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用户与开发者对在基层医疗环境中使用人工智能技术促进皮肤癌早期检测的看法:定性半结构化访谈研究

User and Developer Views on Using AI Technologies to Facilitate the Early Detection of Skin Cancers in Primary Care Settings: Qualitative Semistructured Interview Study.

作者信息

Jones Owain Tudor, Calanzani Natalia, Scott Suzanne E, Matin Rubeta N, Emery Jon, Walter Fiona M

机构信息

Department of Public Health and Primary Care, University of Cambridge, Cambridge, United Kingdom.

Institute of Applied Health Sciences, University of Aberdeen, Aberdeen, United Kingdom.

出版信息

JMIR Cancer. 2025 Jan 28;11:e60653. doi: 10.2196/60653.

Abstract

BACKGROUND

Skin cancers, including melanoma and keratinocyte cancers, are among the most common cancers worldwide, and their incidence is rising in most populations. Earlier detection of skin cancer leads to better outcomes for patients. Artificial intelligence (AI) technologies have been applied to skin cancer diagnosis, but many technologies lack clinical evidence and/or the appropriate regulatory approvals. There are few qualitative studies examining the views of relevant stakeholders or evidence about the implementation and positioning of AI technologies in the skin cancer diagnostic pathway.

OBJECTIVE

This study aimed to understand the views of several stakeholder groups on the use of AI technologies to facilitate the early diagnosis of skin cancer, including patients, members of the public, general practitioners, primary care nurse practitioners, dermatologists, and AI researchers.

METHODS

This was a qualitative, semistructured interview study with 29 stakeholders. Participants were purposively sampled based on age, sex, and geographical location. We conducted the interviews via Zoom between September 2022 and May 2023. Transcribed recordings were analyzed using thematic framework analysis. The framework for the Nonadoption, Abandonment, and Challenges to Scale-Up, Spread, and Sustainability was used to guide the analysis to help understand the complexity of implementing diagnostic technologies in clinical settings.

RESULTS

Major themes were "the position of AI in the skin cancer diagnostic pathway" and "the aim of the AI technology"; cross-cutting themes included trust, usability and acceptability, generalizability, evaluation and regulation, implementation, and long-term use. There was no clear consensus on where AI should be placed along the skin cancer diagnostic pathway, but most participants saw the technology in the hands of either patients or primary care practitioners. Participants were concerned about the quality of the data used to develop and test AI technologies and the impact this could have on their accuracy in clinical use with patients from a range of demographics and the risk of missing skin cancers. Ease of use and not increasing the workload of already strained health care services were important considerations for participants. Health care professionals and AI researchers reported a lack of established methods of evaluating and regulating AI technologies.

CONCLUSIONS

This study is one of the first to examine the views of a wide range of stakeholders on the use of AI technologies to facilitate early diagnosis of skin cancer. The optimal approach and position in the diagnostic pathway for these technologies have not yet been determined. AI technologies need to be developed and implemented carefully and thoughtfully, with attention paid to the quality and representativeness of the data used for development, to achieve their potential.

摘要

背景

皮肤癌,包括黑色素瘤和角质形成细胞癌,是全球最常见的癌症之一,且在大多数人群中的发病率呈上升趋势。皮肤癌的早期检测能为患者带来更好的治疗结果。人工智能(AI)技术已应用于皮肤癌诊断,但许多技术缺乏临床证据和/或适当的监管批准。很少有定性研究探讨相关利益相关者的观点,或关于人工智能技术在皮肤癌诊断途径中的实施和定位的证据。

目的

本研究旨在了解多个利益相关者群体对使用人工智能技术促进皮肤癌早期诊断的看法,包括患者、公众、全科医生、初级保健执业护士、皮肤科医生和人工智能研究人员。

方法

这是一项对29名利益相关者进行的定性、半结构化访谈研究。参与者根据年龄、性别和地理位置进行目的抽样。我们在2022年9月至2023年5月期间通过Zoom进行访谈。对转录的录音使用主题框架分析进行分析。采用非采用、放弃以及扩大规模、传播和可持续性的挑战框架来指导分析,以帮助理解在临床环境中实施诊断技术的复杂性。

结果

主要主题是“人工智能在皮肤癌诊断途径中的位置”和“人工智能技术的目标”;贯穿各领域的主题包括信任、可用性和可接受性、普遍性、评估和监管、实施以及长期使用。对于人工智能在皮肤癌诊断途径中应处于何种位置尚无明确共识,但大多数参与者认为该技术应由患者或初级保健从业者掌握。参与者担心用于开发和测试人工智能技术的数据质量,以及这可能对其在临床中用于不同人口统计学特征患者时的准确性产生的影响,还有漏诊皮肤癌的风险。易用性以及不增加本就负担过重的医疗服务工作量是参与者的重要考虑因素。医疗保健专业人员和人工智能研究人员报告称缺乏评估和监管人工智能技术的既定方法。

结论

本研究是首批探讨广泛利益相关者对使用人工智能技术促进皮肤癌早期诊断看法的研究之一。这些技术在诊断途径中的最佳方法和位置尚未确定。人工智能技术需要谨慎且周全地开发和实施,要关注用于开发的数据的质量和代表性,以发挥其潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d1a7/11815299/b726ca51016e/cancer_v11i1e60653_fig1.jpg

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