UniMapGen: A Generative Framework for Large-Scale Map Construction from Multi-modal Data
Yujian Yuan, Changjie Wu, Xinyuan Chang, Sijin Wang, Hang Zhang, Shiyi Liang, Shuang Zeng, Mu Xu
Abstract
Large-scale map construction plays a vital role in applications like autonomous driving and navigation systems. Traditional large-scale map construction approaches mainly rely on costly and inefficient special data collection vehicles and labor-intensive annotation processes. While existing satellitebased methods have demonstrated promising potential in enhancing the efficiency and coverage of map construction, they exhibit two major limitations: (1) inherent drawbacks of satellite data (e.g., occlusions, outdatedness) and (2) inefficient vectorization from perception-based methods, resulting in discontinuous and rough roads that require extensive postprocessing. This paper presents a novel generative framework, UniMapGen, for large-scale map construction, offering three key innovations: (1) representing lane lines as discrete sequence and establishing an iterative strategy to generate more complete and smooth map vectors than traditional perception-based methods. (2) proposing a flexible architecture that supports multi-modal inputs, enabling dynamic selection among BEV, PV, and text prompt, to overcome the drawbacks of satellite data. (3) developing a state update strategy for global continuity and consistency of the constructed large-scale map. UniMapGen achieves state-of-theart performance on the OpenSatMap dataset. Furthermore, UniMapGen can infer occluded roads and predict roads missing from dataset annotations. Our code will be released.
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Install the CLIlune papers fulltext afe3ebc6-1f7c-4eb2-b553-14f92fc2a71aCited by top-tier papers8
- FutureSightDrive: Thinking Visually with Spatio-Temporal CoT for Autonomous DrivingShuang Zeng, Xinyuan Chang, Mengwei Xie, Xinran Liu et al.NeurIPS 2025 · 228 citations
- JanusVLN: Decoupling Semantics and Spatiality with Dual Implicit Memory for Vision-Language NavigationShuang Zeng, Dekang Qi, Xinyuan Chang, Feng Xiong et al.ICLR 2026 · 124 citations
- MindDriver: Introducing Progressive Multimodal Reasoning for Autonomous DrivingLingjun Zhang, Yujian Yuan, Changjie Wu, Xinyuan Chang et al.CVPR 2026 · 13 citations
- PriorDrive: Enhancing Online HD Mapping with Unified Vector PriorsShuang Zeng, Xinyuan Chang, Xinran Liu, Yujian Yuan et al.AAAI 2026 · 12 citations
- AMap: Distilling Future Priors for Ahead-Aware Online HD Map ConstructionRuikai Li, Xinrun Li, Mengwei Xie, Hao Shan et al.CVPR 2026 · 8 citations
Builds on9
- BLIP-2: Bootstrapping Language-Image Pre-training with Frozen Image Encoders and Large Language ModelsJunnan Li, Dongxu Li, Silvio Savarese, Steven C. H. HoiICML 2023 · 7,873 citations
- VectorMapNet: End-to-end Vectorized HD Map LearningYicheng Liu, Tianyuan Yuan, Yue Wang, Yilun Wang et al.ICML 2023 · 332 citations
- PivotNet: Vectorized Pivot Learning for End-to-end HD Map ConstructionWenjie Ding, Limeng Qiao, Xi Qiu, Chi ZhangICCV 2023 · 119 citations
- MapTR: Structured Modeling and Learning for Online Vectorized HD Map ConstructionBencheng Liao, Shaoyu Chen, Xinggang Wang, Tianheng Cheng et al.ICLR 2023 · 69 citations
- Translating Images to Road Network: A Non-Autoregressive Sequence-to-Sequence ApproachJiachen Lu, Hongyang Li, Renyuan Peng, Feng Wen et al.ICCV 2023 · 15 citations
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- LaneSegNet: Map Learning with Lane Segment Perception for Autonomous DrivingTianyu Li, Peijin Jia, Bangjun Wang, Li Chen et al.ICLR 2024 · 69 citations
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