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Parameter Estimation of Incomplete Data in Competing Risks Using the EM Algorithm

机译:EM算法在竞争风险中不完整数据的参数估计

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Consider a system which is made up of multiple components connected in a series. In this case, the failure of the whole system is caused by the earliest failure of any of the components, which is commonly referred to as competing risks. In certain situations, it is observed that the determination of the cause of failure may be expensive, or may be very difficult to observe due to the lack of appropriate diagnostics. Therefore, it might be the case that the failure time is observed, but its corresponding cause of failure is not fully investigated. This is known as masking. Moreover, this competing risks problem is further complicated due to possible censoring. In practice, censoring is very common because of time and cost considerations on experiments. In this paper, we deal with parameter estimation of the incomplete lifetime data in competing risks using the EM algorithm, where incompleteness arises due to censoring and masking. Several studies have been carried out, but parameter estimation for incomplete data has mainly focused on exponential models. We provide the general likelihood method, and the parameter estimation of a variety of models including exponential, s -normal, and lognormal models. This method can be easily implemented to find the MLE of other models. Exponential and lognormal examples are illustrated with parameter estimation, and a graphical technique for checking model validity.
机译:考虑一个由串联连接的多个组件组成的系统。在这种情况下,整个系统的故障是由任何组件的最早故障引起的,通常称为竞争风险。在某些情况下,可以观察到确定失败原因可能是昂贵的,或者由于缺乏适当的诊断程序而可能很难观察到。因此,可能是观察到故障时间的情况,但尚未充分调查其相应的故障原因。这称为遮罩。而且,由于可能的审查,该竞争风险问题更加复杂。在实践中,由于时间和实验费用的考虑,审查是非常普遍的。在本文中,我们使用EM算法处理竞争风险中不完整生命周期数据的参数估计,其中由于检查和掩蔽导致不完整。已经进行了一些研究,但是对于不完整数据的参数估计主要集中在指数模型上。我们提供了一般似然法,以及各种模型的参数估计,包括指数模型,s正态模型和对数正态模型。此方法可以轻松实现,以查找其他模型的MLE。用参数估计和用于检查模型有效性的图形技术说明了指数和对数正态的示例。

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