Sign up ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

Possible Duplicate:
Haskell Convert Integer to Int?

I have a function to calculate a birthYear

birthYear :: Int -> Int
birthYear age = currentYear - age

currentYear :: Integral -> Integral
currentYear year = year

How do I cast the Integral type to an Int so birthYear can work?
FYI, age is fixed as an Int as it is coming from IO and I am using the read (age) function to convert from String to Int.

share|improve this question

marked as duplicate by John L, casperOne Nov 29 '11 at 2:44

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

@nponecoop It's a good match on title, but I suspect the underlying perplexity may be different. –  pigworker Nov 29 '11 at 1:59

2 Answers 2

First, you cannot use Integral (which is a type class) as a type. You probably meant:

birthYear :: Int -> Int
birthYear age = currentYear - age

currentYear :: Integral a => a
currentYear = 2011

And this just works. Or if you want to have:

currentYear :: Integral a => a -> a
currentYear year = year

Then this also works:

birthYear :: Int -> Int
birthYear age = (currentYear 2011) - age

Int is an instance of Integral so you do not have to "cast" anything.

share|improve this answer
I can't really do that as year is coming from another function which generates the year as type Integral. That is being passed into the currentYear function and then to the birthYear function to calculate the age. As a result none of those ideas work. –  Stuart Paton Nov 28 '11 at 22:46
Maybe you should then post your real code? Because above definition of birthYear is simply wrong. You subtract age from a function. –  Mitar Nov 28 '11 at 23:07

Have a read of this:

From this:

Integral types are ones which may only contain whole numbers and not fractions. Int (fixed-size machine integers) and Integer (arbitrary precision integers) are the two Integral types in the standard Haskell libraries. The workhorse for converting types is fromIntegral, which will convert any integral type into any numeric type (e.g.Rational, Double, Int16...):

fromIntegral :: (Num b, Integral a) => a -> b
share|improve this answer
See I tried using the fromIntegral function so it becomes: birthYear age = fromIntegral (currentYear) - age but I am getting the error: No instance for (Integral (Integer -> Integer)) arising from a use of fromIntegral at ... –  Stuart Paton Nov 28 '11 at 22:39
@StuartPaton: Because currentYear is a function, not an Integral value. Use fromIntegral on the result of applying currentYear, or compose them. –  ephemient Nov 29 '11 at 1:21
@StuartPaton The error message suggests (to me, anyway) that you may be confusing the Integer type (of arbitrarily large numbers) and the Integral type class (which collects representations of integers, bounded or otherwise). You might want to think about what birthYear needs as inputs in order to tell the year of birth. I mean, I used to be 17, but if you don't know what year I was 17 in, then you can't figure out when I was born. –  pigworker Nov 29 '11 at 1:57

Not the answer you're looking for? Browse other questions tagged or ask your own question.