Towards physician-centered oversight of conversational diagnostic AI
Elahe Vedadi, David Barrett, Natalie Harris, Ellery Wulczyn, Shashir Reddy, Roma Ruparel, Mike Schaekermann, Tim Strother, Ryutaro Tanno, Yash Sharma, Jihyeon Lee, C\'ian Hughes, Dylan Slack, Anil Palepu, Jan Freyberg, Khaled Saab, Valentin Li\'evin, Wei-Hung Weng, Tao Tu

TL;DR
This paper introduces g-AMIE, a multi-agent system for asynchronous oversight of diagnostic AI, which improves intake quality and decision-making efficiency when reviewed by primary care physicians.
Contribution
It proposes a novel guardrailed multi-agent framework enabling asynchronous oversight of diagnostic AI by physicians, enhancing safety and efficiency.
Findings
g-AMIE outperformed NPs/PAs and PCPs in case assessment quality.
Oversight of g-AMIE was more time-efficient than traditional PCP consultations.
The system demonstrates feasibility for real-world diagnostic AI oversight.
Abstract
Recent work has demonstrated the promise of conversational AI systems for diagnostic dialogue. However, real-world assurance of patient safety means that providing individual diagnoses and treatment plans is considered a regulated activity by licensed professionals. Furthermore, physicians commonly oversee other team members in such activities, including nurse practitioners (NPs) or physician assistants/associates (PAs). Inspired by this, we propose a framework for effective, asynchronous oversight of the Articulate Medical Intelligence Explorer (AMIE) AI system. We propose guardrailed-AMIE (g-AMIE), a multi-agent system that performs history taking within guardrails, abstaining from individualized medical advice. Afterwards, g-AMIE conveys assessments to an overseeing primary care physician (PCP) in a clinician cockpit interface. The PCP provides oversight and retains accountability of…
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