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Automated Detection and Segmentation of Nonmass-Enhancing Breast Tumors with Dynamic Contrast-Enhanced Magnetic Resonance Imaging

机译:动态增强磁共振成像技术自动检测和分割非增生性乳腺癌

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摘要

Nonmass-enhancing (NME) lesions constitute a diagnostic challenge in dynamic contrast-enhanced magnetic resonance imaging (DCE-MRI) of the breast. Computer-aided diagnosis (CAD) systems provide physicians with advanced tools for analysis, assessment, and evaluation that have a significant impact on the diagnostic performance. Here, we propose a new approach to address the challenge of NME lesion detection and segmentation, taking advantage of independent component analysis (ICA) to extract data-driven dynamic lesion characterizations. A set of independent sources was obtained from the DCE-MRI dataset of breast cancer patients, and the dynamic behavior of the different tissues was described by multiple dynamic curves, together with a set of eigenimages describing the scores for each voxel. A new test image is projected onto the independent source space using the unmixing matrix, and each voxel is classified by a support vector machine (SVM) that has already been trained with manually delineated data. A solution to the high false-positive rate problem is proposed by controlling the SVM hyperplane location, outperforming previously published approaches.
机译:非增强性(NME)病变对乳房的动态对比增强磁共振成像(DCE-MRI)构成诊断挑战。计算机辅助诊断(CAD)系统为医生提供了用于分析,评估和评估的高级工具,这些工具会对诊断性能产生重大影响。在这里,我们提出了一种新方法来解决NME病变检测和分割的挑战,利用独立成分分析(ICA)提取数据驱动的动态病变特征。从乳腺癌患者的DCE-MRI数据集中获得了一组独立的来源,并且通过多条动态曲线描述了不同组织的动态行为,并用一组描述每个体素得分的特征图像进行了描述。使用解混合矩阵将新的测试图像投影到独立的源空间上,并且每个体素由已经通过人工描绘数据训练的支持向量机(SVM)进行分类。通过控制SVM超平面位置,提出了解决高假阳性率问题的解决方案,其性能优于先前发布的方法。

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