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I want to round the double value exactly currently it giving me like...

val = 0.01618

Math.Round(val,2) 

0.02 (currently it's giving like this).

0.01 (I want like this).

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4 Answers 4

up vote 0 down vote accepted

You can use Math.Floor to get it to your prefered value and then use Math.Round to get it to 2 decimals, like this:

// Returns double that is rounded and floored
double GetRoundedFloorNumber(double number, int rounding)
{
    return ((Math.Floor(number * (Math.Pow(10, rounding))) / Math.Pow(10, rounding)));

}

So calling this function should return the right number:

Example code:

    static void Main(string[] args)
    {
        // Writes 0.016 to the screen
        Console.WriteLine(GetRoundedFloorNumber(0.01618, 3));
        Console.ReadLine();
    }

    static double GetRoundedFloorNumber(double number, int rounding)
    {
        return ((Math.Floor(number * (Math.Pow(10, rounding))) / Math.Pow(10, rounding)));

    }
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Thank you so much its working –  nag Aug 27 '12 at 9:21
    
No problem at all :) –  Joey Dewd Aug 27 '12 at 9:36
    
Hmm its not working when i gave rounding as 3 still i'm getting 0.01 only after gave rounding as 3 but it should display 0.016 –  nag Aug 28 '12 at 10:31
    
Are you sure you did everything right? I pasted the code (added one extra ')' though) in visual studio and everythings works just fine. –  Joey Dewd Aug 28 '12 at 10:40
    
yes i did every thing but it giving me same two digits like 0.01 –  nag Aug 29 '12 at 6:31

Math.Floor() is what you're looking for, I think. If you want to round to the two decimal signs, you could do Math.Floor(v*100)/100. I wonder why there's no overload of Floor that takes the number of decimal places.

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What you want is Math.Floor() or something similar (don't no c#, sorry). This would always round down. Math.Round() does it like described here.

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This will round down where you wanted it;

Math.Round(val - 0.005, 2) 
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