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Arbre de décision en apprentissage actif×Régression logistique avec apprentissage actif×
DomaineApprentissage automatiqueApprentissage automatique
FamilleMachine learningMachine learning
Année d'origine1984–20101994–2010
Auteur d'origineSettles, B. (active learning framework); Breiman et al. (decision tree base)Lewis, D. D. & Gale, W. A.; Settles, B. (survey)
TypeActive learning with decision tree base learnerActive learning framework with logistic regression base learner
Source fondatriceSettles, B. (2010). Active Learning Literature Survey. Computer Sciences Technical Report 1648, University of Wisconsin-Madison. link ↗Settles, B. (2010). Active Learning Literature Survey. Computer Sciences Technical Report 1648, University of Wisconsin–Madison. link ↗
AliasAL-DT, active decision tree, query-based decision tree learning, uncertainty-sampling decision treeAL-LR, logistic regression active learner, uncertainty sampling logistic regression, pool-based active logistic classifier
Apparentées54
RésuméActive learning with a decision tree combines the interpretable structure of a CART-style tree with a query strategy that selects the most informative unlabeled instances for human annotation. The model iteratively requests labels only for examples it is most uncertain about, minimising labeling cost while maximising classification accuracy on tabular data.Active Learning with Logistic Regression is an iterative label-efficient framework in which a logistic regression model selects the unlabeled examples it is most uncertain about, an oracle (human annotator) labels them, and the model is retrained — repeating until a labeling budget or accuracy target is met. It dramatically reduces annotation cost compared to random labeling.
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ScholarGateComparer des méthodes: Active learning Decision tree · Active Learning Logistic Regression. Consulté le 2026-06-17 sur https://scholargate.app/fr/compare