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Structured Prediction in NLP -- A survey (2110.02057v1)

Published 31 Aug 2021 in cs.CL, cs.AI, and cs.LG

Abstract: Over the last several years, the field of Structured prediction in NLP has had seen huge advancements with sophisticated probabilistic graphical models, energy-based networks, and its combination with deep learning-based approaches. This survey provides a brief of major techniques in structured prediction and its applications in the NLP domains like parsing, sequence labeling, text generation, and sequence to sequence tasks. We also deep-dived into energy-based and attention-based techniques in structured prediction, identified some relevant open issues and gaps in the current state-of-the-art research, and have come up with some detailed ideas for future research in these fields.

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Authors (5)
  1. Chauhan Dev (1 paper)
  2. Naman Biyani (4 papers)
  3. Nirmal P. Suthar (1 paper)
  4. Prashant Kumar (59 papers)
  5. Priyanshu Agarwal (1 paper)