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Student voices: synergising artificial and human intelligence in health science education

  • Zijing Hu
  • , Caixia Qiu
  • , Anqi Wang
  • , Shungui Xu
  • , Jing Ye
  • , Jiawen Zou
  • , Shuting Liu
  • , Weixiang Yuan
  • , Jiazhe Lv
  • Fujian University of Traditional Chinese Medicine
  • Nakhonratchasima College
  • Fuzhou University

Research output: Contribution to journalArticlepeer-review

3 Citations (Scopus)

Abstract

Background: There is a dire need to enhance health science education through technology to meet the demands of 21st-century education globally. This study explored the integration of Artificial Intelligence (AI) and Human Intelligence (HI) in health science education. Methods: Guided by the Technological, Pedagogical, and Content Knowledge and Diffusion of Innovation frameworks, a descriptive qualitative single-case study was conducted within an interpretivist paradigm. Purposive sampling recruited six postgraduate and residency students with dual exposure to conventional and AI-assisted learning. Semi-structured interviews were thematically analysed. Results: Findings revealed that students perceived AI as a valuable supplementary tool that enhanced diagnostic confidence, accelerated knowledge access, and simulated rare clinical scenarios. AI facilitated self-directed learning, structured clinical reasoning, and supported overburdened educators. However, participants cautioned against over-reliance, citing risks such as reduced critical thinking, algorithmic bias, and potential erosion of humanistic care. The adoption of AI was influenced by its relative advantages, alignment with learning preferences, and the possibility of low-risk experimentation; however, challenges arose from the complexity of prompt design and the lack of formal training. Conclusion: The study concluded that effective AI-HI integration requires AI literacy, ethical governance, and hybrid models combining technological efficiency with mentorship. Institutional investment in curricula, faculty development, and policy frameworks is essential to ensure responsible, context-sensitive adoption.

Original languageEnglish
Article number185
JournalBMC Medical Education
Volume26
Issue number1
DOIs
Publication statusPublished - Dec 2026

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 4 - Quality Education
    SDG 4 Quality Education

Keywords

  • Artificial intelligence
  • Health sciences
  • Higher education
  • Human intelligence

ASJC Scopus subject areas

  • General Medicine
  • Education

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