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Bayesian estimation of a lifetime distribution under double truncation caused by time-restricted data collection

机译:贝叶斯估计时间限制数据收集造成的双截断下的寿命分布

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摘要

We study a type of double truncation where units are observed if and only if their death event occurs within a specific timespan. The resulting missing data mechanism is nonignorable and thus has to be reconsidered. Based on the density function of observed lifetimes and the random sample size, we derive a likelihood model that enables simultaneous estimation of the lifetime distribution and the parameters governing the birth process. In particular, knowledge of the population size is not required. We show that the model is identifiable under certain conditions by using results on exponential families. Bayesian estimators and corresponding standard errors for all involved parameters become available by using MCMC simulation. We describe how the simulation can be performed efficiently while maintaining sufficiently good mixing behaviour of the resulting chains. Both finite-sample and asymptotic properties of the investigated estimators are examined through a simulation study. The proposed method is applied to estimate the lifetime distribution of German companies.
机译:我们研究了一种类型的双截断,如果且仅当他们的死亡事件发生在特定的时间表内时,才会观察到单位。由此产生的缺失的数据机制是不可中知的,因此必须重新考虑。基于观察到的寿命和随机样本大小的密度函数,我们推出了一种似然模型,使能够同时估计寿命分布和管理出生过程的参数。特别是,不需要了解人口规模。我们表明,通过使用指数系列的结果,在某些条件下可识别该模型。贝叶斯估算器和所有涉及参数的相应标准误差都可以使用MCMC仿真可用。我们描述了如何有效地执行模拟,同时保持所得链的足够良好的混合行为。通过模拟研究检查研究估计器的有限样本和渐近性。拟议的方法适用于估计德国公司的寿命分布。

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