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Variable Is Better Than Invariable: Sparse VSS-NLMS Algorithms with Application to Adaptive MIMO Channel Estimation

机译:变量胜于不变:稀疏的VSS-NLMS算法及其在自适应MIMO信道估计中的应用

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摘要

Channel estimation problem is one of the key technical issues in sparse frequency-selective fading multiple-input multiple-output (MIMO) communication systems using orthogonal frequency division multiplexing (OFDM) scheme. To estimate sparse MIMO channels, sparse invariable step-size normalized least mean square (ISS-NLMS) algorithms were applied to adaptive sparse channel estimation (ACSE). It is well known that step-size is a critical parameter which controls three aspects: algorithm stability, estimation performance, and computational cost. However, traditional methods are vulnerable to cause estimation performance loss because ISS cannot balance the three aspects simultaneously. In this paper, we propose two stable sparse variable step-size NLMS (VSS-NLMS) algorithms to improve the accuracy of MIMO channel estimators. First, ASCE is formulated in MIMO-OFDM systems. Second, different sparse penalties are introduced to VSS-NLMS algorithm for ASCE. In addition, difference between sparse ISS-NLMS algorithms and sparse VSS-NLMS ones is explained and their lower bounds are also derived. At last, to verify the effectiveness of the proposed algorithms for ASCE, several selected simulation results are shown to prove that the proposed sparse VSS-NLMS algorithms can achieve better estimation performance than the conventional methods via mean square error (MSE) and bit error rate (BER) metrics.
机译:信道估计问题是使用正交频分复用(OFDM)方案的稀疏选频衰落多输入多输出(MIMO)通信系统中的关键技术问题之一。为了估计稀疏MIMO信道,将稀疏不变步长归一化最小均方(ISS-NLMS)算法应用于自适应稀疏信道估计(ACSE)。众所周知,步长是控制三个方面的关键参数:算法稳定性,估计性能和计算成本。但是,传统方法很容易导致估计性能损失,因为ISS无法同时平衡这三个方面。在本文中,我们提出了两种稳定的稀疏可变步长NLMS(VSS-NLMS)算法,以提高MIMO信道估计器的精度。首先,在MIMO-OFDM系统中制定ASCE。其次,针对ASCE的VSS-NLMS算法引入了不同的稀疏惩罚。此外,还解释了稀疏ISS-NLMS算法与稀疏VSS-NLMS算法之间的区别,并推导了它们的下界。最后,为验证所提算法在ASCE上的有效性,通过若干仿真结果证明,该算法通过均方误差(MSE)和误码率均较常规方法具有更好的估计性能。 (BER)指标。

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