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Generalized Method of Moments Estimation of Location Parameters: Application to Blind Phase Acquisition

机译:位置参数矩估计的通用方法:在盲相采集中的应用

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In this paper, we address the problem of location parameter estimation via a Generalized Method of Moments (GMM) approach. The general framework for the GMM estimation requires the minimization of a suitable, generally nonconvex, elliptic norm. Here we show that, if the estimandum is a shift parameter for a suitable statistic of the observations, a fast, DFT-based, computationally efficient procedure can be employed to perform the estimation. Besides we discuss the relation between the GMM estimation and the maximum likelihood (ML) estimation, showing that the GMM estimation rule provides a closed form ML estimator for shift parameters when the observations are multinomially distributed. As a case study, we analyze a GMM blind phase offset estimator for general quadrature amplitude modulation constellations. Simulation results and theoretical performance analysis show that the GMM estimator outperforms selected state of the art estimators, approaching the Cramér-Rao lower bound for a wide range of signal-to-noise ratio values.
机译:在本文中,我们通过广义矩量法(GMM)解决了位置参数估计的问题。 GMM估算的一般框架要求最小化适当的,通常为非凸的椭圆范数。在这里,我们表明,如果估计值是用于观测的适当统计量的移位参数,则可以采用基于DFT的快速,计算有效的过程来执行估计。此外,我们讨论了GMM估计和最大似然(ML)估计之间的关系,表明当观测值被多项式分布时,GMM估计规则为移位参数提供了一种封闭形式的ML估计。作为案例研究,我们分析了通用正交幅度调制星座图的GMM盲相位偏移估计器。仿真结果和理论性能分析表明,GMM估计器的性能优于选定的最新估计器,在广泛的信噪比值范围内接近Cramér-Rao下限。

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