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The code bellow works pretty well for input like this:

*Main> eval 'y' (21 :: Int)
42
*Main> eval 'x' 'a'
42
*Main> eval (21 :: Int) (21 :: Int)
42
*Main> eval (42 :: Int) 'a'
42

The general problem behind this is that I want to add two things. Adding to Ints is not hard to realize (it's already built in). But I've a given function (here geti) which resolves Chars to Ints and my add-function now should add two Ints as well as Int combined with Char (in every permutation). The Chars are converted by the geti function to Ints so that they can be added. I've thought about an other solution which might be:

eval (geti 'a') (42 :: Int)

but that is not possible for me.

So in general my question is: is there any way to make this simpler or implement it more elegant?

This is the code:

-- A static function only used to resolve some demo data
geti :: Char -> Int
geti c | c == 'x' = 42
       | c == 'y' = 21
       | c == 'z' = 10
       | otherwise = 0


-- Here comes the problem:
class Eval t1 t2 where 
    eval :: t1 -> t2 -> Int

instance Eval Int Int where
    eval a b = a + b

instance Eval Int Char where
    eval a c = a + (geti c)

instance Eval Char Int where
    eval c b = (geti c) + b

instance Eval Char Char where
    eval c1 c2 = (geti c1) + (geti c2)

P.S.: I've also tried to combine the solution from here with an "generic" (yes, it's Java language, but I'm new to Haskell ... sry) function but that didn't work ...

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5  
You have a problem, and you are trying to solve it in Haskell in the same way that you would solve it in Java. I don't think this will work. I think you should post your actual problem instead of the bits that you don't know how to do in Haskell. I think this is an XY problem. –  dave4420 Jan 13 '13 at 17:16
1  
"but that is not possible for me" ― why? What's wrong with it? –  n.m. Jan 13 '13 at 17:33
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1 Answer

up vote 6 down vote accepted

I think it would be more straight forward to build a type class for "can be converted to Int" and use that to implement eval:

class Intable a where
   intify :: a -> Int

instance Intable Int where
   intify = id

instance Intable Char where
   intify = geti


eval :: (Intable a, Intable b) => a -> b -> Int
eval a b = intify a + intify b
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That's exactly the solution I've looking for. Thx! Calls like eval 'x' (0 :: Int) work perfectly. Isn't it possible to get eval 'x' 0 working? ghci says ... Ambiguous type variable b0' in the constraints: ...` –  mythbu Jan 13 '13 at 17:44
1  
@mythbu: You probably have to add an instance for Integer, like intify = fromInteger –  sth Jan 13 '13 at 17:46
    
Works for me! Thank you! –  mythbu Jan 13 '13 at 17:59
    
@mythbu It is probably better to use the built in Enum class, from the prelude, and its fromEnum :: a -> Int method, since it seems to fit your design criteria, defined for many types already and will more easily recognized by other Haskell programmers. –  Davorak Jan 13 '13 at 19:08
1  
@Davorak I was going to suggest that too, but it seems to have a different behavior than the one he's asking for on Chars. –  Daniel Wagner Jan 13 '13 at 19:41
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