(Faccessible_keymaps): Convert PREFIX to a vector
[bpt/emacs.git] / src / keymap.c
CommitLineData
2c6f1a39 1/* Manipulation of keymaps
f8c25f1b 2 Copyright (C) 1985, 86, 87, 88, 93, 94, 95 Free Software Foundation, Inc.
2c6f1a39
JB
3
4This file is part of GNU Emacs.
5
6GNU Emacs is free software; you can redistribute it and/or modify
7it under the terms of the GNU General Public License as published by
502ddf23 8the Free Software Foundation; either version 2, or (at your option)
2c6f1a39
JB
9any later version.
10
11GNU Emacs is distributed in the hope that it will be useful,
12but WITHOUT ANY WARRANTY; without even the implied warranty of
13MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14GNU General Public License for more details.
15
16You should have received a copy of the GNU General Public License
17along with GNU Emacs; see the file COPYING. If not, write to
3b7ad313
EN
18the Free Software Foundation, Inc., 59 Temple Place - Suite 330,
19Boston, MA 02111-1307, USA. */
2c6f1a39
JB
20
21
18160b98 22#include <config.h>
2c6f1a39
JB
23#include <stdio.h>
24#undef NULL
25#include "lisp.h"
26#include "commands.h"
27#include "buffer.h"
a98f1d1d 28#include "charset.h"
6bbbd9b0 29#include "keyboard.h"
6ba6e250 30#include "termhooks.h"
9ac0d9e0 31#include "blockinput.h"
d964248c 32#include "puresize.h"
2c6f1a39
JB
33
34#define min(a, b) ((a) < (b) ? (a) : (b))
35
f5b79c1c 36/* The number of elements in keymap vectors. */
2c6f1a39
JB
37#define DENSE_TABLE_SIZE (0200)
38
39/* Actually allocate storage for these variables */
40
41Lisp_Object current_global_map; /* Current global keymap */
42
43Lisp_Object global_map; /* default global key bindings */
44
45Lisp_Object meta_map; /* The keymap used for globally bound
46 ESC-prefixed default commands */
47
48Lisp_Object control_x_map; /* The keymap used for globally bound
49 C-x-prefixed default commands */
50
51/* was MinibufLocalMap */
52Lisp_Object Vminibuffer_local_map;
53 /* The keymap used by the minibuf for local
54 bindings when spaces are allowed in the
55 minibuf */
56
57/* was MinibufLocalNSMap */
58Lisp_Object Vminibuffer_local_ns_map;
59 /* The keymap used by the minibuf for local
60 bindings when spaces are not encouraged
61 in the minibuf */
62
63/* keymap used for minibuffers when doing completion */
64/* was MinibufLocalCompletionMap */
65Lisp_Object Vminibuffer_local_completion_map;
66
67/* keymap used for minibuffers when doing completion and require a match */
68/* was MinibufLocalMustMatchMap */
69Lisp_Object Vminibuffer_local_must_match_map;
70
cc0a8174
JB
71/* Alist of minor mode variables and keymaps. */
72Lisp_Object Vminor_mode_map_alist;
73
6bbbd9b0
JB
74/* Keymap mapping ASCII function key sequences onto their preferred forms.
75 Initialized by the terminal-specific lisp files. See DEFVAR for more
76 documentation. */
77Lisp_Object Vfunction_key_map;
78
d7bf9bf5
RS
79/* Keymap mapping ASCII function key sequences onto their preferred forms. */
80Lisp_Object Vkey_translation_map;
81
107fd03d
RS
82/* A list of all commands given new bindings since a certain time
83 when nil was stored here.
84 This is used to speed up recomputation of menu key equivalents
85 when Emacs starts up. t means don't record anything here. */
86Lisp_Object Vdefine_key_rebound_commands;
87
2fc66973 88Lisp_Object Qkeymapp, Qkeymap, Qnon_ascii;
2c6f1a39 89
3d248688
JB
90/* A char with the CHAR_META bit set in a vector or the 0200 bit set
91 in a string key sequence is equivalent to prefixing with this
92 character. */
2c6f1a39
JB
93extern Lisp_Object meta_prefix_char;
94
7d92e329
RS
95extern Lisp_Object Voverriding_local_map;
96
c07aec97 97static Lisp_Object define_as_prefix ();
2c6f1a39 98static Lisp_Object describe_buffer_bindings ();
d7bf9bf5 99static void describe_command (), describe_translation ();
2c6f1a39 100static void describe_map ();
2c6f1a39 101\f
cc0a8174
JB
102/* Keymap object support - constructors and predicates. */
103
ce6e5d0b 104DEFUN ("make-keymap", Fmake_keymap, Smake_keymap, 0, 1, 0,
2c6f1a39 105 "Construct and return a new keymap, of the form (keymap VECTOR . ALIST).\n\
926a64aa 106VECTOR is a vector which holds the bindings for the ASCII\n\
2c6f1a39
JB
107characters. ALIST is an assoc-list which holds bindings for function keys,\n\
108mouse events, and any other things that appear in the input stream.\n\
ce6e5d0b
RS
109All entries in it are initially nil, meaning \"command undefined\".\n\n\
110The optional arg STRING supplies a menu name for the keymap\n\
111in case you use it as a menu with `x-popup-menu'.")
112 (string)
113 Lisp_Object string;
2c6f1a39 114{
ce6e5d0b
RS
115 Lisp_Object tail;
116 if (!NILP (string))
117 tail = Fcons (string, Qnil);
118 else
119 tail = Qnil;
2c6f1a39
JB
120 return Fcons (Qkeymap,
121 Fcons (Fmake_vector (make_number (DENSE_TABLE_SIZE), Qnil),
ce6e5d0b 122 tail));
2c6f1a39
JB
123}
124
ce6e5d0b 125DEFUN ("make-sparse-keymap", Fmake_sparse_keymap, Smake_sparse_keymap, 0, 1, 0,
2c6f1a39
JB
126 "Construct and return a new sparse-keymap list.\n\
127Its car is `keymap' and its cdr is an alist of (CHAR . DEFINITION),\n\
128which binds the character CHAR to DEFINITION, or (SYMBOL . DEFINITION),\n\
129which binds the function key or mouse event SYMBOL to DEFINITION.\n\
ce6e5d0b
RS
130Initially the alist is nil.\n\n\
131The optional arg STRING supplies a menu name for the keymap\n\
132in case you use it as a menu with `x-popup-menu'.")
133 (string)
134 Lisp_Object string;
2c6f1a39 135{
ce6e5d0b
RS
136 if (!NILP (string))
137 return Fcons (Qkeymap, Fcons (string, Qnil));
2c6f1a39
JB
138 return Fcons (Qkeymap, Qnil);
139}
140
141/* This function is used for installing the standard key bindings
142 at initialization time.
143
144 For example:
145
e25c4e44 146 initial_define_key (control_x_map, Ctl('X'), "exchange-point-and-mark"); */
2c6f1a39
JB
147
148void
149initial_define_key (keymap, key, defname)
150 Lisp_Object keymap;
151 int key;
152 char *defname;
153{
154 store_in_keymap (keymap, make_number (key), intern (defname));
155}
156
e25c4e44
JB
157void
158initial_define_lispy_key (keymap, keyname, defname)
159 Lisp_Object keymap;
160 char *keyname;
161 char *defname;
162{
163 store_in_keymap (keymap, intern (keyname), intern (defname));
164}
165
2c6f1a39
JB
166/* Define character fromchar in map frommap as an alias for character
167 tochar in map tomap. Subsequent redefinitions of the latter WILL
168 affect the former. */
169
170#if 0
171void
172synkey (frommap, fromchar, tomap, tochar)
173 struct Lisp_Vector *frommap, *tomap;
174 int fromchar, tochar;
175{
176 Lisp_Object v, c;
bff4ec1f 177 XSETVECTOR (v, tomap);
6e344130 178 XSETFASTINT (c, tochar);
2c6f1a39
JB
179 frommap->contents[fromchar] = Fcons (v, c);
180}
181#endif /* 0 */
182
183DEFUN ("keymapp", Fkeymapp, Skeymapp, 1, 1, 0,
88539837 184 "Return t if OBJECT is a keymap.\n\
1d8d96fa 185\n\
926a64aa 186A keymap is a list (keymap . ALIST),\n\
90f80bcf 187or a symbol whose function definition is itself a keymap.\n\
1d8d96fa 188ALIST elements look like (CHAR . DEFN) or (SYMBOL . DEFN);\n\
926a64aa
RS
189a vector of densely packed bindings for small character codes\n\
190is also allowed as an element.")
2c6f1a39
JB
191 (object)
192 Lisp_Object object;
193{
d09b2024 194 return (NILP (get_keymap_1 (object, 0, 0)) ? Qnil : Qt);
2c6f1a39
JB
195}
196
197/* Check that OBJECT is a keymap (after dereferencing through any
d09b2024
JB
198 symbols). If it is, return it.
199
200 If AUTOLOAD is non-zero and OBJECT is a symbol whose function value
201 is an autoload form, do the autoload and try again.
21a0d7a0 202 If AUTOLOAD is nonzero, callers must assume GC is possible.
d09b2024
JB
203
204 ERROR controls how we respond if OBJECT isn't a keymap.
205 If ERROR is non-zero, signal an error; otherwise, just return Qnil.
206
207 Note that most of the time, we don't want to pursue autoloads.
208 Functions like Faccessible_keymaps which scan entire keymap trees
209 shouldn't load every autoloaded keymap. I'm not sure about this,
210 but it seems to me that only read_key_sequence, Flookup_key, and
211 Fdefine_key should cause keymaps to be autoloaded. */
212
2c6f1a39 213Lisp_Object
d09b2024 214get_keymap_1 (object, error, autoload)
2c6f1a39 215 Lisp_Object object;
d09b2024 216 int error, autoload;
2c6f1a39 217{
d09b2024 218 Lisp_Object tem;
2c6f1a39 219
d09b2024 220 autoload_retry:
502ddf23 221 tem = indirect_function (object);
2c6f1a39
JB
222 if (CONSP (tem) && EQ (XCONS (tem)->car, Qkeymap))
223 return tem;
f5b79c1c 224
8e4dfd54
JB
225 /* Should we do an autoload? Autoload forms for keymaps have
226 Qkeymap as their fifth element. */
d09b2024 227 if (autoload
47684cd9 228 && SYMBOLP (object)
d09b2024
JB
229 && CONSP (tem)
230 && EQ (XCONS (tem)->car, Qautoload))
231 {
8e4dfd54 232 Lisp_Object tail;
d09b2024 233
8e4dfd54
JB
234 tail = Fnth (make_number (4), tem);
235 if (EQ (tail, Qkeymap))
236 {
237 struct gcpro gcpro1, gcpro2;
d09b2024 238
81fa9e2f
RS
239 GCPRO2 (tem, object);
240 do_autoload (tem, object);
8e4dfd54
JB
241 UNGCPRO;
242
243 goto autoload_retry;
244 }
d09b2024
JB
245 }
246
2c6f1a39
JB
247 if (error)
248 wrong_type_argument (Qkeymapp, object);
cc0a8174
JB
249 else
250 return Qnil;
2c6f1a39
JB
251}
252
d09b2024
JB
253
254/* Follow any symbol chaining, and return the keymap denoted by OBJECT.
255 If OBJECT doesn't denote a keymap at all, signal an error. */
2c6f1a39
JB
256Lisp_Object
257get_keymap (object)
258 Lisp_Object object;
259{
224a16e8 260 return get_keymap_1 (object, 1, 0);
2c6f1a39 261}
7d58ed99
RS
262\f
263/* Return the parent map of the keymap MAP, or nil if it has none.
264 We assume that MAP is a valid keymap. */
265
266DEFUN ("keymap-parent", Fkeymap_parent, Skeymap_parent, 1, 1, 0,
267 "Return the parent keymap of KEYMAP.")
268 (keymap)
269 Lisp_Object keymap;
270{
271 Lisp_Object list;
272
273 keymap = get_keymap_1 (keymap, 1, 1);
274
275 /* Skip past the initial element `keymap'. */
276 list = XCONS (keymap)->cdr;
277 for (; CONSP (list); list = XCONS (list)->cdr)
278 {
279 /* See if there is another `keymap'. */
280 if (EQ (Qkeymap, XCONS (list)->car))
281 return list;
282 }
283
284 return Qnil;
285}
286
287/* Set the parent keymap of MAP to PARENT. */
288
289DEFUN ("set-keymap-parent", Fset_keymap_parent, Sset_keymap_parent, 2, 2, 0,
290 "Modify KEYMAP to set its parent map to PARENT.\n\
291PARENT should be nil or another keymap.")
292 (keymap, parent)
293 Lisp_Object keymap, parent;
294{
295 Lisp_Object list, prev;
296 int i;
2c6f1a39 297
7d58ed99
RS
298 keymap = get_keymap_1 (keymap, 1, 1);
299 if (!NILP (parent))
300 parent = get_keymap_1 (parent, 1, 1);
2c6f1a39 301
7d58ed99
RS
302 /* Skip past the initial element `keymap'. */
303 prev = keymap;
304 while (1)
305 {
306 list = XCONS (prev)->cdr;
307 /* If there is a parent keymap here, replace it.
308 If we came to the end, add the parent in PREV. */
309 if (! CONSP (list) || EQ (Qkeymap, XCONS (list)->car))
310 {
2a5af1cf
RS
311 /* If we already have the right parent, return now
312 so that we avoid the loops below. */
313 if (EQ (XCONS (prev)->cdr, parent))
314 return parent;
315
7d58ed99
RS
316 XCONS (prev)->cdr = parent;
317 break;
318 }
319 prev = list;
320 }
321
322 /* Scan through for submaps, and set their parents too. */
323
324 for (list = XCONS (keymap)->cdr; CONSP (list); list = XCONS (list)->cdr)
325 {
326 /* Stop the scan when we come to the parent. */
327 if (EQ (XCONS (list)->car, Qkeymap))
328 break;
329
330 /* If this element holds a prefix map, deal with it. */
331 if (CONSP (XCONS (list)->car)
332 && CONSP (XCONS (XCONS (list)->car)->cdr))
333 fix_submap_inheritance (keymap, XCONS (XCONS (list)->car)->car,
334 XCONS (XCONS (list)->car)->cdr);
335
336 if (VECTORP (XCONS (list)->car))
337 for (i = 0; i < XVECTOR (XCONS (list)->car)->size; i++)
338 if (CONSP (XVECTOR (XCONS (list)->car)->contents[i]))
339 fix_submap_inheritance (keymap, make_number (i),
340 XVECTOR (XCONS (list)->car)->contents[i]);
341 }
342
343 return parent;
344}
345
346/* EVENT is defined in MAP as a prefix, and SUBMAP is its definition.
347 if EVENT is also a prefix in MAP's parent,
348 make sure that SUBMAP inherits that definition as its own parent. */
349
350fix_submap_inheritance (map, event, submap)
351 Lisp_Object map, event, submap;
352{
353 Lisp_Object map_parent, parent_entry;
354
355 /* SUBMAP is a cons that we found as a key binding.
356 Discard the other things found in a menu key binding. */
357
358 if (CONSP (submap)
359 && STRINGP (XCONS (submap)->car))
360 {
361 submap = XCONS (submap)->cdr;
362 /* Also remove a menu help string, if any,
363 following the menu item name. */
364 if (CONSP (submap) && STRINGP (XCONS (submap)->car))
365 submap = XCONS (submap)->cdr;
366 /* Also remove the sublist that caches key equivalences, if any. */
367 if (CONSP (submap)
368 && CONSP (XCONS (submap)->car))
369 {
370 Lisp_Object carcar;
371 carcar = XCONS (XCONS (submap)->car)->car;
372 if (NILP (carcar) || VECTORP (carcar))
373 submap = XCONS (submap)->cdr;
374 }
375 }
376
377 /* If it isn't a keymap now, there's no work to do. */
378 if (! CONSP (submap)
379 || ! EQ (XCONS (submap)->car, Qkeymap))
380 return;
381
382 map_parent = Fkeymap_parent (map);
383 if (! NILP (map_parent))
384 parent_entry = access_keymap (map_parent, event, 0, 0);
385 else
386 parent_entry = Qnil;
387
3393c3f5
RS
388 /* If MAP's parent has something other than a keymap,
389 our own submap shadows it completely, so use nil as SUBMAP's parent. */
390 if (! (CONSP (parent_entry) && EQ (XCONS (parent_entry)->car, Qkeymap)))
391 parent_entry = Qnil;
392
7d58ed99
RS
393 if (! EQ (parent_entry, submap))
394 Fset_keymap_parent (submap, parent_entry);
395}
396\f
2c6f1a39 397/* Look up IDX in MAP. IDX may be any sort of event.
f5b79c1c 398 Note that this does only one level of lookup; IDX must be a single
e25c4e44
JB
399 event, not a sequence.
