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Note this is not the same as using the words function.

I would like to convert from this:

"The quick brown fox jumped over the lazy dogs."

into this:

["The"," quick"," brown"," fox"," jumped"," over"," the"," lazy"," dogs."]

Note how the breaks are on the first space after each word.

The best I could come up with is this:

parts "" = []
parts s  = if null a then (c ++ e):parts f else a:parts b
    where
    (a, b) = break isSpace s
    (c, d) = span isSpace s
    (e, f) = break isSpace d

It just looks a little inelegant. Can anyone think of a better way to express this?

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What you want is obviously similar to the words function, so maybe you should look at how words is implemented and see if you can do something similar. –  MatrixFrog Aug 16 '11 at 5:02
    
... and you can see that implementation here: darcs.haskell.org/packages/base/Data/List.hs –  MatrixFrog Aug 16 '11 at 5:14

7 Answers 7

up vote 5 down vote accepted

edit -- Sorry I didn't read the question. Hopefully this new answer does what you want.

> List.groupBy (\x y -> y /= ' ') "The quick brown fox jumped over the lazy dogs."
["The"," quick"," brown"," fox"," jumped"," over"," the"," lazy"," dogs."]

The library function groupBy takes a predicate function that tells you whether you add the next element, y to the previous list, which starts with x, or start a new list.

In this case, we don't care what the current list started with, we only want to start a new list (i.e. make the predicate evaluate to false) when the next element, y, is a space.

edit

n.m. points out that the handling of multiple spaces is not correct. In which case you can switch to Data.List.HT, which has the semantics you'd want.

> import Data.List.HT as HT
> HT.groupBy (\x y -> y /= ' ' || x == ' ') "a  b c d"
["a","  b"," c"," d"]

the different semantics that makes this work is that the x is the last element in the previous list (that you might add y to, or create a new list).

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This won't work when there's more than one space in a row. –  n.m. Aug 16 '11 at 5:31
1  
Looks a bit like this problem, from not so long ago! stackoverflow.com/questions/6966151/… –  pigworker Aug 16 '11 at 9:00
    
chains (\x y -> isSpace x || (not . isSpace) y) ? –  fryguybob Aug 16 '11 at 16:04

If you're doing lots of slightly different types of splits, have a look at the split package. The package lets you define this split as split (onSublist [" "]).

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words2 xs = head w : (map (' ':) $ tail w)
  where w = words xs

And here's with arrows and applicative: (not recommended for practical use)

words3 = words >>> (:) <$> head <*> (map (' ':) . tail)

EDIT: My first solution is wrong, because it eats additional spaces. Here's the correct one:

words4 = foldr (\x acc -> if x == ' ' || head acc == "" || (head $ head acc) /= ' '  
                             then (x : head acc) : tail acc
                             else [x] : acc) [""]
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This does not keep original spaces –  n.m. Aug 16 '11 at 6:13
    
Right, i added the correct one: words4 –  Vagif Verdi Aug 16 '11 at 6:43

Here's my take

break2 :: (a->a->Bool) -> [a] -> ([a],[a])
break2 f (x:(xs@(y:ys))) = if f x y then ([x],xs) else (x:u,us) 
                              where (u,us) = break2 f xs
break2 f xs = (xs, [])

onSpace x y = not (isSpace x) && isSpace y

words2 "" = []
words2 xs = y : words2 ys where (y,ys) = break2 onSpace xs
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parts xs = foldr spl [] xs where
   spl x [] = [[x]]
   spl ' ' (xs:xss) = (' ':xs):xss    
   spl x xss@((' ':_):_) = [x]:xss    
   spl x (xs:xss) = (x:xs):xss   
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I like the idea of the split package but split (onSublist [" "]) doesn't do what I want and I can't find a solution that splits on one-or-more spaces.

Also like the solution using Data.List.HT but I'd like to stay away from dependencies if possible.

Cleanest I can come up with:

parts s 
    | null s    = []
    | null a    = (c ++ e) : parts f
    | otherwise = a        : parts b
    where
    (a, b) = break isSpace s
    (c, d) = span  isSpace s
    (e, f) = break isSpace d
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Here it is. Enjoy! :D

 words' :: String -> [String]
    words' [] = []
    words' te@(x:xs) | x==' ' || x=='\t' || x=='\n' = words' xs
                     | otherwise                = a : words' b
      where
        (a, b) = break isSpace te
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