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(Guest Editors) Abstract Implicit Surface Modelling with a Globally Regularised Basis of Compact Support (2008)

Abstract
We consider the problem of constructing a globally smooth analytic function that represents a surface implicitly by way of its zero set, given sample points with surface normal vectors. The contributions of the paper include a novel means of regularising multi-scale compactly supported basis functions that leads to the desirable interpolation properties previously only associated with fully supported bases. We also provide a regularisation framework for simpler and more direct treatment of surface normals, along with a corresponding generalisation of the representer theorem lying at the core of kernel-based machine learning methods. We demonstrate the techniques on 3D problems of up to 14 million data points, as well as 4D time series data and four-dimensional interpolation between three-dimensional shapes. Categories and Subject Descriptors (according to ACM CCS): I.3.5 [Computer Graphics]: Curve, surface, solid, and object representations 1.

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Download http://citeseerx.ist.psu.edu/viewdoc/summary?doi=10.1.1.83.5196
Quelle http://www.kyb.mpg.de/publications/attachments/ImplicitElectronic_3958[0].pdf
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Typ text
Sprache Englisch
Verknüpfungen 10.1.1.21.9178, 10.1.1.58.1770, 10.1.1.20.9096, 10.1.1.129.7826, 10.1.1.97.9945