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Adaptive Channel Estimation Using Pilot-Embedded Data-Bearing Approach for MIMO-OFDM Systems

机译:使用导频嵌入式数据承载方法的MIMO-OFDM系统自适应信道估计

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Multiple-input multiple-output (MIMO) orthogonal-frequency-division-multiplexing (OFDM) systems employing coherent receivers crucially require channel state information (CSI). Since the multipath delay profile of channels is arbitrary in the MIMO-OFDM systems, an effective channel estimator is needed. In this paper, we first develop a pilot-embedded data-bearing (PEDB) approach for joint channel estimation and data detection, in which PEDB least-square (LS) channel estimator and maximum-likelihood (ML) data detection are employed. Then, we propose an LS fast Fourier transform (FFT)-based channel estimator by employing the concept of FFT-based channel estimation to improve the PEDB-LS one via choosing a certain number of significant taps for constructing a channel frequency response. The effects of model mismatch error inherent in the proposed LS FFT-based estimator when considering noninteger multipath delay profiles and its performance analysis are investigated. The relationship between the mean-squared error (MSE) and the number of chosen significant taps is revealed, and hence, the optimal criterion for obtaining the optimum number of significant taps is explored. Under the framework of pilot embedding, we further propose an adaptive LS FFT-based channel estimator employing the optimum number of significant taps to compensate the model mismatch error as well as minimize the corresponding noise effect. Simulation results reveal that the adaptive LS FFT-based estimator is superior to the LS FFT-based and PEDB-LS estimators under quasi-static channels or low Doppler's shift regimes
机译:采用相干接收机的多输入多输出(MIMO)正交频分复用(OFDM)系统至关重要地需要信道状态信息(CSI)。由于信道的多径延迟分布在MIMO-OFDM系统中是任意的,因此需要有效的信道估计器。在本文中,我们首先开发了一种用于联合信道估计和数据检测的先导嵌入式数据承载(PEDB)方法,其中采用了PEDB最小二乘(LS)信道估计器和最大似然(ML)数据检测。然后,我们通过采用基于FFT的信道估计概念,通过选择一定数量的有效抽头来构建信道频率响应,提出了一种基于LS快速傅里叶变换(FFT)的信道估计器,以改进PEDB-LS。研究了考虑非整数多径时延分布时,基于LS FFT的估计器固有的模型失配误差的影响及其性能分析。揭示了均方误差(MSE)与所选有效抽头数量之间的关系,因此,探索了获得最佳有效抽头数量的最佳准则。在导频嵌入的框架下,我们进一步提出了一种基于LS FFT的自适应信道估计器,该信道估计器使用最佳有效抽头数来补偿模型失配误差并最小化相应的噪声影响。仿真结果表明,在准静态信道或低多普勒频移条件下,基于LS FFT的自适应估计器优于基于LS FFT的估计器和PEDB-LS估计器

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