A Clojure library of optimisation and control theory tools and convenience functions based on Neanderthal.
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Application-oriented deep reinforcement learning framework addressing real-world decision problems.
Small Language Model tailored for edge devices.
MegEngine is a fast, scalable and easy-to-use deep learning framework, with auto-differentiation.
The memory layer for Personalized AI.
Turn entire websites into LLM-ready markdown or structured data. Scrape, crawl and extract with a single API.
Flexible Deep Learning Framework in Julia.
Official repository to use and implement LLaMA 3.1 models, Meta's state-of-the-art large language models.
An open source robotics benchmark for meta- and multi-task reinforcement learning.
Neural networks (boltzmann machines, feed-forward and recurrent nets), Gaussian Processes.
JARVIS, a system to connect LLMs with ML community.
General technology for enabling AI capabilities w/ LLMs and MLLMs.
Code for loralib, an implementation of "LoRA: Low-Rank Adaptation of Large Language Models"s.
Integrate LLM technology quickly and easily into your apps.
LLM-powered multiagent persona simulation for imagination enhancement and business insights.
MindSpore is a new open source deep learning training/inference framework that could be used for mobile, edge and cloud scenarios.
Intuitive convenience tooling for lightning-fast, efficient development and ensuring quality in LLM-based applications.
C, C++, and Python tools for named entity recognition and relation extraction.
A Julia package for fitting (statistical) mixed-effects models.
500+ ML/AI interview Q&A with runnable code — covers ML fundamentals, deep learning, NLP, PyTorch, scikit-learn pipelines, and system design.
No need to keep checking your training, just one import line and you'll know the second it's done.
Open-source project that supports deploying, serving, monitoring, or operating AI and machine-learning systems.
A modular active learning framework for Python, built on top of scikit-learn.
Visual testing tool for MCP servers.