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My ultimate goal is to load a set of propositional formulas in to prolog from a file in order to deduce some facts. Suppose I have the propositional formula:

p implies not(q).

In Prolog this would be:

not(q) :- p

Prolog does not seem to like the not operator in the head of the rule. I get the following error:

 '$record_clause'/2: No permission to redefine built-in predicate `not/1'
        Use :- redefine_system_predicate(+Head) if redefinition is intended

I know two ways to rewrite the general formula for p implies q. First, use the fact that the contrapositive is logically equivalent.

'p implies q' iff 'not(q) implies not(p)`

Second, use the fact that p implies q is logically equivalent to not(p) or q (the truth tables are the same).

The first method leads me to my current problem. The second method is then just a conjunction or disjunction. You cannot write only conjunctions and disjunctions in Prolog as they are not facts or rules.

  1. What is the best way around my problem so that I can express p implies not(q)?
  2. Is it possible to write all propositional formulas in Prolog?

EDIT: Now I wish to connect my results with other propositional formulae. Suppose I have the following rule:

something :- formula(P, Q).

How does this connect? If I enter formula(false, true) (which evaluates to true) into the interpreter, this does not automatically make something true. Which is what I want.

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All you have to do is choose a different name. not/1 is a built-in in your Prolog implementation. –  Daniel Lyons Aug 19 '13 at 19:42

2 Answers 2

up vote 2 down vote accepted
p => ~q  ===  ~p \/ ~q  === ~( p /\ q )

So we can try to model this with a Prolog program,

formula(P,Q) :- P, Q, !, fail.
formula(_,_).

Or you can use the built-in \+ i.e. "not", to define it as formula(P,Q) :- \+( (P, Q) ).

This just checks the compliance of the passed values to the formula. If we combine this with domain generation first, we can "deduce" i.e. generate the compliant values:

13 ?- member(Q,[true, false]), formula(true, Q).  %// true => ~Q, what is Q?
Q = false.

14 ?- member(Q,[true, false]), formula(false, Q). %// false => ~Q, what is Q?
Q = true ;
Q = false.
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I have little to no experience with prolog. What is the point of using member? I just wrote out the formula and passed true and false. –  CodeKingPlusPlus Aug 20 '13 at 15:56
    
Additionally, how would I connect the logic to my other logical deductions? Suppose something else is true if formula is true. We would have the rule: something :- formula(P, Q). I'll make this more clear in an edit. –  CodeKingPlusPlus Aug 20 '13 at 16:00
    
@CodeKingPlusPlus the point of member is to generate the possible values for a variable. The logical variables are what becomes true or false. true or false are not Boolean values in Prolog; the are special goals; true always succeeds and false (and its synonym, fail) always fail. You should study some tutorial to acquaint yourself with Prolog. :) –  Will Ness Aug 20 '13 at 17:55

You are using the wrong tool. Try Answer Set Programming.

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