认知无线电网络中成本约束的频谱感知

Gang Xiong, S. Kishore, A. Yener
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引用次数: 5

摘要

本文研究了认知无线电网络中考虑系统级成本的最优频谱感知,该系统级成本考虑了感知的本地处理成本(每个次要用户的样本采集和能量计算)以及传输成本(从次要用户到融合中心的转发能量统计)。该优化问题解决了在总成本约束下,在每个次要用户处采集样本的适当数量和放大器增益以最小化全局误差概率的问题。特别地,导出了最优解的封闭表达式,并在采样数或放大器增益固定和附加约束条件下提出了一种广义充水算法。在联合设计采样数和放大器增益时,最优解表明只需激活一个辅助用户,即采集样本进行局部能量计算,并将能量统计数据传输到融合中心。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cost constrained spectrum sensing in cognitive radio networks
This paper addresses optimal spectrum sensing in cognitive radio networks considering its system level cost that accounts for the local processing cost of sensing (sample collection and energy calculation at each secondary user) as well as the transmission cost (forwarding energy statistic from secondary users to fusion center). The optimization problem solves for the appropriate number of samples to be collected and amplifier gains at each secondary user to minimize the global error probability subject to a total cost constraint. In particular, closed-form expressions for optimal solutions are derived and a generalized water-filling algorithm is proposed when number of samples or amplifier gains are fixed and additional constraints are imposed. Furthermore, when jointly designing the number of samples and amplifier gains, optimal solution indicates that only one secondary user needs to be active, i.e., collecting samples for local energy calculation and transmitting energy statistic to fusion center.
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