Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

I want to define a predicat p(X), where X is list of lists. p(X) is true, if in X there is only one element Y, that X and Y have no common elements.

This is not homework. This is a example problem for my exam. Thank you.

share|improve this question
Could you explain a bit more with examples? I try hard to get it. – Seçkin Savaşçı Aug 27 '12 at 11:58
I have problems with undestanding too. Maybe if X is a list of lists, then Y should be list, right? X = [ [1 2 3] [1 2 3 4] [2 3 5 6] [8 7] ], then Y is [ 8 7 ]. Y is the only one element in X and they has no common elems (exept 8 and 7, but they are only in Y)?! [1 2 3] has common elements - 1 2 3. [1 2 3 4] has common elements - 1 2 3, too. [ 2 3 5 ] has 2 and 3 as a common elements. I'm not sure if my logic is correct. – bpavlov Aug 27 '12 at 13:52
Let me rephrase it: p(x) must be true; if X is a list of lists AND all sublists of X except one must contain a common element. – Seçkin Savaşçı Aug 27 '12 at 14:28
As far as I understand the question, you're right. I just rewrite the requirement as it's writen on exam from 2009. – bpavlov Aug 27 '12 at 14:49

1 Answer 1

up vote 1 down vote accepted

Write it down:

p(X):-    %//  "define a predicate p(X), where X is list of lists, such that 
          %//   p(X) is true if in X there is only one element Y, 

  % findall( Y, (member(Y,X), ........ ), [_])

          %//   such that X and Y have no common elements".

    findall( Y, (member(Y,X), \+ have_common_element(X,Y) ), [_]).

have_common_element(A,B):- member(X,A), memberchk(X,B).


8 ?- p([[1,[2]],[2],[3]]). %// both [2] and [3] have no common elts w/ X

9 ?- p([[1,[2]],[2]]).     %// [1,[2]] has one common elt w/ X, viz. [2]

Prolog lists are heterogeneous. An element might be a list as well. And its element too.

share|improve this answer
Hello, thank you for your reply. What is the difference between member and memberchk? ; ) – bpavlov Apr 19 '13 at 11:53
@bpavlov docs says, "Same as once(member(Elem, List))". I.e. it doesn't backtrack (fails on backtracking). I..e it is usually used to check whether a given element is a member of a list; calling member backtracks, i.e. generates more possibilities if they are there. In particular, calling memberchk with uninstantiated logvar as its first argument will just instantiate it to the first elem in list, once; but with member it will instantiate it to first, and then to all the rest, on backtracking. When we want just to check membership, we should use memberchk. – Will Ness Apr 22 '13 at 6:59

Your Answer


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.