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FewRel 2.0: Towards More Challenging Few-Shot Relation Classification (1910.07124v1)

Published 16 Oct 2019 in cs.CL

Abstract: We present FewRel 2.0, a more challenging task to investigate two aspects of few-shot relation classification models: (1) Can they adapt to a new domain with only a handful of instances? (2) Can they detect none-of-the-above (NOTA) relations? To construct FewRel 2.0, we build upon the FewRel dataset (Han et al., 2018) by adding a new test set in a quite different domain, and a NOTA relation choice. With the new dataset and extensive experimental analysis, we found (1) that the state-of-the-art few-shot relation classification models struggle on these two aspects, and (2) that the commonly-used techniques for domain adaptation and NOTA detection still cannot handle the two challenges well. Our research calls for more attention and further efforts to these two real-world issues. All details and resources about the dataset and baselines are released at https: //github.com/thunlp/fewrel.

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Authors (7)
  1. Tianyu Gao (35 papers)
  2. Xu Han (270 papers)
  3. Hao Zhu (212 papers)
  4. Zhiyuan Liu (433 papers)
  5. Peng Li (390 papers)
  6. Maosong Sun (337 papers)
  7. Jie Zhou (687 papers)
Citations (235)

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