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Rotation invariant analysis and orientation estimation method for texture classification based on Radon transform and correlation analysis

机译:基于Radon变换和相关分析的纹理分类的旋转不变性分析和方向估计方法

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Some recent rotation invariant texture analysis approaches such as multiresolution approaches yield high correct classification percentages, but present insufficient noise tolerance. This paper describes a new method for rotation invariant texture analysis. In the proposed method, Radon transform is utilized to project a texture image onto projection space to convert a rotation of the original texture image to a translation of the projection in the angle variable, and then Radon projection correlation distance is introduced. A k-nearest neighbors' classifier with Radon projection correlation distances is employed to implement texture classification and orientation estimation. Theoretical and experimental results show the high classification accuracy of this approach as a result of using the Radon projection correlation distance instead of repetitious usage of discrete transforms. It is also shown that the proposed method presents high noise tolerance and yields high accuracy in orientation estimation in comparison with Khouzani's method.
机译:一些最新的旋转不变纹理分析方法(例如多分辨率方法)可产生较高的正确分类百分比,但噪声耐受性不足。本文介绍了一种旋转不变纹理分析的新方法。在提出的方法中,利用Radon变换将纹理图像投影到投影空间上,将原始纹理图像的旋转转换为角度变量中投影的平移,然后引入Radon投影相关距离。采用具有Radon投影相关距离的k近邻分类器来实现纹理分类和方向估计。理论和实验结果表明,由于使用Radon投影相关距离而不是重复使用离散变换,因此该方法具有很高的分类精度。还表明,与Khouzani的方法相比,该方法具有较高的噪声容忍度,并且在方位估计中具有较高的精度。

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