健康信息学
痴呆
冲程(发动机)
计算机科学
医学
人工智能
机器学习
物理医学与康复
公共卫生
护理部
内科学
工程类
机械工程
疾病
作者
Zemin Wei,Mengqi Li,Chenghui Zhang,Jinli Miao,Wenmin Wang,Hong Fan
标识
DOI:10.1186/s12911-024-02752-4
摘要
Post-stroke dementia (PSD), a common complication, diminishes rehabilitation efficacy and affects disease prognosis in stroke patients. Many factors may be related to PSD, including demographic, comorbidities, and examination characteristics. However, most existing methods are qualitative evaluations of independent factors, which ignore the interaction amongst various factors. Therefore, the purpose of this study is to explore the applicability of machine learning (ML) methods for predicting PSD.
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