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Comparison of infrared and visible imagery for object tracking: Toward trackers with superior IR performance

机译:对象跟踪的红外和可见图像的比较:朝着卓越的IR性能的跟踪器

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The subject of this paper is the visual object tracking in infrared (IR) videos. Our contribution is twofold. First, the performance behaviour of the state-of-the-art trackers is investigated via a comparative study using IR-visible band video conjugates, i.e., video pairs captured observing the same scene simultaneously, to identify the IR specific challenges. Second, we propose a novel ensemble based tracking method that is tuned to IR data. The proposed algorithm sequentially constructs and maintains a dynamical ensemble of simple correlators and produces tracking decisions by switching among the ensemble correlators depending on the target appearance in a computationally highly efficient manner. We empirically show that our algorithm significantly outperforms the state-of-the-art trackers in our extensive set of experiments with IR imagery.
机译:本文的主题是红外(IR)视频中的视觉对象跟踪。我们的贡献是双重的。首先,通过使用IR可见频带视频共轭,即视频对同时观察相同场景的视频对来研究最先进的跟踪器的性能行为,以识别IR特定挑战。其次,我们提出了一种基于新的基于集合的跟踪方法,该方法被调整为IR数据。所提出的算法顺序地构造并维持简单相关器的动态集合,并通过以计算上高效的方式在集合相关器之间切换来产生跟踪决策。我们经验证明,我们的算法在我们广泛的IR Imagery的实验中显着优于最先进的跟踪器。

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