Fix dependencies according to 2010-08-22T15:14:37Z!dann@ics.uci.edu.
[bpt/emacs.git] / src / eval.c
1 /* Evaluator for GNU Emacs Lisp interpreter.
2 Copyright (C) 1985, 1986, 1987, 1993, 1994, 1995, 1999, 2000, 2001,
3 2002, 2003, 2004, 2005, 2006, 2007, 2008, 2009, 2010
4 Free Software Foundation, Inc.
5
6 This file is part of GNU Emacs.
7
8 GNU Emacs is free software: you can redistribute it and/or modify
9 it under the terms of the GNU General Public License as published by
10 the Free Software Foundation, either version 3 of the License, or
11 (at your option) any later version.
12
13 GNU Emacs is distributed in the hope that it will be useful,
14 but WITHOUT ANY WARRANTY; without even the implied warranty of
15 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16 GNU General Public License for more details.
17
18 You should have received a copy of the GNU General Public License
19 along with GNU Emacs. If not, see <http://www.gnu.org/licenses/>. */
20
21
22 #include <config.h>
23 #include <setjmp.h>
24 #include "lisp.h"
25 #include "blockinput.h"
26 #include "commands.h"
27 #include "keyboard.h"
28 #include "dispextern.h"
29 #include "frame.h" /* For XFRAME. */
30
31 #if HAVE_X_WINDOWS
32 #include "xterm.h"
33 #endif
34
35 /* This definition is duplicated in alloc.c and keyboard.c */
36 /* Putting it in lisp.h makes cc bomb out! */
37
38 struct backtrace
39 {
40 struct backtrace *next;
41 Lisp_Object *function;
42 Lisp_Object *args; /* Points to vector of args. */
43 int nargs; /* Length of vector.
44 If nargs is UNEVALLED, args points to slot holding
45 list of unevalled args */
46 char evalargs;
47 /* Nonzero means call value of debugger when done with this operation. */
48 char debug_on_exit;
49 };
50
51 struct backtrace *backtrace_list;
52
53 struct catchtag *catchlist;
54
55 #ifdef DEBUG_GCPRO
56 /* Count levels of GCPRO to detect failure to UNGCPRO. */
57 int gcpro_level;
58 #endif
59
60 Lisp_Object Qautoload, Qmacro, Qexit, Qinteractive, Qcommandp, Qdefun;
61 Lisp_Object Qinhibit_quit, Vinhibit_quit, Vquit_flag;
62 Lisp_Object Qand_rest, Qand_optional;
63 Lisp_Object Qdebug_on_error;
64 Lisp_Object Qdeclare;
65 Lisp_Object Qdebug;
66
67 /* This holds either the symbol `run-hooks' or nil.
68 It is nil at an early stage of startup, and when Emacs
69 is shutting down. */
70
71 Lisp_Object Vrun_hooks;
72
73 /* Non-nil means record all fset's and provide's, to be undone
74 if the file being autoloaded is not fully loaded.
75 They are recorded by being consed onto the front of Vautoload_queue:
76 (FUN . ODEF) for a defun, (0 . OFEATURES) for a provide. */
77
78 Lisp_Object Vautoload_queue;
79
80 /* Current number of specbindings allocated in specpdl. */
81
82 int specpdl_size;
83
84 /* Pointer to beginning of specpdl. */
85
86 struct specbinding *specpdl;
87
88 /* Pointer to first unused element in specpdl. */
89
90 struct specbinding *specpdl_ptr;
91
92 /* Maximum size allowed for specpdl allocation */
93
94 EMACS_INT max_specpdl_size;
95
96 /* Depth in Lisp evaluations and function calls. */
97
98 int lisp_eval_depth;
99
100 /* Maximum allowed depth in Lisp evaluations and function calls. */
101
102 EMACS_INT max_lisp_eval_depth;
103
104 /* Nonzero means enter debugger before next function call */
105
106 int debug_on_next_call;
107
108 /* Non-zero means debugger may continue. This is zero when the
109 debugger is called during redisplay, where it might not be safe to
110 continue the interrupted redisplay. */
111
112 int debugger_may_continue;
113
114 /* List of conditions (non-nil atom means all) which cause a backtrace
115 if an error is handled by the command loop's error handler. */
116
117 Lisp_Object Vstack_trace_on_error;
118
119 /* List of conditions (non-nil atom means all) which enter the debugger
120 if an error is handled by the command loop's error handler. */
121
122 Lisp_Object Vdebug_on_error;
123
124 /* List of conditions and regexps specifying error messages which
125 do not enter the debugger even if Vdebug_on_error says they should. */
126
127 Lisp_Object Vdebug_ignored_errors;
128
129 /* Non-nil means call the debugger even if the error will be handled. */
130
131 Lisp_Object Vdebug_on_signal;
132
133 /* Hook for edebug to use. */
134
135 Lisp_Object Vsignal_hook_function;
136
137 /* Nonzero means enter debugger if a quit signal
138 is handled by the command loop's error handler. */
139
140 int debug_on_quit;
141
142 /* The value of num_nonmacro_input_events as of the last time we
143 started to enter the debugger. If we decide to enter the debugger
144 again when this is still equal to num_nonmacro_input_events, then we
145 know that the debugger itself has an error, and we should just
146 signal the error instead of entering an infinite loop of debugger
147 invocations. */
148
149 int when_entered_debugger;
150
151 Lisp_Object Vdebugger;
152
153 /* The function from which the last `signal' was called. Set in
154 Fsignal. */
155
156 Lisp_Object Vsignaling_function;
157
158 /* Set to non-zero while processing X events. Checked in Feval to
159 make sure the Lisp interpreter isn't called from a signal handler,
160 which is unsafe because the interpreter isn't reentrant. */
161
162 int handling_signal;
163
164 /* Function to process declarations in defmacro forms. */
165
166 Lisp_Object Vmacro_declaration_function;
167
168 static Lisp_Object funcall_lambda (Lisp_Object, int, Lisp_Object*);
169 static void unwind_to_catch (struct catchtag *, Lisp_Object) NO_RETURN;
170 \f
171 void
172 init_eval_once (void)
173 {
174 specpdl_size = 50;
175 specpdl = (struct specbinding *) xmalloc (specpdl_size * sizeof (struct specbinding));
176 specpdl_ptr = specpdl;
177 /* Don't forget to update docs (lispref node "Local Variables"). */
178 max_specpdl_size = 1000;
179 max_lisp_eval_depth = 500;
180
181 Vrun_hooks = Qnil;
182 }
183
184 void
185 init_eval (void)
186 {
187 specpdl_ptr = specpdl;
188 catchlist = 0;
189 handlerlist = 0;
190 backtrace_list = 0;
191 Vquit_flag = Qnil;
192 debug_on_next_call = 0;
193 lisp_eval_depth = 0;
194 #ifdef DEBUG_GCPRO
195 gcpro_level = 0;
196 #endif
197 /* This is less than the initial value of num_nonmacro_input_events. */
198 when_entered_debugger = -1;
199 }
200
201 /* unwind-protect function used by call_debugger. */
202
203 static Lisp_Object
204 restore_stack_limits (Lisp_Object data)
205 {
206 max_specpdl_size = XINT (XCAR (data));
207 max_lisp_eval_depth = XINT (XCDR (data));
208 return Qnil;
209 }
210
211 /* Call the Lisp debugger, giving it argument ARG. */
212
213 Lisp_Object
214 call_debugger (Lisp_Object arg)
215 {
216 int debug_while_redisplaying;
217 int count = SPECPDL_INDEX ();
218 Lisp_Object val;
219 int old_max = max_specpdl_size;
220
221 /* Temporarily bump up the stack limits,
222 so the debugger won't run out of stack. */
223
224 max_specpdl_size += 1;
225 record_unwind_protect (restore_stack_limits,
226 Fcons (make_number (old_max),
227 make_number (max_lisp_eval_depth)));
228 max_specpdl_size = old_max;
229
230 if (lisp_eval_depth + 40 > max_lisp_eval_depth)
231 max_lisp_eval_depth = lisp_eval_depth + 40;
232
233 if (SPECPDL_INDEX () + 100 > max_specpdl_size)
234 max_specpdl_size = SPECPDL_INDEX () + 100;
235
236 #ifdef HAVE_WINDOW_SYSTEM
237 if (display_hourglass_p)
238 cancel_hourglass ();
239 #endif
240
241 debug_on_next_call = 0;
242 when_entered_debugger = num_nonmacro_input_events;
243
244 /* Resetting redisplaying_p to 0 makes sure that debug output is
245 displayed if the debugger is invoked during redisplay. */
246 debug_while_redisplaying = redisplaying_p;
247 redisplaying_p = 0;
248 specbind (intern ("debugger-may-continue"),
249 debug_while_redisplaying ? Qnil : Qt);
250 specbind (Qinhibit_redisplay, Qnil);
251 specbind (Qdebug_on_error, Qnil);
252
253 #if 0 /* Binding this prevents execution of Lisp code during
254 redisplay, which necessarily leads to display problems. */
255 specbind (Qinhibit_eval_during_redisplay, Qt);
256 #endif
257
258 val = apply1 (Vdebugger, arg);
259
260 /* Interrupting redisplay and resuming it later is not safe under
261 all circumstances. So, when the debugger returns, abort the
262 interrupted redisplay by going back to the top-level. */
263 if (debug_while_redisplaying)
264 Ftop_level ();
265
266 return unbind_to (count, val);
267 }
268
269 void
270 do_debug_on_call (Lisp_Object code)
271 {
272 debug_on_next_call = 0;
273 backtrace_list->debug_on_exit = 1;
274 call_debugger (Fcons (code, Qnil));
275 }
276 \f
277 /* NOTE!!! Every function that can call EVAL must protect its args
278 and temporaries from garbage collection while it needs them.
279 The definition of `For' shows what you have to do. */
280
281 DEFUN ("or", For, Sor, 0, UNEVALLED, 0,
282 doc: /* Eval args until one of them yields non-nil, then return that value.
283 The remaining args are not evalled at all.
284 If all args return nil, return nil.
285 usage: (or CONDITIONS...) */)
286 (Lisp_Object args)
287 {
288 register Lisp_Object val = Qnil;
289 struct gcpro gcpro1;
290
291 GCPRO1 (args);
292
293 while (CONSP (args))
294 {
295 val = Feval (XCAR (args));
296 if (!NILP (val))
297 break;
298 args = XCDR (args);
299 }
300
301 UNGCPRO;
302 return val;
303 }
304
305 DEFUN ("and", Fand, Sand, 0, UNEVALLED, 0,
306 doc: /* Eval args until one of them yields nil, then return nil.
307 The remaining args are not evalled at all.
308 If no arg yields nil, return the last arg's value.
309 usage: (and CONDITIONS...) */)
310 (Lisp_Object args)
311 {
312 register Lisp_Object val = Qt;
313 struct gcpro gcpro1;
314
315 GCPRO1 (args);
316
317 while (CONSP (args))
318 {
319 val = Feval (XCAR (args));
320 if (NILP (val))
321 break;
322 args = XCDR (args);
323 }
324
325 UNGCPRO;
326 return val;
327 }
328
329 DEFUN ("if", Fif, Sif, 2, UNEVALLED, 0,
330 doc: /* If COND yields non-nil, do THEN, else do ELSE...
331 Returns the value of THEN or the value of the last of the ELSE's.
332 THEN must be one expression, but ELSE... can be zero or more expressions.
333 If COND yields nil, and there are no ELSE's, the value is nil.
334 usage: (if COND THEN ELSE...) */)
335 (Lisp_Object args)
336 {
337 register Lisp_Object cond;
338 struct gcpro gcpro1;
339
340 GCPRO1 (args);
341 cond = Feval (Fcar (args));
342 UNGCPRO;
343
344 if (!NILP (cond))
345 return Feval (Fcar (Fcdr (args)));
346 return Fprogn (Fcdr (Fcdr (args)));
347 }
348
349 DEFUN ("cond", Fcond, Scond, 0, UNEVALLED, 0,
350 doc: /* Try each clause until one succeeds.
351 Each clause looks like (CONDITION BODY...). CONDITION is evaluated
352 and, if the value is non-nil, this clause succeeds:
353 then the expressions in BODY are evaluated and the last one's
354 value is the value of the cond-form.
355 If no clause succeeds, cond returns nil.
356 If a clause has one element, as in (CONDITION),
357 CONDITION's value if non-nil is returned from the cond-form.
358 usage: (cond CLAUSES...) */)
359 (Lisp_Object args)
360 {
361 register Lisp_Object clause, val;
362 struct gcpro gcpro1;
363
364 val = Qnil;
365 GCPRO1 (args);
366 while (!NILP (args))
367 {
368 clause = Fcar (args);
369 val = Feval (Fcar (clause));
370 if (!NILP (val))
371 {
372 if (!EQ (XCDR (clause), Qnil))
373 val = Fprogn (XCDR (clause));
374 break;
375 }
376 args = XCDR (args);
377 }
378 UNGCPRO;
379
380 return val;
381 }
382
383 DEFUN ("progn", Fprogn, Sprogn, 0, UNEVALLED, 0,
384 doc: /* Eval BODY forms sequentially and return value of last one.
385 usage: (progn BODY...) */)
386 (Lisp_Object args)
387 {
388 register Lisp_Object val = Qnil;
389 struct gcpro gcpro1;
390
391 GCPRO1 (args);
392
393 while (CONSP (args))
394 {
395 val = Feval (XCAR (args));
396 args = XCDR (args);
397 }
398
399 UNGCPRO;
400 return val;
401 }
402
403 DEFUN ("prog1", Fprog1, Sprog1, 1, UNEVALLED, 0,
404 doc: /* Eval FIRST and BODY sequentially; return value from FIRST.
405 The value of FIRST is saved during the evaluation of the remaining args,
406 whose values are discarded.
407 usage: (prog1 FIRST BODY...) */)
408 (Lisp_Object args)
409 {
410 Lisp_Object val;
411 register Lisp_Object args_left;
412 struct gcpro gcpro1, gcpro2;
413 register int argnum = 0;
414
415 if (NILP (args))
416 return Qnil;
417
418 args_left = args;
419 val = Qnil;
420 GCPRO2 (args, val);
421
422 do
423 {
424 if (!(argnum++))
425 val = Feval (Fcar (args_left));
426 else
427 Feval (Fcar (args_left));
428 args_left = Fcdr (args_left);
429 }
430 while (!NILP(args_left));
431
432 UNGCPRO;
433 return val;
434 }
435
436 DEFUN ("prog2", Fprog2, Sprog2, 2, UNEVALLED, 0,
437 doc: /* Eval FORM1, FORM2 and BODY sequentially; return value from FORM2.
438 The value of FORM2 is saved during the evaluation of the
439 remaining args, whose values are discarded.
440 usage: (prog2 FORM1 FORM2 BODY...) */)
441 (Lisp_Object args)
442 {
443 Lisp_Object val;
444 register Lisp_Object args_left;
445 struct gcpro gcpro1, gcpro2;
446 register int argnum = -1;
447
448 val = Qnil;
449
450 if (NILP (args))
451 return Qnil;
452
453 args_left = args;
454 val = Qnil;
455 GCPRO2 (args, val);
456
457 do
458 {
459 if (!(argnum++))
460 val = Feval (Fcar (args_left));
461 else
462 Feval (Fcar (args_left));
463 args_left = Fcdr (args_left);
464 }
465 while (!NILP (args_left));
466
467 UNGCPRO;
468 return val;
469 }
470
471 DEFUN ("setq", Fsetq, Ssetq, 0, UNEVALLED, 0,
472 doc: /* Set each SYM to the value of its VAL.
473 The symbols SYM are variables; they are literal (not evaluated).
474 The values VAL are expressions; they are evaluated.
475 Thus, (setq x (1+ y)) sets `x' to the value of `(1+ y)'.
476 The second VAL is not computed until after the first SYM is set, and so on;
477 each VAL can use the new value of variables set earlier in the `setq'.
478 The return value of the `setq' form is the value of the last VAL.
479 usage: (setq [SYM VAL]...) */)
480 (Lisp_Object args)
481 {
482 register Lisp_Object args_left;
483 register Lisp_Object val, sym;
484 struct gcpro gcpro1;
485
486 if (NILP (args))
487 return Qnil;
488
489 args_left = args;
490 GCPRO1 (args);
491
492 do
493 {
494 val = Feval (Fcar (Fcdr (args_left)));
495 sym = Fcar (args_left);
496 Fset (sym, val);
497 args_left = Fcdr (Fcdr (args_left));
498 }
499 while (!NILP(args_left));
500
501 UNGCPRO;
502 return val;
503 }
504
505 DEFUN ("quote", Fquote, Squote, 1, UNEVALLED, 0,
506 doc: /* Return the argument, without evaluating it. `(quote x)' yields `x'.
507 usage: (quote ARG) */)
508 (Lisp_Object args)
509 {
510 if (!NILP (Fcdr (args)))
511 xsignal2 (Qwrong_number_of_arguments, Qquote, Flength (args));
512 return Fcar (args);
513 }
514
515 DEFUN ("function", Ffunction, Sfunction, 1, UNEVALLED, 0,
516 doc: /* Like `quote', but preferred for objects which are functions.
517 In byte compilation, `function' causes its argument to be compiled.
518 `quote' cannot do that.
519 usage: (function ARG) */)
520 (Lisp_Object args)
521 {
522 if (!NILP (Fcdr (args)))
523 xsignal2 (Qwrong_number_of_arguments, Qfunction, Flength (args));
524 return Fcar (args);
525 }
526
527
528 DEFUN ("interactive-p", Finteractive_p, Sinteractive_p, 0, 0, 0,
529 doc: /* Return t if the containing function was run directly by user input.
