Seismic Arrival-time Picking on Distributed Acoustic Sensing Data using Semi-supervised Learning
Weiqiang Zhu, Ettore Biondi, Jiaxuan Li, Jiuxun Yin, Zachary E. Ross,, Zhongwen Zhan

TL;DR
This paper introduces a semi-supervised deep learning approach for seismic phase picking on Distributed Acoustic Sensing data, leveraging a pre-trained model and label refinement to enable effective earthquake detection from dense fiber optic arrays.
Contribution
It develops a novel semi-supervised learning framework with a new deep learning model tailored for DAS data, overcoming label scarcity and data format differences.
Findings
Achieved high accuracy in seismic phase picking on DAS data.
Successfully built earthquake catalogs from continuous DAS recordings.
Demonstrated potential for improved earthquake monitoring using fiber networks.
Abstract
Distributed Acoustic Sensing (DAS) is an emerging technology for earthquake monitoring and subsurface imaging. The recorded seismic signals by DAS have several distinct characteristics, such as unknown coupling effects, strong anthropogenic noise, and ultra-dense spatial sampling. These aspects differ from conventional seismic data recorded by seismic networks, making it challenging to utilize DAS at present for seismic monitoring. New data analysis algorithms are needed to extract useful information from DAS data. Previous studies on conventional seismic data demonstrated that deep learning models could achieve performance close to human analysts in picking seismic phases. However, phase picking on DAS data is still a difficult problem due to the lack of manual labels. Further, the differences in mathematical structure between these two data formats, i.e., ultra-dense DAS arrays and…
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Taxonomy
TopicsSeismic Waves and Analysis · Seismology and Earthquake Studies · Geophysics and Sensor Technology
