Recent studies have delved into constructing autonomous agents capable of performing complex Graphical User Interface (GUI)-based computer tasks, with the potential to revolutionize human-computer interaction. Despite encouraging results, existing efforts mainly focus on short-term interactions and rely on outcome-only verification, thereby limiting their scalability in real-world GUI applications that demand long-horizon task decomposition and execution. In this work, we introduce VeriGUI, a novel verifiable long-chain GUI dataset designed to facilitate the development and evaluation of generalist GUI agents operating in realistic computer environments. Our dataset emphasizes two critical dimensions: (1) long-chain complexity, with tasks decomposed into a sequence of interdependent subtasks spanning hundreds of steps, explicitly designed to allow any subtask to serve as a valid starting point; and (2) subtask-level verifiability, which enables diverse exploration strategies within each subtask, while ensuring that each subtask-level goal remains verifiable and consistent. The dataset consists of GUI task trajectories across both desktop and web, annotated by human experts. Extensive experiments on VeriGUI using various agents with different foundation models reveal significant performance gaps in handling long-horizon tasks, highlighting the need for more robust planning and decision-making capabilities in GUI agents.
VeriGUI: Verifiable Long-Chain GUI Dataset
VeriGUI is a novel dataset for evaluating GUI agents in long-horizon tasks, emphasizing long-chain complexity and subtask-level verifiability.
- Year
- 2025
- Venue
- arXiv 2025
- Authors
- 32
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- Abstract onlyARXIV-DEFAULT
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- arxiv.org/abs/2508.04026ARXIV-DEFAULT
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32Ge ZhangLei BaiJunjie WangWenlong ZhangWenhao YuAosong FengShuang LuoHuichi ZhouWangchunshu ZhouGuohao LiWendong FanMinghao LiuDaCheng TaoQunshu LinZhenfei YinFang WuYuhao ZhouJiaxing HuangShunyu LiuIrene LiYang ZhouLei MaHeng ZhouMingli SongWeihao XuanJiajun ShiJindi LvZiqi RenZhenyu CuiHeli QiQingcheng ZengJialiang Gao