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Given the following function signature:

concatThings :: (Show a) => a -> String -> String
concatThings any str2 = str2 ++ (show any)

If run concatThings "there" "hi", then result will be: "hi\"there\"", but what I want is just "hithere".

How can I still get "hithere" with this function signature?

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You don't want to show str1; str is already a string, so just do str2 ++ str1. – Tom Crockett Jul 22 '11 at 22:21
    
I know, but I have some other cases where the first argument is not type of String – user618815 Jul 22 '11 at 22:26
up vote 3 down vote accepted

You could wrap the string in a new type and provide a simple Show instance for it:

newtype PartialString = PartialString String

instance Show PartialString where
    show PartialString str = str

and then pass in a wrapped string to the concatThings function:

let pstr1 = PartialString str1 in concatThings pstr1 str2
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With this function signature, you can't. You must either get rid of the show, reducing the function to

concatStrs :: String -> String -> String
concatStrs = flip (++)

or introduce a new type class to replace Show.

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