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Rotation-invariant multiresolution texture analysis using Radon and wavelet transforms

机译:使用Radon和小波变换的旋转不变多分辨率纹理分析

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A new rotation-invariant texture-analysis technique using Radon and wavelet transforms is proposed. This technique utilizes the Radon transform to convert the rotation to translation and then applies a translation-invariant wavelet transform to the result to extract texture features. A k-nearest neighbors classifier is employed to classify texture patterns. A method to find the optimal number of projections for the Radon transform is proposed. It is shown that the extracted features generate an efficient orthogonal feature space. It is also shown that the proposed features extract both of the local and directional information of the texture patterns. The proposed method is robust to additive white noise as a result of summing pixel values to generate projections in the Radon transform step. To test and evaluate the method, we employed several sets of textures along with different wavelet bases. Experimental results show the superiority of the proposed method and its robustness to additive white noise in comparison with some recent texture-analysis methods.
机译:提出了一种新的基于Radon和小波变换的旋转不变纹理分析技术。该技术利用Radon变换将旋转转换为平移,然后将平移不变小波变换应用于结果以提取纹理特征。使用k最近邻分类器对纹理图案进行分类。提出了一种为拉顿变换找到最佳投影数的方法。结果表明,提取出的特征生成了有效的正交特征空间。还表明,提出的特征提取纹理图案的局部和方向信息。由于在Radon变换步骤中对像素值求和以生成投影,因此所提出的方法对于添加白噪声具有鲁棒性。为了测试和评估该方法,我们使用了几组纹理以及不同的小波基。实验结果表明,与最近的一些纹理分析方法相比,该方法的优越性及其对加性白噪声的鲁棒性。

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