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Principal component analysis of dynamic fluorescence images for diagnosis of diabetic vasculopathy

机译:用于诊断糖尿病血管病变的动态荧光图像的主成分分析

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摘要

Indocyanine green (ICG) fluorescence imaging has been clinically used for noninvasive visualizations of vascular structures. We have previously developed a diagnostic system based on dynamic ICG fluorescence imaging for sensitive detection of vascular disorders. However, because high-dimensional raw data were used, the analysis of the ICG dynamics proved difficult. We used principal component analysis (PCA) in this study to extract important elements without significant loss of information. We examined ICG spatiotemporal profiles and identified critical features related to vascular disorders. PCA time courses of the first three components showed a distinct pattern in diabetic patients. Among the major components, the second principal component (PC2) represented arterial-like features. The explained variance of PC2 in diabetic patients was significantly lower than in normal controls. To visualize the spatial pattern of PCs, pixels were mapped with red, green, and blue channels. The PC2 score showed an inverse pattern between normal controls and diabetic patients. We propose that PC2 can be used as a representative bioimaging marker for the screening of vascular diseases. It may also be useful in simple extractions of arterial-like features.
机译:吲哚菁绿(ICG)荧光成像已被临床用于血管结构的非侵入性可视化。我们之前已经开发了基于动态ICG荧光成像的诊断系统,用于敏感地检测血管疾病。但是,由于使用了高维原始数据,因此难以分析ICG动力学。在这项研究中,我们使用主成分分析(PCA)来提取重要元素,而不会大量丢失信息。我们检查了ICG的时空分布,并确定了与血管疾病相关的关键特征。前三个成分的PCA时程在糖尿病患者中表现出不同的模式。在主要成分中,第二主要成分(PC2)代表动脉样特征。糖尿病患者中PC2的解释差异显着低于正常对照组。为了可视化PC的空间模式,用红色,绿色和蓝色通道映射了像素。 PC2评分显示正常对照组和糖尿病患者之间存在相反的模式。我们建议,PC2可以用作筛选血管疾病的代表性生物影像标记。在简单提取动脉样特征时也可能有用。

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