Design and Comparison Of Deep Learning Architecture For Image-based Detection of Plant Diseases

- Authors: Makarand Upadhyaya1, Naveen Nagendrappa Malvade2, Arvind Kumar Shukla3, Ranjan Walia4, K Nirmala Devi5
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View Affiliations Hide Affiliations1 University of Bahrain, Department of Management & Marketing, College of Business Administration, Bahrain 2 Department of Information Science and Engineering, SKSVM Agadi College of Engineering and Technology, Lakshmeshwar, Karnataka, India 582116 3 Department of Computer Application, IFTM University, Moradabad, Uttar Pradesh, India 4 Department of Electrical Engineering, Model Institute of Engineering and Technology, Jammu, Jammu & Kashmir 181122, India 5 Department of Computer Science and Engineering, Kongu Engineering College, Perundurai, Erode, Tamilnadu 638060, India
- Source: AI and IoT-based intelligent Health Care & Sanitation , pp 222-239
- Publication Date: April 2023
- Language: English


Design and Comparison Of Deep Learning Architecture For Image-based Detection of Plant Diseases, Page 1 of 1
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nbsp;Agriculture provides a living for half of India's people. The infection in crops poses a danger to food security, but quick detection is hard due to a lack of facilities. Nowadays, Deep learning will automatically diagnose plant diseases from raw image data. It assists the farmer in determining plant health, increasing productivity, deciding whether pesticides are necessary, and so on. The potato leaf is used in this study for analysis. Among the most devastating crop diseases is potato leaf blight, which reduces the quantity and quality of potato yields, significantly influencing both farmers and the agricultural industry as a whole. Potato leaves taken in the research contain three categories, such as healthy, early blight, and late blight. Convolution Neural Network (CNN), and Convolution Neural Network- Long Short Term Memory(CNN-LSTM) are two neural network models employed to classify plant diseases. Various performance evaluation approaches are utilized to determine the best model.
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