Sign up ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

i'm having problems with this subject in Prolog. The thing is that I want to count the number of repeated elements appearing in a list, and I also want to fill, in another list with 1, for each appearance of duplicated elements and a 0 if is not duplicated, e.g.

I have a list like this: [420,325,420,582,135,430,582], and the result should be [1,0,1,1,0,0,1].

I've tried some code snippets and it's driving me nuts.

The last code i've tried is:


    \+ member(Head,Tail),

this predicate receive a list and have to generate the result list

Thanks in advance

share|improve this question
Does the input list contain 0s? –  Seçkin Savaşçı Dec 29 '12 at 11:23
no, It does not –  Diego Jimeno Dec 29 '12 at 11:26

2 Answers 2

up vote 1 down vote accepted

You can try this :

count_duplicate(In, Out) :-
    maplist(test(In), In, Out).

test(Src, Elem, 1) :-
    select(Elem, Src, Result),
    member(Elem, Result).

test(_Src, _Elem, 0).

EDIT Without maplist, you can do

count_duplicate(In, Out) :-
    test(In, In, Out).

test(_, [], []).

test(In, [Elem | T], [R0 | R]) :-
    select(Elem, In, Rest),
    (   member(Elem, Rest) -> R0 = 1; R0 = 0),
    test(In, T, R).
share|improve this answer
Can you explain a bit your code?, I don't understand this part: maplist(test(In), In, Out), test is test/3, but your calling it with only one argument. –  Diego Jimeno Dec 29 '12 at 12:02
Yes, it works with SWI-Prolog. maplist applies each element of In and Out to test(In). For the first element you get test([420,325,420,582,135,430,582], 420, 1), because select(420, [420,325,420,582,135,430,582], Result) unifies Result with [325,420,582,135,430,582] and 420 is a member of Result, next you get test([420,325,420,582,135,430,582], 325, 0) because 325 is alone in In, ... –  joel76 Dec 29 '12 at 12:47

I would rewrite using some of list processing builtins available:

count_duplicates(L, R) :-
    maplist(check(L), L, R).

check(L, E, C) :-
    aggregate(count, member(E, L), Occurs),
    ( Occurs > 1 -> C = 1 ; C = 0 ).

with that

?- count_duplicates([420,325,420,582,135,430,582],L).
L = [1, 0, 1, 1, 0, 0, 1].

About your code, I think it's simple to get termination:

    \+ member(Head,Tail),

Note I corrected the recursive calls, and consider that could be done in a slightly more efficient way (both source and runtime) using the if .. then .. else .. construct.

    ( member(Head,Tail) -> R = 1 ; R = 0 ),

it's cleaner, isn't it? member/2 it's called just once, that's a big gain, and consider using memberchk/2 instead of member/2.

But that code fails to tag as multiple the last occurrence.

share|improve this answer

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.