1 (* Copyright (C) 2002, HELM Team.
3 * This file is part of HELM, an Hypertextual, Electronic
4 * Library of Mathematics, developed at the Computer Science
5 * Department, University of Bologna, Italy.
7 * HELM is free software; you can redistribute it and/or
8 * modify it under the terms of the GNU General Public License
9 * as published by the Free Software Foundation; either version 2
10 * of the License, or (at your option) any later version.
12 * HELM is distributed in the hope that it will be useful,
13 * but WITHOUT ANY WARRANTY; without even the implied warranty of
14 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 * GNU General Public License for more details.
17 * You should have received a copy of the GNU General Public License
18 * along with HELM; if not, write to the Free Software
19 * Foundation, Inc., 59 Temple Place - Suite 330, Boston,
22 * For details, see the HELM World-Wide-Web page,
23 * http://cs.unibo.it/helm/.
26 (* $Id: destructTactic.ml 9774 2009-05-15 19:37:08Z sacerdot $ *)
29 open Continuationals.Stack
33 if debug then (fun x -> prerr_endline (Lazy.force x)) else (fun _ -> ())
39 "z" ^ string_of_int !i
43 let id = if id = "_" then fresh_name () else id in
44 NotationPt.Ident (id,`Ambiguous)
47 let mk_sym s = NotationPt.Symbol (s,None);;
49 let rec mk_prods l t =
52 | hd::tl -> NotationPt.Binder (`Forall, (mk_id hd, None), mk_prods tl t)
59 | l -> NotationPt.Appl l
62 let rec iter f n acc =
64 else iter f (n-1) (f n acc)
67 let subst_metasenv_and_fix_names status =
68 let u,h,metasenv, subst,o = status#obj in
70 NCicUntrusted.map_obj_kind ~skip_body:true
71 (NCicUntrusted.apply_subst status subst []) o
73 status#set_obj(u,h,NCicUntrusted.apply_subst_metasenv status subst metasenv,subst,o)
76 (* needed to workaround a weakness of the refiner? *)
77 let rec generalize0_tac tl s =
80 | t0::tl0 -> NTactics.generalize0_tac [t0] (generalize0_tac tl0 s)
84 (* input: nome della variabile riscritta
85 * output: lista dei nomi delle variabili il cui tipo dipende dall'input *)
86 let cascade_select_in_ctx status ~subst ctx skip iname =
87 let lctx, rctx = HExtlib.split_nth (iname - 1) ctx in
88 let lctx = List.rev lctx in
89 let rec rm_last = function
91 | hd::tl -> hd::(rm_last tl)
94 let indices,_ = List.fold_left
95 (fun (acc,context) item ->
97 | n,(NCic.Decl s | NCic.Def (s,_))
98 when (not (List.for_all (fun x -> NCicTypeChecker.does_not_occur status ~subst context (x-1) x s) acc)
99 && not (List.mem n skip)) ->
100 List.iter (fun m -> pp (lazy ("acc has " ^ (string_of_int m)))) acc;
101 pp (lazy ("acc occurs in the type of " ^ n));
102 (1::List.map ((+) 1) acc, item::context)
103 | _ -> (List.map ((+) 1) acc, item::context))
105 let indices = rm_last indices in
106 let res = List.map (fun n -> let s,_ = List.nth ctx (n-1) in s) indices in
107 List.iter (fun n -> pp (lazy n)) res;
108 pp (lazy (status#ppcontext ~metasenv:[] ~subst ctx));
112 let rec mk_fresh_name ctx firstch n =
