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/cvs/microscheme/init.scm
Revision: 1.22
Committed: Tue Dec 1 04:57:49 2015 UTC (8 years, 6 months ago) by root
Branch: MAIN
Changes since 1.21: +47 -6 lines
Log Message:
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File Contents

# Content
1 ; Initialization file for TinySCHEME 1.41
2
3 (gc-verbose #t)
4
5 ;;;; Utility to ease macro creation
6 (define (macro-expand form)
7 ((eval (get-closure-code (eval (car form)))) form))
8
9 (define (macro-expand-all form)
10 (if (macro? form)
11 (macro-expand-all (macro-expand form))
12 form))
13
14 (define *compile-hook* macro-expand-all)
15
16
17 (macro (unless form)
18 `(if (not ,(cadr form)) (begin ,@(cddr form))))
19
20 (macro (when form)
21 `(if ,(cadr form) (begin ,@(cddr form))))
22
23 ; DEFINE-MACRO Contributed by Andy Gaynor
24 (macro (define-macro dform)
25 (if (symbol? (cadr dform))
26 `(macro ,@(cdr dform))
27 (let ((form (gensym)))
28 `(macro (,(caadr dform) ,form)
29 (apply (lambda ,(cdadr dform) ,@(cddr dform)) (cdr ,form))))))
30
31 ; Utilities for math. Notice that inexact->exact is primitive,
32 ; but exact->inexact is not.
33 (define exact? integer?)
34 (define exact-integer? integer?)
35 (define (inexact? x) (and (real? x) (not (integer? x))))
36 (define (exact->inexact n) (* n 1.0))
37 (define exact inexact->exact)
38 (define inexact exact->inexact)
39 (define (even? n) (= (remainder n 2) 0))
40 (define (odd? n) (not (= (remainder n 2) 0)))
41 (define (zero? n) (= n 0))
42 (define (positive? n) (> n 0))
43 (define (negative? n) (< n 0))
44 (define complex? number?)
45 (define rational? real?)
46 (define (abs n) (if (>= n 0) n (- n)))
47 (define (<> n1 n2) (not (= n1 n2)))
48 (define (square n) (* n n))
49 ;; missing: numerator denominator rationalize exact-integer-sqrt
50
51 ; min and max must return inexact if any arg is inexact
52 (define (max . lst)
53 (foldr (lambda (a b)
54 (if (> a b)
55 (if (exact? b) a (exact->inexact a))
56 (if (exact? a) b (exact->inexact b))))
57 (car lst) (cdr lst)))
58 (define (min . lst)
59 (foldr (lambda (a b)
60 (if (< a b)
61 (if (exact? b) a (exact->inexact a))
62 (if (exact? a) b (exact->inexact b))))
63 (car lst) (cdr lst)))
64
65 (define (succ x) (+ x 1))
66 (define (pred x) (- x 1))
67 (define gcd
68 (lambda a
69 (if (null? a)
70 0
71 (let ((aa (abs (car a)))
72 (bb (abs (cadr a))))
73 (if (= bb 0)
74 aa
75 (gcd bb (remainder aa bb)))))))
76 (define lcm
77 (lambda a
78 (if (null? a)
79 1
80 (let ((aa (abs (car a)))
81 (bb (abs (cadr a))))
82 (if (or (= aa 0) (= bb 0))
83 0
84 (abs (* (quotient aa (gcd aa bb)) bb)))))))
85
86
87 (define (string . charlist)
88 (list->string charlist))
89
90 (define (list->string charlist)
91 (let* ((len (length charlist))
92 (newstr (make-string len))
93 (fill-string!
