An enhanced intelligent database engine by neural network and data mining

An Intelligent Database Engine (IDE) is developed to solve any classification problem by providing two integrated features: decision-making by a backpropagation (BP) neural network (NN) and decision support by Apriori, a data mining (DM) algorithm. Previous experimental results show the accuracy of...

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Main Authors: Chua, Boon Lay, Khalid, Marzuki, Yusof, Rubiyah
Format: Article
Language:English
Published: 2000
Subjects:
Online Access:http://eprints.utm.my/1930/
http://eprints.utm.my/1930/1/ChuaBoonLay2000_AnEnhancedIntelligentDatabaseEngineByNeural.pdf
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author Chua, Boon Lay
Khalid, Marzuki
Yusof, Rubiyah
author_facet Chua, Boon Lay
Khalid, Marzuki
Yusof, Rubiyah
author_sort Chua, Boon Lay
building UTeM Institutional Repository
collection Online Access
description An Intelligent Database Engine (IDE) is developed to solve any classification problem by providing two integrated features: decision-making by a backpropagation (BP) neural network (NN) and decision support by Apriori, a data mining (DM) algorithm. Previous experimental results show the accuracy of NN (90%) and DM (60%) to be drastically distinct. Thus, efforts to improve DM accuracy is crucial to ensure a well-balanced hybrid architecture. The poor DM performance is caused by either too few rules or too many poor rules which are generated in the classifier. Thus, the first problem is curbed by generating multiple level rules, by incorporating multiple attribute support and level confidence to the initial Apriori. The second problem is tackled by implementing two strengthening procedures, confidence and Bayes verification to filter out the unpredictive rules. Experiments with more datasets are carried out to compare the performance of initial and improved Apriori. Great improvement is obtained for the latter
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institution Universiti Teknologi Malaysia
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spelling utm-19302017-10-19T04:51:04Z http://eprints.utm.my/1930/ An enhanced intelligent database engine by neural network and data mining Chua, Boon Lay Khalid, Marzuki Yusof, Rubiyah TK Electrical engineering. Electronics Nuclear engineering An Intelligent Database Engine (IDE) is developed to solve any classification problem by providing two integrated features: decision-making by a backpropagation (BP) neural network (NN) and decision support by Apriori, a data mining (DM) algorithm. Previous experimental results show the accuracy of NN (90%) and DM (60%) to be drastically distinct. Thus, efforts to improve DM accuracy is crucial to ensure a well-balanced hybrid architecture. The poor DM performance is caused by either too few rules or too many poor rules which are generated in the classifier. Thus, the first problem is curbed by generating multiple level rules, by incorporating multiple attribute support and level confidence to the initial Apriori. The second problem is tackled by implementing two strengthening procedures, confidence and Bayes verification to filter out the unpredictive rules. Experiments with more datasets are carried out to compare the performance of initial and improved Apriori. Great improvement is obtained for the latter 2000-09-24 Article PeerReviewed application/pdf en http://eprints.utm.my/1930/1/ChuaBoonLay2000_AnEnhancedIntelligentDatabaseEngineByNeural.pdf Chua, Boon Lay and Khalid, Marzuki and Yusof, Rubiyah (2000) An enhanced intelligent database engine by neural network and data mining. TENCON 2000. Proceedings , 2 . pp. 518-523.
spellingShingle TK Electrical engineering. Electronics Nuclear engineering
Chua, Boon Lay
Khalid, Marzuki
Yusof, Rubiyah
An enhanced intelligent database engine by neural network and data mining
title An enhanced intelligent database engine by neural network and data mining
title_full An enhanced intelligent database engine by neural network and data mining
title_fullStr An enhanced intelligent database engine by neural network and data mining
title_full_unstemmed An enhanced intelligent database engine by neural network and data mining
title_short An enhanced intelligent database engine by neural network and data mining
title_sort enhanced intelligent database engine by neural network and data mining
topic TK Electrical engineering. Electronics Nuclear engineering
url http://eprints.utm.my/1930/
http://eprints.utm.my/1930/1/ChuaBoonLay2000_AnEnhancedIntelligentDatabaseEngineByNeural.pdf