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Evaluating Document Coherence Modelling (2103.10133v1)

Published 18 Mar 2021 in cs.CL and cs.AI

Abstract: While pretrained LLMs ("LM") have driven impressive gains over morpho-syntactic and semantic tasks, their ability to model discourse and pragmatic phenomena is less clear. As a step towards a better understanding of their discourse modelling capabilities, we propose a sentence intrusion detection task. We examine the performance of a broad range of pretrained LMs on this detection task for English. Lacking a dataset for the task, we introduce INSteD, a novel intruder sentence detection dataset, containing 170,000+ documents constructed from English Wikipedia and CNN news articles. Our experiments show that pretrained LMs perform impressively in in-domain evaluation, but experience a substantial drop in the cross-domain setting, indicating limited generalisation capacity. Further results over a novel linguistic probe dataset show that there is substantial room for improvement, especially in the cross-domain setting.

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Authors (6)
  1. Aili Shen (6 papers)
  2. Meladel Mistica (3 papers)
  3. Bahar Salehi (2 papers)
  4. Hang Li (277 papers)
  5. Timothy Baldwin (125 papers)
  6. Jianzhong Qi (68 papers)
Citations (17)