Papers with UI-TARS-7B

    1 papers
    Experience-driven Multi-turn Reinforcement Learning for GUI Agents (2026.acl-long)

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    Challenge: GUI agents have demonstrated remarkable progress in automating complex user interface interactions . training such agents for long-horizon tasks remains challenging due to limited rewards and prohibitive costs.
    Approach: They propose a method that leverages expert trajectories as environment experiences for on-policy multi-turn training.
    Outcome: The proposed method achieves significant gains over the base model with 1K public trajectories as RL experiences . it achieves competitive performance against strong baselines such as UI-TARS-7B and GPT-4o .

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