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Estimating the Parameters of the Generalized Lambda Distribution: Which Method Performs Best?

机译:估计广义Lambda分布的参数:哪种方法效果最佳?

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Generalized lambda distribution (GLD) is a flexible distribution that can represent a wide variety of distributional shapes. This property of the GLD has made it very popular in simulation input modeling in recent years, and several fitting methods for estimating the parameters of the GLD have been proposed. Nevertheless, there appears to be a lack of insights about the performances of these fitting methods in estimating the parameters of the GLD for a variety of distributional shapes and input data. Our primary goal in this article is to compare the goodness-of-fits of the popular fitting methods in estimating the parameters of the GLD introduced in Freimer etal. (1988), i.e., Freimer-Mudholkar-Kollia-Lin (FMKL) GLD, and provide guidelines to the simulation practitioner about when to use each method. We further describe the use of the genetic algorithm for the FMKL GLD, and investigate the performances of the suggested methods in modeling the daily exchange rates of eight currencies.
机译:广义λ分布(GLD)是一种灵活的分布,可以表示多种分布形状。近年来,GLD的这一特性使其在模拟输入建模中非常受欢迎,并且已经提出了几种估计GLD参数的拟合方法。但是,在估算各种分布形状和输入数据的GLD参数时,似乎缺乏关于这些拟合方法的性能的见识。本文的主要目的是在估算Freimer等人中引入的GLD参数时,比较流行拟合方法的拟合优度。 (1988),即Freimer-Mudholkar-Kollia-Lin(FMKL)GLD,并为模拟从业人员提供何时使用每种方法的指南。我们进一步描述了遗传算法用于FMKL GLD的用途,并研究了建议的方法在模拟八种货币的每日汇率中的性能。

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