基于深度学习技术的水稻病害分类器

Gowtham Kishore Indukuri, Vedha Krishna Yarasuri, Aswathy K. Nair
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引用次数: 2

摘要

农业是自给自足的重要部门,在一个国家的经济和增长中发挥着重要作用。对植物病害的不及时识别可能导致产量和经济的巨大损失。这项研究工作的目的是支持大量农民,特别是从事水田种植的农民,了解和预测影响作物的疾病。本研究证明了深度神经网络对水稻叶片病害分类的鲁棒性。采用数据增强和中值滤波等预处理技术,避免了过拟合,提高了模型的性能和精度。利用深度学习方法生成了一个模型,并对其性能进行了分析。将特征提取和预处理后的数据集输入到多个模型中,并使用不同的精度指标分析模型的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Paddy Disease Classifier using Deep learning Techniques
Agriculture is an important sector for self-sustainability and plays a major role in a nation's economy and growth. Lack of timely identification of plant disease may result in huge loss in yield and in the economy. The objective of the research work is to support a large community of farmers particularly involved in paddy farming to understand and predict the disease affected to the crop. This research work demonstrates the robustness of classifying the paddy leaf disease using deep neural networks. Pre-processing techniques such as data augmentation and median filter have been applied to the dataset to avoid overfitting and to improve the model performance and accuracy. A model has been generated and analyzed its performance using deep learning approach. Also, the feature extracted, and preprocessed data set was fed to several models and analyzed their performance using various accuracy metrics.
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