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I have a list areas :: [Double]. Now I want to filter this list for those which are actually integral values. I want to do something like this for my predicate:

isInteger :: Double -> Bool
isInteger x = abs (fromIntegral (floor x) - x) < delta
  where delta = 0.00001

However, I would guess there is a better way to do this. Is there a Haskell idiom for checking if a real value is an integer?

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@pst Umm...what do you mean? –  Code-Apprentice Jun 23 '12 at 23:03
    
@pst My usage of the word integral is correct: "5. Arithmetic. pertaining to or being an integer; not fractional." Of course, it can be confused with a second mathematical definition from calculus: "8. Mathematics. a. Also called Riemann integral. the numerical measure of the area bounded above by the graph of a given function, below by the x -axis, and on the sides by ordinates drawn at the endpoints of a specified interval;" (both definitions come from Dictionary.com) –  Code-Apprentice Jun 23 '12 at 23:18
    
Apologies, now I wonder what in heck I was looking up last week ... :( –  user166390 Jun 23 '12 at 23:34

1 Answer 1

up vote 7 down vote accepted

This looks fine and idiomatic to me, though you probably want to use round rather than floor. You could also consider using approxRational and checking that the denominator of the result is 1:

isInteger x = denominator (approxRational x 0.00001) == 1
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This looks a little more Haskell-like to me. Thanks! Also, I found a minor error in my original version. Since floor returns an Integral type, I had to add fromIntegral in order to do the subtraction. Finally, I agree that round would probably be better because something like 1.999999999 is basically 2. –  Code-Apprentice Jun 23 '12 at 23:09

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