Merge: nitvm: Basic blocks generation and SSA-algorithm
[nit.git] / src / semantize / typing.nit
1 # This file is part of NIT ( http://www.nitlanguage.org ).
2 #
3 # Copyright 2012 Jean Privat <jean@pryen.org>
4 #
5 # Licensed under the Apache License, Version 2.0 (the "License");
6 # you may not use this file except in compliance with the License.
7 # You may obtain a copy of the License at
8 #
9 # http://www.apache.org/licenses/LICENSE-2.0
10 #
11 # Unless required by applicable law or agreed to in writing, software
12 # distributed under the License is distributed on an "AS IS" BASIS,
13 # WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
14 # See the License for the specific language governing permissions and
15 # limitations under the License.
16
17 # Intraprocedural resolution of static types and OO-services
18 # By OO-services we mean message sending, attribute access, instantiation, etc.
19 module typing
20
21 import modelize
22 import local_var_init
23
24 redef class ToolContext
25 var typing_phase: Phase = new TypingPhase(self, [flow_phase, modelize_property_phase, local_var_init_phase])
26 end
27
28 private class TypingPhase
29 super Phase
30 redef fun process_npropdef(npropdef) do npropdef.do_typing(toolcontext.modelbuilder)
31 end
32
33 private class TypeVisitor
34 var modelbuilder: ModelBuilder
35
36 # The module of the analysis
37 # Used to correctly query the model
38 var mmodule: MModule
39
40 # The static type of the receiver
41 # Mainly used for type tests and type resolutions
42 var anchor: nullable MClassType = null
43
44 # The analyzed mclassdef
45 var mclassdef: nullable MClassDef = null
46
47 # The analyzed property
48 var mpropdef: nullable MPropDef
49
50 var selfvariable = new Variable("self")
51
52 # Is `self` use restricted?
53 # * no explicit `self`
54 # * method called on the implicit self must be top-level
55 # Currently only used for `new` factory since there is no valid receiver inside
56 var is_toplevel_context = false
57
58 init
59 do
60 var mpropdef = self.mpropdef
61
62 if mpropdef != null then
63 self.mpropdef = mpropdef
64 var mclassdef = mpropdef.mclassdef
65 self.mclassdef = mclassdef
66 self.anchor = mclassdef.bound_mtype
67
68 var mclass = mclassdef.mclass
69
70 var selfvariable = new Variable("self")
71 self.selfvariable = selfvariable
72 selfvariable.declared_type = mclass.mclass_type
73
74 var mprop = mpropdef.mproperty
75 if mprop isa MMethod and mprop.is_new then
76 is_toplevel_context = true
77 end
78 end
79 end
80
81 fun anchor_to(mtype: MType): MType
82 do
83 var anchor = anchor
84 if anchor == null then
85 assert not mtype.need_anchor
86 return mtype
87 end
88 return mtype.anchor_to(mmodule, anchor)
89 end
90
91 fun is_subtype(sub, sup: MType): Bool
92 do
93 return sub.is_subtype(mmodule, anchor, sup)
94 end
95
96 fun resolve_for(mtype, subtype: MType, for_self: Bool): MType
97 do
98 #print "resolve_for {mtype} sub={subtype} forself={for_self} mmodule={mmodule} anchor={anchor}"
99 var res = mtype.resolve_for(subtype, anchor, mmodule, not for_self)
100 return res
101 end
102
103 # Check that `sub` is a subtype of `sup`.
104 # If `sub` is not a valid suptype, then display an error on `node` an return null.
105 # If `sub` is a safe subtype of `sup` then return `sub`.
106 # If `sub` is an unsafe subtype (ie an implicit cast is required), then return `sup`.
107 #
108 # The point of the return type is to determinate the usable type on an expression when `autocast` is true:
109 # If the suptype is safe, then the return type is the one on the expression typed by `sub`.
110 # Is the subtype is unsafe, then the return type is the one of an implicit cast on `sup`.
111 fun check_subtype(node: ANode, sub, sup: MType, autocast: Bool): nullable MType
112 do
113 if self.is_subtype(sub, sup) then return sub
114 if autocast and self.is_subtype(sub, self.anchor_to(sup)) then
115 # FIXME workaround to the current unsafe typing policy. To remove once fixed virtual types exists.
116 #node.debug("Unsafe typing: expected {sup}, got {sub}")
117 return sup
118 end
119 if sub.need_anchor then
120 var u = anchor_to(sub)
121 self.modelbuilder.error(node, "Type Error: expected `{sup}`, got `{sub}: {u}`.")
122 else
123 self.modelbuilder.error(node, "Type Error: expected `{sup}`, got `{sub}`.")
124 end
125 return null
126 end
127
128 # Visit an expression and do not care about the return value
129 fun visit_stmt(nexpr: nullable AExpr)
130 do
131 if nexpr == null then return
132 nexpr.accept_typing(self)
133 end
134
135 # Visit an expression and expects that it is not a statement
136 # Return the type of the expression
137 # Display an error and return null if:
138 # * the type cannot be determined or
139 # * `nexpr` is a statement
140 fun visit_expr(nexpr: AExpr): nullable MType
141 do
142 nexpr.accept_typing(self)
143 var mtype = nexpr.mtype
144 if mtype != null then return mtype
145 if not nexpr.is_typed then
146 if not self.modelbuilder.toolcontext.error_count > 0 then # check that there is really an error
147 if self.modelbuilder.toolcontext.verbose_level > 1 then
148 nexpr.debug("No return type but no error.")
149 end
150 end
151 return null # forward error
152 end
153 self.error(nexpr, "Error: expected an expression.")
154 return null
155 end
156
157 # Visit an expression and expect its static type is a least a `sup`
158 # Return the type of the expression or null if
159 # * the type cannot be determined or
160 # * `nexpr` is a statement or
161 # * `nexpr` is not a `sup`
162 fun visit_expr_subtype(nexpr: AExpr, sup: nullable MType): nullable MType
163 do
164 var sub = visit_expr(nexpr)
165 if sub == null then return null # Forward error
166
167 if sup == null then return null # Forward error
168
169 var res = check_subtype(nexpr, sub, sup, true)
170 if res != sub then
171 nexpr.implicit_cast_to = res
172 end
173 return res
174 end
175
176 # Visit an expression and expect its static type is a `Bool`
177 # Return the type of the expression or null if
178 # * the type cannot be determined or
179 # * `nexpr` is a statement or
180 # * `nexpr` is not a `Bool`
181 fun visit_expr_bool(nexpr: AExpr): nullable MType
182 do
183 return self.visit_expr_subtype(nexpr, self.type_bool(nexpr))
184 end
185
186
187 fun visit_expr_cast(node: ANode, nexpr: AExpr, ntype: AType): nullable MType
188 do
189 var sub = visit_expr(nexpr)
190 if sub == null then return null # Forward error
191
192 var sup = self.resolve_mtype(ntype)
193 if sup == null then return null # Forward error
194
195 if sup == sub then
196 self.modelbuilder.warning(node, "useless-type-test", "Warning: expression is already a `{sup}`.")
197 else if self.is_subtype(sub, sup) then
198 self.modelbuilder.warning(node, "useless-type-test", "Warning: expression is already a `{sup}` since it is a `{sub}`.")
199 end
200 return sup
201 end
202
203 # Can `mtype` be null (up to the current knowledge)?
204 fun can_be_null(mtype: MType): Bool
205 do
206 if mtype isa MNullableType or mtype isa MNullType then return true
207 if mtype isa MFormalType then
208 var x = anchor_to(mtype)
209 if x isa MNullableType or x isa MNullType then return true
210 end
211 return false
212 end
213
214 # Check that `mtype` can be null (up to the current knowledge).
215 #
216 # If not then display a `useless-null-test` warning on node and return false.
217 # Else return true.
218 fun check_can_be_null(anode: ANode, mtype: MType): Bool
219 do
220 if can_be_null(mtype) then return true
221
222 if mtype isa MFormalType then
223 var res = anchor_to(mtype)
224 modelbuilder.warning(anode, "useless-null-test", "Warning: expression is not null, since it is a `{mtype}: {res}`.")
225 else
226 modelbuilder.warning(anode, "useless-null-test", "Warning: expression is not null, since it is a `{mtype}`.")
