tweaks to -Wformat's gettext detection
[bpt/guile.git] / module / ice-9 / psyntax.scm
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1;;;; -*-scheme-*-
2;;;;
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3;;;; Copyright (C) 2001, 2003, 2006, 2009, 2010, 2011,
4;;;; 2012 Free Software Foundation, Inc.
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
53befeb7 9;;;; version 3 of the License, or (at your option) any later version.
86b96c16 10;;;;
73be1d9e 11;;;; This library is distributed in the hope that it will be useful,
86b96c16 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.
86b96c16 15;;;;
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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
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19;;;;
20\f
21
a63812a2 22;;; Portable implementation of syntax-case
565c8e30 23;;; Originally extracted from Chez Scheme Version 5.9f
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24;;; Authors: R. Kent Dybvig, Oscar Waddell, Bob Hieb, Carl Bruggeman
25
26;;; Copyright (c) 1992-1997 Cadence Research Systems
27;;; Permission to copy this software, in whole or in part, to use this
28;;; software for any lawful purpose, and to redistribute this software
29;;; is granted subject to the restriction that all copies made of this
30;;; software must include this copyright notice in full. This software
31;;; is provided AS IS, with NO WARRANTY, EITHER EXPRESS OR IMPLIED,
32;;; INCLUDING BUT NOT LIMITED TO IMPLIED WARRANTIES OF MERCHANTABILITY
33;;; OR FITNESS FOR ANY PARTICULAR PURPOSE. IN NO EVENT SHALL THE
34;;; AUTHORS BE LIABLE FOR CONSEQUENTIAL OR INCIDENTAL DAMAGES OF ANY
35;;; NATURE WHATSOEVER.
36
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37;;; Modified by Mikael Djurfeldt <djurfeldt@nada.kth.se> according
38;;; to the ChangeLog distributed in the same directory as this file:
39;;; 1997-08-19, 1997-09-03, 1997-09-10, 2000-08-13, 2000-08-24,
40;;; 2000-09-12, 2001-03-08
41
42;;; Modified by Andy Wingo <wingo@pobox.com> according to the Git
43;;; revision control logs corresponding to this file: 2009, 2010.
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44
45
8a73a6d2 46;;; This file defines the syntax-case expander, macroexpand, and a set
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47;;; of associated syntactic forms and procedures. Of these, the
48;;; following are documented in The Scheme Programming Language,
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49;;; Fourth Edition (R. Kent Dybvig, MIT Press, 2009), and in the
50;;; R6RS:
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51;;;
52;;; bound-identifier=?
22225fc1 53;;; datum->syntax
a63812a2 54;;; define-syntax
449bf60b 55;;; syntax-parameterize
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56;;; free-identifier=?
57;;; generate-temporaries
58;;; identifier?
59;;; identifier-syntax
60;;; let-syntax
61;;; letrec-syntax
62;;; syntax
63;;; syntax-case
22225fc1 64;;; syntax->datum
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65;;; syntax-rules
66;;; with-syntax
67;;;
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68;;; Additionally, the expander provides definitions for a number of core
69;;; Scheme syntactic bindings, such as `let', `lambda', and the like.
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70
71;;; The remaining exports are listed below:
72;;;
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73;;; (macroexpand datum)
74;;; if datum represents a valid expression, macroexpand returns an
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75;;; expanded version of datum in a core language that includes no
76;;; syntactic abstractions. The core language includes begin,
77;;; define, if, lambda, letrec, quote, and set!.
78;;; (eval-when situations expr ...)
79;;; conditionally evaluates expr ... at compile-time or run-time
80;;; depending upon situations (see the Chez Scheme System Manual,
81;;; Revision 3, for a complete description)
e4721dde 82;;; (syntax-violation who message form [subform])
a63812a2 83;;; used to report errors found during expansion
5f1a2fb1 84;;; ($sc-dispatch e p)
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85;;; used by expanded code to handle syntax-case matching
86
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87;;; This file is shipped along with an expanded version of itself,
88;;; psyntax-pp.scm, which is loaded when psyntax.scm has not yet been
89;;; compiled. In this way, psyntax bootstraps off of an expanded
90;;; version of itself.
91
92;;; This implementation of the expander sometimes uses syntactic
93;;; abstractions when procedural abstractions would suffice. For
94;;; example, we define top-wrap and top-marked? as
a63812a2 95;;;
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96;;; (define-syntax top-wrap (identifier-syntax '((top))))
97;;; (define-syntax top-marked?
98;;; (syntax-rules ()
99;;; ((_ w) (memq 'top (wrap-marks w)))))
565c8e30 100;;;
a63812a2 101;;; rather than
565c8e30 102;;;
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103;;; (define top-wrap '((top)))
104;;; (define top-marked?
105;;; (lambda (w) (memq 'top (wrap-marks w))))
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106;;;
107;;; On the other hand, we don't do this consistently; we define
108;;; make-wrap, wrap-marks, and wrap-subst simply as
109;;;
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110;;; (define make-wrap cons)
111;;; (define wrap-marks car)
112;;; (define wrap-subst cdr)
565c8e30 113;;;
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114;;; In Chez Scheme, the syntactic and procedural forms of these
115;;; abstractions are equivalent, since the optimizer consistently
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116;;; integrates constants and small procedures. This will be true of
117;;; Guile as well, once we implement a proper inliner.
a63812a2 118
a63812a2 119
565c8e30 120;;; Implementation notes:
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121
122;;; Objects with no standard print syntax, including objects containing
123;;; cycles and syntax object, are allowed in quoted data as long as they
22225fc1 124;;; are contained within a syntax form or produced by datum->syntax.
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125;;; Such objects are never copied.
126
127;;; All identifiers that don't have macro definitions and are not bound
565c8e30 128;;; lexically are assumed to be global variables.
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129
130;;; Top-level definitions of macro-introduced identifiers are allowed.
131;;; This may not be appropriate for implementations in which the
132;;; model is that bindings are created by definitions, as opposed to
133;;; one in which initial values are assigned by definitions.
134
a63812a2 135;;; Identifiers and syntax objects are implemented as vectors for
565c8e30 136;;; portability. As a result, it is possible to "forge" syntax objects.
a63812a2 137
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138;;; The implementation of generate-temporaries assumes that it is
139;;; possible to generate globally unique symbols (gensyms).
a63812a2 140
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141;;; The source location associated with incoming expressions is tracked
142;;; via the source-properties mechanism, a weak map from expression to
143;;; source information. At times the source is separated from the
144;;; expression; see the note below about "efficiency and confusion".
a96434cc 145
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146
147;;; Bootstrapping:
148
149;;; When changing syntax-object representations, it is necessary to support
150;;; both old and new syntax-object representations in id-var-name. It
151;;; should be sufficient to recognize old representations and treat
152;;; them as not lexically bound.
153
154
155
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156(eval-when (compile)
157 (set-current-module (resolve-module '(guile))))
158
a63812a2 159(let ()
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160 (define-syntax define-expansion-constructors
161 (lambda (x)
162 (syntax-case x ()
163 ((_)
164 (let lp ((n 0) (out '()))
165 (if (< n (vector-length %expanded-vtables))
166 (lp (1+ n)
167 (let* ((vtable (vector-ref %expanded-vtables n))
168 (stem (struct-ref vtable (+ vtable-offset-user 0)))
169 (fields (struct-ref vtable (+ vtable-offset-user 2)))
170 (sfields (map (lambda (f) (datum->syntax x f)) fields))
171 (ctor (datum->syntax x (symbol-append 'make- stem))))
172 (cons #`(define (#,ctor #,@sfields)
173 (make-struct (vector-ref %expanded-vtables #,n) 0
174 #,@sfields))
175 out)))
176 #`(begin #,@(reverse out))))))))
177
178 (define-syntax define-expansion-accessors
179 (lambda (x)
180 (syntax-case x ()
181 ((_ stem field ...)
182 (let lp ((n 0))
183 (let ((vtable (vector-ref %expanded-vtables n))
184 (stem (syntax->datum #'stem)))
185 (if (eq? (struct-ref vtable (+ vtable-offset-user 0)) stem)
186 #`(begin
187 (define (#,(datum->syntax x (symbol-append stem '?)) x)
188 (and (struct? x)
189 (eq? (struct-vtable x)
190 (vector-ref %expanded-vtables #,n))))
191 #,@(map
192 (lambda (f)
193 (let ((get (datum->syntax x (symbol-append stem '- f)))
194 (set (datum->syntax x (symbol-append 'set- stem '- f '!)))
195 (idx (list-index (struct-ref vtable
196 (+ vtable-offset-user 2))
197 f)))
198 #`(begin
199 (define (#,get x)
200 (struct-ref x #,idx))
201 (define (#,set x v)
202 (struct-set! x #,idx v)))))
203 (syntax->datum #'(field ...))))
204 (lp (1+ n)))))))))
205
206 (define-syntax define-structure
207 (lambda (x)
208 (define construct-name
209 (lambda (template-identifier . args)
210 (datum->syntax
211 template-identifier
212 (string->symbol
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213 (apply string-append
214 (map (lambda (x)
215 (if (string? x)
216 x
22225fc1 217 (symbol->string (syntax->datum x))))
a63812a2 218 args))))))
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219 (syntax-case x ()
220 ((_ (name id1 ...))
221 (and-map identifier? #'(name id1 ...))
222 (with-syntax
223 ((constructor (construct-name #'name "make-" #'name))
224 (predicate (construct-name #'name #'name "?"))
225 ((access ...)
226 (map (lambda (x) (construct-name x #'name "-" x))
227 #'(id1 ...)))
228 ((assign ...)
229 (map (lambda (x)
230 (construct-name x "set-" #'name "-" x "!"))
231 #'(id1 ...)))
232 (structure-length
233 (+ (length #'(id1 ...)) 1))
234 ((index ...)
235 (let f ((i 1) (ids #'(id1 ...)))
236 (if (null? ids)
237 '()
238 (cons i (f (+ i 1) (cdr ids)))))))
239 #'(begin
240 (define constructor
241 (lambda (id1 ...)
242 (vector 'name id1 ... )))
243 (define predicate
244 (lambda (x)
245 (and (vector? x)
246 (= (vector-length x) structure-length)
247 (eq? (vector-ref x 0) 'name))))
248 (define access
249 (lambda (x)
250 (vector-ref x index)))
251 ...
252 (define assign
253 (lambda (x update)
254 (vector-set! x index update)))
255 ...))))))
a63812a2 256
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257 (let ()
258 (define-expansion-constructors)
259 (define-expansion-accessors lambda meta)
260
261 ;; hooks to nonportable run-time helpers
262 (begin
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263 (define-syntax fx+ (identifier-syntax +))
264 (define-syntax fx- (identifier-syntax -))
265 (define-syntax fx= (identifier-syntax =))
266 (define-syntax fx< (identifier-syntax <))
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267
268 (define top-level-eval-hook
269 (lambda (x mod)
270 (primitive-eval x)))
271
272 (define local-eval-hook
273 (lambda (x mod)
274 (primitive-eval x)))
bdf7759c 275
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276 ;; Capture syntax-session-id before we shove it off into a module.
277 (define session-id
278 (let ((v (module-variable (current-module) 'syntax-session-id)))
279 (lambda ()
280 ((variable-ref v)))))
c3ae0ed4 281
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282 (define put-global-definition-hook
283 (lambda (symbol type val)
284 (module-define! (current-module)
285 symbol
286 (make-syntax-transformer symbol type val))))
e809758a 287
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288 (define get-global-definition-hook
289 (lambda (symbol module)
290 (if (and (not module) (current-module))
291 (warn "module system is booted, we should have a module" symbol))
292 (let ((v (module-variable (if module
293 (resolve-module (cdr module))
294 (current-module))
295 symbol)))
296 (and v (variable-bound? v)
297 (let ((val (variable-ref v)))
298 (and (macro? val) (macro-type val)
299 (cons (macro-type val)
300 (macro-binding val)))))))))
301
302
303 (define (decorate-source e s)
32fbc38f 304 (if (and s (supports-source-properties? e))
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305 (set-source-properties! e s))
306 e)
307
308 (define (maybe-name-value! name val)
309 (if (lambda? val)
310 (let ((meta (lambda-meta val)))
311 (if (not (assq 'name meta))
312 (set-lambda-meta! val (acons 'name name meta))))))
313
314 ;; output constructors
315 (define build-void
316 (lambda (source)
317 (make-void source)))
318
319 (define build-application
320 (lambda (source fun-exp arg-exps)
321 (make-application source fun-exp arg-exps)))
bdf7759c 322
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323 (define build-conditional
324 (lambda (source test-exp then-exp else-exp)
325 (make-conditional source test-exp then-exp else-exp)))
bdf7759c 326
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327 (define build-dynlet
328 (lambda (source fluids vals body)
329 (make-dynlet source fluids vals body)))
bdf7759c 330
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331 (define build-lexical-reference
332 (lambda (type source name var)
333 (make-lexical-ref source name var)))
bdf7759c 334
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335 (define build-lexical-assignment
336 (lambda (source name var exp)
337 (maybe-name-value! name exp)
338 (make-lexical-set source name var exp)))
bdf7759c 339
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340 (define (analyze-variable mod var modref-cont bare-cont)
341 (if (not mod)
342 (bare-cont var)
343 (let ((kind (car mod))
344 (mod (cdr mod)))
345 (case kind
346 ((public) (modref-cont mod var #t))
347 ((private) (if (not (equal? mod (module-name (current-module))))
348 (modref-cont mod var #f)
349 (bare-cont var)))
350 ((bare) (bare-cont var))
351 ((hygiene) (if (and (not (equal? mod (module-name (current-module))))
352 (module-variable (resolve-module mod) var))
353 (modref-cont mod var #f)
354 (bare-cont var)))
355 (else (syntax-violation #f "bad module kind" var mod))))))
356
357 (define build-global-reference
358 (lambda (source var mod)
359 (analyze-variable
360 mod var
361 (lambda (mod var public?)
362 (make-module-ref source mod var public?))
363 (lambda (var)
364 (make-toplevel-ref source var)))))
365
366 (define build-global-assignment
367 (lambda (source var exp mod)
368 (maybe-name-value! var exp)
369 (analyze-variable
370 mod var
371 (lambda (mod var public?)
372 (make-module-set source mod var public? exp))
373 (lambda (var)
374 (make-toplevel-set source var exp)))))
375
376 (define build-global-definition
377 (lambda (source var exp)
378 (maybe-name-value! var exp)
379 (make-toplevel-define source var exp)))
380
381 (define build-simple-lambda
382 (lambda (src req rest vars meta exp)
383 (make-lambda src
384 meta
385 ;; hah, a case in which kwargs would be nice.
386 (make-lambda-case
387 ;; src req opt rest kw inits vars body else
388 src req #f rest #f '() vars exp #f))))
389
390 (define build-case-lambda
391 (lambda (src meta body)
392 (make-lambda src meta body)))
393
394 (define build-lambda-case
395 ;; req := (name ...)
396 ;; opt := (name ...) | #f
397 ;; rest := name | #f
398 ;; kw := (allow-other-keys? (keyword name var) ...) | #f
399 ;; inits: (init ...)
400 ;; vars: (sym ...)
401 ;; vars map to named arguments in the following order:
402 ;; required, optional (positional), rest, keyword.
