
Structural Health Monitoring Using Emerging Signal Processing Approaches with Artificial Intelligence Algorithms
CRC Press
1st Edition
Will be published approx. on 20. July 2026
Book
Paperback/Softback
232 pages
978-1-032-81282-3 (ISBN)
Description
Structural health monitoring is a powerful tool across civil, mechanical, automotive, and aerospace engineering, allowing the assessment and measurement of physical parameters in real time. Processing changes in the vibration signals of a dynamic system can detect, locate, and quantify any damage existing in the system. This book presents a comprehensive state-of-the-art review of the applications in time, frequency, and time-frequency domains of signal-processing techniques for damage perception, localization, and quantification in various structural systems.
Experimental investigations are illustrated, including the development of a set of damage indices based on the signal features extracted through various signal-processing techniques to evaluate sensitivity in damage identification. Chapters summarize the application of the Hilbert-Huang transform based on three decomposition methods such as empirical mode decomposition, ensemble empirical mode decomposition, and complete ensemble empirical mode decomposition with adaptive noise. Also, the chapters assess the performance and sensitivity of different approaches, including multiple signal classification and empirical wavelet transform techniques in damage detection and quantification. Artificial neural networks for automated damage identification are introduced.
This book suits students, engineers, and researchers who are investigating structural health monitoring, signal processing, and damage identification of structures.
Experimental investigations are illustrated, including the development of a set of damage indices based on the signal features extracted through various signal-processing techniques to evaluate sensitivity in damage identification. Chapters summarize the application of the Hilbert-Huang transform based on three decomposition methods such as empirical mode decomposition, ensemble empirical mode decomposition, and complete ensemble empirical mode decomposition with adaptive noise. Also, the chapters assess the performance and sensitivity of different approaches, including multiple signal classification and empirical wavelet transform techniques in damage detection and quantification. Artificial neural networks for automated damage identification are introduced.
This book suits students, engineers, and researchers who are investigating structural health monitoring, signal processing, and damage identification of structures.
More details
Language
English
Place of publication
London
United Kingdom
Publishing group
Taylor & Francis Ltd
Target group
College/higher education
Professional and scholarly
Academic, Postgraduate, and Professional Reference
Illustrations
154 farbige Abbildungen, 3 s/w Photographien bzw. Rasterbilder, 37 Farbfotos bzw. farbige Rasterbilder, 11 s/w Zeichnungen, 117 farbige Zeichnungen, 7 s/w Tabellen, 14 s/w Abbildungen
7 Tables, black and white; 117 Line drawings, color; 11 Line drawings, black and white; 37 Halftones, color; 3 Halftones, black and white; 154 Illustrations, color; 14 Illustrations, black and white
Dimensions
Height: 234 mm
Width: 156 mm
ISBN-13
978-1-032-81282-3 (9781032812823)
Copyright in bibliographic data and cover images is held by Nielsen Book Services Limited or by the publishers or by their respective licensors: all rights reserved.
Schweitzer Classification
Other editions
Additional editions

Chunwei Zhang | Asma A. Mousavi
Structural Health Monitoring Using Emerging Signal Processing Approaches with Artificial Intelligence Algorithms
Book
11/2024
1st Edition
CRC Press
€251.20
Shipment within 10-20 days

Chunwei Zhang | Asma A. Mousavi
Structural Health Monitoring Using Emerging Signal Processing Approaches with Artificial Intelligence Algorithms
E-Book
11/2024
1st Edition
CRC Press
€211.99
Available for download

Chunwei Zhang | Asma A. Mousavi
Structural Health Monitoring Using Emerging Signal Processing Approaches with Artificial Intelligence Algorithms
E-Book
11/2024
1st Edition
CRC Press
€211.99
Available for download
Persons
Chunwei Zhang is a Chair Distinguished Professor at Shenyang University of Technology. He is the Founding Director of the Multidisciplinary Center for Infrastructure Engineering (MCIE) at Shenyang University of Technology, and of the Structural Vibration Control (SVC) Group at Qingdao University of Technology, China. His research achievement and worldwide impact have been highly recognized by the international academia society, as evidenced by the continuous inclusions into the prestigious rankings, such as the Clarivate Highly Cited Researcher, Elsevier Most Cited Chinese Researcher, and Stanford World Top 2% Scientists, among others. Apart from publications, his inventions have been implemented in the engineering practice as evidenced by the active control system for the Canton Tower structure. He is also a commended author of CRC Press published books and proceedings.
Asma A. Mousavi is a researcher at South China University of Technology.
.
Asma A. Mousavi is a researcher at South China University of Technology.
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Content
1. Introduction. 2. Methodology and Approaches. 3. Implementation of the Proposed Approaches in Structural Damage Detection and Quantification. 4. Implementation of the Proposed Approaches in Structural Damage Localization. 5. Experimental Verification of the Proposed Artificial Neural Network Aided Approaches in Structural Damage Identification. 6. Conclusions.