首页> 外文会议>IEEE International Symposium on Biomedical Imaging >A NOVEL LINE DETECTION METHOD IN SPACE-TIME IMAGES FOR MICROVASCULAR BLOOD FLOW ANALYSIS IN SUBLINGUAL MICROCIRCULATORY VIDEOS
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A NOVEL LINE DETECTION METHOD IN SPACE-TIME IMAGES FOR MICROVASCULAR BLOOD FLOW ANALYSIS IN SUBLINGUAL MICROCIRCULATORY VIDEOS

机译:舌下微型视频流程中微血管血流分析的新型线路检测方法

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Recent evidence suggests that quantitative assessment of microcirculatory dysfunction may indicate certain disease states [1, 2, 3]. Relevant microcirculatory hemodynamic parameters include total vessel density, density of perfused vessels, proportion of perfused vessels, and perfusion heterogeneity index. In one non-invasive, clinical approach, a handheld video microscope placed under the tongue records images of blood flow in small (< 20μm) and medium (approximately 20 - 100μm) diameter vessels. Hemodynamic parameters are computed from measurements of vessel geometry and blood flow rates. Current technology is limited by poor dynamic range, low resolution, poor image stability, and pressure artifacts. Video images are analyzed quantitatively and semi-quantitatively by trained image analysts using a time-consuming, semi-automated techniques for vessel segmentation, and blood flow measurements. Space-time images are generated for quantitative velocity estimation. We propose a novel line detection method to automatically estimate the orientation of red blood cell (RBC) or plasma gap traces in space-time images. Velocities of RBCs can then be calculated based on the estimated orientation. The proposed automated method for velocity estimation was implemented for 80 vessels and compared with visual estimation of reference slope in space-time diagrams by a trained image analyst. Finally, the proposed method is compared with a Hough transform based velocity estimation method.
机译:最近的证据表明,微循环功能障碍的定量评估可能表明某些疾病状态[1,2,3]。相关的微循环性血液动力学参数包括总血管密度,灌注血管密度,灌注容器的比例和灌注异质性指数。在一种非侵入性的临床方法中,放置在舌下下方的手持视频显微镜记录小(<20μm)和介质(约20-100μm)的容器中的血流图像。从血管几何和血流率的测量计算血液动力学参数。目前的技术受动态范围差,分辨率低,图像稳定性差和压力伪影的限制。通过使用耗时的半自动技术的血液分割和血流测量来定量和半自动化技术,通过训练的图像分析师分析视频图像。生成用于定量速度估计的时空图像。我们提出了一种新的线路检测方法,以自动估计红细胞(RBC)或等离子体间隙迹线在时空图像中的取向。然后可以基于估计的方向来计算RBC的速度。所提出的用于速度估计的自动化方法是为80个血管实现的,并与训练图像分析师的时空图中的参考斜率的视觉估计相比。最后,将所提出的方法与基于Hough变换的速度估计方法进行比较。

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