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I have two Point structures and I need to draw an I-Beam based on those points, where each point represents the cross-section on either side of the I-Beam. The width of the end caps should be fixed and arbitrary.

Basically I need to draw three lines. First I'll DrawLine(Point1, Point2), then I need the math to figure out how to draw the next two lines on perpendicular angles so that they are centered on Point1 and Point2.

The image below shows what I need to draw based on the center line. However, this line can be at any angle. The Point1 and Point2 that connect the line can be anywhere in a 2D space.

Example of an I-Beam

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Please describe your problem in a way that people unfamiliar with what you are trying to do can understand it. –  Dour High Arch Sep 7 '11 at 17:20
    
An I-Beam, like the letter I. See bit.ly/odjXNT. Or google image search for I-Beam. I have the middle line already (drawn from two points, one at each end). I need to draw the other two lines. –  Trevor Elliott Sep 7 '11 at 18:08
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2 Answers

up vote 4 down vote accepted

You can try playing around with LineCaps:

protected void DrawIBeam(Graphics g, Point fromPoint, Point toPoint)
{
  using (GraphicsPath hPath = new GraphicsPath())
  {
    hPath.AddLine(new Point(-5, 0), new Point(5, 0));
    CustomLineCap myCap = new CustomLineCap(null, hPath);
    myCap.SetStrokeCaps(LineCap.Round, LineCap.Round);
    using (Pen myPen = new Pen(Color.Black, 2))
    {
      myPen.CustomStartCap = myCap;
      myPen.CustomEndCap = myCap;
      g.DrawLine(myPen, fromPoint, toPoint);
    }
  }
}

and call it:

DrawIBeam(e.Graphics, new Point(10, 10), new Point(60, 60));

enter image description here

From CustomLineCap Class

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This worked awesome, and very customizable. Thanks! This solution is the best since I don't need to re-invent the wheel and can let the GDI calculate the math. –  Trevor Elliott Sep 7 '11 at 18:26
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Assuming a width that's half the width of the I part of the I beam, first you find the slope of the first line you drew.

Next, you take the negative inverse of the slope, and draw a line from Point1 of length width in both directions. That's why width is half of the width you want to draw.

Finally you draw a line from Point 2 of length width in both directions.

Here's the mathematical formula for drawing a perpendicular line.

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I was trying this, but I wasn't so much as looking for the mathematical functions as I was looking to translate those functions into real code. For example, using those formulas I was getting divide-by-zero errors sometimes, which I didn't know how to deal with. –  Trevor Elliott Sep 7 '11 at 18:30
    
@Moozhe: True. If the slope of the line from Point1 to Point2 is zero, the inverse slope will be infinity. That's a special case (line horizontal, I parts vertical as well as line vertical, I parts horizontal) that you'll have to handle without taking the negative inverse slope. –  Gilbert Le Blanc Sep 7 '11 at 18:34
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