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Agent-based modelling and heuristic approach for solving complex OEM flow-shop productions under customer disruptions

机译:基于代理的建模和启发式方法可在客户中断的情况下解决复杂的OEM流水车间生产

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摘要

The application of the agent-based simulation approach in the flow-shop production environment has recently gained popularity among researchers. The concept of agent and agent functions can help to automate a variety of difficult tasks and assist decision-making in flow-shop production. This is especially so in the large-scale Original Equipment Manufacturing (OEM) industry, which is associated with many uncertainties. Among these are uncertainties in customer demand requirements that create disruptions that impact production planning and scheduling, hence, making it difficult to satisfy demand in due time, in the right order delivery sequence, and in the right item quantities. It is however important to devise means of adapting to these inevitable disruptive problems by accommodating them while minimising the impact on production performance and customer satisfaction.In this paper, an innovative embedded agent-based Production Disruption Inventory-Replenishment (PDIR) framework, which includes a novel adaptive heuristic algorithm and inventory replenishment strategy which is proposed to tackle the disruption problems. The capabilities and functionalities of agents are utilised to simulate the flow-shop production environment and aid learning and decision making. In practice, the proposed approach is implemented through a set of experiments conducted as a case study of an automobile parts facility for a real life large-scale OEM. The results are presented in term of Key Performance Indicators (CPIs), such as the number of late/unsatisfied orders, to determine the effectiveness of the proposed approach. The results reveal a minimum number of late/unsatisfied orders, when compared with other approaches.
机译:基于代理的模拟方法在流水车间生产环境中的应用近来在研究人员中越来越受欢迎。代理和代理功能的概念可以帮助自动化各种困难的任务,并有助于流水车间生产中的决策。在大规模原始设备制造(OEM)行业中尤其如此,这会带来很多不确定性。其中包括客户需求需求的不确定性,这些不确定性会造成影响生产计划和进度的中断,因此,很难在适当的时间,正确的订单交付顺序和正确的项目数量上满足需求。然而,重要的是设计一种适应这些不可避免的破坏性问题的方法,以适应这些问题,同时最大程度地降低对生产绩效和客户满意度的影响。提出了一种新颖的自适应启发式算法和库存补给策略来解决干扰问题。代理的功能和功能可用来模拟流水车间的生产环境,并有助于学习和决策。实际上,所提出的方法是通过一系列实验来实现的,该实验是针对现实生活中的大型OEM的汽车零部件设施的案例研究。结果以关键绩效指标(CPI)的形式显示,例如延迟/不满意的订单数,以确定所建议方法的有效性。结果表明,与其他方法相比,延迟/未满足的订单数量最少。

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