0

I have written a program to calculate y values according to given x values for the function y = (sqrt(3+x^2))/(20x^2+sqrt(x)). Using two counters, one for x values [i], and one for y values [n]. My x values show up fine, however, the y values return zeroes. What would be the mistake here? Very appreciated.

    for (i = 0; i < 30; i++)
    {
        x[i] = 20 i * 2 + 3;
    }   

    for (n = 0; i < 30 && n < 50; i++, n++)
    {
        y[n] = (sqrt(3 + (pow(x[i], 2))))) / (20 * pow(x[i], 2) + sqrt(x[i]));
    }

    for (i = 0, n = 0; i < 30 && n < 50; i++, n++)
    printf("x %lf, y %lf", x[i], y[n]);

return 0;

}

1
  • You should use float constants like 2.0 vs 2 to preclude integer arithmetic in expressions. You don't need both i and n in the final loop. – stark Sep 27 '20 at 16:10
1

You are continuing to use i, without re-initializing it to 0 after the first for loop. Because the value of i stays at the value of times, the second for loop never gets to run. But you rightly initialized it while printing the values of x, y in the final loop.

Change your second for loop to

for (i =0, n = 0; i < times && n < Ymax; i++, n++)
//   ^^^^^
{
    y[n] = 1 - (1 - (sqrt(4 - (pow(x[i], 2))))) / (40 * pow(x[i], 2) + sqrt(x[i]));
}
0

Add a "i=0" line the initializer part of your second for loop.

You should use C99 style for loop like this :

for (int i = 0; ...)

to avoid such errors.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.