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Abnormal Situation Management in a Refinery Supply Chain Supported by an Agent-Based Simulation Model

机译:基于代理的仿真模型支持的炼油厂供应链中的异常情况管理

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Oil refineries are of high importance for global economic health and energy supply; any disruptions to their operations may have major worldwide impact. In this paper the application of an agent-based refinery supply chain model to abnormal situation management is described. Agents represent the various decision makers in the supply chain. They own, operate and manage the elements of the physical network of the supply chain. A disruption in ship arrival is used to illustrate the applicability of the decision support system. The decision support system derives a suitable course of action for a given situation based on the outcomes of a number of simulation runs according to the Nelder-Mead zero-order optimization method. This method is based on identification of the best, the worst, and the second worst outcomes in each iteration for the pre-defined experiment. It can be concluded that the decision support system can interact with multiple actors in the supply chain to diagnose and compensate for unanticipated disruptions, with a substantial impact on refinery productivity.
机译:炼油厂对全球经济健康和能源供应具有很高的重要性;他们的运营中的任何中断都可能在全球范围内产生重大影响。在本文中,描述了代理的炼油厂供应链模型在异常情况管理中的应用。代理商代表供应链中的各种决策者。它们拥有,操作和管理供应链物理网络的元素。船舶到达中断用于说明决策支持系统的适用性。根据Nelder-Mead零阶优化方法,决策支持系统根据许多模拟结果导出给定情况的适当行动方案。该方法基于对预定实验的每次迭代中最好的,最糟糕的和第二最差结果的识别。可以得出结论,决策支持系统可以与供应链中的多个演员相互作用,以诊断和弥补意外的中断,并对炼油厂生产力产生重大影响。

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