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Genetic synthesis of production-control systems for unreliable manufacturing systems with variable demands

机译:需求可变的不可靠制造系统的生产控制系统的遗传合成

摘要

The control of manufacturing systems with variable demands has attracted much research attention over the years. However, only limited results have been obtained due to the difficulty of this production-control problem. In this paper, genetically optimized short-run hedging points are used to construct gain-scheduled adaptive controllers for unreliable manufacturing systems with variable demands. The performance of such adaptive controllers is illustrated for unreliable systems subjected to piecewise-constant demands. It is demonstrated that the performance of these adaptive controllers is superior, in general, to that of genetically optimized non-adaptive controllers. However, such gain-scheduled adaptive controllers are designed for variable demands that are piecewise-constant. Therefore, in order to deal with more general classes of variable demands, a genetic rule-induction design methodology is used to synthesize robust fuzzy-logic controllers to provide automatic closed-loop control for unreliable manufacturing systems. Such robust fuzzy-logic controllers are shown to provide effective control for unreliable manufacturing systems with various kinds of variable demands.
机译:多年来,具有可变需求的制造系统的控制引起了很多研究关注。但是,由于该生产控制问题的困难,只能获得有限的结果。在本文中,使用遗传优化的短期套期保值点来构建具有可变需求的不可靠制造系统的增益调度自适应控制器。对于经受分段恒定需求的不可靠系统,说明了这种自适应控制器的性能。事实证明,这些自适应控制器的性能通常优于基因优化的非自适应控制器。然而,这样的增益调度的自适应控制器被设计用于分段恒定的可变需求。因此,为了处理更一般的可变需求类别,遗传规则归纳设计方法用于综合鲁棒的模糊逻辑控制器,以为不可靠的制造系统提供自动闭环控制。此类鲁棒的模糊逻辑控制器显示为具有各种可变需求的不可靠制造系统提供有效控制。

著录项

  • 作者

    Mok PY;

  • 作者单位
  • 年度 2011
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
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