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A Survey on Neural Machine Reading Comprehension (1906.03824v1)

Published 10 Jun 2019 in cs.CL and cs.LG

Abstract: Enabling a machine to read and comprehend the natural language documents so that it can answer some questions remains an elusive challenge. In recent years, the popularity of deep learning and the establishment of large-scale datasets have both promoted the prosperity of Machine Reading Comprehension. This paper aims to present how to utilize the Neural Network to build a Reader and introduce some classic models, analyze what improvements they make. Further, we also point out the defects of existing models and future research directions

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Authors (4)
  1. Boyu Qiu (2 papers)
  2. Xu Chen (415 papers)
  3. Jungang Xu (9 papers)
  4. Yingfei Sun (29 papers)
Citations (29)

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