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dc.contributor.advisorMitra, Suman K.
dc.contributor.authorBhatt, Pranjal Ketanbhai
dc.date.accessioned2020-09-14T05:57:50Z
dc.date.available2020-09-14T05:57:50Z
dc.date.issued2019
dc.identifier.citationBhatt, Pranjal Ketanbhai (2019). Kernel variants of extended locality preserving projection. Dhirubhai Ambani Institute of Information and Communication Technology, 40 p. (Acc. No. T00766)
dc.identifier.urihttp://drsr.daiict.ac.in//handle/123456789/831
dc.description.abstractIn recent years, non-linear dimensionality reduction methods are getting popular for the handling image data due to non-linearity present in data. For the image recognition task, non-linear dimensionality reduction methods are not useful as it is unable to find the out-of-sample data representation in the reduced subspace. To handle non-linearity of the data, the kernel method is used, which find the feature space from higher dimensional space. One can find the reduce subspace representation by applying the linear dimensionality reduction techniques in the feature space. Extended Locality Preserving Projection(ELPP) tries to capture non-linearity by maintaining neighborhood information in the reduce subspace but fails to capture complex-nonlinear changes. So kernel variants of ELPP are proposed to handle non-linearity present in the data. This thesis addressed kernel variants of the ELPP which efficiently handle the complex non-linear changes of the facial expression recognition. The proposed kernel variants of the ELPP is applied for face recognition on some benchmark databases. Proposed approaches are also able to remove the outlier present in the data.
dc.publisherDhirubhai Ambani Institute of Information and Communication Technology
dc.subjectExtended locality preserving projection
dc.subjectdimentionality reduction techniques
dc.subjectkernel based method
dc.classification.ddc515.9 BHA
dc.titleKernel variants of extended locality preserving projection
dc.typeDissertation
dc.degreeM.Tech
dc.student.id201711008
dc.accession.numberT00766


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