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Optimization-based vessel segmentation pipeline for robust quantification of capillary networks in skin with optical coherence tomography angiography

机译:基于优化的血管分割管线可通过光学相干断层扫描血管造影对皮肤中的毛细血管网络进行可靠的定量

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摘要

Optical coherence tomography angiography (OCTA) provides images of microvascular perfusion in high resolution. For its application to basic and clinical research, an automatic and robust quantification of the capillary architecture is mandatory. Only this makes it possible to reliably analyze large amounts of image data, to establish biomarkers, and to monitor disease developments. However, due to its optical properties, OCTA images of skin often suffer from a poor signal-to-noise ratio and contain imaging artifacts. Previous work on automatic vessel segmentation in OCTA mostly focuses on retinal and cerebral vasculature. Its applicability to skin and, furthermore, its robustness against imaging artifacts had not been systematically evaluated. We propose a segmentation method that improves the quality of vascular quantification in OCTA images even if corrupted by imaging artifacts. Both the combination of image processing methods and the choice of their parameters are systematically optimized to match the manual labeling of an expert for OCTA images of skin. The efficacy of this optimization-based vessel segmentation is further demonstrated on sample images as well as by a reduced error of derived quantitative vascular network characteristics.
机译:光学相干断层扫描血管造影(OCTA)提供高分辨率的微血管灌注图像。为了将其应用于基础和临床研究,必须对毛细管结构进行自动且可靠的定量。只有这样,才能可靠地分析大量图像数据,建立生物标记并监测疾病的发展。但是,由于其光学特性,皮肤的OCTA图像通常会遭受较差的信噪比并包含成像伪像。先前在OCTA中进行自动血管分割的工作主要集中在视网膜和脑血管。还没有系统地评估其在皮肤上的适用性,以及对成像伪影的鲁棒性。我们提出了一种分割方法,该方法可以提高OCTA图像中血管量化的质量,即使被成像伪影破坏了。系统优化了图像处理方法的组合及其参数的选择,以匹配皮肤OCTA图像专家的手动标记。这种基于优化的血管分割的功效在样本图像上以及通过减少派生的定量血管网络特征的误差得到了进一步证明。

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