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Reframing Automation Benefits: A Human-Centered Approach to Expanding the Value of AI-Generated Reports in Healthcare

1 Citationer (Scopus)

Abstract

The use of Large Language Models (LLMs) for generating medical reports is being increasingly explored across medical specialties. However, these solutions often prioritize the perspectives of report authors, leaving the recipients and their needs outside of the scope of consideration. In this dermatology-focused study, we conducted co-design sessions with general practitioners (GPs) (N=12) in Denmark to establish their content preferences in dermatology reports and investigate unmet information needs in specialist-authored reports. We discuss using their preferences as input to generative AI to enhance the usefulness of medical reports. Such AI could support dermatologists by drafting reports and acting as a proxy for GP information needs, thus improving GP efficacy, enhancing patient outcomes, and reducing the overall burden on healthcare systems. Building on this study, we plan to: refine report structures with dermatologists and patients focusing on collaborative decision-making; and investigate non-chat genAI interaction space for automated reporting in safety-critical environments.

OriginalsprogEngelsk
TitelCHI EA 2025 - Extended Abstracts of the 2025 CHI Conference on Human Factors in Computing Systems
ForlagAssociation for Computing Machinery, Inc
Publikationsdato26 apr. 2025
Artikelnummer455
ISBN (Elektronisk)9798400713958
DOI
StatusUdgivet - 26 apr. 2025
Begivenhed2025 CHI Conference on Human Factors in Computing Systems, CHI EA 2025 - Yokohama, Japan
Varighed: 26 apr. 20251 maj 2025

Konference

Konference2025 CHI Conference on Human Factors in Computing Systems, CHI EA 2025
Land/OmrådeJapan
ByYokohama
Periode26/04/202501/05/2025
SponsorACM SIGCHI
NavnConference on Human Factors in Computing Systems - Proceedings

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