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EthanL06/AID-SLICE3D
AID-SLICE3D is a image classification model from EthanL06. Use it when you need a label for an image. It is set up for pytorch. The card lists the license as cc-by-nc-4.0.
Checkpoints for AID (Adaptive Importance-guided Discretized Reconstruction), an image + tabular multimodal self-supervised pre-training framework.
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Updated Aug 15, 2026
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From the Hugging Face model README
Checkpoints for AID (Adaptive Importance-guided Discretized Reconstruction), an image + tabular multimodal self-supervised pre-training framework.
Code: https://github.com/Ethan-ysliu/AID
pretrain/aid_slice3d_pretrain_50bins.ckpt pre-training checkpoint
finetune/fold{0..4}_finetune_best.pth fine-tuned classifiers (5 folds)
huggingface-cli download EthanL06/AID-SLICE3D --local-dir ./ckpts
python run.py test \
--checkpoint ./ckpts/pretrain/aid_slice3d_pretrain_50bins.ckpt \
--model_dir ./ckpts/finetune \
--test_csv <test_ids.csv> \
--metadata_csv <metadata.csv> \
--image_dir <image_dir>
Released under CC BY-NC 4.0 — academic research use only, no commercial use.
Data: ISIC 2024 (SLICE-3D); see the ISIC archive for per-image attribution and licensing.
Research use only. Not a medical device.
@inproceedings{liu2026aid,
title = {Unlocking the Power of Medical Tabular Data via Semantic-Aware Multimodal Pre-training},
author = {Liu, Yingsheng and Li, Haiming and Zhu, Jingmin and Sun, Jiajun and
Mar, Victoria and Janda, Monika and Soyer, H. Peter and Ge, Zongyuan and Yu, Zhen},
booktitle = {Medical Image Computing and Computer Assisted Intervention (MICCAI)},
year = {2026}
}