ChenHsing/Awesome-Video-Diffusion-Models

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[CSUR] A Survey on Video Diffusion Models

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ChenHsing/Awesome-Video-Diffusion-Models is an open-source project on GitHub, mainly written in several languages. [CSUR] A Survey on Video Diffusion Models It currently holds 2,318 stars and 0 forks with 0 open issues, and was last pushed on an unknown date (repository created unknown).

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GitHub Repository Details

Repository ChenHsing/Awesome-Video-Diffusion-Models · default branch - · size 0 KB · watchers 0 · source: GitHub REST API and repository README

README

A Survey on Video Diffusion Models Awesome arXiv

Zhen Xing, Qijun Feng, Haoran Chen, Qi Dai, Han Hu, Hang Xu, Zuxuan Wu, Yu-Gang Jiang

(Source: Make-A-Video, SimDA, PYoCo, SVD , Video LDM and Tune-A-Video)

Contact

If you have any suggestions or find our work helpful, feel free to contact us

Homepage: Zhen Xing

Email: zhenxingfd@gmail.com

If you find our survey is useful in your research or applications, please consider giving us a star 🌟 and citing it by the following BibTeX entry.

@article{xing2023survey,
  title={A survey on video diffusion models},
  author={Xing, Zhen and Feng, Qijun and Chen, Haoran and Dai, Qi and Hu, Han and Xu, Hang and Wu, Zuxuan and Jiang, Yu-Gang},
  journal={ACM Computing Surveys},
  year={2023},
  publisher={ACM New York, NY}
}

Open-source Toolboxes and Foundation Models

| Methods | Task | Github| |:-----:|:-----:|:-----:| | Helios | T2V Generation | Star| | Movie Gen | T2V Generation | -| | CogVideoX | T2V Generation | Star| | Open-Sora-Plan | T2V Generation | Star| | Open-Sora | T2V Generation | Star| | Morph Studio | T2V Generation | -| | Genie | T2V Generation | -| | Sora | T2V Generation & Editing | -| | VideoPoet | T2V Generation & Editing | -| | Stable Video Diffusion | T2V Generation | Star| | NeverEnds | T2V Generation | - | | Pika | T2V Generation | - | | EMU-Video | T2V Generation | - | | GEN-2 | T2V Generation & Editing | - | | ModelScope | T2V Generation | Star | | ZeroScope | T2V Generation | -| | T2V Synthesis Colab | T2V Genetation |Star| | VideoCraft | T2V Genetation & Editing |Star| | Diffusers (T2V synthesis) | T2V Genetation |-| | AnimateDiff | Personalized T2V Genetation |Star| | Text2Video-Zero | T2V Genetation |Star| | HotShot-XL | T2V Genetation |Star| | Genmo | T2V Genetation |-| | Fliki | T2V Generation | -| | Seedream AI Studio | Image Generation + I2V Animation | -| | Omni-Rewriter | Prompt Expansion (Video/Image PE) | Star|

Table of Contents

Video Generation

Data

Caption-level

| Title | arXiv | Github| WebSite | Pub. & Date |:-----:|:-----:|:-----:|:-----:|:-----:| | OpenS2V-Nexus: A Detailed Benchmark and Million-Scale Dataset for Subject-to-Video Generation | arXiv |Star|Website | May, 2025 | | Identity-Preserving Text-to-Video Generation by Frequency Decomposition | arXiv |Star|Website | CVPR, 2025 | |ChronoMagic-Bench: A Benchmark for Metamorphic Evaluation of Text-to-Time-lapse Video Generation | arXiv| Star| Website | NeurIPS, 2024 | |Panda-70M: Captioning 70M Videos with Multiple Cross-Modality Teachers | arXiv| Star| Website | CVPR, 2024 | |CelebV-Text: A Large-Scale Facial Text-Video Dataset| arXiv | Star | - | CVPR, 2023 |InternVid: A Large-scale Video-Text Dataset for Multimodal Understanding and Generation | arXiv| Star| - | May, 2023 | |VideoFactory: Swap Attention in Spatiotemporal Diffusions for Text-to-Video Generation| arXiv | - | - | May, 2023| |Advancing High-Resolution Video-Language Representation with Large-Scale Video Transcriptions | arXiv|- |- |Nov, 2021 | | Frozen in Time: A Joint Video and Image Encoder for End-to-End Retrieval | arXiv | - | - |ICCV, 2021 | |MSR-VTT: A Large Video Description Dataset for Bridging Video and Language | arXiv | -| -| CVPR, 2016|

| MiniMax H3 1K Prompt Dataset | Dataset | Star | Website | 2026 |

Category-level

| Title | arXiv | Github| WebSite | Pub. & Date |:-----:|:-----:|:-----:|:-----:|:-----:| |UCF101: A Dataset of 101 Human Actions Classes From Videos in The Wild| arXiv | - | - | Dec., 2012 |First Order Motion Model for Image Animation | arXiv | -|- | May, 2023 | |Learning to Generate Time-Lapse Videos Using Multi-Stage Dynamic Generative Adversarial Networks | arXiv | -| -| CVPR,2018|

