src/Tools/isac/MathEngBasic/rewrite.sml
author wneuper <walther.neuper@jku.at>
Mon, 19 Jul 2021 18:29:46 +0200
changeset 60337 cbad4e18e91b
parent 60331 40eb8aa2b0d6
child 60389 81b98f7e9ea5
permissions -rw-r--r--
cleanup after "eliminate ThmC.numerals_to_Free"
     1 (* isac's rewriter
     2    (c) Walther Neuper 2000
     3 *)
     4 
     5 signature REWRITE =
     6 sig
     7   exception NO_REWRITE
     8   val calculate_: theory -> string * Eval_Def.eval_fn -> term -> (term * (string * thm)) option
     9   val eval__true: theory -> int -> term list -> (term * term) list -> Rule_Set.T -> term list * bool
    10   val eval_prog_expr: theory -> Rule_Set.T -> term -> term
    11   val eval_true_: theory -> Rule_Set.T -> term -> bool
    12   val eval_true: theory -> term list -> Rule_Set.T -> bool
    13   val rew_sub: theory -> int -> (term * term) list -> Rule_Def.rew_ord_
    14     -> Rule_Set.T -> bool -> TermC.path -> term -> term -> term * term list * TermC.path * bool
    15   val rewrite_: theory -> Rule_Def.rew_ord_ -> Rule_Set.T -> bool -> thm ->
    16     term -> (term * term list) option
    17   val rewrite_inst_: theory -> Rule_Def.rew_ord_ -> Rule_Set.T -> bool
    18     -> (term * term) list -> thm -> term -> (term * term list) option
    19   val rewrite_set_: theory -> bool -> Rule_Set.T -> term -> (term * term list) option
    20   val rewrite_set_inst_: theory -> bool -> (term * term) list -> Rule_Set.T -> term -> (term * term list) option
    21   val rewrite_terms_: theory -> Rule_Def.rew_ord_ -> Rule_Set.T -> term list
    22     -> term -> (term * term list) option
    23 
    24   val trace_on: bool Unsynchronized.ref
    25   val depth: int Unsynchronized.ref
    26   val lim_deriv: int Unsynchronized.ref
    27 
    28 \<^isac_test>\<open>
    29   val rewrite__: theory -> int -> (term * term) list -> Rule_Def.rew_ord_ ->
    30     Rule_Set.T -> bool -> thm -> term -> (term * term list) option
    31   val rewrite__set_: theory -> int -> bool -> (term * term) list -> Rule_Set.T -> term -> (term * term list) option
    32   val app_rev: theory -> int -> Rule_Set.T -> term -> term * term list * bool
    33   val app_sub: theory -> int -> Rule_Set.T -> term -> term * term list * bool
    34   val trace1: int -> string -> unit
    35   val trace_eq1 : int -> string -> Rule_Def.rule_set -> theory -> term -> unit;
    36   val trace_eq2 : int -> string -> theory -> term -> term -> unit;
    37   val trace_in1 : int -> string -> string -> unit;
    38   val trace_in2 : int -> string -> theory -> term -> unit;
    39   val trace_in3 : int -> string -> theory -> (term * 'a) option -> unit;
    40   val trace_in4 : int -> string -> theory -> term list -> term list -> unit;
    41   val trace_in5 : int -> string -> theory -> term list -> unit;
    42 \<close>
    43 end
    44 
    45 (**)
    46 structure Rewrite(**): REWRITE(**) =
    47 struct
    48 (**)
    49 
    50 exception NO_REWRITE;
    51 
    52 val trace_on = Unsynchronized.ref false;
    53 (* depth of recursion in traces of the rewriter, if trace_on:=true *)
    54 val depth = Unsynchronized.ref 99999;
    55 (* no of rewrites exceeding this int -> NO rewrite *)
    56 val lim_deriv = Unsynchronized.ref 100;
    57 
    58 fun trace i str = 
    59   if ! trace_on andalso i < ! depth then tracing (idt "#" i ^ str) else ()
    60 fun trace_eq1 i str rrls thy t =
