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Say I have any list like this:

[4,5,6,7,1,2,3,4,5,6,1,2]

I need a Haskell function that will transform this list into a list of lists which are composed of the segments of the original list which form a series in ascending order. So the result should look like this:

[[4,5,6,7],[1,2,3,4,5,6],[1,2]]

Any suggestions?

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You can do it using foldr –  Satvik Jan 18 '13 at 16:34
    
Can you write that out? –  dan Jan 18 '13 at 16:34
3  
the cited duplicate is in fact not a duplicate at all, though very similar. It specifically asks for subsequences in the sense of (\x y-> x+1==y), not in the sense of (<) as is asked here. Though its edited-in "pattern" function can be tweaked to satisfy this question, it would be an intrusion. Vote 2 reopen. –  Will Ness Jan 19 '13 at 19:26
3  
the deletionists are out in force on this one. No it is not "difficult to tell what is being asked here", it is perfectly clear. This question has already solicited some excellent answers; I also have something to add here. Must I be forced to post a link to some external paste site here? It makes no sense! Vote to reopen. (.. and it doesn't even let me vote now: says I already voted. But back then it was closed for a different reason! ... Too Much Lawyering.) –  Will Ness Jan 20 '13 at 16:15
    
for the reference, here's the link to the not-quite-duplicate question mentioned above. –  Will Ness Jan 20 '13 at 16:49

4 Answers 4

up vote 5 down vote accepted
ascend :: Ord a => [a] -> [[a]]
ascend xs = foldr f [] xs
  where
    f a []  = [[a]]
    f a xs'@(y:ys) | a < head y = (a:y):ys
                   | otherwise = [a]:xs'

In ghci

*Main> ascend [4,5,6,7,1,2,3,4,5,6,1,2]
[[4,5,6,7],[1,2,3,4,5,6],[1,2]]
share|improve this answer

You can use a right fold to break up the list at down-steps:

foldr foo [] xs
  where
    foo x yss = (x:zs) : ws
      where
        (zs, ws) = case yss of
                     (ys@(y:_)) : rest
                            | x < y     -> (ys,rest)
                            | otherwise -> ([],yss)
                     _ -> ([],[])

(It's a bit complicated in order to have the combining function lazy in the second argument, so that it works well for infinite lists too.)

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double-plus-good! Separating the creation of a shape-with-holes from filling those holes up at a later time. Still, with a paramorphism this would be just trivial. Maybe it should be just as much known and used as foldr is. In Lisp they have both mapcar and maplist. –  Will Ness Jan 19 '13 at 20:55

You can do this by resorting to manual recursion, but I like to believe Haskell is a more evolved language. Let's see if we can develop a solution that uses existing recursion strategies. First some preliminaries.

{-# LANGUAGE NoMonomorphismRestriction #-}
-- because who wants to write type signatures, amirite?
import Data.List.Split -- from package split on Hackage

Step one is to observe that we want to split the list based on a criteria that looks at two elements of the list at once. So we'll need a new list with elements representing a "previous" and "next" value. There's a very standard trick for this:

previousAndNext xs = zip xs (drop 1 xs)

However, for our purposes, this won't quite work: this function always outputs a list that's shorter than the input, and we will always want a list of the same length as the input (and in particular we want some output even when the input is a list of length one). So we'll modify the standard trick just a bit with a "null terminator".

pan xs = zip xs (map Just (drop 1 xs) ++ [Nothing])

Now we're going to look through this list for places where the previous element is bigger than the next element (or the next element doesn't exist). Let's write a predicate that does that check.

bigger (x, y) = maybe False (x >) y

Now let's write the function that actually does the split. Our "delimiters" will be values that satisfy bigger; and we never want to throw them away, so let's keep them.

ascendingTuples = split . keepDelimsR $ whenElt bigger

The final step is just to throw together the bit that constructs the tuples, the bit that splits the tuples, and a last bit of munging to throw away the bits of the tuples we don't care about:

ascending = map (map fst) . ascendingTuples . pan

Let's try it out in ghci:

*Main> ascending [4,5,6,7,1,2,3,4,5,6,1,2]
[[4,5,6,7],[1,2,3,4,5,6],[1,2]]
*Main> ascending [7,6..1]
[[7],[6],[5],[4],[3],[2],[1]]
*Main> ascending []
[[]]
*Main> ascending [1]
[[1]]

P.S. In the current release of split, keepDelimsR is slightly stricter than it needs to be, and as a result ascending currently doesn't work with infinite lists. I've submitted a patch that makes it lazier, though.

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This problem is a natural fit for a paramorphism -based solution. Having (as defined in that post)

para  :: (a -> [a] -> b -> b) -> b -> [a] -> b
foldr :: (a ->        b -> b) -> b -> [a] -> b

para  c n (x : xs) = c x xs (para  c n xs)
foldr c n (x : xs) = c x    (foldr c n xs)
para  c n []       = n
foldr c n []       = n

we can write

partition_asc xs = para g [] xs  where
  g x (y:_) ~(a:b) | x<y = (x:a):b 
  g x  _      r          = [x]:r 

Trivial, since the abstraction fits.

BTW they have two kinds of map in Common Lisp - mapcar (processing elements of an input list one by one) and maplist (processing "tails" of a list). With this idea we get

import Data.List (tails)

partition_asc2 xs = foldr g [] . init . tails $ xs  where
  g (x:y:_) ~(a:b) | x<y = (x:a):b
  g (x:_)     r          = [x]:r 

Lazy patterns in both versions make it work with infinite input lists in a productive manner (as first shown in Daniel's answer).

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or, with the insight from Daniel's answer, the answer by Satvik can be tweaked, foldr f [] xs where {f a [] = [[a]]; f a xs@ ~(y:_) = (a:w):ws where (w:ws) = if a < head y then xs else ([]:xs)}. This is a useful recurrent pattern of lazy build by foldr, (potentially) reshuffling interim results using lazy patterns. –  Will Ness Sep 3 '13 at 13:38

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