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New Graphical Methods and Test Statistics for Testing Composite Normality

机译:用于测试复合正态性的新图形方法和测试统计量

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Several graphical methods for testing univariate composite normality from an i.i.d. sample are presented. They are endowed with correct simultaneous error bounds and yield size-correct tests. As all are based on the empirical CDF, they are also consistent for all alternatives. For one test, called the modified stabilized probability test, or MSP, a highly simplified computational method is derived, which delivers the test statistic and also a highly accurate p-value approximation, essentially instantaneously. The MSP test is demonstrated to have higher power against asymmetric alternatives than the well-known and powerful Jarque-Bera test. A further size-correct test, based on combining two test statistics, is shown to have yet higher power. The methodology employed is fully general and can be applied to any i.i.d. univariate continuous distribution setting.
机译:从i.i.d.测试单变量复合正态性的几种图形方法样品被提出。它们具有正确的同时误差范围和正确尺寸的测试。由于所有内容均基于经验CDF,因此它们对于所有替代方法也都是一致的。对于一种称为改进的稳定概率检验或MSP的检验,可以导出一种高度简化的计算方法,该方法可以在实质上即时提供检验统计信息以及高度准确的p值近似值。事实证明,MSP测试具有比众所周知的强大的Jarque-Bera测试更高的抗非对称替代能力。基于两个测试统计数据的结合,进一步的尺寸校正测试显示出更高的功率。所采用的方法是完全通用的,可以应用于任何I.d.单变量连续分布设置。

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