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Dinov2 Base Finetuned SkinDisease

Developed by Jayanth2002
A skin disease classification model fine-tuned based on the DINOv2 base model, achieving 95.57% accuracy on the ISIC 2018+Atlas Dermatology dataset.
Downloads 1,584
Release Time : 9/19/2023

Model Overview

This model is an image classification model based on the Vision Transformer (ViT) architecture, specifically designed for the identification and classification of skin diseases.

Model Features

High Accuracy
Achieves 95.57% accuracy in skin disease classification tasks.
Based on DINOv2 Pre-trained Model
Utilizes feature extraction capabilities pre-trained on large-scale image data through self-supervised learning.
Multi-disease Classification
Capable of recognizing 31 different types of skin diseases.

Model Capabilities

Skin Disease Image Classification
Medical Image Analysis

Use Cases

Medical Diagnosis Assistance
Skin Disease Screening
Assists doctors in quickly identifying and classifying skin diseases.
95.57% accuracy
Telemedicine
Provides preliminary diagnostic support in areas lacking professional dermatologists.
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