1 /* Manipulation of keymaps
2 Copyright (C) 1985, 86, 87, 88, 93, 94, 95 Free Software Foundation, Inc.
4 This file is part of GNU Emacs.
6 GNU Emacs is free software; you can redistribute it and/or modify
7 it under the terms of the GNU General Public License as published by
8 the Free Software Foundation; either version 2, or (at your option)
11 GNU Emacs is distributed in the hope that it will be useful,
12 but WITHOUT ANY WARRANTY; without even the implied warranty of
13 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 GNU General Public License for more details.
16 You should have received a copy of the GNU General Public License
17 along with GNU Emacs; see the file COPYING. If not, write to
18 the Free Software Foundation, Inc., 59 Temple Place - Suite 330,
19 Boston, MA 02111-1307, USA. */
29 #include "termhooks.h"
30 #include "blockinput.h"
33 #define min(a, b) ((a) < (b) ? (a) : (b))
35 /* The number of elements in keymap vectors. */
36 #define DENSE_TABLE_SIZE (0200)
38 /* Actually allocate storage for these variables */
40 Lisp_Object current_global_map
; /* Current global keymap */
42 Lisp_Object global_map
; /* default global key bindings */
44 Lisp_Object meta_map
; /* The keymap used for globally bound
45 ESC-prefixed default commands */
47 Lisp_Object control_x_map
; /* The keymap used for globally bound
48 C-x-prefixed default commands */
50 /* was MinibufLocalMap */
51 Lisp_Object Vminibuffer_local_map
;
52 /* The keymap used by the minibuf for local
53 bindings when spaces are allowed in the
56 /* was MinibufLocalNSMap */
57 Lisp_Object Vminibuffer_local_ns_map
;
58 /* The keymap used by the minibuf for local
59 bindings when spaces are not encouraged
62 /* keymap used for minibuffers when doing completion */
63 /* was MinibufLocalCompletionMap */
64 Lisp_Object Vminibuffer_local_completion_map
;
66 /* keymap used for minibuffers when doing completion and require a match */
67 /* was MinibufLocalMustMatchMap */
68 Lisp_Object Vminibuffer_local_must_match_map
;
70 /* Alist of minor mode variables and keymaps. */
71 Lisp_Object Vminor_mode_map_alist
;
73 /* Keymap mapping ASCII function key sequences onto their preferred forms.
74 Initialized by the terminal-specific lisp files. See DEFVAR for more
76 Lisp_Object Vfunction_key_map
;
78 /* Keymap mapping ASCII function key sequences onto their preferred forms. */
79 Lisp_Object Vkey_translation_map
;
81 /* A list of all commands given new bindings since a certain time
82 when nil was stored here.
83 This is used to speed up recomputation of menu key equivalents
84 when Emacs starts up. t means don't record anything here. */
85 Lisp_Object Vdefine_key_rebound_commands
;
87 Lisp_Object Qkeymapp
, Qkeymap
, Qnon_ascii
;
89 /* A char with the CHAR_META bit set in a vector or the 0200 bit set
90 in a string key sequence is equivalent to prefixing with this
92 extern Lisp_Object meta_prefix_char
;
94 extern Lisp_Object Voverriding_local_map
;
96 static Lisp_Object
define_as_prefix ();
97 static Lisp_Object
describe_buffer_bindings ();
98 static void describe_command (), describe_translation ();
99 static void describe_map ();
101 /* Keymap object support - constructors and predicates. */
103 DEFUN ("make-keymap", Fmake_keymap
, Smake_keymap
, 0, 1, 0,
104 "Construct and return a new keymap, of the form (keymap VECTOR . ALIST).\n\
105 VECTOR is a vector which holds the bindings for the ASCII\n\
106 characters. ALIST is an assoc-list which holds bindings for function keys,\n\
107 mouse events, and any other things that appear in the input stream.\n\
108 All entries in it are initially nil, meaning \"command undefined\".\n\n\
109 The optional arg STRING supplies a menu name for the keymap\n\
110 in case you use it as a menu with `x-popup-menu'.")
116 tail
= Fcons (string
, Qnil
);
119 return Fcons (Qkeymap
,
120 Fcons (Fmake_vector (make_number (DENSE_TABLE_SIZE
), Qnil
),
124 DEFUN ("make-sparse-keymap", Fmake_sparse_keymap
, Smake_sparse_keymap
, 0, 1, 0,
125 "Construct and return a new sparse-keymap list.\n\
126 Its car is `keymap' and its cdr is an alist of (CHAR . DEFINITION),\n\
127 which binds the character CHAR to DEFINITION, or (SYMBOL . DEFINITION),\n\
128 which binds the function key or mouse event SYMBOL to DEFINITION.\n\
129 Initially the alist is nil.\n\n\
130 The optional arg STRING supplies a menu name for the keymap\n\
131 in case you use it as a menu with `x-popup-menu'.")
136 return Fcons (Qkeymap
, Fcons (string
, Qnil
));
137 return Fcons (Qkeymap
, Qnil
);
140 /* This function is used for installing the standard key bindings
141 at initialization time.
145 initial_define_key (control_x_map, Ctl('X'), "exchange-point-and-mark"); */
148 initial_define_key (keymap
, key
, defname
)
153 store_in_keymap (keymap
, make_number (key
), intern (defname
));
157 initial_define_lispy_key (keymap
, keyname
, defname
)
162 store_in_keymap (keymap
, intern (keyname
), intern (defname
));
165 /* Define character fromchar in map frommap as an alias for character
166 tochar in map tomap. Subsequent redefinitions of the latter WILL
167 affect the former. */
171 synkey (frommap
, fromchar
, tomap
, tochar
)
172 struct Lisp_Vector
*frommap
, *tomap
;
173 int fromchar
, tochar
;
176 XSETVECTOR (v
, tomap
);
177 XSETFASTINT (c
, tochar
);
178 frommap
->contents
[fromchar
] = Fcons (v
, c
);
182 DEFUN ("keymapp", Fkeymapp
, Skeymapp
, 1, 1, 0,
183 "Return t if OBJECT is a keymap.\n\
185 A keymap is a list (keymap . ALIST),\n\
186 or a symbol whose function definition is itself a keymap.\n\
187 ALIST elements look like (CHAR . DEFN) or (SYMBOL . DEFN);\n\
188 a vector of densely packed bindings for small character codes\n\
189 is also allowed as an element.")
193 return (NILP (get_keymap_1 (object
, 0, 0)) ? Qnil
: Qt
);
196 /* Check that OBJECT is a keymap (after dereferencing through any
197 symbols). If it is, return it.
199 If AUTOLOAD is non-zero and OBJECT is a symbol whose function value
200 is an autoload form, do the autoload and try again.
201 If AUTOLOAD is nonzero, callers must assume GC is possible.
203 ERROR controls how we respond if OBJECT isn't a keymap.
204 If ERROR is non-zero, signal an error; otherwise, just return Qnil.
206 Note that most of the time, we don't want to pursue autoloads.
207 Functions like Faccessible_keymaps which scan entire keymap trees
208 shouldn't load every autoloaded keymap. I'm not sure about this,
209 but it seems to me that only read_key_sequence, Flookup_key, and
210 Fdefine_key should cause keymaps to be autoloaded. */
213 get_keymap_1 (object
, error
, autoload
)
220 tem
= indirect_function (object
);
221 if (CONSP (tem
) && EQ (XCONS (tem
)->car
, Qkeymap
))
224 /* Should we do an autoload? Autoload forms for keymaps have
225 Qkeymap as their fifth element. */
229 && EQ (XCONS (tem
)->car
, Qautoload
))
233 tail
= Fnth (make_number (4), tem
);
234 if (EQ (tail
, Qkeymap
))
236 struct gcpro gcpro1
, gcpro2
;
238 GCPRO2 (tem
, object
);
239 do_autoload (tem
, object
);
247 wrong_type_argument (Qkeymapp
, object
);
253 /* Follow any symbol chaining, and return the keymap denoted by OBJECT.
254 If OBJECT doesn't denote a keymap at all, signal an error. */
259 return get_keymap_1 (object
, 1, 0);
263 /* Look up IDX in MAP. IDX may be any sort of event.
264 Note that this does only one level of lookup; IDX must be a single
265 event, not a sequence.
267 If T_OK is non-zero, bindings for Qt are treated as default
268 bindings; any key left unmentioned by other tables and bindings is
269 given the binding of Qt.
271 If T_OK is zero, bindings for Qt are not treated specially.
273 If NOINHERIT, don't accept a subkeymap found in an inherited keymap. */
276 access_keymap (map
, idx
, t_ok
, noinherit
)
285 /* If idx is a list (some sort of mouse click, perhaps?),
286 the index we want to use is the car of the list, which
287 ought to be a symbol. */
288 idx
= EVENT_HEAD (idx
);
290 /* If idx is a symbol, it might have modifiers, which need to
291 be put in the canonical order. */
293 idx
= reorder_modifiers (idx
);
294 else if (INTEGERP (idx
))
295 /* Clobber the high bits that can be present on a machine
296 with more than 24 bits of integer. */
297 XSETFASTINT (idx
, XINT (idx
) & (CHAR_META
| (CHAR_META
- 1)));
301 Lisp_Object t_binding
;
304 for (tail
= map
; CONSP (tail
); tail
= XCONS (tail
)->cdr
)
308 binding
= XCONS (tail
)->car
;
309 if (SYMBOLP (binding
))
311 /* If NOINHERIT, stop finding prefix definitions
312 after we pass a second occurrence of the `keymap' symbol. */
313 if (noinherit
&& EQ (binding
, Qkeymap
) && ! EQ (tail
, map
))
316 else if (CONSP (binding
))
318 if (EQ (XCONS (binding
)->car
, idx
))
320 val
= XCONS (binding
)->cdr
;
321 if (noprefix
&& CONSP (val
) && EQ (XCONS (val
)->car
, Qkeymap
))
325 if (t_ok
&& EQ (XCONS (binding
)->car
, Qt
))
326 t_binding
= XCONS (binding
)->cdr
;
328 else if (VECTORP (binding
))
330 if (NATNUMP (idx
) && XFASTINT (idx
) < XVECTOR (binding
)->size
)
332 val
= XVECTOR (binding
)->contents
[XFASTINT (idx
)];
333 if (noprefix
&& CONSP (val
) && EQ (XCONS (val
)->car
, Qkeymap
))
346 /* Given OBJECT which was found in a slot in a keymap,
347 trace indirect definitions to get the actual definition of that slot.