400
401 If T_OK is non-zero, bindings for Qt are treated as default
402 bindings; any key left unmentioned by other tables and bindings is
403 given the binding of Qt.
404
c07aec97
RS
405 If T_OK is zero, bindings for Qt are not treated specially.
406
407 If NOINHERIT, don't accept a subkeymap found in an inherited keymap. */
2c6f1a39
JB
408
409Lisp_Object
c07aec97 410access_keymap (map, idx, t_ok, noinherit)
2c6f1a39
JB
411 Lisp_Object map;
412 Lisp_Object idx;
e25c4e44 413 int t_ok;
c07aec97 414 int noinherit;
2c6f1a39 415{
c07aec97
RS
416 int noprefix = 0;
417 Lisp_Object val;
418
2c6f1a39
JB
419 /* If idx is a list (some sort of mouse click, perhaps?),
420 the index we want to use is the car of the list, which
421 ought to be a symbol. */
cebd887d 422 idx = EVENT_HEAD (idx);
2c6f1a39 423
f5b79c1c
JB
424 /* If idx is a symbol, it might have modifiers, which need to
425 be put in the canonical order. */
47684cd9 426 if (SYMBOLP (idx))
f5b79c1c 427 idx = reorder_modifiers (idx);
2732bdbb
RS
428 else if (INTEGERP (idx))
429 /* Clobber the high bits that can be present on a machine
430 with more than 24 bits of integer. */
6e344130 431 XSETFASTINT (idx, XINT (idx) & (CHAR_META | (CHAR_META - 1)));
2c6f1a39 432
f5b79c1c
JB
433 {
434 Lisp_Object tail;
e9b6dfb0 435 Lisp_Object t_binding;
2c6f1a39 436
e9b6dfb0 437 t_binding = Qnil;
f5b79c1c 438 for (tail = map; CONSP (tail); tail = XCONS (tail)->cdr)
2c6f1a39 439 {
e9b6dfb0 440 Lisp_Object binding;
f5b79c1c 441
e9b6dfb0 442 binding = XCONS (tail)->car;
783a2838 443 if (SYMBOLP (binding))
f5b79c1c 444 {
c07aec97
RS
445 /* If NOINHERIT, stop finding prefix definitions
446 after we pass a second occurrence of the `keymap' symbol. */
447 if (noinherit && EQ (binding, Qkeymap) && ! EQ (tail, map))
448 noprefix = 1;
783a2838
KH
449 }
450 else if (CONSP (binding))
451 {
f5b79c1c 452 if (EQ (XCONS (binding)->car, idx))
c07aec97
RS
453 {
454 val = XCONS (binding)->cdr;
455 if (noprefix && CONSP (val) && EQ (XCONS (val)->car, Qkeymap))
456 return Qnil;
7d58ed99
RS
457 if (CONSP (val))
458 fix_submap_inheritance (map, idx, val);
c07aec97
RS
459 return val;
460 }
e25c4e44
JB
461 if (t_ok && EQ (XCONS (binding)->car, Qt))
462 t_binding = XCONS (binding)->cdr;
783a2838
KH
463 }
464 else if (VECTORP (binding))
465 {
be3bfff1 466 if (NATNUMP (idx) && XFASTINT (idx) < XVECTOR (binding)->size)
c07aec97 467 {
783a2838 468 val = XVECTOR (binding)->contents[XFASTINT (idx)];
c07aec97
RS
469 if (noprefix && CONSP (val) && EQ (XCONS (val)->car, Qkeymap))
470 return Qnil;
7d58ed99
RS
471 if (CONSP (val))
472 fix_submap_inheritance (map, idx, val);
c07aec97
RS
473 return val;
474 }
f5b79c1c 475 }
20218e2f
JB
476
477 QUIT;
2c6f1a39 478 }
fde3a52f 479
e25c4e44
JB
480 return t_binding;
481 }
2c6f1a39
JB
482}
483
484/* Given OBJECT which was found in a slot in a keymap,
485 trace indirect definitions to get the actual definition of that slot.
486 An indirect definition is a list of the form
487 (KEYMAP . INDEX), where KEYMAP is a keymap or a symbol defined as one
488 and INDEX is the object to look up in KEYMAP to yield the definition.
489
490 Also if OBJECT has a menu string as the first element,
224a16e8
RS
491 remove that. Also remove a menu help string as second element.
492
493 If AUTOLOAD is nonzero, load autoloadable keymaps
494 that are referred to with indirection. */
2c6f1a39
JB
495
496Lisp_Object
224a16e8 497get_keyelt (object, autoload)
2c6f1a39 498 register Lisp_Object object;
224a16e8 499 int autoload;
2c6f1a39
JB
500{
501 while (1)
502 {
503 register Lisp_Object map, tem;
504
fde3a52f 505 /* If the contents are (KEYMAP . ELEMENT), go indirect. */
224a16e8 506 map = get_keymap_1 (Fcar_safe (object), 0, autoload);
2c6f1a39 507 tem = Fkeymapp (map);
265a9e55 508 if (!NILP (tem))
c07aec97 509 object = access_keymap (map, Fcdr (object), 0, 0);
2c6f1a39
JB
510
511 /* If the keymap contents looks like (STRING . DEFN),
512 use DEFN.
513 Keymap alist elements like (CHAR MENUSTRING . DEFN)
514 will be used by HierarKey menus. */
47684cd9
RS
515 else if (CONSP (object)
516 && STRINGP (XCONS (object)->car))
1a8c3f10
RS
517 {
518 object = XCONS (object)->cdr;
519 /* Also remove a menu help string, if any,
520 following the menu item name. */
416349ec 521 if (CONSP (object) && STRINGP (XCONS (object)->car))
1a8c3f10 522 object = XCONS (object)->cdr;
c6ec9f6e
RS
523 /* Also remove the sublist that caches key equivalences, if any. */
524 if (CONSP (object)
525 && CONSP (XCONS (object)->car))
ffab2bd6 526 {
c6ec9f6e
RS
527 Lisp_Object carcar;
528 carcar = XCONS (XCONS (object)->car)->car;
529 if (NILP (carcar) || VECTORP (carcar))
ffab2bd6
RS
530 object = XCONS (object)->cdr;
531 }
1a8c3f10 532 }
2c6f1a39
JB
533
534 else
535 /* Anything else is really the value. */
536 return object;
537 }
538}
539
540Lisp_Object
541store_in_keymap (keymap, idx, def)
542 Lisp_Object keymap;
543 register Lisp_Object idx;
544 register Lisp_Object def;
545{
dce4372a
RS
546 /* If we are preparing to dump, and DEF is a menu element
547 with a menu item string, copy it to ensure it is not pure. */
d964248c 548 if (CONSP (def) && PURE_P (def) && STRINGP (XCONS (def)->car))
32ce36ad
RS
549 def = Fcons (XCONS (def)->car, XCONS (def)->cdr);
550
416349ec 551 if (!CONSP (keymap) || ! EQ (XCONS (keymap)->car, Qkeymap))
f5b79c1c
JB
552 error ("attempt to define a key in a non-keymap");
553
2c6f1a39
JB
554 /* If idx is a list (some sort of mouse click, perhaps?),
555 the index we want to use is the car of the list, which
556 ought to be a symbol. */
cebd887d 557 idx = EVENT_HEAD (idx);
2c6f1a39 558
f5b79c1c
JB
559 /* If idx is a symbol, it might have modifiers, which need to
560 be put in the canonical order. */
416349ec 561 if (SYMBOLP (idx))
f5b79c1c 562 idx = reorder_modifiers (idx);
2732bdbb
RS
563 else if (INTEGERP (idx))
564 /* Clobber the high bits that can be present on a machine
565 with more than 24 bits of integer. */
6e344130 566 XSETFASTINT (idx, XINT (idx) & (CHAR_META | (CHAR_META - 1)));
f5b79c1c
JB
567
568 /* Scan the keymap for a binding of idx. */
2c6f1a39 569 {
f5b79c1c 570 Lisp_Object tail;
2c6f1a39 571
f5b79c1c
JB
572 /* The cons after which we should insert new bindings. If the
573 keymap has a table element, we record its position here, so new
574 bindings will go after it; this way, the table will stay
575 towards the front of the alist and character lookups in dense
576 keymaps will remain fast. Otherwise, this just points at the
577 front of the keymap. */
e9b6dfb0 578 Lisp_Object insertion_point;
2c6f1a39 579
e9b6dfb0 580 insertion_point = keymap;
f5b79c1c 581 for (tail = XCONS (keymap)->cdr; CONSP (tail); tail = XCONS (tail)->cdr)
2c6f1a39 582 {
e9b6dfb0 583 Lisp_Object elt;
f5b79c1c 584
e9b6dfb0 585 elt = XCONS (tail)->car;
783a2838 586 if (VECTORP (elt))
f5b79c1c 587 {
be3bfff1 588 if (NATNUMP (idx) && XFASTINT (idx) < XVECTOR (elt)->size)
f5b79c1c
JB
589 {
590 XVECTOR (elt)->contents[XFASTINT (idx)] = def;
591 return def;
592 }
593 insertion_point = tail;
783a2838
KH
594 }
595 else if (CONSP (elt))
596 {
f5b79c1c
JB
597 if (EQ (idx, XCONS (elt)->car))
598 {
599 XCONS (elt)->cdr = def;
600 return def;
601 }
783a2838
KH
602 }
603 else if (SYMBOLP (elt))
604 {
f5b79c1c
JB
605 /* If we find a 'keymap' symbol in the spine of KEYMAP,
606 then we must have found the start of a second keymap
607 being used as the tail of KEYMAP, and a binding for IDX
608 should be inserted before it. */
609 if (EQ (elt, Qkeymap))
610 goto keymap_end;
f5b79c1c 611 }
0188441d
JB
612
613 QUIT;
2c6f1a39 614 }
2c6f1a39 615
f5b79c1c
JB
616 keymap_end:
617 /* We have scanned the entire keymap, and not found a binding for
618 IDX. Let's add one. */
32ce36ad
RS
619 XCONS (insertion_point)->cdr
620 = Fcons (Fcons (idx, def), XCONS (insertion_point)->cdr);
f5b79c1c
JB
621 }
622
2c6f1a39
JB
623 return def;
624}
625
f5b79c1c 626
2c6f1a39
JB
627DEFUN ("copy-keymap", Fcopy_keymap, Scopy_keymap, 1, 1, 0,
628 "Return a copy of the keymap KEYMAP.\n\
629The copy starts out with the same definitions of KEYMAP,\n\
630but changing either the copy or KEYMAP does not affect the other.\n\
1d8d96fa
JB
631Any key definitions that are subkeymaps are recursively copied.\n\
632However, a key definition which is a symbol whose definition is a keymap\n\
633is not copied.")
2c6f1a39
JB
634 (keymap)
635 Lisp_Object keymap;
636{
637 register Lisp_Object copy, tail;
638
639 copy = Fcopy_alist (get_keymap (keymap));
2c6f1a39 640
f5b79c1c 641 for (tail = copy; CONSP (tail); tail = XCONS (tail)->cdr)
2c6f1a39 642 {
e9b6dfb0 643 Lisp_Object elt;
2c6f1a39 644
e9b6dfb0 645 elt = XCONS (tail)->car;
416349ec 646 if (VECTORP (elt))
2c6f1a39 647 {
f5b79c1c 648 int i;
2c6f1a39 649
f5b79c1c
JB
650 elt = Fcopy_sequence (elt);
651 XCONS (tail)->car = elt;
2c6f1a39 652
926a64aa 653 for (i = 0; i < XVECTOR (elt)->size; i++)
416349ec 654 if (!SYMBOLP (XVECTOR (elt)->contents[i])
98006242 655 && ! NILP (Fkeymapp (XVECTOR (elt)->contents[i])))
f5b79c1c
JB
656 XVECTOR (elt)->contents[i] =
657 Fcopy_keymap (XVECTOR (elt)->contents[i]);
2c6f1a39 658 }
d65a13c5
KH
659 else if (CONSP (elt))
660 {
661 /* Skip the optional menu string. */
662 if (CONSP (XCONS (elt)->cdr)
663 && STRINGP (XCONS (XCONS (elt)->cdr)->car))
664 {
665 Lisp_Object tem;
666
667 /* Copy the cell, since copy-alist didn't go this deep. */
668 XCONS (elt)->cdr = Fcons (XCONS (XCONS (elt)->cdr)->car,
669 XCONS (XCONS (elt)->cdr)->cdr);
670 elt = XCONS (elt)->cdr;
671
672 /* Also skip the optional menu help string. */
673 if (CONSP (XCONS (elt)->cdr)
674 && STRINGP (XCONS (XCONS (elt)->cdr)->car))
675 {
676 XCONS (elt)->cdr = Fcons (XCONS (XCONS (elt)->cdr)->car,
677 XCONS (XCONS (elt)->cdr)->cdr);
678 elt = XCONS (elt)->cdr;
679 }
680 /* There may also be a list that caches key equivalences.
681 Just delete it for the new keymap. */
682 if (CONSP (XCONS (elt)->cdr)
683 && CONSP (XCONS (XCONS (elt)->cdr)->car)
684 && (NILP (tem = XCONS (XCONS (XCONS (elt)->cdr)->car)->car)
685 || VECTORP (tem)))
686 XCONS (elt)->cdr = XCONS (XCONS (elt)->cdr)->cdr;
687 }
688 if (CONSP (elt)
689 && ! SYMBOLP (XCONS (elt)->cdr)
690 && ! NILP (Fkeymapp (XCONS (elt)->cdr)))
691 XCONS (elt)->cdr = Fcopy_keymap (XCONS (elt)->cdr);
692 }
2c6f1a39
JB
693 }
694
695 return copy;
696}
697\f
cc0a8174
JB
698/* Simple Keymap mutators and accessors. */
699
21a0d7a0
RS
700/* GC is possible in this function if it autoloads a keymap. */
701
2c6f1a39
JB
702DEFUN ("define-key", Fdefine_key, Sdefine_key, 3, 3, 0,
703 "Args KEYMAP, KEY, DEF. Define key sequence KEY, in KEYMAP, as DEF.\n\
704KEYMAP is a keymap. KEY is a string or a vector of symbols and characters\n\
705meaning a sequence of keystrokes and events.\n\
c818754b
RS
706Non-ASCII characters with codes above 127 (such as ISO Latin-1)\n\
707can be included if you use a vector.\n\
2c6f1a39
JB
708DEF is anything that can be a key's definition:\n\
709 nil (means key is undefined in this keymap),\n\
710 a command (a Lisp function suitable for interactive calling)\n\
711 a string (treated as a keyboard macro),\n\
712 a keymap (to define a prefix key),\n\
713 a symbol. When the key is looked up, the symbol will stand for its\n\
714 function definition, which should at that time be one of the above,\n\
715 or another symbol whose function definition is used, etc.\n\
716 a cons (STRING . DEFN), meaning that DEFN is the definition\n\
717 (DEFN should be a valid definition in its own right),\n\
6e8290aa
JB
718 or a cons (KEYMAP . CHAR), meaning use definition of CHAR in map KEYMAP.\n\
719\n\
720If KEYMAP is a sparse keymap, the pair binding KEY to DEF is added at\n\
721the front of KEYMAP.")
