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I see that Region.IsVisible(rectangle) is not working as I expect.
So, is me who expect that should not, or is the method that is doing not that it should ??!

I have the following situation:

alt text alt text

And the following code:

private void Form1_Paint(object sender, PaintEventArgs e)
{
    Point[] points1 = new Point[] {
        new Point(50, 30),
        new Point(70, 30),
        new Point(40, 40),
        new Point(60, 70),
        new Point(30, 50)
    };

    Point[] points2 = new Point[] {
        new Point(70, 150),
        new Point(50, 110 ),
        new Point(60, 80),
        new Point(90, 80),
        new Point(140, 60)                
    };

    Point[] points3 = new Point[] {
        new Point(100, 10),
        new Point(130, 40)
    };

    GraphicsPath path1 = new GraphicsPath();
    GraphicsPath path2 = new GraphicsPath();
    GraphicsPath path3 = new GraphicsPath();

    path1.AddLines(points1);
    path2.AddLines(points2);
    path3.AddLines(points3);

    e.Graphics.DrawPath(Pens.DarkBlue, path1);
    e.Graphics.DrawPath(Pens.DarkGreen, path2);
    e.Graphics.DrawPath(Pens.DarkOrange, path3);

    Region r1 = new Region(path1);
    Region r2 = new Region(path2);
    Region r3 = new Region(path3);

    // Create the first rectangle and draw it to the screen in blue.
    Rectangle blueRect = new Rectangle(20, 20, 100, 100);
    e.Graphics.DrawRectangle(Pens.Blue, blueRect);

    bool contained;

    // Display the result.                        
    ControlPaint.DrawGrid(e.Graphics, this.ClientRectangle,
        new Size(10, 10), Color.Red);

    contained = r1.IsVisible(blueRect);
    e.Graphics.DrawString("Path blue contained = " + contained.ToString(),
        Font, myBrush, new PointF(20, 160));

    contained = r2.IsVisible(blueRect);
    e.Graphics.DrawString("Path green contained = " + contained.ToString(),
        Font, Brushes.Black, new PointF(20, 180));

    contained = r3.IsVisible(blueRect);
    e.Graphics.DrawString("Path orange contained = " + contained.ToString(),
        Font, Brushes.Black, new PointF(20, 200));
}

Also, a path that is not in the region could be "visible":

Point[] points3 = new Point[] {
  new Point(15, 35),
  new Point(15, 130),
  new Point(60 ,130)
};

EDIT:
Even Intersect does not work for the second L path:

Point[] points3 = new Point[] {
    new Point(10, 40),
    new Point(10, 130),
    new Point(50 ,130)
};

r3.Intersect(blueRect);
bool contained = !(r1.IsEmpty(e.Graphics)); 
e.Graphics.DrawString("Path orange contained = " + contained.ToString(),
    Font, Brushes.Black, new PointF(20, 200)); // TRUE! instead of desired FALSE
share|improve this question
1  
Interesting question. It seems that it only checks for all explicit points being inside the rectangle. However, the docs state: "Tests whether any portion of the specified RectangleF structure is contained within this Region when drawn using the specified Graphics." which leaves some room for interpretation, but I'd tend more towards expecting the line to be visible as well. –  Lucero Jun 28 '10 at 11:45

3 Answers 3

up vote 1 down vote accepted

So, a solution for this was to use... Widen() method for paths before checking its visibility:

private void Form1_Paint(object sender, PaintEventArgs e)
{
    Point[] points1 = new Point[] {
                new Point(50, 30),
                new Point(70, 30),
                new Point(40, 40),
                new Point(60, 70),
                new Point(30, 50)
            };

    Point[] points2 = new Point[] {
                new Point(70, 150),
                new Point(50, 110 ),
                new Point(60, 80),
                new Point(90, 80),
                new Point(140, 60)
            };

    Point[] points4 = new Point[] {
        new Point(50, 50),
        new Point(90, 90)
      };

    Point[] points3 = new Point[] {
                new Point(15, 35),
                new Point(15, 130),
                new Point(60 ,130)
            };

    GraphicsPath path1 = new GraphicsPath();
    GraphicsPath path2 = new GraphicsPath();
    GraphicsPath path3 = new GraphicsPath();
    GraphicsPath path4 = new GraphicsPath();

    path1.AddLines(points1);
    path2.AddLines(points2);
    path3.AddLines(points3);
    path4.AddLines(points4);

    e.Graphics.DrawPath(Pens.DarkBlue, path1);
    e.Graphics.DrawPath(Pens.DarkGreen, path2);
    e.Graphics.DrawPath(Pens.DarkRed, path3);
    e.Graphics.DrawPath(Pens.DarkGoldenrod, path4);

    // <<<< HERE >>>>>
    path3.Widen(Pens.DarkRed);
    path4.Widen(Pens.DarkGoldenrod);

    Region r1 = new Region(path1);
    Region r2 = new Region(path2);
    Region r3 = new Region(path3);
    Region r4 = new Region(path4);

