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Optimal observation and preventive maintenance schedules for partially observed multi-state deterioration systems with obvious failures.

机译:对于具有明显故障的部分观测的多状态退化系统的最佳观测和预防性维护计划。

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摘要

We investigate a maintenance optimization problem with condition-monitoring. Condition-monitoring allows the decision maker to observe some wear-related variable throughout a system's lifetime to more accurately determine its degree of deterioration. We determine when these observations, and subsequent preventive maintenance actions, should be performed to minimize long run average cost per unit time for multi-state deterioration systems with obvious failures.; Simplifying assumptions are made to provide an introductory “Problem 1” that examines the task of scheduling perfect observations for 2-phase systems. We model this problem as a stochastic dynamic program and present cost rate minimizing policies, as well as satisfying policies, that determine how to efficiently allocate observation resources to a 2-phase system. Our solution approach is based on operating characteristics, which facilitate the exploration of the tradeoff between observation costs and maintenance costs. We also compare a fixed-interval observation policy to a variable-interval policy and consider a method for allocating scarce monitoring resources among a collection of 2-phase systems.; The more general “Problem 2” examines the problem of adaptively scheduling imperfect observations and preventive maintenance actions for a multi-state Markovian deterioration system. The observations do not reveal the deterioration level with certainty, but are probabilistically related to the deterioration level. Solving such problems can be computationally intensive, and the resulting policies can be complex and irregular. Furthermore, establishing structural results for problems with imperfect information can be difficult. For these reasons, we investigate the underlying structural properties of the analogous “no observations” and “perfect observations” policies and then adjust them for use in the “imperfect observations” case. We model all three of these cases as partially observed Markov decision processes (POMDP's) and provide numerical examples of optimal solutions for each case. A cost-effective heuristic policy for the “imperfect observations” case is developed and preliminary performance results for three heuristic methods are presented. The use of operating characteristics to represent policy performance is also discussed.
机译:我们使用状态监视调查维护优化问题。状态监视使决策者可以在系统的整个生命周期中观察一些与磨损相关的变量,以更准确地确定其退化程度。我们确定何时应该执行这些观察以及随后的预防性维护措施,以使具有明显故障的多状态退化系统的长期平均每单位时间的成本降至最低。进行了简化的假设,以提供介绍性的“问题1”,以检查为2相系统安排理想观测的任务。我们将此问题建模为随机动态程序,并提出了成本率最小化策略以及令人满意的策略,这些策略决定了如何有效地将观测资源分配给两阶段系统。我们的解决方案基于操作特性,这有助于探索观察成本与维护成本之间的折衷。我们还比较了固定间隔观察策略和可变间隔策略,并考虑了一种在两相系统集合之间分配稀缺监视资源的方法。更为通用的“问题2”探讨了针对多状态马尔可夫退化系统自适应地安排不完善的观测值和预防性维护措施的问题。这些观察结果不能确定地揭示出恶化水平,但与恶化水平有概率相关性。解决此类问题可能需要大量计算,并且所产生的策略可能是复杂且不规则的。此外,难以确定信息不完善的问题的结构结果。由于这些原因,我们研究了类似的“无观察”和“完美观察”策略的基本结构属性,然后对其进行调整以用于“不完美观察”情况。我们将所有这三种情况建模为部分观察到的马尔可夫决策过程(POMDP),并为每种情况提供了最佳解决方案的数值示例。针对“不完美观察”的情况,制定了一种具有成本效益的启发式策略,并提出了三种启发式方法的初步性能结果。还讨论了使用运营特征来代表政策绩效。

著录项

  • 作者

    Maillart, Lisa Marie.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Operations Research.; Engineering Industrial.
  • 学位 Ph.D.
  • 年度 2001
  • 页码 139 p.
  • 总页数 139
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 运筹学;一般工业技术;
  • 关键词

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