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Image processing and machine learning for diagnostic analysis of microcirculation

机译:图像处理和机器学习用于微循环诊断分析

摘要

Automated quantitative analysis of microcirculation, such as density of blood vessels and red blood cell velocity, is implemented using image processing and machine learning techniques. Detection and quantification of the microvasculature is determined from images obtained through intravital microscopy. The results of quantitatively monitoring and assessing the changes that occur in microcirculation during resuscitation period assist physicians in making diagnostically and therapeutically important decisions such as determination of the degree of illness as well as the effectiveness of the resuscitation process. Advanced digital image processing methods are applied to provide quantitative assessment of video signals for detection and characterization of the microvasculature (capillaries, venules, and arterioles). The microvasculature is segmented, the presence and velocity of Red Blood Cells (RBCs) is estimated, and the distribution of blood flow in capillaries is identified for a variety of normal and abnormal cases.
机译:使用图像处理和机器学习技术对微循环进行自动定量分析,例如血管密度和红细胞速度。从通过活体显微镜检查获得的图像确定微脉管系统的检测和定量。定量监测和评估复苏期间微循环中发生的变化的结果可帮助医生做出重要的诊断和治疗决策,例如确定疾病的程度以及复苏过程的有效性。先进的数字图像处理方法可用于对视频信号进行定量评估,以检测和表征微脉管系统(毛细血管,小静脉和小动脉)。细分微脉管系统,估算红细胞(RBC)的存在和速度,并针对各种正常和异常情况确定毛细血管中的血流分布。

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