Showing 4197 open source projects for "learning"

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  • 1

    Syslogd2

    High capacity syslog data collection, filtering, and management.

    Syslogd2 is a syslog daemon that has been completely re-imagined specifically for use in network environments. It is multi-threaded, scalable and versatile with features designed for both network and host managers. Each Syslogd2 binary is customized from a set of over 20 features at compile-time. It can support input from text files, named-pipes, Linux kernel and user-defined Linux and (both IPv4 and IPv6) IP sockets (both UDP and TCP). It provides a pre-loadable name-cache that can...
    Downloads: 0 This Week
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  • 2
    higgsfield

    higgsfield

    Fault-tolerant, highly scalable GPU orchestration

    Higgsfield is an open-source, fault-tolerant, highly scalable GPU orchestration, and a machine learning framework designed for training models with billions to trillions of parameters, such as Large Language Models (LLMs).
    Downloads: 7 This Week
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  • 3
    spider_collection

    spider_collection

    Collection of Python web scraping scripts for data extraction tasks

    spider_collection is a collection of Python web crawler scripts created primarily for experimentation, learning, and practical scraping tasks. spider_collection gathers multiple independent spiders designed to collect data from different platforms and services, demonstrating a variety of scraping techniques and workflows. These crawlers make use of common Python scraping tools such as requests, parsel, BeautifulSoup, and the Scrapy framework to extract structured information from web pages. ...
    Downloads: 5 This Week
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  • 4
    Flutter Vignettes

    Flutter Vignettes

    A collection of fun Flutter experiments, created by gskinner

    ...It’s not only a code resource but also a design showcase, blending engineering and artistry. By presenting small, focused experiments, flutter_vignettes encourages experimentation and learning while illustrating Flutter’s strengths in rapid UI prototyping.
    Downloads: 0 This Week
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  • 5
    applied-ml

    applied-ml

    Papers & tech blogs by companies sharing their work on data science

    The applied-ml repository is a rich, curated collection of papers, technical articles, and case-study blog posts about how machine learning (ML) and data-driven systems are applied in real production environments by major companies. Instead of focusing solely on theoretical ML research, this repo highlights industry-scale challenges: data collection, quality, infrastructure, feature stores, model serving, monitoring, scalability, and how ML is embedded in product workflows.
    Downloads: 0 This Week
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  • 6
    Transformers in Time Series

    Transformers in Time Series

    A professionally curated list of awesome resources

    Transformers in Time Series is a curated research repository that collects academic papers, code implementations, datasets, and learning resources related to transformer models for time series analysis. The project was created to systematically organize the rapidly growing research field that applies transformer architectures to time series modeling tasks. It compiles literature from major conferences and journals and categorizes them by application domains such as forecasting, anomaly detection, and classification. ...
    Downloads: 0 This Week
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  • 7
    torchtext

    torchtext

    Data loaders and abstractions for text and NLP

    We recommend Anaconda as a Python package management system. Please refer to pytorch.org for the details of PyTorch installation. LTS versions are distributed through a different channel than the other versioned releases. Alternatively, you might want to use the Moses tokenizer port in SacreMoses (split from NLTK). You have to install SacreMoses. To build torchtext from source, you need git, CMake and C++11 compiler such as g++. When building from source, make sure that you have the same C++...
    Downloads: 0 This Week
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  • 8
    Encord Active

    Encord Active

    The toolkit to test, validate, and evaluate your models and surface

    Encord Active is an open-source toolkit to test, validate, and evaluate your models and surface, curate, and prioritize the most valuable data for labeling to supercharge model performance. Encord Active has been designed as a all-in-one open source toolkit for improving your data quality and model performance. Use the intuitive UI to explore your data or access all the functionalities programmatically. Discover errors, outliers, and edge-cases within your data - all in one open source...
    Downloads: 3 This Week
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  • 9
    Hasktorch

