renamed gh_int2scmb to gh_bool2scm
[bpt/guile.git] / ice-9 / boot-9.scm
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1;;; installed-scm-file
2
d0cbd20c 3;;;; Copyright (C) 1995, 1996, 1997 Free Software Foundation, Inc.
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4;;;;
5;;;; This program is free software; you can redistribute it and/or modify
6;;;; it under the terms of the GNU General Public License as published by
7;;;; the Free Software Foundation; either version 2, or (at your option)
8;;;; any later version.
9;;;;
10;;;; This program is distributed in the hope that it will be useful,
11;;;; but WITHOUT ANY WARRANTY; without even the implied warranty of
12;;;; MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
13;;;; GNU General Public License for more details.
14;;;;
15;;;; You should have received a copy of the GNU General Public License
16;;;; along with this software; see the file COPYING. If not, write to
15328041
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17;;;; the Free Software Foundation, Inc., 59 Temple Place, Suite 330,
18;;;; Boston, MA 02111-1307 USA
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19;;;;
20\f
21
22;;; This file is the first thing loaded into Guile. It adds many mundane
23;;; definitions and a few that are interesting.
24;;;
25;;; The module system (hence the hierarchical namespace) are defined in this
26;;; file.
27;;;
28
29\f
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30;;; {Features}
31;;
32
33(define (provide sym)
34 (if (not (memq sym *features*))
35 (set! *features* (cons sym *features*))))
36
37\f
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38;;; {R4RS compliance}
39
40(primitive-load-path "ice-9/r4rs.scm")
41
42\f
44cf1f0f 43;;; {Simple Debugging Tools}
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44;;
45
46
47;; peek takes any number of arguments, writes them to the
48;; current ouput port, and returns the last argument.
49;; It is handy to wrap around an expression to look at
50;; a value each time is evaluated, e.g.:
51;;
52;; (+ 10 (troublesome-fn))
53;; => (+ 10 (pk 'troublesome-fn-returned (troublesome-fn)))
54;;
55
56(define (peek . stuff)
57 (newline)
58 (display ";;; ")
59 (write stuff)
60 (newline)
61 (car (last-pair stuff)))
62
63(define pk peek)
64
65(define (warn . stuff)
66 (with-output-to-port (current-error-port)
67 (lambda ()
68 (newline)
69 (display ";;; WARNING ")
6355358a 70 (display stuff)
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71 (newline)
72 (car (last-pair stuff)))))
73
74\f
79451588 75;;; {Trivial Functions}
0f2d19dd 76;;;
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77
78(define (id x) x)
79(define (1+ n) (+ n 1))
80(define (-1+ n) (+ n -1))
81(define 1- -1+)
82(define return-it noop)
132e5fac 83(define (and=> value procedure) (and value (procedure value)))
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84(define (make-hash-table k) (make-vector k '()))
85
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86;;; apply-to-args is functionally redunant with apply and, worse,
87;;; is less general than apply since it only takes two arguments.
88;;;
89;;; On the other hand, apply-to-args is a syntacticly convenient way to
90;;; perform binding in many circumstances when the "let" family of
91;;; of forms don't cut it. E.g.:
92;;;
93;;; (apply-to-args (return-3d-mouse-coords)
94;;; (lambda (x y z)
95;;; ...))
96;;;
97
98(define (apply-to-args args fn) (apply fn args))
99
100\f
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101;;; {Integer Math}
102;;;
103
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104(define (ipow-by-squaring x k acc proc)
105 (cond ((zero? k) acc)
106 ((= 1 k) (proc acc x))
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107 (else (ipow-by-squaring (proc x x)
108 (quotient k 2)
109 (if (even? k) acc (proc acc x))
110 proc))))
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111
112(define string-character-length string-length)
113
114
115
116;; A convenience function for combining flag bits. Like logior, but
117;; handles the cases of 0 and 1 arguments.
118;;
119(define (flags . args)
120 (cond
121 ((null? args) 0)
122 ((null? (cdr args)) (car args))
123 (else (apply logior args))))
124
125\f
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126;;; {Symbol Properties}
127;;;
128
129(define (symbol-property sym prop)
130 (let ((pair (assoc prop (symbol-pref sym))))
131 (and pair (cdr pair))))
132
133(define (set-symbol-property! sym prop val)
134 (let ((pair (assoc prop (symbol-pref sym))))
135 (if pair
136 (set-cdr! pair val)
137 (symbol-pset! sym (acons prop val (symbol-pref sym))))))
138
139(define (symbol-property-remove! sym prop)
140 (let ((pair (assoc prop (symbol-pref sym))))
141 (if pair
142 (symbol-pset! sym (delq! pair (symbol-pref sym))))))
143
144\f
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145
146;;; {Line and Delimited I/O}
147
148;;; corresponds to SCM_LINE_INCREMENTORS in libguile.
149(define scm-line-incrementors "\n")
150
151(define (read-line! string . maybe-port)
152 (let* ((port (if (pair? maybe-port)
153 (car maybe-port)
154 (current-input-port))))
155 (let* ((rv (%read-delimited! scm-line-incrementors
156 string
157 #t
158 port))
159 (terminator (car rv))
160 (nchars (cdr rv)))
161 (cond ((and (= nchars 0)
162 (eof-object? terminator))
163 terminator)
164 ((not terminator) #f)
165 (else nchars)))))
166
167(define (read-delimited! delims buf . args)
168 (let* ((num-args (length args))
169 (port (if (> num-args 0)
170 (car args)
171 (current-input-port)))
172 (handle-delim (if (> num-args 1)
173 (cadr args)
174 'trim))
175 (start (if (> num-args 2)
176 (caddr args)
177 0))
178 (end (if (> num-args 3)
179 (cadddr args)
180 (string-length buf))))
181 (let* ((rv (%read-delimited! delims
182 buf
183 (not (eq? handle-delim 'peek))
184 port
185 start
186 end))
187 (terminator (car rv))
188 (nchars (cdr rv)))
189 (cond ((or (not terminator) ; buffer filled
190 (eof-object? terminator))
191 (if (zero? nchars)
192 (if (eq? handle-delim 'split)
193 (cons terminator terminator)
194 terminator)
195 (if (eq? handle-delim 'split)
196 (cons nchars terminator)
197 nchars)))
198 (else
199 (case handle-delim
200 ((trim peek) nchars)
201 ((concat) (string-set! buf nchars terminator)
202 (+ nchars 1))
203 ((split) (cons nchars terminator))
204 (else (error "unexpected handle-delim value: "
205 handle-delim))))))))
206
207(define (read-delimited delims . args)
208 (let* ((port (if (pair? args)
209 (let ((pt (car args)))
210 (set! args (cdr args))
211 pt)
212 (current-input-port)))
213 (handle-delim (if (pair? args)
214 (car args)
215 'trim)))
216 (let loop ((substrings ())
217 (total-chars 0)
218 (buf-size 100)) ; doubled each time through.
219 (let* ((buf (make-string buf-size))
220 (rv (%read-delimited! delims
221 buf
222 (not (eq? handle-delim 'peek))
223 port))
224 (terminator (car rv))
225 (nchars (cdr rv))
226 (join-substrings
227 (lambda ()
228 (apply string-append
229 (reverse
230 (cons (if (and (eq? handle-delim 'concat)
231 (not (eof-object? terminator)))
232 (string terminator)
233 "")
234 (cons (make-shared-substring buf 0 nchars)
235 substrings))))))
236 (new-total (+ total-chars nchars)))
237 (cond ((not terminator)
238 ;; buffer filled.
239 (loop (cons (substring buf 0 nchars) substrings)
240 new-total
241 (* buf-size 2)))
242 ((eof-object? terminator)
243 (if (zero? new-total)
244 (if (eq? handle-delim 'split)
245 (cons terminator terminator)
246 terminator)
247 (if (eq? handle-delim 'split)
248 (cons (join-substrings) terminator)
249 (join-substrings))))
250 (else
251 (case handle-delim
252 ((trim peek concat) (join-substrings))
253 ((split) (cons (join-substrings) terminator))
254 (else (error "unexpected handle-delim value: "
255 handle-delim)))))))))
256
257(define (read-line . args)
258 (apply read-delimited scm-line-incrementors args))
259
260\f
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261;;; {Arrays}
262;;;
263
264(begin
265 (define uniform-vector? array?)
266 (define make-uniform-vector dimensions->uniform-array)
267 ; (define uniform-vector-ref array-ref)
268 (define (uniform-vector-set! u i o)
c2132276 269 (uniform-array-set1! u o i))
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270 (define uniform-vector-fill! array-fill!)
271 (define uniform-vector-read! uniform-array-read!)
272 (define uniform-vector-write uniform-array-write)
273
274 (define (make-array fill . args)
275 (dimensions->uniform-array args () fill))
276 (define (make-uniform-array prot . args)
277 (dimensions->uniform-array args prot))
278 (define (list->array ndim lst)
279 (list->uniform-array ndim '() lst))
280 (define (list->uniform-vector prot lst)
281 (list->uniform-array 1 prot lst))
282 (define (array-shape a)
283 (map (lambda (ind) (if (number? ind) (list 0 (+ -1 ind)) ind))
284 (array-dimensions a))))
285
286\f
287;;; {Keywords}
288;;;
289
290(define (symbol->keyword symbol)
291 (make-keyword-from-dash-symbol (symbol-append '- symbol)))
292
293(define (keyword->symbol kw)
294 (let ((sym (keyword-dash-symbol kw)))
11b05261 295 (string->symbol (substring sym 1 (string-length sym)))))
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296
297(define (kw-arg-ref args kw)
298 (let ((rem (member kw args)))
299 (and rem (pair? (cdr rem)) (cadr rem))))
300
301\f
fa7e9274 302
9f9aa47b 303;;; {Structs}
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304
305(define (struct-layout s)
9f9aa47b 306 (struct-ref (struct-vtable s) vtable-index-layout))
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307
308\f
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309;;; {Records}
310;;;
311
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312;; Printing records: by default, records are printed as
313;;
314;; #<type-name field1: val1 field2: val2 ...>
315;;
316;; You can change that by giving a custom printing function to
317;; MAKE-RECORD-TYPE (after the list of field symbols). This function
318;; will be called like
319;;
320;; (<printer> object port)
321;;
322;; It should print OBJECT to PORT.
323
9f9aa47b 324;; 0: type-name, 1: fields
fa7e9274 325(define record-type-vtable
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326 (make-vtable-vtable "prpr" 0
327 (lambda (s p)
328 (cond ((eq? s record-type-vtable)
329 (display "#<record-type-vtable>" p))
330 (else
331 (display "#<record-type " p)
332 (display (record-type-name s) p)
333 (display ">" p))))))
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334
335(define (record-type? obj)
336 (and (struct? obj) (eq? record-type-vtable (struct-vtable obj))))
337
338(define (make-record-type type-name fields . opt)
8e693424 339 (let ((printer-fn (and (pair? opt) (car opt))))
0f2d19dd 340 (let ((struct (make-struct record-type-vtable 0
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341 (make-struct-layout
342 (apply symbol-append
343 (map (lambda (f) "pw") fields)))
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344 (or printer-fn
345 (lambda (s p)
346 (display "#<" p)
347 (display type-name p)
348 (let loop ((fields fields)
349 (off 0))
350 (cond
351 ((not (null? fields))
352 (display " " p)
353 (display (car fields) p)
354 (display ": " p)
355 (display (struct-ref s off) p)
356 (loop (cdr fields) (+ 1 off)))))
357 (display ">" p)))
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358 type-name
359 (copy-tree fields))))
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360 struct)))
361
362(define (record-type-name obj)
363 (if (record-type? obj)
9f9aa47b 364 (struct-ref obj vtable-offset-user)
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365 (error 'not-a-record-type obj)))
366
367(define (record-type-fields obj)
368 (if (record-type? obj)
9f9aa47b 369 (struct-ref obj (+ 1 vtable-offset-user))
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370 (error 'not-a-record-type obj)))
371
372(define (record-constructor rtd . opt)
8e693424 373 (let ((field-names (if (pair? opt) (car opt) (record-type-fields rtd))))
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374 (eval `(lambda ,field-names
375 (make-struct ',rtd 0 ,@(map (lambda (f)
376 (if (memq f field-names)
377 f
378 #f))
379 (record-type-fields rtd)))))))
380
381(define (record-predicate rtd)
382 (lambda (obj) (and (struct? obj) (eq? rtd (struct-vtable obj)))))
383
384(define (record-accessor rtd field-name)
385 (let* ((pos (list-index (record-type-fields rtd) field-name)))
386 (if (not pos)
387 (error 'no-such-field field-name))
388 (eval `(lambda (obj)
389 (and (eq? ',rtd (record-type-descriptor obj))
390 (struct-ref obj ,pos))))))
391
392(define (record-modifier rtd field-name)
393 (let* ((pos (list-index (record-type-fields rtd) field-name)))
394 (if (not pos)
395 (error 'no-such-field field-name))
396 (eval `(lambda (obj val)
397 (and (eq? ',rtd (record-type-descriptor obj))
398 (struct-set! obj ,pos val))))))
399
400
401(define (record? obj)
402 (and (struct? obj) (record-type? (struct-vtable obj))))
403
404(define (record-type-descriptor obj)
405 (if (struct? obj)
406 (struct-vtable obj)
407 (error 'not-a-record obj)))
408
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409(provide 'record)
410
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411\f
412;;; {Booleans}
413;;;
414
415(define (->bool x) (not (not x)))
416
417\f
418;;; {Symbols}
419;;;
420
421(define (symbol-append . args)
422 (string->symbol (apply string-append args)))
423
424(define (list->symbol . args)
425 (string->symbol (apply list->string args)))
426
427(define (symbol . args)
428 (string->symbol (apply string args)))
429
430(define (obarray-symbol-append ob . args)
431 (string->obarray-symbol (apply string-append ob args)))
432
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433(define (obarray-gensym obarray . opt)
434 (if (null? opt)
435 (gensym "%%gensym" obarray)
436 (gensym (car opt) obarray)))
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437
438\f
439;;; {Lists}
440;;;
441
442(define (list-index l k)
443 (let loop ((n 0)
444 (l l))
445 (and (not (null? l))
446 (if (eq? (car l) k)
447 n
448 (loop (+ n 1) (cdr l))))))
449
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450(define (make-list n . init)
451 (if (pair? init) (set! init (car init)))
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452 (let loop ((answer '())
453 (n n))
454 (if (<= n 0)
455 answer
456 (loop (cons init answer) (- n 1)))))
457
458
459\f
460;;; {and-map, or-map, and map-in-order}
461;;;
462;;; (and-map fn lst) is like (and (fn (car lst)) (fn (cadr lst)) (fn...) ...)
