An integrated approach of field, weather, and satellite data for monitoring maize phenology

Abstract Efficient, more accurate reporting of maize (Zea mays L.) phenology, crop condition, and progress is crucial for agronomists and policy makers. Integration of satellite imagery with machine learning models has shown great potential to improve crop classification and facilitate in-season phe...

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Auteurs principaux: Luciana Nieto, Raí Schwalbert, P. V. Vara Prasad, Bradley J. S. C. Olson, Ignacio A. Ciampitti
Format: article
Langue:EN
Publié: Nature Portfolio 2021
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Accès en ligne:https://doaj.org/article/c7875ae560b54618815e0502ea516170
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