皮肤疾病分类使用深度学习CNN

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引用次数: 0

摘要

皮肤病是世界上传播最广的疾病之一。它的诊断是非常困难的,因为它的皮肤质地,皮肤上的毛发和颜色的存在困难。因此,需要开发一种高效的基于深度学习的皮肤病诊断方法,以提高对不同皮肤类型的诊断准确率。如今,深度学习技术在医疗诊断系统中越来越受欢迎。这项工作的重点是使用深度学习技术进行皮肤病预测。在实现中,用于皮肤病预测的数据集是包含9类皮肤病的ISIC数据集。对于分类,使用的深度学习算法是Visual Geometry Group 19 (VGG 19)。VGG 19是一个预训练的神经网络,利用迁移学习的概念可以用于皮肤疾病的检测。为此,神经网络从皮肤图像中提取图像特征。提取的特征用于7类皮肤病内的皮肤病检测。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Skin Disease Classification Using Deep Learning CNN
Skin disease is one of the large numbers of spread diseases in the world. Its diagnoses are very difficult because of its difficulties in the skin texture, presence of hair on skin and colour. Thus, it is required to develop an efficient method for the diagnosis of skin disease based on deep learning in order to increase the accuracy of diagnosis for different skin types. Now a days, deep learning techniques are more popular in medical diagnosis system. This work focuses on skin disease prediction using deep learning technique. For the implementation, the dataset used for the skin disease prediction is the ISIC dataset with 9 category of skin diseases. For the classification, the deep learning algorithm used is Visual Geometry Group 19 (VGG 19). VGG 19 is a pretrained neural network, which can be used for the detection of skin disease detection using the concept of transfer learning. For that the neural network extracts image features from the skin images. The extracted features are used for the detection of skin disease within the 7 classes of skin diseases.
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