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A network-based method with privacy-preserving for identifying influential providers in large healthcare service systems

机译:一种基于网络的方法,具有隐私保留,用于识别大型医疗保健服务系统中的有影响性提供者

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In data science, networks provide a useful abstraction of the structure of many complex systems, ranging from social systems and computer networks to biological networks and physical systems. Healthcare service systems are one of the main social systems that can also be understood using network-based approaches, for example, to identify and evaluate influential providers. In this paper, we propose a network-based method with privacy-preserving for identifying influential providers in large healthcare service systems. First, the provider-interacting network is constructed by employing publicly available information on locations and types of healthcare services of providers. Second, the ranking of nodes in the generated provider-interacting network is conducted in parallel on the basis of four nodal influence metrics. Third, the impact of the top-ranked influential nodes in the provider-interacting network is evaluated using three indicators. Compared with other research work based on patient-sharing networks, in this paper, the provider-interacting network of healthcare service providers can be roughly created according to the locations and the publicly available types of healthcare services, without the need for personally private electronic medical claims, thus protecting the privacy of patients. The proposed method is demonstrated by employing PhysicianandOtherSupplierDataCY2017, and can be applied to other similar datasets to help make decisions for the optimization of healthcare resources in the response to public health emergencies.
机译:在数据科学中,网络提供了许多复杂系统结构的有用抽象,从社会系统和计算机网络到生物网络和物理系统。医疗保健服务系统是主要的社交系统之一,也可以使用基于网络的方法理解,例如,识别和评估有影响的提供者。在本文中,我们提出了一种基于网络的方法,具有隐私保留,用于识别大型医疗保健服务系统中的有影响力提供商。首先,通过在提供者的位置和医疗服务的医疗服务类型的公共可用信息来构建提供商交互网络。其次,基于四个节点影响度量,并行地进行生成的提供商交互网络中的节点的排名。第三,使用三个指示器评估提供者交互网络中的排名有影响性节点的影响。与基于患者共享网络的其他研究工作相比,在本文中,保健服务提供商的提供商交互网络可以根据位置和公开的医疗服务类型粗略创建,而无需个人私人电子医疗索赔,从而保护患者的隐私。通过采用物理师范普普尔达拉特2017来证明所提出的方法,可以应用于其他类似数据集,以帮助做出对对公共卫生紧急情况的回应中的医疗资源的决策。

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