Applications and Challenges of Implementing Artificial Intelligence in Medical Education: Integrative Review
Применение и проблемы внедрения искусственного интеллекта в медицинское образование: интегративный обзор
2019-04-16
SCID: 54.1/4uam9aur
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Technology Acceptance Modelartificial intelligencelearning supportmedical educationstudent assessment
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Abstract (AI)
BACKGROUND: Since the advent of artificial intelligence (AI) in 1955, the applications of AI have increased over the years within a rapidly changing digital landscape where public expectations are on the rise, fed by social media, industry leaders, and medical practitioners. However, there has been little interest in AI in medical education until the last two decades, with only a recent increase in the number of publications and citations in the field. To our knowledge, thus far, a limited number of articles have discussed or reviewed the current use of AI in medical education. OBJECTIVE: This study aims to review the current applications of AI in medical education as well as the challenges of implementing AI in medical education. METHODS: Medline (Ovid), EBSCOhost Education Resources Information Center (ERIC) and Education Source, and Web of Science were searched with explicit inclusion and exclusion criteria. Full text of the selected articles was analyzed using the Extension of Technology Acceptance Model and the Diffusions of Innovations theory. Data were subsequently pooled together and analyzed quantitatively. RESULTS: A total of 37 articles were identified. Three primary uses of AI in medical education were identified: learning support (n=32), assessment of students' learning (n=4), and curriculum review (n=1). The main reasons for use of AI are its ability to provide feedback and a guided learning pathway and to decrease costs. Subgroup analysis revealed that medical undergraduates are the primary target audience for AI use. In addition, 34 articles described the challenges of AI implementation in medical education; two main reasons were identified: difficulty in assessing the effectiveness of AI in medical education and technical challenges while developing AI applications. CONCLUSIONS: The primary use of AI in medical education was for learning support mainly due to its ability to provide individualized feedback. Little emphasis was placed on curriculum review and assessment of students' learning due to the lack of digitalization and sensitive nature of examinations, respectively. Big data manipulation also warrants the need to ensure data integrity. Methodological improvements are required to increase AI adoption by addressing the technical difficulties of creating an AI application and using novel methods to assess the effectiveness of AI. To better integrate AI into the medical profession, measures should be taken to introduce AI into the medical school curriculum for medical professionals to better understand AI algorithms and maximize its use.
Key Findings
1
AI was used primarily for learning support (32 studies), followed by student learning assessment (4) and curriculum review (1).
2
An integrative review identified 37 studies examining artificial intelligence applications and implementation challenges in medical education.
3
Implementation challenges were reported in 34 studies, especially difficulties evaluating educational effectiveness and addressing technical development problems.
4
The main motivations for adopting AI were individualized feedback, guided learning pathways, and reduced educational costs, with medical undergraduates as the primary target group.
5
The review found little emphasis on AI applications for curriculum review compared with learning support and assessment.
Research Object
artificial intelligence applications in medical education
Research Subject
current educational uses, implementation challenges, and effectiveness of AI, including learning support, student assessment, curriculum review, individualized feedback, and technical barriers
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2019-04-16
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