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Tracking across multiple cameras with overlapping views based on brightness and tangent transfer functions

机译:基于亮度和切线传递函数,在具有重叠视图的多个摄像机之间进行跟踪

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The appearance of one object may be seen differently from distinct cameras with overlapping views due to the color deviation and perspective difference. In this paper, we study these problems and propose an appearance modeling technique in order to perform the tracking across the multiple cameras. For single camera tracking, an effective integrated Kalman filter and multiple kernels tracking scheme is adopted. When maneuvering the tracking across multiple cameras, we build the brightness transfer functions (BTFs) to compensate the color difference between camera views. The BTF is constructed from the overlapping area during tracking by employing robust principal component analysis (RPCA). Moreover, the perspective difference can also be compensated by applying the tangent transfer functions (TTFs) derived by the homography between two cameras. We evaluate the proposed method using several real-scenario videos and obtain the promising results.
机译:由于颜色偏差和视角差异,一个物体的外观与具有重叠视图的不同相机的外观可能有所不同。在本文中,我们研究了这些问题,并提出了一种外观建模技术,以便在多个摄像机之间执行跟踪。对于单摄像机跟踪,采用了有效的集成卡尔曼滤波器和多核跟踪方案。当操纵多台摄像机的跟踪时,我们会建立亮度传递函数(BTF),以补偿摄像机视图之间的色差。通过使用健壮的主成分分析(RPCA),可以在跟踪过程中从重叠区域构造BTF。此外,还可以通过应用由两个摄像机之间的单应性得出的切线传递函数(TTF)来补偿视角差异。我们使用几个真实场景的视频评估了提出的方法,并获得了可喜的结果。

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