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Comparison Study on General Methods for Modeling Lifetime Data with Covariates

机译:用协变量建模寿命数据的一般方法的比较研究

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Lifetime data with covariates (e.g., temperature, humidity, and electric current) are frequently seen in science and engineering. An important example is accelerated life testing (ALT) data. In ALT, test units of a product are exposing to severer-than-normal conditions to expedite product failure. The resulting lifetime and/or censoring data with covariates are often modeled by a probability distribution along with a life-stress relationship. However, if the probability distribution and the life-stress relationship selected cannot adequately describe the underlying failure process, the resulting reliability prediction will be misleading. This paper develops a new method for modeling lifetime data with covariates using phase-type (PH) distributions and a general life-stress relationship formulation. A numerical study is presented to compare the performance of this method with a mixture of Weibull distributions model. This general method creates a new direction for modeling and analyzing lifetime data with covariates for situations where the data-generating mechanisms are unknown or difficult to analyze using existing parametric ALT models and statistical tools.
机译:科学和工程中经常看到具有协变量的终身数据(例如,温度,湿度和电流)。一个重要的例子是加速生命测试(ALT)数据。在ALT中,产品的测试单元暴露于更严重的状态,以加快产品故障。由Covariates的产生的寿命和/或审查数据通常由概率分布和生命应力关系建模。然而,如果所选择的概率分布和生命应力关系不能充分描述潜在的失败过程,则产生的可靠性预测将是误导性的。本文开发了一种新方法,用于使用相型(pH)分布和一般寿命关系配方使用协变量和一般的寿命关系制定来建立寿命数据。提出了一种数值研究以比较这种方法的性能与威布尔分布模型的混合。这种方法一般用于在数据产生的机制是未知的或很难用现有的参数ALT模型和统计工具来分析形势建模和分析寿命与协数据创建了一个新的方向。

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