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Study of different parametric stability measures when the basic data/variables are non-normal

机译:当基本数据/变量是非正常的不同参数稳定性措施的研究

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The presence of genotype-environment interactions (GEI) necessitates the developments of varieties or breeds suited for different agro-environments based on their stability and adaptability characteristics. In many situations, the assumptions about the normality and independence of observations as well as homogeneity of error variances are not fulfilled. Therefore, there is a need to investigate the performance of different parametric methods for stability measures when the basic data is not normally distributed. This important aspect is taken up in the present investigation. Using simulation technique,power of the test has been computed for different sample sizes when the underlying dataset is normal as well as non-normal like gamma, beta, t, weibull, log normal etc. In most of the cases it is found that Eberhart and Russell parametric stability measure gives better performance.
机译:基因型 - 环境相互作用(GEI)的存在需要基于其稳定性和适应性特征来发展适用于不同农业环境的品种或品种。 在许多情况下,不符合关于观察的正常性和独立性以及误差方差的均匀性的假设。 因此,需要研究不同参数方法对于当基本数据通常不分布时的稳定性测量的性能。 这项重要方面是在目前的调查中占据。 使用仿真技术,当底层数据集是正常的和非正常的伽玛,β,t,威布尔,日志正常等时,测试的电源已经计算出不同的样本大小。在大多数情况下,它发现eberhart 而罗素参数稳定性测量提供了更好的性能。

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