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Artificial Intelligence for Caregivers of Persons With Alzheimer’s Disease and Related Dementias: Systematic Literature Review

机译:Alzheimer疾病和相关痴呆症的人工智能人工智能:系统文献综述

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Background Artificial intelligence (AI) has great potential for improving the care of persons with Alzheimer’s disease and related dementias (ADRD) and the quality of life of their family caregivers. To date, however, systematic review of the literature on the impact of AI on ADRD management has been lacking. Objective This paper aims to (1) identify and examine literature on AI that provides information to facilitate ADRD management by caregivers of individuals diagnosed with ADRD and (2) identify gaps in the literature that suggest future directions for research. Methods Following the Preferred Reporting Items for Systematic Reviews and Meta-Analyses guidelines for conducting systematic literature reviews, during August and September 2019, we performed 3 rounds of selection. First, we searched predetermined keywords in PubMed, Cumulative Index to Nursing and Allied Health Literature Plus with Full Text, PsycINFO, IEEE Xplore Digital Library, and the ACM Digital Library. This step generated 113 nonduplicate results. Next, we screened the titles and abstracts of the 113 papers according to inclusion and exclusion criteria, after which 52 papers were excluded and 61 remained. Finally, we screened the full text of the remaining papers to ensure that they met the inclusion or exclusion criteria; 31 papers were excluded, leaving a final sample of 30 papers for analysis. Results Of the 30 papers, 20 reported studies that focused on using AI to assist in activities of daily living. A limited number of specific daily activities were targeted. The studies’ aims suggested three major purposes: (1) to test the feasibility, usability, or perceptions of prototype AI technology; (2) to generate preliminary data on the technology’s performance (primarily accuracy in detecting target events, such as falls); and (3) to understand user needs and preferences for the design and functionality of to-be-developed technology. The majority of the studies were qualitative, with interviews, focus groups, and observation being their most common methods. Cross-sectional surveys were also common, but with small convenience samples. Sample sizes ranged from 6 to 106, with the vast majority on the low end. The majority of the studies were descriptive, exploratory, and lacking theoretical guidance. Many studies reported positive outcomes in favor of their AI technology’s feasibility and satisfaction; some studies reported mixed results on these measures. Performance of the technology varied widely across tasks. Conclusions These findings call for more systematic designs and evaluations of the feasibility and efficacy of AI-based interventions for caregivers of people with ADRD. These gaps in the research would be best addressed through interdisciplinary collaboration, incorporating complementary expertise from the health sciences and computer science/engineering–related fields.
机译:背景背景人工智能(AI)具有改善与阿尔茨海默病的疾病和相关痴呆症(ADRD)和家庭照顾者的生活质量的潜在潜力。然而,迄今为止,缺乏对AI对ADRD管理的影响的系统审查。目的本文旨在(1)识别和检查AI的文献,提供信息,以促进诊断为ADRD的个人护理人员和(2)识别文献中的差距,这些人在提出未来的研究方向的文献中。方法后系统评价的首选报告项目介绍,2019年8月和9月期间,我们在2019年8月和9月期间进行了系统的文献审查准则。首先,我们在PubMed,累积索引中搜索了预定的关键字,对护理和盟军健康文献加上了全文,Psycinfo,IEEE Xplore数字图书馆和ACM数字图书馆。此步骤生成113个非努力结果。接下来,我们根据包含和排除标准筛选了113篇论文的标题和摘要,之后排除了52篇论文,仍然存在61篇。最后,我们筛选了剩余文件的全文,以确保他们符合纳入或排除标准;排除了31篇论文,留下了30篇论文的最终样品进行分析。 30篇论文的结果,20篇报告的研究专注于使用AI协助日常生活活动。有限数量的特定日常活动是针对性的。研究旨在提出了三个主要目的:(1)测试原型AI技术的可行性,可用性或看法; (2)生成关于技术性能的初步数据(主要是检测目标事件(如跌倒)的准确性); (3)了解对待开发技术的设计和功能的用户需求和偏好。大多数研究都是定性的,采访,焦点小组和观察是他们最常见的方法。横断面调查也很常见,但具有小的便利样品。样品尺寸范围为6至106,低端占绝大多数。大多数研究是描述性的,探索性和缺乏理论指导。许多研究报告了积极的结果,支持他们的AI技术的可行性和满意度;一些研究报告了这些措施的混合结果。该技术的性能在任务中广泛变化。结论这些调查结果要求更系统的设计和评估AI的可行性和疗效对ADRD人民的照顾者的可行性和疗效。这些研究中的这些差距将是通过跨学科合作解决的,其中包括来自健康科学和计算机科学/工程学领域的互补专业知识。

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