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A semi-blind algorithm for most significant tap detection in channel estimation of OFDM systems

机译:OFDM系统信道估计中最有效抽头检测的半盲算法

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摘要

In this paper, a semi-blind algorithm is proposed for the detection of most significant tap (MST) in the sparse channel estimation of OFDM systems. Based on an analysis of the second-order statistics of the signal received through a noise-free sparse channel, a direct relationship between the positions of the most significant taps (MST) of the sparse channel and the lags of the nonzero correlation functions is revealled, leading to an efficient semi-blind MST detection algorithm. By using the acquired MST position, a sparse least square channel estimate is then obtained. A number of computer simulation-based experiments are carried out to confirm the effectiveness of the proposed semi-blind MST detection algorithm and the associated sparse LS channel estimation method.
机译:本文提出了一种半盲算法,用于检测OFDM系统稀疏信道估计中的最高有效抽头(MST)。基于对通过无噪声稀疏通道接收的信号的二阶统计量的分析,揭示了稀疏通道的最高有效抽头(MST)的位置与非零相关函数的滞后之间的直接关系,从而产生了一种高效的半盲MST检测算法。通过使用获取的MST位置,然后获得稀疏的最小二乘信道估计。进行了许多基于计算机模拟的实验,以确认所提出的半盲MST检测算法和相关的稀疏LS信道估计方法的有效性。

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