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[ARTICLE · art-45930] src=arxiv.org ↗ pub= topic=large-language-models verified=true sentiment=· neutral

Investigating Multi-Agent Deliberation in Law

Researchers introduced multi-agent deliberation frameworks inspired by courtroom procedures for legal reasoning tasks using large language models. The multi-agent approaches achieved comparable overall performance to baseline models but produced distinct answers, successfully solving cases that baselines failed and vice versa. The work positions multi-agent systems as a promising direction for AI in law, particularly for questions requiring critical thinking from multiple perspectives.

read1 min views1 publishedJul 1, 2026

arXiv:2606.30906v1 Announce Type: new Abstract: Artificial Intelligence is increasingly applied to the field of law, and has the potential to increase access to justice. One particular movement that is gaining traction is that of agentic AI, wherein AI agents, based on Large Language Models (LLMs) can take autonomous actions. In particular, multi-agent approaches in the legal domain remain largely unexplored. In this paper, we investigate multi-agent deliberation methods for legal reasoning tasks using LLMs. We explore multi-agent deliberation (MAD) and introduce two novel multi-agent frameworks inspired by courtroom procedures and legal argumentation. Our experiments on both legal and non-legal benchmarks reveal that multi-agent frameworks achieve comparable overall performance to baseline large language models, but produce significantly distinct answers. Notably, these approaches can successfully solve cases that the baseline fails to address, and vice versa. We conduct a qualitative evaluation and highlight scenarios where multi-agent frameworks outperform monolithic approaches. For example, multi-agent approaches appear better suited for answering questions that require critical thinking from multiple perspectives. Our work positions multi-agent systems as a promising direction for AI in the legal domain, while demonstrating the potential of law-inspired multi-agent approaches for deliberation.

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