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FagfeltMaskinlæringProcess mining
FamilieMachine learningProcess / pipeline
Opprinnelsesår19942016
OpphavspersonRakesh Agrawal & Ramakrishnan SrikantWil van der Aalst
TypeUnsupervised pattern discovery algorithmData-driven process analysis technique
Opprinnelig kildeAgrawal, R., Imieliński, T., & Swami, A. (1993). Mining association rules between sets of items in large databases. ACM SIGMOD, 207–216. DOI ↗van der Aalst, W. M. P. (2016). Process Mining: Data Science in Action (2nd ed.). Springer. ISBN: 978-3-662-49850-7
AliasMarket Basket Analysis, Frequent Itemset Mining, Birliktelik Kuralı Madenciliği, Itemset Association AnalysisWorkflow Mining, Event Log Analysis, Process Discovery, Süreç Madenciliği
Relaterte32
SammendragAssociation Rule Mining is an unsupervised data-mining technique that discovers co-occurrence patterns among items in transactional datasets. Formally introduced by Agrawal, Imieliński, and Swami in 1993, and refined with the landmark Apriori algorithm by Agrawal and Srikant in 1994, it identifies rules of the form X ⇒ Y — meaning that transactions containing itemset X tend to also contain itemset Y — quantified by support, confidence, and lift.Process Mining is a data-driven discipline that extracts knowledge about real-world processes from event logs recorded by information systems. Introduced systematically by Wil van der Aalst, with foundational workflow mining formalized in 2004 and consolidated in the 2016 textbook, the technique bridges data science and process management. It enables organizations to discover how processes actually execute, check whether execution conforms to prescribed models, and diagnose performance bottlenecks — all directly from digital traces.
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ScholarGateSammenlign metoder: Association Rule Mining · Process Mining. Hentet 2026-06-15 fra https://scholargate.app/no/compare