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Integrated video object tracking with applications in trajectory-based event detection

机译:集成的视频对象跟踪及其在基于轨迹的事件检测中的应用

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摘要

This work presents an automated and integrated framework that robustly tracks multiple targets for video-based event detection applications. Integrating the advantages of adaptive particle sampling and mathematical tractability of Kalman filtering, the proposed tracking system achieves both high tracking accuracy and computational simplicity. Occlusion and segmentation error cases are analyzed and resolved by constructing measurement candidates via adaptive particle sampling and an enhanced version of probabilistic data association. Also, we integrate the initial occlusion handling module in the tracking system to backtrack and correct the object trajectories. The reliable tracking results can serve as the foundation for automatic event detection. We also demonstrate event detection by classifying the trajectories of the tracked objects from both traffic monitoring and human surveillance applications. The experimental results have shown that the proposed tracking mechanism can solve the occlusion and segmentation error problems effectively and the events can be detected with high accuracy.
机译:这项工作提出了一个自动化和集成的框架,该框架可以稳健地跟踪基于视频的事件检测应用程序的多个目标。结合自适应粒子采样和卡尔曼滤波的数学可处理性的优点,所提出的跟踪系统实现了高跟踪精度和计算简单性。通过自适应粒子采样和概率数据关联的增强版本构建测量候选,可以分析和解决遮挡和分割错误情况。此外,我们在跟踪系统中集成了初始遮挡处理模块,以回溯和校正对象轨迹。可靠的跟踪结果可作为自动事件检测的基础。我们还通过对来自交通监控和人类监视应用程序的被跟踪对象的轨迹进行分类来演示事件检测。实验结果表明,所提出的跟踪机制可以有效地解决遮挡和分割错误问题,并且可以对事件进行高精度检测。

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