Enhanced Machine Learning Techniques for Pest Control and Leaf Disease Identification
- Authors: Sujatha Kesavan1, Kalaivani Anbarasan2, Tamilselvi Chandrasekharan3, Dahlia Sam4, Nalinashini Ganesamoorthi5, Kamatchi Chandrasekar6, Krishna Kumar Ramaraj7, Nallamilli Pushpa Ganga Bhavani8, Srividhya Veerabathran9, B. Rengammal Sankari10, Gujjula Jhansi11
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View Affiliations Hide AffiliationsAffiliations: 1 EEE Department, Dr. MGR Educational and Research Institute, Chennai, India 2 Department of Computer Science and Engineering, Saveetha School of Engineering, Saveetha Institute of Medical & Technical Sciences Chennai, Tamil Nadu 602105, India 3 Department of Information Technology, Dr. MGR Educational and Research Institute, Chennai, India 4 Department of Information Technology, Dr. MGR Educational and Research Institute, Chennai, India 5 Department of EIE, R. M. D. Engineering College, Chennai, India 6 Department of Biotechnology, The Oxford College of Science, Chennai, India 7 Department of EEE, School of Engineering, Vels Institute of Science, Technology and Advanced Studies, Chennai, India 8 Department of Electronics and Communications Engineering, Saveetha School of Engineering Chennai, Tamil Nadu, India 9 Department of EEE, Meenakshi Engineering College Chennai, Tamil Nadu 600078, India 10 EEE Department, Dr. MGR Educational and Research Institute, Chennai, India 11 Department of EEE, Dr. MGR Educational and Research Institute, Chennai, India
- Source: Future Farming: Advancing Agriculture with Artificial Intelligence Intelligence , pp 1-22
- Publication Date: October 2023
- Language: English
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The agricultural sector has become an important income source for our country. In terms of nutrient absorption, plant diseases affecting the agricultural yield are creating a great hazard. In agriculture, recognizing infectious plants seems challenging due to the premise of the needed infrastructure. To prevent the spread of diseases, the identification of infectious leaves in the plant is observed to be a necessary step. This work aims to propose a machine learning technique on the ANN method for plant diseases identification and classification. This paper proposes a novel hybrid algorithm, called Black Widow Optimization Algorithm with Mayfly Optimization Algorithm (BWO-MA), for solving global optimization problems. In this paper, a BWO-MA with Artificial Neural Networks (ANN) based diagnostic model for earlier diagnosis of plant diseases is developed. Comparison has been done with existing machine learning methods with the proposed BWO-MA-based ANN architecture to accommodate greater performance. The comprehensive analysis showed that our proposal achieved splendid state-of-the-art performance. nbsp;
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