An Inclusive Notion of Text
Ilia Kuznetsov, Iryna Gurevych
摘要
Natural language processing (NLP) researchers develop models of grammar, meaning and communication based on written text. Due to task and data differences, what is considered text can vary substantially across studies. A conceptual framework for systematically capturing these differences is lacking. We argue that clarity on the notion of text is crucial for reproducible and generalizable NLP. Towards that goal, we propose common terminology to discuss the production and transformation of textual data, and introduce a two-tier taxonomy of linguistic and non-linguistic elements that are available in textual sources and can be used in NLP modeling. We apply this taxonomy to survey existing work that extends the notion of text beyond the conservative language-centered view. We outline key desiderata and challenges of the emerging inclusive approach to text in NLP, and suggest community-level reporting as a crucial next step to consolidate the discussion.
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- S2ORC: The Semantic Scholar Open Research CorpusKyle Lo, Lucy Lu Wang, Mark Neumann, Rodney Kinney 等ACL 2020 · 被引用 424 次
- HTLM: Hyper-Text Pre-Training and Prompting of Language ModelsArmen Aghajanyan, Dmytro Okhonko, Mike Lewis, Mandar Joshi 等ICLR 2022 · 被引用 82 次
- MarkupLM: Pre-training of Text and Markup Language for Visually Rich Document UnderstandingJunlong Li, Yiheng Xu, Lei Cui, Furu WeiACL 2022 · 被引用 75 次
- SPECTER: Document-level Representation Learning using Citation-informed TransformersArman Cohan, Sergey Feldman, Iz Beltagy, Doug Downey 等ACL 2020 · 被引用 20 次
- Argument Pair Extraction with Mutual Guidance and Inter-sentence Relation GraphJianzhu Bao, Bin Liang, Jingyi Sun, Yice Zhang 等EMNLP 2021 · 被引用 14 次
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