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An Adaptive Binning Color Model for Mean Shift Tracking

机译:均值漂移跟踪的自适应装箱颜色模型

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摘要

The mean shift (MS) algorithm for object tracking using color has recently received a significant amount of attention thanks to its effectiveness and efficiency. Most current work, unfortunately, failing to notice that object color is usually very compactly distributed, partitions uniformly the whole color space and thus leads to a large number of void bins and limited capability of representing object color distribution. Also, there lacks a systematic way to determine automatically the number of bins. Aiming to address these problems, this paper presents an adaptive binning color model for MS tracking. First, the object color is analyzed based on a clustering algorithm and, according to the clustering result, the color space of the object is partitioned into subspaces by orthonormal transformation. Then, a color model is defined by considering the weighted number of pixels as well as intra-cluster distribution based on independent component analysis (ICA), and a similarity measure is introduced to evaluate likeness between the reference and the candidate models. Finally, the MS algorithm is developed based on the proposed color model and its computational complexity is analyzed. Experiments show that the proposed algorithm has better tracking performance than the conventional MS algorithm at the cost of moderately increasing computational load.
机译:由于其有效性和效率,用于使用颜色进行对象跟踪的均值漂移(MS)算法最近受到了广泛的关注。不幸的是,大多数当前的工作未能注意到对象颜色通常非常紧凑地分布,在整个颜色空间中均匀地划分,因此导致大量的空箱和表示对象颜色分布的能力受限。而且,缺少一种自动确定箱数的系统方法。为了解决这些问题,本文提出了一种用于MS跟踪的自适应装箱颜色模型。首先,基于聚类算法分析对象的颜色,并根据聚类结果,通过正交变换将对象的颜色空间划分为子空间。然后,通过考虑像素的加权数量以及基于独立分量分析(ICA)的群集内分布来定义颜色模型,并引入相似性度量以评估参考模型与候选模型之间的相似性。最后,基于提出的颜色模型开发了MS算法,并分析了其计算复杂度。实验表明,以适度增加计算量为代价,该算法比传统的MS算法具有更好的跟踪性能。

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