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[ARTICLE · art-91435] src=arxiv.org ↗ pub= topic=artificial-intelligence verified=true sentiment=· neutral

From Single Chatbots to Governed Agent Ecosystems: An Agentic AI Pattern Catalogue and Orchestration Framework for Mission-Critical Hospital Information Management Systems

A new arXiv preprint (2608.07627v1) proposes a compliance-first Agentic AI pattern catalogue and orchestration framework for hospital information management systems (HIMS), moving beyond single LLM chatbots to governed multi-agent ecosystems. The framework adds a taxonomy of agentic roles, a risk-stratification model with human-in-the-loop checkpoints, and a unified orchestration runtime for EHR systems like Epic, Cerner, and MEDITECH, while enforcing HIPAA, GDPR, EU AI Act, India's DPDP and DISHA Acts, ISO 27001, ISO 27002, ISO 14971, and IEC 62304. The authors claim it reduces documentation time, integration effort, and AI pilot attrition, addressing the projected nearly USD 1 trillion AI-in-healthcare market by 2034.

read1 min views1 publishedAug 11, 2026

arXiv:2608.07627v1 Announce Type: new Abstract: Hospitals are racing to embed AI, while coping with the surge in adaptation of the technology in other industries, into the triage management, documentation, scheduling, and revenue-cycle workflows, yet most deployments remain as fragmented pilots that stall at the edge of production, exposing patients and institutions to operational fragility, ungoverned risk, and mounting technical debt. At the same time, the global AI-in-healthcare market is projected to exceed nearly USD 1 trillion by 2034, according to the report of Fortune Business Insights, amplifying the financial consequences of architectural missteps and failed scaling strategies. This research proposes a compliance-first Agentic AI pattern catalogue and orchestration framework, purposely built for HIMS, moving beyond the single LLM chatbots and towards a governed ecosystem of autonomous and semi-autonomous agents. The framework extends by adding (i) a taxonomy of Agentic roles, (ii) a formal risk-stratification model that maps each pattern to risk tiers, human-in-the-loop checkpoints, and governance hooks, and (iii) a unified orchestration runtime capable of coordinating multi-agent workflows across EHR/HIMS landscapes such as Epic, Cerner, and MEDITECH. Technically the framework combines vLLM-based inference, optimized paging memory, confidential computing, and MCP based on-premise deployment, enforcing end-to-end encryption and policy-as-code controls aligned with HIPAA, GDPR, the EU AI Act, India's DPDP and DISHA Acts, ISO 27001, ISO 27002, ISO 14971 and IEC 62304. We exhibit how the proposed architecture is capable and efficient to reduce the documentation time, integration effort, and AI pilot attrition while constricting the governance and auditability, offering hospital leaders and governing authorities an urgently needed blueprint to convert AI investment into sustainable clinical, operational, and financial ROI

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