Please use this identifier to cite or link to this item: http://hdl.handle.net/10603/455159
Title: Efficient Machine Learning Techniques for Improving the Prediction of Chronic Disease
Researcher: Sandeepkumar, Hegde
Guide(s): Monica, R Mundada
Keywords: Computer Science
Engineering and Technology
Prediction of Chronic Disease, Machine Learning, Chronic Kidney Disease (CKD), Chronic Diabetes Mellitus (CDM) , Cardiovascular Disease (CVD)
University: Visvesvaraya Technological University, Belagavi
Completed Date: 2022
Abstract: Chronic diseases are often considered as a major source of concern and a threat to public health on a global scale. Chronic diseases such as Chronic Kidney Disease (CKD), Chronic Diabetes Mellitus (CDM) and Cardiovascular Disease (CVD) are severe chronic diseases that claim millions of lives each year. Each of these individual disorder is considered as potential risk factor for the other two. As a result, great effort is being done to reduce the chance of developing these diseases as a preventive measure. The supervised as well as unsupervised machine learning algorithms applied in early disease prediction are found computationally intensive which frequently overfit and underperform in terms of accuracy because they should analyse the vast amount of clinical information till the convergence of the model. The primary objective of the research work is to propose feature selection algorithms to reduce the dimensionality of the chronic disease dataset by eliminating the redundant and irrelevant features to increase the accuracy of the prediction. newline
Pagination: XI, 178
URI: http://hdl.handle.net/10603/455159
Appears in Departments:M S Ramaiah Institute of Technology

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02_prelim pages.pdf181.38 kBAdobe PDFView/Open
03_content.pdf179.31 kBAdobe PDFView/Open
04_abstract.pdf71.91 kBAdobe PDFView/Open
05_chapter 1.pdf193.48 kBAdobe PDFView/Open
06_chapter 2.pdf535.56 kBAdobe PDFView/Open
07_chapter 3.pdf877.1 kBAdobe PDFView/Open
08_chapter 4.pdf521.11 kBAdobe PDFView/Open
09_chapter 5.pdf1.71 MBAdobe PDFView/Open
10_chapter 6.pdf115.93 kBAdobe PDFView/Open
11_annexures.pdf294.74 kBAdobe PDFView/Open
80_recommendation.pdf290.37 kBAdobe PDFView/Open
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