A deep learning-based translation library between 50 languages, built with transformers.
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Deep learning operations reinvented (for pytorch, tensorflow, jax and others).
Industrial Grade Federated Learning Framework.
Friendly Federated Learning Framework.
Library for high performance deep learning inference on NVIDIA GPUs.
A curated list of generative deep learning tools, works, models, etc. for artistic uses, by @filipecalegario.
A library for developing and comparing reinforcement learning algorithms (successor of [gym])(https://github.com/openai/gym).
Distributed deep learning training framework for TensorFlow, Keras, PyTorch, and Apache MXNet.
Implementation of image to image (pix2pix) translation from the paper by isola et al.[DEEP LEARNING].
Koç University Deep Learning Framework.
Deep learning framework written in Kotlin.
Lightly is a computer vision framework for self-supervised learning.
A Julia package for manifold learning and nonlinear dimensionality reduction.
Application-oriented deep reinforcement learning framework addressing real-world decision problems.
MegEngine is a fast, scalable and easy-to-use deep learning framework, with auto-differentiation.
Flexible Deep Learning Framework in Julia.
An open source robotics benchmark for meta- and multi-task reinforcement learning.
Neural networks (boltzmann machines, feed-forward and recurrent nets), Gaussian Processes.
MindSpore is a new open source deep learning training/inference framework that could be used for mobile, edge and cloud scenarios.
500+ ML/AI interview Q&A with runnable code — covers ML fundamentals, deep learning, NLP, PyTorch, scikit-learn pipelines, and system design.
A modular active learning framework for Python, built on top of scikit-learn.
List of molecular design using Generative AI and Deep Learning.
Support Vector Machine for Node.js.
An open-source cross-platform performance library for deep learning applications.