In this work, a technique is proposed to identify the diseases that occur in plants. The system is based on a combination of residual network and attention learning. The work focuses on disease identification from the images of four different plant types by analyzing leaf images of the plants. A total of four datasets are used for the work. The system incorporates attention-aware features computed by the Residual Attention Network (Res-ATTEN). The base of the network is ResNet-18 architecture. Integrating attention learning in the residual network helps improve the system's overall accuracy. Various residual attention units are combined to create a single architecture. Unlike the traditional attention network architectures, which focus only on a single type of attention, the system uses a mixed type of attention learning, i.e., a combination of spatial and channel attention. Our technique achieves state-of-the-art performance with the highest accuracy of 99%. The results show that the proposed system has performed well for both purposes and notably outperformed the traditional systems.
机构:
College of Computer&Information Engineering,Central South University of Forestry and TechnologyCollege of Computer&Information Engineering,Central South University of Forestry and Technology
Lei Tang
Jizheng Yi
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机构:
College of Computer&Information Engineering,Central South University of Forestry and Technology
Yuelushan Laboratory Carbon Sinks Forests Variety Innovation CenterCollege of Computer&Information Engineering,Central South University of Forestry and Technology
Jizheng Yi
Xiaoyao Li
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机构:
College of Computer&Information Engineering,Central South University of Forestry and TechnologyCollege of Computer&Information Engineering,Central South University of Forestry and Technology
机构:
Department of Intelligent Science, School of Advanced Technology, Xi'an Jiaotong-Liverpool University, SuzhouDepartment of Intelligent Science, School of Advanced Technology, Xi'an Jiaotong-Liverpool University, Suzhou
Ma M.
Wang Q.-F.
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机构:
Department of Intelligent Science, School of Advanced Technology, Xi'an Jiaotong-Liverpool University, SuzhouDepartment of Intelligent Science, School of Advanced Technology, Xi'an Jiaotong-Liverpool University, Suzhou
Wang Q.-F.
Huang S.
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机构:
Tencent Technology Co. Ltd, BeijingDepartment of Intelligent Science, School of Advanced Technology, Xi'an Jiaotong-Liverpool University, Suzhou
Huang S.
Huang S.
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机构:
Tencent Technology Co. Ltd, BeijingDepartment of Intelligent Science, School of Advanced Technology, Xi'an Jiaotong-Liverpool University, Suzhou
Huang S.
Goulermas Y.
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机构:
Department of Computer Science, University of Liverpool, LiverpoolDepartment of Intelligent Science, School of Advanced Technology, Xi'an Jiaotong-Liverpool University, Suzhou
Goulermas Y.
Huang K.
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机构:
Department of Intelligent Science, School of Advanced Technology, Xi'an Jiaotong-Liverpool University, SuzhouDepartment of Intelligent Science, School of Advanced Technology, Xi'an Jiaotong-Liverpool University, Suzhou
机构:
Vellore Institute of Technology, School of Computer Science and Engineering (SCOPE), Chennai,600127, IndiaVellore Institute of Technology, Centre for Cyber-Physical Systems (CCPS), Chennai,600127, India
Ajay, Armaano
Singh Bisht, Akshaj
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机构:
Vellore Institute of Technology, School of Computer Science and Engineering (SCOPE), Chennai,600127, IndiaVellore Institute of Technology, Centre for Cyber-Physical Systems (CCPS), Chennai,600127, India
Singh Bisht, Akshaj
Illakiya, T.
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机构:
SRM Institute of Science and Technology, School of Computing, Department of Computational Intelligence, Kattankulathur,603203, IndiaVellore Institute of Technology, Centre for Cyber-Physical Systems (CCPS), Chennai,600127, India
Illakiya, T.
Suganthi, K.
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机构:
Vellore Institute of Technology, School of Electronics Engineering, Chennai,600127, IndiaVellore Institute of Technology, Centre for Cyber-Physical Systems (CCPS), Chennai,600127, India