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dc.contributor.authorO'MARA, SHANEen
dc.contributor.authorMILLER, JOHNen
dc.date.accessioned2011-02-08T11:07:36Z
dc.date.available2011-02-08T11:07:36Z
dc.date.issued2011en
dc.date.submitted2011en
dc.identifier.citationChah, E, Hok, V, Della-Chiesa, V, Miller, JJH, O'Mara SM & Reilly, RB., Automated spike sorting algorithm based on Laplacian eigenmaps and k-means clustering, Journal of Neural Engineering, 8, 2011, 016006en
dc.identifier.otherYen
dc.descriptionPUBLISHEDen
dc.description.abstractThis study presents a new automatic spike sorting method based on feature extraction by Laplacian eigenmaps combined with k-means clustering. The performance of the proposed method was compared against previously reported algorithms such as principal component analysis (PCA) and amplitude-based feature extraction. Two types of classifier (namely k-means and classification expectation-maximization) were incorporated within the spike sorting algorithms, in order to find a suitable classifier for the feature sets. Simulated data sets and in-vivo tetrode multichannel recordings were employed to assess the performance of the spike sorting algorithms. The results show that the proposed algorithm yields significantly improved performance with mean sorting accuracy of 73% and sorting error of 10% compared to PCA which combined with k-means had a sorting accuracy of 58% and sorting error of 10%.en
dc.format.extent016006en
dc.language.isoenen
dc.relation.ispartofseriesJournal of Neural Engineeringen
dc.relation.ispartofseries8en
dc.rightsYen
dc.subjectComputational Physicsen
dc.subjectMedical Physicsen
dc.subjectBiological Physicsen
dc.titleAutomated spike sorting algorithm based on Laplacian eigenmaps and k-means clusteringen
dc.typeJournal Articleen
dc.type.supercollectionscholarly_publicationsen
dc.type.supercollectionrefereed_publicationsen
dc.identifier.peoplefinderurlhttp://people.tcd.ie/smomaraen
dc.identifier.peoplefinderurlhttp://people.tcd.ie/jmilleren
dc.identifier.rssinternalid70659en
dc.subject.TCDThemeNeuroscienceen
dc.identifier.rssurihttp://dx.doi.org/10.1088/1741-2560/8/1/016006en
dc.identifier.orcid_id0000-0001-8087-8531en
dc.identifier.urihttp://hdl.handle.net/2262/50386


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