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基于小波的人体肾脏 DCE-MRI 肾实质分割:在患者和健康志愿者中的初步结果。

Wavelet-based segmentation of renal compartments in DCE-MRI of human kidney: initial results in patients and healthy volunteers.

机构信息

Computer Assisted Clinical Medicine, Heidelberg University, Germany.

出版信息

Comput Med Imaging Graph. 2012 Mar;36(2):108-18. doi: 10.1016/j.compmedimag.2011.06.005. Epub 2011 Jun 24.

Abstract

Renal diseases can lead to kidney failure that requires life-long dialysis or renal transplantation. Early detection and treatment can prevent progression towards end stage renal disease. MRI has evolved into a standard examination for the assessment of the renal morphology and function. We propose a wavelet-based clustering to group the voxel time courses and thereby, to segment the renal compartments. This approach comprises (1) a nonparametric, discrete wavelet transform of the voxel time course, (2) thresholding of the wavelet coefficients using Stein's Unbiased Risk estimator, and (3) k-means clustering of the wavelet coefficients to segment the kidneys. Our method was applied to 3D dynamic contrast enhanced (DCE-) MRI data sets of human kidney in four healthy volunteers and three patients. On average, the renal cortex in the healthy volunteers could be segmented at 88%, the medulla at 91%, and the pelvis at 98% accuracy. In the patient data, with aberrant voxel time courses, the segmentation was also feasible with good results for the kidney compartments. In conclusion wavelet based clustering of DCE-MRI of kidney is feasible and a valuable tool towards automated perfusion and glomerular filtration rate quantification.

摘要

肾脏疾病可导致需要终身透析或肾移植的肾衰竭。早期发现和治疗可以防止疾病进展至终末期肾病。磁共振成像(MRI)已经发展成为评估肾脏形态和功能的标准检查方法。我们提出了一种基于小波的聚类方法来对体素时间序列进行分组,从而对肾脏进行分割。该方法包括:(1)体素时间序列的非参数离散小波变换,(2)使用 Stein 的无偏风险估计器对小波系数进行阈值处理,以及(3)对小波系数进行 k-均值聚类以分割肾脏。我们的方法应用于 4 名健康志愿者和 3 名患者的 3D 动态对比增强(DCE-)MRI 肾脏数据集。平均而言,健康志愿者的肾脏皮质可以以 88%的准确率进行分割,髓质以 91%的准确率进行分割,骨盆以 98%的准确率进行分割。在患者数据中,由于体素时间序列异常,也可以进行分割,并且对肾脏进行分割的效果良好。总之,基于小波的肾脏 DCE-MRI 聚类是可行的,是一种朝着自动灌注和肾小球滤过率量化的有价值的工具。

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