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Reducing breast biopsies by ultrasonographic analysis and a modified self-organizing map

机译:通过超声分析和改良的自组织图减少乳房活检

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Abstract: Recent studies suggest that visual evaluation of ultrasound images could decrease negative biopsies of breast cancer diagnosis. However, visual evaluation requires highly experienced breast sonographers. The objective of this study is to develop computerized radiologist assistant to reduce breast biopsies needed for evaluating suspected breast cancer. The approach of this study utilizes a neural network and tissue features extracted from digital sonographic breast images. The features include texture parameters of breast images: characteristics of echoes within and around breast lesions, and geometrical information of breast tumors. Clusters containing only benign lesions in the feature space are then identified by a modified self- organizing map. This newly developed neural network objectively segments population distributions of lesions and accurately establishes benign and equivocal regions.t eh method was applied to high quality breast sonograms of a large number of patients collected with a controlled procedure at Mayo Clinic. The study showed that the number of biopsies in this group of women could be decreased by 40 percent to 59 percent with high confidence and that no malignancies would have been included in the nonbiopsied group. The advantages of this approach are that it is robust, simple, and effective and does not require highly experienced sonographers. !20
机译:摘要:最近的研究表明超声图像的视觉评估可以减少乳腺癌诊断的阴性活检。但是,视觉评估需要经验丰富的乳房超声检查师。这项研究的目的是开发计算机放射线助理,以减少评估可疑乳腺癌所需的乳房活检。这项研究的方法利用了神经网络和从数字超声乳腺图像中提取的组织特征。这些特征包括乳腺图像的纹理参数:乳腺病变内和周围的回声特征,以及乳腺肿瘤的几何信息。然后通过修改后的自组织图来识别特征空间中仅包含良性病变的簇。这个新开发的神经网络可以客观地分割病变的人群分布,并准确地建立良性和模棱两可的区域。此方法应用于Mayo Clinic通过控制程序收集的大量患者的高质量乳房超声检查。该研究表明,该组妇女的活检数量可以高置信度减少40%至59%,并且未进行活检的人群中不会包括恶性肿瘤。这种方法的优点是它坚固,简单和有效,并且不需要经验丰富的超声医师。 !20

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