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GUICourse: From General Vision Language Models to Versatile GUI Agents
June 17, 2024 Β· Entered Twilight Β· π Annual Meeting of the Association for Computational Linguistics
Repo contents: NotoSerifSC-SemiBold.otf, Qwen-SFT&Infer, README.md, assets, data_load.py, data_preprocess, data_visualization.py, evaluation, results, utils.py
Authors
Wentong Chen, Junbo Cui, Jinyi Hu, Yujia Qin, Junjie Fang, Yue Zhao, Chongyi Wang, Jun Liu, Guirong Chen, Yupeng Huo, Yuan Yao, Yankai Lin, Zhiyuan Liu, Maosong Sun
arXiv ID
2406.11317
Category
cs.AI: Artificial Intelligence
Cross-listed
cs.CL,
cs.CV,
cs.HC
Citations
98
Venue
Annual Meeting of the Association for Computational Linguistics
Repository
https://github.com/yiye3/GUICourse
β 136
Last Checked
2 months ago
Abstract
Utilizing Graphic User Interface (GUI) for human-computer interaction is essential for accessing a wide range of digital tools. Recent advancements in Vision Language Models (VLMs) highlight the compelling potential to develop versatile agents to help humans finish GUI navigation tasks. However, current VLMs are challenged in terms of fundamental abilities (OCR and grounding) and GUI knowledge (the functions and control methods of GUI elements), preventing them from becoming practical GUI agents. To solve these challenges, we contribute GUICourse, a suite of datasets to train visual-based GUI agents from general VLMs. First, we introduce the GUIEnv dataset to strengthen the OCR and grounding capabilities of VLMs. Then, we introduce the GUIAct and GUIChat datasets to enrich their knowledge of GUI components and interactions. Experiments demonstrate that our GUI agents have better performance on common GUI tasks than their baseline VLMs. Even the small-size GUI agent (with 3.1B parameters) can still work well on single-step and multi-step GUI tasks. Finally, we analyze the different varieties in the training stage of this agent by ablation study. Our source codes and datasets are released at https://github.com/yiye3/GUICourse.
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