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Superimposed channel training algorithm for time-varying MIMO relay systems

机译:用于时变MIMO中继系统的叠加信道训练算法

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In this paper, we propose a superimposed channel training algorithm for multiple-input multiple-output (MIMO) relay communication systems with time-varying channels. The time-varying characteristic of the channels is described by the complex-exponential basis expansion model (CE-BEM). The proposed algorithm can estimate the individual first-hop and second-hop time-varying channel matrices of MIMO relay systems. To improve the performance of channel estimation, we derive the optimal structure of the source and relay training sequences that minimize the mean-squared error (MSE) of channel estimation. We also optimize the relay amplification factor which determines the power allocation between the source and relay training sequences. Numerical simulations demonstrate that the proposed superimposed channel training algorithm for MIMO relay systems with time-varying channels outperforms the conventional two-stage channel estimation scheme.
机译:在本文中,我们提出了一种具有时变信道的多输入多输出(MIMO)中继通信系统的叠加信道训练算法。信道的时变特性由复杂指数基础扩展模型(CE-BEM)描述。所提出的算法可以估计MIMO中继系统的各个第一跳和第二跳时变频信道矩阵。为了提高信道估计的性能,我们得出了源和中继训练序列的最佳结构,最小化信道估计的平均平均误差(MSE)。我们还优化了中继放大因子,该增量放大因子确定了源和继电器训练序列之间的功率分配。数值模拟表明,具有时变信道的MIMO中继系统提出的叠加信道训练算法优于传统的两级信道估计方案。

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