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MegEngine

MegEngine is a fast, scalable, and user friendly deep learning framework with 3 key features.

  • Unified framework for both training and inference
    • Quantization, dynamic shape/image pre-processing, and even derivation with a single model.
    • After training, put everything into your model to inference on any platform with speed and precision. Check here for a quick guide.
  • The lowest hardware requirements
    • The memory usage of the GPU can be reduced to one-third of the original memory usage when DTR algorithm is enabled.
    • Inference models with the lowest memory usage by leveraging our Pushdown memory planner.
  • Inference efficiently on all platforms
    • Inference with speed and high-precision on x86, Arm, CUDA, and RoCM.
    • Supports Linux, Windows, iOS, Android, TEE, etc.
    • Optimize performance and memory usage by leveraging our advanced features.

Installation

NOTE: MegEngine now supports Python installation on Linux-64bit/Windows-64bit/MacOS(CPU-Only)-10.14+/Android 7+(CPU-Only) platforms with Python from 3.6 to 3.9. On Windows 10 you can either install the Linux distribution through Windows Subsystem for Linux (WSL) or install the Windows distribution directly. Many other platforms are supported for inference.

Binaries

To install the pre-built binaries via pip wheels:

python3 -m pip install --upgrade pip
python3 -m pip install megengine -f https://megengine.org.cn/whl/mge.html

Building from Source

How to Contribute

We strive to build an open and friendly community. We aim to power humanity with AI.

How to Contact Us

Resources

License

MegEngine is licensed under the Apache License, Version 2.0

Citation

If you use MegEngine in your publication,please cite it by using the following BibTeX entry.

@Misc{MegEngine,
  institution = {megvii},
  title =  {MegEngine:A fast, scalable and easy-to-use deep learning framework},
  howpublished = {\url{https://github.com/MegEngine/MegEngine}},
  year = {2020}
}

Copyright (c) 2014-2021 Megvii Inc. All rights reserved.

旷视天元 MegEngine's Projects

megflow icon megflow

Efficient ML solution for long-tailed demands.

megray icon megray

A communication library for deep learning

megrl icon megrl

A MegEngine implementation of 6 RL algorithms

megspot icon megspot

MegSpot是一款高效、专业、跨平台的图片&视频对比应用

midout icon midout

Reduce binary size by removing code blocks

models icon models

采用MegEngine实现的各种主流深度学习模型

mperf icon mperf

mperf是一个面向移动/嵌入式平台的算子性能调优工具箱

mperf-libpfm4 icon mperf-libpfm4

forked from https://sourceforge.net/p/perfmon2/libpfm4/ci/master/tree/

nbnet icon nbnet

NBNet: Noise Basis Learning for Image Denoising with Subspace Projection

nerf icon nerf

NeRF implementation in MegEngine

omnet icon omnet

OMNet: Learning Overlapping Mask for Partial-to-Partial Point Cloud Registration, ICCV 2021, MegEngine implementation.

onednn icon onednn

oneAPI Deep Neural Network Library (oneDNN)

pmrid icon pmrid

ECCV2020 - Practical Deep Raw Image Denoising on Mobile Devices

replknet icon replknet

Official MegEngine implementation of RepLKNet

swin-transformer icon swin-transformer

Swin-Transformer implementation in MegEngine. This is a showcase for training on GPU with less memory by leveraging MegEngine DTR technique.

xopr icon xopr

Experimental Operator Library for MegEngine

yolox icon yolox

MegEngine implementation of YOLOX

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