心脏CT成像对心外膜脂肪的定量分析。

Giuseppe Coppini, Riccardo Favilla, Paolo Marraccini, Davide Moroni, Gabriele Pieri
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引用次数: 33

摘要

本工作的目的是介绍和设计利用心脏CT图像定量分析心外膜脂肪的图像处理方法。事实上,心外膜脂肪最近已被证明与心血管疾病、心血管危险因素和代谢综合征有关。然而,对于心外膜脂肪的测量方法、其在心肌中的区域分布以及测量的准确性和可重复性,仍然存在许多问题。本文提出了一种对冠状动脉钙化评分标准采集方案获得的单帧三维图像进行分析的方法。在该方法的设计中,非常注意最小化用户干预和再现性问题。特别地,该方法具有适合于心外膜脂肪分析的两步分割算法。在算法的第一步,进行心外膜脂肪强度分布分析,以确定合适的阈值进行第一次粗分割。第二步,利用水平集方法的变分公式——包括基于高斯混合模型的特殊设计的区域均匀性能量——来恢复脂肪库的空间相干性和平滑性。实验结果表明,该方法可有效地用于心外膜脂肪的定量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Quantification of Epicardial Fat by Cardiac CT Imaging.

The aim of this work is to introduce and design image processing methods for the quantitative analysis of epicardial fat by using cardiac CT imaging.Indeed, epicardial fat has recently been shown to correlate with cardiovascular disease, cardiovascular risk factors and metabolic syndrome. However, many concerns still remain about the methods for measuring epicardial fat, its regional distribution on the myocardium and the accuracy and reproducibility of the measurements.In this paper, a method is proposed for the analysis of single-frame 3D images obtained by the standard acquisition protocol used for coronary calcium scoring. In the design of the method, much attention has been payed to the minimization of user intervention and to reproducibility issues.In particular, the proposed method features a two step segmentation algorithm suitable for the analysis of epicardial fat. In the first step of the algorithm, an analysis of epicardial fat intensity distribution is carried out in order to define suitable thresholds for a first rough segmentation. In the second step, a variational formulation of level set methods - including a specially-designed region homogeneity energy based on Gaussian mixture models- is used to recover spatial coherence and smoothness of fat depots.Experimental results show that the introduced method may be efficiently used for the quantification of epicardial fat.

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