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Personalized Prediction of Asthma Severity and Asthma Attack for a Personalized Treatment Regimen

机译:个性化治疗方案的哮喘严重程度和哮喘发作的个性化预测

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Control of asthma is critical for disease management and quality of life. Asthma treatment depends on the patient demographic information (e.g., age), and disease severity, which is determined by: (1) how symptoms affect a patient's daily life, (2) measured lung function, and (3) estimated risk of having an asthma attack. In this paper, we will present the Tensorflow Text Classification (TC) method to classify a patient's asthma severity level. We will also propose a Q-learning method to train an agent through trials and errors to improve the prediction accuracy and create a personalized treatment regimen for asthma patients.
机译:控制哮喘对于疾病管理和生活质量至关重要。哮喘的治疗取决于患者的人口统计学信息(例如年龄)和疾病严重程度,取决于以下因素:(1)症状如何影响患者的日常生活;(2)测得的肺功能;以及(3)估计患上哮喘的风险哮喘发作。在本文中,我们将提出Tensorflow文本分类(TC)方法来对患者的哮喘严重程度进行分类。我们还将提出一种Q学习方法,通过反复试验来训练代理,以提高预测准确性并为哮喘患者创建个性化的治疗方案。

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