make each invocation of `while' throw to different keys
[bpt/guile.git] / ice-9 / boot-9.scm
CommitLineData
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1;;; installed-scm-file
2
9a18d8d4 3;;;; Copyright (C) 1995,1996,1997,1998,1999,2000,2001,2002,2003,2004,2005,2006,2007
3d2ada2f 4;;;; Free Software Foundation, Inc.
20edfbbd 5;;;;
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6;;;; This library is free software; you can redistribute it and/or
7;;;; modify it under the terms of the GNU Lesser General Public
8;;;; License as published by the Free Software Foundation; either
9;;;; version 2.1 of the License, or (at your option) any later version.
10;;;;
11;;;; This library is distributed in the hope that it will be useful,
0f2d19dd 12;;;; but WITHOUT ANY WARRANTY; without even the implied warranty of
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13;;;; MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
14;;;; Lesser General Public License for more details.
15;;;;
16;;;; You should have received a copy of the GNU Lesser General Public
17;;;; License along with this library; if not, write to the Free Software
92205699 18;;;; Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
a482f2cc 19;;;;
3d2ada2f 20
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21\f
22
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23;;; Commentary:
24
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25;;; This file is the first thing loaded into Guile. It adds many mundane
26;;; definitions and a few that are interesting.
27;;;
20edfbbd 28;;; The module system (hence the hierarchical namespace) are defined in this
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29;;; file.
30;;;
31
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32;;; Code:
33
0f2d19dd 34\f
9fb41cea 35
21ed9efe 36;;; {Features}
3d2ada2f 37;;;
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38
39(define (provide sym)
40 (if (not (memq sym *features*))
41 (set! *features* (cons sym *features*))))
42
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43;; Return #t iff FEATURE is available to this Guile interpreter. In SLIB,
44;; provided? also checks to see if the module is available. We should do that
45;; too, but don't.
46
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47(define (provided? feature)
48 (and (memq feature *features*) #t))
49
3d2ada2f 50;; let format alias simple-format until the more complete version is loaded
52cfc69b 51
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52(define format simple-format)
53
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54;; this is scheme wrapping the C code so the final pred call is a tail call,
55;; per SRFI-13 spec
56(define (string-any char_pred s . rest)
57 (let ((start (if (null? rest)
58 0 (car rest)))
59 (end (if (or (null? rest) (null? (cdr rest)))
60 (string-length s) (cadr rest))))
61 (if (and (procedure? char_pred)
62 (> end start)
63 (<= end (string-length s))) ;; let c-code handle range error
64 (or (string-any-c-code char_pred s start (1- end))
65 (char_pred (string-ref s (1- end))))
66 (string-any-c-code char_pred s start end))))
67
68;; this is scheme wrapping the C code so the final pred call is a tail call,
69;; per SRFI-13 spec
70(define (string-every char_pred s . rest)
71 (let ((start (if (null? rest)
72 0 (car rest)))
73 (end (if (or (null? rest) (null? (cdr rest)))
74 (string-length s) (cadr rest))))
75 (if (and (procedure? char_pred)
76 (> end start)
77 (<= end (string-length s))) ;; let c-code handle range error
78 (and (string-every-c-code char_pred s start (1- end))
79 (char_pred (string-ref s (1- end))))
80 (string-every-c-code char_pred s start end))))
81
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82;; A variant of string-fill! that we keep for compatability
83;;
84(define (substring-fill! str start end fill)
85 (string-fill! str fill start end))
86
21ed9efe 87\f
79451588 88
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89;;; {EVAL-CASE}
90;;;
91
92;; (eval-case ((situation*) forms)* (else forms)?)
93;;
94;; Evaluate certain code based on the situation that eval-case is used
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95;; in. There are three situations defined. `load-toplevel' triggers for
96;; code evaluated at the top-level, for example from the REPL or when
97;; loading a file. `compile-toplevel' triggers for code compiled at the
98;; toplevel. `execute' triggers during execution of code not at the top
99;; level.
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100
101(define eval-case
102 (procedure->memoizing-macro
103 (lambda (exp env)
104 (define (toplevel-env? env)
105 (or (not (pair? env)) (not (pair? (car env)))))
106 (define (syntax)
107 (error "syntax error in eval-case"))
108 (let loop ((clauses (cdr exp)))
109 (cond
110 ((null? clauses)
111 #f)
112 ((not (list? (car clauses)))
113 (syntax))
114 ((eq? 'else (caar clauses))
115 (or (null? (cdr clauses))
116 (syntax))
117 (cons 'begin (cdar clauses)))
118 ((not (list? (caar clauses)))
119 (syntax))
120 ((and (toplevel-env? env)
121 (memq 'load-toplevel (caar clauses)))
122 (cons 'begin (cdar clauses)))
123 (else
124 (loop (cdr clauses))))))))
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125
126\f
48fdec21 127
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128;; Before compiling, make sure any symbols are resolved in the (guile)
129;; module, the primary location of those symbols, rather than in
130;; (guile-user), the default module that we compile in.
131
132(eval-case
133 ((compile-toplevel)
134 (set-current-module (resolve-module '(guile)))))
135
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136;;; {Defmacros}
137;;;
138;;; Depends on: features, eval-case
139;;;
140
141(define macro-table (make-weak-key-hash-table 61))
142(define xformer-table (make-weak-key-hash-table 61))
143
144(define (defmacro? m) (hashq-ref macro-table m))
145(define (assert-defmacro?! m) (hashq-set! macro-table m #t))
146(define (defmacro-transformer m) (hashq-ref xformer-table m))
147(define (set-defmacro-transformer! m t) (hashq-set! xformer-table m t))
148
149(define defmacro:transformer
150 (lambda (f)
151 (let* ((xform (lambda (exp env)
152 (copy-tree (apply f (cdr exp)))))
153 (a (procedure->memoizing-macro xform)))
154 (assert-defmacro?! a)
155 (set-defmacro-transformer! a f)
156 a)))
157
158
159(define defmacro
160 (let ((defmacro-transformer
161 (lambda (name parms . body)
162 (let ((transformer `(lambda ,parms ,@body)))
163 `(eval-case
75e03dee 164 ((load-toplevel compile-toplevel)
1b68d041 165 (define ,name (defmacro:transformer ,transformer)))
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166 (else
167 (error "defmacro can only be used at the top level")))))))
168 (defmacro:transformer defmacro-transformer)))
169
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170
171;; XXX - should the definition of the car really be looked up in the
172;; current module?
173
174(define (macroexpand-1 e)
175 (cond
176 ((pair? e) (let* ((a (car e))
177 (val (and (symbol? a) (local-ref (list a)))))
178 (if (defmacro? val)
179 (apply (defmacro-transformer val) (cdr e))
180 e)))
181 (#t e)))
182
183(define (macroexpand e)
184 (cond
185 ((pair? e) (let* ((a (car e))
186 (val (and (symbol? a) (local-ref (list a)))))
187 (if (defmacro? val)
188 (macroexpand (apply (defmacro-transformer val) (cdr e)))
189 e)))
190 (#t e)))
191
192(provide 'defmacro)
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193
194\f
195
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196;;; {Deprecation}
197;;;
198;;; Depends on: defmacro
199;;;
200
201(defmacro begin-deprecated forms
202 (if (include-deprecated-features)
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203 `(begin ,@forms)
204 (begin)))
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205
206\f
207
208;;; {R4RS compliance}
209;;;
210
f03c31db 211(primitive-load-path "ice-9/r4rs")
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212
213\f
0f2d19dd 214
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215;;; {Simple Debugging Tools}
216;;;
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217
218;; peek takes any number of arguments, writes them to the
219;; current ouput port, and returns the last argument.
220;; It is handy to wrap around an expression to look at
221;; a value each time is evaluated, e.g.:
222;;
223;; (+ 10 (troublesome-fn))
224;; => (+ 10 (pk 'troublesome-fn-returned (troublesome-fn)))
225;;
226
227(define (peek . stuff)
228 (newline)
229 (display ";;; ")
230 (write stuff)
231 (newline)
232 (car (last-pair stuff)))
233
234(define pk peek)
235
236(define (warn . stuff)
237 (with-output-to-port (current-error-port)
238 (lambda ()
239 (newline)
240 (display ";;; WARNING ")
6355358a 241 (display stuff)
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242 (newline)
243 (car (last-pair stuff)))))
244
245\f
3d2ada2f 246
79451588 247;;; {Trivial Functions}
0f2d19dd 248;;;
79451588 249
6b08d75b 250(define (identity x) x)
132e5fac 251(define (and=> value procedure) (and value (procedure value)))
e8ed460e 252(define call/cc call-with-current-continuation)
79451588 253
5cd06d5e 254;;; apply-to-args is functionally redundant with apply and, worse,
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255;;; is less general than apply since it only takes two arguments.
256;;;
20edfbbd 257;;; On the other hand, apply-to-args is a syntacticly convenient way to
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258;;; perform binding in many circumstances when the "let" family of
259;;; of forms don't cut it. E.g.:
260;;;
261;;; (apply-to-args (return-3d-mouse-coords)
20edfbbd 262;;; (lambda (x y z)
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263;;; ...))
264;;;
265
266(define (apply-to-args args fn) (apply fn args))
267
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268(defmacro false-if-exception (expr)
269 `(catch #t (lambda () ,expr)
270 (lambda args #f)))
271
272\f
273
274;;; {General Properties}
275;;;
276
277;; This is a more modern interface to properties. It will replace all
278;; other property-like things eventually.
279
280(define (make-object-property)
281 (let ((prop (primitive-make-property #f)))
282 (make-procedure-with-setter
283 (lambda (obj) (primitive-property-ref prop obj))
284 (lambda (obj val) (primitive-property-set! prop obj val)))))
285
0f2d19dd 286\f
6b08d75b 287
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288;;; {Symbol Properties}
289;;;
290
291(define (symbol-property sym prop)
292 (let ((pair (assoc prop (symbol-pref sym))))
293 (and pair (cdr pair))))
294
295(define (set-symbol-property! sym prop val)
296 (let ((pair (assoc prop (symbol-pref sym))))
297 (if pair
298 (set-cdr! pair val)
299 (symbol-pset! sym (acons prop val (symbol-pref sym))))))
300
301(define (symbol-property-remove! sym prop)
302 (let ((pair (assoc prop (symbol-pref sym))))
303 (if pair
304 (symbol-pset! sym (delq! pair (symbol-pref sym))))))
305
306\f
1e531c3a 307
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308;;; {Arrays}
309;;;
310
2042e178
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311(define (array-shape a)
312 (map (lambda (ind) (if (number? ind) (list 0 (+ -1 ind)) ind))
313 (array-dimensions a)))
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314
315\f
3d2ada2f 316
0f2d19dd
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317;;; {Keywords}
318;;;
319
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320(define (kw-arg-ref args kw)
321 (let ((rem (member kw args)))
322 (and rem (pair? (cdr rem)) (cadr rem))))
323
324\f
fa7e9274 325
9f9aa47b 326;;; {Structs}
3d2ada2f 327;;;
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328
329(define (struct-layout s)
9f9aa47b 330 (struct-ref (struct-vtable s) vtable-index-layout))
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331
332\f
d7faeb2e 333
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334;;; {Records}
335;;;
336
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337;; Printing records: by default, records are printed as
338;;
339;; #<type-name field1: val1 field2: val2 ...>
340;;
341;; You can change that by giving a custom printing function to
342;; MAKE-RECORD-TYPE (after the list of field symbols). This function
343;; will be called like
344;;
345;; (<printer> object port)
346;;
347;; It should print OBJECT to PORT.
348
cf8f1a90 349(define (inherit-print-state old-port new-port)
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350 (if (get-print-state old-port)
351 (port-with-print-state new-port (get-print-state old-port))
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352 new-port))
353
9f9aa47b 354;; 0: type-name, 1: fields
20edfbbd 355(define record-type-vtable
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356 (make-vtable-vtable "prpr" 0
357 (lambda (s p)
358 (cond ((eq? s record-type-vtable)
359 (display "#<record-type-vtable>" p))
360 (else
361 (display "#<record-type " p)
362 (display (record-type-name s) p)
363 (display ">" p))))))
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364
365(define (record-type? obj)
366 (and (struct? obj) (eq? record-type-vtable (struct-vtable obj))))
367
368(define (make-record-type type-name fields . opt)
8e693424 369 (let ((printer-fn (and (pair? opt) (car opt))))
0f2d19dd 370 (let ((struct (make-struct record-type-vtable 0
c7c03b9f 371 (make-struct-layout
06f0414c 372 (apply string-append
c7c03b9f 373 (map (lambda (f) "pw") fields)))
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374 (or printer-fn
375 (lambda (s p)
376 (display "#<" p)
377 (display type-name p)
378 (let loop ((fields fields)
379 (off 0))
380 (cond
381 ((not (null? fields))
382 (display " " p)
383 (display (car fields) p)
384 (display ": " p)
385 (display (struct-ref s off) p)
386 (loop (cdr fields) (+ 1 off)))))
387 (display ">" p)))
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388 type-name
389 (copy-tree fields))))
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390 ;; Temporary solution: Associate a name to the record type descriptor
391 ;; so that the object system can create a wrapper class for it.
392 (set-struct-vtable-name! struct (if (symbol? type-name)
393 type-name
394 (string->symbol type-name)))
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395 struct)))
396
397(define (record-type-name obj)
398 (if (record-type? obj)
9f9aa47b 399 (struct-ref obj vtable-offset-user)
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400 (error 'not-a-record-type obj)))
401
402(define (record-type-fields obj)
403 (if (record-type? obj)
9f9aa47b 404 (struct-ref obj (+ 1 vtable-offset-user))
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405 (error 'not-a-record-type obj)))
406
407(define (record-constructor rtd . opt)
8e693424 408 (let ((field-names (if (pair? opt) (car opt) (record-type-fields rtd))))
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409 (primitive-eval
410 `(lambda ,field-names
411 (make-struct ',rtd 0 ,@(map (lambda (f)
412 (if (memq f field-names)
413 f
414 #f))
415 (record-type-fields rtd)))))))
416
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417(define (record-predicate rtd)
418 (lambda (obj) (and (struct? obj) (eq? rtd (struct-vtable obj)))))
419
3ba9acb1 420(define (%record-type-error rtd obj) ;; private helper
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421 (or (eq? rtd (record-type-descriptor obj))
422 (scm-error 'wrong-type-arg "%record-type-check"
423 "Wrong type record (want `~S'): ~S"
424 (list (record-type-name rtd) obj)
425 #f)))
426
0f2d19dd 427(define (record-accessor rtd field-name)
3bf27608 428 (let ((pos (list-index (record-type-fields rtd) field-name)))
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429 (if (not pos)
430 (error 'no-such-field field-name))
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431 (lambda (obj)
432 (if (eq? (struct-vtable obj) rtd)
433 (struct-ref obj pos)
434 (%record-type-error rtd obj)))))
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435
436(define (record-modifier rtd field-name)
3bf27608 437 (let ((pos (list-index (record-type-fields rtd) field-name)))
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438 (if (not pos)
439 (error 'no-such-field field-name))
3bf27608
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440 (lambda (obj val)
441 (if (eq? (struct-vtable obj) rtd)
442 (struct-set! obj pos val)
443 (%record-type-error rtd obj)))))
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444
445(define (record? obj)
446 (and (struct? obj) (record-type? (struct-vtable obj))))
447
448(define (record-type-descriptor obj)
449 (if (struct? obj)
450 (struct-vtable obj)
451 (error 'not-a-record obj)))
452
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453(provide 'record)
454
0f2d19dd 455\f
3d2ada2f 456
0f2d19dd
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457;;; {Booleans}
458;;;
459
460(define (->bool x) (not (not x)))
461
462\f
3d2ada2f 463
0f2d19dd
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464;;; {Symbols}
465;;;
466
467(define (symbol-append . args)
06f0414c 468 (string->symbol (apply string-append (map symbol->string args))))
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469
470(define (list->symbol . args)
471 (string->symbol (apply list->string args)))
472
473(define (symbol . args)
474 (string->symbol (apply string args)))
475
0f2d19dd 476\f
3d2ada2f 477
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478;;; {Lists}
479;;;
480
481(define (list-index l k)
482 (let loop ((n 0)
483 (l l))
484 (and (not (null? l))
485 (if (eq? (car l) k)
486 n
487 (loop (+ n 1) (cdr l))))))
488
1729d8ff 489\f
3d2ada2f 490
3e3cec45 491;;; {and-map and or-map}
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492;;;
493;;; (and-map fn lst) is like (and (fn (car lst)) (fn (cadr lst)) (fn...) ...)
494;;; (or-map fn lst) is like (or (fn (car lst)) (fn (cadr lst)) (fn...) ...)
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495;;;
496
497;; and-map f l
498;;
499;; Apply f to successive elements of l until exhaustion or f returns #f.
500;; If returning early, return #f. Otherwise, return the last value returned
501;; by f. If f has never been called because l is empty, return #t.
20edfbbd 502;;
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503(define (and-map f lst)
504 (let loop ((result #t)
505 (l lst))
506 (and result
507 (or (and (null? l)
508 result)
509 (loop (f (car l)) (cdr l))))))
510
511;; or-map f l
512;;
513;; Apply f to successive elements of l until exhaustion or while f returns #f.
