一种新型的基于蝴蝶优化算法的深度信念网络水稻叶片病害检测分类

U. Lathamaheswari, J. Jebathangam
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引用次数: 1

摘要

水稻种植中广泛存在的各种疾病是每年造成巨大经济损失的最重要因素之一。这些损失是这些疾病广泛流行的直接结果。本文采用基于深度信念网络(deep Belief Network, DBN)的深度学习算法和基于蝴蝶优化算法(Butterfly optimization algorithm, BOA)的元启发式优化算法对植物叶片病害进行图像分类。分类的步骤包括预处理、特征提取和分类三个不同的过程。在python中进行了仿真,以测试该分类器的有效性。仿真结果表明,该方法比现有的机器学习分类器获得了更高的分类率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Novel Deep Belief Network with Butterfly Optimization Algorithm for the Classification of Paddy Leaf Disease Detection
The widespread presence of a wide variety of diseases during paddy farming is one of the most significant elements that annually contributes to enormous economic losses. These losses occur as a direct result of the widespread prevalence of these diseases. In this paper, a deep learning algorithm using Deep Belief Network (DBN) and a meta-heuristic optimization using Butterfly optimization algorithm (BOA) is used to classify the images to detect the diseases in a Plant Leaf. The steps of classification involve three different process that includes pre-processing, feature extraction and classification. The simulation is conducted in python to test the efficacy of the classifier. The result of simulation shows that the proposed method has obtained higher classification rate than the existing machine learning classifiers. .
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