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Managing food security through food waste and loss: Small data to big data

机译:通过粮食浪费和损失来管理粮食安全:从小数据到大数据

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This paper provides a management perspective of organisational factors that contributes to the reduction of food waste through the application of design science principles to explore causal relationships between food distribution (organisational) and consumption (societal) factors. Qualitative data were collected with an organisational perspective from commercial food consumers along with large-scale food importers, distributors, and retailers. Cause-effect models are built and "what-if simulations are conducted through the development and application of a Fuzzy Cognitive Map (FCM) approaches to elucidate dynamic interrelationships. The simulation models developed provide a practical insight into existing and emergent food losses scenarios, suggesting the need for big data sets to allow for generalizable findings to be extrapolated from a more detailed quantitative exercise. This research offers itself as evidence to support policy makers in the development of policies that facilitate interventions to reduce food losses. It also contributes to the literature through sustaining, impacting and potentially improving levels of food security, underpinned by empirically constructed policy models that identify potential behavioural changes. It is the extension of these simulation models set against a backdrop of a proposed big data framework for food security, where this study sets avenues for future research for others to design and construct big data research in food supply chains. This research has therefore sought to provide policymakers with a means to evaluate new and existing policies, whilst also offering a practical basis through which food chains can be made more resilient through the consideration of management practices and policy decisions. (C) 2017 The Author(s). Published by Elsevier Ltd.
机译:本文提供了组织因素的管理视角,这些因素通过应用设计科学原理探索食物分配(组织)和消费(社会)因素之间的因果关系,有助于减少食物浪费。从组织的角度从商业食品消费者以及大型食品进口商,分销商和零售商收集定性数据。建立了因果模型,“通过开发和应用模糊认知图(FCM)方法阐明动态相互关系,进行了假设模拟。所开发的模拟模型提供了对现有和紧急粮食损失情景的实用见解,这表明需要大数据集以便从更详细的定量研究中推断出可推广的发现,这项研究本身为支持政策制定者制定有助于减少粮食损失的干预措施的政策提供了证据,也为文献提供了帮助通过维持,影响和潜在地改善粮食安全水平,并以建立有经验的政策模型为基础,这些模型可以识别潜在的行为变化,这是在拟议的粮食安全大数据框架背景下建立的这些模拟模型的扩展未来研究的途径,供他人设计d开展食品供应链中的大数据研究。因此,这项研究试图为决策者提供一种评估新政策和现有政策的方法,同时也为通过考虑管理实践和政策决策而使食物链更具弹性提供了实用的基础。 (C)2017作者。由Elsevier Ltd.发布

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