Please use this identifier to cite or link to this item: http://hdl.handle.net/10603/457131
Title: Performance enhancement of machine learning algorithms for general medical dataset classification and predicting future trends of fuel consumption in indian transportation
Researcher: Mohamed Mallick MS
Guide(s): Appavu Alias Balamurugan
Keywords: General Medical Dataset
Machine Learning Alogorithms
Predicting fuel consumption
University: Anna University
Completed Date: 2020
Abstract: Classification is a data mining technique, used to predict class newlinemembership for data instances. Classifier performance depends greatly on the newlinecharacteristics of the data to be classified. Real world data may consist of newlineredundant and conflicting instances, irrelevant and redundant attributes. Thus the newlinedata need to be preprocessed prior to classification. Feature selection is the newlineprocess of selecting a subset of features in the training set and using only this newlinesubset as features in data classification. It makes training and applying a newlineclassifier more efficient by reducing the size of the feature space. It often newlineincreases classification accuracy by eliminating irrelevant and redundant newlinefeatures. newlineThe first component of this research work focuses on enhancing the newlineperformance of k-Nearest Neighbor algorithm for effective data classification. newlineThe k-NN algorithm is amongst the simplest of all machine learning algorithms newlinein which an object is classified by a majority vote of its neighbors, with the newlineobject being assigned to the class that is most common amongst its k nearest newlineneighbours. newline
Pagination: ix,111p.
URI: http://hdl.handle.net/10603/457131
Appears in Departments:Faculty of Information and Communication Engineering

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02_prelim pages.pdf1.89 MBAdobe PDFView/Open
03_content.pdf67.79 kBAdobe PDFView/Open
04_abstract.pdf60.88 kBAdobe PDFView/Open
05_chapter 1.pdf260.04 kBAdobe PDFView/Open
06_chapter 2.pdf174.11 kBAdobe PDFView/Open
07_chapter 3.pdf815.79 kBAdobe PDFView/Open
08_chapter 4.pdf697.13 kBAdobe PDFView/Open
09_chapter 5.pdf84.46 kBAdobe PDFView/Open
10_annextures.pdf144.22 kBAdobe PDFView/Open
80_recommendation.pdf103.54 kBAdobe PDFView/Open
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