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A Fuzzy agent-based model for reduction of bullwhip effect in supply chain systems

机译:基于模糊主体的供应链系统减少牛鞭效应的模型

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摘要

This paper addresses the bullwhip effect in a multi-stage supply chain, where all demands, lead times, and ordering quantities are fuzzy. To simulate the bullwhip effect, a modified Hong Fuzzy Time Series is presented by adding a Genetic Algorithm (GA) module for gaining of a window basis. Next, a back propagation neural network is used for defuzzification. The model can forecast the trends in fuzzy data. Then, an agent-based system is developed to minimize the total cost and to reduce the bullwhip effect in supply chains. The system can suggest the reasonable ordering policies. The results show that the propose system is superior than the previous analytical methods in terms of discovering the best available ordering policies.
机译:本文讨论了多阶段供应链中的牛鞭效应,其中所有需求,交货时间和订购数量都是模糊的。为了模拟牛鞭效应,通过添加遗传算法(GA)模块来获得窗基,提出了改进的Hong Fuzzy时间序列。接下来,将反向传播神经网络用于去模糊化。该模型可以预测模糊数据的趋势。然后,开发了一种基于代理的系统,以最大程度地降低总成本并减少供应链中的牛鞭效应。系统可以建议合理的订购策略。结果表明,提出的系统在发现最佳可用订购策略方面优于以前的分析方法。

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