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Back to bgshih/crnn

Projects sharing features with Crnn

30 open-source projects similar to bgshih/crnn, ranked by shared indexed features. Tags may describe platforms or build tools rather than the same primary purpose. Check each project’s use case, license, and deployment requirements before treating it as a replacement.

  • osmr/imgclsmobosmr avatar

    osmr/imgclsmob

    3,018View on GitHub↗

    This repo is used to research convolutional networks primarily for computer vision tasks. For this purpose, the repo contains (re)implementations of various classification, segmentation, detection, and pose estimation models and scripts for training/evaluating/converting.

    Python
    View on GitHub↗3,018
  • jwyang/faster-rcnn.pytorchjwyang avatar

    jwyang/faster-rcnn.pytorch

    7,859View on GitHub↗

    This project is a PyTorch object detection framework that implements the Faster R-CNN architecture. It serves as a vision model for predicting precise bounding boxes around multiple objects within images and live video feeds. The system is optimized for multi-GPU training to reduce the time required for model convergence. It utilizes a GPU-accelerated design to handle the training and inference of complex detection networks. The framework covers the full object detection lifecycle, including custom network training and inference for static images and real-time video streams. It includes capa

    Python
    View on GitHub↗7,859
  • bamos/densenet.pytorchbamos avatar

    bamos/densenet.pytorch

    838View on GitHub↗

    A PyTorch implementation of DenseNet.

    Python
    View on GitHub↗838
  • oeway/pytorch-deform-convoeway avatar

    oeway/pytorch-deform-conv

    906View on GitHub↗

    PyTorch implementation of Deformable Convolution

    Pythondeep-learningdeep-learning-algorithms
    View on GitHub↗906
  • xternalz/wideresnet-pytorchxternalz avatar

    xternalz/WideResNet-pytorch

    346View on GitHub↗

    Wide Residual Networks (WideResNets) in PyTorch

    Python
    View on GitHub↗346

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  • rwightman/pytorch-image-modelsrwightman avatar

    rwightman/pytorch-image-models

    36,893View on GitHub↗

    This project is a library of pretrained computer vision architectures and backbones for image classification and feature extraction. It serves as a comprehensive model zoo and collection of standardized image encoders, including ResNet, Vision Transformers, and EfficientNet, for use in visual analysis and as backbones for object detection and image segmentation. The library provides a framework for distributed training and evaluation of image models using advanced data augmentation and optimization scripts. It includes a dedicated toolset for converting trained PyTorch vision models into the

    Python
    View on GitHub↗36,893
  • junyanz/pytorch-cyclegan-and-pix2pixjunyanz avatar

    junyanz/pytorch-CycleGAN-and-pix2pix

    24,951View on GitHub↗

    This project is a deep learning framework designed for training and deploying image-to-image translation models. It serves as a research platform for experimenting with neural network architectures that transform visual content between distinct stylistic domains, supporting both paired and unpaired training data. The framework distinguishes itself through its support for cycle-consistency constraints, which allow for image translation between domains without requiring corresponding paired examples. It provides a structured pipeline that utilizes adversarial loss optimization, where generator

    Pythoncomputer-graphicscomputer-visioncyclegan
    View on GitHub↗24,951
  • cmu-perceptual-computing-lab/openposeCMU-Perceptual-Computing-Lab avatar

    CMU-Perceptual-Computing-Lab/openpose

    34,145View on GitHub↗

    OpenPose is a real-time pose estimation engine designed to detect and track human body, face, hand, and foot landmarks. It functions as a multi-person motion tracker, identifying the spatial coordinates of multiple individuals simultaneously within video streams or static images. Beyond two-dimensional detection, the software acts as a three-dimensional kinematics processor, reconstructing spatial movement data from single or multiple synchronized camera perspectives. The system distinguishes itself through a bottom-up approach that utilizes part-affinity fields to associate body parts across

    C++caffecomputer-visioncpp
    View on GitHub↗34,145
  • nvidia/pix2pixhdNVIDIA avatar

