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I was asked to work upon a task in which there will be two lines and I have to get the intersection point of the two lines. The two lines are ImageViews and both ImageViews can be dragged and whenever these two lines intersect I have to get that intersection point. Here is the code which I implemented till now:

main.xml


<?xml version="1.0" encoding="utf-8"?>
<RelativeLayout xmlns:android="http://schemas.android.com/apk/res/android"
    android:orientation="vertical" android:layout_width="fill_parent"
    android:layout_height="fill_parent">
    <ImageView android:id="@+id/xImg1" android:layout_width="100sp"
        android:layout_height="100sp" android:layout_marginTop="50sp"
        android:layout_marginLeft="10sp"
        android:background="@drawable/line_6x10" />
    <ImageView android:id="@+id/xImg2" android:layout_width="100sp"
        android:layout_height="100sp" android:layout_marginTop="50sp"
        android:background="@drawable/line_10x10" android:layout_marginLeft="200sp" />

main.java


package sra.inter;

import android.app.Activity;
import android.os.Bundle;
import android.util.Log;
import android.view.MotionEvent;
import android.view.View;
import android.view.View.OnTouchListener;
import android.widget.ImageView;
import android.widget.Toast;
import android.widget.RelativeLayout.LayoutParams;

public class Main extends Activity implements OnTouchListener {
    private ImageView mImg1, mImg2;

    /** Called when the activity is first created. */
    @Override
    public void onCreate(Bundle savedInstanceState) {
        super.onCreate(savedInstanceState);
        setContentView(R.layout.main);
        mImg1 = (ImageView) findViewById(R.id.xImg1);
        mImg2 = (ImageView) findViewById(R.id.xImg2);
        mImg1.setOnTouchListener(this);
        mImg2.setOnTouchListener(this);
    }

    int x1 = 100, y1 = 10, x2 = 200, y2 = 50;

    @Override
    public boolean onTouch(View v, MotionEvent event) {

        if (v == mImg1) {

            LayoutParams mLayoutParams = (LayoutParams) mImg1.getLayoutParams();
            if (event.getAction() == MotionEvent.ACTION_MOVE) {

                x1 = (int) event.getRawX();
                y1 = (int) event.getRawY();
                mLayoutParams.leftMargin = x1 - 5;
                mLayoutParams.topMargin = y1 - 60;
                mImg1.setLayoutParams(mLayoutParams);
                check();

            }
        } else if (v == mImg2) {

            LayoutParams mLayoutParams = (LayoutParams) mImg2.getLayoutParams();
            if (event.getAction() == MotionEvent.ACTION_MOVE) {
                x2 = (int) event.getRawX();
                y2 = (int) event.getRawY();
                mLayoutParams.leftMargin = x2 - 5;
                mLayoutParams.topMargin = y2 - 60;
                mImg2.setLayoutParams(mLayoutParams);
                check();
            }

        }

        return true;
    }

    boolean b = false;

    private void check() {

        if (x1 == x2 || y1 == y2) {
            if (!b) {
                b = true;
Log.w("---> x1 " + x1 + "   y1 :" + y1 + "   x2: " + x2+ " y2 :" + y2 + "", "-->");
        Toast.makeText(getApplicationContext(), " interected ", 0)
                        .show();
                mImg1.setOnTouchListener(null);
                mImg2.setOnTouchListener(null);

            }
        }
    }

}

Picture 1:

line image one

Picture 2:

lineimage 2

Picture 3:

Intersection pint final out put

How do you get intersection point of these two lines ?

share|improve this question
1  
Do you know what the lines are (i.e., start/ending points for each)? I'd also ask why use two ImageViews for separate lines, but I suppose there's a reason for that. Also, you should probably add the code to the question instead of linking to a blog entry. –  nil Jul 5 '11 at 6:26

1 Answer 1

I would start this one with pure mathematics!

Assuming, that both ImageView1 and ImageView2 have no cropping (e.g. the lines in the pictures are the diagonal of the ImageView), you could use the width and the height of both pic's to express both lines in formulas. Here's an example. NOTE: I use the Android coordinate system -> point (0,0) is top left corner with y incrementing to the bottom!!!

Click here for graphical representation

Line1

y = h1/w1(x - a1) + b1

Line2

y = -h2/w2(x - a2) + b1 + h2

Now we want the point where line1 = line2, so we get

h1/w1(x - a1) + b1 = -h2/w2(x - a2) + b1 + h2

If you re-write the equation you'll get:

x = (w1*w2*(b2 + h2 - b1) + h1*w2*a1 + h2*w1*a2) / (h1*w2 + h2*w1);

Once you know the x-coordinate, you can use that to find the y-coordinate... Below is some code:


private void check() 
    {
        // Setup variables for shorter notation
        int w1 = mImg1.getWidth();
        int h1 = mImg1.getHeight();
        int a1 = mImg1.getLeft();
        int b1 = mImg1.getTop();

        int w2 = mImg2.getWidth();
        int h2 = mImg2.getHeight();
        int a2 = mImg2.getLeft();
        int b2 = mImg2.getTop();

        int x = 0;
        if(h1*w2 + h2*w1 == 0)
        {   // Return to avoid division by zero
            return;
        }
        else
        {   // Calculate the x-value using the re-written formula
            x = (w1*w2*(b2 + h2 - b1) + h1*w2*a1 + h2*w1*a2) / (h1*w2 + h2*w1);
        }

        // Now use the x-value to calculate the y-value
        int y = h1 / w1 * (x - a1) + b1;

        Log.d("Output", "x: " + x + " y:" + y);     
    }

NOTE: You might want to set your ImageViews to android:width="wrap_content" and android:height="wrap_content". Otherwise, the images are fixed to the size you enter! I've tested it with an ImageView with a circle background. If you use the calculated x-y coordinates, it draws the ball right at the intersection! Good luck

share|improve this answer
    
im done with getting coordinates and even forming line equation... after dat wat shud i do, im struck there –  Rosalie Jul 6 '11 at 3:53
    
I've updated my answer with code. If you run into problems, let me know –  Entreco Jul 26 '11 at 8:40
    
Did this fixed the problem for you? –  Entreco Oct 22 '11 at 14:49
    
No.. I have tried it in some other way but still its not perfect. –  Rosalie Oct 25 '11 at 3:58

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