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Interview question!

This is how you normally define the member relation in Prolog:

member(X, [X|_]).        % member(X, [Head|Tail]) is true if X = Head 
                         % that is, if X is the head of the list
member(X, [_|Tail]) :-   % or if X is a member of Tail,
  member(X, Tail).       % ie. if member(X, Tail) is true.

Define it using only one rule.

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9  
Interview for a job? what job? where? do people get jobs thanks to Prolog? –  Juanjo Conti Nov 17 '09 at 17:00
4  
jane st capital –  Claudiu Dec 21 '11 at 3:24
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3 Answers 3

up vote 23 down vote accepted
  1. Solution:

    member(X, [Y|T]) :- X = Y; member(X, T).
    
  2. Demonstration:

    ?- member(a, []).
    fail.
    ?- member(a, [a]).
    true ;
    fail.
    ?- member(a, [b]).
    fail.
    ?- member(a, [1, 2, 3, a, 5, 6, a]).
    true ;
    true ;
    fail.
    
  3. How it works:

    • We are looking for an occurrence of the first argument, X, in the the second argument, [Y|T].
    • The second argument is assumed to be a list. Y matches its head, T matches the tail.
    • As a result the predicate fails for the empty list (as it should).
    • If X = Y (i.e. X can be unified with Y) then we found X in the list. Otherwise (;) we test whether X is in the tail.
  4. Remarks:

    • Thanks to humble coffee for pointing out that using = (unification) yields more flexible code than using == (testing for equality).
    • This code can also be used to enumerate the elements of a given list:

      ?- member(X, [a, b]).
      X = a ;
      X = b ;
      fail.
      
    • And it can be used to "enumerate" all lists which contain a given element:

      ?- member(a, X).
      X = [a|_G246] ;
      X = [_G245, a|_G249] ;
      X = [_G245, _G248, a|_G252] ;
      ...
      
    • Replacing = by == in the above code makes it a lot less flexible: it would immediately fail on member(X, [a]) and cause a stack overflow on member(a, X) (tested with SWI-Prolog version 5.6.57).

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hmm very cute. The key was the ; operator - I didn't know you could do 'or's inside of a rule. –  Claudiu Nov 16 '09 at 19:46
2  
If you replace "X == Y" with "X = Y", then you can do member(X, [a]). and even get a sensible result for member(a, X). –  humble coffee Nov 17 '09 at 8:00
    
@humble coffee: thanks! I barely touched Prolog the last few years, so my knowledge is a bit rusty :) –  Stephan202 Nov 17 '09 at 18:29
    
It being used to enumerate elements / lists etc. is an awesome side-effect of the way prolog works =). not special to this example - if you define Addition, you automatically get Subtraction. If you define a TypeChecker, you also define an enumerator for all well-typed programs. –  Claudiu Nov 18 '09 at 3:55
    
the point of X == Y vs X = Y is that with the second one you're forcing unification (bad as far i can tell), with the second one you do a deep equality check –  ROLO Jul 3 at 8:47
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Since you didn't specify what other predicates we're allowed to use, I'm going to try and cheat a bit. :P

member(X, L) :- append(_, [X|_], L).
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newmember(X, Xs) :-
   phrase(( ..., [X] ),Xs, _).

With

... --> [] | [_], ... .

Actually, the following definition also ensures that Xs is a list:

member_oflist(X, Xs) :-
   phrase(( ..., [X], ... ), Xs).
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