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Study on the Method of Fundus Image Generation Based on Improved GAN

机译:基于改进GaN的眼底图像生成方法研究

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With the continuous development of deep learning, the performance of the intelligent diagnosis system for ocular fundus diseases has been significantly improved, but during the system training process, problems like lack of fundus samples and uneven sample distribution (the number of disease samples is much smaller than the number of normal samples) have become increasingly prominent. In view of the previous issues, this paper proposes a method for generating fundus images based on “Combined GAN” (Com-GAN), which can generate both normal fundus images and fundus images with hard exudates, so that the sample distribution can be more even, while the fundus data are expanded. First, this paper uses existing images to train a Com-GAN, which consists of two subnetworks: im-WGAN and im-CGAN; then, it uses the trained model to generate fundus images, then performs qualitative and quantitative evaluation on the generated images, and adds the images to the original image set to expand the datasets; finally, based on this expanded training set, it trains the hard exudate detection system. The expanded datasets effectively improve the generalization ability of the system on the public datasets DIARETDB1 and e-ophtha EX, thereby verifying the effectiveness of the proposed method.
机译:随着深度学习的持续发展,智能诊断系统对眼底疾病的表现得到了显着改善,但在系统培训过程中,缺乏眼底样品和不均匀样品分布的问题(疾病样本的数量要小得多比正常样本的数量越来越突出。鉴于以前的问题,本文提出了一种基于“组合GaN”(COM-GAN)生成眼底图像的方法,该方法可以生成具有硬渗出物的正常眼底图像和眼底图像,使得样品分布可以更多即使,虽然基底数据被扩展。首先,本文使用现有的图像培训一个COM-GAN,它由两个子网组成:IM-Wngan和IM-Cgan;然后,它使用训练模型来生成眼底图像,然后对所生成的图像进行定性和定量评估,并将图像添加到原始图像集以展开数据集;最后,基于这种扩展的训练集,它培训了硬渗出物检测系统。扩展的数据集有效地提高了在公共数据集DiaRetdB1和E-OPHTHA EX上的系统的泛化能力,从而验证了所提出的方法的有效性。

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