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Group-Valued Regularization for Analysis of Articulated Motion

机译:群值正则化分析关节运动

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We present a novel method for estimation of articulated motion in depth scans. The method is based on a framework for regularization of vector- and matrix- valued functions on parametric surfaces.We extend augmented-Lagrangian total variation regularization to smooth rigid motion cues on the scanned 3D surface obtained from a range scanner. We demonstrate the resulting smoothed motion maps to be a powerful tool in articulated scene understanding, providing a basis for rigid parts segmentation, with little prior assumptions on the scene, despite the noisy depth measurements that often appear in commodity depth scanners.
机译:我们提出了一种新颖的方法,用于估计深度扫描中的关节运动。该方法基于用于参数化表面上矢量和矩阵值函数正则化的框架。我们扩展了拉格朗日总变化正则化,以平滑从范围扫描仪获得的3D扫描表面上的刚性运动提示。尽管商品深度扫描仪中经常出现嘈杂的深度测量结果,但我们证明了生成的平滑运动图将成为铰接式场景理解的有力工具,为场景中几乎没有先验假设的刚性零件分割提供了基础。

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