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Object Tracking with Adaptive Multicue Incremental Visual Tracker

机译:使用自适应多线索增量视觉跟踪器进行对象跟踪

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Generally, subspace learning based methods such as the Incremental Visual Tracker (IVT) have been shown to be quite effective for visual tracking problem. However, it may fail to follow the target when it undergoes drastic pose or illumination changes. In this work, we present a novel tracker to enhance the IVT algorithm by employing a multicue based adaptive appearance model. First, we carry out the integration of cues both in feature space and in geometric space. Second, the integration directly depends on the dynamically-changing reliabilities of visual cues. These two aspects of our method allow the tracker to easily adapt itself to the changes in the context and accordingly improve the tracking accuracy by resolving the ambiguities. Experimental results demonstrate that subspace-based tracking is strongly improved by exploiting the multiple cues through the proposed algorithm.
机译:通常,基于子空间学习的方法(例如,增量视觉跟踪器(IVT))已被证明对于视觉跟踪问题非常有效。但是,当它经历剧烈的姿势或光照变化时,它可能无法跟随目标。在这项工作中,我们提出了一种新颖的跟踪器,通过采用基于多线索的自适应外观模型来增强IVT算法。首先,我们在特征空间和几何空间中进行线索的整合。其次,集成直接取决于视觉提示的动态变化的可靠性。我们方法的这两个方面使跟踪器可以轻松地适应上下文的变化,并通过解决歧义来提高跟踪精度。实验结果表明,通过提出的算法利用多个线索,可以大大改善基于子空间的跟踪。

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