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Automatic Change Detection of Retinal Images

机译:自动检测视网膜图像

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摘要

The aim of the presented study is the development of an automatic method for change detection in multitemporal digital images of the human retina. The images are acquired from the same patient at different times by a color fundus camera. The method proposed here is based on the preliminary automatic registration of multitemporal images, and the detection of the changes that can occur in the retina during time, by comparing the registered images. In order to achieve the temporal registration of the retinal images, an automatic approach based on global optimization techniques is proposed here. In particular, in order to estimate the optimum transformation between the input and the base image, a genetic algorithm is used to optimize the match between previously extracted maps of curvilinear structures in the images to be registered (such structures being represented by the vessels in the human retina). The proposed approach for the detection of temporal changes within the registered images is based on the application of an unsupervised algorithm, in order to cope with the lack of training information about the statistic of the changed areas in fundus images.The algorithm is tested on color fundus images with small and large changes. The comparison between the registered images using the implemented method and a manual one points out that the proposed algorithm provides an accurate registration. The image registration is not possible only when dealing with images taken from very different view-points. The analysis of the change-detection performances by a human expert suggests that the method is able to provide accurate change maps, when registration is successful.
机译:本研究的目的是开发一种用于在人类视网膜的多时相数字图像中进行变化检测的自动方法。通过彩色眼底照相机在同一时间从同一患者获取图像。这里提出的方法是基于多时相图像的初步自动配准,以及通过比较配准的图像来检测一段时间内视网膜中可能发生的变化。为了实现视网膜图像的时间配准,本文提出了一种基于全局优化技术的自动方法。特别地,为了估计输入图像和基本图像之间的最佳变换,使用遗传算法来优化要提取的图像中先前提取的曲线结构图之间的匹配(此类结构由血管中的血管表示)。人类视网膜)。所提出的用于检测配准图像中的时间变化的方法是基于无监督算法的应用,以解决缺乏关于眼底图像中变化区域的统计信息的训练信息的问题。 该算法在颜色变化较小和较大的眼底图像上进行了测试。使用所实现的方法和手动进行的配准图像之间的比较指出,所提出的算法提供了准确的配准。仅当处理从非常不同的视角拍摄的图像时,才可能进行图像配准。人类专家对变更检测性能的分析表明,当注册成功时,该方法能够提供准确的变更图。

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