    // Create the first rectangle and draw it to the screen in blue.
    Rectangle blueRect = new Rectangle(20, 20, 100, 100);
    e.Graphics.DrawRectangle(Pens.Blue, blueRect);

    bool contained;

    // Display the result.            
    ControlPaint.DrawGrid(e.Graphics, this.ClientRectangle,
         new Size(10, 10), Color.Red);

    contained = r1.IsVisible(blueRect);
    e.Graphics.DrawString("Path blue contained = " + contained.ToString(),
         Font, Brushes.Black, new PointF(20, 160));

    contained = r2.IsVisible(blueRect);
    e.Graphics.DrawString("Path green contained = " + contained.ToString(),
         Font, Brushes.Black, new PointF(20, 180));

    contained = r3.IsVisible(blueRect);
    e.Graphics.DrawString("Path orange contained = " + contained.ToString(),
         Font, Brushes.Black, new PointF(20, 200));

    contained = r4.IsVisible(blueRect);
    e.Graphics.DrawString("Path DarkGoldenrod contained = " + contained.ToString(),
         Font, Brushes.Black, new PointF(20, 220));
}

As for the question in the thread title: Yes, actually IsVisible of Region is not working as documented in MSDN.

Microsoft should add some precision notes in their documentation.

share|improve this answer
    
Unfortunately. Widen() is not supported in Mono ... –  reinierpost Sep 26 '13 at 22:05

From the orange L-shaped example I see you are misunderstanding what your code does.

Building a region from a path does not yield a region in the form of the drawn path. Building a region from the L-shaped orange path does not yield a L-shaped one pixel width region. The path gets closed by connecting both ends forming a triangle. The region is then the interior of that triangle and the blue rectangle is obviously partial contained in that region.

For the initial example of the single orange line the resulting region is a degenerated polygon with two corners only - still looking like a line and with zero width in the direction orthogonal to the line(s). Therefore the region has zero area and does not contain anything (except maybe points on the border of the region if a region is a closed set).

What you actually want to do is performing a visibility test of a path against the rectangular region of the blue rectangle. As far as I know there is no build-in support for doing this.

share|improve this answer
    
So, you are about to say that the bellow solution of MusiGenesis will not work for the L path. –  serhio Jun 29 '10 at 12:25
    
MusiGenesis' solution should return true, too. The intersection of the region of the blue rectangle with the triangular region created from the L-shaped path is again a triangle - and it is non-empty. But just try it - I did not. –  Daniel Brückner Jun 29 '10 at 13:26
    
Tested, returns True, see the edit... –  serhio Jun 29 '10 at 16:25
    
Returning true should not surprise you - it absolutely obvious. The region created from the L-shaped path overlaps the blue rectangle. Just try Graphics.FillRegion() to visualize the regions you are creating - I think you are still expecting the regions to look completely different from what they actually look like. Could you also add the resulting images to your question because they might help others? You are probably not the only one having this slight misconception in mind. –  Daniel Brückner Jun 29 '10 at 18:59

It may be that the Region.IsVisible method just checks whether any of the endpoints of its component line segments are within the rectangle or not. Thus, the blue and green lines (which each have multiple segment endpoints within the rectangle) are true, while the orange line (which has 0 endpoints within the rectangle) is false.

Technically, your code is actually trying to determine whether each irregular Path contains the blue rectangle (rather than the other way around). An alternative way of doing what you're actually trying to do (but that will probably return the same results) is this:

r1.Intersect(blueRect);
e.Graphics.DrawString("Path blue contained = " + 
    (!r1.IsEmpty(e.Graphics)).ToString(), Font, Brushes.Black, 
    new PointF(20, 200));   
share|improve this answer
1  
This was my idea first too, but I think the problem is not that there is no point of path3 inside the rectangle. Instead, I think the problem might be that path3 only consists of two points. I changed points3 to Point[] points3 = new Point[] { new Point(90, 10), new Point(100, 10), new Point(130, 40) }; and got the expected result. –  0xA3 Jun 28 '10 at 12:12
    
@0xA3: you have reason... there is something strange... –  serhio Jun 28 '10 at 12:19
    
In fact, the problem seems to be that points3 is a one-dimensional object, as Point[] points3 = new Point[] { new Point(90, 0), new Point(100, 10), new Point(130, 40) }; is also not correct. Even more weird, Point[] points3 = new Point[] { new Point(90, 1), new Point(100, 10), new Point(130, 40) }; and Point[] points3 = new Point[] { new Point(90, 2), new Point(100, 10), new Point(130, 40) }; give different results. Looks like a bug to me... –  0xA3 Jun 28 '10 at 12:23
1  
Building a region from a single line is somewhat a degenerated case - even after closing the path it is still only a line and therefore has zero area. I am not really surprised that the test fails and it might well be the correct behavior. –  Daniel Brückner Jun 28 '10 at 12:38
    
@Daniel Brückner: As mentioned Lucero the documentation tells clear what should do the method. So, the correct behavior is that Microsoft described. –  serhio Jun 28 '10 at 12:47

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