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Tracking features in retinal images of adaptive optics confocal scanning laser ophthalmoscope using KLT-SIFT algorithm

机译:自适应光学共聚焦扫描激光在视网膜图像中的跟踪特征 KLT-SIFT算法的检眼镜

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摘要

With the use of adaptive optics (AO), high-resolution microscopic imaging of living human retina in the single cell level has been achieved. In an adaptive optics confocal scanning laser ophthalmoscope (AOSLO) system, with a small field size (about 1 degree, 280 μm), the motion of the eye severely affects the stabilization of the real-time video images and results in significant distortions of the retina images. In this paper, Scale-Invariant Feature Transform (SIFT) is used to abstract stable point features from the retina images. Kanade-Lucas-Tomasi(KLT) algorithm is applied to track the features. With the tracked features, the image distortion in each frame is removed by the second-order polynomial transformation, and 10 successive frames are co-added to enhance the image quality. Features of special interest in an image can also be selected manually and tracked by KLT. A point on a cone is selected manually, and the cone is tracked from frame to frame.
机译:通过使用自适应光学(AO),已实现了在单个细胞水平上对人类视网膜的高分辨率显微成像。在自适应光学共焦扫描激光检眼镜(AOSLO)系统中,视野很小(约1度,280μm),眼睛的运动会严重影响实时视频图像的稳定性,并导致实时图像的严重失真。视网膜图像。在本文中,尺度不变特征变换(SIFT)用于从视网膜图像中提取稳定点特征。 Kanade-Lucas-Tomasi(KLT)算法用于跟踪特征。通过跟踪特征,通过二阶多项式变换消除了每帧中的图像失真,并共添加了10个连续的帧以提高图像质量。图像中特别感兴趣的特征也可以手动选择并由KLT跟踪。手动选择圆锥上的一个点,然后逐帧跟踪圆锥。

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