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How do I divide two integers to get a double?

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4  
Assuming this was asked in an interview - integer division always results in integer. You must use a type cast like the ones shown below. –  Sesh Mar 19 '09 at 4:23

4 Answers 4

up vote 130 down vote accepted

You want to cast the numbers:

    double num3 = (double)num1/(double)num2;

Note: If any of the arguments in C# are doubles, a double divide is used which results in a double. So, the following would work too:

    double num3 = (double)num1/num2;

For more information see:

Dot Net Perls

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Don't know if this is the same in C#, but C only requires you to cast the first - it'll automatically make double/int a double. –  paxdiablo Mar 19 '09 at 4:34
1  
@Pax, If any of the args in C or C# are a double, a double divide is used (resulting in a double). –  strager Mar 19 '09 at 5:18
    
Be careful not to do this:- double num3 = (double)(num1/num2);. This will just give you a double representation of the result of the integer division! –  The Lonely Coder Oct 9 at 13:57
    
Link is broken, new link is this: dotnetperls.com/numeric-casts –  Ojen Nov 20 at 15:51

Complementing the @NoahD's answer

To have a greater precision you can cast to decimal:

(decimal)100/863
//0.1158748551564310544611819235

Or:

Decimal.Divide(100, 863)
//0.1158748551564310544611819235

Double has a precision of 64 bits while decimal has 128

(double)100/863
//0.11587485515643106
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cast the integers to doubles.

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Convert one of them to a double first. This form works in many languages:

 real_result = (int_numerator + 0.0) / int_denominator
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