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A Bayes Inference for Step-Stress Accelerated Life Testing

机译:贝叶斯推论继力加速寿命测试

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In this article, we present a Bayesian analysis with convex tent priors for step-stress accelerated life testing (SSALT) using a proportional hazard (PH) model. As flexible as the cumulative exposure (CE) model in fitting step-stress data and its attractive mathematical properties, the PH model makes Bayesian inference much more accessible than the CE model. Two sampling methods through Markov chain Monte Carlo algorithms are employed for posterior inference of parameters. The performance of the methodology is investigated using both simulated and real data sets.
机译:在本文中,我们使用比例危害(pH)模型来展示凸起的凸起的帐篷前沿与凸起的帐篷前导者(Ssalt)。 作为拟合阶梯压力数据的累积曝光(CE)模型的灵活性及其有吸引力的数学特性,pH模型使贝叶斯推理比CE模型更可访问。 通过马尔可夫链蒙特卡罗算法的两种采样方法用于参数的后部推理。 使用模拟和真实数据集来研究方法的性能。

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