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I'm trying to write a procedure in prolog where if L1 = [1,2,3] and L2 = [4,5,6] then L3 = [1,4,2,5,3,6]

so shuffle([1,2,3],[4,5,6],[1,4,2,5,3,6])

I have this so far:

shuffle([X],[Y],[X,Y]).
shuffle([X|Xs],[Y|Ys],_) :- shuffle(Xs,Ys,Z), shuffle(X,Y,Z).

This is my first attempt at writing prolog code so I'm still trying to wrap my head around the syntax, rules and everything.

I understand the logic, I'm just not sure how to implement it so any help would be greatly appreciated!

Thanks!

Edit: I've figured it out. Here's the solution if anyone's interested:

shuffle([X],[Y],[X,Y]).  
shuffle([X|Xs],[Y|Ys],[Z1,Z2|Zs]) :- shuffle([X],[Y],[Z1,Z2]),shuffle(Xs,Ys,Zs).
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1  
nice :) btw you can avoid the first call to shuffle: shuffle([X|Xs],[Y|Ys],[X,Y|Zs]) :- shuffle(Xs,Ys,Zs). –  thanosQR Nov 11 '11 at 6:23
    
Often simpler is better: thanosQR shows the true solution, while your original loops on backtracking! –  CapelliC Nov 11 '11 at 7:23
    
Where are you calling this shuffle? This is closer to a zip operation. Maybe flatzip would be an appropriate name. –  larsmans Nov 11 '11 at 10:49
    
@larsmans: interlace - in analogy to intersperse? In any case, OP's relation remains underspecified for shuffle([],[X],Xs) and the like. –  false Nov 11 '11 at 13:01
    
@false: yes, that would be a good name as well. Mind you, zip operations are commonly only defined on equal-length lists. shuffle raises the expectation of a Knuth–Fisher–Yates shuffle. –  larsmans Nov 11 '11 at 16:41

2 Answers 2

up vote 10 down vote accepted
shuffle([], B, B).
shuffle([H|A], B, [H|S]) :- shuffle(B, A, S).

In this kind of problems, usually the difficult part is not Prolog but identifying the simplest recursive relation that solves it.

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3  
Extremely elegant. +1. –  larsmans Nov 11 '11 at 16:44

Here's the simple solution:

shuffle([], [], []).
shuffle([X|Xs], [Y|Ys], [X,Y|Zs]) :-
    shuffle(Xs,Ys,Zs).

Generalizing this to handle list of unequal length is a matter of changing the base case into:

shuffle(Xs, [], Xs).
shuffle([], Ys, Ys).

although that may generate duplicate solutions. Those can be fixed with a cut if you don't mind the predicate being "one-way".

(Though I still think you should call this flatzip or interlace instead of shuffle.)

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If you add further facts as you suggest, the best is to enumerate all possibilities to avoid redundant answers. E.g. shuffle([X|Xs],[],[X|Xs]). –  false Nov 11 '11 at 18:09
1  
@false: I'm sorry, I don't get that remark. My suggestion is to replace the first clause with those two alternative clauses. –  larsmans Nov 11 '11 at 18:35
    
Even then! A query shuffle([a],[b],[a,b]) now gives you an answer and a redundant one. –  false Nov 11 '11 at 18:49
    
@false: ah, right! A cut might also work here. I see this as a good reason to restrict this operation to equal-length lists ;) –  larsmans Nov 11 '11 at 20:44
    
Sorry - I cannot understand your lang-u-age: cut? You mean coupe choix ?? How sorry I am for this! Ah I should say coupe-choix –  false Nov 11 '11 at 20:52

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