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Computer-Aided Assessment of Tumor Grade for Breast Cancer in Ultrasound Images

机译:超声图像中乳腺癌肿瘤等级的计算机辅助评估

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This study involved developing a computer-aided diagnosis (CAD) system for discriminating the grades of breast cancer tumors in ultrasound (US) images. Histological tumor grades of breast cancer lesions are standard prognostic indicators. Tumor grade information enables physicians to determine appropriate treatments for their patients. US imaging is a noninvasive approach to breast cancer examination. In this study, 148 3-dimensional US images of malignant breast tumors were obtained. Textural, morphological, ellipsoid fitting, and posterior acoustic features were quantified to characterize the tumor masses. A support vector machine was developed to classify breast tumor grades as either low or high. The proposed CAD system achieved an accuracy of 85.14% (126/148), a sensitivity of 79.31% (23/29), a specificity of 86.55% (103/119), and anAZof 0.7940.
机译:本研究涉及开发一种计算机辅助诊断(CAD)系统,用于区分超声(US)图像中的乳腺癌肿瘤等级。组织学肿瘤患者的乳腺癌病变是标准预后指标。肿瘤级信息使医生能够确定对患者的适当治疗方法。美国成像是一种非抗癌方法的乳腺癌检查方法。在本研究中,获得了148个3维的恶性乳腺肿瘤图像。量化纹理,形态,椭球拟合和后声学特征以表征肿瘤群。开发了一种支持向量机以将乳腺肿瘤等级分类为低或高。所提出的CAD系统达到85.14%(126/148)的精度,敏感性为79.31%(23/29),特异性为86.55%(103/119)和Anazof 0.7940。

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