514;; If returning early, return the return value of f.
515;;
516(define (or-map f lst)
517 (let loop ((result #f)
518 (l lst))
519 (or result
520 (and (not (null? l))
521 (loop (f (car l)) (cdr l))))))
522
59e1116d 523\f
0f2d19dd 524
52cfc69b 525(if (provided? 'posix)
1e6ebf54 526 (primitive-load-path "ice-9/posix"))
6fa8995c 527
52cfc69b 528(if (provided? 'socket)
1e6ebf54 529 (primitive-load-path "ice-9/networking"))
3afb28ce 530
f3197274 531;; For reference, Emacs file-exists-p uses stat in this same way.
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532;; ENHANCE-ME: Catching an exception from stat is a bit wasteful, do this in
533;; C where all that's needed is to inspect the return from stat().
6fa8995c 534(define file-exists?
52cfc69b 535 (if (provided? 'posix)
6fa8995c 536 (lambda (str)
833fc2f1 537 (->bool (false-if-exception (stat str))))
6fa8995c
GH
538 (lambda (str)
539 (let ((port (catch 'system-error (lambda () (open-file str OPEN_READ))
540 (lambda args #f))))
541 (if port (begin (close-port port) #t)
542 #f)))))
543
544(define file-is-directory?
52cfc69b 545 (if (provided? 'posix)
6fa8995c 546 (lambda (str)
3afb28ce 547 (eq? (stat:type (stat str)) 'directory))
6fa8995c 548 (lambda (str)
6fa8995c
GH
549 (let ((port (catch 'system-error
550 (lambda () (open-file (string-append str "/.")
551 OPEN_READ))
552 (lambda args #f))))
553 (if port (begin (close-port port) #t)
554 #f)))))
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555
556(define (has-suffix? str suffix)
99f20fb6 557 (string-suffix? suffix str))
0f2d19dd 558
019ac1c9
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559(define (system-error-errno args)
560 (if (eq? (car args) 'system-error)
561 (car (list-ref args 4))
562 #f))
563
0f2d19dd 564\f
3d2ada2f 565
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566;;; {Error Handling}
567;;;
568
0f2d19dd 569(define (error . args)
21ed9efe 570 (save-stack)
2194b6f0 571 (if (null? args)
5552355a 572 (scm-error 'misc-error #f "?" #f #f)
8641dd9e 573 (let loop ((msg "~A")
2194b6f0
GH
574 (rest (cdr args)))
575 (if (not (null? rest))
8641dd9e 576 (loop (string-append msg " ~S")
2194b6f0 577 (cdr rest))
5552355a 578 (scm-error 'misc-error #f msg args #f)))))
be2d2c70 579
1349bd53 580;; bad-throw is the hook that is called upon a throw to a an unhandled
9a0d70e2
GH
581;; key (unless the throw has four arguments, in which case
582;; it's usually interpreted as an error throw.)
583;; If the key has a default handler (a throw-handler-default property),
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584;; it is applied to the throw.
585;;
1349bd53 586(define (bad-throw key . args)
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587 (let ((default (symbol-property key 'throw-handler-default)))
588 (or (and default (apply default key args))
2194b6f0 589 (apply error "unhandled-exception:" key args))))
0f2d19dd 590
0f2d19dd 591\f
bce074ee 592
708bf0f3
GH
593(define (tm:sec obj) (vector-ref obj 0))
594(define (tm:min obj) (vector-ref obj 1))
595(define (tm:hour obj) (vector-ref obj 2))
596(define (tm:mday obj) (vector-ref obj 3))
597(define (tm:mon obj) (vector-ref obj 4))
598(define (tm:year obj) (vector-ref obj 5))
599(define (tm:wday obj) (vector-ref obj 6))
600(define (tm:yday obj) (vector-ref obj 7))
601(define (tm:isdst obj) (vector-ref obj 8))
602(define (tm:gmtoff obj) (vector-ref obj 9))
603(define (tm:zone obj) (vector-ref obj 10))
604
605(define (set-tm:sec obj val) (vector-set! obj 0 val))
606(define (set-tm:min obj val) (vector-set! obj 1 val))
607(define (set-tm:hour obj val) (vector-set! obj 2 val))
608(define (set-tm:mday obj val) (vector-set! obj 3 val))
609(define (set-tm:mon obj val) (vector-set! obj 4 val))
610(define (set-tm:year obj val) (vector-set! obj 5 val))
611(define (set-tm:wday obj val) (vector-set! obj 6 val))
612(define (set-tm:yday obj val) (vector-set! obj 7 val))
613(define (set-tm:isdst obj val) (vector-set! obj 8 val))
614(define (set-tm:gmtoff obj val) (vector-set! obj 9 val))
615(define (set-tm:zone obj val) (vector-set! obj 10 val))
616
6afcd3b2
GH
617(define (tms:clock obj) (vector-ref obj 0))
618(define (tms:utime obj) (vector-ref obj 1))
619(define (tms:stime obj) (vector-ref obj 2))
620(define (tms:cutime obj) (vector-ref obj 3))
621(define (tms:cstime obj) (vector-ref obj 4))
622
1334c61a
GH
623(define file-position ftell)
624(define (file-set-position port offset . whence)
625 (let ((whence (if (eq? whence '()) SEEK_SET (car whence))))
626 (seek port offset whence)))
8b13c6b3 627
e38303a2
GH
628(define (move->fdes fd/port fd)
629 (cond ((integer? fd/port)
7a6f1ffa 630 (dup->fdes fd/port fd)
e38303a2
GH
631 (close fd/port)
632 fd)
633 (else
634 (primitive-move->fdes fd/port fd)
635 (set-port-revealed! fd/port 1)
636 fd/port)))
8b13c6b3
GH
637
638(define (release-port-handle port)
639 (let ((revealed (port-revealed port)))
640 (if (> revealed 0)
641 (set-port-revealed! port (- revealed 1)))))
0f2d19dd 642
e38303a2 643(define (dup->port port/fd mode . maybe-fd)
7a6f1ffa 644 (let ((port (fdopen (apply dup->fdes port/fd maybe-fd)
e38303a2
GH
645 mode)))
646 (if (pair? maybe-fd)
647 (set-port-revealed! port 1))
648 port))
20edfbbd 649
e38303a2
GH
650(define (dup->inport port/fd . maybe-fd)
651 (apply dup->port port/fd "r" maybe-fd))
652
653(define (dup->outport port/fd . maybe-fd)
654 (apply dup->port port/fd "w" maybe-fd))
655
e38303a2
GH
656(define (dup port/fd . maybe-fd)
657 (if (integer? port/fd)
658 (apply dup->fdes port/fd maybe-fd)
659 (apply dup->port port/fd (port-mode port/fd) maybe-fd)))
660
661(define (duplicate-port port modes)
662 (dup->port port modes))
663
664(define (fdes->inport fdes)
665 (let loop ((rest-ports (fdes->ports fdes)))
666 (cond ((null? rest-ports)
667 (let ((result (fdopen fdes "r")))
668 (set-port-revealed! result 1)
669 result))
670 ((input-port? (car rest-ports))
671 (set-port-revealed! (car rest-ports)
672 (+ (port-revealed (car rest-ports)) 1))
673 (car rest-ports))
674 (else
675 (loop (cdr rest-ports))))))
676
677(define (fdes->outport fdes)
678 (let loop ((rest-ports (fdes->ports fdes)))
679 (cond ((null? rest-ports)
680 (let ((result (fdopen fdes "w")))
681 (set-port-revealed! result 1)
682 result))
683 ((output-port? (car rest-ports))
684 (set-port-revealed! (car rest-ports)
685 (+ (port-revealed (car rest-ports)) 1))
686 (car rest-ports))
687 (else
688 (loop (cdr rest-ports))))))
689
690(define (port->fdes port)
691 (set-port-revealed! port (+ (port-revealed port) 1))
692 (fileno port))
693
956055a9
GH
694(define (setenv name value)
695 (if value
696 (putenv (string-append name "=" value))
697 (putenv name)))
698
5c1254da
MV
699(define (unsetenv name)
700 "Remove the entry for NAME from the environment."
701 (putenv name))
702
0f2d19dd 703\f
3d2ada2f 704
0f2d19dd
JB
705;;; {Load Paths}
706;;;
707
0f2d19dd
JB
708;;; Here for backward compatability
709;;
710(define scheme-file-suffix (lambda () ".scm"))
711
3cab8392
JB
712(define (in-vicinity vicinity file)
713 (let ((tail (let ((len (string-length vicinity)))
534a0099
MD
714 (if (zero? len)
715 #f
3cab8392
JB
716 (string-ref vicinity (- len 1))))))
717 (string-append vicinity
534a0099
MD
718 (if (or (not tail)
719 (eq? tail #\/))
720 ""
721 "/")
3cab8392 722 file)))
02ceadb8 723
0f2d19dd 724\f
3d2ada2f 725
ef00e7f4 726;;; {Help for scm_shell}
3d2ada2f 727;;;
ef00e7f4
JB
728;;; The argument-processing code used by Guile-based shells generates
729;;; Scheme code based on the argument list. This page contains help
730;;; functions for the code it generates.
3d2ada2f 731;;;
ef00e7f4 732
ef00e7f4
JB
733(define (command-line) (program-arguments))
734
5aa7fe69
JB
735;; This is mostly for the internal use of the code generated by
736;; scm_compile_shell_switches.
eef6519b
MV
737
738(define (turn-on-debugging)
739 (debug-enable 'debug)
740 (debug-enable 'backtrace)
741 (read-enable 'positions))
4eecfeb7 742
ef00e7f4 743(define (load-user-init)
1f08acd9
GH
744 (let* ((home (or (getenv "HOME")
745 (false-if-exception (passwd:dir (getpwuid (getuid))))
746 "/")) ;; fallback for cygwin etc.
747 (init-file (in-vicinity home ".guile")))
748 (if (file-exists? init-file)
749 (primitive-load init-file))))
ef00e7f4
JB
750
751\f
3d2ada2f 752
107139ea
AW
753;;; {The interpreter stack}
754;;;
755
756(defmacro start-stack (tag exp)
757 `(%start-stack ,tag (lambda () ,exp)))
758
759\f
760
a06181a2 761;;; {Loading by paths}
3d2ada2f 762;;;
a06181a2
JB
763
764;;; Load a Scheme source file named NAME, searching for it in the
765;;; directories listed in %load-path, and applying each of the file
766;;; name extensions listed in %load-extensions.
767(define (load-from-path name)
768 (start-stack 'load-stack
75a97b92 769 (primitive-load-path name)))
0f2d19dd 770
5552355a 771
0f2d19dd 772\f
3d2ada2f 773
0f2d19dd
JB
774;;; {Transcendental Functions}
775;;;
776;;; Derived from "Transcen.scm", Complex trancendental functions for SCM.
0543c9b7 777;;; Written by Jerry D. Hedden, (C) FSF.
0f2d19dd
JB
778;;; See the file `COPYING' for terms applying to this program.
779;;;
780
0f2d19dd
JB
781(define expt
782 (let ((integer-expt integer-expt))
783 (lambda (z1 z2)
bdb112ea
MV
784 (cond ((and (exact? z2) (integer? z2))
785 (integer-expt z1 z2))
0f2d19dd
JB
786 ((and (real? z2) (real? z1) (>= z1 0))
787 ($expt z1 z2))
788 (else
789 (exp (* z2 (log z1))))))))
790
791(define (sinh z)
792 (if (real? z) ($sinh z)
793 (let ((x (real-part z)) (y (imag-part z)))
794 (make-rectangular (* ($sinh x) ($cos y))
795 (* ($cosh x) ($sin y))))))
796(define (cosh z)
797 (if (real? z) ($cosh z)
798 (let ((x (real-part z)) (y (imag-part z)))
799 (make-rectangular (* ($cosh x) ($cos y))
800 (* ($sinh x) ($sin y))))))
801(define (tanh z)
802 (if (real? z) ($tanh z)
803 (let* ((x (* 2 (real-part z)))
804 (y (* 2 (imag-part z)))
805 (w (+ ($cosh x) ($cos y))))
806 (make-rectangular (/ ($sinh x) w) (/ ($sin y) w)))))
807
808(define (asinh z)
809 (if (real? z) ($asinh z)
810 (log (+ z (sqrt (+ (* z z) 1))))))
811
812(define (acosh z)
813 (if (and (real? z) (>= z 1))
814 ($acosh z)
815 (log (+ z (sqrt (- (* z z) 1))))))
816
817(define (atanh z)
818 (if (and (real? z) (> z -1) (< z 1))
819 ($atanh z)
820 (/ (log (/ (+ 1 z) (- 1 z))) 2)))
821
822(define (sin z)
823 (if (real? z) ($sin z)
824 (let ((x (real-part z)) (y (imag-part z)))
825 (make-rectangular (* ($sin x) ($cosh y))
826 (* ($cos x) ($sinh y))))))
827(define (cos z)
828 (if (real? z) ($cos z)
829 (let ((x (real-part z)) (y (imag-part z)))
830 (make-rectangular (* ($cos x) ($cosh y))
831 (- (* ($sin x) ($sinh y)))))))
832(define (tan z)
833 (if (real? z) ($tan z)
834 (let* ((x (* 2 (real-part z)))
835 (y (* 2 (imag-part z)))
836 (w (+ ($cos x) ($cosh y))))
837 (make-rectangular (/ ($sin x) w) (/ ($sinh y) w)))))
838
839(define (asin z)
840 (if (and (real? z) (>= z -1) (<= z 1))
841 ($asin z)
842 (* -i (asinh (* +i z)))))
843
844(define (acos z)
845 (if (and (real? z) (>= z -1) (<= z 1))
846 ($acos z)
847 (+ (/ (angle -1) 2) (* +i (asinh (* +i z))))))
848
849(define (atan z . y)
850 (if (null? y)
851 (if (real? z) ($atan z)
852 (/ (log (/ (- +i z) (+ +i z))) +2i))
853 ($atan2 z (car y))))
854
0f2d19dd 855\f
0f2d19dd
JB
856
857;;; {Reader Extensions}
858;;;
0f2d19dd
JB
859;;; Reader code for various "#c" forms.
860;;;
861
75a97b92
GH
862(read-hash-extend #\' (lambda (c port)
863 (read port)))
600c9584
RB
864
865(define read-eval? (make-fluid))
866(fluid-set! read-eval? #f)
867(read-hash-extend #\.
868 (lambda (c port)
869 (if (fluid-ref read-eval?)
870 (eval (read port) (interaction-environment))
871 (error
71335c0d 872 "#. read expansion found and read-eval? is #f."))))
75a97b92 873
0f2d19dd 874\f
3d2ada2f 875
0f2d19dd
JB
876;;; {Command Line Options}
877;;;
878
879(define (get-option argv kw-opts kw-args return)
880 (cond
881 ((null? argv)
882 (return #f #f argv))
883
884 ((or (not (eq? #\- (string-ref (car argv) 0)))
885 (eq? (string-length (car argv)) 1))
886 (return 'normal-arg (car argv) (cdr argv)))
887
888 ((eq? #\- (string-ref (car argv) 1))
889 (let* ((kw-arg-pos (or (string-index (car argv) #\=)
890 (string-length (car argv))))
891 (kw (symbol->keyword (substring (car argv) 2 kw-arg-pos)))
892 (kw-opt? (member kw kw-opts))
893 (kw-arg? (member kw kw-args))
894 (arg (or (and (not (eq? kw-arg-pos (string-length (car argv))))
895 (substring (car argv)
896 (+ kw-arg-pos 1)
897 (string-length (car argv))))
898 (and kw-arg?
899 (begin (set! argv (cdr argv)) (car argv))))))
900 (if (or kw-opt? kw-arg?)
