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Improving the Cost Structure of Sensemaking Tasks: Analysing User Concepts to Inform Information System Design

机译:提高感知任务的成本结构:分析用户概念以通知信息系统设计

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In many everyday contexts people interact with information systems in order to make sense of a domain of interest. However, what this means and how it can best be supported are poorly understood. In particular, there has been little research on how to develop system representations that simplify naturally occurring sense making processes by matching people's conceptualizations of the domain. In this paper we draw on Klein et al.'s data-frame theory and Russell at al's notion of cost-structures in sensemaking to propose an approach to understanding sensemaking that supports reasoning about system requirements. The two key elements of the approach are the identification of the process and the transformational steps within that process that could benefit from support to reduce costs, and the identification of primary concepts which are cued by information in the context of a given sensemaking task and domain, and around which users integrate information to form a structured understanding. Our general principle is that by understanding a sensemaking transformation in terms of its source data and the integrating structures it creates, one is better able to anticipate the evolving information needs that it tends to invoke. We test this approach with a case study of fraud investigation performed by a team of lawyers and forensic accountants and consider how to support the elaboration of prototypical user-frames once they have been invoked.
机译:在许多日常环境中,人们与信息系统互动,以便了解感兴趣的领域。但是,这意味着什么以及如何最好地支持它很差。特别是,如何通过匹配人们对域的概念化来开发系统表示如何开发系统表示来开发系统表示。在本文中,我们借鉴了Klein等人。的数据框架理论和罗素在AL的意愿成本结构的概念中,提出了一种了解对系统要求推理推理的感觉制作的方法。该方法的两个关键要素是该过程中的过程和变革步骤的识别,该过程可以受益于支持降低成本,以及在给定的Sensemaking任务和域的上下文中被信息判断的主要概念以及用户整合信息以形成结构化理解。我们的一般原则是,通过了解其源数据和它创造的集成结构方面的传感转型,更好地预测它倾向于调用的不断发展的信息。我们用律师和法医会计师团队执行的欺诈调查的案例研究,并考虑如何支持一旦调用了原型用户框架的欺诈调查。

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