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"Information based diagnostics for the optimal construction of Multi-en" by Christopher Lisle - Vimarsana News

"Information based diagnostics for the optimal construction of Multi-en" by Christopher Lisle

The objectives of this thesis are to present novel approaches for optimising the construction of multi environment trial (MET) datasets from a series of plant variety trials. These include evaluating varieties in designed trials at various locations and typically across many years. The MET datasets are then analysed to evaluate how well each variety performs in each environment. Although sophisticated and relevant statistical analyses have been proven to increase the reliability of predicted variety by environment (VE) effects, there has been little research into how to construct an appropriat...

Source: uow.edu.au
"Information Based Diagnostic for Genetic Variance Parameter Estimation" by Chris Lisle, Alison Smith et al. - Vimarsana News

"Information Based Diagnostic for Genetic Variance Parameter Estimation" by Chris Lisle, Alison Smith et al.

Plant breeding programs evaluate varieties in series of field trials across years and locations, referred to as multi-environment trials (METs). These are an essential part of variety evaluation with the key aim of the statistical analysis of these datasets to accurately estimate the variety by environment (VE) effects. It has previously been thought that the number of varieties in common between environments, referred to as “variety connectivity,” was a key driver of the reliability of genetic variance parameter estimation and that this in turn affected the reliability of predictions of V...

Source: uow.edu.au
"Plant Variety Selection Using Interaction Classes Derived From Factor " by Alison Smith, Adam Norman et al. - Vimarsana News

"Plant Variety Selection Using Interaction Classes Derived From Factor " by Alison Smith, Adam Norman et al.

A major challenge in the analysis of plant breeding multi-environment datasets is the provision of meaningful and concise information for variety selection in the presence of variety by environment interaction (VEI). This is addressed in the current paper by fitting a factor analytic linear mixed model (FALMM) then using the fundamental factor analytic parameters to define groups of environments in the dataset within which there is minimal crossover VEI, but between which there may be substantial crossover VEI. These groups are consequently called interaction classes (iClasses). Given that the...

Source: uow.edu.au
"Use of Contemporary Groups in the Construction of Multi-Environment Tr" by Alison Smith, Aanandini Ganesalingam et al. - Vimarsana News

"Use of Contemporary Groups in the Construction of Multi-Environment Tr" by Alison Smith, Aanandini Ganesalingam et al.

Abstract Plant breeding programs use multi-environment trial (MET) data to select superior lines, with the ultimate aim of increasing genetic gain. Selection accuracy can be improved with the use of advanced statistical analysis methods that employ informative models for genotype by environment interaction, include information on genetic relatedness and appropriately accommodate within-trial error variation. The gains will only be achieved, however, if the methods are applied to suitable MET datasets. In this paper we present an approach for constructing MET datasets that optimizes the inform...

Source: uow.edu.au