cs.AI updates on arXiv.org 10月29日 12:19
医学AI新设计:N-of-1决策支持生态
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本文提出一种新的医学AI设计,旨在解决传统AI在处理罕见病例、多病共存或代表性不足群体时的局限性,通过多智能体生态和N-of-1决策支持,提高医疗AI的透明度和公平性。

arXiv:2510.24359v1 Announce Type: new Abstract: Artificial intelligence in medicine is built to serve the average patient. By minimizing error across large datasets, most systems deliver strong aggregate accuracy yet falter at the margins: patients with rare variants, multimorbidity, or underrepresented demographics. This average patient fallacy erodes both equity and trust. We propose a different design: a multi-agent ecosystem for N-of-1 decision support. In this environment, agents clustered by organ systems, patient populations, and analytic modalities draw on a shared library of models and evidence synthesis tools. Their results converge in a coordination layer that weighs reliability, uncertainty, and data density before presenting the clinician with a decision-support packet: risk estimates bounded by confidence ranges, outlier flags, and linked evidence. Validation shifts from population averages to individual reliability, measured by error in low-density regions, calibration in the small, and risk--coverage trade-offs. Anticipated challenges include computational demands, automation bias, and regulatory fit, addressed through caching strategies, consensus checks, and adaptive trial frameworks. By moving from monolithic models to orchestrated intelligence, this approach seeks to align medical AI with the first principle of medicine: care that is transparent, equitable, and centered on the individual.

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医学AI N-of-1决策支持 多智能体生态 透明度 公平性
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