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Given a list, I'd like to divide it into clusters using a "boundary function". Such function would take two consecutive elements of the list and decide whether or not they should belong to the same cluster.

So essentially, I want something like this:

clusterBy :: (a -> a -> Bool) -> [a] -> [[a]]

ghci> farAway x y = abs (x - y) > 10
ghci> clusterBy farAway [1, 4, 18, 23, 1, 17, 21, 12, 30, 39, 48]
[[1, 4], [18, 23], [1], [17, 21, 12], [30, 39, 48]]

Looking up it this type declaration in Hoogle yielded only groupBy which isn't exactly what I need (it doesn't take order of elements into account).

Is there any library function that does something similar? Or alternatively: how it could be implemented cleanly, i.e. without resorting to tail-recursive loop?

EDIT: For reference, the implementation I managed to cook up is the following:

clusterBy :: (a -> a -> Bool) -> [a] -> [[a]]
clusterBy isBoundary list = 
loop list [] []
    where
        loop (first:rest) [] result = loop rest [first] result
        loop list@(next:rest) cluster result =
            if isBoundary (head cluster) next then
                loop list [] ((reverse cluster):result)
            else
                loop rest (next:cluster) result
        loop [] cluster@(_:_) result = cluster:result
        loop _ _ result = result
share|improve this question
    
Why is a tail-recursive loop not clean? What is the purpose of avoiding such a straight-forward solution? –  Thomas M. DuBuisson Dec 27 '11 at 18:09
    
I've edited the question, adding the tail-recursive version I managed to come up with. I'm dissatisfied with number of terminal conditions and overall verbosity. Frankly, it doesn't look very haskellish at all - it's basically an imperative version forced into a functional language. –  Xion Dec 27 '11 at 18:30

1 Answer 1

up vote 4 down vote accepted

Is this what you want?

clusterBy :: (a -> a -> Bool) -> [a] -> [[a]]
clusterBy isDifferentCluster = foldr f []
  where f x (ys @ (y : _) : yss) | not (isDifferentCluster x y) = (x : ys) : yss
        f x                 yss                                 = [x]      : yss

The sense of the function argument should probably be reversed (i.e. return true when its arguments should be in the same cluster and false otherwise), but I've given it in the form you asked for.

share|improve this answer
    
Perfect. I tried to use a fold but haven't thought about such complex pattern matching. Thanks! –  Xion Dec 27 '11 at 18:55

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