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Application of Machine Learning Algorithms in Characterisation of Sonic Wave Velocities within Various Geological Formations

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thesis
posted on 2024-06-20, 00:52 authored by MOBARAKEH MOHAMMADPOUR
This thesis investigates the applicability of Machine Learning (ML) algorithms and hybrid models in characterising compressional (VP) and shear wave velocities (VS) to address their limited availability in the mining industry. The primary objective is to evaluate the suitability of ML algorithms for creating predictive models for spatially variable data, specifically VP and VS, while exploring alternative or assisting approaches to enhance prediction accuracy.

History

Campus location

Australia

Principal supervisor

Hossein Masoumi

Additional supervisor 1

Hamid Roshan

Additional supervisor 2

Mehrdad Arashpour

Year of Award

2024

Department, School or Centre

Civil Engineering

Course

Doctor of Philosophy

Degree Type

DOCTORATE

Faculty

Faculty of Engineering

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