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Yolov5s License Plate

Developed by keremberke
A lightweight license plate detection model based on YOLOv5s, trained on the keremberke/license-plate-object-detection dataset, achieving a validation set mAP@0.5 of 0.985.
Downloads 310
Release Time : 1/1/2023

Model Overview

This model is a YOLOv5s implementation specifically designed for license plate detection, suitable for tasks such as traffic monitoring and smart parking.

Model Features

High Precision Detection
Achieves an mAP@0.5 accuracy of 0.985 in license plate detection tasks.
Lightweight Architecture
Based on the YOLOv5s architecture, balancing speed and accuracy.
Easy Deployment
Provides pip installation packages and simple APIs for quick integration.

Model Capabilities

License Plate Detection
Object Localization
Image Analysis

Use Cases

Smart Transportation
Traffic Monitoring System
Automatically detects license plates in surveillance videos.
High-precision recognition of license plate locations.
Smart Parking Lot
Identifies license plates of vehicles entering and exiting.
Enables automated billing and vehicle management.
Law Enforcement Assistance
Violation Vehicle Identification
Detects license plates of violating vehicles.
Assists in traffic law enforcement and evidence collection.
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