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How can I get a count of the total number of digits of a number in C#? For example, the number 887979789 has 9 digits.

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5  
try using .Length if it doesn't work convert it to a string first – Breezer Dec 19 '10 at 16:40

12 Answers 12

up vote 76 down vote accepted

Without converting to a string you could try:

Math.Ceiling(Math.Log10(n));

Correction following ysap's comment:

Math.Floor(Math.Log10(n) + 1);
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3  
I'm afraid ceil(log10(10)) = ceil(1) = 1, and not 2 as it should be for this question! – ysap Dec 19 '10 at 18:08
2  
Thanks, it's a nice method. Though it's not any faster than int count = 0; do { count++; } while ((i /= 10) >= 1); :( – Puterdo Borato May 12 '12 at 18:25
2  
If your number range includes negatives, you'll need to use Math.Floor(Math.Log10(Math.Abs(n)) + 1); – mrcrowl Jun 6 '12 at 3:35
5  
hmm fails when n = 0, -1, 0.1 etc.. – nawfal Dec 14 '12 at 13:45
1  
@Puterdo Borato: my performance test actually showed that your method is faster when the number of digits are < 5. Pass that, Steve's Math.floor is faster. – stack247 Apr 7 '15 at 22:56

Try This:

myint.ToString().Length

Does that work ?

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Hand't realized this was homework...oh well! Hopefully you can see why that works! – Andiih Dec 19 '10 at 16:41
    
this work,thanks – Arash Dec 19 '10 at 16:47
10  
It's worth pointing out that you'll likely run into problems with this method if you're dealing with negative numbers. (And obviously decimals, but the example uses an int, so I assume that's not an issue.) – Cody Gray Dec 19 '10 at 16:52

Not directly C#, but the formula is: n = floor(log10(x)+1)

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1  
log10(0) is -infinity – Klaus Jun 3 '14 at 5:29
1  
@Klaus - log10(0) is actually undefined. But, you are correct in that it is a special case that need to be tested for and treated separately. This is also true for any non positive integer number. See comments to Steve's answer. – ysap Jun 3 '14 at 11:50
static void Main(string[] args)
{
    long blah = 20948230498204;
    Console.WriteLine(blah.ToString().Length);
}
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Answers already here work for unsigned integers, but I have not found good solutions for getting number of digits from decimals and doubles.

public static int Length(double number)
{
    number = Math.Abs(number);
    int length = 1;
    while ((number /= 10) >= 1)
        length++;
    return length;
}
//number of digits in 0 = 1,
//number of digits in 22.1 = 2,
//number of digits in -23 = 2

You may change input type from double to decimal if precision matters, but decimal has a limit too.

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dividing a number by 10 will give you the left most digit then doing a mod 10 on the number gives the number without the first digit and repeat that till you have all the digits

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int i = 855865264;
int NumLen = i.ToString().Length;
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1  
fails for negative int, and for numbers like 23.00. Do a string.TrimStart('-') better – nawfal Dec 14 '12 at 10:19

Using recursion (sometimes asked on interviews)

public int CountDigits(int number)
{
    // In case of negative numbers
    number = Math.Abs(number);

    if (number >= 10)
        return CountDigits(number / 10) + 1;
    return 1;
 }
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If its only for validating you could do: 887979789 > 99999999

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The answer of Steve is correct, but it doesn't work for integers less than 1.

Here an updated version that does work for negatives:

int digits = n == 0 ? 1 : Math.Floor(Math.Log10(Math.Abs(n)) + 1)
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convert into string and then you can count tatal no of digit by .length method. Like:

String numberString = "855865264".toString();
int NumLen = numberString .Length;
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It depends what exactly you want to do with digiths. You can iterate by number digits starting from the last one to first one this way:

int tmp=number;
int lastDigith = 0;
do
{
    lastDigith = tmp/10;
    doSomethingWithDigith(lastDigith);
    tmp %= 10;
}while(tmp!=0);
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