530 This means that the function was called with `call-interactively'
531 \(which includes being called as the binding of a key)
532 and input is currently coming from the keyboard (not a keyboard macro),
533 and Emacs is not running in batch mode (`noninteractive' is nil).
534
535 The only known proper use of `interactive-p' is in deciding whether to
536 display a helpful message, or how to display it. If you're thinking
537 of using it for any other purpose, it is quite likely that you're
538 making a mistake. Think: what do you want to do when the command is
539 called from a keyboard macro?
540
541 To test whether your function was called with `call-interactively',
542 either (i) add an extra optional argument and give it an `interactive'
543 spec that specifies non-nil unconditionally (such as \"p\"); or (ii)
544 use `called-interactively-p'. */)
545 (void)
546 {
547 return (INTERACTIVE && interactive_p (1)) ? Qt : Qnil;
548 }
549
550
551 DEFUN ("called-interactively-p", Fcalled_interactively_p, Scalled_interactively_p, 0, 1, 0,
552 doc: /* Return t if the containing function was called by `call-interactively'.
553 If KIND is `interactive', then only return t if the call was made
554 interactively by the user, i.e. not in `noninteractive' mode nor
555 when `executing-kbd-macro'.
556 If KIND is `any', on the other hand, it will return t for any kind of
557 interactive call, including being called as the binding of a key, or
558 from a keyboard macro, or in `noninteractive' mode.
559
560 The only known proper use of `interactive' for KIND is in deciding
561 whether to display a helpful message, or how to display it. If you're
562 thinking of using it for any other purpose, it is quite likely that
563 you're making a mistake. Think: what do you want to do when the
564 command is called from a keyboard macro?
565
566 This function is meant for implementing advice and other
567 function-modifying features. Instead of using this, it is sometimes
568 cleaner to give your function an extra optional argument whose
569 `interactive' spec specifies non-nil unconditionally (\"p\" is a good
570 way to do this), or via (not (or executing-kbd-macro noninteractive)). */)
571 (Lisp_Object kind)
572 {
573 return ((INTERACTIVE || !EQ (kind, intern ("interactive")))
574 && interactive_p (1)) ? Qt : Qnil;
575 }
576
577
578 /* Return 1 if function in which this appears was called using
579 call-interactively.
580
581 EXCLUDE_SUBRS_P non-zero means always return 0 if the function
582 called is a built-in. */
583
584 int
585 interactive_p (int exclude_subrs_p)
586 {
587 struct backtrace *btp;
588 Lisp_Object fun;
589
590 btp = backtrace_list;
591
592 /* If this isn't a byte-compiled function, there may be a frame at
593 the top for Finteractive_p. If so, skip it. */
594 fun = Findirect_function (*btp->function, Qnil);
595 if (SUBRP (fun) && (XSUBR (fun) == &Sinteractive_p
596 || XSUBR (fun) == &Scalled_interactively_p))
597 btp = btp->next;
598
599 /* If we're running an Emacs 18-style byte-compiled function, there
600 may be a frame for Fbytecode at the top level. In any version of
601 Emacs there can be Fbytecode frames for subexpressions evaluated
602 inside catch and condition-case. Skip past them.
603
604 If this isn't a byte-compiled function, then we may now be
605 looking at several frames for special forms. Skip past them. */
606 while (btp
607 && (EQ (*btp->function, Qbytecode)
608 || btp->nargs == UNEVALLED))
609 btp = btp->next;
610
611 /* btp now points at the frame of the innermost function that isn't
612 a special form, ignoring frames for Finteractive_p and/or
613 Fbytecode at the top. If this frame is for a built-in function
614 (such as load or eval-region) return nil. */
615 fun = Findirect_function (*btp->function, Qnil);
616 if (exclude_subrs_p && SUBRP (fun))
617 return 0;
618
619 /* btp points to the frame of a Lisp function that called interactive-p.
620 Return t if that function was called interactively. */
621 if (btp && btp->next && EQ (*btp->next->function, Qcall_interactively))
622 return 1;
623 return 0;
624 }
625
626
627 DEFUN ("defun", Fdefun, Sdefun, 2, UNEVALLED, 0,
628 doc: /* Define NAME as a function.
629 The definition is (lambda ARGLIST [DOCSTRING] BODY...).
630 See also the function `interactive'.
631 usage: (defun NAME ARGLIST [DOCSTRING] BODY...) */)
632 (Lisp_Object args)
633 {
634 register Lisp_Object fn_name;
635 register Lisp_Object defn;
636
637 fn_name = Fcar (args);
638 CHECK_SYMBOL (fn_name);
639 defn = Fcons (Qlambda, Fcdr (args));
640 if (!NILP (Vpurify_flag))
641 defn = Fpurecopy (defn);
642 if (CONSP (XSYMBOL (fn_name)->function)
643 && EQ (XCAR (XSYMBOL (fn_name)->function), Qautoload))
644 LOADHIST_ATTACH (Fcons (Qt, fn_name));
645 Ffset (fn_name, defn);
646 LOADHIST_ATTACH (Fcons (Qdefun, fn_name));
647 return fn_name;
648 }
649
650 DEFUN ("defmacro", Fdefmacro, Sdefmacro, 2, UNEVALLED, 0,
651 doc: /* Define NAME as a macro.
652 The actual definition looks like
653 (macro lambda ARGLIST [DOCSTRING] [DECL] BODY...).
654 When the macro is called, as in (NAME ARGS...),
655 the function (lambda ARGLIST BODY...) is applied to
656 the list ARGS... as it appears in the expression,
657 and the result should be a form to be evaluated instead of the original.
658
659 DECL is a declaration, optional, which can specify how to indent
660 calls to this macro, how Edebug should handle it, and which argument
661 should be treated as documentation. It looks like this:
662 (declare SPECS...)
663 The elements can look like this:
664 (indent INDENT)
665 Set NAME's `lisp-indent-function' property to INDENT.
666
667 (debug DEBUG)
668 Set NAME's `edebug-form-spec' property to DEBUG. (This is
669 equivalent to writing a `def-edebug-spec' for the macro.)
670
671 (doc-string ELT)
672 Set NAME's `doc-string-elt' property to ELT.
673
674 usage: (defmacro NAME ARGLIST [DOCSTRING] [DECL] BODY...) */)
675 (Lisp_Object args)
676 {
677 register Lisp_Object fn_name;
678 register Lisp_Object defn;
679 Lisp_Object lambda_list, doc, tail;
680
681 fn_name = Fcar (args);
682 CHECK_SYMBOL (fn_name);
683 lambda_list = Fcar (Fcdr (args));
684 tail = Fcdr (Fcdr (args));
685
686 doc = Qnil;
687 if (STRINGP (Fcar (tail)))
688 {
689 doc = XCAR (tail);
690 tail = XCDR (tail);
691 }
692
693 if (CONSP (Fcar (tail))
694 && EQ (Fcar (Fcar (tail)), Qdeclare))
695 {
696 if (!NILP (Vmacro_declaration_function))
697 {
698 struct gcpro gcpro1;
699 GCPRO1 (args);
700 call2 (Vmacro_declaration_function, fn_name, Fcar (tail));
701 UNGCPRO;
702 }
703
704 tail = Fcdr (tail);
705 }
706
707 if (NILP (doc))
708 tail = Fcons (lambda_list, tail);
709 else
710 tail = Fcons (lambda_list, Fcons (doc, tail));
711 defn = Fcons (Qmacro, Fcons (Qlambda, tail));
712
713 if (!NILP (Vpurify_flag))
714 defn = Fpurecopy (defn);
715 if (CONSP (XSYMBOL (fn_name)->function)
716 && EQ (XCAR (XSYMBOL (fn_name)->function), Qautoload))
717 LOADHIST_ATTACH (Fcons (Qt, fn_name));
718 Ffset (fn_name, defn);
719 LOADHIST_ATTACH (Fcons (Qdefun, fn_name));
720 return fn_name;
721 }
722
723
724 DEFUN ("defvaralias", Fdefvaralias, Sdefvaralias, 2, 3, 0,
725 doc: /* Make NEW-ALIAS a variable alias for symbol BASE-VARIABLE.
726 Aliased variables always have the same value; setting one sets the other.
727 Third arg DOCSTRING, if non-nil, is documentation for NEW-ALIAS. If it is
728 omitted or nil, NEW-ALIAS gets the documentation string of BASE-VARIABLE,
729 or of the variable at the end of the chain of aliases, if BASE-VARIABLE is
730 itself an alias. If NEW-ALIAS is bound, and BASE-VARIABLE is not,
731 then the value of BASE-VARIABLE is set to that of NEW-ALIAS.
732 The return value is BASE-VARIABLE. */)
733 (Lisp_Object new_alias, Lisp_Object base_variable, Lisp_Object docstring)
734 {
735 struct Lisp_Symbol *sym;
736
737 CHECK_SYMBOL (new_alias);
738 CHECK_SYMBOL (base_variable);
739
740 sym = XSYMBOL (new_alias);
741
742 if (sym->constant)
743 /* Not sure why, but why not? */
744 error ("Cannot make a constant an alias");
745
746 switch (sym->redirect)
747 {
748 case SYMBOL_FORWARDED:
749 error ("Cannot make an internal variable an alias");
750 case SYMBOL_LOCALIZED:
751 error ("Don't know how to make a localized variable an alias");
752 }
753
754 /* http://lists.gnu.org/archive/html/emacs-devel/2008-04/msg00834.html
755 If n_a is bound, but b_v is not, set the value of b_v to n_a,
756 so that old-code that affects n_a before the aliasing is setup
757 still works. */
758 if (NILP (Fboundp (base_variable)))
759 set_internal (base_variable, find_symbol_value (new_alias), Qnil, 1);
760
761 {
762 struct specbinding *p;
763
764 for (p = specpdl_ptr - 1; p >= specpdl; p--)
765 if (p->func == NULL
766 && (EQ (new_alias,
767 CONSP (p->symbol) ? XCAR (p->symbol) : p->symbol)))
768 error ("Don't know how to make a let-bound variable an alias");
769 }
770
771 sym->redirect = SYMBOL_VARALIAS;
772 SET_SYMBOL_ALIAS (sym, XSYMBOL (base_variable));
773 sym->constant = SYMBOL_CONSTANT_P (base_variable);
774 LOADHIST_ATTACH (new_alias);
775 /* Even if docstring is nil: remove old docstring. */
776 Fput (new_alias, Qvariable_documentation, docstring);
777
778 return base_variable;
779 }
780
781
782 DEFUN ("defvar", Fdefvar, Sdefvar, 1, UNEVALLED, 0,
783 doc: /* Define SYMBOL as a variable, and return SYMBOL.
784 You are not required to define a variable in order to use it,
785 but the definition can supply documentation and an initial value
786 in a way that tags can recognize.
787
788 INITVALUE is evaluated, and used to set SYMBOL, only if SYMBOL's value is void.
789 If SYMBOL is buffer-local, its default value is what is set;
790 buffer-local values are not affected.
791 INITVALUE and DOCSTRING are optional.
792 If DOCSTRING starts with *, this variable is identified as a user option.
793 This means that M-x set-variable recognizes it.
794 See also `user-variable-p'.
795 If INITVALUE is missing, SYMBOL's value is not set.
796
797 If SYMBOL has a local binding, then this form affects the local
798 binding. This is usually not what you want. Thus, if you need to
799 load a file defining variables, with this form or with `defconst' or
800 `defcustom', you should always load that file _outside_ any bindings
801 for these variables. \(`defconst' and `defcustom' behave similarly in
802 this respect.)
803 usage: (defvar SYMBOL &optional INITVALUE DOCSTRING) */)
804 (Lisp_Object args)
805 {
806 register Lisp_Object sym, tem, tail;
807
808 sym = Fcar (args);
809 tail = Fcdr (args);
810 if (!NILP (Fcdr (Fcdr (tail))))
811 error ("Too many arguments");
812
813 tem = Fdefault_boundp (sym);
814 if (!NILP (tail))
815 {
816 if (SYMBOL_CONSTANT_P (sym))
817 {
818 /* For upward compatibility, allow (defvar :foo (quote :foo)). */
819 Lisp_Object tem = Fcar (tail);
820 if (! (CONSP (tem)
821 && EQ (XCAR (tem), Qquote)
822 && CONSP (XCDR (tem))
823 && EQ (XCAR (XCDR (tem)), sym)))
824 error ("Constant symbol `%s' specified in defvar",
825 SDATA (SYMBOL_NAME (sym)));
826 }
827
828 if (NILP (tem))
829 Fset_default (sym, Feval (Fcar (tail)));
830 else
831 { /* Check if there is really a global binding rather than just a let
832 binding that shadows the global unboundness of the var. */
833 volatile struct specbinding *pdl = specpdl_ptr;
834 while (--pdl >= specpdl)
835 {
836 if (EQ (pdl->symbol, sym) && !pdl->func
837 && EQ (pdl->old_value, Qunbound))
838 {
839 message_with_string ("Warning: defvar ignored because %s is let-bound",
840 SYMBOL_NAME (sym), 1);
841 break;
842 }
843 }
844 }
845 tail = Fcdr (tail);
846 tem = Fcar (tail);
847 if (!NILP (tem))
848 {
849 if (!NILP (Vpurify_flag))
850 tem = Fpurecopy (tem);
851 Fput (sym, Qvariable_documentation, tem);
852 }
853 LOADHIST_ATTACH (sym);
854 }
855 else
856 /* Simple (defvar <var>) should not count as a definition at all.
857 It could get in the way of other definitions, and unloading this
858 package could try to make the variable unbound. */
859 ;
860
861 return sym;
862 }
863
864 DEFUN ("defconst", Fdefconst, Sdefconst, 2, UNEVALLED, 0,
865 doc: /* Define SYMBOL as a constant variable.
866 The intent is that neither programs nor users should ever change this value.
867 Always sets the value of SYMBOL to the result of evalling INITVALUE.
868 If SYMBOL is buffer-local, its default value is what is set;
869 buffer-local values are not affected.
870 DOCSTRING is optional.
871
872 If SYMBOL has a local binding, then this form sets the local binding's
873 value. However, you should normally not make local bindings for
874 variables defined with this form.
875 usage: (defconst SYMBOL INITVALUE [DOCSTRING]) */)
876 (Lisp_Object args)
877 {
878 register Lisp_Object sym, tem;
879
880 sym = Fcar (args);
881 if (!NILP (Fcdr (Fcdr (Fcdr (args)))))
882 error ("Too many arguments");
883
884 tem = Feval (Fcar (Fcdr (args)));
885 if (!NILP (Vpurify_flag))
886 tem = Fpurecopy (tem);
887 Fset_default (sym, tem);
888 tem = Fcar (Fcdr (Fcdr (args)));
889 if (!NILP (tem))
890 {
891 if (!NILP (Vpurify_flag))
892 tem = Fpurecopy (tem);
893 Fput (sym, Qvariable_documentation, tem);
894 }
895 Fput (sym, Qrisky_local_variable, Qt);
896 LOADHIST_ATTACH (sym);
897 return sym;
898 }
899
900 /* Error handler used in Fuser_variable_p. */
901 static Lisp_Object
902 user_variable_p_eh (Lisp_Object ignore)
903 {
904 return Qnil;
905 }
906
907 static Lisp_Object
908 lisp_indirect_variable (Lisp_Object sym)
909 {
910 XSETSYMBOL (sym, indirect_variable (XSYMBOL (sym)));
911 return sym;
912 }
913
914 DEFUN ("user-variable-p", Fuser_variable_p, Suser_variable_p, 1, 1, 0,
915 doc: /* Return t if VARIABLE is intended to be set and modified by users.
916 \(The alternative is a variable used internally in a Lisp program.)
917 A variable is a user variable if
918 \(1) the first character of its documentation is `*', or
919 \(2) it is customizable (its property list contains a non-nil value
920 of `standard-value' or `custom-autoload'), or
921 \(3) it is an alias for another user variable.
922 Return nil if VARIABLE is an alias and there is a loop in the
923 chain of symbols. */)
924 (Lisp_Object variable)
925 {
926 Lisp_Object documentation;
927
928 if (!SYMBOLP (variable))
929 return Qnil;
930
931 /* If indirect and there's an alias loop, don't check anything else. */
932 if (XSYMBOL (variable)->redirect == SYMBOL_VARALIAS
933 && NILP (internal_condition_case_1 (lisp_indirect_variable, variable,
934 Qt, user_variable_p_eh)))
935 return Qnil;
936
937 while (1)
938 {
939 documentation = Fget (variable, Qvariable_documentation);
940 if (INTEGERP (documentation) && XINT (documentation) < 0)
941 return Qt;
942 if (STRINGP (documentation)
943 && ((unsigned char) SREF (documentation, 0) == '*'))
944 return Qt;
945 /* If it is (STRING . INTEGER), a negative integer means a user variable. */
946 if (CONSP (documentation)
947 && STRINGP (XCAR (documentation))
948 && INTEGERP (XCDR (documentation))
949 && XINT (XCDR (documentation)) < 0)
950 return Qt;
951 /* Customizable? See `custom-variable-p'. */
952 if ((!NILP (Fget (variable, intern ("standard-value"))))
953 || (!NILP (Fget (variable, intern ("custom-autoload")))))
954 return Qt;
955
956 if (!(XSYMBOL (variable)->redirect == SYMBOL_VARALIAS))
957 return Qnil;
958
959 /* An indirect variable? Let's follow the chain. */
960 XSETSYMBOL (variable, SYMBOL_ALIAS (XSYMBOL (variable)));
961 }
962 }
963 \f
964 DEFUN ("let*", FletX, SletX, 1, UNEVALLED, 0,
965 doc: /* Bind variables according to VARLIST then eval BODY.
