Papers with WebAgent-R1-Zero

    1 papers
    WebAgent-R1: Training Web Agents via End-to-End Multi-Turn Reinforcement Learning (2025.emnlp-main)

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    Challenge: Existing work on reinforcement learning has focused on single-turn tasks such as solving math problems.
    Approach: They propose a framework that learns directly from online interactions by asynchronously generating diverse trajectories, guided by binary rewards depending on task success.
    Outcome: Experiments on the WebArena-Lite benchmark show that the framework outperforms state-of-the-art methods and strong proprietary models.

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