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Dominant Rotated Local Binary Patterns (DRLBP) for texture classification

机译:用于纹理分类的主要旋转局部二进制图案(DRLBP)

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In this paper, we present a novel rotation-invariant and computationally efficient texture descriptor called Dominant Rotated Local Binary Pattern (DRLBP). A rotation invariance is achieved by computing the descriptor with respect to a reference in a local neighborhood. A reference is fast to compute maintaining the computational simplicity of the Local Binary Patterns (LBP). The proposed approach not only retains the complete structural information extracted by LBP, but it also captures the complimentary information by utilizing the magnitude information, thereby achieving more discriminative power. For feature selection, we learn a dictionary of the most frequently occurring patterns from the training images, and discard redundant and non-informative features. To evaluate the performance we conduct experiments on three standard texture datasets: Outex12, Outex 10 and KTH-TIPS. The performance is compared with the state-of-the-art rotation invariant texture descriptors and results show that the proposed method is superior to other approaches. (C) 2015 Elsevier B.V. All rights reserved.
机译:在本文中,我们提出了一种新颖的旋转不变且计算效率高的纹理描述符,称为“显性旋转局部二进制模式(DRLBP)”。通过相对于局部邻域中的参考计算描述符来实现旋转不变性。引用可以快速进行计算,并保持本地二进制模式(LBP)的计算简便性。所提出的方法不仅保留了由LBP提取的完整结构信息,而且还利用幅度信息捕获了互补信息,从而获得了更大的判别力。对于特征选择,我们从训练图像中学习最频繁出现的模式的字典,并丢弃冗余和非信息性的特征。为了评估性能,我们在三个标准纹理数据集上进行了实验:Outex12,Outex 10和KTH-TIPS。将性能与最新的旋转不变纹理描述符进行了比较,结果表明该方法优于其他方法。 (C)2015 Elsevier B.V.保留所有权利。

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