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FrozenDrive: Zero-Shot Text-Guided Driving Scene Generation and Data Augmentation with Parameter-Free Frozen Diffusion Model

About

Synthetic data for autonomous driving is surging, powered by diffusion models that promise scalable scene generation. Yet key obstacles remain, as enforcing multi-view and temporal consistency often relies on backbone fine-tuning or added layers, which erodes pre-trained knowledge and weakens text alignment. Models also stay close to the training distribution, struggling under adverse weather and unseen configurations, and fidelity favors frequent over rare classes. We address these gaps with FrozenDrive, a controllable generative framework that preserves a pretrained diffusion models knowledge while achieving strong consistency. FrozenDrive conditions on rich driving-stack signals and text prompts, and introduces knowledge-preserving spatio-temporal attention to impose cross-view alignment and temporal coherence in a single pass within a parameter-free frozen diffusion backbone. An additional object-focused constraint improves per-object fidelity for rare categories. Without any weather- or scene-specific fine-tuning, our model synthesizes globally coherent multi-view driving scenes from text, particularly under adverse and rare conditions, and surpasses prior baselines. On nuScenes, FrozenDrive augmented data significantly improves AD models performance, especially at night and in rain, demonstrating stronger robustness when trained with our scenario-targeted data.

Yuhwan Jeong, Hyeonseong Kim, Daehyun We, Seonkyu Song, Jinnyeong Yang, Hyun-Kurl Jang, Youngho Yoon, Kuk-Jin Yoon• 2026

Related benchmarks

TaskDatasetResultRank
3D Object DetectionnuScenes (val)
NDS35.32
249
3D Object DetectionnuScenes Rainy (val)
mAP35.15
27
PlanningnuScenes (val)
L2 Error (1s)0.5
16
BeV SegmentationnuScenes (val)--
16
3D Object DetectionnuScenes night
mAP18.15
14
Multi-view image generationnuScenes (val)
FVD136.8
8
Long-term Video ConsistencyVBench
Sub. Consistency Score77.24
8
Online MappingnuScenes night
AP (Pedestrian)6.54
5
Online MappingnuScenes Rain
APped33.13
5
PlanningnuScenes night
Error (1.0s)0.44
5
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