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حوزهیادگیری عمیقیادگیری عمیق
خانوادهMachine learningMachine learning
سال پیدایش2017–20192019
پدیدآورReimers, N. & Gurevych, I. (SBERT); Conneau, A. et al. (InferSent)Devlin, J., Chang, M.-W., Lee, K., & Toutanova, K. (Google AI Language)
نوعTransfer learning / sentence representationPre-trained language model with fine-tuning
منبع بنیادینReimers, N. & Gurevych, I. (2019). Sentence-BERT: Sentence Embeddings using Siamese BERT-Networks. Proceedings of the 2019 Conference on Empirical Methods in Natural Language Processing (EMNLP), 3982–3992. link ↗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 ↗
نام‌های دیگرsentence embedding transfer learning, pre-trained sentence encoder fine-tuning, SBERT transfer learning, sentence representation transferBERT classifier, BERT fine-tuning for classification, BERT text classification, BERT-CLS
مرتبط54
خلاصهTransfer Learning with Sentence Embeddings takes a large pre-trained encoder — such as Sentence-BERT or the Universal Sentence Encoder — that already encodes general language knowledge into fixed-length vectors, and adapts it to a new task or domain with little additional labelled data. The pre-trained representations give a head start that often outperforms task-specific models trained from scratch on modest corpora.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.
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ScholarGateمقایسهٔ روش‌ها: Transfer Learning with Sentence Embeddings · BERT-based Classification. بازیابی‌شده در 2026-06-15 از https://scholargate.app/fa/compare