Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am starting on learning Prolog. This program tries to get all occurrences of a given element:

occurences(_, [], Res):- Res is [].
occurences(X, [X|T], Res):- 
    occurences(X,T,TMP),
    Res is [X,TMP].
occurences(X, [_|T], Res):- occurences(X,T,Res).

But here is the error:

?- occurences(a,[a,b,c,a],Res).
ERROR: is/2: Arithmetic: `[]/0' is not a function
^  Exception: (11) _G525 is [] ? creep
   Exception: (10) occurences(a, [], _G524) ? creep
   Exception: (9) occurences(a, [a], _G524) ? creep
   Exception: (8) occurences(a, [c, a], _G524) ? creep
   Exception: (7) occurences(a, [b, c, a], _G524) ? creep
   Exception: (6) occurences(a, [a, b, c, a], _G400) ? creep
share|improve this question
add comment

3 Answers

up vote 2 down vote accepted

In addition to what others wrote, consider using the dif/2 constraint:

occurrences(_, [], []).
occurrences(X, [X|Ls], [X|Rest]) :-
        occurrences(X, Ls, Rest).
occurrences(X, [L|Ls], Rest) :-
        dif(X, L),
        occurrences(X, Ls, Rest).

You can now use the predicate in all directions, for example:

?- occurrences(X, [a,a,b], Os).
X = a,
Os = [a, a] ;
X = b,
Os = [b] ;
Os = [],
dif(X, b),
dif(X, a),
dif(X, a) ;
false.

The last solution means that the list of occurrences is empty if X is different from both a and b.

share|improve this answer
    
+1: What is the best way to make this as determinate as possible while still retaining its declarative properties? –  false Dec 1 '12 at 20:40
    
Please refer to my question about this –  false Dec 1 '12 at 23:39
add comment

you're already been advised by Rubens about your mistake. I'll just add a style note: often in Prolog it's preferred to directly code the pattern in head arguments:

occurences(_, [], []).
occurences(X, [X|T], [X|TMP]) :- 
    occurences(X,T,TMP), !.
occurences(X, [_|T], Res) :-
    occurences(X,T,Res).

I corrected the second clause 'output' from [X,TMP] to [X|TMP], and note the cut: without it the procedure yields more results than required:

?- occurences(a,[a,b,c,a],Res).
Res = [a, a] ;
Res = [a] ;
Res = [a] ;
Res = [] ;
false.

with the cut:

?- occurences(a,[a,b,c,a],Res).
Res = [a, a].

edit @false spoiled a nasty bug: here a correction, using the if/then/else construct

occurences(_, [], []).
occurences(X, [Y|T], Os) :-
    (   X = Y
    ->  Os = [X|R]
    ;   Os = R
    ),
    occurences(X,T,R).
share|improve this answer
    
Your program succeeds incorrectly for occurences(a,[a,b,c,a],[a]). So your program is not steadfast for the 3rd argument. It is a good example how not to set the cut. –  false Dec 1 '12 at 21:05
add comment

Consider:

occurrences(_, [], []) :- !.
occurrences(X, [Y|L], R) :-
    X \== Y, !,
    occurrences(X, L, R).
occurrences(X, [Y|L], [Y|R]) :-
    occurrences(X, L, R).

Testing:

?- occurrences(a,[a,b,a,c],O).
O = [a, a].

?- occurrences(a,[a,X,a,c],O).
O = [a, a].

?- occurrences(a,[a,X,a,c],[a]).
false.

?- occurrences(a,[a,X,a,c],[a,a]).
true.
share|improve this answer
    
Your definition lacks a mode declaration or whatever to state when it works and when it does not. E.g. for occurences(E,Xs,Ys) your definition is incomplete. –  false Dec 12 '12 at 11:17
    
Wow, I wasn't aware OP required one! –  sharky Dec 12 '12 at 22:21
    
How else does one know when your definition is reliable and when not? –  false Dec 12 '12 at 22:23
add comment

Your Answer

 
discard

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.