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Suppose, I have a fact with list:

members([a,b,c,d]).

How to write rule:

ismember(X) %returns 'Yes' only if X is a or b or c or d.

Needed a solution with pure Prolog, without any libraries.

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1  
This is simply an exercise in writing your own member/2 function (member(X, L) is true if X is a member of L). It's only a couple of lines and you can find examples in a variety of places on the 'net. –  lurker Oct 25 '13 at 17:07
    
Also, make sure to figure out if you actually need a predicate with the semantics of member/2 or with the semantics of memberchk/2. –  Boris Oct 25 '13 at 17:45
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As you know, the aim of StackOverflow is to help people with programming problems. A course assignment is not a "problem" by itself. What did you try which failed? –  Aurélien Oct 25 '13 at 17:59
    
Thank you, mrbatch and Aurelien, looks like I did incorrect explanation about what I need. I don't need "member of list" as itself. I stucked exactly in 'how to access list, which declared in facts'? –  Ivan Zelenskyy Oct 25 '13 at 19:58

2 Answers 2

up vote 1 down vote accepted

Firstly we need predicate member(X, List). Or member1:

member1(X, [X|_]).
member1(X, [_|T]) :- member1(X, T).

So, rule ismember will looks like:

ismember(X):-
  members(List),
  member(X, List). %or member1 if we need to define membership rule
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2  
You probably mean member1 called in your ismember/1 predicate rather than just member since the latter is an ISO prolog library call, which I think you said you're trying to avoid. As I mentioned in my other comment, this question/problem is all about just writing your own version of the standard member/2 predicate. –  lurker Oct 25 '13 at 19:53

Do you need a predicate ismember/1 that succeeds if the argument is contained in the list in members/1? i.e., if your fact was members([1,2,3]), would ismember(X) still succeed if X was a, b, c or d? If you need a unary predicate, then maybe you don't actually want to look into the members/1 fact; if you need a binary predicate, then you need your own member/2 predicate, as mrbatch said above...

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Welcome to StackOverflow, Spyros. This should probably be a comment, not an answer, since it's not providing a final answer for the user but rather asking questions for clarification and making conditional suggestions. –  lurker Oct 25 '13 at 19:52
    
Thank you, I just solved problem by myself. –  Ivan Zelenskyy Oct 25 '13 at 19:54
    
Thanks @mrbatch - indeed it should have been a comment! –  Spyros Oct 25 '13 at 20:39

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