Revision: miles@gnu.org--gnu-2004/emacs--unicode--0--patch-15
[bpt/emacs.git] / lisp / emacs-lisp / cl-macs.el
1 ;;; cl-macs.el --- Common Lisp macros -*-byte-compile-dynamic: t;-*-
2
3 ;; Copyright (C) 1993, 2003, 2004 Free Software Foundation, Inc.
4
5 ;; Author: Dave Gillespie <daveg@synaptics.com>
6 ;; Version: 2.02
7 ;; Keywords: extensions
8
9 ;; This file is part of GNU Emacs.
10
11 ;; GNU Emacs is free software; you can redistribute it and/or modify
12 ;; it under the terms of the GNU General Public License as published by
13 ;; the Free Software Foundation; either version 2, or (at your option)
14 ;; any later version.
15
16 ;; GNU Emacs is distributed in the hope that it will be useful,
17 ;; but WITHOUT ANY WARRANTY; without even the implied warranty of
18 ;; MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
19 ;; GNU General Public License for more details.
20
21 ;; You should have received a copy of the GNU General Public License
22 ;; along with GNU Emacs; see the file COPYING. If not, write to the
23 ;; Free Software Foundation, Inc., 59 Temple Place - Suite 330,
24 ;; Boston, MA 02111-1307, USA.
25
26 ;;; Commentary:
27
28 ;; These are extensions to Emacs Lisp that provide a degree of
29 ;; Common Lisp compatibility, beyond what is already built-in
30 ;; in Emacs Lisp.
31 ;;
32 ;; This package was written by Dave Gillespie; it is a complete
33 ;; rewrite of Cesar Quiroz's original cl.el package of December 1986.
34 ;;
35 ;; Bug reports, comments, and suggestions are welcome!
36
37 ;; This file contains the portions of the Common Lisp extensions
38 ;; package which should be autoloaded, but need only be present
39 ;; if the compiler or interpreter is used---this file is not
40 ;; necessary for executing compiled code.
41
42 ;; See cl.el for Change Log.
43
44
45 ;;; Code:
46
47 (or (memq 'cl-19 features)
48 (error "Tried to load `cl-macs' before `cl'!"))
49
50
51 (defmacro cl-pop2 (place)
52 (list 'prog1 (list 'car (list 'cdr place))
53 (list 'setq place (list 'cdr (list 'cdr place)))))
54 (put 'cl-pop2 'edebug-form-spec 'edebug-sexps)
55
56 (defvar cl-optimize-safety)
57 (defvar cl-optimize-speed)
58
59
60 ;;; This kludge allows macros which use cl-transform-function-property
61 ;;; to be called at compile-time.
62
63 (require
64 (progn
65 (or (fboundp 'cl-transform-function-property)
66 (defalias 'cl-transform-function-property
67 (function (lambda (n p f)
68 (list 'put (list 'quote n) (list 'quote p)
69 (list 'function (cons 'lambda f)))))))
70 (car (or features (setq features (list 'cl-kludge))))))
71
72
73 ;;; Initialization.
74
75 (defvar cl-old-bc-file-form nil)
76
77 (defun cl-compile-time-init ()
78 (run-hooks 'cl-hack-bytecomp-hook))
79
80
81 ;;; Some predicates for analyzing Lisp forms. These are used by various
82 ;;; macro expanders to optimize the results in certain common cases.
83
84 (defconst cl-simple-funcs '(car cdr nth aref elt if and or + - 1+ 1- min max
85 car-safe cdr-safe progn prog1 prog2))
86 (defconst cl-safe-funcs '(* / % length memq list vector vectorp
87 < > <= >= = error))
88
89 ;;; Check if no side effects, and executes quickly.
90 (defun cl-simple-expr-p (x &optional size)
91 (or size (setq size 10))
92 (if (and (consp x) (not (memq (car x) '(quote function function*))))
93 (and (symbolp (car x))
94 (or (memq (car x) cl-simple-funcs)
95 (get (car x) 'side-effect-free))
96 (progn
97 (setq size (1- size))
98 (while (and (setq x (cdr x))
99 (setq size (cl-simple-expr-p (car x) size))))
100 (and (null x) (>= size 0) size)))
101 (and (> size 0) (1- size))))
102
103 (defun cl-simple-exprs-p (xs)
104 (while (and xs (cl-simple-expr-p (car xs)))
105 (setq xs (cdr xs)))
106 (not xs))
107
108 ;;; Check if no side effects.
109 (defun cl-safe-expr-p (x)
110 (or (not (and (consp x) (not (memq (car x) '(quote function function*)))))
111 (and (symbolp (car x))
112 (or (memq (car x) cl-simple-funcs)
113 (memq (car x) cl-safe-funcs)
114 (get (car x) 'side-effect-free))
115 (progn
116 (while (and (setq x (cdr x)) (cl-safe-expr-p (car x))))
117 (null x)))))
118
119 ;;; Check if constant (i.e., no side effects or dependencies).
120 (defun cl-const-expr-p (x)
121 (cond ((consp x)
122 (or (eq (car x) 'quote)
123 (and (memq (car x) '(function function*))
124 (or (symbolp (nth 1 x))
125 (and (eq (car-safe (nth 1 x)) 'lambda) 'func)))))
126 ((symbolp x) (and (memq x '(nil t)) t))
127 (t t)))
128
129 (defun cl-const-exprs-p (xs)
130 (while (and xs (cl-const-expr-p (car xs)))
131 (setq xs (cdr xs)))
132 (not xs))
133
134 (defun cl-const-expr-val (x)
135 (and (eq (cl-const-expr-p x) t) (if (consp x) (nth 1 x) x)))
136
137 (defun cl-expr-access-order (x v)
138 (if (cl-const-expr-p x) v
139 (if (consp x)
140 (progn
141 (while (setq x (cdr x)) (setq v (cl-expr-access-order (car x) v)))
142 v)
143 (if (eq x (car v)) (cdr v) '(t)))))
144
145 ;;; Count number of times X refers to Y. Return nil for 0 times.
146 (defun cl-expr-contains (x y)
147 (cond ((equal y x) 1)
148 ((and (consp x) (not (memq (car-safe x) '(quote function function*))))
149 (let ((sum 0))
150 (while x
151 (setq sum (+ sum (or (cl-expr-contains (pop x) y) 0))))
152 (and (> sum 0) sum)))
153 (t nil)))
154
155 (defun cl-expr-contains-any (x y)
156 (while (and y (not (cl-expr-contains x (car y)))) (pop y))
157 y)
158
159 ;;; Check whether X may depend on any of the symbols in Y.
160 (defun cl-expr-depends-p (x y)
161 (and (not (cl-const-expr-p x))
162 (or (not (cl-safe-expr-p x)) (cl-expr-contains-any x y))))
163
164 ;;; Symbols.
165
166 (defvar *gensym-counter*)
167 (defun gensym (&optional prefix)
168 "Generate a new uninterned symbol.
169 The name is made by appending a number to PREFIX, default \"G\"."
170 (let ((pfix (if (stringp prefix) prefix "G"))
171 (num (if (integerp prefix) prefix
172 (prog1 *gensym-counter*
173 (setq *gensym-counter* (1+ *gensym-counter*))))))
174 (make-symbol (format "%s%d" pfix num))))
175
176 (defun gentemp (&optional prefix)
177 "Generate a new interned symbol with a unique name.
178 The name is made by appending a number to PREFIX, default \"G\"."
179 (let ((pfix (if (stringp prefix) prefix "G"))
180 name)
181 (while (intern-soft (setq name (format "%s%d" pfix *gensym-counter*)))
182 (setq *gensym-counter* (1+ *gensym-counter*)))
183 (intern name)))
184
185
186 ;;; Program structure.
187
188 (defmacro defun* (name args &rest body)
189 "Define NAME as a function.
190 Like normal `defun', except ARGLIST allows full Common Lisp conventions,
191 and BODY is implicitly surrounded by (block NAME ...).
192
193 \(fn NAME ARGLIST [DOCSTRING] BODY...)"
194 (let* ((res (cl-transform-lambda (cons args body) name))
195 (form (list* 'defun name (cdr res))))
196 (if (car res) (list 'progn (car res) form) form)))
197
198 (defmacro defmacro* (name args &rest body)
199 "Define NAME as a macro.
200 Like normal `defmacro', except ARGLIST allows full Common Lisp conventions,
201 and BODY is implicitly surrounded by (block NAME ...).
202
203 \(fn NAME ARGLIST [DOCSTRING] BODY...)"
204 (let* ((res (cl-transform-lambda (cons args body) name))
205 (form (list* 'defmacro name (cdr res))))
206 (if (car res) (list 'progn (car res) form) form)))
207
208 (defmacro function* (func)
209 "Introduce a function.
210 Like normal `function', except that if argument is a lambda form, its
211 ARGLIST allows full Common Lisp conventions."
212 (if (eq (car-safe func) 'lambda)
213 (let* ((res (cl-transform-lambda (cdr func) 'cl-none))
214 (form (list 'function (cons 'lambda (cdr res)))))
215 (if (car res) (list 'progn (car res) form) form))
216 (list 'function func)))
217
218 (defun cl-transform-function-property (func prop form)
219 (let ((res (cl-transform-lambda form func)))
220 (append '(progn) (cdr (cdr (car res)))
221 (list (list 'put (list 'quote func) (list 'quote prop)
222 (list 'function (cons 'lambda (cdr res))))))))
223
224 (defconst lambda-list-keywords
225 '(&optional &rest &key &allow-other-keys &aux &whole &body &environment))
226
227 (defvar cl-macro-environment nil)
228 (defvar bind-block) (defvar bind-defs) (defvar bind-enquote)
229 (defvar bind-inits) (defvar bind-lets) (defvar bind-forms)
230
231 (defun cl-transform-lambda (form bind-block)
232 (let* ((args (car form)) (body (cdr form)) (orig-args args)
233 (bind-defs nil) (bind-enquote nil)
234 (bind-inits nil) (bind-lets nil) (bind-forms nil)
235 (header nil) (simple-args nil))
236 (while (or (stringp (car body)) (eq (car-safe (car body)) 'interactive))
237 (push (pop body) header))
238 (setq args (if (listp args) (copy-list args) (list '&rest args)))
239 (let ((p (last args))) (if (cdr p) (setcdr p (list '&rest (cdr p)))))
240 (if (setq bind-defs (cadr (memq '&cl-defs args)))
241 (setq args (delq '&cl-defs (delq bind-defs args))
242 bind-defs (cadr bind-defs)))
243 (if (setq bind-enquote (memq '&cl-quote args))
244 (setq args (delq '&cl-quote args)))
245 (if (memq '&whole args) (error "&whole not currently implemented"))
246 (let* ((p (memq '&environment args)) (v (cadr p)))
247 (if p (setq args (nconc (delq (car p) (delq v args))
248 (list '&aux (list v 'cl-macro-environment))))))
249 (while (and args (symbolp (car args))
250 (not (memq (car args) '(nil &rest &body &key &aux)))
251 (not (and (eq (car args) '&optional)
252 (or bind-defs (consp (cadr args))))))
253 (push (pop args) simple-args))
254 (or (eq bind-block 'cl-none)
255 (setq body (list (list* 'block bind-block body))))
256 (if (null args)
257 (list* nil (nreverse simple-args) (nconc (nreverse header) body))
258 (if (memq '&optional simple-args) (push '&optional args))
259 (cl-do-arglist args nil (- (length simple-args)
260 (if (memq '&optional simple-args) 1 0)))
261 (setq bind-lets (nreverse bind-lets))
262 (list* (and bind-inits (list* 'eval-when '(compile load eval)
263 (nreverse bind-inits)))
264 (nconc (nreverse simple-args)
265 (list '&rest (car (pop bind-lets))))
266 (nconc (let ((hdr (nreverse header)))
267 (require 'help-fns)
268 (cons (help-add-fundoc-usage
269 (if (stringp (car hdr)) (pop hdr))
270 ;; orig-args can contain &cl-defs (an internal CL
271 ;; thingy that I do not understand), so remove it.
