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deepmind/kinetics-i3d

0
View on GitHub↗
1,837 stars·470 forks·Python·Apache-2.0·7 views

Kinetics I3d

Convolutional neural network model for video classification trained on the Kinetics dataset.

Features

  • Generative Models - Action recognition models trained on the large-scale kinetics dataset.
  • Video Analysis - Inflated 3D ConvNet model for video action recognition.
  • Video Representation Learning - Inflated 3D ConvNet architecture trained on large-scale video datasets.

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Frequently asked questions

What does deepmind/kinetics-i3d do?

Convolutional neural network model for video classification trained on the Kinetics dataset.

What are the main features of deepmind/kinetics-i3d?

The main features of deepmind/kinetics-i3d are: Generative Models, Video Analysis, Video Representation Learning.

What are some open-source alternatives to deepmind/kinetics-i3d?

Open-source alternatives to deepmind/kinetics-i3d include: feichtenhofer/twostreamfusion — Code release for "Convolutional Two-Stream Network Fusion for Video Action Recognition", CVPR 2016. yjxiong/temporal-segment-networks — Code & Models for Temporal Segment Networks (TSN) in ECCV 2016. facebookresearch/video-nonlocal-net — Non-local Neural Networks for Video Classification. facebookresearch/slowfast — SlowFast is a PyTorch video understanding framework and spatiotemporal neural network library. It serves as a toolset… facebookresearch/jepa — This is a PyTorch self-supervised learning framework designed to train models that learn visual representations from… ajabri/videowalk.

Open-source alternatives to Kinetics I3d

Similar open-source projects, ranked by how many features they share with Kinetics I3d.
  • feichtenhofer/twostreamfusionfeichtenhofer avatar

    feichtenhofer/twostreamfusion

    716View on GitHub↗

    Code release for "Convolutional Two-Stream Network Fusion for Video Action Recognition", CVPR 2016.

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    View on GitHub↗716
  • facebookresearch/video-nonlocal-netfacebookresearch avatar

    facebookresearch/video-nonlocal-net

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    Non-local Neural Networks for Video Classification

    Python
    View on GitHub↗1,995
  • facebookresearch/slowfastfacebookresearch avatar

    facebookresearch/SlowFast

    7,377View on GitHub↗

    SlowFast is a PyTorch video understanding framework and spatiotemporal neural network library. It serves as a toolset for video action recognition, enabling the training and evaluation of models designed to classify complex activities and objects within video sequences. The framework is distinguished by its use of dual-pathway spatiotemporal sampling to capture both slow and fast motions. It supports self-supervised video learning for pre-training models on unlabeled data and employs multigrid spatiotemporal training to optimize learning across multiple spatial and temporal resolutions. The

    Python
    View on GitHub↗7,377
  • yjxiong/temporal-segment-networksyjxiong avatar

    yjxiong/temporal-segment-networks

    1,579View on GitHub↗

    Code & Models for Temporal Segment Networks (TSN) in ECCV 2016

    Python
    View on GitHub↗1,579
See all 30 alternatives to Kinetics I3d→