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Hybrid discrete wavelet transform and Gabor filter banks processing for mammogram features extraction

机译:混合离散小波变换和Gabor滤波器组处理乳腺X线特征提取。

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摘要

A new methodology to automatically extract features from mammograms is presented. The approach is based on a combination of the discrete wavelet transform and the Gabor filter, and it can be easily implemented in a breast cancer screening system. First, the two-dimensional discrete wavelet transform is employed to process the mammogram and obtain its HH high frequency sub-band image. Then, a Gabor filter bank is applied to the latter at different frequencies and spatial orientations to obtain new Gabor images from which the average and standard deviation are computed. Finally, these statistics are fed to a support vector machine with polynomial kernel to classify normal versus cancer mammograms. The approach was tested on a database of 50 normal and 50 cancer mammograms and the obtained classification results show its superiority to the standard approach, which only uses the discrete wavelet transform to extract features from mammograms.
机译:提出了一种自动从乳房X线照片中提取特征的新方法。该方法基于离散小波变换和Gabor滤波器的组合,可以在乳腺癌筛查系统中轻松实现。首先,利用二维离散小波变换对乳腺X线照片进行处理,获得其HH高频子带图像。然后,将Gabor滤波器组以不同的频率和空间方向应用于后者,以获得新的Gabor图像,从中可以计算出平均值和标准偏差。最后,将这些统计数据馈入具有多项式核的支持向量机,以对正常乳房X线照片与癌症乳房X线照片进行分类。该方法在包含50个正常乳房X线照片和50个癌症乳房X线照片的数据库中进行了测试,获得的分类结果显示了其优于标准方法的优势,后者仅使用离散小波变换从乳房X线照片中提取特征。

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