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How to count how many times of a WORD occurs in a List?

For example: counthowmany(hello,[hello,how,are,you,hello,hello],N).

N gives the total number of word 'hello' occurs

Thanks

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This smells of homework. –  CAbbott Dec 11 '09 at 19:16
    
this smells of a reasonable question that as any other deserves an answer. –  Marcelo Dec 11 '09 at 19:18
    
UGH*, prolog... i remember doing the wolf, goat, cabbage problem in this as an assignment... OH the memories of pain! –  Zoidberg Dec 11 '09 at 19:22
    
I think there is no for loop in prolog, it has to be recursion –  ohyeah Dec 11 '09 at 19:22
    
Which language are you using? –  Mark Cooper Dec 12 '09 at 7:18

2 Answers 2

Here is a solution:

counthowmany(_, [], 0) :- !.
counthowmany(X, [X|Q], N) :- !, counthowmany(X, Q, N1), N is N1+1.
counthowmany(X, [_|Q], N) :- counthowmany(X, Q, N).

The first line is the termination test: on an empty list, the count is zero. The two other lines are the recursive calls, and if the first element matches (line 2), the count is incremented.

Here is a similar but purely logical version (no cut), as suggested by Darius:

counthowmany(_, [], 0).
counthowmany(X, [X|Q], N) :- counthowmany(X, Q, N1), N is N1+1.
counthowmany(X, [Y|Q], N) :- X \== Y, counthowmany(X, Q, N).
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1  
I would've written it without any cuts, using a not-equals test in the last clause instead, since purely-logical definitions are less error-prone to use. –  Darius Bacon Dec 12 '09 at 7:47

Here is an alternate implementation. This is Tail recursive using accumulators.

countwords(X,L,N) :- countwords(X,L,0,N),!.
countwords(X,[],N,N).
countwords(X,[X|T],P,N) :- P1 is P+1 , countwords(X,T,P1,N).
countwords(X,[H|T],P,N) :- X\==H , countwords(X,T,P,N).
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