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Esophageal Perforation-I: Introduction01:22

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The location of esophageal perforation can vary, occurring anywhere along the esophagus....
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Cyber-Physical System Interface for Implantable Esophageal Prosthesis.

Ana Magdalena Anghel1, Teodora Mîndra1

  • 1Faculty of Automatic Control and Computers, National University of Science and Technology POLITEHNICA Bucharest, 313 Splaiul Independenței, 060042 Bucharest, Romania.

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Summary

This study introduces a Cyber-Physical System Interface (CPSI) for implantable esophageal prostheses, enabling real-time monitoring of device position and interactions. The CPSI framework facilitates analysis of prosthesis geometry and tissue response for improved in vivo implant development.

Keywords:
Cyber-Physical System Interfaceesophageal prosthesisimplants

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Area of Science:

  • Biomedical Engineering
  • Medical Device Technology
  • Cyber-Physical Systems

Background:

  • Implantable medical devices require robust monitoring systems for in vivo performance evaluation.
  • Esophageal prostheses present unique challenges for tracking position and assessing tissue interaction.
  • Existing monitoring methods may lack the integration and real-time capabilities needed for complex implants.

Purpose of the Study:

  • To develop and implement a Cyber-Physical System Interface (CPSI) for an implantable esophageal prosthesis.
  • To create a simulation environment for analyzing the prosthesis's physical positioning and environmental interactions.
  • To demonstrate the CPSI's utility in evaluating prosthesis geometry variations and tissue response.

Main Methods:

  • Implementation of a Cyber-Physical System Interface (CPSI) in MATLAB (R2021b).
  • Integration of real-time sensor data aggregated via an Arduino external system.
  • Development of a simulation framework for in vivo implant monitoring and analysis.

Main Results:

  • Successful implementation of a CPSI for an implantable esophageal prosthesis in a simulation environment.
  • Demonstration of two case studies: prosthesis geometry variation analysis and tissue response evaluation.
  • Validation of the sensor-to-display flow for real-time monitoring.

Conclusions:

  • The proposed CPSI provides a versatile framework for monitoring in vivo implants.
  • The system enables detailed analysis of implant performance and biological interactions.
  • This approach is highly relevant for the development and refinement of various implantable medical devices.