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I have a simple example (SVG source) looks like you can see below. The path with id "rect2816" described in d attribute:

m 140.53571,188.625 0,148.1875 273.9375,0 0,-148.1875 -273.9375,0 z 
m 132.25,42.03125 c 3.64586,0.0236 7.47296,0.12361 11.5,0.28125 36.65941,1.43507 57.84375,15.88072 57.84375,32.84375 0,7.41614 -1.94981,21.58652 -13.28125,24.09375 -14.58711,3.2276 -40.46224,-5.35276 -53.125,6.625 -26.65285,25.21104 -48.00843,-19.04537 -57.875,-32.84375 -12.16196,-17.00847 0.24962,-31.35357 54.9375,-31 z

Here, the first line describes parent polygon, the second - the hole (as you can see). But How can I find this hole program way? I'm using Python. Maybe there is some library for easy solution?

A polygon inside other polygon

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One possibility is to see if every vertex of the second polygon is inside the first polygon and that no edges of the second polygon cross the first one. –  Vaughn Cato Apr 5 '12 at 13:13

2 Answers 2

up vote 2 down vote accepted

Transform the paths into (x,y) pairs and apply this function for each point of the second polygon.

http://www.ariel.com.au/a/python-point-int-poly.html

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To transform an arbitrary path into a polygon, see phrogz.net/svg/convert_path_to_polygon.xhtml –  Phrogz Apr 5 '12 at 14:50

Not so much of a Pythonic answer, but a geometrical-algorithmical:

Polygon B is inside of polygon A iff each corner of B and each edge of B is completely inside polygon A.

To find whether a corner (a point) is inside a polygon, a simple approach is to bite off so-called "ears" off the polygon. An "ear" is a convex corner, and biting it off means to simply remove this corner. With each biting act, check whether the point is inside the ear (the triangle you bit off). (There's mathematical proof that for each loopless polygon you can find at least two such ears (convex corners).)

To find whether an edge of B is completely inside A means you have to find out whether the edge is cutting any edge of polygon A.

Of course, if both polygons are completely convex, you don't have to check the edges at all.

That's a straight-forward approach without the details on the basic geometric checks you will have to perform. But maybe it helps you.

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mihai gave me Pythonic implementation of your suggestion. Thank you! –  art.zhitnik Apr 5 '12 at 14:09

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