A Closed-Form Formulation of HRBF-Based Surface Reconstruction
July 10, 2015 Β· Declared Dead Β· π Comput. Aided Des.
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Authors
Shengjun Liu, Charlie C. L. Wang, Guido Brunnett, Jun Wang
arXiv ID
1507.02860
Category
cs.GR: Graphics
Citations
45
Venue
Comput. Aided Des.
Last Checked
6 months ago
Abstract
The Hermite radial basis functions (HRBFs) implicits have been used to reconstruct surfaces from scattered Hermite data points. In this work, we propose a closed-form formulation to construct HRBF-based implicits by a quasi-solution approximating the exact solution. A scheme is developed to automatically adjust the support sizes of basis functions to hold the error bound of a quasi-solution. Our method can generate an implicit function from positions and normals of scattered points without taking any global operation. Working together with an adaptive sampling algorithm, the HRBF-based implicits can also reconstruct surfaces from point clouds with non-uniformity and noises. Robust and efficient reconstruction has been observed in our experimental tests on real data captured from a variety of scenes.
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