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Game Theoretic Wireless Resource Allocation for H.264 MGS Video Transmission over Cognitive Radio Networks

机译:基于认知无线电网络的H.264 MGS视频传输的博弈论无线资源分配

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We propose a method for the fair and efficient allocation of wireless resources over a cognitive radio system network to transmit multiple scalable video streams to multiple users. The method exploits the dynamic architecture of the Scalable Video Coding extension of the H.264 standard, along with the diversity that OFDMA networks provide. We use a game-theoretic Nash Bargaining Solution (NBS) framework to ensure that each user receives the minimum video quality requirements, while maintaining fairness over the cognitive radio system. An optimization problem is formulated, where the objective is the maximization of the Nash product while minimizing the waste of resources. The problem is solved by using a Swarm Intelligence optimizer, namely Particle Swarm Optimization. Due to the high dimensionality of the problem, we also introduce a dimension-reduction technique. Our experimental results demonstrate the fairness imposed by the employed NBS framework.
机译:我们提出一种用于在认知无线电系统网络上公平有效地分配无线资源的方法,以将多个可伸缩视频流传输给多个用户。该方法利用了H.264标准的可伸缩视频编码扩展的动态架构,以及OFDMA网络提供的多样性。我们使用基于博弈论的纳什讨价还价解决方案(NBS)框架,以确保每个用户收到最低的视频质量要求,同时保持认知无线电系统的公平性。提出了一个优化问题,目标是使Nash产品最大化,同时将资源浪费降至最低。通过使用Swarm Intelligence优化器(即粒子群优化)解决了该问题。由于问题的高维性,我们还引入了降维技术。我们的实验结果证明了所采用的NBS框架所施加的公平性。

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