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Multi-structure local binary patterns for texture classification

机译:用于纹理分类的多结构局部二进制模式

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摘要

Recently, the local binary patterns (LBP) have been widely used in the texture classification. The LBP methods obtain the binary pattern by comparing the gray scales of pixels on a small circular region with the gray scale of their central pixel. The conventional LBP methods only describe microstructures of texture images, such as edges, corners, spots and so on, although many of them show good performances on the texture classification. This situation still could not be changed, even though the multi-resolution analysis technique is adopted by LBP methods. Moreover, the circular sampling region limits the ability of the conventional LBP methods in describing anisotropic features. In this paper, we change the shape of sampling region and get an extended LBP operator. And a multi-structure local binary pattern (Ms-LBP) operator is achieved by executing the extended LBP operator on different layers of an image pyramid. Thus, the proposed method is simple yet efficient to describe four types of structures: isotropic microstructure, isotropic macrostructure, anisotropic microstructure and anisotropic macrostructure. We demonstrate the performance of our method on two public texture databases: the Outex and the CUReT. The experimental results show the advantages of the proposed method.
机译:近来,局部二进制图案(LBP)已被广泛地用于纹理分类。 LBP方法通过将小圆形区域上的像素的灰度与其中心像素的灰度进行比较来获得二进制图案。常规的LBP方法仅描述纹理图像的微观结构,例如边缘,拐角,斑点等,尽管许多方法在纹理分类上表现出良好的性能。即使LBP方法采用了多分辨率分析技术,这种情况仍然无法改变。此外,圆形采样区域限制了传统LBP方法描述各向异性特征的能力。在本文中,我们更改了采样区域的形状并获得了扩展的LBP算子。通过在图像金字塔的不同层上执行扩展的LBP运算符,可以实现多结构局部二进制模式(Ms-LBP)运算符。因此,所提出的方法简单但有效地描述了四种类型的结构:各向同性的微观结构,各向同性的宏观结构,各向异性的微观结构和各向异性的宏观结构。我们在两个公共纹理数据库(Outex和CUReT)上演示了我们方法的性能。实验结果表明了该方法的优点。

著录项

  • 来源
    《Pattern Analysis and Applications 》 |2013年第4期| 595-607| 共13页
  • 作者单位

    Science and Technology on Multi-spectral Information Processing Laboratory, Institute for Pattern Recognition and Artificial Intelligence, Huazhong University of Science and Technology, Wuhan 430074, People's Republic of China;

    Science and Technology on Multi-spectral Information Processing Laboratory, Institute for Pattern Recognition and Artificial Intelligence, Huazhong University of Science and Technology, Wuhan 430074, People's Republic of China;

    Science and Technology on Multi-spectral Information Processing Laboratory, Institute for Pattern Recognition and Artificial Intelligence, Huazhong University of Science and Technology, Wuhan 430074, People's Republic of China;

  • 收录信息 美国《科学引文索引》(SCI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Local binary pattern; Image pyramid; Texture classification; Isotropic; Anisotropic;

    机译:本地二进制模式;图像金字塔;纹理分类;各向同性各向异性的;

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