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Tracking people across disjoint camera views by an illumination-tolerant appearance representation

机译:通过耐光外观表示在不相交的相机视图中跟踪人

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摘要

Tracking single individuals as they move across disjoint camera views is a challenging task since their appearance may vary significantly between views. Major changes in appearance are due to different and varying illumination conditions and the deformable geometry of people. These effects are hard to estimate and take into account in real-life applications. Thus, in this paper we propose an illumination-tolerant appearance representation, which is capable of coping with the typical illumination changes occurring in surveillance scenarios. The appearance representation is based on an online k-means colour clustering algorithm, a data-adaptive intensity transformation and the incremental use of frames. A similarity measurement is also introduced to compare the appearance representations of any two arbitrary individuals. Post-matching integration of the matching decision along the individuals' tracks is performed in order to improve reliability and robustness of matching. Once matching is provided for any two views of a single individual, its tracking across disjoint cameras derives straightforwardly. Experimental results presented in this paper from a real surveillance camera network show the effectiveness of the proposed method.
机译:跟踪单个人在不相交的相机视图中移动时对其进行跟踪是一项艰巨的任务,因为它们的外观在视图之间可能会有很大差异。外观的重大变化是由于照明条件的变化和变化以及人的可变形几何形状引起的。在实际应用中很难估计和考虑这些影响。因此,在本文中,我们提出了一种耐光照的外观表示形式,它能够应对监视场景中发生的典型照明变化。外观表示基于在线k均值颜色聚类算法,数据自适应强度转换和帧的增量使用。还引入了相似性度量以比较任何两个任意个人的外观表示。为了提高匹配的可靠性和鲁棒性,执行匹配决策沿个人轨迹的匹配后集成。一旦为单个个人的任何两个视图提供了匹配,就可以直接得出其在不相交摄像机之间的跟踪。本文从真实的监控摄像机网络中获得的实验结果证明了该方法的有效性。

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