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dc.contributor.authorBelhadi, Asma
dc.contributor.authorHolland, Jon-Olav
dc.contributor.authorYazidi, Anis
dc.contributor.authorSrivastava, Gautam
dc.contributor.authorLin, Jerry Chun-Wei
dc.contributor.authorDjenouri, Youcef
dc.date.accessioned2023-08-15T06:15:30Z
dc.date.available2023-08-15T06:15:30Z
dc.date.created2023-02-18T19:54:00Z
dc.date.issued2023
dc.identifier.citationFrontiers in Physiology. 2023, 13.en_US
dc.identifier.issn1664-042X
dc.identifier.urihttps://hdl.handle.net/11250/3083952
dc.description.abstractIn the quest of training complicated medical data for Internet of Medical Things (IoMT) scenarios, this study develops an end-to-end intelligent framework that incorporates ensemble learning, genetic algorithms, blockchain technology, and various U-Net based architectures. Genetic algorithms are used to optimize the hyper-parameters of the used architectures. The training process was also protected with the help of blockchain technology. Finally, an ensemble learning system based on voting mechanism was developed to combine local outputs of various segmentation models into a global output. Our method shows that strong performance in a condensed number of epochs may be achieved with a high learning rate and a small batch size. As a result, we are able to perform better than standard solutions for well-known medical databases. In fact, the proposed solution reaches 95% of intersection over the union, compared to the baseline solutions where they are below 80%. Moreover, with the proposed blockchain strategy, the detected attacks reached 76%.en_US
dc.language.isoengen_US
dc.rightsNavngivelse 4.0 Internasjonal*
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/deed.no*
dc.subjectblockchainen_US
dc.subjectmedical internet of thingsen_US
dc.subjectdeep learningen_US
dc.subjectgenetic algorithmen_US
dc.subjectsegmentationen_US
dc.subjectinternet of thingsen_US
dc.titleBIoMT-ISeg: Blockchain internet of medical things for intelligent segmentationen_US
dc.title.alternativeBIoMT-ISeg: Blockchain internet of medical things for intelligent segmentationen_US
dc.typePeer revieweden_US
dc.typeJournal articleen_US
dc.description.versionpublishedVersionen_US
dc.source.volume13en_US
dc.source.journalFrontiers in Physiologyen_US
dc.identifier.doi10.3389/fphys.2022.1097204
dc.identifier.cristin2127257
dc.source.articlenumber1097204en_US
cristin.ispublishedtrue
cristin.fulltextoriginal
cristin.qualitycode1


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