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Tomato Plant Diseases Classification Using Statistical Texture Feature and Color Feature

机译:基于统计纹理特征和颜色特征的番茄植物病害分类

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Plant disease classification has been associated with the production of essential food crops and human society. In this paper, we classify tomato plant disease using two different features: texture and color. For a texture feature, we extract statistical texture information (shape, scale and location) of an image from Scale invariant Feature Transform (SIFT) feature. As a main contribution, a new approach is introduced to model the Scale Invariant Feature Transform (SIFT) texture feature by Johnson SB distribution for statistical texture information of an image. The moment method is used to estimate the parameters of Johnson SB distribution. The mathematical representation of SIFT feature is matrix representation and too complex to be applied in image classification. Therefore, we propose a new statistical feature to represent the image in few numbers of dimensions. For a color feature, we extract statistical color information of an image from RGB color channel. The color statistics feature is the combination of mean, standard deviation and moments from degree three to five for each RGB color channel. Our proposed feature is a combination of statistical texture and color features to classify tomato plant disease. The experimental performance on PlantVillage database is compared with state-of-art feature vectors to highlight the advantages of the proposed feature.
机译:植物病害的分类与基本粮食作物的生产和人类社会有关。在本文中,我们使用两种不同的特征对番茄植物病害进行了分类:质地和颜色。对于纹理特征,我们从尺度不变特征变换(SIFT)特征中提取图像的统计纹理信息(形状,尺度和位置)。作为主要贡献,引入了一种新方法,该方法通过Johnson SB分布对尺度不变特征变换(SIFT)纹理特征进行建模,以获取图像的统计纹理信息。矩法用于估计Johnson SB分布的参数。 SIFT特征的数学表示法是矩阵表示法,过于复杂,无法应用于图像分类。因此,我们提出了一种新的统计特征,可以用少量的维数来表示图像。对于颜色特征,我们从RGB颜色通道中提取图像的统计颜色信息。颜色统计功能是每个RGB颜色通道的均值,标准偏差和从三阶到五阶的矩的组合。我们提出的功能是统计纹理和颜色功能的组合,以对番茄植物病害进行分类。将PlantVillage数据库上的实验性能与最新的特征向量进行比较,以突出提出的特征的优势。

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