901 (return kw arg (cdr argv))
902 (return 'usage-error kw (cdr argv)))))
903
904 (else
905 (let* ((char (substring (car argv) 1 2))
906 (kw (symbol->keyword char)))
907 (cond
908
909 ((member kw kw-opts)
910 (let* ((rest-car (substring (car argv) 2 (string-length (car argv))))
911 (new-argv (if (= 0 (string-length rest-car))
912 (cdr argv)
913 (cons (string-append "-" rest-car) (cdr argv)))))
914 (return kw #f new-argv)))
915
916 ((member kw kw-args)
917 (let* ((rest-car (substring (car argv) 2 (string-length (car argv))))
918 (arg (if (= 0 (string-length rest-car))
919 (cadr argv)
920 rest-car))
921 (new-argv (if (= 0 (string-length rest-car))
922 (cddr argv)
923 (cdr argv))))
924 (return kw arg new-argv)))
925
926 (else (return 'usage-error kw argv)))))))
927
928(define (for-next-option proc argv kw-opts kw-args)
929 (let loop ((argv argv))
930 (get-option argv kw-opts kw-args
931 (lambda (opt opt-arg argv)
932 (and opt (proc opt opt-arg argv loop))))))
933
934(define (display-usage-report kw-desc)
935 (for-each
936 (lambda (kw)
937 (or (eq? (car kw) #t)
938 (eq? (car kw) 'else)
939 (let* ((opt-desc kw)
940 (help (cadr opt-desc))
941 (opts (car opt-desc))
942 (opts-proper (if (string? (car opts)) (cdr opts) opts))
943 (arg-name (if (string? (car opts))
944 (string-append "<" (car opts) ">")
945 ""))
946 (left-part (string-append
947 (with-output-to-string
948 (lambda ()
297775ce 949 (map (lambda (x) (display (keyword->symbol x)) (display " "))
0f2d19dd
JB
950 opts-proper)))
951 arg-name))
11b05261
MD
952 (middle-part (if (and (< (string-length left-part) 30)
953 (< (string-length help) 40))
954 (make-string (- 30 (string-length left-part)) #\ )
0f2d19dd
JB
955 "\n\t")))
956 (display left-part)
957 (display middle-part)
958 (display help)
959 (newline))))
960 kw-desc))
0f2d19dd 961
20edfbbd
TTN
962
963
0f2d19dd
JB
964(define (transform-usage-lambda cases)
965 (let* ((raw-usage (delq! 'else (map car cases)))
966 (usage-sans-specials (map (lambda (x)
967 (or (and (not (list? x)) x)
968 (and (symbol? (car x)) #t)
969 (and (boolean? (car x)) #t)
970 x))
971 raw-usage))
ed440df5 972 (usage-desc (delq! #t usage-sans-specials))
0f2d19dd
JB
973 (kw-desc (map car usage-desc))
974 (kw-opts (apply append (map (lambda (x) (and (not (string? (car x))) x)) kw-desc)))
975 (kw-args (apply append (map (lambda (x) (and (string? (car x)) (cdr x))) kw-desc)))
976 (transmogrified-cases (map (lambda (case)
977 (cons (let ((opts (car case)))
978 (if (or (boolean? opts) (eq? 'else opts))
979 opts
980 (cond
981 ((symbol? (car opts)) opts)
982 ((boolean? (car opts)) opts)
983 ((string? (caar opts)) (cdar opts))
984 (else (car opts)))))
985 (cdr case)))
986 cases)))
987 `(let ((%display-usage (lambda () (display-usage-report ',usage-desc))))
988 (lambda (%argv)
989 (let %next-arg ((%argv %argv))
990 (get-option %argv
991 ',kw-opts
992 ',kw-args
993 (lambda (%opt %arg %new-argv)
994 (case %opt
995 ,@ transmogrified-cases))))))))
996
997
998\f
999
1000;;; {Low Level Modules}
1001;;;
1002;;; These are the low level data structures for modules.
1003;;;
37f5dfe5
DH
1004;;; Every module object is of the type 'module-type', which is a record
1005;;; consisting of the following members:
1006;;;
1007;;; - eval-closure: the function that defines for its module the strategy that
1008;;; shall be followed when looking up symbols in the module.
1009;;;
1010;;; An eval-closure is a function taking two arguments: the symbol to be
1011;;; looked up and a boolean value telling whether a binding for the symbol
1012;;; should be created if it does not exist yet. If the symbol lookup
1013;;; succeeded (either because an existing binding was found or because a new
1014;;; binding was created), a variable object representing the binding is
1015;;; returned. Otherwise, the value #f is returned. Note that the eval
1016;;; closure does not take the module to be searched as an argument: During
1017;;; construction of the eval-closure, the eval-closure has to store the
1018;;; module it belongs to in its environment. This means, that any
1019;;; eval-closure can belong to only one module.
1020;;;
1021;;; The eval-closure of a module can be defined arbitrarily. However, three
1022;;; special cases of eval-closures are to be distinguished: During startup
1023;;; the module system is not yet activated. In this phase, no modules are
1024;;; defined and all bindings are automatically stored by the system in the
1025;;; pre-modules-obarray. Since no eval-closures exist at this time, the
1026;;; functions which require an eval-closure as their argument need to be
1027;;; passed the value #f.
1028;;;
1029;;; The other two special cases of eval-closures are the
1030;;; standard-eval-closure and the standard-interface-eval-closure. Both
1031;;; behave equally for the case that no new binding is to be created. The
1032;;; difference between the two comes in, when the boolean argument to the
1033;;; eval-closure indicates that a new binding shall be created if it is not
1034;;; found.
1035;;;
1036;;; Given that no new binding shall be created, both standard eval-closures
1037;;; define the following standard strategy of searching bindings in the
1038;;; module: First, the module's obarray is searched for the symbol. Second,
1039;;; if no binding for the symbol was found in the module's obarray, the
1040;;; module's binder procedure is exececuted. If this procedure did not
1041;;; return a binding for the symbol, the modules referenced in the module's
1042;;; uses list are recursively searched for a binding of the symbol. If the
1043;;; binding can not be found in these modules also, the symbol lookup has
1044;;; failed.
1045;;;
1046;;; If a new binding shall be created, the standard-interface-eval-closure
1047;;; immediately returns indicating failure. That is, it does not even try
1048;;; to look up the symbol. In contrast, the standard-eval-closure would
1049;;; first search the obarray, and if no binding was found there, would
1050;;; create a new binding in the obarray, therefore not calling the binder
1051;;; procedure or searching the modules in the uses list.
1052;;;
1053;;; The explanation of the following members obarray, binder and uses
1054;;; assumes that the symbol lookup follows the strategy that is defined in
1055;;; the standard-eval-closure and the standard-interface-eval-closure.
1056;;;
1057;;; - obarray: a hash table that maps symbols to variable objects. In this
1058;;; hash table, the definitions are found that are local to the module (that
1059;;; is, not imported from other modules). When looking up bindings in the
1060;;; module, this hash table is searched first.
1061;;;
1062;;; - binder: either #f or a function taking a module and a symbol argument.
1063;;; If it is a function it is called after the obarray has been
1064;;; unsuccessfully searched for a binding. It then can provide bindings
1065;;; that would otherwise not be found locally in the module.
1066;;;
1067;;; - uses: a list of modules from which non-local bindings can be inherited.
1068;;; These modules are the third place queried for bindings after the obarray
1069;;; has been unsuccessfully searched and the binder function did not deliver
1070;;; a result either.
1071;;;
1072;;; - transformer: either #f or a function taking a scheme expression as
1073;;; delivered by read. If it is a function, it will be called to perform
1074;;; syntax transformations (e. g. makro expansion) on the given scheme
1075;;; expression. The output of the transformer function will then be passed
1076;;; to Guile's internal memoizer. This means that the output must be valid
1077;;; scheme code. The only exception is, that the output may make use of the
1078;;; syntax extensions provided to identify the modules that a binding
1079;;; belongs to.
1080;;;
1081;;; - name: the name of the module. This is used for all kinds of printing
1082;;; outputs. In certain places the module name also serves as a way of
1083;;; identification. When adding a module to the uses list of another
1084;;; module, it is made sure that the new uses list will not contain two
1085;;; modules of the same name.
1086;;;
1087;;; - kind: classification of the kind of module. The value is (currently?)
1088;;; only used for printing. It has no influence on how a module is treated.
1089;;; Currently the following values are used when setting the module kind:
1090;;; 'module, 'directory, 'interface, 'custom-interface. If no explicit kind
1091;;; is set, it defaults to 'module.
1092;;;
608860a5
LC
1093;;; - duplicates-handlers: a list of procedures that get called to make a
1094;;; choice between two duplicate bindings when name clashes occur. See the
1095;;; `duplicate-handlers' global variable below.
37f5dfe5 1096;;;
608860a5
LC
1097;;; - observers: a list of procedures that get called when the module is
1098;;; modified.
37f5dfe5 1099;;;
608860a5
LC
1100;;; - weak-observers: a weak-key hash table of procedures that get called
1101;;; when the module is modified. See `module-observe-weak' for details.
37f5dfe5
DH
1102;;;
1103;;; In addition, the module may (must?) contain a binding for
608860a5
LC
1104;;; `%module-public-interface'. This variable should be bound to a module
1105;;; representing the exported interface of a module. See the
1106;;; `module-public-interface' and `module-export!' procedures.
37f5dfe5 1107;;;
0f2d19dd
JB
1108;;; !!! warning: The interface to lazy binder procedures is going
1109;;; to be changed in an incompatible way to permit all the basic
1110;;; module ops to be virtualized.
1111;;;
1112;;; (make-module size use-list lazy-binding-proc) => module
1113;;; module-{obarray,uses,binder}[|-set!]
1114;;; (module? obj) => [#t|#f]
1115;;; (module-locally-bound? module symbol) => [#t|#f]
1116;;; (module-bound? module symbol) => [#t|#f]
1117;;; (module-symbol-locally-interned? module symbol) => [#t|#f]
1118;;; (module-symbol-interned? module symbol) => [#t|#f]
1119;;; (module-local-variable module symbol) => [#<variable ...> | #f]
1120;;; (module-variable module symbol) => [#<variable ...> | #f]
1121;;; (module-symbol-binding module symbol opt-value)
1122;;; => [ <obj> | opt-value | an error occurs ]
1123;;; (module-make-local-var! module symbol) => #<variable...>
1124;;; (module-add! module symbol var) => unspecified
1125;;; (module-remove! module symbol) => unspecified
1126;;; (module-for-each proc module) => unspecified
1127;;; (make-scm-module) => module ; a lazy copy of the symhash module
1128;;; (set-current-module module) => unspecified
1129;;; (current-module) => #<module...>
1130;;;
1131;;;
1132
1133\f
3d2ada2f 1134
44cf1f0f 1135;;; {Printing Modules}
3d2ada2f
DH
1136;;;
1137
44cf1f0f 1138;; This is how modules are printed. You can re-define it.
fa7e9274
MV
1139;; (Redefining is actually more complicated than simply redefining
1140;; %print-module because that would only change the binding and not
1141;; the value stored in the vtable that determines how record are
1142;; printed. Sigh.)
1143
1144(define (%print-module mod port) ; unused args: depth length style table)
0f2d19dd
JB
1145 (display "#<" port)
1146 (display (or (module-kind mod) "module") port)
1147 (let ((name (module-name mod)))
1148 (if name
1149 (begin
1150 (display " " port)
1151 (display name port))))
1152 (display " " port)
1153 (display (number->string (object-address mod) 16) port)
1154 (display ">" port))
1155
1156;; module-type
1157;;
1158;; A module is characterized by an obarray in which local symbols
1159;; are interned, a list of modules, "uses", from which non-local
1160;; bindings can be inherited, and an optional lazy-binder which
31d50456 1161;; is a (CLOSURE module symbol) which, as a last resort, can provide
0f2d19dd
JB
1162;; bindings that would otherwise not be found locally in the module.
1163;;
3d2ada2f
DH
1164;; NOTE: If you change anything here, you also need to change
1165;; libguile/modules.h.
d7faeb2e 1166;;
0f2d19dd 1167(define module-type
7a0ff2f8 1168 (make-record-type 'module
1777c18b 1169 '(obarray uses binder eval-closure transformer name kind
608860a5
LC
1170 duplicates-handlers import-obarray
1171 observers weak-observers)
8b718458 1172 %print-module))
0f2d19dd 1173
8b718458 1174;; make-module &opt size uses binder
0f2d19dd 1175;;
8b718458
JB
1176;; Create a new module, perhaps with a particular size of obarray,
1177;; initial uses list, or binding procedure.
0f2d19dd 1178;;
0f2d19dd
JB
1179(define make-module
1180 (lambda args
0f2d19dd 1181
8b718458
JB
1182 (define (parse-arg index default)
1183 (if (> (length args) index)
1184 (list-ref args index)
1185 default))
1186
608860a5
LC
1187 (define %default-import-size
1188 ;; Typical number of imported bindings actually used by a module.
1189 600)
1190
8b718458
JB
1191 (if (> (length args) 3)
1192 (error "Too many args to make-module." args))
0f2d19dd 1193
231a4ea8 1194 (let ((size (parse-arg 0 31))
8b718458
JB
1195 (uses (parse-arg 1 '()))
1196 (binder (parse-arg 2 #f)))
0f2d19dd 1197
8b718458
JB
1198 (if (not (integer? size))
1199 (error "Illegal size to make-module." size))
1200 (if (not (and (list? uses)
1201 (and-map module? uses)))
1202 (error "Incorrect use list." uses))
0f2d19dd
JB
1203 (if (and binder (not (procedure? binder)))
1204 (error
1205 "Lazy-binder expected to be a procedure or #f." binder))
1206
eb84efa1 1207 (let ((module (module-constructor (make-hash-table size)
608860a5
LC
1208 uses binder #f #f #f #f #f
1209 (make-hash-table %default-import-size)
1777c18b 1210 '()
608860a5 1211 (make-weak-key-hash-table 31))))
8b718458
JB
1212
1213 ;; We can't pass this as an argument to module-constructor,
1214 ;; because we need it to close over a pointer to the module
1215 ;; itself.
6906bd0d 1216 (set-module-eval-closure! module (standard-eval-closure module))
8b718458
JB
1217
1218 module))))
0f2d19dd 1219
8b718458 1220(define module-constructor (record-constructor module-type))
0f2d19dd
JB
1221(define module-obarray (record-accessor module-type 'obarray))
1222(define set-module-obarray! (record-modifier module-type 'obarray))
1223(define module-uses (record-accessor module-type 'uses))
1224(define set-module-uses! (record-modifier module-type 'uses))
1225(define module-binder (record-accessor module-type 'binder))
1226(define set-module-binder! (record-modifier module-type 'binder))
631c1902
MD
1227
1228;; NOTE: This binding is used in libguile/modules.c.
31d50456 1229(define module-eval-closure (record-accessor module-type 'eval-closure))
631c1902 1230
7a0ff2f8
MD
1231(define module-transformer (record-accessor module-type 'transformer))
1232(define set-module-transformer! (record-modifier module-type 'transformer))
0f2d19dd
JB
1233(define module-name (record-accessor module-type 'name))
1234(define set-module-name! (record-modifier module-type 'name))
1235(define module-kind (record-accessor module-type 'kind))
1236(define set-module-kind! (record-modifier module-type 'kind))
8d8dac1f
MD
1237(define module-duplicates-handlers
1238 (record-accessor module-type 'duplicates-handlers))
1239(define set-module-duplicates-handlers!
1240 (record-modifier module-type 'duplicates-handlers))
1777c18b
MD
1241(define module-observers (record-accessor module-type 'observers))
1242(define set-module-observers! (record-modifier module-type 'observers))
1243(define module-weak-observers (record-accessor module-type 'weak-observers))
0f2d19dd
JB
1244(define module? (record-predicate module-type))
1245
608860a5
LC
1246(define module-import-obarray (record-accessor module-type 'import-obarray))
1247
edc185c7
MD
1248(define set-module-eval-closure!
1249 (let ((setter (record-modifier module-type 'eval-closure)))
1250 (lambda (module closure)
1251 (setter module closure)
6169fe26
MV
1252 ;; Make it possible to lookup the module from the environment.
1253 ;; This implementation is correct since an eval closure can belong
1254 ;; to maximally one module.
1255 (set-procedure-property! closure 'module module))))
8b718458 1256
0f2d19dd 1257\f
3d2ada2f 1258
1777c18b
MD
1259;;; {Observer protocol}
1260;;;
1261
1262(define (module-observe module proc)
1263 (set-module-observers! module (cons proc (module-observers module)))
1264 (cons module proc))
1265
608860a5
LC
1266(define (module-observe-weak module observer-id . proc)
1267 ;; Register PROC as an observer of MODULE under name OBSERVER-ID (which can
1268 ;; be any Scheme object). PROC is invoked and passed MODULE any time
1269 ;; MODULE is modified. PROC gets unregistered when OBSERVER-ID gets GC'd
1270 ;; (thus, it is never unregistered if OBSERVER-ID is an immediate value,
1271 ;; for instance).
1272
1273 ;; The two-argument version is kept for backward compatibility: when called
1274 ;; with two arguments, the observer gets unregistered when closure PROC
1275 ;; gets GC'd (making it impossible to use an anonymous lambda for PROC).
1276
1277 (let ((proc (if (null? proc) observer-id (car proc))))
1278 (hashq-set! (module-weak-observers module) observer-id proc)))
1777c18b
MD
1279
1280(define (module-unobserve token)
1281 (let ((module (car token))
1282 (id (cdr token)))
1283 (if (integer? id)
1284 (hash-remove! (module-weak-observers module) id)
1285 (set-module-observers! module (delq1! id (module-observers module)))))
1286 *unspecified*)
1287
d57da08b
MD
1288(define module-defer-observers #f)
1289(define module-defer-observers-mutex (make-mutex))
1290(define module-defer-observers-table (make-hash-table))
1291
1a961d7e 1292(define (module-modified m)
d57da08b
MD
1293 (if module-defer-observers
1294 (hash-set! module-defer-observers-table m #t)
1295 (module-call-observers m)))
1296
1297;;; This function can be used to delay calls to observers so that they
1298;;; can be called once only in the face of massive updating of modules.
