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README.md

ggml

Manifesto

Tensor library for machine learning

Note that this project is under active development.
Some of the development is currently happening in the llama.cpp and whisper.cpp repos

Features

  • Low-level cross-platform implementation
  • Integer quantization support
  • Broad hardware support
  • Automatic differentiation
  • ADAM and L-BFGS optimizers
  • No third-party dependencies
  • Zero memory allocations during runtime

Build

git clone https://github.com/ggml-org/ggml cd ggml # install python dependencies in a virtual environment python3.10 -m venv .venv source .venv/bin/activate pip install -r requirements.txt # build the examples mkdir build && cd build cmake .. cmake --build . --config Release -j 8

GPT inference (example)

# run the GPT-2 small 117M model ../examples/gpt-2/download-ggml-model.sh 117M ./bin/gpt-2-backend -m models/gpt-2-117M/ggml-model.bin -p "This is an example"

For more information, checkout the corresponding programs in the examples folder.

Resources

关于 About

Tensor library for machine learning
automatic-differentiationlarge-language-modelsmachine-learningtensor-algebra

语言 Languages

C++58.0%
C22.6%
Cuda9.9%
Metal2.8%
GLSL1.9%
WGSL1.6%
CMake1.2%
Go Template1.1%
Objective-C0.6%
Shell0.2%
Python0.1%

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