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Graph Based Characterization of Microcirculation in Sepsis Using Sidestream Dark Field Imaging

机译:基于图的侧流暗场成像表征脓毒症中的微循环

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Real-time detection of sepsis on a video data is a new aboard technique that aids the septic patient and decreases the high mortality rate. The progressive impairment of the micro-circulation associated with increased systemic inflammatory response in sepsis has been considered the origin of the multiple organ dysfunction syndrome that often leads to death. However, despite the recognized importance of the micro-circulatory dysfunction, analysis methods able to correlate the severity of sepsis with the degree of impairment of micro-hemodynamic captured by portable microscope Side-stream Dark Field Imaging (SDF) are rarely used. Hence, the classification of the severity of sepsis by analyzing the micro-circulatory dysfunction would be of great assistance in diagnosing severity and therapeutic management. In this context, the aim of this work is to propose a new computational methodology based on image processing to obtain graph metrics for determining the degree of micro-vascular and tissue commitment due to sepsis.
机译:视频数据败血症的实时检测是一项新技术,可帮助败血病患者并降低高死亡率。与脓毒症中全身性炎症反应增加相关的微循环的进行性损伤已被认为是经常导致死亡的多器官功能不全综合征的起源。然而,尽管已认识到微循环功能障碍的重要性,但很少使用能够将败血症的严重程度与便携式显微镜侧流暗场成像(SDF)捕获的微血流动力学损害程度相关的分析方法。因此,通过分析微循环功能障碍对脓毒症的严重程度进行分类将在诊断严重程度和治疗管理方面大有帮助。在这种情况下,这项工作的目的是提出一种基于图像处理的新计算方法,以获得用于确定败血症引起的微血管和组织活动程度的图形指标。

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