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I have list structure

L=[[a,b,c,d],[a,f,c,h]]

Length of L can be greater than 2.I want to unite the elements of list so that L or a NewL become

L=[a,[b,f],c,[d-h]]
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What do you mean by "uniting"? You state a presumably, because the elements are the same, but don't you rather mean [a]? How should this work out for L = [[[a]],[[a]]]? –  false Mar 24 '13 at 1:10
    
Are you trying to implement some sort of "motif" finding, or structure alignment? If so, it is worth implementing an existing algorithm. –  Boris Mar 24 '13 at 8:05

2 Answers 2

up vote -1 down vote accepted

What you're requiring is an aggregation schema. I think I got it:

unite(Ls, [E|Es]) :-
    aggreg(Ls, E, Ns),
    unite(Ns, Es).
unite(_, []).

aggreg(L, E, LLs) :-
    maplist(first, L, Fs, LLs),
    setof(X, member(X, Fs), S),
    ( [E] = S -> true ; E = S ).

first([E|Es], E, Es).

yields

?- L=[[a,b,c,d],[a,f,c,h],[a,f,c,g]],unite(L,U).
L = [[a, b, c, d], [a, f, c, h], [a, f, c, g]],
U = [a, [b, f], c, [d, g, h]] ;
L = [[a, b, c, d], [a, f, c, h], [a, f, c, g]],
U = [a, [b, f], c] .

I think that a cut after the first solution would be well placed (use once/1 for that).

Note that the schema it's rather general: just substitute in setof/3 some more applicative task (if any) than unification (you could call into your DB, for instance).

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sometime it's really hard to imagine the reason of downvotes. I could understand if there was a better answer, or if it would be wrong, or the question were presumably homework. But here ? What's problem here ? Any hint is welcome... –  CapelliC Mar 25 '13 at 13:46

This is probably what you want:

unite([[],[]], []).
unite([[X|Ls], [X|Rs]], [X|Rest]) :- unite([Ls, Rs], Rest).
unite([[L|Ls], [R|Rs]], [[L,R]|Rest]) :- L \= R, unite([Ls, Rs], Rest).

However, I agree with @false because this is a strange API and there are a lot of unhandled edge cases.

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