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Orientation Selectivity based Structure for Texture Classification

机译:基于方向选择性的纹理分类结构

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摘要

Local structure, e.g., local binary pattern (LBP), is widely used in texture classification. However, LBP is too sensitive to disturbance. In this paper, we introduce a novel structure for texture classification. Researches on cognitive neuroscience indicate that the primary visual cortex presents remarkable orientation selectivity for visual information extraction. Inspired by this, we investigate the orientation similarities among neighbor pixels, and propose an orientation selectivity based pattern for local structure description. Experimental results on texture classification demonstrate that the proposed structure descriptor is quite robust to disturbance.
机译:局部结构,例如局部二进制模式(LBP),被广泛用于纹理分类。但是,LBP对干扰过于敏感。在本文中,我们介绍了一种用于纹理分类的新颖结构。对认知神经科学的研究表明,初级视觉皮层对于视觉信息提取具有显着的方向选择性。受此启发,我们研究了相邻像素之间的方向相似性,并提出了一种基于方向选择性的模式进行局部结构描述。纹理分类的实验结果表明,提出的结构描述符对干扰具有较强的鲁棒性。

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