94 (lambda (str i len charlist)
95 (if (= i len)
96 str
97 (begin (string-set! str i (car charlist))
98 (fill-string! str (+ i 1) len (cdr charlist)))))))
99 (fill-string! newstr 0 len charlist)))
100
101 (define (string-fill! s e)
102 (let ((n (string-length s)))
103 (let loop ((i 0))
104 (if (= i n)
105 s
106 (begin (string-set! s i e) (loop (succ i)))))))
107
108 (define (string->list s)
109 (let loop ((n (pred (string-length s))) (l '()))
110 (if (= n -1)
111 l
112 (loop (pred n) (cons (string-ref s n) l)))))
113
114 ;TODO string-upcase
115 ;TODO string-downcase
116 ;TODO string-foldcase
117 ;TODO string-copy!
118 ;TODO string-fill!
119
120 (define substring string-copy)
121
122 (define (string->anyatom str pred)
123 (let* ((a (string->atom str)))
124 (if (pred a) a
125 (error "string->xxx: not a xxx" a))))
126
127 (define (string->number str . base)
128 (let ((n (string->atom str (if (null? base) 10 (car base)))))
129 (if (number? n) n #f)))
130
131 (define (anyatom->string n pred)
132 (if (pred n)
133 (atom->string n)
134 (error "xxx->string: not a xxx" n)))
135
136 (define (number->string n . base)
137 (atom->string n (if (null? base) 10 (car base))))
138
139
140 (define (char-cmp? cmp a b)
141 (cmp (char->integer a) (char->integer b)))
142 (define (char-ci-cmp? cmp a b)
143 (cmp (char->integer (char-downcase a)) (char->integer (char-downcase b))))
144
145 (define (char=? a b) (char-cmp? = a b))
146 (define (char<? a b) (char-cmp? < a b))
147 (define (char>? a b) (char-cmp? > a b))
148 (define (char<=? a b) (char-cmp? <= a b))
149 (define (char>=? a b) (char-cmp? >= a b))
150
151 (define (char-ci=? a b) (char-ci-cmp? = a b))
152 (define (char-ci<? a b) (char-ci-cmp? < a b))
153 (define (char-ci>? a b) (char-ci-cmp? > a b))
154 (define (char-ci<=? a b) (char-ci-cmp? <= a b))
155 (define (char-ci>=? a b) (char-ci-cmp? >= a b))
156
157 (define (digit-value ch)
158 (if (and (char<=? #\0 ch) (char<=? ch #\9))
159 (- (char->integer ch) (char->integer #\0))
160 #f))
161
162 (define char-foldcase char-downcase)
163
164 ; Note the trick of returning (cmp x y)
165 (define (string-cmp? chcmp cmp a b)
166 (let ((na (string-length a)) (nb (string-length b)))
167 (let loop ((i 0))
168 (cond
169 ((= i na)
170 (if (= i nb) (cmp 0 0) (cmp 0 1)))
171 ((= i nb)
172 (cmp 1 0))
173 ((chcmp = (string-ref a i) (string-ref b i))
174 (loop (succ i)))
175 (else
176 (chcmp cmp (string-ref a i) (string-ref b i)))))))
177
178
179 (define (string=? a b) (string-cmp? char-cmp? = a b))
180 (define (string<? a b) (string-cmp? char-cmp? < a b))
181 (define (string>? a b) (string-cmp? char-cmp? > a b))
182 (define (string<=? a b) (string-cmp? char-cmp? <= a b))
183 (define (string>=? a b) (string-cmp? char-cmp? >= a b))
184
185 (define (string-ci=? a b) (string-cmp? char-ci-cmp? = a b))
186 (define (string-ci<? a b) (string-cmp? char-ci-cmp? < a b))
