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A grid-based Bayesian approach to robust visual tracking

机译:基于网格的贝叶斯方法进行强大的视觉跟踪

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摘要

Visual tracking encompasses a wide range of applications in surveillance, medicine and the military arena. There are however roadblocks that hinder exploiting the full capacity of the tracking technology. Depending on specific applications, these roadblocks may include computational complexity, accuracy and robustness of the tracking algorithms. In the paper, we present a grid-based algorithm for tracking that drastically outperforms the existing algorithms in terms of computational efficiency, accuracy and robustness. Furthermore, by judiciously incorporating feature representation, sample generation and sample weighting, the grid-based approach accommodates contrast change, jitter, target deformation and occlusion. Tracking performance of the proposed grid-based algorithm is compared with two recent algorithms, the gradient vector flow snake tracker and the Monte Carlo tracker, in the context of leukocyte (white blood cell) tracking and UAV-based tracking. This comparison indicates that the proposed tracking algorithm is approximately 100 times faster, and at the same time, is significantly more accurate and more robust, thus enabling real-time robust tracking.
机译:视觉跟踪涵盖了监视,医学和军事领域的广泛应用。但是,仍然存在障碍,无法充分利用跟踪技术的全部功能。根据具体应用,这些障碍可能包括跟踪算法的计算复杂性,准确性和鲁棒性。在本文中,我们提出了一种基于网格的跟踪算法,该算法在计算效率,准确性和鲁棒性方面大大优于现有算法。此外,通过明智地结合特征表示,样本生成和样本权重,基于网格的方法可适应对比度变化,抖动,目标变形和遮挡。在白细胞(白细胞)跟踪和基于UAV的跟踪的背景下,将所提出的基于网格的算法的跟踪性能与两个最新算法(梯度矢量流蛇跟踪器和蒙特卡洛跟踪器)进行了比较。这种比较表明,所提出的跟踪算法快了大约100倍,同时明显更精确,更可靠,从而实现了实时鲁棒跟踪。

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