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首页> 外文期刊>Journal of Scientific Research and Reports >Mixture Model of the Exponential, Gamma and Weibull Distributions to Analyse Heterogeneous Survival Data
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Mixture Model of the Exponential, Gamma and Weibull Distributions to Analyse Heterogeneous Survival Data

机译:指数,伽玛和威布尔分布的混合模型以分析异构生存数据

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Aims: In this study a survival mixture model of three components is considered to analyse survival data of heterogeneous nature. The survival mixture model is of the Exponential, Gamma and Weibull distributions.Methodology: The proposed model was investigated and the Maximum Likelihood (ML) estimators of the parameters of the model were evaluated by the application of the Expectation Maximization Algorithm (EM). Graphs, log likelihood (LL) and the Akaike Information Criterion (AIC) were used to compare the proposed model with the pure classical parametric survival models corresponding to each component using real survival data. The model was compared with the survival mixture models corresponding to each component. Results: The graphs, LL and AIC values showed that the proposed model fits the real data better than the pure classical survival models corresponding to each component. Also the proposed model fits the real data better than the survival mixture models corresponding to each component.Conclusion: The proposed model showed that survival mixture models are flexible and maintain the features of the pure classical survival model and are better option for modelling heterogeneous survival data.
机译:目的:在这项研究中,考虑了三个组成部分的生存混合模型来分析异构性质的生存数据。生存混合模型具有指数分布,伽马分布和威布尔分布。方法:对提出的模型进行了研究,并使用期望最大化算法(EM)评估了模型参数的最大似然(ML)估计量。使用图,对数似然(LL)和Akaike信息准则(AIC)将提出的模型与使用真实生存数据对应于每个组件的纯经典参数生存模型进行比较。将模型与对应于每个组件的生存混合物模型进行比较。结果:图形,LL和AIC值表明,与对应于每个组件的纯经典生存模型相比,所提出的模型更适合真实数据。结论:该模型表明生存混合模型具有灵活性,并能保持纯经典生存模型的特征,是建模异质生存数据的较好选择。 。

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