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Mesh Reduction to Exterior Surface Parts via Random Convex-Edge Affine Features

机译:通过随机凸边仿射特征减少对外部零件的网格划分

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Data fusion of inputs from fundamentally different imaging techniques requires the identification of a common subset to allow for registration and alignment. In this paper, we describe how to reduce the isosurface of a volumetric object representation to its exterior surface, as this is the equivalent amount of data an optical surface scan of the very same specimen provides. Based on this, the alignment accuracy is improved, since only the overlap of both inputs has to be considered. Our approach allows for a rigorous reduction below 1 % of the original surface while preserving salient features and landmarks needed for further processing. The presented algorithm utilizes neighborhood queries from random points on an ellipsoid enclosing the specimen to identify data points in the mesh. Results for a real world object show a significant increase in alignment accuracy after reduction, compared to the alignment of the original representations via standard approaches.
机译:来自根本不同的成像技术的输入的数据融合需要标识一个公共子集,以实现配准和对齐。在本文中,我们描述了如何将体积对象表示的等值面减少到其外表面,因为这是同一样本的光学表面扫描提供的等效数据量。基于此,由于仅需考虑两个输入的重叠,因此可以提高对准精度。我们的方法允许将原始表面严格减少至1%以下,同时保留进一步处理所需的显着特征和界标。提出的算法利用包围样本的椭球上随机点的邻域查询来识别网格中的数据点。与通过标准方法对原始表示进行对齐相比,现实世界对象的结果显示,缩减后对齐精度显着提高。

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