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Estimation of seismic moment tensors using variational inference machine learning

  • We present an approach for rapidly estimating full moment tensors of earthquakes and their parameter uncertainties based on short time windows of recorded seismic waveform data by considering deep learning of Bayesian Neural Networks (BNNs). The individual neural networks are trained on synthetic seismic waveform data and corresponding known earthquake moment-tensor parameters. A monitoring volume has been predefined to form a three-dimensional grid of locations and to train a BNN for each grid point. Variational inference on several of these networks allows us to consider several sources of error and how they affect the estimated full moment-tensor parameters and their uncertainties. In particular, we demonstrate how estimated parameter distributions are affected by uncertainties in the earthquake centroid location in space and time as well as in the assumed Earth structure model. We apply our approach as a proof of concept on seismic waveform recordings of aftershocks of the Ridgecrest 2019 earthquake with moment magnitudes rangingWe present an approach for rapidly estimating full moment tensors of earthquakes and their parameter uncertainties based on short time windows of recorded seismic waveform data by considering deep learning of Bayesian Neural Networks (BNNs). The individual neural networks are trained on synthetic seismic waveform data and corresponding known earthquake moment-tensor parameters. A monitoring volume has been predefined to form a three-dimensional grid of locations and to train a BNN for each grid point. Variational inference on several of these networks allows us to consider several sources of error and how they affect the estimated full moment-tensor parameters and their uncertainties. In particular, we demonstrate how estimated parameter distributions are affected by uncertainties in the earthquake centroid location in space and time as well as in the assumed Earth structure model. We apply our approach as a proof of concept on seismic waveform recordings of aftershocks of the Ridgecrest 2019 earthquake with moment magnitudes ranging from Mw 2.7 to Mw 5.5. Overall, good agreement has been achieved between inferred parameter ensembles and independently estimated parameters using classical methods. Our developed approach is fast and robust, and therefore, suitable for down-stream analyses that need rapid estimates of the source mechanism for a large number of earthquakes.zeige mehrzeige weniger

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Metadaten
Verfasserangaben:Andreas SteinbergORCiD, Hannes Vasyura-BathkeORCiDGND, Peter Jost GaeblerORCiDGND, Matthias OhrnbergerORCiDGND, Lars CerannaORCiDGND
DOI:https://doi.org/10.1029/2021JB022685
ISSN:2169-9313
ISSN:2169-9356
Titel des übergeordneten Werks (Englisch):Journal of geophysical research : Solid earth
Verlag:American Geophysical Union
Verlagsort:Washington
Publikationstyp:Wissenschaftlicher Artikel
Sprache:Englisch
Datum der Erstveröffentlichung:30.09.2021
Erscheinungsjahr:2021
Datum der Freischaltung:23.03.2023
Freies Schlagwort / Tag:earthquake source; full; machine learning; moment tensor; seismology; waveform
Band:126
Ausgabe:10
Aufsatznummer:e2021JB022685
Seitenanzahl:16
Fördernde Institution:German Federal Ministry for Economic Affairs and Energy (BMWi) [03EE4003A]; Geo.X [SO_087_GeoX]; Research Network for Geosciences in Berlin [SO_087_GeoX]; Potsdam [SO_087_GeoX]; Projekt DEAL
Organisationseinheiten:Mathematisch-Naturwissenschaftliche Fakultät / Institut für Geowissenschaften
DDC-Klassifikation:5 Naturwissenschaften und Mathematik / 55 Geowissenschaften, Geologie / 550 Geowissenschaften
Peer Review:Referiert
Publikationsweg:Open Access / Hybrid Open-Access
Lizenz (Deutsch):License LogoCC-BY-NC - Namensnennung, nicht kommerziell 4.0 International
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