403 ;; the body of a lambda: anything, already expanded
404 ;; else: lambda-case | #f
405 (lambda (src req opt rest kw inits vars body else-case)
406 (make-lambda-case src req opt rest kw inits vars body else-case)))
407
408 (define build-primref
409 (lambda (src name)
410 (if (equal? (module-name (current-module)) '(guile))
411 (make-toplevel-ref src name)
412 (make-module-ref src '(guile) name #f))))
413
414 (define (build-data src exp)
415 (make-const src exp))
416
417 (define build-sequence
418 (lambda (src exps)
419 (if (null? (cdr exps))
420 (car exps)
421 (make-sequence src exps))))
422
423 (define build-let
424 (lambda (src ids vars val-exps body-exp)
425 (for-each maybe-name-value! ids val-exps)
426 (if (null? vars)
427 body-exp
428 (make-let src ids vars val-exps body-exp))))
429
430 (define build-named-let
431 (lambda (src ids vars val-exps body-exp)
432 (let ((f (car vars))
433 (f-name (car ids))
434 (vars (cdr vars))
435 (ids (cdr ids)))
436 (let ((proc (build-simple-lambda src ids #f vars '() body-exp)))
437 (maybe-name-value! f-name proc)
22cf27c8 438 (for-each maybe-name-value! ids val-exps)
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439 (make-letrec
440 src #f
441 (list f-name) (list f) (list proc)
442 (build-application src (build-lexical-reference 'fun src f-name f)
443 val-exps))))))
444
445 (define build-letrec
446 (lambda (src in-order? ids vars val-exps body-exp)
447 (if (null? vars)
448 body-exp
449 (begin
450 (for-each maybe-name-value! ids val-exps)
451 (make-letrec src in-order? ids vars val-exps body-exp)))))
452
453
454 ;; FIXME: use a faster gensym
1bbe0a63 455 (define-syntax-rule (build-lexical-var src id)
f9685f43 456 (gensym (string-append (symbol->string id) "-")))
bdf7759c 457
8fad25c2 458 (define-structure (syntax-object expression wrap module))
a63812a2 459
8fad25c2 460 (define-syntax no-source (identifier-syntax #f))
a63812a2 461
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462 (define source-annotation
463 (lambda (x)
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464 (let ((props (source-properties
465 (if (syntax-object? x)
466 (syntax-object-expression x)
467 x))))
468 (and (pair? props) props))))
a63812a2 469
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470 (define-syntax-rule (arg-check pred? e who)
471 (let ((x e))
472 (if (not (pred? x)) (syntax-violation who "invalid argument" x))))
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473
474 ;; compile-time environments
475
476 ;; wrap and environment comprise two level mapping.
477 ;; wrap : id --> label
478 ;; env : label --> <element>
479
480 ;; environments are represented in two parts: a lexical part and a global
481 ;; part. The lexical part is a simple list of associations from labels
482 ;; to bindings. The global part is implemented by
483 ;; {put,get}-global-definition-hook and associates symbols with
484 ;; bindings.
485
486 ;; global (assumed global variable) and displaced-lexical (see below)
487 ;; do not show up in any environment; instead, they are fabricated by
488 ;; lookup when it finds no other bindings.
489
490 ;; <environment> ::= ((<label> . <binding>)*)
491
492 ;; identifier bindings include a type and a value
493
494 ;; <binding> ::= (macro . <procedure>) macros
495 ;; (core . <procedure>) core forms
496 ;; (module-ref . <procedure>) @ or @@
497 ;; (begin) begin
498 ;; (define) define
499 ;; (define-syntax) define-syntax
286dc5e1 500 ;; (define-syntax-parameter) define-syntax-parameter
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501 ;; (local-syntax . rec?) let-syntax/letrec-syntax
502 ;; (eval-when) eval-when
4c2e13e5 503 ;; (syntax . (<var> . <level>)) pattern variables
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504 ;; (global) assumed global variable
505 ;; (lexical . <var>) lexical variables
506 ;; (displaced-lexical) displaced lexicals
507 ;; <level> ::= <nonnegative integer>
508 ;; <var> ::= variable returned by build-lexical-var
509
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510 ;; a macro is a user-defined syntactic-form. a core is a
511 ;; system-defined syntactic form. begin, define, define-syntax,
512 ;; define-syntax-parameter, and eval-when are treated specially
513 ;; since they are sensitive to whether the form is at top-level and
514 ;; (except for eval-when) can denote valid internal definitions.
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515
516 ;; a pattern variable is a variable introduced by syntax-case and can
517 ;; be referenced only within a syntax form.
518
519 ;; any identifier for which no top-level syntax definition or local
520 ;; binding of any kind has been seen is assumed to be a global
521 ;; variable.
522
523 ;; a lexical variable is a lambda- or letrec-bound variable.
524
525 ;; a displaced-lexical identifier is a lexical identifier removed from
526 ;; it's scope by the return of a syntax object containing the identifier.
527 ;; a displaced lexical can also appear when a letrec-syntax-bound
528 ;; keyword is referenced on the rhs of one of the letrec-syntax clauses.
529 ;; a displaced lexical should never occur with properly written macros.
530
531 (define-syntax make-binding
532 (syntax-rules (quote)
533 ((_ type value) (cons type value))
534 ((_ 'type) '(type))
535 ((_ type) (cons type '()))))
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536 (define-syntax-rule (binding-type x)
537 (car x))
538 (define-syntax-rule (binding-value x)
539 (cdr x))
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540
541 (define-syntax null-env (identifier-syntax '()))
542
543 (define extend-env
544 (lambda (labels bindings r)
545 (if (null? labels)
546 r
547 (extend-env (cdr labels) (cdr bindings)
548 (cons (cons (car labels) (car bindings)) r)))))
c3ae0ed4 549
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550 (define extend-var-env
551 ;; variant of extend-env that forms "lexical" binding
552 (lambda (labels vars r)
553 (if (null? labels)
554 r
555 (extend-var-env (cdr labels) (cdr vars)
556 (cons (cons (car labels) (make-binding 'lexical (car vars))) r)))))
557
558 ;; we use a "macros only" environment in expansion of local macro
559 ;; definitions so that their definitions can use local macros without
560 ;; attempting to use other lexical identifiers.
561 (define macros-only-env
562 (lambda (r)
563 (if (null? r)
564 '()
565 (let ((a (car r)))
566 (if (eq? (cadr a) 'macro)
567 (cons a (macros-only-env (cdr r)))
568 (macros-only-env (cdr r)))))))
569
570 (define lookup
571 ;; x may be a label or a symbol
572 ;; although symbols are usually global, we check the environment first
573 ;; anyway because a temporary binding may have been established by
574 ;; fluid-let-syntax
575 (lambda (x r mod)
576 (cond
577 ((assq x r) => cdr)
578 ((symbol? x)
579 (or (get-global-definition-hook x mod) (make-binding 'global)))
580 (else (make-binding 'displaced-lexical)))))
a63812a2 581
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582 (define global-extend
583 (lambda (type sym val)
584 (put-global-definition-hook sym type val)))
585
586
587 ;; Conceptually, identifiers are always syntax objects. Internally,
588 ;; however, the wrap is sometimes maintained separately (a source of
589 ;; efficiency and confusion), so that symbols are also considered
590 ;; identifiers by id?. Externally, they are always wrapped.
591
592 (define nonsymbol-id?
593 (lambda (x)
594 (and (syntax-object? x)
595 (symbol? (syntax-object-expression x)))))
596
597 (define id?
598 (lambda (x)
599 (cond
600 ((symbol? x) #t)
601 ((syntax-object? x) (symbol? (syntax-object-expression x)))
602 (else #f))))
603
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604 (define-syntax-rule (id-sym-name e)
605 (let ((x e))
606 (if (syntax-object? x)
607 (syntax-object-expression x)
608 x)))
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609
610 (define id-sym-name&marks
611 (lambda (x w)
612 (if (syntax-object? x)
613 (values
c3ae0ed4 614 (syntax-object-expression x)
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615 (join-marks (wrap-marks w) (wrap-marks (syntax-object-wrap x))))
616 (values x (wrap-marks w)))))
c3ae0ed4 617
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618 ;; syntax object wraps
619
620 ;; <wrap> ::= ((<mark> ...) . (<subst> ...))
621 ;; <subst> ::= <shift> | <subs>
622 ;; <subs> ::= #(<old name> <label> (<mark> ...))
623 ;; <shift> ::= positive fixnum
624
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625 (define-syntax make-wrap (identifier-syntax cons))
626 (define-syntax wrap-marks (identifier-syntax car))
627 (define-syntax wrap-subst (identifier-syntax cdr))
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628
629 (define-syntax subst-rename? (identifier-syntax vector?))
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630 (define-syntax-rule (rename-old x) (vector-ref x 0))
631 (define-syntax-rule (rename-new x) (vector-ref x 1))
632 (define-syntax-rule (rename-marks x) (vector-ref x 2))
633 (define-syntax-rule (make-rename old new marks)
634 (vector old new marks))
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635
636 ;; labels must be comparable with "eq?", have read-write invariance,
637 ;; and distinct from symbols.
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638 (define (gen-label)
639 (string-append "l-" (session-id) (symbol->string (gensym "-"))))
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640
641 (define gen-labels
642 (lambda (ls)
643 (if (null? ls)
644 '()
645 (cons (gen-label) (gen-labels (cdr ls))))))
646
647 (define-structure (ribcage symnames marks labels))
648
649 (define-syntax empty-wrap (identifier-syntax '(())))
650
651 (define-syntax top-wrap (identifier-syntax '((top))))
652
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653 (define-syntax-rule (top-marked? w)
654 (memq 'top (wrap-marks w)))
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655
656 ;; Marks must be comparable with "eq?" and distinct from pairs and
657 ;; the symbol top. We do not use integers so that marks will remain
658 ;; unique even across file compiles.
659
660 (define-syntax the-anti-mark (identifier-syntax #f))
661
662 (define anti-mark
663 (lambda (w)
664 (make-wrap (cons the-anti-mark (wrap-marks w))
665 (cons 'shift (wrap-subst w)))))
666
1bbe0a63 667 (define-syntax-rule (new-mark)
f9685f43 668 (gensym (string-append "m-" (session-id) "-")))
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669
670 ;; make-empty-ribcage and extend-ribcage maintain list-based ribcages for
671 ;; internal definitions, in which the ribcages are built incrementally
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672 (define-syntax-rule (make-empty-ribcage)
673 (make-ribcage '() '() '()))
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674
675 (define extend-ribcage!
676 ;; must receive ids with complete wraps
677 (lambda (ribcage id label)
678 (set-ribcage-symnames! ribcage
679 (cons (syntax-object-expression id)
680 (ribcage-symnames ribcage)))
681 (set-ribcage-marks! ribcage
682 (cons (wrap-marks (syntax-object-wrap id))
683 (ribcage-marks ribcage)))
684 (set-ribcage-labels! ribcage
685 (cons label (ribcage-labels ribcage)))))
686
687 ;; make-binding-wrap creates vector-based ribcages
688 (define make-binding-wrap
689 (lambda (ids labels w)
690 (if (null? ids)
691 w
c3ae0ed4 692 (make-wrap
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693 (wrap-marks w)
694 (cons
695 (let ((labelvec (list->vector labels)))
696 (let ((n (vector-length labelvec)))
697 (let ((symnamevec (make-vector n)) (marksvec (make-vector n)))
698 (let f ((ids ids) (i 0))
699 (if (not (null? ids))
700 (call-with-values
701 (lambda () (id-sym-name&marks (car ids) w))
702 (lambda (symname marks)
703 (vector-set! symnamevec i symname)
704 (vector-set! marksvec i marks)
705 (f (cdr ids) (fx+ i 1))))))
706 (make-ribcage symnamevec marksvec labelvec))))
707 (wrap-subst w))))))
708
709 (define smart-append
710 (lambda (m1 m2)
711 (if (null? m2)
712 m1
713 (append m1 m2))))
714
715 (define join-wraps
716 (lambda (w1 w2)
717 (let ((m1 (wrap-marks w1)) (s1 (wrap-subst w1)))
718 (if (null? m1)
719 (if (null? s1)
720 w2
721 (make-wrap
722 (wrap-marks w2)
723 (smart-append s1 (wrap-subst w2))))
724 (make-wrap
725 (smart-append m1 (wrap-marks w2))
726 (smart-append s1 (wrap-subst w2)))))))
727
728 (define join-marks
729 (lambda (m1 m2)
730 (smart-append m1 m2)))
731
732 (define same-marks?
733 (lambda (x y)
734 (or (eq? x y)
735 (and (not (null? x))
736 (not (null? y))
737 (eq? (car x) (car y))
738 (same-marks? (cdr x) (cdr y))))))
739
740 (define id-var-name
741 (lambda (id w)
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742 (define-syntax-rule (first e)
743 ;; Rely on Guile's multiple-values truncation.
744 e)
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745 (define search
746 (lambda (sym subst marks)
747 (if (null? subst)
748 (values #f marks)
749 (let ((fst (car subst)))
750 (if (eq? fst 'shift)
751 (search sym (cdr subst) (cdr marks))
752 (let ((symnames (ribcage-symnames fst)))
753 (if (vector? symnames)
754 (search-vector-rib sym subst marks symnames fst)
755 (search-list-rib sym subst marks symnames fst))))))))
756 (define search-list-rib
757 (lambda (sym subst marks symnames ribcage)
758 (let f ((symnames symnames) (i 0))
c3ae0ed4 759 (cond
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760 ((null? symnames) (search sym (cdr subst) marks))
761 ((and (eq? (car symnames) sym)
762 (same-marks? marks (list-ref (ribcage-marks ribcage) i)))
763 (values (list-ref (ribcage-labels ribcage) i) marks))
764 (else (f (cdr symnames) (fx+ i 1)))))))
765 (define search-vector-rib
766 (lambda (sym subst marks symnames ribcage)
767 (let ((n (vector-length symnames)))
768 (let f ((i 0))
769 (cond
770 ((fx= i n) (search sym (cdr subst) marks))
771 ((and (eq? (vector-ref symnames i) sym)
772 (same-marks? marks (vector-ref (ribcage-marks ribcage) i)))
773 (values (vector-ref (ribcage-labels ribcage) i) marks))
774 (else (f (fx+ i 1))))))))
775 (cond
776 ((symbol? id)
777 (or (first (search id (wrap-subst w) (wrap-marks w))) id))
778 ((syntax-object? id)
779 (let ((id (syntax-object-expression id))
780 (w1 (syntax-object-wrap id)))
781 (let ((marks (join-marks (wrap-marks w) (wrap-marks w1))))
782 (call-with-values (lambda () (search id (wrap-subst w) marks))
783 (lambda (new-id marks)
784 (or new-id
785 (first (search id (wrap-subst w1) marks))
786 id))))))
787 (else (syntax-violation 'id-var-name "invalid id" id)))))
788
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789 ;; A helper procedure for syntax-locally-bound-identifiers, which
790 ;; itself is a helper for transformer procedures.
791 ;; `locally-bound-identifiers' returns a list of all bindings
792 ;; visible to a syntax object with the given wrap. They are in
793 ;; order from outer to inner.
794 ;;
795 ;; The purpose of this procedure is to give a transformer procedure
796 ;; references on bound identifiers, that the transformer can then
797 ;; introduce some of them in its output. As such, the identifiers
798 ;; are anti-marked, so that rebuild-macro-output doesn't apply new
799 ;; marks to them.
800 ;;
801 (define locally-bound-identifiers
802 (lambda (w mod)
803 (define scan
804 (lambda (subst results)
805 (if (null? subst)
806 results
807 (let ((fst (car subst)))
808 (if (eq? fst 'shift)
809 (scan (cdr subst) results)
810 (let ((symnames (ribcage-symnames fst))
811 (marks (ribcage-marks fst)))
812 (if (vector? symnames)
813 (scan-vector-rib subst symnames marks results)
814 (scan-list-rib subst symnames marks results))))))))
815 (define scan-list-rib
816 (lambda (subst symnames marks results)
817 (let f ((symnames symnames) (marks marks) (results results))
818 (if (null? symnames)
819 (scan (cdr subst) results)
820 (f (cdr symnames) (cdr marks)
821 (cons (wrap (car symnames)
822 (anti-mark (make-wrap (car marks) subst))
823 mod)
824 results))))))
825 (define scan-vector-rib
826 (lambda (subst symnames marks results)
827 (let ((n (vector-length symnames)))
828 (let f ((i 0) (results results))
829 (if (fx= i n)
830 (scan (cdr subst) results)
831 (f (fx+ i 1)
832 (cons (wrap (vector-ref symnames i)
833 (anti-mark (make-wrap (vector-ref marks i) subst))
834 mod)
835 results)))))))
836 (scan (wrap-subst w) '())))
837
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838 ;; Returns three values: binding type, binding value, the module (for
839 ;; resolving toplevel vars).
