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Examine os métodos selecionados lado a lado; as linhas que diferem ficam destacadas.

Árvore de Decisão Semi-supervisionada×Propagação de Rótulos×
ÁreaAprendizado de máquinaAprendizado de máquina
FamíliaMachine learningMachine learning
Ano de origem2000s2002
Autor originalVarious (Levin & Shapiro; Zhu & Goldberg lineage)Zhu, X. & Ghahramani, Z.
TipoSemi-supervised classifier / regressorGraph-based semi-supervised classification
Fonte seminalLevin, E. & Shapiro, E. (2000). Learning Decision Trees from Semi-labeled Examples. Proceedings of the ICML Workshop on Attribute-Value and Relational Learning. link ↗Zhu, X., & Ghahramani, Z. (2002). Learning from labeled and unlabeled data with label propagation. Technical Report CMU-CALD-02-107, Carnegie Mellon University. link ↗
Outros nomesSSDT, semi-supervised tree induction, self-training decision tree, label-propagation treeLP, label spreading, graph-based semi-supervised learning, harmonic label propagation
Relacionados43
ResumoA 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.Label Propagation is a graph-based semi-supervised learning algorithm introduced by Zhu and Ghahramani in 2002 that spreads class labels from a small set of labeled nodes to a large set of unlabeled nodes by iteratively diffusing label information along the edges of a similarity graph, exploiting the manifold structure of the data.
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ScholarGateComparar métodos: Semi-supervised Decision Tree · Label Propagation. Recuperado em 2026-06-18 de https://scholargate.app/pt/compare