| author | huffman | 
| Mon, 28 May 2007 03:45:41 +0200 | |
| changeset 23112 | 2bc882fbe51c | 
| parent 22871 | 9ffb43b19ec6 | 
| child 23262 | 0fafccb015e6 | 
| permissions | -rw-r--r-- | 
| 9869 | 1 | (* Title: HOL/Tools/meson.ML | 
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changeset | 2 | ID: $Id$ | 
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changeset | 3 | Author: Lawrence C Paulson, Cambridge University Computer Laboratory | 
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changeset | 4 | Copyright 1992 University of Cambridge | 
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changeset | 5 | |
| 9869 | 6 | The MESON resolution proof procedure for HOL. | 
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changeset | 7 | |
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changeset | 8 | When making clauses, avoids using the rewriter -- instead uses RS recursively | 
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changeset | 9 | |
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changeset | 10 | NEED TO SORT LITERALS BY # OF VARS, USING ==>I/E. ELIMINATES NEED FOR | 
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changeset | 11 | FUNCTION nodups -- if done to goal clauses too! | 
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changeset | 12 | *) | 
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changeset | 13 | |
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changeset | 14 | signature BASIC_MESON = | 
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changeset | 15 | sig | 
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changeset | 16 | val size_of_subgoals : thm -> int | 
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changeset | 17 | val make_cnf : thm list -> thm -> thm list | 
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changeset | 18 | val finish_cnf : thm list -> thm list | 
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changeset | 19 | val make_nnf : thm -> thm | 
| 17849 | 20 | val make_nnf1 : thm -> thm | 
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changeset | 21 | val skolemize : thm -> thm | 
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changeset | 22 | val make_clauses : thm list -> thm list | 
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changeset | 23 | val make_horns : thm list -> thm list | 
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changeset | 24 | val best_prolog_tac : (thm -> int) -> thm list -> tactic | 
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changeset | 25 | val depth_prolog_tac : thm list -> tactic | 
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changeset | 26 | val gocls : thm list -> thm list | 
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changeset | 27 | val skolemize_prems_tac : thm list -> int -> tactic | 
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changeset | 28 | val MESON : (thm list -> thm list) -> (thm list -> tactic) -> int -> tactic | 
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changeset | 29 | val best_meson_tac : (thm -> int) -> int -> tactic | 
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changeset | 30 | val safe_best_meson_tac : int -> tactic | 
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changeset | 31 | val depth_meson_tac : int -> tactic | 
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changeset | 32 | val prolog_step_tac' : thm list -> int -> tactic | 
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changeset | 33 | val iter_deepen_prolog_tac : thm list -> tactic | 
| 16563 | 34 | val iter_deepen_meson_tac : thm list -> int -> tactic | 
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changeset | 35 | val meson_tac : int -> tactic | 
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changeset | 36 | val negate_head : thm -> thm | 
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changeset | 37 | val select_literal : int -> thm -> thm | 
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changeset | 38 | val skolemize_tac : int -> tactic | 
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changeset | 39 | end | 
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changeset | 40 | |
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changeset | 41 | |
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changeset | 42 | structure Meson = | 
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changeset | 43 | struct | 
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changeset | 44 | |
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changeset | 45 | val not_conjD = thm "meson_not_conjD"; | 
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changeset | 46 | val not_disjD = thm "meson_not_disjD"; | 
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changeset | 47 | val not_notD = thm "meson_not_notD"; | 
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changeset | 48 | val not_allD = thm "meson_not_allD"; | 
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changeset | 49 | val not_exD = thm "meson_not_exD"; | 
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changeset | 50 | val imp_to_disjD = thm "meson_imp_to_disjD"; | 
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changeset | 51 | val not_impD = thm "meson_not_impD"; | 
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changeset | 52 | val iff_to_disjD = thm "meson_iff_to_disjD"; | 
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changeset | 53 | val not_iffD = thm "meson_not_iffD"; | 
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changeset | 54 | val conj_exD1 = thm "meson_conj_exD1"; | 
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changeset | 55 | val conj_exD2 = thm "meson_conj_exD2"; | 
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changeset | 56 | val disj_exD = thm "meson_disj_exD"; | 
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changeset | 57 | val disj_exD1 = thm "meson_disj_exD1"; | 
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changeset | 58 | val disj_exD2 = thm "meson_disj_exD2"; | 
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changeset | 59 | val disj_assoc = thm "meson_disj_assoc"; | 
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changeset | 60 | val disj_comm = thm "meson_disj_comm"; | 
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changeset | 61 | val disj_FalseD1 = thm "meson_disj_FalseD1"; | 
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changeset | 62 | val disj_FalseD2 = thm "meson_disj_FalseD2"; | 
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changeset | 63 | |
| 16563 | 64 | val depth_limit = ref 2000; | 
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changeset | 65 | |
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changeset | 66 | (**** Operators for forward proof ****) | 
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changeset | 67 | |
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changeset | 68 | |
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changeset | 69 | (** First-order Resolution **) | 
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changeset | 70 | |
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changeset | 71 | fun typ_pair_of (ix, (sort,ty)) = (TVar (ix,sort), ty); | 
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changeset | 72 | fun term_pair_of (ix, (ty,t)) = (Var (ix,ty), t); | 
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changeset | 73 | |
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changeset | 74 | val Envir.Envir {asol = tenv0, iTs = tyenv0, ...} = Envir.empty 0
