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Computer Vision Frameworks · Awesome GitHub Repositories

9 repos

Awesome GitHub RepositoriesComputer Vision Frameworks

Toolkits and libraries for training, validating, and deploying deep learning models for image processing and computer vision tasks.

Explore 9 awesome GitHub repositories matching artificial intelligence & ml · Computer Vision Frameworks. Refine with filters or upvote what's useful.

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Awesome Computer Vision Frameworks GitHub Repositories

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  • vinta/awesome-python

    vinta/awesome-python

    283,687GitHubView on GitHub↗

    This project is a comprehensive, community-curated directory that organizes a vast landscape of Python software libraries, frameworks, and tools. It serves as a centralized knowledge base designed to facilitate ecosystem navigation and accelerate developer discovery across the entire software development lifecycle. Th

    Pythonawesomecollectionspython
  • huggingface/transformers

    huggingface/transformers

    156,730GitHubView on GitHub↗

    Transformers is a comprehensive library for machine learning that provides a unified interface for training, fine-tuning, and deploying transformer-based models. It supports a wide range of tasks, including text classification, language modeling, question answering, and sequence-to-sequence translation, while offering

    Pythonaudiodeep-learningdeepseek
  • opencv/opencv

    opencv/opencv

    86,238GitHubView on GitHub↗

    OpenCV is a comprehensive computer vision library designed for real-time performance and cross-platform deployment. It provides a native execution environment that leverages multi-threaded operations and automated memory management to handle intensive computational tasks, including image processing and machine learning

    C++c-plus-pluscomputer-visiondeep-learning
  • josephmisiti/awesome-machine-learning

    josephmisiti/awesome-machine-learning

    71,702GitHubView on GitHub↗

    This project is a comprehensive, community-driven directory of machine learning resources, software libraries, and educational materials. It serves as a centralized knowledge base for developers and researchers, organizing tools and frameworks by their primary programming language and technical domain to simplify disco

    Python
  • PaddlePaddle/PaddleOCR

    PaddlePaddle/PaddleOCR

    70,931GitHubView on GitHub↗

    PaddleOCR is a comprehensive optical character recognition framework designed for detecting and transcribing text from images and documents into structured, machine-readable formats. It provides a modular computer vision pipeline that decouples image preprocessing, text detection, and character recognition into indepen

    Pythonai4sciencechineseocrdocument-parsing
  • ultralytics/yolov5

    ultralytics/yolov5

    56,830GitHubView on GitHub↗

    YOLOv5 is a comprehensive computer vision framework designed for end-to-end deep learning, specializing in real-time object detection, image classification, and instance segmentation. It provides a unified toolkit that manages the entire lifecycle of a model, from initial dataset configuration and hyperparameter tuning

    Pythoncoremldeep-learningios
  • deepfakes/faceswap

    deepfakes/faceswap

    54,974GitHubView on GitHub↗

    Faceswap is a comprehensive framework for automated media manipulation and neural face synthesis. It provides a modular pipeline that manages the entire lifecycle of facial feature extraction, deep learning model training, and image conversion. By coordinating complex computer vision workflows, the system enables users

    Pythondeep-face-swapdeep-learningdeep-neural-networks
  • facebookresearch/segment-anything

    facebookresearch/segment-anything

    53,431GitHubView on GitHub↗

    This project provides a deep learning architecture designed to identify and isolate distinct objects within images by generating precise pixel-level masks. It functions as a browser-based inference engine, enabling the execution of complex machine learning models directly within web environments without requiring serve

    Jupyter Notebook
  • ultralytics/ultralytics

    ultralytics/ultralytics

    53,426GitHubView on GitHub↗

    Ultralytics is a comprehensive computer vision framework designed for training, validating, and deploying deep learning models across a wide range of visual recognition tasks. It provides a unified interface for core operations including object detection, instance segmentation, pose estimation, and image classification

    Pythonclicomputer-visiondeep-learning

Explore sub-tags

  • Computer Vision Architectures1 sub-tagStructural designs and neural network layouts specifically engineered for processing and interpreting visual data.
  • Computer Vision Libraries2 sub-tagsSoftware libraries providing algorithms and operations for image processing, visual data analysis, and recognition tasks.
  • Computer Vision Pipelines3 sub-tagsAutomated workflows designed to process, normalize, and manipulate facial or visual data for machine learning tasks.
Computer Vision Platforms1 sub-tag
Comprehensive environments that provide end-to-end support for developing and deploying computer vision applications, including pose estimation.
  • Computer Vision Techniques1 sub-tagMethodologies and algorithmic approaches used to improve the accuracy and robustness of computer vision models during inference.
  • Computer Vision Tools2 sub-tagsInteractive software interfaces used for labeling, annotating, and preparing visual datasets for model training.
  • Computer Vision Utilities3 sub-tagsHelper scripts and auxiliary tools for managing image processing tasks like alignment, thumbnail generation, and mask exporting.
  • Modular Vision PipelinesArchitectures that decouple image processing, feature detection, and analysis stages into configurable, independent components.
  • Web-Based Computer Vision1 sub-tagTechnologies that enable computer vision processing and image segmentation directly within web browser environments.