227 end
228 return false
229 end
230
231 # Special verification on != and == for null
232 # Return true
233 fun null_test(anode: ABinopExpr)
234 do
235 var mtype = anode.n_expr.mtype
236 var mtype2 = anode.n_expr2.mtype
237
238 if mtype == null or mtype2 == null then return
239
240 if not mtype2 isa MNullType then return
241
242 # Check of useless null
243 if not check_can_be_null(anode.n_expr, mtype) then return
244
245 if mtype isa MNullType then
246 # Because of type adaptation, we cannot just stop here
247 # so return use `null` as a bottom type that will be merged easily (cf) `merge_types`
248 mtype = null
249 else
250 mtype = mtype.as_notnull
251 end
252
253 # Check for type adaptation
254 var variable = anode.n_expr.its_variable
255 if variable == null then return
256
257 # One is null (mtype2 see above) the other is not null
258 if anode isa AEqExpr then
259 anode.after_flow_context.when_true.set_var(self, variable, mtype2)
260 anode.after_flow_context.when_false.set_var(self, variable, mtype)
261 else if anode isa ANeExpr then
262 anode.after_flow_context.when_false.set_var(self, variable, mtype2)
263 anode.after_flow_context.when_true.set_var(self, variable, mtype)
264 else
265 abort
266 end
267 end
268
269 fun try_get_mproperty_by_name2(anode: ANode, mtype: MType, name: String): nullable MProperty
270 do
271 return self.modelbuilder.try_get_mproperty_by_name2(anode, mmodule, mtype, name)
272 end
273
274 fun resolve_mtype(node: AType): nullable MType
275 do
276 return self.modelbuilder.resolve_mtype(mmodule, mclassdef, node)
277 end
278
279 fun try_get_mclass(node: ANode, name: String): nullable MClass
280 do
281 var mclass = modelbuilder.try_get_mclass_by_name(node, mmodule, name)
282 return mclass
283 end
284
285 fun get_mclass(node: ANode, name: String): nullable MClass
286 do
287 var mclass = modelbuilder.get_mclass_by_name(node, mmodule, name)
288 return mclass
289 end
290
291 fun type_bool(node: ANode): nullable MType
292 do
293 var mclass = self.get_mclass(node, "Bool")
294 if mclass == null then return null
295 return mclass.mclass_type
296 end
297
298 fun get_method(node: ANode, recvtype: MType, name: String, recv_is_self: Bool): nullable CallSite
299 do
300 var unsafe_type = self.anchor_to(recvtype)
301
302 #debug("recv: {recvtype} (aka {unsafe_type})")
303 if recvtype isa MNullType then
304 var objclass = get_mclass(node, "Object")
305 if objclass == null then return null # Forward error
306 unsafe_type = objclass.mclass_type
307 end
308
309 var mproperty = self.try_get_mproperty_by_name2(node, unsafe_type, name)
310 if name == "new" and mproperty == null then
311 name = "init"
312 mproperty = self.try_get_mproperty_by_name2(node, unsafe_type, name)
313 end
314
315 if mproperty == null then
316 if recv_is_self then
317 self.modelbuilder.error(node, "Error: method or variable `{name}` unknown in `{recvtype}`.")
318 else if recvtype.need_anchor then
319 self.modelbuilder.error(node, "Error: method `{name}` does not exists in `{recvtype}: {unsafe_type}`.")
320 else
321 self.modelbuilder.error(node, "Error: method `{name}` does not exists in `{recvtype}`.")
322 end
323 return null
324 end
325
326 assert mproperty isa MMethod
327
328 # `null` only accepts some methods of object.
329 if recvtype isa MNullType and not mproperty.is_null_safe then
330 self.error(node, "Error: method `{name}` called on `null`.")
331 return null
332 else if unsafe_type isa MNullableType and not mproperty.is_null_safe then
333 modelbuilder.advice(node, "call-on-nullable", "Warning: method call on a nullable receiver `{recvtype}`.")
334 end
335
336 if is_toplevel_context and recv_is_self and not mproperty.is_toplevel then
337 error(node, "Error: `{name}` is not a top-level method, thus need a receiver.")
338 end
339 if not recv_is_self and mproperty.is_toplevel then
340 error(node, "Error: cannot call `{name}`, a top-level method, with a receiver.")
341 end
342
343 if mproperty.visibility == protected_visibility and not recv_is_self and self.mmodule.visibility_for(mproperty.intro_mclassdef.mmodule) < intrude_visibility and not modelbuilder.toolcontext.opt_ignore_visibility.value then
344 self.modelbuilder.error(node, "Error: method `{name}` is protected and can only accessed by `self`.")
345 return null
346 end
347
348 var info = mproperty.deprecation
349 if info != null and self.mpropdef.mproperty.deprecation == null then
350 var mdoc = info.mdoc
351 if mdoc != null then
352 self.modelbuilder.warning(node, "deprecated-method", "Deprecation Warning: method `{name}` is deprecated: {mdoc.content.first}")
353 else
354 self.modelbuilder.warning(node, "deprecated-method", "Deprecation Warning: method `{name}` is deprecated.")
355 end
356 end
357
358 var propdefs = mproperty.lookup_definitions(self.mmodule, unsafe_type)
359 var mpropdef
360 if propdefs.length == 0 then
361 self.modelbuilder.error(node, "Type Error: no definition found for property `{name}` in `{unsafe_type}`.")
362 return null
363 else if propdefs.length == 1 then
364 mpropdef = propdefs.first
365 else
366 self.modelbuilder.warning(node, "property-conflict", "Warning: conflicting property definitions for property `{name}` in `{unsafe_type}`: {propdefs.join(" ")}")
367 mpropdef = mproperty.intro
368 end
369
370
371 var msignature = mpropdef.new_msignature or else mpropdef.msignature
372 if msignature == null then return null # skip error
373 msignature = resolve_for(msignature, recvtype, recv_is_self).as(MSignature)
374
375 var erasure_cast = false
376 var rettype = mpropdef.msignature.return_mtype
377 if not recv_is_self and rettype != null then
378 rettype = rettype.undecorate
379 if rettype isa MParameterType then
380 var erased_rettype = msignature.return_mtype
381 assert erased_rettype != null
382 #node.debug("Erasure cast: Really a {rettype} but unsafely a {erased_rettype}")
383 erasure_cast = true
384 end
385 end
386
387 var callsite = new CallSite(node, recvtype, mmodule, anchor, recv_is_self, mproperty, mpropdef, msignature, erasure_cast)
388 return callsite
389 end
390
391 fun try_get_method(node: ANode, recvtype: MType, name: String, recv_is_self: Bool): nullable CallSite
392 do
393 var unsafe_type = self.anchor_to(recvtype)
394 var mproperty = self.try_get_mproperty_by_name2(node, unsafe_type, name)
395 if mproperty == null then return null
396 return get_method(node, recvtype, name, recv_is_self)
397 end
398
399
400 # Visit the expressions of args and check their conformity with the corresponding type in signature
401 # The point of this method is to handle varargs correctly
402 # Note: The signature must be correctly adapted
403 fun check_signature(node: ANode, args: Array[AExpr], mproperty: MProperty, msignature: MSignature): nullable SignatureMap
404 do
405 var vararg_rank = msignature.vararg_rank
406 if vararg_rank >= 0 then
407 if args.length < msignature.arity then
408 modelbuilder.error(node, "Error: expected at least {msignature.arity} argument(s) for `{mproperty}{msignature}`; got {args.length}. See introduction at `{mproperty.full_name}`.")
409 return null
410 end
411 else if args.length != msignature.arity then
412 if msignature.arity == msignature.min_arity then
413 modelbuilder.error(node, "Error: expected {msignature.arity} argument(s) for `{mproperty}{msignature}`; got {args.length}. See introduction at `{mproperty.full_name}`.")
414 return null
415 end
416 if args.length > msignature.arity then
417 modelbuilder.error(node, "Error: expected at most {msignature.arity} argument(s) for `{mproperty}{msignature}`; got {args.length}. See introduction at `{mproperty.full_name}`.")
418 return null
419 end
420 if args.length < msignature.min_arity then
421 modelbuilder.error(node, "Error: expected at least {msignature.min_arity} argument(s) for `{mproperty}{msignature}`; got {args.length}. See introduction at `{mproperty.full_name}`.")
422 return null
423 end
424 end
425
426 #debug("CALL {unsafe_type}.{msignature}")
427
428 # Associate each parameter to a position in the arguments
429 var map = new SignatureMap
430
431 var setted = args.length - msignature.min_arity
432
433 # First, handle named arguments
434 for i in [0..args.length[ do
435 var e = args[i]
436 if not e isa ANamedargExpr then continue
437 var name = e.n_id.text
438 var param = msignature.mparameter_by_name(name)
439 if param == null then
440 modelbuilder.error(e.n_id, "Error: no parameter `{name}` for `{mproperty}{msignature}`.")
441 return null
442 end
443 if not param.is_default then
444 modelbuilder.error(e, "Error: parameter `{name}` is not optional for `{mproperty}{msignature}`.")
445 return null
446 end
447 var idx = msignature.mparameters.index_of(param)
448 var prev = map.map.get_or_null(idx)
449 if prev != null then
450 modelbuilder.error(e, "Error: parameter `{name}` already associated with argument #{prev} for `{mproperty}{msignature}`.")