2c6f1a39 722 (keymap, key, def)
d09b2024 723 Lisp_Object keymap;
2c6f1a39
JB
724 Lisp_Object key;
725 Lisp_Object def;
726{
727 register int idx;
728 register Lisp_Object c;
729 register Lisp_Object tem;
730 register Lisp_Object cmd;
731 int metized = 0;
6ba6e250 732 int meta_bit;
2c6f1a39 733 int length;
d09b2024 734 struct gcpro gcpro1, gcpro2, gcpro3;
2c6f1a39 735
224a16e8 736 keymap = get_keymap_1 (keymap, 1, 1);
2c6f1a39 737
416349ec 738 if (!VECTORP (key) && !STRINGP (key))
2c6f1a39
JB
739 key = wrong_type_argument (Qarrayp, key);
740
d09b2024 741 length = XFASTINT (Flength (key));
2c6f1a39
JB
742 if (length == 0)
743 return Qnil;
744
107fd03d
RS
745 if (SYMBOLP (def) && !EQ (Vdefine_key_rebound_commands, Qt))
746 Vdefine_key_rebound_commands = Fcons (def, Vdefine_key_rebound_commands);
747
d09b2024
JB
748 GCPRO3 (keymap, key, def);
749
416349ec 750 if (VECTORP (key))
6ba6e250
RS
751 meta_bit = meta_modifier;
752 else
753 meta_bit = 0x80;
754
2c6f1a39
JB
755 idx = 0;
756 while (1)
757 {
758 c = Faref (key, make_number (idx));
759
f09bc924 760 if (CONSP (c) && lucid_event_type_list_p (c))
41015a19 761 c = Fevent_convert_list (c);
f09bc924 762
416349ec 763 if (INTEGERP (c)
6ba6e250 764 && (XINT (c) & meta_bit)
2c6f1a39
JB
765 && !metized)
766 {
767 c = meta_prefix_char;
768 metized = 1;
769 }
770 else
771 {
416349ec 772 if (INTEGERP (c))
0b8fc2d4 773 XSETINT (c, XINT (c) & ~meta_bit);
2c6f1a39
JB
774
775 metized = 0;
776 idx++;
777 }
778
5907b863 779 if (! INTEGERP (c) && ! SYMBOLP (c) && ! CONSP (c))
4b04c52e 780 error ("Key sequence contains invalid events");
5907b863 781
2c6f1a39 782 if (idx == length)
d09b2024 783 RETURN_UNGCPRO (store_in_keymap (keymap, c, def));
2c6f1a39 784
224a16e8 785 cmd = get_keyelt (access_keymap (keymap, c, 0, 1), 1);
2c6f1a39 786
c07aec97 787 /* If this key is undefined, make it a prefix. */
265a9e55 788 if (NILP (cmd))
c07aec97 789 cmd = define_as_prefix (keymap, c);
2c6f1a39 790
d09b2024
JB
791 keymap = get_keymap_1 (cmd, 0, 1);
792 if (NILP (keymap))
e9b6dfb0
KH
793 /* We must use Fkey_description rather than just passing key to
794 error; key might be a vector, not a string. */
795 error ("Key sequence %s uses invalid prefix characters",
796 XSTRING (Fkey_description (key))->data);
2c6f1a39
JB
797 }
798}
799
800/* Value is number if KEY is too long; NIL if valid but has no definition. */
21a0d7a0 801/* GC is possible in this function if it autoloads a keymap. */
2c6f1a39 802
7c140252 803DEFUN ("lookup-key", Flookup_key, Slookup_key, 2, 3, 0,
2c6f1a39
JB
804 "In keymap KEYMAP, look up key sequence KEY. Return the definition.\n\
805nil means undefined. See doc of `define-key' for kinds of definitions.\n\
7c140252 806\n\
2c6f1a39
JB
807A number as value means KEY is \"too long\";\n\
808that is, characters or symbols in it except for the last one\n\
809fail to be a valid sequence of prefix characters in KEYMAP.\n\
810The number is how many characters at the front of KEY\n\
7c140252
JB
811it takes to reach a non-prefix command.\n\
812\n\
813Normally, `lookup-key' ignores bindings for t, which act as default\n\
814bindings, used when nothing else in the keymap applies; this makes it\n\
b31a4218 815usable as a general function for probing keymaps. However, if the\n\
7c140252
JB
816third optional argument ACCEPT-DEFAULT is non-nil, `lookup-key' will\n\
817recognize the default bindings, just as `read-key-sequence' does.")
818 (keymap, key, accept_default)
2c6f1a39
JB
819 register Lisp_Object keymap;
820 Lisp_Object key;
7c140252 821 Lisp_Object accept_default;
2c6f1a39
JB
822{
823 register int idx;
824 register Lisp_Object tem;
825 register Lisp_Object cmd;
826 register Lisp_Object c;
827 int metized = 0;
828 int length;
7c140252 829 int t_ok = ! NILP (accept_default);
6ba6e250 830 int meta_bit;
21a0d7a0 831 struct gcpro gcpro1;
2c6f1a39 832
224a16e8 833 keymap = get_keymap_1 (keymap, 1, 1);
2c6f1a39 834
416349ec 835 if (!VECTORP (key) && !STRINGP (key))
2c6f1a39
JB
836 key = wrong_type_argument (Qarrayp, key);
837
d09b2024 838 length = XFASTINT (Flength (key));
2c6f1a39
JB
839 if (length == 0)
840 return keymap;
841
416349ec 842 if (VECTORP (key))
6ba6e250
RS
843 meta_bit = meta_modifier;
844 else
845 meta_bit = 0x80;
846
21a0d7a0
RS
847 GCPRO1 (key);
848
2c6f1a39
JB
849 idx = 0;
850 while (1)
851 {
852 c = Faref (key, make_number (idx));
853
f09bc924 854 if (CONSP (c) && lucid_event_type_list_p (c))
41015a19 855 c = Fevent_convert_list (c);
f09bc924 856
416349ec 857 if (INTEGERP (c)
6ba6e250 858 && (XINT (c) & meta_bit)
2c6f1a39
JB
859 && !metized)
860 {
861 c = meta_prefix_char;
862 metized = 1;
863 }
864 else
865 {
416349ec 866 if (INTEGERP (c))
6ba6e250 867 XSETINT (c, XINT (c) & ~meta_bit);
2c6f1a39
JB
868
869 metized = 0;
870 idx++;
871 }
872
224a16e8 873 cmd = get_keyelt (access_keymap (keymap, c, t_ok, 0), 1);
2c6f1a39 874 if (idx == length)
21a0d7a0 875 RETURN_UNGCPRO (cmd);
2c6f1a39 876
224a16e8 877 keymap = get_keymap_1 (cmd, 0, 1);
d09b2024 878 if (NILP (keymap))
21a0d7a0 879 RETURN_UNGCPRO (make_number (idx));
2c6f1a39 880
2c6f1a39
JB
881 QUIT;
882 }
883}
884
c07aec97
RS
885/* Make KEYMAP define event C as a keymap (i.e., as a prefix).
886 Assume that currently it does not define C at all.
887 Return the keymap. */
888
889static Lisp_Object
890define_as_prefix (keymap, c)
891 Lisp_Object keymap, c;
892{
893 Lisp_Object inherit, cmd;
894
895 cmd = Fmake_sparse_keymap (Qnil);
896 /* If this key is defined as a prefix in an inherited keymap,
897 make it a prefix in this map, and make its definition
898 inherit the other prefix definition. */
899 inherit = access_keymap (keymap, c, 0, 0);
7d58ed99
RS
900#if 0
901 /* This code is needed to do the right thing in the following case:
902 keymap A inherits from B,
903 you define KEY as a prefix in A,
904 then later you define KEY as a prefix in B.
905 We want the old prefix definition in A to inherit from that in B.
906 It is hard to do that retroactively, so this code
907 creates the prefix in B right away.
908
909 But it turns out that this code causes problems immediately
910 when the prefix in A is defined: it causes B to define KEY
911 as a prefix with no subcommands.
912
913 So I took out this code. */
c07aec97
RS
914 if (NILP (inherit))
915 {
916 /* If there's an inherited keymap
917 and it doesn't define this key,
918 make it define this key. */
919 Lisp_Object tail;
920
921 for (tail = Fcdr (keymap); CONSP (tail); tail = XCONS (tail)->cdr)
922 if (EQ (XCONS (tail)->car, Qkeymap))
923 break;
924
925 if (!NILP (tail))
926 inherit = define_as_prefix (tail, c);
927 }
7d58ed99 928#endif
c07aec97
RS
929
930 cmd = nconc2 (cmd, inherit);
931 store_in_keymap (keymap, c, cmd);
932
933 return cmd;
934}
935
0b8fc2d4
RS
936/* Append a key to the end of a key sequence. We always make a vector. */
937
2c6f1a39
JB
938Lisp_Object
939append_key (key_sequence, key)
940 Lisp_Object key_sequence, key;
941{
942 Lisp_Object args[2];
943
944 args[0] = key_sequence;
945
0b8fc2d4
RS
946 args[1] = Fcons (key, Qnil);
947 return Fvconcat (2, args);
2c6f1a39
JB
948}
949
950\f
cc0a8174
JB
951/* Global, local, and minor mode keymap stuff. */
952
265a9e55 953/* We can't put these variables inside current_minor_maps, since under
6bbbd9b0
JB
954 some systems, static gets macro-defined to be the empty string.
955 Ickypoo. */
265a9e55
JB
956static Lisp_Object *cmm_modes, *cmm_maps;
957static int cmm_size;
958
fbb90829
KH
959/* Error handler used in current_minor_maps. */
960static Lisp_Object
961current_minor_maps_error ()
962{
963 return Qnil;
964}
965
cc0a8174
JB
966/* Store a pointer to an array of the keymaps of the currently active
967 minor modes in *buf, and return the number of maps it contains.
968
969 This function always returns a pointer to the same buffer, and may
970 free or reallocate it, so if you want to keep it for a long time or
971 hand it out to lisp code, copy it. This procedure will be called
972 for every key sequence read, so the nice lispy approach (return a
973 new assoclist, list, what have you) for each invocation would
974 result in a lot of consing over time.
975
976 If we used xrealloc/xmalloc and ran out of memory, they would throw
977 back to the command loop, which would try to read a key sequence,
978 which would call this function again, resulting in an infinite
979 loop. Instead, we'll use realloc/malloc and silently truncate the
980 list, let the key sequence be read, and hope some other piece of
981 code signals the error. */
982int
983current_minor_maps (modeptr, mapptr)
984 Lisp_Object **modeptr, **mapptr;
985{
cc0a8174 986 int i = 0;
6bbbd9b0 987 Lisp_Object alist, assoc, var, val;
cc0a8174
JB
988
989 for (alist = Vminor_mode_map_alist;
990 CONSP (alist);
991 alist = XCONS (alist)->cdr)
9f56ecfc
KH
992 if ((assoc = XCONS (alist)->car, CONSP (assoc))
993 && (var = XCONS (assoc)->car, SYMBOLP (var))
994 && (val = find_symbol_value (var), ! EQ (val, Qunbound))
6bbbd9b0 995 && ! NILP (val))
cc0a8174 996 {
fbb90829
KH
997 Lisp_Object temp;
998
265a9e55 999 if (i >= cmm_size)
cc0a8174
JB
1000 {
1001 Lisp_Object *newmodes, *newmaps;
1002
265a9e55 1003 if (cmm_maps)
cc0a8174 1004 {
9ac0d9e0 1005 BLOCK_INPUT;
e58077c8 1006 cmm_size *= 2;
64116ad5
RS
1007 newmodes
1008 = (Lisp_Object *) realloc (cmm_modes,
1009 cmm_size * sizeof (Lisp_Object));
1010 newmaps
1011 = (Lisp_Object *) realloc (cmm_maps,
1012 cmm_size * sizeof (Lisp_Object));
9ac0d9e0 1013 UNBLOCK_INPUT;
cc0a8174
JB
1014 }
1015 else
1016 {
9ac0d9e0 1017 BLOCK_INPUT;
e58077c8 1018 cmm_size = 30;
64116ad5
RS
1019 newmodes
1020 = (Lisp_Object *) malloc (cmm_size * sizeof (Lisp_Object));
1021 newmaps
1022 = (Lisp_Object *) malloc (cmm_size * sizeof (Lisp_Object));
9ac0d9e0 1023 UNBLOCK_INPUT;
cc0a8174
JB
1024 }
1025
1026 if (newmaps && newmodes)
1027 {
265a9e55
JB
1028 cmm_modes = newmodes;
1029 cmm_maps = newmaps;
cc0a8174
JB
1030 }
1031 else
1032 break;
1033 }
fbb90829
KH
1034
1035 /* Get the keymap definition--or nil if it is not defined. */
1036 temp = internal_condition_case_1 (Findirect_function,
1037 XCONS (assoc)->cdr,
1038 Qerror, current_minor_maps_error);
1039 if (!NILP (temp))
1040 {
1041 cmm_modes[i] = var;
1042 cmm_maps [i] = temp;
1043 i++;
1044 }
cc0a8174
JB
1045 }
1046
265a9e55
JB
1047 if (modeptr) *modeptr = cmm_modes;
1048 if (mapptr) *mapptr = cmm_maps;
cc0a8174
JB
1049 return i;
1050}
1051
21a0d7a0
RS
1052/* GC is possible in this function if it autoloads a keymap. */
1053
7c140252 1054DEFUN ("key-binding", Fkey_binding, Skey_binding, 1, 2, 0,
2c6f1a39 1055 "Return the binding for command KEY in current keymaps.\n\
7c140252
JB
1056KEY is a string or vector, a sequence of keystrokes.\n\
1057The binding is probably a symbol with a function definition.\n\
1058\n\
1059Normally, `key-binding' ignores bindings for t, which act as default\n\
1060bindings, used when nothing else in the keymap applies; this makes it\n\
d831234b
RS
1061usable as a general function for probing keymaps. However, if the\n\
1062optional second argument ACCEPT-DEFAULT is non-nil, `key-binding' does\n\
7c140252
JB
1063recognize the default bindings, just as `read-key-sequence' does.")
1064 (key, accept_default)
c2a2858a 1065 Lisp_Object key, accept_default;
2c6f1a39 1066{
cc0a8174
JB
1067 Lisp_Object *maps, value;
1068 int nmaps, i;
21a0d7a0
RS
1069 struct gcpro gcpro1;
1070
1071 GCPRO1 (key);
cc0a8174 1072
e784236d
KH
1073 if (!NILP (current_kboard->Voverriding_terminal_local_map))
1074 {
1075 value = Flookup_key (current_kboard->Voverriding_terminal_local_map,
1076 key, accept_default);
1077 if (! NILP (value) && !INTEGERP (value))
1078 RETURN_UNGCPRO (value);
1079 }
1080 else if (!NILP (Voverriding_local_map))
2c6f1a39 1081 {
7d92e329 1082 value = Flookup_key (Voverriding_local_map, key, accept_default);
416349ec 1083 if (! NILP (value) && !INTEGERP (value))
21a0d7a0 1084 RETURN_UNGCPRO (value);
2c6f1a39 1085 }
7d92e329
RS
1086 else
1087 {
d964248c
KH
1088 Lisp_Object local;
1089
7d92e329 1090 nmaps = current_minor_maps (0, &maps);
21a0d7a0
RS
1091 /* Note that all these maps are GCPRO'd
1092 in the places where we found them. */
1093
7d92e329
RS
1094 for (i = 0; i < nmaps; i++)
1095 if (! NILP (maps[i]))
1096 {
1097 value = Flookup_key (maps[i], key, accept_default);
416349ec 1098 if (! NILP (value) && !INTEGERP (value))
21a0d7a0 1099 RETURN_UNGCPRO (value);
7d92e329
RS
1100 }
1101
d964248c
KH
1102 local = get_local_map (PT, current_buffer);
1103
1104 if (! NILP (local))
7d92e329 1105 {
d964248c 1106 value = Flookup_key (local, key, accept_default);
416349ec 1107 if (! NILP (value) && !INTEGERP (value))
21a0d7a0 1108 RETURN_UNGCPRO (value);
7d92e329
RS
1109 }
1110 }
cc0a8174 1111
7c140252 1112 value = Flookup_key (current_global_map, key, accept_default);
21a0d7a0 1113 UNGCPRO;
416349ec 1114 if (! NILP (value) && !INTEGERP (value))
cc0a8174
JB
1115 return value;
1116
1117 return Qnil;
2c6f1a39
JB
1118}
1119
21a0d7a0
RS
1120/* GC is possible in this function if it autoloads a keymap. */
1121
7c140252 1122DEFUN ("local-key-binding", Flocal_key_binding, Slocal_key_binding, 1, 2, 0,
2c6f1a39
JB
1123 "Return the binding for command KEYS in current local keymap only.\n\
1124KEYS is a string, a sequence of keystrokes.\n\
7c140252
JB
1125The binding is probably a symbol with a function definition.\n\
1126\n\
1127If optional argument ACCEPT-DEFAULT is non-nil, recognize default\n\
1128bindings; see the description of `lookup-key' for more details about this.")
