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Texture enhancement algorithm based on fractional differential mask of adaptive non-integral step

机译:基于自适应非积分步长分数差分掩模的纹理增强算法

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Image texture enhancement is an important topic in computer graphics, computer vision and pattern recognition. By applying the fractional differential principle to analyze texture characteristics, a new fractional differential mask with adaptive non-integral step is proposed in this paper to enhance texture images. A non-regular self-similar support region is constructed based on a local texture similarity measure, which can exclude low-correlated pixels and noise. Then, through applying sub-pixel division and introducing a local linear piecewise model to estimate the gray value in between the pixels, the resulting nonintegral steps can improve the characterization of self-similarity that is inherent in digital images. Finally, the non-regular fractional differential mask which incorporates adaptive nonintegral step is constructed. Experimental results show that, for rich-grained digital images, the capability of improved self-similarity and texture characterization based on our proposed approach leads to improved image enhancement results when compared with conventional approaches.
机译:图像纹理增强是计算机图形学,计算机视觉和模式识别中的重要主题。通过应用分数微分原理分析纹理特征,提出了一种新的具有自适应非积分步长的分数微分掩模,以增强纹理图像。基于局部纹理相似性度量构建非规则自相似支持区域,该度量可以排除低相关像素和噪声。然后,通过应用子像素划分并引入局部线性分段模型以估计像素之间的灰度值,所得的非积分步骤可以改善数字图像中固有的自相似性的表征。最后,构造了包含自适应非积分步骤的非规则分数差分掩模。实验结果表明,对于丰富的数字图像,与常规方法相比,基于我们提出的方法的改进的自相似性和纹理表征的能力导致改进的图像增强结果。

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