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Recognition System for Leaf Diseases of Ophiopogon japonicus Based on PCA-SVM 被引量:3

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摘要 Taking leaf black spot,anthracnose and leaf blight of Ophiopogon japonicus as the research objects,lesions were separated by K-Means clustering segmentation technology.PCA(principal component analysis)was carried out on the 46-dimensional eigenvectors composed of color,shape and texture features,and then the multi-level classifier designed by SVM(support vector machine)was used to identify lesions.The recognition rate of the developed leaf disease recognition system of O.japonicus achieved 93.3%.The results indicates that the system is of great significance to the prevention and control of O.japonicus diseases and the modernization of O.japonicus industry.
出处 《Plant Diseases and Pests》 CAS 2020年第2期9-13,共5页 植物病虫害研究(英文版)
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