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experimental branch of caffe (see below) with the following modifications:

  • PR #2016 for reduced memory usage
  • windows port and build files for commandline, python and matlab interfaces
  • added SoftmaxWithWeightedLossLayer from DeepLab https://bitbucket.org/deeplab/deeplab-public/
  • added experimental MaskingLayer

Caffe

Build Status License

Caffe is a deep learning framework made with expression, speed, and modularity in mind. It is developed by the Berkeley Vision and Learning Center (BVLC) and community contributors.

Check out the project site for all the details like

and step-by-step examples.

Join the chat at https://gitter.im/BVLC/caffe

Please join the caffe-users group or gitter chat to ask questions and talk about methods and models. Framework development discussions and thorough bug reports are collected on Issues.

Happy brewing!

License and Citation

Caffe is released under the BSD 2-Clause license. The BVLC reference models are released for unrestricted use.

Please cite Caffe in your publications if it helps your research:

@article{jia2014caffe,
  Author = {Jia, Yangqing and Shelhamer, Evan and Donahue, Jeff and Karayev, Sergey and Long, Jonathan and Girshick, Ross and Guadarrama, Sergio and Darrell, Trevor},
  Journal = {arXiv preprint arXiv:1408.5093},
  Title = {Caffe: Convolutional Architecture for Fast Feature Embedding},
  Year = {2014}
}

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Languages

  • C++ 79.7%
  • Python 8.3%
  • Cuda 5.7%
  • CMake 2.8%
  • Protocol Buffer 1.6%
  • MATLAB 0.9%
  • Other 1.0%