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首页> 外文期刊>International Journal of Production Research >A multi-criteria adaptive control scheme based on neural networks and fuzzy inference for DRC manufacturing systems
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A multi-criteria adaptive control scheme based on neural networks and fuzzy inference for DRC manufacturing systems

机译:基于神经网络和模糊推理的DRC制造系统多准则自适应控制方案

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摘要

Manufacturing systems are uncertain and dynamic systems, hence, they require real-time scheduling to adapt to changing manufacturing conditions. Current real-time scheduling approaches have been devised mainly for machine-only constrained systems, in which the shop capacity is constrained only by machine capacity, rather than for dual resource constrained (DRC) systems, in which the shop capacity is constrained by machine and worker capacity. In particular, there is no study on DRC system scheduling in which the 'where' and 'when' worker assignment rules, basic features of DRC systems, are altered in real-time (dynamically selected) to respond to new manufacturing conditions. Besides, multi-criteria DRC system scheduling has not yet been addressed extensively. Also, there has been little research on the interactions of dynamically selected job dispatching, worker assignment and job routing rules, which have a significant impact on DRC system performance. This paper proposes a multi-criteria realtime scheduling methodology for DRC systems to address these issues, and investigates these interactions. The methodology employs artificial neural networks as meta-models to reduce computational complexity and a fuzzy inference system to cope with multiple performance criteria. Various simulation experiments demonstrate that the methodology provides satisfactory results for real-time DRC systems scheduling.
机译:制造系统是不确定的动态系统,因此,它们需要实时调度以适应不断变化的制造条件。当前的实时调度方法主要是针对仅受机器限制的系统而设计的,其中车间能力仅受机器能力的限制,而不是针对双重资源受约束的(DRC)系统,其中车间能力受机器和设备的限制。工人的能力。尤其是,没有关于DRC系统调度的研究,在该调度中,实时(动态选择)更改了“位置”和“何时”工人分配规则(DRC系统的基本特征)以响应新的制造条件。此外,多准则DRC系统调度尚未得到广泛解决。此外,对动态选择的作业调度,工作人员分配和作业路由规则之间的相互作用的研究很少,这对DRC系统的性能有重大影响。本文针对DRC系统提出了一种多准则实时调度方法来解决这些问题,并研究了这些相互作用。该方法采用人工神经网络作为元模型以降低计算复杂度,并采用模糊推理系统来应对多种性能标准。各种仿真实验表明,该方法为实时DRC系统调度提供了令人满意的结果。

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