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Layer-based supervised classification of moving objects in outdoor dynamic environment using 3D laser scanner

机译:使用3D激光扫描仪在室外动态环境中对移动物体进行基于层的监督分类

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摘要

In this paper, we present a layered approach for classification of moving objects from 3D range data based on supervised learning technique. Our approach combines the model based classification in 2D with boosting for classifying the objects into four classes of interest namely bus, car, bike and pedestrian. In contrast to most of the existing work on 3D classification which involves extensive feature extraction and description, this combination uses simple single-valued features and allows our system to perform efficiently. The proposed method can be used in conjunction with any type of range sensors, however, we have demonstrated its performance using the data acquired from a Velodyne HDL-64E laser scanner.
机译:在本文中,我们提出了一种基于监督学习技术从3D范围数据对运动对象进行分类的分层方法。我们的方法将基于模型的2D分类与通过增强将对象分类为感兴趣的四类(公交车,汽车,自行车和行人)相结合。与涉及大量特征提取和描述的大多数现有3D分类工作相反,此组合使用简单的单值特征,并使我们的系统高效执行。所提出的方法可以与任何类型的距离传感器一起使用,但是,我们已经使用从Velodyne HDL-64E激光扫描仪获得的数据证明了其性能。

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