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Generating Multimodal Driving Scenes via Next-Scene Prediction

  • Yanhao Wu
  • , Haoyang Zhang
  • , Tianwei Lin
  • , Lichao Huang
  • , Shujie Luo
  • , Rui Wu
  • , Congpei Qiu
  • , Wei Ke
  • , Tong Zhang
  • Xi'an Jiaotong University
  • Horizon Robotics Inc.
  • School of Computer and Communication Sciences
  • University of Chinese Academy of Sciences

科研成果: 期刊稿件会议文章同行评审

摘要

Generative models in Autonomous Driving (AD) enable diverse scenario creation, yet existing methods fall short by only capturing a limited range of modalities, restricting the capability of generating controllable scenes for comprehensive evaluation of AD systems. In this paper, we introduce a multimodal generation framework that incorporates four major data modalities, including a novel addition of the map modality. With tokenized modalities, our scene sequence generation framework autoregressively predicts each scene while managing computational demands through a two-stage approach. The Temporal AutoRegressive (TAR) component captures inter-frame dynamics for each modality, while the Ordered AutoRegressive (OAR) component aligns modalities within each scene by sequentially predicting tokens in a fixed order To maintain coherence between map and ego-action modalities, we introduce the Action-Aware Map Alignment (AMA) module, which applies a transformation based on the ego-action to maintain coherence between these two modalities. Our framework effectively generates complex, realistic driving scenes over extended sequences, ensuring multimodal consistency and offering fine-grained control over scene elements. Project page: https://yanhaowu.github.io/UMGen.

源语言英语
页(从-至)6844-6853
页数10
期刊Proceedings of the IEEE Computer Society Conference on Computer Vision and Pattern Recognition
DOI
出版状态已出版 - 2025
活动2025 IEEE/CVF Conference on Computer Vision and Pattern Recognition, CVPR 2025 - Nashville, 美国
期限: 11 6月 202515 6月 2025

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