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I got a problem with this I want to make a list of target position like if I type

?- extractIndices([5,6,7,8,9,5,6],6,List).

it should return

List = [1,6]

which gives all position of 6 in that list. I wrote code like this:

extractIndices(List , Item, [Index | Indecis]) :- 
    indexOf(List , Item, Index).

indexOf([Item | _], Item, 0).
indexOf([_ |Tail], Item, Index):-
    indexOf(Tail, Item, Index1),
    Index is Index1+1.

and this gives me

?- extractIndices([5,6,7,8,9,5,6],6,L).
L = [1|_G2870] ;
L = [6|_G2870] ;

It will be so thankful if someone can help me fix this... Thank you.

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2 Answers 2

up vote 1 down vote accepted

You have provided two rules for indexOf, one which handles the head of the list, ignoring the tail, and one which handles the tail, ignoring the head. This results in two different solutions to your query as shown.

The predicate nth0 can be used to map positions to items in a list.

The easiest way to use it is going to be with findall:

extractIndices(List , Item, Indices) :-
     findall(N, nth0(N, List, Item), Indices).

You can also make your own solution using something like indexOf. But you probably want to provide two different rules: one for the base case (usually an empty list), and one recursive case which solves it for the head, and then calls indexOf again on the tail.

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Thank you for providing me findall function in prolog, it works really well & fast ,thank you . I did it as a practice for clearing my mind , is there any way just recursively do the list manipulation to find out result without using any in-buit functions? –  Yank Dec 5 '12 at 21:01
Just pop up for anyone need this : findall(Object,Goal,List). produces a list List of all the objects Object that satisfy the goal Goal. Often Object is simply a variable, in which case the query can be read as: Give me a list containing all the instantiations of Object which satisfy Goal. –  Yank Dec 5 '12 at 21:07

I would use the same code as Edmund (i.e. findall + nth0), but for learning purpose a correction to your code it's worth to show:

extractIndices(List , Item, Indices) :- 
    indexOf(List, Item, 0, Indices).

indexOf([X|Items], Item, I, Is) :-
    ( X == Item -> Is = [I|Rs] ; Is = Rs ),
    J is I + 1,
    indexOf(Items, Item, J, Rs).
indexOf([], _, _, []).


?- extractIndices([5,6,7,8,9,5,6],6,L).
L = [1, 6].
share|improve this answer
Thank you, this method is as good as Edmund, but helps me understanding prolog.:) –  Yank Dec 5 '12 at 21:10

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