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Low-complexity and high-efficiency background modeling for surveillance video coding

机译:低复杂度和高效的监控视频编码背景建模

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Recently, background modeling (shortly BgModeling) plays a more and more important role in high-efficiency surveillance video coding. Meanwhile, many practical video coding applications also present some specific requirements for BgModeling, such as the low memory cost and low computational complexity. However, existing BgModeling methods are mostly designed for video content analysis such as object detection. Thus they may be not directly applicable for video coding. In this paper, we firstly present an analysis for the features of BgModeling in surveillance video coding and make a comparison of the performances of existing BgModeling methods. Then we propose a segment-and-weight based running average (SWRA) method for surveillance video coding. SWRA firstly divides pixels at each position in the training frames into several temporal segments, and then calculate their corresponding mean values and weights. After that, a running and weighted average procedure is used to reduce the influence of foreground pixels and finally obtain the modeling results. Experimental results show that, the SWRA-based encoder achieves the best performance over several state-of-the-art methods, with much less cost of memory and modeling time.
机译:最近,背景建模(简称BgModeling)在高效监控视频编码中起着越来越重要的作用。同时,许多实际的视频编码应用也对BgModeling提出了一些特定的要求,例如低存储成本和低计算复杂度。但是,现有的BgModeling方法主要设计用于视频内容分析,例如目标检测。因此,它们可能不直接适用于视频编码。在本文中,我们首先分析了BgModeling在监控视频编码中的特征,并比较了现有BgModeling方法的性能。然后,我们提出了一种基于分段加权的移动平均(SWRA)方法进行监控视频编码。 SWRA首先将训练帧中每个位置的像素划分为几个时间段,然后计算其相应的平均值和权重。之后,通过运行和加权平均过程来减少前景像素的影响,最终获得建模结果。实验结果表明,基于SWRA的编码器在几种最先进的方法上均达到了最佳性能,而存储器和建模时间却少得多。

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