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ベイズ的関連ルール×半教師あり連想規則×
分野機械学習機械学習
系統Machine learningMachine learning
提唱年1994–19952003–2010s
提唱者Heckerman, D. et al.; Agrawal, R. & Srikant, R.Liu, B.; Hsu, W.; Ma, Y. (and subsequent researchers)
種類Probabilistic rule miningPattern mining with partial supervision
原典Heckerman, D., Geiger, D., & Chickering, D. M. (1995). Learning Bayesian networks: The combination of knowledge and statistical data. Machine Learning, 20(3), 197–243. DOI ↗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 ↗
別名Bayesian rule learning, probabilistic association rules, Bayesian itemset mining, BARsemi-supervised ARM, label-guided association rule mining, constrained association rule mining, semi-supervised pattern discovery
関連64
概要Bayesian Association Rules extend classical association rule mining by placing a prior probability distribution over rules and scoring them by their posterior probability given the data. Rather than thresholding on raw support and confidence counts, this Bayesian framework naturally penalises complexity, corrects for multiple comparisons, and produces calibrated probabilistic rule strengths across transactional or categorical datasets.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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ScholarGate手法を比較: Bayesian Association Rules · Semi-supervised Association Rules. 2026-06-17に以下より取得 https://scholargate.app/ja/compare