    NVIDIA/pix2pixHD

    6,920View on GitHub↗

    pix2pixHD is a conditional generative adversarial network designed to transform semantic label maps into high-resolution photorealistic images. It functions as a high-resolution image synthesizer and an image-to-image translation model capable of producing synthetic images at 2048x1024 resolution. The system includes a semantic image editor that allows for the modification of high-resolution visuals by updating the underlying semantic label maps. This enables interactive image editing and the generation of photorealistic images based on source images or discrete label maps. The framework pro

    Python
    View on GitHub↗6,920
  • nvidia/vid2vidN

    NVIDIA/vid2vid

    0View on GitHub↗

    Pytorch implementation for high-resolution (e.g., 2048x1024) photorealistic video-to-video translation. It can be used for turning semantic label maps into photo-realistic videos, synthesizing people talking from edge maps, or generating human motions from poses. The core of video-to-video…

    View on GitHub↗0
  • thtrieu/darkflowthtrieu avatar

    thtrieu/darkflow

    6,140View on GitHub↗

    Darkflow is an object detection framework and computer vision pipeline that provides a programmatic interface for performing real-time image analysis and object identification. It functions as a tool for loading weights, fine-tuning models, and executing inference on both static images and video feeds. The project serves as a converter that translates Darknet configurations and weights into TensorFlow graphs to enable retraining and deployment. It includes a model exporter that saves trained graphs into portable protobuf files for use on mobile and native devices. The system covers capabilit

    Python
    View on GitHub↗6,140
  • yunjey/starganyunjey avatar

    yunjey/stargan

    5,292View on GitHub↗

    StarGAN is a PyTorch image-to-image translation framework designed to synthesize visual styles and attributes across multiple domains. It implements a generative adversarial network that serves as a deep learning image translator for modifying specific visual characteristics within an image dataset. The framework uses a single unified model to handle translations between multiple image domains rather than requiring separate pairs of models. It is a research implementation that learns mappings between different image attributes without the need for paired training data. The project covers the

    Python
    View on GitHub↗5,292
  • wkentaro/pytorch-fcnwkentaro avatar

    wkentaro/pytorch-fcn

    1,777View on GitHub↗

    PyTorch Implementation of Fully Convolutional Networks. (Training code to reproduce the original result is available.)

    Pythoncomputer-visionconvolutional-networksdeep-learning
    View on GitHub↗1,777
  • szagoruyko/attention-transferszagoruyko avatar

    szagoruyko/attention-transfer

    1,464View on GitHub↗

    Improving Convolutional Networks via Attention Transfer (ICLR 2017)

    Jupyter Notebookattentiondeep-learningknowledge-distillation
    View on GitHub↗1,464
  • aaron-xichen/pytorch-playgroundaaron-xichen avatar

    aaron-xichen/pytorch-playground

    2,714View on GitHub↗

    Base pretrained models and datasets in pytorch (MNIST, SVHN, CIFAR10, CIFAR100, STL10, AlexNet, VGG16, VGG19, ResNet, Inception, SqueezeNet)

    Pythonpytorchpytorch-tutorialpytorch-tutorials
    View on GitHub↗2,714
  • nvidia/unsupervised-video-interpolationNVIDIA avatar

    NVIDIA/unsupervised-video-interpolation

    107View on GitHub↗

    Unsupervised Video Interpolation using Cycle Consistency

    Python
    View on GitHub↗107
  • eriklindernoren/keras-ganeriklindernoren avatar

    eriklindernoren/Keras-GAN

    9,206View on GitHub↗

    Keras-GAN is a collection of generative adversarial network implementations built with Keras for synthetic data generation and image manipulation. It provides frameworks for image-to-image translation, image inpainting, and neural image super-resolution. The library includes tools for learning disentangled latent space representations to control specific attributes of synthetic outputs. It also features capabilities for image domain translation using paired or unpaired data and the ability to fill corrupted or missing image parts by analyzing surrounding visual context. The project covers ge

