Benefit–Cost Analysis of Social Media Facilitated Bystander Programs

IF 2 4区 经济学 Q2 ECONOMICS Journal of Benefit-Cost Analysis Pub Date : 2021-02-10 DOI:10.1017/bca.2020.34
A. Ebers, Stephan L. Thomsen
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引用次数: 2

Abstract

Abstract Bystander programs contribute to crime prevention by motivating people to intervene in violent situations. Social media allow addressing very specific target groups, and provide valuable information for program evaluation. This paper provides a conceptual framework for conducting benefit–cost analysis of bystander programs and puts a particular focus on the use of social media for program dissemination and data collection. The benefit–cost model treats publicly funded programs as investment projects and calculates the benefit–cost ratio. Program benefit arises from the damages avoided by preventing violent crime. We provide systematic instructions for estimating this benefit. The explained estimation techniques draw on social media data, machine-learning technology, randomized controlled trials and discrete choice experiments. In addition, we introduce a complementary approach with benefits calculated from the public attention generated by the program. To estimate the value of public attention, the approach uses the bid landscaping method, which originates from display advertising. The presented approaches offer the tools to implement a benefit–costs analysis in practice. The growing importance of social media for the dissemination of policy programs requires new evaluation methods. By providing two such methods, this paper contributes to evidence-based decision-making in a growing policy area.
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社会媒体辅助旁观者项目的收益-成本分析
旁观者计划通过激励人们干预暴力情况,有助于预防犯罪。社交媒体允许针对非常具体的目标群体,并为项目评估提供有价值的信息。本文提供了对旁观者项目进行效益-成本分析的概念框架,并特别关注使用社交媒体进行项目传播和数据收集。收益-成本模型将公共资助项目视为投资项目,并计算收益-成本比。项目效益来源于预防暴力犯罪所避免的损害。我们提供了系统的说明来评估这种益处。所解释的估计技术利用了社交媒体数据、机器学习技术、随机对照试验和离散选择实验。此外,我们还引入了一种补充方法,通过该计划产生的公众关注来计算收益。为了估计公众关注的价值,该方法使用了竞价美化法,该方法起源于展示广告。所提出的方法为在实践中实施效益-成本分析提供了工具。社会媒体对政策项目传播的重要性日益增加,需要新的评估方法。通过提供两种这样的方法,本文为日益增长的政策领域的循证决策做出了贡献。
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来源期刊
CiteScore
5.30
自引率
2.90%
发文量
22
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