Dr. Schnable's Google Scholar Page
Pre-Prints (2016 ~ 2023)
Notes/Symbols Legend
* Authors contributed equally to the article
2022 (1 article)Top ⇪
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(2022) Community perspectives: Genome to phenome in agricultural sciences. OSF Preprints, 12 Dec. 2022. doi:10.31219/osf.io/p89vk
[ Abstract | 12 December 2022 ]
2021 (1 article)Top ⇪
2020 (2 articles)Top ⇪
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(2020) Data-driven identification of environmental variables influencing phenotypic plasticity to facilitate breeding for future climates: a case study involving grain yield of hybrid maize. SSRN, 3684755. doi:10.2139/ssrn.3684755
[ Abstract | 2 October 2020 ] -
(2020) Functional principal component based time-series genome-wide association in sorghum. bioRχiv. doi:10.1101/2020.02.16.951467
2019 (1 article)Top ⇪
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(2019) Characterizing allele-by-environment interactions using maize introgression lines. bioRχiv, 738070. doi:10.1101/738070
2018 (1 article)Top ⇪
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(2018) A novel maize gene, glossy6 involved in epicuticular wax deposition and drought tolerance. bioRχiv, 378687. doi:10.1101/378687
2017 (1 article)Top ⇪
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(2017) Toward a scalable exploratory framework for complex high-dimensional phenomics data. bioRχiv, 159954. doi:10.1101/159954
2016 (1 article)Top ⇪
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(2016) A bayesian network approach to county-level corn yield prediction using historical data and expert knowledge. arXiv, 1608.05127v1. doi:10.1145/1235 (In Proceedings of the 22nd ACM SIGKDD Workshop on Data Science for Food, Energy and Water, 2016 - San Francisco, CA, USA)