348 An indirect definition is a list of the form
349 (KEYMAP . INDEX), where KEYMAP is a keymap or a symbol defined as one
350 and INDEX is the object to look up in KEYMAP to yield the definition.
352 Also if OBJECT has a menu string as the first element,
353 remove that. Also remove a menu help string as second element.
355 If AUTOLOAD is nonzero, load autoloadable keymaps
356 that are referred to with indirection. */
359 get_keyelt (object
, autoload
)
360 register Lisp_Object object
;
365 register Lisp_Object map
, tem
;
367 /* If the contents are (KEYMAP . ELEMENT), go indirect. */
368 map
= get_keymap_1 (Fcar_safe (object
), 0, autoload
);
369 tem
= Fkeymapp (map
);
371 object
= access_keymap (map
, Fcdr (object
), 0, 0);
373 /* If the keymap contents looks like (STRING . DEFN),
375 Keymap alist elements like (CHAR MENUSTRING . DEFN)
376 will be used by HierarKey menus. */
377 else if (CONSP (object
)
378 && STRINGP (XCONS (object
)->car
))
380 object
= XCONS (object
)->cdr
;
381 /* Also remove a menu help string, if any,
382 following the menu item name. */
383 if (CONSP (object
) && STRINGP (XCONS (object
)->car
))
384 object
= XCONS (object
)->cdr
;
385 /* Also remove the sublist that caches key equivalences, if any. */
387 && CONSP (XCONS (object
)->car
))
390 carcar
= XCONS (XCONS (object
)->car
)->car
;
391 if (NILP (carcar
) || VECTORP (carcar
))
392 object
= XCONS (object
)->cdr
;
397 /* Anything else is really the value. */
403 store_in_keymap (keymap
, idx
, def
)
405 register Lisp_Object idx
;
406 register Lisp_Object def
;
408 /* If we are preparing to dump, and DEF is a menu element
409 with a menu item string, copy it to ensure it is not pure. */
410 if (CONSP (def
) && PURE_P (def
) && STRINGP (XCONS (def
)->car
))
411 def
= Fcons (XCONS (def
)->car
, XCONS (def
)->cdr
);
413 if (!CONSP (keymap
) || ! EQ (XCONS (keymap
)->car
, Qkeymap
))
414 error ("attempt to define a key in a non-keymap");
416 /* If idx is a list (some sort of mouse click, perhaps?),
417 the index we want to use is the car of the list, which
418 ought to be a symbol. */
419 idx
= EVENT_HEAD (idx
);
421 /* If idx is a symbol, it might have modifiers, which need to
422 be put in the canonical order. */
424 idx
= reorder_modifiers (idx
);
425 else if (INTEGERP (idx
))
426 /* Clobber the high bits that can be present on a machine
427 with more than 24 bits of integer. */
428 XSETFASTINT (idx
, XINT (idx
) & (CHAR_META
| (CHAR_META
- 1)));
430 /* Scan the keymap for a binding of idx. */
434 /* The cons after which we should insert new bindings. If the
435 keymap has a table element, we record its position here, so new
436 bindings will go after it; this way, the table will stay
437 towards the front of the alist and character lookups in dense
438 keymaps will remain fast. Otherwise, this just points at the
439 front of the keymap. */
440 Lisp_Object insertion_point
;
442 insertion_point
= keymap
;
443 for (tail
= XCONS (keymap
)->cdr
; CONSP (tail
); tail
= XCONS (tail
)->cdr
)
447 elt
= XCONS (tail
)->car
;
450 if (NATNUMP (idx
) && XFASTINT (idx
) < XVECTOR (elt
)->size
)
452 XVECTOR (elt
)->contents
[XFASTINT (idx
)] = def
;
455 insertion_point
= tail
;
457 else if (CONSP (elt
))
459 if (EQ (idx
, XCONS (elt
)->car
))
461 XCONS (elt
)->cdr
= def
;
465 else if (SYMBOLP (elt
))
467 /* If we find a 'keymap' symbol in the spine of KEYMAP,
468 then we must have found the start of a second keymap
469 being used as the tail of KEYMAP, and a binding for IDX
470 should be inserted before it. */
471 if (EQ (elt
, Qkeymap
))
479 /* We have scanned the entire keymap, and not found a binding for
480 IDX. Let's add one. */
481 XCONS (insertion_point
)->cdr
482 = Fcons (Fcons (idx
, def
), XCONS (insertion_point
)->cdr
);
489 DEFUN ("copy-keymap", Fcopy_keymap
, Scopy_keymap
, 1, 1, 0,
490 "Return a copy of the keymap KEYMAP.\n\
491 The copy starts out with the same definitions of KEYMAP,\n\
492 but changing either the copy or KEYMAP does not affect the other.\n\
493 Any key definitions that are subkeymaps are recursively copied.\n\
494 However, a key definition which is a symbol whose definition is a keymap\n\
499 register Lisp_Object copy
, tail
;
501 copy
= Fcopy_alist (get_keymap (keymap
));
503 for (tail
= copy
; CONSP (tail
); tail
= XCONS (tail
)->cdr
)
507 elt
= XCONS (tail
)->car
;
512 elt
= Fcopy_sequence (elt
);
513 XCONS (tail
)->car
= elt
;
515 for (i
= 0; i
< XVECTOR (elt
)->size
; i
++)
516 if (!SYMBOLP (XVECTOR (elt
)->contents
[i
])
517 && ! NILP (Fkeymapp (XVECTOR (elt
)->contents
[i
])))
518 XVECTOR (elt
)->contents
[i
] =
519 Fcopy_keymap (XVECTOR (elt
)->contents
[i
]);
521 else if (CONSP (elt
))
523 /* Skip the optional menu string. */
524 if (CONSP (XCONS (elt
)->cdr
)
525 && STRINGP (XCONS (XCONS (elt
)->cdr
)->car
))
529 /* Copy the cell, since copy-alist didn't go this deep. */
530 XCONS (elt
)->cdr
= Fcons (XCONS (XCONS (elt
)->cdr
)->car
,
531 XCONS (XCONS (elt
)->cdr
)->cdr
);
532 elt
= XCONS (elt
)->cdr
;
534 /* Also skip the optional menu help string. */
535 if (CONSP (XCONS (elt
)->cdr
)
536 && STRINGP (XCONS (XCONS (elt
)->cdr
)->car
))
538 XCONS (elt
)->cdr
= Fcons (XCONS (XCONS (elt
)->cdr
)->car
,
539 XCONS (XCONS (elt
)->cdr
)->cdr
);
540 elt
= XCONS (elt
)->cdr
;
542 /* There may also be a list that caches key equivalences.
543 Just delete it for the new keymap. */
544 if (CONSP (XCONS (elt
)->cdr
)
545 && CONSP (XCONS (XCONS (elt
)->cdr
)->car
)
546 && (NILP (tem
= XCONS (XCONS (XCONS (elt
)->cdr
)->car
)->car
)
548 XCONS (elt
)->cdr
= XCONS (XCONS (elt
)->cdr
)->cdr
;
551 && ! SYMBOLP (XCONS (elt
)->cdr
)
552 && ! NILP (Fkeymapp (XCONS (elt
)->cdr
)))
553 XCONS (elt
)->cdr
= Fcopy_keymap (XCONS (elt
)->cdr
);
560 /* Simple Keymap mutators and accessors. */
562 /* GC is possible in this function if it autoloads a keymap. */
564 DEFUN ("define-key", Fdefine_key
, Sdefine_key
, 3, 3, 0,
565 "Args KEYMAP, KEY, DEF. Define key sequence KEY, in KEYMAP, as DEF.\n\
566 KEYMAP is a keymap. KEY is a string or a vector of symbols and characters\n\
567 meaning a sequence of keystrokes and events.\n\
568 Non-ASCII characters with codes above 127 (such as ISO Latin-1)\n\
569 can be included if you use a vector.\n\
570 DEF is anything that can be a key's definition:\n\
571 nil (means key is undefined in this keymap),\n\
572 a command (a Lisp function suitable for interactive calling)\n\
573 a string (treated as a keyboard macro),\n\
574 a keymap (to define a prefix key),\n\
575 a symbol. When the key is looked up, the symbol will stand for its\n\
576 function definition, which should at that time be one of the above,\n\
577 or another symbol whose function definition is used, etc.\n\
578 a cons (STRING . DEFN), meaning that DEFN is the definition\n\
579 (DEFN should be a valid definition in its own right),\n\
580 or a cons (KEYMAP . CHAR), meaning use definition of CHAR in map KEYMAP.\n\
582 If KEYMAP is a sparse keymap, the pair binding KEY to DEF is added at\n\
583 the front of KEYMAP.")
