视频质量评价中的相邻图像相关

N. Goran, A. Begovic, N. Skaljo
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摘要

本文的主要目的是分析视频序列中相邻图像之间的相关性。视频中快速或慢变场景的相邻图像具有高度的相关性,显示了视频序列的一致性,可以作为视频业务正常再现的证明。由于QoS(服务质量)问题,特别是在有损网络中,在向最终用户提供视频服务期间,经常会出现帧(图像)的不同视觉退化。在这种情况下,视频序列中的相邻图像具有较低的相关性,可以作为网络中某些部分出现问题的指标。此外,本文还分析了视频序列中多边形(即相邻图像的部分)对应的相关性,以发现视觉退化对用户体验质量的影响程度。为了验证这一目标,使用一家重要市场力量提供商的IPTV系统捕获了经过测试的降级和非降级视频序列,并使用专门为此目的创建的Python脚本在离线模式下进行处理。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Adjacent Image Correlation for Video Quality Assessment
The main aim of this paper is to analyse correlation between adjacent images in a video sequence. Adjacent images with a slow or fast changeable scene in a video have high correlation which shows consistency in the video sequence therefore it can be the proof of normal reproduction of video service. Due to QoS (Quality of service) problems, especially over lossy network, appearance of different visual degradations in frames (images) during delivery of video service to end users can happen very often. In that case, adjacent images in the video sequence have low correlation which can be used as an indicator the problem occurred in some part of the network. In addition, the paper analyses correlation correspondent to polygons i.e. parts of adjacent images in the video sequence in order to discover a degree of influence visual degradations to user’s QoE (Quality of Experience). In order to check this aim, tested degraded and non-degraded video sequence was captured using IPTV system of one significant market power provider and processed in offline mod with Python script created especially for this purpose.
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