test/Tools/isac/ADDTESTS/course/SignalProcess/Build_Inverse_Z_Transform.thy
author Jan Rocnik <jan.rocnik@student.tugraz.at>
Sun, 22 Jan 2012 21:42:56 +0100
changeset 42364 f82f2b7fef61
parent 42363 82d438b5c597
child 42365 872589b4852c
permissions -rwxr-xr-x
Now getting BOTH numerators and small bugfix in Ansatz
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(* Title:  Build_Inverse_Z_Transform
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   Author: Jan Rocnik
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   (c) copyright due to lincense terms.
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12345678901234567890123456789012345678901234567890123456789012345678901234567890
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        10        20        30        40        50        60        70        80
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*)
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theory Build_Inverse_Z_Transform imports Isac
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begin
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text{* We stepwise build Inverse_Z_Transform.thy as an exercise.
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  Because subsection "Stepwise Check the Program" requires 
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  Inverse_Z_Transform.thy as a subtheory of Isac.thy, the setup has been changed 
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  from "theory Inverse_Z_Transform imports Isac begin.." to the above.
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  ATTENTION WITH NAMES OF IDENTIFIERS WHEN GOING INTO INTERNALS:
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  Here in this theory there are the internal names twice, for instance we have
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  (Thm.derivation_name @{thm rule1} = "Build_Inverse_Z_Transform.rule1") = true;
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  but actually in us will be "Inverse_Z_Transform.rule1"
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*}
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ML {*val thy = @{theory Isac};*}
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section {*trials towards Z transform *}
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text{*===============================*}
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subsection {*terms*}
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ML {*
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@{term "1 < || z ||"};
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@{term "z / (z - 1)"};
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@{term "-u -n - 1"};
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@{term "-u [-n - 1]"}; (*[ ] denotes lists !!!*)
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@{term "z /(z - 1) = -u [-n - 1]"};Isac
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@{term "1 < || z || ==> z / (z - 1) = -u [-n - 1]"};
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term2str @{term "1 < || z || ==> z / (z - 1) = -u [-n - 1]"};
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*}
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ML {*
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(*alpha -->  "</alpha>" *)
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@{term "\<alpha> "};
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@{term "\<delta> "};
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@{term "\<phi> "};
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@{term "\<rho> "};
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term2str @{term "\<rho> "};
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*}
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subsection {*rules*}
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(*axiomatization "z / (z - 1) = -u [-n - 1]" Illegal variable name: "z / (z - 1) = -u [-n - 1]" *)
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(*definition     "z / (z - 1) = -u [-n - 1]" Bad head of lhs: existing constant "op /"*)
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axiomatization where 
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  rule1: "1 = \<delta>[n]" and
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  rule2: "|| z || > 1 ==> z / (z - 1) = u [n]" and
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  rule3: "|| z || < 1 ==> z / (z - 1) = -u [-n - 1]" and 
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  rule4: "|| z || > || \<alpha> || ==> z / (z - \<alpha>) = \<alpha>^^^n * u [n]" and
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  rule5: "|| z || < || \<alpha> || ==> z / (z - \<alpha>) = -(\<alpha>^^^n) * u [-n - 1]" and
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  rule6: "|| z || > 1 ==> z/(z - 1)^^^2 = n * u [n]"
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ML {*
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@{thm rule1};
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@{thm rule2};
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@{thm rule3};
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@{thm rule4};
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*}
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subsection {*apply rules*}
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ML {*
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val inverse_Z = append_rls "inverse_Z" e_rls
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  [ Thm  ("rule3",num_str @{thm rule3}),
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    Thm  ("rule4",num_str @{thm rule4}),
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    Thm  ("rule1",num_str @{thm rule1})   
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  ];
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val t = str2term "z / (z - 1) + z / (z - \<alpha>) + 1";
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val SOME (t', asm) = rewrite_set_ thy true inverse_Z t;
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term2str t' = "z / (z - ?\<delta> [?n]) + z / (z - \<alpha>) + ?\<delta> [?n]"; (*attention rule1 !!!*)
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*}
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ML {*
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val (thy, ro, er) = (@{theory Isac}, tless_true, eval_rls);
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*}
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ML {*
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val SOME (t, asm1) = rewrite_ thy ro er true (num_str @{thm rule3}) t;
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term2str t = "- ?u [- ?n - 1] + z / (z - \<alpha>) + 1"; (*- real *)
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term2str t;*}
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ML {*
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val SOME (t, asm2) = rewrite_ thy ro er true (num_str @{thm rule4}) t;
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term2str t = "- ?u [- ?n - 1] + \<alpha> ^^^ ?n * ?u [?n] + 1"; (*- real *)
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term2str t;
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*}
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ML {*
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val SOME (t, asm3) = rewrite_ thy ro er true (num_str @{thm rule1}) t;
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term2str t = "- ?u [- ?n - 1] + \<alpha> ^^^ ?n * ?u [?n] + ?\<delta> [?n]"; (*- real *)
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term2str t;
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*}
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ML {*
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terms2str (asm1 @ asm2 @ asm3);
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*}
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section {*Prepare steps for CTP-based programming language*}
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text{*TODO insert Calculation (Referenz?!)
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The goal... realized in sections below, in Sect.\ref{spec-meth} and Sect.\ref{prog-steps} 
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the reader is advised to jump between the subsequent subsections and the respective steps in Sect.\ref{prog-steps} 
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*}
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subsection {*prepare expression \label{prep-expr}*}
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ML {*
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val ctxt = ProofContext.init_global @{theory Isac};
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val ctxt = declare_constraints' [@{term "z::real"}] ctxt;
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val SOME fun1 = parseNEW ctxt "X z = 3 / (z - 1/4 + -1/8 * z ^^^ -1)"; term2str fun1;
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val SOME fun1' = parseNEW ctxt "X z = 3 / (z - 1/4 + -1/8 * (1/z))"; term2str fun1';
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*}
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subsubsection {*multply with z*}
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axiomatization where
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  ruleZY: "(X z = a / b) = (X' z = a / (z * b))"
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ML {*
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val (thy, ro, er) = (@{theory Isac}, tless_true, eval_rls);
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val SOME (fun2, asm1) = rewrite_ thy ro er true  @{thm ruleZY} fun1; term2str fun2;
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val SOME (fun2', asm1) = rewrite_ thy ro er true  @{thm ruleZY} fun1'; term2str fun2';
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val SOME (fun3,_) = rewrite_set_ @{theory Isac} false norm_Rational fun2;
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term2str fun3; (*fails on x^^^(-1) TODO*)
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val SOME (fun3',_) = rewrite_set_ @{theory Isac} false norm_Rational fun2';
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term2str fun3'; (*OK*)
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*}
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subsubsection {*get argument of X': z is the variable the equation is solved for*}
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text{*grep... Atools.thy, Tools.thy contain general utilities: eval_argument_in, eval_rhs, eval_lhs,...
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grep -r "fun eva_" ... shows all functions witch can be used in a script.
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lookup this files how to build and handle such functions.
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the next section shows how to introduce such a function.
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*}
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subsubsection {*Decompose given term into lhs = rhs*}
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ML {*
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  val (_, expr) = HOLogic.dest_eq fun3'; term2str expr;
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  val (_, denom) = HOLogic.dest_bin "Rings.inverse_class.divide" (type_of expr) expr;
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  term2str denom = "-1 + -2 * z + 8 * z ^^^ 2";
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*}
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text {*we have rhs in the Script language, but we need a function 
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  which gets the denominator of a fraction*}
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subsubsection {*get the denominator and numerator out of a fraction*}
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text {*get denominator should become a constant for the isabelle parser: *}
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consts
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  get_denominator :: "real => real"
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  get_numerator :: "real => real"
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text {* With the above definition we run into problems with parsing the Script InverseZTransform:
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  This leads to "ambiguous parse trees" and we avoid this by shifting the definition
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  to Rational.thy and re-building Isac.
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  ATTENTION: from now on Build_Inverse_Z_Transform mimics a build from scratch;
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  it only works due to re-building Isac several times (indicated explicityl).
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*}
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ML {*
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(*("get_denominator", ("Rational.get_denominator", eval_get_denominator ""))*)
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fun eval_get_denominator (thmid:string) _ 
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		      (t as Const ("Rational.get_denominator", _) $
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              (Const ("Rings.inverse_class.divide", _) $ num $
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                denom)) thy = 
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        SOME (mk_thmid thmid "" 
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            (Print_Mode.setmp [] (Syntax.string_of_term (thy2ctxt thy)) denom) "", 
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	          Trueprop $ (mk_equality (t, denom)))
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  | eval_get_denominator _ _ _ _ = NONE; 
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*}
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text {* tests of eval_get_denominator see test/Knowledge/rational.sml*}
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text {*get numerator should also become a constant for the isabelle parser: *}
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ML {*
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fun eval_get_numerator (thmid:string) _ 
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		      (t as Const ("Rational.get_numerator", _) $
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              (Const ("Rings.inverse_class.divide", _) $num
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                $denom )) thy = 
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        SOME (mk_thmid thmid "" 
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            (Print_Mode.setmp [] (Syntax.string_of_term (thy2ctxt thy)) num) "", 
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	          Trueprop $ (mk_equality (t, num)))
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  | eval_get_numerator _ _ _ _ = NONE; 
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*}
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text {*
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We discovered severell problems by implementing the get_numerator function.
