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MediHive: A Decentralized Agent Collective for Medical Reasoning

Zac Boring March 31, 2026 1 min read
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Large language models (LLMs) have revolutionized medical reasoning tasks, yet single-agent systems often falter on complex, interdisciplinary problems requiring robust handling of uncertainty and conflicting evidence. Multi-agent systems (MAS) leveraging LLMs enable collaborative intelligence, but prevailing centralized architectures suffer from scalability bottlenecks, single points of failure, and role confusion in resource-constrained environmen

By Xiaoyang Wang, Christopher C. Yang

Read the full article at ArXiv cs.AI →