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I have a problem similar to:

data Foo a = Foo { myInt :: Integer, myValue :: a } deriving Read

bar :: String -> Integer
bar = myInt . read

main = print $ bar stringWithFooOfa

i don't want to use something like read . (!!1) . words, if i don't need to.

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The problem is that bar doesn't have enough information to know how to read the string into a Foo a since it doesn't know what a is. Without knowing what a is, it doesn't know which instance of Read to use. If you know define bar to be bar str = (myInt foo, myValue foo) where foo = read str, then it'll compile just fine. Unfortunately, you can't create another function barInt = fst . bar because it'll just run into the same problem. I'd suggest staying away from functions like that, as convenient as they sound. – bheklilr Oct 20 '13 at 14:42
    
You're going to have to explicitly state what a is. Each a has a different parser and if a isn't readable than there isn't even a read instance for Foo. – jozefg Oct 20 '13 at 16:11

Add a type annotation to read. As commenters suggested, Haskell has no way of knowing what you're trying to read since you immediately turn it into an Int. To be more clear, consider this example:

data Foo a  = Foo { myInt  :: Integer, myValue  :: a } deriving Read
data Foo2 a = Foo { myInt2 :: Integer                } deriving Read

bar :: String -> Integer
bar = myInt . read

Now there are two very different behaviors for bar possible and it's hard to know which is correct.

To tell Haskell which one you want, use an inline annotation around read:

bar :: String -> Integer
bar = myInt . (read :: String -> Foo ())

Notice that I pick an a, too. Otherwise, we'll be in the same boat as above but just with a instead of Foo.

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