1129 (keys, accept_default)
1130 Lisp_Object keys, accept_default;
2c6f1a39
JB
1131{
1132 register Lisp_Object map;
1133 map = current_buffer->keymap;
265a9e55 1134 if (NILP (map))
2c6f1a39 1135 return Qnil;
7c140252 1136 return Flookup_key (map, keys, accept_default);
2c6f1a39
JB
1137}
1138
21a0d7a0
RS
1139/* GC is possible in this function if it autoloads a keymap. */
1140
7c140252 1141DEFUN ("global-key-binding", Fglobal_key_binding, Sglobal_key_binding, 1, 2, 0,
2c6f1a39
JB
1142 "Return the binding for command KEYS in current global keymap only.\n\
1143KEYS is a string, a sequence of keystrokes.\n\
6bbbd9b0
JB
1144The binding is probably a symbol with a function definition.\n\
1145This function's return values are the same as those of lookup-key\n\
21a0d7a0 1146\(which see).\n\
7c140252
JB
1147\n\
1148If optional argument ACCEPT-DEFAULT is non-nil, recognize default\n\
1149bindings; see the description of `lookup-key' for more details about this.")
1150 (keys, accept_default)
1151 Lisp_Object keys, accept_default;
2c6f1a39 1152{
7c140252 1153 return Flookup_key (current_global_map, keys, accept_default);
2c6f1a39
JB
1154}
1155
21a0d7a0
RS
1156/* GC is possible in this function if it autoloads a keymap. */
1157
7c140252 1158DEFUN ("minor-mode-key-binding", Fminor_mode_key_binding, Sminor_mode_key_binding, 1, 2, 0,
cc0a8174
JB
1159 "Find the visible minor mode bindings of KEY.\n\
1160Return an alist of pairs (MODENAME . BINDING), where MODENAME is the\n\
1161the symbol which names the minor mode binding KEY, and BINDING is\n\
1162KEY's definition in that mode. In particular, if KEY has no\n\
1163minor-mode bindings, return nil. If the first binding is a\n\
1164non-prefix, all subsequent bindings will be omitted, since they would\n\
1165be ignored. Similarly, the list doesn't include non-prefix bindings\n\
7c140252
JB
1166that come after prefix bindings.\n\
1167\n\
1168If optional argument ACCEPT-DEFAULT is non-nil, recognize default\n\
1169bindings; see the description of `lookup-key' for more details about this.")
1170 (key, accept_default)
1171 Lisp_Object key, accept_default;
cc0a8174
JB
1172{
1173 Lisp_Object *modes, *maps;
1174 int nmaps;
1175 Lisp_Object binding;
1176 int i, j;
21a0d7a0 1177 struct gcpro gcpro1, gcpro2;
cc0a8174
JB
1178
1179 nmaps = current_minor_maps (&modes, &maps);
21a0d7a0
RS
1180 /* Note that all these maps are GCPRO'd
1181 in the places where we found them. */
1182
1183 binding = Qnil;
1184 GCPRO2 (key, binding);
cc0a8174
JB
1185
1186 for (i = j = 0; i < nmaps; i++)
265a9e55 1187 if (! NILP (maps[i])
7c140252 1188 && ! NILP (binding = Flookup_key (maps[i], key, accept_default))
416349ec 1189 && !INTEGERP (binding))
cc0a8174 1190 {
d09b2024 1191 if (! NILP (get_keymap (binding)))
cc0a8174
JB
1192 maps[j++] = Fcons (modes[i], binding);
1193 else if (j == 0)
21a0d7a0 1194 RETURN_UNGCPRO (Fcons (Fcons (modes[i], binding), Qnil));
cc0a8174
JB
1195 }
1196
21a0d7a0 1197 UNGCPRO;
cc0a8174
JB
1198 return Flist (j, maps);
1199}
1200
2c6f1a39 1201DEFUN ("define-prefix-command", Fdefine_prefix_command, Sdefine_prefix_command, 1, 2, 0,
cd8520b9 1202 "Define COMMAND as a prefix command. COMMAND should be a symbol.\n\
2c6f1a39 1203A new sparse keymap is stored as COMMAND's function definition and its value.\n\
1d8d96fa
JB
1204If a second optional argument MAPVAR is given, the map is stored as\n\
1205its value instead of as COMMAND's value; but COMMAND is still defined\n\
1206as a function.")
88539837
EN
1207 (command, mapvar)
1208 Lisp_Object command, mapvar;
2c6f1a39
JB
1209{
1210 Lisp_Object map;
ce6e5d0b 1211 map = Fmake_sparse_keymap (Qnil);
88539837 1212 Ffset (command, map);
265a9e55 1213 if (!NILP (mapvar))
2c6f1a39
JB
1214 Fset (mapvar, map);
1215 else
88539837
EN
1216 Fset (command, map);
1217 return command;
2c6f1a39
JB
1218}
1219
1220DEFUN ("use-global-map", Fuse_global_map, Suse_global_map, 1, 1, 0,
1221 "Select KEYMAP as the global keymap.")
1222 (keymap)
1223 Lisp_Object keymap;
1224{
1225 keymap = get_keymap (keymap);
1226 current_global_map = keymap;
6f27e7a2 1227
2c6f1a39
JB
1228 return Qnil;
1229}
1230
1231DEFUN ("use-local-map", Fuse_local_map, Suse_local_map, 1, 1, 0,
1232 "Select KEYMAP as the local keymap.\n\
1233If KEYMAP is nil, that means no local keymap.")
1234 (keymap)
1235 Lisp_Object keymap;
1236{
265a9e55 1237 if (!NILP (keymap))
2c6f1a39
JB
1238 keymap = get_keymap (keymap);
1239
1240 current_buffer->keymap = keymap;
1241
1242 return Qnil;
1243}
1244
1245DEFUN ("current-local-map", Fcurrent_local_map, Scurrent_local_map, 0, 0, 0,
1246 "Return current buffer's local keymap, or nil if it has none.")
1247 ()
1248{
1249 return current_buffer->keymap;
1250}
1251
1252DEFUN ("current-global-map", Fcurrent_global_map, Scurrent_global_map, 0, 0, 0,
1253 "Return the current global keymap.")
1254 ()
1255{
1256 return current_global_map;
1257}
cc0a8174
JB
1258
1259DEFUN ("current-minor-mode-maps", Fcurrent_minor_mode_maps, Scurrent_minor_mode_maps, 0, 0, 0,
1260 "Return a list of keymaps for the minor modes of the current buffer.")
1261 ()
1262{
1263 Lisp_Object *maps;
1264 int nmaps = current_minor_maps (0, &maps);
1265
1266 return Flist (nmaps, maps);
1267}
2c6f1a39 1268\f
cc0a8174
JB
1269/* Help functions for describing and documenting keymaps. */
1270
21a0d7a0
RS
1271/* This function cannot GC. */
1272
2c6f1a39 1273DEFUN ("accessible-keymaps", Faccessible_keymaps, Saccessible_keymaps,
53c8f9fa 1274 1, 2, 0,
2c6f1a39
JB
1275 "Find all keymaps accessible via prefix characters from KEYMAP.\n\
1276Returns a list of elements of the form (KEYS . MAP), where the sequence\n\
1277KEYS starting from KEYMAP gets you to MAP. These elements are ordered\n\
c3f27064 1278so that the KEYS increase in length. The first element is ([] . KEYMAP).\n\
f66ef185
RS
1279An optional argument PREFIX, if non-nil, should be a key sequence;\n\
1280then the value includes only maps for prefixes that start with PREFIX.")
88539837
EN
1281 (keymap, prefix)
1282 Lisp_Object keymap, prefix;
2c6f1a39 1283{
53c8f9fa
RS
1284 Lisp_Object maps, good_maps, tail;
1285 int prefixlen = 0;
1286
21a0d7a0
RS
1287 /* no need for gcpro because we don't autoload any keymaps. */
1288
53c8f9fa
RS
1289 if (!NILP (prefix))
1290 prefixlen = XINT (Flength (prefix));
2c6f1a39 1291
44a4a59b
RS
1292 if (!NILP (prefix))
1293 {
1294 /* If a prefix was specified, start with the keymap (if any) for
1295 that prefix, so we don't waste time considering other prefixes. */
1296 Lisp_Object tem;
88539837 1297 tem = Flookup_key (keymap, prefix, Qt);
1ae2097f
RS
1298 /* Flookup_key may give us nil, or a number,
1299 if the prefix is not defined in this particular map.
1300 It might even give us a list that isn't a keymap. */
1301 tem = get_keymap_1 (tem, 0, 0);
44a4a59b 1302 if (!NILP (tem))
67fc16a3
RS
1303 {
1304 /* Convert PREFIX to a vector now, so that later on
1305 we don't have to deal with the possibility of a string. */
1306 if (STRINGP (prefix))
1307 {
1308 int i;
1309 Lisp_Object copy;
1310
1311 copy = Fmake_vector (make_number (XSTRING (prefix)->size), Qnil);
1312 for (i = 0; i < XSTRING (prefix)->size; i++)
1313 {
1314 int c = XSTRING (prefix)->data[i];
1315 if (c & 0200)
1316 c ^= 0200 | meta_modifier;
1317 XVECTOR (copy)->contents[i] = make_number (c);
1318 }
1319 prefix = copy;
1320 }
1321 maps = Fcons (Fcons (prefix, tem), Qnil);
1322 }
44a4a59b
RS
1323 else
1324 return Qnil;
1325 }
1326 else
1327 maps = Fcons (Fcons (Fmake_vector (make_number (0), Qnil),
88539837 1328 get_keymap (keymap)),
44a4a59b 1329 Qnil);
2c6f1a39
JB
1330
1331 /* For each map in the list maps,
1332 look at any other maps it points to,
1333 and stick them at the end if they are not already in the list.
1334
1335 This is a breadth-first traversal, where tail is the queue of
1336 nodes, and maps accumulates a list of all nodes visited. */
1337
f5b79c1c 1338 for (tail = maps; CONSP (tail); tail = XCONS (tail)->cdr)
2c6f1a39 1339 {
e9b6dfb0
KH
1340 register Lisp_Object thisseq, thismap;
1341 Lisp_Object last;
2c6f1a39 1342 /* Does the current sequence end in the meta-prefix-char? */
e9b6dfb0
KH
1343 int is_metized;
1344
1345 thisseq = Fcar (Fcar (tail));
1346 thismap = Fcdr (Fcar (tail));
1347 last = make_number (XINT (Flength (thisseq)) - 1);
1348 is_metized = (XINT (last) >= 0
97ae4b89
RS
1349 /* Don't metize the last char of PREFIX. */
1350 && XINT (last) >= prefixlen
e9b6dfb0 1351 && EQ (Faref (thisseq, last), meta_prefix_char));
2c6f1a39 1352
f5b79c1c 1353 for (; CONSP (thismap); thismap = XCONS (thismap)->cdr)
2c6f1a39 1354 {
e9b6dfb0
KH
1355 Lisp_Object elt;
1356
1357 elt = XCONS (thismap)->car;
2c6f1a39 1358
f5b79c1c
JB
1359 QUIT;
1360
416349ec 1361 if (VECTORP (elt))
2c6f1a39
JB
1362 {
1363 register int i;
1364
1365 /* Vector keymap. Scan all the elements. */
db6f9d95 1366 for (i = 0; i < XVECTOR (elt)->size; i++)
2c6f1a39
JB
1367 {
1368 register Lisp_Object tem;
1369 register Lisp_Object cmd;
1370
224a16e8 1371 cmd = get_keyelt (XVECTOR (elt)->contents[i], 0);
265a9e55 1372 if (NILP (cmd)) continue;
2c6f1a39 1373 tem = Fkeymapp (cmd);
265a9e55 1374 if (!NILP (tem))
2c6f1a39
JB
1375 {
1376 cmd = get_keymap (cmd);
1377 /* Ignore keymaps that are already added to maps. */
1378 tem = Frassq (cmd, maps);
265a9e55 1379 if (NILP (tem))
2c6f1a39
JB
1380 {
1381 /* If the last key in thisseq is meta-prefix-char,
1382 turn it into a meta-ized keystroke. We know
1383 that the event we're about to append is an
f5b79c1c
JB
1384 ascii keystroke since we're processing a
1385 keymap table. */
2c6f1a39
JB
1386 if (is_metized)
1387 {
0b8fc2d4 1388 int meta_bit = meta_modifier;
2c6f1a39 1389 tem = Fcopy_sequence (thisseq);
0b8fc2d4
RS
1390
1391 Faset (tem, last, make_number (i | meta_bit));
2c6f1a39
JB
1392
1393 /* This new sequence is the same length as
1394 thisseq, so stick it in the list right
1395 after this one. */
0b8fc2d4
RS
1396 XCONS (tail)->cdr
1397 = Fcons (Fcons (tem, cmd), XCONS (tail)->cdr);
2c6f1a39
JB
1398 }
1399 else
1400 {
1401 tem = append_key (thisseq, make_number (i));
1402 nconc2 (tail, Fcons (Fcons (tem, cmd), Qnil));
1403 }
1404 }
1405 }
1406 }
f5b79c1c
JB
1407 }
1408 else if (CONSP (elt))
2c6f1a39 1409 {
e9b6dfb0 1410 register Lisp_Object cmd, tem, filter;
2c6f1a39 1411
224a16e8 1412 cmd = get_keyelt (XCONS (elt)->cdr, 0);
2c6f1a39
JB
1413 /* Ignore definitions that aren't keymaps themselves. */
1414 tem = Fkeymapp (cmd);
265a9e55 1415 if (!NILP (tem))
2c6f1a39
JB
1416 {
1417 /* Ignore keymaps that have been seen already. */
1418 cmd = get_keymap (cmd);
1419 tem = Frassq (cmd, maps);
265a9e55 1420 if (NILP (tem))
2c6f1a39 1421 {
53c8f9fa 1422 /* Let elt be the event defined by this map entry. */
2c6f1a39
JB
1423 elt = XCONS (elt)->car;
1424
1425 /* If the last key in thisseq is meta-prefix-char, and
1426 this entry is a binding for an ascii keystroke,
1427 turn it into a meta-ized keystroke. */
416349ec 1428 if (is_metized && INTEGERP (elt))
2c6f1a39 1429 {
97ae4b89
RS
1430 Lisp_Object element;
1431
1432 element = thisseq;
1433 tem = Fvconcat (1, &element);
1434 XVECTOR (tem)->contents[XINT (last)]
1435 = XINT (elt) | meta_modifier;
2c6f1a39
JB
1436
1437 /* This new sequence is the same length as
1438 thisseq, so stick it in the list right
1439 after this one. */
53c8f9fa
RS
1440 XCONS (tail)->cdr
1441 = Fcons (Fcons (tem, cmd), XCONS (tail)->cdr);
2c6f1a39
JB
1442 }
1443 else
1444 nconc2 (tail,
1445 Fcons (Fcons (append_key (thisseq, elt), cmd),
1446 Qnil));
1447 }
1448 }
1449 }
2c6f1a39 1450 }
2c6f1a39
JB
1451 }
1452
53c8f9fa
RS
1453 if (NILP (prefix))
1454 return maps;
1455
1456 /* Now find just the maps whose access prefixes start with PREFIX. */
1457
1458 good_maps = Qnil;
1459 for (; CONSP (maps); maps = XCONS (maps)->cdr)
1460 {
1461 Lisp_Object elt, thisseq;
1462 elt = XCONS (maps)->car;
1463 thisseq = XCONS (elt)->car;
1464 /* The access prefix must be at least as long as PREFIX,
1465 and the first elements must match those of PREFIX. */
1466 if (XINT (Flength (thisseq)) >= prefixlen)
1467 {
1468 int i;
1469 for (i = 0; i < prefixlen; i++)
1470 {
1471 Lisp_Object i1;
6e344130 1472 XSETFASTINT (i1, i);
53c8f9fa
RS
1473 if (!EQ (Faref (thisseq, i1), Faref (prefix, i1)))
1474 break;
1475 }
1476 if (i == prefixlen)
1477 good_maps = Fcons (elt, good_maps);
1478 }
1479 }
1480
1481 return Fnreverse (good_maps);
2c6f1a39
JB
1482}
1483
1484Lisp_Object Qsingle_key_description, Qkey_description;
1485
21a0d7a0
RS
1486/* This function cannot GC. */
1487
2c6f1a39
JB
1488DEFUN ("key-description", Fkey_description, Skey_description, 1, 1, 0,
1489 "Return a pretty description of key-sequence KEYS.\n\
1490Control characters turn into \"C-foo\" sequences, meta into \"M-foo\"\n\
1491spaces are put between sequence elements, etc.")
