3

This program compiles fine, but it returns a message "Floating Point Exception" when I run it. I've looked at other threads and the problem appears to be dividing by 0, but I have looked over the program and there's no division by zero in my entire program. I even used the absolute value function in case.

By the way, the program is meant to reduce fractions.

Example input: 6 12, representing the fraction 6/12
Expected output: 1/2

#include <stdio.h>

/*declaring variables*/
int num1, num2, num1b, num2b, gcd, x;
int higher, lower, higher_2, lower_2;

/*declaring functions*/
int find_gcd(int num1, int num2);
void reduce(int numerator, int denominator, int *reduced_numerator, int *reduced_denominator);

int main(void)
{
    do
    {
        printf("enter 2 numbers:  ");
        scanf("%d %d", &num1, &num2);
        reduce(higher, lower, &higher_2, &lower_2);
        printf("enter 0 to end program and any number continue: \n");
        scanf("%d", &x);
    } while(x != 0);

    return 0;
}

void reduce(int numerator, int denominator, int *reduced_numerator, int *reduced_denominator)
{
    num1=numerator;
    num2=denominator;

    gcd =find_gcd(numerator, denominator);

    *reduced_numerator = (numerator/abs(gcd));
    *reduced_denominator = (denominator/abs(gcd));

    printf("The GCD is %d/%d\n", *reduced_numerator, *reduced_denominator); 
}

int find_gcd(int m, int n)
{
    while (n != 0) {
        int remainder = m % n;
        m = n;
        n = remainder;
    }
    return m;
}
  • Results from integer divisions may become zero, did you consider this? – πάντα ῥεῖ Aug 9 '15 at 6:25
  • 1
    Run in a debugger, and step through the code line by line. If nothing else, the debugger will stop when the exception happens, and let you see where it is, and what the values of involved variables are. – Some programmer dude Aug 9 '15 at 6:28
  • Use a debugger. You should be able to find the problem without too much difficulty in a debugger. – kaylum Aug 9 '15 at 6:28
  • Although the problem is easy to see, what do you think the values of the global variables higher and lower are when you call the reduce function? Where do you assign to them? – Some programmer dude Aug 9 '15 at 6:30
  • Avoid global variables and avoid needless variables (like num1=numerator) – user2249683 Aug 9 '15 at 6:32
5

Your main problem is that you are not passing your input values num1 and num2 into your reduce() function. Instead you are passing in the global variables higher and lower. You didn't assign any values to them, but global variables are always initialized to 0 by default. Therfore, you run into the exception, because in reduce() you divide 0 by 0. You can verify that with a debugger.

If I change your main() as follows, then your code is at least working for your test case with 6 and 12 as input:

int main(void)
{
    do
    {
        printf("enter 2 numbers:  ");
        scanf("%d %d", &num1, &num2);
        reduce(num1, num2, &higher_2, &lower_2);
        printf("enter 0 to end program and any number continue: \n");
        scanf("%d", &x);
    } while(x != 0);

    return 0;
}

Output:

enter 2 numbers: 6
12
The GCD is 1/2
enter 0 to end program and any number continue:


As indicated in the comments you should also get rid of global and spurious variables. Therefore, you should first delete the following lines in your code:

/*declaring variables*/
int num1, num2, num1b, num2b, gcd, x;
int higher, lower, higher_2, lower_2;

Then let your main() function start the following way:

int main(void)
{
    int num1, num2, higher_2, lower_2, x;
    ...
}

And your reduce() function should read like this:

void reduce(int numerator, int denominator, int *reduced_numerator, int *reduced_denominator)
{
    int gcd = find_gcd(numerator, denominator);

    *reduced_numerator = (numerator/abs(gcd));
    *reduced_denominator = (denominator/abs(gcd));

    printf("The GCD is %d/%d\n", *reduced_numerator, *reduced_denominator); 
}

So far, you don't use your variables higher_2 and lower_2 in the main() function, but I guess you plan to do so. If not, you can also get rid of them together with parameters 3 and 4 of your reduce() function.


There is another issue with the code you provided (thanks to @user3629249 for pointing it out): You are missing an include for the abs() function. So you need to add the line #include <stdlib.h> at the beginning of your code (include <math.h> will also so the trick, as well as include <Windows.h> on Windows).

  • Thanks! I have the variables higher_2 and lower_2 in the function call because the function required 4 arguments, and i get an error message when i get rid of them. I'm assuming higher_2 and lower_2 are the 'actual parameter' (i hope i'm using the term correctly) representation of reduced_numerator and reduced_denominator respectively. I very new to programming tho, so there's a good chance my assumptions are wrong. – Mike Tucker Aug 9 '15 at 21:39
  • @LionelMessi: If you want to get rid of function parameters, then you have to remove them from the function declaration, the function definition, and all places where you are calling the function. – honk Aug 10 '15 at 8:13

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