187 (define (string-ci>? a b) (string-cmp? char-ci-cmp? > a b))
188 (define (string-ci<=? a b) (string-cmp? char-ci-cmp? <= a b))
189 (define (string-ci>=? a b) (string-cmp? char-ci-cmp? >= a b))
190
191 (define (list . x) x)
192
193 (define (foldr f x lst)
194 (if (null? lst)
195 x
196 (foldr f (f x (car lst)) (cdr lst))))
197
198 (define (unzip1-with-cdr . lists)
199 (unzip1-with-cdr-iterative lists '() '()))
200
201 (define (unzip1-with-cdr-iterative lists cars cdrs)
202 (if (null? lists)
203 (cons cars cdrs)
204 (let ((car1 (caar lists))
205 (cdr1 (cdar lists)))
206 (unzip1-with-cdr-iterative
207 (cdr lists)
208 (append cars (list car1))
209 (append cdrs (list cdr1))))))
210
211 (define (map proc . lists)
212 (if (null? lists)
213 (apply proc)
214 (if (null? (car lists))
215 '()
216 (let* ((unz (apply unzip1-with-cdr lists))
217 (cars (car unz))
218 (cdrs (cdr unz)))
219 (cons (apply proc cars) (apply map (cons proc cdrs)))))))
220
221 (define (for-each proc . lists)
222 (if (null? lists)
223 (apply proc)
224 (if (null? (car lists))
225 #t
226 (let* ((unz (apply unzip1-with-cdr lists))
227 (cars (car unz))
228 (cdrs (cdr unz)))
229 (apply proc cars) (apply map (cons proc cdrs))))))
230
231 (define (make-list k . fill) (vector->list (vector k (car fill))))
232
233 (define (list-copy l) (vector->list (list->vector l)))
234
235 (define (list-tail x k)
236 (if (zero? k)
237 x
238 (list-tail (cdr x) (- k 1))))
239
240 (define (list-ref x k)
241 (car (list-tail x k)))
242
243 (define (last-pair x)
244 (if (pair? (cdr x))
245 (last-pair (cdr x))
246 x))
247
248 (define (head stream) (car stream))
249
250 (define (tail stream) (force (cdr stream)))
251
252 (define (vector-equal? x y)
253 (and (vector? x) (vector? y) (= (vector-length x) (vector-length y))
254 (let ((n (vector-length x)))
255 (let loop ((i 0))
256 (if (= i n)
257 #t
258 (and (equal? (vector-ref x i) (vector-ref y i))
259 (loop (succ i))))))))
260
261 (define (list->vector x)
262 (apply vector x))
263
264 ;TODO vector-fill! v e start end
265 (define (vector-fill! v e)
266 (let ((n (vector-length v)))
267 (let loop ((i 0))
268 (if (= i n)
269 v
270 (begin (vector-set! v i e) (loop (succ i)))))))
271
272 (define (vector->list v)
273 (let loop ((n (pred (vector-length v))) (l '()))
274 (if (= n -1)
275 l
276 (loop (pred n) (cons (vector-ref v n) l)))))
277
278 ;TODO vector->string vector start end
279
280 (define (string->vector . args)
281 (list->vector (string->list (apply string-copy args))))
282
283 ;TODO vector-copy v s e
284 ;TODO vector-copy! to at v s e
285
286 (define (vector-append hd . tl)
287 (if (null? tl)
288 hd
289 (list->vector (append (hd (vector->list (vector-append tl)))))))
290
291 ;; The following quasiquote macro is due to Eric S. Tiedemann.
292 ;; Copyright 1988 by Eric S. Tiedemann; all rights reserved.