1492 (keys)
1493 Lisp_Object keys;
1494{
4c7d5f13
RS
1495 int len;
1496 int i;
1497 Lisp_Object sep;
1498 Lisp_Object *args;
1499
47684cd9 1500 if (STRINGP (keys))
6ba6e250
RS
1501 {
1502 Lisp_Object vector;
6ba6e250
RS
1503 vector = Fmake_vector (Flength (keys), Qnil);
1504 for (i = 0; i < XSTRING (keys)->size; i++)
1505 {
1506 if (XSTRING (keys)->data[i] & 0x80)
6e344130
KH
1507 XSETFASTINT (XVECTOR (vector)->contents[i],
1508 meta_modifier | (XSTRING (keys)->data[i] & ~0x80));
6ba6e250 1509 else
6e344130
KH
1510 XSETFASTINT (XVECTOR (vector)->contents[i],
1511 XSTRING (keys)->data[i]);
6ba6e250
RS
1512 }
1513 keys = vector;
1514 }
e283121b 1515 else if (!VECTORP (keys))
47684cd9 1516 keys = wrong_type_argument (Qarrayp, keys);
4c7d5f13
RS
1517
1518 /* In effect, this computes
1519 (mapconcat 'single-key-description keys " ")
1520 but we shouldn't use mapconcat because it can do GC. */
1521
1522 len = XVECTOR (keys)->size;
1523 sep = build_string (" ");
1524 /* This has one extra element at the end that we don't pass to Fconcat. */
1525 args = (Lisp_Object *) alloca (len * 2 * sizeof (Lisp_Object));
1526
1527 for (i = 0; i < len; i++)
1528 {
1529 args[i * 2] = Fsingle_key_description (XVECTOR (keys)->contents[i]);
1530 args[i * 2 + 1] = sep;
1531 }
1532
1533 return Fconcat (len * 2 - 1, args);
2c6f1a39
JB
1534}
1535
1536char *
1537push_key_description (c, p)
1538 register unsigned int c;
1539 register char *p;
1540{
71ac885b
RS
1541 /* Clear all the meaningless bits above the meta bit. */
1542 c &= meta_modifier | ~ - meta_modifier;
1543
6ba6e250
RS
1544 if (c & alt_modifier)
1545 {
1546 *p++ = 'A';
1547 *p++ = '-';
1548 c -= alt_modifier;
1549 }
1550 if (c & ctrl_modifier)
1551 {
1552 *p++ = 'C';
1553 *p++ = '-';
1554 c -= ctrl_modifier;
1555 }
1556 if (c & hyper_modifier)
1557 {
1558 *p++ = 'H';
1559 *p++ = '-';
1560 c -= hyper_modifier;
1561 }
1562 if (c & meta_modifier)
2c6f1a39
JB
1563 {
1564 *p++ = 'M';
1565 *p++ = '-';
6ba6e250
RS
1566 c -= meta_modifier;
1567 }
1568 if (c & shift_modifier)
1569 {
1570 *p++ = 'S';
1571 *p++ = '-';
1572 c -= shift_modifier;
1573 }
1574 if (c & super_modifier)
1575 {
1576 *p++ = 's';
1577 *p++ = '-';
1578 c -= super_modifier;
2c6f1a39
JB
1579 }
1580 if (c < 040)
1581 {
1582 if (c == 033)
1583 {
1584 *p++ = 'E';
1585 *p++ = 'S';
1586 *p++ = 'C';
1587 }
6ba6e250 1588 else if (c == '\t')
2c6f1a39
JB
1589 {
1590 *p++ = 'T';
1591 *p++ = 'A';
1592 *p++ = 'B';
1593 }
b8cab006 1594 else if (c == Ctl ('M'))
2c6f1a39
JB
1595 {
1596 *p++ = 'R';
1597 *p++ = 'E';
1598 *p++ = 'T';
1599 }
1600 else
1601 {
1602 *p++ = 'C';
1603 *p++ = '-';
1604 if (c > 0 && c <= Ctl ('Z'))
1605 *p++ = c + 0140;
1606 else
1607 *p++ = c + 0100;
1608 }
1609 }
1610 else if (c == 0177)
1611 {
1612 *p++ = 'D';
1613 *p++ = 'E';
1614 *p++ = 'L';
1615 }
1616 else if (c == ' ')
1617 {
1618 *p++ = 'S';
1619 *p++ = 'P';
1620 *p++ = 'C';
1621 }
a98f1d1d 1622 else if (c < 128)
2c6f1a39 1623 *p++ = c;
a98f1d1d 1624 else if (c < 256)
1df19f02
KH
1625 *p++ = c;
1626 else if (c < 512)
a98f1d1d 1627 {
1df19f02
KH
1628 *p++ = '\\';
1629 *p++ = (7 & (c >> 6)) + '0';
1630 *p++ = (7 & (c >> 3)) + '0';
1631 *p++ = (7 & (c >> 0)) + '0';
a98f1d1d 1632 }
6ba6e250
RS
1633 else
1634 {
1635 *p++ = '\\';
1636 *p++ = (7 & (c >> 15)) + '0';
1637 *p++ = (7 & (c >> 12)) + '0';
1638 *p++ = (7 & (c >> 9)) + '0';
1639 *p++ = (7 & (c >> 6)) + '0';
1640 *p++ = (7 & (c >> 3)) + '0';
1641 *p++ = (7 & (c >> 0)) + '0';
1642 }
2c6f1a39
JB
1643
1644 return p;
1645}
1646
21a0d7a0
RS
1647/* This function cannot GC. */
1648
2c6f1a39
JB
1649DEFUN ("single-key-description", Fsingle_key_description, Ssingle_key_description, 1, 1, 0,
1650 "Return a pretty description of command character KEY.\n\
1651Control characters turn into C-whatever, etc.")
1652 (key)
1653 Lisp_Object key;
1654{
6ba6e250 1655 char tem[20];
2c6f1a39 1656
cebd887d 1657 key = EVENT_HEAD (key);
6bbbd9b0 1658
e958fd9a 1659 if (INTEGERP (key)) /* Normal character */
2c6f1a39 1660 {
6ba6e250 1661 *push_key_description (XUINT (key), tem) = 0;
2c6f1a39 1662 return build_string (tem);
2c6f1a39 1663 }
e958fd9a
KH
1664 else if (SYMBOLP (key)) /* Function key or event-symbol */
1665 return Fsymbol_name (key);
1666 else if (STRINGP (key)) /* Buffer names in the menubar. */
1667 return Fcopy_sequence (key);
1668 else
1669 error ("KEY must be an integer, cons, symbol, or string");
2c6f1a39
JB
1670}
1671
1672char *
1673push_text_char_description (c, p)
1674 register unsigned int c;
1675 register char *p;
1676{
1677 if (c >= 0200)
1678 {
1679 *p++ = 'M';
1680 *p++ = '-';
1681 c -= 0200;
1682 }
1683 if (c < 040)
1684 {
1685 *p++ = '^';
1686 *p++ = c + 64; /* 'A' - 1 */
1687 }
1688 else if (c == 0177)
1689 {
1690 *p++ = '^';
1691 *p++ = '?';
1692 }
1693 else
1694 *p++ = c;
1695 return p;
1696}
1697
21a0d7a0
RS
1698/* This function cannot GC. */
1699
2c6f1a39 1700DEFUN ("text-char-description", Ftext_char_description, Stext_char_description, 1, 1, 0,
88539837 1701 "Return a pretty description of file-character CHARACTER.\n\
2c6f1a39 1702Control characters turn into \"^char\", etc.")
88539837
EN
1703 (character)
1704 Lisp_Object character;
2c6f1a39
JB
1705{
1706 char tem[6];
1707
88539837 1708 CHECK_NUMBER (character, 0);
2c6f1a39 1709
a98f1d1d
KH
1710 if (!SINGLE_BYTE_CHAR_P (XFASTINT (character)))
1711 {
1712 char *str;
1713 int len = non_ascii_char_to_string (XFASTINT (character), tem, &str);
1714
1715 return make_string (str, len);
1716 }
1717
88539837 1718 *push_text_char_description (XINT (character) & 0377, tem) = 0;
2c6f1a39
JB
1719
1720 return build_string (tem);
1721}
2fc66973
JB
1722
1723/* Return non-zero if SEQ contains only ASCII characters, perhaps with
1724 a meta bit. */
1725static int
1726ascii_sequence_p (seq)
1727 Lisp_Object seq;
1728{
6e344130 1729 int i;
2fc66973 1730 int len = XINT (Flength (seq));
ffab2bd6 1731
6e344130 1732 for (i = 0; i < len; i++)
2fc66973 1733 {
6e344130 1734 Lisp_Object ii, elt;
ffab2bd6 1735
6e344130
KH
1736 XSETFASTINT (ii, i);
1737 elt = Faref (seq, ii);
2fc66973 1738
416349ec 1739 if (!INTEGERP (elt)
2fc66973
JB
1740 || (XUINT (elt) & ~CHAR_META) >= 0x80)
1741 return 0;
1742 }
1743
1744 return 1;
1745}
1746
2c6f1a39 1747\f
cc0a8174
JB
1748/* where-is - finding a command in a set of keymaps. */
1749
21a0d7a0
RS
1750/* This function can GC if Flookup_key autoloads any keymaps. */
1751
f0148b5e
RS
1752DEFUN ("where-is-internal", Fwhere_is_internal, Swhere_is_internal, 1, 4, 0,
1753 "Return list of keys that invoke DEFINITION.\n\
1754If KEYMAP is non-nil, search only KEYMAP and the global keymap.\n\
1755If KEYMAP is nil, search all the currently active keymaps.\n\
2c6f1a39 1756\n\
f0148b5e 1757If optional 3rd arg FIRSTONLY is non-nil, return the first key sequence found,\n\
b8d584f6 1758rather than a list of all possible key sequences.\n\
0bc395d4
RS
1759If FIRSTONLY is the symbol `non-ascii', return the first binding found,\n\
1760no matter what it is.\n\
d7ec5fa2 1761If FIRSTONLY has another non-nil value, prefer sequences of ASCII characters,\n\
0bc395d4 1762and entirely reject menu bindings.\n\
2c6f1a39 1763\n\
f0148b5e 1764If optional 4th arg NOINDIRECT is non-nil, don't follow indirections\n\
2c6f1a39
JB
1765to other keymaps or slots. This makes it possible to search for an\n\
1766indirect definition itself.")
f0148b5e
RS
1767 (definition, keymap, firstonly, noindirect)
1768 Lisp_Object definition, keymap;
2c6f1a39
JB
1769 Lisp_Object firstonly, noindirect;
1770{
21a0d7a0
RS
1771 Lisp_Object maps;
1772 Lisp_Object found, sequence;
f0148b5e 1773 int keymap_specified = !NILP (keymap);
21a0d7a0 1774 struct gcpro gcpro1, gcpro2, gcpro3, gcpro4, gcpro5;
0bc395d4
RS
1775 /* 1 means ignore all menu bindings entirely. */
1776 int nomenus = !NILP (firstonly) && !EQ (firstonly, Qnon_ascii);
2c6f1a39 1777
f0148b5e
RS
1778 if (! keymap_specified)
1779 {
1780#ifdef USE_TEXT_PROPERTIES
1781 keymap = get_local_map (PT, current_buffer);
1782#else
1783 keymap = current_buffer->keymap;
1784#endif
1785 }
2c6f1a39 1786
f0148b5e
RS
1787 if (!NILP (keymap))
1788 maps = nconc2 (Faccessible_keymaps (get_keymap (keymap), Qnil),
1789 Faccessible_keymaps (get_keymap (current_global_map),
1790 Qnil));
2c6f1a39 1791 else
f0148b5e
RS
1792 maps = Faccessible_keymaps (get_keymap (current_global_map), Qnil);
1793
1794 /* Put the minor mode keymaps on the front. */
1795 if (! keymap_specified)
1796 {
1797 Lisp_Object minors;
1798 minors = Fnreverse (Fcurrent_minor_mode_maps ());
1799 while (!NILP (minors))
1800 {
1801 maps = nconc2 (Faccessible_keymaps (get_keymap (XCONS (minors)->car),
1802 Qnil),
1803 maps);
1804 minors = XCONS (minors)->cdr;
1805 }
1806 }
2c6f1a39 1807
21a0d7a0 1808 GCPRO5 (definition, keymap, maps, found, sequence);
2c6f1a39 1809 found = Qnil;
21a0d7a0 1810 sequence = Qnil;
2c6f1a39 1811
265a9e55 1812 for (; !NILP (maps); maps = Fcdr (maps))
2c6f1a39 1813 {
e9b6dfb0
KH
1814 /* Key sequence to reach map, and the map that it reaches */
1815 register Lisp_Object this, map;
f5b79c1c
JB
1816
1817 /* If Fcar (map) is a VECTOR, the current element within that vector. */
1818 int i = 0;
2c6f1a39
JB
1819
1820 /* In order to fold [META-PREFIX-CHAR CHAR] sequences into
1821 [M-CHAR] sequences, check if last character of the sequence
1822 is the meta-prefix char. */
e9b6dfb0
KH
1823 Lisp_Object last;
1824 int last_is_meta;
1825
1826 this = Fcar (Fcar (maps));
1827 map = Fcdr (Fcar (maps));
1828 last = make_number (XINT (Flength (this)) - 1);
1829 last_is_meta = (XINT (last) >= 0
1830 && EQ (Faref (this, last), meta_prefix_char));
2c6f1a39 1831
fde3a52f
JB
1832 QUIT;
1833
f5b79c1c 1834 while (CONSP (map))
2c6f1a39 1835 {
f5b79c1c
JB
1836 /* Because the code we want to run on each binding is rather
1837 large, we don't want to have two separate loop bodies for
1838 sparse keymap bindings and tables; we want to iterate one
1839 loop body over both keymap and vector bindings.
1840
1841 For this reason, if Fcar (map) is a vector, we don't
1842 advance map to the next element until i indicates that we
1843 have finished off the vector. */
2c6f1a39 1844
21a0d7a0 1845 Lisp_Object elt, key, binding;
e9b6dfb0 1846 elt = XCONS (map)->car;
f5b79c1c 1847
fde3a52f
JB
1848 QUIT;
1849
f5b79c1c
JB
1850 /* Set key and binding to the current key and binding, and
1851 advance map and i to the next binding. */
416349ec 1852 if (VECTORP (elt))
2c6f1a39
JB
1853 {
1854 /* In a vector, look at each element. */
f5b79c1c 1855 binding = XVECTOR (elt)->contents[i];
6e344130 1856 XSETFASTINT (key, i);
2c6f1a39
JB
1857 i++;
1858
f5b79c1c
JB
1859 /* If we've just finished scanning a vector, advance map
1860 to the next element, and reset i in anticipation of the
1861 next vector we may find. */
db6f9d95 1862 if (i >= XVECTOR (elt)->size)
2c6f1a39 1863 {
f5b79c1c
JB
1864 map = XCONS (map)->cdr;
1865 i = 0;
2c6f1a39 1866 }
f5b79c1c
JB
1867 }
1868 else if (CONSP (elt))
1869 {
2c6f1a39 1870 key = Fcar (Fcar (map));
f5b79c1c
JB
1871 binding = Fcdr (Fcar (map));
1872
1873 map = XCONS (map)->cdr;
2c6f1a39
JB
1874 }
1875 else
f5b79c1c
JB
1876 /* We want to ignore keymap elements that are neither
1877 vectors nor conses. */
fde3a52f
JB
1878 {
1879 map = XCONS (map)->cdr;
1880 continue;
1881 }
2c6f1a39
JB
1882
1883 /* Search through indirections unless that's not wanted. */
265a9e55 1884 if (NILP (noindirect))
0bc395d4
RS
1885 {
1886 if (nomenus)
1887 {
1888 while (1)
1889 {
1890 Lisp_Object map, tem;
1891 /* If the contents are (KEYMAP . ELEMENT), go indirect. */
1892 map = get_keymap_1 (Fcar_safe (definition), 0, 0);
1893 tem = Fkeymapp (map);
1894 if (!NILP (tem))
1895 definition = access_keymap (map, Fcdr (definition), 0, 0);
1896 else
1897 break;
1898 }
1899 /* If the contents are (STRING ...), reject. */
1900 if (CONSP (definition)
1901 && STRINGP (XCONS (definition)->car))
1902 continue;
1903 }
1904 else
1905 binding = get_keyelt (binding, 0);
1906 }
2c6f1a39
JB
1907
1908 /* End this iteration if this element does not match
1909 the target. */
1910
416349ec 1911 if (CONSP (definition))
2c6f1a39
JB
1912 {
1913 Lisp_Object tem;
1914 tem = Fequal (binding, definition);
265a9e55 1915 if (NILP (tem))
2c6f1a39
JB
1916 continue;
1917 }
1918 else
1919 if (!EQ (binding, definition))
1920 continue;
1921
1922 /* We have found a match.
