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--- |
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license: cc-by-nc-4.0 |
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datasets: |
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- ibrahimhamamci/CT-RATE |
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--- |
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<p align="center"> |
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<h2 align="center">[MIDL 2025] Imitating Radiological Scrolling: A Global-Local Attention Model for 3D Chest CT Volumes Multi-Label Anomaly Classification 🩺👨🏻⚕️</h2> |
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</p> |
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✅ Official implementation of the paper "Imitating Radiological Scrolling: A Global-Local Attention Model for 3D Chest CT Volumes Multi-Label Anomaly Classification". |
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📄 Paper accepted for publication at MIDL 2025: [arXiv preprint](https://arxiv.org/abs/2503.20652). |
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⚡️ Source code available at [https://github.com/theodpzz/ct-scroll](https://github.com/theodpzz/ct-scroll). |
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## 🔥 Available resources |
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**ckpt/model_state_dict.pt**: Model trained on the CT-RATE **train** set. |
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**ckpt/classification_threshold.csv**: Classification thresholds optimized on our validation set, leaving the official CT-RATE test set untouched. |
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## 🤝🏻 Acknowledgment |
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We thank contributors from the CT-RATE dataset available at [https://huggingface.co/datasets/ibrahimhamamci/CT-RATE](https://huggingface.co/datasets/ibrahimhamamci/CT-RATE), and from the Rad-ChestCT dataset available at [https://zenodo.org/records/6406114](https://zenodo.org/records/6406114). |
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## 📎Citation |
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If you use this repository in your work, we would appreciate the following citation: |
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```bibtex |
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@InProceedings{dipiazza_2025_ctscroll, |
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title = {Imitating Radiological Scrolling: A Global-Local Attention Model for 3D Chest CT Volumes Multi-Label Anomaly Classification}, |
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author = {Di Piazza, Theo and Lazarus, Carole and Nempont, Olivier and Boussel, Loic}, |
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booktitle = {Proceedings of The 8nd International Conference on Medical Imaging with Deep Learning -- MIDL 2025}, |
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year = {2025}, |
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publisher = {PMLR}, |
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} |
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``` |