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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.

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