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dc.contributor.authorSvendsen, Bjørn Thomas
dc.contributor.authorFrøseth, Gunnstein Thomas
dc.contributor.authorØiseth, Ole Andre
dc.contributor.authorRønnquist, Anders
dc.date.accessioned2022-03-14T09:46:53Z
dc.date.available2022-03-14T09:46:53Z
dc.date.created2021-11-01T14:46:16Z
dc.date.issued2022
dc.identifier.citationJournal of Civil Structural Health Monitoring (JCSHM). 2022, 12 101-115.en_US
dc.identifier.issn2190-5452
dc.identifier.urihttps://hdl.handle.net/11250/2984982
dc.description.abstractThere is a need for reliable structural health monitoring (SHM) systems that can detect local and global structural damage in existing steel bridges. In this paper, a data-based SHM approach for damage detection in steel bridges is presented. An extensive experimental study is performed to obtain data from a real bridge under different structural state conditions, where damage is introduced based on a comprehensive investigation of common types of steel bridge damage reported in the literature. An analysis approach that includes a setup with two sensor groups for capturing both the local and global responses of the bridge is considered. From this, an unsupervised machine learning algorithm is applied and compared with four supervised machine learning algorithms. An evaluation of the damage types that can best be detected is performed by utilizing the supervised machine learning algorithms. It is demonstrated that relevant structural damage in steel bridges can be found and that unsupervised machine learning can perform almost as well as supervised machine learning. As such, the results obtained from this study provide a major contribution towards establishing a methodology for damage detection that can be employed in SHM systems on existing steel bridges.en_US
dc.language.isoengen_US
dc.publisherSpringeren_US
dc.rightsNavngivelse 4.0 Internasjonal*
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/deed.no*
dc.titleA data-based structural health monitoring approach for damage detection in steel bridges using experimental dataen_US
dc.typeJournal articleen_US
dc.typePeer revieweden_US
dc.description.versionpublishedVersionen_US
dc.source.pagenumber101-115en_US
dc.source.volume12en_US
dc.source.journalJournal of Civil Structural Health Monitoring (JCSHM)en_US
dc.identifier.doi10.1007/s13349-021-00530-8
dc.identifier.cristin1950316
cristin.ispublishedtrue
cristin.fulltextoriginal
cristin.qualitycode1


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