451 return null
452 end
453 map.map[idx] = i
454 setted -= 1
455 e.mtype = self.visit_expr_subtype(e.n_expr, param.mtype)
456 end
457
458 # Second, associate remaining parameters
459 var vararg_decl = args.length - msignature.arity
460 var j = 0
461 for i in [0..msignature.arity[ do
462 # Skip parameters associated by name
463 if map.map.has_key(i) then continue
464
465 var param = msignature.mparameters[i]
466 if param.is_default then
467 if setted > 0 then
468 setted -= 1
469 else
470 continue
471 end
472 end
473
474 # Search the next free argument: skip named arguments since they are already associated
475 while args[j] isa ANamedargExpr do j += 1
476 var arg = args[j]
477 map.map[i] = j
478 j += 1
479
480 if i == vararg_rank then
481 j += vararg_decl
482 continue # skip the vararg
483 end
484
485 var paramtype = param.mtype
486 self.visit_expr_subtype(arg, paramtype)
487 end
488
489 # Third, check varargs
490 if vararg_rank >= 0 then
491 var paramtype = msignature.mparameters[vararg_rank].mtype
492 var first = args[vararg_rank]
493 if vararg_decl == 0 then
494 var mclass = get_mclass(node, "Array")
495 if mclass == null then return null # Forward error
496 var array_mtype = mclass.get_mtype([paramtype])
497 if first isa AVarargExpr then
498 self.visit_expr_subtype(first.n_expr, array_mtype)
499 first.mtype = first.n_expr.mtype
500 else
501 # only one vararg, maybe `...` was forgot, so be gentle!
502 var t = visit_expr(first)
503 if t == null then return null # Forward error
504 if not is_subtype(t, paramtype) and is_subtype(t, array_mtype) then
505 # Not acceptable but could be a `...`
506 error(first, "Type Error: expected `{paramtype}`, got `{t}`. Is an ellipsis `...` missing on the argument?")
507 return null
508 end
509 # Standard valid vararg, finish the job
510 map.vararg_decl = 1
511 self.visit_expr_subtype(first, paramtype)
512 end
513 else
514 map.vararg_decl = vararg_decl + 1
515 for i in [vararg_rank..vararg_rank+vararg_decl] do
516 self.visit_expr_subtype(args[i], paramtype)
517 end
518 end
519 end
520
521 return map
522 end
523
524 fun error(node: ANode, message: String)
525 do
526 self.modelbuilder.toolcontext.error(node.hot_location, message)
527 end
528
529 fun get_variable(node: AExpr, variable: Variable): nullable MType
530 do
531 if not variable.is_adapted then return variable.declared_type
532
533 var flow = node.after_flow_context
534 if flow == null then return null # skip error
535
536 if flow.vars.has_key(variable) then
537 return flow.vars[variable]
538 else
539 #node.debug("*** START Collected for {variable}")
540 var mtypes = flow.collect_types(variable)
541 #node.debug("**** END Collected for {variable}")
542 if mtypes.length == 0 then
543 return variable.declared_type
544 else if mtypes.length == 1 then
545 return mtypes.first
546 else
547 var res = merge_types(node,mtypes)
548 if res == null then res = variable.declared_type
549 return res
550 end
551 end
552 end
553
554 # Some variables where type-adapted during the visit
555 var dirty = false
556
557 # Some loops had been visited during the visit
558 var has_loop = false
559
560 fun set_variable(node: AExpr, variable: Variable, mtype: nullable MType)
561 do
562 var flow = node.after_flow_context
563 assert flow != null
564
565 flow.set_var(self, variable, mtype)
566 end
567
568 fun merge_types(node: ANode, col: Array[nullable MType]): nullable MType
569 do
570 if col.length == 1 then return col.first
571 for t1 in col do
572 if t1 == null then continue # return null
573 var found = true
574 for t2 in col do
575 if t2 == null then continue # return null
576 if can_be_null(t2) and not can_be_null(t1) then
577 t1 = t1.as_nullable
578 end
579 if not is_subtype(t2, t1) then found = false
580 end
581 if found then
582 #print "merge {col.join(" ")} -> {t1}"
583 return t1
584 end
585 end
586 #self.modelbuilder.warning(node, "Type Error: {col.length} conflicting types: <{col.join(", ")}>")
587 return null
588 end
589 end
590
591 # Mapping between parameters and arguments in a call.
592 #
593 # Parameters and arguments are not stored in the class but referenced by their position (starting from 0)
594 #
595 # The point of this class is to help engine and other things to map arguments in the AST to parameters of the model.
596 class SignatureMap
597 # Associate a parameter to an argument
598 var map = new ArrayMap[Int, Int]
599
600 # The length of the vararg sequence
601 # 0 if no vararg or if reverse vararg (cf `AVarargExpr`)
602 var vararg_decl: Int = 0
603 end
604
605 # A specific method call site with its associated informations.
606 class CallSite
607 # The associated node for location
608 var node: ANode
609
610 # The static type of the receiver (possibly unresolved)
611 var recv: MType
612
613 # The module where the callsite is present
614 var mmodule: MModule
615
616 # The anchor to use with `recv` or `msignature`
617 var anchor: nullable MClassType
618
619 # Is the receiver self?
620 # If "for_self", virtual types of the signature are kept
621 # If "not_for_self", virtual type are erased
622 var recv_is_self: Bool
623
624 # The designated method
625 var mproperty: MMethod
626
627 # The statically designated method definition
628 # The most specif one, it is.
629 var mpropdef: MMethodDef
630
631 # The resolved signature for the receiver
632 var msignature: MSignature
633
634 # Is a implicit cast required on erasure typing policy?
635 var erasure_cast: Bool
636
637 # The mapping used on the call to associate arguments to parameters
638 # If null then no specific association is required.
639 var signaturemap: nullable SignatureMap = null
640
641 private fun check_signature(v: TypeVisitor, args: Array[AExpr]): Bool
642 do
643 var map = v.check_signature(self.node, args, self.mproperty, self.msignature)
644 signaturemap = map
645 return map == null
646 end
647 end
648
649 redef class Variable
650 # The declared type of the variable
651 var declared_type: nullable MType is writable
652
653 # Was the variable type-adapted?
654 # This is used to speedup type retrieval while it remains `false`
655 private var is_adapted = false
656 end
657
658 redef class FlowContext
659 # Store changes of types because of type evolution
660 private var vars = new HashMap[Variable, nullable MType]
661
662 # Adapt the variable to a static type
663 # Warning1: do not modify vars directly.
664 # Warning2: sub-flow may have cached a unadapted variable
665 private fun set_var(v: TypeVisitor, variable: Variable, mtype: nullable MType)
666 do
667 if variable.declared_type == mtype and not variable.is_adapted then return
668 if vars.has_key(variable) and vars[variable] == mtype then return
669 self.vars[variable] = mtype
670 v.dirty = true
671 variable.is_adapted = true
672 #node.debug "set {variable} to {mtype or else "X"}"
673 end
674
675 # Look in the flow and previous flow and collect all first reachable type adaptation of a local variable
676 private fun collect_types(variable: Variable): Array[nullable MType]
677 do
678 #node.debug "flow for {variable}"
679 var res = new Array[nullable MType]
680
681 var todo = [self]
682 var seen = new HashSet[FlowContext]
683 while not todo.is_empty do
684 var f = todo.pop
685 if f.is_unreachable then continue
686 if seen.has(f) then continue
687 seen.add f
688
689 if f.vars.has_key(variable) then
690 # Found something. Collect it and do not process further on this path
691 res.add f.vars[variable]
692 #f.node.debug "process {variable}: got {f.vars[variable] or else "X"}"
693 else
694 todo.add_all f.previous
695 todo.add_all f.loops
696 if f.previous.is_empty then
697 # Root flowcontext mean a parameter or something related
698 res.add variable.declared_type
699 #f.node.debug "root process {variable}: got {variable.declared_type or else "X"}"
700 end
701 end
702 end
703 #self.node.debug "##### end flow for {variable}: {res.join(" ")}"
704 return res
705 end
706 end
707
708 redef class APropdef
709 # The entry point of the whole typing analysis
710 fun do_typing(modelbuilder: ModelBuilder)
711 do
712 end
713
714 # The variable associated to the receiver (if any)
715 var selfvariable: nullable Variable
716 end
717
718 redef class AMethPropdef
719 redef fun do_typing(modelbuilder: ModelBuilder)
720 do
721 var nblock = self.n_block
722 if nblock == null then return
723
724 var mpropdef = self.mpropdef
725 if mpropdef == null then return # skip error
726
727 var v = new TypeVisitor(modelbuilder, mpropdef.mclassdef.mmodule, mpropdef)
728 self.selfvariable = v.selfvariable
729
730 var mmethoddef = self.mpropdef.as(not null)
731 var msignature = mmethoddef.msignature
732 if msignature == null then return # skip error
733 for i in [0..msignature.arity[ do
734 var mtype = msignature.mparameters[i].mtype
735 if msignature.vararg_rank == i then
736 var arrayclass = v.get_mclass(self.n_signature.n_params[i], "Array")
737 if arrayclass == null then return # Skip error
738 mtype = arrayclass.get_mtype([mtype])
739 end
740 var variable = self.n_signature.n_params[i].variable
741 assert variable != null
742 variable.declared_type = mtype
743 end
744
745 loop
746 v.dirty = false
747 v.visit_stmt(nblock)
748 if not v.has_loop or not v.dirty then break
749 end
750
751 if not nblock.after_flow_context.is_unreachable and msignature.return_mtype != null then
752 # We reach the end of the function without having a return, it is bad
753 v.error(self, "Error: reached end of function; expected `return` with a value.")
