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Subspace Approach for Fast and Accurate Single-Tone Frequency Estimation

机译:快速准确的单音频率估计的子空间方法

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摘要

A new signal subspace approach for estimating the frequency of a single complex tone in additive white noise is proposed in this correspondence. Our main ideas are to use a matrix without repeated elements to represent the observed signal and exploit the principal singular vectors of this matrix for frequency estimation. It is proved that for small error conditions, the frequency estimate is approximately unbiased and its variance is equal to Cramér–Rao lower bound. Computer simulations are included to compare the proposed approach with the generalized weighted linear predictor, periodogram, and phase-based maximum likelihood estimators in terms of estimation accuracy, computational complexity, and threshold performance.
机译:在这种对应关系中,提出了一种新的信号子空间方法,用于估计加性白噪声中单个复调频率。我们的主要思想是使用没有重复元素的矩阵来表示观察到的信号,并利用该矩阵的主要奇异矢量进行频率估计。事实证明,对于小误差条件,频率估计近似无偏,其方差等于Cramér-Rao下限。包括计算机仿真,以在估计精度,计算复杂度和阈值性能方面将建议的方法与广义加权线性预测器,周期图和基于相位的最大似然估计器进行比较。

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