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Automatic Classification System of Marble Slabs in Production line According to Texture and Color Using Artificial Neural Networks

机译:基于人工神经网络的大理石板材生产线的纹理和颜色自动分类系统。

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This article describes the algorithms and the mechatronic system developed for the clustering and classification of marble slabs on production line according to their texture. The method used for the recognition of textures is based on the Sum and Difference Histograms, a faster version of the Co-occurrence Matrices, and the classifier has been implemented by using an LVQ neural network. For each pattern (a marble slab color image), a set of statistical, texture-dependant, parameters is extracted. The input of the classifier (the LVQ network) is the set of parameters calculated before, normalized in the range [0,1], which forms a vector that characterize the pattern shown to the net; the desired output of the network is the class where the pattern belongs to (supervised learning). In our tests, seven different color spaces were used, each one with three different neighbourhoods of pixels. The selected samples chosen for testing the algorithms have been marble slabs of "Crema Marfil Sierra de la Puerta" type. The neural network has been implemented by using MATLAB.
机译:本文介绍了根据大理石纹理在生产线上进行聚类和分类而开发的算法和机电一体化系统。用于纹理识别的方法基于“和”和“差异直方图”(共现矩阵的更快版本),并且已使用LVQ神经网络实现了分类器。对于每个图案(大理石平板彩色图像),提取一组统计的,与纹理相关的参数。分类器(LVQ网络)的输入是之前计算出的一组参数,在[0,1]范围内进行了归一化,该参数形成了一个向量,该向量表征了网络中显示的模式;网络的期望输出是模式所属的类(监督学习)。在我们的测试中,使用了七个不同的色彩空间,每个色彩空间具有三个不同的像素邻域。选择用于测试算法的所选样品是“ Crema Marfil Sierra de la Puerta”类型的大理石板。神经网络已通过使用MATLAB实现。

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