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首页> 外文期刊>Journal of Mechanical Science and Technology >A Bayesian optimal design for degradation tests based on the inverse Gaussian process
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A Bayesian optimal design for degradation tests based on the inverse Gaussian process

机译:基于逆高斯过程的贝叶斯退化测试最优设计

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The inverse Gaussian process is recently introduced as an attractive and flexible stochastic process for degradation modeling. This process has been demonstrated as a valuable complement for models that are developed on the basis of the Wiener and gamma processes. We investigate the optimal design of the degradation tests on the basis of the inverse Gaussian process. In addition to an optimal design with pre-estimated planning values of model parameters, we also address the issue of uncertainty in the planning values by using the Bayesian method. An average pre-posterior variance of reliability is used as the optimization criterion. A trade-off between sample size and number of degradation observations is investigated in the degradation test planning. The effects of priors on the optimal designs and on the value of prior information are also investigated and quantified. The degradation test planning of a GaAs Laser device is performed to demonstrate the proposed method.
机译:高斯逆过程最近被引入作为一种有吸引力且灵活的随机过程,用于降级建模。该过程已被证明是对基于Wiener和伽马过程开发的模型的宝贵补充。我们在逆高斯过程的基础上研究了退化测试的最佳设计。除了具有预先估计的模型参数计划值的最优设计外,我们还使用贝叶斯方法解决计划值的不确定性问题。可靠性的前后平均方差被用作优化标准。在退化测试计划中研究了样本数量与退化观察次数之间的权衡。先验对最佳设计和先验信息价值的影响也得到了调查和量化。进行了GaAs激光器器件的退化测试计划,以证明所提出的方法。

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