113 let candidate = (String.make 1 firstch) ^ (string_of_int n) in
114 if (List.for_all (fun (s,_) -> s <> candidate) ctx) then candidate
115 else mk_fresh_name ctx firstch (n+1)
118 let arg_list nleft t =
119 let rec drop_prods n t =
122 | NCic.Prod (_,_,ta) -> drop_prods (n-1) ta
123 | _ -> raise (Failure "drop_prods")
125 let rec aux = function
126 | NCic.Prod (_,so,ta) -> so::aux ta
128 in aux (drop_prods nleft t)
131 let nargs it nleft consno =
132 pp (lazy (Printf.sprintf "nargs %d %d" nleft consno));
133 let _,indname,_,cl = it in
134 let _,_,t_k = List.nth cl consno in
135 List.length (arg_list nleft t_k) ;;
137 let default_pattern = "",0,(None,[],Some NotationPt.UserInput);;
139 "",0,(None,[],Some NotationPt.Binder
140 (`Pi, (mk_id "_",Some (NotationPt.Appl
141 [ NotationPt.Implicit `JustOne
142 ; NotationPt.Implicit `JustOne
143 ; NotationPt.UserInput
144 ; NotationPt.Implicit `JustOne ])),
145 NotationPt.Implicit `JustOne));;
147 let prod_pattern_jm =
148 "",0,(None,[],Some NotationPt.Binder
149 (`Pi, (mk_id "_",Some (NotationPt.Appl
150 [ NotationPt.Implicit `JustOne
151 ; NotationPt.Implicit `JustOne
152 ; NotationPt.UserInput
153 ; NotationPt.Implicit `JustOne
154 ; NotationPt.Implicit `JustOne ])),
155 NotationPt.Implicit `JustOne));;
158 "",0,(None,[n, NotationPt.Appl
159 [ NotationPt.Implicit `JustOne
160 ; NotationPt.Implicit `JustOne
161 ; NotationPt.UserInput
162 ; NotationPt.Implicit `JustOne ] ],
165 let hp_pattern_jm n =
166 "",0,(None,[n, NotationPt.Appl
167 [ NotationPt.Implicit `JustOne
168 ; NotationPt.Implicit `JustOne
169 ; NotationPt.UserInput
170 ; NotationPt.Implicit `JustOne
171 ; NotationPt.Implicit `JustOne ] ],
174 exception ConstructorTooBig of string;;
176 (* returns the discrimination = injection+contradiction principle *)
178 let mk_discriminator ~use_jmeq name it leftno status baseuri =
180 let _,_,arity,_ = it in
181 List.length (arg_list 0 arity) in
182 let _,itname,_,_ = it in
183 let params = List.map (fun x -> "a" ^ string_of_int x) (HExtlib.list_seq 1 (itnargs+1)) in
184 let xyty = mk_appl (List.map mk_id (itname::params)) in
186 (* PHASE 1: derive the type of the discriminator (we'll name it "principle") *)
189 let mk_eq tys ts us es n =
191 mk_appl [mk_id "jmeq";
192 NotationPt.Implicit `JustOne; List.nth ts n;
193 NotationPt.Implicit `JustOne; List.nth us n]
195 (* eqty = Tn u0 e0...un-1 en-1 *)
197 (List.nth tys n :: iter (fun i acc ->
202 (* params = [T0;t0;...;Tn;tn;u0;e0;un-1;en-1] *)
203 let params = iter (fun i acc ->
205 List.nth ts i :: acc) n
208 List.nth es i:: acc) (n-1) []) in
209 mk_appl [mk_id "eq"; eqty;
210 mk_appl (mk_id ("R" ^ string_of_int n) :: params);
218 let _,name,_ = List.nth cl j in
222 let branch i j ts us =
223 let nargs = nargs it leftno i in
224 let es = List.map (fun x -> mk_id ("e" ^ string_of_int x)) (HExtlib.list_seq 0 nargs) in
228 NotationPt.Binder (`Lambda, (mk_id ("x" ^ string_of_int i), None),
229 NotationPt.Binder (`Lambda, (mk_id ("p" ^ string_of_int i), None),
