Integrating Stable diffusion for Improved Alzheimer's Disease Classification: Insights from MRI Images and YOLOv8

被引:0
作者
Islam, Junaidul [1 ]
Furqon, Elvin Nur [2 ]
Farady, Isack [1 ]
Alex, John Sahaya Rani [3 ]
Kuo, Chia-Chen [4 ]
Lin, Chih-Yang [1 ]
机构
[1] Natl Cent Univ, Taoyuan, Taiwan
[2] Yuan Ze Univ, Taoyuan, Taiwan
[3] Vellore Inst Technol, Vellore, Tamil Nadu, India
[4] Natl Appl Res Labs, Natl Ctr High Performance Comp, Taipei, Taiwan
来源
2024 11TH INTERNATIONAL CONFERENCE ON CONSUMER ELECTRONICS-TAIWAN, ICCE-TAIWAN 2024 | 2024年
关键词
Generative model; stable diffusion; Alzheimer's disease; MRI image; deep learning;
D O I
10.1109/ICCE-Taiwan62264.2024.10674478
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Alzheimer's disease (AD) is the most common form of dementia, characterized by progressive neurodegeneration. Structural changes in the brain associated with AD can be visualized using magnetic resonance imaging (MRI). However, acquiring a sufficient number of MRI images from patients with Alzheimer's disease is challenging. In this study, we employ stable diffusion to simulate MRI scans of patients with AD. We train the stable diffusion model from scratch to generate new MRI images as part of data augmentation alongside the original images. The model is capable of producing synthetic MRI images of AD. We employ t-distributed Stochastic Neighbor Embedding (t-SNE) visualization to evaluate the quality and diversity of the generated images by comparing their distribution to that of actual MRI scans. Subsequently, a modified YOLOv8-cls model is retrained using the generated images for AD classification. Our findings demonstrate that this approach effectively produces realistic synthetic biological images suitable for training deep learning models with 10% improvement in accuracy.
引用
收藏
页码:303 / 304
页数:2
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