754 end
755 end
756 end
757
758 redef class AAttrPropdef
759 redef fun do_typing(modelbuilder: ModelBuilder)
760 do
761 if not has_value then return
762
763 var mpropdef = self.mpropdef
764 if mpropdef == null then return # skip error
765
766 var v = new TypeVisitor(modelbuilder, mpropdef.mclassdef.mmodule, mpropdef)
767 self.selfvariable = v.selfvariable
768
769 var nexpr = self.n_expr
770 if nexpr != null then
771 var mtype = self.mpropdef.static_mtype
772 v.visit_expr_subtype(nexpr, mtype)
773 end
774 var nblock = self.n_block
775 if nblock != null then
776 v.visit_stmt(nblock)
777 if not nblock.after_flow_context.is_unreachable then
778 # We reach the end of the init without having a return, it is bad
779 v.error(self, "Error: reached end of block; expected `return`.")
780 end
781 end
782 end
783 end
784
785 ###
786
787 redef class AExpr
788 # The static type of the expression.
789 # null if self is a statement or in case of error
790 var mtype: nullable MType = null
791
792 # Is the statement correctly typed?
793 # Used to distinguish errors and statements when `mtype == null`
794 var is_typed: Bool = false
795
796 # If required, the following implicit cast `.as(XXX)`
797 # Such a cast may by required after evaluating the expression when
798 # a unsafe operation is detected (silently accepted by the Nit language).
799 # The attribute is computed by `check_subtype`
800 var implicit_cast_to: nullable MType = null
801
802 # Return the variable read (if any)
803 # Used to perform adaptive typing
804 fun its_variable: nullable Variable do return null
805
806 private fun accept_typing(v: TypeVisitor)
807 do
808 v.error(self, "no implemented accept_typing for {self.class_name}")
809 end
810
811 # Is non-null if `self` is a leaf of a comprehension array construction.
812 # In this case, the enclosing literal array node is designated.
813 # The result of the evaluation of `self` must be
814 # stored inside the designated array (there is an implicit `push`)
815 var comprehension: nullable AArrayExpr = null
816 end
817
818 redef class ABlockExpr
819 redef fun accept_typing(v)
820 do
821 for e in self.n_expr do v.visit_stmt(e)
822 self.is_typed = true
823 end
824
825 # The type of a blockexpr is the one of the last expression (or null if empty)
826 redef fun mtype
827 do
828 if self.n_expr.is_empty then return null
829 return self.n_expr.last.mtype
830 end
831 end
832
833 redef class AVardeclExpr
834 redef fun accept_typing(v)
835 do
836 var variable = self.variable
837 if variable == null then return # Skip error
838
839 var ntype = self.n_type
840 var mtype: nullable MType
841 if ntype == null then
842 mtype = null
843 else
844 mtype = v.resolve_mtype(ntype)
845 if mtype == null then return # Skip error
846 end
847
848 var nexpr = self.n_expr
849 if nexpr != null then
850 if mtype != null then
851 var etype = v.visit_expr_subtype(nexpr, mtype)
852 if etype == mtype then
853 assert ntype != null
854 v.modelbuilder.advice(ntype, "useless-type", "Warning: useless type definition for variable `{variable.name}`")
855 end
856 else
857 mtype = v.visit_expr(nexpr)
858 if mtype == null then return # Skip error
859 end
860 end
861
862 var decltype = mtype
863 if mtype == null or mtype isa MNullType then
864 var objclass = v.get_mclass(self, "Object")
865 if objclass == null then return # skip error
866 decltype = objclass.mclass_type.as_nullable
867 if mtype == null then mtype = decltype
868 end
869
870 variable.declared_type = decltype
871 v.set_variable(self, variable, mtype)
872
873 #debug("var {variable}: {mtype}")
874
875 self.mtype = mtype
876 self.is_typed = true
877 end
878 end
879
880 redef class AVarExpr
881 redef fun its_variable do return self.variable
882 redef fun accept_typing(v)
883 do
884 var variable = self.variable
885 if variable == null then return # Skip error
886
887 var mtype = v.get_variable(self, variable)
888 if mtype != null then
889 #debug("{variable} is {mtype}")
890 else
891 #debug("{variable} is untyped")
892 end
893
894 self.mtype = mtype
895 end
896 end
897
898 redef class AVarAssignExpr
899 redef fun accept_typing(v)
900 do
901 var variable = self.variable
902 assert variable != null
903
904 var mtype = v.visit_expr_subtype(n_value, variable.declared_type)
905
906 v.set_variable(self, variable, mtype)
907
908 self.is_typed = true
909 end
910 end
911
912 redef class AReassignFormExpr
913 # The method designed by the reassign operator.
914 var reassign_callsite: nullable CallSite
915
916 var read_type: nullable MType = null
917
918 # Determine the `reassign_property`
919 # `readtype` is the type of the reading of the left value.
920 # `writetype` is the type of the writing of the left value.
921 # (Because of `ACallReassignExpr`, both can be different.
922 # Return the static type of the value to store.
923 private fun resolve_reassignment(v: TypeVisitor, readtype, writetype: MType): nullable MType
924 do
925 var reassign_name = self.n_assign_op.operator
926
927 self.read_type = readtype
928
929 var callsite = v.get_method(self.n_assign_op, readtype, reassign_name, false)
930 if callsite == null then return null # Skip error
931 self.reassign_callsite = callsite
932
933 var msignature = callsite.msignature
934 var rettype = msignature.return_mtype
935 assert msignature.arity == 1 and rettype != null
936
937 var value_type = v.visit_expr_subtype(self.n_value, msignature.mparameters.first.mtype)
938 if value_type == null then return null # Skip error
939
940 v.check_subtype(self, rettype, writetype, false)
941 return rettype
942 end
943 end
944
945 redef class AVarReassignExpr
946 redef fun accept_typing(v)
947 do
948 var variable = self.variable
949 assert variable != null
950
951 var readtype = v.get_variable(self, variable)
952 if readtype == null then return
953
954 read_type = readtype
955
956 var writetype = variable.declared_type
957 if writetype == null then return
958
959 var rettype = self.resolve_reassignment(v, readtype, writetype)
960
961 v.set_variable(self, variable, rettype)
962
963 self.is_typed = rettype != null
964 end
965 end
966
967
968 redef class AContinueExpr
969 redef fun accept_typing(v)
970 do
971 var nexpr = self.n_expr
972 if nexpr != null then
973 v.visit_expr(nexpr)
974 end
975 self.is_typed = true
976 end
977 end
978
979 redef class ABreakExpr
980 redef fun accept_typing(v)
981 do
982 var nexpr = self.n_expr
983 if nexpr != null then
984 v.visit_expr(nexpr)
985 end
986 self.is_typed = true
987 end
988 end
989
990 redef class AReturnExpr
991 redef fun accept_typing(v)
992 do
993 var nexpr = self.n_expr
994 var ret_type
995 var mpropdef = v.mpropdef
996 if mpropdef isa MMethodDef then
997 ret_type = mpropdef.msignature.return_mtype
998 else if mpropdef isa MAttributeDef then
999 ret_type = mpropdef.static_mtype
1000 else
1001 abort
1002 end
1003 if nexpr != null then
1004 if ret_type != null then
1005 v.visit_expr_subtype(nexpr, ret_type)
1006 else
1007 v.visit_expr(nexpr)
1008 v.error(nexpr, "Error: `return` with value in a procedure.")
1009 return
1010 end
1011 else if ret_type != null then
1012 v.error(self, "Error: `return` without value in a function.")
1013 return
1014 end
1015 self.is_typed = true
1016 end
1017 end
1018
1019 redef class AAbortExpr
1020 redef fun accept_typing(v)
1021 do
1022 self.is_typed = true
1023 end
1024 end
1025
1026 redef class AIfExpr
1027 redef fun accept_typing(v)
1028 do
1029 v.visit_expr_bool(n_expr)
1030
1031 v.visit_stmt(n_then)
1032 v.visit_stmt(n_else)
1033
1034 self.is_typed = true
1035
1036 if n_then != null and n_else == null then
1037 self.mtype = n_then.mtype
1038 end
1039 end
1040 end
1041
1042 redef class AIfexprExpr
1043 redef fun accept_typing(v)
1044 do
1045 v.visit_expr_bool(n_expr)
1046
1047 var t1 = v.visit_expr(n_then)
1048 var t2 = v.visit_expr(n_else)
1049
1050 if t1 == null or t2 == null then
1051 return # Skip error
1052 end
1053
1054 var t = v.merge_types(self, [t1, t2])
1055 if t == null then
1056 v.error(self, "Type Error: ambiguous type `{t1}` vs `{t2}`.")
