MIMO-OFDM channel estimation based on subspace tracking

Jianxuan Du, Ye Li
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引用次数: 23

Abstract

In this paper, we propose a channel estimation algorithm for multiple-input and multiple-output orthogonal frequency for division multiplexing (MIMO-OFDM) systems, which has considerably less leakage than DFT-based channel estimators. This algorithm uses the optimum low-rank channel approximation obtained by tracking the frequency autocorrelation matrix of the channel response. The coefficients corresponding to dominant eigenfactors of the autocorrelation matrix are estimated every OFDM block while the eigenfactors are only updated using the training block that is transmitted every M blocks due to the slowly-varying feature of the frequency autocorrelation. Simulation results show that the proposed algorithm can effectively reduce channel estimation error and thus improve system performance.
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基于子空间跟踪的MIMO-OFDM信道估计
在本文中,我们提出了一种多输入多输出正交频分复用(MIMO-OFDM)系统的信道估计算法,它比基于dft的信道估计具有更小的泄漏。该算法通过跟踪信道响应的频率自相关矩阵得到最优低秩信道逼近。每个OFDM块估计自相关矩阵的优势特征因子对应的系数,而由于频率自相关的缓慢变化特征,特征因子仅使用每M块传输的训练块进行更新。仿真结果表明,该算法能有效降低信道估计误差,提高系统性能。
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