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permutation([], []).
permutation(L, [X|Xs]) :- select(X, L, Rest), permutation(Rest, Xs).

If I type permutation([1,2,3],R), the first solution is "[1,2,3]" but how to get to the second one without using ";" or "fail". I need to use the 2nd solution like "[1,3,2]" or so in order compare it to another list.

What I mean is:

permutation([], []).
permutation(L, [X|Xs]) :- select(X, L, Rest), permutation(Rest, Xs).

go_perm(L,P) :-     
        L = P,
        write(P),nl.

go_perm(L,P) :- 
        permutation(P,P2), % in this case i wanna get the next solution -.- 
        go_perm(L,P2).

If L = P then it finishes. Permutation of the first solution for "[1,2,3]" is "[1,2,3]". But that pulls me into stackoverflow because it runs into never-endless thing. Perhaps you understand me. Thanks!

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1  
What is your code actually trying to do? Currently it seems to make no sense; permutation(L, P) already compares the lists so you don't need to compare again. – Neil Jun 1 '11 at 20:27
    
permutation([], []). permutation(L, [X|Xs]) :- select(X, L, Rest), permutation(Rest, Xs). – viktor Jun 1 '11 at 20:30

Assuming you want to loop over the solutions to print them

One standard way to accomplish this is to fail and backtrack, as in:

print_all_permutations(X)
  :- permutation(X, Y), print(Y), nl, fail ; true.

Assuming you just want to check if a given solution is correct

You are already done. Just call the function with the reference list and the list you want to test:

permutation([1, 2, 3], [2, 1, 3]).

will return true, because [2, 1, 3] is a permutation of [1, 2, 3]. If the second argument is not a permutation, the goal will evaluate to false.

This is the magic of prolog: finding a solution, or checking if a given solution is correct, are the same thing.

In between: partial solution

The same reasoning still applies:

permutation([1, 2, 3], [2, X, 3]).

will display the only possible value for X.

Or, if you want the whole list to be the result:

X = [2, X, 3], permutation([1, 2, 3], X).
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well i tried to use your code, but, i just want to get the solutions of [1,2,3] step by step and then compare it to a fixed list [2,1,3] and finish iff permutation of [1,2,3] reached [2,1,3]... – viktor Jun 1 '11 at 20:46

You need to look at various aggregate predicates. Here, findall would work nicely. you can invoke it:

ListIn=[1,2,3], findall(Perm, permutation(ListIn, Perm), Permutations).

This will call permutation on ListIn until it fails. Each Perm returned by permutation will be collected into the Permutations variable.

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permutation is a predicate that succeeds when one list is a permutation of the other. You don't actually need to enumerate them; just write permutation([1, 2, 3], [2, 1, 3]) and Prolog will tell you "true".

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and how to show the solution for permutation([2, _ ,1, _ ],[1,2,3,4]) ? need to print out my sudoku :/ – viktor Jun 1 '11 at 21:06
1  
@viktor: you're not seriously trying to solve sudokus by enumerating permutations, are you? – Fred Foo Jun 2 '11 at 10:02

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