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i m new in prolog that s why may be the question is easy for you but i couldnt find the answer. Can someone please help me.

I just want

a count function s.t

count([c,c,a,a,b,b,d,a,c,b,d,d,a], O).

it will returns the number of occurences of the list members.

 O = [[a, 4], [b, 3], [c, 3], [d, 3]]
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1  
What have you tried? Is this homework? –  Mark Byers May 27 '12 at 19:53
    
Did you try something and it did not work? –  dasblinkenlight May 27 '12 at 19:53

2 Answers 2

co(X,L) :- co(X,[],L).

co([],A,A).
co([X|Xs], A, L) :- p(X-Z,A,R), !, Z1 is Z+1, co(Xs, [X-Z1|R], L). 
co([X|Xs], A, L) :- co(Xs, [X-1|A], L). 

p(X-Y,[X-Y|R],R):- !.
p(X,[H|Y], [H|Z]) :- p(X,Y,Z).

I did not use very meaningful names on purpose. Try to understand what each one of the predicates does.

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The following is based on my previous answer to "Remove duplicates in list (Prolog)"; the basic idea is, in turn, based on @false's answer to "Prolog union for A U B U C".

list_item_subtracted_count0_count/5 is derived from list_item_subtracted/3. list_counts/2 is derived from list_setB/2, both defined here.

list_item_subtracted_count0_count([],_,[],N,N).
list_item_subtracted_count0_count([A|As],E,Bs1,N0,N) :-
    if_(A = E, (Bs1 = Bs, N1 is N0+1), (Bs1 = [A|Bs], N1 = N0)),
    list_item_subtracted_count0_count(As,E,Bs,N1,N).

list_counts([],[]).
list_counts([X|Xs],[X-N|Ys]) :-
    list_item_subtracted_count0_count(Xs,X,Xs0,1,N),
    list_counts(Xs0,Ys).

Here's the query the OP gave:

?- Xs = [c,c,a,a,b,b,d,a,c,b,d,d,a], list_counts(Xs,Counts).
Counts = [c-3,a-4,b-3,d-3].                          % succeeds deterministically

Note the order of pairs X-N in Counts corresponds to the first occurrence of X in Xs:

?- Xs = [a,b,c,d], list_counts(Xs,Counts).
Xs     = [a,   b,   c,   d],
Counts = [a-1, b-1, c-1, d-1].

?- Xs = [d,c,b,a], list_counts(Xs,Counts).
Xs     = [d,   c,   b,   a],
Counts = [d-1, c-1, b-1, a-1].

Last, let's consider all possible lists Xs (in ascending length):

?- length(Xs,N), list_counts(Xs,Counts).
N = 0, Xs = Counts,  Counts = []                                          ;
N = 1, Xs = [A],     Counts = [A-1]                                       ;
N = 2, Xs = [A,A],   Counts = [A-2]                                       ;
N = 2, Xs = [A,B],   Counts = [A-1,B-1],     dif(B,A)                     ;
N = 3, Xs = [A,A,A], Counts = [A-3]                                       ;
N = 3, Xs = [A,A,B], Counts = [A-2,B-1],     dif(B,A)                     ;
N = 3, Xs = [A,B,A], Counts = [A-2,B-1],     dif(B,A)                     ;
N = 3, Xs = [B,A,A], Counts = [B-1,A-2],     dif(A,B), dif(A,B)           ;
N = 3, Xs = [A,B,C], Counts = [A-1,B-1,C-1], dif(C,A), dif(C,B), dif(B,A) ...
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