Showing 4819 open source projects for "learning"

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  • 1
    PyTorch Implementation of SDE Solvers

    PyTorch Implementation of SDE Solvers

    Differentiable SDE solvers with GPU support and efficient sensitivity

    This library provides stochastic differential equation (SDE) solvers with GPU support and efficient backpropagation. examples/demo.ipynb gives a short guide on how to solve SDEs, including subtle points such as fixing the randomness in the solver and the choice of noise types. examples/latent_sde.py learns a latent stochastic differential equation, as in Section 5 of [1]. The example fits an SDE to data, whilst regularizing it to be like an Ornstein-Uhlenbeck prior process. The model can be...
    Downloads: 0 This Week
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  • 2
    LLM Applications

    LLM Applications

    A comprehensive guide to building RAG-based LLM applications

    LLM Applications is a practical reference repository that demonstrates how to build production-grade applications powered by large language models. The project focuses particularly on Retrieval-Augmented Generation architectures, which combine language models with external knowledge sources to improve accuracy and reliability. It provides step-by-step guidance for constructing systems that ingest documents, split them into chunks, generate embeddings, index them in vector databases, and...
    Downloads: 2 This Week
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  • 3
    ParamOS

    ParamOS

    A Cosmos-based Operating System (Developed for Learning Purpose)

    ParamOS is a basic operating system made using Cosmos OS Kit in Visual Studio (C#/.NET). The command line OS has five commands: ‘namaste’ for greetings, ‘about’ to learn more about ParamOS, 'gui' to load the Graphical User Interface (GUI), ‘restart’ to reboot the OS and ‘shutdown’ to shut down the computer.
    Downloads: 0 This Week
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  • 4
    KongFuOfArchitect

    KongFuOfArchitect

    Architect's Kung Fu tutorial collection Article collection

    KongFuOfArchitect is a curated collection of tutorials and articles aimed at software architects. It encompasses a wide range of topics, including programming paradigms, microservices, essential algorithms, and security practices, serving as a comprehensive resource for architectural knowledge.​
    Downloads: 0 This Week
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  • 5
    DeepKE

    DeepKE

    An Open Toolkit for Knowledge Graph Extraction and Construction

    Supporting cnSchema, standard supervised setting, low-resource setting, document-level setting and multi-modal setting for knowledge base population. DeepKE is a knowledge extraction toolkit supporting cnSchema, standard supervised, low-resource, and document-level scenarios for entity, relation, and attribution extraction. It allows developers and researchers to customize datasets and models to extract information from unstructured texts. DeepKE supports low-resource settings with only a...
    Downloads: 0 This Week
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  • 6
    D2L.ai

    D2L.ai

    Interactive deep learning book with multi-framework code

    ...Offers sufficient technical depth to provide a starting point on the path to actually becoming an applied machine learning scientist.
    Downloads: 2 This Week
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  • 7
    fe4ml-zh

    fe4ml-zh

    Feature Engineering for Machine Learning

    fe4ml-zh is an open-source project that provides a Chinese translation and structured documentation of the book Feature Engineering for Machine Learning. The repository aims to make advanced feature engineering concepts accessible to a broader audience by translating the content and organizing it into readable documentation and code examples. Feature engineering is a critical component of machine learning pipelines because it determines how raw data is transformed into features that algorithms can use effectively. ...
    Downloads: 0 This Week
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  • 8
    Lightning-Hydra-Template

    Lightning-Hydra-Template

    PyTorch Lightning + Hydra. A very user-friendly template

    Convenient all-in-one technology stack for deep learning prototyping - allows you to rapidly iterate over new models, datasets and tasks on different hardware accelerators like CPUs, multi-GPUs or TPUs. A collection of best practices for efficient workflow and reproducibility. Thoroughly commented - you can use this repo as a reference and educational resource. Not fitted for data engineering - the template configuration setup is not designed for building data processing pipelines that depend on each other. ...
    Downloads: 0 This Week
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  • 9
    AnyTrading

