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Bayesian Analysis of Step-Stress Accelerated Life Test with Exponential Distribution

机译:指数分布的阶梯应力加速寿命试验的贝叶斯分析

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In this article, we propose a general Bayesian inference approach to the step-stress accelerated life test with type II censoring. We assume that the failure times at each stress level are exponentially distributed and the test units are tested in an increasing order of stress levels. We formulate the prior distribution of the parameters of life-stress function and integrate the engineering knowledge of product failure rate and acceleration factor into the prior. The posterior distribution and the point estimates for the parameters of interest are provided. Through the Markov chain Monte Carlo technique, we demonstrate a nonconjugate prior case using an industrial example. It is shown that with the Bayesian approach, the statistical precision of parameter estimation is improved and, consequently, the required number of failures could be reduced.
机译:在本文中,我们提出了一种通用的贝叶斯推理方法,用于采用II型删失的阶跃应力加速寿命测试。我们假设每个应力水平下的失效时间均呈指数分布,并且测试单元按应力水平的升序进行测试。我们制定了生命压力函数参数的先验分布,并将产品故障率和加速因子的工程知识整合到先验中。提供了感兴趣参数的后验分布和点估计。通过马尔可夫链蒙特卡洛技术,我们使用一个工业示例演示了一个非共轭先验情况。结果表明,利用贝叶斯方法,可以提高参数估计的统计精度,从而可以减少所需的故障次数。

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