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A Game-Theoretic Approach for Cognitive Radio Networks Using Machine Learning Techniques

机译:一种使用机器学习技术的认知无线电网络的游戏 - 理论方法

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Cognitive Radio has been viewed as a promising technology to enhance spectrum utilization significantly. In this work, we propose a model for Dynamic Spectrum Allocationin Cognitive Radio Networks using Game Theory. Furthermore, in order to accommodate for all cases, we have put to good use of Preemptive Resume Priority M|M|1 Queuing Model. To supplement it we introduce a priority-based scheduling algorithm called Incremental Weights-Decremental Ratios (IW-DR). As a means to ameliorate the efficiency, we have made use of Regression Models.
机译:认知无线电已被视为有希望的技术,以提高频谱利用。在这项工作中,我们提出了一种使用博弈论的动态频谱综合认知无线电网络模型。此外,为了适应所有情况,我们已经妥善使用先发制人的恢复优先级M | M | 1排队模型。为了补充它,我们介绍一种名为增量权重比率的优先级的调度算法(IW-DR)。作为改善效率的手段,我们已经利用了回归模型。

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