590 register Lisp_Object c
;
591 register Lisp_Object tem
;
592 register Lisp_Object cmd
;
596 struct gcpro gcpro1
, gcpro2
, gcpro3
;
598 keymap
= get_keymap_1 (keymap
, 1, 1);
600 if (!VECTORP (key
) && !STRINGP (key
))
601 key
= wrong_type_argument (Qarrayp
, key
);
603 length
= XFASTINT (Flength (key
));
607 if (SYMBOLP (def
) && !EQ (Vdefine_key_rebound_commands
, Qt
))
608 Vdefine_key_rebound_commands
= Fcons (def
, Vdefine_key_rebound_commands
);
610 GCPRO3 (keymap
, key
, def
);
613 meta_bit
= meta_modifier
;
620 c
= Faref (key
, make_number (idx
));
622 if (CONSP (c
) && lucid_event_type_list_p (c
))
623 c
= Fevent_convert_list (c
);
626 && (XINT (c
) & meta_bit
)
629 c
= meta_prefix_char
;
635 XSETINT (c
, XINT (c
) & ~meta_bit
);
641 if (! INTEGERP (c
) && ! SYMBOLP (c
) && ! CONSP (c
))
642 error ("Key sequence contains invalid events");
645 RETURN_UNGCPRO (store_in_keymap (keymap
, c
, def
));
647 cmd
= get_keyelt (access_keymap (keymap
, c
, 0, 1), 1);
649 /* If this key is undefined, make it a prefix. */
651 cmd
= define_as_prefix (keymap
, c
);
653 keymap
= get_keymap_1 (cmd
, 0, 1);
655 /* We must use Fkey_description rather than just passing key to
656 error; key might be a vector, not a string. */
657 error ("Key sequence %s uses invalid prefix characters",
658 XSTRING (Fkey_description (key
))->data
);
662 /* Value is number if KEY is too long; NIL if valid but has no definition. */
663 /* GC is possible in this function if it autoloads a keymap. */
665 DEFUN ("lookup-key", Flookup_key
, Slookup_key
, 2, 3, 0,
666 "In keymap KEYMAP, look up key sequence KEY. Return the definition.\n\
667 nil means undefined. See doc of `define-key' for kinds of definitions.\n\
669 A number as value means KEY is \"too long\";\n\
670 that is, characters or symbols in it except for the last one\n\
671 fail to be a valid sequence of prefix characters in KEYMAP.\n\
672 The number is how many characters at the front of KEY\n\
673 it takes to reach a non-prefix command.\n\
675 Normally, `lookup-key' ignores bindings for t, which act as default\n\
676 bindings, used when nothing else in the keymap applies; this makes it\n\
677 usable as a general function for probing keymaps. However, if the\n\
678 third optional argument ACCEPT-DEFAULT is non-nil, `lookup-key' will\n\
679 recognize the default bindings, just as `read-key-sequence' does.")
680 (keymap
, key
, accept_default
)
681 register Lisp_Object keymap
;
683 Lisp_Object accept_default
;
686 register Lisp_Object tem
;
687 register Lisp_Object cmd
;
688 register Lisp_Object c
;
691 int t_ok
= ! NILP (accept_default
);
695 keymap
= get_keymap_1 (keymap
, 1, 1);
697 if (!VECTORP (key
) && !STRINGP (key
))
698 key
= wrong_type_argument (Qarrayp
, key
);
700 length
= XFASTINT (Flength (key
));
705 meta_bit
= meta_modifier
;
714 c
= Faref (key
, make_number (idx
));
716 if (CONSP (c
) && lucid_event_type_list_p (c
))
717 c
= Fevent_convert_list (c
);
720 && (XINT (c
) & meta_bit
)
723 c
= meta_prefix_char
;
729 XSETINT (c
, XINT (c
) & ~meta_bit
);
735 cmd
= get_keyelt (access_keymap (keymap
, c
, t_ok
, 0), 1);
737 RETURN_UNGCPRO (cmd
);
739 keymap
= get_keymap_1 (cmd
, 0, 1);
741 RETURN_UNGCPRO (make_number (idx
));
747 /* Make KEYMAP define event C as a keymap (i.e., as a prefix).
748 Assume that currently it does not define C at all.
749 Return the keymap. */
752 define_as_prefix (keymap
, c
)
753 Lisp_Object keymap
, c
;
755 Lisp_Object inherit
, cmd
;
757 cmd
= Fmake_sparse_keymap (Qnil
);
758 /* If this key is defined as a prefix in an inherited keymap,
759 make it a prefix in this map, and make its definition
760 inherit the other prefix definition. */
761 inherit
= access_keymap (keymap
, c
, 0, 0);
764 /* If there's an inherited keymap
765 and it doesn't define this key,
766 make it define this key. */
769 for (tail
= Fcdr (keymap
); CONSP (tail
); tail
= XCONS (tail
)->cdr
)
770 if (EQ (XCONS (tail
)->car
, Qkeymap
))
774 inherit
= define_as_prefix (tail
, c
);
777 cmd
= nconc2 (cmd
, inherit
);
778 store_in_keymap (keymap
, c
, cmd
);
783 /* Append a key to the end of a key sequence. We always make a vector. */
786 append_key (key_sequence
, key
)
787 Lisp_Object key_sequence
, key
;
791 args
[0] = key_sequence
;
793 args
[1] = Fcons (key
, Qnil
);
794 return Fvconcat (2, args
);
798 /* Global, local, and minor mode keymap stuff. */
800 /* We can't put these variables inside current_minor_maps, since under
801 some systems, static gets macro-defined to be the empty string.
803 static Lisp_Object
*cmm_modes
, *cmm_maps
;
806 /* Error handler used in current_minor_maps. */
808 current_minor_maps_error ()
813 /* Store a pointer to an array of the keymaps of the currently active
814 minor modes in *buf, and return the number of maps it contains.
816 This function always returns a pointer to the same buffer, and may
817 free or reallocate it, so if you want to keep it for a long time or
818 hand it out to lisp code, copy it. This procedure will be called
819 for every key sequence read, so the nice lispy approach (return a
820 new assoclist, list, what have you) for each invocation would
821 result in a lot of consing over time.
823 If we used xrealloc/xmalloc and ran out of memory, they would throw
824 back to the command loop, which would try to read a key sequence,
825 which would call this function again, resulting in an infinite
826 loop. Instead, we'll use realloc/malloc and silently truncate the
827 list, let the key sequence be read, and hope some other piece of
828 code signals the error. */
830 current_minor_maps (modeptr
, mapptr
)
831 Lisp_Object
**modeptr
, **mapptr
;
834 Lisp_Object alist
, assoc
, var
, val
;
836 for (alist
= Vminor_mode_map_alist
;
838 alist
= XCONS (alist
)->cdr
)
839 if ((assoc
= XCONS (alist
)->car
, CONSP (assoc
))
840 && (var
= XCONS (assoc
)->car
, SYMBOLP (var
))
841 && (val
= find_symbol_value (var
), ! EQ (val
, Qunbound
))
848 Lisp_Object
*newmodes
, *newmaps
;
855 = (Lisp_Object
*) realloc (cmm_modes
,
856 cmm_size
* sizeof (Lisp_Object
));
858 = (Lisp_Object
*) realloc (cmm_maps
,
859 cmm_size
* sizeof (Lisp_Object
));
867 = (Lisp_Object
*) malloc (cmm_size
* sizeof (Lisp_Object
));
869 = (Lisp_Object
*) malloc (cmm_size
* sizeof (Lisp_Object
));
873 if (newmaps
&& newmodes
)
875 cmm_modes
= newmodes
;
882 /* Get the keymap definition--or nil if it is not defined. */
883 temp
= internal_condition_case_1 (Findirect_function
,
885 Qerror
, current_minor_maps_error
);
894 if (modeptr
) *modeptr
= cmm_modes
;
895 if (mapptr
) *mapptr
= cmm_maps
;
899 /* GC is possible in this function if it autoloads a keymap. */
901 DEFUN ("key-binding", Fkey_binding
, Skey_binding
, 1, 2, 0,
902 "Return the binding for command KEY in current keymaps.\n\
903 KEY is a string or vector, a sequence of keystrokes.\n\
904 The binding is probably a symbol with a function definition.\n\
906 Normally, `key-binding' ignores bindings for t, which act as default\n\
907 bindings, used when nothing else in the keymap applies; this makes it\n\
908 usable as a general function for probing keymaps. However, if the\n\
909 optional second argument ACCEPT-DEFAULT is non-nil, `key-binding' does\n\
910 recognize the default bindings, just as `read-key-sequence' does.")
911 (key
, accept_default
)
912 Lisp_Object key
, accept_default
;
914 Lisp_Object
*maps
, value
;
920 if (!NILP (current_kboard
->Voverriding_terminal_local_map
))
922 value
= Flookup_key (current_kboard
->Voverriding_terminal_local_map
,
923 key
, accept_default
);
924 if (! NILP (value
) && !INTEGERP (value
))
925 RETURN_UNGCPRO (value
);
927 else if (!NILP (Voverriding_local_map
))
929 value
= Flookup_key (Voverriding_local_map
, key
, accept_default
);
930 if (! NILP (value
) && !INTEGERP (value
))
931 RETURN_UNGCPRO (value
);
937 nmaps
= current_minor_maps (0, &maps
);
938 /* Note that all these maps are GCPRO'd
939 in the places where we found them. */
941 for (i
= 0; i
< nmaps
; i
++)
942 if (! NILP (maps
[i
]))
944 value
= Flookup_key (maps
[i
], key
, accept_default
);
945 if (! NILP (value
) && !INTEGERP (value
))
946 RETURN_UNGCPRO (value
);
949 local
= get_local_map (PT
, current_buffer
);
953 value
= Flookup_key (local
, key
, accept_default
);
954 if (! NILP (value
) && !INTEGERP (value
))
955 RETURN_UNGCPRO (value
);
959 value
= Flookup_key (current_global_map
, key
, accept_default
);
961 if (! NILP (value
) && !INTEGERP (value
))
967 /* GC is possible in this function if it autoloads a keymap. */
969 DEFUN ("local-key-binding", Flocal_key_binding
, Slocal_key_binding
, 1, 2, 0,
970 "Return the binding for command KEYS in current local keymap only.\n\
971 KEYS is a string, a sequence of keystrokes.\n\
972 The binding is probably a symbol with a function definition.\n\
974 If optional argument ACCEPT-DEFAULT is non-nil, recognize default\n\
975 bindings; see the description of `lookup-key' for more details about this.")
