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首页> 外文期刊>Agronomy Journal >Accounting for Spatial Variability in Breeding Trials: A Simulation Study
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Accounting for Spatial Variability in Breeding Trials: A Simulation Study

机译:选育试验中空间变异性的解释:模拟研究

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Several techniques to control for spatial heterogeneity in breeding trials were compared through the use of simulated data for a field site with 256 genotypes (i.e., treatments). Various experimental designs, error structures, and polynomial functions were modeled. The error structures studied included first-order autoregressive with and without measurement error (or nugget) and independent errors. Also, several nearest neighbor methods (Papadakis [PAP] and moving average [MA]) were used. The results indicated that, of models with independent errors, row-column designs gave the best correlation between the predicted and true treatment effects (CORR). Once the autoregressive error structure, with or without nugget, was incorporated, CORR values were even higher. Also, failing to incorporate the nugget produced bias in the correlation parameters of the error structure. Nearest neighbor technique were also among the best options, where some variants of the Papadakis method were almost as good as models that incorporated the error structure.
机译:通过使用具有256个基因型(即处理)的田间地点的模拟数据,比较了在育种试验中控制空间异质性的几种技术。对各种实验设计,误差结构和多项式函数进行了建模。研究的误差结构包括一阶自回归,有无测量误差(或块金)和独立误差。另外,使用了几种最接近的邻居方法(Papadakis [PAP]和移动平均值[MA])。结果表明,在具有独立误差的模型中,行-列设计在预测和实际处理效果(CORR)之间提供了最佳相关性。一旦合并了带有或不带有块的自回归错误结构,CORR值就会更高。而且,未能将块金产生的偏差纳入误差结构的相关参数中。最近的邻居技术也是最好的选择之一,其中Papadakis方法的某些变体几乎与包含错误结构的模型一样好。

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