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Optimization for cooperative spectrum sensing under Bayesian criteria

机译:贝叶斯准则下的协作频谱感知优化

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Spectrum sensing is one of the most challenging issues in cognitive radio systems. In this paper, optimization for cooperative spectrum sensing based on fusion of local hard decisions is studied. Given some prior knowledge of the targeted spectrum such as prior probability of occupancy by a primary user and the costs for missed detection and false alarm, a Bayesian detection problem is constructed to pursue the optimal fusion and local decision rules. A numerical iterative algorithm is proposed to approach the global optimum of the optimization problem.
机译:频谱感测是认知无线电系统中最具挑战性的问题之一。本文研究了基于局部硬决策融合的协同频谱感知优化。给定目标频谱的一些先验知识,例如主要用户的先占概率以及错过检测和错误警报的成本,贝叶斯检测问题可构造为追求最佳融合和局部决策规则。提出了一种数值迭代算法来逼近优化问题的全局最优解。

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