    61   trace i (" " ^ str ^ ": " ^ Rule_Set.id rrls ^ " on: " ^ UnparseC.term_in_thy thy t)
    62 fun trace_eq2 i str thy t t' =
    63   trace i (" " ^ str ^ ": \"" ^
    64     UnparseC.term_in_thy thy t ^ "\" > \"" ^ UnparseC.term_in_thy thy t' ^ "\"");
    65 fun trace1 i str =
    66   if ! trace_on andalso i < ! depth then tracing (idt "#" (i + 1) ^ str) else ()
    67 fun trace_in1 i str thmid =
    68   trace1 i (" " ^ str ^ ": \"" ^ thmid ^ "\"")
    69 fun trace_in2 i str thy t =
    70   trace1 i (" " ^ str ^ ": \"" ^ UnparseC.term_in_thy thy t ^ "\"");
    71 fun trace_in3 i str thy pairopt =
    72   trace1 i (" " ^ str ^ ": " ^ UnparseC.term_in_thy thy ((fst o the) pairopt));
    73 fun trace_in4 i str thy ts ts' =
    74   if ! trace_on andalso i < ! depth andalso ts <> []
    75   then tracing (idt "#" (i + 1) ^ " " ^ str ^ ": " ^ UnparseC.terms_in_thy thy ts ^
    76   	"   stored: " ^ UnparseC.terms_in_thy thy ts')
    77   else ();
    78 fun trace_in5 i str thy p' =
    79   if ! trace_on andalso i < ! depth 
    80   then tracing (idt "#" (i + 1) ^ " " ^ str ^ ": " ^ UnparseC.terms_in_thy thy p')
    81   else();
    82 
    83 fun rewrite__ thy i bdv tless rls put_asm thm ct =
    84   let
    85     val (t', asms, _(*lrd*), rew) = rew_sub thy i bdv tless rls put_asm ([(*root of the term*)]: TermC.path)
    86 		  (TermC.inst_bdv bdv (Eval.norm (Thm.prop_of thm))) ct
    87   in if rew then SOME (t', distinct op = asms) else NONE end
    88   (* one rewrite (possibly conditional, ordered) EXOR exn EXOR go into subterms *)
    89 and rew_sub thy i bdv tless rls put_asm lrd r t = 
    90   (let
    91     val (lhs, rhs) = (HOLogic.dest_eq o HOLogic.dest_Trueprop o Logic.strip_imp_concl) r
    92     val r' = (Envir.subst_term (Pattern.match thy (lhs, t) (Vartab.empty, Vartab.empty)) r)
    93       handle Pattern.MATCH => raise NO_REWRITE
    94     val p' = map HOLogic.dest_Trueprop ((fst o Logic.strip_prems) (Logic.count_prems r', [], r'))
    95     val t' = (snd o HOLogic.dest_eq o HOLogic.dest_Trueprop o Logic.strip_imp_concl) r'
    96     val _ = trace_in2 i "eval asms" thy r';
    97     val (t'', p'') =                                                      (*conditional rewriting*)
    98       let val (simpl_p', nofalse) = eval__true thy (i + 1) p' bdv rls 	     
    99 	    in
   100 	      if nofalse
   101         then (trace_in4 i "asms accepted" thy p' simpl_p'; (t', simpl_p'))(*uncond.rew.from above*)
   102         else (trace_in5 i "asms false" thy p'; raise NO_REWRITE)   (* don't go into subtm.of cond*)
   103 	    end                                    
   104   in
   105     if TermC.perm lhs rhs andalso not (tless bdv (t', t))                     (*ordered rewriting*)
   106     then (trace_eq2 i "not >" thy t t'; raise NO_REWRITE)
   107     else (t'', p'', [], true)
   108   end
   109   ) handle NO_REWRITE =>
   110     (case t of
   111       Const(s, T) => (Const(s, T), [], lrd, false)
   112     | Free(s, T) => (Free(s, T), [], lrd, false)
   113     | Var(n, T) => (Var(n, T), [], lrd, false)
   114     | Bound i => (Bound i, [], lrd, false)
   115     | Abs(s, T, body) => 
   116       let val (t', asms, _ (*lrd*), rew) =  rew_sub thy i bdv tless rls put_asm (lrd @ [TermC.D]) r body
   117        in (Abs(s, T, t'), asms, [], rew) end
   118     | t1 $ t2 => 
