26

I have a very simple question: Given a function accepting a char and returning a string

test :: Char -> [String]

how can one convert the char into a string? I'm confused over the two types.

  • 2
    Your question asks about converting a char into a string, but your code block actually involves the types Char and [String] (instead of String). Note that [String] means a list of Strings, i.e. (as String is defined as [Char]) a list of lists of Chars. – ShreevatsaR Aug 31 '15 at 20:56
49

In Haskell String is an alias for [Char]:

type String = [Char]

If you just want a function that converts a single char to a string you could e.g. do

charToString :: Char -> String
charToString c = [c]

If you prefer pointfree style you could also write

charToString :: Char -> String
charToString = (:[])
  • 1
    I see before i was expecting a output like [c], but have changed to this: [[c]] and it works :) Thanks so simple – Lunar May 29 '11 at 16:05
5

A String is just a [Char]

But that's just a nice way of saying

'H':'E':'L':'L':'O':[]

So to make it a [String] we could do:

['H':'E':'L':'L':'O':[]]
4

Another way would be using

return . return

Since return for lists is defined as :[]

  • Prelude> return 'a' => 'a' Doesn't work (return .return will give an error). – paradoja Jul 14 '12 at 12:50
  • 4
    @paradoja return has type Monad m => a -> m a. By default, ghci assumes IO for the monad instance by default. Since ghci also unwraps (executes) values in the IO monad for you, you see return as a no-op. Try (return :: a -> [a]) 'a' to fix the monad to lists. – fuz Jul 15 '12 at 15:07
-2

Note that you can convert any type implementing the Show type class to a string using show:

(Show a) => a -> String

Because Char implements this, the function is already written for you!

  • 6
    Prelude> show 'a' => "'a'" (Doesn't work as probably intended). – paradoja Jul 14 '12 at 12:49

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