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Debate-to-Write: A Persona-Driven Multi-Agent Framework for Diverse Argument Generation

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arxiv 2406.19643 v3 pith:NZ2QYVG2 submitted 2024-06-28 cs.CL cs.AI

classification cs.CLcs.AI
keywords frameworkwritingargumentdebateagentargumentsbeliefsdiverse
verification ladder T0 review T1 audit T2 compute T3 formal
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Writing persuasive arguments is a challenging task for both humans and machines. It entails incorporating high-level beliefs from various perspectives on the topic, along with deliberate reasoning and planning to construct a coherent narrative. Current language models often generate surface tokens autoregressively, lacking explicit integration of these underlying controls, resulting in limited output diversity and coherence. In this work, we propose a persona-based multi-agent framework for argument writing. Inspired by the human debate, we first assign each agent a persona representing its high-level beliefs from a unique perspective, and then design an agent interaction process so that the agents can collaboratively debate and discuss the idea to form an overall plan for argument writing. Such debate process enables fluid and nonlinear development of ideas. We evaluate our framework on argumentative essay writing. The results show that our framework can generate more diverse and persuasive arguments through both automatic and human evaluations.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. MODS: Moderating a Mixture of Document Speakers to Summarize Debatable Queries in Document Collections

    cs.CL 2025-02 conditional novelty 7.0 of 10

    MODS uses per-document LLM speakers, a moderator with tailored queries, and a structured outline to write more comprehensive and balanced summaries of debatable queries.

  2. DEBATE: A Large-Scale Benchmark for Evaluating Opinion Dynamics in Role-Playing LLM Agents

    cs.CL 2025-10 conditional novelty 6.0 of 10

    Using 2,792 humans' real debates as ground truth, role-playing LLM agents show excessive opinion convergence and public-stance drift compared with humans.

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