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Multiclass boosting SVM using different texture features in HEp-2 cell staining pattern classification

机译:在HEp-2细胞染色模式分类中使用不同纹理特征的多类增强SVM

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In this paper, we present four image descriptors for HEp-2 cell staining patterns classification, including LBP, Gabor, DCT, and a global appearance statistical descriptor. A multiclass boosting SVM algorithm is proposed to integrate these descriptors together: (1) within each boosting round, four multiclass posterior probability SVMs are trained corresponding to four descriptors, and then combined to an integrated classifier; (2) AdaBoost. M1 is modified to enhance the performance of the integrated classifiers. Experimental results over 721 images with 5-fold cross validation show the proposed method is effective and can improve the classification accuracy.
机译:在本文中,我们介绍了HEp-2细胞染色模式分类的四个图像描述符,包括LBP,Gabor,DCT和全局外观统计描述符。提出了一种多类Boosting SVM算法将这些描述符集成在一起:(1)在每个Boosting回合中,对应于四个描述符训练四个多类后验概率SVM,然后将其组合为一个集成分类器; (2)AdaBoost。修改M1以增强集成分类器的性能。在721张图像上进行5倍交叉验证的实验结果表明,该方法是有效的,并且可以提高分类的准确性。

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