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Dust particle artifact detection and removal in retinal images

机译:视网膜图像中的尘埃粒子伪影检测和去除

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摘要

Retinal fundus cameras suffer from dust particles attaching to the sensor and lens, which manifest as small artifacts on the images. We propose a new strategy for the detection and removal of dust particle artifacts in retinal images. We consider as input two or more color fundus images acquired within the same session, in which we assume the artifacts remain in the same position. Our method consists in detecting candidate artifacts via normalized cross correlation with an artifact template, performing segmentation via region growing, and comparing the segmentations in all images. This guarantees that all detections are consistent for all images. The removal stage consists in an inpainting procedure so that the new region does not stand out from the neighboring regions. Encouraging experimental results show the localization of artifacts is effective and the artifacts are successfully removed, while not introducing new artifacts in the color retinal images.
机译:视网膜眼底照相机的灰尘颗粒附着在传感器和镜头上,这些灰尘颗粒在图像上表现为小伪像。我们提出了一种用于检测和去除视网膜图像中灰尘颗粒伪影的新策略。我们将在同一会话中获取的两个或多个彩色眼底图像视为输入,在这些图像中,我们假设伪像保持在相同位置。我们的方法包括通过与工件模板的归一化互相关来检测候选工件,通过区域增长执行分割,以及比较所有图像中的分割。这保证了所有检测对于所有图像都是一致的。移除阶段包括修复过程,以使新区域不会从相邻区域中脱颖而出。令人鼓舞的实验结果表明,伪影的定位是有效的,伪影已成功去除,而没有在彩色视网膜图像中引入新的伪影。

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