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# Histopathologic Cancer Detection - EfficientNetV2S & ViT-Hybrid
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This repository contains models for detecting metastatic cancer in histopathologic images.
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- **EfficientNetV2S**: A Baseline CNN-based model for local feature extraction.
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- **ViT-Hybrid**: A Transformer-based model that learns global dependencies.
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Both models were trained on the [Histopathologic Cancer Detection Kaggle dataset](https://www.kaggle.com/competitions/histopathologic-cancer-detection/data)
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## Model Performance
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- **EfficientNetV2S**
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- Accuracy: 93.59% (Private), 93.74% (Public)
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- AUC: 0.9774
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- **ViT-Hybrid**
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- Accuracy: 95.07% (Private), 94.87% (Public)
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- AUC: 0.9791
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- **ViT-Hybrid + TTA (Test-Time Augmentation)**
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- Accuracy: 96.50% (Private), 96.75% (Public)
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## Model Use
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from huggingface_hub import hf_hub_download
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from tensorflow.keras.models import load_model
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# Download EfficientNetV2S model
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model_path = hf_hub_download(repo_id="MooseML/EfficientNet-Cancer-Detection", filename="efficientnet_cancer_model.h5")
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model = load_model(model_path)
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# Download ViT-Hybrid model
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model_path_vit = hf_hub_download(repo_id="MooseML/EfficientNet-Cancer-Detection", filename="ViT_hybrid_cancer_model.h5")
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model_vit = load_model(model_path_vit)
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## Github and Kaggle Links for Full Training Pipeline
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- Full Training Code: [GitHub Repository](https://github.com/MooseML/Histopathologic-Cancer-Detection)
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- Kaggle Competition: [Histopathologic Cancer Detection](https://www.kaggle.com/competitions/histopathologic-cancer-detection)
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---
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license: mit
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