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最佳医生共享患者网络与医疗技术的传播。

Optimal Physician Shared-Patient Networks and the Diffusion of Medical Technologies.

作者信息

O'Malley A James, Ran Xin, An Chuankai, Rockmore Daniel

机构信息

Department of Biomedical Data Science and The Dartmouth Institute for Health Policy and Clinical Practice, Geisel School of Medicine at Dartmouth, Lebanon, NH 03756, USA.

Department of Biomedical Data Science, The Dartmouth Institute for Health Policy and Clinical Practice, and the Program in Quantitative Biomedical Sciences, Geisel School of Medicine at Dartmouth, Lebanon, NH 03756, USA.

出版信息

J Data Sci. 2023 Jul;21(3):578-598. doi: 10.6339/22-jds1064. Epub 2022 Aug 30.

Abstract

Social network analysis has created a productive framework for the analysis of the histories of patient-physician interactions and physician collaboration. Notable is the construction of networks based on the data of "referral paths" - sequences of patient-specific temporally linked physician visits - in this case, culled from a large set of Medicare claims data in the United States. Network constructions depend on a range of choices regarding the underlying data. In this paper we introduce the use of a five-factor experiment that produces 80 distinct projections of the bipartite patient-physician mixing matrix to a unipartite physician network derived from the referral path data, which is further analyzed at the level of the 2,219 hospitals in the final analytic sample. We summarize the networks of physicians within a given hospital using a range of directed and undirected network features (quantities that summarize structural properties of the network such as its size, density, and reciprocity). The different projections and their underlying factors are evaluated in terms of the heterogeneity of the network features across the hospitals. We also evaluate the projections relative to their ability to improve the predictive accuracy of a model estimating a hospital's adoption of implantable cardiac defibrillators, a novel cardiac intervention. Because it optimizes the knowledge learned about the overall and interactive effects of the factors, we anticipate that the factorial design setting for network analysis may be useful more generally as a methodological advance in network analysis.

摘要

社会网络分析为分析患者与医生互动的历史以及医生合作创造了一个富有成效的框架。值得注意的是,基于“转诊路径”数据构建网络——特定患者在时间上相连的医生就诊序列——在这种情况下,这些数据是从美国大量的医疗保险理赔数据中筛选出来的。网络构建取决于关于基础数据的一系列选择。在本文中,我们介绍了一种五因素实验的应用,该实验产生了二分患者 - 医生混合矩阵到从转诊路径数据派生的单分医生网络的80个不同投影,并在最终分析样本中的2219家医院层面进行了进一步分析。我们使用一系列有向和无向网络特征(总结网络结构属性的量,如大小、密度和互惠性)来总结给定医院内医生的网络。根据各医院网络特征的异质性评估不同的投影及其潜在因素。我们还根据它们提高估计医院采用植入式心脏除颤器(一种新型心脏干预措施)模型预测准确性的能力来评估这些投影。由于它优化了关于因素的整体和交互作用所学到的知识,我们预计网络分析的析因设计设置作为网络分析中的一种方法进步可能更广泛地有用。

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