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A Clinical Decision Support System for Aiding Diagnosis of Alzheimer's Disease and Related Disorders in Mobile Devices

机译:一种临床决策支持系统,用于诊断阿尔茨海默病和移动设备中相关疾病的诊断

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The worldwide aging phenomenon is a growing concern. Alzheimer's disease (AD) has a high prevalence in the elderly. In this paper, we present a clinical decision support system for aiding the diagnosis of AD and related disorders. We describe system's main components and architecture, which is based on a mobile web-based platform. Its predictive model is based on Bayesian networks designed considering AD diagnosis criteria, trained and tested with the patient database of the Center for Alzheimer's Disease and Related Disorder at the Institute of Psychiatry of the Federal University of Rio de Janeiro, Brazil. Patient database attributes are composed by predisposal factors, demographic data, assessment scales, symptoms and signs. When the system indicates a patient diagnosis, it provides: the most probable diagnosis, health data that lead to such diagnosis and, in case of low certainty factor, unobserved health data that should be collected to confirm or refuse the initial diagnostic hypothesis. Preliminary usability tests indicate potential use of the system in clinical practice.
机译:全球老龄化现象正日益受到关注。阿尔茨海默病(AD)的中老年人发病率较高。在本文中,我们提出了一个临床决策支持系统,用于帮助AD和相关疾病的诊断。我们描述系统的主要组件和体系结构,它是基于移动网络平台上。其预测模型是基于贝叶斯网络设计考虑AD诊断标准,培训,并与中心的阿尔茨海默氏病的患者数据库和相关疾病在里约热内卢,巴西联邦大学的精神病学研究所的测试。患者数据库属性由易患病的因素,人口统计数据,评估量表,症状和体征组成。当系统指示患者的诊断,它提供了:最可能的诊断,健康数据导致这种诊断,并且在低确定性因子,未观察到的健康数据的情况下应被收集,以确认或拒绝的初始诊断假设。初步可用性测试表明在临床实践中可能使用该系统。

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