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# 视频Caption |
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通常,大多数视频数据不带有相应的描述性文本,因此需要将视频数据转换为文本描述,以提供必要的训练数据用于文本到视频模型。 |
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## 项目更新 |
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- 🔥🔥 **News**: ```2024/9/19```: CogVideoX 训练过程中用于将视频数据转换为文本描述的 Caption |
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模型 [CogVLM2-Caption](https://huggingface.co/THUDM/cogvlm2-llama3-caption) |
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已经开源。欢迎前往下载并使用。 |
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## 通过 CogVLM2-Caption 模型生成视频Caption |
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🤗 [Hugging Face](https://huggingface.co/THUDM/cogvlm2-llama3-caption) | 🤖 [ModelScope](https://modelscope.cn/models/ZhipuAI/cogvlm2-llama3-caption/) |
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CogVLM2-Caption是用于生成CogVideoX模型训练数据的视频caption模型。 |
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### 安装依赖 |
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```shell |
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pip install -r requirements.txt |
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``` |
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### 运行caption模型 |
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```shell |
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python video_caption.py |
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``` |
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示例: |
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<div align="center"> |
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<img width="600px" height="auto" src="./assests/CogVLM2-Caption-example.png"> |
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</div> |
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## 通过 CogVLM2-Video 模型生成视频Caption |
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[Code](https://github.com/THUDM/CogVLM2/tree/main/video_demo) | 🤗 [Hugging Face](https://huggingface.co/THUDM/cogvlm2-video-llama3-chat) | 🤖 [ModelScope](https://modelscope.cn/models/ZhipuAI/cogvlm2-video-llama3-chat) | 📑 [Blog](https://cogvlm2-video.github.io/) | [💬 Online Demo](http://cogvlm2-online.cogviewai.cn:7868/) |
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CogVLM2-Video 是一个多功能的视频理解模型,具备基于时间戳的问题回答能力。用户可以输入诸如 `Describe this video in detail.` 的提示语给模型,以获得详细的视频Caption: |
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<div align="center"> |
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<a href="https://cogvlm2-video.github.io/"><img width="600px" height="auto" src="./assests/cogvlm2-video-example.png"></a> |
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</div> |
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用户可以使用提供的[代码](https://github.com/THUDM/CogVLM2/tree/main/video_demo)加载模型或配置 RESTful API 来生成视频Caption。 |
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## Citation |
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🌟 If you find our work helpful, please leave us a star and cite our paper. |
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CogVLM2-Caption: |
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``` |
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@article{yang2024cogvideox, |
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title={CogVideoX: Text-to-Video Diffusion Models with An Expert Transformer}, |
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author={Yang, Zhuoyi and Teng, Jiayan and Zheng, Wendi and Ding, Ming and Huang, Shiyu and Xu, Jiazheng and Yang, Yuanming and Hong, Wenyi and Zhang, Xiaohan and Feng, Guanyu and others}, |
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journal={arXiv preprint arXiv:2408.06072}, |
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year={2024} |
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} |
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``` |
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CogVLM2-Video: |
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``` |
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@article{hong2024cogvlm2, |
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title={CogVLM2: Visual Language Models for Image and Video Understanding}, |
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author={Hong, Wenyi and Wang, Weihan and Ding, Ming and Yu, Wenmeng and Lv, Qingsong and Wang, Yan and Cheng, Yean and Huang, Shiyu and Ji, Junhui and Xue, Zhao and others}, |
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journal={arXiv preprint arXiv:2408.16500}, |
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year={2024} |
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} |
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``` |