   119        let val (t2', asm2, lrd, rew2) = rew_sub thy i bdv tless rls put_asm (lrd @ [TermC.R]) r t2
   120        in
   121         if rew2 then (t1 $ t2', asm2, lrd, true)
   122         else
   123           let val (t1', asm1, lrd, rew1) = rew_sub thy i bdv tless rls put_asm (lrd @ [TermC.L]) r t1
   124           in if rew1 then (t1' $ t2, asm1, lrd, true) else (t1 $ t2,[], lrd, false) end
   125     end)
   126 and eval__true thy i asms bdv rls =            (* rewrite asumptions until one evaluates to false*)
   127   if asms = [@{term True}] orelse asms = [] then ([], true)
   128   else (* this allows to check Rrls with prepat = ([@{term True}], pat) *)
   129     if asms = [@{term False}] then ([], false)
   130     else
   131       let                            
   132         fun chk indets [] = (indets, true) (*return asms<>True until false*)
   133           | chk indets (a :: asms) =
   134             (case rewrite__set_ thy (i + 1) false bdv rls a of
   135               NONE => (chk (indets @ [a]) asms)
   136             | SOME (t, a') =>
   137               if t = @{term True} then (chk (indets @ a') asms) 
   138               else if t = @{term False} then ([], false)
   139             (*asm false .. thm not applied ^^^; continue until False vvv*)
   140             else chk (indets @ [t] @ a') asms);
   141       in chk [] asms end
   142 and rewrite__set_ thy _ _ _ Rule_Set.Empty t =                         (* rewrite with a rule set*)
   143     raise ERROR ("rewrite__set_ called with 'Erls' for '" ^ UnparseC.term_in_thy thy t ^ "'")
   144   | rewrite__set_ thy i _ _ (rrls as Rule_Set.Rrls _) t =    (* rewrite with a 'reverse rule set'*)
   145     let
   146       val _= trace_eq1 i "rls" rrls thy t;
   147 	    val (t', asm, rew) = app_rev thy (i + 1) rrls t                   
   148     in if rew then SOME (t', distinct op = asm) else NONE end
   149   | rewrite__set_ thy i put_asm bdv rls ct =           (* Rls, Seq containing Thms or Eval, Cal1 *)
   150     let
   151       (* attention with cp to test/..: unbound thy, i, bdv, rls; TODO1803? pull out to rewrite__*)
   152       datatype switch = Appl | Noap;
   153       fun rew_once _ asm ct Noap [] = (ct, asm) (* ?TODO unify with Prog_Expr.rew_once? *)
   154         | rew_once ruls asm ct Appl [] = 
   155           (case rls of Rule_Def.Repeat _ => rew_once ruls asm ct Noap ruls
   156           | Rule_Set.Sequence _ => (ct, asm)
   157           | rls => raise ERROR ("rew_once not appl. to \"" ^ Rule_Set.id rls ^ "\""))
   158         | rew_once ruls asm ct apno (rul :: thms) =
   159           case rul of
   160             Rule.Thm (thmid, thm) =>
   161               (trace_in1 i "try thm" thmid;
   162               case rewrite__ thy (i + 1) bdv ((snd o #rew_ord o Rule_Set.rep) rls)
   163                   ((#erls o Rule_Set.rep) rls) put_asm thm ct of
   164                 NONE => rew_once ruls asm ct apno thms
   165               | SOME (ct', asm') => 
   166                 (trace_in2 i "rewrites to" thy ct';
   167                 rew_once ruls (union (op =) asm asm') ct' Appl (rul :: thms)))
   168                 (* once again try the same rule, e.g. associativity against "()"*)
   169           | Rule.Eval (cc as (op_, _)) => 
   170             let val _ = trace_in1 i "try calc" op_;
   171             in case Eval.adhoc_thm thy cc ct of
