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How do you trim whitespace from the start and end of a string?

trim "  abc " 

=>

"abc"

Edit:

Ok, let me be a little clearer. I did not understand that string literals were treated so differently from Strings.

I would like to do this:

import qualified Data.Text as T
let s :: String = "  abc  "
in T.strip s

Is this possible in Haskell? I am using -XOverloadedStrings but that appears only to work for literals.

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9 Answers 9

up vote 31 down vote accepted

If you have serious text processing needs then use the text package from hackage:

> :set -XOverloadedStrings
> import Data.Text
> strip "  abc   "
"abc"

If you're too stubborn to use text and don't like the inefficiency of the reverse method then perhaps (and I mean MAYBE) something like the below will be more efficient:

import Data.Char

trim xs = dropSpaceTail "" $ dropWhile isSpace xs

dropSpaceTail maybeStuff "" = ""
dropSpaceTail maybeStuff (x:xs)
        | isSpace x = dropSpaceTail (x:maybeStuff) xs
        | null maybeStuff = x : dropSpaceTail "" xs
        | otherwise       = reverse maybeStuff ++ x : dropSpaceTail "" xs


> trim "  hello this \t should trim ok.. .I  think  ..  \t "
"hello this \t should trim ok.. .I  think  .."

I wrote this on the assumption that the length of spaces would be minimal, so your O(n) of ++ and reverse is of little concern. But once again I feel the need to say that if you actually are concerned about the performance then you shouldn't be using String at all - move to Text.

EDIT making my point, a quick Criterion benchmark tells me that (for a particularly long string of words with spaces and ~200 pre and post spaces) my trim takes 1.6 ms, the trim using reverse takes 3.5ms, and Data.Text.strip takes 0.0016 ms...

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Thanks for the recommendation. I convinced my team to add text to the project and it is saving a lot of headaches. –  Eric Normand Jun 15 '11 at 19:54
1  
+1 for the benchmark it is great when people really prove their claims –  epsilonhalbe Feb 28 '12 at 9:04

From: http://en.wikipedia.org/wiki/Trim_(programming)#Haskell

import Data.Char (isSpace)

trim :: String -> String
trim = f . f
   where f = reverse . dropWhile isSpace
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3  
This is very inefficient. –  FUZxxl Jun 7 '11 at 19:16
4  
And it is the simplest. For a quick-and-dirty use case, this is nice. –  3noch Nov 28 '12 at 21:43

Inefficient but easy to understand and paste in where needed:

strip = lstrip . rstrip
lstrip = dropWhile (`elem` " \t")
rstrip = reverse . lstrip . reverse
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For sure, Data.Text is better for performance. But, as was mentioned, it's just fun to do it with lists. Here is a version that rstrip's the string in single pass (without reverse and ++) and supports infinite lists:

rstrip :: String -> String
rstrip str = let (zs, f) = go str in if f then [] else zs
    where
        go [] = ([], True)
        go (y:ys) =
            if isSpace y then
                let (zs, f) = go ys in (y:zs, f)
            else
                (y:(rstrip ys), False)

p.s. as for infinite lists, that will work:

List.length $ List.take n $ rstrip $ cycle "abc  "

and, for obvious reason, that will not (will run forever):

List.length $ List.take n $ rstrip $ 'a':(cycle " ")
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Another (std) solution

import System.Environment
import Data.Text

strip :: String -> IO String
strip = return . unpack . Data.Text.strip . pack

main = getLine >>= Main.strip >>= putStrLn
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I don't know anything about the runtime or efficiency but what about this:

-- entirely input is to be trimmed
trim :: String -> String
trim = Prelude.filter (not . isSpace')

-- just the left and the right side of the input is to be trimmed
lrtrim :: String -> String
lrtrim = \xs -> rtrim $ ltrim xs
  where
    ltrim = dropWhile (isSpace')
    rtrim xs
      | Prelude.null xs = []
      | otherwise = if isSpace' $ last xs
                    then rtrim $ init xs
                    else xs 

-- returns True if input equals ' '
isSpace' :: Char -> Bool
isSpace' = \c -> (c == ' ')

A solution without using any other module or library than the Prelude.

Some tests:

>lrtrim ""
>""

>lrtrim "       "
>""

>lrtrim "haskell       "
>"haskell"

>lrtrim "      haskell       "
>"haskell"

>lrtrim "     h  a  s k e   ll       "
>"h  a  s k e   ll"

It could be runtime O(n).

But I actually don't know it because I don't know the runtimes of the functions last and init. ;)

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Both are O(n), though init has at least a factor of two over last, since it copies n - 1 elements. Use Data.Text for this kind of thing. Making your own with Prelude functions is easy and fun and slow. –  nomen Oct 18 '13 at 0:28

Along the lines of what other people have suggested, you can avoid having to reverse your string by using:

import Data.Char (isSpace)

dropFromTailWhile _ [] = []
dropFromTailWhile p item
  | p (last items) = dropFromTailWhile p $ init items
  | otherwise      = items

trim :: String -> String
trim = dropFromTailWhile isSpace . dropWhile isSpace
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You can combine Data.Text's strip with it's un/packing functions to avoid having overloaded strings:

import qualified Data.Text as T

strip  = T.unpack . T.strip . T.pack
lstrip = T.unpack . T.stripStart . T.pack
rstrip = T.unpack . T.stripEnd . T.pack

Testing it:

> let s = "  hello  "
> strip s
"hello"
> lstrip s
"hello  "
> rstrip s
"  hello"
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I know this is an old post, but I saw no solutions that implemented good old fold.

First strip the leading white-space using dropWhile. Then, using foldl' and a simple closure, you can analyze the rest of the string in one pass, and based on that analysis, pass that informative parameter to take, without needing reverse:

import Data.Char (isSpace)
import Data.List (foldl')

trim :: String -> String
trim s = let
  s'    = dropWhile isSpace s
  trim' = foldl'
            (\(c,w) x -> if isSpace x then (c,w+1)
                         else (c+w+1,0)) (0,0) s'
  in
   take (fst trim') s'

Variable c keeps track of combined white and non white-space that should be absorbed, and variable w keeps track of right side white-space to be stripped.

Test Runs:

print $ trim "      a   b c    "
print $ trim "      ab c    "
print $ trim "    abc    "
print $ trim "abc"
print $ trim "a bc    "

Output:

"a   b c"
"ab c"
"abc"
"abc"
"a bc"
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