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			475 lines
		
	
	
		
			14 KiB
		
	
	
	
		
			Common Lisp
		
	
	
	
	
	
			
		
		
	
	
			475 lines
		
	
	
		
			14 KiB
		
	
	
	
		
			Common Lisp
		
	
	
	
	
	
#|
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ESCUELA POLITECNICA SUPERIOR - UNIVERSIDAD AUTONOMA DE MADRID
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INTELIGENCIA ARTIFICIAL
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Motor de inferencia
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Basado en parte en "Paradigms of AI Programming: Case Studies
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in Common Lisp", de Peter Norvig, 1992
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|#
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;;;;;;;;;;;;;;;;;;;;;
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;;;; Global variables
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;;;;;;;;;;;;;;;;;;;;;
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(defvar *hypothesis-list*)
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(defvar *rule-list*)
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(defvar *fact-list*)
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;;;;;;;;;;;;;;;;;;;;;
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;;;; Constants
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;;;;;;;;;;;;;;;;;;;;;
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(defconstant +fail+ nil "Indicates unification failure")
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(defconstant +no-bindings+ '((nil))
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  "Indicates unification success, with no variables.")
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(defconstant *mundo-abierto* nil)
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;;;;;;;;;;;;;;;;;;;;;;;;;;;
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;;;; Functions for the user
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;;;;;;;;;;;;;;;;;;;;;;;;;;;
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;; Resets *fact-list* to NIL
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(defun erase-facts () (setq *fact-list* nil))
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(defun set-hypothesis-list (h) (setq *hypothesis-list* h))
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;; Returns a list of solutions, each one satisfying all the hypothesis contained
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;; in *hypothesis-list*
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(defun motor-inferencia ()
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  (consulta *hypothesis-list*))
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;;;;;;;;;;;;;;;;;;;;;;;;
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;;;; Auxiliary functions
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;;;;;;;;;;;;;;;;;;;;;;;;
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#|____________________________________________________________________________
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FUNCTION: CONSULTA
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COMMENTS:
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CONSULTA receives a list of hypothesis (variable <hypotheses>), and returns
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a list of binding lists (each binding list being a solution).
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EXAMPLES:
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hypotheses is:
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((brothers ?x ?y) (neighbours juan ?x)).
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That is, we are searching the brothers of the possible neighbors of Juan.
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The function can return in this case:
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(((?x . sergio) (?y . javier)) ((?x . julian) (?y . mario)) ((?x . julian) (?y . pedro))).
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That is, the neighbors of Juan (Sergio and Julian) have 3 brothers in total(Javier, Mario, Pedro)
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____________________________________________________________________________|#
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(defun consulta (hypotheses)
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  (if (null hypotheses) (list +no-bindings+)
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    (mapcan #'(lambda (b)
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                (mapcar #'(lambda (x) (une-bindings-con-bindings b x))
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                  (consulta (subst-bindings b (rest hypotheses)))))
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      (find-hypothesis-value (first hypotheses)))))
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#|____________________________________________________________________________
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FUNCTION: FIND-HYPOTHESIS-VALUE
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COMMENTS:
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This function manages the query a single query (only one hypothesis) given a binding list.
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It tries (in the following order) to:
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- Answer the query from *fact-list*
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- Answer the query from the rules in *rule-list*
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- Ask the user
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The function returns a list of solutions (list of binding lists).
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EXAMPLES:
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If hypothesis is (brothers ?x ?y)
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and the function returns:
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(((?x . sergio) (?y . javier)) ((?x . julian) (?y . maria)) ((?x . alberto) (?y . pedro))).
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Means that Sergio and Javier and brothers, Julian and Mario are brothers, and Alberto and Pedro are brothers.
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____________________________________________________________________________|#
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(defun find-hypothesis-value (hypothesis)
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  (let (rules)
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   (cond
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    ((equality? hypothesis) 
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     (value-from-equality hypothesis))
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    ((value-from-facts hypothesis))
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    ((setq good-rules (find-rules hypothesis)) 
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     (value-from-rules hypothesis good-rules))
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    (t (ask-user hypothesis)))))
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; une-bindings-con-bindings takes two binding lists and returns a binding list
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; Assumes that b1 and b2 are not +fail+
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(defun une-bindings-con-bindings (b1 b2)
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  (cond
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   ((equal b1 +no-bindings+) b2)
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   ((equal b2 +no-bindings+) b1)
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   (T (append b1 b2))))
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#|____________________________________________________________________________
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FUNCTION: VALUE-FROM-FACTS
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COMMENTS:
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Returns all the solutions of <hypothesis> obtained directly from *fact-list*
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EXAMPLES:
