Studying social determinants of health using fuzzy-set Qualitative Comparative Analysis: A worked example

定性比较分析 自治 不平等 社会不平等 婴儿死亡率 健康的社会决定因素 人口 死亡率 儿童死亡率 人口学 集合(抽象数据类型) 社会学 人口经济学 计量经济学 经济 经济增长 政治学 统计 医疗保健 数学 计算机科学 数学分析 程序设计语言 法学
作者
Lauri Kokkinen
出处
期刊:Social Science & Medicine [Elsevier]
卷期号:309: 115241-115241 被引量:4
标识
DOI:10.1016/j.socscimed.2022.115241
摘要

Using fuzzy-set Qualitative Comparative Analysis (fsQCA), we present an alternative method for studying the social determinants of health (SDHs) that focuses on their configurational paths leading to population health outcomes. In our worked example, we examine the macrosocial determinants of infant mortality based on data covering 149 countries. First, we applied regression techniques to assess the net effects of key macrosocial determinants. Second, we used fsQCA to analyze the same data and identify the configurational paths. We calibrated the macrosocial determinants in terms of both advantages and disadvantages and revealed the configurations of (dis)advantages consistently linked to high infant mortality rates and low infant mortality rates. The regression analysis showed that the net effects of national economic performance, democracy level, inequality, and women's autonomy were all statistically significant. Together, they explained 83% of the variance in infant mortality rates between countries. Following the fuzzy-set analysis, the two main configurational paths to achieve low infant mortality rates were high women's autonomy together with high economic performance and high women's autonomy together with low inequality and full democracy. The main paths that left countries burdened with high infant mortality rates were low economic performance together with either low women's autonomy or high inequality. We conclude that different SDH configurations may lead to the same health outcomes. Therefore, it may not always be sufficient to say which variables matter the most universally, and by using fsQCA, it is possible to move from treating SDHs as competing independent variables to using them in configurations to explain health outcomes.
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