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Possible Duplicate:
Why doesn't Math.Round/Floor/Ceiling return long or int?

msdn defined this method:Returns the smallest integer greater than or equal to the specified double-precision floating-point number.

but in fact,it is

public static double Ceiling (
    double a
)

why not return int directly? what does microsoft think of ?

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marked as duplicate by TJHeuvel, leppie, starblue, Wladimir Palant, UncleZeiv Sep 22 '11 at 11:17

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.

up vote 36 down vote accepted

It's because the range of a double (±5.0 × 10−324 to ±1.7 × 10308) is much greater than the range of an int (-2,147,483,648 to 2,147,483,647). If the return type were int many possible inputs would fail. For example Math.Ceiling might be forced to throw an OverflowException in a checked context, or it might even return an incorrect result in an unchecked context. This is undesirable behaviour.

Also some special values such as NaN and PositiveInfinity can be returned by this method. This is only possible if the return type is double.

If you believe that the result will fit into an int, you can add an explicit cast:

int result = (int)Math.Ceiling(a);
share|improve this answer
    
And of course, if you do an explicit cast like that example, if the value doesn't fit, the runtime will throw a fit (and you get the exception to deal with). – Michael Kjörling Sep 22 '11 at 9:34
    
It's silly really: doubles can only reliably store ~7-8 significant figures anyway, so you wouldn't be able to Round anything higher than 2147483648. – Chris Burt-Brown Sep 22 '11 at 10:49
1  
@ChrisBurt-Brown: A double can hold every multiple of one-half up to 2^52, which is considerably larger than the 2^31 range of Int32 (but smaller than the 2^63 range of an Int64). – supercat Jul 6 '14 at 20:30

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