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Boosting×Tăng cường Gradient Chính quy hóa×
Lĩnh vựcHọc máyHọc máy
HọMachine learningMachine learning
Năm ra đời1990–19972001 (gradient boosting); 2016 (explicit L1/L2 regularization in XGBoost)
Người khởi xướngSchapire, R. E.; Freund, Y.Chen, T. & Guestrin, C. (building on Friedman, J. H.)
LoạiSequential ensemble (iterative reweighting)Regularized ensemble (additive tree model)
Công trình gốcFreund, Y. & Schapire, R. E. (1997). A decision-theoretic generalization of on-line learning and an application to boosting. Journal of Computer and System Sciences, 55(1), 119–139. DOI ↗Chen, T. & Guestrin, C. (2016). XGBoost: A scalable tree boosting system. Proceedings of the 22nd ACM SIGKDD International Conference on Knowledge Discovery and Data Mining, 785–794. DOI ↗
Tên gọi khácAdaBoost, gradient boosting, iterative reweighting ensemble, sequential ensemblepenalized gradient boosting, shrinkage-regularized boosting, XGBoost-style regularization, L1/L2 gradient boosting
Liên quan66
Tóm tắtBoosting is a sequential ensemble technique that converts many simple, barely-better-than-chance learners into a single highly accurate model by repeatedly focusing training on the examples that previous learners got wrong, then combining all learners with weights proportional to their individual accuracy.Regularized gradient boosting extends the classic additive tree ensemble (Friedman 2001) by embedding L1 and L2 penalty terms directly into the training objective, along with a complexity penalty on tree size. Popularized by XGBoost (Chen & Guestrin 2016), this framework reduces overfitting and improves generalization compared to unpenalized boosting, while retaining the method's characteristic accuracy on tabular data.
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ScholarGateSo sánh phương pháp: Boosting · Regularized Gradient Boosting. Truy cập ngày 2026-06-17 từ https://scholargate.app/vi/compare