Crop Disease Identification by Fusing Multiscale Convolution and Vision Transformer

Author:

Zhu Dingju12ORCID,Tan Jianbin1,Wu Chao2ORCID,Yung KaiLeung3,Ip Andrew W. H.4ORCID

Affiliation:

1. School of Computer Science, South China Normal University, Guangzhou 510631, China

2. School of Software, South China Normal University, Guangzhou 510631, China

3. Department of Industrial and Systems Engineering, Hong Kong Polytechnic University, Hong Kong 999077, China

4. Department of Mechanical Engineering, University of Saskatchewan, Saskatoon, SK M4Y1M7, Canada

Abstract

With the development of smart agriculture, deep learning is playing an increasingly important role in crop disease recognition. The existing crop disease recognition models are mainly based on convolutional neural networks (CNN). Although traditional CNN models have excellent performance in modeling local relationships, it is difficult to extract global features. This study combines the advantages of CNN in extracting local disease information and vision transformer in obtaining global receptive fields to design a hybrid model called MSCVT. The model incorporates the multiscale self-attention module, which combines multiscale convolution and self-attention mechanisms and enables the fusion of local and global features at both the shallow and deep levels of the model. In addition, the model uses the inverted residual block to replace normal convolution to maintain a low number of parameters. To verify the validity and adaptability of MSCVT in the crop disease dataset, experiments were conducted in the PlantVillage dataset and the Apple Leaf Pathology dataset, and obtained results with recognition accuracies of 99.86% and 97.50%, respectively. In comparison with other CNN models, the proposed model achieved advanced performance in both cases. The experimental results show that MSCVT can obtain high recognition accuracy in crop disease recognition and shows excellent adaptability in multidisease recognition and small-scale disease recognition.

Funder

“Research on teaching reform and practice based on first-class curriculum construction” of the China Society of Higher Education

“artificial intelligence” in colleges and universities in Guangdong Province

Guangdong universities (major scientific research projects—characteristic innovation

Guangdong Provincial Industry College Construction Project

Research on Basic and Applied Basic Research Project of Guangzhou Municipal Bureau of Science and Technology

Guangdong Provincial Education Department Innovation and Strengthening School Project

scientific research project of Guangdong Bureau of Traditional Chinese Medicine

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Biochemistry,Instrumentation,Atomic and Molecular Physics, and Optics,Analytical Chemistry

Reference41 articles.

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3. Liu, J., Lv, F., and Di, P. (2019). Proceedings of the 2019 International Conference on Intelligent Computing, Automation and Systems (ICICAS), Chongqing, China, 6–8 December 2019, IEEE.

4. Gaikwad, V.P., and Musande, V. (2017). Proceedings of the 2017 1st International Conference on Intelligent Systems and Information Management (ICISIM), Aurangabad, India, 5–6 October 2017, IEEE.

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