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Yolov5n License Plate

Developed by keremberke
Lightweight license plate detection model based on YOLOv5n, optimized for license plate recognition tasks
Downloads 68.64k
Release Time : 1/1/2023

Model Overview

This model is a license plate object detection model trained on the YOLOv5n architecture, suitable for vehicle license plate detection tasks with high detection accuracy and real-time performance.

Model Features

High-precision Detection
Achieves 0.978 mAP@0.5 accuracy on license plate detection tasks
Lightweight Model
Based on YOLOv5n architecture, suitable for deployment in resource-constrained environments
Easy to Use
Provides simple Python API and command-line interface

Model Capabilities

License Plate Detection
Object Localization
Real-time Inference

Use Cases

Intelligent Transportation
Parking Management System
Automatically recognizes license plate numbers of incoming and outgoing vehicles
Enables unmanned vehicle access management
Traffic Violation Detection
Identifies license plate information of violating vehicles
Assists traffic law enforcement systems in automatically recording violating vehicles
Security Monitoring
Residential Access Control System
Automatically recognizes registered vehicle license plate information
Enables automatic vehicle recognition and access control
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