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 learning prolog and I am reading a book called Programming Prolog for Artificial Intelligence. As practice I want to learn how to extend one of the examples in this book. Can someone please help?

Say you have these facts:

parent(pam, bob). %pam is a parent of bob
parent(george, bob). %george is a parent of bob

How would I write a prolog predicate that would give me a list of bobs parents? For example:

list_parents(bob, L).

L = [pam, george] ;
L = [george, pam] ;
true.
share|improve this question

2 Answers 2

An all-solutions predicate like findall/3 might do the trick:

list_parents(P, L) :-
    findall(Parent, parent(Parent, P), L).

Simply put, findall/3 finds all bindings for Parent in the 'backtrack-able' goal parent(Parent, P), and puts all bindings of Parent into the list L. Note that this won't remove duplicates, but you can do a sort/2 to L before returning it to create a set. Executing this:

?- list_parents(bob, L).
L = [pam, george].

If you don't have findall/3 in your PROLOG implementation, you could do it manually like this:

list_parents(P, L) :-
    list_parents(P, [], L).

list_parents(P, Acc, L) :-
    parent(Parent, P),
    \+ member(Parent, Acc), !,
    list_parents(P, [Parent|Acc], L). 
list_parents(_, L, L).

This version sends calls to list_parents/2 off to an accumulator-version, list_parents/3. The latter tries to collect Parent bindings also, as long as we haven't seen them before (hence the \+ member check), and returns the list where no new Parent bindings accumulated into the Acc list can be found. Executing this gives us the same result as the first option:

?- list_parents(bob, L).
L = [pam, george].
share|improve this answer
    
findall, that's what I was trying to Google for –  SHiNKiROU Nov 18 '10 at 1:38

Try this:

parent(pam, bob). %pam is a parent of bob
parent(george, bob). %george is a parent of bob
list_parents(A, Es, [X|Xs]) :- parent(X, A), \+ member(X, Es), list_parents(A, [X|Es], Xs).
list_parents(A, Es, []).

That was an inefficient method, a better method will need a "solutions" higher-order predicate.

list_parents(X, Ys) :- solutions(parent, [X, W], 1, Ys)

share|improve this answer

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.