Improving chronic disease management for children with knowledge graphs and artificial intelligence

计算机科学 人工智能 人工智能应用 大数据 决策支持系统 知识管理 慢性病 医疗保健 数据科学 医学 数据挖掘 经济增长 经济 家庭医学
作者
Gang Yu,Mohammad Tabatabaei,József Mezei,Qianhui Zhong,Siyu Chen,Zheming Li,Jing Li,Liqi Shu,Qiang Shu
出处
期刊:Expert Systems With Applications [Elsevier BV]
卷期号:201: 117026-117026 被引量:8
标识
DOI:10.1016/j.eswa.2022.117026
摘要

Chronic diseases for children pose serious challenges from a health management perspective. When not implemented in a well-designed manner, an inefficient management platform can have a significant negative impact on patients and the utilization of health care resources. Innovations of recent years in information technology, artificial intelligence and machine learning provide possibilities to design and implement knowledge-based systems and platforms that follow-up, monitor and advise child patients with a chronic disease in an automated manner. In this article we propose the Artificial Intelligence Chronic Management System that combines artificial intelligence, knowledge graph, big data and internet of things in a platform to offer an optimized solution from the perspective of treatment and utilization of resources. The system includes patient and hospital clients, data storage and analytic tools for decision support relying on AI-based services. We illustrate the functionality of the system through different situations frequently occurring in pediatric wards. To assess the feasibility of the AI component, we utilize real life health care data from a hospital in China to develop a classification model for patients with asthma. To provide a more qualitative assessment at the same time, we discuss how the Artificial Intelligence Chronic Management System conforms to the requirements set forth by the standard Chronic Care Model.

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