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Classification of magnetic resonance images from rabbit renal perfusion

机译:兔肾脏灌注磁共振图像的分类

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摘要

The feasibility of using chemometric techniques for the automatic detection of whether a rabbit kidney is pathological or not is studied. Sequential images of the kidney are acquired using Dynamic Contrast-Enhanced Magnetic Resonance Imaging with contrast agent injection. A segmentation approach based upon principal component analysis (PCA) is used to separate out the cortex from the rest of the kidney including the medulla, the renal pelvic, and the background. Two classifiers (Soft Independent Method of Class Analogy, SIMCA; Partial Least Squares Discriminant Analysis, PLS-DA) are tested for various types of data pretreatment including segmentation, feature extraction, centering, autoscaling, standard normal variate transformation, Savitsky-Golay smoothing, and normalization. It is shown that (i) the renal cortex contains more discriminating information on kidney perfusion changes than the whole kidney, and (ii) the PLS-DA classifiers outperform the SIMCA classifiers. PLS-DA, preceded by an automated PCA-based segmentation of kidney anatomical regions, correctly classified all kidneys and constitutes a classification tool of the renal function that can be useful for the clinical diagnosis of renovascular diseases.
机译:研究了使用化学计量学技术自动检测兔肾脏是否病理的可行性。使用动态对比增强磁共振成像和造影剂注射来获取肾脏的连续图像。使用基于主成分分析(PCA)的分割方法将皮质与肾脏的其余部分(包括髓质,肾盂和背景)分开。测试了两个分类器(类比的软件独立方法,SIMCA;偏最小二乘判别分析,PLS-DA)进行了各种数据预处理,包括分割,特征提取,居中,自动缩放,标准正态变量变换,Savitsky-Golay平滑,和规范化。结果表明:(i)肾皮质比全肾包含更多关于肾脏灌注变化的区分信息;(ii)PLS-DA分类器优于SIMCA分类器。 PLS-DA之前,是对肾脏解剖区域进行基于PCA的自动分割,它正确地对所有肾脏进行了分类,并构成了肾功能的分类工具,可用于肾血管疾病的临床诊断。

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