A context-aware QoE-driven strategy for adaptive video streaming in 5G multi-RAT environments

F. Bouali, K. Moessner, M. Fitch
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引用次数: 6

Abstract

This paper extends traditional dynamic adaptive streaming over HTTP (DASH) to efficiently exploit all available bands and licensing regimes in a given context. A novel objective quality-of-experience (QoE) metric is proposed to capture the most relevant factors that impact user perception during streaming sessions. Based on it, a QoE-driven adaptation strategy is devised to jointly select the best radio access technology (RAT) and quality for each video segment depending on the various components of the context. It relies first on fuzzy logic to estimate the QoE provided by each available RAT subject to the uncertainty level associated with DASH clients. Then, a fuzzy multiple attribute decision making (MADM) methodology is developed to combine the QoE estimates with the heterogeneous components of the context to assess the in-context suitability levels. The proposed approach is applied to adapt video streaming across available RATs in dense deployments for a set of Bronze and Gold subscriptions. The results reveal that the proposed strategy always assigns Gold clients to the well-regulated licensed band, while switches Bronze clients between licensed and unlicensed bands depending on the operating conditions. It strikes a balance between maximising video quality and reducing playback stalling, which significantly improves the perceived QoE compared to the traditional DASH approach.
5G多rat环境中自适应视频流的上下文感知qos驱动策略
本文扩展了传统的基于HTTP的动态自适应流(DASH),以在给定的上下文中有效地利用所有可用的频段和许可制度。提出了一种新的客观体验质量(QoE)度量来捕获影响流媒体会话期间用户感知的最相关因素。在此基础上,设计了一种qos驱动的自适应策略,根据上下文的不同组成部分,共同为每个视频片段选择最佳的无线接入技术(RAT)和质量。它首先依赖于模糊逻辑来估计每个可用的RAT提供的QoE,这些RAT受制于与DASH客户端相关的不确定性水平。然后,提出了一种模糊多属性决策(MADM)方法,将QoE估计值与上下文的异构成分相结合,评估上下文中的适合性水平。所提出的方法被应用于在密集部署的可用rat中为一组青铜和黄金订阅调整视频流。结果表明,所提出的策略总是将金牌客户端分配到监管良好的许可频段,而根据操作条件在许可和非许可频段之间切换青铜客户端。它在最大限度地提高视频质量和减少播放延迟之间取得了平衡,与传统的DASH方法相比,显著提高了感知QoE。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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