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K-NN based automated reasoning using bilateral filter based texture descriptor for computing texture classification

机译:基于双边滤波器的纹理描述符的基于K-NN的自动推理,用于计算纹理分类

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Regions in the visual field can be characterized by differences in texture, brightness, colour, or other attributes. Bilateral filter is an efficient way to smooth any digital image while preserving the fine information. In bilateral filter, it has been observed that by selecting carefully, the bilateral filter range parameter and bilateral filter domain parameter the ability to smooth any arbitrary digital image while preserving the edges can be improved. This trait of bilateral filter helps to adapt it to application specific requirements. In this study, a new feature extraction method is recommended by integrating the conventional Laws’ mask method with bilateral filter, which results in the improvement of classification accuracy. The texture features are extracted by using different values of range parameter and domain parameter and are fed as input to k-Nearest Neighbor (k-NN) classifier for classification. The new fusion model is tested with Brodatz, VisTex, STex and ALOT databases. The results of the proposed method are also compared with the conventional Laws’ mask descriptor for all the aforementioned four datasets. The experimental results show that bilateral filter based Laws’ mask feature extraction technique provides better classification accuracy for all the four databases for various combinations of bilateral filter range and domain parameters.
机译:视野中的区域可以通过纹理,亮度,颜色或其他属性的差异来表征。双边滤镜是在保留精细信息的同时平滑任何数字图像的有效方法。在双边滤波器中,已经观察到,通过仔细选择双边滤波器范围参数和双边滤波器域参数,可以改善在保留边缘的同时平滑任意任意数字图像的能力。双边过滤器的这一特性有助于使其适应特定的应用要求。在这项研究中,推荐了一种新的特征提取方法,该方法将常规的Laws的遮罩方法与双边过滤器相结合,从而提高了分类精度。通过使用范围参数和域参数的不同值来提取纹理特征,并将其作为输入提供给k最近邻居(k-NN)分类器进行分类。新的融合模型已使用Brodatz,VisTex,STex和ALOT数据库进行了测试。对于所有上述四个数据集,还将提出的方法的结果与常规Laws的掩码描述符进行了比较。实验结果表明,基于双边过滤器的Laws遮罩特征提取技术可为所有四个数据库提供更好的分类精度,以适应双边过滤器范围和域参数的各种组合。

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