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Instantaneous tracking of earthquake growth with elastogravity signals

Journal Article · · Nature (London)
 [1];  [1];  [2];  [1];  [3]
  1. Centre National de la Recherche Scientifique (CNRS) (France); Universite Cote d'Azur, Nice (France)
  2. Kyoto Univ. (Japan); Los Alamos National Laboratory (LANL), Los Alamos, NM (United States)
  3. Centre National de la Recherche Scientifique (CNRS) (France); Universite Cote d'Azur, Nice (France); Nantes Univ. (France)

Rapid and reliable estimation of large earthquake magnitude (above 8) is key to mitigating the risks associated with strong shaking and tsunamis. Standard early warning systems based on seismic waves fail to rapidly estimate the size of such large earthquakes. Geodesy-based approaches provide better estimations, but are also subject to large uncertainties and latency associated with the slowness of seismic waves. Recently discovered speed-of-light prompt elastogravity signals (PEGS) have raised hopes that these limitations may be overcome, but have not been tested for operational early warning. Here we show that PEGS can be used in real time to track earthquake growth instantaneously after the event reaches a certain magnitude. We develop a deep learning model that leverages the information carried by PEGS recorded by regional broadband seismometers in Japan before the arrival of seismic waves. After training on a database of synthetic waveforms augmented with empirical noise, we show that the algorithm can instantaneously track an earthquake source time function on real data. Our model unlocks ‘true real-time’ access to the rupture evolution of large earthquakes using a portion of seismograms that is routinely treated as noise, and can be immediately transformative for tsunami early warning.

Research Organization:
Los Alamos National Laboratory (LANL), Los Alamos, NM (United States)
Sponsoring Organization:
USDOE Laboratory Directed Research and Development (LDRD) Program; USDOE National Nuclear Security Administration (NNSA)
Grant/Contract Number:
89233218CNA000001
OSTI ID:
2310321
Report Number(s):
LA-UR--21-30873
Journal Information:
Nature (London), Journal Name: Nature (London) Vol. 606; ISSN 0028-0836
Publisher:
Nature Publishing GroupCopyright Statement
Country of Publication:
United States
Language:
English

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