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June 15, 2024Plant Methods26 citationsOpen Access

Data-driven crop growth simulation on time-varying generated images using multi-conditional generative adversarial networks

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LDL. R. DreesDDDereje T. DemieMPMadhuri R. Paul

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Abstract

Image-based crop growth modeling can substantially contribute to precision agriculture by revealing spatial crop development over time, which allows an early and location-specific estimation of relevant future plant traits, such as leaf area or biomass. A prerequisite for realistic and sharp crop image generation is the integration of multiple growth-influencing conditions in a model, such as an image of an initial growth stage, the associated growth time, and further information about the field treatment. While image-based models provide more flexibility for crop growth modeling than process-based models, there is still a significant research gap in the comprehensive integration of various growth-influencing conditions. Further exploration and investigation are needed to address this gap.

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Cite This Study

Drees et al. (2024) studied this question.

synapsesocial.com/papers/68e64892b6db6435875da11ehttps://doi.org/10.1186/s13007-024-01205-3
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