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Published on: September 17, 2019
Interpreting genotype-by-environment interaction using redundancy analysis.
1DLO-Center for Plant Breeding and Reproduction Research (CPRO-DLO), P.O. Box 16, 6700, AA Wageningen, The Netherlands.
Redundancy analysis offers a new method for interpreting genotype-by-environment interactions using measured environmental variables. This approach integrates environmental data directly into models for better understanding of genetic and environmental influences.
Area of Science:
- Quantitative Genetics
- Statistical Modeling
Background:
- Interpreting genotype-by-environment (GxE) interaction with measured environmental variables is complex.
- Existing methods either extract environmental characteristics or directly incorporate measured variables into models.
Purpose of the Study:
- To present and theoretically describe redundancy analysis (RA) for interpreting GxE interaction.
- To demonstrate RA's derivation from existing methods like singular-value decomposition and factorial regression.
- To highlight RA's utility, especially with concomitant environmental information.
Main Methods:
- Redundancy analysis is presented as a method that directly incorporates measured environmental variables.
- RA is shown to be derivable from singular-value decomposition of residuals from additivity.
- RA is also shown to be derivable from factorial regression through axis rotation and dimensionality reduction.
Main Results:
- Redundancy analysis is positioned as a member of the second group of GxE interpretation methods.
- The paper provides a theoretical treatment of redundancy analysis.
- A practical example compares RA results with other mentioned methods.
Conclusions:
- Redundancy analysis is a valuable tool for interpreting genotype-by-environment interaction.
- RA is particularly useful when considering concomitant environmental information.
- The method offers a direct way to integrate measured environmental variables into GxE models.
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