Mirror: A Multi-Agent System for AI-Assisted Ethics Review
Yifan Ding, Yuhui Shi, Zhiyan Li, Zilong Wang, Yifeng Gao, Yajun Yang, Mengjie Yang, Yixiu Liang, Xipeng Qiu, Xuanjing Huang, Xingjun Ma, Yu-Gang Jiang, Guoyu Wang

TL;DR
Mirror is an AI framework that enhances ethics review processes by combining ethical reasoning, rule interpretation, and multi-agent deliberation, improving consistency and quality in ethical assessments.
Contribution
The paper introduces EthicsLLM and a multi-agent architecture for AI-assisted ethics review, addressing limitations of current systems with a specialized, integrated approach.
Findings
Mirror improves assessment quality over generalist LLMs.
It enables automated expedited reviews with transparency.
Simulates committee deliberations for comprehensive ethical evaluation.
Abstract
Ethics review is a foundational mechanism of modern research governance, yet contemporary systems face increasing strain as ethical risks arise as structural consequences of large-scale, interdisciplinary scientific practice. The demand for consistent and defensible decisions under heterogeneous risk profiles exposes limitations in institutional review capacity rather than in the legitimacy of ethics oversight. Recent advances in large language models (LLMs) offer new opportunities to support ethics review, but their direct application remains limited by insufficient ethical reasoning capability, weak integration with regulatory structures, and strict privacy constraints on authentic review materials. In this work, we introduce Mirror, an agentic framework for AI-assisted ethical review that integrates ethical reasoning, structured rule interpretation, and multi-agent deliberation…
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Taxonomy
TopicsEthics and Social Impacts of AI · Artificial Intelligence in Healthcare and Education · Explainable Artificial Intelligence (XAI)
