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{
"model_type": "densenet",
"architecture": "densenet121",
"num_classes": 3,
"input_size": [224, 224],
"in_channels": 3,
"classifier_input_features": 1024,
"framework": "pytorch",
"task": "image-classification",
"domain": "histopathology",
"modality": "whole-slide-imaging",
"license": "gpl-3.0",
"tags": [
"histopathology",
"tissue-detection",
"whole-slide-imaging",
"pathology",
"medical-imaging",
"densenet",
"image-classification",
"computational-pathology",
"cancer-research"
],
"preprocessing": {
"resize": 224,
"normalization": {
"mean": [0.485, 0.456, 0.406],
"std": [0.229, 0.224, 0.225]
}
},
"class_labels": {
"0": "background",
"1": "artifact",
"2": "tissue"
},
"recommended_threshold": {
"class": 2,
"probability": 0.8,
"description": "Accept patches where class 2 (tissue) probability >= 0.8"
},
"version": "1.0.0",
"release_date": "2024",
"authors": [
"Lab-Rasool",
"Markowetz Lab (original training)"
],
"huggingface_repo": "Lab-Rasool/tissue-detector",
"related_frameworks": [
"HoneyBee"
]
}
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