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Stochastic Optimization of Cognitive Networks

机译:认知网络的随机优化

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In this paper, we aim to propose a stochastic joint optimization method that allows the minimization of the energy consumption of the spectrum sensing of a multi-hop secondary network subject to constraints on the detection performance and the number of network hops, in a tradeoff between the overall probability of missed detection and false alarm, and the energy consumption. The optimal closed-form solution of the optimization problem is computed by means of two approaches: 1) worst case and 2) stochastic approach. Both theoretical analysis and numerical results show that the proposed method allows reducing the energy consumption, by showing its effectiveness with different data fusion rules. Particularly, the optimal solution outperforms the existing ones in terms of computational complexity, and of energy consumption specially for a number of hops greater than 4. The proposed technique has been finally proven in several environments that characterize different primary operative scenarios, such as wireless metropolitan area networks and satellite communications in the presence of interference with very low signal-to-noise ratio.
机译:在本文中,我们旨在提出一种随机联合优化方法,该方法允许在检测性能和网络跳数之间进行权衡的情况下,将多跳二次网络的频谱感知能耗最小化错过检测和错误警报的总体可能性以及能耗。通过以下两种方法来计算优化问题的最优闭式解:1)最坏情况和2)随机方法。理论分析和数值结果均表明,该方法通过显示其在不同数据融合规则下的有效性,可以降低能耗。特别是,最佳解决方案在计算复杂度和能量消耗方面优于现有解决方案,特别是对于大于4的多个跃点。所提出的技术最终在表征不同主要操作场景的几种环境中得到了证明,例如无线都市区域网络和卫星通信中存在极低信噪比的干扰。

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