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here is what I want to do. I have a list of characters (basically a word) and I want to substitute the vowels in the word by underscore ['_'] and return a new list. eg:

?-sub([s,e,g,e,d],A).  
 A=[s,_,g,_,d]

here is what I tried but it build the new list in the revers order and finally when it exits from the predicate call it dismantle everything and declare that it found the goal without the output string! ... the algorithm I used is: pick element of a list and check whether it is a vowel or not and append the ['_'] or the element itself to the new list. and I used swi prolg

sub([],B).
sub([X|T1],Y):-
   ((vocal(X), append(['_'],Y,Z));
    (not(vocal(X)), append([X],Y,Z))),
    sub(T1,Z).

vocal(a).
vocal(e).
vocal(i).
vocal(o).
vocal(u).

thanks !!!

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I have got it and here is how it goes.... sub([],[]). sub([X|T1],A):- sub(T1,B), ((vocal(X), append(['_'],B,A)); (not(vocal(X)), append([X],B,A))). the vocal fact is as in the question!!! hope this might be useful for someone else... cheers –  mukera Sep 25 '11 at 5:59
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2 Answers

In SWI-Prolog:

sub(In, Out) :-
    maplist(vowel_to_underscore, In, Out).

vowel_to_underscore(Vowel, '_') :-
    vocal(Vowel),
    !.
vowel_to_underscore(X, X).

vocal(a).
vocal(e).
vocal(i).
vocal(o).
vocal(u).
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+1, though an if-then-else would have been cleaner than a cut. –  larsmans Sep 25 '11 at 9:11
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The first thing you should do: pay attention to the warnings. Surely the compiler warned you about the singleton in the base case of the recursion.

sub([], []).
sub([X|Xs], [Y|Ys]) :-
  (vocal(X), '_' = Y ; X = Y),
  !, sub(Xs, Ys).

Please note that in Prolog the = doesn't means assign, but unification. You should understand this and (if you really want to understand Prolog) why your solution reverses the input. Try to write reverse/2 by yoursef!

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Thanks, it was helpful, and I also came up with another solution !! –  mukera Sep 25 '11 at 6:01
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