    AnyTrading

    The most simple, flexible, and comprehensive OpenAI Gym trading

    gym-anytrading is an OpenAI Gym-compatible environment designed for developing and testing reinforcement learning algorithms on trading strategies. It simulates trading environments for financial markets, including stocks and forex.
    Downloads: 4 This Week
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  • 10
    Llama 2 Everywhere (L2E)

    Llama 2 Everywhere (L2E)

    Llama 2 Everywhere (L2E)

    ...The project focuses on simplicity and educational clarity by implementing inference for LLaMA-style models in a compact C program rather than relying on large machine learning frameworks. Developers can train models using a Python training pipeline and then run inference using a lightweight C implementation that requires very few dependencies. The architecture mirrors the structure of the LLaMA-2 model family, allowing compatible model checkpoints to be converted and executed within the simplified runtime environment. ...
    Downloads: 0 This Week
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  • 11
    Demucs

    Demucs

    Code for the paper Hybrid Spectrogram and Waveform Source Separation

    Demucs (Deep Extractor for Music Sources) is a deep-learning framework for music source separation—extracting individual instrument or vocal tracks from a mixed audio file. The system is based on a U-Net-like convolutional architecture combined with recurrent and transformer elements to capture both short-term and long-term temporal structure. It processes raw waveforms directly rather than spectrograms, allowing for higher-quality reconstruction and fewer artifacts in separated tracks. ...
    Downloads: 121 This Week
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  • 12
    QuantResearch

    QuantResearch

    Quantitative analysis, strategies and backtests

    QuantResearch is a large educational repository dedicated to quantitative finance, algorithmic trading, and financial machine learning research. The project contains numerous notebooks and research materials demonstrating quantitative analysis techniques used in financial markets. These include implementations of factor models, statistical arbitrage strategies, portfolio optimization methods, and reinforcement learning approaches to trading. The repository also explores financial modeling topics such as vector autoregression, Gaussian mixture models, and option pricing techniques. ...
    Downloads: 0 This Week
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  • 13
    fastquant

    fastquant

    Backtest and optimize your ML trading strategies with only 3 lines

    fastquant is a Python library designed to simplify quantitative financial analysis and algorithmic trading strategy development. The project focuses on making backtesting accessible by providing a high-level interface that allows users to test investment strategies with only a few lines of code. It integrates historical market data sources and trading frameworks so that users can quickly build experiments without constructing complex data pipelines. The framework enables users to test common...
    Downloads: 0 This Week
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  • 14
    RoomGPT

    RoomGPT

    Upload a photo of your room to generate your dream room with AI

    RoomGPT is an open-source app that lets you upload a photo of your room and generate redesigned versions of it using AI. It uses a model such as ControlNet to condition the generation on the original room layout, producing realistic variations while preserving structure like walls, windows, and furniture placement. The app is built on Next.js and exposes a simple web interface where users can upload images, choose styles, and view generated outputs. Under the hood, it calls a hosted ML model...
    Downloads: 4 This Week
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  • 15
    Summarize from Feedback

    Summarize from Feedback

    Code for "Learning to summarize from human feedback"

    The summarize-from-feedback repository implements the methods from the paper “Learning to Summarize from Human Feedback”. Its purpose is to train a summarization model that better aligns with human preferences by first collecting human feedback (comparisons between summaries) to train a reward model, and then fine-tuning a policy (summarizer) to maximize that learned reward. The code includes different stages: a supervised baseline (i.e. standard summarization training), the reward modeling component, and the reinforcement learning (or preference-based fine-tuning) phase. ...
    Downloads: 0 This Week
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  • 16
    TurboPilot

    TurboPilot

    Open source large-language-model based code completion engine

    TurboPilot is a self-hosted copilot clone that uses the library behind llama.cpp to run the 6 Billion Parameter Salesforce Codegen model in 4GiB of RAM. It is heavily based and inspired by on the fauxpilot project. This is a proof of concept right now rather than a stable tool. Autocompletion is quite slow in this version of the project. Feel free to play with it, but your mileage may vary.
    Downloads: 2 This Week
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  • 17
    LLM Cookbook