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Remember when putting new functions to Isac, put them in a thy file and rebuild 
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isac, also put them in the ruleset for the script!
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*}
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subsection {*solve equation*}
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text {*this type of equation if too general for the present program*}
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ML {*
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"----------- Minisubplb/100-init-rootp (*OK*)bl.sml ---------------------";
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val denominator = parseNEW ctxt "z^^^2 - 1/4*z - 1/8 = 0";
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val fmz = ["equality (z^^^2 - 1/4*z - 1/8 = (0::real))", "solveFor z","solutions L"];
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val (dI',pI',mI') =("Isac", ["univariate","equation"], ["no_met"]);
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(*                           ^^^^^^^^^^^^^^^^^^^^^^ TODO: ISAC determines type of eq*)
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*}
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text {*Does the Equation Match the Specification ?*}
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ML {*
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match_pbl fmz (get_pbt ["univariate","equation"]);
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*}
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ML {*Context.theory_name thy = "Isac"(*==================================================*)*}
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ML {*
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val denominator = parseNEW ctxt "-1 + -2 * z + 8 * z ^^^ 2 = 0";
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val fmz =                                            (*specification*)
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  ["equality (-1 + -2 * z + 8 * z ^^^ 2 = (0::real))", (*equality*)
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   "solveFor z",                                     (*bound variable*)
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   "solutions L"];                                   (*identifier for solution*)
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val (dI',pI',mI') =
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  ("Isac", ["abcFormula","degree_2","polynomial","univariate","equation"], ["no_met"]);
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*}
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text {*Does the Other Equation Match the Specification ?*}
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ML {*
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match_pbl fmz (get_pbt ["abcFormula","degree_2","polynomial","univariate","equation"]);
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*}
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text {*Solve Equation Stepwise*}
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ML {*
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*}
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ML {*
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val (p,_,f,nxt,_,pt) = CalcTreeTEST [(fmz, (dI',pI',mI'))];
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val (p,_,f,nxt,_,pt) = me nxt p [] pt;
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val (p,_,f,nxt,_,pt) = me nxt p [] pt;
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val (p,_,f,nxt,_,pt) = me nxt p [] pt;
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val (p,_,f,nxt,_,pt) = me nxt p [] pt;
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val (p,_,f,nxt,_,pt) = me nxt p [] pt;
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val (p,_,f,nxt,_,pt) = me nxt p [] pt;
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val (p,_,f,nxt,_,pt) = me nxt p [] pt;
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val (p,_,f,nxt,_,pt) = me nxt p [] pt;
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val (p,_,f,nxt,_,pt) = me nxt p [] pt;
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val (p,_,f,nxt,_,pt) = me nxt p [] pt;
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val (p,_,f,nxt,_,pt) = me nxt p [] pt;         
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val (p,_,f,nxt,_,pt) = me nxt p [] pt; (*nxt =..,Check_elementwise "Assumptions")*)
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val (p,_,f,nxt,_,pt) = me nxt p [] pt;         
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val (p,_,f,nxt,_,pt) = me nxt p [] pt; f2str f;
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(*[z = 1 / 2, z = -1 / 4]*)
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show_pt pt; 
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val SOME f = parseNEW ctxt "[z=1/2, z=-1/4]";
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*}
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subsection {*partial fraction decomposition*}
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subsubsection {*solution of the equation*}
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ML {*
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val SOME solutions = parseNEW ctxt "[z=1/2, z=-1/4]";
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term2str solutions;
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atomty solutions;
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*}
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subsubsection {*get solutions out of list*}
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text {*in isac's CTP-based programming language: let$ $s_1 = NTH 1$ solutions; $s_2 = NTH 2...$*}
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ML {*
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val Const ("List.list.Cons", _) $ s_1 $ (Const ("List.list.Cons", _) $
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      s_2 $ Const ("List.list.Nil", _)) = solutions;
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term2str s_1;
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term2str s_2;
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*}
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ML {* (*Solutions as Denominator --> Denominator1 = z - Zeropoint1, Denominator2 = z-Zeropoint2,...*)
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val xx = HOLogic.dest_eq s_1;
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val s_1' = HOLogic.mk_binop "Groups.minus_class.minus" xx;
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val xx = HOLogic.dest_eq s_2;
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val s_2' = HOLogic.mk_binop "Groups.minus_class.minus" xx;
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term2str s_1';
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term2str s_2';
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*}
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text {* for the programming language a function 
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  collecting all the above manipulations is helpful*}
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ML {*
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fun mk_minus_1 T = Free("-1", T); (*TODO DELETE WITH numbers_to_string*)
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fun flip_sign t = (*TODO improve for use in factors_from_solution: -(-1) etc*)
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  let val minus_1 = t |> type_of |> mk_minus_1
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  in HOLogic.mk_binop "Groups.times_class.times" (minus_1, t) end;
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fun fac_from_sol s =
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  let val (lhs, rhs) = HOLogic.dest_eq s
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  in HOLogic.mk_binop "Groups.plus_class.plus" (lhs, flip_sign rhs) end;
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*}
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ML {*
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e_term
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*}
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ML {*
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fun mk_prod prod [] =
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      if prod = e_term then error "mk_prod called with []" else prod
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  | mk_prod prod (t :: []) =
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      if prod = e_term then t else HOLogic.mk_binop "Groups.times_class.times" (prod, t)
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  | mk_prod prod (t1 :: t2 :: ts) =
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        if prod = e_term 
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        then 
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           let val p = HOLogic.mk_binop "Groups.times_class.times" (t1, t2)
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           in mk_prod p ts end 
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        else 
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           let val p = HOLogic.mk_binop "Groups.times_class.times" (prod, t1)
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           in mk_prod p (t2 :: ts) end 
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*}
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ML {*
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*}
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ML {*
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(*probably keept these test in test/Tools/isac/...
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(*mk_prod e_term [];*)
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val prod = mk_prod e_term [str2term "x + 123"]; 
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term2str prod = "x + 123";
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val sol = str2term "[z = 1 / 2, z = -1 / 4]";
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val sols = HOLogic.dest_list sol;
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val facs = map fac_from_sol sols;
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val prod = mk_prod e_term facs; 
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term2str prod = "(z + -1 * (1 / 2)) * (z + -1 * (-1 / 4))";
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val prod = mk_prod e_term [str2term "x + 1", str2term "x + 2", str2term "x + 3"]; 
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term2str prod = "(x + 1) * (x + 2) * (x + 3)";
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*)
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neuper@42335
   319
fun factors_from_solution sol = 
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   320
  let val ts = HOLogic.dest_list sol
neuper@42335
   321
  in mk_prod e_term (map fac_from_sol ts) end;
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   322
(*
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   323
val sol = str2term "[z = 1 / 2, z = -1 / 4]";
neuper@42335
   324
val fs = factors_from_solution sol;
neuper@42335
   325
term2str fs = "(z + -1 * (1 / 2)) * (z + -1 * (-1 / 4))"
neuper@42335
   326
*)
neuper@42335
   327
*}
neuper@42335
   328
text {* This function needs to be packed such that it can be evaluated by the Lucas-Interpreter:
neuper@42335
   329
  # shift these functions into the related Equation.thy
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   330
  #  -- compare steps done with get_denominator above
jan@42344
   331
  # done 02.12.2011 moved to PartialFractions.thy
neuper@42335
   332
  *}
neuper@42335
   333
ML {*
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   334
(*("factors_from_solution", ("Partial_Fractions.factors_from_solution", eval_factors_from_solution ""))*)
jan@42352
   335
fun eval_factors_from_solution (thmid:string) _
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   336
     (t as Const ("Partial_Fractions.factors_from_solution", _) $ sol) thy =
jan@42352
   337
       ((let val prod = factors_from_solution sol
jan@42352
   338
         in SOME (mk_thmid thmid ""
jan@42352
   339
           (Print_Mode.setmp [] (Syntax.string_of_term (thy2ctxt thy)) prod) "",
jan@42352
   340
               Trueprop $ (mk_equality (t, prod)))
jan@42352
   341
         end)
jan@42352
   342
       handle _ => NONE)
jan@42352
   343
 | eval_factors_from_solution _ _ _ _ = NONE;
jan@42352
   344
*}
jan@42352
   345
jan@42352
   346
text {*
jan@42352
   347
The tracing output of the calc tree after apllying this function was
jan@42352
   348
24 / factors_from_solution [z = 1/ 2, z = -1 / 4])]  and the next step
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   349
 val nxt = ("Empty_Tac", ...): tac'_).
