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Mining Multidimensional Fuzzy Association Rules from a Normalized Database

Intan, Rolly and Yuliana, Oviliani Yenty (2008) Mining Multidimensional Fuzzy Association Rules from a Normalized Database. In: International Conference on Convergence & Hybrid Information Technology 2008, 30-08-2008 - 30-08-2008, Daejeon - Korea.

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      Abstract

      Mining association rules is one of the important tasks in the process of data mining application. In general, the input as used in the process of generating rules is taken from a certain data table by which all the corresponding values of every domain data have correlations one to each others as given in the data table. A problem arises when we need to generate the rules expressing the relationship between two or more domains that belong to several different tables in a normalized database. To overcome the problem, before generating rules it is necessary to join the participant tables into a general table by a process called Denormalization. This paper shows a process of mining Multidimensional Fuzzy Association Rules from a normalized database. The process consists of two sub process, namely sub-process of join tables (Denormalization) and sub-process of mining fuzzy rules. In general, some parts of mining the fuzzy association rules has been discussed in our previous papers [3,4,5,6].

      Item Type: Conference or Workshop Item (Paper)
      Additional Information: Plagiat tinggi karena paper sudah terpublikasi
      Uncontrolled Keywords: NA
      Subjects: Q Science > QA Mathematics > QA75 Electronic computers. Computer science
      Divisions: Graduate Program > Economic Management
      Depositing User: Admin
      Date Deposited: 23 Apr 2023 06:10
      Last Modified: 14 Jul 2023 17:17
      URI: https://repository.petra.ac.id/id/eprint/20491

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