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Applying least square support vector machines in efficient consumer response system

机译:将最小二乘支持向量机应用于高效的消费者响应系统

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The logistics costs in the field of fast moving consumer goods in our country are much higher than those in developed countries, while implementing an efficient consumer response (ECR) system is one of the most effective approaches towards the final solution. To tackle the difficult problem of forecasting the rolling daily sales of one stock keeping unit that is posed in the ECR system, the least square support vector machines are firstly adopted. The least square support vector machine was used in a way that differ from their traditional usage in that corresponding background information and high order reasoning are integrated for the purpose of boosting the prediction performance. The approach presented in the paper is designed for the ECR system between a Shanghai based large dairy corporation and another supermarket chain, and the feasibility of the approach and the performance promotion by integrating background knowledge have been approved by both the experimental simulation and practical running of the ECR system.
机译:我国快速消费品领域的物流成本远高于发达国家,而实施有效的消费者响应(ECR)系统是最终解决方案最有效的方法之一。为了解决预测ECR系统中一个存货单位滚动日销售量的难题,首先采用最小二乘支持向量机。最小二乘支持向量机的使用方式不同于传统用法,因为它集成了相应的背景信息和高阶推理,以提高预测性能。本文提出的方法是为上海一家大型乳品公司与另一家连锁超市之间的ECR系统设计的,该方法的可行性和结合背景知识的性能提升已通过实验模拟和实际运行得到了认可。 ECR系统。

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