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chemicalx's Introduction

Bio

Germano Martins F. Costa-Neto, Ph.D. - Biostatistician and Agricultural Geneticist. My research focuses on developing mathematical models capable of describing how plants respond to changes in their environment in terms of plasticity, adaptation, and productivity. I utilize applied quantitative genetics models capable of predicting and analyzing complex plant traits, integrating various data types, including phenomics, genomics, weather and soil information, remote sensing, satellite-based data (GIS), and ecophysiology models. Through the integration of my expertise with other fields such as biometrics, computational biology, experimental design/statistics, and breeding, my goal is to assist plant scientists in addressing society's growing demands for a sustainable, productive, and resource-efficient agricultural system.

e-mail: [email protected]

Job: Biostatistician - Syngenta's Seeds R&D Analytics (Global) and Trait Introgression

Find me around the web 🌎

GitHub Projects

Most of my projects are in R programming language.

  • Enviromic-aided Genomic Prediction (E-GP)
  • Environmental-wide association and envirotype-to-phenotype association (EPA)
  • Adaptive Allele mining by environmental GWAS (envGWAS)
  • Multi-enviromics layers for GxE prediction
  • CVandME: Multiple Cross-validation schemes for Prediction-based Breeding

Online Lectures and Talks

Courses and Webinars

  • Short Course: EnvRtype v1.0.1 (April 2022, for GenMelhor Study Group, UFV, Brazil) -- Git Hub ([english])
  • Short Course: EnvRtype v1.0.0 (Aug 2021, for GEMS) -- Git Hub (english)
  • Short Course: Modeling GxE interaction with phenotypic, genomic and enviromic data (portuguese)

Web Articles

Data bases

Most of my studies were conducted using tropical maize data from the Allogamous Plant Breeding Laboratory (University of São Paulo). This data can be download at the Mendeley Respository

G. Costa-Neto's GitHub stats

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chemicalx's People

Contributors

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Watchers

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