463;;; (or-map fn lst) is like (or (fn (car lst)) (fn (cadr lst)) (fn...) ...)
464;;; (map-in-order fn lst) is like (map fn lst) but definately in order of lst.
465;;;
466
467;; and-map f l
468;;
469;; Apply f to successive elements of l until exhaustion or f returns #f.
470;; If returning early, return #f. Otherwise, return the last value returned
471;; by f. If f has never been called because l is empty, return #t.
472;;
473(define (and-map f lst)
474 (let loop ((result #t)
475 (l lst))
476 (and result
477 (or (and (null? l)
478 result)
479 (loop (f (car l)) (cdr l))))))
480
481;; or-map f l
482;;
483;; Apply f to successive elements of l until exhaustion or while f returns #f.
484;; If returning early, return the return value of f.
485;;
486(define (or-map f lst)
487 (let loop ((result #f)
488 (l lst))
489 (or result
490 (and (not (null? l))
491 (loop (f (car l)) (cdr l))))))
492
493;; map-in-order
494;;
495;; Like map, but guaranteed to process the list in order.
496;;
497(define (map-in-order fn l)
498 (if (null? l)
499 '()
500 (cons (fn (car l))
501 (map-in-order fn (cdr l)))))
502
503\f
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504;;; {Hooks}
505(define (run-hooks hook)
506 (for-each (lambda (thunk) (thunk)) hook))
507
508(define add-hook!
509 (procedure->macro
510 (lambda (exp env)
511 `(let ((thunk ,(caddr exp)))
512 (if (not (memq thunk ,(cadr exp)))
513 (set! ,(cadr exp)
514 (cons thunk ,(cadr exp))))))))
515
516\f
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517;;; {Files}
518;;; !!!! these should be implemented using Tcl commands, not fports.
519;;;
520
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GH
521(define (feature? feature)
522 (and (memq feature *features*) #t))
523
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GH
524;; Using the vector returned by stat directly is probably not a good
525;; idea (it could just as well be a record). Hence some accessors.
526(define (stat:dev f) (vector-ref f 0))
527(define (stat:ino f) (vector-ref f 1))
528(define (stat:mode f) (vector-ref f 2))
529(define (stat:nlink f) (vector-ref f 3))
530(define (stat:uid f) (vector-ref f 4))
531(define (stat:gid f) (vector-ref f 5))
532(define (stat:rdev f) (vector-ref f 6))
533(define (stat:size f) (vector-ref f 7))
534(define (stat:atime f) (vector-ref f 8))
535(define (stat:mtime f) (vector-ref f 9))
536(define (stat:ctime f) (vector-ref f 10))
537(define (stat:blksize f) (vector-ref f 11))
538(define (stat:blocks f) (vector-ref f 12))
539
540;; derived from stat mode.
541(define (stat:type f) (vector-ref f 13))
542(define (stat:perms f) (vector-ref f 14))
543
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GH
544(define file-exists?
545 (if (feature? 'posix)
546 (lambda (str)
547 (access? str F_OK))
548 (lambda (str)
549 (let ((port (catch 'system-error (lambda () (open-file str OPEN_READ))
550 (lambda args #f))))
551 (if port (begin (close-port port) #t)
552 #f)))))
553
554(define file-is-directory?
555 (if (feature? 'i/o-extensions)
556 (lambda (str)
3afb28ce 557 (eq? (stat:type (stat str)) 'directory))
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GH
558 (lambda (str)
559 (display str)
560 (newline)
561 (let ((port (catch 'system-error
562 (lambda () (open-file (string-append str "/.")
563 OPEN_READ))
564 (lambda args #f))))
565 (if port (begin (close-port port) #t)
566 #f)))))
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567
568(define (has-suffix? str suffix)
569 (let ((sufl (string-length suffix))
570 (sl (string-length str)))
571 (and (> sl sufl)
572 (string=? (substring str (- sl sufl) sl) suffix))))
573
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574\f
575;;; {Error Handling}
576;;;
577
0f2d19dd 578(define (error . args)
21ed9efe 579 (save-stack)
2194b6f0 580 (if (null? args)
5552355a 581 (scm-error 'misc-error #f "?" #f #f)
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GH
582 (let loop ((msg "%s")
583 (rest (cdr args)))
584 (if (not (null? rest))
585 (loop (string-append msg " %S")
586 (cdr rest))
5552355a 587 (scm-error 'misc-error #f msg args #f)))))
be2d2c70 588
1349bd53 589;; bad-throw is the hook that is called upon a throw to a an unhandled
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GH
590;; key (unless the throw has four arguments, in which case
591;; it's usually interpreted as an error throw.)
592;; If the key has a default handler (a throw-handler-default property),
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593;; it is applied to the throw.
594;;
1349bd53 595(define (bad-throw key . args)
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JB
596 (let ((default (symbol-property key 'throw-handler-default)))
597 (or (and default (apply default key args))
2194b6f0 598 (apply error "unhandled-exception:" key args))))
0f2d19dd 599
0f2d19dd 600\f
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601;;; {Non-polymorphic versions of POSIX functions}
602
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GH
603(define (getgrnam name) (getgr name))
604(define (getgrgid id) (getgr id))
605(define (gethostbyaddr addr) (gethost addr))
606(define (gethostbyname name) (gethost name))
607(define (getnetbyaddr addr) (getnet addr))
608(define (getnetbyname name) (getnet name))
609(define (getprotobyname name) (getproto name))
610(define (getprotobynumber addr) (getproto addr))
611(define (getpwnam name) (getpw name))
612(define (getpwuid uid) (getpw uid))
920235cc
GH
613(define (getservbyname name proto) (getserv name proto))
614(define (getservbyport port proto) (getserv port proto))
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JB
615(define (endgrent) (setgr))
616(define (endhostent) (sethost))
617(define (endnetent) (setnet))
618(define (endprotoent) (setproto))
619(define (endpwent) (setpw))
620(define (endservent) (setserv))
02b754d3
GH
621(define (getgrent) (getgr))
622(define (gethostent) (gethost))
623(define (getnetent) (getnet))
624(define (getprotoent) (getproto))
625(define (getpwent) (getpw))
626(define (getservent) (getserv))
0f2d19dd 627(define (reopen-file . args) (apply freopen args))
bce074ee
GH
628(define (setgrent) (setgr #f))
629(define (sethostent) (sethost #t))
630(define (setnetent) (setnet #t))
631(define (setprotoent) (setproto #t))
632(define (setpwent) (setpw #t))
633(define (setservent) (setserv #t))
634
635(define (passwd:name obj) (vector-ref obj 0))
636(define (passwd:passwd obj) (vector-ref obj 1))
637(define (passwd:uid obj) (vector-ref obj 2))
638(define (passwd:gid obj) (vector-ref obj 3))
639(define (passwd:gecos obj) (vector-ref obj 4))
640(define (passwd:dir obj) (vector-ref obj 5))
641(define (passwd:shell obj) (vector-ref obj 6))
642
643(define (group:name obj) (vector-ref obj 0))
644(define (group:passwd obj) (vector-ref obj 1))
645(define (group:gid obj) (vector-ref obj 2))
646(define (group:mem obj) (vector-ref obj 3))
647
648(define (hostent:name obj) (vector-ref obj 0))
649(define (hostent:aliases obj) (vector-ref obj 1))
650(define (hostent:addrtype obj) (vector-ref obj 2))
651(define (hostent:length obj) (vector-ref obj 3))
652(define (hostent:addr-list obj) (vector-ref obj 4))
653
654(define (netent:name obj) (vector-ref obj 0))
655(define (netent:aliases obj) (vector-ref obj 1))
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GH
656(define (netent:addrtype obj) (vector-ref obj 2))
657(define (netent:net obj) (vector-ref obj 3))
bce074ee
GH
658
659(define (protoent:name obj) (vector-ref obj 0))
660(define (protoent:aliases obj) (vector-ref obj 1))
661(define (protoent:proto obj) (vector-ref obj 2))
662
663(define (servent:name obj) (vector-ref obj 0))
664(define (servent:aliases obj) (vector-ref obj 1))
9337637f
GH
665(define (servent:port obj) (vector-ref obj 2))
666(define (servent:proto obj) (vector-ref obj 3))
667
668(define (sockaddr:fam obj) (vector-ref obj 0))
669(define (sockaddr:path obj) (vector-ref obj 1))
670(define (sockaddr:addr obj) (vector-ref obj 1))
671(define (sockaddr:port obj) (vector-ref obj 2))
672
673(define (utsname:sysname obj) (vector-ref obj 0))
674(define (utsname:nodename obj) (vector-ref obj 1))
675(define (utsname:release obj) (vector-ref obj 2))
676(define (utsname:version obj) (vector-ref obj 3))
677(define (utsname:machine obj) (vector-ref obj 4))
bce074ee 678
708bf0f3
GH
679(define (tm:sec obj) (vector-ref obj 0))
680(define (tm:min obj) (vector-ref obj 1))
681(define (tm:hour obj) (vector-ref obj 2))
682(define (tm:mday obj) (vector-ref obj 3))
683(define (tm:mon obj) (vector-ref obj 4))
684(define (tm:year obj) (vector-ref obj 5))
685(define (tm:wday obj) (vector-ref obj 6))
686(define (tm:yday obj) (vector-ref obj 7))
687(define (tm:isdst obj) (vector-ref obj 8))
688(define (tm:gmtoff obj) (vector-ref obj 9))
689(define (tm:zone obj) (vector-ref obj 10))
690
691(define (set-tm:sec obj val) (vector-set! obj 0 val))
692(define (set-tm:min obj val) (vector-set! obj 1 val))
693(define (set-tm:hour obj val) (vector-set! obj 2 val))
694(define (set-tm:mday obj val) (vector-set! obj 3 val))
695(define (set-tm:mon obj val) (vector-set! obj 4 val))
696(define (set-tm:year obj val) (vector-set! obj 5 val))
697(define (set-tm:wday obj val) (vector-set! obj 6 val))
698(define (set-tm:yday obj val) (vector-set! obj 7 val))
699(define (set-tm:isdst obj val) (vector-set! obj 8 val))
700(define (set-tm:gmtoff obj val) (vector-set! obj 9 val))
701(define (set-tm:zone obj val) (vector-set! obj 10 val))
702
6afcd3b2
GH
703(define (tms:clock obj) (vector-ref obj 0))
704(define (tms:utime obj) (vector-ref obj 1))
705(define (tms:stime obj) (vector-ref obj 2))
706(define (tms:cutime obj) (vector-ref obj 3))
707(define (tms:cstime obj) (vector-ref obj 4))
708
bce074ee
GH
709(define (file-position . args) (apply ftell args))
710(define (file-set-position . args) (apply fseek args))
8b13c6b3 711
708bf0f3
GH
712(define (open-input-pipe command) (open-pipe command OPEN_READ))
713(define (open-output-pipe command) (open-pipe command OPEN_WRITE))
714
e38303a2
GH
715(define (move->fdes fd/port fd)
716 (cond ((integer? fd/port)
7a6f1ffa 717 (dup->fdes fd/port fd)
e38303a2
GH
718 (close fd/port)
719 fd)
720 (else
721 (primitive-move->fdes fd/port fd)
722 (set-port-revealed! fd/port 1)
723 fd/port)))
8b13c6b3
GH
724
725(define (release-port-handle port)
726 (let ((revealed (port-revealed port)))
727 (if (> revealed 0)
728 (set-port-revealed! port (- revealed 1)))))
0f2d19dd 729
e38303a2 730(define (dup->port port/fd mode . maybe-fd)
7a6f1ffa 731 (let ((port (fdopen (apply dup->fdes port/fd maybe-fd)
e38303a2
GH
732 mode)))
733 (if (pair? maybe-fd)
734 (set-port-revealed! port 1))
735 port))
736
737(define (dup->inport port/fd . maybe-fd)
738 (apply dup->port port/fd "r" maybe-fd))
739
740(define (dup->outport port/fd . maybe-fd)
741 (apply dup->port port/fd "w" maybe-fd))
742
e38303a2
GH
743(define (dup port/fd . maybe-fd)
744 (if (integer? port/fd)
745 (apply dup->fdes port/fd maybe-fd)
746 (apply dup->port port/fd (port-mode port/fd) maybe-fd)))
747
748(define (duplicate-port port modes)
749 (dup->port port modes))
750
751(define (fdes->inport fdes)
752 (let loop ((rest-ports (fdes->ports fdes)))
753 (cond ((null? rest-ports)
754 (let ((result (fdopen fdes "r")))
755 (set-port-revealed! result 1)
756 result))
757 ((input-port? (car rest-ports))
758 (set-port-revealed! (car rest-ports)
759 (+ (port-revealed (car rest-ports)) 1))
760 (car rest-ports))
761 (else
762 (loop (cdr rest-ports))))))
763
764(define (fdes->outport fdes)
765 (let loop ((rest-ports (fdes->ports fdes)))
766 (cond ((null? rest-ports)
767 (let ((result (fdopen fdes "w")))
768 (set-port-revealed! result 1)
769 result))
770 ((output-port? (car rest-ports))
771 (set-port-revealed! (car rest-ports)
772 (+ (port-revealed (car rest-ports)) 1))
773 (car rest-ports))
774 (else
775 (loop (cdr rest-ports))))))
776
777(define (port->fdes port)
778 (set-port-revealed! port (+ (port-revealed port) 1))
779 (fileno port))
780
956055a9
GH
781(define (setenv name value)
782 (if value
783 (putenv (string-append name "=" value))
784 (putenv name)))
785
0f2d19dd
JB
786\f
787;;; {Load Paths}
788;;;
789
0f2d19dd
JB
790;;; Here for backward compatability
791;;
792(define scheme-file-suffix (lambda () ".scm"))
793
3cab8392
JB
794(define (in-vicinity vicinity file)
795 (let ((tail (let ((len (string-length vicinity)))
534a0099
MD
796 (if (zero? len)
797 #f
3cab8392
JB
798 (string-ref vicinity (- len 1))))))
799 (string-append vicinity
534a0099
MD
800 (if (or (not tail)
801 (eq? tail #\/))
802 ""
803 "/")
3cab8392 804 file)))
02ceadb8 805
0f2d19dd 806\f
ef00e7f4
JB
807;;; {Help for scm_shell}
808;;; The argument-processing code used by Guile-based shells generates
809;;; Scheme code based on the argument list. This page contains help
810;;; functions for the code it generates.
