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Earthquake forecasting using big data and artificial intelligence; a 30-week real-time case study in China

Omar M. Saad, Chen Yunfeng, Alexandros Savvaidis, Sergey Fomel, Jiang Xiuxuan, Dino Huang, Yapo Abole Serge Innocent Oboue, Yong Shanshan, Wang Xin'an, Zhang Xing and Yangkang Chen
Earthquake forecasting using big data and artificial intelligence; a 30-week real-time case study in China
Bulletin of the Seismological Society of America (December 2023) 113 (6): 2461-2478

Abstract

Earthquake forecasting is one of the most challenging tasks in the field of seismology that aims to save human life and mitigate catastrophic damages. We have designed a real-time earthquake forecasting framework to forecast earthquakes and tested it in seismogenic regions in southwestern China. The input data are the features provided by the multicomponent seismic monitoring system acoustic electromagnetic to AI (AETA), in which the data are recorded using two types of sensors per station: electromagnetic (EM) and geo-acoustic (GA) sensors. The target is to forecast the location and magnitude of the earthquake that may occur next week, given the data of the current week. The proposed method is based on dimension reduction from massive EM and GA data using principal component analysis, which is followed by random-forest-based classification. The proposed algorithm is trained using the available data from 2016 to 2020 and evaluated using real-time data during 2021. As a result, the testing accuracy reaches 70%, whereas the precision, recall, and F1-score are 63.63%, 93.33%, and 75.66%, respectively. The mean absolute error of the distance and the predicted magnitude using the proposed method compared to the catalog solution are 381 km and 0.49, respectively.


ISSN: 0037-1106
EISSN: 1943-3573
Serial Title: Bulletin of the Seismological Society of America
Serial Volume: 113
Serial Issue: 6
Title: Earthquake forecasting using big data and artificial intelligence; a 30-week real-time case study in China
Affiliation: National Research Institute of Astronomy and Geophysics, Seismology Department, Helwan, Egypt
Pages: 2461-2478
Published: 202312
Text Language: English
Publisher: Seismological Society of America, Berkeley, CA, United States
References: 51
Accession Number: 2024-006238
Categories: Seismology
Document Type: Serial
Bibliographic Level: Analytic
Illustration Description: illus. incl. 6 tables, sketch maps
N21°40'00" - N29°00'00", E97°30'00" - E106°10'00"
N26°00'00" - N34°10'00", E97°30'00" - E108°25'00"
Secondary Affiliation: Zhejiang University, CHN, ChinaBureau of Economic Geology, USA, United StatesShenzhen MSU-BIT University, CHN, ChinaPeking University, CHN, China
Country of Publication: United States
Secondary Affiliation: GeoRef, Copyright 2024, American Geosciences Institute. Abstract, Copyright, Seismological Society of America. Reference includes data from GeoScienceWorld, Alexandria, VA, United States
Update Code: 2024
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