1923 Construct the key sequence where we found it. */
416349ec 1924 if (INTEGERP (key) && last_is_meta)
2c6f1a39
JB
1925 {
1926 sequence = Fcopy_sequence (this);
0b8fc2d4 1927 Faset (sequence, last, make_number (XINT (key) | meta_modifier));
2c6f1a39
JB
1928 }
1929 else
1930 sequence = append_key (this, key);
1931
1932 /* Verify that this key binding is not shadowed by another
1933 binding for the same key, before we say it exists.
1934
1935 Mechanism: look for local definition of this key and if
1936 it is defined and does not match what we found then
1937 ignore this key.
1938
1939 Either nil or number as value from Flookup_key
1940 means undefined. */
f0148b5e 1941 if (keymap_specified)
2c6f1a39 1942 {
f0148b5e 1943 binding = Flookup_key (keymap, sequence, Qnil);
416349ec 1944 if (!NILP (binding) && !INTEGERP (binding))
2c6f1a39 1945 {
416349ec 1946 if (CONSP (definition))
2c6f1a39
JB
1947 {
1948 Lisp_Object tem;
1949 tem = Fequal (binding, definition);
265a9e55 1950 if (NILP (tem))
2c6f1a39
JB
1951 continue;
1952 }
1953 else
1954 if (!EQ (binding, definition))
1955 continue;
1956 }
1957 }
f0148b5e
RS
1958 else
1959 {
1960 binding = Fkey_binding (sequence, Qnil);
1961 if (!EQ (binding, definition))
1962 continue;
1963 }
2c6f1a39 1964
9fc722de
KH
1965 /* It is a true unshadowed match. Record it, unless it's already
1966 been seen (as could happen when inheriting keymaps). */
1967 if (NILP (Fmember (sequence, found)))
1968 found = Fcons (sequence, found);
2c6f1a39 1969
2fc66973
JB
1970 /* If firstonly is Qnon_ascii, then we can return the first
1971 binding we find. If firstonly is not Qnon_ascii but not
1972 nil, then we should return the first ascii-only binding
1973 we find. */
1974 if (EQ (firstonly, Qnon_ascii))
21a0d7a0 1975 RETURN_UNGCPRO (sequence);
2fc66973 1976 else if (! NILP (firstonly) && ascii_sequence_p (sequence))
21a0d7a0 1977 RETURN_UNGCPRO (sequence);
2c6f1a39
JB
1978 }
1979 }
2fc66973 1980
21a0d7a0
RS
1981 UNGCPRO;
1982
2fc66973
JB
1983 found = Fnreverse (found);
1984
1985 /* firstonly may have been t, but we may have gone all the way through
1986 the keymaps without finding an all-ASCII key sequence. So just
1987 return the best we could find. */
1988 if (! NILP (firstonly))
1989 return Fcar (found);
1990
1991 return found;
2c6f1a39 1992}
2c6f1a39 1993\f
cc0a8174
JB
1994/* describe-bindings - summarizing all the bindings in a set of keymaps. */
1995
53c8f9fa 1996DEFUN ("describe-bindings", Fdescribe_bindings, Sdescribe_bindings, 0, 1, "",
2c6f1a39 1997 "Show a list of all defined keys, and their definitions.\n\
53c8f9fa
RS
1998The list is put in a buffer, which is displayed.\n\
1999An optional argument PREFIX, if non-nil, should be a key sequence;\n\
2000then we display only bindings that start with that prefix.")
2001 (prefix)
2002 Lisp_Object prefix;
2c6f1a39
JB
2003{
2004 register Lisp_Object thisbuf;
bff4ec1f 2005 XSETBUFFER (thisbuf, current_buffer);
2c6f1a39
JB
2006 internal_with_output_to_temp_buffer ("*Help*",
2007 describe_buffer_bindings,
53c8f9fa 2008 Fcons (thisbuf, prefix));
2c6f1a39
JB
2009 return Qnil;
2010}
2011
53c8f9fa
RS
2012/* ARG is (BUFFER . PREFIX). */
2013
2c6f1a39 2014static Lisp_Object
53c8f9fa
RS
2015describe_buffer_bindings (arg)
2016 Lisp_Object arg;
2c6f1a39 2017{
53c8f9fa 2018 Lisp_Object descbuf, prefix, shadow;
d7ab90a9
KH
2019 register Lisp_Object start1;
2020 struct gcpro gcpro1;
2c6f1a39 2021
4726a9f1
JB
2022 char *alternate_heading
2023 = "\
2024Alternate Characters (use anywhere the nominal character is listed):\n\
2025nominal alternate\n\
2026------- ---------\n";
2c6f1a39 2027
53c8f9fa
RS
2028 descbuf = XCONS (arg)->car;
2029 prefix = XCONS (arg)->cdr;
a588e041 2030 shadow = Qnil;
d7ab90a9 2031 GCPRO1 (shadow);
53c8f9fa 2032
2c6f1a39
JB
2033 Fset_buffer (Vstandard_output);
2034
4726a9f1 2035 /* Report on alternates for keys. */
d7bf9bf5 2036 if (STRINGP (Vkeyboard_translate_table) && !NILP (prefix))
4726a9f1
JB
2037 {
2038 int c;
2039 unsigned char *translate = XSTRING (Vkeyboard_translate_table)->data;
2040 int translate_len = XSTRING (Vkeyboard_translate_table)->size;
2041
2042 for (c = 0; c < translate_len; c++)
2043 if (translate[c] != c)
2044 {
2045 char buf[20];
2046 char *bufend;
2047
2048 if (alternate_heading)
2049 {
2050 insert_string (alternate_heading);
2051 alternate_heading = 0;
2052 }
2053
2054 bufend = push_key_description (translate[c], buf);
2055 insert (buf, bufend - buf);
2056 Findent_to (make_number (16), make_number (1));
2057 bufend = push_key_description (c, buf);
2058 insert (buf, bufend - buf);
2059
2060 insert ("\n", 1);
2061 }
2062
2063 insert ("\n", 1);
2064 }
2065
d7bf9bf5
RS
2066 if (!NILP (Vkey_translation_map))
2067 describe_map_tree (Vkey_translation_map, 0, Qnil, prefix,
c2b714de 2068 "Key translations", 0, 1, 0);
d7bf9bf5 2069
cc0a8174
JB
2070 {
2071 int i, nmaps;
2072 Lisp_Object *modes, *maps;
2073
4726a9f1
JB
2074 /* Temporarily switch to descbuf, so that we can get that buffer's
2075 minor modes correctly. */
2076 Fset_buffer (descbuf);
d7bf9bf5 2077
e784236d
KH
2078 if (!NILP (current_kboard->Voverriding_terminal_local_map)
2079 || !NILP (Voverriding_local_map))
7d92e329
RS
2080 nmaps = 0;
2081 else
2082 nmaps = current_minor_maps (&modes, &maps);
4726a9f1
JB
2083 Fset_buffer (Vstandard_output);
2084
53c8f9fa 2085 /* Print the minor mode maps. */
cc0a8174
JB
2086 for (i = 0; i < nmaps; i++)
2087 {
c9b7c53a 2088 /* The title for a minor mode keymap
07f15dfd
RS
2089 is constructed at run time.
2090 We let describe_map_tree do the actual insertion
2091 because it takes care of other features when doing so. */
c9b7c53a 2092 char *title, *p;
07f15dfd 2093
416349ec 2094 if (!SYMBOLP (modes[i]))
d7ab90a9
KH
2095 abort();
2096
2097 p = title = (char *) alloca (40 + XSYMBOL (modes[i])->name->size);
2098 *p++ = '`';
2099 bcopy (XSYMBOL (modes[i])->name->data, p,
2100 XSYMBOL (modes[i])->name->size);
2101 p += XSYMBOL (modes[i])->name->size;
2102 *p++ = '\'';
c9b7c53a
KH
2103 bcopy (" Minor Mode Bindings", p, sizeof (" Minor Mode Bindings") - 1);
2104 p += sizeof (" Minor Mode Bindings") - 1;
07f15dfd
RS
2105 *p = 0;
2106
91f64ec2 2107 describe_map_tree (maps[i], 1, shadow, prefix, title, 0, 0, 0);
53c8f9fa 2108 shadow = Fcons (maps[i], shadow);
cc0a8174
JB
2109 }
2110 }
2111
53c8f9fa 2112 /* Print the (major mode) local map. */
e784236d
KH
2113 if (!NILP (current_kboard->Voverriding_terminal_local_map))
2114 start1 = current_kboard->Voverriding_terminal_local_map;
2115 else if (!NILP (Voverriding_local_map))
7d92e329
RS
2116 start1 = Voverriding_local_map;
2117 else
2118 start1 = XBUFFER (descbuf)->keymap;
2119
265a9e55 2120 if (!NILP (start1))
2c6f1a39 2121 {
91f64ec2 2122 describe_map_tree (start1, 1, shadow, prefix,
c2b714de 2123 "Major Mode Bindings", 0, 0, 0);
53c8f9fa 2124 shadow = Fcons (start1, shadow);
2c6f1a39
JB
2125 }
2126
91f64ec2 2127 describe_map_tree (current_global_map, 1, shadow, prefix,
c2b714de 2128 "Global Bindings", 0, 0, 1);
d7bf9bf5
RS
2129
2130 /* Print the function-key-map translations under this prefix. */
2131 if (!NILP (Vfunction_key_map))
2132 describe_map_tree (Vfunction_key_map, 0, Qnil, prefix,
c2b714de 2133 "Function key map translations", 0, 1, 0);
2c6f1a39 2134
04befa07 2135 call0 (intern ("help-mode"));
2c6f1a39 2136 Fset_buffer (descbuf);
d7ab90a9 2137 UNGCPRO;
2c6f1a39
JB
2138 return Qnil;
2139}
2140
b31a4218 2141/* Insert a description of the key bindings in STARTMAP,
2c6f1a39
JB
2142 followed by those of all maps reachable through STARTMAP.
2143 If PARTIAL is nonzero, omit certain "uninteresting" commands
2144 (such as `undefined').
53c8f9fa
RS
2145 If SHADOW is non-nil, it is a list of maps;
2146 don't mention keys which would be shadowed by any of them.
2147 PREFIX, if non-nil, says mention only keys that start with PREFIX.
07f15dfd 2148 TITLE, if not 0, is a string to insert at the beginning.
af1d6f09 2149 TITLE should not end with a colon or a newline; we supply that.
d7bf9bf5
RS
2150 If NOMENU is not 0, then omit menu-bar commands.
2151
2152 If TRANSL is nonzero, the definitions are actually key translations
c2b714de
RS
2153 so print strings and vectors differently.
2154
2155 If ALWAYS_TITLE is nonzero, print the title even if there are no maps
2156 to look through. */
2c6f1a39
JB
2157
2158void
c2b714de
RS
2159describe_map_tree (startmap, partial, shadow, prefix, title, nomenu, transl,
2160 always_title)
53c8f9fa 2161 Lisp_Object startmap, shadow, prefix;
2c6f1a39 2162 int partial;
53c8f9fa 2163 char *title;
af1d6f09 2164 int nomenu;
d7bf9bf5 2165 int transl;
c2b714de 2166 int always_title;
2c6f1a39 2167{
e3dfcd4e
KH
2168 Lisp_Object maps, seen, sub_shadows;
2169 struct gcpro gcpro1, gcpro2, gcpro3;
07f15dfd 2170 int something = 0;
53c8f9fa
RS
2171 char *key_heading
2172 = "\
2173key binding\n\
2174--- -------\n";
2c6f1a39 2175
53c8f9fa 2176 maps = Faccessible_keymaps (startmap, prefix);
925083d1 2177 seen = Qnil;
e3dfcd4e
KH
2178 sub_shadows = Qnil;
2179 GCPRO3 (maps, seen, sub_shadows);
2c6f1a39 2180
af1d6f09
RS
2181 if (nomenu)
2182 {
2183 Lisp_Object list;
2184
2185 /* Delete from MAPS each element that is for the menu bar. */
2186 for (list = maps; !NILP (list); list = XCONS (list)->cdr)
2187 {
2188 Lisp_Object elt, prefix, tem;
2189
2190 elt = Fcar (list);
2191 prefix = Fcar (elt);
2192 if (XVECTOR (prefix)->size >= 1)
2193 {
2194 tem = Faref (prefix, make_number (0));
2195 if (EQ (tem, Qmenu_bar))
2196 maps = Fdelq (elt, maps);
2197 }
2198 }
2199 }
2200
c2b714de 2201 if (!NILP (maps) || always_title)
53c8f9fa
RS
2202 {
2203 if (title)
07f15dfd
RS
2204 {
2205 insert_string (title);
2206 if (!NILP (prefix))
2207 {
2208 insert_string (" Starting With ");
2209 insert1 (Fkey_description (prefix));
2210 }
2211 insert_string (":\n");
2212 }
53c8f9fa 2213 insert_string (key_heading);
07f15dfd 2214 something = 1;
53c8f9fa
RS
2215 }
2216
265a9e55 2217 for (; !NILP (maps); maps = Fcdr (maps))
2c6f1a39 2218 {
e3dfcd4e 2219 register Lisp_Object elt, prefix, tail;
53c8f9fa 2220
2c6f1a39 2221 elt = Fcar (maps);
53c8f9fa
RS
2222 prefix = Fcar (elt);
2223
2224 sub_shadows = Qnil;
2225
2226 for (tail = shadow; CONSP (tail); tail = XCONS (tail)->cdr)
2c6f1a39 2227 {
53c8f9fa
RS
2228 Lisp_Object shmap;
2229
2230 shmap = XCONS (tail)->car;
2231
2232 /* If the sequence by which we reach this keymap is zero-length,
2233 then the shadow map for this keymap is just SHADOW. */
416349ec
KH
2234 if ((STRINGP (prefix) && XSTRING (prefix)->size == 0)
2235 || (VECTORP (prefix) && XVECTOR (prefix)->size == 0))
53c8f9fa
RS
2236 ;
2237 /* If the sequence by which we reach this keymap actually has
2238 some elements, then the sequence's definition in SHADOW is
2239 what we should use. */
2240 else
2241 {
98234407 2242 shmap = Flookup_key (shmap, Fcar (elt), Qt);
416349ec 2243 if (INTEGERP (shmap))
53c8f9fa
RS
2244 shmap = Qnil;
2245 }
2246
2247 /* If shmap is not nil and not a keymap,
2248 it completely shadows this map, so don't
2249 describe this map at all. */
2250 if (!NILP (shmap) && NILP (Fkeymapp (shmap)))
2251 goto skip;
2252
2253 if (!NILP (shmap))
2254 sub_shadows = Fcons (shmap, sub_shadows);
2c6f1a39
JB
2255 }
2256
d7bf9bf5
RS
2257 describe_map (Fcdr (elt), Fcar (elt),
2258 transl ? describe_translation : describe_command,
279a482a 2259 partial, sub_shadows, &seen, nomenu);
53c8f9fa
RS
2260
2261 skip: ;
2c6f1a39
JB
2262 }
2263
07f15dfd
RS
2264 if (something)
2265 insert_string ("\n");
2266
2c6f1a39
JB
2267 UNGCPRO;
2268}
2269
c3f27064
KH
2270static int previous_description_column;
2271
2c6f1a39
JB
2272static void
2273describe_command (definition)
2274 Lisp_Object definition;
2275{
2276 register Lisp_Object tem1;
c3f27064
KH
2277 int column = current_column ();
2278 int description_column;
2c6f1a39 2279
c3f27064
KH
2280 /* If column 16 is no good, go to col 32;
2281 but don't push beyond that--go to next line instead. */
2282 if (column > 30)
2283 {
2284 insert_char ('\n');
2285 description_column = 32;
2286 }
2287 else if (column > 14 || (column > 10 && previous_description_column == 32))
2288 description_column = 32;
2289 else
2290 description_column = 16;
2291
2292 Findent_to (make_number (description_column), make_number (1));
2293 previous_description_column = description_column;
2c6f1a39 2294
416349ec 2295 if (SYMBOLP (definition))
2c6f1a39 2296 {
bff4ec1f 2297 XSETSTRING (tem1, XSYMBOL (definition)->name);
2c6f1a39
JB
2298 insert1 (tem1);
2299 insert_string ("\n");
2300 }
d7bf9bf5 2301 else if (STRINGP (definition) || VECTORP (definition))
24065b9c 2302 insert_string ("Keyboard Macro\n");
2c6f1a39
JB
2303 else
2304 {
2305 tem1 = Fkeymapp (definition);
265a9e55 2306 if (!NILP (tem1))
2c6f1a39
JB
2307 insert_string ("Prefix Command\n");
2308 else
2309 insert_string ("??\n");
2310 }
2311}
2312
d7bf9bf5
RS
2313static void
2314describe_translation (definition)
2315 Lisp_Object definition;
2316{
2317 register Lisp_Object tem1;
2318
2319 Findent_to (make_number (16), make_number (1));
2320
2321 if (SYMBOLP (definition))
2322 {
2323 XSETSTRING (tem1, XSYMBOL (definition)->name);
2324 insert1 (tem1);
2325 insert_string ("\n");
2326 }
2327 else if (STRINGP (definition) || VECTORP (definition))
b902ac28
RS
2328 {
2329 insert1 (Fkey_description (definition));
2330 insert_string ("\n");
2331 }
d7bf9bf5
RS
2332 else
2333 {
2334 tem1 = Fkeymapp (definition);
2335 if (!NILP (tem1))
2336 insert_string ("Prefix Command\n");
2337 else
2338 insert_string ("??\n");
2339 }
2340}
2341
53c8f9fa
RS
2342/* Like Flookup_key, but uses a list of keymaps SHADOW instead of a single map.