811
ef00e7f4
JB
812(define (command-line) (program-arguments))
813
5aa7fe69
JB
814;; This is mostly for the internal use of the code generated by
815;; scm_compile_shell_switches.
ef00e7f4
JB
816(define (load-user-init)
817 (define (has-init? dir)
818 (let ((path (in-vicinity dir ".guile")))
819 (catch 'system-error
820 (lambda ()
821 (let ((stats (stat path)))
822 (if (not (eq? (stat:type stats) 'directory))
823 path)))
824 (lambda dummy #f))))
4cd2a3e6
JB
825 (let ((path (or (has-init? (or (getenv "HOME") "/"))
826 (has-init? (passwd:dir (getpw (getuid)))))))
ef00e7f4
JB
827 (if path (primitive-load path))))
828
829\f
a06181a2
JB
830;;; {Loading by paths}
831
832;;; Load a Scheme source file named NAME, searching for it in the
833;;; directories listed in %load-path, and applying each of the file
834;;; name extensions listed in %load-extensions.
835(define (load-from-path name)
836 (start-stack 'load-stack
75a97b92 837 (primitive-load-path name)))
0f2d19dd 838
5552355a 839
0f2d19dd 840\f
0f2d19dd
JB
841;;; {Transcendental Functions}
842;;;
843;;; Derived from "Transcen.scm", Complex trancendental functions for SCM.
844;;; Copyright (C) 1992, 1993 Jerry D. Hedden.
845;;; See the file `COPYING' for terms applying to this program.
846;;;
847
848(define (exp z)
849 (if (real? z) ($exp z)
850 (make-polar ($exp (real-part z)) (imag-part z))))
851
852(define (log z)
853 (if (and (real? z) (>= z 0))
854 ($log z)
855 (make-rectangular ($log (magnitude z)) (angle z))))
856
857(define (sqrt z)
858 (if (real? z)
859 (if (negative? z) (make-rectangular 0 ($sqrt (- z)))
860 ($sqrt z))
861 (make-polar ($sqrt (magnitude z)) (/ (angle z) 2))))
862
863(define expt
864 (let ((integer-expt integer-expt))
865 (lambda (z1 z2)
866 (cond ((exact? z2)
867 (integer-expt z1 z2))
868 ((and (real? z2) (real? z1) (>= z1 0))
869 ($expt z1 z2))
870 (else
871 (exp (* z2 (log z1))))))))
872
873(define (sinh z)
874 (if (real? z) ($sinh z)
875 (let ((x (real-part z)) (y (imag-part z)))
876 (make-rectangular (* ($sinh x) ($cos y))
877 (* ($cosh x) ($sin y))))))
878(define (cosh z)
879 (if (real? z) ($cosh z)
880 (let ((x (real-part z)) (y (imag-part z)))
881 (make-rectangular (* ($cosh x) ($cos y))
882 (* ($sinh x) ($sin y))))))
883(define (tanh z)
884 (if (real? z) ($tanh z)
885 (let* ((x (* 2 (real-part z)))
886 (y (* 2 (imag-part z)))
887 (w (+ ($cosh x) ($cos y))))
888 (make-rectangular (/ ($sinh x) w) (/ ($sin y) w)))))
889
890(define (asinh z)
891 (if (real? z) ($asinh z)
892 (log (+ z (sqrt (+ (* z z) 1))))))
893
894(define (acosh z)
895 (if (and (real? z) (>= z 1))
896 ($acosh z)
897 (log (+ z (sqrt (- (* z z) 1))))))
898
899(define (atanh z)
900 (if (and (real? z) (> z -1) (< z 1))
901 ($atanh z)
902 (/ (log (/ (+ 1 z) (- 1 z))) 2)))
903
904(define (sin z)
905 (if (real? z) ($sin z)
906 (let ((x (real-part z)) (y (imag-part z)))
907 (make-rectangular (* ($sin x) ($cosh y))
908 (* ($cos x) ($sinh y))))))
909(define (cos z)
910 (if (real? z) ($cos z)
911 (let ((x (real-part z)) (y (imag-part z)))
912 (make-rectangular (* ($cos x) ($cosh y))
913 (- (* ($sin x) ($sinh y)))))))
914(define (tan z)
915 (if (real? z) ($tan z)
916 (let* ((x (* 2 (real-part z)))
917 (y (* 2 (imag-part z)))
918 (w (+ ($cos x) ($cosh y))))
919 (make-rectangular (/ ($sin x) w) (/ ($sinh y) w)))))
920
921(define (asin z)
922 (if (and (real? z) (>= z -1) (<= z 1))
923 ($asin z)
924 (* -i (asinh (* +i z)))))
925
926(define (acos z)
927 (if (and (real? z) (>= z -1) (<= z 1))
928 ($acos z)
929 (+ (/ (angle -1) 2) (* +i (asinh (* +i z))))))
930
931(define (atan z . y)
932 (if (null? y)
933 (if (real? z) ($atan z)
934 (/ (log (/ (- +i z) (+ +i z))) +2i))
935 ($atan2 z (car y))))
936
937(set! abs magnitude)
938
65495221
GH
939(define (log10 arg)
940 (/ (log arg) (log 10)))
941
0f2d19dd 942\f
0f2d19dd
JB
943
944;;; {Reader Extensions}
945;;;
946
947;;; Reader code for various "#c" forms.
948;;;
949
fb6d1065
JB
950;;; Parse the portion of a #/ list that comes after the first slash.
951(define (read-path-list-notation slash port)
952 (letrec
953
954 ;; Is C a delimiter?
955 ((delimiter? (lambda (c) (or (eof-object? c)
956 (char-whitespace? c)
957 (string-index "()\";" c))))
958
959 ;; Read and return one component of a path list.
960 (read-component
961 (lambda ()
962 (let loop ((reversed-chars '()))
963 (let ((c (peek-char port)))
964 (if (or (delimiter? c)
965 (char=? c #\/))
966 (string->symbol (list->string (reverse reversed-chars)))
967 (loop (cons (read-char port) reversed-chars))))))))
968
969 ;; Read and return a path list.
970 (let loop ((reversed-path (list (read-component))))
971 (let ((c (peek-char port)))
972 (if (and (char? c) (char=? c #\/))
973 (begin
974 (read-char port)
975 (loop (cons (read-component) reversed-path)))
976 (reverse reversed-path))))))
0f2d19dd 977
75a97b92
GH
978(read-hash-extend #\' (lambda (c port)
979 (read port)))
980(read-hash-extend #\. (lambda (c port)
981 (eval (read port))))
982
983(if (feature? 'array)
984 (begin
985 (let ((make-array-proc (lambda (template)
986 (lambda (c port)
987 (read:uniform-vector template port)))))
988 (for-each (lambda (char template)
989 (read-hash-extend char
990 (make-array-proc template)))
991 '(#\b #\a #\u #\e #\s #\i #\c)
992 '(#t #\a 1 -1 1.0 1/3 0+i)))
993 (let ((array-proc (lambda (c port)
994 (read:array c port))))
995 (for-each (lambda (char) (read-hash-extend char array-proc))
996 '(#\0 #\1 #\2 #\3 #\4 #\5 #\6 #\7 #\8 #\9)))))
997
00c34e45
GH
998;; pushed to the beginning of the alist since it's used more than the
999;; others at present.
fb6d1065 1000(read-hash-extend #\/ read-path-list-notation)
00c34e45 1001
0f2d19dd
JB
1002(define (read:array digit port)
1003 (define chr0 (char->integer #\0))
1004 (let ((rank (let readnum ((val (- (char->integer digit) chr0)))
1005 (if (char-numeric? (peek-char port))
1006 (readnum (+ (* 10 val)
1007 (- (char->integer (read-char port)) chr0)))
1008 val)))
1009 (prot (if (eq? #\( (peek-char port))
1010 '()
1011 (let ((c (read-char port)))
1012 (case c ((#\b) #t)
1013 ((#\a) #\a)
1014 ((#\u) 1)
1015 ((#\e) -1)
1016 ((#\s) 1.0)
1017 ((#\i) 1/3)
1018 ((#\c) 0+i)
1019 (else (error "read:array unknown option " c)))))))
1020 (if (eq? (peek-char port) #\()
75a97b92 1021 (list->uniform-array rank prot (read port))
0f2d19dd
JB
1022 (error "read:array list not found"))))
1023
1024(define (read:uniform-vector proto port)
1025 (if (eq? #\( (peek-char port))
75a97b92 1026 (list->uniform-array 1 proto (read port))
0f2d19dd
JB
1027 (error "read:uniform-vector list not found")))
1028
0f2d19dd
JB
1029\f
1030;;; {Command Line Options}
1031;;;
1032
1033(define (get-option argv kw-opts kw-args return)
1034 (cond
1035 ((null? argv)
1036 (return #f #f argv))
1037
1038 ((or (not (eq? #\- (string-ref (car argv) 0)))
1039 (eq? (string-length (car argv)) 1))
1040 (return 'normal-arg (car argv) (cdr argv)))
1041
1042 ((eq? #\- (string-ref (car argv) 1))
1043 (let* ((kw-arg-pos (or (string-index (car argv) #\=)
1044 (string-length (car argv))))
1045 (kw (symbol->keyword (substring (car argv) 2 kw-arg-pos)))
1046 (kw-opt? (member kw kw-opts))
1047 (kw-arg? (member kw kw-args))
1048 (arg (or (and (not (eq? kw-arg-pos (string-length (car argv))))
1049 (substring (car argv)
1050 (+ kw-arg-pos 1)
1051 (string-length (car argv))))
1052 (and kw-arg?
1053 (begin (set! argv (cdr argv)) (car argv))))))
1054 (if (or kw-opt? kw-arg?)
