Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

My assessment was to do the program and the instructions are listed below.

  1. The radius of the circle should be 1.0.
  2. Use the appropriate Math class methods in your arithmetic expression(s).
  3. The value of the x coordinate should change by 0.1 during initial testing. After the program is working verify that the increment can also be 0.01, or 0.001 with only minor changes to the code.
  4. Display the information in a neatly formatted table. (See expected output.) Use a Formatting Grid to save time developing the layout for your output. Background: Recall from your algebra class that the Pythagorean Theorem can be used to determine the x or y coordinate if you know the radius of the circle and the value of either x or y. Assume that you are dealing with a circle whose radius is 1. If you iterate through successive values of x, then you can calculate the corresponding value of y. Be sure to use methods of the Math class to set up the arithmetic expression.

This is the circle: http://i.stack.imgur.com/NypKz.png

I did the program below.

public class PointsOnACircleV1 {
    public static void main(String[ ] args)
    {
   double[] x1 = { 1.0, 0.90, 0.80, 0.70, 0.60, 0.50, 0.40, 0.30, 0.20,
           0.10, 0.00, -0.10, -0.20, -0.30, -0.40, -0.50, -0.60, -0.70,
           -0.80, -0.90, -1.00 };

double r = 1;

    System.out.println("      Points on a Circle of Radius 1.0");
    System.out.println("       x1        y1        x2        y2");
    System.out.println("---------------------------------------------");

for (int i = 0; i < x1.length; i++) {
    double y1 = Math.sqrt(Math.pow(r, 2) - Math.pow(x1[i], 2));
    double y2 = Math.sqrt(Math.pow(r, 2) - Math.pow(x1[i], 2));
    System.out.printf("%10.2f%10.2f%10.2f%10.2f%n", x1[i], y1, x1[i], y2);
}
    System.out.println("");
}
}

The output is supposed to be like this: http://i.stack.imgur.com/pywwJ.png

I am getting a different output. My output is coming like this.

      Points on a Circle of Radius 1.0
       x1        y1        x2        y2
---------------------------------------------
      1.00      0.00      1.00      0.00
      0.90      0.44      0.90      0.44
      0.80      0.60      0.80      0.60
      0.70      0.71      0.70      0.71
      0.60      0.80      0.60      0.80
      0.50      0.87      0.50      0.87
      0.40      0.92      0.40      0.92
      0.30      0.95      0.30      0.95
      0.20      0.98      0.20      0.98
      0.10      0.99      0.10      0.99
      0.00      1.00      0.00      1.00
     -0.10      0.99     -0.10      0.99
     -0.20      0.98     -0.20      0.98
     -0.30      0.95     -0.30      0.95
     -0.40      0.92     -0.40      0.92
     -0.50      0.87     -0.50      0.87
     -0.60      0.80     -0.60      0.80
     -0.70      0.71     -0.70      0.71
     -0.80      0.60     -0.80      0.60
     -0.90      0.44     -0.90      0.44
     -1.00      0.00     -1.00      0.00
share|improve this question
2  
Are you the same person that posted this question? stackoverflow.com/questions/14033716/… –  Mark Byers Dec 26 '12 at 1:49
1  
No, but the problem looks the same as mine. –  user1928899 Dec 26 '12 at 1:53
    
OK, must be lots of people set the same problem. No worries, I was just curious... –  Mark Byers Dec 26 '12 at 1:53

2 Answers 2

up vote 1 down vote accepted

You have calculated y1 and y2 to be the same value because the code is identical:

double y1 = Math.sqrt(Math.pow(r, 2) - Math.pow(x1[i], 2));
double y2 = Math.sqrt(Math.pow(r, 2) - Math.pow(x1[i], 2));

It seems from the results that the value of y2 should just be the negation of y1. Try this instead:

double y1 = Math.sqrt(Math.pow(r, 2) - Math.pow(x1[i], 2));
double y2 = -y1;
share|improve this answer
    
Thank you very much. It helped a lot. –  user1928899 Dec 26 '12 at 1:56

It should also have a if statement, because the having only the other answer would give and output of -0.00.

    double y1 = Math.sqrt(Math.pow(r, 2) - Math.pow(x1[i], 2));
    double y2 = 0.00;
    if (y1 != 0.00)
    {
        y2 = (-y1);
    }
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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