On spectral clustering, informativeness and seriation

dc.contributor.authorRiaz, Bilal
dc.date.accessioned2022-11-02T12:09:27Z
dc.date.available2022-11-02T12:09:27Z
dc.date.issued2022
dc.date.updated2022-08-10T19:10:05Z
dc.description.abstractThis thesis studies spectral clustering and seriation, which have very similar relaxed objective functions. We analyzed these problems from the standpoint of informativeness, an unsupervised measure of the similarity within a data set. We are motivated by the fact that spectral clustering depends on the choice of similarity and it does not perform well for all values of Gaussian kernel bandwidth parameter. We proposed three alternative fixes to spectral clustering algorithm, such that it could be used for all kind of similarities. We also implemented state-of-the-art seriation algorithms, GNCR and FAQ. For both clustering and seriation, we analyzed the relationship between the Gaussian kernel bandwidth parameter with informativeness and observed that, in order to find the optimal Gaussian kernel bandwidth parameter, one can use informativeness as a guiding principle to get a candidate range of values. We also observed that GNCR is more robust to variations in the kernel bandwidth parameter as compared to FAQ.en_US
dc.description.advisorBrockmeier, Austin J.
dc.description.degreeM.S.
dc.description.departmentUniversity of Delaware, Department of Electrical and Computer Engineering
dc.identifier.doihttps://doi.org/10.58088/4y8k-jc22
dc.identifier.unique1349660145
dc.identifier.urihttps://udspace.udel.edu/handle/19716/31564
dc.language.rfc3066en
dc.publisherUniversity of Delawareen_US
dc.relation.urihttps://login.udel.idm.oclc.org/login?url=https://www.proquest.com/dissertations-theses/on-spectral-clustering-informativeness-seriation/docview/2700723224/se-2?accountid=10457
dc.subjectSeriation algorithmsen_US
dc.subjectSpectral clusteringen_US
dc.subjectInformativenessen_US
dc.titleOn spectral clustering, informativeness and seriationen_US
dc.typeThesisen_US

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