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Motion detection and tracking using belief indicators for an automatic visual-surveillance system

机译:使用信念指示器的运动检测和跟踪,用于自动视觉监控系统

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摘要

A motion detection and tracking algorithm for human and car activity surveillance is presented and evaluated by using the Pets'2000 test sequence. The proposed approach uses a temporal fusion strategy by using the history of events in order to improve instantaneous decisions. Normalized indicators updated at each frame summarize the history of specific events. For the motion detection stage, a fast updating algorithm of the background reference is proposed. The control of the updating at each pixel is based on a stability indicator estimated from inter-frame variations. The tracking algorithm uses a region-based approach. A belief indicator representing the tracking consistency for each object allows solving defined ambiguities at the tracking level. A second specific tracking indicator representing the identity quality of each tracked object is updated by integrating object interaction. Tracking indicators permit to propagate uncertainties on higher levels of the interpretation and are directly useful in the tracking performance evaluation.
机译:提出了一种用于人和汽车活动监控的运动检测和跟踪算法,并使用Pets'2000测试序列对其进行了评估。所提出的方法通过使用事件的历史记录来使用时间融合策略,以改善即时决策。每帧更新的标准化指标总结了特定事件的历史。在运动检测阶段,提出了一种背景参考的快速更新算法。在每个像素处的更新控制基于从帧间变化估计的稳定性指标。跟踪算法使用基于区域的方法。表示每个对象的跟踪一致性的置信度指示符可以解决在跟踪级别定义的歧义。通过集成对象交互来更新表示每个被跟踪对象的身份质量的第二特定跟踪指示符。跟踪指标允许在较高的解释水平上传播不确定性,并且在跟踪性能评估中直接有用。

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