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How to, in C# round any value to 10 interval? For example, if I have 11, I want it to return 10, if I have 136, then I want it to return 140.

I can easily do it by hand

return ((int)(number / 10)) * 10;

But I am looking for an builtin algorithm to do this job, something like Math.Round(). The reason why I won't want to do by hand is that I don't want to write same or similar piece of code all over my projects, even for something as simple as the above.

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4  
If it works, why do you need something else? Just wrap it up in an extension method or common library and run with it –  Runscope API Tools Nov 8 '08 at 6:09
    
((number + 5)/10) * 10 -- good reason to find a built-in. :-) –  Adam Liss Nov 8 '08 at 6:10
1  
I noticed there's confusion with this question, and you probably should edit the title or posting to make it more clear. In particular, do you want to always round up, or round to the nearest 10? –  Raymond Martineau Nov 8 '08 at 6:28
1  
Raymond, based on the actual content of the question, rather than the title, it's obvious that it's about rounding to the nearest 10. But I've noticed that ambiguity, too, and agree the title should be altered to fit. –  Chris Charabaruk Nov 8 '08 at 6:59
1  
@Adam: What is wrong with wrapping a simple and straightforward line of code in a method? Doesn't look tricky or confusing to me. –  Ed S. Nov 24 '09 at 7:23

6 Answers 6

up vote 49 down vote accepted

There is no built-in function in the class library that will do this. The closest is System.Math.Round() which is only for rounding numbers of types Decimal and Double to the nearest integer value. However, you can wrap your statement up in a extension method, if you are working with .NET 3.5, which will allow you to use the function much more cleanly.

public static class ExtensionMethods
{
    public static int RoundOff (this int i)
    {
        return ((int)Math.Round(i / 10.0)) * 10;
    }
}

int roundedNumber = 236.RoundOff(); // returns 240
int roundedNumber2 = 11.RoundOff(); // returns 10

If you are programming against an older version of the .NET framework, just remove the "this" from the RoundOff function, and call the function like so:

int roundedNumber = ExtensionMethods.RoundOff(236); // returns 240
int roundedNumber2 = ExtensionMethods.RoundOff(11); // returns 10
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There's a bunch of problems with this code, namely it doesn't compile (missing return type) and it doesn't round to the nearest. In your example, it returns 230 and 10. –  Dave Van den Eynde Mar 3 '09 at 8:43
    
Fixed, try it now. –  Chris Charabaruk Mar 3 '09 at 9:38
    
It still won't return 240, because you're rounding down. –  Dave Van den Eynde Mar 3 '09 at 11:56
1  
I said I fixed it, didn't I? –  Chris Charabaruk Mar 3 '09 at 21:47
1  
Dan Diplo: The very next sentence, where OP explains what he wants, describes rounding off. Read the whole question, not just the first sentence of it. –  Chris Charabaruk Mar 14 '12 at 19:36

Rounding a float to an integer is similar to (int)(x+0.5), as opposed to simply casting x - if you want a multiple of 10, you can easily adapt that.

If you just want to do integer math and are rounding it to ten, try (x+10/2)/10*10.

Edit: I noticed that this response doesn't meet the original's author's request, and is also a biased form of rounding that I prefer not to do. However, another accepted response already stated Math.round(), a much better solution.

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I have to say that, even though this is the trick I used in past a lot, Math.Round looks a lot cleaner. –  Dave Van den Eynde Mar 3 '09 at 16:02

Use Math.Ceiling to always round up.

int number = 236;
number = (int)(Math.Ceiling(number / 10.0d) * 10);

Modulus(%) gets the remainder, so you get:

// number = 236 + 10 - 6

Put that into an extension method

public static int roundupbyten(this int i){
    // return i + (10 - i % 10); <-- logic error. Oops!
    return (int)(Math.Ceiling(i / 10.0d)*10); // fixed
}

// call like so:
int number = 236.roundupbyten();

above edited: I should've gone with my first instinct to use Math.Ceiling

I blogged about this when calculating UPC check digits.

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Try it with 240. What do you get then? Or for that matter, 11. –  Chris Charabaruk Nov 8 '08 at 6:54
    
for the archives: edited this post @ 7:30 the same day –  Armstrongest Apr 5 '10 at 22:22

This might be a little too late but I guess this might be of good help someday...

I have tried this:

public int RoundOff(int number, int interval){
    int remainder = number % interval;
    number += (remainder < interval / 2) ? -remainder : (interval - remainder);
    return number;
}

To use:

int number = 11;
int roundednumber = RoundOff(number, 10);

This way, you have the option whether if the half of the interval will be rounded up or rounded down. =)

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I prefer to not bring in the Math library nor go to floating point so my suggestion is just do integer arithmetic like below where I round up to the next 1K. Wrap it in a method or lambda snippet or something if you don't want to repeat.

int MyRoundedUp1024Int = ((lSomeInteger + 1023) / 1024) * 1024;

I have not run performance tests on this vs. other the ways but I'd bet it is the fastest way to do this save maybe a shifting and rotating of bits version of this.

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Old question but here is a way to do what has been asked plus I extended it to be able to round any number to the number of sig figs you want.

    private double Rounding(double d, int digits)
    {
        int neg = 1;
        if (d < 0)
        {
            d = d * (-1);
            neg = -1;
        }

        int n = 0;
        if (d > 1)
        {
            while (d > 1)
            {
                d = d / 10;
                n++;
            }
            d = Math.Round(d * Math.Pow(10, digits));
            d = d * Math.Pow(10, n - digits);
        }
        else
        {
            while (d < 0.1)
            {
                d = d * 10;
                n++;
            }
            d = Math.Round(d * Math.Pow(10, digits));
            d = d / Math.Pow(10, n + digits);
        }

        return d*neg;
    }


   private void testing()
   {
       double a = Rounding(1230435.34553,3);
       double b = Rounding(0.004567023523,4);
       double c = Rounding(-89032.5325,2);
       double d = Rounding(-0.123409,4);
       double e = Rounding(0.503522,1);
       Console.Write(a.ToString() + "\n" + b.ToString() + "\n" + 
           c.ToString() + "\n" + d.ToString() + "\n" + e.ToString() + "\n");
   }
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