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Gray Relation Analysis And Multilayer Functional Link Network Sales Forecasting Model For Perishable Food In Convenience Store

机译:便利店易腐食品的灰色关联分析和多层功能链接网络销售预测模型

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摘要

In managing convenience store, making the right decision in placing a balanced order is a critical job that can enhance the competition of the corporation, especially in perishable food. In this study, the GMFLN forecasting model integrates Gray relation analysis (GRA) which sieves out the more influential factors from raw data then transforms them as the input data in the multilayer functional link network model to provide the more accurate forecasting results to support the decisions. The proposed system evaluated the real data, which are provided by famous franchise company, and the experimental results indicated the GMFLN model outperforms than other different time series forecasting models, i.e. the moving average model, ARIMA model and GARCH model in MAD and THEIL indexes.
机译:在管理便利店时,做出正确的决定来保持均衡的订单是一项至关重要的工作,可以增强公司的竞争能力,尤其是在易腐食品方面。在这项研究中,GMFLN预测模型集成了灰色关联分析(GRA),该模型从原始数据中筛选出更具影响力的因素,然后将其转换为多层功能链接网络模型中的输入数据,以提供更准确的预测结果以支持决策。提出的系统对由著名特许公司提供的真实数据进行了评估,实验结果表明GMFLN模型优于MAD和THEIL指标中的移动平均模型,ARIMA模型和GARCH模型等其他不同的时间序列预测模型。

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