arXiv:2512.05983cs.MAcs.CL2025-12被引 3

用AI生成文本协作中的妥协方案,助力集体起草宪法等民主文本

AI-Generated Compromises for Coalition Formation: Modeling, Simulation, and a Textual Case Study

  • 构建包含理性局限与不确定性的代理模型,结合LLM生成语义空间中的妥协点
  • 在模拟中验证算法可有效促成多方共识,支持大规模民主文本协作
  • 适合需要集体创作的场景,如社区宪章、政策讨论等群体决策

寻找各方提案间的妥协方案是人工智能中论证、调解与谈判等领域的核心挑战。基于此,Elkind等人(2021)提出一种联盟形成机制,通过度量空间寻找多数支持且优于现状的提案,其中每个代理拥有理想点。该过程的关键在于识别能凝聚代理联盟的妥协提案,但如何高效生成此类提案仍是一个开放问题。本文通过形式化一个涵盖代理有限理性和不确定性的综合模型,并开发AI模型生成妥协提案。研究聚焦于协同撰写文本文档的场景,如共同制定社区宪章。利用自然语言处理技术与大语言模型构建文本语义度量空间,设计算法推荐合适的妥协点。为评估算法效果,我们模拟了多种联盟形成过程,证明了AI在促进大规模民主文本编辑方面的潜力,尤其在传统工具受限的领域,如集体起草宪法。

原文摘要 · Abstract (English)

The challenge of finding compromises between agent proposals is fundamental to AI sub-fields such as argumentation, mediation, and negotiation. Building on this tradition, Elkind et al. (2021) introduced a process for coalition formation that seeks majority-supported proposals preferable to the status quo, using a metric space where each agent has an ideal point. The crucial step in this iterative process involves identifying compromise proposals around which agent coalitions can unite. How to effectively find such compromise proposals, however, remains an open question. We address this gap by formalizing a holistic model that encompasses agent bounded rationality and uncertainty and developing AI models to generate such compromise proposals. We focus on the domain of collaboratively writing text documents -- e.g., to enable the democratic creation of a community constitution. We apply NLP (Natural Language Processing) techniques and utilize LLMs (Large Language Models) to create a semantic metric space for text and develop algorithms to suggest suitable compromise points. To evaluate the effectiveness of our algorithms, we simulate various coalition formation processes and demonstrate the potential of AI to facilitate large-scale democratic text editing, such as collaboratively drafting a constitution, an area where traditional tools are limited.

文本生成联盟形成大模型应用民主协作

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