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Teória znalostných priestorov×Dolovanie sekvenčných vzorov×
OdborAnalytika vzdelávaniaStrojové učenie
RodinaMachine learningMachine learning
Rok vzniku19851995
TvorcaJean-Paul Doignon & Jean-Claude FalmagneRakesh Agrawal & Ramakrishnan Srikant
TypCombinatorial knowledge assessment frameworkUnsupervised pattern discovery
Pôvodný zdrojDoignon, J.-P., & Falmagne, J.-C. (1985). Spaces for the assessment of knowledge. International Journal of Man-Machine Studies, 23(2), 175–196. DOI ↗Agrawal, R., & Srikant, R. (1995). Mining sequential patterns. IEEE International Conference on Data Engineering (ICDE), 3–14. DOI ↗
Ďalšie názvyKST, Knowledge Structures, Competence-Based Knowledge Space Theory, Bilgi Uzayı TeorisiSequence Pattern Mining, Sequential Data Mining, Temporal Pattern Mining, Ardışık Örüntü Madenciliği
Príbuzné33
ZhrnutieKnowledge Space Theory (KST) is a combinatorial, set-theoretic framework for modeling and assessing human knowledge, introduced by Jean-Paul Doignon and Jean-Claude Falmagne in 1985. It represents a learner's competence as a subset of a problem domain, organizes all feasible competence subsets into a lattice called a knowledge space, and uses probabilistic inference to locate a learner within that space. The approach underlies adaptive testing and intelligent tutoring systems, offering a mathematically rigorous alternative to classical test theory.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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ScholarGatePorovnať metódy: Knowledge Space Theory · Sequential Pattern Mining. Získané 2026-06-15 z https://scholargate.app/sk/compare