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Breast Calcifications Detection Based on Radiofrequency Signals by Quantitative Ultrasound Multi-parameter Fusion

机译:通过定量超声多参数融合基于射频信号的乳房钙化检测

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Breast calcifications indicate the high possibility of malignancy in the radiological assessment of breast lesions. However, it is difficult to detect them from traditional B-mode ultrasound images due to the resolution limit and speckle noise. In this paper, we proposed a novel automatic calcification detection method based on ultrasound radio frequency (RF) signals by quantitative multi-parameter fusion. The proposed method consists of four steps: selecting the region of interest (ROI), extracting multiple features on sliding windows that traverse the entire ROI, classifying the window with or without calcifications using the Adaptive Boosting classifier, and obtaining the detection result by a threshold filter. Experiments were conducted on a database of 130 experienced doctor-proven breast tumors with calcifications. Compared to manual annotation, the proposed method achieved an average accuracy of 88%. The experiments demonstrated that our computerized RF signals feature system was capable of helping radiologists detect tumor calcifications more accurately and provided more guidance for the final decision.
机译:乳房钙化表明乳腺病变的放射性评估中恶性肿瘤的高可能性。然而,由于分辨率限制和斑点噪声,难以从传统的B模式超声图像中检测它们。本文通过定量多参数融合,提出了一种基于超声射频(RF)信号的新型自动钙化检测方法。该方法由四个步骤组成:选择感兴趣区域(ROI),在滑动窗口中提取遍历整个ROI的多个功能,使用自适应升压分类器对窗口进行分类或不使用钙化,并通过阈值获得检测结果筛选。在130名经验丰富的医生验证的乳腺肿瘤数据库上进行了实验,钙化。与手动注释相比,所提出的方法实现了88%的平均精度。实验表明,我们的计算机化RF信号特征系统能够帮助放射科医生更准确地检测肿瘤钙化,并为最终决定提供更多指导。

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