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A Performance Evaluation of Correspondence Grouping Methods for 3D Rigid Data Matching

机译:3D刚性数据匹配的对应分组方法的性能评估

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Seeking consistent point-to-point correspondences between 3D rigid data (point clouds, meshes, or depth maps) is a fundamental problem in 3D computer vision. While a number of correspondence selection methods have been proposed in recent years, their advantages and shortcomings remain unclear regarding different applications and perturbations. To fill this gap, this paper gives a comprehensive evaluation of nine state-of-the-art 3D correspondence grouping methods. A good correspondence grouping algorithm is expected to retrieve as many as inliers from initial feature matches, giving a rise in both precision and recall as well as facilitating accurate transformation estimation. Toward this rule, we deploy experiments on three benchmarks with different application contexts, including shape retrieval, 3D object recognition, and point cloud registration. We also investigate various perturbations such as noise, point density variation, clutter, occlusion, partial overlap, different scales of initial correspondences, and different combinations of keypoint detectors and descriptors. The rich variety of application scenarios and nuisances result in different spatial distributions and inlier ratios of initial feature correspondences, thus enabling a thorough evaluation. Based on the outcomes, we give a summary of the traits, merits, and demerits of evaluated approaches and indicate some potential future research directions.
机译:在3D刚性数据(点云,网格或深度映射)之间寻求一致的点对点对应关系是3D计算机视觉中的一个基本问题。虽然近年来提出了许多对应选择方法,但它们的优点和缺点仍然不清楚不同的应用和扰动。为了填补这种差距,本文提供了九届最先进的3D对应分组方法的全面评估。期望良好的对应分组算法将从初始特征匹配中的最基于作为最端值检索,这两种精度和召回都会增加,并促进准确的转换估计。对此规则,我们在具有不同应用上下文的三个基准测试中部署实验,包括形状检索,3D对象识别和点云注册。我们还研究了各种扰动,例如噪声,点密度变化,杂波,闭塞,部分重叠,不同尺度的初始对应关系,以及关键点检测器和描述符的不同组合。丰富的应用方案和滋扰导致初始特征对应关系的不同空间分布和inlier比率,从而实现了彻底的评估。根据结果​​,我们概述了评估方法的特征,优点和缺点并表明了一些潜在的未来研究方向。

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