   172                 NONE => rew_once ruls asm ct apno thms
   173               | SOME (_, thm') => 
   174                 let 
   175                   val pairopt = rewrite__ thy (i + 1) bdv ((snd o #rew_ord o Rule_Set.rep) rls)
   176                     ((#erls o Rule_Set.rep) rls) put_asm thm' ct;
   177                   val _ = if pairopt <> NONE then () else raise ERROR ("rewrite_set_, rewrite_ \"" ^ 
   178                     ThmC.string_of_thm thm' ^ "\" " ^ UnparseC.term_in_thy thy ct ^ " = NONE")
   179                   val _ = trace_in3 i "calc. to" thy pairopt;
   180                 in rew_once ruls asm ((fst o the) pairopt) Appl (rul :: thms) end
   181             end
   182           | Rule.Cal1 (cc as (op_, _)) => 
   183             let val _ = trace_in1 i "try cal1" op_;
   184             in case Eval.adhoc_thm1_ thy cc ct of
   185                 NONE => (ct, asm)
   186               | SOME (_, thm') =>
   187                 let 
   188                   val pairopt = rewrite__ thy (i + 1) bdv ((snd o #rew_ord o Rule_Set.rep) rls)
   189                     ((#erls o Rule_Set.rep) rls) put_asm thm' ct;
   190                   val _ = if pairopt <> NONE then () else raise ERROR ("rewrite_set_, rewrite_ \"" ^
   191                      ThmC.string_of_thm thm' ^ "\" " ^ UnparseC.term_in_thy thy ct ^ " = NONE")
   192                   val _ = trace_in3 i "cal1. to" thy pairopt;
   193                 in the pairopt end
   194             end
   195           | Rule.Rls_ rls' => 
   196             (case rewrite__set_ thy (i + 1) put_asm bdv rls' ct of
   197               SOME (t', asm') => rew_once ruls (union (op =) asm asm') t' Appl thms
   198             | NONE => rew_once ruls asm ct apno thms)
   199           | r => raise ERROR ("rew_once not appl. to \"" ^ Rule.to_string r ^ "\"");
   200       val ruls = (#rules o Rule_Set.rep) rls;
   201       val _ = trace_eq1 i "rls" rls thy ct
   202       val (ct', asm') = rew_once ruls [] ct Noap ruls;
   203 	  in if ct = ct' then NONE else SOME (ct', distinct op =  asm') end
   204 (*-------------------------------------------------------------*)
   205 and app_rev thy i rrls t =             (* apply an Rrls; if not applicable proceed with subterms*)
   206   let (* check a (precond, pattern) of a rev-set; stops with 1st true *)
   207     fun chk_prepat _ _ [] _ = true
   208       | chk_prepat thy erls prepat t =
   209         let
   210           fun chk (pres, pat) =
   211             (let 
   212               val subst: Type.tyenv * Envir.tenv =
   213                 Pattern.match thy (pat, t) (Vartab.empty, Vartab.empty)
   214              in
   215               snd (eval__true thy (i + 1) (map (Envir.subst_term subst) pres) [] erls)
   216              end) handle Pattern.MATCH => false
   217            fun scan_ _ [] = false
   218              | scan_ f (pp :: pps) =
   219                if f pp then true else scan_ f pps;
   220         in scan_ chk prepat end;
   221     (* apply the normal_form of a rev-set *)
   222     fun app_rev' thy (Rule_Set.Rrls {erls, prepat, scr = Rule.Rfuns {normal_form, ...}, ...}) t =
   223       if chk_prepat thy erls prepat t then normal_form t else NONE
   224       | app_rev' _ r _ = raise ERROR ("app_rev' not appl. to \"" ^ Rule_Set.id r ^ "\"");
   225     val opt = app_rev' thy rrls t
   226   in
