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Estimation of FBMC/OQAM Fading Channels Using Dual Kalman Filters

机译:使用双卡尔曼滤波器估计FBMC / OQAM衰落频道

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We address the problem of estimating time-varying fading channels in filter bank multicarrier (FBMC/OQAM) wireless systems based on pilot symbols. The standard solution to this problem is the least square (LS) estimator or the minimum mean square error (MMSE) estimator with possible adaptive implementation using recursive least square (RLS) algorithm or least mean square (LMS) algorithm. However, these adaptive filters cannot well-exploit fading channel statistics. To take advantage of fading channel statistics, the time evolution of the fading channel is modeled by an autoregressive process and tracked by Kalman filter. Nevertheless, this requires the autoregressive parameters which are usually unknown. Thus, we propose to jointly estimate the FBMC/OQAM fading channels and their autoregressive parameters based on dual optimal Kalman filters. Once the fading channel coefficients at pilot symbol positions are estimated by the proposed method, the fading channel coefficients at data symbol positions are then estimated by using some interpolation methods such as linear, spline, or low-pass interpolation. The comparative simulation study we carried out with existing techniques confirms the effectiveness of the proposed method.
机译:我们解决基于导频符号的滤波器组多载波(FBMC / OQAM)无线系统中估计时变衰落通道的问题。该问题的标准解决方案是最小二乘(LS)估计器或最小均方误差(MMSE)估计,具有可能使用递归最小二乘法(RLS)算法或最小均方(LMS)算法的适应性实现。但是,这些自适应过滤器无法充分利用衰落信道统计。为了利用衰落渠道统计,衰落频道的时间演变是由自回归过程建模的,并由卡尔曼滤波器跟踪。然而,这需要通常未知的自回归参数。因此,我们建议根据双最优卡尔曼滤波器联合估计FBMC / OQAM衰落渠道及其自回归参数。一旦通过所提出的方法估计导频符号位置处的衰落通道系数,然后通过使用诸如线性,样条或低通插值的一些插值方法来估计数据符号位置处的衰落信道系数。我们使用现有技术进行的比较仿真研究证实了该方法的有效性。

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