Machine Learning Based Modelling in Atomic Layer Deposition Processes

This book PDF is perfect for those who love Technology & Engineering genre, written by Oluwatobi Adeleke and published by CRC Press which was released on 15 December 2023 with total hardcover pages 353. You could read this book directly on your devices with pdf, epub and kindle format, check detail and related Machine Learning Based Modelling in Atomic Layer Deposition Processes books below.

Machine Learning Based Modelling in Atomic Layer Deposition Processes
Author : Oluwatobi Adeleke
File Size : 43,7 Mb
Publisher : CRC Press
Language : English
Release Date : 15 December 2023
ISBN : 9781003803331
Pages : 353 pages
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Machine Learning Based Modelling in Atomic Layer Deposition Processes by Oluwatobi Adeleke Book PDF Summary

While thin film technology has benefited greatly from artificial intelligence (AI) and machine learning (ML) techniques, there is still much to be learned from a full-scale exploration of these technologies in atomic layer deposition (ALD). This book provides in-depth information regarding the application of ML-based modeling techniques in thin film technology as a standalone approach and integrated with the classical simulation and modeling methods. It is the first of its kind to present detailed information regarding approaches in ML-based modeling, optimization, and prediction of the behaviors and characteristics of ALD for improved process quality control and discovery of new materials. As such, this book fills significant knowledge gaps in the existing resources as it provides extensive information on ML and its applications in film thin technology. Offers an in-depth overview of the fundamentals of thin film technology, state-of-the-art computational simulation approaches in ALD, ML techniques, algorithms, applications, and challenges. Establishes the need for and significance of ML applications in ALD while introducing integration approaches for ML techniques with computation simulation approaches. Explores the application of key techniques in ML, such as predictive analysis, classification techniques, feature engineering, image processing capability, and microstructural analysis of deep learning algorithms and generative model benefits in ALD. Helps readers gain a holistic understanding of the exciting applications of ML-based solutions to ALD problems and apply them to real-world issues. Aimed at materials scientists and engineers, this book fills significant knowledge gaps in existing resources as it provides extensive information on ML and its applications in film thin technology. It also opens space for future intensive research and intriguing opportunities for ML-enhanced ALD processes, which scale from academic to industrial applications. . .

Machine Learning Based Modelling in Atomic Layer Deposition Processes

While thin film technology has benefited greatly from artificial intelligence (AI) and machine learning (ML) techniques, there is still much to be learned from a full-scale exploration of these technologies in atomic layer deposition (ALD). This book provides in-depth information regarding the application of ML-based modeling techniques in thin film

Get Book
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