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A comparison of different least-squares methods for reliability of Weibull distribution based on right censored data

机译:基于右审查数据的威布尔分布可靠性的不同规范方法比较

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The linear least-squares method has been applied to Weibull distribution for analysing the reliability, and the exact confidence intervals for Weibull parameters can be constructed from both Type-I and Type-II censored data. However, this method changes the shape of theoretical linear fit and estimates are highly biased for heavily censored data. Therefore, the nonlinear method (NLLSM) and transformation-based least-squares methods (TBLSM) are proposed in the literature. In this paper, I address confidence intervals for Weibull parameters based on the two methods and discuss the reliability and remaining lifetime with the right censored data. I propose the exact confidence intervals from pivotal quantities for the Weibull parameters based on NSLLM and approximate ones based on TBLLM. Further, different methods are compared through a Monte Carlo simulation study. Finally, these methods are applied to a data set as an illustrative example.
机译:线性最小二乘法已经应用于Weibull分布以分析可靠性,并且可以从IIBull参数的确切置信区间隔由Type-I和II型删除数据构成。然而,该方法改变了理论线性拟合的形状,并且估计高度偏置,用于严重缩短的数据。因此,在文献中提出了非线性方法(NILLSM)和基于转换的最小二乘法(TBLSM)。在本文中,我根据两种方法解决了威布尔参数的置信区间,并讨论了具有正确审查数据的可靠性和剩余寿命。我提出了基于基于TBLLM的NSLLM和近似枢轴参数的枢转数量的确切置信区间。此外,通过蒙特卡罗模拟研究进行比较不同的方法。最后,这些方法应用于作为说明性示例的数据集。

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