231 (NotationPt.Implicit (`Tagged ("T" ^ (string_of_int x)))))
232 (HExtlib.list_seq 0 nargs) in
235 NotationPt.Binder (`Lambda, (mk_id ("x" ^ string_of_int i), None),
236 NotationPt.Binder (`Lambda, (mk_id ("p" ^ string_of_int i), None),
238 (mk_appl [mk_id "eq"; NotationPt.Implicit `JustOne;
239 mk_appl (mk_id (kname i)::
240 List.map (fun x -> mk_id ("x" ^string_of_int x))
241 (HExtlib.list_seq 0 (List.length ts)));
242 mk_appl (mk_id (kname j)::us)])]
244 (** NotationPt.Binder (`Lambda, (mk_id "e",
247 NotationPt.Implicit `JustOne;
248 mk_appl (mk_id (kname it i)::ts);
249 mk_appl (mk_id (kname it j)::us)])),
250 let ts = ts @ [mk_id "e"] in
253 NotationPt.Implicit `JustOne;
254 mk_appl (mk_id (kname it j)::us)] in
255 let us = us @ [refl2] in *)
256 NotationPt.Binder (`Forall, (mk_id "P", Some (NotationPt.Sort (`NType "1") )),
258 NotationPt.Binder (`Forall, (mk_id "_",
259 Some (iter (fun i acc ->
260 NotationPt.Binder (`Forall, (List.nth es i, Some (mk_eq tys ts us es i)), acc))
262 (** (NotationPt.Binder (`Forall, (mk_id "_",
263 Some (mk_eq tys ts us es nargs)),*)
264 (mk_id "P"))), mk_id "P")
268 let inner i ts = NotationPt.Case
270 (*Some (NotationPt.Binder (`Lambda, (mk_id "y",None),
271 NotationPt.Binder (`Forall, (mk_id "_", Some
272 (mk_appl [mk_id "eq";NotationPt.Implicit
273 `JustOne;(*NotationPt.Implicit `JustOne*)
274 mk_appl (mk_id (kname it i)::ts);mk_id "y"])),
275 NotationPt.Implicit `JustOne )))*)
279 let nargs_kty = nargs it leftno j in
280 let us = iter (fun m acc -> mk_id ("u" ^ (string_of_int m))::acc)
281 (nargs_kty - 1) [] in
283 iter (fun _ acc -> None::acc) (nargs_kty - 1) [] in
284 NotationPt.Pattern (kname j,
286 List.combine us nones),
288 (HExtlib.list_seq 0 (List.length cl)))
290 let outer = NotationPt.Case
295 let nargs_kty = nargs it leftno i in
296 if (nargs_kty > 5 && not use_jmeq) then raise (ConstructorTooBig (kname i));
297 let ts = iter (fun m acc -> mk_id ("t" ^ (string_of_int m))::acc)
298 (nargs_kty - 1) [] in
300 iter (fun _ acc -> None::acc) (nargs_kty - 1) [] in
301 NotationPt.Pattern (kname i,
303 List.combine ts nones),
305 (HExtlib.list_seq 0 (List.length cl))) in
307 mk_prods params (NotationPt.Binder (`Forall, (mk_id "x",
309 NotationPt.Binder (`Forall, (mk_id "y", Some xyty),
311 NotationPt.Binder (`Forall, (mk_id "e",
313 [mk_sym "jmsimeq"; NotationPt.Implicit `JustOne; mk_id "x";
314 NotationPt.Implicit `JustOne; mk_id "y"])),
317 NotationPt.Binder (`Forall, (mk_id "e",
318 Some (mk_appl [mk_sym "eq";NotationPt.Implicit `JustOne; mk_id "x"; mk_id "y"])),
321 pp (lazy ("discriminator = " ^ (NotationPp.pp_term status principle)));
323 (* PHASE 2: create the object for the proof of the principle: we'll name it
325 let status, theorem =
326 GrafiteDisambiguate.disambiguate_nobj status ~baseuri
327 (baseuri ^ name ^ ".def",0,
329 (`Theorem,name,principle,
330 Some (NotationPt.Implicit (`Tagged "inv")),`DiscriminationPrinciple))
332 let uri,height,nmenv,nsubst,nobj = theorem in