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changeset | 75 | |
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changeset | 76 | (*FIXME: currently does not "rename variables apart"*) | 
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changeset | 77 | fun first_order_resolve thA thB = | 
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changeset | 78 | let val thy = theory_of_thm thA | 
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changeset | 79 | val tmA = concl_of thA | 
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changeset | 80 | fun match pat = Pattern.first_order_match thy (pat,tmA) (tyenv0,tenv0) | 
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changeset | 81 |       val Const("==>",_) $ tmB $ _ = prop_of thB
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changeset | 82 | val (tyenv,tenv) = match tmB | 
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changeset | 83 | val ct_pairs = map (pairself (cterm_of thy) o term_pair_of) (Vartab.dest tenv) | 
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changeset | 84 | in thA RS (cterm_instantiate ct_pairs thB) end | 
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changeset | 85 |   handle _ => raise THM ("first_order_resolve", 0, [thA,thB]);
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changeset | 86 | |
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changeset | 87 | (*raises exception if no rules apply -- unlike RL*) | 
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changeset | 88 | fun tryres (th, rls) = | 
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changeset | 89 |   let fun tryall [] = raise THM("tryres", 0, th::rls)
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changeset | 90 | | tryall (rl::rls) = (th RS rl handle THM _ => tryall rls) | 
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changeset | 91 | in tryall rls end; | 
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changeset | 92 | |
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changeset | 93 | (*Permits forward proof from rules that discharge assumptions. The supplied proof state st, | 
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changeset | 94 | e.g. from conj_forward, should have the form | 
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changeset | 95 | "[| P' ==> ?P; Q' ==> ?Q |] ==> ?P & ?Q" | 
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changeset | 96 | and the effect should be to instantiate ?P and ?Q with normalized versions of P' and Q'.*) | 
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changeset | 97 | fun forward_res nf st = | 
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changeset | 98 | let fun forward_tacf [prem] = rtac (nf prem) 1 | 
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changeset | 99 | | forward_tacf prems = | 
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changeset | 100 |             error ("Bad proof state in forward_res, please inform lcp@cl.cam.ac.uk:\n" ^
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changeset | 101 | string_of_thm st ^ | 
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changeset | 102 | "\nPremises:\n" ^ | 
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changeset | 103 | cat_lines (map string_of_thm prems)) | 
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changeset | 104 | in | 
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changeset | 105 | case Seq.pull (ALLGOALS (METAHYPS forward_tacf) st) | 
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changeset | 106 | of SOME(th,_) => th | 
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changeset | 107 |      | NONE => raise THM("forward_res", 0, [st])
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changeset | 108 | end; | 
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changeset | 109 | |
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changeset | 110 | (*Are any of the logical connectives in "bs" present in the term?*) | 
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changeset | 111 | fun has_conns bs = | 
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changeset | 112 | let fun has (Const(a,_)) = false | 
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changeset | 113 |         | has (Const("Trueprop",_) $ p) = has p
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changeset | 114 |         | has (Const("Not",_) $ p) = has p
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changeset | 115 |         | has (Const("op |",_) $ p $ q) = member (op =) bs "op |" orelse has p orelse has q
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changeset | 116 |         | has (Const("op &",_) $ p $ q) = member (op =) bs "op &" orelse has p orelse has q
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changeset | 117 |         | has (Const("All",_) $ Abs(_,_,p)) = member (op =) bs "All" orelse has p
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changeset | 118 |         | has (Const("Ex",_) $ Abs(_,_,p)) = member (op =) bs "Ex" orelse has p
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changeset | 119 | | has _ = false | 
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changeset | 120 | in has end; | 
| 17716 | 121 | |
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changeset | 122 | |
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changeset | 123 | (**** Clause handling ****) | 
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changeset | 124 | |
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changeset | 125 | fun literals (Const("Trueprop",_) $ P) = literals P
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changeset | 126 |   | literals (Const("op |",_) $ P $ Q) = literals P @ literals Q
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changeset | 127 |   | literals (Const("Not",_) $ P) = [(false,P)]
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changeset | 128 | | literals P = [(true,P)]; | 
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changeset | 129 | |
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changeset | 130 | (*number of literals in a term*) | 
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changeset | 131 | val nliterals = length o literals; | 
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changeset | 132 | |
| 18389 | 133 | |
| 134 | (*** Tautology Checking ***) | |
| 135 | ||
| 136 | fun signed_lits_aux (Const ("op |", _) $ P $ Q) (poslits, neglits) = 
 | |
| 137 | signed_lits_aux Q (signed_lits_aux P (poslits, neglits)) | |
| 138 |   | signed_lits_aux (Const("Not",_) $ P) (poslits, neglits) = (poslits, P::neglits)
 | |
| 139 | | signed_lits_aux P (poslits, neglits) = (P::poslits, neglits); | |
| 140 | ||
| 141 | fun signed_lits th = signed_lits_aux (HOLogic.dest_Trueprop (concl_of th)) ([],[]); | |
| 142 | ||
| 143 | (*Literals like X=X are tautologous*) | |
| 144 | fun taut_poslit (Const("op =",_) $ t $ u) = t aconv u
 | |
| 145 |   | taut_poslit (Const("True",_)) = true
 | |
| 146 | | taut_poslit _ = false; | |
| 147 | ||
| 148 | fun is_taut th = | |
| 149 | let val (poslits,neglits) = signed_lits th | |
| 150 | in exists taut_poslit poslits | |
| 151 | orelse | |
| 20073 | 152 | exists (member (op aconv) neglits) (HOLogic.false_const :: poslits) | 
| 19894 | 153 | end | 
| 154 | handle TERM _ => false; (*probably dest_Trueprop on a weird theorem*) | |
| 18389 | 155 | |
| 156 | ||
| 157 | (*** To remove trivial negated equality literals from clauses ***) | |
