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首页> 外文期刊>Statistical methods in medical research >Likelihood inference for COM-Poisson cure rate model with interval-censored data and Weibull lifetimes
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Likelihood inference for COM-Poisson cure rate model with interval-censored data and Weibull lifetimes

机译:具有间隔禁用数据和Weibull寿命的Com-Poisson治愈率模型的可能性推断

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>In this paper, we consider a competing cause scenario and assume the number of competing causes to follow a Conway–Maxwell Poisson distribution which can capture both over and under dispersion that is usually encountered in discrete data. Assuming the population of interest having a component cure and the form of the data to be interval censored, as opposed to the usually considered right-censored data, the main contribution is in developing the steps of the expectation maximization algorithm for the determination of the maximum likelihood estimates of the model parameters of the flexible Conway–Maxwell Poisson cure rate model with Weibull lifetimes. An extensive Monte Carlo simulation study is carried out to demonstrate the performance of the proposed estimation method. Model discrimination within the Conway–Maxwell Poisson distribution is addressed using the likelihood ratio test and information-based criteria to select a suitable competing cause distribution that provides the best fit to the data. A simulation study is also carried out to demonstrate the loss in efficiency when selecting an improper competing cause distribution which justifies the use of a flexible family of distributions for the number of competing causes. Finally, the proposed methodology and the flexibility of the Conway–Maxwell Poisson distribution are illustrated with two known data sets from the literature: smoking cessation data and breast cosmesis data.
机译:在本文中,我们考虑竞争的原因情景,并假设遵循Conway-Maxwell Poisson分布的竞争原因的数量,该泊松分布可以在离散数据中通常遇到的。假设具有组件治愈的感兴趣群体和数据的形式被禁止被审查,而不是通常被认为是正确的审查数据,主要贡献正在开发期望最大化算法的步骤,以确定最大值Weibull寿命柔性Conway-Maxwell Poisson治愈率模型模型参数的似然估计。进行了一个广泛的蒙特卡罗模拟研究,以证明所提出的估计方法的性能。使用似然比测试和基于信息的标准来解决Conway-Maxwell泊松分布内的模型歧视,以选择合适的竞争原因分布,为数据提供最适合数据。还进行了模拟研究,以展示在选择不正确的竞争原因分布时效率的损失,这证明了竞争原因的次数使用灵活的分布系列。最后,拟议的方法和康沃尔韦尔韦尔泊松分布的灵活性用来自文献的两个已知的数据集进行了说明:吸烟数据和乳房彩妆数据。

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