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I'm trying to develop a component that should look somewhat like this

I'm using RaphaelJS to draw this and that works just fine. I have an array of angles which I use to calculate the paths of the individual segments. I store these paths in a simple array so the inner circle is at segments[0] and so on spiralling outwards.

My problem is that I need each segment to be aware of it's adjacent segments both clockwise, anti-clockwise, inwards and outwards and I'm having difficulty figuring out how to calculate the position of these is my segment array. So for instance, in the case of the above diagram, the red segment at level 2 (where 0 is the inner-most circle) has red, bright green, kaki, light purple and dark purple neighbours.

Perhaps I need a different coordinate system. If each level had the same number and angle distribution of segments it would be a simple case of using modulus's like indexing a circular array but this isn't the case.

Any help would be much appreciated.

Many Thanks,

Anthony

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What happens when one segment overlaps two outer or inner segments? Or more? –  TheZ Jun 20 '12 at 22:32
    
From the perspective of a given segment, if more than one outer segments 'overlay' the segment, they are all considered adjacent to this original segment. Same for inner segments. –  Anthony Webster Jun 20 '12 at 22:36
    
You'd have to iterate through adjacent outer and inner segments and check if the angles of both ends of a slice are within/equal to the ends of each other segment, and vice versa. Not a "fast" process, but likely the simplest. –  TheZ Jun 20 '12 at 22:47
    
You should not post an image link on Stack Overflow which is temporarily available, like your Dropbox link (which is gone now, only one week after posting your question). Stack Exchange has its own image server, on which your images get uploaded and linked automatically if you upload an image when posting your question. Could you please re-upload your image and use this feature for the future if you need to post an image in a question (or answer) again? –  leemes Jun 28 '12 at 12:05

1 Answer 1

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I'd change how you're storing the segments from one sorted array into one sorted array per level.

Finding the neighbours of a given segment (S) is then fairly easy: the left and right neighbours are the previous and next elements of that level's array.

The neighbours in the adjacent levels are found with a couple of binary searches in those arrays: find the segments that coincide with the start and end angles of S, the neighbours are the sequence of segments between those two.

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