Liang Rui, Li Hui, Dong Yingli, Xue Guodong
School of Electronics and Information, Northwestern Polytechnical University, Xi'an 710129, China.
Entropy (Basel). 2024 Apr 21;26(4):349. doi: 10.3390/e26040349.
The practical implementation of massive multi-user multi-input-multi-output (MU-MIMO) downlink communication systems power amplifiers that are energy efficient; otherwise, the power consumption of the base station (BS) will be prohibitive. Constant envelope (CE) precoding is gaining increasing interest for its capability to utilize low-cost, high-efficiency nonlinear radio frequency amplifiers. Our work focuses on the topic of CE precoding in massive MU-MIMO systems and presents an efficient CE precoding algorithm. This algorithm uses an alternating minimization (AltMin) framework to optimize the CE precoded signal and precoding factor, aiming to minimize the difference between the received signal and the transmit symbol. For the optimization of the CE precoded signal, we provide a powerful approach that integrates the majorization-minimization (MM) method and the fast iterative shrinkage-thresholding (FISTA) method. This algorithm combines the characteristics of the massive MU-MIMO channel with the second-order Taylor expansion to construct the surrogate function in the MM method, in which minimizing this surrogate function is the worst-case of the system. Specifically, we expand the suggested CE precoding algorithm to involve the discrete constant envelope (DCE) precoding case. In addition, we thoroughly examine the exact property, convergence, and computational complexity of the proposed algorithm. Simulation results demonstrate that the proposed CE precoding algorithm can achievean uncoded biterror rate (BER) performance gain of roughly 1dB compared to the existing CE precoding algorithm and has an acceptable computational complexity. This performance advantage also exists when it comes to DCE precoding.
大规模多用户多输入多输出(MU-MIMO)下行链路通信系统功率放大器的实际应用需要具备高能效,否则基站(BS)的功耗将过高。恒定包络(CE)预编码因其能够利用低成本、高效率的非线性射频放大器而越来越受到关注。我们的工作聚焦于大规模MU-MIMO系统中的CE预编码主题,并提出了一种高效的CE预编码算法。该算法使用交替最小化(AltMin)框架来优化CE预编码信号和预编码因子,旨在最小化接收信号与发射符号之间的差异。对于CE预编码信号的优化,我们提供了一种强大的方法,该方法将主元最小化(MM)方法和快速迭代收缩阈值(FISTA)方法相结合。此算法将大规模MU-MIMO信道的特性与二阶泰勒展开相结合,以在MM方法中构建替代函数,其中最小化该替代函数是系统的最坏情况。具体而言,我们将所提出的CE预编码算法扩展到离散恒定包络(DCE)预编码情况。此外,我们深入研究了所提算法的确切性质、收敛性和计算复杂度。仿真结果表明,与现有的CE预编码算法相比,所提出的CE预编码算法可以实现大约1dB的未编码误码率(BER)性能增益,并且具有可接受的计算复杂度。在DCE预编码方面,这种性能优势同样存在。