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Robust Local Graph Structure for Texture Classification

机译:纹理分类的强大本地图形结构

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Local Binary Pattern (LBP) is one of the most popular operators in computer vision and digital image processing due to its simplicity and unique property of capturing local features. Yet, the local binary pattern operator has some drawbacks such as sensitivity to noise and illumination changes and this because of the thresholding process. Recently, Local Graph Structure (LGS) is proposed as an alternative solution to (LBP) to overcome the thresholding process by encoding the pattern based on the relationship of the pixels that form the local graph. In addition, (LGS) is investigated in many areas such as face recognition, spoofing and plant identification. Hence, in this paper we extend the idea of (LGS) and propose a new operator called Robust Local Graph Structure (RLGS) which utilizes the standard deviation of the local graph to capture more spatial information. Finally, the reported experiments results on (UIUC) texture database showed a significant increase in the performance with compare to other texture operators.
机译:本地二进制模式(LBP)是计算机视觉和数字图像处理中最流行的运算符之一,因为它是捕获本地特征的简单性和独特性。然而,局部二进制模式操作员具有一些缺点,例如对噪声和照明变化的敏感性,并且由于阈值处理而变化。最近,提出了本地图形结构(LGS)作为(LBP)的替代解决方案来克服基于形成本地图形的像素的关系来克服阈值处理过程。此外,在诸如面部识别,欺骗和植物识别之类的许多领域进行了研究。因此,在本文中,我们扩展了(LGS)的思想,并提出了一种名为稳健的本地图形结构(RLG)的新操作员,其利用本地图的标准偏差来捕获更多空间信息。最后,报告的实验结果(UIUC)纹理数据库显示了与其他纹理运营商相比的性能的显着增加。

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