DFNet: Dense fusion convolution neural network for plant leaf disease classification

被引:10
|
作者
Faisal, Muhamad [1 ,3 ]
Leu, Jenq-Shiou [1 ]
Avian, Cries [1 ]
Prakosa, Setya Widyawan [1 ]
Koppen, Mario [2 ]
机构
[1] Natl Taiwan Univ Sci & Technol, Dept Elect & Comp Engn ECE, Taipei City, Taiwan
[2] Kyushu Inst Technol, Grad Sch Comp Sci & Syst Engn, Dept Comp Sci & Syst Engn CSSE, Iizuka, Fukuoka, Japan
[3] Natl Taiwan Univ Sci & Technol, Dept Elect & Comp Engn ECE, Taipei City 106, Taiwan
关键词
ENSEMBLE;
D O I
10.1002/agj2.21341
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
The early identification of plant diseases is crucial for preventing the loss of crop production. Recently, the advancement of deep learning has significantly improved the identification of plant leaf diseases. However, most approaches depend on a single convolutional neural network (CNN) to extract the leaf features, ignoring the opportunity to take full advantage of the feature richness available in the images. This paper explores a novel CNN model with multiple automated feature extractors, namely, dense fusion CNN (DFNet), for classifying plant leaf diseases. DFNet aims to increase the diversity of extracted features in order to improve discrimination. Instead of using a single-CNN model, DFNet relies on a double-pretrained CNN model, MobileNetV2 and NASNetMobile, as the feature extractor. The features extracted from each CNN are fused in the fusion layer using a fully connected network. The proposed method was evaluated using corn (Zea mays L.) and coffee (Coffea canephora) leaf disease datasets and compared to the existing models. The experiment showed that DFNet is superior and consistent to other CNN methods by achieving an accuracy of 97.53% for corn leaf diseases and 94.65% for coffee leaf diseases.
引用
收藏
页码:826 / 838
页数:13
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