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Mining fuzzy association rules in databases

Published: 01 March 1998 Publication History

Abstract

Data mining is the discovery of previously unknown, potentially useful and hidden knowledge in databases. In this paper, we concentrate on the discovery of association rules. Many algorithms have been proposed to find association rules in databases with binary attributes. We introduce the fuzzy association rules of the form, 'If X is A then Y is B', to deal with quantitative attributes. X, Y are set of attributes and A, B are fuzzy sets which describe X and Y respectively. Using the fuzzy set concept, the discovered rules are more understandable to human. Moreover, fuzzy sets handle numerical values better than existing methods because fuzzy sets soften the effect of sharp boundaries.

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  • (2024)A Novel Three-Way Deep Learning Approach for Multigranularity Fuzzy Association Analysis of Time Series DataIEEE Transactions on Fuzzy Systems10.1109/TFUZZ.2023.333292132:9(4835-4845)Online publication date: 1-Sep-2024
  • (2024)Fuzzy logic in association rule mining: limited effectiveness analysisJournal of Experimental & Theoretical Artificial Intelligence10.1080/0952813X.2023.2301377(1-15)Online publication date: 5-Jan-2024
  • (2024)Mining association between different emotion classes present in users posts of social mediaSocial Network Analysis and Mining10.1007/s13278-024-01241-w14:1Online publication date: 1-Apr-2024
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Published In

cover image ACM SIGMOD Record
ACM SIGMOD Record  Volume 27, Issue 1
March 1998
103 pages
ISSN:0163-5808
DOI:10.1145/273244
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Association for Computing Machinery

New York, NY, United States

Publication History

Published: 01 March 1998
Published in SIGMOD Volume 27, Issue 1

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Cited By

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  • (2024)A Novel Three-Way Deep Learning Approach for Multigranularity Fuzzy Association Analysis of Time Series DataIEEE Transactions on Fuzzy Systems10.1109/TFUZZ.2023.333292132:9(4835-4845)Online publication date: 1-Sep-2024
  • (2024)Fuzzy logic in association rule mining: limited effectiveness analysisJournal of Experimental & Theoretical Artificial Intelligence10.1080/0952813X.2023.2301377(1-15)Online publication date: 5-Jan-2024
  • (2024)Mining association between different emotion classes present in users posts of social mediaSocial Network Analysis and Mining10.1007/s13278-024-01241-w14:1Online publication date: 1-Apr-2024
  • (2024)A feature weighted K-nearest neighbor algorithm based on association rulesJournal of Ambient Intelligence and Humanized Computing10.1007/s12652-024-04793-z15:7(2995-3008)Online publication date: 24-Apr-2024
  • (2024)nuggets: Data Pattern Extraction Framework in RModeling Decisions for Artificial Intelligence10.1007/978-3-031-68208-7_10(115-126)Online publication date: 27-Aug-2024
  • (2023)Intelligent Data Encryption Classifying Complex Security Breaches Using Machine Learning TechniqueEffective AI, Blockchain, and E-Governance Applications for Knowledge Discovery and Management10.4018/978-1-6684-9151-5.ch010(143-157)Online publication date: 30-Jun-2023
  • (2023)Trade-off Between Execution Time and Memory Consumption in Fuzzy Average-Utility Mining2023 12th International Conference on Awareness Science and Technology (iCAST)10.1109/iCAST57874.2023.10359302(301-305)Online publication date: 9-Nov-2023
  • (2023)Surrogate-Assisted Multi-objective Genetic Fuzzy Associative Classification by Multiple Granularity Measures2023 International Conference for Advancement in Technology (ICONAT)10.1109/ICONAT57137.2023.10080059(1-9)Online publication date: 24-Jan-2023
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  • (2023)Unraveling the link between PTBP1 and severe asthma through machine learning and association rule mining methodScientific Reports10.1038/s41598-023-42581-513:1Online publication date: 16-Sep-2023
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