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MMClassification is an open source image classification toolbox based on PyTorch. It is a part of the OpenMMLab project.
The master branch works with PyTorch 1.5+.
v0.23.0 was released in 1/5/2022. Highlights of the new version:
v0.22.0 was released in 30/3/2022.
Highlights of the new version:
CustomDataset
class to help you build dataset of yourself!Please refer to changelog.md for more details and other release history.
Below are quick steps for installation:
conda create -n open-mmlab python=3.8 pytorch=1.10 cudatoolkit=11.3 torchvision -c pytorch -y conda activate open-mmlab pip3 install openmim mim install mmcv-full git clone https://github.com/open-mmlab/mmclassification.git cd mmclassification pip3 install -e .
Please refer to install.md for more detailed installation and dataset preparation.
Please see Getting Started for the basic usage of MMClassification. There are also tutorials:
Colab tutorials are also provided:
Results and models are available in the model zoo.
Supported backbonesWe appreciate all contributions to improve MMClassification. Please refer to CONTRUBUTING.md for the contributing guideline.
MMClassification is an open source project that is contributed by researchers and engineers from various colleges and companies. We appreciate all the contributors who implement their methods or add new features, as well as users who give valuable feedbacks. We wish that the toolbox and benchmark could serve the growing research community by providing a flexible toolkit to reimplement existing methods and develop their own new classifiers.
If you find this project useful in your research, please consider cite:
@misc{2020mmclassification, title={OpenMMLab's Image Classification Toolbox and Benchmark}, author={MMClassification Contributors}, howpublished = {\url{https://github.com/open-mmlab/mmclassification}}, year={2020} }
This project is released under the Apache 2.0 license.
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