    Hasktorch

    Tensors and neural networks in Haskell

    Hasktorch is a powerful Haskell library for tensor computation and neural network modeling, built on top of libtorch (the backend of PyTorch). It brings differentiable programming, automatic differentiation, and efficient tensor operations into Haskell’s strongly typed functional paradigm. This project is in active development, so expect changes to the library API as it evolves. We would like to invite new users to join our Hasktorch discord space for questions and discussions....
    Downloads: 1 This Week
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  • 10
    Useful Scripts

    Useful Scripts

    Useful scripts for making developer's everyday life easier

    Useful scripts for making developers' everyday lives easier and happier, involving java, shell, etc. Usually useful manual operations are made into scripts for convenient use, making the daily life of development easier. Share the functions (i.e. requirements, ideas) that are commonly used but not written into scripts, and submit an Issue. The scripts of this warehouse (such as related scripts) are deployed and used in the online production environment of JavaAlibaba and other companies...
    Downloads: 6 This Week
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  • 11
    Tensor Puzzles

    Tensor Puzzles

    Solve puzzles. Improve your pytorch

    Tensor Puzzles is an interactive collection of 21 exercises for learning tensor programming in PyTorch and NumPy. Each puzzle asks the learner to recreate a familiar array operation from first principles. Solutions must fit on one short line and use only a restricted set of indexing, arithmetic, comparison, and broadcasting tools. Standard convenience functions such as sum, view, squeeze, and take are intentionally prohibited.
    Downloads: 0 This Week
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  • 12
    Deep Learning Models

    Deep Learning Models

    A collection of various deep learning architectures, models, and tips

    This repository collects clear, well-documented implementations of deep learning models and training utilities written by Sebastian Raschka. The code favors readability and pedagogy: components are organized so you can trace data flow through layers, losses, optimizers, and evaluation. Examples span fundamental architectures—MLPs, CNNs, RNN/Transformers—and practical tasks like image classification or text modeling.
    Downloads: 0 This Week
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  • 13
    mall-admin-web

    mall-admin-web

    frontend component of the “mall” e-commerce system

    mall-admin-web is the frontend component of the “mall” e-commerce system, implemented in Vue (plus Element UI) to deliver the backend management interface: product management, order management, member management, promotions, operations, content, statistics and settings. It demonstrates how a modern single-page application can be structured to integrate with the backend services described in the learning / microservice projects, including authentication (JWT or token), REST APIs, role/permission management and real-time dashboards. The codebase offers modular UI architecture, Vue component patterns, dynamic menu and permission handling, and visualization of statistics and reports. For teams building an admin portal or internal operations system, this project provides a concrete blueprint for UI design, API integration, state management and role-based access control. ...
    Downloads: 0 This Week
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  • 14
    Zeta

    Zeta

    Build high-performance AI models with modular building blocks

    zeta is a deep learning library focused on providing cutting-edge AI and neural network models with a strong emphasis on research-grade architectures. It includes state-of-the-art implementations for rapid experimentation and model building.
    Downloads: 0 This Week
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  • 15
    snntorch

    snntorch

    Deep and online learning with spiking neural networks in Python

    snntorch is a deep learning library that enables researchers and developers to build and train spiking neural networks using the PyTorch framework. Spiking neural networks are biologically inspired models that communicate through discrete spike events rather than continuous activation values, making them closer to how neurons operate in the brain. The library extends PyTorch’s tensor computation capabilities to support gradient-based learning for networks composed of spiking neurons. ...
    Downloads: 0 This Week
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  • 16
    Uneebee

    Uneebee

    Platform for creating interactive courses

    ...Background jobs, caching, and pagination patterns are laid out in a way that scales from small communities to heavier usage. The codebase emphasizes maintainability with clear contexts, test coverage, and a straightforward deployment story. As a learning resource, it helps teams see how to stitch together Phoenix primitives into a cohesive, production-leaning application.
    Downloads: 0 This Week
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  • 17
    MLPerf

