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Reproducible Evaluation of Registration Algorithms for Movement Correction in Dynamic Contrast Enhancing Magnetic Resonance Imaging for Breast Cancer Diagnosis

机译:用于动态对比中运动校正的登记算法的可再现评估,增强乳腺癌诊断的磁共振成像

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Accurate methods for computer aided diagnosis of breast cancer increase accuracy of detection and provide support to physicians in detecting challenging cases. In dynamic contrast enhancing magnetic resonance imaging (DCE=MRI), motion artifacts can appear as a result of patient displacements. Non-linear deformation algorithms for breast image registration provide with a solution to the correspondence problem in contrast with affine models. In this study we evaluate 3 popular non-linear registration algorithms: MIRTK, Demons, SyN Ants, and compare to the affine baseline. We propose automatic measures for reproducible evaluation on the DCE-MRI breast-diagnosis TCIA-database, based on edge detection and clustering algorithms, and provide a rank of the methods according to these measures.
机译:准确的计算机辅助诊断乳腺癌的诊断方法提高了检测的准确性,并为检测挑战性案例提供了医生的支持。在动态对比度增强磁共振成像(DCE = MRI)中,由于患者位移而出现运动伪影。乳房图像登记的非线性变形算法提供了对对应问题的解决方案与仿射模型相比。在这项研究中,我们评估了3个受欢迎的非线性注册算法:mirtk,demons,syn蚂蚁,并与仿射基线进行比较。我们提出了基于边缘检测和聚类算法的DCE-MRI乳房诊断TCIA-Data rcia-Data诊断TCIA数据库的可重复评估,并根据这些措施提供方法等级。

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