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An automated skin segmentation of Breasts in Dynamic Contrast-Enhanced Magnetic Resonance Imaging

机译:动态对比度增强磁共振成像中乳房的自动化皮肤分割

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Dynamic contrast-enhanced magnetic resonance imaging (DCE-MRI) is used to diagnose breast disease. Obtaining anatomical information from DCE-MRI requires the skin be manually removed so that blood vessels and tumors can be clearly observed by physicians and radiologists; this requires considerable manpower and time. We develop an automated skin segmentation algorithm where the surface skin is removed rapidly and correctly. The rough skin area is segmented by the active contour model, and analyzed in segments according to the continuity of the skin thickness for accuracy. Blood vessels and mammary glands are retained, which remedies the defect of removing some blood vessels in active contours. After three-dimensional imaging, the DCE-MRIs without the skin can be used to see internal anatomical information for clinical applications. The research showed the Dice’s coefficients of the 3D reconstructed images using the proposed algorithm and the active contour model for removing skins are 93.2% and 61.4%, respectively. The time performance of segmenting skins automatically is about 165 times faster than manually. The texture information of the tumors position with/without the skin is compared by the paired t-test yielded all p??0.05, which suggested the proposed algorithm may enhance observability of tumors at the significance level of 0.05.
机译:动态对比度增强的磁共振成像(DCE-MRI)用于诊断乳腺疾病。获得来自DCE-MRI的解剖学信息需要手动去除皮肤,以便医生和放射科医师可以清楚地观察血管和肿瘤;这需要相当大的人力和时间。我们开发了一种自动化的皮肤分段算法,其中表面皮肤被快速且正确地拆除。粗糙的皮肤区域由主动轮廓模型分段,并根据皮肤厚度的连续性分析在细分中的精度。保留血管和乳腺,补救了在活性轮廓中除去一些血管的缺陷。在三维成像之后,没有皮肤的DCE-MRI可用于见临床应用的内部解剖信息。该研究显示了使用所提出的算法的3D重建图像的骰子系数,并且用于去除皮肤的有源轮廓模型分别为93.2%和61.4%。分段皮肤的时间性能比手动快速大约165倍。通过配对的T检验比较肿瘤位置的肿瘤位置的纹理信息,得到所有p?<〜0.05,这提出了所提出的算法可以在0.05的显着性水平上提高肿瘤的可观察性。

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