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I wrote such predicat to find sublist

sublist([],[]).
sublist([X|T], [X|TS]) :- 
    sublist(T, TS).
sublist([_|T], X) :- 
    sublist(T, X).

But its not corect because it will fail for this

sublist([1,2,20,4,5,6],[1,2,4,20]).

How to change this predicate to answer true. for that question without making time complexity much bigger?

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well you even mean subset I guess since you don't preserve order –  m09 Mar 27 '12 at 9:31
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1 Answer 1

up vote 0 down vote accepted

You could sort the list/lists before running your algorithm:

sublist2(L, X) :- sort(L, LSorted),
                  sort(X, XSorted),
                  sublist(LSorted, XSorted).

Here's a sorting algorithm adapted from this page:

quick_sort2(List,Sorted):-q_sort(List,[],Sorted).
q_sort([],Acc,Acc).
q_sort([H|T],Acc,Sorted):-
    pivoting(H,T,L1,L2),
    q_sort(L1,Acc,Sorted1),q_sort(L2,[H|Sorted1],Sorted).

pivoting(H,[],[],[]).
pivoting(H,[X|T],[X|L],G):-X>H,pivoting(H,T,L,G).
pivoting(H,[X|T],L,[X|G]):-X=<H,pivoting(H,T,L,G).

You could also simply express it like this:

subset(_, []).
subset(S, [X|Ts]) :-
    member(X, S),
    subset(S, Ts).

(but that's a quadratic algorithm of course.)

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Your code would also return true for ?- subset([1,2],[1,1])., which would probably be incorrect. –  twinterer Mar 27 '12 at 9:44
    
yup, you'd have to go with select/3 instead of member/2. –  m09 Mar 27 '12 at 9:47
    
bulitin sort works faster i think –  whd Mar 27 '12 at 9:54
    
@whd, right. I wasn't sure you used a prolog implementation that supported a build in sort predicate. –  aioobe Mar 27 '12 at 10:14
    
@aioobe: consider editing your post to remove/modify your subset predicate, it's not a subset predicate atm. –  m09 Mar 27 '12 at 10:46
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