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Development of a Recognition System for Alfalfa Leaf Diseases Based on Image Processing Technology

机译:基于图像处理技术的紫花苜蓿叶病识别系统的开发

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To implement rapid identification and diagnosis of leaf diseases on alfalfa, an image-based recognition system was developed using the GUIDE platform under MATLAB software environment. An integrated segmentation method of K_median clustering algorithm and linear discriminant analysis was applied to implement the lesion image segmentation in this developed recognition system. A multinomial logistic regression model for disease recognition was built based on 21 color, shape and texture features selected by using correlation-based feature selection method. Using this system, disease image reading, image segmentation and lesion image recognition can be done. This system can be applied to conduct image recognition of four common kinds of leaf diseases on alfalfa including alfalfa Cercospora leaf spot, alfalfa rust, alfalfa common leaf spot and alfalfa Leptosphaerulina leaf spot. Some basis was provided for further development of image recognition system of various alfalfa diseases and for building a network-based automatic diagnosis system of alfalfa diseases.
机译:为了在苜蓿上实现叶病的快速识别和诊断,在MATLAB软件环境下,使用GUIDE平台开发了基于图像的识别系统。在该发达的识别系统中,采用K_median聚类算法和线性判别分析相结合的集成分割方法来实现病变图像的分割。基于21种颜色,形状和纹理特征,采用基于相关的特征选择方法,建立了用于疾病识别的多项逻辑回归模型。使用该系统,可以完成疾病图像读取,图像分割和病变图像识别。该系统可用于对苜蓿的四种常见叶病进行图像识别,包括苜蓿切孢子虫叶斑,苜蓿锈病,苜蓿常见叶斑病和苜蓿Leptosphaerulina叶片斑病。为进一步开发各种苜蓿疾病的图像识别系统和建立基于网络的苜蓿疾病自动诊断系统提供了基础。

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