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## **ProViCNet: Prostate-Specific Foundation Models with Patch-Level Contrast for Cancer Detection**
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### **π Overview**
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ProViCNet is an **organ-specific foundation model** designed for **prostate cancer detection** using **multi-modal medical imaging (mpMRI & TRUS)**. The model leverages **Vision Transformers (ViTs) with patch-level contrastive learning** to improve **cancer localization and classification**.
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π **For usage examples and detailed documentation, visit:**
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π **[ProViCNet GitHub Repository](https://github.com/pimed/ProViCNet/)**
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## **ProViCNet: Prostate-Specific Foundation Models with Patch-Level Contrast for Cancer Detection**
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### **π Overview**
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ProViCNet is an **organ-specific foundation model** designed for **prostate cancer detection** using **multi-modal medical imaging (mpMRI & TRUS)**. The model leverages **Vision Transformers (ViTs) with patch-level contrastive learning** to improve **cancer localization and classification**.
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π **For usage examples and detailed documentation, visit:**
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π **[ProViCNet GitHub Repository](https://github.com/pimed/ProViCNet/)**
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π **Reference Paper:**
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π **[ProViCNet: Organ-Specific Foundation Model for Prostate Cancer Detection](https://arxiv.org/abs/2502.00366)**
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