293 ;;
294 ;; Subsequently modified to handle vectors: D. Souflis
295
296 (macro
297 quasiquote
298 (lambda (l)
299 (define (mcons f l r)
300 (if (and (pair? r)
301 (eq? (car r) 'quote)
302 (eq? (car (cdr r)) (cdr f))
303 (pair? l)
304 (eq? (car l) 'quote)
305 (eq? (car (cdr l)) (car f)))
306 (if (or (procedure? f) (number? f) (string? f))
307 f
308 (list 'quote f))
309 (if (eqv? l vector)
310 (apply l (eval r))
311 (list 'cons l r)
312 )))
313 (define (mappend f l r)
314 (if (or (null? (cdr f))
315 (and (pair? r)
316 (eq? (car r) 'quote)
317 (eq? (car (cdr r)) '())))
318 l
319 (list 'append l r)))
320 (define (foo level form)
321 (cond ((not (pair? form))
322 (if (or (procedure? form) (number? form) (string? form))
323 form
324 (list 'quote form))
325 )
326 ((eq? 'quasiquote (car form))
327 (mcons form ''quasiquote (foo (+ level 1) (cdr form))))
328 (#t (if (zero? level)
329 (cond ((eq? (car form) 'unquote) (car (cdr form)))
330 ((eq? (car form) 'unquote-splicing)
331 (error "Unquote-splicing wasn't in a list:"
332 form))
333 ((and (pair? (car form))
334 (eq? (car (car form)) 'unquote-splicing))
335 (mappend form (car (cdr (car form)))
336 (foo level (cdr form))))
337 (#t (mcons form (foo level (car form))
338 (foo level (cdr form)))))
339 (cond ((eq? (car form) 'unquote)
340 (mcons form ''unquote (foo (- level 1)
341 (cdr form))))
342 ((eq? (car form) 'unquote-splicing)
343 (mcons form ''unquote-splicing
344 (foo (- level 1) (cdr form))))
345 (#t (mcons form (foo level (car form))
346 (foo level (cdr form)))))))))
347 (foo 0 (car (cdr l)))))
348
349 ;;;;;Helper for the dynamic-wind definition. By Tom Breton (Tehom)
350 (define (shared-tail x y)
351 (let ((len-x (length x))
352 (len-y (length y)))
353 (define (shared-tail-helper x y)
354 (if
355 (eq? x y)
356 x
357 (shared-tail-helper (cdr x) (cdr y))))
358
359 (cond
360 ((> len-x len-y)
361 (shared-tail-helper
362 (list-tail x (- len-x len-y))
363 y))
364 ((< len-x len-y)
365 (shared-tail-helper
366 x
367 (list-tail y (- len-y len-x))))
368 (#t (shared-tail-helper x y)))))
369
370 ;;;;;Dynamic-wind by Tom Breton (Tehom)
371
372 ;;Guarded because we must only eval this once, because doing so
373 ;;redefines call/cc in terms of old call/cc
374 (unless (defined? 'dynamic-wind)
375 (let
376 ;;These functions are defined in the context of a private list of
377 ;;pairs of before/after procs.
378 ( (*active-windings* '())
379 ;;We'll define some functions into the larger environment, so
380 ;;we need to know it.
381 (outer-env (current-environment)))
382
383 ;;Poor-man's structure operations
384 (define before-func car)
385 (define after-func cdr)
386 (define make-winding cons)
387
388 ;;Manage active windings
389 (define (activate-winding! new)
390 ((before-func new))
391 (set! *active-windings* (cons new *active-windings*)))
392 (define (deactivate-top-winding!)
393 (let ((old-top (car *active-windings*)))
394 ;;Remove it from the list first so it's not active during its
395 ;;own exit.
396 (set! *active-windings* (cdr *active-windings*))
397 ((after-func old-top))))
398
399 (define (set-active-windings! new-ws)
400 (unless (eq? new-ws *active-windings*)
401 (let ((shared (shared-tail new-ws *active-windings*)))
402
403 ;;Define the looping functions.
404 ;;Exit the old list. Do deeper ones last. Don't do
405 ;;any shared ones.
406 (define (pop-many)
407 (unless (eq? *active-windings* shared)
408 (deactivate-top-winding!)
409 (pop-many)))
410 ;;Enter the new list. Do deeper ones first so that the
411 ;;deeper windings will already be active. Don't do any
412 ;;shared ones.
413 (define (push-many new-ws)
414 (unless (eq? new-ws shared)
415 (push-many (cdr new-ws))
416 (activate-winding! (car new-ws))))
417
418 ;;Do it.
