplies a menu name for the keymap
141 in case you use it as a menu with `x-popup-menu'. */)
142 (Lisp_Object string)
143 {
144 if (!NILP (string))
145 {
146 if (!NILP (Vpurify_flag))
147 string = Fpurecopy (string);
148 return Fcons (Qkeymap, Fcons (string, Qnil));
149 }
150 return Fcons (Qkeymap, Qnil);
151 }
152
153 /* This function is used for installing the standard key bindings
154 at initialization time.
155
156 For example:
157
158 initial_define_key (control_x_map, Ctl('X'), "exchange-point-and-mark"); */
159
160 void
161 initial_define_key (Lisp_Object keymap, int key, const char *defname)
162 {
163 store_in_keymap (keymap, make_number (key), intern_c_string (defname));
164 }
165
166 void
167 initial_define_lispy_key (Lisp_Object keymap, const char *keyname, const char *defname)
168 {
169 store_in_keymap (keymap, intern_c_string (keyname), intern_c_string (defname));
170 }
171
172 DEFUN ("keymapp", Fkeymapp, Skeymapp, 1, 1, 0,
173 doc: /* Return t if OBJECT is a keymap.
174
175 A keymap is a list (keymap . ALIST),
176 or a symbol whose function definition is itself a keymap.
177 ALIST elements look like (CHAR . DEFN) or (SYMBOL . DEFN);
178 a vector of densely packed bindings for small character codes
179 is also allowed as an element. */)
180 (Lisp_Object object)
181 {
182 return (KEYMAPP (object) ? Qt : Qnil);
183 }
184
185 DEFUN ("keymap-prompt", Fkeymap_prompt, Skeymap_prompt, 1, 1, 0,
186 doc: /* Return the prompt-string of a keymap MAP.
187 If non-nil, the prompt is shown in the echo-area
188 when reading a key-sequence to be looked-up in this keymap. */)
189 (Lisp_Object map)
190 {
191 map = get_keymap (map, 0, 0);
192 while (CONSP (map))
193 {
194 Lisp_Object tem = XCAR (map);
195 if (STRINGP (tem))
196 return tem;
197 else if (KEYMAPP (tem))
198 {
199 tem = Fkeymap_prompt (tem);
200 if (!NILP (tem))
201 return tem;
202 }
203 map = XCDR (map);
204 }
205 return Qnil;
206 }
207
208 /* Check that OBJECT is a keymap (after dereferencing through any
209 symbols). If it is, return it.
210
211 If AUTOLOAD is non-zero and OBJECT is a symbol whose function value
212 is an autoload form, do the autoload and try again.
213 If AUTOLOAD is nonzero, callers must assume GC is possible.
214
215 If the map needs to be autoloaded, but AUTOLOAD is zero (and ERROR
216 is zero as well), return Qt.
217
218 ERROR_IF_NOT_KEYMAP controls how we respond if OBJECT isn't a keymap.
219 If ERROR_IF_NOT_KEYMAP is non-zero, signal an error; otherwise,
220 just return Qnil.
221
222 Note that most of the time, we don't want to pursue autoloads.
223 Functions like Faccessible_keymaps which scan entire keymap trees
224 shouldn't load every autoloaded keymap. I'm not sure about this,
225 but it seems to me that only read_key_sequence, Flookup_key, and
226 Fdefine_key should cause keymaps to be autoloaded.
227
228 This function can GC when AUTOLOAD is non-zero, because it calls
229 do_autoload which can GC. */
230
231 Lisp_Object
232 get_keymap (Lisp_Object object, int error_if_not_keymap, int autoload)
233 {
234 Lisp_Object tem;
235
236 autoload_retry:
237 if (NILP (object))
238 goto end;
239 if (CONSP (object) && EQ (XCAR (object), Qkeymap))
240 return object;
241
242 tem = indirect_function (object);
243 if (CONSP (tem))
244 {
245 if (EQ (XCAR (tem), Qkeymap))
246 return tem;
247
248 /* Should we do an autoload? Autoload forms for keymaps have
249 Qkeymap as their fifth element. */
250 if ((autoload || !error_if_not_keymap) && EQ (XCAR (tem), Qautoload)
251 && SYMBOLP (object))
252 {
253 Lisp_Object tail;
254
255 tail = Fnth (make_number (4), tem);
256 if (EQ (tail, Qkeymap))
257 {
258 if (autoload)
259 {
260 struct gcpro gcpro1, gcpro2;
261
262 GCPRO2 (tem, object);
263 do_autoload (tem, object);
264 UNGCPRO;
265
266 goto autoload_retry;
267 }
268 else
269 return object;
270 }
271 }
272 }
273
274 end:
275 if (error_if_not_keymap)
276 wrong_type_argument (Qkeymapp, object);
277 return Qnil;
278 }
279 \f
280 /* Return the parent map of KEYMAP, or nil if it has none.
281 We assume that KEYMAP is a valid keymap. */
282
283 static Lisp_Object
284 keymap_parent (Lisp_Object keymap, int autoload)
285 {
286 Lisp_Object list;
287
288 keymap = get_keymap (keymap, 1, autoload);
289
290 /* Skip past the initial element `keymap'. */
291 list = XCDR (keymap);
292 for (; CONSP (list); list = XCDR (list))
293 {
294 /* See if there is another `keymap'. */
295 if (KEYMAPP (list))
296 return list;
297 }
298
299 return get_keymap (list, 0, autoload);
300 }
301
302 DEFUN ("keymap-parent", Fkeymap_parent, Skeymap_parent, 1, 1, 0,
303 doc: /* Return the parent keymap of KEYMAP.
304 If KEYMAP has no parent, return nil. */)
305 (Lisp_Object keymap)
306 {
307 return keymap_parent (keymap, 1);
308 }
309
310 /* Check whether MAP is one of MAPS parents. */
311 static int
312 keymap_memberp (Lisp_Object map, Lisp_Object maps)
313 {
314 if (NILP (map)) return 0;
315 while (KEYMAPP (maps) && !EQ (map, maps))
316 maps = keymap_parent (maps, 0);
317 return (EQ (map, maps));
318 }
319
320 /* Set the parent keymap of MAP to PARENT. */
321
322 DEFUN ("set-keymap-parent", Fset_keymap_parent, Sset_keymap_parent, 2, 2, 0,
323 doc: /* Modify KEYMAP to set its parent map to PARENT.
324 Return PARENT. PARENT should be nil or another keymap. */)
325 (Lisp_Object keymap, Lisp_Object parent)
326 {
327 Lisp_Object list, prev;
328 struct gcpro gcpro1, gcpro2;
329
330 /* Flush any reverse-map cache. */
331 where_is_cache = Qnil; where_is_cache_keymaps = Qt;
332
333 GCPRO2 (keymap, parent);
334 keymap = get_keymap (keymap, 1, 1);
335
336 if (!NILP (parent))
337 {
338 parent = get_keymap (parent, 1, 0);
339
340 /* Check for cycles. */
341 if (keymap_memberp (keymap, parent))
342 error ("Cyclic keymap inheritance");
343 }
344
345 /* Skip past the initial element `keymap'. */
346 prev = keymap;
347 while (1)
348 {
349 list = XCDR (prev);
350 /* If there is a parent keymap here, replace it.
351 If we came to the end, add the parent in PREV. */
352 if (!CONSP (list) || KEYMAPP (list))
353 {
354 CHECK_IMPURE (prev);
355 XSETCDR (prev, parent);
356 RETURN_UNGCPRO (parent);
357 }
358 prev = list;
359 }
360 }
361 \f
362
363 /* Look up IDX in MAP. IDX may be any sort of event.
364 Note that this does only one level of lookup; IDX must be a single
365 event, not a sequence.
366
367 MAP must be a keymap or a list of keymaps.
368
369 If T_OK is non-zero, bindings for Qt are treated as default
370 bindings; any key left unmentioned by other tables and bindings is
371 given the binding of Qt.
372
373 If T_OK is zero, bindings for Qt are not treated specially.
374
375 If NOINHERIT, don't accept a subkeymap found in an inherited keymap.
376
377 Returns Qunbound if no binding was found (and returns Qnil if a nil
378 binding was found). */
379
380 static Lisp_Object
381 access_keymap_1 (Lisp_Object map, Lisp_Object idx, int t_ok, int noinherit, int autoload)
382 {
383 /* If idx is a list (some sort of mouse click, perhaps?),
384 the index we want to use is the car of the list, which
385 ought to be a symbol. */
386 idx = EVENT_HEAD (idx);
387
388 /* If idx is a symbol, it might have modifiers, which need to
389 be put in the canonical order. */
390 if (SYMBOLP (idx))
391 idx = reorder_modifiers (idx);
392 else if (INTEGERP (idx))
393 /* Clobber the high bits that can be present on a machine
394 with more than 24 bits of integer. */
395 XSETFASTINT (idx, XINT (idx) & (CHAR_META | (CHAR_META - 1)));
396
397 /* Handle the special meta -> esc mapping. */
398 if (INTEGERP (idx) && XFASTINT (idx) & meta_modifier)
399 {
400 /* See if there is a meta-map. If there's none, there is
401 no binding for IDX, unless a default binding exists in MAP. */
402 struct gcpro gcpro1;
403 Lisp_Object event_meta_binding, event_meta_map;
404 GCPRO1 (map);
405 /* A strange value in which Meta is set would cause
406 infinite recursion. Protect against that. */
407 if (XINT (meta_prefix_char) & CHAR_META)
408 meta_prefix_char = make_number (27);
409 event_meta_binding = access_keymap_1 (map, meta_prefix_char, t_ok,
410 noinherit, autoload);
411 event_meta_map = get_keymap (event_meta_binding, 0, autoload);
412 UNGCPRO;
413 if (CONSP (event_meta_map))
414 {
415 map = event_meta_map;
416 idx = make_number (XFASTINT (idx) & ~meta_modifier);
417 }
418 else if (t_ok)
419 /* Set IDX to t, so that we only find a default binding. */
420 idx = Qt;
421 else
422 /* An explicit nil binding, or no binding at all. */
423 return NILP (event_meta_binding) ? Qnil : Qunbound;
424 }
425
426 /* t_binding is where we put a default binding that applies,
427 to use in case we do not find a binding specifically
428 for this key sequence. */
429 {
430 Lisp_Object tail;
431 Lisp_Object t_binding = Qunbound;
432 Lisp_Object retval = Qunbound;
433 Lisp_Object retval_tail = Qnil;
434 struct gcpro gcpro1, gcpro2, gcpro3, gcpro4;
435
436 GCPRO4 (tail, idx, t_binding, retval);
437
438 for (tail = (CONSP (map) && EQ (Qkeymap, XCAR (map))) ? XCDR (map) : map;
439 (CONSP (tail)
440 || (tail = get_keymap (tail, 0, autoload), CONSP (tail)));
441 tail = XCDR (tail))
442 {
443 /* Qunbound in VAL means we have found no binding. */
444 Lisp_Object val = Qunbound;
445 Lisp_Object binding = XCAR (tail);
446 Lisp_Object submap = get_keymap (binding, 0, autoload);
447
448 if (EQ (binding, Qkeymap))
449 {
450 if (noinherit || NILP (retval))
451 /* If NOINHERIT, stop here, the rest is inherited. */
452 break;
453 else if (!EQ (retval, Qunbound))
454 {
455 Lisp_Object parent_entry;
456 eassert (KEYMAPP (retval));
457 parent_entry
458 = get_keymap (access_keymap_1 (tail, idx,
459 t_ok, 0, autoload),
460 0, autoload);
461 if (KEYMAPP (parent_entry))
462 {
463 if (CONSP (retval_tail))
464 XSETCDR (retval_tail, parent_entry);
465 else
466 {
467 retval_tail = Fcons (retval, parent_entry);
468 retval = Fcons (Qkeymap, retval_tail);
469 }
470 }
471 break;
472 }
473 }
474 else if (CONSP (submap))
475 {
476 val = access_keymap_1 (submap, idx, t_ok, noinherit, autoload);
477 }
478 else if (CONSP (binding))
479 {
480 Lisp_Object key = XCAR (binding);
481
482 if (EQ (key, idx))
483 val = XCDR (binding);
484 else if (t_ok && EQ (key, Qt))
485 {
486 t_binding = XCDR (binding);
487 t_ok = 0;
488 }
489 }
490 else if (VECTORP (binding))
491 {
492 if (INTEGERP (idx) && XFASTINT (idx) < ASIZE (binding))
493 val = AREF (binding, XFASTINT (idx));
494 }
495 else if (CHAR_TABLE_P (binding))
496 {
497 /* Character codes with modifiers
498 are not included in a char-table.
499 All character codes without modifiers are included. */
500 if (INTEGERP (idx) && (XFASTINT (idx) & CHAR_MODIFIER_MASK) == 0)
501 {
502 val = Faref (binding, idx);
503 /* `nil' has a special meaning for char-tables, so
504 we use something else to record an explicitly
505 unbound entry. */
506 if (NILP (val))
507 val = Qunbound;
508 }
509 }
510
511 /* If we found a binding, clean it up and return it. */
512 if (!EQ (val, Qunbound))
513 {
514 if (EQ (val, Qt))
515 /* A Qt binding is just like an explicit nil binding
516 (i.e. it shadows any parent binding but not bindings in
517 keymaps of lower precedence). */
518 val = Qnil;
519
520 val = get_keyelt (val, autoload);
521
522 if (!KEYMAPP (val))
523 {
524 if (NILP (retval) || EQ (retval, Qunbound))
525 retval = val;
526 if (!NILP (val))
527 break; /* Shadows everything that follows. */
528 }
529 else if (NILP (retval) || EQ (retval, Qunbound))
530 retval = val;
531 else if (CONSP (retval_tail))
532 {
533 XSETCDR (retval_tail, Fcons (val, Qnil));
534 retval_tail = XCDR (retval_tail);
535 }
536 else
537 {
538 retval_tail = Fcons (val, Qnil);
539 retval = Fcons (Qkeymap, Fcons (retval, retval_tail));
540 }
541 }
542 QUIT;
543 }
544 UNGCPRO;
545 return EQ (Qunbound, retval) ? get_keyelt (t_binding, autoload) : retval;
546 }
547 }
548
549 Lisp_Object
550 access_keymap (Lisp_Object map, Lisp_Object idx,
551 int t_ok, int noinherit, int autoload)
552 {
553 Lisp_Object val = access_keymap_1 (map, idx, t_ok, noinherit, autoload);
554 return EQ (val, Qunbound) ? Qnil : val;
555 }
556
557 static void
558 map_keymap_item (map_keymap_function_t fun, Lisp_Object args, Lisp_Object key, Lisp_Object val, void *data)
559 {
560 if (EQ (val, Qt))
561 val = Qnil;
562 (*fun) (key, val, args, data);
563 }
564
565 static void
566 map_keymap_char_table_item (Lisp_Object args, Lisp_Object key, Lisp_Object val)
567 {
568 if (!NILP (val))
569 {
570 map_keymap_function_t fun
571 = (map_keymap_function_t) XSAVE_VALUE (XCAR (args))->pointer;
572 args = XCDR (args);
573 /* If the key is a range, make a copy since map_char_table modifies
574 it in place. */
575 if (CONSP (key))
576 key = Fcons (XCAR (key), XCDR (key));
577 map_keymap_item (fun, XCDR (args), key, val,
578 XSAVE_VALUE (XCAR (args))->pointer);
579 }
580 }
581
582 /* Call FUN for every binding in MAP and stop at (and return) the parent.
583 FUN is called with 4 arguments: FUN (KEY, BINDING, ARGS, DATA). */
584 static Lisp_Object
585 map_keymap_internal (Lisp_Object map,
586 map_keymap_function_t fun,
587 Lisp_Object args,
588 void *data)
589 {
590 struct gcpro gcpro1, gcpro2, gcpro3;
591 Lisp_Object tail
592 = (CONSP (map) && EQ (Qkeymap, XCAR (map))) ? XCDR (map) : map;
593
594 GCPRO3 (map, args, tail);
595 for (; CONSP (tail) && !EQ (Qkeymap, XCAR (tail)); tail = XCDR (tail))
596 {
597 Lisp_Object binding = XCAR (tail);
598
599 if (KEYMAPP (binding)) /* An embedded parent. */
600 break;
601 else if (CONSP (binding))
602 map_keymap_item (fun, args, XCAR (binding), XCDR (binding), data);
603 else if (VECTORP (binding))
604 {
605 /* Loop over the char values represented in the vector. */
606 int len = ASIZE (binding);
607 int c;
608 for (c = 0; c < len; c++)
609 {
610 Lisp_Object character;
611 XSETFASTINT (character, c);
612 map_keymap_item (fun, args, character, AREF (binding, c), data);
613 }
614 }
615 else if (CHAR_TABLE_P (binding))
616 {
617 map_char_table (map_keymap_char_table_item, Qnil, binding,
618 Fcons (make_save_value ((void *) fun, 0),
619 Fcons (make_save_value (data, 0),
620 args)));
621 }
622 }
623 UNGCPRO;
624 return tail;
625 }
626
627 static void
628 map_keymap_call (Lisp_Object key, Lisp_Object val, Lisp_Object fun, void *dummy)
629 {
630 call2 (fun, key, val);
631 }
632
633 /* Same as map_keymap_internal, but traverses parent keymaps as well.
