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This is a fine-tuned BERT-based language model to classify NLP-related research papers according to concepts included in the [NLP taxonomy](#nlp-taxonomy).
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It is a multi-label classifier that can predict concepts from all levels of the NLP taxonomy.
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If the model identifies a lower-level concept, it did learn to predict both the lower-level concept and its hypernyms in the NLP taxonomy.
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The model is fine-tuned on a weakly labeled dataset of 178,521 scientific papers from the ACL Anthology, the arXiv cs.CL
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Prior to fine-tuning, the model is initialized with weights from [allenai/specter2_base](https://huggingface.co/allenai/specter2_base).
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📄 Paper: [Exploring the Landscape of Natural Language Processing Research (RANLP 2023)](https://aclanthology.org/2023.ranlp-1.111)
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This is a fine-tuned BERT-based language model to classify NLP-related research papers according to concepts included in the [NLP taxonomy](#nlp-taxonomy).
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It is a multi-label classifier that can predict concepts from all levels of the NLP taxonomy.
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If the model identifies a lower-level concept, it did learn to predict both the lower-level concept and its hypernyms in the NLP taxonomy.
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The model is fine-tuned on a weakly labeled dataset of 178,521 scientific papers from the ACL Anthology, the arXiv cs.CL category, and Scopus.
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Prior to fine-tuning, the model is initialized with weights from [allenai/specter2_base](https://huggingface.co/allenai/specter2_base).
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📄 Paper: [Exploring the Landscape of Natural Language Processing Research (RANLP 2023)](https://aclanthology.org/2023.ranlp-1.111)
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