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Modeling the knowledge-flow view for collaborative knowledge support

机译:为合作知识支持建模知识流视图

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In knowledge-based organizations, workers need task-relevant knowledge and documents to support their task performance. A knowledge flow (KF) represents the flow of an individual's or group members' knowledge-needs and the referencing sequence of documents in the performance of tasks. Through knowledge flows, organizations can provide task-relevant knowledge to workers to fulfill their knowledge-needs. Nevertheless, in a collaborative environment, workers usually have different knowledge-needs in accordance with their individual task functions. Conventional KF models do not provide workers with the different views of a knowledge flow that they require to meet these knowledge-needs. Several researchers have investigated KF models but they did not address the concept of the knowledge-flow view (KFV). This study proposes a theoretical model of the KFV using innovative methods. Basically, a KFV is a virtual knowledge flow derived from a base knowledge flow that abstracts knowledge concepts for individual workers based on their knowledge-needs. The KFV model in this study builds knowledge-flow views by abstracting knowledge nodes in a base knowledge flow to generate corresponding virtual knowledge nodes through an order-preserving approach and a knowledge concept generalization mechanism. The knowledge-flow views not only fulfill workers' different knowledge-needs but also facilitate knowledge support in teamwork.
机译:在基于知识的组织中,员工需要与任务相关的知识和文档以支持他们的任务绩效。知识流(KF)表示个人或小组成员的知识需求流以及执行任务时参考文档的顺序。通过知识流,组织可以为员工提供与任务相关的知识,以满足他们的知识需求。然而,在协作环境中,工人通常根据其各自的任务功能具有不同的知识需求。常规的KF模型无法为工人提供满足这些知识需求所需的知识流的不同视图。一些研究人员已经研究了KF模型,但是他们没有解决知识流视图(KFV)的概念。这项研究提出了使用创新方法的KFV的理论模型。基本上,KFV是从基础知识流派生的虚拟知识流,该基础知识流根据单个工人的知识需求为他们抽象知识概念。本研究中的KFV模型通过将基本知识流中的知识节点抽象化,从而通过保留顺序的方法和知识概念泛化机制来生成相应的虚拟知识节点,从而构建知识流视图。知识流视图不仅可以满足员工的不同知识需求,而且可以促进团队合作中的知识支持。

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