2014

Caffe: Convolutional Architecture for Fast Feature Embedding

Y. Jia, E. Shelhamer, J. Donahue, S. Karayev, J. Long, Ross Girshick, S. Guadarrama, Trevor Darrell

citations

Cite Score

90

AI summary

Caffe is introduced as a deep learning framework with a BSD license and C++ library, along with Python and MATLAB bindings, for training and deploying CNNs; it achieves fast CUDA code and GPU computation, processing 40 million images/day on a single K40/Titan GPU.

Main Contributions

  • Introduces Caffe, a deep learning framework for multimedia data analysis.
  • Provides a clean and modifiable framework for state-of-the-art deep learning algorithms.
  • Offers a BSD-licensed C++ library with Python and MATLAB bindings.
  • Achieves fast CUDA code and GPU computation for industry needs.
  • Demonstrates processing speeds of over 40 million images per day on a single K40 or Titan GPU.

Abstract

Caffe provides multimedia scientists and practitioners with a clean and modifiable framework for state-of-the-art deep learning algorithms and a collection of reference models. The framework is a BSD-licensed C++ library with Python and MATLAB bindings for training and deploying general-purpose convolutional neural networks and other deep models efficiently on commodity architectures. Caffe fits industry and internet-scale media needs by CUDA GPU computation, processing over 40 million images a day on a single K40 or Titan GPU (≈ 2.5 ms per image). By separating model representation from actual implementation, Caffe allows experimentation and seamless switching among platforms for ease of development and deployment from prototyping machines to cloud environments. Caffe is maintained and developed by the Berkeley Vision and Learning Center (BVLC) with the help of an active community of contributors on GitHub. It powers ongoing research projects, large-scale industrial applications, and startup prototypes in vision, speech, and multimedia.

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References [11]

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71 papers in library cite

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N. Zhang, M. Paluri, Marc'aurelio Ranzato, Trevor Darrell, L. Bourdev - 2014

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S. Guadarrama, E. Rodner, K. Saenko, N. Zhang, R. Farrell, J. Donahue, Trevor Darrell - 2014

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S. Karayev, M. Trentacoste, H. Han, A. Agarwala, Trevor Darrell, A. Hertzmann, H. Winnemoeller - 2013

1 paper in library cites

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on July 21, 2025

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