333 let ninitial_stack = Continuationals.Stack.of_nmetasenv nmenv in
334 let status = status#set_obj theorem in
335 let status = status#set_stack ninitial_stack in
336 let status = subst_metasenv_and_fix_names status in
338 (* PHASE 3: we finally prove the discrimination principle *)
339 let dbranch it ~use_jmeq leftno consno =
340 let refl_id = mk_sym "refl" in
341 pp (lazy (Printf.sprintf "dbranch %d %d" leftno consno));
342 let nlist = HExtlib.list_seq 0 (nargs it leftno consno) in
343 (* (\forall ...\forall P.\forall DH : ( ... = ... -> P). P) *)
344 let params = List.map (fun x -> NTactics.intro_tac ("a" ^ string_of_int x)) nlist in
345 (* NTactics.reduce_tac ~reduction:(`Normalize true)
346 * ~where:default_pattern::*)
348 NTactics.intro_tac "P";
349 NTactics.intro_tac "DH";
350 NTactics.apply_tac ("",0,mk_id "DH");
351 NTactics.apply_tac ("",0,refl_id); (* well, it works even if no goal is selected after applying DH... *)
353 let dbranches it ~use_jmeq leftno =
354 pp (lazy (Printf.sprintf "dbranches %d" leftno));
355 let nbranches = List.length cl in
356 let branches = iter (fun n acc ->
357 let m = nbranches - n - 1 in
358 if m = 0 then acc @ (dbranch it ~use_jmeq leftno m)
359 else acc @ NTactics.shift_tac :: (dbranch it ~use_jmeq
362 if nbranches > 1 then
363 NTactics.branch_tac ~force:false:: branches @ [NTactics.merge_tac]
366 let print_tac s status = pp s ; status in
370 [print_tac (lazy "ci sono") (*;
371 NTactics.reduce_tac ~reduction:(`Normalize true) ~where:default_pattern *)
373 @ List.map (fun x -> NTactics.intro_tac x) params @
374 [NTactics.intro_tac "x";
375 NTactics.intro_tac "y";
376 NTactics.intro_tac "Deq";
377 print_tac (lazy "ci sono 2");
378 NTactics.rewrite_tac ~dir:`RightToLeft ~what:("",0,mk_id "Deq") ~where:default_pattern;
379 NTactics.cases_tac ~what:("",0,mk_id "x") ~where:default_pattern]
380 @ dbranches it ~use_jmeq leftno) status
381 in status, status#obj
384 let hd_of_term status t =
385 match (snd (term_of_cic_term status
386 (snd (whd status (ctx_of t) t)) (ctx_of t))) with
387 | NCic.Appl (hd::_) -> hd
391 let name_of_rel ~context rel =
392 let s, _ = List.nth context (rel-1) in s
395 (* let lookup_in_ctx ~context n =
396 List.nth context ((List.length context) - n - 1)
399 let discriminate_tac ~context cur_eq status =
400 pp (lazy (Printf.sprintf "discriminate: equation %s" (name_of_rel ~context cur_eq)));
403 let eq_name,(NCic.Decl s | NCic.Def (s,_)) = List.nth context (cur_eq-1) in
404 let _,ctx' = HExtlib.split_nth cur_eq context in
405 let status, s = NTacStatus.whd status ctx' (mk_cic_term ctx' s) in
406 let status, s = term_of_cic_term status s ctx' in
407 let status,it,use_jmeq =
408 let it, use_jmeq = match s with
409 | NCic.Appl [_;it;_;_] -> it,false
410 | NCic.Appl [_;it;_;_;_] -> it,true
411 | _ -> assert false in
412 (* XXX: serve? ho già fatto whd *)
413 let status, it = whd status ctx' (mk_cic_term ctx' it) in
414 let status, it = term_of_cic_term status it ctx' in