840 (define (resolve-identifier id w r mod)
841 (define (resolve-global var mod)
842 (let ((b (or (get-global-definition-hook var mod)
843 (make-binding 'global))))
844 (if (eq? (binding-type b) 'global)
845 (values 'global var mod)
846 (values (binding-type b) (binding-value b) mod))))
847 (define (resolve-lexical label mod)
848 (let ((b (or (assq-ref r label)
849 (make-binding 'displaced-lexical))))
850 (values (binding-type b) (binding-value b) mod)))
851 (let ((n (id-var-name id w)))
852 (cond
853 ((symbol? n)
854 (resolve-global n (if (syntax-object? id)
855 (syntax-object-module id)
856 mod)))
857 ((string? n)
858 (resolve-lexical n (if (syntax-object? id)
859 (syntax-object-module id)
860 mod)))
861 (else
862 (error "unexpected id-var-name" id w n)))))
863
864 (define transformer-environment
865 (make-fluid
866 (lambda (k)
867 (error "called outside the dynamic extent of a syntax transformer"))))
868
869 (define (with-transformer-environment k)
870 ((fluid-ref transformer-environment) k))
871
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872 ;; free-id=? must be passed fully wrapped ids since (free-id=? x y)
873 ;; may be true even if (free-id=? (wrap x w) (wrap y w)) is not.
874
875 (define free-id=?
876 (lambda (i j)
877 (and (eq? (id-sym-name i) (id-sym-name j)) ; accelerator
878 (eq? (id-var-name i empty-wrap) (id-var-name j empty-wrap)))))
879
880 ;; bound-id=? may be passed unwrapped (or partially wrapped) ids as
881 ;; long as the missing portion of the wrap is common to both of the ids
882 ;; since (bound-id=? x y) iff (bound-id=? (wrap x w) (wrap y w))
883
884 (define bound-id=?
885 (lambda (i j)
886 (if (and (syntax-object? i) (syntax-object? j))
887 (and (eq? (syntax-object-expression i)
888 (syntax-object-expression j))
889 (same-marks? (wrap-marks (syntax-object-wrap i))
890 (wrap-marks (syntax-object-wrap j))))
891 (eq? i j))))
892
893 ;; "valid-bound-ids?" returns #t if it receives a list of distinct ids.
894 ;; valid-bound-ids? may be passed unwrapped (or partially wrapped) ids
895 ;; as long as the missing portion of the wrap is common to all of the
896 ;; ids.
897
898 (define valid-bound-ids?
899 (lambda (ids)
900 (and (let all-ids? ((ids ids))
901 (or (null? ids)
902 (and (id? (car ids))
903 (all-ids? (cdr ids)))))
904 (distinct-bound-ids? ids))))
905
906 ;; distinct-bound-ids? expects a list of ids and returns #t if there are
907 ;; no duplicates. It is quadratic on the length of the id list; long
908 ;; lists could be sorted to make it more efficient. distinct-bound-ids?
909 ;; may be passed unwrapped (or partially wrapped) ids as long as the
910 ;; missing portion of the wrap is common to all of the ids.
911
912 (define distinct-bound-ids?
913 (lambda (ids)
914 (let distinct? ((ids ids))
915 (or (null? ids)
916 (and (not (bound-id-member? (car ids) (cdr ids)))
917 (distinct? (cdr ids)))))))
918
919 (define bound-id-member?
920 (lambda (x list)
921 (and (not (null? list))
922 (or (bound-id=? x (car list))
923 (bound-id-member? x (cdr list))))))
924
925 ;; wrapping expressions and identifiers
926
927 (define wrap
928 (lambda (x w defmod)
929 (cond
930 ((and (null? (wrap-marks w)) (null? (wrap-subst w))) x)
931 ((syntax-object? x)
932 (make-syntax-object
933 (syntax-object-expression x)
934 (join-wraps w (syntax-object-wrap x))
935 (syntax-object-module x)))
936 ((null? x) x)
937 (else (make-syntax-object x w defmod)))))
938
939 (define source-wrap
940 (lambda (x w s defmod)
941 (wrap (decorate-source x s) w defmod)))
942
943 ;; expanding
944
78a47455 945 (define expand-sequence
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946 (lambda (body r w s mod)
947 (build-sequence s
948 (let dobody ((body body) (r r) (w w) (mod mod))
949 (if (null? body)
950 '()
78a47455 951 (let ((first (expand (car body) r w mod)))
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952 (cons first (dobody (cdr body) r w mod))))))))
953
4da326f2 954 ;; At top-level, we allow mixed definitions and expressions. Like
78a47455 955 ;; expand-body we expand in two passes.
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956 ;;
957 ;; First, from left to right, we expand just enough to know what
958 ;; expressions are definitions, syntax definitions, and splicing
959 ;; statements (`begin'). If we anything needs evaluating at
960 ;; expansion-time, it is expanded directly.
961 ;;
962 ;; Otherwise we collect expressions to expand, in thunks, and then
963 ;; expand them all at the end. This allows all syntax expanders
964 ;; visible in a toplevel sequence to be visible during the
965 ;; expansions of all normal definitions and expressions in the
966 ;; sequence.
967 ;;
78a47455 968 (define expand-top-sequence
8fad25c2 969 (lambda (body r w s m esew mod)
4c2e13e5 970 (define (scan body r w s m esew mod exps)
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971 (cond
972 ((null? body)
973 ;; in reversed order
974 exps)
975 (else
976 (call-with-values
977 (lambda ()
978 (call-with-values
979 (lambda ()
980 (let ((e (car body)))
981 (syntax-type e r w (or (source-annotation e) s) #f mod #f)))
40e92f09 982 (lambda (type value form e w s mod)
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983 (case type
984 ((begin-form)
985 (syntax-case e ()
986 ((_) exps)
987 ((_ e1 e2 ...)
988 (scan #'(e1 e2 ...) r w s m esew mod exps))))
989 ((local-syntax-form)
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990 (expand-local-syntax value e r w s mod
991 (lambda (body r w s mod)
992 (scan body r w s m esew mod exps))))
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993 ((eval-when-form)
994 (syntax-case e ()
995 ((_ (x ...) e1 e2 ...)
440ac793 996 (let ((when-list (parse-when-list e #'(x ...)))
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997 (body #'(e1 e2 ...)))
998 (cond
999 ((eq? m 'e)
1000 (if (memq 'eval when-list)
1001 (scan body r w s
1002 (if (memq 'expand when-list) 'c&e 'e)
1003 '(eval)
1004 mod exps)
1005 (begin
1006 (if (memq 'expand when-list)
1007 (top-level-eval-hook
78a47455 1008 (expand-top-sequence body r w s 'e '(eval) mod)
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1009 mod))
1010 (values exps))))
1011 ((memq 'load when-list)
1012 (if (or (memq 'compile when-list)
1013 (memq 'expand when-list)
1014 (and (eq? m 'c&e) (memq 'eval when-list)))
1015 (scan body r w s 'c&e '(compile load) mod exps)
1016 (if (memq m '(c c&e))
1017 (scan body r w s 'c '(load) mod exps)
1018 (values exps))))
1019 ((or (memq 'compile when-list)
1020 (memq 'expand when-list)
1021 (and (eq? m 'c&e) (memq 'eval when-list)))
1022 (top-level-eval-hook
78a47455 1023 (expand-top-sequence body r w s 'e '(eval) mod)
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1024 mod)
1025 (values exps))
1026 (else
1027 (values exps)))))))
286dc5e1 1028 ((define-syntax-form define-syntax-parameter-form)
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1029 (let ((n (id-var-name value w)) (r (macros-only-env r)))
1030 (case m
1031 ((c)
1032 (if (memq 'compile esew)
78a47455 1033 (let ((e (expand-install-global n (expand e r w mod))))
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1034 (top-level-eval-hook e mod)
1035 (if (memq 'load esew)
1036 (values (cons e exps))
1037 (values exps)))
1038 (if (memq 'load esew)
78a47455 1039 (values (cons (expand-install-global n (expand e r w mod))
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1040 exps))
1041 (values exps))))
1042 ((c&e)
78a47455 1043 (let ((e (expand-install-global n (expand e r w mod))))
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1044 (top-level-eval-hook e mod)
1045 (values (cons e exps))))
1046 (else
1047 (if (memq 'eval esew)
1048 (top-level-eval-hook
78a47455 1049 (expand-install-global n (expand e r w mod))
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1050 mod))
1051 (values exps)))))
1052 ((define-form)
1053 (let* ((n (id-var-name value w))
1054 ;; Lookup the name in the module of the define form.
1055 (type (binding-type (lookup n r mod))))
1056 (case type
1057 ((global core macro module-ref)
1058 ;; affect compile-time environment (once we have booted)
1059 (if (and (memq m '(c c&e))
1060 (not (module-local-variable (current-module) n))
1061 (current-module))
1062 (let ((old (module-variable (current-module) n)))
1063 ;; use value of the same-named imported variable, if
1064 ;; any
1065 (if (and (variable? old) (variable-bound? old))
1066 (module-define! (current-module) n (variable-ref old))
1067 (module-add! (current-module) n (make-undefined-variable)))))
1068 (values
1069 (cons
4da326f2 1070 (if (eq? m 'c&e)
78a47455 1071 (let ((x (build-global-definition s n (expand e r w mod))))
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1072 (top-level-eval-hook x mod)
1073 x)
1074 (lambda ()
78a47455 1075 (build-global-definition s n (expand e r w mod))))
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1076 exps)))
1077 ((displaced-lexical)
1078 (syntax-violation #f "identifier out of context"
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1079 (source-wrap form w s mod)
1080 (wrap value w mod)))
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1081 (else
1082 (syntax-violation #f "cannot define keyword at top level"
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1083 (source-wrap form w s mod)
1084 (wrap value w mod))))))
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1085 (else
1086 (values (cons
4da326f2 1087 (if (eq? m 'c&e)
40e92f09 1088 (let ((x (expand-expr type value form e r w s mod)))
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1089 (top-level-eval-hook x mod)
1090 x)
1091 (lambda ()
40e92f09 1092 (expand-expr type value form e r w s mod)))
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1093 exps)))))))
1094 (lambda (exps)
1095 (scan (cdr body) r w s m esew mod exps))))))
1096
1097 (call-with-values (lambda ()
1098 (scan body r w s m esew mod '()))
1099 (lambda (exps)
1100 (if (null? exps)
1101 (build-void s)
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1102 (build-sequence
1103 s
1104 (let lp ((in exps) (out '()))
1105 (if (null? in) out
1106 (let ((e (car in)))
1107 (lp (cdr in)
1108 (cons (if (procedure? e) (e) e) out)))))))))))
4c2e13e5 1109
78a47455 1110 (define expand-install-global
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1111 (lambda (name e)
1112 (build-global-definition
1113 no-source
1114 name
1115 (build-application
1116 no-source
1117 (build-primref no-source 'make-syntax-transformer)
1118 (list (build-data no-source name)
1119 (build-data no-source 'macro)
1120 e)))))
5f161164 1121
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1122 (define parse-when-list
1123 (lambda (e when-list)
8fad25c2 1124 ;; when-list is syntax'd version of list of situations
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1125 (let ((result (strip when-list empty-wrap)))
1126 (let lp ((l result))
1127 (if (null? l)
1128 result
1129 (if (memq (car l) '(compile load eval expand))
1130 (lp (cdr l))
1131 (syntax-violation 'eval-when "invalid situation" e
1132 (car l))))))))
8fad25c2 1133
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1134 ;; syntax-type returns seven values: type, value, form, e, w, s, and
1135 ;; mod. The first two are described in the table below.
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1136 ;;
1137 ;; type value explanation
1138 ;; -------------------------------------------------------------------
1139 ;; core procedure core singleton
1140 ;; core-form procedure core form
1141 ;; module-ref procedure @ or @@ singleton
1142 ;; lexical name lexical variable reference
1143 ;; global name global variable reference
1144 ;; begin none begin keyword
1145 ;; define none define keyword
1146 ;; define-syntax none define-syntax keyword
286dc5e1 1147 ;; define-syntax-parameter none define-syntax-parameter keyword
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1148 ;; local-syntax rec? letrec-syntax/let-syntax keyword
1149 ;; eval-when none eval-when keyword
1150 ;; syntax level pattern variable
1151 ;; displaced-lexical none displaced lexical identifier
1152 ;; lexical-call name call to lexical variable
1153 ;; global-call name call to global variable
1154 ;; call none any other call
1155 ;; begin-form none begin expression
1156 ;; define-form id variable definition
1157 ;; define-syntax-form id syntax definition
286dc5e1 1158 ;; define-syntax-parameter-form id syntax parameter definition
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1159 ;; local-syntax-form rec? syntax definition
1160 ;; eval-when-form none eval-when form
1161 ;; constant none self-evaluating datum
1162 ;; other none anything else
1163 ;;
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1164 ;; form is the entire form. For definition forms (define-form,
1165 ;; define-syntax-form, and define-syntax-parameter-form), e is the
1166 ;; rhs expression. For all others, e is the entire form. w is the
1167 ;; wrap for both form and e. s is the source for the entire form.
1168 ;; mod is the module for both form and e.
8fad25c2 1169 ;;
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1170 ;; syntax-type expands macros and unwraps as necessary to get to one
1171 ;; of the forms above. It also parses definition forms, although
1172 ;; perhaps this should be done by the consumer.
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1173
1174 (define syntax-type
1175 (lambda (e r w s rib mod for-car?)
1176 (cond
1177 ((symbol? e)
1178 (let* ((n (id-var-name e w))
1179 (b (lookup n r mod))
1180 (type (binding-type b)))
1181 (case type
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1182 ((lexical) (values type (binding-value b) e e w s mod))
1183 ((global) (values type n e e w s mod))
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1184 ((macro)
1185 (if for-car?
40e92f09 1186 (values type (binding-value b) e e w s mod)
78a47455 1187 (syntax-type (expand-macro (binding-value b) e r w s rib mod)
8fad25c2 1188 r empty-wrap s rib mod #f)))
40e92f09 1189 (else (values type (binding-value b) e e w s mod)))))
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1190 ((pair? e)
1191 (let ((first (car e)))
1192 (call-with-values
1193 (lambda () (syntax-type first r w s rib mod #t))
40e92f09 1194 (lambda (ftype fval fform fe fw fs fmod)
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1195 (case ftype
1196 ((lexical)
40e92f09 1197 (values 'lexical-call fval e e w s mod))
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1198 ((global)
1199 ;; If we got here via an (@@ ...) expansion, we need to
1200 ;; make sure the fmod information is propagated back
1201 ;; correctly -- hence this consing.
1202 (values 'global-call (make-syntax-object fval w fmod)
40e92f09 1203 e e w s mod))
8fad25c2 1204 ((macro)
78a47455 1205 (syntax-type (expand-macro fval e r w s rib mod)
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1206 r empty-wrap s rib mod for-car?))
1207 ((module-ref)
1208 (call-with-values (lambda () (fval e r w))
1209 (lambda (e r w s mod)
1210 (syntax-type e r w s rib mod for-car?))))
1211 ((core)
40e92f09 1212 (values 'core-form fval e e w s mod))
8fad25c2 1213 ((local-syntax)
40e92f09 1214 (values 'local-syntax-form fval e e w s mod))
8fad25c2 1215 ((begin)
40e92f09 1216 (values 'begin-form #f e e w s mod))
8fad25c2 1217 ((eval-when)
40e92f09 1218 (values 'eval-when-form #f e e w s mod))
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1219 ((define)
1220 (syntax-case e ()
1221 ((_ name val)
1222 (id? #'name)
40e92f09 1223 (values 'define-form #'name e #'val w s mod))
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1224 ((_ (name . args) e1 e2 ...)
