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Given a non-negative int n, compute recursively (no loops) the count of the occurrences of 8 as a digit, except that an 8 with another 8 immediately to its left counts double, so 8818 yields 4. Note that mod (%) by 10 yields the rightmost digit (126 % 10 is 6), while divide (/) by 10 removes the rightmost digit (126 / 10 is 12).

I attempted it and my code is below. Please also let me know what am I doing wrong in the code. Many Thanks in Advance!! Ignore main().

count8(8) → 1

count8(818) → 2

count8(8818) → 4

public int count8(int n) {

  int cd=0,pd=0,c=0;  // cd for current digit, pd for previous digit,c=count

  if(n==0)           // base condition
    return 0;

  cd = n%10;       // finding the rightmost digit

  if(cd==8)// if rightmost digit id 8 then
  {
    c++;

    n=n/10;// moving towards left from rightmost digit

    if(n!=0)
      pd=n%10;//second rightmost digit(similarly as secondlast digit)

    if(cd==8 && pd==8)// if rightmost and second rightmost equals 8, double c
      c=c*2;
  }     
  else         // if cd not equals 8 then
    c=0;

  return c + count8(n/10);//adding count and recursively calling method  
}

            Expected    Run     
count8(8) → 1             1 OK  
count8(818) → 2           2 OK  
count8(8818) → 4          3 X   
count8(8088) → 4          3 X   
count8(123) → 0           0 OK  
count8(81238) → 2         2 OK  
count8(88788) → 6         4 X   
count8(8234) → 1          1 OK  
count8(2348) → 1          1 OK  
count8(23884) → 3         2 X   
count8(0) → 0             0 OK  
count8(1818188) → 5       4 X   
count8(8818181) → 5       4 X   
count8(1080) → 1          1 OK  
count8(188) → 3           2 X   
count8(88888) → 9         5 X   
count8(9898) → 2          2 OK  
count8(78) → 1            1 OK  
  • So what is wrong with your code? Provide actual and expected outputs. Also, consider comments in your code and format it before posting. – Henk Holterman Oct 13 '16 at 8:06
  • Hi Henk, Thanks for your time. I did as you told. – Abhishek Sharma Oct 13 '16 at 8:49
  • You have one simple logic error. Since this looks like homework I'm not gong to point it out directly. Use a debugger (very easy to learn) or insert some tracing with Console.WriteLine(). Go through your code step by step and compare actual and intended values. – Henk Holterman Oct 13 '16 at 9:16
  • Side note: you also have quite a few superfluous statements, like: else c = 0; , if(cd==8 &&. When you simplify the code becomes easier to read. – Henk Holterman Oct 13 '16 at 9:18
  • As a bit of a clue, look specifically into what happens when you have double 8s. – Phylogenesis Oct 13 '16 at 10:15
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I'd simplify it a little more

public int count8(int number, bool prevWas8 = false) 
{
    int num8s = 0;

    if( number == 0) //base case
        return 0;

    if( number%10 == 8) //we found an 8!
        num8s++;

    if (prevWas8 && num8s > 0) // we found two 8's in a row!
        num8s++;

    return num8s + count8(number/10, num8s>0);
}
  • Thanks bwall. One of the most simplified code I have ever seen. :) – Abhishek Sharma Oct 16 '16 at 9:04
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public int count8(int n)
{
    if(n == 0)
        return 0;
    if(n % 10 == 8)
    {
        if(n / 10 % 10 == 8)
            return 2+count8(n/10);
        return 1+count8(n/10);
    }
    return count8(n/10);
}
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public int count8(int n) {
  int c=0;
  if (n==0){
    return 0;

  }
  else{
    if (n%10==8 && (n/10)%10==8){
      c+=2;
    }
    else if (n%10==8 && (n/10)%10!=8){
      c++;
    }
  }
  return c+count8(n/10);
}
  • 1
    Please explain how this answers the question. Code dumps aren't generally very useful. – TheWanderer Jan 10 at 0:59
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If you want simple:

public int count8(int n) {

    return (n < 8) ? 0 : ((n % 10 == 8) ? ((n % 100 == 88) ? 2 : 1) : 0) + count8(n / 10);
}

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