DBNs-BLR (MCMC) -GAs-KNN: A novel framework of hybrid system for thalassemia expert system

Genetic Algorithms (GAs) is one of the most effective technique applied to feature selection in medical diagnostic decisions. In particular, Thalassemia, which is one of the most common genetic disorders found around the world. The main problems of diagnosing this disease are the complex processes f...

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Main Author: Patcharaporn Paokanta
Format: Book Series
Published: 2018
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http://cmuir.cmu.ac.th/jspui/handle/6653943832/51506
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spelling th-cmuir.6653943832-515062018-09-04T06:08:54Z DBNs-BLR (MCMC) -GAs-KNN: A novel framework of hybrid system for thalassemia expert system Patcharaporn Paokanta Computer Science Mathematics Genetic Algorithms (GAs) is one of the most effective technique applied to feature selection in medical diagnostic decisions. In particular, Thalassemia, which is one of the most common genetic disorders found around the world. The main problems of diagnosing this disease are the complex processes for identifying the several types of Thalassemia. Moreover, diagnostic methods are slow and rely on expert knowledge and experience as well as expensive equipment. For these reasons, in this study, a new framework of applied DBN and BLR (MCMC)-GAs-KNN for Thalassemia Expert System is proposed. The filter techniques called DBNs and the hybrid classification technique namely BLR (MCMC)-GAs-KNN will be used for classifying the types of β-Thalassemia. The obtained result will be compared to the results of other techniques such as BNs, BLR based on Classical (ML) and Bayesian (MCMC) approach, SVM, MLP, KNN, C5.0, and CART for selecting the best results to implement Thalassemia Expert System. © 2012 Springer-Verlag. 2018-09-04T06:03:31Z 2018-09-04T06:03:31Z 2012-11-19 Book Series 16113349 03029743 2-s2.0-84869025845 10.1007/978-3-642-34478-7_33 https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=84869025845&origin=inward http://cmuir.cmu.ac.th/jspui/handle/6653943832/51506
institution Chiang Mai University
building Chiang Mai University Library
country Thailand
collection CMU Intellectual Repository
topic Computer Science
Mathematics
spellingShingle Computer Science
Mathematics
Patcharaporn Paokanta
DBNs-BLR (MCMC) -GAs-KNN: A novel framework of hybrid system for thalassemia expert system
description Genetic Algorithms (GAs) is one of the most effective technique applied to feature selection in medical diagnostic decisions. In particular, Thalassemia, which is one of the most common genetic disorders found around the world. The main problems of diagnosing this disease are the complex processes for identifying the several types of Thalassemia. Moreover, diagnostic methods are slow and rely on expert knowledge and experience as well as expensive equipment. For these reasons, in this study, a new framework of applied DBN and BLR (MCMC)-GAs-KNN for Thalassemia Expert System is proposed. The filter techniques called DBNs and the hybrid classification technique namely BLR (MCMC)-GAs-KNN will be used for classifying the types of β-Thalassemia. The obtained result will be compared to the results of other techniques such as BNs, BLR based on Classical (ML) and Bayesian (MCMC) approach, SVM, MLP, KNN, C5.0, and CART for selecting the best results to implement Thalassemia Expert System. © 2012 Springer-Verlag.
format Book Series
author Patcharaporn Paokanta
author_facet Patcharaporn Paokanta
author_sort Patcharaporn Paokanta
title DBNs-BLR (MCMC) -GAs-KNN: A novel framework of hybrid system for thalassemia expert system
title_short DBNs-BLR (MCMC) -GAs-KNN: A novel framework of hybrid system for thalassemia expert system
title_full DBNs-BLR (MCMC) -GAs-KNN: A novel framework of hybrid system for thalassemia expert system
title_fullStr DBNs-BLR (MCMC) -GAs-KNN: A novel framework of hybrid system for thalassemia expert system
title_full_unstemmed DBNs-BLR (MCMC) -GAs-KNN: A novel framework of hybrid system for thalassemia expert system
title_sort dbns-blr (mcmc) -gas-knn: a novel framework of hybrid system for thalassemia expert system
publishDate 2018
url https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=84869025845&origin=inward
http://cmuir.cmu.ac.th/jspui/handle/6653943832/51506
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