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foo/3 is a predicate that does something with two lists and outputs another one.

foo([], Ys, Zs) :-
    append(Zs, Ys, Final),
    write(Final),
    % ?

foo([X|Xs], Ys, Zs) :-
    stuff(X, Ys, NewYs, NewZs),
    foo(Xs, NewYs, NewZs).

I want the Final to be the L in the top-level call like foo([1,2,3], [a,b,c], L). I looked at the trace, it seems I am doing something backwards;

    ...
    Exit: (9) write([c]) ? 
    Exit: (8) foo([], [], [c]) ? 
    Exit: (7) foo([c], [], []) ? 
L = [].
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If you describe more specifically what you want to do, this question may be a lot easier to answer. –  larsmans Mar 31 '11 at 17:57

1 Answer 1

You can fix this by changing foo([], Ys, Zs) to foo([], Ys, Final).

However, what are you trying to do? The reason you're getting L=[] is because Prolog has satisfied your base case (foo([], Ys, Zs)) with the empty list.

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