1225 (and (id? #'name)
1226 (valid-bound-ids? (lambda-var-list #'args)))
1227 ;; need lambda here...
1228 (values 'define-form (wrap #'name w mod)
40e92f09 1229 (wrap e w mod)
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1230 (decorate-source
1231 (cons #'lambda (wrap #'(args e1 e2 ...) w mod))
1232 s)
1233 empty-wrap s mod))
1234 ((_ name)
1235 (id? #'name)
1236 (values 'define-form (wrap #'name w mod)
40e92f09 1237 (wrap e w mod)
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1238 #'(if #f #f)
1239 empty-wrap s mod))))
1240 ((define-syntax)
1241 (syntax-case e ()
1242 ((_ name val)
1243 (id? #'name)
40e92f09 1244 (values 'define-syntax-form #'name e #'val w s mod))))
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1245 ((define-syntax-parameter)
1246 (syntax-case e ()
1247 ((_ name val)
1248 (id? #'name)
40e92f09 1249 (values 'define-syntax-parameter-form #'name e #'val w s mod))))
8fad25c2 1250 (else
40e92f09 1251 (values 'call #f e e w s mod)))))))
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1252 ((syntax-object? e)
1253 (syntax-type (syntax-object-expression e)
1254 r
1255 (join-wraps w (syntax-object-wrap e))
1256 (or (source-annotation e) s) rib
1257 (or (syntax-object-module e) mod) for-car?))
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1258 ((self-evaluating? e) (values 'constant #f e e w s mod))
1259 (else (values 'other #f e e w s mod)))))
8fad25c2 1260
78a47455 1261 (define expand
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1262 (lambda (e r w mod)
1263 (call-with-values
1264 (lambda () (syntax-type e r w (source-annotation e) #f mod #f))
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1265 (lambda (type value form e w s mod)
1266 (expand-expr type value form e r w s mod)))))
8fad25c2 1267
78a47455 1268 (define expand-expr
40e92f09 1269 (lambda (type value form e r w s mod)
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1270 (case type
1271 ((lexical)
1272 (build-lexical-reference 'value s e value))
1273 ((core core-form)
1274 ;; apply transformer
1275 (value e r w s mod))
1276 ((module-ref)
1277 (call-with-values (lambda () (value e r w))
1278 (lambda (e r w s mod)
78a47455 1279 (expand e r w mod))))
8fad25c2 1280 ((lexical-call)
78a47455 1281 (expand-application
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1282 (let ((id (car e)))
1283 (build-lexical-reference 'fun (source-annotation id)
1284 (if (syntax-object? id)
1285 (syntax->datum id)
1286 id)
1287 value))
1288 e r w s mod))
1289 ((global-call)
78a47455 1290 (expand-application
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1291 (build-global-reference (source-annotation (car e))
1292 (if (syntax-object? value)
1293 (syntax-object-expression value)
1294 value)
1295 (if (syntax-object? value)
1296 (syntax-object-module value)
1297 mod))
1298 e r w s mod))
1299 ((constant) (build-data s (strip (source-wrap e w s mod) empty-wrap)))
1300 ((global) (build-global-reference s value mod))
78a47455 1301 ((call) (expand-application (expand (car e) r w mod) e r w s mod))
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1302 ((begin-form)
1303 (syntax-case e ()
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1304 ((_ e1 e2 ...) (expand-sequence #'(e1 e2 ...) r w s mod))
1305 ((_)
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1306 (if (include-deprecated-features)
1307 (begin
1308 (issue-deprecation-warning
1309 "Sequences of zero expressions are deprecated. Use *unspecified*.")
1310 (expand-void))
1311 (syntax-violation #f "sequence of zero expressions"
1312 (source-wrap e w s mod))))))
8fad25c2 1313 ((local-syntax-form)
78a47455 1314 (expand-local-syntax value e r w s mod expand-sequence))
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1315 ((eval-when-form)
1316 (syntax-case e ()
1317 ((_ (x ...) e1 e2 ...)
440ac793 1318 (let ((when-list (parse-when-list e #'(x ...))))
8fad25c2 1319 (if (memq 'eval when-list)
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1320 (expand-sequence #'(e1 e2 ...) r w s mod)
1321 (expand-void))))))
286dc5e1 1322 ((define-form define-syntax-form define-syntax-parameter-form)
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1323 (syntax-violation #f "definition in expression context, where definitions are not allowed,"
1324 (source-wrap form w s mod)))
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1325 ((syntax)
1326 (syntax-violation #f "reference to pattern variable outside syntax form"
1327 (source-wrap e w s mod)))
1328 ((displaced-lexical)
1329 (syntax-violation #f "reference to identifier outside its scope"
1330 (source-wrap e w s mod)))
1331 (else (syntax-violation #f "unexpected syntax"
1332 (source-wrap e w s mod))))))
1333
78a47455 1334 (define expand-application
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1335 (lambda (x e r w s mod)
1336 (syntax-case e ()
1337 ((e0 e1 ...)
1338 (build-application s x
78a47455 1339 (map (lambda (e) (expand e r w mod)) #'(e1 ...)))))))
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1340
1341 ;; (What follows is my interpretation of what's going on here -- Andy)
1342 ;;
1343 ;; A macro takes an expression, a tree, the leaves of which are identifiers
1344 ;; and datums. Identifiers are symbols along with a wrap and a module. For
1345 ;; efficiency, subtrees that share wraps and modules may be grouped as one
1346 ;; syntax object.
c3ae0ed4 1347 ;;
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1348 ;; Going into the expansion, the expression is given an anti-mark, which
1349 ;; logically propagates to all leaves. Then, in the new expression returned
1350 ;; from the transfomer, if we see an expression with an anti-mark, we know it
1351 ;; pertains to the original expression; conversely, expressions without the
1352 ;; anti-mark are known to be introduced by the transformer.
c3ae0ed4 1353 ;;
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1354 ;; OK, good until now. We know this algorithm does lexical scoping
1355 ;; appropriately because it's widely known in the literature, and psyntax is
1356 ;; widely used. But what about modules? Here we're on our own. What we do is
1357 ;; to mark the module of expressions produced by a macro as pertaining to the
1358 ;; module that was current when the macro was defined -- that is, free
1359 ;; identifiers introduced by a macro are scoped in the macro's module, not in
1360 ;; the expansion's module. Seems to work well.
c3ae0ed4 1361 ;;
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1362 ;; The only wrinkle is when we want a macro to expand to code in another
1363 ;; module, as is the case for the r6rs `library' form -- the body expressions
b3da54d1 1364 ;; should be scoped relative the new module, the one defined by the macro.
8fad25c2 1365 ;; For that, use `(@@ mod-name body)'.
c3ae0ed4 1366 ;;
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1367 ;; Part of the macro output will be from the site of the macro use and part
1368 ;; from the macro definition. We allow source information from the macro use
1369 ;; to pass through, but we annotate the parts coming from the macro with the
1370 ;; source location information corresponding to the macro use. It would be
1371 ;; really nice if we could also annotate introduced expressions with the
1372 ;; locations corresponding to the macro definition, but that is not yet
1373 ;; possible.
78a47455 1374 (define expand-macro
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1375 (lambda (p e r w s rib mod)
1376 (define rebuild-macro-output
1377 (lambda (x m)
1378 (cond ((pair? x)
1379 (decorate-source
1380 (cons (rebuild-macro-output (car x) m)
1381 (rebuild-macro-output (cdr x) m))
1382 s))
1383 ((syntax-object? x)
1384 (let ((w (syntax-object-wrap x)))
30398e94 1385 (let ((ms (wrap-marks w)) (ss (wrap-subst w)))
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1386 (if (and (pair? ms) (eq? (car ms) the-anti-mark))
1387 ;; output is from original text
1388 (make-syntax-object
1389 (syntax-object-expression x)
30398e94 1390 (make-wrap (cdr ms) (if rib (cons rib (cdr ss)) (cdr ss)))
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1391 (syntax-object-module x))
1392 ;; output introduced by macro
1393 (make-syntax-object
1394 (decorate-source (syntax-object-expression x) s)
1395 (make-wrap (cons m ms)
1396 (if rib
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1397 (cons rib (cons 'shift ss))
1398 (cons 'shift ss)))
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1399 (syntax-object-module x))))))
1400
1401 ((vector? x)
1402 (let* ((n (vector-length x))
30398e94 1403 (v (decorate-source (make-vector n) s)))
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1404 (do ((i 0 (fx+ i 1)))
1405 ((fx= i n) v)
1406 (vector-set! v i
1407 (rebuild-macro-output (vector-ref x i) m)))))
1408 ((symbol? x)
1409 (syntax-violation #f "encountered raw symbol in macro output"
1410 (source-wrap e w (wrap-subst w) mod) x))
1411 (else (decorate-source x s)))))
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1412 (with-fluids ((transformer-environment
1413 (lambda (k) (k e r w s rib mod))))
1414 (rebuild-macro-output (p (source-wrap e (anti-mark w) s mod))
1415 (new-mark)))))
8fad25c2 1416
78a47455 1417 (define expand-body
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1418 ;; In processing the forms of the body, we create a new, empty wrap.
1419 ;; This wrap is augmented (destructively) each time we discover that
1420 ;; the next form is a definition. This is done:
1421 ;;
1422 ;; (1) to allow the first nondefinition form to be a call to
1423 ;; one of the defined ids even if the id previously denoted a
1424 ;; definition keyword or keyword for a macro expanding into a
1425 ;; definition;
1426 ;; (2) to prevent subsequent definition forms (but unfortunately
1427 ;; not earlier ones) and the first nondefinition form from
1428 ;; confusing one of the bound identifiers for an auxiliary
1429 ;; keyword; and
1430 ;; (3) so that we do not need to restart the expansion of the
1431 ;; first nondefinition form, which is problematic anyway
1432 ;; since it might be the first element of a begin that we
1433 ;; have just spliced into the body (meaning if we restarted,
1434 ;; we'd really need to restart with the begin or the macro
1435 ;; call that expanded into the begin, and we'd have to give
1436 ;; up allowing (begin <defn>+ <expr>+), which is itself
1437 ;; problematic since we don't know if a begin contains only
1438 ;; definitions until we've expanded it).
1439 ;;
1440 ;; Before processing the body, we also create a new environment
1441 ;; containing a placeholder for the bindings we will add later and
1442 ;; associate this environment with each form. In processing a
1443 ;; let-syntax or letrec-syntax, the associated environment may be
1444 ;; augmented with local keyword bindings, so the environment may
1445 ;; be different for different forms in the body. Once we have
1446 ;; gathered up all of the definitions, we evaluate the transformer
1447 ;; expressions and splice into r at the placeholder the new variable
1448 ;; and keyword bindings. This allows let-syntax or letrec-syntax
1449 ;; forms local to a portion or all of the body to shadow the
1450 ;; definition bindings.
1451 ;;
1452 ;; Subforms of a begin, let-syntax, or letrec-syntax are spliced
1453 ;; into the body.
1454 ;;
1455 ;; outer-form is fully wrapped w/source
1456 (lambda (body outer-form r w mod)
1457 (let* ((r (cons '("placeholder" . (placeholder)) r))
1458 (ribcage (make-empty-ribcage))
1459 (w (make-wrap (wrap-marks w) (cons ribcage (wrap-subst w)))))
1460 (let parse ((body (map (lambda (x) (cons r (wrap x w mod))) body))
1461 (ids '()) (labels '())
1462 (var-ids '()) (vars '()) (vals '()) (bindings '()))
1463 (if (null? body)
1464 (syntax-violation #f "no expressions in body" outer-form)
1465 (let ((e (cdar body)) (er (caar body)))
1466 (call-with-values
1467 (lambda () (syntax-type e er empty-wrap (source-annotation er) ribcage mod #f))
40e92f09 1468 (lambda (type value form e w s mod)
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1469 (case type
1470 ((define-form)
1471 (let ((id (wrap value w mod)) (label (gen-label)))
1472 (let ((var (gen-var id)))
1473 (extend-ribcage! ribcage id label)
1474 (parse (cdr body)
1475 (cons id ids) (cons label labels)
1476 (cons id var-ids)
1477 (cons var vars) (cons (cons er (wrap e w mod)) vals)
1478 (cons (make-binding 'lexical var) bindings)))))
286dc5e1 1479 ((define-syntax-form define-syntax-parameter-form)
8fad25c2 1480 (let ((id (wrap value w mod)) (label (gen-label)))
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1481 (extend-ribcage! ribcage id label)
1482 (parse (cdr body)
1483 (cons id ids) (cons label labels)
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1484 var-ids vars vals
1485 (cons (make-binding 'macro (cons er (wrap e w mod)))
1486 bindings))))
1487 ((begin-form)
1488 (syntax-case e ()
1489 ((_ e1 ...)
1490 (parse (let f ((forms #'(e1 ...)))
1491 (if (null? forms)
1492 (cdr body)
1493 (cons (cons er (wrap (car forms) w mod))
1494 (f (cdr forms)))))
1495 ids labels var-ids vars vals bindings))))
1496 ((local-syntax-form)
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1497 (expand-local-syntax value e er w s mod
1498 (lambda (forms er w s mod)
1499 (parse (let f ((forms forms))
1500 (if (null? forms)
1501 (cdr body)
1502 (cons (cons er (wrap (car forms) w mod))
1503 (f (cdr forms)))))
1504 ids labels var-ids vars vals bindings))))
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1505 (else ; found a non-definition
1506 (if (null? ids)
1507 (build-sequence no-source
1508 (map (lambda (x)
78a47455 1509 (expand (cdr x) (car x) empty-wrap mod))
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1510 (cons (cons er (source-wrap e w s mod))
1511 (cdr body))))
1512 (begin
1513 (if (not (valid-bound-ids? ids))
1514 (syntax-violation
1515 #f "invalid or duplicate identifier in definition"
1516 outer-form))
1517 (let loop ((bs bindings) (er-cache #f) (r-cache #f))
1518 (if (not (null? bs))
1519 (let* ((b (car bs)))
1520 (if (eq? (car b) 'macro)
1521 (let* ((er (cadr b))
1522 (r-cache
1523 (if (eq? er er-cache)
1524 r-cache
1525 (macros-only-env er))))
1526 (set-cdr! b
1527 (eval-local-transformer
78a47455 1528 (expand (cddr b) r-cache empty-wrap mod)
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1529 mod))
1530 (loop (cdr bs) er r-cache))
1531 (loop (cdr bs) er-cache r-cache)))))
1532 (set-cdr! r (extend-env labels bindings (cdr r)))
1533 (build-letrec no-source #t
1534 (reverse (map syntax->datum var-ids))
1535 (reverse vars)
1536 (map (lambda (x)
78a47455 1537 (expand (cdr x) (car x) empty-wrap mod))
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1538 (reverse vals))
1539 (build-sequence no-source
1540 (map (lambda (x)
78a47455 1541 (expand (cdr x) (car x) empty-wrap mod))
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1542 (cons (cons er (source-wrap e w s mod))
1543 (cdr body)))))))))))))))))
1544
78a47455 1545 (define expand-local-syntax
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1546 (lambda (rec? e r w s mod k)
1547 (syntax-case e ()
1548 ((_ ((id val) ...) e1 e2 ...)
1549 (let ((ids #'(id ...)))
1550 (if (not (valid-bound-ids? ids))
1551 (syntax-violation #f "duplicate bound keyword" e)
1552 (let ((labels (gen-labels ids)))
1553 (let ((new-w (make-binding-wrap ids labels w)))
1554 (k #'(e1 e2 ...)
1555 (extend-env
1556 labels
1557 (let ((w (if rec? new-w w))
1558 (trans-r (macros-only-env r)))
1559 (map (lambda (x)
1560 (make-binding 'macro
1561 (eval-local-transformer
78a47455 1562 (expand x trans-r w mod)
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1563 mod)))
1564 #'(val ...)))
