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Activity Based Metadata for Semantic Desktop Search

机译:基于活动的元数据用于语义桌面搜索

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摘要

With increasing storage capacities on current PCs, searching the World Wide Web has ironically become more efficient than searching one's own personal computer. The recently introduced desktop search engines are a first step towards coping with this problem, but not yet a satisfying solution. The reason for that is that desktop search-is actually quite different from its web counterpart. Documents on the desktop are not linked to each other in a way comparable to the web, which means that result ranking is poor or even inexistent, because algorithms like PageRank cannot be used for desktop search. On the other hand, desktop search could potentially profit from a lot of implicit and explicit semantic information available in emails, folder hierarchies, browser cache contexts and others. This paper investigates how to extract and store these activity based context information explicitly as RDF metadata and how to use them, as well as additional background information and ontologies, to enhance desktop search.
机译:随着当前PC上存储容量的增加,具有讽刺意味的是,搜索互联网比搜索自己的个人计算机变得更加高效。最近推出的桌面搜索引擎是解决此问题的第一步,但还不是令人满意的解决方案。这样做的原因是桌面搜索实际上与Web搜索完全不同。桌面上的文档没有以类似于Web的方式相互链接,这意味着结果排名很低,甚至根本不存在,因为PageRank之类的算法无法用于桌面搜索。另一方面,桌面搜索可能会从电子邮件,文件夹层次结构,浏览器缓存上下文等中可用的大量隐式和显式语义信息中受益。本文研究如何将这些基于活动的上下文信息显式地提取和存储为RDF元数据,以及如何使用它们以及其他背景信息和本体来增强桌面搜索。

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