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Mass-Driven Topology-Aware Curve Skeleton Extraction from Incomplete Point Clouds

机译:群众驱动的拓扑意识意识曲线骨架从不完整点云提取

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We introduce a mass-driven curve skeleton as a curve skeleton representation for 3D point cloud data. The mass-driven curve skeleton presents geometric properties and mass distribution of a curve skeleton simultaneously. The computation of the mass-driven curve skeleton is formulated as a minimization of Wasserstein distance, with an entropic regularization term, between mass distributions of point clouds and curve skeletons. Assuming that the mass of one sampling point should be transported to a line-like structure, a topology-aware rough curve skeleton is extracted via the optimal transport plan. A Dirichlet energy regularization term is then used to obtain a smooth curve skeleton via geometric optimization. Given that rough curve skeleton extraction does not depend on complete point clouds, our algorithm can be directly applied to curve skeleton extraction from incomplete point clouds. We demonstrate that a mass-driven curve skeleton can be directly applied to an unoriented raw point scan with significant noise, outliers and large areas of missing data. In comparison with state-of-the-art methods on curve skeleton extraction, the performance of the proposed mass-driven curve skeleton is more robust in terms of extracting a correct topology.
机译:我们将质量驱动的曲线骨架引入3D点云数据的曲线骨架表示。质量驱动的曲线骨架同时呈现曲线骨架的几何特性和质量分布。质量驱动曲线骨架的计算作为最小化Wassersein距离,具有熵正则化术语,在点云和曲线骨架的质量分布之间。假设一个采样点的质量应该被运输到线状结构,通过最佳运输计划提取拓扑感知粗糙曲线骨架。然后使用Dirichlet能量正则化术语通过几何优化获得光滑的曲线骨架。鉴于粗糙曲线骨架提取不依赖于完整点云,我们的算法可以直接应用于不完整点云的曲线骨架提取。我们证明了质量驱动的曲线骨架可以直接应用于具有显着噪声,异常值和缺失数据的大面积的无知的原始点扫描。与关于曲线骨架提取的最先进方法相比,提取的质量驱动曲线骨架的性能在提取正确的拓扑方面是更稳健的。

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