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A dynamic system model of time-varying subjective quality of video streams over HTTP

机译:基于HTTP的视频流时变主观质量的动态系统模型

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Newly developed HTTP-based video streaming technology enables flexible rate-adaptation in varying channel conditions. The users' Quality of Experience (QoE) of rate-adaptive HTTP video streams, however, is not well understood. Therefore, designing QoE-optimized rate-adaptive video streaming algorithms remains a challenging task. An important aspect of understanding and modeling QoE is to be able to predict the up-to-the-moment subjective quality of video as it is played. We propose a dynamic system model to predict the time-varying subjective quality (TVSQ) of rate-adaptive videos that is transported over HTTP. For this purpose, we built a video database and measured TVSQ via a subjective study. A dynamic system model is developed using the database and the measured human data. We show that the proposed model can effectively predict the TVSQ of rate-adaptive videos in an online manner, which is necessary to be able to conduct QoE-optimized online rate-adaptation for HTTP-based video streaming.
机译:最新开发的基于HTTP的视频流技术可在各种信道条件下实现灵活的速率自适应。但是,人们对速率自适应HTTP视频流的用户体验质量(QoE)知之甚少。因此,设计QoE优化的速率自适应视频流算法仍然是一项艰巨的任务。理解和建模QoE的一个重要方面是能够预测视频播放时的最新主观质量。我们提出了一个动态系统模型来预测通过HTTP传输的速率自适应视频的时变主观质量(TVSQ)。为此,我们建立了一个视频数据库并通过主观研究对TVSQ进行了测量。使用数据库和测得的人类数据来开发动态系统模型。我们表明,提出的模型可以在线方式有效地预测速率自适应视频的TVSQ,这对于能够进行QoE优化的基于HTTP的视频流的在线速率自适应是必要的。

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