使用现场故障数据的稳态可用性估计

R. M. Fricks, M. Ketcham
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引用次数: 6

摘要

介绍了一种利用现场故障数据计算与稳态可用性估计相关的置信限的新技术。所提出的累积停机时间分布(CDD)方法基于系统累积停机时间样本均值分布的统计特性,实现了一个简单但功能强大的可用性推断过程。与更传统的估计方法相比,这种新方法的另一个优点是,它没有对观察系统的寿命或修复分布的时间进行假设。建立了一个仿真模型,比较了CDD方法和传统的两态等效(TSE)方法计算的置信限的覆盖概率。模拟运行用于支持用CDD方法确定的置信区间似乎是精确的。另一方面,使用TSE方法确定的置信区间似乎只是近似的。此外,CDD方法被证明为其他统计推断程序(如假设检验)的应用提供了一个很好的框架。我们未来的研究打算使用更复杂的系统模型和更详尽的仿真实验来验证CDD方法的质量。我们还希望验证应用于具有不同成熟度级别的已部署系统的算法行为。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Steady-state availability estimation using field failure data
This paper introduces a novel technique for computing confidence limits associated with steady-state availability estimation using field failure data. The proposed cumulative downtime distribution (CDD) method implements a simple, though powerful, availability inference procedure based on the statistical properties of the distribution of sample means of the cumulative system outage time. Another advantage of this new approach over more traditional estimation methods is that it makes no assumptions regarding the lifetime or time to repair distributions of the system under observation. A simulation model was developed to compare the coverage probability of the confidence limits computed using the CDD method and the more traditional two-state equivalent (TSE) method. Simulation runs are used to support that confidence intervals determined with the CDD method seem to be exact. On the other hand, confidence intervals determined using the TSE method seem to be only approximated. Additionally, the CDD method was shown to provide an excellent framework for the application of other statistical inference procedures such as hypothesis testing. Our future research intends to verify the quality of the CDD method using more complex system models and more exhaustive simulation experiments. We also want to verify the algorithm behavior applied to deployed systems with different maturity levels.
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