634 A non-zero AUTOLOAD indicates that autoloaded keymaps should be loaded. */
635 void
636 map_keymap (Lisp_Object map, map_keymap_function_t fun, Lisp_Object args, void *data, int autoload)
637 {
638 struct gcpro gcpro1;
639 GCPRO1 (args);
640 map = get_keymap (map, 1, autoload);
641 while (CONSP (map))
642 {
643 if (KEYMAPP (XCAR (map)))
644 {
645 map_keymap (XCAR (map), fun, args, data, autoload);
646 map = XCDR (map);
647 }
648 else
649 map = map_keymap_internal (map, fun, args, data);
650 if (!CONSP (map))
651 map = get_keymap (map, 0, autoload);
652 }
653 UNGCPRO;
654 }
655
656 static Lisp_Object Qkeymap_canonicalize;
657
658 /* Same as map_keymap, but does it right, properly eliminating duplicate
659 bindings due to inheritance. */
660 void
661 map_keymap_canonical (Lisp_Object map, map_keymap_function_t fun, Lisp_Object args, void *data)
662 {
663 struct gcpro gcpro1;
664 GCPRO1 (args);
665 /* map_keymap_canonical may be used from redisplay (e.g. when building menus)
666 so be careful to ignore errors and to inhibit redisplay. */
667 map = safe_call1 (Qkeymap_canonicalize, map);
668 /* No need to use `map_keymap' here because canonical map has no parent. */
669 map_keymap_internal (map, fun, args, data);
670 UNGCPRO;
671 }
672
673 DEFUN ("map-keymap-internal", Fmap_keymap_internal, Smap_keymap_internal, 2, 2, 0,
674 doc: /* Call FUNCTION once for each event binding in KEYMAP.
675 FUNCTION is called with two arguments: the event that is bound, and
676 the definition it is bound to. The event may be a character range.
677 If KEYMAP has a parent, this function returns it without processing it. */)
678 (Lisp_Object function, Lisp_Object keymap)
679 {
680 struct gcpro gcpro1;
681 GCPRO1 (function);
682 keymap = get_keymap (keymap, 1, 1);
683 keymap = map_keymap_internal (keymap, map_keymap_call, function, NULL);
684 UNGCPRO;
685 return keymap;
686 }
687
688 DEFUN ("map-keymap", Fmap_keymap, Smap_keymap, 2, 3, 0,
689 doc: /* Call FUNCTION once for each event binding in KEYMAP.
690 FUNCTION is called with two arguments: the event that is bound, and
691 the definition it is bound to. The event may be a character range.
692
693 If KEYMAP has a parent, the parent's bindings are included as well.
694 This works recursively: if the parent has itself a parent, then the
695 grandparent's bindings are also included and so on.
696 usage: (map-keymap FUNCTION KEYMAP) */)
697 (Lisp_Object function, Lisp_Object keymap, Lisp_Object sort_first)
698 {
699 if (! NILP (sort_first))
700 return call2 (intern ("map-keymap-sorted"), function, keymap);
701
702 map_keymap (keymap, map_keymap_call, function, NULL, 1);
703 return Qnil;
704 }
705
706 /* Given OBJECT which was found in a slot in a keymap,
707 trace indirect definitions to get the actual definition of that slot.
708 An indirect definition is a list of the form
709 (KEYMAP . INDEX), where KEYMAP is a keymap or a symbol defined as one
710 and INDEX is the object to look up in KEYMAP to yield the definition.
711
712 Also if OBJECT has a menu string as the first element,
713 remove that. Also remove a menu help string as second element.
714
715 If AUTOLOAD is nonzero, load autoloadable keymaps
716 that are referred to with indirection.
717
718 This can GC because menu_item_eval_property calls Feval. */
719
720 static Lisp_Object
721 get_keyelt (Lisp_Object object, int autoload)
722 {
723 while (1)
724 {
725 if (!(CONSP (object)))
726 /* This is really the value. */
727 return object;
728
729 /* If the keymap contents looks like (keymap ...) or (lambda ...)
730 then use itself. */
731 else if (EQ (XCAR (object), Qkeymap) || EQ (XCAR (object), Qlambda))
732 return object;
733
734 /* If the keymap contents looks like (menu-item name . DEFN)
735 or (menu-item name DEFN ...) then use DEFN.
736 This is a new format menu item. */
737 else if (EQ (XCAR (object), Qmenu_item))
738 {
739 if (CONSP (XCDR (object)))
740 {
741 Lisp_Object tem;
742
743 object = XCDR (XCDR (object));
744 tem = object;
745 if (CONSP (object))
746 object = XCAR (object);
747
748 /* If there's a `:filter FILTER', apply FILTER to the
749 menu-item's definition to get the real definition to
750 use. */
751 for (; CONSP (tem) && CONSP (XCDR (tem)); tem = XCDR (tem))
752 if (EQ (XCAR (tem), QCfilter) && autoload)
753 {
754 Lisp_Object filter;
755 filter = XCAR (XCDR (tem));
756 filter = list2 (filter, list2 (Qquote, object));
757 object = menu_item_eval_property (filter);
758 break;
759 }
760 }
761 else
762 /* Invalid keymap. */
763 return object;
764 }
765
766 /* If the keymap contents looks like (STRING . DEFN), use DEFN.
767 Keymap alist elements like (CHAR MENUSTRING . DEFN)
768 will be used by HierarKey menus. */
769 else if (STRINGP (XCAR (object)))
770 {
771 object = XCDR (object);
772 /* Also remove a menu help string, if any,
773 following the menu item name. */
774 if (CONSP (object) && STRINGP (XCAR (object)))
775 object = XCDR (object);
776 /* Also remove the sublist that caches key equivalences, if any. */
777 if (CONSP (object) && CONSP (XCAR (object)))
778 {
779 Lisp_Object carcar;
780 carcar = XCAR (XCAR (object));
781 if (NILP (carcar) || VECTORP (carcar))
782 object = XCDR (object);
783 }
784 }
785
786 /* If the contents are (KEYMAP . ELEMENT), go indirect. */
787 else if (KEYMAPP (XCAR (object)))
788 error ("Wow, indirect keymap entry!!");
789 else
790 return object;
791 }
792 }
793
794 static Lisp_Object
795 store_in_keymap (Lisp_Object keymap, register Lisp_Object idx, Lisp_Object def)
796 {
797 /* Flush any reverse-map cache. */
798 where_is_cache = Qnil;
799 where_is_cache_keymaps = Qt;
800
801 if (EQ (idx, Qkeymap))
802 error ("`keymap' is reserved for embedded parent maps");
803
804 /* If we are preparing to dump, and DEF is a menu element
805 with a menu item indicator, copy it to ensure it is not pure. */
806 if (CONSP (def) && PURE_P (def)
807 && (EQ (XCAR (def), Qmenu_item) || STRINGP (XCAR (def))))
808 def = Fcons (XCAR (def), XCDR (def));
809
810 if (!CONSP (keymap) || !EQ (XCAR (keymap), Qkeymap))
811 error ("attempt to define a key in a non-keymap");
812
813 /* If idx is a cons, and the car part is a character, idx must be of
814 the form (FROM-CHAR . TO-CHAR). */
815 if (CONSP (idx) && CHARACTERP (XCAR (idx)))
816 CHECK_CHARACTER_CDR (idx);
817 else
818 /* If idx is a list (some sort of mouse click, perhaps?),
819 the index we want to use is the car of the list, which
820 ought to be a symbol. */
821 idx = EVENT_HEAD (idx);
822
823 /* If idx is a symbol, it might have modifiers, which need to
824 be put in the canonical order. */
825 if (SYMBOLP (idx))
826 idx = reorder_modifiers (idx);
827 else if (INTEGERP (idx))
828 /* Clobber the high bits that can be present on a machine
829 with more than 24 bits of integer. */
830 XSETFASTINT (idx, XINT (idx) & (CHAR_META | (CHAR_META - 1)));
831
832 /* Scan the keymap for a binding of idx. */
833 {
834 Lisp_Object tail;
835
836 /* The cons after which we should insert new bindings. If the
837 keymap has a table element, we record its position here, so new
838 bindings will go after it; this way, the table will stay
839 towards the front of the alist and character lookups in dense
840 keymaps will remain fast. Otherwise, this just points at the
841 front of the keymap. */
842 Lisp_Object insertion_point;
843
844 insertion_point = keymap;
845 for (tail = XCDR (keymap); CONSP (tail); tail = XCDR (tail))
846 {
847 Lisp_Object elt;
848
849 elt = XCAR (tail);
850 if (VECTORP (elt))
851 {
852 if (NATNUMP (idx) && XFASTINT (idx) < ASIZE (elt))
853 {
854 CHECK_IMPURE (elt);
855 ASET (elt, XFASTINT (idx), def);
856 return def;
857 }
858 else if (CONSP (idx) && CHARACTERP (XCAR (idx)))
859 {
860 int from = XFASTINT (XCAR (idx));
861 int to = XFASTINT (XCDR (idx));
862
863 if (to >= ASIZE (elt))
864 to = ASIZE (elt) - 1;
865 for (; from <= to; from++)
866 ASET (elt, from, def);
867 if (to == XFASTINT (XCDR (idx)))
868 /* We have defined all keys in IDX. */
869 return def;
870 }
871 insertion_point = tail;
872 }
873 else if (CHAR_TABLE_P (elt))
874 {
875 /* Character codes with modifiers
876 are not included in a char-table.
877 All character codes without modifiers are included. */
878 if (NATNUMP (idx) && !(XFASTINT (idx) & CHAR_MODIFIER_MASK))
879 {
880 Faset (elt, idx,
881 /* `nil' has a special meaning for char-tables, so
882 we use something else to record an explicitly
883 unbound entry. */
884 NILP (def) ? Qt : def);
885 return def;
886 }
887 else if (CONSP (idx) && CHARACTERP (XCAR (idx)))
888 {
889 Fset_char_table_range (elt, idx, NILP (def) ? Qt : def);
890 return def;
891 }
892 insertion_point = tail;
893 }
894 else if (CONSP (elt))
895 {
896 if (EQ (Qkeymap, XCAR (elt)))
897 { /* A sub keymap. This might be due to a lookup that found
898 two matching bindings (maybe because of a sub keymap).
899 It almost never happens (since the second binding normally
900 only happens in the inherited part of the keymap), but
901 if it does, we want to update the sub-keymap since the
902 main one might be temporary (built by access_keymap). */
903 tail = insertion_point = elt;
904 }
905 else if (EQ (idx, XCAR (elt)))
906 {
907 CHECK_IMPURE (elt);
908 XSETCDR (elt, def);
909 return def;
910 }
911 else if (CONSP (idx) && CHARACTERP (XCAR (idx)))
912 {
913 int from = XFASTINT (XCAR (idx));
914 int to = XFASTINT (XCDR (idx));
915
916 if (from <= XFASTINT (XCAR (elt))
917 && to >= XFASTINT (XCAR (elt)))
918 {
919 XSETCDR (elt, def);
920 if (from == to)
921 return def;
922 }
923 }
924 }
925 else if (EQ (elt, Qkeymap))
926 /* If we find a 'keymap' symbol in the spine of KEYMAP,
927 then we must have found the start of a second keymap
928 being used as the tail of KEYMAP, and a binding for IDX
929 should be inserted before it. */
930 goto keymap_end;
931
932 QUIT;
933 }
934
935 keymap_end:
936 /* We have scanned the entire keymap, and not found a binding for
937 IDX. Let's add one. */
938 {
939 Lisp_Object elt;
940
941 if (CONSP (idx) && CHARACTERP (XCAR (idx)))
942 {
943 /* IDX specifies a range of characters, and not all of them
944 were handled yet, which means this keymap doesn't have a
945 char-table. So, we insert a char-table now. */
946 elt = Fmake_char_table (Qkeymap, Qnil);
947 Fset_char_table_range (elt, idx, NILP (def) ? Qt : def);
948 }
949 else
950 elt = Fcons (idx, def);
951 CHECK_IMPURE (insertion_point);
952 XSETCDR (insertion_point, Fcons (elt, XCDR (insertion_point)));
953 }
954 }
955
956 return def;
957 }
958
959 static Lisp_Object Fcopy_keymap (Lisp_Object);
960
961 static Lisp_Object
962 copy_keymap_item (Lisp_Object elt)
963 {
964 Lisp_Object res, tem;
965
966 if (!CONSP (elt))
967 return elt;
968
969 res = tem = elt;
970
971 /* Is this a new format menu item. */
972 if (EQ (XCAR (tem), Qmenu_item))
973 {
974 /* Copy cell with menu-item marker. */
975 res = elt = Fcons (XCAR (tem), XCDR (tem));
976 tem = XCDR (elt);
977 if (CONSP (tem))
978 {
979 /* Copy cell with menu-item name. */
980 XSETCDR (elt, Fcons (XCAR (tem), XCDR (tem)));
981 elt = XCDR (elt);
982 tem = XCDR (elt);
983 }
984 if (CONSP (tem))
985 {
986 /* Copy cell with binding and if the binding is a keymap,
987 copy that. */
988 XSETCDR (elt, Fcons (XCAR (tem), XCDR (tem)));
989 elt = XCDR (elt);
990 tem = XCAR (elt);
991 if (CONSP (tem) && EQ (XCAR (tem), Qkeymap))
992 XSETCAR (elt, Fcopy_keymap (tem));
993 tem = XCDR (elt);
994 if (CONSP (tem) && CONSP (XCAR (tem)))
995 /* Delete cache for key equivalences. */
996 XSETCDR (elt, XCDR (tem));
997 }
998 }
999 else
1000 {
1001 /* It may be an old fomat menu item.
1002 Skip the optional menu string. */
1003 if (STRINGP (XCAR (tem)))
1004 {
1005 /* Copy the cell, since copy-alist didn't go this deep. */
1006 res = elt = Fcons (XCAR (tem), XCDR (tem));
1007 tem = XCDR (elt);
1008 /* Also skip the optional menu help string. */
1009 if (CONSP (tem) && STRINGP (XCAR (tem)))
1010 {
1011 XSETCDR (elt, Fcons (XCAR (tem), XCDR (tem)));
1012 elt = XCDR (elt);
1013 tem = XCDR (elt);
1014 }
1015 /* There may also be a list that caches key equivalences.
1016 Just delete it for the new keymap. */
1017 if (CONSP (tem)
1018 && CONSP (XCAR (tem))
1019 && (NILP (XCAR (XCAR (tem)))
1020 || VECTORP (XCAR (XCAR (tem)))))
1021 {
1022 XSETCDR (elt, XCDR (tem));
1023 tem = XCDR (tem);
1024 }
1025 if (CONSP (tem) && EQ (XCAR (tem), Qkeymap))
1026 XSETCDR (elt, Fcopy_keymap (tem));
1027 }
1028 else if (EQ (XCAR (tem), Qkeymap))
1029 res = Fcopy_keymap (elt);
1030 }
1031 return res;
1032 }
1033
1034 static void
1035 copy_keymap_1 (Lisp_Object chartable, Lisp_Object idx, Lisp_Object elt)
1036 {
1037 Fset_char_table_range (chartable, idx, copy_keymap_item (elt));
1038 }
1039
1040 DEFUN ("copy-keymap", Fcopy_keymap, Scopy_keymap, 1, 1, 0,
1041 doc: /* Return a copy of the keymap KEYMAP.
1042 The copy starts out with the same definitions of KEYMAP,
1043 but changing either the copy or KEYMAP does not affect the other.
1044 Any key definitions that are subkeymaps are recursively copied.
1045 However, a key definition which is a symbol whose definition is a keymap
1046 is not copied. */)
1047 (Lisp_Object keymap)
1048 {
1049 register Lisp_Object copy, tail;
1050 keymap = get_keymap (keymap, 1, 0);
1051 copy = tail = Fcons (Qkeymap, Qnil);
1052 keymap = XCDR (keymap); /* Skip the `keymap' symbol. */
1053
1054 while (CONSP (keymap) && !EQ (XCAR (keymap), Qkeymap))
1055 {
1056 Lisp_Object elt = XCAR (keymap);
1057 if (CHAR_TABLE_P (elt))
1058 {
1059 elt = Fcopy_sequence (elt);
1060 map_char_table (copy_keymap_1, Qnil, elt, elt);
1061 }
1062 else if (VECTORP (elt))
1063 {
1064 int i;
1065 elt = Fcopy_sequence (elt);
1066 for (i = 0; i < ASIZE (elt); i++)
1067 ASET (elt, i, copy_keymap_item (AREF (elt, i)));
1068 }
1069 else if (CONSP (elt))
1070 {
1071 if (EQ (XCAR (elt), Qkeymap))
1072 /* This is a sub keymap. */
1073 elt = Fcopy_keymap (elt);
1074 else
1075 elt = Fcons (XCAR (elt), copy_keymap_item (XCDR (elt)));
1076 }
1077 XSETCDR (tail, Fcons (elt, Qnil));
1078 tail = XCDR (tail);
1079 keymap = XCDR (keymap);
1080 }
1081 XSETCDR (tail, keymap);
1082 return copy;
1083 }
1084 \f
1085 /* Simple Keymap mutators and accessors. */
1086
1087 /* GC is possible in this function if it autoloads a keymap. */
1088
1089 DEFUN ("define-key", Fdefine_key, Sdefine_key, 3, 3, 0,
1090 doc: /* In KEYMAP, define key sequence KEY as DEF.
1091 KEYMAP is a keymap.
1092
1093 KEY is a string or a vector of symbols and characters, representing a
1094 sequence of keystrokes and events. Non-ASCII characters with codes
1095 above 127 (such as ISO Latin-1) can be represented by vectors.