1565 r)
1566 new-w
1567 s
1568 mod))))))
1569 (_ (syntax-violation #f "bad local syntax definition"
1570 (source-wrap e w s mod))))))
1571
1572 (define eval-local-transformer
1573 (lambda (expanded mod)
1574 (let ((p (local-eval-hook expanded mod)))
1575 (if (procedure? p)
1576 p
1577 (syntax-violation #f "nonprocedure transformer" p)))))
1578
78a47455 1579 (define expand-void
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1580 (lambda ()
1581 (build-void no-source)))
1582
1583 (define ellipsis?
1584 (lambda (x)
1585 (and (nonsymbol-id? x)
1586 (free-id=? x #'(... ...)))))
1587
1588 (define lambda-formals
1589 (lambda (orig-args)
1590 (define (req args rreq)
1591 (syntax-case args ()
1592 (()
1593 (check (reverse rreq) #f))
1594 ((a . b) (id? #'a)
1595 (req #'b (cons #'a rreq)))
1596 (r (id? #'r)
1597 (check (reverse rreq) #'r))
1598 (else
1599 (syntax-violation 'lambda "invalid argument list" orig-args args))))
1600 (define (check req rest)
1601 (cond
1602 ((distinct-bound-ids? (if rest (cons rest req) req))
1603 (values req #f rest #f))
1604 (else
1605 (syntax-violation 'lambda "duplicate identifier in argument list"
1606 orig-args))))
1607 (req orig-args '())))
1608
78a47455 1609 (define expand-simple-lambda
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1610 (lambda (e r w s mod req rest meta body)
1611 (let* ((ids (if rest (append req (list rest)) req))
1612 (vars (map gen-var ids))
1613 (labels (gen-labels ids)))
1614 (build-simple-lambda
1615 s
1616 (map syntax->datum req) (and rest (syntax->datum rest)) vars
1617 meta
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1618 (expand-body body (source-wrap e w s mod)
1619 (extend-var-env labels vars r)
1620 (make-binding-wrap ids labels w)
1621 mod)))))
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1622
1623 (define lambda*-formals
1624 (lambda (orig-args)
1625 (define (req args rreq)
1626 (syntax-case args ()
1627 (()
1628 (check (reverse rreq) '() #f '()))
1629 ((a . b) (id? #'a)
1630 (req #'b (cons #'a rreq)))
1631 ((a . b) (eq? (syntax->datum #'a) #:optional)
1632 (opt #'b (reverse rreq) '()))
1633 ((a . b) (eq? (syntax->datum #'a) #:key)
1634 (key #'b (reverse rreq) '() '()))
1635 ((a b) (eq? (syntax->datum #'a) #:rest)
1636 (rest #'b (reverse rreq) '() '()))
1637 (r (id? #'r)
1638 (rest #'r (reverse rreq) '() '()))
1639 (else
1640 (syntax-violation 'lambda* "invalid argument list" orig-args args))))
1641 (define (opt args req ropt)
1642 (syntax-case args ()
1643 (()
1644 (check req (reverse ropt) #f '()))
1645 ((a . b) (id? #'a)
1646 (opt #'b req (cons #'(a #f) ropt)))
1647 (((a init) . b) (id? #'a)
1648 (opt #'b req (cons #'(a init) ropt)))
1649 ((a . b) (eq? (syntax->datum #'a) #:key)
1650 (key #'b req (reverse ropt) '()))
1651 ((a b) (eq? (syntax->datum #'a) #:rest)
1652 (rest #'b req (reverse ropt) '()))
1653 (r (id? #'r)
1654 (rest #'r req (reverse ropt) '()))
1655 (else
1656 (syntax-violation 'lambda* "invalid optional argument list"
1657 orig-args args))))
1658 (define (key args req opt rkey)
1659 (syntax-case args ()
1660 (()
1661 (check req opt #f (cons #f (reverse rkey))))
1662 ((a . b) (id? #'a)
1663 (with-syntax ((k (symbol->keyword (syntax->datum #'a))))
1664 (key #'b req opt (cons #'(k a #f) rkey))))
1665 (((a init) . b) (id? #'a)
1666 (with-syntax ((k (symbol->keyword (syntax->datum #'a))))
1667 (key #'b req opt (cons #'(k a init) rkey))))
1668 (((a init k) . b) (and (id? #'a)
1669 (keyword? (syntax->datum #'k)))
1670 (key #'b req opt (cons #'(k a init) rkey)))
1671 ((aok) (eq? (syntax->datum #'aok) #:allow-other-keys)
1672 (check req opt #f (cons #t (reverse rkey))))
1673 ((aok a b) (and (eq? (syntax->datum #'aok) #:allow-other-keys)
1674 (eq? (syntax->datum #'a) #:rest))
1675 (rest #'b req opt (cons #t (reverse rkey))))
1676 ((aok . r) (and (eq? (syntax->datum #'aok) #:allow-other-keys)
1677 (id? #'r))
1678 (rest #'r req opt (cons #t (reverse rkey))))
1679 ((a b) (eq? (syntax->datum #'a) #:rest)
1680 (rest #'b req opt (cons #f (reverse rkey))))
1681 (r (id? #'r)
1682 (rest #'r req opt (cons #f (reverse rkey))))
1683 (else
1684 (syntax-violation 'lambda* "invalid keyword argument list"
1685 orig-args args))))
1686 (define (rest args req opt kw)
1687 (syntax-case args ()
1688 (r (id? #'r)
1689 (check req opt #'r kw))
1690 (else
1691 (syntax-violation 'lambda* "invalid rest argument"
1692 orig-args args))))
1693 (define (check req opt rest kw)
1694 (cond
1695 ((distinct-bound-ids?
1696 (append req (map car opt) (if rest (list rest) '())
1697 (if (pair? kw) (map cadr (cdr kw)) '())))
1698 (values req opt rest kw))
1699 (else
1700 (syntax-violation 'lambda* "duplicate identifier in argument list"
1701 orig-args))))
1702 (req orig-args '())))
1703
78a47455 1704 (define expand-lambda-case
8fad25c2 1705 (lambda (e r w s mod get-formals clauses)
78a47455 1706 (define (parse-req req opt rest kw body)
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1707 (let ((vars (map gen-var req))
1708 (labels (gen-labels req)))
1709 (let ((r* (extend-var-env labels vars r))
1710 (w* (make-binding-wrap req labels w)))
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1711 (parse-opt (map syntax->datum req)
1712 opt rest kw body (reverse vars) r* w* '() '()))))
1713 (define (parse-opt req opt rest kw body vars r* w* out inits)
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1714 (cond
1715 ((pair? opt)
1716 (syntax-case (car opt) ()
1717 ((id i)
1718 (let* ((v (gen-var #'id))
1719 (l (gen-labels (list v)))
1720 (r** (extend-var-env l (list v) r*))
1721 (w** (make-binding-wrap (list #'id) l w*)))
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1722 (parse-opt req (cdr opt) rest kw body (cons v vars)
1723 r** w** (cons (syntax->datum #'id) out)
1724 (cons (expand #'i r* w* mod) inits))))))
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1725 (rest
1726 (let* ((v (gen-var rest))
1727 (l (gen-labels (list v)))
1728 (r* (extend-var-env l (list v) r*))
1729 (w* (make-binding-wrap (list rest) l w*)))
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1730 (parse-kw req (if (pair? out) (reverse out) #f)
1731 (syntax->datum rest)
1732 (if (pair? kw) (cdr kw) kw)
1733 body (cons v vars) r* w*
1734 (if (pair? kw) (car kw) #f)
1735 '() inits)))
8fad25c2 1736 (else
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1737 (parse-kw req (if (pair? out) (reverse out) #f) #f
1738 (if (pair? kw) (cdr kw) kw)
1739 body vars r* w*
1740 (if (pair? kw) (car kw) #f)
1741 '() inits))))
1742 (define (parse-kw req opt rest kw body vars r* w* aok out inits)
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1743 (cond
1744 ((pair? kw)
1745 (syntax-case (car kw) ()
1746 ((k id i)
1747 (let* ((v (gen-var #'id))
1748 (l (gen-labels (list v)))
1749 (r** (extend-var-env l (list v) r*))
1750 (w** (make-binding-wrap (list #'id) l w*)))
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1751 (parse-kw req opt rest (cdr kw) body (cons v vars)
1752 r** w** aok
1753 (cons (list (syntax->datum #'k)
1754 (syntax->datum #'id)
1755 v)
1756 out)
1757 (cons (expand #'i r* w* mod) inits))))))
8fad25c2 1758 (else
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1759 (parse-body req opt rest
1760 (if (or aok (pair? out)) (cons aok (reverse out)) #f)
1761 body (reverse vars) r* w* (reverse inits) '()))))
1762 (define (parse-body req opt rest kw body vars r* w* inits meta)
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1763 (syntax-case body ()
1764 ((docstring e1 e2 ...) (string? (syntax->datum #'docstring))
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1765 (parse-body req opt rest kw #'(e1 e2 ...) vars r* w* inits
1766 (append meta
1767 `((documentation
1768 . ,(syntax->datum #'docstring))))))
8fad25c2 1769 ((#((k . v) ...) e1 e2 ...)
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1770 (parse-body req opt rest kw #'(e1 e2 ...) vars r* w* inits
1771 (append meta (syntax->datum #'((k . v) ...)))))
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1772 ((e1 e2 ...)
1773 (values meta req opt rest kw inits vars
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1774 (expand-body #'(e1 e2 ...) (source-wrap e w s mod)
1775 r* w* mod)))))
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1776
1777 (syntax-case clauses ()
1778 (() (values '() #f))
1779 (((args e1 e2 ...) (args* e1* e2* ...) ...)
1780 (call-with-values (lambda () (get-formals #'args))
1781 (lambda (req opt rest kw)
1782 (call-with-values (lambda ()
78a47455 1783 (parse-req req opt rest kw #'(e1 e2 ...)))
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1784 (lambda (meta req opt rest kw inits vars body)
1785 (call-with-values
1786 (lambda ()
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1787 (expand-lambda-case e r w s mod get-formals
1788 #'((args* e1* e2* ...) ...)))
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1789 (lambda (meta* else*)
1790 (values
1791 (append meta meta*)
1792 (build-lambda-case s req opt rest kw inits vars
1793 body else*))))))))))))
1794
1795 ;; data
1796
1797 ;; strips syntax-objects down to top-wrap
1798 ;;
1799 ;; since only the head of a list is annotated by the reader, not each pair
1800 ;; in the spine, we also check for pairs whose cars are annotated in case
1801 ;; we've been passed the cdr of an annotated list
1802
1803 (define strip
1804 (lambda (x w)
1805 (if (top-marked? w)
1806 x
1807 (let f ((x x))
1808 (cond
1809 ((syntax-object? x)
1810 (strip (syntax-object-expression x) (syntax-object-wrap x)))
1811 ((pair? x)
1812 (let ((a (f (car x))) (d (f (cdr x))))
1813 (if (and (eq? a (car x)) (eq? d (cdr x)))
1814 x
1815 (cons a d))))
1816 ((vector? x)
1817 (let ((old (vector->list x)))
1818 (let ((new (map f old)))
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1819 ;; inlined and-map with two args
1820 (let lp ((l1 old) (l2 new))
1821 (if (null? l1)
1822 x
1823 (if (eq? (car l1) (car l2))
1824 (lp (cdr l1) (cdr l2))
1825 (list->vector new)))))))
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1826 (else x))))))
1827
1828 ;; lexical variables
1829
1830 (define gen-var
1831 (lambda (id)
1832 (let ((id (if (syntax-object? id) (syntax-object-expression id) id)))
1833 (build-lexical-var no-source id))))
1834
1835 ;; appears to return a reversed list
1836 (define lambda-var-list
1837 (lambda (vars)
1838 (let lvl ((vars vars) (ls '()) (w empty-wrap))
1839 (cond
1840 ((pair? vars) (lvl (cdr vars) (cons (wrap (car vars) w #f) ls) w))
1841 ((id? vars) (cons (wrap vars w #f) ls))
1842 ((null? vars) ls)
1843 ((syntax-object? vars)
1844 (lvl (syntax-object-expression vars)
1845 ls
1846 (join-wraps w (syntax-object-wrap vars))))
1847 ;; include anything else to be caught by subsequent error
1848 ;; checking
1849 (else (cons vars ls))))))
1850
1851 ;; core transformers
1852
1853 (global-extend 'local-syntax 'letrec-syntax #t)
1854 (global-extend 'local-syntax 'let-syntax #f)
1855
449bf60b 1856 (global-extend 'core 'syntax-parameterize
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1857 (lambda (e r w s mod)
1858 (syntax-case e ()
1859 ((_ ((var val) ...) e1 e2 ...)
1860 (valid-bound-ids? #'(var ...))
1861 (let ((names (map (lambda (x) (id-var-name x w)) #'(var ...))))
1862 (for-each
1863 (lambda (id n)
1864 (case (binding-type (lookup n r mod))
1865 ((displaced-lexical)
449bf60b 1866 (syntax-violation 'syntax-parameterize
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1867 "identifier out of context"
1868 e
1869 (source-wrap id w s mod)))))
1870 #'(var ...)
1871 names)
78a47455 1872 (expand-body
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1873 #'(e1 e2 ...)
1874 (source-wrap e w s mod)
1875 (extend-env
1876 names
1877 (let ((trans-r (macros-only-env r)))
1878 (map (lambda (x)
1879 (make-binding 'macro
78a47455 1880 (eval-local-transformer (expand x trans-r w mod)
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1881 mod)))
1882 #'(val ...)))
1883 r)
1884 w
1885 mod)))
449bf60b 1886 (_ (syntax-violation 'syntax-parameterize "bad syntax"
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1887 (source-wrap e w s mod))))))
1888
1889 (global-extend 'core 'quote
1890 (lambda (e r w s mod)
1891 (syntax-case e ()
1892 ((_ e) (build-data s (strip #'e w)))
1893 (_ (syntax-violation 'quote "bad syntax"
1894 (source-wrap e w s mod))))))
1895
1896 (global-extend 'core 'syntax
1897 (let ()
1898 (define gen-syntax
1899 (lambda (src e r maps ellipsis? mod)
1900 (if (id? e)
1901 (let ((label (id-var-name e empty-wrap)))
1902 ;; Mod does not matter, we are looking to see if
1903 ;; the id is lexical syntax.
1904 (let ((b (lookup label r mod)))
1905 (if (eq? (binding-type b) 'syntax)
1906 (call-with-values
1907 (lambda ()
1908 (let ((var.lev (binding-value b)))
1909 (gen-ref src (car var.lev) (cdr var.lev) maps)))
1910 (lambda (var maps) (values `(ref ,var) maps)))
1911 (if (ellipsis? e)
1912 (syntax-violation 'syntax "misplaced ellipsis" src)
1913 (values `(quote ,e) maps)))))
1914 (syntax-case e ()
1915 ((dots e)
1916 (ellipsis? #'dots)
1917 (gen-syntax src #'e r maps (lambda (x) #f) mod))
1918 ((x dots . y)
1919 ;; this could be about a dozen lines of code, except that we
1920 ;; choose to handle #'(x ... ...) forms
1921 (ellipsis? #'dots)
1922 (let f ((y #'y)
1923 (k (lambda (maps)
1924 (call-with-values
1925 (lambda ()
1926 (gen-syntax src #'x r
1927 (cons '() maps) ellipsis? mod))
1928 (lambda (x maps)
1929 (if (null? (car maps))
1930 (syntax-violation 'syntax "extra ellipsis"
1931 src)
1932 (values (gen-map x (car maps))
1933 (cdr maps))))))))
1934 (syntax-case y ()
1935 ((dots . y)
1936 (ellipsis? #'dots)
1937 (f #'y
1938 (lambda (maps)
1939 (call-with-values
1940 (lambda () (k (cons '() maps)))
1941 (lambda (x maps)
1942 (if (null? (car maps))
1943 (syntax-violation 'syntax "extra ellipsis" src)
1944 (values (gen-mappend x (car maps))
1945 (cdr maps))))))))
1946 (_ (call-with-values
1947 (lambda () (gen-syntax src y r maps ellipsis? mod))
1948 (lambda (y maps)
c3ae0ed4 1949 (call-with-values
8fad25c2 1950 (lambda () (k maps))
c3ae0ed4 1951 (lambda (x maps)
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1952 (values (gen-append x y) maps)))))))))
1953 ((x . y)
1954 (call-with-values
1955 (lambda () (gen-syntax src #'x r maps ellipsis? mod))
1956 (lambda (x maps)
1957 (call-with-values
1958 (lambda () (gen-syntax src #'y r maps ellipsis? mod))
1959 (lambda (y maps) (values (gen-cons x y) maps))))))
1960 (#(e1 e2 ...)