| 158 | ||
| 159 | (*They are typically functional reflexivity axioms and are the converses of | |
| 160 | injectivity equivalences*) | |
| 161 | ||
| 162 | val not_refl_disj_D = thm"meson_not_refl_disj_D"; | |
| 163 | ||
| 20119 | 164 | (*Is either term a Var that does not properly occur in the other term?*) | 
| 165 | fun eliminable (t as Var _, u) = t aconv u orelse not (Logic.occs(t,u)) | |
| 166 | | eliminable (u, t as Var _) = t aconv u orelse not (Logic.occs(t,u)) | |
| 167 | | eliminable _ = false; | |
| 168 | ||
| 18389 | 169 | fun refl_clause_aux 0 th = th | 
| 170 | | refl_clause_aux n th = | |
| 171 | case HOLogic.dest_Trueprop (concl_of th) of | |
| 172 | 	  (Const ("op |", _) $ (Const ("op |", _) $ _ $ _) $ _) => 
 | |
| 173 | refl_clause_aux n (th RS disj_assoc) (*isolate an atom as first disjunct*) | |
| 174 | 	| (Const ("op |", _) $ (Const("Not",_) $ (Const("op =",_) $ t $ u)) $ _) => 
 | |
| 20119 | 175 | if eliminable(t,u) | 
| 176 | then refl_clause_aux (n-1) (th RS not_refl_disj_D) (*Var inequation: delete*) | |
| 18389 | 177 | else refl_clause_aux (n-1) (th RS disj_comm) (*not between Vars: ignore*) | 
| 178 | 	| (Const ("op |", _) $ _ $ _) => refl_clause_aux n (th RS disj_comm)
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changeset | 179 | | _ => (*not a disjunction*) th; | 
| 18389 | 180 | |
| 181 | fun notequal_lits_count (Const ("op |", _) $ P $ Q) = 
 | |
| 182 | notequal_lits_count P + notequal_lits_count Q | |
| 183 |   | notequal_lits_count (Const("Not",_) $ (Const("op =",_) $ _ $ _)) = 1
 | |
| 184 | | notequal_lits_count _ = 0; | |
| 185 | ||
| 186 | (*Simplify a clause by applying reflexivity to its negated equality literals*) | |
| 187 | fun refl_clause th = | |
| 188 | let val neqs = notequal_lits_count (HOLogic.dest_Trueprop (concl_of th)) | |
| 19894 | 189 | in zero_var_indexes (refl_clause_aux neqs th) end | 
| 190 | handle TERM _ => th; (*probably dest_Trueprop on a weird theorem*) | |
| 18389 | 191 | |
| 192 | ||
| 193 | (*** The basic CNF transformation ***) | |
| 194 | ||
| 21900 | 195 | val max_clauses = ref 40; | 
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changeset | 196 | |
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changeset | 197 | fun sum x y = if x < !max_clauses andalso y < !max_clauses then x+y else !max_clauses; | 
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changeset | 198 | fun prod x y = if x < !max_clauses andalso y < !max_clauses then x*y else !max_clauses; | 
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changeset | 199 | |
| 19894 | 200 | (*Estimate the number of clauses in order to detect infeasible theorems*) | 
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changeset | 201 | fun signed_nclauses b (Const("Trueprop",_) $ t) = signed_nclauses b t
 | 
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changeset | 202 |   | signed_nclauses b (Const("Not",_) $ t) = signed_nclauses (not b) t
 | 
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changeset | 203 |   | signed_nclauses b (Const("op &",_) $ t $ u) = 
 | 
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changeset | 204 | if b then sum (signed_nclauses b t) (signed_nclauses b u) | 
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changeset | 205 | else prod (signed_nclauses b t) (signed_nclauses b u) | 
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changeset | 206 |   | signed_nclauses b (Const("op |",_) $ t $ u) = 
 | 
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changeset | 207 | if b then prod (signed_nclauses b t) (signed_nclauses b u) | 
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changeset | 208 | else sum (signed_nclauses b t) (signed_nclauses b u) | 
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changeset | 209 |   | signed_nclauses b (Const("op -->",_) $ t $ u) = 
 | 
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changeset | 210 | if b then prod (signed_nclauses (not b) t) (signed_nclauses b u) | 
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changeset | 211 | else sum (signed_nclauses (not b) t) (signed_nclauses b u) | 
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changeset | 212 |   | signed_nclauses b (Const("op =", Type ("fun", [T, _])) $ t $ u) = 
 | 
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changeset | 213 | if T = HOLogic.boolT then (*Boolean equality is if-and-only-if*) | 
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changeset | 214 | if b then sum (prod (signed_nclauses (not b) t) (signed_nclauses b u)) | 
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changeset | 215 | (prod (signed_nclauses (not b) u) (signed_nclauses b t)) | 
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changeset | 216 | else sum (prod (signed_nclauses b t) (signed_nclauses b u)) | 
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changeset | 217 | (prod (signed_nclauses (not b) t) (signed_nclauses (not b) u)) | 
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changeset | 218 | else 1 | 
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changeset | 219 |   | signed_nclauses b (Const("Ex", _) $ Abs (_,_,t)) = signed_nclauses b t
 | 
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changeset | 220 |   | signed_nclauses b (Const("All",_) $ Abs (_,_,t)) = signed_nclauses b t
 | 
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changeset | 221 | | signed_nclauses _ _ = 1; (* literal *) | 
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changeset | 222 | |
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changeset | 223 | val nclauses = signed_nclauses true; | 
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changeset | 224 | |
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changeset | 225 | fun too_many_clauses t = nclauses t >= !max_clauses; | 
| 19894 | 226 | |
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changeset | 227 | (*Replaces universally quantified variables by FREE variables -- because | 
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changeset | 228 | assumptions may not contain scheme variables. Later, we call "generalize". *) | 
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changeset | 229 | fun freeze_spec th = | 
| 20361 | 230 | let val newname = gensym "mes_" | 
| 19154 | 231 |       val spec' = read_instantiate [("x", newname)] spec
 | 
| 232 | in th RS spec' end; | |
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changeset | 233 | |
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changeset | 234 | (*Used with METAHYPS below. There is one assumption, which gets bound to prem | 
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changeset | 235 | and then normalized via function nf. The normal form is given to resolve_tac, | 
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changeset | 236 | instantiate a Boolean variable created by resolution with disj_forward. Since | 
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changeset | 237 | (nf prem) returns a LIST of theorems, we can backtrack to get all combinations.*) | 
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changeset | 238 | fun resop nf [prem] = resolve_tac (nf prem) 1; | 
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changeset | 239 | |
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changeset | 240 | (*Any need to extend this list with | 
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changeset | 241 | "HOL.type_class","Code_Generator.eq_class","ProtoPure.term"?*) | 
| 18389 | 242 | val has_meta_conn = | 
