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LightGBM en ligne×Apprentissage en ligne×
DomaineApprentissage automatiqueApprentissage automatique
FamilleMachine learningMachine learning
Année d'origine2017 (LightGBM); 2000s (online boosting)1958–2000s
Auteur d'origineKe et al. (LightGBM); Bifet, Gavalda (online boosting theory)Rosenblatt, F.; Littlestone, N.; Shalev-Shwartz, S. (key contributors)
TypeOnline ensemble (incremental gradient boosting)Learning paradigm (sequential model update)
Source fondatriceKe, G., Meng, Q., Finley, T., Wang, T., Chen, W., Ma, W., Ye, Q., & Liu, T.-Y. (2017). LightGBM: A Highly Efficient Gradient Boosting Decision Tree. Advances in Neural Information Processing Systems, 30. link ↗Shalev-Shwartz, S. (2011). Online Learning and Online Convex Optimization. Foundations and Trends in Machine Learning, 4(2), 107–194. DOI ↗
AliasIncremental LightGBM, LightGBM incremental training, streaming LightGBM, continual LightGBMincremental learning, sequential learning, streaming learning, online machine learning
Apparentées56
RésuméOnline LightGBM applies the Light Gradient-Boosting Machine framework incrementally: instead of requiring all training data at once, the model is updated in mini-batches or data chunks as they arrive. This allows LightGBM's efficient histogram-based boosting to be deployed in streaming, continual-learning, and data-expansion scenarios without retraining from scratch.Online learning is a machine learning paradigm in which a model is updated incrementally as each new data point arrives, rather than being trained once on a fixed dataset. It is essential when data streams continuously, storage is limited, or the underlying distribution shifts over time. Theoretical performance is measured by cumulative regret relative to the best fixed predictor in hindsight.
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ScholarGateComparer des méthodes: Online LightGBM · Online Learning. Consulté le 2026-06-18 sur https://scholargate.app/fr/compare