Tetrahedral mesh deformation with positional constraints
Deforming a tetrahedral mesh to conform to geometry modifications is a useful process in applications. This paper presents a method for tetrahedral mesh deformation driven by displacement of partial vertices of the mesh. The basic techniques behind the method are radial basis function (RBF)-based in...
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sg-ntu-dr.10356-1548942023-11-03T07:25:17Z Tetrahedral mesh deformation with positional constraints Zhang, Wenjing Ma, Yuewen Zheng, Jianmin Allen, William J. School of Computer Science and Engineering HP-NTU Digital Manufacturing Corporate Lab Engineering::Computer science and engineering Tetrahedral Mesh Constrained Deformation Deforming a tetrahedral mesh to conform to geometry modifications is a useful process in applications. This paper presents a method for tetrahedral mesh deformation driven by displacement of partial vertices of the mesh. The basic techniques behind the method are radial basis function (RBF)-based interpolation and adaptive mesh refinement. The method is realized by a warping process that transforms the mesh via iterative RBF-based interpolation to avoid the inversion of tetrahedra. Adaptive refinement by locally bisecting potentially inverted tetrahedra is also introduced to assure sufficiently large warping stepsizes. The refinement is performed on both the input mesh and the warped meshes concurrently to maintain the consistency of the topology. As a result, the method can effectively produce an inversion-free and topology compatible deformation mesh that satisfies hard positional constraints. Experimental results show the effectiveness of the method. Ministry of Education (MOE) This work was conducted in collaboration with HP Inc. and partially supported by the Singapore Government through the Industry Alignment Fund Industry Collaboration Projects Grant. It was also partially supported by the Ministry of Education, Singapore, under its MOE Tier-2 Grant (2017-T2-1-076). 2022-01-13T03:52:57Z 2022-01-13T03:52:57Z 2020 Journal Article Zhang, W., Ma, Y., Zheng, J. & Allen, W. J. (2020). Tetrahedral mesh deformation with positional constraints. Computer Aided Geometric Design, 81, 101909-. https://dx.doi.org/10.1016/j.cagd.2020.101909 0167-8396 https://hdl.handle.net/10356/154894 10.1016/j.cagd.2020.101909 2-s2.0-85086629597 81 101909 en 2017-T2-1-076 Computer Aided Geometric Design © 2020 Elsevier B.V. All rights reserved. |
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Engineering::Computer science and engineering Tetrahedral Mesh Constrained Deformation Zhang, Wenjing Ma, Yuewen Zheng, Jianmin Allen, William J. Tetrahedral mesh deformation with positional constraints |
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Deforming a tetrahedral mesh to conform to geometry modifications is a useful process in applications. This paper presents a method for tetrahedral mesh deformation driven by displacement of partial vertices of the mesh. The basic techniques behind the method are radial basis function (RBF)-based interpolation and adaptive mesh refinement. The method is realized by a warping process that transforms the mesh via iterative RBF-based interpolation to avoid the inversion of tetrahedra. Adaptive refinement by locally bisecting potentially inverted tetrahedra is also introduced to assure sufficiently large warping stepsizes. The refinement is performed on both the input mesh and the warped meshes concurrently to maintain the consistency of the topology. As a result, the method can effectively produce an inversion-free and topology compatible deformation mesh that satisfies hard positional constraints. Experimental results show the effectiveness of the method. |
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School of Computer Science and Engineering |
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School of Computer Science and Engineering Zhang, Wenjing Ma, Yuewen Zheng, Jianmin Allen, William J. |
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Article |
author |
Zhang, Wenjing Ma, Yuewen Zheng, Jianmin Allen, William J. |
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Zhang, Wenjing |
title |
Tetrahedral mesh deformation with positional constraints |
title_short |
Tetrahedral mesh deformation with positional constraints |
title_full |
Tetrahedral mesh deformation with positional constraints |
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Tetrahedral mesh deformation with positional constraints |
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Tetrahedral mesh deformation with positional constraints |
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tetrahedral mesh deformation with positional constraints |
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2022 |
url |
https://hdl.handle.net/10356/154894 |
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1781793799700217856 |