2023
DOI: 10.1007/s00366-023-01864-1
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Fusion of experimental and synthetic data for reliable prediction of steel connection behaviour using machine learning

Abstract: The development of robust prediction tools based on machine learning (ML) techniques requires the availability of complete, consistent, accurate, and numerous datasets. The application of ML in structural engineering has been limited since, although real size experiments provide complete and accurate data, they are time-consuming and expensive. On the other hand, validated finite element (FE) models provide consistent and numerous synthetic data. Depending on the complexity of the problem, they might require l… Show more

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Cited by 5 publications
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