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In C#, why don't the rounding math functions Floor, Ceiling and Round return an int? Considering the result of the function will always be an integer, why does it return a float, double or decimal?

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1  
Round is overloaded, and the return types have to match for starters ;p –  leppie Feb 8 '13 at 5:17
11  
Imagine you call Math.Round(1E30) and it returns an int, what will happen? –  Alvin Wong Feb 8 '13 at 5:18
    
So you're saying it's the BCL's job to determine what you want the result to be? –  Simon Whitehead Feb 8 '13 at 5:18
    
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It makes sense for Math.Round() to return the same type as its argument. A better question would be why there aren't functions for Math.RoundToInt32 or Math.RoundToInt64, Math.FloorToInt32, and Math.FloorToInt64. –  supercat Aug 16 '13 at 21:34

3 Answers 3

up vote 22 down vote accepted

double has the range of ±5.0 × 10−324 to ±1.7 × 10308 and long has the range of –9,223,372,036,854,775,808 to 9,223,372,036,854,775,807. Unfortunately not all integral floating point values can be represented by an integer.

For example, 1e19 has already exceeded the range of a 64-bit signed integer.

(long)Math.Round(1e19) == -9223372036854775808L // WTF?

While it is true that the single-argument overloads Math.Round(double) and Math.Round(decimal) will always return an integral value, these overloads still cannot return an integer value type.

If you know that the value passed to the function will return a value representable by an integer value type, you can cast it yourself. The library won't do that because it needs to consider the general case.

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Note, however, that there are long integers which are not representable as doubles: (double)100000000000000001L == 1e17 (and 1e17 == 1e17+1). –  Antal S-Z Feb 9 '13 at 2:55
    
@AntalS-Z yep. For greater preceision, using decimal type is better. –  Alvin Wong Feb 9 '13 at 3:18

Considering the result of the function will always be an integer,

No it won't be. You can even specify number of digits with Math.Round Method (Double, Int32)

digits Type:
System.Int32
The number of fractional digits in the return value.

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+1 Indeed, since not all times we need to round to an int –  V4Vendetta Feb 8 '13 at 5:42

This is done to include numbers larger than what are included in the range of an int. So Math.Floor will return a double which could be casted to int or long based on the size and developer. If you tried Math.Floor outside range of int, it'd have failed if Math.Floor returned an int, but it doesn't, it returns a double which you can cast to long.

     double d = 4147483647.5678;
     long a = (long)Math.Floor(d);
     int b = (int)Math.Floor(d);
     Console.WriteLine(a);
     Console.WriteLine(b);

Note that on casting to int, b was pushed back to MIN int, since int can't accomodate it.

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