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OPHTHALMOLOGIC IMAGE REGISTRATION BASED ON SHAPE-CONTEXT: APPLICATION TO FUNDUS AUTOFLUORESCENCE (FAF) IMAGES

机译:基于形状上下文的眼科影像注册:在Fundus自体荧光(FAF)影像中的应用

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摘要

A novel registration algorithm, which was developed in order to facilitate ophthalmologic image processing, is presented in this paper. It has been evaluated on FAF images, which present low Signal/Noise Ratio (SNR) and variations in dynamic grayscale range. These characteristics complicate the registration process and cause a failure to area-based registration techniques [1,2]. Our method is based on the shape-context theory [3]. In the first step, images are enhanced by Gaussian model based histogram modification. Features are extracted in the next step by morphological operators, which are used to detect the vascular tree from both reference and floating images. Then the simplified medial axis of vessels is calculated. From each image, a set of control points called Bifurcation Points (BPs) is extracted from the medial axis through a new fast algorithm. Radial histogram is formed for each BP using the medial axis. The Chi2 distance is measured between two sets of BPs based on radial histogram. The Hungarian algorithm is applied to assign the correspondence among BPs from reference and floating images. The algorithmic robustness is evaluated by mutual information criteria between a manual registration considered as Ground Truth and an automatic one.
机译:本文提出了一种新颖的配准算法,以促进眼科图像处理。它已在具有低信噪比(SNR)和动态灰度范围变化的FAF图像上进行了评估。这些特征使注册过程复杂化,并导致基于区域的注册技术失败[1,2]。我们的方法基于形状上下文理论[3]。第一步,通过基于高斯模型的直方图修改来增强图像。下一步,由形态学运算符提取特征,然后将其用于从参考图像和浮动图像中检测血管树。然后计算简化的血管内侧轴。从每个图像中,通过新的快速算法从中间轴提取一组称为分叉点(BP)的控制点。使用中间轴为每个BP形成径向直方图。 Chi2距离是根据径向直方图在两组BP之间测量的。应用匈牙利算法从参考图像和浮动图像中分配BP之间的对应关系。该算法的鲁棒性是通过相互之间的信息标准评估的,该标准是在手动注册(被视为地面真理)和自动注册之间进行的。

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