976 (keys
, accept_default
)
977 Lisp_Object keys
, accept_default
;
979 register Lisp_Object map
;
980 map
= current_buffer
->keymap
;
983 return Flookup_key (map
, keys
, accept_default
);
986 /* GC is possible in this function if it autoloads a keymap. */
988 DEFUN ("global-key-binding", Fglobal_key_binding
, Sglobal_key_binding
, 1, 2, 0,
989 "Return the binding for command KEYS in current global keymap only.\n\
990 KEYS is a string, a sequence of keystrokes.\n\
991 The binding is probably a symbol with a function definition.\n\
992 This function's return values are the same as those of lookup-key\n\
995 If optional argument ACCEPT-DEFAULT is non-nil, recognize default\n\
996 bindings; see the description of `lookup-key' for more details about this.")
997 (keys
, accept_default
)
998 Lisp_Object keys
, accept_default
;
1000 return Flookup_key (current_global_map
, keys
, accept_default
);
1003 /* GC is possible in this function if it autoloads a keymap. */
1005 DEFUN ("minor-mode-key-binding", Fminor_mode_key_binding
, Sminor_mode_key_binding
, 1, 2, 0,
1006 "Find the visible minor mode bindings of KEY.\n\
1007 Return an alist of pairs (MODENAME . BINDING), where MODENAME is the\n\
1008 the symbol which names the minor mode binding KEY, and BINDING is\n\
1009 KEY's definition in that mode. In particular, if KEY has no\n\
1010 minor-mode bindings, return nil. If the first binding is a\n\
1011 non-prefix, all subsequent bindings will be omitted, since they would\n\
1012 be ignored. Similarly, the list doesn't include non-prefix bindings\n\
1013 that come after prefix bindings.\n\
1015 If optional argument ACCEPT-DEFAULT is non-nil, recognize default\n\
1016 bindings; see the description of `lookup-key' for more details about this.")
1017 (key
, accept_default
)
1018 Lisp_Object key
, accept_default
;
1020 Lisp_Object
*modes
, *maps
;
1022 Lisp_Object binding
;
1024 struct gcpro gcpro1
, gcpro2
;
1026 nmaps
= current_minor_maps (&modes
, &maps
);
1027 /* Note that all these maps are GCPRO'd
1028 in the places where we found them. */
1031 GCPRO2 (key
, binding
);
1033 for (i
= j
= 0; i
< nmaps
; i
++)
1034 if (! NILP (maps
[i
])
1035 && ! NILP (binding
= Flookup_key (maps
[i
], key
, accept_default
))
1036 && !INTEGERP (binding
))
1038 if (! NILP (get_keymap (binding
)))
1039 maps
[j
++] = Fcons (modes
[i
], binding
);
1041 RETURN_UNGCPRO (Fcons (Fcons (modes
[i
], binding
), Qnil
));
1045 return Flist (j
, maps
);
1048 DEFUN ("define-prefix-command", Fdefine_prefix_command
, Sdefine_prefix_command
, 1, 2, 0,
1049 "Define COMMAND as a prefix command. COMMAND should be a symbol.\n\
1050 A new sparse keymap is stored as COMMAND's function definition and its value.\n\
1051 If a second optional argument MAPVAR is given, the map is stored as\n\
1052 its value instead of as COMMAND's value; but COMMAND is still defined\n\
1055 Lisp_Object command
, mapvar
;
1058 map
= Fmake_sparse_keymap (Qnil
);
1059 Ffset (command
, map
);
1063 Fset (command
, map
);
1067 DEFUN ("use-global-map", Fuse_global_map
, Suse_global_map
, 1, 1, 0,
1068 "Select KEYMAP as the global keymap.")
1072 keymap
= get_keymap (keymap
);
1073 current_global_map
= keymap
;
1074 record_asynch_buffer_change ();
1079 DEFUN ("use-local-map", Fuse_local_map
, Suse_local_map
, 1, 1, 0,
1080 "Select KEYMAP as the local keymap.\n\
1081 If KEYMAP is nil, that means no local keymap.")
1086 keymap
= get_keymap (keymap
);
1088 current_buffer
->keymap
= keymap
;
1089 record_asynch_buffer_change ();
1094 DEFUN ("current-local-map", Fcurrent_local_map
, Scurrent_local_map
, 0, 0, 0,
1095 "Return current buffer's local keymap, or nil if it has none.")
1098 return current_buffer
->keymap
;
1101 DEFUN ("current-global-map", Fcurrent_global_map
, Scurrent_global_map
, 0, 0, 0,
1102 "Return the current global keymap.")
1105 return current_global_map
;
1108 DEFUN ("current-minor-mode-maps", Fcurrent_minor_mode_maps
, Scurrent_minor_mode_maps
, 0, 0, 0,
1109 "Return a list of keymaps for the minor modes of the current buffer.")
1113 int nmaps
= current_minor_maps (0, &maps
);
1115 return Flist (nmaps
, maps
);
1118 /* Help functions for describing and documenting keymaps. */
1120 /* This function cannot GC. */
1122 DEFUN ("accessible-keymaps", Faccessible_keymaps
, Saccessible_keymaps
,
1124 "Find all keymaps accessible via prefix characters from KEYMAP.\n\
1125 Returns a list of elements of the form (KEYS . MAP), where the sequence\n\
1126 KEYS starting from KEYMAP gets you to MAP. These elements are ordered\n\
1127 so that the KEYS increase in length. The first element is ([] . KEYMAP).\n\
1128 An optional argument PREFIX, if non-nil, should be a key sequence;\n\
1129 then the value includes only maps for prefixes that start with PREFIX.")
1131 Lisp_Object keymap
, prefix
;
1133 Lisp_Object maps
, good_maps
, tail
;
1136 /* no need for gcpro because we don't autoload any keymaps. */
1139 prefixlen
= XINT (Flength (prefix
));
1143 /* If a prefix was specified, start with the keymap (if any) for
1144 that prefix, so we don't waste time considering other prefixes. */
1146 tem
= Flookup_key (keymap
, prefix
, Qt
);
1147 /* Flookup_key may give us nil, or a number,
1148 if the prefix is not defined in this particular map.
1149 It might even give us a list that isn't a keymap. */
1150 tem
= get_keymap_1 (tem
, 0, 0);
1152 maps
= Fcons (Fcons (prefix
, tem
), Qnil
);
1157 maps
= Fcons (Fcons (Fmake_vector (make_number (0), Qnil
),
1158 get_keymap (keymap
)),
1161 /* For each map in the list maps,
1162 look at any other maps it points to,
1163 and stick them at the end if they are not already in the list.
1165 This is a breadth-first traversal, where tail is the queue of
1166 nodes, and maps accumulates a list of all nodes visited. */
1168 for (tail
= maps
; CONSP (tail
); tail
= XCONS (tail
)->cdr
)
1170 register Lisp_Object thisseq
, thismap
;
1172 /* Does the current sequence end in the meta-prefix-char? */
1175 thisseq
= Fcar (Fcar (tail
));
1176 thismap
= Fcdr (Fcar (tail
));
1177 last
= make_number (XINT (Flength (thisseq
)) - 1);
1178 is_metized
= (XINT (last
) >= 0
1179 && EQ (Faref (thisseq
, last
), meta_prefix_char
));
1181 for (; CONSP (thismap
); thismap
= XCONS (thismap
)->cdr
)
1185 elt
= XCONS (thismap
)->car
;
1193 /* Vector keymap. Scan all the elements. */
1194 for (i
= 0; i
< XVECTOR (elt
)->size
; i
++)
1196 register Lisp_Object tem
;
1197 register Lisp_Object cmd
;
1199 cmd
= get_keyelt (XVECTOR (elt
)->contents
[i
], 0);
1200 if (NILP (cmd
)) continue;
1201 tem
= Fkeymapp (cmd
);
1204 cmd
= get_keymap (cmd
);
1205 /* Ignore keymaps that are already added to maps. */
1206 tem
= Frassq (cmd
, maps
);
1209 /* If the last key in thisseq is meta-prefix-char,
1210 turn it into a meta-ized keystroke. We know
1211 that the event we're about to append is an
1212 ascii keystroke since we're processing a
1216 int meta_bit
= meta_modifier
;
1217 tem
= Fcopy_sequence (thisseq
);
1219 Faset (tem
, last
, make_number (i
| meta_bit
));
1221 /* This new sequence is the same length as
1222 thisseq, so stick it in the list right
1225 = Fcons (Fcons (tem
, cmd
), XCONS (tail
)->cdr
);
1229 tem
= append_key (thisseq
, make_number (i
));
1230 nconc2 (tail
, Fcons (Fcons (tem
, cmd
), Qnil
));
1236 else if (CONSP (elt
))
1238 register Lisp_Object cmd
, tem
, filter
;
1240 cmd
= get_keyelt (XCONS (elt
)->cdr
, 0);
1241 /* Ignore definitions that aren't keymaps themselves. */
1242 tem
= Fkeymapp (cmd
);
1245 /* Ignore keymaps that have been seen already. */
1246 cmd
= get_keymap (cmd
);
1247 tem
= Frassq (cmd
, maps
);
1250 /* Let elt be the event defined by this map entry. */
1251 elt
= XCONS (elt
)->car
;
1253 /* If the last key in thisseq is meta-prefix-char, and
1254 this entry is a binding for an ascii keystroke,
1255 turn it into a meta-ized keystroke. */
1256 if (is_metized
&& INTEGERP (elt
))
1258 tem
= Fcopy_sequence (thisseq
);
1260 make_number (XINT (elt
) | meta_modifier
));
1262 /* This new sequence is the same length as
1263 thisseq, so stick it in the list right
1266 = Fcons (Fcons (tem
, cmd
), XCONS (tail
)->cdr
);
1270 Fcons (Fcons (append_key (thisseq
, elt
), cmd
),
1281 /* Now find just the maps whose access prefixes start with PREFIX. */
1284 for (; CONSP (maps
); maps
= XCONS (maps
)->cdr
)
1286 Lisp_Object elt
, thisseq
;
1287 elt
= XCONS (maps
)->car
;
1288 thisseq
= XCONS (elt
)->car
;
1289 /* The access prefix must be at least as long as PREFIX,
1290 and the first elements must match those of PREFIX. */
1291 if (XINT (Flength (thisseq
)) >= prefixlen
)
1294 for (i
= 0; i
< prefixlen
; i
++)
1297 XSETFASTINT (i1
, i
);
1298 if (!EQ (Faref (thisseq
, i1
), Faref (prefix
, i1
)))
1302 good_maps
= Fcons (elt
, good_maps
);
1306 return Fnreverse (good_maps
);
1309 Lisp_Object Qsingle_key_description
, Qkey_description
;
1311 /* This function cannot GC. */
1313 DEFUN ("key-description", Fkey_description
, Skey_description
, 1, 1, 0,
1314 "Return a pretty description of key-sequence KEYS.\n\
1315 Control characters turn into \"C-foo\" sequences, meta into \"M-foo\"\n\
1316 spaces are put between sequence elements, etc.")