272 (let ((x (memq '&cl-defs orig-args)))
273 (if (null x) orig-args
274 (delq (car x) (remq (cadr x) orig-args)))))
275 hdr))
276 (list (nconc (list 'let* bind-lets)
277 (nreverse bind-forms) body)))))))
278
279 (defun cl-do-arglist (args expr &optional num) ; uses bind-*
280 (if (nlistp args)
281 (if (or (memq args lambda-list-keywords) (not (symbolp args)))
282 (error "Invalid argument name: %s" args)
283 (push (list args expr) bind-lets))
284 (setq args (copy-list args))
285 (let ((p (last args))) (if (cdr p) (setcdr p (list '&rest (cdr p)))))
286 (let ((p (memq '&body args))) (if p (setcar p '&rest)))
287 (if (memq '&environment args) (error "&environment used incorrectly"))
288 (let ((save-args args)
289 (restarg (memq '&rest args))
290 (safety (if (cl-compiling-file) cl-optimize-safety 3))
291 (keys nil)
292 (laterarg nil) (exactarg nil) minarg)
293 (or num (setq num 0))
294 (if (listp (cadr restarg))
295 (setq restarg (gensym "--rest--"))
296 (setq restarg (cadr restarg)))
297 (push (list restarg expr) bind-lets)
298 (if (eq (car args) '&whole)
299 (push (list (cl-pop2 args) restarg) bind-lets))
300 (let ((p args))
301 (setq minarg restarg)
302 (while (and p (not (memq (car p) lambda-list-keywords)))
303 (or (eq p args) (setq minarg (list 'cdr minarg)))
304 (setq p (cdr p)))
305 (if (memq (car p) '(nil &aux))
306 (setq minarg (list '= (list 'length restarg)
307 (length (ldiff args p)))
308 exactarg (not (eq args p)))))
309 (while (and args (not (memq (car args) lambda-list-keywords)))
310 (let ((poparg (list (if (or (cdr args) (not exactarg)) 'pop 'car)
311 restarg)))
312 (cl-do-arglist
313 (pop args)
314 (if (or laterarg (= safety 0)) poparg
315 (list 'if minarg poparg
316 (list 'signal '(quote wrong-number-of-arguments)
317 (list 'list (and (not (eq bind-block 'cl-none))
318 (list 'quote bind-block))
319 (list 'length restarg)))))))
320 (setq num (1+ num) laterarg t))
321 (while (and (eq (car args) '&optional) (pop args))
322 (while (and args (not (memq (car args) lambda-list-keywords)))
323 (let ((arg (pop args)))
324 (or (consp arg) (setq arg (list arg)))
325 (if (cddr arg) (cl-do-arglist (nth 2 arg) (list 'and restarg t)))
326 (let ((def (if (cdr arg) (nth 1 arg)
327 (or (car bind-defs)
328 (nth 1 (assq (car arg) bind-defs)))))
329 (poparg (list 'pop restarg)))
330 (and def bind-enquote (setq def (list 'quote def)))
331 (cl-do-arglist (car arg)
332 (if def (list 'if restarg poparg def) poparg))
333 (setq num (1+ num))))))
334 (if (eq (car args) '&rest)
335 (let ((arg (cl-pop2 args)))
336 (if (consp arg) (cl-do-arglist arg restarg)))
337 (or (eq (car args) '&key) (= safety 0) exactarg
338 (push (list 'if restarg
339 (list 'signal '(quote wrong-number-of-arguments)
340 (list 'list
341 (and (not (eq bind-block 'cl-none))
342 (list 'quote bind-block))
343 (list '+ num (list 'length restarg)))))
344 bind-forms)))
345 (while (and (eq (car args) '&key) (pop args))
346 (while (and args (not (memq (car args) lambda-list-keywords)))
347 (let ((arg (pop args)))
348 (or (consp arg) (setq arg (list arg)))
349 (let* ((karg (if (consp (car arg)) (caar arg)
350 (intern (format ":%s" (car arg)))))
351 (varg (if (consp (car arg)) (cadar arg) (car arg)))
352 (def (if (cdr arg) (cadr arg)
353 (or (car bind-defs) (cadr (assq varg bind-defs)))))
354 (look (list 'memq (list 'quote karg) restarg)))
355 (and def bind-enquote (setq def (list 'quote def)))
356 (if (cddr arg)
357 (let* ((temp (or (nth 2 arg) (gensym)))
358 (val (list 'car (list 'cdr temp))))
359 (cl-do-arglist temp look)
360 (cl-do-arglist varg
361 (list 'if temp
362 (list 'prog1 val (list 'setq temp t))
363 def)))
364 (cl-do-arglist
365 varg
366 (list 'car
367 (list 'cdr
368 (if (null def)
369 look
370 (list 'or look
371 (if (eq (cl-const-expr-p def) t)
372 (list
373 'quote
374 (list nil (cl-const-expr-val def)))
375 (list 'list nil def))))))))
376 (push karg keys)))))
377 (setq keys (nreverse keys))
378 (or (and (eq (car args) '&allow-other-keys) (pop args))
379 (null keys) (= safety 0)
380 (let* ((var (gensym "--keys--"))
381 (allow '(:allow-other-keys))
382 (check (list
383 'while var
384 (list
385 'cond
386 (list (list 'memq (list 'car var)
387 (list 'quote (append keys allow)))
388 (list 'setq var (list 'cdr (list 'cdr var))))
389 (list (list 'car
390 (list 'cdr
391 (list 'memq (cons 'quote allow)
392 restarg)))
393 (list 'setq var nil))
394 (list t
395 (list
396 'error
397 (format "Keyword argument %%s not one of %s"
398 keys)
399 (list 'car var)))))))
400 (push (list 'let (list (list var restarg)) check) bind-forms)))
401 (while (and (eq (car args) '&aux) (pop args))
402 (while (and args (not (memq (car args) lambda-list-keywords)))
403 (if (consp (car args))
404 (if (and bind-enquote (cadar args))
405 (cl-do-arglist (caar args)
406 (list 'quote (cadr (pop args))))
407 (cl-do-arglist (caar args) (cadr (pop args))))
408 (cl-do-arglist (pop args) nil))))
409 (if args (error "Malformed argument list %s" save-args)))))
410
411 (defun cl-arglist-args (args)
412 (if (nlistp args) (list args)
413 (let ((res nil) (kind nil) arg)
414 (while (consp args)
415 (setq arg (pop args))
416 (if (memq arg lambda-list-keywords) (setq kind arg)
417 (if (eq arg '&cl-defs) (pop args)
418 (and (consp arg) kind (setq arg (car arg)))
419 (and (consp arg) (cdr arg) (eq kind '&key) (setq arg (cadr arg)))
420 (setq res (nconc res (cl-arglist-args arg))))))
421 (nconc res (and args (list args))))))
422
423 (defmacro destructuring-bind (args expr &rest body)
424 (let* ((bind-lets nil) (bind-forms nil) (bind-inits nil)
425 (bind-defs nil) (bind-block 'cl-none))
426 (cl-do-arglist (or args '(&aux)) expr)
427 (append '(progn) bind-inits
428 (list (nconc (list 'let* (nreverse bind-lets))
429 (nreverse bind-forms) body)))))
430
431
432 ;;; The `eval-when' form.
433
434 (defvar cl-not-toplevel nil)
435
436 (defmacro eval-when (when &rest body)
437 "Control when BODY is evaluated.
438 If `compile' is in WHEN, BODY is evaluated when compiled at top-level.
439 If `load' is in WHEN, BODY is evaluated when loaded after top-level compile.
440 If `eval' is in WHEN, BODY is evaluated when interpreted or at non-top-level.
441
442 \(fn (WHEN...) BODY...)"
443 (if (and (fboundp 'cl-compiling-file) (cl-compiling-file)
444 (not cl-not-toplevel) (not (boundp 'for-effect))) ; horrible kludge
445 (let ((comp (or (memq 'compile when) (memq :compile-toplevel when)))
446 (cl-not-toplevel t))
447 (if (or (memq 'load when) (memq :load-toplevel when))
448 (if comp (cons 'progn (mapcar 'cl-compile-time-too body))
449 (list* 'if nil nil body))
450 (progn (if comp (eval (cons 'progn body))) nil)))
451 (and (or (memq 'eval when) (memq :execute when))
452 (cons 'progn body))))
453
454 (defun cl-compile-time-too (form)
455 (or (and (symbolp (car-safe form)) (get (car-safe form) 'byte-hunk-handler))
456 (setq form (macroexpand
457 form (cons '(eval-when) byte-compile-macro-environment))))
458 (cond ((eq (car-safe form) 'progn)
459 (cons 'progn (mapcar 'cl-compile-time-too (cdr form))))
460 ((eq (car-safe form) 'eval-when)
461 (let ((when (nth 1 form)))
462 (if (or (memq 'eval when) (memq :execute when))
463 (list* 'eval-when (cons 'compile when) (cddr form))
464 form)))
465 (t (eval form) form)))
466
467 (defmacro load-time-value (form &optional read-only)
468 "Like `progn', but evaluates the body at load time.
469 The result of the body appears to the compiler as a quoted constant."
470 (if (cl-compiling-file)
471 (let* ((temp (gentemp "--cl-load-time--"))
472 (set (list 'set (list 'quote temp) form)))
473 (if (and (fboundp 'byte-compile-file-form-defmumble)
474 (boundp 'this-kind) (boundp 'that-one))
475 (fset 'byte-compile-file-form
476 (list 'lambda '(form)
477 (list 'fset '(quote byte-compile-file-form)
478 (list 'quote
479 (symbol-function 'byte-compile-file-form)))
480 (list 'byte-compile-file-form (list 'quote set))
481 '(byte-compile-file-form form)))
482 (print set (symbol-value 'outbuffer)))
483 (list 'symbol-value (list 'quote temp)))
484 (list 'quote (eval form))))
485
486
487 ;;; Conditional control structures.
488
489 (defmacro case (expr &rest clauses)
490 "Eval EXPR and choose from CLAUSES on that value.
491 Each clause looks like (KEYLIST BODY...). EXPR is evaluated and compared
492 against each key in each KEYLIST; the corresponding BODY is evaluated.
493 If no clause succeeds, case returns nil. A single atom may be used in
494 place of a KEYLIST of one atom. A KEYLIST of t or `otherwise' is
495 allowed only in the final clause, and matches if no other keys match.
496 Key values are compared by `eql'."
497 (let* ((temp (if (cl-simple-expr-p expr 3) expr (gensym)))
498 (head-list nil)
499 (body (cons
500 'cond
501 (mapcar
502 (function
503 (lambda (c)
504 (cons (cond ((memq (car c) '(t otherwise)) t)
505 ((eq (car c) 'ecase-error-flag)
506 (list 'error "ecase failed: %s, %s"
507 temp (list 'quote (reverse head-list))))
508 ((listp (car c))
509 (setq head-list (append (car c) head-list))
510 (list 'member* temp (list 'quote (car c))))
511 (t
512 (if (memq (car c) head-list)
513 (error "Duplicate key in case: %s"
514 (car c)))
515 (push (car c) head-list)
516 (list 'eql temp (list 'quote (car c)))))
517 (or (cdr c) '(nil)))))
518 clauses))))
519 (if (eq temp expr) body
520 (list 'let (list (list temp expr)) body))))
521
522 (defmacro ecase (expr &rest clauses)
523 "Like `case', but error if no case fits.
524 `otherwise'-clauses are not allowed."
525 (list* 'case expr (append clauses '((ecase-error-flag)))))
526
527 (defmacro typecase (expr &rest clauses)
528 "Evals EXPR, chooses from CLAUSES on that value.
529 Each clause looks like (TYPE BODY...). EXPR is evaluated and, if it
530 satisfies TYPE, the corresponding BODY is evaluated. If no clause succeeds,
531 typecase returns nil. A TYPE of t or `otherwise' is allowed only in the
532 final clause, and matches if no other keys match."
533 (let* ((temp (if (cl-simple-expr-p expr 3) expr (gensym)))
534 (type-list nil)
535 (body (cons
536 'cond
537 (mapcar
538 (function
539 (lambda (c)
540 (cons (cond ((eq (car c) 'otherwise) t)
541 ((eq (car c) 'ecase-error-flag)
542 (list 'error "etypecase failed: %s, %s"
543 temp (list 'quote (reverse type-list))))
544 (t
545 (push (car c) type-list)
546 (cl-make-type-test temp (car c))))
547 (or (cdr c) '(nil)))))
548 clauses))))
549 (if (eq temp expr) body
550 (list 'let (list (list temp expr)) body))))
551
552 (defmacro etypecase (expr &rest clauses)
553 "Like `typecase', but error if no case fits.
554 `otherwise'-clauses are not allowed."
555 (list* 'typecase expr (append clauses '((ecase-error-flag)))))
556
557
558 ;;; Blocks and exits.
559
560 (defmacro block (name &rest body)
561 "Define a lexically-scoped block named NAME.
562 NAME may be any symbol. Code inside the BODY forms can call `return-from'
563 to jump prematurely out of the block. This differs from `catch' and `throw'
564 in two respects: First, the NAME is an unevaluated symbol rather than a
565 quoted symbol or other form; and second, NAME is lexically rather than
566 dynamically scoped: Only references to it within BODY will work. These
567 references may appear inside macro expansions, but not inside functions
568 called from BODY."
569 (if (cl-safe-expr-p (cons 'progn body)) (cons 'progn body)
570 (list 'cl-block-wrapper
571 (list* 'catch (list 'quote (intern (format "--cl-block-%s--" name)))
572 body))))
573
574 (defvar cl-active-block-names nil)
575
576 (put 'cl-block-wrapper 'byte-compile 'cl-byte-compile-block)
577 (defun cl-byte-compile-block (cl-form)
578 (if (fboundp 'byte-compile-form-do-effect) ; Check for optimizing compiler
579 (progn
580 (let* ((cl-entry (cons (nth 1 (nth 1 (nth 1 cl-form))) nil))
581 (cl-active-block-names (cons cl-entry cl-active-block-names))
582 (cl-body (byte-compile-top-level
583 (cons 'progn (cddr (nth 1 cl-form))))))
584 (if (cdr cl-entry)
585 (byte-compile-form (list 'catch (nth 1 (nth 1 cl-form)) cl-body))
586 (byte-compile-form cl-body))))
587 (byte-compile-form (nth 1 cl-form))))
588
589 (put 'cl-block-throw 'byte-compile 'cl-byte-compile-throw)
590 (defun cl-byte-compile-throw (cl-form)
591 (let ((cl-found (assq (nth 1 (nth 1 cl-form)) cl-active-block-names)))
592 (if cl-found (setcdr cl-found t)))
593 (byte-compile-normal-call (cons 'throw (cdr cl-form))))
594
595 (defmacro return (&optional result)
596 "Return from the block named nil.
597 This is equivalent to `(return-from nil RESULT)'."
598 (list 'return-from nil result))
599
600 (defmacro return-from (name &optional result)
601 "Return from the block named NAME.
602 This jump out to the innermost enclosing `(block NAME ...)' form,
603 returning RESULT from that form (or nil if RESULT is omitted).
604 This is compatible with Common Lisp, but note that `defun' and
605 `defmacro' do not create implicit blocks as they do in Common Lisp."
606 (let ((name2 (intern (format "--cl-block-%s--" name))))
607 (list 'cl-block-throw (list 'quote name2) result)))
608
609
610 ;;; The "loop" macro.
611
612 (defvar args) (defvar loop-accum-var) (defvar loop-accum-vars)
613 (defvar loop-bindings) (defvar loop-body) (defvar loop-destr-temps)
614 (defvar loop-finally) (defvar loop-finish-flag) (defvar loop-first-flag)
615 (defvar loop-initially) (defvar loop-map-form) (defvar loop-name)
616 (defvar loop-result) (defvar loop-result-explicit)
617 (defvar loop-result-var) (defvar loop-steps) (defvar loop-symbol-macs)
618
619 (defmacro loop (&rest args)
620 "The Common Lisp `loop' macro.
621 Valid clauses are:
622 for VAR from/upfrom/downfrom NUM to/upto/downto/above/below NUM by NUM,
623 for VAR in LIST by FUNC, for VAR on LIST by FUNC, for VAR = INIT then EXPR,
624 for VAR across ARRAY, repeat NUM, with VAR = INIT, while COND, until COND,
625 always COND, never COND, thereis COND, collect EXPR into VAR,
626 append EXPR into VAR, nconc EXPR into VAR, sum EXPR into VAR,
627 count EXPR into VAR, maximize EXPR into VAR, minimize EXPR into VAR,
628 if COND CLAUSE [and CLAUSE]... else CLAUSE [and CLAUSE...],
629 unless COND CLAUSE [and CLAUSE]... else CLAUSE [and CLAUSE...],
630 do EXPRS..., initially EXPRS..., finally EXPRS..., return EXPR,
631 finally return EXPR, named NAME.
632
633 \(fn CLAUSE...)"
