arXiv:2410.18852cs.CGcs.AI2024-10被引 3

用深度学习加速六面体网格生成,支持高精度体积样条构造

DL-Polycube: Deep learning enhanced polycube method for high-quality hexahedral mesh generation and volumetric spline construction

  • 结合深度学习与无监督学习,自动完成曲面分割与多立方体结构识别
  • 生成的六面体网格质量高,可直接用于等几何分析,提速显著
  • 适合需要高质量网格与精确建模的工程仿真领域

本文提出一种新型算法DL-Polycube,将深度学习与多立方体方法结合,用于生成高质量六面体网格,并构建体积样条以支持等几何分析。该方法首先建立三角形曲面网格与多立方体结构之间的映射关系,利用深度神经网络对曲面网格进行多立方体结构分类;随后结合获得的多立方体结构信息与无监督学习实现表面分割,解决传统分割不匹配多立方体结构的问题并减少人工干预。基于多立方体结构,采用八叉树细分、参数映射及质量优化技术生成高质量六面体网格。最后在生成的六面体网格上构建截断层次B样条,提取三变量Bézier单元并直接应用于等几何分析。通过多个实例验证了DL-Polycube算法的鲁棒性。

原文摘要 · Abstract (English)

In this paper, we present a novel algorithm that integrates deep learning with the polycube method (DL-Polycube) to generate high-quality hexahedral (hex) meshes, which are then used to construct volumetric splines for isogeometric analysis. Our DL-Polycube algorithm begins by establishing a connection between surface triangular meshes and polycube structures. We employ deep neural network to classify surface triangular meshes into their corresponding polycube structures. Following this, we combine the acquired polycube structural information with unsupervised learning to perform surface segmentation of triangular meshes. This step addresses the issue of segmentation not corresponding to a polycube while reducing manual intervention. Quality hex meshes are then generated from the polycube structures, with employing octree subdivision, parametric mapping and quality improvement techniques. The incorporation of deep learning for creating polycube structures, combined with unsupervised learning for segmentation of surface triangular meshes, substantially accelerates hex mesh generation. Finally, truncated hierarchical B-splines are constructed on the generated hex meshes. We extract trivariate Bézier elements from these splines and apply them directly in isogeometric analysis. We offer several examples to demonstrate the robustness of our DL-Polycube algorithm.

六面体网格深度学习等几何分析样条构造

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