کد مقاله | کد نشریه | سال انتشار | مقاله انگلیسی | نسخه تمام متن |
---|---|---|---|---|
6920222 | 1447879 | 2018 | 45 صفحه PDF | دانلود رایگان |
عنوان انگلیسی مقاله ISI
Modeling Alzheimer's disease cognitive scores using multi-task sparse group lasso
ترجمه فارسی عنوان
مدل سازی نمرات شناختی بیماری آلزایمر با استفاده از چند گروه چند ضلعی لسو
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کلمات کلیدی
بیماری آلزایمر، یادگیری چند کاره اسپارس گروه لسو،
موضوعات مرتبط
مهندسی و علوم پایه
مهندسی کامپیوتر
نرم افزارهای علوم کامپیوتر
چکیده انگلیسی
Alzheimer's disease (AD) is a severe neurodegenerative disorder characterized by loss of memory and reduction in cognitive functions due to progressive degeneration of neurons and their connections, eventually leading to death. In this paper, we consider the problem of simultaneously predicting several different cognitive scores associated with categorizing subjects as normal, mild cognitive impairment (MCI), or Alzheimer's disease (AD) in a multi-task learning framework using features extracted from brain images obtained from ADNI (Alzheimer's Disease Neuroimaging Initiative). To solve the problem, we present a multi-task sparse group lasso (MT-SGL) framework, which estimates sparse features coupled across tasks, and can work with loss functions associated with any Generalized Linear Models. Through comparisons with a variety of baseline models using multiple evaluation metrics, we illustrate the promising predictive performance of MT-SGL on ADNI along with its ability to identify brain regions more likely to help the characterization Alzheimer's disease progression.
ناشر
Database: Elsevier - ScienceDirect (ساینس دایرکت)
Journal: Computerized Medical Imaging and Graphics - Volume 66, June 2018, Pages 100-114
Journal: Computerized Medical Imaging and Graphics - Volume 66, June 2018, Pages 100-114
نویسندگان
Xiaoli Liu, André R. Goncalves, Peng Cao, Dazhe Zhao, Arindam Banerjee, Alzheimer's Disease Neuroimaging Initiative Alzheimer's Disease Neuroimaging Initiative,