| 22871 | 243 | exists_Const (member (op =) ["==", "==>", "all", "prop"] o #1); | 
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changeset | 244 | |
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changeset | 245 | fun apply_skolem_ths (th, rls) = | 
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changeset | 246 |   let fun tryall [] = raise THM("apply_skolem_ths", 0, th::rls)
 | 
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changeset | 247 | | tryall (rl::rls) = (first_order_resolve th rl handle THM _ => tryall rls) | 
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changeset | 248 | in tryall rls end; | 
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changeset | 249 | |
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changeset | 250 | (*Conjunctive normal form, adding clauses from th in front of ths (for foldr). | 
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changeset | 251 | Strips universal quantifiers and breaks up conjunctions. | 
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changeset | 252 | Eliminates existential quantifiers using skoths: Skolemization theorems.*) | 
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changeset | 253 | fun cnf skoths (th,ths) = | 
| 18389 | 254 | let fun cnf_aux (th,ths) = | 
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changeset | 255 | if not (can HOLogic.dest_Trueprop (prop_of th)) then ths (*meta-level: ignore*) | 
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changeset | 256 | else if not (has_conns ["All","Ex","op &"] (prop_of th)) | 
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changeset | 257 | then th::ths (*no work to do, terminate*) | 
| 16588 | 258 | else case head_of (HOLogic.dest_Trueprop (concl_of th)) of | 
| 259 | 	    Const ("op &", _) => (*conjunction*)
 | |
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changeset | 260 | cnf_aux (th RS conjunct1, cnf_aux (th RS conjunct2, ths)) | 
| 16588 | 261 | 	  | Const ("All", _) => (*universal quantifier*)
 | 
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changeset | 262 | cnf_aux (freeze_spec th, ths) | 
| 16588 | 263 | 	  | Const ("Ex", _) => 
 | 
| 264 | (*existential quantifier: Insert Skolem functions*) | |
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changeset | 265 | cnf_aux (apply_skolem_ths (th,skoths), ths) | 
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changeset | 266 | 	  | Const ("op |", _) => 
 | 
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changeset | 267 | (*Disjunction of P, Q: Create new goal of proving ?P | ?Q and solve it using | 
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changeset | 268 | all combinations of converting P, Q to CNF.*) | 
| 16588 | 269 | let val tac = | 
| 18389 | 270 | (METAHYPS (resop cnf_nil) 1) THEN | 
| 19154 | 271 | (fn st' => st' |> METAHYPS (resop cnf_nil) 1) | 
| 16588 | 272 | in Seq.list_of (tac (th RS disj_forward)) @ ths end | 
| 273 | | _ => (*no work to do*) th::ths | |
| 19154 | 274 | and cnf_nil th = cnf_aux (th,[]) | 
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changeset | 275 | in | 
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changeset | 276 | if too_many_clauses (concl_of th) | 
| 22130 | 277 |     then (Output.debug (fn () => ("cnf is ignoring: " ^ string_of_thm th)); ths)
 | 
| 19894 | 278 | else cnf_aux (th,ths) | 
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changeset | 279 | end; | 
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changeset | 280 | |
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changeset | 281 | fun all_names (Const ("all", _) $ Abs(x,_,P)) = x :: all_names P
 | 
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changeset | 282 | | all_names _ = []; | 
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changeset | 283 | |
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changeset | 284 | fun new_names n [] = [] | 
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changeset | 285 | | new_names n (x::xs) = | 
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changeset | 286 | if String.isPrefix "mes_" x then (x, radixstring(26,"A",n)) :: new_names (n+1) xs | 
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changeset | 287 | else new_names n xs; | 
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changeset | 288 | |
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changeset | 289 | (*The gensym names are ugly, so don't let the user see them. When forall_elim_vars | 
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changeset | 290 | is called, it will ensure that no name clauses ensue.*) | 
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changeset | 291 | fun nice_names th = | 
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changeset | 292 | let val old_names = all_names (prop_of th) | 
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changeset | 293 | in Drule.rename_bvars (new_names 0 old_names) th end; | 
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changeset | 294 | |
| 16012 | 295 | (*Convert all suitable free variables to schematic variables, | 
| 296 | but don't discharge assumptions.*) | |
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changeset | 297 | fun generalize th = Thm.varifyT (forall_elim_vars 0 (nice_names (forall_intr_frees th))); | 
| 16012 | 298 | |
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changeset | 299 | fun make_cnf skoths th = cnf skoths (th, []); | 
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changeset | 300 | |
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changeset | 301 | (*Generalization, removal of redundant equalities, removal of tautologies.*) | 
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changeset | 302 | fun finish_cnf ths = filter (not o is_taut) (map (refl_clause o generalize) ths); | 
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changeset | 303 | |
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changeset | 304 | |
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changeset | 305 | (**** Removal of duplicate literals ****) | 
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changeset | 306 | |
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changeset | 307 | (*Forward proof, passing extra assumptions as theorems to the tactic*) | 
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changeset | 308 | fun forward_res2 nf hyps st = | 
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changeset | 309 | case Seq.pull | 
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changeset | 310 | (REPEAT | 
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changeset | 311 | (METAHYPS (fn major::minors => rtac (nf (minors@hyps) major) 1) 1) | 
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changeset | 312 | st) | 
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changeset | 313 | of SOME(th,_) => th | 
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changeset | 314 |    | NONE => raise THM("forward_res2", 0, [st]);
 | 
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changeset | 315 | |
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changeset | 316 | (*Remove duplicates in P|Q by assuming ~P in Q | 
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changeset | 317 | rls (initially []) accumulates assumptions of the form P==>False*) | 
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changeset | 318 | fun nodups_aux rls th = nodups_aux rls (th RS disj_assoc) | 
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changeset | 319 | handle THM _ => tryres(th,rls) | 
