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  • License: mit
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Created almost 3 years ago · Last pushed almost 3 years ago
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README.md

Face Mask Detection

Face Mask Detection System built with OpenCV, Keras/TensorFlow using Deep Learning and Computer Vision concepts in order to detect face masks in static images as well as in real-time video streams.

                               Python contributions welcome Forks Stargazers Issues LinkedIn

                                    Live Demo

:point_down: Support me here!

Buy Me A Coffee

:innocent: Motivation

Amid the ongoing COVID-19 pandemic, there are no efficient face mask detection applications which are now in high demand for transportation means, densely populated areas, residential districts, large-scale manufacturers and other enterprises to ensure safety. The absence of large datasets of with_mask images has made this task cumbersome and challenging.

PPT and Project Report sharing costs 1000 ($15)

If interested, contact me at chandrikadeb7@gmail.com

Purchase on Gumroad

:hourglass: Project Demo

:movie_camera: YouTube Demo Link

:computer: Dev Link

Already deployed version

:warning: TechStack/framework used

:star: Features

Our face mask detector doesn't use any morphed masked images dataset and the model is accurate. Owing to the use of MobileNetV2 architecture, it iscomputationally efficient, thus making it easier to deploy the model to embedded systems (Raspberry Pi, Google Coral, etc.).

This system can therefore be used in real-time applications which require face-mask detection for safety purposes due to the outbreak of Covid-19. This project can be integrated with embedded systems for application in airports, railway stations, offices, schools, and public places to ensure that public safety guidelines are followed.

:file_folder: Dataset

The dataset used can be downloaded here - Click to Download

This dataset consists of4095 imagesbelonging to two classes: * with_mask: 2165 images * without_mask: 1930 images

The images used were real images of faces wearing masks. The images were collected from the following sources:

:key: Prerequisites

All the dependencies and required libraries are included in the file requirements.txt See here

  Installation

  1. Clone the repo $ git clone https://github.com/chandrikadeb7/Face-Mask-Detection.git

  2. Change your directory to the cloned repo $ cd Face-Mask-Detection

  3. Create a Python virtual environment named 'test' and activate it $ virtualenv test $ source test/bin/activate

  4. Now, run the following command in your Terminal/Command Prompt to install the libraries required $ pip3 install -r requirements.txt

:bulb: Working

  1. Open terminal. Go into the cloned project directory and type the following command: $ python3 train_mask_detector.py --dataset dataset

  2. To detect face masks in an image type the following command: $ python3 detect_mask_image.py --image images/pic1.jpeg

  3. To detect face masks in real-time video streams type the following command: $ python3 detect_mask_video.py

    :key: Results

Our model gave 98% accuracy for Face Mask Detection after training via tensorflow-gpu==2.5.0

Open In Colab

We got the following accuracy/loss training curve plot

Streamlit app

Face Mask Detector webapp using Tensorflow & Streamlit

command $ streamlit run app.py

Images

Upload Images

Results

:clap: And it's done!

Feel free to mail me for any doubts/query :email: chandrikadeb7@gmail.com


Internet of Things Device Setup

Expected Hardware

Getting Started

  • Setup the Raspberry Pi case and Operating System by following the Getting Started section on page 3 at documentation/CanaKit-Raspberry-Pi-Quick-Start-Guide-4.0.pdf or https://www.canakit.com/Media/CanaKit-Raspberry-Pi-Quick-Start-Guide-4.0.pdf
    • With NOOBS, use the recommended operating system
  • Setup the PiCamera

Raspberry Pi App Installation & Execution

Run these commands after cloning the project

| Commands | Time to completion | |------------------------------------------------------------------------------------------------------------------------------|--------------------| | sudo apt install -y libatlas-base-dev liblapacke-dev gfortran | 1min | | sudo apt install -y libhdf5-dev libhdf5-103 | 1min | | pip3 install -r requirements.txt | 1-3 mins | | wget "https://raw.githubusercontent.com/PINTO0309/Tensorflow-bin/master/tensorflow-2.4.0-cp37-none-linuxarmv7ldownload.sh" | less than 10 secs | | ./tensorflow-2.4.0-cp37-none-linuxarmv7ldownload.sh | less than 10 secs | | pip3 install tensorflow-2.4.0-cp37-none-linux_armv7l.whl | 1-3 mins |


:trophy: Awards

Awarded Runners Up position in Amdocs Innovation India ICE Project Fair

:raising_hand: Cited by:

  1. https://osf.io/preprints/3gph4/
  2. https://link.springer.com/chapter/10.1007/978-981-33-4673-4_49
  3. https://ieeexplore.ieee.org/abstract/document/9312083/
  4. https://link.springer.com/chapter/10.1007/978-981-33-4673-4_48
  5. https://www.researchgate.net/profile/AkhyarAhmed/publication/344173985FaceMaskDetector/links/5f58c00ea6fdcc9879d8e6f7/Face-Mask-Detector.pdf

Appreciation

Selected in Devscript Winter Of Code

Selected in Script Winter Of Code

Seleted in Student Code-in

:+1: Credits

:handshake: Contribution

Please read the Contribution Guidelines here

Feel free to file a new issue with a respective title and description on the the Face-Mask-Detection repository. If you already found a solution to your problem, I would love to review your pull request!

:handshake: Our Contributors

:eyes: Code of Conduct

You can find our Code of Conduct here.

:heart: Owner

Made with :heart:  by Chandrika Deb

:eyes: License

MIT Chandrika Deb

Owner

  • Name: Vipin Gupta
  • Login: Realvipingupta
  • Kind: user
  • Location: Mumbai, Maharashtra
  • Company: @monk-growth

Senior DevOps & Architect Engineer| Azure | AWS | GCP | DevOps | Terraform | Kubernetes | Git | CI/CD | Microsoft Certified☁️

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