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Home » Compact Plug-and-Play Proxy Optimization to Achieve Human-like Retrieval-Augmented Generation
arXiv AI

Compact Plug-and-Play Proxy Optimization to Achieve Human-like Retrieval-Augmented Generation

Advanced AI BotBy Advanced AI BotMay 23, 2025No Comments2 Mins Read
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[Submitted on 10 Feb 2025 (v1), last revised 22 May 2025 (this version, v2)]

View a PDF of the paper titled C-3PO: Compact Plug-and-Play Proxy Optimization to Achieve Human-like Retrieval-Augmented Generation, by Guoxin Chen and 7 other authors

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Abstract:Retrieval-augmented generation (RAG) systems face a fundamental challenge in aligning independently developed retrievers and large language models (LLMs). Existing approaches typically involve modifying either component or introducing simple intermediate modules, resulting in practical limitations and sub-optimal performance. Inspired by human search behavior — typically involving a back-and-forth process of proposing search queries and reviewing documents, we propose C-3PO, a proxy-centric framework that facilitates communication between retrievers and LLMs through a lightweight multi-agent system. Our framework implements three specialized agents that collaboratively optimize the entire RAG pipeline without altering the retriever and LLMs. These agents work together to assess the need for retrieval, generate effective queries, and select information suitable for the LLMs. To enable effective multi-agent coordination, we develop a tree-structured rollout approach for reward credit assignment in reinforcement learning. Extensive experiments in both in-domain and out-of-distribution scenarios demonstrate that C-3PO significantly enhances RAG performance while maintaining plug-and-play flexibility and superior generalization capabilities.

Submission history

From: Guoxin Chen [view email]
[v1]
Mon, 10 Feb 2025 07:04:32 UTC (922 KB)
[v2]
Thu, 22 May 2025 08:18:16 UTC (952 KB)



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