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Self-supervised LightGBM/证据
方法证据记录

Self-supervised LightGBM

Self-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.

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源记录

引文逐字复制自方法源记录。这些引文不代表任何层级的验证。

Self-supervised Learning with LightGBM (Gradient Boosting with Self-supervised Pretraining)
分类方法记录 · ml-model / machine-learning
  • Ke, 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. · URL
  • Chen, T., Kornblith, S., Norouzi, M., & Hinton, G. (2020). A Simple Framework for Contrastive Self-Supervised Learning. Proceedings of the 37th International Conference on Machine Learning (ICML). · URL
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Same method familyGradient Boostingmachine-suggested · Relational suggestion, not evidence.Same method familyLightGBMmachine-suggested · Relational suggestion, not evidence.Taxonomic bucketSelf-supervised Learningmachine-suggested · Relational suggestion, not evidence.Taxonomic bucketSemi-supervised LightGBMmachine-suggested · Relational suggestion, not evidence.Taxonomic bucketTransfer Learningmachine-suggested · Relational suggestion, not evidence.Same method familyXGBoostmachine-suggested · Relational suggestion, not evidence.

证据状态

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来源

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