Efficient Two-Dimensional Filters for Doubly-Dispersive Channel Estimation in Time-Frequency Signal Processing

T. Hunziker, S. Stefanatos
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引用次数: 3

Abstract

We consider minimum mean squared error (MSE) channel estimators operating on the basis of time-frequency signal observations comprising mixtures of known pilot and unknown data signals. These estimators are useful for a general class of receivers resorting to a time-frequency signal representation of the received signal - obtained by, e.g., a filter bank - which have recently been considered in the context of reconfigurable radio. Taking advantage of the Kronecker product properties we derive two-dimensional filter formulations for doubly-dispersive channel estimation, which afford implementations with moderate complexities. Rank reduction and the use of fast Fourier transform methods are shown to offer further complexity reductions. The different estimator variants are compared in terms of MSE performance and complexity.
时频信号处理中双色散信道估计的高效二维滤波器
我们考虑了最小均方误差(MSE)信道估计器,该信道估计器基于由已知导频和未知数据信号混合组成的时频信号观测。这些估计器对于使用接收信号的时频信号表示的一般类型的接收器是有用的-例如,通过滤波器组获得-最近在可重构无线电的背景下被考虑。利用Kronecker积特性,我们推导了双色散信道估计的二维滤波器公式,它提供了中等复杂性的实现。秩降和快速傅里叶变换方法的使用被证明提供了进一步的复杂性降低。根据MSE性能和复杂性比较了不同的估计器变体。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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