1328 vector
= Fmake_vector (Flength (keys
), Qnil
);
1329 for (i
= 0; i
< XSTRING (keys
)->size
; i
++)
1331 if (XSTRING (keys
)->data
[i
] & 0x80)
1332 XSETFASTINT (XVECTOR (vector
)->contents
[i
],
1333 meta_modifier
| (XSTRING (keys
)->data
[i
] & ~0x80));
1335 XSETFASTINT (XVECTOR (vector
)->contents
[i
],
1336 XSTRING (keys
)->data
[i
]);
1340 else if (!VECTORP (keys
))
1341 keys
= wrong_type_argument (Qarrayp
, keys
);
1343 /* In effect, this computes
1344 (mapconcat 'single-key-description keys " ")
1345 but we shouldn't use mapconcat because it can do GC. */
1347 len
= XVECTOR (keys
)->size
;
1348 sep
= build_string (" ");
1349 /* This has one extra element at the end that we don't pass to Fconcat. */
1350 args
= (Lisp_Object
*) alloca (len
* 2 * sizeof (Lisp_Object
));
1352 for (i
= 0; i
< len
; i
++)
1354 args
[i
* 2] = Fsingle_key_description (XVECTOR (keys
)->contents
[i
]);
1355 args
[i
* 2 + 1] = sep
;
1358 return Fconcat (len
* 2 - 1, args
);
1362 push_key_description (c
, p
)
1363 register unsigned int c
;
1366 /* Clear all the meaningless bits above the meta bit. */
1367 c
&= meta_modifier
| ~ - meta_modifier
;
1369 if (c
& alt_modifier
)
1375 if (c
& ctrl_modifier
)
1381 if (c
& hyper_modifier
)
1385 c
-= hyper_modifier
;
1387 if (c
& meta_modifier
)
1393 if (c
& shift_modifier
)
1397 c
-= shift_modifier
;
1399 if (c
& super_modifier
)
1403 c
-= super_modifier
;
1419 else if (c
== Ctl('J'))
1425 else if (c
== Ctl('M'))
1435 if (c
> 0 && c
<= Ctl ('Z'))
1458 *p
++ = (7 & (c
>> 15)) + '0';
1459 *p
++ = (7 & (c
>> 12)) + '0';
1460 *p
++ = (7 & (c
>> 9)) + '0';
1461 *p
++ = (7 & (c
>> 6)) + '0';
1462 *p
++ = (7 & (c
>> 3)) + '0';
1463 *p
++ = (7 & (c
>> 0)) + '0';
1469 /* This function cannot GC. */
1471 DEFUN ("single-key-description", Fsingle_key_description
, Ssingle_key_description
, 1, 1, 0,
1472 "Return a pretty description of command character KEY.\n\
1473 Control characters turn into C-whatever, etc.")
1479 key
= EVENT_HEAD (key
);
1481 if (INTEGERP (key
)) /* Normal character */
1483 *push_key_description (XUINT (key
), tem
) = 0;
1484 return build_string (tem
);
1486 else if (SYMBOLP (key
)) /* Function key or event-symbol */
1487 return Fsymbol_name (key
);
1488 else if (STRINGP (key
)) /* Buffer names in the menubar. */
1489 return Fcopy_sequence (key
);
1491 error ("KEY must be an integer, cons, symbol, or string");
1495 push_text_char_description (c
, p
)
1496 register unsigned int c
;
1508 *p
++ = c
+ 64; /* 'A' - 1 */
1520 /* This function cannot GC. */
1522 DEFUN ("text-char-description", Ftext_char_description
, Stext_char_description
, 1, 1, 0,
1523 "Return a pretty description of file-character CHARACTER.\n\
1524 Control characters turn into \"^char\", etc.")
1526 Lisp_Object character
;
1530 CHECK_NUMBER (character
, 0);
1532 *push_text_char_description (XINT (character
) & 0377, tem
) = 0;
1534 return build_string (tem
);
1537 /* Return non-zero if SEQ contains only ASCII characters, perhaps with
1540 ascii_sequence_p (seq
)
1544 int len
= XINT (Flength (seq
));
1546 for (i
= 0; i
< len
; i
++)
1548 Lisp_Object ii
, elt
;
1550 XSETFASTINT (ii
, i
);
1551 elt
= Faref (seq
, ii
);
1554 || (XUINT (elt
) & ~CHAR_META
) >= 0x80)
1562 /* where-is - finding a command in a set of keymaps. */
1564 /* This function can GC if Flookup_key autoloads any keymaps. */
1566 DEFUN ("where-is-internal", Fwhere_is_internal
, Swhere_is_internal
, 1, 4, 0,
1567 "Return list of keys that invoke DEFINITION.\n\
1568 If KEYMAP is non-nil, search only KEYMAP and the global keymap.\n\
1569 If KEYMAP is nil, search all the currently active keymaps.\n\
1571 If optional 3rd arg FIRSTONLY is non-nil, return the first key sequence found,\n\
1572 rather than a list of all possible key sequences.\n\
1573 If FIRSTONLY is the symbol `non-ascii', return the first binding found,\n\
1574 no matter what it is.\n\
1575 If FIRSTONLY has another non-nil value, prefer sequences of ASCII characters,\n\
1576 and entirely reject menu bindings.\n\
1578 If optional 4th arg NOINDIRECT is non-nil, don't follow indirections\n\
1579 to other keymaps or slots. This makes it possible to search for an\n\
1580 indirect definition itself.")
1581 (definition
, keymap
, firstonly
, noindirect
)
1582 Lisp_Object definition
, keymap
;
1583 Lisp_Object firstonly
, noindirect
;
1586 Lisp_Object found
, sequence
;
1587 int keymap_specified
= !NILP (keymap
);
1588 struct gcpro gcpro1
, gcpro2
, gcpro3
, gcpro4
, gcpro5
;
1589 /* 1 means ignore all menu bindings entirely. */
1590 int nomenus
= !NILP (firstonly
) && !EQ (firstonly
, Qnon_ascii
);
1592 if (! keymap_specified
)
1594 #ifdef USE_TEXT_PROPERTIES
1595 keymap
= get_local_map (PT
, current_buffer
);
1597 keymap
= current_buffer
->keymap
;
1602 maps
= nconc2 (Faccessible_keymaps (get_keymap (keymap
), Qnil
),
1603 Faccessible_keymaps (get_keymap (current_global_map
),
1606 maps
= Faccessible_keymaps (get_keymap (current_global_map
), Qnil
);
1608 /* Put the minor mode keymaps on the front. */
1609 if (! keymap_specified
)
1612 minors
= Fnreverse (Fcurrent_minor_mode_maps ());
1613 while (!NILP (minors
))
1615 maps
= nconc2 (Faccessible_keymaps (get_keymap (XCONS (minors
)->car
),
1618 minors
= XCONS (minors
)->cdr
;
1622 GCPRO5 (definition
, keymap
, maps
, found
, sequence
);
1626 for (; !NILP (maps
); maps
= Fcdr (maps
))
1628 /* Key sequence to reach map, and the map that it reaches */
1629 register Lisp_Object
this, map
;
1631 /* If Fcar (map) is a VECTOR, the current element within that vector. */
1634 /* In order to fold [META-PREFIX-CHAR CHAR] sequences into
1635 [M-CHAR] sequences, check if last character of the sequence
1636 is the meta-prefix char. */
1640 this = Fcar (Fcar (maps
));
1641 map
= Fcdr (Fcar (maps
));
1642 last
= make_number (XINT (Flength (this)) - 1);
1643 last_is_meta
= (XINT (last
) >= 0
1644 && EQ (Faref (this, last
), meta_prefix_char
));
1650 /* Because the code we want to run on each binding is rather
1651 large, we don't want to have two separate loop bodies for
1652 sparse keymap bindings and tables; we want to iterate one
1653 loop body over both keymap and vector bindings.
1655 For this reason, if Fcar (map) is a vector, we don't
1656 advance map to the next element until i indicates that we
1657 have finished off the vector. */
1659 Lisp_Object elt
, key
, binding
;
1660 elt
= XCONS (map
)->car
;
1664 /* Set key and binding to the current key and binding, and
1665 advance map and i to the next binding. */
1668 /* In a vector, look at each element. */
1669 binding
= XVECTOR (elt
)->contents
[i
];
1670 XSETFASTINT (key
, i
);
1673 /* If we've just finished scanning a vector, advance map
1674 to the next element, and reset i in anticipation of the
1675 next vector we may find. */
1676 if (i
>= XVECTOR (elt
)->size
)
1678 map
= XCONS (map
)->cdr
;
1682 else if (CONSP (elt
))
1684 key
= Fcar (Fcar (map
));
1685 binding
= Fcdr (Fcar (map
));
1687 map
= XCONS (map
)->cdr
;
1690 /* We want to ignore keymap elements that are neither
1691 vectors nor conses. */
1693 map
= XCONS (map
)->cdr
;
1697 /* Search through indirections unless that's not wanted. */
1698 if (NILP (noindirect
))
1704 Lisp_Object map
, tem
;
1705 /* If the contents are (KEYMAP . ELEMENT), go indirect. */
1706 map
= get_keymap_1 (Fcar_safe (definition
), 0, 0);
1707 tem
= Fkeymapp (map
);
1709 definition
= access_keymap (map
, Fcdr (definition
), 0, 0);
1713 /* If the contents are (STRING ...), reject. */
1714 if (CONSP (definition
)
1715 && STRINGP (XCONS (definition
)->car
))
1719 binding
= get_keyelt (binding
, 0);
1722 /* End this iteration if this element does not match
1725 if (CONSP (definition
))
1728 tem
= Fequal (binding
, definition
);
1733 if (!EQ (binding
, definition
))
1736 /* We have found a match.
