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Yu-Wu avatar

Yu-Wu/Exploit-Unknown-Gradually

0
View on GitHub↗
124 stars·36 forks·Python·MIT·0 viewsyu-wu.net/pdf/CVPR2018_Exploit-Unknown-Gradually.pdf↗

Exploit Unknown Gradually

CVPR 2018 Exploit the Unknown Gradually: One-Shot Video-Based Person Re-Identification by Stepwise Learning

Features

  • Computer Vision Research - One-shot video-based person re-identification.

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Frequently asked questions

What does yu-wu/exploit-unknown-gradually do?

CVPR 2018 Exploit the Unknown Gradually: One-Shot Video-Based Person Re-Identification by Stepwise Learning

What are the main features of yu-wu/exploit-unknown-gradually?

The main features of yu-wu/exploit-unknown-gradually are: Computer Vision Research.

What are some open-source alternatives to yu-wu/exploit-unknown-gradually?

Open-source alternatives to yu-wu/exploit-unknown-gradually include: zalandoresearch/fashion-mnist — This project is a computer vision benchmark and image classification dataset used to measure and compare the accuracy… agrimgupta92/sgan — Code for "Social GAN: Socially Acceptable Trajectories with Generative Adversarial Networks", Gupta et al, CVPR 2018. ahangchen/tfusion — CVPR2018: Unsupervised Cross-dataset Person Re-identification by Transfer Learning of Spatio-temporal Patterns. aimerykong/recurrent-pixel-embedding-for-instance-grouping — CVPR2018 - pixel embedding & grouping for structured prediction, e.g., instance segmentation. akanazawa/cmr — Angjoo Kanazawa \ , Shubham Tulsiani \ , Alexei A. Efros, Jitendra Malik. abhimanyudubey/confusion — Code for the ECCV 2018 paper "Pairwise Confusion for Fine-Grained Visual Classification".

Open-source alternatives to Exploit Unknown Gradually

Similar open-source projects, ranked by how many features they share with Exploit Unknown Gradually.
  • zalandoresearch/fashion-mnistzalandoresearch avatar

    zalandoresearch/fashion-mnist

    12,754View on GitHub↗

    This project is a computer vision benchmark and image classification dataset used to measure and compare the accuracy of machine learning models. It provides a standardized collection of labeled fashion product images and training data formatted to be compatible with the MNIST dataset structure. The dataset consists of fixed-dimension grayscale images and label-based category mappings, stored in a binary format. It includes pre-split training and testing sets and a static distribution to ensure consistent cross-model benchmarking. The repository supports image classification benchmarking and

    Pythonbenchmarkcomputer-visionconvolutional-neural-networks
    View on GitHub↗12,754
  • agrimgupta92/sganagrimgupta92 avatar

    agrimgupta92/sgan

    912View on GitHub↗

    Code for "Social GAN: Socially Acceptable Trajectories with Generative Adversarial Networks", Gupta et al, CVPR 2018

    Python
    View on GitHub↗912
  • ahangchen/tfusionahangchen avatar

    ahangchen/TFusion

    310View on GitHub↗

    CVPR2018: Unsupervised Cross-dataset Person Re-identification by Transfer Learning of Spatio-temporal Patterns

    Python
    View on GitHub↗310
  • abhimanyudubey/confusionabhimanyudubey avatar

    abhimanyudubey/confusion

    201View on GitHub↗

    Code for the ECCV 2018 paper "Pairwise Confusion for Fine-Grained Visual Classification"

    Python
    View on GitHub↗201
See all 30 alternatives to Exploit Unknown Gradually→