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首页> 外文期刊>Metrika: International Journal for Theoretical and Applied Statistics >Testing equality of shape parameters in several inverse Gaussian populations
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Testing equality of shape parameters in several inverse Gaussian populations

机译:测试几个高斯逆总体中形状参数的相等性

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Due to the strikingly resemblance to the normal theory and inference methods, the inverse Gaussian (IG) distribution is commonly applied to model positive and right-skewed data. As the shape parameter in the IG distribution is greatly related to other important quantities such as the mean, skewness, kurtosis and the coefficient of variation, it plays an important role in distribution theory. This paper focuses on testing the equality of shape parameters in several inverse Gaussian distributions. Three tests are suggested: the exact generalized inference-based test, the asymptotic test and a test that is based on parametric bootstrap approximation. Simulation studies are undertaken to examine the performances of the these methods, and three real data examples are analyzed for illustration.
机译:由于与通常的理论和推论方法非常相似,因此通常将逆高斯(IG)分布用于对正向和右偏数据进行建模。由于IG分布中的形状参数与其他重要量(例如平均值,偏度,峰度和变异系数)密切相关,因此它在分布理论中起着重要作用。本文着重于测试几种高斯逆分布中形状参数的相等性。建议使用三个测试:精确的基于广义推理的测试,渐近测试和基于参数自举近似的测试。进行了仿真研究以检验这些方法的性能,并分析了三个真实的数据示例以进行说明。

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