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Characterization of Non-Stationary Channels Using Mismatched Wiener Filtering

机译:使用不匹配的维纳滤波对非平稳通道进行表征

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A common simplification in the statistical treatment of linear time-varying (LTV) wireless channels is the approximation of the channel as a stationary random process inside certain time-frequency regions. We develop a methodology for the determination of local quasi-stationarity (LQS) regions, i.e., local regions in which a channel can be treated as stationary. Contrary to previous results relying on, to some extent, heuristic measures and thresholds, we consider a finite-length Wiener filter as realistic channel estimator and relate the size of LQS regions in time to the degradation of the mean square error (MSE) of the estimate due to outdated and thus mismatched channel statistics. We show that for certain power spectral densities (PSDs) of the channel a simplified but approximate evaluation of the matched MSE based on the assumption of an infinite filtering length yields a lower bound on the actual matched MSE. Moreover, for such PSDs, the actual MSE degradation is upper-bounded and the size of the actual LQS regions is lower-bounded by the approximate evaluation. Using channel measurements, we compare the evolution of the LQS regions based on the actual and the approximate MSE; they show strong similarities.
机译:线性时变(LTV)无线信道的统计处理中的常见简化是,将信道近似为某些时频区域内的固定随机过程。我们开发了一种方法来确定局部准平稳(LQS)区域,即可以将通道视为静止的局部区域。与以前在某种程度上依赖启发式度量和阈值的结果相反,我们将有限长度的维纳滤波器视为现实的信道估计器,并将LQS区域的大小及时与噪声均方误差(MSE)的降低相关联。由于信道统计信息过时因而不匹配而导致的估算值。我们表明,对于信道的某些功率谱密度(PSD),基于无限滤波长度的假设,对匹配的MSE进行简化但近似的评估会产生实际匹配的MSE的下限。此外,对于此类PSD,通过近似评估,实际的MSE降级较高,而实际LQS区域的大小较低。使用信道测量,我们根据实际和近似MSE比较LQS区域的演变;它们显示出很强的相似性。

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