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Robust Kernel-Based Tracking with Multiple Subtemplates in Vision Guidance System

机译:视觉引导系统中具有多个子模板的基于内核的鲁棒跟踪

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摘要

The mean shift algorithm has achieved considerable success in target tracking due to its simplicity and robustness. However, the lack of spatial information may result in its failure to get high tracking precision. This might be even worse when the target is scale variant and the sequences are gray-levels. This paper presents a novel multiple subtemplates based tracking algorithm for the terminal guidance application. By applying a separate tracker to each subtemplate, it can handle more complicated situations such as rotation, scaling, and partial coverage of the target. The innovations include: (1) an optimal subtemplates selection algorithm is designed, which ensures that the selected subtemplates maximally represent the information of the entire template while having the least mutual redundancy; (2) based on the serial tracking results and the spatial constraint prior to those subtemplates, a Gaussian weighted voting method is proposed to locate the target center; (3) the optimal scale factor is determined by maximizing the voting results among the scale searching layers, which avoids the complicated threshold setting problem. Experiments on some videos with static scenes show that the proposed method greatly improves the tracking accuracy compared to the original mean shift algorithm.
机译:均值平移算法由于其简单性和鲁棒性而在目标跟踪中取得了相当大的成功。但是,缺少空间信息可能会导致其无法获得较高的跟踪精度。当目标是比例变量并且序列是灰度时,情况可能更糟。本文为终端制导应用提出了一种新颖的基于多个子模板的跟踪算法。通过对每个子模板应用单独的跟踪器,它可以处理更复杂的情况,例如目标的旋转,缩放和部分覆盖。这些创新包括:(1)设计了一种最优的子模板选择算法,该算法可以确保所选择的子模板最大程度地代表整个模板的信息,同时具有最小的相互冗余度; (2)基于序列跟踪结果和这些子模板之前的空间约束,提出了一种高斯加权投票方法来定位目标中心。 (3)通过最大化尺度搜索层之间的投票结果来确定最佳尺度因子,避免了复杂的阈值设置问题。在一些具有静态场景的视频上的实验表明,与原始均值平移算法相比,该方法大大提高了跟踪精度。

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