2024
DOI: 10.11591/ijece.v14i1.pp891-903
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Optimizing olive disease classification through transfer learning with unmanned aerial vehicle imagery

El Mehdi Raouhi,
Mohamed Lachgar,
Hamid Hrimech
et al.

Abstract: Early detection of diseases in growing olive trees is essential for reducing costs and increasing productivity in this crucial economic activity. The quality and quantity of olive oil depend on the health of the fruit, making accurate and timely information on olive tree diseases critical to monitor growth and anticipate fruit output. The use of unmanned aerial vehicles (UAVs) and deep learning (DL) has made it possible to quickly monitor olive diseases over a large area indeed of limited sampling methods. Mor… Show more

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