1961 (call-with-values
1962 (lambda ()
1963 (gen-syntax src #'(e1 e2 ...) r maps ellipsis? mod))
1964 (lambda (e maps) (values (gen-vector e) maps))))
1965 (_ (values `(quote ,e) maps))))))
1966
1967 (define gen-ref
1968 (lambda (src var level maps)
1969 (if (fx= level 0)
1970 (values var maps)
1971 (if (null? maps)
1972 (syntax-violation 'syntax "missing ellipsis" src)
1973 (call-with-values
1974 (lambda () (gen-ref src var (fx- level 1) (cdr maps)))
1975 (lambda (outer-var outer-maps)
1976 (let ((b (assq outer-var (car maps))))
1977 (if b
1978 (values (cdr b) maps)
1979 (let ((inner-var (gen-var 'tmp)))
1980 (values inner-var
1981 (cons (cons (cons outer-var inner-var)
1982 (car maps))
1983 outer-maps)))))))))))
1984
1985 (define gen-mappend
1986 (lambda (e map-env)
1987 `(apply (primitive append) ,(gen-map e map-env))))
1988
1989 (define gen-map
1990 (lambda (e map-env)
1991 (let ((formals (map cdr map-env))
1992 (actuals (map (lambda (x) `(ref ,(car x))) map-env)))
1993 (cond
1994 ((eq? (car e) 'ref)
1995 ;; identity map equivalence:
1996 ;; (map (lambda (x) x) y) == y
1997 (car actuals))
1998 ((and-map
1999 (lambda (x) (and (eq? (car x) 'ref) (memq (cadr x) formals)))
2000 (cdr e))
2001 ;; eta map equivalence:
2002 ;; (map (lambda (x ...) (f x ...)) y ...) == (map f y ...)
2003 `(map (primitive ,(car e))
2004 ,@(map (let ((r (map cons formals actuals)))
2005 (lambda (x) (cdr (assq (cadr x) r))))
2006 (cdr e))))
2007 (else `(map (lambda ,formals ,e) ,@actuals))))))
2008
2009 (define gen-cons
2010 (lambda (x y)
2011 (case (car y)
2012 ((quote)
2013 (if (eq? (car x) 'quote)
2014 `(quote (,(cadr x) . ,(cadr y)))
2015 (if (eq? (cadr y) '())
2016 `(list ,x)
2017 `(cons ,x ,y))))
2018 ((list) `(list ,x ,@(cdr y)))
2019 (else `(cons ,x ,y)))))
2020
2021 (define gen-append
2022 (lambda (x y)
2023 (if (equal? y '(quote ()))
2024 x
2025 `(append ,x ,y))))
2026
2027 (define gen-vector
2028 (lambda (x)
c3ae0ed4 2029 (cond
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2030 ((eq? (car x) 'list) `(vector ,@(cdr x)))
2031 ((eq? (car x) 'quote) `(quote #(,@(cadr x))))
2032 (else `(list->vector ,x)))))
2033
2034
2035 (define regen
2036 (lambda (x)
2037 (case (car x)
2038 ((ref) (build-lexical-reference 'value no-source (cadr x) (cadr x)))
2039 ((primitive) (build-primref no-source (cadr x)))
2040 ((quote) (build-data no-source (cadr x)))
2041 ((lambda)
2042 (if (list? (cadr x))
2043 (build-simple-lambda no-source (cadr x) #f (cadr x) '() (regen (caddr x)))
2044 (error "how did we get here" x)))
2045 (else (build-application no-source
2046 (build-primref no-source (car x))
2047 (map regen (cdr x)))))))
2048
2049 (lambda (e r w s mod)
2050 (let ((e (source-wrap e w s mod)))
2051 (syntax-case e ()
2052 ((_ x)
2053 (call-with-values
2054 (lambda () (gen-syntax e #'x r '() ellipsis? mod))
2055 (lambda (e maps) (regen e))))
2056 (_ (syntax-violation 'syntax "bad `syntax' form" e)))))))
2057
2058 (global-extend 'core 'lambda
c3ae0ed4 2059 (lambda (e r w s mod)
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2060 (syntax-case e ()
2061 ((_ args e1 e2 ...)
2062 (call-with-values (lambda () (lambda-formals #'args))
2063 (lambda (req opt rest kw)
2064 (let lp ((body #'(e1 e2 ...)) (meta '()))
2065 (syntax-case body ()
2066 ((docstring e1 e2 ...) (string? (syntax->datum #'docstring))
2067 (lp #'(e1 e2 ...)
2068 (append meta
2069 `((documentation
2070 . ,(syntax->datum #'docstring))))))
2071 ((#((k . v) ...) e1 e2 ...)
2072 (lp #'(e1 e2 ...)
2073 (append meta (syntax->datum #'((k . v) ...)))))
78a47455 2074 (_ (expand-simple-lambda e r w s mod req rest meta body)))))))
8fad25c2 2075 (_ (syntax-violation 'lambda "bad lambda" e)))))
3785c5b2 2076
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2077 (global-extend 'core 'lambda*
2078 (lambda (e r w s mod)
2079 (syntax-case e ()
2080 ((_ args e1 e2 ...)
2081 (call-with-values
2082 (lambda ()
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2083 (expand-lambda-case e r w s mod
2084 lambda*-formals #'((args e1 e2 ...))))
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2085 (lambda (meta lcase)
2086 (build-case-lambda s meta lcase))))
2087 (_ (syntax-violation 'lambda "bad lambda*" e)))))
2088
2089 (global-extend 'core 'case-lambda
2090 (lambda (e r w s mod)
2091 (syntax-case e ()
2092 ((_ (args e1 e2 ...) (args* e1* e2* ...) ...)
2093 (call-with-values
2094 (lambda ()
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2095 (expand-lambda-case e r w s mod
2096 lambda-formals
2097 #'((args e1 e2 ...) (args* e1* e2* ...) ...)))
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2098 (lambda (meta lcase)
2099 (build-case-lambda s meta lcase))))
2100 (_ (syntax-violation 'case-lambda "bad case-lambda" e)))))
2101
2102 (global-extend 'core 'case-lambda*
2103 (lambda (e r w s mod)
2104 (syntax-case e ()
2105 ((_ (args e1 e2 ...) (args* e1* e2* ...) ...)
2106 (call-with-values
2107 (lambda ()
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2108 (expand-lambda-case e r w s mod
2109 lambda*-formals
2110 #'((args e1 e2 ...) (args* e1* e2* ...) ...)))
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2111 (lambda (meta lcase)
2112 (build-case-lambda s meta lcase))))
2113 (_ (syntax-violation 'case-lambda "bad case-lambda*" e)))))
2114
2115 (global-extend 'core 'let
2116 (let ()
78a47455 2117 (define (expand-let e r w s mod constructor ids vals exps)
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2118 (if (not (valid-bound-ids? ids))
2119 (syntax-violation 'let "duplicate bound variable" e)
2120 (let ((labels (gen-labels ids))
2121 (new-vars (map gen-var ids)))
2122 (let ((nw (make-binding-wrap ids labels w))
2123 (nr (extend-var-env labels new-vars r)))
2124 (constructor s
2125 (map syntax->datum ids)
2126 new-vars
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2127 (map (lambda (x) (expand x r w mod)) vals)
2128 (expand-body exps (source-wrap e nw s mod)
2129 nr nw mod))))))
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2130 (lambda (e r w s mod)
2131 (syntax-case e ()
2132 ((_ ((id val) ...) e1 e2 ...)
2133 (and-map id? #'(id ...))
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2134 (expand-let e r w s mod
2135 build-let
2136 #'(id ...)
2137 #'(val ...)
2138 #'(e1 e2 ...)))
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2139 ((_ f ((id val) ...) e1 e2 ...)
2140 (and (id? #'f) (and-map id? #'(id ...)))
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2141 (expand-let e r w s mod
2142 build-named-let
2143 #'(f id ...)
2144 #'(val ...)
2145 #'(e1 e2 ...)))
8fad25c2
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2146 (_ (syntax-violation 'let "bad let" (source-wrap e w s mod)))))))
2147
2148
2149 (global-extend 'core 'letrec
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2150 (lambda (e r w s mod)
2151 (syntax-case e ()
2152 ((_ ((id val) ...) e1 e2 ...)
2153 (and-map id? #'(id ...))
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2154 (let ((ids #'(id ...)))
2155 (if (not (valid-bound-ids? ids))
2156 (syntax-violation 'letrec "duplicate bound variable" e)
2157 (let ((labels (gen-labels ids))
2158 (new-vars (map gen-var ids)))
2159 (let ((w (make-binding-wrap ids labels w))
2160 (r (extend-var-env labels new-vars r)))
2161 (build-letrec s #f
2162 (map syntax->datum ids)
2163 new-vars
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2164 (map (lambda (x) (expand x r w mod)) #'(val ...))
2165 (expand-body #'(e1 e2 ...)
2166 (source-wrap e w s mod) r w mod)))))))
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2167 (_ (syntax-violation 'letrec "bad letrec" (source-wrap e w s mod))))))
2168
2169
2170 (global-extend 'core 'letrec*
2171 (lambda (e r w s mod)
2172 (syntax-case e ()
2173 ((_ ((id val) ...) e1 e2 ...)
2174 (and-map id? #'(id ...))
2175 (let ((ids #'(id ...)))
2176 (if (not (valid-bound-ids? ids))
2177 (syntax-violation 'letrec* "duplicate bound variable" e)
2178 (let ((labels (gen-labels ids))
2179 (new-vars (map gen-var ids)))
2180 (let ((w (make-binding-wrap ids labels w))
2181 (r (extend-var-env labels new-vars r)))
2182 (build-letrec s #t
2183 (map syntax->datum ids)
2184 new-vars
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2185 (map (lambda (x) (expand x r w mod)) #'(val ...))
2186 (expand-body #'(e1 e2 ...)
2187 (source-wrap e w s mod) r w mod)))))))
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2188 (_ (syntax-violation 'letrec* "bad letrec*" (source-wrap e w s mod))))))
2189
2190
2191 (global-extend 'core 'set!
2192 (lambda (e r w s mod)
2193 (syntax-case e ()
2194 ((_ id val)
2195 (id? #'id)
2196 (let ((n (id-var-name #'id w))
2197 ;; Lookup id in its module
2198 (id-mod (if (syntax-object? #'id)
2199 (syntax-object-module #'id)
2200 mod)))
2201 (let ((b (lookup n r id-mod)))
2202 (case (binding-type b)
2203 ((lexical)
2204 (build-lexical-assignment s
2205 (syntax->datum #'id)
2206 (binding-value b)
78a47455 2207 (expand #'val r w mod)))
8fad25c2 2208 ((global)
78a47455 2209 (build-global-assignment s n (expand #'val r w mod) id-mod))
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2210 ((macro)
2211 (let ((p (binding-value b)))
2212 (if (procedure-property p 'variable-transformer)
78a47455 2213 ;; As syntax-type does, call expand-macro with
8fad25c2 2214 ;; the mod of the expression. Hmm.
78a47455 2215 (expand (expand-macro p e r w s #f mod) r empty-wrap mod)
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2216 (syntax-violation 'set! "not a variable transformer"
2217 (wrap e w mod)
2218 (wrap #'id w id-mod)))))
2219 ((displaced-lexical)
2220 (syntax-violation 'set! "identifier out of context"
2221 (wrap #'id w mod)))
2222 (else (syntax-violation 'set! "bad set!"
2223 (source-wrap e w s mod)))))))
2224 ((_ (head tail ...) val)
2225 (call-with-values
2226 (lambda () (syntax-type #'head r empty-wrap no-source #f mod #t))
40e92f09 2227 (lambda (type value formform ee ww ss modmod)
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2228 (case type
2229 ((module-ref)
78a47455 2230 (let ((val (expand #'val r w mod)))
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2231 (call-with-values (lambda () (value #'(head tail ...) r w))
2232 (lambda (e r w s* mod)
2233 (syntax-case e ()
2234 (e (id? #'e)
2235 (build-global-assignment s (syntax->datum #'e)
2236 val mod)))))))
2237 (else
2238 (build-application s
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2239 (expand #'(setter head) r w mod)
2240 (map (lambda (e) (expand e r w mod))
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2241 #'(tail ... val))))))))
2242 (_ (syntax-violation 'set! "bad set!" (source-wrap e w s mod))))))
2243
2244 (global-extend 'module-ref '@
2245 (lambda (e r w)
2246 (syntax-case e ()
2247 ((_ (mod ...) id)
2248 (and (and-map id? #'(mod ...)) (id? #'id))
2249 (values (syntax->datum #'id) r w #f
2250 (syntax->datum
2251 #'(public mod ...)))))))
2252
2253 (global-extend 'module-ref '@@
2254 (lambda (e r w)
2255 (define remodulate
2256 (lambda (x mod)
2257 (cond ((pair? x)
2258 (cons (remodulate (car x) mod)
2259 (remodulate (cdr x) mod)))
2260 ((syntax-object? x)
2261 (make-syntax-object
2262 (remodulate (syntax-object-expression x) mod)
2263 (syntax-object-wrap x)
2264 ;; hither the remodulation
2265 mod))
2266 ((vector? x)
2267 (let* ((n (vector-length x)) (v (make-vector n)))
2268 (do ((i 0 (fx+ i 1)))
2269 ((fx= i n) v)
2270 (vector-set! v i (remodulate (vector-ref x i) mod)))))
2271 (else x))))
2272 (syntax-case e ()
2273 ((_ (mod ...) exp)
2274 (and-map id? #'(mod ...))
2275 (let ((mod (syntax->datum #'(private mod ...))))
2276 (values (remodulate #'exp mod)
2277 r w (source-annotation #'exp)
2278 mod))))))
9365d8ad 2279
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2280 (global-extend 'core 'if
2281 (lambda (e r w s mod)
2282 (syntax-case e ()
2283 ((_ test then)
2284 (build-conditional
2285 s
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AW
2286 (expand #'test r w mod)
2287 (expand #'then r w mod)
8fad25c2
AW
2288 (build-void no-source)))
2289 ((_ test then else)
2290 (build-conditional
2291 s
78a47455
AW
2292 (expand #'test r w mod)
2293 (expand #'then r w mod)
2294 (expand #'else r w mod))))))
8fad25c2
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2295
2296 (global-extend 'core 'with-fluids
2297 (lambda (e r w s mod)
2298 (syntax-case e ()
2299 ((_ ((fluid val) ...) b b* ...)
2300 (build-dynlet
2301 s
78a47455
AW
2302 (map (lambda (x) (expand x r w mod)) #'(fluid ...))
2303 (map (lambda (x) (expand x r w mod)) #'(val ...))
2304 (expand-body #'(b b* ...)