1737 Construct the key sequence where we found it. */
1738 if (INTEGERP (key
) && last_is_meta
)
1740 sequence
= Fcopy_sequence (this);
1741 Faset (sequence
, last
, make_number (XINT (key
) | meta_modifier
));
1744 sequence
= append_key (this, key
);
1746 /* Verify that this key binding is not shadowed by another
1747 binding for the same key, before we say it exists.
1749 Mechanism: look for local definition of this key and if
1750 it is defined and does not match what we found then
1753 Either nil or number as value from Flookup_key
1755 if (keymap_specified
)
1757 binding
= Flookup_key (keymap
, sequence
, Qnil
);
1758 if (!NILP (binding
) && !INTEGERP (binding
))
1760 if (CONSP (definition
))
1763 tem
= Fequal (binding
, definition
);
1768 if (!EQ (binding
, definition
))
1774 binding
= Fkey_binding (sequence
, Qnil
);
1775 if (!EQ (binding
, definition
))
1779 /* It is a true unshadowed match. Record it, unless it's already
1780 been seen (as could happen when inheriting keymaps). */
1781 if (NILP (Fmember (sequence
, found
)))
1782 found
= Fcons (sequence
, found
);
1784 /* If firstonly is Qnon_ascii, then we can return the first
1785 binding we find. If firstonly is not Qnon_ascii but not
1786 nil, then we should return the first ascii-only binding
1788 if (EQ (firstonly
, Qnon_ascii
))
1789 RETURN_UNGCPRO (sequence
);
1790 else if (! NILP (firstonly
) && ascii_sequence_p (sequence
))
1791 RETURN_UNGCPRO (sequence
);
1797 found
= Fnreverse (found
);
1799 /* firstonly may have been t, but we may have gone all the way through
1800 the keymaps without finding an all-ASCII key sequence. So just
1801 return the best we could find. */
1802 if (! NILP (firstonly
))
1803 return Fcar (found
);
1808 /* describe-bindings - summarizing all the bindings in a set of keymaps. */
1810 DEFUN ("describe-bindings", Fdescribe_bindings
, Sdescribe_bindings
, 0, 1, "",
1811 "Show a list of all defined keys, and their definitions.\n\
1812 The list is put in a buffer, which is displayed.\n\
1813 An optional argument PREFIX, if non-nil, should be a key sequence;\n\
1814 then we display only bindings that start with that prefix.")
1818 register Lisp_Object thisbuf
;
1819 XSETBUFFER (thisbuf
, current_buffer
);
1820 internal_with_output_to_temp_buffer ("*Help*",
1821 describe_buffer_bindings
,
1822 Fcons (thisbuf
, prefix
));
1826 /* ARG is (BUFFER . PREFIX). */
1829 describe_buffer_bindings (arg
)
1832 Lisp_Object descbuf
, prefix
, shadow
;
1833 register Lisp_Object start1
;
1834 struct gcpro gcpro1
;
1836 char *alternate_heading
1838 Alternate Characters (use anywhere the nominal character is listed):\n\
1839 nominal alternate\n\
1840 ------- ---------\n";
1842 descbuf
= XCONS (arg
)->car
;
1843 prefix
= XCONS (arg
)->cdr
;
1847 Fset_buffer (Vstandard_output
);
1849 /* Report on alternates for keys. */
1850 if (STRINGP (Vkeyboard_translate_table
) && !NILP (prefix
))
1853 unsigned char *translate
= XSTRING (Vkeyboard_translate_table
)->data
;
1854 int translate_len
= XSTRING (Vkeyboard_translate_table
)->size
;
1856 for (c
= 0; c
< translate_len
; c
++)
1857 if (translate
[c
] != c
)
1862 if (alternate_heading
)
1864 insert_string (alternate_heading
);
1865 alternate_heading
= 0;
1868 bufend
= push_key_description (translate
[c
], buf
);
1869 insert (buf
, bufend
- buf
);
1870 Findent_to (make_number (16), make_number (1));
1871 bufend
= push_key_description (c
, buf
);
1872 insert (buf
, bufend
- buf
);
1880 if (!NILP (Vkey_translation_map
))
1881 describe_map_tree (Vkey_translation_map
, 0, Qnil
, prefix
,
1882 "Key translations", 0, 1, 0);
1886 Lisp_Object
*modes
, *maps
;
1888 /* Temporarily switch to descbuf, so that we can get that buffer's
1889 minor modes correctly. */
1890 Fset_buffer (descbuf
);
1892 if (!NILP (current_kboard
->Voverriding_terminal_local_map
)
1893 || !NILP (Voverriding_local_map
))
1896 nmaps
= current_minor_maps (&modes
, &maps
);
1897 Fset_buffer (Vstandard_output
);
1899 /* Print the minor mode maps. */
1900 for (i
= 0; i
< nmaps
; i
++)
1902 /* The title for a minor mode keymap
1903 is constructed at run time.
1904 We let describe_map_tree do the actual insertion
1905 because it takes care of other features when doing so. */
1908 if (!SYMBOLP (modes
[i
]))
1911 p
= title
= (char *) alloca (40 + XSYMBOL (modes
[i
])->name
->size
);
1913 bcopy (XSYMBOL (modes
[i
])->name
->data
, p
,
1914 XSYMBOL (modes
[i
])->name
->size
);
1915 p
+= XSYMBOL (modes
[i
])->name
->size
;
1917 bcopy (" Minor Mode Bindings", p
, sizeof (" Minor Mode Bindings") - 1);
1918 p
+= sizeof (" Minor Mode Bindings") - 1;
1921 describe_map_tree (maps
[i
], 0, shadow
, prefix
, title
, 0, 0, 0);
1922 shadow
= Fcons (maps
[i
], shadow
);
1926 /* Print the (major mode) local map. */
1927 if (!NILP (current_kboard
->Voverriding_terminal_local_map
))
1928 start1
= current_kboard
->Voverriding_terminal_local_map
;
1929 else if (!NILP (Voverriding_local_map
))
1930 start1
= Voverriding_local_map
;
1932 start1
= XBUFFER (descbuf
)->keymap
;
1936 describe_map_tree (start1
, 0, shadow
, prefix
,
1937 "Major Mode Bindings", 0, 0, 0);
1938 shadow
= Fcons (start1
, shadow
);
1941 describe_map_tree (current_global_map
, 0, shadow
, prefix
,
1942 "Global Bindings", 0, 0, 1);
1944 /* Print the function-key-map translations under this prefix. */
1945 if (!NILP (Vfunction_key_map
))
1946 describe_map_tree (Vfunction_key_map
, 0, Qnil
, prefix
,
1947 "Function key map translations", 0, 1, 0);
1949 call0 (intern ("help-mode"));
1950 Fset_buffer (descbuf
);
1955 /* Insert a description of the key bindings in STARTMAP,
1956 followed by those of all maps reachable through STARTMAP.
1957 If PARTIAL is nonzero, omit certain "uninteresting" commands
1958 (such as `undefined').
1959 If SHADOW is non-nil, it is a list of maps;
1960 don't mention keys which would be shadowed by any of them.
1961 PREFIX, if non-nil, says mention only keys that start with PREFIX.
1962 TITLE, if not 0, is a string to insert at the beginning.
1963 TITLE should not end with a colon or a newline; we supply that.
1964 If NOMENU is not 0, then omit menu-bar commands.
1966 If TRANSL is nonzero, the definitions are actually key translations
1967 so print strings and vectors differently.
1969 If ALWAYS_TITLE is nonzero, print the title even if there are no maps
1973 describe_map_tree (startmap
, partial
, shadow
, prefix
, title
, nomenu
, transl
,
1975 Lisp_Object startmap
, shadow
, prefix
;
1982 Lisp_Object maps
, seen
, sub_shadows
;
1983 struct gcpro gcpro1
, gcpro2
, gcpro3
;
1990 maps
= Faccessible_keymaps (startmap
, prefix
);
1993 GCPRO3 (maps
, seen
, sub_shadows
);
1999 /* Delete from MAPS each element that is for the menu bar. */
2000 for (list
= maps
; !NILP (list
); list
= XCONS (list
)->cdr
)
2002 Lisp_Object elt
, prefix
, tem
;
2005 prefix
= Fcar (elt
);
2006 if (XVECTOR (prefix
)->size
>= 1)
2008 tem
= Faref (prefix
, make_number (0));
2009 if (EQ (tem
, Qmenu_bar
))
2010 maps
= Fdelq (elt
, maps
);
2015 if (!NILP (maps
) || always_title
)
2019 insert_string (title
);
2022 insert_string (" Starting With ");
2023 insert1 (Fkey_description (prefix
));
2025 insert_string (":\n");
2027 insert_string (key_heading
);
2031 for (; !NILP (maps
); maps
= Fcdr (maps
))
2033 register Lisp_Object elt
, prefix
, tail
;
2036 prefix
= Fcar (elt
);
2040 for (tail
= shadow
; CONSP (tail
); tail
= XCONS (tail
)->cdr
)
2044 shmap
= XCONS (tail
)->car
;
2046 /* If the sequence by which we reach this keymap is zero-length,
2047 then the shadow map for this keymap is just SHADOW. */
2048 if ((STRINGP (prefix
) && XSTRING (prefix
)->size
== 0)
2049 || (VECTORP (prefix
) && XVECTOR (prefix
)->size
== 0))
2051 /* If the sequence by which we reach this keymap actually has
2052 some elements, then the sequence's definition in SHADOW is
2053 what we should use. */
2056 shmap
= Flookup_key (shmap
, Fcar (elt
), Qt
);
2057 if (INTEGERP (shmap
))
2061 /* If shmap is not nil and not a keymap,
2062 it completely shadows this map, so don't
2063 describe this map at all. */
2064 if (!NILP (shmap
) && NILP (Fkeymapp (shmap
)))
2068 sub_shadows
= Fcons (shmap
, sub_shadows
);
2071 describe_map (Fcdr (elt
), Fcar (elt
),
2072 transl
? describe_translation
: describe_command
,
2073 partial
, sub_shadows
, &seen
, nomenu
);
2079 insert_string ("\n");
2084 static int previous_description_column
;
2087 describe_command (definition
)
2088 Lisp_Object definition
;
2090 register Lisp_Object tem1
;
2091 int column
= current_column ();
2092 int description_column
;
2094 /* If column 16 is no good, go to col 32;
2095 but don't push beyond that--go to next line instead. */
2099 description_column
= 32;
2101 else if (column
> 14 || (column
> 10 && previous_description_column
== 32))
2102 description_column
= 32;
2104 description_column
= 16;
2106 Findent_to (make_number (description_column
), make_number (1));
2107 previous_description_column
= description_column
;
2109 if (SYMBOLP (definition
))
2111 XSETSTRING (tem1
, XSYMBOL (definition
)->name
);
2113 insert_string ("\n");
2115 else if (STRINGP (definition
) || VECTORP (definition
))
2116 insert_string ("Keyboard Macro\n");
2119 tem1
= Fkeymapp (definition
);
2121 insert_string ("Prefix Command\n");
2123 insert_string ("??\n");
2128 describe_translation (definition
)
2129 Lisp_Object definition
;
2131 register Lisp_Object tem1
;
2133 Findent_to (make_number (16), make_number (1));
2135 if (SYMBOLP (definition
))
2137 XSETSTRING (tem1
, XSYMBOL (definition
)->name
);
2139 insert_string ("\n");
2141 else if (STRINGP (definition
) || VECTORP (definition
))
2143 insert1 (Fkey_description (definition
));
2144 insert_string ("\n");
2148 tem1
= Fkeymapp (definition
);
2150 insert_string ("Prefix Command\n");
2152 insert_string ("??\n");
2156 /* Like Flookup_key, but uses a list of keymaps SHADOW instead of a single map.
