The use of Bayesian networks for realist evaluation of complex interventions: evidence for prevention of human trafficking

被引:0
|
作者
Ligia Kiss
David Fotheringhame
Joelle Mak
Alys McAlpine
Cathy Zimmerman
机构
[1] University College London,Institute of Global Health
[2] London School of Hygiene and Tropical Medicine,Gender Violence and Health Center
来源
Journal of Computational Social Science | 2021年 / 4卷
关键词
Complex systems; Realist evaluation; Bayesian network; Human trafficking; Forced labour; Nepal;
D O I
暂无
中图分类号
学科分类号
摘要
Complex systems and realist evaluation offer promising approaches for evaluating social interventions. These approaches take into account the complex interplay among factors to produce outcomes, instead of attempting to isolate single causes of observed effects. This paper explores the use of Bayesian networks (BNs) in realist evaluation of interventions to prevent complex social problems. It draws on the example of the theory-based evaluation of the Work in Freedom Programme (WIF), a large UK-funded anti-trafficking intervention by the International Labour Organisation in South Asia. We used BN to explore causal pathways to human trafficking using data from 519 Nepalese returnee migrants. The findings suggest that risks of trafficking are mostly determined by migrants’ destination country, how they are recruited and in which sector they work. These findings challenge widely held assumptions about individual-level vulnerability and emphasize that future investments will benefit from approaches that recognise the complexity of an intervention’s causal mechanisms in social contexts. BNs are a useful approach for the conceptualisation, design and evaluation of complex social interventions.
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页码:25 / 48
页数:23
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