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Explorer: Scaling Exploration-driven Web Trajectory Synthesis for Multimodal Web Agents

20 February 2025
Vardaan Pahuja
Yadong Lu
Corby Rosset
Boyu Gou
Arindam Mitra
Spencer Whitehead
Yu Su
Ahmed Awadallah
    LLMAG
    LM&Ro
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Abstract

Recent success in large multimodal models (LMMs) has sparked promising applications of agents capable of autonomously completing complex web tasks. While open-source LMM agents have made significant advances in offline evaluation benchmarks, their performance still falls substantially short of human-level capabilities in more realistic online settings. A key bottleneck is the lack of diverse and large-scale trajectory-level datasets across various domains, which are expensive to collect. In this paper, we address this challenge by developing a scalable recipe to synthesize the largest and most diverse trajectory-level dataset to date, containing over 94K successful multimodal web trajectories, spanning 49K unique URLs, 720K screenshots, and 33M web elements. In particular, we leverage extensive web exploration and refinement to obtain diverse task intents. The average cost is 28 cents per successful trajectory, making it affordable to a wide range of users in the community. Leveraging this dataset, we train Explorer, a multimodal web agent, and demonstrate strong performance on both offline and online web agent benchmarks such as Mind2Web-Live, Multimodal-Mind2Web, and MiniWob++. Additionally, our experiments highlight data scaling as a key driver for improving web agent capabilities. We hope this study makes state-of-the-art LMM-based agent research at a larger scale more accessible.

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@article{pahuja2025_2502.11357,
  title={ Explorer: Scaling Exploration-driven Web Trajectory Synthesis for Multimodal Web Agents },
  author={ Vardaan Pahuja and Yadong Lu and Corby Rosset and Boyu Gou and Arindam Mitra and Spencer Whitehead and Yu Su and Ahmed Awadallah },
  journal={arXiv preprint arXiv:2502.11357},
  year={ 2025 }
}
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