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changeset | 320 | handle THM _ => tryres(forward_res2 nodups_aux rls (th RS disj_forward2), | 
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changeset | 321 | [disj_FalseD1, disj_FalseD2, asm_rl]) | 
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changeset | 322 | handle THM _ => th; | 
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changeset | 323 | |
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changeset | 324 | (*Remove duplicate literals, if there are any*) | 
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changeset | 325 | fun nodups th = | 
| 20972 | 326 | if has_duplicates (op =) (literals (prop_of th)) | 
| 327 | then nodups_aux [] th | |
| 328 | else th; | |
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changeset | 329 | |
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changeset | 330 | |
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changeset | 331 | (**** Generation of contrapositives ****) | 
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changeset | 332 | |
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changeset | 333 | fun is_left (Const ("Trueprop", _) $ 
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changeset | 334 |                (Const ("op |", _) $ (Const ("op |", _) $ _ $ _) $ _)) = true
 | 
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changeset | 335 | | is_left _ = false; | 
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changeset | 336 | |
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changeset | 337 | (*Associate disjuctions to right -- make leftmost disjunct a LITERAL*) | 
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changeset | 338 | fun assoc_right th = | 
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changeset | 339 | if is_left (prop_of th) then assoc_right (th RS disj_assoc) | 
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changeset | 340 | else th; | 
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changeset | 341 | |
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changeset | 342 | (*Must check for negative literal first!*) | 
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changeset | 343 | val clause_rules = [disj_assoc, make_neg_rule, make_pos_rule]; | 
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changeset | 344 | |
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changeset | 345 | (*For ordinary resolution. *) | 
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changeset | 346 | val resolution_clause_rules = [disj_assoc, make_neg_rule', make_pos_rule']; | 
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changeset | 347 | |
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changeset | 348 | (*Create a goal or support clause, conclusing False*) | 
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changeset | 349 | fun make_goal th = (*Must check for negative literal first!*) | 
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changeset | 350 | make_goal (tryres(th, clause_rules)) | 
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changeset | 351 | handle THM _ => tryres(th, [make_neg_goal, make_pos_goal]); | 
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changeset | 352 | |
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changeset | 353 | (*Sort clauses by number of literals*) | 
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changeset | 354 | fun fewerlits(th1,th2) = nliterals(prop_of th1) < nliterals(prop_of th2); | 
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changeset | 355 | |
| 18389 | 356 | fun sort_clauses ths = sort (make_ord fewerlits) ths; | 
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changeset | 357 | |
| 15581 | 358 | (*True if the given type contains bool anywhere*) | 
| 359 | fun has_bool (Type("bool",_)) = true
 | |
| 360 | | has_bool (Type(_, Ts)) = exists has_bool Ts | |
| 361 | | has_bool _ = false; | |
| 362 | ||
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changeset | 363 | (*Is the string the name of a connective? Really only | and Not can remain, | 
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changeset | 364 | since this code expects to be called on a clause form.*) | 
| 19875 | 365 | val is_conn = member (op =) | 
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changeset | 366 | ["Trueprop", "op &", "op |", "op -->", "Not", | 
| 15613 | 367 | "All", "Ex", "Ball", "Bex"]; | 
| 368 | ||
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changeset | 369 | (*True if the term contains a function--not a logical connective--where the type | 
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changeset | 370 | of any argument contains bool.*) | 
| 15613 | 371 | val has_bool_arg_const = | 
| 372 | exists_Const | |
| 373 | (fn (c,T) => not(is_conn c) andalso exists (has_bool) (binder_types T)); | |
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changeset | 374 | |
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changeset | 375 | (*A higher-order instance of a first-order constant? Example is the definition of | 
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changeset | 376 | HOL.one, 1, at a function type in theory SetsAndFunctions.*) | 
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changeset | 377 | fun higher_inst_const thy (c,T) = | 
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changeset | 378 | case binder_types T of | 
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changeset | 379 | [] => false (*not a function type, OK*) | 
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changeset | 380 | | Ts => length (binder_types (Sign.the_const_type thy c)) <> length Ts; | 
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changeset | 381 | |
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changeset | 382 | (*Raises an exception if any Vars in the theorem mention type bool. | 
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changeset | 383 | Also rejects functions whose arguments are Booleans or other functions.*) | 
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changeset | 384 | fun is_fol_term thy t = | 
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changeset | 385 | Term.is_first_order ["all","All","Ex"] t andalso | 
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changeset | 386 | not (exists (has_bool o fastype_of) (term_vars t) orelse | 
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changeset | 387 | has_bool_arg_const t orelse | 
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changeset | 388 | exists_Const (higher_inst_const thy) t orelse | 
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changeset | 389 | has_meta_conn t); | 
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changeset | 390 | |
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changeset | 391 | fun rigid t = not (is_Var (head_of t)); | 
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changeset | 392 | |
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changeset | 393 | fun ok4horn (Const ("Trueprop",_) $ (Const ("op |", _) $ t $ _)) = rigid t
 | 
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changeset | 394 |   | ok4horn (Const ("Trueprop",_) $ t) = rigid t
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changeset | 395 | | ok4horn _ = false; | 
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changeset | 396 | |
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changeset | 397 | (*Create a meta-level Horn clause*) | 
