作者
Sulantha Mathotaarachchi, Tharick A Pascoal, Monica Shin, Andrea L Benedet, Min Su Kang, Thomas Beaudry, Vladimir S Fonov, Serge Gauthier, Pedro Rosa-Neto, Alzheimer's Disease Neuroimaging Initiative
发表日期
2017/11/1
期刊
Neurobiology of aging
卷号
59
页码范围
80-90
出版商
Elsevier
简介
Identifying individuals destined to develop Alzheimer's dementia within time frames acceptable for clinical trials constitutes an important challenge to design studies to test emerging disease-modifying therapies. Although amyloid-β protein is the core pathologic feature of Alzheimer's disease, biomarkers of neuronal degeneration are the only ones believed to provide satisfactory predictions of clinical progression within short time frames. Here, we propose a machine learning–based probabilistic method designed to assess the progression to dementia within 24 months, based on the regional information from a single amyloid positron emission tomography scan. Importantly, the proposed method was designed to overcome the inherent adverse imbalance proportions between stable and progressive mild cognitive impairment individuals within a short observation period. The novel algorithm obtained an accuracy of …
引用总数
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