415 let _uri,indtyno,its = match it with
416 | NCic.Const (NReference.Ref (uri, NReference.Ind (_,indtyno,_)) as r)
417 | NCic.Appl (NCic.Const
418 (NReference.Ref (uri, NReference.Ind (_,indtyno,_)) as r)::_) ->
419 uri, indtyno, NCicEnvironment.get_checked_indtys status r
420 | _ -> pp (lazy ("discriminate: indty =" ^ status#ppterm
421 ~metasenv:[] ~subst:[] ~context:[] it)) ; assert false in
422 let _,_,its,_,_ = its in
423 status,List.nth its indtyno, use_jmeq
427 let _,_,arity,_ = it in
428 List.length (arg_list 0 arity) in
429 let _,itname,_,_ = it in
430 let params = List.map (fun x -> "a" ^ string_of_int x) (HExtlib.list_seq 1 (itnargs+1)) in
432 if use_jmeq then itname ^ "_jmdiscr"
433 else itname ^ "_discr"
435 pp (lazy ("apply (" ^ principle_name ^ " " ^
436 (String.concat "" (HExtlib.mk_list "?" (List.length params + 2))) ^
437 " " ^ eq_name ^ ")"));
438 NTactics.apply_tac ("",0,mk_appl ([mk_id principle_name]@
439 HExtlib.mk_list (NotationPt.Implicit `JustOne) (List.length params + 2) @
440 [mk_id eq_name ])) status
443 let saturate_skip status context skip =
447 let ix = HExtlib.list_index ((=) x) (List.map fst context)
451 fst (cascade_select_in_ctx status ~subst:(get_subst status) context [] (i+1)) @ acc) skip skip)
454 let subst_tac ~context ~dir skip cur_eq =
455 fun status as oldstatus ->
456 let eq_name,(NCic.Decl s | NCic.Def (s,_)) = List.nth context (cur_eq-1) in
457 let _,ctx' = HExtlib.split_nth cur_eq context in
458 let status, s = NTacStatus.whd status ctx' (mk_cic_term ctx' s) in
459 let status, s = term_of_cic_term status s ctx' in
460 let skip = saturate_skip status context skip in
461 pp (lazy (Printf.sprintf "subst: equation %s" eq_name));
462 let l, r = match s with
463 | NCic.Appl [_;_;t1;t2] | NCic.Appl [_;_;t1;_;t2] -> t1,t2
464 | _ -> assert false in
465 let var = match dir with
467 | `RightToLeft -> r in
468 (* let var = match var with
470 | _ -> assert false in *)
471 let names_to_gen, _ =
474 cascade_select_in_ctx status ~subst:(get_subst status) context skip (var+cur_eq)
475 | _ -> cascade_select_in_ctx status ~subst:(get_subst status) context skip cur_eq in
476 let varname = match var with
478 let name,_ = List.nth context (var+cur_eq-1) in
479 HLog.warn (Printf.sprintf "destruct: trying to remove variable: %s" name);
483 let names_to_gen = List.filter (fun n -> n <> eq_name) names_to_gen in
484 if (List.exists (fun x -> List.mem x skip) names_to_gen)
489 let x' = String.concat " " x in
490 let x = List.map mk_id x in
491 (* let s = NTactics.print_tac false ("@generalize " ^ x') s in *)
492 generalize0_tac x s) in
494 (* (List.map gen_tac names_to_gen)@ *)
495 [gen_tac (List.rev names_to_gen);
496 NTactics.clear_tac names_to_gen;
497 NTactics.rewrite_tac ~dir
498 ~what:("",0,mk_id eq_name) ~where:default_pattern;
499 (* NTactics.reduce_tac ~reduction:(`Normalize true)
500 ~where:default_pattern;*)
501 (* XXX: temo che la clear multipla funzioni bene soltanto se
502 * gli identificatori sono nell'ordine giusto.
