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    MetaSpider: Meta-Searching and Categorization on the Web

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    Author
    Chen, Hsinchun
    Fan, Haiyan
    Chau, Michael
    Zeng, Daniel
    Issue Date
    2001
    Submitted date
    2004-08-16
    Keywords
    Web Mining
    Internet
    Knowledge Management
    World Wide Web
    Local subject classification
    National Science Digital Library
    NSDL
    Artificial Intelligence lab
    AI lab
    MetaSpider
    
    Metadata
    Show full item record
    Citation
    MetaSpider: Meta-Searching and Categorization on the Web 2001, 52(13):1134-1147 Journal of the American Society for Information Science & Technology
    Publisher
    Wiley Periodicals, Inc
    Journal
    Journal of the American Society for Information Science & Technology
    Description
    Artificial Intelligence Lab, Department of MIS, Univeristy of Arizona
    URI
    http://hdl.handle.net/10150/105331
    Abstract
    It has become increasingly difficult to locate relevant information on the Web, even with the help of Web search engines. Two approaches to addressing the low precision and poor presentation of search results of current search tools are studied: meta-search and document categorization. Meta-search engines improve precision by selecting and integrating search results fromgeneric or domain-specific Web search engines or other resources. Document categorization promises better organization and presentation of retrieved results. This article introduces MetaSpider, a meta-search engine that has real-time indexing and categorizing functions. We report in this paper the major components of MetaSpider and discuss related technical approaches. Initial results of a user evaluation study comparing Meta- Spider, NorthernLight, and MetaCrawler in terms of clustering performance and of time and effort expended show that MetaSpider performed best in precision rate, but disclose no statistically significant differences in recall rate and time requirements. Our experimental study also reveals that MetaSpider exhibited a higher level of automation than the other two systems and facilitated efficient searching by providing the user with an organized, comprehensive view of the retrieved documents.
    Type
    Journal Article (Paginated)
    Language
    en
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