* lisp.h (enum Lisp_Misc_Type): Del Lisp_Misc_Some_Buffer_Local_Value.
[bpt/emacs.git] / src / data.c
1 /* Primitive operations on Lisp data types for GNU Emacs Lisp interpreter.
2 Copyright (C) 1985, 1986, 1988, 1993, 1994, 1995, 1997, 1998, 1999, 2000,
3 2001, 2002, 2003, 2004, 2005, 2006, 2007 Free Software Foundation, Inc.
4
5 This file is part of GNU Emacs.
6
7 GNU Emacs is free software; you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
9 the Free Software Foundation; either version 3, or (at your option)
10 any later version.
11
12 GNU Emacs is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
16
17 You should have received a copy of the GNU General Public License
18 along with GNU Emacs; see the file COPYING. If not, write to
19 the Free Software Foundation, Inc., 51 Franklin Street, Fifth Floor,
20 Boston, MA 02110-1301, USA. */
21
22
23 #include <config.h>
24 #include <signal.h>
25 #include <stdio.h>
26 #include "lisp.h"
27 #include "puresize.h"
28 #include "charset.h"
29 #include "buffer.h"
30 #include "keyboard.h"
31 #include "frame.h"
32 #include "syssignal.h"
33 #include "termhooks.h" /* For FRAME_KBOARD reference in y-or-n-p. */
34
35 #ifdef STDC_HEADERS
36 #include <float.h>
37 #endif
38
39 /* If IEEE_FLOATING_POINT isn't defined, default it from FLT_*. */
40 #ifndef IEEE_FLOATING_POINT
41 #if (FLT_RADIX == 2 && FLT_MANT_DIG == 24 \
42 && FLT_MIN_EXP == -125 && FLT_MAX_EXP == 128)
43 #define IEEE_FLOATING_POINT 1
44 #else
45 #define IEEE_FLOATING_POINT 0
46 #endif
47 #endif
48
49 /* Work around a problem that happens because math.h on hpux 7
50 defines two static variables--which, in Emacs, are not really static,
51 because `static' is defined as nothing. The problem is that they are
52 here, in floatfns.c, and in lread.c.
53 These macros prevent the name conflict. */
54 #if defined (HPUX) && !defined (HPUX8)
55 #define _MAXLDBL data_c_maxldbl
56 #define _NMAXLDBL data_c_nmaxldbl
57 #endif
58
59 #include <math.h>
60
61 #if !defined (atof)
62 extern double atof ();
63 #endif /* !atof */
64
65 Lisp_Object Qnil, Qt, Qquote, Qlambda, Qsubr, Qunbound;
66 Lisp_Object Qerror_conditions, Qerror_message, Qtop_level;
67 Lisp_Object Qerror, Qquit, Qwrong_type_argument, Qargs_out_of_range;
68 Lisp_Object Qvoid_variable, Qvoid_function, Qcyclic_function_indirection;
69 Lisp_Object Qcyclic_variable_indirection, Qcircular_list;
70 Lisp_Object Qsetting_constant, Qinvalid_read_syntax;
71 Lisp_Object Qinvalid_function, Qwrong_number_of_arguments, Qno_catch;
72 Lisp_Object Qend_of_file, Qarith_error, Qmark_inactive;
73 Lisp_Object Qbeginning_of_buffer, Qend_of_buffer, Qbuffer_read_only;
74 Lisp_Object Qtext_read_only;
75
76 Lisp_Object Qintegerp, Qnatnump, Qwholenump, Qsymbolp, Qlistp, Qconsp;
77 Lisp_Object Qstringp, Qarrayp, Qsequencep, Qbufferp;
78 Lisp_Object Qchar_or_string_p, Qmarkerp, Qinteger_or_marker_p, Qvectorp;
79 Lisp_Object Qbuffer_or_string_p, Qkeywordp;
80 Lisp_Object Qboundp, Qfboundp;
81 Lisp_Object Qchar_table_p, Qvector_or_char_table_p;
82
83 Lisp_Object Qcdr;
84 Lisp_Object Qad_advice_info, Qad_activate_internal;
85
86 Lisp_Object Qrange_error, Qdomain_error, Qsingularity_error;
87 Lisp_Object Qoverflow_error, Qunderflow_error;
88
89 Lisp_Object Qfloatp;
90 Lisp_Object Qnumberp, Qnumber_or_marker_p;
91
92 Lisp_Object Qinteger;
93 static Lisp_Object Qsymbol, Qstring, Qcons, Qmarker, Qoverlay;
94 static Lisp_Object Qfloat, Qwindow_configuration, Qwindow;
95 Lisp_Object Qprocess;
96 static Lisp_Object Qcompiled_function, Qbuffer, Qframe, Qvector;
97 static Lisp_Object Qchar_table, Qbool_vector, Qhash_table;
98 static Lisp_Object Qsubrp, Qmany, Qunevalled;
99
100 static Lisp_Object swap_in_symval_forwarding P_ ((Lisp_Object, Lisp_Object));
101
102 Lisp_Object Vmost_positive_fixnum, Vmost_negative_fixnum;
103
104
105 void
106 circular_list_error (list)
107 Lisp_Object list;
108 {
109 xsignal (Qcircular_list, list);
110 }
111
112
113 Lisp_Object
114 wrong_type_argument (predicate, value)
115 register Lisp_Object predicate, value;
116 {
117 /* If VALUE is not even a valid Lisp object, abort here
118 where we can get a backtrace showing where it came from. */
119 if ((unsigned int) XGCTYPE (value) >= Lisp_Type_Limit)
120 abort ();
121
122 xsignal2 (Qwrong_type_argument, predicate, value);
123 }
124
125 void
126 pure_write_error ()
127 {
128 error ("Attempt to modify read-only object");
129 }
130
131 void
132 args_out_of_range (a1, a2)
133 Lisp_Object a1, a2;
134 {
135 xsignal2 (Qargs_out_of_range, a1, a2);
136 }
137
138 void
139 args_out_of_range_3 (a1, a2, a3)
140 Lisp_Object a1, a2, a3;
141 {
142 xsignal3 (Qargs_out_of_range, a1, a2, a3);
143 }
144
145 /* On some machines, XINT needs a temporary location.
146 Here it is, in case it is needed. */
147
148 int sign_extend_temp;
149
150 /* On a few machines, XINT can only be done by calling this. */
151
152 int
153 sign_extend_lisp_int (num)
154 EMACS_INT num;
155 {
156 if (num & (((EMACS_INT) 1) << (VALBITS - 1)))
157 return num | (((EMACS_INT) (-1)) << VALBITS);
158 else
159 return num & ((((EMACS_INT) 1) << VALBITS) - 1);
160 }
161 \f
162 /* Data type predicates */
163
164 DEFUN ("eq", Feq, Seq, 2, 2, 0,
165 doc: /* Return t if the two args are the same Lisp object. */)
166 (obj1, obj2)
167 Lisp_Object obj1, obj2;
168 {
169 if (EQ (obj1, obj2))
170 return Qt;
171 return Qnil;
172 }
173
174 DEFUN ("null", Fnull, Snull, 1, 1, 0,
175 doc: /* Return t if OBJECT is nil. */)
176 (object)
177 Lisp_Object object;
178 {
179 if (NILP (object))
180 return Qt;
181 return Qnil;
182 }
183
184 DEFUN ("type-of", Ftype_of, Stype_of, 1, 1, 0,
185 doc: /* Return a symbol representing the type of OBJECT.
186 The symbol returned names the object's basic type;
187 for example, (type-of 1) returns `integer'. */)
188 (object)
189 Lisp_Object object;
190 {
191 switch (XGCTYPE (object))
192 {
193 case Lisp_Int:
194 return Qinteger;
195
196 case Lisp_Symbol:
197 return Qsymbol;
198
199 case Lisp_String:
200 return Qstring;
201
202 case Lisp_Cons:
203 return Qcons;
204
205 case Lisp_Misc:
206 switch (XMISCTYPE (object))
207 {
208 case Lisp_Misc_Marker:
209 return Qmarker;
210 case Lisp_Misc_Overlay:
211 return Qoverlay;
212 case Lisp_Misc_Float:
213 return Qfloat;
214 }
215 abort ();
216
217 case Lisp_Vectorlike:
218 if (GC_WINDOW_CONFIGURATIONP (object))
219 return Qwindow_configuration;
220 if (GC_PROCESSP (object))
221 return Qprocess;
222 if (GC_WINDOWP (object))
223 return Qwindow;
224 if (GC_SUBRP (object))
225 return Qsubr;
226 if (GC_COMPILEDP (object))
227 return Qcompiled_function;
228 if (GC_BUFFERP (object))
229 return Qbuffer;
230 if (GC_CHAR_TABLE_P (object))
231 return Qchar_table;
232 if (GC_BOOL_VECTOR_P (object))
233 return Qbool_vector;
234 if (GC_FRAMEP (object))
235 return Qframe;
236 if (GC_HASH_TABLE_P (object))
237 return Qhash_table;
238 return Qvector;
239
240 case Lisp_Float:
241 return Qfloat;
242
243 default:
244 abort ();
245 }
246 }
247
248 DEFUN ("consp", Fconsp, Sconsp, 1, 1, 0,
249 doc: /* Return t if OBJECT is a cons cell. */)
250 (object)
251 Lisp_Object object;
252 {
253 if (CONSP (object))
254 return Qt;
255 return Qnil;
256 }
257
258 DEFUN ("atom", Fatom, Satom, 1, 1, 0,
259 doc: /* Return t if OBJECT is not a cons cell. This includes nil. */)
260 (object)
261 Lisp_Object object;
262 {
263 if (CONSP (object))
264 return Qnil;
265 return Qt;
266 }
267
268 DEFUN ("listp", Flistp, Slistp, 1, 1, 0,
269 doc: /* Return t if OBJECT is a list, that is, a cons cell or nil.
270 Otherwise, return nil. */)
271 (object)
272 Lisp_Object object;
273 {
274 if (CONSP (object) || NILP (object))
275 return Qt;
276 return Qnil;
277 }
278
279 DEFUN ("nlistp", Fnlistp, Snlistp, 1, 1, 0,
280 doc: /* Return t if OBJECT is not a list. Lists include nil. */)
281 (object)
282 Lisp_Object object;
283 {
284 if (CONSP (object) || NILP (object))
285 return Qnil;
286 return Qt;
287 }
288 \f
289 DEFUN ("symbolp", Fsymbolp, Ssymbolp, 1, 1, 0,
290 doc: /* Return t if OBJECT is a symbol. */)
291 (object)
292 Lisp_Object object;
293 {
294 if (SYMBOLP (object))
295 return Qt;
296 return Qnil;
297 }
298
299 /* Define this in C to avoid unnecessarily consing up the symbol
300 name. */
301 DEFUN ("keywordp", Fkeywordp, Skeywordp, 1, 1, 0,
302 doc: /* Return t if OBJECT is a keyword.
303 This means that it is a symbol with a print name beginning with `:'
304 interned in the initial obarray. */)
305 (object)
306 Lisp_Object object;
307 {
308 if (SYMBOLP (object)
309 && SREF (SYMBOL_NAME (object), 0) == ':'
310 && SYMBOL_INTERNED_IN_INITIAL_OBARRAY_P (object))
311 return Qt;
312 return Qnil;
313 }
314
315 DEFUN ("vectorp", Fvectorp, Svectorp, 1, 1, 0,
316 doc: /* Return t if OBJECT is a vector. */)
317 (object)
318 Lisp_Object object;
319 {
320 if (VECTORP (object))
321 return Qt;
322 return Qnil;
323 }
324
325 DEFUN ("stringp", Fstringp, Sstringp, 1, 1, 0,
326 doc: /* Return t if OBJECT is a string. */)
327 (object)
328 Lisp_Object object;
329 {
330 if (STRINGP (object))
331 return Qt;
332 return Qnil;
333 }
334
335 DEFUN ("multibyte-string-p", Fmultibyte_string_p, Smultibyte_string_p,
336 1, 1, 0,
337 doc: /* Return t if OBJECT is a multibyte string. */)
338 (object)
339 Lisp_Object object;
340 {
341 if (STRINGP (object) && STRING_MULTIBYTE (object))
342 return Qt;
343 return Qnil;
344 }
345
346 DEFUN ("char-table-p", Fchar_table_p, Schar_table_p, 1, 1, 0,
347 doc: /* Return t if OBJECT is a char-table. */)
348 (object)
349 Lisp_Object object;
350 {
351 if (CHAR_TABLE_P (object))
352 return Qt;
353 return Qnil;
354 }
355
356 DEFUN ("vector-or-char-table-p", Fvector_or_char_table_p,
357 Svector_or_char_table_p, 1, 1, 0,
358 doc: /* Return t if OBJECT is a char-table or vector. */)
359 (object)
360 Lisp_Object object;
361 {
362 if (VECTORP (object) || CHAR_TABLE_P (object))
363 return Qt;
364 return Qnil;
365 }
366
367 DEFUN ("bool-vector-p", Fbool_vector_p, Sbool_vector_p, 1, 1, 0,
368 doc: /* Return t if OBJECT is a bool-vector. */)
369 (object)
370 Lisp_Object object;
371 {
372 if (BOOL_VECTOR_P (object))
373 return Qt;
374 return Qnil;
375 }
376
377 DEFUN ("arrayp", Farrayp, Sarrayp, 1, 1, 0,
378 doc: /* Return t if OBJECT is an array (string or vector). */)
379 (object)
380 Lisp_Object object;
381 {
382 if (ARRAYP (object))
383 return Qt;
384 return Qnil;
385 }
386
387 DEFUN ("sequencep", Fsequencep, Ssequencep, 1, 1, 0,
388 doc: /* Return t if OBJECT is a sequence (list or array). */)
389 (object)
390 register Lisp_Object object;
391 {
392 if (CONSP (object) || NILP (object) || ARRAYP (object))
393 return Qt;
394 return Qnil;
395 }
396
397 DEFUN ("bufferp", Fbufferp, Sbufferp, 1, 1, 0,
398 doc: /* Return t if OBJECT is an editor buffer. */)
399 (object)
400 Lisp_Object object;
401 {
402 if (BUFFERP (object))
403 return Qt;
404 return Qnil;
405 }
406
407 DEFUN ("markerp", Fmarkerp, Smarkerp, 1, 1, 0,
408 doc: /* Return t if OBJECT is a marker (editor pointer). */)
409 (object)
410 Lisp_Object object;
411 {
412 if (MARKERP (object))
413 return Qt;
414 return Qnil;
415 }
416
417 DEFUN ("subrp", Fsubrp, Ssubrp, 1, 1, 0,
418 doc: /* Return t if OBJECT is a built-in function. */)
419 (object)
420 Lisp_Object object;
421 {
422 if (SUBRP (object))
423 return Qt;
424 return Qnil;
425 }
426
427 DEFUN ("byte-code-function-p", Fbyte_code_function_p, Sbyte_code_function_p,
428 1, 1, 0,
429 doc: /* Return t if OBJECT is a byte-compiled function object. */)
430 (object)
431 Lisp_Object object;
432 {
433 if (COMPILEDP (object))
434 return Qt;
435 return Qnil;
436 }
437
438 DEFUN ("char-or-string-p", Fchar_or_string_p, Schar_or_string_p, 1, 1, 0,
439 doc: /* Return t if OBJECT is a character (an integer) or a string. */)
440 (object)
441 register Lisp_Object object;
442 {
443 if (INTEGERP (object) || STRINGP (object))
444 return Qt;
445 return Qnil;
446 }
447 \f
448 DEFUN ("integerp", Fintegerp, Sintegerp, 1, 1, 0,
449 doc: /* Return t if OBJECT is an integer. */)
450 (object)
451 Lisp_Object object;
452 {
453 if (INTEGERP (object))
454 return Qt;
455 return Qnil;
456 }
457
458 DEFUN ("integer-or-marker-p", Finteger_or_marker_p, Sinteger_or_marker_p, 1, 1, 0,
459 doc: /* Return t if OBJECT is an integer or a marker (editor pointer). */)
460 (object)
461 register Lisp_Object object;
462 {
463 if (MARKERP (object) || INTEGERP (object))
464 return Qt;
465 return Qnil;
466 }
467
468 DEFUN ("natnump", Fnatnump, Snatnump, 1, 1, 0,
469 doc: /* Return t if OBJECT is a nonnegative integer. */)
470 (object)
471 Lisp_Object object;
472 {
473 if (NATNUMP (object))
474 return Qt;
475 return Qnil;
476 }
477
478 DEFUN ("numberp", Fnumberp, Snumberp, 1, 1, 0,
479 doc: /* Return t if OBJECT is a number (floating point or integer). */)
480 (object)
481 Lisp_Object object;
482 {
483 if (NUMBERP (object))
484 return Qt;
485 else
486 return Qnil;
487 }
488
489 DEFUN ("number-or-marker-p", Fnumber_or_marker_p,
490 Snumber_or_marker_p, 1, 1, 0,
491 doc: /* Return t if OBJECT is a number or a marker. */)
492 (object)
493 Lisp_Object object;
494 {
495 if (NUMBERP (object) || MARKERP (object))
496 return Qt;
497 return Qnil;
498 }
499
500 DEFUN ("floatp", Ffloatp, Sfloatp, 1, 1, 0,
501 doc: /* Return t if OBJECT is a floating point number. */)
502 (object)
503 Lisp_Object object;
504 {
505 if (FLOATP (object))
506 return Qt;
507 return Qnil;
508 }
509
510 \f
511 /* Extract and set components of lists */
512
513 DEFUN ("car", Fcar, Scar, 1, 1, 0,
514 doc: /* Return the car of LIST. If arg is nil, return nil.
