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Towards Incomplete SPARQL Query in RDF Question Answering - A Semantic Completion Approach

Published: 20 April 2020 Publication History

Abstract

RDF question/answering(Q/A) system allows users to ask questions in natural language on a knowledge base represented by RDF and retrieve answers. A common problem in RDF Q/A is that existing works tend to translate a natural language question into an incomplete SPARQL query, which means that SPARQL queries may not fully understand user’s ideas. For example, some triple patterns may be missing in the question translation stage. In this poster, we first present a siamese adaptation of the Long Short-Term Memory(LSTM) network to detect whether the SPARQL query generated by the RDF Q/A system is complete. Then, for incomplete queries, we propose a Markov-based method to supplement SPARQL queries. Finally, we compare our approach with some state-of-the-art RDF Q/A systems in the benchmark dataset. Extensive experiments confirm that our method improves the precision significantly.

References

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[2] Yih W., Chang M, He X., Gao J.: Semantic parsing via staged query graph generation: Question answering with knowledge base. ACL(1)2015, pp.1321–1331.
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[3] Bast H., Haussmann E.: More Accurate Question Answering on Freebase. In Proc. of CIKM 2015, pp.1431–1440.
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[4] Zou L., Huang R., Wang H., Yu J.X.,He W., Zhao D.: Natural language question answering over RDF - A graph data driven approach. In Proc. of SIGMOD 2014, pp.313–324.

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            cover image ACM Conferences
            WWW '20: Companion Proceedings of the Web Conference 2020
            April 2020
            854 pages
            ISBN:9781450370240
            DOI:10.1145/3366424
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            New York, NY, United States

            Publication History

            Published: 20 April 2020

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            Author Tags

            1. LSTM
            2. Question Answering
            3. RDF
            4. Siamese Neural Networks

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            WWW '20
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            WWW '20: The Web Conference 2020
            April 20 - 24, 2020
            Taipei, Taiwan

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            Overall Acceptance Rate 1,899 of 8,196 submissions, 23%

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