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Article

Data-Driven Modeling of Peak Rotation and Tipping-Over Stability of Rocking Shallow Foundations Using Machine Learning Algorithms

College of Engineering, SUNY Polytechnic Institute, Utica, NY 13502, USA
Geotechnics 2022, 2(3), 781-801; https://doi.org/10.3390/geotechnics2030038
Submission received: 24 August 2022 / Revised: 11 September 2022 / Accepted: 13 September 2022 / Published: 15 September 2022

Abstract

The objective of this study is to develop data-driven predictive models for peak rotation and factor of safety for tipping-over failure of rocking shallow foundations during earthquake loading using multiple nonlinear machine learning (ML) algorithms and a supervised learning technique. Centrifuge and shaking table experimental results on rocking foundations have been used for the development of k-nearest neighbors regression (KNN), support vector regression (SVR), and random forest regression (RFR) models. The input features to ML models include critical contact area ratio of foundation; slenderness ratio and rocking coefficient of rocking system; peak ground acceleration and Arias intensity of earthquake motion; and a categorical binary feature that separates sandy soil foundations from clayey soil foundations. Based on repeated k-fold cross validation tests of models, we found that the overall average mean absolute percentage errors (MAPE) in predictions of all three nonlinear ML models varied between 0.46 and 0.60, outperforming a baseline multivariate linear regression ML model with corresponding MAPE of 0.68 to 0.75. The input feature importance analysis reveals that the peak rotation and tipping-over stability of rocking foundations are more sensitive to ground motion demand parameters than to rocking foundation capacity parameters or type of soil.
Keywords: rocking foundations; earthquake engineering; soil-structure interaction; tipping-over stability; machine learning rocking foundations; earthquake engineering; soil-structure interaction; tipping-over stability; machine learning

Share and Cite

MDPI and ACS Style

Gajan, S. Data-Driven Modeling of Peak Rotation and Tipping-Over Stability of Rocking Shallow Foundations Using Machine Learning Algorithms. Geotechnics 2022, 2, 781-801. https://doi.org/10.3390/geotechnics2030038

AMA Style

Gajan S. Data-Driven Modeling of Peak Rotation and Tipping-Over Stability of Rocking Shallow Foundations Using Machine Learning Algorithms. Geotechnics. 2022; 2(3):781-801. https://doi.org/10.3390/geotechnics2030038

Chicago/Turabian Style

Gajan, Sivapalan. 2022. "Data-Driven Modeling of Peak Rotation and Tipping-Over Stability of Rocking Shallow Foundations Using Machine Learning Algorithms" Geotechnics 2, no. 3: 781-801. https://doi.org/10.3390/geotechnics2030038

APA Style

Gajan, S. (2022). Data-Driven Modeling of Peak Rotation and Tipping-Over Stability of Rocking Shallow Foundations Using Machine Learning Algorithms. Geotechnics, 2(3), 781-801. https://doi.org/10.3390/geotechnics2030038

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