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Neural Open Information Extraction (1805.04270v1)

Published 11 May 2018 in cs.CL

Abstract: Conventional Open Information Extraction (Open IE) systems are usually built on hand-crafted patterns from other NLP tools such as syntactic parsing, yet they face problems of error propagation. In this paper, we propose a neural Open IE approach with an encoder-decoder framework. Distinct from existing methods, the neural Open IE approach learns highly confident arguments and relation tuples bootstrapped from a state-of-the-art Open IE system. An empirical study on a large benchmark dataset shows that the neural Open IE system significantly outperforms several baselines, while maintaining comparable computational efficiency.

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Authors (3)
  1. Lei Cui (43 papers)
  2. Furu Wei (291 papers)
  3. Ming Zhou (182 papers)
Citations (153)