1299;;;
1300(define (call-with-deferred-observers thunk)
1301 (dynamic-wind
1302 (lambda ()
1303 (lock-mutex module-defer-observers-mutex)
1304 (set! module-defer-observers #t))
1305 thunk
1306 (lambda ()
1307 (set! module-defer-observers #f)
1308 (hash-for-each (lambda (m dummy)
1309 (module-call-observers m))
1310 module-defer-observers-table)
1311 (hash-clear! module-defer-observers-table)
1312 (unlock-mutex module-defer-observers-mutex))))
1313
1314(define (module-call-observers m)
1777c18b 1315 (for-each (lambda (proc) (proc m)) (module-observers m))
608860a5
LC
1316
1317 ;; We assume that weak observers don't (un)register themselves as they are
1318 ;; called since this would preclude proper iteration over the hash table
1319 ;; elements.
1320 (hash-for-each (lambda (id proc) (proc m)) (module-weak-observers m)))
1777c18b
MD
1321
1322\f
3d2ada2f 1323
0f2d19dd
JB
1324;;; {Module Searching in General}
1325;;;
1326;;; We sometimes want to look for properties of a symbol
1327;;; just within the obarray of one module. If the property
1328;;; holds, then it is said to hold ``locally'' as in, ``The symbol
1329;;; DISPLAY is locally rebound in the module `safe-guile'.''
1330;;;
1331;;;
1332;;; Other times, we want to test for a symbol property in the obarray
1333;;; of M and, if it is not found there, try each of the modules in the
1334;;; uses list of M. This is the normal way of testing for some
1335;;; property, so we state these properties without qualification as
1336;;; in: ``The symbol 'fnord is interned in module M because it is
1337;;; interned locally in module M2 which is a member of the uses list
1338;;; of M.''
1339;;;
1340
1341;; module-search fn m
20edfbbd 1342;;
0f2d19dd
JB
1343;; return the first non-#f result of FN applied to M and then to
1344;; the modules in the uses of m, and so on recursively. If all applications
1345;; return #f, then so does this function.
1346;;
1347(define (module-search fn m v)
1348 (define (loop pos)
1349 (and (pair? pos)
1350 (or (module-search fn (car pos) v)
1351 (loop (cdr pos)))))
1352 (or (fn m v)
1353 (loop (module-uses m))))
1354
1355
1356;;; {Is a symbol bound in a module?}
1357;;;
1358;;; Symbol S in Module M is bound if S is interned in M and if the binding
1359;;; of S in M has been set to some well-defined value.
1360;;;
1361
1362;; module-locally-bound? module symbol
1363;;
1364;; Is a symbol bound (interned and defined) locally in a given module?
1365;;
1366(define (module-locally-bound? m v)
1367 (let ((var (module-local-variable m v)))
1368 (and var
1369 (variable-bound? var))))
1370
1371;; module-bound? module symbol
1372;;
1373;; Is a symbol bound (interned and defined) anywhere in a given module
1374;; or its uses?
1375;;
1376(define (module-bound? m v)
1377 (module-search module-locally-bound? m v))
1378
1379;;; {Is a symbol interned in a module?}
1380;;;
20edfbbd 1381;;; Symbol S in Module M is interned if S occurs in
0f2d19dd
JB
1382;;; of S in M has been set to some well-defined value.
1383;;;
1384;;; It is possible to intern a symbol in a module without providing
1385;;; an initial binding for the corresponding variable. This is done
1386;;; with:
1387;;; (module-add! module symbol (make-undefined-variable))
1388;;;
1389;;; In that case, the symbol is interned in the module, but not
1390;;; bound there. The unbound symbol shadows any binding for that
1391;;; symbol that might otherwise be inherited from a member of the uses list.
1392;;;
1393
1394(define (module-obarray-get-handle ob key)
1395 ((if (symbol? key) hashq-get-handle hash-get-handle) ob key))
1396
1397(define (module-obarray-ref ob key)
1398 ((if (symbol? key) hashq-ref hash-ref) ob key))
1399
1400(define (module-obarray-set! ob key val)
1401 ((if (symbol? key) hashq-set! hash-set!) ob key val))
1402
1403(define (module-obarray-remove! ob key)
1404 ((if (symbol? key) hashq-remove! hash-remove!) ob key))
1405
1406;; module-symbol-locally-interned? module symbol
20edfbbd 1407;;
0f2d19dd
JB
1408;; is a symbol interned (not neccessarily defined) locally in a given module
1409;; or its uses? Interned symbols shadow inherited bindings even if
1410;; they are not themselves bound to a defined value.
1411;;
1412(define (module-symbol-locally-interned? m v)
1413 (not (not (module-obarray-get-handle (module-obarray m) v))))
1414
1415;; module-symbol-interned? module symbol
20edfbbd 1416;;
0f2d19dd
JB
1417;; is a symbol interned (not neccessarily defined) anywhere in a given module
1418;; or its uses? Interned symbols shadow inherited bindings even if
1419;; they are not themselves bound to a defined value.
1420;;
1421(define (module-symbol-interned? m v)
1422 (module-search module-symbol-locally-interned? m v))
1423
1424
1425;;; {Mapping modules x symbols --> variables}
1426;;;
1427
1428;; module-local-variable module symbol
1429;; return the local variable associated with a MODULE and SYMBOL.
1430;;
1431;;; This function is very important. It is the only function that can
1432;;; return a variable from a module other than the mutators that store
1433;;; new variables in modules. Therefore, this function is the location
1434;;; of the "lazy binder" hack.
1435;;;
1436;;; If symbol is defined in MODULE, and if the definition binds symbol
1437;;; to a variable, return that variable object.
1438;;;
1439;;; If the symbols is not found at first, but the module has a lazy binder,
1440;;; then try the binder.
1441;;;
1442;;; If the symbol is not found at all, return #f.
1443;;;
608860a5
LC
1444;;; (This is now written in C, see `modules.c'.)
1445;;;
0f2d19dd
JB
1446
1447;;; {Mapping modules x symbols --> bindings}
1448;;;
1449;;; These are similar to the mapping to variables, except that the
1450;;; variable is dereferenced.
1451;;;
1452
1453;; module-symbol-binding module symbol opt-value
20edfbbd 1454;;
0f2d19dd
JB
1455;; return the binding of a variable specified by name within
1456;; a given module, signalling an error if the variable is unbound.
1457;; If the OPT-VALUE is passed, then instead of signalling an error,
1458;; return OPT-VALUE.
1459;;
1460(define (module-symbol-local-binding m v . opt-val)
1461 (let ((var (module-local-variable m v)))
7b07e5ef 1462 (if (and var (variable-bound? var))
0f2d19dd
JB
1463 (variable-ref var)
1464 (if (not (null? opt-val))
1465 (car opt-val)
1466 (error "Locally unbound variable." v)))))
1467
1468;; module-symbol-binding module symbol opt-value
20edfbbd 1469;;
0f2d19dd
JB
1470;; return the binding of a variable specified by name within
1471;; a given module, signalling an error if the variable is unbound.
1472;; If the OPT-VALUE is passed, then instead of signalling an error,
1473;; return OPT-VALUE.
1474;;
1475(define (module-symbol-binding m v . opt-val)
1476 (let ((var (module-variable m v)))
7b07e5ef 1477 (if (and var (variable-bound? var))
0f2d19dd
JB
1478 (variable-ref var)
1479 (if (not (null? opt-val))
1480 (car opt-val)
1481 (error "Unbound variable." v)))))
1482
1483
1484\f
3d2ada2f 1485
0f2d19dd
JB
1486;;; {Adding Variables to Modules}
1487;;;
0f2d19dd
JB
1488
1489;; module-make-local-var! module symbol
20edfbbd 1490;;
0f2d19dd
JB
1491;; ensure a variable for V in the local namespace of M.
1492;; If no variable was already there, then create a new and uninitialzied
1493;; variable.
1494;;
d57da08b
MD
1495;; This function is used in modules.c.
1496;;
0f2d19dd
JB
1497(define (module-make-local-var! m v)
1498 (or (let ((b (module-obarray-ref (module-obarray m) v)))
1777c18b
MD
1499 (and (variable? b)
1500 (begin
d57da08b
MD
1501 ;; Mark as modified since this function is called when
1502 ;; the standard eval closure defines a binding
1a961d7e 1503 (module-modified m)
1777c18b 1504 b)))
0c5f718b 1505
608860a5
LC
1506 ;; Create a new local variable.
1507 (let ((local-var (make-undefined-variable)))
1508 (module-add! m v local-var)
1509 local-var)))
0f2d19dd 1510
89d06712 1511;; module-ensure-local-variable! module symbol
9540368e 1512;;
89d06712
MV
1513;; Ensure that there is a local variable in MODULE for SYMBOL. If
1514;; there is no binding for SYMBOL, create a new uninitialized
1515;; variable. Return the local variable.
9540368e 1516;;
89d06712
MV
1517(define (module-ensure-local-variable! module symbol)
1518 (or (module-local-variable module symbol)
9540368e 1519 (let ((var (make-undefined-variable)))
9540368e
MV
1520 (module-add! module symbol var)
1521 var)))
1522
0f2d19dd 1523;; module-add! module symbol var
20edfbbd 1524;;
0f2d19dd
JB
1525;; ensure a particular variable for V in the local namespace of M.
1526;;
1527(define (module-add! m v var)
1528 (if (not (variable? var))
1529 (error "Bad variable to module-add!" var))
1777c18b 1530 (module-obarray-set! (module-obarray m) v var)
1a961d7e 1531 (module-modified m))
0f2d19dd 1532
20edfbbd
TTN
1533;; module-remove!
1534;;
0f2d19dd
JB
1535;; make sure that a symbol is undefined in the local namespace of M.
1536;;
1537(define (module-remove! m v)
c35738c1 1538 (module-obarray-remove! (module-obarray m) v)
1a961d7e 1539 (module-modified m))
0f2d19dd
JB
1540
1541(define (module-clear! m)
c35738c1 1542 (hash-clear! (module-obarray m))
1a961d7e 1543 (module-modified m))
0f2d19dd
JB
1544
1545;; MODULE-FOR-EACH -- exported
20edfbbd 1546;;
0f2d19dd
JB
1547;; Call PROC on each symbol in MODULE, with arguments of (SYMBOL VARIABLE).
1548;;
1549(define (module-for-each proc module)
c35738c1 1550 (hash-for-each proc (module-obarray module)))
0f2d19dd
JB
1551
1552(define (module-map proc module)
711a9fd7 1553 (hash-map->list proc (module-obarray module)))
c35738c1 1554
0f2d19dd
JB
1555\f
1556
1557;;; {Low Level Bootstrapping}
1558;;;
1559
20edfbbd 1560;; make-root-module
0f2d19dd 1561
296ff5e7
MV
1562;; A root module uses the pre-modules-obarray as its obarray. This
1563;; special obarray accumulates all bindings that have been established
1564;; before the module system is fully booted.
0f2d19dd 1565;;
296ff5e7
MV
1566;; (The obarray continues to be used by code that has been closed over
1567;; before the module system has been booted.)
0f2d19dd
JB
1568
1569(define (make-root-module)
296ff5e7
MV
1570 (let ((m (make-module 0)))
1571 (set-module-obarray! m (%get-pre-modules-obarray))
1572 m))
0f2d19dd 1573
b622dec7 1574;; make-scm-module
0f2d19dd 1575
296ff5e7
MV
1576;; The root interface is a module that uses the same obarray as the
1577;; root module. It does not allow new definitions, tho.
0f2d19dd 1578
6906bd0d 1579(define (make-scm-module)
296ff5e7
MV
1580 (let ((m (make-module 0)))
1581 (set-module-obarray! m (%get-pre-modules-obarray))
1582 (set-module-eval-closure! m (standard-interface-eval-closure m))
1583 m))
0f2d19dd
JB
1584
1585
0f2d19dd 1586\f
3d2ada2f 1587
0f2d19dd
JB
1588;;; {Module-based Loading}
1589;;;
1590
1591(define (save-module-excursion thunk)
1592 (let ((inner-module (current-module))
1593 (outer-module #f))
1594 (dynamic-wind (lambda ()
1595 (set! outer-module (current-module))
1596 (set-current-module inner-module)
1597 (set! inner-module #f))
1598 thunk
1599 (lambda ()
1600 (set! inner-module (current-module))
1601 (set-current-module outer-module)
1602 (set! outer-module #f)))))
1603
0f2d19dd
JB
1604(define basic-load load)
1605
ec3a8ace 1606(define (load-module filename . reader)
c6775c40
MD
1607 (save-module-excursion
1608 (lambda ()
1609 (let ((oldname (and (current-load-port)
1610 (port-filename (current-load-port)))))
ec3a8ace
NJ
1611 (apply basic-load
1612 (if (and oldname
1613 (> (string-length filename) 0)
1614 (not (char=? (string-ref filename 0) #\/))
1615 (not (string=? (dirname oldname) ".")))
1616 (string-append (dirname oldname) "/" filename)
1617 filename)
1618 reader)))))
0f2d19dd
JB
1619
1620
1621\f
3d2ada2f 1622
44cf1f0f 1623;;; {MODULE-REF -- exported}
3d2ada2f
DH
1624;;;
1625
0f2d19dd
JB
1626;; Returns the value of a variable called NAME in MODULE or any of its
1627;; used modules. If there is no such variable, then if the optional third
1628;; argument DEFAULT is present, it is returned; otherwise an error is signaled.
20edfbbd 1629;;
0f2d19dd
JB
1630(define (module-ref module name . rest)
1631 (let ((variable (module-variable module name)))
1632 (if (and variable (variable-bound? variable))
1633 (variable-ref variable)
1634 (if (null? rest)
1635 (error "No variable named" name 'in module)
1636 (car rest) ; default value
1637 ))))
1638
1639;; MODULE-SET! -- exported
1640;;
1641;; Sets the variable called NAME in MODULE (or in a module that MODULE uses)
1642;; to VALUE; if there is no such variable, an error is signaled.
20edfbbd 1643;;
0f2d19dd
JB
1644(define (module-set! module name value)
1645 (let ((variable (module-variable module name)))
1646 (if variable
1647 (variable-set! variable value)
1648 (error "No variable named" name 'in module))))
1649
1650;; MODULE-DEFINE! -- exported
1651;;
1652;; Sets the variable called NAME in MODULE to VALUE; if there is no such
1653;; variable, it is added first.
20edfbbd 1654;;
0f2d19dd
JB
1655(define (module-define! module name value)
1656 (let ((variable (module-local-variable module name)))
1657 (if variable
1777c18b
MD
1658 (begin
1659 (variable-set! variable value)
1a961d7e 1660 (module-modified module))
296ff5e7 1661 (let ((variable (make-variable value)))
296ff5e7 1662 (module-add! module name variable)))))
0f2d19dd 1663
ed218d98
MV
1664;; MODULE-DEFINED? -- exported
1665;;
1666;; Return #t iff NAME is defined in MODULE (or in a module that MODULE
1667;; uses)
1668;;
1669(define (module-defined? module name)
1670 (let ((variable (module-variable module name)))
1671 (and variable (variable-bound? variable))))
1672
0f2d19dd
JB
1673;; MODULE-USE! module interface
1674;;
1675;; Add INTERFACE to the list of interfaces used by MODULE.
20edfbbd 1676;;
0f2d19dd 1677(define (module-use! module interface)
608860a5
LC
1678 (if (not (eq? module interface))
1679 (begin
1680 ;; Newly used modules must be appended rather than consed, so that
1681 ;; `module-variable' traverses the use list starting from the first
1682 ;; used module.
1683 (set-module-uses! module
1684 (append (filter (lambda (m)
1685 (not
1686 (equal? (module-name m)
1687 (module-name interface))))
1688 (module-uses module))
1689 (list interface)))
1690
1691 (module-modified module))))
0f2d19dd 1692
7b07e5ef
MD
1693;; MODULE-USE-INTERFACES! module interfaces
1694;;
1695;; Same as MODULE-USE! but add multiple interfaces and check for duplicates
1696;;
1697(define (module-use-interfaces! module interfaces)
608860a5
LC
1698 (set-module-uses! module
1699 (append (module-uses module) interfaces))
1700 (module-modified module))
7b07e5ef 1701
0f2d19dd 1702\f
3d2ada2f 1703
0f2d19dd
JB
1704;;; {Recursive Namespaces}
1705;;;
0f2d19dd
JB
1706;;; A hierarchical namespace emerges if we consider some module to be
1707;;; root, and variables bound to modules as nested namespaces.
1708;;;
1709;;; The routines in this file manage variable names in hierarchical namespace.
1710;;; Each variable name is a list of elements, looked up in successively nested
1711;;; modules.
