基于图像处理的叶片和皮肤疾病检测

Manjunatha Badiger , Varuna Kumara , Sachin C N Shetty , Sudhir Poojary
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引用次数: 10

摘要

农业生产是经济的重要支柱。随着人口的增长,粮食需求正在迅速扩大,农业中的叶病是每个国家的关键问题。皮肤病常见于动物和人类,它是由细菌或感染引起的一种特殊疾病。早期和准确地识别和诊断叶片和皮肤疾病对防止它们蔓延至关重要。图像处理技术可用于涉及数学方程和数学变换的疾病检测。对于人眼来说,图像是RGB颜色的混合物,因为这些颜色我们可以从图像中提取一些特征,但是现代计算机以数学格式存储图像,这意味着计算机将图像视为数字,因此在将图像评估为数字数组或矩阵之后,我们将对它们进行各种变换,这些变换将从图像中提取特定的细节。在对图像进行变换之前,必须经过特征调整等各种操作,这些操作也是用数学方法进行的。本项目在MATLAB中使用K-Means聚类和支持向量机算法实现,通过该算法可以检测和区分不同类型的叶片和皮肤疾病。
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Leaf and skin disease detection using image processing

Agricultural production is something on which the economy significantly relies. Leaf diseases in agriculture are the key issue for every nation, as the food demand is expanding at a rapid speed due to a rise in population. Skin disorders are usually seen in animals and humans, it is a particular sort of illness caused by germs or infection. Early and accurate identification and diagnosis of leaf and skin diseases are vital to keeping them from spreading. Image processing techniques can be used for disease detection which involves mathematical equations and mathematical transformations. For humans eyes image is a mixture of RGB colour, because of these colours we can extract some of the features from the image, but modern computer stores image in a mathematical format which means computer sees the image as numbers, hence after evaluating the image as a number arrays or matrix we will perform various transforms on them, these transforms will extract specific details from the picture, before transforming the image must go under various operation like feature adjustment which is also carried out mathematically. The project is implemented using K-Means Clustering and Support Vector Machine Algorithm in MATLAB through which we can detect and distinguish different types of leaf and skin diseases.

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