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Wavelet-based level set evolution for classification of textured images

机译:基于小波的水平集演化用于纹理图像分类

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We present a supervised classification model based on a variational approach. This model is specifically devoted to textured images. We want to get a partition of an image, composed of texture regions separated by regular interfaces. Each kind of texture defines a class. We use a wavelet packet transform to analyze the textures, characterized by their energy distribution in each sub-band. In order to have an image segmentation according to the classes, we model the regions and their interfaces by level set functions. We define a functional on these level sets whose minimizers define the optimal classification according to texture. A system of coupled PDEs is deduced from the functional. By solving this system, each region evolves according to its wavelet coefficients and interacts with the neighbor regions in order to obtain a partition with regular contours. Experiments are shown on synthetic and real images.
机译:我们提出了一种基于变分方法的监督分类模型。该模型专门用于纹理图像。我们想要获得一个图像的分区,该分区由以常规接口分隔的纹理区域组成。每种纹理定义一个类。我们使用小波包变换来分析纹理,纹理的特征在于每个子带中的能量分布。为了根据类别进行图像分割,我们通过水平集功能对区域及其界面进行建模。我们在这些级别集上定义一个函数,其最小化函数根据纹理定义最佳分类。从功能推论出耦合的PDE系统。通过求解该系统,每个区域根据其小波系数进行演化并与相邻区域进行交互,以获得具有规则轮廓的分区。实验以合成图像和真实图像显示。

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