MRI中单一先验形状的肾脏分割

R. Chav, T. Cresson, G. Chartrand, C. Kauffmann, G. Soulez, J. Guise
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引用次数: 11

摘要

本文报道了一种从磁共振成像(MRI)数据集中的单个先验形状进行3D肾脏分割的新方法。该方法基于分层曲面变形算法,生成预个性化模型,再通过变形分割算法提取肾包膜。准确度和精密度通过比较我们的方法超过20个肾脏重建由3个不同的观察者在原生MRI图像上手工分割。实验结果表明,体积重叠误差为6.39±2.47%,相对体积差为1.87±1.39%,平均对称表面距离为0.80±0.23mm,均方根对称距离为1.03±0.33mm,最大对称表面距离为4.18±3.45mm。用我们的方法,在不到40秒的时间内,两个肾脏的囊被切开。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Kidney segmentation from a single prior shape in MRI
This paper reports a novel approach to 3D kidney segmentation from a single prior shape in magnetic resonance imaging (MRI) datasets. The proposed method is based on a hierarchic surface deformation algorithm, to generate a pre-personalized model, followed by an anamorphing segmentation algorithm, to extract the kidney capsule. Accuracy and precision are assessed by comparing our method over 20 kidney reconstructions segmented manually by 3 different observers on native MRI images. The experimental results show a volumetric overlap error of 6.39±2.47%, a relative volume difference of 1.87±1.39%, an average symmetric surface distance of 0.80±0.23mm, a root mean squared symmetric distance of 1.03±0.33mm and a maximum symmetric surface distance of 4.18±3.45mm. With our method, the capsules of both kidneys are segment in less than 40 seconds.
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