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Health Recommender Systems: Concepts Requirements Technical Basics and Challenges

机译:卫生推荐系统:概念要求技术基础和挑战

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摘要

During the last decades huge amounts of data have been collected in clinical databases representing patients' health states (e.g., as laboratory results, treatment plans, medical reports). Hence, digital information available for patient-oriented decision making has increased drastically but is often scattered across different sites. As as solution, personal health record systems (PHRS) are meant to centralize an individual's health data and to allow access for the owner as well as for authorized health professionals. Yet, expert-oriented language, complex interrelations of medical facts and information overload in general pose major obstacles for patients to understand their own record and to draw adequate conclusions. In this context, recommender systems may supply patients with additional laymen-friendly information helping to better comprehend their health status as represented by their record. However, such systems must be adapted to cope with the specific requirements in the health domain in order to deliver highly relevant information for patients. They are referred to as health recommender systems (HRS). In this article we give an introduction to health recommender systems and explain why they are a useful enhancement to PHR solutions. Basic concepts and scenarios are discussed and a first implementation is presented. In addition, we outline an evaluation approach for such a system, which is supported by medical experts. The construction of a test collection for case-related recommendations is described. Finally, challenges and open issues are discussed.
机译:在过去的几十年中,已经在代表患者健康状况的临床数据库中收集了大量数据(例如,作为实验室结果,治疗计划,医学报告)。因此,可用于面向患者的决策的数字信息已急剧增加,但通常分散在不同的站点。作为解决方案,个人健康记录系统(PHRS)旨在集中个人的健康数据,并允许所有者和授权的健康专业人员进行访问。然而,面向专家的语言,医学事实的复杂相互关系以及信息过载通常给患者理解自己的病历和得出充分结论提供了主要障碍。在这种情况下,推荐系统可以为患者提供其他非专业人士的信息,有助于更好地理解其病历所代表的健康状况。但是,这种系统必须适应健康领域的特定要求,以便为患者提供高度相关的信息。它们被称为健康推荐系统(HRS)。在本文中,我们对健康推荐器系统进行了介绍,并解释了为什么它们是对PHR解决方案的有用增强。讨论了基本概念和方案,并介绍了第一个实现。此外,我们概述了这种系统的评估方法,该方法得到医学专家的支持。描述了针对案例相关建议的测试集合的构造。最后,讨论了挑战和未解决的问题。

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