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A sequential Monte-Carlo Kalman filter based delay and channel estimation method in the MIMO-OFDM system

机译:MIMO-OFDM系统中基于序列蒙特卡洛卡尔曼滤波器的时延和信道估计方法

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摘要

We propose a new propagation delay and channel estimation algorithm for a MIMO-OFDM system. To estimate delay parameters which enter the observation function in a nonlinear manner, we propose a sequential Monte-Carlo (SMC) filter which incorporates the extended Kalman filter (EKF) to generate delay samples. To reduce the complexity, the SMC filter employs sequential importance sampling. In the MIMO-OFDM system, the initial estimate for the delays and channels are obtained using one training symbol. In the remaining OFDM symbol intervals, the QRD-M algorithm is employed to detect the transmitted data symbols. The QRD-M data detector and SMC channel/delay estimator are finally combined in a joint decision-directed algorithm.
机译:我们为MIMO-OFDM系统提出了一种新的传播延迟和信道估计算法。为了以非线性方式估计进入观察功能的延迟参数,我们提出了一种顺序蒙特卡罗(SMC)滤波器,该滤波器包含扩展的卡尔曼滤波器(EKF)以产生延迟样本。为了降低复杂性,SMC过滤器采用连续的重要性采样。在MIMO-OFDM系统中,使用一个训练符号获得延迟和频道的初始估计。在剩余的OFDM符号间隔中,采用QRD-M算法来检测发送的数据符号。 QRD-M数据检测器和SMC通道/延迟估计器最终以联合决策算法组合。

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