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Comparative Study of Fine-Tuning of Pre-Trained Convolutional Neural Networks for Diabetic Retinopathy Screening

机译:对培训前卷积神经网络微调糖尿病视网膜病变筛查的比较研究

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Diabetic retinopathy is the leading cause of blindness, engaging people in different ages. Early detection of the disease, although significantly important to control and cure it, is usually being overlooked due to the need for experienced examination. To this end, automatic diabetic retinopathy diagnostic methods are proposed to facilitate the examination process and act as the physician's helper. In this paper, automatic diagnosis of diabetic retinopathy using pre-trained convolutional neural networks is studied. Pre-trained networks are chosen to avoid the time-and resource-consuming training algorithms for designing a convolutional neural network from scratch. Each neural network is fine-tuned with the pre-processed dataset, and the fine-tuning parameters as well as the pre-trained neural networks are compared together. The result of this paper, introduces a fast approach to fine-tune pre-trained networks, by studying different tuning parameters and their effect on the overall system performance due to the specific application of diabetic retinopathy screening.
机译:糖尿病视网膜病变是失明的主要原因,从事不同年龄的人。早期发现这种疾病,虽然对控制和治愈明显重要,但由于需要经验丰富的检查,通常被忽视。为此,提出了自动糖尿病视网膜病诊断方法,以促进检查过程并充当医生的助手。本文研究了使用预先训练的卷积神经网络的自动诊断糖尿病视网膜病变。选择预先训练的网络以避免用于从头划痕设计卷积神经网络的时间和资源耗费训练算法。每个神经网络都使用预处理的数据集进行微调,以及微调参数以及预先训练的神经网络。本文的结果,通过研究不同的调谐参数及其对整体系统性能的影响,介绍了微调预训练网络的快速方法,这是由于糖尿病视网膜病变筛选的特定应用。

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