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Well, for the last few hours, I've been trying to swap the second item of a given list with its penultimate item (the second last). Give the list [a,b,c,d,e,f], I want to get [a,e,c,d,b,f]. For example:

correct(List1,X,List2)
?-correct([a,y,b,c,d,e,x,f],x,List2).
List2[a,x,b,c,d,e,y,f].
  • List1 is the list i got to swap second and penultimate (second last) element.
  • X is the penultimate element.
  • List2 is the new list with the swapped elements.
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3 Answers 3

up vote 1 down vote accepted

This will work for lists of length 4 or greater:

correct( [H1|[H2|T1]], X, [H1|[X|T2]] ) :-
   reverse(T1, [HR|[X|TR]]),
   reverse([HR|[H2|TR]], T2).

| ?- correct( [1,2,3,4,5,6], X, L ).

L = [1,5,3,4,2,6]
X = 5

(1 ms) yes
| ?-

You can include the shorter cases, if that's the intention, by adding two more predicates, bringing the solution to:

correct( [A,X], X, [X,A] ).
correct( [A,X,B], X, [A,X,B] ).
correct( [H1|[H2|T1]], X, [H1|[X|T2]] ) :-
   reverse(T1, [HR|[X|TR]]),
   reverse([HR|[H2|TR]], T2).
share|improve this answer
    
thank you alot for your fast answer.Now i understand how i can solve this problem. –  John Sep 3 '13 at 17:46
    
The predicate correct/2 can be defined such that the input list is only traversed once and without calling the reverse/2 predicate twice (which, btw, is not a standard predicate although is often defined in a library of utility list predicates). –  Paulo Moura Sep 3 '13 at 19:04
    
@PauloMoura I agree, although reverse/2 is defined in GNU Prolog and SWI Prolog. This was a "simple" if less efficient approach. –  lurker Sep 3 '13 at 19:06

The solutions posted by mbratch and CapelliC both fail for the following base case:

?- correct([a,y], X, List2).
false.

The following solution takes care of this base case and doesn't rely on list predicates that may or may not be available. It traverses the list once and is more efficient than the other two solutions:

correct([PreLast, Second], Second, [Second, PreLast]) :-
    !.
correct([First, Second, Last], Second, [First, Second, Last]) :-
    !.
correct([First, Second| InRest], PreLast, [First, PreLast| OutRest]) :-
    correct_aux(InRest, Second, PreLast, OutRest).

correct_aux([PreLast, Last], Second, PreLast, [Second, Last]) :-
    !.
correct_aux([Other| InRest], Second, PreLast, [Other| OutRest]) :-
    correct_aux(InRest, Second, PreLast, OutRest).

Sample queries:

?- correct([a,b], X, List).
X = b,
List = [b, a].

?- correct([a,b,c], X, List).
X = b,
List = [a, b, c].

?- correct([a,b,c,d], X, List).
X = c,
List = [a, c, b, d].

?- correct([a,b,c,d,e], X, List).
X = d,
List = [a, d, c, b, e].
share|improve this answer
    
Nice solution, Paulo (+1). I think you left out the list of length 3 case, though. –  lurker Sep 4 '13 at 0:16
    
Good catch. The easiest solution seems to be to also add a list of length three as a second base case. I edited the code accordingly. But can this solution be simplified? All those cuts bother me. –  Paulo Moura Sep 4 '13 at 8:25
    
This answer terminates also for correct(L,X,[a,b,c,d,e]). The cuts, though, cause incompleteness: correct(L,X,L) has more than one answer. –  false Sep 4 '13 at 13:24
    
@false, as it turns out, for Paulo's solution to work, a cut is only needed at the end of the first correct_aux clause. All of the other cuts can go away. –  lurker Sep 4 '13 at 14:03
    
@mbratch: All cuts have to go away to show all answers for correct(L,X,L). –  false Sep 4 '13 at 14:07

another available builtin is append/2:

3 ?- [user].
correct(L, X, R) :- append([[A,B],C,[X,E]], L), append([[A,X],C,[B,E]], R).
|: 
% user://2 compiled 0.02 sec, 2 clauses
true.

4 ?- correct( [1,2,3,4,5,6], X, L ).
X = 5,
L = [1, 5, 3, 4, 2, 6] ;

I like mbratch one (+1), maybe this solution is more intuitive.

share|improve this answer
    
This is nice, CapelliC, I was reaching for an append solution and you found it. :) –  lurker Sep 3 '13 at 19:22

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