966 The value of the last form in BODY is returned.
967 Each element of VARLIST is a symbol (which is bound to nil)
968 or a list (SYMBOL VALUEFORM) (which binds SYMBOL to the value of VALUEFORM).
969 Each VALUEFORM can refer to the symbols already bound by this VARLIST.
970 usage: (let* VARLIST BODY...) */)
971 (Lisp_Object args)
972 {
973 Lisp_Object varlist, val, elt;
974 int count = SPECPDL_INDEX ();
975 struct gcpro gcpro1, gcpro2, gcpro3;
976
977 GCPRO3 (args, elt, varlist);
978
979 varlist = Fcar (args);
980 while (!NILP (varlist))
981 {
982 QUIT;
983 elt = Fcar (varlist);
984 if (SYMBOLP (elt))
985 specbind (elt, Qnil);
986 else if (! NILP (Fcdr (Fcdr (elt))))
987 signal_error ("`let' bindings can have only one value-form", elt);
988 else
989 {
990 val = Feval (Fcar (Fcdr (elt)));
991 specbind (Fcar (elt), val);
992 }
993 varlist = Fcdr (varlist);
994 }
995 UNGCPRO;
996 val = Fprogn (Fcdr (args));
997 return unbind_to (count, val);
998 }
999
1000 DEFUN ("let", Flet, Slet, 1, UNEVALLED, 0,
1001 doc: /* Bind variables according to VARLIST then eval BODY.
1002 The value of the last form in BODY is returned.
1003 Each element of VARLIST is a symbol (which is bound to nil)
1004 or a list (SYMBOL VALUEFORM) (which binds SYMBOL to the value of VALUEFORM).
1005 All the VALUEFORMs are evalled before any symbols are bound.
1006 usage: (let VARLIST BODY...) */)
1007 (Lisp_Object args)
1008 {
1009 Lisp_Object *temps, tem;
1010 register Lisp_Object elt, varlist;
1011 int count = SPECPDL_INDEX ();
1012 register int argnum;
1013 struct gcpro gcpro1, gcpro2;
1014
1015 varlist = Fcar (args);
1016
1017 /* Make space to hold the values to give the bound variables */
1018 elt = Flength (varlist);
1019 temps = (Lisp_Object *) alloca (XFASTINT (elt) * sizeof (Lisp_Object));
1020
1021 /* Compute the values and store them in `temps' */
1022
1023 GCPRO2 (args, *temps);
1024 gcpro2.nvars = 0;
1025
1026 for (argnum = 0; CONSP (varlist); varlist = XCDR (varlist))
1027 {
1028 QUIT;
1029 elt = XCAR (varlist);
1030 if (SYMBOLP (elt))
1031 temps [argnum++] = Qnil;
1032 else if (! NILP (Fcdr (Fcdr (elt))))
1033 signal_error ("`let' bindings can have only one value-form", elt);
1034 else
1035 temps [argnum++] = Feval (Fcar (Fcdr (elt)));
1036 gcpro2.nvars = argnum;
1037 }
1038 UNGCPRO;
1039
1040 varlist = Fcar (args);
1041 for (argnum = 0; CONSP (varlist); varlist = XCDR (varlist))
1042 {
1043 elt = XCAR (varlist);
1044 tem = temps[argnum++];
1045 if (SYMBOLP (elt))
1046 specbind (elt, tem);
1047 else
1048 specbind (Fcar (elt), tem);
1049 }
1050
1051 elt = Fprogn (Fcdr (args));
1052 return unbind_to (count, elt);
1053 }
1054
1055 DEFUN ("while", Fwhile, Swhile, 1, UNEVALLED, 0,
1056 doc: /* If TEST yields non-nil, eval BODY... and repeat.
1057 The order of execution is thus TEST, BODY, TEST, BODY and so on
1058 until TEST returns nil.
1059 usage: (while TEST BODY...) */)
1060 (Lisp_Object args)
1061 {
1062 Lisp_Object test, body;
1063 struct gcpro gcpro1, gcpro2;
1064
1065 GCPRO2 (test, body);
1066
1067 test = Fcar (args);
1068 body = Fcdr (args);
1069 while (!NILP (Feval (test)))
1070 {
1071 QUIT;
1072 Fprogn (body);
1073 }
1074
1075 UNGCPRO;
1076 return Qnil;
1077 }
1078
1079 DEFUN ("macroexpand", Fmacroexpand, Smacroexpand, 1, 2, 0,
1080 doc: /* Return result of expanding macros at top level of FORM.
1081 If FORM is not a macro call, it is returned unchanged.
1082 Otherwise, the macro is expanded and the expansion is considered
1083 in place of FORM. When a non-macro-call results, it is returned.
1084
1085 The second optional arg ENVIRONMENT specifies an environment of macro
1086 definitions to shadow the loaded ones for use in file byte-compilation. */)
1087 (Lisp_Object form, Lisp_Object environment)
1088 {
1089 /* With cleanups from Hallvard Furuseth. */
1090 register Lisp_Object expander, sym, def, tem;
1091
1092 while (1)
1093 {
1094 /* Come back here each time we expand a macro call,
1095 in case it expands into another macro call. */
1096 if (!CONSP (form))
1097 break;
1098 /* Set SYM, give DEF and TEM right values in case SYM is not a symbol. */
1099 def = sym = XCAR (form);
1100 tem = Qnil;
1101 /* Trace symbols aliases to other symbols
1102 until we get a symbol that is not an alias. */
1103 while (SYMBOLP (def))
1104 {
1105 QUIT;
1106 sym = def;
1107 tem = Fassq (sym, environment);
1108 if (NILP (tem))
1109 {
1110 def = XSYMBOL (sym)->function;
1111 if (!EQ (def, Qunbound))
1112 continue;
1113 }
1114 break;
1115 }
1116 /* Right now TEM is the result from SYM in ENVIRONMENT,
1117 and if TEM is nil then DEF is SYM's function definition. */
1118 if (NILP (tem))
1119 {
1120 /* SYM is not mentioned in ENVIRONMENT.
1121 Look at its function definition. */
1122 if (EQ (def, Qunbound) || !CONSP (def))
1123 /* Not defined or definition not suitable */
1124 break;
1125 if (EQ (XCAR (def), Qautoload))
1126 {
1127 /* Autoloading function: will it be a macro when loaded? */
1128 tem = Fnth (make_number (4), def);
1129 if (EQ (tem, Qt) || EQ (tem, Qmacro))
1130 /* Yes, load it and try again. */
1131 {
1132 struct gcpro gcpro1;
1133 GCPRO1 (form);
1134 do_autoload (def, sym);
1135 UNGCPRO;
1136 continue;
1137 }
1138 else
1139 break;
1140 }
1141 else if (!EQ (XCAR (def), Qmacro))
1142 break;
1143 else expander = XCDR (def);
1144 }
1145 else
1146 {
1147 expander = XCDR (tem);
1148 if (NILP (expander))
1149 break;
1150 }
1151 form = apply1 (expander, XCDR (form));
1152 }
1153 return form;
1154 }
1155 \f
1156 DEFUN ("catch", Fcatch, Scatch, 1, UNEVALLED, 0,
1157 doc: /* Eval BODY allowing nonlocal exits using `throw'.
1158 TAG is evalled to get the tag to use; it must not be nil.
1159
1160 Then the BODY is executed.
1161 Within BODY, a call to `throw' with the same TAG exits BODY and this `catch'.
1162 If no throw happens, `catch' returns the value of the last BODY form.
1163 If a throw happens, it specifies the value to return from `catch'.
1164 usage: (catch TAG BODY...) */)
1165 (Lisp_Object args)
1166 {
1167 register Lisp_Object tag;
1168 struct gcpro gcpro1;
1169
1170 GCPRO1 (args);
1171 tag = Feval (Fcar (args));
1172 UNGCPRO;
1173 return internal_catch (tag, Fprogn, Fcdr (args));
1174 }
1175
1176 /* Set up a catch, then call C function FUNC on argument ARG.
1177 FUNC should return a Lisp_Object.
1178 This is how catches are done from within C code. */
1179
1180 Lisp_Object
1181 internal_catch (Lisp_Object tag, Lisp_Object (*func) (Lisp_Object), Lisp_Object arg)
1182 {
1183 /* This structure is made part of the chain `catchlist'. */
1184 struct catchtag c;
1185
1186 /* Fill in the components of c, and put it on the list. */
1187 c.next = catchlist;
1188 c.tag = tag;
1189 c.val = Qnil;
1190 c.backlist = backtrace_list;
1191 c.handlerlist = handlerlist;
1192 c.lisp_eval_depth = lisp_eval_depth;
1193 c.pdlcount = SPECPDL_INDEX ();
1194 c.poll_suppress_count = poll_suppress_count;
1195 c.interrupt_input_blocked = interrupt_input_blocked;
1196 c.gcpro = gcprolist;
1197 c.byte_stack = byte_stack_list;
1198 catchlist = &c;
1199
1200 /* Call FUNC. */
1201 if (! _setjmp (c.jmp))
1202 c.val = (*func) (arg);
1203
1204 /* Throw works by a longjmp that comes right here. */
1205 catchlist = c.next;
1206 return c.val;
1207 }
1208
1209 /* Unwind the specbind, catch, and handler stacks back to CATCH, and
1210 jump to that CATCH, returning VALUE as the value of that catch.
1211
1212 This is the guts Fthrow and Fsignal; they differ only in the way
1213 they choose the catch tag to throw to. A catch tag for a
1214 condition-case form has a TAG of Qnil.
1215
1216 Before each catch is discarded, unbind all special bindings and
1217 execute all unwind-protect clauses made above that catch. Unwind
1218 the handler stack as we go, so that the proper handlers are in
1219 effect for each unwind-protect clause we run. At the end, restore
1220 some static info saved in CATCH, and longjmp to the location
1221 specified in the
1222
1223 This is used for correct unwinding in Fthrow and Fsignal. */
1224
1225 static void
1226 unwind_to_catch (struct catchtag *catch, Lisp_Object value)
1227 {
1228 register int last_time;
1229
1230 /* Save the value in the tag. */
1231 catch->val = value;
1232
1233 /* Restore certain special C variables. */
1234 set_poll_suppress_count (catch->poll_suppress_count);
1235 UNBLOCK_INPUT_TO (catch->interrupt_input_blocked);
1236 handling_signal = 0;
1237 immediate_quit = 0;
1238
1239 do
1240 {
1241 last_time = catchlist == catch;
1242
1243 /* Unwind the specpdl stack, and then restore the proper set of
1244 handlers. */
1245 unbind_to (catchlist->pdlcount, Qnil);
1246 handlerlist = catchlist->handlerlist;
1247 catchlist = catchlist->next;
1248 }
1249 while (! last_time);
1250
1251 #if HAVE_X_WINDOWS
1252 /* If x_catch_errors was done, turn it off now.
1253 (First we give unbind_to a chance to do that.) */
1254 #if 0 /* This would disable x_catch_errors after x_connection_closed.
1255 The catch must remain in effect during that delicate
1256 state. --lorentey */
1257 x_fully_uncatch_errors ();
1258 #endif
1259 #endif
1260
1261 byte_stack_list = catch->byte_stack;
1262 gcprolist = catch->gcpro;
1263 #ifdef DEBUG_GCPRO
1264 if (gcprolist != 0)
1265 gcpro_level = gcprolist->level + 1;
1266 else
1267 gcpro_level = 0;
1268 #endif
1269 backtrace_list = catch->backlist;
1270 lisp_eval_depth = catch->lisp_eval_depth;
1271
1272 _longjmp (catch->jmp, 1);
1273 }
1274
1275 DEFUN ("throw", Fthrow, Sthrow, 2, 2, 0,
1276 doc: /* Throw to the catch for TAG and return VALUE from it.
1277 Both TAG and VALUE are evalled. */)
1278 (register Lisp_Object tag, Lisp_Object value)
1279 {
1280 register struct catchtag *c;
1281
1282 if (!NILP (tag))
1283 for (c = catchlist; c; c = c->next)
1284 {
1285 if (EQ (c->tag, tag))
1286 unwind_to_catch (c, value);
1287 }
1288 xsignal2 (Qno_catch, tag, value);
1289 }
1290
1291
1292 DEFUN ("unwind-protect", Funwind_protect, Sunwind_protect, 1, UNEVALLED, 0,
1293 doc: /* Do BODYFORM, protecting with UNWINDFORMS.
1294 If BODYFORM completes normally, its value is returned
1295 after executing the UNWINDFORMS.
1296 If BODYFORM exits nonlocally, the UNWINDFORMS are executed anyway.
1297 usage: (unwind-protect BODYFORM UNWINDFORMS...) */)
1298 (Lisp_Object args)
1299 {
1300 Lisp_Object val;
1301 int count = SPECPDL_INDEX ();
1302
1303 record_unwind_protect (Fprogn, Fcdr (args));
1304 val = Feval (Fcar (args));
1305 return unbind_to (count, val);
1306 }
1307 \f
1308 /* Chain of condition handlers currently in effect.
1309 The elements of this chain are contained in the stack frames
1310 of Fcondition_case and internal_condition_case.
1311 When an error is signaled (by calling Fsignal, below),
1312 this chain is searched for an element that applies. */
1313
1314 struct handler *handlerlist;
1315
1316 DEFUN ("condition-case", Fcondition_case, Scondition_case, 2, UNEVALLED, 0,
1317 doc: /* Regain control when an error is signaled.
1318 Executes BODYFORM and returns its value if no error happens.
1319 Each element of HANDLERS looks like (CONDITION-NAME BODY...)
1320 where the BODY is made of Lisp expressions.
1321
1322 A handler is applicable to an error
1323 if CONDITION-NAME is one of the error's condition names.
1324 If an error happens, the first applicable handler is run.
1325
1326 The car of a handler may be a list of condition names
1327 instead of a single condition name. Then it handles all of them.
1328
1329 When a handler handles an error, control returns to the `condition-case'
1330 and it executes the handler's BODY...
1331 with VAR bound to (ERROR-SYMBOL . SIGNAL-DATA) from the error.
1332 \(If VAR is nil, the handler can't access that information.)
1333 Then the value of the last BODY form is returned from the `condition-case'
1334 expression.
1335
1336 See also the function `signal' for more info.
1337 usage: (condition-case VAR BODYFORM &rest HANDLERS) */)
1338 (Lisp_Object args)
1339 {
1340 register Lisp_Object bodyform, handlers;
1341 volatile Lisp_Object var;
1342
1343 var = Fcar (args);
1344 bodyform = Fcar (Fcdr (args));
1345 handlers = Fcdr (Fcdr (args));
1346
1347 return internal_lisp_condition_case (var, bodyform, handlers);
1348 }
1349
1350 /* Like Fcondition_case, but the args are separate
1351 rather than passed in a list. Used by Fbyte_code. */
1352
1353 Lisp_Object
1354 internal_lisp_condition_case (volatile Lisp_Object var, Lisp_Object bodyform,
1355 Lisp_Object handlers)
1356 {
1357 Lisp_Object val;
1358 struct catchtag c;
1359 struct handler h;
1360
1361 CHECK_SYMBOL (var);
1362
1363 for (val = handlers; CONSP (val); val = XCDR (val))
1364 {
1365 Lisp_Object tem;
1366 tem = XCAR (val);
1367 if (! (NILP (tem)
1368 || (CONSP (tem)
1369 && (SYMBOLP (XCAR (tem))
1370 || CONSP (XCAR (tem))))))
1371 error ("Invalid condition handler", tem);
1372 }
1373
1374 c.tag = Qnil;
1375 c.val = Qnil;
1376 c.backlist = backtrace_list;
1377 c.handlerlist = handlerlist;
1378 c.lisp_eval_depth = lisp_eval_depth;
1379 c.pdlcount = SPECPDL_INDEX ();
1380 c.poll_suppress_count = poll_suppress_count;
1381 c.interrupt_input_blocked = interrupt_input_blocked;
1382 c.gcpro = gcprolist;
1383 c.byte_stack = byte_stack_list;
1384 if (_setjmp (c.jmp))
1385 {
1386 if (!NILP (h.var))
1387 specbind (h.var, c.val);
1388 val = Fprogn (Fcdr (h.chosen_clause));
1389
1390 /* Note that this just undoes the binding of h.var; whoever
1391 longjumped to us unwound the stack to c.pdlcount before
1392 throwing. */
1393 unbind_to (c.pdlcount, Qnil);
1394 return val;
1395 }
1396 c.next = catchlist;
1397 catchlist = &c;
1398
1399 h.var = var;
1400 h.handler = handlers;
1401 h.next = handlerlist;
1402 h.tag = &c;
1403 handlerlist = &h;
1404
1405 val = Feval (bodyform);
1406 catchlist = c.next;
1407 handlerlist = h.next;
1408 return val;
1409 }
1410
1411 /* Call the function BFUN with no arguments, catching errors within it
1412 according to HANDLERS. If there is an error, call HFUN with
1413 one argument which is the data that describes the error:
1414 (SIGNALNAME . DATA)
