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Statistical Reasoning and Methods in Epidemiology to Promote Individualized Health: In Celebration of the 100th Anniversary of the Johns Hopkins Bloomberg School of Public Health

机译:流行病学中促进个人健康的统计推理和方法:庆祝约翰·霍普金斯·彭博公共卫生学院诞辰100周年

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摘要

Epidemiology is concerned with determining the distribution and causes of disease. Throughout its history, epidemiology has drawn upon statistical ideas and methods to achieve its aims. Because of the exponential growth in our capacity to measure and analyze data on the underlying processes that define each person's state of health, there is an emerging opportunity for population-based epidemiologic studies to influence health decisions made by individuals in ways that take into account the individuals' characteristics, circumstances, and preferences. We refer to this endeavor as "individualized health." The present article comprises 2 sections. In the first, we describe how graphical, longitudinal, and hierarchical models can inform the project of individualized health. We propose a simple graphical model for informing individual health decisions using population-based data. In the second, we review selected topics in causal inference that we believe to be particularly useful for individualized health. Epidemiology and biostatistics were 2 of the 4 founding departments in the world's first graduate school of public health at Johns Hopkins University, the centennial of which we honor. This survey of a small part of the literature is intended to demonstrate that the 2 fields remain just as inextricably linked today as they were 100 years ago.
机译:流行病学与确定疾病的分布和原因有关。在其整个历史中,流行病学一直依靠统计思想和方法来实现其目标。由于我们测量和分析定义每个人健康状况的基本过程数据的能力呈指数增长,因此基于人群的流行病学研究有一个新兴机会,可以通过考虑到以下因素来影响个人做出的健康决定:个人的特征,环境和偏好。我们称这种努力为“个性化的健康”。本文分为两个部分。在第一篇中,我们描述了图形,纵向和分层模型如何为项目提供个性化的健康信息。我们提出了一个简单的图形模型,用于使用基于人群的数据来告知个人健康决策。在第二篇文章中,我们回顾了因果推论中选定的主题,我们认为这些主题对于个性化健康特别有用。流行病学和生物统计学是约翰·霍普金斯大学全球第一所公共卫生研究生院的4个创始系中的2个,我们谨以此纪念成立一百周年。这项对一小部分文献的调查旨在表明,这两个领域在今天与100年前一样有着千丝万缕的联系。

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