1055 (return kw arg (cdr argv))
1056 (return 'usage-error kw (cdr argv)))))
1057
1058 (else
1059 (let* ((char (substring (car argv) 1 2))
1060 (kw (symbol->keyword char)))
1061 (cond
1062
1063 ((member kw kw-opts)
1064 (let* ((rest-car (substring (car argv) 2 (string-length (car argv))))
1065 (new-argv (if (= 0 (string-length rest-car))
1066 (cdr argv)
1067 (cons (string-append "-" rest-car) (cdr argv)))))
1068 (return kw #f new-argv)))
1069
1070 ((member kw kw-args)
1071 (let* ((rest-car (substring (car argv) 2 (string-length (car argv))))
1072 (arg (if (= 0 (string-length rest-car))
1073 (cadr argv)
1074 rest-car))
1075 (new-argv (if (= 0 (string-length rest-car))
1076 (cddr argv)
1077 (cdr argv))))
1078 (return kw arg new-argv)))
1079
1080 (else (return 'usage-error kw argv)))))))
1081
1082(define (for-next-option proc argv kw-opts kw-args)
1083 (let loop ((argv argv))
1084 (get-option argv kw-opts kw-args
1085 (lambda (opt opt-arg argv)
1086 (and opt (proc opt opt-arg argv loop))))))
1087
1088(define (display-usage-report kw-desc)
1089 (for-each
1090 (lambda (kw)
1091 (or (eq? (car kw) #t)
1092 (eq? (car kw) 'else)
1093 (let* ((opt-desc kw)
1094 (help (cadr opt-desc))
1095 (opts (car opt-desc))
1096 (opts-proper (if (string? (car opts)) (cdr opts) opts))
1097 (arg-name (if (string? (car opts))
1098 (string-append "<" (car opts) ">")
1099 ""))
1100 (left-part (string-append
1101 (with-output-to-string
1102 (lambda ()
1103 (map (lambda (x) (display (keyword-symbol x)) (display " "))
1104 opts-proper)))
1105 arg-name))
11b05261
MD
1106 (middle-part (if (and (< (string-length left-part) 30)
1107 (< (string-length help) 40))
1108 (make-string (- 30 (string-length left-part)) #\ )
0f2d19dd
JB
1109 "\n\t")))
1110 (display left-part)
1111 (display middle-part)
1112 (display help)
1113 (newline))))
1114 kw-desc))
1115
1116
1117
0f2d19dd
JB
1118(define (transform-usage-lambda cases)
1119 (let* ((raw-usage (delq! 'else (map car cases)))
1120 (usage-sans-specials (map (lambda (x)
1121 (or (and (not (list? x)) x)
1122 (and (symbol? (car x)) #t)
1123 (and (boolean? (car x)) #t)
1124 x))
1125 raw-usage))
ed440df5 1126 (usage-desc (delq! #t usage-sans-specials))
0f2d19dd
JB
1127 (kw-desc (map car usage-desc))
1128 (kw-opts (apply append (map (lambda (x) (and (not (string? (car x))) x)) kw-desc)))
1129 (kw-args (apply append (map (lambda (x) (and (string? (car x)) (cdr x))) kw-desc)))
1130 (transmogrified-cases (map (lambda (case)
1131 (cons (let ((opts (car case)))
1132 (if (or (boolean? opts) (eq? 'else opts))
1133 opts
1134 (cond
1135 ((symbol? (car opts)) opts)
1136 ((boolean? (car opts)) opts)
1137 ((string? (caar opts)) (cdar opts))
1138 (else (car opts)))))
1139 (cdr case)))
1140 cases)))
1141 `(let ((%display-usage (lambda () (display-usage-report ',usage-desc))))
1142 (lambda (%argv)
1143 (let %next-arg ((%argv %argv))
1144 (get-option %argv
1145 ',kw-opts
1146 ',kw-args
1147 (lambda (%opt %arg %new-argv)
1148 (case %opt
1149 ,@ transmogrified-cases))))))))
1150
1151
1152\f
1153
1154;;; {Low Level Modules}
1155;;;
1156;;; These are the low level data structures for modules.
1157;;;
1158;;; !!! warning: The interface to lazy binder procedures is going
1159;;; to be changed in an incompatible way to permit all the basic
1160;;; module ops to be virtualized.
1161;;;
1162;;; (make-module size use-list lazy-binding-proc) => module
1163;;; module-{obarray,uses,binder}[|-set!]
1164;;; (module? obj) => [#t|#f]
1165;;; (module-locally-bound? module symbol) => [#t|#f]
1166;;; (module-bound? module symbol) => [#t|#f]
1167;;; (module-symbol-locally-interned? module symbol) => [#t|#f]
1168;;; (module-symbol-interned? module symbol) => [#t|#f]
1169;;; (module-local-variable module symbol) => [#<variable ...> | #f]
1170;;; (module-variable module symbol) => [#<variable ...> | #f]
1171;;; (module-symbol-binding module symbol opt-value)
1172;;; => [ <obj> | opt-value | an error occurs ]
1173;;; (module-make-local-var! module symbol) => #<variable...>
1174;;; (module-add! module symbol var) => unspecified
1175;;; (module-remove! module symbol) => unspecified
1176;;; (module-for-each proc module) => unspecified
1177;;; (make-scm-module) => module ; a lazy copy of the symhash module
1178;;; (set-current-module module) => unspecified
1179;;; (current-module) => #<module...>
1180;;;
1181;;;
1182
1183\f
44cf1f0f
JB
1184;;; {Printing Modules}
1185;; This is how modules are printed. You can re-define it.
fa7e9274
MV
1186;; (Redefining is actually more complicated than simply redefining
1187;; %print-module because that would only change the binding and not
1188;; the value stored in the vtable that determines how record are
1189;; printed. Sigh.)
1190
1191(define (%print-module mod port) ; unused args: depth length style table)
0f2d19dd
JB
1192 (display "#<" port)
1193 (display (or (module-kind mod) "module") port)
1194 (let ((name (module-name mod)))
1195 (if name
1196 (begin
1197 (display " " port)
1198 (display name port))))
1199 (display " " port)
1200 (display (number->string (object-address mod) 16) port)
1201 (display ">" port))
1202
1203;; module-type
1204;;
1205;; A module is characterized by an obarray in which local symbols
1206;; are interned, a list of modules, "uses", from which non-local
1207;; bindings can be inherited, and an optional lazy-binder which
31d50456 1208;; is a (CLOSURE module symbol) which, as a last resort, can provide
0f2d19dd
JB
1209;; bindings that would otherwise not be found locally in the module.
1210;;
1211(define module-type
7a0ff2f8
MD
1212 (make-record-type 'module
1213 '(obarray uses binder eval-closure transformer name kind)
8b718458 1214 %print-module))
0f2d19dd 1215
8b718458 1216;; make-module &opt size uses binder
0f2d19dd 1217;;
8b718458
JB
1218;; Create a new module, perhaps with a particular size of obarray,
1219;; initial uses list, or binding procedure.
0f2d19dd 1220;;
0f2d19dd
JB
1221(define make-module
1222 (lambda args
0f2d19dd 1223
8b718458
JB
1224 (define (parse-arg index default)
1225 (if (> (length args) index)
1226 (list-ref args index)
1227 default))
1228
1229 (if (> (length args) 3)
1230 (error "Too many args to make-module." args))
0f2d19dd 1231
8b718458
JB
1232 (let ((size (parse-arg 0 1021))
1233 (uses (parse-arg 1 '()))
1234 (binder (parse-arg 2 #f)))
0f2d19dd 1235
8b718458
JB
1236 (if (not (integer? size))
1237 (error "Illegal size to make-module." size))
1238 (if (not (and (list? uses)
1239 (and-map module? uses)))
1240 (error "Incorrect use list." uses))
0f2d19dd
JB
1241 (if (and binder (not (procedure? binder)))
1242 (error
1243 "Lazy-binder expected to be a procedure or #f." binder))
1244
8b718458 1245 (let ((module (module-constructor (make-vector size '())
7a0ff2f8 1246 uses binder #f #f #f #f)))
8b718458
JB
1247
1248 ;; We can't pass this as an argument to module-constructor,
1249 ;; because we need it to close over a pointer to the module
1250 ;; itself.
31d50456 1251 (set-module-eval-closure! module
8b718458
JB
1252 (lambda (symbol define?)
1253 (if define?
1254 (module-make-local-var! module symbol)
1255 (module-variable module symbol))))
1256
1257 module))))
0f2d19dd 1258
8b718458 1259(define module-constructor (record-constructor module-type))
0f2d19dd
JB
1260(define module-obarray (record-accessor module-type 'obarray))
1261(define set-module-obarray! (record-modifier module-type 'obarray))
1262(define module-uses (record-accessor module-type 'uses))
1263(define set-module-uses! (record-modifier module-type 'uses))
1264(define module-binder (record-accessor module-type 'binder))
1265(define set-module-binder! (record-modifier module-type 'binder))
31d50456
JB
1266(define module-eval-closure (record-accessor module-type 'eval-closure))
1267(define set-module-eval-closure! (record-modifier module-type 'eval-closure))
7a0ff2f8
MD
1268(define module-transformer (record-accessor module-type 'transformer))
1269(define set-module-transformer! (record-modifier module-type 'transformer))
0f2d19dd
JB
1270(define module-name (record-accessor module-type 'name))
1271(define set-module-name! (record-modifier module-type 'name))
1272(define module-kind (record-accessor module-type 'kind))
1273(define set-module-kind! (record-modifier module-type 'kind))
1274(define module? (record-predicate module-type))
1275
8b718458 1276
0f2d19dd 1277(define (eval-in-module exp module)
31d50456 1278 (eval2 exp (module-eval-closure module)))
0f2d19dd
JB
1279
1280\f
1281;;; {Module Searching in General}
1282;;;
1283;;; We sometimes want to look for properties of a symbol
1284;;; just within the obarray of one module. If the property
1285;;; holds, then it is said to hold ``locally'' as in, ``The symbol
1286;;; DISPLAY is locally rebound in the module `safe-guile'.''
1287;;;
1288;;;
1289;;; Other times, we want to test for a symbol property in the obarray
1290;;; of M and, if it is not found there, try each of the modules in the
1291;;; uses list of M. This is the normal way of testing for some
1292;;; property, so we state these properties without qualification as
1293;;; in: ``The symbol 'fnord is interned in module M because it is
1294;;; interned locally in module M2 which is a member of the uses list
1295;;; of M.''
1296;;;
1297
1298;; module-search fn m
1299;;
1300;; return the first non-#f result of FN applied to M and then to
1301;; the modules in the uses of m, and so on recursively. If all applications
1302;; return #f, then so does this function.
1303;;
1304(define (module-search fn m v)
1305 (define (loop pos)
1306 (and (pair? pos)
1307 (or (module-search fn (car pos) v)
1308 (loop (cdr pos)))))
1309 (or (fn m v)
1310 (loop (module-uses m))))
1311
1312
1313;;; {Is a symbol bound in a module?}
1314;;;
1315;;; Symbol S in Module M is bound if S is interned in M and if the binding
1316;;; of S in M has been set to some well-defined value.
1317;;;
1318
1319;; module-locally-bound? module symbol
1320;;
1321;; Is a symbol bound (interned and defined) locally in a given module?
1322;;
1323(define (module-locally-bound? m v)
1324 (let ((var (module-local-variable m v)))
1325 (and var
1326 (variable-bound? var))))
1327
1328;; module-bound? module symbol
1329;;
1330;; Is a symbol bound (interned and defined) anywhere in a given module
1331;; or its uses?
1332;;
1333(define (module-bound? m v)
1334 (module-search module-locally-bound? m v))
1335
1336;;; {Is a symbol interned in a module?}
1337;;;
1338;;; Symbol S in Module M is interned if S occurs in
1339;;; of S in M has been set to some well-defined value.
1340;;;
1341;;; It is possible to intern a symbol in a module without providing
1342;;; an initial binding for the corresponding variable. This is done
1343;;; with:
1344;;; (module-add! module symbol (make-undefined-variable))
1345;;;
1346;;; In that case, the symbol is interned in the module, but not
1347;;; bound there. The unbound symbol shadows any binding for that
1348;;; symbol that might otherwise be inherited from a member of the uses list.
1349;;;
1350
1351(define (module-obarray-get-handle ob key)
1352 ((if (symbol? key) hashq-get-handle hash-get-handle) ob key))
1353
1354(define (module-obarray-ref ob key)
1355 ((if (symbol? key) hashq-ref hash-ref) ob key))
1356
1357(define (module-obarray-set! ob key val)
1358 ((if (symbol? key) hashq-set! hash-set!) ob key val))
1359
1360(define (module-obarray-remove! ob key)
1361 ((if (symbol? key) hashq-remove! hash-remove!) ob key))
1362
1363;; module-symbol-locally-interned? module symbol
1364;;
1365;; is a symbol interned (not neccessarily defined) locally in a given module
1366;; or its uses? Interned symbols shadow inherited bindings even if
1367;; they are not themselves bound to a defined value.
1368;;
1369(define (module-symbol-locally-interned? m v)
1370 (not (not (module-obarray-get-handle (module-obarray m) v))))
1371
1372;; module-symbol-interned? module symbol
1373;;
1374;; is a symbol interned (not neccessarily defined) anywhere in a given module
1375;; or its uses? Interned symbols shadow inherited bindings even if
1376;; they are not themselves bound to a defined value.
1377;;
1378(define (module-symbol-interned? m v)
1379 (module-search module-symbol-locally-interned? m v))
1380
1381
1382;;; {Mapping modules x symbols --> variables}
1383;;;
1384
1385;; module-local-variable module symbol
1386;; return the local variable associated with a MODULE and SYMBOL.
1387;;
1388;;; This function is very important. It is the only function that can
1389;;; return a variable from a module other than the mutators that store
1390;;; new variables in modules. Therefore, this function is the location
1391;;; of the "lazy binder" hack.
1392;;;
1393;;; If symbol is defined in MODULE, and if the definition binds symbol
1394;;; to a variable, return that variable object.
1395;;;
1396;;; If the symbols is not found at first, but the module has a lazy binder,
1397;;; then try the binder.
1398;;;
1399;;; If the symbol is not found at all, return #f.
1400;;;
1401(define (module-local-variable m v)
6fa8995c
GH
1402; (caddr
1403; (list m v
0f2d19dd
JB
1404 (let ((b (module-obarray-ref (module-obarray m) v)))
1405 (or (and (variable? b) b)
1406 (and (module-binder m)
6fa8995c
GH
1407 ((module-binder m) m v #f)))))
1408;))
0f2d19dd
JB
1409
1410;; module-variable module symbol
1411;;
1412;; like module-local-variable, except search the uses in the
1413;; case V is not found in M.
