Testing Exponentiality Based on the Lin Wong Divergence on the Residual Lifetime Data

IF 0.1 Q4 STATISTICS & PROBABILITY
M. Khalili, A. Habibirad, F. Yousefzadeh
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引用次数: 0

Abstract

. Testing exponentiality has long been an interesting issue in statistical infer-ences. The present article is based on a modified measure of distance between two distributions. The proposed new measure is similar to the Kullback-Leibler divergence and it is related to the Lin-Wong divergence applied on the residual lifetime data. A modified measure is developed here which is a consistent test statistic for testing the hypothesis of exponentiality against some alternatives. First, we consider a method similar to Vasicek’s and Correa’s techniques of estimating the density function in order to construct statistic for LW divergence. Then the critical values of the test are computed, using a Monte-Carlo simulation method. Also, we find the di (cid:11) erences of exponential distribution detection power between the proposed test and other tests. It is shown that the proposed test performs better than other tests of exponentiality when the hazard rate is in the form of an increasing function. Finally, a case of application of the proposed test is shown through two illustrative examples. tic, Exponentiality Test, Goodness of Fit Testing, Kolmogorov-Smirnov Statistic, Kullback-Leibler Divergence, Lin-Wong Divergence, Residual Lifetime Data, Vasicek’s Technique, Zhang’s Statistics. MSC: 94A17; 62G10.
剩余寿命数据的林-王散度指数性检验
. 在统计推断中,检验指数性一直是一个有趣的问题。本文是基于两个分布之间距离的改进度量。提出的新测度类似于Kullback-Leibler散度,它与应用于剩余寿命数据的Lin-Wong散度有关。本文提出了一种改进的度量,它是一种一致性检验统计量,用于检验指数性假设对某些替代的检验。首先,我们考虑了一种类似于Vasicek和Correa估计密度函数的方法,以构建LW散度的统计量。然后用蒙特卡罗模拟方法计算了试验的临界值。此外,我们还发现了该测试与其他测试之间指数分布检测功率的di (cid:11)的相关性。结果表明,当危险率为递增函数时,所提出的检验方法优于其他指数性检验方法。最后,通过两个实例说明了该方法的应用。tic,指数检验,拟合优度检验,Kolmogorov-Smirnov统计,Kullback-Leibler散度,Lin-Wong散度,残差寿命数据,Vasicek技术,Zhang统计。第a17 MSC: 94;62十国集团。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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