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Titlebook: European Workshop on Structural Health Monitoring; Special Collection o Piervincenzo Rizzo,Alberto Milazzo Conference proceedings 2021 The

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书目名称European Workshop on Structural Health Monitoring
副标题Special Collection o
编辑Piervincenzo Rizzo,Alberto Milazzo
视频video
概述Features the state of the art in structural health monitoring.Includes thematic sessions devoted to SHM in marine and civil engineering, and devoted to biomedical applications.Written by leading exper
丛书名称Lecture Notes in Civil Engineering
图书封面Titlebook: European Workshop on Structural Health Monitoring; Special Collection o Piervincenzo Rizzo,Alberto Milazzo Conference proceedings 2021 The
描述.This volume gathers the latest advances, innovations, and applications in the field of structural health monitoring (SHM) and more broadly in the fields of smart materials and intelligent systems. The volume covers highly diverse topics, including signal processing, smart sensors, autonomous systems, remote sensing and support, UAV platforms for SHM, Internet of Things, Industry 4.0, and SHM for civil structures and infrastructures. The contributions, which are published after a rigorous international peer-review process, highlight numerous exciting ideas that will spur novel research directions and foster multidisciplinary collaboration among different specialists. The contents of this volume reflect the outcomes of the activities of EWSHM (European Workshop on Structural Health Monitoring) in 2020..
出版日期Conference proceedings 2021
关键词EWSHM; Unmanned Aerial Vehicles; Energy Harvesting; SHM System Design; Smart Cities; SHM for Civil Infra
版次1
doihttps://doi.org/10.1007/978-3-030-64908-1
isbn_softcover978-3-030-64910-4
isbn_ebook978-3-030-64908-1Series ISSN 2366-2557 Series E-ISSN 2366-2565
issn_series 2366-2557
copyrightThe Editor(s) (if applicable) and The Author(s), under exclusive license to Springer Nature Switzerl
The information of publication is updating

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Summary of Current Practice in Vibration Monitoring of Utility Tunnels and Shafts in the UKcted in proximity to existing underground infrastructure. In the UK, this infrastructure is of varying ages and the new construction poses a potential threat to the serviceability or integrity of existing structures in respect of their original SLS and ULS design capacities..One of the concerns is c
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Gaussian Process Based Grey-Box Modelling for SHM of Structures Under Fluctuating Environmental Conde and intuitive approach is adopted, which is to represent physical laws through the prior mean function in a Gaussian process. This approach naturally adheres with the Bayesian viewpoint. The benefits of the approach, particularly in extrapolation, are shown in an example case study, where a model
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Applying Neural Networks for Multi-site Damage Detection in Fuselage Lap Joints of Cargo Aircraftumber of points is one of the most important problems when using the strain gauge data to monitor the state. In this work, the method was proposed to determine the optimal monitoring parameters based on tensometry data. The work is based on the analysis of the interrelation between the monitoring sy
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Deep Learning Based Identification of Elastic Properties Using Ultrasonic Guided Wavesedict any possible material degradation. In this paper, we have proposed deep learning frameworks to solve the inverse problem of material property identification using ultrasonic guided waves. The propagation of guided waves in a composite laminate is modelled using a reduced order Spectral Finite
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Joint Optimization of the Number of Clusters and Their Parameters in Acoustic Emission Clusteringrally made by an unsupervised learning approach called clustering. A clustering method divides a dataset into different groups called clusters, which are expected to have a physical interpretation in terms of damages. The set of groups, called partition, is then evaluated through an external criteri
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