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   350
These observations indicate, that the Lucas-Interpreter (LIP) does 
jan@42352
   351
not know how to evaluate factors_from_solution, so there is something 
jan@42352
   352
wrong or missing.
jan@42352
   353
jan@42352
   354
# First we isolate the difficulty in the program as follows:
jan@42352
   355
  :
jan@42352
   356
  "      (L_L::bool list) = (SubProblem (PolyEq'," ^
jan@42352
   357
  "          [abcFormula,degree_2,polynomial,univariate,equation],[no_met])" ^
jan@42352
   358
  "        [BOOL equ, REAL zzz]);              " ^
jan@42352
   359
  "      (facs::real) = factors_from_solution L_L;" ^
jan@42352
   360
  "      (foo::real) = Take facs" ^
jan@42352
   361
  :
jan@42352
   362
and see
jan@42352
   363
  [
jan@42352
   364
  (([], Frm), Problem (Isac, [inverse, Z_Transform, SignalProcessing])),
jan@42352
   365
  (([1], Frm), X z = 3 / (z - 1 / 4 + -1 / 8 * (1 / z))),
jan@42352
   366
  (([1], Res), ?X' z = 3 / (z * (z - 1 / 4 + -1 / 8 * (1 / z)))),
jan@42352
   367
  (([2], Res), ?X' z = 24 / (-1 + -2 * z + 8 * z ^^^ 2)),
jan@42352
   368
  (([3], Pbl), solve (-1 + -2 * z + 8 * z ^^^ 2 = 0, z)),
jan@42352
   369
  (([3,1], Frm), -1 + -2 * z + 8 * z ^^^ 2 = 0),
jan@42352
   370
  (([3,1], Res), z = (- -2 + sqrt (-2 ^^^ 2 - 4 * 8 * -1)) / (2 * 8) |
jan@42352
   371
                 z = (- -2 - sqrt (-2 ^^^ 2 - 4 * 8 * -1)) / (2 * 8)),
jan@42352
   372
  (([3,2], Res), z = 1 / 2 | z = -1 / 4),
jan@42352
   373
  (([3,3], Res), [z = 1 / 2, z = -1 / 4]),
jan@42352
   374
  (([3,4], Res), [z = 1 / 2, z = -1 / 4]),
jan@42352
   375
  (([3], Res), [z = 1 / 2, z = -1 / 4]),
jan@42352
   376
  (([4], Frm), factors_from_solution [z = 1 / 2, z = -1 / 4])]
jan@42352
   377
in particular that
jan@42352
   378
  (([3], Pbl), solve (-1 + -2 * z + 8 * z ^^^ 2 = 0, z)),
jan@42352
   379
shows the equation which has been created in the program by
jan@42352
   380
  "      (denom::real) = get_denominator funterm;" ^ (*get_denominator*)
jan@42352
   381
  "      (equ::bool) = (denom = (0::real));" ^
jan@42352
   382
# 'get_denominator' has been evaluated successfully, but not factors_from_solution.
jan@42352
   383
So we stepwise compare with an analogous case, get_denominator 
jan@42352
   384
successfully done above: We know that LIP evaluates expressions in the 
jan@42352
   385
program by use of the "srls", so we
jan@42352
   386
# try to get the original srls
jan@42352
   387
jan@42352
   388
  val {srls, ...} = get_met ["SignalProcessing","Z_Transform","inverse"];
jan@42352
   389
jan@42352
   390
# create 2 good example terms
jan@42352
   391
  val SOME t1 = parseNEW ctxt "get_denominator ((111::real) / 222)";
jan@42352
   392
  val SOME t2 = parseNEW ctxt "factors_from_solution [(z::real) = 1 / 2, z = -1 / 4]";
jan@42352
   393
jan@42352
   394
# rewrite the terms using srls
jan@42352
   395
  rewrite_set_ thy true srls t1;
jan@42352
   396
  rewrite_set_ thy true srls t2;
jan@42352
   397
jan@42352
   398
and we see a difference: t1 gives SOME, t2 gives NONE.
jan@42352
   399
Now we look at the srls:
jan@42352
   400
  val srls = Rls {id="srls_InverseZTransform",
jan@42352
   401
    :
jan@42352
   402
    rules =
jan@42352
   403
      [
jan@42352
   404
        :
jan@42352
   405
        Calc("Rational.get_numerator",
jan@42352
   406
          eval_get_numerator "Rational.get_numerator"),
jan@42352
   407
        Calc("Partial_Fractions.factors_from_solution",
jan@42352
   408
          eval_factors_from_solution "Partial_Fractions.factors_from_solution")
jan@42352
   409
      ],
jan@42352
   410
    :
jan@42352
   411
jan@42352
   412
Here everthing is perfect. So the error can only be in the SML code of eval_factors_from_solution.
jan@42352
   413
We try to check the code with an existing test; since the code is in
jan@42352
   414
jan@42352
   415
  src/Tools/isac/Knowledge/Partial_Fractions.thy
jan@42352
   416
jan@42352
   417
the test should be in
jan@42352
   418
jan@42352
   419
  test/Tools/isac/Knowledge/partial_fractions.sml
jan@42352
   420
jan@42352
   421
-------------------------------------------------------------------------------
jan@42352
   422
After updating the function get_factors_from solution to a new version and 
jan@42352
   423
putting a testcase to Partial_Fractions.sml we tried again to evaluate the
jan@42352
   424
term with the same result.
jan@42352
   425
We opened the test Test_Isac.thy and saw that everything is working fine.
jan@42352
   426
Also we checked that the test partial_fractions.sml is used in Test_Isac.thy 
jan@42352
   427
jan@42352
   428
-->  use "Knowledge/partial_fractions.sml"
jan@42352
   429
jan@42352
   430
and Partial_Fractions.thy is part is part of isac by evaluating
jan@42352
   431
jan@42352
   432
val thy = @{theory Isac};
jan@42352
   433
jan@42353
   434
after rebuilding isac again it worked
jan@42353
   435
neuper@42335
   436
*}
neuper@42279
   437
neuper@42279
   438
subsubsection {*build expression*}
neuper@42279
   439
text {*in isac's CTP-based programming language: let s_1 = Take numerator / (s_1 * s_2)*}
neuper@42279
   440
ML {*
neuper@42279
   441
(*The Main Denominator is the multiplikation of the partial fraction denominators*)
neuper@42279
   442
val denominator' = HOLogic.mk_binop "Groups.times_class.times" (s_1', s_2') ;
neuper@42279
   443
val SOME numerator = parseNEW ctxt "3::real";
neuper@42279
   444
neuper@42279
   445
val expr' = HOLogic.mk_binop "Rings.inverse_class.divide" (numerator, denominator');
neuper@42279
   446
term2str expr';
neuper@42279
   447
*}
neuper@42279
   448
neuper@42279
   449
subsubsection {*Ansatz - create partial fractions out of our expression*}
neuper@42302
   450
ML {*Context.theory_name thy = "Isac"*}
neuper@42279
   451
neuper@42279
   452
axiomatization where
neuper@42279
   453
  ansatz2: "n / (a*b) = A/a + B/(b::real)" and
jan@42344
   454
  multiply_eq2: "((n::real) / (a*b) = A/a + B/b) = (a*b*(n  / (a*b)) = a*b*(A/a + B/b::real))"  
neuper@42279
   455
neuper@42279
   456
ML {*
neuper@42279
   457
(*we use our ansatz2 to rewrite our expression and get an equilation with our expression on the left and the partial fractions of it on the right side*)
neuper@42279
   458
val SOME (t1,_) = rewrite_ @{theory Isac} e_rew_ord e_rls false @{thm ansatz2} expr';
neuper@42279
   459
term2str t1; atomty t1;
neuper@42279
   460
val eq1 = HOLogic.mk_eq (expr', t1);
neuper@42279
   461
term2str eq1;
neuper@42279
   462
*}
neuper@42279
   463
ML {*
neuper@42279
   464
(*eliminate the demoninators by multiplying the left and the right side with the main denominator*)
neuper@42279
   465
val SOME (eq2,_) = rewrite_ @{theory Isac} e_rew_ord e_rls false @{thm multiply_eq2} eq1;
neuper@42279
   466
term2str eq2;
neuper@42279
   467
*}
neuper@42279
   468
ML {*
neuper@42279
   469
(*simplificatoin*)
neuper@42279
   470
val SOME (eq3,_) = rewrite_set_ @{theory Isac} false norm_Rational eq2;
neuper@42279
   471
term2str eq3; (*?A ?B not simplified*)
neuper@42279
   472
*}
neuper@42279
   473
ML {*
neuper@42279
   474
val SOME fract1 =
neuper@42279
   475
  parseNEW ctxt "(z - 1 / 2) * (z - -1 / 4) * (A / (z - 1 / 2) + B / (z - -1 / 4))"; (*A B !*)
neuper@42279
   476
val SOME (fract2,_) = rewrite_set_ @{theory Isac} false norm_Rational fract1;
neuper@42279
   477
term2str fract2 = "(A + -2 * B + 4 * A * z + 4 * B * z) / 4";
neuper@42279
   478
(*term2str fract2 = "A * (1 / 4 + z) + B * (-1 / 2 + z)" would be more traditional*)
neuper@42279
   479
*}
neuper@42279
   480
ML {*
neuper@42279
   481
val (numerator, denominator) = HOLogic.dest_eq eq3;
neuper@42279
   482
val eq3' = HOLogic.mk_eq (numerator, fract1); (*A B !*)
neuper@42279
   483
term2str eq3';
neuper@42279
   484
(*MANDATORY: simplify (and remove denominator) otherwise 3 = 0*)
neuper@42279
   485
val SOME (eq3'' ,_) = rewrite_set_ @{theory Isac} false norm_Rational eq3';
neuper@42279
   486
term2str eq3'';
neuper@42279
   487
*}
neuper@42279
   488
ML {*Context.theory_name thy = "Isac"(*==================================================*)*}
neuper@42279
   489
neuper@42342
   490
subsubsection {*Build a rule-set for ansatz*}
neuper@42359
   491
text {* the "ansatz" rules violate the principle that each variable on 
neuper@42359
   492
  the right-hand-side must also occur on the left-hand-side of the rule:
neuper@42359
   493
  A, B, etc don't.