1096 Two types of vector have special meanings:
1097 [remap COMMAND] remaps any key binding for COMMAND.
1098 [t] creates a default definition, which applies to any event with no
1099 other definition in KEYMAP.
1100
1101 DEF is anything that can be a key's definition:
1102 nil (means key is undefined in this keymap),
1103 a command (a Lisp function suitable for interactive calling),
1104 a string (treated as a keyboard macro),
1105 a keymap (to define a prefix key),
1106 a symbol (when the key is looked up, the symbol will stand for its
1107 function definition, which should at that time be one of the above,
1108 or another symbol whose function definition is used, etc.),
1109 a cons (STRING . DEFN), meaning that DEFN is the definition
1110 (DEFN should be a valid definition in its own right),
1111 or a cons (MAP . CHAR), meaning use definition of CHAR in keymap MAP,
1112 or an extended menu item definition.
1113 (See info node `(elisp)Extended Menu Items'.)
1114
1115 If KEYMAP is a sparse keymap with a binding for KEY, the existing
1116 binding is altered. If there is no binding for KEY, the new pair
1117 binding KEY to DEF is added at the front of KEYMAP. */)
1118 (Lisp_Object keymap, Lisp_Object key, Lisp_Object def)
1119 {
1120 register int idx;
1121 register Lisp_Object c;
1122 register Lisp_Object cmd;
1123 int metized = 0;
1124 int meta_bit;
1125 int length;
1126 struct gcpro gcpro1, gcpro2, gcpro3;
1127
1128 GCPRO3 (keymap, key, def);
1129 keymap = get_keymap (keymap, 1, 1);
1130
1131 CHECK_VECTOR_OR_STRING (key);
1132
1133 length = XFASTINT (Flength (key));
1134 if (length == 0)
1135 RETURN_UNGCPRO (Qnil);
1136
1137 if (SYMBOLP (def) && !EQ (Vdefine_key_rebound_commands, Qt))
1138 Vdefine_key_rebound_commands = Fcons (def, Vdefine_key_rebound_commands);
1139
1140 meta_bit = (VECTORP (key) || (STRINGP (key) && STRING_MULTIBYTE (key))
1141 ? meta_modifier : 0x80);
1142
1143 if (VECTORP (def) && ASIZE (def) > 0 && CONSP (AREF (def, 0)))
1144 { /* DEF is apparently an XEmacs-style keyboard macro. */
1145 Lisp_Object tmp = Fmake_vector (make_number (ASIZE (def)), Qnil);
1146 int i = ASIZE (def);
1147 while (--i >= 0)
1148 {
1149 Lisp_Object defi = AREF (def, i);
1150 if (CONSP (defi) && lucid_event_type_list_p (defi))
1151 defi = Fevent_convert_list (defi);
1152 ASET (tmp, i, defi);
1153 }
1154 def = tmp;
1155 }
1156
1157 idx = 0;
1158 while (1)
1159 {
1160 c = Faref (key, make_number (idx));
1161
1162 if (CONSP (c))
1163 {
1164 /* C may be a Lucid style event type list or a cons (FROM .
1165 TO) specifying a range of characters. */
1166 if (lucid_event_type_list_p (c))
1167 c = Fevent_convert_list (c);
1168 else if (CHARACTERP (XCAR (c)))
1169 CHECK_CHARACTER_CDR (c);
1170 }
1171
1172 if (SYMBOLP (c))
1173 silly_event_symbol_error (c);
1174
1175 if (INTEGERP (c)
1176 && (XINT (c) & meta_bit)
1177 && !metized)
1178 {
1179 c = meta_prefix_char;
1180 metized = 1;
1181 }
1182 else
1183 {
1184 if (INTEGERP (c))
1185 XSETINT (c, XINT (c) & ~meta_bit);
1186
1187 metized = 0;
1188 idx++;
1189 }
1190
1191 if (!INTEGERP (c) && !SYMBOLP (c)
1192 && (!CONSP (c)
1193 /* If C is a range, it must be a leaf. */
1194 || (INTEGERP (XCAR (c)) && idx != length)))
1195 message_with_string ("Key sequence contains invalid event %s", c, 1);
1196
1197 if (idx == length)
1198 RETURN_UNGCPRO (store_in_keymap (keymap, c, def));
1199
1200 cmd = access_keymap (keymap, c, 0, 1, 1);
1201
1202 /* If this key is undefined, make it a prefix. */
1203 if (NILP (cmd))
1204 cmd = define_as_prefix (keymap, c);
1205
1206 keymap = get_keymap (cmd, 0, 1);
1207 if (!CONSP (keymap))
1208 {
1209 const char *trailing_esc = ((EQ (c, meta_prefix_char) && metized)
1210 ? (idx == 0 ? "ESC" : " ESC")
1211 : "");
1212
1213 /* We must use Fkey_description rather than just passing key to
1214 error; key might be a vector, not a string. */
1215 error ("Key sequence %s starts with non-prefix key %s%s",
1216 SDATA (Fkey_description (key, Qnil)),
1217 SDATA (Fkey_description (Fsubstring (key, make_number (0),
1218 make_number (idx)),
1219 Qnil)),
1220 trailing_esc);
1221 }
1222 }
1223 }
1224
1225 /* This function may GC (it calls Fkey_binding). */
1226
1227 DEFUN ("command-remapping", Fcommand_remapping, Scommand_remapping, 1, 3, 0,
1228 doc: /* Return the remapping for command COMMAND.
1229 Returns nil if COMMAND is not remapped (or not a symbol).
1230
1231 If the optional argument POSITION is non-nil, it specifies a mouse
1232 position as returned by `event-start' and `event-end', and the
1233 remapping occurs in the keymaps associated with it. It can also be a
1234 number or marker, in which case the keymap properties at the specified
1235 buffer position instead of point are used. The KEYMAPS argument is
1236 ignored if POSITION is non-nil.
1237
1238 If the optional argument KEYMAPS is non-nil, it should be a list of
1239 keymaps to search for command remapping. Otherwise, search for the
1240 remapping in all currently active keymaps. */)
1241 (Lisp_Object command, Lisp_Object position, Lisp_Object keymaps)
1242 {
1243 if (!SYMBOLP (command))
1244 return Qnil;
1245
1246 ASET (command_remapping_vector, 1, command);
1247
1248 if (NILP (keymaps))
1249 command = Fkey_binding (command_remapping_vector, Qnil, Qt, position);
1250 else
1251 command = Flookup_key (Fcons (Qkeymap, keymaps),
1252 command_remapping_vector, Qnil);
1253 return INTEGERP (command) ? Qnil : command;
1254 }
1255
1256 /* Value is number if KEY is too long; nil if valid but has no definition. */
1257 /* GC is possible in this function. */
1258
1259 DEFUN ("lookup-key", Flookup_key, Slookup_key, 2, 3, 0,
1260 doc: /* In keymap KEYMAP, look up key sequence KEY. Return the definition.
1261 A value of nil means undefined. See doc of `define-key'
1262 for kinds of definitions.
1263
1264 A number as value means KEY is "too long";
1265 that is, characters or symbols in it except for the last one
1266 fail to be a valid sequence of prefix characters in KEYMAP.
1267 The number is how many characters at the front of KEY
1268 it takes to reach a non-prefix key.
1269
1270 Normally, `lookup-key' ignores bindings for t, which act as default
1271 bindings, used when nothing else in the keymap applies; this makes it
1272 usable as a general function for probing keymaps. However, if the
1273 third optional argument ACCEPT-DEFAULT is non-nil, `lookup-key' will
1274 recognize the default bindings, just as `read-key-sequence' does. */)
1275 (Lisp_Object keymap, Lisp_Object key, Lisp_Object accept_default)
1276 {
1277 register int idx;
1278 register Lisp_Object cmd;
1279 register Lisp_Object c;
1280 int length;
1281 int t_ok = !NILP (accept_default);
1282 struct gcpro gcpro1, gcpro2;
1283
1284 GCPRO2 (keymap, key);
1285 keymap = get_keymap (keymap, 1, 1);
1286
1287 CHECK_VECTOR_OR_STRING (key);
1288
1289 length = XFASTINT (Flength (key));
1290 if (length == 0)
1291 RETURN_UNGCPRO (keymap);
1292
1293 idx = 0;
1294 while (1)
1295 {
1296 c = Faref (key, make_number (idx++));
1297
1298 if (CONSP (c) && lucid_event_type_list_p (c))
1299 c = Fevent_convert_list (c);
1300
1301 /* Turn the 8th bit of string chars into a meta modifier. */
1302 if (STRINGP (key) && XINT (c) & 0x80 && !STRING_MULTIBYTE (key))
1303 XSETINT (c, (XINT (c) | meta_modifier) & ~0x80);
1304
1305 /* Allow string since binding for `menu-bar-select-buffer'
1306 includes the buffer name in the key sequence. */
1307 if (!INTEGERP (c) && !SYMBOLP (c) && !CONSP (c) && !STRINGP (c))
1308 message_with_string ("Key sequence contains invalid event %s", c, 1);
1309
1310 cmd = access_keymap (keymap, c, t_ok, 0, 1);
1311 if (idx == length)
1312 RETURN_UNGCPRO (cmd);
1313
1314 keymap = get_keymap (cmd, 0, 1);
1315 if (!CONSP (keymap))
1316 RETURN_UNGCPRO (make_number (idx));
1317
1318 QUIT;
1319 }
1320 }
1321
1322 /* Make KEYMAP define event C as a keymap (i.e., as a prefix).
1323 Assume that currently it does not define C at all.
1324 Return the keymap. */
1325
1326 static Lisp_Object
1327 define_as_prefix (Lisp_Object keymap, Lisp_Object c)
1328 {
1329 Lisp_Object cmd;
1330
1331 cmd = Fmake_sparse_keymap (Qnil);
1332 store_in_keymap (keymap, c, cmd);
1333
1334 return cmd;
1335 }
1336
1337 /* Append a key to the end of a key sequence. We always make a vector. */
1338
1339 static Lisp_Object
1340 append_key (Lisp_Object key_sequence, Lisp_Object key)
1341 {
1342 Lisp_Object args[2];
1343
1344 args[0] = key_sequence;
1345
1346 args[1] = Fcons (key, Qnil);
1347 return Fvconcat (2, args);
1348 }
1349
1350 /* Given a event type C which is a symbol,
1351 signal an error if is a mistake such as RET or M-RET or C-DEL, etc. */
1352
1353 static void
1354 silly_event_symbol_error (Lisp_Object c)
1355 {
1356 Lisp_Object parsed, base, name, assoc;
1357 int modifiers;
1358
1359 parsed = parse_modifiers (c);
1360 modifiers = XFASTINT (XCAR (XCDR (parsed)));
1361 base = XCAR (parsed);
1362 name = Fsymbol_name (base);
1363 /* This alist includes elements such as ("RET" . "\\r"). */
1364 assoc = Fassoc (name, exclude_keys);
1365
1366 if (! NILP (assoc))
1367 {
1368 char new_mods[sizeof ("\\A-\\C-\\H-\\M-\\S-\\s-")];
1369 char *p = new_mods;
1370 Lisp_Object keystring;
1371 if (modifiers & alt_modifier)
1372 { *p++ = '\\'; *p++ = 'A'; *p++ = '-'; }
1373 if (modifiers & ctrl_modifier)
1374 { *p++ = '\\'; *p++ = 'C'; *p++ = '-'; }
1375 if (modifiers & hyper_modifier)
1376 { *p++ = '\\'; *p++ = 'H'; *p++ = '-'; }
1377 if (modifiers & meta_modifier)
1378 { *p++ = '\\'; *p++ = 'M'; *p++ = '-'; }
1379 if (modifiers & shift_modifier)
1380 { *p++ = '\\'; *p++ = 'S'; *p++ = '-'; }
1381 if (modifiers & super_modifier)
1382 { *p++ = '\\'; *p++ = 's'; *p++ = '-'; }
1383 *p = 0;
1384
1385 c = reorder_modifiers (c);
1386 keystring = concat2 (build_string (new_mods), XCDR (assoc));
1387
1388 error ((modifiers & ~meta_modifier
1389 ? "To bind the key %s, use [?%s], not [%s]"
1390 : "To bind the key %s, use \"%s\", not [%s]"),
1391 SDATA (SYMBOL_NAME (c)), SDATA (keystring),
1392 SDATA (SYMBOL_NAME (c)));
1393 }
1394 }
1395 \f
1396 /* Global, local, and minor mode keymap stuff. */
1397
1398 /* We can't put these variables inside current_minor_maps, since under
1399 some systems, static gets macro-defined to be the empty string.
1400 Ickypoo. */
1401 static Lisp_Object *cmm_modes = NULL, *cmm_maps = NULL;
1402 static ptrdiff_t cmm_size = 0;
1403
1404 /* Store a pointer to an array of the currently active minor modes in
1405 *modeptr, a pointer to an array of the keymaps of the currently
1406 active minor modes in *mapptr, and return the number of maps
1407 *mapptr contains.
1408
1409 This function always returns a pointer to the same buffer, and may
1410 free or reallocate it, so if you want to keep it for a long time or
1411 hand it out to lisp code, copy it. This procedure will be called
1412 for every key sequence read, so the nice lispy approach (return a
1413 new assoclist, list, what have you) for each invocation would
1414 result in a lot of consing over time.
1415
1416 If we used xrealloc/xmalloc and ran out of memory, they would throw
1417 back to the command loop, which would try to read a key sequence,
1418 which would call this function again, resulting in an infinite
1419 loop. Instead, we'll use realloc/malloc and silently truncate the
1420 list, let the key sequence be read, and hope some other piece of
1421 code signals the error. */
1422 ptrdiff_t
1423 current_minor_maps (Lisp_Object **modeptr, Lisp_Object **mapptr)
1424 {
1425 ptrdiff_t i = 0;
1426 int list_number = 0;
1427 Lisp_Object alist, assoc, var, val;
1428 Lisp_Object emulation_alists;
1429 Lisp_Object lists[2];
1430
1431 emulation_alists = Vemulation_mode_map_alists;
1432 lists[0] = Vminor_mode_overriding_map_alist;
1433 lists[1] = Vminor_mode_map_alist;
1434
1435 for (list_number = 0; list_number < 2; list_number++)
1436 {
1437 if (CONSP (emulation_alists))
1438 {
1439 alist = XCAR (emulation_alists);
1440 emulation_alists = XCDR (emulation_alists);
1441 if (SYMBOLP (alist))
1442 alist = find_symbol_value (alist);
1443 list_number = -1;
1444 }
1445 else
1446 alist = lists[list_number];
1447
1448 for ( ; CONSP (alist); alist = XCDR (alist))
1449 if ((assoc = XCAR (alist), CONSP (assoc))
1450 && (var = XCAR (assoc), SYMBOLP (var))
1451 && (val = find_symbol_value (var), !EQ (val, Qunbound))
1452 && !NILP (val))
1453 {
1454 Lisp_Object temp;
1455
1456 /* If a variable has an entry in Vminor_mode_overriding_map_alist,
1457 and also an entry in Vminor_mode_map_alist,
1458 ignore the latter. */
1459 if (list_number == 1)
1460 {
1461 val = assq_no_quit (var, lists[0]);
1462 if (!NILP (val))
1463 continue;
1464 }
1465
1466 if (i >= cmm_size)
1467 {
1468 ptrdiff_t newsize, allocsize;
1469 Lisp_Object *newmodes, *newmaps;
1470
1471 /* Check for size calculation overflow. Other code
1472 (e.g., read_key_sequence) adds 3 to the count
1473 later, so subtract 3 from the limit here. */
1474 if (min (PTRDIFF_MAX, SIZE_MAX) / (2 * sizeof *newmodes) - 3
1475 < cmm_size)
1476 break;
1477
1478 newsize = cmm_size == 0 ? 30 : cmm_size * 2;
1479 allocsize = newsize * sizeof *newmodes;
1480
1481 /* Use malloc here. See the comment above this function.
1482 Avoid realloc here; it causes spurious traps on GNU/Linux [KFS] */
1483 BLOCK_INPUT;
1484 newmodes = (Lisp_Object *) malloc (allocsize);
1485 if (newmodes)
1486 {
1487 if (cmm_modes)
1488 {
1489 memcpy (newmodes, cmm_modes,
1490 cmm_size * sizeof cmm_modes[0]);
1491 free (cmm_modes);
1492 }
1493 cmm_modes = newmodes;
1494 }
1495
1496 newmaps = (Lisp_Object *) malloc (allocsize);
1497 if (newmaps)
1498 {
1499 if (cmm_maps)
1500 {
1501 memcpy (newmaps, cmm_maps,
1502 cmm_size * sizeof cmm_maps[0]);
1503 free (cmm_maps);
1504 }
1505 cmm_maps = newmaps;
1506 }
1507 UNBLOCK_INPUT;
1508
1509 if (newmodes == NULL || newmaps == NULL)
1510 break;
1511 cmm_size = newsize;
1512 }
1513
1514 /* Get the keymap definition--or nil if it is not defined. */
1515 temp = Findirect_function (XCDR (assoc), Qt);
1516 if (!NILP (temp))
1517 {
1518 cmm_modes[i] = var;
1519 cmm_maps [i] = temp;
1520 i++;
1521 }
1522 }
1523 }
1524
1525 if (modeptr) *modeptr = cmm_modes;
1526 if (mapptr) *mapptr = cmm_maps;
1527 return i;
1528 }
1529
1530 DEFUN ("current-active-maps", Fcurrent_active_maps, Scurrent_active_maps,
1531 0, 2, 0,
1532 doc: /* Return a list of the currently active keymaps.
