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Personalizing entity detection and recommendation with a fusion of web log mining techniques

机译:结合Web日志挖掘技术,个性化实体检测和推荐

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Given the proliferation of technology sites and the growing diversity of their readership, readers are more and more likely to encounter specialized language and terminology that they may lack the sufficient background to understand. Such sites may lose readership and the experience of readers may be impacted negatively if readers cannot quickly and easily find information about terms they wish to learn more about. We developed a system using a fusion of web log mining techniques that extracts, identifies, and recommends personalized terms to readers by utilizing information found in individual and global web query logs. In addition, the system presents relevant information related to these terms inline with the text. Our system outperforms some other related systems developed in the literature with special regard to usability.
机译:鉴于技术站点的激增以及读者群的不断增加,读者越来越有可能遇到他们缺乏足够的背景知识来理解的专门语言和术语。如果读者无法快速,轻松地找到有关他们希望学习的术语的信息,则此类网站可能会失去读者的兴趣,并可能对读者的体验造成负面影响。我们开发了一种使用Web日志挖掘技术融合的系统,该系统通过利用在单个和全局Web查询日志中找到的信息来提取,标识并向读者推荐个性化术语。另外,系统在文本中内嵌与这些术语有关的相关信息。在可用性方面,我们的系统优于其他文献中开发的其他相关系统。

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