1414;;
1415(define (module-variable m v)
1416 (module-search module-local-variable m v))
1417
1418
1419;;; {Mapping modules x symbols --> bindings}
1420;;;
1421;;; These are similar to the mapping to variables, except that the
1422;;; variable is dereferenced.
1423;;;
1424
1425;; module-symbol-binding module symbol opt-value
1426;;
1427;; return the binding of a variable specified by name within
1428;; a given module, signalling an error if the variable is unbound.
1429;; If the OPT-VALUE is passed, then instead of signalling an error,
1430;; return OPT-VALUE.
1431;;
1432(define (module-symbol-local-binding m v . opt-val)
1433 (let ((var (module-local-variable m v)))
1434 (if var
1435 (variable-ref var)
1436 (if (not (null? opt-val))
1437 (car opt-val)
1438 (error "Locally unbound variable." v)))))
1439
1440;; module-symbol-binding module symbol opt-value
1441;;
1442;; return the binding of a variable specified by name within
1443;; a given module, signalling an error if the variable is unbound.
1444;; If the OPT-VALUE is passed, then instead of signalling an error,
1445;; return OPT-VALUE.
1446;;
1447(define (module-symbol-binding m v . opt-val)
1448 (let ((var (module-variable m v)))
1449 (if var
1450 (variable-ref var)
1451 (if (not (null? opt-val))
1452 (car opt-val)
1453 (error "Unbound variable." v)))))
1454
1455
1456\f
1457;;; {Adding Variables to Modules}
1458;;;
1459;;;
1460
1461
1462;; module-make-local-var! module symbol
1463;;
1464;; ensure a variable for V in the local namespace of M.
1465;; If no variable was already there, then create a new and uninitialzied
1466;; variable.
1467;;
1468(define (module-make-local-var! m v)
1469 (or (let ((b (module-obarray-ref (module-obarray m) v)))
1470 (and (variable? b) b))
1471 (and (module-binder m)
1472 ((module-binder m) m v #t))
1473 (begin
1474 (let ((answer (make-undefined-variable v)))
1475 (module-obarray-set! (module-obarray m) v answer)
1476 answer))))
1477
1478;; module-add! module symbol var
1479;;
1480;; ensure a particular variable for V in the local namespace of M.
1481;;
1482(define (module-add! m v var)
1483 (if (not (variable? var))
1484 (error "Bad variable to module-add!" var))
1485 (module-obarray-set! (module-obarray m) v var))
1486
1487;; module-remove!
1488;;
1489;; make sure that a symbol is undefined in the local namespace of M.
1490;;
1491(define (module-remove! m v)
1492 (module-obarray-remove! (module-obarray m) v))
1493
1494(define (module-clear! m)
1495 (vector-fill! (module-obarray m) '()))
1496
1497;; MODULE-FOR-EACH -- exported
1498;;
1499;; Call PROC on each symbol in MODULE, with arguments of (SYMBOL VARIABLE).
1500;;
1501(define (module-for-each proc module)
1502 (let ((obarray (module-obarray module)))
1503 (do ((index 0 (+ index 1))
1504 (end (vector-length obarray)))
1505 ((= index end))
1506 (for-each
1507 (lambda (bucket)
1508 (proc (car bucket) (cdr bucket)))
1509 (vector-ref obarray index)))))
1510
1511
1512(define (module-map proc module)
1513 (let* ((obarray (module-obarray module))
1514 (end (vector-length obarray)))
1515
1516 (let loop ((i 0)
1517 (answer '()))
1518 (if (= i end)
1519 answer
1520 (loop (+ 1 i)
1521 (append!
1522 (map (lambda (bucket)
1523 (proc (car bucket) (cdr bucket)))
1524 (vector-ref obarray i))
1525 answer))))))
1526\f
1527
1528;;; {Low Level Bootstrapping}
1529;;;
1530
1531;; make-root-module
1532
21ed9efe 1533;; A root module uses the symhash table (the system's privileged
0f2d19dd
JB
1534;; obarray). Being inside a root module is like using SCM without
1535;; any module system.
1536;;
1537
1538
31d50456 1539(define (root-module-closure m s define?)
0f2d19dd
JB
1540 (let ((bi (and (symbol-interned? #f s)
1541 (builtin-variable s))))
1542 (and bi
1543 (or define? (variable-bound? bi))
1544 (begin
1545 (module-add! m s bi)
1546 bi))))
1547
1548(define (make-root-module)
31d50456 1549 (make-module 1019 '() root-module-closure))
0f2d19dd
JB
1550
1551
1552;; make-scm-module
1553
1554;; An scm module is a module into which the lazy binder copies
1555;; variable bindings from the system symhash table. The mapping is
1556;; one way only; newly introduced bindings in an scm module are not
1557;; copied back into the system symhash table (and can be used to override
1558;; bindings from the symhash table).
1559;;
1560
1561(define (make-scm-module)
8b718458 1562 (make-module 1019 '()
0f2d19dd
JB
1563 (lambda (m s define?)
1564 (let ((bi (and (symbol-interned? #f s)
1565 (builtin-variable s))))
1566 (and bi
1567 (variable-bound? bi)
1568 (begin
1569 (module-add! m s bi)
1570 bi))))))
1571
1572
1573
1574
1575;; the-module
1576;;
1577(define the-module #f)
1578
7a0ff2f8 1579;; scm:eval-transformer
d43f8c97 1580;;
7a0ff2f8 1581(define scm:eval-transformer #f)
d43f8c97 1582
0f2d19dd
JB
1583;; set-current-module module
1584;;
1585;; set the current module as viewed by the normalizer.
1586;;
1587(define (set-current-module m)
7a0ff2f8
MD
1588 (set! the-module m)
1589 (if m
1590 (begin
1591 (set! *top-level-lookup-closure* (module-eval-closure the-module))
1592 (set! scm:eval-transformer (module-transformer the-module)))
1593 (set! *top-level-lookup-closure* #f)))
0f2d19dd
JB
1594
1595
1596;; current-module
1597;;
1598;; return the current module as viewed by the normalizer.
1599;;
1600(define (current-module) the-module)
1601\f
1602;;; {Module-based Loading}
1603;;;
1604
1605(define (save-module-excursion thunk)
1606 (let ((inner-module (current-module))
1607 (outer-module #f))
1608 (dynamic-wind (lambda ()
1609 (set! outer-module (current-module))
1610 (set-current-module inner-module)
1611 (set! inner-module #f))
1612 thunk
1613 (lambda ()
1614 (set! inner-module (current-module))
1615 (set-current-module outer-module)
1616 (set! outer-module #f)))))
1617
0f2d19dd
JB
1618(define basic-load load)
1619
0f2d19dd
JB
1620(define (load-module . args)
1621 (save-module-excursion (lambda () (apply basic-load args))))
1622
1623
1624\f
44cf1f0f 1625;;; {MODULE-REF -- exported}
0f2d19dd
JB
1626;;
1627;; Returns the value of a variable called NAME in MODULE or any of its
1628;; used modules. If there is no such variable, then if the optional third
1629;; argument DEFAULT is present, it is returned; otherwise an error is signaled.
1630;;
1631(define (module-ref module name . rest)
1632 (let ((variable (module-variable module name)))
1633 (if (and variable (variable-bound? variable))
1634 (variable-ref variable)
1635 (if (null? rest)
1636 (error "No variable named" name 'in module)
1637 (car rest) ; default value
1638 ))))
1639
1640;; MODULE-SET! -- exported
1641;;
1642;; Sets the variable called NAME in MODULE (or in a module that MODULE uses)
1643;; to VALUE; if there is no such variable, an error is signaled.
1644;;
1645(define (module-set! module name value)
1646 (let ((variable (module-variable module name)))
1647 (if variable
1648 (variable-set! variable value)
1649 (error "No variable named" name 'in module))))
1650
1651;; MODULE-DEFINE! -- exported
1652;;
1653;; Sets the variable called NAME in MODULE to VALUE; if there is no such
1654;; variable, it is added first.
1655;;
1656(define (module-define! module name value)
1657 (let ((variable (module-local-variable module name)))
1658 (if variable
1659 (variable-set! variable value)
1660 (module-add! module name (make-variable value name)))))
1661
ed218d98
MV
1662;; MODULE-DEFINED? -- exported
1663;;
1664;; Return #t iff NAME is defined in MODULE (or in a module that MODULE
1665;; uses)
1666;;
1667(define (module-defined? module name)
1668 (let ((variable (module-variable module name)))
1669 (and variable (variable-bound? variable))))
1670
0f2d19dd
JB
1671;; MODULE-USE! module interface
1672;;
1673;; Add INTERFACE to the list of interfaces used by MODULE.
1674;;
1675(define (module-use! module interface)
1676 (set-module-uses! module
7a0ff2f8 1677 (cons interface (delq! interface (module-uses module)))))
0f2d19dd
JB
1678
1679\f
0f2d19dd
JB
1680;;; {Recursive Namespaces}
1681;;;
1682;;;
1683;;; A hierarchical namespace emerges if we consider some module to be
1684;;; root, and variables bound to modules as nested namespaces.
1685;;;
1686;;; The routines in this file manage variable names in hierarchical namespace.
1687;;; Each variable name is a list of elements, looked up in successively nested
1688;;; modules.
1689;;;
0dd5491c 1690;;; (nested-ref some-root-module '(foo bar baz))
0f2d19dd
JB
1691;;; => <value of a variable named baz in the module bound to bar in
1692;;; the module bound to foo in some-root-module>
1693;;;
1694;;;
1695;;; There are:
1696;;;
1697;;; ;; a-root is a module
1698;;; ;; name is a list of symbols
1699;;;
0dd5491c
MD
1700;;; nested-ref a-root name
1701;;; nested-set! a-root name val
1702;;; nested-define! a-root name val
1703;;; nested-remove! a-root name
0f2d19dd
JB
1704;;;
1705;;;
1706;;; (current-module) is a natural choice for a-root so for convenience there are
1707;;; also:
1708;;;
0dd5491c
MD
1709;;; local-ref name == nested-ref (current-module) name
1710;;; local-set! name val == nested-set! (current-module) name val
1711;;; local-define! name val == nested-define! (current-module) name val
1712;;; local-remove! name == nested-remove! (current-module) name
0f2d19dd
JB
1713;;;
1714
1715
0dd5491c 1716(define (nested-ref root names)
0f2d19dd
JB
1717 (let loop ((cur root)
1718 (elts names))
1719 (cond
1720 ((null? elts) cur)
1721 ((not (module? cur)) #f)
1722 (else (loop (module-ref cur (car elts) #f) (cdr elts))))))
1723
0dd5491c 1724(define (nested-set! root names val)
0f2d19dd
JB
1725 (let loop ((cur root)
1726 (elts names))
1727 (if (null? (cdr elts))
1728 (module-set! cur (car elts) val)
1729 (loop (module-ref cur (car elts)) (cdr elts)))))
1730
0dd5491c 1731(define (nested-define! root names val)
0f2d19dd
JB
1732 (let loop ((cur root)
1733 (elts names))
1734 (if (null? (cdr elts))
1735 (module-define! cur (car elts) val)
1736 (loop (module-ref cur (car elts)) (cdr elts)))))
1737
0dd5491c 1738(define (nested-remove! root names)
0f2d19dd
JB
1739 (let loop ((cur root)
1740 (elts names))
1741 (if (null? (cdr elts))
1742 (module-remove! cur (car elts))
1743 (loop (module-ref cur (car elts)) (cdr elts)))))
1744
0dd5491c
MD
1745(define (local-ref names) (nested-ref (current-module) names))
1746(define (local-set! names val) (nested-set! (current-module) names val))
1747(define (local-define names val) (nested-define! (current-module) names val))
1748(define (local-remove names) (nested-remove! (current-module) names))
0f2d19dd
JB
1749
1750
1751\f
8bb7330c 1752;;; {The (app) module}
0f2d19dd
JB
1753;;;
1754;;; The root of conventionally named objects not directly in the top level.
1755;;;
8bb7330c
JB
1756;;; (app modules)
1757;;; (app modules guile)
0f2d19dd
JB
1758;;;
1759;;; The directory of all modules and the standard root module.
