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programming C using x-code, here's the f

#include <stdio.h>

int multiply (int x, int y) {
return x * y;
}
int main()
{

float result = (float) multiply (0.2, 0.5);
printf("the result is %f", result);


}

I don't get the right value, I get 0.0000 !! I did the casting but I don't know whats wrong.

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3 Answers 3

Your program multiplies 0 by 0.

multiply takes two int parameters, so your 0.2 and 0.5 are implicitly converted to int before making the call. That truncates both to 0.

Your typecast doesn't do anything in this program, since the return value of multiply (which is an int) will get implicitly converted during the assignment to result anyway.

You need to change the definition of multiply (or add a floating-point version and call that) if you want this program to work correctly.

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The multiply () input arguments are int:

int multiply (int x, int y) {

and you have passed float as input arguments:

multiply (0.2, 0.5);
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Hi there is a basic problem. As the numbers you are multiplying are floats but you are passing these into the function multiply as int's hence being rounded to 1 and 0.

This should work

#include <stdio.h>

int multiply (float x, float y) {
  return x * y; 
}
int main()
{

float result = (float) multiply (0.2, 0.5);
printf("the result is %f", result);
} 
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your multiply function is defined as int you have to changed to float because you are returning a float (x*y) –  MOHAMED May 8 '13 at 14:54
    
Both parameters to multiply in the original version will be 0. Implicit conversion from float to int truncates rather than rounding. –  Nigel Harper May 8 '13 at 15:05

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