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Task-stage knowledge support: coupling user information needs with stage identification

机译:任务阶段知识支持:将用户信息需求与阶段标识结合在一起

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Effective knowledge support in knowledge-intensive environments can place great demands on information filtering (IF) strategies. An IF system that relies on traditional information retrieval technology and user models (e.g., user profiles) is regarded as an effective approach for supporting long-term information needs. To provide a more effective knowledge support, we propose a task-stage knowledge support model that incorporates the advantages of the traditional IF model with the characteristics of each task-stage. A correlation analysis method is proposed to determine a worker's task-stage (e.g., pre-focus, focus formulation, and post-focus task stages), and an ontology-based topic discovery method is proposed to examine the variety of a worker's information needs for specific topics. Consequently, the knowledge support is achieved by coupling user information needs with task-stage identification.
机译:在知识密集型环境中的有效知识支持可能对信息过滤(IF)策略提出很高的要求。依赖于传统信息检索技术和用户模型(例如,用户配置文件)的IF系统被认为是支持长期信息需求的有效方法。为了提供更有效的知识支持,我们提出了一个任务阶段知识支持模型,该模型结合了传统IF模型的优势和每个任务阶段的特征。提出了一种相关分析方法来确定工人的任务阶段(例如,焦点前,焦点制定和焦点后任务阶段),并提出了一种基于本体的主题发现方法来检查工人信息需求的多样性对于特定主题。因此,知识支持是通过将用户信息需求与任务阶段标识相结合来实现的。

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