Scalable Video-to-Dataset Generation for Cross-Platform Mobile Agents
Yunseok Jang, Yeda Song, Sungryull Sohn, Lajanugen Logeswaran, Tiange Luo, Dong-Ki Kim, Kyunghoon Bae, Honglak Lee
摘要
Recent advancements in Large Language Models (LLMs) and Vision-Language Models (VLMs) have sparked significant interest in developing GUI visual agents. We introduce MONDAY (Mobile OS Navigation Task Dataset for Agents from YouTube), a large-scale dataset of 313K annotated frames from 20K instructional videos capturing diverse real-world mobile OS navigation across multiple platforms. Models that include MONDAY in their pre-training phases demonstrate robust cross-platform generalization capabilities, consistently outperforming models trained on existing single OS datasets while achieving an average performance gain of 18.11%p on an unseen mobile OS platform. To enable continuous dataset expansion as mobile platforms evolve, we present an automated framework that leverages publicly available video content to create comprehensive task datasets without manual annotation. Our framework comprises robust OCR-based scene detection (95.04% F1score), near-perfect UI element detection (99.87% hit ratio), and novel multi-step action identification to extract reliable action sequences across diverse interface configurations. We contribute both the MONDAY dataset and our automated collection framework to facilitate future research in mobile OS navigation.
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引用它的顶会 Paper4
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- Watch and Learn: Learning to Use Computers from Online VideosChan Hee Song, Yiwen Song, Palash Goyal, Yu Su 等CVPR 2026 · 被引用 8 次
- GUIDE: A Benchmark for Understanding and Assisting Users in Open-Ended GUI TasksSaelyne Yang, Jaesang Yu, Yi-Hao Peng, Kevin Qinghong Lin 等CVPR 2026 · 被引用 5 次
- Video2GUI: Synthesizing Large-Scale Interaction Trajectories for Generalized GUI Agent PretrainingWeimin Xiong, Shuhao Gu, Bowen Ye, Zihao Yue 等ICML 2026 · 被引用 2 次
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