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How can I group a list into smaller lists of equal length (except last sublist) in haskell?

E.g.

sublist 3 [1,2,3,4,5,6,7,8] -> [[1,2,3],[4,5,6],[7,8]]
sublist 2 [4,1,6,1,7,3,5,3] -> [[4,1],[6,1],[7,3],[5,3]]
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up vote 8 down vote accepted

If you want to stick to prelude, you can pull this off using splitAt.

splitEvery _ [] = []
splitEvery n list = first : (splitEvery n rest)
  where
    (first,rest) = splitAt n list
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1  
or even splitEvery n = takeWhile (not . null) . unfoldr (Just . splitAt n) – newacct Dec 31 '11 at 11:32

Try:

import Data.List.Split
> splitEvery 2 [4,1,6,1,7,3,5,3]
[[4,1],[6,1],[7,3],[5,3]]
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7  
You'll have to install the split package first. – ehird Dec 30 '11 at 15:36
1  
for beginners like me - that means running cabal install split – Kevin Meredith Mar 6 '15 at 17:20
2  
Actually, is splitEvery still recommended? <interactive>:1:1: Warning: In the use of ‘splitEvery’ Deprecated: "Use chunksOf." – Kevin Meredith Mar 6 '15 at 17:20

Another solution that I like is:

splitEvery :: Int -> [a] -> [[a]]
splitEvery n = takeWhile (not.null) . map (take n) . iterate (drop n)
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Yet another solution:

split :: Int -> [a] -> [[a]]
split n = unfoldr (\s -> if null s then Nothing else Just $ splitAt n s)
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I know this is old, but since this seems to be a post for people who are fairly new to Haskell, I felt like posting my solution too. I tried to solve this problem by using Prelude, only:

sublist :: Int -> [a] -> [[a]]
sublist n ls
    | n <= 0 || null ls = []
    | otherwise = take n ls:sublist n (drop n ls)

Testing

sublist 3 [1,2,3,4,5,6] -- λ> [[1,2,3], [4,5,6]]
sublist 5 [1,2,3]       -- λ> [[1,2,3]]
sublist (-1) [1,2,3]    -- λ> []
sublist 20 []           -- λ> []
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