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Statistical Analysis of Yield Trials by AMMI and GGE: Further Considerations

机译:AMMI和GGE对产量试验的统计分析:进一步的考虑

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Recent review articles in this journal have compared the relative merits of two prominent statistical models for analyzing yield-trial data: Additive main effects and multiplicative interaction (AMMI) and genotype main effects and genotype x environment interaction (GGE). This review addresses more than 20 issues that require clarification after controversial statements and contrasting conclusions have appeared in those recent reviews. The AMMI2 mega-environment display incorporates more of the genotype main effect and captures more of the genotype x environment (GE) interaction than does GGE2, thereby displaying the which-won-where pattern more accurately for complex datasets. When the GE interaction is captured well by one principal component, the AMMI1 display of genotype nominal yields describes winning genotypes and adaptive responses more simply and clearly than the GGE2 biplot. For genotype evaluation within a single mega-environment, a simple scatterplot of mean and stability is more straightforward than the mean vs. stability view of a GGE2 biplot. Diagnosing the most predictively accurate member of a model family is vital for either AMMI or GGE, both for gaining accuracy and delineating mega-environments.
机译:该期刊上最近的评论文章比较了两种用于分析产量-试验数据的重要统计模型的相对优点:加性主效应和乘性相互作用(AMMI)和基因型主效应和基因型x环境相互作用(GGE)。这篇评论解决了有争议的陈述之后,需要澄清的20多个问题,并且在最近的那些评论中出现了相反的结论。与GGE2相比,AMMI2大型环境显示器具有更多的基因型主效应,并捕获了更多的基因型x环境(GE)相互作用,从而更准确地显示了“来往何处”模式。当GE相互作用被一个主要成分很好地捕获时,基因型标称产量的AMMI1显示比GGE2双图更简单,更清楚地描述了获胜的基因型和适应性反应。对于单个大环境中的基因型评估,均值和稳定性的简单散点图比GGE2双线图的均值与稳定性视图更直接。诊断模型家族中预测最准确的成员对于AMMI或GGE都是至关重要的,无论是为了获得准确性还是描述大型环境。

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