Performance analysis of an LMS based Fourier analyzer for sinusoidal signals with time-varying amplitude

N. Kudoh, Y. Tadokoro
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引用次数: 3

Abstract

The estimation of sinusoidal signals in additive noise finds many engineering applications. Examples are the estimation of harmonics in power systems and the pitch detection in musical transcription and so on. In this article, firstly, it is verified from numerical experiment that a least mean square (LMS) based Fourier analyzer for sinusoidal signals with time-varying amplitude can track each amplitude of cosine and sine signals much faster than the conventional LMS method. The frequency response of the algorithm in the steady state is derived in order to provide filtering insight of the adaptive algorithm in the steady state. Finally, performance analysis of the algorithm for sinusoidal signals with linearly decaying amplitude in noise is described by using the above frequency response, and it is verified that the analysis explains quite well for small step size parameters and the number of sinusoids.
基于LMS的傅立叶分析仪对时变振幅正弦信号的性能分析
加性噪声中正弦信号的估计有许多工程应用。例如电力系统中谐波的估计和音乐转录中的音高检测等等。本文首先通过数值实验验证了基于最小均方(LMS)的傅立叶分析仪对时变振幅正弦信号的跟踪速度比传统的LMS方法快得多。推导了该算法在稳态下的频率响应,为自适应算法在稳态下的滤波提供了思路。最后,利用上述频率响应对该算法在噪声中幅度线性衰减的正弦信号进行了性能分析,并验证了该分析对小步长参数和正弦波数量有很好的解释。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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