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An Unsupervised Technical Readability Ranking Model by Building a Conceptual Terrain in LSI

机译:通过在LSI构建概念性地形,通过构建无常技术可读性排名模式

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摘要

Searching for domain-specific related information has gained a high popularity in recent years. Naturally, everyone is not at par with each other when it comes to knowledge about the concepts of a domain. A doctor may be well versed in her field of specialization and probably would search for advanced medical documents on the Internet. But she may look for a much simpler material related to Computer Programming. However, current information retrieval (IR) systems just return a mixed set of results based on similarity and popularity of the web pages. Existing methods which have tried to address the issue of matching readers with texts in domain-specific IR either use an ontology or some seed concepts thereby limiting their application in certain domains only. Moreover, readability methods cannot address the issue in domain-specific IR ranking because they fail to give precise prediction when applied on web pages. We address this problem in domain-specific search using a conceptual model where the sequence of the terms in a document is modeled as a connected conceptual terrain. Our model has achieved significant improvement in ranking documents by technical readability.
机译:近年来,寻找具体信息的相关信息已经很高。当然,当涉及到域的概念时,每个人都没有彼此相提并论。医生可以在她的专业领域熟悉,并且可能会在互联网上搜索先进的医疗文件。但她可能会寻找与计算机编程相关的更简单的材料。但是,当前信息检索(IR)系统只返回基于网页的相似性和普及的混合结果。已经尝试解决具有域特定IR中的文本匹配读取器的问题的现有方法使用本体或某些种子概念,从而将其应用限制在某些域中。此外,可读方法无法在特定于域的IR排名中解决问题,因为当在网页上应用时,它们未能提供精确的预测。我们使用概念模型在域的搜索中解决此问题,其中文档中的术语的序列被建模为连接的概念地形。我们的模型通过技术可读性取得了重大改善。

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