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It is possible to count the number of zeros in an integer through a recursive method that takes a single int parameter and returns the number of zeros the parameter has.

So:

zeroCount(1000)

Would Return:

3

You can remove the last digit from an integer by doing: "12345 / 10" = 1234

You can get the last digit from an integer by doing: "12345 % 10" = 5

This is what I have so far:

public static int zeroCount(int num)
{
    if(num % 10 == 0)
        return num;
    else
        return zeroCount(num / 10);
}

Does anyone have any suggestions or ideas for helping me solve this function?

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1  
The base case is wrong. There are many values for which x % 10 is 0. (The modulus operation should likely should be folded into the recursive case.) –  user166390 Nov 8 '12 at 5:23

5 Answers 5

Run through your code in your head:

zeroCount(1000)

1000 % 10 == 0, so you're going to return 1000. That doesn't make sense.


Just pop off each digit and repeat:

It sounds like homework, so I'll leave the actual code to you, but it can be done as:

zeroes(0) = 1
zeroes(x) = ((x % 10 == 0) ? 1 : 0) + zeroes(x / 10)

Note that without the terminating condition, it can recurse forever.

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public static int zeroCount(int num)
{
    if(num / 10 != 0)
        if(num %10 ==0)
        return 1 + zeroCount(num / 10);
    else
        return zeroCount(num/10); 
    return 0;
}

this would work

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Thank you very much, now I'll try counting the number of any digits on my own. –  Matt Andrzejczuk Nov 8 '12 at 14:05
    
Something unexplainable happens and I'm trying to break this recursive method into separate pieces to see how it works. When the method begins and num = 1230005, then if(num / 10 != 0) is true so it moves down to the next if statement: if(num%10 == 0), and 1230005 % 10 is equal to 0.5 which is technically 0 since it's an int and not a double. But even though num % 10 (1230005%10) equals 0, it doesn't return 1 + zeroCount(num / 10), instead it goes straight to the else. What am I missing here? how does it skip "if(num%10 == 0)" when that statement is true?? –  Matt Andrzejczuk Nov 8 '12 at 15:07

it is a simple problem and you don't need to go for recursion I think a better way would be converting the integer to a string and check for char '0'

public static int zeroCount(int num)
{
String s=Integer.toString(num);
int count=0;
int i=0;
for(i=0;i<s.length;i++)
{
if(s.charAt(i)=='0')
{
count++;
}
}
return count;
}
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You have to invoke your recursive function from both if and else. Also, you were missing a Base Case: -

public static int zeroCount(int num)
{
    if(num % 10 == 0)
        return 1 + zeroCount(num / 10);
    else if (num / 10 == 0)
        return 0;
    else
        return zeroCount(num / 10);
}
share|improve this answer
2  
There is no base case here. Infinite recursion! –  user166390 Nov 8 '12 at 5:25
1  
This will result in an StackOverflowException. The exit criteria is missing. (The OP can find a solution for that, just to let him know ;) ) –  Andreas_D Nov 8 '12 at 5:26
    
@Andreas_D.. Yeah I quoted that in the last line. :) –  Rohit Jain Nov 8 '12 at 5:27
    
not a valid solution see my solution –  Bhavik Shah Nov 8 '12 at 5:30
1  
Hey guys this is not facebook –  Shurmajee Nov 8 '12 at 5:40

You know that x % 10 gives you the last digit of x, so you can use that to identify the zeros. Furthermore, after checking if a particular digit is zero you want to take that digit out, how? divide by 10.

public static int zeroCount(int num)
{
  int count = 0;

  if(num == 0) return 1;                  // stop case zeroCount(0)
  else if(Math.abs(num)  < 9)  return 0;  // stop case digit between 1..9 or -9..-1
  else
  {
   if (num % 10 == 0) // if the num last digit is zero
       count++; // count the zero, take num last digit out

   return count + zeroCount(num/10); // take num last digit out, and apply 
  } // the method recursively to the remaining digits 
}

I use math.Abs to allow negative numbers, you have to import java.lang.Math;

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