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I wanto to translate expressions like X = a(b(c(d))) in [a, b, c, d].

I guess i have to iterate/recurse the operator =.., but i don't know how. I tried

flatten([], []).
flatten(Exp, X) :- Exp=..[H,T], flatten(T, Y), X is append([H], Y). 

but it does not seem to work.

Can someone help me?

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1 Answer 1

up vote 3 down vote accepted

flatten/2 is a built in usually, while is/2 introduces arithmetic evaluation. Thus your Prolog should warn you about these problems in your code.

If you are limiting the expression to unary terms, the code should be simplified (note I renamed the procedure):

flatterm(Exp, [H|R]) :-
    Exp =.. [H, T],
    !, flatterm(T, R).
flatterm(T, [T]).

test:

?- flatterm(a(b(c(d))),X).
X = [a, b, c, d].

You should try to understand why I swapped the base/recursive case, and the role of the ! (also known as cut).

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Just a question: which is the name of the =.. operator? –  Aslan986 Sep 22 '12 at 9:01
    
it has a strange name: univ. I think was meant for something like 'universal accessor'... –  CapelliC Sep 22 '12 at 9:13
    
@Aslan986 btw usual notation of predicates in Prolog include arity, and operators are surrounded by ( and ): (=..)/2 –  m09 Sep 22 '12 at 9:56

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