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Applying Bayesian updating methods to a new combined lifecycle failure distribution.

机译:将贝叶斯更新方法应用于新的组合生命周期故障分布。

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摘要

Reliability based modeling methods are the cornerstone for optimizing large scale system-of-systems supply chain and prognostics and health management (PHM) models. A new reliability distribution, the CoMBined Lifecycle (CMBL) distribution, arising in practice from systems lifecycle work at Sandia National Laboratories, is presented and evaluated. This bathtub shaped distribution has easily interpretable parameters useful in modeling both older components where significant failure data is readily available or new components where only expert opinion is available. Three methods to update the CMBL distribution when new data becomes available are presented. The first method attempts by-section sequential Bayesian updating, the second uses a Poisson process and employs multiple changepoint modeling, and the third attempts to use the underlying probability functions with multiple changepoint modeling. Since the changepoint models generally require 50 to 100 failure times to provide consistent and reasonably accurate CMBL distribution updates, a data supplementation scheme is explored.
机译:基于可靠性的建模方法是优化大规模系统对系统供应链以及预测和健康管理(PHM)模型的基石。提出并评估了一种新的可靠性分布,即CoMBined Lifecycle(CMBL)分布,该分布实际上是在Sandia国家实验室的系统生命周期工作中产生的。这种浴缸形状的分布具有易于解释的参数,可用于对易于获取重要故障数据的旧组件或仅可提供专家意见的新组件进行建模。提出了三种在新数据可用时更新CMBL分布的方法。第一种方法尝试按部分顺序进行贝叶斯更新,第二种方法使用泊松过程并采用多个变更点建模,第三种方法尝试将基础概率函数与多个变更点建模一起使用。由于更改点模型通常需要50到100个故障时间才能提供一致且合理准确的CMBL分布更新,因此探索了一种数据补充方案。

著录项

  • 作者

    Briand, Daniel.;

  • 作者单位

    The University of New Mexico.;

  • 授予单位 The University of New Mexico.;
  • 学科 Statistics.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 162 p.
  • 总页数 162
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 统计学;
  • 关键词

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