5

Is it possible to add the numbers 1 to n recursively in Java with one return statement? How would you change the standard solution:

public static int sum(int n) {
   if(n == 1) return n;
    else return n + sum(n - 1);
}
13
return n == 1 ? n : n + sum(n-1);
6

You could use simple maths without recursion:

public static int sum(int n) {
   return n * (n + 1) / 2;
}
  • Wow, that’s an amazing formula did you figure that out yourself? – DCR Mar 22 '19 at 14:28
  • @DCR This problem has been known for quite a while, this formula is widely accessible on the internet – Lino says Reinstate Monica Mar 22 '19 at 14:30
  • 2
    If you want to get rid of the division use >> 1. There's no need to, though. The compiler will make this trivial optimization on its own. Exploiting integer overflow is bizarre. – John Kugelman Mar 22 '19 at 18:37
3

Yes, by making use of the ternary operator :

public static int sum(int n) {
    return n == 1 ? n : n + sum(n - 1);
}
0
  public static int sum(int n) {
      return n == 1 ? 1 : n + sum(n-1);
  }

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