515 Error if arg is not nil and not a cons cell. See also `car-safe'.
516
517 See Info node `(elisp)Cons Cells' for a discussion of related basic
518 Lisp concepts such as car, cdr, cons cell and list. */)
519 (list)
520 register Lisp_Object list;
521 {
522 return CAR (list);
523 }
524
525 DEFUN ("car-safe", Fcar_safe, Scar_safe, 1, 1, 0,
526 doc: /* Return the car of OBJECT if it is a cons cell, or else nil. */)
527 (object)
528 Lisp_Object object;
529 {
530 return CAR_SAFE (object);
531 }
532
533 DEFUN ("cdr", Fcdr, Scdr, 1, 1, 0,
534 doc: /* Return the cdr of LIST. If arg is nil, return nil.
535 Error if arg is not nil and not a cons cell. See also `cdr-safe'.
536
537 See Info node `(elisp)Cons Cells' for a discussion of related basic
538 Lisp concepts such as cdr, car, cons cell and list. */)
539 (list)
540 register Lisp_Object list;
541 {
542 return CDR (list);
543 }
544
545 DEFUN ("cdr-safe", Fcdr_safe, Scdr_safe, 1, 1, 0,
546 doc: /* Return the cdr of OBJECT if it is a cons cell, or else nil. */)
547 (object)
548 Lisp_Object object;
549 {
550 return CDR_SAFE (object);
551 }
552
553 DEFUN ("setcar", Fsetcar, Ssetcar, 2, 2, 0,
554 doc: /* Set the car of CELL to be NEWCAR. Returns NEWCAR. */)
555 (cell, newcar)
556 register Lisp_Object cell, newcar;
557 {
558 CHECK_CONS (cell);
559 CHECK_IMPURE (cell);
560 XSETCAR (cell, newcar);
561 return newcar;
562 }
563
564 DEFUN ("setcdr", Fsetcdr, Ssetcdr, 2, 2, 0,
565 doc: /* Set the cdr of CELL to be NEWCDR. Returns NEWCDR. */)
566 (cell, newcdr)
567 register Lisp_Object cell, newcdr;
568 {
569 CHECK_CONS (cell);
570 CHECK_IMPURE (cell);
571 XSETCDR (cell, newcdr);
572 return newcdr;
573 }
574 \f
575 /* Extract and set components of symbols */
576
577 DEFUN ("boundp", Fboundp, Sboundp, 1, 1, 0,
578 doc: /* Return t if SYMBOL's value is not void. */)
579 (symbol)
580 register Lisp_Object symbol;
581 {
582 Lisp_Object valcontents;
583 CHECK_SYMBOL (symbol);
584
585 valcontents = SYMBOL_VALUE (symbol);
586
587 if (BUFFER_LOCAL_VALUEP (valcontents))
588 valcontents = swap_in_symval_forwarding (symbol, valcontents);
589
590 return (EQ (valcontents, Qunbound) ? Qnil : Qt);
591 }
592
593 DEFUN ("fboundp", Ffboundp, Sfboundp, 1, 1, 0,
594 doc: /* Return t if SYMBOL's function definition is not void. */)
595 (symbol)
596 register Lisp_Object symbol;
597 {
598 CHECK_SYMBOL (symbol);
599 return (EQ (XSYMBOL (symbol)->function, Qunbound) ? Qnil : Qt);
600 }
601
602 DEFUN ("makunbound", Fmakunbound, Smakunbound, 1, 1, 0,
603 doc: /* Make SYMBOL's value be void.
604 Return SYMBOL. */)
605 (symbol)
606 register Lisp_Object symbol;
607 {
608 CHECK_SYMBOL (symbol);
609 if (SYMBOL_CONSTANT_P (symbol))
610 xsignal1 (Qsetting_constant, symbol);
611 Fset (symbol, Qunbound);
612 return symbol;
613 }
614
615 DEFUN ("fmakunbound", Ffmakunbound, Sfmakunbound, 1, 1, 0,
616 doc: /* Make SYMBOL's function definition be void.
617 Return SYMBOL. */)
618 (symbol)
619 register Lisp_Object symbol;
620 {
621 CHECK_SYMBOL (symbol);
622 if (NILP (symbol) || EQ (symbol, Qt))
623 xsignal1 (Qsetting_constant, symbol);
624 XSYMBOL (symbol)->function = Qunbound;
625 return symbol;
626 }
627
628 DEFUN ("symbol-function", Fsymbol_function, Ssymbol_function, 1, 1, 0,
629 doc: /* Return SYMBOL's function definition. Error if that is void. */)
630 (symbol)
631 register Lisp_Object symbol;
632 {
633 CHECK_SYMBOL (symbol);
634 if (!EQ (XSYMBOL (symbol)->function, Qunbound))
635 return XSYMBOL (symbol)->function;
636 xsignal1 (Qvoid_function, symbol);
637 }
638
639 DEFUN ("symbol-plist", Fsymbol_plist, Ssymbol_plist, 1, 1, 0,
640 doc: /* Return SYMBOL's property list. */)
641 (symbol)
642 register Lisp_Object symbol;
643 {
644 CHECK_SYMBOL (symbol);
645 return XSYMBOL (symbol)->plist;
646 }
647
648 DEFUN ("symbol-name", Fsymbol_name, Ssymbol_name, 1, 1, 0,
649 doc: /* Return SYMBOL's name, a string. */)
650 (symbol)
651 register Lisp_Object symbol;
652 {
653 register Lisp_Object name;
654
655 CHECK_SYMBOL (symbol);
656 name = SYMBOL_NAME (symbol);
657 return name;
658 }
659
660 DEFUN ("fset", Ffset, Sfset, 2, 2, 0,
661 doc: /* Set SYMBOL's function definition to DEFINITION, and return DEFINITION. */)
662 (symbol, definition)
663 register Lisp_Object symbol, definition;
664 {
665 register Lisp_Object function;
666
667 CHECK_SYMBOL (symbol);
668 if (NILP (symbol) || EQ (symbol, Qt))
669 xsignal1 (Qsetting_constant, symbol);
670
671 function = XSYMBOL (symbol)->function;
672
673 if (!NILP (Vautoload_queue) && !EQ (function, Qunbound))
674 Vautoload_queue = Fcons (Fcons (symbol, function), Vautoload_queue);
675
676 if (CONSP (function) && EQ (XCAR (function), Qautoload))
677 Fput (symbol, Qautoload, XCDR (function));
678
679 XSYMBOL (symbol)->function = definition;
680 /* Handle automatic advice activation */
681 if (CONSP (XSYMBOL (symbol)->plist) && !NILP (Fget (symbol, Qad_advice_info)))
682 {
683 call2 (Qad_activate_internal, symbol, Qnil);
684 definition = XSYMBOL (symbol)->function;
685 }
686 return definition;
687 }
688
689 extern Lisp_Object Qfunction_documentation;
690
691 DEFUN ("defalias", Fdefalias, Sdefalias, 2, 3, 0,
692 doc: /* Set SYMBOL's function definition to DEFINITION, and return DEFINITION.
693 Associates the function with the current load file, if any.
694 The optional third argument DOCSTRING specifies the documentation string
695 for SYMBOL; if it is omitted or nil, SYMBOL uses the documentation string
696 determined by DEFINITION. */)
697 (symbol, definition, docstring)
698 register Lisp_Object symbol, definition, docstring;
699 {
700 CHECK_SYMBOL (symbol);
701 if (CONSP (XSYMBOL (symbol)->function)
702 && EQ (XCAR (XSYMBOL (symbol)->function), Qautoload))
703 LOADHIST_ATTACH (Fcons (Qt, symbol));
704 definition = Ffset (symbol, definition);
705 LOADHIST_ATTACH (Fcons (Qdefun, symbol));
706 if (!NILP (docstring))
707 Fput (symbol, Qfunction_documentation, docstring);
708 return definition;
709 }
710
711 DEFUN ("setplist", Fsetplist, Ssetplist, 2, 2, 0,
712 doc: /* Set SYMBOL's property list to NEWPLIST, and return NEWPLIST. */)
713 (symbol, newplist)
714 register Lisp_Object symbol, newplist;
715 {
716 CHECK_SYMBOL (symbol);
717 XSYMBOL (symbol)->plist = newplist;
718 return newplist;
719 }
720
721 DEFUN ("subr-arity", Fsubr_arity, Ssubr_arity, 1, 1, 0,
722 doc: /* Return minimum and maximum number of args allowed for SUBR.
723 SUBR must be a built-in function.
724 The returned value is a pair (MIN . MAX). MIN is the minimum number
725 of args. MAX is the maximum number or the symbol `many', for a
726 function with `&rest' args, or `unevalled' for a special form. */)
727 (subr)
728 Lisp_Object subr;
729 {
730 short minargs, maxargs;
731 CHECK_SUBR (subr);
732 minargs = XSUBR (subr)->min_args;
733 maxargs = XSUBR (subr)->max_args;
734 if (maxargs == MANY)
735 return Fcons (make_number (minargs), Qmany);
736 else if (maxargs == UNEVALLED)
737 return Fcons (make_number (minargs), Qunevalled);
738 else
739 return Fcons (make_number (minargs), make_number (maxargs));
740 }
741
742 DEFUN ("subr-name", Fsubr_name, Ssubr_name, 1, 1, 0,
743 doc: /* Return name of subroutine SUBR.
744 SUBR must be a built-in function. */)
745 (subr)
746 Lisp_Object subr;
747 {
748 const char *name;
749 CHECK_SUBR (subr);
750 name = XSUBR (subr)->symbol_name;
751 return make_string (name, strlen (name));
752 }
753
754 DEFUN ("interactive-form", Finteractive_form, Sinteractive_form, 1, 1, 0,
755 doc: /* Return the interactive form of CMD or nil if none.
756 If CMD is not a command, the return value is nil.
757 Value, if non-nil, is a list \(interactive SPEC). */)
758 (cmd)
759 Lisp_Object cmd;
760 {
761 Lisp_Object fun = indirect_function (cmd); /* Check cycles. */
762
763 if (NILP (fun) || EQ (fun, Qunbound))
764 return Qnil;
765
766 /* Use an `interactive-form' property if present, analogous to the
767 function-documentation property. */
768 fun = cmd;
769 while (SYMBOLP (fun))
770 {
771 Lisp_Object tmp = Fget (fun, intern ("interactive-form"));
772 if (!NILP (tmp))
773 return tmp;
774 else
775 fun = Fsymbol_function (fun);
776 }
777
778 if (SUBRP (fun))
779 {
780 char *spec = XSUBR (fun)->intspec;
781 if (spec)
782 return list2 (Qinteractive,
783 (*spec != '(') ? build_string (spec) :
784 Fcar (Fread_from_string (build_string (spec), Qnil, Qnil)));
785 }
786 else if (COMPILEDP (fun))
787 {
788 if ((ASIZE (fun) & PSEUDOVECTOR_SIZE_MASK) > COMPILED_INTERACTIVE)
789 return list2 (Qinteractive, AREF (fun, COMPILED_INTERACTIVE));
790 }
791 else if (CONSP (fun))
792 {
793 Lisp_Object funcar = XCAR (fun);
794 if (EQ (funcar, Qlambda))
795 return Fassq (Qinteractive, Fcdr (XCDR (fun)));
796 else if (EQ (funcar, Qautoload))
797 {
798 struct gcpro gcpro1;
799 GCPRO1 (cmd);
800 do_autoload (fun, cmd);
801 UNGCPRO;
802 return Finteractive_form (cmd);
803 }
804 }
805 return Qnil;
806 }
807
808 \f
809 /***********************************************************************
810 Getting and Setting Values of Symbols
811 ***********************************************************************/
812
813 /* Return the symbol holding SYMBOL's value. Signal
814 `cyclic-variable-indirection' if SYMBOL's chain of variable
815 indirections contains a loop. */
816
817 Lisp_Object
818 indirect_variable (symbol)
819 Lisp_Object symbol;
820 {
821 Lisp_Object tortoise, hare;
822
823 hare = tortoise = symbol;
824
825 while (XSYMBOL (hare)->indirect_variable)
826 {
827 hare = XSYMBOL (hare)->value;
828 if (!XSYMBOL (hare)->indirect_variable)
829 break;
830
831 hare = XSYMBOL (hare)->value;
832 tortoise = XSYMBOL (tortoise)->value;
833
834 if (EQ (hare, tortoise))
835 xsignal1 (Qcyclic_variable_indirection, symbol);
836 }
837
838 return hare;
839 }
840
841
842 DEFUN ("indirect-variable", Findirect_variable, Sindirect_variable, 1, 1, 0,
843 doc: /* Return the variable at the end of OBJECT's variable chain.
844 If OBJECT is a symbol, follow all variable indirections and return the final
845 variable. If OBJECT is not a symbol, just return it.
846 Signal a cyclic-variable-indirection error if there is a loop in the
847 variable chain of symbols. */)
848 (object)
849 Lisp_Object object;
850 {
851 if (SYMBOLP (object))
852 object = indirect_variable (object);
853 return object;
854 }
855
856
857 /* Given the raw contents of a symbol value cell,
858 return the Lisp value of the symbol.
859 This does not handle buffer-local variables; use
860 swap_in_symval_forwarding for that. */
861
862 Lisp_Object
863 do_symval_forwarding (valcontents)
864 register Lisp_Object valcontents;
865 {
866 register Lisp_Object val;
867 int offset;
868 if (MISCP (valcontents))
869 switch (XMISCTYPE (valcontents))
870 {
871 case Lisp_Misc_Intfwd:
872 XSETINT (val, *XINTFWD (valcontents)->intvar);
873 return val;
874
875 case Lisp_Misc_Boolfwd:
876 return (*XBOOLFWD (valcontents)->boolvar ? Qt : Qnil);
877
878 case Lisp_Misc_Objfwd:
879 return *XOBJFWD (valcontents)->objvar;
880
881 case Lisp_Misc_Buffer_Objfwd:
882 offset = XBUFFER_OBJFWD (valcontents)->offset;
883 return PER_BUFFER_VALUE (current_buffer, offset);
884
885 case Lisp_Misc_Kboard_Objfwd:
886 offset = XKBOARD_OBJFWD (valcontents)->offset;
887 /* We used to simply use current_kboard here, but from Lisp
888 code, it's value is often unexpected. It seems nicer to
889 allow constructions like this to work as intuitively expected:
890
891 (with-selected-frame frame
892 (define-key local-function-map "\eOP" [f1]))
893
894 On the other hand, this affects the semantics of
895 last-command and real-last-command, and people may rely on
896 that. I took a quick look at the Lisp codebase, and I
897 don't think anything will break. --lorentey */
898 return *(Lisp_Object *)(offset + (char *)FRAME_KBOARD (SELECTED_FRAME ()));
899 }
900 return valcontents;
901 }
902
903 /* Store NEWVAL into SYMBOL, where VALCONTENTS is found in the value cell
904 of SYMBOL. If SYMBOL is buffer-local, VALCONTENTS should be the
905 buffer-independent contents of the value cell: forwarded just one
906 step past the buffer-localness.
