集群分析方法支持美国各县改善人口健康
Elizabeth A Pollock1, Ronald E Gangnon, Keith P Gennuso
1Department of Population Health Sciences, University of Wisconsin Population Health Institute, University of Wisconsin-Madison, Madison, Wisconsin (Drs Pollock, Gennuso and Givens); and Department of Population Health Sciences, University of Wisconsin-Madison, Madison, Wisconsin (Dr Gangnon).
集群分析将县分为30个健康类别,从而更好地了解排名不确定性. 这种方法有助于可视化县的表现,并识别同行群体,以获得公共卫生见解.
科学领域:
- 健康研究成果研究结果
- 公共卫生中的统计分析.
- 数据可视化技术数据可视化技术
背景情况:
- 人口健康排名旨在通过突出需要关注的领域来改善健康.
- 排名可能被误解为明确的,掩盖了显著的变化和不确定性.
- 排名不确定性的复杂统计模型对于广大受众来说很难理解.
研究的目的:
- 探索集群分析作为解决排名不准确性的可访问方法.
- 创建易于在数字和视觉上传的数据知情分组.
- 改进对健康结果排名的解释.
主要方法:
- 用瓦瑟斯坦距离对2022年县卫生排名 (CHR) 的健康结果数据进行了K-平均集群.
- 分析包括3082个美国县.
- 目标是识别自然分组和数据分布差距.
主要成果:
- 在全国范围内确定了30个不同的健康分组 (集群),每个集群有9至184个县.
- 州平均有16个集群,根据州大小和人口而有所不同.
- 这种方法减轻了与仅使用排名估计相关的问题.
结论:
- 集群分析提供了一种方法来理解健康结果排名中的不确定性.
- 它可以可视化县级之间的差异和相似之处.
- 公共卫生从业人员可以使用这些分组来比较县的表现与类似的县.
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