155

Is there a standard way to split a string in Haskell?

lines and words work great from splitting on a space or newline, but surely there is a standard way to split on a comma?

I couldn't find it on Hoogle.

To be specific, I'm looking for something where split "," "my,comma,separated,list" returns ["my","comma","separated","list"].

  • 20
    I would really like to such a function in a future release of Data.List or even Prelude. It's so common and nasty if not available for code-golf. – fuz Feb 12 '11 at 15:08

12 Answers 12

126

There is a package for this called split.

cabal install split

Use it like this:

ghci> import Data.List.Split
ghci> splitOn "," "my,comma,separated,list"
["my","comma","separated","list"]

It comes with a lot of other functions for splitting on matching delimiters or having several delimiters.

  • 8
    Cool. I wasn't aware of this package. This is the ultimate split package as it gives much control over the operation (trim space in results, leave separators in result, remove consecutive separators, etc...). There are so many ways of splitting lists, it is not possible to have in single split function that will answer every needs, you really need that kind of package. – gawi Feb 12 '11 at 20:37
  • 1
    otherwise if external packages are acceptable, MissingH also provides a split function: hackage.haskell.org/packages/archive/MissingH/1.2.0.0/doc/html/… That package also provides plenty of other "nice-to-have" functions and I find that quite some packages depend on it. – Emmanuel Touzery Dec 13 '12 at 10:44
  • 35
    The split package is now apart of the haskell platform as of most recent release. – The Internet Jul 6 '13 at 17:12
  • 12
    import Data.List.Split (splitOn) and go to town. splitOn :: Eq a => [a] -> [a] -> [[a]] – The Internet Sep 10 '13 at 4:50
  • 10
    import Data.List.Split doesn't work – RussAbbott Nov 13 '16 at 16:23
161

Remember that you can look up the definition of Prelude functions!

http://www.haskell.org/onlinereport/standard-prelude.html

Looking there, the definition of words is,

words   :: String -> [String]
words s =  case dropWhile Char.isSpace s of
                      "" -> []
                      s' -> w : words s''
                            where (w, s'') = break Char.isSpace s'

So, change it for a function that takes a predicate:

wordsWhen     :: (Char -> Bool) -> String -> [String]
wordsWhen p s =  case dropWhile p s of
                      "" -> []
                      s' -> w : wordsWhen p s''
                            where (w, s'') = break p s'

Then call it with whatever predicate you want!

main = print $ wordsWhen (==',') "break,this,string,at,commas"
28

If you use Data.Text, there is splitOn:

http://hackage.haskell.org/packages/archive/text/0.11.2.0/doc/html/Data-Text.html#v:splitOn

This is built in the Haskell Platform.

So for instance:

import qualified Data.Text as T
main = print $ T.splitOn (T.pack " ") (T.pack "this is a test")

or:

{-# LANGUAGE OverloadedStrings #-}

import qualified Data.Text as T
main = print $ T.splitOn " " "this is a test"
  • 1
    @RussAbbott probably you need to a dependency to the text package or install it. Would belong in another question though. – Emmanuel Touzery Nov 14 '16 at 9:58
18

In the module Text.Regex (part of the Haskell Platform), there is a function:

splitRegex :: Regex -> String -> [String]

which splits a string based on a regular expression. The API can be found at Hackage.

15

Use Data.List.Split, which uses split:

[me@localhost]$ ghci
Prelude> import Data.List.Split
Prelude Data.List.Split> let l = splitOn "," "1,2,3,4"
Prelude Data.List.Split> :t l
l :: [[Char]]
Prelude Data.List.Split> l
["1","2","3","4"]
Prelude Data.List.Split> let { convert :: [String] -> [Integer]; convert = map read }
Prelude Data.List.Split> let l2 = convert l
Prelude Data.List.Split> :t l2
l2 :: [Integer]
Prelude Data.List.Split> l2
[1,2,3,4]
  • 8
    import Data.List.Split doesn't work – RussAbbott Nov 13 '16 at 16:25
14

Try this one:

import Data.List (unfoldr)

separateBy :: Eq a => a -> [a] -> [[a]]
separateBy chr = unfoldr sep where
  sep [] = Nothing
  sep l  = Just . fmap (drop 1) . break (== chr) $ l

Only works for a single char, but should be easily extendable.