1760;;;
1761
1762(define (module-public-interface m) (module-ref m '%module-public-interface #f))
1763(define (set-module-public-interface! m i) (module-define! m '%module-public-interface i))
1764(define the-root-module (make-root-module))
1765(define the-scm-module (make-scm-module))
1766(set-module-public-interface! the-root-module the-scm-module)
1767(set-module-name! the-root-module 'the-root-module)
1768(set-module-name! the-scm-module 'the-scm-module)
1769
1770(set-current-module the-root-module)
1771
1772(define app (make-module 31))
0dd5491c
MD
1773(local-define '(app modules) (make-module 31))
1774(local-define '(app modules guile) the-root-module)
0f2d19dd
JB
1775
1776;; (define-special-value '(app modules new-ws) (lambda () (make-scm-module)))
1777
0209ca9a 1778(define (resolve-module name . maybe-autoload)
0f2d19dd 1779 (let ((full-name (append '(app modules) name)))
0dd5491c 1780 (let ((already (local-ref full-name)))
0f2d19dd
JB
1781 (or already
1782 (begin
0209ca9a 1783 (if (or (null? maybe-autoload) (car maybe-autoload))
a4f9b1f6
MD
1784 (or (try-module-linked name)
1785 (try-module-autoload name)
d0cbd20c 1786 (try-module-dynamic-link name)))
0f2d19dd
JB
1787 (make-modules-in (current-module) full-name))))))
1788
1789(define (beautify-user-module! module)
1790 (if (not (module-public-interface module))
1791 (let ((interface (make-module 31)))
1792 (set-module-name! interface (module-name module))
1793 (set-module-kind! interface 'interface)
1794 (set-module-public-interface! module interface)))
cc7f066c
MD
1795 (if (and (not (memq the-scm-module (module-uses module)))
1796 (not (eq? module the-root-module)))
0f2d19dd
JB
1797 (set-module-uses! module (append (module-uses module) (list the-scm-module)))))
1798
1799(define (make-modules-in module name)
1800 (if (null? name)
1801 module
1802 (cond
1803 ((module-ref module (car name) #f) => (lambda (m) (make-modules-in m (cdr name))))
1804 (else (let ((m (make-module 31)))
1805 (set-module-kind! m 'directory)
1806 (set-module-name! m (car name))
1807 (module-define! module (car name) m)
1808 (make-modules-in m (cdr name)))))))
1809
1810(define (resolve-interface name)
1811 (let ((module (resolve-module name)))
1812 (and module (module-public-interface module))))
1813
1814
1815(define %autoloader-developer-mode #t)
1816
1817(define (process-define-module args)
1818 (let* ((module-id (car args))
0209ca9a 1819 (module (resolve-module module-id #f))
0f2d19dd
JB
1820 (kws (cdr args)))
1821 (beautify-user-module! module)
0209ca9a
MV
1822 (let loop ((kws kws)
1823 (reversed-interfaces '()))
1824 (if (null? kws)
1825 (for-each (lambda (interface)
1826 (module-use! module interface))
1827 reversed-interfaces)
04798288
MD
1828 (case (cond ((keyword? (car kws))
1829 (keyword->symbol (car kws)))
90268b35
MD
1830 ((and (symbol? (car kws))
1831 (eq? (string-ref (car kws) 0) #\:))
04798288 1832 (string->symbol (substring (car kws) 1)))
90268b35 1833 (else #f))
04798288 1834 ((use-module)
0209ca9a
MV
1835 (if (not (pair? (cdr kws)))
1836 (error "unrecognized defmodule argument" kws))
1837 (let* ((used-name (cadr kws))
1838 (used-module (resolve-module used-name)))
1839 (if (not (module-ref used-module '%module-public-interface #f))
1840 (begin
1841 ((if %autoloader-developer-mode warn error)
1842 "no code for module" (module-name used-module))
1843 (beautify-user-module! used-module)))
1844 (let ((interface (module-public-interface used-module)))
1845 (if (not interface)
1846 (error "missing interface for use-module" used-module))
1847 (loop (cddr kws) (cons interface reversed-interfaces)))))
1848 (else
1849 (error "unrecognized defmodule argument" kws)))))
0f2d19dd
JB
1850 module))
1851\f
44cf1f0f 1852;;; {Autoloading modules}
0f2d19dd
JB
1853
1854(define autoloads-in-progress '())
1855
1856(define (try-module-autoload module-name)
6fa8995c 1857
0f2d19dd
JB
1858 (define (sfx name) (string-append name (scheme-file-suffix)))
1859 (let* ((reverse-name (reverse module-name))
1860 (name (car reverse-name))
1861 (dir-hint-module-name (reverse (cdr reverse-name)))
1862 (dir-hint (apply symbol-append (map (lambda (elt) (symbol-append elt "/")) dir-hint-module-name))))
0209ca9a 1863 (resolve-module dir-hint-module-name #f)
0f2d19dd
JB
1864 (and (not (autoload-done-or-in-progress? dir-hint name))
1865 (let ((didit #f))
1866 (dynamic-wind
1867 (lambda () (autoload-in-progress! dir-hint name))
1868 (lambda ()
1869 (let loop ((dirs %load-path))
1870 (and (not (null? dirs))
1871 (or
1872 (let ((d (car dirs))
1873 (trys (list
1874 dir-hint
1875 (sfx dir-hint)
1876 (in-vicinity dir-hint name)
1877 (in-vicinity dir-hint (sfx name)))))
1878 (and (or-map (lambda (f)
1879 (let ((full (in-vicinity d f)))
1880 full
6fa8995c
GH
1881 (and (file-exists? full)
1882 (not (file-is-directory? full))
0f2d19dd
JB
1883 (begin
1884 (save-module-excursion
1885 (lambda ()
5552355a
GH
1886 (load (string-append
1887 d "/" f))))
0f2d19dd
JB
1888 #t))))
1889 trys)
1890 (begin
1891 (set! didit #t)
1892 #t)))
1893 (loop (cdr dirs))))))
1894 (lambda () (set-autoloaded! dir-hint name didit)))
1895 didit))))
1896
d0cbd20c
MV
1897;;; Dynamic linking of modules
1898
1899;; Initializing a module that is written in C is a two step process.
1900;; First the module's `module init' function is called. This function
1901;; is expected to call `scm_register_module_xxx' to register the `real
1902;; init' function. Later, when the module is referenced for the first
1903;; time, this real init function is called in the right context. See
1904;; gtcltk-lib/gtcltk-module.c for an example.
1905;;
1906;; The code for the module can be in a regular shared library (so that
1907;; the `module init' function will be called when libguile is
1908;; initialized). Or it can be dynamically linked.
1909;;
1910;; You can safely call `scm_register_module_xxx' before libguile
1911;; itself is initialized. You could call it from an C++ constructor
1912;; of a static object, for example.
1913;;
1914;; To make your Guile extension into a dynamic linkable module, follow
1915;; these easy steps:
1916;;
8bb7330c 1917;; - Find a name for your module, like (ice-9 gtcltk)
d0cbd20c
MV
1918;; - Write a function with a name like
1919;;
1920;; scm_init_ice_9_gtcltk_module
1921;;
1922;; This is your `module init' function. It should call
1923;;
1924;; scm_register_module_xxx ("ice-9 gtcltk", scm_init_gtcltk);
1925;;
1926;; "ice-9 gtcltk" is the C version of the module name. Slashes are
1927;; replaced by spaces, the rest is untouched. `scm_init_gtcltk' is
ed218d98 1928;; the real init function that executes the usual initializations
d0cbd20c
MV
1929;; like making new smobs, etc.
1930;;
1931;; - Make a shared library with your code and a name like
1932;;
1933;; ice-9/libgtcltk.so
1934;;
1935;; and put it somewhere in %load-path.
1936;;
8bb7330c 1937;; - Then you can simply write `:use-module (ice-9 gtcltk)' and it
d0cbd20c
MV
1938;; will be linked automatically.
1939;;
1940;; This is all very experimental.
1941
1942(define (split-c-module-name str)
1943 (let loop ((rev '())
1944 (start 0)
1945 (pos 0)
1946 (end (string-length str)))
1947 (cond
1948 ((= pos end)
1949 (reverse (cons (string->symbol (substring str start pos)) rev)))
1950 ((eq? (string-ref str pos) #\space)
1951 (loop (cons (string->symbol (substring str start pos)) rev)
1952 (+ pos 1)
1953 (+ pos 1)
1954 end))
1955 (else
1956 (loop rev start (+ pos 1) end)))))
1957
1958(define (convert-c-registered-modules dynobj)
1959 (let ((res (map (lambda (c)
1960 (list (split-c-module-name (car c)) (cdr c) dynobj))
1961 (c-registered-modules))))
1962 (c-clear-registered-modules)
1963 res))
1964
1965(define registered-modules (convert-c-registered-modules #f))
1966
1967(define (init-dynamic-module modname)
1968 (or-map (lambda (modinfo)
1969 (if (equal? (car modinfo) modname)
1970 (let ((mod (resolve-module modname #f)))
1971 (save-module-excursion
1972 (lambda ()
1973 (set-current-module mod)
1974 (dynamic-call (cadr modinfo) (caddr modinfo))
1975 (set-module-public-interface! mod mod)))
1976 (set! registered-modules (delq! modinfo registered-modules))
1977 #t)
1978 #f))
1979 registered-modules))
1980
1981(define (dynamic-maybe-call name dynobj)
1982 (catch #t ; could use false-if-exception here
1983 (lambda ()
1984 (dynamic-call name dynobj))
1985 (lambda args
1986 #f)))
1987
ed218d98
MV
1988(define (dynamic-maybe-link filename)
1989 (catch #t ; could use false-if-exception here
1990 (lambda ()
1991 (dynamic-link filename))
1992 (lambda args
1993 #f)))
1994
d0cbd20c
MV
1995(define (find-and-link-dynamic-module module-name)
1996 (define (make-init-name mod-name)
1997 (string-append 'scm_init
1998 (list->string (map (lambda (c)
1999 (if (or (char-alphabetic? c)
2000 (char-numeric? c))
2001 c
2002 #\_))
2003 (string->list mod-name)))
2004 '_module))
2005 (let ((libname
2006 (let loop ((dirs "")
2007 (syms module-name))
2008 (cond
2009 ((null? (cdr syms))
2010 (string-append dirs "lib" (car syms) ".so"))
2011 (else
2012 (loop (string-append dirs (car syms) "/") (cdr syms))))))
2013 (init (make-init-name (apply string-append
2014 (map (lambda (s)
2015 (string-append "_" s))
2016 module-name)))))
2017 ;; (pk 'libname libname 'init init)
2018 (or-map
2019 (lambda (dir)
2020 (let ((full (in-vicinity dir libname)))
2021 ;; (pk 'trying full)
2022 (if (file-exists? full)
2023 (begin
2024 (link-dynamic-module full init)
2025 #t)
2026 #f)))
2027 %load-path)))
2028
2029(define (link-dynamic-module filename initname)
6b856182
MV
2030 (let ((dynobj (dynamic-link filename)))
2031 (dynamic-call initname dynobj)
2032 (set! registered-modules
2033 (append! (convert-c-registered-modules dynobj)
2034 registered-modules))))
a4f9b1f6
MD
2035
2036(define (try-module-linked module-name)
2037 (init-dynamic-module module-name))
2038
d0cbd20c 2039(define (try-module-dynamic-link module-name)
a4f9b1f6
MD
2040 (and (find-and-link-dynamic-module module-name)
2041 (init-dynamic-module module-name)))
d0cbd20c 2042
ed218d98
MV
2043
2044
0f2d19dd
JB
2045(define autoloads-done '((guile . guile)))
2046
2047(define (autoload-done-or-in-progress? p m)
2048 (let ((n (cons p m)))
2049 (->bool (or (member n autoloads-done)
2050 (member n autoloads-in-progress)))))
2051
2052(define (autoload-done! p m)
2053 (let ((n (cons p m)))
2054 (set! autoloads-in-progress
2055 (delete! n autoloads-in-progress))
2056 (or (member n autoloads-done)
2057 (set! autoloads-done (cons n autoloads-done)))))
2058
2059(define (autoload-in-progress! p m)
2060 (let ((n (cons p m)))
2061 (set! autoloads-done
2062 (delete! n autoloads-done))
2063 (set! autoloads-in-progress (cons n autoloads-in-progress))))
2064
2065(define (set-autoloaded! p m done?)
2066 (if done?
2067 (autoload-done! p m)
2068 (let ((n (cons p m)))
2069 (set! autoloads-done (delete! n autoloads-done))
2070 (set! autoloads-in-progress (delete! n autoloads-in-progress)))))
2071
2072
2073
2074
2075\f
2076;;; {Macros}
2077;;;
2078
7a0ff2f8
MD
2079(define (primitive-macro? m)
2080 (and (macro? m)
2081 (not (macro-transformer m))))
2082
2083;;; {Defmacros}
2084;;;
9591db87
MD
2085(define macro-table (make-weak-key-hash-table 523))
2086(define xformer-table (make-weak-key-hash-table 523))
0f2d19dd
JB
2087
2088(define (defmacro? m) (hashq-ref macro-table m))
2089(define (assert-defmacro?! m) (hashq-set! macro-table m #t))
2090(define (defmacro-transformer m) (hashq-ref xformer-table m))
2091(define (set-defmacro-transformer! m t) (hashq-set! xformer-table m t))
2092
2093(define defmacro:transformer
2094 (lambda (f)
2095 (let* ((xform (lambda (exp env)
2096 (copy-tree (apply f (cdr exp)))))
2097 (a (procedure->memoizing-macro xform)))
2098 (assert-defmacro?! a)
2099 (set-defmacro-transformer! a f)
2100 a)))
2101
2102
2103(define defmacro
2104 (let ((defmacro-transformer
2105 (lambda (name parms . body)
2106 (let ((transformer `(lambda ,parms ,@body)))
2107 `(define ,name
2108 (,(lambda (transformer)
2109 (defmacro:transformer transformer))
2110 ,transformer))))))
2111 (defmacro:transformer defmacro-transformer)))
2112
2113(define defmacro:syntax-transformer
2114 (lambda (f)
2115 (procedure->syntax
2116 (lambda (exp env)
2117 (copy-tree (apply f (cdr exp)))))))
2118
ed218d98
MV
2119
2120;; XXX - should the definition of the car really be looked up in the
2121;; current module?