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changeset | 398 | fun make_horn crules th = | 
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changeset | 399 | if ok4horn (concl_of th) | 
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changeset | 400 | then make_horn crules (tryres(th,crules)) handle THM _ => th | 
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changeset | 401 | else th; | 
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changeset | 402 | |
| 16563 | 403 | (*Generate Horn clauses for all contrapositives of a clause. The input, th, | 
| 404 | is a HOL disjunction.*) | |
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changeset | 405 | fun add_contras crules (th,hcs) = | 
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changeset | 406 | let fun rots (0,th) = hcs | 
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changeset | 407 | | rots (k,th) = zero_var_indexes (make_horn crules th) :: | 
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changeset | 408 | rots(k-1, assoc_right (th RS disj_comm)) | 
| 15862 | 409 | in case nliterals(prop_of th) of | 
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changeset | 410 | 1 => th::hcs | 
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changeset | 411 | | n => rots(n, assoc_right th) | 
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changeset | 412 | end; | 
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changeset | 413 | |
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changeset | 414 | (*Use "theorem naming" to label the clauses*) | 
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changeset | 415 | fun name_thms label = | 
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changeset | 416 | let fun name1 (th, (k,ths)) = | 
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changeset | 417 | (k-1, PureThy.put_name_hint (label ^ string_of_int k) th :: ths) | 
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changeset | 418 | in fn ths => #2 (foldr name1 (length ths, []) ths) end; | 
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changeset | 419 | |
| 16563 | 420 | (*Is the given disjunction an all-negative support clause?*) | 
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changeset | 421 | fun is_negative th = forall (not o #1) (literals (prop_of th)); | 
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changeset | 422 | |
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changeset | 423 | val neg_clauses = List.filter is_negative; | 
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changeset | 424 | |
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changeset | 425 | |
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changeset | 426 | (***** MESON PROOF PROCEDURE *****) | 
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changeset | 427 | |
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changeset | 428 | fun rhyps (Const("==>",_) $ (Const("Trueprop",_) $ A) $ phi,
 | 
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changeset | 429 | As) = rhyps(phi, A::As) | 
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changeset | 430 | | rhyps (_, As) = As; | 
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changeset | 431 | |
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changeset | 432 | (** Detecting repeated assumptions in a subgoal **) | 
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changeset | 433 | |
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changeset | 434 | (*The stringtree detects repeated assumptions.*) | 
| 16801 | 435 | fun ins_term (net,t) = Net.insert_term (op aconv) (t,t) net; | 
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changeset | 436 | |
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changeset | 437 | (*detects repetitions in a list of terms*) | 
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changeset | 438 | fun has_reps [] = false | 
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changeset | 439 | | has_reps [_] = false | 
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changeset | 440 | | has_reps [t,u] = (t aconv u) | 
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changeset | 441 | | has_reps ts = (Library.foldl ins_term (Net.empty, ts); false) | 
| 19875 | 442 | handle Net.INSERT => true; | 
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changeset | 443 | |
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changeset | 444 | (*Like TRYALL eq_assume_tac, but avoids expensive THEN calls*) | 
| 18508 | 445 | fun TRYING_eq_assume_tac 0 st = Seq.single st | 
| 446 | | TRYING_eq_assume_tac i st = | |
| 447 | TRYING_eq_assume_tac (i-1) (eq_assumption i st) | |
| 448 | handle THM _ => TRYING_eq_assume_tac (i-1) st; | |
| 449 | ||
| 450 | fun TRYALL_eq_assume_tac st = TRYING_eq_assume_tac (nprems_of st) st; | |
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changeset | 451 | |
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changeset | 452 | (*Loop checking: FAIL if trying to prove the same thing twice | 
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changeset | 453 | -- if *ANY* subgoal has repeated literals*) | 
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changeset | 454 | fun check_tac st = | 
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changeset | 455 | if exists (fn prem => has_reps (rhyps(prem,[]))) (prems_of st) | 
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changeset | 456 | then Seq.empty else Seq.single st; | 
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changeset | 457 | |
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changeset | 458 | |
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changeset | 459 | (* net_resolve_tac actually made it slower... *) | 
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changeset | 460 | fun prolog_step_tac horns i = | 
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changeset | 461 | (assume_tac i APPEND resolve_tac horns i) THEN check_tac THEN | 
| 18508 | 462 | TRYALL_eq_assume_tac; | 
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changeset | 463 | |
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changeset | 464 | (*Sums the sizes of the subgoals, ignoring hypotheses (ancestors)*) | 
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changeset | 465 | fun addconcl(prem,sz) = size_of_term(Logic.strip_assums_concl prem) + sz | 
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changeset | 466 | |
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changeset | 467 | fun size_of_subgoals st = foldr addconcl 0 (prems_of st); | 
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changeset | 468 | |
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changeset | 469 | |
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changeset | 470 | (*Negation Normal Form*) | 
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changeset | 471 | val nnf_rls = [imp_to_disjD, iff_to_disjD, not_conjD, not_disjD, | 
| 9869 | 472 | not_impD, not_iffD, not_allD, not_exD, not_notD]; | 
| 15581 | 473 | |
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changeset | 474 | fun ok4nnf (Const ("Trueprop",_) $ (Const ("Not", _) $ t)) = rigid t
 | 
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changeset | 475 |   | ok4nnf (Const ("Trueprop",_) $ t) = rigid t
 | 
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changeset | 476 | | ok4nnf _ = false; | 
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changeset | 477 | |
