Please use this identifier to cite or link to this item: http://hdl.handle.net/10603/10438
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dc.coverage.spatialComputer Engineeringen_US
dc.date.accessioned2013-08-07T04:17:29Z-
dc.date.available2013-08-07T04:17:29Z-
dc.date.issued2013-08-07-
dc.identifier.urihttp://hdl.handle.net/10603/10438-
dc.description.abstractComputers are all pervasive essentialities in today s world and technologies that improve our interactions with them are growing at a never before rate. One particular kind of techniques that enable us to interact with them better are the recognition methods, which include character or speech recognition. Character recognition is of two types - off-line and on-line. This thesis predominantly focuses on off-line character recognition- an application of pattern recognition. A typical pattern recognition system consists of three phases namely data acquisition, feature extraction and classification. For classification, knowledge acquisition about the domain is an important factor. If the domain knowledge is well defined then the characters can be classified with certainty. This work is focused on off-line recognition of Telugu characters. The data set for Telugu alphabet are neither available on on-line resources nor are they available commercially. As a result, it became necessary to acquire the character images from different people for this research. Due to the wide range of variations in the handwriting, the images are pre-processed and a set of 41 features are extracted from the images. As the generalization ability of the classifier depends on the number of attributes, dimensionality reduction has been performed using factor analysis with SPSS 16.0 and validation and consistency of the factors has been confirmed with confirmatory factor analysis. The second stage of pattern recognition is classification. In this work, the classification has been performed with neural networks, support vector machines and genetic algorithms. Two types of neural networks are used - radial basis function (RBF) and probabilistic neural networks (PNN) - due to the advantage of universal approximation property and good generalization ability. The learning task in the neural networks depends on the number of training samples while, support vector machines which work on simple geometric interpretation.en_US
dc.format.extentxiii, 152p.en_US
dc.languageEnglishen_US
dc.relationNo of References 139en_US
dc.rightsuniversityen_US
dc.titleSome studies on recognition of handwritten Telugu charactersen_US
dc.title.alternative-en_US
dc.creator.researcherSita Mahalakshmi, Ten_US
dc.subject.keywordComputer Scienceen_US
dc.subject.keywordNeural Networksen_US
dc.subject.keywordSupport Vector Machinesen_US
dc.subject.keywordKernel Tricken_US
dc.description.noteReferences p.137-151en_US
dc.contributor.guideVinaya Babu, Aen_US
dc.publisher.placeGunturen_US
dc.publisher.universityAcharya Nagarjuna Universityen_US
dc.publisher.institutionDepartment of Computer Science and Engineeringen_US
dc.date.registeredn.d.en_US
dc.date.completed2011en_US
dc.date.awardedn.d.en_US
dc.format.dimensions-en_US
dc.format.accompanyingmaterialNoneen_US
dc.type.degreePh.D.en_US
dc.source.inflibnetINFLIBNETen_US
Appears in Departments:Department of Computer Science & Engineering

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01_title.pdfAttached File12.19 kBAdobe PDFView/Open
02_declaration.pdf9.92 kBAdobe PDFView/Open
03_certificate.pdf32.36 kBAdobe PDFView/Open
04_dedication.pdf29.6 kBAdobe PDFView/Open
05_acknowledgements.pdf19.61 kBAdobe PDFView/Open
06_contents.pdf30.62 kBAdobe PDFView/Open
07_list of figures.pdf21.41 kBAdobe PDFView/Open
08_list of tables.pdf25.23 kBAdobe PDFView/Open
09_abstract.pdf20.12 kBAdobe PDFView/Open
10_chapter 1.pdf132.24 kBAdobe PDFView/Open
11_chapter 2.pdf168.12 kBAdobe PDFView/Open
12_chapter 3.pdf320.77 kBAdobe PDFView/Open
14_chapter 4.pdf353.7 kBAdobe PDFView/Open
15_chapter 5.pdf527.36 kBAdobe PDFView/Open
16_chapter 6.pdf419.24 kBAdobe PDFView/Open
17_summary.pdf84.34 kBAdobe PDFView/Open
18_references.pdf94.74 kBAdobe PDFView/Open
19_appendix.pdf873.77 kBAdobe PDFView/Open


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