基于深度学习的不同阶段阿尔茨海默病诊断方法的设计与实现

P. Rachana, B. Rajalakshmi, P. Guna Keerthi., S. Kavya, R. Likitha.
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引用次数: 0

摘要

阿尔茨海默病(AD)是一种不可逆转的退行性脑疾病,是一种进行性疾病。全球约有5000万人患有痴呆症,每年约有1000万新病例。目前还没有治愈这种疾病的方法。除非及早发现,否则无法治疗痴呆症。因此,老年痴呆症的早期检测需要一种计算方法。我们的项目旨在对AD阶段的深度学习方法进行分类和确定。建立一个处理ADNI知识集的模型。通过添加额外的数据和增加数据集的可变性,对员工数据进行初始扩充,以增加数据集的规模。对MRI图像进行了噪声抑制预处理。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design and Implementation of a Method for Diagnosing Various Stages of Alzheimer’s Illness Using Deep Learning
Alzheimer’s disease (AD) is meant to be an irreversible degenerative brain disease and it is progressive. About 50 million individuals world-wide suffer dementia, with about 10 million new cases every year. There is currently no cure for condition. Dementia cannot be treated unless it is detected early. Therefore, early detection of Alzheimer’s requires a computational approach. Our project seeks to classify and determine deep leaning methods for the AD stage. Build a model mistreatment the ADNI knowledge set. The employee data is initial augmented to increase the scale of the dataset by adding additional data and increasing the variability of the dataset. MRI pictures are pre-processed with noise suppression.
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