22

Is there a simple function to round a Double or Float to a specified number of digits? I've searched here and on Hoogle (for (Fractional a) => Int -> a -> a), but haven't found anything.

8
  • A float or double output doesn't make much sense... Sep 16, 2012 at 20:37
  • 1
    I'd suggest something like: (fromInteger $ round $ f * (10^n)) / (10.0^^n)
    – aland
    Sep 16, 2012 at 20:49
  • @KarolyHorvath: Is there a better output type? I don't know what else, say, 3.1415 could be represented as.
    – amindfv
    Sep 16, 2012 at 20:52
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    @amindfv (re: "is there a better output type?") There's a few fixed-point number types on Hackage, or you could just use a poor-man's fixed-point represented as an Integer. Sep 17, 2012 at 0:50
  • 3
    Double and Float are always binary fractions. If someone tells you that you can round them to a specified number of decimal digits, they are lying. Sep 17, 2012 at 2:41

3 Answers 3

39

Not sure whether any standard function exists, but you can do it this way:

 (fromInteger $ round $ f * (10^n)) / (10.0^^n)
1
  • 1
    Looks like noone's jumping in with a standard-library version, so I'm going to mark this as accepted -- works great; thanks.
    – amindfv
    Sep 17, 2012 at 1:43
15

It depends on what you are going to do with the rounded number.

If you want to use it in calculations, you should use Data.Decimal from Decimal library.

If you want just to format the number nicely, you should use Text.Printf from the standard library (base package).

-1
λ: ((/100) $ fromIntegral $ round (0.006 * 100)) == 0.006
λ: False

λ: ((/100) $ fromIntegral $ round (0.06 * 100)) == 0.06
λ: True

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