1533 OLP if non-nil indicates that we should obey `overriding-local-map' and
1534 `overriding-terminal-local-map'. POSITION can specify a click position
1535 like in the respective argument of `key-binding'. */)
1536 (Lisp_Object olp, Lisp_Object position)
1537 {
1538 int count = SPECPDL_INDEX ();
1539
1540 Lisp_Object keymaps = Fcons (current_global_map, Qnil);
1541
1542 /* If a mouse click position is given, our variables are based on
1543 the buffer clicked on, not the current buffer. So we may have to
1544 switch the buffer here. */
1545
1546 if (CONSP (position))
1547 {
1548 Lisp_Object window;
1549
1550 window = POSN_WINDOW (position);
1551
1552 if (WINDOWP (window)
1553 && BUFFERP (XWINDOW (window)->buffer)
1554 && XBUFFER (XWINDOW (window)->buffer) != current_buffer)
1555 {
1556 /* Arrange to go back to the original buffer once we're done
1557 processing the key sequence. We don't use
1558 save_excursion_{save,restore} here, in analogy to
1559 `read-key-sequence' to avoid saving point. Maybe this
1560 would not be a problem here, but it is easier to keep
1561 things the same.
1562 */
1563
1564 record_unwind_protect (Fset_buffer, Fcurrent_buffer ());
1565
1566 set_buffer_internal (XBUFFER (XWINDOW (window)->buffer));
1567 }
1568 }
1569
1570 if (!NILP (olp))
1571 {
1572 if (!NILP (KVAR (current_kboard, Voverriding_terminal_local_map)))
1573 keymaps = Fcons (KVAR (current_kboard, Voverriding_terminal_local_map),
1574 keymaps);
1575 /* The doc said that overriding-terminal-local-map should
1576 override overriding-local-map. The code used them both,
1577 but it seems clearer to use just one. rms, jan 2005. */
1578 else if (!NILP (Voverriding_local_map))
1579 keymaps = Fcons (Voverriding_local_map, keymaps);
1580 }
1581 if (NILP (XCDR (keymaps)))
1582 {
1583 Lisp_Object *maps;
1584 int nmaps, i;
1585 EMACS_INT pt
1586 = INTEGERP (position) ? XINT (position)
1587 : MARKERP (position) ? marker_position (position)
1588 : PT;
1589 /* This usually returns the buffer's local map,
1590 but that can be overridden by a `local-map' property. */
1591 Lisp_Object local_map = get_local_map (pt, current_buffer, Qlocal_map);
1592 /* This returns nil unless there is a `keymap' property. */
1593 Lisp_Object keymap = get_local_map (pt, current_buffer, Qkeymap);
1594
1595 if (CONSP (position))
1596 {
1597 Lisp_Object string = POSN_STRING (position);
1598
1599 /* For a mouse click, get the local text-property keymap
1600 of the place clicked on, rather than point. */
1601
1602 if (POSN_INBUFFER_P (position))
1603 {
1604 Lisp_Object pos;
1605
1606 pos = POSN_BUFFER_POSN (position);
1607 if (INTEGERP (pos)
1608 && XINT (pos) >= BEG && XINT (pos) <= Z)
1609 {
1610 local_map = get_local_map (XINT (pos),
1611 current_buffer, Qlocal_map);
1612
1613 keymap = get_local_map (XINT (pos),
1614 current_buffer, Qkeymap);
1615 }
1616 }
1617
1618 /* If on a mode line string with a local keymap,
1619 or for a click on a string, i.e. overlay string or a
1620 string displayed via the `display' property,
1621 consider `local-map' and `keymap' properties of
1622 that string. */
1623
1624 if (CONSP (string) && STRINGP (XCAR (string)))
1625 {
1626 Lisp_Object pos, map;
1627
1628 pos = XCDR (string);
1629 string = XCAR (string);
1630 if (INTEGERP (pos)
1631 && XINT (pos) >= 0
1632 && XINT (pos) < SCHARS (string))
1633 {
1634 map = Fget_text_property (pos, Qlocal_map, string);
1635 if (!NILP (map))
1636 local_map = map;
1637
1638 map = Fget_text_property (pos, Qkeymap, string);
1639 if (!NILP (map))
1640 keymap = map;
1641 }
1642 }
1643
1644 }
1645
1646 if (!NILP (local_map))
1647 keymaps = Fcons (local_map, keymaps);
1648
1649 /* Now put all the minor mode keymaps on the list. */
1650 nmaps = current_minor_maps (0, &maps);
1651
1652 for (i = --nmaps; i >= 0; i--)
1653 if (!NILP (maps[i]))
1654 keymaps = Fcons (maps[i], keymaps);
1655
1656 if (!NILP (keymap))
1657 keymaps = Fcons (keymap, keymaps);
1658 }
1659
1660 unbind_to (count, Qnil);
1661
1662 return keymaps;
1663 }
1664
1665 /* GC is possible in this function if it autoloads a keymap. */
1666
1667 DEFUN ("key-binding", Fkey_binding, Skey_binding, 1, 4, 0,
1668 doc: /* Return the binding for command KEY in current keymaps.
1669 KEY is a string or vector, a sequence of keystrokes.
1670 The binding is probably a symbol with a function definition.
1671
1672 Normally, `key-binding' ignores bindings for t, which act as default
1673 bindings, used when nothing else in the keymap applies; this makes it
1674 usable as a general function for probing keymaps. However, if the
1675 optional second argument ACCEPT-DEFAULT is non-nil, `key-binding' does
1676 recognize the default bindings, just as `read-key-sequence' does.
1677
1678 Like the normal command loop, `key-binding' will remap the command
1679 resulting from looking up KEY by looking up the command in the
1680 current keymaps. However, if the optional third argument NO-REMAP
1681 is non-nil, `key-binding' returns the unmapped command.
1682
1683 If KEY is a key sequence initiated with the mouse, the used keymaps
1684 will depend on the clicked mouse position with regard to the buffer
1685 and possible local keymaps on strings.
1686
1687 If the optional argument POSITION is non-nil, it specifies a mouse
1688 position as returned by `event-start' and `event-end', and the lookup
1689 occurs in the keymaps associated with it instead of KEY. It can also
1690 be a number or marker, in which case the keymap properties at the
1691 specified buffer position instead of point are used.
1692 */)
1693 (Lisp_Object key, Lisp_Object accept_default, Lisp_Object no_remap, Lisp_Object position)
1694 {
1695 Lisp_Object value;
1696
1697 if (NILP (position) && VECTORP (key))
1698 {
1699 Lisp_Object event
1700 /* mouse events may have a symbolic prefix indicating the
1701 scrollbar or mode line */
1702 = AREF (key, SYMBOLP (AREF (key, 0)) && ASIZE (key) > 1 ? 1 : 0);
1703
1704 /* We are not interested in locations without event data */
1705
1706 if (EVENT_HAS_PARAMETERS (event) && CONSP (XCDR (event)))
1707 {
1708 Lisp_Object kind = EVENT_HEAD_KIND (EVENT_HEAD (event));
1709 if (EQ (kind, Qmouse_click))
1710 position = EVENT_START (event);
1711 }
1712 }
1713
1714 value = Flookup_key (Fcons (Qkeymap, Fcurrent_active_maps (Qt, position)),
1715 key, accept_default);
1716
1717 if (NILP (value) || INTEGERP (value))
1718 return Qnil;
1719
1720 /* If the result of the ordinary keymap lookup is an interactive
1721 command, look for a key binding (ie. remapping) for that command. */
1722
1723 if (NILP (no_remap) && SYMBOLP (value))
1724 {
1725 Lisp_Object value1;
1726 if (value1 = Fcommand_remapping (value, position, Qnil), !NILP (value1))
1727 value = value1;
1728 }
1729
1730 return value;
1731 }
1732
1733 /* GC is possible in this function if it autoloads a keymap. */
1734
1735 DEFUN ("local-key-binding", Flocal_key_binding, Slocal_key_binding, 1, 2, 0,
1736 doc: /* Return the binding for command KEYS in current local keymap only.
1737 KEYS is a string or vector, a sequence of keystrokes.
1738 The binding is probably a symbol with a function definition.
1739
1740 If optional argument ACCEPT-DEFAULT is non-nil, recognize default
1741 bindings; see the description of `lookup-key' for more details about this. */)
1742 (Lisp_Object keys, Lisp_Object accept_default)
1743 {
1744 register Lisp_Object map;
1745 map = BVAR (current_buffer, keymap);
1746 if (NILP (map))
1747 return Qnil;
1748 return Flookup_key (map, keys, accept_default);
1749 }
1750
1751 /* GC is possible in this function if it autoloads a keymap. */
1752
1753 DEFUN ("global-key-binding", Fglobal_key_binding, Sglobal_key_binding, 1, 2, 0,
1754 doc: /* Return the binding for command KEYS in current global keymap only.
1755 KEYS is a string or vector, a sequence of keystrokes.
1756 The binding is probably a symbol with a function definition.
1757 This function's return values are the same as those of `lookup-key'
1758 \(which see).
1759
1760 If optional argument ACCEPT-DEFAULT is non-nil, recognize default
1761 bindings; see the description of `lookup-key' for more details about this. */)
1762 (Lisp_Object keys, Lisp_Object accept_default)
1763 {
1764 return Flookup_key (current_global_map, keys, accept_default);
1765 }
1766
1767 /* GC is possible in this function if it autoloads a keymap. */
1768
1769 DEFUN ("minor-mode-key-binding", Fminor_mode_key_binding, Sminor_mode_key_binding, 1, 2, 0,
1770 doc: /* Find the visible minor mode bindings of KEY.
1771 Return an alist of pairs (MODENAME . BINDING), where MODENAME is
1772 the symbol which names the minor mode binding KEY, and BINDING is
1773 KEY's definition in that mode. In particular, if KEY has no
1774 minor-mode bindings, return nil. If the first binding is a
1775 non-prefix, all subsequent bindings will be omitted, since they would
1776 be ignored. Similarly, the list doesn't include non-prefix bindings
1777 that come after prefix bindings.
1778
1779 If optional argument ACCEPT-DEFAULT is non-nil, recognize default
1780 bindings; see the description of `lookup-key' for more details about this. */)
1781 (Lisp_Object key, Lisp_Object accept_default)
1782 {
1783 Lisp_Object *modes, *maps;
1784 int nmaps;
1785 Lisp_Object binding;
1786 int i, j;
1787 struct gcpro gcpro1, gcpro2;
1788
1789 nmaps = current_minor_maps (&modes, &maps);
1790 /* Note that all these maps are GCPRO'd
1791 in the places where we found them. */
1792
1793 binding = Qnil;
1794 GCPRO2 (key, binding);
1795
1796 for (i = j = 0; i < nmaps; i++)
1797 if (!NILP (maps[i])
1798 && !NILP (binding = Flookup_key (maps[i], key, accept_default))
1799 && !INTEGERP (binding))
1800 {
1801 if (KEYMAPP (binding))
1802 maps[j++] = Fcons (modes[i], binding);
1803 else if (j == 0)
1804 RETURN_UNGCPRO (Fcons (Fcons (modes[i], binding), Qnil));
1805 }
1806
1807 UNGCPRO;
1808 return Flist (j, maps);
1809 }
1810
1811 DEFUN ("define-prefix-command", Fdefine_prefix_command, Sdefine_prefix_command, 1, 3, 0,
1812 doc: /* Define COMMAND as a prefix command. COMMAND should be a symbol.
1813 A new sparse keymap is stored as COMMAND's function definition and its value.
1814 If a second optional argument MAPVAR is given, the map is stored as
1815 its value instead of as COMMAND's value; but COMMAND is still defined
1816 as a function.
1817 The third optional argument NAME, if given, supplies a menu name
1818 string for the map. This is required to use the keymap as a menu.
1819 This function returns COMMAND. */)
1820 (Lisp_Object command, Lisp_Object mapvar, Lisp_Object name)
1821 {
1822 Lisp_Object map;
1823 map = Fmake_sparse_keymap (name);
1824 Ffset (command, map);
1825 if (!NILP (mapvar))
1826 Fset (mapvar, map);
1827 else
1828 Fset (command, map);
1829 return command;
1830 }
1831
1832 DEFUN ("use-global-map", Fuse_global_map, Suse_global_map, 1, 1, 0,
1833 doc: /* Select KEYMAP as the global keymap. */)
1834 (Lisp_Object keymap)
1835 {
1836 keymap = get_keymap (keymap, 1, 1);
1837 current_global_map = keymap;
1838
1839 return Qnil;
1840 }
1841
1842 DEFUN ("use-local-map", Fuse_local_map, Suse_local_map, 1, 1, 0,
1843 doc: /* Select KEYMAP as the local keymap.
1844 If KEYMAP is nil, that means no local keymap. */)
1845 (Lisp_Object keymap)
1846 {
1847 if (!NILP (keymap))
1848 keymap = get_keymap (keymap, 1, 1);
1849
1850 BVAR (current_buffer, keymap) = keymap;
1851
1852 return Qnil;
1853 }
1854
1855 DEFUN ("current-local-map", Fcurrent_local_map, Scurrent_local_map, 0, 0, 0,
1856 doc: /* Return current buffer's local keymap, or nil if it has none.
1857 Normally the local keymap is set by the major mode with `use-local-map'. */)
1858 (void)
1859 {
1860 return BVAR (current_buffer, keymap);
1861 }
1862
1863 DEFUN ("current-global-map", Fcurrent_global_map, Scurrent_global_map, 0, 0, 0,
1864 doc: /* Return the current global keymap. */)
1865 (void)
1866 {
1867 return current_global_map;
1868 }
1869
1870 DEFUN ("current-minor-mode-maps", Fcurrent_minor_mode_maps, Scurrent_minor_mode_maps, 0, 0, 0,
1871 doc: /* Return a list of keymaps for the minor modes of the current buffer. */)
1872 (void)
1873 {
1874 Lisp_Object *maps;
1875 int nmaps = current_minor_maps (0, &maps);
1876
1877 return Flist (nmaps, maps);
1878 }
1879 \f
1880 /* Help functions for describing and documenting keymaps. */
1881
1882 struct accessible_keymaps_data {
1883 Lisp_Object maps, tail, thisseq;
1884 /* Does the current sequence end in the meta-prefix-char? */
1885 int is_metized;
1886 };
1887
1888 static void
1889 accessible_keymaps_1 (Lisp_Object key, Lisp_Object cmd, Lisp_Object args, void *data)
1890 /* Use void* data to be compatible with map_keymap_function_t. */
1891 {
1892 struct accessible_keymaps_data *d = data; /* Cast! */
1893 Lisp_Object maps = d->maps;
1894 Lisp_Object tail = d->tail;
1895 Lisp_Object thisseq = d->thisseq;
1896 int is_metized = d->is_metized && INTEGERP (key);
1897 Lisp_Object tem;
1898
1899 cmd = get_keymap (get_keyelt (cmd, 0), 0, 0);
1900 if (NILP (cmd))
1901 return;
1902
1903 /* Look for and break cycles. */
1904 while (!NILP (tem = Frassq (cmd, maps)))
1905 {
1906 Lisp_Object prefix = XCAR (tem);
1907 int lim = XINT (Flength (XCAR (tem)));
1908 if (lim <= XINT (Flength (thisseq)))
1909 { /* This keymap was already seen with a smaller prefix. */
1910 int i = 0;
1911 while (i < lim && EQ (Faref (prefix, make_number (i)),
1912 Faref (thisseq, make_number (i))))
1913 i++;
1914 if (i >= lim)
1915 /* `prefix' is a prefix of `thisseq' => there's a cycle. */
1916 return;
1917 }
1918 /* This occurrence of `cmd' in `maps' does not correspond to a cycle,
1919 but maybe `cmd' occurs again further down in `maps', so keep
1920 looking. */
1921 maps = XCDR (Fmemq (tem, maps));
1922 }
1923
1924 /* If the last key in thisseq is meta-prefix-char,
1925 turn it into a meta-ized keystroke. We know
1926 that the event we're about to append is an
1927 ascii keystroke since we're processing a
1928 keymap table. */
1929 if (is_metized)
1930 {
1931 int meta_bit = meta_modifier;
1932 Lisp_Object last = make_number (XINT (Flength (thisseq)) - 1);
1933 tem = Fcopy_sequence (thisseq);
1934
1935 Faset (tem, last, make_number (XINT (key) | meta_bit));
1936
1937 /* This new sequence is the same length as
1938 thisseq, so stick it in the list right
1939 after this one. */
1940 XSETCDR (tail,
1941 Fcons (Fcons (tem, cmd), XCDR (tail)));
1942 }
1943 else
1944 {
1945 tem = append_key (thisseq, key);
1946 nconc2 (tail, Fcons (Fcons (tem, cmd), Qnil));
1947 }
1948 }
1949
1950 /* This function cannot GC. */
1951
1952 DEFUN ("accessible-keymaps", Faccessible_keymaps, Saccessible_keymaps,
1953 1, 2, 0,
1954 doc: /* Find all keymaps accessible via prefix characters from KEYMAP.
1955 Returns a list of elements of the form (KEYS . MAP), where the sequence
1956 KEYS starting from KEYMAP gets you to MAP. These elements are ordered
1957 so that the KEYS increase in length. The first element is ([] . KEYMAP).