2157 Returns the first non-nil binding found in any of those maps. */
2160 shadow_lookup (shadow
, key
, flag
)
2161 Lisp_Object shadow
, key
, flag
;
2163 Lisp_Object tail
, value
;
2165 for (tail
= shadow
; CONSP (tail
); tail
= XCONS (tail
)->cdr
)
2167 value
= Flookup_key (XCONS (tail
)->car
, key
, flag
);
2174 /* Describe the contents of map MAP, assuming that this map itself is
2175 reached by the sequence of prefix keys KEYS (a string or vector).
2176 PARTIAL, SHADOW, NOMENU are as in `describe_map_tree' above. */
2179 describe_map (map
, keys
, elt_describer
, partial
, shadow
, seen
, nomenu
)
2180 register Lisp_Object map
;
2182 int (*elt_describer
) ();
2188 Lisp_Object elt_prefix
;
2189 Lisp_Object tail
, definition
, event
;
2191 Lisp_Object suppress
;
2194 struct gcpro gcpro1
, gcpro2
, gcpro3
;
2196 if (!NILP (keys
) && XFASTINT (Flength (keys
)) > 0)
2198 /* Call Fkey_description first, to avoid GC bug for the other string. */
2199 tem
= Fkey_description (keys
);
2200 elt_prefix
= concat2 (tem
, build_string (" "));
2206 suppress
= intern ("suppress-keymap");
2208 /* This vector gets used to present single keys to Flookup_key. Since
2209 that is done once per keymap element, we don't want to cons up a
2210 fresh vector every time. */
2211 kludge
= Fmake_vector (make_number (1), Qnil
);
2214 GCPRO3 (elt_prefix
, definition
, kludge
);
2216 for (tail
= map
; CONSP (tail
); tail
= XCONS (tail
)->cdr
)
2220 if (VECTORP (XCONS (tail
)->car
))
2221 describe_vector (XCONS (tail
)->car
,
2222 elt_prefix
, elt_describer
, partial
, shadow
, map
);
2223 else if (CONSP (XCONS (tail
)->car
))
2225 event
= XCONS (XCONS (tail
)->car
)->car
;
2227 /* Ignore bindings whose "keys" are not really valid events.
2228 (We get these in the frames and buffers menu.) */
2229 if (! (SYMBOLP (event
) || INTEGERP (event
)))
2232 if (nomenu
&& EQ (event
, Qmenu_bar
))
2235 definition
= get_keyelt (XCONS (XCONS (tail
)->car
)->cdr
, 0);
2237 /* Don't show undefined commands or suppressed commands. */
2238 if (NILP (definition
)) continue;
2239 if (SYMBOLP (definition
) && partial
)
2241 tem
= Fget (definition
, suppress
);
2246 /* Don't show a command that isn't really visible
2247 because a local definition of the same key shadows it. */
2249 XVECTOR (kludge
)->contents
[0] = event
;
2252 tem
= shadow_lookup (shadow
, kludge
, Qt
);
2253 if (!NILP (tem
)) continue;
2256 tem
= Flookup_key (map
, kludge
, Qt
);
2257 if (! EQ (tem
, definition
)) continue;
2261 previous_description_column
= 0;
2266 if (!NILP (elt_prefix
))
2267 insert1 (elt_prefix
);
2269 /* THIS gets the string to describe the character EVENT. */
2270 insert1 (Fsingle_key_description (event
));
2272 /* Print a description of the definition of this character.
2273 elt_describer will take care of spacing out far enough
2274 for alignment purposes. */
2275 (*elt_describer
) (definition
);
2277 else if (EQ (XCONS (tail
)->car
, Qkeymap
))
2279 /* The same keymap might be in the structure twice, if we're
2280 using an inherited keymap. So skip anything we've already
2282 tem
= Fassq (tail
, *seen
);
2283 if (CONSP (tem
) && !NILP (Fequal (XCONS (tem
)->car
, keys
)))
2285 *seen
= Fcons (Fcons (tail
, keys
), *seen
);
2293 describe_vector_princ (elt
)
2296 Findent_to (make_number (16), make_number (1));
2301 DEFUN ("describe-vector", Fdescribe_vector
, Sdescribe_vector
, 1, 1, 0,
2302 "Insert a description of contents of VECTOR.\n\
2303 This is text showing the elements of vector matched against indices.")
2307 int count
= specpdl_ptr
- specpdl
;
2309 specbind (Qstandard_output
, Fcurrent_buffer ());
2310 CHECK_VECTOR_OR_CHAR_TABLE (vector
, 0);
2311 describe_vector (vector
, Qnil
, describe_vector_princ
, 0, Qnil
, Qnil
);
2313 return unbind_to (count
, Qnil
);
2316 /* Insert in the current buffer a description of the contents of VECTOR.
2317 We call ELT_DESCRIBER to insert the description of one value found
2320 ELT_PREFIX describes what "comes before" the keys or indices defined
2323 If the vector is in a keymap, ELT_PREFIX is a prefix key which
2324 leads to this keymap.
2326 If the vector is a chartable, ELT_PREFIX is the vector
2327 of bytes that lead to the character set or portion of a character
2328 set described by this chartable.
2330 If PARTIAL is nonzero, it means do not mention suppressed commands
2331 (that assumes the vector is in a keymap).
2333 SHADOW is a list of keymaps that shadow this map.
2334 If it is non-nil, then we look up the key in those maps
2335 and we don't mention it now if it is defined by any of them.
2337 ENTIRE_MAP is the keymap in which this vector appears.
2338 If the definition in effect in the whole map does not match
2339 the one in this vector, we ignore this one. */
2341 describe_vector (vector
, elt_prefix
, elt_describer
,
2342 partial
, shadow
, entire_map
)
2343 register Lisp_Object vector
;
2344 Lisp_Object elt_prefix
;
2345 int (*elt_describer
) ();
2348 Lisp_Object entire_map
;
2352 Lisp_Object definition
;
2355 Lisp_Object suppress
;
2357 Lisp_Object chartable_kludge
;
2360 struct gcpro gcpro1
, gcpro2
, gcpro3
, gcpro4
;
2363 chartable_kludge
= Qnil
;
2365 /* This vector gets used to present single keys to Flookup_key. Since
2366 that is done once per vector element, we don't want to cons up a
2367 fresh vector every time. */
2368 kludge
= Fmake_vector (make_number (1), Qnil
);
2369 GCPRO4 (elt_prefix
, definition
, kludge
, chartable_kludge
);
2372 suppress
= intern ("suppress-keymap");
2374 /* This does the right thing for char-tables as well as ordinary vectors. */
2375 size
= XFASTINT (Flength (vector
));
2377 for (i
= 0; i
< size
; i
++)
2380 definition
= get_keyelt (XVECTOR (vector
)->contents
[i
], 0);
2382 if (NILP (definition
)) continue;
2384 /* Don't mention suppressed commands. */
2385 if (SYMBOLP (definition
) && partial
)
2387 this = Fget (definition
, suppress
);
2392 /* If this binding is shadowed by some other map, ignore it. */
2397 XVECTOR (kludge
)->contents
[0] = make_number (i
);
2398 tem
= shadow_lookup (shadow
, kludge
, Qt
);
2400 if (!NILP (tem
)) continue;
2403 /* Ignore this definition if it is shadowed by an earlier
2404 one in the same keymap. */
2405 if (!NILP (entire_map
))
2409 XVECTOR (kludge
)->contents
[0] = make_number (i
);
2410 tem
= Flookup_key (entire_map
, kludge
, Qt
);
2412 if (! EQ (tem
, definition
))
2416 /* If we find a char-table within a char-table,
2417 scan it recursively; it defines the details for
2418 a character set or a portion of a character set. */
2419 if (CHAR_TABLE_P (vector
) && CHAR_TABLE_P (definition
))
2422 = !NILP (elt_prefix
) ? XVECTOR (elt_prefix
)->size
: 0;
2423 if (NILP (chartable_kludge
))
2426 = Fmake_vector (make_number (outer_level
+ 1), Qnil
);
2427 if (outer_level
!= 0)
2428 bcopy (XVECTOR (elt_prefix
)->contents
,
2429 XVECTOR (chartable_kludge
)->contents
,
2430 outer_level
* sizeof (Lisp_Object
));
2432 XVECTOR (chartable_kludge
)->contents
[outer_level
]
2434 describe_vector (definition
, chartable_kludge
, elt_describer
,
2435 partial
, shadow
, entire_map
);
2445 if (CHAR_TABLE_P (vector
))
2447 if (!NILP (elt_prefix
))
2449 /* Must combine elt_prefix with i to produce a character
2450 code, then insert that character's description. */
2454 /* Get the string to describe the character I, and print it. */
2455 XSETFASTINT (dummy
, i
);
2457 /* THIS gets the string to describe the character DUMMY. */
2458 this = Fsingle_key_description (dummy
);
2464 /* Output the prefix that applies to every entry in this map. */
2465 if (!NILP (elt_prefix
))
2466 insert1 (elt_prefix
);
2468 /* Get the string to describe the character I, and print it. */
2469 XSETFASTINT (dummy
, i
);
2471 /* THIS gets the string to describe the character DUMMY. */
2472 this = Fsingle_key_description (dummy
);
2476 /* Find all consecutive characters that have the same definition. */
2477 while (i
+ 1 < XVECTOR (vector
)->size
2478 && (tem2
= get_keyelt (XVECTOR (vector
)->contents
[i
+1], 0),
2479 EQ (tem2
, definition
)))
2482 /* If we have a range of more than one character,
2483 print where the range reaches to. */
2485 if (i
!= XINT (dummy
))
2488 if (CHAR_TABLE_P (vector
))
2490 if (!NILP (elt_prefix
))
2492 /* Must combine elt_prefix with i to produce a character
2493 code, then insert that character's description. */
2497 XSETFASTINT (dummy
, i
);
2499 this = Fsingle_key_description (dummy
);
2505 if (!NILP (elt_prefix
))
2506 insert1 (elt_prefix
);
2508 XSETFASTINT (dummy
, i
);
2509 insert1 (Fsingle_key_description (dummy
));
2513 /* Print a description of the definition of this character.