1057 end
1058 self.mtype = t
1059 end
1060 end
1061
1062 redef class ADoExpr
1063 redef fun accept_typing(v)
1064 do
1065 v.visit_stmt(n_block)
1066 self.is_typed = true
1067 end
1068 end
1069
1070 redef class AWhileExpr
1071 redef fun accept_typing(v)
1072 do
1073 v.has_loop = true
1074 v.visit_expr_bool(n_expr)
1075 v.visit_stmt(n_block)
1076 self.is_typed = true
1077 end
1078 end
1079
1080 redef class ALoopExpr
1081 redef fun accept_typing(v)
1082 do
1083 v.has_loop = true
1084 v.visit_stmt(n_block)
1085 self.is_typed = true
1086 end
1087 end
1088
1089 redef class AForExpr
1090 var coltype: nullable MClassType
1091
1092 var method_iterator: nullable CallSite
1093 var method_is_ok: nullable CallSite
1094 var method_item: nullable CallSite
1095 var method_next: nullable CallSite
1096 var method_key: nullable CallSite
1097 var method_finish: nullable CallSite
1098
1099 var method_lt: nullable CallSite
1100 var method_successor: nullable CallSite
1101
1102 private fun do_type_iterator(v: TypeVisitor, mtype: MType)
1103 do
1104 if mtype isa MNullType then
1105 v.error(self, "Type Error: `for` cannot iterate over `null`.")
1106 return
1107 end
1108
1109 # get obj class
1110 var objcla = v.get_mclass(self, "Object")
1111 if objcla == null then return
1112
1113 # check iterator method
1114 var itdef = v.get_method(self, mtype, "iterator", n_expr isa ASelfExpr)
1115 if itdef == null then
1116 v.error(self, "Type Error: `for` expects a type providing an `iterator` method, got `{mtype}`.")
1117 return
1118 end
1119 self.method_iterator = itdef
1120
1121 # check that iterator return something
1122 var ittype = itdef.msignature.return_mtype
1123 if ittype == null then
1124 v.error(self, "Type Error: `for` expects the method `iterator` to return an `Iterator` or `MapIterator` type.")
1125 return
1126 end
1127
1128 # get iterator type
1129 var colit_cla = v.try_get_mclass(self, "Iterator")
1130 var mapit_cla = v.try_get_mclass(self, "MapIterator")
1131 var is_col = false
1132 var is_map = false
1133
1134 if colit_cla != null and v.is_subtype(ittype, colit_cla.get_mtype([objcla.mclass_type.as_nullable])) then
1135 # Iterator
1136 var coltype = ittype.supertype_to(v.mmodule, v.anchor, colit_cla)
1137 var variables = self.variables
1138 if variables.length != 1 then
1139 v.error(self, "Type Error: `for` expects only one variable when using `Iterator`.")
1140 else
1141 variables.first.declared_type = coltype.arguments.first
1142 end
1143 is_col = true
1144 end
1145
1146 if mapit_cla != null and v.is_subtype(ittype, mapit_cla.get_mtype([objcla.mclass_type.as_nullable, objcla.mclass_type.as_nullable])) then
1147 # Map Iterator
1148 var coltype = ittype.supertype_to(v.mmodule, v.anchor, mapit_cla)
1149 var variables = self.variables
1150 if variables.length != 2 then
1151 v.error(self, "Type Error: `for` expects two variables when using `MapIterator`.")
1152 else
1153 variables[0].declared_type = coltype.arguments[0]
1154 variables[1].declared_type = coltype.arguments[1]
1155 end
1156 is_map = true
1157 end
1158
1159 if not is_col and not is_map then
1160 v.error(self, "Type Error: `for` expects the method `iterator` to return an `Iterator` or `MapIterator` type.")
1161 return
1162 end
1163
1164 # anchor formal and virtual types
1165 if mtype.need_anchor then mtype = v.anchor_to(mtype)
1166
1167 mtype = mtype.undecorate
1168 self.coltype = mtype.as(MClassType)
1169
1170 # get methods is_ok, next, item
1171 var ikdef = v.get_method(self, ittype, "is_ok", false)
1172 if ikdef == null then
1173 v.error(self, "Type Error: `for` expects a method `is_ok` in type `{ittype}`.")
1174 return
1175 end
1176 self.method_is_ok = ikdef
1177
1178 var itemdef = v.get_method(self, ittype, "item", false)
1179 if itemdef == null then
1180 v.error(self, "Type Error: `for` expects a method `item` in type `{ittype}`.")
1181 return
1182 end
1183 self.method_item = itemdef
1184
1185 var nextdef = v.get_method(self, ittype, "next", false)
1186 if nextdef == null then
1187 v.error(self, "Type Error: `for` expects a method `next` in type {ittype}.")
1188 return
1189 end
1190 self.method_next = nextdef
1191
1192 self.method_finish = v.try_get_method(self, ittype, "finish", false)
1193
1194 if is_map then
1195 var keydef = v.get_method(self, ittype, "key", false)
1196 if keydef == null then
1197 v.error(self, "Type Error: `for` expects a method `key` in type `{ittype}`.")
1198 return
1199 end
1200 self.method_key = keydef
1201 end
1202
1203 if self.variables.length == 1 and n_expr isa ARangeExpr then
1204 var variable = variables.first
1205 var vtype = variable.declared_type.as(not null)
1206
1207 if n_expr isa AOrangeExpr then
1208 self.method_lt = v.get_method(self, vtype, "<", false)
1209 else
1210 self.method_lt = v.get_method(self, vtype, "<=", false)
1211 end
1212
1213 self.method_successor = v.get_method(self, vtype, "successor", false)
1214 end
1215 end
1216
1217 redef fun accept_typing(v)
1218 do
1219 v.has_loop = true
1220 var mtype = v.visit_expr(n_expr)
1221 if mtype == null then return
1222
1223 self.do_type_iterator(v, mtype)
1224
1225 v.visit_stmt(n_block)
1226
1227 self.mtype = n_block.mtype
1228 self.is_typed = true
1229 end
1230 end
1231
1232 redef class AWithExpr
1233 var method_start: nullable CallSite
1234 var method_finish: nullable CallSite
1235
1236 redef fun accept_typing(v: TypeVisitor)
1237 do
1238 var mtype = v.visit_expr(n_expr)
1239 if mtype == null then return
1240
1241 method_start = v.get_method(self, mtype, "start", n_expr isa ASelfExpr)
1242 method_finish = v.get_method(self, mtype, "finish", n_expr isa ASelfExpr)
1243
1244 v.visit_stmt(n_block)
1245 self.mtype = n_block.mtype
1246 self.is_typed = true
1247 end
1248 end
1249
1250 redef class AAssertExpr
1251 redef fun accept_typing(v)
1252 do
1253 v.visit_expr_bool(n_expr)
1254
1255 v.visit_stmt(n_else)
1256 self.is_typed = true
1257 end
1258 end
1259
1260 redef class AOrExpr
1261 redef fun accept_typing(v)
1262 do
1263 v.visit_expr_bool(n_expr)
1264 v.visit_expr_bool(n_expr2)
1265 self.mtype = v.type_bool(self)
1266 end
1267 end
1268
1269 redef class AImpliesExpr
1270 redef fun accept_typing(v)
1271 do
1272 v.visit_expr_bool(n_expr)
1273 v.visit_expr_bool(n_expr2)
1274 self.mtype = v.type_bool(self)
1275 end
1276 end
1277
1278 redef class AAndExpr
1279 redef fun accept_typing(v)
1280 do
1281 v.visit_expr_bool(n_expr)
1282 v.visit_expr_bool(n_expr2)
1283 self.mtype = v.type_bool(self)
1284 end
1285 end
1286
1287
1288 redef class ANotExpr
1289 redef fun accept_typing(v)
1290 do
1291 v.visit_expr_bool(n_expr)
1292 self.mtype = v.type_bool(self)
1293 end
1294 end
1295
1296 redef class AOrElseExpr
1297 redef fun accept_typing(v)
1298 do
1299 var t1 = v.visit_expr(n_expr)
1300 var t2 = v.visit_expr(n_expr2)
1301
1302 if t1 == null or t2 == null then
1303 return # Skip error
1304 end
1305
1306 if t1 isa MNullType then
1307 v.error(n_expr, "Type Error: `or else` on `null`.")
