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Carrier Frequency Offset Estimation in Uplink OFDMA Systems: An Approach Relying on Sparse Recovery

机译:上行OFDMA系统中的载波频率偏移估计:一种基于稀疏恢复的方法

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摘要

This paper proposes a novel blind carrier frequency offset (CFO) estimator, namely the sparse recovery assisted CFO (SR-CFO) estimator, for the uplink orthogonal frequency-division multiple access (OFDMA) systems. By exploiting the sparsity embedded in the OFDMA data, the CFO estimation is formulated as an optimization problem of sparse recovery with high-resolution. Meanwhile, in order to enhance the estimation accuracy of CFOs, background noise and sampling errors are mitigated by exploiting the structure of the noise covariances matrix in the transformed observation data, and the asymptotic distribution of the sampling errors. Furthermore, we propose an approach for deriving the regularization parameter used by the SR-CFO estimator, so as to control the tradeoff between the data fitting error and the sparsity of solution. The performance of the proposed SR-CFO estimator along with other four existing estimators is investigated and compared. Numerical results show that the proposed SR-CFO estimator is superior to the state-of-the-art estimators in terms of the estimation reliability.
机译:本文针对上行链路正交频分多址(OFDMA)系统提出了一种新颖的盲载波频偏(CFO)估计器,即稀疏恢复辅助CFO(SR-CFO)估计器。通过利用OFDMA数据中嵌入的稀疏性,将CFO估计公式化为高分辨率的稀疏恢复的优化问题。同时,为了提高CFO的估计精度,通过利用变换后的观测数据中的噪声协方差矩阵的结构以及采样误差的渐近分布来减轻背景噪声和采样误差。此外,我们提出了一种推导SR-CFO估计器使用的正则化参数的方法,以控制数据拟合误差与解的稀疏性之间的权衡。对拟议的SR-CFO估计器以及其他四个现有估计器的性能进行了研究和比较。数值结果表明,在估计可靠性方面,所提出的SR-CFO估计器优于最新的估计器。

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