3

I need a method to count the number of digits a particular integer has. It also should work for negativ numbers. Any ideas?

  • How would you solve the problem on paper? – Colonel Panic May 22 '13 at 9:28
6

Try this code. It uses logarithm to the base of 10:

public static int length(int integer) {
    if(integer==0) {
        return 1;
    } else if(integer<0) {
        return ((int)Math.log10(Math.abs(integer)))+1;
    } else {
        return ((int)Math.log10(integer))+1;
    }
}
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  • Nice and efficient. You could replace return ((int)Math.log10(Math.abs(integer)))+1; by return ((int)Math.log10(-integer)) + 1; – assylias May 22 '13 at 8:43
  • Is 0 one or zero digits? – Alexandre Lavoie May 22 '13 at 8:45
  • 0 is one digit. The real question is: is -2 two digits or only one? :-) – paxdiablo May 22 '13 at 8:50
  • 1
    changed the return value to 1 for the case of 0. – Gregoran Bregovic May 22 '13 at 8:54
  • This will fail with Integer.MIN_VALUE. Commonly overlooked edge case: Integer.MIN_VALUE == -Integer.MIN_VALUE. – Durandal May 22 '13 at 15:07
5
(n < 0) ? String.valueOf(n).length() - 1 : String.valueOf(n).length();
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  • Just need to check if number is less than 0. Not the String value. :) – Achrome May 22 '13 at 8:45
  • - will count as a digit so should be something like number < 0 ? String.valueof(number).length() - 1 : String.valueof(number).length(); – Alexandre Lavoie May 22 '13 at 8:47
  • Thank you for your suggestions, fixed these cases. – Adam Siemion May 22 '13 at 8:47
  • What about zero? Rather a philosophical question ... ;-) – Hans Frankenstein May 22 '13 at 8:48
  • 0 is one digit in my opinion and that is what this code produces in such case :) – Adam Siemion May 22 '13 at 8:49
3

Absolute value function get rid of the - if exist, then the remaining is similar to other answers.

String.valueOf(Math.abs(number)).length();
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  • You beat me to it ;-) – Scary Wombat May 22 '13 at 8:49
2

fastest way:

    public final static int[] sizeTable = { 9, 99, 999, 9999, 99999, 999999,
        9999999, 99999999, 999999999, Integer.MAX_VALUE };

    public static int getSize(int d) {
    if (d == Integer.MIN_VALUE)
        return 10;
    if (d < 0) {
        d = -d;
    }
    for (int i = 0;; i++)
        if (d <= sizeTable[i])
            return i + 1;
}

It is inspired by the Integer:

 static int stringSize(int x) {
    for (int i=0; ; i++)
        if (x <= sizeTable[i])
            return i+1;
}
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  • 1
    Faster than this would be a binary search, but not really worth it :) – Marko Topolnik May 22 '13 at 9:02
  • 2
    Fails with Integer.MIN_VALUE – Durandal May 22 '13 at 15:41
0

This should work:

digitCount = String.valueof(number).length();
if(number < 0 ) digitCount--;
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0
 Integer i=new Integer(340);
      if(i<0)
      System.out.println(i.toString().length()-1);
      else
          System.out.println(i.toString().length()); 
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0
public class Test
{
     public static void main(String []args)
     {
         int n = 423;
         int count = 0;

         while(n != 0) 
         {
             n = n / 10;
             count++;
         }
         System.out.println(count);
     }
}
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0
public static int integerLength(int n)
{
 return Math.abs(n).toString().length();
}
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  • Fails with Integer.MIN_VALUE – Durandal May 22 '13 at 15:40
0

Counting digits by dividing until zero remains (this can be easily adapted for any radix, or for long by just changing the argument declaration).

public static int countDigitsDiv(int value) {
    if (value == 0)
        return 1;
    int result = 0;
    // we work with negative values to avoid surprises with Integer.MIN_VALUE
    if (value > 0)
        value = -value;
    // count the number of digits
    while (value < 0) {
        result += 1;
        value /= 10;
    }
    return result;
}

Using Math.log10() (This will not work properly if value is redeclared as long due to double's limited precision):

public static int countDigitsLog(int value) {
    int result = 1;
    if (value > 0) {
        result += (int) Math.log10(value);
    } else if (value < 0) {
        result += (int) Math.log10(-((double) value));
    }
    return result;
}
| improve this answer | |

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