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this is similar to my last question, but I now want to filter a list using letters.

test_filter0 :- filter_list([a,b,c,a,b,c],a,[a,a]).
test_filter1 :- filter_list([abc,abc,abc,bc,bc,bc,cd],bc,[bc,bc,bc]).
test_filter2 :- filter_list([a,b,c,d,e,f,g],h,[]).
test_filter3 :- filter_list([a,b,b,b,c,b,b],b,[b,b,b,b,b]).
test_filter :- test_filter0, test_filter1, test_filter2, test_filter3.

I tried:

filter_list([],C,[]) :- true, !.
filter_list([A|L1],C,[A|L2]) :- A==C, filter_list(L1,C,L2).
filter_list([A|L1],C,L2) :- C==A, filter_list(L1,C,L2).
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1 Answer 1

up vote 0 down vote accepted

Very close, you just needed an inequality in your last clause of filter_list/3, like this:

filter_list([], C, []).
filter_list([A|L1], C, [A|L2]) :- 
    A == C, % equal to
    filter_list(L1, C, L2).
filter_list([A|L1], C, L2) :- 
    C \== A, % not equal to
    filter_list(L1, C, L2).

To make this more efficient, you could add a cut (!) after A == C to commit to that branch, since Prolog will leave a choicepoint for executing the last clause whenever the second is invoked, because the last has a binding pattern (i.e., [A|L1], C, L2) that subsumes the former ([A|L1], C, [A|L2]). Note that the first clause doesn't actually need a cut because the binding pattern of [], C, [] is not subsumed by that of any other subsequent clause of the predicate.

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