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Road traffic sign detection and classification from mobile LiDAR point clouds

机译:从移动激光器点云的道路交通标志检测和分类

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Traffic signs are important roadway assets that provide valuable information of the road for drivers to make safer and easier driving behaviors. Due to the development of mobile mapping systems that can efficiently acquire dense point clouds along the road, automated detection and recognition of road assets has been an important research issue. This paper deals with the detection and classification of traffic signs in outdoor environments using mobile light detection and ranging (LiDAR) and inertial navigation technologies. The proposed method contains two main steps. It starts with an initial detection of traffic signs based on the intensity attributes of point clouds, as the traffic signs are always painted with highly reflective materials. Then, the classification of traffic signs is achieved based on the geometric shape and the pairwise 3D shape context. Some results and performance analyses are provided to show the effectiveness and limits of the proposed method. The experimental results demonstrate the feasibility and effectiveness of the proposed method in detecting and classifying traffic signs from mobile LiDAR point clouds.
机译:交通标志是重要的道路资产,提供道路的宝贵信息,以使驱动器更安全,更容易驾驶行为。由于移动映射系统的开发,可以有效地获得沿着道路的浓度云,自动检测和识别道路资产一直是一个重要的研究问题。本文涉及使用移动光检测和测距(LIDAR)和惯性导航技术的户外环境中交通标志的检测和分类。所提出的方法包含两个主要步骤。它首先基于点云的强度属性初始检测流量标志,因为交通标志始终用高度反射材料涂漆。然后,基于几何形状和成对3D形状上下文来实现交通标志的分类。提供了一些结果和性能分析,以显示所提出的方法的有效性和限制。实验结果表明了所提出的方法在从移动激光器点云中检测和分类交通标志的可行性和有效性。

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