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贝叶斯中断时间序列框架评估政策变化对心理健康的影响:以英格兰福利改革为例。

A Bayesian Interrupted Time Series framework for evaluating policy change on mental well-being: An application to England's welfare reform.

机构信息

MRC Centre for Environment and Health, Department of Epidemiology and Biostatistics, School of Medicine, Imperial College London, London, UK.

Division of Psychiatry, University College London, Psylife Group, London, UK.

出版信息

Spat Spatiotemporal Epidemiol. 2024 Aug;50:100662. doi: 10.1016/j.sste.2024.100662. Epub 2024 Jun 11.

Abstract

Factors contributing to social inequalities are associated with negative mental health outcomes and disparities in mental well-being. We propose a Bayesian hierarchical controlled interrupted time series to evaluate the impact of policies on population well-being whilst accounting for spatial and temporal patterns. Using data from the UKs Household Longitudinal Study, we apply this framework to evaluate the impact of the UKs welfare reform implemented in the 2010s on the mental health of the participants, measured using the GHQ-12 index. Our findings indicate that the reform led to a 2.36% (95% CrI: 0.57%-4.37%) increase in the national GHQ-12 index in the exposed group, after adjustment for the control group. Moreover, the geographical areas that experienced the largest increase in the GHQ-12 index are from more disadvantage backgrounds than affluent backgrounds.

摘要

导致社会不平等的因素与负面心理健康结果和心理健康差距有关。我们提出了一个贝叶斯层次控制中断时间序列,以评估政策对人口福祉的影响,同时考虑空间和时间模式。使用来自英国家庭纵向研究的数据,我们应用这一框架来评估英国 2010 年代实施的福利改革对参与者心理健康的影响,使用 GHQ-12 指数进行衡量。我们的研究结果表明,在调整对照组后,改革导致暴露组的全国 GHQ-12 指数增加了 2.36%(95%置信区间:0.57%-4.37%)。此外,经历 GHQ-12 指数最大增长的地理区域比富裕背景的地区更处于不利地位。

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