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changeset | 478 | fun make_nnf1 th = | 
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changeset | 479 | if ok4nnf (concl_of th) | 
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changeset | 480 | then make_nnf1 (tryres(th, nnf_rls)) | 
| 9869 | 481 | handle THM _ => | 
| 15581 | 482 | forward_res make_nnf1 | 
| 9869 | 483 | (tryres(th, [conj_forward,disj_forward,all_forward,ex_forward])) | 
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changeset | 484 | handle THM _ => th | 
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changeset | 485 | else th; | 
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changeset | 486 | |
| 20018 | 487 | (*The simplification removes defined quantifiers and occurrences of True and False. | 
| 488 | nnf_ss also includes the one-point simprocs, | |
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changeset | 489 | which are needed to avoid the various one-point theorems from generating junk clauses.*) | 
| 19894 | 490 | val nnf_simps = | 
| 20018 | 491 | [simp_implies_def, Ex1_def, Ball_def, Bex_def, if_True, | 
| 19894 | 492 | if_False, if_cancel, if_eq_cancel, cases_simp]; | 
| 493 | val nnf_extra_simps = | |
| 494 | thms"split_ifs" @ ex_simps @ all_simps @ simp_thms; | |
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changeset | 495 | |
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changeset | 496 | val nnf_ss = | 
| 19894 | 497 | HOL_basic_ss addsimps nnf_extra_simps | 
| 498 | addsimprocs [defALL_regroup,defEX_regroup,neq_simproc,let_simproc]; | |
| 15872 | 499 | |
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changeset | 500 | fun make_nnf th = case prems_of th of | 
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changeset | 501 | [] => th |> rewrite_rule (map safe_mk_meta_eq nnf_simps) | 
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changeset | 502 | |> simplify nnf_ss | 
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changeset | 503 | |> make_nnf1 | 
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changeset | 504 |   | _ => raise THM ("make_nnf: premises in argument", 0, [th]);
 | 
| 15581 | 505 | |
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changeset | 506 | (*Pull existential quantifiers to front. This accomplishes Skolemization for | 
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changeset | 507 | clauses that arise from a subgoal.*) | 
| 9869 | 508 | fun skolemize th = | 
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changeset | 509 | if not (has_conns ["Ex"] (prop_of th)) then th | 
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changeset | 510 | else (skolemize (tryres(th, [choice, conj_exD1, conj_exD2, | 
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changeset | 511 | disj_exD, disj_exD1, disj_exD2]))) | 
| 9869 | 512 | handle THM _ => | 
| 513 | skolemize (forward_res skolemize | |
| 514 | (tryres (th, [conj_forward, disj_forward, all_forward]))) | |
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changeset | 515 | handle THM _ => forward_res skolemize (th RS ex_forward); | 
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changeset | 516 | |
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changeset | 517 | |
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changeset | 518 | (*Make clauses from a list of theorems, previously Skolemized and put into nnf. | 
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changeset | 519 | The resulting clauses are HOL disjunctions.*) | 
| 9869 | 520 | fun make_clauses ths = | 
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changeset | 521 | (sort_clauses (map (generalize o nodups) (foldr (cnf[]) [] ths))); | 
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changeset | 522 | |
| 16563 | 523 | (*Convert a list of clauses (disjunctions) to Horn clauses (contrapositives)*) | 
| 9869 | 524 | fun make_horns ths = | 
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changeset | 525 | name_thms "Horn#" | 
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changeset | 526 | (distinct Thm.eq_thm_prop (foldr (add_contras clause_rules) [] ths)); | 
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changeset | 527 | |
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changeset | 528 | (*Could simply use nprems_of, which would count remaining subgoals -- no | 
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changeset | 529 | discrimination as to their size! With BEST_FIRST, fails for problem 41.*) | 
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changeset | 530 | |
| 9869 | 531 | fun best_prolog_tac sizef horns = | 
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changeset | 532 | BEST_FIRST (has_fewer_prems 1, sizef) (prolog_step_tac horns 1); | 
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changeset | 533 | |
| 9869 | 534 | fun depth_prolog_tac horns = | 
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changeset | 535 | DEPTH_FIRST (has_fewer_prems 1) (prolog_step_tac horns 1); | 
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changeset | 536 | |
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changeset | 537 | (*Return all negative clauses, as possible goal clauses*) | 
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changeset | 538 | fun gocls cls = name_thms "Goal#" (map make_goal (neg_clauses cls)); | 
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changeset | 539 | |
| 15008 | 540 | fun skolemize_prems_tac prems = | 
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changeset | 541 | cut_facts_tac (map (skolemize o make_nnf) prems) THEN' | 
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changeset | 542 | REPEAT o (etac exE); | 
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changeset | 543 | |
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changeset | 544 | (*Basis of all meson-tactics. Supplies cltac with clauses: HOL disjunctions. | 
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changeset | 545 | Function mkcl converts theorems to clauses.*) | 
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changeset | 546 | fun MESON mkcl cltac i st = | 
| 16588 | 547 | SELECT_GOAL | 
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changeset | 548 | (EVERY [rtac ccontr 1, | 
| 16588 | 549 | METAHYPS (fn negs => | 
| 550 | EVERY1 [skolemize_prems_tac negs, | |
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changeset | 551 | METAHYPS (cltac o mkcl)]) 1]) i st | 
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changeset | 552 | handle THM _ => no_tac st; (*probably from make_meta_clause, not first-order*) | 
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changeset | 553 | |
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changeset | 554 | (** Best-first search versions **) | 
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changeset | 555 | |
| 16563 | 556 | (*ths is a list of additional clauses (HOL disjunctions) to use.*) | 
| 9869 | 557 | fun best_meson_tac sizef = | 
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changeset | 558 | MESON make_clauses | 
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changeset | 559 | (fn cls => | 
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changeset | 560 | THEN_BEST_FIRST (resolve_tac (gocls cls) 1) | 
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changeset | 561 | (has_fewer_prems 1, sizef) | 
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changeset | 562 | (prolog_step_tac (make_horns cls) 1)); | 