neuper@42359
   494
  Thus the rewriter marks these variables with question marks: ?A, ?B, etc.
neuper@42360
   495
  These question marks can be dropped by "fun drop_questionmarks".
neuper@42359
   496
  *}
neuper@42342
   497
ML {*
neuper@42342
   498
val ansatz_rls = prep_rls(
neuper@42342
   499
  Rls {id = "ansatz_rls", preconds = [], rew_ord = ("dummy_ord",dummy_ord), 
neuper@42342
   500
	  erls = e_rls, srls = Erls, calc = [],
neuper@42342
   501
	  rules = 
neuper@42342
   502
	   [Thm ("ansatz2",num_str @{thm ansatz2}),
neuper@42342
   503
	    Thm ("multiply_eq2",num_str @{thm multiply_eq2})
neuper@42342
   504
	   ], 
neuper@42342
   505
	 scr = EmptyScr});
neuper@42342
   506
*}
neuper@42342
   507
ML {*
neuper@42342
   508
val SOME (ttttt,_) = rewrite_set_ @{theory Isac} false ansatz_rls expr';
neuper@42359
   509
*}
neuper@42359
   510
ML {*
neuper@42359
   511
term2str expr' = "3 / ((z - 1 / 2) * (z - -1 / 4))";
neuper@42359
   512
term2str ttttt = "?A / (z - 1 / 2) + ?B / (z - -1 / 4)";
neuper@42342
   513
*}
neuper@42342
   514
neuper@42342
   515
neuper@42279
   516
subsubsection {*get first koeffizient*}
neuper@42279
   517
neuper@42279
   518
ML {*
neuper@42279
   519
(*substitude z with the first zeropoint to get A*)
neuper@42279
   520
val SOME (eq4_1,_) = rewrite_terms_ @{theory Isac} e_rew_ord e_rls [s_1] eq3'';
neuper@42279
   521
term2str eq4_1;
neuper@42279
   522
neuper@42279
   523
val SOME (eq4_2,_) = rewrite_set_ @{theory Isac} false norm_Rational eq4_1;
neuper@42279
   524
term2str eq4_2;
neuper@42279
   525
neuper@42279
   526
val fmz = ["equality (3 = 3 * A / (4::real))", "solveFor A","solutions L"];
neuper@42279
   527
val (dI',pI',mI') =("Isac", ["univariate","equation"], ["no_met"]);
neuper@42279
   528
(*solve the simple linear equilation for A TODO: return eq, not list of eq*)
neuper@42279
   529
val (p,_,fa,nxt,_,pt) = CalcTreeTEST [(fmz, (dI',pI',mI'))];
neuper@42362
   530
val (p,_,fa,nxt,_,pt) = me nxt p [] pt; (*Add_Given "equality (3 = 3 * A / 4)"*)
neuper@42362
   531
val (p,_,fa,nxt,_,pt) = me nxt p [] pt; (* Add_Given "solveFor A"*)
neuper@42362
   532
val (p,_,fa,nxt,_,pt) = me nxt p [] pt; (*Add_Find "solutions L"*)
neuper@42362
   533
val (p,_,fa,nxt,_,pt) = me nxt p [] pt; (*Specify_Theory "Isac"*)
neuper@42362
   534
val (p,_,fa,nxt,_,pt) = me nxt p [] pt; (*Specify_Problem ["normalize", "polynomial", 
neuper@42362
   535
                                          "univariate", "equation"])*)
neuper@42362
   536
val (p,_,fa,nxt,_,pt) = me nxt p [] pt; (* Specify_Method ["PolyEq", "normalize_poly"]*)
neuper@42362
   537
val (p,_,fa,nxt,_,pt) = me nxt p [] pt; (*Apply_Method ["PolyEq", "normalize_poly"]*)
neuper@42362
   538
val (p,_,fa,nxt,_,pt) = me nxt p [] pt; (*Rewrite ("all_left", "PolyEq.all_left")*)
neuper@42362
   539
val (p,_,fa,nxt,_,pt) = me nxt p [] pt; (*Rewrite_Set_Inst (["(bdv, A)"], "make_ratpoly_in")*)
neuper@42362
   540
val (p,_,fa,nxt,_,pt) = me nxt p [] pt; (*Rewrite_Set "polyeq_simplify"*)
neuper@42362
   541
val (p,_,fa,nxt,_,pt) = me nxt p [] pt; (**)
neuper@42362
   542
val (p,_,fa,nxt,_,pt) = me nxt p [] pt; (**)
neuper@42362
   543
val (p,_,fa,nxt,_,pt) = me nxt p [] pt; (*Add_Given "equality (3 + -3 / 4 * A = 0)"*)
neuper@42362
   544
val (p,_,fa,nxt,_,pt) = me nxt p [] pt; (*Add_Given "solveFor A"*)
neuper@42362
   545
val (p,_,fa,nxt,_,pt) = me nxt p [] pt; (*Add_Find "solutions A_i"*)
neuper@42362
   546
val (p,_,fa,nxt,_,pt) = me nxt p [] pt; (**)
neuper@42362
   547
val (p,_,fa,nxt,_,pt) = me nxt p [] pt; (**)
neuper@42362
   548
val (p,_,fa,nxt,_,pt) = me nxt p [] pt; (**)
neuper@42362
   549
val (p,_,fa,nxt,_,pt) = me nxt p [] pt; (*Apply_Method ["PolyEq", "solve_d1_polyeq_equation"]*)
neuper@42362
   550
val (p,_,fa,nxt,_,pt) = me nxt p [] pt; (*Rewrite_Set_Inst (["(bdv, A)"], "d1_polyeq_simplify")*)
neuper@42362
   551
val (p,_,fa,nxt,_,pt) = me nxt p [] pt; (*Rewrite_Set "polyeq_simplify"*)
neuper@42362
   552
val (p,_,fa,nxt,_,pt) = me nxt p [] pt; (*Rewrite_Set "norm_Rational_parenthesized"*)
neuper@42362
   553
val (p,_,fa,nxt,_,pt) = me nxt p [] pt; (*Or_to_List*)
neuper@42362
   554
val (p,_,fa,nxt,_,pt) = me nxt p [] pt; (*Check_elementwise "Assumptions"*)
neuper@42362
   555
val (p,_,fa,nxt,_,pt) = me nxt p [] pt; (*Check_Postcond ["degree_1", "polynomial", 
neuper@42362
   556
                                          "univariate", "equation"]*)
neuper@42362
   557
val (p,_,fa,nxt,_,pt) = me nxt p [] pt; (*Check_Postcond ["normalize", "polynomial", 
neuper@42362
   558
                                          "univariate", "equation"]*)
neuper@42362
   559
val (p,_,fa,nxt,_,pt) = me nxt p [] pt; (*End_Proof'*)
neuper@42279
   560
f2str fa;
neuper@42279
   561
*}
neuper@42279
   562
neuper@42279
   563
subsubsection {*get second koeffizient*}
neuper@42279
   564
ML {*thy*}
neuper@42279
   565
neuper@42279
   566
ML {*
neuper@42279
   567
(*substitude z with the second zeropoint to get B*)
neuper@42279
   568
val SOME (eq4b_1,_) = rewrite_terms_ @{theory Isac} e_rew_ord e_rls [s_2] eq3'';
neuper@42279
   569
term2str eq4b_1;
neuper@42279
   570
neuper@42279
   571
val SOME (eq4b_2,_) = rewrite_set_ @{theory Isac} false norm_Rational eq4b_1;
neuper@42279
   572
term2str eq4b_2;
neuper@42279
   573
*}
neuper@42279
   574
ML {*
neuper@42279
   575
(*solve the simple linear equilation for B TODO: return eq, not list of eq*)
neuper@42279
   576
val fmz = ["equality (3 = -3 * B / (4::real))", "solveFor B","solutions L"];
neuper@42279
   577
val (dI',pI',mI') =("Isac", ["univariate","equation"], ["no_met"]);
neuper@42279
   578
val (p,_,fb,nxt,_,pt) = CalcTreeTEST [(fmz, (dI',pI',mI'))];
neuper@42279
   579
val (p,_,fb,nxt,_,pt) = me nxt p [] pt;
neuper@42279
   580
val (p,_,fb,nxt,_,pt) = me nxt p [] pt;
neuper@42279
   581
val (p,_,fb,nxt,_,pt) = me nxt p [] pt;
neuper@42279
   582
val (p,_,fb,nxt,_,pt) = me nxt p [] pt;
neuper@42279
   583
val (p,_,fb,nxt,_,pt) = me nxt p [] pt;
neuper@42279
   584
val (p,_,fb,nxt,_,pt) = me nxt p [] pt;
neuper@42279
   585
val (p,_,fb,nxt,_,pt) = me nxt p [] pt;
neuper@42279
   586
val (p,_,fb,nxt,_,pt) = me nxt p [] pt;
neuper@42279
   587
val (p,_,fb,nxt,_,pt) = me nxt p [] pt;
neuper@42279
   588
val (p,_,fb,nxt,_,pt) = me nxt p [] pt;
neuper@42279
   589
val (p,_,fb,nxt,_,pt) = me nxt p [] pt;
neuper@42279
   590
val (p,_,fb,nxt,_,pt) = me nxt p [] pt;
neuper@42279
   591
val (p,_,fb,nxt,_,pt) = me nxt p [] pt;
neuper@42279
   592
val (p,_,fb,nxt,_,pt) = me nxt p [] pt;
neuper@42279
   593
val (p,_,fb,nxt,_,pt) = me nxt p [] pt;
neuper@42279
   594
val (p,_,fb,nxt,_,pt) = me nxt p [] pt;
neuper@42279
   595
val (p,_,fb,nxt,_,pt) = me nxt p [] pt;
neuper@42279
   596
val (p,_,fb,nxt,_,pt) = me nxt p [] pt;
neuper@42279
   597
val (p,_,fb,nxt,_,pt) = me nxt p [] pt;
neuper@42279
   598
val (p,_,fb,nxt,_,pt) = me nxt p [] pt;
neuper@42279
   599
val (p,_,fb,nxt,_,pt) = me nxt p [] pt;
neuper@42279
   600
val (p,_,fb,nxt,_,pt) = me nxt p [] pt;
neuper@42279
   601
val (p,_,fb,nxt,_,pt) = me nxt p [] pt;
neuper@42279
   602
val (p,_,fb,nxt,_,pt) = me nxt p [] pt;
neuper@42279
   603
