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Computer-aided detection of pattern changes in longitudinal adaptive optics images of the retinal pigment epithelium

机译:计算机辅助检测视网膜色素上皮的纵向自适应光学图像中的图案变化

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Retinal pigment epithelium (RPE) defects are indicated in many blinding diseases, but have been difficult to image. Recently, adaptive optics enhanced indocyanine green (AO-ICG) imaging has enabled direct visualization of the RPE mosaic in the living human eye. However, tracking the RPE across longitudinal images on the time scale of months presents with unique challenges, such as visit-to-visit distortion and changes in image quality. We introduce a coarse-to-fine search strategy that identifies paired patterns and measures their changes. First, longitudinal AO-ICG image displacements are estimated through graph matching of affine invariant maximal stable extremal regions in affine Gaussian scale-space. This initial step provides an automatic means to designate the search ranges for finding corresponding patterns. Next, AO-ICG images are decomposed into superpixels, simplified to a pictorial structure, and then matched across visits using tree-based belief propagation. Results from human subjects in comparison with a validation dataset revealed acceptable accuracy levels for the level of changes that are expected in clinical data. Application of the proposed framework to images from a diseased eye demonstrates the potential clinical utility of this method for longitudinal tracking of the heterogeneous RPE pattern.
机译:视网膜色素上皮(RPE)缺陷在许多致盲疾病中都有表现,但很难成像。最近,自适应光学增强的吲哚菁绿(AO-ICG)成像已使人眼中的RPE镶嵌直接可见。但是,在几个月的时间范围内跨纵向图像跟踪RPE面临着独特的挑战,例如访问时访问失真和图像质量变化。我们介绍了一种从粗到精的搜索策略,该策略可以识别配对的模式并测量其变化。首先,通过仿射高斯尺度空间中仿射不变最大稳定极值区域的图匹配来估计纵向AO-ICG图像位移。该初始步骤提供了一种自动手段,可以指定用于查找相应模式的搜索范围。接下来,将AO-ICG图像分解为超像素,简化为图片结构,然后使用基于树的信念传播跨访问进行匹配。与验证数据集相比,人类受试者的结果显示,对于临床数据中预期的变化水平,可接受的准确性水平。提议的框架应用于患病眼睛图像的演示证明了该方法对异质RPE模式的纵向跟踪的潜在临床实用性。

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