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Arbre de décision semi-supervisé×Arbre de décision×
DomaineApprentissage automatiqueApprentissage automatique
FamilleMachine learningMachine learning
Année d'origine2000s1984
Auteur d'origineVarious (Levin & Shapiro; Zhu & Goldberg lineage)Breiman, Friedman, Olshen & Stone
TypeSemi-supervised classifier / regressorRecursive partitioning (if-then rules)
Source fondatriceLevin, E. & Shapiro, E. (2000). Learning Decision Trees from Semi-labeled Examples. Proceedings of the ICML Workshop on Attribute-Value and Relational Learning. link ↗Breiman, L., Friedman, J.H., Olshen, R.A. & Stone, C.J. (1984). Classification and Regression Trees. Wadsworth. DOI ↗
AliasSSDT, semi-supervised tree induction, self-training decision tree, label-propagation treeKarar Ağacı (Decision Tree), karar ağacı, classification tree, regression tree
Apparentées45
RésuméA Semi-supervised Decision Tree extends standard decision tree induction — such as CART or C4.5 — to exploit unlabeled observations alongside the labeled training set. By iteratively assigning tentative labels to unlabeled data and incorporating them into the growing or splitting process, the algorithm can achieve better accuracy than a fully supervised tree trained on the labeled subset alone, which is especially valuable when labeling is expensive or time-consuming.A Decision Tree is an interpretable classification and regression method, formalised by Breiman, Friedman, Olshen and Stone in their 1984 CART framework, that partitions the data with hierarchical if-then rules. Each split sends observations down one branch or another until a prediction is read off the leaf.
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ScholarGateComparer des méthodes: Semi-supervised Decision Tree · Decision Tree. Consulté le 2026-06-17 sur https://scholargate.app/fr/compare