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How do you divide two integers and get a double or float answer in C?

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1  
"decimal" is a representation (as "hexadecimal", "octal", "binary") which applies to integer or non-integer numbers. You mean, I guess, "get a non-integer result". –  leonbloy Jun 4 '10 at 19:49
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1 Answer 1

up vote 24 down vote accepted

You need to cast one or the other to a float or double.

int x = 1;
int y = 3;

// Before
x / y; // (0!)

// After
((double)x) / y; // (0.33333...)
x / ((double)y); // (0.33333...)

Of course, make sure that you are store the result of the division in a double or float! It doesn't do you any good if you store the result in another int.


Regarding @Chad's comment ("[tailsPerField setIntValue:tailsPer]"):

Don't pass a double or float to setIntValue when you have setDoubleValue, etc. available. That's probably the same issue as I mentioned in the comment, where you aren't using an explicit cast, and you're getting an invalid value because a double is being read as an int.

For example, on my system, the file:

#include <stdio.h>
int main()
{
    double x = 3.14;
    printf("%d", x);
    return 0;
}

outputs:

1374389535

because the double was attempted to be read as an int.

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Right. Convert the integers before you perform the division. –  DOK Jun 4 '10 at 16:33
    
double tp; double x; x = tn; //(tn is a int) normally 10 tp = x/fn; // fn is also a int (normally 5) but i still get 0 –  Chad Carisch Jun 4 '10 at 16:50
    
@Chad: The code looks right. How have you determined that the result is zero? Are you doing something like printf("%d", tp)? That tries to print the content of a double as an int, and you won't get the correct results. Your compiler should have warned you if you did that. For a double the format string is %lf. –  Mark Rushakoff Jun 4 '10 at 16:56
    
its actually being sent to a gui... tailsPer = tailsNum / ((double)curNum); //tailsper is a double [tailsPerField setIntValue:tailsPer]; // this is in cocoa –  Chad Carisch Jun 4 '10 at 17:29
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