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A novel LBP method for invariant texture classification

机译:不变纹理分类的一种新的LBP方法

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Texture classification is a basic task in many applications of machine vision and image processing. Linear Binary Pattern (LBP) methods are among the important categories of invariant texture classification methods. Moreover, Discrete Wavelet Transform (DWT) methods are the other groups of texture classification methods, which attract much attention. LBP features just consider the spatial information of the texture; therefore, this paper proposes a proper combination of the DWT and LBP methods in which we try to improve the ability of LBP methods using multi-resolution analysis. The final results show that the proposed method finely improves the classification rate of the previous and well-known LBP methods for invariant texture classification.
机译:纹理分类是机器视觉和图像处理的许多应用中的基本任务。线性二进制模式(LBP)方法是不变纹理分类方法的重要类别。此外,离散小波变换(DWT)方法是纹理分类的其他方法,引起了广泛的关注。 LBP特征仅考虑纹理的空间信息。因此,本文提出了DWT和LBP方法的适当组合,其中我们尝试使用多分辨率分析来提高LBP方法的能力。最终结果表明,所提出的方法可以很好地提高先前和不变的LBP方法在不变纹理分类中的分类率。

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