1308 else if v.check_can_be_null(n_expr, t1) then
1309 t1 = t1.as_notnull
1310 end
1311
1312 var t = v.merge_types(self, [t1, t2])
1313 if t == null then
1314 var c = v.get_mclass(self, "Object")
1315 if c == null then return # forward error
1316 t = c.mclass_type
1317 if v.can_be_null(t2) then
1318 t = t.as_nullable
1319 end
1320 #v.error(self, "Type Error: ambiguous type {t1} vs {t2}")
1321 end
1322 self.mtype = t
1323 end
1324 end
1325
1326 redef class ATrueExpr
1327 redef fun accept_typing(v)
1328 do
1329 self.mtype = v.type_bool(self)
1330 end
1331 end
1332
1333 redef class AFalseExpr
1334 redef fun accept_typing(v)
1335 do
1336 self.mtype = v.type_bool(self)
1337 end
1338 end
1339
1340 redef class AIntExpr
1341 redef fun accept_typing(v)
1342 do
1343 var mclass = v.get_mclass(self, "Int")
1344 if mclass == null then return # Forward error
1345 self.mtype = mclass.mclass_type
1346 end
1347 end
1348
1349 redef class AByteExpr
1350 redef fun accept_typing(v)
1351 do
1352 var mclass = v.get_mclass(self, "Byte")
1353 if mclass == null then return # Forward error
1354 self.mtype = mclass.mclass_type
1355 end
1356 end
1357
1358 redef class AFloatExpr
1359 redef fun accept_typing(v)
1360 do
1361 var mclass = v.get_mclass(self, "Float")
1362 if mclass == null then return # Forward error
1363 self.mtype = mclass.mclass_type
1364 end
1365 end
1366
1367 redef class ACharExpr
1368 redef fun accept_typing(v)
1369 do
1370 var mclass = v.get_mclass(self, "Char")
1371 if mclass == null then return # Forward error
1372 self.mtype = mclass.mclass_type
1373 end
1374 end
1375
1376 redef class AStringFormExpr
1377 redef fun accept_typing(v)
1378 do
1379 var mclass = v.get_mclass(self, "String")
1380 if mclass == null then return # Forward error
1381 self.mtype = mclass.mclass_type
1382 end
1383 end
1384
1385 redef class ASuperstringExpr
1386 redef fun accept_typing(v)
1387 do
1388 var mclass = v.get_mclass(self, "String")
1389 if mclass == null then return # Forward error
1390 self.mtype = mclass.mclass_type
1391 var objclass = v.get_mclass(self, "Object")
1392 if objclass == null then return # Forward error
1393 var objtype = objclass.mclass_type
1394 for nexpr in self.n_exprs do
1395 v.visit_expr_subtype(nexpr, objtype)
1396 end
1397 end
1398 end
1399
1400 redef class AArrayExpr
1401 # The `with_capacity` method on Array
1402 var with_capacity_callsite: nullable CallSite
1403
1404 # The `push` method on arrays
1405 var push_callsite: nullable CallSite
1406
1407 # The element of each type
1408 var element_mtype: nullable MType
1409
1410 # Set that `self` is a part of comprehension array `na`
1411 # If `self` is a `for`, or a `if`, then `set_comprehension` is recursively applied.
1412 private fun set_comprehension(n: nullable AExpr)
1413 do
1414 if n == null then
1415 return
1416 else if n isa AForExpr then
1417 set_comprehension(n.n_block)
1418 else if n isa AIfExpr then
1419 set_comprehension(n.n_then)
1420 set_comprehension(n.n_else)
1421 else
1422 # is a leave
1423 n.comprehension = self
1424 end
1425 end
1426 redef fun accept_typing(v)
1427 do
1428 var mtype: nullable MType = null
1429 var ntype = self.n_type
1430 if ntype != null then
1431 mtype = v.resolve_mtype(ntype)
1432 if mtype == null then return # Skip error
1433 end
1434 var mtypes = new Array[nullable MType]
1435 var useless = false
1436 for e in self.n_exprs do
1437 var t = v.visit_expr(e)
1438 if t == null then
1439 return # Skip error
1440 end
1441 set_comprehension(e)
1442 if mtype != null then
1443 if v.check_subtype(e, t, mtype, false) == null then return # Forward error
1444 if t == mtype then useless = true
1445 else
1446 mtypes.add(t)
1447 end
1448 end
1449 if mtype == null then
1450 # Ensure monotony for type adaptation on loops
1451 if self.element_mtype != null then mtypes.add self.element_mtype
1452 mtype = v.merge_types(self, mtypes)
1453 end
1454 if mtype == null or mtype isa MNullType then
1455 v.error(self, "Type Error: ambiguous array type {mtypes.join(" ")}")
1456 return
1457 end
1458 if useless then
1459 assert ntype != null
1460 v.modelbuilder.warning(ntype, "useless-type", "Warning: useless type declaration `{mtype}` in literal Array since it can be inferred from the elements type.")
1461 end
1462
1463 self.element_mtype = mtype
1464
1465 var mclass = v.get_mclass(self, "Array")
1466 if mclass == null then return # Forward error
1467 var array_mtype = mclass.get_mtype([mtype])
1468
1469 with_capacity_callsite = v.get_method(self, array_mtype, "with_capacity", false)
1470 push_callsite = v.get_method(self, array_mtype, "push", false)
1471
1472 self.mtype = array_mtype
1473 end
1474 end
1475
1476 redef class ARangeExpr
1477 var init_callsite: nullable CallSite
1478
1479 redef fun accept_typing(v)
1480 do
1481 var discrete_class = v.get_mclass(self, "Discrete")
1482 if discrete_class == null then return # Forward error
1483 var discrete_type = discrete_class.intro.bound_mtype
1484 var t1 = v.visit_expr_subtype(self.n_expr, discrete_type)
1485 var t2 = v.visit_expr_subtype(self.n_expr2, discrete_type)
1486 if t1 == null or t2 == null then return
1487 var mclass = v.get_mclass(self, "Range")
1488 if mclass == null then return # Forward error
1489 var mtype
1490 if v.is_subtype(t1, t2) then
1491 mtype = mclass.get_mtype([t2])
1492 else if v.is_subtype(t2, t1) then
1493 mtype = mclass.get_mtype([t1])
1494 else
1495 v.error(self, "Type Error: cannot create range: `{t1}` vs `{t2}`.")
1496 return
1497 end
1498
1499 self.mtype = mtype
1500
1501 # get the constructor
1502 var callsite
1503 if self isa ACrangeExpr then
1504 callsite = v.get_method(self, mtype, "init", false)
1505 else if self isa AOrangeExpr then
1506 callsite = v.get_method(self, mtype, "without_last", false)
1507 else
1508 abort
1509 end
1510 init_callsite = callsite
1511 end
1512 end
1513
1514 redef class ANullExpr
1515 redef fun accept_typing(v)
1516 do
1517 self.mtype = v.mmodule.model.null_type
1518 end
1519 end
1520
1521 redef class AIsaExpr
1522 # The static type to cast to.
1523 # (different from the static type of the expression that is `Bool`).
1524 var cast_type: nullable MType
1525 redef fun accept_typing(v)
1526 do
1527 var mtype = v.visit_expr_cast(self, self.n_expr, self.n_type)
1528 self.cast_type = mtype
1529
1530 var variable = self.n_expr.its_variable
1531 if variable != null then
1532 #var orig = self.n_expr.mtype
1533 #var from = if orig != null then orig.to_s else "invalid"
1534 #var to = if mtype != null then mtype.to_s else "invalid"
1535 #debug("adapt {variable}: {from} -> {to}")
1536 self.after_flow_context.when_true.set_var(v, variable, mtype)
1537 end
1538
1539 self.mtype = v.type_bool(self)
1540 end
1541 end
1542
1543 redef class AAsCastExpr
1544 redef fun accept_typing(v)
1545 do
1546 self.mtype = v.visit_expr_cast(self, self.n_expr, self.n_type)
1547 end
1548 end
1549
1550 redef class AAsNotnullExpr
1551 redef fun accept_typing(v)
1552 do
1553 var mtype = v.visit_expr(self.n_expr)
1554 if mtype == null then return # Forward error
1555
1556 if mtype isa MNullType then
1557 v.error(self, "Type Error: `as(not null)` on `null`.")
1558 return
1559 end
1560
1561 if v.check_can_be_null(n_expr, mtype) then
1562 mtype = mtype.as_notnull
1563 end
1564
1565 self.mtype = mtype
1566 end
1567 end
1568
1569 redef class AParExpr
1570 redef fun accept_typing(v)
1571 do
1572 self.mtype = v.visit_expr(self.n_expr)
1573 end
1574 end
1575
1576 redef class AOnceExpr
1577 redef fun accept_typing(v)
1578 do
1579 self.mtype = v.visit_expr(self.n_expr)
1580 end
1581 end
1582
1583 redef class ASelfExpr
1584 redef var its_variable: nullable Variable
1585 redef fun accept_typing(v)
1586 do
1587 if v.is_toplevel_context and not self isa AImplicitSelfExpr then
1588 v.error(self, "Error: `self` cannot be used in top-level method.")
1589 end
1590 var variable = v.selfvariable
1591 self.its_variable = variable
1592 self.mtype = v.get_variable(self, variable)
1593 end
1594 end
1595
1596 redef class AImplicitSelfExpr
1597 # Is the implicit receiver `sys`?
1598 #
1599 # By default, the implicit receiver is `self`.
1600 # But when there is not method for `self`, `sys` is used as a fall-back.
1601 # Is this case this flag is set to `true`.
1602 var is_sys = false
1603 end
1604
1605 ## MESSAGE SENDING AND PROPERTY
1606
1607 redef class ASendExpr
1608 # The property invoked by the send.
