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Denoising Relation Extraction from Document-level Distant Supervision (2011.03888v1)

Published 8 Nov 2020 in cs.CL

Abstract: Distant supervision (DS) has been widely used to generate auto-labeled data for sentence-level relation extraction (RE), which improves RE performance. However, the existing success of DS cannot be directly transferred to the more challenging document-level relation extraction (DocRE), since the inherent noise in DS may be even multiplied in document level and significantly harm the performance of RE. To address this challenge, we propose a novel pre-trained model for DocRE, which denoises the document-level DS data via multiple pre-training tasks. Experimental results on the large-scale DocRE benchmark show that our model can capture useful information from noisy DS data and achieve promising results.

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Authors (8)
  1. Chaojun Xiao (39 papers)
  2. Yuan Yao (292 papers)
  3. Ruobing Xie (97 papers)
  4. Xu Han (270 papers)
  5. Zhiyuan Liu (433 papers)
  6. Maosong Sun (337 papers)
  7. Fen Lin (14 papers)
  8. Leyu Lin (43 papers)
Citations (35)