Available at https://github.com/BorgwardtLab/PheGeMIL (code) and https://doi.org/doi:10.5061/dryad.kprr4xh5p (data).
Open resource ↗doi:10.5061/dryad.kprr4xh5p · lines:49-57Unverified paper record
Multi-modal deep learning improves grain yield prediction in wheat breeding by fusing genomics and phenomics
Bioinformatics · 1 Jun 2023 · 10.1093/bioinformatics/btad336
Abstract
Motivation Developing new crop varieties with superior performance is highly important to ensure robust and sustainable global food security. The speed of variety development is limited by long field cycles and advanced generation selections in plant breeding programs. While methods to predict yield from genotype or phenotype data have been proposed, improved performance and integrated models are needed. Results We propose a machine learning model that leverages both genotype and phenotype measurements by fusing genetic variants with multiple data sources collected by unmanned aerial systems. We use a deep multiple instance learning framework with an attention mechanism that sheds light on the importance given to each input during prediction, enhancing interpretability. Our model reaches 0.754 ± 0.024 Pearson correlation coefficient when predicting yield in similar environmental conditions; a 34.8% improvement over the genotype-only linear baseline (0.559 ± 0.050). We further predict yield on new lines in an unseen environment using only genotypes, obtaining a prediction accuracy of 0.386 ± 0.010, a 13.5% improvement over the linear baseline. Our multi-modal deep learning architecture efficiently accounts for plant health and environment, distilling the genetic contribution and providing excellent predictions. Yield prediction algorithms leveraging phenotypic observations during training therefore promise to improve breeding programs, ultimately speeding up delivery of improved varieties. Availability and implementation Available at https://github.com/BorgwardtLab/PheGeMIL (code) and https://doi.org/doi:10.5061/dryad.kprr4xh5p (data).
Plant phenotyping relevance
UAS由来の植物表現型データを用いて収量を推定する深層学習手法を開発・評価しており、表現型の取得・統合・推定が研究の中心である。
abstractWe propose a machine learning model that leverages both genotype and phenotype measurements by fusing genetic variants with multiple data sources collected by unmanned aerial systems.
abstractOur model reaches 0.754 ± 0.024 Pearson correlation coefficient when predicting yield in similar environmental conditions
abstractYield prediction algorithms leveraging phenotypic observations during training therefore promise to improve breeding programs
Code and data availability
The paper's availability statement explicitly links a public GitHub repository with the authors' analysis code (PheGeMIL) and a Dryad DOI deposit containing the paper's phenotyping data (UAV multispectral/thermal images, DEMs, genotypes, yield). Both are paper-specific, public, and actionable.
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