2018
DOI: 10.1177/1475921718779193
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A machine learning approach for the automatic long-term structural health monitoring

Abstract: Measuring the response of a structure to the ambient and service loads is a source of information that can be used to estimate some important engineering parameters or, to a certain extent, to characterize the structural behavior as a whole. By repeating the data acquisition over a period of time, it is possible to check for variations in the structure’s response, which may be correlated to the appearance or growth of a damage (e.g. following some exceptional event as the earthquake, or as a consequence of mat… Show more

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Cited by 34 publications
(15 citation statements)
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References 26 publications
(50 reference statements)
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“…Many studies (Pereira et al 2017;Wang et al 2018;Zhao and Fan 2018) have explored how the quality of OGD can help developers reduce the time and cost of information system development. Machine learning technology is widely used in various information systems to enhance intelligence (Demarie and Sabia 2019;Kumar et al 2019;Lee and Park 2019;Liu et al 2018;Park et al 2020;Sharp et al 2018;Xiao et al 2018). Wireless sensor network (WSN) is the foundation of the Internet of Things (IoT).…”
Section: Related Workmentioning
confidence: 99%
“…Many studies (Pereira et al 2017;Wang et al 2018;Zhao and Fan 2018) have explored how the quality of OGD can help developers reduce the time and cost of information system development. Machine learning technology is widely used in various information systems to enhance intelligence (Demarie and Sabia 2019;Kumar et al 2019;Lee and Park 2019;Liu et al 2018;Park et al 2020;Sharp et al 2018;Xiao et al 2018). Wireless sensor network (WSN) is the foundation of the Internet of Things (IoT).…”
Section: Related Workmentioning
confidence: 99%
“…The key issue of SHM is the selection of effective damage sensing features. [11][12][13] These should be sensitive to the local damage and insensitive to the ambient noise. 14,15 Extensive SHM techniques have been applied to identify the presence, location, and severity of structural damage.…”
Section: Introductionmentioning
confidence: 99%
“…In the era of machine learning, the detection and diagnosis of structural damage are still the hot topic; kinds of machine learning methods are put forward to identify the global (structure) and local (component) damage 18–26 . Furthermore, some studies begin to focus on the inversion of the structural behavior and the static‐dynamic performance based on the machine learning of data 27–34 . In addition, machine learning begins to be used into the recovery of abnormal data and the interference cancelation of environmental effects 35,36 .…”
Section: Introductionmentioning
confidence: 99%