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> (setf *fact-list* '((man luis) (man pedro)(woman mart)(man daniel)(woman laura)))
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> (value-from-facts '(man ?x))
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returns:
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(((?X . LUIS)) ((?X . PEDRO)) ((?X . DANIEL)))
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____________________________________________________________________________|#
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(defun value-from-facts (hypothesis)
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  (mapcan #'(lambda(x) (let ((aux (unify hypothesis x)))
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                         (when aux (list aux)))) *fact-list*))
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#|____________________________________________________________________________
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FUNCTION: FIND-RULES
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COMMENTS:
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Returns the rules in *rule-list* whose THENs unify with the term given in <hypothesis>
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The variables in the rules that satisfy this requirement are renamed.
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EXAMPLES:
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> (setq *rule-list*
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      '((R1 (pertenece ?E (?E . ?_)))
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        (R2 (pertenece ?E (?_ . ?Xs)) :- ((pertenece ?E ?Xs)))))
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Then:
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> (FIND-RULES (PERTENECE 1 (2 5)))
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returns:
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((R2 (PERTENECE ?E.1 (?_ . ?XS.2)) :- ((PERTENECE ?E.1 ?XS.2))))
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That is, only the THEN of rule R2 unify with <hypothesis>
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However,
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> (FIND-RULES (PERTENECE 1 (1 6 7)))
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returns:
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((R1 (PERTENECE ?E.6 (?E.6 . ?_)))
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 (R2 (PERTENECE ?E.7 (?_ . ?XS.8)) :- ((PERTENECE ?E.7 ?XS.8))))
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So the THEN of both rules unify with <hypothesis>
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____________________________________________________________________________|#
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(defun find-rules (hypothesis)
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  (mapcan #'(lambda(b) (let ((renamed-rule (rename-variables b)))
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                         (when (in-then? hypothesis renamed-rule)
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                           (list renamed-rule)))) *rule-list*))
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(defun in-then? (hypothesis rule)
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  (unless (null (rule-then rule))
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    (not (equal +fail+ (unify hypothesis (rule-then rule))))))
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#|____________________________________________________________________________
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FUNCTION: VALUE-FROM-RULES
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COMMENTS:
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Returns all the solutions to <hypothesis> found using all the rules given in
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the list <rules>. Note that a single rule can have multiple solutions.
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____________________________________________________________________________|#
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(defun value-from-rules (hypothesis rules)
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  (mapcan #'(lambda (r) (eval-rule hypothesis r)) rules))
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(defun limpia-vinculos (termino bindings)
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  (unify termino (subst-bindings bindings termino)))
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#|____________________________________________________________________________
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FUNCTION: EVAL-RULE
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COMMENTS:
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Returns all the solutions found using the rule given as input argument.
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EXAMPLES:
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> (setq *rule-list*
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      '((R1 (pertenece ?E (?E . ?_)))
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        (R2 (pertenece ?E (?_ . ?Xs)) :- ((pertenece ?E ?Xs)))))
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Then:
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> (EVAL-RULE 
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   (PERTENECE 1 (1 6 7)) 
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   (R1 (PERTENECE ?E.42 (?E.42 . ?_))))
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returns:
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(((NIL)))
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That is, the query (PERTENECE 1 (1 6 7)) can be proven from the given rule, and
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no binding in the variables in the query is necessary (in fact, the query has no variables).
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On the other hand:
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> (EVAL-RULE 
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   (PERTENECE 1 (7)) 
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   (R2 (PERTENECE ?E.49 (?_ . ?XS.50)) :- ((PERTENECE ?E.49 ?XS.50))))
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returns:
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NIL
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That is, the query can not be proven from the rule R2.
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____________________________________________________________________________|#
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(defun eval-rule (hypothesis rule)
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  (let ((bindings-then 
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          (unify (rule-then rule) hypothesis)))
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    (unless (equal +fail+ bindings-then)
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      (if (rule-ifs rule)
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          (mapcar #'(lambda(b) (limpia-vinculos hypothesis (append bindings-then b)))
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            (consulta (subst-bindings bindings-then (rule-ifs rule))))
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        (list (limpia-vinculos hypothesis bindings-then))))))
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(defun ask-user (hypothesis)
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  (let ((question hypothesis))
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    (cond
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     ((variables-in question) +fail+)
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     ((not-in-fact-list? question) +fail+)
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     (*mundo-abierto*
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      (format t "~%Es cierto el hecho ~S? (T/nil)" question)
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      (cond
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       ((read) (add-fact question) +no-bindings+)
