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基于改进小波变换方法的混沌信号去噪研究
引用本文:位秀雷,林瑞霖,刘树勇,杨爱波.基于改进小波变换方法的混沌信号去噪研究[J].武汉水运工程学院学报,2013(5):1062-1065.
作者姓名:位秀雷  林瑞霖  刘树勇  杨爱波
作者单位:海军工程大学船舶与动力学院,武汉430033
基金项目:国家自然科学基金(批准号:51179197)、海洋工程国家重点实验室(上海交通大学)开放课题(批准号:1009)资助
摘    要:针对混沌信号和噪声频谱互相重叠,传统方法难以实现有效滤波这一问题,提出一种改进的小波去噪方法.该方法采用参数加权法构造信号,将小波分解系数进行阈值处理,通过循环迭代,利用序列中包含的有效信息,将有用信号提取出来.仿真结果表明,利用改进小波变换去噪方法改善了混沌时间序列的预测结果,证明了该方法的有效性.

关 键 词:小波变换  混沌信号  去噪

Denoising for Chaotic Signal based on an Improved Wavelet Transform Method
Authors:WEI Xiulei  LIN Ruilin  LIU Shuyong  YANG Aibo
Institution:1.College of Naval Architecture and Marine Power, Naval University of Engineering, Wuhan 430033, China;)
Abstract:The traditional filtering method can not reduce the noise in the chaotic system effectively as the frequency spectrum of the chaotic signals and noise are overlapped.In order to solve this problem,an improved wavelet denoising method based on weighted parameters method is proposed.The noisereduction idea is that reconstruct signals after the threshold compromise of the wavelet decomposition.Then the useful signals are extracted from the original chaotic signals and the reconstructed signals.Simulation results show that the improved wavelet denoising method improves the effect of chaotic forecast.
Keywords:wavelet transform  chaotic signal  denoising
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