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I have

data Dictionary a = Empty
                  | Branch (a, Bool, Dictionary a) (Dictionary a)
                  deriving (Ord, Eq)

instance Show (Dictionary a) where show = showDict

showDict (Branch (val, e, dict) dict2) = "My dict is : " ++ val 

I know it is definitely wrong but I could not find how to write this one. In showDict function type of val is a but expected type is [Char].

Thanks in advance.

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2 Answers 2

up vote 5 down vote accepted

To turn val into a string, show it:

showDict (Branch (val, e, dict) dict2) = "My dict is : " ++ show val

And don't forget the type constraints on showDict:

instance Show a => Show (Dictionary a) where show = showDict
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I did but now the problem is No instance for (Show a) –  Batuhan Tasdoven Apr 10 '12 at 9:06
4  
If val is not "showable" yet, add similar instance for it. –  ДМИТРИЙ МАЛИКОВ Apr 10 '12 at 10:38

instance (Show a) => Show (Dictionary a) where show = showDict

You have to tell that a belongs to showable type class otherwise you can not use show on val .

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