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Physical scale keypoints: Matching and registration for combined intensity/range images

机译:物理比例关键点:匹配和配准组合的强度/范围图像

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摘要

We present a new framework for detecting, describing, and matching keypoints in combined range-intensity data, resulting in what we call physical scale keypoints. We first produce an image mesh by backprojecting associated 2D intensity images onto the 3D range data. We detect and describe keypoints on the image mesh using an analogue of the SIFT algorithm for images with two key modifications: the process is made insensitive to viewpoint and structural discontinuities using a novel bilinear filter, and a physical scale space is constructed that exploits the reliable range measurements. Keypoints are matched between scans only when their physical scales agree, avoiding many potential false matches. Finally, the matches are rank-ordered using a new quality measure and supplied to a registration algorithm that refines each match into a rigid transformation for the entire scan pair. We report experimental results on keypoint detection and matching and range scan registration and verification in a set of difficult real-world scan pairs, showing that the new physical scale keypoints are demonstrably better than a competing approach based on backprojected SIFT keypoints.
机译:我们提供了一个新的框架,用于检测,描述和匹配组合的范围强度数据中的关键点,从而产生了所谓的物理尺度关键点。我们首先通过将关联的2D强度图像反投影到3D范围数据上来生成图像网格。我们使用SIFT算法的类似物对图像进行检测并描述了图像网格上的关键点,并进行了两个关键修改:使用新型双线性滤波器使该过程对视点和结构不连续变得不敏感,并且构造了利用可靠度的物理比例空间范围测量。关键点只有在其物理比例一致时才在扫描之间进行匹配,从而避免了许多潜在的错误匹配。最后,使用新的质量度量对匹配进行排序,并提供给配准算法,配准算法将每个匹配细化为整个扫描对的严格转换。我们在一组困难的真实世界扫描对中报告了关键点检测和匹配以及范围扫描注册和验证的实验结果,结果表明,新的物理规模关键点明显优于基于反向投影SIFT关键点的竞争方法。

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