• Machine Learning and Hybrid Modelling for Reaction Engineering Theory and Applications

Machine Learning and Hybrid Modelling for Reaction Engineering Theory and Applications

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Overview

Over the last decade, there has been a significant shift from traditional mechanistic and empirical modelling into statistical and data-driven modelling for applications in reaction engineering. In particular, the integration of machine learning and first-principle models has demonstrated significant potential and success in the discovery of (bio)chemical kinetics, prediction and optimisation of complex reactions, and scale-up of industrial reactors. Summarising the latest research and illustrating the current frontiers in applications of hybrid modelling for chemical and biochemical reaction engineering, Machine Learning and Hybrid Modelling for Reaction Engineering fills a gap in the methodology development of hybrid models. With a systematic explanation of the fundamental theory of hybrid model construction, time-varying parameter estimation, model structure identification and uncertainty analysis, this book is a great resource for both chemical engineers looking to use the latest computational techniques in their research and computational chemists interested in new applications for their work.

Product Details

ISBN-13: 9781839165634
ISBN-10: 1839165634
Publisher: Royal Society of Chemistry
Publication date: 2023-12-20
Edition description: 1
Pages: 440
Product dimensions: Height: 9.21258 inches, Length: 6.14172 inches, Weight: 1.79235819006 Pounds, Width: 0.98425 inches
Author: Dongda Zhang, Ehecatl Antonio del Rıo Chanona
Language: en
Binding: Hardcover

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