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首页> 外文期刊>Wireless personal communications: An Internaional Journal >Robust Probabilistic Distributed Power Control Algorithm for Underlay Cognitive Radio Networks under Channel Uncertainties
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Robust Probabilistic Distributed Power Control Algorithm for Underlay Cognitive Radio Networks under Channel Uncertainties

机译:信道不确定性下的认知无线电网络的鲁棒概率分布功率控制算法

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摘要

Due to limited cooperation among users and erratic nature of wireless channel, it is difficult for secondary users (SUs) to obtain exact values of system parameters, which may lead to severe interference to primary users (PUs) and cause communication interruption for SUs. In this paper, we study robust power control problem for spectrum underlay cognitive radio networks with multiple SUs and PUs under channel uncertainties. Precisely, our objective is to minimize total transmit power of SUs under the constraints that the satisfaction probabilities of both interference temperature of PUs and signal-to-interference-plus-noise ratio of SUs exceed some thresholds. With knowledge of statistical distribution of fading channel, probabilistic constraints are transformed into closed forms. Under a weighted interference temperature constraint, a globally distributed power control iterative algorithm with forgetting factor to increase convergence speed is obtained by dual decomposition methods. Numerical results show that our proposed algorithm outperforms worst case method and non-robust method.
机译:由于用户之间的协作有限以及无线信道的不稳定特性,次级用户(SU)难以获得准确的系统参数值,这可能导致对主要用户(PU)的严重干扰并导致SU的通信中断。在本文中,我们研究了在信道不确定性下具有多个SU和PU的频谱下层认知无线电网络的鲁棒功率控制问题。精确地,我们的目标是在PU的干扰温度和SU的信干噪比均满足某些阈值的约束下,将SU的总发射功率最小化。通过了解衰落信道的统计分布,概率约束将转换为封闭形式。在加权干扰温度约束下,通过对偶分解方法获得了具有遗忘因子以提高收敛速度的全局分布功率控制迭代算法。数值结果表明,本文提出的算法优于最坏情况法和非稳健法。

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