This is a small, self-contained framework for training and querying neural networks. Most notably, it contains a lightning-fast "fully fused" multi-layer perceptron (technical paper), a versatile multiresolution hash encoding (technical paper), as well as support for various other input encodings, losses, and optimizers. We provide a sample application where an image function (x,y) -> (R,G,B) is learned. The fully fused MLP component of this framework requires a very large amount of shared memory in its default configuration. It will likely only work on an RTX 3090, an RTX 2080 Ti, or high-end enterprise GPUs. Lower-end cards must reduce the n_neurons parameter or use the CutlassMLP (better compatibility but slower) instead. tiny-cuda-nn comes with a PyTorch extension that allows using the fast MLPs and input encodings from within a Python context. These bindings can be significantly faster than full Python implementations; in particular for the multiresolution hash encoding.

Features

  • Tiny CUDA neural networks have a simple C++/CUDA API
  • Learn a 2D image
  • Requires an NVIDIA GPU
  • Requires Windows: Visual Studio 2019
  • Requires Linux: GCC/G++ 7.5 or higher
  • Requires CUDA v10.2 or higher and CMake v3.21 or higher.

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License

MIT License

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Additional Project Details

Operating Systems

Linux, Mac, Windows

Programming Language

C++

Related Categories

C++ Frameworks, C++ Machine Learning Software, C++ Neural Network Libraries

Registered

2022-08-15