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Describe current intake and CPU/GPU split

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  1. README.md +3 -2
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@@ -13,10 +13,11 @@ preload_from_hub:
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  - radar-generalist/RADAR checkpoint_radar_pretrain.pth,bert-base-chinese/config.json,bert-base-chinese/config_decoder.json,bert-base-chinese/pytorch_model.bin,bert-base-chinese/tokenizer.json,bert-base-chinese/tokenizer_config.json,bert-base-chinese/vocab.txt
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- RADAR abdominal-CT findings demo: upload a contrast-enhanced abdominal CT as a single volume (`.nii` / `.nii.gz`, `.nrrd`, `.mha`) or a DICOM series (extensionless or `.dcm` files, or a `.zip`); get top-finding scores plus a table of all 146 per-finding scores.
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  - Paper/model: [radar-generalist/RADAR](https://huggingface.co/radar-generalist/RADAR) (CC BY-NC-SA 4.0, non-commercial research use only)
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  - Source: vendored inference code from the RADAR release (Zenodo `damo-radar.zip`, record `21271172`); weights load at runtime from the public HuggingFace repo, no token needed
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- - Runtime: ZeroGPU (`large`), single `@spaces.GPU(duration=180)` call per volume; preprocessing (1x1x5mm resample, 96x256x384 pad/crop) is the upstream MONAI chain, reused verbatim
 
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  Research assistance tool, not a medical diagnosis.
 
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  - radar-generalist/RADAR checkpoint_radar_pretrain.pth,bert-base-chinese/config.json,bert-base-chinese/config_decoder.json,bert-base-chinese/pytorch_model.bin,bert-base-chinese/tokenizer.json,bert-base-chinese/tokenizer_config.json,bert-base-chinese/vocab.txt
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+ RADAR abdominal-CT findings demo: upload a contrast-enhanced abdominal CT as a single volume (`.nii` / `.nii.gz`, `.nrrd`, `.mha`) or a DICOM series (extensionless or `.dcm` files, or a `.zip`, nested folders OK); get top-finding scores plus a table of all 146 per-finding scores.
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  - Paper/model: [radar-generalist/RADAR](https://huggingface.co/radar-generalist/RADAR) (CC BY-NC-SA 4.0, non-commercial research use only)
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  - Source: vendored inference code from the RADAR release (Zenodo `damo-radar.zip`, record `21271172`); weights load at runtime from the public HuggingFace repo, no token needed
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+ - Intake: everything normalizes to one `.nii.gz` via SimpleITK (no new deps); header+raw pairs (`.mhd`/`.nhdr`) need converting first. Multi-file uploads are treated as one DICOM series (largest series wins, ≥8 slices); a lone `.dcm` is rejected as one slice, not a volume
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+ - Runtime: ZeroGPU (`large`); CPU staging/conversion runs quota-free, then one `@spaces.GPU(duration=90)` scoring call per case. Preprocessing (1x1x5mm resample, 96x256x384 pad/crop) is the upstream MONAI chain, reused verbatim (`transformers==4.48.3`; v5's loader crashes on this 2022-vintage BERT fork)
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  Research assistance tool, not a medical diagnosis.