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Cooperative Downlink Max-Min Energy-Efficient Precoding for Multicell MIMO Networks

机译:多小区MIMO网络的协作下行链路最大-最小节能预编码

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摘要

Energy efficiency (EE) optimization of wireless systems has attracted increasing attention recently due to its beneficial impacts on the environment and operational savings. Max-min user energy-efficient precoding for multicell multiple-input-multiple-output (MIMO) cooperative networks is investigated. The optimization problem is a nonconvex fractional programming problem, and optimal solutions are hard to find. Two different local optimization methods, namely, block coordinate descent and sequential convex approximation, are proposed to transform the original problem into a series of convex subproblems. In the former method, the relationship between the user rate and the minimum mean square error (MMSE) is utilized, and optimization of the transmitter matrix is formulated as a semidefinite program; the latter method is based on the convex approximation of the nonconvex rate function. The fractional subproblem is transformed into a parameterized subtractive form by exploiting the generalized fractional programming theorem in both methods. Two iterative-fairness-based energy-efficient algorithms are proposed with proved local convergence. Numerical results illustrate that the proposed max-min EE algorithms can improve EE with a performance loss in terms of the sum rate at a high signal-to-noise ratio (SNR) and achieve EE fairness among base stations with different transmit power levels.
机译:无线系统的能源效率(EE)优化近来受到了越来越多的关注,这是因为它对环境和运营节省具有有益的影响。研究了多小区多输入多输出(MIMO)协作网络的最大-最小用户能效预编码。优化问题是一个非凸分式规划问题,而且很难找到最优解。提出了两种不同的局部优化方法,即块坐标下降法和顺序凸逼近法,将原始问题转化为一系列凸子问题。在前一种方法中,利用了用户速率与最小均方误差(MMSE)之间的关系,并且将发射机矩阵的优化公式化为半定程序。后一种方法基于非凸率函数的凸近似。通过利用两种方法中的广义分数规划定理,分数子问题都可以转换为参数化减法形式。提出了两种基于迭代公平的节能算法,并证明了其局部收敛性。数值结果表明,提出的max-min EE算法可以在高信噪比(SNR)下以总速率提高性能损失的EE,并在具有不同发射功率水平的基站之间实现EE公平性。

著录项

  • 来源
    《IEEE Transactions on Vehicular Technology》 |2016年第11期|9425-9430|共6页
  • 作者单位

    Key Laboratory of Information Coding and Transmission, Southwest Jiaotong University, Chengdu, China;

    Key Laboratory of Information Coding and Transmission, Southwest Jiaotong University, Chengdu, China;

    School of Information and Communication Engineering, Beijing University of Posts and Telecommunications (BUPT), Beijing Key Laboratory of Network System Architecture and Convergence, Beijing, China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    MIMO; Optimization; Programming; Convergence; Receivers; Base stations;

    机译:MIMO;优化;编程;收敛;接收机;基站;

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