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I'm new to s.o and new to Prolog which is what i am working on, specifically SWI-Prolog. I am trying to do as the title says, and have gotten it to work on a 1 based list (starting at 1 instead of zero) using some methods that were included in the SWI-library. and this is my code:

indexof(I,E,L):-
   nth1(I,L,E).
   indexof(-1,_,_).

My assignment (yes it's hw -_-) is to do this but as a 0 based count i tried on the last line to add I is I - 1 but i kept getting errors. Is there any other way to get it into a 0 based count?

so for this indexof(A,a,[w,x,y,z,a]). i should get 4 but am getting 5.

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1 Answer 1

up vote 2 down vote accepted

SWI-Prolog has nth0/3 which is just like nth1/3 but the index starts at 0.

To make your original approach work, you need something like:

indexof(I,E,L) :-
    nth1(I1,L,E),
    I is I1 - 1.

Prolog variables can only be assigned once. If you tried I is I - 1, you're claiming that I is itself minus 1. That's never true, so the predicate fails. You need to use an intermediate variable, like I1 in the example above.

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Hey thanks! Having that intermediate variable there makes more sense. I used that technique in 2 of my other methods just didnt think of it here :p So yeah, that is what i was looking for, except the way i have it instead of when the case is false i had it so it returned -1, which although i like your way ALOT better, -1 how im supposed to do it. is there a way i can just swap out the false for a -1? ((again sorry i may sound dumb but i only started learning prolog at the end of last week)) –  erp Oct 25 '12 at 19:26
    
(nth1(I1,L,E) -> I is I1 - 1; I = -1) will return -1 if the element is not found. The -> ; combination is kind of like an if-then-else in other languages. –  mndrix Oct 26 '12 at 14:24

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