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Automatic estimation of retinal nerve fiber bundle orientation in SD-OCT images using a structure-oriented smoothing filter

机译:使用结构导向的平滑滤波器自动估计SD-OCT图像中的视网膜神经纤维束方向

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Optical coherence tomography (OCT) yields high-resolution, three-dimensional images of the retina. A better understanding of retinal nerve fiber bundle (RNFB) trajectories in combination with visual field data may be used for future diagnosis and monitoring of glaucoma. However, manual tracing of these bundles is a tedious task. In this work, we present an automatic technique to estimate the orientation of RNFBs from volumetric OCT scans. Our method consists of several steps, starting from automatic segmentation of the RNFL. Then, a stack of en face images around the posterior nerve fiber layer interface was extracted. The image showing the best visibility of RNFB trajectories was selected for further processing. After denoising the selected en face image, a semblance structure-oriented filter was applied to probe the strength of local linear structure in a discrete set of orientations creating an orientation space. Gaussian filtering along the orientation axis in this space is used to find the dominant orientation. Next, a confidence map was created to supplement the estimated orientation. This confidence map was used as pixel weight in normalized convolution to regularize the semblance filter response after which a new orientation estimate can be obtained. Finally, after several iterations an orientation field corresponding to the strongest local orientation was obtained. The RNFB orientations of six macular scans from three subjects were estimated. For all scans, visual inspection shows a good agreement between the estimated orientation fields and the RNFB trajectories in the en face images. Additionally, a good correlation between the orientation fields of two scans of the same subject was observed. Our method was also applied to a larger field of view around the macula. Manual tracing of the RNFB trajectories shows a good agreement with the automatically obtained streamlines obtained by fiber tracking.
机译:光学相干断层扫描(OCT)可产生视网膜的高分辨率三维图像。对视网膜神经纤维束(RNFB)轨迹与视野数据的更好理解可用于将来的青光眼诊断和监测。但是,手动跟踪这些捆绑包是一项繁琐的任务。在这项工作中,我们提出了一种自动技术,可以根据体积OCT扫描估算RNFB的方向。我们的方法包括几个步骤,从RNFL的自动分割开始。然后,提取后神经纤维层界面周围的一堆正面图像。选择显示最佳RNFB轨迹可见度的图像进行进一步处理。对选定的脸部图像进行去噪后,应用面向相似结构的滤波器,以探测离散线性方向集中的局部线性结构的强度,从而创建方向空间。在该空间中沿方向轴进行高斯滤波可找到主导方向。接下来,创建置信度图以补充估计的方向。该置信度图用作归一化卷积中的像素权重,以规范化相似性滤波器响应,此后可以获得新的方向估计。最终,在几次迭代之后,获得了对应于最强局部取向的取向场。估计了来自三名受试者的六次黄斑扫描的RNFB方向。对于所有扫描,目视检查均显示出面部图像中估计的定向场与RNFB轨迹之间的一致性。另外,观察到同一受试者的两次扫描的取向场之间的良好相关性。我们的方法还适用于黄斑周围较大的视野。 RNFB轨迹的手动跟踪显示与通过光纤跟踪获得的自动获得的流线非常吻合。

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