634 (if (not (memq t (mapcar 'symbolp (delq nil (delq t (copy-list args))))))
635 (list 'block nil (list* 'while t args))
636 (let ((loop-name nil) (loop-bindings nil)
637 (loop-body nil) (loop-steps nil)
638 (loop-result nil) (loop-result-explicit nil)
639 (loop-result-var nil) (loop-finish-flag nil)
640 (loop-accum-var nil) (loop-accum-vars nil)
641 (loop-initially nil) (loop-finally nil)
642 (loop-map-form nil) (loop-first-flag nil)
643 (loop-destr-temps nil) (loop-symbol-macs nil))
644 (setq args (append args '(cl-end-loop)))
645 (while (not (eq (car args) 'cl-end-loop)) (cl-parse-loop-clause))
646 (if loop-finish-flag
647 (push (list (list loop-finish-flag t)) loop-bindings))
648 (if loop-first-flag
649 (progn (push (list (list loop-first-flag t)) loop-bindings)
650 (push (list 'setq loop-first-flag nil) loop-steps)))
651 (let* ((epilogue (nconc (nreverse loop-finally)
652 (list (or loop-result-explicit loop-result))))
653 (ands (cl-loop-build-ands (nreverse loop-body)))
654 (while-body (nconc (cadr ands) (nreverse loop-steps)))
655 (body (append
656 (nreverse loop-initially)
657 (list (if loop-map-form
658 (list 'block '--cl-finish--
659 (subst
660 (if (eq (car ands) t) while-body
661 (cons (list 'or (car ands)
662 '(return-from --cl-finish--
663 nil))
664 while-body))
665 '--cl-map loop-map-form))
666 (list* 'while (car ands) while-body)))
667 (if loop-finish-flag
668 (if (equal epilogue '(nil)) (list loop-result-var)
669 (list (list 'if loop-finish-flag
670 (cons 'progn epilogue) loop-result-var)))
671 epilogue))))
672 (if loop-result-var (push (list loop-result-var) loop-bindings))
673 (while loop-bindings
674 (if (cdar loop-bindings)
675 (setq body (list (cl-loop-let (pop loop-bindings) body t)))
676 (let ((lets nil))
677 (while (and loop-bindings
678 (not (cdar loop-bindings)))
679 (push (car (pop loop-bindings)) lets))
680 (setq body (list (cl-loop-let lets body nil))))))
681 (if loop-symbol-macs
682 (setq body (list (list* 'symbol-macrolet loop-symbol-macs body))))
683 (list* 'block loop-name body)))))
684
685 (defun cl-parse-loop-clause () ; uses args, loop-*
686 (let ((word (pop args))
687 (hash-types '(hash-key hash-keys hash-value hash-values))
688 (key-types '(key-code key-codes key-seq key-seqs
689 key-binding key-bindings)))
690 (cond
691
692 ((null args)
693 (error "Malformed `loop' macro"))
694
695 ((eq word 'named)
696 (setq loop-name (pop args)))
697
698 ((eq word 'initially)
699 (if (memq (car args) '(do doing)) (pop args))
700 (or (consp (car args)) (error "Syntax error on `initially' clause"))
701 (while (consp (car args))
702 (push (pop args) loop-initially)))
703
704 ((eq word 'finally)
705 (if (eq (car args) 'return)
706 (setq loop-result-explicit (or (cl-pop2 args) '(quote nil)))
707 (if (memq (car args) '(do doing)) (pop args))
708 (or (consp (car args)) (error "Syntax error on `finally' clause"))
709 (if (and (eq (caar args) 'return) (null loop-name))
710 (setq loop-result-explicit (or (nth 1 (pop args)) '(quote nil)))
711 (while (consp (car args))
712 (push (pop args) loop-finally)))))
713
714 ((memq word '(for as))
715 (let ((loop-for-bindings nil) (loop-for-sets nil) (loop-for-steps nil)
716 (ands nil))
717 (while
718 (let ((var (or (pop args) (gensym))))
719 (setq word (pop args))
720 (if (eq word 'being) (setq word (pop args)))
721 (if (memq word '(the each)) (setq word (pop args)))
722 (if (memq word '(buffer buffers))
723 (setq word 'in args (cons '(buffer-list) args)))
724 (cond
725
726 ((memq word '(from downfrom upfrom to downto upto
727 above below by))
728 (push word args)
729 (if (memq (car args) '(downto above))
730 (error "Must specify `from' value for downward loop"))
731 (let* ((down (or (eq (car args) 'downfrom)
732 (memq (caddr args) '(downto above))))
733 (excl (or (memq (car args) '(above below))
734 (memq (caddr args) '(above below))))
735 (start (and (memq (car args) '(from upfrom downfrom))
736 (cl-pop2 args)))
737 (end (and (memq (car args)
738 '(to upto downto above below))
739 (cl-pop2 args)))
740 (step (and (eq (car args) 'by) (cl-pop2 args)))
741 (end-var (and (not (cl-const-expr-p end)) (gensym)))
742 (step-var (and (not (cl-const-expr-p step))
743 (gensym))))
744 (and step (numberp step) (<= step 0)
745 (error "Loop `by' value is not positive: %s" step))
746 (push (list var (or start 0)) loop-for-bindings)
747 (if end-var (push (list end-var end) loop-for-bindings))
748 (if step-var (push (list step-var step)
749 loop-for-bindings))
750 (if end
751 (push (list
752 (if down (if excl '> '>=) (if excl '< '<=))
753 var (or end-var end)) loop-body))
754 (push (list var (list (if down '- '+) var
755 (or step-var step 1)))
756 loop-for-steps)))
757
758 ((memq word '(in in-ref on))
759 (let* ((on (eq word 'on))
760 (temp (if (and on (symbolp var)) var (gensym))))
761 (push (list temp (pop args)) loop-for-bindings)
762 (push (list 'consp temp) loop-body)
763 (if (eq word 'in-ref)
764 (push (list var (list 'car temp)) loop-symbol-macs)
765 (or (eq temp var)
766 (progn
767 (push (list var nil) loop-for-bindings)
768 (push (list var (if on temp (list 'car temp)))
769 loop-for-sets))))
770 (push (list temp
771 (if (eq (car args) 'by)
772 (let ((step (cl-pop2 args)))
773 (if (and (memq (car-safe step)
774 '(quote function
775 function*))
776 (symbolp (nth 1 step)))
777 (list (nth 1 step) temp)
778 (list 'funcall step temp)))
779 (list 'cdr temp)))
780 loop-for-steps)))
781
782 ((eq word '=)
783 (let* ((start (pop args))
784 (then (if (eq (car args) 'then) (cl-pop2 args) start)))
785 (push (list var nil) loop-for-bindings)
786 (if (or ands (eq (car args) 'and))
787 (progn
788 (push (list var
789 (list 'if
790 (or loop-first-flag
791 (setq loop-first-flag
792 (gensym)))
793 start var))
794 loop-for-sets)
795 (push (list var then) loop-for-steps))
796 (push (list var
797 (if (eq start then) start
798 (list 'if
799 (or loop-first-flag
800 (setq loop-first-flag (gensym)))
801 start then)))
802 loop-for-sets))))
803
804 ((memq word '(across across-ref))
805 (let ((temp-vec (gensym)) (temp-idx (gensym)))
806 (push (list temp-vec (pop args)) loop-for-bindings)
807 (push (list temp-idx -1) loop-for-bindings)
808 (push (list '< (list 'setq temp-idx (list '1+ temp-idx))
809 (list 'length temp-vec)) loop-body)
810 (if (eq word 'across-ref)
811 (push (list var (list 'aref temp-vec temp-idx))
812 loop-symbol-macs)
813 (push (list var nil) loop-for-bindings)
814 (push (list var (list 'aref temp-vec temp-idx))
815 loop-for-sets))))
816
817 ((memq word '(element elements))
818 (let ((ref (or (memq (car args) '(in-ref of-ref))
819 (and (not (memq (car args) '(in of)))
820 (error "Expected `of'"))))
821 (seq (cl-pop2 args))
822 (temp-seq (gensym))
823 (temp-idx (if (eq (car args) 'using)
824 (if (and (= (length (cadr args)) 2)
825 (eq (caadr args) 'index))
826 (cadr (cl-pop2 args))
827 (error "Bad `using' clause"))
828 (gensym))))
829 (push (list temp-seq seq) loop-for-bindings)
830 (push (list temp-idx 0) loop-for-bindings)
831 (if ref
832 (let ((temp-len (gensym)))
833 (push (list temp-len (list 'length temp-seq))
834 loop-for-bindings)
835 (push (list var (list 'elt temp-seq temp-idx))
836 loop-symbol-macs)
837 (push (list '< temp-idx temp-len) loop-body))
838 (push (list var nil) loop-for-bindings)
839 (push (list 'and temp-seq
840 (list 'or (list 'consp temp-seq)
841 (list '< temp-idx
842 (list 'length temp-seq))))
843 loop-body)
844 (push (list var (list 'if (list 'consp temp-seq)
845 (list 'pop temp-seq)
846 (list 'aref temp-seq temp-idx)))
847 loop-for-sets))
848 (push (list temp-idx (list '1+ temp-idx))
849 loop-for-steps)))
850
851 ((memq word hash-types)
852 (or (memq (car args) '(in of)) (error "Expected `of'"))
853 (let* ((table (cl-pop2 args))
854 (other (if (eq (car args) 'using)
855 (if (and (= (length (cadr args)) 2)
856 (memq (caadr args) hash-types)
857 (not (eq (caadr args) word)))
858 (cadr (cl-pop2 args))
859 (error "Bad `using' clause"))
860 (gensym))))
861 (if (memq word '(hash-value hash-values))
862 (setq var (prog1 other (setq other var))))
863 (setq loop-map-form
864 (list 'maphash (list 'function
865 (list* 'lambda (list var other)
866 '--cl-map)) table))))
867
868 ((memq word '(symbol present-symbol external-symbol
869 symbols present-symbols external-symbols))
870 (let ((ob (and (memq (car args) '(in of)) (cl-pop2 args))))
871 (setq loop-map-form
872 (list 'mapatoms (list 'function
873 (list* 'lambda (list var)
874 '--cl-map)) ob))))
875
876 ((memq word '(overlay overlays extent extents))
877 (let ((buf nil) (from nil) (to nil))
878 (while (memq (car args) '(in of from to))
879 (cond ((eq (car args) 'from) (setq from (cl-pop2 args)))
880 ((eq (car args) 'to) (setq to (cl-pop2 args)))
881 (t (setq buf (cl-pop2 args)))))
882 (setq loop-map-form
883 (list 'cl-map-extents
884 (list 'function (list 'lambda (list var (gensym))
885 '(progn . --cl-map) nil))
886 buf from to))))
887
888 ((memq word '(interval intervals))
889 (let ((buf nil) (prop nil) (from nil) (to nil)
890 (var1 (gensym)) (var2 (gensym)))
891 (while (memq (car args) '(in of property from to))
892 (cond ((eq (car args) 'from) (setq from (cl-pop2 args)))
893 ((eq (car args) 'to) (setq to (cl-pop2 args)))
894 ((eq (car args) 'property)
895 (setq prop (cl-pop2 args)))
896 (t (setq buf (cl-pop2 args)))))
897 (if (and (consp var) (symbolp (car var)) (symbolp (cdr var)))
898 (setq var1 (car var) var2 (cdr var))
899 (push (list var (list 'cons var1 var2)) loop-for-sets))
900 (setq loop-map-form
901 (list 'cl-map-intervals
902 (list 'function (list 'lambda (list var1 var2)
903 '(progn . --cl-map)))
904 buf prop from to))))
905
906 ((memq word key-types)
907 (or (memq (car args) '(in of)) (error "Expected `of'"))
908 (let ((map (cl-pop2 args))
909 (other (if (eq (car args) 'using)
910 (if (and (= (length (cadr args)) 2)
911 (memq (caadr args) key-types)
912 (not (eq (caadr args) word)))
913 (cadr (cl-pop2 args))
914 (error "Bad `using' clause"))
915 (gensym))))
916 (if (memq word '(key-binding key-bindings))
917 (setq var (prog1 other (setq other var))))
918 (setq loop-map-form
919 (list (if (memq word '(key-seq key-seqs))
920 'cl-map-keymap-recursively 'map-keymap)
921 (list 'function (list* 'lambda (list var other)
922 '--cl-map)) map))))
923
924 ((memq word '(frame frames screen screens))
925 (let ((temp (gensym)))
926 (push (list var '(selected-frame))
927 loop-for-bindings)
928 (push (list temp nil) loop-for-bindings)
929 (push (list 'prog1 (list 'not (list 'eq var temp))
930 (list 'or temp (list 'setq temp var)))
931 loop-body)
932 (push (list var (list 'next-frame var))
933 loop-for-steps)))
934
935 ((memq word '(window windows))
936 (let ((scr (and (memq (car args) '(in of)) (cl-pop2 args)))
937 (temp (gensym)))
938 (push (list var (if scr
939 (list 'frame-selected-window scr)
940 '(selected-window)))
941 loop-for-bindings)
942 (push (list temp nil) loop-for-bindings)
943 (push (list 'prog1 (list 'not (list 'eq var temp))
944 (list 'or temp (list 'setq temp var)))
945 loop-body)
946 (push (list var (list 'next-window var)) loop-for-steps)))
947
948 (t
949 (let ((handler (and (symbolp word)
950 (get word 'cl-loop-for-handler))))
951 (if handler
952 (funcall handler var)
953 (error "Expected a `for' preposition, found %s" word)))))
954 (eq (car args) 'and))
955 (setq ands t)
956 (pop args))
957 (if (and ands loop-for-bindings)
958 (push (nreverse loop-for-bindings) loop-bindings)
959 (setq loop-bindings (nconc (mapcar 'list loop-for-bindings)
960 loop-bindings)))
961 (if loop-for-sets
962 (push (list 'progn
963 (cl-loop-let (nreverse loop-for-sets) 'setq ands)
964 t) loop-body))
965 (if loop-for-steps
966 (push (cons (if ands 'psetq 'setq)
967 (apply 'append (nreverse loop-for-steps)))
968 loop-steps))))
969
970 ((eq word 'repeat)
971 (let ((temp (gensym)))
972 (push (list (list temp (pop args))) loop-bindings)
973 (push (list '>= (list 'setq temp (list '1- temp)) 0) loop-body)))
974
975 ((memq word '(collect collecting))
976 (let ((what (pop args))
977 (var (cl-loop-handle-accum nil 'nreverse)))
978 (if (eq var loop-accum-var)
979 (push (list 'progn (list 'push what var) t) loop-body)
980 (push (list 'progn
981 (list 'setq var (list 'nconc var (list 'list what)))
982 t) loop-body))))
983
984 ((memq word '(nconc nconcing append appending))
985 (let ((what (pop args))
986 (var (cl-loop-handle-accum nil 'nreverse)))
987 (push (list 'progn
988 (list 'setq var
989 (if (eq var loop-accum-var)
990 (list 'nconc
991 (list (if (memq word '(nconc nconcing))
992 'nreverse 'reverse)
993 what)
994 var)
995 (list (if (memq word '(nconc nconcing))
996 'nconc 'append)
997 var what))) t) loop-body)))
998
999 ((memq word '(concat concating))
1000 (let ((what (pop args))
1001 (var (cl-loop-handle-accum "")))
1002 (push (list 'progn (list 'callf 'concat var what) t) loop-body)))
1003
1004 ((memq word '(vconcat vconcating))
1005 (let ((what (pop args))
1006 (var (cl-loop-handle-accum [])))
1007 (push (list 'progn (list 'callf 'vconcat var what) t) loop-body)))
1008
1009 ((memq word '(sum summing))
1010 (let ((what (pop args))
1011 (var (cl-loop-handle-accum 0)))
1012 (push (list 'progn (list 'incf var what) t) loop-body)))
1013
1014 ((memq word '(count counting))
1015 (let ((what (pop args))
1016 (var (cl-loop-handle-accum 0)))
1017 (push (list 'progn (list 'if what (list 'incf var)) t) loop-body)))
1018
1019 ((memq word '(minimize minimizing maximize maximizing))
1020 (let* ((what (pop args))
1021 (temp (if (cl-simple-expr-p what) what (gensym)))
1022 (var (cl-loop-handle-accum nil))
1023 (func (intern (substring (symbol-name word) 0 3)))
1024 (set (list 'setq var (list 'if var (list func var temp) temp))))
1025 (push (list 'progn (if (eq temp what) set