val (p,_,fb,nxt,_,pt) = me nxt p [] pt;
neuper@42279
   604
val (p,_,fb,nxt,_,pt) = me nxt p [] pt;
neuper@42279
   605
val (p,_,fb,nxt,_,pt) = me nxt p [] pt; 
neuper@42279
   606
f2str fb;
neuper@42279
   607
*}
neuper@42279
   608
neuper@42279
   609
ML {* (*check koeffizients*)
neuper@42279
   610
if f2str fa = "[A = 4]" then () else error "part.fract. eq4_1";
neuper@42279
   611
if f2str fb = "[B = -4]" then () else error "part.fract. eq4_1";
neuper@42279
   612
*}
neuper@42279
   613
neuper@42279
   614
subsubsection {*substitute expression with solutions*}
neuper@42279
   615
ML {*
neuper@42279
   616
*}
neuper@42279
   617
ML {*thy*}
neuper@42279
   618
jan@42296
   619
section {*Implement the Specification and the Method \label{spec-meth}*}
neuper@42279
   620
text{*==============================================*}
neuper@42279
   621
subsection{*Define the Field Descriptions for the specification*}
neuper@42279
   622
consts
neuper@42279
   623
  filterExpression  :: "bool => una"
neuper@42279
   624
  stepResponse      :: "bool => una"
neuper@42279
   625
neuper@42279
   626
subsection{*Define the Specification*}
neuper@42279
   627
ML {*
neuper@42279
   628
store_pbt
neuper@42279
   629
 (prep_pbt thy "pbl_SP" [] e_pblID
neuper@42279
   630
 (["SignalProcessing"], [], e_rls, NONE, []));
neuper@42279
   631
store_pbt
neuper@42279
   632
 (prep_pbt thy "pbl_SP_Ztrans" [] e_pblID
neuper@42279
   633
 (["Z_Transform","SignalProcessing"], [], e_rls, NONE, []));
neuper@42279
   634
*}
neuper@42279
   635
ML {*thy*}
neuper@42279
   636
ML {*
neuper@42279
   637
store_pbt
neuper@42279
   638
 (prep_pbt thy "pbl_SP_Ztrans_inv" [] e_pblID
neuper@42279
   639
 (["inverse", "Z_Transform", "SignalProcessing"],
neuper@42279
   640
  [("#Given" ,["filterExpression X_eq"]),
neuper@42279
   641
   ("#Find"  ,["stepResponse n_eq"])
neuper@42279
   642
  ],
neuper@42279
   643
  append_rls "e_rls" e_rls [(*for preds in where_*)], NONE, 
neuper@42279
   644
  [["SignalProcessing","Z_Transform","inverse"]]));
neuper@42279
   645
neuper@42279
   646
show_ptyps();
neuper@42279
   647
get_pbt ["inverse","Z_Transform","SignalProcessing"];
neuper@42279
   648
*}
neuper@42279
   649
neuper@42279
   650
subsection {*Define Name and Signature for the Method*}
neuper@42279
   651
consts
neuper@42279
   652
  InverseZTransform :: "[bool, bool] => bool"
neuper@42279
   653
    ("((Script InverseZTransform (_ =))// (_))" 9)
neuper@42279
   654
neuper@42279
   655
subsection {*Setup Parent Nodes in Hierarchy of Method*}
neuper@42279
   656
ML {*
neuper@42279
   657
store_met
neuper@42279
   658
 (prep_met thy "met_SP" [] e_metID
neuper@42279
   659
 (["SignalProcessing"], [],
neuper@42279
   660
   {rew_ord'="tless_true", rls'= e_rls, calc = [], srls = e_rls, prls = e_rls,
neuper@42279
   661
    crls = e_rls, nrls = e_rls}, "empty_script"));
neuper@42279
   662
store_met
neuper@42279
   663
 (prep_met thy "met_SP_Ztrans" [] e_metID
neuper@42279
   664
 (["SignalProcessing", "Z_Transform"], [],
neuper@42279
   665
   {rew_ord'="tless_true", rls'= e_rls, calc = [], srls = e_rls, prls = e_rls,
neuper@42279
   666
    crls = e_rls, nrls = e_rls}, "empty_script"));
neuper@42279
   667
*}
neuper@42279
   668
ML {*
neuper@42279
   669
store_met
neuper@42279
   670
 (prep_met thy "met_SP_Ztrans_inv" [] e_metID
neuper@42279
   671
 (["SignalProcessing", "Z_Transform", "inverse"], 
neuper@42279
   672
  [("#Given" ,["filterExpression X_eq"]),
neuper@42279
   673
   ("#Find"  ,["stepResponse n_eq"])
neuper@42279
   674
  ],
neuper@42279
   675
   {rew_ord'="tless_true", rls'= e_rls, calc = [], srls = e_rls, prls = e_rls,
neuper@42279
   676
    crls = e_rls, nrls = e_rls},
neuper@42279
   677
  "empty_script"
neuper@42279
   678
 ));
neuper@42279
   679
*}
neuper@42279
   680
ML {*
neuper@42279
   681
store_met
neuper@42279
   682
 (prep_met thy "met_SP_Ztrans_inv" [] e_metID
neuper@42279
   683
 (["SignalProcessing", "Z_Transform", "inverse"], 
neuper@42279
   684
  [("#Given" ,["filterExpression X_eq"]),
neuper@42279
   685
   ("#Find"  ,["stepResponse n_eq"])
neuper@42279
   686
  ],
neuper@42279
   687
   {rew_ord'="tless_true", rls'= e_rls, calc = [], srls = e_rls, prls = e_rls,
neuper@42279
   688
    crls = e_rls, nrls = e_rls},
neuper@42279
   689
  "Script InverseZTransform (Xeq::bool) =" ^
neuper@42279
   690
  " (let X = Take Xeq;" ^
neuper@42279
   691
  "      X = Rewrite ruleZY False X" ^
neuper@42279
   692
  "  in X)"
neuper@42279
   693
 ));
jan@42299
   694
*}
jan@42299
   695
ML {*
neuper@42279
   696
show_mets();
jan@42299
   697
*}
jan@42299
   698
ML {*
neuper@42279
   699
get_met ["SignalProcessing","Z_Transform","inverse"];
neuper@42279
   700
*}
neuper@42279
   701
jan@42296
   702
section {*Program in CTP-based language \label{prog-steps}*}
neuper@42279
   703
text{*=================================*}
neuper@42279
   704
subsection {*Stepwise extend Program*}
neuper@42279
   705
ML {*
neuper@42279
   706
val str = 
neuper@42279
   707
"Script InverseZTransform (Xeq::bool) =" ^
neuper@42279
   708
" Xeq";
neuper@42279
   709
*}
neuper@42279
   710
ML {*
neuper@42279
   711
val str = 
neuper@42279
   712
"Script InverseZTransform (Xeq::bool) =" ^ (*(1/z) instead of z ^^^ -1*)
neuper@42279
   713
" (let X = Take Xeq;" ^
neuper@42279
   714
"      X' = Rewrite ruleZY False X;" ^ (*z * denominator*)
neuper@42279
   715
"      X' = (Rewrite_Set norm_Rational False) X'" ^ (*simplify*)
neuper@42279
   716
"  in X)";
neuper@42279
   717
(*NONE*)
neuper@42279
   718
"Script InverseZTransform (Xeq::bool) =" ^ (*(1/z) instead of z ^^^ -1*)
neuper@42279
   719
" (let X = Take Xeq;" ^
neuper@42279
   720
"      X' = Rewrite ruleZY False X;" ^ (*z * denominator*)
neuper@42279
   721
"      X' = (Rewrite_Set norm_Rational False) X';" ^ (*simplify*)
neuper@42279
   722
"      X' = (SubProblem (Isac',[pqFormula,degree_2,polynomial,univariate,equation], [no_met])   " ^
neuper@42279
   723
    "                 [BOOL e_e, REAL v_v])" ^
neuper@42279
   724
"  in X)";
neuper@42279
   725
*}
neuper@42279
   726
ML {*
neuper@42279
   727
val str = 
neuper@42279
   728
"Script InverseZTransform (Xeq::bool) =" ^ (*(1/z) instead of z ^^^ -1*)
neuper@42279
   729
" (let X = Take Xeq;" ^
neuper@42279
   730
"      X' = Rewrite ruleZY False X;" ^ (*z * denominator*)
neuper@42279
   731
"      X' = (Rewrite_Set norm_Rational False) X';" ^ (*simplify*)
neuper@42279
   732
"      funterm = rhs X'" ^ (*drop X'= for equation solving*)
neuper@42279
   733
"  in X)";
neuper@42279
   734
*}
neuper@42279
   735
ML {*
neuper@42290
   736
val str = 
neuper@42290
   737
"Script InverseZTransform (X_eq::bool) =" ^ (*(1/z) instead of z ^^^ -1*)
neuper@42290
   738
" (let X = Take X_eq;" ^
neuper@42290
   739
"      X' = Rewrite ruleZY False X;" ^ (*z * denominator*)
neuper@42290
   740
"      X' = (Rewrite_Set norm_Rational False) X';" ^ (*simplify*)
jan@42298
   741
"      (X'_z::real) = lhs X';" ^
jan@42298
   742
"      (z::real) = argument_in X'_z;" ^
jan@42298
   743
"      (funterm::real) = rhs X';" ^ (*drop X' z = for equation solving*)
jan@42298
   744
