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In .NET what is the best way to find the length of an integer in characters if it was represented as a string?

e.g.

1 = 1 character
10 = 2 characters
99 = 2 characters
100 = 3 characters
1000 = 4 characters

The obvious answer is to convert the int to a string and get its length but I want the best performance possible without the overhead of creating a new string.

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9  
Always balance the free microseconds you are attempting to gain against the expensive reading time of the poor sucker (yourself, I guess) who has to read and debug that code later on. –  reinierpost Mar 24 '10 at 9:38
4  
@reinierpost it's not a micro-optimization if the said method is run, like, a billion times in a loop called by thousands of different threads. –  Paulo Santos Mar 24 '10 at 9:47
    
Duplicate of this one? stackoverflow.com/questions/679602/… –  Stefan Steinegger Mar 24 '10 at 10:04
    
If the performance of conversion to base 10 is an issue, then you should consider direct decimal representations, such as BCD, for your integers. This conversion penalty is one reason why calculators and early CPUs had BCD arithemetic. –  GregS Mar 24 '10 at 13:47
    
@GregS - I suspect that it's not the conversion itself that's the problem, but rather filling up the string heap with a lot of useless strings. Based on the way the GC works, however, I think that this also is not a problem in practice. –  Jeffrey L Whitledge Mar 24 '10 at 16:42

6 Answers 6

up vote 31 down vote accepted

you can use logartihms to calculate the length of the int:

public static int IntLength(int i) {
  if (i <= 0) throw new ArgumentOutOfRangeException();

  return (int)Math.Floor(Math.Log10(i)) + 1;
}

the test passes:

[Test]
public void TestIntLength() {
  Assert.AreEqual(1, IntLength(1));
  Assert.AreEqual(1, IntLength(9));
  Assert.AreEqual(2, IntLength(10));
  Assert.AreEqual(2, IntLength(99));
  Assert.AreEqual(3, IntLength(100));
  Assert.AreEqual(3, IntLength(999));
  Assert.AreEqual(4, IntLength(1000));
  Assert.AreEqual(10, IntLength(int.MaxValue));
}

a quick test has shown that the log-method is 4 times faster than the int.ToString().Length method..

the method shown by GvS below (using if-statements) is another 6 times (!) faster than the log method:

public static int IntLengthIf(int i) {
  if (i < 10) return 1;
  if (i < 100) return 2;
  if (i < 1000) return 3;
  if (i < 10000) return 4;
  if (i < 100000) return 5;
  if (i < 1000000) return 6;
  if (i < 10000000) return 7;
  if (i < 100000000) return 8;
  if (i < 1000000000) return 9;
  throw new ArgumentOutOfRangeException();
}

here are the exact timings for the numbers 1 to 10000000:

IntLengthToString: 4205ms
IntLengthLog10: 1122ms
IntLengthIf: 201ms
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1  
To cope with negative numbers, you could get the absolute value of i and then add 1 to the result of the function. –  Matt Ellen Mar 24 '10 at 10:02
    
If you have a quick test for this already, you should compare it to GvS's solution. That should be interesting. –  Jeffrey L Whitledge Mar 24 '10 at 16:48
    
i have updated my answer. GvS's method is much faster. –  stmax Mar 24 '10 at 17:15

If input is in range 0-10000

if (i < 10) return 1;
if (i < 100) return 2;
if (i < 1000) return 3;
if (i < 10000) return 4;
// etc
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1  
This is the simplest solution, and it reads well. It probably can't compete with an optimized floating point logarithm. –  GregS Mar 24 '10 at 13:51
2  
I am not going to bother doing the test, but I bet this solution is faster than the logarithm one. Logs take quite a few clock cycles to compute. –  Jeffrey L Whitledge Mar 24 '10 at 16:46
2  
it's 6x faster than my method using logs. –  stmax Mar 24 '10 at 17:16

You could use something like this:

        int integer = 100;

        int charachtersCount = 0;
        while (integer > 0)
        {
            integer = integer/10;
            charachtersCount++;
        }

But do you really need to optimize this? I would actually prefer using string (looks much better):

integer.ToString().Length
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Nice solution, but as you said I would doubt that the performance is good. I guess that string conversion is best. –  Simon Linder Mar 24 '10 at 9:30

If you need to deal with negative numbers also, you can take stmax solution with a spin:

public static int IntLength(int i) { 
  if (i == 0) return 1; // no log10(0)
  int n = (i < 0) ? 2 : 1;
  i = (i < 0) ? -i : i;

  return (int)Math.Floor(Math.Log10(i)) + n; 
} 
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You can do:

int ndig = 1;
if (n < 0){n = -n; ndig++;}
if (n >= 100000000){n /= 100000000; ndig += 8;}
if (n >=     10000){n /=     10000; ndig += 4;}
if (n >=       100){n /=       100; ndig += 2;}
if (n >=        10){n /=        10; ndig += 1;}

or something along those lines. It takes 4 comparisons and 0-4 divisions.

(On 64 bits you have to add a fifth level.)

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If you want to do it by maths you could try this:

int integer = 100
int charCount = (int) Math.Ceiling(Math.Log10(integer+1));

I doubt if this is very much faster than converting to a string though

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