1026 (list 'let (list (list temp what)) set))
1027 t) loop-body)))
1028
1029 ((eq word 'with)
1030 (let ((bindings nil))
1031 (while (progn (push (list (pop args)
1032 (and (eq (car args) '=) (cl-pop2 args)))
1033 bindings)
1034 (eq (car args) 'and))
1035 (pop args))
1036 (push (nreverse bindings) loop-bindings)))
1037
1038 ((eq word 'while)
1039 (push (pop args) loop-body))
1040
1041 ((eq word 'until)
1042 (push (list 'not (pop args)) loop-body))
1043
1044 ((eq word 'always)
1045 (or loop-finish-flag (setq loop-finish-flag (gensym)))
1046 (push (list 'setq loop-finish-flag (pop args)) loop-body)
1047 (setq loop-result t))
1048
1049 ((eq word 'never)
1050 (or loop-finish-flag (setq loop-finish-flag (gensym)))
1051 (push (list 'setq loop-finish-flag (list 'not (pop args)))
1052 loop-body)
1053 (setq loop-result t))
1054
1055 ((eq word 'thereis)
1056 (or loop-finish-flag (setq loop-finish-flag (gensym)))
1057 (or loop-result-var (setq loop-result-var (gensym)))
1058 (push (list 'setq loop-finish-flag
1059 (list 'not (list 'setq loop-result-var (pop args))))
1060 loop-body))
1061
1062 ((memq word '(if when unless))
1063 (let* ((cond (pop args))
1064 (then (let ((loop-body nil))
1065 (cl-parse-loop-clause)
1066 (cl-loop-build-ands (nreverse loop-body))))
1067 (else (let ((loop-body nil))
1068 (if (eq (car args) 'else)
1069 (progn (pop args) (cl-parse-loop-clause)))
1070 (cl-loop-build-ands (nreverse loop-body))))
1071 (simple (and (eq (car then) t) (eq (car else) t))))
1072 (if (eq (car args) 'end) (pop args))
1073 (if (eq word 'unless) (setq then (prog1 else (setq else then))))
1074 (let ((form (cons (if simple (cons 'progn (nth 1 then)) (nth 2 then))
1075 (if simple (nth 1 else) (list (nth 2 else))))))
1076 (if (cl-expr-contains form 'it)
1077 (let ((temp (gensym)))
1078 (push (list temp) loop-bindings)
1079 (setq form (list* 'if (list 'setq temp cond)
1080 (subst temp 'it form))))
1081 (setq form (list* 'if cond form)))
1082 (push (if simple (list 'progn form t) form) loop-body))))
1083
1084 ((memq word '(do doing))
1085 (let ((body nil))
1086 (or (consp (car args)) (error "Syntax error on `do' clause"))
1087 (while (consp (car args)) (push (pop args) body))
1088 (push (cons 'progn (nreverse (cons t body))) loop-body)))
1089
1090 ((eq word 'return)
1091 (or loop-finish-flag (setq loop-finish-flag (gensym)))
1092 (or loop-result-var (setq loop-result-var (gensym)))
1093 (push (list 'setq loop-result-var (pop args)
1094 loop-finish-flag nil) loop-body))
1095
1096 (t
1097 (let ((handler (and (symbolp word) (get word 'cl-loop-handler))))
1098 (or handler (error "Expected a loop keyword, found %s" word))
1099 (funcall handler))))
1100 (if (eq (car args) 'and)
1101 (progn (pop args) (cl-parse-loop-clause)))))
1102
1103 (defun cl-loop-let (specs body par) ; uses loop-*
1104 (let ((p specs) (temps nil) (new nil))
1105 (while (and p (or (symbolp (car-safe (car p))) (null (cadar p))))
1106 (setq p (cdr p)))
1107 (and par p
1108 (progn
1109 (setq par nil p specs)
1110 (while p
1111 (or (cl-const-expr-p (cadar p))
1112 (let ((temp (gensym)))
1113 (push (list temp (cadar p)) temps)
1114 (setcar (cdar p) temp)))
1115 (setq p (cdr p)))))
1116 (while specs
1117 (if (and (consp (car specs)) (listp (caar specs)))
1118 (let* ((spec (caar specs)) (nspecs nil)
1119 (expr (cadr (pop specs)))
1120 (temp (cdr (or (assq spec loop-destr-temps)
1121 (car (push (cons spec (or (last spec 0)
1122 (gensym)))
1123 loop-destr-temps))))))
1124 (push (list temp expr) new)
1125 (while (consp spec)
1126 (push (list (pop spec)
1127 (and expr (list (if spec 'pop 'car) temp)))
1128 nspecs))
1129 (setq specs (nconc (nreverse nspecs) specs)))
1130 (push (pop specs) new)))
1131 (if (eq body 'setq)
1132 (let ((set (cons (if par 'psetq 'setq) (apply 'nconc (nreverse new)))))
1133 (if temps (list 'let* (nreverse temps) set) set))
1134 (list* (if par 'let 'let*)
1135 (nconc (nreverse temps) (nreverse new)) body))))
1136
1137 (defun cl-loop-handle-accum (def &optional func) ; uses args, loop-*
1138 (if (eq (car args) 'into)
1139 (let ((var (cl-pop2 args)))
1140 (or (memq var loop-accum-vars)
1141 (progn (push (list (list var def)) loop-bindings)
1142 (push var loop-accum-vars)))
1143 var)
1144 (or loop-accum-var
1145 (progn
1146 (push (list (list (setq loop-accum-var (gensym)) def))
1147 loop-bindings)
1148 (setq loop-result (if func (list func loop-accum-var)
1149 loop-accum-var))
1150 loop-accum-var))))
1151
1152 (defun cl-loop-build-ands (clauses)
1153 (let ((ands nil)
1154 (body nil))
1155 (while clauses
1156 (if (and (eq (car-safe (car clauses)) 'progn)
1157 (eq (car (last (car clauses))) t))
1158 (if (cdr clauses)
1159 (setq clauses (cons (nconc (butlast (car clauses))
1160 (if (eq (car-safe (cadr clauses))
1161 'progn)
1162 (cdadr clauses)
1163 (list (cadr clauses))))
1164 (cddr clauses)))
1165 (setq body (cdr (butlast (pop clauses)))))
1166 (push (pop clauses) ands)))
1167 (setq ands (or (nreverse ands) (list t)))
1168 (list (if (cdr ands) (cons 'and ands) (car ands))
1169 body
1170 (let ((full (if body
1171 (append ands (list (cons 'progn (append body '(t)))))
1172 ands)))
1173 (if (cdr full) (cons 'and full) (car full))))))
1174
1175
1176 ;;; Other iteration control structures.
1177
1178 (defmacro do (steps endtest &rest body)
1179 "The Common Lisp `do' loop.
1180
1181 \(fn ((VAR INIT [STEP])...) (END-TEST [RESULT...]) BODY...)"
1182 (cl-expand-do-loop steps endtest body nil))
1183
1184 (defmacro do* (steps endtest &rest body)
1185 "The Common Lisp `do*' loop.
1186
1187 \(fn ((VAR INIT [STEP])...) (END-TEST [RESULT...]) BODY...)"
1188 (cl-expand-do-loop steps endtest body t))
1189
1190 (defun cl-expand-do-loop (steps endtest body star)
1191 (list 'block nil
1192 (list* (if star 'let* 'let)
1193 (mapcar (function (lambda (c)
1194 (if (consp c) (list (car c) (nth 1 c)) c)))
1195 steps)
1196 (list* 'while (list 'not (car endtest))
1197 (append body
1198 (let ((sets (mapcar
1199 (function
1200 (lambda (c)
1201 (and (consp c) (cdr (cdr c))
1202 (list (car c) (nth 2 c)))))
1203 steps)))
1204 (setq sets (delq nil sets))
1205 (and sets
1206 (list (cons (if (or star (not (cdr sets)))
1207 'setq 'psetq)
1208 (apply 'append sets)))))))
1209 (or (cdr endtest) '(nil)))))
1210
1211 (defmacro dolist (spec &rest body)
1212 "Loop over a list.
1213 Evaluate BODY with VAR bound to each `car' from LIST, in turn.
1214 Then evaluate RESULT to get return value, default nil.
1215
1216 \(fn (VAR LIST [RESULT]) BODY...)"
1217 (let ((temp (gensym "--dolist-temp--")))
1218 (list 'block nil
1219 (list* 'let (list (list temp (nth 1 spec)) (car spec))
1220 (list* 'while temp (list 'setq (car spec) (list 'car temp))
1221 (append body (list (list 'setq temp
1222 (list 'cdr temp)))))
1223 (if (cdr (cdr spec))
1224 (cons (list 'setq (car spec) nil) (cdr (cdr spec)))
1225 '(nil))))))
1226
1227 (defmacro dotimes (spec &rest body)
1228 "Loop a certain number of times.
1229 Evaluate BODY with VAR bound to successive integers from 0, inclusive,
1230 to COUNT, exclusive. Then evaluate RESULT to get return value, default
1231 nil.
1232
1233 \(fn (VAR COUNT [RESULT]) BODY...)"
1234 (let ((temp (gensym "--dotimes-temp--")))
1235 (list 'block nil
1236 (list* 'let (list (list temp (nth 1 spec)) (list (car spec) 0))
1237 (list* 'while (list '< (car spec) temp)
1238 (append body (list (list 'incf (car spec)))))
1239 (or (cdr (cdr spec)) '(nil))))))
1240
1241 (defmacro do-symbols (spec &rest body)
1242 "Loop over all symbols.
1243 Evaluate BODY with VAR bound to each interned symbol, or to each symbol
1244 from OBARRAY.
1245
1246 \(fn (VAR [OBARRAY [RESULT]]) BODY...)"
1247 ;; Apparently this doesn't have an implicit block.
1248 (list 'block nil
1249 (list 'let (list (car spec))
1250 (list* 'mapatoms
1251 (list 'function (list* 'lambda (list (car spec)) body))
1252 (and (cadr spec) (list (cadr spec))))
1253 (caddr spec))))
1254
1255 (defmacro do-all-symbols (spec &rest body)
1256 (list* 'do-symbols (list (car spec) nil (cadr spec)) body))
1257
1258
1259 ;;; Assignments.
1260
1261 (defmacro psetq (&rest args)
1262 "Set SYMs to the values VALs in parallel.
1263 This is like `setq', except that all VAL forms are evaluated (in order)
1264 before assigning any symbols SYM to the corresponding values.
1265
1266 \(fn SYM VAL SYM VAL ...)"
1267 (cons 'psetf args))
1268
1269
1270 ;;; Binding control structures.
1271
1272 (defmacro progv (symbols values &rest body)
1273 "Bind SYMBOLS to VALUES dynamically in BODY.
1274 The forms SYMBOLS and VALUES are evaluated, and must evaluate to lists.
1275 Each SYMBOL in the first list is bound to the corresponding VALUE in the
1276 second list (or made unbound if VALUES is shorter than SYMBOLS); then the
1277 BODY forms are executed and their result is returned. This is much like
1278 a `let' form, except that the list of symbols can be computed at run-time."
1279 (list 'let '((cl-progv-save nil))
1280 (list 'unwind-protect
1281 (list* 'progn (list 'cl-progv-before symbols values) body)
1282 '(cl-progv-after))))
1283
1284 ;;; This should really have some way to shadow 'byte-compile properties, etc.
1285 (defmacro flet (bindings &rest body)
1286 "Make temporary function defns.
1287 This is an analogue of `let' that operates on the function cell of FUNC
1288 rather than its value cell. The FORMs are evaluated with the specified
1289 function definitions in place, then the definitions are undone (the FUNCs
1290 go back to their previous definitions, or lack thereof).
1291
1292 \(fn ((FUNC ARGLIST BODY...) ...) FORM...)"
1293 (list* 'letf*
1294 (mapcar
1295 (function
1296 (lambda (x)
1297 (if (or (and (fboundp (car x))
1298 (eq (car-safe (symbol-function (car x))) 'macro))
1299 (cdr (assq (car x) cl-macro-environment)))
1300 (error "Use `labels', not `flet', to rebind macro names"))
1301 (let ((func (list 'function*
1302 (list 'lambda (cadr x)
1303 (list* 'block (car x) (cddr x))))))
1304 (if (and (cl-compiling-file)
1305 (boundp 'byte-compile-function-environment))
1306 (push (cons (car x) (eval func))
1307 byte-compile-function-environment))
1308 (list (list 'symbol-function (list 'quote (car x))) func))))
1309 bindings)
1310 body))
1311
1312 (defmacro labels (bindings &rest body)
1313 "Make temporary func bindings.
1314 This is like `flet', except the bindings are lexical instead of dynamic.
1315 Unlike `flet', this macro is fully compliant with the Common Lisp standard.
1316
1317 \(fn ((FUNC ARGLIST BODY...) ...) FORM...)"
1318 (let ((vars nil) (sets nil) (cl-macro-environment cl-macro-environment))
1319 (while bindings
1320 (let ((var (gensym)))
1321 (push var vars)
1322 (push (list 'function* (cons 'lambda (cdar bindings))) sets)
1323 (push var sets)
1324 (push (list (car (pop bindings)) 'lambda '(&rest cl-labels-args)
1325 (list 'list* '(quote funcall) (list 'quote var)
1326 'cl-labels-args))
1327 cl-macro-environment)))
1328 (cl-macroexpand-all (list* 'lexical-let vars (cons (cons 'setq sets) body))
1329 cl-macro-environment)))
1330
1331 ;; The following ought to have a better definition for use with newer
1332 ;; byte compilers.
1333 (defmacro macrolet (bindings &rest body)
1334 "Make temporary macro defns.
1335 This is like `flet', but for macros instead of functions.
1336
1337 \(fn ((NAME ARGLIST BODY...) ...) FORM...)"
1338 (if (cdr bindings)
1339 (list 'macrolet
1340 (list (car bindings)) (list* 'macrolet (cdr bindings) body))
1341 (if (null bindings) (cons 'progn body)
1342 (let* ((name (caar bindings))
1343 (res (cl-transform-lambda (cdar bindings) name)))
1344 (eval (car res))
1345 (cl-macroexpand-all (cons 'progn body)
1346 (cons (list* name 'lambda (cdr res))
1347 cl-macro-environment))))))
1348
1349 (defmacro symbol-macrolet (bindings &rest body)
1350 "Make symbol macro defns.
1351 Within the body FORMs, references to the variable NAME will be replaced
1352 by EXPANSION, and (setq NAME ...) will act like (setf EXPANSION ...).
1353
1354 \(fn ((NAME EXPANSION) ...) FORM...)"
1355 (if (cdr bindings)
1356 (list 'symbol-macrolet
1357 (list (car bindings)) (list* 'symbol-macrolet (cdr bindings) body))
1358 (if (null bindings) (cons 'progn body)
1359 (cl-macroexpand-all (cons 'progn body)
1360 (cons (list (symbol-name (caar bindings))
1361 (cadar bindings))
1362 cl-macro-environment)))))
1363
1364 (defvar cl-closure-vars nil)
1365 (defmacro lexical-let (bindings &rest body)
1366 "Like `let', but lexically scoped.
1367 The main visible difference is that lambdas inside BODY will create
1368 lexical closures as in Common Lisp."
1369 (let* ((cl-closure-vars cl-closure-vars)
1370 (vars (mapcar (function
1371 (lambda (x)
1372 (or (consp x) (setq x (list x)))
1373 (push (gensym (format "--%s--" (car x)))
1374 cl-closure-vars)
1375 (set (car cl-closure-vars) [bad-lexical-ref])
1376 (list (car x) (cadr x) (car cl-closure-vars))))
1377 bindings))
1378 (ebody
1379 (cl-macroexpand-all
1380 (cons 'progn body)
1381 (nconc (mapcar (function (lambda (x)
1382 (list (symbol-name (car x))
1383 (list 'symbol-value (caddr x))
1384 t))) vars)
1385 (list '(defun . cl-defun-expander))
1386 cl-macro-environment))))
1387 (if (not (get (car (last cl-closure-vars)) 'used))
1388 (list 'let (mapcar (function (lambda (x)
1389 (list (caddr x) (cadr x)))) vars)
1390 (sublis (mapcar (function (lambda (x)
1391 (cons (caddr x)
1392 (list 'quote (caddr x)))))
1393 vars)
1394 ebody))
1395 (list 'let (mapcar (function (lambda (x)
1396 (list (caddr x)
1397 (list 'make-symbol
1398 (format "--%s--" (car x))))))
1399 vars)
1400 (apply 'append '(setf)
1401 (mapcar (function
1402 (lambda (x)
1403 (list (list 'symbol-value (caddr x)) (cadr x))))
1404 vars))
1405 ebody))))
1406
1407 (defmacro lexical-let* (bindings &rest body)
1408 "Like `let*', but lexically scoped.