419 (pop-many)
420 (push-many new-ws))))
421
422 ;;The definitions themselves.
423 (eval
424 `(define call-with-current-continuation
425 ;;It internally uses the built-in call/cc, so capture it.
426 ,(let ((old-c/cc call-with-current-continuation))
427 (lambda (func)
428 ;;Use old call/cc to get the continuation.
429 (old-c/cc
430 (lambda (continuation)
431 ;;Call func with not the continuation itself
432 ;;but a procedure that adjusts the active
433 ;;windings to what they were when we made
434 ;;this, and only then calls the
435 ;;continuation.
436 (func
437 (let ((current-ws *active-windings*))
438 (lambda (x)
439 (set-active-windings! current-ws)
440 (continuation x)))))))))
441 outer-env)
442 ;;We can't just say "define (dynamic-wind before thunk after)"
443 ;;because the lambda it's defined to lives in this environment,
444 ;;not in the global environment.
445 (eval
446 `(define dynamic-wind
447 ,(lambda (before thunk after)
448 ;;Make a new winding
449 (activate-winding! (make-winding before after))
450 (let ((result (thunk)))
451 ;;Get rid of the new winding.
452 (deactivate-top-winding!)
453 ;;The return value is that of thunk.
454 result)))
455 outer-env)))
456
457 (define call/cc call-with-current-continuation)
458
459 (define (symbol=? hd . tl)
460 (if (null? tl)
461 #t
462 (and (symbol? hd) (eq? hd (car tl)) (symbol=? (cdr tl)))))
463
464 ;;;;; atom? and equal? written by a.k
465
466 ;;;; atom?
467 (define (atom? x)
468 (not (pair? x)))
469
470 ;;;; equal?
471 (define (equal? x y)
472 (cond
473 ((pair? x)
474 (and (pair? y)
475 (equal? (car x) (car y))
476 (equal? (cdr x) (cdr y))))
477 ((vector? x)
478 (and (vector? y) (vector-equal? x y)))
479 ((string? x)
480 (and (string? y) (string=? x y)))
481 (else (eqv? x y))))
482
483 ;;;; (do ((var init inc) ...) (endtest result ...) body ...)
484 ;;
485 (macro do
486 (lambda (do-macro)
487 (apply (lambda (do vars endtest . body)
488 (let ((do-loop (gensym)))
489 `(letrec ((,do-loop
490 (lambda ,(map (lambda (x)
491 (if (pair? x) (car x) x))
492 `,vars)
493 (if ,(car endtest)
494 (begin ,@(cdr endtest))
495 (begin
496 ,@body
497 (,do-loop
498 ,@(map (lambda (x)
499 (cond
500 ((not (pair? x)) x)
501 ((< (length x) 3) (car x))
502 (else (car (cdr (cdr x))))))
503 `,vars)))))))
504 (,do-loop
505 ,@(map (lambda (x)
506 (if (and (pair? x) (cdr x))
507 (car (cdr x))
508 '()))
509 `,vars)))))
510 do-macro)))
511
512 ;;;; generic-member
513 (define (generic-member cmp obj lst)
514 (cond
515 ((null? lst) #f)
516 ((cmp obj (car lst)) lst)
517 (else (generic-member cmp obj (cdr lst)))))
518
519 (define (memq obj lst)
520 (generic-member eq? obj lst))
521 (define (memv obj lst)
522 (generic-member eqv? obj lst))
523 (define (member obj lst)
524 (generic-member equal? obj lst))
525
526 ;;;; generic-assoc
527 (define (generic-assoc cmp obj alst)
528 (cond
529 ((null? alst) #f)
530 ((cmp obj (caar alst)) (car alst))
531 (else (generic-assoc cmp obj (cdr alst)))))
532
533 (define (assq obj alst)
534 (generic-assoc eq? obj alst))
535 (define (assv obj alst)
536 (generic-assoc eqv? obj alst))
537 (define (assoc obj alst)
538 (generic-assoc equal? obj alst))
539
540 (define (acons x y z) (cons (cons x y) z))
541
542 ;;;; Handy for imperative programs
543 ;;;; Used as: (define-with-return (foo x y) .... (return z) ...)
