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S~2VC: An SDN-based framework for maximizing QoE in SVC-based HTTP adaptive streaming

机译:S〜2VC:基于SDN的框架,用于在基于SVC的HTTP自适应流中最大化QoE

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摘要

HTTP adaptive streaming (HAS) is quickly becoming the dominant video delivery technique for adaptive streaming over the Internet. Still considered as its primary challenges are determining the optimal rate adaptation and improving both the quality of experience (QoE) and QoE-fairness. Most of the proposed approaches have relied on local information to find a result. However, employing techniques that provide a comprehensive and central view of the network resources can lead to more gains in performance. By leveraging software defined networking (SDN), this paper proposes an SDN-based framework, named (SVC)-V-2, to maximize QoE metrics and QoE-fairness in SVC-based HTTP adaptive streaming. The proposed framework determines both the optimal adaptation and data paths for delivering the requested video files from HTTP-media servers to DASH clients. In fact, by utilizing an SDN controller and its complete view of the network, we introduce an SVC flow optimizer (SFO) application module to determine the optimal solution in a centralized and time slot fashion. In the current approach, we first formulate the problem as a mixed integer linear programming (MILP) optimization model. The MILP is designed in such a way that it applies defined policies, e.g. setting priorities for clients in obtaining video quality. Secondly, we show that this problem is NP-complete and propose an LP-relaxation model to enable (SVC)-V-2 framework for performing rate adaptation on a large-scale network. Finally, we conduct experiments by emulating the proposed framework in Mininet, with the usage of Floodlight as the SDN controller. In terms of improving QoE-fairness and QoE metrics, the effectiveness of the proposed framework is validated by a comparison with different approaches. (C) 2018 Elsevier B.V. All rights reserved.
机译:HTTP自适应流(HAS)迅速成为Internet上自适应流的主要视频传递技术。确定最佳速率调整以及改善体验质量(QoE)和QoE公平性仍被视为其主要挑战。大多数提议的方法都依赖于本地信息来找到结果。但是,采用提供网络资源的全面和集中视图的技术可以带来更多性能提升。通过利用软件定义网络(SDN),本文提出了一个基于SDN的框架,名为(SVC)-V-2,以在基于SVC的HTTP自适应流中最大化QoE指标和QoE公平性。所提出的框架确定了用于将请求的视频文件从HTTP媒体服务器传递到DASH客户端的最佳适应和数据路径。实际上,通过利用SDN控制器及其完整的网络视图,我们引入了SVC流优化器(SFO)应用程序模块,以集中和时隙的方式确定最佳解决方案。在当前方法中,我们首先将问题表述为混合整数线性规划(MILP)优化模型。 MILP的设计方式使其可以应用已定义的策略,例如为客户确定获得视频质量的优先级。其次,我们证明该问题是NP完全的,并提出了LP松弛模型以使(SVC)-V-2框架能够在大型网络上执行速率自适应。最后,我们使用Floodlight作为SDN控制器,通过在Mininet中模拟提出的框架进行实验。在改善QoE公平性和QoE指标方面,通过与不同方法的比较验证了所提出框架的有效性。 (C)2018 Elsevier B.V.保留所有权利。

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