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Multifeature Fusion-Based Earthquake Event Classification Using Transfer Learning

Authors
Kim, GwantaeKu, BonhwaKo, Hanseok
Issue Date
Jun-2021
Publisher
IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
Keywords
Earthquakes; Feature extraction; Convolution; Transforms; Spectrogram; Neural networks; Training; Convolution neural network (CNN); deep learning; earthquake event classification; multifeature fusion; transfer learning
Citation
IEEE GEOSCIENCE AND REMOTE SENSING LETTERS, v.18, no.6, pp.974 - 978
Indexed
SCIE
SCOPUS
Journal Title
IEEE GEOSCIENCE AND REMOTE SENSING LETTERS
Volume
18
Number
6
Start Page
974
End Page
978
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/127894
DOI
10.1109/LGRS.2020.2993302
ISSN
1545-598X
Abstract
This letter proposes a multifeature fusion model using deep convolution neural networks and transfer learning approach for earthquake event classification. There are several feature representations for seismic analysis, such as the time domain, the frequency domain, and the time-frequency domain. To successfully classify various earthquake events, we propose a novel model that combines these features hierarchically. In addition, we apply a transfer learning to mitigate overfitting problem of deep learning model while achieving high classification performance. To evaluate our approach, we conduct experiments with the Korean peninsula earthquake database from 2016 to 2018 and a large earthquake database on the Circum-Pacific belt in 2019. The experimental results show that the proposed method outperforms over the compared state-of-the-art methods.
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