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       (T (add-fact (list 'NOT question)) +fail+)))
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     (T +fail+))))
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; value-from-equality:
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(defun value-from-equality (hypothesis)
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  (let ((new-bindings (unify (second hypothesis) (third hypothesis))))
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    (if (not (equal +fail+ new-bindings)) 
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	(list new-bindings))))
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#|____________________________________________________________________________
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FUNCTION: UNIFY
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COMMENTS:
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Finds the most general unifier of two input expressions, taking into account the
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bindings specified in the input <bingings>
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In case the two expressions can unify, the function returns the total bindings necessary
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for that unification. Otherwise, returns +fail+
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EXAMPLES:
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> (unify '1 '1)
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((NIL)) ;; which is the constant +no-bindings+
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> (unify 1 '2)
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nil     ;; which is the constant +fail+
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> (unify '?x 1)
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((?x . 1))
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> (unify '(1 1) ?x)
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((? x 1 1))
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> (unify '?_ '?x)
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((NIL))
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> (unify '(p ?x 1 2) '(p ?y ?_ ?_))
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((?x . ?y))
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> (unify '(?a . ?_) '(1 2 3)) 
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((?a . 1)) 
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> (unify '(?_ ?_) '(1 2))
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((nil))
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> (unify '(?a . ?b) '(1 2 3)) 
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((?b 2 3) (?a . 1)) 
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> (unify '(?a . ?b) '(?v . ?d)) 
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((?b . ?d) (?a . ?v)) 
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> (unify '(?eval (+ 1 1)) '1) 
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nil
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> (unify '(?eval (+ 1 1)) '2) 
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(nil)) 
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____________________________________________________________________________|#
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(defun unify (x y &optional (bindings +no-bindings+))
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  "See if x and y match with given bindings.  If they do,
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  return a binding list that would make them equal [p 303]."
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  (cond ((eq bindings +fail+) +fail+)
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        ((eql x y) bindings)
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        ((eval? x) (unify-eval x y bindings))
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        ((eval? y) (unify-eval y x bindings))
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        ((variable? x) (unify-var x y bindings))
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        ((variable? y) (unify-var y x bindings))
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        ((and (consp x) (consp y))
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         (unify (rest x) (rest y) 
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                (unify (first x) (first y) bindings)))
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        (t +fail+)))
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;; rename-variables: renombra ?X por ?X.1, ?Y por ?Y.2 etc. salvo ?_ que no se renombra
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(defun rename-variables (x)
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  "Replace all variables in x with new ones. Excepto ?_"
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  (sublis (mapcar #'(lambda (var) 
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		      (if (anonymous-var? var)
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			  (make-binding var var)
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			(make-binding var (new-variable var))))
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		  (variables-in x))
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	  x))
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;;;; Auxiliary Functions
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(defun unify-var (var x bindings)
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  "Unify var with x, using (and maybe extending) bindings [p 303]."
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  (cond ((or (anonymous-var? var)(anonymous-var? x)) bindings)
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	((get-binding var bindings)
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	 (unify (lookup var bindings) x bindings))
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	((and (variable? x) (get-binding x bindings))
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	 (unify var (lookup x bindings) bindings))
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	((occurs-in? var x bindings)
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	 +fail+)
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	(t (extend-bindings var x bindings))))
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(defun variable? (x)
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  "Is x a variable (a symbol starting with ?)?"
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  (and (symbolp x) (eql (char (symbol-name x) 0) #\?)))
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(defun get-binding (var bindings)
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  "Find a (variable . value) pair in a binding list."
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  (assoc var bindings))
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(defun binding-var (binding)
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  "Get the variable part of a single binding."
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  (car binding))
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(defun binding-val (binding)
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  "Get the value part of a single binding."
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  (cdr binding))
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(defun make-binding (var val) (cons var val))
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(defun lookup (var bindings)
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  "Get the value part (for var) from a binding list."
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  (binding-val (get-binding var bindings)))
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(defun extend-bindings (var val bindings)
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  "Add a (var . value) pair to a binding list."
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  (append 
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   (unless (eq bindings +no-bindings+) bindings)
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   (list (make-binding var val))))
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(defun occurs-in? (var x bindings)
