AI RESEARCH
Stop Listening to Me! How Multi-turn Conversations Can Degrade Diagnostic Reasoning
arXiv CS.AI
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ArXi:2603.11394v1 Announce Type: cross Patients and clinicians are increasingly using chatbots powered by large language models (LLMs) for healthcare inquiries. While state-of-the-art LLMs exhibit high performance on static diagnostic reasoning benchmarks, their efficacy across multi-turn conversations, which better reflect real-world usage, has been understudied. In this paper, we evaluate 17 LLMs across three clinical datasets to investigate how partitioning the decision-space into multiple simpler turns of conversation influences their diagnostic reasoning.