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When you call member(Item, List) with an uninstanciated list, Prolog unifies and returns a list containing item. I want a rule that returns true/false and does not try to unify. Is there such a rule?

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up vote 1 down vote accepted

I would use a guard, like

is_member(E, L) :- nonvar(L), memberchk(E, L).

memberchk/2 it's a deterministic version of member/2, to be used to find if the list contains at least 1 occurrence of element. Cannot act as a generator, but it's more efficient. The guard is required anyway.

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According to OP, is_member(E, L) should be true, but your definition fails. – false Jan 5 '14 at 17:33
    
@false: well, you must read something very different than me in OP question. – CapelliC Jan 5 '14 at 17:55
    
I read the OP's questions as wanting a predicate that would return false if given an instantiated E and uninstantiated L, it would fail rather than return a list in L that contained E. However, it appears they accepted this answer, so perhaps they didn't specify their question precisely. – lurker Jan 5 '14 at 20:46

Quick answer: Use \+ \+ member(Item, List).

Please note that such tests often do not make a lot of sense when your programs represent logical relations.

You stated that member(Item, List) "returns a list". Well, that is not entirely true. List is unified with partial lists, that is List = [Item|_Rest] ; List = [_,Item|_Rest] ; ... with _Rest being an uninstantiated variable. That is, the goal member(Item, List) does not guarantee that (upon success) List is a list. Here is a counterexample: member(Item, List), List = [_|nonlist]

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Thanks! What do the \+'s mean? – saadtaame Jan 5 '14 at 18:21
    
@saadtaame: (\+)/1 - not provable – false Jan 5 '14 at 18:24

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