907
908 BUF non-zero means set the value in buffer BUF instead of the
909 current buffer. This only plays a role for per-buffer variables. */
910
911 void
912 store_symval_forwarding (symbol, valcontents, newval, buf)
913 Lisp_Object symbol;
914 register Lisp_Object valcontents, newval;
915 struct buffer *buf;
916 {
917 switch (SWITCH_ENUM_CAST (XTYPE (valcontents)))
918 {
919 case Lisp_Misc:
920 switch (XMISCTYPE (valcontents))
921 {
922 case Lisp_Misc_Intfwd:
923 CHECK_NUMBER (newval);
924 *XINTFWD (valcontents)->intvar = XINT (newval);
925 if (*XINTFWD (valcontents)->intvar != XINT (newval))
926 error ("Value out of range for variable `%s'",
927 SDATA (SYMBOL_NAME (symbol)));
928 break;
929
930 case Lisp_Misc_Boolfwd:
931 *XBOOLFWD (valcontents)->boolvar = NILP (newval) ? 0 : 1;
932 break;
933
934 case Lisp_Misc_Objfwd:
935 *XOBJFWD (valcontents)->objvar = newval;
936
937 /* If this variable is a default for something stored
938 in the buffer itself, such as default-fill-column,
939 find the buffers that don't have local values for it
940 and update them. */
941 if (XOBJFWD (valcontents)->objvar > (Lisp_Object *) &buffer_defaults
942 && XOBJFWD (valcontents)->objvar < (Lisp_Object *) (&buffer_defaults + 1))
943 {
944 int offset = ((char *) XOBJFWD (valcontents)->objvar
945 - (char *) &buffer_defaults);
946 int idx = PER_BUFFER_IDX (offset);
947
948 Lisp_Object tail;
949
950 if (idx <= 0)
951 break;
952
953 for (tail = Vbuffer_alist; CONSP (tail); tail = XCDR (tail))
954 {
955 Lisp_Object buf;
956 struct buffer *b;
957
958 buf = Fcdr (XCAR (tail));
959 if (!BUFFERP (buf)) continue;
960 b = XBUFFER (buf);
961
962 if (! PER_BUFFER_VALUE_P (b, idx))
963 PER_BUFFER_VALUE (b, offset) = newval;
964 }
965 }
966 break;
967
968 case Lisp_Misc_Buffer_Objfwd:
969 {
970 int offset = XBUFFER_OBJFWD (valcontents)->offset;
971 Lisp_Object type;
972
973 type = PER_BUFFER_TYPE (offset);
974 if (! NILP (type) && ! NILP (newval)
975 && XTYPE (newval) != XINT (type))
976 buffer_slot_type_mismatch (offset);
977
978 if (buf == NULL)
979 buf = current_buffer;
980 PER_BUFFER_VALUE (buf, offset) = newval;
981 }
982 break;
983
984 case Lisp_Misc_Kboard_Objfwd:
985 {
986 char *base = (char *) FRAME_KBOARD (SELECTED_FRAME ());
987 char *p = base + XKBOARD_OBJFWD (valcontents)->offset;
988 *(Lisp_Object *) p = newval;
989 }
990 break;
991
992 default:
993 goto def;
994 }
995 break;
996
997 default:
998 def:
999 valcontents = SYMBOL_VALUE (symbol);
1000 if (BUFFER_LOCAL_VALUEP (valcontents))
1001 XBUFFER_LOCAL_VALUE (valcontents)->realvalue = newval;
1002 else
1003 SET_SYMBOL_VALUE (symbol, newval);
1004 }
1005 }
1006
1007 /* Set up SYMBOL to refer to its global binding.
1008 This makes it safe to alter the status of other bindings. */
1009
1010 void
1011 swap_in_global_binding (symbol)
1012 Lisp_Object symbol;
1013 {
1014 Lisp_Object valcontents, cdr;
1015
1016 valcontents = SYMBOL_VALUE (symbol);
1017 if (!BUFFER_LOCAL_VALUEP (valcontents))
1018 abort ();
1019 cdr = XBUFFER_LOCAL_VALUE (valcontents)->cdr;
1020
1021 /* Unload the previously loaded binding. */
1022 Fsetcdr (XCAR (cdr),
1023 do_symval_forwarding (XBUFFER_LOCAL_VALUE (valcontents)->realvalue));
1024
1025 /* Select the global binding in the symbol. */
1026 XSETCAR (cdr, cdr);
1027 store_symval_forwarding (symbol, valcontents, XCDR (cdr), NULL);
1028
1029 /* Indicate that the global binding is set up now. */
1030 XBUFFER_LOCAL_VALUE (valcontents)->frame = Qnil;
1031 XBUFFER_LOCAL_VALUE (valcontents)->buffer = Qnil;
1032 XBUFFER_LOCAL_VALUE (valcontents)->found_for_frame = 0;
1033 XBUFFER_LOCAL_VALUE (valcontents)->found_for_buffer = 0;
1034 }
1035
1036 /* Set up the buffer-local symbol SYMBOL for validity in the current buffer.
1037 VALCONTENTS is the contents of its value cell,
1038 which points to a struct Lisp_Buffer_Local_Value.
1039
1040 Return the value forwarded one step past the buffer-local stage.
1041 This could be another forwarding pointer. */
1042
1043 static Lisp_Object
1044 swap_in_symval_forwarding (symbol, valcontents)
1045 Lisp_Object symbol, valcontents;
1046 {
1047 register Lisp_Object tem1;
1048
1049 tem1 = XBUFFER_LOCAL_VALUE (valcontents)->buffer;
1050
1051 if (NILP (tem1)
1052 || current_buffer != XBUFFER (tem1)
1053 || (XBUFFER_LOCAL_VALUE (valcontents)->check_frame
1054 && ! EQ (selected_frame, XBUFFER_LOCAL_VALUE (valcontents)->frame)))
1055 {
1056 if (XSYMBOL (symbol)->indirect_variable)
1057 symbol = indirect_variable (symbol);
1058
1059 /* Unload the previously loaded binding. */
1060 tem1 = XCAR (XBUFFER_LOCAL_VALUE (valcontents)->cdr);
1061 Fsetcdr (tem1,
1062 do_symval_forwarding (XBUFFER_LOCAL_VALUE (valcontents)->realvalue));
1063 /* Choose the new binding. */
1064 tem1 = assq_no_quit (symbol, current_buffer->local_var_alist);
1065 XBUFFER_LOCAL_VALUE (valcontents)->found_for_frame = 0;
1066 XBUFFER_LOCAL_VALUE (valcontents)->found_for_buffer = 0;
1067 if (NILP (tem1))
1068 {
1069 if (XBUFFER_LOCAL_VALUE (valcontents)->check_frame)
1070 tem1 = assq_no_quit (symbol, XFRAME (selected_frame)->param_alist);
1071 if (! NILP (tem1))
1072 XBUFFER_LOCAL_VALUE (valcontents)->found_for_frame = 1;
1073 else
1074 tem1 = XBUFFER_LOCAL_VALUE (valcontents)->cdr;
1075 }
1076 else
1077 XBUFFER_LOCAL_VALUE (valcontents)->found_for_buffer = 1;
1078
1079 /* Load the new binding. */
1080 XSETCAR (XBUFFER_LOCAL_VALUE (valcontents)->cdr, tem1);
1081 XSETBUFFER (XBUFFER_LOCAL_VALUE (valcontents)->buffer, current_buffer);
1082 XBUFFER_LOCAL_VALUE (valcontents)->frame = selected_frame;
1083 store_symval_forwarding (symbol,
1084 XBUFFER_LOCAL_VALUE (valcontents)->realvalue,
1085 Fcdr (tem1), NULL);
1086 }
1087 return XBUFFER_LOCAL_VALUE (valcontents)->realvalue;
1088 }
1089 \f
1090 /* Find the value of a symbol, returning Qunbound if it's not bound.
1091 This is helpful for code which just wants to get a variable's value
1092 if it has one, without signaling an error.
1093 Note that it must not be possible to quit
1094 within this function. Great care is required for this. */
1095
1096 Lisp_Object
1097 find_symbol_value (symbol)
1098 Lisp_Object symbol;
1099 {
1100 register Lisp_Object valcontents;
1101 register Lisp_Object val;
1102
1103 CHECK_SYMBOL (symbol);
1104 valcontents = SYMBOL_VALUE (symbol);
1105
1106 if (BUFFER_LOCAL_VALUEP (valcontents))
1107 valcontents = swap_in_symval_forwarding (symbol, valcontents);
1108
1109 if (MISCP (valcontents))
1110 {
1111 switch (XMISCTYPE (valcontents))
1112 {
1113 case Lisp_Misc_Intfwd:
1114 XSETINT (val, *XINTFWD (valcontents)->intvar);
1115 return val;
1116
1117 case Lisp_Misc_Boolfwd:
1118 return (*XBOOLFWD (valcontents)->boolvar ? Qt : Qnil);
1119
1120 case Lisp_Misc_Objfwd:
1121 return *XOBJFWD (valcontents)->objvar;
1122
1123 case Lisp_Misc_Buffer_Objfwd:
1124 return PER_BUFFER_VALUE (current_buffer,
1125 XBUFFER_OBJFWD (valcontents)->offset);
1126
1127 case Lisp_Misc_Kboard_Objfwd:
1128 return *(Lisp_Object *)(XKBOARD_OBJFWD (valcontents)->offset
1129 + (char *)FRAME_KBOARD (SELECTED_FRAME ()));
1130 }
1131 }
1132
1133 return valcontents;
1134 }
1135
1136 DEFUN ("symbol-value", Fsymbol_value, Ssymbol_value, 1, 1, 0,
1137 doc: /* Return SYMBOL's value. Error if that is void. */)
1138 (symbol)
1139 Lisp_Object symbol;
1140 {
1141 Lisp_Object val;
1142
1143 val = find_symbol_value (symbol);
1144 if (!EQ (val, Qunbound))
1145 return val;
1146
1147 xsignal1 (Qvoid_variable, symbol);
1148 }
1149
1150 DEFUN ("set", Fset, Sset, 2, 2, 0,
1151 doc: /* Set SYMBOL's value to NEWVAL, and return NEWVAL. */)
1152 (symbol, newval)
1153 register Lisp_Object symbol, newval;
1154 {
1155 return set_internal (symbol, newval, current_buffer, 0);
1156 }
1157
1158 /* Return 1 if SYMBOL currently has a let-binding
1159 which was made in the buffer that is now current. */
1160
1161 static int
1162 let_shadows_buffer_binding_p (symbol)
1163 Lisp_Object symbol;
1164 {
1165 volatile struct specbinding *p;
1166
1167 for (p = specpdl_ptr - 1; p >= specpdl; p--)
1168 if (p->func == NULL
1169 && CONSP (p->symbol))
1170 {
1171 Lisp_Object let_bound_symbol = XCAR (p->symbol);
1172 if ((EQ (symbol, let_bound_symbol)
1173 || (XSYMBOL (let_bound_symbol)->indirect_variable
1174 && EQ (symbol, indirect_variable (let_bound_symbol))))
1175 && XBUFFER (XCDR (XCDR (p->symbol))) == current_buffer)
1176 break;
1177 }
1178
1179 return p >= specpdl;
1180 }
1181
1182 /* Store the value NEWVAL into SYMBOL.
1183 If buffer-locality is an issue, BUF specifies which buffer to use.
1184 (0 stands for the current buffer.)
1185
1186 If BINDFLAG is zero, then if this symbol is supposed to become
1187 local in every buffer where it is set, then we make it local.
1188 If BINDFLAG is nonzero, we don't do that. */
1189
1190 Lisp_Object
1191 set_internal (symbol, newval, buf, bindflag)
1192 register Lisp_Object symbol, newval;
1193 struct buffer *buf;
1194 int bindflag;
1195 {
1196 int voide = EQ (newval, Qunbound);
1197
1198 register Lisp_Object valcontents, innercontents, tem1, current_alist_element;
1199
1200 if (buf == 0)
1201 buf = current_buffer;
1202
1203 /* If restoring in a dead buffer, do nothing. */
1204 if (NILP (buf->name))
1205 return newval;
1206
1207 CHECK_SYMBOL (symbol);
1208 if (SYMBOL_CONSTANT_P (symbol)
1209 && (NILP (Fkeywordp (symbol))
1210 || !EQ (newval, SYMBOL_VALUE (symbol))))
1211 xsignal1 (Qsetting_constant, symbol);
1212
1213 innercontents = valcontents = SYMBOL_VALUE (symbol);
1214
1215 if (BUFFER_OBJFWDP (valcontents))
1216 {
1217 int offset = XBUFFER_OBJFWD (valcontents)->offset;
1218 int idx = PER_BUFFER_IDX (offset);
1219 if (idx > 0
1220 && !bindflag
1221 && !let_shadows_buffer_binding_p (symbol))
1222 SET_PER_BUFFER_VALUE_P (buf, idx, 1);
1223 }
1224 else if (BUFFER_LOCAL_VALUEP (valcontents))
1225 {
1226 /* valcontents is a struct Lisp_Buffer_Local_Value. */
1227 if (XSYMBOL (symbol)->indirect_variable)
1228 symbol = indirect_variable (symbol);
1229
1230 /* What binding is loaded right now? */
1231 current_alist_element
1232 = XCAR (XBUFFER_LOCAL_VALUE (valcontents)->cdr);
1233
1234 /* If the current buffer is not the buffer whose binding is
1235 loaded, or if there may be frame-local bindings and the frame
1236 isn't the right one, or if it's a Lisp_Buffer_Local_Value and
1237 the default binding is loaded, the loaded binding may be the
1238 wrong one. */
1239 if (!BUFFERP (XBUFFER_LOCAL_VALUE (valcontents)->buffer)
1240 || buf != XBUFFER (XBUFFER_LOCAL_VALUE (valcontents)->buffer)
1241 || (XBUFFER_LOCAL_VALUE (valcontents)->check_frame
1242 && !EQ (selected_frame, XBUFFER_LOCAL_VALUE (valcontents)->frame))
1243 || (BUFFER_LOCAL_VALUEP (valcontents)
1244 && EQ (XCAR (current_alist_element),
1245 current_alist_element)))
1246 {
1247 /* The currently loaded binding is not necessarily valid.
1248 We need to unload it, and choose a new binding. */
1249
1250 /* Write out `realvalue' to the old loaded binding. */
1251 Fsetcdr (current_alist_element,
1252 do_symval_forwarding (XBUFFER_LOCAL_VALUE (valcontents)->realvalue));
1253
1254 /* Find the new binding. */
1255 tem1 = Fassq (symbol, buf->local_var_alist);
1256 XBUFFER_LOCAL_VALUE (valcontents)->found_for_buffer = 1;
1257 XBUFFER_LOCAL_VALUE (valcontents)->found_for_frame = 0;
1258
1259 if (NILP (tem1))
1260 {
1261 /* This buffer still sees the default value. */
1262
1263 /* If the variable is a Lisp_Some_Buffer_Local_Value,
1264 or if this is `let' rather than `set',
1265 make CURRENT-ALIST-ELEMENT point to itself,
1266 indicating that we're seeing the default value.
1267 Likewise if the variable has been let-bound
1268 in the current buffer. */
1269 if (bindflag || !XBUFFER_LOCAL_VALUE (valcontents)->local_if_set
1270 || let_shadows_buffer_binding_p (symbol))
1271 {
1272 XBUFFER_LOCAL_VALUE (valcontents)->found_for_buffer = 0;
1273
1274 if (XBUFFER_LOCAL_VALUE (valcontents)->check_frame)
1275 tem1 = Fassq (symbol,
1276 XFRAME (selected_frame)->param_alist);
1277
1278 if (! NILP (tem1))
1279 XBUFFER_LOCAL_VALUE (valcontents)->found_for_frame = 1;
1280 else
1281 tem1 = XBUFFER_LOCAL_VALUE (valcontents)->cdr;
1282 }
1283 /* If it's a Lisp_Buffer_Local_Value, being set not bound,
1284 and we're not within a let that was made for this buffer,
1285 create a new buffer-local binding for the variable.
1286 That means, give this buffer a new assoc for a local value
1287 and load that binding. */
1288 else
1289 {
1290 tem1 = Fcons (symbol, XCDR (current_alist_element));
1291 buf->local_var_alist
1292 = Fcons (tem1, buf->local_var_alist);
1293 }
1294 }
1295
1296 /* Record which binding is now loaded. */
1297 XSETCAR (XBUFFER_LOCAL_VALUE (valcontents)->cdr, tem1);
1298
1299 /* Set `buffer' and `frame' slots for the binding now loaded. */
1300 XSETBUFFER (XBUFFER_LOCAL_VALUE (valcontents)->buffer, buf);
1301 XBUFFER_LOCAL_VALUE (valcontents)->frame = selected_frame;
1302 }
1303 innercontents = XBUFFER_LOCAL_VALUE (valcontents)->realvalue;
1304 }
1305
1306 /* If storing void (making the symbol void), forward only through
1307 buffer-local indicator, not through Lisp_Objfwd, etc. */
1308 if (voide)
1309 store_symval_forwarding (symbol, Qnil, newval, buf);
1310 else
1311 store_symval_forwarding (symbol, innercontents, newval, buf);
1312
1313 /* If we just set a variable whose current binding is frame-local,
1314 store the new value in the frame parameter too. */
1315
1316 if (BUFFER_LOCAL_VALUEP (valcontents))
1317 {
1318 /* What binding is loaded right now? */
1319 current_alist_element
1320 = XCAR (XBUFFER_LOCAL_VALUE (valcontents)->cdr);
1321
1322 /* If the current buffer is not the buffer whose binding is
1323 loaded, or if there may be frame-local bindings and the frame
1324 isn't the right one, or if it's a Lisp_Buffer_Local_Value and
1325 the default binding is loaded, the loaded binding may be the
1326 wrong one. */
1327 if (XBUFFER_LOCAL_VALUE (valcontents)->found_for_frame)
1328 XSETCDR (current_alist_element, newval);
1329 }
1330
1331 return newval;
1332 }
1333 \f
1334 /* Access or set a buffer-local symbol's default value. */
1335
1336 /* Return the default value of SYMBOL, but don't check for voidness.
