JOURNAL ARTICLE

Residual Learning of Deep Convolutional Neural Network for Seismic Random Noise Attenuation

Feng WangSheng‐Chang Chen

Year: 2019 Journal:   IEEE Geoscience and Remote Sensing Letters Vol: 16 (8)Pages: 1314-1318   Publisher: Institute of Electrical and Electronics Engineers

Abstract

Over the last decades, seismic random noise attenuation has been dominated by transform-based denoising methods over the last decades. However, these methods usually need to estimate the noise level and select an optimal transformation in advance, and they may generate some artifacts in the denoising result (e.g., nonsmooth edges and pseudo-Gibbs phenomena). To overcome these disadvantages, we trained a deep convolutional neural network (CNN) with residual learning for seismic data denoising. We used synthetic seismic data for network training rather than seismic images, and we adopted a method to preprocess the seismic data before it was inputted in the network to help network training. We demonstrate the performance of the deep CNN in seismic random noise attenuation based on the synthetic seismic data. Results of numerical experiments show that our network adaptively and effectively suppresses noise of different levels and exhibits a competitive performance in comparison with the traditional transform-based methods.

Keywords:
Convolutional neural network Residual Computer science Noise reduction Noise (video) Deep learning Artificial intelligence Artificial neural network Attenuation Seismic noise Pattern recognition (psychology) Seismology Algorithm Geology Image (mathematics)

Metrics

84
Cited By
6.55
FWCI (Field Weighted Citation Impact)
23
Refs
0.98
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Seismic Imaging and Inversion Techniques
Physical Sciences →  Earth and Planetary Sciences →  Geophysics
Seismic Waves and Analysis
Physical Sciences →  Earth and Planetary Sciences →  Geophysics
Geophysical Methods and Applications
Physical Sciences →  Engineering →  Ocean Engineering

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