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Yolov8s Forklift Detection

Developed by keremberke
An object detection model based on YOLOv8s, specifically designed for detecting forklifts and personnel
Downloads 217
Release Time : 1/22/2023

Model Overview

This model is an object detection model based on the YOLOv8 architecture, specifically designed for detecting forklifts and personnel in industrial environments, suitable for safety monitoring and logistics management scenarios.

Model Features

High-precision Detection
Achieves 0.851 mAP@0.5 accuracy on the forklift object detection dataset
Dual-category Recognition
Capable of detecting both forklifts and personnel simultaneously
Industrial Scenario Optimization
Specifically optimized for forklift and personnel detection in industrial environments

Model Capabilities

Object Detection
Forklift Recognition
Personnel Detection
Industrial Scenario Analysis

Use Cases

Industrial Safety
Forklift Safety Monitoring
Monitor forklift operations in warehouses or factories to prevent collisions with personnel
Real-time detection of forklift and personnel positions, providing safety alerts
Logistics Management
Forklift Usage Statistics
Track forklift usage frequency and distribution
Provide data support for logistics optimization
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