Human-AI Co-reasoning for Clinical Diagnosis with Evidence-Integrated Language Agent
arXiv cs.CL / 3/12/2026
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Key Points
- PULSE is a medical reasoning agent that combines a domain-tuned large language model with scientific literature retrieval to support diagnostic decision-making in complex endocrinology cases.
- In a benchmark of 82 authentic cases, PULSE achieved expert-competitive accuracy, outperforming residents and junior specialists and matching senior specialists at Top@1 and Top@4 thresholds.
- PULSE maintained stable performance across disease incidence tiers, unlike physicians whose accuracy declined with rarity, and it demonstrated adaptive reasoning by increasing output length as case difficulty grew.
- Collaborative use of PULSE allowed physicians to correct initial errors and broaden diagnostic hypotheses, but it also introduced risks of automation bias; the study analyzes serial and concurrent collaboration workflows and real-world implications.
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