0

For this code, I am trying to determine the distance between (x1, y1) and (x2, y2). The equation for the distance is sqrt(x2 - x1)^2 + (y2 - y1)^2.

The code looks like this,

import java.util.Scanner;

public class CoordinateGeometry {
  public static void main(String [] args) {
  Scanner scnr = new Scanner(System.in);
  double x1;
  double y1;
  double x2;
  double y2;
  double pointsDistance;
  double xDist;
  double yDist;

  pointsDistance = 0.0;
  xDist = 0.0;
  yDist = 0.0;

  x1 = scnr.nextDouble();
  y1 = scnr.nextDouble();
  x2 = scnr.nextDouble();
  y2 = scnr.nextDouble();

  poinsDistance = Math.sqrt(Math.pow(x2 - x1, 2) + (Math.pow(y2 - y1, 2));

  System.out.println(pointsDistance);
  }
}

I keep getting an error, CoordinateGeometry.java:23: error: ')' expected poinsDistance = Math.sqrt(Math.pow(x2 - x1, 2) + (Math.pow(y2 - y1, 2)); ^ 1 error

What does this error mean?

Also an example would be, for points (1.0, 2.0) and (1.0, 5.0), pointsDistance is 3.0.

| |
  • 1
    didn't close properly the instruction. Need one ) – Traian GEICU Jan 24 '19 at 16:16
  • (Math.pow(y2 - y1, 2). remove ( before Math.pow – GolamMazid Sajib Jan 24 '19 at 16:17
  • Got it to work turns out I had the pointsDistance as poinsDistance and an extra ")". – Steven Villarreal Jan 24 '19 at 16:21
  • Squaring numbers using Math.pow is inefficient. A better way is to multiple the value by itself: x_squared = x*x; – duffymo Jan 24 '19 at 16:28
1

You are missing closing ) at the end of line

poinsDistance = Math.sqrt(Math.pow(x2 - x1, 2) + (Math.pow(y2 - y1, 2)));

Or remove the opening ( before Math.pow.

Your code should look like this:

poinsDistance = Math.sqrt(Math.pow(x2 - x1, 2) + Math.pow(y2 - y1, 2));

| |
  • I just tried that but got this error instead, CoordinateGeometry.java:23: error: ')' expected poinsDistance = Math.sqrt(Math.pow(x2 - x1, 2) + (Math.pow(y2 - y1, 2)); ^1 error – Steven Villarreal Jan 24 '19 at 16:18
  • @StevenVillarreal note that he has ))) at the end whereas you still have )). – meowgoesthedog Jan 24 '19 at 23:05

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.