1337 Return Qunbound if it is void. */
1338
1339 Lisp_Object
1340 default_value (symbol)
1341 Lisp_Object symbol;
1342 {
1343 register Lisp_Object valcontents;
1344
1345 CHECK_SYMBOL (symbol);
1346 valcontents = SYMBOL_VALUE (symbol);
1347
1348 /* For a built-in buffer-local variable, get the default value
1349 rather than letting do_symval_forwarding get the current value. */
1350 if (BUFFER_OBJFWDP (valcontents))
1351 {
1352 int offset = XBUFFER_OBJFWD (valcontents)->offset;
1353 if (PER_BUFFER_IDX (offset) != 0)
1354 return PER_BUFFER_DEFAULT (offset);
1355 }
1356
1357 /* Handle user-created local variables. */
1358 if (BUFFER_LOCAL_VALUEP (valcontents))
1359 {
1360 /* If var is set up for a buffer that lacks a local value for it,
1361 the current value is nominally the default value.
1362 But the `realvalue' slot may be more up to date, since
1363 ordinary setq stores just that slot. So use that. */
1364 Lisp_Object current_alist_element, alist_element_car;
1365 current_alist_element
1366 = XCAR (XBUFFER_LOCAL_VALUE (valcontents)->cdr);
1367 alist_element_car = XCAR (current_alist_element);
1368 if (EQ (alist_element_car, current_alist_element))
1369 return do_symval_forwarding (XBUFFER_LOCAL_VALUE (valcontents)->realvalue);
1370 else
1371 return XCDR (XBUFFER_LOCAL_VALUE (valcontents)->cdr);
1372 }
1373 /* For other variables, get the current value. */
1374 return do_symval_forwarding (valcontents);
1375 }
1376
1377 DEFUN ("default-boundp", Fdefault_boundp, Sdefault_boundp, 1, 1, 0,
1378 doc: /* Return t if SYMBOL has a non-void default value.
1379 This is the value that is seen in buffers that do not have their own values
1380 for this variable. */)
1381 (symbol)
1382 Lisp_Object symbol;
1383 {
1384 register Lisp_Object value;
1385
1386 value = default_value (symbol);
1387 return (EQ (value, Qunbound) ? Qnil : Qt);
1388 }
1389
1390 DEFUN ("default-value", Fdefault_value, Sdefault_value, 1, 1, 0,
1391 doc: /* Return SYMBOL's default value.
1392 This is the value that is seen in buffers that do not have their own values
1393 for this variable. The default value is meaningful for variables with
1394 local bindings in certain buffers. */)
1395 (symbol)
1396 Lisp_Object symbol;
1397 {
1398 register Lisp_Object value;
1399
1400 value = default_value (symbol);
1401 if (!EQ (value, Qunbound))
1402 return value;
1403
1404 xsignal1 (Qvoid_variable, symbol);
1405 }
1406
1407 DEFUN ("set-default", Fset_default, Sset_default, 2, 2, 0,
1408 doc: /* Set SYMBOL's default value to VALUE. SYMBOL and VALUE are evaluated.
1409 The default value is seen in buffers that do not have their own values
1410 for this variable. */)
1411 (symbol, value)
1412 Lisp_Object symbol, value;
1413 {
1414 register Lisp_Object valcontents, current_alist_element, alist_element_buffer;
1415
1416 CHECK_SYMBOL (symbol);
1417 valcontents = SYMBOL_VALUE (symbol);
1418
1419 /* Handle variables like case-fold-search that have special slots
1420 in the buffer. Make them work apparently like Lisp_Buffer_Local_Value
1421 variables. */
1422 if (BUFFER_OBJFWDP (valcontents))
1423 {
1424 int offset = XBUFFER_OBJFWD (valcontents)->offset;
1425 int idx = PER_BUFFER_IDX (offset);
1426
1427 PER_BUFFER_DEFAULT (offset) = value;
1428
1429 /* If this variable is not always local in all buffers,
1430 set it in the buffers that don't nominally have a local value. */
1431 if (idx > 0)
1432 {
1433 struct buffer *b;
1434
1435 for (b = all_buffers; b; b = b->next)
1436 if (!PER_BUFFER_VALUE_P (b, idx))
1437 PER_BUFFER_VALUE (b, offset) = value;
1438 }
1439 return value;
1440 }
1441
1442 if (!BUFFER_LOCAL_VALUEP (valcontents))
1443 return Fset (symbol, value);
1444
1445 /* Store new value into the DEFAULT-VALUE slot. */
1446 XSETCDR (XBUFFER_LOCAL_VALUE (valcontents)->cdr, value);
1447
1448 /* If the default binding is now loaded, set the REALVALUE slot too. */
1449 current_alist_element
1450 = XCAR (XBUFFER_LOCAL_VALUE (valcontents)->cdr);
1451 alist_element_buffer = Fcar (current_alist_element);
1452 if (EQ (alist_element_buffer, current_alist_element))
1453 store_symval_forwarding (symbol,
1454 XBUFFER_LOCAL_VALUE (valcontents)->realvalue,
1455 value, NULL);
1456
1457 return value;
1458 }
1459
1460 DEFUN ("setq-default", Fsetq_default, Ssetq_default, 0, UNEVALLED, 0,
1461 doc: /* Set the default value of variable VAR to VALUE.
1462 VAR, the variable name, is literal (not evaluated);
1463 VALUE is an expression: it is evaluated and its value returned.
1464 The default value of a variable is seen in buffers
1465 that do not have their own values for the variable.
1466
1467 More generally, you can use multiple variables and values, as in
1468 (setq-default VAR VALUE VAR VALUE...)
1469 This sets each VAR's default value to the corresponding VALUE.
1470 The VALUE for the Nth VAR can refer to the new default values
1471 of previous VARs.
1472 usage: (setq-default [VAR VALUE]...) */)
1473 (args)
1474 Lisp_Object args;
1475 {
1476 register Lisp_Object args_left;
1477 register Lisp_Object val, symbol;
1478 struct gcpro gcpro1;
1479
1480 if (NILP (args))
1481 return Qnil;
1482
1483 args_left = args;
1484 GCPRO1 (args);
1485
1486 do
1487 {
1488 val = Feval (Fcar (Fcdr (args_left)));
1489 symbol = XCAR (args_left);
1490 Fset_default (symbol, val);
1491 args_left = Fcdr (XCDR (args_left));
1492 }
1493 while (!NILP (args_left));
1494
1495 UNGCPRO;
1496 return val;
1497 }
1498 \f
1499 /* Lisp functions for creating and removing buffer-local variables. */
1500
1501 DEFUN ("make-variable-buffer-local", Fmake_variable_buffer_local, Smake_variable_buffer_local,
1502 1, 1, "vMake Variable Buffer Local: ",
1503 doc: /* Make VARIABLE become buffer-local whenever it is set.
1504 At any time, the value for the current buffer is in effect,
1505 unless the variable has never been set in this buffer,
1506 in which case the default value is in effect.
1507 Note that binding the variable with `let', or setting it while
1508 a `let'-style binding made in this buffer is in effect,
1509 does not make the variable buffer-local. Return VARIABLE.
1510
1511 In most cases it is better to use `make-local-variable',
1512 which makes a variable local in just one buffer.
1513
1514 The function `default-value' gets the default value and `set-default' sets it. */)
1515 (variable)
1516 register Lisp_Object variable;
1517 {
1518 register Lisp_Object tem, valcontents, newval;
1519
1520 CHECK_SYMBOL (variable);
1521 variable = indirect_variable (variable);
1522
1523 valcontents = SYMBOL_VALUE (variable);
1524 if (EQ (variable, Qnil) || EQ (variable, Qt) || KBOARD_OBJFWDP (valcontents))
1525 error ("Symbol %s may not be buffer-local", SDATA (SYMBOL_NAME (variable)));
1526
1527 if (BUFFER_OBJFWDP (valcontents))
1528 return variable;
1529 else if (BUFFER_LOCAL_VALUEP (valcontents))
1530 newval = valcontents;
1531 else
1532 {
1533 if (EQ (valcontents, Qunbound))
1534 SET_SYMBOL_VALUE (variable, Qnil);
1535 tem = Fcons (Qnil, Fsymbol_value (variable));
1536 XSETCAR (tem, tem);
1537 newval = allocate_misc ();
1538 XMISCTYPE (newval) = Lisp_Misc_Buffer_Local_Value;
1539 XBUFFER_LOCAL_VALUE (newval)->realvalue = SYMBOL_VALUE (variable);
1540 XBUFFER_LOCAL_VALUE (newval)->buffer = Fcurrent_buffer ();
1541 XBUFFER_LOCAL_VALUE (newval)->frame = Qnil;
1542 XBUFFER_LOCAL_VALUE (newval)->found_for_buffer = 0;
1543 XBUFFER_LOCAL_VALUE (newval)->found_for_frame = 0;
1544 XBUFFER_LOCAL_VALUE (newval)->check_frame = 0;
1545 XBUFFER_LOCAL_VALUE (newval)->cdr = tem;
1546 SET_SYMBOL_VALUE (variable, newval);
1547 }
1548 XBUFFER_LOCAL_VALUE (newval)->local_if_set = 1;
1549 return variable;
1550 }
1551
1552 DEFUN ("make-local-variable", Fmake_local_variable, Smake_local_variable,
1553 1, 1, "vMake Local Variable: ",
1554 doc: /* Make VARIABLE have a separate value in the current buffer.
1555 Other buffers will continue to share a common default value.
1556 \(The buffer-local value of VARIABLE starts out as the same value
1557 VARIABLE previously had. If VARIABLE was void, it remains void.\)
1558 Return VARIABLE.
1559
1560 If the variable is already arranged to become local when set,
1561 this function causes a local value to exist for this buffer,
1562 just as setting the variable would do.
1563
1564 This function returns VARIABLE, and therefore
1565 (set (make-local-variable 'VARIABLE) VALUE-EXP)
1566 works.
1567
1568 See also `make-variable-buffer-local'.
1569
1570 Do not use `make-local-variable' to make a hook variable buffer-local.
1571 Instead, use `add-hook' and specify t for the LOCAL argument. */)
1572 (variable)
1573 register Lisp_Object variable;
1574 {
1575 register Lisp_Object tem, valcontents;
1576
1577 CHECK_SYMBOL (variable);
1578 variable = indirect_variable (variable);
1579
1580 valcontents = SYMBOL_VALUE (variable);
1581 if (EQ (variable, Qnil) || EQ (variable, Qt) || KBOARD_OBJFWDP (valcontents))
1582 error ("Symbol %s may not be buffer-local", SDATA (SYMBOL_NAME (variable)));
1583
1584 if ((BUFFER_LOCAL_VALUEP (valcontents)
1585 && XBUFFER_LOCAL_VALUE (valcontents)->local_if_set)
1586 || BUFFER_OBJFWDP (valcontents))
1587 {
1588 tem = Fboundp (variable);
1589
1590 /* Make sure the symbol has a local value in this particular buffer,
1591 by setting it to the same value it already has. */
1592 Fset (variable, (EQ (tem, Qt) ? Fsymbol_value (variable) : Qunbound));
1593 return variable;
1594 }
1595 /* Make sure symbol is set up to hold per-buffer values. */
1596 if (!BUFFER_LOCAL_VALUEP (valcontents))
1597 {
1598 Lisp_Object newval;
1599 tem = Fcons (Qnil, do_symval_forwarding (valcontents));
1600 XSETCAR (tem, tem);
1601 newval = allocate_misc ();
1602 XMISCTYPE (newval) = Lisp_Misc_Buffer_Local_Value;
1603 XBUFFER_LOCAL_VALUE (newval)->realvalue = SYMBOL_VALUE (variable);
1604 XBUFFER_LOCAL_VALUE (newval)->buffer = Qnil;
1605 XBUFFER_LOCAL_VALUE (newval)->frame = Qnil;
1606 XBUFFER_LOCAL_VALUE (newval)->local_if_set = 0;
1607 XBUFFER_LOCAL_VALUE (newval)->found_for_buffer = 0;
1608 XBUFFER_LOCAL_VALUE (newval)->found_for_frame = 0;
1609 XBUFFER_LOCAL_VALUE (newval)->check_frame = 0;
1610 XBUFFER_LOCAL_VALUE (newval)->cdr = tem;
1611 SET_SYMBOL_VALUE (variable, newval);
1612 }
1613 /* Make sure this buffer has its own value of symbol. */
1614 tem = Fassq (variable, current_buffer->local_var_alist);
1615 if (NILP (tem))
1616 {
1617 /* Swap out any local binding for some other buffer, and make
1618 sure the current value is permanently recorded, if it's the
1619 default value. */
1620 find_symbol_value (variable);
1621
1622 current_buffer->local_var_alist
1623 = Fcons (Fcons (variable, XCDR (XBUFFER_LOCAL_VALUE (SYMBOL_VALUE (variable))->cdr)),
1624 current_buffer->local_var_alist);
1625
1626 /* Make sure symbol does not think it is set up for this buffer;
1627 force it to look once again for this buffer's value. */
1628 {
1629 Lisp_Object *pvalbuf;
1630
1631 valcontents = SYMBOL_VALUE (variable);
1632
1633 pvalbuf = &XBUFFER_LOCAL_VALUE (valcontents)->buffer;
1634 if (current_buffer == XBUFFER (*pvalbuf))
1635 *pvalbuf = Qnil;
1636 XBUFFER_LOCAL_VALUE (valcontents)->found_for_buffer = 0;
1637 }
1638 }
1639
1640 /* If the symbol forwards into a C variable, then load the binding
1641 for this buffer now. If C code modifies the variable before we
1642 load the binding in, then that new value will clobber the default
1643 binding the next time we unload it. */
1644 valcontents = XBUFFER_LOCAL_VALUE (SYMBOL_VALUE (variable))->realvalue;
1645 if (INTFWDP (valcontents) || BOOLFWDP (valcontents) || OBJFWDP (valcontents))
1646 swap_in_symval_forwarding (variable, SYMBOL_VALUE (variable));
1647
1648 return variable;
1649 }
1650
1651 DEFUN ("kill-local-variable", Fkill_local_variable, Skill_local_variable,
1652 1, 1, "vKill Local Variable: ",
1653 doc: /* Make VARIABLE no longer have a separate value in the current buffer.
1654 From now on the default value will apply in this buffer. Return VARIABLE. */)
1655 (variable)
1656 register Lisp_Object variable;
1657 {
1658 register Lisp_Object tem, valcontents;
1659
1660 CHECK_SYMBOL (variable);
1661 variable = indirect_variable (variable);
1662
1663 valcontents = SYMBOL_VALUE (variable);
1664
1665 if (BUFFER_OBJFWDP (valcontents))
1666 {
1667 int offset = XBUFFER_OBJFWD (valcontents)->offset;
1668 int idx = PER_BUFFER_IDX (offset);
1669
1670 if (idx > 0)
1671 {
1672 SET_PER_BUFFER_VALUE_P (current_buffer, idx, 0);
1673 PER_BUFFER_VALUE (current_buffer, offset)
1674 = PER_BUFFER_DEFAULT (offset);
1675 }
1676 return variable;
1677 }
1678
1679 if (!BUFFER_LOCAL_VALUEP (valcontents))
1680 return variable;
1681
1682 /* Get rid of this buffer's alist element, if any. */
1683
1684 tem = Fassq (variable, current_buffer->local_var_alist);
1685 if (!NILP (tem))
1686 current_buffer->local_var_alist
1687 = Fdelq (tem, current_buffer->local_var_alist);
1688
1689 /* If the symbol is set up with the current buffer's binding
1690 loaded, recompute its value. We have to do it now, or else
1691 forwarded objects won't work right. */
1692 {
1693 Lisp_Object *pvalbuf, buf;
1694 valcontents = SYMBOL_VALUE (variable);
1695 pvalbuf = &XBUFFER_LOCAL_VALUE (valcontents)->buffer;
1696 XSETBUFFER (buf, current_buffer);
1697 if (EQ (buf, *pvalbuf))
1698 {
1699 *pvalbuf = Qnil;
1700 XBUFFER_LOCAL_VALUE (valcontents)->found_for_buffer = 0;
1701 find_symbol_value (variable);
1702 }
1703 }
1704
1705 return variable;
1706 }
1707
1708 /* Lisp functions for creating and removing buffer-local variables. */
1709
1710 DEFUN ("make-variable-frame-local", Fmake_variable_frame_local, Smake_variable_frame_local,
1711 1, 1, "vMake Variable Frame Local: ",
1712 doc: /* Enable VARIABLE to have frame-local bindings.
1713 This does not create any frame-local bindings for VARIABLE,
1714 it just makes them possible.
1715
1716 A frame-local binding is actually a frame parameter value.
1717 If a frame F has a value for the frame parameter named VARIABLE,
1718 that also acts as a frame-local binding for VARIABLE in F--
1719 provided this function has been called to enable VARIABLE
1720 to have frame-local bindings at all.