503 * Per non saper né leggere né scrivere, usiamo due clear
505 NTactics.try_tac (NTactics.clear_tac [eq_name]);
506 NTactics.try_tac (NTactics.clear_tac varname);
508 (List.map NTactics.intro_tac (List.rev names_to_gen))) status
511 let clearid_tac ~context skip cur_eq =
513 let eq_name,(NCic.Decl s | NCic.Def (s,_)) = List.nth context (cur_eq-1) in
514 let _,ctx' = HExtlib.split_nth cur_eq context in
515 let status, s = NTacStatus.whd status ctx' (mk_cic_term ctx' s) in
516 let status, s = term_of_cic_term status s ctx' in
517 let skip = saturate_skip status context skip in
519 pp (lazy (Printf.sprintf "clearid: equation %s" eq_name));
520 let streicher_id = mk_id "streicherK" in
521 let names_to_gen, _ =
522 cascade_select_in_ctx status ~subst:(get_subst status) context skip cur_eq in
523 let gen_tac x = generalize0_tac (List.map mk_id x) in
527 | NCic.Appl [_;_;_;_;_] ->
528 let names_to_gen = List.rev names_to_gen in
529 (*let gen_eq = NTactics.generalize_tac
530 ~where:("",0,(Some (mk_appl [mk_id "jmeq_to_eq";
531 NotationPt.Implicit `JustOne;
532 NotationPt.Implicit `JustOne;
533 NotationPt.Implicit `JustOne;
534 mk_id eq_name]),[], Some
535 NotationPt.UserInput)) in*)
536 let gen_eq = generalize0_tac
537 [mk_appl [mk_id "jmeq_to_eq";
538 NotationPt.Implicit `JustOne;
539 NotationPt.Implicit `JustOne;
540 NotationPt.Implicit `JustOne;
542 NTactics.block_tac ((gen_tac (List.rev names_to_gen))::gen_eq::
543 [NTactics.clear_tac names_to_gen;
544 NTactics.try_tac (NTactics.clear_tac [eq_name]);
545 NTactics.apply_tac ("",0, mk_appl [streicher_id;
546 NotationPt.Implicit `JustOne;
547 NotationPt.Implicit `JustOne;
548 NotationPt.Implicit `JustOne;
549 NotationPt.Implicit `JustOne]);
551 (List.map NTactics.intro_tac names_to_gen)) status
554 | NCic.Appl [_;_;_;_] ->
556 let names_to_gen, _ =
557 cascade_select_in_ctx status ~subst:(get_subst status) context skip cur_eq in
558 let names_to_gen = eq_name :: (List.rev names_to_gen) in
559 NTactics.block_tac ((gen_tac names_to_gen)::
560 [NTactics.clear_tac names_to_gen;
561 NTactics.apply_tac ("",0, mk_appl [streicher_id;
562 NotationPt.Implicit `JustOne;
563 NotationPt.Implicit `JustOne;
564 NotationPt.Implicit `JustOne;
565 NotationPt.Implicit `JustOne])
566 (* NTactics.reduce_tac ~reduction:(`Normalize true)
567 ~where:default_pattern *)
569 let names_to_intro = List.tl names_to_gen in
570 (List.map NTactics.intro_tac names_to_intro)) status
576 let get_ctx st goal =
577 ctx_of (get_goalty st goal)
580 (* = select + classify *)
581 let select_eq ctx acc domain status goal =
582 let classify ~use_jmeq ~subst ctx' l r =
583 (* FIXME: metasenv *)
584 if NCicReduction.are_convertible status ~metasenv:[] ~subst ctx' l r
585 then status, `Identity
586 else status, (match hd_of_term status (mk_cic_term ctx' l),
587 hd_of_term status (mk_cic_term ctx' r) with
588 | NCic.Const (NReference.Ref (_,NReference.Con (_,ki,nleft)) as kref),
589 NCic.Const (NReference.Ref (_,NReference.Con (_,kj,_))) ->
590 if ki != kj then `Discriminate (0,true, use_jmeq)
592 let rit = NReference.mk_indty true kref in
593 let _,_,its,_,itno = NCicEnvironment.get_checked_indtys status rit in
594 let it = List.nth its itno in
