0

this function is supposed to calculate the sum inclusive ie. sum(2, 5) should yield 2 + 3 + 4 + 5.

int sum(int m, int n) {
    if (m != n) {
        return m + sum(m++, n);
    }
    return n;
}

However, i get a run time error every time i run this code.

  • What do you think that sum(m++, n); does? – quamrana Oct 30 '19 at 14:18
  • What is your error? Please include that in your question. – OrdoFlammae Oct 30 '19 at 14:23
5

m++ returns the value of m before incrementing, so it will infinitely recurse. You should call sum(m + 1, n) instead. Also, you should consider changing m != n to m < n to prevent the case of m > n from recursing infinitely.

  • and maybe catch the case of m > n – formerlyknownas_463035818 Oct 30 '19 at 14:20
  • @FedericoklezCulloca ++m just wastes time incrementing m when it's not used anywhere else in the function – Aplet123 Oct 30 '19 at 14:21
  • 2
    @Aplet123 The entire code wastes time. Could just compute it in one go: int sum(int m, int n) { return (std::abs(m - n) + 1) * (m + n) / 2; } – rustyx Oct 30 '19 at 14:24
  • 1
    @FedericoklezCulloca m + sum(m++, n); is undefined behaviour till C++14, it reads and modifies m unsequenced. – mch Oct 30 '19 at 14:24
  • @rustyx while this is true I'm also assuming that this is probably for some exercise in recursion and thus can not be reduced to a single formula – Aplet123 Oct 30 '19 at 14:26
0

Don't increment m while calling, instead pass m+1

int sum(int m, int n)
{
    if(m != n)
        return m + sum(m+1, n);
    return m;
}

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