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Model-based region-of-interest selection in dynamic breast MRI.

机译:动态乳房MRI中基于模型的感兴趣区域选择。

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Magnetic resonance imaging (MRI) is emerging as a powerful tool for the diagnosis of breast abnormalities. Dynamic analysis of the temporal pattern of contrast uptake has been applied in differential diagnosis of benign and malignant lesions to improve specificity. Selecting a region of interest (ROI) is an almost universal step in the process of examining the contrast uptake characteristics of a breast lesion. We propose an ROI selection method that combines model-based clustering of the pixels with Bayesian morphology, a new statistical image segmentation method. We then investigate tools for subsequent analysis of signal intensity time course data in the selected region. Results on a database of 19 patients indicate that the method provides informative segmentations and good detection rates.
机译:磁共振成像(MRI)正在成为诊断乳房异常的有力工具。动态分析造影剂摄取的时间模式已用于鉴别良性和恶性病变,以提高特异性。选择感兴趣区域(ROI)是检查乳腺病变造影剂摄取特征过程中几乎通用的步骤。我们提出了一种将基于模型的像素聚类与贝叶斯形态相结合的ROI选择方法,这是一种新的统计图像分割方法。然后,我们调查用于在选定区域中对信号强度时程数据进行后续分析的工具。由19位患者组成的数据库中的结果表明,该方法提供了有益的细分和良好的检测率。

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