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In prolog I have this problem about this rule, which gets proven, if the list contains an element that is A/B.

match(A,B,[H|T]) :- (H=A/B -> !; match(A,B,T)). 

This works when I give the instantiated variables for A and B and the list. But if I give the list as a variable, then I get a list that include uninstantiated variables like _GXXXX which I don't want to get. Does anyone know how to fix this?

Thanks.

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Again, it is not exactly clear what you want to achieve. Either define the results you need explicitly or give examples. –  Boris Apr 5 '13 at 15:56
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1 Answer

  • You can test for a variable to see if it's bound to something or not (using predicates var/1 and nonvar/1)

So if for example you want the third argument to fail if it's not instantiated you'd do:

match(A,B,L) :- 
  nonvar(L), 
  L=[H|T], 
  (H=A/B -> !; match(A,B,T)). 

If you are only caring about H in your example, then you'd do:

match(A,B,[H|T]) :- nonvar(H), (H=A/B -> !; match(A,B,T)). 
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in both of your cases, nonvar() fails because H or L are both not instantiated. –  omega Apr 5 '13 at 15:48
    
@omega: right. nonvar only succeeds if it's argument is not instantiated. Isn't that what you were looking for ? –  gusbro Apr 5 '13 at 15:53
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