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M-Net with Bidirectional ConvLSTM for Cup and Disc Segmentation in Fundus Images

机译:M-Net,具有双向Convlstm for Cup和Disc Seagonation在眼底图像中

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Glaucoma is a severe eye disease that is known to deteriorate optic never fibers, causing cup size to increase, which could result in permanent loss of vision. Glaucoma is the second leading cause of blindness after cataract, but glaucoma being more dangerous as it is not curable. Early diagnoses and treatment of glaucoma can help to slow the progression of glaucoma and its damages. For the detection of glaucoma, the Cup to Disc ratio (CDR) provides significant information. The CDR depends heavily on the accurate segmentation of cup and disc regions. In this paper, we have proposed a modified M-Net with bidirectional convolution long short-term memory (LSTM), based on joint cup and disc segmentation. The proposed network combines features of encoder and decoder, with bidirectional LSTM. Our proposed model segments cup and disc regions based on which the abnormalities in cup to disc ratio can be observed. The proposed model is tested on REFUGE2 data, where our model achieves a dice score of 0.92 for optic disc and an accuracy of 98.99% in segmenting cup and disc regions.
机译:青光眼是一种严重的眼部疾病,众所周知,光学光学从不纤维劣化,导致杯子尺寸增加,这可能导致永久性丧失视力。青光眼是白内障后失明的第二个主要原因,但青光眼更危险,因为它不可用。青光眼的早期诊断和治疗可以帮助减缓青光眼的进展及其损害。为了检测青光眼,杯子比率(CDR)提供了重要信息。 CDR严重取决于杯子和盘区的精确分割。在本文中,基于联合杯和光盘分割,我们提出了一种具有双向卷积长短短期存储器(LSTM)的改进的M-Net。所提出的网络结合了编码器和解码器的功能,具有双向LSTM。我们所提出的模型段杯和盘区域,基于该杯和盘区域可以观察到盘与盘比的异常。在refuge2数据上测试了所提出的模型,其中我们的模型在分段杯和盘区域中达到0.92的骰子得分为0.92,精度为98.99%。

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