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  "Does var occur anywhere inside x?"
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  (cond ((eq var x) t)
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        ((and (variable? x) (get-binding x bindings))
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         (occurs-in? var (lookup x bindings) bindings))
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        ((consp x) (or (occurs-in? var (first x) bindings)
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                       (occurs-in? var (rest x) bindings)))
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        (t nil)))
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(defun subst-bindings (bindings x)
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  "Substitute the value of variables in bindings into x,
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  taking recursively bound variables into account."
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  (cond ((eq bindings +fail+) +fail+)
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        ((eq bindings +no-bindings+) x)
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        ((and (listp x) (eq '?eval (car x)))
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         (subst-bindings-quote bindings x))
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        ((and (variable? x) (get-binding x bindings))
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         (subst-bindings bindings (lookup x bindings)))
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        ((atom x) x)
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        (t (cons (subst-bindings bindings (car x)) ;; s/reuse-cons/cons
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		 (subst-bindings bindings (cdr x))))))
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(defun unifier (x y)
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 "Return something that unifies with both x and y (or fail)."
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 (subst-bindings (unify x y) x))
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(defun variables-in (exp)
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  "Return a list of all the variables in EXP."
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  (unique-find-anywhere-if #'variable? exp))
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(defun unique-find-anywhere-if (predicate tree &optional found-so-far)
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  "Return a list of leaves of tree satisfying predicate,
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  with duplicates removed."
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  (if (atom tree)
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      (if (funcall predicate tree)
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          (pushnew tree found-so-far)
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          found-so-far)
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    (unique-find-anywhere-if
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        predicate
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        (first tree)
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        (unique-find-anywhere-if predicate (rest tree)
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                                 found-so-far))))
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(defun find-anywhere-if (predicate tree)
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  "Does predicate apply to any atom in the tree?"  
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  (if (atom tree)
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      (funcall predicate tree)
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      (or (find-anywhere-if predicate (first tree))
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          (find-anywhere-if predicate (rest tree)))))
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(defun new-variable (var)
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  "Create a new variable.  Assumes user never types variables of form ?X.9"
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  (gentemp (format nil "~S." var)))
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;  (gentemp "?") )
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;;;
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(defun anonymous-var? (x)
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  (eq x '?_))
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(defun subst-bindings-quote (bindings x)
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  "Substitute the value of variables in bindings into x,
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  taking recursively bound variables into account."
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  (cond ((eq bindings +fail+) +fail+)
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        ((eq bindings +no-bindings+) x)
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        ((and (variable? x) (get-binding x bindings))
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         (if (variable? (lookup x bindings))
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             (subst-bindings-quote bindings (lookup x bindings))
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             (subst-bindings-quote bindings (list 'quote (lookup x bindings)))
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         )
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        )     
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        ((atom x) x)
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        (t (cons (subst-bindings-quote bindings (car x)) ;; s/reuse-cons/cons
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		 (subst-bindings-quote bindings (cdr x))))))
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(defun eval? (x)
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  (and (consp x) (eq (first x) '?eval)))
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(defun unify-eval (x y bindings)
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  (let ((exp (subst-bindings-quote bindings (second x))))
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    (if (variables-in exp)
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						|
	+fail+
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						|
      (unify (eval exp) y bindings))))
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(defun rule-ifs (rule) (fourth rule))
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(defun rule-then (rule) (second rule))
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(defun equality? (term)
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						|
  (and (consp term) (eql (first term) '?=)))
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(defun in-fact-list? (expresion)
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						|
  (some #'(lambda(x) (equal x expresion)) *fact-list*))
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(defun not-in-fact-list? (expresion)
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						|
  (if (eq (car expresion) 'NOT)
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						|
      (in-fact-list? (second expresion))
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						|
    (in-fact-list? (list 'NOT expresion))))
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;; add-fact:
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(defun add-fact (fact)
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						|
  (setq *fact-list* (cons fact *fact-list*)))
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(defun variable? (x)
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						|
  "Is x a variable (a symbol starting with ?) except ?eval and ?="
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						|
  (and (not (equal x '?eval)) (not (equal x '?=)) 
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						|
       (symbolp x) (eql (char (symbol-name x) 0) #\?)))
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;; EOF |