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Semi-Blind Receivers for Multi-User Massive MIMO Relay Systems Based on Block Tucker2-PARAFAC Tensor Model

机译:基于块Tucker2-PARAFAC张量模型的多用户大型MIMO中继系统的半盲接收器

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Massive multiple-input multiple-output (MIMO) relay can significantly improve the capacity and throughput of wireless networks, thus has been a sought-after technique for future communication systems. However, the development of massive MIMO relay systems faces several major challenges. For example, the knowledge of instantaneous channel state information (CSI) is needed to estimate signals and optimize systems. Traditional estimation schemes need to transmit pilot sequences, which occupy the spectrum resources. In this paper, we propose a tensor-based method for joint signal and channel estimation for multi-user massive MIMO relay systems without using pilot sequences, and develop two tensor-based semi-blind receivers. Through multidimensional signaling scheme, the signals received by each user are formulated as the block Tucker2-PARAFAC (TP) tensor model. Then, two semi-blind receivers are proposed to jointly estimate the information signals and channel matrices. One is based on the tensor-based closed-form receiver, the other is based on the tensor-based iterative receiver. The proposed closed-form approach can also be used to initialize the iterative receiver for improving the convergence speed. In particular, the proposed schemes are practicable for both time division duplexing (TDD) and frequency division duplexing (FDD) modes. Uniqueness, identifiability and complexity are analyzed for our receivers. Compared with existing receivers, our receivers offer superior bit error rate (BER) and normalized mean square error (NMSE) performance. Numerical examples are shown to demonstrate the effectiveness of the proposed tensor-based receivers.
机译:巨大的多输入多输出(MIMO)继电器可以显着提高无线网络的容量和吞吐量,因此是未来通信系统的追捧技术。然而,大型MIMO中继系统的发展面临着几种主要挑战。例如,需要瞬时信道状态信息(CSI)来估计信号并优化系统。传统估计方案需要传输占用频谱资源的导频序列。在本文中,我们提出了一种基于张量的用于联合信号的方法和多用户大量MIMO中继系统的信道估计,而不使用导频序列,并开发两个基于张量的半盲接收器。通过多维信令方案,每个用户接收的信号被配制为块Tucker2-parafac(TP)张量模型。然后,提出了两个半盲接收器来共同估计信息信号和信道矩阵。一种基于张量的闭合形式接收器,另一个基于张量的迭代接收器。所提出的封闭式方法也可用于初始化迭代接收器以提高收敛速度。特别地,所提出的方案对于时分双工(TDD)和频分双工(FDD)模式而言是可行的。为我们的接收器分析了唯一性,可识别性和复杂性。与现有接收器相比,我们的接收器提供了卓越的误码率(BER)和归一化均线误差(NMSE)性能。示出了数值例子来证明所提出的张量的接收器的有效性。

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