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Wavelet based co-occurrence histogram features for texture classification with an application to script identification in a document image

机译:基于小波的共现直方图特征,用于纹理分类以及在文档图像中脚本识别的应用

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摘要

In this paper, we propose a novel texture feature extraction method based on the co-occurrence histograms of wavelet decomposed images, which capture the information about relationships between each high frequency subband and that in low frequency subband of the transformed image at the corresponding level. The correlation between the subbands at the same resolution exhibits a strong relationship, indicating that this information is significant for characterizing a texture. The classification performance is tested on a set of 32 Brodatz textures using the different wavelet filter banks for the proposed feature set. The results are compared with those obtained by using the Gabor filters and the method proposed by Montiel et al. [Montiel, E., Aguado, A.S., Nixon, M.S., 2005. Texture classification via conditional histograms. Pattern Recognition Lett. 26, 1740-1751]. The proposed and the Gabor features are then used in the identification of the script of a machine printed document. The scheme has been tested on eight Indian language scripts including English. It is found to be robust to the skew generated in the process of scanning a document. The experiments are also performed on the images with orientations of different angles and with varying coverage of text. The classification performance is analyzed using the k-NN classifier. The experimental results demonstrate the effectiveness of the proposed texture features in achieving the improved classification performance.
机译:在本文中,我们提出了一种基于小波分解图像的共现直方图的纹理特征提取方法,该方法在相应的水平上捕获有关变换图像的每个高频子带与低频子带之间的关系的信息。在相同分辨率下,子带之间的相关性表现出很强的关系,表明此信息对于表征纹理非常重要。使用建议特征集的不同小波滤波器组,在32种Brodatz纹理集上测试了分类性能。将结果与使用Gabor滤波器和Montiel等人提出的方法获得的结果进行比较。 [Montiel,E.,Aguado,A.S.,Nixon,M.S.,2005。通过条件直方图进行纹理分类。模式识别字母。 26,1740-1751]。然后将建议的功能和Gabor功能用于识别机器打印文档的脚本。该方案已在包括英语在内的八种印度文字上进行了测试。发现它对于扫描文档的过程中产生的歪斜具有鲁棒性。还对具有不同角度方向和不同文本覆盖率的图像进行了实验。使用k-NN分类器分析分类性能。实验结果证明了所提出的纹理特征在实现改进的分类性能方面的有效性。

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