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Magnetotelluric data denoising method combining two deep- learning-based models

delete2023-01-04
delete14
PRE
AI
李
李晋 (Jin Li) *
Y
Yecheng Liu
汤
汤井田 (Jingtian Tang)
Y
Yiqun Peng
X
Xian Zhang
Y
Yong Li
DOI:10.1190/GEO2021-0449.1delete
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摘要

摘要

En 中文
The magnetotelluric (MT) data collected in an ore -concentra-tion area are extremely vulnerable to all kinds of noise pollution. However, separating real MT signals from strong noise is still a difficult problem, and the noise in MT data is quite distinct from clean data in morphological features. By performing the signal -noise identification and data prediction, we develop a deep learn-ing method to denoise MT data containing strong noise. First, we use the convolutional neural network (CNN) to learn the feature differences between the samples of massive noise and clean data and use the learned features to realize signal-noise identification of the measured data. Second, we use the measured clean data ob-tained by CNN identification to train the long short-term memory (LSTM) neural network and perform the prediction denoising of the noisy data. The simulation results clearly demonstrate the fol-lowing two facts: (1) the predicted data output from LSTM basi-cally matches the time-frequency domain features of the real data and (2) our CNN method performs significantly better than the features parameter classification method in dealing with signal -noise identification. In addition, the validity of our method is veri-fied by the processing results of the measured data.
Keyword:
NEURAL-NETWORK
SIGNALS

期刊

Geophysics 封面图
Geophysics
IF:
3.2
论文数:
8.4K
被引数:
3.3W

机构

C
China Geological Survey
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8.0K
论文数: 5.6K
被引数: 3.3K
H
Hunan Normal University
学者数:
1.3W
论文数: 8.2K
被引数: 9.1K
C
Central South University
学者数:
10.0W
论文数: 7.2W
被引数: 10.9W
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