1958 An optional argument PREFIX, if non-nil, should be a key sequence;
1959 then the value includes only maps for prefixes that start with PREFIX. */)
1960 (Lisp_Object keymap, Lisp_Object prefix)
1961 {
1962 Lisp_Object maps, tail;
1963 int prefixlen = XINT (Flength (prefix));
1964
1965 /* no need for gcpro because we don't autoload any keymaps. */
1966
1967 if (!NILP (prefix))
1968 {
1969 /* If a prefix was specified, start with the keymap (if any) for
1970 that prefix, so we don't waste time considering other prefixes. */
1971 Lisp_Object tem;
1972 tem = Flookup_key (keymap, prefix, Qt);
1973 /* Flookup_key may give us nil, or a number,
1974 if the prefix is not defined in this particular map.
1975 It might even give us a list that isn't a keymap. */
1976 tem = get_keymap (tem, 0, 0);
1977 /* If the keymap is autoloaded `tem' is not a cons-cell, but we still
1978 want to return it. */
1979 if (!NILP (tem))
1980 {
1981 /* Convert PREFIX to a vector now, so that later on
1982 we don't have to deal with the possibility of a string. */
1983 if (STRINGP (prefix))
1984 {
1985 int i, i_byte, c;
1986 Lisp_Object copy;
1987
1988 copy = Fmake_vector (make_number (SCHARS (prefix)), Qnil);
1989 for (i = 0, i_byte = 0; i < SCHARS (prefix);)
1990 {
1991 int i_before = i;
1992
1993 FETCH_STRING_CHAR_ADVANCE (c, prefix, i, i_byte);
1994 if (SINGLE_BYTE_CHAR_P (c) && (c & 0200))
1995 c ^= 0200 | meta_modifier;
1996 ASET (copy, i_before, make_number (c));
1997 }
1998 prefix = copy;
1999 }
2000 maps = Fcons (Fcons (prefix, tem), Qnil);
2001 }
2002 else
2003 return Qnil;
2004 }
2005 else
2006 maps = Fcons (Fcons (Fmake_vector (make_number (0), Qnil),
2007 get_keymap (keymap, 1, 0)),
2008 Qnil);
2009
2010 /* For each map in the list maps,
2011 look at any other maps it points to,
2012 and stick them at the end if they are not already in the list.
2013
2014 This is a breadth-first traversal, where tail is the queue of
2015 nodes, and maps accumulates a list of all nodes visited. */
2016
2017 for (tail = maps; CONSP (tail); tail = XCDR (tail))
2018 {
2019 struct accessible_keymaps_data data;
2020 register Lisp_Object thismap = Fcdr (XCAR (tail));
2021 Lisp_Object last;
2022
2023 data.thisseq = Fcar (XCAR (tail));
2024 data.maps = maps;
2025 data.tail = tail;
2026 last = make_number (XINT (Flength (data.thisseq)) - 1);
2027 /* Does the current sequence end in the meta-prefix-char? */
2028 data.is_metized = (XINT (last) >= 0
2029 /* Don't metize the last char of PREFIX. */
2030 && XINT (last) >= prefixlen
2031 && EQ (Faref (data.thisseq, last), meta_prefix_char));
2032
2033 /* Since we can't run lisp code, we can't scan autoloaded maps. */
2034 if (CONSP (thismap))
2035 map_keymap (thismap, accessible_keymaps_1, Qnil, &data, 0);
2036 }
2037 return maps;
2038 }
2039 static Lisp_Object Qsingle_key_description, Qkey_description;
2040
2041 /* This function cannot GC. */
2042
2043 DEFUN ("key-description", Fkey_description, Skey_description, 1, 2, 0,
2044 doc: /* Return a pretty description of key-sequence KEYS.
2045 Optional arg PREFIX is the sequence of keys leading up to KEYS.
2046 Control characters turn into "C-foo" sequences, meta into "M-foo",
2047 spaces are put between sequence elements, etc. */)
2048 (Lisp_Object keys, Lisp_Object prefix)
2049 {
2050 int len = 0;
2051 int i, i_byte;
2052 Lisp_Object *args;
2053 int size = XINT (Flength (keys));
2054 Lisp_Object list;
2055 Lisp_Object sep = build_string (" ");
2056 Lisp_Object key;
2057 int add_meta = 0;
2058
2059 if (!NILP (prefix))
2060 size += XINT (Flength (prefix));
2061
2062 /* This has one extra element at the end that we don't pass to Fconcat. */
2063 args = (Lisp_Object *) alloca (size * 4 * sizeof (Lisp_Object));
2064
2065 /* In effect, this computes
2066 (mapconcat 'single-key-description keys " ")
2067 but we shouldn't use mapconcat because it can do GC. */
2068
2069 next_list:
2070 if (!NILP (prefix))
2071 list = prefix, prefix = Qnil;
2072 else if (!NILP (keys))
2073 list = keys, keys = Qnil;
2074 else
2075 {
2076 if (add_meta)
2077 {
2078 args[len] = Fsingle_key_description (meta_prefix_char, Qnil);
2079 len += 2;
2080 }
2081 else if (len == 0)
2082 return empty_unibyte_string;
2083 return Fconcat (len - 1, args);
2084 }
2085
2086 if (STRINGP (list))
2087 size = SCHARS (list);
2088 else if (VECTORP (list))
2089 size = ASIZE (list);
2090 else if (CONSP (list))
2091 size = XINT (Flength (list));
2092 else
2093 wrong_type_argument (Qarrayp, list);
2094
2095 i = i_byte = 0;
2096
2097 while (i < size)
2098 {
2099 if (STRINGP (list))
2100 {
2101 int c;
2102 FETCH_STRING_CHAR_ADVANCE (c, list, i, i_byte);
2103 if (SINGLE_BYTE_CHAR_P (c) && (c & 0200))
2104 c ^= 0200 | meta_modifier;
2105 XSETFASTINT (key, c);
2106 }
2107 else if (VECTORP (list))
2108 {
2109 key = AREF (list, i); i++;
2110 }
2111 else
2112 {
2113 key = XCAR (list);
2114 list = XCDR (list);
2115 i++;
2116 }
2117
2118 if (add_meta)
2119 {
2120 if (!INTEGERP (key)
2121 || EQ (key, meta_prefix_char)
2122 || (XINT (key) & meta_modifier))
2123 {
2124 args[len++] = Fsingle_key_description (meta_prefix_char, Qnil);
2125 args[len++] = sep;
2126 if (EQ (key, meta_prefix_char))
2127 continue;
2128 }
2129 else
2130 XSETINT (key, (XINT (key) | meta_modifier) & ~0x80);
2131 add_meta = 0;
2132 }
2133 else if (EQ (key, meta_prefix_char))
2134 {
2135 add_meta = 1;
2136 continue;
2137 }
2138 args[len++] = Fsingle_key_description (key, Qnil);
2139 args[len++] = sep;
2140 }
2141 goto next_list;
2142 }
2143
2144
2145 char *
2146 push_key_description (EMACS_INT ch, char *p, int force_multibyte)
2147 {
2148 int c, c2;
2149
2150 /* Clear all the meaningless bits above the meta bit. */
2151 c = ch & (meta_modifier | ~ - meta_modifier);
2152 c2 = c & ~(alt_modifier | ctrl_modifier | hyper_modifier
2153 | meta_modifier | shift_modifier | super_modifier);
2154
2155 if (! CHARACTERP (make_number (c2)))
2156 {
2157 /* KEY_DESCRIPTION_SIZE is large enough for this. */
2158 p += sprintf (p, "[%d]", c);
2159 return p;
2160 }
2161
2162 if (c & alt_modifier)
2163 {
2164 *p++ = 'A';
2165 *p++ = '-';
2166 c -= alt_modifier;
2167 }
2168 if ((c & ctrl_modifier) != 0
2169 || (c2 < ' ' && c2 != 27 && c2 != '\t' && c2 != Ctl ('M')))
2170 {
2171 *p++ = 'C';
2172 *p++ = '-';
2173 c &= ~ctrl_modifier;
2174 }
2175 if (c & hyper_modifier)
2176 {
2177 *p++ = 'H';
2178 *p++ = '-';
2179 c -= hyper_modifier;
2180 }
2181 if (c & meta_modifier)
2182 {
2183 *p++ = 'M';
2184 *p++ = '-';
2185 c -= meta_modifier;
2186 }
2187 if (c & shift_modifier)
2188 {
2189 *p++ = 'S';
2190 *p++ = '-';
2191 c -= shift_modifier;
2192 }
2193 if (c & super_modifier)
2194 {
2195 *p++ = 's';
2196 *p++ = '-';
2197 c -= super_modifier;
2198 }
2199 if (c < 040)
2200 {
2201 if (c == 033)
2202 {
2203 *p++ = 'E';
2204 *p++ = 'S';
2205 *p++ = 'C';
2206 }
2207 else if (c == '\t')
2208 {
2209 *p++ = 'T';
2210 *p++ = 'A';
2211 *p++ = 'B';
2212 }
2213 else if (c == Ctl ('M'))
2214 {
2215 *p++ = 'R';
2216 *p++ = 'E';
2217 *p++ = 'T';
2218 }
2219 else
2220 {
2221 /* `C-' already added above. */
2222 if (c > 0 && c <= Ctl ('Z'))
2223 *p++ = c + 0140;
2224 else
2225 *p++ = c + 0100;
2226 }
2227 }
2228 else if (c == 0177)
2229 {
2230 *p++ = 'D';
2231 *p++ = 'E';
2232 *p++ = 'L';
2233 }
2234 else if (c == ' ')
2235 {
2236 *p++ = 'S';
2237 *p++ = 'P';
2238 *p++ = 'C';
2239 }
2240 else if (c < 128
2241 || (NILP (BVAR (current_buffer, enable_multibyte_characters))
2242 && SINGLE_BYTE_CHAR_P (c)
2243 && !force_multibyte))
2244 {
2245 *p++ = c;
2246 }
2247 else
2248 {
2249 /* Now we are sure that C is a valid character code. */
2250 if (NILP (BVAR (current_buffer, enable_multibyte_characters))
2251 && ! force_multibyte)
2252 *p++ = multibyte_char_to_unibyte (c);
2253 else
2254 p += CHAR_STRING (c, (unsigned char *) p);
2255 }
2256
2257 return p;
2258 }
2259
2260 /* This function cannot GC. */
2261
2262 DEFUN ("single-key-description", Fsingle_key_description,
2263 Ssingle_key_description, 1, 2, 0,
2264 doc: /* Return a pretty description of command character KEY.
2265 Control characters turn into C-whatever, etc.
2266 Optional argument NO-ANGLES non-nil means don't put angle brackets
2267 around function keys and event symbols. */)
2268 (Lisp_Object key, Lisp_Object no_angles)
2269 {
2270 if (CONSP (key) && lucid_event_type_list_p (key))
2271 key = Fevent_convert_list (key);
2272
2273 key = EVENT_HEAD (key);
2274
2275 if (INTEGERP (key)) /* Normal character */
2276 {
2277 char tem[KEY_DESCRIPTION_SIZE], *p;
2278
2279 p = push_key_description (XINT (key), tem, 1);
2280 *p = 0;
2281 return make_specified_string (tem, -1, p - tem, 1);
2282 }
2283 else if (SYMBOLP (key)) /* Function key or event-symbol */
2284 {
2285 if (NILP (no_angles))
2286 {
2287 char *buffer;
2288 Lisp_Object result;
2289 USE_SAFE_ALLOCA;
2290 SAFE_ALLOCA (buffer, char *,
2291 sizeof "<>" + SBYTES (SYMBOL_NAME (key)));
2292 esprintf (buffer, "<%s>", SDATA (SYMBOL_NAME (key)));
2293 result = build_string (buffer);
2294 SAFE_FREE ();
2295 return result;
2296 }
2297 else
2298 return Fsymbol_name (key);
2299 }
2300 else if (STRINGP (key)) /* Buffer names in the menubar. */
2301 return Fcopy_sequence (key);
2302 else
2303 error ("KEY must be an integer, cons, symbol, or string");
2304 return Qnil;
2305 }
2306
2307 static char *
2308 push_text_char_description (register unsigned int c, register char *p)
2309 {
2310 if (c >= 0200)
2311 {
2312 *p++ = 'M';
2313 *p++ = '-';
2314 c -= 0200;
2315 }
2316 if (c < 040)
2317 {
2318 *p++ = '^';
2319 *p++ = c + 64; /* 'A' - 1 */
2320 }
2321 else if (c == 0177)
2322 {
2323 *p++ = '^';
2324 *p++ = '?';
2325 }
2326 else
2327 *p++ = c;
2328 return p;
2329 }
2330
2331 /* This function cannot GC. */
2332
2333 DEFUN ("text-char-description", Ftext_char_description, Stext_char_description, 1, 1, 0,
2334 doc: /* Return a pretty description of file-character CHARACTER.
2335 Control characters turn into "^char", etc. This differs from
2336 `single-key-description' which turns them into "C-char".
2337 Also, this function recognizes the 2**7 bit as the Meta character,
2338 whereas `single-key-description' uses the 2**27 bit for Meta.
2339 See Info node `(elisp)Describing Characters' for examples. */)
2340 (Lisp_Object character)
2341 {
2342 /* Currently MAX_MULTIBYTE_LENGTH is 4 (< 6). */
2343 char str[6];
2344 int c;
2345
2346 CHECK_NUMBER (character);
2347
2348 c = XINT (character);
2349 if (!ASCII_CHAR_P (c))
2350 {
2351 int len = CHAR_STRING (c, (unsigned char *) str);
2352
2353 return make_multibyte_string (str, 1, len);
2354 }
2355
2356 *push_text_char_description (c & 0377, str) = 0;
2357
2358 return build_string (str);
2359 }
2360
2361 static int where_is_preferred_modifier;
2362
2363 /* Return 0 if SEQ uses non-preferred modifiers or non-char events.
2364 Else, return 2 if SEQ uses the where_is_preferred_modifier,
2365 and 1 otherwise. */
2366 static int
2367 preferred_sequence_p (Lisp_Object seq)
2368 {
2369 int i;
2370 int len = XINT (Flength (seq));
2371 int result = 1;
2372
2373 for (i = 0; i < len; i++)
2374 {
2375 Lisp_Object ii, elt;
2376
2377 XSETFASTINT (ii, i);
2378 elt = Faref (seq, ii);
2379
2380 if (!INTEGERP (elt))
2381 return 0;
2382 else
2383 {
2384 int modifiers = XINT (elt) & (CHAR_MODIFIER_MASK & ~CHAR_META);
2385 if (modifiers == where_is_preferred_modifier)
2386 result = 2;
2387 else if (modifiers)
2388 return 0;
2389 }
2390 }
2391
2392 return result;
2393 }
2394
2395 \f
2396 /* where-is - finding a command in a set of keymaps. */
2397
2398 static void where_is_internal_1 (Lisp_Object key, Lisp_Object binding,
2399 Lisp_Object args, void *data);
2400
2401 /* Like Flookup_key, but uses a list of keymaps SHADOW instead of a single map.
2402 Returns the first non-nil binding found in any of those maps.
2403 If REMAP is true, pass the result of the lookup through command
2404 remapping before returning it. */
2405
2406 static Lisp_Object
2407 shadow_lookup (Lisp_Object shadow, Lisp_Object key, Lisp_Object flag,
2408 int remap)
2409 {
2410 Lisp_Object tail, value;
2411
2412 for (tail = shadow; CONSP (tail); tail = XCDR (tail))
2413 {
2414 value = Flookup_key (XCAR (tail), key, flag);
2415 if (NATNUMP (value))
2416 {
2417 value = Flookup_key (XCAR (tail),
2418 Fsubstring (key, make_number (0), value), flag);
2419 if (!NILP (value))
2420 return Qnil;
2421 }
2422 else if (!NILP (value))
2423 {
2424 Lisp_Object remapping;
2425 if (remap && SYMBOLP (value)
2426 && (remapping = Fcommand_remapping (value, Qnil, shadow),
2427 !NILP (remapping)))
2428 return remapping;
2429 else
2430 return value;
2431 }
2432 }
2433 return Qnil;
2434 }
2435
2436 static Lisp_Object Vmouse_events;
2437
2438 struct where_is_internal_data {
2439 Lisp_Object definition, this, last;
2440 int last_is_meta, noindirect;
2441 Lisp_Object sequences;
2442 };
2443
2444 /* This function can't GC, AFAIK. */
2445 /* Return the list of bindings found. This list is ordered "longest
2446 to shortest". It may include bindings that are actually shadowed
2447 by others, as well as duplicate bindings and remapping bindings.
