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| # AMOS (Multi-Modality Abdominal Multi-Organ Segmentation Challenge) | |
| ## License | |
| **CC BY 4.0** | |
| [Creative Commons Attribution 4.0 International License](https://creativecommons.org/licenses/by/4.0/) | |
| ## Citation | |
| Paper BibTeX: | |
| ```bibtex | |
| @article{ji2022amos, | |
| title={Amos: A large-scale abdominal multi-organ benchmark for versatile medical image segmentation}, | |
| author={Ji, Yuanfeng and Bai, Haotian and Ge, Chongjian and Yang, Jie and Zhu, Ye and Zhang, Ruimao and Li, Zhen and Zhanng, Lingyan and Ma, Wanling and Wan, Xiang and others}, | |
| journal={Advances in neural information processing systems}, | |
| volume={35}, | |
| pages={36722--36732}, | |
| year={2022} | |
| } | |
| ``` | |
| ## Dataset description | |
| AMOS is a large-scale abdominal multi-organ segmentation benchmark designed to advance clinical applications such as disease diagnosis and treatment planning. It contains 500 CT and 100 MRI scans from multi-center, multi-vendor, multi-modality, and multi-phase acquisitions, covering patients with a variety of abdominal diseases. Each case includes voxel-level annotations for 15 abdominal organs, enabling the development and fair comparison of versatile segmentation algorithms. | |
| **Challenge homepage**: https://amos22.grand-challenge.org/ | |
| **Number of CT volumes**: 200 | |
| **Contrast**: Contrast and non-contrast | |
| **CT body coverage**: Abdomen | |
| **Does the dataset include any ground truth annotations?**: Yes | |
| **Original GT annotation targets**: (15 abdominal organs) spleen, right kidney, left kidney, gallbladder, esophagus, liver, stomach, aorta, inferior vena cava, pancreas, right adrenal gland, left adrenal gland, duodenum, bladder, prostate/uterus | |
| **Number of annotated CT volumes**: 200 | |
| **Annotator**: AI + human refinement | |
| **Acquisition centers**: Longgang District Central Hospital (SZ, CHINA) and Longgang District People's Hospital (SZ, CHINA). | |
| **Pathology/Disease**: Patients diagnosed with abdominal tumors or other abnormalities; normal abdomen cases excluded | |
| **Original dataset download link**: https://zenodo.org/records/7262581 | |
| **Original dataset format**: nifti | |