Construction-Hazard-Detection Computer Vision Project

dust

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Classes (10)
Hardhat Mask
NO-Hardhat
NO-Mask
NO-Safety Vest
Person
Safety Cone
Safety Vest
machinery
vehicle

Metrics

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Description

This project focuses on enhancing safety at construction sites by leveraging AI-driven hazard detection. Utilising the YOLO model for object detection, the system identifies potential hazards such as workers without helmets or safety vests, workers near machinery or vehicles, and workers in restricted areas. The project integrates real-time analysis and alert mechanisms to ensure immediate response to identified hazards.

GitHub Repository:

For more details and to access the source code, visit the Construction Hazard Detection GitHub repository.

Key Features:

  • Real-Time Detection: Instant identification of safety violations and potential hazards.
  • Multi-Language Support: Notifications and interface available in multiple languages including Traditional Chinese, Simplified Chinese, French, English, Thai, Vietnamese, and Indonesian.
  • Integration with Messaging Apps: Real-time notifications and images sent via LINE, Messenger, WeChat, and Telegram.
  • Customisable Detection Items: Configurable detection parameters to suit various safety requirements.

Dataset Information:

The dataset used for training includes images from the Construction Site Safety Image Dataset by Roboflow, enriched with additional annotations. The labels include:

  • Hardhat
  • Mask
  • NO-Hardhat
  • NO-Mask
  • NO-Safety Vest
  • Person
  • Safety Cone
  • Safety Vest
  • Machinery
  • Vehicle

Models for Detection:

Model Size (pixels) mAP (val 50) mAP (val 50-95) Params (M) FLOPs (B)
YOLO11n 640 54.1 31.0 2.6 6.5
YOLO11s 640 70.1 44.8 9.4 21.6
YOLO11m 640 // // 20.1 68.0
YOLO11l 640 // // 25.3 86.9
YOLO11x 640 76.8 52.5 56.9 194.9

Our comprehensive dataset ensures robust detection capabilities, making construction sites safer and more efficient.

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Cite This Project

LICENSE
CC BY 4.0

If you use this dataset in a research paper, please cite it using the following BibTeX:

                        @misc{
                            construction-hazard-detection-y8lbr_dataset,
                            title = { Construction-Hazard-Detection Dataset },
                            type = { Open Source Dataset },
                            author = { dust },
                            howpublished = { \url{ https://universe.roboflow.com/dust-kz0rz/construction-hazard-detection-y8lbr } },
                            url = { https://universe.roboflow.com/dust-kz0rz/construction-hazard-detection-y8lbr },
                            journal = { Roboflow Universe },
                            publisher = { Roboflow },
                            year = { 2024 },
                            month = { nov },
                            note = { visited on 2024-12-18 },
                            }