1415
1416 HANDLERS can be a list of conditions to catch.
1417 If HANDLERS is Qt, catch all errors.
1418 If HANDLERS is Qerror, catch all errors
1419 but allow the debugger to run if that is enabled. */
1420
1421 Lisp_Object
1422 internal_condition_case (Lisp_Object (*bfun) (void), Lisp_Object handlers,
1423 Lisp_Object (*hfun) (Lisp_Object))
1424 {
1425 Lisp_Object val;
1426 struct catchtag c;
1427 struct handler h;
1428
1429 /* Since Fsignal will close off all calls to x_catch_errors,
1430 we will get the wrong results if some are not closed now. */
1431 #if HAVE_X_WINDOWS
1432 if (x_catching_errors ())
1433 abort ();
1434 #endif
1435
1436 c.tag = Qnil;
1437 c.val = Qnil;
1438 c.backlist = backtrace_list;
1439 c.handlerlist = handlerlist;
1440 c.lisp_eval_depth = lisp_eval_depth;
1441 c.pdlcount = SPECPDL_INDEX ();
1442 c.poll_suppress_count = poll_suppress_count;
1443 c.interrupt_input_blocked = interrupt_input_blocked;
1444 c.gcpro = gcprolist;
1445 c.byte_stack = byte_stack_list;
1446 if (_setjmp (c.jmp))
1447 {
1448 return (*hfun) (c.val);
1449 }
1450 c.next = catchlist;
1451 catchlist = &c;
1452 h.handler = handlers;
1453 h.var = Qnil;
1454 h.next = handlerlist;
1455 h.tag = &c;
1456 handlerlist = &h;
1457
1458 val = (*bfun) ();
1459 catchlist = c.next;
1460 handlerlist = h.next;
1461 return val;
1462 }
1463
1464 /* Like internal_condition_case but call BFUN with ARG as its argument. */
1465
1466 Lisp_Object
1467 internal_condition_case_1 (Lisp_Object (*bfun) (Lisp_Object), Lisp_Object arg,
1468 Lisp_Object handlers, Lisp_Object (*hfun) (Lisp_Object))
1469 {
1470 Lisp_Object val;
1471 struct catchtag c;
1472 struct handler h;
1473
1474 /* Since Fsignal will close off all calls to x_catch_errors,
1475 we will get the wrong results if some are not closed now. */
1476 #if HAVE_X_WINDOWS
1477 if (x_catching_errors ())
1478 abort ();
1479 #endif
1480
1481 c.tag = Qnil;
1482 c.val = Qnil;
1483 c.backlist = backtrace_list;
1484 c.handlerlist = handlerlist;
1485 c.lisp_eval_depth = lisp_eval_depth;
1486 c.pdlcount = SPECPDL_INDEX ();
1487 c.poll_suppress_count = poll_suppress_count;
1488 c.interrupt_input_blocked = interrupt_input_blocked;
1489 c.gcpro = gcprolist;
1490 c.byte_stack = byte_stack_list;
1491 if (_setjmp (c.jmp))
1492 {
1493 return (*hfun) (c.val);
1494 }
1495 c.next = catchlist;
1496 catchlist = &c;
1497 h.handler = handlers;
1498 h.var = Qnil;
1499 h.next = handlerlist;
1500 h.tag = &c;
1501 handlerlist = &h;
1502
1503 val = (*bfun) (arg);
1504 catchlist = c.next;
1505 handlerlist = h.next;
1506 return val;
1507 }
1508
1509 /* Like internal_condition_case_1 but call BFUN with ARG1 and ARG2 as
1510 its arguments. */
1511
1512 Lisp_Object
1513 internal_condition_case_2 (Lisp_Object (*bfun) (Lisp_Object, Lisp_Object),
1514 Lisp_Object arg1,
1515 Lisp_Object arg2,
1516 Lisp_Object handlers,
1517 Lisp_Object (*hfun) (Lisp_Object))
1518 {
1519 Lisp_Object val;
1520 struct catchtag c;
1521 struct handler h;
1522
1523 /* Since Fsignal will close off all calls to x_catch_errors,
1524 we will get the wrong results if some are not closed now. */
1525 #if HAVE_X_WINDOWS
1526 if (x_catching_errors ())
1527 abort ();
1528 #endif
1529
1530 c.tag = Qnil;
1531 c.val = Qnil;
1532 c.backlist = backtrace_list;
1533 c.handlerlist = handlerlist;
1534 c.lisp_eval_depth = lisp_eval_depth;
1535 c.pdlcount = SPECPDL_INDEX ();
1536 c.poll_suppress_count = poll_suppress_count;
1537 c.interrupt_input_blocked = interrupt_input_blocked;
1538 c.gcpro = gcprolist;
1539 c.byte_stack = byte_stack_list;
1540 if (_setjmp (c.jmp))
1541 {
1542 return (*hfun) (c.val);
1543 }
1544 c.next = catchlist;
1545 catchlist = &c;
1546 h.handler = handlers;
1547 h.var = Qnil;
1548 h.next = handlerlist;
1549 h.tag = &c;
1550 handlerlist = &h;
1551
1552 val = (*bfun) (arg1, arg2);
1553 catchlist = c.next;
1554 handlerlist = h.next;
1555 return val;
1556 }
1557
1558 /* Like internal_condition_case but call BFUN with NARGS as first,
1559 and ARGS as second argument. */
1560
1561 Lisp_Object
1562 internal_condition_case_n (Lisp_Object (*bfun) (int, Lisp_Object*),
1563 int nargs,
1564 Lisp_Object *args,
1565 Lisp_Object handlers,
1566 Lisp_Object (*hfun) (Lisp_Object))
1567 {
1568 Lisp_Object val;
1569 struct catchtag c;
1570 struct handler h;
1571
1572 /* Since Fsignal will close off all calls to x_catch_errors,
1573 we will get the wrong results if some are not closed now. */
1574 #if HAVE_X_WINDOWS
1575 if (x_catching_errors ())
1576 abort ();
1577 #endif
1578
1579 c.tag = Qnil;
1580 c.val = Qnil;
1581 c.backlist = backtrace_list;
1582 c.handlerlist = handlerlist;
1583 c.lisp_eval_depth = lisp_eval_depth;
1584 c.pdlcount = SPECPDL_INDEX ();
1585 c.poll_suppress_count = poll_suppress_count;
1586 c.interrupt_input_blocked = interrupt_input_blocked;
1587 c.gcpro = gcprolist;
1588 c.byte_stack = byte_stack_list;
1589 if (_setjmp (c.jmp))
1590 {
1591 return (*hfun) (c.val);
1592 }
1593 c.next = catchlist;
1594 catchlist = &c;
1595 h.handler = handlers;
1596 h.var = Qnil;
1597 h.next = handlerlist;
1598 h.tag = &c;
1599 handlerlist = &h;
1600
1601 val = (*bfun) (nargs, args);
1602 catchlist = c.next;
1603 handlerlist = h.next;
1604 return val;
1605 }
1606
1607 \f
1608 static Lisp_Object find_handler_clause (Lisp_Object, Lisp_Object,
1609 Lisp_Object, Lisp_Object);
1610
1611 DEFUN ("signal", Fsignal, Ssignal, 2, 2, 0,
1612 doc: /* Signal an error. Args are ERROR-SYMBOL and associated DATA.
1613 This function does not return.
1614
1615 An error symbol is a symbol with an `error-conditions' property
1616 that is a list of condition names.
1617 A handler for any of those names will get to handle this signal.
1618 The symbol `error' should normally be one of them.
1619
1620 DATA should be a list. Its elements are printed as part of the error message.
1621 See Info anchor `(elisp)Definition of signal' for some details on how this
1622 error message is constructed.
1623 If the signal is handled, DATA is made available to the handler.
1624 See also the function `condition-case'. */)
1625 (Lisp_Object error_symbol, Lisp_Object data)
1626 {
1627 /* When memory is full, ERROR-SYMBOL is nil,
1628 and DATA is (REAL-ERROR-SYMBOL . REAL-DATA).
1629 That is a special case--don't do this in other situations. */
1630 register struct handler *allhandlers = handlerlist;
1631 Lisp_Object conditions;
1632 Lisp_Object string;
1633 Lisp_Object real_error_symbol;
1634 struct backtrace *bp;
1635
1636 immediate_quit = handling_signal = 0;
1637 abort_on_gc = 0;
1638 if (gc_in_progress || waiting_for_input)
1639 abort ();
1640
1641 if (NILP (error_symbol))
1642 real_error_symbol = Fcar (data);
1643 else
1644 real_error_symbol = error_symbol;
1645
1646 #if 0 /* rms: I don't know why this was here,
1647 but it is surely wrong for an error that is handled. */
1648 #ifdef HAVE_WINDOW_SYSTEM
1649 if (display_hourglass_p)
1650 cancel_hourglass ();
1651 #endif
1652 #endif
1653
1654 /* This hook is used by edebug. */
1655 if (! NILP (Vsignal_hook_function)
1656 && ! NILP (error_symbol))
1657 {
1658 /* Edebug takes care of restoring these variables when it exits. */
1659 if (lisp_eval_depth + 20 > max_lisp_eval_depth)
1660 max_lisp_eval_depth = lisp_eval_depth + 20;
1661
1662 if (SPECPDL_INDEX () + 40 > max_specpdl_size)
1663 max_specpdl_size = SPECPDL_INDEX () + 40;
1664
1665 call2 (Vsignal_hook_function, error_symbol, data);
1666 }
1667
1668 conditions = Fget (real_error_symbol, Qerror_conditions);
1669
1670 /* Remember from where signal was called. Skip over the frame for
1671 `signal' itself. If a frame for `error' follows, skip that,
1672 too. Don't do this when ERROR_SYMBOL is nil, because that
1673 is a memory-full error. */
1674 Vsignaling_function = Qnil;
1675 if (backtrace_list && !NILP (error_symbol))
1676 {
1677 bp = backtrace_list->next;
1678 if (bp && bp->function && EQ (*bp->function, Qerror))
1679 bp = bp->next;
1680 if (bp && bp->function)
1681 Vsignaling_function = *bp->function;
1682 }
1683
1684 for (; handlerlist; handlerlist = handlerlist->next)
1685 {
1686 register Lisp_Object clause;
1687
1688 clause = find_handler_clause (handlerlist->handler, conditions,
1689 error_symbol, data);
1690
1691 if (EQ (clause, Qlambda))
1692 {
1693 /* We can't return values to code which signaled an error, but we
1694 can continue code which has signaled a quit. */
1695 if (EQ (real_error_symbol, Qquit))
1696 return Qnil;
1697 else
1698 error ("Cannot return from the debugger in an error");
1699 }
1700
1701 if (!NILP (clause))
1702 {
1703 Lisp_Object unwind_data;
1704 struct handler *h = handlerlist;
1705
1706 handlerlist = allhandlers;
1707
1708 if (NILP (error_symbol))
1709 unwind_data = data;
1710 else
1711 unwind_data = Fcons (error_symbol, data);
1712 h->chosen_clause = clause;
1713 unwind_to_catch (h->tag, unwind_data);
1714 }
1715 }
1716
1717 handlerlist = allhandlers;
1718 /* If no handler is present now, try to run the debugger,
1719 and if that fails, throw to top level. */
1720 find_handler_clause (Qerror, conditions, error_symbol, data);
1721 if (catchlist != 0)
1722 Fthrow (Qtop_level, Qt);
1723
1724 if (! NILP (error_symbol))
1725 data = Fcons (error_symbol, data);
1726
1727 string = Ferror_message_string (data);
1728 fatal ("%s", SDATA (string), 0);
1729 }
1730
1731 /* Internal version of Fsignal that never returns.
1732 Used for anything but Qquit (which can return from Fsignal). */
1733
1734 void
1735 xsignal (Lisp_Object error_symbol, Lisp_Object data)
1736 {
1737 Fsignal (error_symbol, data);
1738 abort ();
1739 }
1740
1741 /* Like xsignal, but takes 0, 1, 2, or 3 args instead of a list. */
1742
1743 void
1744 xsignal0 (Lisp_Object error_symbol)
1745 {
1746 xsignal (error_symbol, Qnil);
1747 }
1748
1749 void
1750 xsignal1 (Lisp_Object error_symbol, Lisp_Object arg)
1751 {
1752 xsignal (error_symbol, list1 (arg));
1753 }
1754
1755 void
1756 xsignal2 (Lisp_Object error_symbol, Lisp_Object arg1, Lisp_Object arg2)
1757 {
1758 xsignal (error_symbol, list2 (arg1, arg2));
1759 }
1760
1761 void
1762 xsignal3 (Lisp_Object error_symbol, Lisp_Object arg1, Lisp_Object arg2, Lisp_Object arg3)
1763 {
1764 xsignal (error_symbol, list3 (arg1, arg2, arg3));
1765 }
1766
1767 /* Signal `error' with message S, and additional arg ARG.
1768 If ARG is not a genuine list, make it a one-element list. */
1769
1770 void
1771 signal_error (const char *s, Lisp_Object arg)
1772 {
1773 Lisp_Object tortoise, hare;
1774
1775 hare = tortoise = arg;
1776 while (CONSP (hare))
1777 {
1778 hare = XCDR (hare);
1779 if (!CONSP (hare))
1780 break;
1781
1782 hare = XCDR (hare);
1783 tortoise = XCDR (tortoise);
1784
1785 if (EQ (hare, tortoise))
1786 break;
1787 }
1788
1789 if (!NILP (hare))
1790 arg = Fcons (arg, Qnil); /* Make it a list. */
1791
1792 xsignal (Qerror, Fcons (build_string (s), arg));
1793 }
1794
1795
1796 /* Return nonzero if LIST is a non-nil atom or
1797 a list containing one of CONDITIONS. */
1798
1799 static int
1800 wants_debugger (Lisp_Object list, Lisp_Object conditions)
1801 {
1802 if (NILP (list))
1803 return 0;
1804 if (! CONSP (list))
1805 return 1;
1806
1807 while (CONSP (conditions))
1808 {
1809 Lisp_Object this, tail;
1810 this = XCAR (conditions);
1811 for (tail = list; CONSP (tail); tail = XCDR (tail))
1812 if (EQ (XCAR (tail), this))
1813 return 1;
1814 conditions = XCDR (conditions);
1815 }
1816 return 0;
1817 }
1818
1819 /* Return 1 if an error with condition-symbols CONDITIONS,
1820 and described by SIGNAL-DATA, should skip the debugger
1821 according to debugger-ignored-errors. */
1822
1823 static int
1824 skip_debugger (Lisp_Object conditions, Lisp_Object data)
1825 {
1826 Lisp_Object tail;
1827 int first_string = 1;
1828 Lisp_Object error_message;
1829
1830 error_message = Qnil;
1831 for (tail = Vdebug_ignored_errors; CONSP (tail); tail = XCDR (tail))
1832 {
1833 if (STRINGP (XCAR (tail)))
1834 {
1835 if (first_string)
1836 {
1837 error_message = Ferror_message_string (data);
1838 first_string = 0;
1839 }
1840
1841 if (fast_string_match (XCAR (tail), error_message) >= 0)
1842 return 1;
1843 }
1844 else
1845 {
1846 Lisp_Object contail;
1847
1848 for (contail = conditions; CONSP (contail); contail = XCDR (contail))
1849 if (EQ (XCAR (tail), XCAR (contail)))
1850 return 1;
1851 }
1852 }
1853
1854 return 0;
1855 }
1856
1857 /* Call the debugger if calling it is currently enabled for CONDITIONS.
1858 SIG and DATA describe the signal, as in find_handler_clause. */
1859
1860 static int
1861 maybe_call_debugger (Lisp_Object conditions, Lisp_Object sig, Lisp_Object data)
1862 {
1863 Lisp_Object combined_data;
1864
1865 combined_data = Fcons (sig, data);
1866
1867 if (
1868 /* Don't try to run the debugger with interrupts blocked.
1869 The editing loop would return anyway. */
1870 ! INPUT_BLOCKED_P
1871 /* Does user want to enter debugger for this kind of error? */
1872 && (EQ (sig, Qquit)
1873 ? debug_on_quit
1874 : wants_debugger (Vdebug_on_error, conditions))
1875 && ! skip_debugger (conditions, combined_data)
1876 /* rms: what's this for? */
1877 && when_entered_debugger < num_nonmacro_input_events)
1878 {
1879 call_debugger (Fcons (Qerror, Fcons (combined_data, Qnil)));
1880 return 1;
1881 }
1882
1883 return 0;
1884 }
1885
1886 /* Value of Qlambda means we have called debugger and user has continued.
1887 There are two ways to pass SIG and DATA:
1888 = SIG is the error symbol, and DATA is the rest of the data.
1889 = SIG is nil, and DATA is (SYMBOL . REST-OF-DATA).
1890 This is for memory-full errors only.
1891
1892 We need to increase max_specpdl_size temporarily around
1893 anything we do that can push on the specpdl, so as not to get
1894 a second error here in case we're handling specpdl overflow. */
1895
1896 static Lisp_Object
1897 find_handler_clause (Lisp_Object handlers, Lisp_Object conditions,
1898 Lisp_Object sig, Lisp_Object data)
1899 {
1900 register Lisp_Object h;
1901 register Lisp_Object tem;
1902 int debugger_called = 0;
1903 int debugger_considered = 0;
1904
1905 /* t is used by handlers for all conditions, set up by C code. */
1906 if (EQ (handlers, Qt))
1907 return Qt;
1908
1909 /* Don't run the debugger for a memory-full error.
