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Machine Learning Methods in Geotechnical Engineering

Optum Computational Engineering via YouTube

Overview

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Explore the applications of Machine Learning in geotechnical engineering through this informative webinar hosted by Prof Majid Nazem of RMIT University, Melbourne, Australia. Discover how to generate training sets using OPTUM G2 and learn about the applicability of various Machine Learning techniques in geomechanics problems such as slope stability, load bearing capacity of piles, dynamic penetration, and predicting soil properties. Gain insights into the advantages of AI models over statistical models in predicting soil behavior, particularly in complex problems with highly nonlinear relationships among influential parameters. Understand the principles behind Machine Learning approaches in AI and their potential to revolutionize geotechnical engineering practices.

Syllabus

Machine Learning Methods in Geotechnical Engineering

Taught by

Optum Computational Engineering

Reviews

4.5 rating, based on 2 Class Central reviews

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  • I found the course very insightful!
    I look forward to learning more about Machine Learning in Geotech! And I also look forward to get to actually work with it
  • Very high‑quality content. The course presents machine learning concepts with a strong focus on geotechnical applications, supported by clear examples. The instructor does an excellent job connecting theory, modeling, and practical decision-making. Great resource for anyone working in geotechnical modeling or data analysis

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