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Deep Neural Networks Enabled Intelligent Fault Diagnosis of Mechanical Systems

Deep Neural Networks Enabled Intelligent Fault Diagnosis of Mechanical Systems

First edition

Hardback (06 Jun 2024)

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Publisher's Synopsis

The book aims to highlight the potential of deep learning (DL)-enabled methods in intelligent fault diagnosis (IFD), along with their benefits and contributions.

The authors first introduce basic applications of DL-enabled IFD, including auto-encoders, deep belief networks, and convolutional neural networks. Advanced topics of DL-enabled IFD are also explored, such as data augmentation, multi-sensor fusion, unsupervised deep transfer learning, neural architecture search, self-supervised learning, and reinforcement learning. Aiming to revolutionize the nature of IFD, Deep Neural Networks-Enabled Intelligent Fault Diangosis of Mechanical Systems contributes to improved efficiency, safety, and reliability of mechanical systems in various industrial domains.

The book will appeal to academic researchers, practitioners, and students in the fields of intelligent fault diagnosis, prognostics and health management, and deep learning.

Book information

ISBN: 9781032752372
Publisher: CRC Press
Imprint: CRC Press
Pub date:
Edition: First edition
DEWEY: 620.00452
DEWEY edition: 23/eng/20240723
Language: English
Number of pages: 206
Weight: 576g
Height: 260mm
Width: 183mm
Spine width: 20mm