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Multi-scale Color Local Binary Patterns for Visual Object Classes Recognition

机译:用于视觉对象类识别的多尺度彩色局部二进制模式

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The Local Binary Pattern (LBP) operator is a computationally efficient yet powerful feature for analyzing local texture structures. While the LBP operator has been successfully applied to tasks as diverse as texture classification, texture segmentation, face recognition and facial expression recognition, etc., it has been rarely used in the domain of Visual Object Classes (VOC) recognition mainly due to its deficiency of power for dealing with various changes in lighting and viewing conditions in real-world scenes. In this paper, we propose six novel multi-scale color LBP operators in order to increase photometric invariance property and discriminative power of the original LBP operator. The experimental results on the PASCAL VOC 2007 image benchmark show significant accuracy improvement by the proposed operators as compared with both the original LBP and other popular texture descriptors such as Gabor filter.
机译:本地二进制图案(LBP)运算符是一种计算效率高但功能强大的功能,用于分析本地纹理结构。虽然LBP运算符已成功应用于各种任务,例如纹理分类,纹理分割,面部识别和面部表情识别等,但由于其不足,它很少用于可视对象类(VOC)识别领域用于处理现实场景中照明和查看条件的各种变化。在本文中,我们提出了六个新颖的多尺度彩色LBP算子,以增加原始LBP算子的光度不变性和判别能力。在PASCAL VOC 2007图像基准测试中的实验结果表明,与原始LBP和其他流行的纹理描述符(如Gabor滤波器)相比,所提出的算子提高了精度。

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