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Registration of multimodal and temporal images of the retina using a combined feature-based and statistics-based method

机译:使用基于特征和基于统计的组合方法配准视网膜多峰和颞叶图像

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Registration of retinal images is important for doctors to diagnose because it merges information of several images. This paper presents an automated multimodal and temporal retinal image registration method which is especially robust to infrared radiation (IR) fundus images, which may suffer terrible imaging artifacts, such as extremely low contrast, overexposed edges, or invisibility of blood vessels. The method we propose combines the feature-based registration method and the statistics-based registration method by using the OD detection method based on Line operator to detect the OD for the fundamental registration and use the maximal mutual information method for fine registration and improve them by down-sampling, getting Region of Interest (ROI), bilateral filter and so on to get a better effect. Experiments over optical coherence tomography (OCT) and IR dataset show that our proposed method outperforms other methods by obtaining an accuracy of 82% and an average time consuming of 5.1 second.
机译:视网膜图像配准对于医生进行诊断非常重要,因为它会合并多个图像的信息。本文提出了一种自动化的多模态和暂时性视网膜图像配准方法,该方法特别适用于红外辐射(IR)眼底图像,该图像可能会遭受可怕的成像伪影,例如对比度极低,边缘曝光过度或血管不可见。我们提出的方法通过使用基于Line运算符的OD检测方法将基于特征的注册方法和基于统计的注册方法相结合,以检测用于基本注册的OD,并使用最大互信息方法进行精细注册并通过以下方法进行改进下采样,获得感兴趣区域(ROI),双边滤波器等,以获得更好的效果。通过光学相干断层扫描(OCT)和红外数据集进行的实验表明,我们提出的方法优于其他方法,其准确性为82%,平均耗时为5.1秒。

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