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Self-supervised LightGBM×Градиентный бустинг×
ОбластьМашинное обучениеМашинное обучение
СемействоMachine learningMachine learning
Год появления2017–20202001
Автор методаKe, G. et al. (LightGBM); self-supervised paradigm adapted from broader SSL literatureFriedman, J. H.
ТипHybrid (self-supervised pretraining + gradient boosting)Ensemble (sequential boosting of decision trees)
Основополагающий источникKe, 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 ↗Friedman, J. H. (2001). Greedy Function Approximation: A Gradient Boosting Machine. Annals of Statistics, 29(5), 1189–1232. DOI ↗
Другие названияSSL-LightGBM, self-supervised gradient boosting, pretraining LightGBM, pseudo-label LightGBMGradient Boosting (GBM), GBM, gradient boosted trees, gradient boosting machine
Связанные65
СводкаSelf-supervised LightGBM combines the self-supervised learning paradigm with the LightGBM gradient boosting framework to exploit large volumes of unlabeled tabular data. A self-supervised pretext task — such as masked feature prediction or contrastive corruption — generates rich feature representations or pseudo-labels that are then used to train or fine-tune a LightGBM model, substantially improving performance in label-scarce regimes.Gradient Boosting is an ensemble learning method, formalised by Jerome H. Friedman in 2001, that combines a sequence of weak learners — typically shallow decision trees — so that each new tree is fitted to minimise the residual errors of the trees before it. It is the core algorithm behind popular implementations such as XGBoost, LightGBM and CatBoost.
ScholarGateНабор данных
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  2. 2 Источники
  3. PUBLISHED
  1. v1
  2. 1 Источники
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ScholarGateСравнение методов: Self-supervised LightGBM · Gradient Boosting. Получено 2026-06-15 из https://scholargate.app/ru/compare