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I have an assignment to compute the roots of quadratic equations in C, should be pretty simple and I know what I need to do with the program but I am having a problem nonetheless. It works fine when the roots are imaginary and when the term inside the square root is zero.

But when I enter coefficients a, b and c which would give real roots it gives me the wrong answer, and I cant figure out whats wrong. (I am testing it with a=2, b = -5 and c=1)

This is my code, it compiles and runs, but gives the wrong answer.

#include<stdio.h>
#include<math.h>

int main()
{
    float a, b, c, D, x, x1, x2, y, xi;

    printf("Please enter a:\n");
    scanf("%f", &a);
    printf("Please enter b:\n");
    scanf("%f",&b);
    printf("Please enter c:\n");
    scanf("%f", &c);
    printf("The numbers you entered are: a = %f, b = %f, c = %f\n", a, b, c);


    D = b*b-4.0*a*c;
    printf("D = %f\n", D);
    if(D > 0){
        x1 =  (-b + sqrt(D))/2*a;
        x2 = ((-b) - sqrt(D))/2*a;
        printf("The two real roots are x1=%fl and x2 = %fl\n", x1, x2); 
    }
    if(D == 0){
        x = (-b)/(2*a);
        printf("There are two identical roots to this equation, the value of which is: %fl\n", x);
    }
    if (D<0){
        y = sqrt(fabs(D))/(2*a);
        xi = (-b)/(2*a);
        printf("This equation has imaginary roots which are %fl +/- %fli, where i is the square root of -1.\n", xi, y);
    }
    return 0;
}
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2  
What answer do you expect? b*b - 4ac is 17 for a=2, b=-5, c=1; which is what the program outputs. –  Kevin Oct 5 '11 at 11:47
1  
What wrong answer you get and what answer were you expecting? –  Alok Save Oct 5 '11 at 11:47
    
Did you update your code (fix it)? If you did, could you provide a note in the OP that it has been fixed? You might also want to accept an answer as well =) –  5StringRyan Oct 5 '11 at 14:54
    
Looks like the code has been corrected for D<=0, but not for D>0. –  calandoa Oct 5 '11 at 16:29
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1 Answer

up vote 11 down vote accepted

You don't calculate the result correctly:

x = y / 2*a

is actually parsed as

x = (y / 2) * a

so you have to put parentheses around 2*a.

you want this:

x = y / (2 * a)
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Brilliant, thank you so much. I knew it was something stupid I was missing! –  Laura Boyle Oct 5 '11 at 11:52
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