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Texture characterization via deterministic walks' direction histogram applied to a complex network-based image transformation

机译:通过确定性步行的方向直方图对纹理进行表征,将其应用于基于网络的复杂图像转换

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摘要

Texture classification involves acquiring descriptive features from the image. This work proposes a descriptor based on statistics from a complex network inspired transformation of the texture. The descriptor is generated by performing a deterministic walks algorithm on the image transformation, focusing on the representation of the shape of the walks to build the feature vector. The first innovation of the proposed approach involves creating a complex network from an image and performing walks using the values of the network of node degrees, instead of on the intensity of the original image's pixels. The second meaningful improvement is in the information that is obtained from the walks: instead of walk sizes or demanding fractal dimension computations, the proposed method derives shape information in the form of a walk direction histogram. Experiments applying the method for texture classification on several widespread data sets show that the proposed method improves correct classification rates compared to other state-of-the-art methods while using a smaller feature vector. (C) 2017 Elsevier B. V. All rights reserved.
机译:纹理分类涉及从图像获取描述性特征。这项工作提出了一个描述符,该描述符基于来自复杂网络启发的纹理转换的统计数据。通过对图像变换执行确定性的走动算法来生成描述符,重点是通过走动形状的表示来构建特征向量。提出的方法的第一个创新涉及从图像创建复杂的网络,并使用节点度网络的值而不是原始图像像素的强度执行行走。第二个有意义的改进是从步行获得的信息:代替步行大小或要求分形维数计算,所提出的方法以步行方向直方图的形式导出形状信息。在几个广泛的数据集上应用该方法进行纹理分类的实验表明,与使用其他较小特征向量的其他最新方法相比,该方法提高了正确的分类率。 (C)2017 Elsevier B.V.保留所有权利。

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