Unknown object extraction for robot partner using depth sensor

H. Masuta, Shinichiro Makino, Hun-ok Lim, T. Motoyoshi, K. Koyanagi, T. Oshima
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引用次数: 4

Abstract

This paper describes an object extraction method based on plane detection to extract an unknown object for service robots that use a depth sensor. Recently, depth sensors are used to perceive 3D space in an environment. In robot perception, a depth sensor have used for perceiving unknown environment, such as surface reconstruction, model fitting and so on. Point Cloud Library is famous open source library to deal with 3D point cloud data. However, robot perception for grasping have limitations with high computational costs and low-accuracy for perceiving small objects. Therefore, we proposed the PSO-based plane detection method with RG and the object extraction method based on geometric invariance. To verify accuracy and computational cost for unknown object extraction, we have compared the proposed method with PCL. As an experimental result, we show that the proposed method has higher accuracy and less computational cost drastically for an unknown object extraction.
基于深度传感器的机器人同伴未知目标提取
针对使用深度传感器的服务机器人,提出了一种基于平面检测的目标提取方法。最近,深度传感器被用于感知环境中的三维空间。在机器人感知中,深度传感器被用于感知未知环境,如表面重构、模型拟合等。点云库是著名的处理三维点云数据的开源库。然而,机器人抓取感知存在计算成本高、小物体感知精度低等局限性。因此,我们提出了基于pso的RG平面检测方法和基于几何不变性的目标提取方法。为了验证未知目标提取的准确性和计算成本,我们将该方法与PCL进行了比较。实验结果表明,该方法对于未知目标的提取具有更高的精度和更少的计算量。
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