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Computerized Classification of Breast Tumors with Morphologic and Texture Features of Ultrasonic Images

机译:超声图像形态学和纹理特征的乳腺肿瘤的计算机化分类

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A computerized classification based on morphologic and texture features is proposed to increase the accuracy of the ultrasonic diagnosis of breast tumors. Firstly, tumor boundaries are obtained with the gray-level threshold segmentation algorithm and the dynamic programming method. Then five morphologic features and two texture features are extracted. Finally, an artificial neural network with the error back propagation algorithm is applied to classify breast tumors as benign or malignant. Experiments on 168 cases show that the proposed system yields the high accuracy, sensitivity and specificity. Therefore, it is concluded that this system performs well in the ultrasonic classification of breast tumors.
机译:提出了一种基于形态学和纹理特征的计算机化分类,以提高乳腺肿瘤超声波诊断的准确性。首先,利用灰度阈值分割算法和动态编程方法获得肿瘤界限。然后提取五种形态学特征和两个纹理特征。最后,应用具有误差反向传播算法的人工神经网络以将乳腺肿瘤分类为良性或恶性。 78例实验表明,所提出的系统产生高精度,敏感性和特异性。因此,得出结论,该系统在乳腺肿瘤的超声波分类中表现良好。

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