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Using Agent-Based Models to Develop Public Policy about Food Behaviours: Future Directions and Recommendations

机译:使用基于主体的模型制定有关食品行为的公共政策:未来的方向和建议

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摘要

Most adults are overweight or obese in many western countries. Several population-level interventions on the physical, economical, political, or sociocultural environment have thus attempted to achieve a healthier weight. These interventions have involved different weight-related behaviours, such as food behaviours. Agent-based models (ABMs) have the potential to help policymakers evaluate food behaviour interventions from a systems perspective. However, fully realizing this potential involves a complex procedure starting with obtaining and analyzing data to populate the model and eventually identifying more efficient cross-sectoral policies. Current procedures for ABMs of food behaviours are mostly rooted in one technique, often ignore the food environment beyond home and work, and underutilize rich datasets. In this paper, we address some of these limitations to better support policymakers through two contributions. First, via a scoping review, we highlight readily available datasets and techniques to deal with these limitations independently. Second, we propose a three steps' process to tackle all limitations together and discuss its use to develop future models for food behaviours. We acknowledge that this integrated process is a leap forward in ABMs. However, this long-term objective is well-worth addressing as it can generate robust findings to effectively inform the design of food behaviour interventions.
机译:在许多西方国家,大多数成年人超重或肥胖。因此,在物理,经济,政治或社会文化环境上的几种人口干预措施都试图达到健康的目的。这些干预措施涉及与体重有关的不同行为,例如饮食行为。基于代理的模型(ABM)有潜力帮助决策者从系统角度评估食品行为干预措施。但是,要完全实现这一潜力,就需要一个复杂的过程,首先要获取和分析数据以填充模型,最后要确定更有效的跨部门政策。当前针对食物行为的ABM的程序大多植根于一种技术,经常忽略家庭和工作以外的食物环境,并且未充分利用丰富的数据集。在本文中,我们通过两个贡献解决了一些局限性,以更好地支持政策制定者。首先,通过范围界定审查,我们重点介绍了易于使用的数据集和技术,可以独立处理这些局限性。其次,我们提出了三个步骤的过程,以共同解决所有局限性,并讨论其在开发未来食品行为模型中的用途。我们承认,这一综合进程是反弹道导弹方面的一项飞跃。但是,这个长期目标值得解决,因为它可以产生可靠的发现,从而有效地指导食品行为干预措施的设计。

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