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Robust tracking of multiple objects in video by adaptive fusion of subband particle filters

机译:通过子带粒子滤波器的自适应融合对视频中的多个对象进行稳健跟踪

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摘要

Tracking of moving objects in video sequences is an important research problem because of its many industrial, biomedical, and security applications. Significant progress has been made on this topic in the last few decades. However, the ability to track objects accurately in video sequences that have challenging conditions and unexpected events, e.g. background motion and shadows; objects with different sizes and contrasts; a sudden change in illumination; partial object camouflage; and low signal-to-noise ratio, remains an important research problem. To address such difficulties, the authors developed a robust multiscale visual tracker that represents a captured video frame as different subbands in the wavelet domain. It then appliesNindependent particle filters to a small subset of these subbands, where the choice of this subset of wavelet subbands changes with each captured frame. Finally, it fuses the outputs of theseNindependent particle filters to obtain final position tracks of multiple moving objects in the video sequence. To demonstrate the robustness of their multiscale visual tracker, they applied it to four example videos that exhibit different challenges. Compared to a standard full-resolution particle filter-based tracker and a single wavelet subband (LL)2-based tracker, their multiscale tracker demonstrates significantly better tracking performance.
机译:跟踪视频序列中的运动对象是一个重要的研究问题,因为它具有许多工业,生物医学和安全应用。在过去的几十年中,在这一主题上已经取得了重大进展。但是,在具有挑战性条件和意外事件的视频序列中准确跟踪对象的能力,例如背景运动和阴影;具有不同大小和对比度的物体;照明突然改变;部分物体伪装;低信噪比仍然是一个重要的研究问题。为了解决这些困难,作者开发了一种健壮的多尺度视觉跟踪器,该跟踪器将捕获的视频帧表示为小波域中的不同子带。然后应用 n N n个独立的粒子滤波器被过滤到这些子带的一小部分,其中子波子带的该子集的选择随每个捕获的帧而变化。最后,它融合了这些 n N n个独立的粒子滤波器,以获取视频序列中多个运动对象的最终位置轨迹。为了展示其多尺度视觉跟踪器的鲁棒性,他们将其应用于展现不同挑战的四个示例视频。与标准的基于全分辨率粒子滤波器的跟踪器和单个小波子带(LL) n 2 n为基础的跟踪器,其多尺度跟踪器显示出明显更好的跟踪性能。

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