Reducing computational complexity of the modern wireless communication systems such as massive Multiple-Input Multiple-Output (MIMO) configurations is of utmost interest. In this paper, we propose new algorithm that can be used to accelerate matrix inversion in the decoding of space-time block codes (STBC) in the uplink of dynamic massive MIMO systems. A multi-user system in which the base station is equipped with a large number of antennas and each user has two antennas is considered. In addition, users can enter or exit the system dynamically. For a given space-time block coding/decoding scheme the computational complexity of the receiver will be significantly reduced when a user is added to or removed from the system by employing the proposed method. In the proposed scheme, the matrix inversion for zero-forcing (ZF) as well as minimum mean square error (MMSE) decoding is derived from the inverse of a partitioned matrix and the Woodbury matrix identity. Furthermore, the suggested technique can be utilized when the number of users is fixed but the channel estimate changes for a particular user. The mathematical equations for updating the inverse of the decoding matrices are derived and its complexity is compared to the direct way of computing the inverse. Evaluations confirm the effectiveness of the proposed approach.
翻译:降低现代无线通信系统的计算复杂性,如大规模多投入多输出(MIIMO)配置等,具有极大的兴趣。在本文件中,我们建议采用新的算法,在动态大型MIMO系统上行链条码(STBC)中加快空间时区块代码解码的矩阵转换;考虑一个多用户系统,基础站配备了大量天线,每个用户有两个天线;此外,用户可以动态地进入或退出系统;对于某个特定空间时段编码/分解计划,当用户被添加到系统或通过使用拟议方法从系统中删除时,接收器的计算复杂性将大大降低。在拟议办法中,用于零改写(ZF)的矩阵转换以及最小平均平方差(MMSE)解码的矩阵转换来自隔断式矩阵的反常数和Woodbury矩阵特性。此外,在用户人数固定时,可使用所建议的技术,但对特定用户的频道变化作出估计时,接收器的计算将大大降低。在更新直接评估时,将数学公式中,将得出直接评估的方法。