2514 elt_describer will take care of spacing out far enough
2515 for alignment purposes. */
2516 (*elt_describer
) (definition
);
2522 /* Apropos - finding all symbols whose names match a regexp. */
2523 Lisp_Object apropos_predicate
;
2524 Lisp_Object apropos_accumulate
;
2527 apropos_accum (symbol
, string
)
2528 Lisp_Object symbol
, string
;
2530 register Lisp_Object tem
;
2532 tem
= Fstring_match (string
, Fsymbol_name (symbol
), Qnil
);
2533 if (!NILP (tem
) && !NILP (apropos_predicate
))
2534 tem
= call1 (apropos_predicate
, symbol
);
2536 apropos_accumulate
= Fcons (symbol
, apropos_accumulate
);
2539 DEFUN ("apropos-internal", Fapropos_internal
, Sapropos_internal
, 1, 2, 0,
2540 "Show all symbols whose names contain match for REGEXP.\n\
2541 If optional 2nd arg PREDICATE is non-nil, (funcall PREDICATE SYMBOL) is done\n\
2542 for each symbol and a symbol is mentioned only if that returns non-nil.\n\
2543 Return list of symbols found.")
2545 Lisp_Object regexp
, predicate
;
2547 struct gcpro gcpro1
, gcpro2
;
2548 CHECK_STRING (regexp
, 0);
2549 apropos_predicate
= predicate
;
2550 GCPRO2 (apropos_predicate
, apropos_accumulate
);
2551 apropos_accumulate
= Qnil
;
2552 map_obarray (Vobarray
, apropos_accum
, regexp
);
2553 apropos_accumulate
= Fsort (apropos_accumulate
, Qstring_lessp
);
2555 return apropos_accumulate
;
2562 Qkeymap
= intern ("keymap");
2563 staticpro (&Qkeymap
);
2565 /* Initialize the keymaps standardly used.
2566 Each one is the value of a Lisp variable, and is also
2567 pointed to by a C variable */
2569 global_map
= Fcons (Qkeymap
,
2570 Fcons (Fmake_vector (make_number (0400), Qnil
), Qnil
));
2571 Fset (intern ("global-map"), global_map
);
2573 meta_map
= Fmake_keymap (Qnil
);
2574 Fset (intern ("esc-map"), meta_map
);
2575 Ffset (intern ("ESC-prefix"), meta_map
);
2577 control_x_map
= Fmake_keymap (Qnil
);
2578 Fset (intern ("ctl-x-map"), control_x_map
);
2579 Ffset (intern ("Control-X-prefix"), control_x_map
);
2581 DEFVAR_LISP ("define-key-rebound-commands", &Vdefine_key_rebound_commands
,
2582 "List of commands given new key bindings recently.\n\
2583 This is used for internal purposes during Emacs startup;\n\
2584 don't alter it yourself.");
2585 Vdefine_key_rebound_commands
= Qt
;
2587 DEFVAR_LISP ("minibuffer-local-map", &Vminibuffer_local_map
,
2588 "Default keymap to use when reading from the minibuffer.");
2589 Vminibuffer_local_map
= Fmake_sparse_keymap (Qnil
);
2591 DEFVAR_LISP ("minibuffer-local-ns-map", &Vminibuffer_local_ns_map
,
2592 "Local keymap for the minibuffer when spaces are not allowed.");
2593 Vminibuffer_local_ns_map
= Fmake_sparse_keymap (Qnil
);
2595 DEFVAR_LISP ("minibuffer-local-completion-map", &Vminibuffer_local_completion_map
,
2596 "Local keymap for minibuffer input with completion.");
2597 Vminibuffer_local_completion_map
= Fmake_sparse_keymap (Qnil
);
2599 DEFVAR_LISP ("minibuffer-local-must-match-map", &Vminibuffer_local_must_match_map
,
2600 "Local keymap for minibuffer input with completion, for exact match.");
2601 Vminibuffer_local_must_match_map
= Fmake_sparse_keymap (Qnil
);
2603 current_global_map
= global_map
;
2605 DEFVAR_LISP ("minor-mode-map-alist", &Vminor_mode_map_alist
,
2606 "Alist of keymaps to use for minor modes.\n\
2607 Each element looks like (VARIABLE . KEYMAP); KEYMAP is used to read\n\
2608 key sequences and look up bindings iff VARIABLE's value is non-nil.\n\
2609 If two active keymaps bind the same key, the keymap appearing earlier\n\
2610 in the list takes precedence.");
2611 Vminor_mode_map_alist
= Qnil
;
2613 DEFVAR_LISP ("function-key-map", &Vfunction_key_map
,
2614 "Keymap mapping ASCII function key sequences onto their preferred forms.\n\
2615 This allows Emacs to recognize function keys sent from ASCII\n\
2616 terminals at any point in a key sequence.\n\
2618 The `read-key-sequence' function replaces any subsequence bound by\n\
2619 `function-key-map' with its binding. More precisely, when the active\n\
2620 keymaps have no binding for the current key sequence but\n\
2621 `function-key-map' binds a suffix of the sequence to a vector or string,\n\
2622 `read-key-sequence' replaces the matching suffix with its binding, and\n\
2623 continues with the new sequence.\n\
2625 The events that come from bindings in `function-key-map' are not\n\
2626 themselves looked up in `function-key-map'.\n\
2628 For example, suppose `function-key-map' binds `ESC O P' to [f1].\n\
2629 Typing `ESC O P' to `read-key-sequence' would return [f1]. Typing\n\
2630 `C-x ESC O P' would return [?\\C-x f1]. If [f1] were a prefix\n\
2631 key, typing `ESC O P x' would return [f1 x].");
2632 Vfunction_key_map
= Fmake_sparse_keymap (Qnil
);
2634 DEFVAR_LISP ("key-translation-map", &Vkey_translation_map
,
2635 "Keymap of key translations that can override keymaps.\n\
2636 This keymap works like `function-key-map', but comes after that,\n\
2637 and applies even for keys that have ordinary bindings.");
2638 Vkey_translation_map
= Qnil
;
2640 Qsingle_key_description
= intern ("single-key-description");
2641 staticpro (&Qsingle_key_description
);
2643 Qkey_description
= intern ("key-description");
2644 staticpro (&Qkey_description
);
2646 Qkeymapp
= intern ("keymapp");
2647 staticpro (&Qkeymapp
);
2649 Qnon_ascii
= intern ("non-ascii");
2650 staticpro (&Qnon_ascii
);
2652 defsubr (&Skeymapp
);
2653 defsubr (&Smake_keymap
);
2654 defsubr (&Smake_sparse_keymap
);
2655 defsubr (&Scopy_keymap
);
2656 defsubr (&Skey_binding
);
2657 defsubr (&Slocal_key_binding
);
2658 defsubr (&Sglobal_key_binding
);
2659 defsubr (&Sminor_mode_key_binding
);
2660 defsubr (&Sdefine_key
);
2661 defsubr (&Slookup_key
);
2662 defsubr (&Sdefine_prefix_command
);
2663 defsubr (&Suse_global_map
);
2664 defsubr (&Suse_local_map
);
2665 defsubr (&Scurrent_local_map
);
2666 defsubr (&Scurrent_global_map
);
2667 defsubr (&Scurrent_minor_mode_maps
);
2668 defsubr (&Saccessible_keymaps
);
2669 defsubr (&Skey_description
);
2670 defsubr (&Sdescribe_vector
);
2671 defsubr (&Ssingle_key_description
);
2672 defsubr (&Stext_char_description
);
2673 defsubr (&Swhere_is_internal
);
2674 defsubr (&Sdescribe_bindings
);
2675 defsubr (&Sapropos_internal
);
2682 initial_define_key (global_map
, 033, "ESC-prefix");
2683 initial_define_key (global_map
, Ctl('X'), "Control-X-prefix");