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基于二进小波变换极大模法的土壤腐殖酸NMR谱信号滤噪
引用本文:朱凤岗.基于二进小波变换极大模法的土壤腐殖酸NMR谱信号滤噪[J].山东农业大学学报(自然科学版),2002,33(2):193-196.
作者姓名:朱凤岗
作者单位:山东农业大学,理学院.山东,泰安,271018
摘    要:实验数据的滤噪在分析化学领域中具有重要的意义。小波变换技术具有很强的具有信号分离能力容易把随机噪声从信号中分离出来,从而提高信号的信噪比。本文使用的滤噪方法不同于传统离散小波变换方法,而是通过引入二进小波变换和李氏指数的概念,根据噪声与有用信号的极大模截然不同的特征,实现信号滤噪。实验数据的仿真结果研究也证明该方法具有可行性。

关 键 词:二进小波变换  极大模法  土壤  腐殖酸  NMR谱  信号滤噪  实验数据  李氏指数
文章编号:1000-2324(2002)02-0193-04
修稿时间:2001年8月29日

DE- NOISING OF THE NMR SIGNAL BASED ON THE MODULE MAXIMUM OF BINARY WAVELET TRANSFER
ZHU Feng-gang.DE- NOISING OF THE NMR SIGNAL BASED ON THE MODULE MAXIMUM OF BINARY WAVELET TRANSFER[J].Journal of Shandong Agricultural University,2002,33(2):193-196.
Authors:ZHU Feng-gang
Abstract:Filter of the experiment data have an important part in analytical chemistry filed.Wavelet Transfer(WT) is a powerful technique in signal separation.It is very easy for WT to improve the signal-to-noise(SNR) by separating the random noise and useful signal.The method in the paper is different from the traditional method of the discrete wavelet transfer in analytical chemistry signal processing.We introduce the concept of the binary wavelet transfer and the Lipschitz exponent.According to the completely different performance of the maximum module between the noise and the useful signal,we can get the appropriate filter.The simulation of the experiment data has proved the feasibility of the method.
Keywords:wavelet analysis  module maximum  noise filtering  lipschitz exponent
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