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Extraction of features using M-band wavelet packet frame and their neuro-fuzzy evaluation for multitexture segmentation

机译:利用M波段小波包帧提取特征及其神经模糊评估的多纹理分割

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摘要

In this paper, we propose a scheme for segmentation of multitexture images. The methodology involves extraction of texture features using an overcomplete wavelet decomposition scheme called discrete M-band wavelet packet frame (DMbWPF). This is followed by the selection of important features using a neuro-fuzzy algorithm under unsupervised learning. A computationally efficient search procedure is developed for finding the optimal basis based on some maximum criterion of textural measures derived from the statistical parameters for each of the subbands. The superior discriminating capability of the extracted features for segmentation of various texture images over those obtained by several existing methods is established.
机译:在本文中,我们提出了一种用于多纹理图像分割的方案。该方法涉及使用称为离散M带小波包帧(DMbWPF)的超完备小波分解方案提取纹理特征。接下来是在无监督学习下使用神经模糊算法选择重要特征。开发了一种计算上有效的搜索程序,用于基于从每个子带的统计参数得出的纹理度量的某些最大标准来找到最佳基础。建立了用于分割各种纹理图像的提取特征优于通过几种现有方法获得的特征的区分能力。

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