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Texture Image Classification Based on Support Vector Machine and Distance Classification

机译:基于支持向量机和距离分类的纹理图像分类

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摘要

In this paper we propose a classification combination algorithms for texture image classification, which named ISD (Integrated SVM and Distance classification) algorithm. It combines Support Vector machine (SVM) and distance classification into two-layer serial classifier. SVM has been proposed as a new technique for pattern recognition in recent years. It has shown to provide better generalization performance than traditional techniques, including neural networks. However, because using Quadratic Programming (QP) optimization techniques, the training of SVM is time-consuming, especially when the training data set is very large. So we have two classifiers combined. Firstly, we define a rejecting coefficient and rejecting rule. According the rejecting rule, the distance classifier can classify the images and give the final results, or reject to classify the input images. The rejected images are fed into SVM for further classification. ISD algorithm can take advantages of SVM and distance classification. Furthermore, ISD algorithm can use the rejected images to train SVM, thus the training is more efficient. The experiments show that the algorithm has high efficiency and low error rate.
机译:在本文中,我们提出了一种用于纹理图像分类的分类组合算法,称为ISD(集成SVM和距离分类)算法。它将支持向量机(SVM)和距离分类组合到两层串行分类器中。近年来,已提出将SVM作为一种新的模式识别技术。与传统技术(包括神经网络)相比,它具有更好的泛化性能。但是,由于使用二次规划(QP)优化技术,因此SVM的训练非常耗时,尤其是在训练数据集非常大的情况下。因此,我们将两个分类器组合在一起。首先,我们定义一个拒绝系数和拒绝规则。根据拒绝规则,距离分类器可以对图像进行分类并给出最终结果,或者拒绝对输入图像进行分类。拒绝的图像被送入SVM以进行进一步分类。 ISD算法可以利用SVM和距离分类的优势。此外,ISD算法可以使用被拒绝的图像来训练SVM,从而提高训练效率。实验表明,该算法效率高,错误率低。

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