Bell Pepper Leaf Disease Classification Using Fine-Tuned Transfer Learning

Yuris Akhalifi, Agus Subekti
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引用次数: 0

Abstract

Leaf diseases of plants are common worldwide. Using image processing, farmers could spot diseases in pepper plants more rapidly and get advice from plant disease experts. In this paper, researchers developed a Transfer Learning classification model for bell pepper leaf disease, with the Transfer Learning model trained on images of healthy and diseased bell pepper leaves. Classification of healthy and diseased bell pepper leaves has been carried out, and fine-tuned Transfer Learning has been applied using several pre-trained CNN models. To achieve the best outcome, four pre-trained models, including MobileNet, VGG16, ResNetV250, and DenseNet121, and three Fully Connected (FC) layer architectures were tested. The Fully Connected (FC) layer with four Transfer Learning architectures achieved the best accuracy value of 99.33% on DenseNet121 architecture with one layer and Cohen’s Kappa value of 0.9865.
基于微调迁移学习的甜椒叶病分类
植物的叶病在世界各地都很常见。使用图像处理,农民可以更快地发现辣椒植物中的疾病,并从植物疾病专家那里获得建议。在本文中,研究人员开发了一个用于甜椒叶病的迁移学习分类模型,该模型基于健康和患病的甜椒叶的图像进行训练。已经对健康和患病的甜椒叶进行了分类,并使用几个预先训练的CNN模型应用了微调的迁移学习。为了获得最佳结果,测试了四个预训练模型,包括MobileNet、VGG16、ResNetV250和DenseNet121,以及三个全连接(FC)层架构。具有四种迁移学习架构的全连接(FC)层在具有一层的DenseNet121架构上获得了99.33%的最佳精度值,Cohen的Kappa值为0.9865。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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