认知无线电网络中基于凸优化的分布式功率控制

Shunqiao Sun, Jiaxi Di, Weiming Ni
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引用次数: 25

摘要

考虑了认知无线电(CR)网络中每个CR发射机(CR- tx)的平均数据包延迟约束和主接收端(PU-Rx)的干扰约束下的功率效率优化问题。我们提出了一种协作方法,在网络中没有中央控制节点且没有部署辅助传感器进行干扰测量工作的情况下,使每个CR-Tx知道PU-Rx的干扰水平。证明了功率控制问题是一个凸问题。由于CR-Tx节点的幂在约束中是耦合的,我们应用耦合约束的拉格朗日松弛法,构造了次梯度迭代算法,以分布式的方式求解对偶问题。为了减少每次迭代过程中消息交换的负载,提出了一种改进算法,该算法可以通过拉格朗日对偶分解来实现。数值结果表明,两种算法都能快速收敛。当CR用户的延迟约束不是很小时,最好采用性能较好但复杂度较低的改进算法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Distributed power control based on convex optimization in cognitive radio networks
We consider the power efficiency optimization problem in the cognitive radio (CR) networks under both the average packet delay constraints of each CR transmitter (CR-Tx) and the interference constraint at primary receiver (PU-Rx). We propose a cooperative approach to make each CR-Tx know the interference level at the PU-Rx when there is no central control node in the network and no assistant sensors are deployed to do the interference measuring jobs. The power control problem is proved to be a convex problem. Since the powers of CR-Tx nodes are coupled in constraints, we apply the Lagrange relaxation of the coupling constraints method and construct the subgradient iterative algorithm to solve the dual problem in a distributed way. To reduce the payload of the message exchange at each iterative process, an improved algorithm is proposed that could be implemented through Lagrange dual decomposition. Numerical results show that the two algorithms can converge very fast. When the delay constraints of CR users are not very small, it is better to apply the improved algorithm which has a good performance but with a much lower complexity.
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