2023
DOI: 10.3390/s23146298
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Crop Identification Using Deep Learning on LUCAS Crop Cover Photos

Abstract: Massive and high-quality in situ data are essential for Earth-observation-based agricultural monitoring. However, field surveying requires considerable organizational effort and money. Using computer vision to recognize crop types on geo-tagged photos could be a game changer allowing for the provision of timely and accurate crop-specific information. This study presents the first use of the largest multi-year set of labelled close-up in situ photos systematically collected across the European Union from the La… Show more

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