底层认知MISO干扰信道中的加权和速率最大化

Laurent Gallo, Francesco Negro, I. Ghauri, D. Slock
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引用次数: 16

摘要

在本文中,我们解决了在底层认知无线电设置中具有线性发射波束形成(BF)向量的k用户多输入单输出(MISO)认知干扰信道(IFC)的加权和速率(WSR)最大化问题。我们考虑一组L单天线主接收机,其中认知系统可以引起有限的干扰。因此,我们提出了一种迭代算法来确定二次传输的BF向量。优化问题中拉格朗日乘子的优化是基于次梯度法的。BF向量的表达式可以解释为考虑到主用户和从基站之间的虚拟链路所引起的干扰的双上行链路(UL) MMSE接收。最后,采用确定性退火使算法更容易收敛。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Weighted sum rate maximization in the underlay cognitive MISO Interference Channel
In this paper we address the problem of Weighted Sum Rate (WSR) maximization for a K-user Multiple-Input Single-Output (MISO) cognitive Interference Channel (IFC) with linear transmit beamforming (BF) vectors in an underlay cognitive radio setting. We consider a set of L single-antenna Primary receivers to which the cognitive system can causes a limited amount of interference. We thus propose an iterative algorithm to determine the BF vectors for the secondary transmission. The optimization of the Lagrange multipliers involved in the optimization problem is based on the subgradient method. The expression of the BF vector can be interpreted as dual Uplink (UL) MMSE receiver that takes into account the interference caused by a fictitious link between the primary user and secondary base station. Finally Deterministic Annealing is applied to make the convergence of the algorithm easier.
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