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Back to wkentaro/pytorch-fcn

Projects sharing features with Pytorch Fcn

30 open-source projects similar to wkentaro/pytorch-fcn, 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.

  • isht7/pytorch-deeplab-resnetI

    isht7/pytorch-deeplab-resnet

    0View on GitHub↗
    View on GitHub↗0
  • tensorflow/modelstensorflow avatar

    tensorflow/models

    77,663View on GitHub↗

    This repository serves as a centralized collection of state-of-the-art deep learning architectures and reference implementations designed for research and application development. It provides a comprehensive toolkit for computer vision and natural language processing, offering pre-built models and training pipelines for tasks ranging from image classification and object detection to complex sequence modeling. The project distinguishes itself by providing a flexible execution harness that manages the entire training lifecycle, including data ingestion and backpropagation. It supports scalable

    Python
    View on GitHub↗77,663
  • 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
  • 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

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  • kupynorest/deblurganKupynOrest avatar

    KupynOrest/DeblurGAN

    2,637View on GitHub↗

    Image Deblurring using Generative Adversarial Networks

    Pythonblurry-imagescomputer-visionconvolutional-networks
    View on GitHub↗2,637
  • 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
  • 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
  • dyhan0920/pyramidnet-pytorchdyhan0920 avatar

    dyhan0920/PyramidNet-PyTorch

    270View on GitHub↗

    A PyTorch implementation for PyramidNets (Deep Pyramidal Residual Networks, https://arxiv.org/abs/1610.02915)

    Python
    View on GitHub↗270
  • eladhoffer/captiongenE

    eladhoffer/captionGen

    0View on GitHub↗
    View on GitHub↗0
  • eladhoffer/convnet.pytorchE

    eladhoffer/convNet.pytorch

    0View on GitHub↗
    View on GitHub↗0
  • devendrachaplot/deeprl-groundingdevendrachaplot avatar

    devendrachaplot/DeepRL-Grounding

    237View on GitHub↗

    Train an RL agent to execute natural language instructions in a 3D Environment (PyTorch)

    Python
    View on GitHub↗237
  • desimone/pytorch-cat-vs-dogsD

    desimone/pytorch-cat-vs-dogs

    0View on GitHub↗
    View on GitHub↗0
  • dmitryulyanov/deep-image-priorDmitryUlyanov avatar

    DmitryUlyanov/deep-image-prior

    8,085View on GitHub↗

    This project is an unsupervised image restoration tool that uses a convolutional neural network as a structural prior to reconstruct images from noisy or incomplete data. It functions as a neural network image prior, utilizing the inherent biases of the network architecture to restore pixels without the need for a pre-trained dataset or external learning. The system performs zero-shot image restoration by treating the network architecture itself as a regularization term. It uses a randomly initialized encoder-decoder structure and iterative gradient descent to minimize pixel-wise loss, recove

    Jupyter Notebook
    View on GitHub↗8,085
  • dsksd/deepnlp-models-pytorchDSKSD avatar

    DSKSD/DeepNLP-models-Pytorch

    2,943View on GitHub↗

    Pytorch implementations of various Deep NLP models in cs-224n(Stanford Univ)

    Jupyter Notebook
    View on GitHub↗2,943
  • charlesshang/fastmaskrcnnCharlesShang avatar

    CharlesShang/FastMaskRCNN

    3,083View on GitHub↗

    Mask RCNN in TensorFlow

    Pythoncocodetectionfasterrcnn
    View on GitHub↗3,083
  • caogang/wgan-gpcaogang avatar

    caogang/wgan-gp

    1,548View on GitHub↗

    A pytorch implementation of Paper "Improved Training of Wasserstein GANs"

    Pythonpytorchwgan-gp
    View on GitHub↗1,548
  • clementpinard/depthnetC

    ClementPinard/DepthNet

    0View on GitHub↗
    View on GitHub↗0
  • bearpaw/pytorch-classificationbearpaw avatar

    bearpaw/pytorch-classification

    1,740View on GitHub↗

    Classification with PyTorch.

    Pythoncifar10cifar100classification
    View on GitHub↗1,740
  • c0nn3r/retinanetC

    c0nn3r/RetinaNet

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

    Cadene/vqa.pytorch

    0View on GitHub↗
    View on GitHub↗0
  • carpedm20/enas-pytorchcarpedm20 avatar

    carpedm20/ENAS-pytorch

    2,722View on GitHub↗

    PyTorch implementation of "Efficient Neural Architecture Search via Parameters Sharing"

    Pythongoogle-brainneural-architecture-searchpytorch
    View on GitHub↗2,722
  • castorini/honkC

    castorini/honk

    0View on GitHub↗
    View on GitHub↗0
  • 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
  • davexpro/pytorch-pose-estimationDavexPro avatar

    DavexPro/pytorch-pose-estimation

    159View on GitHub↗

    PyTorch Implementation of Realtime Multi-Person Pose Estimation project.

    Jupyter Notebook
    View on GitHub↗159
  • davidtvs/pytorch-enetD

    davidtvs/PyTorch-ENet

    0View on GitHub↗
    View on GitHub↗0
  • dbolya/yolactdbolya avatar

    dbolya/yolact

    5,231View on GitHub↗

    Yolact is a computer vision framework and real-time instance segmentation model. It utilizes a fully convolutional neural network to detect objects and generate pixel-level masks for images and video feeds. The system employs prototypical mask generation to create global mask prototypes that are linearly combined for instance-specific results. It incorporates deformable convolutional layers and deformable region-of-interest pooling to adapt spatial sampling to the irregular shapes of objects. The framework covers the full model development lifecycle, including training on custom datasets, ac

    Python
    View on GitHub↗5,231
  • 1zb/deformable-convolution-pytorch1zb avatar

    1zb/deformable-convolution-pytorch

    410View on GitHub↗

    PyTorch implementation of Deformable Convolution

    Cuda
    View on GitHub↗410
  • divamgupta/image-segmentation-kerasD

    divamgupta/image-segmentation-keras

    0View on GitHub↗

    Implementation of various Deep Image Segmentation models in keras.

    View on GitHub↗0
  • drsleep/tensorflow-deeplab-resnetDrSleep avatar

    DrSleep/tensorflow-deeplab-resnet

    1,258View on GitHub↗

    DeepLab-ResNet rebuilt in TensorFlow

    Pythondeeplab-resnetpascal-vocsemantic-segmentation
    View on GitHub↗1,258
  • bamos/densenet.pytorchbamos avatar

    bamos/densenet.pytorch

    838View on GitHub↗

    A PyTorch implementation of DenseNet.

    Python
    View on GitHub↗838