    Python
    View on GitHub↗9,206
  • google/mediapipegoogle avatar

    google/mediapipe

    35,673View on GitHub↗

    MediaPipe is a cross-platform machine learning framework designed for building and deploying pipelines that process live and streaming media. It provides a system for connecting processing components into custom machine learning chains to analyze real-time audio and video streams. The framework includes a suite of pre-trained models for tasks such as hand, face, and pose tracking, along with tools for retraining and customizing these models with specific datasets. It also features a dedicated benchmarker for measuring the execution speed and accuracy of machine learning models directly within

    C++
    View on GitHub↗35,673
  • 1zb/deformable-convolution-pytorch1zb avatar

    1zb/deformable-convolution-pytorch

    410View on GitHub↗

    PyTorch implementation of Deformable Convolution

    Cuda
    View on GitHub↗410
  • kupynorest/deblurganKupynOrest avatar

    KupynOrest/DeblurGAN

    2,637View on GitHub↗

    Image Deblurring using Generative Adversarial Networks

    Pythonblurry-imagescomputer-visionconvolutional-networks
    View on GitHub↗2,637
  • cs230-stanford/cs230-code-examplescs230-stanford avatar

    cs230-stanford/cs230-code-examples

    4,218View on GitHub↗

    This repository provides structured code examples and project templates designed for classroom instruction in machine learning and neural networks. It offers reference implementations of deep learning models for both computer vision and natural language processing tasks, built using PyTorch as the core framework. The codebase is organized as a modular project template with separate directories for data handling, model definitions, and training scripts, promoting reusability and clarity. It includes predefined pipelines for image classification and text processing, along with a command-line in

    Pythoncomputer-visionnatural-language-processingpytorch
    View on GitHub↗4,218
  • anuragranj/back2future.pytorchA

    anuragranj/back2future.pytorch

    0View on GitHub↗
    View on GitHub↗0
  • amdegroot/ssd.pytorchamdegroot avatar

    amdegroot/ssd.pytorch

    5,224View on GitHub↗

    This is a PyTorch object detection framework that implements the Single Shot MultiBox Detector for identifying and localizing multiple objects within images and video. The project provides a neural network architecture designed for single-shot object detection, which predicts bounding boxes and class labels in one pass. The implementation includes a real-time object detector capable of processing live video streams to track and label objects across sequential frames. It also features a complete computer vision training pipeline for preparing image datasets and training model weights. The fra

    Pythoncomputer-visiondeep-learningimage-recognition
    View on GitHub↗5,224
  • akshayubhat/deepvideoanalyticsA

    AKSHAYUBHAT/DeepVideoAnalytics

    0View on GitHub↗
    View on GitHub↗0
  • bodokaiser/piwiseB

    bodokaiser/piwise

    0View on GitHub↗

    Pixel-wise segmentation on the VOC2012dataset dataset using pytorchpytorch.

    View on GitHub↗0
  • bestivictory/ilgnetBestiVictory avatar

    BestiVictory/ILGnet

    114View on GitHub↗
    Python
    View on GitHub↗114
  • bulletphysics/bullet3bulletphysics avatar

    bulletphysics/bullet3

    14,243View on GitHub↗

    Bullet3 is a professional physics simulation engine designed for calculating rigid body, soft body, and collision dynamics within 3D environments and robotics applications. It functions as a computational framework for determining complex geometric intersections and contact manifolds between objects in simulated space. The library distinguishes itself through a distributed rendering framework that scales heavy graphical workloads and scene generation tasks across large clusters of machines. This capability enables the production of massive datasets by distributing complex scene generation acr

    C++computer-animationgame-developmentkinematics
    View on GitHub↗14,243
  • c0nn3r/retinanetC

    c0nn3r/RetinaNet

    0View on GitHub↗
    View on GitHub↗0
  • cadene/vqa.pytorchC

    Cadene/vqa.pytorch

    0View on GitHub↗
    View on GitHub↗0
  • almazan/wattsalmazan avatar

    almazan/watts

    36View on GitHub↗

    Word Spotting and Recognition with Embedded Attributes ==

    C
    View on GitHub↗36