Machine learning based surrogate modeling with SVD enabled training for nonlinear civil structures subject to dynamic loading
Siddharth S. Parida, Supratik Bose, Megan Butcher, Georgios, Apostolakis, Prashant Shekhar

TL;DR
This paper introduces a machine learning surrogate modeling framework for nonlinear civil structures under dynamic loading, incorporating SVD-based earthquake characterization to predict responses to unseen seismic events efficiently.
Contribution
It proposes a novel surrogate model framework that uses SVD to characterize earthquakes, enabling predictions for unseen seismic events without re-training.
Findings
Deep neural network achieved highest prediction accuracy.
Framework successfully predicted responses for unseen ground motions.
SVD-based earthquake representation improved surrogate model generalization.
Abstract
The computationally expensive estimation of engineering demand parameters (EDPs) via finite element (FE) models, while considering earthquake and parameter uncertainty limits the use of the Performance Based Earthquake Engineering framework. Attempts have been made to substitute FE models with surrogate models, however, most of these models are a function of building parameters only. This necessitates re-training for earthquakes not previously seen by the surrogate. In this paper, the authors propose a machine learning based surrogate model framework, which considers both these uncertainties in order to predict for unseen earthquakes. Accordingly,earthquakes are characterized by their projections on an orthonormal basis, computed using SVD of a representative ground motion suite. This enables one to generate large varieties of earthquakes by randomly sampling these weights and…
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Taxonomy
TopicsStructural Health Monitoring Techniques · Seismic Performance and Analysis · Infrastructure Maintenance and Monitoring
