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I am trying to write a filter(List, PredName, Result) procedure that cleans a List of all the elements in a List for which PredName(x) fails, and returns the result in the list Result. The predicate PredName/1 should be defined when calling the procedure filter.

Example: test(N):- N>=0 ?- filter([-6,7,-1,0], test, L) L = [7, 0]; no

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3 Answers 3

If you are using SWI-Prolog you could use the exclude predicate from the "apply" library

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I'm sure a builtin operation exists to do this... but essentially you are just trying to do a findall on the member of the list that pass the predicate. Try this implementation of filter out. The second arg to findall is run until all results are exhausted and all values of M are collected into Result.

filter(List,PredName,Result) :-
  findall(M, ( member(M, List), call(PredName,M)), Result).
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One way to do that is using recursion and 'call' predicate

filter([],_,[]).
filter([H|T], PredName, [H|S]) :-  call(PredName,H),filter(T,PredName,S),!.
filter([H|T], PredName, S) :- filter(T,PredName,S).

other way to that is instead of call you can use =.. (univ) operator.

filter([],_,[]).
filter2([H|T], PredName, [H|S]) :-  Goal =.. [PredName,H],Goal,filter(T,PredName,S),!.
filter([H|T], PredName, S) :- filter(T,PredName,S).

=.. operator takes a list that contains predicate name and its arguments and returns newly created term. for example:

?-X =.. [f,a,b].
X = f(a, b).
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Please note that using (=..)/2 as you did, limits PredName to an atom. That means that Goal must be a predicate of arity 1. Using call/2 you are much more flexible: You can now use any suitable predicate with arity >= 1. This is often very useful. See also @Nick Main's answer. –  false Jul 13 '11 at 23:23
    
@false Can you give an example to clarify what you said? –  Gökhan Uras Jul 14 '11 at 8:34
    
A minimal example: Consider you want to filter out all elements E such that E \== 3. With (=..)/2 you would have to define a new predicate noteqeq3(E) :- E \== 3. but with call/2 you can hand over \==(3) directly. –  false Jul 14 '11 at 10:03

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