In the standard interaction model of clinical decision support systems, the system makes a recommendation, and the clinician decides whether to act on it. However, this model can compromise the patient-centeredness of care and the level of clinician involvement. There is scope to develop alternative interaction models, but we need methods for exploring and comparing these to assess how they may impact clinical decision-making. Through collaborating with clinical, AI safety, and HCI experts, and patient representatives, we co-designed a number of alternative human-AI interaction models for clinical decision-making. We then translated these models into ‘Wizard of Oz’ prototypes, where we created clinical scenarios and designed user interfaces with different types of AI output. In this paper, we present alternative models of human-AI interaction and illustrate how we used a co-design approach to translate them into functional prototypes that can be tested with users to explore potential impacts on clinical decision-making.

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https://hci.top/en/papers/dis/164554/2024

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At a Glance

Paper Snapshot

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dataset
Source
DIS
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Year
2024
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Award
Honorable Mention
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Authors
11 authors
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Subtopics
AI-Assisted Decision-Making & Automation, Prototyping & User Testing
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Professions
Physicians, Nurses & Clinicians, AI/ML Researchers & Engineers
article
Content Status
Abstract only
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Related Papers
1 related papers