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A method for object detection using point cloud measurement in the sea environment

机译:一种在海洋环境中使用点云测量的物体检测方法

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This paper describes a method for detection of object using 3D point cloud measurement in the sea environment. The method employs RBNN clustering method and using a 3D Lidar, mono-vision and stereo-vision cameras, and radar vision system. A radially based nearest neighbors (RBNN) clustering technique is adopted to perform object detection on 3D point cloud clustering. RBNN is constructing clusters based on the radius or distance parameter. In RBNN, each 3D point searches its nearest neighbor (NN) under some radius threshold value and combines all the neighboring points as a group or cluster. The experimental results verify the performance of RBNN to detect objects from 3D point cloud measurements in sea environment.
机译:本文介绍了一种在海洋环境中使用3D点云测量来检测物体的方法。该方法采用RBNN聚​​类方法,并使用3D激光雷达,单视觉和立体视觉相机以及雷达视觉系统。采用基于径向的最近邻(RBNN)聚类技术对3D点云聚类进行对象检测。 RBNN正在基于radius或distance参数构建聚类。在RBNN中,每个3D点都在某个半径阈值下搜索其最近邻居(NN),并将所有相邻点组合为一个组或群集。实验结果验证了RBNN在海洋环境中从3D点云测量中检测物体的性能。

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