Metric and BenchMark

| Title | arXiv | Github| WebSite | Pub. & Date |:-----:|:-----:|:-----:|:-----:|:-----:| | OpenS2V-Nexus: A Detailed Benchmark and Million-Scale Dataset for Subject-to-Video Generation | arXiv |Star|Website | May, 2025 | |Fréchet Video Motion Distance: A Metric for Evaluating Motion Consistency in Videos | arXiv| Star| - | Jul., 2024 | |ChronoMagic-Bench: A Benchmark for Metamorphic Evaluation of Text-to-Time-lapse Video Generation | arXiv| Star| Website | NeurIPS, 2024 | | STREAM: Spatio-TempoRal Evaluation and Analysis Metric for Video Generative Models | arXiv |Star|- | ICLR, 2024 | Subjective-Aligned Dateset and Metric for Text-to-Video Quality Assessment | arXiv |-|- | Mar, 2024 | Towards A Better Metric for Text-to-Video Generation | arXiv |-|Website | Jan, 2024 |AIGCBench: Comprehensive Evaluation of Image-to-Video Content Generated by AI | arXiv | - | - | Jan, 2024 | | VBench: Comprehensive Benchmark Suite for Video Generative Models | arXiv |Star|Website | Nov, 2023 | VideoScore2: Think before You Score in Generative Video Evaluation | arXiv |Star|Website | Sep, 2025 |FETV: A Benchmark for Fine-Grained Evaluation of Open-Domain Text-to-Video Generation | arXiv | - | - | NeurIPS, 2023 | |CVPR 2023 Text Guided Video Editing Competition | arXiv | - | - | Oct., 2023 | |EvalCrafter: Benchmarking and Evaluating Large Video Generation Models | arXiv | Star|Website | Oct., 2023 | |Measuring the Quality of Text-to-Video Model Outputs: Metrics and Dataset | arXiv | - | - | Sep., 2023 |

Text-to-Video Generation

Training-based

| Title | arXiv | Github | WebSite | Pub. & Date | |---|---|---|---|---| | Helios: Real Real-Time Long Video Generation Model | arXiv |Star|Website | Arxiv, 2026 | Identity-Preserving Text-to-Video Generation by Frequency Decomposition | arXiv |Star|Website | CVPR, 2025 | Enhancing Motion in Text-to-Video Generation with Decomposed Encoding and Conditioning | arXiv |Star|Website| NeurIPS 2024 | Movie Gen | arXiv |-|Website | Oct, 2024 | CogVideoX: Text-to-Video Diffusion Models with An Expert Transformer | arXiv |Star|-| Oct, 2024 | Grid Diffusion Models for Text-to-Video Generation | arXiv |Star|Website | CVPR, 2024 | MagicTime: Time-lapse Video Generation Models as Metamorphic Simulators | arXiv |Star|Website | Apr., 2024 | Mora: Enabling Generalist Video Generation via A Multi-Agent Framework | arXiv |-|- | Mar., 2024 | VSTAR: Generative Temporal Nursing for Longer Dynamic Video Synthesis | arXiv |-|- | Mar., 2024 | Genie: Generative Interactive Environments | arXiv |-|Website | Feb., 2024 | Snap Video: Scaled Spatiotemporal Transformers for Text-to-Video Synthesis | arXiv |-|Website | Feb., 2024 | Lumiere: A Space-Time Diffusion Model for Video Generation | arXiv |-|Website | Jan, 2024 | UNIVG: TOWARDS UNIFIED-MODAL VIDEO GENERATION | arXiv |-| Website | Jan, 2024 | VideoCrafter2: Overcoming Data Limitations for High-Quality Video Diffusion Models | arXiv |Star|Website | Jan, 2024 | 360DVD: Controllable Panorama Video Generation with 360-Degree Video Diffusion Model | arXiv |-|[![Website](https://img.shields.io/badge/Websi

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