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Early Detection of Retinopathy of Prematurity stage using Deep Learning approach

机译:利用深度学习方法早期检测早产阶段的视网膜病变

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Retinopathy of Prematurity (ROP) is a fibrovascular proliferative disorder, which affects the developing peripheral retinal vasculature of premature infants. Early detection of ROP is possible in stage 1 and stage 2 characterized by demarcation line and ridge with width which separates vascularised retina and the peripheral retina. To detect demarcation line/ ridge from neonatal retinal images is a complex task because of low contrast images. In this paper we focus on detection of ridge, the important landmark in ROP diagnosis, using Convolutional Neural Network(CNN). Our contribution is to use a CNN-based model Mask R-CNN for demarcation line/ridge detection allowing clinicians to detect ROP stage 2 better. The proposed system applies a pre-processing step of image enhancement to overcome poor image quality. In this study we use labelled neonatal images and we explore the use of CNN to localize ridge in these images. We used a dataset of 220 images of 45 babies from the KIDROP project. The system was trained on 175 retinal images with ground truth segmentation of ridge region. The system was tested on 45 images and reached detection accuracy of 0.88, showing that deep learning detection with pre-processing by image normalization allows robust detection of ROP in early stages.
机译:早产儿(ROP)的视网膜病变是一种纤维血管增殖性疾病,其影响早产儿的外周视网膜脉管系统。在第1阶段和阶段2中可以提前检测ROP,其特征在于分界线和横脊,其宽度分离血管化视网膜和外周视网膜。为了检测新生儿视网膜图像的分界线/脊,因为图像是低对比度的图像。本文采用卷积神经网络(CNN),专注于检测ROP诊断中的重要地标。我们的贡献是使用基于CNN的模型掩模R-CNN用于分界线/脊检测,允许临床医生更好地检测ROP级2。该系统应用了图像增强的预处理步骤以克服差的图像质量。在这项研究中,我们使用标记的新生儿图像,我们探索CNN在这些图像中使用CNN到本地化脊。我们使用了来自kidrop项目的220个婴儿220个图像的数据集。该系统在175个视网膜图像上培训,具有脊髓区域的地面真理分割。该系统在45个图像上进行测试,达到0.88的检测精度,显示通过图像归一化预处理的深度学习检测允许在早期阶段进行鲁棒检测ROP。

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