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Any ideas how to retrieve the maximally repeated element in a list.

i.e. something like below,

?- maxRepeated([1,2,7,3,6,1,2,2,3],M).
M = 2.
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4 Answers 4

up vote 1 down vote accepted

This solution sorts the list, granting elements to appear sequentially -- there's no need to maintain all elements, once they're not repeating later.

Your prolog interpreter must have the function msort(), which sorts a list maintaining duplicated entries.

maxRepeated([], []).
maxRepeated(L, E) :-
    msort(L, [H|T]),
    maxRepeated(T, H, H, 1, 0, E).

maxRepeated([], H, _, C1, C2, H) :- C1 >= C2.
maxRepeated([], _, X, C1, C2, X) :- C1 < C2.

maxRepeated([H|T], H, LastF, C1, C2, E) :-
    maxRepeated(T, H, LastF, C1 + 1, C2, E).

maxRepeated([X|T], H, LastF, C1, C2, E) :-
    (
        C1 > C2
        ->  maxRepeated(T, X, H, 1, C1, E)
        ;   maxRepeated(T, X, LastF, 1, C2, E)
    ).

The complexity is given by the sort used, usually O(n log n), once, after the sort, the list is traversed only once, aggregating the elements and keeping track of the most frequent one.

Regards!

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Thank you for the answer. I will accept this one as the answer since it is more general and elaborate than my solution. –  Zoran Dec 2 '12 at 21:57
    
Thank you, that's a pleasure to forget about some stuff while poking around with prolog programming. Your answer is very nice too, and it's even better if it's been made by yourself (: Regards! –  Rubens Dec 2 '12 at 22:02

I like so much the relational Prolog power:

maxRepeated(L, M) :-
    sort(L, S),
    maplist(count(L), S, C),
    keysort(C, [_-M|_Ms]).
count(L, S, I-S) :-
    aggregate(count, member(S, L), C), I is -C.

test:

?- maxRepeated([1,2,7,3,6,1,2,2,3],M).
M = 2.

edit and now, still more compact!

maxRepeated(L, M) :-
    setof(I-E, C^(aggregate(count, member(E, L), C), I is -C), [_-M|_]).
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good solution, thanks. –  Zoran Dec 2 '12 at 22:08
    
nice answer! very neat one! –  Rubens Dec 2 '12 at 22:16

If you know the max value that Ai can take and if this Amax is such that you can create an array as large as Amax then there is a method by which you can find the most repeated element in O(n) time.

int A[max+1]; // set all elements to 0
int S[n]; // Set S
for (i=0;i<n;i++) A[ S[i] ]++;

int m=0, num; // num is the number to be found
for (i=1;i<=max;i++)
  if (A[i] > m)
  {
    m = A[i];
    num = i;
  }
print (num)
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which version of prolog is this? –  Rubens Dec 2 '12 at 21:11
    
This isn't prolog. I've posted pseudo code just to tell you the algorithm. You can then use it in prolog in any way you want. :-) –  Rushil Dec 2 '12 at 21:13
    
version: swi-prolog XPCE 6.6.66 –  Zoran Dec 2 '12 at 21:16
    
That's not what he meant @Zoran :p Don't count on getting copy-paste code :) –  keyser Dec 2 '12 at 21:36
    
A professor once told, I' d teach you prolog more easily, if you didnt already know procedural programming. –  Zoran Dec 2 '12 at 21:44

Here is a quick and dirty answer. I constrained the problem to a set of allowed elements. Works but needs elaboration.

maxRepeated([],_,Current,_,Current).
maxRepeated([H|T],L,Current,MaxCount,X) :-
    (
         count(L,H,N),
         N > MaxCount,
     maxRepeated(T,L,H,N,X) 
    )
    ;
    maxRepeated(T,L,Current,MaxCount,X).

count([],X,0).
count([X|T],X,Y):- count(T,X,Z), Y is 1+Z.
count([X1|T],X,Z):- X1\=X,count(T,X,Z). 
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