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A new texture classification using circular difference and Statistical Directional Patterns

机译:使用圆差和统计方向图案的新纹理分类

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摘要

The Local feature detection and texture description have acquired a lot of interest in recent years. In this paper, we propose a novel textual approach for texture classification accuracy. It's called the Circular Difference and Statistical Directional Patterns (CDSDP) which combines the mean and standard deviation of the circular difference to improve the texture classification. Artificial Neural Network (ANN), Support Vector Machine (SVM) and K- Nearest Neighbors (KNN) are used for texture classification step. Experimental results are based on an available CURETGREY database. A comparison study has been carried with other texture classification approaches. The proposed scheme could significantly improve the classification accuracy and reduce the time of classification compared with other methods.
机译:近年来,局部特征检测和纹理描述引起了人们的极大兴趣。在本文中,我们提出了一种新颖的文本方法来实现纹理分类的准确性。它被称为圆差和统计方向性图案(CDSDP),它结合了圆差的均值和标准差以改善纹理分类。人工神经网络(ANN),支持向量机(SVM)和K最近邻(KNN)用于纹理分类步骤。实验结果基于可用的CURETGREY数据库。已经与其他纹理分类方法进行了比较研究。与其他方法相比,该方案可以显着提高分类精度,减少分类时间。

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