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Correlation-based algorithm for multi-dimensional single-tone frequency estimation

机译:基于相关性的多维单音频率估计算法

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摘要

In this paper, parameter estimation for a R-dimensional (R-D) single cisoid with R ≥ 2 in additive white Gaussian noise is addressed. By exploiting the correlation of the data samples, we construct R single-tone sequences which contain the R-D frequency parameters. Based on linear prediction and weighted linear squares techniques, two proposals are developed for fast and accurate frequency estimation from each constructed sequence. The two devised estimators are proved to be asymptotically unbiased while their variances achieve Cramer-Rao lower bound when the signal-to-noise ratio and/or data length tend to infinity. Computer simulations are also included to compare the proposed approach with conventional R-D harmonic retrieval schemes in terms of mean square error performance and computational complexity.
机译:本文针对加性高斯白噪声中R≥2的R维(R-D)单胞体进行参数估计。通过利用数据样本的相关性,我们构建了包含R-D频率参数的R个单音序列。基于线性预测和加权线性平方技术,针对从每个构造的序列进行快速准确的频率估计,提出了两种建议。当信噪比和/或数据长度趋于无穷大时,证明这两个设计的估计量是渐近无偏的,而它们的方差达到了Cramer-Rao下界。还包括计算机仿真,以在均方差性能和计算复杂度方面将建议的方法与常规R-D谐波检索方案进行比较。

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