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I'm trying to make my own implementation of the fibonacci sequence. This is what I have:

fibo2(N, F) :-
    fibo2(0, 1, 0, N, F).

fibo2(N-F, F, N-1, N, F).

fibo2(P, S, C, N, F) :-
    C < N,
    T is S,
    S1 is P + S,
    C1 is C + 1,
    fibo2(T, S1, C1, N, F).

I know there are other implementations but I dont know why this isnt working. When I do a trace with fibo2(3, 2) I think this call should throw true:

fibo2(1, 2, 2, 3, 2) ? creep

But it returns false... Some help would be appreciated

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you should include short comments with your code, explaining what each variable is supposed to be, and what is the purpose of each predicate. At least "fibo2(N, F):- % F is N-th Fibonacci number, indexed base 1" should have been there. –  Will Ness Apr 29 '13 at 15:34

1 Answer 1

First, the T is S line serves no purpose. When you do not need to perform arithmetic, prefer the use of standard unification with (=)/2. Here, you could directly call fibo2(S, S1, C1, N, F).

Then, your recursion has no base case. The first clause of fibo2/5 will never be true here.

You certainly meant:

fibo2(P, S, C, N, F) :-
    P is N - F,
    S is F,
    C is N - 1.

Here arithmetic will be performed (when doing unification in the head, arithmetic is not performed, manipulation are entirely symbolic).

I'm not sure what your N and F stand for so I won't comment your code further, but that should fix some problems already.

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greetings! :) fibo2(N, F) :- fibo2(0, 1, 0, N, F). so N,F can be vars, so they must go to the left of is; so the re-write of the 1st clause should be: fibo2(P, S, C, N, F) :- F=S, N is P+F, C is N-1. :) { P = "previous"; S is a mystery; C is probably "count", and F - the N-th Fibonacci number }, is my guess. :) –  Will Ness Apr 29 '13 at 15:38

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