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I am getting duplicated list when I try to findall/3 possible path in a graph? Any idea what is wrong with the code? The pattern of duplicate was S:6 was duplicated with S:13, S:7 with S:14, S:8 with S:15 and so on..

 co(X,Y) :- hen(X,Y) ; hen(Y,X).

 pan(A, B, _, [A,B]) :- co(A, B).
 pan(A, B, Vix, [A | Len]) :-
     co(A, C),
     C \== B,
     \+ member(C, Vix),
     pan(C, B, [C | Vix], Len).

 long_p(A, B):-
     findall(Len, pan(A,B,[A],Len), Z),
     printT(Z,0).

 printT([],_).
 printT([H|T],V) :-
     V1 is V + 1,
     write('S: '), write(V1), nl,
     write(H), nl,
     nl,
     printT(T,V1).

Will Prolog findall/3 return a distinct result?

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2 Answers 2

I'm gonna guess.

printT/2 prints the S:(length-of-path). Why shouldn't there be multiple paths from A to B with the same length?

I guess your problem is that long_p/2 succeeds twice for the same path. I don't see any reason for this in pan/4. Unless I'm wrong with that, the reason is in co/2 and/or hen/2. For example, if you have hen(a,b) and hen(b,a) in your database, co(a,b) will succeed twice. This could be fixed with

co(X,Y) :- hen(X,Y).
co(X,Y) :- hen(Y,X), \+ hen(X,Y).
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findall(Len, pan(A,B,[A],Len), Z)

will produce the list Z with all Len's , such that pan(A,B,[A],Len) succeeds. So, pan(A,B,[A],Len) is backtracked and all solutions Len are put into the list Z.

In your graph there is a route of length 6 between two specific nodes A and B. But there is also a path from A to B via some C with the length 13. findall finds these two routes, etc.

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