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Automated Document Ranking Evaluation in Digital Libraries

机译:数字图书馆中的自动文档排名评估

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摘要

The construction of Automated Digital Libraries has grabbed widespread popularity over recent years, rendering the value added services that suit to the tailored user requirements. In this context, carrying out traditional searches over text material by querying upon a given metadata or a set of domain keywords is predominantly observe, not to retrieve the relevant documents, although these end up in huge list of results containing query terms. In the present communication, the search is deviated from explicitly borrowed Metadata search to the context oriented search triggered from implicitly available Ontologies of the considered subject domain. The proposal is hereby analyzed to be most fruitful for Relevant Information Retrieval by User Communities, i.e. by those group of people who share common interests and benefit by their own accessed information. It is further emphasized that the search terms contributing to the background knowledge, can be implicitly made available from the collection of documents, which only need to be selectively defined, studying the User profiles of the search communities. The authors visualize this work as a tool to precisely rank the prescribed courseware material for Academic Digital Libraries.
机译:近年来,自动化数字图书馆的建设获得了广泛的欢迎,使增值服务适合了定制的用户需求。在这种情况下,主要观察到通过查询给定的元数据或一组域关键字对文本材料进行传统搜索,而不是检索相关文档,尽管这些最终导致包含查询词的庞大结果列表。在本通信中,搜索从显式借用的元数据搜索转向从考虑的主题域的隐式可用本体触发的面向上下文的搜索。据此,分析该提案对于用户社区(即,那些拥有共同利益并通过自己访问的信息受益的人)进行相关信息检索最为有效。还需要强调的是,可以通过研究搜索社区的用户配置文件从文档的集合中隐含地提供有助于背景知识的搜索词。作者将这项工作可视化为一种工具,可以为学术数字图书馆精确排名规定的课件材料。

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