cs.AI updates on arXiv.org 07月04日 12:08
Detecting Multiple Diseases in Multiple Crops Using Deep Learning
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本文提出一种基于深度学习的印度农业病害检测方法,通过构建包含17种作物和34种病害的统一数据集,实现了高精度病害检测,旨在提高印度农业生产效率和粮食安全。

arXiv:2507.02517v1 Announce Type: cross Abstract: India, as a predominantly agrarian economy, faces significant challenges in agriculture, including substantial crop losses caused by diseases, pests, and environmental stress. Early detection and accurate identification of diseases across different crops are critical for improving yield and ensuring food security. This paper proposes a deep learning based solution for detecting multiple diseases in multiple crops, aimed to cover India's diverse agricultural landscape. We first create a unified dataset encompassing images of 17 different crops and 34 different diseases from various available repositories. Proposed deep learning model is trained on this dataset and outperforms the state-of-the-art in terms of accuracy and the number of crops, diseases covered. We achieve a significant detection accuracy, i.e., 99 percent for our unified dataset which is 7 percent more when compared to state-of-the-art handling 14 crops and 26 different diseases only. By improving the number of crops and types of diseases that can be detected, proposed solution aims to provide a better product for Indian farmers.

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相关标签

深度学习 农业病害检测 印度农业 粮食安全
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