R-AMMI-LM: Linear-fit Robust-AMMI model to analyze genotype-by environment interactions

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B. C. Ajay
K. T. Ramya
R. Abdul Fiyaz
G. Govindaraj
S. K. Bera
Narendra Kumar
K. Gangadhar
Praveen Kona
G. P. Singh
T. Radhakrishnan

Abstract

Outliers are a common phenomenon when genotypes are evaluated over locations and years under field conditions and such outliers makes studying genotype-environment Interactions difficult. Robust-AMMI models which use a combination of robust fit and robust SVD approaches, denoted as ‘R-AMMI-RLM’ have been proposed to study GEI in presence of such outliers. Instead of ‘R-AMMI-RLM’ we propose a model which uses a combination of linear fit and robust SVD to study GEI in presence of outliers and we denote this model as ‘R-AMMI-LM’. Here we prove that ‘RAMMI-LM’ was superior over ‘R-AMMI-RLM’ as it recorded very low residual sum of squares and low RMSE values. Thus proposed, ‘R-AMMI-LM’ model could explain the GEI more precisely even in presence of outliers.

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How to Cite
Ajay, B. C., Ramya, K. T., Fiyaz, R. A., Govindaraj, G., Bera, S. K., Kumar, N., Gangadhar, K., Kona, P., Singh, G. P., & Radhakrishnan, T. (2021). R-AMMI-LM: Linear-fit Robust-AMMI model to analyze genotype-by environment interactions. INDIAN JOURNAL OF GENETICS AND PLANT BREEDING, 81(01), 87–92. https://doi.org/10.31742/IJGPB.81.1.9
Section
Research Article

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