Poster #038, Ground Motions
Data-driven synthesis of broadband earthquake ground motions using artificial intelligence
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Poster Presentation
2021 SCEC Annual Meeting, Poster #038, SCEC Contribution #11374 VIEW PDF
odel captures most of the relevant statistical features of the acceleration spectra and waveform envelopes. The output seismograms display clear P and S-wave arrivals with the appropriate energy content and relative onset timing. The synthesized Peak Ground Acceleration (PGA) estimates are also consistent with observations. We develop a set of metrics that allow us to assess the training process's stability and tune model hyperparameters. We further show that the trained generator network can interpolate to conditions where no earthquake ground motion recordings exist. Our approach allows the on-demand synthesis of accelerograms for engineering purposes.
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