1712;;;
0dd5491c 1713;;; (nested-ref some-root-module '(foo bar baz))
20edfbbd 1714;;; => <value of a variable named baz in the module bound to bar in
0f2d19dd
JB
1715;;; the module bound to foo in some-root-module>
1716;;;
1717;;;
1718;;; There are:
1719;;;
1720;;; ;; a-root is a module
1721;;; ;; name is a list of symbols
1722;;;
0dd5491c
MD
1723;;; nested-ref a-root name
1724;;; nested-set! a-root name val
1725;;; nested-define! a-root name val
1726;;; nested-remove! a-root name
0f2d19dd
JB
1727;;;
1728;;;
1729;;; (current-module) is a natural choice for a-root so for convenience there are
1730;;; also:
1731;;;
0dd5491c
MD
1732;;; local-ref name == nested-ref (current-module) name
1733;;; local-set! name val == nested-set! (current-module) name val
1734;;; local-define! name val == nested-define! (current-module) name val
1735;;; local-remove! name == nested-remove! (current-module) name
0f2d19dd
JB
1736;;;
1737
1738
0dd5491c 1739(define (nested-ref root names)
0f2d19dd
JB
1740 (let loop ((cur root)
1741 (elts names))
1742 (cond
1743 ((null? elts) cur)
1744 ((not (module? cur)) #f)
1745 (else (loop (module-ref cur (car elts) #f) (cdr elts))))))
1746
0dd5491c 1747(define (nested-set! root names val)
0f2d19dd
JB
1748 (let loop ((cur root)
1749 (elts names))
1750 (if (null? (cdr elts))
1751 (module-set! cur (car elts) val)
1752 (loop (module-ref cur (car elts)) (cdr elts)))))
1753
0dd5491c 1754(define (nested-define! root names val)
0f2d19dd
JB
1755 (let loop ((cur root)
1756 (elts names))
1757 (if (null? (cdr elts))
1758 (module-define! cur (car elts) val)
1759 (loop (module-ref cur (car elts)) (cdr elts)))))
1760
0dd5491c 1761(define (nested-remove! root names)
0f2d19dd
JB
1762 (let loop ((cur root)
1763 (elts names))
1764 (if (null? (cdr elts))
1765 (module-remove! cur (car elts))
1766 (loop (module-ref cur (car elts)) (cdr elts)))))
1767
0dd5491c
MD
1768(define (local-ref names) (nested-ref (current-module) names))
1769(define (local-set! names val) (nested-set! (current-module) names val))
1770(define (local-define names val) (nested-define! (current-module) names val))
1771(define (local-remove names) (nested-remove! (current-module) names))
0f2d19dd
JB
1772
1773
1774\f
3d2ada2f 1775
ac5d303b 1776;;; {The (%app) module}
0f2d19dd
JB
1777;;;
1778;;; The root of conventionally named objects not directly in the top level.
1779;;;
ac5d303b
MV
1780;;; (%app modules)
1781;;; (%app modules guile)
0f2d19dd
JB
1782;;;
1783;;; The directory of all modules and the standard root module.
1784;;;
1785
dc68fdb9 1786;; module-public-interface is defined in C.
edc185c7
MD
1787(define (set-module-public-interface! m i)
1788 (module-define! m '%module-public-interface i))
1789(define (set-system-module! m s)
1790 (set-procedure-property! (module-eval-closure m) 'system-module s))
0f2d19dd
JB
1791(define the-root-module (make-root-module))
1792(define the-scm-module (make-scm-module))
1793(set-module-public-interface! the-root-module the-scm-module)
d5504515
MD
1794(set-module-name! the-root-module '(guile))
1795(set-module-name! the-scm-module '(guile))
1796(set-module-kind! the-scm-module 'interface)
edc185c7 1797(for-each set-system-module! (list the-root-module the-scm-module) '(#t #t))
0f2d19dd 1798
296ff5e7
MV
1799;; NOTE: This binding is used in libguile/modules.c.
1800;;
1801(define (make-modules-in module name)
1802 (if (null? name)
1803 module
1804 (cond
1805 ((module-ref module (car name) #f)
1806 => (lambda (m) (make-modules-in m (cdr name))))
1807 (else (let ((m (make-module 31)))
1808 (set-module-kind! m 'directory)
1809 (set-module-name! m (append (or (module-name module)
1810 '())
1811 (list (car name))))
1812 (module-define! module (car name) m)
1813 (make-modules-in m (cdr name)))))))
0f2d19dd 1814
296ff5e7
MV
1815(define (beautify-user-module! module)
1816 (let ((interface (module-public-interface module)))
1817 (if (or (not interface)
1818 (eq? interface module))
1819 (let ((interface (make-module 31)))
1820 (set-module-name! interface (module-name module))
1821 (set-module-kind! interface 'interface)
8d8dac1f 1822 (set-module-public-interface! module interface))))
296ff5e7
MV
1823 (if (and (not (memq the-scm-module (module-uses module)))
1824 (not (eq? module the-root-module)))
608860a5
LC
1825 ;; Import the default set of bindings (from the SCM module) in MODULE.
1826 (module-use! module the-scm-module)))
432558b9 1827
1f60d9d2
MD
1828;; NOTE: This binding is used in libguile/modules.c.
1829;;
53f84bc8
AW
1830(define resolve-module
1831 (let ((the-root-module the-root-module))
1832 (lambda (name . maybe-autoload)
1833 (if (equal? name '(guile))
1834 the-root-module
1835 (let ((full-name (append '(%app modules) name)))
1836 (let ((already (nested-ref the-root-module full-name)))
1837 (if already
1838 ;; The module already exists...
1839 (if (and (or (null? maybe-autoload) (car maybe-autoload))
1840 (not (module-public-interface already)))
1841 ;; ...but we are told to load and it doesn't contain source, so
1842 (begin
1843 (try-load-module name)
1844 already)
1845 ;; simply return it.
1846 already)
1847 (begin
1848 ;; Try to autoload it if we are told so
1849 (if (or (null? maybe-autoload) (car maybe-autoload))
1850 (try-load-module name))
1851 ;; Get/create it.
1852 (make-modules-in (current-module) full-name)))))))))
20edfbbd 1853
d866f445
MV
1854;; Cheat. These bindings are needed by modules.c, but we don't want
1855;; to move their real definition here because that would be unnatural.
1856;;
296ff5e7 1857(define try-module-autoload #f)
d866f445
MV
1858(define process-define-module #f)
1859(define process-use-modules #f)
1860(define module-export! #f)
608860a5 1861(define default-duplicate-binding-procedures #f)
296ff5e7 1862
ac5d303b
MV
1863(define %app (make-module 31))
1864(define app %app) ;; for backwards compatability
b95b1b83 1865
ac5d303b
MV
1866(local-define '(%app modules) (make-module 31))
1867(local-define '(%app modules guile) the-root-module)
296ff5e7 1868
b95b1b83
AW
1869;; This boots the module system. All bindings needed by modules.c
1870;; must have been defined by now.
1871;;
1872(set-current-module the-root-module)
1873
ac5d303b 1874;; (define-special-value '(%app modules new-ws) (lambda () (make-scm-module)))
296ff5e7
MV
1875
1876(define (try-load-module name)
48fdec21
MV
1877 (or (begin-deprecated (try-module-linked name))
1878 (try-module-autoload name)
1879 (begin-deprecated (try-module-dynamic-link name))))
0f2d19dd 1880
90847923
MD
1881(define (purify-module! module)
1882 "Removes bindings in MODULE which are inherited from the (guile) module."
1883 (let ((use-list (module-uses module)))
1884 (if (and (pair? use-list)
1885 (eq? (car (last-pair use-list)) the-scm-module))
1886 (set-module-uses! module (reverse (cdr (reverse use-list)))))))
1887
4eecfeb7 1888;; Return a module that is an interface to the module designated by
532cf805
MV
1889;; NAME.
1890;;
c614a00b 1891;; `resolve-interface' takes four keyword arguments:
532cf805
MV
1892;;
1893;; #:select SELECTION
1894;;
1895;; SELECTION is a list of binding-specs to be imported; A binding-spec
1896;; is either a symbol or a pair of symbols (ORIG . SEEN), where ORIG
1897;; is the name in the used module and SEEN is the name in the using
1898;; module. Note that SEEN is also passed through RENAMER, below. The
1899;; default is to select all bindings. If you specify no selection but
4eecfeb7 1900;; a renamer, only the bindings that already exist in the used module
532cf805
MV
1901;; are made available in the interface. Bindings that are added later
1902;; are not picked up.
1903;;
c614a00b 1904;; #:hide BINDINGS
532cf805 1905;;
c614a00b 1906;; BINDINGS is a list of bindings which should not be imported.
f595ccfe
MD
1907;;
1908;; #:prefix PREFIX
1909;;
1910;; PREFIX is a symbol that will be appended to each exported name.
1911;; The default is to not perform any renaming.
532cf805 1912;;
c614a00b
MD
1913;; #:renamer RENAMER
1914;;
1915;; RENAMER is a procedure that takes a symbol and returns its new
1916;; name. The default is not perform any renaming.
1917;;
532cf805
MV
1918;; Signal "no code for module" error if module name is not resolvable
1919;; or its public interface is not available. Signal "no binding"
1920;; error if selected binding does not exist in the used module.
1921;;
1922(define (resolve-interface name . args)
1923
1924 (define (get-keyword-arg args kw def)
1925 (cond ((memq kw args)
1926 => (lambda (kw-arg)
1927 (if (null? (cdr kw-arg))
1928 (error "keyword without value: " kw))
1929 (cadr kw-arg)))
1930 (else
1931 def)))
1932
1933 (let* ((select (get-keyword-arg args #:select #f))
c614a00b 1934 (hide (get-keyword-arg args #:hide '()))
f595ccfe
MD
1935 (renamer (or (get-keyword-arg args #:renamer #f)
1936 (let ((prefix (get-keyword-arg args #:prefix #f)))
1937 (and prefix (symbol-prefix-proc prefix)))
1938 identity))
b622dec7
TTN
1939 (module (resolve-module name))
1940 (public-i (and module (module-public-interface module))))
1941 (and (or (not module) (not public-i))
1942 (error "no code for module" name))
c614a00b 1943 (if (and (not select) (null? hide) (eq? renamer identity))
b622dec7 1944 public-i
532cf805
MV
1945 (let ((selection (or select (module-map (lambda (sym var) sym)
1946 public-i)))
b622dec7 1947 (custom-i (make-module 31)))
c614a00b
MD
1948 (set-module-kind! custom-i 'custom-interface)
1949 (set-module-name! custom-i name)
532cf805
MV
1950 ;; XXX - should use a lazy binder so that changes to the
1951 ;; used module are picked up automatically.
d57da08b
MD
1952 (for-each (lambda (bspec)
1953 (let* ((direct? (symbol? bspec))
1954 (orig (if direct? bspec (car bspec)))
1955 (seen (if direct? bspec (cdr bspec)))
c614a00b
MD
1956 (var (or (module-local-variable public-i orig)
1957 (module-local-variable module orig)
1958 (error
1959 ;; fixme: format manually for now
1960 (simple-format
1961 #f "no binding `~A' in module ~A"
1962 orig name)))))
1963 (if (memq orig hide)
1964 (set! hide (delq! orig hide))
1965 (module-add! custom-i
1966 (renamer seen)
1967 var))))
d57da08b 1968 selection)
c614a00b
MD
1969 ;; Check that we are not hiding bindings which don't exist
1970 (for-each (lambda (binding)
1971 (if (not (module-local-variable public-i binding))
1972 (error
1973 (simple-format
1974 #f "no binding `~A' to hide in module ~A"
1975 binding name))))
1976 hide)
b622dec7 1977 custom-i))))
fb1b76f4
TTN
1978
1979(define (symbol-prefix-proc prefix)
1980 (lambda (symbol)
1981 (symbol-append prefix symbol)))
0f2d19dd 1982
482a28f9
MV
1983;; This function is called from "modules.c". If you change it, be
1984;; sure to update "modules.c" as well.
1985
0f2d19dd 1986(define (process-define-module args)
f8a502cb
TTN
1987 (let* ((module-id (car args))
1988 (module (resolve-module module-id #f))
1989 (kws (cdr args))
1990 (unrecognized (lambda (arg)
1991 (error "unrecognized define-module argument" arg))))
0f2d19dd 1992 (beautify-user-module! module)
0209ca9a 1993 (let loop ((kws kws)
1b92d94c
AW
1994 (reversed-interfaces '())
1995 (exports '())
1996 (re-exports '())
1997 (replacements '())
608860a5 1998 (autoloads '()))
e4da0740 1999
0209ca9a 2000 (if (null? kws)
1b92d94c
AW
2001 (call-with-deferred-observers
2002 (lambda ()
2003 (module-use-interfaces! module (reverse reversed-interfaces))
2004 (module-export! module exports)
2005 (module-replace! module replacements)
2006 (module-re-export! module re-exports)
608860a5
LC
2007 (if (not (null? autoloads))
2008 (apply module-autoload! module autoloads))))
1b92d94c
AW
2009 (case (car kws)
2010 ((#:use-module #:use-syntax)
2011 (or (pair? (cdr kws))
2012 (unrecognized kws))
2013 (let* ((interface-args (cadr kws))
2014 (interface (apply resolve-interface interface-args)))
2015 (and (eq? (car kws) #:use-syntax)
2016 (or (symbol? (caar interface-args))
2017 (error "invalid module name for use-syntax"
2018 (car interface-args)))
2019 (set-module-transformer!
2020 module
2021 (module-ref interface
2022 (car (last-pair (car interface-args)))
2023 #f)))
2024 (loop (cddr kws)
2025 (cons interface reversed-interfaces)
2026 exports
2027 re-exports
2028 replacements
608860a5 2029 autoloads)))
1b92d94c
AW
2030 ((#:autoload)
2031 (or (and (pair? (cdr kws)) (pair? (cddr kws)))
2032 (unrecognized kws))
2033 (loop (cdddr kws)
608860a5 2034 reversed-interfaces
1b92d94c
AW
2035 exports
2036 re-exports
2037 replacements
608860a5
LC
2038 (let ((name (cadr kws))
2039 (bindings (caddr kws)))
2040 (cons* name bindings autoloads))))
1b92d94c
AW
2041 ((#:no-backtrace)
2042 (set-system-module! module #t)
2043 (loop (cdr kws) reversed-interfaces exports re-exports
608860a5 2044 replacements autoloads))
1b92d94c
AW
2045 ((#:pure)
2046 (purify-module! module)
2047 (loop (cdr kws) reversed-interfaces exports re-exports
608860a5 2048 replacements autoloads))
1b92d94c
AW
2049 ((#:duplicates)
2050 (if (not (pair? (cdr kws)))
2051 (unrecognized kws))
2052 (set-module-duplicates-handlers!
2053 module
2054 (lookup-duplicates-handlers (cadr kws)))
2055 (loop (cddr kws) reversed-interfaces exports re-exports
608860a5 2056 replacements autoloads))
1b92d94c
AW
2057 ((#:export #:export-syntax)
2058 (or (pair? (cdr kws))
2059 (unrecognized kws))
2060 (loop (cddr kws)
2061 reversed-interfaces
2062 (append (cadr kws) exports)
2063 re-exports
2064 replacements
608860a5 2065 autoloads))
1b92d94c
AW
2066 ((#:re-export #:re-export-syntax)
2067 (or (pair? (cdr kws))
2068 (unrecognized kws))
2069 (loop (cddr kws)
2070 reversed-interfaces
2071 exports
2072 (append (cadr kws) re-exports)
2073 replacements
608860a5 2074 autoloads))
1b92d94c
AW
2075 ((#:replace #:replace-syntax)
2076 (or (pair? (cdr kws))
2077 (unrecognized kws))
2078 (loop (cddr kws)
2079 reversed-interfaces
2080 exports
2081 re-exports
2082 (append (cadr kws) replacements)
608860a5 2083 autoloads))
1b92d94c
AW
2084 (else
2085 (unrecognized kws)))))
db853761 2086 (run-hook module-defined-hook module)
0f2d19dd 2087 module))
71225060 2088
db853761
NJ
2089;; `module-defined-hook' is a hook that is run whenever a new module
2090;; is defined. Its members are called with one argument, the new
2091;; module.
2092(define module-defined-hook (make-hook 1))
2093
3d2ada2f
DH
2094\f
2095
71225060 2096;;; {Autoload}
3d2ada2f 2097;;;
71225060
MD
2098
2099(define (make-autoload-interface module name bindings)
2100 (let ((b (lambda (a sym definep)
2101 (and (memq sym bindings)
2102 (let ((i (module-public-interface (resolve-module name))))
2103 (if (not i)
2104 (error "missing interface for module" name))
cd5fea8d
KR
2105 (let ((autoload (memq a (module-uses module))))
2106 ;; Replace autoload-interface with actual interface if
2107 ;; that has not happened yet.
2108 (if (pair? autoload)
2109 (set-car! autoload i)))
71225060 2110 (module-local-variable i sym))))))
608860a5
LC
2111 (module-constructor (make-hash-table 0) '() b #f #f name 'autoload #f
2112 (make-hash-table 0) '() (make-weak-value-hash-table 31))))
2113
2114(define (module-autoload! module . args)
2115 "Have @var{module} automatically load the module named @var{name} when one
2116of the symbols listed in @var{bindings} is looked up. @var{args} should be a
2117list of module-name/binding-list pairs, e.g., as in @code{(module-autoload!
2118module '(ice-9 q) '(make-q q-length))}."
2119 (let loop ((args args))
2120 (cond ((null? args)
2121 #t)
2122 ((null? (cdr args))
2123 (error "invalid name+binding autoload list" args))
2124 (else
2125 (let ((name (car args))
2126 (bindings (cadr args)))
2127 (module-use! module (make-autoload-interface module
2128 name bindings))
2129 (loop (cddr args)))))))
2130
71225060 2131
ff5546f5
KN
2132;;; {Compiled module}
2133
83495480
AW
2134(if (not (defined? 'load-compiled))
2135 (define load-compiled #f))
ff5546f5 2136
0f2d19dd 2137\f
3d2ada2f 2138
44cf1f0f 2139;;; {Autoloading modules}
3d2ada2f 2140;;;
0f2d19dd
JB
2141
2142(define autoloads-in-progress '())
2143
482a28f9
MV
2144;; This function is called from "modules.c". If you change it, be
2145;; sure to update "modules.c" as well.
