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Research and Application on Process Manufacturing industry with Artificial Intelligence Technologies: A Cement Process Case Study

thesis
posted on 2024-05-05, 21:29 authored by GUANGSI SHI
This study examines challenges in heavy industry, focusing on cement manufacturing, and employs artificial intelligence to tackle issues like temporal delays and spatio-temporal data. We developed comprehensive models for time series forecasting, utilized deep learning for predictive models managing spatio-temporal complexities, and introduced a multimodal contrastive learning framework for combining sensor data and simulation outputs. Additionally, a pre-trained sensor feature representation network enhances operational efficiency with machine learning techniques. This innovative approach offers insights into industrial challenges, especially in cement production.<p></p>

History

Campus location

Australia

Principal supervisor

Ruiping Zou

Additional supervisor 1

Shirui Pan

Year of Award

2024

Department, School or Centre

Chemical & Biological Engineering

Course

Doctor of Philosophy

Degree Type

DOCTORATE

Faculty

Faculty of Engineering