1409 The main visible difference is that lambdas inside BODY will create
1410 lexical closures as in Common Lisp."
1411 (if (null bindings) (cons 'progn body)
1412 (setq bindings (reverse bindings))
1413 (while bindings
1414 (setq body (list (list* 'lexical-let (list (pop bindings)) body))))
1415 (car body)))
1416
1417 (defun cl-defun-expander (func &rest rest)
1418 (list 'progn
1419 (list 'defalias (list 'quote func)
1420 (list 'function (cons 'lambda rest)))
1421 (list 'quote func)))
1422
1423
1424 ;;; Multiple values.
1425
1426 (defmacro multiple-value-bind (vars form &rest body)
1427 "Collect multiple return values.
1428 FORM must return a list; the BODY is then executed with the first N elements
1429 of this list bound (`let'-style) to each of the symbols SYM in turn. This
1430 is analogous to the Common Lisp `multiple-value-bind' macro, using lists to
1431 simulate true multiple return values. For compatibility, (values A B C) is
1432 a synonym for (list A B C).
1433
1434 \(fn (SYM SYM...) FORM BODY)"
1435 (let ((temp (gensym)) (n -1))
1436 (list* 'let* (cons (list temp form)
1437 (mapcar (function
1438 (lambda (v)
1439 (list v (list 'nth (setq n (1+ n)) temp))))
1440 vars))
1441 body)))
1442
1443 (defmacro multiple-value-setq (vars form)
1444 "Collect multiple return values.
1445 FORM must return a list; the first N elements of this list are stored in
1446 each of the symbols SYM in turn. This is analogous to the Common Lisp
1447 `multiple-value-setq' macro, using lists to simulate true multiple return
1448 values. For compatibility, (values A B C) is a synonym for (list A B C).
1449
1450 \(fn (SYM SYM...) FORM)"
1451 (cond ((null vars) (list 'progn form nil))
1452 ((null (cdr vars)) (list 'setq (car vars) (list 'car form)))
1453 (t
1454 (let* ((temp (gensym)) (n 0))
1455 (list 'let (list (list temp form))
1456 (list 'prog1 (list 'setq (pop vars) (list 'car temp))
1457 (cons 'setq (apply 'nconc
1458 (mapcar (function
1459 (lambda (v)
1460 (list v (list
1461 'nth
1462 (setq n (1+ n))
1463 temp))))
1464 vars)))))))))
1465
1466
1467 ;;; Declarations.
1468
1469 (defmacro locally (&rest body) (cons 'progn body))
1470 (defmacro the (type form) form)
1471
1472 (defvar cl-proclaim-history t) ; for future compilers
1473 (defvar cl-declare-stack t) ; for future compilers
1474
1475 (defun cl-do-proclaim (spec hist)
1476 (and hist (listp cl-proclaim-history) (push spec cl-proclaim-history))
1477 (cond ((eq (car-safe spec) 'special)
1478 (if (boundp 'byte-compile-bound-variables)
1479 (setq byte-compile-bound-variables
1480 (append (cdr spec) byte-compile-bound-variables))))
1481
1482 ((eq (car-safe spec) 'inline)
1483 (while (setq spec (cdr spec))
1484 (or (memq (get (car spec) 'byte-optimizer)
1485 '(nil byte-compile-inline-expand))
1486 (error "%s already has a byte-optimizer, can't make it inline"
1487 (car spec)))
1488 (put (car spec) 'byte-optimizer 'byte-compile-inline-expand)))
1489
1490 ((eq (car-safe spec) 'notinline)
1491 (while (setq spec (cdr spec))
1492 (if (eq (get (car spec) 'byte-optimizer)
1493 'byte-compile-inline-expand)
1494 (put (car spec) 'byte-optimizer nil))))
1495
1496 ((eq (car-safe spec) 'optimize)
1497 (let ((speed (assq (nth 1 (assq 'speed (cdr spec)))
1498 '((0 nil) (1 t) (2 t) (3 t))))
1499 (safety (assq (nth 1 (assq 'safety (cdr spec)))
1500 '((0 t) (1 t) (2 t) (3 nil)))))
1501 (if speed (setq cl-optimize-speed (car speed)
1502 byte-optimize (nth 1 speed)))
1503 (if safety (setq cl-optimize-safety (car safety)
1504 byte-compile-delete-errors (nth 1 safety)))))
1505
1506 ((and (eq (car-safe spec) 'warn) (boundp 'byte-compile-warnings))
1507 (if (eq byte-compile-warnings t)
1508 (setq byte-compile-warnings byte-compile-warning-types))
1509 (while (setq spec (cdr spec))
1510 (if (consp (car spec))
1511 (if (eq (cadar spec) 0)
1512 (setq byte-compile-warnings
1513 (delq (caar spec) byte-compile-warnings))
1514 (setq byte-compile-warnings
1515 (adjoin (caar spec) byte-compile-warnings)))))))
1516 nil)
1517
1518 ;;; Process any proclamations made before cl-macs was loaded.
1519 (defvar cl-proclaims-deferred)
1520 (let ((p (reverse cl-proclaims-deferred)))
1521 (while p (cl-do-proclaim (pop p) t))
1522 (setq cl-proclaims-deferred nil))
1523
1524 (defmacro declare (&rest specs)
1525 (if (cl-compiling-file)
1526 (while specs
1527 (if (listp cl-declare-stack) (push (car specs) cl-declare-stack))
1528 (cl-do-proclaim (pop specs) nil)))
1529 nil)
1530
1531
1532
1533 ;;; Generalized variables.
1534
1535 (defmacro define-setf-method (func args &rest body)
1536 "Define a `setf' method.
1537 This method shows how to handle `setf's to places of the form (NAME ARGS...).
1538 The argument forms ARGS are bound according to ARGLIST, as if NAME were
1539 going to be expanded as a macro, then the BODY forms are executed and must
1540 return a list of five elements: a temporary-variables list, a value-forms
1541 list, a store-variables list (of length one), a store-form, and an access-
1542 form. See `defsetf' for a simpler way to define most setf-methods.
1543
1544 \(fn NAME ARGLIST BODY...)"
1545 (append '(eval-when (compile load eval))
1546 (if (stringp (car body))
1547 (list (list 'put (list 'quote func) '(quote setf-documentation)
1548 (pop body))))
1549 (list (cl-transform-function-property
1550 func 'setf-method (cons args body)))))
1551 (defalias 'define-setf-expander 'define-setf-method)
1552
1553 (defmacro defsetf (func arg1 &rest args)
1554 "(defsetf NAME FUNC): define a `setf' method.
1555 This macro is an easy-to-use substitute for `define-setf-method' that works
1556 well for simple place forms. In the simple `defsetf' form, `setf's of
1557 the form (setf (NAME ARGS...) VAL) are transformed to function or macro
1558 calls of the form (FUNC ARGS... VAL). Example: (defsetf aref aset).
1559 Alternate form: (defsetf NAME ARGLIST (STORE) BODY...).
1560 Here, the above `setf' call is expanded by binding the argument forms ARGS
1561 according to ARGLIST, binding the value form VAL to STORE, then executing
1562 BODY, which must return a Lisp form that does the necessary `setf' operation.
1563 Actually, ARGLIST and STORE may be bound to temporary variables which are
1564 introduced automatically to preserve proper execution order of the arguments.
1565 Example: (defsetf nth (n x) (v) (list 'setcar (list 'nthcdr n x) v))."
1566 (if (listp arg1)
1567 (let* ((largs nil) (largsr nil)
1568 (temps nil) (tempsr nil)
1569 (restarg nil) (rest-temps nil)
1570 (store-var (car (prog1 (car args) (setq args (cdr args)))))
1571 (store-temp (intern (format "--%s--temp--" store-var)))
1572 (lets1 nil) (lets2 nil)
1573 (docstr nil) (p arg1))
1574 (if (stringp (car args))
1575 (setq docstr (prog1 (car args) (setq args (cdr args)))))
1576 (while (and p (not (eq (car p) '&aux)))
1577 (if (eq (car p) '&rest)
1578 (setq p (cdr p) restarg (car p))
1579 (or (memq (car p) '(&optional &key &allow-other-keys))
1580 (setq largs (cons (if (consp (car p)) (car (car p)) (car p))
1581 largs)
1582 temps (cons (intern (format "--%s--temp--" (car largs)))
1583 temps))))
1584 (setq p (cdr p)))
1585 (setq largs (nreverse largs) temps (nreverse temps))
1586 (if restarg
1587 (setq largsr (append largs (list restarg))
1588 rest-temps (intern (format "--%s--temp--" restarg))
1589 tempsr (append temps (list rest-temps)))
1590 (setq largsr largs tempsr temps))
1591 (let ((p1 largs) (p2 temps))
1592 (while p1
1593 (setq lets1 (cons (list (car p2)
1594 (list 'gensym (format "--%s--" (car p1))))
1595 lets1)
1596 lets2 (cons (list (car p1) (car p2)) lets2)
1597 p1 (cdr p1) p2 (cdr p2))))
1598 (if restarg (setq lets2 (cons (list restarg rest-temps) lets2)))
1599 (append (list 'define-setf-method func arg1)
1600 (and docstr (list docstr))
1601 (list
1602 (list 'let*
1603 (nreverse
1604 (cons (list store-temp
1605 (list 'gensym (format "--%s--" store-var)))
1606 (if restarg
1607 (append
1608 (list
1609 (list rest-temps
1610 (list 'mapcar '(quote gensym)
1611 restarg)))
1612 lets1)
1613 lets1)))
1614 (list 'list ; 'values
1615 (cons (if restarg 'list* 'list) tempsr)
1616 (cons (if restarg 'list* 'list) largsr)
1617 (list 'list store-temp)
1618 (cons 'let*
1619 (cons (nreverse
1620 (cons (list store-var store-temp)
1621 lets2))
1622 args))
1623 (cons (if restarg 'list* 'list)
1624 (cons (list 'quote func) tempsr)))))))
1625 (list 'defsetf func '(&rest args) '(store)
1626 (let ((call (list 'cons (list 'quote arg1)
1627 '(append args (list store)))))
1628 (if (car args)
1629 (list 'list '(quote progn) call 'store)
1630 call)))))
1631
1632 ;;; Some standard place types from Common Lisp.
1633 (defsetf aref aset)
1634 (defsetf car setcar)
1635 (defsetf cdr setcdr)
1636 (defsetf caar (x) (val) (list 'setcar (list 'car x) val))
1637 (defsetf cadr (x) (val) (list 'setcar (list 'cdr x) val))
1638 (defsetf cdar (x) (val) (list 'setcdr (list 'car x) val))
1639 (defsetf cddr (x) (val) (list 'setcdr (list 'cdr x) val))
1640 (defsetf elt (seq n) (store)
1641 (list 'if (list 'listp seq) (list 'setcar (list 'nthcdr n seq) store)
1642 (list 'aset seq n store)))
1643 (defsetf get put)
1644 (defsetf get* (x y &optional d) (store) (list 'put x y store))
1645 (defsetf gethash (x h &optional d) (store) (list 'puthash x store h))
1646 (defsetf nth (n x) (store) (list 'setcar (list 'nthcdr n x) store))
1647 (defsetf subseq (seq start &optional end) (new)
1648 (list 'progn (list 'replace seq new :start1 start :end1 end) new))
1649 (defsetf symbol-function fset)
1650 (defsetf symbol-plist setplist)
1651 (defsetf symbol-value set)
1652
1653 ;;; Various car/cdr aliases. Note that `cadr' is handled specially.
1654 (defsetf first setcar)
1655 (defsetf second (x) (store) (list 'setcar (list 'cdr x) store))
1656 (defsetf third (x) (store) (list 'setcar (list 'cddr x) store))
1657 (defsetf fourth (x) (store) (list 'setcar (list 'cdddr x) store))
1658 (defsetf fifth (x) (store) (list 'setcar (list 'nthcdr 4 x) store))
1659 (defsetf sixth (x) (store) (list 'setcar (list 'nthcdr 5 x) store))
1660 (defsetf seventh (x) (store) (list 'setcar (list 'nthcdr 6 x) store))
1661 (defsetf eighth (x) (store) (list 'setcar (list 'nthcdr 7 x) store))
1662 (defsetf ninth (x) (store) (list 'setcar (list 'nthcdr 8 x) store))
1663 (defsetf tenth (x) (store) (list 'setcar (list 'nthcdr 9 x) store))
1664 (defsetf rest setcdr)
1665
1666 ;;; Some more Emacs-related place types.
