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Image mosaicing of low quality neonatal retinal images

机译:低质量新生儿视网膜图像的图像拼接

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Retinopathy of prematurity (ROP) is a vascular disease in premature infants. This is characterized by abnormal vessel growth and subsequent fibrosis in the peripheral retina. The prognosis of ROP relies on information on the presence of abnormal growth and their location. Diagnosis is based on a series of images obtained with a wide field of view camera (such as RetCam), to capture the complete retina. In this paper, we present a novel and efficient hierarchal mosaicing algorithm, for neonatal images of varying quality. We employ a vessel-based quality metric and exploit the knowledge of the retinal structure to automatically select a subset of images from a given set, to construct a good quality mosaic. Such mosaics can aid the assessment of ROP by providing a comprehensive and complete view of the entire retina. The hierarchal approach underlying the method makes it possible to complete the mosaicing task in close to real time. The proposed method has been tested on 14 sets of data with each set consisting of 6–35 retinal images acquired using RetCam and the generated mosaics are found to be of good quality as validated by a clinical expert.
机译:早产儿视网膜病变(ROP)是早产儿的一种血管疾病。其特征是异常的血管生长和周围视网膜的随后纤维化。 ROP的预后依赖于异常生长的存在及其位置的信息。诊断是基于使用宽视野摄像机(例如RetCam)获得的一系列图像来捕获整个视网膜的。在本文中,我们提出了一种新颖而有效的分层镶嵌算法,用于处理质量不同的新生儿图像。我们采用基于血管的质量度量标准,并利用视网膜结构的知识从给定的集合中自动选择图像的子集,以构建高质量的镶嵌图。这样的镶嵌可以通过提供整个视网膜的全面而完整的视图来帮助评估ROP。该方法所基于的分层方法使得可以接近实时地完成镶嵌任务。所提议的方法已在14组数据上进行了测试,每组数据均包含使用RetCam采集的6–35个视网膜图像,并且经临床专家验证,所生成的镶嵌图具有良好的质量。

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