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Even if the amount entered ends up being an even amount of elements my code skips the if check. It is probably something silly I missed or didn't notice in the chapter I was reading. Thanks for taking a look at it.

#include "std_lib_facilities.h"

    using namespace std;

    int main()
    {
        vector<double> num;
        double numb;

        while(cin>>numb)
            num.push_back(numb);

        sort(num.begin(), num.end());

        if(num.size() <= 2)
            cout << "Need more data." << endl;
        else if (num[num.size()%2] == 0)//even?
        {
            cout << "Median is: " << num[num.size()/2] << endl;
            cout << "Median is: " << num[(num.size()/2)+1] << endl;
        }
        else
            cout << "Median is: " << num[num.size()/2] << endl;

        keep_window_open();

    }
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2 Answers 2

up vote 2 down vote accepted

I think you're trying to use this test:

num[num.size()%2] == 0

To see if your vector is of even length. But that's not what it does - it checks the value at either num[0] or num[1] to see if it's zero.

You want:

 num.size() % 2 == 0
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Oh wow! I didn't even think about that. It was so obvious. Thanks :D –  Token coding newbie Jun 12 '13 at 2:39

The line num[num.size()%2] will either check element 0 or 1 depending on the size of num. What you mean is to check is wether the length of num is even or odd, which is num.size() % 2. So your check becomes:

      else if(num.size() % 2 == 0)//even?
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