2146
0f2d19dd 2147(define (try-module-autoload module-name)
0f2d19dd 2148 (let* ((reverse-name (reverse module-name))
06f0414c 2149 (name (symbol->string (car reverse-name)))
0f2d19dd 2150 (dir-hint-module-name (reverse (cdr reverse-name)))
06f0414c
MD
2151 (dir-hint (apply string-append
2152 (map (lambda (elt)
2153 (string-append (symbol->string elt) "/"))
2154 dir-hint-module-name))))
0209ca9a 2155 (resolve-module dir-hint-module-name #f)
0f2d19dd
JB
2156 (and (not (autoload-done-or-in-progress? dir-hint name))
2157 (let ((didit #f))
ff5546f5
KN
2158 (define (load-file proc file)
2159 (save-module-excursion (lambda () (proc file)))
2160 (set! didit #t))
0f2d19dd
JB
2161 (dynamic-wind
2162 (lambda () (autoload-in-progress! dir-hint name))
defed517 2163 (lambda ()
ff5546f5 2164 (let ((file (in-vicinity dir-hint name)))
707b812e
AW
2165 (let ((compiled (and load-compiled
2166 (%search-load-path
2167 (string-append file ".go"))))
2168 (source (%search-load-path file)))
2169 (cond ((and source
2170 (or (not compiled)
2171 (< (stat:mtime (stat compiled))
2172 (stat:mtime (stat source)))))
2173 (if compiled
2174 (warn "source file" source "newer than" compiled))
2175 (with-fluids ((current-reader #f))
2176 (load-file primitive-load source)))
2177 (compiled
2178 (load-file load-compiled compiled))))))
0f2d19dd
JB
2179 (lambda () (set-autoloaded! dir-hint name didit)))
2180 didit))))
2181
71225060 2182\f
3d2ada2f
DH
2183
2184;;; {Dynamic linking of modules}
2185;;;
d0cbd20c 2186
0f2d19dd
JB
2187(define autoloads-done '((guile . guile)))
2188
2189(define (autoload-done-or-in-progress? p m)
2190 (let ((n (cons p m)))
2191 (->bool (or (member n autoloads-done)
2192 (member n autoloads-in-progress)))))
2193
2194(define (autoload-done! p m)
2195 (let ((n (cons p m)))
2196 (set! autoloads-in-progress
2197 (delete! n autoloads-in-progress))
2198 (or (member n autoloads-done)
2199 (set! autoloads-done (cons n autoloads-done)))))
2200
2201(define (autoload-in-progress! p m)
2202 (let ((n (cons p m)))
2203 (set! autoloads-done
2204 (delete! n autoloads-done))
2205 (set! autoloads-in-progress (cons n autoloads-in-progress))))
2206
2207(define (set-autoloaded! p m done?)
2208 (if done?
2209 (autoload-done! p m)
2210 (let ((n (cons p m)))
2211 (set! autoloads-done (delete! n autoloads-done))
2212 (set! autoloads-in-progress (delete! n autoloads-in-progress)))))
2213
0f2d19dd
JB
2214\f
2215
83b38198 2216;;; {Run-time options}
3d2ada2f 2217;;;
83b38198 2218
27af6bc2 2219(defmacro define-option-interface (option-group)
e9bab9df
DH
2220 (let* ((option-name car)
2221 (option-value cadr)
2222 (option-documentation caddr)
2223
e9bab9df
DH
2224 ;; Below follow the macros defining the run-time option interfaces.
2225
2226 (make-options (lambda (interface)
2227 `(lambda args
2228 (cond ((null? args) (,interface))
2229 ((list? (car args))
2230 (,interface (car args)) (,interface))
27af6bc2
AW
2231 (else (for-each
2232 (lambda (option)
2233 (display (option-name option))
2234 (if (< (string-length
2235 (symbol->string (option-name option)))
2236 8)
2237 (display #\tab))
2238 (display #\tab)
2239 (display (option-value option))
2240 (display #\tab)
2241 (display (option-documentation option))
2242 (newline))
2243 (,interface #t)))))))
e9bab9df
DH
2244
2245 (make-enable (lambda (interface)
83b38198 2246 `(lambda flags
e9bab9df
DH
2247 (,interface (append flags (,interface)))
2248 (,interface))))
2249
2250 (make-disable (lambda (interface)
2251 `(lambda flags
2252 (let ((options (,interface)))
2253 (for-each (lambda (flag)
2254 (set! options (delq! flag options)))
2255 flags)
2256 (,interface options)
0983f67f 2257 (,interface))))))
27af6bc2
AW
2258 (let* ((interface (car option-group))
2259 (options/enable/disable (cadr option-group)))
2260 `(begin
2261 (define ,(car options/enable/disable)
2262 ,(make-options interface))
2263 (define ,(cadr options/enable/disable)
2264 ,(make-enable interface))
2265 (define ,(caddr options/enable/disable)
2266 ,(make-disable interface))
2267 (defmacro ,(caaddr option-group) (opt val)
2268 `(,',(car options/enable/disable)
2269 (append (,',(car options/enable/disable))
2270 (list ',opt ,val))))))))
e9bab9df
DH
2271
2272(define-option-interface
2273 (eval-options-interface
2274 (eval-options eval-enable eval-disable)
2275 (eval-set!)))
2276
2277(define-option-interface
2278 (debug-options-interface
2279 (debug-options debug-enable debug-disable)
2280 (debug-set!)))
2281
2282(define-option-interface
2283 (evaluator-traps-interface
2284 (traps trap-enable trap-disable)
2285 (trap-set!)))
2286
2287(define-option-interface
2288 (read-options-interface
2289 (read-options read-enable read-disable)
2290 (read-set!)))
2291
2292(define-option-interface
2293 (print-options-interface
2294 (print-options print-enable print-disable)
2295 (print-set!)))
83b38198
MD
2296
2297\f
2298
0f2d19dd
JB
2299;;; {Running Repls}
2300;;;
2301
2302(define (repl read evaler print)
75a97b92 2303 (let loop ((source (read (current-input-port))))
0f2d19dd 2304 (print (evaler source))
75a97b92 2305 (loop (read (current-input-port)))))
0f2d19dd
JB
2306
2307;; A provisional repl that acts like the SCM repl:
2308;;
2309(define scm-repl-silent #f)
2310(define (assert-repl-silence v) (set! scm-repl-silent v))
2311
21ed9efe
MD
2312(define *unspecified* (if #f #f))
2313(define (unspecified? v) (eq? v *unspecified*))
2314
2315(define scm-repl-print-unspecified #f)
2316(define (assert-repl-print-unspecified v) (set! scm-repl-print-unspecified v))
2317
79451588 2318(define scm-repl-verbose #f)
0f2d19dd
JB
2319(define (assert-repl-verbosity v) (set! scm-repl-verbose v))
2320
e6875011 2321(define scm-repl-prompt "guile> ")
0f2d19dd 2322
e6875011
MD
2323(define (set-repl-prompt! v) (set! scm-repl-prompt v))
2324
d5d34fa1
MD
2325(define (default-lazy-handler key . args)
2326 (save-stack lazy-handler-dispatch)
2327 (apply throw key args))
2328
d5d34fa1 2329(define (lazy-handler-dispatch key . args)
d95c0b76 2330 (apply default-lazy-handler key args))
0f2d19dd 2331
3e3cec45 2332(define abort-hook (make-hook))
59e1116d 2333
28d8ab3c
GH
2334;; these definitions are used if running a script.
2335;; otherwise redefined in error-catching-loop.
2336(define (set-batch-mode?! arg) #t)
2337(define (batch-mode?) #t)
4bbbcd5c 2338
0f2d19dd 2339(define (error-catching-loop thunk)
4bbbcd5c
GH
2340 (let ((status #f)
2341 (interactive #t))
8e44e7a0 2342 (define (loop first)
20edfbbd 2343 (let ((next
8e44e7a0 2344 (catch #t
9a0d70e2 2345
8e44e7a0 2346 (lambda ()
56658166
NJ
2347 (call-with-unblocked-asyncs
2348 (lambda ()
2349 (with-traps
2350 (lambda ()
2351 (first)
2352
2353 ;; This line is needed because mark
2354 ;; doesn't do closures quite right.
2355 ;; Unreferenced locals should be
2356 ;; collected.
2357 (set! first #f)
2358 (let loop ((v (thunk)))
2359 (loop (thunk)))
2360 #f)))))
20edfbbd 2361
8e44e7a0
GH
2362 (lambda (key . args)
2363 (case key
2364 ((quit)
8e44e7a0
GH
2365 (set! status args)
2366 #f)
2367
2368 ((switch-repl)
2369 (apply throw 'switch-repl args))
2370
2371 ((abort)
2372 ;; This is one of the closures that require
2373 ;; (set! first #f) above
2374 ;;
2375 (lambda ()
04efd24d 2376 (run-hook abort-hook)
e13c54c4 2377 (force-output (current-output-port))
8e44e7a0
GH
2378 (display "ABORT: " (current-error-port))
2379 (write args (current-error-port))
2380 (newline (current-error-port))
4bbbcd5c 2381 (if interactive
e13c54c4
JB
2382 (begin
2383 (if (and
2384 (not has-shown-debugger-hint?)
2385 (not (memq 'backtrace
2386 (debug-options-interface)))
2387 (stack? (fluid-ref the-last-stack)))
2388 (begin
2389 (newline (current-error-port))
2390 (display
cb546c61 2391 "Type \"(backtrace)\" to get more information or \"(debug)\" to enter the debugger.\n"
e13c54c4
JB
2392 (current-error-port))
2393 (set! has-shown-debugger-hint? #t)))
2394 (force-output (current-error-port)))
2395 (begin
2396 (primitive-exit 1)))
8e44e7a0
GH
2397 (set! stack-saved? #f)))
2398
2399 (else
2400 ;; This is the other cons-leak closure...
2401 (lambda ()
2402 (cond ((= (length args) 4)
2403 (apply handle-system-error key args))
2404 (else
56658166
NJ
2405 (apply bad-throw key args)))))))
2406
2407 ;; Note that having just `lazy-handler-dispatch'
2408 ;; here is connected with the mechanism that
2409 ;; produces a nice backtrace upon error. If, for
2410 ;; example, this is replaced with (lambda args
2411 ;; (apply lazy-handler-dispatch args)), the stack
2412 ;; cutting (in save-stack) goes wrong and ends up
2413 ;; saving no stack at all, so there is no
2414 ;; backtrace.
2415 lazy-handler-dispatch)))
2416
8e44e7a0 2417 (if next (loop next) status)))
5f5f2642 2418 (set! set-batch-mode?! (lambda (arg)
20edfbbd 2419 (cond (arg
5f5f2642
MD
2420 (set! interactive #f)
2421 (restore-signals))
2422 (#t
2423 (error "sorry, not implemented")))))
2424 (set! batch-mode? (lambda () (not interactive)))
bb00edfa
MV
2425 (call-with-blocked-asyncs
2426 (lambda () (loop (lambda () #t))))))
0f2d19dd 2427
8bb7f646 2428;;(define the-last-stack (make-fluid)) Defined by scm_init_backtrace ()
8087b6be 2429(define before-signal-stack (make-fluid))
21ed9efe
MD
2430(define stack-saved? #f)
2431
2432(define (save-stack . narrowing)
edc185c7
MD
2433 (or stack-saved?
2434 (cond ((not (memq 'debug (debug-options-interface)))
2435 (fluid-set! the-last-stack #f)
2436 (set! stack-saved? #t))
2437 (else
2438 (fluid-set!
2439 the-last-stack
2440 (case (stack-id #t)
2441 ((repl-stack)
704f4e86 2442 (apply make-stack #t save-stack primitive-eval #t 0 narrowing))
edc185c7
MD
2443 ((load-stack)
2444 (apply make-stack #t save-stack 0 #t 0 narrowing))
2445 ((tk-stack)
2446 (apply make-stack #t save-stack tk-stack-mark #t 0 narrowing))
2447 ((#t)
2448 (apply make-stack #t save-stack 0 1 narrowing))
2449 (else
2450 (let ((id (stack-id #t)))
2451 (and (procedure? id)
2452 (apply make-stack #t save-stack id #t 0 narrowing))))))
2453 (set! stack-saved? #t)))))
1c6cd8e8 2454
3e3cec45
MD
2455(define before-error-hook (make-hook))
2456(define after-error-hook (make-hook))
2457(define before-backtrace-hook (make-hook))
2458(define after-backtrace-hook (make-hook))
1c6cd8e8 2459
21ed9efe
MD
2460(define has-shown-debugger-hint? #f)
2461
35c5db87
GH
2462(define (handle-system-error key . args)
2463 (let ((cep (current-error-port)))
8bb7f646 2464 (cond ((not (stack? (fluid-ref the-last-stack))))
21ed9efe 2465 ((memq 'backtrace (debug-options-interface))
5d8d0849
MV
2466 (let ((highlights (if (or (eq? key 'wrong-type-arg)
2467 (eq? key 'out-of-range))
2468 (list-ref args 3)
2469 '())))
2470 (run-hook before-backtrace-hook)
2471 (newline cep)
2472 (display "Backtrace:\n")
2473 (display-backtrace (fluid-ref the-last-stack) cep
2474 #f #f highlights)
2475 (newline cep)
2476 (run-hook after-backtrace-hook))))
04efd24d 2477 (run-hook before-error-hook)
8bb7f646 2478 (apply display-error (fluid-ref the-last-stack) cep args)
04efd24d 2479 (run-hook after-error-hook)
35c5db87
GH
2480 (force-output cep)
2481 (throw 'abort key)))
21ed9efe 2482
0f2d19dd
JB
2483(define (quit . args)
2484 (apply throw 'quit args))
2485
7950df7c
GH
2486(define exit quit)
2487
d590bbf6
MD
2488;;(define has-shown-backtrace-hint? #f) Defined by scm_init_backtrace ()
2489
2490;; Replaced by C code:
2491;;(define (backtrace)
8bb7f646 2492;; (if (fluid-ref the-last-stack)
d590bbf6
MD
2493;; (begin
2494;; (newline)
8bb7f646 2495;; (display-backtrace (fluid-ref the-last-stack) (current-output-port))
d590bbf6
MD
2496;; (newline)
2497;; (if (and (not has-shown-backtrace-hint?)
2498;; (not (memq 'backtrace (debug-options-interface))))
2499;; (begin
2500;; (display
2501;;"Type \"(debug-enable 'backtrace)\" if you would like a backtrace
2502;;automatically if an error occurs in the future.\n")
2503;; (set! has-shown-backtrace-hint? #t))))
2504;; (display "No backtrace available.\n")))
21ed9efe 2505
0f2d19dd 2506(define (error-catching-repl r e p)
5f89fb13
MV
2507 (error-catching-loop
2508 (lambda ()
2509 (call-with-values (lambda () (e (r)))
2510 (lambda the-values (for-each p the-values))))))
0f2d19dd
JB
2511
2512(define (gc-run-time)
2513 (cdr (assq 'gc-time-taken (gc-stats))))
2514
3e3cec45
MD
2515(define before-read-hook (make-hook))
2516(define after-read-hook (make-hook))
870777d7
KN
2517(define before-eval-hook (make-hook 1))
2518(define after-eval-hook (make-hook 1))
2519(define before-print-hook (make-hook 1))
2520(define after-print-hook (make-hook 1))
1c6cd8e8 2521
dc5c2038
MD
2522;;; The default repl-reader function. We may override this if we've
2523;;; the readline library.
2524(define repl-reader
2525 (lambda (prompt)
2b70bf0e 2526 (display (if (string? prompt) prompt (prompt)))
dc5c2038 2527 (force-output)
04efd24d 2528 (run-hook before-read-hook)
27d64e2b 2529 ((or (fluid-ref current-reader) read) (current-input-port))))
dc5c2038 2530
0f2d19dd 2531(define (scm-style-repl)
9d774814 2532
0f2d19dd
JB
2533 (letrec (
2534 (start-gc-rt #f)
2535 (start-rt #f)
0f2d19dd
JB
2536 (repl-report-start-timing (lambda ()
2537 (set! start-gc-rt (gc-run-time))
2538 (set! start-rt (get-internal-run-time))))
2539 (repl-report (lambda ()
2540 (display ";;; ")
2541 (display (inexact->exact
2542 (* 1000 (/ (- (get-internal-run-time) start-rt)
2543 internal-time-units-per-second))))
2544 (display " msec (")
2545 (display (inexact->exact
2546 (* 1000 (/ (- (gc-run-time) start-gc-rt)
2547 internal-time-units-per-second))))
2548 (display " msec in gc)\n")))
480977d0
JB
2549
2550 (consume-trailing-whitespace
2551 (lambda ()
2552 (let ((ch (peek-char)))
2553 (cond
2554 ((eof-object? ch))
2555 ((or (char=? ch #\space) (char=? ch #\tab))
2556 (read-char)
2557 (consume-trailing-whitespace))
2558 ((char=? ch #\newline)
2559 (read-char))))))
0f2d19dd 2560 (-read (lambda ()
dc5c2038
MD
2561 (let ((val
2562 (let ((prompt (cond ((string? scm-repl-prompt)
2563 scm-repl-prompt)
2564 ((thunk? scm-repl-prompt)
2565 (scm-repl-prompt))
2566 (scm-repl-prompt "> ")
2567 (else ""))))
2568 (repl-reader prompt))))
2569
480977d0 2570 ;; As described in R4RS, the READ procedure updates the
e13c54c4 2571 ;; port to point to the first character past the end of
480977d0
JB
2572 ;; the external representation of the object. This
2573 ;; means that it doesn't consume the newline typically
2574 ;; found after an expression. This means that, when
2575 ;; debugging Guile with GDB, GDB gets the newline, which
2576 ;; it often interprets as a "continue" command, making
2577 ;; breakpoints kind of useless. So, consume any
2578 ;; trailing newline here, as well as any whitespace
2579 ;; before it.
e13c54c4
JB
2580 ;; But not if EOF, for control-D.
