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능동 학습 연관 규칙×준지도 연관 규칙×
분야머신러닝머신러닝
계열Machine learningMachine learning
기원 연도2010s2003–2010s
창시자Dzyuba, V. & van Leeuwen, M.; Boley, M. et al.Liu, B.; Hsu, W.; Ma, Y. (and subsequent researchers)
유형Interactive pattern miningPattern mining with partial supervision
원전Dzyuba, V., & van Leeuwen, M. (2017). Interactive Discovery of Interesting Association Rules by Subjective Interestingness. In Proceedings of the European Conference on Machine Learning and Principles and Practice of Knowledge Discovery in Databases (ECML PKDD). Springer. link ↗Liu, B., Hsu, W., & Ma, Y. (2003). Integrating Classification and Association Rule Mining. In Proceedings of the 4th IEEE International Conference on Data Mining (ICDM), pp. 339–346. link ↗
별칭interactive association rule mining, active rule mining, query-driven association rule discovery, user-guided association rulessemi-supervised ARM, label-guided association rule mining, constrained association rule mining, semi-supervised pattern discovery
관련54
요약Active learning association rules combines the iterative query-and-label loop of active learning with association rule mining, allowing a human expert to guide the discovery process interactively. Instead of exhaustively enumerating all rules above a fixed support-confidence threshold, the system selects the most informative rule candidates and asks the user to judge their interestingness, focusing the search on subjectively useful patterns.Semi-supervised association rule mining extends classical association rule learning by incorporating a small amount of labeled data alongside a larger unlabeled dataset. It uses known class information or user-provided constraints to guide the discovery of rules that are both statistically frequent and semantically meaningful, bridging unsupervised pattern mining with light supervision.
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ScholarGate방법 비교: Active learning Association rules · Semi-supervised Association Rules. 2026-06-17에 다음에서 검색함: https://scholargate.app/ko/compare