544 (macro (define-with-return form)
545 `(define ,(cadr form)
546 (call/cc (lambda (return) ,@(cddr form)))))
547
548 ;;;; Simple exception handling
549 ;
550 ; Exceptions are caught as follows:
551 ;
552 ; (catch (do-something to-recover and-return meaningful-value)
553 ; (if-something goes-wrong)
554 ; (with-these calls))
555 ;
556 ; "Catch" establishes a scope spanning multiple call-frames
557 ; until another "catch" is encountered.
558 ;
559 ; Exceptions are thrown with:
560 ;
561 ; (throw "message")
562 ;
563 ; If used outside a (catch ...), reverts to (error "message)
564
565 (define *handlers* (list))
566
567 (define (push-handler proc)
568 (set! *handlers* (cons proc *handlers*)))
569
570 (define (pop-handler)
571 (let ((h (car *handlers*)))
572 (set! *handlers* (cdr *handlers*))
573 h))
574
575 (define (more-handlers?)
576 (pair? *handlers*))
577
578 (define (throw . x)
579 (if (more-handlers?)
580 (apply (pop-handler))
581 (apply error x)))
582
583 ; catch handler thunk
584 (macro (catch form)
585 (let ((label (gensym)))
586 `(call/cc (lambda (exit)
587 (push-handler (lambda () (exit ,(cadr form))))
588 (let ((,label (begin ,@(cddr form))))
589 (pop-handler)
590 ,label)))))
591
592 (define *error-hook* throw)
593
594 ; same as above, r7rs
595 (define (with-exception-handler handler thunk)
596 (catch (handler) (thunk)))
597
598 (define (raise-continuable x)
599 (if (more-handlers?)
600 ((pop-handler) x)
601 (error x)))
602
603 (define (raise x)
604 (raise-continuable x)
605 (error "raise: exception handler returned"))
606
607 (with-exception-handler
608 (lambda () (display (list "xerror")))
609 (lambda () (begin (display ("aaa") (raise 5)))))
610
611 ;TODO: a lot more is missing, and it doesn't work
612
613 ;;;;; Definition of MAKE-ENVIRONMENT, to be used with two-argument EVAL
614
615 (macro (make-environment form)
616 `(apply (lambda ()
617 ,@(cdr form)
618 (current-environment))))
619
620 (define-macro (eval-polymorphic x . envl)
621 (display envl)
622 (let* ((env (if (null? envl) (current-environment) (eval (car envl))))
623 (xval (eval x env)))
624 (if (closure? xval)
625 (make-closure (get-closure-code xval) env)
626 xval)))
627
628 ; Redefine this if you install another package infrastructure
629 ; Also redefine 'package'
630 (define *colon-hook* eval)
631
632 ;;;;; I/O
633
634 (define (input-output-port? p)
635 (and (input-port? p) (output-port? p)))
636
637 (define (close-port p)
638 (cond
639 ((input-output-port? p) (close-input-port (close-output-port p)))
640 ((input-port? p) (close-input-port p))
641 ((output-port? p) (close-output-port p))
642 (else (throw "Not a port" p))))
643
644 (define (call-with-input-file s p)
645 (let ((inport (open-input-file s)))
646 (if (eq? inport #f)
647 #f
648 (let ((res (p inport)))
649 (close-input-port inport)
650 res))))
651
652 (define (call-with-output-file s p)
653 (let ((outport (open-output-file s)))
654 (if (eq? outport #f)
655 #f
656 (let ((res (p outport)))
657 (close-output-port outport)
658 res))))
659
660 (define (with-input-from-file s p)
661 (let ((inport (open-input-file s)))
662 (if (eq? inport #f)
663 #f
664 (let ((prev-inport (current-input-port)))
665 (set-input-port inport)
666 (let ((res (p)))
667 (close-input-port inport)
668 (set-input-port prev-inport)
669 res)))))
670
671 (define (with-output-to-file s p)
672 (let ((outport (open-output-file s)))
673 (if (eq? outport #f)
674 #f
675 (let ((prev-outport (current-output-port)))
676 (set-output-port outport)
