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I came across this method browsing the web searching for recursive methods. Believe me, I cant get its logic. Basically this method finds the amount of ciphers in a given number.

public int aantalCijfers(int n)
{
    if (n < 10)
    {
        return 1;
    }
    else if ((n > 9) && (n < 100))
    {
        return 2;
    }
    else
    {
        return (aantalCijfers(n / 100) + 2);
    }
}

Let's make an example. Let's imagine we use 5000 as parameter, my conclusion would be as in the following steps:

  1. 5000
  2. 52
  3. 2 (returned by the else-if statement since 52 is between 9 & 100)

But instead, it returns 4, and it works fine, while I was expecting it not to. Can you please, if you figure out how it works, point the steps of how this method comes to the correct conclusion?

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4 Answers 4

up vote 5 down vote accepted

Sure. :-) But first, please note that the function says aantalCijfers(n/100) + 2, not aantalCijfers(n/100 + 2). I have a feeling that you may have misread that.

The base cases are 1 or 2 digits. For anything beyond that, divide by 100 (thus stripping away two digits), recalculate, and add 2 to the result.

Using 5000 as your example:

  1. digits(5000)
  2. digits(50) + 2
  3. 2 + 2
  4. 4

You can extend that even further. Let's, say, use 1000000.

  1. digits(1000000)
  2. digits(10000) + 2
  3. digits(100) + 2 + 2
  4. digits(1) + 2 + 2 + 2
  5. 1 + 2 + 2 + 2
  6. 7
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Thx, indeed i was indeed missing the first two lines. thx –  JBoy Apr 24 '11 at 7:44
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Its pretty straightforward

  • a number up to a hundred (and greater than 9) has 2 digits.
  • therefore dividing by a 100 adds 2 digits to your count.
  • You call the function again and it checks the remainder, it then keeps on going until one of the exit conditions, up to 10 or 10 to 99
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Example

 aantalCijfers(5000)

 returns (aantalCijfers(50) which returns 2) + 2 = 4
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You're mistaken in second step, it's f(50)+2, not 50+2. and f(50) is the second if, which returns 2, So it's 2+2, which yields 4.

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