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changeset | 563 | |
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changeset | 564 | (*First, breaks the goal into independent units*) | 
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changeset | 565 | val safe_best_meson_tac = | 
| 9869 | 566 | SELECT_GOAL (TRY Safe_tac THEN | 
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changeset | 567 | TRYALL (best_meson_tac size_of_subgoals)); | 
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changeset | 568 | |
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changeset | 569 | (** Depth-first search version **) | 
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changeset | 570 | |
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changeset | 571 | val depth_meson_tac = | 
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changeset | 572 | MESON make_clauses | 
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changeset | 573 | (fn cls => EVERY [resolve_tac (gocls cls) 1, depth_prolog_tac (make_horns cls)]); | 
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changeset | 574 | |
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changeset | 575 | |
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changeset | 576 | (** Iterative deepening version **) | 
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changeset | 577 | |
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changeset | 578 | (*This version does only one inference per call; | 
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changeset | 579 | having only one eq_assume_tac speeds it up!*) | 
| 9869 | 580 | fun prolog_step_tac' horns = | 
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changeset | 581 | let val (horn0s, hornps) = (*0 subgoals vs 1 or more*) | 
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changeset | 582 | take_prefix Thm.no_prems horns | 
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changeset | 583 | val nrtac = net_resolve_tac horns | 
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changeset | 584 | in fn i => eq_assume_tac i ORELSE | 
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changeset | 585 | match_tac horn0s i ORELSE (*no backtracking if unit MATCHES*) | 
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changeset | 586 | ((assume_tac i APPEND nrtac i) THEN check_tac) | 
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changeset | 587 | end; | 
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changeset | 588 | |
| 9869 | 589 | fun iter_deepen_prolog_tac horns = | 
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changeset | 590 | ITER_DEEPEN (has_fewer_prems 1) (prolog_step_tac' horns); | 
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changeset | 591 | |
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changeset | 592 | fun iter_deepen_meson_tac ths = MESON make_clauses | 
| 21095 | 593 | (fn cls => | 
| 594 | case (gocls (cls@ths)) of | |
| 595 | [] => no_tac (*no goal clauses*) | |
| 596 | | goes => | |
| 597 | let val horns = make_horns (cls@ths) | |
| 22130 | 598 | val _ = | 
| 599 | 	             Output.debug (fn () => ("meson method called:\n" ^ 
 | |
| 21095 | 600 | space_implode "\n" (map string_of_thm (cls@ths)) ^ | 
| 601 | "\nclauses:\n" ^ | |
| 22130 | 602 | space_implode "\n" (map string_of_thm horns))) | 
| 21095 | 603 | in THEN_ITER_DEEPEN (resolve_tac goes 1) (has_fewer_prems 1) (prolog_step_tac' horns) | 
| 604 | end | |
| 605 | ); | |
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changeset | 606 | |
| 16563 | 607 | fun meson_claset_tac ths cs = | 
| 608 | SELECT_GOAL (TRY (safe_tac cs) THEN TRYALL (iter_deepen_meson_tac ths)); | |
| 9869 | 609 | |
| 16563 | 610 | val meson_tac = CLASET' (meson_claset_tac []); | 
| 9869 | 611 | |
| 612 | ||
| 14813 | 613 | (**** Code to support ordinary resolution, rather than Model Elimination ****) | 
| 14744 | 614 | |
| 15008 | 615 | (*Convert a list of clauses (disjunctions) to meta-level clauses (==>), | 
| 616 | with no contrapositives, for ordinary resolution.*) | |
| 14744 | 617 | |
| 618 | (*Rules to convert the head literal into a negated assumption. If the head | |
| 619 | literal is already negated, then using notEfalse instead of notEfalse' | |
| 620 | prevents a double negation.*) | |
| 621 | val notEfalse = read_instantiate [("R","False")] notE;
 | |
| 622 | val notEfalse' = rotate_prems 1 notEfalse; | |
| 623 | ||
| 15448 | 624 | fun negated_asm_of_head th = | 
| 14744 | 625 | th RS notEfalse handle THM _ => th RS notEfalse'; | 
| 626 | ||
| 627 | (*Converting one clause*) | |
| 22646 | 628 | val make_meta_clause = | 
| 629 | zero_var_indexes o negated_asm_of_head o make_horn resolution_clause_rules; | |
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changeset | 630 | |
| 14744 | 631 | fun make_meta_clauses ths = | 
| 632 | name_thms "MClause#" | |
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changeset | 633 | (distinct Thm.eq_thm_prop (map make_meta_clause ths)); | 
| 14744 | 634 | |
| 635 | (*Permute a rule's premises to move the i-th premise to the last position.*) | |
| 636 | fun make_last i th = | |
| 637 | let val n = nprems_of th | |
| 638 | in if 1 <= i andalso i <= n | |
| 639 | then Thm.permute_prems (i-1) 1 th | |
| 15118 | 640 |       else raise THM("select_literal", i, [th])
 | 
| 14744 | 641 | end; | 
| 642 | ||
| 643 | (*Maps a rule that ends "... ==> P ==> False" to "... ==> ~P" while suppressing | |
| 644 | double-negations.*) | |
| 645 | val negate_head = rewrite_rule [atomize_not, not_not RS eq_reflection]; | |
| 646 | ||
| 647 | (*Maps the clause [P1,...Pn]==>False to [P1,...,P(i-1),P(i+1),...Pn] ==> ~P*) | |
| 648 | fun select_literal i cl = negate_head (make_last i cl); | |
| 649 | ||
| 18508 | 650 | |
| 14813 | 651 | (*Top-level Skolemization. Allows part of the conversion to clauses to be | 
| 652 | expressed as a tactic (or Isar method). Each assumption of the selected | |
| 653 | goal is converted to NNF and then its existential quantifiers are pulled | |
| 654 | to the front. Finally, all existential quantifiers are eliminated, | |
| 655 | leaving !!-quantified variables. Perhaps Safe_tac should follow, but it | |
| 656 | might generate many subgoals.*) | |
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changeset | 657 | |
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changeset | 658 | fun skolemize_tac i st = | 
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changeset | 659 | let val ts = Logic.strip_assums_hyp (List.nth (prems_of st, i-1)) | 
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changeset | 660 | in | 
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changeset | 661 | EVERY' [METAHYPS | 
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changeset | 662 | (fn hyps => (cut_facts_tac (map (skolemize o make_nnf) hyps) 1 | 
| 14813 | 663 | THEN REPEAT (etac exE 1))), | 
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changeset | 664 | REPEAT_DETERM_N (length ts) o (etac thin_rl)] i st | 
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changeset | 665 | end | 
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changeset | 666 | handle Subscript => Seq.empty; | 
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changeset | 667 | |
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changeset | 668 | end; | 
| 9869 | 669 | |
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changeset | 670 | structure BasicMeson: BASIC_MESON = Meson; | 
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changeset | 671 | open BasicMeson; |