平稳小波变换的变分模态分解优化及其在瞬变电磁信号降噪中的应用

IF 1.6 4区 地球科学 Q3 ASTRONOMY & ASTROPHYSICS Radio Science Pub Date : 2024-12-31 DOI:10.1029/2023RS007889
Xianxia Wang;Xiaoya Wei;Duxi Song;Linfei Wang;Haochen Wang;Zhicheng Zhang;Tingye Qi
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摘要

为解决变分模态分解(VMD)方法中局部重构导致的信号丢失问题,本研究提出利用平稳小波变换(SWT)提取混合噪声模式下的有效信号,重构降噪后的信号。黏菌算法(SMA)首先实现了VMD中选取重要参数K(特征模态分解个数)和a(二次惩罚系数)的自适应难度。然后,根据欧氏距离的定义,将VMD分解模式分为基本信号和噪声信号,最后利用SWT对噪声信号进行新的一步分解,将基本信号与有效信号进行重构,得到最终的降噪信号。通过建立模拟试验和采空区瞬变电磁场试验,结果表明,VMD-SWT方法对瞬变电磁信号具有较好的去噪效果和较高的反演精度,证明了该方法的优越性和适用性。
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Optimization of variational mode decomposition using stationary wavelet transform and its application to transient electromagnetic signal noise reduction
To solve the problem of signal loss due to local reconstruction in the variational mode decomposition (VMD) method, this study proposes to use the stationary wavelet transform (SWT) to extract the effective signal in the mixed noise modes and reconstruct the noise-reduced signal. First the slime mold algorithm (SMA) takes to realize the adaptive difficulty of selecting the important parameters K (the number of eigenmode decompositions) and a (the quadratic penalty coefficient) in the VMD. Then, the VMD decomposed modes are divided into the basic signal and noise signal according to the definition of Euclidean distance, finally the noise signal is decomposed in a new step by using SWT, and the basic signal is reconstructed with the effective signal to get the final noise reduced signal. Through the establishment of simulation tests and transient electromagnetic field tests in the mined-out area, the results show that the VMD-SWT method exhibits a better denoising effect and higher inversion accuracy for the transient electromagnetic signals, proving the superiority and applicability.
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来源期刊
Radio Science
Radio Science 工程技术-地球化学与地球物理
CiteScore
3.30
自引率
12.50%
发文量
112
审稿时长
1 months
期刊介绍: Radio Science (RDS) publishes original scientific contributions on radio-frequency electromagnetic-propagation and its applications. Contributions covering measurement, modelling, prediction and forecasting techniques pertinent to fields and waves - including antennas, signals and systems, the terrestrial and space environment and radio propagation problems in radio astronomy - are welcome. Contributions may address propagation through, interaction with, and remote sensing of structures, geophysical media, plasmas, and materials, as well as the application of radio frequency electromagnetic techniques to remote sensing of the Earth and other bodies in the solar system.
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