Title :
Parameter Estimation of Power System Signals Based on Cosine Self-Convolution Window With Desirable Side-Lobe Behaviors
Author :
Zeng, Bo ; Teng, Zhaosheng
Author_Institution :
Coll. of Electr. & Inf. Eng., Hunan Univ., Changsha, China
Abstract :
Parameter estimation is an important topic in power system signal-processing tasks. A new class of windows, the cosine self-convolution window (CSCW), is proposed. The main-lobe and side-lobe behaviors of the first to the third order CSCWs are studied. A CSCW-based improved fast Fourier transform algorithm (FFT) for estimating power system signal parameters, such as frequency, phase, and amplitude, is given. The CSCW has a low peak side-lobe level, a high side-lobe decaying rate, and a simple spectral representation. Leakage errors and harmonic interferences are thus reduced considerably by weighting samples with the CSCW. The CSCW-based improved FFT algorithm can be easily implemented in embedded systems. The effectiveness of the proposed method was analyzed by means of computer simulations and practical experiments for multifrequency signals with the variations of the power system frequency as well as the presence of white noise and interhamonics.
Keywords :
fast Fourier transforms; harmonics suppression; interference suppression; power system parameter estimation; signal processing; spectral analysis; CSCW; CSCW-based improved FFT algorithm; computer simulations; cosine self-convolution window; embedded systems; fast Fourier transform algorithm; harmonic interferences; leakage errors; low peak sidelobe level; multifrequency signals; power system frequency; power system signal parameter estimation; power system signal-processing; sidelobe behaviors; sidelobe decaying rate; spectral representation; white noise; Convolution; Discrete Fourier transforms; Frequency estimation; Harmonic analysis; Power system harmonics; Cosine self-convolution window (CSCW); fast Fourier transform (FFT); parameter estimation; power system; side-lobe behavior; spectral leakage;
Journal_Title :
Power Delivery, IEEE Transactions on
DOI :
10.1109/TPWRD.2010.2083701