Moving from descriptive to causal analytics: case study of discovering knowledge from us health indicators warehouse

J. Schryver, M. Shankar, Songhua Xu
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引用次数: 2

Abstract

The knowledge management community has introduced a multitude of methods for knowledge discovery on large datasets. In the context of public health intelligence, we integrated and incorporated some of these methods into an analyst's workflow that proceeds from the data-centric descriptive level of analysis to the model-centric causal level of reasoning. We show several case studies of the proposed analyst's workflow as applied to the US Health Indicators Warehouse (HIW), which is a medium scale, public dataset regarding community health information as collected by the US federal government. In our case studies, we demonstrate a series of visual analytics efforts targeted at the HIW, including visual analysis according to correlation matrices, multivariate outlier analysis, multiple linear regression of Medicare costs, confirmatory factor analysis, and hybrid scatterplot and heatmap visualization for distributions of a group of health indicators. We conclude by sketching a preliminary framework for examining causal dependence hypotheses for future data science research in public health.
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从描述分析到因果分析:从美国健康指标仓库发现知识的案例研究
知识管理社区已经为大型数据集的知识发现引入了大量的方法。在公共卫生情报的背景下,我们将其中的一些方法集成到分析人员的工作流程中,从以数据为中心的描述性分析级别到以模型为中心的因果推理级别。我们展示了几个应用于美国健康指标仓库(HIW)的拟议分析师工作流程的案例研究,HIW是由美国联邦政府收集的关于社区健康信息的中等规模公共数据集。在我们的案例研究中,我们展示了一系列针对HIW的可视化分析,包括根据相关矩阵的可视化分析、多变量离群分析、医疗保险成本的多元线性回归、验证性因素分析,以及一组健康指标分布的混合散点图和热图可视化。最后,我们概述了一个初步框架,用于检查未来公共卫生数据科学研究的因果关系假设。
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