1721
1722 The only way to create a frame-local binding for VARIABLE in a frame
1723 is to set the VARIABLE frame parameter of that frame. See
1724 `modify-frame-parameters' for how to set frame parameters.
1725
1726 Buffer-local bindings take precedence over frame-local bindings. */)
1727 (variable)
1728 register Lisp_Object variable;
1729 {
1730 register Lisp_Object tem, valcontents, newval;
1731
1732 CHECK_SYMBOL (variable);
1733 variable = indirect_variable (variable);
1734
1735 valcontents = SYMBOL_VALUE (variable);
1736 if (EQ (variable, Qnil) || EQ (variable, Qt) || KBOARD_OBJFWDP (valcontents)
1737 || BUFFER_OBJFWDP (valcontents))
1738 error ("Symbol %s may not be frame-local", SDATA (SYMBOL_NAME (variable)));
1739
1740 if (BUFFER_LOCAL_VALUEP (valcontents))
1741 {
1742 XBUFFER_LOCAL_VALUE (valcontents)->check_frame = 1;
1743 return variable;
1744 }
1745
1746 if (EQ (valcontents, Qunbound))
1747 SET_SYMBOL_VALUE (variable, Qnil);
1748 tem = Fcons (Qnil, Fsymbol_value (variable));
1749 XSETCAR (tem, tem);
1750 newval = allocate_misc ();
1751 XMISCTYPE (newval) = Lisp_Misc_Buffer_Local_Value;
1752 XBUFFER_LOCAL_VALUE (newval)->realvalue = SYMBOL_VALUE (variable);
1753 XBUFFER_LOCAL_VALUE (newval)->buffer = Qnil;
1754 XBUFFER_LOCAL_VALUE (newval)->frame = Qnil;
1755 XBUFFER_LOCAL_VALUE (newval)->local_if_set = 0;
1756 XBUFFER_LOCAL_VALUE (newval)->found_for_buffer = 0;
1757 XBUFFER_LOCAL_VALUE (newval)->found_for_frame = 0;
1758 XBUFFER_LOCAL_VALUE (newval)->check_frame = 1;
1759 XBUFFER_LOCAL_VALUE (newval)->cdr = tem;
1760 SET_SYMBOL_VALUE (variable, newval);
1761 return variable;
1762 }
1763
1764 DEFUN ("local-variable-p", Flocal_variable_p, Slocal_variable_p,
1765 1, 2, 0,
1766 doc: /* Non-nil if VARIABLE has a local binding in buffer BUFFER.
1767 BUFFER defaults to the current buffer. */)
1768 (variable, buffer)
1769 register Lisp_Object variable, buffer;
1770 {
1771 Lisp_Object valcontents;
1772 register struct buffer *buf;
1773
1774 if (NILP (buffer))
1775 buf = current_buffer;
1776 else
1777 {
1778 CHECK_BUFFER (buffer);
1779 buf = XBUFFER (buffer);
1780 }
1781
1782 CHECK_SYMBOL (variable);
1783 variable = indirect_variable (variable);
1784
1785 valcontents = SYMBOL_VALUE (variable);
1786 if (BUFFER_LOCAL_VALUEP (valcontents))
1787 {
1788 Lisp_Object tail, elt;
1789
1790 for (tail = buf->local_var_alist; CONSP (tail); tail = XCDR (tail))
1791 {
1792 elt = XCAR (tail);
1793 if (EQ (variable, XCAR (elt)))
1794 return Qt;
1795 }
1796 }
1797 if (BUFFER_OBJFWDP (valcontents))
1798 {
1799 int offset = XBUFFER_OBJFWD (valcontents)->offset;
1800 int idx = PER_BUFFER_IDX (offset);
1801 if (idx == -1 || PER_BUFFER_VALUE_P (buf, idx))
1802 return Qt;
1803 }
1804 return Qnil;
1805 }
1806
1807 DEFUN ("local-variable-if-set-p", Flocal_variable_if_set_p, Slocal_variable_if_set_p,
1808 1, 2, 0,
1809 doc: /* Non-nil if VARIABLE will be local in buffer BUFFER when set there.
1810 More precisely, this means that setting the variable \(with `set' or`setq'),
1811 while it does not have a `let'-style binding that was made in BUFFER,
1812 will produce a buffer local binding. See Info node
1813 `(elisp)Creating Buffer-Local'.
1814 BUFFER defaults to the current buffer. */)
1815 (variable, buffer)
1816 register Lisp_Object variable, buffer;
1817 {
1818 Lisp_Object valcontents;
1819 register struct buffer *buf;
1820
1821 if (NILP (buffer))
1822 buf = current_buffer;
1823 else
1824 {
1825 CHECK_BUFFER (buffer);
1826 buf = XBUFFER (buffer);
1827 }
1828
1829 CHECK_SYMBOL (variable);
1830 variable = indirect_variable (variable);
1831
1832 valcontents = SYMBOL_VALUE (variable);
1833
1834 if (BUFFER_OBJFWDP (valcontents))
1835 /* All these slots become local if they are set. */
1836 return Qt;
1837 else if (BUFFER_LOCAL_VALUEP (valcontents))
1838 {
1839 Lisp_Object tail, elt;
1840 if (XBUFFER_LOCAL_VALUE (valcontents)->local_if_set)
1841 return Qt;
1842 for (tail = buf->local_var_alist; CONSP (tail); tail = XCDR (tail))
1843 {
1844 elt = XCAR (tail);
1845 if (EQ (variable, XCAR (elt)))
1846 return Qt;
1847 }
1848 }
1849 return Qnil;
1850 }
1851
1852 DEFUN ("variable-binding-locus", Fvariable_binding_locus, Svariable_binding_locus,
1853 1, 1, 0,
1854 doc: /* Return a value indicating where VARIABLE's current binding comes from.
1855 If the current binding is buffer-local, the value is the current buffer.
1856 If the current binding is frame-local, the value is the selected frame.
1857 If the current binding is global (the default), the value is nil. */)
1858 (variable)
1859 register Lisp_Object variable;
1860 {
1861 Lisp_Object valcontents;
1862
1863 CHECK_SYMBOL (variable);
1864 variable = indirect_variable (variable);
1865
1866 /* Make sure the current binding is actually swapped in. */
1867 find_symbol_value (variable);
1868
1869 valcontents = XSYMBOL (variable)->value;
1870
1871 if (BUFFER_LOCAL_VALUEP (valcontents)
1872 || BUFFER_OBJFWDP (valcontents))
1873 {
1874 /* For a local variable, record both the symbol and which
1875 buffer's or frame's value we are saving. */
1876 if (!NILP (Flocal_variable_p (variable, Qnil)))
1877 return Fcurrent_buffer ();
1878 else if (BUFFER_LOCAL_VALUEP (valcontents)
1879 && XBUFFER_LOCAL_VALUE (valcontents)->found_for_frame)
1880 return XBUFFER_LOCAL_VALUE (valcontents)->frame;
1881 }
1882
1883 return Qnil;
1884 }
1885
1886 /* This code is disabled now that we use the selected frame to return
1887 keyboard-local-values. */
1888 #if 0
1889 extern struct terminal *get_terminal P_ ((Lisp_Object display, int));
1890
1891 DEFUN ("terminal-local-value", Fterminal_local_value, Sterminal_local_value, 2, 2, 0,
1892 doc: /* Return the terminal-local value of SYMBOL on TERMINAL.
1893 If SYMBOL is not a terminal-local variable, then return its normal
1894 value, like `symbol-value'.
1895
1896 TERMINAL may be a terminal id, a frame, or nil (meaning the
1897 selected frame's terminal device). */)
1898 (symbol, terminal)
1899 Lisp_Object symbol;
1900 Lisp_Object terminal;
1901 {
1902 Lisp_Object result;
1903 struct terminal *t = get_terminal (terminal, 1);
1904 push_kboard (t->kboard);
1905 result = Fsymbol_value (symbol);
1906 pop_kboard ();
1907 return result;
1908 }
1909
1910 DEFUN ("set-terminal-local-value", Fset_terminal_local_value, Sset_terminal_local_value, 3, 3, 0,
1911 doc: /* Set the terminal-local binding of SYMBOL on TERMINAL to VALUE.
1912 If VARIABLE is not a terminal-local variable, then set its normal
1913 binding, like `set'.
1914
1915 TERMINAL may be a terminal id, a frame, or nil (meaning the
1916 selected frame's terminal device). */)
1917 (symbol, terminal, value)
1918 Lisp_Object symbol;
1919 Lisp_Object terminal;
1920 Lisp_Object value;
1921 {
1922 Lisp_Object result;
1923 struct terminal *t = get_terminal (terminal, 1);
1924 push_kboard (d->kboard);
1925 result = Fset (symbol, value);
1926 pop_kboard ();
1927 return result;
1928 }
1929 #endif
1930 \f
1931 /* Find the function at the end of a chain of symbol function indirections. */
1932
1933 /* If OBJECT is a symbol, find the end of its function chain and
1934 return the value found there. If OBJECT is not a symbol, just
1935 return it. If there is a cycle in the function chain, signal a
1936 cyclic-function-indirection error.
1937
1938 This is like Findirect_function, except that it doesn't signal an
1939 error if the chain ends up unbound. */
1940 Lisp_Object
1941 indirect_function (object)
1942 register Lisp_Object object;
1943 {
1944 Lisp_Object tortoise, hare;
1945
1946 hare = tortoise = object;
1947
1948 for (;;)
1949 {
1950 if (!SYMBOLP (hare) || EQ (hare, Qunbound))
1951 break;
1952 hare = XSYMBOL (hare)->function;
1953 if (!SYMBOLP (hare) || EQ (hare, Qunbound))
1954 break;
1955 hare = XSYMBOL (hare)->function;
1956
1957 tortoise = XSYMBOL (tortoise)->function;
1958
1959 if (EQ (hare, tortoise))
1960 xsignal1 (Qcyclic_function_indirection, object);
1961 }
1962
1963 return hare;
1964 }
1965
1966 DEFUN ("indirect-function", Findirect_function, Sindirect_function, 1, 2, 0,
1967 doc: /* Return the function at the end of OBJECT's function chain.
1968 If OBJECT is not a symbol, just return it. Otherwise, follow all
1969 function indirections to find the final function binding and return it.
1970 If the final symbol in the chain is unbound, signal a void-function error.
1971 Optional arg NOERROR non-nil means to return nil instead of signalling.
1972 Signal a cyclic-function-indirection error if there is a loop in the
1973 function chain of symbols. */)
1974 (object, noerror)
1975 register Lisp_Object object;
1976 Lisp_Object noerror;
1977 {
1978 Lisp_Object result;
1979
1980 /* Optimize for no indirection. */
1981 result = object;
1982 if (SYMBOLP (result) && !EQ (result, Qunbound)
1983 && (result = XSYMBOL (result)->function, SYMBOLP (result)))
1984 result = indirect_function (result);
1985 if (!EQ (result, Qunbound))
1986 return result;
1987
1988 if (NILP (noerror))
1989 xsignal1 (Qvoid_function, object);
1990
1991 return Qnil;
1992 }
1993 \f
1994 /* Extract and set vector and string elements */
1995
1996 DEFUN ("aref", Faref, Saref, 2, 2, 0,
1997 doc: /* Return the element of ARRAY at index IDX.
1998 ARRAY may be a vector, a string, a char-table, a bool-vector,
1999 or a byte-code object. IDX starts at 0. */)
2000 (array, idx)
2001 register Lisp_Object array;
2002 Lisp_Object idx;
2003 {
2004 register int idxval;
2005
2006 CHECK_NUMBER (idx);
2007 idxval = XINT (idx);
2008 if (STRINGP (array))
2009 {
2010 int c, idxval_byte;
2011
2012 if (idxval < 0 || idxval >= SCHARS (array))
2013 args_out_of_range (array, idx);
2014 if (! STRING_MULTIBYTE (array))
2015 return make_number ((unsigned char) SREF (array, idxval));
2016 idxval_byte = string_char_to_byte (array, idxval);
2017
2018 c = STRING_CHAR (SDATA (array) + idxval_byte,
2019 SBYTES (array) - idxval_byte);
2020 return make_number (c);
2021 }
2022 else if (BOOL_VECTOR_P (array))
2023 {
2024 int val;
2025
2026 if (idxval < 0 || idxval >= XBOOL_VECTOR (array)->size)
2027 args_out_of_range (array, idx);
2028
2029 val = (unsigned char) XBOOL_VECTOR (array)->data[idxval / BOOL_VECTOR_BITS_PER_CHAR];
2030 return (val & (1 << (idxval % BOOL_VECTOR_BITS_PER_CHAR)) ? Qt : Qnil);
2031 }
2032 else if (CHAR_TABLE_P (array))
2033 {
2034 Lisp_Object val;
2035
2036 val = Qnil;
2037
2038 if (idxval < 0)
2039 args_out_of_range (array, idx);
2040 if (idxval < CHAR_TABLE_ORDINARY_SLOTS)
2041 {
2042 if (! SINGLE_BYTE_CHAR_P (idxval))
2043 args_out_of_range (array, idx);
2044 /* For ASCII and 8-bit European characters, the element is
2045 stored in the top table. */
2046 val = XCHAR_TABLE (array)->contents[idxval];
2047 if (NILP (val))
2048 {
2049 int default_slot
2050 = (idxval < 0x80 ? CHAR_TABLE_DEFAULT_SLOT_ASCII
2051 : idxval < 0xA0 ? CHAR_TABLE_DEFAULT_SLOT_8_BIT_CONTROL
2052 : CHAR_TABLE_DEFAULT_SLOT_8_BIT_GRAPHIC);
2053 val = XCHAR_TABLE (array)->contents[default_slot];
2054 }
2055 if (NILP (val))
2056 val = XCHAR_TABLE (array)->defalt;
2057 while (NILP (val)) /* Follow parents until we find some value. */
2058 {
2059 array = XCHAR_TABLE (array)->parent;
2060 if (NILP (array))
2061 return Qnil;
2062 val = XCHAR_TABLE (array)->contents[idxval];
2063 if (NILP (val))
2064 val = XCHAR_TABLE (array)->defalt;
2065 }
2066 return val;
2067 }
2068 else
2069 {
2070 int code[4], i;
2071 Lisp_Object sub_table;
2072 Lisp_Object current_default;
2073
2074 SPLIT_CHAR (idxval, code[0], code[1], code[2]);
2075 if (code[1] < 32) code[1] = -1;
2076 else if (code[2] < 32) code[2] = -1;
2077
2078 /* Here, the possible range of CODE[0] (== charset ID) is
2079 128..MAX_CHARSET. Since the top level char table contains
2080 data for multibyte characters after 256th element, we must
2081 increment CODE[0] by 128 to get a correct index. */
2082 code[0] += 128;
2083 code[3] = -1; /* anchor */
2084
2085 try_parent_char_table:
2086 current_default = XCHAR_TABLE (array)->defalt;
2087 sub_table = array;
2088 for (i = 0; code[i] >= 0; i++)
2089 {
2090 val = XCHAR_TABLE (sub_table)->contents[code[i]];
2091 if (SUB_CHAR_TABLE_P (val))
2092 {
2093 sub_table = val;
2094 if (! NILP (XCHAR_TABLE (sub_table)->defalt))
2095 current_default = XCHAR_TABLE (sub_table)->defalt;
2096 }
2097 else
2098 {
2099 if (NILP (val))
2100 val = current_default;
2101 if (NILP (val))
2102 {
2103 array = XCHAR_TABLE (array)->parent;
2104 if (!NILP (array))
2105 goto try_parent_char_table;
2106 }
2107 return val;
2108 }
2109 }
2110 /* Reaching here means IDXVAL is a generic character in
2111 which each character or a group has independent value.
2112 Essentially it's nonsense to get a value for such a
2113 generic character, but for backward compatibility, we try
2114 the default value and parent. */
2115 val = current_default;
2116 if (NILP (val))
2117 {
2118 array = XCHAR_TABLE (array)->parent;
2119 if (!NILP (array))
2120 goto try_parent_char_table;
2121 }
2122 return val;
2123 }
2124 }
2125 else
2126 {
2127 int size = 0;
2128 if (VECTORP (array))
2129 size = XVECTOR (array)->size;
2130 else if (COMPILEDP (array))
2131 size = XVECTOR (array)->size & PSEUDOVECTOR_SIZE_MASK;
2132 else
2133 wrong_type_argument (Qarrayp, array);
2134
2135 if (idxval < 0 || idxval >= size)
2136 args_out_of_range (array, idx);
2137 return XVECTOR (array)->contents[idxval];
2138 }
2139 }
2140
2141 DEFUN ("aset", Faset, Saset, 3, 3, 0,
2142 doc: /* Store into the element of ARRAY at index IDX the value NEWELT.
