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    Home»AI Tools»Enhancing Global Reasoning in Multi-hop Question Answering via Reinforcement Learning
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    Enhancing Global Reasoning in Multi-hop Question Answering via Reinforcement Learning

    AwaisBy AwaisJanuary 13, 2026No Comments2 Mins Read0 Views
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    [Submitted on 23 Oct 2025 (v1), last revised 12 Jan 2026 (this version, v3)]

    View a PDF of the paper titled GlobalRAG: Enhancing Global Reasoning in Multi-hop Question Answering via Reinforcement Learning, by Jinchang Luo and 9 other authors

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    Abstract:Reinforcement learning has recently shown promise in improving retrieval-augmented generation (RAG). Despite these advances, its effectiveness in multi-hop question answering (QA) remains limited by two fundamental limitations: (i) global planning absence to structure multi-step reasoning, and (ii) unfaithful execution, which hinders effective query formulation and consistent use of retrieved evidence. We propose GlobalRAG, a reinforcement learning framework designed to enhance global reasoning in multi-hop QA. GlobalRAG decomposes questions into subgoals, coordinates retrieval with reasoning, and refines evidence iteratively. To guide this process, we introduce Planning Quality Reward and SubGoal Completion Reward, which encourage coherent planning and reliable subgoal execution. In addition, a progressive weight annealing strategy balances process-oriented and outcome-based objectives. Extensive experiments on both in-domain and out-of-domain benchmarks demonstrate that GlobalRAG significantly outperforms strong baselines while using only 8k training data (42% of the training data used by strong baselines), achieving average improvements of 14.2% in both EM and F1.

    Submission history

    From: Tingcheng Bian [view email]
    [v1]
    Thu, 23 Oct 2025 13:35:02 UTC (387 KB)
    [v2]
    Wed, 19 Nov 2025 11:34:01 UTC (410 KB)
    [v3]
    Mon, 12 Jan 2026 09:03:57 UTC (2,885 KB)

    Answering Enhancing global Learning Multihop question Reasoning Reinforcement
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