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Differentiation of Alzheimer conditions in MR brain images using a single inception module network
S. Shaji, , R. Swaminathan
Published in IOS Press
2021
PMID: 34042725
Pages: 158 - 162
Abstract
In this study, an attempt has been made to differentiate Alzheimer's Disease (AD) stages in structural Magnetic Resonance (MR) images using single inception module network. For this, T1-weighted MR brain images of AD, mild cognitive impairment and Normal Controls (NC) are obtained from a public database. From the images, significant features are extracted and classified using an inception module network. The performance of the model is computed and analyzed for different input image sizes. Results show that the single inception module is able to classify AD stages using MR images. The end-to-end network differentiates AD from NC with 85% precision. The model is found to be effective for varied sizes of input images. Since the proposed approach is able to categorize AD stages, single inception module networks could be used for the automated AD diagnosis with minimum medical expertise. © 2021 European Federation for Medical Informatics (EFMI) and IOS Press. © 2021 European Federation for Medical Informatics (EFMI) and IOS Press. All rights reserved.
About the journal
JournalPublic Health and Informatics: Proceedings of MIE 2021
PublisherIOS Press