677 (let ((res (p)))
678 (close-output-port outport)
679 (set-output-port prev-outport)
680 res)))))
681
682 (define (with-input-output-from-to-files si so p)
683 (let ((inport (open-input-file si))
684 (outport (open-input-file so)))
685 (if (not (and inport outport))
686 (begin
687 (close-input-port inport)
688 (close-output-port outport)
689 #f)
690 (let ((prev-inport (current-input-port))
691 (prev-outport (current-output-port)))
692 (set-input-port inport)
693 (set-output-port outport)
694 (let ((res (p)))
695 (close-input-port inport)
696 (close-output-port outport)
697 (set-input-port prev-inport)
698 (set-output-port prev-outport)
699 res)))))
700
701 ; Random number generator (maximum cycle)
702 (define *seed* 1)
703 (define (random-next)
704 (let* ((a 16807) (m 2147483647) (q (quotient m a)) (r (modulo m a)))
705 (set! *seed*
706 (- (* a (- *seed*
707 (* (quotient *seed* q) q)))
708 (* (quotient *seed* q) r)))
709 (if (< *seed* 0) (set! *seed* (+ *seed* m)))
710 *seed*))
711
712 ;; SRFI-0
713 ;; COND-EXPAND
714 ;; Implemented as a macro
715 (define *features* '(srfi-0))
716
717 (define-macro (cond-expand . cond-action-list)
718 (cond-expand-runtime cond-action-list))
719
720 (define (cond-expand-runtime cond-action-list)
721 (if (null? cond-action-list)
722 #t
723 (if (cond-eval (caar cond-action-list))
724 `(begin ,@(cdar cond-action-list))
725 (cond-expand-runtime (cdr cond-action-list)))))
726
727 (define (cond-eval-and cond-list)
728 (foldr (lambda (x y) (and (cond-eval x) (cond-eval y))) #t cond-list))
729
730 (define (cond-eval-or cond-list)
731 (foldr (lambda (x y) (or (cond-eval x) (cond-eval y))) #f cond-list))
732
733 (define (cond-eval condition)
734 (cond
735 ((symbol? condition)
736 (if (member condition *features*) #t #f))
737 ((eq? condition #t) #t)
738 ((eq? condition #f) #f)
739 (else (case (car condition)
740 ((and) (cond-eval-and (cdr condition)))
741 ((or) (cond-eval-or (cdr condition)))
742 ((not) (if (not (null? (cddr condition)))
743 (error "cond-expand : 'not' takes 1 argument")
744 (not (cond-eval (cadr condition)))))
745 (else (error "cond-expand : unknown operator" (car condition)))))))
746
747 ; compatibility functions added by schmorp@schmorp.de
748 (macro (defmacro dform)
749 (let ((name (cadr dform)) (formals (caddr dform)) (body (cdddr dform)))
750 `(define-macro (,name . ,formals) ,@body)))
751
752 ;; simple syntax-rules
753
754 ;; values/call-with-values
755 (load "simple-syntax-rules/values.scm")
756 ;; (hash-)table
757 ;(load "simple-syntax-rules/table.scm")
758 ;; "the real stuff"
759 ;(load "simple-syntax-rules/usual.scm")
760 ;(load "simple-syntax-rules/rules.scm")
761 ;(load "simple-syntax-rules/memo.scm")
762 ;(load "simple-syntax-rules/syntax.scm")
763 ;(load "simple-syntax-rules/ev.scm")
764 ;(load "simple-syntax-rules/ex.scm")
765 ;(macro (define-syntax form) (expand form top-level-env))
766
767 ;(load "macros/expand.scm")
768 ;(load "macros/misc.scm")
769 ;(load "macros/prefs.scm")
770 ;(load "macros/syntaxenv.scm")
771 ;(load "macros/syntaxrules.scm")
772 ;(load "macros/usual.scm")
773
774 ;; r7rs
775 ; sring-map, vector-map, string-for-each, vector-for-each
776 ; bytevectors
777
778 ;; srfi-1
779
780 (define (check-arg pred val caller)
781 (let lp ((val val))
782 (if (pred val) val (lp (error "Bad argument" val pred caller)))))
783
784 ; Some macros and functions that the SRFI 1 reference implementation
785 ; requires that it does not define and are not part of R5RS.
