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Keyword Searches in Data-Centric XML Documents Using Tree Partitioning

Guoliang LIJianhua FENG( )Lizhu ZHOU
Department of Computer Science and Technology, Tsinghua University, Beijing 100084, China
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Abstract

This paper presents an effective keyword search method for data-centric extensive markup language (XML) documents. The method divides an XML document into compact connected integral subtrees, called self-integral trees (SI-Trees), to capture the structural information in the XML document. The SI-Trees are generated based on a schema guide. Meaningful self-integral trees (MSI-Trees) are identified, which contain all or some of the input Keywords for the keyword search in the XML documents. Indexing is used to accelerate the retrieval of MSI-Trees related to the input keywords. The MSI-Trees are ranked to identify the top-k results with the highest ranks. Extensive tests demonstrate that this method costs 10-100 ms to answer a keyword query, and outperforms existing approaches by 1-2 orders of magnitude.

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Tsinghua Science and Technology
Pages 7-18

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Cite this article:
LI G, FENG J, ZHOU L. Keyword Searches in Data-Centric XML Documents Using Tree Partitioning. Tsinghua Science and Technology, 2009, 14(1): 7-18. https://doi.org/10.1016/S1007-0214(09)70002-1

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Received: 26 March 2008
Revised: 09 October 2008
Published: 01 February 2009
© Tsinghua University Press 2009