    MLPerf

    Reference implementations of MLPerf™ training benchmarks

    This is a repository of reference implementations for the MLPerf training benchmarks. These implementations are valid as starting points for benchmark implementations but are not fully optimized and are not intended to be used for "real" performance measurements of software frameworks or hardware. Benchmarking the performance of training ML models on a wide variety of use cases, software, and hardware drives AI performance across the tech industry. The MLPerf Training working group draws on...
    Downloads: 0 This Week
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  • 18
    Fondant

    Fondant

    Production-ready data processing made easy and shareable

    Fondant is a modular, pipeline-based framework designed to simplify the preparation of large-scale datasets for training machine learning models, especially foundation models. It offers an end-to-end system for ingesting raw data, applying transformations, filtering, and formatting outputs—all while remaining scalable and traceable. Fondant is designed with reproducibility in mind and supports containerized steps using Docker, making it easy to share and reuse data processing components. ...
    Downloads: 0 This Week
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  • 19
    airda

    airda

    airda(Air Data Agent

    airda(Air Data Agent) is a multi-smart body for data analysis, capable of understanding data development and data analysis needs, understanding data, generating data-oriented queries, data visualization, machine learning and other tasks of SQL and Python codes.
    Downloads: 0 This Week
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  • 20
    Flexe

    Flexe

    The open source federated learning for vehicular network simulation

    Flexe is a FL simulator designed for connected and autonomous vehicles (CAVs). It enables horizontal/vertical/transfer FL schemes and simulates realistic wireless and vehicular dynamics. Separate Python client (PyFlexe) available.
    Downloads: 0 This Week
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  • 21
    Sagify

    Sagify

    LLMs and Machine Learning done easily

    Sagify is a tool designed to simplify the process of deploying and managing machine learning models, including Large Language Models (LLMs), on AWS SageMaker. It abstracts the complexities involved in setting up and managing SageMaker resources, allowing developers to focus on building and fine-tuning models. Sagify provides a command-line interface (CLI) and supports various machine-learning frameworks, making it accessible for a wide range of users.
    Downloads: 0 This Week
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  • 22
    Django friendly finite state machine

    Django friendly finite state machine

    Django friendly finite state machine support

    Django-fsm adds simple declarative state management for Django models. If you need parallel task execution, view, and background task code reuse over different flows - check my new project Django-view flow. Instead of adding a state field to a Django model and managing its values by hand, you use FSMField and mark model methods with the transition decorator. These methods could contain side effects of the state change. You may also take a look at the Django-fsm-admin project containing a...
    Downloads: 1 This Week
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  • 23
    goodsKill

    goodsKill

    Microservices-based flash sale system for high-concurrency testing

    ...It includes modular services like gateway, authentication, order management, and seckill processing, along with a Vue 3-based admin UI. It also incorporates AI-driven simulation capabilities for automated testing. Designed primarily as a learning reference, it showcases scalable system design, microservices communication, and real-world tradeoffs in handling high-traffic transactional systems.
    Downloads: 1 This Week
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  • 24
    OneFlow

    OneFlow

    OneFlow is a deep learning framework designed to be user-friendly

    OneFlow is a deep learning framework designed to be user-friendly, scalable and efficient. An extension for OneFlow to target third-party compiler, such as XLA, TensorRT and OpenVINO etc.CUDA runtime is statically linked into OneFlow. OneFlow will work on a minimum supported driver, and any driver beyond. For more information. Distributed performance (efficiency) is the core technical difficulty of the deep learning framework.
    Downloads: 0 This Week
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  • 25
    Android MVP Architecture

    Android MVP Architecture

    Detailed sample app that implements MVP architecture

    ...Fast Android Networking manages remote requests, while PlaceHolderView and Android Debug Database support interface construction and database inspection. The classes emphasize inheritance and reuse, but the repository is deprecated and now serves mainly as a learning reference.
    Downloads: 0 This Week
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