2

Hello guys I have a quick question. So I have an assignment where I have to create a program that recursively calculates the sum of all the digits in an integer. IE integer 123 (1+2+3) = 6. How do I make it start at the first number and keep going until there is no other number left? This is what i have so far....

import java.util.*;

public class sum 
{    
    /**
     * @param args
     */
    public static void main(String[] args) 
    {           
        System.out.println(sumDigits(123))   
    }

    public static  int sumDigits(int n)
    {
        while (n.hasNext())
        {
            return n.charAt(n.length) + sumDigits(n.charAt((n.length - 1)))
        }
    }
}

Now I know I'm using (hasNext and charAt which i'm not supposed to...) but what is the equivalent for the int?

  • 2
    There is no equivalent. The most obvious choice is to convert it to a String and do it like you're thinking. But if you're not allowed to do it like that, see comment by @nhahtdh – Kayaman Sep 18 '13 at 6:18
  • 2
    Nope, just modulo 10 and add it up. – nhahtdh Sep 18 '13 at 6:18
  • @kayaman I am allowed to do that, I just meant its not valid with an int – David Sep 18 '13 at 6:21
  • @DavidCamacho That's why you convert the int into a String first. Although you state that you need to recursively do this, so maybe modulo 10 is what they're after. – Kayaman Sep 18 '13 at 6:21
  • @nhahtdh how do I make it stop though? – David Sep 18 '13 at 6:22
4

Simple recursive solution: you start from the end of your number and on each step you get the last digit of your number (which is m) and your number divided by 10, which is next. If on some step you got 0 as a result of n / 10 - then it's the end of recursion, you can return your remainder. Otherwise you call your function again with next.

public static  int sumDigits(int n)
{
    int m = n % 10, next = n / 10;
    if (next == 0) {
        return m;
    }
    return m + sumDigits(next);
}
  • more concise than mine! – anguyen Sep 18 '13 at 6:36
  • so is there an imaginary 0 at beginning of the integer? – David Sep 18 '13 at 6:40
  • You're welcome. :) Please, accept the answer if it helped you. :) – aga Sep 18 '13 at 8:47
5

There are two operations you will need:

getting the last digit of a number: n % 10

getting a number without the last digit: n / 10

Using these two operations in a loop will get you all the digits of the number.

  • Yes i tried that but I get stack overflow – David Sep 18 '13 at 6:34
  • @DavidCamacho: Of course, since you don't write a base case. – nhahtdh Sep 18 '13 at 6:35
  • @DavidCamacho so you used a recursion; stop it when the number is 0. – Henry Sep 18 '13 at 6:36
1

You can try this using recursion:

public int sumDigits(int n) {
    int abs = Math.abs(n), lastdigit = 0, sum = 0;
    if(n != 0) {
        lastdigit = abs % 10;
        sum = lastdigit + sumDigits(abs / 10);
    }
    return sum;
}

here some testeing:

@Test
public void sumDigits() {
    Assert.assertEquals(3, sumDigits(12));
    Assert.assertEquals(6, sumDigits(123));
    Assert.assertEquals(10, sumDigits(1234));
    Assert.assertEquals(15, sumDigits(12345));
    Assert.assertEquals(21, sumDigits(123456));
    Assert.assertEquals(28, sumDigits(1234567));
    Assert.assertEquals(28, sumDigits(7654321));
    Assert.assertEquals(28, sumDigits(-7654321));
    Assert.assertEquals(44, sumDigits(2056239854));
    Assert.assertEquals(46, sumDigits(Integer.MAX_VALUE)); // 2147483647
}
0

How to do a problem recursively

Think about the base case: if the num<10, then we just want to return that digit

What are the other cases? In this case, there is only one other case: we have more digits and we need to add the first digit and then process the rest

public int sumDigits(int n){
     return sumDigitsHelper(n,0);
}

public int sumDigitsHelper(int n, int sum){
     if(n<10)
          return sum+n;
     return sumDigitsHelper(n/10,sum+n%10);

}
0

1st way :

public static int sumDigits(int n) {                
            int validate = n % 10;
            int digit = n / 10;
            if (validate == 0) 
                return validate;
            return validate + sumDigits(digit);
        }

2nd Way :

public static int sumDigits(int n) {    
            String[] temp = Integer.toString(n).split("");
            int sum = 0;
            for (int i = 1; i < temp.length; i++)// i=1 to skip first first empty value
                sum += Integer.parseInt(temp[i]);    
            return sum;   
         }

Test:

System.out.println("" + sumDigits(123)); // For both cases same O/p

Output:

6
  • Wait, why Integer.valueOf(n).toString() instead of just Integer.toString(n)? – Dennis Meng Sep 18 '13 at 6:30
  • @DennisMeng that's the reason for downvote ? – Tarsem Singh Sep 18 '13 at 6:31
  • I'm not the downvoter, I was just asking. – Dennis Meng Sep 18 '13 at 6:31
0

Sorry, missed the requirement for being recursive.

public static int sumDigits(int n) {
  int sum = sumDigits0(n, 0);
  if (sum < 10) {
    return sum;
  }
  return sumDigits(sum);
}

private static int sumDigits(int n, int sum) {
  if (n == 0) {
    return sum;
  }
  return sumDigits(n/10, sum + (n%10));
}
  • The assignment said that he must find a recursive solution – danielz Sep 18 '13 at 6:49

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