595 let newprods = nargs it nleft (ki-1) in
596 `Discriminate (newprods, false, use_jmeq)
598 when NCicTypeChecker.does_not_occur status ~subst ctx' (j-1) j r
599 && l = NCic.Rel j -> `Subst `LeftToRight
601 when NCicTypeChecker.does_not_occur status ~subst ctx' (j-1) j l
602 && r = NCic.Rel j -> `Subst `RightToLeft
603 | (NCic.Rel _, _ | _, NCic.Rel _ ) -> `Cycle (* could be a blob too... *)
607 let index = List.length ctx - i in
608 pp (lazy ("provo classify di index = " ^string_of_int index));
609 match (List.nth ctx (index - 1)) with
610 | n, (NCic.Decl ty | NCic.Def (ty,_)) ->
611 (let _,ctx_ty = HExtlib.split_nth index ctx in
612 let status, ty = NTacStatus.whd status ctx_ty (mk_cic_term ctx_ty ty) in
613 let status, ty = term_of_cic_term status ty ctx_ty in
614 pp (lazy (Printf.sprintf "select_eq tries %s" (status#ppterm ~context:ctx_ty ~subst:[] ~metasenv:[] ty)));
615 let status, kind = match ty with
616 | NCic.Appl [NCic.Const (NReference.Ref (u,_)) ;_;l;r]
617 when NUri.name_of_uri u = "eq" ->
618 classify ~use_jmeq:false ~subst:(get_subst status) ctx_ty l r
619 | NCic.Appl [NCic.Const (NReference.Ref (u,_)) ;lty;l;rty;r]
620 when NUri.name_of_uri u = "jmeq" &&
621 NCicReduction.are_convertible status ~metasenv:[]
622 ~subst:(get_subst status) ctx_ty lty rty
623 -> classify ~use_jmeq:true ~subst:(get_subst status) ctx_ty l r
624 | _ -> status, `NonEq
627 let status, goalty = term_of_cic_term status (get_goalty status goal) ctx in
628 status, Some (List.length ctx - i), kind
629 | `Cycle | `Blob | `NonEq -> aux (i+1) (* XXX: skip cyclic/blob equations for now *)
631 if (List.for_all (fun x -> x <> n) acc) &&
632 (List.exists (fun x -> x = n) domain)
633 then status, Some (List.length ctx - i), kind
635 with Failure _ | Invalid_argument _ -> status, None, `Blob
639 let tagged_intro_tac curtag name =
643 [ NTactics.intro_tac name
644 ; NTactics.reduce_tac
645 ~reduction:(`Whd true) ~where:(hp_pattern name) ]
646 | _ -> NTactics.intro_tac name
649 distribute_tac (fun s g ->
650 let eq_name,(NCic.Decl s | NCic.Def (s,_)) = List.nth context (cur_eq-1) in
651 let _,ctx' = HExtlib.split_nth cur_eq context in
652 let status, s = NTacStatus.whd status ctx' (mk_cic_term ctx' s) in
653 let status, s = term_of_cic_term status s ctx' in
656 | NCic.Appl [_;it;t1;t2] -> false
657 | NCic.Appl [_;it;t1;_;t2] -> true
658 | _ -> assert false in
660 let it, t1, t2, use_jmeq = match s with
661 | NCic.Appl [_;it;t1;t2] -> it,t1,t2,false
662 | NCic.Appl [_;it;t1;_;t2] -> it,t1,t2,true
663 | _ -> assert false in
664 [ NTactics.intro_tac name
665 ; NTactics.reduce_tac ~reduction:(`Whd true) ~where:prod_pattern ]*)
668 let rec destruct_tac0 tags acc domain skip status goal =
674 let pptags tags = String.concat ", " (List.map pptag tags) in
675 let ctx = get_ctx status goal in
676 let subst = get_subst status in
677 let get_newgoal os ns ogoal =
678 let go, gc = NTactics.compare_statuses ~past:os ~present:ns in
679 let go' = ([ogoal] @- gc) @+ go in
680 match go' with [] -> assert false | g::_ -> g
682 let status, selection, kind = select_eq ctx acc domain status goal in
683 pp (lazy ("destruct: acc is " ^ String.concat "," acc ));
684 match selection, kind with
