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For example:

isin([1,2,3], [1,0,1,2,3,0])

will yield true because 123 is inside of 101230

I wrote the following code:

isin([AH|AT],[AH|AT]).

isin([AH|AT],[BH|BT]):- AH = BH, isin(AT,BT),isin([AH|AT],BT).

seems not working. Try not use any built-in functions and BTW, Prolog has a built-in sublist(L1,L2) function.

How do I write a query against a built-in function using SWI-Prolog? I tried to directly write

?- sublist([1],[2]).

but it gives me underfined procedure error.

Is it possible to see how a built-in function is coded? How?

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Try to ask one question at a time, please. And why should we try not to use any built-in predicates in your first question? –  svick Aug 13 '11 at 15:47
    
@svick I didn't want to waste several posts for my own question. –  user893182 Aug 13 '11 at 15:58
    
@user, please, do that. This is not a forum and each question should be just that: a question. For example, it's quite likely that different people would want to answer different parts of your current question. And maybe they won't bother if they don't know all the answers. –  svick Aug 13 '11 at 16:01
    
@svick Ok, if that's the preferred way. I'll do like you said in future post. Thanks –  user893182 Aug 13 '11 at 16:04

3 Answers 3

up vote 4 down vote accepted
sublist( [], _ ).
sublist( [X|XS], [X|XSS] ) :- sublist( XS, XSS ).
sublist( [X|XS], [_|XSS] ) :- sublist( [X|XS], XSS ).
share|improve this answer
    
I got about the same earlier! Thanks –  user893182 Aug 14 '11 at 1:09
    
With this definition sublist([1,2,3], [0,1,0,2,0,3,0]). is true. –  starblue Aug 14 '11 at 7:24
1  
If we want not sunsequences, but really sublist hpaste.org/50293 –  ДМИТРИЙ МАЛИКОВ Aug 14 '11 at 9:59

Since it seems to be homework I will only give you a few hints:

  • It seems you are missing the case where an empty list is a sublist of the other one.

  • You mixed the two cases "the sublist starts here" and "the sublist starts later" into one clause.

  • It seems the elements of the sublist should be consecutive in the larger list. For that you need two predicates. Essentially you have to remember that the sublist has started when you take apart the lists.

There is no builtin sublist/2, only a sublist/3 which does something different (filter list with a predicate).

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Thanks you for the hint, it was helpful! –  user893182 Aug 14 '11 at 1:09
    
If you want to give comments put it in the comments. Also don't answer the question if you are not going to give an answer. –  abden003 Dec 12 '14 at 4:14

If you want

my_sublist( [2,3,4], [1,2,3,4,5] ) 

...to succeed, but

my_sublist( [1,3,5], [1,2,3,4,5] ) 

...to fail, you might want to consider

my_sublist( Sublist, List ) :-
    append( [_, Sublist, _], List ).

Note that if you pass a variable through as Sublist, backtracking will give you a comprehensive set of all possible sublists of List, but this will in general include several repeats of the empty list (because the empty list can combine with all other sublists both ahead and behind of them in an append operation).

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