ملخص
Understanding the relations between entities denoted by NPs in a text is a critical part of human-like natural language understanding. However, only a fraction of such relations is covered by standard NLP tasks and benchmarks nowadays. In this work, we propose a novel task termed text-based NP enrichment (TNE), in which we aim to enrich each NP in a text with all the preposition-mediated relations—either explicit or implicit—that hold between it and other NPs in the text. The relations are represented as triplets, each denoted by two NPs related via a preposition. Humans recover such relations seamlessly, while current state-of-the-art models struggle with them due to the implicit nature of the problem. We build the first large-scale dataset for the problem, provide the formal framing and scope of annotation, analyze the data, and report the results of fine-tuned language models on the task, demonstrating the challenge it poses to current technology. A webpage with a data-exploration UI, a demo, and links to the code, models, and leaderboard, to foster further research into this challenging problem can be found at: yanaiela.github.io/TNE/.
| اللغة الأصلية | الإنجليزيّة |
|---|---|
| الصفحات (من إلى) | 764-784 |
| عدد الصفحات | 21 |
| دورية | Transactions of the Association for Computational Linguistics |
| مستوى الصوت | 10 |
| المعرِّفات الرقمية للأشياء | |
| حالة النشر | نُشِر - 27 يوليو 2022 |
| منشور خارجيًا | نعم |
ملاحظة ببليوغرافية
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بصمة
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