1910 (There is no room in memory to do that!) */
1911 if (NILP (sig))
1912 debugger_considered = 1;
1913
1914 /* error is used similarly, but means print an error message
1915 and run the debugger if that is enabled. */
1916 if (EQ (handlers, Qerror)
1917 || !NILP (Vdebug_on_signal)) /* This says call debugger even if
1918 there is a handler. */
1919 {
1920 if (!NILP (sig) && wants_debugger (Vstack_trace_on_error, conditions))
1921 {
1922 max_lisp_eval_depth += 15;
1923 max_specpdl_size++;
1924 if (noninteractive)
1925 Fbacktrace ();
1926 else
1927 internal_with_output_to_temp_buffer
1928 ("*Backtrace*",
1929 (Lisp_Object (*) (Lisp_Object)) Fbacktrace,
1930 Qnil);
1931 max_specpdl_size--;
1932 max_lisp_eval_depth -= 15;
1933 }
1934
1935 if (!debugger_considered)
1936 {
1937 debugger_considered = 1;
1938 debugger_called = maybe_call_debugger (conditions, sig, data);
1939 }
1940
1941 /* If there is no handler, return saying whether we ran the debugger. */
1942 if (EQ (handlers, Qerror))
1943 {
1944 if (debugger_called)
1945 return Qlambda;
1946 return Qt;
1947 }
1948 }
1949
1950 for (h = handlers; CONSP (h); h = Fcdr (h))
1951 {
1952 Lisp_Object handler, condit;
1953
1954 handler = Fcar (h);
1955 if (!CONSP (handler))
1956 continue;
1957 condit = Fcar (handler);
1958 /* Handle a single condition name in handler HANDLER. */
1959 if (SYMBOLP (condit))
1960 {
1961 tem = Fmemq (Fcar (handler), conditions);
1962 if (!NILP (tem))
1963 return handler;
1964 }
1965 /* Handle a list of condition names in handler HANDLER. */
1966 else if (CONSP (condit))
1967 {
1968 Lisp_Object tail;
1969 for (tail = condit; CONSP (tail); tail = XCDR (tail))
1970 {
1971 tem = Fmemq (Fcar (tail), conditions);
1972 if (!NILP (tem))
1973 {
1974 /* This handler is going to apply.
1975 Does it allow the debugger to run first? */
1976 if (! debugger_considered && !NILP (Fmemq (Qdebug, condit)))
1977 maybe_call_debugger (conditions, sig, data);
1978 return handler;
1979 }
1980 }
1981 }
1982 }
1983
1984 return Qnil;
1985 }
1986
1987
1988 /* dump an error message; called like vprintf */
1989 void
1990 verror (const char *m, va_list ap)
1991 {
1992 char buf[200];
1993 int size = 200;
1994 int mlen;
1995 char *buffer = buf;
1996 char *args[3];
1997 int allocated = 0;
1998 Lisp_Object string;
1999
2000 mlen = strlen (m);
2001
2002 while (1)
2003 {
2004 int used;
2005 used = doprnt (buffer, size, m, m + mlen, ap);
2006 if (used < size)
2007 break;
2008 size *= 2;
2009 if (allocated)
2010 buffer = (char *) xrealloc (buffer, size);
2011 else
2012 {
2013 buffer = (char *) xmalloc (size);
2014 allocated = 1;
2015 }
2016 }
2017
2018 string = build_string (buffer);
2019 if (allocated)
2020 xfree (buffer);
2021
2022 xsignal1 (Qerror, string);
2023 }
2024
2025
2026 /* dump an error message; called like printf */
2027
2028 /* VARARGS 1 */
2029 void
2030 error (const char *m, ...)
2031 {
2032 va_list ap;
2033 va_start (ap, m);
2034 verror (m, ap);
2035 va_end (ap);
2036 }
2037 \f
2038 DEFUN ("commandp", Fcommandp, Scommandp, 1, 2, 0,
2039 doc: /* Non-nil if FUNCTION makes provisions for interactive calling.
2040 This means it contains a description for how to read arguments to give it.
2041 The value is nil for an invalid function or a symbol with no function
2042 definition.
2043
2044 Interactively callable functions include strings and vectors (treated
2045 as keyboard macros), lambda-expressions that contain a top-level call
2046 to `interactive', autoload definitions made by `autoload' with non-nil
2047 fourth argument, and some of the built-in functions of Lisp.
2048
2049 Also, a symbol satisfies `commandp' if its function definition does so.
2050
2051 If the optional argument FOR-CALL-INTERACTIVELY is non-nil,
2052 then strings and vectors are not accepted. */)
2053 (Lisp_Object function, Lisp_Object for_call_interactively)
2054 {
2055 register Lisp_Object fun;
2056 register Lisp_Object funcar;
2057 Lisp_Object if_prop = Qnil;
2058
2059 fun = function;
2060
2061 fun = indirect_function (fun); /* Check cycles. */
2062 if (NILP (fun) || EQ (fun, Qunbound))
2063 return Qnil;
2064
2065 /* Check an `interactive-form' property if present, analogous to the
2066 function-documentation property. */
2067 fun = function;
2068 while (SYMBOLP (fun))
2069 {
2070 Lisp_Object tmp = Fget (fun, Qinteractive_form);
2071 if (!NILP (tmp))
2072 if_prop = Qt;
2073 fun = Fsymbol_function (fun);
2074 }
2075
2076 /* Emacs primitives are interactive if their DEFUN specifies an
2077 interactive spec. */
2078 if (SUBRP (fun))
2079 return XSUBR (fun)->intspec ? Qt : if_prop;
2080
2081 /* Bytecode objects are interactive if they are long enough to
2082 have an element whose index is COMPILED_INTERACTIVE, which is
2083 where the interactive spec is stored. */
2084 else if (COMPILEDP (fun))
2085 return ((ASIZE (fun) & PSEUDOVECTOR_SIZE_MASK) > COMPILED_INTERACTIVE
2086 ? Qt : if_prop);
2087
2088 /* Strings and vectors are keyboard macros. */
2089 if (STRINGP (fun) || VECTORP (fun))
2090 return (NILP (for_call_interactively) ? Qt : Qnil);
2091
2092 /* Lists may represent commands. */
2093 if (!CONSP (fun))
2094 return Qnil;
2095 funcar = XCAR (fun);
2096 if (EQ (funcar, Qlambda))
2097 return !NILP (Fassq (Qinteractive, Fcdr (XCDR (fun)))) ? Qt : if_prop;
2098 if (EQ (funcar, Qautoload))
2099 return !NILP (Fcar (Fcdr (Fcdr (XCDR (fun))))) ? Qt : if_prop;
2100 else
2101 return Qnil;
2102 }
2103
2104 DEFUN ("autoload", Fautoload, Sautoload, 2, 5, 0,
2105 doc: /* Define FUNCTION to autoload from FILE.
2106 FUNCTION is a symbol; FILE is a file name string to pass to `load'.
2107 Third arg DOCSTRING is documentation for the function.
2108 Fourth arg INTERACTIVE if non-nil says function can be called interactively.
2109 Fifth arg TYPE indicates the type of the object:
2110 nil or omitted says FUNCTION is a function,
2111 `keymap' says FUNCTION is really a keymap, and
2112 `macro' or t says FUNCTION is really a macro.
2113 Third through fifth args give info about the real definition.
2114 They default to nil.
2115 If FUNCTION is already defined other than as an autoload,
2116 this does nothing and returns nil. */)
2117 (Lisp_Object function, Lisp_Object file, Lisp_Object docstring, Lisp_Object interactive, Lisp_Object type)
2118 {
2119 CHECK_SYMBOL (function);
2120 CHECK_STRING (file);
2121
2122 /* If function is defined and not as an autoload, don't override */
2123 if (!EQ (XSYMBOL (function)->function, Qunbound)
2124 && !(CONSP (XSYMBOL (function)->function)
2125 && EQ (XCAR (XSYMBOL (function)->function), Qautoload)))
2126 return Qnil;
2127
2128 if (NILP (Vpurify_flag))
2129 /* Only add entries after dumping, because the ones before are
2130 not useful and else we get loads of them from the loaddefs.el. */
2131 LOADHIST_ATTACH (Fcons (Qautoload, function));
2132 else
2133 /* We don't want the docstring in purespace (instead,
2134 Snarf-documentation should (hopefully) overwrite it).
2135 We used to use 0 here, but that leads to accidental sharing in
2136 purecopy's hash-consing, so we use a (hopefully) unique integer
2137 instead. */
2138 docstring = make_number (XHASH (function));
2139 return Ffset (function,
2140 Fpurecopy (list5 (Qautoload, file, docstring,
2141 interactive, type)));
2142 }
2143
2144 Lisp_Object
2145 un_autoload (Lisp_Object oldqueue)
2146 {
2147 register Lisp_Object queue, first, second;
2148
2149 /* Queue to unwind is current value of Vautoload_queue.
2150 oldqueue is the shadowed value to leave in Vautoload_queue. */
2151 queue = Vautoload_queue;
2152 Vautoload_queue = oldqueue;
2153 while (CONSP (queue))
2154 {
2155 first = XCAR (queue);
2156 second = Fcdr (first);
2157 first = Fcar (first);
2158 if (EQ (first, make_number (0)))
2159 Vfeatures = second;
2160 else
2161 Ffset (first, second);
2162 queue = XCDR (queue);
2163 }
2164 return Qnil;
2165 }
2166
2167 /* Load an autoloaded function.
2168 FUNNAME is the symbol which is the function's name.
2169 FUNDEF is the autoload definition (a list). */
2170
2171 void
2172 do_autoload (Lisp_Object fundef, Lisp_Object funname)
2173 {
2174 int count = SPECPDL_INDEX ();
2175 Lisp_Object fun;
2176 struct gcpro gcpro1, gcpro2, gcpro3;
2177
2178 /* This is to make sure that loadup.el gives a clear picture
2179 of what files are preloaded and when. */
2180 if (! NILP (Vpurify_flag))
2181 error ("Attempt to autoload %s while preparing to dump",
2182 SDATA (SYMBOL_NAME (funname)));
2183
2184 fun = funname;
2185 CHECK_SYMBOL (funname);
2186 GCPRO3 (fun, funname, fundef);
2187
2188 /* Preserve the match data. */
2189 record_unwind_save_match_data ();
2190
2191 /* If autoloading gets an error (which includes the error of failing
2192 to define the function being called), we use Vautoload_queue
2193 to undo function definitions and `provide' calls made by
2194 the function. We do this in the specific case of autoloading
2195 because autoloading is not an explicit request "load this file",
2196 but rather a request to "call this function".
2197
2198 The value saved here is to be restored into Vautoload_queue. */
2199 record_unwind_protect (un_autoload, Vautoload_queue);
2200 Vautoload_queue = Qt;
2201 Fload (Fcar (Fcdr (fundef)), Qnil, Qt, Qnil, Qt);
2202
2203 /* Once loading finishes, don't undo it. */
2204 Vautoload_queue = Qt;
2205 unbind_to (count, Qnil);
2206
2207 fun = Findirect_function (fun, Qnil);
2208
2209 if (!NILP (Fequal (fun, fundef)))
2210 error ("Autoloading failed to define function %s",
2211 SDATA (SYMBOL_NAME (funname)));
2212 UNGCPRO;
2213 }
2214
2215 \f
2216 DEFUN ("eval", Feval, Seval, 1, 1, 0,
2217 doc: /* Evaluate FORM and return its value. */)
2218 (Lisp_Object form)
2219 {
2220 Lisp_Object fun, val, original_fun, original_args;
2221 Lisp_Object funcar;
2222 struct backtrace backtrace;
2223 struct gcpro gcpro1, gcpro2, gcpro3;
2224
2225 if (handling_signal)
2226 abort ();
2227
2228 if (SYMBOLP (form))
2229 return Fsymbol_value (form);
2230 if (!CONSP (form))
2231 return form;
2232
2233 QUIT;
2234 if ((consing_since_gc > gc_cons_threshold
2235 && consing_since_gc > gc_relative_threshold)
2236 ||
2237 (!NILP (Vmemory_full) && consing_since_gc > memory_full_cons_threshold))
2238 {
2239 GCPRO1 (form);
2240 Fgarbage_collect ();
2241 UNGCPRO;
2242 }
2243
2244 if (++lisp_eval_depth > max_lisp_eval_depth)
2245 {
2246 if (max_lisp_eval_depth < 100)
2247 max_lisp_eval_depth = 100;
2248 if (lisp_eval_depth > max_lisp_eval_depth)
2249 error ("Lisp nesting exceeds `max-lisp-eval-depth'");
2250 }
2251
2252 original_fun = Fcar (form);
2253 original_args = Fcdr (form);
2254
2255 backtrace.next = backtrace_list;
2256 backtrace_list = &backtrace;
2257 backtrace.function = &original_fun; /* This also protects them from gc */
2258 backtrace.args = &original_args;
2259 backtrace.nargs = UNEVALLED;
2260 backtrace.evalargs = 1;
2261 backtrace.debug_on_exit = 0;
2262
2263 if (debug_on_next_call)
2264 do_debug_on_call (Qt);
2265
2266 /* At this point, only original_fun and original_args
2267 have values that will be used below */
2268 retry:
2269
2270 /* Optimize for no indirection. */
2271 fun = original_fun;
2272 if (SYMBOLP (fun) && !EQ (fun, Qunbound)
2273 && (fun = XSYMBOL (fun)->function, SYMBOLP (fun)))
2274 fun = indirect_function (fun);
2275
2276 if (SUBRP (fun))
2277 {
2278 Lisp_Object numargs;
2279 Lisp_Object argvals[8];
2280 Lisp_Object args_left;
2281 register int i, maxargs;
2282
2283 args_left = original_args;
2284 numargs = Flength (args_left);
2285
2286 CHECK_CONS_LIST ();
2287
2288 if (XINT (numargs) < XSUBR (fun)->min_args ||
2289 (XSUBR (fun)->max_args >= 0 && XSUBR (fun)->max_args < XINT (numargs)))
2290 xsignal2 (Qwrong_number_of_arguments, original_fun, numargs);
2291
2292 if (XSUBR (fun)->max_args == UNEVALLED)
2293 {
2294 backtrace.evalargs = 0;
2295 val = (XSUBR (fun)->function.aUNEVALLED) (args_left);
2296 goto done;
2297 }
2298
2299 if (XSUBR (fun)->max_args == MANY)
2300 {
2301 /* Pass a vector of evaluated arguments */
2302 Lisp_Object *vals;
2303 register int argnum = 0;
2304
2305 vals = (Lisp_Object *) alloca (XINT (numargs) * sizeof (Lisp_Object));
2306
2307 GCPRO3 (args_left, fun, fun);
2308 gcpro3.var = vals;
2309 gcpro3.nvars = 0;
2310
2311 while (!NILP (args_left))
2312 {
2313 vals[argnum++] = Feval (Fcar (args_left));
2314 args_left = Fcdr (args_left);
2315 gcpro3.nvars = argnum;
2316 }
2317
2318 backtrace.args = vals;
2319 backtrace.nargs = XINT (numargs);
2320
2321 val = (XSUBR (fun)->function.aMANY) (XINT (numargs), vals);
2322 UNGCPRO;
2323 goto done;
2324 }
2325
2326 GCPRO3 (args_left, fun, fun);
2327 gcpro3.var = argvals;
2328 gcpro3.nvars = 0;
2329
2330 maxargs = XSUBR (fun)->max_args;
2331 for (i = 0; i < maxargs; args_left = Fcdr (args_left))
2332 {
2333 argvals[i] = Feval (Fcar (args_left));
2334 gcpro3.nvars = ++i;
2335 }
2336
2337 UNGCPRO;
2338
2339 backtrace.args = argvals;
2340 backtrace.nargs = XINT (numargs);
2341
2342 switch (i)
2343 {
2344 case 0:
2345 val = (XSUBR (fun)->function.a0) ();
2346 goto done;
2347 case 1:
2348 val = (XSUBR (fun)->function.a1) (argvals[0]);
2349 goto done;
2350 case 2:
2351 val = (XSUBR (fun)->function.a2) (argvals[0], argvals[1]);
2352 goto done;
2353 case 3:
2354 val = (XSUBR (fun)->function.a3) (argvals[0], argvals[1],
2355 argvals[2]);
2356 goto done;
2357 case 4:
2358 val = (XSUBR (fun)->function.a4) (argvals[0], argvals[1],
2359 argvals[2], argvals[3]);
2360 goto done;
2361 case 5:
2362 val = (XSUBR (fun)->function.a5) (argvals[0], argvals[1], argvals[2],
2363 argvals[3], argvals[4]);
2364 goto done;
2365 case 6:
2366 val = (XSUBR (fun)->function.a6) (argvals[0], argvals[1], argvals[2],
2367 argvals[3], argvals[4], argvals[5]);
2368 goto done;
2369 case 7:
2370 val = (XSUBR (fun)->function.a7) (argvals[0], argvals[1], argvals[2],
2371 argvals[3], argvals[4], argvals[5],
2372 argvals[6]);
2373 goto done;
2374
2375 case 8:
2376 val = (XSUBR (fun)->function.a8) (argvals[0], argvals[1], argvals[2],
2377 argvals[3], argvals[4], argvals[5],
2378 argvals[6], argvals[7]);
2379 goto done;
2380
2381 default:
2382 /* Someone has created a subr that takes more arguments than
2383 is supported by this code. We need to either rewrite the
2384 subr to use a different argument protocol, or add more
2385 cases to this switch. */
2386 abort ();
2387 }
2388 }
2389 if (COMPILEDP (fun))
2390 val = apply_lambda (fun, original_args, 1);
2391 else
2392 {
2393 if (EQ (fun, Qunbound))
2394 xsignal1 (Qvoid_function, original_fun);
2395 if (!CONSP (fun))
2396 xsignal1 (Qinvalid_function, original_fun);
2397 funcar = XCAR (fun);
2398 if (!SYMBOLP (funcar))
2399 xsignal1 (Qinvalid_function, original_fun);
2400 if (EQ (funcar, Qautoload))
2401 {
2402 do_autoload (fun, original_fun);
2403 goto retry;
2404 }
2405 if (EQ (funcar, Qmacro))
2406 val = Feval (apply1 (Fcdr (fun), original_args));
2407 else if (EQ (funcar, Qlambda))
2408 val = apply_lambda (fun, original_args, 1);
2409 else
2410 xsignal1 (Qinvalid_function, original_fun);
2411 }
2412 done:
2413 CHECK_CONS_LIST ();
2414
2415 lisp_eval_depth--;
2416 if (backtrace.debug_on_exit)
2417 val = call_debugger (Fcons (Qexit, Fcons (val, Qnil)));
2418 backtrace_list = backtrace.next;
2419
2420 return val;
2421 }
2422 \f
2423 DEFUN ("apply", Fapply, Sapply, 2, MANY, 0,
2424 doc: /* Call FUNCTION with our remaining args, using our last arg as list of args.
