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Incorporation of Gradient Vector Flow Field in a Multimodal Graph-Theoretic Approach for Segmenting the Internal Limiting Membrane from Glaucomatous Optic Nerve Head-Centered SD-OCT Volumes

机译:梯度向量流场在多峰图论方法中的应用用于从青光眼视神经头部居中的SD-OCT体积中分割内部限制膜

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摘要

The internal limiting membrane (ILM) separates the retina and optic nerve head (ONH) from the vitreous. In the optical coherence tomography volumes of glaucoma patients, while current approaches for the segmentation of the ILM in the peripapillary and macular regions are considered robust, current approaches commonly produce ILM segmentation errors at the ONH due to the presence of blood vessels and/or characteristic glaucomatous deep cupping. Because a precise segmentation of the ILM surface at the ONH is required for computing several newer structural measurements including Bruch's membrane opening-minimum rim width (BMO-MRW) and cup volume, in this study, we propose a multimodal multiresolution graph-based method to precisely segment the ILM surface within ONH-centered spectral-domain optical coherence tomography (SD-OCT) volumes. In particular, the gradient vector flow (GVF) field, which is computed from a multiresolution initial segmentation, is employed for calculating a set of non-overlapping GVF-based columns perpendicular to the initial segmentation. The GVF columns are utilized to resample the volume and also serve as the columns to the graph construction. The ILM surface in the resampled volume is fairly smooth and does not contain the steep slopes. This prior shape knowledge along with the blood vessel information, obtained from registered fundus photographs, are incorporated in a graph-theoretic approach in order to identify the location of the ILM surface. The proposed method is tested on the SD-OCT volumes of 44 subjects with various stages of glaucoma and significantly smaller segmentation errors were obtained than that of current approaches.
机译:内部限制膜(ILM)将视网膜和视神经头(ONH)与玻璃体分开。在青光眼患者的光学相干断层扫描中,虽然目前认为在乳头周围和黄斑区进行ILM分割的方法很可靠,但由于存在血管和/或特征,目前的方法通常会在ONH处产生ILM分割错误青光眼深拔罐。由于要在ONH处对ILM表面进行精确的分割需要计算一些较新的结构测量值,包括Bruch的膜开口最小边缘宽度(BMO-MRW)和杯体积,因此在本研究中,我们提出一种基于多峰多分辨率图的方法在ONH中心的光谱域光学相干断层扫描(SD-OCT)体积内精确分割ILM表面。特别地,从多分辨率初始分割计算出的梯度矢量流(GVF)字段用于计算垂直于初始分割的一组非重叠的基于GVF的列。 GVF列用于重新采样体积,并且还用作图形构造的列。重采样体积中的ILM表面相当光滑,并且不包含陡峭的斜率。这种先验的形状知识以及从注册的眼底照片中获得的血管信息,都以图形理论的方式结合在一起,以识别ILM表面的位置。该方法在青光眼各个阶段的44名受试者的SD-OCT量上进行了测试,与目前的方法相比,分割误差明显较小。

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