   227     case opt of
   228       SOME (t', asm) => (t', asm, true)
   229     | NONE => app_sub thy i rrls t
   230   end
   231 and app_sub thy i rrls t =                                          (* apply an Rrls to subterms*)
   232   case t of
   233     Const (s, T) => (Const(s, T), [], false)
   234   | Free (s, T) => (Free(s, T), [], false)
   235   | Var (n, T) => (Var(n, T), [], false)
   236   | Bound i => (Bound i, [], false)
   237   | Abs (s, T, body) => 
   238 	  let val (t', asm, rew) = app_rev thy i rrls body
   239 	  in (Abs(s, T, t'), asm, rew) end
   240   | t1 $ t2 => 
   241     let val (t2', asm2, rew2) = app_rev thy i rrls t2
   242     in
   243       if rew2 then (t1 $ t2', asm2, true)
   244       else
   245         let val (t1', asm1, rew1) = app_rev thy i rrls t1
   246         in if rew1 then (t1' $ t2, asm1, true)
   247            else (t1 $ t2, [], false)
   248         end
   249     end;
   250 
   251 (* rewriting without argument [] for rew_ord *)
   252 fun eval_true thy terms rls = (snd o (eval__true thy 1 terms [])) rls;
   253 
   254 (* rewriting without internal arguments 1, [] *)
   255 fun rewrite_ thy rew_ord erls bool thm term = rewrite__ thy 1 [] rew_ord erls bool thm term;
   256 fun rewrite_set_ thy bool rls term = rewrite__set_ thy 1 bool [] rls term;
   257 
   258 (* variants of rewrite; TODO del. put_asm *)
   259 fun rewrite_inst_  thy rew_ord rls put_asm subst thm ct =
   260   rewrite__ thy 1 subst rew_ord rls put_asm thm ct;
   261 fun rewrite_set_inst_ thy put_asm subst rls ct = rewrite__set_ thy 1 put_asm subst rls ct;
   262 
   263 (* given a list of equalities (lhs = rhs) and a term, 
   264    replace all occurrences of lhs in the term with rhs;
   265    thus the order or equalities matters: put variables in lhs first. *)
   266 fun rewrite_terms_ thy ord erls equs t =
   267   let
   268 	  fun rew_ (t', asm') [] _ = (t', asm')
   269 	    | rew_ (t', asm') (rules as r::rs) t =
   270 	        let
   271 	          val (t'', asm'', _(*lrd*), rew) = rew_sub thy 1 [] ord erls false [] (HOLogic.Trueprop $ r) t
   272 	        in 
   273 	          if rew 
   274 	          then rew_ (t'', asm' @ asm'') rules t''
   275 	          else rew_ (t', asm') rs t'
   276 	        end
   277 	  val (t'', asm'') = rew_ (TermC.empty, []) equs t
   278     in if t'' = TermC.empty then NONE else SOME (t'', asm'')
   279     end;
   280 
   281 (* search ct for adjacent numerals and calculate them by operator isa_fn *)
   282 fun calculate_ thy isa_fn ct =
   283   case Eval.adhoc_thm thy isa_fn ct of
   284 	  NONE => NONE
   285 	| SOME (thmID, thm) =>
   286 	  (let val rew = case rewrite_ thy Rewrite_Ord.dummy_ord Rule_Set.empty false thm ct of
   287         SOME (rew, _) => rew
   288       | NONE => raise ERROR ""
   289     in SOME (rew, (thmID, thm)) end)
   290 	    handle NO_REWRITE => raise ERROR ("calculate_: " ^ thmID ^ " does not rewrite");
   291 
   292 fun eval_prog_expr thy srls t =
   293   let val rew = rewrite_set_ thy false srls t;
   294   in case rew of SOME (res,_) => res | NONE => t end;
   295 
   296 fun eval_true_ _ _ (Const (\<^const_name>\<open>True\<close>,_)) = true
   297   | eval_true_ thy rls t =
   298     case rewrite_set_ thy false rls t of
   299 	   SOME (Const (\<^const_name>\<open>True\<close>,_),_) => true
   300 	 | _ => false;
   301 
   302 end