Response Spectrum Analysis of Multi-Story Shear Buildings Using Machine Learning Techniques

Author:

Georgioudakis Manolis1ORCID,Plevris Vagelis2ORCID

Affiliation:

1. Institute of Structural Analysis & Antiseismic Research, School of Civil Engineering, National Technical University of Athens, Zografou Campus, GR 15780 Athens, Greece

2. Department of Civil and Environmental Engineering, Qatar University, Doha P.O. Box 2713, Qatar

Abstract

The dynamic analysis of structures is a computationally intensive procedure that must be considered, in order to make accurate seismic performance assessments in civil and structural engineering applications. To avoid these computationally demanding tasks, simplified methods are often used by engineers in practice, to estimate the behavior of complex structures under dynamic loading. This paper presents an assessment of several machine learning (ML) algorithms, with different characteristics, that aim to predict the dynamic analysis response of multi-story buildings. Large datasets of dynamic response analyses results were generated through standard sampling methods and conventional response spectrum modal analysis procedures. In an effort to obtain the best algorithm performance, an extensive hyper-parameter search was elaborated, followed by the corresponding feature importance. The ML model which exhibited the best performance was deployed in a web application, with the aim of providing predictions of the dynamic responses of multi-story buildings, according to their characteristics.

Publisher

MDPI AG

Subject

Applied Mathematics,Modeling and Simulation,General Computer Science,Theoretical Computer Science

Reference25 articles.

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4. Plevris, V., Lagaros, N.D., Charmpis, D., and Papadrakakis, M. (2006, January 28–30). Metamodel assisted techniques for structural optimization. Proceedings of the First South-East European Conference on Computational Mechanics (SEECCM-06), Kragujevac, Serbia.

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