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Learning Analytics×Sekventiel mønsterudvinding×
FagområdeUddannelsesanalyseMaskinlæring
FamilieProcess / pipelineMachine learning
Oprindelsesår20111995
OphavspersonGeorge Siemens & Phil LongRakesh Agrawal & Ramakrishnan Srikant
Typedata-driven educational process pipelineUnsupervised pattern discovery
Oprindelig kildeSiemens, G., & Long, P. (2011). Penetrating the fog: Analytics in learning and education. EDUCAUSE Review, 46(5), 30–40. link ↗Agrawal, R., & Srikant, R. (1995). Mining sequential patterns. IEEE International Conference on Data Engineering (ICDE), 3–14. DOI ↗
AliasserEducational Data Mining, Academic Analytics, Learning Data Analytics, Öğrenme AnalitiğiSequence Pattern Mining, Sequential Data Mining, Temporal Pattern Mining, Ardışık Örüntü Madenciliği
Relaterede33
ResuméLearning Analytics is the measurement, collection, analysis, and reporting of data about learners and their contexts, with the purpose of understanding and optimizing learning and the environments in which it occurs. Formally introduced by George Siemens and Phil Long in 2011, the approach draws on data generated in digital learning environments to provide educators, institutions, and learners with evidence-based feedback for improving educational outcomes.Sequential Pattern Mining discovers ordered patterns that recur across multiple event sequences in a database. Introduced by Agrawal and Srikant in 1995, it extends association-rule mining to time-ordered transactions. A pattern is frequent when it appears as an ordered subsequence in at least a user-specified fraction of all sequences. The method is widely applied wherever the order of events carries meaning, such as customer purchase histories, clickstream logs, electronic health records, and DNA sequence analysis.
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ScholarGateSammenlign metoder: Learning Analytics · Sequential Pattern Mining. Hentet 2026-06-15 fra https://scholargate.app/da/compare