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Efficient Video Encoding for Automatic Video Analysis in Distributed Wireless Surveillance Systems

机译:分布式无线监控系统中用于自动视频分析的高效视频编码

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In many distributed wireless surveillance applications, compressed videos are used for performing automatic video analysis tasks. The accuracy of object detection, which is essential for various video analysis tasks, can be reduced due to video quality degradation caused by lossy compression. This article introduces a video encoding framework with the objective of boosting the accuracy of object detection for wireless surveillance applications. The proposed video encoding framework is based on systematic investigation of the effects of lossy compression on object detection. It has been found that current standardized video encoding schemes cause temporal domain fluctuation for encoded blocks in stable background areas and spatial texture degradation for encoded blocks in dynamic foreground areas of a raw video, both of which degrade the accuracy of object detection. Two measures, the sum-of-absolute frame difference (SFD) and the degradation of texture in 2D transform domain (TXD), are introduced to depict the temporal domain fluctuation and the spatial texture degradation in an encoded video, respectively. The proposed encoding framework is designed to suppress unnecessary temporal fluctuation in stable background areas and preserve spatial texture in dynamic foreground areas based on the two measures, and it introduces new mode decision strategies for both intra- and interframes to improve the accuracy of object detection while maintaining an acceptable rate distortion performance. Experimental results show that, compared with traditional encoding schemes, the proposed scheme improves the performance of object detection and results in lower bit rates and significantly reduced complexity with comparable quality in terms of PSNR and SSIM.
机译:在许多分布式无线监视应用程序中,压缩视频用于执行自动视频分析任务。由于有损压缩会导致视频质量下降,因此可能降低各种视频分析任务必不可少的目标检测精度。本文介绍了一种视频编码框架,其目的是提高无线监视应用中对象检测的准确性。所提出的视频编码框架基于对有损压缩对目标检测的影响的系统研究。已经发现,当前的标准化视频编码方案导致原始背景的稳定背景区域中的编码块的时间域波动,以及原始视频的动态前景区域中的编码块的空间纹理劣化,这两者都降低了对象检测的准确性。引入两种方法,分别是绝对帧差和(SFD)和2D变换域(TXD)中的纹理退化,以分别描述编码视频中的时域波动和空间纹理退化。提出的编码框架旨在基于这两种措施来抑制稳定背景区域中不必要的时间波动,并在动态前景区域中保留空间纹理,并为帧内和帧间引入了新的模式决策策略,以提高物体检测的准确性,同时保持可接受的速率失真性能。实验结果表明,与传统的编码方案相比,该方案提高了目标检测的性能,并降低了比特率,并显着降低了复杂度,同时在PSNR和SSIM方面具有可比的质量。

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