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Yolov8x Visdrone

Developed by mshamrai
Object detection model based on YOLOv8x, specifically optimized for the VisDrone dataset captured by drones
Downloads 57
Release Time : 5/29/2023

Model Overview

This model is an object detection model based on the YOLOv8x architecture, specifically trained and optimized for the VisDrone dataset captured by drones, capable of detecting 10 common types of target objects.

Model Features

Drone Perspective Optimization
Specifically optimized for the perspective and scenes captured by drones
Multi-Class Detection
Capable of detecting 10 common types of target objects simultaneously
Efficient Inference
Based on the YOLOv8 architecture, providing efficient inference speed

Model Capabilities

Object Detection
Drone Image Analysis
Multi-Class Recognition

Use Cases

Drone Applications
Traffic Monitoring
Using drones for road traffic monitoring and object statistics
Crowd Analysis
Detecting and analyzing crowd density and distribution
Security Monitoring
Area Surveillance
Security monitoring and object detection for specific areas
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