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Natural language question/answering: Let users talk with the knowledge graph

  • Weiguo Zheng
  • , Hong Cheng
  • , Lei Zou
  • , Jeffrey Xu Yu
  • , Kangfei Zhao
  • Chinese University of Hong Kong
  • Peking University

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

The ever-increasing knowledge graphs impose an urgent demand of providing effective and easy-to-use query techniques for end users. Structured query languages, such as SPARQL, offer a powerful expression ability to query RDF datasets. However, they are difficult to use. Keywords are simple but have a very limited expression ability. Natural language question (NLQ) is promising on querying knowledge graphs. A huge challenge is how to understand the question clearly so as to translate the unstructured question into a structured query. In this paper, we present a data + oracle approach to answer NLQs over knowledge graphs. We let users verify the ambiguities during the query understanding. To reduce the interaction cost, we formalize an interaction problem and design an efficient strategy to solve the problem. We also propose a query prefetch technique by exploiting the latency in the interactions with users. Extensive experiments over the QALD dataset demonstrate that our proposed approach is effective as it outperforms state-of-the-art methods in terms of both precision and recall.

源语言英语
主期刊名CIKM 2017 - Proceedings of the 2017 ACM Conference on Information and Knowledge Management
出版商Association for Computing Machinery
217-226
页数10
ISBN(电子版)9781450349185
DOI
出版状态已出版 - 6 11月 2017
已对外发布
活动26th ACM International Conference on Information and Knowledge Management, CIKM 2017 - Singapore, 新加坡
期限: 6 11月 201710 11月 2017

出版系列

姓名International Conference on Information and Knowledge Management, Proceedings
Part F131841

会议

会议26th ACM International Conference on Information and Knowledge Management, CIKM 2017
国家/地区新加坡
Singapore
时期6/11/1710/11/17

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