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I have tried to create my own string shuffle function:

import System.Random

-- usage case: my_shuffle "something" ""

my_shuffle :: [Char] -> [Char] -> [Char]
my_shuffle [] result = result
my_shuffle s result = do 
    pos <- randomRIO (1, length s)
    my_shuffle (remove_char pos) (result ++ (get_char pos))

get_char :: [Char] -> Int -> Char
get_char s pos  = s !! (pos - 1)

remove_char :: [Char] -> Int -> [Char]
remove_char s pos = take (pos - 1) s ++ drop pos s

It returns the error message:

substitution_cipher.hs:8:16:
    Couldn't match expected type `[t0]' with actual type `IO a0'
    In the return type of a call of `randomRIO'
    In a stmt of a 'do' expression: pos <- randomRIO (1, length s)
    In the expression:
      do { pos <- randomRIO (1, length s);
           my_shuffle (remove_char pos) (result ++ (get_char pos)) }

As I see it is related to IO, but I don't know how to fix it.

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1  
If you're unsure about a type, it's often convenient to omit the type signature, load it into GHCi, and do a :t <thing> to make Haskell tell you the type. Then you can add that type signature to the source. –  Matt Fenwick Oct 29 '12 at 15:37

1 Answer 1

up vote 4 down vote accepted

First of all, you aren't passing the string argument toremove_char and get_char. Also, you need to turn the result of get_char into a list in order to use ++. The recursive call to my_shuffle should look like:

my_shuffle (remove_char s pos) (result ++ [get_char s pos])

Secondly, you need to use the IO monad for randomIO, so the signature of my_shuffle should be:

my_shuffle :: [Char] -> [Char] -> IO [Char]

Then finally you need to use return in the base case (since you need to return an IO [Char]):

my_shuffle [] result = return result

With fixes applied:

import System.Random

my_shuffle :: [Char] -> [Char] -> IO [Char]
my_shuffle [] result = return result
my_shuffle s result = do
     pos <- randomRIO (1, length s)
     my_shuffle (remove_char s pos) (result ++ [get_char s pos])

get_char :: [Char] -> Int -> Char
get_char s pos  = s !! (pos - 1)

remove_char :: [Char] -> Int -> [Char]
remove_char s pos = take (pos - 1) s ++ drop pos s
share|improve this answer
    
Thank you very much for your detail answer. But I have another one question: is there any way to return [Char] from my_shuffle, instead of IO [Char]. I want to use the result as common string: f a b = a ++ b ; f "some" (my_shuffle "some" "") –  demas Oct 29 '12 at 18:14
1  
@demas: No. Pure functions have to return the same result for the same input, which my_shuffle obviously doesn't, so it has to be in IO to indicate that it's non-determininstic. To use it with f, you can for example write f "some" <$> my_shuffle "some" "" which will again be in IO. The other option is to make it deterministic by taking the random number generator as an input, but then you have to worry about passing that around. –  hammar Oct 29 '12 at 18:49
    
@demas - you are using randomRIO which means you have to return an IO [Char]. –  user5402 Oct 29 '12 at 23:41

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