Diversity of Thought Elicits Stronger Reasoning Capabilities in Multi-Agent Debate Frameworks

October 10, 2024 ยท Declared Dead ยท ๐Ÿ› Journal of Robotics and Automation Research

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Authors Mahmood Hegazy arXiv ID 2410.12853 Category cs.CL: Computation & Language Cross-listed cs.AI, cs.LG Citations 14 Venue Journal of Robotics and Automation Research Last Checked 4 months ago
Abstract
Large language models (LLMs) excel in natural language generation but often confidently produce incorrect responses, especially in tasks like mathematical reasoning. Chain-of-thought prompting, self-verification, and multi-agent debate are among the strategies proposed to improve the reasoning and factual accuracy of LLMs. Building on Du et al.'s multi-agent debate framework, we find that multi-agent debate helps at any model scale, and that diversity of thought elicits stronger reasoning in debating LLMs. Across various model sizes, performance on mathematical reasoning tasks benefits most when diverse trained models are used. Remarkably, after 4 rounds of debate, a diverse set of medium-capacity models (Gemini-Pro, Mixtral 7BX8, and PaLM 2-M) outperforms GPT-4 on the GSM-8K benchmark, scoring 91% accuracy. By comparison, when 3 instances of Gemini-Pro are used, performance only reaches 82%. Finally, this diverse set of medium-capacity models sets a new state-of-the-art performance on the ASDiv benchmark (94%). These results underscore the idea that the future of AI is agentic, with diverse cooperating agents yielding emergent capabilities beyond even the most powerful individual models.
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