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Simulation Study of Power Quality Disturbance in Distributed Power System Using Complex Wavelet Network

机译:基于复杂小波网络的分布式电源系统电能质量扰动仿真研究

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摘要

To improve the precision of power quality disturbance detection and recognition in distributed power system, a novel method based on complex transform wavelet transform is presented. Due to the property that instantaneous amplitudes of voltages and currents as well as instantaneous phase differences can be obtained, the combined information with time and frequency localization properties are defined. These have advantages over Fourier transform expression in the frequency domain when significant distortions are present in the signals, causing the periodicity to be lost. The signal containing noise is de-noised by wavelet transform to obtain a signal with higher signal-to-noise ratio. The feature obtained from wavelet transform coefficients are inputted into wavelet network for power quality disturbance pattern recognition. By means of enough samples to train the network, the synthesized approach of recursive orthogonal least squares algorithm with improved Givens transform is used to fulfill the network parameter identification. The simulation results demonstrate that the combined information with wavelet network achieve more useful signal features, and improve detection and classification accuracy.
机译:为了提高分布式电源系统中电能质量扰动检测与识别的精度,提出了一种基于复变换小波变换的电能质量扰动检测与识别方法。由于可以获得电压和电流的瞬时幅度以及瞬时相位差的特性,因此定义了具有时间和频率本地化特性的组合信息。当信号中存在明显的失真,从而导致周期性丢失时,它们在频域中具有优于傅立叶变换表达式的优势。通过小波变换对包含噪声的信号进行去噪以获得具有较高信噪比的信号。从小波变换系数获得的特征被输入到小波网络中以进行电能质量扰动模式识别。通过足够的样本训练网络,采用改进的Givens变换的递归正交最小二乘算法综合方法来完成网络参数的识别。仿真结果表明,将信息与小波网络相结合,可以获得更有用的信号特征,提高了检测和分类的准确性。

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