2581 (if (not (eof-object? val))
2582 (consume-trailing-whitespace))
04efd24d 2583 (run-hook after-read-hook)
0f2d19dd
JB
2584 (if (eof-object? val)
2585 (begin
7950df7c 2586 (repl-report-start-timing)
0f2d19dd
JB
2587 (if scm-repl-verbose
2588 (begin
2589 (newline)
2590 (display ";;; EOF -- quitting")
2591 (newline)))
2592 (quit 0)))
2593 val)))
2594
2595 (-eval (lambda (sourc)
2596 (repl-report-start-timing)
870777d7
KN
2597 (run-hook before-eval-hook sourc)
2598 (let ((val (start-stack 'repl-stack
2599 ;; If you change this procedure
2600 ;; (primitive-eval), please also
2601 ;; modify the repl-stack case in
2602 ;; save-stack so that stack cutting
2603 ;; continues to work.
2604 (primitive-eval sourc))))
2605 (run-hook after-eval-hook sourc)
2606 val)))
20edfbbd 2607
0f2d19dd 2608
44484f52
MD
2609 (-print (let ((maybe-print (lambda (result)
2610 (if (or scm-repl-print-unspecified
2611 (not (unspecified? result)))
2612 (begin
2613 (write result)
2614 (newline))))))
2615 (lambda (result)
2616 (if (not scm-repl-silent)
2617 (begin
870777d7 2618 (run-hook before-print-hook result)
3923fa6d 2619 (maybe-print result)
870777d7 2620 (run-hook after-print-hook result)
44484f52
MD
2621 (if scm-repl-verbose
2622 (repl-report))
2623 (force-output))))))
0f2d19dd 2624
8e44e7a0 2625 (-quit (lambda (args)
0f2d19dd
JB
2626 (if scm-repl-verbose
2627 (begin
2628 (display ";;; QUIT executed, repl exitting")
2629 (newline)
2630 (repl-report)))
8e44e7a0 2631 args))
0f2d19dd
JB
2632
2633 (-abort (lambda ()
2634 (if scm-repl-verbose
2635 (begin
2636 (display ";;; ABORT executed.")
2637 (newline)
2638 (repl-report)))
2639 (repl -read -eval -print))))
2640
8e44e7a0
GH
2641 (let ((status (error-catching-repl -read
2642 -eval
2643 -print)))
2644 (-quit status))))
20edfbbd 2645
0f2d19dd 2646
0f2d19dd 2647\f
3d2ada2f 2648
44cf1f0f 2649;;; {IOTA functions: generating lists of numbers}
3d2ada2f 2650;;;
0f2d19dd 2651
e69cd299
MD
2652(define (iota n)
2653 (let loop ((count (1- n)) (result '()))
2654 (if (< count 0) result
2655 (loop (1- count) (cons count result)))))
0f2d19dd
JB
2656
2657\f
3d2ada2f 2658
7398c2c2
MD
2659;;; {collect}
2660;;;
2661;;; Similar to `begin' but returns a list of the results of all constituent
2662;;; forms instead of the result of the last form.
2663;;; (The definition relies on the current left-to-right
2664;;; order of evaluation of operands in applications.)
3d2ada2f 2665;;;
7398c2c2
MD
2666
2667(defmacro collect forms
2668 (cons 'list forms))
0f2d19dd 2669
3d2ada2f
DH
2670\f
2671
8a6a8671 2672;;; {with-fluids}
3d2ada2f 2673;;;
8a6a8671
MV
2674
2675;; with-fluids is a convenience wrapper for the builtin procedure
2676;; `with-fluids*'. The syntax is just like `let':
2677;;
2678;; (with-fluids ((fluid val)
2679;; ...)
2680;; body)
2681
2682(defmacro with-fluids (bindings . body)
062fccce
MV
2683 (let ((fluids (map car bindings))
2684 (values (map cadr bindings)))
2685 (if (and (= (length fluids) 1) (= (length values) 1))
2686 `(with-fluid* ,(car fluids) ,(car values) (lambda () ,@body))
2687 `(with-fluids* (list ,@fluids) (list ,@values)
2688 (lambda () ,@body)))))
8a6a8671 2689
0f2d19dd
JB
2690\f
2691
2692;;; {Macros}
2693;;;
2694
2695;; actually....hobbit might be able to hack these with a little
2696;; coaxing
2697;;
2698
3d2ada2f
DH
2699(define (primitive-macro? m)
2700 (and (macro? m)
2701 (not (macro-transformer m))))
2702
0f2d19dd
JB
2703(defmacro define-macro (first . rest)
2704 (let ((name (if (symbol? first) first (car first)))
2705 (transformer
2706 (if (symbol? first)
2707 (car rest)
2708 `(lambda ,(cdr first) ,@rest))))
8add1522 2709 `(eval-case
75e03dee 2710 ((load-toplevel compile-toplevel)
8add1522
KN
2711 (define ,name (defmacro:transformer ,transformer)))
2712 (else
2713 (error "define-macro can only be used at the top level")))))
0f2d19dd
JB
2714
2715
3d2ada2f
DH
2716\f
2717
773abfbb
KR
2718;;; {While}
2719;;;
2720;;; with `continue' and `break'.
2721;;;
2722
2723;; The inner `do' loop avoids re-establishing a catch every iteration,
5578a53f
KR
2724;; that's only necessary if continue is actually used. A new key is
2725;; generated every time, so break and continue apply to their originating
972c33e5 2726;; `while' even when recursing.
773abfbb 2727;;
972c33e5
AW
2728;; FIXME: This macro is unintentionally unhygienic with respect to let,
2729;; make-symbol, do, throw, catch, lambda, and not.
c8fc38b1 2730;;
773abfbb 2731(define-macro (while cond . body)
972c33e5
AW
2732 (let ((keyvar (make-symbol "while-keyvar")))
2733 `(let ((,keyvar (make-symbol "while-key")))
2734 (do ()
2735 ((catch ,keyvar
2736 (lambda ()
2737 (let ((break (lambda () (throw ,keyvar #t)))
2738 (continue (lambda () (throw ,keyvar #f))))
2739 (do ()
2740 ((not ,cond))
2741 ,@body)
2742 #t))
2743 (lambda (key arg)
2744 arg)))))))
5578a53f 2745
773abfbb 2746
0f2d19dd 2747\f
3d2ada2f 2748
0f2d19dd
JB
2749;;; {Module System Macros}
2750;;;
2751
532cf805
MV
2752;; Return a list of expressions that evaluate to the appropriate
2753;; arguments for resolve-interface according to SPEC.
2754
1a1a10d3
AW
2755(eval-case
2756 ((compile-toplevel)
2757 (if (memq 'prefix (read-options))
2758 (error "boot-9 must be compiled with #:kw, not :kw"))))
2759
532cf805
MV
2760(define (compile-interface-spec spec)
2761 (define (make-keyarg sym key quote?)
2762 (cond ((or (memq sym spec)
2763 (memq key spec))
2764 => (lambda (rest)
2765 (if quote?
2766 (list key (list 'quote (cadr rest)))
2767 (list key (cadr rest)))))
2768 (else
2769 '())))
2770 (define (map-apply func list)
2771 (map (lambda (args) (apply func args)) list))
bbf5a913 2772 (define keys
532cf805
MV
2773 ;; sym key quote?
2774 '((:select #:select #t)
c614a00b 2775 (:hide #:hide #t)
f595ccfe 2776 (:prefix #:prefix #t)
6672871b 2777 (:renamer #:renamer #f)))
532cf805
MV
2778 (if (not (pair? (car spec)))
2779 `(',spec)
2780 `(',(car spec)
2781 ,@(apply append (map-apply make-keyarg keys)))))
2782
2783(define (keyword-like-symbol->keyword sym)
2784 (symbol->keyword (string->symbol (substring (symbol->string sym) 1))))
2785
2786(define (compile-define-module-args args)
2787 ;; Just quote everything except #:use-module and #:use-syntax. We
2788 ;; need to know about all arguments regardless since we want to turn
2789 ;; symbols that look like keywords into real keywords, and the
2790 ;; keyword args in a define-module form are not regular
2791 ;; (i.e. no-backtrace doesn't take a value).
2792 (let loop ((compiled-args `((quote ,(car args))))
2793 (args (cdr args)))
2794 (cond ((null? args)
2795 (reverse! compiled-args))
2796 ;; symbol in keyword position
2797 ((symbol? (car args))
2798 (loop compiled-args
2799 (cons (keyword-like-symbol->keyword (car args)) (cdr args))))
2800 ((memq (car args) '(#:no-backtrace #:pure))
2801 (loop (cons (car args) compiled-args)
2802 (cdr args)))
2803 ((null? (cdr args))
2804 (error "keyword without value:" (car args)))
2805 ((memq (car args) '(#:use-module #:use-syntax))
2806 (loop (cons* `(list ,@(compile-interface-spec (cadr args)))
2807 (car args)
2808 compiled-args)
2809 (cddr args)))
2810 ((eq? (car args) #:autoload)
2811 (loop (cons* `(quote ,(caddr args))
2812 `(quote ,(cadr args))
2813 (car args)
2814 compiled-args)
2815 (cdddr args)))
2816 (else
2817 (loop (cons* `(quote ,(cadr args))
2818 (car args)
2819 compiled-args)
2820 (cddr args))))))
2821
0f2d19dd 2822(defmacro define-module args
7b748b16 2823 `(eval-case
75e03dee 2824 ((load-toplevel compile-toplevel)
bbf5a913 2825 (let ((m (process-define-module
532cf805 2826 (list ,@(compile-define-module-args args)))))
25afac98
MV
2827 (set-current-module m)
2828 m))
645e38d9
MV
2829 (else
2830 (error "define-module can only be used at the top level"))))
0f2d19dd 2831
532cf805
MV
2832;; The guts of the use-modules macro. Add the interfaces of the named
2833;; modules to the use-list of the current module, in order.
2834
482a28f9
MV
2835;; This function is called by "modules.c". If you change it, be sure
2836;; to change scm_c_use_module as well.
2837
532cf805 2838(define (process-use-modules module-interface-args)
d57da08b
MD
2839 (let ((interfaces (map (lambda (mif-args)
2840 (or (apply resolve-interface mif-args)
2841 (error "no such module" mif-args)))
2842 module-interface-args)))
2843 (call-with-deferred-observers
2844 (lambda ()
2845 (module-use-interfaces! (current-module) interfaces)))))
89da9036 2846
33cf699f 2847(defmacro use-modules modules
7b748b16 2848 `(eval-case
75e03dee 2849 ((load-toplevel compile-toplevel)
532cf805
MV
2850 (process-use-modules
2851 (list ,@(map (lambda (m)
2852 `(list ,@(compile-interface-spec m)))
7b07e5ef
MD
2853 modules)))
2854 *unspecified*)
645e38d9
MV
2855 (else
2856 (error "use-modules can only be used at the top level"))))
33cf699f 2857
cf266109 2858(defmacro use-syntax (spec)
7b748b16 2859 `(eval-case
75e03dee 2860 ((load-toplevel compile-toplevel)
7cbaee0c 2861 ,@(if (pair? spec)
532cf805
MV
2862 `((process-use-modules (list
2863 (list ,@(compile-interface-spec spec))))
7cbaee0c
MD
2864 (set-module-transformer! (current-module)
2865 ,(car (last-pair spec))))
cf743aea
MD
2866 `((set-module-transformer! (current-module) ,spec)))
2867 *unspecified*)
645e38d9 2868 (else
4879243c 2869 (error "use-syntax can only be used at the top level"))))
7a0ff2f8 2870
9123414e
DH
2871;; Dirk:FIXME:: This incorrect (according to R5RS) syntax needs to be changed
2872;; as soon as guile supports hygienic macros.
2873(define define-private define)
0f2d19dd
JB
2874
2875(defmacro define-public args
2876 (define (syntax)
2877 (error "bad syntax" (list 'define-public args)))
2878 (define (defined-name n)
2879 (cond
3c5af9ef
JB
2880 ((symbol? n) n)
2881 ((pair? n) (defined-name (car n)))
2882 (else (syntax))))
0f2d19dd 2883 (cond
645e38d9
MV
2884 ((null? args)
2885 (syntax))
2886 (#t
2887 (let ((name (defined-name (car args))))
2888 `(begin
a482f2cc 2889 (define-private ,@args)
75e03dee 2890 (eval-case ((load-toplevel compile-toplevel) (export ,name))))))))
0f2d19dd
JB
2891
2892(defmacro defmacro-public args
2893 (define (syntax)
2894 (error "bad syntax" (list 'defmacro-public args)))
2895 (define (defined-name n)
2896 (cond
645e38d9
MV
2897 ((symbol? n) n)
2898 (else (syntax))))
0f2d19dd 2899 (cond
645e38d9
MV
2900 ((null? args)
2901 (syntax))
2902 (#t
2903 (let ((name (defined-name (car args))))
2904 `(begin
75e03dee 2905 (eval-case ((load-toplevel compile-toplevel) (export-syntax ,name)))
645e38d9 2906 (defmacro ,@args))))))
0f2d19dd 2907
89d06712 2908;; Export a local variable
482a28f9
MV
2909
2910;; This function is called from "modules.c". If you change it, be
2911;; sure to update "modules.c" as well.
2912
90847923
MD
2913(define (module-export! m names)
2914 (let ((public-i (module-public-interface m)))
2915 (for-each (lambda (name)
89d06712
MV
2916 (let ((var (module-ensure-local-variable! m name)))
2917 (module-add! public-i name var)))
2918 names)))
2919
f595ccfe
MD
2920(define (module-replace! m names)
2921 (let ((public-i (module-public-interface m)))
2922 (for-each (lambda (name)
2923 (let ((var (module-ensure-local-variable! m name)))
2924 (set-object-property! var 'replace #t)
2925 (module-add! public-i name var)))
2926 names)))
2927
89d06712
MV
2928;; Re-export a imported variable
2929;;
2930(define (module-re-export! m names)
2931 (let ((public-i (module-public-interface m)))
2932 (for-each (lambda (name)
2933 (let ((var (module-variable m name)))
2934 (cond ((not var)
2935 (error "Undefined variable:" name))
2936 ((eq? var (module-local-variable m name))
2937 (error "re-exporting local variable:" name))
2938 (else
2939 (module-add! public-i name var)))))
90847923
MD
2940 names)))
2941
a0cc0a01 2942(defmacro export names
7b748b16 2943 `(eval-case
75e03dee 2944 ((load-toplevel compile-toplevel)
d57da08b
MD
2945 (call-with-deferred-observers
2946 (lambda ()
2947 (module-export! (current-module) ',names))))
645e38d9
MV
2948 (else
2949 (error "export can only be used at the top level"))))
a0cc0a01 2950
89d06712
MV
2951(defmacro re-export names
2952 `(eval-case
75e03dee 2953 ((load-toplevel compile-toplevel)
d57da08b
MD
2954 (call-with-deferred-observers
2955 (lambda ()
2956 (module-re-export! (current-module) ',names))))
89d06712
MV
2957 (else
2958 (error "re-export can only be used at the top level"))))
2959
ab382f52 2960(defmacro export-syntax names
6aa9ea7c 2961 `(export ,@names))
a0cc0a01 2962
f2cbc0e5
DH
2963(defmacro re-export-syntax names
2964 `(re-export ,@names))
a0cc0a01 2965
0f2d19dd
JB
2966(define load load-module)
2967
473687d1
MV
2968;; The following macro allows one to write, for example,
2969;;
2970;; (@ (ice-9 pretty-print) pretty-print)
2971;;
2972;; to refer directly to the pretty-print variable in module (ice-9
2973;; pretty-print). It works by looking up the variable and inserting
2974;; it directly into the code. This is understood by the evaluator.
2975;; Indeed, all references to global variables are memoized into such
2976;; variable objects.
2977
6a01fabf 2978;; FIXME: these don't work with the compiler
473687d1
MV
2979(define-macro (@ mod-name var-name)
2980 (let ((var (module-variable (resolve-interface mod-name) var-name)))
2981 (if (not var)
2982 (error "no such public variable" (list '@ mod-name var-name)))
2983 var))
2984
2985;; The '@@' macro is like '@' but it can also access bindings that
2986;; have not been explicitely exported.