2305 (source-wrap e w s mod) r w mod))))))
6360c1d4 2306
8fad25c2
AW
2307 (global-extend 'begin 'begin '())
2308
2309 (global-extend 'define 'define '())
2310
2311 (global-extend 'define-syntax 'define-syntax '())
286dc5e1 2312 (global-extend 'define-syntax-parameter 'define-syntax-parameter '())
8fad25c2
AW
2313
2314 (global-extend 'eval-when 'eval-when '())
2315
2316 (global-extend 'core 'syntax-case
2317 (let ()
2318 (define convert-pattern
2319 ;; accepts pattern & keys
2320 ;; returns $sc-dispatch pattern & ids
2321 (lambda (pattern keys)
2322 (define cvt*
2323 (lambda (p* n ids)
0ed9680f
SIT
2324 (if (not (pair? p*))
2325 (cvt p* n ids)
8fad25c2
AW
2326 (call-with-values
2327 (lambda () (cvt* (cdr p*) n ids))
2328 (lambda (y ids)
2329 (call-with-values
2330 (lambda () (cvt (car p*) n ids))
2331 (lambda (x ids)
2332 (values (cons x y) ids))))))))
0ed9680f
SIT
2333
2334 (define (v-reverse x)
2335 (let loop ((r '()) (x x))
2336 (if (not (pair? x))
2337 (values r x)
2338 (loop (cons (car x) r) (cdr x)))))
2339
8fad25c2
AW
2340 (define cvt
2341 (lambda (p n ids)
2342 (if (id? p)
2343 (cond
2344 ((bound-id-member? p keys)
2345 (values (vector 'free-id p) ids))
2346 ((free-id=? p #'_)
2347 (values '_ ids))
2348 (else
2349 (values 'any (cons (cons p n) ids))))
2350 (syntax-case p ()
2351 ((x dots)
2352 (ellipsis? (syntax dots))
2353 (call-with-values
2354 (lambda () (cvt (syntax x) (fx+ n 1) ids))
2355 (lambda (p ids)
2356 (values (if (eq? p 'any) 'each-any (vector 'each p))
2357 ids))))
0ed9680f 2358 ((x dots . ys)
8fad25c2
AW
2359 (ellipsis? (syntax dots))
2360 (call-with-values
0ed9680f 2361 (lambda () (cvt* (syntax ys) n ids))
8fad25c2
AW
2362 (lambda (ys ids)
2363 (call-with-values
2364 (lambda () (cvt (syntax x) (+ n 1) ids))
2365 (lambda (x ids)
0ed9680f
SIT
2366 (call-with-values
2367 (lambda () (v-reverse ys))
2368 (lambda (ys e)
2369 (values `#(each+ ,x ,ys ,e)
2370 ids))))))))
8fad25c2
AW
2371 ((x . y)
2372 (call-with-values
2373 (lambda () (cvt (syntax y) n ids))
2374 (lambda (y ids)
2375 (call-with-values
2376 (lambda () (cvt (syntax x) n ids))
2377 (lambda (x ids)
2378 (values (cons x y) ids))))))
2379 (() (values '() ids))
2380 (#(x ...)
2381 (call-with-values
2382 (lambda () (cvt (syntax (x ...)) n ids))
2383 (lambda (p ids) (values (vector 'vector p) ids))))
2384 (x (values (vector 'atom (strip p empty-wrap)) ids))))))
2385 (cvt pattern 0 '())))
2386
2387 (define build-dispatch-call
2388 (lambda (pvars exp y r mod)
2389 (let ((ids (map car pvars)) (levels (map cdr pvars)))
2390 (let ((labels (gen-labels ids)) (new-vars (map gen-var ids)))
2391 (build-application no-source
2392 (build-primref no-source 'apply)
2393 (list (build-simple-lambda no-source (map syntax->datum ids) #f new-vars '()
78a47455
AW
2394 (expand exp
2395 (extend-env
2396 labels
2397 (map (lambda (var level)
2398 (make-binding 'syntax `(,var . ,level)))
2399 new-vars
2400 (map cdr pvars))
2401 r)
2402 (make-binding-wrap ids labels empty-wrap)
2403 mod))
8fad25c2
AW
2404 y))))))
2405
2406 (define gen-clause
2407 (lambda (x keys clauses r pat fender exp mod)
2408 (call-with-values
2409 (lambda () (convert-pattern pat keys))
2410 (lambda (p pvars)
2411 (cond
2412 ((not (distinct-bound-ids? (map car pvars)))
2413 (syntax-violation 'syntax-case "duplicate pattern variable" pat))
2414 ((not (and-map (lambda (x) (not (ellipsis? (car x)))) pvars))
2415 (syntax-violation 'syntax-case "misplaced ellipsis" pat))
2416 (else
2417 (let ((y (gen-var 'tmp)))
2418 ;; fat finger binding and references to temp variable y
2419 (build-application no-source
2420 (build-simple-lambda no-source (list 'tmp) #f (list y) '()
2421 (let ((y (build-lexical-reference 'value no-source
2422 'tmp y)))
2423 (build-conditional no-source
2424 (syntax-case fender ()
2425 (#t y)
2426 (_ (build-conditional no-source
2427 y
2428 (build-dispatch-call pvars fender y r mod)
2429 (build-data no-source #f))))
2430 (build-dispatch-call pvars exp y r mod)
2431 (gen-syntax-case x keys clauses r mod))))
2432 (list (if (eq? p 'any)
2433 (build-application no-source
2434 (build-primref no-source 'list)
2435 (list x))
2436 (build-application no-source
2437 (build-primref no-source '$sc-dispatch)
2438 (list x (build-data no-source p)))))))))))))
2439
2440 (define gen-syntax-case
2441 (lambda (x keys clauses r mod)
2442 (if (null? clauses)
2443 (build-application no-source
2444 (build-primref no-source 'syntax-violation)
2445 (list (build-data no-source #f)
2446 (build-data no-source
2447 "source expression failed to match any pattern")
2448 x))
2449 (syntax-case (car clauses) ()
2450 ((pat exp)
2451 (if (and (id? #'pat)
2452 (and-map (lambda (x) (not (free-id=? #'pat x)))
2453 (cons #'(... ...) keys)))
2454 (if (free-id=? #'pad #'_)
78a47455 2455 (expand #'exp r empty-wrap mod)
8fad25c2
AW
2456 (let ((labels (list (gen-label)))
2457 (var (gen-var #'pat)))
2458 (build-application no-source
2459 (build-simple-lambda
2460 no-source (list (syntax->datum #'pat)) #f (list var)
2461 '()
78a47455
AW
2462 (expand #'exp
2463 (extend-env labels
2464 (list (make-binding 'syntax `(,var . 0)))
2465 r)
2466 (make-binding-wrap #'(pat)
2467 labels empty-wrap)
2468 mod))
8fad25c2
AW
2469 (list x))))
2470 (gen-clause x keys (cdr clauses) r
2471 #'pat #t #'exp mod)))
2472 ((pat fender exp)
2473 (gen-clause x keys (cdr clauses) r
2474 #'pat #'fender #'exp mod))
2475 (_ (syntax-violation 'syntax-case "invalid clause"
2476 (car clauses)))))))
2477
2478 (lambda (e r w s mod)
2479 (let ((e (source-wrap e w s mod)))
2480 (syntax-case e ()
2481 ((_ val (key ...) m ...)
2482 (if (and-map (lambda (x) (and (id? x) (not (ellipsis? x))))
2483 #'(key ...))
2484 (let ((x (gen-var 'tmp)))
2485 ;; fat finger binding and references to temp variable x
2486 (build-application s
2487 (build-simple-lambda no-source (list 'tmp) #f (list x) '()
2488 (gen-syntax-case (build-lexical-reference 'value no-source
2489 'tmp x)
2490 #'(key ...) #'(m ...)
2491 r
2492 mod))
78a47455 2493 (list (expand #'val r empty-wrap mod))))
8fad25c2
AW
2494 (syntax-violation 'syntax-case "invalid literals list" e))))))))
2495
78a47455 2496 ;; The portable macroexpand seeds expand-top's mode m with 'e (for
8fad25c2
AW
2497 ;; evaluating) and esew (which stands for "eval syntax expanders
2498 ;; when") with '(eval). In Chez Scheme, m is set to 'c instead of e
2499 ;; if we are compiling a file, and esew is set to
2500 ;; (eval-syntactic-expanders-when), which defaults to the list
2501 ;; '(compile load eval). This means that, by default, top-level
2502 ;; syntactic definitions are evaluated immediately after they are
2503 ;; expanded, and the expanded definitions are also residualized into
2504 ;; the object file if we are compiling a file.
2505 (set! macroexpand
2506 (lambda* (x #:optional (m 'e) (esew '(eval)))
78a47455
AW
2507 (expand-top-sequence (list x) null-env top-wrap #f m esew
2508 (cons 'hygiene (module-name (current-module))))))
8fad25c2
AW
2509
2510 (set! identifier?
2511 (lambda (x)
2512 (nonsymbol-id? x)))
2513
2514 (set! datum->syntax
2515 (lambda (id datum)
2516 (make-syntax-object datum (syntax-object-wrap id)
2517 (syntax-object-module id))))
2518
2519 (set! syntax->datum
2520 ;; accepts any object, since syntax objects may consist partially
2521 ;; or entirely of unwrapped, nonsymbolic data
2522 (lambda (x)
2523 (strip x empty-wrap)))
2524
2525 (set! syntax-source
2526 (lambda (x) (source-annotation x)))
2527
2528 (set! generate-temporaries
2529 (lambda (ls)
2530 (arg-check list? ls 'generate-temporaries)
933c6eb7 2531 (let ((mod (cons 'hygiene (module-name (current-module)))))
f9685f43 2532 (map (lambda (x) (wrap (gensym "t-") top-wrap mod)) ls))))
8fad25c2
AW
2533
2534 (set! free-identifier=?
2535 (lambda (x y)
2536 (arg-check nonsymbol-id? x 'free-identifier=?)
2537 (arg-check nonsymbol-id? y 'free-identifier=?)
2538 (free-id=? x y)))
2539
2540 (set! bound-identifier=?
2541 (lambda (x y)
2542 (arg-check nonsymbol-id? x 'bound-identifier=?)
2543 (arg-check nonsymbol-id? y 'bound-identifier=?)
2544 (bound-id=? x y)))
2545
2546 (set! syntax-violation
8f1870f2 2547 (lambda* (who message form #:optional subform)
8fad25c2
AW
2548 (arg-check (lambda (x) (or (not x) (string? x) (symbol? x)))
2549 who 'syntax-violation)
2550 (arg-check string? message 'syntax-violation)
8f1870f2 2551 (throw 'syntax-error who message
bbd1281a
MW
2552 (or (source-annotation subform)
2553 (source-annotation form))
8f1870f2
AW
2554 (strip form empty-wrap)
2555 (and subform (strip subform empty-wrap)))))
8fad25c2 2556
68fcf711
AW
2557 (let ()
2558 (define (syntax-module id)
2559 (arg-check nonsymbol-id? id 'syntax-module)
2560 (cdr (syntax-object-module id)))
2561
2562 (define (syntax-local-binding id)
2563 (arg-check nonsymbol-id? id 'syntax-local-binding)
2564 (with-transformer-environment
2565 (lambda (e r w s rib mod)
2566 (define (strip-anti-mark w)
2567 (let ((ms (wrap-marks w)) (s (wrap-subst w)))
2568 (if (and (pair? ms) (eq? (car ms) the-anti-mark))
2569 ;; output is from original text
2570 (make-wrap (cdr ms) (if rib (cons rib (cdr s)) (cdr s)))
2571 ;; output introduced by macro
2572 (make-wrap ms (if rib (cons rib s) s)))))
2573 (call-with-values (lambda ()
2574 (resolve-identifier
2575 (syntax-object-expression id)
2576 (strip-anti-mark (syntax-object-wrap id))
2577 r
2578 (syntax-object-module id)))
2579 (lambda (type value mod)
2580 (case type
2581 ((lexical) (values 'lexical value))
2582 ((macro) (values 'macro value))
2583 ((syntax) (values 'pattern-variable value))
2584 ((displaced-lexical) (values 'displaced-lexical #f))
2585 ((global) (values 'global (cons value (cdr mod))))
2586 (else (values 'other #f))))))))
2587
2588 (define (syntax-locally-bound-identifiers id)
2589 (arg-check nonsymbol-id? id 'syntax-locally-bound-identifiers)
2590 (locally-bound-identifiers (syntax-object-wrap id)
2591 (syntax-object-module id)))
2592
2593 ;; Using define! instead of set! to avoid warnings at
2594 ;; compile-time, after the variables are stolen away into (system
2595 ;; syntax). See the end of boot-9.scm.
2596 ;;
2597 (define! 'syntax-module syntax-module)
2598 (define! 'syntax-local-binding syntax-local-binding)
2599 (define! 'syntax-locally-bound-identifiers syntax-locally-bound-identifiers))
2600
8fad25c2
AW
2601 ;; $sc-dispatch expects an expression and a pattern. If the expression
2602 ;; matches the pattern a list of the matching expressions for each
2603 ;; "any" is returned. Otherwise, #f is returned. (This use of #f will
2604 ;; not work on r4rs implementations that violate the ieee requirement
2605 ;; that #f and () be distinct.)
2606
2607 ;; The expression is matched with the pattern as follows:
2608
2609 ;; pattern: matches:
2610 ;; () empty list
2611 ;; any anything
2612 ;; (<pattern>1 . <pattern>2) (<pattern>1 . <pattern>2)
2613 ;; each-any (any*)
2614 ;; #(free-id <key>) <key> with free-identifier=?
2615 ;; #(each <pattern>) (<pattern>*)
2616 ;; #(each+ p1 (p2_1 ... p2_n) p3) (p1* (p2_n ... p2_1) . p3)
2617 ;; #(vector <pattern>) (list->vector <pattern>)
2618 ;; #(atom <object>) <object> with "equal?"
