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Spectral gap filling in cognitive networks: A cooperative game-theoretic approach

机译:认知网络中的光谱间隙填充:合作游戏 - 理论方法

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An optimal joint channel selection and power control scheme is investigated in a cognitive network context, where the cognitive network is composed by multiple cognitive interference channels. Here, we take the fairness among multiple secondary users (SUs) and Pareto optimality measured by the capacity maximization into consideration. The complex cooperation and competition relationship among multiple SUs and primary users (PUs) is described with the refined signal-to-interference plus noise (SINR) definition. According to the Nash axioms from the Nash bargaining cooperative game, the newly built utility function is formulated, and the spectral gap-filling problem is formulated as cognitive capacity Nash product maximization (CCNPM). To improve the centralized algorithm design in in the cooperative game theory framework, we employ the dual decomposition technique to achieve the distributed bargaining approaches. The proposed approaches are with low implementation complexities and the little information exchange.
机译:在认知网络环境,其中认知网络由多个认知干扰信道组成的最佳联合信道选择和功率控制方案进行了研究。在这里,我们取多个次要用户(SUS)和帕累托最优由容量最大化考虑测量之间的公平性。在多个SUS和主用户(PU的)的复合作和竞争关系与精制的信号与干扰加噪声比(SINR)的定义进行说明。据纳什议价合作博弈的纳什公理,新建成的效用函数是制定和频谱空隙充填问题转化为认知能力纳什产品最大化(CCNPM)。为了提高集中式算法设计在合作博弈理论框架下,我们采用了双分解技术,实现分布式的谈判接近。所提出的方法是用较低的实现复杂度和小信息交换。

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