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labmlai/annotated_deep_learning_paper_implementations:

原作者: [db:作者] 来自: 网络 收藏 邀请

开源软件名称:

labmlai/annotated_deep_learning_paper_implementations

开源软件地址:

https://github.com/labmlai/annotated_deep_learning_paper_implementations

开源编程语言:

Jupyter Notebook 60.9%

开源软件介绍:

Twitter

labml.ai Deep Learning Paper Implementations

This is a collection of simple PyTorch implementations of neural networks and related algorithms. These implementations are documented with explanations,

The website renders these as side-by-side formatted notes. We believe these would help you understand these algorithms better.

Screenshot

We are actively maintaining this repo and adding new implementations almost weekly. Twitter for updates.

Modules

Transformers

Recurrent Highway Networks

LSTM

HyperNetworks - HyperLSTM

ResNet

ConvMixer

Capsule Networks

Generative Adversarial Networks

Diffusion models

Sketch RNN

Graph Neural Networks

Counterfactual Regret Minimization (CFR)

Solving games with incomplete information such as poker with CFR.

Reinforcement Learning

Optimizers

Normalization Layers

Distillation

Adaptive Computation

Uncertainty

Installation

pip install labml-nn

Citing

If you use this for academic research, please cite it using the following BibTeX entry.

@misc{labml,
 author = {Varuna Jayasiri, Nipun Wijerathne},
 title = {labml.ai Annotated Paper Implementations},
 year = {2020},
 url = {https://nn.labml.ai/},
}

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