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Qwen-Drive-1.0-4B

Aug 27, 2026 · Alibaba Qwen · license: apache-2.0 · view on Hugging Face ↗
13.7 GB · 4.5B dense

Qwen-Drive-1.0-4B

Qwen-Drive

[!Note] This repository contains the weights and configurations of Qwen-Drive-1.0 in the Hugging Face format. The accompanying code, demo data and documentation are released at QwenLM/Qwen-Drive-1.0.

Qwen-Drive-1.0 retains the architecture of the pretrained Qwen3.5 vision-language model and integrates 3D perception, visual question answering, and motion planning within a unified framework. The natively multimodal Qwen3.5-4B serves as the shared VLM, with two external modules attached: a BEV perception head jointly performing 3D object detection, semantic occupancy prediction and BEV map segmentation, and a Planning Expert that conditions on the shared VLM representations to generate future ego trajectories through flow matching. The unchanged VLM answers free-form questions about driving scenes. A staged training recipe combines driving supervision with general-purpose vision-language data, so the model acquires driving-specific competence while preserving broad visual understanding and instruction-following capability.

For more details, please refer to our Technical Report: Qwen-Drive-1.0.

Highlights

Qwen-Drive-1.0 performance overview

Motion planning

AutoVLASpanVLAMindVLA-U1Alpamayo-1.5SimWAMILQwen-Drive-1.0-SFTQwen-Drive-1.0-RL
Open-loop
WOD-E2E (RFS val/test ↑) --/7.56 -- 8.20/7.87 -- -- 7.95/7.78 8.45/7.91
WOD-E2E (ADE 5s val/test ↓) --/2.96 -- 2.28/2.66 -- -- 2.31/2.65 1.27/2.67
PAI-AV (Avg. ADE 3s ↓) -- -- -- 0.35 0.41 0.37 0.42
PAI-AV (Avg. ADE 5s ↓) -- -- -- 1.05 -- 1.07 1.11
Pseudo-closed-loop
NAVSIM (PDMS ↑) 89.6 90.3 -- -- 90.3 88.2 90.7
NAVSIM best-of-6 (PDMS ↑) -- -- -- -- -- 89.3 91.4
Closed-loop
AlpaSim (at-fault score ↑) -- -- -- 0.45 0.30 0.27 0.37

With planning samples assembled purely from public sources, Qwen-Drive-1.0 unifies the trajectory format across datasets and evaluates from open-loop prediction to closed-loop driving. The SFT model is already competitive across all benchmarks. After reinforcement learning, the model trades only a marginal open-loop displacement for comprehensive gains in human-preference alignment and closed-loop safety.

Planning results

Vision-language understanding

InternVL3.5-8B-InstructLLaVA-OV2-8BQwen3.5-4BCosmos-Reason1-7BCosmos-Reason2-8BCosmos3-nanoMiMo-Embodied-7BAlpamayo-1.5-10BQwen-Drive-1.0-SFT
Driving VQA
LingoQA 46.4 41.2 70.4 45.2 59.6 65.0 72.0 64.0 77.8
Ego3D RMSE ↓ 23.01 24.97 13.17 26.71 12.62 22.41 9.85 25.31 7.78
VLAD 54.5 58.7 65.4 33.6 56.4 57.7 50.3 9.1 66.5
SURDS 32.8 38.6 53.0 8.5 19.5 39.7 43.1 3.1 66.1
WaymoQA safety 54.5 49.7 62.5 39.5 57.7 56.9 66.5 42.6 70.7
WaymoQA all 58.1 55.2 67.1 43.9 57.9 58.4 69.6 44.4 74.5
CoC all 0.6 2.6 3.2 1.7 4.0 3.4 41.3
IH 47.5 54.0 59.0 30.5 56.0 2.0 61.0 3.0 71.0
Knowledge, Reasoning, and Recognition
MMBench 80.0 82.7 87.1 80.0 82.8 79.6 7.5 85.5
MMStar 64.1 64.9 75.3 63.5 65.3 66.7 22.4 26.1 75.9
MMMU 62.0 54.7 73.4 54.2 59.1 60.9 27.4 72.7
MMMU-Pro std 46.4 36.3 64.9 38.4 36.1 46.4 27.4 15.6 62.7
MMMU-Pro vis 42.3 26.0 61.3 35.8 43.5 40.8 28.1 13.5 59.7
CharXiv 41.7 40.1 65.1 39.7 42.5 42.1 57.5 1.5 64.4
OCRBench 83.2 79.3 86.9 85.2 87.0 85.2 78.8 3.2 86.4
RealWorldQA 66.9 71.8 76.3 67.5 67.5 69.7 28.5 46.9 79.0
SimpleVQA 40.8 36.7 47.8 45.0 45.3 45.0 46.1
CountQA 20.9 22.6 35.9 18.5 22.3 23.6 22.6 4.7 31.7
Spatial Understanding and Grounding
EmbSpatial 74.2 78.4 76.0 68.8 77.6 77.9 45.1 20.6 78.9
ERQA 42.0 42.3 46.3 38.5 43.3 41.3 39.8 27.5 48.5
RefSpatial 54.5 0.4 51.8 2.2 50.8
Omni3D 47.4 32.9 32.3 45.8
ODinW13 40.8 4.8 40.2 35.9 45.9