2448 The list returned is potentially shared with where_is_cache, so
2449 be careful not to modify it via side-effects. */
2450
2451 static Lisp_Object
2452 where_is_internal (Lisp_Object definition, Lisp_Object keymaps,
2453 int noindirect, int nomenus)
2454 {
2455 Lisp_Object maps = Qnil;
2456 Lisp_Object found;
2457 struct where_is_internal_data data;
2458
2459 /* Only important use of caching is for the menubar
2460 (i.e. where-is-internal called with (def nil t nil nil)). */
2461 if (nomenus && !noindirect)
2462 {
2463 /* Check heuristic-consistency of the cache. */
2464 if (NILP (Fequal (keymaps, where_is_cache_keymaps)))
2465 where_is_cache = Qnil;
2466
2467 if (NILP (where_is_cache))
2468 {
2469 /* We need to create the cache. */
2470 Lisp_Object args[2];
2471 where_is_cache = Fmake_hash_table (0, args);
2472 where_is_cache_keymaps = Qt;
2473 }
2474 else
2475 /* We can reuse the cache. */
2476 return Fgethash (definition, where_is_cache, Qnil);
2477 }
2478 else
2479 /* Kill the cache so that where_is_internal_1 doesn't think
2480 we're filling it up. */
2481 where_is_cache = Qnil;
2482
2483 found = keymaps;
2484 while (CONSP (found))
2485 {
2486 maps =
2487 nconc2 (maps,
2488 Faccessible_keymaps (get_keymap (XCAR (found), 1, 0), Qnil));
2489 found = XCDR (found);
2490 }
2491
2492 data.sequences = Qnil;
2493 for (; CONSP (maps); maps = XCDR (maps))
2494 {
2495 /* Key sequence to reach map, and the map that it reaches */
2496 register Lisp_Object this, map, tem;
2497
2498 /* In order to fold [META-PREFIX-CHAR CHAR] sequences into
2499 [M-CHAR] sequences, check if last character of the sequence
2500 is the meta-prefix char. */
2501 Lisp_Object last;
2502 int last_is_meta;
2503
2504 this = Fcar (XCAR (maps));
2505 map = Fcdr (XCAR (maps));
2506 last = make_number (XINT (Flength (this)) - 1);
2507 last_is_meta = (XINT (last) >= 0
2508 && EQ (Faref (this, last), meta_prefix_char));
2509
2510 /* if (nomenus && !preferred_sequence_p (this)) */
2511 if (nomenus && XINT (last) >= 0
2512 && SYMBOLP (tem = Faref (this, make_number (0)))
2513 && !NILP (Fmemq (XCAR (parse_modifiers (tem)), Vmouse_events)))
2514 /* If no menu entries should be returned, skip over the
2515 keymaps bound to `menu-bar' and `tool-bar' and other
2516 non-ascii prefixes like `C-down-mouse-2'. */
2517 continue;
2518
2519 QUIT;
2520
2521 data.definition = definition;
2522 data.noindirect = noindirect;
2523 data.this = this;
2524 data.last = last;
2525 data.last_is_meta = last_is_meta;
2526
2527 if (CONSP (map))
2528 map_keymap (map, where_is_internal_1, Qnil, &data, 0);
2529 }
2530
2531 if (nomenus && !noindirect)
2532 { /* Remember for which keymaps this cache was built.
2533 We do it here (late) because we want to keep where_is_cache_keymaps
2534 set to t while the cache isn't fully filled. */
2535 where_is_cache_keymaps = keymaps;
2536 /* During cache-filling, data.sequences is not filled by
2537 where_is_internal_1. */
2538 return Fgethash (definition, where_is_cache, Qnil);
2539 }
2540 else
2541 return data.sequences;
2542 }
2543
2544 /* This function can GC if Flookup_key autoloads any keymaps. */
2545
2546 DEFUN ("where-is-internal", Fwhere_is_internal, Swhere_is_internal, 1, 5, 0,
2547 doc: /* Return list of keys that invoke DEFINITION.
2548 If KEYMAP is a keymap, search only KEYMAP and the global keymap.
2549 If KEYMAP is nil, search all the currently active keymaps.
2550 If KEYMAP is a list of keymaps, search only those keymaps.
2551
2552 If optional 3rd arg FIRSTONLY is non-nil, return the first key sequence found,
2553 rather than a list of all possible key sequences.
2554 If FIRSTONLY is the symbol `non-ascii', return the first binding found,
2555 no matter what it is.
2556 If FIRSTONLY has another non-nil value, prefer bindings
2557 that use the modifier key specified in `where-is-preferred-modifier'
2558 \(or their meta variants) and entirely reject menu bindings.
2559
2560 If optional 4th arg NOINDIRECT is non-nil, don't follow indirections
2561 to other keymaps or slots. This makes it possible to search for an
2562 indirect definition itself.
2563
2564 If optional 5th arg NO-REMAP is non-nil, don't search for key sequences
2565 that invoke a command which is remapped to DEFINITION, but include the
2566 remapped command in the returned list. */)
2567 (Lisp_Object definition, Lisp_Object keymap, Lisp_Object firstonly, Lisp_Object noindirect, Lisp_Object no_remap)
2568 {
2569 /* The keymaps in which to search. */
2570 Lisp_Object keymaps;
2571 /* Potentially relevant bindings in "shortest to longest" order. */
2572 Lisp_Object sequences = Qnil;
2573 /* Actually relevant bindings. */
2574 Lisp_Object found = Qnil;
2575 /* 1 means ignore all menu bindings entirely. */
2576 int nomenus = !NILP (firstonly) && !EQ (firstonly, Qnon_ascii);
2577 struct gcpro gcpro1, gcpro2, gcpro3, gcpro4, gcpro5, gcpro6;
2578 /* List of sequences found via remapping. Keep them in a separate
2579 variable, so as to push them later, since we prefer
2580 non-remapped binding. */
2581 Lisp_Object remapped_sequences = Qnil;
2582 /* Whether or not we're handling remapped sequences. This is needed
2583 because remapping is not done recursively by Fcommand_remapping: you
2584 can't remap a remapped command. */
2585 int remapped = 0;
2586 Lisp_Object tem = Qnil;
2587
2588 /* Refresh the C version of the modifier preference. */
2589 where_is_preferred_modifier
2590 = parse_solitary_modifier (Vwhere_is_preferred_modifier);
2591
2592 /* Find the relevant keymaps. */
2593 if (CONSP (keymap) && KEYMAPP (XCAR (keymap)))
2594 keymaps = keymap;
2595 else if (!NILP (keymap))
2596 keymaps = Fcons (keymap, Fcons (current_global_map, Qnil));
2597 else
2598 keymaps = Fcurrent_active_maps (Qnil, Qnil);
2599
2600 GCPRO6 (definition, keymaps, found, sequences, remapped_sequences, tem);
2601
2602 tem = Fcommand_remapping (definition, Qnil, keymaps);
2603 /* If `definition' is remapped to tem', then OT1H no key will run
2604 that command (since they will run `tem' instead), so we should
2605 return nil; but OTOH all keys bound to `definition' (or to `tem')
2606 will run the same command.
2607 So for menu-shortcut purposes, we want to find all the keys bound (maybe
2608 via remapping) to `tem'. But for the purpose of finding the keys that
2609 run `definition', then we'd want to just return nil.
2610 We choose to make it work right for menu-shortcuts, since it's the most
2611 common use.
2612 Known bugs: if you remap switch-to-buffer to toto, C-h f switch-to-buffer
2613 will tell you that switch-to-buffer is bound to C-x b even though C-x b
2614 will run toto instead. And if `toto' is itself remapped to forward-char,
2615 then C-h f toto will tell you that it's bound to C-f even though C-f does
2616 not run toto and it won't tell you that C-x b does run toto. */
2617 if (NILP (no_remap) && !NILP (tem))
2618 definition = tem;
2619
2620 if (SYMBOLP (definition)
2621 && !NILP (firstonly)
2622 && !NILP (tem = Fget (definition, QCadvertised_binding)))
2623 {
2624 /* We have a list of advertised bindings. */
2625 while (CONSP (tem))
2626 if (EQ (shadow_lookup (keymaps, XCAR (tem), Qnil, 0), definition))
2627 return XCAR (tem);
2628 else
2629 tem = XCDR (tem);
2630 if (EQ (shadow_lookup (keymaps, tem, Qnil, 0), definition))
2631 return tem;
2632 }
2633
2634 sequences = Freverse (where_is_internal (definition, keymaps,
2635 !NILP (noindirect), nomenus));
2636
2637 while (CONSP (sequences)
2638 /* If we're at the end of the `sequences' list and we haven't
2639 considered remapped sequences yet, copy them over and
2640 process them. */
2641 || (!remapped && (sequences = remapped_sequences,
2642 remapped = 1,
2643 CONSP (sequences))))
2644 {
2645 Lisp_Object sequence, function;
2646
2647 sequence = XCAR (sequences);
2648 sequences = XCDR (sequences);
2649
2650 /* Verify that this key binding is not shadowed by another
2651 binding for the same key, before we say it exists.
2652
2653 Mechanism: look for local definition of this key and if
2654 it is defined and does not match what we found then
2655 ignore this key.
2656
2657 Either nil or number as value from Flookup_key
2658 means undefined. */
2659 if (NILP (Fequal (shadow_lookup (keymaps, sequence, Qnil, remapped),
2660 definition)))
2661 continue;
2662
2663 /* If the current sequence is a command remapping with
2664 format [remap COMMAND], find the key sequences
2665 which run COMMAND, and use those sequences instead. */
2666 if (NILP (no_remap) && !remapped
2667 && VECTORP (sequence) && ASIZE (sequence) == 2
2668 && EQ (AREF (sequence, 0), Qremap)
2669 && (function = AREF (sequence, 1), SYMBOLP (function)))
2670 {
2671 Lisp_Object seqs = where_is_internal (function, keymaps,
2672 !NILP (noindirect), nomenus);
2673 remapped_sequences = nconc2 (Freverse (seqs), remapped_sequences);
2674 continue;
2675 }
2676
2677 /* Don't annoy user with strings from a menu such as the
2678 entries from the "Edit => Paste from Kill Menu".
2679 Change them all to "(any string)", so that there
2680 seems to be only one menu item to report. */
2681 if (! NILP (sequence))
2682 {
2683 Lisp_Object tem1;
2684 tem1 = Faref (sequence, make_number (ASIZE (sequence) - 1));
2685 if (STRINGP (tem1))
2686 Faset (sequence, make_number (ASIZE (sequence) - 1),
2687 build_string ("(any string)"));
2688 }
2689
2690 /* It is a true unshadowed match. Record it, unless it's already
2691 been seen (as could happen when inheriting keymaps). */
2692 if (NILP (Fmember (sequence, found)))
2693 found = Fcons (sequence, found);
2694
2695 /* If firstonly is Qnon_ascii, then we can return the first
2696 binding we find. If firstonly is not Qnon_ascii but not
2697 nil, then we should return the first ascii-only binding
2698 we find. */
2699 if (EQ (firstonly, Qnon_ascii))
2700 RETURN_UNGCPRO (sequence);
2701 else if (!NILP (firstonly)
2702 && 2 == preferred_sequence_p (sequence))
2703 RETURN_UNGCPRO (sequence);
2704 }
2705
2706 UNGCPRO;
2707
2708 found = Fnreverse (found);
2709
2710 /* firstonly may have been t, but we may have gone all the way through
2711 the keymaps without finding an all-ASCII key sequence. So just
2712 return the best we could find. */
2713 if (NILP (firstonly))
2714 return found;
2715 else if (where_is_preferred_modifier == 0)
2716 return Fcar (found);
2717 else
2718 { /* Maybe we did not find a preferred_modifier binding, but we did find
2719 some ASCII binding. */
2720 Lisp_Object bindings = found;
2721 while (CONSP (bindings))
2722 if (preferred_sequence_p (XCAR (bindings)))
2723 return XCAR (bindings);
2724 else
2725 bindings = XCDR (bindings);
2726 return Fcar (found);
2727 }
2728 }
2729
2730 /* This function can GC because get_keyelt can. */
2731
2732 static void
2733 where_is_internal_1 (Lisp_Object key, Lisp_Object binding, Lisp_Object args, void *data)
2734 {
2735 struct where_is_internal_data *d = data; /* Cast! */
2736 Lisp_Object definition = d->definition;
2737 int noindirect = d->noindirect;
2738 Lisp_Object this = d->this;
2739 Lisp_Object last = d->last;
2740 int last_is_meta = d->last_is_meta;
2741 Lisp_Object sequence;
2742
2743 /* Search through indirections unless that's not wanted. */
2744 if (!noindirect)
2745 binding = get_keyelt (binding, 0);
2746
2747 /* End this iteration if this element does not match
2748 the target. */
2749
2750 if (!(!NILP (where_is_cache) /* everything "matches" during cache-fill. */
2751 || EQ (binding, definition)
2752 || (CONSP (definition) && !NILP (Fequal (binding, definition)))))
2753 /* Doesn't match. */
2754 return;
2755
2756 /* We have found a match. Construct the key sequence where we found it. */
2757 if (INTEGERP (key) && last_is_meta)
2758 {
2759 sequence = Fcopy_sequence (this);
2760 Faset (sequence, last, make_number (XINT (key) | meta_modifier));
2761 }
2762 else
2763 {
2764 if (CONSP (key))
2765 key = Fcons (XCAR (key), XCDR (key));
2766 sequence = append_key (this, key);
2767 }
2768
2769 if (!NILP (where_is_cache))
2770 {
2771 Lisp_Object sequences = Fgethash (binding, where_is_cache, Qnil);
2772 Fputhash (binding, Fcons (sequence, sequences), where_is_cache);
2773 }
2774 else
2775 d->sequences = Fcons (sequence, d->sequences);
2776 }
2777 \f
2778 /* describe-bindings - summarizing all the bindings in a set of keymaps. */
2779
2780 DEFUN ("describe-buffer-bindings", Fdescribe_buffer_bindings, Sdescribe_buffer_bindings, 1, 3, 0,
2781 doc: /* Insert the list of all defined keys and their definitions.
2782 The list is inserted in the current buffer, while the bindings are
2783 looked up in BUFFER.
2784 The optional argument PREFIX, if non-nil, should be a key sequence;
2785 then we display only bindings that start with that prefix.
2786 The optional argument MENUS, if non-nil, says to mention menu bindings.
2787 \(Ordinarily these are omitted from the output.) */)
2788 (Lisp_Object buffer, Lisp_Object prefix, Lisp_Object menus)
2789 {
2790 Lisp_Object outbuf, shadow;
2791 int nomenu = NILP (menus);
2792 register Lisp_Object start1;
2793 struct gcpro gcpro1;
2794
2795 const char *alternate_heading
2796 = "\
2797 Keyboard translations:\n\n\
2798 You type Translation\n\
2799 -------- -----------\n";
2800
2801 CHECK_BUFFER (buffer);
2802
2803 shadow = Qnil;
2804 GCPRO1 (shadow);
2805
2806 outbuf = Fcurrent_buffer ();
2807
2808 /* Report on alternates for keys. */
2809 if (STRINGP (KVAR (current_kboard, Vkeyboard_translate_table)) && !NILP (prefix))
2810 {
2811 int c;
2812 const unsigned char *translate = SDATA (KVAR (current_kboard, Vkeyboard_translate_table));
2813 int translate_len = SCHARS (KVAR (current_kboard, Vkeyboard_translate_table));
2814
2815 for (c = 0; c < translate_len; c++)
2816 if (translate[c] != c)
2817 {
2818 char buf[KEY_DESCRIPTION_SIZE];
2819 char *bufend;
2820
2821 if (alternate_heading)
2822 {
2823 insert_string (alternate_heading);
2824 alternate_heading = 0;
2825 }
2826
2827 bufend = push_key_description (translate[c], buf, 1);
2828 insert (buf, bufend - buf);
2829 Findent_to (make_number (16), make_number (1));
2830 bufend = push_key_description (c, buf, 1);
2831 insert (buf, bufend - buf);
2832
2833 insert ("\n", 1);
2834
2835 /* Insert calls signal_after_change which may GC. */
2836 translate = SDATA (KVAR (current_kboard, Vkeyboard_translate_table));
2837 }
2838
2839 insert ("\n", 1);
2840 }
2841
2842 if (!NILP (Vkey_translation_map))
2843 describe_map_tree (Vkey_translation_map, 0, Qnil, prefix,
2844 "Key translations", nomenu, 1, 0, 0);
2845
2846
2847 /* Print the (major mode) local map. */
2848 start1 = Qnil;
2849 if (!NILP (KVAR (current_kboard, Voverriding_terminal_local_map)))
2850 start1 = KVAR (current_kboard, Voverriding_terminal_local_map);
2851 else if (!NILP (Voverriding_local_map))
2852 start1 = Voverriding_local_map;
2853
2854 if (!NILP (start1))
2855 {
2856 describe_map_tree (start1, 1, shadow, prefix,
2857 "\f\nOverriding Bindings", nomenu, 0, 0, 0);
2858 shadow = Fcons (start1, shadow);
2859 }
2860 else
2861 {
2862 /* Print the minor mode and major mode keymaps. */
2863 int i, nmaps;
2864 Lisp_Object *modes, *maps;
2865
2866 /* Temporarily switch to `buffer', so that we can get that buffer's
2867 minor modes correctly. */
2868 Fset_buffer (buffer);
2869
2870 nmaps = current_minor_maps (&modes, &maps);
2871 Fset_buffer (outbuf);
2872
2873 start1 = get_local_map (BUF_PT (XBUFFER (buffer)),
2874 XBUFFER (buffer), Qkeymap);
2875 if (!NILP (start1))
2876 {
2877 describe_map_tree (start1, 1, shadow, prefix,
2878 "\f\n`keymap' Property Bindings", nomenu,
2879 0, 0, 0);
2880 shadow = Fcons (start1, shadow);
2881 }
2882
2883 /* Print the minor mode maps. */
2884 for (i = 0; i < nmaps; i++)
2885 {
2886 /* The title for a minor mode keymap
2887 is constructed at run time.
