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So I'm trying to get rid of the wrapper clause by using the sort library predicate directly inside split. What split does is just generating a list of numbers from a list that looks like this: [1:2,3:2,4:6] ---split--> [1,2,3,2,4,6]. But the generated list contains duplicates, and I don't want that, so I'm using the wrapper to combine split and sort, which then generates the desired result: [1,2,3,4,6].

I'd really like to get rid of the wrapper and just use sort within split, however I keep getting "ERROR: sort/2: Arguments are not sufficiently instantiated." Any ideas? Thanks :)

split([],[]).
split([H1:H2|T],[H1,H2|NT]) :-
    split(T,NT).

wrapper(L,Processed) :- 
    split(L,L2),
    sort(L2,Processed).
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The term [1:2,3:2,4:6] looks odd to me, what is it for? and what is this ins(T,NT)? –  false Nov 15 '12 at 16:55
    
ins should be split called recursively, my bad :). fixed. [1:2..] is a list of edges in a graph. –  Øyvind Hauge Nov 15 '12 at 16:58
1  
You will never get that error message with your definition of split/2. That's impossible! –  false Nov 15 '12 at 16:58
1  
Not clear, what you mean by wrapper. You get data like [1:2,3:2] from somewhere else, so you have to deal with it? Otherwise I'd recommend [1-2,3-2] instead, because there are libraries assuming that representation. –  false Nov 15 '12 at 17:06
1  
You'r welcome! Maybe you will learn to like it... –  false Nov 15 '12 at 17:27
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1 Answer

up vote 1 down vote accepted

I'd really like to get rid of the wrapper and just use sort within split

Then use findall with a complex goal such as

split(Edges, NodeSet) :-
    findall(Node,
            (member(Edge, Edges), (Edge = (Node:_); Edge = (_:Node))),
            NodeList),
    sort(NodeList, NodeSet).

However, once you start using aggregating predicates, you could just as well skip the sort and use setof:

split(Edges, NodeSet) :-
    setof(Node, Edge^Pair^(member(Edge, Edges),
                           Edge =.. [:|Pair],
                           member(Node,Pair)),
          NodeSet).

Read as: get the set of all Node s.t. there exists Edge and there exists Pair s.t. (etc.) and call that NodeSet.

The =.. ("univ") operator deconstructs a pair: Edge =.. [:, Left, Right]. For better readability, you can write a separate predicate to get nodes from edges:

% endpoint(Edge, Node) is true iff Node is an endpoint of Edge
endpoint(Node:_, Node).
endpoint(_:Node, Node).

split(Edges, NodeSet) :-
    setof(Node, Edge^(member(Edge, Edges), endpoint(Edge, Node)), NodeSet).

EDIT Before you try this approach, see the discussion below this answer for whether or not this is a better idea than the OP's original code.

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What do you gain here, compared to the original split/2? Except that your solution does not work should variables be present. –  false Nov 15 '12 at 17:04
    
thanks, larsmans :) –  Øyvind Hauge Nov 15 '12 at 17:10
    
@false: you can't find a set of elements from a list containing variables anyway. What you gain is that you now have a goal, or pair of goals, that you can plug into the middle of a larger clause without having to name them because the recursion is now implicit. That's the reason that these predicates exist. –  larsmans Nov 15 '12 at 17:11
    
(=..)/2 ?!?! Is this the 1970s? :-) –  false Nov 15 '12 at 17:13
    
@false: what do you suggest in its place? –  larsmans Nov 15 '12 at 17:14
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