Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am trying to implement a list difference routine in prolog. For some reason the following fails:

difference(Xs,Ys,D) :- difference(Xs,Ys,[],D).
difference([],_,A,D) :- D is A, !.
difference([X|Xs],Ys,A,D) :-
  not(member(X,Ys)),
  A1 is [X|A],
  difference(Xs,Ys,A1,D).

When trying:

?- difference([1,2],[],D).

I get this error:

ERROR: '.'/2: Type error: `[]' expected, found `1' ("x" must hold one character)
^  Exception: (10) _L161 is [2|1] ?
share|improve this question
add comment

4 Answers 4

up vote 8 down vote accepted

Your usage A1 is [X|A] is incorrect. Predicate is is used only for arithmetics. Btw, SWI-Prolog has built-in subtract predicate:

1 ?- subtract([1,2,3,a,b],[2,a],R).
R = [1, 3, b].

2 ?- listing(subtract).
subtract([], _, []) :- !.
subtract([A|C], B, D) :-
        memberchk(A, B), !,
        subtract(C, B, D).
subtract([A|B], C, [A|D]) :-
        subtract(B, C, D).

true.

Is this what you need?

share|improve this answer
add comment
minus([H|T1],L2,[H|L3]):-
    not(member(H,L2)),
    minus(T1,L2,L3).
minus([H|T1],L2,L3):-
    member(H,L2),
    minus(T1,L2,L3).
minus([],_,[]). 

minus([1,2,3,4,3].[1,3],L).

output: L=[1,2,4]
share|improve this answer
add comment
always (subtructLists(List, [Head|Rest], Result): -
       ( 
          delete_element(Head, List, Subtructed)
        , !
        , subtructLists(Subtructed, Rest, Result)
       ) ; (
          subtructLists(List, Rest, Result)
       )
).

always (subtructLists(List, [], List)).

always( delete_element(X, [X|Tail], Tail)).

always( delete_element(X, [Y|Tail1], [Y|Tail2]): -
        delete_element(X, Tail1, Tail2)
).
share|improve this answer
add comment

Using find all the solution becomes obvious:

difference(Xs,Ys,D) :- 
  findall(X,(member(X,Xs),not(member(X,Ys))),D).
share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.