2143 Return NEWELT. ARRAY may be a vector, a string, a char-table or a
2144 bool-vector. IDX starts at 0. */)
2145 (array, idx, newelt)
2146 register Lisp_Object array;
2147 Lisp_Object idx, newelt;
2148 {
2149 register int idxval;
2150
2151 CHECK_NUMBER (idx);
2152 idxval = XINT (idx);
2153 CHECK_ARRAY (array, Qarrayp);
2154 CHECK_IMPURE (array);
2155
2156 if (VECTORP (array))
2157 {
2158 if (idxval < 0 || idxval >= XVECTOR (array)->size)
2159 args_out_of_range (array, idx);
2160 XVECTOR (array)->contents[idxval] = newelt;
2161 }
2162 else if (BOOL_VECTOR_P (array))
2163 {
2164 int val;
2165
2166 if (idxval < 0 || idxval >= XBOOL_VECTOR (array)->size)
2167 args_out_of_range (array, idx);
2168
2169 val = (unsigned char) XBOOL_VECTOR (array)->data[idxval / BOOL_VECTOR_BITS_PER_CHAR];
2170
2171 if (! NILP (newelt))
2172 val |= 1 << (idxval % BOOL_VECTOR_BITS_PER_CHAR);
2173 else
2174 val &= ~(1 << (idxval % BOOL_VECTOR_BITS_PER_CHAR));
2175 XBOOL_VECTOR (array)->data[idxval / BOOL_VECTOR_BITS_PER_CHAR] = val;
2176 }
2177 else if (CHAR_TABLE_P (array))
2178 {
2179 if (idxval < 0)
2180 args_out_of_range (array, idx);
2181 if (idxval < CHAR_TABLE_ORDINARY_SLOTS)
2182 {
2183 if (! SINGLE_BYTE_CHAR_P (idxval))
2184 args_out_of_range (array, idx);
2185 XCHAR_TABLE (array)->contents[idxval] = newelt;
2186 }
2187 else
2188 {
2189 int code[4], i;
2190 Lisp_Object val;
2191
2192 SPLIT_CHAR (idxval, code[0], code[1], code[2]);
2193 if (code[1] < 32) code[1] = -1;
2194 else if (code[2] < 32) code[2] = -1;
2195
2196 /* See the comment of the corresponding part in Faref. */
2197 code[0] += 128;
2198 code[3] = -1; /* anchor */
2199 for (i = 0; code[i + 1] >= 0; i++)
2200 {
2201 val = XCHAR_TABLE (array)->contents[code[i]];
2202 if (SUB_CHAR_TABLE_P (val))
2203 array = val;
2204 else
2205 {
2206 Lisp_Object temp;
2207
2208 /* VAL is a leaf. Create a sub char table with the
2209 initial value VAL and look into it. */
2210
2211 temp = make_sub_char_table (val);
2212 XCHAR_TABLE (array)->contents[code[i]] = temp;
2213 array = temp;
2214 }
2215 }
2216 XCHAR_TABLE (array)->contents[code[i]] = newelt;
2217 }
2218 }
2219 else if (STRING_MULTIBYTE (array))
2220 {
2221 int idxval_byte, prev_bytes, new_bytes, nbytes;
2222 unsigned char workbuf[MAX_MULTIBYTE_LENGTH], *p0 = workbuf, *p1;
2223
2224 if (idxval < 0 || idxval >= SCHARS (array))
2225 args_out_of_range (array, idx);
2226 CHECK_NUMBER (newelt);
2227
2228 nbytes = SBYTES (array);
2229
2230 idxval_byte = string_char_to_byte (array, idxval);
2231 p1 = SDATA (array) + idxval_byte;
2232 PARSE_MULTIBYTE_SEQ (p1, nbytes - idxval_byte, prev_bytes);
2233 new_bytes = CHAR_STRING (XINT (newelt), p0);
2234 if (prev_bytes != new_bytes)
2235 {
2236 /* We must relocate the string data. */
2237 int nchars = SCHARS (array);
2238 unsigned char *str;
2239 USE_SAFE_ALLOCA;
2240
2241 SAFE_ALLOCA (str, unsigned char *, nbytes);
2242 bcopy (SDATA (array), str, nbytes);
2243 allocate_string_data (XSTRING (array), nchars,
2244 nbytes + new_bytes - prev_bytes);
2245 bcopy (str, SDATA (array), idxval_byte);
2246 p1 = SDATA (array) + idxval_byte;
2247 bcopy (str + idxval_byte + prev_bytes, p1 + new_bytes,
2248 nbytes - (idxval_byte + prev_bytes));
2249 SAFE_FREE ();
2250 clear_string_char_byte_cache ();
2251 }
2252 while (new_bytes--)
2253 *p1++ = *p0++;
2254 }
2255 else
2256 {
2257 if (idxval < 0 || idxval >= SCHARS (array))
2258 args_out_of_range (array, idx);
2259 CHECK_NUMBER (newelt);
2260
2261 if (XINT (newelt) < 0 || SINGLE_BYTE_CHAR_P (XINT (newelt)))
2262 SSET (array, idxval, XINT (newelt));
2263 else
2264 {
2265 /* We must relocate the string data while converting it to
2266 multibyte. */
2267 int idxval_byte, prev_bytes, new_bytes;
2268 unsigned char workbuf[MAX_MULTIBYTE_LENGTH], *p0 = workbuf, *p1;
2269 unsigned char *origstr = SDATA (array), *str;
2270 int nchars, nbytes;
2271 USE_SAFE_ALLOCA;
2272
2273 nchars = SCHARS (array);
2274 nbytes = idxval_byte = count_size_as_multibyte (origstr, idxval);
2275 nbytes += count_size_as_multibyte (origstr + idxval,
2276 nchars - idxval);
2277 SAFE_ALLOCA (str, unsigned char *, nbytes);
2278 copy_text (SDATA (array), str, nchars, 0, 1);
2279 PARSE_MULTIBYTE_SEQ (str + idxval_byte, nbytes - idxval_byte,
2280 prev_bytes);
2281 new_bytes = CHAR_STRING (XINT (newelt), p0);
2282 allocate_string_data (XSTRING (array), nchars,
2283 nbytes + new_bytes - prev_bytes);
2284 bcopy (str, SDATA (array), idxval_byte);
2285 p1 = SDATA (array) + idxval_byte;
2286 while (new_bytes--)
2287 *p1++ = *p0++;
2288 bcopy (str + idxval_byte + prev_bytes, p1,
2289 nbytes - (idxval_byte + prev_bytes));
2290 SAFE_FREE ();
2291 clear_string_char_byte_cache ();
2292 }
2293 }
2294
2295 return newelt;
2296 }
2297 \f
2298 /* Arithmetic functions */
2299
2300 enum comparison { equal, notequal, less, grtr, less_or_equal, grtr_or_equal };
2301
2302 Lisp_Object
2303 arithcompare (num1, num2, comparison)
2304 Lisp_Object num1, num2;
2305 enum comparison comparison;
2306 {
2307 double f1 = 0, f2 = 0;
2308 int floatp = 0;
2309
2310 CHECK_NUMBER_OR_FLOAT_COERCE_MARKER (num1);
2311 CHECK_NUMBER_OR_FLOAT_COERCE_MARKER (num2);
2312
2313 if (FLOATP (num1) || FLOATP (num2))
2314 {
2315 floatp = 1;
2316 f1 = (FLOATP (num1)) ? XFLOAT_DATA (num1) : XINT (num1);
2317 f2 = (FLOATP (num2)) ? XFLOAT_DATA (num2) : XINT (num2);
2318 }
2319
2320 switch (comparison)
2321 {
2322 case equal:
2323 if (floatp ? f1 == f2 : XINT (num1) == XINT (num2))
2324 return Qt;
2325 return Qnil;
2326
2327 case notequal:
2328 if (floatp ? f1 != f2 : XINT (num1) != XINT (num2))
2329 return Qt;
2330 return Qnil;
2331
2332 case less:
2333 if (floatp ? f1 < f2 : XINT (num1) < XINT (num2))
2334 return Qt;
2335 return Qnil;
2336
2337 case less_or_equal:
2338 if (floatp ? f1 <= f2 : XINT (num1) <= XINT (num2))
2339 return Qt;
2340 return Qnil;
2341
2342 case grtr:
2343 if (floatp ? f1 > f2 : XINT (num1) > XINT (num2))
2344 return Qt;
2345 return Qnil;
2346
2347 case grtr_or_equal:
2348 if (floatp ? f1 >= f2 : XINT (num1) >= XINT (num2))
2349 return Qt;
2350 return Qnil;
2351
2352 default:
2353 abort ();
2354 }
2355 }
2356
2357 DEFUN ("=", Feqlsign, Seqlsign, 2, 2, 0,
2358 doc: /* Return t if two args, both numbers or markers, are equal. */)
2359 (num1, num2)
2360 register Lisp_Object num1, num2;
2361 {
2362 return arithcompare (num1, num2, equal);
2363 }
2364
2365 DEFUN ("<", Flss, Slss, 2, 2, 0,
2366 doc: /* Return t if first arg is less than second arg. Both must be numbers or markers. */)
2367 (num1, num2)
2368 register Lisp_Object num1, num2;
2369 {
2370 return arithcompare (num1, num2, less);
2371 }
2372
2373 DEFUN (">", Fgtr, Sgtr, 2, 2, 0,
2374 doc: /* Return t if first arg is greater than second arg. Both must be numbers or markers. */)
2375 (num1, num2)
2376 register Lisp_Object num1, num2;
2377 {
2378 return arithcompare (num1, num2, grtr);
2379 }
2380
2381 DEFUN ("<=", Fleq, Sleq, 2, 2, 0,
2382 doc: /* Return t if first arg is less than or equal to second arg.
2383 Both must be numbers or markers. */)
2384 (num1, num2)
2385 register Lisp_Object num1, num2;
2386 {
2387 return arithcompare (num1, num2, less_or_equal);
2388 }
2389
2390 DEFUN (">=", Fgeq, Sgeq, 2, 2, 0,
2391 doc: /* Return t if first arg is greater than or equal to second arg.
2392 Both must be numbers or markers. */)
2393 (num1, num2)
2394 register Lisp_Object num1, num2;
2395 {
2396 return arithcompare (num1, num2, grtr_or_equal);
2397 }
2398
2399 DEFUN ("/=", Fneq, Sneq, 2, 2, 0,
2400 doc: /* Return t if first arg is not equal to second arg. Both must be numbers or markers. */)
2401 (num1, num2)
2402 register Lisp_Object num1, num2;
2403 {
2404 return arithcompare (num1, num2, notequal);
2405 }
2406
2407 DEFUN ("zerop", Fzerop, Szerop, 1, 1, 0,
2408 doc: /* Return t if NUMBER is zero. */)
2409 (number)
2410 register Lisp_Object number;
2411 {
2412 CHECK_NUMBER_OR_FLOAT (number);
2413
2414 if (FLOATP (number))
2415 {
2416 if (XFLOAT_DATA (number) == 0.0)
2417 return Qt;
2418 return Qnil;
2419 }
2420
2421 if (!XINT (number))
2422 return Qt;
2423 return Qnil;
2424 }
2425 \f
2426 /* Convert between long values and pairs of Lisp integers.
2427 Note that long_to_cons returns a single Lisp integer
2428 when the value fits in one. */
2429
2430 Lisp_Object
2431 long_to_cons (i)
2432 unsigned long i;
2433 {
2434 unsigned long top = i >> 16;
2435 unsigned int bot = i & 0xFFFF;
2436 if (top == 0)
2437 return make_number (bot);
2438 if (top == (unsigned long)-1 >> 16)
2439 return Fcons (make_number (-1), make_number (bot));
2440 return Fcons (make_number (top), make_number (bot));
2441 }
2442
2443 unsigned long
2444 cons_to_long (c)
2445 Lisp_Object c;
2446 {
2447 Lisp_Object top, bot;
2448 if (INTEGERP (c))
2449 return XINT (c);
2450 top = XCAR (c);
2451 bot = XCDR (c);
2452 if (CONSP (bot))
2453 bot = XCAR (bot);
2454 return ((XINT (top) << 16) | XINT (bot));
2455 }
2456 \f
2457 DEFUN ("number-to-string", Fnumber_to_string, Snumber_to_string, 1, 1, 0,
2458 doc: /* Return the decimal representation of NUMBER as a string.
2459 Uses a minus sign if negative.
2460 NUMBER may be an integer or a floating point number. */)
2461 (number)
2462 Lisp_Object number;
2463 {
2464 char buffer[VALBITS];
2465
2466 CHECK_NUMBER_OR_FLOAT (number);
2467
2468 if (FLOATP (number))
2469 {
2470 char pigbuf[350]; /* see comments in float_to_string */
2471
2472 float_to_string (pigbuf, XFLOAT_DATA (number));
2473 return build_string (pigbuf);
2474 }
2475
2476 if (sizeof (int) == sizeof (EMACS_INT))
2477 sprintf (buffer, "%d", XINT (number));
2478 else if (sizeof (long) == sizeof (EMACS_INT))
2479 sprintf (buffer, "%ld", (long) XINT (number));
2480 else
2481 abort ();
2482 return build_string (buffer);
2483 }
2484
2485 INLINE static int
2486 digit_to_number (character, base)
2487 int character, base;
2488 {
2489 int digit;
2490
2491 if (character >= '0' && character <= '9')
2492 digit = character - '0';
2493 else if (character >= 'a' && character <= 'z')
2494 digit = character - 'a' + 10;
2495 else if (character >= 'A' && character <= 'Z')
2496 digit = character - 'A' + 10;
2497 else
2498 return -1;
2499
2500 if (digit >= base)
2501 return -1;
2502 else
2503 return digit;
2504 }
2505
2506 DEFUN ("string-to-number", Fstring_to_number, Sstring_to_number, 1, 2, 0,
2507 doc: /* Parse STRING as a decimal number and return the number.
2508 This parses both integers and floating point numbers.
2509 It ignores leading spaces and tabs.
2510
2511 If BASE, interpret STRING as a number in that base. If BASE isn't
2512 present, base 10 is used. BASE must be between 2 and 16 (inclusive).
