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首页> 外文期刊>Intelligent automation and soft computing >CHANNEL ESTIMATION BASED ON NEURAL NETWORK WITH FEEDBACK FOR MIMO OFDM MOBILE COMMUNICATION SYSTEMS
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CHANNEL ESTIMATION BASED ON NEURAL NETWORK WITH FEEDBACK FOR MIMO OFDM MOBILE COMMUNICATION SYSTEMS

机译:MIMO OFDM移动通信系统中基于神经网络反馈的信道估计

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Multiple input multiple output (MIMO) orthogonal frequency division multiplexing (OFDM) has received a great deal of attention of recently in achieving high data rate in wireless communication systems such as WIMAX. Channel estimation is, however, a critical issue for coherent demodulation. In this paper, a new channel estimator based on neural network with feedback for MIMO-OFDM mobile system is designed and its performance is compared to the least square error (LS), least mean square error (LMS), minimum mean square error (MMSE) algorithms and neural network without feedback by using computer simulations. Simulation results demonstrate that our proposed system is an effective solution to channel estimation in time varying fast fading channels without any knowledge of channel statistics and noise information.
机译:多输入多输出(MIMO)正交频分复用(OFDM)最近在实现诸如WIMAX的无线通信系统中的高数据速率方面受到了广泛的关注。然而,信道估计是相干解调的关键问题。本文设计了一种基于神经网络的带反馈的信道估计器,用于MIMO-OFDM移动系统,并将其性能与最小平方误差(LS),最小均方误差(LMS),最小均方误差(MMSE)进行了比较。 )算法和神经网络,无需使用计算机仿真即可获得反馈。仿真结果表明,我们提出的系统是在时变快速衰落信道中进行信道估计的有效解决方案,无需任何信道统计信息和噪声信息。

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