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How can i truncate the leading digit of double value in C#,I have tried Math.Round(doublevalue,2) but not giving the require result. and i didn't find any other method in Math class.

For example i have value 12.123456789 and i only need 12.12.

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3  
What should be the result when you give 12.12890? –  rahul Sep 15 '09 at 12:27
    
What phoenix is asking is do you want to round it to 12.13, or just truncate it to 12.12... ? –  awe Sep 15 '09 at 12:32
    
Yes @awe. Thats right –  rahul Sep 15 '09 at 12:33
    
i want just truncate all digit after 2. –  Firoz Sep 15 '09 at 12:35
    
Then Math.Round won't be an option –  rahul Sep 15 '09 at 12:36

10 Answers 10

up vote 19 down vote accepted

EDIT: It's been pointed out that these approaches round the value instead of truncating. It's hard to genuinely truncate a double value because it's not really in the right base... but truncating a decimal value is more feasible.

You should use an appropriate format string, either custom or standard, e.g.

string x = d.ToString("0.00");

or

string x = d.ToString("F2");

It's worth being aware that a double value itself doesn't "know" how many decimal places it has. It's only when you convert it to a string that it really makes sense to do so. Using Math.Round will get the closest double value to x.xx00000 (if you see what I mean) but it almost certainly won't be the exact value x.xx00000 due to the way binary floating point types work.

If you need this for anything other than string formatting, you should consider using decimal instead. What does the value actually represent?

I have articles on binary floating point and decimal floating point in .NET which you may find useful.

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Thanks for your answer, i dont want to convert value in string, then back to double again, i have to store value like. var newVal=Math.Round(oldValue,2) or some other function. –  Firoz Sep 15 '09 at 12:33
3  
@Firoz: to string and back to double will not help you anyway: if double can't represent "12.34" exactly, then you will get extra decimals. It is simple not possible to store a double with only two decimals. –  Hans Kesting Sep 15 '09 at 12:40
    
@Firoz: Hans is absolutely right. I'm adding a couple of links in my answer... –  Jon Skeet Sep 15 '09 at 12:45
2  
Wow, by sheer chance this is the second accepted answer by Jon Skeet in the last hour on here that has completely failed me. This rounds, and the OP asked to truncate! So 3.55555555 becomes 3.56. And I even up-voted this stupid answer and now I can't take it back! This site is starting to suck - people get up-voted just because of their existing reputation (like "oh it's Jon Skeet so it must be right!"). –  Josh Stodola May 10 '10 at 13:43
1  
@Jon: Don't worry, according to the upvote count, you're not the only one who didn't do their homework. ;) –  adamjford Mar 23 '11 at 21:30

What have you tried? It works as expected for me:

double original = 12.123456789;

double truncated = Math.Truncate(original * 100) / 100;

Console.WriteLine(truncated);    // displays 12.12
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I'm sure there's something more .netty out there but why not just:-

double truncVal = Math.Truncate(val * 100) / 100;
double remainder = val-truncVal;
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The "decimal" type might offer less risk of a floating point rounding error. –  user159335 Sep 15 '09 at 12:54

This could work (although not tested):

public double RoundDown(this double value, int digits)
{
     int factor = Math.Pow(10,digits);

     return Math.Truncate(value * factor) / factor;
}

Then you simply use it like this:

double rounded = number.RoundDown(2);
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This code....

double x = 12.123456789;
Console.WriteLine(x);
x = Math.Round(x, 2);
Console.WriteLine(x);

Returns this....

12.123456789
12.12

What is your desired result that is different?

If you want to keep the value as a double, and just strip of any digits after the second decimal place and not actually round the number then you can simply subtract 0.005 from your number so that round will then work. For example.

double x = 98.7654321;
Console.WriteLine(x);
double y = Math.Round(x - 0.005, 2);
Console.WriteLine(y);

Produces this...

98.7654321
98.76
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if x = 12.125 then he will get 12.13 which seems to not be what he is wanting. –  Anthony Potts Sep 15 '09 at 12:42
    
edited to add a round down option –  Robin Day Sep 15 '09 at 12:45
double original = 12.123456789;  

double truncated = Truncate(original, 2);  

Console.WriteLine(truncated.ToString());
// or 
// Console.WriteLine(truncated.ToString("0.00"));
// or 
// Console.WriteLine(Truncate(original, 2).ToString("0.00"));


public static double Truncate(double value, int precision)
{
    return Math.Truncate(value * Math.Pow(10, precision)) / Math.Pow(10, precision);
}
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It would be better if you explain the code as well. –  Coding Mash Nov 12 '12 at 4:33

object number = 12.123345534;
string.Format({"0:00"},number.ToString());

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If you are looking to have two points after the decimal without rounding the number, the following should work

string doubleString = doublevalue.ToString("0.0000"); //To ensure we have a sufficiently lengthed string to avoid index issues
Console.Writeline(doubleString
             .Substring(0, (doubleString.IndexOf(".") +1) +2));

The second parameter of substring is the count, and IndexOf returns to zero-based index, so we have to add one to that before we add the 2 decimal values.

This answer is assuming that the value should NOT be rounded

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How about:

double num = 12.12890;
double truncatedNum = ((int)(num * 100))/100.00;
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For vb.net use this extension:

Imports System.Runtime.CompilerServices

Module DoubleExtensions

    <Extension()>
    Public Function Truncate(dValue As Double, digits As Integer)

        Dim factor As Integer
        factor = Math.Pow(10, digits)

        Return Math.Truncate(dValue * factor) / factor

    End Function
End Module
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