Download config.json from OneScience-Group/SmaAtUNet: direct link, hf CLI and curl.
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https://huggingface.co/OneScience-Group/SmaAtUNet/resolve/main/config.json
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hf download hf://OneScience-Group/SmaAtUNet/config.json
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curl -L -o config.json https://huggingface.co/OneScience-Group/SmaAtUNet/resolve/main/config.json
1.46 kB
| { | |
| "model_name": "SmaAtUNet", | |
| "model_type": "smaatunet", | |
| "architectures": ["SmaAtUNet", "CBAM", "DepthwiseSeparableConv"], | |
| "framework": "PyTorch", | |
| "domain": "atmosphere", | |
| "task": "precipitation-nowcasting", | |
| "implementation": { | |
| "entry_point": "model/smaatunet.py", | |
| "scope": "small attention U-Net with depthwise-separable convolutions for multi-step precipitation regression", | |
| "train_script": "scripts/train.py", | |
| "inference_script": "scripts/inference.py", | |
| "evaluation_script": "scripts/result.py", | |
| "synthetic_data_script": "scripts/fake_data.py" | |
| }, | |
| "architecture": { | |
| "family": "five-level attention U-Net", | |
| "in_channels": 12, | |
| "out_channels": 6, | |
| "base_channels": 8, | |
| "kernels_per_layer": 2, | |
| "reduction_ratio": 4, | |
| "bilinear": true, | |
| "attention": "channel and spatial CBAM", | |
| "convolution": "depthwise separable" | |
| }, | |
| "data": { | |
| "datasets": ["KNMI precipitation radar maps"], | |
| "protocol": "smaat_unet_synthetic_precip_v1", | |
| "format": "NPZ", | |
| "train_file": "data/train.npz", | |
| "test_file": "data/test.npz", | |
| "input_shape": ["N", 12, 288, 288], | |
| "target_shape": ["N", 6, 288, 288], | |
| "interval_minutes": 5, | |
| "forecast_horizon_minutes": 30, | |
| "required_metadata": ["format_version", "data_source"] | |
| }, | |
| "configuration_sources": ["conf/config.yaml", "model/smaatunet.py", "scripts/fake_data.py", "scripts/train.py", "scripts/inference.py", "scripts/result.py"] | |
| } | |