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Optimized scalable video streaming over IEEE 802.11 a/e HCCA wireless networks under delay constraints

机译:在延迟约束下,通过IEEE 802.11 a / e HCCA无线网络优化了可扩展的视频流

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The quality-of-service (QoS) guarantees enabled by the new IEEE 802.11 a/e Wireless LAN (WLAN) standard are specifically targeting the real-time transmission of multimedia content over the wireless medium. Since video data consume the largest part of the available bitrate compared to other media, optimization of video streaming for this new standard is a significant factor for the successful deployment of practical systems. Delay-constrained streaming of fully-scalable video over IEEE 802.11 a/e WLANs is of great interest for many multimedia applications. The new medium access control (MAC) protocol of IEEE 802.11e is called the Hybrid Coordination Function (HCF) and, in this paper, we will specifically consider the problem of video transmission over HCF Controlled Channel Access (HCCA). A cross-layer optimization across the MAC and application layers of the OSI stack is used in order to exploit the features provided by the combination of the new HCCA standard with new versatile scalable video coding algorithms. Specifically, we propose an optimized and scalable HCCA-based admission control for delay-constrained video streaming applications that leads to a larger number of stations being simultaneously admitted (without quality reduction to any video flow). Subsequently, given the allocated transmission opportunity, each station deploys an optimized Application-MAC-PHY adaptation, scheduling, and protection strategy that is facilitated by the fine-grain layering provided by the scalable bitstream. Given that each video flow needs to always comply with the predetermined (a priori negotiated) traffic specification parameters, this cross-layer strategy enables graceful quality degradation whenever the channel conditions or the video sequence characteristics change. For instance, it is demonstrated that the proposed cross-layer protection and bitstream adaptation strategies facilitate QoS token rate adaptation under link adaptation mechanisms that utilize different physical layer transmission rates. The expected gains offered by the optimized solutions proposed in this paper are established theoretically, as well as through simulations.
机译:新的IEEE 802.11 a / e无线LAN(WLAN)标准支持的服务质量(QoS)保证专门针对通过无线介质进行多媒体内容的实时传输。与其他媒体相比,由于视频数据占用了最大的可用比特率,因此针对此新标准优化视频流是成功部署实际系统的重要因素。 IEEE 802.11 a / e WLAN上受延迟限制的完全可扩展视频流对于许多多媒体应用来说都引起了极大的兴趣。 IEEE 802.11e的新媒体访问控制(MAC)协议称为混合协调功能(HCF),在本文中,我们将专门考虑通过HCF受控信道访问(HCCA)进行视频传输的问题。为了跨OSI堆栈的MAC和应用层进行跨层优化,以利用新HCCA标准与新的通用可伸缩视频编码算法相结合所提供的功能。具体来说,我们为延迟受限的视频流应用提出了一种优化且可扩展的基于HCCA的准入控制,该控制导致大量站点同时被准入(不降低任何视频流的质量)。随后,在分配了传输机会的情况下,每个站点都部署了优化的Application-MAC-PHY自适应,调度和保护策略,可伸缩比特流提供的细粒度分层有助于实现这一目标。鉴于每个视频流都需要始终遵守预定的(事先商定的)流量规范参数,因此只要信道条件或视频序列特征发生变化,此跨层策略就可以使质量下降。例如,证明了所提出的跨层保护和比特流自适应策略在利用不同物理层传输速率的链路自适应机制下促进了QoS令牌速率自适应。从理论上以及通过仿真,可以确定本文提出的优化解决方案所提供的预期收益。

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