2122
0f2d19dd
JB
2123(define (macroexpand-1 e)
2124 (cond
2125 ((pair? e) (let* ((a (car e))
ed218d98 2126 (val (and (symbol? a) (local-ref (list a)))))
0f2d19dd
JB
2127 (if (defmacro? val)
2128 (apply (defmacro-transformer val) (cdr e))
2129 e)))
2130 (#t e)))
2131
2132(define (macroexpand e)
2133 (cond
2134 ((pair? e) (let* ((a (car e))
ed218d98 2135 (val (and (symbol? a) (local-ref (list a)))))
0f2d19dd
JB
2136 (if (defmacro? val)
2137 (macroexpand (apply (defmacro-transformer val) (cdr e)))
2138 e)))
2139 (#t e)))
2140
e672f1b5
MD
2141(define (gentemp)
2142 (gensym "scm:G"))
0f2d19dd 2143
534a0099 2144(provide 'defmacro)
0f2d19dd
JB
2145
2146\f
2147
83b38198
MD
2148;;; {Run-time options}
2149
2150((let* ((names '((debug-options-interface
2151 (debug-options debug-enable debug-disable)
2152 (debug-set!))
2153
2154 (evaluator-traps-interface
2155 (traps trap-enable trap-disable)
2156 (trap-set!))
2157
2158 (read-options-interface
2159 (read-options read-enable read-disable)
2160 (read-set!))
2161
2162 (print-options-interface
2163 (print-options print-enable print-disable)
2164 (print-set!))
2165 ))
2166 (option-name car)
2167 (option-value cadr)
2168 (option-documentation caddr)
2169
2170 (print-option (lambda (option)
2171 (display (option-name option))
2172 (if (< (string-length
2173 (symbol->string (option-name option)))
2174 8)
2175 (display #\tab))
2176 (display #\tab)
2177 (display (option-value option))
2178 (display #\tab)
2179 (display (option-documentation option))
2180 (newline)))
2181
2182 ;; Below follows the macros defining the run-time option interfaces.
2183
2184 (make-options (lambda (interface)
2185 `(lambda args
2186 (cond ((null? args) (,interface))
2187 ((pair? (car args))
2188 (,interface (car args)) (,interface))
2f110c3c 2189 (else (for-each ,print-option
83b38198
MD
2190 (,interface #t)))))))
2191
2192 (make-enable (lambda (interface)
2193 `(lambda flags
2194 (,interface (append flags (,interface)))
2195 (,interface))))
2196
2197 (make-disable (lambda (interface)
2198 `(lambda flags
2199 (let ((options (,interface)))
2200 (for-each (lambda (flag)
2201 (set! options (delq! flag options)))
2202 flags)
2203 (,interface options)
2204 (,interface)))))
2205
2206 (make-set! (lambda (interface)
2207 `((name exp)
2208 (,'quasiquote
2209 (begin (,interface (append (,interface)
2210 (list '(,'unquote name)
2211 (,'unquote exp))))
2212 (,interface))))))
2213 )
2214 (procedure->macro
2215 (lambda (exp env)
2216 (cons 'begin
2217 (apply append
2218 (map (lambda (group)
2219 (let ((interface (car group)))
2220 (append (map (lambda (name constructor)
2221 `(define ,name
2222 ,(constructor interface)))
2223 (cadr group)
2224 (list make-options
2225 make-enable
2226 make-disable))
2227 (map (lambda (name constructor)
2228 `(defmacro ,name
2229 ,@(constructor interface)))
2230 (caddr group)
2231 (list make-set!)))))
2232 names)))))))
2233
2234\f
2235
0f2d19dd
JB
2236;;; {Running Repls}
2237;;;
2238
2239(define (repl read evaler print)
75a97b92 2240 (let loop ((source (read (current-input-port))))
0f2d19dd 2241 (print (evaler source))
75a97b92 2242 (loop (read (current-input-port)))))
0f2d19dd
JB
2243
2244;; A provisional repl that acts like the SCM repl:
2245;;
2246(define scm-repl-silent #f)
2247(define (assert-repl-silence v) (set! scm-repl-silent v))
2248
21ed9efe
MD
2249(define *unspecified* (if #f #f))
2250(define (unspecified? v) (eq? v *unspecified*))
2251
2252(define scm-repl-print-unspecified #f)
2253(define (assert-repl-print-unspecified v) (set! scm-repl-print-unspecified v))
2254
79451588 2255(define scm-repl-verbose #f)
0f2d19dd
JB
2256(define (assert-repl-verbosity v) (set! scm-repl-verbose v))
2257
e6875011 2258(define scm-repl-prompt "guile> ")
0f2d19dd 2259
e6875011
MD
2260(define (set-repl-prompt! v) (set! scm-repl-prompt v))
2261
d5d34fa1
MD
2262(define (default-lazy-handler key . args)
2263 (save-stack lazy-handler-dispatch)
2264 (apply throw key args))
2265
2266(define apply-frame-handler default-lazy-handler)
2267(define exit-frame-handler default-lazy-handler)
2268
2269(define (lazy-handler-dispatch key . args)
2270 (case key
2271 ((apply-frame)
2272 (apply apply-frame-handler key args))
2273 ((exit-frame)
2274 (apply exit-frame-handler key args))
2275 (else
2276 (apply default-lazy-handler key args))))
0f2d19dd 2277
59e1116d
MD
2278(define abort-hook '())
2279
0f2d19dd 2280(define (error-catching-loop thunk)
8e44e7a0
GH
2281 (let ((status #f))
2282 (define (loop first)
2283 (let ((next
2284 (catch #t
9a0d70e2 2285
8e44e7a0
GH
2286 (lambda ()
2287 (lazy-catch #t
2288 (lambda ()
2289 (dynamic-wind
2290 (lambda () (unmask-signals))
2291 (lambda ()
2292 (first)
2293
2294 ;; This line is needed because mark
2295 ;; doesn't do closures quite right.
2296 ;; Unreferenced locals should be
2297 ;; collected.
2298 ;;
2299 (set! first #f)
2300 (let loop ((v (thunk)))
2301 (loop (thunk)))
2302 #f)
2303 (lambda () (mask-signals))))
2304
2305 lazy-handler-dispatch))
2306
2307 (lambda (key . args)
2308 (case key
2309 ((quit)
8e44e7a0
GH
2310 (force-output)
2311 (set! status args)
2312 #f)
2313
2314 ((switch-repl)
2315 (apply throw 'switch-repl args))
2316
2317 ((abort)
2318 ;; This is one of the closures that require
2319 ;; (set! first #f) above
2320 ;;
2321 (lambda ()
2322 (run-hooks abort-hook)
2323 (force-output)
2324 (display "ABORT: " (current-error-port))
2325 (write args (current-error-port))
2326 (newline (current-error-port))
2327 (if (and (not has-shown-debugger-hint?)
2328 (not (memq 'backtrace
2329 (debug-options-interface)))
2330 (stack? the-last-stack))
2331 (begin
2332 (newline (current-error-port))
2333 (display
2334 "Type \"(backtrace)\" to get more information.\n"
2335 (current-error-port))
2336 (set! has-shown-debugger-hint? #t)))
2337 (set! stack-saved? #f)))
2338
2339 (else
2340 ;; This is the other cons-leak closure...
2341 (lambda ()
2342 (cond ((= (length args) 4)
2343 (apply handle-system-error key args))
2344 (else
2345 (apply bad-throw key args))))))))))
2346 (if next (loop next) status)))
2347 (loop (lambda () #t))))
0f2d19dd 2348
d590bbf6 2349;;(define the-last-stack #f) Defined by scm_init_backtrace ()
21ed9efe
MD
2350(define stack-saved? #f)
2351
2352(define (save-stack . narrowing)
2353 (cond (stack-saved?)
2354 ((not (memq 'debug (debug-options-interface)))
2355 (set! the-last-stack #f)
2356 (set! stack-saved? #t))
2357 (else
2358 (set! the-last-stack
2359 (case (stack-id #t)
2360 ((repl-stack)
2361 (apply make-stack #t save-stack eval narrowing))
2362 ((load-stack)
096d5f90 2363 (apply make-stack #t save-stack 0 narrowing))
21ed9efe
MD
2364 ((tk-stack)
2365 (apply make-stack #t save-stack tk-stack-mark narrowing))
2366 ((#t)
e6875011 2367 (apply make-stack #t save-stack 0 1 narrowing))
21ed9efe
MD
2368 (else (let ((id (stack-id #t)))
2369 (and (procedure? id)
2370 (apply make-stack #t save-stack id narrowing))))))
2371 (set! stack-saved? #t))))
1c6cd8e8 2372
59e1116d
MD
2373(define before-error-hook '())
2374(define after-error-hook '())
2375(define before-backtrace-hook '())
2376(define after-backtrace-hook '())
1c6cd8e8 2377
21ed9efe
MD
2378(define has-shown-debugger-hint? #f)
2379
35c5db87
GH
2380(define (handle-system-error key . args)
2381 (let ((cep (current-error-port)))
21ed9efe
MD
2382 (cond ((not (stack? the-last-stack)))
2383 ((memq 'backtrace (debug-options-interface))
59e1116d 2384 (run-hooks before-backtrace-hook)
21ed9efe
MD
2385 (newline cep)
2386 (display-backtrace the-last-stack cep)
2387 (newline cep)
59e1116d
MD
2388 (run-hooks after-backtrace-hook)))
2389 (run-hooks before-error-hook)
c27659c8 2390 (apply display-error the-last-stack cep args)
59e1116d 2391 (run-hooks after-error-hook)
35c5db87
GH
2392 (force-output cep)
2393 (throw 'abort key)))
21ed9efe 2394
0f2d19dd
JB
2395(define (quit . args)
2396 (apply throw 'quit args))
2397
7950df7c
GH
2398(define exit quit)
2399
d590bbf6
MD
2400;;(define has-shown-backtrace-hint? #f) Defined by scm_init_backtrace ()
2401
2402;; Replaced by C code:
2403;;(define (backtrace)
2404;; (if the-last-stack
2405;; (begin
2406;; (newline)
2407;; (display-backtrace the-last-stack (current-output-port))
2408;; (newline)
2409;; (if (and (not has-shown-backtrace-hint?)
2410;; (not (memq 'backtrace (debug-options-interface))))
2411;; (begin
2412;; (display
2413;;"Type \"(debug-enable 'backtrace)\" if you would like a backtrace
2414;;automatically if an error occurs in the future.\n")
2415;; (set! has-shown-backtrace-hint? #t))))
2416;; (display "No backtrace available.\n")))
21ed9efe 2417
0f2d19dd
JB
2418(define (error-catching-repl r e p)
2419 (error-catching-loop (lambda () (p (e (r))))))
2420
2421(define (gc-run-time)
2422 (cdr (assq 'gc-time-taken (gc-stats))))
2423
59e1116d
MD
2424(define before-read-hook '())
2425(define after-read-hook '())
1c6cd8e8 2426
0f2d19dd
JB
2427(define (scm-style-repl)
2428 (letrec (
2429 (start-gc-rt #f)
2430 (start-rt #f)
2431 (repl-report-reset (lambda () #f))
2432 (repl-report-start-timing (lambda ()
2433 (set! start-gc-rt (gc-run-time))
2434 (set! start-rt (get-internal-run-time))))
2435 (repl-report (lambda ()
2436 (display ";;; ")
2437 (display (inexact->exact
2438 (* 1000 (/ (- (get-internal-run-time) start-rt)
2439 internal-time-units-per-second))))
2440 (display " msec (")
2441 (display (inexact->exact
2442 (* 1000 (/ (- (gc-run-time) start-gc-rt)
2443 internal-time-units-per-second))))
2444 (display " msec in gc)\n")))
480977d0
JB
2445
2446 (consume-trailing-whitespace
2447 (lambda ()
2448 (let ((ch (peek-char)))
2449 (cond
2450 ((eof-object? ch))
2451 ((or (char=? ch #\space) (char=? ch #\tab))
2452 (read-char)
2453 (consume-trailing-whitespace))
2454 ((char=? ch #\newline)
2455 (read-char))))))
0f2d19dd
JB
2456 (-read (lambda ()
2457 (if scm-repl-prompt
2458 (begin
e6875011
MD
2459 (display (cond ((string? scm-repl-prompt)
2460 scm-repl-prompt)
2461 ((thunk? scm-repl-prompt)
2462 (scm-repl-prompt))
2463 (else "> ")))
0f2d19dd
JB
2464 (force-output)
2465 (repl-report-reset)))
59e1116d 2466 (run-hooks before-read-hook)
75a97b92 2467 (let ((val (read (current-input-port))))
480977d0
JB
2468 ;; As described in R4RS, the READ procedure updates the
2469 ;; port to point to the first characetr past the end of
2470 ;; the external representation of the object. This
2471 ;; means that it doesn't consume the newline typically
2472 ;; found after an expression. This means that, when
2473 ;; debugging Guile with GDB, GDB gets the newline, which
2474 ;; it often interprets as a "continue" command, making
2475 ;; breakpoints kind of useless. So, consume any
2476 ;; trailing newline here, as well as any whitespace
2477 ;; before it.
