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Effective database processing for classification and regression with continuous variables

โœ Scribed by E. Di Tomaso; J.F. Baldwin


Book ID
102283629
Publisher
John Wiley and Sons
Year
2007
Tongue
English
Weight
145 KB
Volume
22
Category
Article
ISSN
0884-8173

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โœฆ Synopsis


This article proposes a method for manipulating a database of instances relative to discrete and continuous variables. A fuzzy partition is used to discretize continuous domains. A reorganized form of representing a relational database is proposed. The new form of representation is called an effective database. The effective database is tested on classification and regression problems using general Bayesian networks and Nรคive Bayes classifiers. The structures and the parameters of the classifiers are estimated from the effective database. An algorithm for updating with soft evidence is used to test the induced models, when continuous variables are present. The experiments show that the effective database procedure produces a selection of relevant information from data, which improves in some cases the prediction accuracy of the classifiers.


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