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A level-set method for pathology segmentation in fluorescein angiograms and en face retinal images of patients with age-related macular degeneration

机译:荧光素血管造影中病理分割的水平集合方法和年龄相关黄斑变性患者的患者视网膜图像

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The visibility and continuity of the inner segment outer segment (ISOS) junction layer of the photoreceptors on spectral domain optical coherence tomography images is known to be related to visual acuity in patients with age-related macular degeneration (AMD). Automatic detection and segmentation of lesions and pathologies in retinal images is crucial for the screening, diagnosis, and follow-up of patients with retinal diseases. One of the challenges of using the classical level-set algorithms for segmentation involves the placement of the initial contour. Manually defining the contour or randomly placing it in the image may lead to segmentation of erroneous structures. It is important to be able to automatically define the contour by using information provided by image features. We explored a level-set method which is based on the classical Chan-Vese model and which utilizes image feature information for automatic contour placement for the segmentation of pathologies in fluorescein angiograms and en face retinal images of the ISOS layer. This was accomplished by exploiting a priori knowledge of the shape and intensity distribution allowing the use of projection profiles to detect the presence of pathologies that are characterized by intensity differences with surrounding areas in retinal images. We first tested our method by applying it to fluorescein angiograms. We then applied our method to en face retinal images of patients with AMD. The experimental results included demonstrate that the proposed method provided a quick and improved outcome as compared to the classical Chan-Vese method in which the initial contour is randomly placed, thus indicating the potential to provide a more accurate and detailed view of changes in pathologies due to disease progression and treatment.
机译:已知光域光学相干断层摄影图像上的感光体的内部段外部区段(ISOS)结层的可见性和连续性,与年龄相关性黄斑变性(AMD)的患者中的视力有关。视网膜图像中病变和病理的自动检测和分割对于视网膜疾病患者的筛查,诊断和随访是至关重要的。使用经典级别集合算法的分割挑战之一涉及初始轮廓的放置。手动定义轮廓或在图像中随机放置它可能导致错误结构的分割。能够通过使用图像特征提供的信息自动定义轮廓。我们探索了一种基于古典Chan-Vese模型的级别设置方法,并且利用用于分割荧光素血管造影中病理分割的图像特征信息,并对ISOS层的en面视网膜图像进行分割。这是通过利用形状和强度分布的先验知识来实现​​的,允许使用投影型材来检测特征在于具有与视网膜图像中周围区域的强度差异的病理学的存在。我们首先通过将其应用于荧光素血管造影来测试我们的方法。然后,我们将我们的方法应用于AMD患者的视网膜图像。实验结果包括,所提出的方法与初始轮廓随机放置的经典春VESE方法相比,提供了一种快速和改善的结果,从而表明潜力提供了提供更准确和更详细的因病理变化的观点。疾病进展和治疗。

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