1609 var callsite: nullable CallSite
1610
1611 redef fun accept_typing(v)
1612 do
1613 var nrecv = self.n_expr
1614 var recvtype = v.visit_expr(nrecv)
1615 var name = self.property_name
1616 var node = self.property_node
1617
1618 if recvtype == null then return # Forward error
1619
1620 var callsite = null
1621 var unsafe_type = v.anchor_to(recvtype)
1622 var mproperty = v.try_get_mproperty_by_name2(node, unsafe_type, name)
1623 if mproperty == null and nrecv isa AImplicitSelfExpr then
1624 # Special fall-back search in `sys` when noting found in the implicit receiver.
1625 var sysclass = v.try_get_mclass(node, "Sys")
1626 if sysclass != null then
1627 var systype = sysclass.mclass_type
1628 mproperty = v.try_get_mproperty_by_name2(node, systype, name)
1629 if mproperty != null then
1630 callsite = v.get_method(node, systype, name, false)
1631 if callsite == null then return # Forward error
1632 # Update information, we are looking at `sys` now, not `self`
1633 nrecv.is_sys = true
1634 nrecv.its_variable = null
1635 nrecv.mtype = systype
1636 recvtype = systype
1637 end
1638 end
1639 end
1640 if callsite == null then
1641 # If still nothing, just exit
1642 callsite = v.get_method(node, recvtype, name, nrecv isa ASelfExpr)
1643 if callsite == null then return
1644 end
1645
1646 self.callsite = callsite
1647 var msignature = callsite.msignature
1648
1649 var args = compute_raw_arguments
1650
1651 callsite.check_signature(v, args)
1652
1653 if callsite.mproperty.is_init then
1654 var vmpropdef = v.mpropdef
1655 if not (vmpropdef isa MMethodDef and vmpropdef.mproperty.is_init) then
1656 v.error(node, "Error: an `init` can only be called from another `init`.")
1657 end
1658 if vmpropdef isa MMethodDef and vmpropdef.mproperty.is_root_init and not callsite.mproperty.is_root_init then
1659 v.error(node, "Error: `{vmpropdef}` cannot call a factory `{callsite.mproperty}`.")
1660 end
1661 end
1662
1663 var ret = msignature.return_mtype
1664 if ret != null then
1665 self.mtype = ret
1666 else
1667 self.is_typed = true
1668 end
1669 end
1670
1671 # The name of the property
1672 # Each subclass simply provide the correct name.
1673 private fun property_name: String is abstract
1674
1675 # The node identifying the name (id, operator, etc) for messages.
1676 #
1677 # Is `self` by default
1678 private fun property_node: ANode do return self
1679
1680 # An array of all arguments (excluding self)
1681 fun raw_arguments: Array[AExpr] do return compute_raw_arguments
1682
1683 private fun compute_raw_arguments: Array[AExpr] is abstract
1684 end
1685
1686 redef class ABinopExpr
1687 redef fun compute_raw_arguments do return [n_expr2]
1688 redef fun property_name do return operator
1689 redef fun property_node do return n_op
1690 end
1691 redef class AEqExpr
1692 redef fun accept_typing(v)
1693 do
1694 super
1695 v.null_test(self)
1696 end
1697 end
1698 redef class ANeExpr
1699 redef fun accept_typing(v)
1700 do
1701 super
1702 v.null_test(self)
1703 end
1704 end
1705
1706 redef class AUnaryopExpr
1707 redef fun property_name do return "unary {operator}"
1708 redef fun compute_raw_arguments do return new Array[AExpr]
1709 end
1710
1711
1712 redef class ACallExpr
1713 redef fun property_name do return n_id.text
1714 redef fun property_node do return n_id
1715 redef fun compute_raw_arguments do return n_args.to_a
1716 end
1717
1718 redef class ACallAssignExpr
1719 redef fun property_name do return n_id.text + "="
1720 redef fun property_node do return n_id
1721 redef fun compute_raw_arguments
1722 do
1723 var res = n_args.to_a
1724 res.add(n_value)
1725 return res
1726 end
1727 end
1728
1729 redef class ABraExpr
1730 redef fun property_name do return "[]"
1731 redef fun compute_raw_arguments do return n_args.to_a
1732 end
1733
1734 redef class ABraAssignExpr
1735 redef fun property_name do return "[]="
1736 redef fun compute_raw_arguments
1737 do
1738 var res = n_args.to_a
1739 res.add(n_value)
1740 return res
1741 end
1742 end
1743
1744 redef class ASendReassignFormExpr
1745 # The property invoked for the writing
1746 var write_callsite: nullable CallSite
1747
1748 redef fun accept_typing(v)
1749 do
1750 var recvtype = v.visit_expr(self.n_expr)
1751 var name = self.property_name
1752 var node = self.property_node
1753
1754 if recvtype == null then return # Forward error
1755
1756 var for_self = self.n_expr isa ASelfExpr
1757 var callsite = v.get_method(node, recvtype, name, for_self)
1758
1759 if callsite == null then return
1760 self.callsite = callsite
1761
1762 var args = compute_raw_arguments
1763
1764 callsite.check_signature(v, args)
1765
1766 var readtype = callsite.msignature.return_mtype
1767 if readtype == null then
1768 v.error(node, "Error: `{name}` is not a function.")
1769 return
1770 end
1771
1772 var wcallsite = v.get_method(node, recvtype, name + "=", self.n_expr isa ASelfExpr)
1773 if wcallsite == null then return
1774 self.write_callsite = wcallsite
1775
1776 var wtype = self.resolve_reassignment(v, readtype, wcallsite.msignature.mparameters.last.mtype)
1777 if wtype == null then return
1778
1779 args = args.to_a # duplicate so raw_arguments keeps only the getter args
1780 args.add(self.n_value)
1781 wcallsite.check_signature(v, args)
1782
1783 self.is_typed = true
1784 end
1785 end
1786
1787 redef class ACallReassignExpr
1788 redef fun property_name do return n_id.text
1789 redef fun property_node do return n_id
1790 redef fun compute_raw_arguments do return n_args.to_a
1791 end
1792
1793 redef class ABraReassignExpr
1794 redef fun property_name do return "[]"
1795 redef fun compute_raw_arguments do return n_args.to_a
1796 end
1797
1798 redef class AInitExpr
1799 redef fun property_name do return "init"
1800 redef fun property_node do return n_kwinit
1801 redef fun compute_raw_arguments do return n_args.to_a
1802 end
1803
1804 redef class AExprs
1805 fun to_a: Array[AExpr] do return self.n_exprs.to_a
1806 end
1807
1808 ###
1809
1810 redef class ASuperExpr
1811 # The method to call if the super is in fact a 'super init call'
1812 # Note: if the super is a normal call-next-method, then this attribute is null
1813 var callsite: nullable CallSite
1814
1815 # The method to call is the super is a standard `call-next-method` super-call
1816 # Note: if the super is a special super-init-call, then this attribute is null
1817 var mpropdef: nullable MMethodDef
1818
1819 redef fun accept_typing(v)
1820 do
1821 var anchor = v.anchor
1822 assert anchor != null
1823 var recvtype = v.get_variable(self, v.selfvariable)
1824 assert recvtype != null
1825 var mproperty = v.mpropdef.mproperty
1826 if not mproperty isa MMethod then
1827 v.error(self, "Error: `super` only usable in a `method`.")
1828 return
1829 end
1830 var superprops = mproperty.lookup_super_definitions(v.mmodule, anchor)
1831 if superprops.length == 0 then
1832 if mproperty.is_init and v.mpropdef.is_intro then
1833 process_superinit(v)
1834 return
1835 end
1836 v.error(self, "Error: no super method to call for `{mproperty}`.")
1837 return
1838 end
1839 # FIXME: covariance of return type in linear extension?
1840 var superprop = superprops.first
1841
1842 var msignature = superprop.msignature.as(not null)
1843 msignature = v.resolve_for(msignature, recvtype, true).as(MSignature)
1844 var args = self.n_args.to_a
1845 if args.length > 0 then
1846 signaturemap = v.check_signature(self, args, mproperty, msignature)
1847 end
1848 self.mtype = msignature.return_mtype
1849 self.is_typed = true
1850 v.mpropdef.has_supercall = true
1851 mpropdef = v.mpropdef.as(MMethodDef)
1852 end
1853
1854 # The mapping used on the call to associate arguments to parameters.
1855 # If null then no specific association is required.