2343 Returns the first non-nil binding found in any of those maps. */
2344
2345static Lisp_Object
2346shadow_lookup (shadow, key, flag)
2347 Lisp_Object shadow, key, flag;
2348{
2349 Lisp_Object tail, value;
2350
2351 for (tail = shadow; CONSP (tail); tail = XCONS (tail)->cdr)
2352 {
2353 value = Flookup_key (XCONS (tail)->car, key, flag);
2354 if (!NILP (value))
2355 return value;
2356 }
2357 return Qnil;
2358}
2359
c3c0ee93
KH
2360/* Describe the contents of map MAP, assuming that this map itself is
2361 reached by the sequence of prefix keys KEYS (a string or vector).
279a482a 2362 PARTIAL, SHADOW, NOMENU are as in `describe_map_tree' above. */
2c6f1a39
JB
2363
2364static void
279a482a 2365describe_map (map, keys, elt_describer, partial, shadow, seen, nomenu)
c3c0ee93
KH
2366 register Lisp_Object map;
2367 Lisp_Object keys;
2c6f1a39
JB
2368 int (*elt_describer) ();
2369 int partial;
2370 Lisp_Object shadow;
925083d1 2371 Lisp_Object *seen;
279a482a 2372 int nomenu;
2c6f1a39 2373{
c3c0ee93 2374 Lisp_Object elt_prefix;
53c8f9fa 2375 Lisp_Object tail, definition, event;
99a225a9 2376 Lisp_Object tem;
2c6f1a39
JB
2377 Lisp_Object suppress;
2378 Lisp_Object kludge;
2379 int first = 1;
2380 struct gcpro gcpro1, gcpro2, gcpro3;
2381
c3c0ee93
KH
2382 if (!NILP (keys) && XFASTINT (Flength (keys)) > 0)
2383 {
c3c0ee93
KH
2384 /* Call Fkey_description first, to avoid GC bug for the other string. */
2385 tem = Fkey_description (keys);
2386 elt_prefix = concat2 (tem, build_string (" "));
2387 }
2388 else
2389 elt_prefix = Qnil;
2390
2c6f1a39
JB
2391 if (partial)
2392 suppress = intern ("suppress-keymap");
2393
2394 /* This vector gets used to present single keys to Flookup_key. Since
f5b79c1c 2395 that is done once per keymap element, we don't want to cons up a
2c6f1a39
JB
2396 fresh vector every time. */
2397 kludge = Fmake_vector (make_number (1), Qnil);
99a225a9 2398 definition = Qnil;
2c6f1a39 2399
99a225a9 2400 GCPRO3 (elt_prefix, definition, kludge);
2c6f1a39 2401
925083d1 2402 for (tail = map; CONSP (tail); tail = XCONS (tail)->cdr)
2c6f1a39
JB
2403 {
2404 QUIT;
2c6f1a39 2405
416349ec 2406 if (VECTORP (XCONS (tail)->car))
53c8f9fa 2407 describe_vector (XCONS (tail)->car,
32bfcae1 2408 elt_prefix, elt_describer, partial, shadow, map);
925083d1 2409 else if (CONSP (XCONS (tail)->car))
2c6f1a39 2410 {
925083d1 2411 event = XCONS (XCONS (tail)->car)->car;
2c3b35b0
RS
2412
2413 /* Ignore bindings whose "keys" are not really valid events.
2414 (We get these in the frames and buffers menu.) */
2415 if (! (SYMBOLP (event) || INTEGERP (event)))
c96dcc01 2416 continue;
2c3b35b0 2417
279a482a
KH
2418 if (nomenu && EQ (event, Qmenu_bar))
2419 continue;
2420
925083d1 2421 definition = get_keyelt (XCONS (XCONS (tail)->car)->cdr, 0);
2c6f1a39 2422
f5b79c1c 2423 /* Don't show undefined commands or suppressed commands. */
99a225a9 2424 if (NILP (definition)) continue;
416349ec 2425 if (SYMBOLP (definition) && partial)
f5b79c1c 2426 {
99a225a9
RS
2427 tem = Fget (definition, suppress);
2428 if (!NILP (tem))
f5b79c1c
JB
2429 continue;
2430 }
2c6f1a39 2431
f5b79c1c
JB
2432 /* Don't show a command that isn't really visible
2433 because a local definition of the same key shadows it. */
2c6f1a39 2434
99a225a9 2435 XVECTOR (kludge)->contents[0] = event;
f5b79c1c
JB
2436 if (!NILP (shadow))
2437 {
53c8f9fa 2438 tem = shadow_lookup (shadow, kludge, Qt);
f5b79c1c
JB
2439 if (!NILP (tem)) continue;
2440 }
2441
c3c0ee93 2442 tem = Flookup_key (map, kludge, Qt);
99a225a9
RS
2443 if (! EQ (tem, definition)) continue;
2444
f5b79c1c
JB
2445 if (first)
2446 {
c3f27064 2447 previous_description_column = 0;
f5b79c1c
JB
2448 insert ("\n", 1);
2449 first = 0;
2450 }
2c6f1a39 2451
f5b79c1c
JB
2452 if (!NILP (elt_prefix))
2453 insert1 (elt_prefix);
2c6f1a39 2454
99a225a9
RS
2455 /* THIS gets the string to describe the character EVENT. */
2456 insert1 (Fsingle_key_description (event));
2c6f1a39 2457
f5b79c1c
JB
2458 /* Print a description of the definition of this character.
2459 elt_describer will take care of spacing out far enough
2460 for alignment purposes. */
99a225a9 2461 (*elt_describer) (definition);
f5b79c1c 2462 }
925083d1
KH
2463 else if (EQ (XCONS (tail)->car, Qkeymap))
2464 {
2465 /* The same keymap might be in the structure twice, if we're
2466 using an inherited keymap. So skip anything we've already
2467 encountered. */
2468 tem = Fassq (tail, *seen);
b5b90d18 2469 if (CONSP (tem) && !NILP (Fequal (XCONS (tem)->car, keys)))
925083d1
KH
2470 break;
2471 *seen = Fcons (Fcons (tail, keys), *seen);
2472 }
2c6f1a39
JB
2473 }
2474
2475 UNGCPRO;
2476}
2477
2478static int
2479describe_vector_princ (elt)
2480 Lisp_Object elt;
2481{
81fa9e2f 2482 Findent_to (make_number (16), make_number (1));
2c6f1a39 2483 Fprinc (elt, Qnil);
ad4ec84a 2484 Fterpri (Qnil);
2c6f1a39
JB
2485}
2486
2487DEFUN ("describe-vector", Fdescribe_vector, Sdescribe_vector, 1, 1, 0,
ad4ec84a 2488 "Insert a description of contents of VECTOR.\n\
2c6f1a39
JB
2489This is text showing the elements of vector matched against indices.")
2490 (vector)
2491 Lisp_Object vector;
2492{
ad4ec84a
RS
2493 int count = specpdl_ptr - specpdl;
2494
2495 specbind (Qstandard_output, Fcurrent_buffer ());
352e5dea 2496 CHECK_VECTOR_OR_CHAR_TABLE (vector, 0);
32bfcae1 2497 describe_vector (vector, Qnil, describe_vector_princ, 0, Qnil, Qnil);
ad4ec84a
RS
2498
2499 return unbind_to (count, Qnil);
2c6f1a39
JB
2500}
2501
352e5dea
RS
2502/* Insert in the current buffer a description of the contents of VECTOR.
2503 We call ELT_DESCRIBER to insert the description of one value found
2504 in VECTOR.
2505
2506 ELT_PREFIX describes what "comes before" the keys or indices defined
2507 by this vector.
2508
2509 If the vector is in a keymap, ELT_PREFIX is a prefix key which
2510 leads to this keymap.
2511
2512 If the vector is a chartable, ELT_PREFIX is the vector
2513 of bytes that lead to the character set or portion of a character
2514 set described by this chartable.
2515
2516 If PARTIAL is nonzero, it means do not mention suppressed commands
2517 (that assumes the vector is in a keymap).
2518
2519 SHADOW is a list of keymaps that shadow this map.
2520 If it is non-nil, then we look up the key in those maps
2521 and we don't mention it now if it is defined by any of them.
2522
2523 ENTIRE_MAP is the keymap in which this vector appears.
2524 If the definition in effect in the whole map does not match
2525 the one in this vector, we ignore this one. */
2526
32bfcae1
KH
2527describe_vector (vector, elt_prefix, elt_describer,
2528 partial, shadow, entire_map)
2c6f1a39
JB
2529 register Lisp_Object vector;
2530 Lisp_Object elt_prefix;
2531 int (*elt_describer) ();
2532 int partial;
2533 Lisp_Object shadow;
32bfcae1 2534 Lisp_Object entire_map;
2c6f1a39 2535{
2c6f1a39 2536 Lisp_Object dummy;
32bfcae1
KH
2537 Lisp_Object definition;
2538 Lisp_Object tem2;
2c6f1a39
JB
2539 register int i;
2540 Lisp_Object suppress;
2541 Lisp_Object kludge;
352e5dea 2542 Lisp_Object chartable_kludge;
2c6f1a39 2543 int first = 1;
352e5dea 2544 struct gcpro gcpro1, gcpro2, gcpro3, gcpro4;
a98f1d1d
KH
2545 /* Range of elements to be handled. */
2546 int from, to;
2547 /* The current depth of VECTOR if it is char-table. */
2548 int this_level;
a20aa721
KH
2549 /* Flag to tell if we should handle multibyte characters. */
2550 int multibyte = !NILP (current_buffer->enable_multibyte_characters);
a98f1d1d
KH
2551 /* Array of indices to access each level of char-table.
2552 The elements are charset, code1, and code2. */
2553 int idx[3];
2554 /* A flag to tell if a leaf in this level of char-table is not a
2555 generic character (i.e. a complete multibyte character). */
2556 int complete_char;
2c6f1a39 2557
32bfcae1 2558 definition = Qnil;
2c6f1a39
JB
2559
2560 /* This vector gets used to present single keys to Flookup_key. Since
2561 that is done once per vector element, we don't want to cons up a
2562 fresh vector every time. */
2563 kludge = Fmake_vector (make_number (1), Qnil);
352e5dea 2564 GCPRO4 (elt_prefix, definition, kludge, chartable_kludge);
2c6f1a39
JB
2565
2566 if (partial)
2567 suppress = intern ("suppress-keymap");
2568
a98f1d1d
KH
2569 if (CHAR_TABLE_P (vector))
2570 {
2571 /* Prepare for handling a nested char-table. */
2572 if (NILP (elt_prefix))
2573 {
a1942d88 2574 /* VECTOR is a top level char-table. */
a98f1d1d
KH
2575 this_level = 0;
2576 complete_char = 0;
2577 from = 0;
2578 to = CHAR_TABLE_ORDINARY_SLOTS;
2579 }
2580 else
2581 {
a1942d88 2582 /* VECTOR is a sub char-table. */
a98f1d1d
KH
2583 this_level = XVECTOR (elt_prefix)->size;
2584 if (this_level >= 3)
2585 /* A char-table is not that deep. */
a1942d88 2586 error ("Too deep char table");
a98f1d1d 2587
1df19f02
KH
2588 /* For multibyte characters, the top level index for
2589 charsets starts from 256. */
2590 idx[0] = XINT (XVECTOR (elt_prefix)->contents[0]) - 128;
2591 for (i = 1; i < this_level; i++)
a98f1d1d
KH
2592 idx[i] = XINT (XVECTOR (elt_prefix)->contents[i]);
2593 complete_char
2594 = (CHARSET_VALID_P (idx[0])
2595 && ((CHARSET_DIMENSION (idx[0]) == 1 && this_level == 1)
2596 || this_level == 2));
2597
2598 /* Meaningful elements are from 32th to 127th. */
2599 from = 32;
a1942d88 2600 to = SUB_CHAR_TABLE_ORDINARY_SLOTS;
a98f1d1d
KH
2601 }
2602 chartable_kludge = Fmake_vector (make_number (this_level + 1), Qnil);
2603 if (this_level != 0)
2604 bcopy (XVECTOR (elt_prefix)->contents,
2605 XVECTOR (chartable_kludge)->contents,
2606 this_level * sizeof (Lisp_Object));
2607 }
2608 else
2609 {
2610 this_level = 0;
2611 from = 0;
2612 /* This does the right thing for ordinary vectors. */
2613 to = XFASTINT (Flength (vector));
2614 /* Now, can this be just `XVECTOR (vector)->size'? -- K.Handa */
2615 }
b5585f5c 2616
a98f1d1d 2617 for (i = from; i < to; i++)
2c6f1a39
JB
2618 {
2619 QUIT;
2c6f1a39 2620
a1942d88
KH
2621 if (CHAR_TABLE_P (vector))
2622 {
2623 if (i >= CHAR_TABLE_SINGLE_BYTE_SLOTS
2624 && !CHARSET_DEFINED_P (i - 128))
2625 continue;
2626 definition = get_keyelt (XCHAR_TABLE (vector)->contents[i]);
2627 if (NILP (definition)) continue;
2628 }
2629 else
2630 definition = get_keyelt (XVECTOR (vector)->contents[i], 0);
2c6f1a39
JB
2631
2632 /* Don't mention suppressed commands. */
32bfcae1 2633 if (SYMBOLP (definition) && partial)
2c6f1a39 2634 {
a98f1d1d
KH
2635 Lisp_Object tem;
2636
2637 tem = Fget (definition, suppress);
2638
2639 if (!NILP (tem)) continue;
2c6f1a39
JB
2640 }
2641
32bfcae1 2642 /* If this binding is shadowed by some other map, ignore it. */
265a9e55 2643 if (!NILP (shadow))
2c6f1a39
JB
2644 {
2645 Lisp_Object tem;
2646
2647 XVECTOR (kludge)->contents[0] = make_number (i);
53c8f9fa 2648 tem = shadow_lookup (shadow, kludge, Qt);
2c6f1a39 2649
265a9e55 2650 if (!NILP (tem)) continue;
2c6f1a39
JB
2651 }
2652
32bfcae1
KH
2653 /* Ignore this definition if it is shadowed by an earlier
2654 one in the same keymap. */
2655 if (!NILP (entire_map))
2656 {
2657 Lisp_Object tem;
2658
2659 XVECTOR (kludge)->contents[0] = make_number (i);
2660 tem = Flookup_key (entire_map, kludge, Qt);
2661
2662 if (! EQ (tem, definition))
2663 continue;
2664 }
2665
2c6f1a39
JB
2666 if (first)
2667 {
a98f1d1d
KH
2668 if (this_level == 0)
2669 insert ("\n", 1);
2c6f1a39
JB
2670 first = 0;
2671 }
2672
a1942d88 2673 /* If VECTOR is a sub char-table, show the depth by indentation.
