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首页> 外文期刊>Reliability, IEEE Transactions on >Effect of Failure Propagation on Cold vs. Hot Standby Tradeoff in Heterogeneous 1-Out-of- src='/images/tex/235.gif' alt='N'> :G Systems
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Effect of Failure Propagation on Cold vs. Hot Standby Tradeoff in Heterogeneous 1-Out-of- src='/images/tex/235.gif' alt='N'> :G Systems

机译:失效传播对异类1-Out-of- src =“ / images / tex / 235.gif” alt =“ N”> :G系统

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摘要

This paper considers 1-out-of-:G heterogeneous fault-tolerant systems that are designed with a mix of hot and cold standby redundancies to achieve the tradeoff between restoration and operation costs of standby elements. In such systems, the way in which the elements are distributed between hot and cold standby groups and the initiation sequence of all the cold standby elements can greatly affect the system reliability and mission cost. Therefore, it is significant to solve the optimal standby element distributing and sequencing problem (SE-DSP). The failure that occurs in a system element can propagate, causing the outage of other system elements, which complicates the solution to the SE-DSP problem. In this paper, we first propose a numerical method for evaluating the reliability and expected mission cost of 1-out-of-:G systems with mixed hot and cold redundancy types and propagated failures. Two different failure propagation modes are considered: an element failure causing the outage of all the system elements, and an element failure causing the outage of only working or hot standby elements but not cold standby elements. A genetic algorithm is utilized as an optimization tool for solving the formulated SE-DSP problem, leading to a solution that can minimize the expected mission cost of the system while providing a desired level of the system reliability. Effects of the failure propagation probability on the system reliability, expected mission cost, as well as the optimization results are investigated. The suggested methodology can facilitate a reliability-cost tradeoff study of the considered systems, thus assisting in optimal decision making regarding the system's standby policy. Examples are provided for illustrating the considered problem as well as the proposed solution methodology.
机译:本文考虑了“一出即用:G”异构容错系统,该系统设计了热备用和冷备用冗余,以在备用元素的恢复成本和运营成本之间进行权衡。在这样的系统中,在热备用组和冷备用组之间分配元素的方式以及所有冷备用元素的启动顺序都会极大地影响系统可靠性和任务成本。因此,解决最优备用元件分配和排序问题(SE-DSP)具有重要意义。系统元素中发生的故障可能传播,导致其他系统元素中断,从而使SE-DSP问题的解决方案变得复杂。在本文中,我们首先提出一种数值方法,用于评估带有冷热冗余类型和传播故障的1-out-of-G系统的可靠性和预期任务成本。考虑了两种不同的故障传播模式:导致所有系统元素中断的元素故障,以及仅导致工作或热备用元素而不导致冷备用元素中断的元素故障。遗传算法被用作优化工具,用于解决公式化的SE-DSP问题,从而提供了一种解决方案,可以在提供所需级别的系统可靠性的同时,将系统的预期任务成本降至最低。研究了故障传播概率对系统可靠性,预期任务成本以及优化结果的影响。所建议的方法可以促进对所考虑系统的可靠性-成本权衡研究,从而有助于有关系统待机策略的最佳决策。提供的示例用于说明所考虑的问题以及建议的解决方法。

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