Article ID Journal Published Year Pages File Type
4640847 Journal of Computational and Applied Mathematics 2009 11 Pages PDF
Abstract

We propose a new method to approximate a given set of ordered data points by a spatial circular spline curve. At first an initial circular spline curve is generated by biarc interpolation. Then an evolution process based on a least-squares approximation is applied to the curve. During the evolution process, the circular spline curve converges dynamically to a stable shape. Our method does not need any tangent information. During the evolution process, the number of arcs is automatically adapted to the data such that the final curve contains as few arc arcs as possible. We prove that the evolution process is equivalent to a Gauss–Newton-type method.

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Physical Sciences and Engineering Mathematics Applied Mathematics
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