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Cercospora Identification in Spinach Leaves Through Resnet-50 Based Image Processing

Ramkumar, M O ; Sarah Catharin, S ; Ramachandran, V ; Sakthikumar, A

Journal of physics. Conference series, 2021-01, Vol.1717 (1), p.12046 [Periódico revisado por pares]

IOP Publishing

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  • Título:
    Cercospora Identification in Spinach Leaves Through Resnet-50 Based Image Processing
  • Autor: Ramkumar, M O ; Sarah Catharin, S ; Ramachandran, V ; Sakthikumar, A
  • É parte de: Journal of physics. Conference series, 2021-01, Vol.1717 (1), p.12046
  • Descrição: Cercospora is a contagious disease that occurs in plant leaves. Spinach is one of the healthiest food that are preferred by the people nowadays. Thus cercospora is the disease that also occurs in the spinach leaves, it also affects the humans. It causes the serious effect in both the spinach plants and also human and animals consuming it. Therefore the usage of image processing and deep learning is done in order to find out the cercospora affected plant and preventing it from the spreading from one plant to the other. To acquire the process of segmentation the plant image feed is given. This process produces an accurate result and as a outcome the cercospora spread can be controlled at the initial stage. This helps farmers to proceeds the decision faster for providing a needed treatment. In proposed system by using the convolutional neural network (CNN) and the Resnet-50 architecture, through which cercospora is identified from the different classes for the spinach leaf disease were detected and classified from the healthy leaves. The result obtained has a greater accuracy in training and testing from a few datasets and thus using this process the identification and the measures can be taken.
  • Editor: IOP Publishing
  • Idioma: Inglês

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