2425 Then return the value FUNCTION returns.
2426 Thus, (apply '+ 1 2 '(3 4)) returns 10.
2427 usage: (apply FUNCTION &rest ARGUMENTS) */)
2428 (int nargs, Lisp_Object *args)
2429 {
2430 register int i, numargs;
2431 register Lisp_Object spread_arg;
2432 register Lisp_Object *funcall_args;
2433 Lisp_Object fun;
2434 struct gcpro gcpro1;
2435
2436 fun = args [0];
2437 funcall_args = 0;
2438 spread_arg = args [nargs - 1];
2439 CHECK_LIST (spread_arg);
2440
2441 numargs = XINT (Flength (spread_arg));
2442
2443 if (numargs == 0)
2444 return Ffuncall (nargs - 1, args);
2445 else if (numargs == 1)
2446 {
2447 args [nargs - 1] = XCAR (spread_arg);
2448 return Ffuncall (nargs, args);
2449 }
2450
2451 numargs += nargs - 2;
2452
2453 /* Optimize for no indirection. */
2454 if (SYMBOLP (fun) && !EQ (fun, Qunbound)
2455 && (fun = XSYMBOL (fun)->function, SYMBOLP (fun)))
2456 fun = indirect_function (fun);
2457 if (EQ (fun, Qunbound))
2458 {
2459 /* Let funcall get the error */
2460 fun = args[0];
2461 goto funcall;
2462 }
2463
2464 if (SUBRP (fun))
2465 {
2466 if (numargs < XSUBR (fun)->min_args
2467 || (XSUBR (fun)->max_args >= 0 && XSUBR (fun)->max_args < numargs))
2468 goto funcall; /* Let funcall get the error */
2469 else if (XSUBR (fun)->max_args > numargs)
2470 {
2471 /* Avoid making funcall cons up a yet another new vector of arguments
2472 by explicitly supplying nil's for optional values */
2473 funcall_args = (Lisp_Object *) alloca ((1 + XSUBR (fun)->max_args)
2474 * sizeof (Lisp_Object));
2475 for (i = numargs; i < XSUBR (fun)->max_args;)
2476 funcall_args[++i] = Qnil;
2477 GCPRO1 (*funcall_args);
2478 gcpro1.nvars = 1 + XSUBR (fun)->max_args;
2479 }
2480 }
2481 funcall:
2482 /* We add 1 to numargs because funcall_args includes the
2483 function itself as well as its arguments. */
2484 if (!funcall_args)
2485 {
2486 funcall_args = (Lisp_Object *) alloca ((1 + numargs)
2487 * sizeof (Lisp_Object));
2488 GCPRO1 (*funcall_args);
2489 gcpro1.nvars = 1 + numargs;
2490 }
2491
2492 memcpy (funcall_args, args, nargs * sizeof (Lisp_Object));
2493 /* Spread the last arg we got. Its first element goes in
2494 the slot that it used to occupy, hence this value of I. */
2495 i = nargs - 1;
2496 while (!NILP (spread_arg))
2497 {
2498 funcall_args [i++] = XCAR (spread_arg);
2499 spread_arg = XCDR (spread_arg);
2500 }
2501
2502 /* By convention, the caller needs to gcpro Ffuncall's args. */
2503 RETURN_UNGCPRO (Ffuncall (gcpro1.nvars, funcall_args));
2504 }
2505 \f
2506 /* Run hook variables in various ways. */
2507
2508 enum run_hooks_condition {to_completion, until_success, until_failure};
2509 static Lisp_Object run_hook_with_args (int, Lisp_Object *,
2510 enum run_hooks_condition);
2511
2512 DEFUN ("run-hooks", Frun_hooks, Srun_hooks, 0, MANY, 0,
2513 doc: /* Run each hook in HOOKS.
2514 Each argument should be a symbol, a hook variable.
2515 These symbols are processed in the order specified.
2516 If a hook symbol has a non-nil value, that value may be a function
2517 or a list of functions to be called to run the hook.
2518 If the value is a function, it is called with no arguments.
2519 If it is a list, the elements are called, in order, with no arguments.
2520
2521 Major modes should not use this function directly to run their mode
2522 hook; they should use `run-mode-hooks' instead.
2523
2524 Do not use `make-local-variable' to make a hook variable buffer-local.
2525 Instead, use `add-hook' and specify t for the LOCAL argument.
2526 usage: (run-hooks &rest HOOKS) */)
2527 (int nargs, Lisp_Object *args)
2528 {
2529 Lisp_Object hook[1];
2530 register int i;
2531
2532 for (i = 0; i < nargs; i++)
2533 {
2534 hook[0] = args[i];
2535 run_hook_with_args (1, hook, to_completion);
2536 }
2537
2538 return Qnil;
2539 }
2540
2541 DEFUN ("run-hook-with-args", Frun_hook_with_args,
2542 Srun_hook_with_args, 1, MANY, 0,
2543 doc: /* Run HOOK with the specified arguments ARGS.
2544 HOOK should be a symbol, a hook variable. If HOOK has a non-nil
2545 value, that value may be a function or a list of functions to be
2546 called to run the hook. If the value is a function, it is called with
2547 the given arguments and its return value is returned. If it is a list
2548 of functions, those functions are called, in order,
2549 with the given arguments ARGS.
2550 It is best not to depend on the value returned by `run-hook-with-args',
2551 as that may change.
2552
2553 Do not use `make-local-variable' to make a hook variable buffer-local.
2554 Instead, use `add-hook' and specify t for the LOCAL argument.
2555 usage: (run-hook-with-args HOOK &rest ARGS) */)
2556 (int nargs, Lisp_Object *args)
2557 {
2558 return run_hook_with_args (nargs, args, to_completion);
2559 }
2560
2561 DEFUN ("run-hook-with-args-until-success", Frun_hook_with_args_until_success,
2562 Srun_hook_with_args_until_success, 1, MANY, 0,
2563 doc: /* Run HOOK with the specified arguments ARGS.
2564 HOOK should be a symbol, a hook variable. If HOOK has a non-nil
2565 value, that value may be a function or a list of functions to be
2566 called to run the hook. If the value is a function, it is called with
2567 the given arguments and its return value is returned.
2568 If it is a list of functions, those functions are called, in order,
2569 with the given arguments ARGS, until one of them
2570 returns a non-nil value. Then we return that value.
2571 However, if they all return nil, we return nil.
2572
2573 Do not use `make-local-variable' to make a hook variable buffer-local.
2574 Instead, use `add-hook' and specify t for the LOCAL argument.
2575 usage: (run-hook-with-args-until-success HOOK &rest ARGS) */)
2576 (int nargs, Lisp_Object *args)
2577 {
2578 return run_hook_with_args (nargs, args, until_success);
2579 }
2580
2581 DEFUN ("run-hook-with-args-until-failure", Frun_hook_with_args_until_failure,
2582 Srun_hook_with_args_until_failure, 1, MANY, 0,
2583 doc: /* Run HOOK with the specified arguments ARGS.
2584 HOOK should be a symbol, a hook variable. If HOOK has a non-nil
2585 value, that value may be a function or a list of functions to be
2586 called to run the hook. If the value is a function, it is called with
2587 the given arguments and its return value is returned.
2588 If it is a list of functions, those functions are called, in order,
2589 with the given arguments ARGS, until one of them returns nil.
2590 Then we return nil. However, if they all return non-nil, we return non-nil.
2591
2592 Do not use `make-local-variable' to make a hook variable buffer-local.
2593 Instead, use `add-hook' and specify t for the LOCAL argument.
2594 usage: (run-hook-with-args-until-failure HOOK &rest ARGS) */)
2595 (int nargs, Lisp_Object *args)
2596 {
2597 return run_hook_with_args (nargs, args, until_failure);
2598 }
2599
2600 /* ARGS[0] should be a hook symbol.
2601 Call each of the functions in the hook value, passing each of them
2602 as arguments all the rest of ARGS (all NARGS - 1 elements).
2603 COND specifies a condition to test after each call
2604 to decide whether to stop.
2605 The caller (or its caller, etc) must gcpro all of ARGS,
2606 except that it isn't necessary to gcpro ARGS[0]. */
2607
2608 static Lisp_Object
2609 run_hook_with_args (int nargs, Lisp_Object *args, enum run_hooks_condition cond)
2610 {
2611 Lisp_Object sym, val, ret;
2612 struct gcpro gcpro1, gcpro2, gcpro3;
2613
2614 /* If we are dying or still initializing,
2615 don't do anything--it would probably crash if we tried. */
2616 if (NILP (Vrun_hooks))
2617 return Qnil;
2618
2619 sym = args[0];
2620 val = find_symbol_value (sym);
2621 ret = (cond == until_failure ? Qt : Qnil);
2622
2623 if (EQ (val, Qunbound) || NILP (val))
2624 return ret;
2625 else if (!CONSP (val) || EQ (XCAR (val), Qlambda))
2626 {
2627 args[0] = val;
2628 return Ffuncall (nargs, args);
2629 }
2630 else
2631 {
2632 Lisp_Object globals = Qnil;
2633 GCPRO3 (sym, val, globals);
2634
2635 for (;
2636 CONSP (val) && ((cond == to_completion)
2637 || (cond == until_success ? NILP (ret)
2638 : !NILP (ret)));
2639 val = XCDR (val))
2640 {
2641 if (EQ (XCAR (val), Qt))
2642 {
2643 /* t indicates this hook has a local binding;
2644 it means to run the global binding too. */
2645 globals = Fdefault_value (sym);
2646 if (NILP (globals)) continue;
2647
2648 if (!CONSP (globals) || EQ (XCAR (globals), Qlambda))
2649 {
2650 args[0] = globals;
2651 ret = Ffuncall (nargs, args);
2652 }
2653 else
2654 {
2655 for (;
2656 CONSP (globals) && ((cond == to_completion)
2657 || (cond == until_success ? NILP (ret)
2658 : !NILP (ret)));
2659 globals = XCDR (globals))
2660 {
2661 args[0] = XCAR (globals);
2662 /* In a global value, t should not occur. If it does, we
2663 must ignore it to avoid an endless loop. */
2664 if (!EQ (args[0], Qt))
2665 ret = Ffuncall (nargs, args);
2666 }
2667 }
2668 }
2669 else
2670 {
2671 args[0] = XCAR (val);
2672 ret = Ffuncall (nargs, args);
2673 }
2674 }
2675
2676 UNGCPRO;
2677 return ret;
2678 }
2679 }
2680
2681 /* Run a hook symbol ARGS[0], but use FUNLIST instead of the actual
2682 present value of that symbol.
2683 Call each element of FUNLIST,
2684 passing each of them the rest of ARGS.
2685 The caller (or its caller, etc) must gcpro all of ARGS,
2686 except that it isn't necessary to gcpro ARGS[0]. */
2687
2688 Lisp_Object
2689 run_hook_list_with_args (Lisp_Object funlist, int nargs, Lisp_Object *args)
2690 {
2691 Lisp_Object sym;
2692 Lisp_Object val;
2693 Lisp_Object globals;
2694 struct gcpro gcpro1, gcpro2, gcpro3;
2695
2696 sym = args[0];
2697 globals = Qnil;
2698 GCPRO3 (sym, val, globals);
2699
2700 for (val = funlist; CONSP (val); val = XCDR (val))
2701 {
2702 if (EQ (XCAR (val), Qt))
2703 {
2704 /* t indicates this hook has a local binding;
2705 it means to run the global binding too. */
2706
2707 for (globals = Fdefault_value (sym);
2708 CONSP (globals);
2709 globals = XCDR (globals))
2710 {
2711 args[0] = XCAR (globals);
2712 /* In a global value, t should not occur. If it does, we
2713 must ignore it to avoid an endless loop. */
2714 if (!EQ (args[0], Qt))
2715 Ffuncall (nargs, args);
2716 }
2717 }
2718 else
2719 {
2720 args[0] = XCAR (val);
2721 Ffuncall (nargs, args);
2722 }
2723 }
2724 UNGCPRO;
2725 return Qnil;
2726 }
2727
2728 /* Run the hook HOOK, giving each function the two args ARG1 and ARG2. */
2729
2730 void
2731 run_hook_with_args_2 (Lisp_Object hook, Lisp_Object arg1, Lisp_Object arg2)
2732 {
2733 Lisp_Object temp[3];
2734 temp[0] = hook;
2735 temp[1] = arg1;
2736 temp[2] = arg2;
2737
2738 Frun_hook_with_args (3, temp);
2739 }
2740 \f
2741 /* Apply fn to arg */
2742 Lisp_Object
2743 apply1 (Lisp_Object fn, Lisp_Object arg)
2744 {
2745 struct gcpro gcpro1;
2746
2747 GCPRO1 (fn);
2748 if (NILP (arg))
2749 RETURN_UNGCPRO (Ffuncall (1, &fn));
2750 gcpro1.nvars = 2;
2751 {
2752 Lisp_Object args[2];
2753 args[0] = fn;
2754 args[1] = arg;
2755 gcpro1.var = args;
2756 RETURN_UNGCPRO (Fapply (2, args));
2757 }
2758 }
2759
2760 /* Call function fn on no arguments */
2761 Lisp_Object
2762 call0 (Lisp_Object fn)
2763 {
2764 struct gcpro gcpro1;
2765
2766 GCPRO1 (fn);
2767 RETURN_UNGCPRO (Ffuncall (1, &fn));
2768 }
2769
2770 /* Call function fn with 1 argument arg1 */
2771 /* ARGSUSED */
2772 Lisp_Object
2773 call1 (Lisp_Object fn, Lisp_Object arg1)
2774 {
2775 struct gcpro gcpro1;
2776 Lisp_Object args[2];
2777
2778 args[0] = fn;
2779 args[1] = arg1;
2780 GCPRO1 (args[0]);
2781 gcpro1.nvars = 2;
2782 RETURN_UNGCPRO (Ffuncall (2, args));
2783 }
2784
2785 /* Call function fn with 2 arguments arg1, arg2 */
2786 /* ARGSUSED */
2787 Lisp_Object
2788 call2 (Lisp_Object fn, Lisp_Object arg1, Lisp_Object arg2)
2789 {
2790 struct gcpro gcpro1;
2791 Lisp_Object args[3];
2792 args[0] = fn;
2793 args[1] = arg1;
2794 args[2] = arg2;
2795 GCPRO1 (args[0]);
2796 gcpro1.nvars = 3;
2797 RETURN_UNGCPRO (Ffuncall (3, args));
2798 }
2799
2800 /* Call function fn with 3 arguments arg1, arg2, arg3 */
2801 /* ARGSUSED */
2802 Lisp_Object
2803 call3 (Lisp_Object fn, Lisp_Object arg1, Lisp_Object arg2, Lisp_Object arg3)
2804 {
2805 struct gcpro gcpro1;
2806 Lisp_Object args[4];
2807 args[0] = fn;
2808 args[1] = arg1;
2809 args[2] = arg2;
2810 args[3] = arg3;
2811 GCPRO1 (args[0]);
2812 gcpro1.nvars = 4;
2813 RETURN_UNGCPRO (Ffuncall (4, args));
2814 }
2815
2816 /* Call function fn with 4 arguments arg1, arg2, arg3, arg4 */
2817 /* ARGSUSED */
2818 Lisp_Object
2819 call4 (Lisp_Object fn, Lisp_Object arg1, Lisp_Object arg2, Lisp_Object arg3,
2820 Lisp_Object arg4)
2821 {
2822 struct gcpro gcpro1;
2823 Lisp_Object args[5];
2824 args[0] = fn;
2825 args[1] = arg1;
2826 args[2] = arg2;
2827 args[3] = arg3;
2828 args[4] = arg4;
2829 GCPRO1 (args[0]);
2830 gcpro1.nvars = 5;
2831 RETURN_UNGCPRO (Ffuncall (5, args));
2832 }
2833
2834 /* Call function fn with 5 arguments arg1, arg2, arg3, arg4, arg5 */
2835 /* ARGSUSED */
2836 Lisp_Object
2837 call5 (Lisp_Object fn, Lisp_Object arg1, Lisp_Object arg2, Lisp_Object arg3,
2838 Lisp_Object arg4, Lisp_Object arg5)
2839 {
2840 struct gcpro gcpro1;
2841 Lisp_Object args[6];
2842 args[0] = fn;
2843 args[1] = arg1;
2844 args[2] = arg2;
2845 args[3] = arg3;
2846 args[4] = arg4;
2847 args[5] = arg5;
2848 GCPRO1 (args[0]);
2849 gcpro1.nvars = 6;
2850 RETURN_UNGCPRO (Ffuncall (6, args));
2851 }
2852
2853 /* Call function fn with 6 arguments arg1, arg2, arg3, arg4, arg5, arg6 */
2854 /* ARGSUSED */
2855 Lisp_Object
2856 call6 (Lisp_Object fn, Lisp_Object arg1, Lisp_Object arg2, Lisp_Object arg3,
2857 Lisp_Object arg4, Lisp_Object arg5, Lisp_Object arg6)
2858 {
2859 struct gcpro gcpro1;
2860 Lisp_Object args[7];
2861 args[0] = fn;
2862 args[1] = arg1;
2863 args[2] = arg2;
2864 args[3] = arg3;
2865 args[4] = arg4;
2866 args[5] = arg5;
2867 args[6] = arg6;
2868 GCPRO1 (args[0]);
2869 gcpro1.nvars = 7;
2870 RETURN_UNGCPRO (Ffuncall (7, args));
2871 }
2872
2873 /* Call function fn with 7 arguments arg1, arg2, arg3, arg4, arg5, arg6, arg7 */
2874 /* ARGSUSED */
2875 Lisp_Object
2876 call7 (Lisp_Object fn, Lisp_Object arg1, Lisp_Object arg2, Lisp_Object arg3,
2877 Lisp_Object arg4, Lisp_Object arg5, Lisp_Object arg6, Lisp_Object arg7)
2878 {
2879 struct gcpro gcpro1;
2880 Lisp_Object args[8];
2881 args[0] = fn;
2882 args[1] = arg1;
2883 args[2] = arg2;
2884 args[3] = arg3;
2885 args[4] = arg4;
2886 args[5] = arg5;
2887 args[6] = arg6;
2888 args[7] = arg7;
2889 GCPRO1 (args[0]);
2890 gcpro1.nvars = 8;
2891 RETURN_UNGCPRO (Ffuncall (8, args));
2892 }
2893
2894 /* The caller should GCPRO all the elements of ARGS. */
2895
2896 DEFUN ("funcall", Ffuncall, Sfuncall, 1, MANY, 0,
2897 doc: /* Call first argument as a function, passing remaining arguments to it.