"      (denom::real) = get_denominator funterm;" ^ (*get_denominator*)
jan@42298
   745
"      (equ::bool) = (denom = (0::real));" ^
neuper@42290
   746
"      (L_L::bool list) =                                    " ^
neuper@42290
   747
"            (SubProblem (Test',                            " ^
neuper@42290
   748
"                         [linear,univariate,equation,test]," ^
neuper@42290
   749
"                         [Test,solve_linear])              " ^
neuper@42290
   750
"                        [BOOL equ, REAL z])              " ^
neuper@42290
   751
"  in X)"
neuper@42290
   752
;
neuper@42290
   753
neuper@42279
   754
parse thy str;
neuper@42279
   755
val sc = ((inst_abs thy) o term_of o the o (parse thy)) str;
neuper@42279
   756
atomty sc;
neuper@42279
   757
neuper@42279
   758
*}
jan@42300
   759
jan@42300
   760
text {*
jan@42300
   761
This ruleset contains all functions that are in the script; 
jan@42300
   762
The evaluation of the functions is done by rewriting using this ruleset.
jan@42300
   763
*}
jan@42300
   764
neuper@42279
   765
ML {*
neuper@42290
   766
val srls = Rls {id="srls_InverseZTransform", 
neuper@42290
   767
		  preconds = [], rew_ord = ("termlessI",termlessI), 
neuper@42290
   768
		  erls = append_rls "erls_in_srls_InverseZTransform" e_rls
neuper@42290
   769
				    [(*for asm in NTH_CONS ...*) Calc ("Orderings.ord_class.less",eval_equ "#less_"),
neuper@42290
   770
				     (*2nd NTH_CONS pushes n+-1 into asms*) Calc("Groups.plus_class.plus", eval_binop "#add_")
neuper@42290
   771
				    ], 
neuper@42290
   772
  srls = Erls, calc = [],
neuper@42290
   773
		  rules =
neuper@42290
   774
    [Thm ("NTH_CONS",num_str @{thm NTH_CONS}),
neuper@42290
   775
			     Calc("Groups.plus_class.plus", eval_binop "#add_"),
neuper@42290
   776
			     Thm ("NTH_NIL",num_str @{thm NTH_NIL}),
neuper@42290
   777
			     Calc("Tools.lhs", eval_lhs"eval_lhs_"), (*<=== ONLY USED*)
neuper@42290
   778
			     Calc("Tools.rhs", eval_rhs"eval_rhs_"), (*<=== ONLY USED*)
jan@42300
   779
			     Calc("Atools.argument'_in", eval_argument_in "Atools.argument'_in"),
neuper@42359
   780
     Calc("Rational.get_denominator", eval_get_denominator "#get_denominator"),
neuper@42359
   781
     Calc("Rational.get_numerator", eval_get_numerator "#get_numerator"),
jan@42344
   782
     Calc("Partial_Fractions.factors_from_solution",
neuper@42359
   783
       eval_factors_from_solution "#factors_from_solution"),
neuper@42359
   784
     Calc("Partial_Fractions.drop_questionmarks", eval_drop_questionmarks "#drop_?")
neuper@42290
   785
			    ],
neuper@42290
   786
		  scr = EmptyScr};
neuper@42279
   787
*}
neuper@42279
   788
neuper@42279
   789
neuper@42279
   790
subsection {*Store Final Version of Program for Execution*}
jan@42338
   791
neuper@42279
   792
ML {*
neuper@42279
   793
store_met
neuper@42279
   794
 (prep_met thy "met_SP_Ztrans_inv" [] e_metID
neuper@42279
   795
 (["SignalProcessing", "Z_Transform", "inverse"], 
neuper@42279
   796
  [("#Given" ,["filterExpression X_eq"]),
neuper@42279
   797
   ("#Find"  ,["stepResponse n_eq"])
neuper@42279
   798
  ],
neuper@42290
   799
   {rew_ord'="tless_true", rls'= e_rls, calc = [], srls = srls, 
neuper@42290
   800
    prls = e_rls,
neuper@42279
   801
    crls = e_rls, nrls = e_rls},
neuper@42359
   802
      "Script InverseZTransform (X_eq::bool) =" ^ (*(1/z) instead of z ^^^ -1*)
neuper@42359
   803
      " (let X = Take X_eq;" ^
neuper@42359
   804
(*([1], Frm), X z = 3 / (z - 1 / 4 + -1 / 8 * (1 / z))*)
neuper@42359
   805
      "      X' = Rewrite ruleZY False X;" ^ (*z * denominator*)
neuper@42359
   806
(*([1], Res), ?X' z = 3 / (z * (z - 1 / 4 + -1 / 8 * (1 / z)))*)
jan@42364
   807
      "      (num_orig::real) = get_numerator (rhs X');"^
neuper@42359
   808
      "      X' = (Rewrite_Set norm_Rational False) X';" ^ (*simplify*)
neuper@42359
   809
(*([2], Res), ?X' z = 24 / (-1 + -2 * z + 8 * z ^^^ 2)*)
neuper@42359
   810
      "      (X'_z::real) = lhs X';" ^ (**)
neuper@42359
   811
      "      (zzz::real) = argument_in X'_z;" ^ (**)
neuper@42359
   812
      "      (funterm::real) = rhs X';" ^ (*drop X' z = for equation solving*)
neuper@42359
   813
      "      (denom::real) = get_denominator funterm;" ^ (*get_denominator*)
neuper@42359
   814
      "      (num::real) = get_numerator funterm; " ^ (*get_numerator*)
neuper@42359
   815
      "      (equ::bool) = (denom = (0::real));" ^
neuper@42359
   816
      "      (L_L::bool list) = (SubProblem (PolyEq'," ^
neuper@42359
   817
      "         [abcFormula,degree_2,polynomial,univariate,equation],[no_met])" ^
neuper@42359
   818
      "         [BOOL equ, REAL zzz]);              " ^
jan@42363
   819
neuper@42359
   820
(*([3], Pbl), solve (-1 + -2 * z + 8 * z ^^^ 2 = 0, z)*)
neuper@42359
   821
(*([3], Res), [z = 1 / 2, z = -1 / 4]*)
jan@42363
   822
neuper@42359
   823
      "      (facs::real) = factors_from_solution L_L;" ^
jan@42364
   824
      "      (eql::real) = Take (num_orig / facs);" ^                                 (*([4], Frm), 24 / ((z + -1 * (1 / 2)) * (z + -1 * (-1 / 4)))*)
jan@42363
   825
jan@42363
   826
      "      (eqr::real) = (Try (Rewrite_Set ansatz_rls False)) eql;"^           (*([4], Res), ?A / (z + -1 * (1 / 2)) + ?B / (z + -1 * (-1 / 4))*)
jan@42363
   827
jan@42363
   828
      "      (eq::bool) = Take (eql = eqr);"^ (*Maybe possible to use HOLogic.mk_eq ??*) (*([5], Frm), 24 / ((z + -1 * (1 / 2)) * (z + -1 * (-1 / 4))) = ?A / (z + -1 * (1 / 2)) + ?B / (z + -1 * (-1 / 4))*)
jan@42363
   829
jan@42363
   830
      "      eq = (Try (Rewrite_Set equival_trans False)) eq;"^                  (*([5], Res), 24 = ?A * (z + -1 * (-1 / 4)) + ?B * (z + -1 * (1 / 2))*)
jan@42363
   831
neuper@42359
   832
      "      eq = drop_questionmarks eq;"^
jan@42363
   833
      "      (z1::real) = (rhs (NTH 1 L_L));"^                                   (*prepare equliation for a - eq_a therfor subsitude z with solution 1 - z1*)
jan@42364
   834
      "      (z2::real) = (rhs (NTH 2 L_L));"^
jan@42364
   835
 
jan@42364
   836
      "      (eq_a::bool) = Take eq;"^
jan@42364
   837
      "      eq_a = (Substitute [zzz=z1]) eq;"^                          (*([6], Res), 24 = ?A * (1 / 2 + -1 * (-1 / 4)) + ?B * (1 / 2 + -1 * (1 / 2))*)
jan@42363
   838
      "      eq_a = (Rewrite_Set norm_Rational False) eq_a;"^                    (*([7], Res), 24 = ?A * 3 / 4*)
jan@42363
   839
      "      (sol_a::bool list) = (SubProblem (Isac'," ^
neuper@42359
   840
      "          [univariate,equation],[no_met])" ^
neuper@42362
   841
      "        [BOOL eq_a, REAL (A::real)]);"^
jan@42363
   842
      "      (a::real) = (rhs(NTH 1 sol_a));"^
jan@42363
   843
jan@42363
   844
jan@42364
   845
      "      (eq_b::bool) = Take eq;"^
jan@42364
   846
      "      eq_b =  (Substitute [zzz=z2]) eq_b;"^
jan@42364
   847
      "      eq_b = (Rewrite_Set norm_Rational False) eq_b;"^
jan@42364
   848
      "      (sol_b::bool list) = (SubProblem (Isac'," ^
jan@42364
   849
      "          [univariate,equation],[no_met])" ^
jan@42364
   850
      "        [BOOL eq_b, REAL (B::real)]);"^
jan@42364
   851