9
split :: Eq a => a -> [a] -> [[a]]
split d [] = []
split d s = x : split d (drop 1 y) where (x,y) = span (/= d) s

E.g.

split ';' "a;bb;ccc;;d"
> ["a","bb","ccc","","d"]

A single trailing delimiter will be dropped:

split ';' "a;bb;ccc;;d;"
> ["a","bb","ccc","","d"]
7

Without importing anything a straight substitution of one character for a space, the target separator for words is a space. Something like:

words [if c == ',' then ' ' else c|c <- "my,comma,separated,list"]

or

words let f ',' = ' '; f c = c in map f "my,comma,separated,list"

You can make this into a function with parameters. You can eliminate the parameter character-to-match my matching many, like in:

 [if elem c ";,.:-+@!$#?" then ' ' else c|c <-"my,comma;separated!list"]
6

I started learning Haskell yesterday, so correct me if I'm wrong but:

split :: Eq a => a -> [a] -> [[a]]
split x y = func x y [[]]
    where
        func x [] z = reverse $ map (reverse) z
        func x (y:ys) (z:zs) = if y==x then 
            func x ys ([]:(z:zs)) 
        else 
            func x ys ((y:z):zs)

gives:

*Main> split ' ' "this is a test"
["this","is","a","test"]

or maybe you wanted

*Main> splitWithStr  " and " "this and is and a and test"
["this","is","a","test"]

which would be:

splitWithStr :: Eq a => [a] -> [a] -> [[a]]
splitWithStr x y = func x y [[]]
    where
        func x [] z = reverse $ map (reverse) z
        func x (y:ys) (z:zs) = if (take (length x) (y:ys)) == x then
            func x (drop (length x) (y:ys)) ([]:(z:zs))
        else
            func x ys ((y:z):zs)
  • I was looking for a built-in split, being spoiled by languages with well-developed libraries. But thanks anyway. – Eric Wilson Jun 11 '12 at 9:46
  • 3
    You wrote this in June, so I assume you've moved on in your journey :) As an exercise, trying rewriting this function without reverse or length as use of these functions incur an algorithmic complexity penalty and also prevent application to an infinite list. Have fun! – Tony Morris Oct 22 '12 at 2:37
5

I don’t know how to add a comment onto Steve’s answer, but I would like to recommend the
  GHC libraries documentation,
and in there specifically the
  Sublist functions in Data.List

Which is much better as a reference, than just reading the plain Haskell report.

Generically, a fold with a rule on when to create a new sublist to feed, should solve it too.

2

In addition to the efficient and pre-built functions given in answers I'll add my own which are simply part of my repertory of Haskell functions I was writing to learn the language on my own time:

-- Correct but inefficient implementation
wordsBy :: String -> Char -> [String]
wordsBy s c = reverse (go s []) where
    go s' ws = case (dropWhile (\c' -> c' == c) s') of
        "" -> ws
        rem -> go ((dropWhile (\c' -> c' /= c) rem)) ((takeWhile (\c' -> c' /= c) rem) : ws)

-- Breaks up by predicate function to allow for more complex conditions (\c -> c == ',' || c == ';')
wordsByF :: String -> (Char -> Bool) -> [String]
wordsByF s f = reverse (go s []) where
    go s' ws = case ((dropWhile (\c' -> f c')) s') of
        "" -> ws
        rem -> go ((dropWhile (\c' -> (f c') == False)) rem) (((takeWhile (\c' -> (f c') == False)) rem) : ws)

The solutions are at least tail-recursive so they won't incur a stack overflow.

2

Example in the ghci:

>  import qualified Text.Regex as R
>  R.splitRegex (R.mkRegex "x") "2x3x777"
>  ["2","3","777"]
  • 1
    Please, don’t use regular expressions to split strings. Thank you. – kirelagin Mar 28 '18 at 13:06

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