a98f1d1d
KH
2674 THIS_LEVEL can be greater than 0 only for char-table. */
2675 if (this_level > 0)
2676 insert (" ", this_level * 2); /* THIS_LEVEL is 1 or 2. */
2677
2678 /* Get a Lisp object for the character I. */
2679 XSETFASTINT (dummy, i);
2680
a1942d88
KH
2681 if (this_level == 0 && CHAR_TABLE_P (vector))
2682 {
2683 if (i < CHAR_TABLE_SINGLE_BYTE_SLOTS)
2684 insert1 (Fsingle_key_description (dummy));
2685 else
2686 {
2687 /* Print the information for this character set. */
2688 insert_string ("<");
2689 tem2 = CHARSET_TABLE_INFO (i - 128, CHARSET_SHORT_NAME_IDX);
2690 if (STRINGP (tem2))
2691 insert_from_string (tem2, 0 , XSTRING (tem2)->size, 0);
2692 else
2693 insert ("?", 1);
2694 insert (">", 1);
2695 }
2696 }
2697 else if (this_level > 0 && SUB_CHAR_TABLE_P (vector))
352e5dea 2698 {
a98f1d1d 2699 if (complete_char)
352e5dea 2700 {
a98f1d1d
KH
2701 /* Combine ELT_PREFIX with I to produce a character code,
2702 then insert that character's description. */
2703 idx[this_level] = i;
2704 insert_char (MAKE_NON_ASCII_CHAR (idx[0], idx[1], idx[2]));
352e5dea 2705 }
a1942d88 2706 else
352e5dea 2707 {
a1942d88
KH
2708 /* We need an octal representation for this block of
2709 characters. */
a98f1d1d
KH
2710 char work[5];
2711 sprintf (work, "\\%03o", i & 255);
2712 insert (work, 4);
352e5dea
RS
2713 }
2714 }
2715 else
2716 {
2717 /* Output the prefix that applies to every entry in this map. */
2718 if (!NILP (elt_prefix))
2719 insert1 (elt_prefix);
2c6f1a39 2720
a98f1d1d
KH
2721 /* Get the string to describe the character DUMMY, and print it. */
2722 insert1 (Fsingle_key_description (dummy));
2723 }
352e5dea 2724
a1942d88 2725 /* If we find a sub char-table within a char-table,
a98f1d1d
KH
2726 scan it recursively; it defines the details for
2727 a character set or a portion of a character set. */
a1942d88 2728 if (multibyte && CHAR_TABLE_P (vector) && SUB_CHAR_TABLE_P (definition))
a98f1d1d 2729 {
a98f1d1d
KH
2730 insert ("\n", 1);
2731 XVECTOR (chartable_kludge)->contents[this_level] = make_number (i);
2732 describe_vector (definition, chartable_kludge, elt_describer,
2733 partial, shadow, entire_map);
2734 continue;
352e5dea 2735 }
2c6f1a39 2736
a1942d88
KH
2737 /* Find all consecutive characters that have the same
2738 definition. But, for elements of a top level char table, if
2739 they are for charsets, we had better describe one by one even
2740 if they have the same definition. */
2741 if (CHAR_TABLE_P (vector))
2742 {
2743 if (this_level == 0)
2744 while (i + 1 < CHAR_TABLE_SINGLE_BYTE_SLOTS
2745 && (tem2
2746 = get_keyelt (XCHAR_TABLE (vector)->contents[i + 1], 0),
2747 !NILP (tem2))
2748 && !NILP (Fequal (tem2, definition)))
2749 i++;
2750 else
2751 while (i + 1 < to
2752 && (tem2 = get_keyelt (XCHAR_TABLE (vector)->contents[i + 1], 0),
2753 !NILP (tem2))
2754 && !NILP (Fequal (tem2, definition)))
2755 i++;
2756 }
2757 else
2758 while (i + 1 < CHAR_TABLE_SINGLE_BYTE_SLOTS
2759 && (tem2 = get_keyelt (XVECTOR (vector)->contents[i + 1], 0),
2760 !NILP (tem2))
2761 && !NILP (Fequal (tem2, definition)))
2762 i++;
2763
2c6f1a39
JB
2764
2765 /* If we have a range of more than one character,
2766 print where the range reaches to. */
2767
2768 if (i != XINT (dummy))
2769 {
2770 insert (" .. ", 4);
352e5dea
RS
2771 if (CHAR_TABLE_P (vector))
2772 {
a98f1d1d
KH
2773 if (complete_char)
2774 {
2775 idx[this_level] = i;
2776 insert_char (MAKE_NON_ASCII_CHAR (idx[0], idx[1], idx[2]));
2777 }
2778 else if (this_level > 0)
352e5dea 2779 {
a98f1d1d
KH
2780 char work[5];
2781 sprintf (work, "\\%03o", i & 255);
2782 insert (work, 4);
352e5dea
RS
2783 }
2784 else
2785 {
2786 XSETFASTINT (dummy, i);
a98f1d1d 2787 insert1 (Fsingle_key_description (dummy));
352e5dea
RS
2788 }
2789 }
2790 else
2791 {
a98f1d1d 2792 if (!NILP (elt_prefix) && !CHAR_TABLE_P (vector))
352e5dea
RS
2793 insert1 (elt_prefix);
2794
2795 XSETFASTINT (dummy, i);
2796 insert1 (Fsingle_key_description (dummy));
2797 }
2c6f1a39
JB
2798 }
2799
2800 /* Print a description of the definition of this character.
2801 elt_describer will take care of spacing out far enough
2802 for alignment purposes. */
32bfcae1 2803 (*elt_describer) (definition);
2c6f1a39
JB
2804 }
2805
a1942d88 2806 /* For (sub) char-table, print `defalt' slot at last. */
a98f1d1d
KH
2807 if (CHAR_TABLE_P (vector) && !NILP (XCHAR_TABLE (vector)->defalt))
2808 {
2809 insert (" ", this_level * 2);
2810 insert_string ("<<default>>");
2811 (*elt_describer) (XCHAR_TABLE (vector)->defalt);
2812 }
2813
2c6f1a39
JB
2814 UNGCPRO;
2815}
2816\f
cc0a8174 2817/* Apropos - finding all symbols whose names match a regexp. */
2c6f1a39
JB
2818Lisp_Object apropos_predicate;
2819Lisp_Object apropos_accumulate;
2820
2821static void
2822apropos_accum (symbol, string)
2823 Lisp_Object symbol, string;
2824{
2825 register Lisp_Object tem;
2826
2827 tem = Fstring_match (string, Fsymbol_name (symbol), Qnil);
265a9e55 2828 if (!NILP (tem) && !NILP (apropos_predicate))
2c6f1a39 2829 tem = call1 (apropos_predicate, symbol);
265a9e55 2830 if (!NILP (tem))
2c6f1a39
JB
2831 apropos_accumulate = Fcons (symbol, apropos_accumulate);
2832}
2833
2834DEFUN ("apropos-internal", Fapropos_internal, Sapropos_internal, 1, 2, 0,
2835 "Show all symbols whose names contain match for REGEXP.\n\
88539837 2836If optional 2nd arg PREDICATE is non-nil, (funcall PREDICATE SYMBOL) is done\n\
2c6f1a39
JB
2837for each symbol and a symbol is mentioned only if that returns non-nil.\n\
2838Return list of symbols found.")
88539837
EN
2839 (regexp, predicate)
2840 Lisp_Object regexp, predicate;
2c6f1a39
JB
2841{
2842 struct gcpro gcpro1, gcpro2;
9cd8b13a 2843 CHECK_STRING (regexp, 0);
88539837 2844 apropos_predicate = predicate;
2c6f1a39
JB
2845 GCPRO2 (apropos_predicate, apropos_accumulate);
2846 apropos_accumulate = Qnil;
88539837 2847 map_obarray (Vobarray, apropos_accum, regexp);
2c6f1a39
JB
2848 apropos_accumulate = Fsort (apropos_accumulate, Qstring_lessp);
2849 UNGCPRO;
2850 return apropos_accumulate;
2851}
2852\f
2853syms_of_keymap ()
2854{
2855 Lisp_Object tem;
2856
2857 Qkeymap = intern ("keymap");
2858 staticpro (&Qkeymap);
2859
2860/* Initialize the keymaps standardly used.
2861 Each one is the value of a Lisp variable, and is also
2862 pointed to by a C variable */
2863
19eaeb86 2864 global_map = Fcons (Qkeymap,
1447c534 2865 Fcons (Fmake_vector (make_number (0400), Qnil), Qnil));
2c6f1a39
JB
2866 Fset (intern ("global-map"), global_map);
2867
44bff953 2868 current_global_map = global_map;
a3e99933 2869 staticpro (&global_map);
44bff953
RS
2870 staticpro (&current_global_map);
2871
ce6e5d0b 2872 meta_map = Fmake_keymap (Qnil);
2c6f1a39
JB
2873 Fset (intern ("esc-map"), meta_map);
2874 Ffset (intern ("ESC-prefix"), meta_map);
2875
ce6e5d0b 2876 control_x_map = Fmake_keymap (Qnil);
2c6f1a39
JB
2877 Fset (intern ("ctl-x-map"), control_x_map);
2878 Ffset (intern ("Control-X-prefix"), control_x_map);
2879
107fd03d
RS
2880 DEFVAR_LISP ("define-key-rebound-commands", &Vdefine_key_rebound_commands,
2881 "List of commands given new key bindings recently.\n\
2882This is used for internal purposes during Emacs startup;\n\
2883don't alter it yourself.");
2884 Vdefine_key_rebound_commands = Qt;
2885
2c6f1a39
JB
2886 DEFVAR_LISP ("minibuffer-local-map", &Vminibuffer_local_map,
2887 "Default keymap to use when reading from the minibuffer.");
ce6e5d0b 2888 Vminibuffer_local_map = Fmake_sparse_keymap (Qnil);
2c6f1a39
JB
2889
2890 DEFVAR_LISP ("minibuffer-local-ns-map", &Vminibuffer_local_ns_map,
2891 "Local keymap for the minibuffer when spaces are not allowed.");
ce6e5d0b 2892 Vminibuffer_local_ns_map = Fmake_sparse_keymap (Qnil);
2c6f1a39
JB
2893
2894 DEFVAR_LISP ("minibuffer-local-completion-map", &Vminibuffer_local_completion_map,
2895 "Local keymap for minibuffer input with completion.");
ce6e5d0b 2896 Vminibuffer_local_completion_map = Fmake_sparse_keymap (Qnil);
2c6f1a39
JB
2897
2898 DEFVAR_LISP ("minibuffer-local-must-match-map", &Vminibuffer_local_must_match_map,
2899 "Local keymap for minibuffer input with completion, for exact match.");
ce6e5d0b 2900 Vminibuffer_local_must_match_map = Fmake_sparse_keymap (Qnil);
2c6f1a39 2901
cc0a8174
JB
2902 DEFVAR_LISP ("minor-mode-map-alist", &Vminor_mode_map_alist,
2903 "Alist of keymaps to use for minor modes.\n\
2904Each element looks like (VARIABLE . KEYMAP); KEYMAP is used to read\n\
2905key sequences and look up bindings iff VARIABLE's value is non-nil.\n\
2906If two active keymaps bind the same key, the keymap appearing earlier\n\
2907in the list takes precedence.");
2908 Vminor_mode_map_alist = Qnil;
2909
6bbbd9b0
JB
2910 DEFVAR_LISP ("function-key-map", &Vfunction_key_map,
2911 "Keymap mapping ASCII function key sequences onto their preferred forms.\n\
2912This allows Emacs to recognize function keys sent from ASCII\n\
2913terminals at any point in a key sequence.\n\
2914\n\
1981e886
RS
2915The `read-key-sequence' function replaces any subsequence bound by\n\
2916`function-key-map' with its binding. More precisely, when the active\n\
6bbbd9b0 2917keymaps have no binding for the current key sequence but\n\
1981e886
RS
2918`function-key-map' binds a suffix of the sequence to a vector or string,\n\
2919`read-key-sequence' replaces the matching suffix with its binding, and\n\
6bbbd9b0
JB
2920continues with the new sequence.\n\
2921\n\
1981e886
RS
2922The events that come from bindings in `function-key-map' are not\n\
2923themselves looked up in `function-key-map'.\n\
2924\n\
2925For example, suppose `function-key-map' binds `ESC O P' to [f1].\n\
2926Typing `ESC O P' to `read-key-sequence' would return [f1]. Typing\n\
718ca51e
JB
2927`C-x ESC O P' would return [?\\C-x f1]. If [f1] were a prefix\n\
2928key, typing `ESC O P x' would return [f1 x].");
ce6e5d0b 2929 Vfunction_key_map = Fmake_sparse_keymap (Qnil);
6bbbd9b0 2930
d7bf9bf5
RS
2931 DEFVAR_LISP ("key-translation-map", &Vkey_translation_map,
2932 "Keymap of key translations that can override keymaps.\n\
2933This keymap works like `function-key-map', but comes after that,\n\
2934and applies even for keys that have ordinary bindings.");
2935 Vkey_translation_map = Qnil;
2936
2c6f1a39
JB
2937 Qsingle_key_description = intern ("single-key-description");
2938 staticpro (&Qsingle_key_description);
2939
2940 Qkey_description = intern ("key-description");
2941 staticpro (&Qkey_description);
2942
2943 Qkeymapp = intern ("keymapp");
2944 staticpro (&Qkeymapp);
2945
2fc66973
JB
2946 Qnon_ascii = intern ("non-ascii");
2947 staticpro (&Qnon_ascii);
2948
2c6f1a39 2949 defsubr (&Skeymapp);
7d58ed99
RS
2950 defsubr (&Skeymap_parent);
2951 defsubr (&Sset_keymap_parent);
2c6f1a39
JB
2952 defsubr (&Smake_keymap);
2953 defsubr (&Smake_sparse_keymap);
2954 defsubr (&Scopy_keymap);
2955 defsubr (&Skey_binding);
2956 defsubr (&Slocal_key_binding);
2957 defsubr (&Sglobal_key_binding);
cc0a8174 2958 defsubr (&Sminor_mode_key_binding);
2c6f1a39
JB
2959 defsubr (&Sdefine_key);
2960 defsubr (&Slookup_key);
2c6f1a39
JB
2961 defsubr (&Sdefine_prefix_command);
2962 defsubr (&Suse_global_map);
2963 defsubr (&Suse_local_map);
2964 defsubr (&Scurrent_local_map);
2965 defsubr (&Scurrent_global_map);
cc0a8174 2966 defsubr (&Scurrent_minor_mode_maps);
2c6f1a39
JB
2967 defsubr (&Saccessible_keymaps);
2968 defsubr (&Skey_description);
2969 defsubr (&Sdescribe_vector);
2970 defsubr (&Ssingle_key_description);
2971 defsubr (&Stext_char_description);
2972 defsubr (&Swhere_is_internal);
2c6f1a39
JB
2973 defsubr (&Sdescribe_bindings);
2974 defsubr (&Sapropos_internal);
2975}
2976
2977keys_of_keymap ()
2978{
2979 Lisp_Object tem;
2980
2981 initial_define_key (global_map, 033, "ESC-prefix");
2982 initial_define_key (global_map, Ctl('X'), "Control-X-prefix");
2983}