2513 If the base used is not 10, floating point is not recognized. */)
2514 (string, base)
2515 register Lisp_Object string, base;
2516 {
2517 register unsigned char *p;
2518 register int b;
2519 int sign = 1;
2520 Lisp_Object val;
2521
2522 CHECK_STRING (string);
2523
2524 if (NILP (base))
2525 b = 10;
2526 else
2527 {
2528 CHECK_NUMBER (base);
2529 b = XINT (base);
2530 if (b < 2 || b > 16)
2531 xsignal1 (Qargs_out_of_range, base);
2532 }
2533
2534 /* Skip any whitespace at the front of the number. Some versions of
2535 atoi do this anyway, so we might as well make Emacs lisp consistent. */
2536 p = SDATA (string);
2537 while (*p == ' ' || *p == '\t')
2538 p++;
2539
2540 if (*p == '-')
2541 {
2542 sign = -1;
2543 p++;
2544 }
2545 else if (*p == '+')
2546 p++;
2547
2548 if (isfloat_string (p) && b == 10)
2549 val = make_float (sign * atof (p));
2550 else
2551 {
2552 double v = 0;
2553
2554 while (1)
2555 {
2556 int digit = digit_to_number (*p++, b);
2557 if (digit < 0)
2558 break;
2559 v = v * b + digit;
2560 }
2561
2562 val = make_fixnum_or_float (sign * v);
2563 }
2564
2565 return val;
2566 }
2567
2568 \f
2569 enum arithop
2570 {
2571 Aadd,
2572 Asub,
2573 Amult,
2574 Adiv,
2575 Alogand,
2576 Alogior,
2577 Alogxor,
2578 Amax,
2579 Amin
2580 };
2581
2582 static Lisp_Object float_arith_driver P_ ((double, int, enum arithop,
2583 int, Lisp_Object *));
2584 extern Lisp_Object fmod_float ();
2585
2586 Lisp_Object
2587 arith_driver (code, nargs, args)
2588 enum arithop code;
2589 int nargs;
2590 register Lisp_Object *args;
2591 {
2592 register Lisp_Object val;
2593 register int argnum;
2594 register EMACS_INT accum = 0;
2595 register EMACS_INT next;
2596
2597 switch (SWITCH_ENUM_CAST (code))
2598 {
2599 case Alogior:
2600 case Alogxor:
2601 case Aadd:
2602 case Asub:
2603 accum = 0;
2604 break;
2605 case Amult:
2606 accum = 1;
2607 break;
2608 case Alogand:
2609 accum = -1;
2610 break;
2611 default:
2612 break;
2613 }
2614
2615 for (argnum = 0; argnum < nargs; argnum++)
2616 {
2617 /* Using args[argnum] as argument to CHECK_NUMBER_... */
2618 val = args[argnum];
2619 CHECK_NUMBER_OR_FLOAT_COERCE_MARKER (val);
2620
2621 if (FLOATP (val))
2622 return float_arith_driver ((double) accum, argnum, code,
2623 nargs, args);
2624 args[argnum] = val;
2625 next = XINT (args[argnum]);
2626 switch (SWITCH_ENUM_CAST (code))
2627 {
2628 case Aadd:
2629 accum += next;
2630 break;
2631 case Asub:
2632 accum = argnum ? accum - next : nargs == 1 ? - next : next;
2633 break;
2634 case Amult:
2635 accum *= next;
2636 break;
2637 case Adiv:
2638 if (!argnum)
2639 accum = next;
2640 else
2641 {
2642 if (next == 0)
2643 xsignal0 (Qarith_error);
2644 accum /= next;
2645 }
2646 break;
2647 case Alogand:
2648 accum &= next;
2649 break;
2650 case Alogior:
2651 accum |= next;
2652 break;
2653 case Alogxor:
2654 accum ^= next;
2655 break;
2656 case Amax:
2657 if (!argnum || next > accum)
2658 accum = next;
2659 break;
2660 case Amin:
2661 if (!argnum || next < accum)
2662 accum = next;
2663 break;
2664 }
2665 }
2666
2667 XSETINT (val, accum);
2668 return val;
2669 }
2670
2671 #undef isnan
2672 #define isnan(x) ((x) != (x))
2673
2674 static Lisp_Object
2675 float_arith_driver (accum, argnum, code, nargs, args)
2676 double accum;
2677 register int argnum;
2678 enum arithop code;
2679 int nargs;
2680 register Lisp_Object *args;
2681 {
2682 register Lisp_Object val;
2683 double next;
2684
2685 for (; argnum < nargs; argnum++)
2686 {
2687 val = args[argnum]; /* using args[argnum] as argument to CHECK_NUMBER_... */
2688 CHECK_NUMBER_OR_FLOAT_COERCE_MARKER (val);
2689
2690 if (FLOATP (val))
2691 {
2692 next = XFLOAT_DATA (val);
2693 }
2694 else
2695 {
2696 args[argnum] = val; /* runs into a compiler bug. */
2697 next = XINT (args[argnum]);
2698 }
2699 switch (SWITCH_ENUM_CAST (code))
2700 {
2701 case Aadd:
2702 accum += next;
2703 break;
2704 case Asub:
2705 accum = argnum ? accum - next : nargs == 1 ? - next : next;
2706 break;
2707 case Amult:
2708 accum *= next;
2709 break;
2710 case Adiv:
2711 if (!argnum)
2712 accum = next;
2713 else
2714 {
2715 if (! IEEE_FLOATING_POINT && next == 0)
2716 xsignal0 (Qarith_error);
2717 accum /= next;
2718 }
2719 break;
2720 case Alogand:
2721 case Alogior:
2722 case Alogxor:
2723 return wrong_type_argument (Qinteger_or_marker_p, val);
2724 case Amax:
2725 if (!argnum || isnan (next) || next > accum)
2726 accum = next;
2727 break;
2728 case Amin:
2729 if (!argnum || isnan (next) || next < accum)
2730 accum = next;
2731 break;
2732 }
2733 }
2734
2735 return make_float (accum);
2736 }
2737
2738
2739 DEFUN ("+", Fplus, Splus, 0, MANY, 0,
2740 doc: /* Return sum of any number of arguments, which are numbers or markers.
2741 usage: (+ &rest NUMBERS-OR-MARKERS) */)
2742 (nargs, args)
2743 int nargs;
2744 Lisp_Object *args;
2745 {
2746 return arith_driver (Aadd, nargs, args);
2747 }
2748
2749 DEFUN ("-", Fminus, Sminus, 0, MANY, 0,
2750 doc: /* Negate number or subtract numbers or markers and return the result.
2751 With one arg, negates it. With more than one arg,
2752 subtracts all but the first from the first.
2753 usage: (- &optional NUMBER-OR-MARKER &rest MORE-NUMBERS-OR-MARKERS) */)
2754 (nargs, args)
2755 int nargs;
2756 Lisp_Object *args;
2757 {
2758 return arith_driver (Asub, nargs, args);
2759 }
2760
2761 DEFUN ("*", Ftimes, Stimes, 0, MANY, 0,
2762 doc: /* Return product of any number of arguments, which are numbers or markers.
2763 usage: (* &rest NUMBERS-OR-MARKERS) */)
2764 (nargs, args)
2765 int nargs;
2766 Lisp_Object *args;
2767 {
2768 return arith_driver (Amult, nargs, args);
2769 }
2770
2771 DEFUN ("/", Fquo, Squo, 2, MANY, 0,
2772 doc: /* Return first argument divided by all the remaining arguments.
2773 The arguments must be numbers or markers.
2774 usage: (/ DIVIDEND DIVISOR &rest DIVISORS) */)
2775 (nargs, args)
2776 int nargs;
2777 Lisp_Object *args;
2778 {
2779 int argnum;
2780 for (argnum = 2; argnum < nargs; argnum++)
2781 if (FLOATP (args[argnum]))
2782 return float_arith_driver (0, 0, Adiv, nargs, args);
2783 return arith_driver (Adiv, nargs, args);
2784 }
2785
2786 DEFUN ("%", Frem, Srem, 2, 2, 0,
2787 doc: /* Return remainder of X divided by Y.
2788 Both must be integers or markers. */)
2789 (x, y)
2790 register Lisp_Object x, y;
2791 {
2792 Lisp_Object val;
2793
2794 CHECK_NUMBER_COERCE_MARKER (x);
2795 CHECK_NUMBER_COERCE_MARKER (y);
2796
2797 if (XFASTINT (y) == 0)
2798 xsignal0 (Qarith_error);
2799
2800 XSETINT (val, XINT (x) % XINT (y));
2801 return val;
2802 }
2803
2804 #ifndef HAVE_FMOD
2805 double
2806 fmod (f1, f2)
2807 double f1, f2;
2808 {
2809 double r = f1;
2810
2811 if (f2 < 0.0)
2812 f2 = -f2;
2813
2814 /* If the magnitude of the result exceeds that of the divisor, or
2815 the sign of the result does not agree with that of the dividend,
2816 iterate with the reduced value. This does not yield a
2817 particularly accurate result, but at least it will be in the
2818 range promised by fmod. */
2819 do
2820 r -= f2 * floor (r / f2);
2821 while (f2 <= (r < 0 ? -r : r) || ((r < 0) != (f1 < 0) && ! isnan (r)));
2822
2823 return r;
2824 }
2825 #endif /* ! HAVE_FMOD */
2826
2827 DEFUN ("mod", Fmod, Smod, 2, 2, 0,
2828 doc: /* Return X modulo Y.
2829 The result falls between zero (inclusive) and Y (exclusive).
2830 Both X and Y must be numbers or markers. */)
2831 (x, y)
2832 register Lisp_Object x, y;
2833 {
2834 Lisp_Object val;
2835 EMACS_INT i1, i2;
2836
2837 CHECK_NUMBER_OR_FLOAT_COERCE_MARKER (x);
2838 CHECK_NUMBER_OR_FLOAT_COERCE_MARKER (y);
2839
2840 if (FLOATP (x) || FLOATP (y))
2841 return fmod_float (x, y);
2842
2843 i1 = XINT (x);
2844 i2 = XINT (y);
2845
2846 if (i2 == 0)
2847 xsignal0 (Qarith_error);
2848
2849 i1 %= i2;
2850
2851 /* If the "remainder" comes out with the wrong sign, fix it. */
2852 if (i2 < 0 ? i1 > 0 : i1 < 0)
2853 i1 += i2;
2854
2855 XSETINT (val, i1);
2856 return val;
2857 }
2858
2859 DEFUN ("max", Fmax, Smax, 1, MANY, 0,
2860 doc: /* Return largest of all the arguments (which must be numbers or markers).
2861 The value is always a number; markers are converted to numbers.
2862 usage: (max NUMBER-OR-MARKER &rest NUMBERS-OR-MARKERS) */)
2863 (nargs, args)
2864 int nargs;
2865 Lisp_Object *args;
2866 {
2867 return arith_driver (Amax, nargs, args);
2868 }
2869
2870 DEFUN ("min", Fmin, Smin, 1, MANY, 0,
2871 doc: /* Return smallest of all the arguments (which must be numbers or markers).
2872 The value is always a number; markers are converted to numbers.
2873 usage: (min NUMBER-OR-MARKER &rest NUMBERS-OR-MARKERS) */)
2874 (nargs, args)
2875 int nargs;
2876 Lisp_Object *args;
2877 {
2878 return arith_driver (Amin, nargs, args);
2879 }
2880
2881 DEFUN ("logand", Flogand, Slogand, 0, MANY, 0,
2882 doc: /* Return bitwise-and of all the arguments.
2883 Arguments may be integers, or markers converted to integers.
2884 usage: (logand &rest INTS-OR-MARKERS) */)
2885 (nargs, args)
2886 int nargs;
2887 Lisp_Object *args;
2888 {
2889 return arith_driver (Alogand, nargs, args);
2890 }
2891
2892 DEFUN ("logior", Flogior, Slogior, 0, MANY, 0,
2893 doc: /* Return bitwise-or of all the arguments.
2894 Arguments may be integers, or markers converted to integers.
2895 usage: (logior &rest INTS-OR-MARKERS) */)
2896 (nargs, args)
2897 int nargs;
2898 Lisp_Object *args;
2899 {
2900 return arith_driver (Alogior, nargs, args);
2901 }
2902
2903 DEFUN ("logxor", Flogxor, Slogxor, 0, MANY, 0,
2904 doc: /* Return bitwise-exclusive-or of all the arguments.
2905 Arguments may be integers, or markers converted to integers.
2906 usage: (logxor &rest INTS-OR-MARKERS) */)
2907 (nargs, args)
2908 int nargs;
2909 Lisp_Object *args;
2910 {
2911 return arith_driver (Alogxor, nargs, args);
2912 }
2913
2914 DEFUN ("ash", Fash, Sash, 2, 2, 0,
2915 doc: /* Return VALUE with its bits shifted left by COUNT.
2916 If COUNT is negative, shifting is actually to the right.
2917 In this case, the sign bit is duplicated. */)
2918 (value, count)
2919 register Lisp_Object value, count;
2920 {
2921 register Lisp_Object val;
2922
2923 CHECK_NUMBER (value);
2924 CHECK_NUMBER (count);
2925
2926 if (XINT (count) >= BITS_PER_EMACS_INT)
2927 XSETINT (val, 0);
2928 else if (XINT (count) > 0)
2929 XSETINT (val, XINT (value) << XFASTINT (count));
2930 else if (XINT (count) <= -BITS_PER_EMACS_INT)
2931 XSETINT (val, XINT (value) < 0 ? -1 : 0);
2932 else
2933 XSETINT (val, XINT (value) >> -XINT (count));
2934 return val;
2935 }
2936
2937 DEFUN ("lsh", Flsh, Slsh, 2, 2, 0,
2938 doc: /* Return VALUE with its bits shifted left by COUNT.
2939 If COUNT is negative, shifting is actually to the right.
2940 In this case, zeros are shifted in on the left. */)
2941 (value, count)
2942 register Lisp_Object value, count;
2943 {
2944 register Lisp_Object val;
2945
2946 CHECK_NUMBER (value);
2947 CHECK_NUMBER (count);
2948
2949 if (XINT (count) >= BITS_PER_EMACS_INT)
2950 XSETINT (val, 0);
2951 else if (XINT (count) > 0)
2952 XSETINT (val, (EMACS_UINT) XUINT (value) << XFASTINT (count));
2953 else if (XINT (count) <= -BITS_PER_EMACS_INT)
2954 XSETINT (val, 0);
2955 else
2956 XSETINT (val, (EMACS_UINT) XUINT (value) >> -XINT (count));
2957 return val;
2958 }
2959
2960 DEFUN ("1+", Fadd1, Sadd1, 1, 1, 0,
2961 doc: /* Return NUMBER plus one. NUMBER may be a number or a marker.
2962 Markers are converted to integers. */)
2963 (number)
2964 register Lisp_Object number;
2965 {
2966 CHECK_NUMBER_OR_FLOAT_COERCE_MARKER (number);
2967
2968 if (FLOATP (number))
2969 return (make_float (1.0 + XFLOAT_DATA (number)));
2970
2971 XSETINT (number, XINT (number) + 1);
2972 return number;
2973 }
2974
2975 DEFUN ("1-", Fsub1, Ssub1, 1, 1, 0,
2976 doc: /* Return NUMBER minus one. NUMBER may be a number or a marker.
2977 Markers are converted to integers. */)
2978 (number)
2979 register Lisp_Object number;
2980 {
2981 CHECK_NUMBER_OR_FLOAT_COERCE_MARKER (number);
2982
2983 if (FLOATP (number))
2984 return (make_float (-1.0 + XFLOAT_DATA (number)));
2985
2986 XSETINT (number, XINT (number) - 1);
2987 return number;
2988 }
2989
2990 DEFUN ("lognot", Flognot, Slognot, 1, 1, 0,
2991 doc: /* Return the bitwise complement of NUMBER. NUMBER must be an integer. */)
2992 (number)
2993 register Lisp_Object number;
2994 {
2995 CHECK_NUMBER (number);
2996 XSETINT (number, ~XINT (number));
2997 return number;
2998 }
2999
3000 DEFUN ("byteorder", Fbyteorder, Sbyteorder, 0, 0, 0,
3001 doc: /* Return the byteorder for the machine.
