Code for "Learning From Multiple Experts: Self-paced Knowledge Distillation for Long-tailed Classification", ECCV 2020 Spotlight

Related tags

Deep LearningLFME
Overview

Learning From Multiple Experts: Self-paced Knowledge Distillation for Long-tailed Classification

Implementation of
"Learning From Multiple Experts: Self-paced Knowledge Distillation for Long-tailed Classification"
Liuyu Xiang, Guiguang Ding, Jungong Han;

in European Conference on Computer Vision (ECCV), 2020, Spotlight

Requirements

Data Preparation

Follow OLTR for data preparation.

Getting Started (Training & Testing)

  • Step 1: Train Expert models, or use the pre-trained model in ./logs/ImageNet_LT/
CUDA_VISIBLE_DEVICES=0 python main.py --config=./config/many_shot.py
CUDA_VISIBLE_DEVICES=0 python main.py --config=./config/median_shot.py
CUDA_VISIBLE_DEVICES=0 python main.py --config=./config/low_shot.py
  • Step 2: Train a single model using the LFME
CUDA_VISIBLE_DEVICES=0 python main_LFME.py --config=./config/ImageNet_LT/LFME.py
  • Evaluate LFME:
CUDA_VISIBLE_DEVICES=0 python main_LFME.py --config=./config/ImageNet_LT/LFME.py --test

Citation

If you find our work useful for your research, please consider citing the following paper:

@inproceedings{xiang2020learning,
  title={Learning from multiple experts: Self-paced knowledge distillation for long-tailed classification},
  author={Xiang, Liuyu and Ding, Guiguang and Han, Jungong},
  booktitle={European Conference on Computer Vision},
  pages={247--263},
  year={2020},
  organization={Springer}
}

Contact

If you have any questions, please feel free to contact [email protected].

Acknowledgement

The code is partly based on OLTR.

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