cs.AI updates on arXiv.org 07月09日 12:01
A Fuzzy Supervisor Agent Design for Clinical Reasoning Assistance in a Multi-Agent Educational Clinical Scenario Simulation
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本文介绍了Fuzzy Supervisor Agent(FSA)的设计和架构,该系统用于辅助医学学生在临床场景训练中的临床推理。FSA通过模糊推理系统对学生的交互进行实时分析,提供适应性、情境感知的反馈,并精确地在学生遇到困难时提供帮助。

arXiv:2507.05275v1 Announce Type: cross Abstract: Assisting medical students with clinical reasoning (CR) during clinical scenario training remains a persistent challenge in medical education. This paper presents the design and architecture of the Fuzzy Supervisor Agent (FSA), a novel component for the Multi-Agent Educational Clinical Scenario Simulation (MAECSS) platform. The FSA leverages a Fuzzy Inference System (FIS) to continuously interpret student interactions with specialized clinical agents (e.g., patient, physical exam, diagnostic, intervention) using pre-defined fuzzy rule bases for professionalism, medical relevance, ethical behavior, and contextual distraction. By analyzing student decision-making processes in real-time, the FSA is designed to deliver adaptive, context-aware feedback and provides assistance precisely when students encounter difficulties. This work focuses on the technical framework and rationale of the FSA, highlighting its potential to provide scalable, flexible, and human-like supervision in simulation-based medical education. Future work will include empirical evaluation and integration into broader educational settings. More detailed design and implementation is~\href{https://github.com/2sigmaEdTech/MAS/}{open sourced here}.

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医学教育 临床推理 模糊推理系统 多智能体教育场景模拟 自适应反馈
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