786
787 (define-macro let-optionals
788 (lambda (input names . code)
789 (let ((input-left (gensym)))
790 `(let ((,input-left ,input))
791 ,(let next ((names names))
792 (if (null? names)
793 `(begin ,@code)
794 `(let ((,input-left (if (null? ,input-left)
795 '()
796 (cdr ,input-left)))
797 (,(caar names) (if (null? ,input-left)
798 ,(cadar names)
799 (car ,input-left))))
800 ,(next (cdr names)))))))))
801
802 (define-macro receive
803 (lambda (names values . code)
804 `(call-with-values (lambda () ,values)
805 (lambda ,names ,@code))))
806
807
808 (define (:optional data default)
809 (if (null? data)
810 default
811 (car data)))
812
813 (load "srfi-1.scm")
814
815 ;(load "srfi-55.scm")
816
817 ;(register-extension '(srfi 1) (lamba () (load "srfi-1.scm")))
818 ;(register-extension '(srfi 23) (lamba () ())) ; error builtin
819 ;(register-extension '(srfi 55) (lamba () ())) ; always available
820
821 ;; end of init
822
823 ;(load "test.scm")
824
825 (define $sc-put-cte #f)
826 (define sc-expand #f)
827 (define $make-environment #f)
828 ;(define environment? #f)
829 ;(define interaction-environment #f)
830 (define identifier? #f)
831 (define syntax->list #f)
832 (define syntax->vector #f)
833 (define syntax-object->datum #f)
834 (define datum->syntax-object #f)
835 (define generate-temporaries #f)
836 (define free-identifier=? #f)
837 (define bound-identifier=? #f)
838 (define literal-identifier=? #f)
839 (define syntax-error #f)
840 (define $syntax-dispatch #f)
841
842 (define void (lambda () (if #f #f)))
843
844 (define andmap
845 (lambda (f first . rest)
846 (or (null? first)
847 (if (null? rest)
848 (let andmap ((first first))
849 (let ((x (car first)) (first (cdr first)))
850 (if (null? first)
851 (f x)
852 (and (f x) (andmap first)))))
853 (let andmap ((first first) (rest rest))
854 (let ((x (car first))
855 (xr (map car rest))
856 (first (cdr first))
857 (rest (map cdr rest)))
858 (if (null? first)
859 (apply f (cons x xr))
860 (and (apply f (cons x xr)) (andmap first rest)))))))))
861
862 (define ormap
863 (lambda (proc list1)
864 (and (not (null? list1))
865 (or (proc (car list1)) (ormap proc (cdr list1))))))
866
867 (define *properties* '())
868
869 (define (putprop sym k v)
870 (set! *properties* (acons (list sym k) v *properties*)))
871
872 (define (remprop sym k)
873 (putprop sym k #f))
874
875 (define (getprop sym k)
876 (assoc (list sym k) *properties*))
877
878 (load "psyntax.pp")
879
880 ;(define *compile-hook* sc-expand)
881
882 (load "test.scm")
883
884 (gc-verbose #f)