3002 Returns 66 (ASCII uppercase B) for big endian machines or 108 (ASCII
3003 lowercase l) for small endian machines. */)
3004 ()
3005 {
3006 unsigned i = 0x04030201;
3007 int order = *(char *)&i == 1 ? 108 : 66;
3008
3009 return make_number (order);
3010 }
3011
3012
3013 \f
3014 void
3015 syms_of_data ()
3016 {
3017 Lisp_Object error_tail, arith_tail;
3018
3019 Qquote = intern ("quote");
3020 Qlambda = intern ("lambda");
3021 Qsubr = intern ("subr");
3022 Qerror_conditions = intern ("error-conditions");
3023 Qerror_message = intern ("error-message");
3024 Qtop_level = intern ("top-level");
3025
3026 Qerror = intern ("error");
3027 Qquit = intern ("quit");
3028 Qwrong_type_argument = intern ("wrong-type-argument");
3029 Qargs_out_of_range = intern ("args-out-of-range");
3030 Qvoid_function = intern ("void-function");
3031 Qcyclic_function_indirection = intern ("cyclic-function-indirection");
3032 Qcyclic_variable_indirection = intern ("cyclic-variable-indirection");
3033 Qvoid_variable = intern ("void-variable");
3034 Qsetting_constant = intern ("setting-constant");
3035 Qinvalid_read_syntax = intern ("invalid-read-syntax");
3036
3037 Qinvalid_function = intern ("invalid-function");
3038 Qwrong_number_of_arguments = intern ("wrong-number-of-arguments");
3039 Qno_catch = intern ("no-catch");
3040 Qend_of_file = intern ("end-of-file");
3041 Qarith_error = intern ("arith-error");
3042 Qbeginning_of_buffer = intern ("beginning-of-buffer");
3043 Qend_of_buffer = intern ("end-of-buffer");
3044 Qbuffer_read_only = intern ("buffer-read-only");
3045 Qtext_read_only = intern ("text-read-only");
3046 Qmark_inactive = intern ("mark-inactive");
3047
3048 Qlistp = intern ("listp");
3049 Qconsp = intern ("consp");
3050 Qsymbolp = intern ("symbolp");
3051 Qkeywordp = intern ("keywordp");
3052 Qintegerp = intern ("integerp");
3053 Qnatnump = intern ("natnump");
3054 Qwholenump = intern ("wholenump");
3055 Qstringp = intern ("stringp");
3056 Qarrayp = intern ("arrayp");
3057 Qsequencep = intern ("sequencep");
3058 Qbufferp = intern ("bufferp");
3059 Qvectorp = intern ("vectorp");
3060 Qchar_or_string_p = intern ("char-or-string-p");
3061 Qmarkerp = intern ("markerp");
3062 Qbuffer_or_string_p = intern ("buffer-or-string-p");
3063 Qinteger_or_marker_p = intern ("integer-or-marker-p");
3064 Qboundp = intern ("boundp");
3065 Qfboundp = intern ("fboundp");
3066
3067 Qfloatp = intern ("floatp");
3068 Qnumberp = intern ("numberp");
3069 Qnumber_or_marker_p = intern ("number-or-marker-p");
3070
3071 Qchar_table_p = intern ("char-table-p");
3072 Qvector_or_char_table_p = intern ("vector-or-char-table-p");
3073
3074 Qsubrp = intern ("subrp");
3075 Qunevalled = intern ("unevalled");
3076 Qmany = intern ("many");
3077
3078 Qcdr = intern ("cdr");
3079
3080 /* Handle automatic advice activation */
3081 Qad_advice_info = intern ("ad-advice-info");
3082 Qad_activate_internal = intern ("ad-activate-internal");
3083
3084 error_tail = Fcons (Qerror, Qnil);
3085
3086 /* ERROR is used as a signaler for random errors for which nothing else is right */
3087
3088 Fput (Qerror, Qerror_conditions,
3089 error_tail);
3090 Fput (Qerror, Qerror_message,
3091 build_string ("error"));
3092
3093 Fput (Qquit, Qerror_conditions,
3094 Fcons (Qquit, Qnil));
3095 Fput (Qquit, Qerror_message,
3096 build_string ("Quit"));
3097
3098 Fput (Qwrong_type_argument, Qerror_conditions,
3099 Fcons (Qwrong_type_argument, error_tail));
3100 Fput (Qwrong_type_argument, Qerror_message,
3101 build_string ("Wrong type argument"));
3102
3103 Fput (Qargs_out_of_range, Qerror_conditions,
3104 Fcons (Qargs_out_of_range, error_tail));
3105 Fput (Qargs_out_of_range, Qerror_message,
3106 build_string ("Args out of range"));
3107
3108 Fput (Qvoid_function, Qerror_conditions,
3109 Fcons (Qvoid_function, error_tail));
3110 Fput (Qvoid_function, Qerror_message,
3111 build_string ("Symbol's function definition is void"));
3112
3113 Fput (Qcyclic_function_indirection, Qerror_conditions,
3114 Fcons (Qcyclic_function_indirection, error_tail));
3115 Fput (Qcyclic_function_indirection, Qerror_message,
3116 build_string ("Symbol's chain of function indirections contains a loop"));
3117
3118 Fput (Qcyclic_variable_indirection, Qerror_conditions,
3119 Fcons (Qcyclic_variable_indirection, error_tail));
3120 Fput (Qcyclic_variable_indirection, Qerror_message,
3121 build_string ("Symbol's chain of variable indirections contains a loop"));
3122
3123 Qcircular_list = intern ("circular-list");
3124 staticpro (&Qcircular_list);
3125 Fput (Qcircular_list, Qerror_conditions,
3126 Fcons (Qcircular_list, error_tail));
3127 Fput (Qcircular_list, Qerror_message,
3128 build_string ("List contains a loop"));
3129
3130 Fput (Qvoid_variable, Qerror_conditions,
3131 Fcons (Qvoid_variable, error_tail));
3132 Fput (Qvoid_variable, Qerror_message,
3133 build_string ("Symbol's value as variable is void"));
3134
3135 Fput (Qsetting_constant, Qerror_conditions,
3136 Fcons (Qsetting_constant, error_tail));
3137 Fput (Qsetting_constant, Qerror_message,
3138 build_string ("Attempt to set a constant symbol"));
3139
3140 Fput (Qinvalid_read_syntax, Qerror_conditions,
3141 Fcons (Qinvalid_read_syntax, error_tail));
3142 Fput (Qinvalid_read_syntax, Qerror_message,
3143 build_string ("Invalid read syntax"));
3144
3145 Fput (Qinvalid_function, Qerror_conditions,
3146 Fcons (Qinvalid_function, error_tail));
3147 Fput (Qinvalid_function, Qerror_message,
3148 build_string ("Invalid function"));
3149
3150 Fput (Qwrong_number_of_arguments, Qerror_conditions,
3151 Fcons (Qwrong_number_of_arguments, error_tail));
3152 Fput (Qwrong_number_of_arguments, Qerror_message,
3153 build_string ("Wrong number of arguments"));
3154
3155 Fput (Qno_catch, Qerror_conditions,
3156 Fcons (Qno_catch, error_tail));
3157 Fput (Qno_catch, Qerror_message,
3158 build_string ("No catch for tag"));
3159
3160 Fput (Qend_of_file, Qerror_conditions,
3161 Fcons (Qend_of_file, error_tail));
3162 Fput (Qend_of_file, Qerror_message,
3163 build_string ("End of file during parsing"));
3164
3165 arith_tail = Fcons (Qarith_error, error_tail);
3166 Fput (Qarith_error, Qerror_conditions,
3167 arith_tail);
3168 Fput (Qarith_error, Qerror_message,
3169 build_string ("Arithmetic error"));
3170
3171 Fput (Qbeginning_of_buffer, Qerror_conditions,
3172 Fcons (Qbeginning_of_buffer, error_tail));
3173 Fput (Qbeginning_of_buffer, Qerror_message,
3174 build_string ("Beginning of buffer"));
3175
3176 Fput (Qend_of_buffer, Qerror_conditions,
3177 Fcons (Qend_of_buffer, error_tail));
3178 Fput (Qend_of_buffer, Qerror_message,
3179 build_string ("End of buffer"));
3180
3181 Fput (Qbuffer_read_only, Qerror_conditions,
3182 Fcons (Qbuffer_read_only, error_tail));
3183 Fput (Qbuffer_read_only, Qerror_message,
3184 build_string ("Buffer is read-only"));
3185
3186 Fput (Qtext_read_only, Qerror_conditions,
3187 Fcons (Qtext_read_only, error_tail));
3188 Fput (Qtext_read_only, Qerror_message,
3189 build_string ("Text is read-only"));
3190
3191 Qrange_error = intern ("range-error");
3192 Qdomain_error = intern ("domain-error");
3193 Qsingularity_error = intern ("singularity-error");
3194 Qoverflow_error = intern ("overflow-error");
3195 Qunderflow_error = intern ("underflow-error");
3196
3197 Fput (Qdomain_error, Qerror_conditions,
3198 Fcons (Qdomain_error, arith_tail));
3199 Fput (Qdomain_error, Qerror_message,
3200 build_string ("Arithmetic domain error"));
3201
3202 Fput (Qrange_error, Qerror_conditions,
3203 Fcons (Qrange_error, arith_tail));
3204 Fput (Qrange_error, Qerror_message,
3205 build_string ("Arithmetic range error"));
3206
3207 Fput (Qsingularity_error, Qerror_conditions,
3208 Fcons (Qsingularity_error, Fcons (Qdomain_error, arith_tail)));
3209 Fput (Qsingularity_error, Qerror_message,
3210 build_string ("Arithmetic singularity error"));
3211
3212 Fput (Qoverflow_error, Qerror_conditions,
3213 Fcons (Qoverflow_error, Fcons (Qdomain_error, arith_tail)));
3214 Fput (Qoverflow_error, Qerror_message,
3215 build_string ("Arithmetic overflow error"));
3216
3217 Fput (Qunderflow_error, Qerror_conditions,
3218 Fcons (Qunderflow_error, Fcons (Qdomain_error, arith_tail)));
3219 Fput (Qunderflow_error, Qerror_message,
3220 build_string ("Arithmetic underflow error"));
3221
3222 staticpro (&Qrange_error);
3223 staticpro (&Qdomain_error);
3224 staticpro (&Qsingularity_error);
3225 staticpro (&Qoverflow_error);
3226 staticpro (&Qunderflow_error);
3227
3228 staticpro (&Qnil);
3229 staticpro (&Qt);
3230 staticpro (&Qquote);
3231 staticpro (&Qlambda);
3232 staticpro (&Qsubr);
3233 staticpro (&Qunbound);
3234 staticpro (&Qerror_conditions);
3235 staticpro (&Qerror_message);
3236 staticpro (&Qtop_level);
3237
3238 staticpro (&Qerror);
3239 staticpro (&Qquit);
3240 staticpro (&Qwrong_type_argument);
3241 staticpro (&Qargs_out_of_range);
3242 staticpro (&Qvoid_function);
3243 staticpro (&Qcyclic_function_indirection);
3244 staticpro (&Qcyclic_variable_indirection);
3245 staticpro (&Qvoid_variable);
3246 staticpro (&Qsetting_constant);
3247 staticpro (&Qinvalid_read_syntax);
3248 staticpro (&Qwrong_number_of_arguments);
3249 staticpro (&Qinvalid_function);
3250 staticpro (&Qno_catch);
3251 staticpro (&Qend_of_file);
3252 staticpro (&Qarith_error);
3253 staticpro (&Qbeginning_of_buffer);
3254 staticpro (&Qend_of_buffer);
3255 staticpro (&Qbuffer_read_only);
3256 staticpro (&Qtext_read_only);
3257 staticpro (&Qmark_inactive);
3258
3259 staticpro (&Qlistp);
3260 staticpro (&Qconsp);
3261 staticpro (&Qsymbolp);
3262 staticpro (&Qkeywordp);
3263 staticpro (&Qintegerp);
3264 staticpro (&Qnatnump);
3265 staticpro (&Qwholenump);
3266 staticpro (&Qstringp);
3267 staticpro (&Qarrayp);
3268 staticpro (&Qsequencep);
3269 staticpro (&Qbufferp);
3270 staticpro (&Qvectorp);
3271 staticpro (&Qchar_or_string_p);
3272 staticpro (&Qmarkerp);
3273 staticpro (&Qbuffer_or_string_p);
3274 staticpro (&Qinteger_or_marker_p);
3275 staticpro (&Qfloatp);
3276 staticpro (&Qnumberp);
3277 staticpro (&Qnumber_or_marker_p);
3278 staticpro (&Qchar_table_p);
3279 staticpro (&Qvector_or_char_table_p);
3280 staticpro (&Qsubrp);
3281 staticpro (&Qmany);
3282 staticpro (&Qunevalled);
3283
3284 staticpro (&Qboundp);
3285 staticpro (&Qfboundp);
3286 staticpro (&Qcdr);
3287 staticpro (&Qad_advice_info);
3288 staticpro (&Qad_activate_internal);
3289
3290 /* Types that type-of returns. */
3291 Qinteger = intern ("integer");
3292 Qsymbol = intern ("symbol");
3293 Qstring = intern ("string");
3294 Qcons = intern ("cons");
3295 Qmarker = intern ("marker");
3296 Qoverlay = intern ("overlay");
3297 Qfloat = intern ("float");
3298 Qwindow_configuration = intern ("window-configuration");
3299 Qprocess = intern ("process");
3300 Qwindow = intern ("window");
3301 /* Qsubr = intern ("subr"); */
3302 Qcompiled_function = intern ("compiled-function");
3303 Qbuffer = intern ("buffer");
3304 Qframe = intern ("frame");
3305 Qvector = intern ("vector");
3306 Qchar_table = intern ("char-table");
3307 Qbool_vector = intern ("bool-vector");
3308 Qhash_table = intern ("hash-table");
3309
3310 staticpro (&Qinteger);
3311 staticpro (&Qsymbol);
3312 staticpro (&Qstring);
3313 staticpro (&Qcons);
3314 staticpro (&Qmarker);
3315 staticpro (&Qoverlay);
3316 staticpro (&Qfloat);
3317 staticpro (&Qwindow_configuration);
3318 staticpro (&Qprocess);
3319 staticpro (&Qwindow);
3320 /* staticpro (&Qsubr); */
3321 staticpro (&Qcompiled_function);
3322 staticpro (&Qbuffer);
3323 staticpro (&Qframe);
3324 staticpro (&Qvector);
3325 staticpro (&Qchar_table);
3326 staticpro (&Qbool_vector);
3327 staticpro (&Qhash_table);
3328
3329 defsubr (&Sindirect_variable);
3330 defsubr (&Sinteractive_form);
3331 defsubr (&Seq);
3332 defsubr (&Snull);
3333 defsubr (&Stype_of);
3334 defsubr (&Slistp);
3335 defsubr (&Snlistp);
3336 defsubr (&Sconsp);
3337 defsubr (&Satom);
3338 defsubr (&Sintegerp);
3339 defsubr (&Sinteger_or_marker_p);
3340 defsubr (&Snumberp);
3341 defsubr (&Snumber_or_marker_p);
3342 defsubr (&Sfloatp);
3343 defsubr (&Snatnump);
3344 defsubr (&Ssymbolp);
3345 defsubr (&Skeywordp);
3346 defsubr (&Sstringp);
3347 defsubr (&Smultibyte_string_p);
3348 defsubr (&Svectorp);
3349 defsubr (&Schar_table_p);
3350 defsubr (&Svector_or_char_table_p);
3351 defsubr (&Sbool_vector_p);
3352 defsubr (&Sarrayp);
3353 defsubr (&Ssequencep);
3354 defsubr (&Sbufferp);
3355 defsubr (&Smarkerp);
3356 defsubr (&Ssubrp);
3357 defsubr (&Sbyte_code_function_p);
3358 defsubr (&Schar_or_string_p);
3359 defsubr (&Scar);
3360 defsubr (&Scdr);
3361 defsubr (&Scar_safe);
3362 defsubr (&Scdr_safe);
3363 defsubr (&Ssetcar);
3364 defsubr (&Ssetcdr);
3365 defsubr (&Ssymbol_function);
3366 defsubr (&Sindirect_function);
3367 defsubr (&Ssymbol_plist);
3368 defsubr (&Ssymbol_name);
3369 defsubr (&Smakunbound);
3370 defsubr (&Sfmakunbound);
3371 defsubr (&Sboundp);
3372 defsubr (&Sfboundp);
3373 defsubr (&Sfset);
3374 defsubr (&Sdefalias);
3375 defsubr (&Ssetplist);
3376 defsubr (&Ssymbol_value);
3377 defsubr (&Sset);
3378 defsubr (&Sdefault_boundp);
3379 defsubr (&Sdefault_value);
3380 defsubr (&Sset_default);
3381 defsubr (&Ssetq_default);
3382 defsubr (&Smake_variable_buffer_local);
3383 defsubr (&Smake_local_variable);
3384 defsubr (&Skill_local_variable);
3385 defsubr (&Smake_variable_frame_local);
3386 defsubr (&Slocal_variable_p);
3387 defsubr (&Slocal_variable_if_set_p);
3388 defsubr (&Svariable_binding_locus);
3389 #if 0 /* XXX Remove this. --lorentey */
3390 defsubr (&Sterminal_local_value);
3391 defsubr (&Sset_terminal_local_value);
3392 #endif
3393 defsubr (&Saref);
3394 defsubr (&Saset);
3395 defsubr (&Snumber_to_string);
3396 defsubr (&Sstring_to_number);
3397 defsubr (&Seqlsign);
3398 defsubr (&Slss);
3399 defsubr (&Sgtr);
3400 defsubr (&Sleq);
3401 defsubr (&Sgeq);
3402 defsubr (&Sneq);
3403 defsubr (&Szerop);
3404 defsubr (&Splus);
3405 defsubr (&Sminus);
3406 defsubr (&Stimes);
3407 defsubr (&Squo);
3408 defsubr (&Srem);
3409 defsubr (&Smod);
3410 defsubr (&Smax);
3411 defsubr (&Smin);
3412 defsubr (&Slogand);
3413 defsubr (&Slogior);
3414 defsubr (&Slogxor);
3415 defsubr (&Slsh);
3416 defsubr (&Sash);
3417 defsubr (&Sadd1);
3418 defsubr (&Ssub1);
3419 defsubr (&Slognot);
3420 defsubr (&Sbyteorder);
3421 defsubr (&Ssubr_arity);
3422 defsubr (&Ssubr_name);
3423
3424 XSYMBOL (Qwholenump)->function = XSYMBOL (Qnatnump)->function;
3425
3426 DEFVAR_LISP ("most-positive-fixnum", &Vmost_positive_fixnum,
3427 doc: /* The largest value that is representable in a Lisp integer. */);
3428 Vmost_positive_fixnum = make_number (MOST_POSITIVE_FIXNUM);
3429
3430 DEFVAR_LISP ("most-negative-fixnum", &Vmost_negative_fixnum,
3431 doc: /* The smallest value that is representable in a Lisp integer. */);
3432 Vmost_negative_fixnum = make_number (MOST_NEGATIVE_FIXNUM);
3433 }
3434
3435 SIGTYPE
3436 arith_error (signo)
3437 int signo;
3438 {
3439 #if defined(USG) && !defined(POSIX_SIGNALS)
3440 /* USG systems forget handlers when they are used;
3441 must reestablish each time */
3442 signal (signo, arith_error);
3443 #endif /* USG */
3444 #ifdef VMS
3445 /* VMS systems are like USG. */
3446 signal (signo, arith_error);
3447 #endif /* VMS */
3448 #ifdef BSD4_1
3449 sigrelse (SIGFPE);
3450 #else /* not BSD4_1 */
3451 sigsetmask (SIGEMPTYMASK);
3452 #endif /* not BSD4_1 */
3453
3454 SIGNAL_THREAD_CHECK (signo);
3455 xsignal0 (Qarith_error);
3456 }
3457
3458 void
3459 init_data ()
3460 {
3461 /* Don't do this if just dumping out.
3462 We don't want to call `signal' in this case
3463 so that we don't have trouble with dumping
3464 signal-delivering routines in an inconsistent state. */
3465 #ifndef CANNOT_DUMP
3466 if (!initialized)
3467 return;
3468 #endif /* CANNOT_DUMP */
3469 signal (SIGFPE, arith_error);
3470
3471 #ifdef uts
3472 signal (SIGEMT, arith_error);
3473 #endif /* uts */
3474 }
3475
3476 /* arch-tag: 25879798-b84d-479a-9c89-7d148e2109f7
3477 (do not change this comment) */