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Toward Community Sensing of Road Anomalies Using Monocular Vision

机译:利用单目视觉实现道路异常的社区感知

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摘要

Advanced vehicle safety is an emerging issue appealed from the rapidly explosive population of car owners. Posing a remarkable safety threat, road anomalies not only damage vehicles but may also cause serious danger, especially at night or under bad visibility conditions. However, maintaining the quality of roadways has been a big challenge for municipalities around the world. Recently, the rapid development and reduced cost of digital cameras have made it economically feasible to deploy driving video recorders (DVRs) on vehicles. Thus, in this paper, we employ the widespread DVRs as distributed sensors with high mobility to conduct pervasive sensing of road anomalies. First, vehicle shakes are detected to infer the candidates of road anomalies. Then, we segment pavement regions, extract saliencies on the road surface, and classify whether a detected vehicle shake is caused by a road anomaly or an artificial speed bump. Experiments are conducted on a test data set collected by front-mounted DVRs, and the results verify that the proposed system can effectively detect road anomalies in real time, showing its good feasibility in real-world environments.
机译:先进的汽车安全性是迅速增长的车主群体引起的一个新兴问题。道路异常造成严重的安全威胁,不仅会损坏车辆,还会造成严重的危险,尤其是在夜间或能见度差的情况下。但是,保持道路质量一直是世界各地市政当局面临的巨大挑战。近来,数字照相机的快速发展和降低的成本使得在车辆上部署行车视频记录器(DVR)在经济上可行。因此,在本文中,我们将广泛使用的DVR用作具有高移动性的分布式传感器,以对道路异常情况进行普遍的传感。首先,检测到车辆晃动以推断出道路异常的候选者。然后,我们对人行道区域进行分割,提取路面上的显着性,并对检测到的车辆晃动是由道路异常还是由人为的减速带引起的进行分类。对前置DVR收集的测试数据集进行了实验,结果验证了所提出的系统可以实时有效地检测道路异常,显示了其在现实环境中的良好可行性。

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