简单随机抽样和排序集抽样下几种拟合优度检验的比较

F. A. Shahabuddin, K. Ibrahim, A. Jemain
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引用次数: 8

摘要

许多工作已经开展,以比较几种拟合优度程序的效率,以确定一个特定的分布是否可以充分解释数据集。本文研究了Kolmogorov-Smirnov (KS)、Anderson-Darling(AD)、Cramer- von- Mises (CV)等几种拟合优度检验的有效性,并提出了一种包含方差稳定变换的Kolmogorov-Smirnov拟合优度检验的修正方法。在简单随机抽样(SRS)和排序集抽样(RSS)下研究了这些选择的测试的性能。本研究表明,在一般情况下,安德森-达林(AD)测试表现优于其他GOF测试。然而,在某些情况下,建议的测试可以执行得和头部测试一样好。
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On the Comparison of Several Goodness of Fit tests under Simple Random Sampling and Ranked Set Sampling
Many works have been carried out to compare the efficiency of several goodness of fit procedures for identifying whether or not a particular distribution could adequately explain a data set. In this paper a study is conducted to investigate the power of several goodness of fit tests such as Kolmogorov Smirnov (KS), Anderson-Darling(AD), Cramer- von- Mises (CV) and a proposed modification of Kolmogorov-Smirnov goodness of fit test which incorporates a variance stabilizing transformation (FKS). The performances of these selected tests are studied under simple random sampling (SRS) and Ranked Set Sampling (RSS). This study shows that, in general, the Anderson-Darling (AD) test performs better than other GOF tests. However, there are some cases where the proposed test can perform as equally good as the AD test.
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