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EASY ESTIMATION BY A NEW PARAMETERIZATION FOR THE THREE-PARAMETER LOGNORMAL DISTRIBUTION

机译:通过三参数对数正态分布的新参数轻松估计

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摘要

A new parameterization and algorithm are proposed for seeking the primary relative maximum of the likelihood function in the three-parameter lognormal distribution. The parameterization yields the dimension reduction of the three-parameter estimation problem to a two-parameter estimation problem on the basis of an extended lognormal distribution. The algorithm provides the way of seeking the profile of an object function in the two-parameter estimation problem. It is simple and numerically stable because it is constructed on the basis of the bisection method. The profile clearly and easily shows whether a primary relative maximum exists or not, and also gives a primary relative maximum certainly if it exists.
机译:提出了一种新的参数化和算法,用于寻找三参数对数正态分布中似然函数的主要相对最大值。通过扩展对数正态分布,参数化可将三参数估计问题的维数缩减为两参数估计问题。该算法提供了一种在两参数估计问题中寻找目标函数轮廓的方法。它是简单的并且在数值上稳定,因为它是基于对分法构造的。该轮廓清晰,容易地显示出主要相对最大值是否存在,并且可以肯定地给出主要相对最大值(如果存在)。

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