1856 var signaturemap: nullable SignatureMap
1857
1858 private fun process_superinit(v: TypeVisitor)
1859 do
1860 var anchor = v.anchor
1861 assert anchor != null
1862 var recvtype = v.get_variable(self, v.selfvariable)
1863 assert recvtype != null
1864 var mpropdef = v.mpropdef
1865 assert mpropdef isa MMethodDef
1866 var mproperty = mpropdef.mproperty
1867 var superprop: nullable MMethodDef = null
1868 for msupertype in mpropdef.mclassdef.supertypes do
1869 msupertype = msupertype.anchor_to(v.mmodule, anchor)
1870 var errcount = v.modelbuilder.toolcontext.error_count
1871 var candidate = v.try_get_mproperty_by_name2(self, msupertype, mproperty.name).as(nullable MMethod)
1872 if candidate == null then
1873 if v.modelbuilder.toolcontext.error_count > errcount then return # Forward error
1874 continue # Try next super-class
1875 end
1876 if superprop != null and candidate.is_root_init then
1877 continue
1878 end
1879 if superprop != null and superprop.mproperty != candidate and not superprop.mproperty.is_root_init then
1880 v.error(self, "Error: conflicting super constructor to call for `{mproperty}`: `{candidate.full_name}`, `{superprop.mproperty.full_name}`")
1881 return
1882 end
1883 var candidatedefs = candidate.lookup_definitions(v.mmodule, anchor)
1884 if superprop != null and superprop.mproperty == candidate then
1885 if superprop == candidatedefs.first then continue
1886 candidatedefs.add(superprop)
1887 end
1888 if candidatedefs.length > 1 then
1889 v.error(self, "Error: conflicting property definitions for property `{mproperty}` in `{recvtype}`: {candidatedefs.join(", ")}")
1890 return
1891 end
1892 superprop = candidatedefs.first
1893 end
1894 if superprop == null then
1895 v.error(self, "Error: no super method to call for `{mproperty}`.")
1896 return
1897 end
1898
1899 var msignature = superprop.new_msignature or else superprop.msignature.as(not null)
1900 msignature = v.resolve_for(msignature, recvtype, true).as(MSignature)
1901
1902 var callsite = new CallSite(self, recvtype, v.mmodule, v.anchor, true, superprop.mproperty, superprop, msignature, false)
1903 self.callsite = callsite
1904
1905 var args = self.n_args.to_a
1906 if args.length > 0 then
1907 callsite.check_signature(v, args)
1908 else
1909 # Check there is at least enough parameters
1910 if mpropdef.msignature.arity < msignature.arity then
1911 v.error(self, "Error: not enough implicit arguments to pass. Got `{mpropdef.msignature.arity}`, expected at least `{msignature.arity}`. Signature is `{msignature}`.")
1912 return
1913 end
1914 # Check that each needed parameter is conform
1915 var i = 0
1916 for sp in msignature.mparameters do
1917 var p = mpropdef.msignature.mparameters[i]
1918 if not v.is_subtype(p.mtype, sp.mtype) then
1919 v.error(self, "Type Error: expected argument #{i} of type `{sp.mtype}`, got implicit argument `{p.name}` of type `{p.mtype}`. Signature is {msignature}")
1920 return
1921 end
1922 i += 1
1923 end
1924 end
1925
1926 self.is_typed = true
1927 end
1928 end
1929
1930 ####
1931
1932 redef class ANewExpr
1933 # The constructor invoked by the new.
1934 var callsite: nullable CallSite
1935
1936 # The designated type
1937 var recvtype: nullable MClassType
1938
1939 redef fun accept_typing(v)
1940 do
1941 var recvtype = v.resolve_mtype(self.n_type)
1942 if recvtype == null then return
1943
1944 if not recvtype isa MClassType then
1945 if recvtype isa MNullableType then
1946 v.error(self, "Type Error: cannot instantiate the nullable type `{recvtype}`.")
1947 return
1948 else if recvtype isa MFormalType then
1949 v.error(self, "Type Error: cannot instantiate the formal type `{recvtype}`.")
1950 return
1951 else
1952 v.error(self, "Type Error: cannot instantiate the type `{recvtype}`.")
1953 return
1954 end
1955 end
1956
1957 self.recvtype = recvtype
1958 var kind = recvtype.mclass.kind
1959
1960 var name: String
1961 var nid = self.n_id
1962 var node: ANode
1963 if nid != null then
1964 name = nid.text
1965 node = nid
1966 else
1967 name = "new"
1968 node = self.n_kwnew
1969 end
1970 if name == "intern" then
1971 if kind != concrete_kind then
1972 v.error(self, "Type Error: cannot instantiate {kind} {recvtype}.")
1973 return
1974 end
1975 if n_args.n_exprs.not_empty then
1976 v.error(n_args, "Type Error: the intern constructor expects no arguments.")
1977 return
1978 end
1979 # Our job is done
1980 self.mtype = recvtype
1981 return
1982 end
1983
1984 var callsite = v.get_method(node, recvtype, name, false)
1985 if callsite == null then return
1986
1987 if not callsite.mproperty.is_new then
1988 if kind != concrete_kind then
1989 v.error(self, "Type Error: cannot instantiate {kind} `{recvtype}`.")
1990 return
1991 end
1992 self.mtype = recvtype
1993 else
1994 self.mtype = callsite.msignature.return_mtype
1995 assert self.mtype != null
1996 end
1997
1998 self.callsite = callsite
1999
2000 if not callsite.mproperty.is_init_for(recvtype.mclass) then
2001 v.error(self, "Error: `{name}` is not a constructor.")
2002 return
2003 end
2004
2005 var args = n_args.to_a
2006 callsite.check_signature(v, args)
2007 end
2008 end
2009
2010 ####
2011
2012 redef class AAttrFormExpr
2013 # The attribute accessed.
2014 var mproperty: nullable MAttribute
2015
2016 # The static type of the attribute.
2017 var attr_type: nullable MType
2018
2019 # Resolve the attribute accessed.
2020 private fun resolve_property(v: TypeVisitor)
2021 do
2022 var recvtype = v.visit_expr(self.n_expr)
2023 if recvtype == null then return # Skip error
2024 var node = self.n_id
2025 var name = node.text
2026 if recvtype isa MNullType then
2027 v.error(node, "Error: attribute `{name}` access on `null`.")
2028 return
2029 end
2030
2031 var unsafe_type = v.anchor_to(recvtype)
2032 var mproperty = v.try_get_mproperty_by_name2(node, unsafe_type, name)
2033 if mproperty == null then
2034 v.modelbuilder.error(node, "Error: attribute `{name}` does not exist in `{recvtype}`.")
2035 return
2036 end
2037 assert mproperty isa MAttribute
2038 self.mproperty = mproperty
2039
2040 var mpropdefs = mproperty.lookup_definitions(v.mmodule, unsafe_type)
2041 assert mpropdefs.length == 1
2042 var mpropdef = mpropdefs.first
2043 var attr_type = mpropdef.static_mtype
2044 if attr_type == null then return # skip error
2045 attr_type = v.resolve_for(attr_type, recvtype, self.n_expr isa ASelfExpr)
2046 self.attr_type = attr_type
2047 end
2048 end
2049
2050 redef class AAttrExpr
2051 redef fun accept_typing(v)
2052 do
2053 self.resolve_property(v)
2054 self.mtype = self.attr_type
2055 end
2056 end
2057
2058
2059 redef class AAttrAssignExpr
2060 redef fun accept_typing(v)
2061 do
2062 self.resolve_property(v)
2063 var mtype = self.attr_type
2064
2065 v.visit_expr_subtype(self.n_value, mtype)
2066 self.is_typed = mtype != null
2067 end
2068 end
2069
2070 redef class AAttrReassignExpr
2071 redef fun accept_typing(v)
2072 do
2073 self.resolve_property(v)
2074 var mtype = self.attr_type
2075 if mtype == null then return # Skip error
2076
2077 var rettype = self.resolve_reassignment(v, mtype, mtype)
2078
2079 self.is_typed = rettype != null
2080 end
2081 end
2082
2083 redef class AIssetAttrExpr
2084 redef fun accept_typing(v)
2085 do
2086 self.resolve_property(v)
2087 var mtype = self.attr_type
2088 if mtype == null then return # Skip error
2089
2090 var recvtype = self.n_expr.mtype.as(not null)
2091 var bound = v.resolve_for(mtype, recvtype, false)
2092 if bound isa MNullableType then
2093 v.error(n_id, "Type Error: `isset` on a nullable attribute.")
2094 end
2095 self.mtype = v.type_bool(self)
2096 end
2097 end
2098
2099 redef class AVarargExpr
2100 redef fun accept_typing(v)
2101 do
2102 # This kind of pseudo-expression can be only processed trough a signature
2103 # See `check_signature`
2104 # Other cases are a syntax error.
2105 v.error(self, "Syntax Error: unexpected `...`.")
2106 end
2107 end
2108
2109 ###
2110
2111 redef class ADebugTypeExpr
2112 redef fun accept_typing(v)
2113 do
2114 var expr = v.visit_expr(self.n_expr)
2115 if expr == null then return
2116 var unsafe = v.anchor_to(expr)
2117 var ntype = self.n_type
2118 var mtype = v.resolve_mtype(ntype)
2119 if mtype != null and mtype != expr then
2120 var umtype = v.anchor_to(mtype)
2121 v.modelbuilder.warning(self, "debug", "Found type {expr} (-> {unsafe}), expected {mtype} (-> {umtype})")
2122 end
2123 self.is_typed = true
2124 end
2125 end