1667 (defsetf buffer-file-name set-visited-file-name t)
1668 (defsetf buffer-modified-p (&optional buf) (flag)
1669 (list 'with-current-buffer buf
1670 (list 'set-buffer-modified-p flag)))
1671 (defsetf buffer-name rename-buffer t)
1672 (defsetf buffer-string () (store)
1673 (list 'progn '(erase-buffer) (list 'insert store)))
1674 (defsetf buffer-substring cl-set-buffer-substring)
1675 (defsetf current-buffer set-buffer)
1676 (defsetf current-case-table set-case-table)
1677 (defsetf current-column move-to-column t)
1678 (defsetf current-global-map use-global-map t)
1679 (defsetf current-input-mode () (store)
1680 (list 'progn (list 'apply 'set-input-mode store) store))
1681 (defsetf current-local-map use-local-map t)
1682 (defsetf current-window-configuration set-window-configuration t)
1683 (defsetf default-file-modes set-default-file-modes t)
1684 (defsetf default-value set-default)
1685 (defsetf documentation-property put)
1686 (defsetf extent-data set-extent-data)
1687 (defsetf extent-face set-extent-face)
1688 (defsetf extent-priority set-extent-priority)
1689 (defsetf extent-end-position (ext) (store)
1690 (list 'progn (list 'set-extent-endpoints (list 'extent-start-position ext)
1691 store) store))
1692 (defsetf extent-start-position (ext) (store)
1693 (list 'progn (list 'set-extent-endpoints store
1694 (list 'extent-end-position ext)) store))
1695 (defsetf face-background (f &optional s) (x) (list 'set-face-background f x s))
1696 (defsetf face-background-pixmap (f &optional s) (x)
1697 (list 'set-face-background-pixmap f x s))
1698 (defsetf face-font (f &optional s) (x) (list 'set-face-font f x s))
1699 (defsetf face-foreground (f &optional s) (x) (list 'set-face-foreground f x s))
1700 (defsetf face-underline-p (f &optional s) (x)
1701 (list 'set-face-underline-p f x s))
1702 (defsetf file-modes set-file-modes t)
1703 (defsetf frame-height set-screen-height t)
1704 (defsetf frame-parameters modify-frame-parameters t)
1705 (defsetf frame-visible-p cl-set-frame-visible-p)
1706 (defsetf frame-width set-screen-width t)
1707 (defsetf frame-parameter set-frame-parameter)
1708 (defsetf getenv setenv t)
1709 (defsetf get-register set-register)
1710 (defsetf global-key-binding global-set-key)
1711 (defsetf keymap-parent set-keymap-parent)
1712 (defsetf local-key-binding local-set-key)
1713 (defsetf mark set-mark t)
1714 (defsetf mark-marker set-mark t)
1715 (defsetf marker-position set-marker t)
1716 (defsetf match-data set-match-data t)
1717 (defsetf mouse-position (scr) (store)
1718 (list 'set-mouse-position scr (list 'car store) (list 'cadr store)
1719 (list 'cddr store)))
1720 (defsetf overlay-get overlay-put)
1721 (defsetf overlay-start (ov) (store)
1722 (list 'progn (list 'move-overlay ov store (list 'overlay-end ov)) store))
1723 (defsetf overlay-end (ov) (store)
1724 (list 'progn (list 'move-overlay ov (list 'overlay-start ov) store) store))
1725 (defsetf point goto-char)
1726 (defsetf point-marker goto-char t)
1727 (defsetf point-max () (store)
1728 (list 'progn (list 'narrow-to-region '(point-min) store) store))
1729 (defsetf point-min () (store)
1730 (list 'progn (list 'narrow-to-region store '(point-max)) store))
1731 (defsetf process-buffer set-process-buffer)
1732 (defsetf process-filter set-process-filter)
1733 (defsetf process-sentinel set-process-sentinel)
1734 (defsetf process-get process-put)
1735 (defsetf read-mouse-position (scr) (store)
1736 (list 'set-mouse-position scr (list 'car store) (list 'cdr store)))
1737 (defsetf screen-height set-screen-height t)
1738 (defsetf screen-width set-screen-width t)
1739 (defsetf selected-window select-window)
1740 (defsetf selected-screen select-screen)
1741 (defsetf selected-frame select-frame)
1742 (defsetf standard-case-table set-standard-case-table)
1743 (defsetf syntax-table set-syntax-table)
1744 (defsetf visited-file-modtime set-visited-file-modtime t)
1745 (defsetf window-buffer set-window-buffer t)
1746 (defsetf window-display-table set-window-display-table t)
1747 (defsetf window-dedicated-p set-window-dedicated-p t)
1748 (defsetf window-height () (store)
1749 (list 'progn (list 'enlarge-window (list '- store '(window-height))) store))
1750 (defsetf window-hscroll set-window-hscroll)
1751 (defsetf window-point set-window-point)
1752 (defsetf window-start set-window-start)
1753 (defsetf window-width () (store)
1754 (list 'progn (list 'enlarge-window (list '- store '(window-width)) t) store))
1755 (defsetf x-get-cutbuffer x-store-cutbuffer t)
1756 (defsetf x-get-cut-buffer x-store-cut-buffer t) ; groan.
1757 (defsetf x-get-secondary-selection x-own-secondary-selection t)
1758 (defsetf x-get-selection x-own-selection t)
1759
1760 ;;; More complex setf-methods.
1761 ;;; These should take &environment arguments, but since full arglists aren't
1762 ;;; available while compiling cl-macs, we fake it by referring to the global
1763 ;;; variable cl-macro-environment directly.
1764
1765 (define-setf-method apply (func arg1 &rest rest)
1766 (or (and (memq (car-safe func) '(quote function function*))
1767 (symbolp (car-safe (cdr-safe func))))
1768 (error "First arg to apply in setf is not (function SYM): %s" func))
1769 (let* ((form (cons (nth 1 func) (cons arg1 rest)))
1770 (method (get-setf-method form cl-macro-environment)))
1771 (list (car method) (nth 1 method) (nth 2 method)
1772 (cl-setf-make-apply (nth 3 method) (cadr func) (car method))
1773 (cl-setf-make-apply (nth 4 method) (cadr func) (car method)))))
1774
1775 (defun cl-setf-make-apply (form func temps)
1776 (if (eq (car form) 'progn)
1777 (list* 'progn (cl-setf-make-apply (cadr form) func temps) (cddr form))
1778 (or (equal (last form) (last temps))
1779 (error "%s is not suitable for use with setf-of-apply" func))
1780 (list* 'apply (list 'quote (car form)) (cdr form))))
1781
1782 (define-setf-method nthcdr (n place)
1783 (let ((method (get-setf-method place cl-macro-environment))
1784 (n-temp (gensym "--nthcdr-n--"))
1785 (store-temp (gensym "--nthcdr-store--")))
1786 (list (cons n-temp (car method))
1787 (cons n (nth 1 method))
1788 (list store-temp)
1789 (list 'let (list (list (car (nth 2 method))
1790 (list 'cl-set-nthcdr n-temp (nth 4 method)
1791 store-temp)))
1792 (nth 3 method) store-temp)
1793 (list 'nthcdr n-temp (nth 4 method)))))
1794
1795 (define-setf-method getf (place tag &optional def)
1796 (let ((method (get-setf-method place cl-macro-environment))
1797 (tag-temp (gensym "--getf-tag--"))
1798 (def-temp (gensym "--getf-def--"))
1799 (store-temp (gensym "--getf-store--")))
1800 (list (append (car method) (list tag-temp def-temp))
1801 (append (nth 1 method) (list tag def))
1802 (list store-temp)
1803 (list 'let (list (list (car (nth 2 method))
1804 (list 'cl-set-getf (nth 4 method)
1805 tag-temp store-temp)))
1806 (nth 3 method) store-temp)
1807 (list 'getf (nth 4 method) tag-temp def-temp))))
1808
1809 (define-setf-method substring (place from &optional to)
1810 (let ((method (get-setf-method place cl-macro-environment))
1811 (from-temp (gensym "--substring-from--"))
1812 (to-temp (gensym "--substring-to--"))
1813 (store-temp (gensym "--substring-store--")))
1814 (list (append (car method) (list from-temp to-temp))
1815 (append (nth 1 method) (list from to))
1816 (list store-temp)
1817 (list 'let (list (list (car (nth 2 method))
1818 (list 'cl-set-substring (nth 4 method)
1819 from-temp to-temp store-temp)))
1820 (nth 3 method) store-temp)
1821 (list 'substring (nth 4 method) from-temp to-temp))))
1822
1823 ;;; Getting and optimizing setf-methods.
1824 (defun get-setf-method (place &optional env)
1825 "Return a list of five values describing the setf-method for PLACE.
1826 PLACE may be any Lisp form which can appear as the PLACE argument to
1827 a macro like `setf' or `incf'."
1828 (if (symbolp place)
1829 (let ((temp (gensym "--setf--")))
1830 (list nil nil (list temp) (list 'setq place temp) place))
1831 (or (and (symbolp (car place))
1832 (let* ((func (car place))
1833 (name (symbol-name func))
1834 (method (get func 'setf-method))
1835 (case-fold-search nil))
1836 (or (and method
1837 (let ((cl-macro-environment env))
1838 (setq method (apply method (cdr place))))
1839 (if (and (consp method) (= (length method) 5))
1840 method
1841 (error "Setf-method for %s returns malformed method"
1842 func)))
1843 (and (save-match-data
1844 (string-match "\\`c[ad][ad][ad]?[ad]?r\\'" name))
1845 (get-setf-method (compiler-macroexpand place)))
1846 (and (eq func 'edebug-after)
1847 (get-setf-method (nth (1- (length place)) place)
1848 env)))))
1849 (if (eq place (setq place (macroexpand place env)))
1850 (if (and (symbolp (car place)) (fboundp (car place))
1851 (symbolp (symbol-function (car place))))
1852 (get-setf-method (cons (symbol-function (car place))
1853 (cdr place)) env)
1854 (error "No setf-method known for %s" (car place)))
1855 (get-setf-method place env)))))
1856
1857 (defun cl-setf-do-modify (place opt-expr)
1858 (let* ((method (get-setf-method place cl-macro-environment))
1859 (temps (car method)) (values (nth 1 method))
1860 (lets nil) (subs nil)
1861 (optimize (and (not (eq opt-expr 'no-opt))
1862 (or (and (not (eq opt-expr 'unsafe))
1863 (cl-safe-expr-p opt-expr))
1864 (cl-setf-simple-store-p (car (nth 2 method))
1865 (nth 3 method)))))
1866 (simple (and optimize (consp place) (cl-simple-exprs-p (cdr place)))))
1867 (while values
1868 (if (or simple (cl-const-expr-p (car values)))
1869 (push (cons (pop temps) (pop values)) subs)
1870 (push (list (pop temps) (pop values)) lets)))
1871 (list (nreverse lets)
1872 (cons (car (nth 2 method)) (sublis subs (nth 3 method)))
1873 (sublis subs (nth 4 method)))))
1874
1875 (defun cl-setf-do-store (spec val)
1876 (let ((sym (car spec))
1877 (form (cdr spec)))
1878 (if (or (cl-const-expr-p val)
1879 (and (cl-simple-expr-p val) (eq (cl-expr-contains form sym) 1))
1880 (cl-setf-simple-store-p sym form))
1881 (subst val sym form)
1882 (list 'let (list (list sym val)) form))))
1883
1884 (defun cl-setf-simple-store-p (sym form)
1885 (and (consp form) (eq (cl-expr-contains form sym) 1)
1886 (eq (nth (1- (length form)) form) sym)
1887 (symbolp (car form)) (fboundp (car form))
1888 (not (eq (car-safe (symbol-function (car form))) 'macro))))
1889
1890 ;;; The standard modify macros.
1891 (defmacro setf (&rest args)
1892 "Set each PLACE to the value of its VAL.
1893 This is a generalized version of `setq'; the PLACEs may be symbolic
1894 references such as (car x) or (aref x i), as well as plain symbols.
1895 For example, (setf (cadar x) y) is equivalent to (setcar (cdar x) y).
1896 The return value is the last VAL in the list.
1897
1898 \(fn PLACE VAL PLACE VAL ...)"
1899 (if (cdr (cdr args))
1900 (let ((sets nil))
1901 (while args (push (list 'setf (pop args) (pop args)) sets))
1902 (cons 'progn (nreverse sets)))
1903 (if (symbolp (car args))
1904 (and args (cons 'setq args))
1905 (let* ((method (cl-setf-do-modify (car args) (nth 1 args)))
1906 (store (cl-setf-do-store (nth 1 method) (nth 1 args))))
1907 (if (car method) (list 'let* (car method) store) store)))))
1908
1909 (defmacro psetf (&rest args)
1910 "Set PLACEs to the values VALs in parallel.
1911 This is like `setf', except that all VAL forms are evaluated (in order)
1912 before assigning any PLACEs to the corresponding values.
1913
1914 \(fn PLACE VAL PLACE VAL ...)"
1915 (let ((p args) (simple t) (vars nil))
1916 (while p
1917 (if (or (not (symbolp (car p))) (cl-expr-depends-p (nth 1 p) vars))
1918 (setq simple nil))
1919 (if (memq (car p) vars)
1920 (error "Destination duplicated in psetf: %s" (car p)))
1921 (push (pop p) vars)
1922 (or p (error "Odd number of arguments to psetf"))
1923 (pop p))
1924 (if simple
1925 (list 'progn (cons 'setf args) nil)
1926 (setq args (reverse args))
1927 (let ((expr (list 'setf (cadr args) (car args))))
1928 (while (setq args (cddr args))
1929 (setq expr (list 'setf (cadr args) (list 'prog1 (car args) expr))))
1930 (list 'progn expr nil)))))
1931
1932 (defun cl-do-pop (place)
1933 (if (cl-simple-expr-p place)
1934 (list 'prog1 (list 'car place) (list 'setf place (list 'cdr place)))
1935 (let* ((method (cl-setf-do-modify place t))
1936 (temp (gensym "--pop--")))
1937 (list 'let*
1938 (append (car method)
1939 (list (list temp (nth 2 method))))
1940 (list 'prog1
1941 (list 'car temp)
1942 (cl-setf-do-store (nth 1 method) (list 'cdr temp)))))))
1943
1944 (defmacro remf (place tag)
1945 "Remove TAG from property list PLACE.
1946 PLACE may be a symbol, or any generalized variable allowed by `setf'.
1947 The form returns true if TAG was found and removed, nil otherwise."
1948 (let* ((method (cl-setf-do-modify place t))
1949 (tag-temp (and (not (cl-const-expr-p tag)) (gensym "--remf-tag--")))
1950 (val-temp (and (not (cl-simple-expr-p place))
1951 (gensym "--remf-place--")))
1952 (ttag (or tag-temp tag))
1953 (tval (or val-temp (nth 2 method))))
1954 (list 'let*
1955 (append (car method)
1956 (and val-temp (list (list val-temp (nth 2 method))))
1957 (and tag-temp (list (list tag-temp tag))))
1958 (list 'if (list 'eq ttag (list 'car tval))
1959 (list 'progn
1960 (cl-setf-do-store (nth 1 method) (list 'cddr tval))
1961 t)
1962 (list 'cl-do-remf tval ttag)))))
1963
1964 (defmacro shiftf (place &rest args)
1965 "Shift left among PLACEs.
1966 Example: (shiftf A B C) sets A to B, B to C, and returns the old A.
1967 Each PLACE may be a symbol, or any generalized variable allowed by `setf'.
1968
1969 \(fn PLACE PLACE... VAL)"
1970 (cond
1971 ((null args) place)
1972 ((symbolp place) `(prog1 ,place (setq ,place (shiftf ,@args))))
1973 (t
1974 (let ((method (cl-setf-do-modify place 'unsafe)))
1975 `(let* ,(car method)
1976 (prog1 ,(nth 2 method)
1977 ,(cl-setf-do-store (nth 1 method) `(shiftf ,@args))))))))
1978
1979 (defmacro rotatef (&rest args)
1980 "Rotate left among PLACEs.
1981 Example: (rotatef A B C) sets A to B, B to C, and C to A. It returns nil.
1982 Each PLACE may be a symbol, or any generalized variable allowed by `setf'.
1983
1984 \(fn PLACE...)"
1985 (if (not (memq nil (mapcar 'symbolp args)))
1986 (and (cdr args)
1987 (let ((sets nil)
1988 (first (car args)))
1989 (while (cdr args)
1990 (setq sets (nconc sets (list (pop args) (car args)))))
1991 (nconc (list 'psetf) sets (list (car args) first))))
1992 (let* ((places (reverse args))
1993 (temp (gensym "--rotatef--"))
1994 (form temp))
1995 (while (cdr places)
1996 (let ((method (cl-setf-do-modify (pop places) 'unsafe)))
1997 (setq form (list 'let* (car method)
1998 (list 'prog1 (nth 2 method)
1999 (cl-setf-do-store (nth 1 method) form))))))
2000 (let ((method (cl-setf-do-modify (car places) 'unsafe)))
2001 (list 'let* (append (car method) (list (list temp (nth 2 method))))
2002 (cl-setf-do-store (nth 1 method) form) nil)))))
2003
2004 (defmacro letf (bindings &rest body)
2005 "Temporarily bind to PLACEs.
2006 This is the analogue of `let', but with generalized variables (in the
2007 sense of `setf') for the PLACEs. Each PLACE is set to the corresponding
2008 VALUE, then the BODY forms are executed. On exit, either normally or
2009 because of a `throw' or error, the PLACEs are set back to their original
2010 values. Note that this macro is *not* available in Common Lisp.
