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NOMA-Based Scalable Video Multicast in Mobile Networks With Statistical Channels

机译:基于NOMA的可扩展视频组播,在具有统计渠道的移动网络中

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To cope with rapid growth of video services, we propose a non-orthogonal multiple access (NOMA) based scalable video multicast (NOMA-SVM) framework for mobile networks, by exploiting NOMA's specific potential in scalable video multicast transmission. We consider statistical channels, instead of channels with perfect estimation, in the proposed NOMA-SVM framework in order to capture the realistic channel behaviors. As quality of experience (QoE) is a better metric than throughput for video transmission, QoE-driven power allocation is performed among multiple video layers in the proposed NOMA-SVM framework, in which users can decode video with quality proportional to their channel conditions. Specifically, we formulate the power allocation problem with the goal to maximize the average QoE over all users while guaranteeing the basic services of these users. To solve such a non-convex discrete problem, an optimal algorithm is developed based on the hidden monotonicity of the problem. A suboptimal algorithm is also proposed with much lower complexity in order to meet the practical needs. Simulation results show that the proposed algorithms outperform existing orthogonal multiple access (OMA) and NOMA based algorithms under various multicast scenarios in terms of QoE.
机译:为了应对视频服务的快速增长,我们提出了一种非正交的多次访问(NOMA)用于移动网络的可伸缩视频多播(NOMA-SVM)框架,通过利用NOMA的可伸缩视频组播传输。我们考虑统计渠道,而不是具有完美估计的频道,以捕获现实渠道行为的建议的NOMA-SVM框架。随着经验质量(QoE)是比视频传输的吞吐量更好的公制,在所提出的NOMA-SVM框架中的多个视频层之间执行QoE驱动的功率分配,用户可以在其中用户可以与其信道条件进行比例进行比例的视频解码视频。具体来说,我们制定了电力分配问题,目标是为了保证这些用户的基本服务,可以最大化所有用户的平均QoE。为了解决这样的非凸离散问题,基于问题的隐藏单调性开发了一种最佳算法。还提出了次优算法,以满足实际需求的复杂性更低。仿真结果表明,在QoE方面,所提出的算法优于各种多播方案下的现有正交多址(OMA)和基于NOMA的算法。

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