2898 Return the value that function returns.
2899 Thus, (funcall 'cons 'x 'y) returns (x . y).
2900 usage: (funcall FUNCTION &rest ARGUMENTS) */)
2901 (int nargs, Lisp_Object *args)
2902 {
2903 Lisp_Object fun, original_fun;
2904 Lisp_Object funcar;
2905 int numargs = nargs - 1;
2906 Lisp_Object lisp_numargs;
2907 Lisp_Object val;
2908 struct backtrace backtrace;
2909 register Lisp_Object *internal_args;
2910 register int i;
2911
2912 QUIT;
2913 if ((consing_since_gc > gc_cons_threshold
2914 && consing_since_gc > gc_relative_threshold)
2915 ||
2916 (!NILP (Vmemory_full) && consing_since_gc > memory_full_cons_threshold))
2917 Fgarbage_collect ();
2918
2919 if (++lisp_eval_depth > max_lisp_eval_depth)
2920 {
2921 if (max_lisp_eval_depth < 100)
2922 max_lisp_eval_depth = 100;
2923 if (lisp_eval_depth > max_lisp_eval_depth)
2924 error ("Lisp nesting exceeds `max-lisp-eval-depth'");
2925 }
2926
2927 backtrace.next = backtrace_list;
2928 backtrace_list = &backtrace;
2929 backtrace.function = &args[0];
2930 backtrace.args = &args[1];
2931 backtrace.nargs = nargs - 1;
2932 backtrace.evalargs = 0;
2933 backtrace.debug_on_exit = 0;
2934
2935 if (debug_on_next_call)
2936 do_debug_on_call (Qlambda);
2937
2938 CHECK_CONS_LIST ();
2939
2940 original_fun = args[0];
2941
2942 retry:
2943
2944 /* Optimize for no indirection. */
2945 fun = original_fun;
2946 if (SYMBOLP (fun) && !EQ (fun, Qunbound)
2947 && (fun = XSYMBOL (fun)->function, SYMBOLP (fun)))
2948 fun = indirect_function (fun);
2949
2950 if (SUBRP (fun))
2951 {
2952 if (numargs < XSUBR (fun)->min_args
2953 || (XSUBR (fun)->max_args >= 0 && XSUBR (fun)->max_args < numargs))
2954 {
2955 XSETFASTINT (lisp_numargs, numargs);
2956 xsignal2 (Qwrong_number_of_arguments, original_fun, lisp_numargs);
2957 }
2958
2959 if (XSUBR (fun)->max_args == UNEVALLED)
2960 xsignal1 (Qinvalid_function, original_fun);
2961
2962 if (XSUBR (fun)->max_args == MANY)
2963 {
2964 val = (XSUBR (fun)->function.aMANY) (numargs, args + 1);
2965 goto done;
2966 }
2967
2968 if (XSUBR (fun)->max_args > numargs)
2969 {
2970 internal_args = (Lisp_Object *) alloca (XSUBR (fun)->max_args * sizeof (Lisp_Object));
2971 memcpy (internal_args, args + 1, numargs * sizeof (Lisp_Object));
2972 for (i = numargs; i < XSUBR (fun)->max_args; i++)
2973 internal_args[i] = Qnil;
2974 }
2975 else
2976 internal_args = args + 1;
2977 switch (XSUBR (fun)->max_args)
2978 {
2979 case 0:
2980 val = (XSUBR (fun)->function.a0) ();
2981 goto done;
2982 case 1:
2983 val = (XSUBR (fun)->function.a1) (internal_args[0]);
2984 goto done;
2985 case 2:
2986 val = (XSUBR (fun)->function.a2) (internal_args[0], internal_args[1]);
2987 goto done;
2988 case 3:
2989 val = (XSUBR (fun)->function.a3) (internal_args[0], internal_args[1],
2990 internal_args[2]);
2991 goto done;
2992 case 4:
2993 val = (XSUBR (fun)->function.a4) (internal_args[0], internal_args[1],
2994 internal_args[2], internal_args[3]);
2995 goto done;
2996 case 5:
2997 val = (XSUBR (fun)->function.a5) (internal_args[0], internal_args[1],
2998 internal_args[2], internal_args[3],
2999 internal_args[4]);
3000 goto done;
3001 case 6:
3002 val = (XSUBR (fun)->function.a6) (internal_args[0], internal_args[1],
3003 internal_args[2], internal_args[3],
3004 internal_args[4], internal_args[5]);
3005 goto done;
3006 case 7:
3007 val = (XSUBR (fun)->function.a7) (internal_args[0], internal_args[1],
3008 internal_args[2], internal_args[3],
3009 internal_args[4], internal_args[5],
3010 internal_args[6]);
3011 goto done;
3012
3013 case 8:
3014 val = (XSUBR (fun)->function.a8) (internal_args[0], internal_args[1],
3015 internal_args[2], internal_args[3],
3016 internal_args[4], internal_args[5],
3017 internal_args[6], internal_args[7]);
3018 goto done;
3019
3020 default:
3021
3022 /* If a subr takes more than 8 arguments without using MANY
3023 or UNEVALLED, we need to extend this function to support it.
3024 Until this is done, there is no way to call the function. */
3025 abort ();
3026 }
3027 }
3028 if (COMPILEDP (fun))
3029 val = funcall_lambda (fun, numargs, args + 1);
3030 else
3031 {
3032 if (EQ (fun, Qunbound))
3033 xsignal1 (Qvoid_function, original_fun);
3034 if (!CONSP (fun))
3035 xsignal1 (Qinvalid_function, original_fun);
3036 funcar = XCAR (fun);
3037 if (!SYMBOLP (funcar))
3038 xsignal1 (Qinvalid_function, original_fun);
3039 if (EQ (funcar, Qlambda))
3040 val = funcall_lambda (fun, numargs, args + 1);
3041 else if (EQ (funcar, Qautoload))
3042 {
3043 do_autoload (fun, original_fun);
3044 CHECK_CONS_LIST ();
3045 goto retry;
3046 }
3047 else
3048 xsignal1 (Qinvalid_function, original_fun);
3049 }
3050 done:
3051 CHECK_CONS_LIST ();
3052 lisp_eval_depth--;
3053 if (backtrace.debug_on_exit)
3054 val = call_debugger (Fcons (Qexit, Fcons (val, Qnil)));
3055 backtrace_list = backtrace.next;
3056 return val;
3057 }
3058 \f
3059 Lisp_Object
3060 apply_lambda (Lisp_Object fun, Lisp_Object args, int eval_flag)
3061 {
3062 Lisp_Object args_left;
3063 Lisp_Object numargs;
3064 register Lisp_Object *arg_vector;
3065 struct gcpro gcpro1, gcpro2, gcpro3;
3066 register int i;
3067 register Lisp_Object tem;
3068
3069 numargs = Flength (args);
3070 arg_vector = (Lisp_Object *) alloca (XINT (numargs) * sizeof (Lisp_Object));
3071 args_left = args;
3072
3073 GCPRO3 (*arg_vector, args_left, fun);
3074 gcpro1.nvars = 0;
3075
3076 for (i = 0; i < XINT (numargs);)
3077 {
3078 tem = Fcar (args_left), args_left = Fcdr (args_left);
3079 if (eval_flag) tem = Feval (tem);
3080 arg_vector[i++] = tem;
3081 gcpro1.nvars = i;
3082 }
3083
3084 UNGCPRO;
3085
3086 if (eval_flag)
3087 {
3088 backtrace_list->args = arg_vector;
3089 backtrace_list->nargs = i;
3090 }
3091 backtrace_list->evalargs = 0;
3092 tem = funcall_lambda (fun, XINT (numargs), arg_vector);
3093
3094 /* Do the debug-on-exit now, while arg_vector still exists. */
3095 if (backtrace_list->debug_on_exit)
3096 tem = call_debugger (Fcons (Qexit, Fcons (tem, Qnil)));
3097 /* Don't do it again when we return to eval. */
3098 backtrace_list->debug_on_exit = 0;
3099 return tem;
3100 }
3101
3102 /* Apply a Lisp function FUN to the NARGS evaluated arguments in ARG_VECTOR
3103 and return the result of evaluation.
3104 FUN must be either a lambda-expression or a compiled-code object. */
3105
3106 static Lisp_Object
3107 funcall_lambda (Lisp_Object fun, int nargs, register Lisp_Object *arg_vector)
3108 {
3109 Lisp_Object val, syms_left, next;
3110 int count = SPECPDL_INDEX ();
3111 int i, optional, rest;
3112
3113 if (CONSP (fun))
3114 {
3115 syms_left = XCDR (fun);
3116 if (CONSP (syms_left))
3117 syms_left = XCAR (syms_left);
3118 else
3119 xsignal1 (Qinvalid_function, fun);
3120 }
3121 else if (COMPILEDP (fun))
3122 syms_left = AREF (fun, COMPILED_ARGLIST);
3123 else
3124 abort ();
3125
3126 i = optional = rest = 0;
3127 for (; CONSP (syms_left); syms_left = XCDR (syms_left))
3128 {
3129 QUIT;
3130
3131 next = XCAR (syms_left);
3132 if (!SYMBOLP (next))
3133 xsignal1 (Qinvalid_function, fun);
3134
3135 if (EQ (next, Qand_rest))
3136 rest = 1;
3137 else if (EQ (next, Qand_optional))
3138 optional = 1;
3139 else if (rest)
3140 {
3141 specbind (next, Flist (nargs - i, &arg_vector[i]));
3142 i = nargs;
3143 }
3144 else if (i < nargs)
3145 specbind (next, arg_vector[i++]);
3146 else if (!optional)
3147 xsignal2 (Qwrong_number_of_arguments, fun, make_number (nargs));
3148 else
3149 specbind (next, Qnil);
3150 }
3151
3152 if (!NILP (syms_left))
3153 xsignal1 (Qinvalid_function, fun);
3154 else if (i < nargs)
3155 xsignal2 (Qwrong_number_of_arguments, fun, make_number (nargs));
3156
3157 if (CONSP (fun))
3158 val = Fprogn (XCDR (XCDR (fun)));
3159 else
3160 {
3161 /* If we have not actually read the bytecode string
3162 and constants vector yet, fetch them from the file. */
3163 if (CONSP (AREF (fun, COMPILED_BYTECODE)))
3164 Ffetch_bytecode (fun);
3165 val = Fbyte_code (AREF (fun, COMPILED_BYTECODE),
3166 AREF (fun, COMPILED_CONSTANTS),
3167 AREF (fun, COMPILED_STACK_DEPTH));
3168 }
3169
3170 return unbind_to (count, val);
3171 }
3172
3173 DEFUN ("fetch-bytecode", Ffetch_bytecode, Sfetch_bytecode,
3174 1, 1, 0,
3175 doc: /* If byte-compiled OBJECT is lazy-loaded, fetch it now. */)
3176 (Lisp_Object object)
3177 {
3178 Lisp_Object tem;
3179
3180 if (COMPILEDP (object) && CONSP (AREF (object, COMPILED_BYTECODE)))
3181 {
3182 tem = read_doc_string (AREF (object, COMPILED_BYTECODE));
3183 if (!CONSP (tem))
3184 {
3185 tem = AREF (object, COMPILED_BYTECODE);
3186 if (CONSP (tem) && STRINGP (XCAR (tem)))
3187 error ("Invalid byte code in %s", SDATA (XCAR (tem)));
3188 else
3189 error ("Invalid byte code");
3190 }
3191 ASET (object, COMPILED_BYTECODE, XCAR (tem));
3192 ASET (object, COMPILED_CONSTANTS, XCDR (tem));
3193 }
3194 return object;
3195 }
3196 \f
3197 void
3198 grow_specpdl (void)
3199 {
3200 register int count = SPECPDL_INDEX ();
3201 if (specpdl_size >= max_specpdl_size)
3202 {
3203 if (max_specpdl_size < 400)
3204 max_specpdl_size = 400;
3205 if (specpdl_size >= max_specpdl_size)
3206 signal_error ("Variable binding depth exceeds max-specpdl-size", Qnil);
3207 }
3208 specpdl_size *= 2;
3209 if (specpdl_size > max_specpdl_size)
3210 specpdl_size = max_specpdl_size;
3211 specpdl = (struct specbinding *) xrealloc (specpdl, specpdl_size * sizeof (struct specbinding));
3212 specpdl_ptr = specpdl + count;
3213 }
3214
3215 /* specpdl_ptr->symbol is a field which describes which variable is
3216 let-bound, so it can be properly undone when we unbind_to.
3217 It can have the following two shapes:
3218 - SYMBOL : if it's a plain symbol, it means that we have let-bound
3219 a symbol that is not buffer-local (at least at the time
3220 the let binding started). Note also that it should not be
3221 aliased (i.e. when let-binding V1 that's aliased to V2, we want
3222 to record V2 here).
3223 - (SYMBOL WHERE . BUFFER) : this means that it is a let-binding for
3224 variable SYMBOL which can be buffer-local. WHERE tells us
3225 which buffer is affected (or nil if the let-binding affects the
3226 global value of the variable) and BUFFER tells us which buffer was
3227 current (i.e. if WHERE is non-nil, then BUFFER==WHERE, otherwise
3228 BUFFER did not yet have a buffer-local value). */
3229
3230 void
3231 specbind (Lisp_Object symbol, Lisp_Object value)
3232 {
3233 struct Lisp_Symbol *sym;
3234
3235 eassert (!handling_signal);
3236
3237 CHECK_SYMBOL (symbol);
3238 sym = XSYMBOL (symbol);
3239 if (specpdl_ptr == specpdl + specpdl_size)
3240 grow_specpdl ();
3241
3242 start:
3243 switch (sym->redirect)
3244 {
3245 case SYMBOL_VARALIAS:
3246 sym = indirect_variable (sym); XSETSYMBOL (symbol, sym); goto start;
3247 case SYMBOL_PLAINVAL:
3248 /* The most common case is that of a non-constant symbol with a
3249 trivial value. Make that as fast as we can. */
3250 specpdl_ptr->symbol = symbol;
3251 specpdl_ptr->old_value = SYMBOL_VAL (sym);
3252 specpdl_ptr->func = NULL;
3253 ++specpdl_ptr;
3254 if (!sym->constant)
3255 SET_SYMBOL_VAL (sym, value);
3256 else
3257 set_internal (symbol, value, Qnil, 1);
3258 break;
3259 case SYMBOL_LOCALIZED:
3260 if (SYMBOL_BLV (sym)->frame_local)
3261 error ("Frame-local vars cannot be let-bound");
3262 case SYMBOL_FORWARDED:
3263 {
3264 Lisp_Object ovalue = find_symbol_value (symbol);
3265 specpdl_ptr->func = 0;
3266 specpdl_ptr->old_value = ovalue;