Driving VQA. Qwen-Drive-1.0-SFT leads both general-purpose VLMs and driving or embodied specialists on driving question answering, with the sharpest spatial understanding and a more accurate sense of physical scale. The gain in causal reasoning is the most pronounced, and its driving-decision capability generalizes from broad driving data rather than memorizing specific scenarios.

General vision-language understanding. Large-scale driving training causes no evident catastrophic forgetting. Qwen-Drive-1.0-SFT largely preserves its general vision-language capability, performing on par with the base Qwen3.5-4B across the knowledge, reasoning, recognition and spatial understanding benchmarks, while well preserving its instruction-following capability.

3D perception

3D perception results

A single Qwen-Drive-1.0-SFT model produces coherent 3D detection, semantic occupancy, and BEV map segmentation that reflect genuine 3D structure rather than inheriting label noise. The BEV perception head is deliberately kept simple, so that it serves as an explicit, inspectable 3D probe of the shared VLM representations rather than a specialist aimed at advanced perception benchmarks.

Repository Contents

Everything ships in one directory. The VLM sits at its root, shared by every task, and each task head in a subfolder beside it.

Qwen-Drive-1.0-4B/          9.1 GB  the VLM, which on its own serves the VQA mode
├── planner-sft/            2.1 GB  Planning Expert, imitation-trained
├── planner-rl/             2.1 GB  Planning Expert after reward optimization
└── perception/             0.5 GB  BEV perception head

Quickstart

Install the inference code from the GitHub repository:

git clone https://github.com/QwenLM/Qwen-Drive-1.0 qwen-drive && cd qwen-drive
pip install -e . --no-build-isolation

Download the weights (the VLM at the root plus every task head in its subfolder):

hf download Qwen/Qwen-Drive-1.0-4B --local-dir Qwen-Drive-1.0-4B

Load the VLM with a Planning Expert attached and predict trajectories:

import torch
from qwen_drive import InferenceMode, QwenDriveForPlanning
from qwen_drive.benchmarks import read_scene_file
from qwen_drive.images import ImageArchive

model = QwenDriveForPlanning.from_pretrained(
    "Qwen-Drive-1.0-4B",
    planner="Qwen-Drive-1.0-4B/planner-rl",
    dtype=torch.bfloat16,
    attn_implementation="flash_attention_2",
).to("cuda").eval()

scene = next(
    read_scene_file(
        "data/demo/planning_scenes.jsonl",
        image_archive=ImageArchive.open("data/demo/frames.parquet"),
    )
).scene

result = model.run(InferenceMode.REASONING_PLANNING, scene=scene, num_samples=6)
print(result.reasoning)
print(result.trajectories.shape)   # (6, 50, 3) -> (x, y, heading), 5 s at 10 Hz

scripts/demo.py in the GitHub repository runs four bundled planning scenes and six perception frames end to end without any extra data.

Citation

If you find our work helpful, feel free to give us a cite.

@misc{zhou2026qwendrive10initialstepvisionlanguage,
      title={Qwen-Drive-1.0: An Initial Step towards a Vision-Language Foundation Model for Autonomous Driving}, 
      author={Xin Zhou and Zongchuang Zhao and Zhibo Yang and Mingsheng Li and Humen Zhong and Shuai Bai and Du Chu and Ruizhe Chen and Zhaohai Li and Jun Tang and Qiuyue Wang and Mingkun Yang and Jiazhao Zhang and Dayiheng Liu and Dingkang Liang and Xiang Bai},
      year={2026},
      eprint={2609.00111},
      archivePrefix={arXiv},
      primaryClass={cs.CV},
      url={https://arxiv.org/abs/2609.00111}, 
}

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