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dc.contributor.authorZheng, Minghua
dc.contributor.authorHelian, Na
dc.contributor.authorLane, Peter
dc.contributor.authorSun, Yi
dc.contributor.authorDonald, Allen
dc.date.accessioned2024-07-02T11:45:03Z
dc.date.available2024-07-02T11:45:03Z
dc.date.issued2022-12-04
dc.identifier.citationZheng , M , Helian , N , Lane , P , Sun , Y & Donald , A 2022 , ' Bacterial colony counting could be rapid, adaptive and automated ' , Paper presented at 2nd School of Physics, Engineering and Computer Science Research Conference , Hatfield , United Kingdom , 12/04/22 - 12/04/22 pp. 1-3 .
dc.identifier.citationconference
dc.identifier.otherORCID: /0000-0001-6687-0306/work/163069096
dc.identifier.urihttp://hdl.handle.net/2299/28007
dc.description© 2022 PECS.
dc.description.abstractAlthough many attempts have been made to automate bacterial colony counting, little has tackled the counting of clustered colonies and adaptations to handle different bacteria species. In this work, we explore the counting by density estimation method via few-shot learning. We have avoided the difficult localisation and detection of clustered colonies by estimating a density map from the input image. We have also exploited exemplars provided by users to make the method agnostic and adaptive to different bacteria species. Our experiments show that using the counting by density estimation method via few-shot learning results in a promising accuracy from the data set provided by Synoptics Ltd.en
dc.format.extent3
dc.format.extent493131
dc.language.isoeng
dc.relation.ispartof
dc.titleBacterial colony counting could be rapid, adaptive and automateden
dc.contributor.institutionCentre for Computer Science and Informatics Research
dc.contributor.institutionSchool of Physics, Engineering & Computer Science
dc.contributor.institutionDepartment of Computer Science
dc.contributor.institutionBiocomputation Research Group
dc.description.statusPeer reviewed
rioxxterms.typeOther
herts.preservation.rarelyaccessedtrue


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