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Boosting auto-supervisé×Boost par apprentissage semi-supervisé×
DomaineApprentissage automatiqueApprentissage automatique
FamilleMachine learningMachine learning
Année d'origine2010s–2020s1999–2009
Auteur d'origineVarious researchers (2010s–2020s)Mallapragada, P. K.; Bennett, K. P.; and others
TypeEnsemble (self-supervised + boosting)Semi-supervised ensemble method
Source fondatriceYarowsky, D. (1995). Unsupervised word sense disambiguation rivaling supervised methods. In Proceedings of the 33rd Annual Meeting of the Association for Computational Linguistics (pp. 189–196). ACL. link ↗Mallapragada, P. K., Jin, R., Jain, A. K., & Liu, Y. (2009). SemiBoost: Boosting for Semi-supervised Learning. IEEE Transactions on Pattern Analysis and Machine Intelligence, 31(11), 2000–2014. DOI ↗
AliasSSL boosting, self-supervised ensemble boosting, pretext-task boosting, SSL-BoostSemiBoost, SSL boosting, boosting with unlabeled data, semi-supervised ensemble boosting
Apparentées65
RésuméSelf-supervised boosting integrates self-supervised pretext tasks into the boosting framework — covering AdaBoost, gradient boosting, and their modern variants — to leverage large pools of unlabeled data. By first learning feature representations from unlabeled samples and then running sequential weak-learner ensembles on pseudo-labeled data, it achieves competitive accuracy even when ground-truth labels are scarce.Semi-supervised Boosting is an ensemble learning paradigm that extends classical boosting algorithms — such as AdaBoost — to exploit both labeled and unlabeled data. By propagating label information through a similarity structure over unlabeled instances, it trains stronger classifiers than supervised boosting alone when labeled data are scarce.
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ScholarGateComparer des méthodes: Self-supervised Boosting · Semi-supervised Boosting. Consulté le 2026-06-15 sur https://scholargate.app/fr/compare