    LLM Cookbook

    LLM Introduction Tutorial for Developers, Chinese version

    LLM Cookbook is an open-source learning repository designed to help developers understand how to build applications powered by large language models through practical examples and translated course material. The project adapts and reproduces content from widely known LLM developer courses and reorganizes it into a structured learning path tailored for developers who want to build real AI applications.
    Downloads: 1 This Week
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  • 18
    Medusa

    Medusa

    Framework for Accelerating LLM Generation with Multiple Decoding Heads

    Medusa is a framework aimed at accelerating the generation capabilities of Large Language Models (LLMs) by employing multiple decoding heads. This approach allows for parallel processing during text generation, significantly enhancing throughput and reducing response times. Medusa is designed to be simple to implement and integrates with existing LLM infrastructures, making it a practical solution for scaling LLM applications.
    Downloads: 0 This Week
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  • 19
    NuPIC

    NuPIC

    Numenta platform for intelligent computing

    The Numenta Platform for Intelligent Computing (NuPIC) is a machine intelligence platform that implements the HTM learning algorithms. HTM is a detailed computational theory of the neocortex. At the core of HTM are time-based continuous learning algorithms that store and recall spatial and temporal patterns. NuPIC is suited to a variety of problems, particularly anomaly detection and prediction of streaming data sources. For more information, see numenta.org or the NuPIC Forum. ...
    Downloads: 0 This Week
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  • 20
    dfdx

    dfdx

    Deep learning in Rust, with shape checked tensors and neural networks

    Deep learning in Rust, with shape-checked tensors and neural networks. Ergonomics & safety focused deep learning in Rust.
    Downloads: 3 This Week
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  • 21
    Kanaries RATH

    Kanaries RATH

    Next generation of automated data exploratory analysis visualization

    RATH is not just an open-source alternative to Data Analysis and Visualization tools such as Tableau, but it automates your Exploratory Data Analysis workflow with an Augmented Analytic engine by discovering patterns, insights, causals and presents those insights with powerful auto-generated multi-dimensional data visualization.
    Downloads: 1 This Week
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  • 22
    ChatGPT DAN

    ChatGPT DAN

    ChatGPT DAN, Jailbreaks prompt

    ...It serves as a collection of experimental prompt patterns that demonstrate how language models can be guided through carefully structured input. The repository is often used as a learning resource for understanding the mechanics of prompt design and model behavior manipulation. It highlights both the capabilities and limitations of large language models when exposed to unconventional instructions. The project reflects ongoing experimentation within the AI community around control, alignment, and creative use of generative systems.
    Downloads: 34 This Week
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  • 23
    JPL Open Source Rover Project

    JPL Open Source Rover Project

    A build-it-yourself, 6-wheel rover based on the rovers on Mars

    The JPL Open Source Rover is an open source, build it yourself, scaled down version of the 6 wheel rover design that JPL uses to explore the surface of Mars. The Open Source Rover is designed almost entirely out of consumer off the shelf (COTS) parts. This project is intended to be a teaching and learning experience for those who want to get involved in mechanical engineering, software, electronics, or robotics. JPL is always looking to inspire the next generation of scientists, engineers, and roboticists to help us explore and learn about our solar system (and beyond!). We release the plans for this rover as a way to try and give budding enthusiasts a fun robotics project that will help teach them and get them involved in robotics sooner and at a lower cost. ...
    Downloads: 0 This Week
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  • 24
    Lingua-Go

    Lingua-Go

    The most accurate natural language detection library for Go

    ...Other use cases, for instance, might include routing e-mails to the right geographically located customer service department, based on the e-mails' languages. Language detection is often done as part of large machine-learning frameworks or natural language processing applications. In cases where you don't need the full-fledged functionality of those systems or don't want to learn the ropes of those, a small flexible library comes in handy.
    Downloads: 1 This Week
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  • 25
    DDDplus

    DDDplus

    A lightweight flexible development framework

    ...Integrating the complex ecological collaboration methodology of the front-end, and middle-end, and fully considering the organizational structure, technical debt, learning threshold, evolution, operation and maintenance costs and risks, it is developed to solve the pain points of business development. It is the top-level design and complete solution of the middle-end architecture.
    Downloads: 0 This Week
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