Assessing the Efficacy of Classical and Deep Neuroimaging Biomarkers in Early Alzheimer’s Disease Diagnosis

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Abstract

Alzheimer’s disease (AD) is the leading cause of dementia, and its early detection is crucial for effective intervention, yet current diagnostic methods often fall short in sensitivity and specificity. This study aims to detect significant indicators of early AD by extracting and integrating various imaging biomarkers, including radiomics, hippocampal texture descriptors, cortical thickness measurements, and deep learning features. We analyze structural magnetic resonance imaging (MRI) scans from the Alzheimer’s Disease Neuroimaging Initiative (ADNI) cohorts, utilizing comprehensive image analysis and machine learning techniques. Our results show that combining multiple biomarkers significantly improves detection accuracy. Radiomics and texture features emerged as the most effective predictors for early AD, achieving AUCs of 0.88 and 0.72 for AD and MCI detection, respectively. Although deep learning features proved to be less effective than traditional approaches, incorporating age with other biomarkers notably enhanced MCI detection performance. Additionally, our findings emphasize the continued importance of classical imaging biomarkers in the face of modern deep-learning approaches, providing a robust framework for early AD diagnosis.

OriginalsprogEngelsk
TitelMedical Imaging 2025 : Computer-Aided Diagnosis
RedaktørerSusan M. Astley, Axel Wismuller
Antal sider6
ForlagSPIE
Publikationsdato2025
Artikelnummer1340722
ISBN (Elektronisk)9781510685925
DOI
StatusUdgivet - 2025
BegivenhedMedical Imaging 2025: Computer-Aided Diagnosis - San Diego, USA
Varighed: 17 feb. 202520 feb. 2025

Konference

KonferenceMedical Imaging 2025: Computer-Aided Diagnosis
Land/OmrådeUSA
BySan Diego
Periode17/02/202520/02/2025
SponsorSiemens Healthineers, The Society of Photo-Optical Instrumentation Engineers (SPIE)
NavnProgress in Biomedical Optics and Imaging - Proceedings of SPIE
Vol/bind13407
ISSN1605-7422

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