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Integrating Community with Collections in Educational Digital Libraries.

机译:在教育数字图书馆中将社区与馆藏整合。

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摘要

Some classes of Internet users have specific information needs and specialized information-seeking behaviors. For example, educators who are designing a course might create a syllabus, recommend books, create lecture slides, and use tools as lecture aid. All of these resources are available online, but are scattered across a large number of websites. Collecting, linking, and presenting the disparate items related to a given course topic within a digital library will help educators in finding quality educational material.;Content quality is important for users. The results of popular search engines typically fail to reflect community input regarding quality of the content. To disseminate information related to the quality of available resources, users need a common place to meet and share their experiences. Online communities can support knowledge-sharing practices (e.g., reviews, ratings).;We focus on finding the information needs of educators and helping users to identify potentially useful resources within an educational digital library. This research builds upon the existing 5S digital library (DL) framework. We extend core DL services (e.g., index, search, browse) to include information from latent user groups. We propose a formal definition for the next generation of educational digital libraries. We extend one aspect of this definition to study methods that incorporate collective knowledge within the DL framework. We introduce the concept of deduced social network (DSN) - a network that uses navigation history to deduce connections that are prevalent in an educational digital library. Knowledge gained from the DSN can be used to tailor DL services so as to guide users through the vast information space of educational digital libraries. As our testing ground, we use the AlgoViz and Ensemble portals, both of which have large collections of educational resources and seek to support online communities. We developed two applications, ranking of search results and recommendation, that use the information derived from DSNs. The revised ranking system incorporates social trends into the system, whereas the recommendation system assigns users to a specific group for content recommendation. Both applications show enhanced performance when DSN-derived information is incorporated.;This work received support from the National Science Foundation under Grant Numbers DUE- 0836940, DUE-0937863, and DUE-0840719.
机译:某些类别的Internet用户具有特定的信息需求和特殊的信息搜索行为。例如,正在设计课程的教育者可能会创建一个课程提纲,推荐书籍,创建演讲幻灯片并将工具用作演讲帮助。所有这些资源都可以在线获得,但是分散在大量的网站上。在数字图书馆中收集,链接和呈现与给定课程主题相关的不同项目,将有助于教育工作者找到优质的教学材料。内容质量对用户很重要。流行搜索引擎的结果通常无法反映社区对内容质量的意见。为了传播与可用资源质量有关的信息,用户需要一个公共场所来聚会和分享他们的经验。在线社区可以支持知识共享的做法(例如,评论,评分)。;我们专注于发现教育者的信息需求,并帮助用户在教育数字图书馆中识别潜在有用的资源。这项研究建立在现有的5S数字图书馆(DL)框架的基础上。我们扩展了核心DL服务(例如索引,搜索,浏览),以包含来自潜在用户组的信息。我们为下一代教育数字图书馆提出正式定义。我们将该定义的一个方面扩展为研究将集体知识纳入DL框架的方法。我们介绍了演绎社交网络(DSN)的概念-借助导航历史来推断教育数字图书馆中普遍存在的连接的网络。从DSN获得的知识可用于量身定制DL服务,从而引导用户穿越教育数字图书馆的广阔信息空间。作为我们的测试基地,我们使用AlgoViz和Ensemble门户,这两个门户都有大量的教育资源,并寻求支持在线社区。我们开发了两个应用程序,使用从DSN派生的信息搜索结果和推荐。修订后的排名系统将社交趋势整合到系统中,而推荐系统则将用户分配到特定的组中进行内容推荐。当合并了DSN衍生的信息时,两个应用程序都显示出增强的性能。这项工作获得了美国国家科学基金会的支持,授权号为DUE-0836940,DUE-0937863和DUE-0840719。

著录项

  • 作者

    Akbar, Monika.;

  • 作者单位

    Virginia Polytechnic Institute and State University.;

  • 授予单位 Virginia Polytechnic Institute and State University.;
  • 学科 Computer Science.;Information Technology.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 138 p.
  • 总页数 138
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:41:44

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