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自己教師あり学習による文埋め込み (Self-supervised Sentence Embeddings)×BERTベースの分類×
分野深層学習深層学習
系統Machine learningMachine learning
提唱年2019–20212019
提唱者Gao, T., Yao, X., & Chen, D. (SimCSE); Reimers, N. & Gurevych, I. (Sentence-BERT)Devlin, J., Chang, M.-W., Lee, K., & Toutanova, K. (Google AI Language)
種類Self-supervised representation learningPre-trained language model with fine-tuning
原典Gao, T., Yao, X., & Chen, D. (2021). SimCSE: Simple Contrastive Learning of Sentence Embeddings. Proceedings of the 2021 Conference on Empirical Methods in Natural Language Processing (EMNLP), 6894–6910. DOI ↗Devlin, J., Chang, M.-W., Lee, K., & Toutanova, K. (2019). BERT: Pre-training of Deep Bidirectional Transformers for Language Understanding. In Proceedings of NAACL-HLT 2019 (pp. 4171–4186). Association for Computational Linguistics. DOI ↗
別名self-supervised sentence representation learning, contrastive sentence embeddings, SimCSE, unsupervised sentence encodersBERT classifier, BERT fine-tuning for classification, BERT text classification, BERT-CLS
関連54
概要Self-supervised sentence embeddings train a neural encoder to map sentences into a dense vector space without requiring manually labeled pairs. By constructing positive examples automatically — for instance by passing the same sentence through dropout twice — and using contrastive objectives, the model learns semantically rich representations that transfer well to similarity, retrieval, and classification tasks.BERT-based Classification fine-tunes Google's Bidirectional Encoder Representations from Transformers model on a labelled text dataset, replacing the generic pre-trained head with a task-specific classification layer. It exploits deep bidirectional context from hundreds of millions of pre-trained parameters to deliver state-of-the-art accuracy on short- and medium-length text classification tasks with relatively modest amounts of labelled data.
ScholarGateデータセット
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  1. v1
  2. 2 出典
  3. PUBLISHED

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ScholarGate手法を比較: Self-supervised Sentence Embeddings · BERT-based Classification. 2026-06-15に以下より取得 https://scholargate.app/ja/compare