2987
2988(define-macro (@@ mod-name var-name)
2989 (let ((var (module-variable (resolve-module mod-name) var-name)))
2990 (if (not var)
2991 (error "no such variable" (list '@@ mod-name var-name)))
2992 var))
2993
7f24bc58 2994\f
3d2ada2f 2995
f595ccfe
MD
2996;;; {Parameters}
2997;;;
2998
2999(define make-mutable-parameter
3000 (let ((make (lambda (fluid converter)
3001 (lambda args
3002 (if (null? args)
3003 (fluid-ref fluid)
3004 (fluid-set! fluid (converter (car args))))))))
3005 (lambda (init . converter)
3006 (let ((fluid (make-fluid))
3007 (converter (if (null? converter)
3008 identity
3009 (car converter))))
3010 (fluid-set! fluid (converter init))
3011 (make fluid converter)))))
3012
3013\f
3d2ada2f 3014
7b07e5ef
MD
3015;;; {Handling of duplicate imported bindings}
3016;;;
3017
3018;; Duplicate handlers take the following arguments:
3019;;
3020;; module importing module
3021;; name conflicting name
3022;; int1 old interface where name occurs
3023;; val1 value of binding in old interface
3024;; int2 new interface where name occurs
3025;; val2 value of binding in new interface
3026;; var previous resolution or #f
3027;; val value of previous resolution
3028;;
3029;; A duplicate handler can take three alternative actions:
3030;;
3031;; 1. return #f => leave responsibility to next handler
3032;; 2. exit with an error
3033;; 3. return a variable resolving the conflict
3034;;
3035
3036(define duplicate-handlers
3037 (let ((m (make-module 7)))
f595ccfe
MD
3038
3039 (define (check module name int1 val1 int2 val2 var val)
3040 (scm-error 'misc-error
3041 #f
8dd18cea 3042 "~A: `~A' imported from both ~A and ~A"
f595ccfe
MD
3043 (list (module-name module)
3044 name
3045 (module-name int1)
3046 (module-name int2))
3047 #f))
3048
65bed4aa 3049 (define (warn module name int1 val1 int2 val2 var val)
d7c0c26d 3050 (format (current-error-port)
65bed4aa
MD
3051 "WARNING: ~A: `~A' imported from both ~A and ~A\n"
3052 (module-name module)
3053 name
3054 (module-name int1)
3055 (module-name int2))
3056 #f)
f595ccfe
MD
3057
3058 (define (replace module name int1 val1 int2 val2 var val)
3059 (let ((old (or (and var (object-property var 'replace) var)
3060 (module-variable int1 name)))
3061 (new (module-variable int2 name)))
3062 (if (object-property old 'replace)
3063 (and (or (eq? old new)
3064 (not (object-property new 'replace)))
3065 old)
3066 (and (object-property new 'replace)
3067 new))))
3068
65bed4aa
MD
3069 (define (warn-override-core module name int1 val1 int2 val2 var val)
3070 (and (eq? int1 the-scm-module)
3071 (begin
d7c0c26d 3072 (format (current-error-port)
65bed4aa
MD
3073 "WARNING: ~A: imported module ~A overrides core binding `~A'\n"
3074 (module-name module)
3075 (module-name int2)
3076 name)
3077 (module-local-variable int2 name))))
f595ccfe 3078
65bed4aa
MD
3079 (define (first module name int1 val1 int2 val2 var val)
3080 (or var (module-local-variable int1 name)))
f595ccfe 3081
65bed4aa
MD
3082 (define (last module name int1 val1 int2 val2 var val)
3083 (module-local-variable int2 name))
f595ccfe 3084
65bed4aa
MD
3085 (define (noop module name int1 val1 int2 val2 var val)
3086 #f)
3087
7b07e5ef
MD
3088 (set-module-name! m 'duplicate-handlers)
3089 (set-module-kind! m 'interface)
f595ccfe
MD
3090 (module-define! m 'check check)
3091 (module-define! m 'warn warn)
3092 (module-define! m 'replace replace)
3093 (module-define! m 'warn-override-core warn-override-core)
3094 (module-define! m 'first first)
3095 (module-define! m 'last last)
65bed4aa
MD
3096 (module-define! m 'merge-generics noop)
3097 (module-define! m 'merge-accessors noop)
7b07e5ef
MD
3098 m))
3099
f595ccfe 3100(define (lookup-duplicates-handlers handler-names)
109c2c9f
MD
3101 (and handler-names
3102 (map (lambda (handler-name)
3103 (or (module-symbol-local-binding
3104 duplicate-handlers handler-name #f)
3105 (error "invalid duplicate handler name:"
3106 handler-name)))
3107 (if (list? handler-names)
3108 handler-names
3109 (list handler-names)))))
f595ccfe 3110
70a459e3
MD
3111(define default-duplicate-binding-procedures
3112 (make-mutable-parameter #f))
3113
3114(define default-duplicate-binding-handler
6496a663 3115 (make-mutable-parameter '(replace warn-override-core warn last)
70a459e3
MD
3116 (lambda (handler-names)
3117 (default-duplicate-binding-procedures
3118 (lookup-duplicates-handlers handler-names))
3119 handler-names)))
f595ccfe 3120
7b07e5ef 3121\f
7f24bc58
MG
3122
3123;;; {`cond-expand' for SRFI-0 support.}
3124;;;
3125;;; This syntactic form expands into different commands or
3126;;; definitions, depending on the features provided by the Scheme
3127;;; implementation.
3128;;;
3129;;; Syntax:
3130;;;
3131;;; <cond-expand>
3132;;; --> (cond-expand <cond-expand-clause>+)
3133;;; | (cond-expand <cond-expand-clause>* (else <command-or-definition>))
3134;;; <cond-expand-clause>
3135;;; --> (<feature-requirement> <command-or-definition>*)
3136;;; <feature-requirement>
3137;;; --> <feature-identifier>
3138;;; | (and <feature-requirement>*)
3139;;; | (or <feature-requirement>*)
3140;;; | (not <feature-requirement>)
3141;;; <feature-identifier>
3142;;; --> <a symbol which is the name or alias of a SRFI>
3143;;;
3144;;; Additionally, this implementation provides the
3145;;; <feature-identifier>s `guile' and `r5rs', so that programs can
3146;;; determine the implementation type and the supported standard.
3147;;;
3148;;; Currently, the following feature identifiers are supported:
3149;;;
08b609aa 3150;;; guile r5rs srfi-0 srfi-4 srfi-6 srfi-13 srfi-14 srfi-55 srfi-61
7f24bc58
MG
3151;;;
3152;;; Remember to update the features list when adding more SRFIs.
3d2ada2f 3153;;;
7f24bc58 3154
b9b8f9da 3155(define %cond-expand-features
f41be016 3156 ;; Adjust the above comment when changing this.
018733ff
KR
3157 '(guile
3158 r5rs
3159 srfi-0 ;; cond-expand itself
85acb35f 3160 srfi-4 ;; homogenous numeric vectors
018733ff 3161 srfi-6 ;; open-input-string etc, in the guile core
4a276c08
MV
3162 srfi-13 ;; string library
3163 srfi-14 ;; character sets
344d68d5 3164 srfi-55 ;; require-extension
08b609aa 3165 srfi-61 ;; general cond clause
018733ff 3166 ))
1d00af09 3167
b9b8f9da
MG
3168;; This table maps module public interfaces to the list of features.
3169;;
3170(define %cond-expand-table (make-hash-table 31))
3171
3172;; Add one or more features to the `cond-expand' feature list of the
3173;; module `module'.
3174;;
3175(define (cond-expand-provide module features)
3176 (let ((mod (module-public-interface module)))
3177 (and mod
3178 (hashq-set! %cond-expand-table mod
3179 (append (hashq-ref %cond-expand-table mod '())
3180 features)))))
3181
9f79272a
MV
3182(define cond-expand
3183 (procedure->memoizing-macro
3184 (lambda (exp env)
3185 (let ((clauses (cdr exp))
3186 (syntax-error (lambda (cl)
3187 (error "invalid clause in `cond-expand'" cl))))
3188 (letrec
3189 ((test-clause
3190 (lambda (clause)
7f24bc58 3191 (cond
9f79272a
MV
3192 ((symbol? clause)
3193 (or (memq clause %cond-expand-features)
3194 (let lp ((uses (module-uses (env-module env))))
3195 (if (pair? uses)
3196 (or (memq clause
3197 (hashq-ref %cond-expand-table
3198 (car uses) '()))
3199 (lp (cdr uses)))
3200 #f))))
3201 ((pair? clause)
3202 (cond
3203 ((eq? 'and (car clause))
3204 (let lp ((l (cdr clause)))
3205 (cond ((null? l)
3206 #t)
3207 ((pair? l)
3208 (and (test-clause (car l)) (lp (cdr l))))
3209 (else
3210 (syntax-error clause)))))
3211 ((eq? 'or (car clause))
3212 (let lp ((l (cdr clause)))
3213 (cond ((null? l)
3214 #f)
3215 ((pair? l)
3216 (or (test-clause (car l)) (lp (cdr l))))
3217 (else
3218 (syntax-error clause)))))
3219 ((eq? 'not (car clause))
3220 (cond ((not (pair? (cdr clause)))
3221 (syntax-error clause))
3222 ((pair? (cddr clause))
3223 ((syntax-error clause))))
3224 (not (test-clause (cadr clause))))
3225 (else
3226 (syntax-error clause))))
3227 (else
3228 (syntax-error clause))))))
3229 (let lp ((c clauses))
3230 (cond
3231 ((null? c)
3232 (error "Unfulfilled `cond-expand'"))
3233 ((not (pair? c))
7f24bc58 3234 (syntax-error c))
9f79272a
MV
3235 ((not (pair? (car c)))
3236 (syntax-error (car c)))
3237 ((test-clause (caar c))
3238 `(begin ,@(cdar c)))
3239 ((eq? (caar c) 'else)
3240 (if (pair? (cdr c))
3241 (syntax-error c))
3242 `(begin ,@(cdar c)))
3243 (else
3244 (lp (cdr c))))))))))
0f2d19dd 3245
f41be016
MG
3246;; This procedure gets called from the startup code with a list of
3247;; numbers, which are the numbers of the SRFIs to be loaded on startup.
3248;;
3249(define (use-srfis srfis)
9a18d8d4
KR
3250 (process-use-modules
3251 (map (lambda (num)
3252 (list (list 'srfi (string->symbol
3253 (string-append "srfi-" (number->string num))))))
3254 srfis)))
f8a502cb 3255
0f2d19dd 3256\f
9d774814 3257
344d68d5
RB
3258;;; srfi-55: require-extension
3259;;;
3260
3261(define-macro (require-extension extension-spec)
3262 ;; This macro only handles the srfi extension, which, at present, is
3263 ;; the only one defined by the standard.
3264 (if (not (pair? extension-spec))
3265 (scm-error 'wrong-type-arg "require-extension"
3266 "Not an extension: ~S" (list extension-spec) #f))
3267 (let ((extension (car extension-spec))
3268 (extension-args (cdr extension-spec)))
3269 (case extension
3270 ((srfi)
3271 (let ((use-list '()))
3272 (for-each
3273 (lambda (i)
3274 (if (not (integer? i))
3275 (scm-error 'wrong-type-arg "require-extension"
3276 "Invalid srfi name: ~S" (list i) #f))
3277 (let ((srfi-sym (string->symbol
3278 (string-append "srfi-" (number->string i)))))
3279 (if (not (memq srfi-sym %cond-expand-features))
3280 (set! use-list (cons `(use-modules (srfi ,srfi-sym))
3281 use-list)))))
3282 extension-args)
3283 (if (pair? use-list)
3284 ;; i.e. (begin (use-modules x) (use-modules y) (use-modules z))
3285 `(begin ,@(reverse! use-list)))))
3286 (else
3287 (scm-error
3288 'wrong-type-arg "require-extension"
3289 "Not a recognized extension type: ~S" (list extension) #f)))))
3290
3291\f
3292
9aca88c3 3293;;; {Load emacs interface support if emacs option is given.}
3d2ada2f 3294;;;
9aca88c3 3295
645e38d9 3296(define (named-module-use! user usee)
89d06712 3297 (module-use! (resolve-module user) (resolve-interface usee)))
645e38d9 3298
9aca88c3 3299(define (load-emacs-interface)
fb1b76f4
TTN
3300 (and (provided? 'debug-extensions)
3301 (debug-enable 'backtrace))
645e38d9 3302 (named-module-use! '(guile-user) '(ice-9 emacs)))
9aca88c3
JB
3303
3304\f
0f2d19dd 3305
755457ec
MD
3306(define using-readline?
3307 (let ((using-readline? (make-fluid)))
3308 (make-procedure-with-setter
3309 (lambda () (fluid-ref using-readline?))
3310 (lambda (v) (fluid-set! using-readline? v)))))
3311
20edfbbd 3312(define (top-repl)
615bfe72
MV
3313 (let ((guile-user-module (resolve-module '(guile-user))))
3314
3315 ;; Load emacs interface support if emacs option is given.
454b82f4
MD
3316 (if (and (module-defined? guile-user-module 'use-emacs-interface)
3317 (module-ref guile-user-module 'use-emacs-interface))
615bfe72
MV
3318 (load-emacs-interface))
3319
3320 ;; Use some convenient modules (in reverse order)
bbf5a913 3321
9a18d8d4
KR
3322 (set-current-module guile-user-module)
3323 (process-use-modules
3324 (append
3325 '(((ice-9 r5rs))
3326 ((ice-9 session))
3327 ((ice-9 debug)))
3328 (if (provided? 'regex)
3329 '(((ice-9 regex)))
3330 '())
3331 (if (provided? 'threads)
3332 '(((ice-9 threads)))
3333 '())))
615bfe72 3334 ;; load debugger on demand
608860a5 3335 (module-autoload! guile-user-module '(ice-9 debugger) '(debug))
615bfe72 3336
9a18d8d4
KR
3337 ;; Note: SIGFPE, SIGSEGV and SIGBUS are actually "query-only" (see
3338 ;; scmsigs.c scm_sigaction_for_thread), so the handlers setup here have
3339 ;; no effect.
615bfe72 3340 (let ((old-handlers #f)
6a01fabf
AW
3341 (start-repl (module-ref (resolve-interface '(system repl repl))
3342 'start-repl))
615bfe72
MV
3343 (signals (if (provided? 'posix)
3344 `((,SIGINT . "User interrupt")
3345 (,SIGFPE . "Arithmetic error")
615bfe72
MV
3346 (,SIGSEGV
3347 . "Bad memory access (Segmentation violation)"))
3348 '())))
9a18d8d4
KR
3349 ;; no SIGBUS on mingw
3350 (if (defined? 'SIGBUS)
3351 (set! signals (acons SIGBUS "Bad memory access (bus error)"
3352 signals)))
615bfe72
MV
3353
3354 (dynamic-wind
3355
3356 ;; call at entry
3357 (lambda ()
3358 (let ((make-handler (lambda (msg)
3359 (lambda (sig)
3360 ;; Make a backup copy of the stack
3361 (fluid-set! before-signal-stack
3362 (fluid-ref the-last-stack))
bb00edfa 3363 (save-stack 2)
615bfe72
MV
3364 (scm-error 'signal
3365 #f
3366 msg
3367 #f
3368 (list sig))))))
3369 (set! old-handlers
3370 (map (lambda (sig-msg)
3371 (sigaction (car sig-msg)
3372 (make-handler (cdr sig-msg))))
3373 signals))))
bbf5a913 3374
615bfe72
MV
3375 ;; the protected thunk.
3376 (lambda ()
6a01fabf 3377 (let ((status (start-repl 'scheme)))
615bfe72
MV
3378 (run-hook exit-hook)
3379 status))
bbf5a913 3380
615bfe72
MV
3381 ;; call at exit.
3382 (lambda ()
3383 (map (lambda (sig-msg old-handler)
3384 (if (not (car old-handler))
3385 ;; restore original C handler.
3386 (sigaction (car sig-msg) #f)
3387 ;; restore Scheme handler, SIG_IGN or SIG_DFL.
3388 (sigaction (car sig-msg)
3389 (car old-handler)
3390 (cdr old-handler))))
3391 signals old-handlers))))))
0f2d19dd 3392
2055a1bc
MD
3393;;; This hook is run at the very end of an interactive session.
3394;;;
3e3cec45 3395(define exit-hook (make-hook))
2055a1bc 3396
4d31f0da 3397\f
3d2ada2f
DH
3398
3399;;; {Deprecated stuff}
3400;;;
3401
3402(begin-deprecated
3403 (define (feature? sym)
3404 (issue-deprecation-warning
3405 "`feature?' is deprecated. Use `provided?' instead.")
3406 (provided? sym)))
3407
3408(begin-deprecated
1e6ebf54 3409 (primitive-load-path "ice-9/deprecated"))
3d2ada2f
DH
3410
3411\f
3412
3413;;; Place the user in the guile-user module.
3414;;;
6eb396fe 3415
615bfe72 3416(define-module (guile-user))
6d36532c 3417
20edfbbd 3418;;; boot-9.scm ends here