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RETRACTED: Multidimensional Attention-Based CNN Model for Identifying Apple Leaf Disease (Retracted Article)
被引:5
|作者:
Perveen, Kahkashan
[1
]
Kumar, Sanjay
[2
]
Kansal, Sahil
[3
]
Soni, Mukesh
[4
]
Alshaikh, Najla A.
[1
]
Batool, Shanzeh
[5
]
Khanam, Mehrun Nisha
[6
]
Osei, Bernard
[7
]
机构:
[1] King Saud Univ, Coll Sci, Dept Bot & Microbiol, Riyadh 11495, Saudi Arabia
[2] Chandigarh Grp Coll, Comp Sci Engn Dept, Sahibzada Ajit Singh Naga 140307, Punjab, India
[3] IT, JIMS, Rohini, Delhi, India
[4] Univ Ctr Res & Dev Chandigarh Univ, Dept CSE, Mohali 140413, Punjab, India
[5] Vellore Inst Technol, Sch Comp Sci Engn SCSE, Bhopal 466114, India
[6] Seoul Natl Univ, Coll Nat Sci, Sch Biol Sci, Seoul 08826, South Korea
[7] Kwame Nkrumah Univ Sci & Technol, Kumasi, Ghana
关键词:
D O I:
10.1155/2023/9504186
中图分类号:
TS2 [食品工业];
学科分类号:
0832 ;
摘要:
To prevent the spread of illnesses and guarantee the steady and healthy growth of the apple sector, the proper diagnosis of apple leaf diseases is of utmost importance. The subtle interclass variations and enormous intraclass variances among apple leaf disease features, together with the uniformity of disease spots and the complicated background environment, make apple leaf disease diagnosis extremely challenging. A unique dual-branch apple leaf disease diagnosis system (DBNet) was put out to address the aforementioned issues. An attention branch with many dimensions and a multiscale joint branch (MS) make up the dual-branch network topology of the DBNet (DA). In this study, the MS branch and the DA branch are combined to create a DBNet, which successfully improves recognition accuracy while mitigating the negative impacts of complicated backdrop environments and lesion similarities. The accuracy of the DBNet network increases by 0.02843, 0.02412, 0.0144, and 0.0125, respectively, when compared to previous leaf disease detection models. This makes it evident that the suggested DBNet model has certain benefits over others in terms of identifying apple leaf disease.
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页数:12
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