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Midnight

Developed by kaiko-ai
Midnight-12k is a foundational pathology model trained with self-supervised learning on a small dataset, achieving performance comparable to leading models
Downloads 516
Release Time : 3/25/2025

Model Overview

This model specializes in histopathological image feature extraction, utilizing an improved DINOv2 framework tailored for computational pathology

Model Features

Efficient small dataset training
Trained with only 12k whole slide images (WSI), reducing data volume by 100x compared to similar models
High-resolution post-training
Enhances embedding quality through high-resolution post-training, particularly suitable for pathological image analysis
Domain-optimized architecture
Improved DINOv2 framework for pathology, incorporating color enhancement and tile filtering techniques

Model Capabilities

Pathological image feature extraction
Histological classification
Pathological image segmentation
Gene expression prediction

Use Cases

Medical diagnosis
Breast cancer classification
Classification analysis of breast cancer tissue slides
Achieved 0.840 accuracy on BreaKHis dataset
Colorectal cancer detection
Identification of colorectal cancer tissue features
Achieved 0.967 accuracy on CRC dataset
Medical research
Gene expression prediction
Predicting gene expression patterns from pathological images
Achieved 0.412 performance on HEST benchmark
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