2619
2620 ;; Vector cops out to pair under assumption that vectors are rare. If
2621 ;; not, should convert to:
2622 ;; #(vector <pattern>*) #(<pattern>*)
2623
2624 (let ()
2625
2626 (define match-each
2627 (lambda (e p w mod)
aa3819aa
AR
2628 (cond
2629 ((pair? e)
8fad25c2
AW
2630 (let ((first (match (car e) p w '() mod)))
2631 (and first
2632 (let ((rest (match-each (cdr e) p w mod)))
2633 (and rest (cons first rest))))))
2634 ((null? e) '())
aa3819aa 2635 ((syntax-object? e)
8fad25c2
AW
2636 (match-each (syntax-object-expression e)
2637 p
2638 (join-wraps w (syntax-object-wrap e))
2639 (syntax-object-module e)))
2640 (else #f))))
2641
2642 (define match-each+
2643 (lambda (e x-pat y-pat z-pat w r mod)
2644 (let f ((e e) (w w))
c3ae0ed4 2645 (cond
8fad25c2
AW
2646 ((pair? e)
2647 (call-with-values (lambda () (f (cdr e) w))
2648 (lambda (xr* y-pat r)
2649 (if r
2650 (if (null? y-pat)
2651 (let ((xr (match (car e) x-pat w '() mod)))
2652 (if xr
2653 (values (cons xr xr*) y-pat r)
2654 (values #f #f #f)))
2655 (values
2656 '()
2657 (cdr y-pat)
2658 (match (car e) (car y-pat) w r mod)))
2659 (values #f #f #f)))))
c3ae0ed4 2660 ((syntax-object? e)
8fad25c2
AW
2661 (f (syntax-object-expression e) (join-wraps w e)))
2662 (else
2663 (values '() y-pat (match e z-pat w r mod)))))))
2664
2665 (define match-each-any
2666 (lambda (e w mod)
2667 (cond
2668 ((pair? e)
2669 (let ((l (match-each-any (cdr e) w mod)))
2670 (and l (cons (wrap (car e) w mod) l))))
2671 ((null? e) '())
2672 ((syntax-object? e)
2673 (match-each-any (syntax-object-expression e)
2674 (join-wraps w (syntax-object-wrap e))
2675 mod))
2676 (else #f))))
2677
2678 (define match-empty
2679 (lambda (p r)
2680 (cond
2681 ((null? p) r)
2682 ((eq? p '_) r)
2683 ((eq? p 'any) (cons '() r))
2684 ((pair? p) (match-empty (car p) (match-empty (cdr p) r)))
2685 ((eq? p 'each-any) (cons '() r))
2686 (else
2687 (case (vector-ref p 0)
2688 ((each) (match-empty (vector-ref p 1) r))
2689 ((each+) (match-empty (vector-ref p 1)
2690 (match-empty
2691 (reverse (vector-ref p 2))
2692 (match-empty (vector-ref p 3) r))))
2693 ((free-id atom) r)
2694 ((vector) (match-empty (vector-ref p 1) r)))))))
2695
2696 (define combine
2697 (lambda (r* r)
2698 (if (null? (car r*))
2699 r
2700 (cons (map car r*) (combine (map cdr r*) r)))))
2701
2702 (define match*
2703 (lambda (e p w r mod)
2704 (cond
2705 ((null? p) (and (null? e) r))
2706 ((pair? p)
2707 (and (pair? e) (match (car e) (car p) w
2708 (match (cdr e) (cdr p) w r mod)
2709 mod)))
2710 ((eq? p 'each-any)
2711 (let ((l (match-each-any e w mod))) (and l (cons l r))))
2712 (else
2713 (case (vector-ref p 0)
2714 ((each)
2715 (if (null? e)
2716 (match-empty (vector-ref p 1) r)
2717 (let ((l (match-each e (vector-ref p 1) w mod)))
2718 (and l
2719 (let collect ((l l))
2720 (if (null? (car l))
2721 r
2722 (cons (map car l) (collect (map cdr l)))))))))
2723 ((each+)
2724 (call-with-values
2725 (lambda ()
2726 (match-each+ e (vector-ref p 1) (vector-ref p 2) (vector-ref p 3) w r mod))
2727 (lambda (xr* y-pat r)
2728 (and r
2729 (null? y-pat)
2730 (if (null? xr*)
2731 (match-empty (vector-ref p 1) r)
2732 (combine xr* r))))))
2733 ((free-id) (and (id? e) (free-id=? (wrap e w mod) (vector-ref p 1)) r))
2734 ((atom) (and (equal? (vector-ref p 1) (strip e w)) r))
2735 ((vector)
2736 (and (vector? e)
2737 (match (vector->list e) (vector-ref p 1) w r mod))))))))
2738
2739 (define match
2740 (lambda (e p w r mod)
2741 (cond
2742 ((not r) #f)
2743 ((eq? p '_) r)
2744 ((eq? p 'any) (cons (wrap e w mod) r))
2745 ((syntax-object? e)
2746 (match*
2747 (syntax-object-expression e)
2748 p
2749 (join-wraps w (syntax-object-wrap e))
2750 r
2751 (syntax-object-module e)))
2752 (else (match* e p w r mod)))))
2753
2754 (set! $sc-dispatch
2755 (lambda (e p)
2756 (cond
2757 ((eq? p 'any) (list e))
2758 ((eq? p '_) '())
2759 ((syntax-object? e)
2760 (match* (syntax-object-expression e)
2761 p (syntax-object-wrap e) '() (syntax-object-module e)))
2762 (else (match* e p empty-wrap '() #f))))))))
80f225df 2763
a63812a2
JB
2764
2765(define-syntax with-syntax
2766 (lambda (x)
2767 (syntax-case x ()
2768 ((_ () e1 e2 ...)
f929b9e5 2769 #'(let () e1 e2 ...))
a63812a2 2770 ((_ ((out in)) e1 e2 ...)
f929b9e5
AW
2771 #'(syntax-case in ()
2772 (out (let () e1 e2 ...))))
a63812a2 2773 ((_ ((out in) ...) e1 e2 ...)
c3ae0ed4 2774 #'(syntax-case (list in ...) ()
f929b9e5 2775 ((out ...) (let () e1 e2 ...)))))))
a63812a2
JB
2776
2777(define-syntax syntax-rules
2778 (lambda (x)
2779 (syntax-case x ()
2780 ((_ (k ...) ((keyword . pattern) template) ...)
c3ae0ed4 2781 #'(lambda (x)
a5e95abe 2782 ;; embed patterns as procedure metadata
44d65b23
AW
2783 #((macro-type . syntax-rules)
2784 (patterns pattern ...))
2785 (syntax-case x (k ...)
2786 ((dummy . pattern) #'template)
2787 ...)))
2788 ((_ (k ...) docstring ((keyword . pattern) template) ...)
2789 (string? (syntax->datum #'docstring))
2790 #'(lambda (x)
2791 ;; the same, but allow a docstring
2792 docstring
a5e95abe
AW
2793 #((macro-type . syntax-rules)
2794 (patterns pattern ...))
c3ae0ed4
AW
2795 (syntax-case x (k ...)
2796 ((dummy . pattern) #'template)
2797 ...))))))
a63812a2 2798
dea14eb9
AW
2799(define-syntax define-syntax-rule
2800 (lambda (x)
2801 (syntax-case x ()
2802 ((_ (name . pattern) template)
2803 #'(define-syntax name
2804 (syntax-rules ()
2805 ((_ . pattern) template))))
2806 ((_ (name . pattern) docstring template)
2807 (string? (syntax->datum #'docstring))
2808 #'(define-syntax name
2809 (syntax-rules ()
2810 docstring
2811 ((_ . pattern) template)))))))
2812
a63812a2
JB
2813(define-syntax let*
2814 (lambda (x)
2815 (syntax-case x ()
2816 ((let* ((x v) ...) e1 e2 ...)
c3ae0ed4
AW
2817 (and-map identifier? #'(x ...))
2818 (let f ((bindings #'((x v) ...)))
a63812a2 2819 (if (null? bindings)
c3ae0ed4 2820 #'(let () e1 e2 ...)
a63812a2
JB
2821 (with-syntax ((body (f (cdr bindings)))
2822 (binding (car bindings)))
c3ae0ed4 2823 #'(let (binding) body))))))))
a63812a2
JB
2824
2825(define-syntax do
2826 (lambda (orig-x)
2827 (syntax-case orig-x ()
2828 ((_ ((var init . step) ...) (e0 e1 ...) c ...)
2829 (with-syntax (((step ...)
2830 (map (lambda (v s)
c3ae0ed4
AW
2831 (syntax-case s ()
2832 (() v)
2833 ((e) #'e)
2834 (_ (syntax-violation
2835 'do "bad step expression"
2836 orig-x s))))
2837 #'(var ...)
2838 #'(step ...))))
2839 (syntax-case #'(e1 ...) ()
2840 (() #'(let doloop ((var init) ...)
2841 (if (not e0)
2842 (begin c ... (doloop step ...)))))
2843 ((e1 e2 ...)
2844 #'(let doloop ((var init) ...)
2845 (if e0
2846 (begin e1 e2 ...)
2847 (begin c ... (doloop step ...)))))))))))
a63812a2
JB
2848
2849(define-syntax quasiquote
0f550375
AW
2850 (let ()
2851 (define (quasi p lev)
2852 (syntax-case p (unquote quasiquote)
2853 ((unquote p)
2854 (if (= lev 0)
2855 #'("value" p)
2856 (quasicons #'("quote" unquote) (quasi #'(p) (- lev 1)))))
2857 ((quasiquote p) (quasicons #'("quote" quasiquote) (quasi #'(p) (+ lev 1))))
2858 ((p . q)
2859 (syntax-case #'p (unquote unquote-splicing)
2860 ((unquote p ...)
2861 (if (= lev 0)
2862 (quasilist* #'(("value" p) ...) (quasi #'q lev))
2863 (quasicons
2864 (quasicons #'("quote" unquote) (quasi #'(p ...) (- lev 1)))
2865 (quasi #'q lev))))
2866 ((unquote-splicing p ...)
2867 (if (= lev 0)
2868 (quasiappend #'(("value" p) ...) (quasi #'q lev))
2869 (quasicons
2870 (quasicons #'("quote" unquote-splicing) (quasi #'(p ...) (- lev 1)))
2871 (quasi #'q lev))))
2872 (_ (quasicons (quasi #'p lev) (quasi #'q lev)))))
2873 (#(x ...) (quasivector (vquasi #'(x ...) lev)))
2874 (p #'("quote" p))))
2875 (define (vquasi p lev)
2876 (syntax-case p ()
2877 ((p . q)
2878 (syntax-case #'p (unquote unquote-splicing)
2879 ((unquote p ...)
2880 (if (= lev 0)
2881 (quasilist* #'(("value" p) ...) (vquasi #'q lev))
2882 (quasicons
2883 (quasicons #'("quote" unquote) (quasi #'(p ...) (- lev 1)))
2884 (vquasi #'q lev))))
2885 ((unquote-splicing p ...)
2886 (if (= lev 0)
2887 (quasiappend #'(("value" p) ...) (vquasi #'q lev))
2888 (quasicons
2889 (quasicons
2890 #'("quote" unquote-splicing)
2891 (quasi #'(p ...) (- lev 1)))
2892 (vquasi #'q lev))))
2893 (_ (quasicons (quasi #'p lev) (vquasi #'q lev)))))
2894 (() #'("quote" ()))))
2895 (define (quasicons x y)
2896 (with-syntax ((x x) (y y))
2897 (syntax-case #'y ()
2898 (("quote" dy)
2899 (syntax-case #'x ()
2900 (("quote" dx) #'("quote" (dx . dy)))
2901 (_ (if (null? #'dy) #'("list" x) #'("list*" x y)))))
2902 (("list" . stuff) #'("list" x . stuff))
2903 (("list*" . stuff) #'("list*" x . stuff))
2904 (_ #'("list*" x y)))))
2905 (define (quasiappend x y)
2906 (syntax-case y ()
2907 (("quote" ())
2908 (cond
2909 ((null? x) #'("quote" ()))
2910 ((null? (cdr x)) (car x))
2911 (else (with-syntax (((p ...) x)) #'("append" p ...)))))
2912 (_
2913 (cond
2914 ((null? x) y)
2915 (else (with-syntax (((p ...) x) (y y)) #'("append" p ... y)))))))
2916 (define (quasilist* x y)
2917 (let f ((x x))
2918 (if (null? x)
2919 y
2920 (quasicons (car x) (f (cdr x))))))
2921 (define (quasivector x)
2922 (syntax-case x ()
2923 (("quote" (x ...)) #'("quote" #(x ...)))
2924 (_
2925 (let f ((y x) (k (lambda (ls) #`("vector" #,@ls))))
2926 (syntax-case y ()
2927 (("quote" (y ...)) (k #'(("quote" y) ...)))
2928 (("list" y ...) (k #'(y ...)))
2929 (("list*" y ... z) (f #'z (lambda (ls) (k (append #'(y ...) ls)))))
2930 (else #`("list->vector" #,x)))))))
2931 (define (emit x)
2932 (syntax-case x ()
2933 (("quote" x) #''x)
2934 (("list" x ...) #`(list #,@(map emit #'(x ...))))
2935 ;; could emit list* for 3+ arguments if implementation supports
2936 ;; list*
2937 (("list*" x ... y)
2938 (let f ((x* #'(x ...)))
2939 (if (null? x*)
2940 (emit #'y)
2941 #`(cons #,(emit (car x*)) #,(f (cdr x*))))))
2942 (("append" x ...) #`(append #,@(map emit #'(x ...))))
2943 (("vector" x ...) #`(vector #,@(map emit #'(x ...))))
2944 (("list->vector" x) #`(list->vector #,(emit #'x)))
2945 (("value" x) #'x)))
a63812a2 2946 (lambda (x)
0f550375
AW
2947 (syntax-case x ()
2948 ;; convert to intermediate language, combining introduced (but
2949 ;; not unquoted source) quote expressions where possible and
2950 ;; choosing optimal construction code otherwise, then emit
2951 ;; Scheme code corresponding to the intermediate language forms.
2952 ((_ e) (emit (quasi #'e 0)))))))
a63812a2
JB
2953
2954(define-syntax include
2955 (lambda (x)
2956 (define read-file
2957 (lambda (fn k)
2958 (let ((p (open-input-file fn)))
df0f5295
LC
2959 (let f ((x (read p))
2960 (result '()))
a63812a2 2961 (if (eof-object? x)
df0f5295
LC
2962 (begin
2963 (close-input-port p)
2964 (reverse result))
2965 (f (read p)
2966 (cons (datum->syntax k x) result)))))))
a63812a2
JB
2967 (syntax-case x ()
2968 ((k filename)
c3ae0ed4 2969 (let ((fn (syntax->datum #'filename)))
9846796b 2970 (with-syntax (((exp ...) (read-file fn #'filename)))
c3ae0ed4 2971 #'(begin exp ...)))))))
a63812a2 2972
d89fae24
AW
2973(define-syntax include-from-path
2974 (lambda (x)
2975 (syntax-case x ()
2976 ((k filename)
2977 (let ((fn (syntax->datum #'filename)))
9846796b
AW
2978 (with-syntax ((fn (datum->syntax
2979 #'filename
2980 (or (%search-load-path fn)
2981 (syntax-violation 'include-from-path
2982 "file not found in path"
2983 x #'filename)))))
d89fae24
AW
2984 #'(include fn)))))))
2985
a63812a2 2986(define-syntax unquote
6a952e0e 2987 (lambda (x)
0f550375
AW
2988 (syntax-violation 'unquote
2989 "expression not valid outside of quasiquote"
2990 x)))
a63812a2
JB
2991
2992(define-syntax unquote-splicing
6a952e0e 2993 (lambda (x)
0f550375
AW
2994 (syntax-violation 'unquote-splicing
2995 "expression not valid outside of quasiquote"
2996 x)))
a63812a2
JB
2997
2998(define-syntax case
2999 (lambda (x)
3000 (syntax-case x ()
3001 ((_ e m1 m2 ...)
3002 (with-syntax
c3ae0ed4
AW
3003 ((body (let f ((clause #'m1) (clauses #'(m2 ...)))
3004 (if (null? clauses)
a63812a2 3005 (syntax-case clause (else)
c3ae0ed4 3006 ((else e1 e2 ...) #'(begin e1 e2 ...))
a63812a2 3007 (((k ...) e1 e2 ...)
c3ae0ed4
AW
3008 #'(if (memv t '(k ...)) (begin e1 e2 ...)))
3009 (_ (syntax-violation 'case "bad clause" x clause)))
3010 (with-syntax ((rest (f (car clauses) (cdr clauses))))
3011 (syntax-case clause (else)
3012 (((k ...) e1 e2 ...)
3013 #'(if (memv t '(k ...))
3014 (begin e1 e2 ...)
3015 rest))
3016 (_ (syntax-violation 'case "bad clause" x
3017 clause))))))))
3018 #'(let ((t e)) body))))))
a63812a2 3019
bfccdcd5
AW
3020(define (make-variable-transformer proc)
3021 (if (procedure? proc)
3022 (let ((trans (lambda (x)
3023 #((macro-type . variable-transformer))
3024 (proc x))))
3025 (set-procedure-property! trans 'variable-transformer #t)
3026 trans)
3027 (error "variable transformer not a procedure" proc)))
3028
a63812a2
JB
3029(define-syntax identifier-syntax
3030 (lambda (x)
bfccdcd5 3031 (syntax-case x (set!)
a63812a2 3032 ((_ e)
c3ae0ed4 3033 #'(lambda (x)
a5e95abe 3034 #((macro-type . identifier-syntax))
a63812a2
JB
3035 (syntax-case x ()
3036 (id
c3ae0ed4
AW
3037 (identifier? #'id)
3038 #'e)
a63812a2 3039 ((_ x (... ...))
bfccdcd5
AW
3040 #'(e x (... ...))))))
3041 ((_ (id exp1) ((set! var val) exp2))
3042 (and (identifier? #'id) (identifier? #'var))
3043 #'(make-variable-transformer
3044 (lambda (x)
3045 #((macro-type . variable-transformer))
3046 (syntax-case x (set!)
3047 ((set! var val) #'exp2)
3048 ((id x (... ...)) #'(exp1 x (... ...)))
3049 (id (identifier? #'id) #'exp1))))))))
97bc28b6
AW
3050
3051(define-syntax define*
64fa96ef
AW
3052 (lambda (x)
3053 (syntax-case x ()
3054 ((_ (id . args) b0 b1 ...)
3055 #'(define id (lambda* args b0 b1 ...)))
3056 ((_ id val) (identifier? #'x)
3057 #'(define id val)))))