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Named Entity Recognition for Open Domain Data Based on Distant Supervision

  • Beihang University

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Named Entity Recognition (NER) for open domain data is a critical task for the natural language process applications and attracts many research attention. However, the complexity of semantic dependencies and the sparsity of the context information make it difficult for identifying correct entities from the corpus. In addition, the lack of annotated training data makes impossible the prediction of fine-grained entity types for detected entities. To solve the above-mentioned problems in NER, we propose an extractor which takes both the near arguments and long dependencies of relations into consideration for the entities and relations mention discovery. We then employ distant-supervision methods to automatically label mention types of training data sets and a neural network model is proposed for learning the type classifier. Empirical studies on two real-world raw text corpus, NYT and YELP, demonstrate that our proposed NER approach outperforms the existing models.

Original languageEnglish
Title of host publicationKnowledge Graph and Semantic Computing
Subtitle of host publicationKnowledge Computing and Language Understanding - 4th China Conference, CCKS 2019, Revised Selected Papers
EditorsXiaoyan Zhu, Bing Qin, Ming Liu, Xiaodan Zhu, Longhua Qian
PublisherSpringer
Pages185-197
Number of pages13
ISBN (Print)9789811519550
DOIs
StatePublished - 2019
Event4th China Conference on Knowledge Graph and Semantic Computing, CCKS 2019 - Hangzhou, China
Duration: 24 Aug 201927 Aug 2019

Publication series

NameCommunications in Computer and Information Science
Volume1134 CCIS
ISSN (Print)1865-0929
ISSN (Electronic)1865-0937

Conference

Conference4th China Conference on Knowledge Graph and Semantic Computing, CCKS 2019
Country/TerritoryChina
CityHangzhou
Period24/08/1927/08/19

Keywords

  • Distant supervision
  • Information extraction
  • Knowledge graph
  • Named entity recognition

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