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Early identification of Tuta absoluta in tomato plants using deep learning

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dc.creator Mkonyi, Lilian
dc.creator Rubanga, Denis
dc.creator Richard, Mgaya
dc.creator Zekeya, Never
dc.creator Sawahiko, Shimada
dc.creator Maiseli, Baraka
dc.creator Machuve, Dina
dc.date 2021-06-24T06:35:36Z
dc.date 2021-06-24T06:35:36Z
dc.date 2020-11
dc.date.accessioned 2022-10-25T09:15:53Z
dc.date.available 2022-10-25T09:15:53Z
dc.identifier https://doi.org/10.1016/j.sciaf.2020.e00590
dc.identifier https://dspace.nm-aist.ac.tz/handle/20.500.12479/1254
dc.identifier.uri http://hdl.handle.net/123456789/94673
dc.description This research article published by Elsevier B.V., 2020
dc.description The agricultural sector is highly challenged by plant pests and diseases. A high–yielding crop, such as tomato with high economic returns, can greatly increase the income of small- holder farmers income when its health is maintained. This work introduces an approach to strengthen phytosanitary capacity and systems to help solve tomato plant pest Tuta ab- soluta devastation at early tomato growth stages. We present a deep learning approach to identify tomato leaf miner pest ( Tuta absoluta ) invasion. The Convolutional Neural Network architectures (VGG16, VGG19, and ResNet50) were used in training classifiers on tomato image dataset captured from the field containing healthy and infested tomato leaves. We evaluated performance of each classifier by considering accuracy of classifying the tomato canopy into correct category. Experimental results show that VGG16 attained the high- est accuracy of 91.9% in classifying tomato plant leaves into correct categories. Our model may be used to establish methods for early detection of Tuta absoluta pest invasion at early tomato growth stages, hence assisting farmers overcome yield losses.
dc.format application/pdf
dc.language en
dc.publisher Elsevier B.V.
dc.subject Tuta absoluta
dc.subject Convolutional neural network
dc.subject Transfer learning
dc.title Early identification of Tuta absoluta in tomato plants using deep learning
dc.type Article


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