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评估城市建成环境特征与肥胖之间的因果关系:观察性研究的方法学综述

Evaluating causal relationships between urban built environment characteristics and obesity: a methodological review of observational studies.

作者信息

Martin Adam, Ogilvie David, Suhrcke Marc

机构信息

Health Economics Group and UKCRC Centre for Diet and Activity Research (CEDAR), Norwich Medical School, University of East Anglia, Norwich, UK.

MRC Epidemiology Unit and UKCRC Centre for Diet and Activity Research (CEDAR), University of Cambridge, Cambridge, UK.

出版信息

Int J Behav Nutr Phys Act. 2014 Nov 18;11:142. doi: 10.1186/s12966-014-0142-8.

Abstract

BACKGROUND

Existing reviews identify numerous studies of the relationship between urban built environment characteristics and obesity. These reviews do not generally distinguish between cross-sectional observational studies using single equation analytical techniques and other studies that may support more robust causal inferences. More advanced analytical techniques, including the use of instrumental variables and regression discontinuity designs, can help mitigate biases that arise from differences in observable and unobservable characteristics between intervention and control groups, and may represent a realistic alternative to scarcely-used randomised experiments. This review sought first to identify, and second to compare the results of analyses from, studies using more advanced analytical techniques or study designs.

METHODS

In March 2013, studies of the relationship between urban built environment characteristics and obesity were identified that incorporated (i) more advanced analytical techniques specified in recent UK Medical Research Council guidance on evaluating natural experiments, or (ii) other relevant methodological approaches including randomised experiments, structural equation modelling or fixed effects panel data analysis.

RESULTS

Two randomised experimental studies and twelve observational studies were identified. Within-study comparisons of results, where authors had undertaken at least two analyses using different techniques, indicated that effect sizes were often critically affected by the method employed, and did not support the commonly held view that cross-sectional, single equation analyses systematically overestimate the strength of association.

CONCLUSIONS

Overall, the use of more advanced methods of analysis does not appear necessarily to undermine the observed strength of association between urban built environment characteristics and obesity when compared to more commonly-used cross-sectional, single equation analyses. Given observed differences in the results of studies using different techniques, further consideration should be given to how evidence gathered from studies using different analytical approaches is appraised, compared and aggregated in evidence synthesis.

摘要

背景

现有综述确定了大量关于城市建成环境特征与肥胖之间关系的研究。这些综述通常没有区分使用单方程分析技术的横断面观察性研究和其他可能支持更强有力因果推断的研究。更先进的分析技术,包括使用工具变量和回归断点设计,有助于减轻干预组和对照组之间可观察和不可观察特征差异所产生的偏差,并且可能是几乎未使用的随机实验的现实替代方法。本综述首先旨在识别使用更先进分析技术或研究设计的研究,其次旨在比较这些研究的分析结果。

方法

2013年3月,确定了关于城市建成环境特征与肥胖之间关系的研究,这些研究纳入了(i)英国医学研究委员会近期关于评估自然实验的指南中规定的更先进分析技术,或(ii)其他相关方法,包括随机实验、结构方程建模或固定效应面板数据分析。

结果

确定了两项随机实验研究和十二项观察性研究。在研究中进行了至少两次使用不同技术分析的作者所做的结果内部比较表明,效应大小往往受到所采用方法的严重影响,并且不支持横断面单方程分析系统性高估关联强度这一普遍观点。

结论

总体而言,与更常用的横断面单方程分析相比,使用更先进的分析方法似乎不一定会削弱所观察到的城市建成环境特征与肥胖之间的关联强度。鉴于使用不同技术的研究结果存在差异,应进一步考虑如何在证据综合中评估、比较和汇总从使用不同分析方法的研究中收集的证据。

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