Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Lets say I have a value of 3.4679 and want 3.46, how can I truncate to two decimal places that without rounding up?

I have tried the following but all three give me 3.47:

void Main()
{
    Console.Write(Math.Round(3.4679, 2,MidpointRounding.ToEven));
    Console.Write(Math.Round(3.4679, 2,MidpointRounding.AwayFromZero));
    Console.Write(Math.Round(3.4679, 2));
}

This returns 3.46, but just seems dirty some how:

void Main()
{
    Console.Write(Math.Round(3.46799999999 -.005 , 2));
}
share|improve this question

7 Answers 7

up vote 41 down vote accepted
value = Math.Truncate(100 * value) / 100;

Beware that fractions like these cannot be accurately represented in floating point.

share|improve this answer
7  
Use decimal for your values and this answer will work. It is unlikely to always work in any floating point representation. –  driis Jun 29 '10 at 18:39
    
Perfect, Thanks. –  Neil Jun 29 '10 at 18:49
1  
That makes me wonder whether it should be possible to specify rounding direction in floating point literals. Hmmmm. –  Steve314 Jun 29 '10 at 18:53

It would be more useful to have a full function for real-world usage of truncating a decimal in C#. This could be converted to a Decimal extension method pretty easy if you wanted:

public decimal TruncateDecimal(decimal value, int precision)
{
    decimal step = (decimal)Math.Pow(10, precision);
    int tmp = (int)Math.Truncate(step * value);
    return tmp / step;
}

If you need VB.NET try this:

Function TruncateDecimal(value As Decimal, precision As Integer) As Decimal
    Dim stepper As Decimal = Math.Pow(10, precision)
    Dim tmp As Integer = Math.Truncate(stepper * value)
    Return tmp / stepper
End Function

Then use it like so:

decimal result = TruncateDecimal(0.275, 2);

or

Dim result As Decimal = TruncateDecimal(0.275, 2)
share|improve this answer

One issue with the other examples is they multiply the input value before dividing it. There is an edge case here that you can overflow decimal by multiplying first, an edge case, but something I have come across. It's safer to deal with the fractional part separately as follows:

    public static decimal TruncateDecimal(this decimal value, int decimalPlaces)
    {
        decimal integralValue = Math.Truncate(value);

        decimal fraction = value - integralValue;

        decimal factor = (decimal)Math.Pow(10, decimalPlaces);

        decimal truncatedFraction = Math.Truncate(fraction * factor) / factor;

        decimal result = integralValue + truncatedFraction;

        return result;
    }
share|improve this answer
    
I know this is old but I noticed and issue with this. The factor you have here is an int and so if you are truncating to a large number of decimal places (say 25) it will cause the end result to have precision error. I fixed it by changing the factor type to decimal. –  TheKingDave Aug 19 '13 at 14:34
    
@TheKingDave: probably it's irrelevant but as factor cannot have decimals should be better to model it as long right? –  SoMoS Sep 23 '13 at 9:09
    
@SoMoS For me Decimal worked better because it gave me the highest storage values for factor. It still has a limitation but it is big enough for my application. Long on the other hand wasn't able to store large enough numbers for my application. For example if you do a Truncate(25) with long then there will be some inaccuracy. –  TheKingDave Sep 23 '13 at 9:29
    
Updated to allow truncation to a greater number of places as per @TheKingDave suggestion, thanks. –  Tim Lloyd Sep 23 '13 at 14:58

would this work for you?

Console.Write(((int)(3.4679999999*100))/100.0);
share|improve this answer

Would ((long)(3.4679 * 100)) / 100.0 give what you want?

share|improve this answer

If you don't worry too much about performance and your end result can be a string, the following approach will be resilient to floating precision issues:

string Truncate(double value, int precision)
{
    if (precision < 0)
    {
        throw new ArgumentOutOfRangeException("Precision cannot be less than zero");
    }

    string result = value.ToString();

    int dot = result.IndexOf('.');
    if (dot < 0)
    {
        return result;
    }

    int newLength = dot + precision + 1;

    if (newLength == dot + 1)
    {
        newLength--;
    }

    if (newLength > result.Length)
    {
        newLength = result.Length;
    }

    return result.Substring(0, newLength);
}
share|improve this answer
3  
Actually, hardcoding '.' is not a good idea, better use System.Globalization.CultureInfo.CurrentCulture.NumberFormat.NumberDecimalSepara‌​tor[0] –  David Airapetyan Aug 5 '13 at 19:48

Use the modulus operator:

var fourPlaces = 0.5485M;
var twoPlaces = fourPlaces - (fourPlaces % 0.01M);

result: 0.54

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.