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Automated Identification of Photoreceptor Cones Using Multi-scale Modelling and Normalized Cross-Correlation

机译:使用多尺度建模和归一化互相关自动识别感光锥体

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Analysis of the retinal photoreceptor mosaic can provide vital information in the assessment of retinal disease. However, visual analysis of photoreceptor cones can be both difficult and time consuming. The use of image processing techniques to automatically count and analyse these photoreceptor cones would be beneficial. This paper proposes the use of multi-scale modelling and normalized cross-correlation to identify retinal cones in image data obtained from a modified commercially available confocal scanning laser ophthalmoscope (CSLO). The paper also illustrates a process of synthetic data generation to create images similar to those obtained from the CSLO. Comparisons between synthetic and manually labelled images and the automated algorithm are also presented.
机译:视网膜感光细胞镶嵌的分析可以为评估视网膜疾病提供重要信息。然而,视觉感受器锥体的分析可能既困难又耗时。使用图像处理技术来自动计数和分析这些感光锥是有益的。本文提出使用多尺度建模和归一化互相关来识别从修改后的市售共焦扫描激光检眼镜(CSLO)获得的图像数据中的视网膜锥。本文还说明了合成数据生成的过程,以创建类似于从CSLO获得的图像的图像。还介绍了合成图像和手动标记图像与自动算法之间的比较。

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