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Datasets, Transforms and Models specific to Computer Vision

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Datasets, Transforms and Models specific to Computer Vision

torchvision

The torchvision package consists of popular datasets, model architectures, and common image transformations for computer vision.

Installation

Please refer to the official instructions to install the stable versions of torch and torchvision on your system.

To build source, refer to our contributing page.

The following is the corresponding torchvision versions and supported Python versions.

torch torchvision Python main / nightly main / nightly >=3.10, <=3.14 2.13 0.28 >=3.10, <=3.14 2.12 0.27 >=3.10, <=3.14 2.11 0.26 >=3.10, <=3.14 2.10 0.25 >=3.10, <=3.14 older versions torch torchvision Python 2.9 0.24 >=3.10, <=3.14 2.8 0.23 >=3.9, <=3.13 2.7 0.22 >=3.9, <=3.13 2.6 0.21 >=3.9, <=3.12 2.5 0.20 >=3.9, <=3.12 2.4 0.19 >=3.8, <=3.12 2.3 0.18 >=3.8, <=3.12 2.2 0.17 >=3.8, <=3.11 2.1 0.16 >=3.8, <=3.11 2.0 0.15 >=3.8, <=3.11 1.13 0.14 >=3.7.2, <=3.10 1.12 0.13 >=3.7, <=3.10 1.11 0.12 >=3.7, <=3.10 1.10 0.11 >=3.6, <=3.9 1.9 0.10 >=3.6, <=3.9 1.8 0.9 >=3.6, <=3.9 1.7 0.8 >=3.6, <=3.9 1.6 0.7 >=3.6, <=3.8 1.5 0.6 >=3.5, <=3.8 1.4 0.5 ==2.7, >=3.5, <=3.8 1.3 0.4.2 / 0.4.3 ==2.7, >=3.5, <=3.7 1.2 0.4.1 ==2.7, >=3.5, <=3.7 1.1 0.3 ==2.7, >=3.5, <=3.7 <=1.0 0.2 ==2.7, >=3.5, <=3.7

Image Backends

Torchvision currently supports the following image backends:

  • torch tensors
  • PIL images:
    • Pillow
    • Pillow-SIMD - a much faster drop-in replacement for Pillow with SIMD.

Read more in in our docs.

Documentation

You can find the API documentation on the pytorch website: https://pytorch.org/vision/stable/index.html

Contributing

See the CONTRIBUTING file for how to help out.

Disclaimer on Datasets

This is a utility library that downloads and prepares public datasets. We do not host or distribute these datasets, vouch for their quality or fairness, or claim that you have license to use the dataset. It is your responsibility to determine whether you have permission to use the dataset under the dataset's license.

If you're a dataset owner and wish to update any part of it (description, citation, etc.), or do not want your dataset to be included in this library, please get in touch through a GitHub issue. Thanks for your contribution to the ML community!

Pre-trained Model License

The pre-trained models provided in this library may have their own licenses or terms and conditions derived from the dataset used for training. It is your responsibility to determine whether you have permission to use the models for your use case.

More specifically, SWAG models are released under the CC-BY-NC 4.0 license. See SWAG LICENSE for additional details.

Citing TorchVision

If you find TorchVision useful in your work, please consider citing the following BibTeX entry:

@software{torchvision2016,
    title        = {TorchVision: PyTorch's Computer Vision library},
    author       = {TorchVision maintainers and contributors},
    year         = 2016,
    journal      = {GitHub repository},
    publisher    = {GitHub},
    howpublished = {\url{https://github.com/pytorch/vision}}
}

核心特点

  • •torch tensors
  • •PIL images:
  • •Pillow-SIMD - a much faster drop-in replacement for Pillow with SIMD.

> 标签

Pythoncomputer-visionmachine-learning

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> 工具信息

发布日期2026年8月1日
最后更新2026年9月9日
分类编程语言
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