Sum energy-efficiency maximization for cognitive uplink networks with imperfect CSI

Rindranirina Ramamonjison, V. Bhargava
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引用次数: 7

Abstract

In this work, we investigate the robust energy-efficient transmission for the cognitive uplink wireless system. Precisely, we propose an optimization framework for maximizing the sum energy efficiency while taking into account the uncertainty of the channel between the primary and secondary users. Here, we assume that the base station has multiple antennas and employs a zero-forcing receive filter to eliminate the inter-user interference. We handle the intractability of the probabilistic interference constraints by approximating them with convex and linear surrogate constraints. Despite the non-convexity of the utility function, we propose a parametric convex programming approach to derive an optimal algorithm based on Newton method. Through numerical simulations, we show the convergence and effectiveness of the proposed method and analyze the effect of channel uncertainty on the energy efficiency of the cognitive uplink system.
不完全CSI下认知上行网络的总能效最大化
本文研究了认知上行无线系统的鲁棒节能传输。准确地说,我们提出了一个优化框架,以最大限度地提高总能源效率,同时考虑到主用户和次级用户之间信道的不确定性。在这里,我们假设基站有多个天线,并采用强制零接收滤波器来消除用户间干扰。我们通过用凸和线性替代约束逼近概率干涉约束来处理它们的难解性。针对效用函数的非凸性,提出了一种基于牛顿法的参数凸规划方法来推导最优算法。通过数值仿真,验证了该方法的收敛性和有效性,并分析了信道不确定性对认知上行系统能量效率的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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