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Reliability optimization of series-parallel systems with a choice of redundancy strategies using a genetic algorithm

机译:使用遗传算法选择冗余策略的串并联系统的可靠性优化

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This paper proposes a genetic algorithm (GA) for a redundancy allocation problem for the series-parallel system when the redundancy strategy can be chosen for individual subsystems. Majority of the solution methods for the general redundancy allocation problems assume that the redundancy strategy for each subsystem is predetermined and fixed. In general, active redundancy has received more attention in the past. However, in practice both active and cold-standby redundancies may be used within a particular system design and the choice of the redundancy strategy becomes an additional decision variable. Thus, the problem is to select the best redundancy strategy, component, and redundancy level for each subsystem in order to maximize the system reliability under system-level constraints. This belongs to the NP-hard class of problems. Due to its complexity, it is so difficult to optimally solve such a problem by using traditional optimization tools. It is demonstrated in this paper that GA is an efficient method for solving this type of problems. Finally, computational results for a typical scenario are presented and the robustness of the proposed algorithm is discussed.
机译:针对单个子系统可以选择冗余策略的情况,提出了一种遗传算法(GA),解决了串并联系统的冗余分配问题。对于一般冗余分配问题,大多数解决方案方法都假定每个子系统的冗余策略都是预先确定和固定的。通常,主动冗余在过去已受到更多关注。但是,在实践中,可以在特定系统设计中同时使用活动和冷备用冗余,并且冗余策略的选择将成为附加的决策变量。因此,问题是为每个子系统选择最佳的冗余策略,组件和冗余级别,以便在系统级约束下最大化系统可靠性。这属于NP难问题类别。由于其复杂性,因此很难通过使用传统的优化工具来最佳地解决该问题。本文证明了遗传算法是解决此类问题的有效方法。最后,给出了典型场景的计算结果,并讨论了所提算法的鲁棒性。

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