jan@42364
   852
      "      (x::real) = Take num_orig"^(*only here that the last step of the ptree is visible in tracing output*)
neuper@42359
   853
      "  in X)" 
neuper@42359
   854
      ));
neuper@42279
   855
*}
neuper@42279
   856
jan@42338
   857
neuper@42281
   858
subsection {*Check the Program*}
neuper@42279
   859
neuper@42281
   860
subsubsection {*Check the formalization*}
neuper@42279
   861
ML {*
neuper@42279
   862
val fmz = ["filterExpression (X  = 3 / (z - 1/4 + -1/8 * (1/(z::real))))", 
neuper@42279
   863
  "stepResponse (x[n::real]::bool)"];
neuper@42279
   864
val (dI,pI,mI) = ("Isac", ["inverse", "Z_Transform", "SignalProcessing"], 
neuper@42279
   865
  ["SignalProcessing","Z_Transform","inverse"]);
neuper@42281
   866
neuper@42281
   867
val ([(1, [1], "#Given", Const ("Inverse_Z_Transform.filterExpression", _),
neuper@42281
   868
            [Const ("HOL.eq", _) $ _ $ _]),
neuper@42281
   869
           (2, [1], "#Find", Const ("Inverse_Z_Transform.stepResponse", _),
neuper@42281
   870
            [Free ("x", _) $ _])],
neuper@42281
   871
          _) = prep_ori fmz thy ((#ppc o get_pbt) pI);
neuper@42281
   872
*}
neuper@42290
   873
ML {*
neuper@42290
   874
val Script sc = (#scr o get_met) ["SignalProcessing","Z_Transform","inverse"];
neuper@42290
   875
atomty sc;
neuper@42290
   876
*}
neuper@42281
   877
neuper@42281
   878
subsubsection {*Stepwise check the program*}
neuper@42281
   879
ML {*
neuper@42302
   880
trace_rewrite := false;
neuper@42306
   881
trace_script := false; print_depth 9;
neuper@42281
   882
val fmz = ["filterExpression (X z = 3 / (z - 1/4 + -1/8 * (1/(z::real))))", 
neuper@42281
   883
  "stepResponse (x[n::real]::bool)"];
neuper@42281
   884
val (dI,pI,mI) = ("Isac", ["inverse", "Z_Transform", "SignalProcessing"], 
neuper@42281
   885
  ["SignalProcessing","Z_Transform","inverse"]);
neuper@42310
   886
val (p,_,f,nxt,_,pt)  = CalcTreeTEST [(fmz, (dI,pI,mI))];
neuper@42359
   887
(*([], Frm), Problem (Isac, [inverse, Z_Transform, SignalProcessing])*)
neuper@42303
   888
val (p,_,f,nxt,_,pt) = me nxt p [] pt; "Add_Given";
neuper@42303
   889
val (p,_,f,nxt,_,pt) = me nxt p [] pt; "Add_Find";
neuper@42303
   890
val (p,_,f,nxt,_,pt) = me nxt p [] pt; "Specify_Theory";
neuper@42303
   891
val (p,_,f,nxt,_,pt) = me nxt p [] pt; "Specify_Problem";
neuper@42303
   892
val (p,_,f,nxt,_,pt) = me nxt p [] pt; "Specify_Method";
jan@42296
   893
val (p,_,f,nxt,_,pt) = me nxt p [] pt; "nxt = Apply_Method";
jan@42297
   894
val (p,_,f,nxt,_,pt) = me nxt p [] pt; "nxt = Rewrite (ruleZY, Inverse_Z_Transform.ruleZY) --> X z = 3 / (z - 1 / 4 + -1 / 8 * (1 / z))"; (*TODO naming!*)
neuper@42359
   895
(*([1], Frm), X z = 3 / (z - 1 / 4 + -1 / 8 * (1 / z))*)
jan@42296
   896
val (p,_,f,nxt,_,pt) = me nxt p [] pt; "nxt = Rewrite_Set norm_Rational --> X' z = 3 / (z * (z - 1 / 4 + -1 / 8 * (1 / z)))";
neuper@42359
   897
(*([1], Res), ?X' z = 3 / (z * (z - 1 / 4 + -1 / 8 * (1 / z)))*)
neuper@42315
   898
val (p,_,f,nxt,_,pt) = me nxt p [] pt; "nxt = SubProblem";
neuper@42359
   899
(*([2], Res), ?X' z = 24 / (-1 + -2 * z + 8 * z ^^^ 2)*)
jan@42300
   900
*}
neuper@42305
   901
text {* Instead of nxt = Subproblem above we had Empty_Tac; the search for the reason 
neuper@42305
   902
  considered the following points:
neuper@42303
   903
  # what shows show_pt pt; ...
neuper@42303
   904
    (([2], Res), ?X' z = 24 / (-1 + -2 * z + 8 * z ^^^ 2))] ..calculation ok,
neuper@42303
   905
    but no "next" step found: should be "nxt = Subproblem" ?!?
neuper@42303
   906
  # what shows trace_script := true; we read bottom up ...
neuper@42303
   907
    @@@ next   leaf 'SubProbfrom
neuper@42303
   908
     (PolyEq', [abcFormula, degree_2, polynomial, univariate, equation],
neuper@42303
   909
      no_meth)
neuper@42303
   910
     [BOOL equ, REAL z]' ---> STac 'SubProblem
neuper@42303
   911
     (PolyEq', [abcFormula, degree_2, polynomial, univariate, equation],
neuper@42303
   912
      no_meth)
neuper@42303
   913
     [BOOL (-1 + -2 * z + 8 * z ^^^ 2 = 0), REAL z]'
neuper@42305
   914
    ... and see the SubProblem with correct arguments from searching next step
neuper@42305
   915
    (program text !!!--->!!! STac (script tactic) with arguments evaluated.)
neuper@42310
   916
  # do we have the right Script ...difference in the argumentsdifference in the arguments
neuper@42303
   917
    val Script s = (#scr o get_met) ["SignalProcessing","Z_Transform","inverse"];
neuper@42303
   918
    writeln (term2str s);
neuper@42310
   919
    ... shows the right script.difference in the arguments
neuper@42305
   920
  # test --- why helpless here ? --- shows: replace no_meth by [no_meth] in Script
neuper@42301
   921
*}
neuper@42315
   922
neuper@42301
   923
ML {*
neuper@42315
   924
val (p,_,f,nxt,_,pt) = me nxt p [] pt; "nxt = Model_Problem";
neuper@42359
   925
(*([3], Pbl), solve (-1 + -2 * z + 8 * z ^^^ 2 = 0, z)*)
neuper@42306
   926
*}
neuper@42306
   927
text {* Instead of nxt = Model_Problem above we had Empty_Tac; the search for the reason 
neuper@42310
   928
  considered the following points:difference in the arguments
neuper@42306
   929
  # comparison with subsection { *solve equation* }: there solving this equation works,
neuper@42315
   930
    so there must be some difference in the arguments of the Subproblem:
neuper@42315
   931
    RIGHT: we had [no_meth] instead of [no_met] ;-))
neuper@42305
   932
*}
neuper@42305
   933
ML {*
neuper@42315
   934
val (p,_,f,nxt,_,pt) = me nxt p [] pt; "nxt = Add_Given equality (-1 + -2 * z + 8 * z ^^^ 2 = 0)";
neuper@42315
   935
val (p,_,f,nxt,_,pt) = me nxt p [] pt; "nxt = Add_Given solveFor z";
neuper@42315
   936
val (p,_,f,nxt,_,pt) = me nxt p [] pt; "nxt = Add_Find solutions z_i";
neuper@42315
   937
val (p,_,f,nxt,_,pt) = me nxt p [] pt; "nxt = Specify_Theory Isac";
neuper@42301
   938
*}
neuper@42359
   939
neuper@42315
   940
text {* We had "nxt = Empty_Tac instead Specify_Theory; 
neuper@42315
   941
  the search for the reason considered the following points:
neuper@42302
   942
  # was there an error message ? NO --ok
neuper@42302
   943
  # has "nxt = Add_Find" been inserted in pt: get_obj g_pbl pt (fst p); YES --ok
neuper@42302
   944
  # what is the returned "formula": print_depth 999; f; print_depth 999; --
neuper@42302
   945
    {Find = [Correct "solutions z_i"], With = [], 
neuper@42302
   946
     Given = [Correct "equality (-1 + -2 * z + 8 * z ^^^ 2 = 0)", Correct "solveFor z"],
neuper@42302
   947
     Where = [False "matches (z = 0) (-1 + -2 * z + 8 * z ^^^ 2 = 0) |\n
neuper@42302
   948
                     matches (?b * z = 0) (-1 + -2 * z + 8 * z ^^^ 2 = 0) |\n
neuper@42302
   949
                     matches (?a + z = 0) (-1 + -2 * z + 8 * z ^^^ 2 = 0) |\n
neuper@42302
   950
                     matches (?a + ?b * z = 0) (-1 + -2 * z + 8 * z ^^^ 2 = 0)"],
neuper@42302
   951
     Relate = []}
neuper@42302
   952
     -- the only False is the reason: the Where (the precondition) is False for good reasons:
neuper@42302
   953
     the precondition seems to check for linear equations, not for the one we want to solve!
