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Instance Segmentation Based Background Reference Frame Generation for Surveillance Video Coding

机译:基于实例基于背景参考监视视频编码的参考帧生成

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Efficient intelligent analysis and video compression are critical modules in terms of the advanced surveillance system. However, existing solutions always deal each task with independent strategies, leading to low-efficiency of the surveillance system. In this paper, we propose to handle these two tasks in a hybrid manner. In particular, a hybrid surveillance processing scheme towards efficient analysis and compression is presented, where the extracted semantic information can not only be utilized in intelligent analysis tasks, but also used to improve compression efficiency by facilitating the background reference frame (BRF) generation. Moreover, we propose to remove background redundancy of surveillance video by introducing the high quality BRF, where motion metric and semantic metric work in a complementary way to ensure the accurate detection of background blocks. Experimental results manifest considerable advantages of the proposed BRF. When the proposed BRF is integrated into reference picture set (RPS), 3% coding gains are obtained compared with state-of-the-art method.
机译:高效的智能分析和视频压缩是在高级监控系统方面的关键模块。但是,现有解决方案始终以独立的策略处理每项任务,导致监控系统的低效率。在本文中,我们建议以混合方式处理这两个任务。特别地,介绍了有效分析和压缩的混合监视处理方案,其中提取的语义信息不仅可以用于智能分析任务,而且还可以通过促进背景参考帧(BRF)生成来提高压缩效率。此外,我们建议通过引入高质量BRF,以互补的方式介绍高质量的BRF,以确保精确地检测背景块的运动度量和语义度量工作来消除监视视频的背景冗余。实验结果表明,拟议的BRF的显着优势。当所提出的BRF集成到参考图像集(RPS)中时,与最先进的方法相比,获得了3%的编码增益。

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