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A Proactive Workflow Model for Healthcare Operation and Management

机译:用于医疗保健运营和管理的主动工作流模型

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Advances in real-time location systems have enabled us to collect massive amounts of fine-grained semantically rich location traces, which provide unparalleled opportunities for understanding human activities and generating useful knowledge. This, in turn, delivers intelligence for real-time decision making in various fields, such as workflow management. Indeed, it is a new paradigm to model workflows through knowledge discovery in location traces. To that end, in this paper, we provide a focused study of workflow modeling by integrated analysis of indoor location traces in the hospital environment. In particular, we develop a workflow modeling framework that automatically constructs the workflow states and estimates the parameters describing the workflow transition patterns. More specifically, we propose effective and efficient regularizations for modeling the indoor location traces as stochastic processes. First, to improve the interpretability of the workflow states, we use the geography relationship between the indoor rooms to define a prior of the workflow state distribution. This prior encourages each workflow state to be a contiguous region in the building. Second, to further improve the modeling performance, we show how to use the correlation between related types of medical devices to reinforce the parameter estimation for multiple workflow models. In comparison with our preliminary work [11] , we not only develop an integrated workflow modeling framework applicable to general indoor environments, but also improve the modeling accuracy significantly. We reduce the average log-loss by up to 11 percent.
机译:实时定位系统的进步使我们能够收集大量细粒度的语义丰富的位置跟踪,这为理解人类活动和产生有用的知识提供了无与伦比的机会。反过来,这可为工作流管理等各个领域的实时决策提供智能。实际上,通过位置跟踪中的知识发现来建模工作流是一种新的范例。为此,在本文中,我们通过对医院环境中的室内位置跟踪进行综合分析,对工作流建模进行了重点研究。特别是,我们开发了一个工作流程建模框架,该框架可自动构建工作流程状态并估计描述工作流程过渡模式的参数。更具体地说,我们提出了将室内位置轨迹建模为随机过程的有效且高效的正则化方法。首先,为了提高工作流程状态的可解释性,我们使用室内房间之间的地理关系来定义工作流程状态分布的先验。该先验鼓励每个工作流状态成为建筑物中的连续区域。其次,为了进一步提高建模性能,我们展示了如何利用相关医疗设备类型之间的相关性来加强针对多个工作流程模型的参数估计。与我们的初步工作[11]相比,我们不仅开发了适用于一般室内环境的集成工作流建模框架,而且还显着提高了建模准确性。我们将平均日志损失降低了11%。

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