基于频谱效率公平性的XL-MIMO系统预编码优化
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1.南京邮电大学电子与光学工程学院柔性电子(未来技术)学院,南京210023;2.南京邮电大学射频集成与微组装技术国家地方联合工作实验室,南京210023

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Precoding optimization of XL-MIMO system based on spectral efficiency fairness
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1.College of Electronic and Optical Engineering and College of Flexible Electronics (Future Technology) , Nanjing University of Posts and Telecommunications, Nanjing 210003, China; 2.National and Local Joint Engineering Laboratory of RF Integration and Micro-Assembly Technology , Nanjing University of Posts and Telecommunications, Nanjing 210003, China

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    摘要:

    本文研究了在近场信道模型下基于频谱效率公平性的超大规模多输入多输出下行系统的预编码优化问题。考虑在该近场信道模型,即小区内同时存在视距(Line-of-Sight,LOS)和非视距(Non-Line-of-Sight,NLOS)的非平稳混合信道,其中LOS信道采用球面波模型,而NLOS信道则采用瑞利模型。文中以频谱效率的几何平均值作为优化目标,从而确保用户间的公平性并优化系统整体的频谱效率。为了处理复杂的优化目标函数,首先对其采用泰勒展开的一阶近似作为新的目标函数;接着,使用拉格朗日对偶变换和二次变换将原始优化问题转化为更容易求解的等价问题;最后,为了降低计算复杂度,采用了快速迭代收缩阈值算法与投影梯度下降算法结合的投影快速迭代收缩阈值算法(Projection Fast Iterative Shrinkage Threshold Algorithm,PFISTA)来解决等效优化问题。仿真结果显示,以几何平均值作为目标函数能够降低用户频谱效率之间的差异,实现用户频谱效率的均衡提升。此外,PFISTA在获得与现有方法相当性能的同时,具有较低的计算复杂度。

    Abstract:

    This paper studies the precoding optimization problem for Extremely Large-Scale Multiple-Input-Multiple-Output downlink systems under a near-field channel model based on spectral efficiency fairness. The near-field channel model considers the coexistence of line-of-sight (LOS) and non-line-of-sight (NLOS) non-stationary mixed channels within the cell, where LOS channels are modeled using spherical wave models, while NLOS channels are modeled using Rayleigh models. The geometric mean of spectral efficiency is used as the optimization target to ensure fairness among users and optimize the overall spectral efficiency of the system. To handle the complex optimization objective function, a first-order Taylor expansion approximation is applied to create a simplified objective function; subsequently, Lagrangian dual transformation and quadratic transformations are used to transform the original optimization problem into an equivalent one that is easier to solve. Finally, to reduce computational complexity, the Projection Fast Iterative Shrinkage Threshold Algorithm (PFISTA), which combines fast iterative shrinkage thresholding algorithms with projected gradient descent, is employed to solve the equivalent optimization problem. Simulation results show that using the geometric mean as the objective function can reduce differences in spectral efficiencies among users, leading to a balanced improvement in user spectral efficiencies. Moreover, PFISTA achieves comparable performance to existing methods while maintaining lower computational complexity.

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李志立,傅友华,宋云超.基于频谱效率公平性的XL-MIMO系统预编码优化[J].数据采集与处理,,():

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  • 在线发布日期: 2025-07-05