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A new approach for parameter estimation of finite Weibull mixture distributions for reliability modeling

机译:有限Weibull混合分布参数估计的可靠性建模新方法

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The aim of this paper is to model lifetime data for systems that have failure modes by using the finite mixture of Weibull distributions. It involves estimating of the unknown parameters which is an important task in statistics, especially in life testing and reliability analysis. The proposed approach depends on different methods that will be used to develop the estimates such as NILE through the EM algorithm. In addition, Bayesian estimations will be investigated and some other extensions such as Graphic, Non-Linear Median Rank Regression and Monte Carlo simulation methods can be used to model the system under consideration. A numerical application will be used through the proposed approach. This paper also presents a comparison of the fitted probability density functions, reliability functions and hazard functions of the 3-parameter Weibull and Weibull mixture distributions using the proposed approach and other conventional methods which characterize the distribution of failure times for the system components. GOF is used to determine the best distribution for modeling lifetime data, the priority will be for the proposed approach which has more accurate parameter estimates.
机译:本文的目的是通过使用Weibull分布的有限混合对具有故障模式的系统的寿命数据进行建模。它涉及估计未知参数,这是统计工作中的重要任务,尤其是在寿命测试和可靠性分析中。所提出的方法取决于将用于通过EM算法开发估计值的不同方法,例如NILE。此外,将调查贝叶斯估计,并且可以使用其他一些扩展,例如图形,非线性中位数秩回归和蒙特卡洛模拟方法来对所考虑的系统进行建模。通过提出的方法将使用数值应用程序。本文还提出了使用建议的方法和表征系统组件故障时间分布的其他常规方法对三参数Weibull和Weibull混合分布的拟合概率密度函数,可靠性函数和危害函数的比较。 GOF用于确定建模寿命数据的最佳分布,将优先考虑所建议的方法,该方法具有更准确的参数估计。

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