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Robust Visual Tracking Using Structural Patch Response Map Fusion Based on Complementary Correlation Filter and Color Histogram

机译:基于互补相关滤波器和颜色直方图的结构补丁响应映射融合鲁棒性视觉跟踪

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摘要

A part-based strategy has been applied to visual tracking with demonstrated success in recent years. Different from most existing part-based methods that only employ one type of tracking representation model, in this paper, we propose an effective complementary tracker based on structural patch response fusion under correlation filter and color histogram models. The proposed method includes two component trackers with complementary merits to adaptively handle illumination variation and deformation. To identify and take full advantage of reliable patches, we present an adaptive hedge algorithm to hedge the responses of patches into a more credible one in each component tracker. In addition, we design different loss metrics of tracked patches in two components to be applied in the proposed hedge algorithm. Finally, we selectively combine the two component trackers at the response maps level with different merging factors according to the confidence of each component tracker. Extensive experimental evaluations on OTB2013, OTB2015, and VOT2016 datasets show outstanding performance of the proposed algorithm contrasted with some state-of-the-art trackers.
机译:近年来,基于零件的策略已被应用于视觉跟踪。与大多数现有的基于零件的方法不同,仅采用一种类型的跟踪表示模型,本文提出了一种基于相关滤波器和颜色直方图模型的结构贴片响应融合的有效互补跟踪器。所提出的方法包括两个分量跟踪器,其具有互补的优点,以自适应地处理照明变化和变形。为了识别并充分利用可靠的补丁,我们介绍了一个自适应的对冲算法,将补丁的响应对冲到每个组件跟踪器中的更可靠。此外,我们在建议的对冲算法中设计了两个组件中的跟踪补丁的不同丢失度量。最后,我们根据每个分量跟踪器的置信选择地选择性地将两个分量跟踪器与不同的合并因子相结合。对OTB2013,OTB2015和VOT2016数据集的广泛实验评估显示了与某些最先进的跟踪器形成对比的算法的出色性能。

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