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Optic Disc and Cup Segmentation with Blood Vessel Removal from Fundus Images for Glaucoma Detection

机译:从眼底图像中去除血管的视盘和杯分割,用于青光眼检测

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Glaucoma is one of the major causes of blindness. Researchers keep looking for better ways to detect glaucoma in its early stage before it gets worse and cannot be cured. Among existing methods, the vertical cup to disc ratio (CDR) has been found to be effective for glaucoma measurement, which is calculated from the diameters of the optic cup and disc regions. Therefore, in order to achieve a more accurate CDR, a good segmentation of the optic disc and cup regions is quite important. Noting that the shape of the disc and cup regions can be assumed to be an ellipse, in this work we propose to find the minimal bounding boxes for the two regions based on the recent advances of deep learning. Also, considering blood vessels, passing through the disc area in a fundus image, can affect the detection of the bounding boxes, we further propose to remove the blood vessels beforehand in order to further boost the overall performance. Comprehensive experiments show that our proposed method achieves state-of-the-art performance on ORIGA-650 for optic disc and cup segmentation.
机译:青光眼是失明的主要原因之一。研究人员一直在寻找更好的方法来早期发现青光眼,以防青光眼恶化并无法治愈。在现有方法中,已经发现垂直杯对椎间盘的比率(CDR)对于青光眼的测量是有效的,这是根据视杯和椎间盘区域的直径计算得出的。因此,为了获得更准确的CDR,视盘和杯状区域的良好分割非常重要。注意,可以将圆盘和杯形区域的形状假定为椭圆形,在这项工作中,我们建议根据深度学习的最新进展找到两个区域的最小边界框。此外,考虑到穿过眼底图像中的椎间盘区域的血管会影响边界框的检测,因此我们进一步建议事先移除血管,以进一步提高整体性能。全面的实验表明,我们提出的方法在ORIGA-650上实现了用于视盘和杯分割的最新性能。

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