2888 We let describe_map_tree do the actual insertion
2889 because it takes care of other features when doing so. */
2890 char *title, *p;
2891
2892 if (!SYMBOLP (modes[i]))
2893 abort ();
2894
2895 p = title = (char *) alloca (42 + SCHARS (SYMBOL_NAME (modes[i])));
2896 *p++ = '\f';
2897 *p++ = '\n';
2898 *p++ = '`';
2899 memcpy (p, SDATA (SYMBOL_NAME (modes[i])),
2900 SCHARS (SYMBOL_NAME (modes[i])));
2901 p += SCHARS (SYMBOL_NAME (modes[i]));
2902 *p++ = '\'';
2903 memcpy (p, " Minor Mode Bindings", strlen (" Minor Mode Bindings"));
2904 p += strlen (" Minor Mode Bindings");
2905 *p = 0;
2906
2907 describe_map_tree (maps[i], 1, shadow, prefix,
2908 title, nomenu, 0, 0, 0);
2909 shadow = Fcons (maps[i], shadow);
2910 }
2911
2912 start1 = get_local_map (BUF_PT (XBUFFER (buffer)),
2913 XBUFFER (buffer), Qlocal_map);
2914 if (!NILP (start1))
2915 {
2916 if (EQ (start1, BVAR (XBUFFER (buffer), keymap)))
2917 describe_map_tree (start1, 1, shadow, prefix,
2918 "\f\nMajor Mode Bindings", nomenu, 0, 0, 0);
2919 else
2920 describe_map_tree (start1, 1, shadow, prefix,
2921 "\f\n`local-map' Property Bindings",
2922 nomenu, 0, 0, 0);
2923
2924 shadow = Fcons (start1, shadow);
2925 }
2926 }
2927
2928 describe_map_tree (current_global_map, 1, shadow, prefix,
2929 "\f\nGlobal Bindings", nomenu, 0, 1, 0);
2930
2931 /* Print the function-key-map translations under this prefix. */
2932 if (!NILP (KVAR (current_kboard, Vlocal_function_key_map)))
2933 describe_map_tree (KVAR (current_kboard, Vlocal_function_key_map), 0, Qnil, prefix,
2934 "\f\nFunction key map translations", nomenu, 1, 0, 0);
2935
2936 /* Print the input-decode-map translations under this prefix. */
2937 if (!NILP (KVAR (current_kboard, Vinput_decode_map)))
2938 describe_map_tree (KVAR (current_kboard, Vinput_decode_map), 0, Qnil, prefix,
2939 "\f\nInput decoding map translations", nomenu, 1, 0, 0);
2940
2941 UNGCPRO;
2942 return Qnil;
2943 }
2944
2945 /* Insert a description of the key bindings in STARTMAP,
2946 followed by those of all maps reachable through STARTMAP.
2947 If PARTIAL is nonzero, omit certain "uninteresting" commands
2948 (such as `undefined').
2949 If SHADOW is non-nil, it is a list of maps;
2950 don't mention keys which would be shadowed by any of them.
2951 PREFIX, if non-nil, says mention only keys that start with PREFIX.
2952 TITLE, if not 0, is a string to insert at the beginning.
2953 TITLE should not end with a colon or a newline; we supply that.
2954 If NOMENU is not 0, then omit menu-bar commands.
2955
2956 If TRANSL is nonzero, the definitions are actually key translations
2957 so print strings and vectors differently.
2958
2959 If ALWAYS_TITLE is nonzero, print the title even if there are no maps
2960 to look through.
2961
2962 If MENTION_SHADOW is nonzero, then when something is shadowed by SHADOW,
2963 don't omit it; instead, mention it but say it is shadowed.
2964
2965 Return whether something was inserted or not. */
2966
2967 int
2968 describe_map_tree (Lisp_Object startmap, int partial, Lisp_Object shadow,
2969 Lisp_Object prefix, const char *title, int nomenu, int transl,
2970 int always_title, int mention_shadow)
2971 {
2972 Lisp_Object maps, orig_maps, seen, sub_shadows;
2973 struct gcpro gcpro1, gcpro2, gcpro3;
2974 int something = 0;
2975 const char *key_heading
2976 = "\
2977 key binding\n\
2978 --- -------\n";
2979
2980 orig_maps = maps = Faccessible_keymaps (startmap, prefix);
2981 seen = Qnil;
2982 sub_shadows = Qnil;
2983 GCPRO3 (maps, seen, sub_shadows);
2984
2985 if (nomenu)
2986 {
2987 Lisp_Object list;
2988
2989 /* Delete from MAPS each element that is for the menu bar. */
2990 for (list = maps; CONSP (list); list = XCDR (list))
2991 {
2992 Lisp_Object elt, elt_prefix, tem;
2993
2994 elt = XCAR (list);
2995 elt_prefix = Fcar (elt);
2996 if (ASIZE (elt_prefix) >= 1)
2997 {
2998 tem = Faref (elt_prefix, make_number (0));
2999 if (EQ (tem, Qmenu_bar))
3000 maps = Fdelq (elt, maps);
3001 }
3002 }
3003 }
3004
3005 if (!NILP (maps) || always_title)
3006 {
3007 if (title)
3008 {
3009 insert_string (title);
3010 if (!NILP (prefix))
3011 {
3012 insert_string (" Starting With ");
3013 insert1 (Fkey_description (prefix, Qnil));
3014 }
3015 insert_string (":\n");
3016 }
3017 insert_string (key_heading);
3018 something = 1;
3019 }
3020
3021 for (; CONSP (maps); maps = XCDR (maps))
3022 {
3023 register Lisp_Object elt, elt_prefix, tail;
3024
3025 elt = XCAR (maps);
3026 elt_prefix = Fcar (elt);
3027
3028 sub_shadows = Qnil;
3029
3030 for (tail = shadow; CONSP (tail); tail = XCDR (tail))
3031 {
3032 Lisp_Object shmap;
3033
3034 shmap = XCAR (tail);
3035
3036 /* If the sequence by which we reach this keymap is zero-length,
3037 then the shadow map for this keymap is just SHADOW. */
3038 if ((STRINGP (elt_prefix) && SCHARS (elt_prefix) == 0)
3039 || (VECTORP (elt_prefix) && ASIZE (elt_prefix) == 0))
3040 ;
3041 /* If the sequence by which we reach this keymap actually has
3042 some elements, then the sequence's definition in SHADOW is
3043 what we should use. */
3044 else
3045 {
3046 shmap = Flookup_key (shmap, Fcar (elt), Qt);
3047 if (INTEGERP (shmap))
3048 shmap = Qnil;
3049 }
3050
3051 /* If shmap is not nil and not a keymap,
3052 it completely shadows this map, so don't
3053 describe this map at all. */
3054 if (!NILP (shmap) && !KEYMAPP (shmap))
3055 goto skip;
3056
3057 if (!NILP (shmap))
3058 sub_shadows = Fcons (shmap, sub_shadows);
3059 }
3060
3061 /* Maps we have already listed in this loop shadow this map. */
3062 for (tail = orig_maps; !EQ (tail, maps); tail = XCDR (tail))
3063 {
3064 Lisp_Object tem;
3065 tem = Fequal (Fcar (XCAR (tail)), elt_prefix);
3066 if (!NILP (tem))
3067 sub_shadows = Fcons (XCDR (XCAR (tail)), sub_shadows);
3068 }
3069
3070 describe_map (Fcdr (elt), elt_prefix,
3071 transl ? describe_translation : describe_command,
3072 partial, sub_shadows, &seen, nomenu, mention_shadow);
3073
3074 skip: ;
3075 }
3076
3077 UNGCPRO;
3078 return something;
3079 }
3080
3081 static int previous_description_column;
3082
3083 static void
3084 describe_command (Lisp_Object definition, Lisp_Object args)
3085 {
3086 register Lisp_Object tem1;
3087 EMACS_INT column = current_column ();
3088 int description_column;
3089
3090 /* If column 16 is no good, go to col 32;
3091 but don't push beyond that--go to next line instead. */
3092 if (column > 30)
3093 {
3094 insert_char ('\n');
3095 description_column = 32;
3096 }
3097 else if (column > 14 || (column > 10 && previous_description_column == 32))
3098 description_column = 32;
3099 else
3100 description_column = 16;
3101
3102 Findent_to (make_number (description_column), make_number (1));
3103 previous_description_column = description_column;
3104
3105 if (SYMBOLP (definition))
3106 {
3107 tem1 = SYMBOL_NAME (definition);
3108 insert1 (tem1);
3109 insert_string ("\n");
3110 }
3111 else if (STRINGP (definition) || VECTORP (definition))
3112 insert_string ("Keyboard Macro\n");
3113 else if (KEYMAPP (definition))
3114 insert_string ("Prefix Command\n");
3115 else
3116 insert_string ("??\n");
3117 }
3118
3119 static void
3120 describe_translation (Lisp_Object definition, Lisp_Object args)
3121 {
3122 register Lisp_Object tem1;
3123
3124 Findent_to (make_number (16), make_number (1));
3125
3126 if (SYMBOLP (definition))
3127 {
3128 tem1 = SYMBOL_NAME (definition);
3129 insert1 (tem1);
3130 insert_string ("\n");
3131 }
3132 else if (STRINGP (definition) || VECTORP (definition))
3133 {
3134 insert1 (Fkey_description (definition, Qnil));
3135 insert_string ("\n");
3136 }
3137 else if (KEYMAPP (definition))
3138 insert_string ("Prefix Command\n");
3139 else
3140 insert_string ("??\n");
3141 }
3142
3143 /* describe_map puts all the usable elements of a sparse keymap
3144 into an array of `struct describe_map_elt',
3145 then sorts them by the events. */
3146
3147 struct describe_map_elt { Lisp_Object event; Lisp_Object definition; int shadowed; };
3148
3149 /* qsort comparison function for sorting `struct describe_map_elt' by
3150 the event field. */
3151
3152 static int
3153 describe_map_compare (const void *aa, const void *bb)
3154 {
3155 const struct describe_map_elt *a = aa, *b = bb;
3156 if (INTEGERP (a->event) && INTEGERP (b->event))
3157 return ((XINT (a->event) > XINT (b->event))
3158 - (XINT (a->event) < XINT (b->event)));
3159 if (!INTEGERP (a->event) && INTEGERP (b->event))
3160 return 1;
3161 if (INTEGERP (a->event) && !INTEGERP (b->event))
3162 return -1;
3163 if (SYMBOLP (a->event) && SYMBOLP (b->event))
3164 return (!NILP (Fstring_lessp (a->event, b->event)) ? -1
3165 : !NILP (Fstring_lessp (b->event, a->event)) ? 1
3166 : 0);
3167 return 0;
3168 }
3169
3170 /* Describe the contents of map MAP, assuming that this map itself is
3171 reached by the sequence of prefix keys PREFIX (a string or vector).
3172 PARTIAL, SHADOW, NOMENU are as in `describe_map_tree' above. */
3173
3174 static void
3175 describe_map (Lisp_Object map, Lisp_Object prefix,
3176 void (*elt_describer) (Lisp_Object, Lisp_Object),
3177 int partial, Lisp_Object shadow,
3178 Lisp_Object *seen, int nomenu, int mention_shadow)
3179 {
3180 Lisp_Object tail, definition, event;
3181 Lisp_Object tem;
3182 Lisp_Object suppress;
3183 Lisp_Object kludge;
3184 int first = 1;
3185 struct gcpro gcpro1, gcpro2, gcpro3;
3186
3187 /* These accumulate the values from sparse keymap bindings,
3188 so we can sort them and handle them in order. */
3189 int length_needed = 0;
3190 struct describe_map_elt *vect;
3191 int slots_used = 0;
3192 int i;
3193
3194 suppress = Qnil;
3195
3196 if (partial)
3197 suppress = intern ("suppress-keymap");
3198
3199 /* This vector gets used to present single keys to Flookup_key. Since
3200 that is done once per keymap element, we don't want to cons up a
3201 fresh vector every time. */
3202 kludge = Fmake_vector (make_number (1), Qnil);
3203 definition = Qnil;
3204
3205 GCPRO3 (prefix, definition, kludge);
3206
3207 map = call1 (Qkeymap_canonicalize, map);
3208
3209 for (tail = map; CONSP (tail); tail = XCDR (tail))
3210 length_needed++;
3211
3212 vect = ((struct describe_map_elt *)
3213 alloca (sizeof (struct describe_map_elt) * length_needed));
3214
3215 for (tail = map; CONSP (tail); tail = XCDR (tail))
3216 {
3217 QUIT;
3218
3219 if (VECTORP (XCAR (tail))
3220 || CHAR_TABLE_P (XCAR (tail)))
3221 describe_vector (XCAR (tail),
3222 prefix, Qnil, elt_describer, partial, shadow, map,
3223 1, mention_shadow);
3224 else if (CONSP (XCAR (tail)))
3225 {
3226 int this_shadowed = 0;
3227
3228 event = XCAR (XCAR (tail));
3229
3230 /* Ignore bindings whose "prefix" are not really valid events.
3231 (We get these in the frames and buffers menu.) */
3232 if (!(SYMBOLP (event) || INTEGERP (event)))
3233 continue;
3234
3235 if (nomenu && EQ (event, Qmenu_bar))
3236 continue;
3237
3238 definition = get_keyelt (XCDR (XCAR (tail)), 0);
3239
3240 /* Don't show undefined commands or suppressed commands. */
3241 if (NILP (definition)) continue;
3242 if (SYMBOLP (definition) && partial)
3243 {
3244 tem = Fget (definition, suppress);
3245 if (!NILP (tem))
3246 continue;
3247 }
3248
3249 /* Don't show a command that isn't really visible
3250 because a local definition of the same key shadows it. */
3251
3252 ASET (kludge, 0, event);
3253 if (!NILP (shadow))
3254 {
3255 tem = shadow_lookup (shadow, kludge, Qt, 0);
3256 if (!NILP (tem))
3257 {
3258 /* If both bindings are keymaps, this key is a prefix key,
3259 so don't say it is shadowed. */
3260 if (KEYMAPP (definition) && KEYMAPP (tem))
3261 ;
3262 /* Avoid generating duplicate entries if the
3263 shadowed binding has the same definition. */
3264 else if (mention_shadow && !EQ (tem, definition))
3265 this_shadowed = 1;
3266 else
3267 continue;
3268 }
3269 }
3270
3271 tem = Flookup_key (map, kludge, Qt);
3272 if (!EQ (tem, definition)) continue;
3273
3274 vect[slots_used].event = event;
3275 vect[slots_used].definition = definition;
3276 vect[slots_used].shadowed = this_shadowed;
3277 slots_used++;
3278 }
3279 else if (EQ (XCAR (tail), Qkeymap))
3280 {
3281 /* The same keymap might be in the structure twice, if we're
3282 using an inherited keymap. So skip anything we've already
3283 encountered. */
3284 tem = Fassq (tail, *seen);
3285 if (CONSP (tem) && !NILP (Fequal (XCAR (tem), prefix)))
3286 break;
3287 *seen = Fcons (Fcons (tail, prefix), *seen);
3288 }
3289 }
3290
3291 /* If we found some sparse map events, sort them. */
3292
3293 qsort (vect, slots_used, sizeof (struct describe_map_elt),
3294 describe_map_compare);
3295
3296 /* Now output them in sorted order. */
3297
3298 for (i = 0; i < slots_used; i++)
3299 {
3300 Lisp_Object start, end;
3301
3302 if (first)
3303 {
3304 previous_description_column = 0;
3305 insert ("\n", 1);
3306 first = 0;
3307 }
3308
3309 ASET (kludge, 0, vect[i].event);
3310 start = vect[i].event;
3311 end = start;
3312
3313 definition = vect[i].definition;
3314
3315 /* Find consecutive chars that are identically defined. */
3316 if (INTEGERP (vect[i].event))
3317 {
3318 while (i + 1 < slots_used
3319 && EQ (vect[i+1].event, make_number (XINT (vect[i].event) + 1))
3320 && !NILP (Fequal (vect[i + 1].definition, definition))
3321 && vect[i].shadowed == vect[i + 1].shadowed)
3322 i++;
3323 end = vect[i].event;
3324 }
3325
3326 /* Now START .. END is the range to describe next. */
3327
3328 /* Insert the string to describe the event START. */
3329 insert1 (Fkey_description (kludge, prefix));
3330
3331 if (!EQ (start, end))
3332 {
3333 insert (" .. ", 4);
3334
3335 ASET (kludge, 0, end);
3336 /* Insert the string to describe the character END. */
3337 insert1 (Fkey_description (kludge, prefix));
3338 }
3339
3340 /* Print a description of the definition of this character.
3341 elt_describer will take care of spacing out far enough
3342 for alignment purposes. */
3343 (*elt_describer) (vect[i].definition, Qnil);
3344
3345 if (vect[i].shadowed)
3346 {
3347 SET_PT (PT - 1);
3348 insert_string ("\n (that binding is currently shadowed by another mode)");
3349 SET_PT (PT + 1);
3350 }
3351 }
3352
3353 UNGCPRO;
3354 }
3355
3356 static void
3357 describe_vector_princ (Lisp_Object elt, Lisp_Object fun)
3358 {
3359 Findent_to (make_number (16), make_number (1));
3360 call1 (fun, elt);
3361 Fterpri (Qnil);
3362 }
3363
3364 DEFUN ("describe-vector", Fdescribe_vector, Sdescribe_vector, 1, 2, 0,
3365 doc: /* Insert a description of contents of VECTOR.
