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Local derivative radial patterns: A new texture descriptor for content-based image retrieval

机译:局部导数径向模式:用于基于内容的图像检索的新纹理描述符

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摘要

In this paper, we propose a novel local pattern descriptor called Local Derivative Radial Pattern (LDRP) for texture representation in content-based image retrieval. All prior local patterns are based on gray-level difference of pixels located in a square or circle. Since many of the actual textures can be represented by intensity relationship of pixels along a line, these methods do not have a suitable ability to represent texture information. In prior methods, difference between referenced pixel and its adjacent pixel is encoded with two, three or four values which leads to information loss of the image. The proposed LDRP is based on gray-level difference of pixels along a line and their weighted combinations. In addition, multilevel coding in different directions is used instead of binary coding. The performance of the proposed method is compared with prior methods including local binary pattern (LBP), local ternary pattern (LTP), local derivative pattern (LDP), local tetra pattern (LTrP) and local vector pattern (LVP). The proposed LDRP outperforms all mentioned prior methods by at least 3.82% and 5.17% in terms of average precision on Brodatz and VisTex databases, respectively.
机译:在本文中,我们提出了一种新颖的局部模式描述符,称为局部衍生径向模式(LDRP),用于基于内容的图像检索中的纹理表示。所有先前的局部图案均基于位于正方形或圆形中的像素的灰度级差异。由于许多实际纹理可以通过沿线的像素的强度关系来表示,因此这些方法不具有表示纹理信息的合适能力。在现有方法中,参考像素与其相邻像素之间的差被编码为两个,三个或四个值,这导致图像的信息丢失。提议的LDRP基于沿线的像素的灰度级差异及其加权组合。另外,使用不同方向上的多级编码代替二进制编码。将该方法的性能与现有方法进行了比较,包括本地二进制模式(LBP),本地三元模式(LTP),本地导数模式(LDP),本地四模式(LTrP)和本地矢量模式(LVP)。就Brodatz和VisTex数据库的平均精度而言,拟议的LDRP分别优于所有上述方法至少3.82%和5.17%。

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