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首页> 外文期刊>Intelligent Transportation Systems, IEEE Transactions on >Detection of Parked Vehicles Using Spatiotemporal Maps
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Detection of Parked Vehicles Using Spatiotemporal Maps

机译:使用时空图检测停放的车辆

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This paper presents a video-based approach to detect the presence of parked vehicles in street lanes. Potential applications include the detection of illegally and double-parked vehicles in urban scenarios and incident detection on roads. The technique extracts information from low-level feature points (Harris corners) to create spatiotemporal maps that describe what is happening in the scene. The method neither relies on background subtraction nor performs any form of object tracking. The system has been evaluated using private and public data sets and has proven to be robust against common difficulties found in closed-circuit television video, such as varying illumination, camera vibration, the presence of momentary occlusion by other vehicles, and high noise levels.
机译:本文提出了一种基于视频的方法来检测街道车道上停放的车辆。潜在的应用包括在城市场景中检测非法和双泊车以及在道路上进行事件检测。该技术从低层特征点(Harris角)提取信息,以创建描述场景中发生的情况的时空图。该方法既不依赖于背景扣除也不执行任何形式的对象跟踪。该系统已使用私人和公共数据集进行了评估,并被证明具有强大的功能,可应对闭路电视视频中常见的困难,例如照明变化,相机振动,其他车辆存在瞬时遮挡以及高噪声水平。

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