We introduce LongCat-Video, a foundational video generation model with 13.6B parameters, delivering strong performance across
Text-to-Video
,
Image-to-Video
, and
Video-Continuation
generation tasks. It particularly excels in efficient and high-quality long video generation, representing our first step toward world models.
Key Features
🌟
Unified architecture for multiple tasks
: LongCat-Video unifies
Text-to-Video
,
Image-to-Video
, and
Video-Continuation
tasks within a single video generation framework. It natively supports all these tasks with a single model and consistently delivers strong performance across each individual task.
🌟
Long video generation
: LongCat-Video is natively pretrained on
Video-Continuation
tasks, enabling it to produce minutes-long videos without color drifting or quality degradation.
🌟
Efficient inference
: LongCat-Video generates $720p$, $30fps$ videos within minutes by employing a coarse-to-fine generation strategy along both the temporal and spatial axes. Block Sparse Attention further enhances efficiency, particularly at high resolutions
🌟
Strong performance with multi-reward RLHF
: Powered by multi-reward Group Relative Policy Optimization (GRPO), comprehensive evaluations on both internal and public benchmarks demonstrate that LongCat-Video achieves performance comparable to leading open-source video generation models as well as the latest commercial solutions.
# Single-GPU inference
streamlit run ./run_streamlit.py --server.fileWatcherType none --server.headless=false
Evaluation Results
Text-to-Video
The
Text-to-Video
MOS evaluation results on our internal benchmark.
MOS score
Veo3
PixVerse-V5
Wan 2.2-T2V-A14B
LongCat-Video
Accessibility
Proprietary
Proprietary
Open Source
Open Source
Architecture
-
-
MoE
Dense
# Total Params
-
-
28B
13.6B
# Activated Params
-
-
14B
13.6B
Text-Alignment↑
3.99
3.81
3.70
3.76
Visual Quality↑
3.23
3.13
3.26
3.25
Motion Quality↑
3.86
3.81
3.78
3.74
Overall Quality↑
3.48
3.36
3.35
3.38
Image-to-Video
The
Image-to-Video
MOS evaluation results on our internal benchmark.
MOS score
Seedance 1.0
Hailuo-02
Wan 2.2-I2V-A14B
LongCat-Video
Accessibility
Proprietary
Proprietary
Open Source
Open Source
Architecture
-
-
MoE
Dense
# Total Params
-
-
28B
13.6B
# Activated Params
-
-
14B
13.6B
Image-Alignment↑
4.12
4.18
4.18
4.04
Text-Alignment↑
3.70
3.85
3.33
3.49
Visual Quality↑
3.22
3.18
3.23
3.27
Motion Quality↑
3.77
3.80
3.79
3.59
Overall Quality↑
3.35
3.27
3.26
3.17
License Agreement
The
model weights
are released under the
MIT License
.
Any contributions to this repository are licensed under the MIT License, unless otherwise stated. This license does not grant any rights to use Meituan trademarks or patents.
This model has not been specifically designed or comprehensively evaluated for every possible downstream application.
Developers should take into account the known limitations of large language models, including performance variations across different languages, and carefully assess accuracy, safety, and fairness before deploying the model in sensitive or high-risk scenarios.
It is the responsibility of developers and downstream users to understand and comply with all applicable laws and regulations relevant to their use case, including but not limited to data protection, privacy, and content safety requirements.
Nothing in this Model Card should be interpreted as altering or restricting the terms of the MIT License under which the model is released.
Citation
We kindly encourage citation of our work if you find it useful.
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meituan-longcat LongCat-Video online free url in huggingface.co:
LongCat-Video is an open source model from GitHub that offers a free installation service, and any user can find LongCat-Video on GitHub to install. At the same time, huggingface.co provides the effect of LongCat-Video install, users can directly use LongCat-Video installed effect in huggingface.co for debugging and trial. It also supports api for free installation.