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An active contour approach for segmentation of intra-retinal layers in optical coherence tomography images

机译:主动轮廓法分割光学相干断层扫描图像中的视网膜内层

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摘要

Optical Coherence Tomography (OCT) is a non-invasive, depth-resolved imaging modality that has become a prominent ophthalmic diagnostic technique. We present a novel segmentation algorithm based on Chan-Veseu27s energy-minimizing active contours to detect intra-retinal layers in OCT images. A multi-phase framework with a circular shape prior is adopted to model the boundaries of retinal layers and estimate shape parameters using least squares. We use a contextual scheme to balance the weight of different terms in the energy functional. The results from various synthetic experiments and segmentation results on rat OCT images are presented, demonstrating the strength of our method to detect the desired layers with sufficient accuracy even in the presence of intensity inhomogeneity. Our algorithm achieved an average Dice similarity coefficient of 0.84 over all segmented layers, and of 0.94 for the combined nerve fiber layer, ganglion cell layer, and inner plexiform layer, which are critical layers for glaucomatous degeneration.
机译:光学相干断层扫描(OCT)是一种非侵入式的深度分辨成像方法,已成为一种重要的眼科诊断技术。我们提出一种基于Chan-Vese u27s能量最小化活动轮廓的新颖分割算法,以检测OCT图像中的视网膜内层。采用圆形先验多相框架对视网膜层边界进行建模,并使用最小二乘法估计形状参数。我们使用上下文方案来平衡能量功能中不同术语的权重。给出了来自各种合成实验的结果以及在大鼠OCT图像上的分割结果,证明了我们的方法即使在强度不均匀的情况下也能够以足够的精度检测所需的层。我们的算法在所有分段层上均获得了平均Dice相似系数0.84,而对于组合的神经纤维层,神经节细胞层和内部丛状层(它们是青光眼变性的关键层)而言,其平均Dice相似系数为0.94。

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