Krahasoni metodat
Shqyrtoni metodat e zgjedhura krah për krah; rreshtat që ndryshojnë janë të theksuar.
| Klasifikim i bazuar në BERT me mbikëqyrje të dobët× | Klasifikim i mbështetur në BERT me mbikëqyrje gjysmë-sistematike× | |
|---|---|---|
| Fusha | Mësimi i thellë | Mësimi i thellë |
| Familja | Machine learning | Machine learning |
| Viti i origjinës≠ | 2017–2020 | 2019–2020 |
| Krijuesi≠ | Multiple (Ratner et al. for weak supervision framework; Meng et al. for BERT integration) | Multiple groups (Xie et al.; Chen et al.; Devlin et al. for BERT base) |
| Lloji≠ | Weakly supervised fine-tuning of pre-trained language model | Semi-supervised fine-tuning of pre-trained transformer |
| Burimi themelues≠ | Meng, Y., Zhang, Y., Huang, J., Xiong, C., Ji, H., Zhang, C., & Han, J. (2020). Text Classification Using Label Names Only: A Language Model Self-Training Approach. Proceedings of EMNLP 2020, 9006–9017. link ↗ | Xie, Q., Dai, Z., Hovy, E., Luong, T., & Le, Q. (2020). Unsupervised Data Augmentation for Consistency Training. Advances in Neural Information Processing Systems (NeurIPS), 33, 27780–27792. link ↗ |
| Emërtime të tjera | WS-BERT, BERT with weak supervision, label-efficient BERT classification, noisy-label BERT fine-tuning | Semi-supervised BERT, BERT SSL Classification, BERT with Unlabeled Data, BERT Semi-supervised Fine-tuning |
| Të lidhura | 6 | 6 |
| Përmbledhja≠ | Weakly supervised BERT-based classification adapts BERT to text classification tasks when only noisy, heuristic, or programmatically generated labels are available instead of clean human annotations. It combines weak supervision frameworks — such as labeling functions and data programming — with BERT's pre-trained language representations to achieve robust classification without expensive hand-labeling. | Semi-supervised BERT-based classification fine-tunes a pre-trained BERT encoder on a small pool of labeled text examples while simultaneously leveraging a much larger body of unlabeled text — via consistency training, pseudo-labeling, or data augmentation — to produce high-quality classifiers even when manual annotation is scarce. |
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