3366 This is text showing the elements of vector matched against indices.
3367 DESCRIBER is the output function used; nil means use `princ'. */)
3368 (Lisp_Object vector, Lisp_Object describer)
3369 {
3370 int count = SPECPDL_INDEX ();
3371 if (NILP (describer))
3372 describer = intern ("princ");
3373 specbind (Qstandard_output, Fcurrent_buffer ());
3374 CHECK_VECTOR_OR_CHAR_TABLE (vector);
3375 describe_vector (vector, Qnil, describer, describe_vector_princ, 0,
3376 Qnil, Qnil, 0, 0);
3377
3378 return unbind_to (count, Qnil);
3379 }
3380
3381 /* Insert in the current buffer a description of the contents of VECTOR.
3382 We call ELT_DESCRIBER to insert the description of one value found
3383 in VECTOR.
3384
3385 ELT_PREFIX describes what "comes before" the keys or indices defined
3386 by this vector. This is a human-readable string whose size
3387 is not necessarily related to the situation.
3388
3389 If the vector is in a keymap, ELT_PREFIX is a prefix key which
3390 leads to this keymap.
3391
3392 If the vector is a chartable, ELT_PREFIX is the vector
3393 of bytes that lead to the character set or portion of a character
3394 set described by this chartable.
3395
3396 If PARTIAL is nonzero, it means do not mention suppressed commands
3397 (that assumes the vector is in a keymap).
3398
3399 SHADOW is a list of keymaps that shadow this map.
3400 If it is non-nil, then we look up the key in those maps
3401 and we don't mention it now if it is defined by any of them.
3402
3403 ENTIRE_MAP is the keymap in which this vector appears.
3404 If the definition in effect in the whole map does not match
3405 the one in this vector, we ignore this one.
3406
3407 ARGS is simply passed as the second argument to ELT_DESCRIBER.
3408
3409 KEYMAP_P is 1 if vector is known to be a keymap, so map ESC to M-.
3410
3411 ARGS is simply passed as the second argument to ELT_DESCRIBER. */
3412
3413 static void
3414 describe_vector (Lisp_Object vector, Lisp_Object prefix, Lisp_Object args,
3415 void (*elt_describer) (Lisp_Object, Lisp_Object),
3416 int partial, Lisp_Object shadow, Lisp_Object entire_map,
3417 int keymap_p, int mention_shadow)
3418 {
3419 Lisp_Object definition;
3420 Lisp_Object tem2;
3421 Lisp_Object elt_prefix = Qnil;
3422 int i;
3423 Lisp_Object suppress;
3424 Lisp_Object kludge;
3425 int first = 1;
3426 struct gcpro gcpro1, gcpro2, gcpro3, gcpro4;
3427 /* Range of elements to be handled. */
3428 int from, to, stop;
3429 Lisp_Object character;
3430 int starting_i;
3431
3432 suppress = Qnil;
3433
3434 definition = Qnil;
3435
3436 if (!keymap_p)
3437 {
3438 /* Call Fkey_description first, to avoid GC bug for the other string. */
3439 if (!NILP (prefix) && XFASTINT (Flength (prefix)) > 0)
3440 {
3441 Lisp_Object tem;
3442 tem = Fkey_description (prefix, Qnil);
3443 elt_prefix = concat2 (tem, build_string (" "));
3444 }
3445 prefix = Qnil;
3446 }
3447
3448 /* This vector gets used to present single keys to Flookup_key. Since
3449 that is done once per vector element, we don't want to cons up a
3450 fresh vector every time. */
3451 kludge = Fmake_vector (make_number (1), Qnil);
3452 GCPRO4 (elt_prefix, prefix, definition, kludge);
3453
3454 if (partial)
3455 suppress = intern ("suppress-keymap");
3456
3457 from = 0;
3458 if (CHAR_TABLE_P (vector))
3459 stop = MAX_5_BYTE_CHAR + 1, to = MAX_CHAR + 1;
3460 else
3461 stop = to = ASIZE (vector);
3462
3463 for (i = from; ; i++)
3464 {
3465 int this_shadowed = 0;
3466 int range_beg, range_end;
3467 Lisp_Object val;
3468
3469 QUIT;
3470
3471 if (i == stop)
3472 {
3473 if (i == to)
3474 break;
3475 stop = to;
3476 }
3477
3478 starting_i = i;
3479
3480 if (CHAR_TABLE_P (vector))
3481 {
3482 range_beg = i;
3483 i = stop - 1;
3484 val = char_table_ref_and_range (vector, range_beg, &range_beg, &i);
3485 }
3486 else
3487 val = AREF (vector, i);
3488 definition = get_keyelt (val, 0);
3489
3490 if (NILP (definition)) continue;
3491
3492 /* Don't mention suppressed commands. */
3493 if (SYMBOLP (definition) && partial)
3494 {
3495 Lisp_Object tem;
3496
3497 tem = Fget (definition, suppress);
3498
3499 if (!NILP (tem)) continue;
3500 }
3501
3502 character = make_number (starting_i);
3503 ASET (kludge, 0, character);
3504
3505 /* If this binding is shadowed by some other map, ignore it. */
3506 if (!NILP (shadow))
3507 {
3508 Lisp_Object tem;
3509
3510 tem = shadow_lookup (shadow, kludge, Qt, 0);
3511
3512 if (!NILP (tem))
3513 {
3514 if (mention_shadow)
3515 this_shadowed = 1;
3516 else
3517 continue;
3518 }
3519 }
3520
3521 /* Ignore this definition if it is shadowed by an earlier
3522 one in the same keymap. */
3523 if (!NILP (entire_map))
3524 {
3525 Lisp_Object tem;
3526
3527 tem = Flookup_key (entire_map, kludge, Qt);
3528
3529 if (!EQ (tem, definition))
3530 continue;
3531 }
3532
3533 if (first)
3534 {
3535 insert ("\n", 1);
3536 first = 0;
3537 }
3538
3539 /* Output the prefix that applies to every entry in this map. */
3540 if (!NILP (elt_prefix))
3541 insert1 (elt_prefix);
3542
3543 insert1 (Fkey_description (kludge, prefix));
3544
3545 /* Find all consecutive characters or rows that have the same
3546 definition. But, VECTOR is a char-table, we had better put a
3547 boundary between normal characters (-#x3FFF7F) and 8-bit
3548 characters (#x3FFF80-). */
3549 if (CHAR_TABLE_P (vector))
3550 {
3551 while (i + 1 < stop
3552 && (range_beg = i + 1, range_end = stop - 1,
3553 val = char_table_ref_and_range (vector, range_beg,
3554 &range_beg, &range_end),
3555 tem2 = get_keyelt (val, 0),
3556 !NILP (tem2))
3557 && !NILP (Fequal (tem2, definition)))
3558 i = range_end;
3559 }
3560 else
3561 while (i + 1 < stop
3562 && (tem2 = get_keyelt (AREF (vector, i + 1), 0),
3563 !NILP (tem2))
3564 && !NILP (Fequal (tem2, definition)))
3565 i++;
3566
3567 /* If we have a range of more than one character,
3568 print where the range reaches to. */
3569
3570 if (i != starting_i)
3571 {
3572 insert (" .. ", 4);
3573
3574 ASET (kludge, 0, make_number (i));
3575
3576 if (!NILP (elt_prefix))
3577 insert1 (elt_prefix);
3578
3579 insert1 (Fkey_description (kludge, prefix));
3580 }
3581
3582 /* Print a description of the definition of this character.
3583 elt_describer will take care of spacing out far enough
3584 for alignment purposes. */
3585 (*elt_describer) (definition, args);
3586
3587 if (this_shadowed)
3588 {
3589 SET_PT (PT - 1);
3590 insert_string (" (binding currently shadowed)");
3591 SET_PT (PT + 1);
3592 }
3593 }
3594
3595 if (CHAR_TABLE_P (vector) && ! NILP (XCHAR_TABLE (vector)->defalt))
3596 {
3597 if (!NILP (elt_prefix))
3598 insert1 (elt_prefix);
3599 insert ("default", 7);
3600 (*elt_describer) (XCHAR_TABLE (vector)->defalt, args);
3601 }
3602
3603 UNGCPRO;
3604 }
3605 \f
3606 /* Apropos - finding all symbols whose names match a regexp. */
3607 static Lisp_Object apropos_predicate;
3608 static Lisp_Object apropos_accumulate;
3609
3610 static void
3611 apropos_accum (Lisp_Object symbol, Lisp_Object string)
3612 {
3613 register Lisp_Object tem;
3614
3615 tem = Fstring_match (string, Fsymbol_name (symbol), Qnil);
3616 if (!NILP (tem) && !NILP (apropos_predicate))
3617 tem = call1 (apropos_predicate, symbol);
3618 if (!NILP (tem))
3619 apropos_accumulate = Fcons (symbol, apropos_accumulate);
3620 }
3621
3622 DEFUN ("apropos-internal", Fapropos_internal, Sapropos_internal, 1, 2, 0,
3623 doc: /* Show all symbols whose names contain match for REGEXP.
3624 If optional 2nd arg PREDICATE is non-nil, (funcall PREDICATE SYMBOL) is done
3625 for each symbol and a symbol is mentioned only if that returns non-nil.
3626 Return list of symbols found. */)
3627 (Lisp_Object regexp, Lisp_Object predicate)
3628 {
3629 Lisp_Object tem;
3630 CHECK_STRING (regexp);
3631 apropos_predicate = predicate;
3632 apropos_accumulate = Qnil;
3633 map_obarray (Vobarray, apropos_accum, regexp);
3634 tem = Fsort (apropos_accumulate, Qstring_lessp);
3635 apropos_accumulate = Qnil;
3636 apropos_predicate = Qnil;
3637 return tem;
3638 }
3639 \f
3640 void
3641 syms_of_keymap (void)
3642 {
3643 DEFSYM (Qkeymap, "keymap");
3644 staticpro (&apropos_predicate);
3645 staticpro (&apropos_accumulate);
3646 apropos_predicate = Qnil;
3647 apropos_accumulate = Qnil;
3648
3649 DEFSYM (Qkeymap_canonicalize, "keymap-canonicalize");
3650
3651 /* Now we are ready to set up this property, so we can
3652 create char tables. */
3653 Fput (Qkeymap, Qchar_table_extra_slots, make_number (0));
3654
3655 /* Initialize the keymaps standardly used.
3656 Each one is the value of a Lisp variable, and is also
3657 pointed to by a C variable */
3658
3659 global_map = Fmake_keymap (Qnil);
3660 Fset (intern_c_string ("global-map"), global_map);
3661
3662 current_global_map = global_map;
3663 staticpro (&global_map);
3664 staticpro (&current_global_map);
3665
3666 meta_map = Fmake_keymap (Qnil);
3667 Fset (intern_c_string ("esc-map"), meta_map);
3668 Ffset (intern_c_string ("ESC-prefix"), meta_map);
3669
3670 control_x_map = Fmake_keymap (Qnil);
3671 Fset (intern_c_string ("ctl-x-map"), control_x_map);
3672 Ffset (intern_c_string ("Control-X-prefix"), control_x_map);
3673
3674 exclude_keys
3675 = pure_cons (pure_cons (make_pure_c_string ("DEL"), make_pure_c_string ("\\d")),
3676 pure_cons (pure_cons (make_pure_c_string ("TAB"), make_pure_c_string ("\\t")),
3677 pure_cons (pure_cons (make_pure_c_string ("RET"), make_pure_c_string ("\\r")),
3678 pure_cons (pure_cons (make_pure_c_string ("ESC"), make_pure_c_string ("\\e")),
3679 pure_cons (pure_cons (make_pure_c_string ("SPC"), make_pure_c_string (" ")),
3680 Qnil)))));
3681 staticpro (&exclude_keys);
3682
3683 DEFVAR_LISP ("define-key-rebound-commands", Vdefine_key_rebound_commands,
3684 doc: /* List of commands given new key bindings recently.
3685 This is used for internal purposes during Emacs startup;
3686 don't alter it yourself. */);
3687 Vdefine_key_rebound_commands = Qt;
3688
3689 DEFVAR_LISP ("minibuffer-local-map", Vminibuffer_local_map,
3690 doc: /* Default keymap to use when reading from the minibuffer. */);
3691 Vminibuffer_local_map = Fmake_sparse_keymap (Qnil);
3692
3693 DEFVAR_LISP ("minibuffer-local-ns-map", Vminibuffer_local_ns_map,
3694 doc: /* Local keymap for the minibuffer when spaces are not allowed. */);
3695 Vminibuffer_local_ns_map = Fmake_sparse_keymap (Qnil);
3696 Fset_keymap_parent (Vminibuffer_local_ns_map, Vminibuffer_local_map);
3697
3698
3699 DEFVAR_LISP ("minor-mode-map-alist", Vminor_mode_map_alist,
3700 doc: /* Alist of keymaps to use for minor modes.
3701 Each element looks like (VARIABLE . KEYMAP); KEYMAP is used to read
3702 key sequences and look up bindings if VARIABLE's value is non-nil.
3703 If two active keymaps bind the same key, the keymap appearing earlier
3704 in the list takes precedence. */);
3705 Vminor_mode_map_alist = Qnil;
3706
3707 DEFVAR_LISP ("minor-mode-overriding-map-alist", Vminor_mode_overriding_map_alist,
3708 doc: /* Alist of keymaps to use for minor modes, in current major mode.
3709 This variable is an alist just like `minor-mode-map-alist', and it is
3710 used the same way (and before `minor-mode-map-alist'); however,
3711 it is provided for major modes to bind locally. */);
3712 Vminor_mode_overriding_map_alist = Qnil;
3713
3714 DEFVAR_LISP ("emulation-mode-map-alists", Vemulation_mode_map_alists,
3715 doc: /* List of keymap alists to use for emulations modes.
3716 It is intended for modes or packages using multiple minor-mode keymaps.
3717 Each element is a keymap alist just like `minor-mode-map-alist', or a
3718 symbol with a variable binding which is a keymap alist, and it is used
3719 the same way. The "active" keymaps in each alist are used before
3720 `minor-mode-map-alist' and `minor-mode-overriding-map-alist'. */);
3721 Vemulation_mode_map_alists = Qnil;
3722
3723 DEFVAR_LISP ("where-is-preferred-modifier", Vwhere_is_preferred_modifier,
3724 doc: /* Preferred modifier key to use for `where-is'.
3725 When a single binding is requested, `where-is' will return one that
3726 uses this modifier key if possible. If nil, or if no such binding
3727 exists, bindings using keys without modifiers (or only with meta) will
3728 be preferred. */);
3729 Vwhere_is_preferred_modifier = Qnil;
3730 where_is_preferred_modifier = 0;
3731
3732 staticpro (&Vmouse_events);
3733 Vmouse_events = pure_cons (intern_c_string ("menu-bar"),
3734 pure_cons (intern_c_string ("tool-bar"),
3735 pure_cons (intern_c_string ("header-line"),
3736 pure_cons (intern_c_string ("mode-line"),
3737 pure_cons (intern_c_string ("mouse-1"),
3738 pure_cons (intern_c_string ("mouse-2"),
3739 pure_cons (intern_c_string ("mouse-3"),
3740 pure_cons (intern_c_string ("mouse-4"),
3741 pure_cons (intern_c_string ("mouse-5"),
3742 Qnil)))))))));
3743
3744 DEFSYM (Qsingle_key_description, "single-key-description");
3745 DEFSYM (Qkey_description, "key-description");
3746 DEFSYM (Qkeymapp, "keymapp");
3747 DEFSYM (Qnon_ascii, "non-ascii");
3748 DEFSYM (Qmenu_item, "menu-item");
3749 DEFSYM (Qremap, "remap");
3750 DEFSYM (QCadvertised_binding, ":advertised-binding");
3751
3752 command_remapping_vector = Fmake_vector (make_number (2), Qremap);
3753 staticpro (&command_remapping_vector);
3754
3755 where_is_cache_keymaps = Qt;
3756 where_is_cache = Qnil;
3757 staticpro (&where_is_cache);
3758 staticpro (&where_is_cache_keymaps);
3759
3760 defsubr (&Skeymapp);
3761 defsubr (&Skeymap_parent);
3762 defsubr (&Skeymap_prompt);
3763 defsubr (&Sset_keymap_parent);
3764 defsubr (&Smake_keymap);
3765 defsubr (&Smake_sparse_keymap);
3766 defsubr (&Smap_keymap_internal);
3767 defsubr (&Smap_keymap);
3768 defsubr (&Scopy_keymap);
3769 defsubr (&Scommand_remapping);
3770 defsubr (&Skey_binding);
3771 defsubr (&Slocal_key_binding);
3772 defsubr (&Sglobal_key_binding);
3773 defsubr (&Sminor_mode_key_binding);
3774 defsubr (&Sdefine_key);
3775 defsubr (&Slookup_key);
3776 defsubr (&Sdefine_prefix_command);
3777 defsubr (&Suse_global_map);
3778 defsubr (&Suse_local_map);
3779 defsubr (&Scurrent_local_map);
3780 defsubr (&Scurrent_global_map);
3781 defsubr (&Scurrent_minor_mode_maps);
3782 defsubr (&Scurrent_active_maps);
3783 defsubr (&Saccessible_keymaps);
3784 defsubr (&Skey_description);
3785 defsubr (&Sdescribe_vector);
3786 defsubr (&Ssingle_key_description);
3787 defsubr (&Stext_char_description);
3788 defsubr (&Swhere_is_internal);
3789 defsubr (&Sdescribe_buffer_bindings);
3790 defsubr (&Sapropos_internal);
3791 }
3792
3793 void
3794 keys_of_keymap (void)
3795 {
3796 initial_define_key (global_map, 033, "ESC-prefix");
3797 initial_define_key (global_map, Ctl ('X'), "Control-X-prefix");
3798 }