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I have a set of true statements and conditional statements in first order logic that I would like to use prolog to solve. However, I am having trouble elegantly expressing my facts and conditionals.

For example, suppose I want to express the following:

He drinks tea.
she does not drink tea if he does not drink tea.
either she likes soda or tea but not both
if she likes soda then he does not like tea.

The above is a silly example, and I am note interested in the logical deduction. I am interested in a direct translation into prolog so that we can start deducing. Here is my attempt:

Drink_Tea(He).
/* I can't seem to find a not operator, so I'll use !*/
!Drink_Tea(She) :- !Drink_Tea(He).
likes(Soda, She) ; likes(tea, She) , !likes(Soda, She) , !likes(Tea, She).
!likes(Tea, He) :- likes(Soda, She).

All help is greatly appreciated! Let me know if you need more information.

EDIT: In a prolog file, why is it that I cannot write "Facts" such as not(p) ; not(q) for variables p and q?

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"Not" operator is \+. So you'd have, for example, \+ likes(Soda, She). –  lurker Aug 19 '13 at 17:03
    
Just be aware that the Prolog (\+)/1 predicate means negation as failure and not logical negation (see e.g. en.wikipedia.org/wiki/Negation_as_failure). –  Paulo Moura Aug 19 '13 at 17:20
    
@PauloMoura yes, good point. –  lurker Aug 19 '13 at 17:41

1 Answer 1

The Clocksin and Mellish Prolog book describes a translator of logic propositions to clauses in conjunctive normal form that might be useful or at least give you some ideas. I have a Logtalk example partially based on that translator that you can play with:

Logtalk Example

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How can I write a conjunction and disjunction of literals? I converted all my statements to CNF. Could you give an example? How would I write ~p or q where ~ is logical not and p and q are variables? –  CodeKingPlusPlus Aug 19 '13 at 16:49
    
@CodeKingPlusPlus, \+ P ; Q –  lurker Aug 19 '13 at 17:04
    
@CodeKingPlusPlus: do you mean on the first order logic syntax or on the automatically generated code? –  Paulo Moura Aug 19 '13 at 17:17
    
Please write both, I am not quite sure what you mean. –  CodeKingPlusPlus Aug 19 '13 at 17:30
1  
@CodeKingPlusPlus, because colon (:) isn't valid syntax, unless you meant semi-colon (;). In that case, it's not a fact, it's really a rule which has a truth value depending upon the truth value of P and Q. It doesn't logically indicate a specific fact. –  lurker Aug 19 '13 at 17:40

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