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首页> 外文期刊>IEEE Transactions on Communications >Dynamic Resource Allocation and Layer Selection for Scalable Video Streaming in Femtocell Networks: A Twin-Time-Scale Approach
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Dynamic Resource Allocation and Layer Selection for Scalable Video Streaming in Femtocell Networks: A Twin-Time-Scale Approach

机译:Femtocell网络中可伸缩视频流的动态资源分配和层选择:双时标方法

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摘要

Scalable video streaming over femtocell networks relying on two-tier spectrum-sharing is designed for coping with time-varying channel conditions, stringent video QoS requirements as well as with strong cross-tier interference between the over-sailing macro- and the femtocells. Dynamic video layer selection and resource allocation are invoked to enable the adaptation of the scalable video streaming service to the dynamics of both channel quality and interference price fluctuations. We formulate the design as a constrained stochastic optimization problem, which strikes a compelling compromise between the perceivable quality of experience and the monetary implications of the interference. Since the time scale of resource allocation is more short term than that of the video layer selection, we decompose the original long-term utility optimization problem into a pair of readily tractable subproblems with the aid of two different time-scales by invoking the powerful technique of Lyapunov drift and optimization. By exploiting the specific structure of these subproblems, low-complexity algorithms are derived for dynamic video layer selection and resource allocation, which rely on the near-instantaneously available information rather than on any prior statistical knowledge. Finally, we derive the analytical bounds of the theoretically achievable performance. Experimental results are presented for characterizing the performance attained.
机译:依靠两层频谱共享的毫微微小区网络上的可伸缩视频流,旨在应对时变的信道条件,严格的视频QoS要求以及超载宏蜂窝和毫微微小区之间的强大跨层干扰。调用动态视频层选择和资源分配,以使可伸缩视频流服务适应信道质量和干扰价格波动的动态变化。我们将设计公式化为受限的随机优化问题,这在可感知的体验质量和干扰的金钱影响之间达成了令人信服的折衷方案。由于资源分配的时间尺度比视频层选择的时间尺度更短,因此我们通过调用强大的技术,借助两个不同的时间尺度,将原始的长期效用优化问题分解为一对易于处理的子问题。 Lyapunov漂移和优化。通过利用这些子问题的特定结构,可以得出低复杂度的算法,用于动态视频层选择和资源分配,该算法依赖于几乎即时可用的信息,而不依赖于任何先前的统计知识。最后,我们得出理论上可达到的性能的分析界限。给出了表征所达到性能的实验结果。

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