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On vehicle state tracking for long-term carpark video surveillance

机译:在车辆状态跟踪中进行长期停车场视频监控

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Car park video surveillance systems present a huge volume of data that can be beneficial for video analytics and data analysis. We present a vehicle state tracking method for long term video surveillance with the goal of obtaining trajectories and vehicle states of various car park users. However, this is a challenging task in outdoor scenarios due to non-optimal camera viewing angle compounded by ever-changing illumination & weather conditions. To address these challenges, we propose a parking state machine that tracks the vehicle state in a large outdoor car park area. The proposed method was tested on 10 hours of continuous video data with various illumination and environmental conditions. Owing to the imbalanced distribution of parking states, we report the precision, recall and F1 scores to determine the overall performance of the system. Our approach proves to be fairly accurate, fast and robust against severe scene variations.
机译:停车场视频监控系统提供了大量数据,这些数据可能有益于视频分析和数据分析。我们提出一种用于长期视频监视的车辆状态跟踪方法,其目的是获得各种停车场用户的轨迹和车辆状态。但是,由于不理想的摄像机视角以及不断变化的照明和天气条件,这在室外场景中是一项艰巨的任务。为了解决这些挑战,我们提出了一种停车状态机,用于跟踪大型室外停车场中的车辆状态。在各种光照和环境条件下,对10个小时的连续视频数据进行了测试。由于停车状态分布不平衡,我们报告了精度,召回率和F1分数,以确定系统的整体性能。对于严重的场景变化,我们的方法被证明是相当准确,快速且可靠的。

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