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A phase expansion for non-Markovian availability models with time-based aperiodic rejuvenation and checkpointing

机译:具有基于时间的非Markovian可用性模型的相位扩展,具有基于时间的非周期性复兴和检查点

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摘要

This paper presents a stochastic framework, consisting of stochastic reward net (SRN) for capturing the transient behaviors of the system and its related non-Markovian state transition diagram, to model an operational software system that undergoes aperiodic time-based rejuvenation and checkpointing schemes, and further to investigate whether there exists the optimal rejuvenation schedule that maximizes the system steady-state availability. A phase expansion approach is adopted to solve the non-Markovian availability models, which are actually neither the semi-Markov processes nor the Markov regenerative processes. Our numerical results show an appropriate rejuvenation trigger timing range, resulting in the positive improvement effect on the system availability of a database system, and that there exists the optimal rejuvenation trigger timing maximizing the system availability.
机译:本文提出了一种随机奖励网络(SRN),用于捕获系统的瞬态行为及其相关的非马车状态转换图,以模拟经过对非周期性时间的复兴和检查点方案进行的操作软件系统,并进一步调查是否存在最大化系统稳态可用性的最佳复兴计划。采用相位扩展方法来解决非马尔可夫可用性模型,实际上既不是半马尔可夫过程也不是马尔可夫再生过程。我们的数值结果显示了适当的复兴触发定时范围,从而导致对数据库系统的系统可用性的积极提高影响,并且存在最佳的复兴触发时间最大化系统可用性。

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