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首页> 外文期刊>ISPRS Journal of Photogrammetry and Remote Sensing >Extraction and motion estimation of vehicles in single-pass airborne LiDAR data towards urban traffic analysis
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Extraction and motion estimation of vehicles in single-pass airborne LiDAR data towards urban traffic analysis

机译:单通机载LiDAR数据中车辆的提取和运动估计,用于城市交通分析

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摘要

Airborne LiDAR data are characterized by involving not only rich spatial but also temporal information. It is possible to extract vehicles with motion artifacts from single-pass airborne LiDAR data, based on which the motion state and velocity of vehicles can be identified and derived. In this paper, a complete strategy for urban traffic analysis using airborne LiDAR data is presented. An adaptive 3D segmentation method is presented to facilitate the task of vehicle extraction. The method features an ability to detect local arbitrary modes at multi scales, thereby making it particularly appropriate for partitioning complex point cloud data. Vehicle objects are then extracted by a binary classification using object-based features. Furthermore, the motion analysis for extracted vehicles is performed to distinguish between moving and stationary ones. Finally, the velocity is estimated for moving vehicles. The applicability and efficiency of the presented strategy is demonstrated and evaluated on three ALS datasets acquired for the propose of city mapping, where up to 87% of vehicles have been extracted and up to 83% of moving traffic can be recovered together with reasonable velocity estimates. It can be concluded that airborne LiDAR data can provide value-added products for traffic monitoring applications, including vehicle counts, location and velocity, along with traditional products such as building models, DEMs and vegetation models.
机译:机载LiDAR数据的特征在于不仅涉及丰富的空间信息,而且还涉及时间信息。可以从单程机载LiDAR数据中提取带有运动伪影的车辆,基于该数据可以识别和导出车辆的运动状态和速度。本文提出了一种使用机载LiDAR数据进行城市交通分析的完整策略。提出了一种自适应3D分割方法,以方便车辆提取任务。该方法具有在多尺度上检测局部任意模式的能力,从而使其特别适用于分割复杂的点云数据。然后使用基于对象的特征通过二进制分类提取车辆对象。此外,针对提取的车辆执行运动分析以区分移动的车辆和静止的车辆。最后,估计移动车辆的速度。在为城市地图建议而获得的三个ALS数据集上论证并评估了所提出策略的适用性和效率,其中提取了多达87%的车辆,可以回收多达83%的移动交通以及合理的速度估算。可以得出结论,机载LiDAR数据可以为交通监控应用提供增值产品,包括车辆数量,位置和速度,以及传统产品(例如建筑模型,DEM和植被模型)。

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