686 pp (lazy (Printf.sprintf
687 "destruct: no selection, context is %s, stack is %s"
688 (status#ppcontext ~metasenv:[] ~subst ctx) (pptags tags)));
692 let fresh = mk_fresh_name ctx 'e' 0 in
693 let status' = NTactics.exec (tagged_intro_tac curtag fresh) status goal in
694 destruct_tac0 tags' acc (fresh::domain) skip status'
695 (get_newgoal status status' goal))
696 | Some cur_eq, `Discriminate (newprods,conflict,use_jmeq) ->
697 pp (lazy (Printf.sprintf
698 "destruct: discriminate - nselection is %d, context is %s,stack is %s"
699 cur_eq (status#ppcontext ~metasenv:[] ~subst ctx) (pptags tags)));
700 let status' = NTactics.exec (discriminate_tac ~context:ctx cur_eq) status goal in
701 if conflict then status'
703 let newtags = HExtlib.mk_list (`Eq use_jmeq) newprods in
704 destruct_tac0 (newtags@tags)
705 (name_of_rel ~context:ctx cur_eq::acc)
706 (List.filter (fun x -> x <> name_of_rel ~context:ctx cur_eq) domain)
708 status' (get_newgoal status status' goal)
709 | Some cur_eq, `Subst dir ->
710 pp (lazy (Printf.sprintf
711 "destruct: subst - selection is %d, context is %s, stack is %s"
712 cur_eq (status#ppcontext ~metasenv:[] ~subst ctx) (pptags tags)));
713 let status' = NTactics.exec (subst_tac ~context:ctx ~dir skip cur_eq) status goal in
714 pp (lazy (Printf.sprintf " ctx after subst = %s" (status#ppcontext ~metasenv:[] ~subst (get_ctx status' (get_newgoal status status' goal)))));
715 let eq_name,_ = List.nth ctx (cur_eq-1) in
716 let newgoal = get_newgoal status status' goal in
719 let _ = NTactics.find_in_context eq_name (get_ctx status' newgoal) in false
721 let rm_eq b l = if b then List.filter (fun x -> x <> eq_name) l else l in
722 let acc = rm_eq has_cleared acc in
723 let skip = rm_eq has_cleared skip in
724 let domain = rm_eq has_cleared domain in
725 destruct_tac0 tags acc domain skip status' newgoal
726 | Some cur_eq, `Identity ->
727 pp (lazy (Printf.sprintf
728 "destruct: identity - selection is %d, context is %s, stack is %s"
729 cur_eq (status#ppcontext ~metasenv:[] ~subst ctx) (pptags tags)));
730 let eq_name,_ = List.nth ctx (cur_eq-1) in
731 let status' = NTactics.exec (clearid_tac ~context:ctx skip cur_eq) status goal in
732 let newgoal = get_newgoal status status' goal in
735 let _ = NTactics.find_in_context eq_name (get_ctx status' newgoal) in false
737 let rm_eq b l = if b then List.filter (fun x -> x <> eq_name) l else l in
738 let acc = rm_eq has_cleared acc in
739 let skip = rm_eq has_cleared skip in
740 let domain = rm_eq has_cleared domain in
741 destruct_tac0 tags acc domain skip status' newgoal
742 | Some cur_eq, `Cycle -> (* TODO, should never happen *)
743 pp (lazy (Printf.sprintf
744 "destruct: cycle - selection is %d, context is %s, stack is %s"
745 cur_eq (status#ppcontext ~metasenv:[] ~subst ctx) (pptags tags)));
747 | Some cur_eq, `Blob ->
748 pp (lazy (Printf.sprintf
749 "destruct: blob - selection is %d, context is %s, stack is %s"
750 cur_eq (status#ppcontext ~metasenv:[] ~subst ctx) (pptags tags)));
755 let destruct_tac dom skip s =
756 NTactics.distribute_tac
758 let ctx = get_ctx s' g in
759 let domain = match dom with
760 | None -> List.map (fun (n,_) -> n) ctx
763 destruct_tac0 [] [] domain skip s' g) s;;