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When given a list I would like to compute all the possible combinations of pairs in the list.

e.g 2) input is a list (a,b,c) I would like to obtain pairs (a,b) (a,c) (b,c)

e.g 1) input is a list (a,b,c,d) I would like to obtain pairs (a,b) (a,c) (a,d) (b,c) (b,d) and (c,d)

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pairs (x:xs) = [ (x,y) | y<-xs ] ++ pairs xs ; pairs [] = [], in Haskell notation. The easiest is to translate this into a Prolog predicate that will produce all these pairs one by one on backtracking, as the answer by Mog suggests you do. y<-xs corresponds to member(Y,XS) ; ++ corresponds to a disjunction. –  Will Ness May 2 '12 at 1:02

2 Answers 2

Using select/3 twice (or select/3 once and member/2 once) will allow you to achieve what you want here. I'll let you work out the details and ask for help if it's still troublesome.

BTW, Prolog syntax for list isn't (a, b, c) but [a, b, c] (well, it's syntactic sugar but I'll leave it at that).

edit: as @WillNess pointed out, you're not looking for any pair (X, Y) but only for pairs where X is before Y in the list.

DCGs are a really good fit: as @false described, they can produce a graphically appealing solution:

... --> [] | [_], ... .

pair(L, X-Y) :-
    phrase((..., [X], ..., [Y], ...), L).

Alternatively, if you use SWI-Prolog, a call to append/2 does the trick too, in a similar manner, but is less efficient than DCGs:

pair2(L, X-Y) :-
    append([_, [X], _, [Y], _], L).

You can do it with a basic recursion, as @WillNess suggested in his comment. I'll leave this part for him to detail if needed!

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1  
perhaps not select/3, but simple recursion over the input list, as we apparently don't need the elements preceding the one that is picked first (judging from the description, which omits (b,a), (c,b) pairs etc). –  Will Ness May 2 '12 at 1:07
    
yup, I didn't check the expected output carefully enough, you should post your comment as an anwer! –  m09 May 2 '12 at 6:06
    
done. Hope it's not a homework. :) –  Will Ness May 2 '12 at 10:39

OK, so to translate the Haskell's

pairs (x:xs) = [ (x,y) | y<-xs ]
                ++ pairs xs 
pairs []     = []

as a backtracking Prolog predicate, it's a straightforward and short,

pair([X|XS],X-Y):- member( ... ,XS).  %% fill in the '...' here
pair([_|XS],P) :- pair(XS, ... ).     %%
%% pair([],_) :- false. 

To get all the possible pairs, use findall:

pairs(L,PS):- findall(P, pair(L,P), PS).

Consider using bagof if your lists can contain logical variables in them. Controlling bagof's backtracking could be an intricate issue though.

pairs can also be written as a deterministic, non-backtracking, recursive definition, constructing its output list through an accumulator parameter - here in a top-down manner, which makes it a difference list really:

pairs([X|T],PS):- T=[_|_], pairs(X,T,T,PS,[]) ; T=[], PS=[].
pairs([],[]).

pairs(_,[],[],Z,Z).
pairs(_,[],[X|T],PS,Z):- pairs(X,T,T,PS,Z).
pairs(X,[Y|T],R,[X-Y|PS],Z):- pairs(X,T,R,PS,Z).
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+1: Some comments: There is a fundamental difference to Haskell here: And that are the variables. Because of this, findall/3 does not work with lists containing variables. Consider bagof/3. For your last version: you do not need that red cut in disguise (->)/2. You can do it in all purity with T=[_|_] ...; T = []. Also instead of (:)/2 use (-)/2 which is the idiomatic pair constructor in Prolog. –  false May 2 '12 at 10:55
    
@false thanks, changed that. Although here it was a green cut, I thought. About functor name, I've used ':' for pairs too, and '-' for me is idiomatic indicator of a difference list. :) –  Will Ness May 2 '12 at 14:14
    
@false no, not a green cut at all. red cut it was. –  Will Ness May 2 '12 at 14:26
    
Look at: ?- catch(keysort([a],L),error(E,_),true). the answer is type_error(pair,a). So, a-b is a pair. This is standard terminology. Difference lists are usually written as two arguments. Both (-)/2 and (\)/2 for differences often lead to extra errors. –  false May 2 '12 at 16:18
    
@false ah, I see, '-' happens to be used as default pair functor w.r.t. keysort/2, in several Prolog implementations, is what you mean. Of course in general pair is anything that pairs up any two things, and can have any functor at all, '-', '/', not_a_pair, etc. :) –  Will Ness May 2 '12 at 20:08

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