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Fast visual object tracking via correlation filter and binary descriptors

机译:通过相关过滤器和二进制描述符进行快速视觉对象跟踪

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Visual object tracking is one of the basic units in the construction of smart cities, which focuses on establishing a dynamic appearance model to represent and recognize the target in complex scenarios. In this paper, we consider visual object tracking as multiple local patches matching problem and design an online tracker based on correlation filter and binary descriptors. We integrate binary descriptors into our tracking model, which provide reliable and robust local feature information. Further, a self-adaptive decision scheme is proposed to fuse the global correlation information and the local feature descriptors. Experimental results on benchmark videos dedicate the effectiveness and robustness of our tracker.
机译:视觉对象跟踪是智慧城市建设的基本单元之一,其重点是建立动态外观模型来表示和识别复杂场景中的目标。在本文中,我们将视觉对象跟踪视为多个局部补丁匹配问题,并基于相关过滤器和二进制描述符设计了一个在线跟踪器。我们将二进制描述符集成到我们的跟踪模型中,该模型提供了可靠而强大的本地特征信息。此外,提出了一种自适应决策方案来融合全局相关信息和局部特征描述符。基准视频的实验结果表明了我们追踪器的有效性和鲁棒性。

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