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Performance Evaluation of 3D Keypoint Detectors

机译:3D关键点探测器的性能评估

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In the past few years detection of repeatable and distinctive keypoints on 3D surfaces has been the focus of intense research activity, due on the one hand to the increasing diffusion of low-cost 3D sensors, on the other to the growing importance of applications such as 3D shape retrieval and 3D object recognition. This work aims at contributing to the maturity of this field by a thorough evaluation of several recent 3D keypoint detectors. A categorization of existing methods in two classes, that allows for highlighting their common traits, is proposed, so as to abstract all algorithms to two general structures. Moreover, a comprehensive experimental evaluation is carried out in terms of repeatability, distinctiveness and computational efficiency, based on a vast data corpus characterized by nuisances such as noise, clutter, occlusions and viewpoint changes.
机译:在过去的几年中,检测3D表面上可重复和独特的关键点一直是研究的重点,一方面是由于低成本3D传感器的普及程度不断提高,另一方面是由于诸如3D形状检索和3D对象识别。这项工作旨在通过对几种最新的3D关键点检测器进行全面评估,为该领域的成熟做出贡献。提出了两类现有方法的分类,以突出它们的共同特征,从而将所有算法抽象为两个通用结构。此外,基于以噪音,杂波,遮挡和视点变化等令人讨厌为特征的庞大数据集,在可重复性,独特性和计算效率方面进行了全面的实验评估。

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