3267
3268 eassert (sym->redirect != SYMBOL_LOCALIZED
3269 || (EQ (SYMBOL_BLV (sym)->where,
3270 SYMBOL_BLV (sym)->frame_local ?
3271 Fselected_frame () : Fcurrent_buffer ())));
3272
3273 if (sym->redirect == SYMBOL_LOCALIZED
3274 || BUFFER_OBJFWDP (SYMBOL_FWD (sym)))
3275 {
3276 Lisp_Object where, cur_buf = Fcurrent_buffer ();
3277
3278 /* For a local variable, record both the symbol and which
3279 buffer's or frame's value we are saving. */
3280 if (!NILP (Flocal_variable_p (symbol, Qnil)))
3281 {
3282 eassert (sym->redirect != SYMBOL_LOCALIZED
3283 || (BLV_FOUND (SYMBOL_BLV (sym))
3284 && EQ (cur_buf, SYMBOL_BLV (sym)->where)));
3285 where = cur_buf;
3286 }
3287 else if (sym->redirect == SYMBOL_LOCALIZED
3288 && BLV_FOUND (SYMBOL_BLV (sym)))
3289 where = SYMBOL_BLV (sym)->where;
3290 else
3291 where = Qnil;
3292
3293 /* We're not using the `unused' slot in the specbinding
3294 structure because this would mean we have to do more
3295 work for simple variables. */
3296 /* FIXME: The third value `current_buffer' is only used in
3297 let_shadows_buffer_binding_p which is itself only used
3298 in set_internal for local_if_set. */
3299 eassert (NILP (where) || EQ (where, cur_buf));
3300 specpdl_ptr->symbol = Fcons (symbol, Fcons (where, cur_buf));
3301
3302 /* If SYMBOL is a per-buffer variable which doesn't have a
3303 buffer-local value here, make the `let' change the global
3304 value by changing the value of SYMBOL in all buffers not
3305 having their own value. This is consistent with what
3306 happens with other buffer-local variables. */
3307 if (NILP (where)
3308 && sym->redirect == SYMBOL_FORWARDED)
3309 {
3310 eassert (BUFFER_OBJFWDP (SYMBOL_FWD (sym)));
3311 ++specpdl_ptr;
3312 Fset_default (symbol, value);
3313 return;
3314 }
3315 }
3316 else
3317 specpdl_ptr->symbol = symbol;
3318
3319 specpdl_ptr++;
3320 set_internal (symbol, value, Qnil, 1);
3321 break;
3322 }
3323 default: abort ();
3324 }
3325 }
3326
3327 void
3328 record_unwind_protect (Lisp_Object (*function) (Lisp_Object), Lisp_Object arg)
3329 {
3330 eassert (!handling_signal);
3331
3332 if (specpdl_ptr == specpdl + specpdl_size)
3333 grow_specpdl ();
3334 specpdl_ptr->func = function;
3335 specpdl_ptr->symbol = Qnil;
3336 specpdl_ptr->old_value = arg;
3337 specpdl_ptr++;
3338 }
3339
3340 Lisp_Object
3341 unbind_to (int count, Lisp_Object value)
3342 {
3343 Lisp_Object quitf = Vquit_flag;
3344 struct gcpro gcpro1, gcpro2;
3345
3346 GCPRO2 (value, quitf);
3347 Vquit_flag = Qnil;
3348
3349 while (specpdl_ptr != specpdl + count)
3350 {
3351 /* Copy the binding, and decrement specpdl_ptr, before we do
3352 the work to unbind it. We decrement first
3353 so that an error in unbinding won't try to unbind
3354 the same entry again, and we copy the binding first
3355 in case more bindings are made during some of the code we run. */
3356
3357 struct specbinding this_binding;
3358 this_binding = *--specpdl_ptr;
3359
3360 if (this_binding.func != 0)
3361 (*this_binding.func) (this_binding.old_value);
3362 /* If the symbol is a list, it is really (SYMBOL WHERE
3363 . CURRENT-BUFFER) where WHERE is either nil, a buffer, or a
3364 frame. If WHERE is a buffer or frame, this indicates we
3365 bound a variable that had a buffer-local or frame-local
3366 binding. WHERE nil means that the variable had the default
3367 value when it was bound. CURRENT-BUFFER is the buffer that
3368 was current when the variable was bound. */
3369 else if (CONSP (this_binding.symbol))
3370 {
3371 Lisp_Object symbol, where;
3372
3373 symbol = XCAR (this_binding.symbol);
3374 where = XCAR (XCDR (this_binding.symbol));
3375
3376 if (NILP (where))
3377 Fset_default (symbol, this_binding.old_value);
3378 /* If `where' is non-nil, reset the value in the appropriate
3379 local binding, but only if that binding still exists. */
3380 else if (BUFFERP (where)
3381 ? !NILP (Flocal_variable_p (symbol, where))
3382 : !NILP (Fassq (symbol, XFRAME (where)->param_alist)))
3383 set_internal (symbol, this_binding.old_value, where, 1);
3384 }
3385 /* If variable has a trivial value (no forwarding), we can
3386 just set it. No need to check for constant symbols here,
3387 since that was already done by specbind. */
3388 else if (XSYMBOL (this_binding.symbol)->redirect == SYMBOL_PLAINVAL)
3389 SET_SYMBOL_VAL (XSYMBOL (this_binding.symbol),
3390 this_binding.old_value);
3391 else
3392 /* NOTE: we only ever come here if make_local_foo was used for
3393 the first time on this var within this let. */
3394 Fset_default (this_binding.symbol, this_binding.old_value);
3395 }
3396
3397 if (NILP (Vquit_flag) && !NILP (quitf))
3398 Vquit_flag = quitf;
3399
3400 UNGCPRO;
3401 return value;
3402 }
3403 \f
3404 DEFUN ("backtrace-debug", Fbacktrace_debug, Sbacktrace_debug, 2, 2, 0,
3405 doc: /* Set the debug-on-exit flag of eval frame LEVEL levels down to FLAG.
3406 The debugger is entered when that frame exits, if the flag is non-nil. */)
3407 (Lisp_Object level, Lisp_Object flag)
3408 {
3409 register struct backtrace *backlist = backtrace_list;
3410 register int i;
3411
3412 CHECK_NUMBER (level);
3413
3414 for (i = 0; backlist && i < XINT (level); i++)
3415 {
3416 backlist = backlist->next;
3417 }
3418
3419 if (backlist)
3420 backlist->debug_on_exit = !NILP (flag);
3421
3422 return flag;
3423 }
3424
3425 DEFUN ("backtrace", Fbacktrace, Sbacktrace, 0, 0, "",
3426 doc: /* Print a trace of Lisp function calls currently active.
3427 Output stream used is value of `standard-output'. */)
3428 (void)
3429 {
3430 register struct backtrace *backlist = backtrace_list;
3431 register int i;
3432 Lisp_Object tail;
3433 Lisp_Object tem;
3434 struct gcpro gcpro1;
3435
3436 XSETFASTINT (Vprint_level, 3);
3437
3438 tail = Qnil;
3439 GCPRO1 (tail);
3440
3441 while (backlist)
3442 {
3443 write_string (backlist->debug_on_exit ? "* " : " ", 2);
3444 if (backlist->nargs == UNEVALLED)
3445 {
3446 Fprin1 (Fcons (*backlist->function, *backlist->args), Qnil);
3447 write_string ("\n", -1);
3448 }
3449 else
3450 {
3451 tem = *backlist->function;
3452 Fprin1 (tem, Qnil); /* This can QUIT */
3453 write_string ("(", -1);
3454 if (backlist->nargs == MANY)
3455 {
3456 for (tail = *backlist->args, i = 0;
3457 !NILP (tail);
3458 tail = Fcdr (tail), i++)
3459 {
3460 if (i) write_string (" ", -1);
3461 Fprin1 (Fcar (tail), Qnil);
3462 }
3463 }
3464 else
3465 {
3466 for (i = 0; i < backlist->nargs; i++)
3467 {
3468 if (i) write_string (" ", -1);
3469 Fprin1 (backlist->args[i], Qnil);
3470 }
3471 }
3472 write_string (")\n", -1);
3473 }
3474 backlist = backlist->next;
3475 }
3476
3477 Vprint_level = Qnil;
3478 UNGCPRO;
3479 return Qnil;
3480 }
3481
3482 DEFUN ("backtrace-frame", Fbacktrace_frame, Sbacktrace_frame, 1, 1, NULL,
3483 doc: /* Return the function and arguments NFRAMES up from current execution point.
3484 If that frame has not evaluated the arguments yet (or is a special form),
3485 the value is (nil FUNCTION ARG-FORMS...).
3486 If that frame has evaluated its arguments and called its function already,
3487 the value is (t FUNCTION ARG-VALUES...).
3488 A &rest arg is represented as the tail of the list ARG-VALUES.
3489 FUNCTION is whatever was supplied as car of evaluated list,
3490 or a lambda expression for macro calls.
3491 If NFRAMES is more than the number of frames, the value is nil. */)
3492 (Lisp_Object nframes)
3493 {
3494 register struct backtrace *backlist = backtrace_list;
3495 register int i;
3496 Lisp_Object tem;
3497
3498 CHECK_NATNUM (nframes);
3499
3500 /* Find the frame requested. */
3501 for (i = 0; backlist && i < XFASTINT (nframes); i++)
3502 backlist = backlist->next;
3503
3504 if (!backlist)
3505 return Qnil;
3506 if (backlist->nargs == UNEVALLED)
3507 return Fcons (Qnil, Fcons (*backlist->function, *backlist->args));
3508 else
3509 {
3510 if (backlist->nargs == MANY)
3511 tem = *backlist->args;
3512 else
3513 tem = Flist (backlist->nargs, backlist->args);
3514
3515 return Fcons (Qt, Fcons (*backlist->function, tem));
3516 }
3517 }
3518
3519 \f
3520 void
3521 mark_backtrace (void)
3522 {
3523 register struct backtrace *backlist;
3524 register int i;
3525
3526 for (backlist = backtrace_list; backlist; backlist = backlist->next)
3527 {
3528 mark_object (*backlist->function);
3529
3530 if (backlist->nargs == UNEVALLED || backlist->nargs == MANY)
3531 i = 0;
3532 else
3533 i = backlist->nargs - 1;
3534 for (; i >= 0; i--)
3535 mark_object (backlist->args[i]);
3536 }
3537 }
3538
3539 void
3540 syms_of_eval (void)
3541 {
3542 DEFVAR_INT ("max-specpdl-size", &max_specpdl_size,
3543 doc: /* *Limit on number of Lisp variable bindings and `unwind-protect's.
3544 If Lisp code tries to increase the total number past this amount,
3545 an error is signaled.
3546 You can safely use a value considerably larger than the default value,
3547 if that proves inconveniently small. However, if you increase it too far,
3548 Emacs could run out of memory trying to make the stack bigger. */);
3549
3550 DEFVAR_INT ("max-lisp-eval-depth", &max_lisp_eval_depth,
3551 doc: /* *Limit on depth in `eval', `apply' and `funcall' before error.
3552
3553 This limit serves to catch infinite recursions for you before they cause
3554 actual stack overflow in C, which would be fatal for Emacs.
3555 You can safely make it considerably larger than its default value,
3556 if that proves inconveniently small. However, if you increase it too far,
3557 Emacs could overflow the real C stack, and crash. */);
3558
3559 DEFVAR_LISP ("quit-flag", &Vquit_flag,
3560 doc: /* Non-nil causes `eval' to abort, unless `inhibit-quit' is non-nil.
3561 If the value is t, that means do an ordinary quit.
3562 If the value equals `throw-on-input', that means quit by throwing
3563 to the tag specified in `throw-on-input'; it's for handling `while-no-input'.
3564 Typing C-g sets `quit-flag' to t, regardless of `inhibit-quit',
3565 but `inhibit-quit' non-nil prevents anything from taking notice of that. */);
3566 Vquit_flag = Qnil;
3567
3568 DEFVAR_LISP ("inhibit-quit", &Vinhibit_quit,
3569 doc: /* Non-nil inhibits C-g quitting from happening immediately.
3570 Note that `quit-flag' will still be set by typing C-g,
3571 so a quit will be signaled as soon as `inhibit-quit' is nil.
3572 To prevent this happening, set `quit-flag' to nil
3573 before making `inhibit-quit' nil. */);
3574 Vinhibit_quit = Qnil;
3575
3576 Qinhibit_quit = intern_c_string ("inhibit-quit");
3577 staticpro (&Qinhibit_quit);
3578
3579 Qautoload = intern_c_string ("autoload");
3580 staticpro (&Qautoload);
3581
3582 Qdebug_on_error = intern_c_string ("debug-on-error");
3583 staticpro (&Qdebug_on_error);
3584
3585 Qmacro = intern_c_string ("macro");
3586 staticpro (&Qmacro);
3587
3588 Qdeclare = intern_c_string ("declare");
3589 staticpro (&Qdeclare);
3590
3591 /* Note that the process handling also uses Qexit, but we don't want
3592 to staticpro it twice, so we just do it here. */
3593 Qexit = intern_c_string ("exit");
3594 staticpro (&Qexit);
3595
3596 Qinteractive = intern_c_string ("interactive");
3597 staticpro (&Qinteractive);
3598
3599 Qcommandp = intern_c_string ("commandp");
3600 staticpro (&Qcommandp);
3601
3602 Qdefun = intern_c_string ("defun");
3603 staticpro (&Qdefun);
3604
3605 Qand_rest = intern_c_string ("&rest");
3606 staticpro (&Qand_rest);
3607
3608 Qand_optional = intern_c_string ("&optional");
3609 staticpro (&Qand_optional);
3610
3611 Qdebug = intern_c_string ("debug");
3612 staticpro (&Qdebug);
3613
3614 DEFVAR_LISP ("stack-trace-on-error", &Vstack_trace_on_error,
3615 doc: /* *Non-nil means errors display a backtrace buffer.
3616 More precisely, this happens for any error that is handled
3617 by the editor command loop.
3618 If the value is a list, an error only means to display a backtrace
3619 if one of its condition symbols appears in the list. */);
3620 Vstack_trace_on_error = Qnil;
3621
3622 DEFVAR_LISP ("debug-on-error", &Vdebug_on_error,
3623 doc: /* *Non-nil means enter debugger if an error is signaled.
3624 Does not apply to errors handled by `condition-case' or those
3625 matched by `debug-ignored-errors'.
3626 If the value is a list, an error only means to enter the debugger
3627 if one of its condition symbols appears in the list.
3628 When you evaluate an expression interactively, this variable
3629 is temporarily non-nil if `eval-expression-debug-on-error' is non-nil.
3630 The command `toggle-debug-on-error' toggles this.
3631 See also the variable `debug-on-quit'. */);
3632 Vdebug_on_error = Qnil;
3633
3634 DEFVAR_LISP ("debug-ignored-errors", &Vdebug_ignored_errors,
3635 doc: /* *List of errors for which the debugger should not be called.
3636 Each element may be a condition-name or a regexp that matches error messages.
3637 If any element applies to a given error, that error skips the debugger
3638 and just returns to top level.
3639 This overrides the variable `debug-on-error'.
3640 It does not apply to errors handled by `condition-case'. */);
3641 Vdebug_ignored_errors = Qnil;
3642
3643 DEFVAR_BOOL ("debug-on-quit", &debug_on_quit,
3644 doc: /* *Non-nil means enter debugger if quit is signaled (C-g, for example).
3645 Does not apply if quit is handled by a `condition-case'. */);
3646 debug_on_quit = 0;
3647
3648 DEFVAR_BOOL ("debug-on-next-call", &debug_on_next_call,
3649 doc: /* Non-nil means enter debugger before next `eval', `apply' or `funcall'. */);
3650
3651 DEFVAR_BOOL ("debugger-may-continue", &debugger_may_continue,
3652 doc: /* Non-nil means debugger may continue execution.
3653 This is nil when the debugger is called under circumstances where it
3654 might not be safe to continue. */);
3655 debugger_may_continue = 1;
3656
3657 DEFVAR_LISP ("debugger", &Vdebugger,
3658 doc: /* Function to call to invoke debugger.
3659 If due to frame exit, args are `exit' and the value being returned;
3660 this function's value will be returned instead of that.
3661 If due to error, args are `error' and a list of the args to `signal'.
3662 If due to `apply' or `funcall' entry, one arg, `lambda'.
3663 If due to `eval' entry, one arg, t. */);
3664 Vdebugger = Qnil;
3665
3666 DEFVAR_LISP ("signal-hook-function", &Vsignal_hook_function,
3667 doc: /* If non-nil, this is a function for `signal' to call.
3668 It receives the same arguments that `signal' was given.
3669 The Edebug package uses this to regain control. */);
3670 Vsignal_hook_function = Qnil;
3671
3672 DEFVAR_LISP ("debug-on-signal", &Vdebug_on_signal,
3673 doc: /* *Non-nil means call the debugger regardless of condition handlers.
3674 Note that `debug-on-error', `debug-on-quit' and friends
3675 still determine whether to handle the particular condition. */);
3676 Vdebug_on_signal = Qnil;
3677
3678 DEFVAR_LISP ("macro-declaration-function", &Vmacro_declaration_function,
3679 doc: /* Function to process declarations in a macro definition.
3680 The function will be called with two args MACRO and DECL.
3681 MACRO is the name of the macro being defined.
3682 DECL is a list `(declare ...)' containing the declarations.
3683 The value the function returns is not used. */);
3684 Vmacro_declaration_function = Qnil;
3685
3686 Vrun_hooks = intern_c_string ("run-hooks");
3687 staticpro (&Vrun_hooks);
3688
3689 staticpro (&Vautoload_queue);
3690 Vautoload_queue = Qnil;
3691 staticpro (&Vsignaling_function);
3692 Vsignaling_function = Qnil;
3693
3694 defsubr (&Sor);
3695 defsubr (&Sand);
3696 defsubr (&Sif);
3697 defsubr (&Scond);
3698 defsubr (&Sprogn);
3699 defsubr (&Sprog1);
3700 defsubr (&Sprog2);
3701 defsubr (&Ssetq);
3702 defsubr (&Squote);
3703 defsubr (&Sfunction);
3704 defsubr (&Sdefun);
3705 defsubr (&Sdefmacro);
3706 defsubr (&Sdefvar);
3707 defsubr (&Sdefvaralias);
3708 defsubr (&Sdefconst);
3709 defsubr (&Suser_variable_p);
3710 defsubr (&Slet);
3711 defsubr (&SletX);
3712 defsubr (&Swhile);
3713 defsubr (&Smacroexpand);
3714 defsubr (&Scatch);
3715 defsubr (&Sthrow);
3716 defsubr (&Sunwind_protect);
3717 defsubr (&Scondition_case);
3718 defsubr (&Ssignal);
3719 defsubr (&Sinteractive_p);
3720 defsubr (&Scalled_interactively_p);
3721 defsubr (&Scommandp);
3722 defsubr (&Sautoload);
3723 defsubr (&Seval);
3724 defsubr (&Sapply);
3725 defsubr (&Sfuncall);
3726 defsubr (&Srun_hooks);
3727 defsubr (&Srun_hook_with_args);
3728 defsubr (&Srun_hook_with_args_until_success);
3729 defsubr (&Srun_hook_with_args_until_failure);
3730 defsubr (&Sfetch_bytecode);
3731 defsubr (&Sbacktrace_debug);
3732 defsubr (&Sbacktrace);
3733 defsubr (&Sbacktrace_frame);
3734 }
3735
3736 /* arch-tag: 014a07aa-33ab-4a8f-a3d2-ee8a4a9ff7fb
3737 (do not change this comment) */