2011 As a special case, if `(PLACE)' is used instead of `(PLACE VALUE)',
2012 the PLACE is not modified before executing BODY.
2013
2014 \(fn ((PLACE VALUE) ...) BODY...)"
2015 (if (and (not (cdr bindings)) (cdar bindings) (symbolp (caar bindings)))
2016 (list* 'let bindings body)
2017 (let ((lets nil) (sets nil)
2018 (unsets nil) (rev (reverse bindings)))
2019 (while rev
2020 (let* ((place (if (symbolp (caar rev))
2021 (list 'symbol-value (list 'quote (caar rev)))
2022 (caar rev)))
2023 (value (cadar rev))
2024 (method (cl-setf-do-modify place 'no-opt))
2025 (save (gensym "--letf-save--"))
2026 (bound (and (memq (car place) '(symbol-value symbol-function))
2027 (gensym "--letf-bound--")))
2028 (temp (and (not (cl-const-expr-p value)) (cdr bindings)
2029 (gensym "--letf-val--"))))
2030 (setq lets (nconc (car method)
2031 (if bound
2032 (list (list bound
2033 (list (if (eq (car place)
2034 'symbol-value)
2035 'boundp 'fboundp)
2036 (nth 1 (nth 2 method))))
2037 (list save (list 'and bound
2038 (nth 2 method))))
2039 (list (list save (nth 2 method))))
2040 (and temp (list (list temp value)))
2041 lets)
2042 body (list
2043 (list 'unwind-protect
2044 (cons 'progn
2045 (if (cdr (car rev))
2046 (cons (cl-setf-do-store (nth 1 method)
2047 (or temp value))
2048 body)
2049 body))
2050 (if bound
2051 (list 'if bound
2052 (cl-setf-do-store (nth 1 method) save)
2053 (list (if (eq (car place) 'symbol-value)
2054 'makunbound 'fmakunbound)
2055 (nth 1 (nth 2 method))))
2056 (cl-setf-do-store (nth 1 method) save))))
2057 rev (cdr rev))))
2058 (list* 'let* lets body))))
2059
2060 (defmacro letf* (bindings &rest body)
2061 "Temporarily bind to PLACEs.
2062 This is the analogue of `let*', but with generalized variables (in the
2063 sense of `setf') for the PLACEs. Each PLACE is set to the corresponding
2064 VALUE, then the BODY forms are executed. On exit, either normally or
2065 because of a `throw' or error, the PLACEs are set back to their original
2066 values. Note that this macro is *not* available in Common Lisp.
2067 As a special case, if `(PLACE)' is used instead of `(PLACE VALUE)',
2068 the PLACE is not modified before executing BODY.
2069
2070 \(fn ((PLACE VALUE) ...) BODY...)"
2071 (if (null bindings)
2072 (cons 'progn body)
2073 (setq bindings (reverse bindings))
2074 (while bindings
2075 (setq body (list (list* 'letf (list (pop bindings)) body))))
2076 (car body)))
2077
2078 (defmacro callf (func place &rest args)
2079 "Set PLACE to (FUNC PLACE ARGS...).
2080 FUNC should be an unquoted function name. PLACE may be a symbol,
2081 or any generalized variable allowed by `setf'.
2082
2083 \(fn FUNC PLACE ARGS...)"
2084 (let* ((method (cl-setf-do-modify place (cons 'list args)))
2085 (rargs (cons (nth 2 method) args)))
2086 (list 'let* (car method)
2087 (cl-setf-do-store (nth 1 method)
2088 (if (symbolp func) (cons func rargs)
2089 (list* 'funcall (list 'function func)
2090 rargs))))))
2091
2092 (defmacro callf2 (func arg1 place &rest args)
2093 "Set PLACE to (FUNC ARG1 PLACE ARGS...).
2094 Like `callf', but PLACE is the second argument of FUNC, not the first.
2095
2096 \(fn FUNC ARG1 PLACE ARGS...)"
2097 (if (and (cl-safe-expr-p arg1) (cl-simple-expr-p place) (symbolp func))
2098 (list 'setf place (list* func arg1 place args))
2099 (let* ((method (cl-setf-do-modify place (cons 'list args)))
2100 (temp (and (not (cl-const-expr-p arg1)) (gensym "--arg1--")))
2101 (rargs (list* (or temp arg1) (nth 2 method) args)))
2102 (list 'let* (append (and temp (list (list temp arg1))) (car method))
2103 (cl-setf-do-store (nth 1 method)
2104 (if (symbolp func) (cons func rargs)
2105 (list* 'funcall (list 'function func)
2106 rargs)))))))
2107
2108 (defmacro define-modify-macro (name arglist func &optional doc)
2109 "Define a `setf'-like modify macro.
2110 If NAME is called, it combines its PLACE argument with the other arguments
2111 from ARGLIST using FUNC: (define-modify-macro incf (&optional (n 1)) +)"
2112 (if (memq '&key arglist) (error "&key not allowed in define-modify-macro"))
2113 (let ((place (gensym "--place--")))
2114 (list 'defmacro* name (cons place arglist) doc
2115 (list* (if (memq '&rest arglist) 'list* 'list)
2116 '(quote callf) (list 'quote func) place
2117 (cl-arglist-args arglist)))))
2118
2119
2120 ;;; Structures.
2121
2122 (defmacro defstruct (struct &rest descs)
2123 "Define a struct type.
2124 This macro defines a new Lisp data type called NAME, which contains data
2125 stored in SLOTs. This defines a `make-NAME' constructor, a `copy-NAME'
2126 copier, a `NAME-p' predicate, and setf-able `NAME-SLOT' accessors.
2127
2128 \(fn (NAME OPTIONS...) (SLOT SLOT-OPTS...)...)"
2129 (let* ((name (if (consp struct) (car struct) struct))
2130 (opts (cdr-safe struct))
2131 (slots nil)
2132 (defaults nil)
2133 (conc-name (concat (symbol-name name) "-"))
2134 (constructor (intern (format "make-%s" name)))
2135 (constrs nil)
2136 (copier (intern (format "copy-%s" name)))
2137 (predicate (intern (format "%s-p" name)))
2138 (print-func nil) (print-auto nil)
2139 (safety (if (cl-compiling-file) cl-optimize-safety 3))
2140 (include nil)
2141 (tag (intern (format "cl-struct-%s" name)))
2142 (tag-symbol (intern (format "cl-struct-%s-tags" name)))
2143 (include-descs nil)
2144 (side-eff nil)
2145 (type nil)
2146 (named nil)
2147 (forms nil)
2148 pred-form pred-check)
2149 (if (stringp (car descs))
2150 (push (list 'put (list 'quote name) '(quote structure-documentation)
2151 (pop descs)) forms))
2152 (setq descs (cons '(cl-tag-slot)
2153 (mapcar (function (lambda (x) (if (consp x) x (list x))))
2154 descs)))
2155 (while opts
2156 (let ((opt (if (consp (car opts)) (caar opts) (car opts)))
2157 (args (cdr-safe (pop opts))))
2158 (cond ((eq opt :conc-name)
2159 (if args
2160 (setq conc-name (if (car args)
2161 (symbol-name (car args)) ""))))
2162 ((eq opt :constructor)
2163 (if (cdr args)
2164 (push args constrs)
2165 (if args (setq constructor (car args)))))
2166 ((eq opt :copier)
2167 (if args (setq copier (car args))))
2168 ((eq opt :predicate)
2169 (if args (setq predicate (car args))))
2170 ((eq opt :include)
2171 (setq include (car args)
2172 include-descs (mapcar (function
2173 (lambda (x)
2174 (if (consp x) x (list x))))
2175 (cdr args))))
2176 ((eq opt :print-function)
2177 (setq print-func (car args)))
2178 ((eq opt :type)
2179 (setq type (car args)))
2180 ((eq opt :named)
2181 (setq named t))
2182 ((eq opt :initial-offset)
2183 (setq descs (nconc (make-list (car args) '(cl-skip-slot))
2184 descs)))
2185 (t
2186 (error "Slot option %s unrecognized" opt)))))
2187 (if print-func
2188 (setq print-func (list 'progn
2189 (list 'funcall (list 'function print-func)
2190 'cl-x 'cl-s 'cl-n) t))
2191 (or type (and include (not (get include 'cl-struct-print)))
2192 (setq print-auto t
2193 print-func (and (or (not (or include type)) (null print-func))
2194 (list 'progn
2195 (list 'princ (format "#S(%s" name)
2196 'cl-s))))))
2197 (if include
2198 (let ((inc-type (get include 'cl-struct-type))
2199 (old-descs (get include 'cl-struct-slots)))
2200 (or inc-type (error "%s is not a struct name" include))
2201 (and type (not (eq (car inc-type) type))
2202 (error ":type disagrees with :include for %s" name))
2203 (while include-descs
2204 (setcar (memq (or (assq (caar include-descs) old-descs)
2205 (error "No slot %s in included struct %s"
2206 (caar include-descs) include))
2207 old-descs)
2208 (pop include-descs)))
2209 (setq descs (append old-descs (delq (assq 'cl-tag-slot descs) descs))
2210 type (car inc-type)
2211 named (assq 'cl-tag-slot descs))
2212 (if (cadr inc-type) (setq tag name named t))
2213 (let ((incl include))
2214 (while incl
2215 (push (list 'pushnew (list 'quote tag)
2216 (intern (format "cl-struct-%s-tags" incl)))
2217 forms)
2218 (setq incl (get incl 'cl-struct-include)))))
2219 (if type
2220 (progn
2221 (or (memq type '(vector list))
2222 (error "Illegal :type specifier: %s" type))
2223 (if named (setq tag name)))
2224 (setq type 'vector named 'true)))
2225 (or named (setq descs (delq (assq 'cl-tag-slot descs) descs)))
2226 (push (list 'defvar tag-symbol) forms)
2227 (setq pred-form (and named
2228 (let ((pos (- (length descs)
2229 (length (memq (assq 'cl-tag-slot descs)
2230 descs)))))
2231 (if (eq type 'vector)
2232 (list 'and '(vectorp cl-x)
2233 (list '>= '(length cl-x) (length descs))
2234 (list 'memq (list 'aref 'cl-x pos)
2235 tag-symbol))
2236 (if (= pos 0)
2237 (list 'memq '(car-safe cl-x) tag-symbol)
2238 (list 'and '(consp cl-x)
2239 (list 'memq (list 'nth pos 'cl-x)
2240 tag-symbol))))))
2241 pred-check (and pred-form (> safety 0)
2242 (if (and (eq (caadr pred-form) 'vectorp)
2243 (= safety 1))
2244 (cons 'and (cdddr pred-form)) pred-form)))
2245 (let ((pos 0) (descp descs))
2246 (while descp
2247 (let* ((desc (pop descp))
2248 (slot (car desc)))
2249 (if (memq slot '(cl-tag-slot cl-skip-slot))
2250 (progn
2251 (push nil slots)
2252 (push (and (eq slot 'cl-tag-slot) (list 'quote tag))
2253 defaults))
2254 (if (assq slot descp)
2255 (error "Duplicate slots named %s in %s" slot name))
2256 (let ((accessor (intern (format "%s%s" conc-name slot))))
2257 (push slot slots)
2258 (push (nth 1 desc) defaults)
2259 (push (list*
2260 'defsubst* accessor '(cl-x)
2261 (append
2262 (and pred-check
2263 (list (list 'or pred-check
2264 (list 'error
2265 (format "%s accessing a non-%s"
2266 accessor name)))))
2267 (list (if (eq type 'vector) (list 'aref 'cl-x pos)
2268 (if (= pos 0) '(car cl-x)
2269 (list 'nth pos 'cl-x)))))) forms)
2270 (push (cons accessor t) side-eff)
2271 (push (list 'define-setf-method accessor '(cl-x)
2272 (if (cadr (memq :read-only (cddr desc)))
2273 (list 'error (format "%s is a read-only slot"
2274 accessor))
2275 (list 'cl-struct-setf-expander 'cl-x
2276 (list 'quote name) (list 'quote accessor)
2277 (and pred-check (list 'quote pred-check))
2278 pos)))
2279 forms)
2280 (if print-auto
2281 (nconc print-func
2282 (list (list 'princ (format " %s" slot) 'cl-s)
2283 (list 'prin1 (list accessor 'cl-x) 'cl-s)))))))
2284 (setq pos (1+ pos))))
2285 (setq slots (nreverse slots)
2286 defaults (nreverse defaults))
2287 (and predicate pred-form
2288 (progn (push (list 'defsubst* predicate '(cl-x)
2289 (if (eq (car pred-form) 'and)
2290 (append pred-form '(t))
2291 (list 'and pred-form t))) forms)
2292 (push (cons predicate 'error-free) side-eff)))
2293 (and copier
2294 (progn (push (list 'defun copier '(x) '(copy-sequence x)) forms)
2295 (push (cons copier t) side-eff)))
2296 (if constructor
2297 (push (list constructor
2298 (cons '&key (delq nil (copy-sequence slots))))
2299 constrs))
2300 (while constrs
2301 (let* ((name (caar constrs))
2302 (args (cadr (pop constrs)))
2303 (anames (cl-arglist-args args))
2304 (make (mapcar* (function (lambda (s d) (if (memq s anames) s d)))
2305 slots defaults)))
2306 (push (list 'defsubst* name
2307 (list* '&cl-defs (list 'quote (cons nil descs)) args)
2308 (cons type make)) forms)
2309 (if (cl-safe-expr-p (cons 'progn (mapcar 'second descs)))
2310 (push (cons name t) side-eff))))
2311 (if print-auto (nconc print-func (list '(princ ")" cl-s) t)))
2312 (if print-func
2313 (push (list 'push
2314 (list 'function
2315 (list 'lambda '(cl-x cl-s cl-n)
2316 (list 'and pred-form print-func)))
2317 'custom-print-functions) forms))
2318 (push (list 'setq tag-symbol (list 'list (list 'quote tag))) forms)
2319 (push (list* 'eval-when '(compile load eval)
2320 (list 'put (list 'quote name) '(quote cl-struct-slots)
2321 (list 'quote descs))
2322 (list 'put (list 'quote name) '(quote cl-struct-type)
2323 (list 'quote (list type (eq named t))))
2324 (list 'put (list 'quote name) '(quote cl-struct-include)
2325 (list 'quote include))
2326 (list 'put (list 'quote name) '(quote cl-struct-print)
2327 print-auto)
2328 (mapcar (function (lambda (x)
2329 (list 'put (list 'quote (car x))
2330 '(quote side-effect-free)
2331 (list 'quote (cdr x)))))
2332 side-eff))
2333 forms)
2334 (cons 'progn (nreverse (cons (list 'quote name) forms)))))
2335
2336 (defun cl-struct-setf-expander (x name accessor pred-form pos)
2337 (let* ((temp (gensym "--x--")) (store (gensym "--store--")))
2338 (list (list temp) (list x) (list store)
2339 (append '(progn)
2340 (and pred-form
2341 (list (list 'or (subst temp 'cl-x pred-form)
2342 (list 'error
2343 (format
2344 "%s storing a non-%s" accessor name)))))
2345 (list (if (eq (car (get name 'cl-struct-type)) 'vector)
2346 (list 'aset temp pos store)
2347 (list 'setcar
2348 (if (<= pos 5)
2349 (let ((xx temp))
2350 (while (>= (setq pos (1- pos)) 0)
2351 (setq xx (list 'cdr xx)))
2352 xx)
2353 (list 'nthcdr pos temp))
2354 store))))
2355 (list accessor temp))))
2356
2357
2358 ;;; Types and assertions.
