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建成环境特征的分类:三分位数的问题。

Categorisation of built environment characteristics: the trouble with tertiles.

作者信息

Lamb Karen E, White Simon R

机构信息

Centre for Physical Activity and Nutrition Research, Deakin University, Burwood, VIC, 3125, Australia.

Medical Research Council Biostatistics Unit, Cambridge Institute of Public Health, Cambridge, CB2 0SR, UK.

出版信息

Int J Behav Nutr Phys Act. 2015 Feb 15;12:19. doi: 10.1186/s12966-015-0181-9.

Abstract

BACKGROUND

In the analysis of the effect of built environment features on health, it is common for researchers to categorise built environment exposure variables based on arbitrary percentile cut-points, such as median or tertile splits. This arbitrary categorisation leads to a loss of information and a lack of comparability between studies since the choice of cut-point is based on the sample distribution.

DISCUSSION

In this paper, we highlight the various drawbacks of adopting percentile categorisation of exposure variables. Using data from the SocioEconomic Status and Activity in Women (SESAW) study from Melbourne, Australia, we highlight alternative approaches which may be used instead of percentile categorisation in order to assess built environment effects on health. We discuss these approaches using an example which examines the association between the number of accessible supermarkets and body mass index. We show that alternative approaches to percentile categorisation, such as transformations of the exposure variable or factorial polynomials, can be implemented easily using standard statistical software packages. These procedures utilise all of the available information available in the data, avoiding a loss of power as experienced when categorisation is adopted.We argue that researchers should retain all available information by using the continuous exposure, adopting transformations where necessary.

摘要

背景

在分析建成环境特征对健康的影响时,研究人员通常根据任意百分位数切点(如中位数或三分位数划分)对建成环境暴露变量进行分类。这种任意分类会导致信息丢失以及研究之间缺乏可比性,因为切点的选择基于样本分布。

讨论

在本文中,我们强调了采用暴露变量百分位数分类的各种缺点。利用来自澳大利亚墨尔本的女性社会经济地位与活动(SESAW)研究的数据,我们强调了可以用来替代百分位数分类的其他方法,以便评估建成环境对健康的影响。我们用一个考察可及超市数量与体重指数之间关联的例子来讨论这些方法。我们表明,百分位数分类的替代方法,如暴露变量的变换或因子多项式,可以使用标准统计软件包轻松实现。这些程序利用了数据中所有可用信息,避免了采用分类时出现的效能损失。我们认为研究人员应通过使用连续暴露并在必要时进行变换来保留所有可用信息。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5d28/4335683/4acc4fa122f5/12966_2015_181_Fig1_HTML.jpg

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