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首页> 外文期刊>IEEE Transactions on Signal Processing >An adaptive estimation of periodic signals using a Fourier linear combiner
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An adaptive estimation of periodic signals using a Fourier linear combiner

机译:使用傅里叶线性组合器的周期信号自适应估计

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摘要

Presents an adaptive algorithm for estimating from noisy observations, periodic signals of known period subject to transient disturbances. The estimator is based on the LMS algorithm and works by tracking the Fourier coefficients of the data. The estimator is analyzed for convergence, noise misadjustment and lag misadjustment for signals with both time invariant and time variant parameters. The analysis is greatly facilitated by a change of variable that results in a time invariant difference equation. At sufficiently small values of the LMS step size, the system is shown to exhibit decoupling with each Fourier component converging independently and uniformly. Detection of rapid transients in data with low signal to noise ratio can be improved by using larger step sizes for more prominent components of the estimated signal. An application of the Fourier estimator to estimation of brain evoked responses is included.
机译:提出了一种自适应算法,用于根据嘈杂的观测值估算已知周期的周期性信号,该周期信号会受到瞬态干扰。估计器基于LMS算法,通过跟踪数据的傅立叶系数来工作。针对具有时不变和时变参数的信号,分析估计器的收敛性,噪声失调和滞后失调。变量的变化极大地促进了分析,该变化导致了时不变差分方程。在LMS步长值足够小的情况下,系统显示出解耦,每个傅里叶分量独立且均匀地收敛。通过使用较大的步长来估计信号中更突出的分量,可以改善具有低信噪比的数据中快速瞬态的检测。包括傅里叶估计器在估计脑诱发反应中的应用。

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