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I'm trying to write predicate range\3 that takes three parameters the first is the start, the second is the end and return the generated list in the third argument.

E.g rang(1,5,L).

L = [1, 2, 3, 4, 5]

I used this code

range(E,E,[E]).

range(S,E,L):-
    S1 is S + 1,
    range(S1,E,[S|L]).

But it does not work, when i used trace command to know where is the error i recognized that the base case is useless, I also tried the green cut !in the base case but it does not work range(E,E,[E]),!.

So, if any one knows what is the problem please help me

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1 Answer 1

You're building the list in 'wrong' sense. Consider that when you'll call the base case, it will receive the consed list. How could match a single element list ? Try instead

range(S,E,[S|L]):-
    S1 is S + 1,
    range(S1,E,L).
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thanks a lot Mr @Capellic it worked but when i press ; after the correct answer i got this message "out of local stack" is this true. –  Ahmed Hamed Mar 30 '13 at 21:38
    
Now you can explore the cut. Try to solve the problem. –  CapelliC Mar 30 '13 at 22:37
    
i got it, i must add the ! cut at the last range (S,E,[S|L]):- S1 is S + 1, range(S1,E,L),!. –  Ahmed Hamed Mar 30 '13 at 22:37
1  
Well, you could accept the answer, if this helped you. –  CapelliC Mar 30 '13 at 23:24
1  
but then why don't you accept the answer (click on the check to the left) ? it's the normal way StackOverflow works, and we both gain a bit. –  CapelliC Mar 31 '13 at 10:24

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