neuper@42302
   954
  Removed this error by correcting the Script
neuper@42302
   955
  from SubProblem (PolyEq', [linear,univariate,equation,test], [Test,solve_linear]
neuper@42302
   956
  to   SubProblem (PolyEq', [abcFormula,degree_2,polynomial,univariate,equation],
neuper@42303
   957
                   [PolyEq,solve_d2_polyeq_abc_equation]
neuper@42302
   958
  You find the appropriate type of equation at
neuper@42302
   959
    http://www.ist.tugraz.at/projects/isac/www/kbase/pbl/index_pbl.html
neuper@42302
   960
  and the respective method in Knowledge/PolyEq.thy at the respective store_pbt.
neuper@42302
   961
  Or you leave the selection of the appropriate type to isac as done in the final Script ;-))
neuper@42302
   962
*}
neuper@42302
   963
ML {*
neuper@42315
   964
val (p,_,f,nxt,_,pt) = me nxt p [] pt; "nxt = Specify_Problem [abcFormula,...";
neuper@42315
   965
val (p,_,f,nxt,_,pt) = me nxt p [] pt; "nxt = Specify_Method [PolyEq,solve_d2_polyeq_abc_equation";
neuper@42315
   966
val (p,_,f,nxt,_,pt) = me nxt p [] pt; "nxt = Apply_Method [PolyEq,solve_d2_polyeq_abc_equation";
neuper@42315
   967
val (p,_,f,nxt,_,pt) = me nxt p [] pt; "nxt = Rewrite_Set_Inst ([(bdv, z)], d2_polyeq_abcFormula_simplify";
neuper@42359
   968
(*([3,1], Frm), -1 + -2 * z + 8 * z ^^^ 2 = 0)*)
neuper@42359
   969
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
neuper@42359
   970
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
neuper@42359
   971
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
neuper@42359
   972
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
neuper@42359
   973
(*([3,4], Res), [z = 1 / 2, z = -1 / 4])*)
neuper@42359
   974
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
neuper@42359
   975
(*([3], Res), [z = 1 / 2, z = -1 / 4]*)
neuper@42359
   976
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
neuper@42359
   977
(*([4], Frm), 24 / ((z + -1 * (1 / 2)) * (z + -1 * (-1 / 4)))*)
neuper@42359
   978
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
neuper@42359
   979
(*([4], Res), ?A / (z + -1 * (1 / 2)) + ?B / (z + -1 * (-1 / 4))*)
neuper@42359
   980
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
neuper@42359
   981
(*([5], Frm), 24 / ((z + -1 * (1 / 2)) * (z + -1 * (-1 / 4))) = ?A / (z + -1 * (1 / 2)) + ?B / (z + -1 * (-1 / 4))*)
neuper@42359
   982
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
neuper@42359
   983
(*([5], Res), 24 = ?A * (z + -1 * (-1 / 4)) + ?B * (z + -1 * (1 / 2))*)
neuper@42359
   984
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
neuper@42361
   985
(*([6], Res), 24 = A * (1 / 2 + -1 * (-1 / 4)) + B * (1 / 2 + -1 * (1 / 2))*)
neuper@42361
   986
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
neuper@42361
   987
(*([7], Res), 24 = A * 3 / 4*)
neuper@42362
   988
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
neuper@42362
   989
(*([8], Pbl), solve (24 = 3 * A / 4, A)*)
neuper@42362
   990
val (p,_,f,nxt,_,pt) = me nxt p [] pt; (*Add_Given "equality (24 = 3 * A / 4)"*)
neuper@42362
   991
val (p,_,f,nxt,_,pt) = me nxt p [] pt; (*Add_Given "solveFor A"*)
neuper@42362
   992
val (p,_,f,nxt,_,pt) = me nxt p [] pt; (*Add_Find "solutions A_i"*)
neuper@42362
   993
val (p,_,f,nxt,_,pt) = me nxt p [] pt; (*Specify_Theory "Isac"*)val (p,_,f,nxt,_,pt) = me nxt p [] pt; (*Specify_Problem ["normalize", "polynomial", 
neuper@42362
   994
                                         "univariate", "equation"]*)
neuper@42362
   995
val (p,_,f,nxt,_,pt) = me nxt p [] pt; (*Specify_Method ["PolyEq", "normalize_poly"]*)
neuper@42362
   996
val (p,_,f,nxt,_,pt) = me nxt p [] pt; (*Apply_Method ["PolyEq", "normalize_poly"]*)
neuper@42362
   997
val (p,_,f,nxt,_,pt) = me nxt p [] pt; (*Rewrite ("all_left", "PolyEq.all_left")*)
neuper@42362
   998
val (p,_,f,nxt,_,pt) = me nxt p [] pt; (*Rewrite_Set_Inst (["(bdv, A)"], "make_ratpoly_in")*)
neuper@42362
   999
val (p,_,f,nxt,_,pt) = me nxt p [] pt; (*Rewrite_Set "polyeq_simplify"*)
neuper@42362
  1000
val (p,_,f,nxt,_,pt) = me nxt p [] pt; (*Subproblem ("Isac", ["degree_1", "polynomial", 
neuper@42362
  1001
                                         "univariate", "equation"])*)
neuper@42362
  1002
*}
jan@42363
  1003
jan@42363
  1004
neuper@42362
  1005
ML {*
jan@42363
  1006
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
neuper@42360
  1007
show_pt pt;
neuper@42360
  1008
*}
jan@42363
  1009
neuper@42279
  1010
ML {*
jan@42363
  1011
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42363
  1012
show_pt pt;
neuper@42279
  1013
*}
neuper@42279
  1014
jan@42363
  1015
ML {*
jan@42363
  1016
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42363
  1017
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42363
  1018
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42363
  1019
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42363
  1020
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42363
  1021
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42363
  1022
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42363
  1023
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42363
  1024
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42363
  1025
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42363
  1026
*}
jan@42363
  1027
jan@42363
  1028
ML {*
jan@42363
  1029
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1030
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1031
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1032
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1033
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1034
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1035
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1036
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1037
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1038
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1039
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1040
*}
jan@42364
  1041
jan@42364
  1042
ML {*
jan@42364
  1043
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1044
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1045
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1046
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1047
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1048
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1049
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1050
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1051
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1052
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1053
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1054
*}
jan@42364
  1055
jan@42364
  1056
ML {*
jan@42364
  1057
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1058
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1059
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1060
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1061
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1062
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1063
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1064
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1065
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1066
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1067
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1068
*}
jan@42364
  1069
jan@42364
  1070
ML {*
jan@42364
  1071
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1072
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1073
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1074
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1075
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1076
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1077
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1078
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1079
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1080
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1081
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42364
  1082
*}
jan@42364
  1083
jan@42364
  1084
jan@42364
  1085
ML {*
jan@42364
  1086
(*trace_script := true;*)
jan@42364
  1087
val (p,_,f,nxt,_,pt) = me nxt p [] pt;
jan@42363
  1088
show_pt pt;
jan@42363
  1089
*}
jan@42363
  1090
jan@42363
  1091
neuper@42279
  1092
section {*Write Tests for Crucial Details*}
neuper@42279
  1093
text{*===================================*}
neuper@42279
  1094
ML {*
neuper@42279
  1095
*}
neuper@42279
  1096
neuper@42279
  1097
section {*Integrate Program into Knowledge*}
neuper@42279
  1098
ML {*
neuper@42362
  1099
print_depth 999;
neuper@42279
  1100
*}
neuper@42279
  1101
neuper@42279
  1102
end
neuper@42279
  1103