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dc.creatorSokac, Mario
dc.creatorBudak, Igor
dc.creatorKatić, Marko
dc.creatorJakovljević, Živana
dc.creatorSantosi, Željko
dc.creatorVukelić, Đorđe
dc.date.accessioned2022-09-19T19:04:38Z
dc.date.available2022-09-19T19:04:38Z
dc.date.issued2020
dc.identifier.issn0263-2241
dc.identifier.urihttps://machinery.mas.bg.ac.rs/handle/123456789/3368
dc.description.abstractThe paper demonstrates a novel methodology for surface extraction of multi-material components (MMCs) on industrial X-ray computed tomography (CT) datasets. The methodology is based on a combination of fuzzy C-means clustering (FCM) and region growing (RG) methods. FCM, used as a preprocessing step, allows proper classification and improvement of different objects boundaries present on industrial X-ray CT datasets. Afterwards, application of RG method enables accurate segmentation of classified and improved X-ray CT datasets. The performance of presented approach has been tested on two CT datasets acquired on an industrial X-ray CT system NIKON XT H 225. It was also compared against two commercial industrial software VGStudio Max v3.1 and GOM Inspect v2018. Obtained results from application of the proposed approach show significant improvement in surface extraction of MMCs in CT datasets, especially in cases of low-density materials such as polymers. Verification has been conducted by obtaining reference measurements using contact coordinate measuring machine (CMM) Contura G2 by CARL ZEISS.en
dc.publisherElsevier Sci Ltd, Oxford
dc.relationinfo:eu-repo/grantAgreement/MESTD/Technological Development (TD or TR)/35020/RS//
dc.relationMinistry of Science and Education of the Republic of Croatia through the ERDF [R.C.2.2.08-0042
dc.rightsrestrictedAccess
dc.sourceMeasurement
dc.subjectX-ray computed tomographyen
dc.subjectMulti-material component (MMC)en
dc.subjectMetrologyen
dc.subjectEdge detectionen
dc.subjectDimensional CT measurementen
dc.titleImproved surface extraction of multi-material components for single-source industrial X-ray computed tomographyen
dc.typearticle
dc.rights.licenseARR
dc.citation.other153: -
dc.citation.rankM21
dc.citation.volume153
dc.identifier.doi10.1016/j.measurement.2019.107438
dc.identifier.scopus2-s2.0-85077263587
dc.identifier.wos000509460000029
dc.type.versionpublishedVersion


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