2359
2360 (defmacro deftype (name arglist &rest body)
2361 "Define NAME as a new data type.
2362 The type name can then be used in `typecase', `check-type', etc."
2363 (list 'eval-when '(compile load eval)
2364 (cl-transform-function-property
2365 name 'cl-deftype-handler (cons (list* '&cl-defs ''('*) arglist) body))))
2366
2367 (defun cl-make-type-test (val type)
2368 (if (symbolp type)
2369 (cond ((get type 'cl-deftype-handler)
2370 (cl-make-type-test val (funcall (get type 'cl-deftype-handler))))
2371 ((memq type '(nil t)) type)
2372 ((eq type 'null) `(null ,val))
2373 ((eq type 'float) `(floatp-safe ,val))
2374 ((eq type 'real) `(numberp ,val))
2375 ((eq type 'fixnum) `(integerp ,val))
2376 ;; FIXME: Should `character' accept things like ?\C-\M-a ? -stef
2377 ((memq type '(character string-char)) `(characterp ,val))
2378 (t
2379 (let* ((name (symbol-name type))
2380 (namep (intern (concat name "p"))))
2381 (if (fboundp namep) (list namep val)
2382 (list (intern (concat name "-p")) val)))))
2383 (cond ((get (car type) 'cl-deftype-handler)
2384 (cl-make-type-test val (apply (get (car type) 'cl-deftype-handler)
2385 (cdr type))))
2386 ((memq (car type) '(integer float real number))
2387 (delq t (and (cl-make-type-test val (car type))
2388 (if (memq (cadr type) '(* nil)) t
2389 (if (consp (cadr type)) (list '> val (caadr type))
2390 (list '>= val (cadr type))))
2391 (if (memq (caddr type) '(* nil)) t
2392 (if (consp (caddr type)) (list '< val (caaddr type))
2393 (list '<= val (caddr type)))))))
2394 ((memq (car type) '(and or not))
2395 (cons (car type)
2396 (mapcar (function (lambda (x) (cl-make-type-test val x)))
2397 (cdr type))))
2398 ((memq (car type) '(member member*))
2399 (list 'and (list 'member* val (list 'quote (cdr type))) t))
2400 ((eq (car type) 'satisfies) (list (cadr type) val))
2401 (t (error "Bad type spec: %s" type)))))
2402
2403 (defun typep (object type) ; See compiler macro below.
2404 "Check that OBJECT is of type TYPE.
2405 TYPE is a Common Lisp-style type specifier."
2406 (eval (cl-make-type-test 'object type)))
2407
2408 (defmacro check-type (form type &optional string)
2409 "Verify that FORM is of type TYPE; signal an error if not.
2410 STRING is an optional description of the desired type."
2411 (and (or (not (cl-compiling-file))
2412 (< cl-optimize-speed 3) (= cl-optimize-safety 3))
2413 (let* ((temp (if (cl-simple-expr-p form 3) form (gensym)))
2414 (body (list 'or (cl-make-type-test temp type)
2415 (list 'signal '(quote wrong-type-argument)
2416 (list 'list (or string (list 'quote type))
2417 temp (list 'quote form))))))
2418 (if (eq temp form) (list 'progn body nil)
2419 (list 'let (list (list temp form)) body nil)))))
2420
2421 (defmacro assert (form &optional show-args string &rest args)
2422 "Verify that FORM returns non-nil; signal an error if not.
2423 Second arg SHOW-ARGS means to include arguments of FORM in message.
2424 Other args STRING and ARGS... are arguments to be passed to `error'.
2425 They are not evaluated unless the assertion fails. If STRING is
2426 omitted, a default message listing FORM itself is used."
2427 (and (or (not (cl-compiling-file))
2428 (< cl-optimize-speed 3) (= cl-optimize-safety 3))
2429 (let ((sargs (and show-args (delq nil (mapcar
2430 (function
2431 (lambda (x)
2432 (and (not (cl-const-expr-p x))
2433 x))) (cdr form))))))
2434 (list 'progn
2435 (list 'or form
2436 (if string
2437 (list* 'error string (append sargs args))
2438 (list 'signal '(quote cl-assertion-failed)
2439 (list* 'list (list 'quote form) sargs))))
2440 nil))))
2441
2442 (defmacro ignore-errors (&rest body)
2443 "Execute BODY; if an error occurs, return nil.
2444 Otherwise, return result of last form in BODY."
2445 `(condition-case nil (progn ,@body) (error nil)))
2446
2447
2448 ;;; Compiler macros.
2449
2450 (defmacro define-compiler-macro (func args &rest body)
2451 "Define a compiler-only macro.
2452 This is like `defmacro', but macro expansion occurs only if the call to
2453 FUNC is compiled (i.e., not interpreted). Compiler macros should be used
2454 for optimizing the way calls to FUNC are compiled; the form returned by
2455 BODY should do the same thing as a call to the normal function called
2456 FUNC, though possibly more efficiently. Note that, like regular macros,
2457 compiler macros are expanded repeatedly until no further expansions are
2458 possible. Unlike regular macros, BODY can decide to \"punt\" and leave the
2459 original function call alone by declaring an initial `&whole foo' parameter
2460 and then returning foo."
2461 (let ((p args) (res nil))
2462 (while (consp p) (push (pop p) res))
2463 (setq args (nconc (nreverse res) (and p (list '&rest p)))))
2464 (list 'eval-when '(compile load eval)
2465 (cl-transform-function-property
2466 func 'cl-compiler-macro
2467 (cons (if (memq '&whole args) (delq '&whole args)
2468 (cons '--cl-whole-arg-- args)) body))
2469 (list 'or (list 'get (list 'quote func) '(quote byte-compile))
2470 (list 'put (list 'quote func) '(quote byte-compile)
2471 '(quote cl-byte-compile-compiler-macro)))))
2472
2473 (defun compiler-macroexpand (form)
2474 (while
2475 (let ((func (car-safe form)) (handler nil))
2476 (while (and (symbolp func)
2477 (not (setq handler (get func 'cl-compiler-macro)))
2478 (fboundp func)
2479 (or (not (eq (car-safe (symbol-function func)) 'autoload))
2480 (load (nth 1 (symbol-function func)))))
2481 (setq func (symbol-function func)))
2482 (and handler
2483 (not (eq form (setq form (apply handler form (cdr form))))))))
2484 form)
2485
2486 (defun cl-byte-compile-compiler-macro (form)
2487 (if (eq form (setq form (compiler-macroexpand form)))
2488 (byte-compile-normal-call form)
2489 (byte-compile-form form)))
2490
2491 (defmacro defsubst* (name args &rest body)
2492 "Define NAME as a function.
2493 Like `defun', except the function is automatically declared `inline',
2494 ARGLIST allows full Common Lisp conventions, and BODY is implicitly
2495 surrounded by (block NAME ...).
2496
2497 \(fn NAME ARGLIST [DOCSTRING] BODY...)"
2498 (let* ((argns (cl-arglist-args args)) (p argns)
2499 (pbody (cons 'progn body))
2500 (unsafe (not (cl-safe-expr-p pbody))))
2501 (while (and p (eq (cl-expr-contains args (car p)) 1)) (pop p))
2502 (list 'progn
2503 (if p nil ; give up if defaults refer to earlier args
2504 (list 'define-compiler-macro name
2505 (if (memq '&key args)
2506 (list* '&whole 'cl-whole '&cl-quote args)
2507 (cons '&cl-quote args))
2508 (list* 'cl-defsubst-expand (list 'quote argns)
2509 (list 'quote (list* 'block name body))
2510 (not (or unsafe (cl-expr-access-order pbody argns)))
2511 (and (memq '&key args) 'cl-whole) unsafe argns)))
2512 (list* 'defun* name args body))))
2513
2514 (defun cl-defsubst-expand (argns body simple whole unsafe &rest argvs)
2515 (if (and whole (not (cl-safe-expr-p (cons 'progn argvs)))) whole
2516 (if (cl-simple-exprs-p argvs) (setq simple t))
2517 (let ((lets (delq nil
2518 (mapcar* (function
2519 (lambda (argn argv)
2520 (if (or simple (cl-const-expr-p argv))
2521 (progn (setq body (subst argv argn body))
2522 (and unsafe (list argn argv)))
2523 (list argn argv))))
2524 argns argvs))))
2525 (if lets (list 'let lets body) body))))
2526
2527
2528 ;;; Compile-time optimizations for some functions defined in this package.
2529 ;;; Note that cl.el arranges to force cl-macs to be loaded at compile-time,
2530 ;;; mainly to make sure these macros will be present.
2531
2532 (put 'eql 'byte-compile nil)
2533 (define-compiler-macro eql (&whole form a b)
2534 (cond ((eq (cl-const-expr-p a) t)
2535 (let ((val (cl-const-expr-val a)))
2536 (if (and (numberp val) (not (integerp val)))
2537 (list 'equal a b)
2538 (list 'eq a b))))
2539 ((eq (cl-const-expr-p b) t)
2540 (let ((val (cl-const-expr-val b)))
2541 (if (and (numberp val) (not (integerp val)))
2542 (list 'equal a b)
2543 (list 'eq a b))))
2544 ((cl-simple-expr-p a 5)
2545 (list 'if (list 'numberp a)
2546 (list 'equal a b)
2547 (list 'eq a b)))
2548 ((and (cl-safe-expr-p a)
2549 (cl-simple-expr-p b 5))
2550 (list 'if (list 'numberp b)
2551 (list 'equal a b)
2552 (list 'eq a b)))
2553 (t form)))
2554
2555 (define-compiler-macro member* (&whole form a list &rest keys)
2556 (let ((test (and (= (length keys) 2) (eq (car keys) :test)
2557 (cl-const-expr-val (nth 1 keys)))))
2558 (cond ((eq test 'eq) (list 'memq a list))
2559 ((eq test 'equal) (list 'member a list))
2560 ((or (null keys) (eq test 'eql))
2561 (if (eq (cl-const-expr-p a) t)
2562 (list (if (floatp-safe (cl-const-expr-val a)) 'member 'memq)
2563 a list)
2564 (if (eq (cl-const-expr-p list) t)
2565 (let ((p (cl-const-expr-val list)) (mb nil) (mq nil))
2566 (if (not (cdr p))
2567 (and p (list 'eql a (list 'quote (car p))))
2568 (while p
2569 (if (floatp-safe (car p)) (setq mb t)
2570 (or (integerp (car p)) (symbolp (car p)) (setq mq t)))
2571 (setq p (cdr p)))
2572 (if (not mb) (list 'memq a list)
2573 (if (not mq) (list 'member a list) form))))
2574 form)))
2575 (t form))))
2576
2577 (define-compiler-macro assoc* (&whole form a list &rest keys)
2578 (let ((test (and (= (length keys) 2) (eq (car keys) :test)
2579 (cl-const-expr-val (nth 1 keys)))))
2580 (cond ((eq test 'eq) (list 'assq a list))
2581 ((eq test 'equal) (list 'assoc a list))
2582 ((and (eq (cl-const-expr-p a) t) (or (null keys) (eq test 'eql)))
2583 (if (floatp-safe (cl-const-expr-val a))
2584 (list 'assoc a list) (list 'assq a list)))
2585 (t form))))
2586
2587 (define-compiler-macro adjoin (&whole form a list &rest keys)
2588 (if (and (cl-simple-expr-p a) (cl-simple-expr-p list)
2589 (not (memq :key keys)))
2590 (list 'if (list* 'member* a list keys) list (list 'cons a list))
2591 form))
2592
2593 (define-compiler-macro list* (arg &rest others)
2594 (let* ((args (reverse (cons arg others)))
2595 (form (car args)))
2596 (while (setq args (cdr args))
2597 (setq form (list 'cons (car args) form)))
2598 form))
2599
2600 (define-compiler-macro get* (sym prop &optional def)
2601 (if def
2602 (list 'getf (list 'symbol-plist sym) prop def)
2603 (list 'get sym prop)))
2604
2605 (define-compiler-macro typep (&whole form val type)
2606 (if (cl-const-expr-p type)
2607 (let ((res (cl-make-type-test val (cl-const-expr-val type))))
2608 (if (or (memq (cl-expr-contains res val) '(nil 1))
2609 (cl-simple-expr-p val)) res
2610 (let ((temp (gensym)))
2611 (list 'let (list (list temp val)) (subst temp val res)))))
2612 form))
2613
2614
2615 (mapcar (function
2616 (lambda (y)
2617 (put (car y) 'side-effect-free t)
2618 (put (car y) 'byte-compile 'cl-byte-compile-compiler-macro)
2619 (put (car y) 'cl-compiler-macro
2620 (list 'lambda '(w x)
2621 (if (symbolp (cadr y))
2622 (list 'list (list 'quote (cadr y))
2623 (list 'list (list 'quote (caddr y)) 'x))
2624 (cons 'list (cdr y)))))))
2625 '((first 'car x) (second 'cadr x) (third 'caddr x) (fourth 'cadddr x)
2626 (fifth 'nth 4 x) (sixth 'nth 5 x) (seventh 'nth 6 x)
2627 (eighth 'nth 7 x) (ninth 'nth 8 x) (tenth 'nth 9 x)
2628 (rest 'cdr x) (endp 'null x) (plusp '> x 0) (minusp '< x 0)
2629 (caaar car caar) (caadr car cadr) (cadar car cdar)
2630 (caddr car cddr) (cdaar cdr caar) (cdadr cdr cadr)
2631 (cddar cdr cdar) (cdddr cdr cddr) (caaaar car caaar)
2632 (caaadr car caadr) (caadar car cadar) (caaddr car caddr)
2633 (cadaar car cdaar) (cadadr car cdadr) (caddar car cddar)
2634 (cadddr car cdddr) (cdaaar cdr caaar) (cdaadr cdr caadr)
2635 (cdadar cdr cadar) (cdaddr cdr caddr) (cddaar cdr cdaar)
2636 (cddadr cdr cdadr) (cdddar cdr cddar) (cddddr cdr cdddr) ))
2637
2638 ;;; Things that are inline.
2639 (proclaim '(inline floatp-safe acons map concatenate notany notevery
2640 cl-set-elt revappend nreconc gethash))
2641
2642 ;;; Things that are side-effect-free.
2643 (mapcar (function (lambda (x) (put x 'side-effect-free t)))
2644 '(oddp evenp signum last butlast ldiff pairlis gcd lcm
2645 isqrt floor* ceiling* truncate* round* mod* rem* subseq
2646 list-length get* getf))
2647
2648 ;;; Things that are side-effect-and-error-free.
2649 (mapcar (function (lambda (x) (put x 'side-effect-free 'error-free)))
2650 '(eql floatp-safe list* subst acons equalp random-state-p
2651 copy-tree sublis))
2652
2653
2654 (run-hooks 'cl-macs-load-hook)
2655
2656 ;;; Local variables:
2657 ;;; byte-compile-warnings: (redefine callargs free-vars unresolved obsolete noruntime)
2658 ;;; End:
2659
2660 ;;; arch-tag: afd947a6-b553-4df1-bba5-000be6388f46
2661 ;;; cl-macs.el ends here