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Deep learning based high-throughput phenotyping of chalkiness in rice exposed to high night temperature.

Chaoxin WangDoina CarageaNisarga Kodadinne NarayanaNathan T HeinRaju BheemanahalliImpa M SomayandaS V Krishna Jagadish
Published in: Plant methods (2022)
We have successfully demonstrated the application of a Grad-CAM based tool to accurately capture high night temperature induced chalkiness in rice. The models trained will be made publicly available. They are easy-to-use, scalable and can be readily incorporated into ongoing rice breeding programs, without rice researchers requiring computer science or machine learning expertise.
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