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Published on: December 15, 2023
Differentiating Dementia with Lewy Bodies and Alzheimer's Disease by Deep Learning to Structural MRI
Kiyotaka Nemoto1, Hiromasa Sakaguchi2, Wataru Kasai2
1Department of Psychiatry, Faculty of Medicine, University of Tsukuba, Ibaraki, Japan.
Background And Purpose:
Dementia with Lewy bodies (DLB) is the second most prevalent cause of degenerative dementia next to Alzheimer's disease (AD). Though current DLB diagnostic criteria employ several indicative biomarkers, relative preservation of the medial temporal lobe as revealed by structural MRI suffers from low sensitivity and specificity, making them unreliable as sole supporting biomarkers. In this study, we investigated how a deep learning approach would be able to differentiate DLB from AD with structural MRI data.
Methods:
Two-hundred and eight patients (101 DLB, 69 AD, and 38 controls) participated in this retrospective study. Gray matter images were extracted using voxel-based morphometry (VBM). In order to compare the conventional statistical analysis with deep-learning feature extraction, we built a classification model for DLB and AD with a residual neural network (ResNet) type of convolutional neural network architecture, which is one of the deep learning models. The anatomically standardized gray matter images extracted in the same way as for the VBM process were used as inputs, and the classification performance achieved by our model was evaluated.
Results:
Conventional statistical analysis detected no significant atrophy other than fine differences on the middle temporal pole and hippocampal regions. The feature extracted by the deep learning method differentiated DLB from AD with 79.15% accuracy compared to the 68.41% of the conventional method.
Conclusions:
Our results confirmed that the deep learning method with gray matter images can detect fine differences between DLB and AD that may be underestimated by the conventional method.
Insights
Deep learning accurately differentiates Dementia with Lewy bodies (DLB) from Alzheimer's disease (AD) using MRI scans. This advanced method detects subtle brain differences missed by traditional analysis, improving diagnostic accuracy.
Area of Science:
- Neuroimaging
- Artificial Intelligence in Medicine
- Neurology
Background:
- Dementia with Lewy bodies (DLB) is a common neurodegenerative dementia, second only to Alzheimer's disease (AD).
- Current DLB diagnostic criteria rely on biomarkers, but structural MRI shows limited sensitivity and specificity for medial temporal lobe preservation.
- Existing MRI-based biomarkers for DLB diagnosis have reliability issues.
Purpose of the Study:
- To investigate the efficacy of a deep learning approach in differentiating DLB from AD using structural MRI data.
- To compare the diagnostic performance of deep learning with conventional statistical analysis for DLB vs. AD classification.
Main Methods:
- A retrospective study involving 208 patients (101 DLB, 69 AD, 38 controls).
- Gray matter images were extracted using voxel-based morphometry (VBM).
- A classification model using a ResNet-type convolutional neural network was developed to differentiate DLB from AD based on gray matter images.
Main Results:
- Conventional statistical analysis revealed only minor differences in the middle temporal pole and hippocampal regions between DLB and AD.
- The deep learning model achieved 79.15% accuracy in differentiating DLB from AD.
- Conventional methods achieved 68.41% accuracy, significantly lower than the deep learning approach.
Conclusions:
- Deep learning methods applied to gray matter images can identify subtle differences between DLB and AD.
- These deep learning techniques offer superior diagnostic performance compared to conventional methods for distinguishing DLB from AD.
- The findings suggest deep learning can overcome limitations of traditional analysis in detecting early or subtle neurodegenerative changes.
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