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I'm having trouble wrapping my head around how to code this, and would appreciate any assistance.

alt text

The picture above is something I googled quickly, but depicts a decent example. Imagine the squares and triangle are able to be moved around by the user. If the user drags and drops the BGFC square "near" the ABC triangle, I would like to automatically snap/move the square to line up with the triangles edge. The vertices do not have to match (and preferrably won't so the snapping isn't so restrictive), I just want move the square so that its closest edge lines up with the triangles closest edge.

Given access to all coordinates/vertices/angles, is there any reasonably straightforward method of accomplishing this snap to edge effect?

If this is too complex an example, how about simply two rectangles with all 90 degree angles in the same situation? Dragging one rectangle near another and automatically snapping the rectangle to the edge of the other.

I'm assuming there is a mathematical way to pull this off, which I would be happy to research given a push in the right direction. Thanks for your help!

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1 Answer 1

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The first image shows a triangle and a square. The side of the triangle follows a line l(1) and the side of the square follows another line l(2).

We now want to determine the distance between the lines. Lets call it d. This value will determine if the square should be moved or not. As you mentioned in your question we know all coordinates and all angles, which means the equations of the lines are also known.

Assuming we know d. We now want to calculate the displacement (dx, dy). Next image shows an enlarged portion of the first image.

alt text

We know the angle a in the triangle so we have:

dx = d * sin a
dy = d * cos a

All you need to know now, is how to calculate the distance d between two parallell lines. I leave this as an exercise for you. Here's a link to get you started:

The Perpendicular Distance between two Parallel Lines

Et Voila !

Edit

You have to excuse my l337 photoshop skillz. But I hope they illustrate enough.

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