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Comparative Evaluation of User Perceived Quality Assessment of Design Strategies for HTTP-based Adaptive Streaming

机译:基于HTTP的自适应流设计策略的用户感知质量评估的比较评估

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HTTP-based Adaptive Streaming (HAS) is the dominant Internet video streaming application. One specific HAS approach, Dynamic Adaptive Streaming over HTTP (DASH), is of particular interest, as it is a widely deployed, standardized implementation. Prior academic research has focused on networking and protocol issues, and has contributed an accepted understanding of the performance and possible performance issues in large deployment scenarios. Our work extends the current understanding of HAS by focusing directly on the impacts of choice of the video quality adaptation algorithm on end-user perceived quality. In congested network scenarios, the details of the adaptation algorithm determine the amount of bandwidth consumed by the application as well as the quality of the rendered video stream. HAS will lead to user-perceived changes in video quality due to intentional changes in quality video segments, or unintentional perceived quality impairments caused by video decoder artifacts such as pixelation, stutters, or short or long stalls in the rendered video when the playback buffer becomes empty. The HAS adaptation algorithm attempts to find the optimal solution to mitigate the conflict between avoiding buffer stalls and maximizing video quality. In this article, we present results from a user study that was designed to provide insights into "best practice guidelines" for a HAS adaptation algorithm. Our findings suggest that a buffer-based strategy might provide a better experience under higher network impairment conditions. For the two network scenarios considered, the buffer-based strategy is effective in avoiding stalls but does so at the cost of reduced video quality. However, the buffer-based strategy does yield a lower number of quality switches as a result of infrequent bitrate adaptations. Participants in buffer-based strategy do notice the drop in video quality causing a decrease in perceived QoE, but the perceived levels of video quality, viewer frustration, and opinions of video clarity and distortion are significantly worse due to artifacts such as stalls in capacity-based strategy. The capacity-based strategy tries to provide the highest video quality possible but produces many more artifacts during playback. The results suggest that player video quality has more of an impact on perceived quality when stalls are infrequent. The study methodology also contributes a unique method for gathering continuous quantitative subjective measure of user perceived quality using a Wii remote.
机译:基于HTTP的自适应流(HAS)是主要的Internet视频流应用程序。一种特别的HAS方法,即HTTP上的动态自适应流(DASH),由于它是一种广泛部署的标准化实现,因此特别受关注。先前的学术研究集中在网络和协议问题上,并且对大型部署方案中的性能和可能的性能问题做出了公认的理解。我们的工作通过直接关注视频质量自适应算法选择对最终用户感知质量的影响,扩展了对HAS的当前理解。在拥挤的网络场景中,自适应算法的细节决定了应用程序消耗的带宽量以及渲染的视频流的质量。 HAS将导致用户感知的视频质量变化,这是由于质量视频段的有意变化,或者是当回放缓冲区变成视频时,由于渲染的视频中的像素解码,断续或短或长停顿等视频解码器伪影而导致的无意识的质量下降空的。 HAS自适应算法试图找到最佳解决方案,以缓解避免缓冲区停顿和最大化视频质量之间的冲突。在本文中,我们介绍了一项用户研究的结果,该研究旨在提供对HAS自适应算法的“最佳实践准则”的见解。我们的发现表明,基于缓冲区的策略可能会在更高的网络损害条件下提供更好的体验。对于所考虑的两个网络方案,基于缓冲区的策略可以有效避免停顿,但是这样做会降低视频质量。但是,由于不频繁的比特率调整,基于缓冲区的策略的确会产生较少数量的质量切换。基于缓冲策略的参与者确实注意到视频质量下降导致感知的QoE下降,但是由于诸如容量停滞之类的假象,视频质量的感知水平,观看者的挫败感以及对视频清晰度和失真的看法明显恶化。基于策略。基于容量的策略试图提供尽可能高的视频质量,但在播放期间会产生更多伪像。结果表明,当停顿不频繁时,播放器视频质量对感知质量的影响更大。该研究方法还为使用Wii遥控器收集用户感知质量的连续定量主观测量方法提供了独特的方法。

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