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Image Features Based Intelligent Apple Disease Prediction System: Machine Learning Based Apple Disease Prediction System

机译:基于图像特征的智能苹果疾病预测系统:基于机器学习的苹果疾病预测系统

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摘要

A pattern classifier (PC) is used to solve a variety of non-separable and complex computing problems. One of the key problems is to efficiently predict a type of disease in a typical fruit tree. The timely and accurately predicted disease in an apple tree may help a farmer to take appropriate preventive measures in advance. In this article, an apple disease diagnosis system is developed to predict the apple scab and leaf/spot blight diseases. In this article, low level and shape-based features are used for the development of an intelligent apple disease prediction system. First, the key image features like entropy, energy, inverse difference moment (IDM), mean, standard deviation (SD), perimeter, etc., are extracted from the apple leaf images. The model for the proposed system is trained by using multi-layer perceptron (MLP) pattern classifier and eleven apple leaves image features. The Gradient descent back-propagation algorithm is used for building the intelligent system to carry out the pattern classification. The proposed system is tested using some random samples and exhibits excellent diagnosis accuracy of 99.1%. The sensitivity of the proposed prediction model is 98.1% and specificity of ~99.9%.
机译:模式分类器(PC)用于解决各种不可分离和复杂的计算问题。其中一个关键问题是有效地预测典型的果树中的一种疾病。在苹果树中及时准确地预测疾病可以帮助农民提前采取适当的预防措施。在本文中,开发了一种苹果疾病诊断系统,以预测苹果结痂和叶子/斑点枯萎病。在本文中,基于低水平和形状的特征用于开发智能苹果疾病预测系统。首先,从苹果叶片图像中提取熵,能量,反差时刻(IDM),平均值,标准偏差(SD),周长等的关键图像特征。通过使用多层的Perceptron(MLP)图案分类器和11苹果离开图像特征,培训了所提出的系统模型。梯度下降反向传播算法用于构建智能系统以执行模式分类。使用一些随机样品测试所提出的系统,表现出优异的诊断精度为99.1%。所提出的预测模型的敏感性为98.1%,特异性为99.9%。

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