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double cost_factor(int num_of_sections, int num_of_students) {
    double cost;
    cost = 35 * num_of_sections / num_of_students;
    printf("Cost = %.2lf\n", cost);
    return cost;

}

No matter what i enter for num_of_sections and num_of_students, I get a return value of 1.00. If I enter 11 (num_of_sections) and 364 (num_of_students), I get 1.00, althought it should be 1.06. Can anyone identify their error?

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4 Answers 4

You are doing math with integers. So you will get integer values back.

const = 35 * num_of_sections / num_of_students 

will give you an int even though cost is a double because all the components are ints.

You will want to typecast the value to get a double out

cont = 35.0 * (double)num_of_sections /  (double)num_of_students;

Mind you that is over kill, it is enough to promote one value in the equasion to a double.

cont = 35.0 * num_of_sections / num_of_students;

C will then automatically promote the other values for you.

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I should change int num_of to double num_of? Nvm lol. –  Luca Tenuta Sep 28 '12 at 18:23
    
There is no reason to change the types of your inputs. You should use the type that makes the most sense to describe the input. You just need to promote the values when doing calculations. –  zellio Sep 28 '12 at 18:26
    
Isn't the last part slightly wrong. Because of precedence num of selection / num_of_students happens first and produces an int which is latter converted to double. So it would do integer division and lose the fractional part? –  fayyazkl Sep 28 '12 at 18:28
1  
@fayyazkl - Why would it do division first? They have the same operator precedence so they are evaluated left to right. –  zellio Sep 28 '12 at 18:29
    
Yeah my bad. I was applying standard math precedence subconsciously i.e. division before multiplication. They have same precedence and hence operate left to right. –  fayyazkl Sep 28 '12 at 18:34

Dividing two integers returns an integer, with the fractional part removed. Try this instead:

cost = 35.0 * num_of_sections / num_of_students;

35.0 is a double literal instead of an integer literal. This will cause the expression 35.0 * num_of_sections to be evaluated as double * double (the int is converted to a double before the calculation) and then the division will also take place using two doubles.

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The problem was to promote num_of_students and num_of_sections to double so that cost can be correctly calculated.

double cost(double num_of_students, double num_of_sections)
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Did you forget something in your code sample? –  Benjamin Bannier Sep 28 '12 at 18:30
    
No I didn't unless you want to see what I'm passing. –  Luca Tenuta Sep 28 '12 at 18:34

Look at all your operations: they all involve only integers, so C does integer math. The quickest way to solve is to make 35 a double, which will cause the promotion to double of the other operands (if any of the operands in an operation is double the other is promoted).

So you can do either:

cost = ((double)35) * num_of_sections / num_of_students;

or, better,

cost = 35. * num_of_sections / num_of_students;

(some prefer 35.0, but the dot at the end of 35. is enough to specify that it's a double literal; 35 alone, instead, is intended as an int literal)

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Bit of a nit-pick on this but I'd put the 0 after the 35. just to make it clear what you mean. –  zellio Sep 28 '12 at 18:28
    
@zellio: I preferred the "just the dot" form because often you find that form used (especially in my code :) ), so if he's learning C it can be useful to know that also that syntax is valid. –  Matteo Italia Sep 28 '12 at 18:30
    
okay, makes sense. –  zellio Sep 28 '12 at 18:31

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