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Tech Meets Agriculture - Precise Plant Disease Detection Using Deep Learning Algorithm | IEEE Conference Publication | IEEE Xplore

Tech Meets Agriculture - Precise Plant Disease Detection Using Deep Learning Algorithm


Abstract:

Plant disease prediction is crucial aspect of agricultural field. Plant diseases are one of the major concerns for agriculture in recent times; most of the crops are pron...Show More

Abstract:

Plant disease prediction is crucial aspect of agricultural field. Plant diseases are one of the major concerns for agriculture in recent times; most of the crops are prone to damage caused by these diseases, which later hampers global food security. The traditional methods used for disease analysis rely strictly on visual inspection. These methods are time-consuming and prone to errors. Deep learning has therefore emerged as a significant and formidable instrument for the automation of plant disease detection. This project uses the deep learning models, YOLOv5 and YOLOv9. It ranks high on accuracy and ensures efficiency in the system to detect diseases related to plant leaves. It uses annotated datasets for several plant leaf diseases with a convolutional neural network to extractfeatures and enable classification. The system provides real-time automated solutions for the identification of plant diseases through the integration of deep learning models into agricultural practices, with a view to allowing growers to take timely action to avoid further damage to crops. The proposed technique not only heightens the rate of accuracy for disease detection but also contributes toward the growing dimension of precision agriculture, within which technology acts as an assistant in the optimization of crop management and enhancement of yield.
Date of Conference: 12-13 December 2024
Date Added to IEEE Xplore: 12 March 2025
ISBN Information:
Conference Location: Chennai, India

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