arXiv:2511.19798cs.AIcs.HC2025-11被引 1

KOM用多智能体系统自动管理膝骨关节炎,提升诊疗效率与个性化水平。

KOM: A Multi-Agent Artificial Intelligence System for Precision Management of Knee Osteoarthritis (KOA)

  • 构建多智能体系统,协同完成评估、风险预测与治疗方案生成
  • 比通用大模型在影像分析和处方生成上表现更优,诊断与规划时间减少38.5%
  • 适合资源有限地区及需高效个性化的慢性病管理场景

膝骨关节炎(KOA)影响全球超6亿人,伴随显著疼痛、功能障碍和残疾。尽管个性化多学科干预可延缓疾病进展并改善生活质量,但通常需大量医疗资源与专业能力,在资源匮乏地区难以实施。为此,我们开发了KOM——一个用于自动化KOA评估、风险预测与治疗处方的多智能体系统。该系统支持临床医生在全病程中完成关键任务,并基于患者个体特征、疾病状态、风险因素和禁忌症生成定制化管理方案。基准测试显示,KOM在影像分析和处方生成方面优于多个通用大语言模型。随机三组模拟研究进一步表明,KOM与医生协作使总诊断与规划时间减少38.5%,且治疗质量优于单独使用任一方式。结果表明,KOM有望推动KOA的自动化管理,集成至临床流程后可显著提升护理效率。其模块化架构也为其他慢性病的AI辅助管理系统提供参考。

原文摘要 · Abstract (English)

Knee osteoarthritis (KOA) affects more than 600 million individuals globally and is associated with significant pain, functional impairment, and disability. While personalized multidisciplinary interventions have the potential to slow disease progression and enhance quality of life, they typically require substantial medical resources and expertise, making them difficult to implement in resource-limited settings. To address this challenge, we developed KOM, a multi-agent system designed to automate KOA evaluation, risk prediction, and treatment prescription. This system assists clinicians in performing essential tasks across the KOA care pathway and supports the generation of tailored management plans based on individual patient profiles, disease status, risk factors, and contraindications. In benchmark experiments, KOM demonstrated superior performance compared to several general-purpose large language models in imaging analysis and prescription generation. A randomized three-arm simulation study further revealed that collaboration between KOM and clinicians reduced total diagnostic and planning time by 38.5% and resulted in improved treatment quality compared to each approach used independently. These findings indicate that KOM could help facilitate automated KOA management and, when integrated into clinical workflows, has the potential to enhance care efficiency. The modular architecture of KOM may also offer valuable insights for developing AI-assisted management systems for other chronic conditions.

人工智能医疗多智能体慢性病管理膝骨关节炎

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