2478 (consume-trailing-whitespace)
59e1116d 2479 (run-hooks after-read-hook)
0f2d19dd
JB
2480 (if (eof-object? val)
2481 (begin
7950df7c 2482 (repl-report-start-timing)
0f2d19dd
JB
2483 (if scm-repl-verbose
2484 (begin
2485 (newline)
2486 (display ";;; EOF -- quitting")
2487 (newline)))
2488 (quit 0)))
2489 val)))
2490
2491 (-eval (lambda (sourc)
2492 (repl-report-start-timing)
4cdee789 2493 (start-stack 'repl-stack (eval sourc))))
0f2d19dd
JB
2494
2495 (-print (lambda (result)
2496 (if (not scm-repl-silent)
2497 (begin
21ed9efe
MD
2498 (if (or scm-repl-print-unspecified
2499 (not (unspecified? result)))
2500 (begin
2501 (write result)
2502 (newline)))
0f2d19dd
JB
2503 (if scm-repl-verbose
2504 (repl-report))
2505 (force-output)))))
2506
8e44e7a0 2507 (-quit (lambda (args)
0f2d19dd
JB
2508 (if scm-repl-verbose
2509 (begin
2510 (display ";;; QUIT executed, repl exitting")
2511 (newline)
2512 (repl-report)))
8e44e7a0 2513 args))
0f2d19dd
JB
2514
2515 (-abort (lambda ()
2516 (if scm-repl-verbose
2517 (begin
2518 (display ";;; ABORT executed.")
2519 (newline)
2520 (repl-report)))
2521 (repl -read -eval -print))))
2522
8e44e7a0
GH
2523 (let ((status (error-catching-repl -read
2524 -eval
2525 -print)))
2526 (-quit status))))
2527
0f2d19dd 2528
0f2d19dd 2529\f
44cf1f0f 2530;;; {IOTA functions: generating lists of numbers}
0f2d19dd
JB
2531
2532(define (reverse-iota n) (if (> n 0) (cons (1- n) (reverse-iota (1- n))) '()))
24b2aac7 2533(define (iota n) (reverse! (reverse-iota n)))
0f2d19dd
JB
2534
2535\f
2536;;; {While}
2537;;;
2538;;; with `continue' and `break'.
2539;;;
2540
2541(defmacro while (cond . body)
2542 `(letrec ((continue (lambda () (or (not ,cond) (begin (begin ,@ body) (continue)))))
2543 (break (lambda val (apply throw 'break val))))
2544 (catch 'break
2545 (lambda () (continue))
2546 (lambda v (cadr v)))))
2547
2548
8a6a8671
MV
2549;;; {with-fluids}
2550
2551;; with-fluids is a convenience wrapper for the builtin procedure
2552;; `with-fluids*'. The syntax is just like `let':
2553;;
2554;; (with-fluids ((fluid val)
2555;; ...)
2556;; body)
2557
2558(defmacro with-fluids (bindings . body)
2559 `(with-fluids* (list ,@(map car bindings)) (list ,@(map cadr bindings))
2560 (lambda () ,@body)))
2561
0f2d19dd
JB
2562\f
2563
2564;;; {Macros}
2565;;;
2566
2567;; actually....hobbit might be able to hack these with a little
2568;; coaxing
2569;;
2570
2571(defmacro define-macro (first . rest)
2572 (let ((name (if (symbol? first) first (car first)))
2573 (transformer
2574 (if (symbol? first)
2575 (car rest)
2576 `(lambda ,(cdr first) ,@rest))))
2577 `(define ,name (defmacro:transformer ,transformer))))
2578
2579
2580(defmacro define-syntax-macro (first . rest)
2581 (let ((name (if (symbol? first) first (car first)))
2582 (transformer
2583 (if (symbol? first)
2584 (car rest)
2585 `(lambda ,(cdr first) ,@rest))))
2586 `(define ,name (defmacro:syntax-transformer ,transformer))))
2587\f
2588;;; {Module System Macros}
2589;;;
2590
2591(defmacro define-module args
2592 `(let* ((process-define-module process-define-module)
2593 (set-current-module set-current-module)
2594 (module (process-define-module ',args)))
2595 (set-current-module module)
2596 module))
2597
89da9036
MV
2598;; the guts of the use-modules macro. add the interfaces of the named
2599;; modules to the use-list of the current module, in order
2600(define (process-use-modules module-names)
2601 (for-each (lambda (module-name)
2602 (let ((mod-iface (resolve-interface module-name)))
2603 (or mod-iface
2604 (error "no such module" module-name))
2605 (module-use! (current-module) mod-iface)))
2606 (reverse module-names)))
2607
33cf699f 2608(defmacro use-modules modules
89da9036 2609 `(process-use-modules ',modules))
33cf699f 2610
7a0ff2f8
MD
2611(define (use-syntax transformer)
2612 (set-module-transformer! (current-module) transformer)
2613 (set! scm:eval-transformer transformer))
2614
0f2d19dd
JB
2615(define define-private define)
2616
2617(defmacro define-public args
2618 (define (syntax)
2619 (error "bad syntax" (list 'define-public args)))
2620 (define (defined-name n)
2621 (cond
3c5af9ef
JB
2622 ((symbol? n) n)
2623 ((pair? n) (defined-name (car n)))
2624 (else (syntax))))
0f2d19dd 2625 (cond
3c5af9ef
JB
2626 ((null? args) (syntax))
2627
2628 (#t (let ((name (defined-name (car args))))
2629 `(begin
2630 (let ((public-i (module-public-interface (current-module))))
2631 ;; Make sure there is a local variable:
2632 ;;
2633 (module-define! (current-module)
2634 ',name
2635 (module-ref (current-module) ',name #f))
0f2d19dd 2636
3c5af9ef
JB
2637 ;; Make sure that local is exported:
2638 ;;
2639 (module-add! public-i ',name
2640 (module-variable (current-module) ',name)))
0f2d19dd 2641
3c5af9ef
JB
2642 ;; Now (re)define the var normally. Bernard URBAN
2643 ;; suggests we use eval here to accomodate Hobbit; it lets
2644 ;; the interpreter handle the define-private form, which
2645 ;; Hobbit can't digest.
2646 (eval '(define-private ,@ args)))))))
0f2d19dd
JB
2647
2648
2649
2650(defmacro defmacro-public args
2651 (define (syntax)
2652 (error "bad syntax" (list 'defmacro-public args)))
2653 (define (defined-name n)
2654 (cond
2655 ((symbol? n) n)
2656 (else (syntax))))
2657 (cond
2658 ((null? args) (syntax))
2659
2660 (#t (let ((name (defined-name (car args))))
2661 `(begin
2662 (let ((public-i (module-public-interface (current-module))))
2663 ;; Make sure there is a local variable:
2664 ;;
2665 (module-define! (current-module)
2666 ',name
2667 (module-ref (current-module) ',name #f))
2668
2669 ;; Make sure that local is exported:
2670 ;;
2671 (module-add! public-i ',name (module-variable (current-module) ',name)))
2672
2673 ;; Now (re)define the var normally.
2674 ;;
2675 (defmacro ,@ args))))))
2676
2677
2678
2679
0f2d19dd 2680(define load load-module)
1c6cd8e8
MD
2681;(define (load . args)
2682; (start-stack 'load-stack (apply load-module args)))
0f2d19dd
JB
2683
2684
2685\f
44cf1f0f 2686;;; {I/O functions for Tcl channels (disabled)}
0f2d19dd
JB
2687
2688;; (define in-ch (get-standard-channel TCL_STDIN))
2689;; (define out-ch (get-standard-channel TCL_STDOUT))
2690;; (define err-ch (get-standard-channel TCL_STDERR))
2691;;
2692;; (define inp (%make-channel-port in-ch "r"))
2693;; (define outp (%make-channel-port out-ch "w"))
2694;; (define errp (%make-channel-port err-ch "w"))
2695;;
2696;; (define %system-char-ready? char-ready?)
2697;;
2698;; (define (char-ready? p)
2699;; (if (not (channel-port? p))
2700;; (%system-char-ready? p)
2701;; (let* ((channel (%channel-port-channel p))
2702;; (old-blocking (channel-option-ref channel :blocking)))
2703;; (dynamic-wind
2704;; (lambda () (set-channel-option the-root-tcl-interpreter channel :blocking "0"))
2705;; (lambda () (not (eof-object? (peek-char p))))
2706;; (lambda () (set-channel-option the-root-tcl-interpreter channel :blocking old-blocking))))))
2707;;
2708;; (define (top-repl)
2709;; (with-input-from-port inp
2710;; (lambda ()
2711;; (with-output-to-port outp
2712;; (lambda ()
2713;; (with-error-to-port errp
2714;; (lambda ()
2715;; (scm-style-repl))))))))
2716;;
2717;; (set-current-input-port inp)
2718;; (set-current-output-port outp)
2719;; (set-current-error-port errp)
2720
e1a191a8
GH
2721;; this is just (scm-style-repl) with a wrapper to install and remove
2722;; signal handlers.
8e44e7a0 2723(define (top-repl)
e1a191a8
GH
2724 (let ((old-handlers #f)
2725 (signals `((,SIGINT . "User interrupt")
2726 (,SIGFPE . "Arithmetic error")
2727 (,SIGBUS . "Bad memory access (bus error)")
2728 (,SIGSEGV . "Bad memory access (Segmentation violation)"))))
2729
2730 (dynamic-wind
2731
2732 ;; call at entry
2733 (lambda ()
2734 (let ((make-handler (lambda (msg)
2735 (lambda (sig)
096d5f90 2736 (save-stack %deliver-signals)
e1a191a8
GH
2737 (scm-error 'signal
2738 #f
2739 msg
2740 #f
2741 (list sig))))))
2742 (set! old-handlers
2743 (map (lambda (sig-msg)
2744 (sigaction (car sig-msg)
2745 (make-handler (cdr sig-msg))))
2746 signals))))
2747
2748 ;; the protected thunk.
2749 (lambda ()
2750 (scm-style-repl))
2751
2752 ;; call at exit.
2753 (lambda ()
2754 (map (lambda (sig-msg old-handler)
2755 (if (not (car old-handler))
2756 ;; restore original C handler.
2757 (sigaction (car sig-msg) #f)
2758 ;; restore Scheme handler, SIG_IGN or SIG_DFL.
2759 (sigaction (car sig-msg)
2760 (car old-handler)
2761 (cdr old-handler))))
2762 signals old-handlers)))))
0f2d19dd 2763
02b754d3
GH
2764(defmacro false-if-exception (expr)
2765 `(catch #t (lambda () ,expr)
2766 (lambda args #f)))
2767
c56634ba
MD
2768;;; {Load debug extension code if debug extensions present.}
2769;;;
2770;;; *fixme* This is a temporary solution.
2771;;;
0f2d19dd 2772
c56634ba 2773(if (memq 'debug-extensions *features*)
90895e5c
MD
2774 (define-module (guile) :use-module (ice-9 debug)))
2775
2776\f
90d5e280
MD
2777;;; {Load session support if present.}
2778;;;
2779;;; *fixme* This is a temporary solution.
2780;;;
2781
2782(if (%search-load-path "ice-9/session.scm")
2783 (define-module (guile) :use-module (ice-9 session)))
2784
2785\f
90895e5c
MD
2786;;; {Load thread code if threads are present.}
2787;;;
2788;;; *fixme* This is a temporary solution.
2789;;;
2790
2791(if (memq 'threads *features*)
2792 (define-module (guile) :use-module (ice-9 threads)))
2793
21ed9efe
MD
2794\f
2795;;; {Load emacs interface support if emacs option is given.}
2796;;;
2797;;; *fixme* This is a temporary solution.
2798;;;
2799
2e3fbd8d
MD
2800(if (and (module-defined? the-root-module 'use-emacs-interface)
2801 use-emacs-interface)
8309a10d
MD
2802 (begin
2803 (if (memq 'debug-extensions *features*)
2804 (debug-enable 'backtrace))
2805 (define-module (guile) :use-module (ice-9 emacs))))
21ed9efe
MD
2806
2807\f
05817d9e
JB
2808;;; {Load regexp code if regexp primitives are available.}
2809
2810(if (memq 'regex *features*)
2811 (define-module (guile) :use-module (ice-9 regex)))
2812
2813\f
9946dd45
JB
2814;;; {Check that the interpreter and scheme code match up.}
2815
2816(let ((show-line
2817 (lambda args
2818 (with-output-to-port (current-error-port)
2819 (lambda ()
2820 (display (car (command-line)))
2821 (display ": ")
2822 (for-each (lambda (string) (display string))
2823 args)
2824 (newline))))))
2825
2826 (load-from-path "ice-9/version.scm")
2827
2828 (if (not (string=?
2829 (libguile-config-stamp) ; from the interprpreter
2830 (ice-9-config-stamp))) ; from the Scheme code
2831 (begin
2832 (show-line "warning: different versions of libguile and ice-9:")
2833 (show-line "libguile: configured on " (libguile-config-stamp))
2834 (show-line "ice-9: configured on " (ice-9-config-stamp)))))
2835
2836\f
21ed9efe 2837
90895e5c 2838(define-module (guile))
6fa8995c
GH
2839
2840(append! %load-path (cons "." ()))
ae335672
MV
2841
2842(define (inherit-print-state old-port new-port)
2843 (if (pair? old-port)
1c11d900
MV
2844 (cons (if (pair? new-port) (car new-port) new-port)
2845 (cdr old-port))
ae335672 2846 new-port))