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The generalized odd log-logistic family of distributions: properties, regression models and applications

机译:广义奇数对数逻辑分布族:性质,回归模型和应用

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We propose a new class of continuous distributions with two extra shape parameters named the generalized odd log-logistic family of distributions. The proposed family contains as special cases the proportional reversed hazard rate and odd log-logistic classes. Its density function can be expressed as a linear combination of exponentiated densities based on the same baseline distribution. Some of its mathematical properties including ordinary moments, quantile and generating functions, two entropy measures and order statistics are obtained. We derive a power series for the quantile function. We discuss the method of maximum likelihood to estimate the model parameters. We study the behaviour of the estimators by means of Monte Carlo simulations. We introduce the log-odd log-logistic Weibull regression model with censored data based on the odd log-logistic-Weibull distribution. The importance of the new family is illustrated using three real data sets. These applications indicate that this family can provide better fits than other well-known classes of distributions. The beauty and importance of the proposed family lies in its ability to model different types of real data.
机译:我们提出了一种新的具有两个额外形状参数的连续分布类,称为广义奇数对数逻辑分布族。拟议的系列包含特殊情况下的比例反向危险率和奇数对数逻辑分类。它的密度函数可以表示为基于相同基线分布的指数密度的线性组合。获得了它的一些数学特性,包括普通矩,分位数和生成函数,两个熵测度和阶数统计量。我们得出分位数函数的幂级数。我们讨论了最大似然估计模型参数的方法。我们通过蒙特卡洛模拟研究估计器的行为。我们引入了基于奇数对数-logistic-Weibull分布的带删失数据的对数-对数-log-logistic Weibull回归模型。使用三个真实数据集说明了新家族的重要性。这些应用表明,与其他知名的发行类别相比,该家族可以提供更好的拟合。所提议的家族的美丽和重要性在于其能够对不同类型的真实数据进行建模的能力。

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