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The value of fhr_1 below is calculated as 0.0 Why is fhr_1 not 0.3?

        double fhr_1; 
        int n_fhr_1 = 9;
        int n_fhr_0 = 15;
        int n_fhr_2 = 6;

        fhr_1 = n_fhr_1/(n_fhr_1 + n_fhr_0 + n_fhr_2);
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3  
Is there a good reason why your variables are named like this? Aside from that they aren't using lowerCamelCase. –  The Muffin Man Nov 28 '12 at 23:11
1  
A more general answer to your question: the type of an expression does not depend on the type of the variable to which its result is being assigned. In evaluating the right side of the assignment, the compiler does not look at the left side, so the fact that fhr_1 is a double has no bearing on the evaluation of n_fhr_1/(n_fhr_1 + n_fhr_0 + n_fhr_2). –  phoog Nov 28 '12 at 23:52

3 Answers 3

You need at least one operand of double type. Otherwise you will get integer result (integer division will happen)

fhr_1 = (double)n_fhr_1/(n_fhr_1 + n_fhr_0 + n_fhr_2);

Or

fhr_1 = n_fhr_1/(double)(n_fhr_1 + n_fhr_0 + n_fhr_2);

Or

fhr_1 = n_fhr_1 / ((double)n_fhr_1 + n_fhr_0 + n_fhr_2);

You can read more about division rules on msdn.

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I like how you were the first to post and there is 3 more answers that essentially say the same thing. –  The Muffin Man Nov 28 '12 at 23:13
    
@Nick I tend to agree with this kind of statement. However when other answers are posted a couple of seconds later, we can assume that they are not simple copy/paste of the original answer. –  Guillaume Nov 29 '12 at 3:15
    
If that is the case please exclude those answers from my statement. –  The Muffin Man Nov 29 '12 at 18:46

You can't simply devide integers, you will get 0 because of the rounding. Try instead:

fhr_1 = ((double)(n_fhr_1))/(n_fhr_1 + n_fhr_0 + n_fhr_2);
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double fhr_1; 
        int n_fhr_1 = 9;
        int n_fhr_0 = 15;
        int n_fhr_2 = 6;

        fhr_1 = (double)n_fhr_1/(n_fhr_1 + n_fhr_0 + n_fhr_2);

You have to cast one of the operands to double, this way it will calculate it as double.

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