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Heterogeneous 1-Out-of-N Warm Standby Systems With Dynamic Uneven Backups

机译:具有动态不均衡备份的异构N外热备份系统

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In this paper, mission reliability, expected mission completion time, and cost of non-repairable 1-out-of-: G warm standby sparing systems subject to uneven backup actions are modeled and optimized. The backup actions are used to facilitate the data recovery process in the case of an online operating element failure, which enables an activated standby element to take over the mission task through subsequent data retrievals. Both data backup and retrieval times are dynamic, and physically dependent on the amount of work performed. The system elements are not necessarily identical; each element can be characterized by a different time-to-failure distribution, a different performance, and a different level of readiness to take over the system task during the warm standby mode. An iterative numerical method is first proposed to simultaneously evaluate mission reliability, expected mission completion time, and the cost of the considered heterogeneous warm standby systems. Due to the non-monotonic effect of the backup distribution on the mission reliability, time, and cost, we formulate and solve the optimal backup distribution problem considering different combinations of optimization objectives and constraints. In the case of system elements being non-identical, their activation order can influence the mission reliability, expected mission completion time, and mission cost significantly. Therefore, we also formulate and solve the optimal element sequencing problem for the considered system. Furthermore, new integrated optimization problems are formulated and addressed. The integrated optimization aims to identify the optimal combination of backup distribution and element activation order that maximizes the mission reliability, or minimizes the expected mission time or mission cost. As shown through examples, the proposed methodology can implement a tradeoff analysis among the three mission requirement- of reliability, cost, and completion time, leading to the optimal decision on both backup and standby policies of warm standby systems.
机译:在本文中,建模和优化了受制于不均匀备份动作的不可修复的1-G备用热备用系统的任务可靠性,预期任务完成时间和成本。备份操作用于在在线操作元件出现故障的情况下促进数据恢复过程,这使激活的备用元件可以通过后续数据检索来接管任务任务。数据备份和检索时间都是动态的,并且在物理上取决于执行的工作量。系统元素不一定相同。每个元素的特征在于不同的故障时间分布,不同的性能以及在热备份模式下接管系统任务的就绪程度。首先提出了一种迭代数值方法来同时评估任务的可靠性,预期的任务完成时间以及所考虑的异构热备用系统的成本。由于后勤分配对任务可靠性,时间和成本的非单调影响,我们考虑优化目标和约束的不同组合来制定和解决最优后勤分配问题。如果系统元素不相同,则它们的激活顺序会显着影响任务的可靠性,预期的任务完成时间和任务成本。因此,我们还针对所考虑的系统制定并解决了最优元素排序问题。此外,提出并解决了新的集成优化问题。集成优化旨在确定备用分配和元素激活顺序的最佳组合,以最大程度地提高任务可靠性或最小化预期任务时间或任务成本。如通过示例所示,所提出的方法可以在可靠性,成本和完成时间这三个任务要求之间进行权衡分析,从而导致对热备用系统的备用和备用策略均做出最佳决策。

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