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Fast Video Target Tracking in the Presence of Occlusion and Camera Motion Blur

机译:在遮挡和相机运动模糊的情况下进行快速视频目标跟踪

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摘要

This paper addresses the issue of tracking partially occluded targets in videos recorded by moving cameras of either handhold or airborne. We propose a fast geometric constraint global motion algorithm to reduce the computation overhead dramatically and the effect caused by outliers from moving targets. A recursive least-squares filter with forgetting factor is utilized to filter out disturbances and to provide a better estimation of the target's position in the current frame as well as the prediction of the position and velocity for the next frame. The filter uses the affine model and the primary search result to construct a kinetic model. After that, a compact search region is formed based on the prediction to reduce mismatch and improve computation speed. The adaptive template matching is applied to improve the performance further. With these important steps, a tracking algorithm is developed and tested on real video sequences.
机译:本文解决了在手持或机载移动摄像机录制的视频中跟踪部分被遮挡的目标的问题。我们提出了一种快速几何约束全局运动算法,以显着减少计算开销和运动目标的异常值所引起的影响。具有遗忘因子的递归最小二乘滤波器用于滤除干扰,并提供对当前帧中目标位置的更好估计,以及下一帧的位置和速度的预测。该过滤器使用仿射模型和主要搜索结果来构建动力学模型。之后,基于预测形成紧凑的搜索区域,以减少失配并提高计算速度。应用自适应模板匹配以进一步提高性能。通过这些重要步骤,可以开发跟踪算法并在真实视频序列上进行测试。

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