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Accounting for Temporal Demand Variations in Retail Location Models

机译:在零售区位模型中考虑时间需求变化

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This article develops and calibrates a spatial interaction model (SIM) incorporating additional temporal characteristics of consumer demand for the U.K. grocery market. SIMs have been routinely used by the retail sector for location modeling and revenue prediction and have a good record of success, especially in the supermarket/hypermarket sector. However, greater planning controls and a more competitive trading environment in recent years has forced retailers to look to new markets. This has meant a greater focus on the convenience market which creates new challenges for retail location models. In this article, we present a custom built SIM for the grocery market in West Yorkshire incorporating trading and consumer data provided by a major U.K. retailer. We show that this model works well for supermarkets and hypermarkets but poorly for convenience stores. We then build a series of new demand layers taking into account the spatial distributions of demand at the time of day that consumers are likely to use grocery stores. These new demand layers include workplace populations, university student populations and secondary school children. When these demand layers are added to the models, we see a very promising increase in the accuracy of the revenue forecasts.
机译:本文开发并校准了一个空间交互模型(SIM),该模型结合了英国食品杂货市场上消费者需求的其他时间特征。零售部门通常使用SIM卡进行位置建模和收入预测,并且在成功方面有良好的记录,尤其是在超级市场/大型超市领域。但是,近年来,更严格的计划控制和更具竞争性的贸易环境迫使零售商不得不转向新市场。这意味着更加关注便利市场,这给零售场所模型带来了新的挑战。在本文中,我们为西约克郡的杂货市场提供了一个定制的SIM卡,其中包含了英国一家主要零售商提供的交易和消费者数据。我们表明,此模型对超市和大卖场有效,但对便利店却效果不佳。然后,我们会考虑消费者在一天之内可能会使用杂货店的需求的空间分布,来构建一系列新的需求层。这些新的需求层包括工作场所人口,大学生人口和中学生。将这些需求层添加到模型中后,我们会看到收入预测的准确性非常有希望的提高。

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