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ADVIAN:基于卷积块注意力模块和多方式数据增强的阿尔茨海默病VGG启发式注意力网络

ADVIAN: Alzheimer's Disease VGG-Inspired Attention Network Based on Convolutional Block Attention Module and Multiple Way Data Augmentation.

作者信息

Wang Shui-Hua, Zhou Qinghua, Yang Ming, Zhang Yu-Dong

机构信息

Key Laboratory of Child Development and Learning Science (Southeast University), Ministry of Education, Nanjing, China.

School of Mathematics and Actuarial Science, University of Leicester, Leicester, United Kingdom.

出版信息

Front Aging Neurosci. 2021 Jun 18;13:687456. doi: 10.3389/fnagi.2021.687456. eCollection 2021.

Abstract

Alzheimer's disease is a neurodegenerative disease that causes 60-70% of all cases of dementia. This study is to provide a novel method that can identify AD more accurately. We first propose a VGG-inspired network (VIN) as the backbone network and investigate the use of attention mechanisms. We proposed an Alzheimer's Disease VGG-Inspired Attention Network (ADVIAN), where we integrate convolutional block attention modules on a VIN backbone. Also, 18-way data augmentation is proposed to avoid overfitting. Ten runs of 10-fold cross-validation are carried out to report the unbiased performance. The sensitivity and specificity reach 97.65 ± 1.36 and 97.86 ± 1.55, respectively. Its precision and accuracy are 97.87 ± 1.53 and 97.76 ± 1.13, respectively. The F1 score, MCC, and FMI are obtained as 97.75 ± 1.13, 95.53 ± 2.27, and 97.76 ± 1.13, respectively. The AUC is 0.9852. The proposed ADVIAN gives better results than 11 state-of-the-art methods. Besides, experimental results demonstrate the effectiveness of 18-way data augmentation.

摘要

阿尔茨海默病是一种神经退行性疾病,导致所有痴呆病例中的60 - 70%。本研究旨在提供一种能够更准确识别阿尔茨海默病的新方法。我们首先提出一种受VGG启发的网络(VIN)作为骨干网络,并研究注意力机制的使用。我们提出了一种阿尔茨海默病VGG启发式注意力网络(ADVIAN),在VIN骨干网络上集成了卷积块注意力模块。此外,还提出了18种数据增强方法以避免过拟合。进行了十次十折交叉验证来报告无偏性能。灵敏度和特异性分别达到97.65±1.36和97.86±1.55。其精度和准确率分别为97.87±1.53和97.76±1.13。F1分数、MCC和FMI分别为97.75±1.13、95.53±2.27和97.76±1.13。AUC为0.9852。所提出的ADVIAN比11种现有最先进方法给出了更好的结果。此外,实验结果证明了18种数据增强方法的有效性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f699/8250430/276d91864c25/fnagi-13-687456-g0001.jpg

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