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hackfest-dev/HF24-TechMen

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Neonatal Sleep Monitoring using Optical Flow (RAFT)

Introduction

This project aims to develop a system for monitoring sleep in neonates using optical flow techniques, particularly the RAFT (Optical Flow with Occlusions) algorithm. Neonatal sleep monitoring is crucial for assessing the health and well-being of infants in neonatal intensive care units (NICUs) and can provide valuable insights into their development and potential issues.

Features

  • Non-invasive monitoring of neonatal sleep patterns
  • High temporal resolution for detailed analysis of movement patterns and sleep stages
  • Accuracy in motion estimation, even in challenging scenarios such as occlusions
  • Real-time monitoring capabilities
  • Objective assessment of sleep stages through quantified movement patterns
  • Early identification of conditions like sleep apnea through abnormal sleep patterns
  • Support for longitudinal studies by enabling continuous and automated monitoring over extended periods

Requirements

  • Python 3.x
  • OpenCV
  • NumPy
  • RAFT (Optical Flow with Occlusions) library
  • Webcam or camera for capturing neonatal sleep footage

Installation

  1. Clone the repository:

  2. Install dependencies:

  3. Download and install the RAFT library from here.

Usage

  1. Connect a webcam or camera to your system.

  2. Run the main script

  3. Follow the on-screen instructions to start the neonatal sleep monitoring process.

Contributing

Contributions are welcome! If you would like to contribute to this project, please fork the repository and submit a pull request with your changes.

Acknowledgments

  • This project was inspired by the need for non-invasive methods of monitoring neonatal sleep.
  • Special thanks to the creators and contributors of the RAFT algorithm for providing a robust optical flow solution.

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Hackfest Repository - HF24-TechMen

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